ks8851.c 40 KB

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  1. /* drivers/net/ethernet/micrel/ks8851.c
  2. *
  3. * Copyright 2009 Simtec Electronics
  4. * http://www.simtec.co.uk/
  5. * Ben Dooks <ben@simtec.co.uk>
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License version 2 as
  9. * published by the Free Software Foundation.
  10. */
  11. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  12. #define DEBUG
  13. #include <linux/interrupt.h>
  14. #include <linux/module.h>
  15. #include <linux/kernel.h>
  16. #include <linux/netdevice.h>
  17. #include <linux/etherdevice.h>
  18. #include <linux/ethtool.h>
  19. #include <linux/cache.h>
  20. #include <linux/crc32.h>
  21. #include <linux/mii.h>
  22. #include <linux/eeprom_93cx6.h>
  23. #include <linux/regulator/consumer.h>
  24. #include <linux/spi/spi.h>
  25. #include <linux/gpio.h>
  26. #include <linux/of_gpio.h>
  27. #include <linux/of_net.h>
  28. #include "ks8851.h"
  29. /**
  30. * struct ks8851_rxctrl - KS8851 driver rx control
  31. * @mchash: Multicast hash-table data.
  32. * @rxcr1: KS_RXCR1 register setting
  33. * @rxcr2: KS_RXCR2 register setting
  34. *
  35. * Representation of the settings needs to control the receive filtering
  36. * such as the multicast hash-filter and the receive register settings. This
  37. * is used to make the job of working out if the receive settings change and
  38. * then issuing the new settings to the worker that will send the necessary
  39. * commands.
  40. */
  41. struct ks8851_rxctrl {
  42. u16 mchash[4];
  43. u16 rxcr1;
  44. u16 rxcr2;
  45. };
  46. /**
  47. * union ks8851_tx_hdr - tx header data
  48. * @txb: The header as bytes
  49. * @txw: The header as 16bit, little-endian words
  50. *
  51. * A dual representation of the tx header data to allow
  52. * access to individual bytes, and to allow 16bit accesses
  53. * with 16bit alignment.
  54. */
  55. union ks8851_tx_hdr {
  56. u8 txb[6];
  57. __le16 txw[3];
  58. };
  59. /**
  60. * struct ks8851_net - KS8851 driver private data
  61. * @netdev: The network device we're bound to
  62. * @spidev: The spi device we're bound to.
  63. * @lock: Lock to ensure that the device is not accessed when busy.
  64. * @statelock: Lock on this structure for tx list.
  65. * @mii: The MII state information for the mii calls.
  66. * @rxctrl: RX settings for @rxctrl_work.
  67. * @tx_work: Work queue for tx packets
  68. * @rxctrl_work: Work queue for updating RX mode and multicast lists
  69. * @txq: Queue of packets for transmission.
  70. * @spi_msg1: pre-setup SPI transfer with one message, @spi_xfer1.
  71. * @spi_msg2: pre-setup SPI transfer with two messages, @spi_xfer2.
  72. * @txh: Space for generating packet TX header in DMA-able data
  73. * @rxd: Space for receiving SPI data, in DMA-able space.
  74. * @txd: Space for transmitting SPI data, in DMA-able space.
  75. * @msg_enable: The message flags controlling driver output (see ethtool).
  76. * @fid: Incrementing frame id tag.
  77. * @rc_ier: Cached copy of KS_IER.
  78. * @rc_ccr: Cached copy of KS_CCR.
  79. * @rc_rxqcr: Cached copy of KS_RXQCR.
  80. * @eeprom: 93CX6 EEPROM state for accessing on-board EEPROM.
  81. * @vdd_reg: Optional regulator supplying the chip
  82. * @vdd_io: Optional digital power supply for IO
  83. * @gpio: Optional reset_n gpio
  84. *
  85. * The @lock ensures that the chip is protected when certain operations are
  86. * in progress. When the read or write packet transfer is in progress, most
  87. * of the chip registers are not ccessible until the transfer is finished and
  88. * the DMA has been de-asserted.
  89. *
  90. * The @statelock is used to protect information in the structure which may
  91. * need to be accessed via several sources, such as the network driver layer
  92. * or one of the work queues.
  93. *
  94. * We align the buffers we may use for rx/tx to ensure that if the SPI driver
  95. * wants to DMA map them, it will not have any problems with data the driver
  96. * modifies.
  97. */
  98. struct ks8851_net {
  99. struct net_device *netdev;
  100. struct spi_device *spidev;
  101. struct mutex lock;
  102. spinlock_t statelock;
  103. union ks8851_tx_hdr txh ____cacheline_aligned;
  104. u8 rxd[8];
  105. u8 txd[8];
  106. u32 msg_enable ____cacheline_aligned;
  107. u16 tx_space;
  108. u8 fid;
  109. u16 rc_ier;
  110. u16 rc_rxqcr;
  111. u16 rc_ccr;
  112. struct mii_if_info mii;
  113. struct ks8851_rxctrl rxctrl;
  114. struct work_struct tx_work;
  115. struct work_struct rxctrl_work;
  116. struct sk_buff_head txq;
  117. struct spi_message spi_msg1;
  118. struct spi_message spi_msg2;
  119. struct spi_transfer spi_xfer1;
  120. struct spi_transfer spi_xfer2[2];
  121. struct eeprom_93cx6 eeprom;
  122. struct regulator *vdd_reg;
  123. struct regulator *vdd_io;
  124. int gpio;
  125. };
  126. static int msg_enable;
  127. /* shift for byte-enable data */
  128. #define BYTE_EN(_x) ((_x) << 2)
  129. /* turn register number and byte-enable mask into data for start of packet */
  130. #define MK_OP(_byteen, _reg) (BYTE_EN(_byteen) | (_reg) << (8+2) | (_reg) >> 6)
  131. /* SPI register read/write calls.
  132. *
  133. * All these calls issue SPI transactions to access the chip's registers. They
  134. * all require that the necessary lock is held to prevent accesses when the
  135. * chip is busy transferring packet data (RX/TX FIFO accesses).
  136. */
  137. /**
  138. * ks8851_wrreg16 - write 16bit register value to chip
  139. * @ks: The chip state
  140. * @reg: The register address
  141. * @val: The value to write
  142. *
  143. * Issue a write to put the value @val into the register specified in @reg.
  144. */
  145. static void ks8851_wrreg16(struct ks8851_net *ks, unsigned reg, unsigned val)
  146. {
  147. struct spi_transfer *xfer = &ks->spi_xfer1;
  148. struct spi_message *msg = &ks->spi_msg1;
  149. __le16 txb[2];
  150. int ret;
  151. txb[0] = cpu_to_le16(MK_OP(reg & 2 ? 0xC : 0x03, reg) | KS_SPIOP_WR);
  152. txb[1] = cpu_to_le16(val);
  153. xfer->tx_buf = txb;
  154. xfer->rx_buf = NULL;
  155. xfer->len = 4;
  156. ret = spi_sync(ks->spidev, msg);
  157. if (ret < 0)
  158. netdev_err(ks->netdev, "spi_sync() failed\n");
  159. }
  160. /**
  161. * ks8851_wrreg8 - write 8bit register value to chip
  162. * @ks: The chip state
  163. * @reg: The register address
  164. * @val: The value to write
  165. *
  166. * Issue a write to put the value @val into the register specified in @reg.
  167. */
  168. static void ks8851_wrreg8(struct ks8851_net *ks, unsigned reg, unsigned val)
  169. {
  170. struct spi_transfer *xfer = &ks->spi_xfer1;
  171. struct spi_message *msg = &ks->spi_msg1;
  172. __le16 txb[2];
  173. int ret;
  174. int bit;
  175. bit = 1 << (reg & 3);
  176. txb[0] = cpu_to_le16(MK_OP(bit, reg) | KS_SPIOP_WR);
  177. txb[1] = val;
  178. xfer->tx_buf = txb;
  179. xfer->rx_buf = NULL;
  180. xfer->len = 3;
  181. ret = spi_sync(ks->spidev, msg);
  182. if (ret < 0)
  183. netdev_err(ks->netdev, "spi_sync() failed\n");
  184. }
  185. /**
  186. * ks8851_rdreg - issue read register command and return the data
  187. * @ks: The device state
  188. * @op: The register address and byte enables in message format.
  189. * @rxb: The RX buffer to return the result into
  190. * @rxl: The length of data expected.
  191. *
  192. * This is the low level read call that issues the necessary spi message(s)
  193. * to read data from the register specified in @op.
  194. */
  195. static void ks8851_rdreg(struct ks8851_net *ks, unsigned op,
  196. u8 *rxb, unsigned rxl)
  197. {
  198. struct spi_transfer *xfer;
  199. struct spi_message *msg;
  200. __le16 *txb = (__le16 *)ks->txd;
  201. u8 *trx = ks->rxd;
  202. int ret;
  203. txb[0] = cpu_to_le16(op | KS_SPIOP_RD);
  204. if (ks->spidev->master->flags & SPI_MASTER_HALF_DUPLEX) {
  205. msg = &ks->spi_msg2;
  206. xfer = ks->spi_xfer2;
  207. xfer->tx_buf = txb;
  208. xfer->rx_buf = NULL;
  209. xfer->len = 2;
  210. xfer++;
  211. xfer->tx_buf = NULL;
  212. xfer->rx_buf = trx;
  213. xfer->len = rxl;
  214. } else {
  215. msg = &ks->spi_msg1;
  216. xfer = &ks->spi_xfer1;
  217. xfer->tx_buf = txb;
  218. xfer->rx_buf = trx;
  219. xfer->len = rxl + 2;
  220. }
  221. ret = spi_sync(ks->spidev, msg);
  222. if (ret < 0)
  223. netdev_err(ks->netdev, "read: spi_sync() failed\n");
  224. else if (ks->spidev->master->flags & SPI_MASTER_HALF_DUPLEX)
  225. memcpy(rxb, trx, rxl);
  226. else
  227. memcpy(rxb, trx + 2, rxl);
  228. }
  229. /**
  230. * ks8851_rdreg8 - read 8 bit register from device
  231. * @ks: The chip information
  232. * @reg: The register address
  233. *
  234. * Read a 8bit register from the chip, returning the result
  235. */
  236. static unsigned ks8851_rdreg8(struct ks8851_net *ks, unsigned reg)
  237. {
  238. u8 rxb[1];
  239. ks8851_rdreg(ks, MK_OP(1 << (reg & 3), reg), rxb, 1);
  240. return rxb[0];
  241. }
  242. /**
  243. * ks8851_rdreg16 - read 16 bit register from device
  244. * @ks: The chip information
  245. * @reg: The register address
  246. *
  247. * Read a 16bit register from the chip, returning the result
  248. */
  249. static unsigned ks8851_rdreg16(struct ks8851_net *ks, unsigned reg)
  250. {
  251. __le16 rx = 0;
  252. ks8851_rdreg(ks, MK_OP(reg & 2 ? 0xC : 0x3, reg), (u8 *)&rx, 2);
  253. return le16_to_cpu(rx);
  254. }
  255. /**
  256. * ks8851_rdreg32 - read 32 bit register from device
  257. * @ks: The chip information
  258. * @reg: The register address
  259. *
  260. * Read a 32bit register from the chip.
  261. *
  262. * Note, this read requires the address be aligned to 4 bytes.
  263. */
  264. static unsigned ks8851_rdreg32(struct ks8851_net *ks, unsigned reg)
  265. {
  266. __le32 rx = 0;
  267. WARN_ON(reg & 3);
  268. ks8851_rdreg(ks, MK_OP(0xf, reg), (u8 *)&rx, 4);
  269. return le32_to_cpu(rx);
  270. }
  271. /**
  272. * ks8851_soft_reset - issue one of the soft reset to the device
  273. * @ks: The device state.
  274. * @op: The bit(s) to set in the GRR
  275. *
  276. * Issue the relevant soft-reset command to the device's GRR register
  277. * specified by @op.
  278. *
  279. * Note, the delays are in there as a caution to ensure that the reset
  280. * has time to take effect and then complete. Since the datasheet does
  281. * not currently specify the exact sequence, we have chosen something
  282. * that seems to work with our device.
  283. */
  284. static void ks8851_soft_reset(struct ks8851_net *ks, unsigned op)
  285. {
  286. ks8851_wrreg16(ks, KS_GRR, op);
  287. mdelay(1); /* wait a short time to effect reset */
  288. ks8851_wrreg16(ks, KS_GRR, 0);
  289. mdelay(1); /* wait for condition to clear */
  290. }
  291. /**
  292. * ks8851_set_powermode - set power mode of the device
  293. * @ks: The device state
  294. * @pwrmode: The power mode value to write to KS_PMECR.
  295. *
  296. * Change the power mode of the chip.
  297. */
  298. static void ks8851_set_powermode(struct ks8851_net *ks, unsigned pwrmode)
  299. {
  300. unsigned pmecr;
  301. netif_dbg(ks, hw, ks->netdev, "setting power mode %d\n", pwrmode);
  302. pmecr = ks8851_rdreg16(ks, KS_PMECR);
  303. pmecr &= ~PMECR_PM_MASK;
  304. pmecr |= pwrmode;
  305. ks8851_wrreg16(ks, KS_PMECR, pmecr);
  306. }
  307. /**
  308. * ks8851_write_mac_addr - write mac address to device registers
  309. * @dev: The network device
  310. *
  311. * Update the KS8851 MAC address registers from the address in @dev.
  312. *
  313. * This call assumes that the chip is not running, so there is no need to
  314. * shutdown the RXQ process whilst setting this.
  315. */
  316. static int ks8851_write_mac_addr(struct net_device *dev)
  317. {
  318. struct ks8851_net *ks = netdev_priv(dev);
  319. int i;
  320. mutex_lock(&ks->lock);
  321. /*
  322. * Wake up chip in case it was powered off when stopped; otherwise,
  323. * the first write to the MAC address does not take effect.
  324. */
  325. ks8851_set_powermode(ks, PMECR_PM_NORMAL);
  326. for (i = 0; i < ETH_ALEN; i++)
  327. ks8851_wrreg8(ks, KS_MAR(i), dev->dev_addr[i]);
  328. if (!netif_running(dev))
  329. ks8851_set_powermode(ks, PMECR_PM_SOFTDOWN);
  330. mutex_unlock(&ks->lock);
  331. return 0;
  332. }
  333. /**
  334. * ks8851_read_mac_addr - read mac address from device registers
  335. * @dev: The network device
  336. *
  337. * Update our copy of the KS8851 MAC address from the registers of @dev.
  338. */
  339. static void ks8851_read_mac_addr(struct net_device *dev)
  340. {
  341. struct ks8851_net *ks = netdev_priv(dev);
  342. int i;
  343. mutex_lock(&ks->lock);
  344. for (i = 0; i < ETH_ALEN; i++)
  345. dev->dev_addr[i] = ks8851_rdreg8(ks, KS_MAR(i));
  346. mutex_unlock(&ks->lock);
  347. }
  348. /**
  349. * ks8851_init_mac - initialise the mac address
  350. * @ks: The device structure
  351. *
  352. * Get or create the initial mac address for the device and then set that
  353. * into the station address register. A mac address supplied in the device
  354. * tree takes precedence. Otherwise, if there is an EEPROM present, then
  355. * we try that. If no valid mac address is found we use eth_random_addr()
  356. * to create a new one.
  357. */
  358. static void ks8851_init_mac(struct ks8851_net *ks)
  359. {
  360. struct net_device *dev = ks->netdev;
  361. const u8 *mac_addr;
  362. mac_addr = of_get_mac_address(ks->spidev->dev.of_node);
  363. if (mac_addr) {
  364. memcpy(dev->dev_addr, mac_addr, ETH_ALEN);
  365. ks8851_write_mac_addr(dev);
  366. return;
  367. }
  368. if (ks->rc_ccr & CCR_EEPROM) {
  369. ks8851_read_mac_addr(dev);
  370. if (is_valid_ether_addr(dev->dev_addr))
  371. return;
  372. netdev_err(ks->netdev, "invalid mac address read %pM\n",
  373. dev->dev_addr);
  374. }
  375. eth_hw_addr_random(dev);
  376. ks8851_write_mac_addr(dev);
  377. }
  378. /**
  379. * ks8851_rdfifo - read data from the receive fifo
  380. * @ks: The device state.
  381. * @buff: The buffer address
  382. * @len: The length of the data to read
  383. *
  384. * Issue an RXQ FIFO read command and read the @len amount of data from
  385. * the FIFO into the buffer specified by @buff.
  386. */
  387. static void ks8851_rdfifo(struct ks8851_net *ks, u8 *buff, unsigned len)
  388. {
  389. struct spi_transfer *xfer = ks->spi_xfer2;
  390. struct spi_message *msg = &ks->spi_msg2;
  391. u8 txb[1];
  392. int ret;
  393. netif_dbg(ks, rx_status, ks->netdev,
  394. "%s: %d@%p\n", __func__, len, buff);
  395. /* set the operation we're issuing */
  396. txb[0] = KS_SPIOP_RXFIFO;
  397. xfer->tx_buf = txb;
  398. xfer->rx_buf = NULL;
  399. xfer->len = 1;
  400. xfer++;
  401. xfer->rx_buf = buff;
  402. xfer->tx_buf = NULL;
  403. xfer->len = len;
  404. ret = spi_sync(ks->spidev, msg);
  405. if (ret < 0)
  406. netdev_err(ks->netdev, "%s: spi_sync() failed\n", __func__);
  407. }
  408. /**
  409. * ks8851_dbg_dumpkkt - dump initial packet contents to debug
  410. * @ks: The device state
  411. * @rxpkt: The data for the received packet
  412. *
  413. * Dump the initial data from the packet to dev_dbg().
  414. */
  415. static void ks8851_dbg_dumpkkt(struct ks8851_net *ks, u8 *rxpkt)
  416. {
  417. netdev_dbg(ks->netdev,
  418. "pkt %02x%02x%02x%02x %02x%02x%02x%02x %02x%02x%02x%02x\n",
  419. rxpkt[4], rxpkt[5], rxpkt[6], rxpkt[7],
  420. rxpkt[8], rxpkt[9], rxpkt[10], rxpkt[11],
  421. rxpkt[12], rxpkt[13], rxpkt[14], rxpkt[15]);
  422. }
  423. /**
  424. * ks8851_rx_pkts - receive packets from the host
  425. * @ks: The device information.
  426. *
  427. * This is called from the IRQ work queue when the system detects that there
  428. * are packets in the receive queue. Find out how many packets there are and
  429. * read them from the FIFO.
  430. */
  431. static void ks8851_rx_pkts(struct ks8851_net *ks)
  432. {
  433. struct sk_buff *skb;
  434. unsigned rxfc;
  435. unsigned rxlen;
  436. unsigned rxstat;
  437. u32 rxh;
  438. u8 *rxpkt;
  439. rxfc = ks8851_rdreg8(ks, KS_RXFC);
  440. netif_dbg(ks, rx_status, ks->netdev,
  441. "%s: %d packets\n", __func__, rxfc);
  442. /* Currently we're issuing a read per packet, but we could possibly
  443. * improve the code by issuing a single read, getting the receive
  444. * header, allocating the packet and then reading the packet data
  445. * out in one go.
  446. *
  447. * This form of operation would require us to hold the SPI bus'
  448. * chipselect low during the entie transaction to avoid any
  449. * reset to the data stream coming from the chip.
  450. */
  451. for (; rxfc != 0; rxfc--) {
  452. rxh = ks8851_rdreg32(ks, KS_RXFHSR);
  453. rxstat = rxh & 0xffff;
  454. rxlen = (rxh >> 16) & 0xfff;
  455. netif_dbg(ks, rx_status, ks->netdev,
  456. "rx: stat 0x%04x, len 0x%04x\n", rxstat, rxlen);
  457. /* the length of the packet includes the 32bit CRC */
  458. /* set dma read address */
  459. ks8851_wrreg16(ks, KS_RXFDPR, RXFDPR_RXFPAI | 0x00);
  460. /* start the packet dma process, and set auto-dequeue rx */
  461. ks8851_wrreg16(ks, KS_RXQCR,
  462. ks->rc_rxqcr | RXQCR_SDA | RXQCR_ADRFE);
  463. if (rxlen > 4) {
  464. unsigned int rxalign;
  465. rxlen -= 4;
  466. rxalign = ALIGN(rxlen, 4);
  467. skb = netdev_alloc_skb_ip_align(ks->netdev, rxalign);
  468. if (skb) {
  469. /* 4 bytes of status header + 4 bytes of
  470. * garbage: we put them before ethernet
  471. * header, so that they are copied,
  472. * but ignored.
  473. */
  474. rxpkt = skb_put(skb, rxlen) - 8;
  475. ks8851_rdfifo(ks, rxpkt, rxalign + 8);
  476. if (netif_msg_pktdata(ks))
  477. ks8851_dbg_dumpkkt(ks, rxpkt);
  478. skb->protocol = eth_type_trans(skb, ks->netdev);
  479. netif_rx_ni(skb);
  480. ks->netdev->stats.rx_packets++;
  481. ks->netdev->stats.rx_bytes += rxlen;
  482. }
  483. }
  484. ks8851_wrreg16(ks, KS_RXQCR, ks->rc_rxqcr);
  485. }
  486. }
  487. /**
  488. * ks8851_irq - IRQ handler for dealing with interrupt requests
  489. * @irq: IRQ number
  490. * @_ks: cookie
  491. *
  492. * This handler is invoked when the IRQ line asserts to find out what happened.
  493. * As we cannot allow ourselves to sleep in HARDIRQ context, this handler runs
  494. * in thread context.
  495. *
  496. * Read the interrupt status, work out what needs to be done and then clear
  497. * any of the interrupts that are not needed.
  498. */
  499. static irqreturn_t ks8851_irq(int irq, void *_ks)
  500. {
  501. struct ks8851_net *ks = _ks;
  502. unsigned status;
  503. unsigned handled = 0;
  504. mutex_lock(&ks->lock);
  505. status = ks8851_rdreg16(ks, KS_ISR);
  506. netif_dbg(ks, intr, ks->netdev,
  507. "%s: status 0x%04x\n", __func__, status);
  508. if (status & IRQ_LCI)
  509. handled |= IRQ_LCI;
  510. if (status & IRQ_LDI) {
  511. u16 pmecr = ks8851_rdreg16(ks, KS_PMECR);
  512. pmecr &= ~PMECR_WKEVT_MASK;
  513. ks8851_wrreg16(ks, KS_PMECR, pmecr | PMECR_WKEVT_LINK);
  514. handled |= IRQ_LDI;
  515. }
  516. if (status & IRQ_RXPSI)
  517. handled |= IRQ_RXPSI;
  518. if (status & IRQ_TXI) {
  519. handled |= IRQ_TXI;
  520. /* no lock here, tx queue should have been stopped */
  521. /* update our idea of how much tx space is available to the
  522. * system */
  523. ks->tx_space = ks8851_rdreg16(ks, KS_TXMIR);
  524. netif_dbg(ks, intr, ks->netdev,
  525. "%s: txspace %d\n", __func__, ks->tx_space);
  526. }
  527. if (status & IRQ_RXI)
  528. handled |= IRQ_RXI;
  529. if (status & IRQ_SPIBEI) {
  530. dev_err(&ks->spidev->dev, "%s: spi bus error\n", __func__);
  531. handled |= IRQ_SPIBEI;
  532. }
  533. ks8851_wrreg16(ks, KS_ISR, handled);
  534. if (status & IRQ_RXI) {
  535. /* the datasheet says to disable the rx interrupt during
  536. * packet read-out, however we're masking the interrupt
  537. * from the device so do not bother masking just the RX
  538. * from the device. */
  539. ks8851_rx_pkts(ks);
  540. }
  541. /* if something stopped the rx process, probably due to wanting
  542. * to change the rx settings, then do something about restarting
  543. * it. */
  544. if (status & IRQ_RXPSI) {
  545. struct ks8851_rxctrl *rxc = &ks->rxctrl;
  546. /* update the multicast hash table */
  547. ks8851_wrreg16(ks, KS_MAHTR0, rxc->mchash[0]);
  548. ks8851_wrreg16(ks, KS_MAHTR1, rxc->mchash[1]);
  549. ks8851_wrreg16(ks, KS_MAHTR2, rxc->mchash[2]);
  550. ks8851_wrreg16(ks, KS_MAHTR3, rxc->mchash[3]);
  551. ks8851_wrreg16(ks, KS_RXCR2, rxc->rxcr2);
  552. ks8851_wrreg16(ks, KS_RXCR1, rxc->rxcr1);
  553. }
  554. mutex_unlock(&ks->lock);
  555. if (status & IRQ_LCI)
  556. mii_check_link(&ks->mii);
  557. if (status & IRQ_TXI)
  558. netif_wake_queue(ks->netdev);
  559. return IRQ_HANDLED;
  560. }
  561. /**
  562. * calc_txlen - calculate size of message to send packet
  563. * @len: Length of data
  564. *
  565. * Returns the size of the TXFIFO message needed to send
  566. * this packet.
  567. */
  568. static inline unsigned calc_txlen(unsigned len)
  569. {
  570. return ALIGN(len + 4, 4);
  571. }
  572. /**
  573. * ks8851_wrpkt - write packet to TX FIFO
  574. * @ks: The device state.
  575. * @txp: The sk_buff to transmit.
  576. * @irq: IRQ on completion of the packet.
  577. *
  578. * Send the @txp to the chip. This means creating the relevant packet header
  579. * specifying the length of the packet and the other information the chip
  580. * needs, such as IRQ on completion. Send the header and the packet data to
  581. * the device.
  582. */
  583. static void ks8851_wrpkt(struct ks8851_net *ks, struct sk_buff *txp, bool irq)
  584. {
  585. struct spi_transfer *xfer = ks->spi_xfer2;
  586. struct spi_message *msg = &ks->spi_msg2;
  587. unsigned fid = 0;
  588. int ret;
  589. netif_dbg(ks, tx_queued, ks->netdev, "%s: skb %p, %d@%p, irq %d\n",
  590. __func__, txp, txp->len, txp->data, irq);
  591. fid = ks->fid++;
  592. fid &= TXFR_TXFID_MASK;
  593. if (irq)
  594. fid |= TXFR_TXIC; /* irq on completion */
  595. /* start header at txb[1] to align txw entries */
  596. ks->txh.txb[1] = KS_SPIOP_TXFIFO;
  597. ks->txh.txw[1] = cpu_to_le16(fid);
  598. ks->txh.txw[2] = cpu_to_le16(txp->len);
  599. xfer->tx_buf = &ks->txh.txb[1];
  600. xfer->rx_buf = NULL;
  601. xfer->len = 5;
  602. xfer++;
  603. xfer->tx_buf = txp->data;
  604. xfer->rx_buf = NULL;
  605. xfer->len = ALIGN(txp->len, 4);
  606. ret = spi_sync(ks->spidev, msg);
  607. if (ret < 0)
  608. netdev_err(ks->netdev, "%s: spi_sync() failed\n", __func__);
  609. }
  610. /**
  611. * ks8851_done_tx - update and then free skbuff after transmitting
  612. * @ks: The device state
  613. * @txb: The buffer transmitted
  614. */
  615. static void ks8851_done_tx(struct ks8851_net *ks, struct sk_buff *txb)
  616. {
  617. struct net_device *dev = ks->netdev;
  618. dev->stats.tx_bytes += txb->len;
  619. dev->stats.tx_packets++;
  620. dev_kfree_skb(txb);
  621. }
  622. /**
  623. * ks8851_tx_work - process tx packet(s)
  624. * @work: The work strucutre what was scheduled.
  625. *
  626. * This is called when a number of packets have been scheduled for
  627. * transmission and need to be sent to the device.
  628. */
  629. static void ks8851_tx_work(struct work_struct *work)
  630. {
  631. struct ks8851_net *ks = container_of(work, struct ks8851_net, tx_work);
  632. struct sk_buff *txb;
  633. bool last = skb_queue_empty(&ks->txq);
  634. mutex_lock(&ks->lock);
  635. while (!last) {
  636. txb = skb_dequeue(&ks->txq);
  637. last = skb_queue_empty(&ks->txq);
  638. if (txb != NULL) {
  639. ks8851_wrreg16(ks, KS_RXQCR, ks->rc_rxqcr | RXQCR_SDA);
  640. ks8851_wrpkt(ks, txb, last);
  641. ks8851_wrreg16(ks, KS_RXQCR, ks->rc_rxqcr);
  642. ks8851_wrreg16(ks, KS_TXQCR, TXQCR_METFE);
  643. ks8851_done_tx(ks, txb);
  644. }
  645. }
  646. mutex_unlock(&ks->lock);
  647. }
  648. /**
  649. * ks8851_net_open - open network device
  650. * @dev: The network device being opened.
  651. *
  652. * Called when the network device is marked active, such as a user executing
  653. * 'ifconfig up' on the device.
  654. */
  655. static int ks8851_net_open(struct net_device *dev)
  656. {
  657. struct ks8851_net *ks = netdev_priv(dev);
  658. /* lock the card, even if we may not actually be doing anything
  659. * else at the moment */
  660. mutex_lock(&ks->lock);
  661. netif_dbg(ks, ifup, ks->netdev, "opening\n");
  662. /* bring chip out of any power saving mode it was in */
  663. ks8851_set_powermode(ks, PMECR_PM_NORMAL);
  664. /* issue a soft reset to the RX/TX QMU to put it into a known
  665. * state. */
  666. ks8851_soft_reset(ks, GRR_QMU);
  667. /* setup transmission parameters */
  668. ks8851_wrreg16(ks, KS_TXCR, (TXCR_TXE | /* enable transmit process */
  669. TXCR_TXPE | /* pad to min length */
  670. TXCR_TXCRC | /* add CRC */
  671. TXCR_TXFCE)); /* enable flow control */
  672. /* auto-increment tx data, reset tx pointer */
  673. ks8851_wrreg16(ks, KS_TXFDPR, TXFDPR_TXFPAI);
  674. /* setup receiver control */
  675. ks8851_wrreg16(ks, KS_RXCR1, (RXCR1_RXPAFMA | /* from mac filter */
  676. RXCR1_RXFCE | /* enable flow control */
  677. RXCR1_RXBE | /* broadcast enable */
  678. RXCR1_RXUE | /* unicast enable */
  679. RXCR1_RXE)); /* enable rx block */
  680. /* transfer entire frames out in one go */
  681. ks8851_wrreg16(ks, KS_RXCR2, RXCR2_SRDBL_FRAME);
  682. /* set receive counter timeouts */
  683. ks8851_wrreg16(ks, KS_RXDTTR, 1000); /* 1ms after first frame to IRQ */
  684. ks8851_wrreg16(ks, KS_RXDBCTR, 4096); /* >4Kbytes in buffer to IRQ */
  685. ks8851_wrreg16(ks, KS_RXFCTR, 10); /* 10 frames to IRQ */
  686. ks->rc_rxqcr = (RXQCR_RXFCTE | /* IRQ on frame count exceeded */
  687. RXQCR_RXDBCTE | /* IRQ on byte count exceeded */
  688. RXQCR_RXDTTE); /* IRQ on time exceeded */
  689. ks8851_wrreg16(ks, KS_RXQCR, ks->rc_rxqcr);
  690. /* clear then enable interrupts */
  691. #define STD_IRQ (IRQ_LCI | /* Link Change */ \
  692. IRQ_TXI | /* TX done */ \
  693. IRQ_RXI | /* RX done */ \
  694. IRQ_SPIBEI | /* SPI bus error */ \
  695. IRQ_TXPSI | /* TX process stop */ \
  696. IRQ_RXPSI) /* RX process stop */
  697. ks->rc_ier = STD_IRQ;
  698. ks8851_wrreg16(ks, KS_ISR, STD_IRQ);
  699. ks8851_wrreg16(ks, KS_IER, STD_IRQ);
  700. netif_start_queue(ks->netdev);
  701. netif_dbg(ks, ifup, ks->netdev, "network device up\n");
  702. mutex_unlock(&ks->lock);
  703. return 0;
  704. }
  705. /**
  706. * ks8851_net_stop - close network device
  707. * @dev: The device being closed.
  708. *
  709. * Called to close down a network device which has been active. Cancell any
  710. * work, shutdown the RX and TX process and then place the chip into a low
  711. * power state whilst it is not being used.
  712. */
  713. static int ks8851_net_stop(struct net_device *dev)
  714. {
  715. struct ks8851_net *ks = netdev_priv(dev);
  716. netif_info(ks, ifdown, dev, "shutting down\n");
  717. netif_stop_queue(dev);
  718. mutex_lock(&ks->lock);
  719. /* turn off the IRQs and ack any outstanding */
  720. ks8851_wrreg16(ks, KS_IER, 0x0000);
  721. ks8851_wrreg16(ks, KS_ISR, 0xffff);
  722. mutex_unlock(&ks->lock);
  723. /* stop any outstanding work */
  724. flush_work(&ks->tx_work);
  725. flush_work(&ks->rxctrl_work);
  726. mutex_lock(&ks->lock);
  727. /* shutdown RX process */
  728. ks8851_wrreg16(ks, KS_RXCR1, 0x0000);
  729. /* shutdown TX process */
  730. ks8851_wrreg16(ks, KS_TXCR, 0x0000);
  731. /* set powermode to soft power down to save power */
  732. ks8851_set_powermode(ks, PMECR_PM_SOFTDOWN);
  733. mutex_unlock(&ks->lock);
  734. /* ensure any queued tx buffers are dumped */
  735. while (!skb_queue_empty(&ks->txq)) {
  736. struct sk_buff *txb = skb_dequeue(&ks->txq);
  737. netif_dbg(ks, ifdown, ks->netdev,
  738. "%s: freeing txb %p\n", __func__, txb);
  739. dev_kfree_skb(txb);
  740. }
  741. return 0;
  742. }
  743. /**
  744. * ks8851_start_xmit - transmit packet
  745. * @skb: The buffer to transmit
  746. * @dev: The device used to transmit the packet.
  747. *
  748. * Called by the network layer to transmit the @skb. Queue the packet for
  749. * the device and schedule the necessary work to transmit the packet when
  750. * it is free.
  751. *
  752. * We do this to firstly avoid sleeping with the network device locked,
  753. * and secondly so we can round up more than one packet to transmit which
  754. * means we can try and avoid generating too many transmit done interrupts.
  755. */
  756. static netdev_tx_t ks8851_start_xmit(struct sk_buff *skb,
  757. struct net_device *dev)
  758. {
  759. struct ks8851_net *ks = netdev_priv(dev);
  760. unsigned needed = calc_txlen(skb->len);
  761. netdev_tx_t ret = NETDEV_TX_OK;
  762. netif_dbg(ks, tx_queued, ks->netdev,
  763. "%s: skb %p, %d@%p\n", __func__, skb, skb->len, skb->data);
  764. spin_lock(&ks->statelock);
  765. if (needed > ks->tx_space) {
  766. netif_stop_queue(dev);
  767. ret = NETDEV_TX_BUSY;
  768. } else {
  769. ks->tx_space -= needed;
  770. skb_queue_tail(&ks->txq, skb);
  771. }
  772. spin_unlock(&ks->statelock);
  773. schedule_work(&ks->tx_work);
  774. return ret;
  775. }
  776. /**
  777. * ks8851_rxctrl_work - work handler to change rx mode
  778. * @work: The work structure this belongs to.
  779. *
  780. * Lock the device and issue the necessary changes to the receive mode from
  781. * the network device layer. This is done so that we can do this without
  782. * having to sleep whilst holding the network device lock.
  783. *
  784. * Since the recommendation from Micrel is that the RXQ is shutdown whilst the
  785. * receive parameters are programmed, we issue a write to disable the RXQ and
  786. * then wait for the interrupt handler to be triggered once the RXQ shutdown is
  787. * complete. The interrupt handler then writes the new values into the chip.
  788. */
  789. static void ks8851_rxctrl_work(struct work_struct *work)
  790. {
  791. struct ks8851_net *ks = container_of(work, struct ks8851_net, rxctrl_work);
  792. mutex_lock(&ks->lock);
  793. /* need to shutdown RXQ before modifying filter parameters */
  794. ks8851_wrreg16(ks, KS_RXCR1, 0x00);
  795. mutex_unlock(&ks->lock);
  796. }
  797. static void ks8851_set_rx_mode(struct net_device *dev)
  798. {
  799. struct ks8851_net *ks = netdev_priv(dev);
  800. struct ks8851_rxctrl rxctrl;
  801. memset(&rxctrl, 0, sizeof(rxctrl));
  802. if (dev->flags & IFF_PROMISC) {
  803. /* interface to receive everything */
  804. rxctrl.rxcr1 = RXCR1_RXAE | RXCR1_RXINVF;
  805. } else if (dev->flags & IFF_ALLMULTI) {
  806. /* accept all multicast packets */
  807. rxctrl.rxcr1 = (RXCR1_RXME | RXCR1_RXAE |
  808. RXCR1_RXPAFMA | RXCR1_RXMAFMA);
  809. } else if (dev->flags & IFF_MULTICAST && !netdev_mc_empty(dev)) {
  810. struct netdev_hw_addr *ha;
  811. u32 crc;
  812. /* accept some multicast */
  813. netdev_for_each_mc_addr(ha, dev) {
  814. crc = ether_crc(ETH_ALEN, ha->addr);
  815. crc >>= (32 - 6); /* get top six bits */
  816. rxctrl.mchash[crc >> 4] |= (1 << (crc & 0xf));
  817. }
  818. rxctrl.rxcr1 = RXCR1_RXME | RXCR1_RXPAFMA;
  819. } else {
  820. /* just accept broadcast / unicast */
  821. rxctrl.rxcr1 = RXCR1_RXPAFMA;
  822. }
  823. rxctrl.rxcr1 |= (RXCR1_RXUE | /* unicast enable */
  824. RXCR1_RXBE | /* broadcast enable */
  825. RXCR1_RXE | /* RX process enable */
  826. RXCR1_RXFCE); /* enable flow control */
  827. rxctrl.rxcr2 |= RXCR2_SRDBL_FRAME;
  828. /* schedule work to do the actual set of the data if needed */
  829. spin_lock(&ks->statelock);
  830. if (memcmp(&rxctrl, &ks->rxctrl, sizeof(rxctrl)) != 0) {
  831. memcpy(&ks->rxctrl, &rxctrl, sizeof(ks->rxctrl));
  832. schedule_work(&ks->rxctrl_work);
  833. }
  834. spin_unlock(&ks->statelock);
  835. }
  836. static int ks8851_set_mac_address(struct net_device *dev, void *addr)
  837. {
  838. struct sockaddr *sa = addr;
  839. if (netif_running(dev))
  840. return -EBUSY;
  841. if (!is_valid_ether_addr(sa->sa_data))
  842. return -EADDRNOTAVAIL;
  843. memcpy(dev->dev_addr, sa->sa_data, ETH_ALEN);
  844. return ks8851_write_mac_addr(dev);
  845. }
  846. static int ks8851_net_ioctl(struct net_device *dev, struct ifreq *req, int cmd)
  847. {
  848. struct ks8851_net *ks = netdev_priv(dev);
  849. if (!netif_running(dev))
  850. return -EINVAL;
  851. return generic_mii_ioctl(&ks->mii, if_mii(req), cmd, NULL);
  852. }
  853. static const struct net_device_ops ks8851_netdev_ops = {
  854. .ndo_open = ks8851_net_open,
  855. .ndo_stop = ks8851_net_stop,
  856. .ndo_do_ioctl = ks8851_net_ioctl,
  857. .ndo_start_xmit = ks8851_start_xmit,
  858. .ndo_set_mac_address = ks8851_set_mac_address,
  859. .ndo_set_rx_mode = ks8851_set_rx_mode,
  860. .ndo_validate_addr = eth_validate_addr,
  861. };
  862. /* ethtool support */
  863. static void ks8851_get_drvinfo(struct net_device *dev,
  864. struct ethtool_drvinfo *di)
  865. {
  866. strlcpy(di->driver, "KS8851", sizeof(di->driver));
  867. strlcpy(di->version, "1.00", sizeof(di->version));
  868. strlcpy(di->bus_info, dev_name(dev->dev.parent), sizeof(di->bus_info));
  869. }
  870. static u32 ks8851_get_msglevel(struct net_device *dev)
  871. {
  872. struct ks8851_net *ks = netdev_priv(dev);
  873. return ks->msg_enable;
  874. }
  875. static void ks8851_set_msglevel(struct net_device *dev, u32 to)
  876. {
  877. struct ks8851_net *ks = netdev_priv(dev);
  878. ks->msg_enable = to;
  879. }
  880. static int ks8851_get_link_ksettings(struct net_device *dev,
  881. struct ethtool_link_ksettings *cmd)
  882. {
  883. struct ks8851_net *ks = netdev_priv(dev);
  884. mii_ethtool_get_link_ksettings(&ks->mii, cmd);
  885. return 0;
  886. }
  887. static int ks8851_set_link_ksettings(struct net_device *dev,
  888. const struct ethtool_link_ksettings *cmd)
  889. {
  890. struct ks8851_net *ks = netdev_priv(dev);
  891. return mii_ethtool_set_link_ksettings(&ks->mii, cmd);
  892. }
  893. static u32 ks8851_get_link(struct net_device *dev)
  894. {
  895. struct ks8851_net *ks = netdev_priv(dev);
  896. return mii_link_ok(&ks->mii);
  897. }
  898. static int ks8851_nway_reset(struct net_device *dev)
  899. {
  900. struct ks8851_net *ks = netdev_priv(dev);
  901. return mii_nway_restart(&ks->mii);
  902. }
  903. /* EEPROM support */
  904. static void ks8851_eeprom_regread(struct eeprom_93cx6 *ee)
  905. {
  906. struct ks8851_net *ks = ee->data;
  907. unsigned val;
  908. val = ks8851_rdreg16(ks, KS_EEPCR);
  909. ee->reg_data_out = (val & EEPCR_EESB) ? 1 : 0;
  910. ee->reg_data_clock = (val & EEPCR_EESCK) ? 1 : 0;
  911. ee->reg_chip_select = (val & EEPCR_EECS) ? 1 : 0;
  912. }
  913. static void ks8851_eeprom_regwrite(struct eeprom_93cx6 *ee)
  914. {
  915. struct ks8851_net *ks = ee->data;
  916. unsigned val = EEPCR_EESA; /* default - eeprom access on */
  917. if (ee->drive_data)
  918. val |= EEPCR_EESRWA;
  919. if (ee->reg_data_in)
  920. val |= EEPCR_EEDO;
  921. if (ee->reg_data_clock)
  922. val |= EEPCR_EESCK;
  923. if (ee->reg_chip_select)
  924. val |= EEPCR_EECS;
  925. ks8851_wrreg16(ks, KS_EEPCR, val);
  926. }
  927. /**
  928. * ks8851_eeprom_claim - claim device EEPROM and activate the interface
  929. * @ks: The network device state.
  930. *
  931. * Check for the presence of an EEPROM, and then activate software access
  932. * to the device.
  933. */
  934. static int ks8851_eeprom_claim(struct ks8851_net *ks)
  935. {
  936. if (!(ks->rc_ccr & CCR_EEPROM))
  937. return -ENOENT;
  938. mutex_lock(&ks->lock);
  939. /* start with clock low, cs high */
  940. ks8851_wrreg16(ks, KS_EEPCR, EEPCR_EESA | EEPCR_EECS);
  941. return 0;
  942. }
  943. /**
  944. * ks8851_eeprom_release - release the EEPROM interface
  945. * @ks: The device state
  946. *
  947. * Release the software access to the device EEPROM
  948. */
  949. static void ks8851_eeprom_release(struct ks8851_net *ks)
  950. {
  951. unsigned val = ks8851_rdreg16(ks, KS_EEPCR);
  952. ks8851_wrreg16(ks, KS_EEPCR, val & ~EEPCR_EESA);
  953. mutex_unlock(&ks->lock);
  954. }
  955. #define KS_EEPROM_MAGIC (0x00008851)
  956. static int ks8851_set_eeprom(struct net_device *dev,
  957. struct ethtool_eeprom *ee, u8 *data)
  958. {
  959. struct ks8851_net *ks = netdev_priv(dev);
  960. int offset = ee->offset;
  961. int len = ee->len;
  962. u16 tmp;
  963. /* currently only support byte writing */
  964. if (len != 1)
  965. return -EINVAL;
  966. if (ee->magic != KS_EEPROM_MAGIC)
  967. return -EINVAL;
  968. if (ks8851_eeprom_claim(ks))
  969. return -ENOENT;
  970. eeprom_93cx6_wren(&ks->eeprom, true);
  971. /* ethtool currently only supports writing bytes, which means
  972. * we have to read/modify/write our 16bit EEPROMs */
  973. eeprom_93cx6_read(&ks->eeprom, offset/2, &tmp);
  974. if (offset & 1) {
  975. tmp &= 0xff;
  976. tmp |= *data << 8;
  977. } else {
  978. tmp &= 0xff00;
  979. tmp |= *data;
  980. }
  981. eeprom_93cx6_write(&ks->eeprom, offset/2, tmp);
  982. eeprom_93cx6_wren(&ks->eeprom, false);
  983. ks8851_eeprom_release(ks);
  984. return 0;
  985. }
  986. static int ks8851_get_eeprom(struct net_device *dev,
  987. struct ethtool_eeprom *ee, u8 *data)
  988. {
  989. struct ks8851_net *ks = netdev_priv(dev);
  990. int offset = ee->offset;
  991. int len = ee->len;
  992. /* must be 2 byte aligned */
  993. if (len & 1 || offset & 1)
  994. return -EINVAL;
  995. if (ks8851_eeprom_claim(ks))
  996. return -ENOENT;
  997. ee->magic = KS_EEPROM_MAGIC;
  998. eeprom_93cx6_multiread(&ks->eeprom, offset/2, (__le16 *)data, len/2);
  999. ks8851_eeprom_release(ks);
  1000. return 0;
  1001. }
  1002. static int ks8851_get_eeprom_len(struct net_device *dev)
  1003. {
  1004. struct ks8851_net *ks = netdev_priv(dev);
  1005. /* currently, we assume it is an 93C46 attached, so return 128 */
  1006. return ks->rc_ccr & CCR_EEPROM ? 128 : 0;
  1007. }
  1008. static const struct ethtool_ops ks8851_ethtool_ops = {
  1009. .get_drvinfo = ks8851_get_drvinfo,
  1010. .get_msglevel = ks8851_get_msglevel,
  1011. .set_msglevel = ks8851_set_msglevel,
  1012. .get_link = ks8851_get_link,
  1013. .nway_reset = ks8851_nway_reset,
  1014. .get_eeprom_len = ks8851_get_eeprom_len,
  1015. .get_eeprom = ks8851_get_eeprom,
  1016. .set_eeprom = ks8851_set_eeprom,
  1017. .get_link_ksettings = ks8851_get_link_ksettings,
  1018. .set_link_ksettings = ks8851_set_link_ksettings,
  1019. };
  1020. /* MII interface controls */
  1021. /**
  1022. * ks8851_phy_reg - convert MII register into a KS8851 register
  1023. * @reg: MII register number.
  1024. *
  1025. * Return the KS8851 register number for the corresponding MII PHY register
  1026. * if possible. Return zero if the MII register has no direct mapping to the
  1027. * KS8851 register set.
  1028. */
  1029. static int ks8851_phy_reg(int reg)
  1030. {
  1031. switch (reg) {
  1032. case MII_BMCR:
  1033. return KS_P1MBCR;
  1034. case MII_BMSR:
  1035. return KS_P1MBSR;
  1036. case MII_PHYSID1:
  1037. return KS_PHY1ILR;
  1038. case MII_PHYSID2:
  1039. return KS_PHY1IHR;
  1040. case MII_ADVERTISE:
  1041. return KS_P1ANAR;
  1042. case MII_LPA:
  1043. return KS_P1ANLPR;
  1044. }
  1045. return 0x0;
  1046. }
  1047. /**
  1048. * ks8851_phy_read - MII interface PHY register read.
  1049. * @dev: The network device the PHY is on.
  1050. * @phy_addr: Address of PHY (ignored as we only have one)
  1051. * @reg: The register to read.
  1052. *
  1053. * This call reads data from the PHY register specified in @reg. Since the
  1054. * device does not support all the MII registers, the non-existent values
  1055. * are always returned as zero.
  1056. *
  1057. * We return zero for unsupported registers as the MII code does not check
  1058. * the value returned for any error status, and simply returns it to the
  1059. * caller. The mii-tool that the driver was tested with takes any -ve error
  1060. * as real PHY capabilities, thus displaying incorrect data to the user.
  1061. */
  1062. static int ks8851_phy_read(struct net_device *dev, int phy_addr, int reg)
  1063. {
  1064. struct ks8851_net *ks = netdev_priv(dev);
  1065. int ksreg;
  1066. int result;
  1067. ksreg = ks8851_phy_reg(reg);
  1068. if (!ksreg)
  1069. return 0x0; /* no error return allowed, so use zero */
  1070. mutex_lock(&ks->lock);
  1071. result = ks8851_rdreg16(ks, ksreg);
  1072. mutex_unlock(&ks->lock);
  1073. return result;
  1074. }
  1075. static void ks8851_phy_write(struct net_device *dev,
  1076. int phy, int reg, int value)
  1077. {
  1078. struct ks8851_net *ks = netdev_priv(dev);
  1079. int ksreg;
  1080. ksreg = ks8851_phy_reg(reg);
  1081. if (ksreg) {
  1082. mutex_lock(&ks->lock);
  1083. ks8851_wrreg16(ks, ksreg, value);
  1084. mutex_unlock(&ks->lock);
  1085. }
  1086. }
  1087. /**
  1088. * ks8851_read_selftest - read the selftest memory info.
  1089. * @ks: The device state
  1090. *
  1091. * Read and check the TX/RX memory selftest information.
  1092. */
  1093. static int ks8851_read_selftest(struct ks8851_net *ks)
  1094. {
  1095. unsigned both_done = MBIR_TXMBF | MBIR_RXMBF;
  1096. int ret = 0;
  1097. unsigned rd;
  1098. rd = ks8851_rdreg16(ks, KS_MBIR);
  1099. if ((rd & both_done) != both_done) {
  1100. netdev_warn(ks->netdev, "Memory selftest not finished\n");
  1101. return 0;
  1102. }
  1103. if (rd & MBIR_TXMBFA) {
  1104. netdev_err(ks->netdev, "TX memory selftest fail\n");
  1105. ret |= 1;
  1106. }
  1107. if (rd & MBIR_RXMBFA) {
  1108. netdev_err(ks->netdev, "RX memory selftest fail\n");
  1109. ret |= 2;
  1110. }
  1111. return 0;
  1112. }
  1113. /* driver bus management functions */
  1114. #ifdef CONFIG_PM_SLEEP
  1115. static int ks8851_suspend(struct device *dev)
  1116. {
  1117. struct ks8851_net *ks = dev_get_drvdata(dev);
  1118. struct net_device *netdev = ks->netdev;
  1119. if (netif_running(netdev)) {
  1120. netif_device_detach(netdev);
  1121. ks8851_net_stop(netdev);
  1122. }
  1123. return 0;
  1124. }
  1125. static int ks8851_resume(struct device *dev)
  1126. {
  1127. struct ks8851_net *ks = dev_get_drvdata(dev);
  1128. struct net_device *netdev = ks->netdev;
  1129. if (netif_running(netdev)) {
  1130. ks8851_net_open(netdev);
  1131. netif_device_attach(netdev);
  1132. }
  1133. return 0;
  1134. }
  1135. #endif
  1136. static SIMPLE_DEV_PM_OPS(ks8851_pm_ops, ks8851_suspend, ks8851_resume);
  1137. static int ks8851_probe(struct spi_device *spi)
  1138. {
  1139. struct net_device *ndev;
  1140. struct ks8851_net *ks;
  1141. int ret;
  1142. unsigned cider;
  1143. int gpio;
  1144. ndev = alloc_etherdev(sizeof(struct ks8851_net));
  1145. if (!ndev)
  1146. return -ENOMEM;
  1147. spi->bits_per_word = 8;
  1148. ks = netdev_priv(ndev);
  1149. ks->netdev = ndev;
  1150. ks->spidev = spi;
  1151. ks->tx_space = 6144;
  1152. gpio = of_get_named_gpio_flags(spi->dev.of_node, "reset-gpios",
  1153. 0, NULL);
  1154. if (gpio == -EPROBE_DEFER) {
  1155. ret = gpio;
  1156. goto err_gpio;
  1157. }
  1158. ks->gpio = gpio;
  1159. if (gpio_is_valid(gpio)) {
  1160. ret = devm_gpio_request_one(&spi->dev, gpio,
  1161. GPIOF_OUT_INIT_LOW, "ks8851_rst_n");
  1162. if (ret) {
  1163. dev_err(&spi->dev, "reset gpio request failed\n");
  1164. goto err_gpio;
  1165. }
  1166. }
  1167. ks->vdd_io = devm_regulator_get(&spi->dev, "vdd-io");
  1168. if (IS_ERR(ks->vdd_io)) {
  1169. ret = PTR_ERR(ks->vdd_io);
  1170. goto err_reg_io;
  1171. }
  1172. ret = regulator_enable(ks->vdd_io);
  1173. if (ret) {
  1174. dev_err(&spi->dev, "regulator vdd_io enable fail: %d\n",
  1175. ret);
  1176. goto err_reg_io;
  1177. }
  1178. ks->vdd_reg = devm_regulator_get(&spi->dev, "vdd");
  1179. if (IS_ERR(ks->vdd_reg)) {
  1180. ret = PTR_ERR(ks->vdd_reg);
  1181. goto err_reg;
  1182. }
  1183. ret = regulator_enable(ks->vdd_reg);
  1184. if (ret) {
  1185. dev_err(&spi->dev, "regulator vdd enable fail: %d\n",
  1186. ret);
  1187. goto err_reg;
  1188. }
  1189. if (gpio_is_valid(gpio)) {
  1190. usleep_range(10000, 11000);
  1191. gpio_set_value(gpio, 1);
  1192. }
  1193. mutex_init(&ks->lock);
  1194. spin_lock_init(&ks->statelock);
  1195. INIT_WORK(&ks->tx_work, ks8851_tx_work);
  1196. INIT_WORK(&ks->rxctrl_work, ks8851_rxctrl_work);
  1197. /* initialise pre-made spi transfer messages */
  1198. spi_message_init(&ks->spi_msg1);
  1199. spi_message_add_tail(&ks->spi_xfer1, &ks->spi_msg1);
  1200. spi_message_init(&ks->spi_msg2);
  1201. spi_message_add_tail(&ks->spi_xfer2[0], &ks->spi_msg2);
  1202. spi_message_add_tail(&ks->spi_xfer2[1], &ks->spi_msg2);
  1203. /* setup EEPROM state */
  1204. ks->eeprom.data = ks;
  1205. ks->eeprom.width = PCI_EEPROM_WIDTH_93C46;
  1206. ks->eeprom.register_read = ks8851_eeprom_regread;
  1207. ks->eeprom.register_write = ks8851_eeprom_regwrite;
  1208. /* setup mii state */
  1209. ks->mii.dev = ndev;
  1210. ks->mii.phy_id = 1,
  1211. ks->mii.phy_id_mask = 1;
  1212. ks->mii.reg_num_mask = 0xf;
  1213. ks->mii.mdio_read = ks8851_phy_read;
  1214. ks->mii.mdio_write = ks8851_phy_write;
  1215. dev_info(&spi->dev, "message enable is %d\n", msg_enable);
  1216. /* set the default message enable */
  1217. ks->msg_enable = netif_msg_init(msg_enable, (NETIF_MSG_DRV |
  1218. NETIF_MSG_PROBE |
  1219. NETIF_MSG_LINK));
  1220. skb_queue_head_init(&ks->txq);
  1221. ndev->ethtool_ops = &ks8851_ethtool_ops;
  1222. SET_NETDEV_DEV(ndev, &spi->dev);
  1223. spi_set_drvdata(spi, ks);
  1224. ndev->if_port = IF_PORT_100BASET;
  1225. ndev->netdev_ops = &ks8851_netdev_ops;
  1226. ndev->irq = spi->irq;
  1227. /* issue a global soft reset to reset the device. */
  1228. ks8851_soft_reset(ks, GRR_GSR);
  1229. /* simple check for a valid chip being connected to the bus */
  1230. cider = ks8851_rdreg16(ks, KS_CIDER);
  1231. if ((cider & ~CIDER_REV_MASK) != CIDER_ID) {
  1232. dev_err(&spi->dev, "failed to read device ID\n");
  1233. ret = -ENODEV;
  1234. goto err_id;
  1235. }
  1236. /* cache the contents of the CCR register for EEPROM, etc. */
  1237. ks->rc_ccr = ks8851_rdreg16(ks, KS_CCR);
  1238. ks8851_read_selftest(ks);
  1239. ks8851_init_mac(ks);
  1240. ret = request_threaded_irq(spi->irq, NULL, ks8851_irq,
  1241. IRQF_TRIGGER_LOW | IRQF_ONESHOT,
  1242. ndev->name, ks);
  1243. if (ret < 0) {
  1244. dev_err(&spi->dev, "failed to get irq\n");
  1245. goto err_irq;
  1246. }
  1247. ret = register_netdev(ndev);
  1248. if (ret) {
  1249. dev_err(&spi->dev, "failed to register network device\n");
  1250. goto err_netdev;
  1251. }
  1252. netdev_info(ndev, "revision %d, MAC %pM, IRQ %d, %s EEPROM\n",
  1253. CIDER_REV_GET(cider), ndev->dev_addr, ndev->irq,
  1254. ks->rc_ccr & CCR_EEPROM ? "has" : "no");
  1255. return 0;
  1256. err_netdev:
  1257. free_irq(ndev->irq, ks);
  1258. err_irq:
  1259. if (gpio_is_valid(gpio))
  1260. gpio_set_value(gpio, 0);
  1261. err_id:
  1262. regulator_disable(ks->vdd_reg);
  1263. err_reg:
  1264. regulator_disable(ks->vdd_io);
  1265. err_reg_io:
  1266. err_gpio:
  1267. free_netdev(ndev);
  1268. return ret;
  1269. }
  1270. static int ks8851_remove(struct spi_device *spi)
  1271. {
  1272. struct ks8851_net *priv = spi_get_drvdata(spi);
  1273. if (netif_msg_drv(priv))
  1274. dev_info(&spi->dev, "remove\n");
  1275. unregister_netdev(priv->netdev);
  1276. free_irq(spi->irq, priv);
  1277. if (gpio_is_valid(priv->gpio))
  1278. gpio_set_value(priv->gpio, 0);
  1279. regulator_disable(priv->vdd_reg);
  1280. regulator_disable(priv->vdd_io);
  1281. free_netdev(priv->netdev);
  1282. return 0;
  1283. }
  1284. static const struct of_device_id ks8851_match_table[] = {
  1285. { .compatible = "micrel,ks8851" },
  1286. { }
  1287. };
  1288. MODULE_DEVICE_TABLE(of, ks8851_match_table);
  1289. static struct spi_driver ks8851_driver = {
  1290. .driver = {
  1291. .name = "ks8851",
  1292. .of_match_table = ks8851_match_table,
  1293. .pm = &ks8851_pm_ops,
  1294. },
  1295. .probe = ks8851_probe,
  1296. .remove = ks8851_remove,
  1297. };
  1298. module_spi_driver(ks8851_driver);
  1299. MODULE_DESCRIPTION("KS8851 Network driver");
  1300. MODULE_AUTHOR("Ben Dooks <ben@simtec.co.uk>");
  1301. MODULE_LICENSE("GPL");
  1302. module_param_named(message, msg_enable, int, 0);
  1303. MODULE_PARM_DESC(message, "Message verbosity level (0=none, 31=all)");
  1304. MODULE_ALIAS("spi:ks8851");