Linux Audio

Check our new training course

Loading...
v5.14.15
   1/* SPDX-License-Identifier: GPL-2.0-only */
   2#ifndef __NET_CFG80211_H
   3#define __NET_CFG80211_H
   4/*
   5 * 802.11 device and configuration interface
   6 *
   7 * Copyright 2006-2010	Johannes Berg <johannes@sipsolutions.net>
   8 * Copyright 2013-2014 Intel Mobile Communications GmbH
   9 * Copyright 2015-2017	Intel Deutschland GmbH
  10 * Copyright (C) 2018-2021 Intel Corporation
  11 */
  12
  13#include <linux/ethtool.h>
  14#include <uapi/linux/rfkill.h>
  15#include <linux/netdevice.h>
  16#include <linux/debugfs.h>
  17#include <linux/list.h>
  18#include <linux/bug.h>
  19#include <linux/netlink.h>
  20#include <linux/skbuff.h>
  21#include <linux/nl80211.h>
  22#include <linux/if_ether.h>
  23#include <linux/ieee80211.h>
  24#include <linux/net.h>
  25#include <linux/rfkill.h>
  26#include <net/regulatory.h>
  27
  28/**
  29 * DOC: Introduction
  30 *
  31 * cfg80211 is the configuration API for 802.11 devices in Linux. It bridges
  32 * userspace and drivers, and offers some utility functionality associated
  33 * with 802.11. cfg80211 must, directly or indirectly via mac80211, be used
  34 * by all modern wireless drivers in Linux, so that they offer a consistent
  35 * API through nl80211. For backward compatibility, cfg80211 also offers
  36 * wireless extensions to userspace, but hides them from drivers completely.
  37 *
  38 * Additionally, cfg80211 contains code to help enforce regulatory spectrum
  39 * use restrictions.
  40 */
  41
  42
  43/**
  44 * DOC: Device registration
  45 *
  46 * In order for a driver to use cfg80211, it must register the hardware device
  47 * with cfg80211. This happens through a number of hardware capability structs
  48 * described below.
  49 *
  50 * The fundamental structure for each device is the 'wiphy', of which each
  51 * instance describes a physical wireless device connected to the system. Each
  52 * such wiphy can have zero, one, or many virtual interfaces associated with
  53 * it, which need to be identified as such by pointing the network interface's
  54 * @ieee80211_ptr pointer to a &struct wireless_dev which further describes
  55 * the wireless part of the interface, normally this struct is embedded in the
  56 * network interface's private data area. Drivers can optionally allow creating
  57 * or destroying virtual interfaces on the fly, but without at least one or the
  58 * ability to create some the wireless device isn't useful.
  59 *
  60 * Each wiphy structure contains device capability information, and also has
  61 * a pointer to the various operations the driver offers. The definitions and
  62 * structures here describe these capabilities in detail.
  63 */
  64
  65struct wiphy;
  66
  67/*
  68 * wireless hardware capability structures
  69 */
  70
  71/**
  72 * enum ieee80211_channel_flags - channel flags
  73 *
  74 * Channel flags set by the regulatory control code.
  75 *
  76 * @IEEE80211_CHAN_DISABLED: This channel is disabled.
  77 * @IEEE80211_CHAN_NO_IR: do not initiate radiation, this includes
  78 *	sending probe requests or beaconing.
  79 * @IEEE80211_CHAN_RADAR: Radar detection is required on this channel.
  80 * @IEEE80211_CHAN_NO_HT40PLUS: extension channel above this channel
  81 *	is not permitted.
  82 * @IEEE80211_CHAN_NO_HT40MINUS: extension channel below this channel
  83 *	is not permitted.
  84 * @IEEE80211_CHAN_NO_OFDM: OFDM is not allowed on this channel.
  85 * @IEEE80211_CHAN_NO_80MHZ: If the driver supports 80 MHz on the band,
  86 *	this flag indicates that an 80 MHz channel cannot use this
  87 *	channel as the control or any of the secondary channels.
  88 *	This may be due to the driver or due to regulatory bandwidth
  89 *	restrictions.
  90 * @IEEE80211_CHAN_NO_160MHZ: If the driver supports 160 MHz on the band,
  91 *	this flag indicates that an 160 MHz channel cannot use this
  92 *	channel as the control or any of the secondary channels.
  93 *	This may be due to the driver or due to regulatory bandwidth
  94 *	restrictions.
  95 * @IEEE80211_CHAN_INDOOR_ONLY: see %NL80211_FREQUENCY_ATTR_INDOOR_ONLY
  96 * @IEEE80211_CHAN_IR_CONCURRENT: see %NL80211_FREQUENCY_ATTR_IR_CONCURRENT
  97 * @IEEE80211_CHAN_NO_20MHZ: 20 MHz bandwidth is not permitted
  98 *	on this channel.
  99 * @IEEE80211_CHAN_NO_10MHZ: 10 MHz bandwidth is not permitted
 100 *	on this channel.
 101 * @IEEE80211_CHAN_NO_HE: HE operation is not permitted on this channel.
 102 * @IEEE80211_CHAN_1MHZ: 1 MHz bandwidth is permitted
 103 *	on this channel.
 104 * @IEEE80211_CHAN_2MHZ: 2 MHz bandwidth is permitted
 105 *	on this channel.
 106 * @IEEE80211_CHAN_4MHZ: 4 MHz bandwidth is permitted
 107 *	on this channel.
 108 * @IEEE80211_CHAN_8MHZ: 8 MHz bandwidth is permitted
 109 *	on this channel.
 110 * @IEEE80211_CHAN_16MHZ: 16 MHz bandwidth is permitted
 111 *	on this channel.
 112 *
 
 
 
 
 
 113 */
 114enum ieee80211_channel_flags {
 115	IEEE80211_CHAN_DISABLED		= 1<<0,
 116	IEEE80211_CHAN_NO_IR		= 1<<1,
 117	/* hole at 1<<2 */
 118	IEEE80211_CHAN_RADAR		= 1<<3,
 119	IEEE80211_CHAN_NO_HT40PLUS	= 1<<4,
 120	IEEE80211_CHAN_NO_HT40MINUS	= 1<<5,
 121	IEEE80211_CHAN_NO_OFDM		= 1<<6,
 122	IEEE80211_CHAN_NO_80MHZ		= 1<<7,
 123	IEEE80211_CHAN_NO_160MHZ	= 1<<8,
 124	IEEE80211_CHAN_INDOOR_ONLY	= 1<<9,
 125	IEEE80211_CHAN_IR_CONCURRENT	= 1<<10,
 126	IEEE80211_CHAN_NO_20MHZ		= 1<<11,
 127	IEEE80211_CHAN_NO_10MHZ		= 1<<12,
 128	IEEE80211_CHAN_NO_HE		= 1<<13,
 129	IEEE80211_CHAN_1MHZ		= 1<<14,
 130	IEEE80211_CHAN_2MHZ		= 1<<15,
 131	IEEE80211_CHAN_4MHZ		= 1<<16,
 132	IEEE80211_CHAN_8MHZ		= 1<<17,
 133	IEEE80211_CHAN_16MHZ		= 1<<18,
 
 
 134};
 135
 136#define IEEE80211_CHAN_NO_HT40 \
 137	(IEEE80211_CHAN_NO_HT40PLUS | IEEE80211_CHAN_NO_HT40MINUS)
 138
 139#define IEEE80211_DFS_MIN_CAC_TIME_MS		60000
 140#define IEEE80211_DFS_MIN_NOP_TIME_MS		(30 * 60 * 1000)
 141
 142/**
 143 * struct ieee80211_channel - channel definition
 144 *
 145 * This structure describes a single channel for use
 146 * with cfg80211.
 147 *
 148 * @center_freq: center frequency in MHz
 149 * @freq_offset: offset from @center_freq, in KHz
 150 * @hw_value: hardware-specific value for the channel
 151 * @flags: channel flags from &enum ieee80211_channel_flags.
 152 * @orig_flags: channel flags at registration time, used by regulatory
 153 *	code to support devices with additional restrictions
 154 * @band: band this channel belongs to.
 155 * @max_antenna_gain: maximum antenna gain in dBi
 156 * @max_power: maximum transmission power (in dBm)
 157 * @max_reg_power: maximum regulatory transmission power (in dBm)
 158 * @beacon_found: helper to regulatory code to indicate when a beacon
 159 *	has been found on this channel. Use regulatory_hint_found_beacon()
 160 *	to enable this, this is useful only on 5 GHz band.
 161 * @orig_mag: internal use
 162 * @orig_mpwr: internal use
 163 * @dfs_state: current state of this channel. Only relevant if radar is required
 164 *	on this channel.
 165 * @dfs_state_entered: timestamp (jiffies) when the dfs state was entered.
 166 * @dfs_cac_ms: DFS CAC time in milliseconds, this is valid for DFS channels.
 167 */
 168struct ieee80211_channel {
 169	enum nl80211_band band;
 170	u32 center_freq;
 171	u16 freq_offset;
 172	u16 hw_value;
 173	u32 flags;
 174	int max_antenna_gain;
 175	int max_power;
 176	int max_reg_power;
 177	bool beacon_found;
 178	u32 orig_flags;
 179	int orig_mag, orig_mpwr;
 180	enum nl80211_dfs_state dfs_state;
 181	unsigned long dfs_state_entered;
 182	unsigned int dfs_cac_ms;
 183};
 184
 185/**
 186 * enum ieee80211_rate_flags - rate flags
 187 *
 188 * Hardware/specification flags for rates. These are structured
 189 * in a way that allows using the same bitrate structure for
 190 * different bands/PHY modes.
 191 *
 192 * @IEEE80211_RATE_SHORT_PREAMBLE: Hardware can send with short
 193 *	preamble on this bitrate; only relevant in 2.4GHz band and
 194 *	with CCK rates.
 195 * @IEEE80211_RATE_MANDATORY_A: This bitrate is a mandatory rate
 196 *	when used with 802.11a (on the 5 GHz band); filled by the
 197 *	core code when registering the wiphy.
 198 * @IEEE80211_RATE_MANDATORY_B: This bitrate is a mandatory rate
 199 *	when used with 802.11b (on the 2.4 GHz band); filled by the
 200 *	core code when registering the wiphy.
 201 * @IEEE80211_RATE_MANDATORY_G: This bitrate is a mandatory rate
 202 *	when used with 802.11g (on the 2.4 GHz band); filled by the
 203 *	core code when registering the wiphy.
 204 * @IEEE80211_RATE_ERP_G: This is an ERP rate in 802.11g mode.
 205 * @IEEE80211_RATE_SUPPORTS_5MHZ: Rate can be used in 5 MHz mode
 206 * @IEEE80211_RATE_SUPPORTS_10MHZ: Rate can be used in 10 MHz mode
 207 */
 208enum ieee80211_rate_flags {
 209	IEEE80211_RATE_SHORT_PREAMBLE	= 1<<0,
 210	IEEE80211_RATE_MANDATORY_A	= 1<<1,
 211	IEEE80211_RATE_MANDATORY_B	= 1<<2,
 212	IEEE80211_RATE_MANDATORY_G	= 1<<3,
 213	IEEE80211_RATE_ERP_G		= 1<<4,
 214	IEEE80211_RATE_SUPPORTS_5MHZ	= 1<<5,
 215	IEEE80211_RATE_SUPPORTS_10MHZ	= 1<<6,
 216};
 217
 218/**
 219 * enum ieee80211_bss_type - BSS type filter
 220 *
 221 * @IEEE80211_BSS_TYPE_ESS: Infrastructure BSS
 222 * @IEEE80211_BSS_TYPE_PBSS: Personal BSS
 223 * @IEEE80211_BSS_TYPE_IBSS: Independent BSS
 224 * @IEEE80211_BSS_TYPE_MBSS: Mesh BSS
 225 * @IEEE80211_BSS_TYPE_ANY: Wildcard value for matching any BSS type
 226 */
 227enum ieee80211_bss_type {
 228	IEEE80211_BSS_TYPE_ESS,
 229	IEEE80211_BSS_TYPE_PBSS,
 230	IEEE80211_BSS_TYPE_IBSS,
 231	IEEE80211_BSS_TYPE_MBSS,
 232	IEEE80211_BSS_TYPE_ANY
 233};
 234
 235/**
 236 * enum ieee80211_privacy - BSS privacy filter
 237 *
 238 * @IEEE80211_PRIVACY_ON: privacy bit set
 239 * @IEEE80211_PRIVACY_OFF: privacy bit clear
 240 * @IEEE80211_PRIVACY_ANY: Wildcard value for matching any privacy setting
 241 */
 242enum ieee80211_privacy {
 243	IEEE80211_PRIVACY_ON,
 244	IEEE80211_PRIVACY_OFF,
 245	IEEE80211_PRIVACY_ANY
 246};
 247
 248#define IEEE80211_PRIVACY(x)	\
 249	((x) ? IEEE80211_PRIVACY_ON : IEEE80211_PRIVACY_OFF)
 250
 251/**
 252 * struct ieee80211_rate - bitrate definition
 253 *
 254 * This structure describes a bitrate that an 802.11 PHY can
 255 * operate with. The two values @hw_value and @hw_value_short
 256 * are only for driver use when pointers to this structure are
 257 * passed around.
 258 *
 259 * @flags: rate-specific flags
 260 * @bitrate: bitrate in units of 100 Kbps
 261 * @hw_value: driver/hardware value for this rate
 262 * @hw_value_short: driver/hardware value for this rate when
 263 *	short preamble is used
 264 */
 265struct ieee80211_rate {
 266	u32 flags;
 267	u16 bitrate;
 268	u16 hw_value, hw_value_short;
 269};
 270
 271/**
 272 * struct ieee80211_he_obss_pd - AP settings for spatial reuse
 273 *
 274 * @enable: is the feature enabled.
 275 * @sr_ctrl: The SR Control field of SRP element.
 276 * @non_srg_max_offset: non-SRG maximum tx power offset
 277 * @min_offset: minimal tx power offset an associated station shall use
 278 * @max_offset: maximum tx power offset an associated station shall use
 279 * @bss_color_bitmap: bitmap that indicates the BSS color values used by
 280 *	members of the SRG
 281 * @partial_bssid_bitmap: bitmap that indicates the partial BSSID values
 282 *	used by members of the SRG
 283 */
 284struct ieee80211_he_obss_pd {
 285	bool enable;
 286	u8 sr_ctrl;
 287	u8 non_srg_max_offset;
 288	u8 min_offset;
 289	u8 max_offset;
 290	u8 bss_color_bitmap[8];
 291	u8 partial_bssid_bitmap[8];
 292};
 293
 294/**
 295 * struct cfg80211_he_bss_color - AP settings for BSS coloring
 296 *
 297 * @color: the current color.
 298 * @enabled: HE BSS color is used
 299 * @partial: define the AID equation.
 300 */
 301struct cfg80211_he_bss_color {
 302	u8 color;
 303	bool enabled;
 304	bool partial;
 305};
 306
 307/**
 308 * struct ieee80211_sta_ht_cap - STA's HT capabilities
 309 *
 310 * This structure describes most essential parameters needed
 311 * to describe 802.11n HT capabilities for an STA.
 312 *
 313 * @ht_supported: is HT supported by the STA
 314 * @cap: HT capabilities map as described in 802.11n spec
 315 * @ampdu_factor: Maximum A-MPDU length factor
 316 * @ampdu_density: Minimum A-MPDU spacing
 317 * @mcs: Supported MCS rates
 318 */
 319struct ieee80211_sta_ht_cap {
 320	u16 cap; /* use IEEE80211_HT_CAP_ */
 321	bool ht_supported;
 322	u8 ampdu_factor;
 323	u8 ampdu_density;
 324	struct ieee80211_mcs_info mcs;
 325};
 326
 327/**
 328 * struct ieee80211_sta_vht_cap - STA's VHT capabilities
 329 *
 330 * This structure describes most essential parameters needed
 331 * to describe 802.11ac VHT capabilities for an STA.
 332 *
 333 * @vht_supported: is VHT supported by the STA
 334 * @cap: VHT capabilities map as described in 802.11ac spec
 335 * @vht_mcs: Supported VHT MCS rates
 336 */
 337struct ieee80211_sta_vht_cap {
 338	bool vht_supported;
 339	u32 cap; /* use IEEE80211_VHT_CAP_ */
 340	struct ieee80211_vht_mcs_info vht_mcs;
 341};
 342
 343#define IEEE80211_HE_PPE_THRES_MAX_LEN		25
 344
 345/**
 346 * struct ieee80211_sta_he_cap - STA's HE capabilities
 347 *
 348 * This structure describes most essential parameters needed
 349 * to describe 802.11ax HE capabilities for a STA.
 350 *
 351 * @has_he: true iff HE data is valid.
 352 * @he_cap_elem: Fixed portion of the HE capabilities element.
 353 * @he_mcs_nss_supp: The supported NSS/MCS combinations.
 354 * @ppe_thres: Holds the PPE Thresholds data.
 355 */
 356struct ieee80211_sta_he_cap {
 357	bool has_he;
 358	struct ieee80211_he_cap_elem he_cap_elem;
 359	struct ieee80211_he_mcs_nss_supp he_mcs_nss_supp;
 360	u8 ppe_thres[IEEE80211_HE_PPE_THRES_MAX_LEN];
 361};
 362
 363/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 364 * struct ieee80211_sband_iftype_data - sband data per interface type
 365 *
 366 * This structure encapsulates sband data that is relevant for the
 367 * interface types defined in @types_mask.  Each type in the
 368 * @types_mask must be unique across all instances of iftype_data.
 369 *
 370 * @types_mask: interface types mask
 371 * @he_cap: holds the HE capabilities
 372 * @he_6ghz_capa: HE 6 GHz capabilities, must be filled in for a
 373 *	6 GHz band channel (and 0 may be valid value).
 
 374 * @vendor_elems: vendor element(s) to advertise
 375 * @vendor_elems.data: vendor element(s) data
 376 * @vendor_elems.len: vendor element(s) length
 377 */
 378struct ieee80211_sband_iftype_data {
 379	u16 types_mask;
 380	struct ieee80211_sta_he_cap he_cap;
 381	struct ieee80211_he_6ghz_capa he_6ghz_capa;
 
 382	struct {
 383		const u8 *data;
 384		unsigned int len;
 385	} vendor_elems;
 386};
 387
 388/**
 389 * enum ieee80211_edmg_bw_config - allowed channel bandwidth configurations
 390 *
 391 * @IEEE80211_EDMG_BW_CONFIG_4: 2.16GHz
 392 * @IEEE80211_EDMG_BW_CONFIG_5: 2.16GHz and 4.32GHz
 393 * @IEEE80211_EDMG_BW_CONFIG_6: 2.16GHz, 4.32GHz and 6.48GHz
 394 * @IEEE80211_EDMG_BW_CONFIG_7: 2.16GHz, 4.32GHz, 6.48GHz and 8.64GHz
 395 * @IEEE80211_EDMG_BW_CONFIG_8: 2.16GHz and 2.16GHz + 2.16GHz
 396 * @IEEE80211_EDMG_BW_CONFIG_9: 2.16GHz, 4.32GHz and 2.16GHz + 2.16GHz
 397 * @IEEE80211_EDMG_BW_CONFIG_10: 2.16GHz, 4.32GHz, 6.48GHz and 2.16GHz+2.16GHz
 398 * @IEEE80211_EDMG_BW_CONFIG_11: 2.16GHz, 4.32GHz, 6.48GHz, 8.64GHz and
 399 *	2.16GHz+2.16GHz
 400 * @IEEE80211_EDMG_BW_CONFIG_12: 2.16GHz, 2.16GHz + 2.16GHz and
 401 *	4.32GHz + 4.32GHz
 402 * @IEEE80211_EDMG_BW_CONFIG_13: 2.16GHz, 4.32GHz, 2.16GHz + 2.16GHz and
 403 *	4.32GHz + 4.32GHz
 404 * @IEEE80211_EDMG_BW_CONFIG_14: 2.16GHz, 4.32GHz, 6.48GHz, 2.16GHz + 2.16GHz
 405 *	and 4.32GHz + 4.32GHz
 406 * @IEEE80211_EDMG_BW_CONFIG_15: 2.16GHz, 4.32GHz, 6.48GHz, 8.64GHz,
 407 *	2.16GHz + 2.16GHz and 4.32GHz + 4.32GHz
 408 */
 409enum ieee80211_edmg_bw_config {
 410	IEEE80211_EDMG_BW_CONFIG_4	= 4,
 411	IEEE80211_EDMG_BW_CONFIG_5	= 5,
 412	IEEE80211_EDMG_BW_CONFIG_6	= 6,
 413	IEEE80211_EDMG_BW_CONFIG_7	= 7,
 414	IEEE80211_EDMG_BW_CONFIG_8	= 8,
 415	IEEE80211_EDMG_BW_CONFIG_9	= 9,
 416	IEEE80211_EDMG_BW_CONFIG_10	= 10,
 417	IEEE80211_EDMG_BW_CONFIG_11	= 11,
 418	IEEE80211_EDMG_BW_CONFIG_12	= 12,
 419	IEEE80211_EDMG_BW_CONFIG_13	= 13,
 420	IEEE80211_EDMG_BW_CONFIG_14	= 14,
 421	IEEE80211_EDMG_BW_CONFIG_15	= 15,
 422};
 423
 424/**
 425 * struct ieee80211_edmg - EDMG configuration
 426 *
 427 * This structure describes most essential parameters needed
 428 * to describe 802.11ay EDMG configuration
 429 *
 430 * @channels: bitmap that indicates the 2.16 GHz channel(s)
 431 *	that are allowed to be used for transmissions.
 432 *	Bit 0 indicates channel 1, bit 1 indicates channel 2, etc.
 433 *	Set to 0 indicate EDMG not supported.
 434 * @bw_config: Channel BW Configuration subfield encodes
 435 *	the allowed channel bandwidth configurations
 436 */
 437struct ieee80211_edmg {
 438	u8 channels;
 439	enum ieee80211_edmg_bw_config bw_config;
 440};
 441
 442/**
 443 * struct ieee80211_sta_s1g_cap - STA's S1G capabilities
 444 *
 445 * This structure describes most essential parameters needed
 446 * to describe 802.11ah S1G capabilities for a STA.
 447 *
 448 * @s1g_supported: is STA an S1G STA
 449 * @cap: S1G capabilities information
 450 * @nss_mcs: Supported NSS MCS set
 451 */
 452struct ieee80211_sta_s1g_cap {
 453	bool s1g;
 454	u8 cap[10]; /* use S1G_CAPAB_ */
 455	u8 nss_mcs[5];
 456};
 457
 458/**
 459 * struct ieee80211_supported_band - frequency band definition
 460 *
 461 * This structure describes a frequency band a wiphy
 462 * is able to operate in.
 463 *
 464 * @channels: Array of channels the hardware can operate with
 465 *	in this band.
 466 * @band: the band this structure represents
 467 * @n_channels: Number of channels in @channels
 468 * @bitrates: Array of bitrates the hardware can operate with
 469 *	in this band. Must be sorted to give a valid "supported
 470 *	rates" IE, i.e. CCK rates first, then OFDM.
 471 * @n_bitrates: Number of bitrates in @bitrates
 472 * @ht_cap: HT capabilities in this band
 473 * @vht_cap: VHT capabilities in this band
 474 * @s1g_cap: S1G capabilities in this band
 475 * @edmg_cap: EDMG capabilities in this band
 476 * @s1g_cap: S1G capabilities in this band (S1B band only, of course)
 477 * @n_iftype_data: number of iftype data entries
 478 * @iftype_data: interface type data entries.  Note that the bits in
 479 *	@types_mask inside this structure cannot overlap (i.e. only
 480 *	one occurrence of each type is allowed across all instances of
 481 *	iftype_data).
 482 */
 483struct ieee80211_supported_band {
 484	struct ieee80211_channel *channels;
 485	struct ieee80211_rate *bitrates;
 486	enum nl80211_band band;
 487	int n_channels;
 488	int n_bitrates;
 489	struct ieee80211_sta_ht_cap ht_cap;
 490	struct ieee80211_sta_vht_cap vht_cap;
 491	struct ieee80211_sta_s1g_cap s1g_cap;
 492	struct ieee80211_edmg edmg_cap;
 493	u16 n_iftype_data;
 494	const struct ieee80211_sband_iftype_data *iftype_data;
 495};
 496
 497/**
 498 * ieee80211_get_sband_iftype_data - return sband data for a given iftype
 499 * @sband: the sband to search for the STA on
 500 * @iftype: enum nl80211_iftype
 501 *
 502 * Return: pointer to struct ieee80211_sband_iftype_data, or NULL is none found
 503 */
 504static inline const struct ieee80211_sband_iftype_data *
 505ieee80211_get_sband_iftype_data(const struct ieee80211_supported_band *sband,
 506				u8 iftype)
 507{
 508	int i;
 509
 510	if (WARN_ON(iftype >= NL80211_IFTYPE_MAX))
 511		return NULL;
 512
 513	for (i = 0; i < sband->n_iftype_data; i++)  {
 514		const struct ieee80211_sband_iftype_data *data =
 515			&sband->iftype_data[i];
 516
 517		if (data->types_mask & BIT(iftype))
 518			return data;
 519	}
 520
 521	return NULL;
 522}
 523
 524/**
 525 * ieee80211_get_he_iftype_cap - return HE capabilities for an sband's iftype
 526 * @sband: the sband to search for the iftype on
 527 * @iftype: enum nl80211_iftype
 528 *
 529 * Return: pointer to the struct ieee80211_sta_he_cap, or NULL is none found
 530 */
 531static inline const struct ieee80211_sta_he_cap *
 532ieee80211_get_he_iftype_cap(const struct ieee80211_supported_band *sband,
 533			    u8 iftype)
 534{
 535	const struct ieee80211_sband_iftype_data *data =
 536		ieee80211_get_sband_iftype_data(sband, iftype);
 537
 538	if (data && data->he_cap.has_he)
 539		return &data->he_cap;
 540
 541	return NULL;
 542}
 543
 544/**
 545 * ieee80211_get_he_6ghz_capa - return HE 6 GHz capabilities
 546 * @sband: the sband to search for the STA on
 547 * @iftype: the iftype to search for
 548 *
 549 * Return: the 6GHz capabilities
 550 */
 551static inline __le16
 552ieee80211_get_he_6ghz_capa(const struct ieee80211_supported_band *sband,
 553			   enum nl80211_iftype iftype)
 554{
 555	const struct ieee80211_sband_iftype_data *data =
 556		ieee80211_get_sband_iftype_data(sband, iftype);
 557
 558	if (WARN_ON(!data || !data->he_cap.has_he))
 559		return 0;
 560
 561	return data->he_6ghz_capa.capa;
 562}
 563
 564/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 565 * wiphy_read_of_freq_limits - read frequency limits from device tree
 566 *
 567 * @wiphy: the wireless device to get extra limits for
 568 *
 569 * Some devices may have extra limitations specified in DT. This may be useful
 570 * for chipsets that normally support more bands but are limited due to board
 571 * design (e.g. by antennas or external power amplifier).
 572 *
 573 * This function reads info from DT and uses it to *modify* channels (disable
 574 * unavailable ones). It's usually a *bad* idea to use it in drivers with
 575 * shared channel data as DT limitations are device specific. You should make
 576 * sure to call it only if channels in wiphy are copied and can be modified
 577 * without affecting other devices.
 578 *
 579 * As this function access device node it has to be called after set_wiphy_dev.
 580 * It also modifies channels so they have to be set first.
 581 * If using this helper, call it before wiphy_register().
 582 */
 583#ifdef CONFIG_OF
 584void wiphy_read_of_freq_limits(struct wiphy *wiphy);
 585#else /* CONFIG_OF */
 586static inline void wiphy_read_of_freq_limits(struct wiphy *wiphy)
 587{
 588}
 589#endif /* !CONFIG_OF */
 590
 591
 592/*
 593 * Wireless hardware/device configuration structures and methods
 594 */
 595
 596/**
 597 * DOC: Actions and configuration
 598 *
 599 * Each wireless device and each virtual interface offer a set of configuration
 600 * operations and other actions that are invoked by userspace. Each of these
 601 * actions is described in the operations structure, and the parameters these
 602 * operations use are described separately.
 603 *
 604 * Additionally, some operations are asynchronous and expect to get status
 605 * information via some functions that drivers need to call.
 606 *
 607 * Scanning and BSS list handling with its associated functionality is described
 608 * in a separate chapter.
 609 */
 610
 611#define VHT_MUMIMO_GROUPS_DATA_LEN (WLAN_MEMBERSHIP_LEN +\
 612				    WLAN_USER_POSITION_LEN)
 613
 614/**
 615 * struct vif_params - describes virtual interface parameters
 616 * @flags: monitor interface flags, unchanged if 0, otherwise
 617 *	%MONITOR_FLAG_CHANGED will be set
 618 * @use_4addr: use 4-address frames
 619 * @macaddr: address to use for this virtual interface.
 620 *	If this parameter is set to zero address the driver may
 621 *	determine the address as needed.
 622 *	This feature is only fully supported by drivers that enable the
 623 *	%NL80211_FEATURE_MAC_ON_CREATE flag.  Others may support creating
 624 **	only p2p devices with specified MAC.
 625 * @vht_mumimo_groups: MU-MIMO groupID, used for monitoring MU-MIMO packets
 626 *	belonging to that MU-MIMO groupID; %NULL if not changed
 627 * @vht_mumimo_follow_addr: MU-MIMO follow address, used for monitoring
 628 *	MU-MIMO packets going to the specified station; %NULL if not changed
 629 */
 630struct vif_params {
 631	u32 flags;
 632	int use_4addr;
 633	u8 macaddr[ETH_ALEN];
 634	const u8 *vht_mumimo_groups;
 635	const u8 *vht_mumimo_follow_addr;
 636};
 637
 638/**
 639 * struct key_params - key information
 640 *
 641 * Information about a key
 642 *
 643 * @key: key material
 644 * @key_len: length of key material
 645 * @cipher: cipher suite selector
 646 * @seq: sequence counter (IV/PN) for TKIP and CCMP keys, only used
 647 *	with the get_key() callback, must be in little endian,
 648 *	length given by @seq_len.
 649 * @seq_len: length of @seq.
 650 * @vlan_id: vlan_id for VLAN group key (if nonzero)
 651 * @mode: key install mode (RX_TX, NO_TX or SET_TX)
 652 */
 653struct key_params {
 654	const u8 *key;
 655	const u8 *seq;
 656	int key_len;
 657	int seq_len;
 658	u16 vlan_id;
 659	u32 cipher;
 660	enum nl80211_key_mode mode;
 661};
 662
 663/**
 664 * struct cfg80211_chan_def - channel definition
 665 * @chan: the (control) channel
 666 * @width: channel width
 667 * @center_freq1: center frequency of first segment
 668 * @center_freq2: center frequency of second segment
 669 *	(only with 80+80 MHz)
 670 * @edmg: define the EDMG channels configuration.
 671 *	If edmg is requested (i.e. the .channels member is non-zero),
 672 *	chan will define the primary channel and all other
 673 *	parameters are ignored.
 674 * @freq1_offset: offset from @center_freq1, in KHz
 675 */
 676struct cfg80211_chan_def {
 677	struct ieee80211_channel *chan;
 678	enum nl80211_chan_width width;
 679	u32 center_freq1;
 680	u32 center_freq2;
 681	struct ieee80211_edmg edmg;
 682	u16 freq1_offset;
 683};
 684
 685/*
 686 * cfg80211_bitrate_mask - masks for bitrate control
 687 */
 688struct cfg80211_bitrate_mask {
 689	struct {
 690		u32 legacy;
 691		u8 ht_mcs[IEEE80211_HT_MCS_MASK_LEN];
 692		u16 vht_mcs[NL80211_VHT_NSS_MAX];
 693		u16 he_mcs[NL80211_HE_NSS_MAX];
 694		enum nl80211_txrate_gi gi;
 695		enum nl80211_he_gi he_gi;
 696		enum nl80211_he_ltf he_ltf;
 697	} control[NUM_NL80211_BANDS];
 698};
 699
 700
 701/**
 702 * struct cfg80211_tid_cfg - TID specific configuration
 703 * @config_override: Flag to notify driver to reset TID configuration
 704 *	of the peer.
 705 * @tids: bitmap of TIDs to modify
 706 * @mask: bitmap of attributes indicating which parameter changed,
 707 *	similar to &nl80211_tid_config_supp.
 708 * @noack: noack configuration value for the TID
 709 * @retry_long: retry count value
 710 * @retry_short: retry count value
 711 * @ampdu: Enable/Disable MPDU aggregation
 712 * @rtscts: Enable/Disable RTS/CTS
 713 * @amsdu: Enable/Disable MSDU aggregation
 714 * @txrate_type: Tx bitrate mask type
 715 * @txrate_mask: Tx bitrate to be applied for the TID
 716 */
 717struct cfg80211_tid_cfg {
 718	bool config_override;
 719	u8 tids;
 720	u64 mask;
 721	enum nl80211_tid_config noack;
 722	u8 retry_long, retry_short;
 723	enum nl80211_tid_config ampdu;
 724	enum nl80211_tid_config rtscts;
 725	enum nl80211_tid_config amsdu;
 726	enum nl80211_tx_rate_setting txrate_type;
 727	struct cfg80211_bitrate_mask txrate_mask;
 728};
 729
 730/**
 731 * struct cfg80211_tid_config - TID configuration
 732 * @peer: Station's MAC address
 733 * @n_tid_conf: Number of TID specific configurations to be applied
 734 * @tid_conf: Configuration change info
 735 */
 736struct cfg80211_tid_config {
 737	const u8 *peer;
 738	u32 n_tid_conf;
 739	struct cfg80211_tid_cfg tid_conf[];
 740};
 741
 742/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 743 * cfg80211_get_chandef_type - return old channel type from chandef
 744 * @chandef: the channel definition
 745 *
 746 * Return: The old channel type (NOHT, HT20, HT40+/-) from a given
 747 * chandef, which must have a bandwidth allowing this conversion.
 748 */
 749static inline enum nl80211_channel_type
 750cfg80211_get_chandef_type(const struct cfg80211_chan_def *chandef)
 751{
 752	switch (chandef->width) {
 753	case NL80211_CHAN_WIDTH_20_NOHT:
 754		return NL80211_CHAN_NO_HT;
 755	case NL80211_CHAN_WIDTH_20:
 756		return NL80211_CHAN_HT20;
 757	case NL80211_CHAN_WIDTH_40:
 758		if (chandef->center_freq1 > chandef->chan->center_freq)
 759			return NL80211_CHAN_HT40PLUS;
 760		return NL80211_CHAN_HT40MINUS;
 761	default:
 762		WARN_ON(1);
 763		return NL80211_CHAN_NO_HT;
 764	}
 765}
 766
 767/**
 768 * cfg80211_chandef_create - create channel definition using channel type
 769 * @chandef: the channel definition struct to fill
 770 * @channel: the control channel
 771 * @chantype: the channel type
 772 *
 773 * Given a channel type, create a channel definition.
 774 */
 775void cfg80211_chandef_create(struct cfg80211_chan_def *chandef,
 776			     struct ieee80211_channel *channel,
 777			     enum nl80211_channel_type chantype);
 778
 779/**
 780 * cfg80211_chandef_identical - check if two channel definitions are identical
 781 * @chandef1: first channel definition
 782 * @chandef2: second channel definition
 783 *
 784 * Return: %true if the channels defined by the channel definitions are
 785 * identical, %false otherwise.
 786 */
 787static inline bool
 788cfg80211_chandef_identical(const struct cfg80211_chan_def *chandef1,
 789			   const struct cfg80211_chan_def *chandef2)
 790{
 791	return (chandef1->chan == chandef2->chan &&
 792		chandef1->width == chandef2->width &&
 793		chandef1->center_freq1 == chandef2->center_freq1 &&
 794		chandef1->freq1_offset == chandef2->freq1_offset &&
 795		chandef1->center_freq2 == chandef2->center_freq2);
 796}
 797
 798/**
 799 * cfg80211_chandef_is_edmg - check if chandef represents an EDMG channel
 800 *
 801 * @chandef: the channel definition
 802 *
 803 * Return: %true if EDMG defined, %false otherwise.
 804 */
 805static inline bool
 806cfg80211_chandef_is_edmg(const struct cfg80211_chan_def *chandef)
 807{
 808	return chandef->edmg.channels || chandef->edmg.bw_config;
 809}
 810
 811/**
 812 * cfg80211_chandef_compatible - check if two channel definitions are compatible
 813 * @chandef1: first channel definition
 814 * @chandef2: second channel definition
 815 *
 816 * Return: %NULL if the given channel definitions are incompatible,
 817 * chandef1 or chandef2 otherwise.
 818 */
 819const struct cfg80211_chan_def *
 820cfg80211_chandef_compatible(const struct cfg80211_chan_def *chandef1,
 821			    const struct cfg80211_chan_def *chandef2);
 822
 823/**
 824 * cfg80211_chandef_valid - check if a channel definition is valid
 825 * @chandef: the channel definition to check
 826 * Return: %true if the channel definition is valid. %false otherwise.
 827 */
 828bool cfg80211_chandef_valid(const struct cfg80211_chan_def *chandef);
 829
 830/**
 831 * cfg80211_chandef_usable - check if secondary channels can be used
 832 * @wiphy: the wiphy to validate against
 833 * @chandef: the channel definition to check
 834 * @prohibited_flags: the regulatory channel flags that must not be set
 835 * Return: %true if secondary channels are usable. %false otherwise.
 836 */
 837bool cfg80211_chandef_usable(struct wiphy *wiphy,
 838			     const struct cfg80211_chan_def *chandef,
 839			     u32 prohibited_flags);
 840
 841/**
 842 * cfg80211_chandef_dfs_required - checks if radar detection is required
 843 * @wiphy: the wiphy to validate against
 844 * @chandef: the channel definition to check
 845 * @iftype: the interface type as specified in &enum nl80211_iftype
 846 * Returns:
 847 *	1 if radar detection is required, 0 if it is not, < 0 on error
 848 */
 849int cfg80211_chandef_dfs_required(struct wiphy *wiphy,
 850				  const struct cfg80211_chan_def *chandef,
 851				  enum nl80211_iftype iftype);
 852
 853/**
 854 * ieee80211_chandef_rate_flags - returns rate flags for a channel
 
 855 *
 856 * In some channel types, not all rates may be used - for example CCK
 857 * rates may not be used in 5/10 MHz channels.
 858 *
 859 * @chandef: channel definition for the channel
 860 *
 861 * Returns: rate flags which apply for this channel
 862 */
 863static inline enum ieee80211_rate_flags
 864ieee80211_chandef_rate_flags(struct cfg80211_chan_def *chandef)
 865{
 866	switch (chandef->width) {
 867	case NL80211_CHAN_WIDTH_5:
 868		return IEEE80211_RATE_SUPPORTS_5MHZ;
 869	case NL80211_CHAN_WIDTH_10:
 870		return IEEE80211_RATE_SUPPORTS_10MHZ;
 871	default:
 872		break;
 873	}
 874	return 0;
 875}
 876
 877/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 878 * ieee80211_chandef_max_power - maximum transmission power for the chandef
 879 *
 880 * In some regulations, the transmit power may depend on the configured channel
 881 * bandwidth which may be defined as dBm/MHz. This function returns the actual
 882 * max_power for non-standard (20 MHz) channels.
 883 *
 884 * @chandef: channel definition for the channel
 885 *
 886 * Returns: maximum allowed transmission power in dBm for the chandef
 887 */
 888static inline int
 889ieee80211_chandef_max_power(struct cfg80211_chan_def *chandef)
 890{
 891	switch (chandef->width) {
 892	case NL80211_CHAN_WIDTH_5:
 893		return min(chandef->chan->max_reg_power - 6,
 894			   chandef->chan->max_power);
 895	case NL80211_CHAN_WIDTH_10:
 896		return min(chandef->chan->max_reg_power - 3,
 897			   chandef->chan->max_power);
 898	default:
 899		break;
 900	}
 901	return chandef->chan->max_power;
 902}
 903
 904/**
 905 * cfg80211_any_usable_channels - check for usable channels
 906 * @wiphy: the wiphy to check for
 907 * @band_mask: which bands to check on
 908 * @prohibited_flags: which channels to not consider usable,
 909 *	%IEEE80211_CHAN_DISABLED is always taken into account
 910 */
 911bool cfg80211_any_usable_channels(struct wiphy *wiphy,
 912				  unsigned long band_mask,
 913				  u32 prohibited_flags);
 914
 915/**
 916 * enum survey_info_flags - survey information flags
 917 *
 918 * @SURVEY_INFO_NOISE_DBM: noise (in dBm) was filled in
 919 * @SURVEY_INFO_IN_USE: channel is currently being used
 920 * @SURVEY_INFO_TIME: active time (in ms) was filled in
 921 * @SURVEY_INFO_TIME_BUSY: busy time was filled in
 922 * @SURVEY_INFO_TIME_EXT_BUSY: extension channel busy time was filled in
 923 * @SURVEY_INFO_TIME_RX: receive time was filled in
 924 * @SURVEY_INFO_TIME_TX: transmit time was filled in
 925 * @SURVEY_INFO_TIME_SCAN: scan time was filled in
 926 * @SURVEY_INFO_TIME_BSS_RX: local BSS receive time was filled in
 927 *
 928 * Used by the driver to indicate which info in &struct survey_info
 929 * it has filled in during the get_survey().
 930 */
 931enum survey_info_flags {
 932	SURVEY_INFO_NOISE_DBM		= BIT(0),
 933	SURVEY_INFO_IN_USE		= BIT(1),
 934	SURVEY_INFO_TIME		= BIT(2),
 935	SURVEY_INFO_TIME_BUSY		= BIT(3),
 936	SURVEY_INFO_TIME_EXT_BUSY	= BIT(4),
 937	SURVEY_INFO_TIME_RX		= BIT(5),
 938	SURVEY_INFO_TIME_TX		= BIT(6),
 939	SURVEY_INFO_TIME_SCAN		= BIT(7),
 940	SURVEY_INFO_TIME_BSS_RX		= BIT(8),
 941};
 942
 943/**
 944 * struct survey_info - channel survey response
 945 *
 946 * @channel: the channel this survey record reports, may be %NULL for a single
 947 *	record to report global statistics
 948 * @filled: bitflag of flags from &enum survey_info_flags
 949 * @noise: channel noise in dBm. This and all following fields are
 950 *	optional
 951 * @time: amount of time in ms the radio was turn on (on the channel)
 952 * @time_busy: amount of time the primary channel was sensed busy
 953 * @time_ext_busy: amount of time the extension channel was sensed busy
 954 * @time_rx: amount of time the radio spent receiving data
 955 * @time_tx: amount of time the radio spent transmitting data
 956 * @time_scan: amount of time the radio spent for scanning
 957 * @time_bss_rx: amount of time the radio spent receiving data on a local BSS
 958 *
 959 * Used by dump_survey() to report back per-channel survey information.
 960 *
 961 * This structure can later be expanded with things like
 962 * channel duty cycle etc.
 963 */
 964struct survey_info {
 965	struct ieee80211_channel *channel;
 966	u64 time;
 967	u64 time_busy;
 968	u64 time_ext_busy;
 969	u64 time_rx;
 970	u64 time_tx;
 971	u64 time_scan;
 972	u64 time_bss_rx;
 973	u32 filled;
 974	s8 noise;
 975};
 976
 977#define CFG80211_MAX_WEP_KEYS	4
 
 978
 979/**
 980 * struct cfg80211_crypto_settings - Crypto settings
 981 * @wpa_versions: indicates which, if any, WPA versions are enabled
 982 *	(from enum nl80211_wpa_versions)
 983 * @cipher_group: group key cipher suite (or 0 if unset)
 984 * @n_ciphers_pairwise: number of AP supported unicast ciphers
 985 * @ciphers_pairwise: unicast key cipher suites
 986 * @n_akm_suites: number of AKM suites
 987 * @akm_suites: AKM suites
 988 * @control_port: Whether user space controls IEEE 802.1X port, i.e.,
 989 *	sets/clears %NL80211_STA_FLAG_AUTHORIZED. If true, the driver is
 990 *	required to assume that the port is unauthorized until authorized by
 991 *	user space. Otherwise, port is marked authorized by default.
 992 * @control_port_ethertype: the control port protocol that should be
 993 *	allowed through even on unauthorized ports
 994 * @control_port_no_encrypt: TRUE to prevent encryption of control port
 995 *	protocol frames.
 996 * @control_port_over_nl80211: TRUE if userspace expects to exchange control
 997 *	port frames over NL80211 instead of the network interface.
 998 * @control_port_no_preauth: disables pre-auth rx over the nl80211 control
 999 *	port for mac80211
1000 * @wep_keys: static WEP keys, if not NULL points to an array of
1001 *	CFG80211_MAX_WEP_KEYS WEP keys
1002 * @wep_tx_key: key index (0..3) of the default TX static WEP key
1003 * @psk: PSK (for devices supporting 4-way-handshake offload)
1004 * @sae_pwd: password for SAE authentication (for devices supporting SAE
1005 *	offload)
1006 * @sae_pwd_len: length of SAE password (for devices supporting SAE offload)
1007 * @sae_pwe: The mechanisms allowed for SAE PWE derivation:
1008 *
1009 *	NL80211_SAE_PWE_UNSPECIFIED
1010 *	  Not-specified, used to indicate userspace did not specify any
1011 *	  preference. The driver should follow its internal policy in
1012 *	  such a scenario.
1013 *
1014 *	NL80211_SAE_PWE_HUNT_AND_PECK
1015 *	  Allow hunting-and-pecking loop only
1016 *
1017 *	NL80211_SAE_PWE_HASH_TO_ELEMENT
1018 *	  Allow hash-to-element only
1019 *
1020 *	NL80211_SAE_PWE_BOTH
1021 *	  Allow either hunting-and-pecking loop or hash-to-element
1022 */
1023struct cfg80211_crypto_settings {
1024	u32 wpa_versions;
1025	u32 cipher_group;
1026	int n_ciphers_pairwise;
1027	u32 ciphers_pairwise[NL80211_MAX_NR_CIPHER_SUITES];
1028	int n_akm_suites;
1029	u32 akm_suites[NL80211_MAX_NR_AKM_SUITES];
1030	bool control_port;
1031	__be16 control_port_ethertype;
1032	bool control_port_no_encrypt;
1033	bool control_port_over_nl80211;
1034	bool control_port_no_preauth;
1035	struct key_params *wep_keys;
1036	int wep_tx_key;
1037	const u8 *psk;
1038	const u8 *sae_pwd;
1039	u8 sae_pwd_len;
1040	enum nl80211_sae_pwe_mechanism sae_pwe;
1041};
1042
1043/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1044 * struct cfg80211_beacon_data - beacon data
 
1045 * @head: head portion of beacon (before TIM IE)
1046 *	or %NULL if not changed
1047 * @tail: tail portion of beacon (after TIM IE)
1048 *	or %NULL if not changed
1049 * @head_len: length of @head
1050 * @tail_len: length of @tail
1051 * @beacon_ies: extra information element(s) to add into Beacon frames or %NULL
1052 * @beacon_ies_len: length of beacon_ies in octets
1053 * @proberesp_ies: extra information element(s) to add into Probe Response
1054 *	frames or %NULL
1055 * @proberesp_ies_len: length of proberesp_ies in octets
1056 * @assocresp_ies: extra information element(s) to add into (Re)Association
1057 *	Response frames or %NULL
1058 * @assocresp_ies_len: length of assocresp_ies in octets
1059 * @probe_resp_len: length of probe response template (@probe_resp)
1060 * @probe_resp: probe response template (AP mode only)
 
1061 * @ftm_responder: enable FTM responder functionality; -1 for no change
1062 *	(which also implies no change in LCI/civic location data)
1063 * @lci: Measurement Report element content, starting with Measurement Token
1064 *	(measurement type 8)
1065 * @civicloc: Measurement Report element content, starting with Measurement
1066 *	Token (measurement type 11)
1067 * @lci_len: LCI data length
1068 * @civicloc_len: Civic location data length
 
 
 
1069 */
1070struct cfg80211_beacon_data {
 
 
1071	const u8 *head, *tail;
1072	const u8 *beacon_ies;
1073	const u8 *proberesp_ies;
1074	const u8 *assocresp_ies;
1075	const u8 *probe_resp;
1076	const u8 *lci;
1077	const u8 *civicloc;
 
1078	s8 ftm_responder;
1079
1080	size_t head_len, tail_len;
1081	size_t beacon_ies_len;
1082	size_t proberesp_ies_len;
1083	size_t assocresp_ies_len;
1084	size_t probe_resp_len;
1085	size_t lci_len;
1086	size_t civicloc_len;
 
 
1087};
1088
1089struct mac_address {
1090	u8 addr[ETH_ALEN];
1091};
1092
1093/**
1094 * struct cfg80211_acl_data - Access control list data
1095 *
1096 * @acl_policy: ACL policy to be applied on the station's
1097 *	entry specified by mac_addr
1098 * @n_acl_entries: Number of MAC address entries passed
1099 * @mac_addrs: List of MAC addresses of stations to be used for ACL
1100 */
1101struct cfg80211_acl_data {
1102	enum nl80211_acl_policy acl_policy;
1103	int n_acl_entries;
1104
1105	/* Keep it last */
1106	struct mac_address mac_addrs[];
1107};
1108
1109/**
1110 * struct cfg80211_fils_discovery - FILS discovery parameters from
1111 * IEEE Std 802.11ai-2016, Annex C.3 MIB detail.
1112 *
1113 * @min_interval: Minimum packet interval in TUs (0 - 10000)
1114 * @max_interval: Maximum packet interval in TUs (0 - 10000)
1115 * @tmpl_len: Template length
1116 * @tmpl: Template data for FILS discovery frame including the action
1117 *	frame headers.
1118 */
1119struct cfg80211_fils_discovery {
1120	u32 min_interval;
1121	u32 max_interval;
1122	size_t tmpl_len;
1123	const u8 *tmpl;
1124};
1125
1126/**
1127 * struct cfg80211_unsol_bcast_probe_resp - Unsolicited broadcast probe
1128 *	response parameters in 6GHz.
1129 *
1130 * @interval: Packet interval in TUs. Maximum allowed is 20 TU, as mentioned
1131 *	in IEEE P802.11ax/D6.0 26.17.2.3.2 - AP behavior for fast passive
1132 *	scanning
1133 * @tmpl_len: Template length
1134 * @tmpl: Template data for probe response
1135 */
1136struct cfg80211_unsol_bcast_probe_resp {
1137	u32 interval;
1138	size_t tmpl_len;
1139	const u8 *tmpl;
1140};
1141
1142/**
1143 * enum cfg80211_ap_settings_flags - AP settings flags
1144 *
1145 * Used by cfg80211_ap_settings
1146 *
1147 * @AP_SETTINGS_EXTERNAL_AUTH_SUPPORT: AP supports external authentication
1148 */
1149enum cfg80211_ap_settings_flags {
1150	AP_SETTINGS_EXTERNAL_AUTH_SUPPORT = BIT(0),
1151};
1152
1153/**
1154 * struct cfg80211_ap_settings - AP configuration
1155 *
1156 * Used to configure an AP interface.
1157 *
1158 * @chandef: defines the channel to use
1159 * @beacon: beacon data
1160 * @beacon_interval: beacon interval
1161 * @dtim_period: DTIM period
1162 * @ssid: SSID to be used in the BSS (note: may be %NULL if not provided from
1163 *	user space)
1164 * @ssid_len: length of @ssid
1165 * @hidden_ssid: whether to hide the SSID in Beacon/Probe Response frames
1166 * @crypto: crypto settings
1167 * @privacy: the BSS uses privacy
1168 * @auth_type: Authentication type (algorithm)
1169 * @smps_mode: SMPS mode
1170 * @inactivity_timeout: time in seconds to determine station's inactivity.
1171 * @p2p_ctwindow: P2P CT Window
1172 * @p2p_opp_ps: P2P opportunistic PS
1173 * @acl: ACL configuration used by the drivers which has support for
1174 *	MAC address based access control
1175 * @pbss: If set, start as a PCP instead of AP. Relevant for DMG
1176 *	networks.
1177 * @beacon_rate: bitrate to be used for beacons
1178 * @ht_cap: HT capabilities (or %NULL if HT isn't enabled)
1179 * @vht_cap: VHT capabilities (or %NULL if VHT isn't enabled)
1180 * @he_cap: HE capabilities (or %NULL if HE isn't enabled)
 
 
1181 * @ht_required: stations must support HT
1182 * @vht_required: stations must support VHT
1183 * @twt_responder: Enable Target Wait Time
1184 * @he_required: stations must support HE
1185 * @sae_h2e_required: stations must support direct H2E technique in SAE
1186 * @flags: flags, as defined in enum cfg80211_ap_settings_flags
1187 * @he_obss_pd: OBSS Packet Detection settings
1188 * @he_bss_color: BSS Color settings
1189 * @he_oper: HE operation IE (or %NULL if HE isn't enabled)
1190 * @fils_discovery: FILS discovery transmission parameters
1191 * @unsol_bcast_probe_resp: Unsolicited broadcast probe response parameters
 
1192 */
1193struct cfg80211_ap_settings {
1194	struct cfg80211_chan_def chandef;
1195
1196	struct cfg80211_beacon_data beacon;
1197
1198	int beacon_interval, dtim_period;
1199	const u8 *ssid;
1200	size_t ssid_len;
1201	enum nl80211_hidden_ssid hidden_ssid;
1202	struct cfg80211_crypto_settings crypto;
1203	bool privacy;
1204	enum nl80211_auth_type auth_type;
1205	enum nl80211_smps_mode smps_mode;
1206	int inactivity_timeout;
1207	u8 p2p_ctwindow;
1208	bool p2p_opp_ps;
1209	const struct cfg80211_acl_data *acl;
1210	bool pbss;
1211	struct cfg80211_bitrate_mask beacon_rate;
1212
1213	const struct ieee80211_ht_cap *ht_cap;
1214	const struct ieee80211_vht_cap *vht_cap;
1215	const struct ieee80211_he_cap_elem *he_cap;
1216	const struct ieee80211_he_operation *he_oper;
 
 
1217	bool ht_required, vht_required, he_required, sae_h2e_required;
1218	bool twt_responder;
1219	u32 flags;
1220	struct ieee80211_he_obss_pd he_obss_pd;
1221	struct cfg80211_he_bss_color he_bss_color;
1222	struct cfg80211_fils_discovery fils_discovery;
1223	struct cfg80211_unsol_bcast_probe_resp unsol_bcast_probe_resp;
 
1224};
1225
1226/**
1227 * struct cfg80211_csa_settings - channel switch settings
1228 *
1229 * Used for channel switch
1230 *
1231 * @chandef: defines the channel to use after the switch
1232 * @beacon_csa: beacon data while performing the switch
1233 * @counter_offsets_beacon: offsets of the counters within the beacon (tail)
1234 * @counter_offsets_presp: offsets of the counters within the probe response
1235 * @n_counter_offsets_beacon: number of csa counters the beacon (tail)
1236 * @n_counter_offsets_presp: number of csa counters in the probe response
1237 * @beacon_after: beacon data to be used on the new channel
1238 * @radar_required: whether radar detection is required on the new channel
1239 * @block_tx: whether transmissions should be blocked while changing
1240 * @count: number of beacons until switch
1241 */
1242struct cfg80211_csa_settings {
1243	struct cfg80211_chan_def chandef;
1244	struct cfg80211_beacon_data beacon_csa;
1245	const u16 *counter_offsets_beacon;
1246	const u16 *counter_offsets_presp;
1247	unsigned int n_counter_offsets_beacon;
1248	unsigned int n_counter_offsets_presp;
1249	struct cfg80211_beacon_data beacon_after;
1250	bool radar_required;
1251	bool block_tx;
1252	u8 count;
1253};
1254
1255/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1256 * struct iface_combination_params - input parameters for interface combinations
1257 *
1258 * Used to pass interface combination parameters
1259 *
1260 * @num_different_channels: the number of different channels we want
1261 *	to use for verification
1262 * @radar_detect: a bitmap where each bit corresponds to a channel
1263 *	width where radar detection is needed, as in the definition of
1264 *	&struct ieee80211_iface_combination.@radar_detect_widths
1265 * @iftype_num: array with the number of interfaces of each interface
1266 *	type.  The index is the interface type as specified in &enum
1267 *	nl80211_iftype.
1268 * @new_beacon_int: set this to the beacon interval of a new interface
1269 *	that's not operating yet, if such is to be checked as part of
1270 *	the verification
1271 */
1272struct iface_combination_params {
1273	int num_different_channels;
1274	u8 radar_detect;
1275	int iftype_num[NUM_NL80211_IFTYPES];
1276	u32 new_beacon_int;
1277};
1278
1279/**
1280 * enum station_parameters_apply_mask - station parameter values to apply
1281 * @STATION_PARAM_APPLY_UAPSD: apply new uAPSD parameters (uapsd_queues, max_sp)
1282 * @STATION_PARAM_APPLY_CAPABILITY: apply new capability
1283 * @STATION_PARAM_APPLY_PLINK_STATE: apply new plink state
 
1284 *
1285 * Not all station parameters have in-band "no change" signalling,
1286 * for those that don't these flags will are used.
1287 */
1288enum station_parameters_apply_mask {
1289	STATION_PARAM_APPLY_UAPSD = BIT(0),
1290	STATION_PARAM_APPLY_CAPABILITY = BIT(1),
1291	STATION_PARAM_APPLY_PLINK_STATE = BIT(2),
1292	STATION_PARAM_APPLY_STA_TXPOWER = BIT(3),
1293};
1294
1295/**
1296 * struct sta_txpwr - station txpower configuration
1297 *
1298 * Used to configure txpower for station.
1299 *
1300 * @power: tx power (in dBm) to be used for sending data traffic. If tx power
1301 *	is not provided, the default per-interface tx power setting will be
1302 *	overriding. Driver should be picking up the lowest tx power, either tx
1303 *	power per-interface or per-station.
1304 * @type: In particular if TPC %type is NL80211_TX_POWER_LIMITED then tx power
1305 *	will be less than or equal to specified from userspace, whereas if TPC
1306 *	%type is NL80211_TX_POWER_AUTOMATIC then it indicates default tx power.
1307 *	NL80211_TX_POWER_FIXED is not a valid configuration option for
1308 *	per peer TPC.
1309 */
1310struct sta_txpwr {
1311	s16 power;
1312	enum nl80211_tx_power_setting type;
1313};
1314
1315/**
1316 * struct station_parameters - station parameters
1317 *
1318 * Used to change and create a new station.
1319 *
1320 * @vlan: vlan interface station should belong to
 
 
1321 * @supported_rates: supported rates in IEEE 802.11 format
1322 *	(or NULL for no change)
1323 * @supported_rates_len: number of supported rates
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1324 * @sta_flags_mask: station flags that changed
1325 *	(bitmask of BIT(%NL80211_STA_FLAG_...))
1326 * @sta_flags_set: station flags values
1327 *	(bitmask of BIT(%NL80211_STA_FLAG_...))
1328 * @listen_interval: listen interval or -1 for no change
1329 * @aid: AID or zero for no change
1330 * @vlan_id: VLAN ID for station (if nonzero)
1331 * @peer_aid: mesh peer AID or zero for no change
1332 * @plink_action: plink action to take
1333 * @plink_state: set the peer link state for a station
1334 * @ht_capa: HT capabilities of station
1335 * @vht_capa: VHT capabilities of station
1336 * @uapsd_queues: bitmap of queues configured for uapsd. same format
1337 *	as the AC bitmap in the QoS info field
1338 * @max_sp: max Service Period. same format as the MAX_SP in the
1339 *	QoS info field (but already shifted down)
1340 * @sta_modify_mask: bitmap indicating which parameters changed
1341 *	(for those that don't have a natural "no change" value),
1342 *	see &enum station_parameters_apply_mask
1343 * @local_pm: local link-specific mesh power save mode (no change when set
1344 *	to unknown)
1345 * @capability: station capability
1346 * @ext_capab: extended capabilities of the station
1347 * @ext_capab_len: number of extended capabilities
1348 * @supported_channels: supported channels in IEEE 802.11 format
1349 * @supported_channels_len: number of supported channels
1350 * @supported_oper_classes: supported oper classes in IEEE 802.11 format
1351 * @supported_oper_classes_len: number of supported operating classes
1352 * @opmode_notif: operating mode field from Operating Mode Notification
1353 * @opmode_notif_used: information if operating mode field is used
1354 * @support_p2p_ps: information if station supports P2P PS mechanism
1355 * @he_capa: HE capabilities of station
1356 * @he_capa_len: the length of the HE capabilities
1357 * @airtime_weight: airtime scheduler weight for this station
1358 * @txpwr: transmit power for an associated station
1359 * @he_6ghz_capa: HE 6 GHz Band capabilities of station
1360 */
1361struct station_parameters {
1362	const u8 *supported_rates;
1363	struct net_device *vlan;
1364	u32 sta_flags_mask, sta_flags_set;
1365	u32 sta_modify_mask;
1366	int listen_interval;
1367	u16 aid;
1368	u16 vlan_id;
1369	u16 peer_aid;
1370	u8 supported_rates_len;
1371	u8 plink_action;
1372	u8 plink_state;
1373	const struct ieee80211_ht_cap *ht_capa;
1374	const struct ieee80211_vht_cap *vht_capa;
1375	u8 uapsd_queues;
1376	u8 max_sp;
1377	enum nl80211_mesh_power_mode local_pm;
1378	u16 capability;
1379	const u8 *ext_capab;
1380	u8 ext_capab_len;
1381	const u8 *supported_channels;
1382	u8 supported_channels_len;
1383	const u8 *supported_oper_classes;
1384	u8 supported_oper_classes_len;
1385	u8 opmode_notif;
1386	bool opmode_notif_used;
1387	int support_p2p_ps;
1388	const struct ieee80211_he_cap_elem *he_capa;
1389	u8 he_capa_len;
1390	u16 airtime_weight;
1391	struct sta_txpwr txpwr;
1392	const struct ieee80211_he_6ghz_capa *he_6ghz_capa;
1393};
1394
1395/**
1396 * struct station_del_parameters - station deletion parameters
1397 *
1398 * Used to delete a station entry (or all stations).
1399 *
1400 * @mac: MAC address of the station to remove or NULL to remove all stations
1401 * @subtype: Management frame subtype to use for indicating removal
1402 *	(10 = Disassociation, 12 = Deauthentication)
1403 * @reason_code: Reason code for the Disassociation/Deauthentication frame
1404 */
1405struct station_del_parameters {
1406	const u8 *mac;
1407	u8 subtype;
1408	u16 reason_code;
1409};
1410
1411/**
1412 * enum cfg80211_station_type - the type of station being modified
1413 * @CFG80211_STA_AP_CLIENT: client of an AP interface
1414 * @CFG80211_STA_AP_CLIENT_UNASSOC: client of an AP interface that is still
1415 *	unassociated (update properties for this type of client is permitted)
1416 * @CFG80211_STA_AP_MLME_CLIENT: client of an AP interface that has
1417 *	the AP MLME in the device
1418 * @CFG80211_STA_AP_STA: AP station on managed interface
1419 * @CFG80211_STA_IBSS: IBSS station
1420 * @CFG80211_STA_TDLS_PEER_SETUP: TDLS peer on managed interface (dummy entry
1421 *	while TDLS setup is in progress, it moves out of this state when
1422 *	being marked authorized; use this only if TDLS with external setup is
1423 *	supported/used)
1424 * @CFG80211_STA_TDLS_PEER_ACTIVE: TDLS peer on managed interface (active
1425 *	entry that is operating, has been marked authorized by userspace)
1426 * @CFG80211_STA_MESH_PEER_KERNEL: peer on mesh interface (kernel managed)
1427 * @CFG80211_STA_MESH_PEER_USER: peer on mesh interface (user managed)
1428 */
1429enum cfg80211_station_type {
1430	CFG80211_STA_AP_CLIENT,
1431	CFG80211_STA_AP_CLIENT_UNASSOC,
1432	CFG80211_STA_AP_MLME_CLIENT,
1433	CFG80211_STA_AP_STA,
1434	CFG80211_STA_IBSS,
1435	CFG80211_STA_TDLS_PEER_SETUP,
1436	CFG80211_STA_TDLS_PEER_ACTIVE,
1437	CFG80211_STA_MESH_PEER_KERNEL,
1438	CFG80211_STA_MESH_PEER_USER,
1439};
1440
1441/**
1442 * cfg80211_check_station_change - validate parameter changes
1443 * @wiphy: the wiphy this operates on
1444 * @params: the new parameters for a station
1445 * @statype: the type of station being modified
1446 *
1447 * Utility function for the @change_station driver method. Call this function
1448 * with the appropriate station type looking up the station (and checking that
1449 * it exists). It will verify whether the station change is acceptable, and if
1450 * not will return an error code. Note that it may modify the parameters for
1451 * backward compatibility reasons, so don't use them before calling this.
1452 */
1453int cfg80211_check_station_change(struct wiphy *wiphy,
1454				  struct station_parameters *params,
1455				  enum cfg80211_station_type statype);
1456
1457/**
1458 * enum rate_info_flags - bitrate info flags
1459 *
1460 * Used by the driver to indicate the specific rate transmission
1461 * type for 802.11n transmissions.
1462 *
1463 * @RATE_INFO_FLAGS_MCS: mcs field filled with HT MCS
1464 * @RATE_INFO_FLAGS_VHT_MCS: mcs field filled with VHT MCS
1465 * @RATE_INFO_FLAGS_SHORT_GI: 400ns guard interval
1466 * @RATE_INFO_FLAGS_DMG: 60GHz MCS
1467 * @RATE_INFO_FLAGS_HE_MCS: HE MCS information
1468 * @RATE_INFO_FLAGS_EDMG: 60GHz MCS in EDMG mode
1469 * @RATE_INFO_FLAGS_EXTENDED_SC_DMG: 60GHz extended SC MCS
 
1470 */
1471enum rate_info_flags {
1472	RATE_INFO_FLAGS_MCS			= BIT(0),
1473	RATE_INFO_FLAGS_VHT_MCS			= BIT(1),
1474	RATE_INFO_FLAGS_SHORT_GI		= BIT(2),
1475	RATE_INFO_FLAGS_DMG			= BIT(3),
1476	RATE_INFO_FLAGS_HE_MCS			= BIT(4),
1477	RATE_INFO_FLAGS_EDMG			= BIT(5),
1478	RATE_INFO_FLAGS_EXTENDED_SC_DMG		= BIT(6),
 
1479};
1480
1481/**
1482 * enum rate_info_bw - rate bandwidth information
1483 *
1484 * Used by the driver to indicate the rate bandwidth.
1485 *
1486 * @RATE_INFO_BW_5: 5 MHz bandwidth
1487 * @RATE_INFO_BW_10: 10 MHz bandwidth
1488 * @RATE_INFO_BW_20: 20 MHz bandwidth
1489 * @RATE_INFO_BW_40: 40 MHz bandwidth
1490 * @RATE_INFO_BW_80: 80 MHz bandwidth
1491 * @RATE_INFO_BW_160: 160 MHz bandwidth
1492 * @RATE_INFO_BW_HE_RU: bandwidth determined by HE RU allocation
 
 
1493 */
1494enum rate_info_bw {
1495	RATE_INFO_BW_20 = 0,
1496	RATE_INFO_BW_5,
1497	RATE_INFO_BW_10,
1498	RATE_INFO_BW_40,
1499	RATE_INFO_BW_80,
1500	RATE_INFO_BW_160,
1501	RATE_INFO_BW_HE_RU,
 
 
1502};
1503
1504/**
1505 * struct rate_info - bitrate information
1506 *
1507 * Information about a receiving or transmitting bitrate
1508 *
1509 * @flags: bitflag of flags from &enum rate_info_flags
1510 * @mcs: mcs index if struct describes an HT/VHT/HE rate
1511 * @legacy: bitrate in 100kbit/s for 802.11abg
1512 * @nss: number of streams (VHT & HE only)
1513 * @bw: bandwidth (from &enum rate_info_bw)
1514 * @he_gi: HE guard interval (from &enum nl80211_he_gi)
1515 * @he_dcm: HE DCM value
1516 * @he_ru_alloc: HE RU allocation (from &enum nl80211_he_ru_alloc,
1517 *	only valid if bw is %RATE_INFO_BW_HE_RU)
1518 * @n_bonded_ch: In case of EDMG the number of bonded channels (1-4)
 
 
 
1519 */
1520struct rate_info {
1521	u8 flags;
1522	u8 mcs;
1523	u16 legacy;
1524	u8 nss;
1525	u8 bw;
1526	u8 he_gi;
1527	u8 he_dcm;
1528	u8 he_ru_alloc;
1529	u8 n_bonded_ch;
 
 
1530};
1531
1532/**
1533 * enum bss_param_flags - bitrate info flags
1534 *
1535 * Used by the driver to indicate the specific rate transmission
1536 * type for 802.11n transmissions.
1537 *
1538 * @BSS_PARAM_FLAGS_CTS_PROT: whether CTS protection is enabled
1539 * @BSS_PARAM_FLAGS_SHORT_PREAMBLE: whether short preamble is enabled
1540 * @BSS_PARAM_FLAGS_SHORT_SLOT_TIME: whether short slot time is enabled
1541 */
1542enum bss_param_flags {
1543	BSS_PARAM_FLAGS_CTS_PROT	= 1<<0,
1544	BSS_PARAM_FLAGS_SHORT_PREAMBLE	= 1<<1,
1545	BSS_PARAM_FLAGS_SHORT_SLOT_TIME	= 1<<2,
1546};
1547
1548/**
1549 * struct sta_bss_parameters - BSS parameters for the attached station
1550 *
1551 * Information about the currently associated BSS
1552 *
1553 * @flags: bitflag of flags from &enum bss_param_flags
1554 * @dtim_period: DTIM period for the BSS
1555 * @beacon_interval: beacon interval
1556 */
1557struct sta_bss_parameters {
1558	u8 flags;
1559	u8 dtim_period;
1560	u16 beacon_interval;
1561};
1562
1563/**
1564 * struct cfg80211_txq_stats - TXQ statistics for this TID
1565 * @filled: bitmap of flags using the bits of &enum nl80211_txq_stats to
1566 *	indicate the relevant values in this struct are filled
1567 * @backlog_bytes: total number of bytes currently backlogged
1568 * @backlog_packets: total number of packets currently backlogged
1569 * @flows: number of new flows seen
1570 * @drops: total number of packets dropped
1571 * @ecn_marks: total number of packets marked with ECN CE
1572 * @overlimit: number of drops due to queue space overflow
1573 * @overmemory: number of drops due to memory limit overflow
1574 * @collisions: number of hash collisions
1575 * @tx_bytes: total number of bytes dequeued
1576 * @tx_packets: total number of packets dequeued
1577 * @max_flows: maximum number of flows supported
1578 */
1579struct cfg80211_txq_stats {
1580	u32 filled;
1581	u32 backlog_bytes;
1582	u32 backlog_packets;
1583	u32 flows;
1584	u32 drops;
1585	u32 ecn_marks;
1586	u32 overlimit;
1587	u32 overmemory;
1588	u32 collisions;
1589	u32 tx_bytes;
1590	u32 tx_packets;
1591	u32 max_flows;
1592};
1593
1594/**
1595 * struct cfg80211_tid_stats - per-TID statistics
1596 * @filled: bitmap of flags using the bits of &enum nl80211_tid_stats to
1597 *	indicate the relevant values in this struct are filled
1598 * @rx_msdu: number of received MSDUs
1599 * @tx_msdu: number of (attempted) transmitted MSDUs
1600 * @tx_msdu_retries: number of retries (not counting the first) for
1601 *	transmitted MSDUs
1602 * @tx_msdu_failed: number of failed transmitted MSDUs
1603 * @txq_stats: TXQ statistics
1604 */
1605struct cfg80211_tid_stats {
1606	u32 filled;
1607	u64 rx_msdu;
1608	u64 tx_msdu;
1609	u64 tx_msdu_retries;
1610	u64 tx_msdu_failed;
1611	struct cfg80211_txq_stats txq_stats;
1612};
1613
1614#define IEEE80211_MAX_CHAINS	4
1615
1616/**
1617 * struct station_info - station information
1618 *
1619 * Station information filled by driver for get_station() and dump_station.
1620 *
1621 * @filled: bitflag of flags using the bits of &enum nl80211_sta_info to
1622 *	indicate the relevant values in this struct for them
1623 * @connected_time: time(in secs) since a station is last connected
1624 * @inactive_time: time since last station activity (tx/rx) in milliseconds
1625 * @assoc_at: bootime (ns) of the last association
1626 * @rx_bytes: bytes (size of MPDUs) received from this station
1627 * @tx_bytes: bytes (size of MPDUs) transmitted to this station
1628 * @llid: mesh local link id
1629 * @plid: mesh peer link id
1630 * @plink_state: mesh peer link state
1631 * @signal: The signal strength, type depends on the wiphy's signal_type.
1632 *	For CFG80211_SIGNAL_TYPE_MBM, value is expressed in _dBm_.
1633 * @signal_avg: Average signal strength, type depends on the wiphy's signal_type.
1634 *	For CFG80211_SIGNAL_TYPE_MBM, value is expressed in _dBm_.
1635 * @chains: bitmask for filled values in @chain_signal, @chain_signal_avg
1636 * @chain_signal: per-chain signal strength of last received packet in dBm
1637 * @chain_signal_avg: per-chain signal strength average in dBm
1638 * @txrate: current unicast bitrate from this station
1639 * @rxrate: current unicast bitrate to this station
1640 * @rx_packets: packets (MSDUs & MMPDUs) received from this station
1641 * @tx_packets: packets (MSDUs & MMPDUs) transmitted to this station
1642 * @tx_retries: cumulative retry counts (MPDUs)
1643 * @tx_failed: number of failed transmissions (MPDUs) (retries exceeded, no ACK)
1644 * @rx_dropped_misc:  Dropped for un-specified reason.
1645 * @bss_param: current BSS parameters
1646 * @generation: generation number for nl80211 dumps.
1647 *	This number should increase every time the list of stations
1648 *	changes, i.e. when a station is added or removed, so that
1649 *	userspace can tell whether it got a consistent snapshot.
1650 * @assoc_req_ies: IEs from (Re)Association Request.
1651 *	This is used only when in AP mode with drivers that do not use
1652 *	user space MLME/SME implementation. The information is provided for
1653 *	the cfg80211_new_sta() calls to notify user space of the IEs.
1654 * @assoc_req_ies_len: Length of assoc_req_ies buffer in octets.
1655 * @sta_flags: station flags mask & values
1656 * @beacon_loss_count: Number of times beacon loss event has triggered.
1657 * @t_offset: Time offset of the station relative to this host.
1658 * @local_pm: local mesh STA power save mode
1659 * @peer_pm: peer mesh STA power save mode
1660 * @nonpeer_pm: non-peer mesh STA power save mode
1661 * @expected_throughput: expected throughput in kbps (including 802.11 headers)
1662 *	towards this station.
1663 * @rx_beacon: number of beacons received from this peer
1664 * @rx_beacon_signal_avg: signal strength average (in dBm) for beacons received
1665 *	from this peer
1666 * @connected_to_gate: true if mesh STA has a path to mesh gate
1667 * @rx_duration: aggregate PPDU duration(usecs) for all the frames from a peer
1668 * @tx_duration: aggregate PPDU duration(usecs) for all the frames to a peer
1669 * @airtime_weight: current airtime scheduling weight
1670 * @pertid: per-TID statistics, see &struct cfg80211_tid_stats, using the last
1671 *	(IEEE80211_NUM_TIDS) index for MSDUs not encapsulated in QoS-MPDUs.
1672 *	Note that this doesn't use the @filled bit, but is used if non-NULL.
1673 * @ack_signal: signal strength (in dBm) of the last ACK frame.
1674 * @avg_ack_signal: average rssi value of ack packet for the no of msdu's has
1675 *	been sent.
1676 * @rx_mpdu_count: number of MPDUs received from this station
1677 * @fcs_err_count: number of packets (MPDUs) received from this station with
1678 *	an FCS error. This counter should be incremented only when TA of the
1679 *	received packet with an FCS error matches the peer MAC address.
1680 * @airtime_link_metric: mesh airtime link metric.
1681 * @connected_to_as: true if mesh STA has a path to authentication server
1682 */
1683struct station_info {
1684	u64 filled;
1685	u32 connected_time;
1686	u32 inactive_time;
1687	u64 assoc_at;
1688	u64 rx_bytes;
1689	u64 tx_bytes;
1690	u16 llid;
1691	u16 plid;
1692	u8 plink_state;
1693	s8 signal;
1694	s8 signal_avg;
1695
1696	u8 chains;
1697	s8 chain_signal[IEEE80211_MAX_CHAINS];
1698	s8 chain_signal_avg[IEEE80211_MAX_CHAINS];
1699
1700	struct rate_info txrate;
1701	struct rate_info rxrate;
1702	u32 rx_packets;
1703	u32 tx_packets;
1704	u32 tx_retries;
1705	u32 tx_failed;
1706	u32 rx_dropped_misc;
1707	struct sta_bss_parameters bss_param;
1708	struct nl80211_sta_flag_update sta_flags;
1709
1710	int generation;
1711
1712	const u8 *assoc_req_ies;
1713	size_t assoc_req_ies_len;
1714
1715	u32 beacon_loss_count;
1716	s64 t_offset;
1717	enum nl80211_mesh_power_mode local_pm;
1718	enum nl80211_mesh_power_mode peer_pm;
1719	enum nl80211_mesh_power_mode nonpeer_pm;
1720
1721	u32 expected_throughput;
1722
1723	u64 tx_duration;
1724	u64 rx_duration;
1725	u64 rx_beacon;
1726	u8 rx_beacon_signal_avg;
1727	u8 connected_to_gate;
1728
1729	struct cfg80211_tid_stats *pertid;
1730	s8 ack_signal;
1731	s8 avg_ack_signal;
1732
1733	u16 airtime_weight;
1734
1735	u32 rx_mpdu_count;
1736	u32 fcs_err_count;
1737
1738	u32 airtime_link_metric;
1739
1740	u8 connected_to_as;
1741};
1742
1743/**
1744 * struct cfg80211_sar_sub_specs - sub specs limit
1745 * @power: power limitation in 0.25dbm
1746 * @freq_range_index: index the power limitation applies to
1747 */
1748struct cfg80211_sar_sub_specs {
1749	s32 power;
1750	u32 freq_range_index;
1751};
1752
1753/**
1754 * struct cfg80211_sar_specs - sar limit specs
1755 * @type: it's set with power in 0.25dbm or other types
1756 * @num_sub_specs: number of sar sub specs
1757 * @sub_specs: memory to hold the sar sub specs
1758 */
1759struct cfg80211_sar_specs {
1760	enum nl80211_sar_type type;
1761	u32 num_sub_specs;
1762	struct cfg80211_sar_sub_specs sub_specs[];
1763};
1764
1765
1766/**
1767 * struct cfg80211_sar_freq_ranges - sar frequency ranges
1768 * @start_freq:  start range edge frequency
1769 * @end_freq:    end range edge frequency
1770 */
1771struct cfg80211_sar_freq_ranges {
1772	u32 start_freq;
1773	u32 end_freq;
1774};
1775
1776/**
1777 * struct cfg80211_sar_capa - sar limit capability
1778 * @type: it's set via power in 0.25dbm or other types
1779 * @num_freq_ranges: number of frequency ranges
1780 * @freq_ranges: memory to hold the freq ranges.
1781 *
1782 * Note: WLAN driver may append new ranges or split an existing
1783 * range to small ones and then append them.
1784 */
1785struct cfg80211_sar_capa {
1786	enum nl80211_sar_type type;
1787	u32 num_freq_ranges;
1788	const struct cfg80211_sar_freq_ranges *freq_ranges;
1789};
1790
1791#if IS_ENABLED(CONFIG_CFG80211)
1792/**
1793 * cfg80211_get_station - retrieve information about a given station
1794 * @dev: the device where the station is supposed to be connected to
1795 * @mac_addr: the mac address of the station of interest
1796 * @sinfo: pointer to the structure to fill with the information
1797 *
1798 * Returns 0 on success and sinfo is filled with the available information
1799 * otherwise returns a negative error code and the content of sinfo has to be
1800 * considered undefined.
1801 */
1802int cfg80211_get_station(struct net_device *dev, const u8 *mac_addr,
1803			 struct station_info *sinfo);
1804#else
1805static inline int cfg80211_get_station(struct net_device *dev,
1806				       const u8 *mac_addr,
1807				       struct station_info *sinfo)
1808{
1809	return -ENOENT;
1810}
1811#endif
1812
1813/**
1814 * enum monitor_flags - monitor flags
1815 *
1816 * Monitor interface configuration flags. Note that these must be the bits
1817 * according to the nl80211 flags.
1818 *
1819 * @MONITOR_FLAG_CHANGED: set if the flags were changed
1820 * @MONITOR_FLAG_FCSFAIL: pass frames with bad FCS
1821 * @MONITOR_FLAG_PLCPFAIL: pass frames with bad PLCP
1822 * @MONITOR_FLAG_CONTROL: pass control frames
1823 * @MONITOR_FLAG_OTHER_BSS: disable BSSID filtering
1824 * @MONITOR_FLAG_COOK_FRAMES: report frames after processing
1825 * @MONITOR_FLAG_ACTIVE: active monitor, ACKs frames on its MAC address
1826 */
1827enum monitor_flags {
1828	MONITOR_FLAG_CHANGED		= 1<<__NL80211_MNTR_FLAG_INVALID,
1829	MONITOR_FLAG_FCSFAIL		= 1<<NL80211_MNTR_FLAG_FCSFAIL,
1830	MONITOR_FLAG_PLCPFAIL		= 1<<NL80211_MNTR_FLAG_PLCPFAIL,
1831	MONITOR_FLAG_CONTROL		= 1<<NL80211_MNTR_FLAG_CONTROL,
1832	MONITOR_FLAG_OTHER_BSS		= 1<<NL80211_MNTR_FLAG_OTHER_BSS,
1833	MONITOR_FLAG_COOK_FRAMES	= 1<<NL80211_MNTR_FLAG_COOK_FRAMES,
1834	MONITOR_FLAG_ACTIVE		= 1<<NL80211_MNTR_FLAG_ACTIVE,
1835};
1836
1837/**
1838 * enum mpath_info_flags -  mesh path information flags
1839 *
1840 * Used by the driver to indicate which info in &struct mpath_info it has filled
1841 * in during get_station() or dump_station().
1842 *
1843 * @MPATH_INFO_FRAME_QLEN: @frame_qlen filled
1844 * @MPATH_INFO_SN: @sn filled
1845 * @MPATH_INFO_METRIC: @metric filled
1846 * @MPATH_INFO_EXPTIME: @exptime filled
1847 * @MPATH_INFO_DISCOVERY_TIMEOUT: @discovery_timeout filled
1848 * @MPATH_INFO_DISCOVERY_RETRIES: @discovery_retries filled
1849 * @MPATH_INFO_FLAGS: @flags filled
1850 * @MPATH_INFO_HOP_COUNT: @hop_count filled
1851 * @MPATH_INFO_PATH_CHANGE: @path_change_count filled
1852 */
1853enum mpath_info_flags {
1854	MPATH_INFO_FRAME_QLEN		= BIT(0),
1855	MPATH_INFO_SN			= BIT(1),
1856	MPATH_INFO_METRIC		= BIT(2),
1857	MPATH_INFO_EXPTIME		= BIT(3),
1858	MPATH_INFO_DISCOVERY_TIMEOUT	= BIT(4),
1859	MPATH_INFO_DISCOVERY_RETRIES	= BIT(5),
1860	MPATH_INFO_FLAGS		= BIT(6),
1861	MPATH_INFO_HOP_COUNT		= BIT(7),
1862	MPATH_INFO_PATH_CHANGE		= BIT(8),
1863};
1864
1865/**
1866 * struct mpath_info - mesh path information
1867 *
1868 * Mesh path information filled by driver for get_mpath() and dump_mpath().
1869 *
1870 * @filled: bitfield of flags from &enum mpath_info_flags
1871 * @frame_qlen: number of queued frames for this destination
1872 * @sn: target sequence number
1873 * @metric: metric (cost) of this mesh path
1874 * @exptime: expiration time for the mesh path from now, in msecs
1875 * @flags: mesh path flags
1876 * @discovery_timeout: total mesh path discovery timeout, in msecs
1877 * @discovery_retries: mesh path discovery retries
1878 * @generation: generation number for nl80211 dumps.
1879 *	This number should increase every time the list of mesh paths
1880 *	changes, i.e. when a station is added or removed, so that
1881 *	userspace can tell whether it got a consistent snapshot.
1882 * @hop_count: hops to destination
1883 * @path_change_count: total number of path changes to destination
1884 */
1885struct mpath_info {
1886	u32 filled;
1887	u32 frame_qlen;
1888	u32 sn;
1889	u32 metric;
1890	u32 exptime;
1891	u32 discovery_timeout;
1892	u8 discovery_retries;
1893	u8 flags;
1894	u8 hop_count;
1895	u32 path_change_count;
1896
1897	int generation;
1898};
1899
1900/**
1901 * struct bss_parameters - BSS parameters
1902 *
1903 * Used to change BSS parameters (mainly for AP mode).
1904 *
 
1905 * @use_cts_prot: Whether to use CTS protection
1906 *	(0 = no, 1 = yes, -1 = do not change)
1907 * @use_short_preamble: Whether the use of short preambles is allowed
1908 *	(0 = no, 1 = yes, -1 = do not change)
1909 * @use_short_slot_time: Whether the use of short slot time is allowed
1910 *	(0 = no, 1 = yes, -1 = do not change)
1911 * @basic_rates: basic rates in IEEE 802.11 format
1912 *	(or NULL for no change)
1913 * @basic_rates_len: number of basic rates
1914 * @ap_isolate: do not forward packets between connected stations
1915 *	(0 = no, 1 = yes, -1 = do not change)
1916 * @ht_opmode: HT Operation mode
1917 *	(u16 = opmode, -1 = do not change)
1918 * @p2p_ctwindow: P2P CT Window (-1 = no change)
1919 * @p2p_opp_ps: P2P opportunistic PS (-1 = no change)
1920 */
1921struct bss_parameters {
 
1922	int use_cts_prot;
1923	int use_short_preamble;
1924	int use_short_slot_time;
1925	const u8 *basic_rates;
1926	u8 basic_rates_len;
1927	int ap_isolate;
1928	int ht_opmode;
1929	s8 p2p_ctwindow, p2p_opp_ps;
1930};
1931
1932/**
1933 * struct mesh_config - 802.11s mesh configuration
1934 *
1935 * These parameters can be changed while the mesh is active.
1936 *
1937 * @dot11MeshRetryTimeout: the initial retry timeout in millisecond units used
1938 *	by the Mesh Peering Open message
1939 * @dot11MeshConfirmTimeout: the initial retry timeout in millisecond units
1940 *	used by the Mesh Peering Open message
1941 * @dot11MeshHoldingTimeout: the confirm timeout in millisecond units used by
1942 *	the mesh peering management to close a mesh peering
1943 * @dot11MeshMaxPeerLinks: the maximum number of peer links allowed on this
1944 *	mesh interface
1945 * @dot11MeshMaxRetries: the maximum number of peer link open retries that can
1946 *	be sent to establish a new peer link instance in a mesh
1947 * @dot11MeshTTL: the value of TTL field set at a source mesh STA
1948 * @element_ttl: the value of TTL field set at a mesh STA for path selection
1949 *	elements
1950 * @auto_open_plinks: whether we should automatically open peer links when we
1951 *	detect compatible mesh peers
1952 * @dot11MeshNbrOffsetMaxNeighbor: the maximum number of neighbors to
1953 *	synchronize to for 11s default synchronization method
1954 * @dot11MeshHWMPmaxPREQretries: the number of action frames containing a PREQ
1955 *	that an originator mesh STA can send to a particular path target
1956 * @path_refresh_time: how frequently to refresh mesh paths in milliseconds
1957 * @min_discovery_timeout: the minimum length of time to wait until giving up on
1958 *	a path discovery in milliseconds
1959 * @dot11MeshHWMPactivePathTimeout: the time (in TUs) for which mesh STAs
1960 *	receiving a PREQ shall consider the forwarding information from the
1961 *	root to be valid. (TU = time unit)
1962 * @dot11MeshHWMPpreqMinInterval: the minimum interval of time (in TUs) during
1963 *	which a mesh STA can send only one action frame containing a PREQ
1964 *	element
1965 * @dot11MeshHWMPperrMinInterval: the minimum interval of time (in TUs) during
1966 *	which a mesh STA can send only one Action frame containing a PERR
1967 *	element
1968 * @dot11MeshHWMPnetDiameterTraversalTime: the interval of time (in TUs) that
1969 *	it takes for an HWMP information element to propagate across the mesh
1970 * @dot11MeshHWMPRootMode: the configuration of a mesh STA as root mesh STA
1971 * @dot11MeshHWMPRannInterval: the interval of time (in TUs) between root
1972 *	announcements are transmitted
1973 * @dot11MeshGateAnnouncementProtocol: whether to advertise that this mesh
1974 *	station has access to a broader network beyond the MBSS. (This is
1975 *	missnamed in draft 12.0: dot11MeshGateAnnouncementProtocol set to true
1976 *	only means that the station will announce others it's a mesh gate, but
1977 *	not necessarily using the gate announcement protocol. Still keeping the
1978 *	same nomenclature to be in sync with the spec)
1979 * @dot11MeshForwarding: whether the Mesh STA is forwarding or non-forwarding
1980 *	entity (default is TRUE - forwarding entity)
1981 * @rssi_threshold: the threshold for average signal strength of candidate
1982 *	station to establish a peer link
1983 * @ht_opmode: mesh HT protection mode
1984 *
1985 * @dot11MeshHWMPactivePathToRootTimeout: The time (in TUs) for which mesh STAs
1986 *	receiving a proactive PREQ shall consider the forwarding information to
1987 *	the root mesh STA to be valid.
1988 *
1989 * @dot11MeshHWMProotInterval: The interval of time (in TUs) between proactive
1990 *	PREQs are transmitted.
1991 * @dot11MeshHWMPconfirmationInterval: The minimum interval of time (in TUs)
1992 *	during which a mesh STA can send only one Action frame containing
1993 *	a PREQ element for root path confirmation.
1994 * @power_mode: The default mesh power save mode which will be the initial
1995 *	setting for new peer links.
1996 * @dot11MeshAwakeWindowDuration: The duration in TUs the STA will remain awake
1997 *	after transmitting its beacon.
1998 * @plink_timeout: If no tx activity is seen from a STA we've established
1999 *	peering with for longer than this time (in seconds), then remove it
2000 *	from the STA's list of peers.  Default is 30 minutes.
 
 
 
2001 * @dot11MeshConnectedToMeshGate: if set to true, advertise that this STA is
2002 *      connected to a mesh gate in mesh formation info.  If false, the
2003 *      value in mesh formation is determined by the presence of root paths
2004 *      in the mesh path table
2005 * @dot11MeshNolearn: Try to avoid multi-hop path discovery (e.g. PREQ/PREP
2006 *      for HWMP) if the destination is a direct neighbor. Note that this might
2007 *      not be the optimal decision as a multi-hop route might be better. So
2008 *      if using this setting you will likely also want to disable
2009 *      dot11MeshForwarding and use another mesh routing protocol on top.
2010 */
2011struct mesh_config {
2012	u16 dot11MeshRetryTimeout;
2013	u16 dot11MeshConfirmTimeout;
2014	u16 dot11MeshHoldingTimeout;
2015	u16 dot11MeshMaxPeerLinks;
2016	u8 dot11MeshMaxRetries;
2017	u8 dot11MeshTTL;
2018	u8 element_ttl;
2019	bool auto_open_plinks;
2020	u32 dot11MeshNbrOffsetMaxNeighbor;
2021	u8 dot11MeshHWMPmaxPREQretries;
2022	u32 path_refresh_time;
2023	u16 min_discovery_timeout;
2024	u32 dot11MeshHWMPactivePathTimeout;
2025	u16 dot11MeshHWMPpreqMinInterval;
2026	u16 dot11MeshHWMPperrMinInterval;
2027	u16 dot11MeshHWMPnetDiameterTraversalTime;
2028	u8 dot11MeshHWMPRootMode;
2029	bool dot11MeshConnectedToMeshGate;
2030	bool dot11MeshConnectedToAuthServer;
2031	u16 dot11MeshHWMPRannInterval;
2032	bool dot11MeshGateAnnouncementProtocol;
2033	bool dot11MeshForwarding;
2034	s32 rssi_threshold;
2035	u16 ht_opmode;
2036	u32 dot11MeshHWMPactivePathToRootTimeout;
2037	u16 dot11MeshHWMProotInterval;
2038	u16 dot11MeshHWMPconfirmationInterval;
2039	enum nl80211_mesh_power_mode power_mode;
2040	u16 dot11MeshAwakeWindowDuration;
2041	u32 plink_timeout;
2042	bool dot11MeshNolearn;
2043};
2044
2045/**
2046 * struct mesh_setup - 802.11s mesh setup configuration
2047 * @chandef: defines the channel to use
2048 * @mesh_id: the mesh ID
2049 * @mesh_id_len: length of the mesh ID, at least 1 and at most 32 bytes
2050 * @sync_method: which synchronization method to use
2051 * @path_sel_proto: which path selection protocol to use
2052 * @path_metric: which metric to use
2053 * @auth_id: which authentication method this mesh is using
2054 * @ie: vendor information elements (optional)
2055 * @ie_len: length of vendor information elements
2056 * @is_authenticated: this mesh requires authentication
2057 * @is_secure: this mesh uses security
2058 * @user_mpm: userspace handles all MPM functions
2059 * @dtim_period: DTIM period to use
2060 * @beacon_interval: beacon interval to use
2061 * @mcast_rate: multicat rate for Mesh Node [6Mbps is the default for 802.11a]
2062 * @basic_rates: basic rates to use when creating the mesh
2063 * @beacon_rate: bitrate to be used for beacons
2064 * @userspace_handles_dfs: whether user space controls DFS operation, i.e.
2065 *	changes the channel when a radar is detected. This is required
2066 *	to operate on DFS channels.
2067 * @control_port_over_nl80211: TRUE if userspace expects to exchange control
2068 *	port frames over NL80211 instead of the network interface.
2069 *
2070 * These parameters are fixed when the mesh is created.
2071 */
2072struct mesh_setup {
2073	struct cfg80211_chan_def chandef;
2074	const u8 *mesh_id;
2075	u8 mesh_id_len;
2076	u8 sync_method;
2077	u8 path_sel_proto;
2078	u8 path_metric;
2079	u8 auth_id;
2080	const u8 *ie;
2081	u8 ie_len;
2082	bool is_authenticated;
2083	bool is_secure;
2084	bool user_mpm;
2085	u8 dtim_period;
2086	u16 beacon_interval;
2087	int mcast_rate[NUM_NL80211_BANDS];
2088	u32 basic_rates;
2089	struct cfg80211_bitrate_mask beacon_rate;
2090	bool userspace_handles_dfs;
2091	bool control_port_over_nl80211;
2092};
2093
2094/**
2095 * struct ocb_setup - 802.11p OCB mode setup configuration
2096 * @chandef: defines the channel to use
2097 *
2098 * These parameters are fixed when connecting to the network
2099 */
2100struct ocb_setup {
2101	struct cfg80211_chan_def chandef;
2102};
2103
2104/**
2105 * struct ieee80211_txq_params - TX queue parameters
2106 * @ac: AC identifier
2107 * @txop: Maximum burst time in units of 32 usecs, 0 meaning disabled
2108 * @cwmin: Minimum contention window [a value of the form 2^n-1 in the range
2109 *	1..32767]
2110 * @cwmax: Maximum contention window [a value of the form 2^n-1 in the range
2111 *	1..32767]
2112 * @aifs: Arbitration interframe space [0..255]
 
2113 */
2114struct ieee80211_txq_params {
2115	enum nl80211_ac ac;
2116	u16 txop;
2117	u16 cwmin;
2118	u16 cwmax;
2119	u8 aifs;
 
2120};
2121
2122/**
2123 * DOC: Scanning and BSS list handling
2124 *
2125 * The scanning process itself is fairly simple, but cfg80211 offers quite
2126 * a bit of helper functionality. To start a scan, the scan operation will
2127 * be invoked with a scan definition. This scan definition contains the
2128 * channels to scan, and the SSIDs to send probe requests for (including the
2129 * wildcard, if desired). A passive scan is indicated by having no SSIDs to
2130 * probe. Additionally, a scan request may contain extra information elements
2131 * that should be added to the probe request. The IEs are guaranteed to be
2132 * well-formed, and will not exceed the maximum length the driver advertised
2133 * in the wiphy structure.
2134 *
2135 * When scanning finds a BSS, cfg80211 needs to be notified of that, because
2136 * it is responsible for maintaining the BSS list; the driver should not
2137 * maintain a list itself. For this notification, various functions exist.
2138 *
2139 * Since drivers do not maintain a BSS list, there are also a number of
2140 * functions to search for a BSS and obtain information about it from the
2141 * BSS structure cfg80211 maintains. The BSS list is also made available
2142 * to userspace.
2143 */
2144
2145/**
2146 * struct cfg80211_ssid - SSID description
2147 * @ssid: the SSID
2148 * @ssid_len: length of the ssid
2149 */
2150struct cfg80211_ssid {
2151	u8 ssid[IEEE80211_MAX_SSID_LEN];
2152	u8 ssid_len;
2153};
2154
2155/**
2156 * struct cfg80211_scan_info - information about completed scan
2157 * @scan_start_tsf: scan start time in terms of the TSF of the BSS that the
2158 *	wireless device that requested the scan is connected to. If this
2159 *	information is not available, this field is left zero.
2160 * @tsf_bssid: the BSSID according to which %scan_start_tsf is set.
2161 * @aborted: set to true if the scan was aborted for any reason,
2162 *	userspace will be notified of that
2163 */
2164struct cfg80211_scan_info {
2165	u64 scan_start_tsf;
2166	u8 tsf_bssid[ETH_ALEN] __aligned(2);
2167	bool aborted;
2168};
2169
2170/**
2171 * struct cfg80211_scan_6ghz_params - relevant for 6 GHz only
2172 *
2173 * @short_bssid: short ssid to scan for
2174 * @bssid: bssid to scan for
2175 * @channel_idx: idx of the channel in the channel array in the scan request
2176 *	 which the above info relvant to
2177 * @unsolicited_probe: the AP transmits unsolicited probe response every 20 TU
2178 * @short_ssid_valid: short_ssid is valid and can be used
2179 * @psc_no_listen: when set, and the channel is a PSC channel, no need to wait
2180 *       20 TUs before starting to send probe requests.
2181 */
2182struct cfg80211_scan_6ghz_params {
2183	u32 short_ssid;
2184	u32 channel_idx;
2185	u8 bssid[ETH_ALEN];
2186	bool unsolicited_probe;
2187	bool short_ssid_valid;
2188	bool psc_no_listen;
2189};
2190
2191/**
2192 * struct cfg80211_scan_request - scan request description
2193 *
2194 * @ssids: SSIDs to scan for (active scan only)
2195 * @n_ssids: number of SSIDs
2196 * @channels: channels to scan on.
2197 * @n_channels: total number of channels to scan
2198 * @scan_width: channel width for scanning
2199 * @ie: optional information element(s) to add into Probe Request or %NULL
2200 * @ie_len: length of ie in octets
2201 * @duration: how long to listen on each channel, in TUs. If
2202 *	%duration_mandatory is not set, this is the maximum dwell time and
2203 *	the actual dwell time may be shorter.
2204 * @duration_mandatory: if set, the scan duration must be as specified by the
2205 *	%duration field.
2206 * @flags: bit field of flags controlling operation
2207 * @rates: bitmap of rates to advertise for each band
2208 * @wiphy: the wiphy this was for
2209 * @scan_start: time (in jiffies) when the scan started
2210 * @wdev: the wireless device to scan for
2211 * @info: (internal) information about completed scan
2212 * @notified: (internal) scan request was notified as done or aborted
2213 * @no_cck: used to send probe requests at non CCK rate in 2GHz band
2214 * @mac_addr: MAC address used with randomisation
2215 * @mac_addr_mask: MAC address mask used with randomisation, bits that
2216 *	are 0 in the mask should be randomised, bits that are 1 should
2217 *	be taken from the @mac_addr
2218 * @scan_6ghz: relevant for split scan request only,
2219 *	true if this is the second scan request
2220 * @n_6ghz_params: number of 6 GHz params
2221 * @scan_6ghz_params: 6 GHz params
2222 * @bssid: BSSID to scan for (most commonly, the wildcard BSSID)
2223 */
2224struct cfg80211_scan_request {
2225	struct cfg80211_ssid *ssids;
2226	int n_ssids;
2227	u32 n_channels;
2228	enum nl80211_bss_scan_width scan_width;
2229	const u8 *ie;
2230	size_t ie_len;
2231	u16 duration;
2232	bool duration_mandatory;
2233	u32 flags;
2234
2235	u32 rates[NUM_NL80211_BANDS];
2236
2237	struct wireless_dev *wdev;
2238
2239	u8 mac_addr[ETH_ALEN] __aligned(2);
2240	u8 mac_addr_mask[ETH_ALEN] __aligned(2);
2241	u8 bssid[ETH_ALEN] __aligned(2);
2242
2243	/* internal */
2244	struct wiphy *wiphy;
2245	unsigned long scan_start;
2246	struct cfg80211_scan_info info;
2247	bool notified;
2248	bool no_cck;
2249	bool scan_6ghz;
2250	u32 n_6ghz_params;
2251	struct cfg80211_scan_6ghz_params *scan_6ghz_params;
2252
2253	/* keep last */
2254	struct ieee80211_channel *channels[];
2255};
2256
2257static inline void get_random_mask_addr(u8 *buf, const u8 *addr, const u8 *mask)
2258{
2259	int i;
2260
2261	get_random_bytes(buf, ETH_ALEN);
2262	for (i = 0; i < ETH_ALEN; i++) {
2263		buf[i] &= ~mask[i];
2264		buf[i] |= addr[i] & mask[i];
2265	}
2266}
2267
2268/**
2269 * struct cfg80211_match_set - sets of attributes to match
2270 *
2271 * @ssid: SSID to be matched; may be zero-length in case of BSSID match
2272 *	or no match (RSSI only)
2273 * @bssid: BSSID to be matched; may be all-zero BSSID in case of SSID match
2274 *	or no match (RSSI only)
2275 * @rssi_thold: don't report scan results below this threshold (in s32 dBm)
2276 * @per_band_rssi_thold: Minimum rssi threshold for each band to be applied
2277 *	for filtering out scan results received. Drivers advertize this support
2278 *	of band specific rssi based filtering through the feature capability
2279 *	%NL80211_EXT_FEATURE_SCHED_SCAN_BAND_SPECIFIC_RSSI_THOLD. These band
2280 *	specific rssi thresholds take precedence over rssi_thold, if specified.
2281 *	If not specified for any band, it will be assigned with rssi_thold of
2282 *	corresponding matchset.
2283 */
2284struct cfg80211_match_set {
2285	struct cfg80211_ssid ssid;
2286	u8 bssid[ETH_ALEN];
2287	s32 rssi_thold;
2288	s32 per_band_rssi_thold[NUM_NL80211_BANDS];
2289};
2290
2291/**
2292 * struct cfg80211_sched_scan_plan - scan plan for scheduled scan
2293 *
2294 * @interval: interval between scheduled scan iterations. In seconds.
2295 * @iterations: number of scan iterations in this scan plan. Zero means
2296 *	infinite loop.
2297 *	The last scan plan will always have this parameter set to zero,
2298 *	all other scan plans will have a finite number of iterations.
2299 */
2300struct cfg80211_sched_scan_plan {
2301	u32 interval;
2302	u32 iterations;
2303};
2304
2305/**
2306 * struct cfg80211_bss_select_adjust - BSS selection with RSSI adjustment.
2307 *
2308 * @band: band of BSS which should match for RSSI level adjustment.
2309 * @delta: value of RSSI level adjustment.
2310 */
2311struct cfg80211_bss_select_adjust {
2312	enum nl80211_band band;
2313	s8 delta;
2314};
2315
2316/**
2317 * struct cfg80211_sched_scan_request - scheduled scan request description
2318 *
2319 * @reqid: identifies this request.
2320 * @ssids: SSIDs to scan for (passed in the probe_reqs in active scans)
2321 * @n_ssids: number of SSIDs
2322 * @n_channels: total number of channels to scan
2323 * @scan_width: channel width for scanning
2324 * @ie: optional information element(s) to add into Probe Request or %NULL
2325 * @ie_len: length of ie in octets
2326 * @flags: bit field of flags controlling operation
2327 * @match_sets: sets of parameters to be matched for a scan result
2328 *	entry to be considered valid and to be passed to the host
2329 *	(others are filtered out).
2330 *	If ommited, all results are passed.
2331 * @n_match_sets: number of match sets
2332 * @report_results: indicates that results were reported for this request
2333 * @wiphy: the wiphy this was for
2334 * @dev: the interface
2335 * @scan_start: start time of the scheduled scan
2336 * @channels: channels to scan
2337 * @min_rssi_thold: for drivers only supporting a single threshold, this
2338 *	contains the minimum over all matchsets
2339 * @mac_addr: MAC address used with randomisation
2340 * @mac_addr_mask: MAC address mask used with randomisation, bits that
2341 *	are 0 in the mask should be randomised, bits that are 1 should
2342 *	be taken from the @mac_addr
2343 * @scan_plans: scan plans to be executed in this scheduled scan. Lowest
2344 *	index must be executed first.
2345 * @n_scan_plans: number of scan plans, at least 1.
2346 * @rcu_head: RCU callback used to free the struct
2347 * @owner_nlportid: netlink portid of owner (if this should is a request
2348 *	owned by a particular socket)
2349 * @nl_owner_dead: netlink owner socket was closed - this request be freed
2350 * @list: for keeping list of requests.
2351 * @delay: delay in seconds to use before starting the first scan
2352 *	cycle.  The driver may ignore this parameter and start
2353 *	immediately (or at any other time), if this feature is not
2354 *	supported.
2355 * @relative_rssi_set: Indicates whether @relative_rssi is set or not.
2356 * @relative_rssi: Relative RSSI threshold in dB to restrict scan result
2357 *	reporting in connected state to cases where a matching BSS is determined
2358 *	to have better or slightly worse RSSI than the current connected BSS.
2359 *	The relative RSSI threshold values are ignored in disconnected state.
2360 * @rssi_adjust: delta dB of RSSI preference to be given to the BSSs that belong
2361 *	to the specified band while deciding whether a better BSS is reported
2362 *	using @relative_rssi. If delta is a negative number, the BSSs that
2363 *	belong to the specified band will be penalized by delta dB in relative
2364 *	comparisions.
2365 */
2366struct cfg80211_sched_scan_request {
2367	u64 reqid;
2368	struct cfg80211_ssid *ssids;
2369	int n_ssids;
2370	u32 n_channels;
2371	enum nl80211_bss_scan_width scan_width;
2372	const u8 *ie;
2373	size_t ie_len;
2374	u32 flags;
2375	struct cfg80211_match_set *match_sets;
2376	int n_match_sets;
2377	s32 min_rssi_thold;
2378	u32 delay;
2379	struct cfg80211_sched_scan_plan *scan_plans;
2380	int n_scan_plans;
2381
2382	u8 mac_addr[ETH_ALEN] __aligned(2);
2383	u8 mac_addr_mask[ETH_ALEN] __aligned(2);
2384
2385	bool relative_rssi_set;
2386	s8 relative_rssi;
2387	struct cfg80211_bss_select_adjust rssi_adjust;
2388
2389	/* internal */
2390	struct wiphy *wiphy;
2391	struct net_device *dev;
2392	unsigned long scan_start;
2393	bool report_results;
2394	struct rcu_head rcu_head;
2395	u32 owner_nlportid;
2396	bool nl_owner_dead;
2397	struct list_head list;
2398
2399	/* keep last */
2400	struct ieee80211_channel *channels[];
2401};
2402
2403/**
2404 * enum cfg80211_signal_type - signal type
2405 *
2406 * @CFG80211_SIGNAL_TYPE_NONE: no signal strength information available
2407 * @CFG80211_SIGNAL_TYPE_MBM: signal strength in mBm (100*dBm)
2408 * @CFG80211_SIGNAL_TYPE_UNSPEC: signal strength, increasing from 0 through 100
2409 */
2410enum cfg80211_signal_type {
2411	CFG80211_SIGNAL_TYPE_NONE,
2412	CFG80211_SIGNAL_TYPE_MBM,
2413	CFG80211_SIGNAL_TYPE_UNSPEC,
2414};
2415
2416/**
2417 * struct cfg80211_inform_bss - BSS inform data
2418 * @chan: channel the frame was received on
2419 * @scan_width: scan width that was used
2420 * @signal: signal strength value, according to the wiphy's
2421 *	signal type
2422 * @boottime_ns: timestamp (CLOCK_BOOTTIME) when the information was
2423 *	received; should match the time when the frame was actually
2424 *	received by the device (not just by the host, in case it was
2425 *	buffered on the device) and be accurate to about 10ms.
2426 *	If the frame isn't buffered, just passing the return value of
2427 *	ktime_get_boottime_ns() is likely appropriate.
2428 * @parent_tsf: the time at the start of reception of the first octet of the
2429 *	timestamp field of the frame. The time is the TSF of the BSS specified
2430 *	by %parent_bssid.
2431 * @parent_bssid: the BSS according to which %parent_tsf is set. This is set to
2432 *	the BSS that requested the scan in which the beacon/probe was received.
2433 * @chains: bitmask for filled values in @chain_signal.
2434 * @chain_signal: per-chain signal strength of last received BSS in dBm.
2435 */
2436struct cfg80211_inform_bss {
2437	struct ieee80211_channel *chan;
2438	enum nl80211_bss_scan_width scan_width;
2439	s32 signal;
2440	u64 boottime_ns;
2441	u64 parent_tsf;
2442	u8 parent_bssid[ETH_ALEN] __aligned(2);
2443	u8 chains;
2444	s8 chain_signal[IEEE80211_MAX_CHAINS];
2445};
2446
2447/**
2448 * struct cfg80211_bss_ies - BSS entry IE data
2449 * @tsf: TSF contained in the frame that carried these IEs
2450 * @rcu_head: internal use, for freeing
2451 * @len: length of the IEs
2452 * @from_beacon: these IEs are known to come from a beacon
2453 * @data: IE data
2454 */
2455struct cfg80211_bss_ies {
2456	u64 tsf;
2457	struct rcu_head rcu_head;
2458	int len;
2459	bool from_beacon;
2460	u8 data[];
2461};
2462
2463/**
2464 * struct cfg80211_bss - BSS description
2465 *
2466 * This structure describes a BSS (which may also be a mesh network)
2467 * for use in scan results and similar.
2468 *
2469 * @channel: channel this BSS is on
2470 * @scan_width: width of the control channel
2471 * @bssid: BSSID of the BSS
2472 * @beacon_interval: the beacon interval as from the frame
2473 * @capability: the capability field in host byte order
2474 * @ies: the information elements (Note that there is no guarantee that these
2475 *	are well-formed!); this is a pointer to either the beacon_ies or
2476 *	proberesp_ies depending on whether Probe Response frame has been
2477 *	received. It is always non-%NULL.
2478 * @beacon_ies: the information elements from the last Beacon frame
2479 *	(implementation note: if @hidden_beacon_bss is set this struct doesn't
2480 *	own the beacon_ies, but they're just pointers to the ones from the
2481 *	@hidden_beacon_bss struct)
2482 * @proberesp_ies: the information elements from the last Probe Response frame
2483 * @hidden_beacon_bss: in case this BSS struct represents a probe response from
2484 *	a BSS that hides the SSID in its beacon, this points to the BSS struct
2485 *	that holds the beacon data. @beacon_ies is still valid, of course, and
2486 *	points to the same data as hidden_beacon_bss->beacon_ies in that case.
2487 * @transmitted_bss: pointer to the transmitted BSS, if this is a
2488 *	non-transmitted one (multi-BSSID support)
2489 * @nontrans_list: list of non-transmitted BSS, if this is a transmitted one
2490 *	(multi-BSSID support)
2491 * @signal: signal strength value (type depends on the wiphy's signal_type)
2492 * @chains: bitmask for filled values in @chain_signal.
2493 * @chain_signal: per-chain signal strength of last received BSS in dBm.
2494 * @bssid_index: index in the multiple BSS set
2495 * @max_bssid_indicator: max number of members in the BSS set
2496 * @priv: private area for driver use, has at least wiphy->bss_priv_size bytes
2497 */
2498struct cfg80211_bss {
2499	struct ieee80211_channel *channel;
2500	enum nl80211_bss_scan_width scan_width;
2501
2502	const struct cfg80211_bss_ies __rcu *ies;
2503	const struct cfg80211_bss_ies __rcu *beacon_ies;
2504	const struct cfg80211_bss_ies __rcu *proberesp_ies;
2505
2506	struct cfg80211_bss *hidden_beacon_bss;
2507	struct cfg80211_bss *transmitted_bss;
2508	struct list_head nontrans_list;
2509
2510	s32 signal;
2511
2512	u16 beacon_interval;
2513	u16 capability;
2514
2515	u8 bssid[ETH_ALEN];
2516	u8 chains;
2517	s8 chain_signal[IEEE80211_MAX_CHAINS];
2518
2519	u8 bssid_index;
2520	u8 max_bssid_indicator;
2521
2522	u8 priv[] __aligned(sizeof(void *));
2523};
2524
2525/**
2526 * ieee80211_bss_get_elem - find element with given ID
2527 * @bss: the bss to search
2528 * @id: the element ID
2529 *
2530 * Note that the return value is an RCU-protected pointer, so
2531 * rcu_read_lock() must be held when calling this function.
2532 * Return: %NULL if not found.
2533 */
2534const struct element *ieee80211_bss_get_elem(struct cfg80211_bss *bss, u8 id);
2535
2536/**
2537 * ieee80211_bss_get_ie - find IE with given ID
2538 * @bss: the bss to search
2539 * @id: the element ID
2540 *
2541 * Note that the return value is an RCU-protected pointer, so
2542 * rcu_read_lock() must be held when calling this function.
2543 * Return: %NULL if not found.
2544 */
2545static inline const u8 *ieee80211_bss_get_ie(struct cfg80211_bss *bss, u8 id)
2546{
2547	return (void *)ieee80211_bss_get_elem(bss, id);
2548}
2549
2550
2551/**
2552 * struct cfg80211_auth_request - Authentication request data
2553 *
2554 * This structure provides information needed to complete IEEE 802.11
2555 * authentication.
2556 *
2557 * @bss: The BSS to authenticate with, the callee must obtain a reference
2558 *	to it if it needs to keep it.
2559 * @auth_type: Authentication type (algorithm)
2560 * @ie: Extra IEs to add to Authentication frame or %NULL
2561 * @ie_len: Length of ie buffer in octets
2562 * @key_len: length of WEP key for shared key authentication
2563 * @key_idx: index of WEP key for shared key authentication
2564 * @key: WEP key for shared key authentication
2565 * @auth_data: Fields and elements in Authentication frames. This contains
2566 *	the authentication frame body (non-IE and IE data), excluding the
2567 *	Authentication algorithm number, i.e., starting at the Authentication
2568 *	transaction sequence number field.
2569 * @auth_data_len: Length of auth_data buffer in octets
 
 
 
 
 
 
2570 */
2571struct cfg80211_auth_request {
2572	struct cfg80211_bss *bss;
2573	const u8 *ie;
2574	size_t ie_len;
2575	enum nl80211_auth_type auth_type;
2576	const u8 *key;
2577	u8 key_len, key_idx;
 
2578	const u8 *auth_data;
2579	size_t auth_data_len;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2580};
2581
2582/**
2583 * enum cfg80211_assoc_req_flags - Over-ride default behaviour in association.
2584 *
2585 * @ASSOC_REQ_DISABLE_HT:  Disable HT (802.11n)
2586 * @ASSOC_REQ_DISABLE_VHT:  Disable VHT
2587 * @ASSOC_REQ_USE_RRM: Declare RRM capability in this association
2588 * @CONNECT_REQ_EXTERNAL_AUTH_SUPPORT: User space indicates external
2589 *	authentication capability. Drivers can offload authentication to
2590 *	userspace if this flag is set. Only applicable for cfg80211_connect()
2591 *	request (connect callback).
2592 * @ASSOC_REQ_DISABLE_HE:  Disable HE
 
 
 
 
2593 */
2594enum cfg80211_assoc_req_flags {
2595	ASSOC_REQ_DISABLE_HT			= BIT(0),
2596	ASSOC_REQ_DISABLE_VHT			= BIT(1),
2597	ASSOC_REQ_USE_RRM			= BIT(2),
2598	CONNECT_REQ_EXTERNAL_AUTH_SUPPORT	= BIT(3),
2599	ASSOC_REQ_DISABLE_HE			= BIT(4),
 
 
2600};
2601
2602/**
2603 * struct cfg80211_assoc_request - (Re)Association request data
2604 *
2605 * This structure provides information needed to complete IEEE 802.11
2606 * (re)association.
2607 * @bss: The BSS to associate with. If the call is successful the driver is
2608 *	given a reference that it must give back to cfg80211_send_rx_assoc()
2609 *	or to cfg80211_assoc_timeout(). To ensure proper refcounting, new
2610 *	association requests while already associating must be rejected.
 
 
2611 * @ie: Extra IEs to add to (Re)Association Request frame or %NULL
2612 * @ie_len: Length of ie buffer in octets
2613 * @use_mfp: Use management frame protection (IEEE 802.11w) in this association
2614 * @crypto: crypto settings
2615 * @prev_bssid: previous BSSID, if not %NULL use reassociate frame. This is used
2616 *	to indicate a request to reassociate within the ESS instead of a request
2617 *	do the initial association with the ESS. When included, this is set to
2618 *	the BSSID of the current association, i.e., to the value that is
2619 *	included in the Current AP address field of the Reassociation Request
2620 *	frame.
2621 * @flags:  See &enum cfg80211_assoc_req_flags
2622 * @ht_capa:  HT Capabilities over-rides.  Values set in ht_capa_mask
2623 *	will be used in ht_capa.  Un-supported values will be ignored.
2624 * @ht_capa_mask:  The bits of ht_capa which are to be used.
2625 * @vht_capa: VHT capability override
2626 * @vht_capa_mask: VHT capability mask indicating which fields to use
2627 * @fils_kek: FILS KEK for protecting (Re)Association Request/Response frame or
2628 *	%NULL if FILS is not used.
2629 * @fils_kek_len: Length of fils_kek in octets
2630 * @fils_nonces: FILS nonces (part of AAD) for protecting (Re)Association
2631 *	Request/Response frame or %NULL if FILS is not used. This field starts
2632 *	with 16 octets of STA Nonce followed by 16 octets of AP Nonce.
2633 * @s1g_capa: S1G capability override
2634 * @s1g_capa_mask: S1G capability override mask
 
 
 
 
 
2635 */
2636struct cfg80211_assoc_request {
2637	struct cfg80211_bss *bss;
2638	const u8 *ie, *prev_bssid;
2639	size_t ie_len;
2640	struct cfg80211_crypto_settings crypto;
2641	bool use_mfp;
2642	u32 flags;
2643	struct ieee80211_ht_cap ht_capa;
2644	struct ieee80211_ht_cap ht_capa_mask;
2645	struct ieee80211_vht_cap vht_capa, vht_capa_mask;
2646	const u8 *fils_kek;
2647	size_t fils_kek_len;
2648	const u8 *fils_nonces;
2649	struct ieee80211_s1g_cap s1g_capa, s1g_capa_mask;
 
 
 
2650};
2651
2652/**
2653 * struct cfg80211_deauth_request - Deauthentication request data
2654 *
2655 * This structure provides information needed to complete IEEE 802.11
2656 * deauthentication.
2657 *
2658 * @bssid: the BSSID of the BSS to deauthenticate from
2659 * @ie: Extra IEs to add to Deauthentication frame or %NULL
2660 * @ie_len: Length of ie buffer in octets
2661 * @reason_code: The reason code for the deauthentication
2662 * @local_state_change: if set, change local state only and
2663 *	do not set a deauth frame
2664 */
2665struct cfg80211_deauth_request {
2666	const u8 *bssid;
2667	const u8 *ie;
2668	size_t ie_len;
2669	u16 reason_code;
2670	bool local_state_change;
2671};
2672
2673/**
2674 * struct cfg80211_disassoc_request - Disassociation request data
2675 *
2676 * This structure provides information needed to complete IEEE 802.11
2677 * disassociation.
2678 *
2679 * @bss: the BSS to disassociate from
2680 * @ie: Extra IEs to add to Disassociation frame or %NULL
2681 * @ie_len: Length of ie buffer in octets
2682 * @reason_code: The reason code for the disassociation
2683 * @local_state_change: This is a request for a local state only, i.e., no
2684 *	Disassociation frame is to be transmitted.
2685 */
2686struct cfg80211_disassoc_request {
2687	struct cfg80211_bss *bss;
2688	const u8 *ie;
2689	size_t ie_len;
2690	u16 reason_code;
2691	bool local_state_change;
2692};
2693
2694/**
2695 * struct cfg80211_ibss_params - IBSS parameters
2696 *
2697 * This structure defines the IBSS parameters for the join_ibss()
2698 * method.
2699 *
2700 * @ssid: The SSID, will always be non-null.
2701 * @ssid_len: The length of the SSID, will always be non-zero.
2702 * @bssid: Fixed BSSID requested, maybe be %NULL, if set do not
2703 *	search for IBSSs with a different BSSID.
2704 * @chandef: defines the channel to use if no other IBSS to join can be found
2705 * @channel_fixed: The channel should be fixed -- do not search for
2706 *	IBSSs to join on other channels.
2707 * @ie: information element(s) to include in the beacon
2708 * @ie_len: length of that
2709 * @beacon_interval: beacon interval to use
2710 * @privacy: this is a protected network, keys will be configured
2711 *	after joining
2712 * @control_port: whether user space controls IEEE 802.1X port, i.e.,
2713 *	sets/clears %NL80211_STA_FLAG_AUTHORIZED. If true, the driver is
2714 *	required to assume that the port is unauthorized until authorized by
2715 *	user space. Otherwise, port is marked authorized by default.
2716 * @control_port_over_nl80211: TRUE if userspace expects to exchange control
2717 *	port frames over NL80211 instead of the network interface.
2718 * @userspace_handles_dfs: whether user space controls DFS operation, i.e.
2719 *	changes the channel when a radar is detected. This is required
2720 *	to operate on DFS channels.
2721 * @basic_rates: bitmap of basic rates to use when creating the IBSS
2722 * @mcast_rate: per-band multicast rate index + 1 (0: disabled)
2723 * @ht_capa:  HT Capabilities over-rides.  Values set in ht_capa_mask
2724 *	will be used in ht_capa.  Un-supported values will be ignored.
2725 * @ht_capa_mask:  The bits of ht_capa which are to be used.
2726 * @wep_keys: static WEP keys, if not NULL points to an array of
2727 *	CFG80211_MAX_WEP_KEYS WEP keys
2728 * @wep_tx_key: key index (0..3) of the default TX static WEP key
2729 */
2730struct cfg80211_ibss_params {
2731	const u8 *ssid;
2732	const u8 *bssid;
2733	struct cfg80211_chan_def chandef;
2734	const u8 *ie;
2735	u8 ssid_len, ie_len;
2736	u16 beacon_interval;
2737	u32 basic_rates;
2738	bool channel_fixed;
2739	bool privacy;
2740	bool control_port;
2741	bool control_port_over_nl80211;
2742	bool userspace_handles_dfs;
2743	int mcast_rate[NUM_NL80211_BANDS];
2744	struct ieee80211_ht_cap ht_capa;
2745	struct ieee80211_ht_cap ht_capa_mask;
2746	struct key_params *wep_keys;
2747	int wep_tx_key;
2748};
2749
2750/**
2751 * struct cfg80211_bss_selection - connection parameters for BSS selection.
2752 *
2753 * @behaviour: requested BSS selection behaviour.
2754 * @param: parameters for requestion behaviour.
2755 * @band_pref: preferred band for %NL80211_BSS_SELECT_ATTR_BAND_PREF.
2756 * @adjust: parameters for %NL80211_BSS_SELECT_ATTR_RSSI_ADJUST.
2757 */
2758struct cfg80211_bss_selection {
2759	enum nl80211_bss_select_attr behaviour;
2760	union {
2761		enum nl80211_band band_pref;
2762		struct cfg80211_bss_select_adjust adjust;
2763	} param;
2764};
2765
2766/**
2767 * struct cfg80211_connect_params - Connection parameters
2768 *
2769 * This structure provides information needed to complete IEEE 802.11
2770 * authentication and association.
2771 *
2772 * @channel: The channel to use or %NULL if not specified (auto-select based
2773 *	on scan results)
2774 * @channel_hint: The channel of the recommended BSS for initial connection or
2775 *	%NULL if not specified
2776 * @bssid: The AP BSSID or %NULL if not specified (auto-select based on scan
2777 *	results)
2778 * @bssid_hint: The recommended AP BSSID for initial connection to the BSS or
2779 *	%NULL if not specified. Unlike the @bssid parameter, the driver is
2780 *	allowed to ignore this @bssid_hint if it has knowledge of a better BSS
2781 *	to use.
2782 * @ssid: SSID
2783 * @ssid_len: Length of ssid in octets
2784 * @auth_type: Authentication type (algorithm)
2785 * @ie: IEs for association request
2786 * @ie_len: Length of assoc_ie in octets
2787 * @privacy: indicates whether privacy-enabled APs should be used
2788 * @mfp: indicate whether management frame protection is used
2789 * @crypto: crypto settings
2790 * @key_len: length of WEP key for shared key authentication
2791 * @key_idx: index of WEP key for shared key authentication
2792 * @key: WEP key for shared key authentication
2793 * @flags:  See &enum cfg80211_assoc_req_flags
2794 * @bg_scan_period:  Background scan period in seconds
2795 *	or -1 to indicate that default value is to be used.
2796 * @ht_capa:  HT Capabilities over-rides.  Values set in ht_capa_mask
2797 *	will be used in ht_capa.  Un-supported values will be ignored.
2798 * @ht_capa_mask:  The bits of ht_capa which are to be used.
2799 * @vht_capa:  VHT Capability overrides
2800 * @vht_capa_mask: The bits of vht_capa which are to be used.
2801 * @pbss: if set, connect to a PCP instead of AP. Valid for DMG
2802 *	networks.
2803 * @bss_select: criteria to be used for BSS selection.
2804 * @prev_bssid: previous BSSID, if not %NULL use reassociate frame. This is used
2805 *	to indicate a request to reassociate within the ESS instead of a request
2806 *	do the initial association with the ESS. When included, this is set to
2807 *	the BSSID of the current association, i.e., to the value that is
2808 *	included in the Current AP address field of the Reassociation Request
2809 *	frame.
2810 * @fils_erp_username: EAP re-authentication protocol (ERP) username part of the
2811 *	NAI or %NULL if not specified. This is used to construct FILS wrapped
2812 *	data IE.
2813 * @fils_erp_username_len: Length of @fils_erp_username in octets.
2814 * @fils_erp_realm: EAP re-authentication protocol (ERP) realm part of NAI or
2815 *	%NULL if not specified. This specifies the domain name of ER server and
2816 *	is used to construct FILS wrapped data IE.
2817 * @fils_erp_realm_len: Length of @fils_erp_realm in octets.
2818 * @fils_erp_next_seq_num: The next sequence number to use in the FILS ERP
2819 *	messages. This is also used to construct FILS wrapped data IE.
2820 * @fils_erp_rrk: ERP re-authentication Root Key (rRK) used to derive additional
2821 *	keys in FILS or %NULL if not specified.
2822 * @fils_erp_rrk_len: Length of @fils_erp_rrk in octets.
2823 * @want_1x: indicates user-space supports and wants to use 802.1X driver
2824 *	offload of 4-way handshake.
2825 * @edmg: define the EDMG channels.
2826 *	This may specify multiple channels and bonding options for the driver
2827 *	to choose from, based on BSS configuration.
2828 */
2829struct cfg80211_connect_params {
2830	struct ieee80211_channel *channel;
2831	struct ieee80211_channel *channel_hint;
2832	const u8 *bssid;
2833	const u8 *bssid_hint;
2834	const u8 *ssid;
2835	size_t ssid_len;
2836	enum nl80211_auth_type auth_type;
2837	const u8 *ie;
2838	size_t ie_len;
2839	bool privacy;
2840	enum nl80211_mfp mfp;
2841	struct cfg80211_crypto_settings crypto;
2842	const u8 *key;
2843	u8 key_len, key_idx;
2844	u32 flags;
2845	int bg_scan_period;
2846	struct ieee80211_ht_cap ht_capa;
2847	struct ieee80211_ht_cap ht_capa_mask;
2848	struct ieee80211_vht_cap vht_capa;
2849	struct ieee80211_vht_cap vht_capa_mask;
2850	bool pbss;
2851	struct cfg80211_bss_selection bss_select;
2852	const u8 *prev_bssid;
2853	const u8 *fils_erp_username;
2854	size_t fils_erp_username_len;
2855	const u8 *fils_erp_realm;
2856	size_t fils_erp_realm_len;
2857	u16 fils_erp_next_seq_num;
2858	const u8 *fils_erp_rrk;
2859	size_t fils_erp_rrk_len;
2860	bool want_1x;
2861	struct ieee80211_edmg edmg;
2862};
2863
2864/**
2865 * enum cfg80211_connect_params_changed - Connection parameters being updated
2866 *
2867 * This enum provides information of all connect parameters that
2868 * have to be updated as part of update_connect_params() call.
2869 *
2870 * @UPDATE_ASSOC_IES: Indicates whether association request IEs are updated
2871 * @UPDATE_FILS_ERP_INFO: Indicates that FILS connection parameters (realm,
2872 *	username, erp sequence number and rrk) are updated
2873 * @UPDATE_AUTH_TYPE: Indicates that authentication type is updated
2874 */
2875enum cfg80211_connect_params_changed {
2876	UPDATE_ASSOC_IES		= BIT(0),
2877	UPDATE_FILS_ERP_INFO		= BIT(1),
2878	UPDATE_AUTH_TYPE		= BIT(2),
2879};
2880
2881/**
2882 * enum wiphy_params_flags - set_wiphy_params bitfield values
2883 * @WIPHY_PARAM_RETRY_SHORT: wiphy->retry_short has changed
2884 * @WIPHY_PARAM_RETRY_LONG: wiphy->retry_long has changed
2885 * @WIPHY_PARAM_FRAG_THRESHOLD: wiphy->frag_threshold has changed
2886 * @WIPHY_PARAM_RTS_THRESHOLD: wiphy->rts_threshold has changed
2887 * @WIPHY_PARAM_COVERAGE_CLASS: coverage class changed
2888 * @WIPHY_PARAM_DYN_ACK: dynack has been enabled
2889 * @WIPHY_PARAM_TXQ_LIMIT: TXQ packet limit has been changed
2890 * @WIPHY_PARAM_TXQ_MEMORY_LIMIT: TXQ memory limit has been changed
2891 * @WIPHY_PARAM_TXQ_QUANTUM: TXQ scheduler quantum
2892 */
2893enum wiphy_params_flags {
2894	WIPHY_PARAM_RETRY_SHORT		= 1 << 0,
2895	WIPHY_PARAM_RETRY_LONG		= 1 << 1,
2896	WIPHY_PARAM_FRAG_THRESHOLD	= 1 << 2,
2897	WIPHY_PARAM_RTS_THRESHOLD	= 1 << 3,
2898	WIPHY_PARAM_COVERAGE_CLASS	= 1 << 4,
2899	WIPHY_PARAM_DYN_ACK		= 1 << 5,
2900	WIPHY_PARAM_TXQ_LIMIT		= 1 << 6,
2901	WIPHY_PARAM_TXQ_MEMORY_LIMIT	= 1 << 7,
2902	WIPHY_PARAM_TXQ_QUANTUM		= 1 << 8,
2903};
2904
2905#define IEEE80211_DEFAULT_AIRTIME_WEIGHT	256
2906
2907/* The per TXQ device queue limit in airtime */
2908#define IEEE80211_DEFAULT_AQL_TXQ_LIMIT_L	5000
2909#define IEEE80211_DEFAULT_AQL_TXQ_LIMIT_H	12000
2910
2911/* The per interface airtime threshold to switch to lower queue limit */
2912#define IEEE80211_AQL_THRESHOLD			24000
2913
2914/**
2915 * struct cfg80211_pmksa - PMK Security Association
2916 *
2917 * This structure is passed to the set/del_pmksa() method for PMKSA
2918 * caching.
2919 *
2920 * @bssid: The AP's BSSID (may be %NULL).
2921 * @pmkid: The identifier to refer a PMKSA.
2922 * @pmk: The PMK for the PMKSA identified by @pmkid. This is used for key
2923 *	derivation by a FILS STA. Otherwise, %NULL.
2924 * @pmk_len: Length of the @pmk. The length of @pmk can differ depending on
2925 *	the hash algorithm used to generate this.
2926 * @ssid: SSID to specify the ESS within which a PMKSA is valid when using FILS
2927 *	cache identifier (may be %NULL).
2928 * @ssid_len: Length of the @ssid in octets.
2929 * @cache_id: 2-octet cache identifier advertized by a FILS AP identifying the
2930 *	scope of PMKSA. This is valid only if @ssid_len is non-zero (may be
2931 *	%NULL).
2932 * @pmk_lifetime: Maximum lifetime for PMKSA in seconds
2933 *	(dot11RSNAConfigPMKLifetime) or 0 if not specified.
2934 *	The configured PMKSA must not be used for PMKSA caching after
2935 *	expiration and any keys derived from this PMK become invalid on
2936 *	expiration, i.e., the current association must be dropped if the PMK
2937 *	used for it expires.
2938 * @pmk_reauth_threshold: Threshold time for reauthentication (percentage of
2939 *	PMK lifetime, dot11RSNAConfigPMKReauthThreshold) or 0 if not specified.
2940 *	Drivers are expected to trigger a full authentication instead of using
2941 *	this PMKSA for caching when reassociating to a new BSS after this
2942 *	threshold to generate a new PMK before the current one expires.
2943 */
2944struct cfg80211_pmksa {
2945	const u8 *bssid;
2946	const u8 *pmkid;
2947	const u8 *pmk;
2948	size_t pmk_len;
2949	const u8 *ssid;
2950	size_t ssid_len;
2951	const u8 *cache_id;
2952	u32 pmk_lifetime;
2953	u8 pmk_reauth_threshold;
2954};
2955
2956/**
2957 * struct cfg80211_pkt_pattern - packet pattern
2958 * @mask: bitmask where to match pattern and where to ignore bytes,
2959 *	one bit per byte, in same format as nl80211
2960 * @pattern: bytes to match where bitmask is 1
2961 * @pattern_len: length of pattern (in bytes)
2962 * @pkt_offset: packet offset (in bytes)
2963 *
2964 * Internal note: @mask and @pattern are allocated in one chunk of
2965 * memory, free @mask only!
2966 */
2967struct cfg80211_pkt_pattern {
2968	const u8 *mask, *pattern;
2969	int pattern_len;
2970	int pkt_offset;
2971};
2972
2973/**
2974 * struct cfg80211_wowlan_tcp - TCP connection parameters
2975 *
2976 * @sock: (internal) socket for source port allocation
2977 * @src: source IP address
2978 * @dst: destination IP address
2979 * @dst_mac: destination MAC address
2980 * @src_port: source port
2981 * @dst_port: destination port
2982 * @payload_len: data payload length
2983 * @payload: data payload buffer
2984 * @payload_seq: payload sequence stamping configuration
2985 * @data_interval: interval at which to send data packets
2986 * @wake_len: wakeup payload match length
2987 * @wake_data: wakeup payload match data
2988 * @wake_mask: wakeup payload match mask
2989 * @tokens_size: length of the tokens buffer
2990 * @payload_tok: payload token usage configuration
2991 */
2992struct cfg80211_wowlan_tcp {
2993	struct socket *sock;
2994	__be32 src, dst;
2995	u16 src_port, dst_port;
2996	u8 dst_mac[ETH_ALEN];
2997	int payload_len;
2998	const u8 *payload;
2999	struct nl80211_wowlan_tcp_data_seq payload_seq;
3000	u32 data_interval;
3001	u32 wake_len;
3002	const u8 *wake_data, *wake_mask;
3003	u32 tokens_size;
3004	/* must be last, variable member */
3005	struct nl80211_wowlan_tcp_data_token payload_tok;
3006};
3007
3008/**
3009 * struct cfg80211_wowlan - Wake on Wireless-LAN support info
3010 *
3011 * This structure defines the enabled WoWLAN triggers for the device.
3012 * @any: wake up on any activity -- special trigger if device continues
3013 *	operating as normal during suspend
3014 * @disconnect: wake up if getting disconnected
3015 * @magic_pkt: wake up on receiving magic packet
3016 * @patterns: wake up on receiving packet matching a pattern
3017 * @n_patterns: number of patterns
3018 * @gtk_rekey_failure: wake up on GTK rekey failure
3019 * @eap_identity_req: wake up on EAP identity request packet
3020 * @four_way_handshake: wake up on 4-way handshake
3021 * @rfkill_release: wake up when rfkill is released
3022 * @tcp: TCP connection establishment/wakeup parameters, see nl80211.h.
3023 *	NULL if not configured.
3024 * @nd_config: configuration for the scan to be used for net detect wake.
3025 */
3026struct cfg80211_wowlan {
3027	bool any, disconnect, magic_pkt, gtk_rekey_failure,
3028	     eap_identity_req, four_way_handshake,
3029	     rfkill_release;
3030	struct cfg80211_pkt_pattern *patterns;
3031	struct cfg80211_wowlan_tcp *tcp;
3032	int n_patterns;
3033	struct cfg80211_sched_scan_request *nd_config;
3034};
3035
3036/**
3037 * struct cfg80211_coalesce_rules - Coalesce rule parameters
3038 *
3039 * This structure defines coalesce rule for the device.
3040 * @delay: maximum coalescing delay in msecs.
3041 * @condition: condition for packet coalescence.
3042 *	see &enum nl80211_coalesce_condition.
3043 * @patterns: array of packet patterns
3044 * @n_patterns: number of patterns
3045 */
3046struct cfg80211_coalesce_rules {
3047	int delay;
3048	enum nl80211_coalesce_condition condition;
3049	struct cfg80211_pkt_pattern *patterns;
3050	int n_patterns;
3051};
3052
3053/**
3054 * struct cfg80211_coalesce - Packet coalescing settings
3055 *
3056 * This structure defines coalescing settings.
3057 * @rules: array of coalesce rules
3058 * @n_rules: number of rules
3059 */
3060struct cfg80211_coalesce {
3061	struct cfg80211_coalesce_rules *rules;
3062	int n_rules;
3063};
3064
3065/**
3066 * struct cfg80211_wowlan_nd_match - information about the match
3067 *
3068 * @ssid: SSID of the match that triggered the wake up
3069 * @n_channels: Number of channels where the match occurred.  This
3070 *	value may be zero if the driver can't report the channels.
3071 * @channels: center frequencies of the channels where a match
3072 *	occurred (in MHz)
3073 */
3074struct cfg80211_wowlan_nd_match {
3075	struct cfg80211_ssid ssid;
3076	int n_channels;
3077	u32 channels[];
3078};
3079
3080/**
3081 * struct cfg80211_wowlan_nd_info - net detect wake up information
3082 *
3083 * @n_matches: Number of match information instances provided in
3084 *	@matches.  This value may be zero if the driver can't provide
3085 *	match information.
3086 * @matches: Array of pointers to matches containing information about
3087 *	the matches that triggered the wake up.
3088 */
3089struct cfg80211_wowlan_nd_info {
3090	int n_matches;
3091	struct cfg80211_wowlan_nd_match *matches[];
3092};
3093
3094/**
3095 * struct cfg80211_wowlan_wakeup - wakeup report
3096 * @disconnect: woke up by getting disconnected
3097 * @magic_pkt: woke up by receiving magic packet
3098 * @gtk_rekey_failure: woke up by GTK rekey failure
3099 * @eap_identity_req: woke up by EAP identity request packet
3100 * @four_way_handshake: woke up by 4-way handshake
3101 * @rfkill_release: woke up by rfkill being released
3102 * @pattern_idx: pattern that caused wakeup, -1 if not due to pattern
3103 * @packet_present_len: copied wakeup packet data
3104 * @packet_len: original wakeup packet length
3105 * @packet: The packet causing the wakeup, if any.
3106 * @packet_80211:  For pattern match, magic packet and other data
3107 *	frame triggers an 802.3 frame should be reported, for
3108 *	disconnect due to deauth 802.11 frame. This indicates which
3109 *	it is.
3110 * @tcp_match: TCP wakeup packet received
3111 * @tcp_connlost: TCP connection lost or failed to establish
3112 * @tcp_nomoretokens: TCP data ran out of tokens
3113 * @net_detect: if not %NULL, woke up because of net detect
3114 */
3115struct cfg80211_wowlan_wakeup {
3116	bool disconnect, magic_pkt, gtk_rekey_failure,
3117	     eap_identity_req, four_way_handshake,
3118	     rfkill_release, packet_80211,
3119	     tcp_match, tcp_connlost, tcp_nomoretokens;
3120	s32 pattern_idx;
3121	u32 packet_present_len, packet_len;
3122	const void *packet;
3123	struct cfg80211_wowlan_nd_info *net_detect;
3124};
3125
3126/**
3127 * struct cfg80211_gtk_rekey_data - rekey data
3128 * @kek: key encryption key (@kek_len bytes)
3129 * @kck: key confirmation key (@kck_len bytes)
3130 * @replay_ctr: replay counter (NL80211_REPLAY_CTR_LEN bytes)
3131 * @kek_len: length of kek
3132 * @kck_len length of kck
3133 * @akm: akm (oui, id)
3134 */
3135struct cfg80211_gtk_rekey_data {
3136	const u8 *kek, *kck, *replay_ctr;
3137	u32 akm;
3138	u8 kek_len, kck_len;
3139};
3140
3141/**
3142 * struct cfg80211_update_ft_ies_params - FT IE Information
3143 *
3144 * This structure provides information needed to update the fast transition IE
3145 *
3146 * @md: The Mobility Domain ID, 2 Octet value
3147 * @ie: Fast Transition IEs
3148 * @ie_len: Length of ft_ie in octets
3149 */
3150struct cfg80211_update_ft_ies_params {
3151	u16 md;
3152	const u8 *ie;
3153	size_t ie_len;
3154};
3155
3156/**
3157 * struct cfg80211_mgmt_tx_params - mgmt tx parameters
3158 *
3159 * This structure provides information needed to transmit a mgmt frame
3160 *
3161 * @chan: channel to use
3162 * @offchan: indicates wether off channel operation is required
3163 * @wait: duration for ROC
3164 * @buf: buffer to transmit
3165 * @len: buffer length
3166 * @no_cck: don't use cck rates for this frame
3167 * @dont_wait_for_ack: tells the low level not to wait for an ack
3168 * @n_csa_offsets: length of csa_offsets array
3169 * @csa_offsets: array of all the csa offsets in the frame
 
 
 
3170 */
3171struct cfg80211_mgmt_tx_params {
3172	struct ieee80211_channel *chan;
3173	bool offchan;
3174	unsigned int wait;
3175	const u8 *buf;
3176	size_t len;
3177	bool no_cck;
3178	bool dont_wait_for_ack;
3179	int n_csa_offsets;
3180	const u16 *csa_offsets;
 
3181};
3182
3183/**
3184 * struct cfg80211_dscp_exception - DSCP exception
3185 *
3186 * @dscp: DSCP value that does not adhere to the user priority range definition
3187 * @up: user priority value to which the corresponding DSCP value belongs
3188 */
3189struct cfg80211_dscp_exception {
3190	u8 dscp;
3191	u8 up;
3192};
3193
3194/**
3195 * struct cfg80211_dscp_range - DSCP range definition for user priority
3196 *
3197 * @low: lowest DSCP value of this user priority range, inclusive
3198 * @high: highest DSCP value of this user priority range, inclusive
3199 */
3200struct cfg80211_dscp_range {
3201	u8 low;
3202	u8 high;
3203};
3204
3205/* QoS Map Set element length defined in IEEE Std 802.11-2012, 8.4.2.97 */
3206#define IEEE80211_QOS_MAP_MAX_EX	21
3207#define IEEE80211_QOS_MAP_LEN_MIN	16
3208#define IEEE80211_QOS_MAP_LEN_MAX \
3209	(IEEE80211_QOS_MAP_LEN_MIN + 2 * IEEE80211_QOS_MAP_MAX_EX)
3210
3211/**
3212 * struct cfg80211_qos_map - QoS Map Information
3213 *
3214 * This struct defines the Interworking QoS map setting for DSCP values
3215 *
3216 * @num_des: number of DSCP exceptions (0..21)
3217 * @dscp_exception: optionally up to maximum of 21 DSCP exceptions from
3218 *	the user priority DSCP range definition
3219 * @up: DSCP range definition for a particular user priority
3220 */
3221struct cfg80211_qos_map {
3222	u8 num_des;
3223	struct cfg80211_dscp_exception dscp_exception[IEEE80211_QOS_MAP_MAX_EX];
3224	struct cfg80211_dscp_range up[8];
3225};
3226
3227/**
3228 * struct cfg80211_nan_conf - NAN configuration
3229 *
3230 * This struct defines NAN configuration parameters
3231 *
3232 * @master_pref: master preference (1 - 255)
3233 * @bands: operating bands, a bitmap of &enum nl80211_band values.
3234 *	For instance, for NL80211_BAND_2GHZ, bit 0 would be set
3235 *	(i.e. BIT(NL80211_BAND_2GHZ)).
3236 */
3237struct cfg80211_nan_conf {
3238	u8 master_pref;
3239	u8 bands;
3240};
3241
3242/**
3243 * enum cfg80211_nan_conf_changes - indicates changed fields in NAN
3244 * configuration
3245 *
3246 * @CFG80211_NAN_CONF_CHANGED_PREF: master preference
3247 * @CFG80211_NAN_CONF_CHANGED_BANDS: operating bands
3248 */
3249enum cfg80211_nan_conf_changes {
3250	CFG80211_NAN_CONF_CHANGED_PREF = BIT(0),
3251	CFG80211_NAN_CONF_CHANGED_BANDS = BIT(1),
3252};
3253
3254/**
3255 * struct cfg80211_nan_func_filter - a NAN function Rx / Tx filter
3256 *
3257 * @filter: the content of the filter
3258 * @len: the length of the filter
3259 */
3260struct cfg80211_nan_func_filter {
3261	const u8 *filter;
3262	u8 len;
3263};
3264
3265/**
3266 * struct cfg80211_nan_func - a NAN function
3267 *
3268 * @type: &enum nl80211_nan_function_type
3269 * @service_id: the service ID of the function
3270 * @publish_type: &nl80211_nan_publish_type
3271 * @close_range: if true, the range should be limited. Threshold is
3272 *	implementation specific.
3273 * @publish_bcast: if true, the solicited publish should be broadcasted
3274 * @subscribe_active: if true, the subscribe is active
3275 * @followup_id: the instance ID for follow up
3276 * @followup_reqid: the requestor instance ID for follow up
3277 * @followup_dest: MAC address of the recipient of the follow up
3278 * @ttl: time to live counter in DW.
3279 * @serv_spec_info: Service Specific Info
3280 * @serv_spec_info_len: Service Specific Info length
3281 * @srf_include: if true, SRF is inclusive
3282 * @srf_bf: Bloom Filter
3283 * @srf_bf_len: Bloom Filter length
3284 * @srf_bf_idx: Bloom Filter index
3285 * @srf_macs: SRF MAC addresses
3286 * @srf_num_macs: number of MAC addresses in SRF
3287 * @rx_filters: rx filters that are matched with corresponding peer's tx_filter
3288 * @tx_filters: filters that should be transmitted in the SDF.
3289 * @num_rx_filters: length of &rx_filters.
3290 * @num_tx_filters: length of &tx_filters.
3291 * @instance_id: driver allocated id of the function.
3292 * @cookie: unique NAN function identifier.
3293 */
3294struct cfg80211_nan_func {
3295	enum nl80211_nan_function_type type;
3296	u8 service_id[NL80211_NAN_FUNC_SERVICE_ID_LEN];
3297	u8 publish_type;
3298	bool close_range;
3299	bool publish_bcast;
3300	bool subscribe_active;
3301	u8 followup_id;
3302	u8 followup_reqid;
3303	struct mac_address followup_dest;
3304	u32 ttl;
3305	const u8 *serv_spec_info;
3306	u8 serv_spec_info_len;
3307	bool srf_include;
3308	const u8 *srf_bf;
3309	u8 srf_bf_len;
3310	u8 srf_bf_idx;
3311	struct mac_address *srf_macs;
3312	int srf_num_macs;
3313	struct cfg80211_nan_func_filter *rx_filters;
3314	struct cfg80211_nan_func_filter *tx_filters;
3315	u8 num_tx_filters;
3316	u8 num_rx_filters;
3317	u8 instance_id;
3318	u64 cookie;
3319};
3320
3321/**
3322 * struct cfg80211_pmk_conf - PMK configuration
3323 *
3324 * @aa: authenticator address
3325 * @pmk_len: PMK length in bytes.
3326 * @pmk: the PMK material
3327 * @pmk_r0_name: PMK-R0 Name. NULL if not applicable (i.e., the PMK
3328 *	is not PMK-R0). When pmk_r0_name is not NULL, the pmk field
3329 *	holds PMK-R0.
3330 */
3331struct cfg80211_pmk_conf {
3332	const u8 *aa;
3333	u8 pmk_len;
3334	const u8 *pmk;
3335	const u8 *pmk_r0_name;
3336};
3337
3338/**
3339 * struct cfg80211_external_auth_params - Trigger External authentication.
3340 *
3341 * Commonly used across the external auth request and event interfaces.
3342 *
3343 * @action: action type / trigger for external authentication. Only significant
3344 *	for the authentication request event interface (driver to user space).
3345 * @bssid: BSSID of the peer with which the authentication has
3346 *	to happen. Used by both the authentication request event and
3347 *	authentication response command interface.
3348 * @ssid: SSID of the AP.  Used by both the authentication request event and
3349 *	authentication response command interface.
3350 * @key_mgmt_suite: AKM suite of the respective authentication. Used by the
3351 *	authentication request event interface.
3352 * @status: status code, %WLAN_STATUS_SUCCESS for successful authentication,
3353 *	use %WLAN_STATUS_UNSPECIFIED_FAILURE if user space cannot give you
3354 *	the real status code for failures. Used only for the authentication
3355 *	response command interface (user space to driver).
3356 * @pmkid: The identifier to refer a PMKSA.
3357 */
3358struct cfg80211_external_auth_params {
3359	enum nl80211_external_auth_action action;
3360	u8 bssid[ETH_ALEN] __aligned(2);
3361	struct cfg80211_ssid ssid;
3362	unsigned int key_mgmt_suite;
3363	u16 status;
3364	const u8 *pmkid;
3365};
3366
3367/**
3368 * struct cfg80211_ftm_responder_stats - FTM responder statistics
3369 *
3370 * @filled: bitflag of flags using the bits of &enum nl80211_ftm_stats to
3371 *	indicate the relevant values in this struct for them
3372 * @success_num: number of FTM sessions in which all frames were successfully
3373 *	answered
3374 * @partial_num: number of FTM sessions in which part of frames were
3375 *	successfully answered
3376 * @failed_num: number of failed FTM sessions
3377 * @asap_num: number of ASAP FTM sessions
3378 * @non_asap_num: number of  non-ASAP FTM sessions
3379 * @total_duration_ms: total sessions durations - gives an indication
3380 *	of how much time the responder was busy
3381 * @unknown_triggers_num: number of unknown FTM triggers - triggers from
3382 *	initiators that didn't finish successfully the negotiation phase with
3383 *	the responder
3384 * @reschedule_requests_num: number of FTM reschedule requests - initiator asks
3385 *	for a new scheduling although it already has scheduled FTM slot
3386 * @out_of_window_triggers_num: total FTM triggers out of scheduled window
3387 */
3388struct cfg80211_ftm_responder_stats {
3389	u32 filled;
3390	u32 success_num;
3391	u32 partial_num;
3392	u32 failed_num;
3393	u32 asap_num;
3394	u32 non_asap_num;
3395	u64 total_duration_ms;
3396	u32 unknown_triggers_num;
3397	u32 reschedule_requests_num;
3398	u32 out_of_window_triggers_num;
3399};
3400
3401/**
3402 * struct cfg80211_pmsr_ftm_result - FTM result
3403 * @failure_reason: if this measurement failed (PMSR status is
3404 *	%NL80211_PMSR_STATUS_FAILURE), this gives a more precise
3405 *	reason than just "failure"
3406 * @burst_index: if reporting partial results, this is the index
3407 *	in [0 .. num_bursts-1] of the burst that's being reported
3408 * @num_ftmr_attempts: number of FTM request frames transmitted
3409 * @num_ftmr_successes: number of FTM request frames acked
3410 * @busy_retry_time: if failure_reason is %NL80211_PMSR_FTM_FAILURE_PEER_BUSY,
3411 *	fill this to indicate in how many seconds a retry is deemed possible
3412 *	by the responder
3413 * @num_bursts_exp: actual number of bursts exponent negotiated
3414 * @burst_duration: actual burst duration negotiated
3415 * @ftms_per_burst: actual FTMs per burst negotiated
3416 * @lci_len: length of LCI information (if present)
3417 * @civicloc_len: length of civic location information (if present)
3418 * @lci: LCI data (may be %NULL)
3419 * @civicloc: civic location data (may be %NULL)
3420 * @rssi_avg: average RSSI over FTM action frames reported
3421 * @rssi_spread: spread of the RSSI over FTM action frames reported
3422 * @tx_rate: bitrate for transmitted FTM action frame response
3423 * @rx_rate: bitrate of received FTM action frame
3424 * @rtt_avg: average of RTTs measured (must have either this or @dist_avg)
3425 * @rtt_variance: variance of RTTs measured (note that standard deviation is
3426 *	the square root of the variance)
3427 * @rtt_spread: spread of the RTTs measured
3428 * @dist_avg: average of distances (mm) measured
3429 *	(must have either this or @rtt_avg)
3430 * @dist_variance: variance of distances measured (see also @rtt_variance)
3431 * @dist_spread: spread of distances measured (see also @rtt_spread)
3432 * @num_ftmr_attempts_valid: @num_ftmr_attempts is valid
3433 * @num_ftmr_successes_valid: @num_ftmr_successes is valid
3434 * @rssi_avg_valid: @rssi_avg is valid
3435 * @rssi_spread_valid: @rssi_spread is valid
3436 * @tx_rate_valid: @tx_rate is valid
3437 * @rx_rate_valid: @rx_rate is valid
3438 * @rtt_avg_valid: @rtt_avg is valid
3439 * @rtt_variance_valid: @rtt_variance is valid
3440 * @rtt_spread_valid: @rtt_spread is valid
3441 * @dist_avg_valid: @dist_avg is valid
3442 * @dist_variance_valid: @dist_variance is valid
3443 * @dist_spread_valid: @dist_spread is valid
3444 */
3445struct cfg80211_pmsr_ftm_result {
3446	const u8 *lci;
3447	const u8 *civicloc;
3448	unsigned int lci_len;
3449	unsigned int civicloc_len;
3450	enum nl80211_peer_measurement_ftm_failure_reasons failure_reason;
3451	u32 num_ftmr_attempts, num_ftmr_successes;
3452	s16 burst_index;
3453	u8 busy_retry_time;
3454	u8 num_bursts_exp;
3455	u8 burst_duration;
3456	u8 ftms_per_burst;
3457	s32 rssi_avg;
3458	s32 rssi_spread;
3459	struct rate_info tx_rate, rx_rate;
3460	s64 rtt_avg;
3461	s64 rtt_variance;
3462	s64 rtt_spread;
3463	s64 dist_avg;
3464	s64 dist_variance;
3465	s64 dist_spread;
3466
3467	u16 num_ftmr_attempts_valid:1,
3468	    num_ftmr_successes_valid:1,
3469	    rssi_avg_valid:1,
3470	    rssi_spread_valid:1,
3471	    tx_rate_valid:1,
3472	    rx_rate_valid:1,
3473	    rtt_avg_valid:1,
3474	    rtt_variance_valid:1,
3475	    rtt_spread_valid:1,
3476	    dist_avg_valid:1,
3477	    dist_variance_valid:1,
3478	    dist_spread_valid:1;
3479};
3480
3481/**
3482 * struct cfg80211_pmsr_result - peer measurement result
3483 * @addr: address of the peer
3484 * @host_time: host time (use ktime_get_boottime() adjust to the time when the
3485 *	measurement was made)
3486 * @ap_tsf: AP's TSF at measurement time
3487 * @status: status of the measurement
3488 * @final: if reporting partial results, mark this as the last one; if not
3489 *	reporting partial results always set this flag
3490 * @ap_tsf_valid: indicates the @ap_tsf value is valid
3491 * @type: type of the measurement reported, note that we only support reporting
3492 *	one type at a time, but you can report multiple results separately and
3493 *	they're all aggregated for userspace.
 
3494 */
3495struct cfg80211_pmsr_result {
3496	u64 host_time, ap_tsf;
3497	enum nl80211_peer_measurement_status status;
3498
3499	u8 addr[ETH_ALEN];
3500
3501	u8 final:1,
3502	   ap_tsf_valid:1;
3503
3504	enum nl80211_peer_measurement_type type;
3505
3506	union {
3507		struct cfg80211_pmsr_ftm_result ftm;
3508	};
3509};
3510
3511/**
3512 * struct cfg80211_pmsr_ftm_request_peer - FTM request data
3513 * @requested: indicates FTM is requested
3514 * @preamble: frame preamble to use
3515 * @burst_period: burst period to use
3516 * @asap: indicates to use ASAP mode
3517 * @num_bursts_exp: number of bursts exponent
3518 * @burst_duration: burst duration
3519 * @ftms_per_burst: number of FTMs per burst
3520 * @ftmr_retries: number of retries for FTM request
3521 * @request_lci: request LCI information
3522 * @request_civicloc: request civic location information
3523 * @trigger_based: use trigger based ranging for the measurement
3524 *		 If neither @trigger_based nor @non_trigger_based is set,
3525 *		 EDCA based ranging will be used.
3526 * @non_trigger_based: use non trigger based ranging for the measurement
3527 *		 If neither @trigger_based nor @non_trigger_based is set,
3528 *		 EDCA based ranging will be used.
3529 * @lmr_feedback: negotiate for I2R LMR feedback. Only valid if either
3530 *		 @trigger_based or @non_trigger_based is set.
3531 * @bss_color: the bss color of the responder. Optional. Set to zero to
3532 *	indicate the driver should set the BSS color. Only valid if
3533 *	@non_trigger_based or @trigger_based is set.
3534 *
3535 * See also nl80211 for the respective attribute documentation.
3536 */
3537struct cfg80211_pmsr_ftm_request_peer {
3538	enum nl80211_preamble preamble;
3539	u16 burst_period;
3540	u8 requested:1,
3541	   asap:1,
3542	   request_lci:1,
3543	   request_civicloc:1,
3544	   trigger_based:1,
3545	   non_trigger_based:1,
3546	   lmr_feedback:1;
3547	u8 num_bursts_exp;
3548	u8 burst_duration;
3549	u8 ftms_per_burst;
3550	u8 ftmr_retries;
3551	u8 bss_color;
3552};
3553
3554/**
3555 * struct cfg80211_pmsr_request_peer - peer data for a peer measurement request
3556 * @addr: MAC address
3557 * @chandef: channel to use
3558 * @report_ap_tsf: report the associated AP's TSF
3559 * @ftm: FTM data, see &struct cfg80211_pmsr_ftm_request_peer
3560 */
3561struct cfg80211_pmsr_request_peer {
3562	u8 addr[ETH_ALEN];
3563	struct cfg80211_chan_def chandef;
3564	u8 report_ap_tsf:1;
3565	struct cfg80211_pmsr_ftm_request_peer ftm;
3566};
3567
3568/**
3569 * struct cfg80211_pmsr_request - peer measurement request
3570 * @cookie: cookie, set by cfg80211
3571 * @nl_portid: netlink portid - used by cfg80211
3572 * @drv_data: driver data for this request, if required for aborting,
3573 *	not otherwise freed or anything by cfg80211
3574 * @mac_addr: MAC address used for (randomised) request
3575 * @mac_addr_mask: MAC address mask used for randomisation, bits that
3576 *	are 0 in the mask should be randomised, bits that are 1 should
3577 *	be taken from the @mac_addr
3578 * @list: used by cfg80211 to hold on to the request
3579 * @timeout: timeout (in milliseconds) for the whole operation, if
3580 *	zero it means there's no timeout
3581 * @n_peers: number of peers to do measurements with
3582 * @peers: per-peer measurement request data
3583 */
3584struct cfg80211_pmsr_request {
3585	u64 cookie;
3586	void *drv_data;
3587	u32 n_peers;
3588	u32 nl_portid;
3589
3590	u32 timeout;
3591
3592	u8 mac_addr[ETH_ALEN] __aligned(2);
3593	u8 mac_addr_mask[ETH_ALEN] __aligned(2);
3594
3595	struct list_head list;
3596
3597	struct cfg80211_pmsr_request_peer peers[];
3598};
3599
3600/**
3601 * struct cfg80211_update_owe_info - OWE Information
3602 *
3603 * This structure provides information needed for the drivers to offload OWE
3604 * (Opportunistic Wireless Encryption) processing to the user space.
3605 *
3606 * Commonly used across update_owe_info request and event interfaces.
3607 *
3608 * @peer: MAC address of the peer device for which the OWE processing
3609 *	has to be done.
3610 * @status: status code, %WLAN_STATUS_SUCCESS for successful OWE info
3611 *	processing, use %WLAN_STATUS_UNSPECIFIED_FAILURE if user space
3612 *	cannot give you the real status code for failures. Used only for
3613 *	OWE update request command interface (user space to driver).
3614 * @ie: IEs obtained from the peer or constructed by the user space. These are
3615 *	the IEs of the remote peer in the event from the host driver and
3616 *	the constructed IEs by the user space in the request interface.
3617 * @ie_len: Length of IEs in octets.
3618 */
3619struct cfg80211_update_owe_info {
3620	u8 peer[ETH_ALEN] __aligned(2);
3621	u16 status;
3622	const u8 *ie;
3623	size_t ie_len;
3624};
3625
3626/**
3627 * struct mgmt_frame_regs - management frame registrations data
3628 * @global_stypes: bitmap of management frame subtypes registered
3629 *	for the entire device
3630 * @interface_stypes: bitmap of management frame subtypes registered
3631 *	for the given interface
3632 * @global_mcast_rx: mcast RX is needed globally for these subtypes
3633 * @interface_mcast_stypes: mcast RX is needed on this interface
3634 *	for these subtypes
3635 */
3636struct mgmt_frame_regs {
3637	u32 global_stypes, interface_stypes;
3638	u32 global_mcast_stypes, interface_mcast_stypes;
3639};
3640
3641/**
3642 * struct cfg80211_ops - backend description for wireless configuration
3643 *
3644 * This struct is registered by fullmac card drivers and/or wireless stacks
3645 * in order to handle configuration requests on their interfaces.
3646 *
3647 * All callbacks except where otherwise noted should return 0
3648 * on success or a negative error code.
3649 *
3650 * All operations are invoked with the wiphy mutex held. The RTNL may be
3651 * held in addition (due to wireless extensions) but this cannot be relied
3652 * upon except in cases where documented below. Note that due to ordering,
3653 * the RTNL also cannot be acquired in any handlers.
3654 *
3655 * @suspend: wiphy device needs to be suspended. The variable @wow will
3656 *	be %NULL or contain the enabled Wake-on-Wireless triggers that are
3657 *	configured for the device.
3658 * @resume: wiphy device needs to be resumed
3659 * @set_wakeup: Called when WoWLAN is enabled/disabled, use this callback
3660 *	to call device_set_wakeup_enable() to enable/disable wakeup from
3661 *	the device.
3662 *
3663 * @add_virtual_intf: create a new virtual interface with the given name,
3664 *	must set the struct wireless_dev's iftype. Beware: You must create
3665 *	the new netdev in the wiphy's network namespace! Returns the struct
3666 *	wireless_dev, or an ERR_PTR. For P2P device wdevs, the driver must
3667 *	also set the address member in the wdev.
3668 *	This additionally holds the RTNL to be able to do netdev changes.
3669 *
3670 * @del_virtual_intf: remove the virtual interface
3671 *	This additionally holds the RTNL to be able to do netdev changes.
3672 *
3673 * @change_virtual_intf: change type/configuration of virtual interface,
3674 *	keep the struct wireless_dev's iftype updated.
3675 *	This additionally holds the RTNL to be able to do netdev changes.
3676 *
 
 
 
 
 
3677 * @add_key: add a key with the given parameters. @mac_addr will be %NULL
3678 *	when adding a group key.
 
 
3679 *
3680 * @get_key: get information about the key with the given parameters.
3681 *	@mac_addr will be %NULL when requesting information for a group
3682 *	key. All pointers given to the @callback function need not be valid
3683 *	after it returns. This function should return an error if it is
3684 *	not possible to retrieve the key, -ENOENT if it doesn't exist.
 
 
 
3685 *
3686 * @del_key: remove a key given the @mac_addr (%NULL for a group key)
3687 *	and @key_index, return -ENOENT if the key doesn't exist.
 
 
 
3688 *
3689 * @set_default_key: set the default key on an interface
 
3690 *
3691 * @set_default_mgmt_key: set the default management frame key on an interface
 
3692 *
3693 * @set_default_beacon_key: set the default Beacon frame key on an interface
 
3694 *
3695 * @set_rekey_data: give the data necessary for GTK rekeying to the driver
3696 *
3697 * @start_ap: Start acting in AP mode defined by the parameters.
3698 * @change_beacon: Change the beacon parameters for an access point mode
3699 *	interface. This should reject the call when AP mode wasn't started.
3700 * @stop_ap: Stop being an AP, including stopping beaconing.
3701 *
3702 * @add_station: Add a new station.
3703 * @del_station: Remove a station
3704 * @change_station: Modify a given station. Note that flags changes are not much
3705 *	validated in cfg80211, in particular the auth/assoc/authorized flags
3706 *	might come to the driver in invalid combinations -- make sure to check
3707 *	them, also against the existing state! Drivers must call
3708 *	cfg80211_check_station_change() to validate the information.
3709 * @get_station: get station information for the station identified by @mac
3710 * @dump_station: dump station callback -- resume dump at index @idx
3711 *
3712 * @add_mpath: add a fixed mesh path
3713 * @del_mpath: delete a given mesh path
3714 * @change_mpath: change a given mesh path
3715 * @get_mpath: get a mesh path for the given parameters
3716 * @dump_mpath: dump mesh path callback -- resume dump at index @idx
3717 * @get_mpp: get a mesh proxy path for the given parameters
3718 * @dump_mpp: dump mesh proxy path callback -- resume dump at index @idx
3719 * @join_mesh: join the mesh network with the specified parameters
3720 *	(invoked with the wireless_dev mutex held)
3721 * @leave_mesh: leave the current mesh network
3722 *	(invoked with the wireless_dev mutex held)
3723 *
3724 * @get_mesh_config: Get the current mesh configuration
3725 *
3726 * @update_mesh_config: Update mesh parameters on a running mesh.
3727 *	The mask is a bitfield which tells us which parameters to
3728 *	set, and which to leave alone.
3729 *
3730 * @change_bss: Modify parameters for a given BSS.
3731 *
3732 * @set_txq_params: Set TX queue parameters
3733 *
3734 * @libertas_set_mesh_channel: Only for backward compatibility for libertas,
3735 *	as it doesn't implement join_mesh and needs to set the channel to
3736 *	join the mesh instead.
3737 *
3738 * @set_monitor_channel: Set the monitor mode channel for the device. If other
3739 *	interfaces are active this callback should reject the configuration.
3740 *	If no interfaces are active or the device is down, the channel should
3741 *	be stored for when a monitor interface becomes active.
3742 *
3743 * @scan: Request to do a scan. If returning zero, the scan request is given
3744 *	the driver, and will be valid until passed to cfg80211_scan_done().
3745 *	For scan results, call cfg80211_inform_bss(); you can call this outside
3746 *	the scan/scan_done bracket too.
3747 * @abort_scan: Tell the driver to abort an ongoing scan. The driver shall
3748 *	indicate the status of the scan through cfg80211_scan_done().
3749 *
3750 * @auth: Request to authenticate with the specified peer
3751 *	(invoked with the wireless_dev mutex held)
3752 * @assoc: Request to (re)associate with the specified peer
3753 *	(invoked with the wireless_dev mutex held)
3754 * @deauth: Request to deauthenticate from the specified peer
3755 *	(invoked with the wireless_dev mutex held)
3756 * @disassoc: Request to disassociate from the specified peer
3757 *	(invoked with the wireless_dev mutex held)
3758 *
3759 * @connect: Connect to the ESS with the specified parameters. When connected,
3760 *	call cfg80211_connect_result()/cfg80211_connect_bss() with status code
3761 *	%WLAN_STATUS_SUCCESS. If the connection fails for some reason, call
3762 *	cfg80211_connect_result()/cfg80211_connect_bss() with the status code
3763 *	from the AP or cfg80211_connect_timeout() if no frame with status code
3764 *	was received.
3765 *	The driver is allowed to roam to other BSSes within the ESS when the
3766 *	other BSS matches the connect parameters. When such roaming is initiated
3767 *	by the driver, the driver is expected to verify that the target matches
3768 *	the configured security parameters and to use Reassociation Request
3769 *	frame instead of Association Request frame.
3770 *	The connect function can also be used to request the driver to perform a
3771 *	specific roam when connected to an ESS. In that case, the prev_bssid
3772 *	parameter is set to the BSSID of the currently associated BSS as an
3773 *	indication of requesting reassociation.
3774 *	In both the driver-initiated and new connect() call initiated roaming
3775 *	cases, the result of roaming is indicated with a call to
3776 *	cfg80211_roamed(). (invoked with the wireless_dev mutex held)
3777 * @update_connect_params: Update the connect parameters while connected to a
3778 *	BSS. The updated parameters can be used by driver/firmware for
3779 *	subsequent BSS selection (roaming) decisions and to form the
3780 *	Authentication/(Re)Association Request frames. This call does not
3781 *	request an immediate disassociation or reassociation with the current
3782 *	BSS, i.e., this impacts only subsequent (re)associations. The bits in
3783 *	changed are defined in &enum cfg80211_connect_params_changed.
3784 *	(invoked with the wireless_dev mutex held)
3785 * @disconnect: Disconnect from the BSS/ESS or stop connection attempts if
3786 *      connection is in progress. Once done, call cfg80211_disconnected() in
3787 *      case connection was already established (invoked with the
3788 *      wireless_dev mutex held), otherwise call cfg80211_connect_timeout().
3789 *
3790 * @join_ibss: Join the specified IBSS (or create if necessary). Once done, call
3791 *	cfg80211_ibss_joined(), also call that function when changing BSSID due
3792 *	to a merge.
3793 *	(invoked with the wireless_dev mutex held)
3794 * @leave_ibss: Leave the IBSS.
3795 *	(invoked with the wireless_dev mutex held)
3796 *
3797 * @set_mcast_rate: Set the specified multicast rate (only if vif is in ADHOC or
3798 *	MESH mode)
3799 *
3800 * @set_wiphy_params: Notify that wiphy parameters have changed;
3801 *	@changed bitfield (see &enum wiphy_params_flags) describes which values
3802 *	have changed. The actual parameter values are available in
3803 *	struct wiphy. If returning an error, no value should be changed.
3804 *
3805 * @set_tx_power: set the transmit power according to the parameters,
3806 *	the power passed is in mBm, to get dBm use MBM_TO_DBM(). The
3807 *	wdev may be %NULL if power was set for the wiphy, and will
3808 *	always be %NULL unless the driver supports per-vif TX power
3809 *	(as advertised by the nl80211 feature flag.)
3810 * @get_tx_power: store the current TX power into the dbm variable;
3811 *	return 0 if successful
3812 *
3813 * @rfkill_poll: polls the hw rfkill line, use cfg80211 reporting
3814 *	functions to adjust rfkill hw state
3815 *
3816 * @dump_survey: get site survey information.
3817 *
3818 * @remain_on_channel: Request the driver to remain awake on the specified
3819 *	channel for the specified duration to complete an off-channel
3820 *	operation (e.g., public action frame exchange). When the driver is
3821 *	ready on the requested channel, it must indicate this with an event
3822 *	notification by calling cfg80211_ready_on_channel().
3823 * @cancel_remain_on_channel: Cancel an on-going remain-on-channel operation.
3824 *	This allows the operation to be terminated prior to timeout based on
3825 *	the duration value.
3826 * @mgmt_tx: Transmit a management frame.
3827 * @mgmt_tx_cancel_wait: Cancel the wait time from transmitting a management
3828 *	frame on another channel
3829 *
3830 * @testmode_cmd: run a test mode command; @wdev may be %NULL
3831 * @testmode_dump: Implement a test mode dump. The cb->args[2] and up may be
3832 *	used by the function, but 0 and 1 must not be touched. Additionally,
3833 *	return error codes other than -ENOBUFS and -ENOENT will terminate the
3834 *	dump and return to userspace with an error, so be careful. If any data
3835 *	was passed in from userspace then the data/len arguments will be present
3836 *	and point to the data contained in %NL80211_ATTR_TESTDATA.
3837 *
3838 * @set_bitrate_mask: set the bitrate mask configuration
3839 *
3840 * @set_pmksa: Cache a PMKID for a BSSID. This is mostly useful for fullmac
3841 *	devices running firmwares capable of generating the (re) association
3842 *	RSN IE. It allows for faster roaming between WPA2 BSSIDs.
3843 * @del_pmksa: Delete a cached PMKID.
3844 * @flush_pmksa: Flush all cached PMKIDs.
3845 * @set_power_mgmt: Configure WLAN power management. A timeout value of -1
3846 *	allows the driver to adjust the dynamic ps timeout value.
3847 * @set_cqm_rssi_config: Configure connection quality monitor RSSI threshold.
3848 *	After configuration, the driver should (soon) send an event indicating
3849 *	the current level is above/below the configured threshold; this may
3850 *	need some care when the configuration is changed (without first being
3851 *	disabled.)
3852 * @set_cqm_rssi_range_config: Configure two RSSI thresholds in the
3853 *	connection quality monitor.  An event is to be sent only when the
3854 *	signal level is found to be outside the two values.  The driver should
3855 *	set %NL80211_EXT_FEATURE_CQM_RSSI_LIST if this method is implemented.
3856 *	If it is provided then there's no point providing @set_cqm_rssi_config.
3857 * @set_cqm_txe_config: Configure connection quality monitor TX error
3858 *	thresholds.
3859 * @sched_scan_start: Tell the driver to start a scheduled scan.
3860 * @sched_scan_stop: Tell the driver to stop an ongoing scheduled scan with
3861 *	given request id. This call must stop the scheduled scan and be ready
3862 *	for starting a new one before it returns, i.e. @sched_scan_start may be
3863 *	called immediately after that again and should not fail in that case.
3864 *	The driver should not call cfg80211_sched_scan_stopped() for a requested
3865 *	stop (when this method returns 0).
3866 *
3867 * @update_mgmt_frame_registrations: Notify the driver that management frame
3868 *	registrations were updated. The callback is allowed to sleep.
3869 *
3870 * @set_antenna: Set antenna configuration (tx_ant, rx_ant) on the device.
3871 *	Parameters are bitmaps of allowed antennas to use for TX/RX. Drivers may
3872 *	reject TX/RX mask combinations they cannot support by returning -EINVAL
3873 *	(also see nl80211.h @NL80211_ATTR_WIPHY_ANTENNA_TX).
3874 *
3875 * @get_antenna: Get current antenna configuration from device (tx_ant, rx_ant).
3876 *
3877 * @tdls_mgmt: Transmit a TDLS management frame.
3878 * @tdls_oper: Perform a high-level TDLS operation (e.g. TDLS link setup).
3879 *
3880 * @probe_client: probe an associated client, must return a cookie that it
3881 *	later passes to cfg80211_probe_status().
3882 *
3883 * @set_noack_map: Set the NoAck Map for the TIDs.
3884 *
3885 * @get_channel: Get the current operating channel for the virtual interface.
3886 *	For monitor interfaces, it should return %NULL unless there's a single
3887 *	current monitoring channel.
3888 *
3889 * @start_p2p_device: Start the given P2P device.
3890 * @stop_p2p_device: Stop the given P2P device.
3891 *
3892 * @set_mac_acl: Sets MAC address control list in AP and P2P GO mode.
3893 *	Parameters include ACL policy, an array of MAC address of stations
3894 *	and the number of MAC addresses. If there is already a list in driver
3895 *	this new list replaces the existing one. Driver has to clear its ACL
3896 *	when number of MAC addresses entries is passed as 0. Drivers which
3897 *	advertise the support for MAC based ACL have to implement this callback.
3898 *
3899 * @start_radar_detection: Start radar detection in the driver.
3900 *
3901 * @end_cac: End running CAC, probably because a related CAC
3902 *	was finished on another phy.
3903 *
3904 * @update_ft_ies: Provide updated Fast BSS Transition information to the
3905 *	driver. If the SME is in the driver/firmware, this information can be
3906 *	used in building Authentication and Reassociation Request frames.
3907 *
3908 * @crit_proto_start: Indicates a critical protocol needs more link reliability
3909 *	for a given duration (milliseconds). The protocol is provided so the
3910 *	driver can take the most appropriate actions.
3911 * @crit_proto_stop: Indicates critical protocol no longer needs increased link
3912 *	reliability. This operation can not fail.
3913 * @set_coalesce: Set coalesce parameters.
3914 *
3915 * @channel_switch: initiate channel-switch procedure (with CSA). Driver is
3916 *	responsible for veryfing if the switch is possible. Since this is
3917 *	inherently tricky driver may decide to disconnect an interface later
3918 *	with cfg80211_stop_iface(). This doesn't mean driver can accept
3919 *	everything. It should do it's best to verify requests and reject them
3920 *	as soon as possible.
3921 *
3922 * @set_qos_map: Set QoS mapping information to the driver
3923 *
3924 * @set_ap_chanwidth: Set the AP (including P2P GO) mode channel width for the
3925 *	given interface This is used e.g. for dynamic HT 20/40 MHz channel width
3926 *	changes during the lifetime of the BSS.
3927 *
3928 * @add_tx_ts: validate (if admitted_time is 0) or add a TX TS to the device
3929 *	with the given parameters; action frame exchange has been handled by
3930 *	userspace so this just has to modify the TX path to take the TS into
3931 *	account.
3932 *	If the admitted time is 0 just validate the parameters to make sure
3933 *	the session can be created at all; it is valid to just always return
3934 *	success for that but that may result in inefficient behaviour (handshake
3935 *	with the peer followed by immediate teardown when the addition is later
3936 *	rejected)
3937 * @del_tx_ts: remove an existing TX TS
3938 *
3939 * @join_ocb: join the OCB network with the specified parameters
3940 *	(invoked with the wireless_dev mutex held)
3941 * @leave_ocb: leave the current OCB network
3942 *	(invoked with the wireless_dev mutex held)
3943 *
3944 * @tdls_channel_switch: Start channel-switching with a TDLS peer. The driver
3945 *	is responsible for continually initiating channel-switching operations
3946 *	and returning to the base channel for communication with the AP.
3947 * @tdls_cancel_channel_switch: Stop channel-switching with a TDLS peer. Both
3948 *	peers must be on the base channel when the call completes.
3949 * @start_nan: Start the NAN interface.
3950 * @stop_nan: Stop the NAN interface.
3951 * @add_nan_func: Add a NAN function. Returns negative value on failure.
3952 *	On success @nan_func ownership is transferred to the driver and
3953 *	it may access it outside of the scope of this function. The driver
3954 *	should free the @nan_func when no longer needed by calling
3955 *	cfg80211_free_nan_func().
3956 *	On success the driver should assign an instance_id in the
3957 *	provided @nan_func.
3958 * @del_nan_func: Delete a NAN function.
3959 * @nan_change_conf: changes NAN configuration. The changed parameters must
3960 *	be specified in @changes (using &enum cfg80211_nan_conf_changes);
3961 *	All other parameters must be ignored.
3962 *
3963 * @set_multicast_to_unicast: configure multicast to unicast conversion for BSS
3964 *
3965 * @get_txq_stats: Get TXQ stats for interface or phy. If wdev is %NULL, this
3966 *      function should return phy stats, and interface stats otherwise.
3967 *
3968 * @set_pmk: configure the PMK to be used for offloaded 802.1X 4-Way handshake.
3969 *	If not deleted through @del_pmk the PMK remains valid until disconnect
3970 *	upon which the driver should clear it.
3971 *	(invoked with the wireless_dev mutex held)
3972 * @del_pmk: delete the previously configured PMK for the given authenticator.
3973 *	(invoked with the wireless_dev mutex held)
3974 *
3975 * @external_auth: indicates result of offloaded authentication processing from
3976 *     user space
3977 *
3978 * @tx_control_port: TX a control port frame (EAPoL).  The noencrypt parameter
3979 *	tells the driver that the frame should not be encrypted.
3980 *
3981 * @get_ftm_responder_stats: Retrieve FTM responder statistics, if available.
3982 *	Statistics should be cumulative, currently no way to reset is provided.
3983 * @start_pmsr: start peer measurement (e.g. FTM)
3984 * @abort_pmsr: abort peer measurement
3985 *
3986 * @update_owe_info: Provide updated OWE info to driver. Driver implementing SME
3987 *	but offloading OWE processing to the user space will get the updated
3988 *	DH IE through this interface.
3989 *
3990 * @probe_mesh_link: Probe direct Mesh peer's link quality by sending data frame
3991 *	and overrule HWMP path selection algorithm.
3992 * @set_tid_config: TID specific configuration, this can be peer or BSS specific
3993 *	This callback may sleep.
3994 * @reset_tid_config: Reset TID specific configuration for the peer, for the
3995 *	given TIDs. This callback may sleep.
3996 *
3997 * @set_sar_specs: Update the SAR (TX power) settings.
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3998 */
3999struct cfg80211_ops {
4000	int	(*suspend)(struct wiphy *wiphy, struct cfg80211_wowlan *wow);
4001	int	(*resume)(struct wiphy *wiphy);
4002	void	(*set_wakeup)(struct wiphy *wiphy, bool enabled);
4003
4004	struct wireless_dev * (*add_virtual_intf)(struct wiphy *wiphy,
4005						  const char *name,
4006						  unsigned char name_assign_type,
4007						  enum nl80211_iftype type,
4008						  struct vif_params *params);
4009	int	(*del_virtual_intf)(struct wiphy *wiphy,
4010				    struct wireless_dev *wdev);
4011	int	(*change_virtual_intf)(struct wiphy *wiphy,
4012				       struct net_device *dev,
4013				       enum nl80211_iftype type,
4014				       struct vif_params *params);
4015
 
 
 
 
 
 
 
4016	int	(*add_key)(struct wiphy *wiphy, struct net_device *netdev,
4017			   u8 key_index, bool pairwise, const u8 *mac_addr,
4018			   struct key_params *params);
4019	int	(*get_key)(struct wiphy *wiphy, struct net_device *netdev,
4020			   u8 key_index, bool pairwise, const u8 *mac_addr,
4021			   void *cookie,
4022			   void (*callback)(void *cookie, struct key_params*));
4023	int	(*del_key)(struct wiphy *wiphy, struct net_device *netdev,
4024			   u8 key_index, bool pairwise, const u8 *mac_addr);
 
4025	int	(*set_default_key)(struct wiphy *wiphy,
4026				   struct net_device *netdev,
4027				   u8 key_index, bool unicast, bool multicast);
4028	int	(*set_default_mgmt_key)(struct wiphy *wiphy,
4029					struct net_device *netdev,
4030					u8 key_index);
4031	int	(*set_default_beacon_key)(struct wiphy *wiphy,
4032					  struct net_device *netdev,
 
4033					  u8 key_index);
4034
4035	int	(*start_ap)(struct wiphy *wiphy, struct net_device *dev,
4036			    struct cfg80211_ap_settings *settings);
4037	int	(*change_beacon)(struct wiphy *wiphy, struct net_device *dev,
4038				 struct cfg80211_beacon_data *info);
4039	int	(*stop_ap)(struct wiphy *wiphy, struct net_device *dev);
 
4040
4041
4042	int	(*add_station)(struct wiphy *wiphy, struct net_device *dev,
4043			       const u8 *mac,
4044			       struct station_parameters *params);
4045	int	(*del_station)(struct wiphy *wiphy, struct net_device *dev,
4046			       struct station_del_parameters *params);
4047	int	(*change_station)(struct wiphy *wiphy, struct net_device *dev,
4048				  const u8 *mac,
4049				  struct station_parameters *params);
4050	int	(*get_station)(struct wiphy *wiphy, struct net_device *dev,
4051			       const u8 *mac, struct station_info *sinfo);
4052	int	(*dump_station)(struct wiphy *wiphy, struct net_device *dev,
4053				int idx, u8 *mac, struct station_info *sinfo);
4054
4055	int	(*add_mpath)(struct wiphy *wiphy, struct net_device *dev,
4056			       const u8 *dst, const u8 *next_hop);
4057	int	(*del_mpath)(struct wiphy *wiphy, struct net_device *dev,
4058			       const u8 *dst);
4059	int	(*change_mpath)(struct wiphy *wiphy, struct net_device *dev,
4060				  const u8 *dst, const u8 *next_hop);
4061	int	(*get_mpath)(struct wiphy *wiphy, struct net_device *dev,
4062			     u8 *dst, u8 *next_hop, struct mpath_info *pinfo);
4063	int	(*dump_mpath)(struct wiphy *wiphy, struct net_device *dev,
4064			      int idx, u8 *dst, u8 *next_hop,
4065			      struct mpath_info *pinfo);
4066	int	(*get_mpp)(struct wiphy *wiphy, struct net_device *dev,
4067			   u8 *dst, u8 *mpp, struct mpath_info *pinfo);
4068	int	(*dump_mpp)(struct wiphy *wiphy, struct net_device *dev,
4069			    int idx, u8 *dst, u8 *mpp,
4070			    struct mpath_info *pinfo);
4071	int	(*get_mesh_config)(struct wiphy *wiphy,
4072				struct net_device *dev,
4073				struct mesh_config *conf);
4074	int	(*update_mesh_config)(struct wiphy *wiphy,
4075				      struct net_device *dev, u32 mask,
4076				      const struct mesh_config *nconf);
4077	int	(*join_mesh)(struct wiphy *wiphy, struct net_device *dev,
4078			     const struct mesh_config *conf,
4079			     const struct mesh_setup *setup);
4080	int	(*leave_mesh)(struct wiphy *wiphy, struct net_device *dev);
4081
4082	int	(*join_ocb)(struct wiphy *wiphy, struct net_device *dev,
4083			    struct ocb_setup *setup);
4084	int	(*leave_ocb)(struct wiphy *wiphy, struct net_device *dev);
4085
4086	int	(*change_bss)(struct wiphy *wiphy, struct net_device *dev,
4087			      struct bss_parameters *params);
4088
4089	int	(*set_txq_params)(struct wiphy *wiphy, struct net_device *dev,
4090				  struct ieee80211_txq_params *params);
4091
4092	int	(*libertas_set_mesh_channel)(struct wiphy *wiphy,
4093					     struct net_device *dev,
4094					     struct ieee80211_channel *chan);
4095
4096	int	(*set_monitor_channel)(struct wiphy *wiphy,
4097				       struct cfg80211_chan_def *chandef);
4098
4099	int	(*scan)(struct wiphy *wiphy,
4100			struct cfg80211_scan_request *request);
4101	void	(*abort_scan)(struct wiphy *wiphy, struct wireless_dev *wdev);
4102
4103	int	(*auth)(struct wiphy *wiphy, struct net_device *dev,
4104			struct cfg80211_auth_request *req);
4105	int	(*assoc)(struct wiphy *wiphy, struct net_device *dev,
4106			 struct cfg80211_assoc_request *req);
4107	int	(*deauth)(struct wiphy *wiphy, struct net_device *dev,
4108			  struct cfg80211_deauth_request *req);
4109	int	(*disassoc)(struct wiphy *wiphy, struct net_device *dev,
4110			    struct cfg80211_disassoc_request *req);
4111
4112	int	(*connect)(struct wiphy *wiphy, struct net_device *dev,
4113			   struct cfg80211_connect_params *sme);
4114	int	(*update_connect_params)(struct wiphy *wiphy,
4115					 struct net_device *dev,
4116					 struct cfg80211_connect_params *sme,
4117					 u32 changed);
4118	int	(*disconnect)(struct wiphy *wiphy, struct net_device *dev,
4119			      u16 reason_code);
4120
4121	int	(*join_ibss)(struct wiphy *wiphy, struct net_device *dev,
4122			     struct cfg80211_ibss_params *params);
4123	int	(*leave_ibss)(struct wiphy *wiphy, struct net_device *dev);
4124
4125	int	(*set_mcast_rate)(struct wiphy *wiphy, struct net_device *dev,
4126				  int rate[NUM_NL80211_BANDS]);
4127
4128	int	(*set_wiphy_params)(struct wiphy *wiphy, u32 changed);
4129
4130	int	(*set_tx_power)(struct wiphy *wiphy, struct wireless_dev *wdev,
4131				enum nl80211_tx_power_setting type, int mbm);
4132	int	(*get_tx_power)(struct wiphy *wiphy, struct wireless_dev *wdev,
4133				int *dbm);
4134
4135	void	(*rfkill_poll)(struct wiphy *wiphy);
4136
4137#ifdef CONFIG_NL80211_TESTMODE
4138	int	(*testmode_cmd)(struct wiphy *wiphy, struct wireless_dev *wdev,
4139				void *data, int len);
4140	int	(*testmode_dump)(struct wiphy *wiphy, struct sk_buff *skb,
4141				 struct netlink_callback *cb,
4142				 void *data, int len);
4143#endif
4144
4145	int	(*set_bitrate_mask)(struct wiphy *wiphy,
4146				    struct net_device *dev,
 
4147				    const u8 *peer,
4148				    const struct cfg80211_bitrate_mask *mask);
4149
4150	int	(*dump_survey)(struct wiphy *wiphy, struct net_device *netdev,
4151			int idx, struct survey_info *info);
4152
4153	int	(*set_pmksa)(struct wiphy *wiphy, struct net_device *netdev,
4154			     struct cfg80211_pmksa *pmksa);
4155	int	(*del_pmksa)(struct wiphy *wiphy, struct net_device *netdev,
4156			     struct cfg80211_pmksa *pmksa);
4157	int	(*flush_pmksa)(struct wiphy *wiphy, struct net_device *netdev);
4158
4159	int	(*remain_on_channel)(struct wiphy *wiphy,
4160				     struct wireless_dev *wdev,
4161				     struct ieee80211_channel *chan,
4162				     unsigned int duration,
4163				     u64 *cookie);
4164	int	(*cancel_remain_on_channel)(struct wiphy *wiphy,
4165					    struct wireless_dev *wdev,
4166					    u64 cookie);
4167
4168	int	(*mgmt_tx)(struct wiphy *wiphy, struct wireless_dev *wdev,
4169			   struct cfg80211_mgmt_tx_params *params,
4170			   u64 *cookie);
4171	int	(*mgmt_tx_cancel_wait)(struct wiphy *wiphy,
4172				       struct wireless_dev *wdev,
4173				       u64 cookie);
4174
4175	int	(*set_power_mgmt)(struct wiphy *wiphy, struct net_device *dev,
4176				  bool enabled, int timeout);
4177
4178	int	(*set_cqm_rssi_config)(struct wiphy *wiphy,
4179				       struct net_device *dev,
4180				       s32 rssi_thold, u32 rssi_hyst);
4181
4182	int	(*set_cqm_rssi_range_config)(struct wiphy *wiphy,
4183					     struct net_device *dev,
4184					     s32 rssi_low, s32 rssi_high);
4185
4186	int	(*set_cqm_txe_config)(struct wiphy *wiphy,
4187				      struct net_device *dev,
4188				      u32 rate, u32 pkts, u32 intvl);
4189
4190	void	(*update_mgmt_frame_registrations)(struct wiphy *wiphy,
4191						   struct wireless_dev *wdev,
4192						   struct mgmt_frame_regs *upd);
4193
4194	int	(*set_antenna)(struct wiphy *wiphy, u32 tx_ant, u32 rx_ant);
4195	int	(*get_antenna)(struct wiphy *wiphy, u32 *tx_ant, u32 *rx_ant);
4196
4197	int	(*sched_scan_start)(struct wiphy *wiphy,
4198				struct net_device *dev,
4199				struct cfg80211_sched_scan_request *request);
4200	int	(*sched_scan_stop)(struct wiphy *wiphy, struct net_device *dev,
4201				   u64 reqid);
4202
4203	int	(*set_rekey_data)(struct wiphy *wiphy, struct net_device *dev,
4204				  struct cfg80211_gtk_rekey_data *data);
4205
4206	int	(*tdls_mgmt)(struct wiphy *wiphy, struct net_device *dev,
4207			     const u8 *peer, u8 action_code,  u8 dialog_token,
4208			     u16 status_code, u32 peer_capability,
4209			     bool initiator, const u8 *buf, size_t len);
4210	int	(*tdls_oper)(struct wiphy *wiphy, struct net_device *dev,
4211			     const u8 *peer, enum nl80211_tdls_operation oper);
4212
4213	int	(*probe_client)(struct wiphy *wiphy, struct net_device *dev,
4214				const u8 *peer, u64 *cookie);
4215
4216	int	(*set_noack_map)(struct wiphy *wiphy,
4217				  struct net_device *dev,
4218				  u16 noack_map);
4219
4220	int	(*get_channel)(struct wiphy *wiphy,
4221			       struct wireless_dev *wdev,
 
4222			       struct cfg80211_chan_def *chandef);
4223
4224	int	(*start_p2p_device)(struct wiphy *wiphy,
4225				    struct wireless_dev *wdev);
4226	void	(*stop_p2p_device)(struct wiphy *wiphy,
4227				   struct wireless_dev *wdev);
4228
4229	int	(*set_mac_acl)(struct wiphy *wiphy, struct net_device *dev,
4230			       const struct cfg80211_acl_data *params);
4231
4232	int	(*start_radar_detection)(struct wiphy *wiphy,
4233					 struct net_device *dev,
4234					 struct cfg80211_chan_def *chandef,
4235					 u32 cac_time_ms);
4236	void	(*end_cac)(struct wiphy *wiphy,
4237				struct net_device *dev);
4238	int	(*update_ft_ies)(struct wiphy *wiphy, struct net_device *dev,
4239				 struct cfg80211_update_ft_ies_params *ftie);
4240	int	(*crit_proto_start)(struct wiphy *wiphy,
4241				    struct wireless_dev *wdev,
4242				    enum nl80211_crit_proto_id protocol,
4243				    u16 duration);
4244	void	(*crit_proto_stop)(struct wiphy *wiphy,
4245				   struct wireless_dev *wdev);
4246	int	(*set_coalesce)(struct wiphy *wiphy,
4247				struct cfg80211_coalesce *coalesce);
4248
4249	int	(*channel_switch)(struct wiphy *wiphy,
4250				  struct net_device *dev,
4251				  struct cfg80211_csa_settings *params);
4252
4253	int     (*set_qos_map)(struct wiphy *wiphy,
4254			       struct net_device *dev,
4255			       struct cfg80211_qos_map *qos_map);
4256
4257	int	(*set_ap_chanwidth)(struct wiphy *wiphy, struct net_device *dev,
 
4258				    struct cfg80211_chan_def *chandef);
4259
4260	int	(*add_tx_ts)(struct wiphy *wiphy, struct net_device *dev,
4261			     u8 tsid, const u8 *peer, u8 user_prio,
4262			     u16 admitted_time);
4263	int	(*del_tx_ts)(struct wiphy *wiphy, struct net_device *dev,
4264			     u8 tsid, const u8 *peer);
4265
4266	int	(*tdls_channel_switch)(struct wiphy *wiphy,
4267				       struct net_device *dev,
4268				       const u8 *addr, u8 oper_class,
4269				       struct cfg80211_chan_def *chandef);
4270	void	(*tdls_cancel_channel_switch)(struct wiphy *wiphy,
4271					      struct net_device *dev,
4272					      const u8 *addr);
4273	int	(*start_nan)(struct wiphy *wiphy, struct wireless_dev *wdev,
4274			     struct cfg80211_nan_conf *conf);
4275	void	(*stop_nan)(struct wiphy *wiphy, struct wireless_dev *wdev);
4276	int	(*add_nan_func)(struct wiphy *wiphy, struct wireless_dev *wdev,
4277				struct cfg80211_nan_func *nan_func);
4278	void	(*del_nan_func)(struct wiphy *wiphy, struct wireless_dev *wdev,
4279			       u64 cookie);
4280	int	(*nan_change_conf)(struct wiphy *wiphy,
4281				   struct wireless_dev *wdev,
4282				   struct cfg80211_nan_conf *conf,
4283				   u32 changes);
4284
4285	int	(*set_multicast_to_unicast)(struct wiphy *wiphy,
4286					    struct net_device *dev,
4287					    const bool enabled);
4288
4289	int	(*get_txq_stats)(struct wiphy *wiphy,
4290				 struct wireless_dev *wdev,
4291				 struct cfg80211_txq_stats *txqstats);
4292
4293	int	(*set_pmk)(struct wiphy *wiphy, struct net_device *dev,
4294			   const struct cfg80211_pmk_conf *conf);
4295	int	(*del_pmk)(struct wiphy *wiphy, struct net_device *dev,
4296			   const u8 *aa);
4297	int     (*external_auth)(struct wiphy *wiphy, struct net_device *dev,
4298				 struct cfg80211_external_auth_params *params);
4299
4300	int	(*tx_control_port)(struct wiphy *wiphy,
4301				   struct net_device *dev,
4302				   const u8 *buf, size_t len,
4303				   const u8 *dest, const __be16 proto,
4304				   const bool noencrypt,
4305				   u64 *cookie);
4306
4307	int	(*get_ftm_responder_stats)(struct wiphy *wiphy,
4308				struct net_device *dev,
4309				struct cfg80211_ftm_responder_stats *ftm_stats);
4310
4311	int	(*start_pmsr)(struct wiphy *wiphy, struct wireless_dev *wdev,
4312			      struct cfg80211_pmsr_request *request);
4313	void	(*abort_pmsr)(struct wiphy *wiphy, struct wireless_dev *wdev,
4314			      struct cfg80211_pmsr_request *request);
4315	int	(*update_owe_info)(struct wiphy *wiphy, struct net_device *dev,
4316				   struct cfg80211_update_owe_info *owe_info);
4317	int	(*probe_mesh_link)(struct wiphy *wiphy, struct net_device *dev,
4318				   const u8 *buf, size_t len);
4319	int     (*set_tid_config)(struct wiphy *wiphy, struct net_device *dev,
4320				  struct cfg80211_tid_config *tid_conf);
4321	int	(*reset_tid_config)(struct wiphy *wiphy, struct net_device *dev,
4322				    const u8 *peer, u8 tids);
4323	int	(*set_sar_specs)(struct wiphy *wiphy,
4324				 struct cfg80211_sar_specs *sar);
 
 
 
 
 
 
 
 
 
 
 
 
 
4325};
4326
4327/*
4328 * wireless hardware and networking interfaces structures
4329 * and registration/helper functions
4330 */
4331
4332/**
4333 * enum wiphy_flags - wiphy capability flags
4334 *
4335 * @WIPHY_FLAG_SPLIT_SCAN_6GHZ: if set to true, the scan request will be split
4336 *	 into two, first for legacy bands and second for UHB.
4337 * @WIPHY_FLAG_NETNS_OK: if not set, do not allow changing the netns of this
4338 *	wiphy at all
4339 * @WIPHY_FLAG_PS_ON_BY_DEFAULT: if set to true, powersave will be enabled
4340 *	by default -- this flag will be set depending on the kernel's default
4341 *	on wiphy_new(), but can be changed by the driver if it has a good
4342 *	reason to override the default
4343 * @WIPHY_FLAG_4ADDR_AP: supports 4addr mode even on AP (with a single station
4344 *	on a VLAN interface). This flag also serves an extra purpose of
4345 *	supporting 4ADDR AP mode on devices which do not support AP/VLAN iftype.
4346 * @WIPHY_FLAG_4ADDR_STATION: supports 4addr mode even as a station
4347 * @WIPHY_FLAG_CONTROL_PORT_PROTOCOL: This device supports setting the
4348 *	control port protocol ethertype. The device also honours the
4349 *	control_port_no_encrypt flag.
4350 * @WIPHY_FLAG_IBSS_RSN: The device supports IBSS RSN.
4351 * @WIPHY_FLAG_MESH_AUTH: The device supports mesh authentication by routing
4352 *	auth frames to userspace. See @NL80211_MESH_SETUP_USERSPACE_AUTH.
4353 * @WIPHY_FLAG_SUPPORTS_FW_ROAM: The device supports roaming feature in the
4354 *	firmware.
4355 * @WIPHY_FLAG_AP_UAPSD: The device supports uapsd on AP.
4356 * @WIPHY_FLAG_SUPPORTS_TDLS: The device supports TDLS (802.11z) operation.
4357 * @WIPHY_FLAG_TDLS_EXTERNAL_SETUP: The device does not handle TDLS (802.11z)
4358 *	link setup/discovery operations internally. Setup, discovery and
4359 *	teardown packets should be sent through the @NL80211_CMD_TDLS_MGMT
4360 *	command. When this flag is not set, @NL80211_CMD_TDLS_OPER should be
4361 *	used for asking the driver/firmware to perform a TDLS operation.
4362 * @WIPHY_FLAG_HAVE_AP_SME: device integrates AP SME
4363 * @WIPHY_FLAG_REPORTS_OBSS: the device will report beacons from other BSSes
4364 *	when there are virtual interfaces in AP mode by calling
4365 *	cfg80211_report_obss_beacon().
4366 * @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD: When operating as an AP, the device
4367 *	responds to probe-requests in hardware.
4368 * @WIPHY_FLAG_OFFCHAN_TX: Device supports direct off-channel TX.
4369 * @WIPHY_FLAG_HAS_REMAIN_ON_CHANNEL: Device supports remain-on-channel call.
4370 * @WIPHY_FLAG_SUPPORTS_5_10_MHZ: Device supports 5 MHz and 10 MHz channels.
4371 * @WIPHY_FLAG_HAS_CHANNEL_SWITCH: Device supports channel switch in
4372 *	beaconing mode (AP, IBSS, Mesh, ...).
4373 * @WIPHY_FLAG_HAS_STATIC_WEP: The device supports static WEP key installation
4374 *	before connection.
4375 * @WIPHY_FLAG_SUPPORTS_EXT_KEK_KCK: The device supports bigger kek and kck keys
 
 
 
 
4376 */
4377enum wiphy_flags {
4378	WIPHY_FLAG_SUPPORTS_EXT_KEK_KCK		= BIT(0),
4379	/* use hole at 1 */
4380	WIPHY_FLAG_SPLIT_SCAN_6GHZ		= BIT(2),
4381	WIPHY_FLAG_NETNS_OK			= BIT(3),
4382	WIPHY_FLAG_PS_ON_BY_DEFAULT		= BIT(4),
4383	WIPHY_FLAG_4ADDR_AP			= BIT(5),
4384	WIPHY_FLAG_4ADDR_STATION		= BIT(6),
4385	WIPHY_FLAG_CONTROL_PORT_PROTOCOL	= BIT(7),
4386	WIPHY_FLAG_IBSS_RSN			= BIT(8),
4387	WIPHY_FLAG_MESH_AUTH			= BIT(10),
4388	/* use hole at 11 */
4389	/* use hole at 12 */
4390	WIPHY_FLAG_SUPPORTS_FW_ROAM		= BIT(13),
4391	WIPHY_FLAG_AP_UAPSD			= BIT(14),
4392	WIPHY_FLAG_SUPPORTS_TDLS		= BIT(15),
4393	WIPHY_FLAG_TDLS_EXTERNAL_SETUP		= BIT(16),
4394	WIPHY_FLAG_HAVE_AP_SME			= BIT(17),
4395	WIPHY_FLAG_REPORTS_OBSS			= BIT(18),
4396	WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD	= BIT(19),
4397	WIPHY_FLAG_OFFCHAN_TX			= BIT(20),
4398	WIPHY_FLAG_HAS_REMAIN_ON_CHANNEL	= BIT(21),
4399	WIPHY_FLAG_SUPPORTS_5_10_MHZ		= BIT(22),
4400	WIPHY_FLAG_HAS_CHANNEL_SWITCH		= BIT(23),
4401	WIPHY_FLAG_HAS_STATIC_WEP		= BIT(24),
4402};
4403
4404/**
4405 * struct ieee80211_iface_limit - limit on certain interface types
4406 * @max: maximum number of interfaces of these types
4407 * @types: interface types (bits)
4408 */
4409struct ieee80211_iface_limit {
4410	u16 max;
4411	u16 types;
4412};
4413
4414/**
4415 * struct ieee80211_iface_combination - possible interface combination
4416 *
4417 * With this structure the driver can describe which interface
4418 * combinations it supports concurrently.
4419 *
4420 * Examples:
4421 *
4422 * 1. Allow #STA <= 1, #AP <= 1, matching BI, channels = 1, 2 total:
4423 *
4424 *    .. code-block:: c
4425 *
4426 *	struct ieee80211_iface_limit limits1[] = {
4427 *		{ .max = 1, .types = BIT(NL80211_IFTYPE_STATION), },
4428 *		{ .max = 1, .types = BIT(NL80211_IFTYPE_AP}, },
4429 *	};
4430 *	struct ieee80211_iface_combination combination1 = {
4431 *		.limits = limits1,
4432 *		.n_limits = ARRAY_SIZE(limits1),
4433 *		.max_interfaces = 2,
4434 *		.beacon_int_infra_match = true,
4435 *	};
4436 *
4437 *
4438 * 2. Allow #{AP, P2P-GO} <= 8, channels = 1, 8 total:
4439 *
4440 *    .. code-block:: c
4441 *
4442 *	struct ieee80211_iface_limit limits2[] = {
4443 *		{ .max = 8, .types = BIT(NL80211_IFTYPE_AP) |
4444 *				     BIT(NL80211_IFTYPE_P2P_GO), },
4445 *	};
4446 *	struct ieee80211_iface_combination combination2 = {
4447 *		.limits = limits2,
4448 *		.n_limits = ARRAY_SIZE(limits2),
4449 *		.max_interfaces = 8,
4450 *		.num_different_channels = 1,
4451 *	};
4452 *
4453 *
4454 * 3. Allow #STA <= 1, #{P2P-client,P2P-GO} <= 3 on two channels, 4 total.
4455 *
4456 *    This allows for an infrastructure connection and three P2P connections.
4457 *
4458 *    .. code-block:: c
4459 *
4460 *	struct ieee80211_iface_limit limits3[] = {
4461 *		{ .max = 1, .types = BIT(NL80211_IFTYPE_STATION), },
4462 *		{ .max = 3, .types = BIT(NL80211_IFTYPE_P2P_GO) |
4463 *				     BIT(NL80211_IFTYPE_P2P_CLIENT), },
4464 *	};
4465 *	struct ieee80211_iface_combination combination3 = {
4466 *		.limits = limits3,
4467 *		.n_limits = ARRAY_SIZE(limits3),
4468 *		.max_interfaces = 4,
4469 *		.num_different_channels = 2,
4470 *	};
4471 *
4472 */
4473struct ieee80211_iface_combination {
4474	/**
4475	 * @limits:
4476	 * limits for the given interface types
4477	 */
4478	const struct ieee80211_iface_limit *limits;
4479
4480	/**
4481	 * @num_different_channels:
4482	 * can use up to this many different channels
4483	 */
4484	u32 num_different_channels;
4485
4486	/**
4487	 * @max_interfaces:
4488	 * maximum number of interfaces in total allowed in this group
4489	 */
4490	u16 max_interfaces;
4491
4492	/**
4493	 * @n_limits:
4494	 * number of limitations
4495	 */
4496	u8 n_limits;
4497
4498	/**
4499	 * @beacon_int_infra_match:
4500	 * In this combination, the beacon intervals between infrastructure
4501	 * and AP types must match. This is required only in special cases.
4502	 */
4503	bool beacon_int_infra_match;
4504
4505	/**
4506	 * @radar_detect_widths:
4507	 * bitmap of channel widths supported for radar detection
4508	 */
4509	u8 radar_detect_widths;
4510
4511	/**
4512	 * @radar_detect_regions:
4513	 * bitmap of regions supported for radar detection
4514	 */
4515	u8 radar_detect_regions;
4516
4517	/**
4518	 * @beacon_int_min_gcd:
4519	 * This interface combination supports different beacon intervals.
4520	 *
4521	 * = 0
4522	 *   all beacon intervals for different interface must be same.
4523	 * > 0
4524	 *   any beacon interval for the interface part of this combination AND
4525	 *   GCD of all beacon intervals from beaconing interfaces of this
4526	 *   combination must be greater or equal to this value.
4527	 */
4528	u32 beacon_int_min_gcd;
4529};
4530
4531struct ieee80211_txrx_stypes {
4532	u16 tx, rx;
4533};
4534
4535/**
4536 * enum wiphy_wowlan_support_flags - WoWLAN support flags
4537 * @WIPHY_WOWLAN_ANY: supports wakeup for the special "any"
4538 *	trigger that keeps the device operating as-is and
4539 *	wakes up the host on any activity, for example a
4540 *	received packet that passed filtering; note that the
4541 *	packet should be preserved in that case
4542 * @WIPHY_WOWLAN_MAGIC_PKT: supports wakeup on magic packet
4543 *	(see nl80211.h)
4544 * @WIPHY_WOWLAN_DISCONNECT: supports wakeup on disconnect
4545 * @WIPHY_WOWLAN_SUPPORTS_GTK_REKEY: supports GTK rekeying while asleep
4546 * @WIPHY_WOWLAN_GTK_REKEY_FAILURE: supports wakeup on GTK rekey failure
4547 * @WIPHY_WOWLAN_EAP_IDENTITY_REQ: supports wakeup on EAP identity request
4548 * @WIPHY_WOWLAN_4WAY_HANDSHAKE: supports wakeup on 4-way handshake failure
4549 * @WIPHY_WOWLAN_RFKILL_RELEASE: supports wakeup on RF-kill release
4550 * @WIPHY_WOWLAN_NET_DETECT: supports wakeup on network detection
4551 */
4552enum wiphy_wowlan_support_flags {
4553	WIPHY_WOWLAN_ANY		= BIT(0),
4554	WIPHY_WOWLAN_MAGIC_PKT		= BIT(1),
4555	WIPHY_WOWLAN_DISCONNECT		= BIT(2),
4556	WIPHY_WOWLAN_SUPPORTS_GTK_REKEY	= BIT(3),
4557	WIPHY_WOWLAN_GTK_REKEY_FAILURE	= BIT(4),
4558	WIPHY_WOWLAN_EAP_IDENTITY_REQ	= BIT(5),
4559	WIPHY_WOWLAN_4WAY_HANDSHAKE	= BIT(6),
4560	WIPHY_WOWLAN_RFKILL_RELEASE	= BIT(7),
4561	WIPHY_WOWLAN_NET_DETECT		= BIT(8),
4562};
4563
4564struct wiphy_wowlan_tcp_support {
4565	const struct nl80211_wowlan_tcp_data_token_feature *tok;
4566	u32 data_payload_max;
4567	u32 data_interval_max;
4568	u32 wake_payload_max;
4569	bool seq;
4570};
4571
4572/**
4573 * struct wiphy_wowlan_support - WoWLAN support data
4574 * @flags: see &enum wiphy_wowlan_support_flags
4575 * @n_patterns: number of supported wakeup patterns
4576 *	(see nl80211.h for the pattern definition)
4577 * @pattern_max_len: maximum length of each pattern
4578 * @pattern_min_len: minimum length of each pattern
4579 * @max_pkt_offset: maximum Rx packet offset
4580 * @max_nd_match_sets: maximum number of matchsets for net-detect,
4581 *	similar, but not necessarily identical, to max_match_sets for
4582 *	scheduled scans.
4583 *	See &struct cfg80211_sched_scan_request.@match_sets for more
4584 *	details.
4585 * @tcp: TCP wakeup support information
4586 */
4587struct wiphy_wowlan_support {
4588	u32 flags;
4589	int n_patterns;
4590	int pattern_max_len;
4591	int pattern_min_len;
4592	int max_pkt_offset;
4593	int max_nd_match_sets;
4594	const struct wiphy_wowlan_tcp_support *tcp;
4595};
4596
4597/**
4598 * struct wiphy_coalesce_support - coalesce support data
4599 * @n_rules: maximum number of coalesce rules
4600 * @max_delay: maximum supported coalescing delay in msecs
4601 * @n_patterns: number of supported patterns in a rule
4602 *	(see nl80211.h for the pattern definition)
4603 * @pattern_max_len: maximum length of each pattern
4604 * @pattern_min_len: minimum length of each pattern
4605 * @max_pkt_offset: maximum Rx packet offset
4606 */
4607struct wiphy_coalesce_support {
4608	int n_rules;
4609	int max_delay;
4610	int n_patterns;
4611	int pattern_max_len;
4612	int pattern_min_len;
4613	int max_pkt_offset;
4614};
4615
4616/**
4617 * enum wiphy_vendor_command_flags - validation flags for vendor commands
4618 * @WIPHY_VENDOR_CMD_NEED_WDEV: vendor command requires wdev
4619 * @WIPHY_VENDOR_CMD_NEED_NETDEV: vendor command requires netdev
4620 * @WIPHY_VENDOR_CMD_NEED_RUNNING: interface/wdev must be up & running
4621 *	(must be combined with %_WDEV or %_NETDEV)
4622 */
4623enum wiphy_vendor_command_flags {
4624	WIPHY_VENDOR_CMD_NEED_WDEV = BIT(0),
4625	WIPHY_VENDOR_CMD_NEED_NETDEV = BIT(1),
4626	WIPHY_VENDOR_CMD_NEED_RUNNING = BIT(2),
4627};
4628
4629/**
4630 * enum wiphy_opmode_flag - Station's ht/vht operation mode information flags
4631 *
4632 * @STA_OPMODE_MAX_BW_CHANGED: Max Bandwidth changed
4633 * @STA_OPMODE_SMPS_MODE_CHANGED: SMPS mode changed
4634 * @STA_OPMODE_N_SS_CHANGED: max N_SS (number of spatial streams) changed
4635 *
4636 */
4637enum wiphy_opmode_flag {
4638	STA_OPMODE_MAX_BW_CHANGED	= BIT(0),
4639	STA_OPMODE_SMPS_MODE_CHANGED	= BIT(1),
4640	STA_OPMODE_N_SS_CHANGED		= BIT(2),
4641};
4642
4643/**
4644 * struct sta_opmode_info - Station's ht/vht operation mode information
4645 * @changed: contains value from &enum wiphy_opmode_flag
4646 * @smps_mode: New SMPS mode value from &enum nl80211_smps_mode of a station
4647 * @bw: new max bandwidth value from &enum nl80211_chan_width of a station
4648 * @rx_nss: new rx_nss value of a station
4649 */
4650
4651struct sta_opmode_info {
4652	u32 changed;
4653	enum nl80211_smps_mode smps_mode;
4654	enum nl80211_chan_width bw;
4655	u8 rx_nss;
4656};
4657
4658#define VENDOR_CMD_RAW_DATA ((const struct nla_policy *)(long)(-ENODATA))
4659
4660/**
4661 * struct wiphy_vendor_command - vendor command definition
4662 * @info: vendor command identifying information, as used in nl80211
4663 * @flags: flags, see &enum wiphy_vendor_command_flags
4664 * @doit: callback for the operation, note that wdev is %NULL if the
4665 *	flags didn't ask for a wdev and non-%NULL otherwise; the data
4666 *	pointer may be %NULL if userspace provided no data at all
4667 * @dumpit: dump callback, for transferring bigger/multiple items. The
4668 *	@storage points to cb->args[5], ie. is preserved over the multiple
4669 *	dumpit calls.
4670 * @policy: policy pointer for attributes within %NL80211_ATTR_VENDOR_DATA.
4671 *	Set this to %VENDOR_CMD_RAW_DATA if no policy can be given and the
4672 *	attribute is just raw data (e.g. a firmware command).
4673 * @maxattr: highest attribute number in policy
4674 * It's recommended to not have the same sub command with both @doit and
4675 * @dumpit, so that userspace can assume certain ones are get and others
4676 * are used with dump requests.
4677 */
4678struct wiphy_vendor_command {
4679	struct nl80211_vendor_cmd_info info;
4680	u32 flags;
4681	int (*doit)(struct wiphy *wiphy, struct wireless_dev *wdev,
4682		    const void *data, int data_len);
4683	int (*dumpit)(struct wiphy *wiphy, struct wireless_dev *wdev,
4684		      struct sk_buff *skb, const void *data, int data_len,
4685		      unsigned long *storage);
4686	const struct nla_policy *policy;
4687	unsigned int maxattr;
4688};
4689
4690/**
4691 * struct wiphy_iftype_ext_capab - extended capabilities per interface type
4692 * @iftype: interface type
4693 * @extended_capabilities: extended capabilities supported by the driver,
4694 *	additional capabilities might be supported by userspace; these are the
4695 *	802.11 extended capabilities ("Extended Capabilities element") and are
4696 *	in the same format as in the information element. See IEEE Std
4697 *	802.11-2012 8.4.2.29 for the defined fields.
4698 * @extended_capabilities_mask: mask of the valid values
4699 * @extended_capabilities_len: length of the extended capabilities
 
 
4700 */
4701struct wiphy_iftype_ext_capab {
4702	enum nl80211_iftype iftype;
4703	const u8 *extended_capabilities;
4704	const u8 *extended_capabilities_mask;
4705	u8 extended_capabilities_len;
 
 
4706};
4707
4708/**
 
 
 
 
 
 
 
 
4709 * struct cfg80211_pmsr_capabilities - cfg80211 peer measurement capabilities
4710 * @max_peers: maximum number of peers in a single measurement
4711 * @report_ap_tsf: can report assoc AP's TSF for radio resource measurement
4712 * @randomize_mac_addr: can randomize MAC address for measurement
 
4713 * @ftm.supported: FTM measurement is supported
4714 * @ftm.asap: ASAP-mode is supported
4715 * @ftm.non_asap: non-ASAP-mode is supported
4716 * @ftm.request_lci: can request LCI data
4717 * @ftm.request_civicloc: can request civic location data
4718 * @ftm.preambles: bitmap of preambles supported (&enum nl80211_preamble)
4719 * @ftm.bandwidths: bitmap of bandwidths supported (&enum nl80211_chan_width)
4720 * @ftm.max_bursts_exponent: maximum burst exponent supported
4721 *	(set to -1 if not limited; note that setting this will necessarily
4722 *	forbid using the value 15 to let the responder pick)
4723 * @ftm.max_ftms_per_burst: maximum FTMs per burst supported (set to 0 if
4724 *	not limited)
4725 * @ftm.trigger_based: trigger based ranging measurement is supported
4726 * @ftm.non_trigger_based: non trigger based ranging measurement is supported
4727 */
4728struct cfg80211_pmsr_capabilities {
4729	unsigned int max_peers;
4730	u8 report_ap_tsf:1,
4731	   randomize_mac_addr:1;
4732
4733	struct {
4734		u32 preambles;
4735		u32 bandwidths;
4736		s8 max_bursts_exponent;
4737		u8 max_ftms_per_burst;
4738		u8 supported:1,
4739		   asap:1,
4740		   non_asap:1,
4741		   request_lci:1,
4742		   request_civicloc:1,
4743		   trigger_based:1,
4744		   non_trigger_based:1;
4745	} ftm;
4746};
4747
4748/**
4749 * struct wiphy_iftype_akm_suites - This structure encapsulates supported akm
4750 * suites for interface types defined in @iftypes_mask. Each type in the
4751 * @iftypes_mask must be unique across all instances of iftype_akm_suites.
4752 *
4753 * @iftypes_mask: bitmask of interfaces types
4754 * @akm_suites: points to an array of supported akm suites
4755 * @n_akm_suites: number of supported AKM suites
4756 */
4757struct wiphy_iftype_akm_suites {
4758	u16 iftypes_mask;
4759	const u32 *akm_suites;
4760	int n_akm_suites;
4761};
4762
4763/**
4764 * struct wiphy - wireless hardware description
4765 * @mtx: mutex for the data (structures) of this device
4766 * @reg_notifier: the driver's regulatory notification callback,
4767 *	note that if your driver uses wiphy_apply_custom_regulatory()
4768 *	the reg_notifier's request can be passed as NULL
4769 * @regd: the driver's regulatory domain, if one was requested via
4770 *	the regulatory_hint() API. This can be used by the driver
4771 *	on the reg_notifier() if it chooses to ignore future
4772 *	regulatory domain changes caused by other drivers.
4773 * @signal_type: signal type reported in &struct cfg80211_bss.
4774 * @cipher_suites: supported cipher suites
4775 * @n_cipher_suites: number of supported cipher suites
4776 * @akm_suites: supported AKM suites. These are the default AKMs supported if
4777 *	the supported AKMs not advertized for a specific interface type in
4778 *	iftype_akm_suites.
4779 * @n_akm_suites: number of supported AKM suites
4780 * @iftype_akm_suites: array of supported akm suites info per interface type.
4781 *	Note that the bits in @iftypes_mask inside this structure cannot
4782 *	overlap (i.e. only one occurrence of each type is allowed across all
4783 *	instances of iftype_akm_suites).
4784 * @num_iftype_akm_suites: number of interface types for which supported akm
4785 *	suites are specified separately.
4786 * @retry_short: Retry limit for short frames (dot11ShortRetryLimit)
4787 * @retry_long: Retry limit for long frames (dot11LongRetryLimit)
4788 * @frag_threshold: Fragmentation threshold (dot11FragmentationThreshold);
4789 *	-1 = fragmentation disabled, only odd values >= 256 used
4790 * @rts_threshold: RTS threshold (dot11RTSThreshold); -1 = RTS/CTS disabled
4791 * @_net: the network namespace this wiphy currently lives in
4792 * @perm_addr: permanent MAC address of this device
4793 * @addr_mask: If the device supports multiple MAC addresses by masking,
4794 *	set this to a mask with variable bits set to 1, e.g. if the last
4795 *	four bits are variable then set it to 00-00-00-00-00-0f. The actual
4796 *	variable bits shall be determined by the interfaces added, with
4797 *	interfaces not matching the mask being rejected to be brought up.
4798 * @n_addresses: number of addresses in @addresses.
4799 * @addresses: If the device has more than one address, set this pointer
4800 *	to a list of addresses (6 bytes each). The first one will be used
4801 *	by default for perm_addr. In this case, the mask should be set to
4802 *	all-zeroes. In this case it is assumed that the device can handle
4803 *	the same number of arbitrary MAC addresses.
4804 * @registered: protects ->resume and ->suspend sysfs callbacks against
4805 *	unregister hardware
4806 * @debugfsdir: debugfs directory used for this wiphy (ieee80211/<wiphyname>).
4807 *	It will be renamed automatically on wiphy renames
4808 * @dev: (virtual) struct device for this wiphy. The item in
4809 *	/sys/class/ieee80211/ points to this. You need use set_wiphy_dev()
4810 *	(see below).
4811 * @wext: wireless extension handlers
4812 * @priv: driver private data (sized according to wiphy_new() parameter)
4813 * @interface_modes: bitmask of interfaces types valid for this wiphy,
4814 *	must be set by driver
4815 * @iface_combinations: Valid interface combinations array, should not
4816 *	list single interface types.
4817 * @n_iface_combinations: number of entries in @iface_combinations array.
4818 * @software_iftypes: bitmask of software interface types, these are not
4819 *	subject to any restrictions since they are purely managed in SW.
4820 * @flags: wiphy flags, see &enum wiphy_flags
4821 * @regulatory_flags: wiphy regulatory flags, see
4822 *	&enum ieee80211_regulatory_flags
4823 * @features: features advertised to nl80211, see &enum nl80211_feature_flags.
4824 * @ext_features: extended features advertised to nl80211, see
4825 *	&enum nl80211_ext_feature_index.
4826 * @bss_priv_size: each BSS struct has private data allocated with it,
4827 *	this variable determines its size
4828 * @max_scan_ssids: maximum number of SSIDs the device can scan for in
4829 *	any given scan
4830 * @max_sched_scan_reqs: maximum number of scheduled scan requests that
4831 *	the device can run concurrently.
4832 * @max_sched_scan_ssids: maximum number of SSIDs the device can scan
4833 *	for in any given scheduled scan
4834 * @max_match_sets: maximum number of match sets the device can handle
4835 *	when performing a scheduled scan, 0 if filtering is not
4836 *	supported.
4837 * @max_scan_ie_len: maximum length of user-controlled IEs device can
4838 *	add to probe request frames transmitted during a scan, must not
4839 *	include fixed IEs like supported rates
4840 * @max_sched_scan_ie_len: same as max_scan_ie_len, but for scheduled
4841 *	scans
4842 * @max_sched_scan_plans: maximum number of scan plans (scan interval and number
4843 *	of iterations) for scheduled scan supported by the device.
4844 * @max_sched_scan_plan_interval: maximum interval (in seconds) for a
4845 *	single scan plan supported by the device.
4846 * @max_sched_scan_plan_iterations: maximum number of iterations for a single
4847 *	scan plan supported by the device.
4848 * @coverage_class: current coverage class
4849 * @fw_version: firmware version for ethtool reporting
4850 * @hw_version: hardware version for ethtool reporting
4851 * @max_num_pmkids: maximum number of PMKIDs supported by device
4852 * @privid: a pointer that drivers can use to identify if an arbitrary
4853 *	wiphy is theirs, e.g. in global notifiers
4854 * @bands: information about bands/channels supported by this device
4855 *
4856 * @mgmt_stypes: bitmasks of frame subtypes that can be subscribed to or
4857 *	transmitted through nl80211, points to an array indexed by interface
4858 *	type
4859 *
4860 * @available_antennas_tx: bitmap of antennas which are available to be
4861 *	configured as TX antennas. Antenna configuration commands will be
4862 *	rejected unless this or @available_antennas_rx is set.
4863 *
4864 * @available_antennas_rx: bitmap of antennas which are available to be
4865 *	configured as RX antennas. Antenna configuration commands will be
4866 *	rejected unless this or @available_antennas_tx is set.
4867 *
4868 * @probe_resp_offload:
4869 *	 Bitmap of supported protocols for probe response offloading.
4870 *	 See &enum nl80211_probe_resp_offload_support_attr. Only valid
4871 *	 when the wiphy flag @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD is set.
4872 *
4873 * @max_remain_on_channel_duration: Maximum time a remain-on-channel operation
4874 *	may request, if implemented.
4875 *
4876 * @wowlan: WoWLAN support information
4877 * @wowlan_config: current WoWLAN configuration; this should usually not be
4878 *	used since access to it is necessarily racy, use the parameter passed
4879 *	to the suspend() operation instead.
4880 *
4881 * @ap_sme_capa: AP SME capabilities, flags from &enum nl80211_ap_sme_features.
4882 * @ht_capa_mod_mask:  Specify what ht_cap values can be over-ridden.
4883 *	If null, then none can be over-ridden.
4884 * @vht_capa_mod_mask:  Specify what VHT capabilities can be over-ridden.
4885 *	If null, then none can be over-ridden.
4886 *
4887 * @wdev_list: the list of associated (virtual) interfaces; this list must
4888 *	not be modified by the driver, but can be read with RTNL/RCU protection.
4889 *
4890 * @max_acl_mac_addrs: Maximum number of MAC addresses that the device
4891 *	supports for ACL.
4892 *
4893 * @extended_capabilities: extended capabilities supported by the driver,
4894 *	additional capabilities might be supported by userspace; these are
4895 *	the 802.11 extended capabilities ("Extended Capabilities element")
4896 *	and are in the same format as in the information element. See
4897 *	802.11-2012 8.4.2.29 for the defined fields. These are the default
4898 *	extended capabilities to be used if the capabilities are not specified
4899 *	for a specific interface type in iftype_ext_capab.
4900 * @extended_capabilities_mask: mask of the valid values
4901 * @extended_capabilities_len: length of the extended capabilities
4902 * @iftype_ext_capab: array of extended capabilities per interface type
4903 * @num_iftype_ext_capab: number of interface types for which extended
4904 *	capabilities are specified separately.
4905 * @coalesce: packet coalescing support information
4906 *
4907 * @vendor_commands: array of vendor commands supported by the hardware
4908 * @n_vendor_commands: number of vendor commands
4909 * @vendor_events: array of vendor events supported by the hardware
4910 * @n_vendor_events: number of vendor events
4911 *
4912 * @max_ap_assoc_sta: maximum number of associated stations supported in AP mode
4913 *	(including P2P GO) or 0 to indicate no such limit is advertised. The
4914 *	driver is allowed to advertise a theoretical limit that it can reach in
4915 *	some cases, but may not always reach.
4916 *
4917 * @max_num_csa_counters: Number of supported csa_counters in beacons
4918 *	and probe responses.  This value should be set if the driver
4919 *	wishes to limit the number of csa counters. Default (0) means
4920 *	infinite.
4921 * @bss_select_support: bitmask indicating the BSS selection criteria supported
4922 *	by the driver in the .connect() callback. The bit position maps to the
4923 *	attribute indices defined in &enum nl80211_bss_select_attr.
4924 *
4925 * @nan_supported_bands: bands supported by the device in NAN mode, a
4926 *	bitmap of &enum nl80211_band values.  For instance, for
4927 *	NL80211_BAND_2GHZ, bit 0 would be set
4928 *	(i.e. BIT(NL80211_BAND_2GHZ)).
4929 *
4930 * @txq_limit: configuration of internal TX queue frame limit
4931 * @txq_memory_limit: configuration internal TX queue memory limit
4932 * @txq_quantum: configuration of internal TX queue scheduler quantum
4933 *
4934 * @tx_queue_len: allow setting transmit queue len for drivers not using
4935 *	wake_tx_queue
4936 *
4937 * @support_mbssid: can HW support association with nontransmitted AP
4938 * @support_only_he_mbssid: don't parse MBSSID elements if it is not
4939 *	HE AP, in order to avoid compatibility issues.
4940 *	@support_mbssid must be set for this to have any effect.
4941 *
4942 * @pmsr_capa: peer measurement capabilities
4943 *
4944 * @tid_config_support: describes the per-TID config support that the
4945 *	device has
4946 * @tid_config_support.vif: bitmap of attributes (configurations)
4947 *	supported by the driver for each vif
4948 * @tid_config_support.peer: bitmap of attributes (configurations)
4949 *	supported by the driver for each peer
4950 * @tid_config_support.max_retry: maximum supported retry count for
4951 *	long/short retry configuration
4952 *
4953 * @max_data_retry_count: maximum supported per TID retry count for
4954 *	configuration through the %NL80211_TID_CONFIG_ATTR_RETRY_SHORT and
4955 *	%NL80211_TID_CONFIG_ATTR_RETRY_LONG attributes
4956 * @sar_capa: SAR control capabilities
4957 * @rfkill: a pointer to the rfkill structure
 
 
 
 
 
 
 
 
 
 
 
 
 
 
4958 */
4959struct wiphy {
4960	struct mutex mtx;
4961
4962	/* assign these fields before you register the wiphy */
4963
4964	u8 perm_addr[ETH_ALEN];
4965	u8 addr_mask[ETH_ALEN];
4966
4967	struct mac_address *addresses;
4968
4969	const struct ieee80211_txrx_stypes *mgmt_stypes;
4970
4971	const struct ieee80211_iface_combination *iface_combinations;
4972	int n_iface_combinations;
4973	u16 software_iftypes;
4974
4975	u16 n_addresses;
4976
4977	/* Supported interface modes, OR together BIT(NL80211_IFTYPE_...) */
4978	u16 interface_modes;
4979
4980	u16 max_acl_mac_addrs;
4981
4982	u32 flags, regulatory_flags, features;
4983	u8 ext_features[DIV_ROUND_UP(NUM_NL80211_EXT_FEATURES, 8)];
4984
4985	u32 ap_sme_capa;
4986
4987	enum cfg80211_signal_type signal_type;
4988
4989	int bss_priv_size;
4990	u8 max_scan_ssids;
4991	u8 max_sched_scan_reqs;
4992	u8 max_sched_scan_ssids;
4993	u8 max_match_sets;
4994	u16 max_scan_ie_len;
4995	u16 max_sched_scan_ie_len;
4996	u32 max_sched_scan_plans;
4997	u32 max_sched_scan_plan_interval;
4998	u32 max_sched_scan_plan_iterations;
4999
5000	int n_cipher_suites;
5001	const u32 *cipher_suites;
5002
5003	int n_akm_suites;
5004	const u32 *akm_suites;
5005
5006	const struct wiphy_iftype_akm_suites *iftype_akm_suites;
5007	unsigned int num_iftype_akm_suites;
5008
5009	u8 retry_short;
5010	u8 retry_long;
5011	u32 frag_threshold;
5012	u32 rts_threshold;
5013	u8 coverage_class;
5014
5015	char fw_version[ETHTOOL_FWVERS_LEN];
5016	u32 hw_version;
5017
5018#ifdef CONFIG_PM
5019	const struct wiphy_wowlan_support *wowlan;
5020	struct cfg80211_wowlan *wowlan_config;
5021#endif
5022
5023	u16 max_remain_on_channel_duration;
5024
5025	u8 max_num_pmkids;
5026
5027	u32 available_antennas_tx;
5028	u32 available_antennas_rx;
5029
5030	u32 probe_resp_offload;
5031
5032	const u8 *extended_capabilities, *extended_capabilities_mask;
5033	u8 extended_capabilities_len;
5034
5035	const struct wiphy_iftype_ext_capab *iftype_ext_capab;
5036	unsigned int num_iftype_ext_capab;
5037
5038	const void *privid;
5039
5040	struct ieee80211_supported_band *bands[NUM_NL80211_BANDS];
5041
5042	void (*reg_notifier)(struct wiphy *wiphy,
5043			     struct regulatory_request *request);
5044
5045	/* fields below are read-only, assigned by cfg80211 */
5046
5047	const struct ieee80211_regdomain __rcu *regd;
5048
5049	struct device dev;
5050
5051	bool registered;
5052
5053	struct dentry *debugfsdir;
5054
5055	const struct ieee80211_ht_cap *ht_capa_mod_mask;
5056	const struct ieee80211_vht_cap *vht_capa_mod_mask;
5057
5058	struct list_head wdev_list;
5059
5060	possible_net_t _net;
5061
5062#ifdef CONFIG_CFG80211_WEXT
5063	const struct iw_handler_def *wext;
5064#endif
5065
5066	const struct wiphy_coalesce_support *coalesce;
5067
5068	const struct wiphy_vendor_command *vendor_commands;
5069	const struct nl80211_vendor_cmd_info *vendor_events;
5070	int n_vendor_commands, n_vendor_events;
5071
5072	u16 max_ap_assoc_sta;
5073
5074	u8 max_num_csa_counters;
5075
5076	u32 bss_select_support;
5077
5078	u8 nan_supported_bands;
5079
5080	u32 txq_limit;
5081	u32 txq_memory_limit;
5082	u32 txq_quantum;
5083
5084	unsigned long tx_queue_len;
5085
5086	u8 support_mbssid:1,
5087	   support_only_he_mbssid:1;
5088
5089	const struct cfg80211_pmsr_capabilities *pmsr_capa;
5090
5091	struct {
5092		u64 peer, vif;
5093		u8 max_retry;
5094	} tid_config_support;
5095
5096	u8 max_data_retry_count;
5097
5098	const struct cfg80211_sar_capa *sar_capa;
5099
5100	struct rfkill *rfkill;
5101
 
 
 
 
5102	char priv[] __aligned(NETDEV_ALIGN);
5103};
5104
5105static inline struct net *wiphy_net(struct wiphy *wiphy)
5106{
5107	return read_pnet(&wiphy->_net);
5108}
5109
5110static inline void wiphy_net_set(struct wiphy *wiphy, struct net *net)
5111{
5112	write_pnet(&wiphy->_net, net);
5113}
5114
5115/**
5116 * wiphy_priv - return priv from wiphy
5117 *
5118 * @wiphy: the wiphy whose priv pointer to return
5119 * Return: The priv of @wiphy.
5120 */
5121static inline void *wiphy_priv(struct wiphy *wiphy)
5122{
5123	BUG_ON(!wiphy);
5124	return &wiphy->priv;
5125}
5126
5127/**
5128 * priv_to_wiphy - return the wiphy containing the priv
5129 *
5130 * @priv: a pointer previously returned by wiphy_priv
5131 * Return: The wiphy of @priv.
5132 */
5133static inline struct wiphy *priv_to_wiphy(void *priv)
5134{
5135	BUG_ON(!priv);
5136	return container_of(priv, struct wiphy, priv);
5137}
5138
5139/**
5140 * set_wiphy_dev - set device pointer for wiphy
5141 *
5142 * @wiphy: The wiphy whose device to bind
5143 * @dev: The device to parent it to
5144 */
5145static inline void set_wiphy_dev(struct wiphy *wiphy, struct device *dev)
5146{
5147	wiphy->dev.parent = dev;
5148}
5149
5150/**
5151 * wiphy_dev - get wiphy dev pointer
5152 *
5153 * @wiphy: The wiphy whose device struct to look up
5154 * Return: The dev of @wiphy.
5155 */
5156static inline struct device *wiphy_dev(struct wiphy *wiphy)
5157{
5158	return wiphy->dev.parent;
5159}
5160
5161/**
5162 * wiphy_name - get wiphy name
5163 *
5164 * @wiphy: The wiphy whose name to return
5165 * Return: The name of @wiphy.
5166 */
5167static inline const char *wiphy_name(const struct wiphy *wiphy)
5168{
5169	return dev_name(&wiphy->dev);
5170}
5171
5172/**
5173 * wiphy_new_nm - create a new wiphy for use with cfg80211
5174 *
5175 * @ops: The configuration operations for this device
5176 * @sizeof_priv: The size of the private area to allocate
5177 * @requested_name: Request a particular name.
5178 *	NULL is valid value, and means use the default phy%d naming.
5179 *
5180 * Create a new wiphy and associate the given operations with it.
5181 * @sizeof_priv bytes are allocated for private use.
5182 *
5183 * Return: A pointer to the new wiphy. This pointer must be
5184 * assigned to each netdev's ieee80211_ptr for proper operation.
5185 */
5186struct wiphy *wiphy_new_nm(const struct cfg80211_ops *ops, int sizeof_priv,
5187			   const char *requested_name);
5188
5189/**
5190 * wiphy_new - create a new wiphy for use with cfg80211
5191 *
5192 * @ops: The configuration operations for this device
5193 * @sizeof_priv: The size of the private area to allocate
5194 *
5195 * Create a new wiphy and associate the given operations with it.
5196 * @sizeof_priv bytes are allocated for private use.
5197 *
5198 * Return: A pointer to the new wiphy. This pointer must be
5199 * assigned to each netdev's ieee80211_ptr for proper operation.
5200 */
5201static inline struct wiphy *wiphy_new(const struct cfg80211_ops *ops,
5202				      int sizeof_priv)
5203{
5204	return wiphy_new_nm(ops, sizeof_priv, NULL);
5205}
5206
5207/**
5208 * wiphy_register - register a wiphy with cfg80211
5209 *
5210 * @wiphy: The wiphy to register.
5211 *
5212 * Return: A non-negative wiphy index or a negative error code.
5213 */
5214int wiphy_register(struct wiphy *wiphy);
5215
5216/* this is a define for better error reporting (file/line) */
5217#define lockdep_assert_wiphy(wiphy) lockdep_assert_held(&(wiphy)->mtx)
5218
5219/**
5220 * rcu_dereference_wiphy - rcu_dereference with debug checking
5221 * @wiphy: the wiphy to check the locking on
5222 * @p: The pointer to read, prior to dereferencing
5223 *
5224 * Do an rcu_dereference(p), but check caller either holds rcu_read_lock()
5225 * or RTNL. Note: Please prefer wiphy_dereference() or rcu_dereference().
5226 */
5227#define rcu_dereference_wiphy(wiphy, p)				\
5228        rcu_dereference_check(p, lockdep_is_held(&wiphy->mtx))
5229
5230/**
5231 * wiphy_dereference - fetch RCU pointer when updates are prevented by wiphy mtx
5232 * @wiphy: the wiphy to check the locking on
5233 * @p: The pointer to read, prior to dereferencing
5234 *
5235 * Return the value of the specified RCU-protected pointer, but omit the
5236 * READ_ONCE(), because caller holds the wiphy mutex used for updates.
5237 */
5238#define wiphy_dereference(wiphy, p)				\
5239        rcu_dereference_protected(p, lockdep_is_held(&wiphy->mtx))
5240
5241/**
5242 * get_wiphy_regdom - get custom regdomain for the given wiphy
5243 * @wiphy: the wiphy to get the regdomain from
5244 */
5245const struct ieee80211_regdomain *get_wiphy_regdom(struct wiphy *wiphy);
5246
5247/**
5248 * wiphy_unregister - deregister a wiphy from cfg80211
5249 *
5250 * @wiphy: The wiphy to unregister.
5251 *
5252 * After this call, no more requests can be made with this priv
5253 * pointer, but the call may sleep to wait for an outstanding
5254 * request that is being handled.
5255 */
5256void wiphy_unregister(struct wiphy *wiphy);
5257
5258/**
5259 * wiphy_free - free wiphy
5260 *
5261 * @wiphy: The wiphy to free
5262 */
5263void wiphy_free(struct wiphy *wiphy);
5264
5265/* internal structs */
5266struct cfg80211_conn;
5267struct cfg80211_internal_bss;
5268struct cfg80211_cached_keys;
5269struct cfg80211_cqm_config;
5270
5271/**
5272 * wiphy_lock - lock the wiphy
5273 * @wiphy: the wiphy to lock
5274 *
5275 * This is mostly exposed so it can be done around registering and
5276 * unregistering netdevs that aren't created through cfg80211 calls,
5277 * since that requires locking in cfg80211 when the notifiers is
5278 * called, but that cannot differentiate which way it's called.
5279 *
5280 * When cfg80211 ops are called, the wiphy is already locked.
5281 */
5282static inline void wiphy_lock(struct wiphy *wiphy)
5283	__acquires(&wiphy->mtx)
5284{
5285	mutex_lock(&wiphy->mtx);
5286	__acquire(&wiphy->mtx);
5287}
5288
5289/**
5290 * wiphy_unlock - unlock the wiphy again
5291 * @wiphy: the wiphy to unlock
5292 */
5293static inline void wiphy_unlock(struct wiphy *wiphy)
5294	__releases(&wiphy->mtx)
5295{
5296	__release(&wiphy->mtx);
5297	mutex_unlock(&wiphy->mtx);
5298}
5299
5300/**
5301 * struct wireless_dev - wireless device state
5302 *
5303 * For netdevs, this structure must be allocated by the driver
5304 * that uses the ieee80211_ptr field in struct net_device (this
5305 * is intentional so it can be allocated along with the netdev.)
5306 * It need not be registered then as netdev registration will
5307 * be intercepted by cfg80211 to see the new wireless device,
5308 * however, drivers must lock the wiphy before registering or
5309 * unregistering netdevs if they pre-create any netdevs (in ops
5310 * called from cfg80211, the wiphy is already locked.)
5311 *
5312 * For non-netdev uses, it must also be allocated by the driver
5313 * in response to the cfg80211 callbacks that require it, as
5314 * there's no netdev registration in that case it may not be
5315 * allocated outside of callback operations that return it.
5316 *
5317 * @wiphy: pointer to hardware description
5318 * @iftype: interface type
5319 * @registered: is this wdev already registered with cfg80211
5320 * @registering: indicates we're doing registration under wiphy lock
5321 *	for the notifier
5322 * @list: (private) Used to collect the interfaces
5323 * @netdev: (private) Used to reference back to the netdev, may be %NULL
5324 * @identifier: (private) Identifier used in nl80211 to identify this
5325 *	wireless device if it has no netdev
5326 * @current_bss: (private) Used by the internal configuration code
5327 * @chandef: (private) Used by the internal configuration code to track
5328 *	the user-set channel definition.
5329 * @preset_chandef: (private) Used by the internal configuration code to
5330 *	track the channel to be used for AP later
5331 * @bssid: (private) Used by the internal configuration code
5332 * @ssid: (private) Used by the internal configuration code
5333 * @ssid_len: (private) Used by the internal configuration code
5334 * @mesh_id_len: (private) Used by the internal configuration code
5335 * @mesh_id_up_len: (private) Used by the internal configuration code
5336 * @wext: (private) Used by the internal wireless extensions compat code
5337 * @wext.ibss: (private) IBSS data part of wext handling
5338 * @wext.connect: (private) connection handling data
5339 * @wext.keys: (private) (WEP) key data
5340 * @wext.ie: (private) extra elements for association
5341 * @wext.ie_len: (private) length of extra elements
5342 * @wext.bssid: (private) selected network BSSID
5343 * @wext.ssid: (private) selected network SSID
5344 * @wext.default_key: (private) selected default key index
5345 * @wext.default_mgmt_key: (private) selected default management key index
5346 * @wext.prev_bssid: (private) previous BSSID for reassociation
5347 * @wext.prev_bssid_valid: (private) previous BSSID validity
5348 * @use_4addr: indicates 4addr mode is used on this interface, must be
5349 *	set by driver (if supported) on add_interface BEFORE registering the
5350 *	netdev and may otherwise be used by driver read-only, will be update
5351 *	by cfg80211 on change_interface
5352 * @mgmt_registrations: list of registrations for management frames
5353 * @mgmt_registrations_lock: lock for the list
5354 * @mgmt_registrations_need_update: mgmt registrations were updated,
5355 *	need to propagate the update to the driver
5356 * @mtx: mutex used to lock data in this struct, may be used by drivers
5357 *	and some API functions require it held
5358 * @beacon_interval: beacon interval used on this device for transmitting
5359 *	beacons, 0 when not valid
5360 * @address: The address for this device, valid only if @netdev is %NULL
5361 * @is_running: true if this is a non-netdev device that has been started, e.g.
5362 *	the P2P Device.
5363 * @cac_started: true if DFS channel availability check has been started
5364 * @cac_start_time: timestamp (jiffies) when the dfs state was entered.
5365 * @cac_time_ms: CAC time in ms
5366 * @ps: powersave mode is enabled
5367 * @ps_timeout: dynamic powersave timeout
5368 * @ap_unexpected_nlportid: (private) netlink port ID of application
5369 *	registered for unexpected class 3 frames (AP mode)
5370 * @conn: (private) cfg80211 software SME connection state machine data
5371 * @connect_keys: (private) keys to set after connection is established
5372 * @conn_bss_type: connecting/connected BSS type
5373 * @conn_owner_nlportid: (private) connection owner socket port ID
5374 * @disconnect_wk: (private) auto-disconnect work
5375 * @disconnect_bssid: (private) the BSSID to use for auto-disconnect
5376 * @ibss_fixed: (private) IBSS is using fixed BSSID
5377 * @ibss_dfs_possible: (private) IBSS may change to a DFS channel
5378 * @event_list: (private) list for internal event processing
5379 * @event_lock: (private) lock for event list
5380 * @owner_nlportid: (private) owner socket port ID
5381 * @nl_owner_dead: (private) owner socket went away
5382 * @cqm_config: (private) nl80211 RSSI monitor state
5383 * @pmsr_list: (private) peer measurement requests
5384 * @pmsr_lock: (private) peer measurements requests/results lock
5385 * @pmsr_free_wk: (private) peer measurements cleanup work
5386 * @unprot_beacon_reported: (private) timestamp of last
5387 *	unprotected beacon report
 
 
 
5388 */
5389struct wireless_dev {
5390	struct wiphy *wiphy;
5391	enum nl80211_iftype iftype;
5392
5393	/* the remainder of this struct should be private to cfg80211 */
5394	struct list_head list;
5395	struct net_device *netdev;
5396
5397	u32 identifier;
5398
5399	struct list_head mgmt_registrations;
5400	spinlock_t mgmt_registrations_lock;
5401	u8 mgmt_registrations_need_update:1;
5402
5403	struct mutex mtx;
5404
5405	bool use_4addr, is_running, registered, registering;
5406
5407	u8 address[ETH_ALEN] __aligned(sizeof(u16));
5408
5409	/* currently used for IBSS and SME - might be rearranged later */
5410	u8 ssid[IEEE80211_MAX_SSID_LEN];
5411	u8 ssid_len, mesh_id_len, mesh_id_up_len;
5412	struct cfg80211_conn *conn;
5413	struct cfg80211_cached_keys *connect_keys;
5414	enum ieee80211_bss_type conn_bss_type;
5415	u32 conn_owner_nlportid;
5416
5417	struct work_struct disconnect_wk;
5418	u8 disconnect_bssid[ETH_ALEN];
5419
5420	struct list_head event_list;
5421	spinlock_t event_lock;
5422
5423	struct cfg80211_internal_bss *current_bss; /* associated / joined */
5424	struct cfg80211_chan_def preset_chandef;
5425	struct cfg80211_chan_def chandef;
5426
5427	bool ibss_fixed;
5428	bool ibss_dfs_possible;
5429
5430	bool ps;
5431	int ps_timeout;
5432
5433	int beacon_interval;
5434
5435	u32 ap_unexpected_nlportid;
5436
5437	u32 owner_nlportid;
5438	bool nl_owner_dead;
5439
 
5440	bool cac_started;
5441	unsigned long cac_start_time;
5442	unsigned int cac_time_ms;
5443
5444#ifdef CONFIG_CFG80211_WEXT
5445	/* wext data */
5446	struct {
5447		struct cfg80211_ibss_params ibss;
5448		struct cfg80211_connect_params connect;
5449		struct cfg80211_cached_keys *keys;
5450		const u8 *ie;
5451		size_t ie_len;
5452		u8 bssid[ETH_ALEN];
5453		u8 prev_bssid[ETH_ALEN];
5454		u8 ssid[IEEE80211_MAX_SSID_LEN];
5455		s8 default_key, default_mgmt_key;
5456		bool prev_bssid_valid;
5457	} wext;
5458#endif
5459
5460	struct cfg80211_cqm_config *cqm_config;
5461
5462	struct list_head pmsr_list;
5463	spinlock_t pmsr_lock;
5464	struct work_struct pmsr_free_wk;
5465
5466	unsigned long unprot_beacon_reported;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
5467};
5468
5469static inline u8 *wdev_address(struct wireless_dev *wdev)
5470{
5471	if (wdev->netdev)
5472		return wdev->netdev->dev_addr;
5473	return wdev->address;
5474}
5475
5476static inline bool wdev_running(struct wireless_dev *wdev)
5477{
5478	if (wdev->netdev)
5479		return netif_running(wdev->netdev);
5480	return wdev->is_running;
5481}
5482
5483/**
5484 * wdev_priv - return wiphy priv from wireless_dev
5485 *
5486 * @wdev: The wireless device whose wiphy's priv pointer to return
5487 * Return: The wiphy priv of @wdev.
5488 */
5489static inline void *wdev_priv(struct wireless_dev *wdev)
5490{
5491	BUG_ON(!wdev);
5492	return wiphy_priv(wdev->wiphy);
5493}
5494
5495/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
5496 * DOC: Utility functions
5497 *
5498 * cfg80211 offers a number of utility functions that can be useful.
5499 */
5500
5501/**
5502 * ieee80211_channel_equal - compare two struct ieee80211_channel
5503 *
5504 * @a: 1st struct ieee80211_channel
5505 * @b: 2nd struct ieee80211_channel
5506 * Return: true if center frequency of @a == @b
5507 */
5508static inline bool
5509ieee80211_channel_equal(struct ieee80211_channel *a,
5510			struct ieee80211_channel *b)
5511{
5512	return (a->center_freq == b->center_freq &&
5513		a->freq_offset == b->freq_offset);
5514}
5515
5516/**
5517 * ieee80211_channel_to_khz - convert ieee80211_channel to frequency in KHz
5518 * @chan: struct ieee80211_channel to convert
5519 * Return: The corresponding frequency (in KHz)
5520 */
5521static inline u32
5522ieee80211_channel_to_khz(const struct ieee80211_channel *chan)
5523{
5524	return MHZ_TO_KHZ(chan->center_freq) + chan->freq_offset;
5525}
5526
5527/**
5528 * ieee80211_s1g_channel_width - get allowed channel width from @chan
5529 *
5530 * Only allowed for band NL80211_BAND_S1GHZ
5531 * @chan: channel
5532 * Return: The allowed channel width for this center_freq
5533 */
5534enum nl80211_chan_width
5535ieee80211_s1g_channel_width(const struct ieee80211_channel *chan);
5536
5537/**
5538 * ieee80211_channel_to_freq_khz - convert channel number to frequency
5539 * @chan: channel number
5540 * @band: band, necessary due to channel number overlap
5541 * Return: The corresponding frequency (in KHz), or 0 if the conversion failed.
5542 */
5543u32 ieee80211_channel_to_freq_khz(int chan, enum nl80211_band band);
5544
5545/**
5546 * ieee80211_channel_to_frequency - convert channel number to frequency
5547 * @chan: channel number
5548 * @band: band, necessary due to channel number overlap
5549 * Return: The corresponding frequency (in MHz), or 0 if the conversion failed.
5550 */
5551static inline int
5552ieee80211_channel_to_frequency(int chan, enum nl80211_band band)
5553{
5554	return KHZ_TO_MHZ(ieee80211_channel_to_freq_khz(chan, band));
5555}
5556
5557/**
5558 * ieee80211_freq_khz_to_channel - convert frequency to channel number
5559 * @freq: center frequency in KHz
5560 * Return: The corresponding channel, or 0 if the conversion failed.
5561 */
5562int ieee80211_freq_khz_to_channel(u32 freq);
5563
5564/**
5565 * ieee80211_frequency_to_channel - convert frequency to channel number
5566 * @freq: center frequency in MHz
5567 * Return: The corresponding channel, or 0 if the conversion failed.
5568 */
5569static inline int
5570ieee80211_frequency_to_channel(int freq)
5571{
5572	return ieee80211_freq_khz_to_channel(MHZ_TO_KHZ(freq));
5573}
5574
5575/**
5576 * ieee80211_get_channel_khz - get channel struct from wiphy for specified
5577 * frequency
5578 * @wiphy: the struct wiphy to get the channel for
5579 * @freq: the center frequency (in KHz) of the channel
5580 * Return: The channel struct from @wiphy at @freq.
5581 */
5582struct ieee80211_channel *
5583ieee80211_get_channel_khz(struct wiphy *wiphy, u32 freq);
5584
5585/**
5586 * ieee80211_get_channel - get channel struct from wiphy for specified frequency
5587 *
5588 * @wiphy: the struct wiphy to get the channel for
5589 * @freq: the center frequency (in MHz) of the channel
5590 * Return: The channel struct from @wiphy at @freq.
5591 */
5592static inline struct ieee80211_channel *
5593ieee80211_get_channel(struct wiphy *wiphy, int freq)
5594{
5595	return ieee80211_get_channel_khz(wiphy, MHZ_TO_KHZ(freq));
5596}
5597
5598/**
5599 * cfg80211_channel_is_psc - Check if the channel is a 6 GHz PSC
5600 * @chan: control channel to check
5601 *
5602 * The Preferred Scanning Channels (PSC) are defined in
5603 * Draft IEEE P802.11ax/D5.0, 26.17.2.3.3
5604 */
5605static inline bool cfg80211_channel_is_psc(struct ieee80211_channel *chan)
5606{
5607	if (chan->band != NL80211_BAND_6GHZ)
5608		return false;
5609
5610	return ieee80211_frequency_to_channel(chan->center_freq) % 16 == 5;
5611}
5612
5613/**
5614 * ieee80211_get_response_rate - get basic rate for a given rate
5615 *
5616 * @sband: the band to look for rates in
5617 * @basic_rates: bitmap of basic rates
5618 * @bitrate: the bitrate for which to find the basic rate
5619 *
5620 * Return: The basic rate corresponding to a given bitrate, that
5621 * is the next lower bitrate contained in the basic rate map,
5622 * which is, for this function, given as a bitmap of indices of
5623 * rates in the band's bitrate table.
5624 */
5625const struct ieee80211_rate *
5626ieee80211_get_response_rate(struct ieee80211_supported_band *sband,
5627			    u32 basic_rates, int bitrate);
5628
5629/**
5630 * ieee80211_mandatory_rates - get mandatory rates for a given band
5631 * @sband: the band to look for rates in
5632 * @scan_width: width of the control channel
5633 *
5634 * This function returns a bitmap of the mandatory rates for the given
5635 * band, bits are set according to the rate position in the bitrates array.
5636 */
5637u32 ieee80211_mandatory_rates(struct ieee80211_supported_band *sband,
5638			      enum nl80211_bss_scan_width scan_width);
5639
5640/*
5641 * Radiotap parsing functions -- for controlled injection support
5642 *
5643 * Implemented in net/wireless/radiotap.c
5644 * Documentation in Documentation/networking/radiotap-headers.rst
5645 */
5646
5647struct radiotap_align_size {
5648	uint8_t align:4, size:4;
5649};
5650
5651struct ieee80211_radiotap_namespace {
5652	const struct radiotap_align_size *align_size;
5653	int n_bits;
5654	uint32_t oui;
5655	uint8_t subns;
5656};
5657
5658struct ieee80211_radiotap_vendor_namespaces {
5659	const struct ieee80211_radiotap_namespace *ns;
5660	int n_ns;
5661};
5662
5663/**
5664 * struct ieee80211_radiotap_iterator - tracks walk thru present radiotap args
5665 * @this_arg_index: index of current arg, valid after each successful call
5666 *	to ieee80211_radiotap_iterator_next()
5667 * @this_arg: pointer to current radiotap arg; it is valid after each
5668 *	call to ieee80211_radiotap_iterator_next() but also after
5669 *	ieee80211_radiotap_iterator_init() where it will point to
5670 *	the beginning of the actual data portion
5671 * @this_arg_size: length of the current arg, for convenience
5672 * @current_namespace: pointer to the current namespace definition
5673 *	(or internally %NULL if the current namespace is unknown)
5674 * @is_radiotap_ns: indicates whether the current namespace is the default
5675 *	radiotap namespace or not
5676 *
5677 * @_rtheader: pointer to the radiotap header we are walking through
5678 * @_max_length: length of radiotap header in cpu byte ordering
5679 * @_arg_index: next argument index
5680 * @_arg: next argument pointer
5681 * @_next_bitmap: internal pointer to next present u32
5682 * @_bitmap_shifter: internal shifter for curr u32 bitmap, b0 set == arg present
5683 * @_vns: vendor namespace definitions
5684 * @_next_ns_data: beginning of the next namespace's data
5685 * @_reset_on_ext: internal; reset the arg index to 0 when going to the
5686 *	next bitmap word
5687 *
5688 * Describes the radiotap parser state. Fields prefixed with an underscore
5689 * must not be used by users of the parser, only by the parser internally.
5690 */
5691
5692struct ieee80211_radiotap_iterator {
5693	struct ieee80211_radiotap_header *_rtheader;
5694	const struct ieee80211_radiotap_vendor_namespaces *_vns;
5695	const struct ieee80211_radiotap_namespace *current_namespace;
5696
5697	unsigned char *_arg, *_next_ns_data;
5698	__le32 *_next_bitmap;
5699
5700	unsigned char *this_arg;
5701	int this_arg_index;
5702	int this_arg_size;
5703
5704	int is_radiotap_ns;
5705
5706	int _max_length;
5707	int _arg_index;
5708	uint32_t _bitmap_shifter;
5709	int _reset_on_ext;
5710};
5711
5712int
5713ieee80211_radiotap_iterator_init(struct ieee80211_radiotap_iterator *iterator,
5714				 struct ieee80211_radiotap_header *radiotap_header,
5715				 int max_length,
5716				 const struct ieee80211_radiotap_vendor_namespaces *vns);
5717
5718int
5719ieee80211_radiotap_iterator_next(struct ieee80211_radiotap_iterator *iterator);
5720
5721
5722extern const unsigned char rfc1042_header[6];
5723extern const unsigned char bridge_tunnel_header[6];
5724
5725/**
5726 * ieee80211_get_hdrlen_from_skb - get header length from data
5727 *
5728 * @skb: the frame
5729 *
5730 * Given an skb with a raw 802.11 header at the data pointer this function
5731 * returns the 802.11 header length.
5732 *
5733 * Return: The 802.11 header length in bytes (not including encryption
5734 * headers). Or 0 if the data in the sk_buff is too short to contain a valid
5735 * 802.11 header.
5736 */
5737unsigned int ieee80211_get_hdrlen_from_skb(const struct sk_buff *skb);
5738
5739/**
5740 * ieee80211_hdrlen - get header length in bytes from frame control
5741 * @fc: frame control field in little-endian format
5742 * Return: The header length in bytes.
5743 */
5744unsigned int __attribute_const__ ieee80211_hdrlen(__le16 fc);
5745
5746/**
5747 * ieee80211_get_mesh_hdrlen - get mesh extension header length
5748 * @meshhdr: the mesh extension header, only the flags field
5749 *	(first byte) will be accessed
5750 * Return: The length of the extension header, which is always at
5751 * least 6 bytes and at most 18 if address 5 and 6 are present.
5752 */
5753unsigned int ieee80211_get_mesh_hdrlen(struct ieee80211s_hdr *meshhdr);
5754
5755/**
5756 * DOC: Data path helpers
5757 *
5758 * In addition to generic utilities, cfg80211 also offers
5759 * functions that help implement the data path for devices
5760 * that do not do the 802.11/802.3 conversion on the device.
5761 */
5762
5763/**
5764 * ieee80211_data_to_8023_exthdr - convert an 802.11 data frame to 802.3
5765 * @skb: the 802.11 data frame
5766 * @ehdr: pointer to a &struct ethhdr that will get the header, instead
5767 *	of it being pushed into the SKB
5768 * @addr: the device MAC address
5769 * @iftype: the virtual interface type
5770 * @data_offset: offset of payload after the 802.11 header
 
5771 * Return: 0 on success. Non-zero on error.
5772 */
5773int ieee80211_data_to_8023_exthdr(struct sk_buff *skb, struct ethhdr *ehdr,
5774				  const u8 *addr, enum nl80211_iftype iftype,
5775				  u8 data_offset, bool is_amsdu);
5776
5777/**
5778 * ieee80211_data_to_8023 - convert an 802.11 data frame to 802.3
5779 * @skb: the 802.11 data frame
5780 * @addr: the device MAC address
5781 * @iftype: the virtual interface type
5782 * Return: 0 on success. Non-zero on error.
5783 */
5784static inline int ieee80211_data_to_8023(struct sk_buff *skb, const u8 *addr,
5785					 enum nl80211_iftype iftype)
5786{
5787	return ieee80211_data_to_8023_exthdr(skb, NULL, addr, iftype, 0, false);
5788}
5789
5790/**
5791 * ieee80211_amsdu_to_8023s - decode an IEEE 802.11n A-MSDU frame
5792 *
5793 * Decode an IEEE 802.11 A-MSDU and convert it to a list of 802.3 frames.
5794 * The @list will be empty if the decode fails. The @skb must be fully
5795 * header-less before being passed in here; it is freed in this function.
5796 *
5797 * @skb: The input A-MSDU frame without any headers.
5798 * @list: The output list of 802.3 frames. It must be allocated and
5799 *	initialized by the caller.
5800 * @addr: The device MAC address.
5801 * @iftype: The device interface type.
5802 * @extra_headroom: The hardware extra headroom for SKBs in the @list.
5803 * @check_da: DA to check in the inner ethernet header, or NULL
5804 * @check_sa: SA to check in the inner ethernet header, or NULL
5805 */
5806void ieee80211_amsdu_to_8023s(struct sk_buff *skb, struct sk_buff_head *list,
5807			      const u8 *addr, enum nl80211_iftype iftype,
5808			      const unsigned int extra_headroom,
5809			      const u8 *check_da, const u8 *check_sa);
5810
5811/**
5812 * cfg80211_classify8021d - determine the 802.1p/1d tag for a data frame
5813 * @skb: the data frame
5814 * @qos_map: Interworking QoS mapping or %NULL if not in use
5815 * Return: The 802.1p/1d tag.
5816 */
5817unsigned int cfg80211_classify8021d(struct sk_buff *skb,
5818				    struct cfg80211_qos_map *qos_map);
5819
5820/**
5821 * cfg80211_find_elem_match - match information element and byte array in data
5822 *
5823 * @eid: element ID
5824 * @ies: data consisting of IEs
5825 * @len: length of data
5826 * @match: byte array to match
5827 * @match_len: number of bytes in the match array
5828 * @match_offset: offset in the IE data where the byte array should match.
5829 *	Note the difference to cfg80211_find_ie_match() which considers
5830 *	the offset to start from the element ID byte, but here we take
5831 *	the data portion instead.
5832 *
5833 * Return: %NULL if the element ID could not be found or if
5834 * the element is invalid (claims to be longer than the given
5835 * data) or if the byte array doesn't match; otherwise return the
5836 * requested element struct.
5837 *
5838 * Note: There are no checks on the element length other than
5839 * having to fit into the given data and being large enough for the
5840 * byte array to match.
5841 */
5842const struct element *
5843cfg80211_find_elem_match(u8 eid, const u8 *ies, unsigned int len,
5844			 const u8 *match, unsigned int match_len,
5845			 unsigned int match_offset);
5846
5847/**
5848 * cfg80211_find_ie_match - match information element and byte array in data
5849 *
5850 * @eid: element ID
5851 * @ies: data consisting of IEs
5852 * @len: length of data
5853 * @match: byte array to match
5854 * @match_len: number of bytes in the match array
5855 * @match_offset: offset in the IE where the byte array should match.
5856 *	If match_len is zero, this must also be set to zero.
5857 *	Otherwise this must be set to 2 or more, because the first
5858 *	byte is the element id, which is already compared to eid, and
5859 *	the second byte is the IE length.
5860 *
5861 * Return: %NULL if the element ID could not be found or if
5862 * the element is invalid (claims to be longer than the given
5863 * data) or if the byte array doesn't match, or a pointer to the first
5864 * byte of the requested element, that is the byte containing the
5865 * element ID.
5866 *
5867 * Note: There are no checks on the element length other than
5868 * having to fit into the given data and being large enough for the
5869 * byte array to match.
5870 */
5871static inline const u8 *
5872cfg80211_find_ie_match(u8 eid, const u8 *ies, unsigned int len,
5873		       const u8 *match, unsigned int match_len,
5874		       unsigned int match_offset)
5875{
5876	/* match_offset can't be smaller than 2, unless match_len is
5877	 * zero, in which case match_offset must be zero as well.
5878	 */
5879	if (WARN_ON((match_len && match_offset < 2) ||
5880		    (!match_len && match_offset)))
5881		return NULL;
5882
5883	return (void *)cfg80211_find_elem_match(eid, ies, len,
5884						match, match_len,
5885						match_offset ?
5886							match_offset - 2 : 0);
5887}
5888
5889/**
5890 * cfg80211_find_elem - find information element in data
5891 *
5892 * @eid: element ID
5893 * @ies: data consisting of IEs
5894 * @len: length of data
5895 *
5896 * Return: %NULL if the element ID could not be found or if
5897 * the element is invalid (claims to be longer than the given
5898 * data) or if the byte array doesn't match; otherwise return the
5899 * requested element struct.
5900 *
5901 * Note: There are no checks on the element length other than
5902 * having to fit into the given data.
5903 */
5904static inline const struct element *
5905cfg80211_find_elem(u8 eid, const u8 *ies, int len)
5906{
5907	return cfg80211_find_elem_match(eid, ies, len, NULL, 0, 0);
5908}
5909
5910/**
5911 * cfg80211_find_ie - find information element in data
5912 *
5913 * @eid: element ID
5914 * @ies: data consisting of IEs
5915 * @len: length of data
5916 *
5917 * Return: %NULL if the element ID could not be found or if
5918 * the element is invalid (claims to be longer than the given
5919 * data), or a pointer to the first byte of the requested
5920 * element, that is the byte containing the element ID.
5921 *
5922 * Note: There are no checks on the element length other than
5923 * having to fit into the given data.
5924 */
5925static inline const u8 *cfg80211_find_ie(u8 eid, const u8 *ies, int len)
5926{
5927	return cfg80211_find_ie_match(eid, ies, len, NULL, 0, 0);
5928}
5929
5930/**
5931 * cfg80211_find_ext_elem - find information element with EID Extension in data
5932 *
5933 * @ext_eid: element ID Extension
5934 * @ies: data consisting of IEs
5935 * @len: length of data
5936 *
5937 * Return: %NULL if the etended element could not be found or if
5938 * the element is invalid (claims to be longer than the given
5939 * data) or if the byte array doesn't match; otherwise return the
5940 * requested element struct.
5941 *
5942 * Note: There are no checks on the element length other than
5943 * having to fit into the given data.
5944 */
5945static inline const struct element *
5946cfg80211_find_ext_elem(u8 ext_eid, const u8 *ies, int len)
5947{
5948	return cfg80211_find_elem_match(WLAN_EID_EXTENSION, ies, len,
5949					&ext_eid, 1, 0);
5950}
5951
5952/**
5953 * cfg80211_find_ext_ie - find information element with EID Extension in data
5954 *
5955 * @ext_eid: element ID Extension
5956 * @ies: data consisting of IEs
5957 * @len: length of data
5958 *
5959 * Return: %NULL if the extended element ID could not be found or if
5960 * the element is invalid (claims to be longer than the given
5961 * data), or a pointer to the first byte of the requested
5962 * element, that is the byte containing the element ID.
5963 *
5964 * Note: There are no checks on the element length other than
5965 * having to fit into the given data.
5966 */
5967static inline const u8 *cfg80211_find_ext_ie(u8 ext_eid, const u8 *ies, int len)
5968{
5969	return cfg80211_find_ie_match(WLAN_EID_EXTENSION, ies, len,
5970				      &ext_eid, 1, 2);
5971}
5972
5973/**
5974 * cfg80211_find_vendor_elem - find vendor specific information element in data
5975 *
5976 * @oui: vendor OUI
5977 * @oui_type: vendor-specific OUI type (must be < 0xff), negative means any
5978 * @ies: data consisting of IEs
5979 * @len: length of data
5980 *
5981 * Return: %NULL if the vendor specific element ID could not be found or if the
5982 * element is invalid (claims to be longer than the given data); otherwise
5983 * return the element structure for the requested element.
5984 *
5985 * Note: There are no checks on the element length other than having to fit into
5986 * the given data.
5987 */
5988const struct element *cfg80211_find_vendor_elem(unsigned int oui, int oui_type,
5989						const u8 *ies,
5990						unsigned int len);
5991
5992/**
5993 * cfg80211_find_vendor_ie - find vendor specific information element in data
5994 *
5995 * @oui: vendor OUI
5996 * @oui_type: vendor-specific OUI type (must be < 0xff), negative means any
5997 * @ies: data consisting of IEs
5998 * @len: length of data
5999 *
6000 * Return: %NULL if the vendor specific element ID could not be found or if the
6001 * element is invalid (claims to be longer than the given data), or a pointer to
6002 * the first byte of the requested element, that is the byte containing the
6003 * element ID.
6004 *
6005 * Note: There are no checks on the element length other than having to fit into
6006 * the given data.
6007 */
6008static inline const u8 *
6009cfg80211_find_vendor_ie(unsigned int oui, int oui_type,
6010			const u8 *ies, unsigned int len)
6011{
6012	return (void *)cfg80211_find_vendor_elem(oui, oui_type, ies, len);
6013}
6014
6015/**
6016 * cfg80211_send_layer2_update - send layer 2 update frame
6017 *
6018 * @dev: network device
6019 * @addr: STA MAC address
6020 *
6021 * Wireless drivers can use this function to update forwarding tables in bridge
6022 * devices upon STA association.
6023 */
6024void cfg80211_send_layer2_update(struct net_device *dev, const u8 *addr);
6025
6026/**
6027 * DOC: Regulatory enforcement infrastructure
6028 *
6029 * TODO
6030 */
6031
6032/**
6033 * regulatory_hint - driver hint to the wireless core a regulatory domain
6034 * @wiphy: the wireless device giving the hint (used only for reporting
6035 *	conflicts)
6036 * @alpha2: the ISO/IEC 3166 alpha2 the driver claims its regulatory domain
6037 *	should be in. If @rd is set this should be NULL. Note that if you
6038 *	set this to NULL you should still set rd->alpha2 to some accepted
6039 *	alpha2.
6040 *
6041 * Wireless drivers can use this function to hint to the wireless core
6042 * what it believes should be the current regulatory domain by
6043 * giving it an ISO/IEC 3166 alpha2 country code it knows its regulatory
6044 * domain should be in or by providing a completely build regulatory domain.
6045 * If the driver provides an ISO/IEC 3166 alpha2 userspace will be queried
6046 * for a regulatory domain structure for the respective country.
6047 *
6048 * The wiphy must have been registered to cfg80211 prior to this call.
6049 * For cfg80211 drivers this means you must first use wiphy_register(),
6050 * for mac80211 drivers you must first use ieee80211_register_hw().
6051 *
6052 * Drivers should check the return value, its possible you can get
6053 * an -ENOMEM.
6054 *
6055 * Return: 0 on success. -ENOMEM.
6056 */
6057int regulatory_hint(struct wiphy *wiphy, const char *alpha2);
6058
6059/**
6060 * regulatory_set_wiphy_regd - set regdom info for self managed drivers
6061 * @wiphy: the wireless device we want to process the regulatory domain on
6062 * @rd: the regulatory domain informatoin to use for this wiphy
6063 *
6064 * Set the regulatory domain information for self-managed wiphys, only they
6065 * may use this function. See %REGULATORY_WIPHY_SELF_MANAGED for more
6066 * information.
6067 *
6068 * Return: 0 on success. -EINVAL, -EPERM
6069 */
6070int regulatory_set_wiphy_regd(struct wiphy *wiphy,
6071			      struct ieee80211_regdomain *rd);
6072
6073/**
6074 * regulatory_set_wiphy_regd_sync - set regdom for self-managed drivers
6075 * @wiphy: the wireless device we want to process the regulatory domain on
6076 * @rd: the regulatory domain information to use for this wiphy
6077 *
6078 * This functions requires the RTNL and the wiphy mutex to be held and
6079 * applies the new regdomain synchronously to this wiphy. For more details
6080 * see regulatory_set_wiphy_regd().
6081 *
6082 * Return: 0 on success. -EINVAL, -EPERM
6083 */
6084int regulatory_set_wiphy_regd_sync(struct wiphy *wiphy,
6085				   struct ieee80211_regdomain *rd);
6086
6087/**
6088 * wiphy_apply_custom_regulatory - apply a custom driver regulatory domain
6089 * @wiphy: the wireless device we want to process the regulatory domain on
6090 * @regd: the custom regulatory domain to use for this wiphy
6091 *
6092 * Drivers can sometimes have custom regulatory domains which do not apply
6093 * to a specific country. Drivers can use this to apply such custom regulatory
6094 * domains. This routine must be called prior to wiphy registration. The
6095 * custom regulatory domain will be trusted completely and as such previous
6096 * default channel settings will be disregarded. If no rule is found for a
6097 * channel on the regulatory domain the channel will be disabled.
6098 * Drivers using this for a wiphy should also set the wiphy flag
6099 * REGULATORY_CUSTOM_REG or cfg80211 will set it for the wiphy
6100 * that called this helper.
6101 */
6102void wiphy_apply_custom_regulatory(struct wiphy *wiphy,
6103				   const struct ieee80211_regdomain *regd);
6104
6105/**
6106 * freq_reg_info - get regulatory information for the given frequency
6107 * @wiphy: the wiphy for which we want to process this rule for
6108 * @center_freq: Frequency in KHz for which we want regulatory information for
6109 *
6110 * Use this function to get the regulatory rule for a specific frequency on
6111 * a given wireless device. If the device has a specific regulatory domain
6112 * it wants to follow we respect that unless a country IE has been received
6113 * and processed already.
6114 *
6115 * Return: A valid pointer, or, when an error occurs, for example if no rule
6116 * can be found, the return value is encoded using ERR_PTR(). Use IS_ERR() to
6117 * check and PTR_ERR() to obtain the numeric return value. The numeric return
6118 * value will be -ERANGE if we determine the given center_freq does not even
6119 * have a regulatory rule for a frequency range in the center_freq's band.
6120 * See freq_in_rule_band() for our current definition of a band -- this is
6121 * purely subjective and right now it's 802.11 specific.
6122 */
6123const struct ieee80211_reg_rule *freq_reg_info(struct wiphy *wiphy,
6124					       u32 center_freq);
6125
6126/**
6127 * reg_initiator_name - map regulatory request initiator enum to name
6128 * @initiator: the regulatory request initiator
6129 *
6130 * You can use this to map the regulatory request initiator enum to a
6131 * proper string representation.
6132 */
6133const char *reg_initiator_name(enum nl80211_reg_initiator initiator);
6134
6135/**
6136 * regulatory_pre_cac_allowed - check if pre-CAC allowed in the current regdom
6137 * @wiphy: wiphy for which pre-CAC capability is checked.
6138 *
6139 * Pre-CAC is allowed only in some regdomains (notable ETSI).
6140 */
6141bool regulatory_pre_cac_allowed(struct wiphy *wiphy);
6142
6143/**
6144 * DOC: Internal regulatory db functions
6145 *
6146 */
6147
6148/**
6149 * reg_query_regdb_wmm -  Query internal regulatory db for wmm rule
6150 * Regulatory self-managed driver can use it to proactively
6151 *
6152 * @alpha2: the ISO/IEC 3166 alpha2 wmm rule to be queried.
6153 * @freq: the freqency(in MHz) to be queried.
6154 * @rule: pointer to store the wmm rule from the regulatory db.
6155 *
6156 * Self-managed wireless drivers can use this function to  query
6157 * the internal regulatory database to check whether the given
6158 * ISO/IEC 3166 alpha2 country and freq have wmm rule limitations.
6159 *
6160 * Drivers should check the return value, its possible you can get
6161 * an -ENODATA.
6162 *
6163 * Return: 0 on success. -ENODATA.
6164 */
6165int reg_query_regdb_wmm(char *alpha2, int freq,
6166			struct ieee80211_reg_rule *rule);
6167
6168/*
6169 * callbacks for asynchronous cfg80211 methods, notification
6170 * functions and BSS handling helpers
6171 */
6172
6173/**
6174 * cfg80211_scan_done - notify that scan finished
6175 *
6176 * @request: the corresponding scan request
6177 * @info: information about the completed scan
6178 */
6179void cfg80211_scan_done(struct cfg80211_scan_request *request,
6180			struct cfg80211_scan_info *info);
6181
6182/**
6183 * cfg80211_sched_scan_results - notify that new scan results are available
6184 *
6185 * @wiphy: the wiphy which got scheduled scan results
6186 * @reqid: identifier for the related scheduled scan request
6187 */
6188void cfg80211_sched_scan_results(struct wiphy *wiphy, u64 reqid);
6189
6190/**
6191 * cfg80211_sched_scan_stopped - notify that the scheduled scan has stopped
6192 *
6193 * @wiphy: the wiphy on which the scheduled scan stopped
6194 * @reqid: identifier for the related scheduled scan request
6195 *
6196 * The driver can call this function to inform cfg80211 that the
6197 * scheduled scan had to be stopped, for whatever reason.  The driver
6198 * is then called back via the sched_scan_stop operation when done.
6199 */
6200void cfg80211_sched_scan_stopped(struct wiphy *wiphy, u64 reqid);
6201
6202/**
6203 * cfg80211_sched_scan_stopped_locked - notify that the scheduled scan has stopped
6204 *
6205 * @wiphy: the wiphy on which the scheduled scan stopped
6206 * @reqid: identifier for the related scheduled scan request
6207 *
6208 * The driver can call this function to inform cfg80211 that the
6209 * scheduled scan had to be stopped, for whatever reason.  The driver
6210 * is then called back via the sched_scan_stop operation when done.
6211 * This function should be called with the wiphy mutex held.
6212 */
6213void cfg80211_sched_scan_stopped_locked(struct wiphy *wiphy, u64 reqid);
6214
6215/**
6216 * cfg80211_inform_bss_frame_data - inform cfg80211 of a received BSS frame
6217 * @wiphy: the wiphy reporting the BSS
6218 * @data: the BSS metadata
6219 * @mgmt: the management frame (probe response or beacon)
6220 * @len: length of the management frame
6221 * @gfp: context flags
6222 *
6223 * This informs cfg80211 that BSS information was found and
6224 * the BSS should be updated/added.
6225 *
6226 * Return: A referenced struct, must be released with cfg80211_put_bss()!
6227 * Or %NULL on error.
6228 */
6229struct cfg80211_bss * __must_check
6230cfg80211_inform_bss_frame_data(struct wiphy *wiphy,
6231			       struct cfg80211_inform_bss *data,
6232			       struct ieee80211_mgmt *mgmt, size_t len,
6233			       gfp_t gfp);
6234
6235static inline struct cfg80211_bss * __must_check
6236cfg80211_inform_bss_width_frame(struct wiphy *wiphy,
6237				struct ieee80211_channel *rx_channel,
6238				enum nl80211_bss_scan_width scan_width,
6239				struct ieee80211_mgmt *mgmt, size_t len,
6240				s32 signal, gfp_t gfp)
6241{
6242	struct cfg80211_inform_bss data = {
6243		.chan = rx_channel,
6244		.scan_width = scan_width,
6245		.signal = signal,
6246	};
6247
6248	return cfg80211_inform_bss_frame_data(wiphy, &data, mgmt, len, gfp);
6249}
6250
6251static inline struct cfg80211_bss * __must_check
6252cfg80211_inform_bss_frame(struct wiphy *wiphy,
6253			  struct ieee80211_channel *rx_channel,
6254			  struct ieee80211_mgmt *mgmt, size_t len,
6255			  s32 signal, gfp_t gfp)
6256{
6257	struct cfg80211_inform_bss data = {
6258		.chan = rx_channel,
6259		.scan_width = NL80211_BSS_CHAN_WIDTH_20,
6260		.signal = signal,
6261	};
6262
6263	return cfg80211_inform_bss_frame_data(wiphy, &data, mgmt, len, gfp);
6264}
6265
6266/**
6267 * cfg80211_gen_new_bssid - generate a nontransmitted BSSID for multi-BSSID
6268 * @bssid: transmitter BSSID
6269 * @max_bssid: max BSSID indicator, taken from Multiple BSSID element
6270 * @mbssid_index: BSSID index, taken from Multiple BSSID index element
6271 * @new_bssid: calculated nontransmitted BSSID
6272 */
6273static inline void cfg80211_gen_new_bssid(const u8 *bssid, u8 max_bssid,
6274					  u8 mbssid_index, u8 *new_bssid)
6275{
6276	u64 bssid_u64 = ether_addr_to_u64(bssid);
6277	u64 mask = GENMASK_ULL(max_bssid - 1, 0);
6278	u64 new_bssid_u64;
6279
6280	new_bssid_u64 = bssid_u64 & ~mask;
6281
6282	new_bssid_u64 |= ((bssid_u64 & mask) + mbssid_index) & mask;
6283
6284	u64_to_ether_addr(new_bssid_u64, new_bssid);
6285}
6286
6287/**
6288 * cfg80211_is_element_inherited - returns if element ID should be inherited
6289 * @element: element to check
6290 * @non_inherit_element: non inheritance element
6291 */
6292bool cfg80211_is_element_inherited(const struct element *element,
6293				   const struct element *non_inherit_element);
6294
6295/**
6296 * cfg80211_merge_profile - merges a MBSSID profile if it is split between IEs
6297 * @ie: ies
6298 * @ielen: length of IEs
6299 * @mbssid_elem: current MBSSID element
6300 * @sub_elem: current MBSSID subelement (profile)
6301 * @merged_ie: location of the merged profile
6302 * @max_copy_len: max merged profile length
6303 */
6304size_t cfg80211_merge_profile(const u8 *ie, size_t ielen,
6305			      const struct element *mbssid_elem,
6306			      const struct element *sub_elem,
6307			      u8 *merged_ie, size_t max_copy_len);
6308
6309/**
6310 * enum cfg80211_bss_frame_type - frame type that the BSS data came from
6311 * @CFG80211_BSS_FTYPE_UNKNOWN: driver doesn't know whether the data is
6312 *	from a beacon or probe response
6313 * @CFG80211_BSS_FTYPE_BEACON: data comes from a beacon
6314 * @CFG80211_BSS_FTYPE_PRESP: data comes from a probe response
6315 */
6316enum cfg80211_bss_frame_type {
6317	CFG80211_BSS_FTYPE_UNKNOWN,
6318	CFG80211_BSS_FTYPE_BEACON,
6319	CFG80211_BSS_FTYPE_PRESP,
6320};
6321
6322/**
 
 
 
 
 
 
 
 
 
 
 
 
 
6323 * cfg80211_inform_bss_data - inform cfg80211 of a new BSS
6324 *
6325 * @wiphy: the wiphy reporting the BSS
6326 * @data: the BSS metadata
6327 * @ftype: frame type (if known)
6328 * @bssid: the BSSID of the BSS
6329 * @tsf: the TSF sent by the peer in the beacon/probe response (or 0)
6330 * @capability: the capability field sent by the peer
6331 * @beacon_interval: the beacon interval announced by the peer
6332 * @ie: additional IEs sent by the peer
6333 * @ielen: length of the additional IEs
6334 * @gfp: context flags
6335 *
6336 * This informs cfg80211 that BSS information was found and
6337 * the BSS should be updated/added.
6338 *
6339 * Return: A referenced struct, must be released with cfg80211_put_bss()!
6340 * Or %NULL on error.
6341 */
6342struct cfg80211_bss * __must_check
6343cfg80211_inform_bss_data(struct wiphy *wiphy,
6344			 struct cfg80211_inform_bss *data,
6345			 enum cfg80211_bss_frame_type ftype,
6346			 const u8 *bssid, u64 tsf, u16 capability,
6347			 u16 beacon_interval, const u8 *ie, size_t ielen,
6348			 gfp_t gfp);
6349
6350static inline struct cfg80211_bss * __must_check
6351cfg80211_inform_bss_width(struct wiphy *wiphy,
6352			  struct ieee80211_channel *rx_channel,
6353			  enum nl80211_bss_scan_width scan_width,
6354			  enum cfg80211_bss_frame_type ftype,
6355			  const u8 *bssid, u64 tsf, u16 capability,
6356			  u16 beacon_interval, const u8 *ie, size_t ielen,
6357			  s32 signal, gfp_t gfp)
6358{
6359	struct cfg80211_inform_bss data = {
6360		.chan = rx_channel,
6361		.scan_width = scan_width,
6362		.signal = signal,
6363	};
6364
6365	return cfg80211_inform_bss_data(wiphy, &data, ftype, bssid, tsf,
6366					capability, beacon_interval, ie, ielen,
6367					gfp);
6368}
6369
6370static inline struct cfg80211_bss * __must_check
6371cfg80211_inform_bss(struct wiphy *wiphy,
6372		    struct ieee80211_channel *rx_channel,
6373		    enum cfg80211_bss_frame_type ftype,
6374		    const u8 *bssid, u64 tsf, u16 capability,
6375		    u16 beacon_interval, const u8 *ie, size_t ielen,
6376		    s32 signal, gfp_t gfp)
6377{
6378	struct cfg80211_inform_bss data = {
6379		.chan = rx_channel,
6380		.scan_width = NL80211_BSS_CHAN_WIDTH_20,
6381		.signal = signal,
6382	};
6383
6384	return cfg80211_inform_bss_data(wiphy, &data, ftype, bssid, tsf,
6385					capability, beacon_interval, ie, ielen,
6386					gfp);
6387}
6388
6389/**
6390 * cfg80211_get_bss - get a BSS reference
6391 * @wiphy: the wiphy this BSS struct belongs to
6392 * @channel: the channel to search on (or %NULL)
6393 * @bssid: the desired BSSID (or %NULL)
6394 * @ssid: the desired SSID (or %NULL)
6395 * @ssid_len: length of the SSID (or 0)
6396 * @bss_type: type of BSS, see &enum ieee80211_bss_type
6397 * @privacy: privacy filter, see &enum ieee80211_privacy
6398 */
6399struct cfg80211_bss *cfg80211_get_bss(struct wiphy *wiphy,
6400				      struct ieee80211_channel *channel,
6401				      const u8 *bssid,
6402				      const u8 *ssid, size_t ssid_len,
6403				      enum ieee80211_bss_type bss_type,
6404				      enum ieee80211_privacy privacy);
6405static inline struct cfg80211_bss *
6406cfg80211_get_ibss(struct wiphy *wiphy,
6407		  struct ieee80211_channel *channel,
6408		  const u8 *ssid, size_t ssid_len)
6409{
6410	return cfg80211_get_bss(wiphy, channel, NULL, ssid, ssid_len,
6411				IEEE80211_BSS_TYPE_IBSS,
6412				IEEE80211_PRIVACY_ANY);
6413}
6414
6415/**
6416 * cfg80211_ref_bss - reference BSS struct
6417 * @wiphy: the wiphy this BSS struct belongs to
6418 * @bss: the BSS struct to reference
6419 *
6420 * Increments the refcount of the given BSS struct.
6421 */
6422void cfg80211_ref_bss(struct wiphy *wiphy, struct cfg80211_bss *bss);
6423
6424/**
6425 * cfg80211_put_bss - unref BSS struct
6426 * @wiphy: the wiphy this BSS struct belongs to
6427 * @bss: the BSS struct
6428 *
6429 * Decrements the refcount of the given BSS struct.
6430 */
6431void cfg80211_put_bss(struct wiphy *wiphy, struct cfg80211_bss *bss);
6432
6433/**
6434 * cfg80211_unlink_bss - unlink BSS from internal data structures
6435 * @wiphy: the wiphy
6436 * @bss: the bss to remove
6437 *
6438 * This function removes the given BSS from the internal data structures
6439 * thereby making it no longer show up in scan results etc. Use this
6440 * function when you detect a BSS is gone. Normally BSSes will also time
6441 * out, so it is not necessary to use this function at all.
6442 */
6443void cfg80211_unlink_bss(struct wiphy *wiphy, struct cfg80211_bss *bss);
6444
6445/**
6446 * cfg80211_bss_iter - iterate all BSS entries
6447 *
6448 * This function iterates over the BSS entries associated with the given wiphy
6449 * and calls the callback for the iterated BSS. The iterator function is not
6450 * allowed to call functions that might modify the internal state of the BSS DB.
6451 *
6452 * @wiphy: the wiphy
6453 * @chandef: if given, the iterator function will be called only if the channel
6454 *     of the currently iterated BSS is a subset of the given channel.
6455 * @iter: the iterator function to call
6456 * @iter_data: an argument to the iterator function
6457 */
6458void cfg80211_bss_iter(struct wiphy *wiphy,
6459		       struct cfg80211_chan_def *chandef,
6460		       void (*iter)(struct wiphy *wiphy,
6461				    struct cfg80211_bss *bss,
6462				    void *data),
6463		       void *iter_data);
6464
6465static inline enum nl80211_bss_scan_width
6466cfg80211_chandef_to_scan_width(const struct cfg80211_chan_def *chandef)
6467{
6468	switch (chandef->width) {
6469	case NL80211_CHAN_WIDTH_5:
6470		return NL80211_BSS_CHAN_WIDTH_5;
6471	case NL80211_CHAN_WIDTH_10:
6472		return NL80211_BSS_CHAN_WIDTH_10;
6473	default:
6474		return NL80211_BSS_CHAN_WIDTH_20;
6475	}
6476}
6477
6478/**
6479 * cfg80211_rx_mlme_mgmt - notification of processed MLME management frame
6480 * @dev: network device
6481 * @buf: authentication frame (header + body)
6482 * @len: length of the frame data
6483 *
6484 * This function is called whenever an authentication, disassociation or
6485 * deauthentication frame has been received and processed in station mode.
6486 * After being asked to authenticate via cfg80211_ops::auth() the driver must
6487 * call either this function or cfg80211_auth_timeout().
6488 * After being asked to associate via cfg80211_ops::assoc() the driver must
6489 * call either this function or cfg80211_auth_timeout().
6490 * While connected, the driver must calls this for received and processed
6491 * disassociation and deauthentication frames. If the frame couldn't be used
6492 * because it was unprotected, the driver must call the function
6493 * cfg80211_rx_unprot_mlme_mgmt() instead.
6494 *
6495 * This function may sleep. The caller must hold the corresponding wdev's mutex.
6496 */
6497void cfg80211_rx_mlme_mgmt(struct net_device *dev, const u8 *buf, size_t len);
6498
6499/**
6500 * cfg80211_auth_timeout - notification of timed out authentication
6501 * @dev: network device
6502 * @addr: The MAC address of the device with which the authentication timed out
6503 *
6504 * This function may sleep. The caller must hold the corresponding wdev's
6505 * mutex.
6506 */
6507void cfg80211_auth_timeout(struct net_device *dev, const u8 *addr);
6508
6509/**
6510 * cfg80211_rx_assoc_resp - notification of processed association response
6511 * @dev: network device
6512 * @bss: the BSS that association was requested with, ownership of the pointer
6513 *	moves to cfg80211 in this call
6514 * @buf: (Re)Association Response frame (header + body)
6515 * @len: length of the frame data
6516 * @uapsd_queues: bitmap of queues configured for uapsd. Same format
6517 *	as the AC bitmap in the QoS info field
6518 * @req_ies: information elements from the (Re)Association Request frame
6519 * @req_ies_len: length of req_ies data
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
6520 *
6521 * After being asked to associate via cfg80211_ops::assoc() the driver must
6522 * call either this function or cfg80211_auth_timeout().
6523 *
6524 * This function may sleep. The caller must hold the corresponding wdev's mutex.
6525 */
6526void cfg80211_rx_assoc_resp(struct net_device *dev,
6527			    struct cfg80211_bss *bss,
6528			    const u8 *buf, size_t len,
6529			    int uapsd_queues,
6530			    const u8 *req_ies, size_t req_ies_len);
6531
6532/**
6533 * cfg80211_assoc_timeout - notification of timed out association
6534 * @dev: network device
6535 * @bss: The BSS entry with which association timed out.
6536 *
6537 * This function may sleep. The caller must hold the corresponding wdev's mutex.
 
 
6538 */
6539void cfg80211_assoc_timeout(struct net_device *dev, struct cfg80211_bss *bss);
 
 
 
 
6540
6541/**
6542 * cfg80211_abandon_assoc - notify cfg80211 of abandoned association attempt
6543 * @dev: network device
6544 * @bss: The BSS entry with which association was abandoned.
6545 *
6546 * Call this whenever - for reasons reported through other API, like deauth RX,
6547 * an association attempt was abandoned.
6548 * This function may sleep. The caller must hold the corresponding wdev's mutex.
6549 */
6550void cfg80211_abandon_assoc(struct net_device *dev, struct cfg80211_bss *bss);
 
6551
6552/**
6553 * cfg80211_tx_mlme_mgmt - notification of transmitted deauth/disassoc frame
6554 * @dev: network device
6555 * @buf: 802.11 frame (header + body)
6556 * @len: length of the frame data
6557 * @reconnect: immediate reconnect is desired (include the nl80211 attribute)
6558 *
6559 * This function is called whenever deauthentication has been processed in
6560 * station mode. This includes both received deauthentication frames and
6561 * locally generated ones. This function may sleep. The caller must hold the
6562 * corresponding wdev's mutex.
6563 */
6564void cfg80211_tx_mlme_mgmt(struct net_device *dev, const u8 *buf, size_t len,
6565			   bool reconnect);
6566
6567/**
6568 * cfg80211_rx_unprot_mlme_mgmt - notification of unprotected mlme mgmt frame
6569 * @dev: network device
6570 * @buf: received management frame (header + body)
6571 * @len: length of the frame data
6572 *
6573 * This function is called whenever a received deauthentication or dissassoc
6574 * frame has been dropped in station mode because of MFP being used but the
6575 * frame was not protected. This is also used to notify reception of a Beacon
6576 * frame that was dropped because it did not include a valid MME MIC while
6577 * beacon protection was enabled (BIGTK configured in station mode).
6578 *
6579 * This function may sleep.
6580 */
6581void cfg80211_rx_unprot_mlme_mgmt(struct net_device *dev,
6582				  const u8 *buf, size_t len);
6583
6584/**
6585 * cfg80211_michael_mic_failure - notification of Michael MIC failure (TKIP)
6586 * @dev: network device
6587 * @addr: The source MAC address of the frame
6588 * @key_type: The key type that the received frame used
6589 * @key_id: Key identifier (0..3). Can be -1 if missing.
6590 * @tsc: The TSC value of the frame that generated the MIC failure (6 octets)
6591 * @gfp: allocation flags
6592 *
6593 * This function is called whenever the local MAC detects a MIC failure in a
6594 * received frame. This matches with MLME-MICHAELMICFAILURE.indication()
6595 * primitive.
6596 */
6597void cfg80211_michael_mic_failure(struct net_device *dev, const u8 *addr,
6598				  enum nl80211_key_type key_type, int key_id,
6599				  const u8 *tsc, gfp_t gfp);
6600
6601/**
6602 * cfg80211_ibss_joined - notify cfg80211 that device joined an IBSS
6603 *
6604 * @dev: network device
6605 * @bssid: the BSSID of the IBSS joined
6606 * @channel: the channel of the IBSS joined
6607 * @gfp: allocation flags
6608 *
6609 * This function notifies cfg80211 that the device joined an IBSS or
6610 * switched to a different BSSID. Before this function can be called,
6611 * either a beacon has to have been received from the IBSS, or one of
6612 * the cfg80211_inform_bss{,_frame} functions must have been called
6613 * with the locally generated beacon -- this guarantees that there is
6614 * always a scan result for this IBSS. cfg80211 will handle the rest.
6615 */
6616void cfg80211_ibss_joined(struct net_device *dev, const u8 *bssid,
6617			  struct ieee80211_channel *channel, gfp_t gfp);
6618
6619/**
6620 * cfg80211_notify_new_peer_candidate - notify cfg80211 of a new mesh peer
6621 * 					candidate
6622 *
6623 * @dev: network device
6624 * @macaddr: the MAC address of the new candidate
6625 * @ie: information elements advertised by the peer candidate
6626 * @ie_len: length of the information elements buffer
 
6627 * @gfp: allocation flags
6628 *
6629 * This function notifies cfg80211 that the mesh peer candidate has been
6630 * detected, most likely via a beacon or, less likely, via a probe response.
6631 * cfg80211 then sends a notification to userspace.
6632 */
6633void cfg80211_notify_new_peer_candidate(struct net_device *dev,
6634		const u8 *macaddr, const u8 *ie, u8 ie_len,
6635		int sig_dbm, gfp_t gfp);
6636
6637/**
6638 * DOC: RFkill integration
6639 *
6640 * RFkill integration in cfg80211 is almost invisible to drivers,
6641 * as cfg80211 automatically registers an rfkill instance for each
6642 * wireless device it knows about. Soft kill is also translated
6643 * into disconnecting and turning all interfaces off, drivers are
6644 * expected to turn off the device when all interfaces are down.
6645 *
6646 * However, devices may have a hard RFkill line, in which case they
6647 * also need to interact with the rfkill subsystem, via cfg80211.
6648 * They can do this with a few helper functions documented here.
6649 */
6650
6651/**
6652 * wiphy_rfkill_set_hw_state_reason - notify cfg80211 about hw block state
6653 * @wiphy: the wiphy
6654 * @blocked: block status
6655 * @reason: one of reasons in &enum rfkill_hard_block_reasons
6656 */
6657void wiphy_rfkill_set_hw_state_reason(struct wiphy *wiphy, bool blocked,
6658				      enum rfkill_hard_block_reasons reason);
6659
6660static inline void wiphy_rfkill_set_hw_state(struct wiphy *wiphy, bool blocked)
6661{
6662	wiphy_rfkill_set_hw_state_reason(wiphy, blocked,
6663					 RFKILL_HARD_BLOCK_SIGNAL);
6664}
6665
6666/**
6667 * wiphy_rfkill_start_polling - start polling rfkill
6668 * @wiphy: the wiphy
6669 */
6670void wiphy_rfkill_start_polling(struct wiphy *wiphy);
6671
6672/**
6673 * wiphy_rfkill_stop_polling - stop polling rfkill
6674 * @wiphy: the wiphy
6675 */
6676static inline void wiphy_rfkill_stop_polling(struct wiphy *wiphy)
6677{
6678	rfkill_pause_polling(wiphy->rfkill);
6679}
6680
6681/**
6682 * DOC: Vendor commands
6683 *
6684 * Occasionally, there are special protocol or firmware features that
6685 * can't be implemented very openly. For this and similar cases, the
6686 * vendor command functionality allows implementing the features with
6687 * (typically closed-source) userspace and firmware, using nl80211 as
6688 * the configuration mechanism.
6689 *
6690 * A driver supporting vendor commands must register them as an array
6691 * in struct wiphy, with handlers for each one, each command has an
6692 * OUI and sub command ID to identify it.
6693 *
6694 * Note that this feature should not be (ab)used to implement protocol
6695 * features that could openly be shared across drivers. In particular,
6696 * it must never be required to use vendor commands to implement any
6697 * "normal" functionality that higher-level userspace like connection
6698 * managers etc. need.
6699 */
6700
6701struct sk_buff *__cfg80211_alloc_reply_skb(struct wiphy *wiphy,
6702					   enum nl80211_commands cmd,
6703					   enum nl80211_attrs attr,
6704					   int approxlen);
6705
6706struct sk_buff *__cfg80211_alloc_event_skb(struct wiphy *wiphy,
6707					   struct wireless_dev *wdev,
6708					   enum nl80211_commands cmd,
6709					   enum nl80211_attrs attr,
6710					   unsigned int portid,
6711					   int vendor_event_idx,
6712					   int approxlen, gfp_t gfp);
6713
6714void __cfg80211_send_event_skb(struct sk_buff *skb, gfp_t gfp);
6715
6716/**
6717 * cfg80211_vendor_cmd_alloc_reply_skb - allocate vendor command reply
6718 * @wiphy: the wiphy
6719 * @approxlen: an upper bound of the length of the data that will
6720 *	be put into the skb
6721 *
6722 * This function allocates and pre-fills an skb for a reply to
6723 * a vendor command. Since it is intended for a reply, calling
6724 * it outside of a vendor command's doit() operation is invalid.
6725 *
6726 * The returned skb is pre-filled with some identifying data in
6727 * a way that any data that is put into the skb (with skb_put(),
6728 * nla_put() or similar) will end up being within the
6729 * %NL80211_ATTR_VENDOR_DATA attribute, so all that needs to be done
6730 * with the skb is adding data for the corresponding userspace tool
6731 * which can then read that data out of the vendor data attribute.
6732 * You must not modify the skb in any other way.
6733 *
6734 * When done, call cfg80211_vendor_cmd_reply() with the skb and return
6735 * its error code as the result of the doit() operation.
6736 *
6737 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
6738 */
6739static inline struct sk_buff *
6740cfg80211_vendor_cmd_alloc_reply_skb(struct wiphy *wiphy, int approxlen)
6741{
6742	return __cfg80211_alloc_reply_skb(wiphy, NL80211_CMD_VENDOR,
6743					  NL80211_ATTR_VENDOR_DATA, approxlen);
6744}
6745
6746/**
6747 * cfg80211_vendor_cmd_reply - send the reply skb
6748 * @skb: The skb, must have been allocated with
6749 *	cfg80211_vendor_cmd_alloc_reply_skb()
6750 *
6751 * Since calling this function will usually be the last thing
6752 * before returning from the vendor command doit() you should
6753 * return the error code.  Note that this function consumes the
6754 * skb regardless of the return value.
6755 *
6756 * Return: An error code or 0 on success.
6757 */
6758int cfg80211_vendor_cmd_reply(struct sk_buff *skb);
6759
6760/**
6761 * cfg80211_vendor_cmd_get_sender - get the current sender netlink ID
6762 * @wiphy: the wiphy
6763 *
6764 * Return the current netlink port ID in a vendor command handler.
6765 * Valid to call only there.
6766 */
6767unsigned int cfg80211_vendor_cmd_get_sender(struct wiphy *wiphy);
6768
6769/**
6770 * cfg80211_vendor_event_alloc - allocate vendor-specific event skb
6771 * @wiphy: the wiphy
6772 * @wdev: the wireless device
6773 * @event_idx: index of the vendor event in the wiphy's vendor_events
6774 * @approxlen: an upper bound of the length of the data that will
6775 *	be put into the skb
6776 * @gfp: allocation flags
6777 *
6778 * This function allocates and pre-fills an skb for an event on the
6779 * vendor-specific multicast group.
6780 *
6781 * If wdev != NULL, both the ifindex and identifier of the specified
6782 * wireless device are added to the event message before the vendor data
6783 * attribute.
6784 *
6785 * When done filling the skb, call cfg80211_vendor_event() with the
6786 * skb to send the event.
6787 *
6788 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
6789 */
6790static inline struct sk_buff *
6791cfg80211_vendor_event_alloc(struct wiphy *wiphy, struct wireless_dev *wdev,
6792			     int approxlen, int event_idx, gfp_t gfp)
6793{
6794	return __cfg80211_alloc_event_skb(wiphy, wdev, NL80211_CMD_VENDOR,
6795					  NL80211_ATTR_VENDOR_DATA,
6796					  0, event_idx, approxlen, gfp);
6797}
6798
6799/**
6800 * cfg80211_vendor_event_alloc_ucast - alloc unicast vendor-specific event skb
6801 * @wiphy: the wiphy
6802 * @wdev: the wireless device
6803 * @event_idx: index of the vendor event in the wiphy's vendor_events
6804 * @portid: port ID of the receiver
6805 * @approxlen: an upper bound of the length of the data that will
6806 *	be put into the skb
6807 * @gfp: allocation flags
6808 *
6809 * This function allocates and pre-fills an skb for an event to send to
6810 * a specific (userland) socket. This socket would previously have been
6811 * obtained by cfg80211_vendor_cmd_get_sender(), and the caller MUST take
6812 * care to register a netlink notifier to see when the socket closes.
6813 *
6814 * If wdev != NULL, both the ifindex and identifier of the specified
6815 * wireless device are added to the event message before the vendor data
6816 * attribute.
6817 *
6818 * When done filling the skb, call cfg80211_vendor_event() with the
6819 * skb to send the event.
6820 *
6821 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
6822 */
6823static inline struct sk_buff *
6824cfg80211_vendor_event_alloc_ucast(struct wiphy *wiphy,
6825				  struct wireless_dev *wdev,
6826				  unsigned int portid, int approxlen,
6827				  int event_idx, gfp_t gfp)
6828{
6829	return __cfg80211_alloc_event_skb(wiphy, wdev, NL80211_CMD_VENDOR,
6830					  NL80211_ATTR_VENDOR_DATA,
6831					  portid, event_idx, approxlen, gfp);
6832}
6833
6834/**
6835 * cfg80211_vendor_event - send the event
6836 * @skb: The skb, must have been allocated with cfg80211_vendor_event_alloc()
6837 * @gfp: allocation flags
6838 *
6839 * This function sends the given @skb, which must have been allocated
6840 * by cfg80211_vendor_event_alloc(), as an event. It always consumes it.
6841 */
6842static inline void cfg80211_vendor_event(struct sk_buff *skb, gfp_t gfp)
6843{
6844	__cfg80211_send_event_skb(skb, gfp);
6845}
6846
6847#ifdef CONFIG_NL80211_TESTMODE
6848/**
6849 * DOC: Test mode
6850 *
6851 * Test mode is a set of utility functions to allow drivers to
6852 * interact with driver-specific tools to aid, for instance,
6853 * factory programming.
6854 *
6855 * This chapter describes how drivers interact with it, for more
6856 * information see the nl80211 book's chapter on it.
6857 */
6858
6859/**
6860 * cfg80211_testmode_alloc_reply_skb - allocate testmode reply
6861 * @wiphy: the wiphy
6862 * @approxlen: an upper bound of the length of the data that will
6863 *	be put into the skb
6864 *
6865 * This function allocates and pre-fills an skb for a reply to
6866 * the testmode command. Since it is intended for a reply, calling
6867 * it outside of the @testmode_cmd operation is invalid.
6868 *
6869 * The returned skb is pre-filled with the wiphy index and set up in
6870 * a way that any data that is put into the skb (with skb_put(),
6871 * nla_put() or similar) will end up being within the
6872 * %NL80211_ATTR_TESTDATA attribute, so all that needs to be done
6873 * with the skb is adding data for the corresponding userspace tool
6874 * which can then read that data out of the testdata attribute. You
6875 * must not modify the skb in any other way.
6876 *
6877 * When done, call cfg80211_testmode_reply() with the skb and return
6878 * its error code as the result of the @testmode_cmd operation.
6879 *
6880 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
6881 */
6882static inline struct sk_buff *
6883cfg80211_testmode_alloc_reply_skb(struct wiphy *wiphy, int approxlen)
6884{
6885	return __cfg80211_alloc_reply_skb(wiphy, NL80211_CMD_TESTMODE,
6886					  NL80211_ATTR_TESTDATA, approxlen);
6887}
6888
6889/**
6890 * cfg80211_testmode_reply - send the reply skb
6891 * @skb: The skb, must have been allocated with
6892 *	cfg80211_testmode_alloc_reply_skb()
6893 *
6894 * Since calling this function will usually be the last thing
6895 * before returning from the @testmode_cmd you should return
6896 * the error code.  Note that this function consumes the skb
6897 * regardless of the return value.
6898 *
6899 * Return: An error code or 0 on success.
6900 */
6901static inline int cfg80211_testmode_reply(struct sk_buff *skb)
6902{
6903	return cfg80211_vendor_cmd_reply(skb);
6904}
6905
6906/**
6907 * cfg80211_testmode_alloc_event_skb - allocate testmode event
6908 * @wiphy: the wiphy
6909 * @approxlen: an upper bound of the length of the data that will
6910 *	be put into the skb
6911 * @gfp: allocation flags
6912 *
6913 * This function allocates and pre-fills an skb for an event on the
6914 * testmode multicast group.
6915 *
6916 * The returned skb is set up in the same way as with
6917 * cfg80211_testmode_alloc_reply_skb() but prepared for an event. As
6918 * there, you should simply add data to it that will then end up in the
6919 * %NL80211_ATTR_TESTDATA attribute. Again, you must not modify the skb
6920 * in any other way.
6921 *
6922 * When done filling the skb, call cfg80211_testmode_event() with the
6923 * skb to send the event.
6924 *
6925 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
6926 */
6927static inline struct sk_buff *
6928cfg80211_testmode_alloc_event_skb(struct wiphy *wiphy, int approxlen, gfp_t gfp)
6929{
6930	return __cfg80211_alloc_event_skb(wiphy, NULL, NL80211_CMD_TESTMODE,
6931					  NL80211_ATTR_TESTDATA, 0, -1,
6932					  approxlen, gfp);
6933}
6934
6935/**
6936 * cfg80211_testmode_event - send the event
6937 * @skb: The skb, must have been allocated with
6938 *	cfg80211_testmode_alloc_event_skb()
6939 * @gfp: allocation flags
6940 *
6941 * This function sends the given @skb, which must have been allocated
6942 * by cfg80211_testmode_alloc_event_skb(), as an event. It always
6943 * consumes it.
6944 */
6945static inline void cfg80211_testmode_event(struct sk_buff *skb, gfp_t gfp)
6946{
6947	__cfg80211_send_event_skb(skb, gfp);
6948}
6949
6950#define CFG80211_TESTMODE_CMD(cmd)	.testmode_cmd = (cmd),
6951#define CFG80211_TESTMODE_DUMP(cmd)	.testmode_dump = (cmd),
6952#else
6953#define CFG80211_TESTMODE_CMD(cmd)
6954#define CFG80211_TESTMODE_DUMP(cmd)
6955#endif
6956
6957/**
6958 * struct cfg80211_fils_resp_params - FILS connection response params
6959 * @kek: KEK derived from a successful FILS connection (may be %NULL)
6960 * @kek_len: Length of @fils_kek in octets
6961 * @update_erp_next_seq_num: Boolean value to specify whether the value in
6962 *	@erp_next_seq_num is valid.
6963 * @erp_next_seq_num: The next sequence number to use in ERP message in
6964 *	FILS Authentication. This value should be specified irrespective of the
6965 *	status for a FILS connection.
6966 * @pmk: A new PMK if derived from a successful FILS connection (may be %NULL).
6967 * @pmk_len: Length of @pmk in octets
6968 * @pmkid: A new PMKID if derived from a successful FILS connection or the PMKID
6969 *	used for this FILS connection (may be %NULL).
6970 */
6971struct cfg80211_fils_resp_params {
6972	const u8 *kek;
6973	size_t kek_len;
6974	bool update_erp_next_seq_num;
6975	u16 erp_next_seq_num;
6976	const u8 *pmk;
6977	size_t pmk_len;
6978	const u8 *pmkid;
6979};
6980
6981/**
6982 * struct cfg80211_connect_resp_params - Connection response params
6983 * @status: Status code, %WLAN_STATUS_SUCCESS for successful connection, use
6984 *	%WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you
6985 *	the real status code for failures. If this call is used to report a
6986 *	failure due to a timeout (e.g., not receiving an Authentication frame
6987 *	from the AP) instead of an explicit rejection by the AP, -1 is used to
6988 *	indicate that this is a failure, but without a status code.
6989 *	@timeout_reason is used to report the reason for the timeout in that
6990 *	case.
6991 * @bssid: The BSSID of the AP (may be %NULL)
6992 * @bss: Entry of bss to which STA got connected to, can be obtained through
6993 *	cfg80211_get_bss() (may be %NULL). But it is recommended to store the
6994 *	bss from the connect_request and hold a reference to it and return
6995 *	through this param to avoid a warning if the bss is expired during the
6996 *	connection, esp. for those drivers implementing connect op.
6997 *	Only one parameter among @bssid and @bss needs to be specified.
6998 * @req_ie: Association request IEs (may be %NULL)
6999 * @req_ie_len: Association request IEs length
7000 * @resp_ie: Association response IEs (may be %NULL)
7001 * @resp_ie_len: Association response IEs length
7002 * @fils: FILS connection response parameters.
7003 * @timeout_reason: Reason for connection timeout. This is used when the
7004 *	connection fails due to a timeout instead of an explicit rejection from
7005 *	the AP. %NL80211_TIMEOUT_UNSPECIFIED is used when the timeout reason is
7006 *	not known. This value is used only if @status < 0 to indicate that the
7007 *	failure is due to a timeout and not due to explicit rejection by the AP.
7008 *	This value is ignored in other cases (@status >= 0).
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
7009 */
7010struct cfg80211_connect_resp_params {
7011	int status;
7012	const u8 *bssid;
7013	struct cfg80211_bss *bss;
7014	const u8 *req_ie;
7015	size_t req_ie_len;
7016	const u8 *resp_ie;
7017	size_t resp_ie_len;
7018	struct cfg80211_fils_resp_params fils;
7019	enum nl80211_timeout_reason timeout_reason;
 
 
 
 
 
 
 
 
 
7020};
7021
7022/**
7023 * cfg80211_connect_done - notify cfg80211 of connection result
7024 *
7025 * @dev: network device
7026 * @params: connection response parameters
7027 * @gfp: allocation flags
7028 *
7029 * It should be called by the underlying driver once execution of the connection
7030 * request from connect() has been completed. This is similar to
7031 * cfg80211_connect_bss(), but takes a structure pointer for connection response
7032 * parameters. Only one of the functions among cfg80211_connect_bss(),
7033 * cfg80211_connect_result(), cfg80211_connect_timeout(),
7034 * and cfg80211_connect_done() should be called.
7035 */
7036void cfg80211_connect_done(struct net_device *dev,
7037			   struct cfg80211_connect_resp_params *params,
7038			   gfp_t gfp);
7039
7040/**
7041 * cfg80211_connect_bss - notify cfg80211 of connection result
7042 *
7043 * @dev: network device
7044 * @bssid: the BSSID of the AP
7045 * @bss: Entry of bss to which STA got connected to, can be obtained through
7046 *	cfg80211_get_bss() (may be %NULL). But it is recommended to store the
7047 *	bss from the connect_request and hold a reference to it and return
7048 *	through this param to avoid a warning if the bss is expired during the
7049 *	connection, esp. for those drivers implementing connect op.
7050 *	Only one parameter among @bssid and @bss needs to be specified.
7051 * @req_ie: association request IEs (maybe be %NULL)
7052 * @req_ie_len: association request IEs length
7053 * @resp_ie: association response IEs (may be %NULL)
7054 * @resp_ie_len: assoc response IEs length
7055 * @status: status code, %WLAN_STATUS_SUCCESS for successful connection, use
7056 *	%WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you
7057 *	the real status code for failures. If this call is used to report a
7058 *	failure due to a timeout (e.g., not receiving an Authentication frame
7059 *	from the AP) instead of an explicit rejection by the AP, -1 is used to
7060 *	indicate that this is a failure, but without a status code.
7061 *	@timeout_reason is used to report the reason for the timeout in that
7062 *	case.
7063 * @gfp: allocation flags
7064 * @timeout_reason: reason for connection timeout. This is used when the
7065 *	connection fails due to a timeout instead of an explicit rejection from
7066 *	the AP. %NL80211_TIMEOUT_UNSPECIFIED is used when the timeout reason is
7067 *	not known. This value is used only if @status < 0 to indicate that the
7068 *	failure is due to a timeout and not due to explicit rejection by the AP.
7069 *	This value is ignored in other cases (@status >= 0).
7070 *
7071 * It should be called by the underlying driver once execution of the connection
7072 * request from connect() has been completed. This is similar to
7073 * cfg80211_connect_result(), but with the option of identifying the exact bss
7074 * entry for the connection. Only one of the functions among
7075 * cfg80211_connect_bss(), cfg80211_connect_result(),
7076 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called.
7077 */
7078static inline void
7079cfg80211_connect_bss(struct net_device *dev, const u8 *bssid,
7080		     struct cfg80211_bss *bss, const u8 *req_ie,
7081		     size_t req_ie_len, const u8 *resp_ie,
7082		     size_t resp_ie_len, int status, gfp_t gfp,
7083		     enum nl80211_timeout_reason timeout_reason)
7084{
7085	struct cfg80211_connect_resp_params params;
7086
7087	memset(&params, 0, sizeof(params));
7088	params.status = status;
7089	params.bssid = bssid;
7090	params.bss = bss;
7091	params.req_ie = req_ie;
7092	params.req_ie_len = req_ie_len;
7093	params.resp_ie = resp_ie;
7094	params.resp_ie_len = resp_ie_len;
7095	params.timeout_reason = timeout_reason;
7096
7097	cfg80211_connect_done(dev, &params, gfp);
7098}
7099
7100/**
7101 * cfg80211_connect_result - notify cfg80211 of connection result
7102 *
7103 * @dev: network device
7104 * @bssid: the BSSID of the AP
7105 * @req_ie: association request IEs (maybe be %NULL)
7106 * @req_ie_len: association request IEs length
7107 * @resp_ie: association response IEs (may be %NULL)
7108 * @resp_ie_len: assoc response IEs length
7109 * @status: status code, %WLAN_STATUS_SUCCESS for successful connection, use
7110 *	%WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you
7111 *	the real status code for failures.
7112 * @gfp: allocation flags
7113 *
7114 * It should be called by the underlying driver once execution of the connection
7115 * request from connect() has been completed. This is similar to
7116 * cfg80211_connect_bss() which allows the exact bss entry to be specified. Only
7117 * one of the functions among cfg80211_connect_bss(), cfg80211_connect_result(),
7118 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called.
7119 */
7120static inline void
7121cfg80211_connect_result(struct net_device *dev, const u8 *bssid,
7122			const u8 *req_ie, size_t req_ie_len,
7123			const u8 *resp_ie, size_t resp_ie_len,
7124			u16 status, gfp_t gfp)
7125{
7126	cfg80211_connect_bss(dev, bssid, NULL, req_ie, req_ie_len, resp_ie,
7127			     resp_ie_len, status, gfp,
7128			     NL80211_TIMEOUT_UNSPECIFIED);
7129}
7130
7131/**
7132 * cfg80211_connect_timeout - notify cfg80211 of connection timeout
7133 *
7134 * @dev: network device
7135 * @bssid: the BSSID of the AP
7136 * @req_ie: association request IEs (maybe be %NULL)
7137 * @req_ie_len: association request IEs length
7138 * @gfp: allocation flags
7139 * @timeout_reason: reason for connection timeout.
7140 *
7141 * It should be called by the underlying driver whenever connect() has failed
7142 * in a sequence where no explicit authentication/association rejection was
7143 * received from the AP. This could happen, e.g., due to not being able to send
7144 * out the Authentication or Association Request frame or timing out while
7145 * waiting for the response. Only one of the functions among
7146 * cfg80211_connect_bss(), cfg80211_connect_result(),
7147 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called.
7148 */
7149static inline void
7150cfg80211_connect_timeout(struct net_device *dev, const u8 *bssid,
7151			 const u8 *req_ie, size_t req_ie_len, gfp_t gfp,
7152			 enum nl80211_timeout_reason timeout_reason)
7153{
7154	cfg80211_connect_bss(dev, bssid, NULL, req_ie, req_ie_len, NULL, 0, -1,
7155			     gfp, timeout_reason);
7156}
7157
7158/**
7159 * struct cfg80211_roam_info - driver initiated roaming information
7160 *
7161 * @channel: the channel of the new AP
7162 * @bss: entry of bss to which STA got roamed (may be %NULL if %bssid is set)
7163 * @bssid: the BSSID of the new AP (may be %NULL if %bss is set)
7164 * @req_ie: association request IEs (maybe be %NULL)
7165 * @req_ie_len: association request IEs length
7166 * @resp_ie: association response IEs (may be %NULL)
7167 * @resp_ie_len: assoc response IEs length
7168 * @fils: FILS related roaming information.
 
 
 
 
 
 
 
 
 
 
 
 
 
7169 */
7170struct cfg80211_roam_info {
7171	struct ieee80211_channel *channel;
7172	struct cfg80211_bss *bss;
7173	const u8 *bssid;
7174	const u8 *req_ie;
7175	size_t req_ie_len;
7176	const u8 *resp_ie;
7177	size_t resp_ie_len;
7178	struct cfg80211_fils_resp_params fils;
 
 
 
 
 
 
 
 
 
7179};
7180
7181/**
7182 * cfg80211_roamed - notify cfg80211 of roaming
7183 *
7184 * @dev: network device
7185 * @info: information about the new BSS. struct &cfg80211_roam_info.
7186 * @gfp: allocation flags
7187 *
7188 * This function may be called with the driver passing either the BSSID of the
7189 * new AP or passing the bss entry to avoid a race in timeout of the bss entry.
7190 * It should be called by the underlying driver whenever it roamed from one AP
7191 * to another while connected. Drivers which have roaming implemented in
7192 * firmware should pass the bss entry to avoid a race in bss entry timeout where
7193 * the bss entry of the new AP is seen in the driver, but gets timed out by the
7194 * time it is accessed in __cfg80211_roamed() due to delay in scheduling
7195 * rdev->event_work. In case of any failures, the reference is released
7196 * either in cfg80211_roamed() or in __cfg80211_romed(), Otherwise, it will be
7197 * released while disconnecting from the current bss.
7198 */
7199void cfg80211_roamed(struct net_device *dev, struct cfg80211_roam_info *info,
7200		     gfp_t gfp);
7201
7202/**
7203 * cfg80211_port_authorized - notify cfg80211 of successful security association
7204 *
7205 * @dev: network device
7206 * @bssid: the BSSID of the AP
 
 
7207 * @gfp: allocation flags
7208 *
7209 * This function should be called by a driver that supports 4 way handshake
7210 * offload after a security association was successfully established (i.e.,
7211 * the 4 way handshake was completed successfully). The call to this function
7212 * should be preceded with a call to cfg80211_connect_result(),
7213 * cfg80211_connect_done(), cfg80211_connect_bss() or cfg80211_roamed() to
7214 * indicate the 802.11 association.
7215 */
7216void cfg80211_port_authorized(struct net_device *dev, const u8 *bssid,
7217			      gfp_t gfp);
7218
7219/**
7220 * cfg80211_disconnected - notify cfg80211 that connection was dropped
7221 *
7222 * @dev: network device
7223 * @ie: information elements of the deauth/disassoc frame (may be %NULL)
7224 * @ie_len: length of IEs
7225 * @reason: reason code for the disconnection, set it to 0 if unknown
7226 * @locally_generated: disconnection was requested locally
7227 * @gfp: allocation flags
7228 *
7229 * After it calls this function, the driver should enter an idle state
7230 * and not try to connect to any AP any more.
7231 */
7232void cfg80211_disconnected(struct net_device *dev, u16 reason,
7233			   const u8 *ie, size_t ie_len,
7234			   bool locally_generated, gfp_t gfp);
7235
7236/**
7237 * cfg80211_ready_on_channel - notification of remain_on_channel start
7238 * @wdev: wireless device
7239 * @cookie: the request cookie
7240 * @chan: The current channel (from remain_on_channel request)
7241 * @duration: Duration in milliseconds that the driver intents to remain on the
7242 *	channel
7243 * @gfp: allocation flags
7244 */
7245void cfg80211_ready_on_channel(struct wireless_dev *wdev, u64 cookie,
7246			       struct ieee80211_channel *chan,
7247			       unsigned int duration, gfp_t gfp);
7248
7249/**
7250 * cfg80211_remain_on_channel_expired - remain_on_channel duration expired
7251 * @wdev: wireless device
7252 * @cookie: the request cookie
7253 * @chan: The current channel (from remain_on_channel request)
7254 * @gfp: allocation flags
7255 */
7256void cfg80211_remain_on_channel_expired(struct wireless_dev *wdev, u64 cookie,
7257					struct ieee80211_channel *chan,
7258					gfp_t gfp);
7259
7260/**
7261 * cfg80211_tx_mgmt_expired - tx_mgmt duration expired
7262 * @wdev: wireless device
7263 * @cookie: the requested cookie
7264 * @chan: The current channel (from tx_mgmt request)
7265 * @gfp: allocation flags
7266 */
7267void cfg80211_tx_mgmt_expired(struct wireless_dev *wdev, u64 cookie,
7268			      struct ieee80211_channel *chan, gfp_t gfp);
7269
7270/**
7271 * cfg80211_sinfo_alloc_tid_stats - allocate per-tid statistics.
7272 *
7273 * @sinfo: the station information
7274 * @gfp: allocation flags
7275 */
7276int cfg80211_sinfo_alloc_tid_stats(struct station_info *sinfo, gfp_t gfp);
7277
7278/**
7279 * cfg80211_sinfo_release_content - release contents of station info
7280 * @sinfo: the station information
7281 *
7282 * Releases any potentially allocated sub-information of the station
7283 * information, but not the struct itself (since it's typically on
7284 * the stack.)
7285 */
7286static inline void cfg80211_sinfo_release_content(struct station_info *sinfo)
7287{
7288	kfree(sinfo->pertid);
7289}
7290
7291/**
7292 * cfg80211_new_sta - notify userspace about station
7293 *
7294 * @dev: the netdev
7295 * @mac_addr: the station's address
7296 * @sinfo: the station information
7297 * @gfp: allocation flags
7298 */
7299void cfg80211_new_sta(struct net_device *dev, const u8 *mac_addr,
7300		      struct station_info *sinfo, gfp_t gfp);
7301
7302/**
7303 * cfg80211_del_sta_sinfo - notify userspace about deletion of a station
7304 * @dev: the netdev
7305 * @mac_addr: the station's address
7306 * @sinfo: the station information/statistics
7307 * @gfp: allocation flags
7308 */
7309void cfg80211_del_sta_sinfo(struct net_device *dev, const u8 *mac_addr,
7310			    struct station_info *sinfo, gfp_t gfp);
7311
7312/**
7313 * cfg80211_del_sta - notify userspace about deletion of a station
7314 *
7315 * @dev: the netdev
7316 * @mac_addr: the station's address
7317 * @gfp: allocation flags
7318 */
7319static inline void cfg80211_del_sta(struct net_device *dev,
7320				    const u8 *mac_addr, gfp_t gfp)
7321{
7322	cfg80211_del_sta_sinfo(dev, mac_addr, NULL, gfp);
7323}
7324
7325/**
7326 * cfg80211_conn_failed - connection request failed notification
7327 *
7328 * @dev: the netdev
7329 * @mac_addr: the station's address
7330 * @reason: the reason for connection failure
7331 * @gfp: allocation flags
7332 *
7333 * Whenever a station tries to connect to an AP and if the station
7334 * could not connect to the AP as the AP has rejected the connection
7335 * for some reasons, this function is called.
7336 *
7337 * The reason for connection failure can be any of the value from
7338 * nl80211_connect_failed_reason enum
7339 */
7340void cfg80211_conn_failed(struct net_device *dev, const u8 *mac_addr,
7341			  enum nl80211_connect_failed_reason reason,
7342			  gfp_t gfp);
7343
7344/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
7345 * cfg80211_rx_mgmt_khz - notification of received, unprocessed management frame
7346 * @wdev: wireless device receiving the frame
7347 * @freq: Frequency on which the frame was received in KHz
7348 * @sig_dbm: signal strength in dBm, or 0 if unknown
7349 * @buf: Management frame (header + body)
7350 * @len: length of the frame data
7351 * @flags: flags, as defined in enum nl80211_rxmgmt_flags
7352 *
7353 * This function is called whenever an Action frame is received for a station
7354 * mode interface, but is not processed in kernel.
7355 *
7356 * Return: %true if a user space application has registered for this frame.
7357 * For action frames, that makes it responsible for rejecting unrecognized
7358 * action frames; %false otherwise, in which case for action frames the
7359 * driver is responsible for rejecting the frame.
7360 */
7361bool cfg80211_rx_mgmt_khz(struct wireless_dev *wdev, int freq, int sig_dbm,
7362			  const u8 *buf, size_t len, u32 flags);
 
 
 
 
 
 
 
 
 
 
 
 
7363
7364/**
7365 * cfg80211_rx_mgmt - notification of received, unprocessed management frame
7366 * @wdev: wireless device receiving the frame
7367 * @freq: Frequency on which the frame was received in MHz
7368 * @sig_dbm: signal strength in dBm, or 0 if unknown
7369 * @buf: Management frame (header + body)
7370 * @len: length of the frame data
7371 * @flags: flags, as defined in enum nl80211_rxmgmt_flags
7372 *
7373 * This function is called whenever an Action frame is received for a station
7374 * mode interface, but is not processed in kernel.
7375 *
7376 * Return: %true if a user space application has registered for this frame.
7377 * For action frames, that makes it responsible for rejecting unrecognized
7378 * action frames; %false otherwise, in which case for action frames the
7379 * driver is responsible for rejecting the frame.
7380 */
7381static inline bool cfg80211_rx_mgmt(struct wireless_dev *wdev, int freq,
7382				    int sig_dbm, const u8 *buf, size_t len,
7383				    u32 flags)
7384{
7385	return cfg80211_rx_mgmt_khz(wdev, MHZ_TO_KHZ(freq), sig_dbm, buf, len,
7386				    flags);
 
 
 
 
 
 
 
7387}
7388
7389/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
7390 * cfg80211_mgmt_tx_status - notification of TX status for management frame
7391 * @wdev: wireless device receiving the frame
7392 * @cookie: Cookie returned by cfg80211_ops::mgmt_tx()
7393 * @buf: Management frame (header + body)
7394 * @len: length of the frame data
7395 * @ack: Whether frame was acknowledged
7396 * @gfp: context flags
7397 *
7398 * This function is called whenever a management frame was requested to be
7399 * transmitted with cfg80211_ops::mgmt_tx() to report the TX status of the
7400 * transmission attempt.
7401 */
7402void cfg80211_mgmt_tx_status(struct wireless_dev *wdev, u64 cookie,
7403			     const u8 *buf, size_t len, bool ack, gfp_t gfp);
 
 
 
 
 
 
 
 
 
 
 
7404
7405/**
7406 * cfg80211_control_port_tx_status - notification of TX status for control
7407 *                                   port frames
7408 * @wdev: wireless device receiving the frame
7409 * @cookie: Cookie returned by cfg80211_ops::tx_control_port()
7410 * @buf: Data frame (header + body)
7411 * @len: length of the frame data
7412 * @ack: Whether frame was acknowledged
7413 * @gfp: context flags
7414 *
7415 * This function is called whenever a control port frame was requested to be
7416 * transmitted with cfg80211_ops::tx_control_port() to report the TX status of
7417 * the transmission attempt.
7418 */
7419void cfg80211_control_port_tx_status(struct wireless_dev *wdev, u64 cookie,
7420				     const u8 *buf, size_t len, bool ack,
7421				     gfp_t gfp);
7422
7423/**
7424 * cfg80211_rx_control_port - notification about a received control port frame
7425 * @dev: The device the frame matched to
7426 * @skb: The skbuf with the control port frame.  It is assumed that the skbuf
7427 *	is 802.3 formatted (with 802.3 header).  The skb can be non-linear.
7428 *	This function does not take ownership of the skb, so the caller is
7429 *	responsible for any cleanup.  The caller must also ensure that
7430 *	skb->protocol is set appropriately.
7431 * @unencrypted: Whether the frame was received unencrypted
7432 *
7433 * This function is used to inform userspace about a received control port
7434 * frame.  It should only be used if userspace indicated it wants to receive
7435 * control port frames over nl80211.
7436 *
7437 * The frame is the data portion of the 802.3 or 802.11 data frame with all
7438 * network layer headers removed (e.g. the raw EAPoL frame).
7439 *
7440 * Return: %true if the frame was passed to userspace
7441 */
7442bool cfg80211_rx_control_port(struct net_device *dev,
7443			      struct sk_buff *skb, bool unencrypted);
7444
7445/**
7446 * cfg80211_cqm_rssi_notify - connection quality monitoring rssi event
7447 * @dev: network device
7448 * @rssi_event: the triggered RSSI event
7449 * @rssi_level: new RSSI level value or 0 if not available
7450 * @gfp: context flags
7451 *
7452 * This function is called when a configured connection quality monitoring
7453 * rssi threshold reached event occurs.
7454 */
7455void cfg80211_cqm_rssi_notify(struct net_device *dev,
7456			      enum nl80211_cqm_rssi_threshold_event rssi_event,
7457			      s32 rssi_level, gfp_t gfp);
7458
7459/**
7460 * cfg80211_cqm_pktloss_notify - notify userspace about packetloss to peer
7461 * @dev: network device
7462 * @peer: peer's MAC address
7463 * @num_packets: how many packets were lost -- should be a fixed threshold
7464 *	but probably no less than maybe 50, or maybe a throughput dependent
7465 *	threshold (to account for temporary interference)
7466 * @gfp: context flags
7467 */
7468void cfg80211_cqm_pktloss_notify(struct net_device *dev,
7469				 const u8 *peer, u32 num_packets, gfp_t gfp);
7470
7471/**
7472 * cfg80211_cqm_txe_notify - TX error rate event
7473 * @dev: network device
7474 * @peer: peer's MAC address
7475 * @num_packets: how many packets were lost
7476 * @rate: % of packets which failed transmission
7477 * @intvl: interval (in s) over which the TX failure threshold was breached.
7478 * @gfp: context flags
7479 *
7480 * Notify userspace when configured % TX failures over number of packets in a
7481 * given interval is exceeded.
7482 */
7483void cfg80211_cqm_txe_notify(struct net_device *dev, const u8 *peer,
7484			     u32 num_packets, u32 rate, u32 intvl, gfp_t gfp);
7485
7486/**
7487 * cfg80211_cqm_beacon_loss_notify - beacon loss event
7488 * @dev: network device
7489 * @gfp: context flags
7490 *
7491 * Notify userspace about beacon loss from the connected AP.
7492 */
7493void cfg80211_cqm_beacon_loss_notify(struct net_device *dev, gfp_t gfp);
7494
7495/**
7496 * cfg80211_radar_event - radar detection event
7497 * @wiphy: the wiphy
7498 * @chandef: chandef for the current channel
 
7499 * @gfp: context flags
7500 *
7501 * This function is called when a radar is detected on the current chanenl.
7502 */
7503void cfg80211_radar_event(struct wiphy *wiphy,
7504			  struct cfg80211_chan_def *chandef, gfp_t gfp);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
7505
7506/**
7507 * cfg80211_sta_opmode_change_notify - STA's ht/vht operation mode change event
7508 * @dev: network device
7509 * @mac: MAC address of a station which opmode got modified
7510 * @sta_opmode: station's current opmode value
7511 * @gfp: context flags
7512 *
7513 * Driver should call this function when station's opmode modified via action
7514 * frame.
7515 */
7516void cfg80211_sta_opmode_change_notify(struct net_device *dev, const u8 *mac,
7517				       struct sta_opmode_info *sta_opmode,
7518				       gfp_t gfp);
7519
7520/**
7521 * cfg80211_cac_event - Channel availability check (CAC) event
7522 * @netdev: network device
7523 * @chandef: chandef for the current channel
7524 * @event: type of event
7525 * @gfp: context flags
7526 *
7527 * This function is called when a Channel availability check (CAC) is finished
7528 * or aborted. This must be called to notify the completion of a CAC process,
7529 * also by full-MAC drivers.
7530 */
7531void cfg80211_cac_event(struct net_device *netdev,
7532			const struct cfg80211_chan_def *chandef,
7533			enum nl80211_radar_event event, gfp_t gfp);
7534
 
 
 
 
 
 
 
 
7535
7536/**
7537 * cfg80211_gtk_rekey_notify - notify userspace about driver rekeying
7538 * @dev: network device
7539 * @bssid: BSSID of AP (to avoid races)
7540 * @replay_ctr: new replay counter
7541 * @gfp: allocation flags
7542 */
7543void cfg80211_gtk_rekey_notify(struct net_device *dev, const u8 *bssid,
7544			       const u8 *replay_ctr, gfp_t gfp);
7545
7546/**
7547 * cfg80211_pmksa_candidate_notify - notify about PMKSA caching candidate
7548 * @dev: network device
7549 * @index: candidate index (the smaller the index, the higher the priority)
7550 * @bssid: BSSID of AP
7551 * @preauth: Whether AP advertises support for RSN pre-authentication
7552 * @gfp: allocation flags
7553 */
7554void cfg80211_pmksa_candidate_notify(struct net_device *dev, int index,
7555				     const u8 *bssid, bool preauth, gfp_t gfp);
7556
7557/**
7558 * cfg80211_rx_spurious_frame - inform userspace about a spurious frame
7559 * @dev: The device the frame matched to
7560 * @addr: the transmitter address
7561 * @gfp: context flags
7562 *
7563 * This function is used in AP mode (only!) to inform userspace that
7564 * a spurious class 3 frame was received, to be able to deauth the
7565 * sender.
7566 * Return: %true if the frame was passed to userspace (or this failed
7567 * for a reason other than not having a subscription.)
7568 */
7569bool cfg80211_rx_spurious_frame(struct net_device *dev,
7570				const u8 *addr, gfp_t gfp);
7571
7572/**
7573 * cfg80211_rx_unexpected_4addr_frame - inform about unexpected WDS frame
7574 * @dev: The device the frame matched to
7575 * @addr: the transmitter address
7576 * @gfp: context flags
7577 *
7578 * This function is used in AP mode (only!) to inform userspace that
7579 * an associated station sent a 4addr frame but that wasn't expected.
7580 * It is allowed and desirable to send this event only once for each
7581 * station to avoid event flooding.
7582 * Return: %true if the frame was passed to userspace (or this failed
7583 * for a reason other than not having a subscription.)
7584 */
7585bool cfg80211_rx_unexpected_4addr_frame(struct net_device *dev,
7586					const u8 *addr, gfp_t gfp);
7587
7588/**
7589 * cfg80211_probe_status - notify userspace about probe status
7590 * @dev: the device the probe was sent on
7591 * @addr: the address of the peer
7592 * @cookie: the cookie filled in @probe_client previously
7593 * @acked: indicates whether probe was acked or not
7594 * @ack_signal: signal strength (in dBm) of the ACK frame.
7595 * @is_valid_ack_signal: indicates the ack_signal is valid or not.
7596 * @gfp: allocation flags
7597 */
7598void cfg80211_probe_status(struct net_device *dev, const u8 *addr,
7599			   u64 cookie, bool acked, s32 ack_signal,
7600			   bool is_valid_ack_signal, gfp_t gfp);
7601
7602/**
7603 * cfg80211_report_obss_beacon_khz - report beacon from other APs
7604 * @wiphy: The wiphy that received the beacon
7605 * @frame: the frame
7606 * @len: length of the frame
7607 * @freq: frequency the frame was received on in KHz
7608 * @sig_dbm: signal strength in dBm, or 0 if unknown
7609 *
7610 * Use this function to report to userspace when a beacon was
7611 * received. It is not useful to call this when there is no
7612 * netdev that is in AP/GO mode.
7613 */
7614void cfg80211_report_obss_beacon_khz(struct wiphy *wiphy, const u8 *frame,
7615				     size_t len, int freq, int sig_dbm);
7616
7617/**
7618 * cfg80211_report_obss_beacon - report beacon from other APs
7619 * @wiphy: The wiphy that received the beacon
7620 * @frame: the frame
7621 * @len: length of the frame
7622 * @freq: frequency the frame was received on
7623 * @sig_dbm: signal strength in dBm, or 0 if unknown
7624 *
7625 * Use this function to report to userspace when a beacon was
7626 * received. It is not useful to call this when there is no
7627 * netdev that is in AP/GO mode.
7628 */
7629static inline void cfg80211_report_obss_beacon(struct wiphy *wiphy,
7630					       const u8 *frame, size_t len,
7631					       int freq, int sig_dbm)
7632{
7633	cfg80211_report_obss_beacon_khz(wiphy, frame, len, MHZ_TO_KHZ(freq),
7634					sig_dbm);
7635}
7636
7637/**
7638 * cfg80211_reg_can_beacon - check if beaconing is allowed
7639 * @wiphy: the wiphy
7640 * @chandef: the channel definition
7641 * @iftype: interface type
7642 *
7643 * Return: %true if there is no secondary channel or the secondary channel(s)
7644 * can be used for beaconing (i.e. is not a radar channel etc.)
7645 */
7646bool cfg80211_reg_can_beacon(struct wiphy *wiphy,
7647			     struct cfg80211_chan_def *chandef,
7648			     enum nl80211_iftype iftype);
7649
7650/**
7651 * cfg80211_reg_can_beacon_relax - check if beaconing is allowed with relaxation
7652 * @wiphy: the wiphy
7653 * @chandef: the channel definition
7654 * @iftype: interface type
7655 *
7656 * Return: %true if there is no secondary channel or the secondary channel(s)
7657 * can be used for beaconing (i.e. is not a radar channel etc.). This version
7658 * also checks if IR-relaxation conditions apply, to allow beaconing under
7659 * more permissive conditions.
7660 *
7661 * Requires the wiphy mutex to be held.
7662 */
7663bool cfg80211_reg_can_beacon_relax(struct wiphy *wiphy,
7664				   struct cfg80211_chan_def *chandef,
7665				   enum nl80211_iftype iftype);
7666
7667/*
7668 * cfg80211_ch_switch_notify - update wdev channel and notify userspace
7669 * @dev: the device which switched channels
7670 * @chandef: the new channel definition
 
7671 *
7672 * Caller must acquire wdev_lock, therefore must only be called from sleepable
7673 * driver context!
7674 */
7675void cfg80211_ch_switch_notify(struct net_device *dev,
7676			       struct cfg80211_chan_def *chandef);
 
7677
7678/*
7679 * cfg80211_ch_switch_started_notify - notify channel switch start
7680 * @dev: the device on which the channel switch started
7681 * @chandef: the future channel definition
 
7682 * @count: the number of TBTTs until the channel switch happens
7683 * @quiet: whether or not immediate quiet was requested by the AP
7684 *
7685 * Inform the userspace about the channel switch that has just
7686 * started, so that it can take appropriate actions (eg. starting
7687 * channel switch on other vifs), if necessary.
7688 */
7689void cfg80211_ch_switch_started_notify(struct net_device *dev,
7690				       struct cfg80211_chan_def *chandef,
7691				       u8 count, bool quiet);
 
7692
7693/**
7694 * ieee80211_operating_class_to_band - convert operating class to band
7695 *
7696 * @operating_class: the operating class to convert
7697 * @band: band pointer to fill
7698 *
7699 * Returns %true if the conversion was successful, %false otherwise.
7700 */
7701bool ieee80211_operating_class_to_band(u8 operating_class,
7702				       enum nl80211_band *band);
7703
7704/**
7705 * ieee80211_chandef_to_operating_class - convert chandef to operation class
7706 *
7707 * @chandef: the chandef to convert
7708 * @op_class: a pointer to the resulting operating class
7709 *
7710 * Returns %true if the conversion was successful, %false otherwise.
7711 */
7712bool ieee80211_chandef_to_operating_class(struct cfg80211_chan_def *chandef,
7713					  u8 *op_class);
7714
7715/**
7716 * ieee80211_chandef_to_khz - convert chandef to frequency in KHz
7717 *
7718 * @chandef: the chandef to convert
7719 *
7720 * Returns the center frequency of chandef (1st segment) in KHz.
7721 */
7722static inline u32
7723ieee80211_chandef_to_khz(const struct cfg80211_chan_def *chandef)
7724{
7725	return MHZ_TO_KHZ(chandef->center_freq1) + chandef->freq1_offset;
7726}
7727
7728/*
7729 * cfg80211_tdls_oper_request - request userspace to perform TDLS operation
7730 * @dev: the device on which the operation is requested
7731 * @peer: the MAC address of the peer device
7732 * @oper: the requested TDLS operation (NL80211_TDLS_SETUP or
7733 *	NL80211_TDLS_TEARDOWN)
7734 * @reason_code: the reason code for teardown request
7735 * @gfp: allocation flags
7736 *
7737 * This function is used to request userspace to perform TDLS operation that
7738 * requires knowledge of keys, i.e., link setup or teardown when the AP
7739 * connection uses encryption. This is optional mechanism for the driver to use
7740 * if it can automatically determine when a TDLS link could be useful (e.g.,
7741 * based on traffic and signal strength for a peer).
7742 */
7743void cfg80211_tdls_oper_request(struct net_device *dev, const u8 *peer,
7744				enum nl80211_tdls_operation oper,
7745				u16 reason_code, gfp_t gfp);
7746
7747/*
7748 * cfg80211_calculate_bitrate - calculate actual bitrate (in 100Kbps units)
7749 * @rate: given rate_info to calculate bitrate from
7750 *
7751 * return 0 if MCS index >= 32
7752 */
7753u32 cfg80211_calculate_bitrate(struct rate_info *rate);
7754
7755/**
7756 * cfg80211_unregister_wdev - remove the given wdev
7757 * @wdev: struct wireless_dev to remove
7758 *
7759 * This function removes the device so it can no longer be used. It is necessary
7760 * to call this function even when cfg80211 requests the removal of the device
7761 * by calling the del_virtual_intf() callback. The function must also be called
7762 * when the driver wishes to unregister the wdev, e.g. when the hardware device
7763 * is unbound from the driver.
7764 *
7765 * Requires the RTNL and wiphy mutex to be held.
7766 */
7767void cfg80211_unregister_wdev(struct wireless_dev *wdev);
7768
7769/**
7770 * cfg80211_register_netdevice - register the given netdev
7771 * @dev: the netdev to register
7772 *
7773 * Note: In contexts coming from cfg80211 callbacks, you must call this rather
7774 * than register_netdevice(), unregister_netdev() is impossible as the RTNL is
7775 * held. Otherwise, both register_netdevice() and register_netdev() are usable
7776 * instead as well.
7777 *
7778 * Requires the RTNL and wiphy mutex to be held.
7779 */
7780int cfg80211_register_netdevice(struct net_device *dev);
7781
7782/**
7783 * cfg80211_unregister_netdevice - unregister the given netdev
7784 * @dev: the netdev to register
7785 *
7786 * Note: In contexts coming from cfg80211 callbacks, you must call this rather
7787 * than unregister_netdevice(), unregister_netdev() is impossible as the RTNL
7788 * is held. Otherwise, both unregister_netdevice() and unregister_netdev() are
7789 * usable instead as well.
7790 *
7791 * Requires the RTNL and wiphy mutex to be held.
7792 */
7793static inline void cfg80211_unregister_netdevice(struct net_device *dev)
7794{
 
7795	cfg80211_unregister_wdev(dev->ieee80211_ptr);
 
7796}
7797
7798/**
7799 * struct cfg80211_ft_event_params - FT Information Elements
7800 * @ies: FT IEs
7801 * @ies_len: length of the FT IE in bytes
7802 * @target_ap: target AP's MAC address
7803 * @ric_ies: RIC IE
7804 * @ric_ies_len: length of the RIC IE in bytes
7805 */
7806struct cfg80211_ft_event_params {
7807	const u8 *ies;
7808	size_t ies_len;
7809	const u8 *target_ap;
7810	const u8 *ric_ies;
7811	size_t ric_ies_len;
7812};
7813
7814/**
7815 * cfg80211_ft_event - notify userspace about FT IE and RIC IE
7816 * @netdev: network device
7817 * @ft_event: IE information
7818 */
7819void cfg80211_ft_event(struct net_device *netdev,
7820		       struct cfg80211_ft_event_params *ft_event);
7821
7822/**
7823 * cfg80211_get_p2p_attr - find and copy a P2P attribute from IE buffer
7824 * @ies: the input IE buffer
7825 * @len: the input length
7826 * @attr: the attribute ID to find
7827 * @buf: output buffer, can be %NULL if the data isn't needed, e.g.
7828 *	if the function is only called to get the needed buffer size
7829 * @bufsize: size of the output buffer
7830 *
7831 * The function finds a given P2P attribute in the (vendor) IEs and
7832 * copies its contents to the given buffer.
7833 *
7834 * Return: A negative error code (-%EILSEQ or -%ENOENT) if the data is
7835 * malformed or the attribute can't be found (respectively), or the
7836 * length of the found attribute (which can be zero).
7837 */
7838int cfg80211_get_p2p_attr(const u8 *ies, unsigned int len,
7839			  enum ieee80211_p2p_attr_id attr,
7840			  u8 *buf, unsigned int bufsize);
7841
7842/**
7843 * ieee80211_ie_split_ric - split an IE buffer according to ordering (with RIC)
7844 * @ies: the IE buffer
7845 * @ielen: the length of the IE buffer
7846 * @ids: an array with element IDs that are allowed before
7847 *	the split. A WLAN_EID_EXTENSION value means that the next
7848 *	EID in the list is a sub-element of the EXTENSION IE.
7849 * @n_ids: the size of the element ID array
7850 * @after_ric: array IE types that come after the RIC element
7851 * @n_after_ric: size of the @after_ric array
7852 * @offset: offset where to start splitting in the buffer
7853 *
7854 * This function splits an IE buffer by updating the @offset
7855 * variable to point to the location where the buffer should be
7856 * split.
7857 *
7858 * It assumes that the given IE buffer is well-formed, this
7859 * has to be guaranteed by the caller!
7860 *
7861 * It also assumes that the IEs in the buffer are ordered
7862 * correctly, if not the result of using this function will not
7863 * be ordered correctly either, i.e. it does no reordering.
7864 *
7865 * The function returns the offset where the next part of the
7866 * buffer starts, which may be @ielen if the entire (remainder)
7867 * of the buffer should be used.
7868 */
7869size_t ieee80211_ie_split_ric(const u8 *ies, size_t ielen,
7870			      const u8 *ids, int n_ids,
7871			      const u8 *after_ric, int n_after_ric,
7872			      size_t offset);
7873
7874/**
7875 * ieee80211_ie_split - split an IE buffer according to ordering
7876 * @ies: the IE buffer
7877 * @ielen: the length of the IE buffer
7878 * @ids: an array with element IDs that are allowed before
7879 *	the split. A WLAN_EID_EXTENSION value means that the next
7880 *	EID in the list is a sub-element of the EXTENSION IE.
7881 * @n_ids: the size of the element ID array
7882 * @offset: offset where to start splitting in the buffer
7883 *
7884 * This function splits an IE buffer by updating the @offset
7885 * variable to point to the location where the buffer should be
7886 * split.
7887 *
7888 * It assumes that the given IE buffer is well-formed, this
7889 * has to be guaranteed by the caller!
7890 *
7891 * It also assumes that the IEs in the buffer are ordered
7892 * correctly, if not the result of using this function will not
7893 * be ordered correctly either, i.e. it does no reordering.
7894 *
7895 * The function returns the offset where the next part of the
7896 * buffer starts, which may be @ielen if the entire (remainder)
7897 * of the buffer should be used.
7898 */
7899static inline size_t ieee80211_ie_split(const u8 *ies, size_t ielen,
7900					const u8 *ids, int n_ids, size_t offset)
7901{
7902	return ieee80211_ie_split_ric(ies, ielen, ids, n_ids, NULL, 0, offset);
7903}
7904
7905/**
7906 * cfg80211_report_wowlan_wakeup - report wakeup from WoWLAN
7907 * @wdev: the wireless device reporting the wakeup
7908 * @wakeup: the wakeup report
7909 * @gfp: allocation flags
7910 *
7911 * This function reports that the given device woke up. If it
7912 * caused the wakeup, report the reason(s), otherwise you may
7913 * pass %NULL as the @wakeup parameter to advertise that something
7914 * else caused the wakeup.
7915 */
7916void cfg80211_report_wowlan_wakeup(struct wireless_dev *wdev,
7917				   struct cfg80211_wowlan_wakeup *wakeup,
7918				   gfp_t gfp);
7919
7920/**
7921 * cfg80211_crit_proto_stopped() - indicate critical protocol stopped by driver.
7922 *
7923 * @wdev: the wireless device for which critical protocol is stopped.
7924 * @gfp: allocation flags
7925 *
7926 * This function can be called by the driver to indicate it has reverted
7927 * operation back to normal. One reason could be that the duration given
7928 * by .crit_proto_start() has expired.
7929 */
7930void cfg80211_crit_proto_stopped(struct wireless_dev *wdev, gfp_t gfp);
7931
7932/**
7933 * ieee80211_get_num_supported_channels - get number of channels device has
7934 * @wiphy: the wiphy
7935 *
7936 * Return: the number of channels supported by the device.
7937 */
7938unsigned int ieee80211_get_num_supported_channels(struct wiphy *wiphy);
7939
7940/**
7941 * cfg80211_check_combinations - check interface combinations
7942 *
7943 * @wiphy: the wiphy
7944 * @params: the interface combinations parameter
7945 *
7946 * This function can be called by the driver to check whether a
7947 * combination of interfaces and their types are allowed according to
7948 * the interface combinations.
7949 */
7950int cfg80211_check_combinations(struct wiphy *wiphy,
7951				struct iface_combination_params *params);
7952
7953/**
7954 * cfg80211_iter_combinations - iterate over matching combinations
7955 *
7956 * @wiphy: the wiphy
7957 * @params: the interface combinations parameter
7958 * @iter: function to call for each matching combination
7959 * @data: pointer to pass to iter function
7960 *
7961 * This function can be called by the driver to check what possible
7962 * combinations it fits in at a given moment, e.g. for channel switching
7963 * purposes.
7964 */
7965int cfg80211_iter_combinations(struct wiphy *wiphy,
7966			       struct iface_combination_params *params,
7967			       void (*iter)(const struct ieee80211_iface_combination *c,
7968					    void *data),
7969			       void *data);
7970
7971/*
7972 * cfg80211_stop_iface - trigger interface disconnection
7973 *
7974 * @wiphy: the wiphy
7975 * @wdev: wireless device
7976 * @gfp: context flags
7977 *
7978 * Trigger interface to be stopped as if AP was stopped, IBSS/mesh left, STA
7979 * disconnected.
7980 *
7981 * Note: This doesn't need any locks and is asynchronous.
7982 */
7983void cfg80211_stop_iface(struct wiphy *wiphy, struct wireless_dev *wdev,
7984			 gfp_t gfp);
7985
7986/**
7987 * cfg80211_shutdown_all_interfaces - shut down all interfaces for a wiphy
7988 * @wiphy: the wiphy to shut down
7989 *
7990 * This function shuts down all interfaces belonging to this wiphy by
7991 * calling dev_close() (and treating non-netdev interfaces as needed).
7992 * It shouldn't really be used unless there are some fatal device errors
7993 * that really can't be recovered in any other way.
7994 *
7995 * Callers must hold the RTNL and be able to deal with callbacks into
7996 * the driver while the function is running.
7997 */
7998void cfg80211_shutdown_all_interfaces(struct wiphy *wiphy);
7999
8000/**
8001 * wiphy_ext_feature_set - set the extended feature flag
8002 *
8003 * @wiphy: the wiphy to modify.
8004 * @ftidx: extended feature bit index.
8005 *
8006 * The extended features are flagged in multiple bytes (see
8007 * &struct wiphy.@ext_features)
8008 */
8009static inline void wiphy_ext_feature_set(struct wiphy *wiphy,
8010					 enum nl80211_ext_feature_index ftidx)
8011{
8012	u8 *ft_byte;
8013
8014	ft_byte = &wiphy->ext_features[ftidx / 8];
8015	*ft_byte |= BIT(ftidx % 8);
8016}
8017
8018/**
8019 * wiphy_ext_feature_isset - check the extended feature flag
8020 *
8021 * @wiphy: the wiphy to modify.
8022 * @ftidx: extended feature bit index.
8023 *
8024 * The extended features are flagged in multiple bytes (see
8025 * &struct wiphy.@ext_features)
8026 */
8027static inline bool
8028wiphy_ext_feature_isset(struct wiphy *wiphy,
8029			enum nl80211_ext_feature_index ftidx)
8030{
8031	u8 ft_byte;
8032
8033	ft_byte = wiphy->ext_features[ftidx / 8];
8034	return (ft_byte & BIT(ftidx % 8)) != 0;
8035}
8036
8037/**
8038 * cfg80211_free_nan_func - free NAN function
8039 * @f: NAN function that should be freed
8040 *
8041 * Frees all the NAN function and all it's allocated members.
8042 */
8043void cfg80211_free_nan_func(struct cfg80211_nan_func *f);
8044
8045/**
8046 * struct cfg80211_nan_match_params - NAN match parameters
8047 * @type: the type of the function that triggered a match. If it is
8048 *	 %NL80211_NAN_FUNC_SUBSCRIBE it means that we replied to a subscriber.
8049 *	 If it is %NL80211_NAN_FUNC_PUBLISH, it means that we got a discovery
8050 *	 result.
8051 *	 If it is %NL80211_NAN_FUNC_FOLLOW_UP, we received a follow up.
8052 * @inst_id: the local instance id
8053 * @peer_inst_id: the instance id of the peer's function
8054 * @addr: the MAC address of the peer
8055 * @info_len: the length of the &info
8056 * @info: the Service Specific Info from the peer (if any)
8057 * @cookie: unique identifier of the corresponding function
8058 */
8059struct cfg80211_nan_match_params {
8060	enum nl80211_nan_function_type type;
8061	u8 inst_id;
8062	u8 peer_inst_id;
8063	const u8 *addr;
8064	u8 info_len;
8065	const u8 *info;
8066	u64 cookie;
8067};
8068
8069/**
8070 * cfg80211_nan_match - report a match for a NAN function.
8071 * @wdev: the wireless device reporting the match
8072 * @match: match notification parameters
8073 * @gfp: allocation flags
8074 *
8075 * This function reports that the a NAN function had a match. This
8076 * can be a subscribe that had a match or a solicited publish that
8077 * was sent. It can also be a follow up that was received.
8078 */
8079void cfg80211_nan_match(struct wireless_dev *wdev,
8080			struct cfg80211_nan_match_params *match, gfp_t gfp);
8081
8082/**
8083 * cfg80211_nan_func_terminated - notify about NAN function termination.
8084 *
8085 * @wdev: the wireless device reporting the match
8086 * @inst_id: the local instance id
8087 * @reason: termination reason (one of the NL80211_NAN_FUNC_TERM_REASON_*)
8088 * @cookie: unique NAN function identifier
8089 * @gfp: allocation flags
8090 *
8091 * This function reports that the a NAN function is terminated.
8092 */
8093void cfg80211_nan_func_terminated(struct wireless_dev *wdev,
8094				  u8 inst_id,
8095				  enum nl80211_nan_func_term_reason reason,
8096				  u64 cookie, gfp_t gfp);
8097
8098/* ethtool helper */
8099void cfg80211_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info);
8100
8101/**
8102 * cfg80211_external_auth_request - userspace request for authentication
8103 * @netdev: network device
8104 * @params: External authentication parameters
8105 * @gfp: allocation flags
8106 * Returns: 0 on success, < 0 on error
8107 */
8108int cfg80211_external_auth_request(struct net_device *netdev,
8109				   struct cfg80211_external_auth_params *params,
8110				   gfp_t gfp);
8111
8112/**
8113 * cfg80211_pmsr_report - report peer measurement result data
8114 * @wdev: the wireless device reporting the measurement
8115 * @req: the original measurement request
8116 * @result: the result data
8117 * @gfp: allocation flags
8118 */
8119void cfg80211_pmsr_report(struct wireless_dev *wdev,
8120			  struct cfg80211_pmsr_request *req,
8121			  struct cfg80211_pmsr_result *result,
8122			  gfp_t gfp);
8123
8124/**
8125 * cfg80211_pmsr_complete - report peer measurement completed
8126 * @wdev: the wireless device reporting the measurement
8127 * @req: the original measurement request
8128 * @gfp: allocation flags
8129 *
8130 * Report that the entire measurement completed, after this
8131 * the request pointer will no longer be valid.
8132 */
8133void cfg80211_pmsr_complete(struct wireless_dev *wdev,
8134			    struct cfg80211_pmsr_request *req,
8135			    gfp_t gfp);
8136
8137/**
8138 * cfg80211_iftype_allowed - check whether the interface can be allowed
8139 * @wiphy: the wiphy
8140 * @iftype: interface type
8141 * @is_4addr: use_4addr flag, must be '0' when check_swif is '1'
8142 * @check_swif: check iftype against software interfaces
8143 *
8144 * Check whether the interface is allowed to operate; additionally, this API
8145 * can be used to check iftype against the software interfaces when
8146 * check_swif is '1'.
8147 */
8148bool cfg80211_iftype_allowed(struct wiphy *wiphy, enum nl80211_iftype iftype,
8149			     bool is_4addr, u8 check_swif);
8150
8151
 
 
 
 
 
 
 
 
 
 
 
 
8152/* Logging, debugging and troubleshooting/diagnostic helpers. */
8153
8154/* wiphy_printk helpers, similar to dev_printk */
8155
8156#define wiphy_printk(level, wiphy, format, args...)		\
8157	dev_printk(level, &(wiphy)->dev, format, ##args)
8158#define wiphy_emerg(wiphy, format, args...)			\
8159	dev_emerg(&(wiphy)->dev, format, ##args)
8160#define wiphy_alert(wiphy, format, args...)			\
8161	dev_alert(&(wiphy)->dev, format, ##args)
8162#define wiphy_crit(wiphy, format, args...)			\
8163	dev_crit(&(wiphy)->dev, format, ##args)
8164#define wiphy_err(wiphy, format, args...)			\
8165	dev_err(&(wiphy)->dev, format, ##args)
8166#define wiphy_warn(wiphy, format, args...)			\
8167	dev_warn(&(wiphy)->dev, format, ##args)
8168#define wiphy_notice(wiphy, format, args...)			\
8169	dev_notice(&(wiphy)->dev, format, ##args)
8170#define wiphy_info(wiphy, format, args...)			\
8171	dev_info(&(wiphy)->dev, format, ##args)
8172#define wiphy_info_once(wiphy, format, args...)			\
8173	dev_info_once(&(wiphy)->dev, format, ##args)
8174
8175#define wiphy_err_ratelimited(wiphy, format, args...)		\
8176	dev_err_ratelimited(&(wiphy)->dev, format, ##args)
8177#define wiphy_warn_ratelimited(wiphy, format, args...)		\
8178	dev_warn_ratelimited(&(wiphy)->dev, format, ##args)
8179
8180#define wiphy_debug(wiphy, format, args...)			\
8181	wiphy_printk(KERN_DEBUG, wiphy, format, ##args)
8182
8183#define wiphy_dbg(wiphy, format, args...)			\
8184	dev_dbg(&(wiphy)->dev, format, ##args)
8185
8186#if defined(VERBOSE_DEBUG)
8187#define wiphy_vdbg	wiphy_dbg
8188#else
8189#define wiphy_vdbg(wiphy, format, args...)				\
8190({									\
8191	if (0)								\
8192		wiphy_printk(KERN_DEBUG, wiphy, format, ##args);	\
8193	0;								\
8194})
8195#endif
8196
8197/*
8198 * wiphy_WARN() acts like wiphy_printk(), but with the key difference
8199 * of using a WARN/WARN_ON to get the message out, including the
8200 * file/line information and a backtrace.
8201 */
8202#define wiphy_WARN(wiphy, format, args...)			\
8203	WARN(1, "wiphy: %s\n" format, wiphy_name(wiphy), ##args);
8204
8205/**
8206 * cfg80211_update_owe_info_event - Notify the peer's OWE info to user space
8207 * @netdev: network device
8208 * @owe_info: peer's owe info
8209 * @gfp: allocation flags
8210 */
8211void cfg80211_update_owe_info_event(struct net_device *netdev,
8212				    struct cfg80211_update_owe_info *owe_info,
8213				    gfp_t gfp);
8214
8215/**
8216 * cfg80211_bss_flush - resets all the scan entries
8217 * @wiphy: the wiphy
8218 */
8219void cfg80211_bss_flush(struct wiphy *wiphy);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
8220
8221#endif /* __NET_CFG80211_H */
v6.2
   1/* SPDX-License-Identifier: GPL-2.0-only */
   2#ifndef __NET_CFG80211_H
   3#define __NET_CFG80211_H
   4/*
   5 * 802.11 device and configuration interface
   6 *
   7 * Copyright 2006-2010	Johannes Berg <johannes@sipsolutions.net>
   8 * Copyright 2013-2014 Intel Mobile Communications GmbH
   9 * Copyright 2015-2017	Intel Deutschland GmbH
  10 * Copyright (C) 2018-2021 Intel Corporation
  11 */
  12
  13#include <linux/ethtool.h>
  14#include <uapi/linux/rfkill.h>
  15#include <linux/netdevice.h>
  16#include <linux/debugfs.h>
  17#include <linux/list.h>
  18#include <linux/bug.h>
  19#include <linux/netlink.h>
  20#include <linux/skbuff.h>
  21#include <linux/nl80211.h>
  22#include <linux/if_ether.h>
  23#include <linux/ieee80211.h>
  24#include <linux/net.h>
  25#include <linux/rfkill.h>
  26#include <net/regulatory.h>
  27
  28/**
  29 * DOC: Introduction
  30 *
  31 * cfg80211 is the configuration API for 802.11 devices in Linux. It bridges
  32 * userspace and drivers, and offers some utility functionality associated
  33 * with 802.11. cfg80211 must, directly or indirectly via mac80211, be used
  34 * by all modern wireless drivers in Linux, so that they offer a consistent
  35 * API through nl80211. For backward compatibility, cfg80211 also offers
  36 * wireless extensions to userspace, but hides them from drivers completely.
  37 *
  38 * Additionally, cfg80211 contains code to help enforce regulatory spectrum
  39 * use restrictions.
  40 */
  41
  42
  43/**
  44 * DOC: Device registration
  45 *
  46 * In order for a driver to use cfg80211, it must register the hardware device
  47 * with cfg80211. This happens through a number of hardware capability structs
  48 * described below.
  49 *
  50 * The fundamental structure for each device is the 'wiphy', of which each
  51 * instance describes a physical wireless device connected to the system. Each
  52 * such wiphy can have zero, one, or many virtual interfaces associated with
  53 * it, which need to be identified as such by pointing the network interface's
  54 * @ieee80211_ptr pointer to a &struct wireless_dev which further describes
  55 * the wireless part of the interface, normally this struct is embedded in the
  56 * network interface's private data area. Drivers can optionally allow creating
  57 * or destroying virtual interfaces on the fly, but without at least one or the
  58 * ability to create some the wireless device isn't useful.
  59 *
  60 * Each wiphy structure contains device capability information, and also has
  61 * a pointer to the various operations the driver offers. The definitions and
  62 * structures here describe these capabilities in detail.
  63 */
  64
  65struct wiphy;
  66
  67/*
  68 * wireless hardware capability structures
  69 */
  70
  71/**
  72 * enum ieee80211_channel_flags - channel flags
  73 *
  74 * Channel flags set by the regulatory control code.
  75 *
  76 * @IEEE80211_CHAN_DISABLED: This channel is disabled.
  77 * @IEEE80211_CHAN_NO_IR: do not initiate radiation, this includes
  78 *	sending probe requests or beaconing.
  79 * @IEEE80211_CHAN_RADAR: Radar detection is required on this channel.
  80 * @IEEE80211_CHAN_NO_HT40PLUS: extension channel above this channel
  81 *	is not permitted.
  82 * @IEEE80211_CHAN_NO_HT40MINUS: extension channel below this channel
  83 *	is not permitted.
  84 * @IEEE80211_CHAN_NO_OFDM: OFDM is not allowed on this channel.
  85 * @IEEE80211_CHAN_NO_80MHZ: If the driver supports 80 MHz on the band,
  86 *	this flag indicates that an 80 MHz channel cannot use this
  87 *	channel as the control or any of the secondary channels.
  88 *	This may be due to the driver or due to regulatory bandwidth
  89 *	restrictions.
  90 * @IEEE80211_CHAN_NO_160MHZ: If the driver supports 160 MHz on the band,
  91 *	this flag indicates that an 160 MHz channel cannot use this
  92 *	channel as the control or any of the secondary channels.
  93 *	This may be due to the driver or due to regulatory bandwidth
  94 *	restrictions.
  95 * @IEEE80211_CHAN_INDOOR_ONLY: see %NL80211_FREQUENCY_ATTR_INDOOR_ONLY
  96 * @IEEE80211_CHAN_IR_CONCURRENT: see %NL80211_FREQUENCY_ATTR_IR_CONCURRENT
  97 * @IEEE80211_CHAN_NO_20MHZ: 20 MHz bandwidth is not permitted
  98 *	on this channel.
  99 * @IEEE80211_CHAN_NO_10MHZ: 10 MHz bandwidth is not permitted
 100 *	on this channel.
 101 * @IEEE80211_CHAN_NO_HE: HE operation is not permitted on this channel.
 102 * @IEEE80211_CHAN_1MHZ: 1 MHz bandwidth is permitted
 103 *	on this channel.
 104 * @IEEE80211_CHAN_2MHZ: 2 MHz bandwidth is permitted
 105 *	on this channel.
 106 * @IEEE80211_CHAN_4MHZ: 4 MHz bandwidth is permitted
 107 *	on this channel.
 108 * @IEEE80211_CHAN_8MHZ: 8 MHz bandwidth is permitted
 109 *	on this channel.
 110 * @IEEE80211_CHAN_16MHZ: 16 MHz bandwidth is permitted
 111 *	on this channel.
 112 * @IEEE80211_CHAN_NO_320MHZ: If the driver supports 320 MHz on the band,
 113 *	this flag indicates that a 320 MHz channel cannot use this
 114 *	channel as the control or any of the secondary channels.
 115 *	This may be due to the driver or due to regulatory bandwidth
 116 *	restrictions.
 117 * @IEEE80211_CHAN_NO_EHT: EHT operation is not permitted on this channel.
 118 */
 119enum ieee80211_channel_flags {
 120	IEEE80211_CHAN_DISABLED		= 1<<0,
 121	IEEE80211_CHAN_NO_IR		= 1<<1,
 122	/* hole at 1<<2 */
 123	IEEE80211_CHAN_RADAR		= 1<<3,
 124	IEEE80211_CHAN_NO_HT40PLUS	= 1<<4,
 125	IEEE80211_CHAN_NO_HT40MINUS	= 1<<5,
 126	IEEE80211_CHAN_NO_OFDM		= 1<<6,
 127	IEEE80211_CHAN_NO_80MHZ		= 1<<7,
 128	IEEE80211_CHAN_NO_160MHZ	= 1<<8,
 129	IEEE80211_CHAN_INDOOR_ONLY	= 1<<9,
 130	IEEE80211_CHAN_IR_CONCURRENT	= 1<<10,
 131	IEEE80211_CHAN_NO_20MHZ		= 1<<11,
 132	IEEE80211_CHAN_NO_10MHZ		= 1<<12,
 133	IEEE80211_CHAN_NO_HE		= 1<<13,
 134	IEEE80211_CHAN_1MHZ		= 1<<14,
 135	IEEE80211_CHAN_2MHZ		= 1<<15,
 136	IEEE80211_CHAN_4MHZ		= 1<<16,
 137	IEEE80211_CHAN_8MHZ		= 1<<17,
 138	IEEE80211_CHAN_16MHZ		= 1<<18,
 139	IEEE80211_CHAN_NO_320MHZ	= 1<<19,
 140	IEEE80211_CHAN_NO_EHT		= 1<<20,
 141};
 142
 143#define IEEE80211_CHAN_NO_HT40 \
 144	(IEEE80211_CHAN_NO_HT40PLUS | IEEE80211_CHAN_NO_HT40MINUS)
 145
 146#define IEEE80211_DFS_MIN_CAC_TIME_MS		60000
 147#define IEEE80211_DFS_MIN_NOP_TIME_MS		(30 * 60 * 1000)
 148
 149/**
 150 * struct ieee80211_channel - channel definition
 151 *
 152 * This structure describes a single channel for use
 153 * with cfg80211.
 154 *
 155 * @center_freq: center frequency in MHz
 156 * @freq_offset: offset from @center_freq, in KHz
 157 * @hw_value: hardware-specific value for the channel
 158 * @flags: channel flags from &enum ieee80211_channel_flags.
 159 * @orig_flags: channel flags at registration time, used by regulatory
 160 *	code to support devices with additional restrictions
 161 * @band: band this channel belongs to.
 162 * @max_antenna_gain: maximum antenna gain in dBi
 163 * @max_power: maximum transmission power (in dBm)
 164 * @max_reg_power: maximum regulatory transmission power (in dBm)
 165 * @beacon_found: helper to regulatory code to indicate when a beacon
 166 *	has been found on this channel. Use regulatory_hint_found_beacon()
 167 *	to enable this, this is useful only on 5 GHz band.
 168 * @orig_mag: internal use
 169 * @orig_mpwr: internal use
 170 * @dfs_state: current state of this channel. Only relevant if radar is required
 171 *	on this channel.
 172 * @dfs_state_entered: timestamp (jiffies) when the dfs state was entered.
 173 * @dfs_cac_ms: DFS CAC time in milliseconds, this is valid for DFS channels.
 174 */
 175struct ieee80211_channel {
 176	enum nl80211_band band;
 177	u32 center_freq;
 178	u16 freq_offset;
 179	u16 hw_value;
 180	u32 flags;
 181	int max_antenna_gain;
 182	int max_power;
 183	int max_reg_power;
 184	bool beacon_found;
 185	u32 orig_flags;
 186	int orig_mag, orig_mpwr;
 187	enum nl80211_dfs_state dfs_state;
 188	unsigned long dfs_state_entered;
 189	unsigned int dfs_cac_ms;
 190};
 191
 192/**
 193 * enum ieee80211_rate_flags - rate flags
 194 *
 195 * Hardware/specification flags for rates. These are structured
 196 * in a way that allows using the same bitrate structure for
 197 * different bands/PHY modes.
 198 *
 199 * @IEEE80211_RATE_SHORT_PREAMBLE: Hardware can send with short
 200 *	preamble on this bitrate; only relevant in 2.4GHz band and
 201 *	with CCK rates.
 202 * @IEEE80211_RATE_MANDATORY_A: This bitrate is a mandatory rate
 203 *	when used with 802.11a (on the 5 GHz band); filled by the
 204 *	core code when registering the wiphy.
 205 * @IEEE80211_RATE_MANDATORY_B: This bitrate is a mandatory rate
 206 *	when used with 802.11b (on the 2.4 GHz band); filled by the
 207 *	core code when registering the wiphy.
 208 * @IEEE80211_RATE_MANDATORY_G: This bitrate is a mandatory rate
 209 *	when used with 802.11g (on the 2.4 GHz band); filled by the
 210 *	core code when registering the wiphy.
 211 * @IEEE80211_RATE_ERP_G: This is an ERP rate in 802.11g mode.
 212 * @IEEE80211_RATE_SUPPORTS_5MHZ: Rate can be used in 5 MHz mode
 213 * @IEEE80211_RATE_SUPPORTS_10MHZ: Rate can be used in 10 MHz mode
 214 */
 215enum ieee80211_rate_flags {
 216	IEEE80211_RATE_SHORT_PREAMBLE	= 1<<0,
 217	IEEE80211_RATE_MANDATORY_A	= 1<<1,
 218	IEEE80211_RATE_MANDATORY_B	= 1<<2,
 219	IEEE80211_RATE_MANDATORY_G	= 1<<3,
 220	IEEE80211_RATE_ERP_G		= 1<<4,
 221	IEEE80211_RATE_SUPPORTS_5MHZ	= 1<<5,
 222	IEEE80211_RATE_SUPPORTS_10MHZ	= 1<<6,
 223};
 224
 225/**
 226 * enum ieee80211_bss_type - BSS type filter
 227 *
 228 * @IEEE80211_BSS_TYPE_ESS: Infrastructure BSS
 229 * @IEEE80211_BSS_TYPE_PBSS: Personal BSS
 230 * @IEEE80211_BSS_TYPE_IBSS: Independent BSS
 231 * @IEEE80211_BSS_TYPE_MBSS: Mesh BSS
 232 * @IEEE80211_BSS_TYPE_ANY: Wildcard value for matching any BSS type
 233 */
 234enum ieee80211_bss_type {
 235	IEEE80211_BSS_TYPE_ESS,
 236	IEEE80211_BSS_TYPE_PBSS,
 237	IEEE80211_BSS_TYPE_IBSS,
 238	IEEE80211_BSS_TYPE_MBSS,
 239	IEEE80211_BSS_TYPE_ANY
 240};
 241
 242/**
 243 * enum ieee80211_privacy - BSS privacy filter
 244 *
 245 * @IEEE80211_PRIVACY_ON: privacy bit set
 246 * @IEEE80211_PRIVACY_OFF: privacy bit clear
 247 * @IEEE80211_PRIVACY_ANY: Wildcard value for matching any privacy setting
 248 */
 249enum ieee80211_privacy {
 250	IEEE80211_PRIVACY_ON,
 251	IEEE80211_PRIVACY_OFF,
 252	IEEE80211_PRIVACY_ANY
 253};
 254
 255#define IEEE80211_PRIVACY(x)	\
 256	((x) ? IEEE80211_PRIVACY_ON : IEEE80211_PRIVACY_OFF)
 257
 258/**
 259 * struct ieee80211_rate - bitrate definition
 260 *
 261 * This structure describes a bitrate that an 802.11 PHY can
 262 * operate with. The two values @hw_value and @hw_value_short
 263 * are only for driver use when pointers to this structure are
 264 * passed around.
 265 *
 266 * @flags: rate-specific flags
 267 * @bitrate: bitrate in units of 100 Kbps
 268 * @hw_value: driver/hardware value for this rate
 269 * @hw_value_short: driver/hardware value for this rate when
 270 *	short preamble is used
 271 */
 272struct ieee80211_rate {
 273	u32 flags;
 274	u16 bitrate;
 275	u16 hw_value, hw_value_short;
 276};
 277
 278/**
 279 * struct ieee80211_he_obss_pd - AP settings for spatial reuse
 280 *
 281 * @enable: is the feature enabled.
 282 * @sr_ctrl: The SR Control field of SRP element.
 283 * @non_srg_max_offset: non-SRG maximum tx power offset
 284 * @min_offset: minimal tx power offset an associated station shall use
 285 * @max_offset: maximum tx power offset an associated station shall use
 286 * @bss_color_bitmap: bitmap that indicates the BSS color values used by
 287 *	members of the SRG
 288 * @partial_bssid_bitmap: bitmap that indicates the partial BSSID values
 289 *	used by members of the SRG
 290 */
 291struct ieee80211_he_obss_pd {
 292	bool enable;
 293	u8 sr_ctrl;
 294	u8 non_srg_max_offset;
 295	u8 min_offset;
 296	u8 max_offset;
 297	u8 bss_color_bitmap[8];
 298	u8 partial_bssid_bitmap[8];
 299};
 300
 301/**
 302 * struct cfg80211_he_bss_color - AP settings for BSS coloring
 303 *
 304 * @color: the current color.
 305 * @enabled: HE BSS color is used
 306 * @partial: define the AID equation.
 307 */
 308struct cfg80211_he_bss_color {
 309	u8 color;
 310	bool enabled;
 311	bool partial;
 312};
 313
 314/**
 315 * struct ieee80211_sta_ht_cap - STA's HT capabilities
 316 *
 317 * This structure describes most essential parameters needed
 318 * to describe 802.11n HT capabilities for an STA.
 319 *
 320 * @ht_supported: is HT supported by the STA
 321 * @cap: HT capabilities map as described in 802.11n spec
 322 * @ampdu_factor: Maximum A-MPDU length factor
 323 * @ampdu_density: Minimum A-MPDU spacing
 324 * @mcs: Supported MCS rates
 325 */
 326struct ieee80211_sta_ht_cap {
 327	u16 cap; /* use IEEE80211_HT_CAP_ */
 328	bool ht_supported;
 329	u8 ampdu_factor;
 330	u8 ampdu_density;
 331	struct ieee80211_mcs_info mcs;
 332};
 333
 334/**
 335 * struct ieee80211_sta_vht_cap - STA's VHT capabilities
 336 *
 337 * This structure describes most essential parameters needed
 338 * to describe 802.11ac VHT capabilities for an STA.
 339 *
 340 * @vht_supported: is VHT supported by the STA
 341 * @cap: VHT capabilities map as described in 802.11ac spec
 342 * @vht_mcs: Supported VHT MCS rates
 343 */
 344struct ieee80211_sta_vht_cap {
 345	bool vht_supported;
 346	u32 cap; /* use IEEE80211_VHT_CAP_ */
 347	struct ieee80211_vht_mcs_info vht_mcs;
 348};
 349
 350#define IEEE80211_HE_PPE_THRES_MAX_LEN		25
 351
 352/**
 353 * struct ieee80211_sta_he_cap - STA's HE capabilities
 354 *
 355 * This structure describes most essential parameters needed
 356 * to describe 802.11ax HE capabilities for a STA.
 357 *
 358 * @has_he: true iff HE data is valid.
 359 * @he_cap_elem: Fixed portion of the HE capabilities element.
 360 * @he_mcs_nss_supp: The supported NSS/MCS combinations.
 361 * @ppe_thres: Holds the PPE Thresholds data.
 362 */
 363struct ieee80211_sta_he_cap {
 364	bool has_he;
 365	struct ieee80211_he_cap_elem he_cap_elem;
 366	struct ieee80211_he_mcs_nss_supp he_mcs_nss_supp;
 367	u8 ppe_thres[IEEE80211_HE_PPE_THRES_MAX_LEN];
 368};
 369
 370/**
 371 * struct ieee80211_eht_mcs_nss_supp - EHT max supported NSS per MCS
 372 *
 373 * See P802.11be_D1.3 Table 9-401k - "Subfields of the Supported EHT-MCS
 374 * and NSS Set field"
 375 *
 376 * @only_20mhz: MCS/NSS support for 20 MHz-only STA.
 377 * @bw: MCS/NSS support for 80, 160 and 320 MHz
 378 * @bw._80: MCS/NSS support for BW <= 80 MHz
 379 * @bw._160: MCS/NSS support for BW = 160 MHz
 380 * @bw._320: MCS/NSS support for BW = 320 MHz
 381 */
 382struct ieee80211_eht_mcs_nss_supp {
 383	union {
 384		struct ieee80211_eht_mcs_nss_supp_20mhz_only only_20mhz;
 385		struct {
 386			struct ieee80211_eht_mcs_nss_supp_bw _80;
 387			struct ieee80211_eht_mcs_nss_supp_bw _160;
 388			struct ieee80211_eht_mcs_nss_supp_bw _320;
 389		} __packed bw;
 390	} __packed;
 391} __packed;
 392
 393#define IEEE80211_EHT_PPE_THRES_MAX_LEN		32
 394
 395/**
 396 * struct ieee80211_sta_eht_cap - STA's EHT capabilities
 397 *
 398 * This structure describes most essential parameters needed
 399 * to describe 802.11be EHT capabilities for a STA.
 400 *
 401 * @has_eht: true iff EHT data is valid.
 402 * @eht_cap_elem: Fixed portion of the eht capabilities element.
 403 * @eht_mcs_nss_supp: The supported NSS/MCS combinations.
 404 * @eht_ppe_thres: Holds the PPE Thresholds data.
 405 */
 406struct ieee80211_sta_eht_cap {
 407	bool has_eht;
 408	struct ieee80211_eht_cap_elem_fixed eht_cap_elem;
 409	struct ieee80211_eht_mcs_nss_supp eht_mcs_nss_supp;
 410	u8 eht_ppe_thres[IEEE80211_EHT_PPE_THRES_MAX_LEN];
 411};
 412
 413/**
 414 * struct ieee80211_sband_iftype_data - sband data per interface type
 415 *
 416 * This structure encapsulates sband data that is relevant for the
 417 * interface types defined in @types_mask.  Each type in the
 418 * @types_mask must be unique across all instances of iftype_data.
 419 *
 420 * @types_mask: interface types mask
 421 * @he_cap: holds the HE capabilities
 422 * @he_6ghz_capa: HE 6 GHz capabilities, must be filled in for a
 423 *	6 GHz band channel (and 0 may be valid value).
 424 * @eht_cap: STA's EHT capabilities
 425 * @vendor_elems: vendor element(s) to advertise
 426 * @vendor_elems.data: vendor element(s) data
 427 * @vendor_elems.len: vendor element(s) length
 428 */
 429struct ieee80211_sband_iftype_data {
 430	u16 types_mask;
 431	struct ieee80211_sta_he_cap he_cap;
 432	struct ieee80211_he_6ghz_capa he_6ghz_capa;
 433	struct ieee80211_sta_eht_cap eht_cap;
 434	struct {
 435		const u8 *data;
 436		unsigned int len;
 437	} vendor_elems;
 438};
 439
 440/**
 441 * enum ieee80211_edmg_bw_config - allowed channel bandwidth configurations
 442 *
 443 * @IEEE80211_EDMG_BW_CONFIG_4: 2.16GHz
 444 * @IEEE80211_EDMG_BW_CONFIG_5: 2.16GHz and 4.32GHz
 445 * @IEEE80211_EDMG_BW_CONFIG_6: 2.16GHz, 4.32GHz and 6.48GHz
 446 * @IEEE80211_EDMG_BW_CONFIG_7: 2.16GHz, 4.32GHz, 6.48GHz and 8.64GHz
 447 * @IEEE80211_EDMG_BW_CONFIG_8: 2.16GHz and 2.16GHz + 2.16GHz
 448 * @IEEE80211_EDMG_BW_CONFIG_9: 2.16GHz, 4.32GHz and 2.16GHz + 2.16GHz
 449 * @IEEE80211_EDMG_BW_CONFIG_10: 2.16GHz, 4.32GHz, 6.48GHz and 2.16GHz+2.16GHz
 450 * @IEEE80211_EDMG_BW_CONFIG_11: 2.16GHz, 4.32GHz, 6.48GHz, 8.64GHz and
 451 *	2.16GHz+2.16GHz
 452 * @IEEE80211_EDMG_BW_CONFIG_12: 2.16GHz, 2.16GHz + 2.16GHz and
 453 *	4.32GHz + 4.32GHz
 454 * @IEEE80211_EDMG_BW_CONFIG_13: 2.16GHz, 4.32GHz, 2.16GHz + 2.16GHz and
 455 *	4.32GHz + 4.32GHz
 456 * @IEEE80211_EDMG_BW_CONFIG_14: 2.16GHz, 4.32GHz, 6.48GHz, 2.16GHz + 2.16GHz
 457 *	and 4.32GHz + 4.32GHz
 458 * @IEEE80211_EDMG_BW_CONFIG_15: 2.16GHz, 4.32GHz, 6.48GHz, 8.64GHz,
 459 *	2.16GHz + 2.16GHz and 4.32GHz + 4.32GHz
 460 */
 461enum ieee80211_edmg_bw_config {
 462	IEEE80211_EDMG_BW_CONFIG_4	= 4,
 463	IEEE80211_EDMG_BW_CONFIG_5	= 5,
 464	IEEE80211_EDMG_BW_CONFIG_6	= 6,
 465	IEEE80211_EDMG_BW_CONFIG_7	= 7,
 466	IEEE80211_EDMG_BW_CONFIG_8	= 8,
 467	IEEE80211_EDMG_BW_CONFIG_9	= 9,
 468	IEEE80211_EDMG_BW_CONFIG_10	= 10,
 469	IEEE80211_EDMG_BW_CONFIG_11	= 11,
 470	IEEE80211_EDMG_BW_CONFIG_12	= 12,
 471	IEEE80211_EDMG_BW_CONFIG_13	= 13,
 472	IEEE80211_EDMG_BW_CONFIG_14	= 14,
 473	IEEE80211_EDMG_BW_CONFIG_15	= 15,
 474};
 475
 476/**
 477 * struct ieee80211_edmg - EDMG configuration
 478 *
 479 * This structure describes most essential parameters needed
 480 * to describe 802.11ay EDMG configuration
 481 *
 482 * @channels: bitmap that indicates the 2.16 GHz channel(s)
 483 *	that are allowed to be used for transmissions.
 484 *	Bit 0 indicates channel 1, bit 1 indicates channel 2, etc.
 485 *	Set to 0 indicate EDMG not supported.
 486 * @bw_config: Channel BW Configuration subfield encodes
 487 *	the allowed channel bandwidth configurations
 488 */
 489struct ieee80211_edmg {
 490	u8 channels;
 491	enum ieee80211_edmg_bw_config bw_config;
 492};
 493
 494/**
 495 * struct ieee80211_sta_s1g_cap - STA's S1G capabilities
 496 *
 497 * This structure describes most essential parameters needed
 498 * to describe 802.11ah S1G capabilities for a STA.
 499 *
 500 * @s1g: is STA an S1G STA
 501 * @cap: S1G capabilities information
 502 * @nss_mcs: Supported NSS MCS set
 503 */
 504struct ieee80211_sta_s1g_cap {
 505	bool s1g;
 506	u8 cap[10]; /* use S1G_CAPAB_ */
 507	u8 nss_mcs[5];
 508};
 509
 510/**
 511 * struct ieee80211_supported_band - frequency band definition
 512 *
 513 * This structure describes a frequency band a wiphy
 514 * is able to operate in.
 515 *
 516 * @channels: Array of channels the hardware can operate with
 517 *	in this band.
 518 * @band: the band this structure represents
 519 * @n_channels: Number of channels in @channels
 520 * @bitrates: Array of bitrates the hardware can operate with
 521 *	in this band. Must be sorted to give a valid "supported
 522 *	rates" IE, i.e. CCK rates first, then OFDM.
 523 * @n_bitrates: Number of bitrates in @bitrates
 524 * @ht_cap: HT capabilities in this band
 525 * @vht_cap: VHT capabilities in this band
 526 * @s1g_cap: S1G capabilities in this band
 527 * @edmg_cap: EDMG capabilities in this band
 528 * @s1g_cap: S1G capabilities in this band (S1B band only, of course)
 529 * @n_iftype_data: number of iftype data entries
 530 * @iftype_data: interface type data entries.  Note that the bits in
 531 *	@types_mask inside this structure cannot overlap (i.e. only
 532 *	one occurrence of each type is allowed across all instances of
 533 *	iftype_data).
 534 */
 535struct ieee80211_supported_band {
 536	struct ieee80211_channel *channels;
 537	struct ieee80211_rate *bitrates;
 538	enum nl80211_band band;
 539	int n_channels;
 540	int n_bitrates;
 541	struct ieee80211_sta_ht_cap ht_cap;
 542	struct ieee80211_sta_vht_cap vht_cap;
 543	struct ieee80211_sta_s1g_cap s1g_cap;
 544	struct ieee80211_edmg edmg_cap;
 545	u16 n_iftype_data;
 546	const struct ieee80211_sband_iftype_data *iftype_data;
 547};
 548
 549/**
 550 * ieee80211_get_sband_iftype_data - return sband data for a given iftype
 551 * @sband: the sband to search for the STA on
 552 * @iftype: enum nl80211_iftype
 553 *
 554 * Return: pointer to struct ieee80211_sband_iftype_data, or NULL is none found
 555 */
 556static inline const struct ieee80211_sband_iftype_data *
 557ieee80211_get_sband_iftype_data(const struct ieee80211_supported_band *sband,
 558				u8 iftype)
 559{
 560	int i;
 561
 562	if (WARN_ON(iftype >= NL80211_IFTYPE_MAX))
 563		return NULL;
 564
 565	for (i = 0; i < sband->n_iftype_data; i++)  {
 566		const struct ieee80211_sband_iftype_data *data =
 567			&sband->iftype_data[i];
 568
 569		if (data->types_mask & BIT(iftype))
 570			return data;
 571	}
 572
 573	return NULL;
 574}
 575
 576/**
 577 * ieee80211_get_he_iftype_cap - return HE capabilities for an sband's iftype
 578 * @sband: the sband to search for the iftype on
 579 * @iftype: enum nl80211_iftype
 580 *
 581 * Return: pointer to the struct ieee80211_sta_he_cap, or NULL is none found
 582 */
 583static inline const struct ieee80211_sta_he_cap *
 584ieee80211_get_he_iftype_cap(const struct ieee80211_supported_band *sband,
 585			    u8 iftype)
 586{
 587	const struct ieee80211_sband_iftype_data *data =
 588		ieee80211_get_sband_iftype_data(sband, iftype);
 589
 590	if (data && data->he_cap.has_he)
 591		return &data->he_cap;
 592
 593	return NULL;
 594}
 595
 596/**
 597 * ieee80211_get_he_6ghz_capa - return HE 6 GHz capabilities
 598 * @sband: the sband to search for the STA on
 599 * @iftype: the iftype to search for
 600 *
 601 * Return: the 6GHz capabilities
 602 */
 603static inline __le16
 604ieee80211_get_he_6ghz_capa(const struct ieee80211_supported_band *sband,
 605			   enum nl80211_iftype iftype)
 606{
 607	const struct ieee80211_sband_iftype_data *data =
 608		ieee80211_get_sband_iftype_data(sband, iftype);
 609
 610	if (WARN_ON(!data || !data->he_cap.has_he))
 611		return 0;
 612
 613	return data->he_6ghz_capa.capa;
 614}
 615
 616/**
 617 * ieee80211_get_eht_iftype_cap - return ETH capabilities for an sband's iftype
 618 * @sband: the sband to search for the iftype on
 619 * @iftype: enum nl80211_iftype
 620 *
 621 * Return: pointer to the struct ieee80211_sta_eht_cap, or NULL is none found
 622 */
 623static inline const struct ieee80211_sta_eht_cap *
 624ieee80211_get_eht_iftype_cap(const struct ieee80211_supported_band *sband,
 625			     enum nl80211_iftype iftype)
 626{
 627	const struct ieee80211_sband_iftype_data *data =
 628		ieee80211_get_sband_iftype_data(sband, iftype);
 629
 630	if (data && data->eht_cap.has_eht)
 631		return &data->eht_cap;
 632
 633	return NULL;
 634}
 635
 636/**
 637 * wiphy_read_of_freq_limits - read frequency limits from device tree
 638 *
 639 * @wiphy: the wireless device to get extra limits for
 640 *
 641 * Some devices may have extra limitations specified in DT. This may be useful
 642 * for chipsets that normally support more bands but are limited due to board
 643 * design (e.g. by antennas or external power amplifier).
 644 *
 645 * This function reads info from DT and uses it to *modify* channels (disable
 646 * unavailable ones). It's usually a *bad* idea to use it in drivers with
 647 * shared channel data as DT limitations are device specific. You should make
 648 * sure to call it only if channels in wiphy are copied and can be modified
 649 * without affecting other devices.
 650 *
 651 * As this function access device node it has to be called after set_wiphy_dev.
 652 * It also modifies channels so they have to be set first.
 653 * If using this helper, call it before wiphy_register().
 654 */
 655#ifdef CONFIG_OF
 656void wiphy_read_of_freq_limits(struct wiphy *wiphy);
 657#else /* CONFIG_OF */
 658static inline void wiphy_read_of_freq_limits(struct wiphy *wiphy)
 659{
 660}
 661#endif /* !CONFIG_OF */
 662
 663
 664/*
 665 * Wireless hardware/device configuration structures and methods
 666 */
 667
 668/**
 669 * DOC: Actions and configuration
 670 *
 671 * Each wireless device and each virtual interface offer a set of configuration
 672 * operations and other actions that are invoked by userspace. Each of these
 673 * actions is described in the operations structure, and the parameters these
 674 * operations use are described separately.
 675 *
 676 * Additionally, some operations are asynchronous and expect to get status
 677 * information via some functions that drivers need to call.
 678 *
 679 * Scanning and BSS list handling with its associated functionality is described
 680 * in a separate chapter.
 681 */
 682
 683#define VHT_MUMIMO_GROUPS_DATA_LEN (WLAN_MEMBERSHIP_LEN +\
 684				    WLAN_USER_POSITION_LEN)
 685
 686/**
 687 * struct vif_params - describes virtual interface parameters
 688 * @flags: monitor interface flags, unchanged if 0, otherwise
 689 *	%MONITOR_FLAG_CHANGED will be set
 690 * @use_4addr: use 4-address frames
 691 * @macaddr: address to use for this virtual interface.
 692 *	If this parameter is set to zero address the driver may
 693 *	determine the address as needed.
 694 *	This feature is only fully supported by drivers that enable the
 695 *	%NL80211_FEATURE_MAC_ON_CREATE flag.  Others may support creating
 696 **	only p2p devices with specified MAC.
 697 * @vht_mumimo_groups: MU-MIMO groupID, used for monitoring MU-MIMO packets
 698 *	belonging to that MU-MIMO groupID; %NULL if not changed
 699 * @vht_mumimo_follow_addr: MU-MIMO follow address, used for monitoring
 700 *	MU-MIMO packets going to the specified station; %NULL if not changed
 701 */
 702struct vif_params {
 703	u32 flags;
 704	int use_4addr;
 705	u8 macaddr[ETH_ALEN];
 706	const u8 *vht_mumimo_groups;
 707	const u8 *vht_mumimo_follow_addr;
 708};
 709
 710/**
 711 * struct key_params - key information
 712 *
 713 * Information about a key
 714 *
 715 * @key: key material
 716 * @key_len: length of key material
 717 * @cipher: cipher suite selector
 718 * @seq: sequence counter (IV/PN) for TKIP and CCMP keys, only used
 719 *	with the get_key() callback, must be in little endian,
 720 *	length given by @seq_len.
 721 * @seq_len: length of @seq.
 722 * @vlan_id: vlan_id for VLAN group key (if nonzero)
 723 * @mode: key install mode (RX_TX, NO_TX or SET_TX)
 724 */
 725struct key_params {
 726	const u8 *key;
 727	const u8 *seq;
 728	int key_len;
 729	int seq_len;
 730	u16 vlan_id;
 731	u32 cipher;
 732	enum nl80211_key_mode mode;
 733};
 734
 735/**
 736 * struct cfg80211_chan_def - channel definition
 737 * @chan: the (control) channel
 738 * @width: channel width
 739 * @center_freq1: center frequency of first segment
 740 * @center_freq2: center frequency of second segment
 741 *	(only with 80+80 MHz)
 742 * @edmg: define the EDMG channels configuration.
 743 *	If edmg is requested (i.e. the .channels member is non-zero),
 744 *	chan will define the primary channel and all other
 745 *	parameters are ignored.
 746 * @freq1_offset: offset from @center_freq1, in KHz
 747 */
 748struct cfg80211_chan_def {
 749	struct ieee80211_channel *chan;
 750	enum nl80211_chan_width width;
 751	u32 center_freq1;
 752	u32 center_freq2;
 753	struct ieee80211_edmg edmg;
 754	u16 freq1_offset;
 755};
 756
 757/*
 758 * cfg80211_bitrate_mask - masks for bitrate control
 759 */
 760struct cfg80211_bitrate_mask {
 761	struct {
 762		u32 legacy;
 763		u8 ht_mcs[IEEE80211_HT_MCS_MASK_LEN];
 764		u16 vht_mcs[NL80211_VHT_NSS_MAX];
 765		u16 he_mcs[NL80211_HE_NSS_MAX];
 766		enum nl80211_txrate_gi gi;
 767		enum nl80211_he_gi he_gi;
 768		enum nl80211_he_ltf he_ltf;
 769	} control[NUM_NL80211_BANDS];
 770};
 771
 772
 773/**
 774 * struct cfg80211_tid_cfg - TID specific configuration
 775 * @config_override: Flag to notify driver to reset TID configuration
 776 *	of the peer.
 777 * @tids: bitmap of TIDs to modify
 778 * @mask: bitmap of attributes indicating which parameter changed,
 779 *	similar to &nl80211_tid_config_supp.
 780 * @noack: noack configuration value for the TID
 781 * @retry_long: retry count value
 782 * @retry_short: retry count value
 783 * @ampdu: Enable/Disable MPDU aggregation
 784 * @rtscts: Enable/Disable RTS/CTS
 785 * @amsdu: Enable/Disable MSDU aggregation
 786 * @txrate_type: Tx bitrate mask type
 787 * @txrate_mask: Tx bitrate to be applied for the TID
 788 */
 789struct cfg80211_tid_cfg {
 790	bool config_override;
 791	u8 tids;
 792	u64 mask;
 793	enum nl80211_tid_config noack;
 794	u8 retry_long, retry_short;
 795	enum nl80211_tid_config ampdu;
 796	enum nl80211_tid_config rtscts;
 797	enum nl80211_tid_config amsdu;
 798	enum nl80211_tx_rate_setting txrate_type;
 799	struct cfg80211_bitrate_mask txrate_mask;
 800};
 801
 802/**
 803 * struct cfg80211_tid_config - TID configuration
 804 * @peer: Station's MAC address
 805 * @n_tid_conf: Number of TID specific configurations to be applied
 806 * @tid_conf: Configuration change info
 807 */
 808struct cfg80211_tid_config {
 809	const u8 *peer;
 810	u32 n_tid_conf;
 811	struct cfg80211_tid_cfg tid_conf[];
 812};
 813
 814/**
 815 * struct cfg80211_fils_aad - FILS AAD data
 816 * @macaddr: STA MAC address
 817 * @kek: FILS KEK
 818 * @kek_len: FILS KEK length
 819 * @snonce: STA Nonce
 820 * @anonce: AP Nonce
 821 */
 822struct cfg80211_fils_aad {
 823	const u8 *macaddr;
 824	const u8 *kek;
 825	u8 kek_len;
 826	const u8 *snonce;
 827	const u8 *anonce;
 828};
 829
 830/**
 831 * cfg80211_get_chandef_type - return old channel type from chandef
 832 * @chandef: the channel definition
 833 *
 834 * Return: The old channel type (NOHT, HT20, HT40+/-) from a given
 835 * chandef, which must have a bandwidth allowing this conversion.
 836 */
 837static inline enum nl80211_channel_type
 838cfg80211_get_chandef_type(const struct cfg80211_chan_def *chandef)
 839{
 840	switch (chandef->width) {
 841	case NL80211_CHAN_WIDTH_20_NOHT:
 842		return NL80211_CHAN_NO_HT;
 843	case NL80211_CHAN_WIDTH_20:
 844		return NL80211_CHAN_HT20;
 845	case NL80211_CHAN_WIDTH_40:
 846		if (chandef->center_freq1 > chandef->chan->center_freq)
 847			return NL80211_CHAN_HT40PLUS;
 848		return NL80211_CHAN_HT40MINUS;
 849	default:
 850		WARN_ON(1);
 851		return NL80211_CHAN_NO_HT;
 852	}
 853}
 854
 855/**
 856 * cfg80211_chandef_create - create channel definition using channel type
 857 * @chandef: the channel definition struct to fill
 858 * @channel: the control channel
 859 * @chantype: the channel type
 860 *
 861 * Given a channel type, create a channel definition.
 862 */
 863void cfg80211_chandef_create(struct cfg80211_chan_def *chandef,
 864			     struct ieee80211_channel *channel,
 865			     enum nl80211_channel_type chantype);
 866
 867/**
 868 * cfg80211_chandef_identical - check if two channel definitions are identical
 869 * @chandef1: first channel definition
 870 * @chandef2: second channel definition
 871 *
 872 * Return: %true if the channels defined by the channel definitions are
 873 * identical, %false otherwise.
 874 */
 875static inline bool
 876cfg80211_chandef_identical(const struct cfg80211_chan_def *chandef1,
 877			   const struct cfg80211_chan_def *chandef2)
 878{
 879	return (chandef1->chan == chandef2->chan &&
 880		chandef1->width == chandef2->width &&
 881		chandef1->center_freq1 == chandef2->center_freq1 &&
 882		chandef1->freq1_offset == chandef2->freq1_offset &&
 883		chandef1->center_freq2 == chandef2->center_freq2);
 884}
 885
 886/**
 887 * cfg80211_chandef_is_edmg - check if chandef represents an EDMG channel
 888 *
 889 * @chandef: the channel definition
 890 *
 891 * Return: %true if EDMG defined, %false otherwise.
 892 */
 893static inline bool
 894cfg80211_chandef_is_edmg(const struct cfg80211_chan_def *chandef)
 895{
 896	return chandef->edmg.channels || chandef->edmg.bw_config;
 897}
 898
 899/**
 900 * cfg80211_chandef_compatible - check if two channel definitions are compatible
 901 * @chandef1: first channel definition
 902 * @chandef2: second channel definition
 903 *
 904 * Return: %NULL if the given channel definitions are incompatible,
 905 * chandef1 or chandef2 otherwise.
 906 */
 907const struct cfg80211_chan_def *
 908cfg80211_chandef_compatible(const struct cfg80211_chan_def *chandef1,
 909			    const struct cfg80211_chan_def *chandef2);
 910
 911/**
 912 * cfg80211_chandef_valid - check if a channel definition is valid
 913 * @chandef: the channel definition to check
 914 * Return: %true if the channel definition is valid. %false otherwise.
 915 */
 916bool cfg80211_chandef_valid(const struct cfg80211_chan_def *chandef);
 917
 918/**
 919 * cfg80211_chandef_usable - check if secondary channels can be used
 920 * @wiphy: the wiphy to validate against
 921 * @chandef: the channel definition to check
 922 * @prohibited_flags: the regulatory channel flags that must not be set
 923 * Return: %true if secondary channels are usable. %false otherwise.
 924 */
 925bool cfg80211_chandef_usable(struct wiphy *wiphy,
 926			     const struct cfg80211_chan_def *chandef,
 927			     u32 prohibited_flags);
 928
 929/**
 930 * cfg80211_chandef_dfs_required - checks if radar detection is required
 931 * @wiphy: the wiphy to validate against
 932 * @chandef: the channel definition to check
 933 * @iftype: the interface type as specified in &enum nl80211_iftype
 934 * Returns:
 935 *	1 if radar detection is required, 0 if it is not, < 0 on error
 936 */
 937int cfg80211_chandef_dfs_required(struct wiphy *wiphy,
 938				  const struct cfg80211_chan_def *chandef,
 939				  enum nl80211_iftype iftype);
 940
 941/**
 942 * ieee80211_chanwidth_rate_flags - return rate flags for channel width
 943 * @width: the channel width of the channel
 944 *
 945 * In some channel types, not all rates may be used - for example CCK
 946 * rates may not be used in 5/10 MHz channels.
 947 *
 948 * Returns: rate flags which apply for this channel width
 
 
 949 */
 950static inline enum ieee80211_rate_flags
 951ieee80211_chanwidth_rate_flags(enum nl80211_chan_width width)
 952{
 953	switch (width) {
 954	case NL80211_CHAN_WIDTH_5:
 955		return IEEE80211_RATE_SUPPORTS_5MHZ;
 956	case NL80211_CHAN_WIDTH_10:
 957		return IEEE80211_RATE_SUPPORTS_10MHZ;
 958	default:
 959		break;
 960	}
 961	return 0;
 962}
 963
 964/**
 965 * ieee80211_chandef_rate_flags - returns rate flags for a channel
 966 * @chandef: channel definition for the channel
 967 *
 968 * See ieee80211_chanwidth_rate_flags().
 969 *
 970 * Returns: rate flags which apply for this channel
 971 */
 972static inline enum ieee80211_rate_flags
 973ieee80211_chandef_rate_flags(struct cfg80211_chan_def *chandef)
 974{
 975	return ieee80211_chanwidth_rate_flags(chandef->width);
 976}
 977
 978/**
 979 * ieee80211_chandef_max_power - maximum transmission power for the chandef
 980 *
 981 * In some regulations, the transmit power may depend on the configured channel
 982 * bandwidth which may be defined as dBm/MHz. This function returns the actual
 983 * max_power for non-standard (20 MHz) channels.
 984 *
 985 * @chandef: channel definition for the channel
 986 *
 987 * Returns: maximum allowed transmission power in dBm for the chandef
 988 */
 989static inline int
 990ieee80211_chandef_max_power(struct cfg80211_chan_def *chandef)
 991{
 992	switch (chandef->width) {
 993	case NL80211_CHAN_WIDTH_5:
 994		return min(chandef->chan->max_reg_power - 6,
 995			   chandef->chan->max_power);
 996	case NL80211_CHAN_WIDTH_10:
 997		return min(chandef->chan->max_reg_power - 3,
 998			   chandef->chan->max_power);
 999	default:
1000		break;
1001	}
1002	return chandef->chan->max_power;
1003}
1004
1005/**
1006 * cfg80211_any_usable_channels - check for usable channels
1007 * @wiphy: the wiphy to check for
1008 * @band_mask: which bands to check on
1009 * @prohibited_flags: which channels to not consider usable,
1010 *	%IEEE80211_CHAN_DISABLED is always taken into account
1011 */
1012bool cfg80211_any_usable_channels(struct wiphy *wiphy,
1013				  unsigned long band_mask,
1014				  u32 prohibited_flags);
1015
1016/**
1017 * enum survey_info_flags - survey information flags
1018 *
1019 * @SURVEY_INFO_NOISE_DBM: noise (in dBm) was filled in
1020 * @SURVEY_INFO_IN_USE: channel is currently being used
1021 * @SURVEY_INFO_TIME: active time (in ms) was filled in
1022 * @SURVEY_INFO_TIME_BUSY: busy time was filled in
1023 * @SURVEY_INFO_TIME_EXT_BUSY: extension channel busy time was filled in
1024 * @SURVEY_INFO_TIME_RX: receive time was filled in
1025 * @SURVEY_INFO_TIME_TX: transmit time was filled in
1026 * @SURVEY_INFO_TIME_SCAN: scan time was filled in
1027 * @SURVEY_INFO_TIME_BSS_RX: local BSS receive time was filled in
1028 *
1029 * Used by the driver to indicate which info in &struct survey_info
1030 * it has filled in during the get_survey().
1031 */
1032enum survey_info_flags {
1033	SURVEY_INFO_NOISE_DBM		= BIT(0),
1034	SURVEY_INFO_IN_USE		= BIT(1),
1035	SURVEY_INFO_TIME		= BIT(2),
1036	SURVEY_INFO_TIME_BUSY		= BIT(3),
1037	SURVEY_INFO_TIME_EXT_BUSY	= BIT(4),
1038	SURVEY_INFO_TIME_RX		= BIT(5),
1039	SURVEY_INFO_TIME_TX		= BIT(6),
1040	SURVEY_INFO_TIME_SCAN		= BIT(7),
1041	SURVEY_INFO_TIME_BSS_RX		= BIT(8),
1042};
1043
1044/**
1045 * struct survey_info - channel survey response
1046 *
1047 * @channel: the channel this survey record reports, may be %NULL for a single
1048 *	record to report global statistics
1049 * @filled: bitflag of flags from &enum survey_info_flags
1050 * @noise: channel noise in dBm. This and all following fields are
1051 *	optional
1052 * @time: amount of time in ms the radio was turn on (on the channel)
1053 * @time_busy: amount of time the primary channel was sensed busy
1054 * @time_ext_busy: amount of time the extension channel was sensed busy
1055 * @time_rx: amount of time the radio spent receiving data
1056 * @time_tx: amount of time the radio spent transmitting data
1057 * @time_scan: amount of time the radio spent for scanning
1058 * @time_bss_rx: amount of time the radio spent receiving data on a local BSS
1059 *
1060 * Used by dump_survey() to report back per-channel survey information.
1061 *
1062 * This structure can later be expanded with things like
1063 * channel duty cycle etc.
1064 */
1065struct survey_info {
1066	struct ieee80211_channel *channel;
1067	u64 time;
1068	u64 time_busy;
1069	u64 time_ext_busy;
1070	u64 time_rx;
1071	u64 time_tx;
1072	u64 time_scan;
1073	u64 time_bss_rx;
1074	u32 filled;
1075	s8 noise;
1076};
1077
1078#define CFG80211_MAX_WEP_KEYS	4
1079#define CFG80211_MAX_NUM_AKM_SUITES	10
1080
1081/**
1082 * struct cfg80211_crypto_settings - Crypto settings
1083 * @wpa_versions: indicates which, if any, WPA versions are enabled
1084 *	(from enum nl80211_wpa_versions)
1085 * @cipher_group: group key cipher suite (or 0 if unset)
1086 * @n_ciphers_pairwise: number of AP supported unicast ciphers
1087 * @ciphers_pairwise: unicast key cipher suites
1088 * @n_akm_suites: number of AKM suites
1089 * @akm_suites: AKM suites
1090 * @control_port: Whether user space controls IEEE 802.1X port, i.e.,
1091 *	sets/clears %NL80211_STA_FLAG_AUTHORIZED. If true, the driver is
1092 *	required to assume that the port is unauthorized until authorized by
1093 *	user space. Otherwise, port is marked authorized by default.
1094 * @control_port_ethertype: the control port protocol that should be
1095 *	allowed through even on unauthorized ports
1096 * @control_port_no_encrypt: TRUE to prevent encryption of control port
1097 *	protocol frames.
1098 * @control_port_over_nl80211: TRUE if userspace expects to exchange control
1099 *	port frames over NL80211 instead of the network interface.
1100 * @control_port_no_preauth: disables pre-auth rx over the nl80211 control
1101 *	port for mac80211
1102 * @wep_keys: static WEP keys, if not NULL points to an array of
1103 *	CFG80211_MAX_WEP_KEYS WEP keys
1104 * @wep_tx_key: key index (0..3) of the default TX static WEP key
1105 * @psk: PSK (for devices supporting 4-way-handshake offload)
1106 * @sae_pwd: password for SAE authentication (for devices supporting SAE
1107 *	offload)
1108 * @sae_pwd_len: length of SAE password (for devices supporting SAE offload)
1109 * @sae_pwe: The mechanisms allowed for SAE PWE derivation:
1110 *
1111 *	NL80211_SAE_PWE_UNSPECIFIED
1112 *	  Not-specified, used to indicate userspace did not specify any
1113 *	  preference. The driver should follow its internal policy in
1114 *	  such a scenario.
1115 *
1116 *	NL80211_SAE_PWE_HUNT_AND_PECK
1117 *	  Allow hunting-and-pecking loop only
1118 *
1119 *	NL80211_SAE_PWE_HASH_TO_ELEMENT
1120 *	  Allow hash-to-element only
1121 *
1122 *	NL80211_SAE_PWE_BOTH
1123 *	  Allow either hunting-and-pecking loop or hash-to-element
1124 */
1125struct cfg80211_crypto_settings {
1126	u32 wpa_versions;
1127	u32 cipher_group;
1128	int n_ciphers_pairwise;
1129	u32 ciphers_pairwise[NL80211_MAX_NR_CIPHER_SUITES];
1130	int n_akm_suites;
1131	u32 akm_suites[CFG80211_MAX_NUM_AKM_SUITES];
1132	bool control_port;
1133	__be16 control_port_ethertype;
1134	bool control_port_no_encrypt;
1135	bool control_port_over_nl80211;
1136	bool control_port_no_preauth;
1137	struct key_params *wep_keys;
1138	int wep_tx_key;
1139	const u8 *psk;
1140	const u8 *sae_pwd;
1141	u8 sae_pwd_len;
1142	enum nl80211_sae_pwe_mechanism sae_pwe;
1143};
1144
1145/**
1146 * struct cfg80211_mbssid_config - AP settings for multi bssid
1147 *
1148 * @tx_wdev: pointer to the transmitted interface in the MBSSID set
1149 * @index: index of this AP in the multi bssid group.
1150 * @ema: set to true if the beacons should be sent out in EMA mode.
1151 */
1152struct cfg80211_mbssid_config {
1153	struct wireless_dev *tx_wdev;
1154	u8 index;
1155	bool ema;
1156};
1157
1158/**
1159 * struct cfg80211_mbssid_elems - Multiple BSSID elements
1160 *
1161 * @cnt: Number of elements in array %elems.
1162 *
1163 * @elem: Array of multiple BSSID element(s) to be added into Beacon frames.
1164 * @elem.data: Data for multiple BSSID elements.
1165 * @elem.len: Length of data.
1166 */
1167struct cfg80211_mbssid_elems {
1168	u8 cnt;
1169	struct {
1170		const u8 *data;
1171		size_t len;
1172	} elem[];
1173};
1174
1175/**
1176 * struct cfg80211_beacon_data - beacon data
1177 * @link_id: the link ID for the AP MLD link sending this beacon
1178 * @head: head portion of beacon (before TIM IE)
1179 *	or %NULL if not changed
1180 * @tail: tail portion of beacon (after TIM IE)
1181 *	or %NULL if not changed
1182 * @head_len: length of @head
1183 * @tail_len: length of @tail
1184 * @beacon_ies: extra information element(s) to add into Beacon frames or %NULL
1185 * @beacon_ies_len: length of beacon_ies in octets
1186 * @proberesp_ies: extra information element(s) to add into Probe Response
1187 *	frames or %NULL
1188 * @proberesp_ies_len: length of proberesp_ies in octets
1189 * @assocresp_ies: extra information element(s) to add into (Re)Association
1190 *	Response frames or %NULL
1191 * @assocresp_ies_len: length of assocresp_ies in octets
1192 * @probe_resp_len: length of probe response template (@probe_resp)
1193 * @probe_resp: probe response template (AP mode only)
1194 * @mbssid_ies: multiple BSSID elements
1195 * @ftm_responder: enable FTM responder functionality; -1 for no change
1196 *	(which also implies no change in LCI/civic location data)
1197 * @lci: Measurement Report element content, starting with Measurement Token
1198 *	(measurement type 8)
1199 * @civicloc: Measurement Report element content, starting with Measurement
1200 *	Token (measurement type 11)
1201 * @lci_len: LCI data length
1202 * @civicloc_len: Civic location data length
1203 * @he_bss_color: BSS Color settings
1204 * @he_bss_color_valid: indicates whether bss color
1205 *	attribute is present in beacon data or not.
1206 */
1207struct cfg80211_beacon_data {
1208	unsigned int link_id;
1209
1210	const u8 *head, *tail;
1211	const u8 *beacon_ies;
1212	const u8 *proberesp_ies;
1213	const u8 *assocresp_ies;
1214	const u8 *probe_resp;
1215	const u8 *lci;
1216	const u8 *civicloc;
1217	struct cfg80211_mbssid_elems *mbssid_ies;
1218	s8 ftm_responder;
1219
1220	size_t head_len, tail_len;
1221	size_t beacon_ies_len;
1222	size_t proberesp_ies_len;
1223	size_t assocresp_ies_len;
1224	size_t probe_resp_len;
1225	size_t lci_len;
1226	size_t civicloc_len;
1227	struct cfg80211_he_bss_color he_bss_color;
1228	bool he_bss_color_valid;
1229};
1230
1231struct mac_address {
1232	u8 addr[ETH_ALEN];
1233};
1234
1235/**
1236 * struct cfg80211_acl_data - Access control list data
1237 *
1238 * @acl_policy: ACL policy to be applied on the station's
1239 *	entry specified by mac_addr
1240 * @n_acl_entries: Number of MAC address entries passed
1241 * @mac_addrs: List of MAC addresses of stations to be used for ACL
1242 */
1243struct cfg80211_acl_data {
1244	enum nl80211_acl_policy acl_policy;
1245	int n_acl_entries;
1246
1247	/* Keep it last */
1248	struct mac_address mac_addrs[];
1249};
1250
1251/**
1252 * struct cfg80211_fils_discovery - FILS discovery parameters from
1253 * IEEE Std 802.11ai-2016, Annex C.3 MIB detail.
1254 *
1255 * @min_interval: Minimum packet interval in TUs (0 - 10000)
1256 * @max_interval: Maximum packet interval in TUs (0 - 10000)
1257 * @tmpl_len: Template length
1258 * @tmpl: Template data for FILS discovery frame including the action
1259 *	frame headers.
1260 */
1261struct cfg80211_fils_discovery {
1262	u32 min_interval;
1263	u32 max_interval;
1264	size_t tmpl_len;
1265	const u8 *tmpl;
1266};
1267
1268/**
1269 * struct cfg80211_unsol_bcast_probe_resp - Unsolicited broadcast probe
1270 *	response parameters in 6GHz.
1271 *
1272 * @interval: Packet interval in TUs. Maximum allowed is 20 TU, as mentioned
1273 *	in IEEE P802.11ax/D6.0 26.17.2.3.2 - AP behavior for fast passive
1274 *	scanning
1275 * @tmpl_len: Template length
1276 * @tmpl: Template data for probe response
1277 */
1278struct cfg80211_unsol_bcast_probe_resp {
1279	u32 interval;
1280	size_t tmpl_len;
1281	const u8 *tmpl;
1282};
1283
1284/**
 
 
 
 
 
 
 
 
 
 
 
1285 * struct cfg80211_ap_settings - AP configuration
1286 *
1287 * Used to configure an AP interface.
1288 *
1289 * @chandef: defines the channel to use
1290 * @beacon: beacon data
1291 * @beacon_interval: beacon interval
1292 * @dtim_period: DTIM period
1293 * @ssid: SSID to be used in the BSS (note: may be %NULL if not provided from
1294 *	user space)
1295 * @ssid_len: length of @ssid
1296 * @hidden_ssid: whether to hide the SSID in Beacon/Probe Response frames
1297 * @crypto: crypto settings
1298 * @privacy: the BSS uses privacy
1299 * @auth_type: Authentication type (algorithm)
1300 * @smps_mode: SMPS mode
1301 * @inactivity_timeout: time in seconds to determine station's inactivity.
1302 * @p2p_ctwindow: P2P CT Window
1303 * @p2p_opp_ps: P2P opportunistic PS
1304 * @acl: ACL configuration used by the drivers which has support for
1305 *	MAC address based access control
1306 * @pbss: If set, start as a PCP instead of AP. Relevant for DMG
1307 *	networks.
1308 * @beacon_rate: bitrate to be used for beacons
1309 * @ht_cap: HT capabilities (or %NULL if HT isn't enabled)
1310 * @vht_cap: VHT capabilities (or %NULL if VHT isn't enabled)
1311 * @he_cap: HE capabilities (or %NULL if HE isn't enabled)
1312 * @eht_cap: EHT capabilities (or %NULL if EHT isn't enabled)
1313 * @eht_oper: EHT operation IE (or %NULL if EHT isn't enabled)
1314 * @ht_required: stations must support HT
1315 * @vht_required: stations must support VHT
1316 * @twt_responder: Enable Target Wait Time
1317 * @he_required: stations must support HE
1318 * @sae_h2e_required: stations must support direct H2E technique in SAE
1319 * @flags: flags, as defined in enum cfg80211_ap_settings_flags
1320 * @he_obss_pd: OBSS Packet Detection settings
 
1321 * @he_oper: HE operation IE (or %NULL if HE isn't enabled)
1322 * @fils_discovery: FILS discovery transmission parameters
1323 * @unsol_bcast_probe_resp: Unsolicited broadcast probe response parameters
1324 * @mbssid_config: AP settings for multiple bssid
1325 */
1326struct cfg80211_ap_settings {
1327	struct cfg80211_chan_def chandef;
1328
1329	struct cfg80211_beacon_data beacon;
1330
1331	int beacon_interval, dtim_period;
1332	const u8 *ssid;
1333	size_t ssid_len;
1334	enum nl80211_hidden_ssid hidden_ssid;
1335	struct cfg80211_crypto_settings crypto;
1336	bool privacy;
1337	enum nl80211_auth_type auth_type;
1338	enum nl80211_smps_mode smps_mode;
1339	int inactivity_timeout;
1340	u8 p2p_ctwindow;
1341	bool p2p_opp_ps;
1342	const struct cfg80211_acl_data *acl;
1343	bool pbss;
1344	struct cfg80211_bitrate_mask beacon_rate;
1345
1346	const struct ieee80211_ht_cap *ht_cap;
1347	const struct ieee80211_vht_cap *vht_cap;
1348	const struct ieee80211_he_cap_elem *he_cap;
1349	const struct ieee80211_he_operation *he_oper;
1350	const struct ieee80211_eht_cap_elem *eht_cap;
1351	const struct ieee80211_eht_operation *eht_oper;
1352	bool ht_required, vht_required, he_required, sae_h2e_required;
1353	bool twt_responder;
1354	u32 flags;
1355	struct ieee80211_he_obss_pd he_obss_pd;
 
1356	struct cfg80211_fils_discovery fils_discovery;
1357	struct cfg80211_unsol_bcast_probe_resp unsol_bcast_probe_resp;
1358	struct cfg80211_mbssid_config mbssid_config;
1359};
1360
1361/**
1362 * struct cfg80211_csa_settings - channel switch settings
1363 *
1364 * Used for channel switch
1365 *
1366 * @chandef: defines the channel to use after the switch
1367 * @beacon_csa: beacon data while performing the switch
1368 * @counter_offsets_beacon: offsets of the counters within the beacon (tail)
1369 * @counter_offsets_presp: offsets of the counters within the probe response
1370 * @n_counter_offsets_beacon: number of csa counters the beacon (tail)
1371 * @n_counter_offsets_presp: number of csa counters in the probe response
1372 * @beacon_after: beacon data to be used on the new channel
1373 * @radar_required: whether radar detection is required on the new channel
1374 * @block_tx: whether transmissions should be blocked while changing
1375 * @count: number of beacons until switch
1376 */
1377struct cfg80211_csa_settings {
1378	struct cfg80211_chan_def chandef;
1379	struct cfg80211_beacon_data beacon_csa;
1380	const u16 *counter_offsets_beacon;
1381	const u16 *counter_offsets_presp;
1382	unsigned int n_counter_offsets_beacon;
1383	unsigned int n_counter_offsets_presp;
1384	struct cfg80211_beacon_data beacon_after;
1385	bool radar_required;
1386	bool block_tx;
1387	u8 count;
1388};
1389
1390/**
1391 * struct cfg80211_color_change_settings - color change settings
1392 *
1393 * Used for bss color change
1394 *
1395 * @beacon_color_change: beacon data while performing the color countdown
1396 * @counter_offset_beacon: offsets of the counters within the beacon (tail)
1397 * @counter_offset_presp: offsets of the counters within the probe response
1398 * @beacon_next: beacon data to be used after the color change
1399 * @count: number of beacons until the color change
1400 * @color: the color used after the change
1401 */
1402struct cfg80211_color_change_settings {
1403	struct cfg80211_beacon_data beacon_color_change;
1404	u16 counter_offset_beacon;
1405	u16 counter_offset_presp;
1406	struct cfg80211_beacon_data beacon_next;
1407	u8 count;
1408	u8 color;
1409};
1410
1411/**
1412 * struct iface_combination_params - input parameters for interface combinations
1413 *
1414 * Used to pass interface combination parameters
1415 *
1416 * @num_different_channels: the number of different channels we want
1417 *	to use for verification
1418 * @radar_detect: a bitmap where each bit corresponds to a channel
1419 *	width where radar detection is needed, as in the definition of
1420 *	&struct ieee80211_iface_combination.@radar_detect_widths
1421 * @iftype_num: array with the number of interfaces of each interface
1422 *	type.  The index is the interface type as specified in &enum
1423 *	nl80211_iftype.
1424 * @new_beacon_int: set this to the beacon interval of a new interface
1425 *	that's not operating yet, if such is to be checked as part of
1426 *	the verification
1427 */
1428struct iface_combination_params {
1429	int num_different_channels;
1430	u8 radar_detect;
1431	int iftype_num[NUM_NL80211_IFTYPES];
1432	u32 new_beacon_int;
1433};
1434
1435/**
1436 * enum station_parameters_apply_mask - station parameter values to apply
1437 * @STATION_PARAM_APPLY_UAPSD: apply new uAPSD parameters (uapsd_queues, max_sp)
1438 * @STATION_PARAM_APPLY_CAPABILITY: apply new capability
1439 * @STATION_PARAM_APPLY_PLINK_STATE: apply new plink state
1440 * @STATION_PARAM_APPLY_STA_TXPOWER: apply tx power for STA
1441 *
1442 * Not all station parameters have in-band "no change" signalling,
1443 * for those that don't these flags will are used.
1444 */
1445enum station_parameters_apply_mask {
1446	STATION_PARAM_APPLY_UAPSD = BIT(0),
1447	STATION_PARAM_APPLY_CAPABILITY = BIT(1),
1448	STATION_PARAM_APPLY_PLINK_STATE = BIT(2),
 
1449};
1450
1451/**
1452 * struct sta_txpwr - station txpower configuration
1453 *
1454 * Used to configure txpower for station.
1455 *
1456 * @power: tx power (in dBm) to be used for sending data traffic. If tx power
1457 *	is not provided, the default per-interface tx power setting will be
1458 *	overriding. Driver should be picking up the lowest tx power, either tx
1459 *	power per-interface or per-station.
1460 * @type: In particular if TPC %type is NL80211_TX_POWER_LIMITED then tx power
1461 *	will be less than or equal to specified from userspace, whereas if TPC
1462 *	%type is NL80211_TX_POWER_AUTOMATIC then it indicates default tx power.
1463 *	NL80211_TX_POWER_FIXED is not a valid configuration option for
1464 *	per peer TPC.
1465 */
1466struct sta_txpwr {
1467	s16 power;
1468	enum nl80211_tx_power_setting type;
1469};
1470
1471/**
1472 * struct link_station_parameters - link station parameters
1473 *
1474 * Used to change and create a new link station.
1475 *
1476 * @mld_mac: MAC address of the station
1477 * @link_id: the link id (-1 for non-MLD station)
1478 * @link_mac: MAC address of the link
1479 * @supported_rates: supported rates in IEEE 802.11 format
1480 *	(or NULL for no change)
1481 * @supported_rates_len: number of supported rates
1482 * @ht_capa: HT capabilities of station
1483 * @vht_capa: VHT capabilities of station
1484 * @opmode_notif: operating mode field from Operating Mode Notification
1485 * @opmode_notif_used: information if operating mode field is used
1486 * @he_capa: HE capabilities of station
1487 * @he_capa_len: the length of the HE capabilities
1488 * @txpwr: transmit power for an associated station
1489 * @txpwr_set: txpwr field is set
1490 * @he_6ghz_capa: HE 6 GHz Band capabilities of station
1491 * @eht_capa: EHT capabilities of station
1492 * @eht_capa_len: the length of the EHT capabilities
1493 */
1494struct link_station_parameters {
1495	const u8 *mld_mac;
1496	int link_id;
1497	const u8 *link_mac;
1498	const u8 *supported_rates;
1499	u8 supported_rates_len;
1500	const struct ieee80211_ht_cap *ht_capa;
1501	const struct ieee80211_vht_cap *vht_capa;
1502	u8 opmode_notif;
1503	bool opmode_notif_used;
1504	const struct ieee80211_he_cap_elem *he_capa;
1505	u8 he_capa_len;
1506	struct sta_txpwr txpwr;
1507	bool txpwr_set;
1508	const struct ieee80211_he_6ghz_capa *he_6ghz_capa;
1509	const struct ieee80211_eht_cap_elem *eht_capa;
1510	u8 eht_capa_len;
1511};
1512
1513/**
1514 * struct link_station_del_parameters - link station deletion parameters
1515 *
1516 * Used to delete a link station entry (or all stations).
1517 *
1518 * @mld_mac: MAC address of the station
1519 * @link_id: the link id
1520 */
1521struct link_station_del_parameters {
1522	const u8 *mld_mac;
1523	u32 link_id;
1524};
1525
1526/**
1527 * struct station_parameters - station parameters
1528 *
1529 * Used to change and create a new station.
1530 *
1531 * @vlan: vlan interface station should belong to
1532 * @sta_flags_mask: station flags that changed
1533 *	(bitmask of BIT(%NL80211_STA_FLAG_...))
1534 * @sta_flags_set: station flags values
1535 *	(bitmask of BIT(%NL80211_STA_FLAG_...))
1536 * @listen_interval: listen interval or -1 for no change
1537 * @aid: AID or zero for no change
1538 * @vlan_id: VLAN ID for station (if nonzero)
1539 * @peer_aid: mesh peer AID or zero for no change
1540 * @plink_action: plink action to take
1541 * @plink_state: set the peer link state for a station
 
 
1542 * @uapsd_queues: bitmap of queues configured for uapsd. same format
1543 *	as the AC bitmap in the QoS info field
1544 * @max_sp: max Service Period. same format as the MAX_SP in the
1545 *	QoS info field (but already shifted down)
1546 * @sta_modify_mask: bitmap indicating which parameters changed
1547 *	(for those that don't have a natural "no change" value),
1548 *	see &enum station_parameters_apply_mask
1549 * @local_pm: local link-specific mesh power save mode (no change when set
1550 *	to unknown)
1551 * @capability: station capability
1552 * @ext_capab: extended capabilities of the station
1553 * @ext_capab_len: number of extended capabilities
1554 * @supported_channels: supported channels in IEEE 802.11 format
1555 * @supported_channels_len: number of supported channels
1556 * @supported_oper_classes: supported oper classes in IEEE 802.11 format
1557 * @supported_oper_classes_len: number of supported operating classes
 
 
1558 * @support_p2p_ps: information if station supports P2P PS mechanism
 
 
1559 * @airtime_weight: airtime scheduler weight for this station
1560 * @link_sta_params: link related params.
 
1561 */
1562struct station_parameters {
 
1563	struct net_device *vlan;
1564	u32 sta_flags_mask, sta_flags_set;
1565	u32 sta_modify_mask;
1566	int listen_interval;
1567	u16 aid;
1568	u16 vlan_id;
1569	u16 peer_aid;
 
1570	u8 plink_action;
1571	u8 plink_state;
 
 
1572	u8 uapsd_queues;
1573	u8 max_sp;
1574	enum nl80211_mesh_power_mode local_pm;
1575	u16 capability;
1576	const u8 *ext_capab;
1577	u8 ext_capab_len;
1578	const u8 *supported_channels;
1579	u8 supported_channels_len;
1580	const u8 *supported_oper_classes;
1581	u8 supported_oper_classes_len;
 
 
1582	int support_p2p_ps;
 
 
1583	u16 airtime_weight;
1584	struct link_station_parameters link_sta_params;
 
1585};
1586
1587/**
1588 * struct station_del_parameters - station deletion parameters
1589 *
1590 * Used to delete a station entry (or all stations).
1591 *
1592 * @mac: MAC address of the station to remove or NULL to remove all stations
1593 * @subtype: Management frame subtype to use for indicating removal
1594 *	(10 = Disassociation, 12 = Deauthentication)
1595 * @reason_code: Reason code for the Disassociation/Deauthentication frame
1596 */
1597struct station_del_parameters {
1598	const u8 *mac;
1599	u8 subtype;
1600	u16 reason_code;
1601};
1602
1603/**
1604 * enum cfg80211_station_type - the type of station being modified
1605 * @CFG80211_STA_AP_CLIENT: client of an AP interface
1606 * @CFG80211_STA_AP_CLIENT_UNASSOC: client of an AP interface that is still
1607 *	unassociated (update properties for this type of client is permitted)
1608 * @CFG80211_STA_AP_MLME_CLIENT: client of an AP interface that has
1609 *	the AP MLME in the device
1610 * @CFG80211_STA_AP_STA: AP station on managed interface
1611 * @CFG80211_STA_IBSS: IBSS station
1612 * @CFG80211_STA_TDLS_PEER_SETUP: TDLS peer on managed interface (dummy entry
1613 *	while TDLS setup is in progress, it moves out of this state when
1614 *	being marked authorized; use this only if TDLS with external setup is
1615 *	supported/used)
1616 * @CFG80211_STA_TDLS_PEER_ACTIVE: TDLS peer on managed interface (active
1617 *	entry that is operating, has been marked authorized by userspace)
1618 * @CFG80211_STA_MESH_PEER_KERNEL: peer on mesh interface (kernel managed)
1619 * @CFG80211_STA_MESH_PEER_USER: peer on mesh interface (user managed)
1620 */
1621enum cfg80211_station_type {
1622	CFG80211_STA_AP_CLIENT,
1623	CFG80211_STA_AP_CLIENT_UNASSOC,
1624	CFG80211_STA_AP_MLME_CLIENT,
1625	CFG80211_STA_AP_STA,
1626	CFG80211_STA_IBSS,
1627	CFG80211_STA_TDLS_PEER_SETUP,
1628	CFG80211_STA_TDLS_PEER_ACTIVE,
1629	CFG80211_STA_MESH_PEER_KERNEL,
1630	CFG80211_STA_MESH_PEER_USER,
1631};
1632
1633/**
1634 * cfg80211_check_station_change - validate parameter changes
1635 * @wiphy: the wiphy this operates on
1636 * @params: the new parameters for a station
1637 * @statype: the type of station being modified
1638 *
1639 * Utility function for the @change_station driver method. Call this function
1640 * with the appropriate station type looking up the station (and checking that
1641 * it exists). It will verify whether the station change is acceptable, and if
1642 * not will return an error code. Note that it may modify the parameters for
1643 * backward compatibility reasons, so don't use them before calling this.
1644 */
1645int cfg80211_check_station_change(struct wiphy *wiphy,
1646				  struct station_parameters *params,
1647				  enum cfg80211_station_type statype);
1648
1649/**
1650 * enum rate_info_flags - bitrate info flags
1651 *
1652 * Used by the driver to indicate the specific rate transmission
1653 * type for 802.11n transmissions.
1654 *
1655 * @RATE_INFO_FLAGS_MCS: mcs field filled with HT MCS
1656 * @RATE_INFO_FLAGS_VHT_MCS: mcs field filled with VHT MCS
1657 * @RATE_INFO_FLAGS_SHORT_GI: 400ns guard interval
1658 * @RATE_INFO_FLAGS_DMG: 60GHz MCS
1659 * @RATE_INFO_FLAGS_HE_MCS: HE MCS information
1660 * @RATE_INFO_FLAGS_EDMG: 60GHz MCS in EDMG mode
1661 * @RATE_INFO_FLAGS_EXTENDED_SC_DMG: 60GHz extended SC MCS
1662 * @RATE_INFO_FLAGS_EHT_MCS: EHT MCS information
1663 */
1664enum rate_info_flags {
1665	RATE_INFO_FLAGS_MCS			= BIT(0),
1666	RATE_INFO_FLAGS_VHT_MCS			= BIT(1),
1667	RATE_INFO_FLAGS_SHORT_GI		= BIT(2),
1668	RATE_INFO_FLAGS_DMG			= BIT(3),
1669	RATE_INFO_FLAGS_HE_MCS			= BIT(4),
1670	RATE_INFO_FLAGS_EDMG			= BIT(5),
1671	RATE_INFO_FLAGS_EXTENDED_SC_DMG		= BIT(6),
1672	RATE_INFO_FLAGS_EHT_MCS			= BIT(7),
1673};
1674
1675/**
1676 * enum rate_info_bw - rate bandwidth information
1677 *
1678 * Used by the driver to indicate the rate bandwidth.
1679 *
1680 * @RATE_INFO_BW_5: 5 MHz bandwidth
1681 * @RATE_INFO_BW_10: 10 MHz bandwidth
1682 * @RATE_INFO_BW_20: 20 MHz bandwidth
1683 * @RATE_INFO_BW_40: 40 MHz bandwidth
1684 * @RATE_INFO_BW_80: 80 MHz bandwidth
1685 * @RATE_INFO_BW_160: 160 MHz bandwidth
1686 * @RATE_INFO_BW_HE_RU: bandwidth determined by HE RU allocation
1687 * @RATE_INFO_BW_320: 320 MHz bandwidth
1688 * @RATE_INFO_BW_EHT_RU: bandwidth determined by EHT RU allocation
1689 */
1690enum rate_info_bw {
1691	RATE_INFO_BW_20 = 0,
1692	RATE_INFO_BW_5,
1693	RATE_INFO_BW_10,
1694	RATE_INFO_BW_40,
1695	RATE_INFO_BW_80,
1696	RATE_INFO_BW_160,
1697	RATE_INFO_BW_HE_RU,
1698	RATE_INFO_BW_320,
1699	RATE_INFO_BW_EHT_RU,
1700};
1701
1702/**
1703 * struct rate_info - bitrate information
1704 *
1705 * Information about a receiving or transmitting bitrate
1706 *
1707 * @flags: bitflag of flags from &enum rate_info_flags
1708 * @mcs: mcs index if struct describes an HT/VHT/HE rate
1709 * @legacy: bitrate in 100kbit/s for 802.11abg
1710 * @nss: number of streams (VHT & HE only)
1711 * @bw: bandwidth (from &enum rate_info_bw)
1712 * @he_gi: HE guard interval (from &enum nl80211_he_gi)
1713 * @he_dcm: HE DCM value
1714 * @he_ru_alloc: HE RU allocation (from &enum nl80211_he_ru_alloc,
1715 *	only valid if bw is %RATE_INFO_BW_HE_RU)
1716 * @n_bonded_ch: In case of EDMG the number of bonded channels (1-4)
1717 * @eht_gi: EHT guard interval (from &enum nl80211_eht_gi)
1718 * @eht_ru_alloc: EHT RU allocation (from &enum nl80211_eht_ru_alloc,
1719 *	only valid if bw is %RATE_INFO_BW_EHT_RU)
1720 */
1721struct rate_info {
1722	u8 flags;
1723	u8 mcs;
1724	u16 legacy;
1725	u8 nss;
1726	u8 bw;
1727	u8 he_gi;
1728	u8 he_dcm;
1729	u8 he_ru_alloc;
1730	u8 n_bonded_ch;
1731	u8 eht_gi;
1732	u8 eht_ru_alloc;
1733};
1734
1735/**
1736 * enum bss_param_flags - bitrate info flags
1737 *
1738 * Used by the driver to indicate the specific rate transmission
1739 * type for 802.11n transmissions.
1740 *
1741 * @BSS_PARAM_FLAGS_CTS_PROT: whether CTS protection is enabled
1742 * @BSS_PARAM_FLAGS_SHORT_PREAMBLE: whether short preamble is enabled
1743 * @BSS_PARAM_FLAGS_SHORT_SLOT_TIME: whether short slot time is enabled
1744 */
1745enum bss_param_flags {
1746	BSS_PARAM_FLAGS_CTS_PROT	= 1<<0,
1747	BSS_PARAM_FLAGS_SHORT_PREAMBLE	= 1<<1,
1748	BSS_PARAM_FLAGS_SHORT_SLOT_TIME	= 1<<2,
1749};
1750
1751/**
1752 * struct sta_bss_parameters - BSS parameters for the attached station
1753 *
1754 * Information about the currently associated BSS
1755 *
1756 * @flags: bitflag of flags from &enum bss_param_flags
1757 * @dtim_period: DTIM period for the BSS
1758 * @beacon_interval: beacon interval
1759 */
1760struct sta_bss_parameters {
1761	u8 flags;
1762	u8 dtim_period;
1763	u16 beacon_interval;
1764};
1765
1766/**
1767 * struct cfg80211_txq_stats - TXQ statistics for this TID
1768 * @filled: bitmap of flags using the bits of &enum nl80211_txq_stats to
1769 *	indicate the relevant values in this struct are filled
1770 * @backlog_bytes: total number of bytes currently backlogged
1771 * @backlog_packets: total number of packets currently backlogged
1772 * @flows: number of new flows seen
1773 * @drops: total number of packets dropped
1774 * @ecn_marks: total number of packets marked with ECN CE
1775 * @overlimit: number of drops due to queue space overflow
1776 * @overmemory: number of drops due to memory limit overflow
1777 * @collisions: number of hash collisions
1778 * @tx_bytes: total number of bytes dequeued
1779 * @tx_packets: total number of packets dequeued
1780 * @max_flows: maximum number of flows supported
1781 */
1782struct cfg80211_txq_stats {
1783	u32 filled;
1784	u32 backlog_bytes;
1785	u32 backlog_packets;
1786	u32 flows;
1787	u32 drops;
1788	u32 ecn_marks;
1789	u32 overlimit;
1790	u32 overmemory;
1791	u32 collisions;
1792	u32 tx_bytes;
1793	u32 tx_packets;
1794	u32 max_flows;
1795};
1796
1797/**
1798 * struct cfg80211_tid_stats - per-TID statistics
1799 * @filled: bitmap of flags using the bits of &enum nl80211_tid_stats to
1800 *	indicate the relevant values in this struct are filled
1801 * @rx_msdu: number of received MSDUs
1802 * @tx_msdu: number of (attempted) transmitted MSDUs
1803 * @tx_msdu_retries: number of retries (not counting the first) for
1804 *	transmitted MSDUs
1805 * @tx_msdu_failed: number of failed transmitted MSDUs
1806 * @txq_stats: TXQ statistics
1807 */
1808struct cfg80211_tid_stats {
1809	u32 filled;
1810	u64 rx_msdu;
1811	u64 tx_msdu;
1812	u64 tx_msdu_retries;
1813	u64 tx_msdu_failed;
1814	struct cfg80211_txq_stats txq_stats;
1815};
1816
1817#define IEEE80211_MAX_CHAINS	4
1818
1819/**
1820 * struct station_info - station information
1821 *
1822 * Station information filled by driver for get_station() and dump_station.
1823 *
1824 * @filled: bitflag of flags using the bits of &enum nl80211_sta_info to
1825 *	indicate the relevant values in this struct for them
1826 * @connected_time: time(in secs) since a station is last connected
1827 * @inactive_time: time since last station activity (tx/rx) in milliseconds
1828 * @assoc_at: bootime (ns) of the last association
1829 * @rx_bytes: bytes (size of MPDUs) received from this station
1830 * @tx_bytes: bytes (size of MPDUs) transmitted to this station
1831 * @llid: mesh local link id
1832 * @plid: mesh peer link id
1833 * @plink_state: mesh peer link state
1834 * @signal: The signal strength, type depends on the wiphy's signal_type.
1835 *	For CFG80211_SIGNAL_TYPE_MBM, value is expressed in _dBm_.
1836 * @signal_avg: Average signal strength, type depends on the wiphy's signal_type.
1837 *	For CFG80211_SIGNAL_TYPE_MBM, value is expressed in _dBm_.
1838 * @chains: bitmask for filled values in @chain_signal, @chain_signal_avg
1839 * @chain_signal: per-chain signal strength of last received packet in dBm
1840 * @chain_signal_avg: per-chain signal strength average in dBm
1841 * @txrate: current unicast bitrate from this station
1842 * @rxrate: current unicast bitrate to this station
1843 * @rx_packets: packets (MSDUs & MMPDUs) received from this station
1844 * @tx_packets: packets (MSDUs & MMPDUs) transmitted to this station
1845 * @tx_retries: cumulative retry counts (MPDUs)
1846 * @tx_failed: number of failed transmissions (MPDUs) (retries exceeded, no ACK)
1847 * @rx_dropped_misc:  Dropped for un-specified reason.
1848 * @bss_param: current BSS parameters
1849 * @generation: generation number for nl80211 dumps.
1850 *	This number should increase every time the list of stations
1851 *	changes, i.e. when a station is added or removed, so that
1852 *	userspace can tell whether it got a consistent snapshot.
1853 * @assoc_req_ies: IEs from (Re)Association Request.
1854 *	This is used only when in AP mode with drivers that do not use
1855 *	user space MLME/SME implementation. The information is provided for
1856 *	the cfg80211_new_sta() calls to notify user space of the IEs.
1857 * @assoc_req_ies_len: Length of assoc_req_ies buffer in octets.
1858 * @sta_flags: station flags mask & values
1859 * @beacon_loss_count: Number of times beacon loss event has triggered.
1860 * @t_offset: Time offset of the station relative to this host.
1861 * @local_pm: local mesh STA power save mode
1862 * @peer_pm: peer mesh STA power save mode
1863 * @nonpeer_pm: non-peer mesh STA power save mode
1864 * @expected_throughput: expected throughput in kbps (including 802.11 headers)
1865 *	towards this station.
1866 * @rx_beacon: number of beacons received from this peer
1867 * @rx_beacon_signal_avg: signal strength average (in dBm) for beacons received
1868 *	from this peer
1869 * @connected_to_gate: true if mesh STA has a path to mesh gate
1870 * @rx_duration: aggregate PPDU duration(usecs) for all the frames from a peer
1871 * @tx_duration: aggregate PPDU duration(usecs) for all the frames to a peer
1872 * @airtime_weight: current airtime scheduling weight
1873 * @pertid: per-TID statistics, see &struct cfg80211_tid_stats, using the last
1874 *	(IEEE80211_NUM_TIDS) index for MSDUs not encapsulated in QoS-MPDUs.
1875 *	Note that this doesn't use the @filled bit, but is used if non-NULL.
1876 * @ack_signal: signal strength (in dBm) of the last ACK frame.
1877 * @avg_ack_signal: average rssi value of ack packet for the no of msdu's has
1878 *	been sent.
1879 * @rx_mpdu_count: number of MPDUs received from this station
1880 * @fcs_err_count: number of packets (MPDUs) received from this station with
1881 *	an FCS error. This counter should be incremented only when TA of the
1882 *	received packet with an FCS error matches the peer MAC address.
1883 * @airtime_link_metric: mesh airtime link metric.
1884 * @connected_to_as: true if mesh STA has a path to authentication server
1885 */
1886struct station_info {
1887	u64 filled;
1888	u32 connected_time;
1889	u32 inactive_time;
1890	u64 assoc_at;
1891	u64 rx_bytes;
1892	u64 tx_bytes;
1893	u16 llid;
1894	u16 plid;
1895	u8 plink_state;
1896	s8 signal;
1897	s8 signal_avg;
1898
1899	u8 chains;
1900	s8 chain_signal[IEEE80211_MAX_CHAINS];
1901	s8 chain_signal_avg[IEEE80211_MAX_CHAINS];
1902
1903	struct rate_info txrate;
1904	struct rate_info rxrate;
1905	u32 rx_packets;
1906	u32 tx_packets;
1907	u32 tx_retries;
1908	u32 tx_failed;
1909	u32 rx_dropped_misc;
1910	struct sta_bss_parameters bss_param;
1911	struct nl80211_sta_flag_update sta_flags;
1912
1913	int generation;
1914
1915	const u8 *assoc_req_ies;
1916	size_t assoc_req_ies_len;
1917
1918	u32 beacon_loss_count;
1919	s64 t_offset;
1920	enum nl80211_mesh_power_mode local_pm;
1921	enum nl80211_mesh_power_mode peer_pm;
1922	enum nl80211_mesh_power_mode nonpeer_pm;
1923
1924	u32 expected_throughput;
1925
1926	u64 tx_duration;
1927	u64 rx_duration;
1928	u64 rx_beacon;
1929	u8 rx_beacon_signal_avg;
1930	u8 connected_to_gate;
1931
1932	struct cfg80211_tid_stats *pertid;
1933	s8 ack_signal;
1934	s8 avg_ack_signal;
1935
1936	u16 airtime_weight;
1937
1938	u32 rx_mpdu_count;
1939	u32 fcs_err_count;
1940
1941	u32 airtime_link_metric;
1942
1943	u8 connected_to_as;
1944};
1945
1946/**
1947 * struct cfg80211_sar_sub_specs - sub specs limit
1948 * @power: power limitation in 0.25dbm
1949 * @freq_range_index: index the power limitation applies to
1950 */
1951struct cfg80211_sar_sub_specs {
1952	s32 power;
1953	u32 freq_range_index;
1954};
1955
1956/**
1957 * struct cfg80211_sar_specs - sar limit specs
1958 * @type: it's set with power in 0.25dbm or other types
1959 * @num_sub_specs: number of sar sub specs
1960 * @sub_specs: memory to hold the sar sub specs
1961 */
1962struct cfg80211_sar_specs {
1963	enum nl80211_sar_type type;
1964	u32 num_sub_specs;
1965	struct cfg80211_sar_sub_specs sub_specs[];
1966};
1967
1968
1969/**
1970 * struct cfg80211_sar_freq_ranges - sar frequency ranges
1971 * @start_freq:  start range edge frequency
1972 * @end_freq:    end range edge frequency
1973 */
1974struct cfg80211_sar_freq_ranges {
1975	u32 start_freq;
1976	u32 end_freq;
1977};
1978
1979/**
1980 * struct cfg80211_sar_capa - sar limit capability
1981 * @type: it's set via power in 0.25dbm or other types
1982 * @num_freq_ranges: number of frequency ranges
1983 * @freq_ranges: memory to hold the freq ranges.
1984 *
1985 * Note: WLAN driver may append new ranges or split an existing
1986 * range to small ones and then append them.
1987 */
1988struct cfg80211_sar_capa {
1989	enum nl80211_sar_type type;
1990	u32 num_freq_ranges;
1991	const struct cfg80211_sar_freq_ranges *freq_ranges;
1992};
1993
1994#if IS_ENABLED(CONFIG_CFG80211)
1995/**
1996 * cfg80211_get_station - retrieve information about a given station
1997 * @dev: the device where the station is supposed to be connected to
1998 * @mac_addr: the mac address of the station of interest
1999 * @sinfo: pointer to the structure to fill with the information
2000 *
2001 * Returns 0 on success and sinfo is filled with the available information
2002 * otherwise returns a negative error code and the content of sinfo has to be
2003 * considered undefined.
2004 */
2005int cfg80211_get_station(struct net_device *dev, const u8 *mac_addr,
2006			 struct station_info *sinfo);
2007#else
2008static inline int cfg80211_get_station(struct net_device *dev,
2009				       const u8 *mac_addr,
2010				       struct station_info *sinfo)
2011{
2012	return -ENOENT;
2013}
2014#endif
2015
2016/**
2017 * enum monitor_flags - monitor flags
2018 *
2019 * Monitor interface configuration flags. Note that these must be the bits
2020 * according to the nl80211 flags.
2021 *
2022 * @MONITOR_FLAG_CHANGED: set if the flags were changed
2023 * @MONITOR_FLAG_FCSFAIL: pass frames with bad FCS
2024 * @MONITOR_FLAG_PLCPFAIL: pass frames with bad PLCP
2025 * @MONITOR_FLAG_CONTROL: pass control frames
2026 * @MONITOR_FLAG_OTHER_BSS: disable BSSID filtering
2027 * @MONITOR_FLAG_COOK_FRAMES: report frames after processing
2028 * @MONITOR_FLAG_ACTIVE: active monitor, ACKs frames on its MAC address
2029 */
2030enum monitor_flags {
2031	MONITOR_FLAG_CHANGED		= 1<<__NL80211_MNTR_FLAG_INVALID,
2032	MONITOR_FLAG_FCSFAIL		= 1<<NL80211_MNTR_FLAG_FCSFAIL,
2033	MONITOR_FLAG_PLCPFAIL		= 1<<NL80211_MNTR_FLAG_PLCPFAIL,
2034	MONITOR_FLAG_CONTROL		= 1<<NL80211_MNTR_FLAG_CONTROL,
2035	MONITOR_FLAG_OTHER_BSS		= 1<<NL80211_MNTR_FLAG_OTHER_BSS,
2036	MONITOR_FLAG_COOK_FRAMES	= 1<<NL80211_MNTR_FLAG_COOK_FRAMES,
2037	MONITOR_FLAG_ACTIVE		= 1<<NL80211_MNTR_FLAG_ACTIVE,
2038};
2039
2040/**
2041 * enum mpath_info_flags -  mesh path information flags
2042 *
2043 * Used by the driver to indicate which info in &struct mpath_info it has filled
2044 * in during get_station() or dump_station().
2045 *
2046 * @MPATH_INFO_FRAME_QLEN: @frame_qlen filled
2047 * @MPATH_INFO_SN: @sn filled
2048 * @MPATH_INFO_METRIC: @metric filled
2049 * @MPATH_INFO_EXPTIME: @exptime filled
2050 * @MPATH_INFO_DISCOVERY_TIMEOUT: @discovery_timeout filled
2051 * @MPATH_INFO_DISCOVERY_RETRIES: @discovery_retries filled
2052 * @MPATH_INFO_FLAGS: @flags filled
2053 * @MPATH_INFO_HOP_COUNT: @hop_count filled
2054 * @MPATH_INFO_PATH_CHANGE: @path_change_count filled
2055 */
2056enum mpath_info_flags {
2057	MPATH_INFO_FRAME_QLEN		= BIT(0),
2058	MPATH_INFO_SN			= BIT(1),
2059	MPATH_INFO_METRIC		= BIT(2),
2060	MPATH_INFO_EXPTIME		= BIT(3),
2061	MPATH_INFO_DISCOVERY_TIMEOUT	= BIT(4),
2062	MPATH_INFO_DISCOVERY_RETRIES	= BIT(5),
2063	MPATH_INFO_FLAGS		= BIT(6),
2064	MPATH_INFO_HOP_COUNT		= BIT(7),
2065	MPATH_INFO_PATH_CHANGE		= BIT(8),
2066};
2067
2068/**
2069 * struct mpath_info - mesh path information
2070 *
2071 * Mesh path information filled by driver for get_mpath() and dump_mpath().
2072 *
2073 * @filled: bitfield of flags from &enum mpath_info_flags
2074 * @frame_qlen: number of queued frames for this destination
2075 * @sn: target sequence number
2076 * @metric: metric (cost) of this mesh path
2077 * @exptime: expiration time for the mesh path from now, in msecs
2078 * @flags: mesh path flags
2079 * @discovery_timeout: total mesh path discovery timeout, in msecs
2080 * @discovery_retries: mesh path discovery retries
2081 * @generation: generation number for nl80211 dumps.
2082 *	This number should increase every time the list of mesh paths
2083 *	changes, i.e. when a station is added or removed, so that
2084 *	userspace can tell whether it got a consistent snapshot.
2085 * @hop_count: hops to destination
2086 * @path_change_count: total number of path changes to destination
2087 */
2088struct mpath_info {
2089	u32 filled;
2090	u32 frame_qlen;
2091	u32 sn;
2092	u32 metric;
2093	u32 exptime;
2094	u32 discovery_timeout;
2095	u8 discovery_retries;
2096	u8 flags;
2097	u8 hop_count;
2098	u32 path_change_count;
2099
2100	int generation;
2101};
2102
2103/**
2104 * struct bss_parameters - BSS parameters
2105 *
2106 * Used to change BSS parameters (mainly for AP mode).
2107 *
2108 * @link_id: link_id or -1 for non-MLD
2109 * @use_cts_prot: Whether to use CTS protection
2110 *	(0 = no, 1 = yes, -1 = do not change)
2111 * @use_short_preamble: Whether the use of short preambles is allowed
2112 *	(0 = no, 1 = yes, -1 = do not change)
2113 * @use_short_slot_time: Whether the use of short slot time is allowed
2114 *	(0 = no, 1 = yes, -1 = do not change)
2115 * @basic_rates: basic rates in IEEE 802.11 format
2116 *	(or NULL for no change)
2117 * @basic_rates_len: number of basic rates
2118 * @ap_isolate: do not forward packets between connected stations
2119 *	(0 = no, 1 = yes, -1 = do not change)
2120 * @ht_opmode: HT Operation mode
2121 *	(u16 = opmode, -1 = do not change)
2122 * @p2p_ctwindow: P2P CT Window (-1 = no change)
2123 * @p2p_opp_ps: P2P opportunistic PS (-1 = no change)
2124 */
2125struct bss_parameters {
2126	int link_id;
2127	int use_cts_prot;
2128	int use_short_preamble;
2129	int use_short_slot_time;
2130	const u8 *basic_rates;
2131	u8 basic_rates_len;
2132	int ap_isolate;
2133	int ht_opmode;
2134	s8 p2p_ctwindow, p2p_opp_ps;
2135};
2136
2137/**
2138 * struct mesh_config - 802.11s mesh configuration
2139 *
2140 * These parameters can be changed while the mesh is active.
2141 *
2142 * @dot11MeshRetryTimeout: the initial retry timeout in millisecond units used
2143 *	by the Mesh Peering Open message
2144 * @dot11MeshConfirmTimeout: the initial retry timeout in millisecond units
2145 *	used by the Mesh Peering Open message
2146 * @dot11MeshHoldingTimeout: the confirm timeout in millisecond units used by
2147 *	the mesh peering management to close a mesh peering
2148 * @dot11MeshMaxPeerLinks: the maximum number of peer links allowed on this
2149 *	mesh interface
2150 * @dot11MeshMaxRetries: the maximum number of peer link open retries that can
2151 *	be sent to establish a new peer link instance in a mesh
2152 * @dot11MeshTTL: the value of TTL field set at a source mesh STA
2153 * @element_ttl: the value of TTL field set at a mesh STA for path selection
2154 *	elements
2155 * @auto_open_plinks: whether we should automatically open peer links when we
2156 *	detect compatible mesh peers
2157 * @dot11MeshNbrOffsetMaxNeighbor: the maximum number of neighbors to
2158 *	synchronize to for 11s default synchronization method
2159 * @dot11MeshHWMPmaxPREQretries: the number of action frames containing a PREQ
2160 *	that an originator mesh STA can send to a particular path target
2161 * @path_refresh_time: how frequently to refresh mesh paths in milliseconds
2162 * @min_discovery_timeout: the minimum length of time to wait until giving up on
2163 *	a path discovery in milliseconds
2164 * @dot11MeshHWMPactivePathTimeout: the time (in TUs) for which mesh STAs
2165 *	receiving a PREQ shall consider the forwarding information from the
2166 *	root to be valid. (TU = time unit)
2167 * @dot11MeshHWMPpreqMinInterval: the minimum interval of time (in TUs) during
2168 *	which a mesh STA can send only one action frame containing a PREQ
2169 *	element
2170 * @dot11MeshHWMPperrMinInterval: the minimum interval of time (in TUs) during
2171 *	which a mesh STA can send only one Action frame containing a PERR
2172 *	element
2173 * @dot11MeshHWMPnetDiameterTraversalTime: the interval of time (in TUs) that
2174 *	it takes for an HWMP information element to propagate across the mesh
2175 * @dot11MeshHWMPRootMode: the configuration of a mesh STA as root mesh STA
2176 * @dot11MeshHWMPRannInterval: the interval of time (in TUs) between root
2177 *	announcements are transmitted
2178 * @dot11MeshGateAnnouncementProtocol: whether to advertise that this mesh
2179 *	station has access to a broader network beyond the MBSS. (This is
2180 *	missnamed in draft 12.0: dot11MeshGateAnnouncementProtocol set to true
2181 *	only means that the station will announce others it's a mesh gate, but
2182 *	not necessarily using the gate announcement protocol. Still keeping the
2183 *	same nomenclature to be in sync with the spec)
2184 * @dot11MeshForwarding: whether the Mesh STA is forwarding or non-forwarding
2185 *	entity (default is TRUE - forwarding entity)
2186 * @rssi_threshold: the threshold for average signal strength of candidate
2187 *	station to establish a peer link
2188 * @ht_opmode: mesh HT protection mode
2189 *
2190 * @dot11MeshHWMPactivePathToRootTimeout: The time (in TUs) for which mesh STAs
2191 *	receiving a proactive PREQ shall consider the forwarding information to
2192 *	the root mesh STA to be valid.
2193 *
2194 * @dot11MeshHWMProotInterval: The interval of time (in TUs) between proactive
2195 *	PREQs are transmitted.
2196 * @dot11MeshHWMPconfirmationInterval: The minimum interval of time (in TUs)
2197 *	during which a mesh STA can send only one Action frame containing
2198 *	a PREQ element for root path confirmation.
2199 * @power_mode: The default mesh power save mode which will be the initial
2200 *	setting for new peer links.
2201 * @dot11MeshAwakeWindowDuration: The duration in TUs the STA will remain awake
2202 *	after transmitting its beacon.
2203 * @plink_timeout: If no tx activity is seen from a STA we've established
2204 *	peering with for longer than this time (in seconds), then remove it
2205 *	from the STA's list of peers.  Default is 30 minutes.
2206 * @dot11MeshConnectedToAuthServer: if set to true then this mesh STA
2207 *	will advertise that it is connected to a authentication server
2208 *	in the mesh formation field.
2209 * @dot11MeshConnectedToMeshGate: if set to true, advertise that this STA is
2210 *      connected to a mesh gate in mesh formation info.  If false, the
2211 *      value in mesh formation is determined by the presence of root paths
2212 *      in the mesh path table
2213 * @dot11MeshNolearn: Try to avoid multi-hop path discovery (e.g. PREQ/PREP
2214 *      for HWMP) if the destination is a direct neighbor. Note that this might
2215 *      not be the optimal decision as a multi-hop route might be better. So
2216 *      if using this setting you will likely also want to disable
2217 *      dot11MeshForwarding and use another mesh routing protocol on top.
2218 */
2219struct mesh_config {
2220	u16 dot11MeshRetryTimeout;
2221	u16 dot11MeshConfirmTimeout;
2222	u16 dot11MeshHoldingTimeout;
2223	u16 dot11MeshMaxPeerLinks;
2224	u8 dot11MeshMaxRetries;
2225	u8 dot11MeshTTL;
2226	u8 element_ttl;
2227	bool auto_open_plinks;
2228	u32 dot11MeshNbrOffsetMaxNeighbor;
2229	u8 dot11MeshHWMPmaxPREQretries;
2230	u32 path_refresh_time;
2231	u16 min_discovery_timeout;
2232	u32 dot11MeshHWMPactivePathTimeout;
2233	u16 dot11MeshHWMPpreqMinInterval;
2234	u16 dot11MeshHWMPperrMinInterval;
2235	u16 dot11MeshHWMPnetDiameterTraversalTime;
2236	u8 dot11MeshHWMPRootMode;
2237	bool dot11MeshConnectedToMeshGate;
2238	bool dot11MeshConnectedToAuthServer;
2239	u16 dot11MeshHWMPRannInterval;
2240	bool dot11MeshGateAnnouncementProtocol;
2241	bool dot11MeshForwarding;
2242	s32 rssi_threshold;
2243	u16 ht_opmode;
2244	u32 dot11MeshHWMPactivePathToRootTimeout;
2245	u16 dot11MeshHWMProotInterval;
2246	u16 dot11MeshHWMPconfirmationInterval;
2247	enum nl80211_mesh_power_mode power_mode;
2248	u16 dot11MeshAwakeWindowDuration;
2249	u32 plink_timeout;
2250	bool dot11MeshNolearn;
2251};
2252
2253/**
2254 * struct mesh_setup - 802.11s mesh setup configuration
2255 * @chandef: defines the channel to use
2256 * @mesh_id: the mesh ID
2257 * @mesh_id_len: length of the mesh ID, at least 1 and at most 32 bytes
2258 * @sync_method: which synchronization method to use
2259 * @path_sel_proto: which path selection protocol to use
2260 * @path_metric: which metric to use
2261 * @auth_id: which authentication method this mesh is using
2262 * @ie: vendor information elements (optional)
2263 * @ie_len: length of vendor information elements
2264 * @is_authenticated: this mesh requires authentication
2265 * @is_secure: this mesh uses security
2266 * @user_mpm: userspace handles all MPM functions
2267 * @dtim_period: DTIM period to use
2268 * @beacon_interval: beacon interval to use
2269 * @mcast_rate: multicat rate for Mesh Node [6Mbps is the default for 802.11a]
2270 * @basic_rates: basic rates to use when creating the mesh
2271 * @beacon_rate: bitrate to be used for beacons
2272 * @userspace_handles_dfs: whether user space controls DFS operation, i.e.
2273 *	changes the channel when a radar is detected. This is required
2274 *	to operate on DFS channels.
2275 * @control_port_over_nl80211: TRUE if userspace expects to exchange control
2276 *	port frames over NL80211 instead of the network interface.
2277 *
2278 * These parameters are fixed when the mesh is created.
2279 */
2280struct mesh_setup {
2281	struct cfg80211_chan_def chandef;
2282	const u8 *mesh_id;
2283	u8 mesh_id_len;
2284	u8 sync_method;
2285	u8 path_sel_proto;
2286	u8 path_metric;
2287	u8 auth_id;
2288	const u8 *ie;
2289	u8 ie_len;
2290	bool is_authenticated;
2291	bool is_secure;
2292	bool user_mpm;
2293	u8 dtim_period;
2294	u16 beacon_interval;
2295	int mcast_rate[NUM_NL80211_BANDS];
2296	u32 basic_rates;
2297	struct cfg80211_bitrate_mask beacon_rate;
2298	bool userspace_handles_dfs;
2299	bool control_port_over_nl80211;
2300};
2301
2302/**
2303 * struct ocb_setup - 802.11p OCB mode setup configuration
2304 * @chandef: defines the channel to use
2305 *
2306 * These parameters are fixed when connecting to the network
2307 */
2308struct ocb_setup {
2309	struct cfg80211_chan_def chandef;
2310};
2311
2312/**
2313 * struct ieee80211_txq_params - TX queue parameters
2314 * @ac: AC identifier
2315 * @txop: Maximum burst time in units of 32 usecs, 0 meaning disabled
2316 * @cwmin: Minimum contention window [a value of the form 2^n-1 in the range
2317 *	1..32767]
2318 * @cwmax: Maximum contention window [a value of the form 2^n-1 in the range
2319 *	1..32767]
2320 * @aifs: Arbitration interframe space [0..255]
2321 * @link_id: link_id or -1 for non-MLD
2322 */
2323struct ieee80211_txq_params {
2324	enum nl80211_ac ac;
2325	u16 txop;
2326	u16 cwmin;
2327	u16 cwmax;
2328	u8 aifs;
2329	int link_id;
2330};
2331
2332/**
2333 * DOC: Scanning and BSS list handling
2334 *
2335 * The scanning process itself is fairly simple, but cfg80211 offers quite
2336 * a bit of helper functionality. To start a scan, the scan operation will
2337 * be invoked with a scan definition. This scan definition contains the
2338 * channels to scan, and the SSIDs to send probe requests for (including the
2339 * wildcard, if desired). A passive scan is indicated by having no SSIDs to
2340 * probe. Additionally, a scan request may contain extra information elements
2341 * that should be added to the probe request. The IEs are guaranteed to be
2342 * well-formed, and will not exceed the maximum length the driver advertised
2343 * in the wiphy structure.
2344 *
2345 * When scanning finds a BSS, cfg80211 needs to be notified of that, because
2346 * it is responsible for maintaining the BSS list; the driver should not
2347 * maintain a list itself. For this notification, various functions exist.
2348 *
2349 * Since drivers do not maintain a BSS list, there are also a number of
2350 * functions to search for a BSS and obtain information about it from the
2351 * BSS structure cfg80211 maintains. The BSS list is also made available
2352 * to userspace.
2353 */
2354
2355/**
2356 * struct cfg80211_ssid - SSID description
2357 * @ssid: the SSID
2358 * @ssid_len: length of the ssid
2359 */
2360struct cfg80211_ssid {
2361	u8 ssid[IEEE80211_MAX_SSID_LEN];
2362	u8 ssid_len;
2363};
2364
2365/**
2366 * struct cfg80211_scan_info - information about completed scan
2367 * @scan_start_tsf: scan start time in terms of the TSF of the BSS that the
2368 *	wireless device that requested the scan is connected to. If this
2369 *	information is not available, this field is left zero.
2370 * @tsf_bssid: the BSSID according to which %scan_start_tsf is set.
2371 * @aborted: set to true if the scan was aborted for any reason,
2372 *	userspace will be notified of that
2373 */
2374struct cfg80211_scan_info {
2375	u64 scan_start_tsf;
2376	u8 tsf_bssid[ETH_ALEN] __aligned(2);
2377	bool aborted;
2378};
2379
2380/**
2381 * struct cfg80211_scan_6ghz_params - relevant for 6 GHz only
2382 *
2383 * @short_ssid: short ssid to scan for
2384 * @bssid: bssid to scan for
2385 * @channel_idx: idx of the channel in the channel array in the scan request
2386 *	 which the above info relvant to
2387 * @unsolicited_probe: the AP transmits unsolicited probe response every 20 TU
2388 * @short_ssid_valid: @short_ssid is valid and can be used
2389 * @psc_no_listen: when set, and the channel is a PSC channel, no need to wait
2390 *       20 TUs before starting to send probe requests.
2391 */
2392struct cfg80211_scan_6ghz_params {
2393	u32 short_ssid;
2394	u32 channel_idx;
2395	u8 bssid[ETH_ALEN];
2396	bool unsolicited_probe;
2397	bool short_ssid_valid;
2398	bool psc_no_listen;
2399};
2400
2401/**
2402 * struct cfg80211_scan_request - scan request description
2403 *
2404 * @ssids: SSIDs to scan for (active scan only)
2405 * @n_ssids: number of SSIDs
2406 * @channels: channels to scan on.
2407 * @n_channels: total number of channels to scan
2408 * @scan_width: channel width for scanning
2409 * @ie: optional information element(s) to add into Probe Request or %NULL
2410 * @ie_len: length of ie in octets
2411 * @duration: how long to listen on each channel, in TUs. If
2412 *	%duration_mandatory is not set, this is the maximum dwell time and
2413 *	the actual dwell time may be shorter.
2414 * @duration_mandatory: if set, the scan duration must be as specified by the
2415 *	%duration field.
2416 * @flags: bit field of flags controlling operation
2417 * @rates: bitmap of rates to advertise for each band
2418 * @wiphy: the wiphy this was for
2419 * @scan_start: time (in jiffies) when the scan started
2420 * @wdev: the wireless device to scan for
2421 * @info: (internal) information about completed scan
2422 * @notified: (internal) scan request was notified as done or aborted
2423 * @no_cck: used to send probe requests at non CCK rate in 2GHz band
2424 * @mac_addr: MAC address used with randomisation
2425 * @mac_addr_mask: MAC address mask used with randomisation, bits that
2426 *	are 0 in the mask should be randomised, bits that are 1 should
2427 *	be taken from the @mac_addr
2428 * @scan_6ghz: relevant for split scan request only,
2429 *	true if this is the second scan request
2430 * @n_6ghz_params: number of 6 GHz params
2431 * @scan_6ghz_params: 6 GHz params
2432 * @bssid: BSSID to scan for (most commonly, the wildcard BSSID)
2433 */
2434struct cfg80211_scan_request {
2435	struct cfg80211_ssid *ssids;
2436	int n_ssids;
2437	u32 n_channels;
2438	enum nl80211_bss_scan_width scan_width;
2439	const u8 *ie;
2440	size_t ie_len;
2441	u16 duration;
2442	bool duration_mandatory;
2443	u32 flags;
2444
2445	u32 rates[NUM_NL80211_BANDS];
2446
2447	struct wireless_dev *wdev;
2448
2449	u8 mac_addr[ETH_ALEN] __aligned(2);
2450	u8 mac_addr_mask[ETH_ALEN] __aligned(2);
2451	u8 bssid[ETH_ALEN] __aligned(2);
2452
2453	/* internal */
2454	struct wiphy *wiphy;
2455	unsigned long scan_start;
2456	struct cfg80211_scan_info info;
2457	bool notified;
2458	bool no_cck;
2459	bool scan_6ghz;
2460	u32 n_6ghz_params;
2461	struct cfg80211_scan_6ghz_params *scan_6ghz_params;
2462
2463	/* keep last */
2464	struct ieee80211_channel *channels[];
2465};
2466
2467static inline void get_random_mask_addr(u8 *buf, const u8 *addr, const u8 *mask)
2468{
2469	int i;
2470
2471	get_random_bytes(buf, ETH_ALEN);
2472	for (i = 0; i < ETH_ALEN; i++) {
2473		buf[i] &= ~mask[i];
2474		buf[i] |= addr[i] & mask[i];
2475	}
2476}
2477
2478/**
2479 * struct cfg80211_match_set - sets of attributes to match
2480 *
2481 * @ssid: SSID to be matched; may be zero-length in case of BSSID match
2482 *	or no match (RSSI only)
2483 * @bssid: BSSID to be matched; may be all-zero BSSID in case of SSID match
2484 *	or no match (RSSI only)
2485 * @rssi_thold: don't report scan results below this threshold (in s32 dBm)
2486 * @per_band_rssi_thold: Minimum rssi threshold for each band to be applied
2487 *	for filtering out scan results received. Drivers advertize this support
2488 *	of band specific rssi based filtering through the feature capability
2489 *	%NL80211_EXT_FEATURE_SCHED_SCAN_BAND_SPECIFIC_RSSI_THOLD. These band
2490 *	specific rssi thresholds take precedence over rssi_thold, if specified.
2491 *	If not specified for any band, it will be assigned with rssi_thold of
2492 *	corresponding matchset.
2493 */
2494struct cfg80211_match_set {
2495	struct cfg80211_ssid ssid;
2496	u8 bssid[ETH_ALEN];
2497	s32 rssi_thold;
2498	s32 per_band_rssi_thold[NUM_NL80211_BANDS];
2499};
2500
2501/**
2502 * struct cfg80211_sched_scan_plan - scan plan for scheduled scan
2503 *
2504 * @interval: interval between scheduled scan iterations. In seconds.
2505 * @iterations: number of scan iterations in this scan plan. Zero means
2506 *	infinite loop.
2507 *	The last scan plan will always have this parameter set to zero,
2508 *	all other scan plans will have a finite number of iterations.
2509 */
2510struct cfg80211_sched_scan_plan {
2511	u32 interval;
2512	u32 iterations;
2513};
2514
2515/**
2516 * struct cfg80211_bss_select_adjust - BSS selection with RSSI adjustment.
2517 *
2518 * @band: band of BSS which should match for RSSI level adjustment.
2519 * @delta: value of RSSI level adjustment.
2520 */
2521struct cfg80211_bss_select_adjust {
2522	enum nl80211_band band;
2523	s8 delta;
2524};
2525
2526/**
2527 * struct cfg80211_sched_scan_request - scheduled scan request description
2528 *
2529 * @reqid: identifies this request.
2530 * @ssids: SSIDs to scan for (passed in the probe_reqs in active scans)
2531 * @n_ssids: number of SSIDs
2532 * @n_channels: total number of channels to scan
2533 * @scan_width: channel width for scanning
2534 * @ie: optional information element(s) to add into Probe Request or %NULL
2535 * @ie_len: length of ie in octets
2536 * @flags: bit field of flags controlling operation
2537 * @match_sets: sets of parameters to be matched for a scan result
2538 *	entry to be considered valid and to be passed to the host
2539 *	(others are filtered out).
2540 *	If ommited, all results are passed.
2541 * @n_match_sets: number of match sets
2542 * @report_results: indicates that results were reported for this request
2543 * @wiphy: the wiphy this was for
2544 * @dev: the interface
2545 * @scan_start: start time of the scheduled scan
2546 * @channels: channels to scan
2547 * @min_rssi_thold: for drivers only supporting a single threshold, this
2548 *	contains the minimum over all matchsets
2549 * @mac_addr: MAC address used with randomisation
2550 * @mac_addr_mask: MAC address mask used with randomisation, bits that
2551 *	are 0 in the mask should be randomised, bits that are 1 should
2552 *	be taken from the @mac_addr
2553 * @scan_plans: scan plans to be executed in this scheduled scan. Lowest
2554 *	index must be executed first.
2555 * @n_scan_plans: number of scan plans, at least 1.
2556 * @rcu_head: RCU callback used to free the struct
2557 * @owner_nlportid: netlink portid of owner (if this should is a request
2558 *	owned by a particular socket)
2559 * @nl_owner_dead: netlink owner socket was closed - this request be freed
2560 * @list: for keeping list of requests.
2561 * @delay: delay in seconds to use before starting the first scan
2562 *	cycle.  The driver may ignore this parameter and start
2563 *	immediately (or at any other time), if this feature is not
2564 *	supported.
2565 * @relative_rssi_set: Indicates whether @relative_rssi is set or not.
2566 * @relative_rssi: Relative RSSI threshold in dB to restrict scan result
2567 *	reporting in connected state to cases where a matching BSS is determined
2568 *	to have better or slightly worse RSSI than the current connected BSS.
2569 *	The relative RSSI threshold values are ignored in disconnected state.
2570 * @rssi_adjust: delta dB of RSSI preference to be given to the BSSs that belong
2571 *	to the specified band while deciding whether a better BSS is reported
2572 *	using @relative_rssi. If delta is a negative number, the BSSs that
2573 *	belong to the specified band will be penalized by delta dB in relative
2574 *	comparisions.
2575 */
2576struct cfg80211_sched_scan_request {
2577	u64 reqid;
2578	struct cfg80211_ssid *ssids;
2579	int n_ssids;
2580	u32 n_channels;
2581	enum nl80211_bss_scan_width scan_width;
2582	const u8 *ie;
2583	size_t ie_len;
2584	u32 flags;
2585	struct cfg80211_match_set *match_sets;
2586	int n_match_sets;
2587	s32 min_rssi_thold;
2588	u32 delay;
2589	struct cfg80211_sched_scan_plan *scan_plans;
2590	int n_scan_plans;
2591
2592	u8 mac_addr[ETH_ALEN] __aligned(2);
2593	u8 mac_addr_mask[ETH_ALEN] __aligned(2);
2594
2595	bool relative_rssi_set;
2596	s8 relative_rssi;
2597	struct cfg80211_bss_select_adjust rssi_adjust;
2598
2599	/* internal */
2600	struct wiphy *wiphy;
2601	struct net_device *dev;
2602	unsigned long scan_start;
2603	bool report_results;
2604	struct rcu_head rcu_head;
2605	u32 owner_nlportid;
2606	bool nl_owner_dead;
2607	struct list_head list;
2608
2609	/* keep last */
2610	struct ieee80211_channel *channels[];
2611};
2612
2613/**
2614 * enum cfg80211_signal_type - signal type
2615 *
2616 * @CFG80211_SIGNAL_TYPE_NONE: no signal strength information available
2617 * @CFG80211_SIGNAL_TYPE_MBM: signal strength in mBm (100*dBm)
2618 * @CFG80211_SIGNAL_TYPE_UNSPEC: signal strength, increasing from 0 through 100
2619 */
2620enum cfg80211_signal_type {
2621	CFG80211_SIGNAL_TYPE_NONE,
2622	CFG80211_SIGNAL_TYPE_MBM,
2623	CFG80211_SIGNAL_TYPE_UNSPEC,
2624};
2625
2626/**
2627 * struct cfg80211_inform_bss - BSS inform data
2628 * @chan: channel the frame was received on
2629 * @scan_width: scan width that was used
2630 * @signal: signal strength value, according to the wiphy's
2631 *	signal type
2632 * @boottime_ns: timestamp (CLOCK_BOOTTIME) when the information was
2633 *	received; should match the time when the frame was actually
2634 *	received by the device (not just by the host, in case it was
2635 *	buffered on the device) and be accurate to about 10ms.
2636 *	If the frame isn't buffered, just passing the return value of
2637 *	ktime_get_boottime_ns() is likely appropriate.
2638 * @parent_tsf: the time at the start of reception of the first octet of the
2639 *	timestamp field of the frame. The time is the TSF of the BSS specified
2640 *	by %parent_bssid.
2641 * @parent_bssid: the BSS according to which %parent_tsf is set. This is set to
2642 *	the BSS that requested the scan in which the beacon/probe was received.
2643 * @chains: bitmask for filled values in @chain_signal.
2644 * @chain_signal: per-chain signal strength of last received BSS in dBm.
2645 */
2646struct cfg80211_inform_bss {
2647	struct ieee80211_channel *chan;
2648	enum nl80211_bss_scan_width scan_width;
2649	s32 signal;
2650	u64 boottime_ns;
2651	u64 parent_tsf;
2652	u8 parent_bssid[ETH_ALEN] __aligned(2);
2653	u8 chains;
2654	s8 chain_signal[IEEE80211_MAX_CHAINS];
2655};
2656
2657/**
2658 * struct cfg80211_bss_ies - BSS entry IE data
2659 * @tsf: TSF contained in the frame that carried these IEs
2660 * @rcu_head: internal use, for freeing
2661 * @len: length of the IEs
2662 * @from_beacon: these IEs are known to come from a beacon
2663 * @data: IE data
2664 */
2665struct cfg80211_bss_ies {
2666	u64 tsf;
2667	struct rcu_head rcu_head;
2668	int len;
2669	bool from_beacon;
2670	u8 data[];
2671};
2672
2673/**
2674 * struct cfg80211_bss - BSS description
2675 *
2676 * This structure describes a BSS (which may also be a mesh network)
2677 * for use in scan results and similar.
2678 *
2679 * @channel: channel this BSS is on
2680 * @scan_width: width of the control channel
2681 * @bssid: BSSID of the BSS
2682 * @beacon_interval: the beacon interval as from the frame
2683 * @capability: the capability field in host byte order
2684 * @ies: the information elements (Note that there is no guarantee that these
2685 *	are well-formed!); this is a pointer to either the beacon_ies or
2686 *	proberesp_ies depending on whether Probe Response frame has been
2687 *	received. It is always non-%NULL.
2688 * @beacon_ies: the information elements from the last Beacon frame
2689 *	(implementation note: if @hidden_beacon_bss is set this struct doesn't
2690 *	own the beacon_ies, but they're just pointers to the ones from the
2691 *	@hidden_beacon_bss struct)
2692 * @proberesp_ies: the information elements from the last Probe Response frame
2693 * @hidden_beacon_bss: in case this BSS struct represents a probe response from
2694 *	a BSS that hides the SSID in its beacon, this points to the BSS struct
2695 *	that holds the beacon data. @beacon_ies is still valid, of course, and
2696 *	points to the same data as hidden_beacon_bss->beacon_ies in that case.
2697 * @transmitted_bss: pointer to the transmitted BSS, if this is a
2698 *	non-transmitted one (multi-BSSID support)
2699 * @nontrans_list: list of non-transmitted BSS, if this is a transmitted one
2700 *	(multi-BSSID support)
2701 * @signal: signal strength value (type depends on the wiphy's signal_type)
2702 * @chains: bitmask for filled values in @chain_signal.
2703 * @chain_signal: per-chain signal strength of last received BSS in dBm.
2704 * @bssid_index: index in the multiple BSS set
2705 * @max_bssid_indicator: max number of members in the BSS set
2706 * @priv: private area for driver use, has at least wiphy->bss_priv_size bytes
2707 */
2708struct cfg80211_bss {
2709	struct ieee80211_channel *channel;
2710	enum nl80211_bss_scan_width scan_width;
2711
2712	const struct cfg80211_bss_ies __rcu *ies;
2713	const struct cfg80211_bss_ies __rcu *beacon_ies;
2714	const struct cfg80211_bss_ies __rcu *proberesp_ies;
2715
2716	struct cfg80211_bss *hidden_beacon_bss;
2717	struct cfg80211_bss *transmitted_bss;
2718	struct list_head nontrans_list;
2719
2720	s32 signal;
2721
2722	u16 beacon_interval;
2723	u16 capability;
2724
2725	u8 bssid[ETH_ALEN];
2726	u8 chains;
2727	s8 chain_signal[IEEE80211_MAX_CHAINS];
2728
2729	u8 bssid_index;
2730	u8 max_bssid_indicator;
2731
2732	u8 priv[] __aligned(sizeof(void *));
2733};
2734
2735/**
2736 * ieee80211_bss_get_elem - find element with given ID
2737 * @bss: the bss to search
2738 * @id: the element ID
2739 *
2740 * Note that the return value is an RCU-protected pointer, so
2741 * rcu_read_lock() must be held when calling this function.
2742 * Return: %NULL if not found.
2743 */
2744const struct element *ieee80211_bss_get_elem(struct cfg80211_bss *bss, u8 id);
2745
2746/**
2747 * ieee80211_bss_get_ie - find IE with given ID
2748 * @bss: the bss to search
2749 * @id: the element ID
2750 *
2751 * Note that the return value is an RCU-protected pointer, so
2752 * rcu_read_lock() must be held when calling this function.
2753 * Return: %NULL if not found.
2754 */
2755static inline const u8 *ieee80211_bss_get_ie(struct cfg80211_bss *bss, u8 id)
2756{
2757	return (const void *)ieee80211_bss_get_elem(bss, id);
2758}
2759
2760
2761/**
2762 * struct cfg80211_auth_request - Authentication request data
2763 *
2764 * This structure provides information needed to complete IEEE 802.11
2765 * authentication.
2766 *
2767 * @bss: The BSS to authenticate with, the callee must obtain a reference
2768 *	to it if it needs to keep it.
2769 * @auth_type: Authentication type (algorithm)
2770 * @ie: Extra IEs to add to Authentication frame or %NULL
2771 * @ie_len: Length of ie buffer in octets
2772 * @key_len: length of WEP key for shared key authentication
2773 * @key_idx: index of WEP key for shared key authentication
2774 * @key: WEP key for shared key authentication
2775 * @auth_data: Fields and elements in Authentication frames. This contains
2776 *	the authentication frame body (non-IE and IE data), excluding the
2777 *	Authentication algorithm number, i.e., starting at the Authentication
2778 *	transaction sequence number field.
2779 * @auth_data_len: Length of auth_data buffer in octets
2780 * @link_id: if >= 0, indicates authentication should be done as an MLD,
2781 *	the interface address is included as the MLD address and the
2782 *	necessary link (with the given link_id) will be created (and
2783 *	given an MLD address) by the driver
2784 * @ap_mld_addr: AP MLD address in case of authentication request with
2785 *	an AP MLD, valid iff @link_id >= 0
2786 */
2787struct cfg80211_auth_request {
2788	struct cfg80211_bss *bss;
2789	const u8 *ie;
2790	size_t ie_len;
2791	enum nl80211_auth_type auth_type;
2792	const u8 *key;
2793	u8 key_len;
2794	s8 key_idx;
2795	const u8 *auth_data;
2796	size_t auth_data_len;
2797	s8 link_id;
2798	const u8 *ap_mld_addr;
2799};
2800
2801/**
2802 * struct cfg80211_assoc_link - per-link information for MLO association
2803 * @bss: the BSS pointer, see also &struct cfg80211_assoc_request::bss;
2804 *	if this is %NULL for a link, that link is not requested
2805 * @elems: extra elements for the per-STA profile for this link
2806 * @elems_len: length of the elements
2807 */
2808struct cfg80211_assoc_link {
2809	struct cfg80211_bss *bss;
2810	const u8 *elems;
2811	size_t elems_len;
2812};
2813
2814/**
2815 * enum cfg80211_assoc_req_flags - Over-ride default behaviour in association.
2816 *
2817 * @ASSOC_REQ_DISABLE_HT:  Disable HT (802.11n)
2818 * @ASSOC_REQ_DISABLE_VHT:  Disable VHT
2819 * @ASSOC_REQ_USE_RRM: Declare RRM capability in this association
2820 * @CONNECT_REQ_EXTERNAL_AUTH_SUPPORT: User space indicates external
2821 *	authentication capability. Drivers can offload authentication to
2822 *	userspace if this flag is set. Only applicable for cfg80211_connect()
2823 *	request (connect callback).
2824 * @ASSOC_REQ_DISABLE_HE:  Disable HE
2825 * @ASSOC_REQ_DISABLE_EHT:  Disable EHT
2826 * @CONNECT_REQ_MLO_SUPPORT: Userspace indicates support for handling MLD links.
2827 *	Drivers shall disable MLO features for the current association if this
2828 *	flag is not set.
2829 */
2830enum cfg80211_assoc_req_flags {
2831	ASSOC_REQ_DISABLE_HT			= BIT(0),
2832	ASSOC_REQ_DISABLE_VHT			= BIT(1),
2833	ASSOC_REQ_USE_RRM			= BIT(2),
2834	CONNECT_REQ_EXTERNAL_AUTH_SUPPORT	= BIT(3),
2835	ASSOC_REQ_DISABLE_HE			= BIT(4),
2836	ASSOC_REQ_DISABLE_EHT			= BIT(5),
2837	CONNECT_REQ_MLO_SUPPORT			= BIT(6),
2838};
2839
2840/**
2841 * struct cfg80211_assoc_request - (Re)Association request data
2842 *
2843 * This structure provides information needed to complete IEEE 802.11
2844 * (re)association.
2845 * @bss: The BSS to associate with. If the call is successful the driver is
2846 *	given a reference that it must give back to cfg80211_send_rx_assoc()
2847 *	or to cfg80211_assoc_timeout(). To ensure proper refcounting, new
2848 *	association requests while already associating must be rejected.
2849 *	This also applies to the @links.bss parameter, which is used instead
2850 *	of this one (it is %NULL) for MLO associations.
2851 * @ie: Extra IEs to add to (Re)Association Request frame or %NULL
2852 * @ie_len: Length of ie buffer in octets
2853 * @use_mfp: Use management frame protection (IEEE 802.11w) in this association
2854 * @crypto: crypto settings
2855 * @prev_bssid: previous BSSID, if not %NULL use reassociate frame. This is used
2856 *	to indicate a request to reassociate within the ESS instead of a request
2857 *	do the initial association with the ESS. When included, this is set to
2858 *	the BSSID of the current association, i.e., to the value that is
2859 *	included in the Current AP address field of the Reassociation Request
2860 *	frame.
2861 * @flags:  See &enum cfg80211_assoc_req_flags
2862 * @ht_capa:  HT Capabilities over-rides.  Values set in ht_capa_mask
2863 *	will be used in ht_capa.  Un-supported values will be ignored.
2864 * @ht_capa_mask:  The bits of ht_capa which are to be used.
2865 * @vht_capa: VHT capability override
2866 * @vht_capa_mask: VHT capability mask indicating which fields to use
2867 * @fils_kek: FILS KEK for protecting (Re)Association Request/Response frame or
2868 *	%NULL if FILS is not used.
2869 * @fils_kek_len: Length of fils_kek in octets
2870 * @fils_nonces: FILS nonces (part of AAD) for protecting (Re)Association
2871 *	Request/Response frame or %NULL if FILS is not used. This field starts
2872 *	with 16 octets of STA Nonce followed by 16 octets of AP Nonce.
2873 * @s1g_capa: S1G capability override
2874 * @s1g_capa_mask: S1G capability override mask
2875 * @links: per-link information for MLO connections
2876 * @link_id: >= 0 for MLO connections, where links are given, and indicates
2877 *	the link on which the association request should be sent
2878 * @ap_mld_addr: AP MLD address in case of MLO association request,
2879 *	valid iff @link_id >= 0
2880 */
2881struct cfg80211_assoc_request {
2882	struct cfg80211_bss *bss;
2883	const u8 *ie, *prev_bssid;
2884	size_t ie_len;
2885	struct cfg80211_crypto_settings crypto;
2886	bool use_mfp;
2887	u32 flags;
2888	struct ieee80211_ht_cap ht_capa;
2889	struct ieee80211_ht_cap ht_capa_mask;
2890	struct ieee80211_vht_cap vht_capa, vht_capa_mask;
2891	const u8 *fils_kek;
2892	size_t fils_kek_len;
2893	const u8 *fils_nonces;
2894	struct ieee80211_s1g_cap s1g_capa, s1g_capa_mask;
2895	struct cfg80211_assoc_link links[IEEE80211_MLD_MAX_NUM_LINKS];
2896	const u8 *ap_mld_addr;
2897	s8 link_id;
2898};
2899
2900/**
2901 * struct cfg80211_deauth_request - Deauthentication request data
2902 *
2903 * This structure provides information needed to complete IEEE 802.11
2904 * deauthentication.
2905 *
2906 * @bssid: the BSSID or AP MLD address to deauthenticate from
2907 * @ie: Extra IEs to add to Deauthentication frame or %NULL
2908 * @ie_len: Length of ie buffer in octets
2909 * @reason_code: The reason code for the deauthentication
2910 * @local_state_change: if set, change local state only and
2911 *	do not set a deauth frame
2912 */
2913struct cfg80211_deauth_request {
2914	const u8 *bssid;
2915	const u8 *ie;
2916	size_t ie_len;
2917	u16 reason_code;
2918	bool local_state_change;
2919};
2920
2921/**
2922 * struct cfg80211_disassoc_request - Disassociation request data
2923 *
2924 * This structure provides information needed to complete IEEE 802.11
2925 * disassociation.
2926 *
2927 * @ap_addr: the BSSID or AP MLD address to disassociate from
2928 * @ie: Extra IEs to add to Disassociation frame or %NULL
2929 * @ie_len: Length of ie buffer in octets
2930 * @reason_code: The reason code for the disassociation
2931 * @local_state_change: This is a request for a local state only, i.e., no
2932 *	Disassociation frame is to be transmitted.
2933 */
2934struct cfg80211_disassoc_request {
2935	const u8 *ap_addr;
2936	const u8 *ie;
2937	size_t ie_len;
2938	u16 reason_code;
2939	bool local_state_change;
2940};
2941
2942/**
2943 * struct cfg80211_ibss_params - IBSS parameters
2944 *
2945 * This structure defines the IBSS parameters for the join_ibss()
2946 * method.
2947 *
2948 * @ssid: The SSID, will always be non-null.
2949 * @ssid_len: The length of the SSID, will always be non-zero.
2950 * @bssid: Fixed BSSID requested, maybe be %NULL, if set do not
2951 *	search for IBSSs with a different BSSID.
2952 * @chandef: defines the channel to use if no other IBSS to join can be found
2953 * @channel_fixed: The channel should be fixed -- do not search for
2954 *	IBSSs to join on other channels.
2955 * @ie: information element(s) to include in the beacon
2956 * @ie_len: length of that
2957 * @beacon_interval: beacon interval to use
2958 * @privacy: this is a protected network, keys will be configured
2959 *	after joining
2960 * @control_port: whether user space controls IEEE 802.1X port, i.e.,
2961 *	sets/clears %NL80211_STA_FLAG_AUTHORIZED. If true, the driver is
2962 *	required to assume that the port is unauthorized until authorized by
2963 *	user space. Otherwise, port is marked authorized by default.
2964 * @control_port_over_nl80211: TRUE if userspace expects to exchange control
2965 *	port frames over NL80211 instead of the network interface.
2966 * @userspace_handles_dfs: whether user space controls DFS operation, i.e.
2967 *	changes the channel when a radar is detected. This is required
2968 *	to operate on DFS channels.
2969 * @basic_rates: bitmap of basic rates to use when creating the IBSS
2970 * @mcast_rate: per-band multicast rate index + 1 (0: disabled)
2971 * @ht_capa:  HT Capabilities over-rides.  Values set in ht_capa_mask
2972 *	will be used in ht_capa.  Un-supported values will be ignored.
2973 * @ht_capa_mask:  The bits of ht_capa which are to be used.
2974 * @wep_keys: static WEP keys, if not NULL points to an array of
2975 *	CFG80211_MAX_WEP_KEYS WEP keys
2976 * @wep_tx_key: key index (0..3) of the default TX static WEP key
2977 */
2978struct cfg80211_ibss_params {
2979	const u8 *ssid;
2980	const u8 *bssid;
2981	struct cfg80211_chan_def chandef;
2982	const u8 *ie;
2983	u8 ssid_len, ie_len;
2984	u16 beacon_interval;
2985	u32 basic_rates;
2986	bool channel_fixed;
2987	bool privacy;
2988	bool control_port;
2989	bool control_port_over_nl80211;
2990	bool userspace_handles_dfs;
2991	int mcast_rate[NUM_NL80211_BANDS];
2992	struct ieee80211_ht_cap ht_capa;
2993	struct ieee80211_ht_cap ht_capa_mask;
2994	struct key_params *wep_keys;
2995	int wep_tx_key;
2996};
2997
2998/**
2999 * struct cfg80211_bss_selection - connection parameters for BSS selection.
3000 *
3001 * @behaviour: requested BSS selection behaviour.
3002 * @param: parameters for requestion behaviour.
3003 * @band_pref: preferred band for %NL80211_BSS_SELECT_ATTR_BAND_PREF.
3004 * @adjust: parameters for %NL80211_BSS_SELECT_ATTR_RSSI_ADJUST.
3005 */
3006struct cfg80211_bss_selection {
3007	enum nl80211_bss_select_attr behaviour;
3008	union {
3009		enum nl80211_band band_pref;
3010		struct cfg80211_bss_select_adjust adjust;
3011	} param;
3012};
3013
3014/**
3015 * struct cfg80211_connect_params - Connection parameters
3016 *
3017 * This structure provides information needed to complete IEEE 802.11
3018 * authentication and association.
3019 *
3020 * @channel: The channel to use or %NULL if not specified (auto-select based
3021 *	on scan results)
3022 * @channel_hint: The channel of the recommended BSS for initial connection or
3023 *	%NULL if not specified
3024 * @bssid: The AP BSSID or %NULL if not specified (auto-select based on scan
3025 *	results)
3026 * @bssid_hint: The recommended AP BSSID for initial connection to the BSS or
3027 *	%NULL if not specified. Unlike the @bssid parameter, the driver is
3028 *	allowed to ignore this @bssid_hint if it has knowledge of a better BSS
3029 *	to use.
3030 * @ssid: SSID
3031 * @ssid_len: Length of ssid in octets
3032 * @auth_type: Authentication type (algorithm)
3033 * @ie: IEs for association request
3034 * @ie_len: Length of assoc_ie in octets
3035 * @privacy: indicates whether privacy-enabled APs should be used
3036 * @mfp: indicate whether management frame protection is used
3037 * @crypto: crypto settings
3038 * @key_len: length of WEP key for shared key authentication
3039 * @key_idx: index of WEP key for shared key authentication
3040 * @key: WEP key for shared key authentication
3041 * @flags:  See &enum cfg80211_assoc_req_flags
3042 * @bg_scan_period:  Background scan period in seconds
3043 *	or -1 to indicate that default value is to be used.
3044 * @ht_capa:  HT Capabilities over-rides.  Values set in ht_capa_mask
3045 *	will be used in ht_capa.  Un-supported values will be ignored.
3046 * @ht_capa_mask:  The bits of ht_capa which are to be used.
3047 * @vht_capa:  VHT Capability overrides
3048 * @vht_capa_mask: The bits of vht_capa which are to be used.
3049 * @pbss: if set, connect to a PCP instead of AP. Valid for DMG
3050 *	networks.
3051 * @bss_select: criteria to be used for BSS selection.
3052 * @prev_bssid: previous BSSID, if not %NULL use reassociate frame. This is used
3053 *	to indicate a request to reassociate within the ESS instead of a request
3054 *	do the initial association with the ESS. When included, this is set to
3055 *	the BSSID of the current association, i.e., to the value that is
3056 *	included in the Current AP address field of the Reassociation Request
3057 *	frame.
3058 * @fils_erp_username: EAP re-authentication protocol (ERP) username part of the
3059 *	NAI or %NULL if not specified. This is used to construct FILS wrapped
3060 *	data IE.
3061 * @fils_erp_username_len: Length of @fils_erp_username in octets.
3062 * @fils_erp_realm: EAP re-authentication protocol (ERP) realm part of NAI or
3063 *	%NULL if not specified. This specifies the domain name of ER server and
3064 *	is used to construct FILS wrapped data IE.
3065 * @fils_erp_realm_len: Length of @fils_erp_realm in octets.
3066 * @fils_erp_next_seq_num: The next sequence number to use in the FILS ERP
3067 *	messages. This is also used to construct FILS wrapped data IE.
3068 * @fils_erp_rrk: ERP re-authentication Root Key (rRK) used to derive additional
3069 *	keys in FILS or %NULL if not specified.
3070 * @fils_erp_rrk_len: Length of @fils_erp_rrk in octets.
3071 * @want_1x: indicates user-space supports and wants to use 802.1X driver
3072 *	offload of 4-way handshake.
3073 * @edmg: define the EDMG channels.
3074 *	This may specify multiple channels and bonding options for the driver
3075 *	to choose from, based on BSS configuration.
3076 */
3077struct cfg80211_connect_params {
3078	struct ieee80211_channel *channel;
3079	struct ieee80211_channel *channel_hint;
3080	const u8 *bssid;
3081	const u8 *bssid_hint;
3082	const u8 *ssid;
3083	size_t ssid_len;
3084	enum nl80211_auth_type auth_type;
3085	const u8 *ie;
3086	size_t ie_len;
3087	bool privacy;
3088	enum nl80211_mfp mfp;
3089	struct cfg80211_crypto_settings crypto;
3090	const u8 *key;
3091	u8 key_len, key_idx;
3092	u32 flags;
3093	int bg_scan_period;
3094	struct ieee80211_ht_cap ht_capa;
3095	struct ieee80211_ht_cap ht_capa_mask;
3096	struct ieee80211_vht_cap vht_capa;
3097	struct ieee80211_vht_cap vht_capa_mask;
3098	bool pbss;
3099	struct cfg80211_bss_selection bss_select;
3100	const u8 *prev_bssid;
3101	const u8 *fils_erp_username;
3102	size_t fils_erp_username_len;
3103	const u8 *fils_erp_realm;
3104	size_t fils_erp_realm_len;
3105	u16 fils_erp_next_seq_num;
3106	const u8 *fils_erp_rrk;
3107	size_t fils_erp_rrk_len;
3108	bool want_1x;
3109	struct ieee80211_edmg edmg;
3110};
3111
3112/**
3113 * enum cfg80211_connect_params_changed - Connection parameters being updated
3114 *
3115 * This enum provides information of all connect parameters that
3116 * have to be updated as part of update_connect_params() call.
3117 *
3118 * @UPDATE_ASSOC_IES: Indicates whether association request IEs are updated
3119 * @UPDATE_FILS_ERP_INFO: Indicates that FILS connection parameters (realm,
3120 *	username, erp sequence number and rrk) are updated
3121 * @UPDATE_AUTH_TYPE: Indicates that authentication type is updated
3122 */
3123enum cfg80211_connect_params_changed {
3124	UPDATE_ASSOC_IES		= BIT(0),
3125	UPDATE_FILS_ERP_INFO		= BIT(1),
3126	UPDATE_AUTH_TYPE		= BIT(2),
3127};
3128
3129/**
3130 * enum wiphy_params_flags - set_wiphy_params bitfield values
3131 * @WIPHY_PARAM_RETRY_SHORT: wiphy->retry_short has changed
3132 * @WIPHY_PARAM_RETRY_LONG: wiphy->retry_long has changed
3133 * @WIPHY_PARAM_FRAG_THRESHOLD: wiphy->frag_threshold has changed
3134 * @WIPHY_PARAM_RTS_THRESHOLD: wiphy->rts_threshold has changed
3135 * @WIPHY_PARAM_COVERAGE_CLASS: coverage class changed
3136 * @WIPHY_PARAM_DYN_ACK: dynack has been enabled
3137 * @WIPHY_PARAM_TXQ_LIMIT: TXQ packet limit has been changed
3138 * @WIPHY_PARAM_TXQ_MEMORY_LIMIT: TXQ memory limit has been changed
3139 * @WIPHY_PARAM_TXQ_QUANTUM: TXQ scheduler quantum
3140 */
3141enum wiphy_params_flags {
3142	WIPHY_PARAM_RETRY_SHORT		= 1 << 0,
3143	WIPHY_PARAM_RETRY_LONG		= 1 << 1,
3144	WIPHY_PARAM_FRAG_THRESHOLD	= 1 << 2,
3145	WIPHY_PARAM_RTS_THRESHOLD	= 1 << 3,
3146	WIPHY_PARAM_COVERAGE_CLASS	= 1 << 4,
3147	WIPHY_PARAM_DYN_ACK		= 1 << 5,
3148	WIPHY_PARAM_TXQ_LIMIT		= 1 << 6,
3149	WIPHY_PARAM_TXQ_MEMORY_LIMIT	= 1 << 7,
3150	WIPHY_PARAM_TXQ_QUANTUM		= 1 << 8,
3151};
3152
3153#define IEEE80211_DEFAULT_AIRTIME_WEIGHT	256
3154
3155/* The per TXQ device queue limit in airtime */
3156#define IEEE80211_DEFAULT_AQL_TXQ_LIMIT_L	5000
3157#define IEEE80211_DEFAULT_AQL_TXQ_LIMIT_H	12000
3158
3159/* The per interface airtime threshold to switch to lower queue limit */
3160#define IEEE80211_AQL_THRESHOLD			24000
3161
3162/**
3163 * struct cfg80211_pmksa - PMK Security Association
3164 *
3165 * This structure is passed to the set/del_pmksa() method for PMKSA
3166 * caching.
3167 *
3168 * @bssid: The AP's BSSID (may be %NULL).
3169 * @pmkid: The identifier to refer a PMKSA.
3170 * @pmk: The PMK for the PMKSA identified by @pmkid. This is used for key
3171 *	derivation by a FILS STA. Otherwise, %NULL.
3172 * @pmk_len: Length of the @pmk. The length of @pmk can differ depending on
3173 *	the hash algorithm used to generate this.
3174 * @ssid: SSID to specify the ESS within which a PMKSA is valid when using FILS
3175 *	cache identifier (may be %NULL).
3176 * @ssid_len: Length of the @ssid in octets.
3177 * @cache_id: 2-octet cache identifier advertized by a FILS AP identifying the
3178 *	scope of PMKSA. This is valid only if @ssid_len is non-zero (may be
3179 *	%NULL).
3180 * @pmk_lifetime: Maximum lifetime for PMKSA in seconds
3181 *	(dot11RSNAConfigPMKLifetime) or 0 if not specified.
3182 *	The configured PMKSA must not be used for PMKSA caching after
3183 *	expiration and any keys derived from this PMK become invalid on
3184 *	expiration, i.e., the current association must be dropped if the PMK
3185 *	used for it expires.
3186 * @pmk_reauth_threshold: Threshold time for reauthentication (percentage of
3187 *	PMK lifetime, dot11RSNAConfigPMKReauthThreshold) or 0 if not specified.
3188 *	Drivers are expected to trigger a full authentication instead of using
3189 *	this PMKSA for caching when reassociating to a new BSS after this
3190 *	threshold to generate a new PMK before the current one expires.
3191 */
3192struct cfg80211_pmksa {
3193	const u8 *bssid;
3194	const u8 *pmkid;
3195	const u8 *pmk;
3196	size_t pmk_len;
3197	const u8 *ssid;
3198	size_t ssid_len;
3199	const u8 *cache_id;
3200	u32 pmk_lifetime;
3201	u8 pmk_reauth_threshold;
3202};
3203
3204/**
3205 * struct cfg80211_pkt_pattern - packet pattern
3206 * @mask: bitmask where to match pattern and where to ignore bytes,
3207 *	one bit per byte, in same format as nl80211
3208 * @pattern: bytes to match where bitmask is 1
3209 * @pattern_len: length of pattern (in bytes)
3210 * @pkt_offset: packet offset (in bytes)
3211 *
3212 * Internal note: @mask and @pattern are allocated in one chunk of
3213 * memory, free @mask only!
3214 */
3215struct cfg80211_pkt_pattern {
3216	const u8 *mask, *pattern;
3217	int pattern_len;
3218	int pkt_offset;
3219};
3220
3221/**
3222 * struct cfg80211_wowlan_tcp - TCP connection parameters
3223 *
3224 * @sock: (internal) socket for source port allocation
3225 * @src: source IP address
3226 * @dst: destination IP address
3227 * @dst_mac: destination MAC address
3228 * @src_port: source port
3229 * @dst_port: destination port
3230 * @payload_len: data payload length
3231 * @payload: data payload buffer
3232 * @payload_seq: payload sequence stamping configuration
3233 * @data_interval: interval at which to send data packets
3234 * @wake_len: wakeup payload match length
3235 * @wake_data: wakeup payload match data
3236 * @wake_mask: wakeup payload match mask
3237 * @tokens_size: length of the tokens buffer
3238 * @payload_tok: payload token usage configuration
3239 */
3240struct cfg80211_wowlan_tcp {
3241	struct socket *sock;
3242	__be32 src, dst;
3243	u16 src_port, dst_port;
3244	u8 dst_mac[ETH_ALEN];
3245	int payload_len;
3246	const u8 *payload;
3247	struct nl80211_wowlan_tcp_data_seq payload_seq;
3248	u32 data_interval;
3249	u32 wake_len;
3250	const u8 *wake_data, *wake_mask;
3251	u32 tokens_size;
3252	/* must be last, variable member */
3253	struct nl80211_wowlan_tcp_data_token payload_tok;
3254};
3255
3256/**
3257 * struct cfg80211_wowlan - Wake on Wireless-LAN support info
3258 *
3259 * This structure defines the enabled WoWLAN triggers for the device.
3260 * @any: wake up on any activity -- special trigger if device continues
3261 *	operating as normal during suspend
3262 * @disconnect: wake up if getting disconnected
3263 * @magic_pkt: wake up on receiving magic packet
3264 * @patterns: wake up on receiving packet matching a pattern
3265 * @n_patterns: number of patterns
3266 * @gtk_rekey_failure: wake up on GTK rekey failure
3267 * @eap_identity_req: wake up on EAP identity request packet
3268 * @four_way_handshake: wake up on 4-way handshake
3269 * @rfkill_release: wake up when rfkill is released
3270 * @tcp: TCP connection establishment/wakeup parameters, see nl80211.h.
3271 *	NULL if not configured.
3272 * @nd_config: configuration for the scan to be used for net detect wake.
3273 */
3274struct cfg80211_wowlan {
3275	bool any, disconnect, magic_pkt, gtk_rekey_failure,
3276	     eap_identity_req, four_way_handshake,
3277	     rfkill_release;
3278	struct cfg80211_pkt_pattern *patterns;
3279	struct cfg80211_wowlan_tcp *tcp;
3280	int n_patterns;
3281	struct cfg80211_sched_scan_request *nd_config;
3282};
3283
3284/**
3285 * struct cfg80211_coalesce_rules - Coalesce rule parameters
3286 *
3287 * This structure defines coalesce rule for the device.
3288 * @delay: maximum coalescing delay in msecs.
3289 * @condition: condition for packet coalescence.
3290 *	see &enum nl80211_coalesce_condition.
3291 * @patterns: array of packet patterns
3292 * @n_patterns: number of patterns
3293 */
3294struct cfg80211_coalesce_rules {
3295	int delay;
3296	enum nl80211_coalesce_condition condition;
3297	struct cfg80211_pkt_pattern *patterns;
3298	int n_patterns;
3299};
3300
3301/**
3302 * struct cfg80211_coalesce - Packet coalescing settings
3303 *
3304 * This structure defines coalescing settings.
3305 * @rules: array of coalesce rules
3306 * @n_rules: number of rules
3307 */
3308struct cfg80211_coalesce {
3309	struct cfg80211_coalesce_rules *rules;
3310	int n_rules;
3311};
3312
3313/**
3314 * struct cfg80211_wowlan_nd_match - information about the match
3315 *
3316 * @ssid: SSID of the match that triggered the wake up
3317 * @n_channels: Number of channels where the match occurred.  This
3318 *	value may be zero if the driver can't report the channels.
3319 * @channels: center frequencies of the channels where a match
3320 *	occurred (in MHz)
3321 */
3322struct cfg80211_wowlan_nd_match {
3323	struct cfg80211_ssid ssid;
3324	int n_channels;
3325	u32 channels[];
3326};
3327
3328/**
3329 * struct cfg80211_wowlan_nd_info - net detect wake up information
3330 *
3331 * @n_matches: Number of match information instances provided in
3332 *	@matches.  This value may be zero if the driver can't provide
3333 *	match information.
3334 * @matches: Array of pointers to matches containing information about
3335 *	the matches that triggered the wake up.
3336 */
3337struct cfg80211_wowlan_nd_info {
3338	int n_matches;
3339	struct cfg80211_wowlan_nd_match *matches[];
3340};
3341
3342/**
3343 * struct cfg80211_wowlan_wakeup - wakeup report
3344 * @disconnect: woke up by getting disconnected
3345 * @magic_pkt: woke up by receiving magic packet
3346 * @gtk_rekey_failure: woke up by GTK rekey failure
3347 * @eap_identity_req: woke up by EAP identity request packet
3348 * @four_way_handshake: woke up by 4-way handshake
3349 * @rfkill_release: woke up by rfkill being released
3350 * @pattern_idx: pattern that caused wakeup, -1 if not due to pattern
3351 * @packet_present_len: copied wakeup packet data
3352 * @packet_len: original wakeup packet length
3353 * @packet: The packet causing the wakeup, if any.
3354 * @packet_80211:  For pattern match, magic packet and other data
3355 *	frame triggers an 802.3 frame should be reported, for
3356 *	disconnect due to deauth 802.11 frame. This indicates which
3357 *	it is.
3358 * @tcp_match: TCP wakeup packet received
3359 * @tcp_connlost: TCP connection lost or failed to establish
3360 * @tcp_nomoretokens: TCP data ran out of tokens
3361 * @net_detect: if not %NULL, woke up because of net detect
3362 */
3363struct cfg80211_wowlan_wakeup {
3364	bool disconnect, magic_pkt, gtk_rekey_failure,
3365	     eap_identity_req, four_way_handshake,
3366	     rfkill_release, packet_80211,
3367	     tcp_match, tcp_connlost, tcp_nomoretokens;
3368	s32 pattern_idx;
3369	u32 packet_present_len, packet_len;
3370	const void *packet;
3371	struct cfg80211_wowlan_nd_info *net_detect;
3372};
3373
3374/**
3375 * struct cfg80211_gtk_rekey_data - rekey data
3376 * @kek: key encryption key (@kek_len bytes)
3377 * @kck: key confirmation key (@kck_len bytes)
3378 * @replay_ctr: replay counter (NL80211_REPLAY_CTR_LEN bytes)
3379 * @kek_len: length of kek
3380 * @kck_len: length of kck
3381 * @akm: akm (oui, id)
3382 */
3383struct cfg80211_gtk_rekey_data {
3384	const u8 *kek, *kck, *replay_ctr;
3385	u32 akm;
3386	u8 kek_len, kck_len;
3387};
3388
3389/**
3390 * struct cfg80211_update_ft_ies_params - FT IE Information
3391 *
3392 * This structure provides information needed to update the fast transition IE
3393 *
3394 * @md: The Mobility Domain ID, 2 Octet value
3395 * @ie: Fast Transition IEs
3396 * @ie_len: Length of ft_ie in octets
3397 */
3398struct cfg80211_update_ft_ies_params {
3399	u16 md;
3400	const u8 *ie;
3401	size_t ie_len;
3402};
3403
3404/**
3405 * struct cfg80211_mgmt_tx_params - mgmt tx parameters
3406 *
3407 * This structure provides information needed to transmit a mgmt frame
3408 *
3409 * @chan: channel to use
3410 * @offchan: indicates wether off channel operation is required
3411 * @wait: duration for ROC
3412 * @buf: buffer to transmit
3413 * @len: buffer length
3414 * @no_cck: don't use cck rates for this frame
3415 * @dont_wait_for_ack: tells the low level not to wait for an ack
3416 * @n_csa_offsets: length of csa_offsets array
3417 * @csa_offsets: array of all the csa offsets in the frame
3418 * @link_id: for MLO, the link ID to transmit on, -1 if not given; note
3419 *	that the link ID isn't validated (much), it's in range but the
3420 *	link might not exist (or be used by the receiver STA)
3421 */
3422struct cfg80211_mgmt_tx_params {
3423	struct ieee80211_channel *chan;
3424	bool offchan;
3425	unsigned int wait;
3426	const u8 *buf;
3427	size_t len;
3428	bool no_cck;
3429	bool dont_wait_for_ack;
3430	int n_csa_offsets;
3431	const u16 *csa_offsets;
3432	int link_id;
3433};
3434
3435/**
3436 * struct cfg80211_dscp_exception - DSCP exception
3437 *
3438 * @dscp: DSCP value that does not adhere to the user priority range definition
3439 * @up: user priority value to which the corresponding DSCP value belongs
3440 */
3441struct cfg80211_dscp_exception {
3442	u8 dscp;
3443	u8 up;
3444};
3445
3446/**
3447 * struct cfg80211_dscp_range - DSCP range definition for user priority
3448 *
3449 * @low: lowest DSCP value of this user priority range, inclusive
3450 * @high: highest DSCP value of this user priority range, inclusive
3451 */
3452struct cfg80211_dscp_range {
3453	u8 low;
3454	u8 high;
3455};
3456
3457/* QoS Map Set element length defined in IEEE Std 802.11-2012, 8.4.2.97 */
3458#define IEEE80211_QOS_MAP_MAX_EX	21
3459#define IEEE80211_QOS_MAP_LEN_MIN	16
3460#define IEEE80211_QOS_MAP_LEN_MAX \
3461	(IEEE80211_QOS_MAP_LEN_MIN + 2 * IEEE80211_QOS_MAP_MAX_EX)
3462
3463/**
3464 * struct cfg80211_qos_map - QoS Map Information
3465 *
3466 * This struct defines the Interworking QoS map setting for DSCP values
3467 *
3468 * @num_des: number of DSCP exceptions (0..21)
3469 * @dscp_exception: optionally up to maximum of 21 DSCP exceptions from
3470 *	the user priority DSCP range definition
3471 * @up: DSCP range definition for a particular user priority
3472 */
3473struct cfg80211_qos_map {
3474	u8 num_des;
3475	struct cfg80211_dscp_exception dscp_exception[IEEE80211_QOS_MAP_MAX_EX];
3476	struct cfg80211_dscp_range up[8];
3477};
3478
3479/**
3480 * struct cfg80211_nan_conf - NAN configuration
3481 *
3482 * This struct defines NAN configuration parameters
3483 *
3484 * @master_pref: master preference (1 - 255)
3485 * @bands: operating bands, a bitmap of &enum nl80211_band values.
3486 *	For instance, for NL80211_BAND_2GHZ, bit 0 would be set
3487 *	(i.e. BIT(NL80211_BAND_2GHZ)).
3488 */
3489struct cfg80211_nan_conf {
3490	u8 master_pref;
3491	u8 bands;
3492};
3493
3494/**
3495 * enum cfg80211_nan_conf_changes - indicates changed fields in NAN
3496 * configuration
3497 *
3498 * @CFG80211_NAN_CONF_CHANGED_PREF: master preference
3499 * @CFG80211_NAN_CONF_CHANGED_BANDS: operating bands
3500 */
3501enum cfg80211_nan_conf_changes {
3502	CFG80211_NAN_CONF_CHANGED_PREF = BIT(0),
3503	CFG80211_NAN_CONF_CHANGED_BANDS = BIT(1),
3504};
3505
3506/**
3507 * struct cfg80211_nan_func_filter - a NAN function Rx / Tx filter
3508 *
3509 * @filter: the content of the filter
3510 * @len: the length of the filter
3511 */
3512struct cfg80211_nan_func_filter {
3513	const u8 *filter;
3514	u8 len;
3515};
3516
3517/**
3518 * struct cfg80211_nan_func - a NAN function
3519 *
3520 * @type: &enum nl80211_nan_function_type
3521 * @service_id: the service ID of the function
3522 * @publish_type: &nl80211_nan_publish_type
3523 * @close_range: if true, the range should be limited. Threshold is
3524 *	implementation specific.
3525 * @publish_bcast: if true, the solicited publish should be broadcasted
3526 * @subscribe_active: if true, the subscribe is active
3527 * @followup_id: the instance ID for follow up
3528 * @followup_reqid: the requestor instance ID for follow up
3529 * @followup_dest: MAC address of the recipient of the follow up
3530 * @ttl: time to live counter in DW.
3531 * @serv_spec_info: Service Specific Info
3532 * @serv_spec_info_len: Service Specific Info length
3533 * @srf_include: if true, SRF is inclusive
3534 * @srf_bf: Bloom Filter
3535 * @srf_bf_len: Bloom Filter length
3536 * @srf_bf_idx: Bloom Filter index
3537 * @srf_macs: SRF MAC addresses
3538 * @srf_num_macs: number of MAC addresses in SRF
3539 * @rx_filters: rx filters that are matched with corresponding peer's tx_filter
3540 * @tx_filters: filters that should be transmitted in the SDF.
3541 * @num_rx_filters: length of &rx_filters.
3542 * @num_tx_filters: length of &tx_filters.
3543 * @instance_id: driver allocated id of the function.
3544 * @cookie: unique NAN function identifier.
3545 */
3546struct cfg80211_nan_func {
3547	enum nl80211_nan_function_type type;
3548	u8 service_id[NL80211_NAN_FUNC_SERVICE_ID_LEN];
3549	u8 publish_type;
3550	bool close_range;
3551	bool publish_bcast;
3552	bool subscribe_active;
3553	u8 followup_id;
3554	u8 followup_reqid;
3555	struct mac_address followup_dest;
3556	u32 ttl;
3557	const u8 *serv_spec_info;
3558	u8 serv_spec_info_len;
3559	bool srf_include;
3560	const u8 *srf_bf;
3561	u8 srf_bf_len;
3562	u8 srf_bf_idx;
3563	struct mac_address *srf_macs;
3564	int srf_num_macs;
3565	struct cfg80211_nan_func_filter *rx_filters;
3566	struct cfg80211_nan_func_filter *tx_filters;
3567	u8 num_tx_filters;
3568	u8 num_rx_filters;
3569	u8 instance_id;
3570	u64 cookie;
3571};
3572
3573/**
3574 * struct cfg80211_pmk_conf - PMK configuration
3575 *
3576 * @aa: authenticator address
3577 * @pmk_len: PMK length in bytes.
3578 * @pmk: the PMK material
3579 * @pmk_r0_name: PMK-R0 Name. NULL if not applicable (i.e., the PMK
3580 *	is not PMK-R0). When pmk_r0_name is not NULL, the pmk field
3581 *	holds PMK-R0.
3582 */
3583struct cfg80211_pmk_conf {
3584	const u8 *aa;
3585	u8 pmk_len;
3586	const u8 *pmk;
3587	const u8 *pmk_r0_name;
3588};
3589
3590/**
3591 * struct cfg80211_external_auth_params - Trigger External authentication.
3592 *
3593 * Commonly used across the external auth request and event interfaces.
3594 *
3595 * @action: action type / trigger for external authentication. Only significant
3596 *	for the authentication request event interface (driver to user space).
3597 * @bssid: BSSID of the peer with which the authentication has
3598 *	to happen. Used by both the authentication request event and
3599 *	authentication response command interface.
3600 * @ssid: SSID of the AP.  Used by both the authentication request event and
3601 *	authentication response command interface.
3602 * @key_mgmt_suite: AKM suite of the respective authentication. Used by the
3603 *	authentication request event interface.
3604 * @status: status code, %WLAN_STATUS_SUCCESS for successful authentication,
3605 *	use %WLAN_STATUS_UNSPECIFIED_FAILURE if user space cannot give you
3606 *	the real status code for failures. Used only for the authentication
3607 *	response command interface (user space to driver).
3608 * @pmkid: The identifier to refer a PMKSA.
3609 */
3610struct cfg80211_external_auth_params {
3611	enum nl80211_external_auth_action action;
3612	u8 bssid[ETH_ALEN] __aligned(2);
3613	struct cfg80211_ssid ssid;
3614	unsigned int key_mgmt_suite;
3615	u16 status;
3616	const u8 *pmkid;
3617};
3618
3619/**
3620 * struct cfg80211_ftm_responder_stats - FTM responder statistics
3621 *
3622 * @filled: bitflag of flags using the bits of &enum nl80211_ftm_stats to
3623 *	indicate the relevant values in this struct for them
3624 * @success_num: number of FTM sessions in which all frames were successfully
3625 *	answered
3626 * @partial_num: number of FTM sessions in which part of frames were
3627 *	successfully answered
3628 * @failed_num: number of failed FTM sessions
3629 * @asap_num: number of ASAP FTM sessions
3630 * @non_asap_num: number of  non-ASAP FTM sessions
3631 * @total_duration_ms: total sessions durations - gives an indication
3632 *	of how much time the responder was busy
3633 * @unknown_triggers_num: number of unknown FTM triggers - triggers from
3634 *	initiators that didn't finish successfully the negotiation phase with
3635 *	the responder
3636 * @reschedule_requests_num: number of FTM reschedule requests - initiator asks
3637 *	for a new scheduling although it already has scheduled FTM slot
3638 * @out_of_window_triggers_num: total FTM triggers out of scheduled window
3639 */
3640struct cfg80211_ftm_responder_stats {
3641	u32 filled;
3642	u32 success_num;
3643	u32 partial_num;
3644	u32 failed_num;
3645	u32 asap_num;
3646	u32 non_asap_num;
3647	u64 total_duration_ms;
3648	u32 unknown_triggers_num;
3649	u32 reschedule_requests_num;
3650	u32 out_of_window_triggers_num;
3651};
3652
3653/**
3654 * struct cfg80211_pmsr_ftm_result - FTM result
3655 * @failure_reason: if this measurement failed (PMSR status is
3656 *	%NL80211_PMSR_STATUS_FAILURE), this gives a more precise
3657 *	reason than just "failure"
3658 * @burst_index: if reporting partial results, this is the index
3659 *	in [0 .. num_bursts-1] of the burst that's being reported
3660 * @num_ftmr_attempts: number of FTM request frames transmitted
3661 * @num_ftmr_successes: number of FTM request frames acked
3662 * @busy_retry_time: if failure_reason is %NL80211_PMSR_FTM_FAILURE_PEER_BUSY,
3663 *	fill this to indicate in how many seconds a retry is deemed possible
3664 *	by the responder
3665 * @num_bursts_exp: actual number of bursts exponent negotiated
3666 * @burst_duration: actual burst duration negotiated
3667 * @ftms_per_burst: actual FTMs per burst negotiated
3668 * @lci_len: length of LCI information (if present)
3669 * @civicloc_len: length of civic location information (if present)
3670 * @lci: LCI data (may be %NULL)
3671 * @civicloc: civic location data (may be %NULL)
3672 * @rssi_avg: average RSSI over FTM action frames reported
3673 * @rssi_spread: spread of the RSSI over FTM action frames reported
3674 * @tx_rate: bitrate for transmitted FTM action frame response
3675 * @rx_rate: bitrate of received FTM action frame
3676 * @rtt_avg: average of RTTs measured (must have either this or @dist_avg)
3677 * @rtt_variance: variance of RTTs measured (note that standard deviation is
3678 *	the square root of the variance)
3679 * @rtt_spread: spread of the RTTs measured
3680 * @dist_avg: average of distances (mm) measured
3681 *	(must have either this or @rtt_avg)
3682 * @dist_variance: variance of distances measured (see also @rtt_variance)
3683 * @dist_spread: spread of distances measured (see also @rtt_spread)
3684 * @num_ftmr_attempts_valid: @num_ftmr_attempts is valid
3685 * @num_ftmr_successes_valid: @num_ftmr_successes is valid
3686 * @rssi_avg_valid: @rssi_avg is valid
3687 * @rssi_spread_valid: @rssi_spread is valid
3688 * @tx_rate_valid: @tx_rate is valid
3689 * @rx_rate_valid: @rx_rate is valid
3690 * @rtt_avg_valid: @rtt_avg is valid
3691 * @rtt_variance_valid: @rtt_variance is valid
3692 * @rtt_spread_valid: @rtt_spread is valid
3693 * @dist_avg_valid: @dist_avg is valid
3694 * @dist_variance_valid: @dist_variance is valid
3695 * @dist_spread_valid: @dist_spread is valid
3696 */
3697struct cfg80211_pmsr_ftm_result {
3698	const u8 *lci;
3699	const u8 *civicloc;
3700	unsigned int lci_len;
3701	unsigned int civicloc_len;
3702	enum nl80211_peer_measurement_ftm_failure_reasons failure_reason;
3703	u32 num_ftmr_attempts, num_ftmr_successes;
3704	s16 burst_index;
3705	u8 busy_retry_time;
3706	u8 num_bursts_exp;
3707	u8 burst_duration;
3708	u8 ftms_per_burst;
3709	s32 rssi_avg;
3710	s32 rssi_spread;
3711	struct rate_info tx_rate, rx_rate;
3712	s64 rtt_avg;
3713	s64 rtt_variance;
3714	s64 rtt_spread;
3715	s64 dist_avg;
3716	s64 dist_variance;
3717	s64 dist_spread;
3718
3719	u16 num_ftmr_attempts_valid:1,
3720	    num_ftmr_successes_valid:1,
3721	    rssi_avg_valid:1,
3722	    rssi_spread_valid:1,
3723	    tx_rate_valid:1,
3724	    rx_rate_valid:1,
3725	    rtt_avg_valid:1,
3726	    rtt_variance_valid:1,
3727	    rtt_spread_valid:1,
3728	    dist_avg_valid:1,
3729	    dist_variance_valid:1,
3730	    dist_spread_valid:1;
3731};
3732
3733/**
3734 * struct cfg80211_pmsr_result - peer measurement result
3735 * @addr: address of the peer
3736 * @host_time: host time (use ktime_get_boottime() adjust to the time when the
3737 *	measurement was made)
3738 * @ap_tsf: AP's TSF at measurement time
3739 * @status: status of the measurement
3740 * @final: if reporting partial results, mark this as the last one; if not
3741 *	reporting partial results always set this flag
3742 * @ap_tsf_valid: indicates the @ap_tsf value is valid
3743 * @type: type of the measurement reported, note that we only support reporting
3744 *	one type at a time, but you can report multiple results separately and
3745 *	they're all aggregated for userspace.
3746 * @ftm: FTM result
3747 */
3748struct cfg80211_pmsr_result {
3749	u64 host_time, ap_tsf;
3750	enum nl80211_peer_measurement_status status;
3751
3752	u8 addr[ETH_ALEN];
3753
3754	u8 final:1,
3755	   ap_tsf_valid:1;
3756
3757	enum nl80211_peer_measurement_type type;
3758
3759	union {
3760		struct cfg80211_pmsr_ftm_result ftm;
3761	};
3762};
3763
3764/**
3765 * struct cfg80211_pmsr_ftm_request_peer - FTM request data
3766 * @requested: indicates FTM is requested
3767 * @preamble: frame preamble to use
3768 * @burst_period: burst period to use
3769 * @asap: indicates to use ASAP mode
3770 * @num_bursts_exp: number of bursts exponent
3771 * @burst_duration: burst duration
3772 * @ftms_per_burst: number of FTMs per burst
3773 * @ftmr_retries: number of retries for FTM request
3774 * @request_lci: request LCI information
3775 * @request_civicloc: request civic location information
3776 * @trigger_based: use trigger based ranging for the measurement
3777 *		 If neither @trigger_based nor @non_trigger_based is set,
3778 *		 EDCA based ranging will be used.
3779 * @non_trigger_based: use non trigger based ranging for the measurement
3780 *		 If neither @trigger_based nor @non_trigger_based is set,
3781 *		 EDCA based ranging will be used.
3782 * @lmr_feedback: negotiate for I2R LMR feedback. Only valid if either
3783 *		 @trigger_based or @non_trigger_based is set.
3784 * @bss_color: the bss color of the responder. Optional. Set to zero to
3785 *	indicate the driver should set the BSS color. Only valid if
3786 *	@non_trigger_based or @trigger_based is set.
3787 *
3788 * See also nl80211 for the respective attribute documentation.
3789 */
3790struct cfg80211_pmsr_ftm_request_peer {
3791	enum nl80211_preamble preamble;
3792	u16 burst_period;
3793	u8 requested:1,
3794	   asap:1,
3795	   request_lci:1,
3796	   request_civicloc:1,
3797	   trigger_based:1,
3798	   non_trigger_based:1,
3799	   lmr_feedback:1;
3800	u8 num_bursts_exp;
3801	u8 burst_duration;
3802	u8 ftms_per_burst;
3803	u8 ftmr_retries;
3804	u8 bss_color;
3805};
3806
3807/**
3808 * struct cfg80211_pmsr_request_peer - peer data for a peer measurement request
3809 * @addr: MAC address
3810 * @chandef: channel to use
3811 * @report_ap_tsf: report the associated AP's TSF
3812 * @ftm: FTM data, see &struct cfg80211_pmsr_ftm_request_peer
3813 */
3814struct cfg80211_pmsr_request_peer {
3815	u8 addr[ETH_ALEN];
3816	struct cfg80211_chan_def chandef;
3817	u8 report_ap_tsf:1;
3818	struct cfg80211_pmsr_ftm_request_peer ftm;
3819};
3820
3821/**
3822 * struct cfg80211_pmsr_request - peer measurement request
3823 * @cookie: cookie, set by cfg80211
3824 * @nl_portid: netlink portid - used by cfg80211
3825 * @drv_data: driver data for this request, if required for aborting,
3826 *	not otherwise freed or anything by cfg80211
3827 * @mac_addr: MAC address used for (randomised) request
3828 * @mac_addr_mask: MAC address mask used for randomisation, bits that
3829 *	are 0 in the mask should be randomised, bits that are 1 should
3830 *	be taken from the @mac_addr
3831 * @list: used by cfg80211 to hold on to the request
3832 * @timeout: timeout (in milliseconds) for the whole operation, if
3833 *	zero it means there's no timeout
3834 * @n_peers: number of peers to do measurements with
3835 * @peers: per-peer measurement request data
3836 */
3837struct cfg80211_pmsr_request {
3838	u64 cookie;
3839	void *drv_data;
3840	u32 n_peers;
3841	u32 nl_portid;
3842
3843	u32 timeout;
3844
3845	u8 mac_addr[ETH_ALEN] __aligned(2);
3846	u8 mac_addr_mask[ETH_ALEN] __aligned(2);
3847
3848	struct list_head list;
3849
3850	struct cfg80211_pmsr_request_peer peers[];
3851};
3852
3853/**
3854 * struct cfg80211_update_owe_info - OWE Information
3855 *
3856 * This structure provides information needed for the drivers to offload OWE
3857 * (Opportunistic Wireless Encryption) processing to the user space.
3858 *
3859 * Commonly used across update_owe_info request and event interfaces.
3860 *
3861 * @peer: MAC address of the peer device for which the OWE processing
3862 *	has to be done.
3863 * @status: status code, %WLAN_STATUS_SUCCESS for successful OWE info
3864 *	processing, use %WLAN_STATUS_UNSPECIFIED_FAILURE if user space
3865 *	cannot give you the real status code for failures. Used only for
3866 *	OWE update request command interface (user space to driver).
3867 * @ie: IEs obtained from the peer or constructed by the user space. These are
3868 *	the IEs of the remote peer in the event from the host driver and
3869 *	the constructed IEs by the user space in the request interface.
3870 * @ie_len: Length of IEs in octets.
3871 */
3872struct cfg80211_update_owe_info {
3873	u8 peer[ETH_ALEN] __aligned(2);
3874	u16 status;
3875	const u8 *ie;
3876	size_t ie_len;
3877};
3878
3879/**
3880 * struct mgmt_frame_regs - management frame registrations data
3881 * @global_stypes: bitmap of management frame subtypes registered
3882 *	for the entire device
3883 * @interface_stypes: bitmap of management frame subtypes registered
3884 *	for the given interface
3885 * @global_mcast_stypes: mcast RX is needed globally for these subtypes
3886 * @interface_mcast_stypes: mcast RX is needed on this interface
3887 *	for these subtypes
3888 */
3889struct mgmt_frame_regs {
3890	u32 global_stypes, interface_stypes;
3891	u32 global_mcast_stypes, interface_mcast_stypes;
3892};
3893
3894/**
3895 * struct cfg80211_ops - backend description for wireless configuration
3896 *
3897 * This struct is registered by fullmac card drivers and/or wireless stacks
3898 * in order to handle configuration requests on their interfaces.
3899 *
3900 * All callbacks except where otherwise noted should return 0
3901 * on success or a negative error code.
3902 *
3903 * All operations are invoked with the wiphy mutex held. The RTNL may be
3904 * held in addition (due to wireless extensions) but this cannot be relied
3905 * upon except in cases where documented below. Note that due to ordering,
3906 * the RTNL also cannot be acquired in any handlers.
3907 *
3908 * @suspend: wiphy device needs to be suspended. The variable @wow will
3909 *	be %NULL or contain the enabled Wake-on-Wireless triggers that are
3910 *	configured for the device.
3911 * @resume: wiphy device needs to be resumed
3912 * @set_wakeup: Called when WoWLAN is enabled/disabled, use this callback
3913 *	to call device_set_wakeup_enable() to enable/disable wakeup from
3914 *	the device.
3915 *
3916 * @add_virtual_intf: create a new virtual interface with the given name,
3917 *	must set the struct wireless_dev's iftype. Beware: You must create
3918 *	the new netdev in the wiphy's network namespace! Returns the struct
3919 *	wireless_dev, or an ERR_PTR. For P2P device wdevs, the driver must
3920 *	also set the address member in the wdev.
3921 *	This additionally holds the RTNL to be able to do netdev changes.
3922 *
3923 * @del_virtual_intf: remove the virtual interface
3924 *	This additionally holds the RTNL to be able to do netdev changes.
3925 *
3926 * @change_virtual_intf: change type/configuration of virtual interface,
3927 *	keep the struct wireless_dev's iftype updated.
3928 *	This additionally holds the RTNL to be able to do netdev changes.
3929 *
3930 * @add_intf_link: Add a new MLO link to the given interface. Note that
3931 *	the wdev->link[] data structure has been updated, so the new link
3932 *	address is available.
3933 * @del_intf_link: Remove an MLO link from the given interface.
3934 *
3935 * @add_key: add a key with the given parameters. @mac_addr will be %NULL
3936 *	when adding a group key. @link_id will be -1 for non-MLO connection.
3937 *	For MLO connection, @link_id will be >= 0 for group key and -1 for
3938 *	pairwise key, @mac_addr will be peer's MLD address for MLO pairwise key.
3939 *
3940 * @get_key: get information about the key with the given parameters.
3941 *	@mac_addr will be %NULL when requesting information for a group
3942 *	key. All pointers given to the @callback function need not be valid
3943 *	after it returns. This function should return an error if it is
3944 *	not possible to retrieve the key, -ENOENT if it doesn't exist.
3945 *	@link_id will be -1 for non-MLO connection. For MLO connection,
3946 *	@link_id will be >= 0 for group key and -1 for pairwise key, @mac_addr
3947 *	will be peer's MLD address for MLO pairwise key.
3948 *
3949 * @del_key: remove a key given the @mac_addr (%NULL for a group key)
3950 *	and @key_index, return -ENOENT if the key doesn't exist. @link_id will
3951 *	be -1 for non-MLO connection. For MLO connection, @link_id will be >= 0
3952 *	for group key and -1 for pairwise key, @mac_addr will be peer's MLD
3953 *	address for MLO pairwise key.
3954 *
3955 * @set_default_key: set the default key on an interface. @link_id will be >= 0
3956 *	for MLO connection and -1 for non-MLO connection.
3957 *
3958 * @set_default_mgmt_key: set the default management frame key on an interface.
3959 *	@link_id will be >= 0 for MLO connection and -1 for non-MLO connection.
3960 *
3961 * @set_default_beacon_key: set the default Beacon frame key on an interface.
3962 *	@link_id will be >= 0 for MLO connection and -1 for non-MLO connection.
3963 *
3964 * @set_rekey_data: give the data necessary for GTK rekeying to the driver
3965 *
3966 * @start_ap: Start acting in AP mode defined by the parameters.
3967 * @change_beacon: Change the beacon parameters for an access point mode
3968 *	interface. This should reject the call when AP mode wasn't started.
3969 * @stop_ap: Stop being an AP, including stopping beaconing.
3970 *
3971 * @add_station: Add a new station.
3972 * @del_station: Remove a station
3973 * @change_station: Modify a given station. Note that flags changes are not much
3974 *	validated in cfg80211, in particular the auth/assoc/authorized flags
3975 *	might come to the driver in invalid combinations -- make sure to check
3976 *	them, also against the existing state! Drivers must call
3977 *	cfg80211_check_station_change() to validate the information.
3978 * @get_station: get station information for the station identified by @mac
3979 * @dump_station: dump station callback -- resume dump at index @idx
3980 *
3981 * @add_mpath: add a fixed mesh path
3982 * @del_mpath: delete a given mesh path
3983 * @change_mpath: change a given mesh path
3984 * @get_mpath: get a mesh path for the given parameters
3985 * @dump_mpath: dump mesh path callback -- resume dump at index @idx
3986 * @get_mpp: get a mesh proxy path for the given parameters
3987 * @dump_mpp: dump mesh proxy path callback -- resume dump at index @idx
3988 * @join_mesh: join the mesh network with the specified parameters
3989 *	(invoked with the wireless_dev mutex held)
3990 * @leave_mesh: leave the current mesh network
3991 *	(invoked with the wireless_dev mutex held)
3992 *
3993 * @get_mesh_config: Get the current mesh configuration
3994 *
3995 * @update_mesh_config: Update mesh parameters on a running mesh.
3996 *	The mask is a bitfield which tells us which parameters to
3997 *	set, and which to leave alone.
3998 *
3999 * @change_bss: Modify parameters for a given BSS.
4000 *
4001 * @set_txq_params: Set TX queue parameters
4002 *
4003 * @libertas_set_mesh_channel: Only for backward compatibility for libertas,
4004 *	as it doesn't implement join_mesh and needs to set the channel to
4005 *	join the mesh instead.
4006 *
4007 * @set_monitor_channel: Set the monitor mode channel for the device. If other
4008 *	interfaces are active this callback should reject the configuration.
4009 *	If no interfaces are active or the device is down, the channel should
4010 *	be stored for when a monitor interface becomes active.
4011 *
4012 * @scan: Request to do a scan. If returning zero, the scan request is given
4013 *	the driver, and will be valid until passed to cfg80211_scan_done().
4014 *	For scan results, call cfg80211_inform_bss(); you can call this outside
4015 *	the scan/scan_done bracket too.
4016 * @abort_scan: Tell the driver to abort an ongoing scan. The driver shall
4017 *	indicate the status of the scan through cfg80211_scan_done().
4018 *
4019 * @auth: Request to authenticate with the specified peer
4020 *	(invoked with the wireless_dev mutex held)
4021 * @assoc: Request to (re)associate with the specified peer
4022 *	(invoked with the wireless_dev mutex held)
4023 * @deauth: Request to deauthenticate from the specified peer
4024 *	(invoked with the wireless_dev mutex held)
4025 * @disassoc: Request to disassociate from the specified peer
4026 *	(invoked with the wireless_dev mutex held)
4027 *
4028 * @connect: Connect to the ESS with the specified parameters. When connected,
4029 *	call cfg80211_connect_result()/cfg80211_connect_bss() with status code
4030 *	%WLAN_STATUS_SUCCESS. If the connection fails for some reason, call
4031 *	cfg80211_connect_result()/cfg80211_connect_bss() with the status code
4032 *	from the AP or cfg80211_connect_timeout() if no frame with status code
4033 *	was received.
4034 *	The driver is allowed to roam to other BSSes within the ESS when the
4035 *	other BSS matches the connect parameters. When such roaming is initiated
4036 *	by the driver, the driver is expected to verify that the target matches
4037 *	the configured security parameters and to use Reassociation Request
4038 *	frame instead of Association Request frame.
4039 *	The connect function can also be used to request the driver to perform a
4040 *	specific roam when connected to an ESS. In that case, the prev_bssid
4041 *	parameter is set to the BSSID of the currently associated BSS as an
4042 *	indication of requesting reassociation.
4043 *	In both the driver-initiated and new connect() call initiated roaming
4044 *	cases, the result of roaming is indicated with a call to
4045 *	cfg80211_roamed(). (invoked with the wireless_dev mutex held)
4046 * @update_connect_params: Update the connect parameters while connected to a
4047 *	BSS. The updated parameters can be used by driver/firmware for
4048 *	subsequent BSS selection (roaming) decisions and to form the
4049 *	Authentication/(Re)Association Request frames. This call does not
4050 *	request an immediate disassociation or reassociation with the current
4051 *	BSS, i.e., this impacts only subsequent (re)associations. The bits in
4052 *	changed are defined in &enum cfg80211_connect_params_changed.
4053 *	(invoked with the wireless_dev mutex held)
4054 * @disconnect: Disconnect from the BSS/ESS or stop connection attempts if
4055 *      connection is in progress. Once done, call cfg80211_disconnected() in
4056 *      case connection was already established (invoked with the
4057 *      wireless_dev mutex held), otherwise call cfg80211_connect_timeout().
4058 *
4059 * @join_ibss: Join the specified IBSS (or create if necessary). Once done, call
4060 *	cfg80211_ibss_joined(), also call that function when changing BSSID due
4061 *	to a merge.
4062 *	(invoked with the wireless_dev mutex held)
4063 * @leave_ibss: Leave the IBSS.
4064 *	(invoked with the wireless_dev mutex held)
4065 *
4066 * @set_mcast_rate: Set the specified multicast rate (only if vif is in ADHOC or
4067 *	MESH mode)
4068 *
4069 * @set_wiphy_params: Notify that wiphy parameters have changed;
4070 *	@changed bitfield (see &enum wiphy_params_flags) describes which values
4071 *	have changed. The actual parameter values are available in
4072 *	struct wiphy. If returning an error, no value should be changed.
4073 *
4074 * @set_tx_power: set the transmit power according to the parameters,
4075 *	the power passed is in mBm, to get dBm use MBM_TO_DBM(). The
4076 *	wdev may be %NULL if power was set for the wiphy, and will
4077 *	always be %NULL unless the driver supports per-vif TX power
4078 *	(as advertised by the nl80211 feature flag.)
4079 * @get_tx_power: store the current TX power into the dbm variable;
4080 *	return 0 if successful
4081 *
4082 * @rfkill_poll: polls the hw rfkill line, use cfg80211 reporting
4083 *	functions to adjust rfkill hw state
4084 *
4085 * @dump_survey: get site survey information.
4086 *
4087 * @remain_on_channel: Request the driver to remain awake on the specified
4088 *	channel for the specified duration to complete an off-channel
4089 *	operation (e.g., public action frame exchange). When the driver is
4090 *	ready on the requested channel, it must indicate this with an event
4091 *	notification by calling cfg80211_ready_on_channel().
4092 * @cancel_remain_on_channel: Cancel an on-going remain-on-channel operation.
4093 *	This allows the operation to be terminated prior to timeout based on
4094 *	the duration value.
4095 * @mgmt_tx: Transmit a management frame.
4096 * @mgmt_tx_cancel_wait: Cancel the wait time from transmitting a management
4097 *	frame on another channel
4098 *
4099 * @testmode_cmd: run a test mode command; @wdev may be %NULL
4100 * @testmode_dump: Implement a test mode dump. The cb->args[2] and up may be
4101 *	used by the function, but 0 and 1 must not be touched. Additionally,
4102 *	return error codes other than -ENOBUFS and -ENOENT will terminate the
4103 *	dump and return to userspace with an error, so be careful. If any data
4104 *	was passed in from userspace then the data/len arguments will be present
4105 *	and point to the data contained in %NL80211_ATTR_TESTDATA.
4106 *
4107 * @set_bitrate_mask: set the bitrate mask configuration
4108 *
4109 * @set_pmksa: Cache a PMKID for a BSSID. This is mostly useful for fullmac
4110 *	devices running firmwares capable of generating the (re) association
4111 *	RSN IE. It allows for faster roaming between WPA2 BSSIDs.
4112 * @del_pmksa: Delete a cached PMKID.
4113 * @flush_pmksa: Flush all cached PMKIDs.
4114 * @set_power_mgmt: Configure WLAN power management. A timeout value of -1
4115 *	allows the driver to adjust the dynamic ps timeout value.
4116 * @set_cqm_rssi_config: Configure connection quality monitor RSSI threshold.
4117 *	After configuration, the driver should (soon) send an event indicating
4118 *	the current level is above/below the configured threshold; this may
4119 *	need some care when the configuration is changed (without first being
4120 *	disabled.)
4121 * @set_cqm_rssi_range_config: Configure two RSSI thresholds in the
4122 *	connection quality monitor.  An event is to be sent only when the
4123 *	signal level is found to be outside the two values.  The driver should
4124 *	set %NL80211_EXT_FEATURE_CQM_RSSI_LIST if this method is implemented.
4125 *	If it is provided then there's no point providing @set_cqm_rssi_config.
4126 * @set_cqm_txe_config: Configure connection quality monitor TX error
4127 *	thresholds.
4128 * @sched_scan_start: Tell the driver to start a scheduled scan.
4129 * @sched_scan_stop: Tell the driver to stop an ongoing scheduled scan with
4130 *	given request id. This call must stop the scheduled scan and be ready
4131 *	for starting a new one before it returns, i.e. @sched_scan_start may be
4132 *	called immediately after that again and should not fail in that case.
4133 *	The driver should not call cfg80211_sched_scan_stopped() for a requested
4134 *	stop (when this method returns 0).
4135 *
4136 * @update_mgmt_frame_registrations: Notify the driver that management frame
4137 *	registrations were updated. The callback is allowed to sleep.
4138 *
4139 * @set_antenna: Set antenna configuration (tx_ant, rx_ant) on the device.
4140 *	Parameters are bitmaps of allowed antennas to use for TX/RX. Drivers may
4141 *	reject TX/RX mask combinations they cannot support by returning -EINVAL
4142 *	(also see nl80211.h @NL80211_ATTR_WIPHY_ANTENNA_TX).
4143 *
4144 * @get_antenna: Get current antenna configuration from device (tx_ant, rx_ant).
4145 *
4146 * @tdls_mgmt: Transmit a TDLS management frame.
4147 * @tdls_oper: Perform a high-level TDLS operation (e.g. TDLS link setup).
4148 *
4149 * @probe_client: probe an associated client, must return a cookie that it
4150 *	later passes to cfg80211_probe_status().
4151 *
4152 * @set_noack_map: Set the NoAck Map for the TIDs.
4153 *
4154 * @get_channel: Get the current operating channel for the virtual interface.
4155 *	For monitor interfaces, it should return %NULL unless there's a single
4156 *	current monitoring channel.
4157 *
4158 * @start_p2p_device: Start the given P2P device.
4159 * @stop_p2p_device: Stop the given P2P device.
4160 *
4161 * @set_mac_acl: Sets MAC address control list in AP and P2P GO mode.
4162 *	Parameters include ACL policy, an array of MAC address of stations
4163 *	and the number of MAC addresses. If there is already a list in driver
4164 *	this new list replaces the existing one. Driver has to clear its ACL
4165 *	when number of MAC addresses entries is passed as 0. Drivers which
4166 *	advertise the support for MAC based ACL have to implement this callback.
4167 *
4168 * @start_radar_detection: Start radar detection in the driver.
4169 *
4170 * @end_cac: End running CAC, probably because a related CAC
4171 *	was finished on another phy.
4172 *
4173 * @update_ft_ies: Provide updated Fast BSS Transition information to the
4174 *	driver. If the SME is in the driver/firmware, this information can be
4175 *	used in building Authentication and Reassociation Request frames.
4176 *
4177 * @crit_proto_start: Indicates a critical protocol needs more link reliability
4178 *	for a given duration (milliseconds). The protocol is provided so the
4179 *	driver can take the most appropriate actions.
4180 * @crit_proto_stop: Indicates critical protocol no longer needs increased link
4181 *	reliability. This operation can not fail.
4182 * @set_coalesce: Set coalesce parameters.
4183 *
4184 * @channel_switch: initiate channel-switch procedure (with CSA). Driver is
4185 *	responsible for veryfing if the switch is possible. Since this is
4186 *	inherently tricky driver may decide to disconnect an interface later
4187 *	with cfg80211_stop_iface(). This doesn't mean driver can accept
4188 *	everything. It should do it's best to verify requests and reject them
4189 *	as soon as possible.
4190 *
4191 * @set_qos_map: Set QoS mapping information to the driver
4192 *
4193 * @set_ap_chanwidth: Set the AP (including P2P GO) mode channel width for the
4194 *	given interface This is used e.g. for dynamic HT 20/40 MHz channel width
4195 *	changes during the lifetime of the BSS.
4196 *
4197 * @add_tx_ts: validate (if admitted_time is 0) or add a TX TS to the device
4198 *	with the given parameters; action frame exchange has been handled by
4199 *	userspace so this just has to modify the TX path to take the TS into
4200 *	account.
4201 *	If the admitted time is 0 just validate the parameters to make sure
4202 *	the session can be created at all; it is valid to just always return
4203 *	success for that but that may result in inefficient behaviour (handshake
4204 *	with the peer followed by immediate teardown when the addition is later
4205 *	rejected)
4206 * @del_tx_ts: remove an existing TX TS
4207 *
4208 * @join_ocb: join the OCB network with the specified parameters
4209 *	(invoked with the wireless_dev mutex held)
4210 * @leave_ocb: leave the current OCB network
4211 *	(invoked with the wireless_dev mutex held)
4212 *
4213 * @tdls_channel_switch: Start channel-switching with a TDLS peer. The driver
4214 *	is responsible for continually initiating channel-switching operations
4215 *	and returning to the base channel for communication with the AP.
4216 * @tdls_cancel_channel_switch: Stop channel-switching with a TDLS peer. Both
4217 *	peers must be on the base channel when the call completes.
4218 * @start_nan: Start the NAN interface.
4219 * @stop_nan: Stop the NAN interface.
4220 * @add_nan_func: Add a NAN function. Returns negative value on failure.
4221 *	On success @nan_func ownership is transferred to the driver and
4222 *	it may access it outside of the scope of this function. The driver
4223 *	should free the @nan_func when no longer needed by calling
4224 *	cfg80211_free_nan_func().
4225 *	On success the driver should assign an instance_id in the
4226 *	provided @nan_func.
4227 * @del_nan_func: Delete a NAN function.
4228 * @nan_change_conf: changes NAN configuration. The changed parameters must
4229 *	be specified in @changes (using &enum cfg80211_nan_conf_changes);
4230 *	All other parameters must be ignored.
4231 *
4232 * @set_multicast_to_unicast: configure multicast to unicast conversion for BSS
4233 *
4234 * @get_txq_stats: Get TXQ stats for interface or phy. If wdev is %NULL, this
4235 *      function should return phy stats, and interface stats otherwise.
4236 *
4237 * @set_pmk: configure the PMK to be used for offloaded 802.1X 4-Way handshake.
4238 *	If not deleted through @del_pmk the PMK remains valid until disconnect
4239 *	upon which the driver should clear it.
4240 *	(invoked with the wireless_dev mutex held)
4241 * @del_pmk: delete the previously configured PMK for the given authenticator.
4242 *	(invoked with the wireless_dev mutex held)
4243 *
4244 * @external_auth: indicates result of offloaded authentication processing from
4245 *     user space
4246 *
4247 * @tx_control_port: TX a control port frame (EAPoL).  The noencrypt parameter
4248 *	tells the driver that the frame should not be encrypted.
4249 *
4250 * @get_ftm_responder_stats: Retrieve FTM responder statistics, if available.
4251 *	Statistics should be cumulative, currently no way to reset is provided.
4252 * @start_pmsr: start peer measurement (e.g. FTM)
4253 * @abort_pmsr: abort peer measurement
4254 *
4255 * @update_owe_info: Provide updated OWE info to driver. Driver implementing SME
4256 *	but offloading OWE processing to the user space will get the updated
4257 *	DH IE through this interface.
4258 *
4259 * @probe_mesh_link: Probe direct Mesh peer's link quality by sending data frame
4260 *	and overrule HWMP path selection algorithm.
4261 * @set_tid_config: TID specific configuration, this can be peer or BSS specific
4262 *	This callback may sleep.
4263 * @reset_tid_config: Reset TID specific configuration for the peer, for the
4264 *	given TIDs. This callback may sleep.
4265 *
4266 * @set_sar_specs: Update the SAR (TX power) settings.
4267 *
4268 * @color_change: Initiate a color change.
4269 *
4270 * @set_fils_aad: Set FILS AAD data to the AP driver so that the driver can use
4271 *	those to decrypt (Re)Association Request and encrypt (Re)Association
4272 *	Response frame.
4273 *
4274 * @set_radar_background: Configure dedicated offchannel chain available for
4275 *	radar/CAC detection on some hw. This chain can't be used to transmit
4276 *	or receive frames and it is bounded to a running wdev.
4277 *	Background radar/CAC detection allows to avoid the CAC downtime
4278 *	switching to a different channel during CAC detection on the selected
4279 *	radar channel.
4280 *	The caller is expected to set chandef pointer to NULL in order to
4281 *	disable background CAC/radar detection.
4282 * @add_link_station: Add a link to a station.
4283 * @mod_link_station: Modify a link of a station.
4284 * @del_link_station: Remove a link of a station.
4285 */
4286struct cfg80211_ops {
4287	int	(*suspend)(struct wiphy *wiphy, struct cfg80211_wowlan *wow);
4288	int	(*resume)(struct wiphy *wiphy);
4289	void	(*set_wakeup)(struct wiphy *wiphy, bool enabled);
4290
4291	struct wireless_dev * (*add_virtual_intf)(struct wiphy *wiphy,
4292						  const char *name,
4293						  unsigned char name_assign_type,
4294						  enum nl80211_iftype type,
4295						  struct vif_params *params);
4296	int	(*del_virtual_intf)(struct wiphy *wiphy,
4297				    struct wireless_dev *wdev);
4298	int	(*change_virtual_intf)(struct wiphy *wiphy,
4299				       struct net_device *dev,
4300				       enum nl80211_iftype type,
4301				       struct vif_params *params);
4302
4303	int	(*add_intf_link)(struct wiphy *wiphy,
4304				 struct wireless_dev *wdev,
4305				 unsigned int link_id);
4306	void	(*del_intf_link)(struct wiphy *wiphy,
4307				 struct wireless_dev *wdev,
4308				 unsigned int link_id);
4309
4310	int	(*add_key)(struct wiphy *wiphy, struct net_device *netdev,
4311			   int link_id, u8 key_index, bool pairwise,
4312			   const u8 *mac_addr, struct key_params *params);
4313	int	(*get_key)(struct wiphy *wiphy, struct net_device *netdev,
4314			   int link_id, u8 key_index, bool pairwise,
4315			   const u8 *mac_addr, void *cookie,
4316			   void (*callback)(void *cookie, struct key_params*));
4317	int	(*del_key)(struct wiphy *wiphy, struct net_device *netdev,
4318			   int link_id, u8 key_index, bool pairwise,
4319			   const u8 *mac_addr);
4320	int	(*set_default_key)(struct wiphy *wiphy,
4321				   struct net_device *netdev, int link_id,
4322				   u8 key_index, bool unicast, bool multicast);
4323	int	(*set_default_mgmt_key)(struct wiphy *wiphy,
4324					struct net_device *netdev, int link_id,
4325					u8 key_index);
4326	int	(*set_default_beacon_key)(struct wiphy *wiphy,
4327					  struct net_device *netdev,
4328					  int link_id,
4329					  u8 key_index);
4330
4331	int	(*start_ap)(struct wiphy *wiphy, struct net_device *dev,
4332			    struct cfg80211_ap_settings *settings);
4333	int	(*change_beacon)(struct wiphy *wiphy, struct net_device *dev,
4334				 struct cfg80211_beacon_data *info);
4335	int	(*stop_ap)(struct wiphy *wiphy, struct net_device *dev,
4336			   unsigned int link_id);
4337
4338
4339	int	(*add_station)(struct wiphy *wiphy, struct net_device *dev,
4340			       const u8 *mac,
4341			       struct station_parameters *params);
4342	int	(*del_station)(struct wiphy *wiphy, struct net_device *dev,
4343			       struct station_del_parameters *params);
4344	int	(*change_station)(struct wiphy *wiphy, struct net_device *dev,
4345				  const u8 *mac,
4346				  struct station_parameters *params);
4347	int	(*get_station)(struct wiphy *wiphy, struct net_device *dev,
4348			       const u8 *mac, struct station_info *sinfo);
4349	int	(*dump_station)(struct wiphy *wiphy, struct net_device *dev,
4350				int idx, u8 *mac, struct station_info *sinfo);
4351
4352	int	(*add_mpath)(struct wiphy *wiphy, struct net_device *dev,
4353			       const u8 *dst, const u8 *next_hop);
4354	int	(*del_mpath)(struct wiphy *wiphy, struct net_device *dev,
4355			       const u8 *dst);
4356	int	(*change_mpath)(struct wiphy *wiphy, struct net_device *dev,
4357				  const u8 *dst, const u8 *next_hop);
4358	int	(*get_mpath)(struct wiphy *wiphy, struct net_device *dev,
4359			     u8 *dst, u8 *next_hop, struct mpath_info *pinfo);
4360	int	(*dump_mpath)(struct wiphy *wiphy, struct net_device *dev,
4361			      int idx, u8 *dst, u8 *next_hop,
4362			      struct mpath_info *pinfo);
4363	int	(*get_mpp)(struct wiphy *wiphy, struct net_device *dev,
4364			   u8 *dst, u8 *mpp, struct mpath_info *pinfo);
4365	int	(*dump_mpp)(struct wiphy *wiphy, struct net_device *dev,
4366			    int idx, u8 *dst, u8 *mpp,
4367			    struct mpath_info *pinfo);
4368	int	(*get_mesh_config)(struct wiphy *wiphy,
4369				struct net_device *dev,
4370				struct mesh_config *conf);
4371	int	(*update_mesh_config)(struct wiphy *wiphy,
4372				      struct net_device *dev, u32 mask,
4373				      const struct mesh_config *nconf);
4374	int	(*join_mesh)(struct wiphy *wiphy, struct net_device *dev,
4375			     const struct mesh_config *conf,
4376			     const struct mesh_setup *setup);
4377	int	(*leave_mesh)(struct wiphy *wiphy, struct net_device *dev);
4378
4379	int	(*join_ocb)(struct wiphy *wiphy, struct net_device *dev,
4380			    struct ocb_setup *setup);
4381	int	(*leave_ocb)(struct wiphy *wiphy, struct net_device *dev);
4382
4383	int	(*change_bss)(struct wiphy *wiphy, struct net_device *dev,
4384			      struct bss_parameters *params);
4385
4386	int	(*set_txq_params)(struct wiphy *wiphy, struct net_device *dev,
4387				  struct ieee80211_txq_params *params);
4388
4389	int	(*libertas_set_mesh_channel)(struct wiphy *wiphy,
4390					     struct net_device *dev,
4391					     struct ieee80211_channel *chan);
4392
4393	int	(*set_monitor_channel)(struct wiphy *wiphy,
4394				       struct cfg80211_chan_def *chandef);
4395
4396	int	(*scan)(struct wiphy *wiphy,
4397			struct cfg80211_scan_request *request);
4398	void	(*abort_scan)(struct wiphy *wiphy, struct wireless_dev *wdev);
4399
4400	int	(*auth)(struct wiphy *wiphy, struct net_device *dev,
4401			struct cfg80211_auth_request *req);
4402	int	(*assoc)(struct wiphy *wiphy, struct net_device *dev,
4403			 struct cfg80211_assoc_request *req);
4404	int	(*deauth)(struct wiphy *wiphy, struct net_device *dev,
4405			  struct cfg80211_deauth_request *req);
4406	int	(*disassoc)(struct wiphy *wiphy, struct net_device *dev,
4407			    struct cfg80211_disassoc_request *req);
4408
4409	int	(*connect)(struct wiphy *wiphy, struct net_device *dev,
4410			   struct cfg80211_connect_params *sme);
4411	int	(*update_connect_params)(struct wiphy *wiphy,
4412					 struct net_device *dev,
4413					 struct cfg80211_connect_params *sme,
4414					 u32 changed);
4415	int	(*disconnect)(struct wiphy *wiphy, struct net_device *dev,
4416			      u16 reason_code);
4417
4418	int	(*join_ibss)(struct wiphy *wiphy, struct net_device *dev,
4419			     struct cfg80211_ibss_params *params);
4420	int	(*leave_ibss)(struct wiphy *wiphy, struct net_device *dev);
4421
4422	int	(*set_mcast_rate)(struct wiphy *wiphy, struct net_device *dev,
4423				  int rate[NUM_NL80211_BANDS]);
4424
4425	int	(*set_wiphy_params)(struct wiphy *wiphy, u32 changed);
4426
4427	int	(*set_tx_power)(struct wiphy *wiphy, struct wireless_dev *wdev,
4428				enum nl80211_tx_power_setting type, int mbm);
4429	int	(*get_tx_power)(struct wiphy *wiphy, struct wireless_dev *wdev,
4430				int *dbm);
4431
4432	void	(*rfkill_poll)(struct wiphy *wiphy);
4433
4434#ifdef CONFIG_NL80211_TESTMODE
4435	int	(*testmode_cmd)(struct wiphy *wiphy, struct wireless_dev *wdev,
4436				void *data, int len);
4437	int	(*testmode_dump)(struct wiphy *wiphy, struct sk_buff *skb,
4438				 struct netlink_callback *cb,
4439				 void *data, int len);
4440#endif
4441
4442	int	(*set_bitrate_mask)(struct wiphy *wiphy,
4443				    struct net_device *dev,
4444				    unsigned int link_id,
4445				    const u8 *peer,
4446				    const struct cfg80211_bitrate_mask *mask);
4447
4448	int	(*dump_survey)(struct wiphy *wiphy, struct net_device *netdev,
4449			int idx, struct survey_info *info);
4450
4451	int	(*set_pmksa)(struct wiphy *wiphy, struct net_device *netdev,
4452			     struct cfg80211_pmksa *pmksa);
4453	int	(*del_pmksa)(struct wiphy *wiphy, struct net_device *netdev,
4454			     struct cfg80211_pmksa *pmksa);
4455	int	(*flush_pmksa)(struct wiphy *wiphy, struct net_device *netdev);
4456
4457	int	(*remain_on_channel)(struct wiphy *wiphy,
4458				     struct wireless_dev *wdev,
4459				     struct ieee80211_channel *chan,
4460				     unsigned int duration,
4461				     u64 *cookie);
4462	int	(*cancel_remain_on_channel)(struct wiphy *wiphy,
4463					    struct wireless_dev *wdev,
4464					    u64 cookie);
4465
4466	int	(*mgmt_tx)(struct wiphy *wiphy, struct wireless_dev *wdev,
4467			   struct cfg80211_mgmt_tx_params *params,
4468			   u64 *cookie);
4469	int	(*mgmt_tx_cancel_wait)(struct wiphy *wiphy,
4470				       struct wireless_dev *wdev,
4471				       u64 cookie);
4472
4473	int	(*set_power_mgmt)(struct wiphy *wiphy, struct net_device *dev,
4474				  bool enabled, int timeout);
4475
4476	int	(*set_cqm_rssi_config)(struct wiphy *wiphy,
4477				       struct net_device *dev,
4478				       s32 rssi_thold, u32 rssi_hyst);
4479
4480	int	(*set_cqm_rssi_range_config)(struct wiphy *wiphy,
4481					     struct net_device *dev,
4482					     s32 rssi_low, s32 rssi_high);
4483
4484	int	(*set_cqm_txe_config)(struct wiphy *wiphy,
4485				      struct net_device *dev,
4486				      u32 rate, u32 pkts, u32 intvl);
4487
4488	void	(*update_mgmt_frame_registrations)(struct wiphy *wiphy,
4489						   struct wireless_dev *wdev,
4490						   struct mgmt_frame_regs *upd);
4491
4492	int	(*set_antenna)(struct wiphy *wiphy, u32 tx_ant, u32 rx_ant);
4493	int	(*get_antenna)(struct wiphy *wiphy, u32 *tx_ant, u32 *rx_ant);
4494
4495	int	(*sched_scan_start)(struct wiphy *wiphy,
4496				struct net_device *dev,
4497				struct cfg80211_sched_scan_request *request);
4498	int	(*sched_scan_stop)(struct wiphy *wiphy, struct net_device *dev,
4499				   u64 reqid);
4500
4501	int	(*set_rekey_data)(struct wiphy *wiphy, struct net_device *dev,
4502				  struct cfg80211_gtk_rekey_data *data);
4503
4504	int	(*tdls_mgmt)(struct wiphy *wiphy, struct net_device *dev,
4505			     const u8 *peer, u8 action_code,  u8 dialog_token,
4506			     u16 status_code, u32 peer_capability,
4507			     bool initiator, const u8 *buf, size_t len);
4508	int	(*tdls_oper)(struct wiphy *wiphy, struct net_device *dev,
4509			     const u8 *peer, enum nl80211_tdls_operation oper);
4510
4511	int	(*probe_client)(struct wiphy *wiphy, struct net_device *dev,
4512				const u8 *peer, u64 *cookie);
4513
4514	int	(*set_noack_map)(struct wiphy *wiphy,
4515				  struct net_device *dev,
4516				  u16 noack_map);
4517
4518	int	(*get_channel)(struct wiphy *wiphy,
4519			       struct wireless_dev *wdev,
4520			       unsigned int link_id,
4521			       struct cfg80211_chan_def *chandef);
4522
4523	int	(*start_p2p_device)(struct wiphy *wiphy,
4524				    struct wireless_dev *wdev);
4525	void	(*stop_p2p_device)(struct wiphy *wiphy,
4526				   struct wireless_dev *wdev);
4527
4528	int	(*set_mac_acl)(struct wiphy *wiphy, struct net_device *dev,
4529			       const struct cfg80211_acl_data *params);
4530
4531	int	(*start_radar_detection)(struct wiphy *wiphy,
4532					 struct net_device *dev,
4533					 struct cfg80211_chan_def *chandef,
4534					 u32 cac_time_ms);
4535	void	(*end_cac)(struct wiphy *wiphy,
4536				struct net_device *dev);
4537	int	(*update_ft_ies)(struct wiphy *wiphy, struct net_device *dev,
4538				 struct cfg80211_update_ft_ies_params *ftie);
4539	int	(*crit_proto_start)(struct wiphy *wiphy,
4540				    struct wireless_dev *wdev,
4541				    enum nl80211_crit_proto_id protocol,
4542				    u16 duration);
4543	void	(*crit_proto_stop)(struct wiphy *wiphy,
4544				   struct wireless_dev *wdev);
4545	int	(*set_coalesce)(struct wiphy *wiphy,
4546				struct cfg80211_coalesce *coalesce);
4547
4548	int	(*channel_switch)(struct wiphy *wiphy,
4549				  struct net_device *dev,
4550				  struct cfg80211_csa_settings *params);
4551
4552	int     (*set_qos_map)(struct wiphy *wiphy,
4553			       struct net_device *dev,
4554			       struct cfg80211_qos_map *qos_map);
4555
4556	int	(*set_ap_chanwidth)(struct wiphy *wiphy, struct net_device *dev,
4557				    unsigned int link_id,
4558				    struct cfg80211_chan_def *chandef);
4559
4560	int	(*add_tx_ts)(struct wiphy *wiphy, struct net_device *dev,
4561			     u8 tsid, const u8 *peer, u8 user_prio,
4562			     u16 admitted_time);
4563	int	(*del_tx_ts)(struct wiphy *wiphy, struct net_device *dev,
4564			     u8 tsid, const u8 *peer);
4565
4566	int	(*tdls_channel_switch)(struct wiphy *wiphy,
4567				       struct net_device *dev,
4568				       const u8 *addr, u8 oper_class,
4569				       struct cfg80211_chan_def *chandef);
4570	void	(*tdls_cancel_channel_switch)(struct wiphy *wiphy,
4571					      struct net_device *dev,
4572					      const u8 *addr);
4573	int	(*start_nan)(struct wiphy *wiphy, struct wireless_dev *wdev,
4574			     struct cfg80211_nan_conf *conf);
4575	void	(*stop_nan)(struct wiphy *wiphy, struct wireless_dev *wdev);
4576	int	(*add_nan_func)(struct wiphy *wiphy, struct wireless_dev *wdev,
4577				struct cfg80211_nan_func *nan_func);
4578	void	(*del_nan_func)(struct wiphy *wiphy, struct wireless_dev *wdev,
4579			       u64 cookie);
4580	int	(*nan_change_conf)(struct wiphy *wiphy,
4581				   struct wireless_dev *wdev,
4582				   struct cfg80211_nan_conf *conf,
4583				   u32 changes);
4584
4585	int	(*set_multicast_to_unicast)(struct wiphy *wiphy,
4586					    struct net_device *dev,
4587					    const bool enabled);
4588
4589	int	(*get_txq_stats)(struct wiphy *wiphy,
4590				 struct wireless_dev *wdev,
4591				 struct cfg80211_txq_stats *txqstats);
4592
4593	int	(*set_pmk)(struct wiphy *wiphy, struct net_device *dev,
4594			   const struct cfg80211_pmk_conf *conf);
4595	int	(*del_pmk)(struct wiphy *wiphy, struct net_device *dev,
4596			   const u8 *aa);
4597	int     (*external_auth)(struct wiphy *wiphy, struct net_device *dev,
4598				 struct cfg80211_external_auth_params *params);
4599
4600	int	(*tx_control_port)(struct wiphy *wiphy,
4601				   struct net_device *dev,
4602				   const u8 *buf, size_t len,
4603				   const u8 *dest, const __be16 proto,
4604				   const bool noencrypt, int link_id,
4605				   u64 *cookie);
4606
4607	int	(*get_ftm_responder_stats)(struct wiphy *wiphy,
4608				struct net_device *dev,
4609				struct cfg80211_ftm_responder_stats *ftm_stats);
4610
4611	int	(*start_pmsr)(struct wiphy *wiphy, struct wireless_dev *wdev,
4612			      struct cfg80211_pmsr_request *request);
4613	void	(*abort_pmsr)(struct wiphy *wiphy, struct wireless_dev *wdev,
4614			      struct cfg80211_pmsr_request *request);
4615	int	(*update_owe_info)(struct wiphy *wiphy, struct net_device *dev,
4616				   struct cfg80211_update_owe_info *owe_info);
4617	int	(*probe_mesh_link)(struct wiphy *wiphy, struct net_device *dev,
4618				   const u8 *buf, size_t len);
4619	int     (*set_tid_config)(struct wiphy *wiphy, struct net_device *dev,
4620				  struct cfg80211_tid_config *tid_conf);
4621	int	(*reset_tid_config)(struct wiphy *wiphy, struct net_device *dev,
4622				    const u8 *peer, u8 tids);
4623	int	(*set_sar_specs)(struct wiphy *wiphy,
4624				 struct cfg80211_sar_specs *sar);
4625	int	(*color_change)(struct wiphy *wiphy,
4626				struct net_device *dev,
4627				struct cfg80211_color_change_settings *params);
4628	int     (*set_fils_aad)(struct wiphy *wiphy, struct net_device *dev,
4629				struct cfg80211_fils_aad *fils_aad);
4630	int	(*set_radar_background)(struct wiphy *wiphy,
4631					struct cfg80211_chan_def *chandef);
4632	int	(*add_link_station)(struct wiphy *wiphy, struct net_device *dev,
4633				    struct link_station_parameters *params);
4634	int	(*mod_link_station)(struct wiphy *wiphy, struct net_device *dev,
4635				    struct link_station_parameters *params);
4636	int	(*del_link_station)(struct wiphy *wiphy, struct net_device *dev,
4637				    struct link_station_del_parameters *params);
4638};
4639
4640/*
4641 * wireless hardware and networking interfaces structures
4642 * and registration/helper functions
4643 */
4644
4645/**
4646 * enum wiphy_flags - wiphy capability flags
4647 *
4648 * @WIPHY_FLAG_SPLIT_SCAN_6GHZ: if set to true, the scan request will be split
4649 *	 into two, first for legacy bands and second for UHB.
4650 * @WIPHY_FLAG_NETNS_OK: if not set, do not allow changing the netns of this
4651 *	wiphy at all
4652 * @WIPHY_FLAG_PS_ON_BY_DEFAULT: if set to true, powersave will be enabled
4653 *	by default -- this flag will be set depending on the kernel's default
4654 *	on wiphy_new(), but can be changed by the driver if it has a good
4655 *	reason to override the default
4656 * @WIPHY_FLAG_4ADDR_AP: supports 4addr mode even on AP (with a single station
4657 *	on a VLAN interface). This flag also serves an extra purpose of
4658 *	supporting 4ADDR AP mode on devices which do not support AP/VLAN iftype.
4659 * @WIPHY_FLAG_4ADDR_STATION: supports 4addr mode even as a station
4660 * @WIPHY_FLAG_CONTROL_PORT_PROTOCOL: This device supports setting the
4661 *	control port protocol ethertype. The device also honours the
4662 *	control_port_no_encrypt flag.
4663 * @WIPHY_FLAG_IBSS_RSN: The device supports IBSS RSN.
4664 * @WIPHY_FLAG_MESH_AUTH: The device supports mesh authentication by routing
4665 *	auth frames to userspace. See @NL80211_MESH_SETUP_USERSPACE_AUTH.
4666 * @WIPHY_FLAG_SUPPORTS_FW_ROAM: The device supports roaming feature in the
4667 *	firmware.
4668 * @WIPHY_FLAG_AP_UAPSD: The device supports uapsd on AP.
4669 * @WIPHY_FLAG_SUPPORTS_TDLS: The device supports TDLS (802.11z) operation.
4670 * @WIPHY_FLAG_TDLS_EXTERNAL_SETUP: The device does not handle TDLS (802.11z)
4671 *	link setup/discovery operations internally. Setup, discovery and
4672 *	teardown packets should be sent through the @NL80211_CMD_TDLS_MGMT
4673 *	command. When this flag is not set, @NL80211_CMD_TDLS_OPER should be
4674 *	used for asking the driver/firmware to perform a TDLS operation.
4675 * @WIPHY_FLAG_HAVE_AP_SME: device integrates AP SME
4676 * @WIPHY_FLAG_REPORTS_OBSS: the device will report beacons from other BSSes
4677 *	when there are virtual interfaces in AP mode by calling
4678 *	cfg80211_report_obss_beacon().
4679 * @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD: When operating as an AP, the device
4680 *	responds to probe-requests in hardware.
4681 * @WIPHY_FLAG_OFFCHAN_TX: Device supports direct off-channel TX.
4682 * @WIPHY_FLAG_HAS_REMAIN_ON_CHANNEL: Device supports remain-on-channel call.
4683 * @WIPHY_FLAG_SUPPORTS_5_10_MHZ: Device supports 5 MHz and 10 MHz channels.
4684 * @WIPHY_FLAG_HAS_CHANNEL_SWITCH: Device supports channel switch in
4685 *	beaconing mode (AP, IBSS, Mesh, ...).
4686 * @WIPHY_FLAG_HAS_STATIC_WEP: The device supports static WEP key installation
4687 *	before connection.
4688 * @WIPHY_FLAG_SUPPORTS_EXT_KEK_KCK: The device supports bigger kek and kck keys
4689 * @WIPHY_FLAG_SUPPORTS_MLO: This is a temporary flag gating the MLO APIs,
4690 *	in order to not have them reachable in normal drivers, until we have
4691 *	complete feature/interface combinations/etc. advertisement. No driver
4692 *	should set this flag for now.
4693 */
4694enum wiphy_flags {
4695	WIPHY_FLAG_SUPPORTS_EXT_KEK_KCK		= BIT(0),
4696	WIPHY_FLAG_SUPPORTS_MLO			= BIT(1),
4697	WIPHY_FLAG_SPLIT_SCAN_6GHZ		= BIT(2),
4698	WIPHY_FLAG_NETNS_OK			= BIT(3),
4699	WIPHY_FLAG_PS_ON_BY_DEFAULT		= BIT(4),
4700	WIPHY_FLAG_4ADDR_AP			= BIT(5),
4701	WIPHY_FLAG_4ADDR_STATION		= BIT(6),
4702	WIPHY_FLAG_CONTROL_PORT_PROTOCOL	= BIT(7),
4703	WIPHY_FLAG_IBSS_RSN			= BIT(8),
4704	WIPHY_FLAG_MESH_AUTH			= BIT(10),
4705	/* use hole at 11 */
4706	/* use hole at 12 */
4707	WIPHY_FLAG_SUPPORTS_FW_ROAM		= BIT(13),
4708	WIPHY_FLAG_AP_UAPSD			= BIT(14),
4709	WIPHY_FLAG_SUPPORTS_TDLS		= BIT(15),
4710	WIPHY_FLAG_TDLS_EXTERNAL_SETUP		= BIT(16),
4711	WIPHY_FLAG_HAVE_AP_SME			= BIT(17),
4712	WIPHY_FLAG_REPORTS_OBSS			= BIT(18),
4713	WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD	= BIT(19),
4714	WIPHY_FLAG_OFFCHAN_TX			= BIT(20),
4715	WIPHY_FLAG_HAS_REMAIN_ON_CHANNEL	= BIT(21),
4716	WIPHY_FLAG_SUPPORTS_5_10_MHZ		= BIT(22),
4717	WIPHY_FLAG_HAS_CHANNEL_SWITCH		= BIT(23),
4718	WIPHY_FLAG_HAS_STATIC_WEP		= BIT(24),
4719};
4720
4721/**
4722 * struct ieee80211_iface_limit - limit on certain interface types
4723 * @max: maximum number of interfaces of these types
4724 * @types: interface types (bits)
4725 */
4726struct ieee80211_iface_limit {
4727	u16 max;
4728	u16 types;
4729};
4730
4731/**
4732 * struct ieee80211_iface_combination - possible interface combination
4733 *
4734 * With this structure the driver can describe which interface
4735 * combinations it supports concurrently.
4736 *
4737 * Examples:
4738 *
4739 * 1. Allow #STA <= 1, #AP <= 1, matching BI, channels = 1, 2 total:
4740 *
4741 *    .. code-block:: c
4742 *
4743 *	struct ieee80211_iface_limit limits1[] = {
4744 *		{ .max = 1, .types = BIT(NL80211_IFTYPE_STATION), },
4745 *		{ .max = 1, .types = BIT(NL80211_IFTYPE_AP), },
4746 *	};
4747 *	struct ieee80211_iface_combination combination1 = {
4748 *		.limits = limits1,
4749 *		.n_limits = ARRAY_SIZE(limits1),
4750 *		.max_interfaces = 2,
4751 *		.beacon_int_infra_match = true,
4752 *	};
4753 *
4754 *
4755 * 2. Allow #{AP, P2P-GO} <= 8, channels = 1, 8 total:
4756 *
4757 *    .. code-block:: c
4758 *
4759 *	struct ieee80211_iface_limit limits2[] = {
4760 *		{ .max = 8, .types = BIT(NL80211_IFTYPE_AP) |
4761 *				     BIT(NL80211_IFTYPE_P2P_GO), },
4762 *	};
4763 *	struct ieee80211_iface_combination combination2 = {
4764 *		.limits = limits2,
4765 *		.n_limits = ARRAY_SIZE(limits2),
4766 *		.max_interfaces = 8,
4767 *		.num_different_channels = 1,
4768 *	};
4769 *
4770 *
4771 * 3. Allow #STA <= 1, #{P2P-client,P2P-GO} <= 3 on two channels, 4 total.
4772 *
4773 *    This allows for an infrastructure connection and three P2P connections.
4774 *
4775 *    .. code-block:: c
4776 *
4777 *	struct ieee80211_iface_limit limits3[] = {
4778 *		{ .max = 1, .types = BIT(NL80211_IFTYPE_STATION), },
4779 *		{ .max = 3, .types = BIT(NL80211_IFTYPE_P2P_GO) |
4780 *				     BIT(NL80211_IFTYPE_P2P_CLIENT), },
4781 *	};
4782 *	struct ieee80211_iface_combination combination3 = {
4783 *		.limits = limits3,
4784 *		.n_limits = ARRAY_SIZE(limits3),
4785 *		.max_interfaces = 4,
4786 *		.num_different_channels = 2,
4787 *	};
4788 *
4789 */
4790struct ieee80211_iface_combination {
4791	/**
4792	 * @limits:
4793	 * limits for the given interface types
4794	 */
4795	const struct ieee80211_iface_limit *limits;
4796
4797	/**
4798	 * @num_different_channels:
4799	 * can use up to this many different channels
4800	 */
4801	u32 num_different_channels;
4802
4803	/**
4804	 * @max_interfaces:
4805	 * maximum number of interfaces in total allowed in this group
4806	 */
4807	u16 max_interfaces;
4808
4809	/**
4810	 * @n_limits:
4811	 * number of limitations
4812	 */
4813	u8 n_limits;
4814
4815	/**
4816	 * @beacon_int_infra_match:
4817	 * In this combination, the beacon intervals between infrastructure
4818	 * and AP types must match. This is required only in special cases.
4819	 */
4820	bool beacon_int_infra_match;
4821
4822	/**
4823	 * @radar_detect_widths:
4824	 * bitmap of channel widths supported for radar detection
4825	 */
4826	u8 radar_detect_widths;
4827
4828	/**
4829	 * @radar_detect_regions:
4830	 * bitmap of regions supported for radar detection
4831	 */
4832	u8 radar_detect_regions;
4833
4834	/**
4835	 * @beacon_int_min_gcd:
4836	 * This interface combination supports different beacon intervals.
4837	 *
4838	 * = 0
4839	 *   all beacon intervals for different interface must be same.
4840	 * > 0
4841	 *   any beacon interval for the interface part of this combination AND
4842	 *   GCD of all beacon intervals from beaconing interfaces of this
4843	 *   combination must be greater or equal to this value.
4844	 */
4845	u32 beacon_int_min_gcd;
4846};
4847
4848struct ieee80211_txrx_stypes {
4849	u16 tx, rx;
4850};
4851
4852/**
4853 * enum wiphy_wowlan_support_flags - WoWLAN support flags
4854 * @WIPHY_WOWLAN_ANY: supports wakeup for the special "any"
4855 *	trigger that keeps the device operating as-is and
4856 *	wakes up the host on any activity, for example a
4857 *	received packet that passed filtering; note that the
4858 *	packet should be preserved in that case
4859 * @WIPHY_WOWLAN_MAGIC_PKT: supports wakeup on magic packet
4860 *	(see nl80211.h)
4861 * @WIPHY_WOWLAN_DISCONNECT: supports wakeup on disconnect
4862 * @WIPHY_WOWLAN_SUPPORTS_GTK_REKEY: supports GTK rekeying while asleep
4863 * @WIPHY_WOWLAN_GTK_REKEY_FAILURE: supports wakeup on GTK rekey failure
4864 * @WIPHY_WOWLAN_EAP_IDENTITY_REQ: supports wakeup on EAP identity request
4865 * @WIPHY_WOWLAN_4WAY_HANDSHAKE: supports wakeup on 4-way handshake failure
4866 * @WIPHY_WOWLAN_RFKILL_RELEASE: supports wakeup on RF-kill release
4867 * @WIPHY_WOWLAN_NET_DETECT: supports wakeup on network detection
4868 */
4869enum wiphy_wowlan_support_flags {
4870	WIPHY_WOWLAN_ANY		= BIT(0),
4871	WIPHY_WOWLAN_MAGIC_PKT		= BIT(1),
4872	WIPHY_WOWLAN_DISCONNECT		= BIT(2),
4873	WIPHY_WOWLAN_SUPPORTS_GTK_REKEY	= BIT(3),
4874	WIPHY_WOWLAN_GTK_REKEY_FAILURE	= BIT(4),
4875	WIPHY_WOWLAN_EAP_IDENTITY_REQ	= BIT(5),
4876	WIPHY_WOWLAN_4WAY_HANDSHAKE	= BIT(6),
4877	WIPHY_WOWLAN_RFKILL_RELEASE	= BIT(7),
4878	WIPHY_WOWLAN_NET_DETECT		= BIT(8),
4879};
4880
4881struct wiphy_wowlan_tcp_support {
4882	const struct nl80211_wowlan_tcp_data_token_feature *tok;
4883	u32 data_payload_max;
4884	u32 data_interval_max;
4885	u32 wake_payload_max;
4886	bool seq;
4887};
4888
4889/**
4890 * struct wiphy_wowlan_support - WoWLAN support data
4891 * @flags: see &enum wiphy_wowlan_support_flags
4892 * @n_patterns: number of supported wakeup patterns
4893 *	(see nl80211.h for the pattern definition)
4894 * @pattern_max_len: maximum length of each pattern
4895 * @pattern_min_len: minimum length of each pattern
4896 * @max_pkt_offset: maximum Rx packet offset
4897 * @max_nd_match_sets: maximum number of matchsets for net-detect,
4898 *	similar, but not necessarily identical, to max_match_sets for
4899 *	scheduled scans.
4900 *	See &struct cfg80211_sched_scan_request.@match_sets for more
4901 *	details.
4902 * @tcp: TCP wakeup support information
4903 */
4904struct wiphy_wowlan_support {
4905	u32 flags;
4906	int n_patterns;
4907	int pattern_max_len;
4908	int pattern_min_len;
4909	int max_pkt_offset;
4910	int max_nd_match_sets;
4911	const struct wiphy_wowlan_tcp_support *tcp;
4912};
4913
4914/**
4915 * struct wiphy_coalesce_support - coalesce support data
4916 * @n_rules: maximum number of coalesce rules
4917 * @max_delay: maximum supported coalescing delay in msecs
4918 * @n_patterns: number of supported patterns in a rule
4919 *	(see nl80211.h for the pattern definition)
4920 * @pattern_max_len: maximum length of each pattern
4921 * @pattern_min_len: minimum length of each pattern
4922 * @max_pkt_offset: maximum Rx packet offset
4923 */
4924struct wiphy_coalesce_support {
4925	int n_rules;
4926	int max_delay;
4927	int n_patterns;
4928	int pattern_max_len;
4929	int pattern_min_len;
4930	int max_pkt_offset;
4931};
4932
4933/**
4934 * enum wiphy_vendor_command_flags - validation flags for vendor commands
4935 * @WIPHY_VENDOR_CMD_NEED_WDEV: vendor command requires wdev
4936 * @WIPHY_VENDOR_CMD_NEED_NETDEV: vendor command requires netdev
4937 * @WIPHY_VENDOR_CMD_NEED_RUNNING: interface/wdev must be up & running
4938 *	(must be combined with %_WDEV or %_NETDEV)
4939 */
4940enum wiphy_vendor_command_flags {
4941	WIPHY_VENDOR_CMD_NEED_WDEV = BIT(0),
4942	WIPHY_VENDOR_CMD_NEED_NETDEV = BIT(1),
4943	WIPHY_VENDOR_CMD_NEED_RUNNING = BIT(2),
4944};
4945
4946/**
4947 * enum wiphy_opmode_flag - Station's ht/vht operation mode information flags
4948 *
4949 * @STA_OPMODE_MAX_BW_CHANGED: Max Bandwidth changed
4950 * @STA_OPMODE_SMPS_MODE_CHANGED: SMPS mode changed
4951 * @STA_OPMODE_N_SS_CHANGED: max N_SS (number of spatial streams) changed
4952 *
4953 */
4954enum wiphy_opmode_flag {
4955	STA_OPMODE_MAX_BW_CHANGED	= BIT(0),
4956	STA_OPMODE_SMPS_MODE_CHANGED	= BIT(1),
4957	STA_OPMODE_N_SS_CHANGED		= BIT(2),
4958};
4959
4960/**
4961 * struct sta_opmode_info - Station's ht/vht operation mode information
4962 * @changed: contains value from &enum wiphy_opmode_flag
4963 * @smps_mode: New SMPS mode value from &enum nl80211_smps_mode of a station
4964 * @bw: new max bandwidth value from &enum nl80211_chan_width of a station
4965 * @rx_nss: new rx_nss value of a station
4966 */
4967
4968struct sta_opmode_info {
4969	u32 changed;
4970	enum nl80211_smps_mode smps_mode;
4971	enum nl80211_chan_width bw;
4972	u8 rx_nss;
4973};
4974
4975#define VENDOR_CMD_RAW_DATA ((const struct nla_policy *)(long)(-ENODATA))
4976
4977/**
4978 * struct wiphy_vendor_command - vendor command definition
4979 * @info: vendor command identifying information, as used in nl80211
4980 * @flags: flags, see &enum wiphy_vendor_command_flags
4981 * @doit: callback for the operation, note that wdev is %NULL if the
4982 *	flags didn't ask for a wdev and non-%NULL otherwise; the data
4983 *	pointer may be %NULL if userspace provided no data at all
4984 * @dumpit: dump callback, for transferring bigger/multiple items. The
4985 *	@storage points to cb->args[5], ie. is preserved over the multiple
4986 *	dumpit calls.
4987 * @policy: policy pointer for attributes within %NL80211_ATTR_VENDOR_DATA.
4988 *	Set this to %VENDOR_CMD_RAW_DATA if no policy can be given and the
4989 *	attribute is just raw data (e.g. a firmware command).
4990 * @maxattr: highest attribute number in policy
4991 * It's recommended to not have the same sub command with both @doit and
4992 * @dumpit, so that userspace can assume certain ones are get and others
4993 * are used with dump requests.
4994 */
4995struct wiphy_vendor_command {
4996	struct nl80211_vendor_cmd_info info;
4997	u32 flags;
4998	int (*doit)(struct wiphy *wiphy, struct wireless_dev *wdev,
4999		    const void *data, int data_len);
5000	int (*dumpit)(struct wiphy *wiphy, struct wireless_dev *wdev,
5001		      struct sk_buff *skb, const void *data, int data_len,
5002		      unsigned long *storage);
5003	const struct nla_policy *policy;
5004	unsigned int maxattr;
5005};
5006
5007/**
5008 * struct wiphy_iftype_ext_capab - extended capabilities per interface type
5009 * @iftype: interface type
5010 * @extended_capabilities: extended capabilities supported by the driver,
5011 *	additional capabilities might be supported by userspace; these are the
5012 *	802.11 extended capabilities ("Extended Capabilities element") and are
5013 *	in the same format as in the information element. See IEEE Std
5014 *	802.11-2012 8.4.2.29 for the defined fields.
5015 * @extended_capabilities_mask: mask of the valid values
5016 * @extended_capabilities_len: length of the extended capabilities
5017 * @eml_capabilities: EML capabilities (for MLO)
5018 * @mld_capa_and_ops: MLD capabilities and operations (for MLO)
5019 */
5020struct wiphy_iftype_ext_capab {
5021	enum nl80211_iftype iftype;
5022	const u8 *extended_capabilities;
5023	const u8 *extended_capabilities_mask;
5024	u8 extended_capabilities_len;
5025	u16 eml_capabilities;
5026	u16 mld_capa_and_ops;
5027};
5028
5029/**
5030 * cfg80211_get_iftype_ext_capa - lookup interface type extended capability
5031 * @wiphy: the wiphy to look up from
5032 * @type: the interface type to look up
5033 */
5034const struct wiphy_iftype_ext_capab *
5035cfg80211_get_iftype_ext_capa(struct wiphy *wiphy, enum nl80211_iftype type);
5036
5037/**
5038 * struct cfg80211_pmsr_capabilities - cfg80211 peer measurement capabilities
5039 * @max_peers: maximum number of peers in a single measurement
5040 * @report_ap_tsf: can report assoc AP's TSF for radio resource measurement
5041 * @randomize_mac_addr: can randomize MAC address for measurement
5042 * @ftm: FTM measurement data
5043 * @ftm.supported: FTM measurement is supported
5044 * @ftm.asap: ASAP-mode is supported
5045 * @ftm.non_asap: non-ASAP-mode is supported
5046 * @ftm.request_lci: can request LCI data
5047 * @ftm.request_civicloc: can request civic location data
5048 * @ftm.preambles: bitmap of preambles supported (&enum nl80211_preamble)
5049 * @ftm.bandwidths: bitmap of bandwidths supported (&enum nl80211_chan_width)
5050 * @ftm.max_bursts_exponent: maximum burst exponent supported
5051 *	(set to -1 if not limited; note that setting this will necessarily
5052 *	forbid using the value 15 to let the responder pick)
5053 * @ftm.max_ftms_per_burst: maximum FTMs per burst supported (set to 0 if
5054 *	not limited)
5055 * @ftm.trigger_based: trigger based ranging measurement is supported
5056 * @ftm.non_trigger_based: non trigger based ranging measurement is supported
5057 */
5058struct cfg80211_pmsr_capabilities {
5059	unsigned int max_peers;
5060	u8 report_ap_tsf:1,
5061	   randomize_mac_addr:1;
5062
5063	struct {
5064		u32 preambles;
5065		u32 bandwidths;
5066		s8 max_bursts_exponent;
5067		u8 max_ftms_per_burst;
5068		u8 supported:1,
5069		   asap:1,
5070		   non_asap:1,
5071		   request_lci:1,
5072		   request_civicloc:1,
5073		   trigger_based:1,
5074		   non_trigger_based:1;
5075	} ftm;
5076};
5077
5078/**
5079 * struct wiphy_iftype_akm_suites - This structure encapsulates supported akm
5080 * suites for interface types defined in @iftypes_mask. Each type in the
5081 * @iftypes_mask must be unique across all instances of iftype_akm_suites.
5082 *
5083 * @iftypes_mask: bitmask of interfaces types
5084 * @akm_suites: points to an array of supported akm suites
5085 * @n_akm_suites: number of supported AKM suites
5086 */
5087struct wiphy_iftype_akm_suites {
5088	u16 iftypes_mask;
5089	const u32 *akm_suites;
5090	int n_akm_suites;
5091};
5092
5093/**
5094 * struct wiphy - wireless hardware description
5095 * @mtx: mutex for the data (structures) of this device
5096 * @reg_notifier: the driver's regulatory notification callback,
5097 *	note that if your driver uses wiphy_apply_custom_regulatory()
5098 *	the reg_notifier's request can be passed as NULL
5099 * @regd: the driver's regulatory domain, if one was requested via
5100 *	the regulatory_hint() API. This can be used by the driver
5101 *	on the reg_notifier() if it chooses to ignore future
5102 *	regulatory domain changes caused by other drivers.
5103 * @signal_type: signal type reported in &struct cfg80211_bss.
5104 * @cipher_suites: supported cipher suites
5105 * @n_cipher_suites: number of supported cipher suites
5106 * @akm_suites: supported AKM suites. These are the default AKMs supported if
5107 *	the supported AKMs not advertized for a specific interface type in
5108 *	iftype_akm_suites.
5109 * @n_akm_suites: number of supported AKM suites
5110 * @iftype_akm_suites: array of supported akm suites info per interface type.
5111 *	Note that the bits in @iftypes_mask inside this structure cannot
5112 *	overlap (i.e. only one occurrence of each type is allowed across all
5113 *	instances of iftype_akm_suites).
5114 * @num_iftype_akm_suites: number of interface types for which supported akm
5115 *	suites are specified separately.
5116 * @retry_short: Retry limit for short frames (dot11ShortRetryLimit)
5117 * @retry_long: Retry limit for long frames (dot11LongRetryLimit)
5118 * @frag_threshold: Fragmentation threshold (dot11FragmentationThreshold);
5119 *	-1 = fragmentation disabled, only odd values >= 256 used
5120 * @rts_threshold: RTS threshold (dot11RTSThreshold); -1 = RTS/CTS disabled
5121 * @_net: the network namespace this wiphy currently lives in
5122 * @perm_addr: permanent MAC address of this device
5123 * @addr_mask: If the device supports multiple MAC addresses by masking,
5124 *	set this to a mask with variable bits set to 1, e.g. if the last
5125 *	four bits are variable then set it to 00-00-00-00-00-0f. The actual
5126 *	variable bits shall be determined by the interfaces added, with
5127 *	interfaces not matching the mask being rejected to be brought up.
5128 * @n_addresses: number of addresses in @addresses.
5129 * @addresses: If the device has more than one address, set this pointer
5130 *	to a list of addresses (6 bytes each). The first one will be used
5131 *	by default for perm_addr. In this case, the mask should be set to
5132 *	all-zeroes. In this case it is assumed that the device can handle
5133 *	the same number of arbitrary MAC addresses.
5134 * @registered: protects ->resume and ->suspend sysfs callbacks against
5135 *	unregister hardware
5136 * @debugfsdir: debugfs directory used for this wiphy (ieee80211/<wiphyname>).
5137 *	It will be renamed automatically on wiphy renames
5138 * @dev: (virtual) struct device for this wiphy. The item in
5139 *	/sys/class/ieee80211/ points to this. You need use set_wiphy_dev()
5140 *	(see below).
5141 * @wext: wireless extension handlers
5142 * @priv: driver private data (sized according to wiphy_new() parameter)
5143 * @interface_modes: bitmask of interfaces types valid for this wiphy,
5144 *	must be set by driver
5145 * @iface_combinations: Valid interface combinations array, should not
5146 *	list single interface types.
5147 * @n_iface_combinations: number of entries in @iface_combinations array.
5148 * @software_iftypes: bitmask of software interface types, these are not
5149 *	subject to any restrictions since they are purely managed in SW.
5150 * @flags: wiphy flags, see &enum wiphy_flags
5151 * @regulatory_flags: wiphy regulatory flags, see
5152 *	&enum ieee80211_regulatory_flags
5153 * @features: features advertised to nl80211, see &enum nl80211_feature_flags.
5154 * @ext_features: extended features advertised to nl80211, see
5155 *	&enum nl80211_ext_feature_index.
5156 * @bss_priv_size: each BSS struct has private data allocated with it,
5157 *	this variable determines its size
5158 * @max_scan_ssids: maximum number of SSIDs the device can scan for in
5159 *	any given scan
5160 * @max_sched_scan_reqs: maximum number of scheduled scan requests that
5161 *	the device can run concurrently.
5162 * @max_sched_scan_ssids: maximum number of SSIDs the device can scan
5163 *	for in any given scheduled scan
5164 * @max_match_sets: maximum number of match sets the device can handle
5165 *	when performing a scheduled scan, 0 if filtering is not
5166 *	supported.
5167 * @max_scan_ie_len: maximum length of user-controlled IEs device can
5168 *	add to probe request frames transmitted during a scan, must not
5169 *	include fixed IEs like supported rates
5170 * @max_sched_scan_ie_len: same as max_scan_ie_len, but for scheduled
5171 *	scans
5172 * @max_sched_scan_plans: maximum number of scan plans (scan interval and number
5173 *	of iterations) for scheduled scan supported by the device.
5174 * @max_sched_scan_plan_interval: maximum interval (in seconds) for a
5175 *	single scan plan supported by the device.
5176 * @max_sched_scan_plan_iterations: maximum number of iterations for a single
5177 *	scan plan supported by the device.
5178 * @coverage_class: current coverage class
5179 * @fw_version: firmware version for ethtool reporting
5180 * @hw_version: hardware version for ethtool reporting
5181 * @max_num_pmkids: maximum number of PMKIDs supported by device
5182 * @privid: a pointer that drivers can use to identify if an arbitrary
5183 *	wiphy is theirs, e.g. in global notifiers
5184 * @bands: information about bands/channels supported by this device
5185 *
5186 * @mgmt_stypes: bitmasks of frame subtypes that can be subscribed to or
5187 *	transmitted through nl80211, points to an array indexed by interface
5188 *	type
5189 *
5190 * @available_antennas_tx: bitmap of antennas which are available to be
5191 *	configured as TX antennas. Antenna configuration commands will be
5192 *	rejected unless this or @available_antennas_rx is set.
5193 *
5194 * @available_antennas_rx: bitmap of antennas which are available to be
5195 *	configured as RX antennas. Antenna configuration commands will be
5196 *	rejected unless this or @available_antennas_tx is set.
5197 *
5198 * @probe_resp_offload:
5199 *	 Bitmap of supported protocols for probe response offloading.
5200 *	 See &enum nl80211_probe_resp_offload_support_attr. Only valid
5201 *	 when the wiphy flag @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD is set.
5202 *
5203 * @max_remain_on_channel_duration: Maximum time a remain-on-channel operation
5204 *	may request, if implemented.
5205 *
5206 * @wowlan: WoWLAN support information
5207 * @wowlan_config: current WoWLAN configuration; this should usually not be
5208 *	used since access to it is necessarily racy, use the parameter passed
5209 *	to the suspend() operation instead.
5210 *
5211 * @ap_sme_capa: AP SME capabilities, flags from &enum nl80211_ap_sme_features.
5212 * @ht_capa_mod_mask:  Specify what ht_cap values can be over-ridden.
5213 *	If null, then none can be over-ridden.
5214 * @vht_capa_mod_mask:  Specify what VHT capabilities can be over-ridden.
5215 *	If null, then none can be over-ridden.
5216 *
5217 * @wdev_list: the list of associated (virtual) interfaces; this list must
5218 *	not be modified by the driver, but can be read with RTNL/RCU protection.
5219 *
5220 * @max_acl_mac_addrs: Maximum number of MAC addresses that the device
5221 *	supports for ACL.
5222 *
5223 * @extended_capabilities: extended capabilities supported by the driver,
5224 *	additional capabilities might be supported by userspace; these are
5225 *	the 802.11 extended capabilities ("Extended Capabilities element")
5226 *	and are in the same format as in the information element. See
5227 *	802.11-2012 8.4.2.29 for the defined fields. These are the default
5228 *	extended capabilities to be used if the capabilities are not specified
5229 *	for a specific interface type in iftype_ext_capab.
5230 * @extended_capabilities_mask: mask of the valid values
5231 * @extended_capabilities_len: length of the extended capabilities
5232 * @iftype_ext_capab: array of extended capabilities per interface type
5233 * @num_iftype_ext_capab: number of interface types for which extended
5234 *	capabilities are specified separately.
5235 * @coalesce: packet coalescing support information
5236 *
5237 * @vendor_commands: array of vendor commands supported by the hardware
5238 * @n_vendor_commands: number of vendor commands
5239 * @vendor_events: array of vendor events supported by the hardware
5240 * @n_vendor_events: number of vendor events
5241 *
5242 * @max_ap_assoc_sta: maximum number of associated stations supported in AP mode
5243 *	(including P2P GO) or 0 to indicate no such limit is advertised. The
5244 *	driver is allowed to advertise a theoretical limit that it can reach in
5245 *	some cases, but may not always reach.
5246 *
5247 * @max_num_csa_counters: Number of supported csa_counters in beacons
5248 *	and probe responses.  This value should be set if the driver
5249 *	wishes to limit the number of csa counters. Default (0) means
5250 *	infinite.
5251 * @bss_select_support: bitmask indicating the BSS selection criteria supported
5252 *	by the driver in the .connect() callback. The bit position maps to the
5253 *	attribute indices defined in &enum nl80211_bss_select_attr.
5254 *
5255 * @nan_supported_bands: bands supported by the device in NAN mode, a
5256 *	bitmap of &enum nl80211_band values.  For instance, for
5257 *	NL80211_BAND_2GHZ, bit 0 would be set
5258 *	(i.e. BIT(NL80211_BAND_2GHZ)).
5259 *
5260 * @txq_limit: configuration of internal TX queue frame limit
5261 * @txq_memory_limit: configuration internal TX queue memory limit
5262 * @txq_quantum: configuration of internal TX queue scheduler quantum
5263 *
5264 * @tx_queue_len: allow setting transmit queue len for drivers not using
5265 *	wake_tx_queue
5266 *
5267 * @support_mbssid: can HW support association with nontransmitted AP
5268 * @support_only_he_mbssid: don't parse MBSSID elements if it is not
5269 *	HE AP, in order to avoid compatibility issues.
5270 *	@support_mbssid must be set for this to have any effect.
5271 *
5272 * @pmsr_capa: peer measurement capabilities
5273 *
5274 * @tid_config_support: describes the per-TID config support that the
5275 *	device has
5276 * @tid_config_support.vif: bitmap of attributes (configurations)
5277 *	supported by the driver for each vif
5278 * @tid_config_support.peer: bitmap of attributes (configurations)
5279 *	supported by the driver for each peer
5280 * @tid_config_support.max_retry: maximum supported retry count for
5281 *	long/short retry configuration
5282 *
5283 * @max_data_retry_count: maximum supported per TID retry count for
5284 *	configuration through the %NL80211_TID_CONFIG_ATTR_RETRY_SHORT and
5285 *	%NL80211_TID_CONFIG_ATTR_RETRY_LONG attributes
5286 * @sar_capa: SAR control capabilities
5287 * @rfkill: a pointer to the rfkill structure
5288 *
5289 * @mbssid_max_interfaces: maximum number of interfaces supported by the driver
5290 *	in a multiple BSSID set. This field must be set to a non-zero value
5291 *	by the driver to advertise MBSSID support.
5292 * @ema_max_profile_periodicity: maximum profile periodicity supported by
5293 *	the driver. Setting this field to a non-zero value indicates that the
5294 *	driver supports enhanced multi-BSSID advertisements (EMA AP).
5295 * @max_num_akm_suites: maximum number of AKM suites allowed for
5296 *	configuration through %NL80211_CMD_CONNECT, %NL80211_CMD_ASSOCIATE and
5297 *	%NL80211_CMD_START_AP. Set to NL80211_MAX_NR_AKM_SUITES if not set by
5298 *	driver. If set by driver minimum allowed value is
5299 *	NL80211_MAX_NR_AKM_SUITES in order to avoid compatibility issues with
5300 *	legacy userspace and maximum allowed value is
5301 *	CFG80211_MAX_NUM_AKM_SUITES.
5302 */
5303struct wiphy {
5304	struct mutex mtx;
5305
5306	/* assign these fields before you register the wiphy */
5307
5308	u8 perm_addr[ETH_ALEN];
5309	u8 addr_mask[ETH_ALEN];
5310
5311	struct mac_address *addresses;
5312
5313	const struct ieee80211_txrx_stypes *mgmt_stypes;
5314
5315	const struct ieee80211_iface_combination *iface_combinations;
5316	int n_iface_combinations;
5317	u16 software_iftypes;
5318
5319	u16 n_addresses;
5320
5321	/* Supported interface modes, OR together BIT(NL80211_IFTYPE_...) */
5322	u16 interface_modes;
5323
5324	u16 max_acl_mac_addrs;
5325
5326	u32 flags, regulatory_flags, features;
5327	u8 ext_features[DIV_ROUND_UP(NUM_NL80211_EXT_FEATURES, 8)];
5328
5329	u32 ap_sme_capa;
5330
5331	enum cfg80211_signal_type signal_type;
5332
5333	int bss_priv_size;
5334	u8 max_scan_ssids;
5335	u8 max_sched_scan_reqs;
5336	u8 max_sched_scan_ssids;
5337	u8 max_match_sets;
5338	u16 max_scan_ie_len;
5339	u16 max_sched_scan_ie_len;
5340	u32 max_sched_scan_plans;
5341	u32 max_sched_scan_plan_interval;
5342	u32 max_sched_scan_plan_iterations;
5343
5344	int n_cipher_suites;
5345	const u32 *cipher_suites;
5346
5347	int n_akm_suites;
5348	const u32 *akm_suites;
5349
5350	const struct wiphy_iftype_akm_suites *iftype_akm_suites;
5351	unsigned int num_iftype_akm_suites;
5352
5353	u8 retry_short;
5354	u8 retry_long;
5355	u32 frag_threshold;
5356	u32 rts_threshold;
5357	u8 coverage_class;
5358
5359	char fw_version[ETHTOOL_FWVERS_LEN];
5360	u32 hw_version;
5361
5362#ifdef CONFIG_PM
5363	const struct wiphy_wowlan_support *wowlan;
5364	struct cfg80211_wowlan *wowlan_config;
5365#endif
5366
5367	u16 max_remain_on_channel_duration;
5368
5369	u8 max_num_pmkids;
5370
5371	u32 available_antennas_tx;
5372	u32 available_antennas_rx;
5373
5374	u32 probe_resp_offload;
5375
5376	const u8 *extended_capabilities, *extended_capabilities_mask;
5377	u8 extended_capabilities_len;
5378
5379	const struct wiphy_iftype_ext_capab *iftype_ext_capab;
5380	unsigned int num_iftype_ext_capab;
5381
5382	const void *privid;
5383
5384	struct ieee80211_supported_band *bands[NUM_NL80211_BANDS];
5385
5386	void (*reg_notifier)(struct wiphy *wiphy,
5387			     struct regulatory_request *request);
5388
5389	/* fields below are read-only, assigned by cfg80211 */
5390
5391	const struct ieee80211_regdomain __rcu *regd;
5392
5393	struct device dev;
5394
5395	bool registered;
5396
5397	struct dentry *debugfsdir;
5398
5399	const struct ieee80211_ht_cap *ht_capa_mod_mask;
5400	const struct ieee80211_vht_cap *vht_capa_mod_mask;
5401
5402	struct list_head wdev_list;
5403
5404	possible_net_t _net;
5405
5406#ifdef CONFIG_CFG80211_WEXT
5407	const struct iw_handler_def *wext;
5408#endif
5409
5410	const struct wiphy_coalesce_support *coalesce;
5411
5412	const struct wiphy_vendor_command *vendor_commands;
5413	const struct nl80211_vendor_cmd_info *vendor_events;
5414	int n_vendor_commands, n_vendor_events;
5415
5416	u16 max_ap_assoc_sta;
5417
5418	u8 max_num_csa_counters;
5419
5420	u32 bss_select_support;
5421
5422	u8 nan_supported_bands;
5423
5424	u32 txq_limit;
5425	u32 txq_memory_limit;
5426	u32 txq_quantum;
5427
5428	unsigned long tx_queue_len;
5429
5430	u8 support_mbssid:1,
5431	   support_only_he_mbssid:1;
5432
5433	const struct cfg80211_pmsr_capabilities *pmsr_capa;
5434
5435	struct {
5436		u64 peer, vif;
5437		u8 max_retry;
5438	} tid_config_support;
5439
5440	u8 max_data_retry_count;
5441
5442	const struct cfg80211_sar_capa *sar_capa;
5443
5444	struct rfkill *rfkill;
5445
5446	u8 mbssid_max_interfaces;
5447	u8 ema_max_profile_periodicity;
5448	u16 max_num_akm_suites;
5449
5450	char priv[] __aligned(NETDEV_ALIGN);
5451};
5452
5453static inline struct net *wiphy_net(struct wiphy *wiphy)
5454{
5455	return read_pnet(&wiphy->_net);
5456}
5457
5458static inline void wiphy_net_set(struct wiphy *wiphy, struct net *net)
5459{
5460	write_pnet(&wiphy->_net, net);
5461}
5462
5463/**
5464 * wiphy_priv - return priv from wiphy
5465 *
5466 * @wiphy: the wiphy whose priv pointer to return
5467 * Return: The priv of @wiphy.
5468 */
5469static inline void *wiphy_priv(struct wiphy *wiphy)
5470{
5471	BUG_ON(!wiphy);
5472	return &wiphy->priv;
5473}
5474
5475/**
5476 * priv_to_wiphy - return the wiphy containing the priv
5477 *
5478 * @priv: a pointer previously returned by wiphy_priv
5479 * Return: The wiphy of @priv.
5480 */
5481static inline struct wiphy *priv_to_wiphy(void *priv)
5482{
5483	BUG_ON(!priv);
5484	return container_of(priv, struct wiphy, priv);
5485}
5486
5487/**
5488 * set_wiphy_dev - set device pointer for wiphy
5489 *
5490 * @wiphy: The wiphy whose device to bind
5491 * @dev: The device to parent it to
5492 */
5493static inline void set_wiphy_dev(struct wiphy *wiphy, struct device *dev)
5494{
5495	wiphy->dev.parent = dev;
5496}
5497
5498/**
5499 * wiphy_dev - get wiphy dev pointer
5500 *
5501 * @wiphy: The wiphy whose device struct to look up
5502 * Return: The dev of @wiphy.
5503 */
5504static inline struct device *wiphy_dev(struct wiphy *wiphy)
5505{
5506	return wiphy->dev.parent;
5507}
5508
5509/**
5510 * wiphy_name - get wiphy name
5511 *
5512 * @wiphy: The wiphy whose name to return
5513 * Return: The name of @wiphy.
5514 */
5515static inline const char *wiphy_name(const struct wiphy *wiphy)
5516{
5517	return dev_name(&wiphy->dev);
5518}
5519
5520/**
5521 * wiphy_new_nm - create a new wiphy for use with cfg80211
5522 *
5523 * @ops: The configuration operations for this device
5524 * @sizeof_priv: The size of the private area to allocate
5525 * @requested_name: Request a particular name.
5526 *	NULL is valid value, and means use the default phy%d naming.
5527 *
5528 * Create a new wiphy and associate the given operations with it.
5529 * @sizeof_priv bytes are allocated for private use.
5530 *
5531 * Return: A pointer to the new wiphy. This pointer must be
5532 * assigned to each netdev's ieee80211_ptr for proper operation.
5533 */
5534struct wiphy *wiphy_new_nm(const struct cfg80211_ops *ops, int sizeof_priv,
5535			   const char *requested_name);
5536
5537/**
5538 * wiphy_new - create a new wiphy for use with cfg80211
5539 *
5540 * @ops: The configuration operations for this device
5541 * @sizeof_priv: The size of the private area to allocate
5542 *
5543 * Create a new wiphy and associate the given operations with it.
5544 * @sizeof_priv bytes are allocated for private use.
5545 *
5546 * Return: A pointer to the new wiphy. This pointer must be
5547 * assigned to each netdev's ieee80211_ptr for proper operation.
5548 */
5549static inline struct wiphy *wiphy_new(const struct cfg80211_ops *ops,
5550				      int sizeof_priv)
5551{
5552	return wiphy_new_nm(ops, sizeof_priv, NULL);
5553}
5554
5555/**
5556 * wiphy_register - register a wiphy with cfg80211
5557 *
5558 * @wiphy: The wiphy to register.
5559 *
5560 * Return: A non-negative wiphy index or a negative error code.
5561 */
5562int wiphy_register(struct wiphy *wiphy);
5563
5564/* this is a define for better error reporting (file/line) */
5565#define lockdep_assert_wiphy(wiphy) lockdep_assert_held(&(wiphy)->mtx)
5566
5567/**
5568 * rcu_dereference_wiphy - rcu_dereference with debug checking
5569 * @wiphy: the wiphy to check the locking on
5570 * @p: The pointer to read, prior to dereferencing
5571 *
5572 * Do an rcu_dereference(p), but check caller either holds rcu_read_lock()
5573 * or RTNL. Note: Please prefer wiphy_dereference() or rcu_dereference().
5574 */
5575#define rcu_dereference_wiphy(wiphy, p)				\
5576        rcu_dereference_check(p, lockdep_is_held(&wiphy->mtx))
5577
5578/**
5579 * wiphy_dereference - fetch RCU pointer when updates are prevented by wiphy mtx
5580 * @wiphy: the wiphy to check the locking on
5581 * @p: The pointer to read, prior to dereferencing
5582 *
5583 * Return the value of the specified RCU-protected pointer, but omit the
5584 * READ_ONCE(), because caller holds the wiphy mutex used for updates.
5585 */
5586#define wiphy_dereference(wiphy, p)				\
5587        rcu_dereference_protected(p, lockdep_is_held(&wiphy->mtx))
5588
5589/**
5590 * get_wiphy_regdom - get custom regdomain for the given wiphy
5591 * @wiphy: the wiphy to get the regdomain from
5592 */
5593const struct ieee80211_regdomain *get_wiphy_regdom(struct wiphy *wiphy);
5594
5595/**
5596 * wiphy_unregister - deregister a wiphy from cfg80211
5597 *
5598 * @wiphy: The wiphy to unregister.
5599 *
5600 * After this call, no more requests can be made with this priv
5601 * pointer, but the call may sleep to wait for an outstanding
5602 * request that is being handled.
5603 */
5604void wiphy_unregister(struct wiphy *wiphy);
5605
5606/**
5607 * wiphy_free - free wiphy
5608 *
5609 * @wiphy: The wiphy to free
5610 */
5611void wiphy_free(struct wiphy *wiphy);
5612
5613/* internal structs */
5614struct cfg80211_conn;
5615struct cfg80211_internal_bss;
5616struct cfg80211_cached_keys;
5617struct cfg80211_cqm_config;
5618
5619/**
5620 * wiphy_lock - lock the wiphy
5621 * @wiphy: the wiphy to lock
5622 *
5623 * This is mostly exposed so it can be done around registering and
5624 * unregistering netdevs that aren't created through cfg80211 calls,
5625 * since that requires locking in cfg80211 when the notifiers is
5626 * called, but that cannot differentiate which way it's called.
5627 *
5628 * When cfg80211 ops are called, the wiphy is already locked.
5629 */
5630static inline void wiphy_lock(struct wiphy *wiphy)
5631	__acquires(&wiphy->mtx)
5632{
5633	mutex_lock(&wiphy->mtx);
5634	__acquire(&wiphy->mtx);
5635}
5636
5637/**
5638 * wiphy_unlock - unlock the wiphy again
5639 * @wiphy: the wiphy to unlock
5640 */
5641static inline void wiphy_unlock(struct wiphy *wiphy)
5642	__releases(&wiphy->mtx)
5643{
5644	__release(&wiphy->mtx);
5645	mutex_unlock(&wiphy->mtx);
5646}
5647
5648/**
5649 * struct wireless_dev - wireless device state
5650 *
5651 * For netdevs, this structure must be allocated by the driver
5652 * that uses the ieee80211_ptr field in struct net_device (this
5653 * is intentional so it can be allocated along with the netdev.)
5654 * It need not be registered then as netdev registration will
5655 * be intercepted by cfg80211 to see the new wireless device,
5656 * however, drivers must lock the wiphy before registering or
5657 * unregistering netdevs if they pre-create any netdevs (in ops
5658 * called from cfg80211, the wiphy is already locked.)
5659 *
5660 * For non-netdev uses, it must also be allocated by the driver
5661 * in response to the cfg80211 callbacks that require it, as
5662 * there's no netdev registration in that case it may not be
5663 * allocated outside of callback operations that return it.
5664 *
5665 * @wiphy: pointer to hardware description
5666 * @iftype: interface type
5667 * @registered: is this wdev already registered with cfg80211
5668 * @registering: indicates we're doing registration under wiphy lock
5669 *	for the notifier
5670 * @list: (private) Used to collect the interfaces
5671 * @netdev: (private) Used to reference back to the netdev, may be %NULL
5672 * @identifier: (private) Identifier used in nl80211 to identify this
5673 *	wireless device if it has no netdev
5674 * @u: union containing data specific to @iftype
5675 * @connected: indicates if connected or not (STA mode)
 
 
 
5676 * @bssid: (private) Used by the internal configuration code
 
 
 
 
5677 * @wext: (private) Used by the internal wireless extensions compat code
5678 * @wext.ibss: (private) IBSS data part of wext handling
5679 * @wext.connect: (private) connection handling data
5680 * @wext.keys: (private) (WEP) key data
5681 * @wext.ie: (private) extra elements for association
5682 * @wext.ie_len: (private) length of extra elements
5683 * @wext.bssid: (private) selected network BSSID
5684 * @wext.ssid: (private) selected network SSID
5685 * @wext.default_key: (private) selected default key index
5686 * @wext.default_mgmt_key: (private) selected default management key index
5687 * @wext.prev_bssid: (private) previous BSSID for reassociation
5688 * @wext.prev_bssid_valid: (private) previous BSSID validity
5689 * @use_4addr: indicates 4addr mode is used on this interface, must be
5690 *	set by driver (if supported) on add_interface BEFORE registering the
5691 *	netdev and may otherwise be used by driver read-only, will be update
5692 *	by cfg80211 on change_interface
5693 * @mgmt_registrations: list of registrations for management frames
 
5694 * @mgmt_registrations_need_update: mgmt registrations were updated,
5695 *	need to propagate the update to the driver
5696 * @mtx: mutex used to lock data in this struct, may be used by drivers
5697 *	and some API functions require it held
5698 * @beacon_interval: beacon interval used on this device for transmitting
5699 *	beacons, 0 when not valid
5700 * @address: The address for this device, valid only if @netdev is %NULL
5701 * @is_running: true if this is a non-netdev device that has been started, e.g.
5702 *	the P2P Device.
5703 * @cac_started: true if DFS channel availability check has been started
5704 * @cac_start_time: timestamp (jiffies) when the dfs state was entered.
5705 * @cac_time_ms: CAC time in ms
5706 * @ps: powersave mode is enabled
5707 * @ps_timeout: dynamic powersave timeout
5708 * @ap_unexpected_nlportid: (private) netlink port ID of application
5709 *	registered for unexpected class 3 frames (AP mode)
5710 * @conn: (private) cfg80211 software SME connection state machine data
5711 * @connect_keys: (private) keys to set after connection is established
5712 * @conn_bss_type: connecting/connected BSS type
5713 * @conn_owner_nlportid: (private) connection owner socket port ID
5714 * @disconnect_wk: (private) auto-disconnect work
5715 * @disconnect_bssid: (private) the BSSID to use for auto-disconnect
 
 
5716 * @event_list: (private) list for internal event processing
5717 * @event_lock: (private) lock for event list
5718 * @owner_nlportid: (private) owner socket port ID
5719 * @nl_owner_dead: (private) owner socket went away
5720 * @cqm_config: (private) nl80211 RSSI monitor state
5721 * @pmsr_list: (private) peer measurement requests
5722 * @pmsr_lock: (private) peer measurements requests/results lock
5723 * @pmsr_free_wk: (private) peer measurements cleanup work
5724 * @unprot_beacon_reported: (private) timestamp of last
5725 *	unprotected beacon report
5726 * @links: array of %IEEE80211_MLD_MAX_NUM_LINKS elements containing @addr
5727 *	@ap and @client for each link
5728 * @valid_links: bitmap describing what elements of @links are valid
5729 */
5730struct wireless_dev {
5731	struct wiphy *wiphy;
5732	enum nl80211_iftype iftype;
5733
5734	/* the remainder of this struct should be private to cfg80211 */
5735	struct list_head list;
5736	struct net_device *netdev;
5737
5738	u32 identifier;
5739
5740	struct list_head mgmt_registrations;
 
5741	u8 mgmt_registrations_need_update:1;
5742
5743	struct mutex mtx;
5744
5745	bool use_4addr, is_running, registered, registering;
5746
5747	u8 address[ETH_ALEN] __aligned(sizeof(u16));
5748
5749	/* currently used for IBSS and SME - might be rearranged later */
 
 
5750	struct cfg80211_conn *conn;
5751	struct cfg80211_cached_keys *connect_keys;
5752	enum ieee80211_bss_type conn_bss_type;
5753	u32 conn_owner_nlportid;
5754
5755	struct work_struct disconnect_wk;
5756	u8 disconnect_bssid[ETH_ALEN];
5757
5758	struct list_head event_list;
5759	spinlock_t event_lock;
5760
5761	u8 connected:1;
 
 
 
 
 
5762
5763	bool ps;
5764	int ps_timeout;
5765
 
 
5766	u32 ap_unexpected_nlportid;
5767
5768	u32 owner_nlportid;
5769	bool nl_owner_dead;
5770
5771	/* FIXME: need to rework radar detection for MLO */
5772	bool cac_started;
5773	unsigned long cac_start_time;
5774	unsigned int cac_time_ms;
5775
5776#ifdef CONFIG_CFG80211_WEXT
5777	/* wext data */
5778	struct {
5779		struct cfg80211_ibss_params ibss;
5780		struct cfg80211_connect_params connect;
5781		struct cfg80211_cached_keys *keys;
5782		const u8 *ie;
5783		size_t ie_len;
5784		u8 bssid[ETH_ALEN];
5785		u8 prev_bssid[ETH_ALEN];
5786		u8 ssid[IEEE80211_MAX_SSID_LEN];
5787		s8 default_key, default_mgmt_key;
5788		bool prev_bssid_valid;
5789	} wext;
5790#endif
5791
5792	struct cfg80211_cqm_config *cqm_config;
5793
5794	struct list_head pmsr_list;
5795	spinlock_t pmsr_lock;
5796	struct work_struct pmsr_free_wk;
5797
5798	unsigned long unprot_beacon_reported;
5799
5800	union {
5801		struct {
5802			u8 connected_addr[ETH_ALEN] __aligned(2);
5803			u8 ssid[IEEE80211_MAX_SSID_LEN];
5804			u8 ssid_len;
5805		} client;
5806		struct {
5807			int beacon_interval;
5808			struct cfg80211_chan_def preset_chandef;
5809			struct cfg80211_chan_def chandef;
5810			u8 id[IEEE80211_MAX_SSID_LEN];
5811			u8 id_len, id_up_len;
5812		} mesh;
5813		struct {
5814			struct cfg80211_chan_def preset_chandef;
5815			u8 ssid[IEEE80211_MAX_SSID_LEN];
5816			u8 ssid_len;
5817		} ap;
5818		struct {
5819			struct cfg80211_internal_bss *current_bss;
5820			struct cfg80211_chan_def chandef;
5821			int beacon_interval;
5822			u8 ssid[IEEE80211_MAX_SSID_LEN];
5823			u8 ssid_len;
5824		} ibss;
5825		struct {
5826			struct cfg80211_chan_def chandef;
5827		} ocb;
5828	} u;
5829
5830	struct {
5831		u8 addr[ETH_ALEN] __aligned(2);
5832		union {
5833			struct {
5834				unsigned int beacon_interval;
5835				struct cfg80211_chan_def chandef;
5836			} ap;
5837			struct {
5838				struct cfg80211_internal_bss *current_bss;
5839			} client;
5840		};
5841	} links[IEEE80211_MLD_MAX_NUM_LINKS];
5842	u16 valid_links;
5843};
5844
5845static inline const u8 *wdev_address(struct wireless_dev *wdev)
5846{
5847	if (wdev->netdev)
5848		return wdev->netdev->dev_addr;
5849	return wdev->address;
5850}
5851
5852static inline bool wdev_running(struct wireless_dev *wdev)
5853{
5854	if (wdev->netdev)
5855		return netif_running(wdev->netdev);
5856	return wdev->is_running;
5857}
5858
5859/**
5860 * wdev_priv - return wiphy priv from wireless_dev
5861 *
5862 * @wdev: The wireless device whose wiphy's priv pointer to return
5863 * Return: The wiphy priv of @wdev.
5864 */
5865static inline void *wdev_priv(struct wireless_dev *wdev)
5866{
5867	BUG_ON(!wdev);
5868	return wiphy_priv(wdev->wiphy);
5869}
5870
5871/**
5872 * wdev_chandef - return chandef pointer from wireless_dev
5873 * @wdev: the wdev
5874 * @link_id: the link ID for MLO
5875 *
5876 * Return: The chandef depending on the mode, or %NULL.
5877 */
5878struct cfg80211_chan_def *wdev_chandef(struct wireless_dev *wdev,
5879				       unsigned int link_id);
5880
5881static inline void WARN_INVALID_LINK_ID(struct wireless_dev *wdev,
5882					unsigned int link_id)
5883{
5884	WARN_ON(link_id && !wdev->valid_links);
5885	WARN_ON(wdev->valid_links &&
5886		!(wdev->valid_links & BIT(link_id)));
5887}
5888
5889#define for_each_valid_link(link_info, link_id)			\
5890	for (link_id = 0;					\
5891	     link_id < ((link_info)->valid_links ?		\
5892			ARRAY_SIZE((link_info)->links) : 1);	\
5893	     link_id++)						\
5894		if (!(link_info)->valid_links ||		\
5895		    ((link_info)->valid_links & BIT(link_id)))
5896
5897/**
5898 * DOC: Utility functions
5899 *
5900 * cfg80211 offers a number of utility functions that can be useful.
5901 */
5902
5903/**
5904 * ieee80211_channel_equal - compare two struct ieee80211_channel
5905 *
5906 * @a: 1st struct ieee80211_channel
5907 * @b: 2nd struct ieee80211_channel
5908 * Return: true if center frequency of @a == @b
5909 */
5910static inline bool
5911ieee80211_channel_equal(struct ieee80211_channel *a,
5912			struct ieee80211_channel *b)
5913{
5914	return (a->center_freq == b->center_freq &&
5915		a->freq_offset == b->freq_offset);
5916}
5917
5918/**
5919 * ieee80211_channel_to_khz - convert ieee80211_channel to frequency in KHz
5920 * @chan: struct ieee80211_channel to convert
5921 * Return: The corresponding frequency (in KHz)
5922 */
5923static inline u32
5924ieee80211_channel_to_khz(const struct ieee80211_channel *chan)
5925{
5926	return MHZ_TO_KHZ(chan->center_freq) + chan->freq_offset;
5927}
5928
5929/**
5930 * ieee80211_s1g_channel_width - get allowed channel width from @chan
5931 *
5932 * Only allowed for band NL80211_BAND_S1GHZ
5933 * @chan: channel
5934 * Return: The allowed channel width for this center_freq
5935 */
5936enum nl80211_chan_width
5937ieee80211_s1g_channel_width(const struct ieee80211_channel *chan);
5938
5939/**
5940 * ieee80211_channel_to_freq_khz - convert channel number to frequency
5941 * @chan: channel number
5942 * @band: band, necessary due to channel number overlap
5943 * Return: The corresponding frequency (in KHz), or 0 if the conversion failed.
5944 */
5945u32 ieee80211_channel_to_freq_khz(int chan, enum nl80211_band band);
5946
5947/**
5948 * ieee80211_channel_to_frequency - convert channel number to frequency
5949 * @chan: channel number
5950 * @band: band, necessary due to channel number overlap
5951 * Return: The corresponding frequency (in MHz), or 0 if the conversion failed.
5952 */
5953static inline int
5954ieee80211_channel_to_frequency(int chan, enum nl80211_band band)
5955{
5956	return KHZ_TO_MHZ(ieee80211_channel_to_freq_khz(chan, band));
5957}
5958
5959/**
5960 * ieee80211_freq_khz_to_channel - convert frequency to channel number
5961 * @freq: center frequency in KHz
5962 * Return: The corresponding channel, or 0 if the conversion failed.
5963 */
5964int ieee80211_freq_khz_to_channel(u32 freq);
5965
5966/**
5967 * ieee80211_frequency_to_channel - convert frequency to channel number
5968 * @freq: center frequency in MHz
5969 * Return: The corresponding channel, or 0 if the conversion failed.
5970 */
5971static inline int
5972ieee80211_frequency_to_channel(int freq)
5973{
5974	return ieee80211_freq_khz_to_channel(MHZ_TO_KHZ(freq));
5975}
5976
5977/**
5978 * ieee80211_get_channel_khz - get channel struct from wiphy for specified
5979 * frequency
5980 * @wiphy: the struct wiphy to get the channel for
5981 * @freq: the center frequency (in KHz) of the channel
5982 * Return: The channel struct from @wiphy at @freq.
5983 */
5984struct ieee80211_channel *
5985ieee80211_get_channel_khz(struct wiphy *wiphy, u32 freq);
5986
5987/**
5988 * ieee80211_get_channel - get channel struct from wiphy for specified frequency
5989 *
5990 * @wiphy: the struct wiphy to get the channel for
5991 * @freq: the center frequency (in MHz) of the channel
5992 * Return: The channel struct from @wiphy at @freq.
5993 */
5994static inline struct ieee80211_channel *
5995ieee80211_get_channel(struct wiphy *wiphy, int freq)
5996{
5997	return ieee80211_get_channel_khz(wiphy, MHZ_TO_KHZ(freq));
5998}
5999
6000/**
6001 * cfg80211_channel_is_psc - Check if the channel is a 6 GHz PSC
6002 * @chan: control channel to check
6003 *
6004 * The Preferred Scanning Channels (PSC) are defined in
6005 * Draft IEEE P802.11ax/D5.0, 26.17.2.3.3
6006 */
6007static inline bool cfg80211_channel_is_psc(struct ieee80211_channel *chan)
6008{
6009	if (chan->band != NL80211_BAND_6GHZ)
6010		return false;
6011
6012	return ieee80211_frequency_to_channel(chan->center_freq) % 16 == 5;
6013}
6014
6015/**
6016 * ieee80211_get_response_rate - get basic rate for a given rate
6017 *
6018 * @sband: the band to look for rates in
6019 * @basic_rates: bitmap of basic rates
6020 * @bitrate: the bitrate for which to find the basic rate
6021 *
6022 * Return: The basic rate corresponding to a given bitrate, that
6023 * is the next lower bitrate contained in the basic rate map,
6024 * which is, for this function, given as a bitmap of indices of
6025 * rates in the band's bitrate table.
6026 */
6027const struct ieee80211_rate *
6028ieee80211_get_response_rate(struct ieee80211_supported_band *sband,
6029			    u32 basic_rates, int bitrate);
6030
6031/**
6032 * ieee80211_mandatory_rates - get mandatory rates for a given band
6033 * @sband: the band to look for rates in
6034 * @scan_width: width of the control channel
6035 *
6036 * This function returns a bitmap of the mandatory rates for the given
6037 * band, bits are set according to the rate position in the bitrates array.
6038 */
6039u32 ieee80211_mandatory_rates(struct ieee80211_supported_band *sband,
6040			      enum nl80211_bss_scan_width scan_width);
6041
6042/*
6043 * Radiotap parsing functions -- for controlled injection support
6044 *
6045 * Implemented in net/wireless/radiotap.c
6046 * Documentation in Documentation/networking/radiotap-headers.rst
6047 */
6048
6049struct radiotap_align_size {
6050	uint8_t align:4, size:4;
6051};
6052
6053struct ieee80211_radiotap_namespace {
6054	const struct radiotap_align_size *align_size;
6055	int n_bits;
6056	uint32_t oui;
6057	uint8_t subns;
6058};
6059
6060struct ieee80211_radiotap_vendor_namespaces {
6061	const struct ieee80211_radiotap_namespace *ns;
6062	int n_ns;
6063};
6064
6065/**
6066 * struct ieee80211_radiotap_iterator - tracks walk thru present radiotap args
6067 * @this_arg_index: index of current arg, valid after each successful call
6068 *	to ieee80211_radiotap_iterator_next()
6069 * @this_arg: pointer to current radiotap arg; it is valid after each
6070 *	call to ieee80211_radiotap_iterator_next() but also after
6071 *	ieee80211_radiotap_iterator_init() where it will point to
6072 *	the beginning of the actual data portion
6073 * @this_arg_size: length of the current arg, for convenience
6074 * @current_namespace: pointer to the current namespace definition
6075 *	(or internally %NULL if the current namespace is unknown)
6076 * @is_radiotap_ns: indicates whether the current namespace is the default
6077 *	radiotap namespace or not
6078 *
6079 * @_rtheader: pointer to the radiotap header we are walking through
6080 * @_max_length: length of radiotap header in cpu byte ordering
6081 * @_arg_index: next argument index
6082 * @_arg: next argument pointer
6083 * @_next_bitmap: internal pointer to next present u32
6084 * @_bitmap_shifter: internal shifter for curr u32 bitmap, b0 set == arg present
6085 * @_vns: vendor namespace definitions
6086 * @_next_ns_data: beginning of the next namespace's data
6087 * @_reset_on_ext: internal; reset the arg index to 0 when going to the
6088 *	next bitmap word
6089 *
6090 * Describes the radiotap parser state. Fields prefixed with an underscore
6091 * must not be used by users of the parser, only by the parser internally.
6092 */
6093
6094struct ieee80211_radiotap_iterator {
6095	struct ieee80211_radiotap_header *_rtheader;
6096	const struct ieee80211_radiotap_vendor_namespaces *_vns;
6097	const struct ieee80211_radiotap_namespace *current_namespace;
6098
6099	unsigned char *_arg, *_next_ns_data;
6100	__le32 *_next_bitmap;
6101
6102	unsigned char *this_arg;
6103	int this_arg_index;
6104	int this_arg_size;
6105
6106	int is_radiotap_ns;
6107
6108	int _max_length;
6109	int _arg_index;
6110	uint32_t _bitmap_shifter;
6111	int _reset_on_ext;
6112};
6113
6114int
6115ieee80211_radiotap_iterator_init(struct ieee80211_radiotap_iterator *iterator,
6116				 struct ieee80211_radiotap_header *radiotap_header,
6117				 int max_length,
6118				 const struct ieee80211_radiotap_vendor_namespaces *vns);
6119
6120int
6121ieee80211_radiotap_iterator_next(struct ieee80211_radiotap_iterator *iterator);
6122
6123
6124extern const unsigned char rfc1042_header[6];
6125extern const unsigned char bridge_tunnel_header[6];
6126
6127/**
6128 * ieee80211_get_hdrlen_from_skb - get header length from data
6129 *
6130 * @skb: the frame
6131 *
6132 * Given an skb with a raw 802.11 header at the data pointer this function
6133 * returns the 802.11 header length.
6134 *
6135 * Return: The 802.11 header length in bytes (not including encryption
6136 * headers). Or 0 if the data in the sk_buff is too short to contain a valid
6137 * 802.11 header.
6138 */
6139unsigned int ieee80211_get_hdrlen_from_skb(const struct sk_buff *skb);
6140
6141/**
6142 * ieee80211_hdrlen - get header length in bytes from frame control
6143 * @fc: frame control field in little-endian format
6144 * Return: The header length in bytes.
6145 */
6146unsigned int __attribute_const__ ieee80211_hdrlen(__le16 fc);
6147
6148/**
6149 * ieee80211_get_mesh_hdrlen - get mesh extension header length
6150 * @meshhdr: the mesh extension header, only the flags field
6151 *	(first byte) will be accessed
6152 * Return: The length of the extension header, which is always at
6153 * least 6 bytes and at most 18 if address 5 and 6 are present.
6154 */
6155unsigned int ieee80211_get_mesh_hdrlen(struct ieee80211s_hdr *meshhdr);
6156
6157/**
6158 * DOC: Data path helpers
6159 *
6160 * In addition to generic utilities, cfg80211 also offers
6161 * functions that help implement the data path for devices
6162 * that do not do the 802.11/802.3 conversion on the device.
6163 */
6164
6165/**
6166 * ieee80211_data_to_8023_exthdr - convert an 802.11 data frame to 802.3
6167 * @skb: the 802.11 data frame
6168 * @ehdr: pointer to a &struct ethhdr that will get the header, instead
6169 *	of it being pushed into the SKB
6170 * @addr: the device MAC address
6171 * @iftype: the virtual interface type
6172 * @data_offset: offset of payload after the 802.11 header
6173 * @is_amsdu: true if the 802.11 header is A-MSDU
6174 * Return: 0 on success. Non-zero on error.
6175 */
6176int ieee80211_data_to_8023_exthdr(struct sk_buff *skb, struct ethhdr *ehdr,
6177				  const u8 *addr, enum nl80211_iftype iftype,
6178				  u8 data_offset, bool is_amsdu);
6179
6180/**
6181 * ieee80211_data_to_8023 - convert an 802.11 data frame to 802.3
6182 * @skb: the 802.11 data frame
6183 * @addr: the device MAC address
6184 * @iftype: the virtual interface type
6185 * Return: 0 on success. Non-zero on error.
6186 */
6187static inline int ieee80211_data_to_8023(struct sk_buff *skb, const u8 *addr,
6188					 enum nl80211_iftype iftype)
6189{
6190	return ieee80211_data_to_8023_exthdr(skb, NULL, addr, iftype, 0, false);
6191}
6192
6193/**
6194 * ieee80211_amsdu_to_8023s - decode an IEEE 802.11n A-MSDU frame
6195 *
6196 * Decode an IEEE 802.11 A-MSDU and convert it to a list of 802.3 frames.
6197 * The @list will be empty if the decode fails. The @skb must be fully
6198 * header-less before being passed in here; it is freed in this function.
6199 *
6200 * @skb: The input A-MSDU frame without any headers.
6201 * @list: The output list of 802.3 frames. It must be allocated and
6202 *	initialized by the caller.
6203 * @addr: The device MAC address.
6204 * @iftype: The device interface type.
6205 * @extra_headroom: The hardware extra headroom for SKBs in the @list.
6206 * @check_da: DA to check in the inner ethernet header, or NULL
6207 * @check_sa: SA to check in the inner ethernet header, or NULL
6208 */
6209void ieee80211_amsdu_to_8023s(struct sk_buff *skb, struct sk_buff_head *list,
6210			      const u8 *addr, enum nl80211_iftype iftype,
6211			      const unsigned int extra_headroom,
6212			      const u8 *check_da, const u8 *check_sa);
6213
6214/**
6215 * cfg80211_classify8021d - determine the 802.1p/1d tag for a data frame
6216 * @skb: the data frame
6217 * @qos_map: Interworking QoS mapping or %NULL if not in use
6218 * Return: The 802.1p/1d tag.
6219 */
6220unsigned int cfg80211_classify8021d(struct sk_buff *skb,
6221				    struct cfg80211_qos_map *qos_map);
6222
6223/**
6224 * cfg80211_find_elem_match - match information element and byte array in data
6225 *
6226 * @eid: element ID
6227 * @ies: data consisting of IEs
6228 * @len: length of data
6229 * @match: byte array to match
6230 * @match_len: number of bytes in the match array
6231 * @match_offset: offset in the IE data where the byte array should match.
6232 *	Note the difference to cfg80211_find_ie_match() which considers
6233 *	the offset to start from the element ID byte, but here we take
6234 *	the data portion instead.
6235 *
6236 * Return: %NULL if the element ID could not be found or if
6237 * the element is invalid (claims to be longer than the given
6238 * data) or if the byte array doesn't match; otherwise return the
6239 * requested element struct.
6240 *
6241 * Note: There are no checks on the element length other than
6242 * having to fit into the given data and being large enough for the
6243 * byte array to match.
6244 */
6245const struct element *
6246cfg80211_find_elem_match(u8 eid, const u8 *ies, unsigned int len,
6247			 const u8 *match, unsigned int match_len,
6248			 unsigned int match_offset);
6249
6250/**
6251 * cfg80211_find_ie_match - match information element and byte array in data
6252 *
6253 * @eid: element ID
6254 * @ies: data consisting of IEs
6255 * @len: length of data
6256 * @match: byte array to match
6257 * @match_len: number of bytes in the match array
6258 * @match_offset: offset in the IE where the byte array should match.
6259 *	If match_len is zero, this must also be set to zero.
6260 *	Otherwise this must be set to 2 or more, because the first
6261 *	byte is the element id, which is already compared to eid, and
6262 *	the second byte is the IE length.
6263 *
6264 * Return: %NULL if the element ID could not be found or if
6265 * the element is invalid (claims to be longer than the given
6266 * data) or if the byte array doesn't match, or a pointer to the first
6267 * byte of the requested element, that is the byte containing the
6268 * element ID.
6269 *
6270 * Note: There are no checks on the element length other than
6271 * having to fit into the given data and being large enough for the
6272 * byte array to match.
6273 */
6274static inline const u8 *
6275cfg80211_find_ie_match(u8 eid, const u8 *ies, unsigned int len,
6276		       const u8 *match, unsigned int match_len,
6277		       unsigned int match_offset)
6278{
6279	/* match_offset can't be smaller than 2, unless match_len is
6280	 * zero, in which case match_offset must be zero as well.
6281	 */
6282	if (WARN_ON((match_len && match_offset < 2) ||
6283		    (!match_len && match_offset)))
6284		return NULL;
6285
6286	return (const void *)cfg80211_find_elem_match(eid, ies, len,
6287						      match, match_len,
6288						      match_offset ?
6289							match_offset - 2 : 0);
6290}
6291
6292/**
6293 * cfg80211_find_elem - find information element in data
6294 *
6295 * @eid: element ID
6296 * @ies: data consisting of IEs
6297 * @len: length of data
6298 *
6299 * Return: %NULL if the element ID could not be found or if
6300 * the element is invalid (claims to be longer than the given
6301 * data) or if the byte array doesn't match; otherwise return the
6302 * requested element struct.
6303 *
6304 * Note: There are no checks on the element length other than
6305 * having to fit into the given data.
6306 */
6307static inline const struct element *
6308cfg80211_find_elem(u8 eid, const u8 *ies, int len)
6309{
6310	return cfg80211_find_elem_match(eid, ies, len, NULL, 0, 0);
6311}
6312
6313/**
6314 * cfg80211_find_ie - find information element in data
6315 *
6316 * @eid: element ID
6317 * @ies: data consisting of IEs
6318 * @len: length of data
6319 *
6320 * Return: %NULL if the element ID could not be found or if
6321 * the element is invalid (claims to be longer than the given
6322 * data), or a pointer to the first byte of the requested
6323 * element, that is the byte containing the element ID.
6324 *
6325 * Note: There are no checks on the element length other than
6326 * having to fit into the given data.
6327 */
6328static inline const u8 *cfg80211_find_ie(u8 eid, const u8 *ies, int len)
6329{
6330	return cfg80211_find_ie_match(eid, ies, len, NULL, 0, 0);
6331}
6332
6333/**
6334 * cfg80211_find_ext_elem - find information element with EID Extension in data
6335 *
6336 * @ext_eid: element ID Extension
6337 * @ies: data consisting of IEs
6338 * @len: length of data
6339 *
6340 * Return: %NULL if the etended element could not be found or if
6341 * the element is invalid (claims to be longer than the given
6342 * data) or if the byte array doesn't match; otherwise return the
6343 * requested element struct.
6344 *
6345 * Note: There are no checks on the element length other than
6346 * having to fit into the given data.
6347 */
6348static inline const struct element *
6349cfg80211_find_ext_elem(u8 ext_eid, const u8 *ies, int len)
6350{
6351	return cfg80211_find_elem_match(WLAN_EID_EXTENSION, ies, len,
6352					&ext_eid, 1, 0);
6353}
6354
6355/**
6356 * cfg80211_find_ext_ie - find information element with EID Extension in data
6357 *
6358 * @ext_eid: element ID Extension
6359 * @ies: data consisting of IEs
6360 * @len: length of data
6361 *
6362 * Return: %NULL if the extended element ID could not be found or if
6363 * the element is invalid (claims to be longer than the given
6364 * data), or a pointer to the first byte of the requested
6365 * element, that is the byte containing the element ID.
6366 *
6367 * Note: There are no checks on the element length other than
6368 * having to fit into the given data.
6369 */
6370static inline const u8 *cfg80211_find_ext_ie(u8 ext_eid, const u8 *ies, int len)
6371{
6372	return cfg80211_find_ie_match(WLAN_EID_EXTENSION, ies, len,
6373				      &ext_eid, 1, 2);
6374}
6375
6376/**
6377 * cfg80211_find_vendor_elem - find vendor specific information element in data
6378 *
6379 * @oui: vendor OUI
6380 * @oui_type: vendor-specific OUI type (must be < 0xff), negative means any
6381 * @ies: data consisting of IEs
6382 * @len: length of data
6383 *
6384 * Return: %NULL if the vendor specific element ID could not be found or if the
6385 * element is invalid (claims to be longer than the given data); otherwise
6386 * return the element structure for the requested element.
6387 *
6388 * Note: There are no checks on the element length other than having to fit into
6389 * the given data.
6390 */
6391const struct element *cfg80211_find_vendor_elem(unsigned int oui, int oui_type,
6392						const u8 *ies,
6393						unsigned int len);
6394
6395/**
6396 * cfg80211_find_vendor_ie - find vendor specific information element in data
6397 *
6398 * @oui: vendor OUI
6399 * @oui_type: vendor-specific OUI type (must be < 0xff), negative means any
6400 * @ies: data consisting of IEs
6401 * @len: length of data
6402 *
6403 * Return: %NULL if the vendor specific element ID could not be found or if the
6404 * element is invalid (claims to be longer than the given data), or a pointer to
6405 * the first byte of the requested element, that is the byte containing the
6406 * element ID.
6407 *
6408 * Note: There are no checks on the element length other than having to fit into
6409 * the given data.
6410 */
6411static inline const u8 *
6412cfg80211_find_vendor_ie(unsigned int oui, int oui_type,
6413			const u8 *ies, unsigned int len)
6414{
6415	return (const void *)cfg80211_find_vendor_elem(oui, oui_type, ies, len);
6416}
6417
6418/**
6419 * cfg80211_send_layer2_update - send layer 2 update frame
6420 *
6421 * @dev: network device
6422 * @addr: STA MAC address
6423 *
6424 * Wireless drivers can use this function to update forwarding tables in bridge
6425 * devices upon STA association.
6426 */
6427void cfg80211_send_layer2_update(struct net_device *dev, const u8 *addr);
6428
6429/**
6430 * DOC: Regulatory enforcement infrastructure
6431 *
6432 * TODO
6433 */
6434
6435/**
6436 * regulatory_hint - driver hint to the wireless core a regulatory domain
6437 * @wiphy: the wireless device giving the hint (used only for reporting
6438 *	conflicts)
6439 * @alpha2: the ISO/IEC 3166 alpha2 the driver claims its regulatory domain
6440 *	should be in. If @rd is set this should be NULL. Note that if you
6441 *	set this to NULL you should still set rd->alpha2 to some accepted
6442 *	alpha2.
6443 *
6444 * Wireless drivers can use this function to hint to the wireless core
6445 * what it believes should be the current regulatory domain by
6446 * giving it an ISO/IEC 3166 alpha2 country code it knows its regulatory
6447 * domain should be in or by providing a completely build regulatory domain.
6448 * If the driver provides an ISO/IEC 3166 alpha2 userspace will be queried
6449 * for a regulatory domain structure for the respective country.
6450 *
6451 * The wiphy must have been registered to cfg80211 prior to this call.
6452 * For cfg80211 drivers this means you must first use wiphy_register(),
6453 * for mac80211 drivers you must first use ieee80211_register_hw().
6454 *
6455 * Drivers should check the return value, its possible you can get
6456 * an -ENOMEM.
6457 *
6458 * Return: 0 on success. -ENOMEM.
6459 */
6460int regulatory_hint(struct wiphy *wiphy, const char *alpha2);
6461
6462/**
6463 * regulatory_set_wiphy_regd - set regdom info for self managed drivers
6464 * @wiphy: the wireless device we want to process the regulatory domain on
6465 * @rd: the regulatory domain informatoin to use for this wiphy
6466 *
6467 * Set the regulatory domain information for self-managed wiphys, only they
6468 * may use this function. See %REGULATORY_WIPHY_SELF_MANAGED for more
6469 * information.
6470 *
6471 * Return: 0 on success. -EINVAL, -EPERM
6472 */
6473int regulatory_set_wiphy_regd(struct wiphy *wiphy,
6474			      struct ieee80211_regdomain *rd);
6475
6476/**
6477 * regulatory_set_wiphy_regd_sync - set regdom for self-managed drivers
6478 * @wiphy: the wireless device we want to process the regulatory domain on
6479 * @rd: the regulatory domain information to use for this wiphy
6480 *
6481 * This functions requires the RTNL and the wiphy mutex to be held and
6482 * applies the new regdomain synchronously to this wiphy. For more details
6483 * see regulatory_set_wiphy_regd().
6484 *
6485 * Return: 0 on success. -EINVAL, -EPERM
6486 */
6487int regulatory_set_wiphy_regd_sync(struct wiphy *wiphy,
6488				   struct ieee80211_regdomain *rd);
6489
6490/**
6491 * wiphy_apply_custom_regulatory - apply a custom driver regulatory domain
6492 * @wiphy: the wireless device we want to process the regulatory domain on
6493 * @regd: the custom regulatory domain to use for this wiphy
6494 *
6495 * Drivers can sometimes have custom regulatory domains which do not apply
6496 * to a specific country. Drivers can use this to apply such custom regulatory
6497 * domains. This routine must be called prior to wiphy registration. The
6498 * custom regulatory domain will be trusted completely and as such previous
6499 * default channel settings will be disregarded. If no rule is found for a
6500 * channel on the regulatory domain the channel will be disabled.
6501 * Drivers using this for a wiphy should also set the wiphy flag
6502 * REGULATORY_CUSTOM_REG or cfg80211 will set it for the wiphy
6503 * that called this helper.
6504 */
6505void wiphy_apply_custom_regulatory(struct wiphy *wiphy,
6506				   const struct ieee80211_regdomain *regd);
6507
6508/**
6509 * freq_reg_info - get regulatory information for the given frequency
6510 * @wiphy: the wiphy for which we want to process this rule for
6511 * @center_freq: Frequency in KHz for which we want regulatory information for
6512 *
6513 * Use this function to get the regulatory rule for a specific frequency on
6514 * a given wireless device. If the device has a specific regulatory domain
6515 * it wants to follow we respect that unless a country IE has been received
6516 * and processed already.
6517 *
6518 * Return: A valid pointer, or, when an error occurs, for example if no rule
6519 * can be found, the return value is encoded using ERR_PTR(). Use IS_ERR() to
6520 * check and PTR_ERR() to obtain the numeric return value. The numeric return
6521 * value will be -ERANGE if we determine the given center_freq does not even
6522 * have a regulatory rule for a frequency range in the center_freq's band.
6523 * See freq_in_rule_band() for our current definition of a band -- this is
6524 * purely subjective and right now it's 802.11 specific.
6525 */
6526const struct ieee80211_reg_rule *freq_reg_info(struct wiphy *wiphy,
6527					       u32 center_freq);
6528
6529/**
6530 * reg_initiator_name - map regulatory request initiator enum to name
6531 * @initiator: the regulatory request initiator
6532 *
6533 * You can use this to map the regulatory request initiator enum to a
6534 * proper string representation.
6535 */
6536const char *reg_initiator_name(enum nl80211_reg_initiator initiator);
6537
6538/**
6539 * regulatory_pre_cac_allowed - check if pre-CAC allowed in the current regdom
6540 * @wiphy: wiphy for which pre-CAC capability is checked.
6541 *
6542 * Pre-CAC is allowed only in some regdomains (notable ETSI).
6543 */
6544bool regulatory_pre_cac_allowed(struct wiphy *wiphy);
6545
6546/**
6547 * DOC: Internal regulatory db functions
6548 *
6549 */
6550
6551/**
6552 * reg_query_regdb_wmm -  Query internal regulatory db for wmm rule
6553 * Regulatory self-managed driver can use it to proactively
6554 *
6555 * @alpha2: the ISO/IEC 3166 alpha2 wmm rule to be queried.
6556 * @freq: the freqency(in MHz) to be queried.
6557 * @rule: pointer to store the wmm rule from the regulatory db.
6558 *
6559 * Self-managed wireless drivers can use this function to  query
6560 * the internal regulatory database to check whether the given
6561 * ISO/IEC 3166 alpha2 country and freq have wmm rule limitations.
6562 *
6563 * Drivers should check the return value, its possible you can get
6564 * an -ENODATA.
6565 *
6566 * Return: 0 on success. -ENODATA.
6567 */
6568int reg_query_regdb_wmm(char *alpha2, int freq,
6569			struct ieee80211_reg_rule *rule);
6570
6571/*
6572 * callbacks for asynchronous cfg80211 methods, notification
6573 * functions and BSS handling helpers
6574 */
6575
6576/**
6577 * cfg80211_scan_done - notify that scan finished
6578 *
6579 * @request: the corresponding scan request
6580 * @info: information about the completed scan
6581 */
6582void cfg80211_scan_done(struct cfg80211_scan_request *request,
6583			struct cfg80211_scan_info *info);
6584
6585/**
6586 * cfg80211_sched_scan_results - notify that new scan results are available
6587 *
6588 * @wiphy: the wiphy which got scheduled scan results
6589 * @reqid: identifier for the related scheduled scan request
6590 */
6591void cfg80211_sched_scan_results(struct wiphy *wiphy, u64 reqid);
6592
6593/**
6594 * cfg80211_sched_scan_stopped - notify that the scheduled scan has stopped
6595 *
6596 * @wiphy: the wiphy on which the scheduled scan stopped
6597 * @reqid: identifier for the related scheduled scan request
6598 *
6599 * The driver can call this function to inform cfg80211 that the
6600 * scheduled scan had to be stopped, for whatever reason.  The driver
6601 * is then called back via the sched_scan_stop operation when done.
6602 */
6603void cfg80211_sched_scan_stopped(struct wiphy *wiphy, u64 reqid);
6604
6605/**
6606 * cfg80211_sched_scan_stopped_locked - notify that the scheduled scan has stopped
6607 *
6608 * @wiphy: the wiphy on which the scheduled scan stopped
6609 * @reqid: identifier for the related scheduled scan request
6610 *
6611 * The driver can call this function to inform cfg80211 that the
6612 * scheduled scan had to be stopped, for whatever reason.  The driver
6613 * is then called back via the sched_scan_stop operation when done.
6614 * This function should be called with the wiphy mutex held.
6615 */
6616void cfg80211_sched_scan_stopped_locked(struct wiphy *wiphy, u64 reqid);
6617
6618/**
6619 * cfg80211_inform_bss_frame_data - inform cfg80211 of a received BSS frame
6620 * @wiphy: the wiphy reporting the BSS
6621 * @data: the BSS metadata
6622 * @mgmt: the management frame (probe response or beacon)
6623 * @len: length of the management frame
6624 * @gfp: context flags
6625 *
6626 * This informs cfg80211 that BSS information was found and
6627 * the BSS should be updated/added.
6628 *
6629 * Return: A referenced struct, must be released with cfg80211_put_bss()!
6630 * Or %NULL on error.
6631 */
6632struct cfg80211_bss * __must_check
6633cfg80211_inform_bss_frame_data(struct wiphy *wiphy,
6634			       struct cfg80211_inform_bss *data,
6635			       struct ieee80211_mgmt *mgmt, size_t len,
6636			       gfp_t gfp);
6637
6638static inline struct cfg80211_bss * __must_check
6639cfg80211_inform_bss_width_frame(struct wiphy *wiphy,
6640				struct ieee80211_channel *rx_channel,
6641				enum nl80211_bss_scan_width scan_width,
6642				struct ieee80211_mgmt *mgmt, size_t len,
6643				s32 signal, gfp_t gfp)
6644{
6645	struct cfg80211_inform_bss data = {
6646		.chan = rx_channel,
6647		.scan_width = scan_width,
6648		.signal = signal,
6649	};
6650
6651	return cfg80211_inform_bss_frame_data(wiphy, &data, mgmt, len, gfp);
6652}
6653
6654static inline struct cfg80211_bss * __must_check
6655cfg80211_inform_bss_frame(struct wiphy *wiphy,
6656			  struct ieee80211_channel *rx_channel,
6657			  struct ieee80211_mgmt *mgmt, size_t len,
6658			  s32 signal, gfp_t gfp)
6659{
6660	struct cfg80211_inform_bss data = {
6661		.chan = rx_channel,
6662		.scan_width = NL80211_BSS_CHAN_WIDTH_20,
6663		.signal = signal,
6664	};
6665
6666	return cfg80211_inform_bss_frame_data(wiphy, &data, mgmt, len, gfp);
6667}
6668
6669/**
6670 * cfg80211_gen_new_bssid - generate a nontransmitted BSSID for multi-BSSID
6671 * @bssid: transmitter BSSID
6672 * @max_bssid: max BSSID indicator, taken from Multiple BSSID element
6673 * @mbssid_index: BSSID index, taken from Multiple BSSID index element
6674 * @new_bssid: calculated nontransmitted BSSID
6675 */
6676static inline void cfg80211_gen_new_bssid(const u8 *bssid, u8 max_bssid,
6677					  u8 mbssid_index, u8 *new_bssid)
6678{
6679	u64 bssid_u64 = ether_addr_to_u64(bssid);
6680	u64 mask = GENMASK_ULL(max_bssid - 1, 0);
6681	u64 new_bssid_u64;
6682
6683	new_bssid_u64 = bssid_u64 & ~mask;
6684
6685	new_bssid_u64 |= ((bssid_u64 & mask) + mbssid_index) & mask;
6686
6687	u64_to_ether_addr(new_bssid_u64, new_bssid);
6688}
6689
6690/**
6691 * cfg80211_is_element_inherited - returns if element ID should be inherited
6692 * @element: element to check
6693 * @non_inherit_element: non inheritance element
6694 */
6695bool cfg80211_is_element_inherited(const struct element *element,
6696				   const struct element *non_inherit_element);
6697
6698/**
6699 * cfg80211_merge_profile - merges a MBSSID profile if it is split between IEs
6700 * @ie: ies
6701 * @ielen: length of IEs
6702 * @mbssid_elem: current MBSSID element
6703 * @sub_elem: current MBSSID subelement (profile)
6704 * @merged_ie: location of the merged profile
6705 * @max_copy_len: max merged profile length
6706 */
6707size_t cfg80211_merge_profile(const u8 *ie, size_t ielen,
6708			      const struct element *mbssid_elem,
6709			      const struct element *sub_elem,
6710			      u8 *merged_ie, size_t max_copy_len);
6711
6712/**
6713 * enum cfg80211_bss_frame_type - frame type that the BSS data came from
6714 * @CFG80211_BSS_FTYPE_UNKNOWN: driver doesn't know whether the data is
6715 *	from a beacon or probe response
6716 * @CFG80211_BSS_FTYPE_BEACON: data comes from a beacon
6717 * @CFG80211_BSS_FTYPE_PRESP: data comes from a probe response
6718 */
6719enum cfg80211_bss_frame_type {
6720	CFG80211_BSS_FTYPE_UNKNOWN,
6721	CFG80211_BSS_FTYPE_BEACON,
6722	CFG80211_BSS_FTYPE_PRESP,
6723};
6724
6725/**
6726 * cfg80211_get_ies_channel_number - returns the channel number from ies
6727 * @ie: IEs
6728 * @ielen: length of IEs
6729 * @band: enum nl80211_band of the channel
6730 * @ftype: frame type
6731 *
6732 * Returns the channel number, or -1 if none could be determined.
6733 */
6734int cfg80211_get_ies_channel_number(const u8 *ie, size_t ielen,
6735				    enum nl80211_band band,
6736				    enum cfg80211_bss_frame_type ftype);
6737
6738/**
6739 * cfg80211_inform_bss_data - inform cfg80211 of a new BSS
6740 *
6741 * @wiphy: the wiphy reporting the BSS
6742 * @data: the BSS metadata
6743 * @ftype: frame type (if known)
6744 * @bssid: the BSSID of the BSS
6745 * @tsf: the TSF sent by the peer in the beacon/probe response (or 0)
6746 * @capability: the capability field sent by the peer
6747 * @beacon_interval: the beacon interval announced by the peer
6748 * @ie: additional IEs sent by the peer
6749 * @ielen: length of the additional IEs
6750 * @gfp: context flags
6751 *
6752 * This informs cfg80211 that BSS information was found and
6753 * the BSS should be updated/added.
6754 *
6755 * Return: A referenced struct, must be released with cfg80211_put_bss()!
6756 * Or %NULL on error.
6757 */
6758struct cfg80211_bss * __must_check
6759cfg80211_inform_bss_data(struct wiphy *wiphy,
6760			 struct cfg80211_inform_bss *data,
6761			 enum cfg80211_bss_frame_type ftype,
6762			 const u8 *bssid, u64 tsf, u16 capability,
6763			 u16 beacon_interval, const u8 *ie, size_t ielen,
6764			 gfp_t gfp);
6765
6766static inline struct cfg80211_bss * __must_check
6767cfg80211_inform_bss_width(struct wiphy *wiphy,
6768			  struct ieee80211_channel *rx_channel,
6769			  enum nl80211_bss_scan_width scan_width,
6770			  enum cfg80211_bss_frame_type ftype,
6771			  const u8 *bssid, u64 tsf, u16 capability,
6772			  u16 beacon_interval, const u8 *ie, size_t ielen,
6773			  s32 signal, gfp_t gfp)
6774{
6775	struct cfg80211_inform_bss data = {
6776		.chan = rx_channel,
6777		.scan_width = scan_width,
6778		.signal = signal,
6779	};
6780
6781	return cfg80211_inform_bss_data(wiphy, &data, ftype, bssid, tsf,
6782					capability, beacon_interval, ie, ielen,
6783					gfp);
6784}
6785
6786static inline struct cfg80211_bss * __must_check
6787cfg80211_inform_bss(struct wiphy *wiphy,
6788		    struct ieee80211_channel *rx_channel,
6789		    enum cfg80211_bss_frame_type ftype,
6790		    const u8 *bssid, u64 tsf, u16 capability,
6791		    u16 beacon_interval, const u8 *ie, size_t ielen,
6792		    s32 signal, gfp_t gfp)
6793{
6794	struct cfg80211_inform_bss data = {
6795		.chan = rx_channel,
6796		.scan_width = NL80211_BSS_CHAN_WIDTH_20,
6797		.signal = signal,
6798	};
6799
6800	return cfg80211_inform_bss_data(wiphy, &data, ftype, bssid, tsf,
6801					capability, beacon_interval, ie, ielen,
6802					gfp);
6803}
6804
6805/**
6806 * cfg80211_get_bss - get a BSS reference
6807 * @wiphy: the wiphy this BSS struct belongs to
6808 * @channel: the channel to search on (or %NULL)
6809 * @bssid: the desired BSSID (or %NULL)
6810 * @ssid: the desired SSID (or %NULL)
6811 * @ssid_len: length of the SSID (or 0)
6812 * @bss_type: type of BSS, see &enum ieee80211_bss_type
6813 * @privacy: privacy filter, see &enum ieee80211_privacy
6814 */
6815struct cfg80211_bss *cfg80211_get_bss(struct wiphy *wiphy,
6816				      struct ieee80211_channel *channel,
6817				      const u8 *bssid,
6818				      const u8 *ssid, size_t ssid_len,
6819				      enum ieee80211_bss_type bss_type,
6820				      enum ieee80211_privacy privacy);
6821static inline struct cfg80211_bss *
6822cfg80211_get_ibss(struct wiphy *wiphy,
6823		  struct ieee80211_channel *channel,
6824		  const u8 *ssid, size_t ssid_len)
6825{
6826	return cfg80211_get_bss(wiphy, channel, NULL, ssid, ssid_len,
6827				IEEE80211_BSS_TYPE_IBSS,
6828				IEEE80211_PRIVACY_ANY);
6829}
6830
6831/**
6832 * cfg80211_ref_bss - reference BSS struct
6833 * @wiphy: the wiphy this BSS struct belongs to
6834 * @bss: the BSS struct to reference
6835 *
6836 * Increments the refcount of the given BSS struct.
6837 */
6838void cfg80211_ref_bss(struct wiphy *wiphy, struct cfg80211_bss *bss);
6839
6840/**
6841 * cfg80211_put_bss - unref BSS struct
6842 * @wiphy: the wiphy this BSS struct belongs to
6843 * @bss: the BSS struct
6844 *
6845 * Decrements the refcount of the given BSS struct.
6846 */
6847void cfg80211_put_bss(struct wiphy *wiphy, struct cfg80211_bss *bss);
6848
6849/**
6850 * cfg80211_unlink_bss - unlink BSS from internal data structures
6851 * @wiphy: the wiphy
6852 * @bss: the bss to remove
6853 *
6854 * This function removes the given BSS from the internal data structures
6855 * thereby making it no longer show up in scan results etc. Use this
6856 * function when you detect a BSS is gone. Normally BSSes will also time
6857 * out, so it is not necessary to use this function at all.
6858 */
6859void cfg80211_unlink_bss(struct wiphy *wiphy, struct cfg80211_bss *bss);
6860
6861/**
6862 * cfg80211_bss_iter - iterate all BSS entries
6863 *
6864 * This function iterates over the BSS entries associated with the given wiphy
6865 * and calls the callback for the iterated BSS. The iterator function is not
6866 * allowed to call functions that might modify the internal state of the BSS DB.
6867 *
6868 * @wiphy: the wiphy
6869 * @chandef: if given, the iterator function will be called only if the channel
6870 *     of the currently iterated BSS is a subset of the given channel.
6871 * @iter: the iterator function to call
6872 * @iter_data: an argument to the iterator function
6873 */
6874void cfg80211_bss_iter(struct wiphy *wiphy,
6875		       struct cfg80211_chan_def *chandef,
6876		       void (*iter)(struct wiphy *wiphy,
6877				    struct cfg80211_bss *bss,
6878				    void *data),
6879		       void *iter_data);
6880
6881static inline enum nl80211_bss_scan_width
6882cfg80211_chandef_to_scan_width(const struct cfg80211_chan_def *chandef)
6883{
6884	switch (chandef->width) {
6885	case NL80211_CHAN_WIDTH_5:
6886		return NL80211_BSS_CHAN_WIDTH_5;
6887	case NL80211_CHAN_WIDTH_10:
6888		return NL80211_BSS_CHAN_WIDTH_10;
6889	default:
6890		return NL80211_BSS_CHAN_WIDTH_20;
6891	}
6892}
6893
6894/**
6895 * cfg80211_rx_mlme_mgmt - notification of processed MLME management frame
6896 * @dev: network device
6897 * @buf: authentication frame (header + body)
6898 * @len: length of the frame data
6899 *
6900 * This function is called whenever an authentication, disassociation or
6901 * deauthentication frame has been received and processed in station mode.
6902 * After being asked to authenticate via cfg80211_ops::auth() the driver must
6903 * call either this function or cfg80211_auth_timeout().
6904 * After being asked to associate via cfg80211_ops::assoc() the driver must
6905 * call either this function or cfg80211_auth_timeout().
6906 * While connected, the driver must calls this for received and processed
6907 * disassociation and deauthentication frames. If the frame couldn't be used
6908 * because it was unprotected, the driver must call the function
6909 * cfg80211_rx_unprot_mlme_mgmt() instead.
6910 *
6911 * This function may sleep. The caller must hold the corresponding wdev's mutex.
6912 */
6913void cfg80211_rx_mlme_mgmt(struct net_device *dev, const u8 *buf, size_t len);
6914
6915/**
6916 * cfg80211_auth_timeout - notification of timed out authentication
6917 * @dev: network device
6918 * @addr: The MAC address of the device with which the authentication timed out
6919 *
6920 * This function may sleep. The caller must hold the corresponding wdev's
6921 * mutex.
6922 */
6923void cfg80211_auth_timeout(struct net_device *dev, const u8 *addr);
6924
6925/**
6926 * struct cfg80211_rx_assoc_resp - association response data
 
6927 * @bss: the BSS that association was requested with, ownership of the pointer
6928 *	moves to cfg80211 in the call to cfg80211_rx_assoc_resp()
6929 * @buf: (Re)Association Response frame (header + body)
6930 * @len: length of the frame data
6931 * @uapsd_queues: bitmap of queues configured for uapsd. Same format
6932 *	as the AC bitmap in the QoS info field
6933 * @req_ies: information elements from the (Re)Association Request frame
6934 * @req_ies_len: length of req_ies data
6935 * @ap_mld_addr: AP MLD address (in case of MLO)
6936 * @links: per-link information indexed by link ID, use links[0] for
6937 *	non-MLO connections
6938 * @links.status: Set this (along with a BSS pointer) for links that
6939 *	were rejected by the AP.
6940 */
6941struct cfg80211_rx_assoc_resp {
6942	const u8 *buf;
6943	size_t len;
6944	const u8 *req_ies;
6945	size_t req_ies_len;
6946	int uapsd_queues;
6947	const u8 *ap_mld_addr;
6948	struct {
6949		const u8 *addr;
6950		struct cfg80211_bss *bss;
6951		u16 status;
6952	} links[IEEE80211_MLD_MAX_NUM_LINKS];
6953};
6954
6955/**
6956 * cfg80211_rx_assoc_resp - notification of processed association response
6957 * @dev: network device
6958 * @data: association response data, &struct cfg80211_rx_assoc_resp
6959 *
6960 * After being asked to associate via cfg80211_ops::assoc() the driver must
6961 * call either this function or cfg80211_auth_timeout().
6962 *
6963 * This function may sleep. The caller must hold the corresponding wdev's mutex.
6964 */
6965void cfg80211_rx_assoc_resp(struct net_device *dev,
6966			    struct cfg80211_rx_assoc_resp *data);
 
 
 
6967
6968/**
6969 * struct cfg80211_assoc_failure - association failure data
6970 * @ap_mld_addr: AP MLD address, or %NULL
6971 * @bss: list of BSSes, must use entry 0 for non-MLO connections
6972 *	(@ap_mld_addr is %NULL)
6973 * @timeout: indicates the association failed due to timeout, otherwise
6974 *	the association was abandoned for a reason reported through some
6975 *	other API (e.g. deauth RX)
6976 */
6977struct cfg80211_assoc_failure {
6978	const u8 *ap_mld_addr;
6979	struct cfg80211_bss *bss[IEEE80211_MLD_MAX_NUM_LINKS];
6980	bool timeout;
6981};
6982
6983/**
6984 * cfg80211_assoc_failure - notification of association failure
6985 * @dev: network device
6986 * @data: data describing the association failure
6987 *
 
 
6988 * This function may sleep. The caller must hold the corresponding wdev's mutex.
6989 */
6990void cfg80211_assoc_failure(struct net_device *dev,
6991			    struct cfg80211_assoc_failure *data);
6992
6993/**
6994 * cfg80211_tx_mlme_mgmt - notification of transmitted deauth/disassoc frame
6995 * @dev: network device
6996 * @buf: 802.11 frame (header + body)
6997 * @len: length of the frame data
6998 * @reconnect: immediate reconnect is desired (include the nl80211 attribute)
6999 *
7000 * This function is called whenever deauthentication has been processed in
7001 * station mode. This includes both received deauthentication frames and
7002 * locally generated ones. This function may sleep. The caller must hold the
7003 * corresponding wdev's mutex.
7004 */
7005void cfg80211_tx_mlme_mgmt(struct net_device *dev, const u8 *buf, size_t len,
7006			   bool reconnect);
7007
7008/**
7009 * cfg80211_rx_unprot_mlme_mgmt - notification of unprotected mlme mgmt frame
7010 * @dev: network device
7011 * @buf: received management frame (header + body)
7012 * @len: length of the frame data
7013 *
7014 * This function is called whenever a received deauthentication or dissassoc
7015 * frame has been dropped in station mode because of MFP being used but the
7016 * frame was not protected. This is also used to notify reception of a Beacon
7017 * frame that was dropped because it did not include a valid MME MIC while
7018 * beacon protection was enabled (BIGTK configured in station mode).
7019 *
7020 * This function may sleep.
7021 */
7022void cfg80211_rx_unprot_mlme_mgmt(struct net_device *dev,
7023				  const u8 *buf, size_t len);
7024
7025/**
7026 * cfg80211_michael_mic_failure - notification of Michael MIC failure (TKIP)
7027 * @dev: network device
7028 * @addr: The source MAC address of the frame
7029 * @key_type: The key type that the received frame used
7030 * @key_id: Key identifier (0..3). Can be -1 if missing.
7031 * @tsc: The TSC value of the frame that generated the MIC failure (6 octets)
7032 * @gfp: allocation flags
7033 *
7034 * This function is called whenever the local MAC detects a MIC failure in a
7035 * received frame. This matches with MLME-MICHAELMICFAILURE.indication()
7036 * primitive.
7037 */
7038void cfg80211_michael_mic_failure(struct net_device *dev, const u8 *addr,
7039				  enum nl80211_key_type key_type, int key_id,
7040				  const u8 *tsc, gfp_t gfp);
7041
7042/**
7043 * cfg80211_ibss_joined - notify cfg80211 that device joined an IBSS
7044 *
7045 * @dev: network device
7046 * @bssid: the BSSID of the IBSS joined
7047 * @channel: the channel of the IBSS joined
7048 * @gfp: allocation flags
7049 *
7050 * This function notifies cfg80211 that the device joined an IBSS or
7051 * switched to a different BSSID. Before this function can be called,
7052 * either a beacon has to have been received from the IBSS, or one of
7053 * the cfg80211_inform_bss{,_frame} functions must have been called
7054 * with the locally generated beacon -- this guarantees that there is
7055 * always a scan result for this IBSS. cfg80211 will handle the rest.
7056 */
7057void cfg80211_ibss_joined(struct net_device *dev, const u8 *bssid,
7058			  struct ieee80211_channel *channel, gfp_t gfp);
7059
7060/**
7061 * cfg80211_notify_new_peer_candidate - notify cfg80211 of a new mesh peer
7062 * 					candidate
7063 *
7064 * @dev: network device
7065 * @macaddr: the MAC address of the new candidate
7066 * @ie: information elements advertised by the peer candidate
7067 * @ie_len: length of the information elements buffer
7068 * @sig_dbm: signal level in dBm
7069 * @gfp: allocation flags
7070 *
7071 * This function notifies cfg80211 that the mesh peer candidate has been
7072 * detected, most likely via a beacon or, less likely, via a probe response.
7073 * cfg80211 then sends a notification to userspace.
7074 */
7075void cfg80211_notify_new_peer_candidate(struct net_device *dev,
7076		const u8 *macaddr, const u8 *ie, u8 ie_len,
7077		int sig_dbm, gfp_t gfp);
7078
7079/**
7080 * DOC: RFkill integration
7081 *
7082 * RFkill integration in cfg80211 is almost invisible to drivers,
7083 * as cfg80211 automatically registers an rfkill instance for each
7084 * wireless device it knows about. Soft kill is also translated
7085 * into disconnecting and turning all interfaces off, drivers are
7086 * expected to turn off the device when all interfaces are down.
7087 *
7088 * However, devices may have a hard RFkill line, in which case they
7089 * also need to interact with the rfkill subsystem, via cfg80211.
7090 * They can do this with a few helper functions documented here.
7091 */
7092
7093/**
7094 * wiphy_rfkill_set_hw_state_reason - notify cfg80211 about hw block state
7095 * @wiphy: the wiphy
7096 * @blocked: block status
7097 * @reason: one of reasons in &enum rfkill_hard_block_reasons
7098 */
7099void wiphy_rfkill_set_hw_state_reason(struct wiphy *wiphy, bool blocked,
7100				      enum rfkill_hard_block_reasons reason);
7101
7102static inline void wiphy_rfkill_set_hw_state(struct wiphy *wiphy, bool blocked)
7103{
7104	wiphy_rfkill_set_hw_state_reason(wiphy, blocked,
7105					 RFKILL_HARD_BLOCK_SIGNAL);
7106}
7107
7108/**
7109 * wiphy_rfkill_start_polling - start polling rfkill
7110 * @wiphy: the wiphy
7111 */
7112void wiphy_rfkill_start_polling(struct wiphy *wiphy);
7113
7114/**
7115 * wiphy_rfkill_stop_polling - stop polling rfkill
7116 * @wiphy: the wiphy
7117 */
7118static inline void wiphy_rfkill_stop_polling(struct wiphy *wiphy)
7119{
7120	rfkill_pause_polling(wiphy->rfkill);
7121}
7122
7123/**
7124 * DOC: Vendor commands
7125 *
7126 * Occasionally, there are special protocol or firmware features that
7127 * can't be implemented very openly. For this and similar cases, the
7128 * vendor command functionality allows implementing the features with
7129 * (typically closed-source) userspace and firmware, using nl80211 as
7130 * the configuration mechanism.
7131 *
7132 * A driver supporting vendor commands must register them as an array
7133 * in struct wiphy, with handlers for each one, each command has an
7134 * OUI and sub command ID to identify it.
7135 *
7136 * Note that this feature should not be (ab)used to implement protocol
7137 * features that could openly be shared across drivers. In particular,
7138 * it must never be required to use vendor commands to implement any
7139 * "normal" functionality that higher-level userspace like connection
7140 * managers etc. need.
7141 */
7142
7143struct sk_buff *__cfg80211_alloc_reply_skb(struct wiphy *wiphy,
7144					   enum nl80211_commands cmd,
7145					   enum nl80211_attrs attr,
7146					   int approxlen);
7147
7148struct sk_buff *__cfg80211_alloc_event_skb(struct wiphy *wiphy,
7149					   struct wireless_dev *wdev,
7150					   enum nl80211_commands cmd,
7151					   enum nl80211_attrs attr,
7152					   unsigned int portid,
7153					   int vendor_event_idx,
7154					   int approxlen, gfp_t gfp);
7155
7156void __cfg80211_send_event_skb(struct sk_buff *skb, gfp_t gfp);
7157
7158/**
7159 * cfg80211_vendor_cmd_alloc_reply_skb - allocate vendor command reply
7160 * @wiphy: the wiphy
7161 * @approxlen: an upper bound of the length of the data that will
7162 *	be put into the skb
7163 *
7164 * This function allocates and pre-fills an skb for a reply to
7165 * a vendor command. Since it is intended for a reply, calling
7166 * it outside of a vendor command's doit() operation is invalid.
7167 *
7168 * The returned skb is pre-filled with some identifying data in
7169 * a way that any data that is put into the skb (with skb_put(),
7170 * nla_put() or similar) will end up being within the
7171 * %NL80211_ATTR_VENDOR_DATA attribute, so all that needs to be done
7172 * with the skb is adding data for the corresponding userspace tool
7173 * which can then read that data out of the vendor data attribute.
7174 * You must not modify the skb in any other way.
7175 *
7176 * When done, call cfg80211_vendor_cmd_reply() with the skb and return
7177 * its error code as the result of the doit() operation.
7178 *
7179 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
7180 */
7181static inline struct sk_buff *
7182cfg80211_vendor_cmd_alloc_reply_skb(struct wiphy *wiphy, int approxlen)
7183{
7184	return __cfg80211_alloc_reply_skb(wiphy, NL80211_CMD_VENDOR,
7185					  NL80211_ATTR_VENDOR_DATA, approxlen);
7186}
7187
7188/**
7189 * cfg80211_vendor_cmd_reply - send the reply skb
7190 * @skb: The skb, must have been allocated with
7191 *	cfg80211_vendor_cmd_alloc_reply_skb()
7192 *
7193 * Since calling this function will usually be the last thing
7194 * before returning from the vendor command doit() you should
7195 * return the error code.  Note that this function consumes the
7196 * skb regardless of the return value.
7197 *
7198 * Return: An error code or 0 on success.
7199 */
7200int cfg80211_vendor_cmd_reply(struct sk_buff *skb);
7201
7202/**
7203 * cfg80211_vendor_cmd_get_sender - get the current sender netlink ID
7204 * @wiphy: the wiphy
7205 *
7206 * Return the current netlink port ID in a vendor command handler.
7207 * Valid to call only there.
7208 */
7209unsigned int cfg80211_vendor_cmd_get_sender(struct wiphy *wiphy);
7210
7211/**
7212 * cfg80211_vendor_event_alloc - allocate vendor-specific event skb
7213 * @wiphy: the wiphy
7214 * @wdev: the wireless device
7215 * @event_idx: index of the vendor event in the wiphy's vendor_events
7216 * @approxlen: an upper bound of the length of the data that will
7217 *	be put into the skb
7218 * @gfp: allocation flags
7219 *
7220 * This function allocates and pre-fills an skb for an event on the
7221 * vendor-specific multicast group.
7222 *
7223 * If wdev != NULL, both the ifindex and identifier of the specified
7224 * wireless device are added to the event message before the vendor data
7225 * attribute.
7226 *
7227 * When done filling the skb, call cfg80211_vendor_event() with the
7228 * skb to send the event.
7229 *
7230 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
7231 */
7232static inline struct sk_buff *
7233cfg80211_vendor_event_alloc(struct wiphy *wiphy, struct wireless_dev *wdev,
7234			     int approxlen, int event_idx, gfp_t gfp)
7235{
7236	return __cfg80211_alloc_event_skb(wiphy, wdev, NL80211_CMD_VENDOR,
7237					  NL80211_ATTR_VENDOR_DATA,
7238					  0, event_idx, approxlen, gfp);
7239}
7240
7241/**
7242 * cfg80211_vendor_event_alloc_ucast - alloc unicast vendor-specific event skb
7243 * @wiphy: the wiphy
7244 * @wdev: the wireless device
7245 * @event_idx: index of the vendor event in the wiphy's vendor_events
7246 * @portid: port ID of the receiver
7247 * @approxlen: an upper bound of the length of the data that will
7248 *	be put into the skb
7249 * @gfp: allocation flags
7250 *
7251 * This function allocates and pre-fills an skb for an event to send to
7252 * a specific (userland) socket. This socket would previously have been
7253 * obtained by cfg80211_vendor_cmd_get_sender(), and the caller MUST take
7254 * care to register a netlink notifier to see when the socket closes.
7255 *
7256 * If wdev != NULL, both the ifindex and identifier of the specified
7257 * wireless device are added to the event message before the vendor data
7258 * attribute.
7259 *
7260 * When done filling the skb, call cfg80211_vendor_event() with the
7261 * skb to send the event.
7262 *
7263 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
7264 */
7265static inline struct sk_buff *
7266cfg80211_vendor_event_alloc_ucast(struct wiphy *wiphy,
7267				  struct wireless_dev *wdev,
7268				  unsigned int portid, int approxlen,
7269				  int event_idx, gfp_t gfp)
7270{
7271	return __cfg80211_alloc_event_skb(wiphy, wdev, NL80211_CMD_VENDOR,
7272					  NL80211_ATTR_VENDOR_DATA,
7273					  portid, event_idx, approxlen, gfp);
7274}
7275
7276/**
7277 * cfg80211_vendor_event - send the event
7278 * @skb: The skb, must have been allocated with cfg80211_vendor_event_alloc()
7279 * @gfp: allocation flags
7280 *
7281 * This function sends the given @skb, which must have been allocated
7282 * by cfg80211_vendor_event_alloc(), as an event. It always consumes it.
7283 */
7284static inline void cfg80211_vendor_event(struct sk_buff *skb, gfp_t gfp)
7285{
7286	__cfg80211_send_event_skb(skb, gfp);
7287}
7288
7289#ifdef CONFIG_NL80211_TESTMODE
7290/**
7291 * DOC: Test mode
7292 *
7293 * Test mode is a set of utility functions to allow drivers to
7294 * interact with driver-specific tools to aid, for instance,
7295 * factory programming.
7296 *
7297 * This chapter describes how drivers interact with it, for more
7298 * information see the nl80211 book's chapter on it.
7299 */
7300
7301/**
7302 * cfg80211_testmode_alloc_reply_skb - allocate testmode reply
7303 * @wiphy: the wiphy
7304 * @approxlen: an upper bound of the length of the data that will
7305 *	be put into the skb
7306 *
7307 * This function allocates and pre-fills an skb for a reply to
7308 * the testmode command. Since it is intended for a reply, calling
7309 * it outside of the @testmode_cmd operation is invalid.
7310 *
7311 * The returned skb is pre-filled with the wiphy index and set up in
7312 * a way that any data that is put into the skb (with skb_put(),
7313 * nla_put() or similar) will end up being within the
7314 * %NL80211_ATTR_TESTDATA attribute, so all that needs to be done
7315 * with the skb is adding data for the corresponding userspace tool
7316 * which can then read that data out of the testdata attribute. You
7317 * must not modify the skb in any other way.
7318 *
7319 * When done, call cfg80211_testmode_reply() with the skb and return
7320 * its error code as the result of the @testmode_cmd operation.
7321 *
7322 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
7323 */
7324static inline struct sk_buff *
7325cfg80211_testmode_alloc_reply_skb(struct wiphy *wiphy, int approxlen)
7326{
7327	return __cfg80211_alloc_reply_skb(wiphy, NL80211_CMD_TESTMODE,
7328					  NL80211_ATTR_TESTDATA, approxlen);
7329}
7330
7331/**
7332 * cfg80211_testmode_reply - send the reply skb
7333 * @skb: The skb, must have been allocated with
7334 *	cfg80211_testmode_alloc_reply_skb()
7335 *
7336 * Since calling this function will usually be the last thing
7337 * before returning from the @testmode_cmd you should return
7338 * the error code.  Note that this function consumes the skb
7339 * regardless of the return value.
7340 *
7341 * Return: An error code or 0 on success.
7342 */
7343static inline int cfg80211_testmode_reply(struct sk_buff *skb)
7344{
7345	return cfg80211_vendor_cmd_reply(skb);
7346}
7347
7348/**
7349 * cfg80211_testmode_alloc_event_skb - allocate testmode event
7350 * @wiphy: the wiphy
7351 * @approxlen: an upper bound of the length of the data that will
7352 *	be put into the skb
7353 * @gfp: allocation flags
7354 *
7355 * This function allocates and pre-fills an skb for an event on the
7356 * testmode multicast group.
7357 *
7358 * The returned skb is set up in the same way as with
7359 * cfg80211_testmode_alloc_reply_skb() but prepared for an event. As
7360 * there, you should simply add data to it that will then end up in the
7361 * %NL80211_ATTR_TESTDATA attribute. Again, you must not modify the skb
7362 * in any other way.
7363 *
7364 * When done filling the skb, call cfg80211_testmode_event() with the
7365 * skb to send the event.
7366 *
7367 * Return: An allocated and pre-filled skb. %NULL if any errors happen.
7368 */
7369static inline struct sk_buff *
7370cfg80211_testmode_alloc_event_skb(struct wiphy *wiphy, int approxlen, gfp_t gfp)
7371{
7372	return __cfg80211_alloc_event_skb(wiphy, NULL, NL80211_CMD_TESTMODE,
7373					  NL80211_ATTR_TESTDATA, 0, -1,
7374					  approxlen, gfp);
7375}
7376
7377/**
7378 * cfg80211_testmode_event - send the event
7379 * @skb: The skb, must have been allocated with
7380 *	cfg80211_testmode_alloc_event_skb()
7381 * @gfp: allocation flags
7382 *
7383 * This function sends the given @skb, which must have been allocated
7384 * by cfg80211_testmode_alloc_event_skb(), as an event. It always
7385 * consumes it.
7386 */
7387static inline void cfg80211_testmode_event(struct sk_buff *skb, gfp_t gfp)
7388{
7389	__cfg80211_send_event_skb(skb, gfp);
7390}
7391
7392#define CFG80211_TESTMODE_CMD(cmd)	.testmode_cmd = (cmd),
7393#define CFG80211_TESTMODE_DUMP(cmd)	.testmode_dump = (cmd),
7394#else
7395#define CFG80211_TESTMODE_CMD(cmd)
7396#define CFG80211_TESTMODE_DUMP(cmd)
7397#endif
7398
7399/**
7400 * struct cfg80211_fils_resp_params - FILS connection response params
7401 * @kek: KEK derived from a successful FILS connection (may be %NULL)
7402 * @kek_len: Length of @fils_kek in octets
7403 * @update_erp_next_seq_num: Boolean value to specify whether the value in
7404 *	@erp_next_seq_num is valid.
7405 * @erp_next_seq_num: The next sequence number to use in ERP message in
7406 *	FILS Authentication. This value should be specified irrespective of the
7407 *	status for a FILS connection.
7408 * @pmk: A new PMK if derived from a successful FILS connection (may be %NULL).
7409 * @pmk_len: Length of @pmk in octets
7410 * @pmkid: A new PMKID if derived from a successful FILS connection or the PMKID
7411 *	used for this FILS connection (may be %NULL).
7412 */
7413struct cfg80211_fils_resp_params {
7414	const u8 *kek;
7415	size_t kek_len;
7416	bool update_erp_next_seq_num;
7417	u16 erp_next_seq_num;
7418	const u8 *pmk;
7419	size_t pmk_len;
7420	const u8 *pmkid;
7421};
7422
7423/**
7424 * struct cfg80211_connect_resp_params - Connection response params
7425 * @status: Status code, %WLAN_STATUS_SUCCESS for successful connection, use
7426 *	%WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you
7427 *	the real status code for failures. If this call is used to report a
7428 *	failure due to a timeout (e.g., not receiving an Authentication frame
7429 *	from the AP) instead of an explicit rejection by the AP, -1 is used to
7430 *	indicate that this is a failure, but without a status code.
7431 *	@timeout_reason is used to report the reason for the timeout in that
7432 *	case.
 
 
 
 
 
 
 
7433 * @req_ie: Association request IEs (may be %NULL)
7434 * @req_ie_len: Association request IEs length
7435 * @resp_ie: Association response IEs (may be %NULL)
7436 * @resp_ie_len: Association response IEs length
7437 * @fils: FILS connection response parameters.
7438 * @timeout_reason: Reason for connection timeout. This is used when the
7439 *	connection fails due to a timeout instead of an explicit rejection from
7440 *	the AP. %NL80211_TIMEOUT_UNSPECIFIED is used when the timeout reason is
7441 *	not known. This value is used only if @status < 0 to indicate that the
7442 *	failure is due to a timeout and not due to explicit rejection by the AP.
7443 *	This value is ignored in other cases (@status >= 0).
7444 * @valid_links: For MLO connection, BIT mask of the valid link ids. Otherwise
7445 *	zero.
7446 * @ap_mld_addr: For MLO connection, MLD address of the AP. Otherwise %NULL.
7447 * @links : For MLO connection, contains link info for the valid links indicated
7448 *	using @valid_links. For non-MLO connection, links[0] contains the
7449 *	connected AP info.
7450 * @links.addr: For MLO connection, MAC address of the STA link. Otherwise
7451 *	%NULL.
7452 * @links.bssid: For MLO connection, MAC address of the AP link. For non-MLO
7453 *	connection, links[0].bssid points to the BSSID of the AP (may be %NULL).
7454 * @links.bss: For MLO connection, entry of bss to which STA link is connected.
7455 *	For non-MLO connection, links[0].bss points to entry of bss to which STA
7456 *	is connected. It can be obtained through cfg80211_get_bss() (may be
7457 *	%NULL). It is recommended to store the bss from the connect_request and
7458 *	hold a reference to it and return through this param to avoid a warning
7459 *	if the bss is expired during the connection, esp. for those drivers
7460 *	implementing connect op. Only one parameter among @bssid and @bss needs
7461 *	to be specified.
7462 * @links.status: per-link status code, to report a status code that's not
7463 *	%WLAN_STATUS_SUCCESS for a given link, it must also be in the
7464 *	@valid_links bitmap and may have a BSS pointer (which is then released)
7465 */
7466struct cfg80211_connect_resp_params {
7467	int status;
 
 
7468	const u8 *req_ie;
7469	size_t req_ie_len;
7470	const u8 *resp_ie;
7471	size_t resp_ie_len;
7472	struct cfg80211_fils_resp_params fils;
7473	enum nl80211_timeout_reason timeout_reason;
7474
7475	const u8 *ap_mld_addr;
7476	u16 valid_links;
7477	struct {
7478		const u8 *addr;
7479		const u8 *bssid;
7480		struct cfg80211_bss *bss;
7481		u16 status;
7482	} links[IEEE80211_MLD_MAX_NUM_LINKS];
7483};
7484
7485/**
7486 * cfg80211_connect_done - notify cfg80211 of connection result
7487 *
7488 * @dev: network device
7489 * @params: connection response parameters
7490 * @gfp: allocation flags
7491 *
7492 * It should be called by the underlying driver once execution of the connection
7493 * request from connect() has been completed. This is similar to
7494 * cfg80211_connect_bss(), but takes a structure pointer for connection response
7495 * parameters. Only one of the functions among cfg80211_connect_bss(),
7496 * cfg80211_connect_result(), cfg80211_connect_timeout(),
7497 * and cfg80211_connect_done() should be called.
7498 */
7499void cfg80211_connect_done(struct net_device *dev,
7500			   struct cfg80211_connect_resp_params *params,
7501			   gfp_t gfp);
7502
7503/**
7504 * cfg80211_connect_bss - notify cfg80211 of connection result
7505 *
7506 * @dev: network device
7507 * @bssid: the BSSID of the AP
7508 * @bss: Entry of bss to which STA got connected to, can be obtained through
7509 *	cfg80211_get_bss() (may be %NULL). But it is recommended to store the
7510 *	bss from the connect_request and hold a reference to it and return
7511 *	through this param to avoid a warning if the bss is expired during the
7512 *	connection, esp. for those drivers implementing connect op.
7513 *	Only one parameter among @bssid and @bss needs to be specified.
7514 * @req_ie: association request IEs (maybe be %NULL)
7515 * @req_ie_len: association request IEs length
7516 * @resp_ie: association response IEs (may be %NULL)
7517 * @resp_ie_len: assoc response IEs length
7518 * @status: status code, %WLAN_STATUS_SUCCESS for successful connection, use
7519 *	%WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you
7520 *	the real status code for failures. If this call is used to report a
7521 *	failure due to a timeout (e.g., not receiving an Authentication frame
7522 *	from the AP) instead of an explicit rejection by the AP, -1 is used to
7523 *	indicate that this is a failure, but without a status code.
7524 *	@timeout_reason is used to report the reason for the timeout in that
7525 *	case.
7526 * @gfp: allocation flags
7527 * @timeout_reason: reason for connection timeout. This is used when the
7528 *	connection fails due to a timeout instead of an explicit rejection from
7529 *	the AP. %NL80211_TIMEOUT_UNSPECIFIED is used when the timeout reason is
7530 *	not known. This value is used only if @status < 0 to indicate that the
7531 *	failure is due to a timeout and not due to explicit rejection by the AP.
7532 *	This value is ignored in other cases (@status >= 0).
7533 *
7534 * It should be called by the underlying driver once execution of the connection
7535 * request from connect() has been completed. This is similar to
7536 * cfg80211_connect_result(), but with the option of identifying the exact bss
7537 * entry for the connection. Only one of the functions among
7538 * cfg80211_connect_bss(), cfg80211_connect_result(),
7539 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called.
7540 */
7541static inline void
7542cfg80211_connect_bss(struct net_device *dev, const u8 *bssid,
7543		     struct cfg80211_bss *bss, const u8 *req_ie,
7544		     size_t req_ie_len, const u8 *resp_ie,
7545		     size_t resp_ie_len, int status, gfp_t gfp,
7546		     enum nl80211_timeout_reason timeout_reason)
7547{
7548	struct cfg80211_connect_resp_params params;
7549
7550	memset(&params, 0, sizeof(params));
7551	params.status = status;
7552	params.links[0].bssid = bssid;
7553	params.links[0].bss = bss;
7554	params.req_ie = req_ie;
7555	params.req_ie_len = req_ie_len;
7556	params.resp_ie = resp_ie;
7557	params.resp_ie_len = resp_ie_len;
7558	params.timeout_reason = timeout_reason;
7559
7560	cfg80211_connect_done(dev, &params, gfp);
7561}
7562
7563/**
7564 * cfg80211_connect_result - notify cfg80211 of connection result
7565 *
7566 * @dev: network device
7567 * @bssid: the BSSID of the AP
7568 * @req_ie: association request IEs (maybe be %NULL)
7569 * @req_ie_len: association request IEs length
7570 * @resp_ie: association response IEs (may be %NULL)
7571 * @resp_ie_len: assoc response IEs length
7572 * @status: status code, %WLAN_STATUS_SUCCESS for successful connection, use
7573 *	%WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you
7574 *	the real status code for failures.
7575 * @gfp: allocation flags
7576 *
7577 * It should be called by the underlying driver once execution of the connection
7578 * request from connect() has been completed. This is similar to
7579 * cfg80211_connect_bss() which allows the exact bss entry to be specified. Only
7580 * one of the functions among cfg80211_connect_bss(), cfg80211_connect_result(),
7581 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called.
7582 */
7583static inline void
7584cfg80211_connect_result(struct net_device *dev, const u8 *bssid,
7585			const u8 *req_ie, size_t req_ie_len,
7586			const u8 *resp_ie, size_t resp_ie_len,
7587			u16 status, gfp_t gfp)
7588{
7589	cfg80211_connect_bss(dev, bssid, NULL, req_ie, req_ie_len, resp_ie,
7590			     resp_ie_len, status, gfp,
7591			     NL80211_TIMEOUT_UNSPECIFIED);
7592}
7593
7594/**
7595 * cfg80211_connect_timeout - notify cfg80211 of connection timeout
7596 *
7597 * @dev: network device
7598 * @bssid: the BSSID of the AP
7599 * @req_ie: association request IEs (maybe be %NULL)
7600 * @req_ie_len: association request IEs length
7601 * @gfp: allocation flags
7602 * @timeout_reason: reason for connection timeout.
7603 *
7604 * It should be called by the underlying driver whenever connect() has failed
7605 * in a sequence where no explicit authentication/association rejection was
7606 * received from the AP. This could happen, e.g., due to not being able to send
7607 * out the Authentication or Association Request frame or timing out while
7608 * waiting for the response. Only one of the functions among
7609 * cfg80211_connect_bss(), cfg80211_connect_result(),
7610 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called.
7611 */
7612static inline void
7613cfg80211_connect_timeout(struct net_device *dev, const u8 *bssid,
7614			 const u8 *req_ie, size_t req_ie_len, gfp_t gfp,
7615			 enum nl80211_timeout_reason timeout_reason)
7616{
7617	cfg80211_connect_bss(dev, bssid, NULL, req_ie, req_ie_len, NULL, 0, -1,
7618			     gfp, timeout_reason);
7619}
7620
7621/**
7622 * struct cfg80211_roam_info - driver initiated roaming information
7623 *
 
 
 
7624 * @req_ie: association request IEs (maybe be %NULL)
7625 * @req_ie_len: association request IEs length
7626 * @resp_ie: association response IEs (may be %NULL)
7627 * @resp_ie_len: assoc response IEs length
7628 * @fils: FILS related roaming information.
7629 * @valid_links: For MLO roaming, BIT mask of the new valid links is set.
7630 *	Otherwise zero.
7631 * @ap_mld_addr: For MLO roaming, MLD address of the new AP. Otherwise %NULL.
7632 * @links : For MLO roaming, contains new link info for the valid links set in
7633 *	@valid_links. For non-MLO roaming, links[0] contains the new AP info.
7634 * @links.addr: For MLO roaming, MAC address of the STA link. Otherwise %NULL.
7635 * @links.bssid: For MLO roaming, MAC address of the new AP link. For non-MLO
7636 *	roaming, links[0].bssid points to the BSSID of the new AP. May be
7637 *	%NULL if %links.bss is set.
7638 * @links.channel: the channel of the new AP.
7639 * @links.bss: For MLO roaming, entry of new bss to which STA link got
7640 *	roamed. For non-MLO roaming, links[0].bss points to entry of bss to
7641 *	which STA got roamed (may be %NULL if %links.bssid is set)
7642 */
7643struct cfg80211_roam_info {
 
 
 
7644	const u8 *req_ie;
7645	size_t req_ie_len;
7646	const u8 *resp_ie;
7647	size_t resp_ie_len;
7648	struct cfg80211_fils_resp_params fils;
7649
7650	const u8 *ap_mld_addr;
7651	u16 valid_links;
7652	struct {
7653		const u8 *addr;
7654		const u8 *bssid;
7655		struct ieee80211_channel *channel;
7656		struct cfg80211_bss *bss;
7657	} links[IEEE80211_MLD_MAX_NUM_LINKS];
7658};
7659
7660/**
7661 * cfg80211_roamed - notify cfg80211 of roaming
7662 *
7663 * @dev: network device
7664 * @info: information about the new BSS. struct &cfg80211_roam_info.
7665 * @gfp: allocation flags
7666 *
7667 * This function may be called with the driver passing either the BSSID of the
7668 * new AP or passing the bss entry to avoid a race in timeout of the bss entry.
7669 * It should be called by the underlying driver whenever it roamed from one AP
7670 * to another while connected. Drivers which have roaming implemented in
7671 * firmware should pass the bss entry to avoid a race in bss entry timeout where
7672 * the bss entry of the new AP is seen in the driver, but gets timed out by the
7673 * time it is accessed in __cfg80211_roamed() due to delay in scheduling
7674 * rdev->event_work. In case of any failures, the reference is released
7675 * either in cfg80211_roamed() or in __cfg80211_romed(), Otherwise, it will be
7676 * released while disconnecting from the current bss.
7677 */
7678void cfg80211_roamed(struct net_device *dev, struct cfg80211_roam_info *info,
7679		     gfp_t gfp);
7680
7681/**
7682 * cfg80211_port_authorized - notify cfg80211 of successful security association
7683 *
7684 * @dev: network device
7685 * @bssid: the BSSID of the AP
7686 * @td_bitmap: transition disable policy
7687 * @td_bitmap_len: Length of transition disable policy
7688 * @gfp: allocation flags
7689 *
7690 * This function should be called by a driver that supports 4 way handshake
7691 * offload after a security association was successfully established (i.e.,
7692 * the 4 way handshake was completed successfully). The call to this function
7693 * should be preceded with a call to cfg80211_connect_result(),
7694 * cfg80211_connect_done(), cfg80211_connect_bss() or cfg80211_roamed() to
7695 * indicate the 802.11 association.
7696 */
7697void cfg80211_port_authorized(struct net_device *dev, const u8 *bssid,
7698			      const u8* td_bitmap, u8 td_bitmap_len, gfp_t gfp);
7699
7700/**
7701 * cfg80211_disconnected - notify cfg80211 that connection was dropped
7702 *
7703 * @dev: network device
7704 * @ie: information elements of the deauth/disassoc frame (may be %NULL)
7705 * @ie_len: length of IEs
7706 * @reason: reason code for the disconnection, set it to 0 if unknown
7707 * @locally_generated: disconnection was requested locally
7708 * @gfp: allocation flags
7709 *
7710 * After it calls this function, the driver should enter an idle state
7711 * and not try to connect to any AP any more.
7712 */
7713void cfg80211_disconnected(struct net_device *dev, u16 reason,
7714			   const u8 *ie, size_t ie_len,
7715			   bool locally_generated, gfp_t gfp);
7716
7717/**
7718 * cfg80211_ready_on_channel - notification of remain_on_channel start
7719 * @wdev: wireless device
7720 * @cookie: the request cookie
7721 * @chan: The current channel (from remain_on_channel request)
7722 * @duration: Duration in milliseconds that the driver intents to remain on the
7723 *	channel
7724 * @gfp: allocation flags
7725 */
7726void cfg80211_ready_on_channel(struct wireless_dev *wdev, u64 cookie,
7727			       struct ieee80211_channel *chan,
7728			       unsigned int duration, gfp_t gfp);
7729
7730/**
7731 * cfg80211_remain_on_channel_expired - remain_on_channel duration expired
7732 * @wdev: wireless device
7733 * @cookie: the request cookie
7734 * @chan: The current channel (from remain_on_channel request)
7735 * @gfp: allocation flags
7736 */
7737void cfg80211_remain_on_channel_expired(struct wireless_dev *wdev, u64 cookie,
7738					struct ieee80211_channel *chan,
7739					gfp_t gfp);
7740
7741/**
7742 * cfg80211_tx_mgmt_expired - tx_mgmt duration expired
7743 * @wdev: wireless device
7744 * @cookie: the requested cookie
7745 * @chan: The current channel (from tx_mgmt request)
7746 * @gfp: allocation flags
7747 */
7748void cfg80211_tx_mgmt_expired(struct wireless_dev *wdev, u64 cookie,
7749			      struct ieee80211_channel *chan, gfp_t gfp);
7750
7751/**
7752 * cfg80211_sinfo_alloc_tid_stats - allocate per-tid statistics.
7753 *
7754 * @sinfo: the station information
7755 * @gfp: allocation flags
7756 */
7757int cfg80211_sinfo_alloc_tid_stats(struct station_info *sinfo, gfp_t gfp);
7758
7759/**
7760 * cfg80211_sinfo_release_content - release contents of station info
7761 * @sinfo: the station information
7762 *
7763 * Releases any potentially allocated sub-information of the station
7764 * information, but not the struct itself (since it's typically on
7765 * the stack.)
7766 */
7767static inline void cfg80211_sinfo_release_content(struct station_info *sinfo)
7768{
7769	kfree(sinfo->pertid);
7770}
7771
7772/**
7773 * cfg80211_new_sta - notify userspace about station
7774 *
7775 * @dev: the netdev
7776 * @mac_addr: the station's address
7777 * @sinfo: the station information
7778 * @gfp: allocation flags
7779 */
7780void cfg80211_new_sta(struct net_device *dev, const u8 *mac_addr,
7781		      struct station_info *sinfo, gfp_t gfp);
7782
7783/**
7784 * cfg80211_del_sta_sinfo - notify userspace about deletion of a station
7785 * @dev: the netdev
7786 * @mac_addr: the station's address
7787 * @sinfo: the station information/statistics
7788 * @gfp: allocation flags
7789 */
7790void cfg80211_del_sta_sinfo(struct net_device *dev, const u8 *mac_addr,
7791			    struct station_info *sinfo, gfp_t gfp);
7792
7793/**
7794 * cfg80211_del_sta - notify userspace about deletion of a station
7795 *
7796 * @dev: the netdev
7797 * @mac_addr: the station's address
7798 * @gfp: allocation flags
7799 */
7800static inline void cfg80211_del_sta(struct net_device *dev,
7801				    const u8 *mac_addr, gfp_t gfp)
7802{
7803	cfg80211_del_sta_sinfo(dev, mac_addr, NULL, gfp);
7804}
7805
7806/**
7807 * cfg80211_conn_failed - connection request failed notification
7808 *
7809 * @dev: the netdev
7810 * @mac_addr: the station's address
7811 * @reason: the reason for connection failure
7812 * @gfp: allocation flags
7813 *
7814 * Whenever a station tries to connect to an AP and if the station
7815 * could not connect to the AP as the AP has rejected the connection
7816 * for some reasons, this function is called.
7817 *
7818 * The reason for connection failure can be any of the value from
7819 * nl80211_connect_failed_reason enum
7820 */
7821void cfg80211_conn_failed(struct net_device *dev, const u8 *mac_addr,
7822			  enum nl80211_connect_failed_reason reason,
7823			  gfp_t gfp);
7824
7825/**
7826 * struct cfg80211_rx_info - received management frame info
7827 *
7828 * @freq: Frequency on which the frame was received in kHz
7829 * @sig_dbm: signal strength in dBm, or 0 if unknown
7830 * @have_link_id: indicates the frame was received on a link of
7831 *	an MLD, i.e. the @link_id field is valid
7832 * @link_id: the ID of the link the frame was received	on
7833 * @buf: Management frame (header + body)
7834 * @len: length of the frame data
7835 * @flags: flags, as defined in enum nl80211_rxmgmt_flags
7836 * @rx_tstamp: Hardware timestamp of frame RX in nanoseconds
7837 * @ack_tstamp: Hardware timestamp of ack TX in nanoseconds
7838 */
7839struct cfg80211_rx_info {
7840	int freq;
7841	int sig_dbm;
7842	bool have_link_id;
7843	u8 link_id;
7844	const u8 *buf;
7845	size_t len;
7846	u32 flags;
7847	u64 rx_tstamp;
7848	u64 ack_tstamp;
7849};
7850
7851/**
7852 * cfg80211_rx_mgmt_ext - management frame notification with extended info
7853 * @wdev: wireless device receiving the frame
7854 * @info: RX info as defined in struct cfg80211_rx_info
7855 *
7856 * This function is called whenever an Action frame is received for a station
7857 * mode interface, but is not processed in kernel.
7858 *
7859 * Return: %true if a user space application has registered for this frame.
7860 * For action frames, that makes it responsible for rejecting unrecognized
7861 * action frames; %false otherwise, in which case for action frames the
7862 * driver is responsible for rejecting the frame.
7863 */
7864bool cfg80211_rx_mgmt_ext(struct wireless_dev *wdev,
7865			  struct cfg80211_rx_info *info);
7866
7867/**
7868 * cfg80211_rx_mgmt_khz - notification of received, unprocessed management frame
7869 * @wdev: wireless device receiving the frame
7870 * @freq: Frequency on which the frame was received in KHz
7871 * @sig_dbm: signal strength in dBm, or 0 if unknown
7872 * @buf: Management frame (header + body)
7873 * @len: length of the frame data
7874 * @flags: flags, as defined in enum nl80211_rxmgmt_flags
7875 *
7876 * This function is called whenever an Action frame is received for a station
7877 * mode interface, but is not processed in kernel.
7878 *
7879 * Return: %true if a user space application has registered for this frame.
7880 * For action frames, that makes it responsible for rejecting unrecognized
7881 * action frames; %false otherwise, in which case for action frames the
7882 * driver is responsible for rejecting the frame.
7883 */
7884static inline bool cfg80211_rx_mgmt_khz(struct wireless_dev *wdev, int freq,
7885					int sig_dbm, const u8 *buf, size_t len,
7886					u32 flags)
7887{
7888	struct cfg80211_rx_info info = {
7889		.freq = freq,
7890		.sig_dbm = sig_dbm,
7891		.buf = buf,
7892		.len = len,
7893		.flags = flags
7894	};
7895
7896	return cfg80211_rx_mgmt_ext(wdev, &info);
7897}
7898
7899/**
7900 * cfg80211_rx_mgmt - notification of received, unprocessed management frame
7901 * @wdev: wireless device receiving the frame
7902 * @freq: Frequency on which the frame was received in MHz
7903 * @sig_dbm: signal strength in dBm, or 0 if unknown
7904 * @buf: Management frame (header + body)
7905 * @len: length of the frame data
7906 * @flags: flags, as defined in enum nl80211_rxmgmt_flags
7907 *
7908 * This function is called whenever an Action frame is received for a station
7909 * mode interface, but is not processed in kernel.
7910 *
7911 * Return: %true if a user space application has registered for this frame.
7912 * For action frames, that makes it responsible for rejecting unrecognized
7913 * action frames; %false otherwise, in which case for action frames the
7914 * driver is responsible for rejecting the frame.
7915 */
7916static inline bool cfg80211_rx_mgmt(struct wireless_dev *wdev, int freq,
7917				    int sig_dbm, const u8 *buf, size_t len,
7918				    u32 flags)
7919{
7920	struct cfg80211_rx_info info = {
7921		.freq = MHZ_TO_KHZ(freq),
7922		.sig_dbm = sig_dbm,
7923		.buf = buf,
7924		.len = len,
7925		.flags = flags
7926	};
7927
7928	return cfg80211_rx_mgmt_ext(wdev, &info);
7929}
7930
7931/**
7932 * struct cfg80211_tx_status - TX status for management frame information
7933 *
7934 * @cookie: Cookie returned by cfg80211_ops::mgmt_tx()
7935 * @tx_tstamp: hardware TX timestamp in nanoseconds
7936 * @ack_tstamp: hardware ack RX timestamp in nanoseconds
7937 * @buf: Management frame (header + body)
7938 * @len: length of the frame data
7939 * @ack: Whether frame was acknowledged
7940 */
7941struct cfg80211_tx_status {
7942	u64 cookie;
7943	u64 tx_tstamp;
7944	u64 ack_tstamp;
7945	const u8 *buf;
7946	size_t len;
7947	bool ack;
7948};
7949
7950/**
7951 * cfg80211_mgmt_tx_status_ext - TX status notification with extended info
7952 * @wdev: wireless device receiving the frame
7953 * @status: TX status data
7954 * @gfp: context flags
7955 *
7956 * This function is called whenever a management frame was requested to be
7957 * transmitted with cfg80211_ops::mgmt_tx() to report the TX status of the
7958 * transmission attempt with extended info.
7959 */
7960void cfg80211_mgmt_tx_status_ext(struct wireless_dev *wdev,
7961				 struct cfg80211_tx_status *status, gfp_t gfp);
7962
7963/**
7964 * cfg80211_mgmt_tx_status - notification of TX status for management frame
7965 * @wdev: wireless device receiving the frame
7966 * @cookie: Cookie returned by cfg80211_ops::mgmt_tx()
7967 * @buf: Management frame (header + body)
7968 * @len: length of the frame data
7969 * @ack: Whether frame was acknowledged
7970 * @gfp: context flags
7971 *
7972 * This function is called whenever a management frame was requested to be
7973 * transmitted with cfg80211_ops::mgmt_tx() to report the TX status of the
7974 * transmission attempt.
7975 */
7976static inline void cfg80211_mgmt_tx_status(struct wireless_dev *wdev,
7977					   u64 cookie, const u8 *buf,
7978					   size_t len, bool ack, gfp_t gfp)
7979{
7980	struct cfg80211_tx_status status = {
7981		.cookie = cookie,
7982		.buf = buf,
7983		.len = len,
7984		.ack = ack
7985	};
7986
7987	cfg80211_mgmt_tx_status_ext(wdev, &status, gfp);
7988}
7989
7990/**
7991 * cfg80211_control_port_tx_status - notification of TX status for control
7992 *                                   port frames
7993 * @wdev: wireless device receiving the frame
7994 * @cookie: Cookie returned by cfg80211_ops::tx_control_port()
7995 * @buf: Data frame (header + body)
7996 * @len: length of the frame data
7997 * @ack: Whether frame was acknowledged
7998 * @gfp: context flags
7999 *
8000 * This function is called whenever a control port frame was requested to be
8001 * transmitted with cfg80211_ops::tx_control_port() to report the TX status of
8002 * the transmission attempt.
8003 */
8004void cfg80211_control_port_tx_status(struct wireless_dev *wdev, u64 cookie,
8005				     const u8 *buf, size_t len, bool ack,
8006				     gfp_t gfp);
8007
8008/**
8009 * cfg80211_rx_control_port - notification about a received control port frame
8010 * @dev: The device the frame matched to
8011 * @skb: The skbuf with the control port frame.  It is assumed that the skbuf
8012 *	is 802.3 formatted (with 802.3 header).  The skb can be non-linear.
8013 *	This function does not take ownership of the skb, so the caller is
8014 *	responsible for any cleanup.  The caller must also ensure that
8015 *	skb->protocol is set appropriately.
8016 * @unencrypted: Whether the frame was received unencrypted
8017 *
8018 * This function is used to inform userspace about a received control port
8019 * frame.  It should only be used if userspace indicated it wants to receive
8020 * control port frames over nl80211.
8021 *
8022 * The frame is the data portion of the 802.3 or 802.11 data frame with all
8023 * network layer headers removed (e.g. the raw EAPoL frame).
8024 *
8025 * Return: %true if the frame was passed to userspace
8026 */
8027bool cfg80211_rx_control_port(struct net_device *dev,
8028			      struct sk_buff *skb, bool unencrypted);
8029
8030/**
8031 * cfg80211_cqm_rssi_notify - connection quality monitoring rssi event
8032 * @dev: network device
8033 * @rssi_event: the triggered RSSI event
8034 * @rssi_level: new RSSI level value or 0 if not available
8035 * @gfp: context flags
8036 *
8037 * This function is called when a configured connection quality monitoring
8038 * rssi threshold reached event occurs.
8039 */
8040void cfg80211_cqm_rssi_notify(struct net_device *dev,
8041			      enum nl80211_cqm_rssi_threshold_event rssi_event,
8042			      s32 rssi_level, gfp_t gfp);
8043
8044/**
8045 * cfg80211_cqm_pktloss_notify - notify userspace about packetloss to peer
8046 * @dev: network device
8047 * @peer: peer's MAC address
8048 * @num_packets: how many packets were lost -- should be a fixed threshold
8049 *	but probably no less than maybe 50, or maybe a throughput dependent
8050 *	threshold (to account for temporary interference)
8051 * @gfp: context flags
8052 */
8053void cfg80211_cqm_pktloss_notify(struct net_device *dev,
8054				 const u8 *peer, u32 num_packets, gfp_t gfp);
8055
8056/**
8057 * cfg80211_cqm_txe_notify - TX error rate event
8058 * @dev: network device
8059 * @peer: peer's MAC address
8060 * @num_packets: how many packets were lost
8061 * @rate: % of packets which failed transmission
8062 * @intvl: interval (in s) over which the TX failure threshold was breached.
8063 * @gfp: context flags
8064 *
8065 * Notify userspace when configured % TX failures over number of packets in a
8066 * given interval is exceeded.
8067 */
8068void cfg80211_cqm_txe_notify(struct net_device *dev, const u8 *peer,
8069			     u32 num_packets, u32 rate, u32 intvl, gfp_t gfp);
8070
8071/**
8072 * cfg80211_cqm_beacon_loss_notify - beacon loss event
8073 * @dev: network device
8074 * @gfp: context flags
8075 *
8076 * Notify userspace about beacon loss from the connected AP.
8077 */
8078void cfg80211_cqm_beacon_loss_notify(struct net_device *dev, gfp_t gfp);
8079
8080/**
8081 * __cfg80211_radar_event - radar detection event
8082 * @wiphy: the wiphy
8083 * @chandef: chandef for the current channel
8084 * @offchan: the radar has been detected on the offchannel chain
8085 * @gfp: context flags
8086 *
8087 * This function is called when a radar is detected on the current chanenl.
8088 */
8089void __cfg80211_radar_event(struct wiphy *wiphy,
8090			    struct cfg80211_chan_def *chandef,
8091			    bool offchan, gfp_t gfp);
8092
8093static inline void
8094cfg80211_radar_event(struct wiphy *wiphy,
8095		     struct cfg80211_chan_def *chandef,
8096		     gfp_t gfp)
8097{
8098	__cfg80211_radar_event(wiphy, chandef, false, gfp);
8099}
8100
8101static inline void
8102cfg80211_background_radar_event(struct wiphy *wiphy,
8103				struct cfg80211_chan_def *chandef,
8104				gfp_t gfp)
8105{
8106	__cfg80211_radar_event(wiphy, chandef, true, gfp);
8107}
8108
8109/**
8110 * cfg80211_sta_opmode_change_notify - STA's ht/vht operation mode change event
8111 * @dev: network device
8112 * @mac: MAC address of a station which opmode got modified
8113 * @sta_opmode: station's current opmode value
8114 * @gfp: context flags
8115 *
8116 * Driver should call this function when station's opmode modified via action
8117 * frame.
8118 */
8119void cfg80211_sta_opmode_change_notify(struct net_device *dev, const u8 *mac,
8120				       struct sta_opmode_info *sta_opmode,
8121				       gfp_t gfp);
8122
8123/**
8124 * cfg80211_cac_event - Channel availability check (CAC) event
8125 * @netdev: network device
8126 * @chandef: chandef for the current channel
8127 * @event: type of event
8128 * @gfp: context flags
8129 *
8130 * This function is called when a Channel availability check (CAC) is finished
8131 * or aborted. This must be called to notify the completion of a CAC process,
8132 * also by full-MAC drivers.
8133 */
8134void cfg80211_cac_event(struct net_device *netdev,
8135			const struct cfg80211_chan_def *chandef,
8136			enum nl80211_radar_event event, gfp_t gfp);
8137
8138/**
8139 * cfg80211_background_cac_abort - Channel Availability Check offchan abort event
8140 * @wiphy: the wiphy
8141 *
8142 * This function is called by the driver when a Channel Availability Check
8143 * (CAC) is aborted by a offchannel dedicated chain.
8144 */
8145void cfg80211_background_cac_abort(struct wiphy *wiphy);
8146
8147/**
8148 * cfg80211_gtk_rekey_notify - notify userspace about driver rekeying
8149 * @dev: network device
8150 * @bssid: BSSID of AP (to avoid races)
8151 * @replay_ctr: new replay counter
8152 * @gfp: allocation flags
8153 */
8154void cfg80211_gtk_rekey_notify(struct net_device *dev, const u8 *bssid,
8155			       const u8 *replay_ctr, gfp_t gfp);
8156
8157/**
8158 * cfg80211_pmksa_candidate_notify - notify about PMKSA caching candidate
8159 * @dev: network device
8160 * @index: candidate index (the smaller the index, the higher the priority)
8161 * @bssid: BSSID of AP
8162 * @preauth: Whether AP advertises support for RSN pre-authentication
8163 * @gfp: allocation flags
8164 */
8165void cfg80211_pmksa_candidate_notify(struct net_device *dev, int index,
8166				     const u8 *bssid, bool preauth, gfp_t gfp);
8167
8168/**
8169 * cfg80211_rx_spurious_frame - inform userspace about a spurious frame
8170 * @dev: The device the frame matched to
8171 * @addr: the transmitter address
8172 * @gfp: context flags
8173 *
8174 * This function is used in AP mode (only!) to inform userspace that
8175 * a spurious class 3 frame was received, to be able to deauth the
8176 * sender.
8177 * Return: %true if the frame was passed to userspace (or this failed
8178 * for a reason other than not having a subscription.)
8179 */
8180bool cfg80211_rx_spurious_frame(struct net_device *dev,
8181				const u8 *addr, gfp_t gfp);
8182
8183/**
8184 * cfg80211_rx_unexpected_4addr_frame - inform about unexpected WDS frame
8185 * @dev: The device the frame matched to
8186 * @addr: the transmitter address
8187 * @gfp: context flags
8188 *
8189 * This function is used in AP mode (only!) to inform userspace that
8190 * an associated station sent a 4addr frame but that wasn't expected.
8191 * It is allowed and desirable to send this event only once for each
8192 * station to avoid event flooding.
8193 * Return: %true if the frame was passed to userspace (or this failed
8194 * for a reason other than not having a subscription.)
8195 */
8196bool cfg80211_rx_unexpected_4addr_frame(struct net_device *dev,
8197					const u8 *addr, gfp_t gfp);
8198
8199/**
8200 * cfg80211_probe_status - notify userspace about probe status
8201 * @dev: the device the probe was sent on
8202 * @addr: the address of the peer
8203 * @cookie: the cookie filled in @probe_client previously
8204 * @acked: indicates whether probe was acked or not
8205 * @ack_signal: signal strength (in dBm) of the ACK frame.
8206 * @is_valid_ack_signal: indicates the ack_signal is valid or not.
8207 * @gfp: allocation flags
8208 */
8209void cfg80211_probe_status(struct net_device *dev, const u8 *addr,
8210			   u64 cookie, bool acked, s32 ack_signal,
8211			   bool is_valid_ack_signal, gfp_t gfp);
8212
8213/**
8214 * cfg80211_report_obss_beacon_khz - report beacon from other APs
8215 * @wiphy: The wiphy that received the beacon
8216 * @frame: the frame
8217 * @len: length of the frame
8218 * @freq: frequency the frame was received on in KHz
8219 * @sig_dbm: signal strength in dBm, or 0 if unknown
8220 *
8221 * Use this function to report to userspace when a beacon was
8222 * received. It is not useful to call this when there is no
8223 * netdev that is in AP/GO mode.
8224 */
8225void cfg80211_report_obss_beacon_khz(struct wiphy *wiphy, const u8 *frame,
8226				     size_t len, int freq, int sig_dbm);
8227
8228/**
8229 * cfg80211_report_obss_beacon - report beacon from other APs
8230 * @wiphy: The wiphy that received the beacon
8231 * @frame: the frame
8232 * @len: length of the frame
8233 * @freq: frequency the frame was received on
8234 * @sig_dbm: signal strength in dBm, or 0 if unknown
8235 *
8236 * Use this function to report to userspace when a beacon was
8237 * received. It is not useful to call this when there is no
8238 * netdev that is in AP/GO mode.
8239 */
8240static inline void cfg80211_report_obss_beacon(struct wiphy *wiphy,
8241					       const u8 *frame, size_t len,
8242					       int freq, int sig_dbm)
8243{
8244	cfg80211_report_obss_beacon_khz(wiphy, frame, len, MHZ_TO_KHZ(freq),
8245					sig_dbm);
8246}
8247
8248/**
8249 * cfg80211_reg_can_beacon - check if beaconing is allowed
8250 * @wiphy: the wiphy
8251 * @chandef: the channel definition
8252 * @iftype: interface type
8253 *
8254 * Return: %true if there is no secondary channel or the secondary channel(s)
8255 * can be used for beaconing (i.e. is not a radar channel etc.)
8256 */
8257bool cfg80211_reg_can_beacon(struct wiphy *wiphy,
8258			     struct cfg80211_chan_def *chandef,
8259			     enum nl80211_iftype iftype);
8260
8261/**
8262 * cfg80211_reg_can_beacon_relax - check if beaconing is allowed with relaxation
8263 * @wiphy: the wiphy
8264 * @chandef: the channel definition
8265 * @iftype: interface type
8266 *
8267 * Return: %true if there is no secondary channel or the secondary channel(s)
8268 * can be used for beaconing (i.e. is not a radar channel etc.). This version
8269 * also checks if IR-relaxation conditions apply, to allow beaconing under
8270 * more permissive conditions.
8271 *
8272 * Requires the wiphy mutex to be held.
8273 */
8274bool cfg80211_reg_can_beacon_relax(struct wiphy *wiphy,
8275				   struct cfg80211_chan_def *chandef,
8276				   enum nl80211_iftype iftype);
8277
8278/*
8279 * cfg80211_ch_switch_notify - update wdev channel and notify userspace
8280 * @dev: the device which switched channels
8281 * @chandef: the new channel definition
8282 * @link_id: the link ID for MLO, must be 0 for non-MLO
8283 *
8284 * Caller must acquire wdev_lock, therefore must only be called from sleepable
8285 * driver context!
8286 */
8287void cfg80211_ch_switch_notify(struct net_device *dev,
8288			       struct cfg80211_chan_def *chandef,
8289			       unsigned int link_id);
8290
8291/*
8292 * cfg80211_ch_switch_started_notify - notify channel switch start
8293 * @dev: the device on which the channel switch started
8294 * @chandef: the future channel definition
8295 * @link_id: the link ID for MLO, must be 0 for non-MLO
8296 * @count: the number of TBTTs until the channel switch happens
8297 * @quiet: whether or not immediate quiet was requested by the AP
8298 *
8299 * Inform the userspace about the channel switch that has just
8300 * started, so that it can take appropriate actions (eg. starting
8301 * channel switch on other vifs), if necessary.
8302 */
8303void cfg80211_ch_switch_started_notify(struct net_device *dev,
8304				       struct cfg80211_chan_def *chandef,
8305				       unsigned int link_id, u8 count,
8306				       bool quiet);
8307
8308/**
8309 * ieee80211_operating_class_to_band - convert operating class to band
8310 *
8311 * @operating_class: the operating class to convert
8312 * @band: band pointer to fill
8313 *
8314 * Returns %true if the conversion was successful, %false otherwise.
8315 */
8316bool ieee80211_operating_class_to_band(u8 operating_class,
8317				       enum nl80211_band *band);
8318
8319/**
8320 * ieee80211_chandef_to_operating_class - convert chandef to operation class
8321 *
8322 * @chandef: the chandef to convert
8323 * @op_class: a pointer to the resulting operating class
8324 *
8325 * Returns %true if the conversion was successful, %false otherwise.
8326 */
8327bool ieee80211_chandef_to_operating_class(struct cfg80211_chan_def *chandef,
8328					  u8 *op_class);
8329
8330/**
8331 * ieee80211_chandef_to_khz - convert chandef to frequency in KHz
8332 *
8333 * @chandef: the chandef to convert
8334 *
8335 * Returns the center frequency of chandef (1st segment) in KHz.
8336 */
8337static inline u32
8338ieee80211_chandef_to_khz(const struct cfg80211_chan_def *chandef)
8339{
8340	return MHZ_TO_KHZ(chandef->center_freq1) + chandef->freq1_offset;
8341}
8342
8343/*
8344 * cfg80211_tdls_oper_request - request userspace to perform TDLS operation
8345 * @dev: the device on which the operation is requested
8346 * @peer: the MAC address of the peer device
8347 * @oper: the requested TDLS operation (NL80211_TDLS_SETUP or
8348 *	NL80211_TDLS_TEARDOWN)
8349 * @reason_code: the reason code for teardown request
8350 * @gfp: allocation flags
8351 *
8352 * This function is used to request userspace to perform TDLS operation that
8353 * requires knowledge of keys, i.e., link setup or teardown when the AP
8354 * connection uses encryption. This is optional mechanism for the driver to use
8355 * if it can automatically determine when a TDLS link could be useful (e.g.,
8356 * based on traffic and signal strength for a peer).
8357 */
8358void cfg80211_tdls_oper_request(struct net_device *dev, const u8 *peer,
8359				enum nl80211_tdls_operation oper,
8360				u16 reason_code, gfp_t gfp);
8361
8362/*
8363 * cfg80211_calculate_bitrate - calculate actual bitrate (in 100Kbps units)
8364 * @rate: given rate_info to calculate bitrate from
8365 *
8366 * return 0 if MCS index >= 32
8367 */
8368u32 cfg80211_calculate_bitrate(struct rate_info *rate);
8369
8370/**
8371 * cfg80211_unregister_wdev - remove the given wdev
8372 * @wdev: struct wireless_dev to remove
8373 *
8374 * This function removes the device so it can no longer be used. It is necessary
8375 * to call this function even when cfg80211 requests the removal of the device
8376 * by calling the del_virtual_intf() callback. The function must also be called
8377 * when the driver wishes to unregister the wdev, e.g. when the hardware device
8378 * is unbound from the driver.
8379 *
8380 * Requires the RTNL and wiphy mutex to be held.
8381 */
8382void cfg80211_unregister_wdev(struct wireless_dev *wdev);
8383
8384/**
8385 * cfg80211_register_netdevice - register the given netdev
8386 * @dev: the netdev to register
8387 *
8388 * Note: In contexts coming from cfg80211 callbacks, you must call this rather
8389 * than register_netdevice(), unregister_netdev() is impossible as the RTNL is
8390 * held. Otherwise, both register_netdevice() and register_netdev() are usable
8391 * instead as well.
8392 *
8393 * Requires the RTNL and wiphy mutex to be held.
8394 */
8395int cfg80211_register_netdevice(struct net_device *dev);
8396
8397/**
8398 * cfg80211_unregister_netdevice - unregister the given netdev
8399 * @dev: the netdev to register
8400 *
8401 * Note: In contexts coming from cfg80211 callbacks, you must call this rather
8402 * than unregister_netdevice(), unregister_netdev() is impossible as the RTNL
8403 * is held. Otherwise, both unregister_netdevice() and unregister_netdev() are
8404 * usable instead as well.
8405 *
8406 * Requires the RTNL and wiphy mutex to be held.
8407 */
8408static inline void cfg80211_unregister_netdevice(struct net_device *dev)
8409{
8410#if IS_ENABLED(CONFIG_CFG80211)
8411	cfg80211_unregister_wdev(dev->ieee80211_ptr);
8412#endif
8413}
8414
8415/**
8416 * struct cfg80211_ft_event_params - FT Information Elements
8417 * @ies: FT IEs
8418 * @ies_len: length of the FT IE in bytes
8419 * @target_ap: target AP's MAC address
8420 * @ric_ies: RIC IE
8421 * @ric_ies_len: length of the RIC IE in bytes
8422 */
8423struct cfg80211_ft_event_params {
8424	const u8 *ies;
8425	size_t ies_len;
8426	const u8 *target_ap;
8427	const u8 *ric_ies;
8428	size_t ric_ies_len;
8429};
8430
8431/**
8432 * cfg80211_ft_event - notify userspace about FT IE and RIC IE
8433 * @netdev: network device
8434 * @ft_event: IE information
8435 */
8436void cfg80211_ft_event(struct net_device *netdev,
8437		       struct cfg80211_ft_event_params *ft_event);
8438
8439/**
8440 * cfg80211_get_p2p_attr - find and copy a P2P attribute from IE buffer
8441 * @ies: the input IE buffer
8442 * @len: the input length
8443 * @attr: the attribute ID to find
8444 * @buf: output buffer, can be %NULL if the data isn't needed, e.g.
8445 *	if the function is only called to get the needed buffer size
8446 * @bufsize: size of the output buffer
8447 *
8448 * The function finds a given P2P attribute in the (vendor) IEs and
8449 * copies its contents to the given buffer.
8450 *
8451 * Return: A negative error code (-%EILSEQ or -%ENOENT) if the data is
8452 * malformed or the attribute can't be found (respectively), or the
8453 * length of the found attribute (which can be zero).
8454 */
8455int cfg80211_get_p2p_attr(const u8 *ies, unsigned int len,
8456			  enum ieee80211_p2p_attr_id attr,
8457			  u8 *buf, unsigned int bufsize);
8458
8459/**
8460 * ieee80211_ie_split_ric - split an IE buffer according to ordering (with RIC)
8461 * @ies: the IE buffer
8462 * @ielen: the length of the IE buffer
8463 * @ids: an array with element IDs that are allowed before
8464 *	the split. A WLAN_EID_EXTENSION value means that the next
8465 *	EID in the list is a sub-element of the EXTENSION IE.
8466 * @n_ids: the size of the element ID array
8467 * @after_ric: array IE types that come after the RIC element
8468 * @n_after_ric: size of the @after_ric array
8469 * @offset: offset where to start splitting in the buffer
8470 *
8471 * This function splits an IE buffer by updating the @offset
8472 * variable to point to the location where the buffer should be
8473 * split.
8474 *
8475 * It assumes that the given IE buffer is well-formed, this
8476 * has to be guaranteed by the caller!
8477 *
8478 * It also assumes that the IEs in the buffer are ordered
8479 * correctly, if not the result of using this function will not
8480 * be ordered correctly either, i.e. it does no reordering.
8481 *
8482 * The function returns the offset where the next part of the
8483 * buffer starts, which may be @ielen if the entire (remainder)
8484 * of the buffer should be used.
8485 */
8486size_t ieee80211_ie_split_ric(const u8 *ies, size_t ielen,
8487			      const u8 *ids, int n_ids,
8488			      const u8 *after_ric, int n_after_ric,
8489			      size_t offset);
8490
8491/**
8492 * ieee80211_ie_split - split an IE buffer according to ordering
8493 * @ies: the IE buffer
8494 * @ielen: the length of the IE buffer
8495 * @ids: an array with element IDs that are allowed before
8496 *	the split. A WLAN_EID_EXTENSION value means that the next
8497 *	EID in the list is a sub-element of the EXTENSION IE.
8498 * @n_ids: the size of the element ID array
8499 * @offset: offset where to start splitting in the buffer
8500 *
8501 * This function splits an IE buffer by updating the @offset
8502 * variable to point to the location where the buffer should be
8503 * split.
8504 *
8505 * It assumes that the given IE buffer is well-formed, this
8506 * has to be guaranteed by the caller!
8507 *
8508 * It also assumes that the IEs in the buffer are ordered
8509 * correctly, if not the result of using this function will not
8510 * be ordered correctly either, i.e. it does no reordering.
8511 *
8512 * The function returns the offset where the next part of the
8513 * buffer starts, which may be @ielen if the entire (remainder)
8514 * of the buffer should be used.
8515 */
8516static inline size_t ieee80211_ie_split(const u8 *ies, size_t ielen,
8517					const u8 *ids, int n_ids, size_t offset)
8518{
8519	return ieee80211_ie_split_ric(ies, ielen, ids, n_ids, NULL, 0, offset);
8520}
8521
8522/**
8523 * cfg80211_report_wowlan_wakeup - report wakeup from WoWLAN
8524 * @wdev: the wireless device reporting the wakeup
8525 * @wakeup: the wakeup report
8526 * @gfp: allocation flags
8527 *
8528 * This function reports that the given device woke up. If it
8529 * caused the wakeup, report the reason(s), otherwise you may
8530 * pass %NULL as the @wakeup parameter to advertise that something
8531 * else caused the wakeup.
8532 */
8533void cfg80211_report_wowlan_wakeup(struct wireless_dev *wdev,
8534				   struct cfg80211_wowlan_wakeup *wakeup,
8535				   gfp_t gfp);
8536
8537/**
8538 * cfg80211_crit_proto_stopped() - indicate critical protocol stopped by driver.
8539 *
8540 * @wdev: the wireless device for which critical protocol is stopped.
8541 * @gfp: allocation flags
8542 *
8543 * This function can be called by the driver to indicate it has reverted
8544 * operation back to normal. One reason could be that the duration given
8545 * by .crit_proto_start() has expired.
8546 */
8547void cfg80211_crit_proto_stopped(struct wireless_dev *wdev, gfp_t gfp);
8548
8549/**
8550 * ieee80211_get_num_supported_channels - get number of channels device has
8551 * @wiphy: the wiphy
8552 *
8553 * Return: the number of channels supported by the device.
8554 */
8555unsigned int ieee80211_get_num_supported_channels(struct wiphy *wiphy);
8556
8557/**
8558 * cfg80211_check_combinations - check interface combinations
8559 *
8560 * @wiphy: the wiphy
8561 * @params: the interface combinations parameter
8562 *
8563 * This function can be called by the driver to check whether a
8564 * combination of interfaces and their types are allowed according to
8565 * the interface combinations.
8566 */
8567int cfg80211_check_combinations(struct wiphy *wiphy,
8568				struct iface_combination_params *params);
8569
8570/**
8571 * cfg80211_iter_combinations - iterate over matching combinations
8572 *
8573 * @wiphy: the wiphy
8574 * @params: the interface combinations parameter
8575 * @iter: function to call for each matching combination
8576 * @data: pointer to pass to iter function
8577 *
8578 * This function can be called by the driver to check what possible
8579 * combinations it fits in at a given moment, e.g. for channel switching
8580 * purposes.
8581 */
8582int cfg80211_iter_combinations(struct wiphy *wiphy,
8583			       struct iface_combination_params *params,
8584			       void (*iter)(const struct ieee80211_iface_combination *c,
8585					    void *data),
8586			       void *data);
8587
8588/*
8589 * cfg80211_stop_iface - trigger interface disconnection
8590 *
8591 * @wiphy: the wiphy
8592 * @wdev: wireless device
8593 * @gfp: context flags
8594 *
8595 * Trigger interface to be stopped as if AP was stopped, IBSS/mesh left, STA
8596 * disconnected.
8597 *
8598 * Note: This doesn't need any locks and is asynchronous.
8599 */
8600void cfg80211_stop_iface(struct wiphy *wiphy, struct wireless_dev *wdev,
8601			 gfp_t gfp);
8602
8603/**
8604 * cfg80211_shutdown_all_interfaces - shut down all interfaces for a wiphy
8605 * @wiphy: the wiphy to shut down
8606 *
8607 * This function shuts down all interfaces belonging to this wiphy by
8608 * calling dev_close() (and treating non-netdev interfaces as needed).
8609 * It shouldn't really be used unless there are some fatal device errors
8610 * that really can't be recovered in any other way.
8611 *
8612 * Callers must hold the RTNL and be able to deal with callbacks into
8613 * the driver while the function is running.
8614 */
8615void cfg80211_shutdown_all_interfaces(struct wiphy *wiphy);
8616
8617/**
8618 * wiphy_ext_feature_set - set the extended feature flag
8619 *
8620 * @wiphy: the wiphy to modify.
8621 * @ftidx: extended feature bit index.
8622 *
8623 * The extended features are flagged in multiple bytes (see
8624 * &struct wiphy.@ext_features)
8625 */
8626static inline void wiphy_ext_feature_set(struct wiphy *wiphy,
8627					 enum nl80211_ext_feature_index ftidx)
8628{
8629	u8 *ft_byte;
8630
8631	ft_byte = &wiphy->ext_features[ftidx / 8];
8632	*ft_byte |= BIT(ftidx % 8);
8633}
8634
8635/**
8636 * wiphy_ext_feature_isset - check the extended feature flag
8637 *
8638 * @wiphy: the wiphy to modify.
8639 * @ftidx: extended feature bit index.
8640 *
8641 * The extended features are flagged in multiple bytes (see
8642 * &struct wiphy.@ext_features)
8643 */
8644static inline bool
8645wiphy_ext_feature_isset(struct wiphy *wiphy,
8646			enum nl80211_ext_feature_index ftidx)
8647{
8648	u8 ft_byte;
8649
8650	ft_byte = wiphy->ext_features[ftidx / 8];
8651	return (ft_byte & BIT(ftidx % 8)) != 0;
8652}
8653
8654/**
8655 * cfg80211_free_nan_func - free NAN function
8656 * @f: NAN function that should be freed
8657 *
8658 * Frees all the NAN function and all it's allocated members.
8659 */
8660void cfg80211_free_nan_func(struct cfg80211_nan_func *f);
8661
8662/**
8663 * struct cfg80211_nan_match_params - NAN match parameters
8664 * @type: the type of the function that triggered a match. If it is
8665 *	 %NL80211_NAN_FUNC_SUBSCRIBE it means that we replied to a subscriber.
8666 *	 If it is %NL80211_NAN_FUNC_PUBLISH, it means that we got a discovery
8667 *	 result.
8668 *	 If it is %NL80211_NAN_FUNC_FOLLOW_UP, we received a follow up.
8669 * @inst_id: the local instance id
8670 * @peer_inst_id: the instance id of the peer's function
8671 * @addr: the MAC address of the peer
8672 * @info_len: the length of the &info
8673 * @info: the Service Specific Info from the peer (if any)
8674 * @cookie: unique identifier of the corresponding function
8675 */
8676struct cfg80211_nan_match_params {
8677	enum nl80211_nan_function_type type;
8678	u8 inst_id;
8679	u8 peer_inst_id;
8680	const u8 *addr;
8681	u8 info_len;
8682	const u8 *info;
8683	u64 cookie;
8684};
8685
8686/**
8687 * cfg80211_nan_match - report a match for a NAN function.
8688 * @wdev: the wireless device reporting the match
8689 * @match: match notification parameters
8690 * @gfp: allocation flags
8691 *
8692 * This function reports that the a NAN function had a match. This
8693 * can be a subscribe that had a match or a solicited publish that
8694 * was sent. It can also be a follow up that was received.
8695 */
8696void cfg80211_nan_match(struct wireless_dev *wdev,
8697			struct cfg80211_nan_match_params *match, gfp_t gfp);
8698
8699/**
8700 * cfg80211_nan_func_terminated - notify about NAN function termination.
8701 *
8702 * @wdev: the wireless device reporting the match
8703 * @inst_id: the local instance id
8704 * @reason: termination reason (one of the NL80211_NAN_FUNC_TERM_REASON_*)
8705 * @cookie: unique NAN function identifier
8706 * @gfp: allocation flags
8707 *
8708 * This function reports that the a NAN function is terminated.
8709 */
8710void cfg80211_nan_func_terminated(struct wireless_dev *wdev,
8711				  u8 inst_id,
8712				  enum nl80211_nan_func_term_reason reason,
8713				  u64 cookie, gfp_t gfp);
8714
8715/* ethtool helper */
8716void cfg80211_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info);
8717
8718/**
8719 * cfg80211_external_auth_request - userspace request for authentication
8720 * @netdev: network device
8721 * @params: External authentication parameters
8722 * @gfp: allocation flags
8723 * Returns: 0 on success, < 0 on error
8724 */
8725int cfg80211_external_auth_request(struct net_device *netdev,
8726				   struct cfg80211_external_auth_params *params,
8727				   gfp_t gfp);
8728
8729/**
8730 * cfg80211_pmsr_report - report peer measurement result data
8731 * @wdev: the wireless device reporting the measurement
8732 * @req: the original measurement request
8733 * @result: the result data
8734 * @gfp: allocation flags
8735 */
8736void cfg80211_pmsr_report(struct wireless_dev *wdev,
8737			  struct cfg80211_pmsr_request *req,
8738			  struct cfg80211_pmsr_result *result,
8739			  gfp_t gfp);
8740
8741/**
8742 * cfg80211_pmsr_complete - report peer measurement completed
8743 * @wdev: the wireless device reporting the measurement
8744 * @req: the original measurement request
8745 * @gfp: allocation flags
8746 *
8747 * Report that the entire measurement completed, after this
8748 * the request pointer will no longer be valid.
8749 */
8750void cfg80211_pmsr_complete(struct wireless_dev *wdev,
8751			    struct cfg80211_pmsr_request *req,
8752			    gfp_t gfp);
8753
8754/**
8755 * cfg80211_iftype_allowed - check whether the interface can be allowed
8756 * @wiphy: the wiphy
8757 * @iftype: interface type
8758 * @is_4addr: use_4addr flag, must be '0' when check_swif is '1'
8759 * @check_swif: check iftype against software interfaces
8760 *
8761 * Check whether the interface is allowed to operate; additionally, this API
8762 * can be used to check iftype against the software interfaces when
8763 * check_swif is '1'.
8764 */
8765bool cfg80211_iftype_allowed(struct wiphy *wiphy, enum nl80211_iftype iftype,
8766			     bool is_4addr, u8 check_swif);
8767
8768
8769/**
8770 * cfg80211_assoc_comeback - notification of association that was
8771 * temporarly rejected with a comeback
8772 * @netdev: network device
8773 * @ap_addr: AP (MLD) address that rejected the assocation
8774 * @timeout: timeout interval value TUs.
8775 *
8776 * this function may sleep. the caller must hold the corresponding wdev's mutex.
8777 */
8778void cfg80211_assoc_comeback(struct net_device *netdev,
8779			     const u8 *ap_addr, u32 timeout);
8780
8781/* Logging, debugging and troubleshooting/diagnostic helpers. */
8782
8783/* wiphy_printk helpers, similar to dev_printk */
8784
8785#define wiphy_printk(level, wiphy, format, args...)		\
8786	dev_printk(level, &(wiphy)->dev, format, ##args)
8787#define wiphy_emerg(wiphy, format, args...)			\
8788	dev_emerg(&(wiphy)->dev, format, ##args)
8789#define wiphy_alert(wiphy, format, args...)			\
8790	dev_alert(&(wiphy)->dev, format, ##args)
8791#define wiphy_crit(wiphy, format, args...)			\
8792	dev_crit(&(wiphy)->dev, format, ##args)
8793#define wiphy_err(wiphy, format, args...)			\
8794	dev_err(&(wiphy)->dev, format, ##args)
8795#define wiphy_warn(wiphy, format, args...)			\
8796	dev_warn(&(wiphy)->dev, format, ##args)
8797#define wiphy_notice(wiphy, format, args...)			\
8798	dev_notice(&(wiphy)->dev, format, ##args)
8799#define wiphy_info(wiphy, format, args...)			\
8800	dev_info(&(wiphy)->dev, format, ##args)
8801#define wiphy_info_once(wiphy, format, args...)			\
8802	dev_info_once(&(wiphy)->dev, format, ##args)
8803
8804#define wiphy_err_ratelimited(wiphy, format, args...)		\
8805	dev_err_ratelimited(&(wiphy)->dev, format, ##args)
8806#define wiphy_warn_ratelimited(wiphy, format, args...)		\
8807	dev_warn_ratelimited(&(wiphy)->dev, format, ##args)
8808
8809#define wiphy_debug(wiphy, format, args...)			\
8810	wiphy_printk(KERN_DEBUG, wiphy, format, ##args)
8811
8812#define wiphy_dbg(wiphy, format, args...)			\
8813	dev_dbg(&(wiphy)->dev, format, ##args)
8814
8815#if defined(VERBOSE_DEBUG)
8816#define wiphy_vdbg	wiphy_dbg
8817#else
8818#define wiphy_vdbg(wiphy, format, args...)				\
8819({									\
8820	if (0)								\
8821		wiphy_printk(KERN_DEBUG, wiphy, format, ##args);	\
8822	0;								\
8823})
8824#endif
8825
8826/*
8827 * wiphy_WARN() acts like wiphy_printk(), but with the key difference
8828 * of using a WARN/WARN_ON to get the message out, including the
8829 * file/line information and a backtrace.
8830 */
8831#define wiphy_WARN(wiphy, format, args...)			\
8832	WARN(1, "wiphy: %s\n" format, wiphy_name(wiphy), ##args);
8833
8834/**
8835 * cfg80211_update_owe_info_event - Notify the peer's OWE info to user space
8836 * @netdev: network device
8837 * @owe_info: peer's owe info
8838 * @gfp: allocation flags
8839 */
8840void cfg80211_update_owe_info_event(struct net_device *netdev,
8841				    struct cfg80211_update_owe_info *owe_info,
8842				    gfp_t gfp);
8843
8844/**
8845 * cfg80211_bss_flush - resets all the scan entries
8846 * @wiphy: the wiphy
8847 */
8848void cfg80211_bss_flush(struct wiphy *wiphy);
8849
8850/**
8851 * cfg80211_bss_color_notify - notify about bss color event
8852 * @dev: network device
8853 * @gfp: allocation flags
8854 * @cmd: the actual event we want to notify
8855 * @count: the number of TBTTs until the color change happens
8856 * @color_bitmap: representations of the colors that the local BSS is aware of
8857 */
8858int cfg80211_bss_color_notify(struct net_device *dev, gfp_t gfp,
8859			      enum nl80211_commands cmd, u8 count,
8860			      u64 color_bitmap);
8861
8862/**
8863 * cfg80211_obss_color_collision_notify - notify about bss color collision
8864 * @dev: network device
8865 * @color_bitmap: representations of the colors that the local BSS is aware of
8866 * @gfp: allocation flags
8867 */
8868static inline int cfg80211_obss_color_collision_notify(struct net_device *dev,
8869						       u64 color_bitmap, gfp_t gfp)
8870{
8871	return cfg80211_bss_color_notify(dev, gfp,
8872					 NL80211_CMD_OBSS_COLOR_COLLISION,
8873					 0, color_bitmap);
8874}
8875
8876/**
8877 * cfg80211_color_change_started_notify - notify color change start
8878 * @dev: the device on which the color is switched
8879 * @count: the number of TBTTs until the color change happens
8880 *
8881 * Inform the userspace about the color change that has started.
8882 */
8883static inline int cfg80211_color_change_started_notify(struct net_device *dev,
8884						       u8 count)
8885{
8886	return cfg80211_bss_color_notify(dev, GFP_KERNEL,
8887					 NL80211_CMD_COLOR_CHANGE_STARTED,
8888					 count, 0);
8889}
8890
8891/**
8892 * cfg80211_color_change_aborted_notify - notify color change abort
8893 * @dev: the device on which the color is switched
8894 *
8895 * Inform the userspace about the color change that has aborted.
8896 */
8897static inline int cfg80211_color_change_aborted_notify(struct net_device *dev)
8898{
8899	return cfg80211_bss_color_notify(dev, GFP_KERNEL,
8900					 NL80211_CMD_COLOR_CHANGE_ABORTED,
8901					 0, 0);
8902}
8903
8904/**
8905 * cfg80211_color_change_notify - notify color change completion
8906 * @dev: the device on which the color was switched
8907 *
8908 * Inform the userspace about the color change that has completed.
8909 */
8910static inline int cfg80211_color_change_notify(struct net_device *dev)
8911{
8912	return cfg80211_bss_color_notify(dev, GFP_KERNEL,
8913					 NL80211_CMD_COLOR_CHANGE_COMPLETED,
8914					 0, 0);
8915}
8916
8917#endif /* __NET_CFG80211_H */