Linux Audio

Check our new training course

Loading...
v5.4
   1// SPDX-License-Identifier: GPL-2.0-only
   2/*
   3 * Copyright (c) 2007-2017 Nicira, Inc.
   4 */
   5
   6#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
   7
   8#include "flow.h"
   9#include "datapath.h"
  10#include <linux/uaccess.h>
  11#include <linux/netdevice.h>
  12#include <linux/etherdevice.h>
  13#include <linux/if_ether.h>
  14#include <linux/if_vlan.h>
  15#include <net/llc_pdu.h>
  16#include <linux/kernel.h>
  17#include <linux/jhash.h>
  18#include <linux/jiffies.h>
  19#include <linux/llc.h>
  20#include <linux/module.h>
  21#include <linux/in.h>
  22#include <linux/rcupdate.h>
  23#include <linux/if_arp.h>
  24#include <linux/ip.h>
  25#include <linux/ipv6.h>
  26#include <linux/sctp.h>
  27#include <linux/tcp.h>
  28#include <linux/udp.h>
  29#include <linux/icmp.h>
  30#include <linux/icmpv6.h>
  31#include <linux/rculist.h>
  32#include <net/geneve.h>
  33#include <net/ip.h>
  34#include <net/ipv6.h>
  35#include <net/ndisc.h>
  36#include <net/mpls.h>
  37#include <net/vxlan.h>
  38#include <net/tun_proto.h>
  39#include <net/erspan.h>
  40
 
  41#include "flow_netlink.h"
  42
  43struct ovs_len_tbl {
  44	int len;
  45	const struct ovs_len_tbl *next;
  46};
  47
  48#define OVS_ATTR_NESTED -1
  49#define OVS_ATTR_VARIABLE -2
 
  50
  51static bool actions_may_change_flow(const struct nlattr *actions)
  52{
  53	struct nlattr *nla;
  54	int rem;
  55
  56	nla_for_each_nested(nla, actions, rem) {
  57		u16 action = nla_type(nla);
  58
  59		switch (action) {
  60		case OVS_ACTION_ATTR_OUTPUT:
  61		case OVS_ACTION_ATTR_RECIRC:
  62		case OVS_ACTION_ATTR_TRUNC:
  63		case OVS_ACTION_ATTR_USERSPACE:
 
 
  64			break;
  65
  66		case OVS_ACTION_ATTR_CT:
  67		case OVS_ACTION_ATTR_CT_CLEAR:
  68		case OVS_ACTION_ATTR_HASH:
  69		case OVS_ACTION_ATTR_POP_ETH:
  70		case OVS_ACTION_ATTR_POP_MPLS:
  71		case OVS_ACTION_ATTR_POP_NSH:
  72		case OVS_ACTION_ATTR_POP_VLAN:
  73		case OVS_ACTION_ATTR_PUSH_ETH:
  74		case OVS_ACTION_ATTR_PUSH_MPLS:
  75		case OVS_ACTION_ATTR_PUSH_NSH:
  76		case OVS_ACTION_ATTR_PUSH_VLAN:
  77		case OVS_ACTION_ATTR_SAMPLE:
  78		case OVS_ACTION_ATTR_SET:
  79		case OVS_ACTION_ATTR_SET_MASKED:
  80		case OVS_ACTION_ATTR_METER:
  81		case OVS_ACTION_ATTR_CHECK_PKT_LEN:
 
 
  82		default:
  83			return true;
  84		}
  85	}
  86	return false;
  87}
  88
  89static void update_range(struct sw_flow_match *match,
  90			 size_t offset, size_t size, bool is_mask)
  91{
  92	struct sw_flow_key_range *range;
  93	size_t start = rounddown(offset, sizeof(long));
  94	size_t end = roundup(offset + size, sizeof(long));
  95
  96	if (!is_mask)
  97		range = &match->range;
  98	else
  99		range = &match->mask->range;
 100
 101	if (range->start == range->end) {
 102		range->start = start;
 103		range->end = end;
 104		return;
 105	}
 106
 107	if (range->start > start)
 108		range->start = start;
 109
 110	if (range->end < end)
 111		range->end = end;
 112}
 113
 114#define SW_FLOW_KEY_PUT(match, field, value, is_mask) \
 115	do { \
 116		update_range(match, offsetof(struct sw_flow_key, field),    \
 117			     sizeof((match)->key->field), is_mask);	    \
 118		if (is_mask)						    \
 119			(match)->mask->key.field = value;		    \
 120		else							    \
 121			(match)->key->field = value;		            \
 122	} while (0)
 123
 124#define SW_FLOW_KEY_MEMCPY_OFFSET(match, offset, value_p, len, is_mask)	    \
 125	do {								    \
 126		update_range(match, offset, len, is_mask);		    \
 127		if (is_mask)						    \
 128			memcpy((u8 *)&(match)->mask->key + offset, value_p, \
 129			       len);					   \
 130		else							    \
 131			memcpy((u8 *)(match)->key + offset, value_p, len);  \
 132	} while (0)
 133
 134#define SW_FLOW_KEY_MEMCPY(match, field, value_p, len, is_mask)		      \
 135	SW_FLOW_KEY_MEMCPY_OFFSET(match, offsetof(struct sw_flow_key, field), \
 136				  value_p, len, is_mask)
 137
 138#define SW_FLOW_KEY_MEMSET_FIELD(match, field, value, is_mask)		    \
 139	do {								    \
 140		update_range(match, offsetof(struct sw_flow_key, field),    \
 141			     sizeof((match)->key->field), is_mask);	    \
 142		if (is_mask)						    \
 143			memset((u8 *)&(match)->mask->key.field, value,      \
 144			       sizeof((match)->mask->key.field));	    \
 145		else							    \
 146			memset((u8 *)&(match)->key->field, value,           \
 147			       sizeof((match)->key->field));                \
 148	} while (0)
 149
 
 
 
 
 
 
 
 150static bool match_validate(const struct sw_flow_match *match,
 151			   u64 key_attrs, u64 mask_attrs, bool log)
 152{
 153	u64 key_expected = 0;
 154	u64 mask_allowed = key_attrs;  /* At most allow all key attributes */
 155
 156	/* The following mask attributes allowed only if they
 157	 * pass the validation tests. */
 158	mask_allowed &= ~((1 << OVS_KEY_ATTR_IPV4)
 159			| (1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4)
 160			| (1 << OVS_KEY_ATTR_IPV6)
 161			| (1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6)
 162			| (1 << OVS_KEY_ATTR_TCP)
 163			| (1 << OVS_KEY_ATTR_TCP_FLAGS)
 164			| (1 << OVS_KEY_ATTR_UDP)
 165			| (1 << OVS_KEY_ATTR_SCTP)
 166			| (1 << OVS_KEY_ATTR_ICMP)
 167			| (1 << OVS_KEY_ATTR_ICMPV6)
 168			| (1 << OVS_KEY_ATTR_ARP)
 169			| (1 << OVS_KEY_ATTR_ND)
 170			| (1 << OVS_KEY_ATTR_MPLS)
 171			| (1 << OVS_KEY_ATTR_NSH));
 172
 173	/* Always allowed mask fields. */
 174	mask_allowed |= ((1 << OVS_KEY_ATTR_TUNNEL)
 175		       | (1 << OVS_KEY_ATTR_IN_PORT)
 176		       | (1 << OVS_KEY_ATTR_ETHERTYPE));
 177
 178	/* Check key attributes. */
 179	if (match->key->eth.type == htons(ETH_P_ARP)
 180			|| match->key->eth.type == htons(ETH_P_RARP)) {
 181		key_expected |= 1 << OVS_KEY_ATTR_ARP;
 182		if (match->mask && (match->mask->key.eth.type == htons(0xffff)))
 183			mask_allowed |= 1 << OVS_KEY_ATTR_ARP;
 184	}
 185
 186	if (eth_p_mpls(match->key->eth.type)) {
 187		key_expected |= 1 << OVS_KEY_ATTR_MPLS;
 188		if (match->mask && (match->mask->key.eth.type == htons(0xffff)))
 189			mask_allowed |= 1 << OVS_KEY_ATTR_MPLS;
 190	}
 191
 192	if (match->key->eth.type == htons(ETH_P_IP)) {
 193		key_expected |= 1 << OVS_KEY_ATTR_IPV4;
 194		if (match->mask && match->mask->key.eth.type == htons(0xffff)) {
 195			mask_allowed |= 1 << OVS_KEY_ATTR_IPV4;
 196			mask_allowed |= 1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4;
 197		}
 198
 199		if (match->key->ip.frag != OVS_FRAG_TYPE_LATER) {
 200			if (match->key->ip.proto == IPPROTO_UDP) {
 201				key_expected |= 1 << OVS_KEY_ATTR_UDP;
 202				if (match->mask && (match->mask->key.ip.proto == 0xff))
 203					mask_allowed |= 1 << OVS_KEY_ATTR_UDP;
 204			}
 205
 206			if (match->key->ip.proto == IPPROTO_SCTP) {
 207				key_expected |= 1 << OVS_KEY_ATTR_SCTP;
 208				if (match->mask && (match->mask->key.ip.proto == 0xff))
 209					mask_allowed |= 1 << OVS_KEY_ATTR_SCTP;
 210			}
 211
 212			if (match->key->ip.proto == IPPROTO_TCP) {
 213				key_expected |= 1 << OVS_KEY_ATTR_TCP;
 214				key_expected |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 215				if (match->mask && (match->mask->key.ip.proto == 0xff)) {
 216					mask_allowed |= 1 << OVS_KEY_ATTR_TCP;
 217					mask_allowed |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 218				}
 219			}
 220
 221			if (match->key->ip.proto == IPPROTO_ICMP) {
 222				key_expected |= 1 << OVS_KEY_ATTR_ICMP;
 223				if (match->mask && (match->mask->key.ip.proto == 0xff))
 224					mask_allowed |= 1 << OVS_KEY_ATTR_ICMP;
 225			}
 226		}
 227	}
 228
 229	if (match->key->eth.type == htons(ETH_P_IPV6)) {
 230		key_expected |= 1 << OVS_KEY_ATTR_IPV6;
 231		if (match->mask && match->mask->key.eth.type == htons(0xffff)) {
 232			mask_allowed |= 1 << OVS_KEY_ATTR_IPV6;
 233			mask_allowed |= 1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6;
 234		}
 235
 236		if (match->key->ip.frag != OVS_FRAG_TYPE_LATER) {
 237			if (match->key->ip.proto == IPPROTO_UDP) {
 238				key_expected |= 1 << OVS_KEY_ATTR_UDP;
 239				if (match->mask && (match->mask->key.ip.proto == 0xff))
 240					mask_allowed |= 1 << OVS_KEY_ATTR_UDP;
 241			}
 242
 243			if (match->key->ip.proto == IPPROTO_SCTP) {
 244				key_expected |= 1 << OVS_KEY_ATTR_SCTP;
 245				if (match->mask && (match->mask->key.ip.proto == 0xff))
 246					mask_allowed |= 1 << OVS_KEY_ATTR_SCTP;
 247			}
 248
 249			if (match->key->ip.proto == IPPROTO_TCP) {
 250				key_expected |= 1 << OVS_KEY_ATTR_TCP;
 251				key_expected |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 252				if (match->mask && (match->mask->key.ip.proto == 0xff)) {
 253					mask_allowed |= 1 << OVS_KEY_ATTR_TCP;
 254					mask_allowed |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 255				}
 256			}
 257
 258			if (match->key->ip.proto == IPPROTO_ICMPV6) {
 259				key_expected |= 1 << OVS_KEY_ATTR_ICMPV6;
 260				if (match->mask && (match->mask->key.ip.proto == 0xff))
 261					mask_allowed |= 1 << OVS_KEY_ATTR_ICMPV6;
 262
 263				if (match->key->tp.src ==
 264						htons(NDISC_NEIGHBOUR_SOLICITATION) ||
 265				    match->key->tp.src == htons(NDISC_NEIGHBOUR_ADVERTISEMENT)) {
 266					key_expected |= 1 << OVS_KEY_ATTR_ND;
 267					/* Original direction conntrack tuple
 268					 * uses the same space as the ND fields
 269					 * in the key, so both are not allowed
 270					 * at the same time.
 271					 */
 272					mask_allowed &= ~(1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6);
 273					if (match->mask && (match->mask->key.tp.src == htons(0xff)))
 274						mask_allowed |= 1 << OVS_KEY_ATTR_ND;
 275				}
 276			}
 277		}
 278	}
 279
 280	if (match->key->eth.type == htons(ETH_P_NSH)) {
 281		key_expected |= 1 << OVS_KEY_ATTR_NSH;
 282		if (match->mask &&
 283		    match->mask->key.eth.type == htons(0xffff)) {
 284			mask_allowed |= 1 << OVS_KEY_ATTR_NSH;
 285		}
 286	}
 287
 288	if ((key_attrs & key_expected) != key_expected) {
 289		/* Key attributes check failed. */
 290		OVS_NLERR(log, "Missing key (keys=%llx, expected=%llx)",
 291			  (unsigned long long)key_attrs,
 292			  (unsigned long long)key_expected);
 293		return false;
 294	}
 295
 296	if ((mask_attrs & mask_allowed) != mask_attrs) {
 297		/* Mask attributes check failed. */
 298		OVS_NLERR(log, "Unexpected mask (mask=%llx, allowed=%llx)",
 299			  (unsigned long long)mask_attrs,
 300			  (unsigned long long)mask_allowed);
 301		return false;
 302	}
 303
 304	return true;
 305}
 306
 307size_t ovs_tun_key_attr_size(void)
 308{
 309	/* Whenever adding new OVS_TUNNEL_KEY_ FIELDS, we should consider
 310	 * updating this function.
 311	 */
 312	return    nla_total_size_64bit(8) /* OVS_TUNNEL_KEY_ATTR_ID */
 313		+ nla_total_size(16)   /* OVS_TUNNEL_KEY_ATTR_IPV[46]_SRC */
 314		+ nla_total_size(16)   /* OVS_TUNNEL_KEY_ATTR_IPV[46]_DST */
 315		+ nla_total_size(1)    /* OVS_TUNNEL_KEY_ATTR_TOS */
 316		+ nla_total_size(1)    /* OVS_TUNNEL_KEY_ATTR_TTL */
 317		+ nla_total_size(0)    /* OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT */
 318		+ nla_total_size(0)    /* OVS_TUNNEL_KEY_ATTR_CSUM */
 319		+ nla_total_size(0)    /* OVS_TUNNEL_KEY_ATTR_OAM */
 320		+ nla_total_size(256)  /* OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS */
 321		/* OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS and
 322		 * OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS is mutually exclusive with
 323		 * OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS and covered by it.
 324		 */
 325		+ nla_total_size(2)    /* OVS_TUNNEL_KEY_ATTR_TP_SRC */
 326		+ nla_total_size(2);   /* OVS_TUNNEL_KEY_ATTR_TP_DST */
 327}
 328
 329static size_t ovs_nsh_key_attr_size(void)
 330{
 331	/* Whenever adding new OVS_NSH_KEY_ FIELDS, we should consider
 332	 * updating this function.
 333	 */
 334	return  nla_total_size(NSH_BASE_HDR_LEN) /* OVS_NSH_KEY_ATTR_BASE */
 335		/* OVS_NSH_KEY_ATTR_MD1 and OVS_NSH_KEY_ATTR_MD2 are
 336		 * mutually exclusive, so the bigger one can cover
 337		 * the small one.
 338		 */
 339		+ nla_total_size(NSH_CTX_HDRS_MAX_LEN);
 340}
 341
 342size_t ovs_key_attr_size(void)
 343{
 344	/* Whenever adding new OVS_KEY_ FIELDS, we should consider
 345	 * updating this function.
 346	 */
 347	BUILD_BUG_ON(OVS_KEY_ATTR_TUNNEL_INFO != 29);
 348
 349	return    nla_total_size(4)   /* OVS_KEY_ATTR_PRIORITY */
 350		+ nla_total_size(0)   /* OVS_KEY_ATTR_TUNNEL */
 351		  + ovs_tun_key_attr_size()
 352		+ nla_total_size(4)   /* OVS_KEY_ATTR_IN_PORT */
 353		+ nla_total_size(4)   /* OVS_KEY_ATTR_SKB_MARK */
 354		+ nla_total_size(4)   /* OVS_KEY_ATTR_DP_HASH */
 355		+ nla_total_size(4)   /* OVS_KEY_ATTR_RECIRC_ID */
 356		+ nla_total_size(4)   /* OVS_KEY_ATTR_CT_STATE */
 357		+ nla_total_size(2)   /* OVS_KEY_ATTR_CT_ZONE */
 358		+ nla_total_size(4)   /* OVS_KEY_ATTR_CT_MARK */
 359		+ nla_total_size(16)  /* OVS_KEY_ATTR_CT_LABELS */
 360		+ nla_total_size(40)  /* OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6 */
 361		+ nla_total_size(0)   /* OVS_KEY_ATTR_NSH */
 362		  + ovs_nsh_key_attr_size()
 363		+ nla_total_size(12)  /* OVS_KEY_ATTR_ETHERNET */
 364		+ nla_total_size(2)   /* OVS_KEY_ATTR_ETHERTYPE */
 365		+ nla_total_size(4)   /* OVS_KEY_ATTR_VLAN */
 366		+ nla_total_size(0)   /* OVS_KEY_ATTR_ENCAP */
 367		+ nla_total_size(2)   /* OVS_KEY_ATTR_ETHERTYPE */
 368		+ nla_total_size(40)  /* OVS_KEY_ATTR_IPV6 */
 369		+ nla_total_size(2)   /* OVS_KEY_ATTR_ICMPV6 */
 370		+ nla_total_size(28); /* OVS_KEY_ATTR_ND */
 
 371}
 372
 373static const struct ovs_len_tbl ovs_vxlan_ext_key_lens[OVS_VXLAN_EXT_MAX + 1] = {
 374	[OVS_VXLAN_EXT_GBP]	    = { .len = sizeof(u32) },
 375};
 376
 377static const struct ovs_len_tbl ovs_tunnel_key_lens[OVS_TUNNEL_KEY_ATTR_MAX + 1] = {
 378	[OVS_TUNNEL_KEY_ATTR_ID]	    = { .len = sizeof(u64) },
 379	[OVS_TUNNEL_KEY_ATTR_IPV4_SRC]	    = { .len = sizeof(u32) },
 380	[OVS_TUNNEL_KEY_ATTR_IPV4_DST]	    = { .len = sizeof(u32) },
 381	[OVS_TUNNEL_KEY_ATTR_TOS]	    = { .len = 1 },
 382	[OVS_TUNNEL_KEY_ATTR_TTL]	    = { .len = 1 },
 383	[OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT] = { .len = 0 },
 384	[OVS_TUNNEL_KEY_ATTR_CSUM]	    = { .len = 0 },
 385	[OVS_TUNNEL_KEY_ATTR_TP_SRC]	    = { .len = sizeof(u16) },
 386	[OVS_TUNNEL_KEY_ATTR_TP_DST]	    = { .len = sizeof(u16) },
 387	[OVS_TUNNEL_KEY_ATTR_OAM]	    = { .len = 0 },
 388	[OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS]   = { .len = OVS_ATTR_VARIABLE },
 389	[OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS]    = { .len = OVS_ATTR_NESTED,
 390						.next = ovs_vxlan_ext_key_lens },
 391	[OVS_TUNNEL_KEY_ATTR_IPV6_SRC]      = { .len = sizeof(struct in6_addr) },
 392	[OVS_TUNNEL_KEY_ATTR_IPV6_DST]      = { .len = sizeof(struct in6_addr) },
 393	[OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS]   = { .len = OVS_ATTR_VARIABLE },
 394	[OVS_TUNNEL_KEY_ATTR_IPV4_INFO_BRIDGE]   = { .len = 0 },
 395};
 396
 397static const struct ovs_len_tbl
 398ovs_nsh_key_attr_lens[OVS_NSH_KEY_ATTR_MAX + 1] = {
 399	[OVS_NSH_KEY_ATTR_BASE] = { .len = sizeof(struct ovs_nsh_key_base) },
 400	[OVS_NSH_KEY_ATTR_MD1]  = { .len = sizeof(struct ovs_nsh_key_md1) },
 401	[OVS_NSH_KEY_ATTR_MD2]  = { .len = OVS_ATTR_VARIABLE },
 402};
 403
 404/* The size of the argument for each %OVS_KEY_ATTR_* Netlink attribute.  */
 405static const struct ovs_len_tbl ovs_key_lens[OVS_KEY_ATTR_MAX + 1] = {
 406	[OVS_KEY_ATTR_ENCAP]	 = { .len = OVS_ATTR_NESTED },
 407	[OVS_KEY_ATTR_PRIORITY]	 = { .len = sizeof(u32) },
 408	[OVS_KEY_ATTR_IN_PORT]	 = { .len = sizeof(u32) },
 409	[OVS_KEY_ATTR_SKB_MARK]	 = { .len = sizeof(u32) },
 410	[OVS_KEY_ATTR_ETHERNET]	 = { .len = sizeof(struct ovs_key_ethernet) },
 411	[OVS_KEY_ATTR_VLAN]	 = { .len = sizeof(__be16) },
 412	[OVS_KEY_ATTR_ETHERTYPE] = { .len = sizeof(__be16) },
 413	[OVS_KEY_ATTR_IPV4]	 = { .len = sizeof(struct ovs_key_ipv4) },
 414	[OVS_KEY_ATTR_IPV6]	 = { .len = sizeof(struct ovs_key_ipv6) },
 415	[OVS_KEY_ATTR_TCP]	 = { .len = sizeof(struct ovs_key_tcp) },
 416	[OVS_KEY_ATTR_TCP_FLAGS] = { .len = sizeof(__be16) },
 417	[OVS_KEY_ATTR_UDP]	 = { .len = sizeof(struct ovs_key_udp) },
 418	[OVS_KEY_ATTR_SCTP]	 = { .len = sizeof(struct ovs_key_sctp) },
 419	[OVS_KEY_ATTR_ICMP]	 = { .len = sizeof(struct ovs_key_icmp) },
 420	[OVS_KEY_ATTR_ICMPV6]	 = { .len = sizeof(struct ovs_key_icmpv6) },
 421	[OVS_KEY_ATTR_ARP]	 = { .len = sizeof(struct ovs_key_arp) },
 422	[OVS_KEY_ATTR_ND]	 = { .len = sizeof(struct ovs_key_nd) },
 423	[OVS_KEY_ATTR_RECIRC_ID] = { .len = sizeof(u32) },
 424	[OVS_KEY_ATTR_DP_HASH]	 = { .len = sizeof(u32) },
 425	[OVS_KEY_ATTR_TUNNEL]	 = { .len = OVS_ATTR_NESTED,
 426				     .next = ovs_tunnel_key_lens, },
 427	[OVS_KEY_ATTR_MPLS]	 = { .len = sizeof(struct ovs_key_mpls) },
 428	[OVS_KEY_ATTR_CT_STATE]	 = { .len = sizeof(u32) },
 429	[OVS_KEY_ATTR_CT_ZONE]	 = { .len = sizeof(u16) },
 430	[OVS_KEY_ATTR_CT_MARK]	 = { .len = sizeof(u32) },
 431	[OVS_KEY_ATTR_CT_LABELS] = { .len = sizeof(struct ovs_key_ct_labels) },
 432	[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4] = {
 433		.len = sizeof(struct ovs_key_ct_tuple_ipv4) },
 434	[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6] = {
 435		.len = sizeof(struct ovs_key_ct_tuple_ipv6) },
 436	[OVS_KEY_ATTR_NSH]       = { .len = OVS_ATTR_NESTED,
 437				     .next = ovs_nsh_key_attr_lens, },
 
 
 438};
 439
 440static bool check_attr_len(unsigned int attr_len, unsigned int expected_len)
 441{
 442	return expected_len == attr_len ||
 443	       expected_len == OVS_ATTR_NESTED ||
 444	       expected_len == OVS_ATTR_VARIABLE;
 445}
 446
 447static bool is_all_zero(const u8 *fp, size_t size)
 448{
 449	int i;
 450
 451	if (!fp)
 452		return false;
 453
 454	for (i = 0; i < size; i++)
 455		if (fp[i])
 456			return false;
 457
 458	return true;
 459}
 460
 461static int __parse_flow_nlattrs(const struct nlattr *attr,
 462				const struct nlattr *a[],
 463				u64 *attrsp, bool log, bool nz)
 464{
 465	const struct nlattr *nla;
 466	u64 attrs;
 467	int rem;
 468
 469	attrs = *attrsp;
 470	nla_for_each_nested(nla, attr, rem) {
 471		u16 type = nla_type(nla);
 472		int expected_len;
 473
 474		if (type > OVS_KEY_ATTR_MAX) {
 475			OVS_NLERR(log, "Key type %d is out of range max %d",
 476				  type, OVS_KEY_ATTR_MAX);
 477			return -EINVAL;
 478		}
 479
 480		if (attrs & (1 << type)) {
 
 
 
 
 
 
 
 481			OVS_NLERR(log, "Duplicate key (type %d).", type);
 482			return -EINVAL;
 483		}
 484
 485		expected_len = ovs_key_lens[type].len;
 486		if (!check_attr_len(nla_len(nla), expected_len)) {
 487			OVS_NLERR(log, "Key %d has unexpected len %d expected %d",
 488				  type, nla_len(nla), expected_len);
 489			return -EINVAL;
 490		}
 491
 492		if (!nz || !is_all_zero(nla_data(nla), nla_len(nla))) {
 493			attrs |= 1 << type;
 494			a[type] = nla;
 495		}
 496	}
 497	if (rem) {
 498		OVS_NLERR(log, "Message has %d unknown bytes.", rem);
 499		return -EINVAL;
 500	}
 501
 502	*attrsp = attrs;
 503	return 0;
 504}
 505
 506static int parse_flow_mask_nlattrs(const struct nlattr *attr,
 507				   const struct nlattr *a[], u64 *attrsp,
 508				   bool log)
 509{
 510	return __parse_flow_nlattrs(attr, a, attrsp, log, true);
 511}
 512
 513int parse_flow_nlattrs(const struct nlattr *attr, const struct nlattr *a[],
 514		       u64 *attrsp, bool log)
 515{
 516	return __parse_flow_nlattrs(attr, a, attrsp, log, false);
 517}
 518
 519static int genev_tun_opt_from_nlattr(const struct nlattr *a,
 520				     struct sw_flow_match *match, bool is_mask,
 521				     bool log)
 522{
 523	unsigned long opt_key_offset;
 524
 525	if (nla_len(a) > sizeof(match->key->tun_opts)) {
 526		OVS_NLERR(log, "Geneve option length err (len %d, max %zu).",
 527			  nla_len(a), sizeof(match->key->tun_opts));
 528		return -EINVAL;
 529	}
 530
 531	if (nla_len(a) % 4 != 0) {
 532		OVS_NLERR(log, "Geneve opt len %d is not a multiple of 4.",
 533			  nla_len(a));
 534		return -EINVAL;
 535	}
 536
 537	/* We need to record the length of the options passed
 538	 * down, otherwise packets with the same format but
 539	 * additional options will be silently matched.
 540	 */
 541	if (!is_mask) {
 542		SW_FLOW_KEY_PUT(match, tun_opts_len, nla_len(a),
 543				false);
 544	} else {
 545		/* This is somewhat unusual because it looks at
 546		 * both the key and mask while parsing the
 547		 * attributes (and by extension assumes the key
 548		 * is parsed first). Normally, we would verify
 549		 * that each is the correct length and that the
 550		 * attributes line up in the validate function.
 551		 * However, that is difficult because this is
 552		 * variable length and we won't have the
 553		 * information later.
 554		 */
 555		if (match->key->tun_opts_len != nla_len(a)) {
 556			OVS_NLERR(log, "Geneve option len %d != mask len %d",
 557				  match->key->tun_opts_len, nla_len(a));
 558			return -EINVAL;
 559		}
 560
 561		SW_FLOW_KEY_PUT(match, tun_opts_len, 0xff, true);
 562	}
 563
 564	opt_key_offset = TUN_METADATA_OFFSET(nla_len(a));
 565	SW_FLOW_KEY_MEMCPY_OFFSET(match, opt_key_offset, nla_data(a),
 566				  nla_len(a), is_mask);
 567	return 0;
 568}
 569
 570static int vxlan_tun_opt_from_nlattr(const struct nlattr *attr,
 571				     struct sw_flow_match *match, bool is_mask,
 572				     bool log)
 573{
 574	struct nlattr *a;
 575	int rem;
 576	unsigned long opt_key_offset;
 577	struct vxlan_metadata opts;
 578
 579	BUILD_BUG_ON(sizeof(opts) > sizeof(match->key->tun_opts));
 580
 581	memset(&opts, 0, sizeof(opts));
 582	nla_for_each_nested(a, attr, rem) {
 583		int type = nla_type(a);
 584
 585		if (type > OVS_VXLAN_EXT_MAX) {
 586			OVS_NLERR(log, "VXLAN extension %d out of range max %d",
 587				  type, OVS_VXLAN_EXT_MAX);
 588			return -EINVAL;
 589		}
 590
 591		if (!check_attr_len(nla_len(a),
 592				    ovs_vxlan_ext_key_lens[type].len)) {
 593			OVS_NLERR(log, "VXLAN extension %d has unexpected len %d expected %d",
 594				  type, nla_len(a),
 595				  ovs_vxlan_ext_key_lens[type].len);
 596			return -EINVAL;
 597		}
 598
 599		switch (type) {
 600		case OVS_VXLAN_EXT_GBP:
 601			opts.gbp = nla_get_u32(a);
 602			break;
 603		default:
 604			OVS_NLERR(log, "Unknown VXLAN extension attribute %d",
 605				  type);
 606			return -EINVAL;
 607		}
 608	}
 609	if (rem) {
 610		OVS_NLERR(log, "VXLAN extension message has %d unknown bytes.",
 611			  rem);
 612		return -EINVAL;
 613	}
 614
 615	if (!is_mask)
 616		SW_FLOW_KEY_PUT(match, tun_opts_len, sizeof(opts), false);
 617	else
 618		SW_FLOW_KEY_PUT(match, tun_opts_len, 0xff, true);
 619
 620	opt_key_offset = TUN_METADATA_OFFSET(sizeof(opts));
 621	SW_FLOW_KEY_MEMCPY_OFFSET(match, opt_key_offset, &opts, sizeof(opts),
 622				  is_mask);
 623	return 0;
 624}
 625
 626static int erspan_tun_opt_from_nlattr(const struct nlattr *a,
 627				      struct sw_flow_match *match, bool is_mask,
 628				      bool log)
 629{
 630	unsigned long opt_key_offset;
 631
 632	BUILD_BUG_ON(sizeof(struct erspan_metadata) >
 633		     sizeof(match->key->tun_opts));
 634
 635	if (nla_len(a) > sizeof(match->key->tun_opts)) {
 636		OVS_NLERR(log, "ERSPAN option length err (len %d, max %zu).",
 637			  nla_len(a), sizeof(match->key->tun_opts));
 638		return -EINVAL;
 639	}
 640
 641	if (!is_mask)
 642		SW_FLOW_KEY_PUT(match, tun_opts_len,
 643				sizeof(struct erspan_metadata), false);
 644	else
 645		SW_FLOW_KEY_PUT(match, tun_opts_len, 0xff, true);
 646
 647	opt_key_offset = TUN_METADATA_OFFSET(nla_len(a));
 648	SW_FLOW_KEY_MEMCPY_OFFSET(match, opt_key_offset, nla_data(a),
 649				  nla_len(a), is_mask);
 650	return 0;
 651}
 652
 653static int ip_tun_from_nlattr(const struct nlattr *attr,
 654			      struct sw_flow_match *match, bool is_mask,
 655			      bool log)
 656{
 657	bool ttl = false, ipv4 = false, ipv6 = false;
 
 658	bool info_bridge_mode = false;
 659	__be16 tun_flags = 0;
 660	int opts_type = 0;
 661	struct nlattr *a;
 662	int rem;
 663
 664	nla_for_each_nested(a, attr, rem) {
 665		int type = nla_type(a);
 666		int err;
 667
 668		if (type > OVS_TUNNEL_KEY_ATTR_MAX) {
 669			OVS_NLERR(log, "Tunnel attr %d out of range max %d",
 670				  type, OVS_TUNNEL_KEY_ATTR_MAX);
 671			return -EINVAL;
 672		}
 673
 674		if (!check_attr_len(nla_len(a),
 675				    ovs_tunnel_key_lens[type].len)) {
 676			OVS_NLERR(log, "Tunnel attr %d has unexpected len %d expected %d",
 677				  type, nla_len(a), ovs_tunnel_key_lens[type].len);
 678			return -EINVAL;
 679		}
 680
 681		switch (type) {
 682		case OVS_TUNNEL_KEY_ATTR_ID:
 683			SW_FLOW_KEY_PUT(match, tun_key.tun_id,
 684					nla_get_be64(a), is_mask);
 685			tun_flags |= TUNNEL_KEY;
 686			break;
 687		case OVS_TUNNEL_KEY_ATTR_IPV4_SRC:
 688			SW_FLOW_KEY_PUT(match, tun_key.u.ipv4.src,
 689					nla_get_in_addr(a), is_mask);
 690			ipv4 = true;
 691			break;
 692		case OVS_TUNNEL_KEY_ATTR_IPV4_DST:
 693			SW_FLOW_KEY_PUT(match, tun_key.u.ipv4.dst,
 694					nla_get_in_addr(a), is_mask);
 695			ipv4 = true;
 696			break;
 697		case OVS_TUNNEL_KEY_ATTR_IPV6_SRC:
 698			SW_FLOW_KEY_PUT(match, tun_key.u.ipv6.src,
 699					nla_get_in6_addr(a), is_mask);
 700			ipv6 = true;
 701			break;
 702		case OVS_TUNNEL_KEY_ATTR_IPV6_DST:
 703			SW_FLOW_KEY_PUT(match, tun_key.u.ipv6.dst,
 704					nla_get_in6_addr(a), is_mask);
 705			ipv6 = true;
 706			break;
 707		case OVS_TUNNEL_KEY_ATTR_TOS:
 708			SW_FLOW_KEY_PUT(match, tun_key.tos,
 709					nla_get_u8(a), is_mask);
 710			break;
 711		case OVS_TUNNEL_KEY_ATTR_TTL:
 712			SW_FLOW_KEY_PUT(match, tun_key.ttl,
 713					nla_get_u8(a), is_mask);
 714			ttl = true;
 715			break;
 716		case OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT:
 717			tun_flags |= TUNNEL_DONT_FRAGMENT;
 718			break;
 719		case OVS_TUNNEL_KEY_ATTR_CSUM:
 720			tun_flags |= TUNNEL_CSUM;
 721			break;
 722		case OVS_TUNNEL_KEY_ATTR_TP_SRC:
 723			SW_FLOW_KEY_PUT(match, tun_key.tp_src,
 724					nla_get_be16(a), is_mask);
 725			break;
 726		case OVS_TUNNEL_KEY_ATTR_TP_DST:
 727			SW_FLOW_KEY_PUT(match, tun_key.tp_dst,
 728					nla_get_be16(a), is_mask);
 729			break;
 730		case OVS_TUNNEL_KEY_ATTR_OAM:
 731			tun_flags |= TUNNEL_OAM;
 732			break;
 733		case OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS:
 734			if (opts_type) {
 735				OVS_NLERR(log, "Multiple metadata blocks provided");
 736				return -EINVAL;
 737			}
 738
 739			err = genev_tun_opt_from_nlattr(a, match, is_mask, log);
 740			if (err)
 741				return err;
 742
 743			tun_flags |= TUNNEL_GENEVE_OPT;
 744			opts_type = type;
 745			break;
 746		case OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS:
 747			if (opts_type) {
 748				OVS_NLERR(log, "Multiple metadata blocks provided");
 749				return -EINVAL;
 750			}
 751
 752			err = vxlan_tun_opt_from_nlattr(a, match, is_mask, log);
 753			if (err)
 754				return err;
 755
 756			tun_flags |= TUNNEL_VXLAN_OPT;
 757			opts_type = type;
 758			break;
 759		case OVS_TUNNEL_KEY_ATTR_PAD:
 760			break;
 761		case OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS:
 762			if (opts_type) {
 763				OVS_NLERR(log, "Multiple metadata blocks provided");
 764				return -EINVAL;
 765			}
 766
 767			err = erspan_tun_opt_from_nlattr(a, match, is_mask,
 768							 log);
 769			if (err)
 770				return err;
 771
 772			tun_flags |= TUNNEL_ERSPAN_OPT;
 773			opts_type = type;
 774			break;
 775		case OVS_TUNNEL_KEY_ATTR_IPV4_INFO_BRIDGE:
 776			info_bridge_mode = true;
 777			ipv4 = true;
 778			break;
 779		default:
 780			OVS_NLERR(log, "Unknown IP tunnel attribute %d",
 781				  type);
 782			return -EINVAL;
 783		}
 784	}
 785
 786	SW_FLOW_KEY_PUT(match, tun_key.tun_flags, tun_flags, is_mask);
 
 787	if (is_mask)
 788		SW_FLOW_KEY_MEMSET_FIELD(match, tun_proto, 0xff, true);
 789	else
 790		SW_FLOW_KEY_PUT(match, tun_proto, ipv6 ? AF_INET6 : AF_INET,
 791				false);
 792
 793	if (rem > 0) {
 794		OVS_NLERR(log, "IP tunnel attribute has %d unknown bytes.",
 795			  rem);
 796		return -EINVAL;
 797	}
 798
 799	if (ipv4 && ipv6) {
 800		OVS_NLERR(log, "Mixed IPv4 and IPv6 tunnel attributes");
 801		return -EINVAL;
 802	}
 803
 804	if (!is_mask) {
 805		if (!ipv4 && !ipv6) {
 806			OVS_NLERR(log, "IP tunnel dst address not specified");
 807			return -EINVAL;
 808		}
 809		if (ipv4) {
 810			if (info_bridge_mode) {
 
 
 811				if (match->key->tun_key.u.ipv4.src ||
 812				    match->key->tun_key.u.ipv4.dst ||
 813				    match->key->tun_key.tp_src ||
 814				    match->key->tun_key.tp_dst ||
 815				    match->key->tun_key.ttl ||
 816				    match->key->tun_key.tos ||
 817				    tun_flags & ~TUNNEL_KEY) {
 818					OVS_NLERR(log, "IPv4 tun info is not correct");
 819					return -EINVAL;
 820				}
 821			} else if (!match->key->tun_key.u.ipv4.dst) {
 822				OVS_NLERR(log, "IPv4 tunnel dst address is zero");
 823				return -EINVAL;
 824			}
 825		}
 826		if (ipv6 && ipv6_addr_any(&match->key->tun_key.u.ipv6.dst)) {
 827			OVS_NLERR(log, "IPv6 tunnel dst address is zero");
 828			return -EINVAL;
 829		}
 830
 831		if (!ttl && !info_bridge_mode) {
 832			OVS_NLERR(log, "IP tunnel TTL not specified.");
 833			return -EINVAL;
 834		}
 835	}
 836
 837	return opts_type;
 838}
 839
 840static int vxlan_opt_to_nlattr(struct sk_buff *skb,
 841			       const void *tun_opts, int swkey_tun_opts_len)
 842{
 843	const struct vxlan_metadata *opts = tun_opts;
 844	struct nlattr *nla;
 845
 846	nla = nla_nest_start_noflag(skb, OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS);
 847	if (!nla)
 848		return -EMSGSIZE;
 849
 850	if (nla_put_u32(skb, OVS_VXLAN_EXT_GBP, opts->gbp) < 0)
 851		return -EMSGSIZE;
 852
 853	nla_nest_end(skb, nla);
 854	return 0;
 855}
 856
 857static int __ip_tun_to_nlattr(struct sk_buff *skb,
 858			      const struct ip_tunnel_key *output,
 859			      const void *tun_opts, int swkey_tun_opts_len,
 860			      unsigned short tun_proto, u8 mode)
 861{
 862	if (output->tun_flags & TUNNEL_KEY &&
 863	    nla_put_be64(skb, OVS_TUNNEL_KEY_ATTR_ID, output->tun_id,
 864			 OVS_TUNNEL_KEY_ATTR_PAD))
 865		return -EMSGSIZE;
 866
 867	if (mode & IP_TUNNEL_INFO_BRIDGE)
 868		return nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_IPV4_INFO_BRIDGE)
 869		       ? -EMSGSIZE : 0;
 870
 871	switch (tun_proto) {
 872	case AF_INET:
 873		if (output->u.ipv4.src &&
 874		    nla_put_in_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV4_SRC,
 875				    output->u.ipv4.src))
 876			return -EMSGSIZE;
 877		if (output->u.ipv4.dst &&
 878		    nla_put_in_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV4_DST,
 879				    output->u.ipv4.dst))
 880			return -EMSGSIZE;
 881		break;
 882	case AF_INET6:
 883		if (!ipv6_addr_any(&output->u.ipv6.src) &&
 884		    nla_put_in6_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV6_SRC,
 885				     &output->u.ipv6.src))
 886			return -EMSGSIZE;
 887		if (!ipv6_addr_any(&output->u.ipv6.dst) &&
 888		    nla_put_in6_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV6_DST,
 889				     &output->u.ipv6.dst))
 890			return -EMSGSIZE;
 891		break;
 892	}
 893	if (output->tos &&
 894	    nla_put_u8(skb, OVS_TUNNEL_KEY_ATTR_TOS, output->tos))
 895		return -EMSGSIZE;
 896	if (nla_put_u8(skb, OVS_TUNNEL_KEY_ATTR_TTL, output->ttl))
 897		return -EMSGSIZE;
 898	if ((output->tun_flags & TUNNEL_DONT_FRAGMENT) &&
 899	    nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT))
 900		return -EMSGSIZE;
 901	if ((output->tun_flags & TUNNEL_CSUM) &&
 902	    nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_CSUM))
 903		return -EMSGSIZE;
 904	if (output->tp_src &&
 905	    nla_put_be16(skb, OVS_TUNNEL_KEY_ATTR_TP_SRC, output->tp_src))
 906		return -EMSGSIZE;
 907	if (output->tp_dst &&
 908	    nla_put_be16(skb, OVS_TUNNEL_KEY_ATTR_TP_DST, output->tp_dst))
 909		return -EMSGSIZE;
 910	if ((output->tun_flags & TUNNEL_OAM) &&
 911	    nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_OAM))
 912		return -EMSGSIZE;
 913	if (swkey_tun_opts_len) {
 914		if (output->tun_flags & TUNNEL_GENEVE_OPT &&
 915		    nla_put(skb, OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS,
 916			    swkey_tun_opts_len, tun_opts))
 917			return -EMSGSIZE;
 918		else if (output->tun_flags & TUNNEL_VXLAN_OPT &&
 
 919			 vxlan_opt_to_nlattr(skb, tun_opts, swkey_tun_opts_len))
 920			return -EMSGSIZE;
 921		else if (output->tun_flags & TUNNEL_ERSPAN_OPT &&
 
 922			 nla_put(skb, OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS,
 923				 swkey_tun_opts_len, tun_opts))
 924			return -EMSGSIZE;
 925	}
 926
 927	return 0;
 928}
 929
 930static int ip_tun_to_nlattr(struct sk_buff *skb,
 931			    const struct ip_tunnel_key *output,
 932			    const void *tun_opts, int swkey_tun_opts_len,
 933			    unsigned short tun_proto, u8 mode)
 934{
 935	struct nlattr *nla;
 936	int err;
 937
 938	nla = nla_nest_start_noflag(skb, OVS_KEY_ATTR_TUNNEL);
 939	if (!nla)
 940		return -EMSGSIZE;
 941
 942	err = __ip_tun_to_nlattr(skb, output, tun_opts, swkey_tun_opts_len,
 943				 tun_proto, mode);
 944	if (err)
 945		return err;
 946
 947	nla_nest_end(skb, nla);
 948	return 0;
 949}
 950
 951int ovs_nla_put_tunnel_info(struct sk_buff *skb,
 952			    struct ip_tunnel_info *tun_info)
 953{
 954	return __ip_tun_to_nlattr(skb, &tun_info->key,
 955				  ip_tunnel_info_opts(tun_info),
 956				  tun_info->options_len,
 957				  ip_tunnel_info_af(tun_info), tun_info->mode);
 958}
 959
 960static int encode_vlan_from_nlattrs(struct sw_flow_match *match,
 961				    const struct nlattr *a[],
 962				    bool is_mask, bool inner)
 963{
 964	__be16 tci = 0;
 965	__be16 tpid = 0;
 966
 967	if (a[OVS_KEY_ATTR_VLAN])
 968		tci = nla_get_be16(a[OVS_KEY_ATTR_VLAN]);
 969
 970	if (a[OVS_KEY_ATTR_ETHERTYPE])
 971		tpid = nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE]);
 972
 973	if (likely(!inner)) {
 974		SW_FLOW_KEY_PUT(match, eth.vlan.tpid, tpid, is_mask);
 975		SW_FLOW_KEY_PUT(match, eth.vlan.tci, tci, is_mask);
 976	} else {
 977		SW_FLOW_KEY_PUT(match, eth.cvlan.tpid, tpid, is_mask);
 978		SW_FLOW_KEY_PUT(match, eth.cvlan.tci, tci, is_mask);
 979	}
 980	return 0;
 981}
 982
 983static int validate_vlan_from_nlattrs(const struct sw_flow_match *match,
 984				      u64 key_attrs, bool inner,
 985				      const struct nlattr **a, bool log)
 986{
 987	__be16 tci = 0;
 988
 989	if (!((key_attrs & (1 << OVS_KEY_ATTR_ETHERNET)) &&
 990	      (key_attrs & (1 << OVS_KEY_ATTR_ETHERTYPE)) &&
 991	       eth_type_vlan(nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE])))) {
 992		/* Not a VLAN. */
 993		return 0;
 994	}
 995
 996	if (!((key_attrs & (1 << OVS_KEY_ATTR_VLAN)) &&
 997	      (key_attrs & (1 << OVS_KEY_ATTR_ENCAP)))) {
 998		OVS_NLERR(log, "Invalid %s frame", (inner) ? "C-VLAN" : "VLAN");
 999		return -EINVAL;
1000	}
1001
1002	if (a[OVS_KEY_ATTR_VLAN])
1003		tci = nla_get_be16(a[OVS_KEY_ATTR_VLAN]);
1004
1005	if (!(tci & htons(VLAN_CFI_MASK))) {
1006		if (tci) {
1007			OVS_NLERR(log, "%s TCI does not have VLAN_CFI_MASK bit set.",
1008				  (inner) ? "C-VLAN" : "VLAN");
1009			return -EINVAL;
1010		} else if (nla_len(a[OVS_KEY_ATTR_ENCAP])) {
1011			/* Corner case for truncated VLAN header. */
1012			OVS_NLERR(log, "Truncated %s header has non-zero encap attribute.",
1013				  (inner) ? "C-VLAN" : "VLAN");
1014			return -EINVAL;
1015		}
1016	}
1017
1018	return 1;
1019}
1020
1021static int validate_vlan_mask_from_nlattrs(const struct sw_flow_match *match,
1022					   u64 key_attrs, bool inner,
1023					   const struct nlattr **a, bool log)
1024{
1025	__be16 tci = 0;
1026	__be16 tpid = 0;
1027	bool encap_valid = !!(match->key->eth.vlan.tci &
1028			      htons(VLAN_CFI_MASK));
1029	bool i_encap_valid = !!(match->key->eth.cvlan.tci &
1030				htons(VLAN_CFI_MASK));
1031
1032	if (!(key_attrs & (1 << OVS_KEY_ATTR_ENCAP))) {
1033		/* Not a VLAN. */
1034		return 0;
1035	}
1036
1037	if ((!inner && !encap_valid) || (inner && !i_encap_valid)) {
1038		OVS_NLERR(log, "Encap mask attribute is set for non-%s frame.",
1039			  (inner) ? "C-VLAN" : "VLAN");
1040		return -EINVAL;
1041	}
1042
1043	if (a[OVS_KEY_ATTR_VLAN])
1044		tci = nla_get_be16(a[OVS_KEY_ATTR_VLAN]);
1045
1046	if (a[OVS_KEY_ATTR_ETHERTYPE])
1047		tpid = nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE]);
1048
1049	if (tpid != htons(0xffff)) {
1050		OVS_NLERR(log, "Must have an exact match on %s TPID (mask=%x).",
1051			  (inner) ? "C-VLAN" : "VLAN", ntohs(tpid));
1052		return -EINVAL;
1053	}
1054	if (!(tci & htons(VLAN_CFI_MASK))) {
1055		OVS_NLERR(log, "%s TCI mask does not have exact match for VLAN_CFI_MASK bit.",
1056			  (inner) ? "C-VLAN" : "VLAN");
1057		return -EINVAL;
1058	}
1059
1060	return 1;
1061}
1062
1063static int __parse_vlan_from_nlattrs(struct sw_flow_match *match,
1064				     u64 *key_attrs, bool inner,
1065				     const struct nlattr **a, bool is_mask,
1066				     bool log)
1067{
1068	int err;
1069	const struct nlattr *encap;
1070
1071	if (!is_mask)
1072		err = validate_vlan_from_nlattrs(match, *key_attrs, inner,
1073						 a, log);
1074	else
1075		err = validate_vlan_mask_from_nlattrs(match, *key_attrs, inner,
1076						      a, log);
1077	if (err <= 0)
1078		return err;
1079
1080	err = encode_vlan_from_nlattrs(match, a, is_mask, inner);
1081	if (err)
1082		return err;
1083
1084	*key_attrs &= ~(1 << OVS_KEY_ATTR_ENCAP);
1085	*key_attrs &= ~(1 << OVS_KEY_ATTR_VLAN);
1086	*key_attrs &= ~(1 << OVS_KEY_ATTR_ETHERTYPE);
1087
1088	encap = a[OVS_KEY_ATTR_ENCAP];
1089
1090	if (!is_mask)
1091		err = parse_flow_nlattrs(encap, a, key_attrs, log);
1092	else
1093		err = parse_flow_mask_nlattrs(encap, a, key_attrs, log);
1094
1095	return err;
1096}
1097
1098static int parse_vlan_from_nlattrs(struct sw_flow_match *match,
1099				   u64 *key_attrs, const struct nlattr **a,
1100				   bool is_mask, bool log)
1101{
1102	int err;
1103	bool encap_valid = false;
1104
1105	err = __parse_vlan_from_nlattrs(match, key_attrs, false, a,
1106					is_mask, log);
1107	if (err)
1108		return err;
1109
1110	encap_valid = !!(match->key->eth.vlan.tci & htons(VLAN_CFI_MASK));
1111	if (encap_valid) {
1112		err = __parse_vlan_from_nlattrs(match, key_attrs, true, a,
1113						is_mask, log);
1114		if (err)
1115			return err;
1116	}
1117
1118	return 0;
1119}
1120
1121static int parse_eth_type_from_nlattrs(struct sw_flow_match *match,
1122				       u64 *attrs, const struct nlattr **a,
1123				       bool is_mask, bool log)
1124{
1125	__be16 eth_type;
1126
1127	eth_type = nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE]);
1128	if (is_mask) {
1129		/* Always exact match EtherType. */
1130		eth_type = htons(0xffff);
1131	} else if (!eth_proto_is_802_3(eth_type)) {
1132		OVS_NLERR(log, "EtherType %x is less than min %x",
1133				ntohs(eth_type), ETH_P_802_3_MIN);
1134		return -EINVAL;
1135	}
1136
1137	SW_FLOW_KEY_PUT(match, eth.type, eth_type, is_mask);
1138	*attrs &= ~(1 << OVS_KEY_ATTR_ETHERTYPE);
1139	return 0;
1140}
1141
1142static int metadata_from_nlattrs(struct net *net, struct sw_flow_match *match,
1143				 u64 *attrs, const struct nlattr **a,
1144				 bool is_mask, bool log)
1145{
1146	u8 mac_proto = MAC_PROTO_ETHERNET;
1147
1148	if (*attrs & (1 << OVS_KEY_ATTR_DP_HASH)) {
1149		u32 hash_val = nla_get_u32(a[OVS_KEY_ATTR_DP_HASH]);
1150
1151		SW_FLOW_KEY_PUT(match, ovs_flow_hash, hash_val, is_mask);
1152		*attrs &= ~(1 << OVS_KEY_ATTR_DP_HASH);
1153	}
1154
1155	if (*attrs & (1 << OVS_KEY_ATTR_RECIRC_ID)) {
1156		u32 recirc_id = nla_get_u32(a[OVS_KEY_ATTR_RECIRC_ID]);
1157
1158		SW_FLOW_KEY_PUT(match, recirc_id, recirc_id, is_mask);
1159		*attrs &= ~(1 << OVS_KEY_ATTR_RECIRC_ID);
1160	}
1161
1162	if (*attrs & (1 << OVS_KEY_ATTR_PRIORITY)) {
1163		SW_FLOW_KEY_PUT(match, phy.priority,
1164			  nla_get_u32(a[OVS_KEY_ATTR_PRIORITY]), is_mask);
1165		*attrs &= ~(1 << OVS_KEY_ATTR_PRIORITY);
1166	}
1167
1168	if (*attrs & (1 << OVS_KEY_ATTR_IN_PORT)) {
1169		u32 in_port = nla_get_u32(a[OVS_KEY_ATTR_IN_PORT]);
1170
1171		if (is_mask) {
1172			in_port = 0xffffffff; /* Always exact match in_port. */
1173		} else if (in_port >= DP_MAX_PORTS) {
1174			OVS_NLERR(log, "Port %d exceeds max allowable %d",
1175				  in_port, DP_MAX_PORTS);
1176			return -EINVAL;
1177		}
1178
1179		SW_FLOW_KEY_PUT(match, phy.in_port, in_port, is_mask);
1180		*attrs &= ~(1 << OVS_KEY_ATTR_IN_PORT);
1181	} else if (!is_mask) {
1182		SW_FLOW_KEY_PUT(match, phy.in_port, DP_MAX_PORTS, is_mask);
1183	}
1184
1185	if (*attrs & (1 << OVS_KEY_ATTR_SKB_MARK)) {
1186		uint32_t mark = nla_get_u32(a[OVS_KEY_ATTR_SKB_MARK]);
1187
1188		SW_FLOW_KEY_PUT(match, phy.skb_mark, mark, is_mask);
1189		*attrs &= ~(1 << OVS_KEY_ATTR_SKB_MARK);
1190	}
1191	if (*attrs & (1 << OVS_KEY_ATTR_TUNNEL)) {
1192		if (ip_tun_from_nlattr(a[OVS_KEY_ATTR_TUNNEL], match,
1193				       is_mask, log) < 0)
1194			return -EINVAL;
1195		*attrs &= ~(1 << OVS_KEY_ATTR_TUNNEL);
1196	}
1197
1198	if (*attrs & (1 << OVS_KEY_ATTR_CT_STATE) &&
1199	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_STATE)) {
1200		u32 ct_state = nla_get_u32(a[OVS_KEY_ATTR_CT_STATE]);
1201
1202		if (ct_state & ~CT_SUPPORTED_MASK) {
1203			OVS_NLERR(log, "ct_state flags %08x unsupported",
1204				  ct_state);
1205			return -EINVAL;
1206		}
1207
1208		SW_FLOW_KEY_PUT(match, ct_state, ct_state, is_mask);
1209		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_STATE);
1210	}
1211	if (*attrs & (1 << OVS_KEY_ATTR_CT_ZONE) &&
1212	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_ZONE)) {
1213		u16 ct_zone = nla_get_u16(a[OVS_KEY_ATTR_CT_ZONE]);
1214
1215		SW_FLOW_KEY_PUT(match, ct_zone, ct_zone, is_mask);
1216		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_ZONE);
1217	}
1218	if (*attrs & (1 << OVS_KEY_ATTR_CT_MARK) &&
1219	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_MARK)) {
1220		u32 mark = nla_get_u32(a[OVS_KEY_ATTR_CT_MARK]);
1221
1222		SW_FLOW_KEY_PUT(match, ct.mark, mark, is_mask);
1223		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_MARK);
1224	}
1225	if (*attrs & (1 << OVS_KEY_ATTR_CT_LABELS) &&
1226	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_LABELS)) {
1227		const struct ovs_key_ct_labels *cl;
1228
1229		cl = nla_data(a[OVS_KEY_ATTR_CT_LABELS]);
1230		SW_FLOW_KEY_MEMCPY(match, ct.labels, cl->ct_labels,
1231				   sizeof(*cl), is_mask);
1232		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_LABELS);
1233	}
1234	if (*attrs & (1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4)) {
1235		const struct ovs_key_ct_tuple_ipv4 *ct;
1236
1237		ct = nla_data(a[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4]);
1238
1239		SW_FLOW_KEY_PUT(match, ipv4.ct_orig.src, ct->ipv4_src, is_mask);
1240		SW_FLOW_KEY_PUT(match, ipv4.ct_orig.dst, ct->ipv4_dst, is_mask);
1241		SW_FLOW_KEY_PUT(match, ct.orig_tp.src, ct->src_port, is_mask);
1242		SW_FLOW_KEY_PUT(match, ct.orig_tp.dst, ct->dst_port, is_mask);
1243		SW_FLOW_KEY_PUT(match, ct_orig_proto, ct->ipv4_proto, is_mask);
1244		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4);
1245	}
1246	if (*attrs & (1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6)) {
1247		const struct ovs_key_ct_tuple_ipv6 *ct;
1248
1249		ct = nla_data(a[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6]);
1250
1251		SW_FLOW_KEY_MEMCPY(match, ipv6.ct_orig.src, &ct->ipv6_src,
1252				   sizeof(match->key->ipv6.ct_orig.src),
1253				   is_mask);
1254		SW_FLOW_KEY_MEMCPY(match, ipv6.ct_orig.dst, &ct->ipv6_dst,
1255				   sizeof(match->key->ipv6.ct_orig.dst),
1256				   is_mask);
1257		SW_FLOW_KEY_PUT(match, ct.orig_tp.src, ct->src_port, is_mask);
1258		SW_FLOW_KEY_PUT(match, ct.orig_tp.dst, ct->dst_port, is_mask);
1259		SW_FLOW_KEY_PUT(match, ct_orig_proto, ct->ipv6_proto, is_mask);
1260		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6);
1261	}
1262
1263	/* For layer 3 packets the Ethernet type is provided
1264	 * and treated as metadata but no MAC addresses are provided.
1265	 */
1266	if (!(*attrs & (1ULL << OVS_KEY_ATTR_ETHERNET)) &&
1267	    (*attrs & (1ULL << OVS_KEY_ATTR_ETHERTYPE)))
1268		mac_proto = MAC_PROTO_NONE;
1269
1270	/* Always exact match mac_proto */
1271	SW_FLOW_KEY_PUT(match, mac_proto, is_mask ? 0xff : mac_proto, is_mask);
1272
1273	if (mac_proto == MAC_PROTO_NONE)
1274		return parse_eth_type_from_nlattrs(match, attrs, a, is_mask,
1275						   log);
1276
1277	return 0;
1278}
1279
1280int nsh_hdr_from_nlattr(const struct nlattr *attr,
1281			struct nshhdr *nh, size_t size)
1282{
1283	struct nlattr *a;
1284	int rem;
1285	u8 flags = 0;
1286	u8 ttl = 0;
1287	int mdlen = 0;
1288
1289	/* validate_nsh has check this, so we needn't do duplicate check here
1290	 */
1291	if (size < NSH_BASE_HDR_LEN)
1292		return -ENOBUFS;
1293
1294	nla_for_each_nested(a, attr, rem) {
1295		int type = nla_type(a);
1296
1297		switch (type) {
1298		case OVS_NSH_KEY_ATTR_BASE: {
1299			const struct ovs_nsh_key_base *base = nla_data(a);
1300
1301			flags = base->flags;
1302			ttl = base->ttl;
1303			nh->np = base->np;
1304			nh->mdtype = base->mdtype;
1305			nh->path_hdr = base->path_hdr;
1306			break;
1307		}
1308		case OVS_NSH_KEY_ATTR_MD1:
1309			mdlen = nla_len(a);
1310			if (mdlen > size - NSH_BASE_HDR_LEN)
1311				return -ENOBUFS;
1312			memcpy(&nh->md1, nla_data(a), mdlen);
1313			break;
1314
1315		case OVS_NSH_KEY_ATTR_MD2:
1316			mdlen = nla_len(a);
1317			if (mdlen > size - NSH_BASE_HDR_LEN)
1318				return -ENOBUFS;
1319			memcpy(&nh->md2, nla_data(a), mdlen);
1320			break;
1321
1322		default:
1323			return -EINVAL;
1324		}
1325	}
1326
1327	/* nsh header length  = NSH_BASE_HDR_LEN + mdlen */
1328	nh->ver_flags_ttl_len = 0;
1329	nsh_set_flags_ttl_len(nh, flags, ttl, NSH_BASE_HDR_LEN + mdlen);
1330
1331	return 0;
1332}
1333
1334int nsh_key_from_nlattr(const struct nlattr *attr,
1335			struct ovs_key_nsh *nsh, struct ovs_key_nsh *nsh_mask)
1336{
1337	struct nlattr *a;
1338	int rem;
1339
1340	/* validate_nsh has check this, so we needn't do duplicate check here
1341	 */
1342	nla_for_each_nested(a, attr, rem) {
1343		int type = nla_type(a);
1344
1345		switch (type) {
1346		case OVS_NSH_KEY_ATTR_BASE: {
1347			const struct ovs_nsh_key_base *base = nla_data(a);
1348			const struct ovs_nsh_key_base *base_mask = base + 1;
1349
1350			nsh->base = *base;
1351			nsh_mask->base = *base_mask;
1352			break;
1353		}
1354		case OVS_NSH_KEY_ATTR_MD1: {
1355			const struct ovs_nsh_key_md1 *md1 = nla_data(a);
1356			const struct ovs_nsh_key_md1 *md1_mask = md1 + 1;
1357
1358			memcpy(nsh->context, md1->context, sizeof(*md1));
1359			memcpy(nsh_mask->context, md1_mask->context,
1360			       sizeof(*md1_mask));
1361			break;
1362		}
1363		case OVS_NSH_KEY_ATTR_MD2:
1364			/* Not supported yet */
1365			return -ENOTSUPP;
1366		default:
1367			return -EINVAL;
1368		}
1369	}
1370
1371	return 0;
1372}
1373
1374static int nsh_key_put_from_nlattr(const struct nlattr *attr,
1375				   struct sw_flow_match *match, bool is_mask,
1376				   bool is_push_nsh, bool log)
1377{
1378	struct nlattr *a;
1379	int rem;
1380	bool has_base = false;
1381	bool has_md1 = false;
1382	bool has_md2 = false;
1383	u8 mdtype = 0;
1384	int mdlen = 0;
1385
1386	if (WARN_ON(is_push_nsh && is_mask))
1387		return -EINVAL;
1388
1389	nla_for_each_nested(a, attr, rem) {
1390		int type = nla_type(a);
1391		int i;
1392
1393		if (type > OVS_NSH_KEY_ATTR_MAX) {
1394			OVS_NLERR(log, "nsh attr %d is out of range max %d",
1395				  type, OVS_NSH_KEY_ATTR_MAX);
1396			return -EINVAL;
1397		}
1398
1399		if (!check_attr_len(nla_len(a),
1400				    ovs_nsh_key_attr_lens[type].len)) {
1401			OVS_NLERR(
1402			    log,
1403			    "nsh attr %d has unexpected len %d expected %d",
1404			    type,
1405			    nla_len(a),
1406			    ovs_nsh_key_attr_lens[type].len
1407			);
1408			return -EINVAL;
1409		}
1410
1411		switch (type) {
1412		case OVS_NSH_KEY_ATTR_BASE: {
1413			const struct ovs_nsh_key_base *base = nla_data(a);
1414
1415			has_base = true;
1416			mdtype = base->mdtype;
1417			SW_FLOW_KEY_PUT(match, nsh.base.flags,
1418					base->flags, is_mask);
1419			SW_FLOW_KEY_PUT(match, nsh.base.ttl,
1420					base->ttl, is_mask);
1421			SW_FLOW_KEY_PUT(match, nsh.base.mdtype,
1422					base->mdtype, is_mask);
1423			SW_FLOW_KEY_PUT(match, nsh.base.np,
1424					base->np, is_mask);
1425			SW_FLOW_KEY_PUT(match, nsh.base.path_hdr,
1426					base->path_hdr, is_mask);
1427			break;
1428		}
1429		case OVS_NSH_KEY_ATTR_MD1: {
1430			const struct ovs_nsh_key_md1 *md1 = nla_data(a);
1431
1432			has_md1 = true;
1433			for (i = 0; i < NSH_MD1_CONTEXT_SIZE; i++)
1434				SW_FLOW_KEY_PUT(match, nsh.context[i],
1435						md1->context[i], is_mask);
1436			break;
1437		}
1438		case OVS_NSH_KEY_ATTR_MD2:
1439			if (!is_push_nsh) /* Not supported MD type 2 yet */
1440				return -ENOTSUPP;
1441
1442			has_md2 = true;
1443			mdlen = nla_len(a);
1444			if (mdlen > NSH_CTX_HDRS_MAX_LEN || mdlen <= 0) {
1445				OVS_NLERR(
1446				    log,
1447				    "Invalid MD length %d for MD type %d",
1448				    mdlen,
1449				    mdtype
1450				);
1451				return -EINVAL;
1452			}
1453			break;
1454		default:
1455			OVS_NLERR(log, "Unknown nsh attribute %d",
1456				  type);
1457			return -EINVAL;
1458		}
1459	}
1460
1461	if (rem > 0) {
1462		OVS_NLERR(log, "nsh attribute has %d unknown bytes.", rem);
1463		return -EINVAL;
1464	}
1465
1466	if (has_md1 && has_md2) {
1467		OVS_NLERR(
1468		    1,
1469		    "invalid nsh attribute: md1 and md2 are exclusive."
1470		);
1471		return -EINVAL;
1472	}
1473
1474	if (!is_mask) {
1475		if ((has_md1 && mdtype != NSH_M_TYPE1) ||
1476		    (has_md2 && mdtype != NSH_M_TYPE2)) {
1477			OVS_NLERR(1, "nsh attribute has unmatched MD type %d.",
1478				  mdtype);
1479			return -EINVAL;
1480		}
1481
1482		if (is_push_nsh &&
1483		    (!has_base || (!has_md1 && !has_md2))) {
1484			OVS_NLERR(
1485			    1,
1486			    "push_nsh: missing base or metadata attributes"
1487			);
1488			return -EINVAL;
1489		}
1490	}
1491
1492	return 0;
1493}
1494
1495static int ovs_key_from_nlattrs(struct net *net, struct sw_flow_match *match,
1496				u64 attrs, const struct nlattr **a,
1497				bool is_mask, bool log)
1498{
1499	int err;
1500
1501	err = metadata_from_nlattrs(net, match, &attrs, a, is_mask, log);
1502	if (err)
1503		return err;
1504
1505	if (attrs & (1 << OVS_KEY_ATTR_ETHERNET)) {
1506		const struct ovs_key_ethernet *eth_key;
1507
1508		eth_key = nla_data(a[OVS_KEY_ATTR_ETHERNET]);
1509		SW_FLOW_KEY_MEMCPY(match, eth.src,
1510				eth_key->eth_src, ETH_ALEN, is_mask);
1511		SW_FLOW_KEY_MEMCPY(match, eth.dst,
1512				eth_key->eth_dst, ETH_ALEN, is_mask);
1513		attrs &= ~(1 << OVS_KEY_ATTR_ETHERNET);
1514
1515		if (attrs & (1 << OVS_KEY_ATTR_VLAN)) {
1516			/* VLAN attribute is always parsed before getting here since it
1517			 * may occur multiple times.
1518			 */
1519			OVS_NLERR(log, "VLAN attribute unexpected.");
1520			return -EINVAL;
1521		}
1522
1523		if (attrs & (1 << OVS_KEY_ATTR_ETHERTYPE)) {
1524			err = parse_eth_type_from_nlattrs(match, &attrs, a, is_mask,
1525							  log);
1526			if (err)
1527				return err;
1528		} else if (!is_mask) {
1529			SW_FLOW_KEY_PUT(match, eth.type, htons(ETH_P_802_2), is_mask);
1530		}
1531	} else if (!match->key->eth.type) {
1532		OVS_NLERR(log, "Either Ethernet header or EtherType is required.");
1533		return -EINVAL;
1534	}
1535
1536	if (attrs & (1 << OVS_KEY_ATTR_IPV4)) {
1537		const struct ovs_key_ipv4 *ipv4_key;
1538
1539		ipv4_key = nla_data(a[OVS_KEY_ATTR_IPV4]);
1540		if (!is_mask && ipv4_key->ipv4_frag > OVS_FRAG_TYPE_MAX) {
1541			OVS_NLERR(log, "IPv4 frag type %d is out of range max %d",
1542				  ipv4_key->ipv4_frag, OVS_FRAG_TYPE_MAX);
1543			return -EINVAL;
1544		}
1545		SW_FLOW_KEY_PUT(match, ip.proto,
1546				ipv4_key->ipv4_proto, is_mask);
1547		SW_FLOW_KEY_PUT(match, ip.tos,
1548				ipv4_key->ipv4_tos, is_mask);
1549		SW_FLOW_KEY_PUT(match, ip.ttl,
1550				ipv4_key->ipv4_ttl, is_mask);
1551		SW_FLOW_KEY_PUT(match, ip.frag,
1552				ipv4_key->ipv4_frag, is_mask);
1553		SW_FLOW_KEY_PUT(match, ipv4.addr.src,
1554				ipv4_key->ipv4_src, is_mask);
1555		SW_FLOW_KEY_PUT(match, ipv4.addr.dst,
1556				ipv4_key->ipv4_dst, is_mask);
1557		attrs &= ~(1 << OVS_KEY_ATTR_IPV4);
1558	}
1559
1560	if (attrs & (1 << OVS_KEY_ATTR_IPV6)) {
1561		const struct ovs_key_ipv6 *ipv6_key;
1562
1563		ipv6_key = nla_data(a[OVS_KEY_ATTR_IPV6]);
1564		if (!is_mask && ipv6_key->ipv6_frag > OVS_FRAG_TYPE_MAX) {
1565			OVS_NLERR(log, "IPv6 frag type %d is out of range max %d",
1566				  ipv6_key->ipv6_frag, OVS_FRAG_TYPE_MAX);
1567			return -EINVAL;
1568		}
1569
1570		if (!is_mask && ipv6_key->ipv6_label & htonl(0xFFF00000)) {
1571			OVS_NLERR(log, "IPv6 flow label %x is out of range (max=%x)",
1572				  ntohl(ipv6_key->ipv6_label), (1 << 20) - 1);
1573			return -EINVAL;
1574		}
1575
1576		SW_FLOW_KEY_PUT(match, ipv6.label,
1577				ipv6_key->ipv6_label, is_mask);
1578		SW_FLOW_KEY_PUT(match, ip.proto,
1579				ipv6_key->ipv6_proto, is_mask);
1580		SW_FLOW_KEY_PUT(match, ip.tos,
1581				ipv6_key->ipv6_tclass, is_mask);
1582		SW_FLOW_KEY_PUT(match, ip.ttl,
1583				ipv6_key->ipv6_hlimit, is_mask);
1584		SW_FLOW_KEY_PUT(match, ip.frag,
1585				ipv6_key->ipv6_frag, is_mask);
1586		SW_FLOW_KEY_MEMCPY(match, ipv6.addr.src,
1587				ipv6_key->ipv6_src,
1588				sizeof(match->key->ipv6.addr.src),
1589				is_mask);
1590		SW_FLOW_KEY_MEMCPY(match, ipv6.addr.dst,
1591				ipv6_key->ipv6_dst,
1592				sizeof(match->key->ipv6.addr.dst),
1593				is_mask);
1594
1595		attrs &= ~(1 << OVS_KEY_ATTR_IPV6);
1596	}
1597
 
 
 
 
 
 
 
 
 
 
 
1598	if (attrs & (1 << OVS_KEY_ATTR_ARP)) {
1599		const struct ovs_key_arp *arp_key;
1600
1601		arp_key = nla_data(a[OVS_KEY_ATTR_ARP]);
1602		if (!is_mask && (arp_key->arp_op & htons(0xff00))) {
1603			OVS_NLERR(log, "Unknown ARP opcode (opcode=%d).",
1604				  arp_key->arp_op);
1605			return -EINVAL;
1606		}
1607
1608		SW_FLOW_KEY_PUT(match, ipv4.addr.src,
1609				arp_key->arp_sip, is_mask);
1610		SW_FLOW_KEY_PUT(match, ipv4.addr.dst,
1611			arp_key->arp_tip, is_mask);
1612		SW_FLOW_KEY_PUT(match, ip.proto,
1613				ntohs(arp_key->arp_op), is_mask);
1614		SW_FLOW_KEY_MEMCPY(match, ipv4.arp.sha,
1615				arp_key->arp_sha, ETH_ALEN, is_mask);
1616		SW_FLOW_KEY_MEMCPY(match, ipv4.arp.tha,
1617				arp_key->arp_tha, ETH_ALEN, is_mask);
1618
1619		attrs &= ~(1 << OVS_KEY_ATTR_ARP);
1620	}
1621
1622	if (attrs & (1 << OVS_KEY_ATTR_NSH)) {
1623		if (nsh_key_put_from_nlattr(a[OVS_KEY_ATTR_NSH], match,
1624					    is_mask, false, log) < 0)
1625			return -EINVAL;
1626		attrs &= ~(1 << OVS_KEY_ATTR_NSH);
1627	}
1628
1629	if (attrs & (1 << OVS_KEY_ATTR_MPLS)) {
1630		const struct ovs_key_mpls *mpls_key;
 
 
1631
1632		mpls_key = nla_data(a[OVS_KEY_ATTR_MPLS]);
1633		SW_FLOW_KEY_PUT(match, mpls.top_lse,
1634				mpls_key->mpls_lse, is_mask);
 
 
 
 
 
 
 
 
 
 
 
 
 
1635
1636		attrs &= ~(1 << OVS_KEY_ATTR_MPLS);
1637	 }
1638
1639	if (attrs & (1 << OVS_KEY_ATTR_TCP)) {
1640		const struct ovs_key_tcp *tcp_key;
1641
1642		tcp_key = nla_data(a[OVS_KEY_ATTR_TCP]);
1643		SW_FLOW_KEY_PUT(match, tp.src, tcp_key->tcp_src, is_mask);
1644		SW_FLOW_KEY_PUT(match, tp.dst, tcp_key->tcp_dst, is_mask);
1645		attrs &= ~(1 << OVS_KEY_ATTR_TCP);
1646	}
1647
1648	if (attrs & (1 << OVS_KEY_ATTR_TCP_FLAGS)) {
1649		SW_FLOW_KEY_PUT(match, tp.flags,
1650				nla_get_be16(a[OVS_KEY_ATTR_TCP_FLAGS]),
1651				is_mask);
1652		attrs &= ~(1 << OVS_KEY_ATTR_TCP_FLAGS);
1653	}
1654
1655	if (attrs & (1 << OVS_KEY_ATTR_UDP)) {
1656		const struct ovs_key_udp *udp_key;
1657
1658		udp_key = nla_data(a[OVS_KEY_ATTR_UDP]);
1659		SW_FLOW_KEY_PUT(match, tp.src, udp_key->udp_src, is_mask);
1660		SW_FLOW_KEY_PUT(match, tp.dst, udp_key->udp_dst, is_mask);
1661		attrs &= ~(1 << OVS_KEY_ATTR_UDP);
1662	}
1663
1664	if (attrs & (1 << OVS_KEY_ATTR_SCTP)) {
1665		const struct ovs_key_sctp *sctp_key;
1666
1667		sctp_key = nla_data(a[OVS_KEY_ATTR_SCTP]);
1668		SW_FLOW_KEY_PUT(match, tp.src, sctp_key->sctp_src, is_mask);
1669		SW_FLOW_KEY_PUT(match, tp.dst, sctp_key->sctp_dst, is_mask);
1670		attrs &= ~(1 << OVS_KEY_ATTR_SCTP);
1671	}
1672
1673	if (attrs & (1 << OVS_KEY_ATTR_ICMP)) {
1674		const struct ovs_key_icmp *icmp_key;
1675
1676		icmp_key = nla_data(a[OVS_KEY_ATTR_ICMP]);
1677		SW_FLOW_KEY_PUT(match, tp.src,
1678				htons(icmp_key->icmp_type), is_mask);
1679		SW_FLOW_KEY_PUT(match, tp.dst,
1680				htons(icmp_key->icmp_code), is_mask);
1681		attrs &= ~(1 << OVS_KEY_ATTR_ICMP);
1682	}
1683
1684	if (attrs & (1 << OVS_KEY_ATTR_ICMPV6)) {
1685		const struct ovs_key_icmpv6 *icmpv6_key;
1686
1687		icmpv6_key = nla_data(a[OVS_KEY_ATTR_ICMPV6]);
1688		SW_FLOW_KEY_PUT(match, tp.src,
1689				htons(icmpv6_key->icmpv6_type), is_mask);
1690		SW_FLOW_KEY_PUT(match, tp.dst,
1691				htons(icmpv6_key->icmpv6_code), is_mask);
1692		attrs &= ~(1 << OVS_KEY_ATTR_ICMPV6);
1693	}
1694
1695	if (attrs & (1 << OVS_KEY_ATTR_ND)) {
1696		const struct ovs_key_nd *nd_key;
1697
1698		nd_key = nla_data(a[OVS_KEY_ATTR_ND]);
1699		SW_FLOW_KEY_MEMCPY(match, ipv6.nd.target,
1700			nd_key->nd_target,
1701			sizeof(match->key->ipv6.nd.target),
1702			is_mask);
1703		SW_FLOW_KEY_MEMCPY(match, ipv6.nd.sll,
1704			nd_key->nd_sll, ETH_ALEN, is_mask);
1705		SW_FLOW_KEY_MEMCPY(match, ipv6.nd.tll,
1706				nd_key->nd_tll, ETH_ALEN, is_mask);
1707		attrs &= ~(1 << OVS_KEY_ATTR_ND);
1708	}
1709
1710	if (attrs != 0) {
1711		OVS_NLERR(log, "Unknown key attributes %llx",
1712			  (unsigned long long)attrs);
1713		return -EINVAL;
1714	}
1715
1716	return 0;
1717}
1718
1719static void nlattr_set(struct nlattr *attr, u8 val,
1720		       const struct ovs_len_tbl *tbl)
1721{
1722	struct nlattr *nla;
1723	int rem;
1724
1725	/* The nlattr stream should already have been validated */
1726	nla_for_each_nested(nla, attr, rem) {
1727		if (tbl[nla_type(nla)].len == OVS_ATTR_NESTED)
1728			nlattr_set(nla, val, tbl[nla_type(nla)].next ? : tbl);
1729		else
1730			memset(nla_data(nla), val, nla_len(nla));
1731
1732		if (nla_type(nla) == OVS_KEY_ATTR_CT_STATE)
1733			*(u32 *)nla_data(nla) &= CT_SUPPORTED_MASK;
1734	}
1735}
1736
1737static void mask_set_nlattr(struct nlattr *attr, u8 val)
1738{
1739	nlattr_set(attr, val, ovs_key_lens);
1740}
1741
1742/**
1743 * ovs_nla_get_match - parses Netlink attributes into a flow key and
1744 * mask. In case the 'mask' is NULL, the flow is treated as exact match
1745 * flow. Otherwise, it is treated as a wildcarded flow, except the mask
1746 * does not include any don't care bit.
1747 * @net: Used to determine per-namespace field support.
1748 * @match: receives the extracted flow match information.
1749 * @key: Netlink attribute holding nested %OVS_KEY_ATTR_* Netlink attribute
1750 * sequence. The fields should of the packet that triggered the creation
1751 * of this flow.
1752 * @mask: Optional. Netlink attribute holding nested %OVS_KEY_ATTR_* Netlink
1753 * attribute specifies the mask field of the wildcarded flow.
1754 * @log: Boolean to allow kernel error logging.  Normally true, but when
1755 * probing for feature compatibility this should be passed in as false to
1756 * suppress unnecessary error logging.
1757 */
1758int ovs_nla_get_match(struct net *net, struct sw_flow_match *match,
1759		      const struct nlattr *nla_key,
1760		      const struct nlattr *nla_mask,
1761		      bool log)
1762{
1763	const struct nlattr *a[OVS_KEY_ATTR_MAX + 1];
1764	struct nlattr *newmask = NULL;
1765	u64 key_attrs = 0;
1766	u64 mask_attrs = 0;
1767	int err;
1768
1769	err = parse_flow_nlattrs(nla_key, a, &key_attrs, log);
1770	if (err)
1771		return err;
1772
1773	err = parse_vlan_from_nlattrs(match, &key_attrs, a, false, log);
1774	if (err)
1775		return err;
1776
1777	err = ovs_key_from_nlattrs(net, match, key_attrs, a, false, log);
1778	if (err)
1779		return err;
1780
1781	if (match->mask) {
1782		if (!nla_mask) {
1783			/* Create an exact match mask. We need to set to 0xff
1784			 * all the 'match->mask' fields that have been touched
1785			 * in 'match->key'. We cannot simply memset
1786			 * 'match->mask', because padding bytes and fields not
1787			 * specified in 'match->key' should be left to 0.
1788			 * Instead, we use a stream of netlink attributes,
1789			 * copied from 'key' and set to 0xff.
1790			 * ovs_key_from_nlattrs() will take care of filling
1791			 * 'match->mask' appropriately.
1792			 */
1793			newmask = kmemdup(nla_key,
1794					  nla_total_size(nla_len(nla_key)),
1795					  GFP_KERNEL);
1796			if (!newmask)
1797				return -ENOMEM;
1798
1799			mask_set_nlattr(newmask, 0xff);
1800
1801			/* The userspace does not send tunnel attributes that
1802			 * are 0, but we should not wildcard them nonetheless.
1803			 */
1804			if (match->key->tun_proto)
1805				SW_FLOW_KEY_MEMSET_FIELD(match, tun_key,
1806							 0xff, true);
1807
1808			nla_mask = newmask;
1809		}
1810
1811		err = parse_flow_mask_nlattrs(nla_mask, a, &mask_attrs, log);
1812		if (err)
1813			goto free_newmask;
1814
1815		/* Always match on tci. */
1816		SW_FLOW_KEY_PUT(match, eth.vlan.tci, htons(0xffff), true);
1817		SW_FLOW_KEY_PUT(match, eth.cvlan.tci, htons(0xffff), true);
1818
1819		err = parse_vlan_from_nlattrs(match, &mask_attrs, a, true, log);
1820		if (err)
1821			goto free_newmask;
1822
1823		err = ovs_key_from_nlattrs(net, match, mask_attrs, a, true,
1824					   log);
1825		if (err)
1826			goto free_newmask;
1827	}
1828
1829	if (!match_validate(match, key_attrs, mask_attrs, log))
1830		err = -EINVAL;
1831
1832free_newmask:
1833	kfree(newmask);
1834	return err;
1835}
1836
1837static size_t get_ufid_len(const struct nlattr *attr, bool log)
1838{
1839	size_t len;
1840
1841	if (!attr)
1842		return 0;
1843
1844	len = nla_len(attr);
1845	if (len < 1 || len > MAX_UFID_LENGTH) {
1846		OVS_NLERR(log, "ufid size %u bytes exceeds the range (1, %d)",
1847			  nla_len(attr), MAX_UFID_LENGTH);
1848		return 0;
1849	}
1850
1851	return len;
1852}
1853
1854/* Initializes 'flow->ufid', returning true if 'attr' contains a valid UFID,
1855 * or false otherwise.
1856 */
1857bool ovs_nla_get_ufid(struct sw_flow_id *sfid, const struct nlattr *attr,
1858		      bool log)
1859{
1860	sfid->ufid_len = get_ufid_len(attr, log);
1861	if (sfid->ufid_len)
1862		memcpy(sfid->ufid, nla_data(attr), sfid->ufid_len);
1863
1864	return sfid->ufid_len;
1865}
1866
1867int ovs_nla_get_identifier(struct sw_flow_id *sfid, const struct nlattr *ufid,
1868			   const struct sw_flow_key *key, bool log)
1869{
1870	struct sw_flow_key *new_key;
1871
1872	if (ovs_nla_get_ufid(sfid, ufid, log))
1873		return 0;
1874
1875	/* If UFID was not provided, use unmasked key. */
1876	new_key = kmalloc(sizeof(*new_key), GFP_KERNEL);
1877	if (!new_key)
1878		return -ENOMEM;
1879	memcpy(new_key, key, sizeof(*key));
1880	sfid->unmasked_key = new_key;
1881
1882	return 0;
1883}
1884
1885u32 ovs_nla_get_ufid_flags(const struct nlattr *attr)
1886{
1887	return attr ? nla_get_u32(attr) : 0;
1888}
1889
1890/**
1891 * ovs_nla_get_flow_metadata - parses Netlink attributes into a flow key.
1892 * @net: Network namespace.
1893 * @key: Receives extracted in_port, priority, tun_key, skb_mark and conntrack
1894 * metadata.
1895 * @a: Array of netlink attributes holding parsed %OVS_KEY_ATTR_* Netlink
1896 * attributes.
1897 * @attrs: Bit mask for the netlink attributes included in @a.
1898 * @log: Boolean to allow kernel error logging.  Normally true, but when
1899 * probing for feature compatibility this should be passed in as false to
1900 * suppress unnecessary error logging.
1901 *
1902 * This parses a series of Netlink attributes that form a flow key, which must
1903 * take the same form accepted by flow_from_nlattrs(), but only enough of it to
1904 * get the metadata, that is, the parts of the flow key that cannot be
1905 * extracted from the packet itself.
1906 *
1907 * This must be called before the packet key fields are filled in 'key'.
1908 */
1909
1910int ovs_nla_get_flow_metadata(struct net *net,
1911			      const struct nlattr *a[OVS_KEY_ATTR_MAX + 1],
1912			      u64 attrs, struct sw_flow_key *key, bool log)
1913{
1914	struct sw_flow_match match;
1915
1916	memset(&match, 0, sizeof(match));
1917	match.key = key;
1918
1919	key->ct_state = 0;
1920	key->ct_zone = 0;
1921	key->ct_orig_proto = 0;
1922	memset(&key->ct, 0, sizeof(key->ct));
1923	memset(&key->ipv4.ct_orig, 0, sizeof(key->ipv4.ct_orig));
1924	memset(&key->ipv6.ct_orig, 0, sizeof(key->ipv6.ct_orig));
1925
1926	key->phy.in_port = DP_MAX_PORTS;
1927
1928	return metadata_from_nlattrs(net, &match, &attrs, a, false, log);
1929}
1930
1931static int ovs_nla_put_vlan(struct sk_buff *skb, const struct vlan_head *vh,
1932			    bool is_mask)
1933{
1934	__be16 eth_type = !is_mask ? vh->tpid : htons(0xffff);
1935
1936	if (nla_put_be16(skb, OVS_KEY_ATTR_ETHERTYPE, eth_type) ||
1937	    nla_put_be16(skb, OVS_KEY_ATTR_VLAN, vh->tci))
1938		return -EMSGSIZE;
1939	return 0;
1940}
1941
1942static int nsh_key_to_nlattr(const struct ovs_key_nsh *nsh, bool is_mask,
1943			     struct sk_buff *skb)
1944{
1945	struct nlattr *start;
1946
1947	start = nla_nest_start_noflag(skb, OVS_KEY_ATTR_NSH);
1948	if (!start)
1949		return -EMSGSIZE;
1950
1951	if (nla_put(skb, OVS_NSH_KEY_ATTR_BASE, sizeof(nsh->base), &nsh->base))
1952		goto nla_put_failure;
1953
1954	if (is_mask || nsh->base.mdtype == NSH_M_TYPE1) {
1955		if (nla_put(skb, OVS_NSH_KEY_ATTR_MD1,
1956			    sizeof(nsh->context), nsh->context))
1957			goto nla_put_failure;
1958	}
1959
1960	/* Don't support MD type 2 yet */
1961
1962	nla_nest_end(skb, start);
1963
1964	return 0;
1965
1966nla_put_failure:
1967	return -EMSGSIZE;
1968}
1969
1970static int __ovs_nla_put_key(const struct sw_flow_key *swkey,
1971			     const struct sw_flow_key *output, bool is_mask,
1972			     struct sk_buff *skb)
1973{
1974	struct ovs_key_ethernet *eth_key;
1975	struct nlattr *nla;
1976	struct nlattr *encap = NULL;
1977	struct nlattr *in_encap = NULL;
1978
1979	if (nla_put_u32(skb, OVS_KEY_ATTR_RECIRC_ID, output->recirc_id))
1980		goto nla_put_failure;
1981
1982	if (nla_put_u32(skb, OVS_KEY_ATTR_DP_HASH, output->ovs_flow_hash))
1983		goto nla_put_failure;
1984
1985	if (nla_put_u32(skb, OVS_KEY_ATTR_PRIORITY, output->phy.priority))
1986		goto nla_put_failure;
1987
1988	if ((swkey->tun_proto || is_mask)) {
1989		const void *opts = NULL;
1990
1991		if (output->tun_key.tun_flags & TUNNEL_OPTIONS_PRESENT)
1992			opts = TUN_METADATA_OPTS(output, swkey->tun_opts_len);
1993
1994		if (ip_tun_to_nlattr(skb, &output->tun_key, opts,
1995				     swkey->tun_opts_len, swkey->tun_proto, 0))
1996			goto nla_put_failure;
1997	}
1998
1999	if (swkey->phy.in_port == DP_MAX_PORTS) {
2000		if (is_mask && (output->phy.in_port == 0xffff))
2001			if (nla_put_u32(skb, OVS_KEY_ATTR_IN_PORT, 0xffffffff))
2002				goto nla_put_failure;
2003	} else {
2004		u16 upper_u16;
2005		upper_u16 = !is_mask ? 0 : 0xffff;
2006
2007		if (nla_put_u32(skb, OVS_KEY_ATTR_IN_PORT,
2008				(upper_u16 << 16) | output->phy.in_port))
2009			goto nla_put_failure;
2010	}
2011
2012	if (nla_put_u32(skb, OVS_KEY_ATTR_SKB_MARK, output->phy.skb_mark))
2013		goto nla_put_failure;
2014
2015	if (ovs_ct_put_key(swkey, output, skb))
2016		goto nla_put_failure;
2017
2018	if (ovs_key_mac_proto(swkey) == MAC_PROTO_ETHERNET) {
2019		nla = nla_reserve(skb, OVS_KEY_ATTR_ETHERNET, sizeof(*eth_key));
2020		if (!nla)
2021			goto nla_put_failure;
2022
2023		eth_key = nla_data(nla);
2024		ether_addr_copy(eth_key->eth_src, output->eth.src);
2025		ether_addr_copy(eth_key->eth_dst, output->eth.dst);
2026
2027		if (swkey->eth.vlan.tci || eth_type_vlan(swkey->eth.type)) {
2028			if (ovs_nla_put_vlan(skb, &output->eth.vlan, is_mask))
2029				goto nla_put_failure;
2030			encap = nla_nest_start_noflag(skb, OVS_KEY_ATTR_ENCAP);
2031			if (!swkey->eth.vlan.tci)
2032				goto unencap;
2033
2034			if (swkey->eth.cvlan.tci || eth_type_vlan(swkey->eth.type)) {
2035				if (ovs_nla_put_vlan(skb, &output->eth.cvlan, is_mask))
2036					goto nla_put_failure;
2037				in_encap = nla_nest_start_noflag(skb,
2038								 OVS_KEY_ATTR_ENCAP);
2039				if (!swkey->eth.cvlan.tci)
2040					goto unencap;
2041			}
2042		}
2043
2044		if (swkey->eth.type == htons(ETH_P_802_2)) {
2045			/*
2046			* Ethertype 802.2 is represented in the netlink with omitted
2047			* OVS_KEY_ATTR_ETHERTYPE in the flow key attribute, and
2048			* 0xffff in the mask attribute.  Ethertype can also
2049			* be wildcarded.
2050			*/
2051			if (is_mask && output->eth.type)
2052				if (nla_put_be16(skb, OVS_KEY_ATTR_ETHERTYPE,
2053							output->eth.type))
2054					goto nla_put_failure;
2055			goto unencap;
2056		}
2057	}
2058
2059	if (nla_put_be16(skb, OVS_KEY_ATTR_ETHERTYPE, output->eth.type))
2060		goto nla_put_failure;
2061
2062	if (eth_type_vlan(swkey->eth.type)) {
2063		/* There are 3 VLAN tags, we don't know anything about the rest
2064		 * of the packet, so truncate here.
2065		 */
2066		WARN_ON_ONCE(!(encap && in_encap));
2067		goto unencap;
2068	}
2069
2070	if (swkey->eth.type == htons(ETH_P_IP)) {
2071		struct ovs_key_ipv4 *ipv4_key;
2072
2073		nla = nla_reserve(skb, OVS_KEY_ATTR_IPV4, sizeof(*ipv4_key));
2074		if (!nla)
2075			goto nla_put_failure;
2076		ipv4_key = nla_data(nla);
2077		ipv4_key->ipv4_src = output->ipv4.addr.src;
2078		ipv4_key->ipv4_dst = output->ipv4.addr.dst;
2079		ipv4_key->ipv4_proto = output->ip.proto;
2080		ipv4_key->ipv4_tos = output->ip.tos;
2081		ipv4_key->ipv4_ttl = output->ip.ttl;
2082		ipv4_key->ipv4_frag = output->ip.frag;
2083	} else if (swkey->eth.type == htons(ETH_P_IPV6)) {
2084		struct ovs_key_ipv6 *ipv6_key;
 
2085
2086		nla = nla_reserve(skb, OVS_KEY_ATTR_IPV6, sizeof(*ipv6_key));
2087		if (!nla)
2088			goto nla_put_failure;
2089		ipv6_key = nla_data(nla);
2090		memcpy(ipv6_key->ipv6_src, &output->ipv6.addr.src,
2091				sizeof(ipv6_key->ipv6_src));
2092		memcpy(ipv6_key->ipv6_dst, &output->ipv6.addr.dst,
2093				sizeof(ipv6_key->ipv6_dst));
2094		ipv6_key->ipv6_label = output->ipv6.label;
2095		ipv6_key->ipv6_proto = output->ip.proto;
2096		ipv6_key->ipv6_tclass = output->ip.tos;
2097		ipv6_key->ipv6_hlimit = output->ip.ttl;
2098		ipv6_key->ipv6_frag = output->ip.frag;
 
 
 
 
 
 
 
2099	} else if (swkey->eth.type == htons(ETH_P_NSH)) {
2100		if (nsh_key_to_nlattr(&output->nsh, is_mask, skb))
2101			goto nla_put_failure;
2102	} else if (swkey->eth.type == htons(ETH_P_ARP) ||
2103		   swkey->eth.type == htons(ETH_P_RARP)) {
2104		struct ovs_key_arp *arp_key;
2105
2106		nla = nla_reserve(skb, OVS_KEY_ATTR_ARP, sizeof(*arp_key));
2107		if (!nla)
2108			goto nla_put_failure;
2109		arp_key = nla_data(nla);
2110		memset(arp_key, 0, sizeof(struct ovs_key_arp));
2111		arp_key->arp_sip = output->ipv4.addr.src;
2112		arp_key->arp_tip = output->ipv4.addr.dst;
2113		arp_key->arp_op = htons(output->ip.proto);
2114		ether_addr_copy(arp_key->arp_sha, output->ipv4.arp.sha);
2115		ether_addr_copy(arp_key->arp_tha, output->ipv4.arp.tha);
2116	} else if (eth_p_mpls(swkey->eth.type)) {
 
2117		struct ovs_key_mpls *mpls_key;
2118
2119		nla = nla_reserve(skb, OVS_KEY_ATTR_MPLS, sizeof(*mpls_key));
 
 
2120		if (!nla)
2121			goto nla_put_failure;
 
2122		mpls_key = nla_data(nla);
2123		mpls_key->mpls_lse = output->mpls.top_lse;
 
2124	}
2125
2126	if ((swkey->eth.type == htons(ETH_P_IP) ||
2127	     swkey->eth.type == htons(ETH_P_IPV6)) &&
2128	     swkey->ip.frag != OVS_FRAG_TYPE_LATER) {
2129
2130		if (swkey->ip.proto == IPPROTO_TCP) {
2131			struct ovs_key_tcp *tcp_key;
2132
2133			nla = nla_reserve(skb, OVS_KEY_ATTR_TCP, sizeof(*tcp_key));
2134			if (!nla)
2135				goto nla_put_failure;
2136			tcp_key = nla_data(nla);
2137			tcp_key->tcp_src = output->tp.src;
2138			tcp_key->tcp_dst = output->tp.dst;
2139			if (nla_put_be16(skb, OVS_KEY_ATTR_TCP_FLAGS,
2140					 output->tp.flags))
2141				goto nla_put_failure;
2142		} else if (swkey->ip.proto == IPPROTO_UDP) {
2143			struct ovs_key_udp *udp_key;
2144
2145			nla = nla_reserve(skb, OVS_KEY_ATTR_UDP, sizeof(*udp_key));
2146			if (!nla)
2147				goto nla_put_failure;
2148			udp_key = nla_data(nla);
2149			udp_key->udp_src = output->tp.src;
2150			udp_key->udp_dst = output->tp.dst;
2151		} else if (swkey->ip.proto == IPPROTO_SCTP) {
2152			struct ovs_key_sctp *sctp_key;
2153
2154			nla = nla_reserve(skb, OVS_KEY_ATTR_SCTP, sizeof(*sctp_key));
2155			if (!nla)
2156				goto nla_put_failure;
2157			sctp_key = nla_data(nla);
2158			sctp_key->sctp_src = output->tp.src;
2159			sctp_key->sctp_dst = output->tp.dst;
2160		} else if (swkey->eth.type == htons(ETH_P_IP) &&
2161			   swkey->ip.proto == IPPROTO_ICMP) {
2162			struct ovs_key_icmp *icmp_key;
2163
2164			nla = nla_reserve(skb, OVS_KEY_ATTR_ICMP, sizeof(*icmp_key));
2165			if (!nla)
2166				goto nla_put_failure;
2167			icmp_key = nla_data(nla);
2168			icmp_key->icmp_type = ntohs(output->tp.src);
2169			icmp_key->icmp_code = ntohs(output->tp.dst);
2170		} else if (swkey->eth.type == htons(ETH_P_IPV6) &&
2171			   swkey->ip.proto == IPPROTO_ICMPV6) {
2172			struct ovs_key_icmpv6 *icmpv6_key;
2173
2174			nla = nla_reserve(skb, OVS_KEY_ATTR_ICMPV6,
2175						sizeof(*icmpv6_key));
2176			if (!nla)
2177				goto nla_put_failure;
2178			icmpv6_key = nla_data(nla);
2179			icmpv6_key->icmpv6_type = ntohs(output->tp.src);
2180			icmpv6_key->icmpv6_code = ntohs(output->tp.dst);
2181
2182			if (icmpv6_key->icmpv6_type == NDISC_NEIGHBOUR_SOLICITATION ||
2183			    icmpv6_key->icmpv6_type == NDISC_NEIGHBOUR_ADVERTISEMENT) {
2184				struct ovs_key_nd *nd_key;
2185
2186				nla = nla_reserve(skb, OVS_KEY_ATTR_ND, sizeof(*nd_key));
2187				if (!nla)
2188					goto nla_put_failure;
2189				nd_key = nla_data(nla);
2190				memcpy(nd_key->nd_target, &output->ipv6.nd.target,
2191							sizeof(nd_key->nd_target));
2192				ether_addr_copy(nd_key->nd_sll, output->ipv6.nd.sll);
2193				ether_addr_copy(nd_key->nd_tll, output->ipv6.nd.tll);
2194			}
2195		}
2196	}
2197
2198unencap:
2199	if (in_encap)
2200		nla_nest_end(skb, in_encap);
2201	if (encap)
2202		nla_nest_end(skb, encap);
2203
2204	return 0;
2205
2206nla_put_failure:
2207	return -EMSGSIZE;
2208}
2209
2210int ovs_nla_put_key(const struct sw_flow_key *swkey,
2211		    const struct sw_flow_key *output, int attr, bool is_mask,
2212		    struct sk_buff *skb)
2213{
2214	int err;
2215	struct nlattr *nla;
2216
2217	nla = nla_nest_start_noflag(skb, attr);
2218	if (!nla)
2219		return -EMSGSIZE;
2220	err = __ovs_nla_put_key(swkey, output, is_mask, skb);
2221	if (err)
2222		return err;
2223	nla_nest_end(skb, nla);
2224
2225	return 0;
2226}
2227
2228/* Called with ovs_mutex or RCU read lock. */
2229int ovs_nla_put_identifier(const struct sw_flow *flow, struct sk_buff *skb)
2230{
2231	if (ovs_identifier_is_ufid(&flow->id))
2232		return nla_put(skb, OVS_FLOW_ATTR_UFID, flow->id.ufid_len,
2233			       flow->id.ufid);
2234
2235	return ovs_nla_put_key(flow->id.unmasked_key, flow->id.unmasked_key,
2236			       OVS_FLOW_ATTR_KEY, false, skb);
2237}
2238
2239/* Called with ovs_mutex or RCU read lock. */
2240int ovs_nla_put_masked_key(const struct sw_flow *flow, struct sk_buff *skb)
2241{
2242	return ovs_nla_put_key(&flow->key, &flow->key,
2243				OVS_FLOW_ATTR_KEY, false, skb);
2244}
2245
2246/* Called with ovs_mutex or RCU read lock. */
2247int ovs_nla_put_mask(const struct sw_flow *flow, struct sk_buff *skb)
2248{
2249	return ovs_nla_put_key(&flow->key, &flow->mask->key,
2250				OVS_FLOW_ATTR_MASK, true, skb);
2251}
2252
2253#define MAX_ACTIONS_BUFSIZE	(32 * 1024)
2254
2255static struct sw_flow_actions *nla_alloc_flow_actions(int size)
2256{
2257	struct sw_flow_actions *sfa;
2258
2259	WARN_ON_ONCE(size > MAX_ACTIONS_BUFSIZE);
2260
2261	sfa = kmalloc(sizeof(*sfa) + size, GFP_KERNEL);
2262	if (!sfa)
2263		return ERR_PTR(-ENOMEM);
2264
2265	sfa->actions_len = 0;
2266	return sfa;
2267}
2268
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2269static void ovs_nla_free_set_action(const struct nlattr *a)
2270{
2271	const struct nlattr *ovs_key = nla_data(a);
2272	struct ovs_tunnel_info *ovs_tun;
2273
2274	switch (nla_type(ovs_key)) {
2275	case OVS_KEY_ATTR_TUNNEL_INFO:
2276		ovs_tun = nla_data(ovs_key);
2277		dst_release((struct dst_entry *)ovs_tun->tun_dst);
2278		break;
2279	}
2280}
2281
2282void ovs_nla_free_flow_actions(struct sw_flow_actions *sf_acts)
2283{
2284	const struct nlattr *a;
2285	int rem;
2286
2287	if (!sf_acts)
 
 
 
 
 
2288		return;
2289
2290	nla_for_each_attr(a, sf_acts->actions, sf_acts->actions_len, rem) {
2291		switch (nla_type(a)) {
2292		case OVS_ACTION_ATTR_SET:
2293			ovs_nla_free_set_action(a);
 
 
 
 
2294			break;
 
2295		case OVS_ACTION_ATTR_CT:
2296			ovs_ct_free_action(a);
2297			break;
 
 
 
 
 
 
 
 
 
 
 
 
2298		}
2299	}
 
2300
 
 
 
 
 
 
2301	kfree(sf_acts);
2302}
2303
2304static void __ovs_nla_free_flow_actions(struct rcu_head *head)
2305{
2306	ovs_nla_free_flow_actions(container_of(head, struct sw_flow_actions, rcu));
2307}
2308
2309/* Schedules 'sf_acts' to be freed after the next RCU grace period.
2310 * The caller must hold rcu_read_lock for this to be sensible. */
2311void ovs_nla_free_flow_actions_rcu(struct sw_flow_actions *sf_acts)
2312{
2313	call_rcu(&sf_acts->rcu, __ovs_nla_free_flow_actions);
2314}
2315
2316static struct nlattr *reserve_sfa_size(struct sw_flow_actions **sfa,
2317				       int attr_len, bool log)
2318{
2319
2320	struct sw_flow_actions *acts;
2321	int new_acts_size;
2322	size_t req_size = NLA_ALIGN(attr_len);
2323	int next_offset = offsetof(struct sw_flow_actions, actions) +
2324					(*sfa)->actions_len;
2325
2326	if (req_size <= (ksize(*sfa) - next_offset))
2327		goto out;
2328
2329	new_acts_size = max(next_offset + req_size, ksize(*sfa) * 2);
2330
2331	if (new_acts_size > MAX_ACTIONS_BUFSIZE) {
2332		if ((MAX_ACTIONS_BUFSIZE - next_offset) < req_size) {
2333			OVS_NLERR(log, "Flow action size exceeds max %u",
2334				  MAX_ACTIONS_BUFSIZE);
2335			return ERR_PTR(-EMSGSIZE);
2336		}
2337		new_acts_size = MAX_ACTIONS_BUFSIZE;
2338	}
2339
2340	acts = nla_alloc_flow_actions(new_acts_size);
2341	if (IS_ERR(acts))
2342		return (void *)acts;
2343
2344	memcpy(acts->actions, (*sfa)->actions, (*sfa)->actions_len);
2345	acts->actions_len = (*sfa)->actions_len;
2346	acts->orig_len = (*sfa)->orig_len;
2347	kfree(*sfa);
2348	*sfa = acts;
2349
2350out:
2351	(*sfa)->actions_len += req_size;
2352	return  (struct nlattr *) ((unsigned char *)(*sfa) + next_offset);
2353}
2354
2355static struct nlattr *__add_action(struct sw_flow_actions **sfa,
2356				   int attrtype, void *data, int len, bool log)
2357{
2358	struct nlattr *a;
2359
2360	a = reserve_sfa_size(sfa, nla_attr_size(len), log);
2361	if (IS_ERR(a))
2362		return a;
2363
2364	a->nla_type = attrtype;
2365	a->nla_len = nla_attr_size(len);
2366
2367	if (data)
2368		memcpy(nla_data(a), data, len);
2369	memset((unsigned char *) a + a->nla_len, 0, nla_padlen(len));
2370
2371	return a;
2372}
2373
2374int ovs_nla_add_action(struct sw_flow_actions **sfa, int attrtype, void *data,
2375		       int len, bool log)
2376{
2377	struct nlattr *a;
2378
2379	a = __add_action(sfa, attrtype, data, len, log);
2380
2381	return PTR_ERR_OR_ZERO(a);
2382}
2383
2384static inline int add_nested_action_start(struct sw_flow_actions **sfa,
2385					  int attrtype, bool log)
2386{
2387	int used = (*sfa)->actions_len;
2388	int err;
2389
2390	err = ovs_nla_add_action(sfa, attrtype, NULL, 0, log);
2391	if (err)
2392		return err;
2393
2394	return used;
2395}
2396
2397static inline void add_nested_action_end(struct sw_flow_actions *sfa,
2398					 int st_offset)
2399{
2400	struct nlattr *a = (struct nlattr *) ((unsigned char *)sfa->actions +
2401							       st_offset);
2402
2403	a->nla_len = sfa->actions_len - st_offset;
2404}
2405
2406static int __ovs_nla_copy_actions(struct net *net, const struct nlattr *attr,
2407				  const struct sw_flow_key *key,
2408				  struct sw_flow_actions **sfa,
2409				  __be16 eth_type, __be16 vlan_tci, bool log);
 
 
2410
2411static int validate_and_copy_sample(struct net *net, const struct nlattr *attr,
2412				    const struct sw_flow_key *key,
2413				    struct sw_flow_actions **sfa,
2414				    __be16 eth_type, __be16 vlan_tci,
2415				    bool log, bool last)
 
2416{
2417	const struct nlattr *attrs[OVS_SAMPLE_ATTR_MAX + 1];
2418	const struct nlattr *probability, *actions;
2419	const struct nlattr *a;
2420	int rem, start, err;
2421	struct sample_arg arg;
2422
2423	memset(attrs, 0, sizeof(attrs));
2424	nla_for_each_nested(a, attr, rem) {
2425		int type = nla_type(a);
2426		if (!type || type > OVS_SAMPLE_ATTR_MAX || attrs[type])
2427			return -EINVAL;
2428		attrs[type] = a;
2429	}
2430	if (rem)
2431		return -EINVAL;
2432
2433	probability = attrs[OVS_SAMPLE_ATTR_PROBABILITY];
2434	if (!probability || nla_len(probability) != sizeof(u32))
2435		return -EINVAL;
2436
2437	actions = attrs[OVS_SAMPLE_ATTR_ACTIONS];
2438	if (!actions || (nla_len(actions) && nla_len(actions) < NLA_HDRLEN))
2439		return -EINVAL;
2440
2441	/* validation done, copy sample action. */
2442	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_SAMPLE, log);
2443	if (start < 0)
2444		return start;
2445
2446	/* When both skb and flow may be changed, put the sample
2447	 * into a deferred fifo. On the other hand, if only skb
2448	 * may be modified, the actions can be executed in place.
2449	 *
2450	 * Do this analysis at the flow installation time.
2451	 * Set 'clone_action->exec' to true if the actions can be
2452	 * executed without being deferred.
2453	 *
2454	 * If the sample is the last action, it can always be excuted
2455	 * rather than deferred.
2456	 */
2457	arg.exec = last || !actions_may_change_flow(actions);
2458	arg.probability = nla_get_u32(probability);
2459
2460	err = ovs_nla_add_action(sfa, OVS_SAMPLE_ATTR_ARG, &arg, sizeof(arg),
2461				 log);
2462	if (err)
2463		return err;
2464
2465	err = __ovs_nla_copy_actions(net, actions, key, sfa,
2466				     eth_type, vlan_tci, log);
 
2467
2468	if (err)
2469		return err;
2470
2471	add_nested_action_end(*sfa, start);
2472
2473	return 0;
2474}
2475
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2476static int validate_and_copy_clone(struct net *net,
2477				   const struct nlattr *attr,
2478				   const struct sw_flow_key *key,
2479				   struct sw_flow_actions **sfa,
2480				   __be16 eth_type, __be16 vlan_tci,
2481				   bool log, bool last)
 
2482{
2483	int start, err;
2484	u32 exec;
2485
2486	if (nla_len(attr) && nla_len(attr) < NLA_HDRLEN)
2487		return -EINVAL;
2488
2489	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_CLONE, log);
2490	if (start < 0)
2491		return start;
2492
2493	exec = last || !actions_may_change_flow(attr);
2494
2495	err = ovs_nla_add_action(sfa, OVS_CLONE_ATTR_EXEC, &exec,
2496				 sizeof(exec), log);
2497	if (err)
2498		return err;
2499
2500	err = __ovs_nla_copy_actions(net, attr, key, sfa,
2501				     eth_type, vlan_tci, log);
 
2502	if (err)
2503		return err;
2504
2505	add_nested_action_end(*sfa, start);
2506
2507	return 0;
2508}
2509
2510void ovs_match_init(struct sw_flow_match *match,
2511		    struct sw_flow_key *key,
2512		    bool reset_key,
2513		    struct sw_flow_mask *mask)
2514{
2515	memset(match, 0, sizeof(*match));
2516	match->key = key;
2517	match->mask = mask;
2518
2519	if (reset_key)
2520		memset(key, 0, sizeof(*key));
2521
2522	if (mask) {
2523		memset(&mask->key, 0, sizeof(mask->key));
2524		mask->range.start = mask->range.end = 0;
2525	}
2526}
2527
2528static int validate_geneve_opts(struct sw_flow_key *key)
2529{
2530	struct geneve_opt *option;
2531	int opts_len = key->tun_opts_len;
2532	bool crit_opt = false;
2533
2534	option = (struct geneve_opt *)TUN_METADATA_OPTS(key, key->tun_opts_len);
2535	while (opts_len > 0) {
2536		int len;
2537
2538		if (opts_len < sizeof(*option))
2539			return -EINVAL;
2540
2541		len = sizeof(*option) + option->length * 4;
2542		if (len > opts_len)
2543			return -EINVAL;
2544
2545		crit_opt |= !!(option->type & GENEVE_CRIT_OPT_TYPE);
2546
2547		option = (struct geneve_opt *)((u8 *)option + len);
2548		opts_len -= len;
2549	}
2550
2551	key->tun_key.tun_flags |= crit_opt ? TUNNEL_CRIT_OPT : 0;
 
2552
2553	return 0;
2554}
2555
2556static int validate_and_copy_set_tun(const struct nlattr *attr,
2557				     struct sw_flow_actions **sfa, bool log)
2558{
 
2559	struct sw_flow_match match;
2560	struct sw_flow_key key;
2561	struct metadata_dst *tun_dst;
2562	struct ip_tunnel_info *tun_info;
2563	struct ovs_tunnel_info *ovs_tun;
2564	struct nlattr *a;
2565	int err = 0, start, opts_type;
2566	__be16 dst_opt_type;
2567
2568	dst_opt_type = 0;
2569	ovs_match_init(&match, &key, true, NULL);
2570	opts_type = ip_tun_from_nlattr(nla_data(attr), &match, false, log);
2571	if (opts_type < 0)
2572		return opts_type;
2573
2574	if (key.tun_opts_len) {
2575		switch (opts_type) {
2576		case OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS:
2577			err = validate_geneve_opts(&key);
2578			if (err < 0)
2579				return err;
2580			dst_opt_type = TUNNEL_GENEVE_OPT;
 
2581			break;
2582		case OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS:
2583			dst_opt_type = TUNNEL_VXLAN_OPT;
2584			break;
2585		case OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS:
2586			dst_opt_type = TUNNEL_ERSPAN_OPT;
2587			break;
2588		}
2589	}
2590
2591	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_SET, log);
2592	if (start < 0)
2593		return start;
2594
2595	tun_dst = metadata_dst_alloc(key.tun_opts_len, METADATA_IP_TUNNEL,
2596				     GFP_KERNEL);
2597
2598	if (!tun_dst)
2599		return -ENOMEM;
2600
2601	err = dst_cache_init(&tun_dst->u.tun_info.dst_cache, GFP_KERNEL);
2602	if (err) {
2603		dst_release((struct dst_entry *)tun_dst);
2604		return err;
2605	}
2606
2607	a = __add_action(sfa, OVS_KEY_ATTR_TUNNEL_INFO, NULL,
2608			 sizeof(*ovs_tun), log);
2609	if (IS_ERR(a)) {
2610		dst_release((struct dst_entry *)tun_dst);
2611		return PTR_ERR(a);
2612	}
2613
2614	ovs_tun = nla_data(a);
2615	ovs_tun->tun_dst = tun_dst;
2616
2617	tun_info = &tun_dst->u.tun_info;
2618	tun_info->mode = IP_TUNNEL_INFO_TX;
2619	if (key.tun_proto == AF_INET6)
2620		tun_info->mode |= IP_TUNNEL_INFO_IPV6;
2621	else if (key.tun_proto == AF_INET && key.tun_key.u.ipv4.dst == 0)
2622		tun_info->mode |= IP_TUNNEL_INFO_BRIDGE;
2623	tun_info->key = key.tun_key;
2624
2625	/* We need to store the options in the action itself since
2626	 * everything else will go away after flow setup. We can append
2627	 * it to tun_info and then point there.
2628	 */
2629	ip_tunnel_info_opts_set(tun_info,
2630				TUN_METADATA_OPTS(&key, key.tun_opts_len),
2631				key.tun_opts_len, dst_opt_type);
2632	add_nested_action_end(*sfa, start);
2633
2634	return err;
2635}
2636
2637static bool validate_nsh(const struct nlattr *attr, bool is_mask,
2638			 bool is_push_nsh, bool log)
2639{
2640	struct sw_flow_match match;
2641	struct sw_flow_key key;
2642	int ret = 0;
2643
2644	ovs_match_init(&match, &key, true, NULL);
2645	ret = nsh_key_put_from_nlattr(attr, &match, is_mask,
2646				      is_push_nsh, log);
2647	return !ret;
2648}
2649
2650/* Return false if there are any non-masked bits set.
2651 * Mask follows data immediately, before any netlink padding.
2652 */
2653static bool validate_masked(u8 *data, int len)
2654{
2655	u8 *mask = data + len;
2656
2657	while (len--)
2658		if (*data++ & ~*mask++)
2659			return false;
2660
2661	return true;
2662}
2663
2664static int validate_set(const struct nlattr *a,
2665			const struct sw_flow_key *flow_key,
2666			struct sw_flow_actions **sfa, bool *skip_copy,
2667			u8 mac_proto, __be16 eth_type, bool masked, bool log)
2668{
2669	const struct nlattr *ovs_key = nla_data(a);
2670	int key_type = nla_type(ovs_key);
2671	size_t key_len;
2672
2673	/* There can be only one key in a action */
2674	if (nla_total_size(nla_len(ovs_key)) != nla_len(a))
2675		return -EINVAL;
2676
2677	key_len = nla_len(ovs_key);
2678	if (masked)
2679		key_len /= 2;
2680
2681	if (key_type > OVS_KEY_ATTR_MAX ||
2682	    !check_attr_len(key_len, ovs_key_lens[key_type].len))
2683		return -EINVAL;
2684
2685	if (masked && !validate_masked(nla_data(ovs_key), key_len))
2686		return -EINVAL;
2687
2688	switch (key_type) {
2689	const struct ovs_key_ipv4 *ipv4_key;
2690	const struct ovs_key_ipv6 *ipv6_key;
2691	int err;
2692
2693	case OVS_KEY_ATTR_PRIORITY:
2694	case OVS_KEY_ATTR_SKB_MARK:
2695	case OVS_KEY_ATTR_CT_MARK:
2696	case OVS_KEY_ATTR_CT_LABELS:
2697		break;
2698
2699	case OVS_KEY_ATTR_ETHERNET:
2700		if (mac_proto != MAC_PROTO_ETHERNET)
2701			return -EINVAL;
2702		break;
2703
2704	case OVS_KEY_ATTR_TUNNEL:
 
 
2705		if (masked)
2706			return -EINVAL; /* Masked tunnel set not supported. */
2707
2708		*skip_copy = true;
2709		err = validate_and_copy_set_tun(a, sfa, log);
2710		if (err)
2711			return err;
2712		break;
 
 
 
2713
2714	case OVS_KEY_ATTR_IPV4:
2715		if (eth_type != htons(ETH_P_IP))
2716			return -EINVAL;
2717
2718		ipv4_key = nla_data(ovs_key);
2719
2720		if (masked) {
2721			const struct ovs_key_ipv4 *mask = ipv4_key + 1;
2722
2723			/* Non-writeable fields. */
2724			if (mask->ipv4_proto || mask->ipv4_frag)
2725				return -EINVAL;
2726		} else {
2727			if (ipv4_key->ipv4_proto != flow_key->ip.proto)
2728				return -EINVAL;
2729
2730			if (ipv4_key->ipv4_frag != flow_key->ip.frag)
2731				return -EINVAL;
2732		}
2733		break;
 
 
 
2734
2735	case OVS_KEY_ATTR_IPV6:
2736		if (eth_type != htons(ETH_P_IPV6))
2737			return -EINVAL;
2738
2739		ipv6_key = nla_data(ovs_key);
2740
2741		if (masked) {
2742			const struct ovs_key_ipv6 *mask = ipv6_key + 1;
2743
2744			/* Non-writeable fields. */
2745			if (mask->ipv6_proto || mask->ipv6_frag)
2746				return -EINVAL;
2747
2748			/* Invalid bits in the flow label mask? */
2749			if (ntohl(mask->ipv6_label) & 0xFFF00000)
2750				return -EINVAL;
2751		} else {
2752			if (ipv6_key->ipv6_proto != flow_key->ip.proto)
2753				return -EINVAL;
2754
2755			if (ipv6_key->ipv6_frag != flow_key->ip.frag)
2756				return -EINVAL;
2757		}
2758		if (ntohl(ipv6_key->ipv6_label) & 0xFFF00000)
2759			return -EINVAL;
2760
2761		break;
2762
2763	case OVS_KEY_ATTR_TCP:
2764		if ((eth_type != htons(ETH_P_IP) &&
2765		     eth_type != htons(ETH_P_IPV6)) ||
2766		    flow_key->ip.proto != IPPROTO_TCP)
2767			return -EINVAL;
2768
2769		break;
2770
2771	case OVS_KEY_ATTR_UDP:
2772		if ((eth_type != htons(ETH_P_IP) &&
2773		     eth_type != htons(ETH_P_IPV6)) ||
2774		    flow_key->ip.proto != IPPROTO_UDP)
2775			return -EINVAL;
2776
2777		break;
2778
2779	case OVS_KEY_ATTR_MPLS:
2780		if (!eth_p_mpls(eth_type))
2781			return -EINVAL;
2782		break;
2783
2784	case OVS_KEY_ATTR_SCTP:
2785		if ((eth_type != htons(ETH_P_IP) &&
2786		     eth_type != htons(ETH_P_IPV6)) ||
2787		    flow_key->ip.proto != IPPROTO_SCTP)
2788			return -EINVAL;
2789
2790		break;
2791
2792	case OVS_KEY_ATTR_NSH:
2793		if (eth_type != htons(ETH_P_NSH))
2794			return -EINVAL;
2795		if (!validate_nsh(nla_data(a), masked, false, log))
2796			return -EINVAL;
2797		break;
2798
2799	default:
2800		return -EINVAL;
2801	}
2802
2803	/* Convert non-masked non-tunnel set actions to masked set actions. */
2804	if (!masked && key_type != OVS_KEY_ATTR_TUNNEL) {
2805		int start, len = key_len * 2;
2806		struct nlattr *at;
2807
2808		*skip_copy = true;
2809
2810		start = add_nested_action_start(sfa,
2811						OVS_ACTION_ATTR_SET_TO_MASKED,
2812						log);
2813		if (start < 0)
2814			return start;
2815
2816		at = __add_action(sfa, key_type, NULL, len, log);
2817		if (IS_ERR(at))
2818			return PTR_ERR(at);
2819
2820		memcpy(nla_data(at), nla_data(ovs_key), key_len); /* Key. */
2821		memset(nla_data(at) + key_len, 0xff, key_len);    /* Mask. */
2822		/* Clear non-writeable bits from otherwise writeable fields. */
2823		if (key_type == OVS_KEY_ATTR_IPV6) {
2824			struct ovs_key_ipv6 *mask = nla_data(at) + key_len;
2825
2826			mask->ipv6_label &= htonl(0x000FFFFF);
2827		}
2828		add_nested_action_end(*sfa, start);
2829	}
2830
2831	return 0;
2832}
2833
2834static int validate_userspace(const struct nlattr *attr)
2835{
2836	static const struct nla_policy userspace_policy[OVS_USERSPACE_ATTR_MAX + 1] = {
2837		[OVS_USERSPACE_ATTR_PID] = {.type = NLA_U32 },
2838		[OVS_USERSPACE_ATTR_USERDATA] = {.type = NLA_UNSPEC },
2839		[OVS_USERSPACE_ATTR_EGRESS_TUN_PORT] = {.type = NLA_U32 },
2840	};
2841	struct nlattr *a[OVS_USERSPACE_ATTR_MAX + 1];
2842	int error;
2843
2844	error = nla_parse_nested_deprecated(a, OVS_USERSPACE_ATTR_MAX, attr,
2845					    userspace_policy, NULL);
2846	if (error)
2847		return error;
2848
2849	if (!a[OVS_USERSPACE_ATTR_PID] ||
2850	    !nla_get_u32(a[OVS_USERSPACE_ATTR_PID]))
2851		return -EINVAL;
2852
2853	return 0;
2854}
2855
2856static const struct nla_policy cpl_policy[OVS_CHECK_PKT_LEN_ATTR_MAX + 1] = {
2857	[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN] = {.type = NLA_U16 },
2858	[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER] = {.type = NLA_NESTED },
2859	[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL] = {.type = NLA_NESTED },
2860};
2861
2862static int validate_and_copy_check_pkt_len(struct net *net,
2863					   const struct nlattr *attr,
2864					   const struct sw_flow_key *key,
2865					   struct sw_flow_actions **sfa,
2866					   __be16 eth_type, __be16 vlan_tci,
2867					   bool log, bool last)
 
2868{
2869	const struct nlattr *acts_if_greater, *acts_if_lesser_eq;
2870	struct nlattr *a[OVS_CHECK_PKT_LEN_ATTR_MAX + 1];
2871	struct check_pkt_len_arg arg;
2872	int nested_acts_start;
2873	int start, err;
2874
2875	err = nla_parse_deprecated_strict(a, OVS_CHECK_PKT_LEN_ATTR_MAX,
2876					  nla_data(attr), nla_len(attr),
2877					  cpl_policy, NULL);
2878	if (err)
2879		return err;
2880
2881	if (!a[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN] ||
2882	    !nla_get_u16(a[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN]))
2883		return -EINVAL;
2884
2885	acts_if_lesser_eq = a[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL];
2886	acts_if_greater = a[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER];
2887
2888	/* Both the nested action should be present. */
2889	if (!acts_if_greater || !acts_if_lesser_eq)
2890		return -EINVAL;
2891
2892	/* validation done, copy the nested actions. */
2893	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_CHECK_PKT_LEN,
2894					log);
2895	if (start < 0)
2896		return start;
2897
2898	arg.pkt_len = nla_get_u16(a[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN]);
2899	arg.exec_for_lesser_equal =
2900		last || !actions_may_change_flow(acts_if_lesser_eq);
2901	arg.exec_for_greater =
2902		last || !actions_may_change_flow(acts_if_greater);
2903
2904	err = ovs_nla_add_action(sfa, OVS_CHECK_PKT_LEN_ATTR_ARG, &arg,
2905				 sizeof(arg), log);
2906	if (err)
2907		return err;
2908
2909	nested_acts_start = add_nested_action_start(sfa,
2910		OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL, log);
2911	if (nested_acts_start < 0)
2912		return nested_acts_start;
2913
2914	err = __ovs_nla_copy_actions(net, acts_if_lesser_eq, key, sfa,
2915				     eth_type, vlan_tci, log);
 
2916
2917	if (err)
2918		return err;
2919
2920	add_nested_action_end(*sfa, nested_acts_start);
2921
2922	nested_acts_start = add_nested_action_start(sfa,
2923		OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER, log);
2924	if (nested_acts_start < 0)
2925		return nested_acts_start;
2926
2927	err = __ovs_nla_copy_actions(net, acts_if_greater, key, sfa,
2928				     eth_type, vlan_tci, log);
 
2929
2930	if (err)
2931		return err;
2932
2933	add_nested_action_end(*sfa, nested_acts_start);
2934	add_nested_action_end(*sfa, start);
2935	return 0;
2936}
2937
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2938static int copy_action(const struct nlattr *from,
2939		       struct sw_flow_actions **sfa, bool log)
2940{
2941	int totlen = NLA_ALIGN(from->nla_len);
2942	struct nlattr *to;
2943
2944	to = reserve_sfa_size(sfa, from->nla_len, log);
2945	if (IS_ERR(to))
2946		return PTR_ERR(to);
2947
2948	memcpy(to, from, totlen);
2949	return 0;
2950}
2951
2952static int __ovs_nla_copy_actions(struct net *net, const struct nlattr *attr,
2953				  const struct sw_flow_key *key,
2954				  struct sw_flow_actions **sfa,
2955				  __be16 eth_type, __be16 vlan_tci, bool log)
 
 
2956{
2957	u8 mac_proto = ovs_key_mac_proto(key);
2958	const struct nlattr *a;
2959	int rem, err;
2960
 
 
 
2961	nla_for_each_nested(a, attr, rem) {
2962		/* Expected argument lengths, (u32)-1 for variable length. */
2963		static const u32 action_lens[OVS_ACTION_ATTR_MAX + 1] = {
2964			[OVS_ACTION_ATTR_OUTPUT] = sizeof(u32),
2965			[OVS_ACTION_ATTR_RECIRC] = sizeof(u32),
2966			[OVS_ACTION_ATTR_USERSPACE] = (u32)-1,
2967			[OVS_ACTION_ATTR_PUSH_MPLS] = sizeof(struct ovs_action_push_mpls),
2968			[OVS_ACTION_ATTR_POP_MPLS] = sizeof(__be16),
2969			[OVS_ACTION_ATTR_PUSH_VLAN] = sizeof(struct ovs_action_push_vlan),
2970			[OVS_ACTION_ATTR_POP_VLAN] = 0,
2971			[OVS_ACTION_ATTR_SET] = (u32)-1,
2972			[OVS_ACTION_ATTR_SET_MASKED] = (u32)-1,
2973			[OVS_ACTION_ATTR_SAMPLE] = (u32)-1,
2974			[OVS_ACTION_ATTR_HASH] = sizeof(struct ovs_action_hash),
2975			[OVS_ACTION_ATTR_CT] = (u32)-1,
2976			[OVS_ACTION_ATTR_CT_CLEAR] = 0,
2977			[OVS_ACTION_ATTR_TRUNC] = sizeof(struct ovs_action_trunc),
2978			[OVS_ACTION_ATTR_PUSH_ETH] = sizeof(struct ovs_action_push_eth),
2979			[OVS_ACTION_ATTR_POP_ETH] = 0,
2980			[OVS_ACTION_ATTR_PUSH_NSH] = (u32)-1,
2981			[OVS_ACTION_ATTR_POP_NSH] = 0,
2982			[OVS_ACTION_ATTR_METER] = sizeof(u32),
2983			[OVS_ACTION_ATTR_CLONE] = (u32)-1,
2984			[OVS_ACTION_ATTR_CHECK_PKT_LEN] = (u32)-1,
 
 
 
 
2985		};
2986		const struct ovs_action_push_vlan *vlan;
2987		int type = nla_type(a);
2988		bool skip_copy;
2989
2990		if (type > OVS_ACTION_ATTR_MAX ||
2991		    (action_lens[type] != nla_len(a) &&
2992		     action_lens[type] != (u32)-1))
2993			return -EINVAL;
2994
2995		skip_copy = false;
2996		switch (type) {
2997		case OVS_ACTION_ATTR_UNSPEC:
2998			return -EINVAL;
2999
3000		case OVS_ACTION_ATTR_USERSPACE:
3001			err = validate_userspace(a);
3002			if (err)
3003				return err;
3004			break;
3005
3006		case OVS_ACTION_ATTR_OUTPUT:
3007			if (nla_get_u32(a) >= DP_MAX_PORTS)
3008				return -EINVAL;
3009			break;
3010
3011		case OVS_ACTION_ATTR_TRUNC: {
3012			const struct ovs_action_trunc *trunc = nla_data(a);
3013
3014			if (trunc->max_len < ETH_HLEN)
3015				return -EINVAL;
3016			break;
3017		}
3018
3019		case OVS_ACTION_ATTR_HASH: {
3020			const struct ovs_action_hash *act_hash = nla_data(a);
3021
3022			switch (act_hash->hash_alg) {
3023			case OVS_HASH_ALG_L4:
 
 
3024				break;
3025			default:
3026				return  -EINVAL;
3027			}
3028
3029			break;
3030		}
3031
3032		case OVS_ACTION_ATTR_POP_VLAN:
3033			if (mac_proto != MAC_PROTO_ETHERNET)
3034				return -EINVAL;
3035			vlan_tci = htons(0);
3036			break;
3037
3038		case OVS_ACTION_ATTR_PUSH_VLAN:
3039			if (mac_proto != MAC_PROTO_ETHERNET)
3040				return -EINVAL;
3041			vlan = nla_data(a);
3042			if (!eth_type_vlan(vlan->vlan_tpid))
3043				return -EINVAL;
3044			if (!(vlan->vlan_tci & htons(VLAN_CFI_MASK)))
3045				return -EINVAL;
3046			vlan_tci = vlan->vlan_tci;
3047			break;
3048
3049		case OVS_ACTION_ATTR_RECIRC:
3050			break;
3051
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3052		case OVS_ACTION_ATTR_PUSH_MPLS: {
3053			const struct ovs_action_push_mpls *mpls = nla_data(a);
3054
3055			if (!eth_p_mpls(mpls->mpls_ethertype))
3056				return -EINVAL;
3057			/* Prohibit push MPLS other than to a white list
3058			 * for packets that have a known tag order.
3059			 */
3060			if (vlan_tci & htons(VLAN_CFI_MASK) ||
3061			    (eth_type != htons(ETH_P_IP) &&
3062			     eth_type != htons(ETH_P_IPV6) &&
3063			     eth_type != htons(ETH_P_ARP) &&
3064			     eth_type != htons(ETH_P_RARP) &&
3065			     !eth_p_mpls(eth_type)))
3066				return -EINVAL;
3067			eth_type = mpls->mpls_ethertype;
 
3068			break;
3069		}
3070
3071		case OVS_ACTION_ATTR_POP_MPLS:
 
3072			if (vlan_tci & htons(VLAN_CFI_MASK) ||
3073			    !eth_p_mpls(eth_type))
3074				return -EINVAL;
3075
3076			/* Disallow subsequent L2.5+ set and mpls_pop actions
3077			 * as there is no check here to ensure that the new
3078			 * eth_type is valid and thus set actions could
3079			 * write off the end of the packet or otherwise
3080			 * corrupt it.
 
3081			 *
3082			 * Support for these actions is planned using packet
3083			 * recirculation.
3084			 */
3085			eth_type = htons(0);
 
 
 
 
 
 
 
 
 
 
 
 
3086			break;
 
3087
3088		case OVS_ACTION_ATTR_SET:
3089			err = validate_set(a, key, sfa,
3090					   &skip_copy, mac_proto, eth_type,
3091					   false, log);
3092			if (err)
3093				return err;
3094			break;
3095
3096		case OVS_ACTION_ATTR_SET_MASKED:
3097			err = validate_set(a, key, sfa,
3098					   &skip_copy, mac_proto, eth_type,
3099					   true, log);
3100			if (err)
3101				return err;
3102			break;
3103
3104		case OVS_ACTION_ATTR_SAMPLE: {
3105			bool last = nla_is_last(a, rem);
3106
3107			err = validate_and_copy_sample(net, a, key, sfa,
3108						       eth_type, vlan_tci,
3109						       log, last);
 
3110			if (err)
3111				return err;
3112			skip_copy = true;
3113			break;
3114		}
3115
3116		case OVS_ACTION_ATTR_CT:
3117			err = ovs_ct_copy_action(net, a, key, sfa, log);
3118			if (err)
3119				return err;
3120			skip_copy = true;
3121			break;
3122
3123		case OVS_ACTION_ATTR_CT_CLEAR:
3124			break;
3125
3126		case OVS_ACTION_ATTR_PUSH_ETH:
3127			/* Disallow pushing an Ethernet header if one
3128			 * is already present */
3129			if (mac_proto != MAC_PROTO_NONE)
3130				return -EINVAL;
3131			mac_proto = MAC_PROTO_ETHERNET;
3132			break;
3133
3134		case OVS_ACTION_ATTR_POP_ETH:
3135			if (mac_proto != MAC_PROTO_ETHERNET)
3136				return -EINVAL;
3137			if (vlan_tci & htons(VLAN_CFI_MASK))
3138				return -EINVAL;
3139			mac_proto = MAC_PROTO_NONE;
3140			break;
3141
3142		case OVS_ACTION_ATTR_PUSH_NSH:
3143			if (mac_proto != MAC_PROTO_ETHERNET) {
3144				u8 next_proto;
3145
3146				next_proto = tun_p_from_eth_p(eth_type);
3147				if (!next_proto)
3148					return -EINVAL;
3149			}
3150			mac_proto = MAC_PROTO_NONE;
3151			if (!validate_nsh(nla_data(a), false, true, true))
3152				return -EINVAL;
3153			break;
3154
3155		case OVS_ACTION_ATTR_POP_NSH: {
3156			__be16 inner_proto;
3157
3158			if (eth_type != htons(ETH_P_NSH))
3159				return -EINVAL;
3160			inner_proto = tun_p_to_eth_p(key->nsh.base.np);
3161			if (!inner_proto)
3162				return -EINVAL;
3163			if (key->nsh.base.np == TUN_P_ETHERNET)
3164				mac_proto = MAC_PROTO_ETHERNET;
3165			else
3166				mac_proto = MAC_PROTO_NONE;
3167			break;
3168		}
3169
3170		case OVS_ACTION_ATTR_METER:
3171			/* Non-existent meters are simply ignored.  */
3172			break;
3173
3174		case OVS_ACTION_ATTR_CLONE: {
3175			bool last = nla_is_last(a, rem);
3176
3177			err = validate_and_copy_clone(net, a, key, sfa,
3178						      eth_type, vlan_tci,
3179						      log, last);
 
3180			if (err)
3181				return err;
3182			skip_copy = true;
3183			break;
3184		}
3185
3186		case OVS_ACTION_ATTR_CHECK_PKT_LEN: {
3187			bool last = nla_is_last(a, rem);
3188
3189			err = validate_and_copy_check_pkt_len(net, a, key, sfa,
3190							      eth_type,
3191							      vlan_tci, log,
3192							      last);
 
 
3193			if (err)
3194				return err;
3195			skip_copy = true;
3196			break;
3197		}
3198
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3199		default:
3200			OVS_NLERR(log, "Unknown Action type %d", type);
3201			return -EINVAL;
3202		}
3203		if (!skip_copy) {
3204			err = copy_action(a, sfa, log);
3205			if (err)
3206				return err;
3207		}
3208	}
3209
3210	if (rem > 0)
3211		return -EINVAL;
3212
3213	return 0;
3214}
3215
3216/* 'key' must be the masked key. */
3217int ovs_nla_copy_actions(struct net *net, const struct nlattr *attr,
3218			 const struct sw_flow_key *key,
3219			 struct sw_flow_actions **sfa, bool log)
3220{
3221	int err;
 
3222
3223	*sfa = nla_alloc_flow_actions(min(nla_len(attr), MAX_ACTIONS_BUFSIZE));
3224	if (IS_ERR(*sfa))
3225		return PTR_ERR(*sfa);
3226
 
 
 
3227	(*sfa)->orig_len = nla_len(attr);
3228	err = __ovs_nla_copy_actions(net, attr, key, sfa, key->eth.type,
3229				     key->eth.vlan.tci, log);
 
3230	if (err)
3231		ovs_nla_free_flow_actions(*sfa);
3232
3233	return err;
3234}
3235
3236static int sample_action_to_attr(const struct nlattr *attr,
3237				 struct sk_buff *skb)
3238{
3239	struct nlattr *start, *ac_start = NULL, *sample_arg;
3240	int err = 0, rem = nla_len(attr);
3241	const struct sample_arg *arg;
3242	struct nlattr *actions;
3243
3244	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_SAMPLE);
3245	if (!start)
3246		return -EMSGSIZE;
3247
3248	sample_arg = nla_data(attr);
3249	arg = nla_data(sample_arg);
3250	actions = nla_next(sample_arg, &rem);
3251
3252	if (nla_put_u32(skb, OVS_SAMPLE_ATTR_PROBABILITY, arg->probability)) {
3253		err = -EMSGSIZE;
3254		goto out;
3255	}
3256
3257	ac_start = nla_nest_start_noflag(skb, OVS_SAMPLE_ATTR_ACTIONS);
3258	if (!ac_start) {
3259		err = -EMSGSIZE;
3260		goto out;
3261	}
3262
3263	err = ovs_nla_put_actions(actions, rem, skb);
3264
3265out:
3266	if (err) {
3267		nla_nest_cancel(skb, ac_start);
3268		nla_nest_cancel(skb, start);
3269	} else {
3270		nla_nest_end(skb, ac_start);
3271		nla_nest_end(skb, start);
3272	}
3273
3274	return err;
3275}
3276
3277static int clone_action_to_attr(const struct nlattr *attr,
3278				struct sk_buff *skb)
3279{
3280	struct nlattr *start;
3281	int err = 0, rem = nla_len(attr);
3282
3283	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_CLONE);
3284	if (!start)
3285		return -EMSGSIZE;
3286
3287	err = ovs_nla_put_actions(nla_data(attr), rem, skb);
 
 
3288
3289	if (err)
3290		nla_nest_cancel(skb, start);
3291	else
3292		nla_nest_end(skb, start);
3293
3294	return err;
3295}
3296
3297static int check_pkt_len_action_to_attr(const struct nlattr *attr,
3298					struct sk_buff *skb)
3299{
3300	struct nlattr *start, *ac_start = NULL;
3301	const struct check_pkt_len_arg *arg;
3302	const struct nlattr *a, *cpl_arg;
3303	int err = 0, rem = nla_len(attr);
3304
3305	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_CHECK_PKT_LEN);
3306	if (!start)
3307		return -EMSGSIZE;
3308
3309	/* The first nested attribute in 'attr' is always
3310	 * 'OVS_CHECK_PKT_LEN_ATTR_ARG'.
3311	 */
3312	cpl_arg = nla_data(attr);
3313	arg = nla_data(cpl_arg);
3314
3315	if (nla_put_u16(skb, OVS_CHECK_PKT_LEN_ATTR_PKT_LEN, arg->pkt_len)) {
3316		err = -EMSGSIZE;
3317		goto out;
3318	}
3319
3320	/* Second nested attribute in 'attr' is always
3321	 * 'OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL'.
3322	 */
3323	a = nla_next(cpl_arg, &rem);
3324	ac_start =  nla_nest_start_noflag(skb,
3325					  OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL);
3326	if (!ac_start) {
3327		err = -EMSGSIZE;
3328		goto out;
3329	}
3330
3331	err = ovs_nla_put_actions(nla_data(a), nla_len(a), skb);
3332	if (err) {
3333		nla_nest_cancel(skb, ac_start);
3334		goto out;
3335	} else {
3336		nla_nest_end(skb, ac_start);
3337	}
3338
3339	/* Third nested attribute in 'attr' is always
3340	 * OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER.
3341	 */
3342	a = nla_next(a, &rem);
3343	ac_start =  nla_nest_start_noflag(skb,
3344					  OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER);
3345	if (!ac_start) {
3346		err = -EMSGSIZE;
3347		goto out;
3348	}
3349
3350	err = ovs_nla_put_actions(nla_data(a), nla_len(a), skb);
3351	if (err) {
3352		nla_nest_cancel(skb, ac_start);
3353		goto out;
3354	} else {
3355		nla_nest_end(skb, ac_start);
3356	}
3357
3358	nla_nest_end(skb, start);
3359	return 0;
3360
3361out:
3362	nla_nest_cancel(skb, start);
3363	return err;
3364}
3365
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3366static int set_action_to_attr(const struct nlattr *a, struct sk_buff *skb)
3367{
3368	const struct nlattr *ovs_key = nla_data(a);
3369	int key_type = nla_type(ovs_key);
3370	struct nlattr *start;
3371	int err;
3372
3373	switch (key_type) {
3374	case OVS_KEY_ATTR_TUNNEL_INFO: {
3375		struct ovs_tunnel_info *ovs_tun = nla_data(ovs_key);
3376		struct ip_tunnel_info *tun_info = &ovs_tun->tun_dst->u.tun_info;
3377
3378		start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_SET);
3379		if (!start)
3380			return -EMSGSIZE;
3381
3382		err =  ip_tun_to_nlattr(skb, &tun_info->key,
3383					ip_tunnel_info_opts(tun_info),
3384					tun_info->options_len,
3385					ip_tunnel_info_af(tun_info), tun_info->mode);
3386		if (err)
3387			return err;
3388		nla_nest_end(skb, start);
3389		break;
3390	}
3391	default:
3392		if (nla_put(skb, OVS_ACTION_ATTR_SET, nla_len(a), ovs_key))
3393			return -EMSGSIZE;
3394		break;
3395	}
3396
3397	return 0;
3398}
3399
3400static int masked_set_action_to_set_action_attr(const struct nlattr *a,
3401						struct sk_buff *skb)
3402{
3403	const struct nlattr *ovs_key = nla_data(a);
3404	struct nlattr *nla;
3405	size_t key_len = nla_len(ovs_key) / 2;
3406
3407	/* Revert the conversion we did from a non-masked set action to
3408	 * masked set action.
3409	 */
3410	nla = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_SET);
3411	if (!nla)
3412		return -EMSGSIZE;
3413
3414	if (nla_put(skb, nla_type(ovs_key), key_len, nla_data(ovs_key)))
3415		return -EMSGSIZE;
3416
3417	nla_nest_end(skb, nla);
3418	return 0;
3419}
3420
3421int ovs_nla_put_actions(const struct nlattr *attr, int len, struct sk_buff *skb)
3422{
3423	const struct nlattr *a;
3424	int rem, err;
3425
3426	nla_for_each_attr(a, attr, len, rem) {
3427		int type = nla_type(a);
3428
3429		switch (type) {
3430		case OVS_ACTION_ATTR_SET:
3431			err = set_action_to_attr(a, skb);
3432			if (err)
3433				return err;
3434			break;
3435
3436		case OVS_ACTION_ATTR_SET_TO_MASKED:
3437			err = masked_set_action_to_set_action_attr(a, skb);
3438			if (err)
3439				return err;
3440			break;
3441
3442		case OVS_ACTION_ATTR_SAMPLE:
3443			err = sample_action_to_attr(a, skb);
3444			if (err)
3445				return err;
3446			break;
3447
3448		case OVS_ACTION_ATTR_CT:
3449			err = ovs_ct_action_to_attr(nla_data(a), skb);
3450			if (err)
3451				return err;
3452			break;
3453
3454		case OVS_ACTION_ATTR_CLONE:
3455			err = clone_action_to_attr(a, skb);
3456			if (err)
3457				return err;
3458			break;
3459
3460		case OVS_ACTION_ATTR_CHECK_PKT_LEN:
3461			err = check_pkt_len_action_to_attr(a, skb);
 
 
 
 
 
 
3462			if (err)
3463				return err;
3464			break;
3465
3466		default:
3467			if (nla_put(skb, type, nla_len(a), nla_data(a)))
3468				return -EMSGSIZE;
3469			break;
3470		}
3471	}
3472
3473	return 0;
3474}
v6.13.7
   1// SPDX-License-Identifier: GPL-2.0-only
   2/*
   3 * Copyright (c) 2007-2017 Nicira, Inc.
   4 */
   5
   6#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
   7
   8#include "flow.h"
   9#include "datapath.h"
  10#include <linux/uaccess.h>
  11#include <linux/netdevice.h>
  12#include <linux/etherdevice.h>
  13#include <linux/if_ether.h>
  14#include <linux/if_vlan.h>
  15#include <net/llc_pdu.h>
  16#include <linux/kernel.h>
  17#include <linux/jhash.h>
  18#include <linux/jiffies.h>
  19#include <linux/llc.h>
  20#include <linux/module.h>
  21#include <linux/in.h>
  22#include <linux/rcupdate.h>
  23#include <linux/if_arp.h>
  24#include <linux/ip.h>
  25#include <linux/ipv6.h>
  26#include <linux/sctp.h>
  27#include <linux/tcp.h>
  28#include <linux/udp.h>
  29#include <linux/icmp.h>
  30#include <linux/icmpv6.h>
  31#include <linux/rculist.h>
  32#include <net/geneve.h>
  33#include <net/ip.h>
  34#include <net/ipv6.h>
  35#include <net/ndisc.h>
  36#include <net/mpls.h>
  37#include <net/vxlan.h>
  38#include <net/tun_proto.h>
  39#include <net/erspan.h>
  40
  41#include "drop.h"
  42#include "flow_netlink.h"
  43
  44struct ovs_len_tbl {
  45	int len;
  46	const struct ovs_len_tbl *next;
  47};
  48
  49#define OVS_ATTR_NESTED -1
  50#define OVS_ATTR_VARIABLE -2
  51#define OVS_COPY_ACTIONS_MAX_DEPTH 16
  52
  53static bool actions_may_change_flow(const struct nlattr *actions)
  54{
  55	struct nlattr *nla;
  56	int rem;
  57
  58	nla_for_each_nested(nla, actions, rem) {
  59		u16 action = nla_type(nla);
  60
  61		switch (action) {
  62		case OVS_ACTION_ATTR_OUTPUT:
  63		case OVS_ACTION_ATTR_RECIRC:
  64		case OVS_ACTION_ATTR_TRUNC:
  65		case OVS_ACTION_ATTR_USERSPACE:
  66		case OVS_ACTION_ATTR_DROP:
  67		case OVS_ACTION_ATTR_PSAMPLE:
  68			break;
  69
  70		case OVS_ACTION_ATTR_CT:
  71		case OVS_ACTION_ATTR_CT_CLEAR:
  72		case OVS_ACTION_ATTR_HASH:
  73		case OVS_ACTION_ATTR_POP_ETH:
  74		case OVS_ACTION_ATTR_POP_MPLS:
  75		case OVS_ACTION_ATTR_POP_NSH:
  76		case OVS_ACTION_ATTR_POP_VLAN:
  77		case OVS_ACTION_ATTR_PUSH_ETH:
  78		case OVS_ACTION_ATTR_PUSH_MPLS:
  79		case OVS_ACTION_ATTR_PUSH_NSH:
  80		case OVS_ACTION_ATTR_PUSH_VLAN:
  81		case OVS_ACTION_ATTR_SAMPLE:
  82		case OVS_ACTION_ATTR_SET:
  83		case OVS_ACTION_ATTR_SET_MASKED:
  84		case OVS_ACTION_ATTR_METER:
  85		case OVS_ACTION_ATTR_CHECK_PKT_LEN:
  86		case OVS_ACTION_ATTR_ADD_MPLS:
  87		case OVS_ACTION_ATTR_DEC_TTL:
  88		default:
  89			return true;
  90		}
  91	}
  92	return false;
  93}
  94
  95static void update_range(struct sw_flow_match *match,
  96			 size_t offset, size_t size, bool is_mask)
  97{
  98	struct sw_flow_key_range *range;
  99	size_t start = rounddown(offset, sizeof(long));
 100	size_t end = roundup(offset + size, sizeof(long));
 101
 102	if (!is_mask)
 103		range = &match->range;
 104	else
 105		range = &match->mask->range;
 106
 107	if (range->start == range->end) {
 108		range->start = start;
 109		range->end = end;
 110		return;
 111	}
 112
 113	if (range->start > start)
 114		range->start = start;
 115
 116	if (range->end < end)
 117		range->end = end;
 118}
 119
 120#define SW_FLOW_KEY_PUT(match, field, value, is_mask) \
 121	do { \
 122		update_range(match, offsetof(struct sw_flow_key, field),    \
 123			     sizeof((match)->key->field), is_mask);	    \
 124		if (is_mask)						    \
 125			(match)->mask->key.field = value;		    \
 126		else							    \
 127			(match)->key->field = value;		            \
 128	} while (0)
 129
 130#define SW_FLOW_KEY_MEMCPY_OFFSET(match, offset, value_p, len, is_mask)	    \
 131	do {								    \
 132		update_range(match, offset, len, is_mask);		    \
 133		if (is_mask)						    \
 134			memcpy((u8 *)&(match)->mask->key + offset, value_p, \
 135			       len);					   \
 136		else							    \
 137			memcpy((u8 *)(match)->key + offset, value_p, len);  \
 138	} while (0)
 139
 140#define SW_FLOW_KEY_MEMCPY(match, field, value_p, len, is_mask)		      \
 141	SW_FLOW_KEY_MEMCPY_OFFSET(match, offsetof(struct sw_flow_key, field), \
 142				  value_p, len, is_mask)
 143
 144#define SW_FLOW_KEY_MEMSET_FIELD(match, field, value, is_mask)		    \
 145	do {								    \
 146		update_range(match, offsetof(struct sw_flow_key, field),    \
 147			     sizeof((match)->key->field), is_mask);	    \
 148		if (is_mask)						    \
 149			memset((u8 *)&(match)->mask->key.field, value,      \
 150			       sizeof((match)->mask->key.field));	    \
 151		else							    \
 152			memset((u8 *)&(match)->key->field, value,           \
 153			       sizeof((match)->key->field));                \
 154	} while (0)
 155
 156#define SW_FLOW_KEY_BITMAP_COPY(match, field, value_p, nbits, is_mask) ({     \
 157	update_range(match, offsetof(struct sw_flow_key, field),	      \
 158		     bitmap_size(nbits), is_mask);			      \
 159	bitmap_copy(is_mask ? (match)->mask->key.field : (match)->key->field, \
 160		    value_p, nbits);					      \
 161})
 162
 163static bool match_validate(const struct sw_flow_match *match,
 164			   u64 key_attrs, u64 mask_attrs, bool log)
 165{
 166	u64 key_expected = 0;
 167	u64 mask_allowed = key_attrs;  /* At most allow all key attributes */
 168
 169	/* The following mask attributes allowed only if they
 170	 * pass the validation tests. */
 171	mask_allowed &= ~((1 << OVS_KEY_ATTR_IPV4)
 172			| (1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4)
 173			| (1 << OVS_KEY_ATTR_IPV6)
 174			| (1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6)
 175			| (1 << OVS_KEY_ATTR_TCP)
 176			| (1 << OVS_KEY_ATTR_TCP_FLAGS)
 177			| (1 << OVS_KEY_ATTR_UDP)
 178			| (1 << OVS_KEY_ATTR_SCTP)
 179			| (1 << OVS_KEY_ATTR_ICMP)
 180			| (1 << OVS_KEY_ATTR_ICMPV6)
 181			| (1 << OVS_KEY_ATTR_ARP)
 182			| (1 << OVS_KEY_ATTR_ND)
 183			| (1 << OVS_KEY_ATTR_MPLS)
 184			| (1 << OVS_KEY_ATTR_NSH));
 185
 186	/* Always allowed mask fields. */
 187	mask_allowed |= ((1 << OVS_KEY_ATTR_TUNNEL)
 188		       | (1 << OVS_KEY_ATTR_IN_PORT)
 189		       | (1 << OVS_KEY_ATTR_ETHERTYPE));
 190
 191	/* Check key attributes. */
 192	if (match->key->eth.type == htons(ETH_P_ARP)
 193			|| match->key->eth.type == htons(ETH_P_RARP)) {
 194		key_expected |= 1 << OVS_KEY_ATTR_ARP;
 195		if (match->mask && (match->mask->key.eth.type == htons(0xffff)))
 196			mask_allowed |= 1 << OVS_KEY_ATTR_ARP;
 197	}
 198
 199	if (eth_p_mpls(match->key->eth.type)) {
 200		key_expected |= 1 << OVS_KEY_ATTR_MPLS;
 201		if (match->mask && (match->mask->key.eth.type == htons(0xffff)))
 202			mask_allowed |= 1 << OVS_KEY_ATTR_MPLS;
 203	}
 204
 205	if (match->key->eth.type == htons(ETH_P_IP)) {
 206		key_expected |= 1 << OVS_KEY_ATTR_IPV4;
 207		if (match->mask && match->mask->key.eth.type == htons(0xffff)) {
 208			mask_allowed |= 1 << OVS_KEY_ATTR_IPV4;
 209			mask_allowed |= 1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4;
 210		}
 211
 212		if (match->key->ip.frag != OVS_FRAG_TYPE_LATER) {
 213			if (match->key->ip.proto == IPPROTO_UDP) {
 214				key_expected |= 1 << OVS_KEY_ATTR_UDP;
 215				if (match->mask && (match->mask->key.ip.proto == 0xff))
 216					mask_allowed |= 1 << OVS_KEY_ATTR_UDP;
 217			}
 218
 219			if (match->key->ip.proto == IPPROTO_SCTP) {
 220				key_expected |= 1 << OVS_KEY_ATTR_SCTP;
 221				if (match->mask && (match->mask->key.ip.proto == 0xff))
 222					mask_allowed |= 1 << OVS_KEY_ATTR_SCTP;
 223			}
 224
 225			if (match->key->ip.proto == IPPROTO_TCP) {
 226				key_expected |= 1 << OVS_KEY_ATTR_TCP;
 227				key_expected |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 228				if (match->mask && (match->mask->key.ip.proto == 0xff)) {
 229					mask_allowed |= 1 << OVS_KEY_ATTR_TCP;
 230					mask_allowed |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 231				}
 232			}
 233
 234			if (match->key->ip.proto == IPPROTO_ICMP) {
 235				key_expected |= 1 << OVS_KEY_ATTR_ICMP;
 236				if (match->mask && (match->mask->key.ip.proto == 0xff))
 237					mask_allowed |= 1 << OVS_KEY_ATTR_ICMP;
 238			}
 239		}
 240	}
 241
 242	if (match->key->eth.type == htons(ETH_P_IPV6)) {
 243		key_expected |= 1 << OVS_KEY_ATTR_IPV6;
 244		if (match->mask && match->mask->key.eth.type == htons(0xffff)) {
 245			mask_allowed |= 1 << OVS_KEY_ATTR_IPV6;
 246			mask_allowed |= 1 << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6;
 247		}
 248
 249		if (match->key->ip.frag != OVS_FRAG_TYPE_LATER) {
 250			if (match->key->ip.proto == IPPROTO_UDP) {
 251				key_expected |= 1 << OVS_KEY_ATTR_UDP;
 252				if (match->mask && (match->mask->key.ip.proto == 0xff))
 253					mask_allowed |= 1 << OVS_KEY_ATTR_UDP;
 254			}
 255
 256			if (match->key->ip.proto == IPPROTO_SCTP) {
 257				key_expected |= 1 << OVS_KEY_ATTR_SCTP;
 258				if (match->mask && (match->mask->key.ip.proto == 0xff))
 259					mask_allowed |= 1 << OVS_KEY_ATTR_SCTP;
 260			}
 261
 262			if (match->key->ip.proto == IPPROTO_TCP) {
 263				key_expected |= 1 << OVS_KEY_ATTR_TCP;
 264				key_expected |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 265				if (match->mask && (match->mask->key.ip.proto == 0xff)) {
 266					mask_allowed |= 1 << OVS_KEY_ATTR_TCP;
 267					mask_allowed |= 1 << OVS_KEY_ATTR_TCP_FLAGS;
 268				}
 269			}
 270
 271			if (match->key->ip.proto == IPPROTO_ICMPV6) {
 272				key_expected |= 1 << OVS_KEY_ATTR_ICMPV6;
 273				if (match->mask && (match->mask->key.ip.proto == 0xff))
 274					mask_allowed |= 1 << OVS_KEY_ATTR_ICMPV6;
 275
 276				if (match->key->tp.src ==
 277						htons(NDISC_NEIGHBOUR_SOLICITATION) ||
 278				    match->key->tp.src == htons(NDISC_NEIGHBOUR_ADVERTISEMENT)) {
 279					key_expected |= 1 << OVS_KEY_ATTR_ND;
 280					/* Original direction conntrack tuple
 281					 * uses the same space as the ND fields
 282					 * in the key, so both are not allowed
 283					 * at the same time.
 284					 */
 285					mask_allowed &= ~(1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6);
 286					if (match->mask && (match->mask->key.tp.src == htons(0xff)))
 287						mask_allowed |= 1 << OVS_KEY_ATTR_ND;
 288				}
 289			}
 290		}
 291	}
 292
 293	if (match->key->eth.type == htons(ETH_P_NSH)) {
 294		key_expected |= 1 << OVS_KEY_ATTR_NSH;
 295		if (match->mask &&
 296		    match->mask->key.eth.type == htons(0xffff)) {
 297			mask_allowed |= 1 << OVS_KEY_ATTR_NSH;
 298		}
 299	}
 300
 301	if ((key_attrs & key_expected) != key_expected) {
 302		/* Key attributes check failed. */
 303		OVS_NLERR(log, "Missing key (keys=%llx, expected=%llx)",
 304			  (unsigned long long)key_attrs,
 305			  (unsigned long long)key_expected);
 306		return false;
 307	}
 308
 309	if ((mask_attrs & mask_allowed) != mask_attrs) {
 310		/* Mask attributes check failed. */
 311		OVS_NLERR(log, "Unexpected mask (mask=%llx, allowed=%llx)",
 312			  (unsigned long long)mask_attrs,
 313			  (unsigned long long)mask_allowed);
 314		return false;
 315	}
 316
 317	return true;
 318}
 319
 320size_t ovs_tun_key_attr_size(void)
 321{
 322	/* Whenever adding new OVS_TUNNEL_KEY_ FIELDS, we should consider
 323	 * updating this function.
 324	 */
 325	return    nla_total_size_64bit(8) /* OVS_TUNNEL_KEY_ATTR_ID */
 326		+ nla_total_size(16)   /* OVS_TUNNEL_KEY_ATTR_IPV[46]_SRC */
 327		+ nla_total_size(16)   /* OVS_TUNNEL_KEY_ATTR_IPV[46]_DST */
 328		+ nla_total_size(1)    /* OVS_TUNNEL_KEY_ATTR_TOS */
 329		+ nla_total_size(1)    /* OVS_TUNNEL_KEY_ATTR_TTL */
 330		+ nla_total_size(0)    /* OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT */
 331		+ nla_total_size(0)    /* OVS_TUNNEL_KEY_ATTR_CSUM */
 332		+ nla_total_size(0)    /* OVS_TUNNEL_KEY_ATTR_OAM */
 333		+ nla_total_size(256)  /* OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS */
 334		/* OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS and
 335		 * OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS is mutually exclusive with
 336		 * OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS and covered by it.
 337		 */
 338		+ nla_total_size(2)    /* OVS_TUNNEL_KEY_ATTR_TP_SRC */
 339		+ nla_total_size(2);   /* OVS_TUNNEL_KEY_ATTR_TP_DST */
 340}
 341
 342static size_t ovs_nsh_key_attr_size(void)
 343{
 344	/* Whenever adding new OVS_NSH_KEY_ FIELDS, we should consider
 345	 * updating this function.
 346	 */
 347	return  nla_total_size(NSH_BASE_HDR_LEN) /* OVS_NSH_KEY_ATTR_BASE */
 348		/* OVS_NSH_KEY_ATTR_MD1 and OVS_NSH_KEY_ATTR_MD2 are
 349		 * mutually exclusive, so the bigger one can cover
 350		 * the small one.
 351		 */
 352		+ nla_total_size(NSH_CTX_HDRS_MAX_LEN);
 353}
 354
 355size_t ovs_key_attr_size(void)
 356{
 357	/* Whenever adding new OVS_KEY_ FIELDS, we should consider
 358	 * updating this function.
 359	 */
 360	BUILD_BUG_ON(OVS_KEY_ATTR_MAX != 32);
 361
 362	return    nla_total_size(4)   /* OVS_KEY_ATTR_PRIORITY */
 363		+ nla_total_size(0)   /* OVS_KEY_ATTR_TUNNEL */
 364		  + ovs_tun_key_attr_size()
 365		+ nla_total_size(4)   /* OVS_KEY_ATTR_IN_PORT */
 366		+ nla_total_size(4)   /* OVS_KEY_ATTR_SKB_MARK */
 367		+ nla_total_size(4)   /* OVS_KEY_ATTR_DP_HASH */
 368		+ nla_total_size(4)   /* OVS_KEY_ATTR_RECIRC_ID */
 369		+ nla_total_size(4)   /* OVS_KEY_ATTR_CT_STATE */
 370		+ nla_total_size(2)   /* OVS_KEY_ATTR_CT_ZONE */
 371		+ nla_total_size(4)   /* OVS_KEY_ATTR_CT_MARK */
 372		+ nla_total_size(16)  /* OVS_KEY_ATTR_CT_LABELS */
 373		+ nla_total_size(40)  /* OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6 */
 374		+ nla_total_size(0)   /* OVS_KEY_ATTR_NSH */
 375		  + ovs_nsh_key_attr_size()
 376		+ nla_total_size(12)  /* OVS_KEY_ATTR_ETHERNET */
 377		+ nla_total_size(2)   /* OVS_KEY_ATTR_ETHERTYPE */
 378		+ nla_total_size(4)   /* OVS_KEY_ATTR_VLAN */
 379		+ nla_total_size(0)   /* OVS_KEY_ATTR_ENCAP */
 380		+ nla_total_size(2)   /* OVS_KEY_ATTR_ETHERTYPE */
 381		+ nla_total_size(40)  /* OVS_KEY_ATTR_IPV6 */
 382		+ nla_total_size(2)   /* OVS_KEY_ATTR_ICMPV6 */
 383		+ nla_total_size(28)  /* OVS_KEY_ATTR_ND */
 384		+ nla_total_size(2);  /* OVS_KEY_ATTR_IPV6_EXTHDRS */
 385}
 386
 387static const struct ovs_len_tbl ovs_vxlan_ext_key_lens[OVS_VXLAN_EXT_MAX + 1] = {
 388	[OVS_VXLAN_EXT_GBP]	    = { .len = sizeof(u32) },
 389};
 390
 391static const struct ovs_len_tbl ovs_tunnel_key_lens[OVS_TUNNEL_KEY_ATTR_MAX + 1] = {
 392	[OVS_TUNNEL_KEY_ATTR_ID]	    = { .len = sizeof(u64) },
 393	[OVS_TUNNEL_KEY_ATTR_IPV4_SRC]	    = { .len = sizeof(u32) },
 394	[OVS_TUNNEL_KEY_ATTR_IPV4_DST]	    = { .len = sizeof(u32) },
 395	[OVS_TUNNEL_KEY_ATTR_TOS]	    = { .len = 1 },
 396	[OVS_TUNNEL_KEY_ATTR_TTL]	    = { .len = 1 },
 397	[OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT] = { .len = 0 },
 398	[OVS_TUNNEL_KEY_ATTR_CSUM]	    = { .len = 0 },
 399	[OVS_TUNNEL_KEY_ATTR_TP_SRC]	    = { .len = sizeof(u16) },
 400	[OVS_TUNNEL_KEY_ATTR_TP_DST]	    = { .len = sizeof(u16) },
 401	[OVS_TUNNEL_KEY_ATTR_OAM]	    = { .len = 0 },
 402	[OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS]   = { .len = OVS_ATTR_VARIABLE },
 403	[OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS]    = { .len = OVS_ATTR_NESTED,
 404						.next = ovs_vxlan_ext_key_lens },
 405	[OVS_TUNNEL_KEY_ATTR_IPV6_SRC]      = { .len = sizeof(struct in6_addr) },
 406	[OVS_TUNNEL_KEY_ATTR_IPV6_DST]      = { .len = sizeof(struct in6_addr) },
 407	[OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS]   = { .len = OVS_ATTR_VARIABLE },
 408	[OVS_TUNNEL_KEY_ATTR_IPV4_INFO_BRIDGE]   = { .len = 0 },
 409};
 410
 411static const struct ovs_len_tbl
 412ovs_nsh_key_attr_lens[OVS_NSH_KEY_ATTR_MAX + 1] = {
 413	[OVS_NSH_KEY_ATTR_BASE] = { .len = sizeof(struct ovs_nsh_key_base) },
 414	[OVS_NSH_KEY_ATTR_MD1]  = { .len = sizeof(struct ovs_nsh_key_md1) },
 415	[OVS_NSH_KEY_ATTR_MD2]  = { .len = OVS_ATTR_VARIABLE },
 416};
 417
 418/* The size of the argument for each %OVS_KEY_ATTR_* Netlink attribute.  */
 419static const struct ovs_len_tbl ovs_key_lens[OVS_KEY_ATTR_MAX + 1] = {
 420	[OVS_KEY_ATTR_ENCAP]	 = { .len = OVS_ATTR_NESTED },
 421	[OVS_KEY_ATTR_PRIORITY]	 = { .len = sizeof(u32) },
 422	[OVS_KEY_ATTR_IN_PORT]	 = { .len = sizeof(u32) },
 423	[OVS_KEY_ATTR_SKB_MARK]	 = { .len = sizeof(u32) },
 424	[OVS_KEY_ATTR_ETHERNET]	 = { .len = sizeof(struct ovs_key_ethernet) },
 425	[OVS_KEY_ATTR_VLAN]	 = { .len = sizeof(__be16) },
 426	[OVS_KEY_ATTR_ETHERTYPE] = { .len = sizeof(__be16) },
 427	[OVS_KEY_ATTR_IPV4]	 = { .len = sizeof(struct ovs_key_ipv4) },
 428	[OVS_KEY_ATTR_IPV6]	 = { .len = sizeof(struct ovs_key_ipv6) },
 429	[OVS_KEY_ATTR_TCP]	 = { .len = sizeof(struct ovs_key_tcp) },
 430	[OVS_KEY_ATTR_TCP_FLAGS] = { .len = sizeof(__be16) },
 431	[OVS_KEY_ATTR_UDP]	 = { .len = sizeof(struct ovs_key_udp) },
 432	[OVS_KEY_ATTR_SCTP]	 = { .len = sizeof(struct ovs_key_sctp) },
 433	[OVS_KEY_ATTR_ICMP]	 = { .len = sizeof(struct ovs_key_icmp) },
 434	[OVS_KEY_ATTR_ICMPV6]	 = { .len = sizeof(struct ovs_key_icmpv6) },
 435	[OVS_KEY_ATTR_ARP]	 = { .len = sizeof(struct ovs_key_arp) },
 436	[OVS_KEY_ATTR_ND]	 = { .len = sizeof(struct ovs_key_nd) },
 437	[OVS_KEY_ATTR_RECIRC_ID] = { .len = sizeof(u32) },
 438	[OVS_KEY_ATTR_DP_HASH]	 = { .len = sizeof(u32) },
 439	[OVS_KEY_ATTR_TUNNEL]	 = { .len = OVS_ATTR_NESTED,
 440				     .next = ovs_tunnel_key_lens, },
 441	[OVS_KEY_ATTR_MPLS]	 = { .len = OVS_ATTR_VARIABLE },
 442	[OVS_KEY_ATTR_CT_STATE]	 = { .len = sizeof(u32) },
 443	[OVS_KEY_ATTR_CT_ZONE]	 = { .len = sizeof(u16) },
 444	[OVS_KEY_ATTR_CT_MARK]	 = { .len = sizeof(u32) },
 445	[OVS_KEY_ATTR_CT_LABELS] = { .len = sizeof(struct ovs_key_ct_labels) },
 446	[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4] = {
 447		.len = sizeof(struct ovs_key_ct_tuple_ipv4) },
 448	[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6] = {
 449		.len = sizeof(struct ovs_key_ct_tuple_ipv6) },
 450	[OVS_KEY_ATTR_NSH]       = { .len = OVS_ATTR_NESTED,
 451				     .next = ovs_nsh_key_attr_lens, },
 452	[OVS_KEY_ATTR_IPV6_EXTHDRS] = {
 453		.len = sizeof(struct ovs_key_ipv6_exthdrs) },
 454};
 455
 456static bool check_attr_len(unsigned int attr_len, unsigned int expected_len)
 457{
 458	return expected_len == attr_len ||
 459	       expected_len == OVS_ATTR_NESTED ||
 460	       expected_len == OVS_ATTR_VARIABLE;
 461}
 462
 463static bool is_all_zero(const u8 *fp, size_t size)
 464{
 465	int i;
 466
 467	if (!fp)
 468		return false;
 469
 470	for (i = 0; i < size; i++)
 471		if (fp[i])
 472			return false;
 473
 474	return true;
 475}
 476
 477static int __parse_flow_nlattrs(const struct nlattr *attr,
 478				const struct nlattr *a[],
 479				u64 *attrsp, bool log, bool nz)
 480{
 481	const struct nlattr *nla;
 482	u64 attrs;
 483	int rem;
 484
 485	attrs = *attrsp;
 486	nla_for_each_nested(nla, attr, rem) {
 487		u16 type = nla_type(nla);
 488		int expected_len;
 489
 490		if (type > OVS_KEY_ATTR_MAX) {
 491			OVS_NLERR(log, "Key type %d is out of range max %d",
 492				  type, OVS_KEY_ATTR_MAX);
 493			return -EINVAL;
 494		}
 495
 496		if (type == OVS_KEY_ATTR_PACKET_TYPE ||
 497		    type == OVS_KEY_ATTR_ND_EXTENSIONS ||
 498		    type == OVS_KEY_ATTR_TUNNEL_INFO) {
 499			OVS_NLERR(log, "Key type %d is not supported", type);
 500			return -EINVAL;
 501		}
 502
 503		if (attrs & (1ULL << type)) {
 504			OVS_NLERR(log, "Duplicate key (type %d).", type);
 505			return -EINVAL;
 506		}
 507
 508		expected_len = ovs_key_lens[type].len;
 509		if (!check_attr_len(nla_len(nla), expected_len)) {
 510			OVS_NLERR(log, "Key %d has unexpected len %d expected %d",
 511				  type, nla_len(nla), expected_len);
 512			return -EINVAL;
 513		}
 514
 515		if (!nz || !is_all_zero(nla_data(nla), nla_len(nla))) {
 516			attrs |= 1ULL << type;
 517			a[type] = nla;
 518		}
 519	}
 520	if (rem) {
 521		OVS_NLERR(log, "Message has %d unknown bytes.", rem);
 522		return -EINVAL;
 523	}
 524
 525	*attrsp = attrs;
 526	return 0;
 527}
 528
 529static int parse_flow_mask_nlattrs(const struct nlattr *attr,
 530				   const struct nlattr *a[], u64 *attrsp,
 531				   bool log)
 532{
 533	return __parse_flow_nlattrs(attr, a, attrsp, log, true);
 534}
 535
 536int parse_flow_nlattrs(const struct nlattr *attr, const struct nlattr *a[],
 537		       u64 *attrsp, bool log)
 538{
 539	return __parse_flow_nlattrs(attr, a, attrsp, log, false);
 540}
 541
 542static int genev_tun_opt_from_nlattr(const struct nlattr *a,
 543				     struct sw_flow_match *match, bool is_mask,
 544				     bool log)
 545{
 546	unsigned long opt_key_offset;
 547
 548	if (nla_len(a) > sizeof(match->key->tun_opts)) {
 549		OVS_NLERR(log, "Geneve option length err (len %d, max %zu).",
 550			  nla_len(a), sizeof(match->key->tun_opts));
 551		return -EINVAL;
 552	}
 553
 554	if (nla_len(a) % 4 != 0) {
 555		OVS_NLERR(log, "Geneve opt len %d is not a multiple of 4.",
 556			  nla_len(a));
 557		return -EINVAL;
 558	}
 559
 560	/* We need to record the length of the options passed
 561	 * down, otherwise packets with the same format but
 562	 * additional options will be silently matched.
 563	 */
 564	if (!is_mask) {
 565		SW_FLOW_KEY_PUT(match, tun_opts_len, nla_len(a),
 566				false);
 567	} else {
 568		/* This is somewhat unusual because it looks at
 569		 * both the key and mask while parsing the
 570		 * attributes (and by extension assumes the key
 571		 * is parsed first). Normally, we would verify
 572		 * that each is the correct length and that the
 573		 * attributes line up in the validate function.
 574		 * However, that is difficult because this is
 575		 * variable length and we won't have the
 576		 * information later.
 577		 */
 578		if (match->key->tun_opts_len != nla_len(a)) {
 579			OVS_NLERR(log, "Geneve option len %d != mask len %d",
 580				  match->key->tun_opts_len, nla_len(a));
 581			return -EINVAL;
 582		}
 583
 584		SW_FLOW_KEY_PUT(match, tun_opts_len, 0xff, true);
 585	}
 586
 587	opt_key_offset = TUN_METADATA_OFFSET(nla_len(a));
 588	SW_FLOW_KEY_MEMCPY_OFFSET(match, opt_key_offset, nla_data(a),
 589				  nla_len(a), is_mask);
 590	return 0;
 591}
 592
 593static int vxlan_tun_opt_from_nlattr(const struct nlattr *attr,
 594				     struct sw_flow_match *match, bool is_mask,
 595				     bool log)
 596{
 597	struct nlattr *a;
 598	int rem;
 599	unsigned long opt_key_offset;
 600	struct vxlan_metadata opts;
 601
 602	BUILD_BUG_ON(sizeof(opts) > sizeof(match->key->tun_opts));
 603
 604	memset(&opts, 0, sizeof(opts));
 605	nla_for_each_nested(a, attr, rem) {
 606		int type = nla_type(a);
 607
 608		if (type > OVS_VXLAN_EXT_MAX) {
 609			OVS_NLERR(log, "VXLAN extension %d out of range max %d",
 610				  type, OVS_VXLAN_EXT_MAX);
 611			return -EINVAL;
 612		}
 613
 614		if (!check_attr_len(nla_len(a),
 615				    ovs_vxlan_ext_key_lens[type].len)) {
 616			OVS_NLERR(log, "VXLAN extension %d has unexpected len %d expected %d",
 617				  type, nla_len(a),
 618				  ovs_vxlan_ext_key_lens[type].len);
 619			return -EINVAL;
 620		}
 621
 622		switch (type) {
 623		case OVS_VXLAN_EXT_GBP:
 624			opts.gbp = nla_get_u32(a);
 625			break;
 626		default:
 627			OVS_NLERR(log, "Unknown VXLAN extension attribute %d",
 628				  type);
 629			return -EINVAL;
 630		}
 631	}
 632	if (rem) {
 633		OVS_NLERR(log, "VXLAN extension message has %d unknown bytes.",
 634			  rem);
 635		return -EINVAL;
 636	}
 637
 638	if (!is_mask)
 639		SW_FLOW_KEY_PUT(match, tun_opts_len, sizeof(opts), false);
 640	else
 641		SW_FLOW_KEY_PUT(match, tun_opts_len, 0xff, true);
 642
 643	opt_key_offset = TUN_METADATA_OFFSET(sizeof(opts));
 644	SW_FLOW_KEY_MEMCPY_OFFSET(match, opt_key_offset, &opts, sizeof(opts),
 645				  is_mask);
 646	return 0;
 647}
 648
 649static int erspan_tun_opt_from_nlattr(const struct nlattr *a,
 650				      struct sw_flow_match *match, bool is_mask,
 651				      bool log)
 652{
 653	unsigned long opt_key_offset;
 654
 655	BUILD_BUG_ON(sizeof(struct erspan_metadata) >
 656		     sizeof(match->key->tun_opts));
 657
 658	if (nla_len(a) > sizeof(match->key->tun_opts)) {
 659		OVS_NLERR(log, "ERSPAN option length err (len %d, max %zu).",
 660			  nla_len(a), sizeof(match->key->tun_opts));
 661		return -EINVAL;
 662	}
 663
 664	if (!is_mask)
 665		SW_FLOW_KEY_PUT(match, tun_opts_len,
 666				sizeof(struct erspan_metadata), false);
 667	else
 668		SW_FLOW_KEY_PUT(match, tun_opts_len, 0xff, true);
 669
 670	opt_key_offset = TUN_METADATA_OFFSET(nla_len(a));
 671	SW_FLOW_KEY_MEMCPY_OFFSET(match, opt_key_offset, nla_data(a),
 672				  nla_len(a), is_mask);
 673	return 0;
 674}
 675
 676static int ip_tun_from_nlattr(const struct nlattr *attr,
 677			      struct sw_flow_match *match, bool is_mask,
 678			      bool log)
 679{
 680	bool ttl = false, ipv4 = false, ipv6 = false;
 681	IP_TUNNEL_DECLARE_FLAGS(tun_flags) = { };
 682	bool info_bridge_mode = false;
 
 683	int opts_type = 0;
 684	struct nlattr *a;
 685	int rem;
 686
 687	nla_for_each_nested(a, attr, rem) {
 688		int type = nla_type(a);
 689		int err;
 690
 691		if (type > OVS_TUNNEL_KEY_ATTR_MAX) {
 692			OVS_NLERR(log, "Tunnel attr %d out of range max %d",
 693				  type, OVS_TUNNEL_KEY_ATTR_MAX);
 694			return -EINVAL;
 695		}
 696
 697		if (!check_attr_len(nla_len(a),
 698				    ovs_tunnel_key_lens[type].len)) {
 699			OVS_NLERR(log, "Tunnel attr %d has unexpected len %d expected %d",
 700				  type, nla_len(a), ovs_tunnel_key_lens[type].len);
 701			return -EINVAL;
 702		}
 703
 704		switch (type) {
 705		case OVS_TUNNEL_KEY_ATTR_ID:
 706			SW_FLOW_KEY_PUT(match, tun_key.tun_id,
 707					nla_get_be64(a), is_mask);
 708			__set_bit(IP_TUNNEL_KEY_BIT, tun_flags);
 709			break;
 710		case OVS_TUNNEL_KEY_ATTR_IPV4_SRC:
 711			SW_FLOW_KEY_PUT(match, tun_key.u.ipv4.src,
 712					nla_get_in_addr(a), is_mask);
 713			ipv4 = true;
 714			break;
 715		case OVS_TUNNEL_KEY_ATTR_IPV4_DST:
 716			SW_FLOW_KEY_PUT(match, tun_key.u.ipv4.dst,
 717					nla_get_in_addr(a), is_mask);
 718			ipv4 = true;
 719			break;
 720		case OVS_TUNNEL_KEY_ATTR_IPV6_SRC:
 721			SW_FLOW_KEY_PUT(match, tun_key.u.ipv6.src,
 722					nla_get_in6_addr(a), is_mask);
 723			ipv6 = true;
 724			break;
 725		case OVS_TUNNEL_KEY_ATTR_IPV6_DST:
 726			SW_FLOW_KEY_PUT(match, tun_key.u.ipv6.dst,
 727					nla_get_in6_addr(a), is_mask);
 728			ipv6 = true;
 729			break;
 730		case OVS_TUNNEL_KEY_ATTR_TOS:
 731			SW_FLOW_KEY_PUT(match, tun_key.tos,
 732					nla_get_u8(a), is_mask);
 733			break;
 734		case OVS_TUNNEL_KEY_ATTR_TTL:
 735			SW_FLOW_KEY_PUT(match, tun_key.ttl,
 736					nla_get_u8(a), is_mask);
 737			ttl = true;
 738			break;
 739		case OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT:
 740			__set_bit(IP_TUNNEL_DONT_FRAGMENT_BIT, tun_flags);
 741			break;
 742		case OVS_TUNNEL_KEY_ATTR_CSUM:
 743			__set_bit(IP_TUNNEL_CSUM_BIT, tun_flags);
 744			break;
 745		case OVS_TUNNEL_KEY_ATTR_TP_SRC:
 746			SW_FLOW_KEY_PUT(match, tun_key.tp_src,
 747					nla_get_be16(a), is_mask);
 748			break;
 749		case OVS_TUNNEL_KEY_ATTR_TP_DST:
 750			SW_FLOW_KEY_PUT(match, tun_key.tp_dst,
 751					nla_get_be16(a), is_mask);
 752			break;
 753		case OVS_TUNNEL_KEY_ATTR_OAM:
 754			__set_bit(IP_TUNNEL_OAM_BIT, tun_flags);
 755			break;
 756		case OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS:
 757			if (opts_type) {
 758				OVS_NLERR(log, "Multiple metadata blocks provided");
 759				return -EINVAL;
 760			}
 761
 762			err = genev_tun_opt_from_nlattr(a, match, is_mask, log);
 763			if (err)
 764				return err;
 765
 766			__set_bit(IP_TUNNEL_GENEVE_OPT_BIT, tun_flags);
 767			opts_type = type;
 768			break;
 769		case OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS:
 770			if (opts_type) {
 771				OVS_NLERR(log, "Multiple metadata blocks provided");
 772				return -EINVAL;
 773			}
 774
 775			err = vxlan_tun_opt_from_nlattr(a, match, is_mask, log);
 776			if (err)
 777				return err;
 778
 779			__set_bit(IP_TUNNEL_VXLAN_OPT_BIT, tun_flags);
 780			opts_type = type;
 781			break;
 782		case OVS_TUNNEL_KEY_ATTR_PAD:
 783			break;
 784		case OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS:
 785			if (opts_type) {
 786				OVS_NLERR(log, "Multiple metadata blocks provided");
 787				return -EINVAL;
 788			}
 789
 790			err = erspan_tun_opt_from_nlattr(a, match, is_mask,
 791							 log);
 792			if (err)
 793				return err;
 794
 795			__set_bit(IP_TUNNEL_ERSPAN_OPT_BIT, tun_flags);
 796			opts_type = type;
 797			break;
 798		case OVS_TUNNEL_KEY_ATTR_IPV4_INFO_BRIDGE:
 799			info_bridge_mode = true;
 800			ipv4 = true;
 801			break;
 802		default:
 803			OVS_NLERR(log, "Unknown IP tunnel attribute %d",
 804				  type);
 805			return -EINVAL;
 806		}
 807	}
 808
 809	SW_FLOW_KEY_BITMAP_COPY(match, tun_key.tun_flags, tun_flags,
 810				__IP_TUNNEL_FLAG_NUM, is_mask);
 811	if (is_mask)
 812		SW_FLOW_KEY_MEMSET_FIELD(match, tun_proto, 0xff, true);
 813	else
 814		SW_FLOW_KEY_PUT(match, tun_proto, ipv6 ? AF_INET6 : AF_INET,
 815				false);
 816
 817	if (rem > 0) {
 818		OVS_NLERR(log, "IP tunnel attribute has %d unknown bytes.",
 819			  rem);
 820		return -EINVAL;
 821	}
 822
 823	if (ipv4 && ipv6) {
 824		OVS_NLERR(log, "Mixed IPv4 and IPv6 tunnel attributes");
 825		return -EINVAL;
 826	}
 827
 828	if (!is_mask) {
 829		if (!ipv4 && !ipv6) {
 830			OVS_NLERR(log, "IP tunnel dst address not specified");
 831			return -EINVAL;
 832		}
 833		if (ipv4) {
 834			if (info_bridge_mode) {
 835				__clear_bit(IP_TUNNEL_KEY_BIT, tun_flags);
 836
 837				if (match->key->tun_key.u.ipv4.src ||
 838				    match->key->tun_key.u.ipv4.dst ||
 839				    match->key->tun_key.tp_src ||
 840				    match->key->tun_key.tp_dst ||
 841				    match->key->tun_key.ttl ||
 842				    match->key->tun_key.tos ||
 843				    !ip_tunnel_flags_empty(tun_flags)) {
 844					OVS_NLERR(log, "IPv4 tun info is not correct");
 845					return -EINVAL;
 846				}
 847			} else if (!match->key->tun_key.u.ipv4.dst) {
 848				OVS_NLERR(log, "IPv4 tunnel dst address is zero");
 849				return -EINVAL;
 850			}
 851		}
 852		if (ipv6 && ipv6_addr_any(&match->key->tun_key.u.ipv6.dst)) {
 853			OVS_NLERR(log, "IPv6 tunnel dst address is zero");
 854			return -EINVAL;
 855		}
 856
 857		if (!ttl && !info_bridge_mode) {
 858			OVS_NLERR(log, "IP tunnel TTL not specified.");
 859			return -EINVAL;
 860		}
 861	}
 862
 863	return opts_type;
 864}
 865
 866static int vxlan_opt_to_nlattr(struct sk_buff *skb,
 867			       const void *tun_opts, int swkey_tun_opts_len)
 868{
 869	const struct vxlan_metadata *opts = tun_opts;
 870	struct nlattr *nla;
 871
 872	nla = nla_nest_start_noflag(skb, OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS);
 873	if (!nla)
 874		return -EMSGSIZE;
 875
 876	if (nla_put_u32(skb, OVS_VXLAN_EXT_GBP, opts->gbp) < 0)
 877		return -EMSGSIZE;
 878
 879	nla_nest_end(skb, nla);
 880	return 0;
 881}
 882
 883static int __ip_tun_to_nlattr(struct sk_buff *skb,
 884			      const struct ip_tunnel_key *output,
 885			      const void *tun_opts, int swkey_tun_opts_len,
 886			      unsigned short tun_proto, u8 mode)
 887{
 888	if (test_bit(IP_TUNNEL_KEY_BIT, output->tun_flags) &&
 889	    nla_put_be64(skb, OVS_TUNNEL_KEY_ATTR_ID, output->tun_id,
 890			 OVS_TUNNEL_KEY_ATTR_PAD))
 891		return -EMSGSIZE;
 892
 893	if (mode & IP_TUNNEL_INFO_BRIDGE)
 894		return nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_IPV4_INFO_BRIDGE)
 895		       ? -EMSGSIZE : 0;
 896
 897	switch (tun_proto) {
 898	case AF_INET:
 899		if (output->u.ipv4.src &&
 900		    nla_put_in_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV4_SRC,
 901				    output->u.ipv4.src))
 902			return -EMSGSIZE;
 903		if (output->u.ipv4.dst &&
 904		    nla_put_in_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV4_DST,
 905				    output->u.ipv4.dst))
 906			return -EMSGSIZE;
 907		break;
 908	case AF_INET6:
 909		if (!ipv6_addr_any(&output->u.ipv6.src) &&
 910		    nla_put_in6_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV6_SRC,
 911				     &output->u.ipv6.src))
 912			return -EMSGSIZE;
 913		if (!ipv6_addr_any(&output->u.ipv6.dst) &&
 914		    nla_put_in6_addr(skb, OVS_TUNNEL_KEY_ATTR_IPV6_DST,
 915				     &output->u.ipv6.dst))
 916			return -EMSGSIZE;
 917		break;
 918	}
 919	if (output->tos &&
 920	    nla_put_u8(skb, OVS_TUNNEL_KEY_ATTR_TOS, output->tos))
 921		return -EMSGSIZE;
 922	if (nla_put_u8(skb, OVS_TUNNEL_KEY_ATTR_TTL, output->ttl))
 923		return -EMSGSIZE;
 924	if (test_bit(IP_TUNNEL_DONT_FRAGMENT_BIT, output->tun_flags) &&
 925	    nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_DONT_FRAGMENT))
 926		return -EMSGSIZE;
 927	if (test_bit(IP_TUNNEL_CSUM_BIT, output->tun_flags) &&
 928	    nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_CSUM))
 929		return -EMSGSIZE;
 930	if (output->tp_src &&
 931	    nla_put_be16(skb, OVS_TUNNEL_KEY_ATTR_TP_SRC, output->tp_src))
 932		return -EMSGSIZE;
 933	if (output->tp_dst &&
 934	    nla_put_be16(skb, OVS_TUNNEL_KEY_ATTR_TP_DST, output->tp_dst))
 935		return -EMSGSIZE;
 936	if (test_bit(IP_TUNNEL_OAM_BIT, output->tun_flags) &&
 937	    nla_put_flag(skb, OVS_TUNNEL_KEY_ATTR_OAM))
 938		return -EMSGSIZE;
 939	if (swkey_tun_opts_len) {
 940		if (test_bit(IP_TUNNEL_GENEVE_OPT_BIT, output->tun_flags) &&
 941		    nla_put(skb, OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS,
 942			    swkey_tun_opts_len, tun_opts))
 943			return -EMSGSIZE;
 944		else if (test_bit(IP_TUNNEL_VXLAN_OPT_BIT,
 945				  output->tun_flags) &&
 946			 vxlan_opt_to_nlattr(skb, tun_opts, swkey_tun_opts_len))
 947			return -EMSGSIZE;
 948		else if (test_bit(IP_TUNNEL_ERSPAN_OPT_BIT,
 949				  output->tun_flags) &&
 950			 nla_put(skb, OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS,
 951				 swkey_tun_opts_len, tun_opts))
 952			return -EMSGSIZE;
 953	}
 954
 955	return 0;
 956}
 957
 958static int ip_tun_to_nlattr(struct sk_buff *skb,
 959			    const struct ip_tunnel_key *output,
 960			    const void *tun_opts, int swkey_tun_opts_len,
 961			    unsigned short tun_proto, u8 mode)
 962{
 963	struct nlattr *nla;
 964	int err;
 965
 966	nla = nla_nest_start_noflag(skb, OVS_KEY_ATTR_TUNNEL);
 967	if (!nla)
 968		return -EMSGSIZE;
 969
 970	err = __ip_tun_to_nlattr(skb, output, tun_opts, swkey_tun_opts_len,
 971				 tun_proto, mode);
 972	if (err)
 973		return err;
 974
 975	nla_nest_end(skb, nla);
 976	return 0;
 977}
 978
 979int ovs_nla_put_tunnel_info(struct sk_buff *skb,
 980			    struct ip_tunnel_info *tun_info)
 981{
 982	return __ip_tun_to_nlattr(skb, &tun_info->key,
 983				  ip_tunnel_info_opts(tun_info),
 984				  tun_info->options_len,
 985				  ip_tunnel_info_af(tun_info), tun_info->mode);
 986}
 987
 988static int encode_vlan_from_nlattrs(struct sw_flow_match *match,
 989				    const struct nlattr *a[],
 990				    bool is_mask, bool inner)
 991{
 992	__be16 tci = 0;
 993	__be16 tpid = 0;
 994
 995	if (a[OVS_KEY_ATTR_VLAN])
 996		tci = nla_get_be16(a[OVS_KEY_ATTR_VLAN]);
 997
 998	if (a[OVS_KEY_ATTR_ETHERTYPE])
 999		tpid = nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE]);
1000
1001	if (likely(!inner)) {
1002		SW_FLOW_KEY_PUT(match, eth.vlan.tpid, tpid, is_mask);
1003		SW_FLOW_KEY_PUT(match, eth.vlan.tci, tci, is_mask);
1004	} else {
1005		SW_FLOW_KEY_PUT(match, eth.cvlan.tpid, tpid, is_mask);
1006		SW_FLOW_KEY_PUT(match, eth.cvlan.tci, tci, is_mask);
1007	}
1008	return 0;
1009}
1010
1011static int validate_vlan_from_nlattrs(const struct sw_flow_match *match,
1012				      u64 key_attrs, bool inner,
1013				      const struct nlattr **a, bool log)
1014{
1015	__be16 tci = 0;
1016
1017	if (!((key_attrs & (1 << OVS_KEY_ATTR_ETHERNET)) &&
1018	      (key_attrs & (1 << OVS_KEY_ATTR_ETHERTYPE)) &&
1019	       eth_type_vlan(nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE])))) {
1020		/* Not a VLAN. */
1021		return 0;
1022	}
1023
1024	if (!((key_attrs & (1 << OVS_KEY_ATTR_VLAN)) &&
1025	      (key_attrs & (1 << OVS_KEY_ATTR_ENCAP)))) {
1026		OVS_NLERR(log, "Invalid %s frame", (inner) ? "C-VLAN" : "VLAN");
1027		return -EINVAL;
1028	}
1029
1030	if (a[OVS_KEY_ATTR_VLAN])
1031		tci = nla_get_be16(a[OVS_KEY_ATTR_VLAN]);
1032
1033	if (!(tci & htons(VLAN_CFI_MASK))) {
1034		if (tci) {
1035			OVS_NLERR(log, "%s TCI does not have VLAN_CFI_MASK bit set.",
1036				  (inner) ? "C-VLAN" : "VLAN");
1037			return -EINVAL;
1038		} else if (nla_len(a[OVS_KEY_ATTR_ENCAP])) {
1039			/* Corner case for truncated VLAN header. */
1040			OVS_NLERR(log, "Truncated %s header has non-zero encap attribute.",
1041				  (inner) ? "C-VLAN" : "VLAN");
1042			return -EINVAL;
1043		}
1044	}
1045
1046	return 1;
1047}
1048
1049static int validate_vlan_mask_from_nlattrs(const struct sw_flow_match *match,
1050					   u64 key_attrs, bool inner,
1051					   const struct nlattr **a, bool log)
1052{
1053	__be16 tci = 0;
1054	__be16 tpid = 0;
1055	bool encap_valid = !!(match->key->eth.vlan.tci &
1056			      htons(VLAN_CFI_MASK));
1057	bool i_encap_valid = !!(match->key->eth.cvlan.tci &
1058				htons(VLAN_CFI_MASK));
1059
1060	if (!(key_attrs & (1 << OVS_KEY_ATTR_ENCAP))) {
1061		/* Not a VLAN. */
1062		return 0;
1063	}
1064
1065	if ((!inner && !encap_valid) || (inner && !i_encap_valid)) {
1066		OVS_NLERR(log, "Encap mask attribute is set for non-%s frame.",
1067			  (inner) ? "C-VLAN" : "VLAN");
1068		return -EINVAL;
1069	}
1070
1071	if (a[OVS_KEY_ATTR_VLAN])
1072		tci = nla_get_be16(a[OVS_KEY_ATTR_VLAN]);
1073
1074	if (a[OVS_KEY_ATTR_ETHERTYPE])
1075		tpid = nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE]);
1076
1077	if (tpid != htons(0xffff)) {
1078		OVS_NLERR(log, "Must have an exact match on %s TPID (mask=%x).",
1079			  (inner) ? "C-VLAN" : "VLAN", ntohs(tpid));
1080		return -EINVAL;
1081	}
1082	if (!(tci & htons(VLAN_CFI_MASK))) {
1083		OVS_NLERR(log, "%s TCI mask does not have exact match for VLAN_CFI_MASK bit.",
1084			  (inner) ? "C-VLAN" : "VLAN");
1085		return -EINVAL;
1086	}
1087
1088	return 1;
1089}
1090
1091static int __parse_vlan_from_nlattrs(struct sw_flow_match *match,
1092				     u64 *key_attrs, bool inner,
1093				     const struct nlattr **a, bool is_mask,
1094				     bool log)
1095{
1096	int err;
1097	const struct nlattr *encap;
1098
1099	if (!is_mask)
1100		err = validate_vlan_from_nlattrs(match, *key_attrs, inner,
1101						 a, log);
1102	else
1103		err = validate_vlan_mask_from_nlattrs(match, *key_attrs, inner,
1104						      a, log);
1105	if (err <= 0)
1106		return err;
1107
1108	err = encode_vlan_from_nlattrs(match, a, is_mask, inner);
1109	if (err)
1110		return err;
1111
1112	*key_attrs &= ~(1 << OVS_KEY_ATTR_ENCAP);
1113	*key_attrs &= ~(1 << OVS_KEY_ATTR_VLAN);
1114	*key_attrs &= ~(1 << OVS_KEY_ATTR_ETHERTYPE);
1115
1116	encap = a[OVS_KEY_ATTR_ENCAP];
1117
1118	if (!is_mask)
1119		err = parse_flow_nlattrs(encap, a, key_attrs, log);
1120	else
1121		err = parse_flow_mask_nlattrs(encap, a, key_attrs, log);
1122
1123	return err;
1124}
1125
1126static int parse_vlan_from_nlattrs(struct sw_flow_match *match,
1127				   u64 *key_attrs, const struct nlattr **a,
1128				   bool is_mask, bool log)
1129{
1130	int err;
1131	bool encap_valid = false;
1132
1133	err = __parse_vlan_from_nlattrs(match, key_attrs, false, a,
1134					is_mask, log);
1135	if (err)
1136		return err;
1137
1138	encap_valid = !!(match->key->eth.vlan.tci & htons(VLAN_CFI_MASK));
1139	if (encap_valid) {
1140		err = __parse_vlan_from_nlattrs(match, key_attrs, true, a,
1141						is_mask, log);
1142		if (err)
1143			return err;
1144	}
1145
1146	return 0;
1147}
1148
1149static int parse_eth_type_from_nlattrs(struct sw_flow_match *match,
1150				       u64 *attrs, const struct nlattr **a,
1151				       bool is_mask, bool log)
1152{
1153	__be16 eth_type;
1154
1155	eth_type = nla_get_be16(a[OVS_KEY_ATTR_ETHERTYPE]);
1156	if (is_mask) {
1157		/* Always exact match EtherType. */
1158		eth_type = htons(0xffff);
1159	} else if (!eth_proto_is_802_3(eth_type)) {
1160		OVS_NLERR(log, "EtherType %x is less than min %x",
1161				ntohs(eth_type), ETH_P_802_3_MIN);
1162		return -EINVAL;
1163	}
1164
1165	SW_FLOW_KEY_PUT(match, eth.type, eth_type, is_mask);
1166	*attrs &= ~(1 << OVS_KEY_ATTR_ETHERTYPE);
1167	return 0;
1168}
1169
1170static int metadata_from_nlattrs(struct net *net, struct sw_flow_match *match,
1171				 u64 *attrs, const struct nlattr **a,
1172				 bool is_mask, bool log)
1173{
1174	u8 mac_proto = MAC_PROTO_ETHERNET;
1175
1176	if (*attrs & (1 << OVS_KEY_ATTR_DP_HASH)) {
1177		u32 hash_val = nla_get_u32(a[OVS_KEY_ATTR_DP_HASH]);
1178
1179		SW_FLOW_KEY_PUT(match, ovs_flow_hash, hash_val, is_mask);
1180		*attrs &= ~(1 << OVS_KEY_ATTR_DP_HASH);
1181	}
1182
1183	if (*attrs & (1 << OVS_KEY_ATTR_RECIRC_ID)) {
1184		u32 recirc_id = nla_get_u32(a[OVS_KEY_ATTR_RECIRC_ID]);
1185
1186		SW_FLOW_KEY_PUT(match, recirc_id, recirc_id, is_mask);
1187		*attrs &= ~(1 << OVS_KEY_ATTR_RECIRC_ID);
1188	}
1189
1190	if (*attrs & (1 << OVS_KEY_ATTR_PRIORITY)) {
1191		SW_FLOW_KEY_PUT(match, phy.priority,
1192			  nla_get_u32(a[OVS_KEY_ATTR_PRIORITY]), is_mask);
1193		*attrs &= ~(1 << OVS_KEY_ATTR_PRIORITY);
1194	}
1195
1196	if (*attrs & (1 << OVS_KEY_ATTR_IN_PORT)) {
1197		u32 in_port = nla_get_u32(a[OVS_KEY_ATTR_IN_PORT]);
1198
1199		if (is_mask) {
1200			in_port = 0xffffffff; /* Always exact match in_port. */
1201		} else if (in_port >= DP_MAX_PORTS) {
1202			OVS_NLERR(log, "Port %d exceeds max allowable %d",
1203				  in_port, DP_MAX_PORTS);
1204			return -EINVAL;
1205		}
1206
1207		SW_FLOW_KEY_PUT(match, phy.in_port, in_port, is_mask);
1208		*attrs &= ~(1 << OVS_KEY_ATTR_IN_PORT);
1209	} else if (!is_mask) {
1210		SW_FLOW_KEY_PUT(match, phy.in_port, DP_MAX_PORTS, is_mask);
1211	}
1212
1213	if (*attrs & (1 << OVS_KEY_ATTR_SKB_MARK)) {
1214		uint32_t mark = nla_get_u32(a[OVS_KEY_ATTR_SKB_MARK]);
1215
1216		SW_FLOW_KEY_PUT(match, phy.skb_mark, mark, is_mask);
1217		*attrs &= ~(1 << OVS_KEY_ATTR_SKB_MARK);
1218	}
1219	if (*attrs & (1 << OVS_KEY_ATTR_TUNNEL)) {
1220		if (ip_tun_from_nlattr(a[OVS_KEY_ATTR_TUNNEL], match,
1221				       is_mask, log) < 0)
1222			return -EINVAL;
1223		*attrs &= ~(1 << OVS_KEY_ATTR_TUNNEL);
1224	}
1225
1226	if (*attrs & (1 << OVS_KEY_ATTR_CT_STATE) &&
1227	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_STATE)) {
1228		u32 ct_state = nla_get_u32(a[OVS_KEY_ATTR_CT_STATE]);
1229
1230		if (ct_state & ~CT_SUPPORTED_MASK) {
1231			OVS_NLERR(log, "ct_state flags %08x unsupported",
1232				  ct_state);
1233			return -EINVAL;
1234		}
1235
1236		SW_FLOW_KEY_PUT(match, ct_state, ct_state, is_mask);
1237		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_STATE);
1238	}
1239	if (*attrs & (1 << OVS_KEY_ATTR_CT_ZONE) &&
1240	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_ZONE)) {
1241		u16 ct_zone = nla_get_u16(a[OVS_KEY_ATTR_CT_ZONE]);
1242
1243		SW_FLOW_KEY_PUT(match, ct_zone, ct_zone, is_mask);
1244		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_ZONE);
1245	}
1246	if (*attrs & (1 << OVS_KEY_ATTR_CT_MARK) &&
1247	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_MARK)) {
1248		u32 mark = nla_get_u32(a[OVS_KEY_ATTR_CT_MARK]);
1249
1250		SW_FLOW_KEY_PUT(match, ct.mark, mark, is_mask);
1251		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_MARK);
1252	}
1253	if (*attrs & (1 << OVS_KEY_ATTR_CT_LABELS) &&
1254	    ovs_ct_verify(net, OVS_KEY_ATTR_CT_LABELS)) {
1255		const struct ovs_key_ct_labels *cl;
1256
1257		cl = nla_data(a[OVS_KEY_ATTR_CT_LABELS]);
1258		SW_FLOW_KEY_MEMCPY(match, ct.labels, cl->ct_labels,
1259				   sizeof(*cl), is_mask);
1260		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_LABELS);
1261	}
1262	if (*attrs & (1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4)) {
1263		const struct ovs_key_ct_tuple_ipv4 *ct;
1264
1265		ct = nla_data(a[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4]);
1266
1267		SW_FLOW_KEY_PUT(match, ipv4.ct_orig.src, ct->ipv4_src, is_mask);
1268		SW_FLOW_KEY_PUT(match, ipv4.ct_orig.dst, ct->ipv4_dst, is_mask);
1269		SW_FLOW_KEY_PUT(match, ct.orig_tp.src, ct->src_port, is_mask);
1270		SW_FLOW_KEY_PUT(match, ct.orig_tp.dst, ct->dst_port, is_mask);
1271		SW_FLOW_KEY_PUT(match, ct_orig_proto, ct->ipv4_proto, is_mask);
1272		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4);
1273	}
1274	if (*attrs & (1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6)) {
1275		const struct ovs_key_ct_tuple_ipv6 *ct;
1276
1277		ct = nla_data(a[OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6]);
1278
1279		SW_FLOW_KEY_MEMCPY(match, ipv6.ct_orig.src, &ct->ipv6_src,
1280				   sizeof(match->key->ipv6.ct_orig.src),
1281				   is_mask);
1282		SW_FLOW_KEY_MEMCPY(match, ipv6.ct_orig.dst, &ct->ipv6_dst,
1283				   sizeof(match->key->ipv6.ct_orig.dst),
1284				   is_mask);
1285		SW_FLOW_KEY_PUT(match, ct.orig_tp.src, ct->src_port, is_mask);
1286		SW_FLOW_KEY_PUT(match, ct.orig_tp.dst, ct->dst_port, is_mask);
1287		SW_FLOW_KEY_PUT(match, ct_orig_proto, ct->ipv6_proto, is_mask);
1288		*attrs &= ~(1ULL << OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6);
1289	}
1290
1291	/* For layer 3 packets the Ethernet type is provided
1292	 * and treated as metadata but no MAC addresses are provided.
1293	 */
1294	if (!(*attrs & (1ULL << OVS_KEY_ATTR_ETHERNET)) &&
1295	    (*attrs & (1ULL << OVS_KEY_ATTR_ETHERTYPE)))
1296		mac_proto = MAC_PROTO_NONE;
1297
1298	/* Always exact match mac_proto */
1299	SW_FLOW_KEY_PUT(match, mac_proto, is_mask ? 0xff : mac_proto, is_mask);
1300
1301	if (mac_proto == MAC_PROTO_NONE)
1302		return parse_eth_type_from_nlattrs(match, attrs, a, is_mask,
1303						   log);
1304
1305	return 0;
1306}
1307
1308int nsh_hdr_from_nlattr(const struct nlattr *attr,
1309			struct nshhdr *nh, size_t size)
1310{
1311	struct nlattr *a;
1312	int rem;
1313	u8 flags = 0;
1314	u8 ttl = 0;
1315	int mdlen = 0;
1316
1317	/* validate_nsh has check this, so we needn't do duplicate check here
1318	 */
1319	if (size < NSH_BASE_HDR_LEN)
1320		return -ENOBUFS;
1321
1322	nla_for_each_nested(a, attr, rem) {
1323		int type = nla_type(a);
1324
1325		switch (type) {
1326		case OVS_NSH_KEY_ATTR_BASE: {
1327			const struct ovs_nsh_key_base *base = nla_data(a);
1328
1329			flags = base->flags;
1330			ttl = base->ttl;
1331			nh->np = base->np;
1332			nh->mdtype = base->mdtype;
1333			nh->path_hdr = base->path_hdr;
1334			break;
1335		}
1336		case OVS_NSH_KEY_ATTR_MD1:
1337			mdlen = nla_len(a);
1338			if (mdlen > size - NSH_BASE_HDR_LEN)
1339				return -ENOBUFS;
1340			memcpy(&nh->md1, nla_data(a), mdlen);
1341			break;
1342
1343		case OVS_NSH_KEY_ATTR_MD2:
1344			mdlen = nla_len(a);
1345			if (mdlen > size - NSH_BASE_HDR_LEN)
1346				return -ENOBUFS;
1347			memcpy(&nh->md2, nla_data(a), mdlen);
1348			break;
1349
1350		default:
1351			return -EINVAL;
1352		}
1353	}
1354
1355	/* nsh header length  = NSH_BASE_HDR_LEN + mdlen */
1356	nh->ver_flags_ttl_len = 0;
1357	nsh_set_flags_ttl_len(nh, flags, ttl, NSH_BASE_HDR_LEN + mdlen);
1358
1359	return 0;
1360}
1361
1362int nsh_key_from_nlattr(const struct nlattr *attr,
1363			struct ovs_key_nsh *nsh, struct ovs_key_nsh *nsh_mask)
1364{
1365	struct nlattr *a;
1366	int rem;
1367
1368	/* validate_nsh has check this, so we needn't do duplicate check here
1369	 */
1370	nla_for_each_nested(a, attr, rem) {
1371		int type = nla_type(a);
1372
1373		switch (type) {
1374		case OVS_NSH_KEY_ATTR_BASE: {
1375			const struct ovs_nsh_key_base *base = nla_data(a);
1376			const struct ovs_nsh_key_base *base_mask = base + 1;
1377
1378			nsh->base = *base;
1379			nsh_mask->base = *base_mask;
1380			break;
1381		}
1382		case OVS_NSH_KEY_ATTR_MD1: {
1383			const struct ovs_nsh_key_md1 *md1 = nla_data(a);
1384			const struct ovs_nsh_key_md1 *md1_mask = md1 + 1;
1385
1386			memcpy(nsh->context, md1->context, sizeof(*md1));
1387			memcpy(nsh_mask->context, md1_mask->context,
1388			       sizeof(*md1_mask));
1389			break;
1390		}
1391		case OVS_NSH_KEY_ATTR_MD2:
1392			/* Not supported yet */
1393			return -ENOTSUPP;
1394		default:
1395			return -EINVAL;
1396		}
1397	}
1398
1399	return 0;
1400}
1401
1402static int nsh_key_put_from_nlattr(const struct nlattr *attr,
1403				   struct sw_flow_match *match, bool is_mask,
1404				   bool is_push_nsh, bool log)
1405{
1406	struct nlattr *a;
1407	int rem;
1408	bool has_base = false;
1409	bool has_md1 = false;
1410	bool has_md2 = false;
1411	u8 mdtype = 0;
1412	int mdlen = 0;
1413
1414	if (WARN_ON(is_push_nsh && is_mask))
1415		return -EINVAL;
1416
1417	nla_for_each_nested(a, attr, rem) {
1418		int type = nla_type(a);
1419		int i;
1420
1421		if (type > OVS_NSH_KEY_ATTR_MAX) {
1422			OVS_NLERR(log, "nsh attr %d is out of range max %d",
1423				  type, OVS_NSH_KEY_ATTR_MAX);
1424			return -EINVAL;
1425		}
1426
1427		if (!check_attr_len(nla_len(a),
1428				    ovs_nsh_key_attr_lens[type].len)) {
1429			OVS_NLERR(
1430			    log,
1431			    "nsh attr %d has unexpected len %d expected %d",
1432			    type,
1433			    nla_len(a),
1434			    ovs_nsh_key_attr_lens[type].len
1435			);
1436			return -EINVAL;
1437		}
1438
1439		switch (type) {
1440		case OVS_NSH_KEY_ATTR_BASE: {
1441			const struct ovs_nsh_key_base *base = nla_data(a);
1442
1443			has_base = true;
1444			mdtype = base->mdtype;
1445			SW_FLOW_KEY_PUT(match, nsh.base.flags,
1446					base->flags, is_mask);
1447			SW_FLOW_KEY_PUT(match, nsh.base.ttl,
1448					base->ttl, is_mask);
1449			SW_FLOW_KEY_PUT(match, nsh.base.mdtype,
1450					base->mdtype, is_mask);
1451			SW_FLOW_KEY_PUT(match, nsh.base.np,
1452					base->np, is_mask);
1453			SW_FLOW_KEY_PUT(match, nsh.base.path_hdr,
1454					base->path_hdr, is_mask);
1455			break;
1456		}
1457		case OVS_NSH_KEY_ATTR_MD1: {
1458			const struct ovs_nsh_key_md1 *md1 = nla_data(a);
1459
1460			has_md1 = true;
1461			for (i = 0; i < NSH_MD1_CONTEXT_SIZE; i++)
1462				SW_FLOW_KEY_PUT(match, nsh.context[i],
1463						md1->context[i], is_mask);
1464			break;
1465		}
1466		case OVS_NSH_KEY_ATTR_MD2:
1467			if (!is_push_nsh) /* Not supported MD type 2 yet */
1468				return -ENOTSUPP;
1469
1470			has_md2 = true;
1471			mdlen = nla_len(a);
1472			if (mdlen > NSH_CTX_HDRS_MAX_LEN || mdlen <= 0) {
1473				OVS_NLERR(
1474				    log,
1475				    "Invalid MD length %d for MD type %d",
1476				    mdlen,
1477				    mdtype
1478				);
1479				return -EINVAL;
1480			}
1481			break;
1482		default:
1483			OVS_NLERR(log, "Unknown nsh attribute %d",
1484				  type);
1485			return -EINVAL;
1486		}
1487	}
1488
1489	if (rem > 0) {
1490		OVS_NLERR(log, "nsh attribute has %d unknown bytes.", rem);
1491		return -EINVAL;
1492	}
1493
1494	if (has_md1 && has_md2) {
1495		OVS_NLERR(
1496		    1,
1497		    "invalid nsh attribute: md1 and md2 are exclusive."
1498		);
1499		return -EINVAL;
1500	}
1501
1502	if (!is_mask) {
1503		if ((has_md1 && mdtype != NSH_M_TYPE1) ||
1504		    (has_md2 && mdtype != NSH_M_TYPE2)) {
1505			OVS_NLERR(1, "nsh attribute has unmatched MD type %d.",
1506				  mdtype);
1507			return -EINVAL;
1508		}
1509
1510		if (is_push_nsh &&
1511		    (!has_base || (!has_md1 && !has_md2))) {
1512			OVS_NLERR(
1513			    1,
1514			    "push_nsh: missing base or metadata attributes"
1515			);
1516			return -EINVAL;
1517		}
1518	}
1519
1520	return 0;
1521}
1522
1523static int ovs_key_from_nlattrs(struct net *net, struct sw_flow_match *match,
1524				u64 attrs, const struct nlattr **a,
1525				bool is_mask, bool log)
1526{
1527	int err;
1528
1529	err = metadata_from_nlattrs(net, match, &attrs, a, is_mask, log);
1530	if (err)
1531		return err;
1532
1533	if (attrs & (1 << OVS_KEY_ATTR_ETHERNET)) {
1534		const struct ovs_key_ethernet *eth_key;
1535
1536		eth_key = nla_data(a[OVS_KEY_ATTR_ETHERNET]);
1537		SW_FLOW_KEY_MEMCPY(match, eth.src,
1538				eth_key->eth_src, ETH_ALEN, is_mask);
1539		SW_FLOW_KEY_MEMCPY(match, eth.dst,
1540				eth_key->eth_dst, ETH_ALEN, is_mask);
1541		attrs &= ~(1 << OVS_KEY_ATTR_ETHERNET);
1542
1543		if (attrs & (1 << OVS_KEY_ATTR_VLAN)) {
1544			/* VLAN attribute is always parsed before getting here since it
1545			 * may occur multiple times.
1546			 */
1547			OVS_NLERR(log, "VLAN attribute unexpected.");
1548			return -EINVAL;
1549		}
1550
1551		if (attrs & (1 << OVS_KEY_ATTR_ETHERTYPE)) {
1552			err = parse_eth_type_from_nlattrs(match, &attrs, a, is_mask,
1553							  log);
1554			if (err)
1555				return err;
1556		} else if (!is_mask) {
1557			SW_FLOW_KEY_PUT(match, eth.type, htons(ETH_P_802_2), is_mask);
1558		}
1559	} else if (!match->key->eth.type) {
1560		OVS_NLERR(log, "Either Ethernet header or EtherType is required.");
1561		return -EINVAL;
1562	}
1563
1564	if (attrs & (1 << OVS_KEY_ATTR_IPV4)) {
1565		const struct ovs_key_ipv4 *ipv4_key;
1566
1567		ipv4_key = nla_data(a[OVS_KEY_ATTR_IPV4]);
1568		if (!is_mask && ipv4_key->ipv4_frag > OVS_FRAG_TYPE_MAX) {
1569			OVS_NLERR(log, "IPv4 frag type %d is out of range max %d",
1570				  ipv4_key->ipv4_frag, OVS_FRAG_TYPE_MAX);
1571			return -EINVAL;
1572		}
1573		SW_FLOW_KEY_PUT(match, ip.proto,
1574				ipv4_key->ipv4_proto, is_mask);
1575		SW_FLOW_KEY_PUT(match, ip.tos,
1576				ipv4_key->ipv4_tos, is_mask);
1577		SW_FLOW_KEY_PUT(match, ip.ttl,
1578				ipv4_key->ipv4_ttl, is_mask);
1579		SW_FLOW_KEY_PUT(match, ip.frag,
1580				ipv4_key->ipv4_frag, is_mask);
1581		SW_FLOW_KEY_PUT(match, ipv4.addr.src,
1582				ipv4_key->ipv4_src, is_mask);
1583		SW_FLOW_KEY_PUT(match, ipv4.addr.dst,
1584				ipv4_key->ipv4_dst, is_mask);
1585		attrs &= ~(1 << OVS_KEY_ATTR_IPV4);
1586	}
1587
1588	if (attrs & (1 << OVS_KEY_ATTR_IPV6)) {
1589		const struct ovs_key_ipv6 *ipv6_key;
1590
1591		ipv6_key = nla_data(a[OVS_KEY_ATTR_IPV6]);
1592		if (!is_mask && ipv6_key->ipv6_frag > OVS_FRAG_TYPE_MAX) {
1593			OVS_NLERR(log, "IPv6 frag type %d is out of range max %d",
1594				  ipv6_key->ipv6_frag, OVS_FRAG_TYPE_MAX);
1595			return -EINVAL;
1596		}
1597
1598		if (!is_mask && ipv6_key->ipv6_label & htonl(0xFFF00000)) {
1599			OVS_NLERR(log, "IPv6 flow label %x is out of range (max=%x)",
1600				  ntohl(ipv6_key->ipv6_label), (1 << 20) - 1);
1601			return -EINVAL;
1602		}
1603
1604		SW_FLOW_KEY_PUT(match, ipv6.label,
1605				ipv6_key->ipv6_label, is_mask);
1606		SW_FLOW_KEY_PUT(match, ip.proto,
1607				ipv6_key->ipv6_proto, is_mask);
1608		SW_FLOW_KEY_PUT(match, ip.tos,
1609				ipv6_key->ipv6_tclass, is_mask);
1610		SW_FLOW_KEY_PUT(match, ip.ttl,
1611				ipv6_key->ipv6_hlimit, is_mask);
1612		SW_FLOW_KEY_PUT(match, ip.frag,
1613				ipv6_key->ipv6_frag, is_mask);
1614		SW_FLOW_KEY_MEMCPY(match, ipv6.addr.src,
1615				ipv6_key->ipv6_src,
1616				sizeof(match->key->ipv6.addr.src),
1617				is_mask);
1618		SW_FLOW_KEY_MEMCPY(match, ipv6.addr.dst,
1619				ipv6_key->ipv6_dst,
1620				sizeof(match->key->ipv6.addr.dst),
1621				is_mask);
1622
1623		attrs &= ~(1 << OVS_KEY_ATTR_IPV6);
1624	}
1625
1626	if (attrs & (1ULL << OVS_KEY_ATTR_IPV6_EXTHDRS)) {
1627		const struct ovs_key_ipv6_exthdrs *ipv6_exthdrs_key;
1628
1629		ipv6_exthdrs_key = nla_data(a[OVS_KEY_ATTR_IPV6_EXTHDRS]);
1630
1631		SW_FLOW_KEY_PUT(match, ipv6.exthdrs,
1632				ipv6_exthdrs_key->hdrs, is_mask);
1633
1634		attrs &= ~(1ULL << OVS_KEY_ATTR_IPV6_EXTHDRS);
1635	}
1636
1637	if (attrs & (1 << OVS_KEY_ATTR_ARP)) {
1638		const struct ovs_key_arp *arp_key;
1639
1640		arp_key = nla_data(a[OVS_KEY_ATTR_ARP]);
1641		if (!is_mask && (arp_key->arp_op & htons(0xff00))) {
1642			OVS_NLERR(log, "Unknown ARP opcode (opcode=%d).",
1643				  arp_key->arp_op);
1644			return -EINVAL;
1645		}
1646
1647		SW_FLOW_KEY_PUT(match, ipv4.addr.src,
1648				arp_key->arp_sip, is_mask);
1649		SW_FLOW_KEY_PUT(match, ipv4.addr.dst,
1650			arp_key->arp_tip, is_mask);
1651		SW_FLOW_KEY_PUT(match, ip.proto,
1652				ntohs(arp_key->arp_op), is_mask);
1653		SW_FLOW_KEY_MEMCPY(match, ipv4.arp.sha,
1654				arp_key->arp_sha, ETH_ALEN, is_mask);
1655		SW_FLOW_KEY_MEMCPY(match, ipv4.arp.tha,
1656				arp_key->arp_tha, ETH_ALEN, is_mask);
1657
1658		attrs &= ~(1 << OVS_KEY_ATTR_ARP);
1659	}
1660
1661	if (attrs & (1 << OVS_KEY_ATTR_NSH)) {
1662		if (nsh_key_put_from_nlattr(a[OVS_KEY_ATTR_NSH], match,
1663					    is_mask, false, log) < 0)
1664			return -EINVAL;
1665		attrs &= ~(1 << OVS_KEY_ATTR_NSH);
1666	}
1667
1668	if (attrs & (1 << OVS_KEY_ATTR_MPLS)) {
1669		const struct ovs_key_mpls *mpls_key;
1670		u32 hdr_len;
1671		u32 label_count, label_count_mask, i;
1672
1673		mpls_key = nla_data(a[OVS_KEY_ATTR_MPLS]);
1674		hdr_len = nla_len(a[OVS_KEY_ATTR_MPLS]);
1675		label_count = hdr_len / sizeof(struct ovs_key_mpls);
1676
1677		if (label_count == 0 || label_count > MPLS_LABEL_DEPTH ||
1678		    hdr_len % sizeof(struct ovs_key_mpls))
1679			return -EINVAL;
1680
1681		label_count_mask =  GENMASK(label_count - 1, 0);
1682
1683		for (i = 0 ; i < label_count; i++)
1684			SW_FLOW_KEY_PUT(match, mpls.lse[i],
1685					mpls_key[i].mpls_lse, is_mask);
1686
1687		SW_FLOW_KEY_PUT(match, mpls.num_labels_mask,
1688				label_count_mask, is_mask);
1689
1690		attrs &= ~(1 << OVS_KEY_ATTR_MPLS);
1691	 }
1692
1693	if (attrs & (1 << OVS_KEY_ATTR_TCP)) {
1694		const struct ovs_key_tcp *tcp_key;
1695
1696		tcp_key = nla_data(a[OVS_KEY_ATTR_TCP]);
1697		SW_FLOW_KEY_PUT(match, tp.src, tcp_key->tcp_src, is_mask);
1698		SW_FLOW_KEY_PUT(match, tp.dst, tcp_key->tcp_dst, is_mask);
1699		attrs &= ~(1 << OVS_KEY_ATTR_TCP);
1700	}
1701
1702	if (attrs & (1 << OVS_KEY_ATTR_TCP_FLAGS)) {
1703		SW_FLOW_KEY_PUT(match, tp.flags,
1704				nla_get_be16(a[OVS_KEY_ATTR_TCP_FLAGS]),
1705				is_mask);
1706		attrs &= ~(1 << OVS_KEY_ATTR_TCP_FLAGS);
1707	}
1708
1709	if (attrs & (1 << OVS_KEY_ATTR_UDP)) {
1710		const struct ovs_key_udp *udp_key;
1711
1712		udp_key = nla_data(a[OVS_KEY_ATTR_UDP]);
1713		SW_FLOW_KEY_PUT(match, tp.src, udp_key->udp_src, is_mask);
1714		SW_FLOW_KEY_PUT(match, tp.dst, udp_key->udp_dst, is_mask);
1715		attrs &= ~(1 << OVS_KEY_ATTR_UDP);
1716	}
1717
1718	if (attrs & (1 << OVS_KEY_ATTR_SCTP)) {
1719		const struct ovs_key_sctp *sctp_key;
1720
1721		sctp_key = nla_data(a[OVS_KEY_ATTR_SCTP]);
1722		SW_FLOW_KEY_PUT(match, tp.src, sctp_key->sctp_src, is_mask);
1723		SW_FLOW_KEY_PUT(match, tp.dst, sctp_key->sctp_dst, is_mask);
1724		attrs &= ~(1 << OVS_KEY_ATTR_SCTP);
1725	}
1726
1727	if (attrs & (1 << OVS_KEY_ATTR_ICMP)) {
1728		const struct ovs_key_icmp *icmp_key;
1729
1730		icmp_key = nla_data(a[OVS_KEY_ATTR_ICMP]);
1731		SW_FLOW_KEY_PUT(match, tp.src,
1732				htons(icmp_key->icmp_type), is_mask);
1733		SW_FLOW_KEY_PUT(match, tp.dst,
1734				htons(icmp_key->icmp_code), is_mask);
1735		attrs &= ~(1 << OVS_KEY_ATTR_ICMP);
1736	}
1737
1738	if (attrs & (1 << OVS_KEY_ATTR_ICMPV6)) {
1739		const struct ovs_key_icmpv6 *icmpv6_key;
1740
1741		icmpv6_key = nla_data(a[OVS_KEY_ATTR_ICMPV6]);
1742		SW_FLOW_KEY_PUT(match, tp.src,
1743				htons(icmpv6_key->icmpv6_type), is_mask);
1744		SW_FLOW_KEY_PUT(match, tp.dst,
1745				htons(icmpv6_key->icmpv6_code), is_mask);
1746		attrs &= ~(1 << OVS_KEY_ATTR_ICMPV6);
1747	}
1748
1749	if (attrs & (1 << OVS_KEY_ATTR_ND)) {
1750		const struct ovs_key_nd *nd_key;
1751
1752		nd_key = nla_data(a[OVS_KEY_ATTR_ND]);
1753		SW_FLOW_KEY_MEMCPY(match, ipv6.nd.target,
1754			nd_key->nd_target,
1755			sizeof(match->key->ipv6.nd.target),
1756			is_mask);
1757		SW_FLOW_KEY_MEMCPY(match, ipv6.nd.sll,
1758			nd_key->nd_sll, ETH_ALEN, is_mask);
1759		SW_FLOW_KEY_MEMCPY(match, ipv6.nd.tll,
1760				nd_key->nd_tll, ETH_ALEN, is_mask);
1761		attrs &= ~(1 << OVS_KEY_ATTR_ND);
1762	}
1763
1764	if (attrs != 0) {
1765		OVS_NLERR(log, "Unknown key attributes %llx",
1766			  (unsigned long long)attrs);
1767		return -EINVAL;
1768	}
1769
1770	return 0;
1771}
1772
1773static void nlattr_set(struct nlattr *attr, u8 val,
1774		       const struct ovs_len_tbl *tbl)
1775{
1776	struct nlattr *nla;
1777	int rem;
1778
1779	/* The nlattr stream should already have been validated */
1780	nla_for_each_nested(nla, attr, rem) {
1781		if (tbl[nla_type(nla)].len == OVS_ATTR_NESTED)
1782			nlattr_set(nla, val, tbl[nla_type(nla)].next ? : tbl);
1783		else
1784			memset(nla_data(nla), val, nla_len(nla));
1785
1786		if (nla_type(nla) == OVS_KEY_ATTR_CT_STATE)
1787			*(u32 *)nla_data(nla) &= CT_SUPPORTED_MASK;
1788	}
1789}
1790
1791static void mask_set_nlattr(struct nlattr *attr, u8 val)
1792{
1793	nlattr_set(attr, val, ovs_key_lens);
1794}
1795
1796/**
1797 * ovs_nla_get_match - parses Netlink attributes into a flow key and
1798 * mask. In case the 'mask' is NULL, the flow is treated as exact match
1799 * flow. Otherwise, it is treated as a wildcarded flow, except the mask
1800 * does not include any don't care bit.
1801 * @net: Used to determine per-namespace field support.
1802 * @match: receives the extracted flow match information.
1803 * @nla_key: Netlink attribute holding nested %OVS_KEY_ATTR_* Netlink attribute
1804 * sequence. The fields should of the packet that triggered the creation
1805 * of this flow.
1806 * @nla_mask: Optional. Netlink attribute holding nested %OVS_KEY_ATTR_*
1807 * Netlink attribute specifies the mask field of the wildcarded flow.
1808 * @log: Boolean to allow kernel error logging.  Normally true, but when
1809 * probing for feature compatibility this should be passed in as false to
1810 * suppress unnecessary error logging.
1811 */
1812int ovs_nla_get_match(struct net *net, struct sw_flow_match *match,
1813		      const struct nlattr *nla_key,
1814		      const struct nlattr *nla_mask,
1815		      bool log)
1816{
1817	const struct nlattr *a[OVS_KEY_ATTR_MAX + 1];
1818	struct nlattr *newmask = NULL;
1819	u64 key_attrs = 0;
1820	u64 mask_attrs = 0;
1821	int err;
1822
1823	err = parse_flow_nlattrs(nla_key, a, &key_attrs, log);
1824	if (err)
1825		return err;
1826
1827	err = parse_vlan_from_nlattrs(match, &key_attrs, a, false, log);
1828	if (err)
1829		return err;
1830
1831	err = ovs_key_from_nlattrs(net, match, key_attrs, a, false, log);
1832	if (err)
1833		return err;
1834
1835	if (match->mask) {
1836		if (!nla_mask) {
1837			/* Create an exact match mask. We need to set to 0xff
1838			 * all the 'match->mask' fields that have been touched
1839			 * in 'match->key'. We cannot simply memset
1840			 * 'match->mask', because padding bytes and fields not
1841			 * specified in 'match->key' should be left to 0.
1842			 * Instead, we use a stream of netlink attributes,
1843			 * copied from 'key' and set to 0xff.
1844			 * ovs_key_from_nlattrs() will take care of filling
1845			 * 'match->mask' appropriately.
1846			 */
1847			newmask = kmemdup(nla_key,
1848					  nla_total_size(nla_len(nla_key)),
1849					  GFP_KERNEL);
1850			if (!newmask)
1851				return -ENOMEM;
1852
1853			mask_set_nlattr(newmask, 0xff);
1854
1855			/* The userspace does not send tunnel attributes that
1856			 * are 0, but we should not wildcard them nonetheless.
1857			 */
1858			if (match->key->tun_proto)
1859				SW_FLOW_KEY_MEMSET_FIELD(match, tun_key,
1860							 0xff, true);
1861
1862			nla_mask = newmask;
1863		}
1864
1865		err = parse_flow_mask_nlattrs(nla_mask, a, &mask_attrs, log);
1866		if (err)
1867			goto free_newmask;
1868
1869		/* Always match on tci. */
1870		SW_FLOW_KEY_PUT(match, eth.vlan.tci, htons(0xffff), true);
1871		SW_FLOW_KEY_PUT(match, eth.cvlan.tci, htons(0xffff), true);
1872
1873		err = parse_vlan_from_nlattrs(match, &mask_attrs, a, true, log);
1874		if (err)
1875			goto free_newmask;
1876
1877		err = ovs_key_from_nlattrs(net, match, mask_attrs, a, true,
1878					   log);
1879		if (err)
1880			goto free_newmask;
1881	}
1882
1883	if (!match_validate(match, key_attrs, mask_attrs, log))
1884		err = -EINVAL;
1885
1886free_newmask:
1887	kfree(newmask);
1888	return err;
1889}
1890
1891static size_t get_ufid_len(const struct nlattr *attr, bool log)
1892{
1893	size_t len;
1894
1895	if (!attr)
1896		return 0;
1897
1898	len = nla_len(attr);
1899	if (len < 1 || len > MAX_UFID_LENGTH) {
1900		OVS_NLERR(log, "ufid size %u bytes exceeds the range (1, %d)",
1901			  nla_len(attr), MAX_UFID_LENGTH);
1902		return 0;
1903	}
1904
1905	return len;
1906}
1907
1908/* Initializes 'flow->ufid', returning true if 'attr' contains a valid UFID,
1909 * or false otherwise.
1910 */
1911bool ovs_nla_get_ufid(struct sw_flow_id *sfid, const struct nlattr *attr,
1912		      bool log)
1913{
1914	sfid->ufid_len = get_ufid_len(attr, log);
1915	if (sfid->ufid_len)
1916		memcpy(sfid->ufid, nla_data(attr), sfid->ufid_len);
1917
1918	return sfid->ufid_len;
1919}
1920
1921int ovs_nla_get_identifier(struct sw_flow_id *sfid, const struct nlattr *ufid,
1922			   const struct sw_flow_key *key, bool log)
1923{
1924	struct sw_flow_key *new_key;
1925
1926	if (ovs_nla_get_ufid(sfid, ufid, log))
1927		return 0;
1928
1929	/* If UFID was not provided, use unmasked key. */
1930	new_key = kmalloc(sizeof(*new_key), GFP_KERNEL);
1931	if (!new_key)
1932		return -ENOMEM;
1933	memcpy(new_key, key, sizeof(*key));
1934	sfid->unmasked_key = new_key;
1935
1936	return 0;
1937}
1938
1939u32 ovs_nla_get_ufid_flags(const struct nlattr *attr)
1940{
1941	return nla_get_u32_default(attr, 0);
1942}
1943
1944/**
1945 * ovs_nla_get_flow_metadata - parses Netlink attributes into a flow key.
1946 * @net: Network namespace.
1947 * @key: Receives extracted in_port, priority, tun_key, skb_mark and conntrack
1948 * metadata.
1949 * @a: Array of netlink attributes holding parsed %OVS_KEY_ATTR_* Netlink
1950 * attributes.
1951 * @attrs: Bit mask for the netlink attributes included in @a.
1952 * @log: Boolean to allow kernel error logging.  Normally true, but when
1953 * probing for feature compatibility this should be passed in as false to
1954 * suppress unnecessary error logging.
1955 *
1956 * This parses a series of Netlink attributes that form a flow key, which must
1957 * take the same form accepted by flow_from_nlattrs(), but only enough of it to
1958 * get the metadata, that is, the parts of the flow key that cannot be
1959 * extracted from the packet itself.
1960 *
1961 * This must be called before the packet key fields are filled in 'key'.
1962 */
1963
1964int ovs_nla_get_flow_metadata(struct net *net,
1965			      const struct nlattr *a[OVS_KEY_ATTR_MAX + 1],
1966			      u64 attrs, struct sw_flow_key *key, bool log)
1967{
1968	struct sw_flow_match match;
1969
1970	memset(&match, 0, sizeof(match));
1971	match.key = key;
1972
1973	key->ct_state = 0;
1974	key->ct_zone = 0;
1975	key->ct_orig_proto = 0;
1976	memset(&key->ct, 0, sizeof(key->ct));
1977	memset(&key->ipv4.ct_orig, 0, sizeof(key->ipv4.ct_orig));
1978	memset(&key->ipv6.ct_orig, 0, sizeof(key->ipv6.ct_orig));
1979
1980	key->phy.in_port = DP_MAX_PORTS;
1981
1982	return metadata_from_nlattrs(net, &match, &attrs, a, false, log);
1983}
1984
1985static int ovs_nla_put_vlan(struct sk_buff *skb, const struct vlan_head *vh,
1986			    bool is_mask)
1987{
1988	__be16 eth_type = !is_mask ? vh->tpid : htons(0xffff);
1989
1990	if (nla_put_be16(skb, OVS_KEY_ATTR_ETHERTYPE, eth_type) ||
1991	    nla_put_be16(skb, OVS_KEY_ATTR_VLAN, vh->tci))
1992		return -EMSGSIZE;
1993	return 0;
1994}
1995
1996static int nsh_key_to_nlattr(const struct ovs_key_nsh *nsh, bool is_mask,
1997			     struct sk_buff *skb)
1998{
1999	struct nlattr *start;
2000
2001	start = nla_nest_start_noflag(skb, OVS_KEY_ATTR_NSH);
2002	if (!start)
2003		return -EMSGSIZE;
2004
2005	if (nla_put(skb, OVS_NSH_KEY_ATTR_BASE, sizeof(nsh->base), &nsh->base))
2006		goto nla_put_failure;
2007
2008	if (is_mask || nsh->base.mdtype == NSH_M_TYPE1) {
2009		if (nla_put(skb, OVS_NSH_KEY_ATTR_MD1,
2010			    sizeof(nsh->context), nsh->context))
2011			goto nla_put_failure;
2012	}
2013
2014	/* Don't support MD type 2 yet */
2015
2016	nla_nest_end(skb, start);
2017
2018	return 0;
2019
2020nla_put_failure:
2021	return -EMSGSIZE;
2022}
2023
2024static int __ovs_nla_put_key(const struct sw_flow_key *swkey,
2025			     const struct sw_flow_key *output, bool is_mask,
2026			     struct sk_buff *skb)
2027{
2028	struct ovs_key_ethernet *eth_key;
2029	struct nlattr *nla;
2030	struct nlattr *encap = NULL;
2031	struct nlattr *in_encap = NULL;
2032
2033	if (nla_put_u32(skb, OVS_KEY_ATTR_RECIRC_ID, output->recirc_id))
2034		goto nla_put_failure;
2035
2036	if (nla_put_u32(skb, OVS_KEY_ATTR_DP_HASH, output->ovs_flow_hash))
2037		goto nla_put_failure;
2038
2039	if (nla_put_u32(skb, OVS_KEY_ATTR_PRIORITY, output->phy.priority))
2040		goto nla_put_failure;
2041
2042	if ((swkey->tun_proto || is_mask)) {
2043		const void *opts = NULL;
2044
2045		if (ip_tunnel_is_options_present(output->tun_key.tun_flags))
2046			opts = TUN_METADATA_OPTS(output, swkey->tun_opts_len);
2047
2048		if (ip_tun_to_nlattr(skb, &output->tun_key, opts,
2049				     swkey->tun_opts_len, swkey->tun_proto, 0))
2050			goto nla_put_failure;
2051	}
2052
2053	if (swkey->phy.in_port == DP_MAX_PORTS) {
2054		if (is_mask && (output->phy.in_port == 0xffff))
2055			if (nla_put_u32(skb, OVS_KEY_ATTR_IN_PORT, 0xffffffff))
2056				goto nla_put_failure;
2057	} else {
2058		u16 upper_u16;
2059		upper_u16 = !is_mask ? 0 : 0xffff;
2060
2061		if (nla_put_u32(skb, OVS_KEY_ATTR_IN_PORT,
2062				(upper_u16 << 16) | output->phy.in_port))
2063			goto nla_put_failure;
2064	}
2065
2066	if (nla_put_u32(skb, OVS_KEY_ATTR_SKB_MARK, output->phy.skb_mark))
2067		goto nla_put_failure;
2068
2069	if (ovs_ct_put_key(swkey, output, skb))
2070		goto nla_put_failure;
2071
2072	if (ovs_key_mac_proto(swkey) == MAC_PROTO_ETHERNET) {
2073		nla = nla_reserve(skb, OVS_KEY_ATTR_ETHERNET, sizeof(*eth_key));
2074		if (!nla)
2075			goto nla_put_failure;
2076
2077		eth_key = nla_data(nla);
2078		ether_addr_copy(eth_key->eth_src, output->eth.src);
2079		ether_addr_copy(eth_key->eth_dst, output->eth.dst);
2080
2081		if (swkey->eth.vlan.tci || eth_type_vlan(swkey->eth.type)) {
2082			if (ovs_nla_put_vlan(skb, &output->eth.vlan, is_mask))
2083				goto nla_put_failure;
2084			encap = nla_nest_start_noflag(skb, OVS_KEY_ATTR_ENCAP);
2085			if (!swkey->eth.vlan.tci)
2086				goto unencap;
2087
2088			if (swkey->eth.cvlan.tci || eth_type_vlan(swkey->eth.type)) {
2089				if (ovs_nla_put_vlan(skb, &output->eth.cvlan, is_mask))
2090					goto nla_put_failure;
2091				in_encap = nla_nest_start_noflag(skb,
2092								 OVS_KEY_ATTR_ENCAP);
2093				if (!swkey->eth.cvlan.tci)
2094					goto unencap;
2095			}
2096		}
2097
2098		if (swkey->eth.type == htons(ETH_P_802_2)) {
2099			/*
2100			* Ethertype 802.2 is represented in the netlink with omitted
2101			* OVS_KEY_ATTR_ETHERTYPE in the flow key attribute, and
2102			* 0xffff in the mask attribute.  Ethertype can also
2103			* be wildcarded.
2104			*/
2105			if (is_mask && output->eth.type)
2106				if (nla_put_be16(skb, OVS_KEY_ATTR_ETHERTYPE,
2107							output->eth.type))
2108					goto nla_put_failure;
2109			goto unencap;
2110		}
2111	}
2112
2113	if (nla_put_be16(skb, OVS_KEY_ATTR_ETHERTYPE, output->eth.type))
2114		goto nla_put_failure;
2115
2116	if (eth_type_vlan(swkey->eth.type)) {
2117		/* There are 3 VLAN tags, we don't know anything about the rest
2118		 * of the packet, so truncate here.
2119		 */
2120		WARN_ON_ONCE(!(encap && in_encap));
2121		goto unencap;
2122	}
2123
2124	if (swkey->eth.type == htons(ETH_P_IP)) {
2125		struct ovs_key_ipv4 *ipv4_key;
2126
2127		nla = nla_reserve(skb, OVS_KEY_ATTR_IPV4, sizeof(*ipv4_key));
2128		if (!nla)
2129			goto nla_put_failure;
2130		ipv4_key = nla_data(nla);
2131		ipv4_key->ipv4_src = output->ipv4.addr.src;
2132		ipv4_key->ipv4_dst = output->ipv4.addr.dst;
2133		ipv4_key->ipv4_proto = output->ip.proto;
2134		ipv4_key->ipv4_tos = output->ip.tos;
2135		ipv4_key->ipv4_ttl = output->ip.ttl;
2136		ipv4_key->ipv4_frag = output->ip.frag;
2137	} else if (swkey->eth.type == htons(ETH_P_IPV6)) {
2138		struct ovs_key_ipv6 *ipv6_key;
2139		struct ovs_key_ipv6_exthdrs *ipv6_exthdrs_key;
2140
2141		nla = nla_reserve(skb, OVS_KEY_ATTR_IPV6, sizeof(*ipv6_key));
2142		if (!nla)
2143			goto nla_put_failure;
2144		ipv6_key = nla_data(nla);
2145		memcpy(ipv6_key->ipv6_src, &output->ipv6.addr.src,
2146				sizeof(ipv6_key->ipv6_src));
2147		memcpy(ipv6_key->ipv6_dst, &output->ipv6.addr.dst,
2148				sizeof(ipv6_key->ipv6_dst));
2149		ipv6_key->ipv6_label = output->ipv6.label;
2150		ipv6_key->ipv6_proto = output->ip.proto;
2151		ipv6_key->ipv6_tclass = output->ip.tos;
2152		ipv6_key->ipv6_hlimit = output->ip.ttl;
2153		ipv6_key->ipv6_frag = output->ip.frag;
2154
2155		nla = nla_reserve(skb, OVS_KEY_ATTR_IPV6_EXTHDRS,
2156				  sizeof(*ipv6_exthdrs_key));
2157		if (!nla)
2158			goto nla_put_failure;
2159		ipv6_exthdrs_key = nla_data(nla);
2160		ipv6_exthdrs_key->hdrs = output->ipv6.exthdrs;
2161	} else if (swkey->eth.type == htons(ETH_P_NSH)) {
2162		if (nsh_key_to_nlattr(&output->nsh, is_mask, skb))
2163			goto nla_put_failure;
2164	} else if (swkey->eth.type == htons(ETH_P_ARP) ||
2165		   swkey->eth.type == htons(ETH_P_RARP)) {
2166		struct ovs_key_arp *arp_key;
2167
2168		nla = nla_reserve(skb, OVS_KEY_ATTR_ARP, sizeof(*arp_key));
2169		if (!nla)
2170			goto nla_put_failure;
2171		arp_key = nla_data(nla);
2172		memset(arp_key, 0, sizeof(struct ovs_key_arp));
2173		arp_key->arp_sip = output->ipv4.addr.src;
2174		arp_key->arp_tip = output->ipv4.addr.dst;
2175		arp_key->arp_op = htons(output->ip.proto);
2176		ether_addr_copy(arp_key->arp_sha, output->ipv4.arp.sha);
2177		ether_addr_copy(arp_key->arp_tha, output->ipv4.arp.tha);
2178	} else if (eth_p_mpls(swkey->eth.type)) {
2179		u8 i, num_labels;
2180		struct ovs_key_mpls *mpls_key;
2181
2182		num_labels = hweight_long(output->mpls.num_labels_mask);
2183		nla = nla_reserve(skb, OVS_KEY_ATTR_MPLS,
2184				  num_labels * sizeof(*mpls_key));
2185		if (!nla)
2186			goto nla_put_failure;
2187
2188		mpls_key = nla_data(nla);
2189		for (i = 0; i < num_labels; i++)
2190			mpls_key[i].mpls_lse = output->mpls.lse[i];
2191	}
2192
2193	if ((swkey->eth.type == htons(ETH_P_IP) ||
2194	     swkey->eth.type == htons(ETH_P_IPV6)) &&
2195	     swkey->ip.frag != OVS_FRAG_TYPE_LATER) {
2196
2197		if (swkey->ip.proto == IPPROTO_TCP) {
2198			struct ovs_key_tcp *tcp_key;
2199
2200			nla = nla_reserve(skb, OVS_KEY_ATTR_TCP, sizeof(*tcp_key));
2201			if (!nla)
2202				goto nla_put_failure;
2203			tcp_key = nla_data(nla);
2204			tcp_key->tcp_src = output->tp.src;
2205			tcp_key->tcp_dst = output->tp.dst;
2206			if (nla_put_be16(skb, OVS_KEY_ATTR_TCP_FLAGS,
2207					 output->tp.flags))
2208				goto nla_put_failure;
2209		} else if (swkey->ip.proto == IPPROTO_UDP) {
2210			struct ovs_key_udp *udp_key;
2211
2212			nla = nla_reserve(skb, OVS_KEY_ATTR_UDP, sizeof(*udp_key));
2213			if (!nla)
2214				goto nla_put_failure;
2215			udp_key = nla_data(nla);
2216			udp_key->udp_src = output->tp.src;
2217			udp_key->udp_dst = output->tp.dst;
2218		} else if (swkey->ip.proto == IPPROTO_SCTP) {
2219			struct ovs_key_sctp *sctp_key;
2220
2221			nla = nla_reserve(skb, OVS_KEY_ATTR_SCTP, sizeof(*sctp_key));
2222			if (!nla)
2223				goto nla_put_failure;
2224			sctp_key = nla_data(nla);
2225			sctp_key->sctp_src = output->tp.src;
2226			sctp_key->sctp_dst = output->tp.dst;
2227		} else if (swkey->eth.type == htons(ETH_P_IP) &&
2228			   swkey->ip.proto == IPPROTO_ICMP) {
2229			struct ovs_key_icmp *icmp_key;
2230
2231			nla = nla_reserve(skb, OVS_KEY_ATTR_ICMP, sizeof(*icmp_key));
2232			if (!nla)
2233				goto nla_put_failure;
2234			icmp_key = nla_data(nla);
2235			icmp_key->icmp_type = ntohs(output->tp.src);
2236			icmp_key->icmp_code = ntohs(output->tp.dst);
2237		} else if (swkey->eth.type == htons(ETH_P_IPV6) &&
2238			   swkey->ip.proto == IPPROTO_ICMPV6) {
2239			struct ovs_key_icmpv6 *icmpv6_key;
2240
2241			nla = nla_reserve(skb, OVS_KEY_ATTR_ICMPV6,
2242						sizeof(*icmpv6_key));
2243			if (!nla)
2244				goto nla_put_failure;
2245			icmpv6_key = nla_data(nla);
2246			icmpv6_key->icmpv6_type = ntohs(output->tp.src);
2247			icmpv6_key->icmpv6_code = ntohs(output->tp.dst);
2248
2249			if (swkey->tp.src == htons(NDISC_NEIGHBOUR_SOLICITATION) ||
2250			    swkey->tp.src == htons(NDISC_NEIGHBOUR_ADVERTISEMENT)) {
2251				struct ovs_key_nd *nd_key;
2252
2253				nla = nla_reserve(skb, OVS_KEY_ATTR_ND, sizeof(*nd_key));
2254				if (!nla)
2255					goto nla_put_failure;
2256				nd_key = nla_data(nla);
2257				memcpy(nd_key->nd_target, &output->ipv6.nd.target,
2258							sizeof(nd_key->nd_target));
2259				ether_addr_copy(nd_key->nd_sll, output->ipv6.nd.sll);
2260				ether_addr_copy(nd_key->nd_tll, output->ipv6.nd.tll);
2261			}
2262		}
2263	}
2264
2265unencap:
2266	if (in_encap)
2267		nla_nest_end(skb, in_encap);
2268	if (encap)
2269		nla_nest_end(skb, encap);
2270
2271	return 0;
2272
2273nla_put_failure:
2274	return -EMSGSIZE;
2275}
2276
2277int ovs_nla_put_key(const struct sw_flow_key *swkey,
2278		    const struct sw_flow_key *output, int attr, bool is_mask,
2279		    struct sk_buff *skb)
2280{
2281	int err;
2282	struct nlattr *nla;
2283
2284	nla = nla_nest_start_noflag(skb, attr);
2285	if (!nla)
2286		return -EMSGSIZE;
2287	err = __ovs_nla_put_key(swkey, output, is_mask, skb);
2288	if (err)
2289		return err;
2290	nla_nest_end(skb, nla);
2291
2292	return 0;
2293}
2294
2295/* Called with ovs_mutex or RCU read lock. */
2296int ovs_nla_put_identifier(const struct sw_flow *flow, struct sk_buff *skb)
2297{
2298	if (ovs_identifier_is_ufid(&flow->id))
2299		return nla_put(skb, OVS_FLOW_ATTR_UFID, flow->id.ufid_len,
2300			       flow->id.ufid);
2301
2302	return ovs_nla_put_key(flow->id.unmasked_key, flow->id.unmasked_key,
2303			       OVS_FLOW_ATTR_KEY, false, skb);
2304}
2305
2306/* Called with ovs_mutex or RCU read lock. */
2307int ovs_nla_put_masked_key(const struct sw_flow *flow, struct sk_buff *skb)
2308{
2309	return ovs_nla_put_key(&flow->key, &flow->key,
2310				OVS_FLOW_ATTR_KEY, false, skb);
2311}
2312
2313/* Called with ovs_mutex or RCU read lock. */
2314int ovs_nla_put_mask(const struct sw_flow *flow, struct sk_buff *skb)
2315{
2316	return ovs_nla_put_key(&flow->key, &flow->mask->key,
2317				OVS_FLOW_ATTR_MASK, true, skb);
2318}
2319
2320#define MAX_ACTIONS_BUFSIZE	(32 * 1024)
2321
2322static struct sw_flow_actions *nla_alloc_flow_actions(int size)
2323{
2324	struct sw_flow_actions *sfa;
2325
2326	WARN_ON_ONCE(size > MAX_ACTIONS_BUFSIZE);
2327
2328	sfa = kmalloc(kmalloc_size_roundup(sizeof(*sfa) + size), GFP_KERNEL);
2329	if (!sfa)
2330		return ERR_PTR(-ENOMEM);
2331
2332	sfa->actions_len = 0;
2333	return sfa;
2334}
2335
2336static void ovs_nla_free_nested_actions(const struct nlattr *actions, int len);
2337
2338static void ovs_nla_free_check_pkt_len_action(const struct nlattr *action)
2339{
2340	const struct nlattr *a;
2341	int rem;
2342
2343	nla_for_each_nested(a, action, rem) {
2344		switch (nla_type(a)) {
2345		case OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL:
2346		case OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER:
2347			ovs_nla_free_nested_actions(nla_data(a), nla_len(a));
2348			break;
2349		}
2350	}
2351}
2352
2353static void ovs_nla_free_clone_action(const struct nlattr *action)
2354{
2355	const struct nlattr *a = nla_data(action);
2356	int rem = nla_len(action);
2357
2358	switch (nla_type(a)) {
2359	case OVS_CLONE_ATTR_EXEC:
2360		/* The real list of actions follows this attribute. */
2361		a = nla_next(a, &rem);
2362		ovs_nla_free_nested_actions(a, rem);
2363		break;
2364	}
2365}
2366
2367static void ovs_nla_free_dec_ttl_action(const struct nlattr *action)
2368{
2369	const struct nlattr *a = nla_data(action);
2370
2371	switch (nla_type(a)) {
2372	case OVS_DEC_TTL_ATTR_ACTION:
2373		ovs_nla_free_nested_actions(nla_data(a), nla_len(a));
2374		break;
2375	}
2376}
2377
2378static void ovs_nla_free_sample_action(const struct nlattr *action)
2379{
2380	const struct nlattr *a = nla_data(action);
2381	int rem = nla_len(action);
2382
2383	switch (nla_type(a)) {
2384	case OVS_SAMPLE_ATTR_ARG:
2385		/* The real list of actions follows this attribute. */
2386		a = nla_next(a, &rem);
2387		ovs_nla_free_nested_actions(a, rem);
2388		break;
2389	}
2390}
2391
2392static void ovs_nla_free_set_action(const struct nlattr *a)
2393{
2394	const struct nlattr *ovs_key = nla_data(a);
2395	struct ovs_tunnel_info *ovs_tun;
2396
2397	switch (nla_type(ovs_key)) {
2398	case OVS_KEY_ATTR_TUNNEL_INFO:
2399		ovs_tun = nla_data(ovs_key);
2400		dst_release((struct dst_entry *)ovs_tun->tun_dst);
2401		break;
2402	}
2403}
2404
2405static void ovs_nla_free_nested_actions(const struct nlattr *actions, int len)
2406{
2407	const struct nlattr *a;
2408	int rem;
2409
2410	/* Whenever new actions are added, the need to update this
2411	 * function should be considered.
2412	 */
2413	BUILD_BUG_ON(OVS_ACTION_ATTR_MAX != 25);
2414
2415	if (!actions)
2416		return;
2417
2418	nla_for_each_attr(a, actions, len, rem) {
2419		switch (nla_type(a)) {
2420		case OVS_ACTION_ATTR_CHECK_PKT_LEN:
2421			ovs_nla_free_check_pkt_len_action(a);
2422			break;
2423
2424		case OVS_ACTION_ATTR_CLONE:
2425			ovs_nla_free_clone_action(a);
2426			break;
2427
2428		case OVS_ACTION_ATTR_CT:
2429			ovs_ct_free_action(a);
2430			break;
2431
2432		case OVS_ACTION_ATTR_DEC_TTL:
2433			ovs_nla_free_dec_ttl_action(a);
2434			break;
2435
2436		case OVS_ACTION_ATTR_SAMPLE:
2437			ovs_nla_free_sample_action(a);
2438			break;
2439
2440		case OVS_ACTION_ATTR_SET:
2441			ovs_nla_free_set_action(a);
2442			break;
2443		}
2444	}
2445}
2446
2447void ovs_nla_free_flow_actions(struct sw_flow_actions *sf_acts)
2448{
2449	if (!sf_acts)
2450		return;
2451
2452	ovs_nla_free_nested_actions(sf_acts->actions, sf_acts->actions_len);
2453	kfree(sf_acts);
2454}
2455
2456static void __ovs_nla_free_flow_actions(struct rcu_head *head)
2457{
2458	ovs_nla_free_flow_actions(container_of(head, struct sw_flow_actions, rcu));
2459}
2460
2461/* Schedules 'sf_acts' to be freed after the next RCU grace period.
2462 * The caller must hold rcu_read_lock for this to be sensible. */
2463void ovs_nla_free_flow_actions_rcu(struct sw_flow_actions *sf_acts)
2464{
2465	call_rcu(&sf_acts->rcu, __ovs_nla_free_flow_actions);
2466}
2467
2468static struct nlattr *reserve_sfa_size(struct sw_flow_actions **sfa,
2469				       int attr_len, bool log)
2470{
2471
2472	struct sw_flow_actions *acts;
2473	int new_acts_size;
2474	size_t req_size = NLA_ALIGN(attr_len);
2475	int next_offset = offsetof(struct sw_flow_actions, actions) +
2476					(*sfa)->actions_len;
2477
2478	if (req_size <= (ksize(*sfa) - next_offset))
2479		goto out;
2480
2481	new_acts_size = max(next_offset + req_size, ksize(*sfa) * 2);
2482
2483	if (new_acts_size > MAX_ACTIONS_BUFSIZE) {
2484		if ((next_offset + req_size) > MAX_ACTIONS_BUFSIZE) {
2485			OVS_NLERR(log, "Flow action size exceeds max %u",
2486				  MAX_ACTIONS_BUFSIZE);
2487			return ERR_PTR(-EMSGSIZE);
2488		}
2489		new_acts_size = MAX_ACTIONS_BUFSIZE;
2490	}
2491
2492	acts = nla_alloc_flow_actions(new_acts_size);
2493	if (IS_ERR(acts))
2494		return ERR_CAST(acts);
2495
2496	memcpy(acts->actions, (*sfa)->actions, (*sfa)->actions_len);
2497	acts->actions_len = (*sfa)->actions_len;
2498	acts->orig_len = (*sfa)->orig_len;
2499	kfree(*sfa);
2500	*sfa = acts;
2501
2502out:
2503	(*sfa)->actions_len += req_size;
2504	return  (struct nlattr *) ((unsigned char *)(*sfa) + next_offset);
2505}
2506
2507static struct nlattr *__add_action(struct sw_flow_actions **sfa,
2508				   int attrtype, void *data, int len, bool log)
2509{
2510	struct nlattr *a;
2511
2512	a = reserve_sfa_size(sfa, nla_attr_size(len), log);
2513	if (IS_ERR(a))
2514		return a;
2515
2516	a->nla_type = attrtype;
2517	a->nla_len = nla_attr_size(len);
2518
2519	if (data)
2520		memcpy(nla_data(a), data, len);
2521	memset((unsigned char *) a + a->nla_len, 0, nla_padlen(len));
2522
2523	return a;
2524}
2525
2526int ovs_nla_add_action(struct sw_flow_actions **sfa, int attrtype, void *data,
2527		       int len, bool log)
2528{
2529	struct nlattr *a;
2530
2531	a = __add_action(sfa, attrtype, data, len, log);
2532
2533	return PTR_ERR_OR_ZERO(a);
2534}
2535
2536static inline int add_nested_action_start(struct sw_flow_actions **sfa,
2537					  int attrtype, bool log)
2538{
2539	int used = (*sfa)->actions_len;
2540	int err;
2541
2542	err = ovs_nla_add_action(sfa, attrtype, NULL, 0, log);
2543	if (err)
2544		return err;
2545
2546	return used;
2547}
2548
2549static inline void add_nested_action_end(struct sw_flow_actions *sfa,
2550					 int st_offset)
2551{
2552	struct nlattr *a = (struct nlattr *) ((unsigned char *)sfa->actions +
2553							       st_offset);
2554
2555	a->nla_len = sfa->actions_len - st_offset;
2556}
2557
2558static int __ovs_nla_copy_actions(struct net *net, const struct nlattr *attr,
2559				  const struct sw_flow_key *key,
2560				  struct sw_flow_actions **sfa,
2561				  __be16 eth_type, __be16 vlan_tci,
2562				  u32 mpls_label_count, bool log,
2563				  u32 depth);
2564
2565static int validate_and_copy_sample(struct net *net, const struct nlattr *attr,
2566				    const struct sw_flow_key *key,
2567				    struct sw_flow_actions **sfa,
2568				    __be16 eth_type, __be16 vlan_tci,
2569				    u32 mpls_label_count, bool log, bool last,
2570				    u32 depth)
2571{
2572	const struct nlattr *attrs[OVS_SAMPLE_ATTR_MAX + 1];
2573	const struct nlattr *probability, *actions;
2574	const struct nlattr *a;
2575	int rem, start, err;
2576	struct sample_arg arg;
2577
2578	memset(attrs, 0, sizeof(attrs));
2579	nla_for_each_nested(a, attr, rem) {
2580		int type = nla_type(a);
2581		if (!type || type > OVS_SAMPLE_ATTR_MAX || attrs[type])
2582			return -EINVAL;
2583		attrs[type] = a;
2584	}
2585	if (rem)
2586		return -EINVAL;
2587
2588	probability = attrs[OVS_SAMPLE_ATTR_PROBABILITY];
2589	if (!probability || nla_len(probability) != sizeof(u32))
2590		return -EINVAL;
2591
2592	actions = attrs[OVS_SAMPLE_ATTR_ACTIONS];
2593	if (!actions || (nla_len(actions) && nla_len(actions) < NLA_HDRLEN))
2594		return -EINVAL;
2595
2596	/* validation done, copy sample action. */
2597	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_SAMPLE, log);
2598	if (start < 0)
2599		return start;
2600
2601	/* When both skb and flow may be changed, put the sample
2602	 * into a deferred fifo. On the other hand, if only skb
2603	 * may be modified, the actions can be executed in place.
2604	 *
2605	 * Do this analysis at the flow installation time.
2606	 * Set 'clone_action->exec' to true if the actions can be
2607	 * executed without being deferred.
2608	 *
2609	 * If the sample is the last action, it can always be excuted
2610	 * rather than deferred.
2611	 */
2612	arg.exec = last || !actions_may_change_flow(actions);
2613	arg.probability = nla_get_u32(probability);
2614
2615	err = ovs_nla_add_action(sfa, OVS_SAMPLE_ATTR_ARG, &arg, sizeof(arg),
2616				 log);
2617	if (err)
2618		return err;
2619
2620	err = __ovs_nla_copy_actions(net, actions, key, sfa,
2621				     eth_type, vlan_tci, mpls_label_count, log,
2622				     depth + 1);
2623
2624	if (err)
2625		return err;
2626
2627	add_nested_action_end(*sfa, start);
2628
2629	return 0;
2630}
2631
2632static int validate_and_copy_dec_ttl(struct net *net,
2633				     const struct nlattr *attr,
2634				     const struct sw_flow_key *key,
2635				     struct sw_flow_actions **sfa,
2636				     __be16 eth_type, __be16 vlan_tci,
2637				     u32 mpls_label_count, bool log,
2638				     u32 depth)
2639{
2640	const struct nlattr *attrs[OVS_DEC_TTL_ATTR_MAX + 1];
2641	int start, action_start, err, rem;
2642	const struct nlattr *a, *actions;
2643
2644	memset(attrs, 0, sizeof(attrs));
2645	nla_for_each_nested(a, attr, rem) {
2646		int type = nla_type(a);
2647
2648		/* Ignore unknown attributes to be future proof. */
2649		if (type > OVS_DEC_TTL_ATTR_MAX)
2650			continue;
2651
2652		if (!type || attrs[type]) {
2653			OVS_NLERR(log, "Duplicate or invalid key (type %d).",
2654				  type);
2655			return -EINVAL;
2656		}
2657
2658		attrs[type] = a;
2659	}
2660
2661	if (rem) {
2662		OVS_NLERR(log, "Message has %d unknown bytes.", rem);
2663		return -EINVAL;
2664	}
2665
2666	actions = attrs[OVS_DEC_TTL_ATTR_ACTION];
2667	if (!actions || (nla_len(actions) && nla_len(actions) < NLA_HDRLEN)) {
2668		OVS_NLERR(log, "Missing valid actions attribute.");
2669		return -EINVAL;
2670	}
2671
2672	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_DEC_TTL, log);
2673	if (start < 0)
2674		return start;
2675
2676	action_start = add_nested_action_start(sfa, OVS_DEC_TTL_ATTR_ACTION, log);
2677	if (action_start < 0)
2678		return action_start;
2679
2680	err = __ovs_nla_copy_actions(net, actions, key, sfa, eth_type,
2681				     vlan_tci, mpls_label_count, log,
2682				     depth + 1);
2683	if (err)
2684		return err;
2685
2686	add_nested_action_end(*sfa, action_start);
2687	add_nested_action_end(*sfa, start);
2688	return 0;
2689}
2690
2691static int validate_and_copy_clone(struct net *net,
2692				   const struct nlattr *attr,
2693				   const struct sw_flow_key *key,
2694				   struct sw_flow_actions **sfa,
2695				   __be16 eth_type, __be16 vlan_tci,
2696				   u32 mpls_label_count, bool log, bool last,
2697				   u32 depth)
2698{
2699	int start, err;
2700	u32 exec;
2701
2702	if (nla_len(attr) && nla_len(attr) < NLA_HDRLEN)
2703		return -EINVAL;
2704
2705	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_CLONE, log);
2706	if (start < 0)
2707		return start;
2708
2709	exec = last || !actions_may_change_flow(attr);
2710
2711	err = ovs_nla_add_action(sfa, OVS_CLONE_ATTR_EXEC, &exec,
2712				 sizeof(exec), log);
2713	if (err)
2714		return err;
2715
2716	err = __ovs_nla_copy_actions(net, attr, key, sfa,
2717				     eth_type, vlan_tci, mpls_label_count, log,
2718				     depth + 1);
2719	if (err)
2720		return err;
2721
2722	add_nested_action_end(*sfa, start);
2723
2724	return 0;
2725}
2726
2727void ovs_match_init(struct sw_flow_match *match,
2728		    struct sw_flow_key *key,
2729		    bool reset_key,
2730		    struct sw_flow_mask *mask)
2731{
2732	memset(match, 0, sizeof(*match));
2733	match->key = key;
2734	match->mask = mask;
2735
2736	if (reset_key)
2737		memset(key, 0, sizeof(*key));
2738
2739	if (mask) {
2740		memset(&mask->key, 0, sizeof(mask->key));
2741		mask->range.start = mask->range.end = 0;
2742	}
2743}
2744
2745static int validate_geneve_opts(struct sw_flow_key *key)
2746{
2747	struct geneve_opt *option;
2748	int opts_len = key->tun_opts_len;
2749	bool crit_opt = false;
2750
2751	option = (struct geneve_opt *)TUN_METADATA_OPTS(key, key->tun_opts_len);
2752	while (opts_len > 0) {
2753		int len;
2754
2755		if (opts_len < sizeof(*option))
2756			return -EINVAL;
2757
2758		len = sizeof(*option) + option->length * 4;
2759		if (len > opts_len)
2760			return -EINVAL;
2761
2762		crit_opt |= !!(option->type & GENEVE_CRIT_OPT_TYPE);
2763
2764		option = (struct geneve_opt *)((u8 *)option + len);
2765		opts_len -= len;
2766	}
2767
2768	if (crit_opt)
2769		__set_bit(IP_TUNNEL_CRIT_OPT_BIT, key->tun_key.tun_flags);
2770
2771	return 0;
2772}
2773
2774static int validate_and_copy_set_tun(const struct nlattr *attr,
2775				     struct sw_flow_actions **sfa, bool log)
2776{
2777	IP_TUNNEL_DECLARE_FLAGS(dst_opt_type) = { };
2778	struct sw_flow_match match;
2779	struct sw_flow_key key;
2780	struct metadata_dst *tun_dst;
2781	struct ip_tunnel_info *tun_info;
2782	struct ovs_tunnel_info *ovs_tun;
2783	struct nlattr *a;
2784	int err = 0, start, opts_type;
 
2785
 
2786	ovs_match_init(&match, &key, true, NULL);
2787	opts_type = ip_tun_from_nlattr(nla_data(attr), &match, false, log);
2788	if (opts_type < 0)
2789		return opts_type;
2790
2791	if (key.tun_opts_len) {
2792		switch (opts_type) {
2793		case OVS_TUNNEL_KEY_ATTR_GENEVE_OPTS:
2794			err = validate_geneve_opts(&key);
2795			if (err < 0)
2796				return err;
2797
2798			__set_bit(IP_TUNNEL_GENEVE_OPT_BIT, dst_opt_type);
2799			break;
2800		case OVS_TUNNEL_KEY_ATTR_VXLAN_OPTS:
2801			__set_bit(IP_TUNNEL_VXLAN_OPT_BIT, dst_opt_type);
2802			break;
2803		case OVS_TUNNEL_KEY_ATTR_ERSPAN_OPTS:
2804			__set_bit(IP_TUNNEL_ERSPAN_OPT_BIT, dst_opt_type);
2805			break;
2806		}
2807	}
2808
2809	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_SET, log);
2810	if (start < 0)
2811		return start;
2812
2813	tun_dst = metadata_dst_alloc(key.tun_opts_len, METADATA_IP_TUNNEL,
2814				     GFP_KERNEL);
2815
2816	if (!tun_dst)
2817		return -ENOMEM;
2818
2819	err = dst_cache_init(&tun_dst->u.tun_info.dst_cache, GFP_KERNEL);
2820	if (err) {
2821		dst_release((struct dst_entry *)tun_dst);
2822		return err;
2823	}
2824
2825	a = __add_action(sfa, OVS_KEY_ATTR_TUNNEL_INFO, NULL,
2826			 sizeof(*ovs_tun), log);
2827	if (IS_ERR(a)) {
2828		dst_release((struct dst_entry *)tun_dst);
2829		return PTR_ERR(a);
2830	}
2831
2832	ovs_tun = nla_data(a);
2833	ovs_tun->tun_dst = tun_dst;
2834
2835	tun_info = &tun_dst->u.tun_info;
2836	tun_info->mode = IP_TUNNEL_INFO_TX;
2837	if (key.tun_proto == AF_INET6)
2838		tun_info->mode |= IP_TUNNEL_INFO_IPV6;
2839	else if (key.tun_proto == AF_INET && key.tun_key.u.ipv4.dst == 0)
2840		tun_info->mode |= IP_TUNNEL_INFO_BRIDGE;
2841	tun_info->key = key.tun_key;
2842
2843	/* We need to store the options in the action itself since
2844	 * everything else will go away after flow setup. We can append
2845	 * it to tun_info and then point there.
2846	 */
2847	ip_tunnel_info_opts_set(tun_info,
2848				TUN_METADATA_OPTS(&key, key.tun_opts_len),
2849				key.tun_opts_len, dst_opt_type);
2850	add_nested_action_end(*sfa, start);
2851
2852	return err;
2853}
2854
2855static bool validate_nsh(const struct nlattr *attr, bool is_mask,
2856			 bool is_push_nsh, bool log)
2857{
2858	struct sw_flow_match match;
2859	struct sw_flow_key key;
2860	int ret = 0;
2861
2862	ovs_match_init(&match, &key, true, NULL);
2863	ret = nsh_key_put_from_nlattr(attr, &match, is_mask,
2864				      is_push_nsh, log);
2865	return !ret;
2866}
2867
2868/* Return false if there are any non-masked bits set.
2869 * Mask follows data immediately, before any netlink padding.
2870 */
2871static bool validate_masked(u8 *data, int len)
2872{
2873	u8 *mask = data + len;
2874
2875	while (len--)
2876		if (*data++ & ~*mask++)
2877			return false;
2878
2879	return true;
2880}
2881
2882static int validate_set(const struct nlattr *a,
2883			const struct sw_flow_key *flow_key,
2884			struct sw_flow_actions **sfa, bool *skip_copy,
2885			u8 mac_proto, __be16 eth_type, bool masked, bool log)
2886{
2887	const struct nlattr *ovs_key = nla_data(a);
2888	int key_type = nla_type(ovs_key);
2889	size_t key_len;
2890
2891	/* There can be only one key in a action */
2892	if (nla_total_size(nla_len(ovs_key)) != nla_len(a))
2893		return -EINVAL;
2894
2895	key_len = nla_len(ovs_key);
2896	if (masked)
2897		key_len /= 2;
2898
2899	if (key_type > OVS_KEY_ATTR_MAX ||
2900	    !check_attr_len(key_len, ovs_key_lens[key_type].len))
2901		return -EINVAL;
2902
2903	if (masked && !validate_masked(nla_data(ovs_key), key_len))
2904		return -EINVAL;
2905
2906	switch (key_type) {
 
 
 
 
2907	case OVS_KEY_ATTR_PRIORITY:
2908	case OVS_KEY_ATTR_SKB_MARK:
2909	case OVS_KEY_ATTR_CT_MARK:
2910	case OVS_KEY_ATTR_CT_LABELS:
2911		break;
2912
2913	case OVS_KEY_ATTR_ETHERNET:
2914		if (mac_proto != MAC_PROTO_ETHERNET)
2915			return -EINVAL;
2916		break;
2917
2918	case OVS_KEY_ATTR_TUNNEL: {
2919		int err;
2920
2921		if (masked)
2922			return -EINVAL; /* Masked tunnel set not supported. */
2923
2924		*skip_copy = true;
2925		err = validate_and_copy_set_tun(a, sfa, log);
2926		if (err)
2927			return err;
2928		break;
2929	}
2930	case OVS_KEY_ATTR_IPV4: {
2931		const struct ovs_key_ipv4 *ipv4_key;
2932
 
2933		if (eth_type != htons(ETH_P_IP))
2934			return -EINVAL;
2935
2936		ipv4_key = nla_data(ovs_key);
2937
2938		if (masked) {
2939			const struct ovs_key_ipv4 *mask = ipv4_key + 1;
2940
2941			/* Non-writeable fields. */
2942			if (mask->ipv4_proto || mask->ipv4_frag)
2943				return -EINVAL;
2944		} else {
2945			if (ipv4_key->ipv4_proto != flow_key->ip.proto)
2946				return -EINVAL;
2947
2948			if (ipv4_key->ipv4_frag != flow_key->ip.frag)
2949				return -EINVAL;
2950		}
2951		break;
2952	}
2953	case OVS_KEY_ATTR_IPV6: {
2954		const struct ovs_key_ipv6 *ipv6_key;
2955
 
2956		if (eth_type != htons(ETH_P_IPV6))
2957			return -EINVAL;
2958
2959		ipv6_key = nla_data(ovs_key);
2960
2961		if (masked) {
2962			const struct ovs_key_ipv6 *mask = ipv6_key + 1;
2963
2964			/* Non-writeable fields. */
2965			if (mask->ipv6_proto || mask->ipv6_frag)
2966				return -EINVAL;
2967
2968			/* Invalid bits in the flow label mask? */
2969			if (ntohl(mask->ipv6_label) & 0xFFF00000)
2970				return -EINVAL;
2971		} else {
2972			if (ipv6_key->ipv6_proto != flow_key->ip.proto)
2973				return -EINVAL;
2974
2975			if (ipv6_key->ipv6_frag != flow_key->ip.frag)
2976				return -EINVAL;
2977		}
2978		if (ntohl(ipv6_key->ipv6_label) & 0xFFF00000)
2979			return -EINVAL;
2980
2981		break;
2982	}
2983	case OVS_KEY_ATTR_TCP:
2984		if ((eth_type != htons(ETH_P_IP) &&
2985		     eth_type != htons(ETH_P_IPV6)) ||
2986		    flow_key->ip.proto != IPPROTO_TCP)
2987			return -EINVAL;
2988
2989		break;
2990
2991	case OVS_KEY_ATTR_UDP:
2992		if ((eth_type != htons(ETH_P_IP) &&
2993		     eth_type != htons(ETH_P_IPV6)) ||
2994		    flow_key->ip.proto != IPPROTO_UDP)
2995			return -EINVAL;
2996
2997		break;
2998
2999	case OVS_KEY_ATTR_MPLS:
3000		if (!eth_p_mpls(eth_type))
3001			return -EINVAL;
3002		break;
3003
3004	case OVS_KEY_ATTR_SCTP:
3005		if ((eth_type != htons(ETH_P_IP) &&
3006		     eth_type != htons(ETH_P_IPV6)) ||
3007		    flow_key->ip.proto != IPPROTO_SCTP)
3008			return -EINVAL;
3009
3010		break;
3011
3012	case OVS_KEY_ATTR_NSH:
3013		if (eth_type != htons(ETH_P_NSH))
3014			return -EINVAL;
3015		if (!validate_nsh(nla_data(a), masked, false, log))
3016			return -EINVAL;
3017		break;
3018
3019	default:
3020		return -EINVAL;
3021	}
3022
3023	/* Convert non-masked non-tunnel set actions to masked set actions. */
3024	if (!masked && key_type != OVS_KEY_ATTR_TUNNEL) {
3025		int start, len = key_len * 2;
3026		struct nlattr *at;
3027
3028		*skip_copy = true;
3029
3030		start = add_nested_action_start(sfa,
3031						OVS_ACTION_ATTR_SET_TO_MASKED,
3032						log);
3033		if (start < 0)
3034			return start;
3035
3036		at = __add_action(sfa, key_type, NULL, len, log);
3037		if (IS_ERR(at))
3038			return PTR_ERR(at);
3039
3040		memcpy(nla_data(at), nla_data(ovs_key), key_len); /* Key. */
3041		memset(nla_data(at) + key_len, 0xff, key_len);    /* Mask. */
3042		/* Clear non-writeable bits from otherwise writeable fields. */
3043		if (key_type == OVS_KEY_ATTR_IPV6) {
3044			struct ovs_key_ipv6 *mask = nla_data(at) + key_len;
3045
3046			mask->ipv6_label &= htonl(0x000FFFFF);
3047		}
3048		add_nested_action_end(*sfa, start);
3049	}
3050
3051	return 0;
3052}
3053
3054static int validate_userspace(const struct nlattr *attr)
3055{
3056	static const struct nla_policy userspace_policy[OVS_USERSPACE_ATTR_MAX + 1] = {
3057		[OVS_USERSPACE_ATTR_PID] = {.type = NLA_U32 },
3058		[OVS_USERSPACE_ATTR_USERDATA] = {.type = NLA_UNSPEC },
3059		[OVS_USERSPACE_ATTR_EGRESS_TUN_PORT] = {.type = NLA_U32 },
3060	};
3061	struct nlattr *a[OVS_USERSPACE_ATTR_MAX + 1];
3062	int error;
3063
3064	error = nla_parse_nested_deprecated(a, OVS_USERSPACE_ATTR_MAX, attr,
3065					    userspace_policy, NULL);
3066	if (error)
3067		return error;
3068
3069	if (!a[OVS_USERSPACE_ATTR_PID] ||
3070	    !nla_get_u32(a[OVS_USERSPACE_ATTR_PID]))
3071		return -EINVAL;
3072
3073	return 0;
3074}
3075
3076static const struct nla_policy cpl_policy[OVS_CHECK_PKT_LEN_ATTR_MAX + 1] = {
3077	[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN] = {.type = NLA_U16 },
3078	[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER] = {.type = NLA_NESTED },
3079	[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL] = {.type = NLA_NESTED },
3080};
3081
3082static int validate_and_copy_check_pkt_len(struct net *net,
3083					   const struct nlattr *attr,
3084					   const struct sw_flow_key *key,
3085					   struct sw_flow_actions **sfa,
3086					   __be16 eth_type, __be16 vlan_tci,
3087					   u32 mpls_label_count,
3088					   bool log, bool last, u32 depth)
3089{
3090	const struct nlattr *acts_if_greater, *acts_if_lesser_eq;
3091	struct nlattr *a[OVS_CHECK_PKT_LEN_ATTR_MAX + 1];
3092	struct check_pkt_len_arg arg;
3093	int nested_acts_start;
3094	int start, err;
3095
3096	err = nla_parse_deprecated_strict(a, OVS_CHECK_PKT_LEN_ATTR_MAX,
3097					  nla_data(attr), nla_len(attr),
3098					  cpl_policy, NULL);
3099	if (err)
3100		return err;
3101
3102	if (!a[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN] ||
3103	    !nla_get_u16(a[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN]))
3104		return -EINVAL;
3105
3106	acts_if_lesser_eq = a[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL];
3107	acts_if_greater = a[OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER];
3108
3109	/* Both the nested action should be present. */
3110	if (!acts_if_greater || !acts_if_lesser_eq)
3111		return -EINVAL;
3112
3113	/* validation done, copy the nested actions. */
3114	start = add_nested_action_start(sfa, OVS_ACTION_ATTR_CHECK_PKT_LEN,
3115					log);
3116	if (start < 0)
3117		return start;
3118
3119	arg.pkt_len = nla_get_u16(a[OVS_CHECK_PKT_LEN_ATTR_PKT_LEN]);
3120	arg.exec_for_lesser_equal =
3121		last || !actions_may_change_flow(acts_if_lesser_eq);
3122	arg.exec_for_greater =
3123		last || !actions_may_change_flow(acts_if_greater);
3124
3125	err = ovs_nla_add_action(sfa, OVS_CHECK_PKT_LEN_ATTR_ARG, &arg,
3126				 sizeof(arg), log);
3127	if (err)
3128		return err;
3129
3130	nested_acts_start = add_nested_action_start(sfa,
3131		OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL, log);
3132	if (nested_acts_start < 0)
3133		return nested_acts_start;
3134
3135	err = __ovs_nla_copy_actions(net, acts_if_lesser_eq, key, sfa,
3136				     eth_type, vlan_tci, mpls_label_count, log,
3137				     depth + 1);
3138
3139	if (err)
3140		return err;
3141
3142	add_nested_action_end(*sfa, nested_acts_start);
3143
3144	nested_acts_start = add_nested_action_start(sfa,
3145		OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER, log);
3146	if (nested_acts_start < 0)
3147		return nested_acts_start;
3148
3149	err = __ovs_nla_copy_actions(net, acts_if_greater, key, sfa,
3150				     eth_type, vlan_tci, mpls_label_count, log,
3151				     depth + 1);
3152
3153	if (err)
3154		return err;
3155
3156	add_nested_action_end(*sfa, nested_acts_start);
3157	add_nested_action_end(*sfa, start);
3158	return 0;
3159}
3160
3161static int validate_psample(const struct nlattr *attr)
3162{
3163	static const struct nla_policy policy[OVS_PSAMPLE_ATTR_MAX + 1] = {
3164		[OVS_PSAMPLE_ATTR_GROUP] = { .type = NLA_U32 },
3165		[OVS_PSAMPLE_ATTR_COOKIE] = {
3166			.type = NLA_BINARY,
3167			.len = OVS_PSAMPLE_COOKIE_MAX_SIZE,
3168		},
3169	};
3170	struct nlattr *a[OVS_PSAMPLE_ATTR_MAX + 1];
3171	int err;
3172
3173	if (!IS_ENABLED(CONFIG_PSAMPLE))
3174		return -EOPNOTSUPP;
3175
3176	err = nla_parse_nested(a, OVS_PSAMPLE_ATTR_MAX, attr, policy, NULL);
3177	if (err)
3178		return err;
3179
3180	return a[OVS_PSAMPLE_ATTR_GROUP] ? 0 : -EINVAL;
3181}
3182
3183static int copy_action(const struct nlattr *from,
3184		       struct sw_flow_actions **sfa, bool log)
3185{
3186	int totlen = NLA_ALIGN(from->nla_len);
3187	struct nlattr *to;
3188
3189	to = reserve_sfa_size(sfa, from->nla_len, log);
3190	if (IS_ERR(to))
3191		return PTR_ERR(to);
3192
3193	memcpy(to, from, totlen);
3194	return 0;
3195}
3196
3197static int __ovs_nla_copy_actions(struct net *net, const struct nlattr *attr,
3198				  const struct sw_flow_key *key,
3199				  struct sw_flow_actions **sfa,
3200				  __be16 eth_type, __be16 vlan_tci,
3201				  u32 mpls_label_count, bool log,
3202				  u32 depth)
3203{
3204	u8 mac_proto = ovs_key_mac_proto(key);
3205	const struct nlattr *a;
3206	int rem, err;
3207
3208	if (depth > OVS_COPY_ACTIONS_MAX_DEPTH)
3209		return -EOVERFLOW;
3210
3211	nla_for_each_nested(a, attr, rem) {
3212		/* Expected argument lengths, (u32)-1 for variable length. */
3213		static const u32 action_lens[OVS_ACTION_ATTR_MAX + 1] = {
3214			[OVS_ACTION_ATTR_OUTPUT] = sizeof(u32),
3215			[OVS_ACTION_ATTR_RECIRC] = sizeof(u32),
3216			[OVS_ACTION_ATTR_USERSPACE] = (u32)-1,
3217			[OVS_ACTION_ATTR_PUSH_MPLS] = sizeof(struct ovs_action_push_mpls),
3218			[OVS_ACTION_ATTR_POP_MPLS] = sizeof(__be16),
3219			[OVS_ACTION_ATTR_PUSH_VLAN] = sizeof(struct ovs_action_push_vlan),
3220			[OVS_ACTION_ATTR_POP_VLAN] = 0,
3221			[OVS_ACTION_ATTR_SET] = (u32)-1,
3222			[OVS_ACTION_ATTR_SET_MASKED] = (u32)-1,
3223			[OVS_ACTION_ATTR_SAMPLE] = (u32)-1,
3224			[OVS_ACTION_ATTR_HASH] = sizeof(struct ovs_action_hash),
3225			[OVS_ACTION_ATTR_CT] = (u32)-1,
3226			[OVS_ACTION_ATTR_CT_CLEAR] = 0,
3227			[OVS_ACTION_ATTR_TRUNC] = sizeof(struct ovs_action_trunc),
3228			[OVS_ACTION_ATTR_PUSH_ETH] = sizeof(struct ovs_action_push_eth),
3229			[OVS_ACTION_ATTR_POP_ETH] = 0,
3230			[OVS_ACTION_ATTR_PUSH_NSH] = (u32)-1,
3231			[OVS_ACTION_ATTR_POP_NSH] = 0,
3232			[OVS_ACTION_ATTR_METER] = sizeof(u32),
3233			[OVS_ACTION_ATTR_CLONE] = (u32)-1,
3234			[OVS_ACTION_ATTR_CHECK_PKT_LEN] = (u32)-1,
3235			[OVS_ACTION_ATTR_ADD_MPLS] = sizeof(struct ovs_action_add_mpls),
3236			[OVS_ACTION_ATTR_DEC_TTL] = (u32)-1,
3237			[OVS_ACTION_ATTR_DROP] = sizeof(u32),
3238			[OVS_ACTION_ATTR_PSAMPLE] = (u32)-1,
3239		};
3240		const struct ovs_action_push_vlan *vlan;
3241		int type = nla_type(a);
3242		bool skip_copy;
3243
3244		if (type > OVS_ACTION_ATTR_MAX ||
3245		    (action_lens[type] != nla_len(a) &&
3246		     action_lens[type] != (u32)-1))
3247			return -EINVAL;
3248
3249		skip_copy = false;
3250		switch (type) {
3251		case OVS_ACTION_ATTR_UNSPEC:
3252			return -EINVAL;
3253
3254		case OVS_ACTION_ATTR_USERSPACE:
3255			err = validate_userspace(a);
3256			if (err)
3257				return err;
3258			break;
3259
3260		case OVS_ACTION_ATTR_OUTPUT:
3261			if (nla_get_u32(a) >= DP_MAX_PORTS)
3262				return -EINVAL;
3263			break;
3264
3265		case OVS_ACTION_ATTR_TRUNC: {
3266			const struct ovs_action_trunc *trunc = nla_data(a);
3267
3268			if (trunc->max_len < ETH_HLEN)
3269				return -EINVAL;
3270			break;
3271		}
3272
3273		case OVS_ACTION_ATTR_HASH: {
3274			const struct ovs_action_hash *act_hash = nla_data(a);
3275
3276			switch (act_hash->hash_alg) {
3277			case OVS_HASH_ALG_L4:
3278				fallthrough;
3279			case OVS_HASH_ALG_SYM_L4:
3280				break;
3281			default:
3282				return  -EINVAL;
3283			}
3284
3285			break;
3286		}
3287
3288		case OVS_ACTION_ATTR_POP_VLAN:
3289			if (mac_proto != MAC_PROTO_ETHERNET)
3290				return -EINVAL;
3291			vlan_tci = htons(0);
3292			break;
3293
3294		case OVS_ACTION_ATTR_PUSH_VLAN:
3295			if (mac_proto != MAC_PROTO_ETHERNET)
3296				return -EINVAL;
3297			vlan = nla_data(a);
3298			if (!eth_type_vlan(vlan->vlan_tpid))
3299				return -EINVAL;
3300			if (!(vlan->vlan_tci & htons(VLAN_CFI_MASK)))
3301				return -EINVAL;
3302			vlan_tci = vlan->vlan_tci;
3303			break;
3304
3305		case OVS_ACTION_ATTR_RECIRC:
3306			break;
3307
3308		case OVS_ACTION_ATTR_ADD_MPLS: {
3309			const struct ovs_action_add_mpls *mpls = nla_data(a);
3310
3311			if (!eth_p_mpls(mpls->mpls_ethertype))
3312				return -EINVAL;
3313
3314			if (mpls->tun_flags & OVS_MPLS_L3_TUNNEL_FLAG_MASK) {
3315				if (vlan_tci & htons(VLAN_CFI_MASK) ||
3316				    (eth_type != htons(ETH_P_IP) &&
3317				     eth_type != htons(ETH_P_IPV6) &&
3318				     eth_type != htons(ETH_P_ARP) &&
3319				     eth_type != htons(ETH_P_RARP) &&
3320				     !eth_p_mpls(eth_type)))
3321					return -EINVAL;
3322				mpls_label_count++;
3323			} else {
3324				if (mac_proto == MAC_PROTO_ETHERNET) {
3325					mpls_label_count = 1;
3326					mac_proto = MAC_PROTO_NONE;
3327				} else {
3328					mpls_label_count++;
3329				}
3330			}
3331			eth_type = mpls->mpls_ethertype;
3332			break;
3333		}
3334
3335		case OVS_ACTION_ATTR_PUSH_MPLS: {
3336			const struct ovs_action_push_mpls *mpls = nla_data(a);
3337
3338			if (!eth_p_mpls(mpls->mpls_ethertype))
3339				return -EINVAL;
3340			/* Prohibit push MPLS other than to a white list
3341			 * for packets that have a known tag order.
3342			 */
3343			if (vlan_tci & htons(VLAN_CFI_MASK) ||
3344			    (eth_type != htons(ETH_P_IP) &&
3345			     eth_type != htons(ETH_P_IPV6) &&
3346			     eth_type != htons(ETH_P_ARP) &&
3347			     eth_type != htons(ETH_P_RARP) &&
3348			     !eth_p_mpls(eth_type)))
3349				return -EINVAL;
3350			eth_type = mpls->mpls_ethertype;
3351			mpls_label_count++;
3352			break;
3353		}
3354
3355		case OVS_ACTION_ATTR_POP_MPLS: {
3356			__be16  proto;
3357			if (vlan_tci & htons(VLAN_CFI_MASK) ||
3358			    !eth_p_mpls(eth_type))
3359				return -EINVAL;
3360
3361			/* Disallow subsequent L2.5+ set actions and mpls_pop
3362			 * actions once the last MPLS label in the packet is
3363			 * popped as there is no check here to ensure that
3364			 * the new eth type is valid and thus set actions could
3365			 * write off the end of the packet or otherwise corrupt
3366			 * it.
3367			 *
3368			 * Support for these actions is planned using packet
3369			 * recirculation.
3370			 */
3371			proto = nla_get_be16(a);
3372
3373			if (proto == htons(ETH_P_TEB) &&
3374			    mac_proto != MAC_PROTO_NONE)
3375				return -EINVAL;
3376
3377			mpls_label_count--;
3378
3379			if (!eth_p_mpls(proto) || !mpls_label_count)
3380				eth_type = htons(0);
3381			else
3382				eth_type =  proto;
3383
3384			break;
3385		}
3386
3387		case OVS_ACTION_ATTR_SET:
3388			err = validate_set(a, key, sfa,
3389					   &skip_copy, mac_proto, eth_type,
3390					   false, log);
3391			if (err)
3392				return err;
3393			break;
3394
3395		case OVS_ACTION_ATTR_SET_MASKED:
3396			err = validate_set(a, key, sfa,
3397					   &skip_copy, mac_proto, eth_type,
3398					   true, log);
3399			if (err)
3400				return err;
3401			break;
3402
3403		case OVS_ACTION_ATTR_SAMPLE: {
3404			bool last = nla_is_last(a, rem);
3405
3406			err = validate_and_copy_sample(net, a, key, sfa,
3407						       eth_type, vlan_tci,
3408						       mpls_label_count,
3409						       log, last, depth);
3410			if (err)
3411				return err;
3412			skip_copy = true;
3413			break;
3414		}
3415
3416		case OVS_ACTION_ATTR_CT:
3417			err = ovs_ct_copy_action(net, a, key, sfa, log);
3418			if (err)
3419				return err;
3420			skip_copy = true;
3421			break;
3422
3423		case OVS_ACTION_ATTR_CT_CLEAR:
3424			break;
3425
3426		case OVS_ACTION_ATTR_PUSH_ETH:
3427			/* Disallow pushing an Ethernet header if one
3428			 * is already present */
3429			if (mac_proto != MAC_PROTO_NONE)
3430				return -EINVAL;
3431			mac_proto = MAC_PROTO_ETHERNET;
3432			break;
3433
3434		case OVS_ACTION_ATTR_POP_ETH:
3435			if (mac_proto != MAC_PROTO_ETHERNET)
3436				return -EINVAL;
3437			if (vlan_tci & htons(VLAN_CFI_MASK))
3438				return -EINVAL;
3439			mac_proto = MAC_PROTO_NONE;
3440			break;
3441
3442		case OVS_ACTION_ATTR_PUSH_NSH:
3443			if (mac_proto != MAC_PROTO_ETHERNET) {
3444				u8 next_proto;
3445
3446				next_proto = tun_p_from_eth_p(eth_type);
3447				if (!next_proto)
3448					return -EINVAL;
3449			}
3450			mac_proto = MAC_PROTO_NONE;
3451			if (!validate_nsh(nla_data(a), false, true, true))
3452				return -EINVAL;
3453			break;
3454
3455		case OVS_ACTION_ATTR_POP_NSH: {
3456			__be16 inner_proto;
3457
3458			if (eth_type != htons(ETH_P_NSH))
3459				return -EINVAL;
3460			inner_proto = tun_p_to_eth_p(key->nsh.base.np);
3461			if (!inner_proto)
3462				return -EINVAL;
3463			if (key->nsh.base.np == TUN_P_ETHERNET)
3464				mac_proto = MAC_PROTO_ETHERNET;
3465			else
3466				mac_proto = MAC_PROTO_NONE;
3467			break;
3468		}
3469
3470		case OVS_ACTION_ATTR_METER:
3471			/* Non-existent meters are simply ignored.  */
3472			break;
3473
3474		case OVS_ACTION_ATTR_CLONE: {
3475			bool last = nla_is_last(a, rem);
3476
3477			err = validate_and_copy_clone(net, a, key, sfa,
3478						      eth_type, vlan_tci,
3479						      mpls_label_count,
3480						      log, last, depth);
3481			if (err)
3482				return err;
3483			skip_copy = true;
3484			break;
3485		}
3486
3487		case OVS_ACTION_ATTR_CHECK_PKT_LEN: {
3488			bool last = nla_is_last(a, rem);
3489
3490			err = validate_and_copy_check_pkt_len(net, a, key, sfa,
3491							      eth_type,
3492							      vlan_tci,
3493							      mpls_label_count,
3494							      log, last,
3495							      depth);
3496			if (err)
3497				return err;
3498			skip_copy = true;
3499			break;
3500		}
3501
3502		case OVS_ACTION_ATTR_DEC_TTL:
3503			err = validate_and_copy_dec_ttl(net, a, key, sfa,
3504							eth_type, vlan_tci,
3505							mpls_label_count, log,
3506							depth);
3507			if (err)
3508				return err;
3509			skip_copy = true;
3510			break;
3511
3512		case OVS_ACTION_ATTR_DROP:
3513			if (!nla_is_last(a, rem))
3514				return -EINVAL;
3515			break;
3516
3517		case OVS_ACTION_ATTR_PSAMPLE:
3518			err = validate_psample(a);
3519			if (err)
3520				return err;
3521			break;
3522
3523		default:
3524			OVS_NLERR(log, "Unknown Action type %d", type);
3525			return -EINVAL;
3526		}
3527		if (!skip_copy) {
3528			err = copy_action(a, sfa, log);
3529			if (err)
3530				return err;
3531		}
3532	}
3533
3534	if (rem > 0)
3535		return -EINVAL;
3536
3537	return 0;
3538}
3539
3540/* 'key' must be the masked key. */
3541int ovs_nla_copy_actions(struct net *net, const struct nlattr *attr,
3542			 const struct sw_flow_key *key,
3543			 struct sw_flow_actions **sfa, bool log)
3544{
3545	int err;
3546	u32 mpls_label_count = 0;
3547
3548	*sfa = nla_alloc_flow_actions(min(nla_len(attr), MAX_ACTIONS_BUFSIZE));
3549	if (IS_ERR(*sfa))
3550		return PTR_ERR(*sfa);
3551
3552	if (eth_p_mpls(key->eth.type))
3553		mpls_label_count = hweight_long(key->mpls.num_labels_mask);
3554
3555	(*sfa)->orig_len = nla_len(attr);
3556	err = __ovs_nla_copy_actions(net, attr, key, sfa, key->eth.type,
3557				     key->eth.vlan.tci, mpls_label_count, log,
3558				     0);
3559	if (err)
3560		ovs_nla_free_flow_actions(*sfa);
3561
3562	return err;
3563}
3564
3565static int sample_action_to_attr(const struct nlattr *attr,
3566				 struct sk_buff *skb)
3567{
3568	struct nlattr *start, *ac_start = NULL, *sample_arg;
3569	int err = 0, rem = nla_len(attr);
3570	const struct sample_arg *arg;
3571	struct nlattr *actions;
3572
3573	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_SAMPLE);
3574	if (!start)
3575		return -EMSGSIZE;
3576
3577	sample_arg = nla_data(attr);
3578	arg = nla_data(sample_arg);
3579	actions = nla_next(sample_arg, &rem);
3580
3581	if (nla_put_u32(skb, OVS_SAMPLE_ATTR_PROBABILITY, arg->probability)) {
3582		err = -EMSGSIZE;
3583		goto out;
3584	}
3585
3586	ac_start = nla_nest_start_noflag(skb, OVS_SAMPLE_ATTR_ACTIONS);
3587	if (!ac_start) {
3588		err = -EMSGSIZE;
3589		goto out;
3590	}
3591
3592	err = ovs_nla_put_actions(actions, rem, skb);
3593
3594out:
3595	if (err) {
3596		nla_nest_cancel(skb, ac_start);
3597		nla_nest_cancel(skb, start);
3598	} else {
3599		nla_nest_end(skb, ac_start);
3600		nla_nest_end(skb, start);
3601	}
3602
3603	return err;
3604}
3605
3606static int clone_action_to_attr(const struct nlattr *attr,
3607				struct sk_buff *skb)
3608{
3609	struct nlattr *start;
3610	int err = 0, rem = nla_len(attr);
3611
3612	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_CLONE);
3613	if (!start)
3614		return -EMSGSIZE;
3615
3616	/* Skipping the OVS_CLONE_ATTR_EXEC that is always the first attribute. */
3617	attr = nla_next(nla_data(attr), &rem);
3618	err = ovs_nla_put_actions(attr, rem, skb);
3619
3620	if (err)
3621		nla_nest_cancel(skb, start);
3622	else
3623		nla_nest_end(skb, start);
3624
3625	return err;
3626}
3627
3628static int check_pkt_len_action_to_attr(const struct nlattr *attr,
3629					struct sk_buff *skb)
3630{
3631	struct nlattr *start, *ac_start = NULL;
3632	const struct check_pkt_len_arg *arg;
3633	const struct nlattr *a, *cpl_arg;
3634	int err = 0, rem = nla_len(attr);
3635
3636	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_CHECK_PKT_LEN);
3637	if (!start)
3638		return -EMSGSIZE;
3639
3640	/* The first nested attribute in 'attr' is always
3641	 * 'OVS_CHECK_PKT_LEN_ATTR_ARG'.
3642	 */
3643	cpl_arg = nla_data(attr);
3644	arg = nla_data(cpl_arg);
3645
3646	if (nla_put_u16(skb, OVS_CHECK_PKT_LEN_ATTR_PKT_LEN, arg->pkt_len)) {
3647		err = -EMSGSIZE;
3648		goto out;
3649	}
3650
3651	/* Second nested attribute in 'attr' is always
3652	 * 'OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL'.
3653	 */
3654	a = nla_next(cpl_arg, &rem);
3655	ac_start =  nla_nest_start_noflag(skb,
3656					  OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_LESS_EQUAL);
3657	if (!ac_start) {
3658		err = -EMSGSIZE;
3659		goto out;
3660	}
3661
3662	err = ovs_nla_put_actions(nla_data(a), nla_len(a), skb);
3663	if (err) {
3664		nla_nest_cancel(skb, ac_start);
3665		goto out;
3666	} else {
3667		nla_nest_end(skb, ac_start);
3668	}
3669
3670	/* Third nested attribute in 'attr' is always
3671	 * OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER.
3672	 */
3673	a = nla_next(a, &rem);
3674	ac_start =  nla_nest_start_noflag(skb,
3675					  OVS_CHECK_PKT_LEN_ATTR_ACTIONS_IF_GREATER);
3676	if (!ac_start) {
3677		err = -EMSGSIZE;
3678		goto out;
3679	}
3680
3681	err = ovs_nla_put_actions(nla_data(a), nla_len(a), skb);
3682	if (err) {
3683		nla_nest_cancel(skb, ac_start);
3684		goto out;
3685	} else {
3686		nla_nest_end(skb, ac_start);
3687	}
3688
3689	nla_nest_end(skb, start);
3690	return 0;
3691
3692out:
3693	nla_nest_cancel(skb, start);
3694	return err;
3695}
3696
3697static int dec_ttl_action_to_attr(const struct nlattr *attr,
3698				  struct sk_buff *skb)
3699{
3700	struct nlattr *start, *action_start;
3701	const struct nlattr *a;
3702	int err = 0, rem;
3703
3704	start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_DEC_TTL);
3705	if (!start)
3706		return -EMSGSIZE;
3707
3708	nla_for_each_attr(a, nla_data(attr), nla_len(attr), rem) {
3709		switch (nla_type(a)) {
3710		case OVS_DEC_TTL_ATTR_ACTION:
3711
3712			action_start = nla_nest_start_noflag(skb, OVS_DEC_TTL_ATTR_ACTION);
3713			if (!action_start) {
3714				err = -EMSGSIZE;
3715				goto out;
3716			}
3717
3718			err = ovs_nla_put_actions(nla_data(a), nla_len(a), skb);
3719			if (err)
3720				goto out;
3721
3722			nla_nest_end(skb, action_start);
3723			break;
3724
3725		default:
3726			/* Ignore all other option to be future compatible */
3727			break;
3728		}
3729	}
3730
3731	nla_nest_end(skb, start);
3732	return 0;
3733
3734out:
3735	nla_nest_cancel(skb, start);
3736	return err;
3737}
3738
3739static int set_action_to_attr(const struct nlattr *a, struct sk_buff *skb)
3740{
3741	const struct nlattr *ovs_key = nla_data(a);
3742	int key_type = nla_type(ovs_key);
3743	struct nlattr *start;
3744	int err;
3745
3746	switch (key_type) {
3747	case OVS_KEY_ATTR_TUNNEL_INFO: {
3748		struct ovs_tunnel_info *ovs_tun = nla_data(ovs_key);
3749		struct ip_tunnel_info *tun_info = &ovs_tun->tun_dst->u.tun_info;
3750
3751		start = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_SET);
3752		if (!start)
3753			return -EMSGSIZE;
3754
3755		err =  ip_tun_to_nlattr(skb, &tun_info->key,
3756					ip_tunnel_info_opts(tun_info),
3757					tun_info->options_len,
3758					ip_tunnel_info_af(tun_info), tun_info->mode);
3759		if (err)
3760			return err;
3761		nla_nest_end(skb, start);
3762		break;
3763	}
3764	default:
3765		if (nla_put(skb, OVS_ACTION_ATTR_SET, nla_len(a), ovs_key))
3766			return -EMSGSIZE;
3767		break;
3768	}
3769
3770	return 0;
3771}
3772
3773static int masked_set_action_to_set_action_attr(const struct nlattr *a,
3774						struct sk_buff *skb)
3775{
3776	const struct nlattr *ovs_key = nla_data(a);
3777	struct nlattr *nla;
3778	size_t key_len = nla_len(ovs_key) / 2;
3779
3780	/* Revert the conversion we did from a non-masked set action to
3781	 * masked set action.
3782	 */
3783	nla = nla_nest_start_noflag(skb, OVS_ACTION_ATTR_SET);
3784	if (!nla)
3785		return -EMSGSIZE;
3786
3787	if (nla_put(skb, nla_type(ovs_key), key_len, nla_data(ovs_key)))
3788		return -EMSGSIZE;
3789
3790	nla_nest_end(skb, nla);
3791	return 0;
3792}
3793
3794int ovs_nla_put_actions(const struct nlattr *attr, int len, struct sk_buff *skb)
3795{
3796	const struct nlattr *a;
3797	int rem, err;
3798
3799	nla_for_each_attr(a, attr, len, rem) {
3800		int type = nla_type(a);
3801
3802		switch (type) {
3803		case OVS_ACTION_ATTR_SET:
3804			err = set_action_to_attr(a, skb);
3805			if (err)
3806				return err;
3807			break;
3808
3809		case OVS_ACTION_ATTR_SET_TO_MASKED:
3810			err = masked_set_action_to_set_action_attr(a, skb);
3811			if (err)
3812				return err;
3813			break;
3814
3815		case OVS_ACTION_ATTR_SAMPLE:
3816			err = sample_action_to_attr(a, skb);
3817			if (err)
3818				return err;
3819			break;
3820
3821		case OVS_ACTION_ATTR_CT:
3822			err = ovs_ct_action_to_attr(nla_data(a), skb);
3823			if (err)
3824				return err;
3825			break;
3826
3827		case OVS_ACTION_ATTR_CLONE:
3828			err = clone_action_to_attr(a, skb);
3829			if (err)
3830				return err;
3831			break;
3832
3833		case OVS_ACTION_ATTR_CHECK_PKT_LEN:
3834			err = check_pkt_len_action_to_attr(a, skb);
3835			if (err)
3836				return err;
3837			break;
3838
3839		case OVS_ACTION_ATTR_DEC_TTL:
3840			err = dec_ttl_action_to_attr(a, skb);
3841			if (err)
3842				return err;
3843			break;
3844
3845		default:
3846			if (nla_put(skb, type, nla_len(a), nla_data(a)))
3847				return -EMSGSIZE;
3848			break;
3849		}
3850	}
3851
3852	return 0;
3853}