sky2.c 82 KB

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  1. /*
  2. * New driver for Marvell Yukon 2 chipset.
  3. * Based on earlier sk98lin, and skge driver.
  4. *
  5. * This driver intentionally does not support all the features
  6. * of the original driver such as link fail-over and link management because
  7. * those should be done at higher levels.
  8. *
  9. * Copyright (C) 2005 Stephen Hemminger <shemminger@osdl.org>
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2 of the License, or
  14. * (at your option) any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  19. * GNU General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; if not, write to the Free Software
  23. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  24. */
  25. /*
  26. * TODO
  27. * - coalescing setting?
  28. *
  29. * TOTEST
  30. * - speed setting
  31. * - suspend/resume
  32. */
  33. #include <linux/config.h>
  34. #include <linux/crc32.h>
  35. #include <linux/kernel.h>
  36. #include <linux/version.h>
  37. #include <linux/module.h>
  38. #include <linux/netdevice.h>
  39. #include <linux/dma-mapping.h>
  40. #include <linux/etherdevice.h>
  41. #include <linux/ethtool.h>
  42. #include <linux/pci.h>
  43. #include <linux/ip.h>
  44. #include <linux/tcp.h>
  45. #include <linux/in.h>
  46. #include <linux/delay.h>
  47. #include <linux/if_vlan.h>
  48. #include <linux/mii.h>
  49. #include <asm/irq.h>
  50. #if defined(CONFIG_VLAN_8021Q) || defined(CONFIG_VLAN_8021Q_MODULE)
  51. #define SKY2_VLAN_TAG_USED 1
  52. #endif
  53. #include "sky2.h"
  54. #define DRV_NAME "sky2"
  55. #define DRV_VERSION "0.7"
  56. #define PFX DRV_NAME " "
  57. /*
  58. * The Yukon II chipset takes 64 bit command blocks (called list elements)
  59. * that are organized into three (receive, transmit, status) different rings
  60. * similar to Tigon3. A transmit can require several elements;
  61. * a receive requires one (or two if using 64 bit dma).
  62. */
  63. #define is_ec_a1(hw) \
  64. unlikely((hw)->chip_id == CHIP_ID_YUKON_EC && \
  65. (hw)->chip_rev == CHIP_REV_YU_EC_A1)
  66. #define RX_LE_SIZE 512
  67. #define RX_LE_BYTES (RX_LE_SIZE*sizeof(struct sky2_rx_le))
  68. #define RX_MAX_PENDING (RX_LE_SIZE/2 - 2)
  69. #define RX_DEF_PENDING RX_MAX_PENDING
  70. #define RX_COPY_THRESHOLD 256
  71. #define TX_RING_SIZE 512
  72. #define TX_DEF_PENDING (TX_RING_SIZE - 1)
  73. #define TX_MIN_PENDING 64
  74. #define MAX_SKB_TX_LE (4 + 2*MAX_SKB_FRAGS)
  75. #define STATUS_RING_SIZE 2048 /* 2 ports * (TX + 2*RX) */
  76. #define STATUS_LE_BYTES (STATUS_RING_SIZE*sizeof(struct sky2_status_le))
  77. #define ETH_JUMBO_MTU 9000
  78. #define TX_WATCHDOG (5 * HZ)
  79. #define NAPI_WEIGHT 64
  80. #define PHY_RETRIES 1000
  81. static const u32 default_msg =
  82. NETIF_MSG_DRV | NETIF_MSG_PROBE | NETIF_MSG_LINK
  83. | NETIF_MSG_TIMER | NETIF_MSG_TX_ERR | NETIF_MSG_RX_ERR
  84. | NETIF_MSG_IFUP | NETIF_MSG_IFDOWN | NETIF_MSG_INTR;
  85. static int debug = -1; /* defaults above */
  86. module_param(debug, int, 0);
  87. MODULE_PARM_DESC(debug, "Debug level (0=none,...,16=all)");
  88. static const struct pci_device_id sky2_id_table[] = {
  89. { PCI_DEVICE(PCI_VENDOR_ID_SYSKONNECT, 0x9000) },
  90. { PCI_DEVICE(PCI_VENDOR_ID_SYSKONNECT, 0x9E00) },
  91. { PCI_DEVICE(PCI_VENDOR_ID_DLINK, 0x4b00) },
  92. { PCI_DEVICE(PCI_VENDOR_ID_DLINK, 0x4b01) },
  93. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4340) },
  94. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4341) },
  95. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4342) },
  96. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4343) },
  97. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4344) },
  98. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4345) },
  99. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4346) },
  100. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4347) },
  101. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4350) },
  102. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4351) },
  103. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4352) },
  104. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4360) },
  105. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4361) },
  106. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4362) },
  107. { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4363) },
  108. { 0 }
  109. };
  110. MODULE_DEVICE_TABLE(pci, sky2_id_table);
  111. /* Avoid conditionals by using array */
  112. static const unsigned txqaddr[] = { Q_XA1, Q_XA2 };
  113. static const unsigned rxqaddr[] = { Q_R1, Q_R2 };
  114. static const char *yukon_name[] = {
  115. [CHIP_ID_YUKON_LITE - CHIP_ID_YUKON] = "Lite", /* 0xb0 */
  116. [CHIP_ID_YUKON_LP - CHIP_ID_YUKON] = "LP", /* 0xb2 */
  117. [CHIP_ID_YUKON_XL - CHIP_ID_YUKON] = "XL", /* 0xb3 */
  118. [CHIP_ID_YUKON_EC_U - CHIP_ID_YUKON] = "EC Ultra", /* 0xb4 */
  119. [CHIP_ID_YUKON_EC - CHIP_ID_YUKON] = "EC", /* 0xb6 */
  120. [CHIP_ID_YUKON_FE - CHIP_ID_YUKON] = "FE", /* 0xb7 */
  121. };
  122. /* Access to external PHY */
  123. static int gm_phy_write(struct sky2_hw *hw, unsigned port, u16 reg, u16 val)
  124. {
  125. int i;
  126. gma_write16(hw, port, GM_SMI_DATA, val);
  127. gma_write16(hw, port, GM_SMI_CTRL,
  128. GM_SMI_CT_PHY_AD(PHY_ADDR_MARV) | GM_SMI_CT_REG_AD(reg));
  129. for (i = 0; i < PHY_RETRIES; i++) {
  130. if (!(gma_read16(hw, port, GM_SMI_CTRL) & GM_SMI_CT_BUSY))
  131. return 0;
  132. udelay(1);
  133. }
  134. printk(KERN_WARNING PFX "%s: phy write timeout\n", hw->dev[port]->name);
  135. return -ETIMEDOUT;
  136. }
  137. static int __gm_phy_read(struct sky2_hw *hw, unsigned port, u16 reg, u16 *val)
  138. {
  139. int i;
  140. gma_write16(hw, port, GM_SMI_CTRL, GM_SMI_CT_PHY_AD(PHY_ADDR_MARV)
  141. | GM_SMI_CT_REG_AD(reg) | GM_SMI_CT_OP_RD);
  142. for (i = 0; i < PHY_RETRIES; i++) {
  143. if (gma_read16(hw, port, GM_SMI_CTRL) & GM_SMI_CT_RD_VAL) {
  144. *val = gma_read16(hw, port, GM_SMI_DATA);
  145. return 0;
  146. }
  147. udelay(1);
  148. }
  149. return -ETIMEDOUT;
  150. }
  151. static u16 gm_phy_read(struct sky2_hw *hw, unsigned port, u16 reg)
  152. {
  153. u16 v;
  154. if (__gm_phy_read(hw, port, reg, &v) != 0)
  155. printk(KERN_WARNING PFX "%s: phy read timeout\n", hw->dev[port]->name);
  156. return v;
  157. }
  158. static int sky2_set_power_state(struct sky2_hw *hw, pci_power_t state)
  159. {
  160. u16 power_control;
  161. u32 reg1;
  162. int vaux;
  163. int ret = 0;
  164. pr_debug("sky2_set_power_state %d\n", state);
  165. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
  166. pci_read_config_word(hw->pdev, hw->pm_cap + PCI_PM_PMC, &power_control);
  167. vaux = (sky2_read8(hw, B0_CTST) & Y2_VAUX_AVAIL) &&
  168. (power_control & PCI_PM_CAP_PME_D3cold);
  169. pci_read_config_word(hw->pdev, hw->pm_cap + PCI_PM_CTRL, &power_control);
  170. power_control |= PCI_PM_CTRL_PME_STATUS;
  171. power_control &= ~(PCI_PM_CTRL_STATE_MASK);
  172. switch (state) {
  173. case PCI_D0:
  174. /* switch power to VCC (WA for VAUX problem) */
  175. sky2_write8(hw, B0_POWER_CTRL,
  176. PC_VAUX_ENA | PC_VCC_ENA | PC_VAUX_OFF | PC_VCC_ON);
  177. /* disable Core Clock Division, */
  178. sky2_write32(hw, B2_Y2_CLK_CTRL, Y2_CLK_DIV_DIS);
  179. if (hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev > 1)
  180. /* enable bits are inverted */
  181. sky2_write8(hw, B2_Y2_CLK_GATE,
  182. Y2_PCI_CLK_LNK1_DIS | Y2_COR_CLK_LNK1_DIS |
  183. Y2_CLK_GAT_LNK1_DIS | Y2_PCI_CLK_LNK2_DIS |
  184. Y2_COR_CLK_LNK2_DIS | Y2_CLK_GAT_LNK2_DIS);
  185. else
  186. sky2_write8(hw, B2_Y2_CLK_GATE, 0);
  187. /* Turn off phy power saving */
  188. pci_read_config_dword(hw->pdev, PCI_DEV_REG1, &reg1);
  189. reg1 &= ~(PCI_Y2_PHY1_POWD | PCI_Y2_PHY2_POWD);
  190. /* looks like this XL is back asswards .. */
  191. if (hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev > 1) {
  192. reg1 |= PCI_Y2_PHY1_COMA;
  193. if (hw->ports > 1)
  194. reg1 |= PCI_Y2_PHY2_COMA;
  195. }
  196. pci_write_config_dword(hw->pdev, PCI_DEV_REG1, reg1);
  197. break;
  198. case PCI_D3hot:
  199. case PCI_D3cold:
  200. /* Turn on phy power saving */
  201. pci_read_config_dword(hw->pdev, PCI_DEV_REG1, &reg1);
  202. if (hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev > 1)
  203. reg1 &= ~(PCI_Y2_PHY1_POWD | PCI_Y2_PHY2_POWD);
  204. else
  205. reg1 |= (PCI_Y2_PHY1_POWD | PCI_Y2_PHY2_POWD);
  206. pci_write_config_dword(hw->pdev, PCI_DEV_REG1, reg1);
  207. if (hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev > 1)
  208. sky2_write8(hw, B2_Y2_CLK_GATE, 0);
  209. else
  210. /* enable bits are inverted */
  211. sky2_write8(hw, B2_Y2_CLK_GATE,
  212. Y2_PCI_CLK_LNK1_DIS | Y2_COR_CLK_LNK1_DIS |
  213. Y2_CLK_GAT_LNK1_DIS | Y2_PCI_CLK_LNK2_DIS |
  214. Y2_COR_CLK_LNK2_DIS | Y2_CLK_GAT_LNK2_DIS);
  215. /* switch power to VAUX */
  216. if (vaux && state != PCI_D3cold)
  217. sky2_write8(hw, B0_POWER_CTRL,
  218. (PC_VAUX_ENA | PC_VCC_ENA |
  219. PC_VAUX_ON | PC_VCC_OFF));
  220. break;
  221. default:
  222. printk(KERN_ERR PFX "Unknown power state %d\n", state);
  223. ret = -1;
  224. }
  225. pci_write_config_byte(hw->pdev, hw->pm_cap + PCI_PM_CTRL, power_control);
  226. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
  227. return ret;
  228. }
  229. static void sky2_phy_reset(struct sky2_hw *hw, unsigned port)
  230. {
  231. u16 reg;
  232. /* disable all GMAC IRQ's */
  233. sky2_write8(hw, SK_REG(port, GMAC_IRQ_MSK), 0);
  234. /* disable PHY IRQs */
  235. gm_phy_write(hw, port, PHY_MARV_INT_MASK, 0);
  236. gma_write16(hw, port, GM_MC_ADDR_H1, 0); /* clear MC hash */
  237. gma_write16(hw, port, GM_MC_ADDR_H2, 0);
  238. gma_write16(hw, port, GM_MC_ADDR_H3, 0);
  239. gma_write16(hw, port, GM_MC_ADDR_H4, 0);
  240. reg = gma_read16(hw, port, GM_RX_CTRL);
  241. reg |= GM_RXCR_UCF_ENA | GM_RXCR_MCF_ENA;
  242. gma_write16(hw, port, GM_RX_CTRL, reg);
  243. }
  244. static void sky2_phy_init(struct sky2_hw *hw, unsigned port)
  245. {
  246. struct sky2_port *sky2 = netdev_priv(hw->dev[port]);
  247. u16 ctrl, ct1000, adv, pg, ledctrl, ledover;
  248. if (sky2->autoneg == AUTONEG_ENABLE && hw->chip_id != CHIP_ID_YUKON_XL) {
  249. u16 ectrl = gm_phy_read(hw, port, PHY_MARV_EXT_CTRL);
  250. ectrl &= ~(PHY_M_EC_M_DSC_MSK | PHY_M_EC_S_DSC_MSK |
  251. PHY_M_EC_MAC_S_MSK);
  252. ectrl |= PHY_M_EC_MAC_S(MAC_TX_CLK_25_MHZ);
  253. if (hw->chip_id == CHIP_ID_YUKON_EC)
  254. ectrl |= PHY_M_EC_DSC_2(2) | PHY_M_EC_DOWN_S_ENA;
  255. else
  256. ectrl |= PHY_M_EC_M_DSC(2) | PHY_M_EC_S_DSC(3);
  257. gm_phy_write(hw, port, PHY_MARV_EXT_CTRL, ectrl);
  258. }
  259. ctrl = gm_phy_read(hw, port, PHY_MARV_PHY_CTRL);
  260. if (hw->copper) {
  261. if (hw->chip_id == CHIP_ID_YUKON_FE) {
  262. /* enable automatic crossover */
  263. ctrl |= PHY_M_PC_MDI_XMODE(PHY_M_PC_ENA_AUTO) >> 1;
  264. } else {
  265. /* disable energy detect */
  266. ctrl &= ~PHY_M_PC_EN_DET_MSK;
  267. /* enable automatic crossover */
  268. ctrl |= PHY_M_PC_MDI_XMODE(PHY_M_PC_ENA_AUTO);
  269. if (sky2->autoneg == AUTONEG_ENABLE &&
  270. hw->chip_id == CHIP_ID_YUKON_XL) {
  271. ctrl &= ~PHY_M_PC_DSC_MSK;
  272. ctrl |= PHY_M_PC_DSC(2) | PHY_M_PC_DOWN_S_ENA;
  273. }
  274. }
  275. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, ctrl);
  276. } else {
  277. /* workaround for deviation #4.88 (CRC errors) */
  278. /* disable Automatic Crossover */
  279. ctrl &= ~PHY_M_PC_MDIX_MSK;
  280. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, ctrl);
  281. if (hw->chip_id == CHIP_ID_YUKON_XL) {
  282. /* Fiber: select 1000BASE-X only mode MAC Specific Ctrl Reg. */
  283. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 2);
  284. ctrl = gm_phy_read(hw, port, PHY_MARV_PHY_CTRL);
  285. ctrl &= ~PHY_M_MAC_MD_MSK;
  286. ctrl |= PHY_M_MAC_MODE_SEL(PHY_M_MAC_MD_1000BX);
  287. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, ctrl);
  288. /* select page 1 to access Fiber registers */
  289. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 1);
  290. }
  291. }
  292. ctrl = gm_phy_read(hw, port, PHY_MARV_CTRL);
  293. if (sky2->autoneg == AUTONEG_DISABLE)
  294. ctrl &= ~PHY_CT_ANE;
  295. else
  296. ctrl |= PHY_CT_ANE;
  297. ctrl |= PHY_CT_RESET;
  298. gm_phy_write(hw, port, PHY_MARV_CTRL, ctrl);
  299. ctrl = 0;
  300. ct1000 = 0;
  301. adv = PHY_AN_CSMA;
  302. if (sky2->autoneg == AUTONEG_ENABLE) {
  303. if (hw->copper) {
  304. if (sky2->advertising & ADVERTISED_1000baseT_Full)
  305. ct1000 |= PHY_M_1000C_AFD;
  306. if (sky2->advertising & ADVERTISED_1000baseT_Half)
  307. ct1000 |= PHY_M_1000C_AHD;
  308. if (sky2->advertising & ADVERTISED_100baseT_Full)
  309. adv |= PHY_M_AN_100_FD;
  310. if (sky2->advertising & ADVERTISED_100baseT_Half)
  311. adv |= PHY_M_AN_100_HD;
  312. if (sky2->advertising & ADVERTISED_10baseT_Full)
  313. adv |= PHY_M_AN_10_FD;
  314. if (sky2->advertising & ADVERTISED_10baseT_Half)
  315. adv |= PHY_M_AN_10_HD;
  316. } else /* special defines for FIBER (88E1011S only) */
  317. adv |= PHY_M_AN_1000X_AHD | PHY_M_AN_1000X_AFD;
  318. /* Set Flow-control capabilities */
  319. if (sky2->tx_pause && sky2->rx_pause)
  320. adv |= PHY_AN_PAUSE_CAP; /* symmetric */
  321. else if (sky2->rx_pause && !sky2->tx_pause)
  322. adv |= PHY_AN_PAUSE_ASYM | PHY_AN_PAUSE_CAP;
  323. else if (!sky2->rx_pause && sky2->tx_pause)
  324. adv |= PHY_AN_PAUSE_ASYM; /* local */
  325. /* Restart Auto-negotiation */
  326. ctrl |= PHY_CT_ANE | PHY_CT_RE_CFG;
  327. } else {
  328. /* forced speed/duplex settings */
  329. ct1000 = PHY_M_1000C_MSE;
  330. if (sky2->duplex == DUPLEX_FULL)
  331. ctrl |= PHY_CT_DUP_MD;
  332. switch (sky2->speed) {
  333. case SPEED_1000:
  334. ctrl |= PHY_CT_SP1000;
  335. break;
  336. case SPEED_100:
  337. ctrl |= PHY_CT_SP100;
  338. break;
  339. }
  340. ctrl |= PHY_CT_RESET;
  341. }
  342. if (hw->chip_id != CHIP_ID_YUKON_FE)
  343. gm_phy_write(hw, port, PHY_MARV_1000T_CTRL, ct1000);
  344. gm_phy_write(hw, port, PHY_MARV_AUNE_ADV, adv);
  345. gm_phy_write(hw, port, PHY_MARV_CTRL, ctrl);
  346. /* Setup Phy LED's */
  347. ledctrl = PHY_M_LED_PULS_DUR(PULS_170MS);
  348. ledover = 0;
  349. switch (hw->chip_id) {
  350. case CHIP_ID_YUKON_FE:
  351. /* on 88E3082 these bits are at 11..9 (shifted left) */
  352. ledctrl |= PHY_M_LED_BLINK_RT(BLINK_84MS) << 1;
  353. ctrl = gm_phy_read(hw, port, PHY_MARV_FE_LED_PAR);
  354. /* delete ACT LED control bits */
  355. ctrl &= ~PHY_M_FELP_LED1_MSK;
  356. /* change ACT LED control to blink mode */
  357. ctrl |= PHY_M_FELP_LED1_CTRL(LED_PAR_CTRL_ACT_BL);
  358. gm_phy_write(hw, port, PHY_MARV_FE_LED_PAR, ctrl);
  359. break;
  360. case CHIP_ID_YUKON_XL:
  361. pg = gm_phy_read(hw, port, PHY_MARV_EXT_ADR);
  362. /* select page 3 to access LED control register */
  363. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 3);
  364. /* set LED Function Control register */
  365. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, (PHY_M_LEDC_LOS_CTRL(1) | /* LINK/ACT */
  366. PHY_M_LEDC_INIT_CTRL(7) | /* 10 Mbps */
  367. PHY_M_LEDC_STA1_CTRL(7) | /* 100 Mbps */
  368. PHY_M_LEDC_STA0_CTRL(7))); /* 1000 Mbps */
  369. /* set Polarity Control register */
  370. gm_phy_write(hw, port, PHY_MARV_PHY_STAT,
  371. (PHY_M_POLC_LS1_P_MIX(4) |
  372. PHY_M_POLC_IS0_P_MIX(4) |
  373. PHY_M_POLC_LOS_CTRL(2) |
  374. PHY_M_POLC_INIT_CTRL(2) |
  375. PHY_M_POLC_STA1_CTRL(2) |
  376. PHY_M_POLC_STA0_CTRL(2)));
  377. /* restore page register */
  378. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, pg);
  379. break;
  380. default:
  381. /* set Tx LED (LED_TX) to blink mode on Rx OR Tx activity */
  382. ledctrl |= PHY_M_LED_BLINK_RT(BLINK_84MS) | PHY_M_LEDC_TX_CTRL;
  383. /* turn off the Rx LED (LED_RX) */
  384. ledover |= PHY_M_LED_MO_RX(MO_LED_OFF);
  385. }
  386. gm_phy_write(hw, port, PHY_MARV_LED_CTRL, ledctrl);
  387. if (sky2->autoneg == AUTONEG_DISABLE || sky2->speed == SPEED_100) {
  388. /* turn on 100 Mbps LED (LED_LINK100) */
  389. ledover |= PHY_M_LED_MO_100(MO_LED_ON);
  390. }
  391. if (ledover)
  392. gm_phy_write(hw, port, PHY_MARV_LED_OVER, ledover);
  393. /* Enable phy interrupt on auto-negotiation complete (or link up) */
  394. if (sky2->autoneg == AUTONEG_ENABLE)
  395. gm_phy_write(hw, port, PHY_MARV_INT_MASK, PHY_M_IS_AN_COMPL);
  396. else
  397. gm_phy_write(hw, port, PHY_MARV_INT_MASK, PHY_M_DEF_MSK);
  398. }
  399. static void sky2_mac_init(struct sky2_hw *hw, unsigned port)
  400. {
  401. struct sky2_port *sky2 = netdev_priv(hw->dev[port]);
  402. u16 reg;
  403. int i;
  404. const u8 *addr = hw->dev[port]->dev_addr;
  405. sky2_write32(hw, SK_REG(port, GPHY_CTRL), GPC_RST_SET);
  406. sky2_write32(hw, SK_REG(port, GPHY_CTRL), GPC_RST_CLR|GPC_ENA_PAUSE);
  407. sky2_write8(hw, SK_REG(port, GMAC_CTRL), GMC_RST_CLR);
  408. if (hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev == 0 && port == 1) {
  409. /* WA DEV_472 -- looks like crossed wires on port 2 */
  410. /* clear GMAC 1 Control reset */
  411. sky2_write8(hw, SK_REG(0, GMAC_CTRL), GMC_RST_CLR);
  412. do {
  413. sky2_write8(hw, SK_REG(1, GMAC_CTRL), GMC_RST_SET);
  414. sky2_write8(hw, SK_REG(1, GMAC_CTRL), GMC_RST_CLR);
  415. } while (gm_phy_read(hw, 1, PHY_MARV_ID0) != PHY_MARV_ID0_VAL ||
  416. gm_phy_read(hw, 1, PHY_MARV_ID1) != PHY_MARV_ID1_Y2 ||
  417. gm_phy_read(hw, 1, PHY_MARV_INT_MASK) != 0);
  418. }
  419. if (sky2->autoneg == AUTONEG_DISABLE) {
  420. reg = gma_read16(hw, port, GM_GP_CTRL);
  421. reg |= GM_GPCR_AU_ALL_DIS;
  422. gma_write16(hw, port, GM_GP_CTRL, reg);
  423. gma_read16(hw, port, GM_GP_CTRL);
  424. switch (sky2->speed) {
  425. case SPEED_1000:
  426. reg |= GM_GPCR_SPEED_1000;
  427. /* fallthru */
  428. case SPEED_100:
  429. reg |= GM_GPCR_SPEED_100;
  430. }
  431. if (sky2->duplex == DUPLEX_FULL)
  432. reg |= GM_GPCR_DUP_FULL;
  433. } else
  434. reg = GM_GPCR_SPEED_1000 | GM_GPCR_SPEED_100 | GM_GPCR_DUP_FULL;
  435. if (!sky2->tx_pause && !sky2->rx_pause) {
  436. sky2_write32(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_OFF);
  437. reg |=
  438. GM_GPCR_FC_TX_DIS | GM_GPCR_FC_RX_DIS | GM_GPCR_AU_FCT_DIS;
  439. } else if (sky2->tx_pause && !sky2->rx_pause) {
  440. /* disable Rx flow-control */
  441. reg |= GM_GPCR_FC_RX_DIS | GM_GPCR_AU_FCT_DIS;
  442. }
  443. gma_write16(hw, port, GM_GP_CTRL, reg);
  444. sky2_read16(hw, SK_REG(port, GMAC_IRQ_SRC));
  445. spin_lock_bh(&hw->phy_lock);
  446. sky2_phy_init(hw, port);
  447. spin_unlock_bh(&hw->phy_lock);
  448. /* MIB clear */
  449. reg = gma_read16(hw, port, GM_PHY_ADDR);
  450. gma_write16(hw, port, GM_PHY_ADDR, reg | GM_PAR_MIB_CLR);
  451. for (i = 0; i < GM_MIB_CNT_SIZE; i++)
  452. gma_read16(hw, port, GM_MIB_CNT_BASE + 8 * i);
  453. gma_write16(hw, port, GM_PHY_ADDR, reg);
  454. /* transmit control */
  455. gma_write16(hw, port, GM_TX_CTRL, TX_COL_THR(TX_COL_DEF));
  456. /* receive control reg: unicast + multicast + no FCS */
  457. gma_write16(hw, port, GM_RX_CTRL,
  458. GM_RXCR_UCF_ENA | GM_RXCR_CRC_DIS | GM_RXCR_MCF_ENA);
  459. /* transmit flow control */
  460. gma_write16(hw, port, GM_TX_FLOW_CTRL, 0xffff);
  461. /* transmit parameter */
  462. gma_write16(hw, port, GM_TX_PARAM,
  463. TX_JAM_LEN_VAL(TX_JAM_LEN_DEF) |
  464. TX_JAM_IPG_VAL(TX_JAM_IPG_DEF) |
  465. TX_IPG_JAM_DATA(TX_IPG_JAM_DEF) |
  466. TX_BACK_OFF_LIM(TX_BOF_LIM_DEF));
  467. /* serial mode register */
  468. reg = DATA_BLIND_VAL(DATA_BLIND_DEF) |
  469. GM_SMOD_VLAN_ENA | IPG_DATA_VAL(IPG_DATA_DEF);
  470. if (hw->dev[port]->mtu > ETH_DATA_LEN)
  471. reg |= GM_SMOD_JUMBO_ENA;
  472. gma_write16(hw, port, GM_SERIAL_MODE, reg);
  473. /* virtual address for data */
  474. gma_set_addr(hw, port, GM_SRC_ADDR_2L, addr);
  475. /* physical address: used for pause frames */
  476. gma_set_addr(hw, port, GM_SRC_ADDR_1L, addr);
  477. /* ignore counter overflows */
  478. gma_write16(hw, port, GM_TX_IRQ_MSK, 0);
  479. gma_write16(hw, port, GM_RX_IRQ_MSK, 0);
  480. gma_write16(hw, port, GM_TR_IRQ_MSK, 0);
  481. /* Configure Rx MAC FIFO */
  482. sky2_write8(hw, SK_REG(port, RX_GMF_CTRL_T), GMF_RST_CLR);
  483. sky2_write16(hw, SK_REG(port, RX_GMF_CTRL_T),
  484. GMF_RX_CTRL_DEF);
  485. /* Flush Rx MAC FIFO on any flow control or error */
  486. sky2_write16(hw, SK_REG(port, RX_GMF_FL_MSK), GMR_FS_ANY_ERR);
  487. /* Set threshold to 0xa (64 bytes)
  488. * ASF disabled so no need to do WA dev #4.30
  489. */
  490. sky2_write16(hw, SK_REG(port, RX_GMF_FL_THR), RX_GMF_FL_THR_DEF);
  491. /* Configure Tx MAC FIFO */
  492. sky2_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_RST_CLR);
  493. sky2_write16(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_OPER_ON);
  494. if (hw->chip_id == CHIP_ID_YUKON_EC_U) {
  495. sky2_write8(hw, SK_REG(port, RX_GMF_LP_THR), 768/8);
  496. sky2_write8(hw, SK_REG(port, RX_GMF_UP_THR), 1024/8);
  497. if (hw->dev[port]->mtu > ETH_DATA_LEN) {
  498. /* set Tx GMAC FIFO Almost Empty Threshold */
  499. sky2_write32(hw, SK_REG(port, TX_GMF_AE_THR), 0x180);
  500. /* Disable Store & Forward mode for TX */
  501. sky2_write32(hw, SK_REG(port, TX_GMF_CTRL_T), TX_STFW_DIS);
  502. }
  503. }
  504. }
  505. static void sky2_ramset(struct sky2_hw *hw, u16 q, u32 start, size_t len)
  506. {
  507. u32 end;
  508. start /= 8;
  509. len /= 8;
  510. end = start + len - 1;
  511. sky2_write8(hw, RB_ADDR(q, RB_CTRL), RB_RST_CLR);
  512. sky2_write32(hw, RB_ADDR(q, RB_START), start);
  513. sky2_write32(hw, RB_ADDR(q, RB_END), end);
  514. sky2_write32(hw, RB_ADDR(q, RB_WP), start);
  515. sky2_write32(hw, RB_ADDR(q, RB_RP), start);
  516. if (q == Q_R1 || q == Q_R2) {
  517. u32 rxup, rxlo;
  518. rxlo = len/2;
  519. rxup = rxlo + len/4;
  520. /* Set thresholds on receive queue's */
  521. sky2_write32(hw, RB_ADDR(q, RB_RX_UTPP), rxup);
  522. sky2_write32(hw, RB_ADDR(q, RB_RX_LTPP), rxlo);
  523. } else {
  524. /* Enable store & forward on Tx queue's because
  525. * Tx FIFO is only 1K on Yukon
  526. */
  527. sky2_write8(hw, RB_ADDR(q, RB_CTRL), RB_ENA_STFWD);
  528. }
  529. sky2_write8(hw, RB_ADDR(q, RB_CTRL), RB_ENA_OP_MD);
  530. sky2_read8(hw, RB_ADDR(q, RB_CTRL));
  531. }
  532. /* Setup Bus Memory Interface */
  533. static void sky2_qset(struct sky2_hw *hw, u16 q, u32 wm)
  534. {
  535. sky2_write32(hw, Q_ADDR(q, Q_CSR), BMU_CLR_RESET);
  536. sky2_write32(hw, Q_ADDR(q, Q_CSR), BMU_OPER_INIT);
  537. sky2_write32(hw, Q_ADDR(q, Q_CSR), BMU_FIFO_OP_ON);
  538. sky2_write32(hw, Q_ADDR(q, Q_WM), wm);
  539. }
  540. /* Setup prefetch unit registers. This is the interface between
  541. * hardware and driver list elements
  542. */
  543. static inline void sky2_prefetch_init(struct sky2_hw *hw, u32 qaddr,
  544. u64 addr, u32 last)
  545. {
  546. sky2_write32(hw, Y2_QADDR(qaddr, PREF_UNIT_CTRL), PREF_UNIT_RST_SET);
  547. sky2_write32(hw, Y2_QADDR(qaddr, PREF_UNIT_CTRL), PREF_UNIT_RST_CLR);
  548. sky2_write32(hw, Y2_QADDR(qaddr, PREF_UNIT_ADDR_HI), addr >> 32);
  549. sky2_write32(hw, Y2_QADDR(qaddr, PREF_UNIT_ADDR_LO), (u32) addr);
  550. sky2_write16(hw, Y2_QADDR(qaddr, PREF_UNIT_LAST_IDX), last);
  551. sky2_write32(hw, Y2_QADDR(qaddr, PREF_UNIT_CTRL), PREF_UNIT_OP_ON);
  552. sky2_read32(hw, Y2_QADDR(qaddr, PREF_UNIT_CTRL));
  553. }
  554. static inline struct sky2_tx_le *get_tx_le(struct sky2_port *sky2)
  555. {
  556. struct sky2_tx_le *le = sky2->tx_le + sky2->tx_prod;
  557. sky2->tx_prod = (sky2->tx_prod + 1) % TX_RING_SIZE;
  558. return le;
  559. }
  560. /*
  561. * This is a workaround code taken from SysKonnect sk98lin driver
  562. * to deal with chip bug on Yukon EC rev 0 in the wraparound case.
  563. */
  564. static inline void sky2_put_idx(struct sky2_hw *hw, unsigned q,
  565. u16 idx, u16 *last, u16 size)
  566. {
  567. if (is_ec_a1(hw) && idx < *last) {
  568. u16 hwget = sky2_read16(hw, Y2_QADDR(q, PREF_UNIT_GET_IDX));
  569. if (hwget == 0) {
  570. /* Start prefetching again */
  571. sky2_write8(hw, Y2_QADDR(q, PREF_UNIT_FIFO_WM), 0xe0);
  572. goto setnew;
  573. }
  574. if (hwget == size - 1) {
  575. /* set watermark to one list element */
  576. sky2_write8(hw, Y2_QADDR(q, PREF_UNIT_FIFO_WM), 8);
  577. /* set put index to first list element */
  578. sky2_write16(hw, Y2_QADDR(q, PREF_UNIT_PUT_IDX), 0);
  579. } else /* have hardware go to end of list */
  580. sky2_write16(hw, Y2_QADDR(q, PREF_UNIT_PUT_IDX),
  581. size - 1);
  582. } else {
  583. setnew:
  584. sky2_write16(hw, Y2_QADDR(q, PREF_UNIT_PUT_IDX), idx);
  585. }
  586. *last = idx;
  587. }
  588. static inline struct sky2_rx_le *sky2_next_rx(struct sky2_port *sky2)
  589. {
  590. struct sky2_rx_le *le = sky2->rx_le + sky2->rx_put;
  591. sky2->rx_put = (sky2->rx_put + 1) % RX_LE_SIZE;
  592. return le;
  593. }
  594. /* Return high part of DMA address (could be 32 or 64 bit) */
  595. static inline u32 high32(dma_addr_t a)
  596. {
  597. return (a >> 16) >> 16;
  598. }
  599. /* Build description to hardware about buffer */
  600. static inline void sky2_rx_add(struct sky2_port *sky2, struct ring_info *re)
  601. {
  602. struct sky2_rx_le *le;
  603. u32 hi = high32(re->mapaddr);
  604. re->idx = sky2->rx_put;
  605. if (sky2->rx_addr64 != hi) {
  606. le = sky2_next_rx(sky2);
  607. le->addr = cpu_to_le32(hi);
  608. le->ctrl = 0;
  609. le->opcode = OP_ADDR64 | HW_OWNER;
  610. sky2->rx_addr64 = high32(re->mapaddr + re->maplen);
  611. }
  612. le = sky2_next_rx(sky2);
  613. le->addr = cpu_to_le32((u32) re->mapaddr);
  614. le->length = cpu_to_le16(re->maplen);
  615. le->ctrl = 0;
  616. le->opcode = OP_PACKET | HW_OWNER;
  617. }
  618. /* Tell chip where to start receive checksum.
  619. * Actually has two checksums, but set both same to avoid possible byte
  620. * order problems.
  621. */
  622. static void rx_set_checksum(struct sky2_port *sky2)
  623. {
  624. struct sky2_rx_le *le;
  625. le = sky2_next_rx(sky2);
  626. le->addr = (ETH_HLEN << 16) | ETH_HLEN;
  627. le->ctrl = 0;
  628. le->opcode = OP_TCPSTART | HW_OWNER;
  629. sky2_write32(sky2->hw,
  630. Q_ADDR(rxqaddr[sky2->port], Q_CSR),
  631. sky2->rx_csum ? BMU_ENA_RX_CHKSUM : BMU_DIS_RX_CHKSUM);
  632. }
  633. /*
  634. * The RX Stop command will not work for Yukon-2 if the BMU does not
  635. * reach the end of packet and since we can't make sure that we have
  636. * incoming data, we must reset the BMU while it is not doing a DMA
  637. * transfer. Since it is possible that the RX path is still active,
  638. * the RX RAM buffer will be stopped first, so any possible incoming
  639. * data will not trigger a DMA. After the RAM buffer is stopped, the
  640. * BMU is polled until any DMA in progress is ended and only then it
  641. * will be reset.
  642. */
  643. static void sky2_rx_stop(struct sky2_port *sky2)
  644. {
  645. struct sky2_hw *hw = sky2->hw;
  646. unsigned rxq = rxqaddr[sky2->port];
  647. int i;
  648. /* disable the RAM Buffer receive queue */
  649. sky2_write8(hw, RB_ADDR(rxq, RB_CTRL), RB_DIS_OP_MD);
  650. for (i = 0; i < 0xffff; i++)
  651. if (sky2_read8(hw, RB_ADDR(rxq, Q_RSL))
  652. == sky2_read8(hw, RB_ADDR(rxq, Q_RL)))
  653. goto stopped;
  654. printk(KERN_WARNING PFX "%s: receiver stop failed\n",
  655. sky2->netdev->name);
  656. stopped:
  657. sky2_write32(hw, Q_ADDR(rxq, Q_CSR), BMU_RST_SET | BMU_FIFO_RST);
  658. /* reset the Rx prefetch unit */
  659. sky2_write32(hw, Y2_QADDR(rxq, PREF_UNIT_CTRL), PREF_UNIT_RST_SET);
  660. }
  661. /* Clean out receive buffer area, assumes receiver hardware stopped */
  662. static void sky2_rx_clean(struct sky2_port *sky2)
  663. {
  664. unsigned i;
  665. memset(sky2->rx_le, 0, RX_LE_BYTES);
  666. for (i = 0; i < sky2->rx_pending; i++) {
  667. struct ring_info *re = sky2->rx_ring + i;
  668. if (re->skb) {
  669. pci_unmap_single(sky2->hw->pdev,
  670. re->mapaddr, re->maplen,
  671. PCI_DMA_FROMDEVICE);
  672. kfree_skb(re->skb);
  673. re->skb = NULL;
  674. }
  675. }
  676. }
  677. /* Basic MII support */
  678. static int sky2_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
  679. {
  680. struct mii_ioctl_data *data = if_mii(ifr);
  681. struct sky2_port *sky2 = netdev_priv(dev);
  682. struct sky2_hw *hw = sky2->hw;
  683. int err = -EOPNOTSUPP;
  684. if (!netif_running(dev))
  685. return -ENODEV; /* Phy still in reset */
  686. switch(cmd) {
  687. case SIOCGMIIPHY:
  688. data->phy_id = PHY_ADDR_MARV;
  689. /* fallthru */
  690. case SIOCGMIIREG: {
  691. u16 val = 0;
  692. spin_lock_bh(&hw->phy_lock);
  693. err = __gm_phy_read(hw, sky2->port, data->reg_num & 0x1f, &val);
  694. spin_unlock_bh(&hw->phy_lock);
  695. data->val_out = val;
  696. break;
  697. }
  698. case SIOCSMIIREG:
  699. if (!capable(CAP_NET_ADMIN))
  700. return -EPERM;
  701. spin_lock_bh(&hw->phy_lock);
  702. err = gm_phy_write(hw, sky2->port, data->reg_num & 0x1f,
  703. data->val_in);
  704. spin_unlock_bh(&hw->phy_lock);
  705. break;
  706. }
  707. return err;
  708. }
  709. #ifdef SKY2_VLAN_TAG_USED
  710. static void sky2_vlan_rx_register(struct net_device *dev, struct vlan_group *grp)
  711. {
  712. struct sky2_port *sky2 = netdev_priv(dev);
  713. struct sky2_hw *hw = sky2->hw;
  714. u16 port = sky2->port;
  715. unsigned long flags;
  716. spin_lock_irqsave(&sky2->tx_lock, flags);
  717. sky2_write32(hw, SK_REG(port, RX_GMF_CTRL_T), RX_VLAN_STRIP_ON);
  718. sky2_write32(hw, SK_REG(port, TX_GMF_CTRL_T), TX_VLAN_TAG_ON);
  719. sky2->vlgrp = grp;
  720. spin_unlock_irqrestore(&sky2->tx_lock, flags);
  721. }
  722. static void sky2_vlan_rx_kill_vid(struct net_device *dev, unsigned short vid)
  723. {
  724. struct sky2_port *sky2 = netdev_priv(dev);
  725. struct sky2_hw *hw = sky2->hw;
  726. u16 port = sky2->port;
  727. unsigned long flags;
  728. spin_lock_irqsave(&sky2->tx_lock, flags);
  729. sky2_write32(hw, SK_REG(port, RX_GMF_CTRL_T), RX_VLAN_STRIP_OFF);
  730. sky2_write32(hw, SK_REG(port, TX_GMF_CTRL_T), TX_VLAN_TAG_OFF);
  731. if (sky2->vlgrp)
  732. sky2->vlgrp->vlan_devices[vid] = NULL;
  733. spin_unlock_irqrestore(&sky2->tx_lock, flags);
  734. }
  735. #endif
  736. #define roundup(x, y) ((((x)+((y)-1))/(y))*(y))
  737. static inline unsigned rx_size(const struct sky2_port *sky2)
  738. {
  739. return roundup(sky2->netdev->mtu + ETH_HLEN + 4, 8);
  740. }
  741. /*
  742. * Allocate and setup receiver buffer pool.
  743. * In case of 64 bit dma, there are 2X as many list elements
  744. * available as ring entries
  745. * and need to reserve one list element so we don't wrap around.
  746. *
  747. * It appears the hardware has a bug in the FIFO logic that
  748. * cause it to hang if the FIFO gets overrun and the receive buffer
  749. * is not aligned. This means we can't use skb_reserve to align
  750. * the IP header.
  751. */
  752. static int sky2_rx_start(struct sky2_port *sky2)
  753. {
  754. struct sky2_hw *hw = sky2->hw;
  755. unsigned size = rx_size(sky2);
  756. unsigned rxq = rxqaddr[sky2->port];
  757. int i;
  758. sky2->rx_put = sky2->rx_next = 0;
  759. sky2_qset(hw, rxq, is_pciex(hw) ? 0x80 : 0x600);
  760. sky2_prefetch_init(hw, rxq, sky2->rx_le_map, RX_LE_SIZE - 1);
  761. rx_set_checksum(sky2);
  762. for (i = 0; i < sky2->rx_pending; i++) {
  763. struct ring_info *re = sky2->rx_ring + i;
  764. re->skb = dev_alloc_skb(size);
  765. if (!re->skb)
  766. goto nomem;
  767. re->mapaddr = pci_map_single(hw->pdev, re->skb->data,
  768. size, PCI_DMA_FROMDEVICE);
  769. re->maplen = size;
  770. sky2_rx_add(sky2, re);
  771. }
  772. /* Tell chip about available buffers */
  773. sky2_write16(hw, Y2_QADDR(rxq, PREF_UNIT_PUT_IDX), sky2->rx_put);
  774. sky2->rx_last_put = sky2_read16(hw, Y2_QADDR(rxq, PREF_UNIT_PUT_IDX));
  775. return 0;
  776. nomem:
  777. sky2_rx_clean(sky2);
  778. return -ENOMEM;
  779. }
  780. /* Bring up network interface. */
  781. static int sky2_up(struct net_device *dev)
  782. {
  783. struct sky2_port *sky2 = netdev_priv(dev);
  784. struct sky2_hw *hw = sky2->hw;
  785. unsigned port = sky2->port;
  786. u32 ramsize, rxspace;
  787. int err = -ENOMEM;
  788. if (netif_msg_ifup(sky2))
  789. printk(KERN_INFO PFX "%s: enabling interface\n", dev->name);
  790. /* must be power of 2 */
  791. sky2->tx_le = pci_alloc_consistent(hw->pdev,
  792. TX_RING_SIZE *
  793. sizeof(struct sky2_tx_le),
  794. &sky2->tx_le_map);
  795. if (!sky2->tx_le)
  796. goto err_out;
  797. sky2->tx_ring = kzalloc(TX_RING_SIZE * sizeof(struct ring_info),
  798. GFP_KERNEL);
  799. if (!sky2->tx_ring)
  800. goto err_out;
  801. sky2->tx_prod = sky2->tx_cons = 0;
  802. sky2->rx_le = pci_alloc_consistent(hw->pdev, RX_LE_BYTES,
  803. &sky2->rx_le_map);
  804. if (!sky2->rx_le)
  805. goto err_out;
  806. memset(sky2->rx_le, 0, RX_LE_BYTES);
  807. sky2->rx_ring = kzalloc(sky2->rx_pending * sizeof(struct ring_info),
  808. GFP_KERNEL);
  809. if (!sky2->rx_ring)
  810. goto err_out;
  811. sky2_mac_init(hw, port);
  812. /* Configure RAM buffers */
  813. if (hw->chip_id == CHIP_ID_YUKON_FE ||
  814. (hw->chip_id == CHIP_ID_YUKON_EC && hw->chip_rev == 2))
  815. ramsize = 4096;
  816. else {
  817. u8 e0 = sky2_read8(hw, B2_E_0);
  818. ramsize = (e0 == 0) ? (128 * 1024) : (e0 * 4096);
  819. }
  820. /* 2/3 for Rx */
  821. rxspace = (2 * ramsize) / 3;
  822. sky2_ramset(hw, rxqaddr[port], 0, rxspace);
  823. sky2_ramset(hw, txqaddr[port], rxspace, ramsize - rxspace);
  824. /* Make sure SyncQ is disabled */
  825. sky2_write8(hw, RB_ADDR(port == 0 ? Q_XS1 : Q_XS2, RB_CTRL),
  826. RB_RST_SET);
  827. sky2_qset(hw, txqaddr[port], 0x600);
  828. if (hw->chip_id == CHIP_ID_YUKON_EC_U)
  829. sky2_write16(hw, Q_ADDR(txqaddr[port], Q_AL), 0x1a0);
  830. sky2_prefetch_init(hw, txqaddr[port], sky2->tx_le_map,
  831. TX_RING_SIZE - 1);
  832. err = sky2_rx_start(sky2);
  833. if (err)
  834. goto err_out;
  835. /* Enable interrupts from phy/mac for port */
  836. hw->intr_mask |= (port == 0) ? Y2_IS_PORT_1 : Y2_IS_PORT_2;
  837. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  838. return 0;
  839. err_out:
  840. if (sky2->rx_le)
  841. pci_free_consistent(hw->pdev, RX_LE_BYTES,
  842. sky2->rx_le, sky2->rx_le_map);
  843. if (sky2->tx_le)
  844. pci_free_consistent(hw->pdev,
  845. TX_RING_SIZE * sizeof(struct sky2_tx_le),
  846. sky2->tx_le, sky2->tx_le_map);
  847. if (sky2->tx_ring)
  848. kfree(sky2->tx_ring);
  849. if (sky2->rx_ring)
  850. kfree(sky2->rx_ring);
  851. return err;
  852. }
  853. /* Modular subtraction in ring */
  854. static inline int tx_dist(unsigned tail, unsigned head)
  855. {
  856. return (head >= tail ? head : head + TX_RING_SIZE) - tail;
  857. }
  858. /* Number of list elements available for next tx */
  859. static inline int tx_avail(const struct sky2_port *sky2)
  860. {
  861. return sky2->tx_pending - tx_dist(sky2->tx_cons, sky2->tx_prod);
  862. }
  863. /* Estimate of number of transmit list elements required */
  864. static inline unsigned tx_le_req(const struct sk_buff *skb)
  865. {
  866. unsigned count;
  867. count = sizeof(dma_addr_t) / sizeof(u32);
  868. count += skb_shinfo(skb)->nr_frags * count;
  869. if (skb_shinfo(skb)->tso_size)
  870. ++count;
  871. if (skb->ip_summed)
  872. ++count;
  873. return count;
  874. }
  875. /*
  876. * Put one packet in ring for transmit.
  877. * A single packet can generate multiple list elements, and
  878. * the number of ring elements will probably be less than the number
  879. * of list elements used.
  880. */
  881. static int sky2_xmit_frame(struct sk_buff *skb, struct net_device *dev)
  882. {
  883. struct sky2_port *sky2 = netdev_priv(dev);
  884. struct sky2_hw *hw = sky2->hw;
  885. struct sky2_tx_le *le = NULL;
  886. struct ring_info *re;
  887. unsigned long flags;
  888. unsigned i, len;
  889. dma_addr_t mapping;
  890. u32 addr64;
  891. u16 mss;
  892. u8 ctrl;
  893. local_irq_save(flags);
  894. if (!spin_trylock(&sky2->tx_lock)) {
  895. local_irq_restore(flags);
  896. return NETDEV_TX_LOCKED;
  897. }
  898. if (unlikely(tx_avail(sky2) < tx_le_req(skb))) {
  899. netif_stop_queue(dev);
  900. spin_unlock_irqrestore(&sky2->tx_lock, flags);
  901. printk(KERN_WARNING PFX "%s: ring full when queue awake!\n",
  902. dev->name);
  903. return NETDEV_TX_BUSY;
  904. }
  905. if (unlikely(netif_msg_tx_queued(sky2)))
  906. printk(KERN_DEBUG "%s: tx queued, slot %u, len %d\n",
  907. dev->name, sky2->tx_prod, skb->len);
  908. len = skb_headlen(skb);
  909. mapping = pci_map_single(hw->pdev, skb->data, len, PCI_DMA_TODEVICE);
  910. addr64 = high32(mapping);
  911. re = sky2->tx_ring + sky2->tx_prod;
  912. /* Send high bits if changed or crosses boundary */
  913. if (addr64 != sky2->tx_addr64 || high32(mapping + len) != sky2->tx_addr64) {
  914. le = get_tx_le(sky2);
  915. le->tx.addr = cpu_to_le32(addr64);
  916. le->ctrl = 0;
  917. le->opcode = OP_ADDR64 | HW_OWNER;
  918. sky2->tx_addr64 = high32(mapping + len);
  919. }
  920. /* Check for TCP Segmentation Offload */
  921. mss = skb_shinfo(skb)->tso_size;
  922. if (mss != 0) {
  923. /* just drop the packet if non-linear expansion fails */
  924. if (skb_header_cloned(skb) &&
  925. pskb_expand_head(skb, 0, 0, GFP_ATOMIC)) {
  926. dev_kfree_skb_any(skb);
  927. goto out_unlock;
  928. }
  929. mss += ((skb->h.th->doff - 5) * 4); /* TCP options */
  930. mss += (skb->nh.iph->ihl * 4) + sizeof(struct tcphdr);
  931. mss += ETH_HLEN;
  932. }
  933. if (mss != sky2->tx_last_mss) {
  934. le = get_tx_le(sky2);
  935. le->tx.tso.size = cpu_to_le16(mss);
  936. le->tx.tso.rsvd = 0;
  937. le->opcode = OP_LRGLEN | HW_OWNER;
  938. le->ctrl = 0;
  939. sky2->tx_last_mss = mss;
  940. }
  941. ctrl = 0;
  942. #ifdef SKY2_VLAN_TAG_USED
  943. /* Add VLAN tag, can piggyback on LRGLEN or ADDR64 */
  944. if (sky2->vlgrp && vlan_tx_tag_present(skb)) {
  945. if (!le) {
  946. le = get_tx_le(sky2);
  947. le->tx.addr = 0;
  948. le->opcode = OP_VLAN|HW_OWNER;
  949. le->ctrl = 0;
  950. } else
  951. le->opcode |= OP_VLAN;
  952. le->length = cpu_to_be16(vlan_tx_tag_get(skb));
  953. ctrl |= INS_VLAN;
  954. }
  955. #endif
  956. /* Handle TCP checksum offload */
  957. if (skb->ip_summed == CHECKSUM_HW) {
  958. u16 hdr = skb->h.raw - skb->data;
  959. u16 offset = hdr + skb->csum;
  960. ctrl = CALSUM | WR_SUM | INIT_SUM | LOCK_SUM;
  961. if (skb->nh.iph->protocol == IPPROTO_UDP)
  962. ctrl |= UDPTCP;
  963. le = get_tx_le(sky2);
  964. le->tx.csum.start = cpu_to_le16(hdr);
  965. le->tx.csum.offset = cpu_to_le16(offset);
  966. le->length = 0; /* initial checksum value */
  967. le->ctrl = 1; /* one packet */
  968. le->opcode = OP_TCPLISW | HW_OWNER;
  969. }
  970. le = get_tx_le(sky2);
  971. le->tx.addr = cpu_to_le32((u32) mapping);
  972. le->length = cpu_to_le16(len);
  973. le->ctrl = ctrl;
  974. le->opcode = mss ? (OP_LARGESEND | HW_OWNER) : (OP_PACKET | HW_OWNER);
  975. /* Record the transmit mapping info */
  976. re->skb = skb;
  977. re->mapaddr = mapping;
  978. re->maplen = len;
  979. for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
  980. skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
  981. struct ring_info *fre;
  982. mapping = pci_map_page(hw->pdev, frag->page, frag->page_offset,
  983. frag->size, PCI_DMA_TODEVICE);
  984. addr64 = (mapping >> 16) >> 16;
  985. if (addr64 != sky2->tx_addr64) {
  986. le = get_tx_le(sky2);
  987. le->tx.addr = cpu_to_le32(addr64);
  988. le->ctrl = 0;
  989. le->opcode = OP_ADDR64 | HW_OWNER;
  990. sky2->tx_addr64 = addr64;
  991. }
  992. le = get_tx_le(sky2);
  993. le->tx.addr = cpu_to_le32((u32) mapping);
  994. le->length = cpu_to_le16(frag->size);
  995. le->ctrl = ctrl;
  996. le->opcode = OP_BUFFER | HW_OWNER;
  997. fre = sky2->tx_ring
  998. + ((re - sky2->tx_ring) + i + 1) % TX_RING_SIZE;
  999. fre->skb = NULL;
  1000. fre->mapaddr = mapping;
  1001. fre->maplen = frag->size;
  1002. }
  1003. re->idx = sky2->tx_prod;
  1004. le->ctrl |= EOP;
  1005. sky2_put_idx(hw, txqaddr[sky2->port], sky2->tx_prod,
  1006. &sky2->tx_last_put, TX_RING_SIZE);
  1007. if (tx_avail(sky2) < MAX_SKB_TX_LE + 1)
  1008. netif_stop_queue(dev);
  1009. out_unlock:
  1010. mmiowb();
  1011. spin_unlock_irqrestore(&sky2->tx_lock, flags);
  1012. dev->trans_start = jiffies;
  1013. return NETDEV_TX_OK;
  1014. }
  1015. /*
  1016. * Free ring elements from starting at tx_cons until "done"
  1017. *
  1018. * NB: the hardware will tell us about partial completion of multi-part
  1019. * buffers; these are deferred until completion.
  1020. */
  1021. static void sky2_tx_complete(struct sky2_port *sky2, u16 done)
  1022. {
  1023. struct net_device *dev = sky2->netdev;
  1024. unsigned i;
  1025. if (unlikely(netif_msg_tx_done(sky2)))
  1026. printk(KERN_DEBUG "%s: tx done, up to %u\n",
  1027. dev->name, done);
  1028. spin_lock(&sky2->tx_lock);
  1029. while (sky2->tx_cons != done) {
  1030. struct ring_info *re = sky2->tx_ring + sky2->tx_cons;
  1031. struct sk_buff *skb;
  1032. /* Check for partial status */
  1033. if (tx_dist(sky2->tx_cons, done)
  1034. < tx_dist(sky2->tx_cons, re->idx))
  1035. goto out;
  1036. skb = re->skb;
  1037. pci_unmap_single(sky2->hw->pdev,
  1038. re->mapaddr, re->maplen, PCI_DMA_TODEVICE);
  1039. for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
  1040. struct ring_info *fre;
  1041. fre =
  1042. sky2->tx_ring + (sky2->tx_cons + i +
  1043. 1) % TX_RING_SIZE;
  1044. pci_unmap_page(sky2->hw->pdev, fre->mapaddr,
  1045. fre->maplen, PCI_DMA_TODEVICE);
  1046. }
  1047. dev_kfree_skb_any(skb);
  1048. sky2->tx_cons = re->idx;
  1049. }
  1050. out:
  1051. if (netif_queue_stopped(dev) && tx_avail(sky2) > MAX_SKB_TX_LE)
  1052. netif_wake_queue(dev);
  1053. spin_unlock(&sky2->tx_lock);
  1054. }
  1055. /* Cleanup all untransmitted buffers, assume transmitter not running */
  1056. static inline void sky2_tx_clean(struct sky2_port *sky2)
  1057. {
  1058. sky2_tx_complete(sky2, sky2->tx_prod);
  1059. }
  1060. /* Network shutdown */
  1061. static int sky2_down(struct net_device *dev)
  1062. {
  1063. struct sky2_port *sky2 = netdev_priv(dev);
  1064. struct sky2_hw *hw = sky2->hw;
  1065. unsigned port = sky2->port;
  1066. u16 ctrl;
  1067. if (netif_msg_ifdown(sky2))
  1068. printk(KERN_INFO PFX "%s: disabling interface\n", dev->name);
  1069. netif_stop_queue(dev);
  1070. sky2_phy_reset(hw, port);
  1071. /* Stop transmitter */
  1072. sky2_write32(hw, Q_ADDR(txqaddr[port], Q_CSR), BMU_STOP);
  1073. sky2_read32(hw, Q_ADDR(txqaddr[port], Q_CSR));
  1074. sky2_write32(hw, RB_ADDR(txqaddr[port], RB_CTRL),
  1075. RB_RST_SET | RB_DIS_OP_MD);
  1076. ctrl = gma_read16(hw, port, GM_GP_CTRL);
  1077. ctrl &= ~(GM_GPCR_TX_ENA | GM_GPCR_RX_ENA);
  1078. gma_write16(hw, port, GM_GP_CTRL, ctrl);
  1079. sky2_write8(hw, SK_REG(port, GPHY_CTRL), GPC_RST_SET);
  1080. /* Workaround shared GMAC reset */
  1081. if (!(hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev == 0
  1082. && port == 0 && hw->dev[1] && netif_running(hw->dev[1])))
  1083. sky2_write8(hw, SK_REG(port, GMAC_CTRL), GMC_RST_SET);
  1084. /* Disable Force Sync bit and Enable Alloc bit */
  1085. sky2_write8(hw, SK_REG(port, TXA_CTRL),
  1086. TXA_DIS_FSYNC | TXA_DIS_ALLOC | TXA_STOP_RC);
  1087. /* Stop Interval Timer and Limit Counter of Tx Arbiter */
  1088. sky2_write32(hw, SK_REG(port, TXA_ITI_INI), 0L);
  1089. sky2_write32(hw, SK_REG(port, TXA_LIM_INI), 0L);
  1090. /* Reset the PCI FIFO of the async Tx queue */
  1091. sky2_write32(hw, Q_ADDR(txqaddr[port], Q_CSR),
  1092. BMU_RST_SET | BMU_FIFO_RST);
  1093. /* Reset the Tx prefetch units */
  1094. sky2_write32(hw, Y2_QADDR(txqaddr[port], PREF_UNIT_CTRL),
  1095. PREF_UNIT_RST_SET);
  1096. sky2_write32(hw, RB_ADDR(txqaddr[port], RB_CTRL), RB_RST_SET);
  1097. sky2_rx_stop(sky2);
  1098. sky2_write8(hw, SK_REG(port, RX_GMF_CTRL_T), GMF_RST_SET);
  1099. sky2_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_RST_SET);
  1100. /* turn off LED's */
  1101. sky2_write16(hw, B0_Y2LED, LED_STAT_OFF);
  1102. sky2_tx_clean(sky2);
  1103. sky2_rx_clean(sky2);
  1104. pci_free_consistent(hw->pdev, RX_LE_BYTES,
  1105. sky2->rx_le, sky2->rx_le_map);
  1106. kfree(sky2->rx_ring);
  1107. pci_free_consistent(hw->pdev,
  1108. TX_RING_SIZE * sizeof(struct sky2_tx_le),
  1109. sky2->tx_le, sky2->tx_le_map);
  1110. kfree(sky2->tx_ring);
  1111. return 0;
  1112. }
  1113. static u16 sky2_phy_speed(const struct sky2_hw *hw, u16 aux)
  1114. {
  1115. if (!hw->copper)
  1116. return SPEED_1000;
  1117. if (hw->chip_id == CHIP_ID_YUKON_FE)
  1118. return (aux & PHY_M_PS_SPEED_100) ? SPEED_100 : SPEED_10;
  1119. switch (aux & PHY_M_PS_SPEED_MSK) {
  1120. case PHY_M_PS_SPEED_1000:
  1121. return SPEED_1000;
  1122. case PHY_M_PS_SPEED_100:
  1123. return SPEED_100;
  1124. default:
  1125. return SPEED_10;
  1126. }
  1127. }
  1128. static void sky2_link_up(struct sky2_port *sky2)
  1129. {
  1130. struct sky2_hw *hw = sky2->hw;
  1131. unsigned port = sky2->port;
  1132. u16 reg;
  1133. /* Enable Transmit FIFO Underrun */
  1134. sky2_write8(hw, SK_REG(port, GMAC_IRQ_MSK), GMAC_DEF_MSK);
  1135. reg = gma_read16(hw, port, GM_GP_CTRL);
  1136. if (sky2->duplex == DUPLEX_FULL || sky2->autoneg == AUTONEG_ENABLE)
  1137. reg |= GM_GPCR_DUP_FULL;
  1138. /* enable Rx/Tx */
  1139. reg |= GM_GPCR_RX_ENA | GM_GPCR_TX_ENA;
  1140. gma_write16(hw, port, GM_GP_CTRL, reg);
  1141. gma_read16(hw, port, GM_GP_CTRL);
  1142. gm_phy_write(hw, port, PHY_MARV_INT_MASK, PHY_M_DEF_MSK);
  1143. netif_carrier_on(sky2->netdev);
  1144. netif_wake_queue(sky2->netdev);
  1145. /* Turn on link LED */
  1146. sky2_write8(hw, SK_REG(port, LNK_LED_REG),
  1147. LINKLED_ON | LINKLED_BLINK_OFF | LINKLED_LINKSYNC_OFF);
  1148. if (hw->chip_id == CHIP_ID_YUKON_XL) {
  1149. u16 pg = gm_phy_read(hw, port, PHY_MARV_EXT_ADR);
  1150. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 3);
  1151. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, PHY_M_LEDC_LOS_CTRL(1) | /* LINK/ACT */
  1152. PHY_M_LEDC_INIT_CTRL(sky2->speed ==
  1153. SPEED_10 ? 7 : 0) |
  1154. PHY_M_LEDC_STA1_CTRL(sky2->speed ==
  1155. SPEED_100 ? 7 : 0) |
  1156. PHY_M_LEDC_STA0_CTRL(sky2->speed ==
  1157. SPEED_1000 ? 7 : 0));
  1158. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, pg);
  1159. }
  1160. if (netif_msg_link(sky2))
  1161. printk(KERN_INFO PFX
  1162. "%s: Link is up at %d Mbps, %s duplex, flow control %s\n",
  1163. sky2->netdev->name, sky2->speed,
  1164. sky2->duplex == DUPLEX_FULL ? "full" : "half",
  1165. (sky2->tx_pause && sky2->rx_pause) ? "both" :
  1166. sky2->tx_pause ? "tx" : sky2->rx_pause ? "rx" : "none");
  1167. }
  1168. static void sky2_link_down(struct sky2_port *sky2)
  1169. {
  1170. struct sky2_hw *hw = sky2->hw;
  1171. unsigned port = sky2->port;
  1172. u16 reg;
  1173. gm_phy_write(hw, port, PHY_MARV_INT_MASK, 0);
  1174. reg = gma_read16(hw, port, GM_GP_CTRL);
  1175. reg &= ~(GM_GPCR_RX_ENA | GM_GPCR_TX_ENA);
  1176. gma_write16(hw, port, GM_GP_CTRL, reg);
  1177. gma_read16(hw, port, GM_GP_CTRL); /* PCI post */
  1178. if (sky2->rx_pause && !sky2->tx_pause) {
  1179. /* restore Asymmetric Pause bit */
  1180. gm_phy_write(hw, port, PHY_MARV_AUNE_ADV,
  1181. gm_phy_read(hw, port, PHY_MARV_AUNE_ADV)
  1182. | PHY_M_AN_ASP);
  1183. }
  1184. sky2_phy_reset(hw, port);
  1185. netif_carrier_off(sky2->netdev);
  1186. netif_stop_queue(sky2->netdev);
  1187. /* Turn on link LED */
  1188. sky2_write8(hw, SK_REG(port, LNK_LED_REG), LINKLED_OFF);
  1189. if (netif_msg_link(sky2))
  1190. printk(KERN_INFO PFX "%s: Link is down.\n", sky2->netdev->name);
  1191. sky2_phy_init(hw, port);
  1192. }
  1193. static int sky2_autoneg_done(struct sky2_port *sky2, u16 aux)
  1194. {
  1195. struct sky2_hw *hw = sky2->hw;
  1196. unsigned port = sky2->port;
  1197. u16 lpa;
  1198. lpa = gm_phy_read(hw, port, PHY_MARV_AUNE_LP);
  1199. if (lpa & PHY_M_AN_RF) {
  1200. printk(KERN_ERR PFX "%s: remote fault", sky2->netdev->name);
  1201. return -1;
  1202. }
  1203. if (hw->chip_id != CHIP_ID_YUKON_FE &&
  1204. gm_phy_read(hw, port, PHY_MARV_1000T_STAT) & PHY_B_1000S_MSF) {
  1205. printk(KERN_ERR PFX "%s: master/slave fault",
  1206. sky2->netdev->name);
  1207. return -1;
  1208. }
  1209. if (!(aux & PHY_M_PS_SPDUP_RES)) {
  1210. printk(KERN_ERR PFX "%s: speed/duplex mismatch",
  1211. sky2->netdev->name);
  1212. return -1;
  1213. }
  1214. sky2->duplex = (aux & PHY_M_PS_FULL_DUP) ? DUPLEX_FULL : DUPLEX_HALF;
  1215. sky2->speed = sky2_phy_speed(hw, aux);
  1216. /* Pause bits are offset (9..8) */
  1217. if (hw->chip_id == CHIP_ID_YUKON_XL)
  1218. aux >>= 6;
  1219. sky2->rx_pause = (aux & PHY_M_PS_RX_P_EN) != 0;
  1220. sky2->tx_pause = (aux & PHY_M_PS_TX_P_EN) != 0;
  1221. if ((sky2->tx_pause || sky2->rx_pause)
  1222. && !(sky2->speed < SPEED_1000 && sky2->duplex == DUPLEX_HALF))
  1223. sky2_write8(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_ON);
  1224. else
  1225. sky2_write8(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_OFF);
  1226. return 0;
  1227. }
  1228. /*
  1229. * Interrupt from PHY are handled in tasklet (soft irq)
  1230. * because accessing phy registers requires spin wait which might
  1231. * cause excess interrupt latency.
  1232. */
  1233. static void sky2_phy_task(unsigned long data)
  1234. {
  1235. struct sky2_port *sky2 = (struct sky2_port *)data;
  1236. struct sky2_hw *hw = sky2->hw;
  1237. u16 istatus, phystat;
  1238. spin_lock(&hw->phy_lock);
  1239. istatus = gm_phy_read(hw, sky2->port, PHY_MARV_INT_STAT);
  1240. phystat = gm_phy_read(hw, sky2->port, PHY_MARV_PHY_STAT);
  1241. if (netif_msg_intr(sky2))
  1242. printk(KERN_INFO PFX "%s: phy interrupt status 0x%x 0x%x\n",
  1243. sky2->netdev->name, istatus, phystat);
  1244. if (istatus & PHY_M_IS_AN_COMPL) {
  1245. if (sky2_autoneg_done(sky2, phystat) == 0)
  1246. sky2_link_up(sky2);
  1247. goto out;
  1248. }
  1249. if (istatus & PHY_M_IS_LSP_CHANGE)
  1250. sky2->speed = sky2_phy_speed(hw, phystat);
  1251. if (istatus & PHY_M_IS_DUP_CHANGE)
  1252. sky2->duplex =
  1253. (phystat & PHY_M_PS_FULL_DUP) ? DUPLEX_FULL : DUPLEX_HALF;
  1254. if (istatus & PHY_M_IS_LST_CHANGE) {
  1255. if (phystat & PHY_M_PS_LINK_UP)
  1256. sky2_link_up(sky2);
  1257. else
  1258. sky2_link_down(sky2);
  1259. }
  1260. out:
  1261. spin_unlock(&hw->phy_lock);
  1262. local_irq_disable();
  1263. hw->intr_mask |= (sky2->port == 0) ? Y2_IS_IRQ_PHY1 : Y2_IS_IRQ_PHY2;
  1264. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  1265. local_irq_enable();
  1266. }
  1267. static void sky2_tx_timeout(struct net_device *dev)
  1268. {
  1269. struct sky2_port *sky2 = netdev_priv(dev);
  1270. if (netif_msg_timer(sky2))
  1271. printk(KERN_ERR PFX "%s: tx timeout\n", dev->name);
  1272. sky2_write32(sky2->hw, Q_ADDR(txqaddr[sky2->port], Q_CSR), BMU_STOP);
  1273. sky2_read32(sky2->hw, Q_ADDR(txqaddr[sky2->port], Q_CSR));
  1274. sky2_tx_clean(sky2);
  1275. }
  1276. static int sky2_change_mtu(struct net_device *dev, int new_mtu)
  1277. {
  1278. struct sky2_port *sky2 = netdev_priv(dev);
  1279. struct sky2_hw *hw = sky2->hw;
  1280. int err;
  1281. u16 ctl, mode;
  1282. if (new_mtu < ETH_ZLEN || new_mtu > ETH_JUMBO_MTU)
  1283. return -EINVAL;
  1284. if (hw->chip_id == CHIP_ID_YUKON_EC_U && new_mtu > ETH_DATA_LEN)
  1285. return -EINVAL;
  1286. if (!netif_running(dev)) {
  1287. dev->mtu = new_mtu;
  1288. return 0;
  1289. }
  1290. local_irq_disable();
  1291. sky2_write32(hw, B0_IMSK, 0);
  1292. ctl = gma_read16(hw, sky2->port, GM_GP_CTRL);
  1293. gma_write16(hw, sky2->port, GM_GP_CTRL, ctl & ~GM_GPCR_RX_ENA);
  1294. sky2_rx_stop(sky2);
  1295. sky2_rx_clean(sky2);
  1296. dev->mtu = new_mtu;
  1297. mode = DATA_BLIND_VAL(DATA_BLIND_DEF) |
  1298. GM_SMOD_VLAN_ENA | IPG_DATA_VAL(IPG_DATA_DEF);
  1299. if (dev->mtu > ETH_DATA_LEN)
  1300. mode |= GM_SMOD_JUMBO_ENA;
  1301. gma_write16(hw, sky2->port, GM_SERIAL_MODE, mode);
  1302. sky2_write8(hw, RB_ADDR(rxqaddr[sky2->port], RB_CTRL), RB_ENA_OP_MD);
  1303. err = sky2_rx_start(sky2);
  1304. gma_write16(hw, sky2->port, GM_GP_CTRL, ctl);
  1305. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  1306. sky2_read32(hw, B0_IMSK);
  1307. local_irq_enable();
  1308. return err;
  1309. }
  1310. /*
  1311. * Receive one packet.
  1312. * For small packets or errors, just reuse existing skb.
  1313. * For larger packets, get new buffer.
  1314. */
  1315. static struct sk_buff *sky2_receive(struct sky2_port *sky2,
  1316. u16 length, u32 status)
  1317. {
  1318. struct ring_info *re = sky2->rx_ring + sky2->rx_next;
  1319. struct sk_buff *skb = NULL;
  1320. const unsigned int bufsize = rx_size(sky2);
  1321. if (unlikely(netif_msg_rx_status(sky2)))
  1322. printk(KERN_DEBUG PFX "%s: rx slot %u status 0x%x len %d\n",
  1323. sky2->netdev->name, sky2->rx_next, status, length);
  1324. sky2->rx_next = (sky2->rx_next + 1) % sky2->rx_pending;
  1325. if (status & GMR_FS_ANY_ERR)
  1326. goto error;
  1327. if (!(status & GMR_FS_RX_OK))
  1328. goto resubmit;
  1329. if (length < RX_COPY_THRESHOLD) {
  1330. skb = alloc_skb(length + 2, GFP_ATOMIC);
  1331. if (!skb)
  1332. goto resubmit;
  1333. skb_reserve(skb, 2);
  1334. pci_dma_sync_single_for_cpu(sky2->hw->pdev, re->mapaddr,
  1335. length, PCI_DMA_FROMDEVICE);
  1336. memcpy(skb->data, re->skb->data, length);
  1337. skb->ip_summed = re->skb->ip_summed;
  1338. skb->csum = re->skb->csum;
  1339. pci_dma_sync_single_for_device(sky2->hw->pdev, re->mapaddr,
  1340. length, PCI_DMA_FROMDEVICE);
  1341. } else {
  1342. struct sk_buff *nskb;
  1343. nskb = dev_alloc_skb(bufsize);
  1344. if (!nskb)
  1345. goto resubmit;
  1346. skb = re->skb;
  1347. re->skb = nskb;
  1348. pci_unmap_single(sky2->hw->pdev, re->mapaddr,
  1349. re->maplen, PCI_DMA_FROMDEVICE);
  1350. prefetch(skb->data);
  1351. re->mapaddr = pci_map_single(sky2->hw->pdev, nskb->data,
  1352. bufsize, PCI_DMA_FROMDEVICE);
  1353. re->maplen = bufsize;
  1354. }
  1355. skb_put(skb, length);
  1356. resubmit:
  1357. re->skb->ip_summed = CHECKSUM_NONE;
  1358. sky2_rx_add(sky2, re);
  1359. /* Tell receiver about new buffers. */
  1360. sky2_put_idx(sky2->hw, rxqaddr[sky2->port], sky2->rx_put,
  1361. &sky2->rx_last_put, RX_LE_SIZE);
  1362. return skb;
  1363. error:
  1364. if (netif_msg_rx_err(sky2))
  1365. printk(KERN_INFO PFX "%s: rx error, status 0x%x length %d\n",
  1366. sky2->netdev->name, status, length);
  1367. if (status & (GMR_FS_LONG_ERR | GMR_FS_UN_SIZE))
  1368. sky2->net_stats.rx_length_errors++;
  1369. if (status & GMR_FS_FRAGMENT)
  1370. sky2->net_stats.rx_frame_errors++;
  1371. if (status & GMR_FS_CRC_ERR)
  1372. sky2->net_stats.rx_crc_errors++;
  1373. if (status & GMR_FS_RX_FF_OV)
  1374. sky2->net_stats.rx_fifo_errors++;
  1375. goto resubmit;
  1376. }
  1377. /* Transmit ring index in reported status block is encoded as:
  1378. *
  1379. * | TXS2 | TXA2 | TXS1 | TXA1
  1380. */
  1381. static inline u16 tx_index(u8 port, u32 status, u16 len)
  1382. {
  1383. if (port == 0)
  1384. return status & 0xfff;
  1385. else
  1386. return ((status >> 24) & 0xff) | (len & 0xf) << 8;
  1387. }
  1388. /*
  1389. * Both ports share the same status interrupt, therefore there is only
  1390. * one poll routine.
  1391. */
  1392. static int sky2_poll(struct net_device *dev0, int *budget)
  1393. {
  1394. struct sky2_hw *hw = ((struct sky2_port *) netdev_priv(dev0))->hw;
  1395. unsigned int to_do = min(dev0->quota, *budget);
  1396. unsigned int work_done = 0;
  1397. u16 hwidx;
  1398. hwidx = sky2_read16(hw, STAT_PUT_IDX);
  1399. BUG_ON(hwidx >= STATUS_RING_SIZE);
  1400. rmb();
  1401. while (hwidx != hw->st_idx) {
  1402. struct sky2_status_le *le = hw->st_le + hw->st_idx;
  1403. struct net_device *dev;
  1404. struct sky2_port *sky2;
  1405. struct sk_buff *skb;
  1406. u32 status;
  1407. u16 length;
  1408. u8 op;
  1409. le = hw->st_le + hw->st_idx;
  1410. hw->st_idx = (hw->st_idx + 1) % STATUS_RING_SIZE;
  1411. prefetch(hw->st_le + hw->st_idx);
  1412. BUG_ON(le->link >= hw->ports || !hw->dev[le->link]);
  1413. BUG_ON(le->link >= 2);
  1414. dev = hw->dev[le->link];
  1415. if (dev == NULL || !netif_running(dev))
  1416. continue;
  1417. sky2 = netdev_priv(dev);
  1418. status = le32_to_cpu(le->status);
  1419. length = le16_to_cpu(le->length);
  1420. op = le->opcode & ~HW_OWNER;
  1421. le->opcode = 0;
  1422. switch (op) {
  1423. case OP_RXSTAT:
  1424. skb = sky2_receive(sky2, length, status);
  1425. if (!skb)
  1426. break;
  1427. skb->dev = dev;
  1428. skb->protocol = eth_type_trans(skb, dev);
  1429. dev->last_rx = jiffies;
  1430. #ifdef SKY2_VLAN_TAG_USED
  1431. if (sky2->vlgrp && (status & GMR_FS_VLAN)) {
  1432. vlan_hwaccel_receive_skb(skb,
  1433. sky2->vlgrp,
  1434. be16_to_cpu(sky2->rx_tag));
  1435. } else
  1436. #endif
  1437. netif_receive_skb(skb);
  1438. if (++work_done >= to_do)
  1439. goto exit_loop;
  1440. break;
  1441. #ifdef SKY2_VLAN_TAG_USED
  1442. case OP_RXVLAN:
  1443. sky2->rx_tag = length;
  1444. break;
  1445. case OP_RXCHKSVLAN:
  1446. sky2->rx_tag = length;
  1447. /* fall through */
  1448. #endif
  1449. case OP_RXCHKS:
  1450. skb = sky2->rx_ring[sky2->rx_next].skb;
  1451. skb->ip_summed = CHECKSUM_HW;
  1452. skb->csum = le16_to_cpu(status);
  1453. break;
  1454. case OP_TXINDEXLE:
  1455. sky2_tx_complete(sky2,
  1456. tx_index(sky2->port, status, length));
  1457. break;
  1458. default:
  1459. if (net_ratelimit())
  1460. printk(KERN_WARNING PFX
  1461. "unknown status opcode 0x%x\n", op);
  1462. break;
  1463. }
  1464. }
  1465. exit_loop:
  1466. mmiowb();
  1467. if (work_done < to_do) {
  1468. /*
  1469. * Another chip workaround, need to restart TX timer if status
  1470. * LE was handled. WA_DEV_43_418
  1471. */
  1472. if (is_ec_a1(hw)) {
  1473. sky2_write8(hw, STAT_TX_TIMER_CTRL, TIM_STOP);
  1474. sky2_write8(hw, STAT_TX_TIMER_CTRL, TIM_START);
  1475. }
  1476. netif_rx_complete(dev0);
  1477. hw->intr_mask |= Y2_IS_STAT_BMU;
  1478. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  1479. mmiowb();
  1480. return 0;
  1481. } else {
  1482. *budget -= work_done;
  1483. dev0->quota -= work_done;
  1484. return 1;
  1485. }
  1486. }
  1487. static void sky2_hw_error(struct sky2_hw *hw, unsigned port, u32 status)
  1488. {
  1489. struct net_device *dev = hw->dev[port];
  1490. printk(KERN_INFO PFX "%s: hw error interrupt status 0x%x\n",
  1491. dev->name, status);
  1492. if (status & Y2_IS_PAR_RD1) {
  1493. printk(KERN_ERR PFX "%s: ram data read parity error\n",
  1494. dev->name);
  1495. /* Clear IRQ */
  1496. sky2_write16(hw, RAM_BUFFER(port, B3_RI_CTRL), RI_CLR_RD_PERR);
  1497. }
  1498. if (status & Y2_IS_PAR_WR1) {
  1499. printk(KERN_ERR PFX "%s: ram data write parity error\n",
  1500. dev->name);
  1501. sky2_write16(hw, RAM_BUFFER(port, B3_RI_CTRL), RI_CLR_WR_PERR);
  1502. }
  1503. if (status & Y2_IS_PAR_MAC1) {
  1504. printk(KERN_ERR PFX "%s: MAC parity error\n", dev->name);
  1505. sky2_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_CLI_TX_PE);
  1506. }
  1507. if (status & Y2_IS_PAR_RX1) {
  1508. printk(KERN_ERR PFX "%s: RX parity error\n", dev->name);
  1509. sky2_write32(hw, Q_ADDR(rxqaddr[port], Q_CSR), BMU_CLR_IRQ_PAR);
  1510. }
  1511. if (status & Y2_IS_TCP_TXA1) {
  1512. printk(KERN_ERR PFX "%s: TCP segmentation error\n", dev->name);
  1513. sky2_write32(hw, Q_ADDR(txqaddr[port], Q_CSR), BMU_CLR_IRQ_TCP);
  1514. }
  1515. }
  1516. static void sky2_hw_intr(struct sky2_hw *hw)
  1517. {
  1518. u32 status = sky2_read32(hw, B0_HWE_ISRC);
  1519. if (status & Y2_IS_TIST_OV)
  1520. sky2_write8(hw, GMAC_TI_ST_CTRL, GMT_ST_CLR_IRQ);
  1521. if (status & (Y2_IS_MST_ERR | Y2_IS_IRQ_STAT)) {
  1522. u16 pci_err;
  1523. pci_read_config_word(hw->pdev, PCI_STATUS, &pci_err);
  1524. printk(KERN_ERR PFX "%s: pci hw error (0x%x)\n",
  1525. pci_name(hw->pdev), pci_err);
  1526. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
  1527. pci_write_config_word(hw->pdev, PCI_STATUS,
  1528. pci_err | PCI_STATUS_ERROR_BITS);
  1529. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
  1530. }
  1531. if (status & Y2_IS_PCI_EXP) {
  1532. /* PCI-Express uncorrectable Error occurred */
  1533. u32 pex_err;
  1534. pci_read_config_dword(hw->pdev, PEX_UNC_ERR_STAT, &pex_err);
  1535. printk(KERN_ERR PFX "%s: pci express error (0x%x)\n",
  1536. pci_name(hw->pdev), pex_err);
  1537. /* clear the interrupt */
  1538. sky2_write32(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
  1539. pci_write_config_dword(hw->pdev, PEX_UNC_ERR_STAT,
  1540. 0xffffffffUL);
  1541. sky2_write32(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
  1542. if (pex_err & PEX_FATAL_ERRORS) {
  1543. u32 hwmsk = sky2_read32(hw, B0_HWE_IMSK);
  1544. hwmsk &= ~Y2_IS_PCI_EXP;
  1545. sky2_write32(hw, B0_HWE_IMSK, hwmsk);
  1546. }
  1547. }
  1548. if (status & Y2_HWE_L1_MASK)
  1549. sky2_hw_error(hw, 0, status);
  1550. status >>= 8;
  1551. if (status & Y2_HWE_L1_MASK)
  1552. sky2_hw_error(hw, 1, status);
  1553. }
  1554. static void sky2_mac_intr(struct sky2_hw *hw, unsigned port)
  1555. {
  1556. struct net_device *dev = hw->dev[port];
  1557. struct sky2_port *sky2 = netdev_priv(dev);
  1558. u8 status = sky2_read8(hw, SK_REG(port, GMAC_IRQ_SRC));
  1559. if (netif_msg_intr(sky2))
  1560. printk(KERN_INFO PFX "%s: mac interrupt status 0x%x\n",
  1561. dev->name, status);
  1562. if (status & GM_IS_RX_FF_OR) {
  1563. ++sky2->net_stats.rx_fifo_errors;
  1564. sky2_write8(hw, SK_REG(port, RX_GMF_CTRL_T), GMF_CLI_RX_FO);
  1565. }
  1566. if (status & GM_IS_TX_FF_UR) {
  1567. ++sky2->net_stats.tx_fifo_errors;
  1568. sky2_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_CLI_TX_FU);
  1569. }
  1570. }
  1571. static void sky2_phy_intr(struct sky2_hw *hw, unsigned port)
  1572. {
  1573. struct net_device *dev = hw->dev[port];
  1574. struct sky2_port *sky2 = netdev_priv(dev);
  1575. hw->intr_mask &= ~(port == 0 ? Y2_IS_IRQ_PHY1 : Y2_IS_IRQ_PHY2);
  1576. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  1577. tasklet_schedule(&sky2->phy_task);
  1578. }
  1579. static irqreturn_t sky2_intr(int irq, void *dev_id, struct pt_regs *regs)
  1580. {
  1581. struct sky2_hw *hw = dev_id;
  1582. struct net_device *dev0 = hw->dev[0];
  1583. u32 status;
  1584. status = sky2_read32(hw, B0_Y2_SP_ISRC2);
  1585. if (status == 0 || status == ~0)
  1586. return IRQ_NONE;
  1587. if (status & Y2_IS_HW_ERR)
  1588. sky2_hw_intr(hw);
  1589. /* Do NAPI for Rx and Tx status */
  1590. if (status & Y2_IS_STAT_BMU) {
  1591. hw->intr_mask &= ~Y2_IS_STAT_BMU;
  1592. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  1593. if (likely(__netif_rx_schedule_prep(dev0))) {
  1594. prefetch(&hw->st_le[hw->st_idx]);
  1595. __netif_rx_schedule(dev0);
  1596. }
  1597. }
  1598. if (status & Y2_IS_IRQ_PHY1)
  1599. sky2_phy_intr(hw, 0);
  1600. if (status & Y2_IS_IRQ_PHY2)
  1601. sky2_phy_intr(hw, 1);
  1602. if (status & Y2_IS_IRQ_MAC1)
  1603. sky2_mac_intr(hw, 0);
  1604. if (status & Y2_IS_IRQ_MAC2)
  1605. sky2_mac_intr(hw, 1);
  1606. sky2_write32(hw, B0_Y2_SP_ICR, 2);
  1607. sky2_read32(hw, B0_IMSK);
  1608. return IRQ_HANDLED;
  1609. }
  1610. #ifdef CONFIG_NET_POLL_CONTROLLER
  1611. static void sky2_netpoll(struct net_device *dev)
  1612. {
  1613. struct sky2_port *sky2 = netdev_priv(dev);
  1614. sky2_intr(sky2->hw->pdev->irq, sky2->hw, NULL);
  1615. }
  1616. #endif
  1617. /* Chip internal frequency for clock calculations */
  1618. static inline u32 sky2_khz(const struct sky2_hw *hw)
  1619. {
  1620. switch (hw->chip_id) {
  1621. case CHIP_ID_YUKON_EC:
  1622. case CHIP_ID_YUKON_EC_U:
  1623. return 125000; /* 125 Mhz */
  1624. case CHIP_ID_YUKON_FE:
  1625. return 100000; /* 100 Mhz */
  1626. default: /* YUKON_XL */
  1627. return 156000; /* 156 Mhz */
  1628. }
  1629. }
  1630. static inline u32 sky2_ms2clk(const struct sky2_hw *hw, u32 ms)
  1631. {
  1632. return sky2_khz(hw) * ms;
  1633. }
  1634. static inline u32 sky2_us2clk(const struct sky2_hw *hw, u32 us)
  1635. {
  1636. return (sky2_khz(hw) * us) / 1000;
  1637. }
  1638. static int sky2_reset(struct sky2_hw *hw)
  1639. {
  1640. u32 ctst;
  1641. u16 status;
  1642. u8 t8, pmd_type;
  1643. int i;
  1644. ctst = sky2_read32(hw, B0_CTST);
  1645. sky2_write8(hw, B0_CTST, CS_RST_CLR);
  1646. hw->chip_id = sky2_read8(hw, B2_CHIP_ID);
  1647. if (hw->chip_id < CHIP_ID_YUKON_XL || hw->chip_id > CHIP_ID_YUKON_FE) {
  1648. printk(KERN_ERR PFX "%s: unsupported chip type 0x%x\n",
  1649. pci_name(hw->pdev), hw->chip_id);
  1650. return -EOPNOTSUPP;
  1651. }
  1652. /* ring for status responses */
  1653. hw->st_le = pci_alloc_consistent(hw->pdev, STATUS_LE_BYTES,
  1654. &hw->st_dma);
  1655. if (!hw->st_le)
  1656. return -ENOMEM;
  1657. /* disable ASF */
  1658. if (hw->chip_id <= CHIP_ID_YUKON_EC) {
  1659. sky2_write8(hw, B28_Y2_ASF_STAT_CMD, Y2_ASF_RESET);
  1660. sky2_write16(hw, B0_CTST, Y2_ASF_DISABLE);
  1661. }
  1662. /* do a SW reset */
  1663. sky2_write8(hw, B0_CTST, CS_RST_SET);
  1664. sky2_write8(hw, B0_CTST, CS_RST_CLR);
  1665. /* clear PCI errors, if any */
  1666. pci_read_config_word(hw->pdev, PCI_STATUS, &status);
  1667. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
  1668. pci_write_config_word(hw->pdev, PCI_STATUS,
  1669. status | PCI_STATUS_ERROR_BITS);
  1670. sky2_write8(hw, B0_CTST, CS_MRST_CLR);
  1671. /* clear any PEX errors */
  1672. if (is_pciex(hw)) {
  1673. u16 lstat;
  1674. pci_write_config_dword(hw->pdev, PEX_UNC_ERR_STAT,
  1675. 0xffffffffUL);
  1676. pci_read_config_word(hw->pdev, PEX_LNK_STAT, &lstat);
  1677. }
  1678. pmd_type = sky2_read8(hw, B2_PMD_TYP);
  1679. hw->copper = !(pmd_type == 'L' || pmd_type == 'S');
  1680. hw->ports = 1;
  1681. t8 = sky2_read8(hw, B2_Y2_HW_RES);
  1682. if ((t8 & CFG_DUAL_MAC_MSK) == CFG_DUAL_MAC_MSK) {
  1683. if (!(sky2_read8(hw, B2_Y2_CLK_GATE) & Y2_STATUS_LNK2_INAC))
  1684. ++hw->ports;
  1685. }
  1686. hw->chip_rev = (sky2_read8(hw, B2_MAC_CFG) & CFG_CHIP_R_MSK) >> 4;
  1687. sky2_set_power_state(hw, PCI_D0);
  1688. for (i = 0; i < hw->ports; i++) {
  1689. sky2_write8(hw, SK_REG(i, GMAC_LINK_CTRL), GMLC_RST_SET);
  1690. sky2_write8(hw, SK_REG(i, GMAC_LINK_CTRL), GMLC_RST_CLR);
  1691. }
  1692. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
  1693. /* Clear I2C IRQ noise */
  1694. sky2_write32(hw, B2_I2C_IRQ, 1);
  1695. /* turn off hardware timer (unused) */
  1696. sky2_write8(hw, B2_TI_CTRL, TIM_STOP);
  1697. sky2_write8(hw, B2_TI_CTRL, TIM_CLR_IRQ);
  1698. sky2_write8(hw, B0_Y2LED, LED_STAT_ON);
  1699. /* Turn on descriptor polling (every 75us) */
  1700. sky2_write32(hw, B28_DPT_INI, sky2_us2clk(hw, 75));
  1701. sky2_write8(hw, B28_DPT_CTRL, DPT_START);
  1702. /* Turn off receive timestamp */
  1703. sky2_write8(hw, GMAC_TI_ST_CTRL, GMT_ST_STOP);
  1704. sky2_write8(hw, GMAC_TI_ST_CTRL, GMT_ST_CLR_IRQ);
  1705. /* enable the Tx Arbiters */
  1706. for (i = 0; i < hw->ports; i++)
  1707. sky2_write8(hw, SK_REG(i, TXA_CTRL), TXA_ENA_ARB);
  1708. /* Initialize ram interface */
  1709. for (i = 0; i < hw->ports; i++) {
  1710. sky2_write8(hw, RAM_BUFFER(i, B3_RI_CTRL), RI_RST_CLR);
  1711. sky2_write8(hw, RAM_BUFFER(i, B3_RI_WTO_R1), SK_RI_TO_53);
  1712. sky2_write8(hw, RAM_BUFFER(i, B3_RI_WTO_XA1), SK_RI_TO_53);
  1713. sky2_write8(hw, RAM_BUFFER(i, B3_RI_WTO_XS1), SK_RI_TO_53);
  1714. sky2_write8(hw, RAM_BUFFER(i, B3_RI_RTO_R1), SK_RI_TO_53);
  1715. sky2_write8(hw, RAM_BUFFER(i, B3_RI_RTO_XA1), SK_RI_TO_53);
  1716. sky2_write8(hw, RAM_BUFFER(i, B3_RI_RTO_XS1), SK_RI_TO_53);
  1717. sky2_write8(hw, RAM_BUFFER(i, B3_RI_WTO_R2), SK_RI_TO_53);
  1718. sky2_write8(hw, RAM_BUFFER(i, B3_RI_WTO_XA2), SK_RI_TO_53);
  1719. sky2_write8(hw, RAM_BUFFER(i, B3_RI_WTO_XS2), SK_RI_TO_53);
  1720. sky2_write8(hw, RAM_BUFFER(i, B3_RI_RTO_R2), SK_RI_TO_53);
  1721. sky2_write8(hw, RAM_BUFFER(i, B3_RI_RTO_XA2), SK_RI_TO_53);
  1722. sky2_write8(hw, RAM_BUFFER(i, B3_RI_RTO_XS2), SK_RI_TO_53);
  1723. }
  1724. if (is_pciex(hw)) {
  1725. u16 pctrl;
  1726. /* change Max. Read Request Size to 2048 bytes */
  1727. pci_read_config_word(hw->pdev, PEX_DEV_CTRL, &pctrl);
  1728. pctrl &= ~PEX_DC_MAX_RRS_MSK;
  1729. pctrl |= PEX_DC_MAX_RD_RQ_SIZE(4);
  1730. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
  1731. pci_write_config_word(hw->pdev, PEX_DEV_CTRL, pctrl);
  1732. sky2_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
  1733. }
  1734. sky2_write32(hw, B0_HWE_IMSK, Y2_HWE_ALL_MASK);
  1735. spin_lock_bh(&hw->phy_lock);
  1736. for (i = 0; i < hw->ports; i++)
  1737. sky2_phy_reset(hw, i);
  1738. spin_unlock_bh(&hw->phy_lock);
  1739. memset(hw->st_le, 0, STATUS_LE_BYTES);
  1740. hw->st_idx = 0;
  1741. sky2_write32(hw, STAT_CTRL, SC_STAT_RST_SET);
  1742. sky2_write32(hw, STAT_CTRL, SC_STAT_RST_CLR);
  1743. sky2_write32(hw, STAT_LIST_ADDR_LO, hw->st_dma);
  1744. sky2_write32(hw, STAT_LIST_ADDR_HI, (u64) hw->st_dma >> 32);
  1745. /* Set the list last index */
  1746. sky2_write16(hw, STAT_LAST_IDX, STATUS_RING_SIZE - 1);
  1747. sky2_write32(hw, STAT_TX_TIMER_INI, sky2_ms2clk(hw, 10));
  1748. /* These status setup values are copied from SysKonnect's driver */
  1749. if (is_ec_a1(hw)) {
  1750. /* WA for dev. #4.3 */
  1751. sky2_write16(hw, STAT_TX_IDX_TH, 0xfff); /* Tx Threshold */
  1752. /* set Status-FIFO watermark */
  1753. sky2_write8(hw, STAT_FIFO_WM, 0x21); /* WA for dev. #4.18 */
  1754. /* set Status-FIFO ISR watermark */
  1755. sky2_write8(hw, STAT_FIFO_ISR_WM, 0x07); /* WA for dev. #4.18 */
  1756. } else {
  1757. sky2_write16(hw, STAT_TX_IDX_TH, 0x000a);
  1758. /* set Status-FIFO watermark */
  1759. sky2_write8(hw, STAT_FIFO_WM, 0x10);
  1760. /* set Status-FIFO ISR watermark */
  1761. if (hw->chip_id == CHIP_ID_YUKON_XL && hw->chip_rev == 0)
  1762. sky2_write8(hw, STAT_FIFO_ISR_WM, 0x10);
  1763. else /* WA dev 4.109 */
  1764. sky2_write8(hw, STAT_FIFO_ISR_WM, 0x04);
  1765. sky2_write32(hw, STAT_ISR_TIMER_INI, 0x0190);
  1766. }
  1767. /* enable status unit */
  1768. sky2_write32(hw, STAT_CTRL, SC_STAT_OP_ON);
  1769. sky2_write8(hw, STAT_TX_TIMER_CTRL, TIM_START);
  1770. sky2_write8(hw, STAT_LEV_TIMER_CTRL, TIM_START);
  1771. sky2_write8(hw, STAT_ISR_TIMER_CTRL, TIM_START);
  1772. return 0;
  1773. }
  1774. static inline u32 sky2_supported_modes(const struct sky2_hw *hw)
  1775. {
  1776. u32 modes;
  1777. if (hw->copper) {
  1778. modes = SUPPORTED_10baseT_Half
  1779. | SUPPORTED_10baseT_Full
  1780. | SUPPORTED_100baseT_Half
  1781. | SUPPORTED_100baseT_Full
  1782. | SUPPORTED_Autoneg | SUPPORTED_TP;
  1783. if (hw->chip_id != CHIP_ID_YUKON_FE)
  1784. modes |= SUPPORTED_1000baseT_Half
  1785. | SUPPORTED_1000baseT_Full;
  1786. } else
  1787. modes = SUPPORTED_1000baseT_Full | SUPPORTED_FIBRE
  1788. | SUPPORTED_Autoneg;
  1789. return modes;
  1790. }
  1791. static int sky2_get_settings(struct net_device *dev, struct ethtool_cmd *ecmd)
  1792. {
  1793. struct sky2_port *sky2 = netdev_priv(dev);
  1794. struct sky2_hw *hw = sky2->hw;
  1795. ecmd->transceiver = XCVR_INTERNAL;
  1796. ecmd->supported = sky2_supported_modes(hw);
  1797. ecmd->phy_address = PHY_ADDR_MARV;
  1798. if (hw->copper) {
  1799. ecmd->supported = SUPPORTED_10baseT_Half
  1800. | SUPPORTED_10baseT_Full
  1801. | SUPPORTED_100baseT_Half
  1802. | SUPPORTED_100baseT_Full
  1803. | SUPPORTED_1000baseT_Half
  1804. | SUPPORTED_1000baseT_Full
  1805. | SUPPORTED_Autoneg | SUPPORTED_TP;
  1806. ecmd->port = PORT_TP;
  1807. } else
  1808. ecmd->port = PORT_FIBRE;
  1809. ecmd->advertising = sky2->advertising;
  1810. ecmd->autoneg = sky2->autoneg;
  1811. ecmd->speed = sky2->speed;
  1812. ecmd->duplex = sky2->duplex;
  1813. return 0;
  1814. }
  1815. static int sky2_set_settings(struct net_device *dev, struct ethtool_cmd *ecmd)
  1816. {
  1817. struct sky2_port *sky2 = netdev_priv(dev);
  1818. const struct sky2_hw *hw = sky2->hw;
  1819. u32 supported = sky2_supported_modes(hw);
  1820. if (ecmd->autoneg == AUTONEG_ENABLE) {
  1821. ecmd->advertising = supported;
  1822. sky2->duplex = -1;
  1823. sky2->speed = -1;
  1824. } else {
  1825. u32 setting;
  1826. switch (ecmd->speed) {
  1827. case SPEED_1000:
  1828. if (ecmd->duplex == DUPLEX_FULL)
  1829. setting = SUPPORTED_1000baseT_Full;
  1830. else if (ecmd->duplex == DUPLEX_HALF)
  1831. setting = SUPPORTED_1000baseT_Half;
  1832. else
  1833. return -EINVAL;
  1834. break;
  1835. case SPEED_100:
  1836. if (ecmd->duplex == DUPLEX_FULL)
  1837. setting = SUPPORTED_100baseT_Full;
  1838. else if (ecmd->duplex == DUPLEX_HALF)
  1839. setting = SUPPORTED_100baseT_Half;
  1840. else
  1841. return -EINVAL;
  1842. break;
  1843. case SPEED_10:
  1844. if (ecmd->duplex == DUPLEX_FULL)
  1845. setting = SUPPORTED_10baseT_Full;
  1846. else if (ecmd->duplex == DUPLEX_HALF)
  1847. setting = SUPPORTED_10baseT_Half;
  1848. else
  1849. return -EINVAL;
  1850. break;
  1851. default:
  1852. return -EINVAL;
  1853. }
  1854. if ((setting & supported) == 0)
  1855. return -EINVAL;
  1856. sky2->speed = ecmd->speed;
  1857. sky2->duplex = ecmd->duplex;
  1858. }
  1859. sky2->autoneg = ecmd->autoneg;
  1860. sky2->advertising = ecmd->advertising;
  1861. if (netif_running(dev)) {
  1862. sky2_down(dev);
  1863. sky2_up(dev);
  1864. }
  1865. return 0;
  1866. }
  1867. static void sky2_get_drvinfo(struct net_device *dev,
  1868. struct ethtool_drvinfo *info)
  1869. {
  1870. struct sky2_port *sky2 = netdev_priv(dev);
  1871. strcpy(info->driver, DRV_NAME);
  1872. strcpy(info->version, DRV_VERSION);
  1873. strcpy(info->fw_version, "N/A");
  1874. strcpy(info->bus_info, pci_name(sky2->hw->pdev));
  1875. }
  1876. static const struct sky2_stat {
  1877. char name[ETH_GSTRING_LEN];
  1878. u16 offset;
  1879. } sky2_stats[] = {
  1880. { "tx_bytes", GM_TXO_OK_HI },
  1881. { "rx_bytes", GM_RXO_OK_HI },
  1882. { "tx_broadcast", GM_TXF_BC_OK },
  1883. { "rx_broadcast", GM_RXF_BC_OK },
  1884. { "tx_multicast", GM_TXF_MC_OK },
  1885. { "rx_multicast", GM_RXF_MC_OK },
  1886. { "tx_unicast", GM_TXF_UC_OK },
  1887. { "rx_unicast", GM_RXF_UC_OK },
  1888. { "tx_mac_pause", GM_TXF_MPAUSE },
  1889. { "rx_mac_pause", GM_RXF_MPAUSE },
  1890. { "collisions", GM_TXF_SNG_COL },
  1891. { "late_collision",GM_TXF_LAT_COL },
  1892. { "aborted", GM_TXF_ABO_COL },
  1893. { "multi_collisions", GM_TXF_MUL_COL },
  1894. { "fifo_underrun", GM_TXE_FIFO_UR },
  1895. { "fifo_overflow", GM_RXE_FIFO_OV },
  1896. { "rx_toolong", GM_RXF_LNG_ERR },
  1897. { "rx_jabber", GM_RXF_JAB_PKT },
  1898. { "rx_runt", GM_RXE_FRAG },
  1899. { "rx_too_long", GM_RXF_LNG_ERR },
  1900. { "rx_fcs_error", GM_RXF_FCS_ERR },
  1901. };
  1902. static u32 sky2_get_rx_csum(struct net_device *dev)
  1903. {
  1904. struct sky2_port *sky2 = netdev_priv(dev);
  1905. return sky2->rx_csum;
  1906. }
  1907. static int sky2_set_rx_csum(struct net_device *dev, u32 data)
  1908. {
  1909. struct sky2_port *sky2 = netdev_priv(dev);
  1910. sky2->rx_csum = data;
  1911. sky2_write32(sky2->hw, Q_ADDR(rxqaddr[sky2->port], Q_CSR),
  1912. data ? BMU_ENA_RX_CHKSUM : BMU_DIS_RX_CHKSUM);
  1913. return 0;
  1914. }
  1915. static u32 sky2_get_msglevel(struct net_device *netdev)
  1916. {
  1917. struct sky2_port *sky2 = netdev_priv(netdev);
  1918. return sky2->msg_enable;
  1919. }
  1920. static int sky2_nway_reset(struct net_device *dev)
  1921. {
  1922. struct sky2_port *sky2 = netdev_priv(dev);
  1923. struct sky2_hw *hw = sky2->hw;
  1924. if (sky2->autoneg != AUTONEG_ENABLE)
  1925. return -EINVAL;
  1926. netif_stop_queue(dev);
  1927. spin_lock_irq(&hw->phy_lock);
  1928. sky2_phy_reset(hw, sky2->port);
  1929. sky2_phy_init(hw, sky2->port);
  1930. spin_unlock_irq(&hw->phy_lock);
  1931. return 0;
  1932. }
  1933. static void sky2_phy_stats(struct sky2_port *sky2, u64 * data, unsigned count)
  1934. {
  1935. struct sky2_hw *hw = sky2->hw;
  1936. unsigned port = sky2->port;
  1937. int i;
  1938. data[0] = (u64) gma_read32(hw, port, GM_TXO_OK_HI) << 32
  1939. | (u64) gma_read32(hw, port, GM_TXO_OK_LO);
  1940. data[1] = (u64) gma_read32(hw, port, GM_RXO_OK_HI) << 32
  1941. | (u64) gma_read32(hw, port, GM_RXO_OK_LO);
  1942. for (i = 2; i < count; i++)
  1943. data[i] = (u64) gma_read32(hw, port, sky2_stats[i].offset);
  1944. }
  1945. static void sky2_set_msglevel(struct net_device *netdev, u32 value)
  1946. {
  1947. struct sky2_port *sky2 = netdev_priv(netdev);
  1948. sky2->msg_enable = value;
  1949. }
  1950. static int sky2_get_stats_count(struct net_device *dev)
  1951. {
  1952. return ARRAY_SIZE(sky2_stats);
  1953. }
  1954. static void sky2_get_ethtool_stats(struct net_device *dev,
  1955. struct ethtool_stats *stats, u64 * data)
  1956. {
  1957. struct sky2_port *sky2 = netdev_priv(dev);
  1958. sky2_phy_stats(sky2, data, ARRAY_SIZE(sky2_stats));
  1959. }
  1960. static void sky2_get_strings(struct net_device *dev, u32 stringset, u8 * data)
  1961. {
  1962. int i;
  1963. switch (stringset) {
  1964. case ETH_SS_STATS:
  1965. for (i = 0; i < ARRAY_SIZE(sky2_stats); i++)
  1966. memcpy(data + i * ETH_GSTRING_LEN,
  1967. sky2_stats[i].name, ETH_GSTRING_LEN);
  1968. break;
  1969. }
  1970. }
  1971. /* Use hardware MIB variables for critical path statistics and
  1972. * transmit feedback not reported at interrupt.
  1973. * Other errors are accounted for in interrupt handler.
  1974. */
  1975. static struct net_device_stats *sky2_get_stats(struct net_device *dev)
  1976. {
  1977. struct sky2_port *sky2 = netdev_priv(dev);
  1978. u64 data[13];
  1979. sky2_phy_stats(sky2, data, ARRAY_SIZE(data));
  1980. sky2->net_stats.tx_bytes = data[0];
  1981. sky2->net_stats.rx_bytes = data[1];
  1982. sky2->net_stats.tx_packets = data[2] + data[4] + data[6];
  1983. sky2->net_stats.rx_packets = data[3] + data[5] + data[7];
  1984. sky2->net_stats.multicast = data[5] + data[7];
  1985. sky2->net_stats.collisions = data[10];
  1986. sky2->net_stats.tx_aborted_errors = data[12];
  1987. return &sky2->net_stats;
  1988. }
  1989. static int sky2_set_mac_address(struct net_device *dev, void *p)
  1990. {
  1991. struct sky2_port *sky2 = netdev_priv(dev);
  1992. struct sockaddr *addr = p;
  1993. int err = 0;
  1994. if (!is_valid_ether_addr(addr->sa_data))
  1995. return -EADDRNOTAVAIL;
  1996. sky2_down(dev);
  1997. memcpy(dev->dev_addr, addr->sa_data, ETH_ALEN);
  1998. memcpy_toio(sky2->hw->regs + B2_MAC_1 + sky2->port * 8,
  1999. dev->dev_addr, ETH_ALEN);
  2000. memcpy_toio(sky2->hw->regs + B2_MAC_2 + sky2->port * 8,
  2001. dev->dev_addr, ETH_ALEN);
  2002. if (dev->flags & IFF_UP)
  2003. err = sky2_up(dev);
  2004. return err;
  2005. }
  2006. static void sky2_set_multicast(struct net_device *dev)
  2007. {
  2008. struct sky2_port *sky2 = netdev_priv(dev);
  2009. struct sky2_hw *hw = sky2->hw;
  2010. unsigned port = sky2->port;
  2011. struct dev_mc_list *list = dev->mc_list;
  2012. u16 reg;
  2013. u8 filter[8];
  2014. memset(filter, 0, sizeof(filter));
  2015. reg = gma_read16(hw, port, GM_RX_CTRL);
  2016. reg |= GM_RXCR_UCF_ENA;
  2017. if (dev->flags & IFF_PROMISC) /* promiscuous */
  2018. reg &= ~(GM_RXCR_UCF_ENA | GM_RXCR_MCF_ENA);
  2019. else if ((dev->flags & IFF_ALLMULTI) || dev->mc_count > 16) /* all multicast */
  2020. memset(filter, 0xff, sizeof(filter));
  2021. else if (dev->mc_count == 0) /* no multicast */
  2022. reg &= ~GM_RXCR_MCF_ENA;
  2023. else {
  2024. int i;
  2025. reg |= GM_RXCR_MCF_ENA;
  2026. for (i = 0; list && i < dev->mc_count; i++, list = list->next) {
  2027. u32 bit = ether_crc(ETH_ALEN, list->dmi_addr) & 0x3f;
  2028. filter[bit / 8] |= 1 << (bit % 8);
  2029. }
  2030. }
  2031. gma_write16(hw, port, GM_MC_ADDR_H1,
  2032. (u16) filter[0] | ((u16) filter[1] << 8));
  2033. gma_write16(hw, port, GM_MC_ADDR_H2,
  2034. (u16) filter[2] | ((u16) filter[3] << 8));
  2035. gma_write16(hw, port, GM_MC_ADDR_H3,
  2036. (u16) filter[4] | ((u16) filter[5] << 8));
  2037. gma_write16(hw, port, GM_MC_ADDR_H4,
  2038. (u16) filter[6] | ((u16) filter[7] << 8));
  2039. gma_write16(hw, port, GM_RX_CTRL, reg);
  2040. }
  2041. /* Can have one global because blinking is controlled by
  2042. * ethtool and that is always under RTNL mutex
  2043. */
  2044. static inline void sky2_led(struct sky2_hw *hw, unsigned port, int on)
  2045. {
  2046. u16 pg;
  2047. spin_lock_bh(&hw->phy_lock);
  2048. switch (hw->chip_id) {
  2049. case CHIP_ID_YUKON_XL:
  2050. pg = gm_phy_read(hw, port, PHY_MARV_EXT_ADR);
  2051. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 3);
  2052. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL,
  2053. on ? (PHY_M_LEDC_LOS_CTRL(1) |
  2054. PHY_M_LEDC_INIT_CTRL(7) |
  2055. PHY_M_LEDC_STA1_CTRL(7) |
  2056. PHY_M_LEDC_STA0_CTRL(7))
  2057. : 0);
  2058. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, pg);
  2059. break;
  2060. default:
  2061. gm_phy_write(hw, port, PHY_MARV_LED_CTRL, 0);
  2062. gm_phy_write(hw, port, PHY_MARV_LED_OVER,
  2063. on ? PHY_M_LED_MO_DUP(MO_LED_ON) |
  2064. PHY_M_LED_MO_10(MO_LED_ON) |
  2065. PHY_M_LED_MO_100(MO_LED_ON) |
  2066. PHY_M_LED_MO_1000(MO_LED_ON) |
  2067. PHY_M_LED_MO_RX(MO_LED_ON)
  2068. : PHY_M_LED_MO_DUP(MO_LED_OFF) |
  2069. PHY_M_LED_MO_10(MO_LED_OFF) |
  2070. PHY_M_LED_MO_100(MO_LED_OFF) |
  2071. PHY_M_LED_MO_1000(MO_LED_OFF) |
  2072. PHY_M_LED_MO_RX(MO_LED_OFF));
  2073. }
  2074. spin_unlock_bh(&hw->phy_lock);
  2075. }
  2076. /* blink LED's for finding board */
  2077. static int sky2_phys_id(struct net_device *dev, u32 data)
  2078. {
  2079. struct sky2_port *sky2 = netdev_priv(dev);
  2080. struct sky2_hw *hw = sky2->hw;
  2081. unsigned port = sky2->port;
  2082. u16 ledctrl, ledover = 0;
  2083. long ms;
  2084. int onoff = 1;
  2085. if (!data || data > (u32) (MAX_SCHEDULE_TIMEOUT / HZ))
  2086. ms = jiffies_to_msecs(MAX_SCHEDULE_TIMEOUT);
  2087. else
  2088. ms = data * 1000;
  2089. /* save initial values */
  2090. spin_lock_bh(&hw->phy_lock);
  2091. if (hw->chip_id == CHIP_ID_YUKON_XL) {
  2092. u16 pg = gm_phy_read(hw, port, PHY_MARV_EXT_ADR);
  2093. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 3);
  2094. ledctrl = gm_phy_read(hw, port, PHY_MARV_PHY_CTRL);
  2095. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, pg);
  2096. } else {
  2097. ledctrl = gm_phy_read(hw, port, PHY_MARV_LED_CTRL);
  2098. ledover = gm_phy_read(hw, port, PHY_MARV_LED_OVER);
  2099. }
  2100. spin_unlock_bh(&hw->phy_lock);
  2101. while (ms > 0) {
  2102. sky2_led(hw, port, onoff);
  2103. onoff = !onoff;
  2104. if (msleep_interruptible(250))
  2105. break; /* interrupted */
  2106. ms -= 250;
  2107. }
  2108. /* resume regularly scheduled programming */
  2109. spin_lock_bh(&hw->phy_lock);
  2110. if (hw->chip_id == CHIP_ID_YUKON_XL) {
  2111. u16 pg = gm_phy_read(hw, port, PHY_MARV_EXT_ADR);
  2112. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, 3);
  2113. gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, ledctrl);
  2114. gm_phy_write(hw, port, PHY_MARV_EXT_ADR, pg);
  2115. } else {
  2116. gm_phy_write(hw, port, PHY_MARV_LED_CTRL, ledctrl);
  2117. gm_phy_write(hw, port, PHY_MARV_LED_OVER, ledover);
  2118. }
  2119. spin_unlock_bh(&hw->phy_lock);
  2120. return 0;
  2121. }
  2122. static void sky2_get_pauseparam(struct net_device *dev,
  2123. struct ethtool_pauseparam *ecmd)
  2124. {
  2125. struct sky2_port *sky2 = netdev_priv(dev);
  2126. ecmd->tx_pause = sky2->tx_pause;
  2127. ecmd->rx_pause = sky2->rx_pause;
  2128. ecmd->autoneg = sky2->autoneg;
  2129. }
  2130. static int sky2_set_pauseparam(struct net_device *dev,
  2131. struct ethtool_pauseparam *ecmd)
  2132. {
  2133. struct sky2_port *sky2 = netdev_priv(dev);
  2134. int err = 0;
  2135. sky2->autoneg = ecmd->autoneg;
  2136. sky2->tx_pause = ecmd->tx_pause != 0;
  2137. sky2->rx_pause = ecmd->rx_pause != 0;
  2138. if (netif_running(dev)) {
  2139. sky2_down(dev);
  2140. err = sky2_up(dev);
  2141. }
  2142. return err;
  2143. }
  2144. #ifdef CONFIG_PM
  2145. static void sky2_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
  2146. {
  2147. struct sky2_port *sky2 = netdev_priv(dev);
  2148. wol->supported = WAKE_MAGIC;
  2149. wol->wolopts = sky2->wol ? WAKE_MAGIC : 0;
  2150. }
  2151. static int sky2_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
  2152. {
  2153. struct sky2_port *sky2 = netdev_priv(dev);
  2154. struct sky2_hw *hw = sky2->hw;
  2155. if (wol->wolopts != WAKE_MAGIC && wol->wolopts != 0)
  2156. return -EOPNOTSUPP;
  2157. sky2->wol = wol->wolopts == WAKE_MAGIC;
  2158. if (sky2->wol) {
  2159. memcpy_toio(hw->regs + WOL_MAC_ADDR, dev->dev_addr, ETH_ALEN);
  2160. sky2_write16(hw, WOL_CTRL_STAT,
  2161. WOL_CTL_ENA_PME_ON_MAGIC_PKT |
  2162. WOL_CTL_ENA_MAGIC_PKT_UNIT);
  2163. } else
  2164. sky2_write16(hw, WOL_CTRL_STAT, WOL_CTL_DEFAULT);
  2165. return 0;
  2166. }
  2167. #endif
  2168. static void sky2_get_ringparam(struct net_device *dev,
  2169. struct ethtool_ringparam *ering)
  2170. {
  2171. struct sky2_port *sky2 = netdev_priv(dev);
  2172. ering->rx_max_pending = RX_MAX_PENDING;
  2173. ering->rx_mini_max_pending = 0;
  2174. ering->rx_jumbo_max_pending = 0;
  2175. ering->tx_max_pending = TX_RING_SIZE - 1;
  2176. ering->rx_pending = sky2->rx_pending;
  2177. ering->rx_mini_pending = 0;
  2178. ering->rx_jumbo_pending = 0;
  2179. ering->tx_pending = sky2->tx_pending;
  2180. }
  2181. static int sky2_set_ringparam(struct net_device *dev,
  2182. struct ethtool_ringparam *ering)
  2183. {
  2184. struct sky2_port *sky2 = netdev_priv(dev);
  2185. int err = 0;
  2186. if (ering->rx_pending > RX_MAX_PENDING ||
  2187. ering->rx_pending < 8 ||
  2188. ering->tx_pending < MAX_SKB_TX_LE ||
  2189. ering->tx_pending > TX_RING_SIZE - 1)
  2190. return -EINVAL;
  2191. if (netif_running(dev))
  2192. sky2_down(dev);
  2193. sky2->rx_pending = ering->rx_pending;
  2194. sky2->tx_pending = ering->tx_pending;
  2195. if (netif_running(dev))
  2196. err = sky2_up(dev);
  2197. return err;
  2198. }
  2199. static int sky2_get_regs_len(struct net_device *dev)
  2200. {
  2201. return 0x4000;
  2202. }
  2203. /*
  2204. * Returns copy of control register region
  2205. * Note: access to the RAM address register set will cause timeouts.
  2206. */
  2207. static void sky2_get_regs(struct net_device *dev, struct ethtool_regs *regs,
  2208. void *p)
  2209. {
  2210. const struct sky2_port *sky2 = netdev_priv(dev);
  2211. const void __iomem *io = sky2->hw->regs;
  2212. BUG_ON(regs->len < B3_RI_WTO_R1);
  2213. regs->version = 1;
  2214. memset(p, 0, regs->len);
  2215. memcpy_fromio(p, io, B3_RAM_ADDR);
  2216. memcpy_fromio(p + B3_RI_WTO_R1,
  2217. io + B3_RI_WTO_R1,
  2218. regs->len - B3_RI_WTO_R1);
  2219. }
  2220. static struct ethtool_ops sky2_ethtool_ops = {
  2221. .get_settings = sky2_get_settings,
  2222. .set_settings = sky2_set_settings,
  2223. .get_drvinfo = sky2_get_drvinfo,
  2224. .get_msglevel = sky2_get_msglevel,
  2225. .set_msglevel = sky2_set_msglevel,
  2226. .nway_reset = sky2_nway_reset,
  2227. .get_regs_len = sky2_get_regs_len,
  2228. .get_regs = sky2_get_regs,
  2229. .get_link = ethtool_op_get_link,
  2230. .get_sg = ethtool_op_get_sg,
  2231. .set_sg = ethtool_op_set_sg,
  2232. .get_tx_csum = ethtool_op_get_tx_csum,
  2233. .set_tx_csum = ethtool_op_set_tx_csum,
  2234. .get_tso = ethtool_op_get_tso,
  2235. .set_tso = ethtool_op_set_tso,
  2236. .get_rx_csum = sky2_get_rx_csum,
  2237. .set_rx_csum = sky2_set_rx_csum,
  2238. .get_strings = sky2_get_strings,
  2239. .get_ringparam = sky2_get_ringparam,
  2240. .set_ringparam = sky2_set_ringparam,
  2241. .get_pauseparam = sky2_get_pauseparam,
  2242. .set_pauseparam = sky2_set_pauseparam,
  2243. #ifdef CONFIG_PM
  2244. .get_wol = sky2_get_wol,
  2245. .set_wol = sky2_set_wol,
  2246. #endif
  2247. .phys_id = sky2_phys_id,
  2248. .get_stats_count = sky2_get_stats_count,
  2249. .get_ethtool_stats = sky2_get_ethtool_stats,
  2250. .get_perm_addr = ethtool_op_get_perm_addr,
  2251. };
  2252. /* Initialize network device */
  2253. static __devinit struct net_device *sky2_init_netdev(struct sky2_hw *hw,
  2254. unsigned port, int highmem)
  2255. {
  2256. struct sky2_port *sky2;
  2257. struct net_device *dev = alloc_etherdev(sizeof(*sky2));
  2258. if (!dev) {
  2259. printk(KERN_ERR "sky2 etherdev alloc failed");
  2260. return NULL;
  2261. }
  2262. SET_MODULE_OWNER(dev);
  2263. SET_NETDEV_DEV(dev, &hw->pdev->dev);
  2264. dev->irq = hw->pdev->irq;
  2265. dev->open = sky2_up;
  2266. dev->stop = sky2_down;
  2267. dev->do_ioctl = sky2_ioctl;
  2268. dev->hard_start_xmit = sky2_xmit_frame;
  2269. dev->get_stats = sky2_get_stats;
  2270. dev->set_multicast_list = sky2_set_multicast;
  2271. dev->set_mac_address = sky2_set_mac_address;
  2272. dev->change_mtu = sky2_change_mtu;
  2273. SET_ETHTOOL_OPS(dev, &sky2_ethtool_ops);
  2274. dev->tx_timeout = sky2_tx_timeout;
  2275. dev->watchdog_timeo = TX_WATCHDOG;
  2276. if (port == 0)
  2277. dev->poll = sky2_poll;
  2278. dev->weight = NAPI_WEIGHT;
  2279. #ifdef CONFIG_NET_POLL_CONTROLLER
  2280. dev->poll_controller = sky2_netpoll;
  2281. #endif
  2282. sky2 = netdev_priv(dev);
  2283. sky2->netdev = dev;
  2284. sky2->hw = hw;
  2285. sky2->msg_enable = netif_msg_init(debug, default_msg);
  2286. spin_lock_init(&sky2->tx_lock);
  2287. /* Auto speed and flow control */
  2288. sky2->autoneg = AUTONEG_ENABLE;
  2289. sky2->tx_pause = 0;
  2290. sky2->rx_pause = 1;
  2291. sky2->duplex = -1;
  2292. sky2->speed = -1;
  2293. sky2->advertising = sky2_supported_modes(hw);
  2294. sky2->rx_csum = 1;
  2295. tasklet_init(&sky2->phy_task, sky2_phy_task, (unsigned long)sky2);
  2296. sky2->tx_pending = TX_DEF_PENDING;
  2297. sky2->rx_pending = is_ec_a1(hw) ? 8 : RX_DEF_PENDING;
  2298. hw->dev[port] = dev;
  2299. sky2->port = port;
  2300. dev->features |= NETIF_F_LLTX;
  2301. if (hw->chip_id != CHIP_ID_YUKON_EC_U)
  2302. dev->features |= NETIF_F_TSO;
  2303. if (highmem)
  2304. dev->features |= NETIF_F_HIGHDMA;
  2305. dev->features |= NETIF_F_IP_CSUM | NETIF_F_SG;
  2306. #ifdef SKY2_VLAN_TAG_USED
  2307. dev->features |= NETIF_F_HW_VLAN_TX | NETIF_F_HW_VLAN_RX;
  2308. dev->vlan_rx_register = sky2_vlan_rx_register;
  2309. dev->vlan_rx_kill_vid = sky2_vlan_rx_kill_vid;
  2310. #endif
  2311. /* read the mac address */
  2312. memcpy_fromio(dev->dev_addr, hw->regs + B2_MAC_1 + port * 8, ETH_ALEN);
  2313. memcpy(dev->perm_addr, dev->dev_addr, dev->addr_len);
  2314. /* device is off until link detection */
  2315. netif_carrier_off(dev);
  2316. netif_stop_queue(dev);
  2317. return dev;
  2318. }
  2319. static inline void sky2_show_addr(struct net_device *dev)
  2320. {
  2321. const struct sky2_port *sky2 = netdev_priv(dev);
  2322. if (netif_msg_probe(sky2))
  2323. printk(KERN_INFO PFX "%s: addr %02x:%02x:%02x:%02x:%02x:%02x\n",
  2324. dev->name,
  2325. dev->dev_addr[0], dev->dev_addr[1], dev->dev_addr[2],
  2326. dev->dev_addr[3], dev->dev_addr[4], dev->dev_addr[5]);
  2327. }
  2328. static int __devinit sky2_probe(struct pci_dev *pdev,
  2329. const struct pci_device_id *ent)
  2330. {
  2331. struct net_device *dev, *dev1 = NULL;
  2332. struct sky2_hw *hw;
  2333. int err, pm_cap, using_dac = 0;
  2334. err = pci_enable_device(pdev);
  2335. if (err) {
  2336. printk(KERN_ERR PFX "%s cannot enable PCI device\n",
  2337. pci_name(pdev));
  2338. goto err_out;
  2339. }
  2340. err = pci_request_regions(pdev, DRV_NAME);
  2341. if (err) {
  2342. printk(KERN_ERR PFX "%s cannot obtain PCI resources\n",
  2343. pci_name(pdev));
  2344. goto err_out;
  2345. }
  2346. pci_set_master(pdev);
  2347. /* Find power-management capability. */
  2348. pm_cap = pci_find_capability(pdev, PCI_CAP_ID_PM);
  2349. if (pm_cap == 0) {
  2350. printk(KERN_ERR PFX "Cannot find PowerManagement capability, "
  2351. "aborting.\n");
  2352. err = -EIO;
  2353. goto err_out_free_regions;
  2354. }
  2355. if (sizeof(dma_addr_t) > sizeof(u32)) {
  2356. err = pci_set_dma_mask(pdev, DMA_64BIT_MASK);
  2357. if (!err)
  2358. using_dac = 1;
  2359. }
  2360. if (!using_dac) {
  2361. err = pci_set_dma_mask(pdev, DMA_32BIT_MASK);
  2362. if (err) {
  2363. printk(KERN_ERR PFX "%s no usable DMA configuration\n",
  2364. pci_name(pdev));
  2365. goto err_out_free_regions;
  2366. }
  2367. }
  2368. #ifdef __BIG_ENDIAN
  2369. /* byte swap descriptors in hardware */
  2370. {
  2371. u32 reg;
  2372. pci_read_config_dword(pdev, PCI_DEV_REG2, &reg);
  2373. reg |= PCI_REV_DESC;
  2374. pci_write_config_dword(pdev, PCI_DEV_REG2, reg);
  2375. }
  2376. #endif
  2377. err = -ENOMEM;
  2378. hw = kmalloc(sizeof(*hw), GFP_KERNEL);
  2379. if (!hw) {
  2380. printk(KERN_ERR PFX "%s: cannot allocate hardware struct\n",
  2381. pci_name(pdev));
  2382. goto err_out_free_regions;
  2383. }
  2384. memset(hw, 0, sizeof(*hw));
  2385. hw->pdev = pdev;
  2386. spin_lock_init(&hw->phy_lock);
  2387. hw->regs = ioremap_nocache(pci_resource_start(pdev, 0), 0x4000);
  2388. if (!hw->regs) {
  2389. printk(KERN_ERR PFX "%s: cannot map device registers\n",
  2390. pci_name(pdev));
  2391. goto err_out_free_hw;
  2392. }
  2393. hw->pm_cap = pm_cap;
  2394. err = sky2_reset(hw);
  2395. if (err)
  2396. goto err_out_iounmap;
  2397. printk(KERN_INFO PFX "addr 0x%lx irq %d Yukon-%s (0x%x) rev %d\n",
  2398. pci_resource_start(pdev, 0), pdev->irq,
  2399. yukon_name[hw->chip_id - CHIP_ID_YUKON],
  2400. hw->chip_id, hw->chip_rev);
  2401. dev = sky2_init_netdev(hw, 0, using_dac);
  2402. if (!dev)
  2403. goto err_out_free_pci;
  2404. err = register_netdev(dev);
  2405. if (err) {
  2406. printk(KERN_ERR PFX "%s: cannot register net device\n",
  2407. pci_name(pdev));
  2408. goto err_out_free_netdev;
  2409. }
  2410. sky2_show_addr(dev);
  2411. if (hw->ports > 1 && (dev1 = sky2_init_netdev(hw, 1, using_dac))) {
  2412. if (register_netdev(dev1) == 0)
  2413. sky2_show_addr(dev1);
  2414. else {
  2415. /* Failure to register second port need not be fatal */
  2416. printk(KERN_WARNING PFX
  2417. "register of second port failed\n");
  2418. hw->dev[1] = NULL;
  2419. free_netdev(dev1);
  2420. }
  2421. }
  2422. err = request_irq(pdev->irq, sky2_intr, SA_SHIRQ, DRV_NAME, hw);
  2423. if (err) {
  2424. printk(KERN_ERR PFX "%s: cannot assign irq %d\n",
  2425. pci_name(pdev), pdev->irq);
  2426. goto err_out_unregister;
  2427. }
  2428. hw->intr_mask = Y2_IS_BASE;
  2429. sky2_write32(hw, B0_IMSK, hw->intr_mask);
  2430. pci_set_drvdata(pdev, hw);
  2431. return 0;
  2432. err_out_unregister:
  2433. if (dev1) {
  2434. unregister_netdev(dev1);
  2435. free_netdev(dev1);
  2436. }
  2437. unregister_netdev(dev);
  2438. err_out_free_netdev:
  2439. free_netdev(dev);
  2440. err_out_free_pci:
  2441. sky2_write8(hw, B0_CTST, CS_RST_SET);
  2442. pci_free_consistent(hw->pdev, STATUS_LE_BYTES, hw->st_le, hw->st_dma);
  2443. err_out_iounmap:
  2444. iounmap(hw->regs);
  2445. err_out_free_hw:
  2446. kfree(hw);
  2447. err_out_free_regions:
  2448. pci_release_regions(pdev);
  2449. pci_disable_device(pdev);
  2450. err_out:
  2451. return err;
  2452. }
  2453. static void __devexit sky2_remove(struct pci_dev *pdev)
  2454. {
  2455. struct sky2_hw *hw = pci_get_drvdata(pdev);
  2456. struct net_device *dev0, *dev1;
  2457. if (!hw)
  2458. return;
  2459. dev0 = hw->dev[0];
  2460. dev1 = hw->dev[1];
  2461. if (dev1)
  2462. unregister_netdev(dev1);
  2463. unregister_netdev(dev0);
  2464. sky2_write32(hw, B0_IMSK, 0);
  2465. sky2_set_power_state(hw, PCI_D3hot);
  2466. sky2_write16(hw, B0_Y2LED, LED_STAT_OFF);
  2467. sky2_write8(hw, B0_CTST, CS_RST_SET);
  2468. sky2_read8(hw, B0_CTST);
  2469. free_irq(pdev->irq, hw);
  2470. pci_free_consistent(pdev, STATUS_LE_BYTES, hw->st_le, hw->st_dma);
  2471. pci_release_regions(pdev);
  2472. pci_disable_device(pdev);
  2473. if (dev1)
  2474. free_netdev(dev1);
  2475. free_netdev(dev0);
  2476. iounmap(hw->regs);
  2477. kfree(hw);
  2478. pci_set_drvdata(pdev, NULL);
  2479. }
  2480. #ifdef CONFIG_PM
  2481. static int sky2_suspend(struct pci_dev *pdev, pm_message_t state)
  2482. {
  2483. struct sky2_hw *hw = pci_get_drvdata(pdev);
  2484. int i;
  2485. for (i = 0; i < 2; i++) {
  2486. struct net_device *dev = hw->dev[i];
  2487. if (dev) {
  2488. if (!netif_running(dev))
  2489. continue;
  2490. sky2_down(dev);
  2491. netif_device_detach(dev);
  2492. }
  2493. }
  2494. return sky2_set_power_state(hw, pci_choose_state(pdev, state));
  2495. }
  2496. static int sky2_resume(struct pci_dev *pdev)
  2497. {
  2498. struct sky2_hw *hw = pci_get_drvdata(pdev);
  2499. int i;
  2500. pci_restore_state(pdev);
  2501. pci_enable_wake(pdev, PCI_D0, 0);
  2502. sky2_set_power_state(hw, PCI_D0);
  2503. sky2_reset(hw);
  2504. for (i = 0; i < 2; i++) {
  2505. struct net_device *dev = hw->dev[i];
  2506. if (dev) {
  2507. if (netif_running(dev)) {
  2508. netif_device_attach(dev);
  2509. sky2_up(dev);
  2510. }
  2511. }
  2512. }
  2513. return 0;
  2514. }
  2515. #endif
  2516. static struct pci_driver sky2_driver = {
  2517. .name = DRV_NAME,
  2518. .id_table = sky2_id_table,
  2519. .probe = sky2_probe,
  2520. .remove = __devexit_p(sky2_remove),
  2521. #ifdef CONFIG_PM
  2522. .suspend = sky2_suspend,
  2523. .resume = sky2_resume,
  2524. #endif
  2525. };
  2526. static int __init sky2_init_module(void)
  2527. {
  2528. return pci_module_init(&sky2_driver);
  2529. }
  2530. static void __exit sky2_cleanup_module(void)
  2531. {
  2532. pci_unregister_driver(&sky2_driver);
  2533. }
  2534. module_init(sky2_init_module);
  2535. module_exit(sky2_cleanup_module);
  2536. MODULE_DESCRIPTION("Marvell Yukon 2 Gigabit Ethernet driver");
  2537. MODULE_AUTHOR("Stephen Hemminger <shemminger@osdl.org>");
  2538. MODULE_LICENSE("GPL");