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   1// SPDX-License-Identifier: GPL-2.0
   2/*  Atheros AR71xx built-in ethernet mac driver
   3 *
   4 *  Copyright (C) 2019 Oleksij Rempel <o.rempel@pengutronix.de>
   5 *
   6 *  List of authors contributed to this driver before mainlining:
   7 *  Alexander Couzens <lynxis@fe80.eu>
   8 *  Christian Lamparter <chunkeey@gmail.com>
   9 *  Chuanhong Guo <gch981213@gmail.com>
  10 *  Daniel F. Dickinson <cshored@thecshore.com>
  11 *  David Bauer <mail@david-bauer.net>
  12 *  Felix Fietkau <nbd@nbd.name>
  13 *  Gabor Juhos <juhosg@freemail.hu>
  14 *  Hauke Mehrtens <hauke@hauke-m.de>
  15 *  Johann Neuhauser <johann@it-neuhauser.de>
  16 *  John Crispin <john@phrozen.org>
  17 *  Jo-Philipp Wich <jo@mein.io>
  18 *  Koen Vandeputte <koen.vandeputte@ncentric.com>
  19 *  Lucian Cristian <lucian.cristian@gmail.com>
  20 *  Matt Merhar <mattmerhar@protonmail.com>
  21 *  Milan Krstic <milan.krstic@gmail.com>
  22 *  Petr Štetiar <ynezz@true.cz>
  23 *  Rosen Penev <rosenp@gmail.com>
  24 *  Stephen Walker <stephendwalker+github@gmail.com>
  25 *  Vittorio Gambaletta <openwrt@vittgam.net>
  26 *  Weijie Gao <hackpascal@gmail.com>
  27 *  Imre Kaloz <kaloz@openwrt.org>
  28 */
  29
  30#include <linux/if_vlan.h>
  31#include <linux/mfd/syscon.h>
  32#include <linux/of_mdio.h>
  33#include <linux/of_net.h>
  34#include <linux/of_platform.h>
  35#include <linux/phylink.h>
  36#include <linux/regmap.h>
  37#include <linux/reset.h>
  38#include <linux/clk.h>
  39#include <linux/io.h>
  40#include <net/selftests.h>
  41
  42/* For our NAPI weight bigger does *NOT* mean better - it means more
  43 * D-cache misses and lots more wasted cycles than we'll ever
  44 * possibly gain from saving instructions.
  45 */
  46#define AG71XX_NAPI_WEIGHT	32
  47#define AG71XX_OOM_REFILL	(1 + HZ / 10)
  48
  49#define AG71XX_INT_ERR	(AG71XX_INT_RX_BE | AG71XX_INT_TX_BE)
  50#define AG71XX_INT_TX	(AG71XX_INT_TX_PS)
  51#define AG71XX_INT_RX	(AG71XX_INT_RX_PR | AG71XX_INT_RX_OF)
  52
  53#define AG71XX_INT_POLL	(AG71XX_INT_RX | AG71XX_INT_TX)
  54#define AG71XX_INT_INIT	(AG71XX_INT_ERR | AG71XX_INT_POLL)
  55
  56#define AG71XX_TX_MTU_LEN	1540
  57
  58#define AG71XX_TX_RING_SPLIT		512
  59#define AG71XX_TX_RING_DS_PER_PKT	DIV_ROUND_UP(AG71XX_TX_MTU_LEN, \
  60						     AG71XX_TX_RING_SPLIT)
  61#define AG71XX_TX_RING_SIZE_DEFAULT	128
  62#define AG71XX_RX_RING_SIZE_DEFAULT	256
  63
  64#define AG71XX_MDIO_RETRY	1000
  65#define AG71XX_MDIO_DELAY	5
  66#define AG71XX_MDIO_MAX_CLK	5000000
  67
  68/* Register offsets */
  69#define AG71XX_REG_MAC_CFG1	0x0000
  70#define MAC_CFG1_TXE		BIT(0)	/* Tx Enable */
  71#define MAC_CFG1_STX		BIT(1)	/* Synchronize Tx Enable */
  72#define MAC_CFG1_RXE		BIT(2)	/* Rx Enable */
  73#define MAC_CFG1_SRX		BIT(3)	/* Synchronize Rx Enable */
  74#define MAC_CFG1_TFC		BIT(4)	/* Tx Flow Control Enable */
  75#define MAC_CFG1_RFC		BIT(5)	/* Rx Flow Control Enable */
  76#define MAC_CFG1_SR		BIT(31)	/* Soft Reset */
  77#define MAC_CFG1_INIT	(MAC_CFG1_RXE | MAC_CFG1_TXE | \
  78			 MAC_CFG1_SRX | MAC_CFG1_STX)
  79
  80#define AG71XX_REG_MAC_CFG2	0x0004
  81#define MAC_CFG2_FDX		BIT(0)
  82#define MAC_CFG2_PAD_CRC_EN	BIT(2)
  83#define MAC_CFG2_LEN_CHECK	BIT(4)
  84#define MAC_CFG2_IF_1000	BIT(9)
  85#define MAC_CFG2_IF_10_100	BIT(8)
  86
  87#define AG71XX_REG_MAC_MFL	0x0010
  88
  89#define AG71XX_REG_MII_CFG	0x0020
  90#define MII_CFG_CLK_DIV_4	0
  91#define MII_CFG_CLK_DIV_6	2
  92#define MII_CFG_CLK_DIV_8	3
  93#define MII_CFG_CLK_DIV_10	4
  94#define MII_CFG_CLK_DIV_14	5
  95#define MII_CFG_CLK_DIV_20	6
  96#define MII_CFG_CLK_DIV_28	7
  97#define MII_CFG_CLK_DIV_34	8
  98#define MII_CFG_CLK_DIV_42	9
  99#define MII_CFG_CLK_DIV_50	10
 100#define MII_CFG_CLK_DIV_58	11
 101#define MII_CFG_CLK_DIV_66	12
 102#define MII_CFG_CLK_DIV_74	13
 103#define MII_CFG_CLK_DIV_82	14
 104#define MII_CFG_CLK_DIV_98	15
 105#define MII_CFG_RESET		BIT(31)
 106
 107#define AG71XX_REG_MII_CMD	0x0024
 108#define MII_CMD_READ		BIT(0)
 109
 110#define AG71XX_REG_MII_ADDR	0x0028
 111#define MII_ADDR_SHIFT		8
 112
 113#define AG71XX_REG_MII_CTRL	0x002c
 114#define AG71XX_REG_MII_STATUS	0x0030
 115#define AG71XX_REG_MII_IND	0x0034
 116#define MII_IND_BUSY		BIT(0)
 117#define MII_IND_INVALID		BIT(2)
 118
 119#define AG71XX_REG_MAC_IFCTL	0x0038
 120#define MAC_IFCTL_SPEED		BIT(16)
 121
 122#define AG71XX_REG_MAC_ADDR1	0x0040
 123#define AG71XX_REG_MAC_ADDR2	0x0044
 124#define AG71XX_REG_FIFO_CFG0	0x0048
 125#define FIFO_CFG0_WTM		BIT(0)	/* Watermark Module */
 126#define FIFO_CFG0_RXS		BIT(1)	/* Rx System Module */
 127#define FIFO_CFG0_RXF		BIT(2)	/* Rx Fabric Module */
 128#define FIFO_CFG0_TXS		BIT(3)	/* Tx System Module */
 129#define FIFO_CFG0_TXF		BIT(4)	/* Tx Fabric Module */
 130#define FIFO_CFG0_ALL	(FIFO_CFG0_WTM | FIFO_CFG0_RXS | FIFO_CFG0_RXF \
 131			| FIFO_CFG0_TXS | FIFO_CFG0_TXF)
 132#define FIFO_CFG0_INIT	(FIFO_CFG0_ALL << FIFO_CFG0_ENABLE_SHIFT)
 133
 134#define FIFO_CFG0_ENABLE_SHIFT	8
 135
 136#define AG71XX_REG_FIFO_CFG1	0x004c
 137#define AG71XX_REG_FIFO_CFG2	0x0050
 138#define AG71XX_REG_FIFO_CFG3	0x0054
 139#define AG71XX_REG_FIFO_CFG4	0x0058
 140#define FIFO_CFG4_DE		BIT(0)	/* Drop Event */
 141#define FIFO_CFG4_DV		BIT(1)	/* RX_DV Event */
 142#define FIFO_CFG4_FC		BIT(2)	/* False Carrier */
 143#define FIFO_CFG4_CE		BIT(3)	/* Code Error */
 144#define FIFO_CFG4_CR		BIT(4)	/* CRC error */
 145#define FIFO_CFG4_LM		BIT(5)	/* Length Mismatch */
 146#define FIFO_CFG4_LO		BIT(6)	/* Length out of range */
 147#define FIFO_CFG4_OK		BIT(7)	/* Packet is OK */
 148#define FIFO_CFG4_MC		BIT(8)	/* Multicast Packet */
 149#define FIFO_CFG4_BC		BIT(9)	/* Broadcast Packet */
 150#define FIFO_CFG4_DR		BIT(10)	/* Dribble */
 151#define FIFO_CFG4_LE		BIT(11)	/* Long Event */
 152#define FIFO_CFG4_CF		BIT(12)	/* Control Frame */
 153#define FIFO_CFG4_PF		BIT(13)	/* Pause Frame */
 154#define FIFO_CFG4_UO		BIT(14)	/* Unsupported Opcode */
 155#define FIFO_CFG4_VT		BIT(15)	/* VLAN tag detected */
 156#define FIFO_CFG4_FT		BIT(16)	/* Frame Truncated */
 157#define FIFO_CFG4_UC		BIT(17)	/* Unicast Packet */
 158#define FIFO_CFG4_INIT	(FIFO_CFG4_DE | FIFO_CFG4_DV | FIFO_CFG4_FC | \
 159			 FIFO_CFG4_CE | FIFO_CFG4_CR | FIFO_CFG4_LM | \
 160			 FIFO_CFG4_LO | FIFO_CFG4_OK | FIFO_CFG4_MC | \
 161			 FIFO_CFG4_BC | FIFO_CFG4_DR | FIFO_CFG4_LE | \
 162			 FIFO_CFG4_CF | FIFO_CFG4_PF | FIFO_CFG4_UO | \
 163			 FIFO_CFG4_VT)
 164
 165#define AG71XX_REG_FIFO_CFG5	0x005c
 166#define FIFO_CFG5_DE		BIT(0)	/* Drop Event */
 167#define FIFO_CFG5_DV		BIT(1)	/* RX_DV Event */
 168#define FIFO_CFG5_FC		BIT(2)	/* False Carrier */
 169#define FIFO_CFG5_CE		BIT(3)	/* Code Error */
 170#define FIFO_CFG5_LM		BIT(4)	/* Length Mismatch */
 171#define FIFO_CFG5_LO		BIT(5)	/* Length Out of Range */
 172#define FIFO_CFG5_OK		BIT(6)	/* Packet is OK */
 173#define FIFO_CFG5_MC		BIT(7)	/* Multicast Packet */
 174#define FIFO_CFG5_BC		BIT(8)	/* Broadcast Packet */
 175#define FIFO_CFG5_DR		BIT(9)	/* Dribble */
 176#define FIFO_CFG5_CF		BIT(10)	/* Control Frame */
 177#define FIFO_CFG5_PF		BIT(11)	/* Pause Frame */
 178#define FIFO_CFG5_UO		BIT(12)	/* Unsupported Opcode */
 179#define FIFO_CFG5_VT		BIT(13)	/* VLAN tag detected */
 180#define FIFO_CFG5_LE		BIT(14)	/* Long Event */
 181#define FIFO_CFG5_FT		BIT(15)	/* Frame Truncated */
 182#define FIFO_CFG5_16		BIT(16)	/* unknown */
 183#define FIFO_CFG5_17		BIT(17)	/* unknown */
 184#define FIFO_CFG5_SF		BIT(18)	/* Short Frame */
 185#define FIFO_CFG5_BM		BIT(19)	/* Byte Mode */
 186#define FIFO_CFG5_INIT	(FIFO_CFG5_DE | FIFO_CFG5_DV | FIFO_CFG5_FC | \
 187			 FIFO_CFG5_CE | FIFO_CFG5_LO | FIFO_CFG5_OK | \
 188			 FIFO_CFG5_MC | FIFO_CFG5_BC | FIFO_CFG5_DR | \
 189			 FIFO_CFG5_CF | FIFO_CFG5_PF | FIFO_CFG5_VT | \
 190			 FIFO_CFG5_LE | FIFO_CFG5_FT | FIFO_CFG5_16 | \
 191			 FIFO_CFG5_17 | FIFO_CFG5_SF)
 192
 193#define AG71XX_REG_TX_CTRL	0x0180
 194#define TX_CTRL_TXE		BIT(0)	/* Tx Enable */
 195
 196#define AG71XX_REG_TX_DESC	0x0184
 197#define AG71XX_REG_TX_STATUS	0x0188
 198#define TX_STATUS_PS		BIT(0)	/* Packet Sent */
 199#define TX_STATUS_UR		BIT(1)	/* Tx Underrun */
 200#define TX_STATUS_BE		BIT(3)	/* Bus Error */
 201
 202#define AG71XX_REG_RX_CTRL	0x018c
 203#define RX_CTRL_RXE		BIT(0)	/* Rx Enable */
 204
 205#define AG71XX_DMA_RETRY	10
 206#define AG71XX_DMA_DELAY	1
 207
 208#define AG71XX_REG_RX_DESC	0x0190
 209#define AG71XX_REG_RX_STATUS	0x0194
 210#define RX_STATUS_PR		BIT(0)	/* Packet Received */
 211#define RX_STATUS_OF		BIT(2)	/* Rx Overflow */
 212#define RX_STATUS_BE		BIT(3)	/* Bus Error */
 213
 214#define AG71XX_REG_INT_ENABLE	0x0198
 215#define AG71XX_REG_INT_STATUS	0x019c
 216#define AG71XX_INT_TX_PS	BIT(0)
 217#define AG71XX_INT_TX_UR	BIT(1)
 218#define AG71XX_INT_TX_BE	BIT(3)
 219#define AG71XX_INT_RX_PR	BIT(4)
 220#define AG71XX_INT_RX_OF	BIT(6)
 221#define AG71XX_INT_RX_BE	BIT(7)
 222
 223#define AG71XX_REG_FIFO_DEPTH	0x01a8
 224#define AG71XX_REG_RX_SM	0x01b0
 225#define AG71XX_REG_TX_SM	0x01b4
 226
 227#define AG71XX_DEFAULT_MSG_ENABLE	\
 228	(NETIF_MSG_DRV			\
 229	| NETIF_MSG_PROBE		\
 230	| NETIF_MSG_LINK		\
 231	| NETIF_MSG_TIMER		\
 232	| NETIF_MSG_IFDOWN		\
 233	| NETIF_MSG_IFUP		\
 234	| NETIF_MSG_RX_ERR		\
 235	| NETIF_MSG_TX_ERR)
 236
 237struct ag71xx_statistic {
 238	unsigned short offset;
 239	u32 mask;
 240	const char name[ETH_GSTRING_LEN];
 241};
 242
 243static const struct ag71xx_statistic ag71xx_statistics[] = {
 244	{ 0x0080, GENMASK(17, 0), "Tx/Rx 64 Byte", },
 245	{ 0x0084, GENMASK(17, 0), "Tx/Rx 65-127 Byte", },
 246	{ 0x0088, GENMASK(17, 0), "Tx/Rx 128-255 Byte", },
 247	{ 0x008C, GENMASK(17, 0), "Tx/Rx 256-511 Byte", },
 248	{ 0x0090, GENMASK(17, 0), "Tx/Rx 512-1023 Byte", },
 249	{ 0x0094, GENMASK(17, 0), "Tx/Rx 1024-1518 Byte", },
 250	{ 0x0098, GENMASK(17, 0), "Tx/Rx 1519-1522 Byte VLAN", },
 251	{ 0x009C, GENMASK(23, 0), "Rx Byte", },
 252	{ 0x00A0, GENMASK(17, 0), "Rx Packet", },
 253	{ 0x00A4, GENMASK(11, 0), "Rx FCS Error", },
 254	{ 0x00A8, GENMASK(17, 0), "Rx Multicast Packet", },
 255	{ 0x00AC, GENMASK(21, 0), "Rx Broadcast Packet", },
 256	{ 0x00B0, GENMASK(17, 0), "Rx Control Frame Packet", },
 257	{ 0x00B4, GENMASK(11, 0), "Rx Pause Frame Packet", },
 258	{ 0x00B8, GENMASK(11, 0), "Rx Unknown OPCode Packet", },
 259	{ 0x00BC, GENMASK(11, 0), "Rx Alignment Error", },
 260	{ 0x00C0, GENMASK(15, 0), "Rx Frame Length Error", },
 261	{ 0x00C4, GENMASK(11, 0), "Rx Code Error", },
 262	{ 0x00C8, GENMASK(11, 0), "Rx Carrier Sense Error", },
 263	{ 0x00CC, GENMASK(11, 0), "Rx Undersize Packet", },
 264	{ 0x00D0, GENMASK(11, 0), "Rx Oversize Packet", },
 265	{ 0x00D4, GENMASK(11, 0), "Rx Fragments", },
 266	{ 0x00D8, GENMASK(11, 0), "Rx Jabber", },
 267	{ 0x00DC, GENMASK(11, 0), "Rx Dropped Packet", },
 268	{ 0x00E0, GENMASK(23, 0), "Tx Byte", },
 269	{ 0x00E4, GENMASK(17, 0), "Tx Packet", },
 270	{ 0x00E8, GENMASK(17, 0), "Tx Multicast Packet", },
 271	{ 0x00EC, GENMASK(17, 0), "Tx Broadcast Packet", },
 272	{ 0x00F0, GENMASK(11, 0), "Tx Pause Control Frame", },
 273	{ 0x00F4, GENMASK(11, 0), "Tx Deferral Packet", },
 274	{ 0x00F8, GENMASK(11, 0), "Tx Excessive Deferral Packet", },
 275	{ 0x00FC, GENMASK(11, 0), "Tx Single Collision Packet", },
 276	{ 0x0100, GENMASK(11, 0), "Tx Multiple Collision", },
 277	{ 0x0104, GENMASK(11, 0), "Tx Late Collision Packet", },
 278	{ 0x0108, GENMASK(11, 0), "Tx Excessive Collision Packet", },
 279	{ 0x010C, GENMASK(12, 0), "Tx Total Collision", },
 280	{ 0x0110, GENMASK(11, 0), "Tx Pause Frames Honored", },
 281	{ 0x0114, GENMASK(11, 0), "Tx Drop Frame", },
 282	{ 0x0118, GENMASK(11, 0), "Tx Jabber Frame", },
 283	{ 0x011C, GENMASK(11, 0), "Tx FCS Error", },
 284	{ 0x0120, GENMASK(11, 0), "Tx Control Frame", },
 285	{ 0x0124, GENMASK(11, 0), "Tx Oversize Frame", },
 286	{ 0x0128, GENMASK(11, 0), "Tx Undersize Frame", },
 287	{ 0x012C, GENMASK(11, 0), "Tx Fragment", },
 288};
 289
 290#define DESC_EMPTY		BIT(31)
 291#define DESC_MORE		BIT(24)
 292#define DESC_PKTLEN_M		0xfff
 293struct ag71xx_desc {
 294	u32 data;
 295	u32 ctrl;
 296	u32 next;
 297	u32 pad;
 298} __aligned(4);
 299
 300#define AG71XX_DESC_SIZE	roundup(sizeof(struct ag71xx_desc), \
 301					L1_CACHE_BYTES)
 302
 303struct ag71xx_buf {
 304	union {
 305		struct {
 306			struct sk_buff *skb;
 307			unsigned int len;
 308		} tx;
 309		struct {
 310			dma_addr_t dma_addr;
 311			void *rx_buf;
 312		} rx;
 313	};
 314};
 315
 316struct ag71xx_ring {
 317	/* "Hot" fields in the data path. */
 318	unsigned int curr;
 319	unsigned int dirty;
 320
 321	/* "Cold" fields - not used in the data path. */
 322	struct ag71xx_buf *buf;
 323	u16 order;
 324	u16 desc_split;
 325	dma_addr_t descs_dma;
 326	u8 *descs_cpu;
 327};
 328
 329enum ag71xx_type {
 330	AR7100,
 331	AR7240,
 332	AR9130,
 333	AR9330,
 334	AR9340,
 335	QCA9530,
 336	QCA9550,
 337};
 338
 339struct ag71xx_dcfg {
 340	u32 max_frame_len;
 341	const u32 *fifodata;
 342	u16 desc_pktlen_mask;
 343	bool tx_hang_workaround;
 344	enum ag71xx_type type;
 345};
 346
 347struct ag71xx {
 348	/* Critical data related to the per-packet data path are clustered
 349	 * early in this structure to help improve the D-cache footprint.
 350	 */
 351	struct ag71xx_ring rx_ring ____cacheline_aligned;
 352	struct ag71xx_ring tx_ring ____cacheline_aligned;
 353
 354	u16 rx_buf_size;
 355	u8 rx_buf_offset;
 356
 357	struct net_device *ndev;
 358	struct platform_device *pdev;
 359	struct napi_struct napi;
 360	u32 msg_enable;
 361	const struct ag71xx_dcfg *dcfg;
 362
 363	/* From this point onwards we're not looking at per-packet fields. */
 364	void __iomem *mac_base;
 365
 366	struct ag71xx_desc *stop_desc;
 367	dma_addr_t stop_desc_dma;
 368
 369	phy_interface_t phy_if_mode;
 370	struct phylink *phylink;
 371	struct phylink_config phylink_config;
 372
 373	struct delayed_work restart_work;
 374	struct timer_list oom_timer;
 375
 376	struct reset_control *mac_reset;
 377
 378	u32 fifodata[3];
 379	int mac_idx;
 380
 381	struct reset_control *mdio_reset;
 382	struct mii_bus *mii_bus;
 383	struct clk *clk_mdio;
 384	struct clk *clk_eth;
 385};
 386
 387static int ag71xx_desc_empty(struct ag71xx_desc *desc)
 388{
 389	return (desc->ctrl & DESC_EMPTY) != 0;
 390}
 391
 392static struct ag71xx_desc *ag71xx_ring_desc(struct ag71xx_ring *ring, int idx)
 393{
 394	return (struct ag71xx_desc *)&ring->descs_cpu[idx * AG71XX_DESC_SIZE];
 395}
 396
 397static int ag71xx_ring_size_order(int size)
 398{
 399	return fls(size - 1);
 400}
 401
 402static bool ag71xx_is(struct ag71xx *ag, enum ag71xx_type type)
 403{
 404	return ag->dcfg->type == type;
 405}
 406
 407static void ag71xx_wr(struct ag71xx *ag, unsigned int reg, u32 value)
 408{
 409	iowrite32(value, ag->mac_base + reg);
 410	/* flush write */
 411	(void)ioread32(ag->mac_base + reg);
 412}
 413
 414static u32 ag71xx_rr(struct ag71xx *ag, unsigned int reg)
 415{
 416	return ioread32(ag->mac_base + reg);
 417}
 418
 419static void ag71xx_sb(struct ag71xx *ag, unsigned int reg, u32 mask)
 420{
 421	void __iomem *r;
 422
 423	r = ag->mac_base + reg;
 424	iowrite32(ioread32(r) | mask, r);
 425	/* flush write */
 426	(void)ioread32(r);
 427}
 428
 429static void ag71xx_cb(struct ag71xx *ag, unsigned int reg, u32 mask)
 430{
 431	void __iomem *r;
 432
 433	r = ag->mac_base + reg;
 434	iowrite32(ioread32(r) & ~mask, r);
 435	/* flush write */
 436	(void)ioread32(r);
 437}
 438
 439static void ag71xx_int_enable(struct ag71xx *ag, u32 ints)
 440{
 441	ag71xx_sb(ag, AG71XX_REG_INT_ENABLE, ints);
 442}
 443
 444static void ag71xx_int_disable(struct ag71xx *ag, u32 ints)
 445{
 446	ag71xx_cb(ag, AG71XX_REG_INT_ENABLE, ints);
 447}
 448
 449static void ag71xx_get_drvinfo(struct net_device *ndev,
 450			       struct ethtool_drvinfo *info)
 451{
 452	struct ag71xx *ag = netdev_priv(ndev);
 453
 454	strlcpy(info->driver, "ag71xx", sizeof(info->driver));
 455	strlcpy(info->bus_info, of_node_full_name(ag->pdev->dev.of_node),
 456		sizeof(info->bus_info));
 457}
 458
 459static int ag71xx_get_link_ksettings(struct net_device *ndev,
 460				   struct ethtool_link_ksettings *kset)
 461{
 462	struct ag71xx *ag = netdev_priv(ndev);
 463
 464	return phylink_ethtool_ksettings_get(ag->phylink, kset);
 465}
 466
 467static int ag71xx_set_link_ksettings(struct net_device *ndev,
 468				   const struct ethtool_link_ksettings *kset)
 469{
 470	struct ag71xx *ag = netdev_priv(ndev);
 471
 472	return phylink_ethtool_ksettings_set(ag->phylink, kset);
 473}
 474
 475static int ag71xx_ethtool_nway_reset(struct net_device *ndev)
 476{
 477	struct ag71xx *ag = netdev_priv(ndev);
 478
 479	return phylink_ethtool_nway_reset(ag->phylink);
 480}
 481
 482static void ag71xx_ethtool_get_pauseparam(struct net_device *ndev,
 483					  struct ethtool_pauseparam *pause)
 484{
 485	struct ag71xx *ag = netdev_priv(ndev);
 486
 487	phylink_ethtool_get_pauseparam(ag->phylink, pause);
 488}
 489
 490static int ag71xx_ethtool_set_pauseparam(struct net_device *ndev,
 491					 struct ethtool_pauseparam *pause)
 492{
 493	struct ag71xx *ag = netdev_priv(ndev);
 494
 495	return phylink_ethtool_set_pauseparam(ag->phylink, pause);
 496}
 497
 498static void ag71xx_ethtool_get_strings(struct net_device *netdev, u32 sset,
 499				       u8 *data)
 500{
 501	int i;
 502
 503	switch (sset) {
 504	case ETH_SS_STATS:
 505		for (i = 0; i < ARRAY_SIZE(ag71xx_statistics); i++)
 506			memcpy(data + i * ETH_GSTRING_LEN,
 507			       ag71xx_statistics[i].name, ETH_GSTRING_LEN);
 508		break;
 509	case ETH_SS_TEST:
 510		net_selftest_get_strings(data);
 511		break;
 512	}
 513}
 514
 515static void ag71xx_ethtool_get_stats(struct net_device *ndev,
 516				     struct ethtool_stats *stats, u64 *data)
 517{
 518	struct ag71xx *ag = netdev_priv(ndev);
 519	int i;
 520
 521	for (i = 0; i < ARRAY_SIZE(ag71xx_statistics); i++)
 522		*data++ = ag71xx_rr(ag, ag71xx_statistics[i].offset)
 523				& ag71xx_statistics[i].mask;
 524}
 525
 526static int ag71xx_ethtool_get_sset_count(struct net_device *ndev, int sset)
 527{
 528	switch (sset) {
 529	case ETH_SS_STATS:
 530		return ARRAY_SIZE(ag71xx_statistics);
 531	case ETH_SS_TEST:
 532		return net_selftest_get_count();
 533	default:
 534		return -EOPNOTSUPP;
 535	}
 536}
 537
 538static const struct ethtool_ops ag71xx_ethtool_ops = {
 539	.get_drvinfo			= ag71xx_get_drvinfo,
 540	.get_link			= ethtool_op_get_link,
 541	.get_ts_info			= ethtool_op_get_ts_info,
 542	.get_link_ksettings		= ag71xx_get_link_ksettings,
 543	.set_link_ksettings		= ag71xx_set_link_ksettings,
 544	.nway_reset			= ag71xx_ethtool_nway_reset,
 545	.get_pauseparam			= ag71xx_ethtool_get_pauseparam,
 546	.set_pauseparam			= ag71xx_ethtool_set_pauseparam,
 547	.get_strings			= ag71xx_ethtool_get_strings,
 548	.get_ethtool_stats		= ag71xx_ethtool_get_stats,
 549	.get_sset_count			= ag71xx_ethtool_get_sset_count,
 550	.self_test			= net_selftest,
 551};
 552
 553static int ag71xx_mdio_wait_busy(struct ag71xx *ag)
 554{
 555	struct net_device *ndev = ag->ndev;
 556	int i;
 557
 558	for (i = 0; i < AG71XX_MDIO_RETRY; i++) {
 559		u32 busy;
 560
 561		udelay(AG71XX_MDIO_DELAY);
 562
 563		busy = ag71xx_rr(ag, AG71XX_REG_MII_IND);
 564		if (!busy)
 565			return 0;
 566
 567		udelay(AG71XX_MDIO_DELAY);
 568	}
 569
 570	netif_err(ag, link, ndev, "MDIO operation timed out\n");
 571
 572	return -ETIMEDOUT;
 573}
 574
 575static int ag71xx_mdio_mii_read(struct mii_bus *bus, int addr, int reg)
 576{
 577	struct ag71xx *ag = bus->priv;
 578	int err, val;
 579
 580	err = ag71xx_mdio_wait_busy(ag);
 581	if (err)
 582		return err;
 583
 584	ag71xx_wr(ag, AG71XX_REG_MII_ADDR,
 585		  ((addr & 0x1f) << MII_ADDR_SHIFT) | (reg & 0xff));
 586	/* enable read mode */
 587	ag71xx_wr(ag, AG71XX_REG_MII_CMD, MII_CMD_READ);
 588
 589	err = ag71xx_mdio_wait_busy(ag);
 590	if (err)
 591		return err;
 592
 593	val = ag71xx_rr(ag, AG71XX_REG_MII_STATUS);
 594	/* disable read mode */
 595	ag71xx_wr(ag, AG71XX_REG_MII_CMD, 0);
 596
 597	netif_dbg(ag, link, ag->ndev, "mii_read: addr=%04x, reg=%04x, value=%04x\n",
 598		  addr, reg, val);
 599
 600	return val;
 601}
 602
 603static int ag71xx_mdio_mii_write(struct mii_bus *bus, int addr, int reg,
 604				 u16 val)
 605{
 606	struct ag71xx *ag = bus->priv;
 607
 608	netif_dbg(ag, link, ag->ndev, "mii_write: addr=%04x, reg=%04x, value=%04x\n",
 609		  addr, reg, val);
 610
 611	ag71xx_wr(ag, AG71XX_REG_MII_ADDR,
 612		  ((addr & 0x1f) << MII_ADDR_SHIFT) | (reg & 0xff));
 613	ag71xx_wr(ag, AG71XX_REG_MII_CTRL, val);
 614
 615	return ag71xx_mdio_wait_busy(ag);
 616}
 617
 618static const u32 ar71xx_mdio_div_table[] = {
 619	4, 4, 6, 8, 10, 14, 20, 28,
 620};
 621
 622static const u32 ar7240_mdio_div_table[] = {
 623	2, 2, 4, 6, 8, 12, 18, 26, 32, 40, 48, 56, 62, 70, 78, 96,
 624};
 625
 626static const u32 ar933x_mdio_div_table[] = {
 627	4, 4, 6, 8, 10, 14, 20, 28, 34, 42, 50, 58, 66, 74, 82, 98,
 628};
 629
 630static int ag71xx_mdio_get_divider(struct ag71xx *ag, u32 *div)
 631{
 632	unsigned long ref_clock;
 633	const u32 *table;
 634	int ndivs, i;
 635
 636	ref_clock = clk_get_rate(ag->clk_mdio);
 637	if (!ref_clock)
 638		return -EINVAL;
 639
 640	if (ag71xx_is(ag, AR9330) || ag71xx_is(ag, AR9340)) {
 641		table = ar933x_mdio_div_table;
 642		ndivs = ARRAY_SIZE(ar933x_mdio_div_table);
 643	} else if (ag71xx_is(ag, AR7240)) {
 644		table = ar7240_mdio_div_table;
 645		ndivs = ARRAY_SIZE(ar7240_mdio_div_table);
 646	} else {
 647		table = ar71xx_mdio_div_table;
 648		ndivs = ARRAY_SIZE(ar71xx_mdio_div_table);
 649	}
 650
 651	for (i = 0; i < ndivs; i++) {
 652		unsigned long t;
 653
 654		t = ref_clock / table[i];
 655		if (t <= AG71XX_MDIO_MAX_CLK) {
 656			*div = i;
 657			return 0;
 658		}
 659	}
 660
 661	return -ENOENT;
 662}
 663
 664static int ag71xx_mdio_reset(struct mii_bus *bus)
 665{
 666	struct ag71xx *ag = bus->priv;
 667	int err;
 668	u32 t;
 669
 670	err = ag71xx_mdio_get_divider(ag, &t);
 671	if (err)
 672		return err;
 673
 674	ag71xx_wr(ag, AG71XX_REG_MII_CFG, t | MII_CFG_RESET);
 675	usleep_range(100, 200);
 676
 677	ag71xx_wr(ag, AG71XX_REG_MII_CFG, t);
 678	usleep_range(100, 200);
 679
 680	return 0;
 681}
 682
 683static int ag71xx_mdio_probe(struct ag71xx *ag)
 684{
 685	struct device *dev = &ag->pdev->dev;
 686	struct net_device *ndev = ag->ndev;
 687	static struct mii_bus *mii_bus;
 688	struct device_node *np, *mnp;
 689	int err;
 690
 691	np = dev->of_node;
 692	ag->mii_bus = NULL;
 693
 694	ag->clk_mdio = devm_clk_get(dev, "mdio");
 695	if (IS_ERR(ag->clk_mdio)) {
 696		netif_err(ag, probe, ndev, "Failed to get mdio clk.\n");
 697		return PTR_ERR(ag->clk_mdio);
 698	}
 699
 700	err = clk_prepare_enable(ag->clk_mdio);
 701	if (err) {
 702		netif_err(ag, probe, ndev, "Failed to enable mdio clk.\n");
 703		return err;
 704	}
 705
 706	mii_bus = devm_mdiobus_alloc(dev);
 707	if (!mii_bus) {
 708		err = -ENOMEM;
 709		goto mdio_err_put_clk;
 710	}
 711
 712	ag->mdio_reset = of_reset_control_get_exclusive(np, "mdio");
 713	if (IS_ERR(ag->mdio_reset)) {
 714		netif_err(ag, probe, ndev, "Failed to get reset mdio.\n");
 715		err = PTR_ERR(ag->mdio_reset);
 716		goto mdio_err_put_clk;
 717	}
 718
 719	mii_bus->name = "ag71xx_mdio";
 720	mii_bus->read = ag71xx_mdio_mii_read;
 721	mii_bus->write = ag71xx_mdio_mii_write;
 722	mii_bus->reset = ag71xx_mdio_reset;
 723	mii_bus->priv = ag;
 724	mii_bus->parent = dev;
 725	snprintf(mii_bus->id, MII_BUS_ID_SIZE, "%s.%d", np->name, ag->mac_idx);
 726
 727	if (!IS_ERR(ag->mdio_reset)) {
 728		reset_control_assert(ag->mdio_reset);
 729		msleep(100);
 730		reset_control_deassert(ag->mdio_reset);
 731		msleep(200);
 732	}
 733
 734	mnp = of_get_child_by_name(np, "mdio");
 735	err = of_mdiobus_register(mii_bus, mnp);
 736	of_node_put(mnp);
 737	if (err)
 738		goto mdio_err_put_clk;
 739
 740	ag->mii_bus = mii_bus;
 741
 742	return 0;
 743
 744mdio_err_put_clk:
 745	clk_disable_unprepare(ag->clk_mdio);
 746	return err;
 747}
 748
 749static void ag71xx_mdio_remove(struct ag71xx *ag)
 750{
 751	if (ag->mii_bus)
 752		mdiobus_unregister(ag->mii_bus);
 753	clk_disable_unprepare(ag->clk_mdio);
 754}
 755
 756static void ag71xx_hw_stop(struct ag71xx *ag)
 757{
 758	/* disable all interrupts and stop the rx/tx engine */
 759	ag71xx_wr(ag, AG71XX_REG_INT_ENABLE, 0);
 760	ag71xx_wr(ag, AG71XX_REG_RX_CTRL, 0);
 761	ag71xx_wr(ag, AG71XX_REG_TX_CTRL, 0);
 762}
 763
 764static bool ag71xx_check_dma_stuck(struct ag71xx *ag)
 765{
 766	unsigned long timestamp;
 767	u32 rx_sm, tx_sm, rx_fd;
 768
 769	timestamp = netdev_get_tx_queue(ag->ndev, 0)->trans_start;
 770	if (likely(time_before(jiffies, timestamp + HZ / 10)))
 771		return false;
 772
 773	if (!netif_carrier_ok(ag->ndev))
 774		return false;
 775
 776	rx_sm = ag71xx_rr(ag, AG71XX_REG_RX_SM);
 777	if ((rx_sm & 0x7) == 0x3 && ((rx_sm >> 4) & 0x7) == 0x6)
 778		return true;
 779
 780	tx_sm = ag71xx_rr(ag, AG71XX_REG_TX_SM);
 781	rx_fd = ag71xx_rr(ag, AG71XX_REG_FIFO_DEPTH);
 782	if (((tx_sm >> 4) & 0x7) == 0 && ((rx_sm & 0x7) == 0) &&
 783	    ((rx_sm >> 4) & 0x7) == 0 && rx_fd == 0)
 784		return true;
 785
 786	return false;
 787}
 788
 789static int ag71xx_tx_packets(struct ag71xx *ag, bool flush)
 790{
 791	struct ag71xx_ring *ring = &ag->tx_ring;
 792	int sent = 0, bytes_compl = 0, n = 0;
 793	struct net_device *ndev = ag->ndev;
 794	int ring_mask, ring_size;
 795	bool dma_stuck = false;
 796
 797	ring_mask = BIT(ring->order) - 1;
 798	ring_size = BIT(ring->order);
 799
 800	netif_dbg(ag, tx_queued, ndev, "processing TX ring\n");
 801
 802	while (ring->dirty + n != ring->curr) {
 803		struct ag71xx_desc *desc;
 804		struct sk_buff *skb;
 805		unsigned int i;
 806
 807		i = (ring->dirty + n) & ring_mask;
 808		desc = ag71xx_ring_desc(ring, i);
 809		skb = ring->buf[i].tx.skb;
 810
 811		if (!flush && !ag71xx_desc_empty(desc)) {
 812			if (ag->dcfg->tx_hang_workaround &&
 813			    ag71xx_check_dma_stuck(ag)) {
 814				schedule_delayed_work(&ag->restart_work,
 815						      HZ / 2);
 816				dma_stuck = true;
 817			}
 818			break;
 819		}
 820
 821		if (flush)
 822			desc->ctrl |= DESC_EMPTY;
 823
 824		n++;
 825		if (!skb)
 826			continue;
 827
 828		dev_kfree_skb_any(skb);
 829		ring->buf[i].tx.skb = NULL;
 830
 831		bytes_compl += ring->buf[i].tx.len;
 832
 833		sent++;
 834		ring->dirty += n;
 835
 836		while (n > 0) {
 837			ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_PS);
 838			n--;
 839		}
 840	}
 841
 842	netif_dbg(ag, tx_done, ndev, "%d packets sent out\n", sent);
 843
 844	if (!sent)
 845		return 0;
 846
 847	ag->ndev->stats.tx_bytes += bytes_compl;
 848	ag->ndev->stats.tx_packets += sent;
 849
 850	netdev_completed_queue(ag->ndev, sent, bytes_compl);
 851	if ((ring->curr - ring->dirty) < (ring_size * 3) / 4)
 852		netif_wake_queue(ag->ndev);
 853
 854	if (!dma_stuck)
 855		cancel_delayed_work(&ag->restart_work);
 856
 857	return sent;
 858}
 859
 860static void ag71xx_dma_wait_stop(struct ag71xx *ag)
 861{
 862	struct net_device *ndev = ag->ndev;
 863	int i;
 864
 865	for (i = 0; i < AG71XX_DMA_RETRY; i++) {
 866		u32 rx, tx;
 867
 868		mdelay(AG71XX_DMA_DELAY);
 869
 870		rx = ag71xx_rr(ag, AG71XX_REG_RX_CTRL) & RX_CTRL_RXE;
 871		tx = ag71xx_rr(ag, AG71XX_REG_TX_CTRL) & TX_CTRL_TXE;
 872		if (!rx && !tx)
 873			return;
 874	}
 875
 876	netif_err(ag, hw, ndev, "DMA stop operation timed out\n");
 877}
 878
 879static void ag71xx_dma_reset(struct ag71xx *ag)
 880{
 881	struct net_device *ndev = ag->ndev;
 882	u32 val;
 883	int i;
 884
 885	/* stop RX and TX */
 886	ag71xx_wr(ag, AG71XX_REG_RX_CTRL, 0);
 887	ag71xx_wr(ag, AG71XX_REG_TX_CTRL, 0);
 888
 889	/* give the hardware some time to really stop all rx/tx activity
 890	 * clearing the descriptors too early causes random memory corruption
 891	 */
 892	ag71xx_dma_wait_stop(ag);
 893
 894	/* clear descriptor addresses */
 895	ag71xx_wr(ag, AG71XX_REG_TX_DESC, ag->stop_desc_dma);
 896	ag71xx_wr(ag, AG71XX_REG_RX_DESC, ag->stop_desc_dma);
 897
 898	/* clear pending RX/TX interrupts */
 899	for (i = 0; i < 256; i++) {
 900		ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_PR);
 901		ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_PS);
 902	}
 903
 904	/* clear pending errors */
 905	ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_BE | RX_STATUS_OF);
 906	ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_BE | TX_STATUS_UR);
 907
 908	val = ag71xx_rr(ag, AG71XX_REG_RX_STATUS);
 909	if (val)
 910		netif_err(ag, hw, ndev, "unable to clear DMA Rx status: %08x\n",
 911			  val);
 912
 913	val = ag71xx_rr(ag, AG71XX_REG_TX_STATUS);
 914
 915	/* mask out reserved bits */
 916	val &= ~0xff000000;
 917
 918	if (val)
 919		netif_err(ag, hw, ndev, "unable to clear DMA Tx status: %08x\n",
 920			  val);
 921}
 922
 923static void ag71xx_hw_setup(struct ag71xx *ag)
 924{
 925	u32 init = MAC_CFG1_INIT;
 926
 927	/* setup MAC configuration registers */
 928	ag71xx_wr(ag, AG71XX_REG_MAC_CFG1, init);
 929
 930	ag71xx_sb(ag, AG71XX_REG_MAC_CFG2,
 931		  MAC_CFG2_PAD_CRC_EN | MAC_CFG2_LEN_CHECK);
 932
 933	/* setup max frame length to zero */
 934	ag71xx_wr(ag, AG71XX_REG_MAC_MFL, 0);
 935
 936	/* setup FIFO configuration registers */
 937	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG0, FIFO_CFG0_INIT);
 938	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG1, ag->fifodata[0]);
 939	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG2, ag->fifodata[1]);
 940	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG4, FIFO_CFG4_INIT);
 941	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG5, FIFO_CFG5_INIT);
 942}
 943
 944static unsigned int ag71xx_max_frame_len(unsigned int mtu)
 945{
 946	return ETH_HLEN + VLAN_HLEN + mtu + ETH_FCS_LEN;
 947}
 948
 949static void ag71xx_hw_set_macaddr(struct ag71xx *ag, unsigned char *mac)
 950{
 951	u32 t;
 952
 953	t = (((u32)mac[5]) << 24) | (((u32)mac[4]) << 16)
 954	  | (((u32)mac[3]) << 8) | ((u32)mac[2]);
 955
 956	ag71xx_wr(ag, AG71XX_REG_MAC_ADDR1, t);
 957
 958	t = (((u32)mac[1]) << 24) | (((u32)mac[0]) << 16);
 959	ag71xx_wr(ag, AG71XX_REG_MAC_ADDR2, t);
 960}
 961
 962static void ag71xx_fast_reset(struct ag71xx *ag)
 963{
 964	struct net_device *dev = ag->ndev;
 965	u32 rx_ds;
 966	u32 mii_reg;
 967
 968	ag71xx_hw_stop(ag);
 969
 970	mii_reg = ag71xx_rr(ag, AG71XX_REG_MII_CFG);
 971	rx_ds = ag71xx_rr(ag, AG71XX_REG_RX_DESC);
 972
 973	ag71xx_tx_packets(ag, true);
 974
 975	reset_control_assert(ag->mac_reset);
 976	usleep_range(10, 20);
 977	reset_control_deassert(ag->mac_reset);
 978	usleep_range(10, 20);
 979
 980	ag71xx_dma_reset(ag);
 981	ag71xx_hw_setup(ag);
 982	ag->tx_ring.curr = 0;
 983	ag->tx_ring.dirty = 0;
 984	netdev_reset_queue(ag->ndev);
 985
 986	/* setup max frame length */
 987	ag71xx_wr(ag, AG71XX_REG_MAC_MFL,
 988		  ag71xx_max_frame_len(ag->ndev->mtu));
 989
 990	ag71xx_wr(ag, AG71XX_REG_RX_DESC, rx_ds);
 991	ag71xx_wr(ag, AG71XX_REG_TX_DESC, ag->tx_ring.descs_dma);
 992	ag71xx_wr(ag, AG71XX_REG_MII_CFG, mii_reg);
 993
 994	ag71xx_hw_set_macaddr(ag, dev->dev_addr);
 995}
 996
 997static void ag71xx_hw_start(struct ag71xx *ag)
 998{
 999	/* start RX engine */
1000	ag71xx_wr(ag, AG71XX_REG_RX_CTRL, RX_CTRL_RXE);
1001
1002	/* enable interrupts */
1003	ag71xx_wr(ag, AG71XX_REG_INT_ENABLE, AG71XX_INT_INIT);
1004
1005	netif_wake_queue(ag->ndev);
1006}
1007
1008static void ag71xx_mac_config(struct phylink_config *config, unsigned int mode,
1009			      const struct phylink_link_state *state)
1010{
1011	struct ag71xx *ag = netdev_priv(to_net_dev(config->dev));
1012
1013	if (phylink_autoneg_inband(mode))
1014		return;
1015
1016	if (!ag71xx_is(ag, AR7100) && !ag71xx_is(ag, AR9130))
1017		ag71xx_fast_reset(ag);
1018
1019	if (ag->tx_ring.desc_split) {
1020		ag->fifodata[2] &= 0xffff;
1021		ag->fifodata[2] |= ((2048 - ag->tx_ring.desc_split) / 4) << 16;
1022	}
1023
1024	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG3, ag->fifodata[2]);
1025}
1026
1027static void ag71xx_mac_validate(struct phylink_config *config,
1028			    unsigned long *supported,
1029			    struct phylink_link_state *state)
1030{
1031	struct ag71xx *ag = netdev_priv(to_net_dev(config->dev));
1032	__ETHTOOL_DECLARE_LINK_MODE_MASK(mask) = { 0, };
1033
1034	switch (state->interface) {
1035	case PHY_INTERFACE_MODE_NA:
1036		break;
1037	case PHY_INTERFACE_MODE_MII:
1038		if ((ag71xx_is(ag, AR9330) && ag->mac_idx == 0) ||
1039		    ag71xx_is(ag, AR9340) ||
1040		    ag71xx_is(ag, QCA9530) ||
1041		    (ag71xx_is(ag, QCA9550) && ag->mac_idx == 1))
1042			break;
1043		goto unsupported;
1044	case PHY_INTERFACE_MODE_GMII:
1045		if ((ag71xx_is(ag, AR9330) && ag->mac_idx == 1) ||
1046		    (ag71xx_is(ag, AR9340) && ag->mac_idx == 1) ||
1047		    (ag71xx_is(ag, QCA9530) && ag->mac_idx == 1))
1048			break;
1049		goto unsupported;
1050	case PHY_INTERFACE_MODE_SGMII:
1051		if (ag71xx_is(ag, QCA9550) && ag->mac_idx == 0)
1052			break;
1053		goto unsupported;
1054	case PHY_INTERFACE_MODE_RMII:
1055		if (ag71xx_is(ag, AR9340) && ag->mac_idx == 0)
1056			break;
1057		goto unsupported;
1058	case PHY_INTERFACE_MODE_RGMII:
1059		if ((ag71xx_is(ag, AR9340) && ag->mac_idx == 0) ||
1060		    (ag71xx_is(ag, QCA9550) && ag->mac_idx == 1))
1061			break;
1062		goto unsupported;
1063	default:
1064		goto unsupported;
1065	}
1066
1067	phylink_set(mask, MII);
1068
1069	phylink_set(mask, Pause);
1070	phylink_set(mask, Asym_Pause);
1071	phylink_set(mask, Autoneg);
1072	phylink_set(mask, 10baseT_Half);
1073	phylink_set(mask, 10baseT_Full);
1074	phylink_set(mask, 100baseT_Half);
1075	phylink_set(mask, 100baseT_Full);
1076
1077	if (state->interface == PHY_INTERFACE_MODE_NA ||
1078	    state->interface == PHY_INTERFACE_MODE_SGMII ||
1079	    state->interface == PHY_INTERFACE_MODE_RGMII ||
1080	    state->interface == PHY_INTERFACE_MODE_GMII) {
1081		phylink_set(mask, 1000baseT_Full);
1082		phylink_set(mask, 1000baseX_Full);
1083	}
1084
1085	bitmap_and(supported, supported, mask,
1086		   __ETHTOOL_LINK_MODE_MASK_NBITS);
1087	bitmap_and(state->advertising, state->advertising, mask,
1088		   __ETHTOOL_LINK_MODE_MASK_NBITS);
1089
1090	return;
1091unsupported:
1092	bitmap_zero(supported, __ETHTOOL_LINK_MODE_MASK_NBITS);
1093}
1094
1095static void ag71xx_mac_pcs_get_state(struct phylink_config *config,
1096				     struct phylink_link_state *state)
1097{
1098	state->link = 0;
1099}
1100
1101static void ag71xx_mac_an_restart(struct phylink_config *config)
1102{
1103	/* Not Supported */
1104}
1105
1106static void ag71xx_mac_link_down(struct phylink_config *config,
1107				 unsigned int mode, phy_interface_t interface)
1108{
1109	struct ag71xx *ag = netdev_priv(to_net_dev(config->dev));
1110
1111	ag71xx_hw_stop(ag);
1112}
1113
1114static void ag71xx_mac_link_up(struct phylink_config *config,
1115			       struct phy_device *phy,
1116			       unsigned int mode, phy_interface_t interface,
1117			       int speed, int duplex,
1118			       bool tx_pause, bool rx_pause)
1119{
1120	struct ag71xx *ag = netdev_priv(to_net_dev(config->dev));
1121	u32 cfg1, cfg2;
1122	u32 ifctl;
1123	u32 fifo5;
1124
1125	cfg2 = ag71xx_rr(ag, AG71XX_REG_MAC_CFG2);
1126	cfg2 &= ~(MAC_CFG2_IF_1000 | MAC_CFG2_IF_10_100 | MAC_CFG2_FDX);
1127	cfg2 |= duplex ? MAC_CFG2_FDX : 0;
1128
1129	ifctl = ag71xx_rr(ag, AG71XX_REG_MAC_IFCTL);
1130	ifctl &= ~(MAC_IFCTL_SPEED);
1131
1132	fifo5 = ag71xx_rr(ag, AG71XX_REG_FIFO_CFG5);
1133	fifo5 &= ~FIFO_CFG5_BM;
1134
1135	switch (speed) {
1136	case SPEED_1000:
1137		cfg2 |= MAC_CFG2_IF_1000;
1138		fifo5 |= FIFO_CFG5_BM;
1139		break;
1140	case SPEED_100:
1141		cfg2 |= MAC_CFG2_IF_10_100;
1142		ifctl |= MAC_IFCTL_SPEED;
1143		break;
1144	case SPEED_10:
1145		cfg2 |= MAC_CFG2_IF_10_100;
1146		break;
1147	default:
1148		return;
1149	}
1150
1151	ag71xx_wr(ag, AG71XX_REG_MAC_CFG2, cfg2);
1152	ag71xx_wr(ag, AG71XX_REG_FIFO_CFG5, fifo5);
1153	ag71xx_wr(ag, AG71XX_REG_MAC_IFCTL, ifctl);
1154
1155	cfg1 = ag71xx_rr(ag, AG71XX_REG_MAC_CFG1);
1156	cfg1 &= ~(MAC_CFG1_TFC | MAC_CFG1_RFC);
1157	if (tx_pause)
1158		cfg1 |= MAC_CFG1_TFC;
1159
1160	if (rx_pause)
1161		cfg1 |= MAC_CFG1_RFC;
1162	ag71xx_wr(ag, AG71XX_REG_MAC_CFG1, cfg1);
1163
1164	ag71xx_hw_start(ag);
1165}
1166
1167static const struct phylink_mac_ops ag71xx_phylink_mac_ops = {
1168	.validate = ag71xx_mac_validate,
1169	.mac_pcs_get_state = ag71xx_mac_pcs_get_state,
1170	.mac_an_restart = ag71xx_mac_an_restart,
1171	.mac_config = ag71xx_mac_config,
1172	.mac_link_down = ag71xx_mac_link_down,
1173	.mac_link_up = ag71xx_mac_link_up,
1174};
1175
1176static int ag71xx_phylink_setup(struct ag71xx *ag)
1177{
1178	struct phylink *phylink;
1179
1180	ag->phylink_config.dev = &ag->ndev->dev;
1181	ag->phylink_config.type = PHYLINK_NETDEV;
1182
1183	phylink = phylink_create(&ag->phylink_config, ag->pdev->dev.fwnode,
1184				 ag->phy_if_mode, &ag71xx_phylink_mac_ops);
1185	if (IS_ERR(phylink))
1186		return PTR_ERR(phylink);
1187
1188	ag->phylink = phylink;
1189	return 0;
1190}
1191
1192static void ag71xx_ring_tx_clean(struct ag71xx *ag)
1193{
1194	struct ag71xx_ring *ring = &ag->tx_ring;
1195	int ring_mask = BIT(ring->order) - 1;
1196	u32 bytes_compl = 0, pkts_compl = 0;
1197	struct net_device *ndev = ag->ndev;
1198
1199	while (ring->curr != ring->dirty) {
1200		struct ag71xx_desc *desc;
1201		u32 i = ring->dirty & ring_mask;
1202
1203		desc = ag71xx_ring_desc(ring, i);
1204		if (!ag71xx_desc_empty(desc)) {
1205			desc->ctrl = 0;
1206			ndev->stats.tx_errors++;
1207		}
1208
1209		if (ring->buf[i].tx.skb) {
1210			bytes_compl += ring->buf[i].tx.len;
1211			pkts_compl++;
1212			dev_kfree_skb_any(ring->buf[i].tx.skb);
1213		}
1214		ring->buf[i].tx.skb = NULL;
1215		ring->dirty++;
1216	}
1217
1218	/* flush descriptors */
1219	wmb();
1220
1221	netdev_completed_queue(ndev, pkts_compl, bytes_compl);
1222}
1223
1224static void ag71xx_ring_tx_init(struct ag71xx *ag)
1225{
1226	struct ag71xx_ring *ring = &ag->tx_ring;
1227	int ring_size = BIT(ring->order);
1228	int ring_mask = ring_size - 1;
1229	int i;
1230
1231	for (i = 0; i < ring_size; i++) {
1232		struct ag71xx_desc *desc = ag71xx_ring_desc(ring, i);
1233
1234		desc->next = (u32)(ring->descs_dma +
1235			AG71XX_DESC_SIZE * ((i + 1) & ring_mask));
1236
1237		desc->ctrl = DESC_EMPTY;
1238		ring->buf[i].tx.skb = NULL;
1239	}
1240
1241	/* flush descriptors */
1242	wmb();
1243
1244	ring->curr = 0;
1245	ring->dirty = 0;
1246	netdev_reset_queue(ag->ndev);
1247}
1248
1249static void ag71xx_ring_rx_clean(struct ag71xx *ag)
1250{
1251	struct ag71xx_ring *ring = &ag->rx_ring;
1252	int ring_size = BIT(ring->order);
1253	int i;
1254
1255	if (!ring->buf)
1256		return;
1257
1258	for (i = 0; i < ring_size; i++)
1259		if (ring->buf[i].rx.rx_buf) {
1260			dma_unmap_single(&ag->pdev->dev,
1261					 ring->buf[i].rx.dma_addr,
1262					 ag->rx_buf_size, DMA_FROM_DEVICE);
1263			skb_free_frag(ring->buf[i].rx.rx_buf);
1264		}
1265}
1266
1267static int ag71xx_buffer_size(struct ag71xx *ag)
1268{
1269	return ag->rx_buf_size +
1270	       SKB_DATA_ALIGN(sizeof(struct skb_shared_info));
1271}
1272
1273static bool ag71xx_fill_rx_buf(struct ag71xx *ag, struct ag71xx_buf *buf,
1274			       int offset,
1275			       void *(*alloc)(unsigned int size))
1276{
1277	struct ag71xx_ring *ring = &ag->rx_ring;
1278	struct ag71xx_desc *desc;
1279	void *data;
1280
1281	desc = ag71xx_ring_desc(ring, buf - &ring->buf[0]);
1282
1283	data = alloc(ag71xx_buffer_size(ag));
1284	if (!data)
1285		return false;
1286
1287	buf->rx.rx_buf = data;
1288	buf->rx.dma_addr = dma_map_single(&ag->pdev->dev, data, ag->rx_buf_size,
1289					  DMA_FROM_DEVICE);
1290	desc->data = (u32)buf->rx.dma_addr + offset;
1291	return true;
1292}
1293
1294static int ag71xx_ring_rx_init(struct ag71xx *ag)
1295{
1296	struct ag71xx_ring *ring = &ag->rx_ring;
1297	struct net_device *ndev = ag->ndev;
1298	int ring_mask = BIT(ring->order) - 1;
1299	int ring_size = BIT(ring->order);
1300	unsigned int i;
1301	int ret;
1302
1303	ret = 0;
1304	for (i = 0; i < ring_size; i++) {
1305		struct ag71xx_desc *desc = ag71xx_ring_desc(ring, i);
1306
1307		desc->next = (u32)(ring->descs_dma +
1308			AG71XX_DESC_SIZE * ((i + 1) & ring_mask));
1309
1310		netif_dbg(ag, rx_status, ndev, "RX desc at %p, next is %08x\n",
1311			  desc, desc->next);
1312	}
1313
1314	for (i = 0; i < ring_size; i++) {
1315		struct ag71xx_desc *desc = ag71xx_ring_desc(ring, i);
1316
1317		if (!ag71xx_fill_rx_buf(ag, &ring->buf[i], ag->rx_buf_offset,
1318					netdev_alloc_frag)) {
1319			ret = -ENOMEM;
1320			break;
1321		}
1322
1323		desc->ctrl = DESC_EMPTY;
1324	}
1325
1326	/* flush descriptors */
1327	wmb();
1328
1329	ring->curr = 0;
1330	ring->dirty = 0;
1331
1332	return ret;
1333}
1334
1335static int ag71xx_ring_rx_refill(struct ag71xx *ag)
1336{
1337	struct ag71xx_ring *ring = &ag->rx_ring;
1338	int ring_mask = BIT(ring->order) - 1;
1339	int offset = ag->rx_buf_offset;
1340	unsigned int count;
1341
1342	count = 0;
1343	for (; ring->curr - ring->dirty > 0; ring->dirty++) {
1344		struct ag71xx_desc *desc;
1345		unsigned int i;
1346
1347		i = ring->dirty & ring_mask;
1348		desc = ag71xx_ring_desc(ring, i);
1349
1350		if (!ring->buf[i].rx.rx_buf &&
1351		    !ag71xx_fill_rx_buf(ag, &ring->buf[i], offset,
1352					napi_alloc_frag))
1353			break;
1354
1355		desc->ctrl = DESC_EMPTY;
1356		count++;
1357	}
1358
1359	/* flush descriptors */
1360	wmb();
1361
1362	netif_dbg(ag, rx_status, ag->ndev, "%u rx descriptors refilled\n",
1363		  count);
1364
1365	return count;
1366}
1367
1368static int ag71xx_rings_init(struct ag71xx *ag)
1369{
1370	struct ag71xx_ring *tx = &ag->tx_ring;
1371	struct ag71xx_ring *rx = &ag->rx_ring;
1372	int ring_size, tx_size;
1373
1374	ring_size = BIT(tx->order) + BIT(rx->order);
1375	tx_size = BIT(tx->order);
1376
1377	tx->buf = kcalloc(ring_size, sizeof(*tx->buf), GFP_KERNEL);
1378	if (!tx->buf)
1379		return -ENOMEM;
1380
1381	tx->descs_cpu = dma_alloc_coherent(&ag->pdev->dev,
1382					   ring_size * AG71XX_DESC_SIZE,
1383					   &tx->descs_dma, GFP_KERNEL);
1384	if (!tx->descs_cpu) {
1385		kfree(tx->buf);
1386		tx->buf = NULL;
1387		return -ENOMEM;
1388	}
1389
1390	rx->buf = &tx->buf[tx_size];
1391	rx->descs_cpu = ((void *)tx->descs_cpu) + tx_size * AG71XX_DESC_SIZE;
1392	rx->descs_dma = tx->descs_dma + tx_size * AG71XX_DESC_SIZE;
1393
1394	ag71xx_ring_tx_init(ag);
1395	return ag71xx_ring_rx_init(ag);
1396}
1397
1398static void ag71xx_rings_free(struct ag71xx *ag)
1399{
1400	struct ag71xx_ring *tx = &ag->tx_ring;
1401	struct ag71xx_ring *rx = &ag->rx_ring;
1402	int ring_size;
1403
1404	ring_size = BIT(tx->order) + BIT(rx->order);
1405
1406	if (tx->descs_cpu)
1407		dma_free_coherent(&ag->pdev->dev, ring_size * AG71XX_DESC_SIZE,
1408				  tx->descs_cpu, tx->descs_dma);
1409
1410	kfree(tx->buf);
1411
1412	tx->descs_cpu = NULL;
1413	rx->descs_cpu = NULL;
1414	tx->buf = NULL;
1415	rx->buf = NULL;
1416}
1417
1418static void ag71xx_rings_cleanup(struct ag71xx *ag)
1419{
1420	ag71xx_ring_rx_clean(ag);
1421	ag71xx_ring_tx_clean(ag);
1422	ag71xx_rings_free(ag);
1423
1424	netdev_reset_queue(ag->ndev);
1425}
1426
1427static void ag71xx_hw_init(struct ag71xx *ag)
1428{
1429	ag71xx_hw_stop(ag);
1430
1431	ag71xx_sb(ag, AG71XX_REG_MAC_CFG1, MAC_CFG1_SR);
1432	usleep_range(20, 30);
1433
1434	reset_control_assert(ag->mac_reset);
1435	msleep(100);
1436	reset_control_deassert(ag->mac_reset);
1437	msleep(200);
1438
1439	ag71xx_hw_setup(ag);
1440
1441	ag71xx_dma_reset(ag);
1442}
1443
1444static int ag71xx_hw_enable(struct ag71xx *ag)
1445{
1446	int ret;
1447
1448	ret = ag71xx_rings_init(ag);
1449	if (ret)
1450		return ret;
1451
1452	napi_enable(&ag->napi);
1453	ag71xx_wr(ag, AG71XX_REG_TX_DESC, ag->tx_ring.descs_dma);
1454	ag71xx_wr(ag, AG71XX_REG_RX_DESC, ag->rx_ring.descs_dma);
1455	netif_start_queue(ag->ndev);
1456
1457	return 0;
1458}
1459
1460static void ag71xx_hw_disable(struct ag71xx *ag)
1461{
1462	netif_stop_queue(ag->ndev);
1463
1464	ag71xx_hw_stop(ag);
1465	ag71xx_dma_reset(ag);
1466
1467	napi_disable(&ag->napi);
1468	del_timer_sync(&ag->oom_timer);
1469
1470	ag71xx_rings_cleanup(ag);
1471}
1472
1473static int ag71xx_open(struct net_device *ndev)
1474{
1475	struct ag71xx *ag = netdev_priv(ndev);
1476	unsigned int max_frame_len;
1477	int ret;
1478
1479	ret = phylink_of_phy_connect(ag->phylink, ag->pdev->dev.of_node, 0);
1480	if (ret) {
1481		netif_err(ag, link, ndev, "phylink_of_phy_connect filed with err: %i\n",
1482			  ret);
1483		goto err;
1484	}
1485
1486	max_frame_len = ag71xx_max_frame_len(ndev->mtu);
1487	ag->rx_buf_size =
1488		SKB_DATA_ALIGN(max_frame_len + NET_SKB_PAD + NET_IP_ALIGN);
1489
1490	/* setup max frame length */
1491	ag71xx_wr(ag, AG71XX_REG_MAC_MFL, max_frame_len);
1492	ag71xx_hw_set_macaddr(ag, ndev->dev_addr);
1493
1494	ret = ag71xx_hw_enable(ag);
1495	if (ret)
1496		goto err;
1497
1498	phylink_start(ag->phylink);
1499
1500	return 0;
1501
1502err:
1503	ag71xx_rings_cleanup(ag);
1504	return ret;
1505}
1506
1507static int ag71xx_stop(struct net_device *ndev)
1508{
1509	struct ag71xx *ag = netdev_priv(ndev);
1510
1511	phylink_stop(ag->phylink);
1512	phylink_disconnect_phy(ag->phylink);
1513	ag71xx_hw_disable(ag);
1514
1515	return 0;
1516}
1517
1518static int ag71xx_fill_dma_desc(struct ag71xx_ring *ring, u32 addr, int len)
1519{
1520	int i, ring_mask, ndesc, split;
1521	struct ag71xx_desc *desc;
1522
1523	ring_mask = BIT(ring->order) - 1;
1524	ndesc = 0;
1525	split = ring->desc_split;
1526
1527	if (!split)
1528		split = len;
1529
1530	while (len > 0) {
1531		unsigned int cur_len = len;
1532
1533		i = (ring->curr + ndesc) & ring_mask;
1534		desc = ag71xx_ring_desc(ring, i);
1535
1536		if (!ag71xx_desc_empty(desc))
1537			return -1;
1538
1539		if (cur_len > split) {
1540			cur_len = split;
1541
1542			/*  TX will hang if DMA transfers <= 4 bytes,
1543			 * make sure next segment is more than 4 bytes long.
1544			 */
1545			if (len <= split + 4)
1546				cur_len -= 4;
1547		}
1548
1549		desc->data = addr;
1550		addr += cur_len;
1551		len -= cur_len;
1552
1553		if (len > 0)
1554			cur_len |= DESC_MORE;
1555
1556		/* prevent early tx attempt of this descriptor */
1557		if (!ndesc)
1558			cur_len |= DESC_EMPTY;
1559
1560		desc->ctrl = cur_len;
1561		ndesc++;
1562	}
1563
1564	return ndesc;
1565}
1566
1567static netdev_tx_t ag71xx_hard_start_xmit(struct sk_buff *skb,
1568					  struct net_device *ndev)
1569{
1570	int i, n, ring_min, ring_mask, ring_size;
1571	struct ag71xx *ag = netdev_priv(ndev);
1572	struct ag71xx_ring *ring;
1573	struct ag71xx_desc *desc;
1574	dma_addr_t dma_addr;
1575
1576	ring = &ag->tx_ring;
1577	ring_mask = BIT(ring->order) - 1;
1578	ring_size = BIT(ring->order);
1579
1580	if (skb->len <= 4) {
1581		netif_dbg(ag, tx_err, ndev, "packet len is too small\n");
1582		goto err_drop;
1583	}
1584
1585	dma_addr = dma_map_single(&ag->pdev->dev, skb->data, skb->len,
1586				  DMA_TO_DEVICE);
1587
1588	i = ring->curr & ring_mask;
1589	desc = ag71xx_ring_desc(ring, i);
1590
1591	/* setup descriptor fields */
1592	n = ag71xx_fill_dma_desc(ring, (u32)dma_addr,
1593				 skb->len & ag->dcfg->desc_pktlen_mask);
1594	if (n < 0)
1595		goto err_drop_unmap;
1596
1597	i = (ring->curr + n - 1) & ring_mask;
1598	ring->buf[i].tx.len = skb->len;
1599	ring->buf[i].tx.skb = skb;
1600
1601	netdev_sent_queue(ndev, skb->len);
1602
1603	skb_tx_timestamp(skb);
1604
1605	desc->ctrl &= ~DESC_EMPTY;
1606	ring->curr += n;
1607
1608	/* flush descriptor */
1609	wmb();
1610
1611	ring_min = 2;
1612	if (ring->desc_split)
1613		ring_min *= AG71XX_TX_RING_DS_PER_PKT;
1614
1615	if (ring->curr - ring->dirty >= ring_size - ring_min) {
1616		netif_dbg(ag, tx_err, ndev, "tx queue full\n");
1617		netif_stop_queue(ndev);
1618	}
1619
1620	netif_dbg(ag, tx_queued, ndev, "packet injected into TX queue\n");
1621
1622	/* enable TX engine */
1623	ag71xx_wr(ag, AG71XX_REG_TX_CTRL, TX_CTRL_TXE);
1624
1625	return NETDEV_TX_OK;
1626
1627err_drop_unmap:
1628	dma_unmap_single(&ag->pdev->dev, dma_addr, skb->len, DMA_TO_DEVICE);
1629
1630err_drop:
1631	ndev->stats.tx_dropped++;
1632
1633	dev_kfree_skb(skb);
1634	return NETDEV_TX_OK;
1635}
1636
1637static void ag71xx_oom_timer_handler(struct timer_list *t)
1638{
1639	struct ag71xx *ag = from_timer(ag, t, oom_timer);
1640
1641	napi_schedule(&ag->napi);
1642}
1643
1644static void ag71xx_tx_timeout(struct net_device *ndev, unsigned int txqueue)
1645{
1646	struct ag71xx *ag = netdev_priv(ndev);
1647
1648	netif_err(ag, tx_err, ndev, "tx timeout\n");
1649
1650	schedule_delayed_work(&ag->restart_work, 1);
1651}
1652
1653static void ag71xx_restart_work_func(struct work_struct *work)
1654{
1655	struct ag71xx *ag = container_of(work, struct ag71xx,
1656					 restart_work.work);
1657
1658	rtnl_lock();
1659	ag71xx_hw_disable(ag);
1660	ag71xx_hw_enable(ag);
1661
1662	phylink_stop(ag->phylink);
1663	phylink_start(ag->phylink);
1664
1665	rtnl_unlock();
1666}
1667
1668static int ag71xx_rx_packets(struct ag71xx *ag, int limit)
1669{
1670	struct net_device *ndev = ag->ndev;
1671	int ring_mask, ring_size, done = 0;
1672	unsigned int pktlen_mask, offset;
1673	struct ag71xx_ring *ring;
1674	struct list_head rx_list;
1675	struct sk_buff *skb;
1676
1677	ring = &ag->rx_ring;
1678	pktlen_mask = ag->dcfg->desc_pktlen_mask;
1679	offset = ag->rx_buf_offset;
1680	ring_mask = BIT(ring->order) - 1;
1681	ring_size = BIT(ring->order);
1682
1683	netif_dbg(ag, rx_status, ndev, "rx packets, limit=%d, curr=%u, dirty=%u\n",
1684		  limit, ring->curr, ring->dirty);
1685
1686	INIT_LIST_HEAD(&rx_list);
1687
1688	while (done < limit) {
1689		unsigned int i = ring->curr & ring_mask;
1690		struct ag71xx_desc *desc = ag71xx_ring_desc(ring, i);
1691		int pktlen;
1692		int err = 0;
1693
1694		if (ag71xx_desc_empty(desc))
1695			break;
1696
1697		if ((ring->dirty + ring_size) == ring->curr) {
1698			WARN_ONCE(1, "RX out of ring");
1699			break;
1700		}
1701
1702		ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_PR);
1703
1704		pktlen = desc->ctrl & pktlen_mask;
1705		pktlen -= ETH_FCS_LEN;
1706
1707		dma_unmap_single(&ag->pdev->dev, ring->buf[i].rx.dma_addr,
1708				 ag->rx_buf_size, DMA_FROM_DEVICE);
1709
1710		ndev->stats.rx_packets++;
1711		ndev->stats.rx_bytes += pktlen;
1712
1713		skb = build_skb(ring->buf[i].rx.rx_buf, ag71xx_buffer_size(ag));
1714		if (!skb) {
1715			skb_free_frag(ring->buf[i].rx.rx_buf);
1716			goto next;
1717		}
1718
1719		skb_reserve(skb, offset);
1720		skb_put(skb, pktlen);
1721
1722		if (err) {
1723			ndev->stats.rx_dropped++;
1724			kfree_skb(skb);
1725		} else {
1726			skb->dev = ndev;
1727			skb->ip_summed = CHECKSUM_NONE;
1728			list_add_tail(&skb->list, &rx_list);
1729		}
1730
1731next:
1732		ring->buf[i].rx.rx_buf = NULL;
1733		done++;
1734
1735		ring->curr++;
1736	}
1737
1738	ag71xx_ring_rx_refill(ag);
1739
1740	list_for_each_entry(skb, &rx_list, list)
1741		skb->protocol = eth_type_trans(skb, ndev);
1742	netif_receive_skb_list(&rx_list);
1743
1744	netif_dbg(ag, rx_status, ndev, "rx finish, curr=%u, dirty=%u, done=%d\n",
1745		  ring->curr, ring->dirty, done);
1746
1747	return done;
1748}
1749
1750static int ag71xx_poll(struct napi_struct *napi, int limit)
1751{
1752	struct ag71xx *ag = container_of(napi, struct ag71xx, napi);
1753	struct ag71xx_ring *rx_ring = &ag->rx_ring;
1754	int rx_ring_size = BIT(rx_ring->order);
1755	struct net_device *ndev = ag->ndev;
1756	int tx_done, rx_done;
1757	u32 status;
1758
1759	tx_done = ag71xx_tx_packets(ag, false);
1760
1761	netif_dbg(ag, rx_status, ndev, "processing RX ring\n");
1762	rx_done = ag71xx_rx_packets(ag, limit);
1763
1764	if (!rx_ring->buf[rx_ring->dirty % rx_ring_size].rx.rx_buf)
1765		goto oom;
1766
1767	status = ag71xx_rr(ag, AG71XX_REG_RX_STATUS);
1768	if (unlikely(status & RX_STATUS_OF)) {
1769		ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_OF);
1770		ndev->stats.rx_fifo_errors++;
1771
1772		/* restart RX */
1773		ag71xx_wr(ag, AG71XX_REG_RX_CTRL, RX_CTRL_RXE);
1774	}
1775
1776	if (rx_done < limit) {
1777		if (status & RX_STATUS_PR)
1778			goto more;
1779
1780		status = ag71xx_rr(ag, AG71XX_REG_TX_STATUS);
1781		if (status & TX_STATUS_PS)
1782			goto more;
1783
1784		netif_dbg(ag, rx_status, ndev, "disable polling mode, rx=%d, tx=%d,limit=%d\n",
1785			  rx_done, tx_done, limit);
1786
1787		napi_complete(napi);
1788
1789		/* enable interrupts */
1790		ag71xx_int_enable(ag, AG71XX_INT_POLL);
1791		return rx_done;
1792	}
1793
1794more:
1795	netif_dbg(ag, rx_status, ndev, "stay in polling mode, rx=%d, tx=%d, limit=%d\n",
1796		  rx_done, tx_done, limit);
1797	return limit;
1798
1799oom:
1800	netif_err(ag, rx_err, ndev, "out of memory\n");
1801
1802	mod_timer(&ag->oom_timer, jiffies + AG71XX_OOM_REFILL);
1803	napi_complete(napi);
1804	return 0;
1805}
1806
1807static irqreturn_t ag71xx_interrupt(int irq, void *dev_id)
1808{
1809	struct net_device *ndev = dev_id;
1810	struct ag71xx *ag;
1811	u32 status;
1812
1813	ag = netdev_priv(ndev);
1814	status = ag71xx_rr(ag, AG71XX_REG_INT_STATUS);
1815
1816	if (unlikely(!status))
1817		return IRQ_NONE;
1818
1819	if (unlikely(status & AG71XX_INT_ERR)) {
1820		if (status & AG71XX_INT_TX_BE) {
1821			ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_BE);
1822			netif_err(ag, intr, ndev, "TX BUS error\n");
1823		}
1824		if (status & AG71XX_INT_RX_BE) {
1825			ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_BE);
1826			netif_err(ag, intr, ndev, "RX BUS error\n");
1827		}
1828	}
1829
1830	if (likely(status & AG71XX_INT_POLL)) {
1831		ag71xx_int_disable(ag, AG71XX_INT_POLL);
1832		netif_dbg(ag, intr, ndev, "enable polling mode\n");
1833		napi_schedule(&ag->napi);
1834	}
1835
1836	return IRQ_HANDLED;
1837}
1838
1839static int ag71xx_change_mtu(struct net_device *ndev, int new_mtu)
1840{
1841	struct ag71xx *ag = netdev_priv(ndev);
1842
1843	ndev->mtu = new_mtu;
1844	ag71xx_wr(ag, AG71XX_REG_MAC_MFL,
1845		  ag71xx_max_frame_len(ndev->mtu));
1846
1847	return 0;
1848}
1849
1850static const struct net_device_ops ag71xx_netdev_ops = {
1851	.ndo_open		= ag71xx_open,
1852	.ndo_stop		= ag71xx_stop,
1853	.ndo_start_xmit		= ag71xx_hard_start_xmit,
1854	.ndo_do_ioctl		= phy_do_ioctl,
1855	.ndo_tx_timeout		= ag71xx_tx_timeout,
1856	.ndo_change_mtu		= ag71xx_change_mtu,
1857	.ndo_set_mac_address	= eth_mac_addr,
1858	.ndo_validate_addr	= eth_validate_addr,
1859};
1860
1861static const u32 ar71xx_addr_ar7100[] = {
1862	0x19000000, 0x1a000000,
1863};
1864
1865static int ag71xx_probe(struct platform_device *pdev)
1866{
1867	struct device_node *np = pdev->dev.of_node;
1868	const struct ag71xx_dcfg *dcfg;
1869	struct net_device *ndev;
1870	struct resource *res;
1871	int tx_size, err, i;
1872	struct ag71xx *ag;
1873
1874	if (!np)
1875		return -ENODEV;
1876
1877	ndev = devm_alloc_etherdev(&pdev->dev, sizeof(*ag));
1878	if (!ndev)
1879		return -ENOMEM;
1880
1881	res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1882	if (!res)
1883		return -EINVAL;
1884
1885	dcfg = of_device_get_match_data(&pdev->dev);
1886	if (!dcfg)
1887		return -EINVAL;
1888
1889	ag = netdev_priv(ndev);
1890	ag->mac_idx = -1;
1891	for (i = 0; i < ARRAY_SIZE(ar71xx_addr_ar7100); i++) {
1892		if (ar71xx_addr_ar7100[i] == res->start)
1893			ag->mac_idx = i;
1894	}
1895
1896	if (ag->mac_idx < 0) {
1897		netif_err(ag, probe, ndev, "unknown mac idx\n");
1898		return -EINVAL;
1899	}
1900
1901	ag->clk_eth = devm_clk_get(&pdev->dev, "eth");
1902	if (IS_ERR(ag->clk_eth)) {
1903		netif_err(ag, probe, ndev, "Failed to get eth clk.\n");
1904		return PTR_ERR(ag->clk_eth);
1905	}
1906
1907	SET_NETDEV_DEV(ndev, &pdev->dev);
1908
1909	ag->pdev = pdev;
1910	ag->ndev = ndev;
1911	ag->dcfg = dcfg;
1912	ag->msg_enable = netif_msg_init(-1, AG71XX_DEFAULT_MSG_ENABLE);
1913	memcpy(ag->fifodata, dcfg->fifodata, sizeof(ag->fifodata));
1914
1915	ag->mac_reset = devm_reset_control_get(&pdev->dev, "mac");
1916	if (IS_ERR(ag->mac_reset)) {
1917		netif_err(ag, probe, ndev, "missing mac reset\n");
1918		err = PTR_ERR(ag->mac_reset);
1919		goto err_free;
1920	}
1921
1922	ag->mac_base = devm_ioremap(&pdev->dev, res->start, resource_size(res));
1923	if (!ag->mac_base) {
1924		err = -ENOMEM;
1925		goto err_free;
1926	}
1927
1928	ndev->irq = platform_get_irq(pdev, 0);
1929	err = devm_request_irq(&pdev->dev, ndev->irq, ag71xx_interrupt,
1930			       0x0, dev_name(&pdev->dev), ndev);
1931	if (err) {
1932		netif_err(ag, probe, ndev, "unable to request IRQ %d\n",
1933			  ndev->irq);
1934		goto err_free;
1935	}
1936
1937	ndev->netdev_ops = &ag71xx_netdev_ops;
1938	ndev->ethtool_ops = &ag71xx_ethtool_ops;
1939
1940	INIT_DELAYED_WORK(&ag->restart_work, ag71xx_restart_work_func);
1941	timer_setup(&ag->oom_timer, ag71xx_oom_timer_handler, 0);
1942
1943	tx_size = AG71XX_TX_RING_SIZE_DEFAULT;
1944	ag->rx_ring.order = ag71xx_ring_size_order(AG71XX_RX_RING_SIZE_DEFAULT);
1945
1946	ndev->min_mtu = 68;
1947	ndev->max_mtu = dcfg->max_frame_len - ag71xx_max_frame_len(0);
1948
1949	ag->rx_buf_offset = NET_SKB_PAD;
1950	if (!ag71xx_is(ag, AR7100) && !ag71xx_is(ag, AR9130))
1951		ag->rx_buf_offset += NET_IP_ALIGN;
1952
1953	if (ag71xx_is(ag, AR7100)) {
1954		ag->tx_ring.desc_split = AG71XX_TX_RING_SPLIT;
1955		tx_size *= AG71XX_TX_RING_DS_PER_PKT;
1956	}
1957	ag->tx_ring.order = ag71xx_ring_size_order(tx_size);
1958
1959	ag->stop_desc = dmam_alloc_coherent(&pdev->dev,
1960					    sizeof(struct ag71xx_desc),
1961					    &ag->stop_desc_dma, GFP_KERNEL);
1962	if (!ag->stop_desc) {
1963		err = -ENOMEM;
1964		goto err_free;
1965	}
1966
1967	ag->stop_desc->data = 0;
1968	ag->stop_desc->ctrl = 0;
1969	ag->stop_desc->next = (u32)ag->stop_desc_dma;
1970
1971	err = of_get_mac_address(np, ndev->dev_addr);
1972	if (err) {
1973		netif_err(ag, probe, ndev, "invalid MAC address, using random address\n");
1974		eth_random_addr(ndev->dev_addr);
1975	}
1976
1977	err = of_get_phy_mode(np, &ag->phy_if_mode);
1978	if (err) {
1979		netif_err(ag, probe, ndev, "missing phy-mode property in DT\n");
1980		goto err_free;
1981	}
1982
1983	netif_napi_add(ndev, &ag->napi, ag71xx_poll, AG71XX_NAPI_WEIGHT);
1984
1985	err = clk_prepare_enable(ag->clk_eth);
1986	if (err) {
1987		netif_err(ag, probe, ndev, "Failed to enable eth clk.\n");
1988		goto err_free;
1989	}
1990
1991	ag71xx_wr(ag, AG71XX_REG_MAC_CFG1, 0);
1992
1993	ag71xx_hw_init(ag);
1994
1995	err = ag71xx_mdio_probe(ag);
1996	if (err)
1997		goto err_put_clk;
1998
1999	platform_set_drvdata(pdev, ndev);
2000
2001	err = ag71xx_phylink_setup(ag);
2002	if (err) {
2003		netif_err(ag, probe, ndev, "failed to setup phylink (%d)\n", err);
2004		goto err_mdio_remove;
2005	}
2006
2007	err = register_netdev(ndev);
2008	if (err) {
2009		netif_err(ag, probe, ndev, "unable to register net device\n");
2010		platform_set_drvdata(pdev, NULL);
2011		goto err_mdio_remove;
2012	}
2013
2014	netif_info(ag, probe, ndev, "Atheros AG71xx at 0x%08lx, irq %d, mode:%s\n",
2015		   (unsigned long)ag->mac_base, ndev->irq,
2016		   phy_modes(ag->phy_if_mode));
2017
2018	return 0;
2019
2020err_mdio_remove:
2021	ag71xx_mdio_remove(ag);
2022err_put_clk:
2023	clk_disable_unprepare(ag->clk_eth);
2024err_free:
2025	free_netdev(ndev);
2026	return err;
2027}
2028
2029static int ag71xx_remove(struct platform_device *pdev)
2030{
2031	struct net_device *ndev = platform_get_drvdata(pdev);
2032	struct ag71xx *ag;
2033
2034	if (!ndev)
2035		return 0;
2036
2037	ag = netdev_priv(ndev);
2038	unregister_netdev(ndev);
2039	ag71xx_mdio_remove(ag);
2040	clk_disable_unprepare(ag->clk_eth);
2041	platform_set_drvdata(pdev, NULL);
2042
2043	return 0;
2044}
2045
2046static const u32 ar71xx_fifo_ar7100[] = {
2047	0x0fff0000, 0x00001fff, 0x00780fff,
2048};
2049
2050static const u32 ar71xx_fifo_ar9130[] = {
2051	0x0fff0000, 0x00001fff, 0x008001ff,
2052};
2053
2054static const u32 ar71xx_fifo_ar9330[] = {
2055	0x0010ffff, 0x015500aa, 0x01f00140,
2056};
2057
2058static const struct ag71xx_dcfg ag71xx_dcfg_ar7100 = {
2059	.type = AR7100,
2060	.fifodata = ar71xx_fifo_ar7100,
2061	.max_frame_len = 1540,
2062	.desc_pktlen_mask = SZ_4K - 1,
2063	.tx_hang_workaround = false,
2064};
2065
2066static const struct ag71xx_dcfg ag71xx_dcfg_ar7240 = {
2067	.type = AR7240,
2068	.fifodata = ar71xx_fifo_ar7100,
2069	.max_frame_len = 1540,
2070	.desc_pktlen_mask = SZ_4K - 1,
2071	.tx_hang_workaround = true,
2072};
2073
2074static const struct ag71xx_dcfg ag71xx_dcfg_ar9130 = {
2075	.type = AR9130,
2076	.fifodata = ar71xx_fifo_ar9130,
2077	.max_frame_len = 1540,
2078	.desc_pktlen_mask = SZ_4K - 1,
2079	.tx_hang_workaround = false,
2080};
2081
2082static const struct ag71xx_dcfg ag71xx_dcfg_ar9330 = {
2083	.type = AR9330,
2084	.fifodata = ar71xx_fifo_ar9330,
2085	.max_frame_len = 1540,
2086	.desc_pktlen_mask = SZ_4K - 1,
2087	.tx_hang_workaround = true,
2088};
2089
2090static const struct ag71xx_dcfg ag71xx_dcfg_ar9340 = {
2091	.type = AR9340,
2092	.fifodata = ar71xx_fifo_ar9330,
2093	.max_frame_len = SZ_16K - 1,
2094	.desc_pktlen_mask = SZ_16K - 1,
2095	.tx_hang_workaround = true,
2096};
2097
2098static const struct ag71xx_dcfg ag71xx_dcfg_qca9530 = {
2099	.type = QCA9530,
2100	.fifodata = ar71xx_fifo_ar9330,
2101	.max_frame_len = SZ_16K - 1,
2102	.desc_pktlen_mask = SZ_16K - 1,
2103	.tx_hang_workaround = true,
2104};
2105
2106static const struct ag71xx_dcfg ag71xx_dcfg_qca9550 = {
2107	.type = QCA9550,
2108	.fifodata = ar71xx_fifo_ar9330,
2109	.max_frame_len = 1540,
2110	.desc_pktlen_mask = SZ_16K - 1,
2111	.tx_hang_workaround = true,
2112};
2113
2114static const struct of_device_id ag71xx_match[] = {
2115	{ .compatible = "qca,ar7100-eth", .data = &ag71xx_dcfg_ar7100 },
2116	{ .compatible = "qca,ar7240-eth", .data = &ag71xx_dcfg_ar7240 },
2117	{ .compatible = "qca,ar7241-eth", .data = &ag71xx_dcfg_ar7240 },
2118	{ .compatible = "qca,ar7242-eth", .data = &ag71xx_dcfg_ar7240 },
2119	{ .compatible = "qca,ar9130-eth", .data = &ag71xx_dcfg_ar9130 },
2120	{ .compatible = "qca,ar9330-eth", .data = &ag71xx_dcfg_ar9330 },
2121	{ .compatible = "qca,ar9340-eth", .data = &ag71xx_dcfg_ar9340 },
2122	{ .compatible = "qca,qca9530-eth", .data = &ag71xx_dcfg_qca9530 },
2123	{ .compatible = "qca,qca9550-eth", .data = &ag71xx_dcfg_qca9550 },
2124	{ .compatible = "qca,qca9560-eth", .data = &ag71xx_dcfg_qca9550 },
2125	{}
2126};
2127
2128static struct platform_driver ag71xx_driver = {
2129	.probe		= ag71xx_probe,
2130	.remove		= ag71xx_remove,
2131	.driver = {
2132		.name	= "ag71xx",
2133		.of_match_table = ag71xx_match,
2134	}
2135};
2136
2137module_platform_driver(ag71xx_driver);
2138MODULE_LICENSE("GPL v2");