sungem.c 79 KB

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  1. /* $Id: sungem.c,v 1.44.2.22 2002/03/13 01:18:12 davem Exp $
  2. * sungem.c: Sun GEM ethernet driver.
  3. *
  4. * Copyright (C) 2000, 2001, 2002, 2003 David S. Miller (davem@redhat.com)
  5. *
  6. * Support for Apple GMAC and assorted PHYs, WOL, Power Management
  7. * (C) 2001,2002,2003 Benjamin Herrenscmidt (benh@kernel.crashing.org)
  8. * (C) 2004,2005 Benjamin Herrenscmidt, IBM Corp.
  9. *
  10. * NAPI and NETPOLL support
  11. * (C) 2004 by Eric Lemoine (eric.lemoine@gmail.com)
  12. *
  13. * TODO:
  14. * - Now that the driver was significantly simplified, I need to rework
  15. * the locking. I'm sure we don't need _2_ spinlocks, and we probably
  16. * can avoid taking most of them for so long period of time (and schedule
  17. * instead). The main issues at this point are caused by the netdev layer
  18. * though:
  19. *
  20. * gem_change_mtu() and gem_set_multicast() are called with a read_lock()
  21. * help by net/core/dev.c, thus they can't schedule. That means they can't
  22. * call netif_poll_disable() neither, thus force gem_poll() to keep a spinlock
  23. * where it could have been dropped. change_mtu especially would love also to
  24. * be able to msleep instead of horrid locked delays when resetting the HW,
  25. * but that read_lock() makes it impossible, unless I defer it's action to
  26. * the reset task, which means it'll be asynchronous (won't take effect until
  27. * the system schedules a bit).
  28. *
  29. * Also, it would probably be possible to also remove most of the long-life
  30. * locking in open/resume code path (gem_reinit_chip) by beeing more careful
  31. * about when we can start taking interrupts or get xmit() called...
  32. */
  33. #include <linux/module.h>
  34. #include <linux/kernel.h>
  35. #include <linux/types.h>
  36. #include <linux/fcntl.h>
  37. #include <linux/interrupt.h>
  38. #include <linux/ioport.h>
  39. #include <linux/in.h>
  40. #include <linux/slab.h>
  41. #include <linux/string.h>
  42. #include <linux/delay.h>
  43. #include <linux/init.h>
  44. #include <linux/errno.h>
  45. #include <linux/pci.h>
  46. #include <linux/dma-mapping.h>
  47. #include <linux/netdevice.h>
  48. #include <linux/etherdevice.h>
  49. #include <linux/skbuff.h>
  50. #include <linux/mii.h>
  51. #include <linux/ethtool.h>
  52. #include <linux/crc32.h>
  53. #include <linux/random.h>
  54. #include <linux/workqueue.h>
  55. #include <linux/if_vlan.h>
  56. #include <linux/bitops.h>
  57. #include <linux/mutex.h>
  58. #include <asm/system.h>
  59. #include <asm/io.h>
  60. #include <asm/byteorder.h>
  61. #include <asm/uaccess.h>
  62. #include <asm/irq.h>
  63. #ifdef __sparc__
  64. #include <asm/idprom.h>
  65. #include <asm/openprom.h>
  66. #include <asm/oplib.h>
  67. #include <asm/pbm.h>
  68. #endif
  69. #ifdef CONFIG_PPC_PMAC
  70. #include <asm/pci-bridge.h>
  71. #include <asm/prom.h>
  72. #include <asm/machdep.h>
  73. #include <asm/pmac_feature.h>
  74. #endif
  75. #include "sungem_phy.h"
  76. #include "sungem.h"
  77. /* Stripping FCS is causing problems, disabled for now */
  78. #undef STRIP_FCS
  79. #define DEFAULT_MSG (NETIF_MSG_DRV | \
  80. NETIF_MSG_PROBE | \
  81. NETIF_MSG_LINK)
  82. #define ADVERTISE_MASK (SUPPORTED_10baseT_Half | SUPPORTED_10baseT_Full | \
  83. SUPPORTED_100baseT_Half | SUPPORTED_100baseT_Full | \
  84. SUPPORTED_1000baseT_Half | SUPPORTED_1000baseT_Full)
  85. #define DRV_NAME "sungem"
  86. #define DRV_VERSION "0.98"
  87. #define DRV_RELDATE "8/24/03"
  88. #define DRV_AUTHOR "David S. Miller (davem@redhat.com)"
  89. static char version[] __devinitdata =
  90. DRV_NAME ".c:v" DRV_VERSION " " DRV_RELDATE " " DRV_AUTHOR "\n";
  91. MODULE_AUTHOR(DRV_AUTHOR);
  92. MODULE_DESCRIPTION("Sun GEM Gbit ethernet driver");
  93. MODULE_LICENSE("GPL");
  94. #define GEM_MODULE_NAME "gem"
  95. #define PFX GEM_MODULE_NAME ": "
  96. static struct pci_device_id gem_pci_tbl[] = {
  97. { PCI_VENDOR_ID_SUN, PCI_DEVICE_ID_SUN_GEM,
  98. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  99. /* These models only differ from the original GEM in
  100. * that their tx/rx fifos are of a different size and
  101. * they only support 10/100 speeds. -DaveM
  102. *
  103. * Apple's GMAC does support gigabit on machines with
  104. * the BCM54xx PHYs. -BenH
  105. */
  106. { PCI_VENDOR_ID_SUN, PCI_DEVICE_ID_SUN_RIO_GEM,
  107. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  108. { PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_UNI_N_GMAC,
  109. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  110. { PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_UNI_N_GMACP,
  111. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  112. { PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_UNI_N_GMAC2,
  113. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  114. { PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_K2_GMAC,
  115. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  116. { PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_SH_SUNGEM,
  117. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  118. { PCI_VENDOR_ID_APPLE, PCI_DEVICE_ID_APPLE_IPID2_GMAC,
  119. PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
  120. {0, }
  121. };
  122. MODULE_DEVICE_TABLE(pci, gem_pci_tbl);
  123. static u16 __phy_read(struct gem *gp, int phy_addr, int reg)
  124. {
  125. u32 cmd;
  126. int limit = 10000;
  127. cmd = (1 << 30);
  128. cmd |= (2 << 28);
  129. cmd |= (phy_addr << 23) & MIF_FRAME_PHYAD;
  130. cmd |= (reg << 18) & MIF_FRAME_REGAD;
  131. cmd |= (MIF_FRAME_TAMSB);
  132. writel(cmd, gp->regs + MIF_FRAME);
  133. while (limit--) {
  134. cmd = readl(gp->regs + MIF_FRAME);
  135. if (cmd & MIF_FRAME_TALSB)
  136. break;
  137. udelay(10);
  138. }
  139. if (!limit)
  140. cmd = 0xffff;
  141. return cmd & MIF_FRAME_DATA;
  142. }
  143. static inline int _phy_read(struct net_device *dev, int mii_id, int reg)
  144. {
  145. struct gem *gp = dev->priv;
  146. return __phy_read(gp, mii_id, reg);
  147. }
  148. static inline u16 phy_read(struct gem *gp, int reg)
  149. {
  150. return __phy_read(gp, gp->mii_phy_addr, reg);
  151. }
  152. static void __phy_write(struct gem *gp, int phy_addr, int reg, u16 val)
  153. {
  154. u32 cmd;
  155. int limit = 10000;
  156. cmd = (1 << 30);
  157. cmd |= (1 << 28);
  158. cmd |= (phy_addr << 23) & MIF_FRAME_PHYAD;
  159. cmd |= (reg << 18) & MIF_FRAME_REGAD;
  160. cmd |= (MIF_FRAME_TAMSB);
  161. cmd |= (val & MIF_FRAME_DATA);
  162. writel(cmd, gp->regs + MIF_FRAME);
  163. while (limit--) {
  164. cmd = readl(gp->regs + MIF_FRAME);
  165. if (cmd & MIF_FRAME_TALSB)
  166. break;
  167. udelay(10);
  168. }
  169. }
  170. static inline void _phy_write(struct net_device *dev, int mii_id, int reg, int val)
  171. {
  172. struct gem *gp = dev->priv;
  173. __phy_write(gp, mii_id, reg, val & 0xffff);
  174. }
  175. static inline void phy_write(struct gem *gp, int reg, u16 val)
  176. {
  177. __phy_write(gp, gp->mii_phy_addr, reg, val);
  178. }
  179. static inline void gem_enable_ints(struct gem *gp)
  180. {
  181. /* Enable all interrupts but TXDONE */
  182. writel(GREG_STAT_TXDONE, gp->regs + GREG_IMASK);
  183. }
  184. static inline void gem_disable_ints(struct gem *gp)
  185. {
  186. /* Disable all interrupts, including TXDONE */
  187. writel(GREG_STAT_NAPI | GREG_STAT_TXDONE, gp->regs + GREG_IMASK);
  188. }
  189. static void gem_get_cell(struct gem *gp)
  190. {
  191. BUG_ON(gp->cell_enabled < 0);
  192. gp->cell_enabled++;
  193. #ifdef CONFIG_PPC_PMAC
  194. if (gp->cell_enabled == 1) {
  195. mb();
  196. pmac_call_feature(PMAC_FTR_GMAC_ENABLE, gp->of_node, 0, 1);
  197. udelay(10);
  198. }
  199. #endif /* CONFIG_PPC_PMAC */
  200. }
  201. /* Turn off the chip's clock */
  202. static void gem_put_cell(struct gem *gp)
  203. {
  204. BUG_ON(gp->cell_enabled <= 0);
  205. gp->cell_enabled--;
  206. #ifdef CONFIG_PPC_PMAC
  207. if (gp->cell_enabled == 0) {
  208. mb();
  209. pmac_call_feature(PMAC_FTR_GMAC_ENABLE, gp->of_node, 0, 0);
  210. udelay(10);
  211. }
  212. #endif /* CONFIG_PPC_PMAC */
  213. }
  214. static void gem_handle_mif_event(struct gem *gp, u32 reg_val, u32 changed_bits)
  215. {
  216. if (netif_msg_intr(gp))
  217. printk(KERN_DEBUG "%s: mif interrupt\n", gp->dev->name);
  218. }
  219. static int gem_pcs_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
  220. {
  221. u32 pcs_istat = readl(gp->regs + PCS_ISTAT);
  222. u32 pcs_miistat;
  223. if (netif_msg_intr(gp))
  224. printk(KERN_DEBUG "%s: pcs interrupt, pcs_istat: 0x%x\n",
  225. gp->dev->name, pcs_istat);
  226. if (!(pcs_istat & PCS_ISTAT_LSC)) {
  227. printk(KERN_ERR "%s: PCS irq but no link status change???\n",
  228. dev->name);
  229. return 0;
  230. }
  231. /* The link status bit latches on zero, so you must
  232. * read it twice in such a case to see a transition
  233. * to the link being up.
  234. */
  235. pcs_miistat = readl(gp->regs + PCS_MIISTAT);
  236. if (!(pcs_miistat & PCS_MIISTAT_LS))
  237. pcs_miistat |=
  238. (readl(gp->regs + PCS_MIISTAT) &
  239. PCS_MIISTAT_LS);
  240. if (pcs_miistat & PCS_MIISTAT_ANC) {
  241. /* The remote-fault indication is only valid
  242. * when autoneg has completed.
  243. */
  244. if (pcs_miistat & PCS_MIISTAT_RF)
  245. printk(KERN_INFO "%s: PCS AutoNEG complete, "
  246. "RemoteFault\n", dev->name);
  247. else
  248. printk(KERN_INFO "%s: PCS AutoNEG complete.\n",
  249. dev->name);
  250. }
  251. if (pcs_miistat & PCS_MIISTAT_LS) {
  252. printk(KERN_INFO "%s: PCS link is now up.\n",
  253. dev->name);
  254. netif_carrier_on(gp->dev);
  255. } else {
  256. printk(KERN_INFO "%s: PCS link is now down.\n",
  257. dev->name);
  258. netif_carrier_off(gp->dev);
  259. /* If this happens and the link timer is not running,
  260. * reset so we re-negotiate.
  261. */
  262. if (!timer_pending(&gp->link_timer))
  263. return 1;
  264. }
  265. return 0;
  266. }
  267. static int gem_txmac_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
  268. {
  269. u32 txmac_stat = readl(gp->regs + MAC_TXSTAT);
  270. if (netif_msg_intr(gp))
  271. printk(KERN_DEBUG "%s: txmac interrupt, txmac_stat: 0x%x\n",
  272. gp->dev->name, txmac_stat);
  273. /* Defer timer expiration is quite normal,
  274. * don't even log the event.
  275. */
  276. if ((txmac_stat & MAC_TXSTAT_DTE) &&
  277. !(txmac_stat & ~MAC_TXSTAT_DTE))
  278. return 0;
  279. if (txmac_stat & MAC_TXSTAT_URUN) {
  280. printk(KERN_ERR "%s: TX MAC xmit underrun.\n",
  281. dev->name);
  282. gp->net_stats.tx_fifo_errors++;
  283. }
  284. if (txmac_stat & MAC_TXSTAT_MPE) {
  285. printk(KERN_ERR "%s: TX MAC max packet size error.\n",
  286. dev->name);
  287. gp->net_stats.tx_errors++;
  288. }
  289. /* The rest are all cases of one of the 16-bit TX
  290. * counters expiring.
  291. */
  292. if (txmac_stat & MAC_TXSTAT_NCE)
  293. gp->net_stats.collisions += 0x10000;
  294. if (txmac_stat & MAC_TXSTAT_ECE) {
  295. gp->net_stats.tx_aborted_errors += 0x10000;
  296. gp->net_stats.collisions += 0x10000;
  297. }
  298. if (txmac_stat & MAC_TXSTAT_LCE) {
  299. gp->net_stats.tx_aborted_errors += 0x10000;
  300. gp->net_stats.collisions += 0x10000;
  301. }
  302. /* We do not keep track of MAC_TXSTAT_FCE and
  303. * MAC_TXSTAT_PCE events.
  304. */
  305. return 0;
  306. }
  307. /* When we get a RX fifo overflow, the RX unit in GEM is probably hung
  308. * so we do the following.
  309. *
  310. * If any part of the reset goes wrong, we return 1 and that causes the
  311. * whole chip to be reset.
  312. */
  313. static int gem_rxmac_reset(struct gem *gp)
  314. {
  315. struct net_device *dev = gp->dev;
  316. int limit, i;
  317. u64 desc_dma;
  318. u32 val;
  319. /* First, reset & disable MAC RX. */
  320. writel(MAC_RXRST_CMD, gp->regs + MAC_RXRST);
  321. for (limit = 0; limit < 5000; limit++) {
  322. if (!(readl(gp->regs + MAC_RXRST) & MAC_RXRST_CMD))
  323. break;
  324. udelay(10);
  325. }
  326. if (limit == 5000) {
  327. printk(KERN_ERR "%s: RX MAC will not reset, resetting whole "
  328. "chip.\n", dev->name);
  329. return 1;
  330. }
  331. writel(gp->mac_rx_cfg & ~MAC_RXCFG_ENAB,
  332. gp->regs + MAC_RXCFG);
  333. for (limit = 0; limit < 5000; limit++) {
  334. if (!(readl(gp->regs + MAC_RXCFG) & MAC_RXCFG_ENAB))
  335. break;
  336. udelay(10);
  337. }
  338. if (limit == 5000) {
  339. printk(KERN_ERR "%s: RX MAC will not disable, resetting whole "
  340. "chip.\n", dev->name);
  341. return 1;
  342. }
  343. /* Second, disable RX DMA. */
  344. writel(0, gp->regs + RXDMA_CFG);
  345. for (limit = 0; limit < 5000; limit++) {
  346. if (!(readl(gp->regs + RXDMA_CFG) & RXDMA_CFG_ENABLE))
  347. break;
  348. udelay(10);
  349. }
  350. if (limit == 5000) {
  351. printk(KERN_ERR "%s: RX DMA will not disable, resetting whole "
  352. "chip.\n", dev->name);
  353. return 1;
  354. }
  355. udelay(5000);
  356. /* Execute RX reset command. */
  357. writel(gp->swrst_base | GREG_SWRST_RXRST,
  358. gp->regs + GREG_SWRST);
  359. for (limit = 0; limit < 5000; limit++) {
  360. if (!(readl(gp->regs + GREG_SWRST) & GREG_SWRST_RXRST))
  361. break;
  362. udelay(10);
  363. }
  364. if (limit == 5000) {
  365. printk(KERN_ERR "%s: RX reset command will not execute, resetting "
  366. "whole chip.\n", dev->name);
  367. return 1;
  368. }
  369. /* Refresh the RX ring. */
  370. for (i = 0; i < RX_RING_SIZE; i++) {
  371. struct gem_rxd *rxd = &gp->init_block->rxd[i];
  372. if (gp->rx_skbs[i] == NULL) {
  373. printk(KERN_ERR "%s: Parts of RX ring empty, resetting "
  374. "whole chip.\n", dev->name);
  375. return 1;
  376. }
  377. rxd->status_word = cpu_to_le64(RXDCTRL_FRESH(gp));
  378. }
  379. gp->rx_new = gp->rx_old = 0;
  380. /* Now we must reprogram the rest of RX unit. */
  381. desc_dma = (u64) gp->gblock_dvma;
  382. desc_dma += (INIT_BLOCK_TX_RING_SIZE * sizeof(struct gem_txd));
  383. writel(desc_dma >> 32, gp->regs + RXDMA_DBHI);
  384. writel(desc_dma & 0xffffffff, gp->regs + RXDMA_DBLOW);
  385. writel(RX_RING_SIZE - 4, gp->regs + RXDMA_KICK);
  386. val = (RXDMA_CFG_BASE | (RX_OFFSET << 10) |
  387. ((14 / 2) << 13) | RXDMA_CFG_FTHRESH_128);
  388. writel(val, gp->regs + RXDMA_CFG);
  389. if (readl(gp->regs + GREG_BIFCFG) & GREG_BIFCFG_M66EN)
  390. writel(((5 & RXDMA_BLANK_IPKTS) |
  391. ((8 << 12) & RXDMA_BLANK_ITIME)),
  392. gp->regs + RXDMA_BLANK);
  393. else
  394. writel(((5 & RXDMA_BLANK_IPKTS) |
  395. ((4 << 12) & RXDMA_BLANK_ITIME)),
  396. gp->regs + RXDMA_BLANK);
  397. val = (((gp->rx_pause_off / 64) << 0) & RXDMA_PTHRESH_OFF);
  398. val |= (((gp->rx_pause_on / 64) << 12) & RXDMA_PTHRESH_ON);
  399. writel(val, gp->regs + RXDMA_PTHRESH);
  400. val = readl(gp->regs + RXDMA_CFG);
  401. writel(val | RXDMA_CFG_ENABLE, gp->regs + RXDMA_CFG);
  402. writel(MAC_RXSTAT_RCV, gp->regs + MAC_RXMASK);
  403. val = readl(gp->regs + MAC_RXCFG);
  404. writel(val | MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
  405. return 0;
  406. }
  407. static int gem_rxmac_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
  408. {
  409. u32 rxmac_stat = readl(gp->regs + MAC_RXSTAT);
  410. int ret = 0;
  411. if (netif_msg_intr(gp))
  412. printk(KERN_DEBUG "%s: rxmac interrupt, rxmac_stat: 0x%x\n",
  413. gp->dev->name, rxmac_stat);
  414. if (rxmac_stat & MAC_RXSTAT_OFLW) {
  415. u32 smac = readl(gp->regs + MAC_SMACHINE);
  416. printk(KERN_ERR "%s: RX MAC fifo overflow smac[%08x].\n",
  417. dev->name, smac);
  418. gp->net_stats.rx_over_errors++;
  419. gp->net_stats.rx_fifo_errors++;
  420. ret = gem_rxmac_reset(gp);
  421. }
  422. if (rxmac_stat & MAC_RXSTAT_ACE)
  423. gp->net_stats.rx_frame_errors += 0x10000;
  424. if (rxmac_stat & MAC_RXSTAT_CCE)
  425. gp->net_stats.rx_crc_errors += 0x10000;
  426. if (rxmac_stat & MAC_RXSTAT_LCE)
  427. gp->net_stats.rx_length_errors += 0x10000;
  428. /* We do not track MAC_RXSTAT_FCE and MAC_RXSTAT_VCE
  429. * events.
  430. */
  431. return ret;
  432. }
  433. static int gem_mac_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
  434. {
  435. u32 mac_cstat = readl(gp->regs + MAC_CSTAT);
  436. if (netif_msg_intr(gp))
  437. printk(KERN_DEBUG "%s: mac interrupt, mac_cstat: 0x%x\n",
  438. gp->dev->name, mac_cstat);
  439. /* This interrupt is just for pause frame and pause
  440. * tracking. It is useful for diagnostics and debug
  441. * but probably by default we will mask these events.
  442. */
  443. if (mac_cstat & MAC_CSTAT_PS)
  444. gp->pause_entered++;
  445. if (mac_cstat & MAC_CSTAT_PRCV)
  446. gp->pause_last_time_recvd = (mac_cstat >> 16);
  447. return 0;
  448. }
  449. static int gem_mif_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
  450. {
  451. u32 mif_status = readl(gp->regs + MIF_STATUS);
  452. u32 reg_val, changed_bits;
  453. reg_val = (mif_status & MIF_STATUS_DATA) >> 16;
  454. changed_bits = (mif_status & MIF_STATUS_STAT);
  455. gem_handle_mif_event(gp, reg_val, changed_bits);
  456. return 0;
  457. }
  458. static int gem_pci_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
  459. {
  460. u32 pci_estat = readl(gp->regs + GREG_PCIESTAT);
  461. if (gp->pdev->vendor == PCI_VENDOR_ID_SUN &&
  462. gp->pdev->device == PCI_DEVICE_ID_SUN_GEM) {
  463. printk(KERN_ERR "%s: PCI error [%04x] ",
  464. dev->name, pci_estat);
  465. if (pci_estat & GREG_PCIESTAT_BADACK)
  466. printk("<No ACK64# during ABS64 cycle> ");
  467. if (pci_estat & GREG_PCIESTAT_DTRTO)
  468. printk("<Delayed transaction timeout> ");
  469. if (pci_estat & GREG_PCIESTAT_OTHER)
  470. printk("<other>");
  471. printk("\n");
  472. } else {
  473. pci_estat |= GREG_PCIESTAT_OTHER;
  474. printk(KERN_ERR "%s: PCI error\n", dev->name);
  475. }
  476. if (pci_estat & GREG_PCIESTAT_OTHER) {
  477. u16 pci_cfg_stat;
  478. /* Interrogate PCI config space for the
  479. * true cause.
  480. */
  481. pci_read_config_word(gp->pdev, PCI_STATUS,
  482. &pci_cfg_stat);
  483. printk(KERN_ERR "%s: Read PCI cfg space status [%04x]\n",
  484. dev->name, pci_cfg_stat);
  485. if (pci_cfg_stat & PCI_STATUS_PARITY)
  486. printk(KERN_ERR "%s: PCI parity error detected.\n",
  487. dev->name);
  488. if (pci_cfg_stat & PCI_STATUS_SIG_TARGET_ABORT)
  489. printk(KERN_ERR "%s: PCI target abort.\n",
  490. dev->name);
  491. if (pci_cfg_stat & PCI_STATUS_REC_TARGET_ABORT)
  492. printk(KERN_ERR "%s: PCI master acks target abort.\n",
  493. dev->name);
  494. if (pci_cfg_stat & PCI_STATUS_REC_MASTER_ABORT)
  495. printk(KERN_ERR "%s: PCI master abort.\n",
  496. dev->name);
  497. if (pci_cfg_stat & PCI_STATUS_SIG_SYSTEM_ERROR)
  498. printk(KERN_ERR "%s: PCI system error SERR#.\n",
  499. dev->name);
  500. if (pci_cfg_stat & PCI_STATUS_DETECTED_PARITY)
  501. printk(KERN_ERR "%s: PCI parity error.\n",
  502. dev->name);
  503. /* Write the error bits back to clear them. */
  504. pci_cfg_stat &= (PCI_STATUS_PARITY |
  505. PCI_STATUS_SIG_TARGET_ABORT |
  506. PCI_STATUS_REC_TARGET_ABORT |
  507. PCI_STATUS_REC_MASTER_ABORT |
  508. PCI_STATUS_SIG_SYSTEM_ERROR |
  509. PCI_STATUS_DETECTED_PARITY);
  510. pci_write_config_word(gp->pdev,
  511. PCI_STATUS, pci_cfg_stat);
  512. }
  513. /* For all PCI errors, we should reset the chip. */
  514. return 1;
  515. }
  516. /* All non-normal interrupt conditions get serviced here.
  517. * Returns non-zero if we should just exit the interrupt
  518. * handler right now (ie. if we reset the card which invalidates
  519. * all of the other original irq status bits).
  520. */
  521. static int gem_abnormal_irq(struct net_device *dev, struct gem *gp, u32 gem_status)
  522. {
  523. if (gem_status & GREG_STAT_RXNOBUF) {
  524. /* Frame arrived, no free RX buffers available. */
  525. if (netif_msg_rx_err(gp))
  526. printk(KERN_DEBUG "%s: no buffer for rx frame\n",
  527. gp->dev->name);
  528. gp->net_stats.rx_dropped++;
  529. }
  530. if (gem_status & GREG_STAT_RXTAGERR) {
  531. /* corrupt RX tag framing */
  532. if (netif_msg_rx_err(gp))
  533. printk(KERN_DEBUG "%s: corrupt rx tag framing\n",
  534. gp->dev->name);
  535. gp->net_stats.rx_errors++;
  536. goto do_reset;
  537. }
  538. if (gem_status & GREG_STAT_PCS) {
  539. if (gem_pcs_interrupt(dev, gp, gem_status))
  540. goto do_reset;
  541. }
  542. if (gem_status & GREG_STAT_TXMAC) {
  543. if (gem_txmac_interrupt(dev, gp, gem_status))
  544. goto do_reset;
  545. }
  546. if (gem_status & GREG_STAT_RXMAC) {
  547. if (gem_rxmac_interrupt(dev, gp, gem_status))
  548. goto do_reset;
  549. }
  550. if (gem_status & GREG_STAT_MAC) {
  551. if (gem_mac_interrupt(dev, gp, gem_status))
  552. goto do_reset;
  553. }
  554. if (gem_status & GREG_STAT_MIF) {
  555. if (gem_mif_interrupt(dev, gp, gem_status))
  556. goto do_reset;
  557. }
  558. if (gem_status & GREG_STAT_PCIERR) {
  559. if (gem_pci_interrupt(dev, gp, gem_status))
  560. goto do_reset;
  561. }
  562. return 0;
  563. do_reset:
  564. gp->reset_task_pending = 1;
  565. schedule_work(&gp->reset_task);
  566. return 1;
  567. }
  568. static __inline__ void gem_tx(struct net_device *dev, struct gem *gp, u32 gem_status)
  569. {
  570. int entry, limit;
  571. if (netif_msg_intr(gp))
  572. printk(KERN_DEBUG "%s: tx interrupt, gem_status: 0x%x\n",
  573. gp->dev->name, gem_status);
  574. entry = gp->tx_old;
  575. limit = ((gem_status & GREG_STAT_TXNR) >> GREG_STAT_TXNR_SHIFT);
  576. while (entry != limit) {
  577. struct sk_buff *skb;
  578. struct gem_txd *txd;
  579. dma_addr_t dma_addr;
  580. u32 dma_len;
  581. int frag;
  582. if (netif_msg_tx_done(gp))
  583. printk(KERN_DEBUG "%s: tx done, slot %d\n",
  584. gp->dev->name, entry);
  585. skb = gp->tx_skbs[entry];
  586. if (skb_shinfo(skb)->nr_frags) {
  587. int last = entry + skb_shinfo(skb)->nr_frags;
  588. int walk = entry;
  589. int incomplete = 0;
  590. last &= (TX_RING_SIZE - 1);
  591. for (;;) {
  592. walk = NEXT_TX(walk);
  593. if (walk == limit)
  594. incomplete = 1;
  595. if (walk == last)
  596. break;
  597. }
  598. if (incomplete)
  599. break;
  600. }
  601. gp->tx_skbs[entry] = NULL;
  602. gp->net_stats.tx_bytes += skb->len;
  603. for (frag = 0; frag <= skb_shinfo(skb)->nr_frags; frag++) {
  604. txd = &gp->init_block->txd[entry];
  605. dma_addr = le64_to_cpu(txd->buffer);
  606. dma_len = le64_to_cpu(txd->control_word) & TXDCTRL_BUFSZ;
  607. pci_unmap_page(gp->pdev, dma_addr, dma_len, PCI_DMA_TODEVICE);
  608. entry = NEXT_TX(entry);
  609. }
  610. gp->net_stats.tx_packets++;
  611. dev_kfree_skb_irq(skb);
  612. }
  613. gp->tx_old = entry;
  614. if (netif_queue_stopped(dev) &&
  615. TX_BUFFS_AVAIL(gp) > (MAX_SKB_FRAGS + 1))
  616. netif_wake_queue(dev);
  617. }
  618. static __inline__ void gem_post_rxds(struct gem *gp, int limit)
  619. {
  620. int cluster_start, curr, count, kick;
  621. cluster_start = curr = (gp->rx_new & ~(4 - 1));
  622. count = 0;
  623. kick = -1;
  624. wmb();
  625. while (curr != limit) {
  626. curr = NEXT_RX(curr);
  627. if (++count == 4) {
  628. struct gem_rxd *rxd =
  629. &gp->init_block->rxd[cluster_start];
  630. for (;;) {
  631. rxd->status_word = cpu_to_le64(RXDCTRL_FRESH(gp));
  632. rxd++;
  633. cluster_start = NEXT_RX(cluster_start);
  634. if (cluster_start == curr)
  635. break;
  636. }
  637. kick = curr;
  638. count = 0;
  639. }
  640. }
  641. if (kick >= 0) {
  642. mb();
  643. writel(kick, gp->regs + RXDMA_KICK);
  644. }
  645. }
  646. static int gem_rx(struct gem *gp, int work_to_do)
  647. {
  648. int entry, drops, work_done = 0;
  649. u32 done;
  650. if (netif_msg_rx_status(gp))
  651. printk(KERN_DEBUG "%s: rx interrupt, done: %d, rx_new: %d\n",
  652. gp->dev->name, readl(gp->regs + RXDMA_DONE), gp->rx_new);
  653. entry = gp->rx_new;
  654. drops = 0;
  655. done = readl(gp->regs + RXDMA_DONE);
  656. for (;;) {
  657. struct gem_rxd *rxd = &gp->init_block->rxd[entry];
  658. struct sk_buff *skb;
  659. u64 status = cpu_to_le64(rxd->status_word);
  660. dma_addr_t dma_addr;
  661. int len;
  662. if ((status & RXDCTRL_OWN) != 0)
  663. break;
  664. if (work_done >= RX_RING_SIZE || work_done >= work_to_do)
  665. break;
  666. /* When writing back RX descriptor, GEM writes status
  667. * then buffer address, possibly in seperate transactions.
  668. * If we don't wait for the chip to write both, we could
  669. * post a new buffer to this descriptor then have GEM spam
  670. * on the buffer address. We sync on the RX completion
  671. * register to prevent this from happening.
  672. */
  673. if (entry == done) {
  674. done = readl(gp->regs + RXDMA_DONE);
  675. if (entry == done)
  676. break;
  677. }
  678. /* We can now account for the work we're about to do */
  679. work_done++;
  680. skb = gp->rx_skbs[entry];
  681. len = (status & RXDCTRL_BUFSZ) >> 16;
  682. if ((len < ETH_ZLEN) || (status & RXDCTRL_BAD)) {
  683. gp->net_stats.rx_errors++;
  684. if (len < ETH_ZLEN)
  685. gp->net_stats.rx_length_errors++;
  686. if (len & RXDCTRL_BAD)
  687. gp->net_stats.rx_crc_errors++;
  688. /* We'll just return it to GEM. */
  689. drop_it:
  690. gp->net_stats.rx_dropped++;
  691. goto next;
  692. }
  693. dma_addr = cpu_to_le64(rxd->buffer);
  694. if (len > RX_COPY_THRESHOLD) {
  695. struct sk_buff *new_skb;
  696. new_skb = gem_alloc_skb(RX_BUF_ALLOC_SIZE(gp), GFP_ATOMIC);
  697. if (new_skb == NULL) {
  698. drops++;
  699. goto drop_it;
  700. }
  701. pci_unmap_page(gp->pdev, dma_addr,
  702. RX_BUF_ALLOC_SIZE(gp),
  703. PCI_DMA_FROMDEVICE);
  704. gp->rx_skbs[entry] = new_skb;
  705. new_skb->dev = gp->dev;
  706. skb_put(new_skb, (gp->rx_buf_sz + RX_OFFSET));
  707. rxd->buffer = cpu_to_le64(pci_map_page(gp->pdev,
  708. virt_to_page(new_skb->data),
  709. offset_in_page(new_skb->data),
  710. RX_BUF_ALLOC_SIZE(gp),
  711. PCI_DMA_FROMDEVICE));
  712. skb_reserve(new_skb, RX_OFFSET);
  713. /* Trim the original skb for the netif. */
  714. skb_trim(skb, len);
  715. } else {
  716. struct sk_buff *copy_skb = dev_alloc_skb(len + 2);
  717. if (copy_skb == NULL) {
  718. drops++;
  719. goto drop_it;
  720. }
  721. copy_skb->dev = gp->dev;
  722. skb_reserve(copy_skb, 2);
  723. skb_put(copy_skb, len);
  724. pci_dma_sync_single_for_cpu(gp->pdev, dma_addr, len, PCI_DMA_FROMDEVICE);
  725. memcpy(copy_skb->data, skb->data, len);
  726. pci_dma_sync_single_for_device(gp->pdev, dma_addr, len, PCI_DMA_FROMDEVICE);
  727. /* We'll reuse the original ring buffer. */
  728. skb = copy_skb;
  729. }
  730. skb->csum = ntohs((status & RXDCTRL_TCPCSUM) ^ 0xffff);
  731. skb->ip_summed = CHECKSUM_HW;
  732. skb->protocol = eth_type_trans(skb, gp->dev);
  733. netif_receive_skb(skb);
  734. gp->net_stats.rx_packets++;
  735. gp->net_stats.rx_bytes += len;
  736. gp->dev->last_rx = jiffies;
  737. next:
  738. entry = NEXT_RX(entry);
  739. }
  740. gem_post_rxds(gp, entry);
  741. gp->rx_new = entry;
  742. if (drops)
  743. printk(KERN_INFO "%s: Memory squeeze, deferring packet.\n",
  744. gp->dev->name);
  745. return work_done;
  746. }
  747. static int gem_poll(struct net_device *dev, int *budget)
  748. {
  749. struct gem *gp = dev->priv;
  750. unsigned long flags;
  751. /*
  752. * NAPI locking nightmare: See comment at head of driver
  753. */
  754. spin_lock_irqsave(&gp->lock, flags);
  755. do {
  756. int work_to_do, work_done;
  757. /* Handle anomalies */
  758. if (gp->status & GREG_STAT_ABNORMAL) {
  759. if (gem_abnormal_irq(dev, gp, gp->status))
  760. break;
  761. }
  762. /* Run TX completion thread */
  763. spin_lock(&gp->tx_lock);
  764. gem_tx(dev, gp, gp->status);
  765. spin_unlock(&gp->tx_lock);
  766. spin_unlock_irqrestore(&gp->lock, flags);
  767. /* Run RX thread. We don't use any locking here,
  768. * code willing to do bad things - like cleaning the
  769. * rx ring - must call netif_poll_disable(), which
  770. * schedule_timeout()'s if polling is already disabled.
  771. */
  772. work_to_do = min(*budget, dev->quota);
  773. work_done = gem_rx(gp, work_to_do);
  774. *budget -= work_done;
  775. dev->quota -= work_done;
  776. if (work_done >= work_to_do)
  777. return 1;
  778. spin_lock_irqsave(&gp->lock, flags);
  779. gp->status = readl(gp->regs + GREG_STAT);
  780. } while (gp->status & GREG_STAT_NAPI);
  781. __netif_rx_complete(dev);
  782. gem_enable_ints(gp);
  783. spin_unlock_irqrestore(&gp->lock, flags);
  784. return 0;
  785. }
  786. static irqreturn_t gem_interrupt(int irq, void *dev_id, struct pt_regs *regs)
  787. {
  788. struct net_device *dev = dev_id;
  789. struct gem *gp = dev->priv;
  790. unsigned long flags;
  791. /* Swallow interrupts when shutting the chip down, though
  792. * that shouldn't happen, we should have done free_irq() at
  793. * this point...
  794. */
  795. if (!gp->running)
  796. return IRQ_HANDLED;
  797. spin_lock_irqsave(&gp->lock, flags);
  798. if (netif_rx_schedule_prep(dev)) {
  799. u32 gem_status = readl(gp->regs + GREG_STAT);
  800. if (gem_status == 0) {
  801. netif_poll_enable(dev);
  802. spin_unlock_irqrestore(&gp->lock, flags);
  803. return IRQ_NONE;
  804. }
  805. gp->status = gem_status;
  806. gem_disable_ints(gp);
  807. __netif_rx_schedule(dev);
  808. }
  809. spin_unlock_irqrestore(&gp->lock, flags);
  810. /* If polling was disabled at the time we received that
  811. * interrupt, we may return IRQ_HANDLED here while we
  812. * should return IRQ_NONE. No big deal...
  813. */
  814. return IRQ_HANDLED;
  815. }
  816. #ifdef CONFIG_NET_POLL_CONTROLLER
  817. static void gem_poll_controller(struct net_device *dev)
  818. {
  819. /* gem_interrupt is safe to reentrance so no need
  820. * to disable_irq here.
  821. */
  822. gem_interrupt(dev->irq, dev, NULL);
  823. }
  824. #endif
  825. static void gem_tx_timeout(struct net_device *dev)
  826. {
  827. struct gem *gp = dev->priv;
  828. printk(KERN_ERR "%s: transmit timed out, resetting\n", dev->name);
  829. if (!gp->running) {
  830. printk("%s: hrm.. hw not running !\n", dev->name);
  831. return;
  832. }
  833. printk(KERN_ERR "%s: TX_STATE[%08x:%08x:%08x]\n",
  834. dev->name,
  835. readl(gp->regs + TXDMA_CFG),
  836. readl(gp->regs + MAC_TXSTAT),
  837. readl(gp->regs + MAC_TXCFG));
  838. printk(KERN_ERR "%s: RX_STATE[%08x:%08x:%08x]\n",
  839. dev->name,
  840. readl(gp->regs + RXDMA_CFG),
  841. readl(gp->regs + MAC_RXSTAT),
  842. readl(gp->regs + MAC_RXCFG));
  843. spin_lock_irq(&gp->lock);
  844. spin_lock(&gp->tx_lock);
  845. gp->reset_task_pending = 1;
  846. schedule_work(&gp->reset_task);
  847. spin_unlock(&gp->tx_lock);
  848. spin_unlock_irq(&gp->lock);
  849. }
  850. static __inline__ int gem_intme(int entry)
  851. {
  852. /* Algorithm: IRQ every 1/2 of descriptors. */
  853. if (!(entry & ((TX_RING_SIZE>>1)-1)))
  854. return 1;
  855. return 0;
  856. }
  857. static int gem_start_xmit(struct sk_buff *skb, struct net_device *dev)
  858. {
  859. struct gem *gp = dev->priv;
  860. int entry;
  861. u64 ctrl;
  862. unsigned long flags;
  863. ctrl = 0;
  864. if (skb->ip_summed == CHECKSUM_HW) {
  865. u64 csum_start_off, csum_stuff_off;
  866. csum_start_off = (u64) (skb->h.raw - skb->data);
  867. csum_stuff_off = (u64) ((skb->h.raw + skb->csum) - skb->data);
  868. ctrl = (TXDCTRL_CENAB |
  869. (csum_start_off << 15) |
  870. (csum_stuff_off << 21));
  871. }
  872. local_irq_save(flags);
  873. if (!spin_trylock(&gp->tx_lock)) {
  874. /* Tell upper layer to requeue */
  875. local_irq_restore(flags);
  876. return NETDEV_TX_LOCKED;
  877. }
  878. /* We raced with gem_do_stop() */
  879. if (!gp->running) {
  880. spin_unlock_irqrestore(&gp->tx_lock, flags);
  881. return NETDEV_TX_BUSY;
  882. }
  883. /* This is a hard error, log it. */
  884. if (TX_BUFFS_AVAIL(gp) <= (skb_shinfo(skb)->nr_frags + 1)) {
  885. netif_stop_queue(dev);
  886. spin_unlock_irqrestore(&gp->tx_lock, flags);
  887. printk(KERN_ERR PFX "%s: BUG! Tx Ring full when queue awake!\n",
  888. dev->name);
  889. return NETDEV_TX_BUSY;
  890. }
  891. entry = gp->tx_new;
  892. gp->tx_skbs[entry] = skb;
  893. if (skb_shinfo(skb)->nr_frags == 0) {
  894. struct gem_txd *txd = &gp->init_block->txd[entry];
  895. dma_addr_t mapping;
  896. u32 len;
  897. len = skb->len;
  898. mapping = pci_map_page(gp->pdev,
  899. virt_to_page(skb->data),
  900. offset_in_page(skb->data),
  901. len, PCI_DMA_TODEVICE);
  902. ctrl |= TXDCTRL_SOF | TXDCTRL_EOF | len;
  903. if (gem_intme(entry))
  904. ctrl |= TXDCTRL_INTME;
  905. txd->buffer = cpu_to_le64(mapping);
  906. wmb();
  907. txd->control_word = cpu_to_le64(ctrl);
  908. entry = NEXT_TX(entry);
  909. } else {
  910. struct gem_txd *txd;
  911. u32 first_len;
  912. u64 intme;
  913. dma_addr_t first_mapping;
  914. int frag, first_entry = entry;
  915. intme = 0;
  916. if (gem_intme(entry))
  917. intme |= TXDCTRL_INTME;
  918. /* We must give this initial chunk to the device last.
  919. * Otherwise we could race with the device.
  920. */
  921. first_len = skb_headlen(skb);
  922. first_mapping = pci_map_page(gp->pdev, virt_to_page(skb->data),
  923. offset_in_page(skb->data),
  924. first_len, PCI_DMA_TODEVICE);
  925. entry = NEXT_TX(entry);
  926. for (frag = 0; frag < skb_shinfo(skb)->nr_frags; frag++) {
  927. skb_frag_t *this_frag = &skb_shinfo(skb)->frags[frag];
  928. u32 len;
  929. dma_addr_t mapping;
  930. u64 this_ctrl;
  931. len = this_frag->size;
  932. mapping = pci_map_page(gp->pdev,
  933. this_frag->page,
  934. this_frag->page_offset,
  935. len, PCI_DMA_TODEVICE);
  936. this_ctrl = ctrl;
  937. if (frag == skb_shinfo(skb)->nr_frags - 1)
  938. this_ctrl |= TXDCTRL_EOF;
  939. txd = &gp->init_block->txd[entry];
  940. txd->buffer = cpu_to_le64(mapping);
  941. wmb();
  942. txd->control_word = cpu_to_le64(this_ctrl | len);
  943. if (gem_intme(entry))
  944. intme |= TXDCTRL_INTME;
  945. entry = NEXT_TX(entry);
  946. }
  947. txd = &gp->init_block->txd[first_entry];
  948. txd->buffer = cpu_to_le64(first_mapping);
  949. wmb();
  950. txd->control_word =
  951. cpu_to_le64(ctrl | TXDCTRL_SOF | intme | first_len);
  952. }
  953. gp->tx_new = entry;
  954. if (TX_BUFFS_AVAIL(gp) <= (MAX_SKB_FRAGS + 1))
  955. netif_stop_queue(dev);
  956. if (netif_msg_tx_queued(gp))
  957. printk(KERN_DEBUG "%s: tx queued, slot %d, skblen %d\n",
  958. dev->name, entry, skb->len);
  959. mb();
  960. writel(gp->tx_new, gp->regs + TXDMA_KICK);
  961. spin_unlock_irqrestore(&gp->tx_lock, flags);
  962. dev->trans_start = jiffies;
  963. return NETDEV_TX_OK;
  964. }
  965. #define STOP_TRIES 32
  966. /* Must be invoked under gp->lock and gp->tx_lock. */
  967. static void gem_reset(struct gem *gp)
  968. {
  969. int limit;
  970. u32 val;
  971. /* Make sure we won't get any more interrupts */
  972. writel(0xffffffff, gp->regs + GREG_IMASK);
  973. /* Reset the chip */
  974. writel(gp->swrst_base | GREG_SWRST_TXRST | GREG_SWRST_RXRST,
  975. gp->regs + GREG_SWRST);
  976. limit = STOP_TRIES;
  977. do {
  978. udelay(20);
  979. val = readl(gp->regs + GREG_SWRST);
  980. if (limit-- <= 0)
  981. break;
  982. } while (val & (GREG_SWRST_TXRST | GREG_SWRST_RXRST));
  983. if (limit <= 0)
  984. printk(KERN_ERR "%s: SW reset is ghetto.\n", gp->dev->name);
  985. }
  986. /* Must be invoked under gp->lock and gp->tx_lock. */
  987. static void gem_start_dma(struct gem *gp)
  988. {
  989. u32 val;
  990. /* We are ready to rock, turn everything on. */
  991. val = readl(gp->regs + TXDMA_CFG);
  992. writel(val | TXDMA_CFG_ENABLE, gp->regs + TXDMA_CFG);
  993. val = readl(gp->regs + RXDMA_CFG);
  994. writel(val | RXDMA_CFG_ENABLE, gp->regs + RXDMA_CFG);
  995. val = readl(gp->regs + MAC_TXCFG);
  996. writel(val | MAC_TXCFG_ENAB, gp->regs + MAC_TXCFG);
  997. val = readl(gp->regs + MAC_RXCFG);
  998. writel(val | MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
  999. (void) readl(gp->regs + MAC_RXCFG);
  1000. udelay(100);
  1001. gem_enable_ints(gp);
  1002. writel(RX_RING_SIZE - 4, gp->regs + RXDMA_KICK);
  1003. }
  1004. /* Must be invoked under gp->lock and gp->tx_lock. DMA won't be
  1005. * actually stopped before about 4ms tho ...
  1006. */
  1007. static void gem_stop_dma(struct gem *gp)
  1008. {
  1009. u32 val;
  1010. /* We are done rocking, turn everything off. */
  1011. val = readl(gp->regs + TXDMA_CFG);
  1012. writel(val & ~TXDMA_CFG_ENABLE, gp->regs + TXDMA_CFG);
  1013. val = readl(gp->regs + RXDMA_CFG);
  1014. writel(val & ~RXDMA_CFG_ENABLE, gp->regs + RXDMA_CFG);
  1015. val = readl(gp->regs + MAC_TXCFG);
  1016. writel(val & ~MAC_TXCFG_ENAB, gp->regs + MAC_TXCFG);
  1017. val = readl(gp->regs + MAC_RXCFG);
  1018. writel(val & ~MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
  1019. (void) readl(gp->regs + MAC_RXCFG);
  1020. /* Need to wait a bit ... done by the caller */
  1021. }
  1022. /* Must be invoked under gp->lock and gp->tx_lock. */
  1023. // XXX dbl check what that function should do when called on PCS PHY
  1024. static void gem_begin_auto_negotiation(struct gem *gp, struct ethtool_cmd *ep)
  1025. {
  1026. u32 advertise, features;
  1027. int autoneg;
  1028. int speed;
  1029. int duplex;
  1030. if (gp->phy_type != phy_mii_mdio0 &&
  1031. gp->phy_type != phy_mii_mdio1)
  1032. goto non_mii;
  1033. /* Setup advertise */
  1034. if (found_mii_phy(gp))
  1035. features = gp->phy_mii.def->features;
  1036. else
  1037. features = 0;
  1038. advertise = features & ADVERTISE_MASK;
  1039. if (gp->phy_mii.advertising != 0)
  1040. advertise &= gp->phy_mii.advertising;
  1041. autoneg = gp->want_autoneg;
  1042. speed = gp->phy_mii.speed;
  1043. duplex = gp->phy_mii.duplex;
  1044. /* Setup link parameters */
  1045. if (!ep)
  1046. goto start_aneg;
  1047. if (ep->autoneg == AUTONEG_ENABLE) {
  1048. advertise = ep->advertising;
  1049. autoneg = 1;
  1050. } else {
  1051. autoneg = 0;
  1052. speed = ep->speed;
  1053. duplex = ep->duplex;
  1054. }
  1055. start_aneg:
  1056. /* Sanitize settings based on PHY capabilities */
  1057. if ((features & SUPPORTED_Autoneg) == 0)
  1058. autoneg = 0;
  1059. if (speed == SPEED_1000 &&
  1060. !(features & (SUPPORTED_1000baseT_Half | SUPPORTED_1000baseT_Full)))
  1061. speed = SPEED_100;
  1062. if (speed == SPEED_100 &&
  1063. !(features & (SUPPORTED_100baseT_Half | SUPPORTED_100baseT_Full)))
  1064. speed = SPEED_10;
  1065. if (duplex == DUPLEX_FULL &&
  1066. !(features & (SUPPORTED_1000baseT_Full |
  1067. SUPPORTED_100baseT_Full |
  1068. SUPPORTED_10baseT_Full)))
  1069. duplex = DUPLEX_HALF;
  1070. if (speed == 0)
  1071. speed = SPEED_10;
  1072. /* If we are asleep, we don't try to actually setup the PHY, we
  1073. * just store the settings
  1074. */
  1075. if (gp->asleep) {
  1076. gp->phy_mii.autoneg = gp->want_autoneg = autoneg;
  1077. gp->phy_mii.speed = speed;
  1078. gp->phy_mii.duplex = duplex;
  1079. return;
  1080. }
  1081. /* Configure PHY & start aneg */
  1082. gp->want_autoneg = autoneg;
  1083. if (autoneg) {
  1084. if (found_mii_phy(gp))
  1085. gp->phy_mii.def->ops->setup_aneg(&gp->phy_mii, advertise);
  1086. gp->lstate = link_aneg;
  1087. } else {
  1088. if (found_mii_phy(gp))
  1089. gp->phy_mii.def->ops->setup_forced(&gp->phy_mii, speed, duplex);
  1090. gp->lstate = link_force_ok;
  1091. }
  1092. non_mii:
  1093. gp->timer_ticks = 0;
  1094. mod_timer(&gp->link_timer, jiffies + ((12 * HZ) / 10));
  1095. }
  1096. /* A link-up condition has occurred, initialize and enable the
  1097. * rest of the chip.
  1098. *
  1099. * Must be invoked under gp->lock and gp->tx_lock.
  1100. */
  1101. static int gem_set_link_modes(struct gem *gp)
  1102. {
  1103. u32 val;
  1104. int full_duplex, speed, pause;
  1105. full_duplex = 0;
  1106. speed = SPEED_10;
  1107. pause = 0;
  1108. if (found_mii_phy(gp)) {
  1109. if (gp->phy_mii.def->ops->read_link(&gp->phy_mii))
  1110. return 1;
  1111. full_duplex = (gp->phy_mii.duplex == DUPLEX_FULL);
  1112. speed = gp->phy_mii.speed;
  1113. pause = gp->phy_mii.pause;
  1114. } else if (gp->phy_type == phy_serialink ||
  1115. gp->phy_type == phy_serdes) {
  1116. u32 pcs_lpa = readl(gp->regs + PCS_MIILP);
  1117. if (pcs_lpa & PCS_MIIADV_FD)
  1118. full_duplex = 1;
  1119. speed = SPEED_1000;
  1120. }
  1121. if (netif_msg_link(gp))
  1122. printk(KERN_INFO "%s: Link is up at %d Mbps, %s-duplex.\n",
  1123. gp->dev->name, speed, (full_duplex ? "full" : "half"));
  1124. if (!gp->running)
  1125. return 0;
  1126. val = (MAC_TXCFG_EIPG0 | MAC_TXCFG_NGU);
  1127. if (full_duplex) {
  1128. val |= (MAC_TXCFG_ICS | MAC_TXCFG_ICOLL);
  1129. } else {
  1130. /* MAC_TXCFG_NBO must be zero. */
  1131. }
  1132. writel(val, gp->regs + MAC_TXCFG);
  1133. val = (MAC_XIFCFG_OE | MAC_XIFCFG_LLED);
  1134. if (!full_duplex &&
  1135. (gp->phy_type == phy_mii_mdio0 ||
  1136. gp->phy_type == phy_mii_mdio1)) {
  1137. val |= MAC_XIFCFG_DISE;
  1138. } else if (full_duplex) {
  1139. val |= MAC_XIFCFG_FLED;
  1140. }
  1141. if (speed == SPEED_1000)
  1142. val |= (MAC_XIFCFG_GMII);
  1143. writel(val, gp->regs + MAC_XIFCFG);
  1144. /* If gigabit and half-duplex, enable carrier extension
  1145. * mode. Else, disable it.
  1146. */
  1147. if (speed == SPEED_1000 && !full_duplex) {
  1148. val = readl(gp->regs + MAC_TXCFG);
  1149. writel(val | MAC_TXCFG_TCE, gp->regs + MAC_TXCFG);
  1150. val = readl(gp->regs + MAC_RXCFG);
  1151. writel(val | MAC_RXCFG_RCE, gp->regs + MAC_RXCFG);
  1152. } else {
  1153. val = readl(gp->regs + MAC_TXCFG);
  1154. writel(val & ~MAC_TXCFG_TCE, gp->regs + MAC_TXCFG);
  1155. val = readl(gp->regs + MAC_RXCFG);
  1156. writel(val & ~MAC_RXCFG_RCE, gp->regs + MAC_RXCFG);
  1157. }
  1158. if (gp->phy_type == phy_serialink ||
  1159. gp->phy_type == phy_serdes) {
  1160. u32 pcs_lpa = readl(gp->regs + PCS_MIILP);
  1161. if (pcs_lpa & (PCS_MIIADV_SP | PCS_MIIADV_AP))
  1162. pause = 1;
  1163. }
  1164. if (netif_msg_link(gp)) {
  1165. if (pause) {
  1166. printk(KERN_INFO "%s: Pause is enabled "
  1167. "(rxfifo: %d off: %d on: %d)\n",
  1168. gp->dev->name,
  1169. gp->rx_fifo_sz,
  1170. gp->rx_pause_off,
  1171. gp->rx_pause_on);
  1172. } else {
  1173. printk(KERN_INFO "%s: Pause is disabled\n",
  1174. gp->dev->name);
  1175. }
  1176. }
  1177. if (!full_duplex)
  1178. writel(512, gp->regs + MAC_STIME);
  1179. else
  1180. writel(64, gp->regs + MAC_STIME);
  1181. val = readl(gp->regs + MAC_MCCFG);
  1182. if (pause)
  1183. val |= (MAC_MCCFG_SPE | MAC_MCCFG_RPE);
  1184. else
  1185. val &= ~(MAC_MCCFG_SPE | MAC_MCCFG_RPE);
  1186. writel(val, gp->regs + MAC_MCCFG);
  1187. gem_start_dma(gp);
  1188. return 0;
  1189. }
  1190. /* Must be invoked under gp->lock and gp->tx_lock. */
  1191. static int gem_mdio_link_not_up(struct gem *gp)
  1192. {
  1193. switch (gp->lstate) {
  1194. case link_force_ret:
  1195. if (netif_msg_link(gp))
  1196. printk(KERN_INFO "%s: Autoneg failed again, keeping"
  1197. " forced mode\n", gp->dev->name);
  1198. gp->phy_mii.def->ops->setup_forced(&gp->phy_mii,
  1199. gp->last_forced_speed, DUPLEX_HALF);
  1200. gp->timer_ticks = 5;
  1201. gp->lstate = link_force_ok;
  1202. return 0;
  1203. case link_aneg:
  1204. /* We try forced modes after a failed aneg only on PHYs that don't
  1205. * have "magic_aneg" bit set, which means they internally do the
  1206. * while forced-mode thingy. On these, we just restart aneg
  1207. */
  1208. if (gp->phy_mii.def->magic_aneg)
  1209. return 1;
  1210. if (netif_msg_link(gp))
  1211. printk(KERN_INFO "%s: switching to forced 100bt\n",
  1212. gp->dev->name);
  1213. /* Try forced modes. */
  1214. gp->phy_mii.def->ops->setup_forced(&gp->phy_mii, SPEED_100,
  1215. DUPLEX_HALF);
  1216. gp->timer_ticks = 5;
  1217. gp->lstate = link_force_try;
  1218. return 0;
  1219. case link_force_try:
  1220. /* Downgrade from 100 to 10 Mbps if necessary.
  1221. * If already at 10Mbps, warn user about the
  1222. * situation every 10 ticks.
  1223. */
  1224. if (gp->phy_mii.speed == SPEED_100) {
  1225. gp->phy_mii.def->ops->setup_forced(&gp->phy_mii, SPEED_10,
  1226. DUPLEX_HALF);
  1227. gp->timer_ticks = 5;
  1228. if (netif_msg_link(gp))
  1229. printk(KERN_INFO "%s: switching to forced 10bt\n",
  1230. gp->dev->name);
  1231. return 0;
  1232. } else
  1233. return 1;
  1234. default:
  1235. return 0;
  1236. }
  1237. }
  1238. static void gem_link_timer(unsigned long data)
  1239. {
  1240. struct gem *gp = (struct gem *) data;
  1241. int restart_aneg = 0;
  1242. if (gp->asleep)
  1243. return;
  1244. spin_lock_irq(&gp->lock);
  1245. spin_lock(&gp->tx_lock);
  1246. gem_get_cell(gp);
  1247. /* If the reset task is still pending, we just
  1248. * reschedule the link timer
  1249. */
  1250. if (gp->reset_task_pending)
  1251. goto restart;
  1252. if (gp->phy_type == phy_serialink ||
  1253. gp->phy_type == phy_serdes) {
  1254. u32 val = readl(gp->regs + PCS_MIISTAT);
  1255. if (!(val & PCS_MIISTAT_LS))
  1256. val = readl(gp->regs + PCS_MIISTAT);
  1257. if ((val & PCS_MIISTAT_LS) != 0) {
  1258. gp->lstate = link_up;
  1259. netif_carrier_on(gp->dev);
  1260. (void)gem_set_link_modes(gp);
  1261. }
  1262. goto restart;
  1263. }
  1264. if (found_mii_phy(gp) && gp->phy_mii.def->ops->poll_link(&gp->phy_mii)) {
  1265. /* Ok, here we got a link. If we had it due to a forced
  1266. * fallback, and we were configured for autoneg, we do
  1267. * retry a short autoneg pass. If you know your hub is
  1268. * broken, use ethtool ;)
  1269. */
  1270. if (gp->lstate == link_force_try && gp->want_autoneg) {
  1271. gp->lstate = link_force_ret;
  1272. gp->last_forced_speed = gp->phy_mii.speed;
  1273. gp->timer_ticks = 5;
  1274. if (netif_msg_link(gp))
  1275. printk(KERN_INFO "%s: Got link after fallback, retrying"
  1276. " autoneg once...\n", gp->dev->name);
  1277. gp->phy_mii.def->ops->setup_aneg(&gp->phy_mii, gp->phy_mii.advertising);
  1278. } else if (gp->lstate != link_up) {
  1279. gp->lstate = link_up;
  1280. netif_carrier_on(gp->dev);
  1281. if (gem_set_link_modes(gp))
  1282. restart_aneg = 1;
  1283. }
  1284. } else {
  1285. /* If the link was previously up, we restart the
  1286. * whole process
  1287. */
  1288. if (gp->lstate == link_up) {
  1289. gp->lstate = link_down;
  1290. if (netif_msg_link(gp))
  1291. printk(KERN_INFO "%s: Link down\n",
  1292. gp->dev->name);
  1293. netif_carrier_off(gp->dev);
  1294. gp->reset_task_pending = 1;
  1295. schedule_work(&gp->reset_task);
  1296. restart_aneg = 1;
  1297. } else if (++gp->timer_ticks > 10) {
  1298. if (found_mii_phy(gp))
  1299. restart_aneg = gem_mdio_link_not_up(gp);
  1300. else
  1301. restart_aneg = 1;
  1302. }
  1303. }
  1304. if (restart_aneg) {
  1305. gem_begin_auto_negotiation(gp, NULL);
  1306. goto out_unlock;
  1307. }
  1308. restart:
  1309. mod_timer(&gp->link_timer, jiffies + ((12 * HZ) / 10));
  1310. out_unlock:
  1311. gem_put_cell(gp);
  1312. spin_unlock(&gp->tx_lock);
  1313. spin_unlock_irq(&gp->lock);
  1314. }
  1315. /* Must be invoked under gp->lock and gp->tx_lock. */
  1316. static void gem_clean_rings(struct gem *gp)
  1317. {
  1318. struct gem_init_block *gb = gp->init_block;
  1319. struct sk_buff *skb;
  1320. int i;
  1321. dma_addr_t dma_addr;
  1322. for (i = 0; i < RX_RING_SIZE; i++) {
  1323. struct gem_rxd *rxd;
  1324. rxd = &gb->rxd[i];
  1325. if (gp->rx_skbs[i] != NULL) {
  1326. skb = gp->rx_skbs[i];
  1327. dma_addr = le64_to_cpu(rxd->buffer);
  1328. pci_unmap_page(gp->pdev, dma_addr,
  1329. RX_BUF_ALLOC_SIZE(gp),
  1330. PCI_DMA_FROMDEVICE);
  1331. dev_kfree_skb_any(skb);
  1332. gp->rx_skbs[i] = NULL;
  1333. }
  1334. rxd->status_word = 0;
  1335. wmb();
  1336. rxd->buffer = 0;
  1337. }
  1338. for (i = 0; i < TX_RING_SIZE; i++) {
  1339. if (gp->tx_skbs[i] != NULL) {
  1340. struct gem_txd *txd;
  1341. int frag;
  1342. skb = gp->tx_skbs[i];
  1343. gp->tx_skbs[i] = NULL;
  1344. for (frag = 0; frag <= skb_shinfo(skb)->nr_frags; frag++) {
  1345. int ent = i & (TX_RING_SIZE - 1);
  1346. txd = &gb->txd[ent];
  1347. dma_addr = le64_to_cpu(txd->buffer);
  1348. pci_unmap_page(gp->pdev, dma_addr,
  1349. le64_to_cpu(txd->control_word) &
  1350. TXDCTRL_BUFSZ, PCI_DMA_TODEVICE);
  1351. if (frag != skb_shinfo(skb)->nr_frags)
  1352. i++;
  1353. }
  1354. dev_kfree_skb_any(skb);
  1355. }
  1356. }
  1357. }
  1358. /* Must be invoked under gp->lock and gp->tx_lock. */
  1359. static void gem_init_rings(struct gem *gp)
  1360. {
  1361. struct gem_init_block *gb = gp->init_block;
  1362. struct net_device *dev = gp->dev;
  1363. int i;
  1364. dma_addr_t dma_addr;
  1365. gp->rx_new = gp->rx_old = gp->tx_new = gp->tx_old = 0;
  1366. gem_clean_rings(gp);
  1367. gp->rx_buf_sz = max(dev->mtu + ETH_HLEN + VLAN_HLEN,
  1368. (unsigned)VLAN_ETH_FRAME_LEN);
  1369. for (i = 0; i < RX_RING_SIZE; i++) {
  1370. struct sk_buff *skb;
  1371. struct gem_rxd *rxd = &gb->rxd[i];
  1372. skb = gem_alloc_skb(RX_BUF_ALLOC_SIZE(gp), GFP_ATOMIC);
  1373. if (!skb) {
  1374. rxd->buffer = 0;
  1375. rxd->status_word = 0;
  1376. continue;
  1377. }
  1378. gp->rx_skbs[i] = skb;
  1379. skb->dev = dev;
  1380. skb_put(skb, (gp->rx_buf_sz + RX_OFFSET));
  1381. dma_addr = pci_map_page(gp->pdev,
  1382. virt_to_page(skb->data),
  1383. offset_in_page(skb->data),
  1384. RX_BUF_ALLOC_SIZE(gp),
  1385. PCI_DMA_FROMDEVICE);
  1386. rxd->buffer = cpu_to_le64(dma_addr);
  1387. wmb();
  1388. rxd->status_word = cpu_to_le64(RXDCTRL_FRESH(gp));
  1389. skb_reserve(skb, RX_OFFSET);
  1390. }
  1391. for (i = 0; i < TX_RING_SIZE; i++) {
  1392. struct gem_txd *txd = &gb->txd[i];
  1393. txd->control_word = 0;
  1394. wmb();
  1395. txd->buffer = 0;
  1396. }
  1397. wmb();
  1398. }
  1399. /* Init PHY interface and start link poll state machine */
  1400. static void gem_init_phy(struct gem *gp)
  1401. {
  1402. u32 mifcfg;
  1403. /* Revert MIF CFG setting done on stop_phy */
  1404. mifcfg = readl(gp->regs + MIF_CFG);
  1405. mifcfg &= ~MIF_CFG_BBMODE;
  1406. writel(mifcfg, gp->regs + MIF_CFG);
  1407. if (gp->pdev->vendor == PCI_VENDOR_ID_APPLE) {
  1408. int i;
  1409. /* Those delay sucks, the HW seem to love them though, I'll
  1410. * serisouly consider breaking some locks here to be able
  1411. * to schedule instead
  1412. */
  1413. for (i = 0; i < 3; i++) {
  1414. #ifdef CONFIG_PPC_PMAC
  1415. pmac_call_feature(PMAC_FTR_GMAC_PHY_RESET, gp->of_node, 0, 0);
  1416. msleep(20);
  1417. #endif
  1418. /* Some PHYs used by apple have problem getting back to us,
  1419. * we do an additional reset here
  1420. */
  1421. phy_write(gp, MII_BMCR, BMCR_RESET);
  1422. msleep(20);
  1423. if (phy_read(gp, MII_BMCR) != 0xffff)
  1424. break;
  1425. if (i == 2)
  1426. printk(KERN_WARNING "%s: GMAC PHY not responding !\n",
  1427. gp->dev->name);
  1428. }
  1429. }
  1430. if (gp->pdev->vendor == PCI_VENDOR_ID_SUN &&
  1431. gp->pdev->device == PCI_DEVICE_ID_SUN_GEM) {
  1432. u32 val;
  1433. /* Init datapath mode register. */
  1434. if (gp->phy_type == phy_mii_mdio0 ||
  1435. gp->phy_type == phy_mii_mdio1) {
  1436. val = PCS_DMODE_MGM;
  1437. } else if (gp->phy_type == phy_serialink) {
  1438. val = PCS_DMODE_SM | PCS_DMODE_GMOE;
  1439. } else {
  1440. val = PCS_DMODE_ESM;
  1441. }
  1442. writel(val, gp->regs + PCS_DMODE);
  1443. }
  1444. if (gp->phy_type == phy_mii_mdio0 ||
  1445. gp->phy_type == phy_mii_mdio1) {
  1446. // XXX check for errors
  1447. mii_phy_probe(&gp->phy_mii, gp->mii_phy_addr);
  1448. /* Init PHY */
  1449. if (gp->phy_mii.def && gp->phy_mii.def->ops->init)
  1450. gp->phy_mii.def->ops->init(&gp->phy_mii);
  1451. } else {
  1452. u32 val;
  1453. int limit;
  1454. /* Reset PCS unit. */
  1455. val = readl(gp->regs + PCS_MIICTRL);
  1456. val |= PCS_MIICTRL_RST;
  1457. writeb(val, gp->regs + PCS_MIICTRL);
  1458. limit = 32;
  1459. while (readl(gp->regs + PCS_MIICTRL) & PCS_MIICTRL_RST) {
  1460. udelay(100);
  1461. if (limit-- <= 0)
  1462. break;
  1463. }
  1464. if (limit <= 0)
  1465. printk(KERN_WARNING "%s: PCS reset bit would not clear.\n",
  1466. gp->dev->name);
  1467. /* Make sure PCS is disabled while changing advertisement
  1468. * configuration.
  1469. */
  1470. val = readl(gp->regs + PCS_CFG);
  1471. val &= ~(PCS_CFG_ENABLE | PCS_CFG_TO);
  1472. writel(val, gp->regs + PCS_CFG);
  1473. /* Advertise all capabilities except assymetric
  1474. * pause.
  1475. */
  1476. val = readl(gp->regs + PCS_MIIADV);
  1477. val |= (PCS_MIIADV_FD | PCS_MIIADV_HD |
  1478. PCS_MIIADV_SP | PCS_MIIADV_AP);
  1479. writel(val, gp->regs + PCS_MIIADV);
  1480. /* Enable and restart auto-negotiation, disable wrapback/loopback,
  1481. * and re-enable PCS.
  1482. */
  1483. val = readl(gp->regs + PCS_MIICTRL);
  1484. val |= (PCS_MIICTRL_RAN | PCS_MIICTRL_ANE);
  1485. val &= ~PCS_MIICTRL_WB;
  1486. writel(val, gp->regs + PCS_MIICTRL);
  1487. val = readl(gp->regs + PCS_CFG);
  1488. val |= PCS_CFG_ENABLE;
  1489. writel(val, gp->regs + PCS_CFG);
  1490. /* Make sure serialink loopback is off. The meaning
  1491. * of this bit is logically inverted based upon whether
  1492. * you are in Serialink or SERDES mode.
  1493. */
  1494. val = readl(gp->regs + PCS_SCTRL);
  1495. if (gp->phy_type == phy_serialink)
  1496. val &= ~PCS_SCTRL_LOOP;
  1497. else
  1498. val |= PCS_SCTRL_LOOP;
  1499. writel(val, gp->regs + PCS_SCTRL);
  1500. }
  1501. /* Default aneg parameters */
  1502. gp->timer_ticks = 0;
  1503. gp->lstate = link_down;
  1504. netif_carrier_off(gp->dev);
  1505. /* Can I advertise gigabit here ? I'd need BCM PHY docs... */
  1506. spin_lock_irq(&gp->lock);
  1507. gem_begin_auto_negotiation(gp, NULL);
  1508. spin_unlock_irq(&gp->lock);
  1509. }
  1510. /* Must be invoked under gp->lock and gp->tx_lock. */
  1511. static void gem_init_dma(struct gem *gp)
  1512. {
  1513. u64 desc_dma = (u64) gp->gblock_dvma;
  1514. u32 val;
  1515. val = (TXDMA_CFG_BASE | (0x7ff << 10) | TXDMA_CFG_PMODE);
  1516. writel(val, gp->regs + TXDMA_CFG);
  1517. writel(desc_dma >> 32, gp->regs + TXDMA_DBHI);
  1518. writel(desc_dma & 0xffffffff, gp->regs + TXDMA_DBLOW);
  1519. desc_dma += (INIT_BLOCK_TX_RING_SIZE * sizeof(struct gem_txd));
  1520. writel(0, gp->regs + TXDMA_KICK);
  1521. val = (RXDMA_CFG_BASE | (RX_OFFSET << 10) |
  1522. ((14 / 2) << 13) | RXDMA_CFG_FTHRESH_128);
  1523. writel(val, gp->regs + RXDMA_CFG);
  1524. writel(desc_dma >> 32, gp->regs + RXDMA_DBHI);
  1525. writel(desc_dma & 0xffffffff, gp->regs + RXDMA_DBLOW);
  1526. writel(RX_RING_SIZE - 4, gp->regs + RXDMA_KICK);
  1527. val = (((gp->rx_pause_off / 64) << 0) & RXDMA_PTHRESH_OFF);
  1528. val |= (((gp->rx_pause_on / 64) << 12) & RXDMA_PTHRESH_ON);
  1529. writel(val, gp->regs + RXDMA_PTHRESH);
  1530. if (readl(gp->regs + GREG_BIFCFG) & GREG_BIFCFG_M66EN)
  1531. writel(((5 & RXDMA_BLANK_IPKTS) |
  1532. ((8 << 12) & RXDMA_BLANK_ITIME)),
  1533. gp->regs + RXDMA_BLANK);
  1534. else
  1535. writel(((5 & RXDMA_BLANK_IPKTS) |
  1536. ((4 << 12) & RXDMA_BLANK_ITIME)),
  1537. gp->regs + RXDMA_BLANK);
  1538. }
  1539. /* Must be invoked under gp->lock and gp->tx_lock. */
  1540. static u32 gem_setup_multicast(struct gem *gp)
  1541. {
  1542. u32 rxcfg = 0;
  1543. int i;
  1544. if ((gp->dev->flags & IFF_ALLMULTI) ||
  1545. (gp->dev->mc_count > 256)) {
  1546. for (i=0; i<16; i++)
  1547. writel(0xffff, gp->regs + MAC_HASH0 + (i << 2));
  1548. rxcfg |= MAC_RXCFG_HFE;
  1549. } else if (gp->dev->flags & IFF_PROMISC) {
  1550. rxcfg |= MAC_RXCFG_PROM;
  1551. } else {
  1552. u16 hash_table[16];
  1553. u32 crc;
  1554. struct dev_mc_list *dmi = gp->dev->mc_list;
  1555. int i;
  1556. for (i = 0; i < 16; i++)
  1557. hash_table[i] = 0;
  1558. for (i = 0; i < gp->dev->mc_count; i++) {
  1559. char *addrs = dmi->dmi_addr;
  1560. dmi = dmi->next;
  1561. if (!(*addrs & 1))
  1562. continue;
  1563. crc = ether_crc_le(6, addrs);
  1564. crc >>= 24;
  1565. hash_table[crc >> 4] |= 1 << (15 - (crc & 0xf));
  1566. }
  1567. for (i=0; i<16; i++)
  1568. writel(hash_table[i], gp->regs + MAC_HASH0 + (i << 2));
  1569. rxcfg |= MAC_RXCFG_HFE;
  1570. }
  1571. return rxcfg;
  1572. }
  1573. /* Must be invoked under gp->lock and gp->tx_lock. */
  1574. static void gem_init_mac(struct gem *gp)
  1575. {
  1576. unsigned char *e = &gp->dev->dev_addr[0];
  1577. writel(0x1bf0, gp->regs + MAC_SNDPAUSE);
  1578. writel(0x00, gp->regs + MAC_IPG0);
  1579. writel(0x08, gp->regs + MAC_IPG1);
  1580. writel(0x04, gp->regs + MAC_IPG2);
  1581. writel(0x40, gp->regs + MAC_STIME);
  1582. writel(0x40, gp->regs + MAC_MINFSZ);
  1583. /* Ethernet payload + header + FCS + optional VLAN tag. */
  1584. writel(0x20000000 | (gp->rx_buf_sz + 4), gp->regs + MAC_MAXFSZ);
  1585. writel(0x07, gp->regs + MAC_PASIZE);
  1586. writel(0x04, gp->regs + MAC_JAMSIZE);
  1587. writel(0x10, gp->regs + MAC_ATTLIM);
  1588. writel(0x8808, gp->regs + MAC_MCTYPE);
  1589. writel((e[5] | (e[4] << 8)) & 0x3ff, gp->regs + MAC_RANDSEED);
  1590. writel((e[4] << 8) | e[5], gp->regs + MAC_ADDR0);
  1591. writel((e[2] << 8) | e[3], gp->regs + MAC_ADDR1);
  1592. writel((e[0] << 8) | e[1], gp->regs + MAC_ADDR2);
  1593. writel(0, gp->regs + MAC_ADDR3);
  1594. writel(0, gp->regs + MAC_ADDR4);
  1595. writel(0, gp->regs + MAC_ADDR5);
  1596. writel(0x0001, gp->regs + MAC_ADDR6);
  1597. writel(0xc200, gp->regs + MAC_ADDR7);
  1598. writel(0x0180, gp->regs + MAC_ADDR8);
  1599. writel(0, gp->regs + MAC_AFILT0);
  1600. writel(0, gp->regs + MAC_AFILT1);
  1601. writel(0, gp->regs + MAC_AFILT2);
  1602. writel(0, gp->regs + MAC_AF21MSK);
  1603. writel(0, gp->regs + MAC_AF0MSK);
  1604. gp->mac_rx_cfg = gem_setup_multicast(gp);
  1605. #ifdef STRIP_FCS
  1606. gp->mac_rx_cfg |= MAC_RXCFG_SFCS;
  1607. #endif
  1608. writel(0, gp->regs + MAC_NCOLL);
  1609. writel(0, gp->regs + MAC_FASUCC);
  1610. writel(0, gp->regs + MAC_ECOLL);
  1611. writel(0, gp->regs + MAC_LCOLL);
  1612. writel(0, gp->regs + MAC_DTIMER);
  1613. writel(0, gp->regs + MAC_PATMPS);
  1614. writel(0, gp->regs + MAC_RFCTR);
  1615. writel(0, gp->regs + MAC_LERR);
  1616. writel(0, gp->regs + MAC_AERR);
  1617. writel(0, gp->regs + MAC_FCSERR);
  1618. writel(0, gp->regs + MAC_RXCVERR);
  1619. /* Clear RX/TX/MAC/XIF config, we will set these up and enable
  1620. * them once a link is established.
  1621. */
  1622. writel(0, gp->regs + MAC_TXCFG);
  1623. writel(gp->mac_rx_cfg, gp->regs + MAC_RXCFG);
  1624. writel(0, gp->regs + MAC_MCCFG);
  1625. writel(0, gp->regs + MAC_XIFCFG);
  1626. /* Setup MAC interrupts. We want to get all of the interesting
  1627. * counter expiration events, but we do not want to hear about
  1628. * normal rx/tx as the DMA engine tells us that.
  1629. */
  1630. writel(MAC_TXSTAT_XMIT, gp->regs + MAC_TXMASK);
  1631. writel(MAC_RXSTAT_RCV, gp->regs + MAC_RXMASK);
  1632. /* Don't enable even the PAUSE interrupts for now, we
  1633. * make no use of those events other than to record them.
  1634. */
  1635. writel(0xffffffff, gp->regs + MAC_MCMASK);
  1636. /* Don't enable GEM's WOL in normal operations
  1637. */
  1638. if (gp->has_wol)
  1639. writel(0, gp->regs + WOL_WAKECSR);
  1640. }
  1641. /* Must be invoked under gp->lock and gp->tx_lock. */
  1642. static void gem_init_pause_thresholds(struct gem *gp)
  1643. {
  1644. u32 cfg;
  1645. /* Calculate pause thresholds. Setting the OFF threshold to the
  1646. * full RX fifo size effectively disables PAUSE generation which
  1647. * is what we do for 10/100 only GEMs which have FIFOs too small
  1648. * to make real gains from PAUSE.
  1649. */
  1650. if (gp->rx_fifo_sz <= (2 * 1024)) {
  1651. gp->rx_pause_off = gp->rx_pause_on = gp->rx_fifo_sz;
  1652. } else {
  1653. int max_frame = (gp->rx_buf_sz + 4 + 64) & ~63;
  1654. int off = (gp->rx_fifo_sz - (max_frame * 2));
  1655. int on = off - max_frame;
  1656. gp->rx_pause_off = off;
  1657. gp->rx_pause_on = on;
  1658. }
  1659. /* Configure the chip "burst" DMA mode & enable some
  1660. * HW bug fixes on Apple version
  1661. */
  1662. cfg = 0;
  1663. if (gp->pdev->vendor == PCI_VENDOR_ID_APPLE)
  1664. cfg |= GREG_CFG_RONPAULBIT | GREG_CFG_ENBUG2FIX;
  1665. #if !defined(CONFIG_SPARC64) && !defined(CONFIG_ALPHA)
  1666. cfg |= GREG_CFG_IBURST;
  1667. #endif
  1668. cfg |= ((31 << 1) & GREG_CFG_TXDMALIM);
  1669. cfg |= ((31 << 6) & GREG_CFG_RXDMALIM);
  1670. writel(cfg, gp->regs + GREG_CFG);
  1671. /* If Infinite Burst didn't stick, then use different
  1672. * thresholds (and Apple bug fixes don't exist)
  1673. */
  1674. if (!(readl(gp->regs + GREG_CFG) & GREG_CFG_IBURST)) {
  1675. cfg = ((2 << 1) & GREG_CFG_TXDMALIM);
  1676. cfg |= ((8 << 6) & GREG_CFG_RXDMALIM);
  1677. writel(cfg, gp->regs + GREG_CFG);
  1678. }
  1679. }
  1680. static int gem_check_invariants(struct gem *gp)
  1681. {
  1682. struct pci_dev *pdev = gp->pdev;
  1683. u32 mif_cfg;
  1684. /* On Apple's sungem, we can't rely on registers as the chip
  1685. * was been powered down by the firmware. The PHY is looked
  1686. * up later on.
  1687. */
  1688. if (pdev->vendor == PCI_VENDOR_ID_APPLE) {
  1689. gp->phy_type = phy_mii_mdio0;
  1690. gp->tx_fifo_sz = readl(gp->regs + TXDMA_FSZ) * 64;
  1691. gp->rx_fifo_sz = readl(gp->regs + RXDMA_FSZ) * 64;
  1692. gp->swrst_base = 0;
  1693. mif_cfg = readl(gp->regs + MIF_CFG);
  1694. mif_cfg &= ~(MIF_CFG_PSELECT|MIF_CFG_POLL|MIF_CFG_BBMODE|MIF_CFG_MDI1);
  1695. mif_cfg |= MIF_CFG_MDI0;
  1696. writel(mif_cfg, gp->regs + MIF_CFG);
  1697. writel(PCS_DMODE_MGM, gp->regs + PCS_DMODE);
  1698. writel(MAC_XIFCFG_OE, gp->regs + MAC_XIFCFG);
  1699. /* We hard-code the PHY address so we can properly bring it out of
  1700. * reset later on, we can't really probe it at this point, though
  1701. * that isn't an issue.
  1702. */
  1703. if (gp->pdev->device == PCI_DEVICE_ID_APPLE_K2_GMAC)
  1704. gp->mii_phy_addr = 1;
  1705. else
  1706. gp->mii_phy_addr = 0;
  1707. return 0;
  1708. }
  1709. mif_cfg = readl(gp->regs + MIF_CFG);
  1710. if (pdev->vendor == PCI_VENDOR_ID_SUN &&
  1711. pdev->device == PCI_DEVICE_ID_SUN_RIO_GEM) {
  1712. /* One of the MII PHYs _must_ be present
  1713. * as this chip has no gigabit PHY.
  1714. */
  1715. if ((mif_cfg & (MIF_CFG_MDI0 | MIF_CFG_MDI1)) == 0) {
  1716. printk(KERN_ERR PFX "RIO GEM lacks MII phy, mif_cfg[%08x]\n",
  1717. mif_cfg);
  1718. return -1;
  1719. }
  1720. }
  1721. /* Determine initial PHY interface type guess. MDIO1 is the
  1722. * external PHY and thus takes precedence over MDIO0.
  1723. */
  1724. if (mif_cfg & MIF_CFG_MDI1) {
  1725. gp->phy_type = phy_mii_mdio1;
  1726. mif_cfg |= MIF_CFG_PSELECT;
  1727. writel(mif_cfg, gp->regs + MIF_CFG);
  1728. } else if (mif_cfg & MIF_CFG_MDI0) {
  1729. gp->phy_type = phy_mii_mdio0;
  1730. mif_cfg &= ~MIF_CFG_PSELECT;
  1731. writel(mif_cfg, gp->regs + MIF_CFG);
  1732. } else {
  1733. gp->phy_type = phy_serialink;
  1734. }
  1735. if (gp->phy_type == phy_mii_mdio1 ||
  1736. gp->phy_type == phy_mii_mdio0) {
  1737. int i;
  1738. for (i = 0; i < 32; i++) {
  1739. gp->mii_phy_addr = i;
  1740. if (phy_read(gp, MII_BMCR) != 0xffff)
  1741. break;
  1742. }
  1743. if (i == 32) {
  1744. if (pdev->device != PCI_DEVICE_ID_SUN_GEM) {
  1745. printk(KERN_ERR PFX "RIO MII phy will not respond.\n");
  1746. return -1;
  1747. }
  1748. gp->phy_type = phy_serdes;
  1749. }
  1750. }
  1751. /* Fetch the FIFO configurations now too. */
  1752. gp->tx_fifo_sz = readl(gp->regs + TXDMA_FSZ) * 64;
  1753. gp->rx_fifo_sz = readl(gp->regs + RXDMA_FSZ) * 64;
  1754. if (pdev->vendor == PCI_VENDOR_ID_SUN) {
  1755. if (pdev->device == PCI_DEVICE_ID_SUN_GEM) {
  1756. if (gp->tx_fifo_sz != (9 * 1024) ||
  1757. gp->rx_fifo_sz != (20 * 1024)) {
  1758. printk(KERN_ERR PFX "GEM has bogus fifo sizes tx(%d) rx(%d)\n",
  1759. gp->tx_fifo_sz, gp->rx_fifo_sz);
  1760. return -1;
  1761. }
  1762. gp->swrst_base = 0;
  1763. } else {
  1764. if (gp->tx_fifo_sz != (2 * 1024) ||
  1765. gp->rx_fifo_sz != (2 * 1024)) {
  1766. printk(KERN_ERR PFX "RIO GEM has bogus fifo sizes tx(%d) rx(%d)\n",
  1767. gp->tx_fifo_sz, gp->rx_fifo_sz);
  1768. return -1;
  1769. }
  1770. gp->swrst_base = (64 / 4) << GREG_SWRST_CACHE_SHIFT;
  1771. }
  1772. }
  1773. return 0;
  1774. }
  1775. /* Must be invoked under gp->lock and gp->tx_lock. */
  1776. static void gem_reinit_chip(struct gem *gp)
  1777. {
  1778. /* Reset the chip */
  1779. gem_reset(gp);
  1780. /* Make sure ints are disabled */
  1781. gem_disable_ints(gp);
  1782. /* Allocate & setup ring buffers */
  1783. gem_init_rings(gp);
  1784. /* Configure pause thresholds */
  1785. gem_init_pause_thresholds(gp);
  1786. /* Init DMA & MAC engines */
  1787. gem_init_dma(gp);
  1788. gem_init_mac(gp);
  1789. }
  1790. /* Must be invoked with no lock held. */
  1791. static void gem_stop_phy(struct gem *gp, int wol)
  1792. {
  1793. u32 mifcfg;
  1794. unsigned long flags;
  1795. /* Let the chip settle down a bit, it seems that helps
  1796. * for sleep mode on some models
  1797. */
  1798. msleep(10);
  1799. /* Make sure we aren't polling PHY status change. We
  1800. * don't currently use that feature though
  1801. */
  1802. mifcfg = readl(gp->regs + MIF_CFG);
  1803. mifcfg &= ~MIF_CFG_POLL;
  1804. writel(mifcfg, gp->regs + MIF_CFG);
  1805. if (wol && gp->has_wol) {
  1806. unsigned char *e = &gp->dev->dev_addr[0];
  1807. u32 csr;
  1808. /* Setup wake-on-lan for MAGIC packet */
  1809. writel(MAC_RXCFG_HFE | MAC_RXCFG_SFCS | MAC_RXCFG_ENAB,
  1810. gp->regs + MAC_RXCFG);
  1811. writel((e[4] << 8) | e[5], gp->regs + WOL_MATCH0);
  1812. writel((e[2] << 8) | e[3], gp->regs + WOL_MATCH1);
  1813. writel((e[0] << 8) | e[1], gp->regs + WOL_MATCH2);
  1814. writel(WOL_MCOUNT_N | WOL_MCOUNT_M, gp->regs + WOL_MCOUNT);
  1815. csr = WOL_WAKECSR_ENABLE;
  1816. if ((readl(gp->regs + MAC_XIFCFG) & MAC_XIFCFG_GMII) == 0)
  1817. csr |= WOL_WAKECSR_MII;
  1818. writel(csr, gp->regs + WOL_WAKECSR);
  1819. } else {
  1820. writel(0, gp->regs + MAC_RXCFG);
  1821. (void)readl(gp->regs + MAC_RXCFG);
  1822. /* Machine sleep will die in strange ways if we
  1823. * dont wait a bit here, looks like the chip takes
  1824. * some time to really shut down
  1825. */
  1826. msleep(10);
  1827. }
  1828. writel(0, gp->regs + MAC_TXCFG);
  1829. writel(0, gp->regs + MAC_XIFCFG);
  1830. writel(0, gp->regs + TXDMA_CFG);
  1831. writel(0, gp->regs + RXDMA_CFG);
  1832. if (!wol) {
  1833. spin_lock_irqsave(&gp->lock, flags);
  1834. spin_lock(&gp->tx_lock);
  1835. gem_reset(gp);
  1836. writel(MAC_TXRST_CMD, gp->regs + MAC_TXRST);
  1837. writel(MAC_RXRST_CMD, gp->regs + MAC_RXRST);
  1838. spin_unlock(&gp->tx_lock);
  1839. spin_unlock_irqrestore(&gp->lock, flags);
  1840. /* No need to take the lock here */
  1841. if (found_mii_phy(gp) && gp->phy_mii.def->ops->suspend)
  1842. gp->phy_mii.def->ops->suspend(&gp->phy_mii);
  1843. /* According to Apple, we must set the MDIO pins to this begnign
  1844. * state or we may 1) eat more current, 2) damage some PHYs
  1845. */
  1846. writel(mifcfg | MIF_CFG_BBMODE, gp->regs + MIF_CFG);
  1847. writel(0, gp->regs + MIF_BBCLK);
  1848. writel(0, gp->regs + MIF_BBDATA);
  1849. writel(0, gp->regs + MIF_BBOENAB);
  1850. writel(MAC_XIFCFG_GMII | MAC_XIFCFG_LBCK, gp->regs + MAC_XIFCFG);
  1851. (void) readl(gp->regs + MAC_XIFCFG);
  1852. }
  1853. }
  1854. static int gem_do_start(struct net_device *dev)
  1855. {
  1856. struct gem *gp = dev->priv;
  1857. unsigned long flags;
  1858. spin_lock_irqsave(&gp->lock, flags);
  1859. spin_lock(&gp->tx_lock);
  1860. /* Enable the cell */
  1861. gem_get_cell(gp);
  1862. /* Init & setup chip hardware */
  1863. gem_reinit_chip(gp);
  1864. gp->running = 1;
  1865. if (gp->lstate == link_up) {
  1866. netif_carrier_on(gp->dev);
  1867. gem_set_link_modes(gp);
  1868. }
  1869. netif_wake_queue(gp->dev);
  1870. spin_unlock(&gp->tx_lock);
  1871. spin_unlock_irqrestore(&gp->lock, flags);
  1872. if (request_irq(gp->pdev->irq, gem_interrupt,
  1873. SA_SHIRQ, dev->name, (void *)dev)) {
  1874. printk(KERN_ERR "%s: failed to request irq !\n", gp->dev->name);
  1875. spin_lock_irqsave(&gp->lock, flags);
  1876. spin_lock(&gp->tx_lock);
  1877. gp->running = 0;
  1878. gem_reset(gp);
  1879. gem_clean_rings(gp);
  1880. gem_put_cell(gp);
  1881. spin_unlock(&gp->tx_lock);
  1882. spin_unlock_irqrestore(&gp->lock, flags);
  1883. return -EAGAIN;
  1884. }
  1885. return 0;
  1886. }
  1887. static void gem_do_stop(struct net_device *dev, int wol)
  1888. {
  1889. struct gem *gp = dev->priv;
  1890. unsigned long flags;
  1891. spin_lock_irqsave(&gp->lock, flags);
  1892. spin_lock(&gp->tx_lock);
  1893. gp->running = 0;
  1894. /* Stop netif queue */
  1895. netif_stop_queue(dev);
  1896. /* Make sure ints are disabled */
  1897. gem_disable_ints(gp);
  1898. /* We can drop the lock now */
  1899. spin_unlock(&gp->tx_lock);
  1900. spin_unlock_irqrestore(&gp->lock, flags);
  1901. /* If we are going to sleep with WOL */
  1902. gem_stop_dma(gp);
  1903. msleep(10);
  1904. if (!wol)
  1905. gem_reset(gp);
  1906. msleep(10);
  1907. /* Get rid of rings */
  1908. gem_clean_rings(gp);
  1909. /* No irq needed anymore */
  1910. free_irq(gp->pdev->irq, (void *) dev);
  1911. /* Cell not needed neither if no WOL */
  1912. if (!wol) {
  1913. spin_lock_irqsave(&gp->lock, flags);
  1914. gem_put_cell(gp);
  1915. spin_unlock_irqrestore(&gp->lock, flags);
  1916. }
  1917. }
  1918. static void gem_reset_task(void *data)
  1919. {
  1920. struct gem *gp = (struct gem *) data;
  1921. mutex_lock(&gp->pm_mutex);
  1922. netif_poll_disable(gp->dev);
  1923. spin_lock_irq(&gp->lock);
  1924. spin_lock(&gp->tx_lock);
  1925. if (gp->running == 0)
  1926. goto not_running;
  1927. if (gp->running) {
  1928. netif_stop_queue(gp->dev);
  1929. /* Reset the chip & rings */
  1930. gem_reinit_chip(gp);
  1931. if (gp->lstate == link_up)
  1932. gem_set_link_modes(gp);
  1933. netif_wake_queue(gp->dev);
  1934. }
  1935. not_running:
  1936. gp->reset_task_pending = 0;
  1937. spin_unlock(&gp->tx_lock);
  1938. spin_unlock_irq(&gp->lock);
  1939. netif_poll_enable(gp->dev);
  1940. mutex_unlock(&gp->pm_mutex);
  1941. }
  1942. static int gem_open(struct net_device *dev)
  1943. {
  1944. struct gem *gp = dev->priv;
  1945. int rc = 0;
  1946. mutex_lock(&gp->pm_mutex);
  1947. /* We need the cell enabled */
  1948. if (!gp->asleep)
  1949. rc = gem_do_start(dev);
  1950. gp->opened = (rc == 0);
  1951. mutex_unlock(&gp->pm_mutex);
  1952. return rc;
  1953. }
  1954. static int gem_close(struct net_device *dev)
  1955. {
  1956. struct gem *gp = dev->priv;
  1957. /* Note: we don't need to call netif_poll_disable() here because
  1958. * our caller (dev_close) already did it for us
  1959. */
  1960. mutex_lock(&gp->pm_mutex);
  1961. gp->opened = 0;
  1962. if (!gp->asleep)
  1963. gem_do_stop(dev, 0);
  1964. mutex_unlock(&gp->pm_mutex);
  1965. return 0;
  1966. }
  1967. #ifdef CONFIG_PM
  1968. static int gem_suspend(struct pci_dev *pdev, pm_message_t state)
  1969. {
  1970. struct net_device *dev = pci_get_drvdata(pdev);
  1971. struct gem *gp = dev->priv;
  1972. unsigned long flags;
  1973. mutex_lock(&gp->pm_mutex);
  1974. netif_poll_disable(dev);
  1975. printk(KERN_INFO "%s: suspending, WakeOnLan %s\n",
  1976. dev->name,
  1977. (gp->wake_on_lan && gp->opened) ? "enabled" : "disabled");
  1978. /* Keep the cell enabled during the entire operation */
  1979. spin_lock_irqsave(&gp->lock, flags);
  1980. spin_lock(&gp->tx_lock);
  1981. gem_get_cell(gp);
  1982. spin_unlock(&gp->tx_lock);
  1983. spin_unlock_irqrestore(&gp->lock, flags);
  1984. /* If the driver is opened, we stop the MAC */
  1985. if (gp->opened) {
  1986. /* Stop traffic, mark us closed */
  1987. netif_device_detach(dev);
  1988. /* Switch off MAC, remember WOL setting */
  1989. gp->asleep_wol = gp->wake_on_lan;
  1990. gem_do_stop(dev, gp->asleep_wol);
  1991. } else
  1992. gp->asleep_wol = 0;
  1993. /* Mark us asleep */
  1994. gp->asleep = 1;
  1995. wmb();
  1996. /* Stop the link timer */
  1997. del_timer_sync(&gp->link_timer);
  1998. /* Now we release the mutex to not block the reset task who
  1999. * can take it too. We are marked asleep, so there will be no
  2000. * conflict here
  2001. */
  2002. mutex_unlock(&gp->pm_mutex);
  2003. /* Wait for a pending reset task to complete */
  2004. while (gp->reset_task_pending)
  2005. yield();
  2006. flush_scheduled_work();
  2007. /* Shut the PHY down eventually and setup WOL */
  2008. gem_stop_phy(gp, gp->asleep_wol);
  2009. /* Make sure bus master is disabled */
  2010. pci_disable_device(gp->pdev);
  2011. /* Release the cell, no need to take a lock at this point since
  2012. * nothing else can happen now
  2013. */
  2014. gem_put_cell(gp);
  2015. return 0;
  2016. }
  2017. static int gem_resume(struct pci_dev *pdev)
  2018. {
  2019. struct net_device *dev = pci_get_drvdata(pdev);
  2020. struct gem *gp = dev->priv;
  2021. unsigned long flags;
  2022. printk(KERN_INFO "%s: resuming\n", dev->name);
  2023. mutex_lock(&gp->pm_mutex);
  2024. /* Keep the cell enabled during the entire operation, no need to
  2025. * take a lock here tho since nothing else can happen while we are
  2026. * marked asleep
  2027. */
  2028. gem_get_cell(gp);
  2029. /* Make sure PCI access and bus master are enabled */
  2030. if (pci_enable_device(gp->pdev)) {
  2031. printk(KERN_ERR "%s: Can't re-enable chip !\n",
  2032. dev->name);
  2033. /* Put cell and forget it for now, it will be considered as
  2034. * still asleep, a new sleep cycle may bring it back
  2035. */
  2036. gem_put_cell(gp);
  2037. mutex_unlock(&gp->pm_mutex);
  2038. return 0;
  2039. }
  2040. pci_set_master(gp->pdev);
  2041. /* Reset everything */
  2042. gem_reset(gp);
  2043. /* Mark us woken up */
  2044. gp->asleep = 0;
  2045. wmb();
  2046. /* Bring the PHY back. Again, lock is useless at this point as
  2047. * nothing can be happening until we restart the whole thing
  2048. */
  2049. gem_init_phy(gp);
  2050. /* If we were opened, bring everything back */
  2051. if (gp->opened) {
  2052. /* Restart MAC */
  2053. gem_do_start(dev);
  2054. /* Re-attach net device */
  2055. netif_device_attach(dev);
  2056. }
  2057. spin_lock_irqsave(&gp->lock, flags);
  2058. spin_lock(&gp->tx_lock);
  2059. /* If we had WOL enabled, the cell clock was never turned off during
  2060. * sleep, so we end up beeing unbalanced. Fix that here
  2061. */
  2062. if (gp->asleep_wol)
  2063. gem_put_cell(gp);
  2064. /* This function doesn't need to hold the cell, it will be held if the
  2065. * driver is open by gem_do_start().
  2066. */
  2067. gem_put_cell(gp);
  2068. spin_unlock(&gp->tx_lock);
  2069. spin_unlock_irqrestore(&gp->lock, flags);
  2070. netif_poll_enable(dev);
  2071. mutex_unlock(&gp->pm_mutex);
  2072. return 0;
  2073. }
  2074. #endif /* CONFIG_PM */
  2075. static struct net_device_stats *gem_get_stats(struct net_device *dev)
  2076. {
  2077. struct gem *gp = dev->priv;
  2078. struct net_device_stats *stats = &gp->net_stats;
  2079. spin_lock_irq(&gp->lock);
  2080. spin_lock(&gp->tx_lock);
  2081. /* I have seen this being called while the PM was in progress,
  2082. * so we shield against this
  2083. */
  2084. if (gp->running) {
  2085. stats->rx_crc_errors += readl(gp->regs + MAC_FCSERR);
  2086. writel(0, gp->regs + MAC_FCSERR);
  2087. stats->rx_frame_errors += readl(gp->regs + MAC_AERR);
  2088. writel(0, gp->regs + MAC_AERR);
  2089. stats->rx_length_errors += readl(gp->regs + MAC_LERR);
  2090. writel(0, gp->regs + MAC_LERR);
  2091. stats->tx_aborted_errors += readl(gp->regs + MAC_ECOLL);
  2092. stats->collisions +=
  2093. (readl(gp->regs + MAC_ECOLL) +
  2094. readl(gp->regs + MAC_LCOLL));
  2095. writel(0, gp->regs + MAC_ECOLL);
  2096. writel(0, gp->regs + MAC_LCOLL);
  2097. }
  2098. spin_unlock(&gp->tx_lock);
  2099. spin_unlock_irq(&gp->lock);
  2100. return &gp->net_stats;
  2101. }
  2102. static void gem_set_multicast(struct net_device *dev)
  2103. {
  2104. struct gem *gp = dev->priv;
  2105. u32 rxcfg, rxcfg_new;
  2106. int limit = 10000;
  2107. spin_lock_irq(&gp->lock);
  2108. spin_lock(&gp->tx_lock);
  2109. if (!gp->running)
  2110. goto bail;
  2111. netif_stop_queue(dev);
  2112. rxcfg = readl(gp->regs + MAC_RXCFG);
  2113. rxcfg_new = gem_setup_multicast(gp);
  2114. #ifdef STRIP_FCS
  2115. rxcfg_new |= MAC_RXCFG_SFCS;
  2116. #endif
  2117. gp->mac_rx_cfg = rxcfg_new;
  2118. writel(rxcfg & ~MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
  2119. while (readl(gp->regs + MAC_RXCFG) & MAC_RXCFG_ENAB) {
  2120. if (!limit--)
  2121. break;
  2122. udelay(10);
  2123. }
  2124. rxcfg &= ~(MAC_RXCFG_PROM | MAC_RXCFG_HFE);
  2125. rxcfg |= rxcfg_new;
  2126. writel(rxcfg, gp->regs + MAC_RXCFG);
  2127. netif_wake_queue(dev);
  2128. bail:
  2129. spin_unlock(&gp->tx_lock);
  2130. spin_unlock_irq(&gp->lock);
  2131. }
  2132. /* Jumbo-grams don't seem to work :-( */
  2133. #define GEM_MIN_MTU 68
  2134. #if 1
  2135. #define GEM_MAX_MTU 1500
  2136. #else
  2137. #define GEM_MAX_MTU 9000
  2138. #endif
  2139. static int gem_change_mtu(struct net_device *dev, int new_mtu)
  2140. {
  2141. struct gem *gp = dev->priv;
  2142. if (new_mtu < GEM_MIN_MTU || new_mtu > GEM_MAX_MTU)
  2143. return -EINVAL;
  2144. if (!netif_running(dev) || !netif_device_present(dev)) {
  2145. /* We'll just catch it later when the
  2146. * device is up'd or resumed.
  2147. */
  2148. dev->mtu = new_mtu;
  2149. return 0;
  2150. }
  2151. mutex_lock(&gp->pm_mutex);
  2152. spin_lock_irq(&gp->lock);
  2153. spin_lock(&gp->tx_lock);
  2154. dev->mtu = new_mtu;
  2155. if (gp->running) {
  2156. gem_reinit_chip(gp);
  2157. if (gp->lstate == link_up)
  2158. gem_set_link_modes(gp);
  2159. }
  2160. spin_unlock(&gp->tx_lock);
  2161. spin_unlock_irq(&gp->lock);
  2162. mutex_unlock(&gp->pm_mutex);
  2163. return 0;
  2164. }
  2165. static void gem_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info)
  2166. {
  2167. struct gem *gp = dev->priv;
  2168. strcpy(info->driver, DRV_NAME);
  2169. strcpy(info->version, DRV_VERSION);
  2170. strcpy(info->bus_info, pci_name(gp->pdev));
  2171. }
  2172. static int gem_get_settings(struct net_device *dev, struct ethtool_cmd *cmd)
  2173. {
  2174. struct gem *gp = dev->priv;
  2175. if (gp->phy_type == phy_mii_mdio0 ||
  2176. gp->phy_type == phy_mii_mdio1) {
  2177. if (gp->phy_mii.def)
  2178. cmd->supported = gp->phy_mii.def->features;
  2179. else
  2180. cmd->supported = (SUPPORTED_10baseT_Half |
  2181. SUPPORTED_10baseT_Full);
  2182. /* XXX hardcoded stuff for now */
  2183. cmd->port = PORT_MII;
  2184. cmd->transceiver = XCVR_EXTERNAL;
  2185. cmd->phy_address = 0; /* XXX fixed PHYAD */
  2186. /* Return current PHY settings */
  2187. spin_lock_irq(&gp->lock);
  2188. cmd->autoneg = gp->want_autoneg;
  2189. cmd->speed = gp->phy_mii.speed;
  2190. cmd->duplex = gp->phy_mii.duplex;
  2191. cmd->advertising = gp->phy_mii.advertising;
  2192. /* If we started with a forced mode, we don't have a default
  2193. * advertise set, we need to return something sensible so
  2194. * userland can re-enable autoneg properly.
  2195. */
  2196. if (cmd->advertising == 0)
  2197. cmd->advertising = cmd->supported;
  2198. spin_unlock_irq(&gp->lock);
  2199. } else { // XXX PCS ?
  2200. cmd->supported =
  2201. (SUPPORTED_10baseT_Half | SUPPORTED_10baseT_Full |
  2202. SUPPORTED_100baseT_Half | SUPPORTED_100baseT_Full |
  2203. SUPPORTED_Autoneg);
  2204. cmd->advertising = cmd->supported;
  2205. cmd->speed = 0;
  2206. cmd->duplex = cmd->port = cmd->phy_address =
  2207. cmd->transceiver = cmd->autoneg = 0;
  2208. }
  2209. cmd->maxtxpkt = cmd->maxrxpkt = 0;
  2210. return 0;
  2211. }
  2212. static int gem_set_settings(struct net_device *dev, struct ethtool_cmd *cmd)
  2213. {
  2214. struct gem *gp = dev->priv;
  2215. /* Verify the settings we care about. */
  2216. if (cmd->autoneg != AUTONEG_ENABLE &&
  2217. cmd->autoneg != AUTONEG_DISABLE)
  2218. return -EINVAL;
  2219. if (cmd->autoneg == AUTONEG_ENABLE &&
  2220. cmd->advertising == 0)
  2221. return -EINVAL;
  2222. if (cmd->autoneg == AUTONEG_DISABLE &&
  2223. ((cmd->speed != SPEED_1000 &&
  2224. cmd->speed != SPEED_100 &&
  2225. cmd->speed != SPEED_10) ||
  2226. (cmd->duplex != DUPLEX_HALF &&
  2227. cmd->duplex != DUPLEX_FULL)))
  2228. return -EINVAL;
  2229. /* Apply settings and restart link process. */
  2230. spin_lock_irq(&gp->lock);
  2231. gem_get_cell(gp);
  2232. gem_begin_auto_negotiation(gp, cmd);
  2233. gem_put_cell(gp);
  2234. spin_unlock_irq(&gp->lock);
  2235. return 0;
  2236. }
  2237. static int gem_nway_reset(struct net_device *dev)
  2238. {
  2239. struct gem *gp = dev->priv;
  2240. if (!gp->want_autoneg)
  2241. return -EINVAL;
  2242. /* Restart link process. */
  2243. spin_lock_irq(&gp->lock);
  2244. gem_get_cell(gp);
  2245. gem_begin_auto_negotiation(gp, NULL);
  2246. gem_put_cell(gp);
  2247. spin_unlock_irq(&gp->lock);
  2248. return 0;
  2249. }
  2250. static u32 gem_get_msglevel(struct net_device *dev)
  2251. {
  2252. struct gem *gp = dev->priv;
  2253. return gp->msg_enable;
  2254. }
  2255. static void gem_set_msglevel(struct net_device *dev, u32 value)
  2256. {
  2257. struct gem *gp = dev->priv;
  2258. gp->msg_enable = value;
  2259. }
  2260. /* Add more when I understand how to program the chip */
  2261. /* like WAKE_UCAST | WAKE_MCAST | WAKE_BCAST */
  2262. #define WOL_SUPPORTED_MASK (WAKE_MAGIC)
  2263. static void gem_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
  2264. {
  2265. struct gem *gp = dev->priv;
  2266. /* Add more when I understand how to program the chip */
  2267. if (gp->has_wol) {
  2268. wol->supported = WOL_SUPPORTED_MASK;
  2269. wol->wolopts = gp->wake_on_lan;
  2270. } else {
  2271. wol->supported = 0;
  2272. wol->wolopts = 0;
  2273. }
  2274. }
  2275. static int gem_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
  2276. {
  2277. struct gem *gp = dev->priv;
  2278. if (!gp->has_wol)
  2279. return -EOPNOTSUPP;
  2280. gp->wake_on_lan = wol->wolopts & WOL_SUPPORTED_MASK;
  2281. return 0;
  2282. }
  2283. static struct ethtool_ops gem_ethtool_ops = {
  2284. .get_drvinfo = gem_get_drvinfo,
  2285. .get_link = ethtool_op_get_link,
  2286. .get_settings = gem_get_settings,
  2287. .set_settings = gem_set_settings,
  2288. .nway_reset = gem_nway_reset,
  2289. .get_msglevel = gem_get_msglevel,
  2290. .set_msglevel = gem_set_msglevel,
  2291. .get_wol = gem_get_wol,
  2292. .set_wol = gem_set_wol,
  2293. };
  2294. static int gem_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
  2295. {
  2296. struct gem *gp = dev->priv;
  2297. struct mii_ioctl_data *data = if_mii(ifr);
  2298. int rc = -EOPNOTSUPP;
  2299. unsigned long flags;
  2300. /* Hold the PM mutex while doing ioctl's or we may collide
  2301. * with power management.
  2302. */
  2303. mutex_lock(&gp->pm_mutex);
  2304. spin_lock_irqsave(&gp->lock, flags);
  2305. gem_get_cell(gp);
  2306. spin_unlock_irqrestore(&gp->lock, flags);
  2307. switch (cmd) {
  2308. case SIOCGMIIPHY: /* Get address of MII PHY in use. */
  2309. data->phy_id = gp->mii_phy_addr;
  2310. /* Fallthrough... */
  2311. case SIOCGMIIREG: /* Read MII PHY register. */
  2312. if (!gp->running)
  2313. rc = -EAGAIN;
  2314. else {
  2315. data->val_out = __phy_read(gp, data->phy_id & 0x1f,
  2316. data->reg_num & 0x1f);
  2317. rc = 0;
  2318. }
  2319. break;
  2320. case SIOCSMIIREG: /* Write MII PHY register. */
  2321. if (!capable(CAP_NET_ADMIN))
  2322. rc = -EPERM;
  2323. else if (!gp->running)
  2324. rc = -EAGAIN;
  2325. else {
  2326. __phy_write(gp, data->phy_id & 0x1f, data->reg_num & 0x1f,
  2327. data->val_in);
  2328. rc = 0;
  2329. }
  2330. break;
  2331. };
  2332. spin_lock_irqsave(&gp->lock, flags);
  2333. gem_put_cell(gp);
  2334. spin_unlock_irqrestore(&gp->lock, flags);
  2335. mutex_unlock(&gp->pm_mutex);
  2336. return rc;
  2337. }
  2338. #if (!defined(__sparc__) && !defined(CONFIG_PPC_PMAC))
  2339. /* Fetch MAC address from vital product data of PCI ROM. */
  2340. static int find_eth_addr_in_vpd(void __iomem *rom_base, int len, unsigned char *dev_addr)
  2341. {
  2342. int this_offset;
  2343. for (this_offset = 0x20; this_offset < len; this_offset++) {
  2344. void __iomem *p = rom_base + this_offset;
  2345. int i;
  2346. if (readb(p + 0) != 0x90 ||
  2347. readb(p + 1) != 0x00 ||
  2348. readb(p + 2) != 0x09 ||
  2349. readb(p + 3) != 0x4e ||
  2350. readb(p + 4) != 0x41 ||
  2351. readb(p + 5) != 0x06)
  2352. continue;
  2353. this_offset += 6;
  2354. p += 6;
  2355. for (i = 0; i < 6; i++)
  2356. dev_addr[i] = readb(p + i);
  2357. return 1;
  2358. }
  2359. return 0;
  2360. }
  2361. static void get_gem_mac_nonobp(struct pci_dev *pdev, unsigned char *dev_addr)
  2362. {
  2363. size_t size;
  2364. void __iomem *p = pci_map_rom(pdev, &size);
  2365. if (p) {
  2366. int found;
  2367. found = readb(p) == 0x55 &&
  2368. readb(p + 1) == 0xaa &&
  2369. find_eth_addr_in_vpd(p, (64 * 1024), dev_addr);
  2370. pci_unmap_rom(pdev, p);
  2371. if (found)
  2372. return;
  2373. }
  2374. /* Sun MAC prefix then 3 random bytes. */
  2375. dev_addr[0] = 0x08;
  2376. dev_addr[1] = 0x00;
  2377. dev_addr[2] = 0x20;
  2378. get_random_bytes(dev_addr + 3, 3);
  2379. return;
  2380. }
  2381. #endif /* not Sparc and not PPC */
  2382. static int __devinit gem_get_device_address(struct gem *gp)
  2383. {
  2384. #if defined(__sparc__) || defined(CONFIG_PPC_PMAC)
  2385. struct net_device *dev = gp->dev;
  2386. #endif
  2387. #if defined(__sparc__)
  2388. struct pci_dev *pdev = gp->pdev;
  2389. struct pcidev_cookie *pcp = pdev->sysdata;
  2390. int node = -1;
  2391. if (pcp != NULL) {
  2392. node = pcp->prom_node;
  2393. if (prom_getproplen(node, "local-mac-address") == 6)
  2394. prom_getproperty(node, "local-mac-address",
  2395. dev->dev_addr, 6);
  2396. else
  2397. node = -1;
  2398. }
  2399. if (node == -1)
  2400. memcpy(dev->dev_addr, idprom->id_ethaddr, 6);
  2401. #elif defined(CONFIG_PPC_PMAC)
  2402. unsigned char *addr;
  2403. addr = get_property(gp->of_node, "local-mac-address", NULL);
  2404. if (addr == NULL) {
  2405. printk("\n");
  2406. printk(KERN_ERR "%s: can't get mac-address\n", dev->name);
  2407. return -1;
  2408. }
  2409. memcpy(dev->dev_addr, addr, 6);
  2410. #else
  2411. get_gem_mac_nonobp(gp->pdev, gp->dev->dev_addr);
  2412. #endif
  2413. return 0;
  2414. }
  2415. static void gem_remove_one(struct pci_dev *pdev)
  2416. {
  2417. struct net_device *dev = pci_get_drvdata(pdev);
  2418. if (dev) {
  2419. struct gem *gp = dev->priv;
  2420. unregister_netdev(dev);
  2421. /* Stop the link timer */
  2422. del_timer_sync(&gp->link_timer);
  2423. /* We shouldn't need any locking here */
  2424. gem_get_cell(gp);
  2425. /* Wait for a pending reset task to complete */
  2426. while (gp->reset_task_pending)
  2427. yield();
  2428. flush_scheduled_work();
  2429. /* Shut the PHY down */
  2430. gem_stop_phy(gp, 0);
  2431. gem_put_cell(gp);
  2432. /* Make sure bus master is disabled */
  2433. pci_disable_device(gp->pdev);
  2434. /* Free resources */
  2435. pci_free_consistent(pdev,
  2436. sizeof(struct gem_init_block),
  2437. gp->init_block,
  2438. gp->gblock_dvma);
  2439. iounmap(gp->regs);
  2440. pci_release_regions(pdev);
  2441. free_netdev(dev);
  2442. pci_set_drvdata(pdev, NULL);
  2443. }
  2444. }
  2445. static int __devinit gem_init_one(struct pci_dev *pdev,
  2446. const struct pci_device_id *ent)
  2447. {
  2448. static int gem_version_printed = 0;
  2449. unsigned long gemreg_base, gemreg_len;
  2450. struct net_device *dev;
  2451. struct gem *gp;
  2452. int i, err, pci_using_dac;
  2453. if (gem_version_printed++ == 0)
  2454. printk(KERN_INFO "%s", version);
  2455. /* Apple gmac note: during probe, the chip is powered up by
  2456. * the arch code to allow the code below to work (and to let
  2457. * the chip be probed on the config space. It won't stay powered
  2458. * up until the interface is brought up however, so we can't rely
  2459. * on register configuration done at this point.
  2460. */
  2461. err = pci_enable_device(pdev);
  2462. if (err) {
  2463. printk(KERN_ERR PFX "Cannot enable MMIO operation, "
  2464. "aborting.\n");
  2465. return err;
  2466. }
  2467. pci_set_master(pdev);
  2468. /* Configure DMA attributes. */
  2469. /* All of the GEM documentation states that 64-bit DMA addressing
  2470. * is fully supported and should work just fine. However the
  2471. * front end for RIO based GEMs is different and only supports
  2472. * 32-bit addressing.
  2473. *
  2474. * For now we assume the various PPC GEMs are 32-bit only as well.
  2475. */
  2476. if (pdev->vendor == PCI_VENDOR_ID_SUN &&
  2477. pdev->device == PCI_DEVICE_ID_SUN_GEM &&
  2478. !pci_set_dma_mask(pdev, DMA_64BIT_MASK)) {
  2479. pci_using_dac = 1;
  2480. } else {
  2481. err = pci_set_dma_mask(pdev, DMA_32BIT_MASK);
  2482. if (err) {
  2483. printk(KERN_ERR PFX "No usable DMA configuration, "
  2484. "aborting.\n");
  2485. goto err_disable_device;
  2486. }
  2487. pci_using_dac = 0;
  2488. }
  2489. gemreg_base = pci_resource_start(pdev, 0);
  2490. gemreg_len = pci_resource_len(pdev, 0);
  2491. if ((pci_resource_flags(pdev, 0) & IORESOURCE_IO) != 0) {
  2492. printk(KERN_ERR PFX "Cannot find proper PCI device "
  2493. "base address, aborting.\n");
  2494. err = -ENODEV;
  2495. goto err_disable_device;
  2496. }
  2497. dev = alloc_etherdev(sizeof(*gp));
  2498. if (!dev) {
  2499. printk(KERN_ERR PFX "Etherdev alloc failed, aborting.\n");
  2500. err = -ENOMEM;
  2501. goto err_disable_device;
  2502. }
  2503. SET_MODULE_OWNER(dev);
  2504. SET_NETDEV_DEV(dev, &pdev->dev);
  2505. gp = dev->priv;
  2506. err = pci_request_regions(pdev, DRV_NAME);
  2507. if (err) {
  2508. printk(KERN_ERR PFX "Cannot obtain PCI resources, "
  2509. "aborting.\n");
  2510. goto err_out_free_netdev;
  2511. }
  2512. gp->pdev = pdev;
  2513. dev->base_addr = (long) pdev;
  2514. gp->dev = dev;
  2515. gp->msg_enable = DEFAULT_MSG;
  2516. spin_lock_init(&gp->lock);
  2517. spin_lock_init(&gp->tx_lock);
  2518. mutex_init(&gp->pm_mutex);
  2519. init_timer(&gp->link_timer);
  2520. gp->link_timer.function = gem_link_timer;
  2521. gp->link_timer.data = (unsigned long) gp;
  2522. INIT_WORK(&gp->reset_task, gem_reset_task, gp);
  2523. gp->lstate = link_down;
  2524. gp->timer_ticks = 0;
  2525. netif_carrier_off(dev);
  2526. gp->regs = ioremap(gemreg_base, gemreg_len);
  2527. if (gp->regs == 0UL) {
  2528. printk(KERN_ERR PFX "Cannot map device registers, "
  2529. "aborting.\n");
  2530. err = -EIO;
  2531. goto err_out_free_res;
  2532. }
  2533. /* On Apple, we want a reference to the Open Firmware device-tree
  2534. * node. We use it for clock control.
  2535. */
  2536. #ifdef CONFIG_PPC_PMAC
  2537. gp->of_node = pci_device_to_OF_node(pdev);
  2538. #endif
  2539. /* Only Apple version supports WOL afaik */
  2540. if (pdev->vendor == PCI_VENDOR_ID_APPLE)
  2541. gp->has_wol = 1;
  2542. /* Make sure cell is enabled */
  2543. gem_get_cell(gp);
  2544. /* Make sure everything is stopped and in init state */
  2545. gem_reset(gp);
  2546. /* Fill up the mii_phy structure (even if we won't use it) */
  2547. gp->phy_mii.dev = dev;
  2548. gp->phy_mii.mdio_read = _phy_read;
  2549. gp->phy_mii.mdio_write = _phy_write;
  2550. #ifdef CONFIG_PPC_PMAC
  2551. gp->phy_mii.platform_data = gp->of_node;
  2552. #endif
  2553. /* By default, we start with autoneg */
  2554. gp->want_autoneg = 1;
  2555. /* Check fifo sizes, PHY type, etc... */
  2556. if (gem_check_invariants(gp)) {
  2557. err = -ENODEV;
  2558. goto err_out_iounmap;
  2559. }
  2560. /* It is guaranteed that the returned buffer will be at least
  2561. * PAGE_SIZE aligned.
  2562. */
  2563. gp->init_block = (struct gem_init_block *)
  2564. pci_alloc_consistent(pdev, sizeof(struct gem_init_block),
  2565. &gp->gblock_dvma);
  2566. if (!gp->init_block) {
  2567. printk(KERN_ERR PFX "Cannot allocate init block, "
  2568. "aborting.\n");
  2569. err = -ENOMEM;
  2570. goto err_out_iounmap;
  2571. }
  2572. if (gem_get_device_address(gp))
  2573. goto err_out_free_consistent;
  2574. dev->open = gem_open;
  2575. dev->stop = gem_close;
  2576. dev->hard_start_xmit = gem_start_xmit;
  2577. dev->get_stats = gem_get_stats;
  2578. dev->set_multicast_list = gem_set_multicast;
  2579. dev->do_ioctl = gem_ioctl;
  2580. dev->poll = gem_poll;
  2581. dev->weight = 64;
  2582. dev->ethtool_ops = &gem_ethtool_ops;
  2583. dev->tx_timeout = gem_tx_timeout;
  2584. dev->watchdog_timeo = 5 * HZ;
  2585. dev->change_mtu = gem_change_mtu;
  2586. dev->irq = pdev->irq;
  2587. dev->dma = 0;
  2588. #ifdef CONFIG_NET_POLL_CONTROLLER
  2589. dev->poll_controller = gem_poll_controller;
  2590. #endif
  2591. /* Set that now, in case PM kicks in now */
  2592. pci_set_drvdata(pdev, dev);
  2593. /* Detect & init PHY, start autoneg, we release the cell now
  2594. * too, it will be managed by whoever needs it
  2595. */
  2596. gem_init_phy(gp);
  2597. spin_lock_irq(&gp->lock);
  2598. gem_put_cell(gp);
  2599. spin_unlock_irq(&gp->lock);
  2600. /* Register with kernel */
  2601. if (register_netdev(dev)) {
  2602. printk(KERN_ERR PFX "Cannot register net device, "
  2603. "aborting.\n");
  2604. err = -ENOMEM;
  2605. goto err_out_free_consistent;
  2606. }
  2607. printk(KERN_INFO "%s: Sun GEM (PCI) 10/100/1000BaseT Ethernet ",
  2608. dev->name);
  2609. for (i = 0; i < 6; i++)
  2610. printk("%2.2x%c", dev->dev_addr[i],
  2611. i == 5 ? ' ' : ':');
  2612. printk("\n");
  2613. if (gp->phy_type == phy_mii_mdio0 ||
  2614. gp->phy_type == phy_mii_mdio1)
  2615. printk(KERN_INFO "%s: Found %s PHY\n", dev->name,
  2616. gp->phy_mii.def ? gp->phy_mii.def->name : "no");
  2617. /* GEM can do it all... */
  2618. dev->features |= NETIF_F_SG | NETIF_F_HW_CSUM | NETIF_F_LLTX;
  2619. if (pci_using_dac)
  2620. dev->features |= NETIF_F_HIGHDMA;
  2621. return 0;
  2622. err_out_free_consistent:
  2623. gem_remove_one(pdev);
  2624. err_out_iounmap:
  2625. gem_put_cell(gp);
  2626. iounmap(gp->regs);
  2627. err_out_free_res:
  2628. pci_release_regions(pdev);
  2629. err_out_free_netdev:
  2630. free_netdev(dev);
  2631. err_disable_device:
  2632. pci_disable_device(pdev);
  2633. return err;
  2634. }
  2635. static struct pci_driver gem_driver = {
  2636. .name = GEM_MODULE_NAME,
  2637. .id_table = gem_pci_tbl,
  2638. .probe = gem_init_one,
  2639. .remove = gem_remove_one,
  2640. #ifdef CONFIG_PM
  2641. .suspend = gem_suspend,
  2642. .resume = gem_resume,
  2643. #endif /* CONFIG_PM */
  2644. };
  2645. static int __init gem_init(void)
  2646. {
  2647. return pci_module_init(&gem_driver);
  2648. }
  2649. static void __exit gem_cleanup(void)
  2650. {
  2651. pci_unregister_driver(&gem_driver);
  2652. }
  2653. module_init(gem_init);
  2654. module_exit(gem_cleanup);