netdev.c 78 KB

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  1. /*******************************************************************************
  2. Intel(R) 82576 Virtual Function Linux driver
  3. Copyright(c) 2009 Intel Corporation.
  4. This program is free software; you can redistribute it and/or modify it
  5. under the terms and conditions of the GNU General Public License,
  6. version 2, as published by the Free Software Foundation.
  7. This program is distributed in the hope it will be useful, but WITHOUT
  8. ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  9. FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  10. more details.
  11. You should have received a copy of the GNU General Public License along with
  12. this program; if not, write to the Free Software Foundation, Inc.,
  13. 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
  14. The full GNU General Public License is included in this distribution in
  15. the file called "COPYING".
  16. Contact Information:
  17. e1000-devel Mailing List <e1000-devel@lists.sourceforge.net>
  18. Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
  19. *******************************************************************************/
  20. #include <linux/module.h>
  21. #include <linux/types.h>
  22. #include <linux/init.h>
  23. #include <linux/pci.h>
  24. #include <linux/vmalloc.h>
  25. #include <linux/pagemap.h>
  26. #include <linux/delay.h>
  27. #include <linux/netdevice.h>
  28. #include <linux/tcp.h>
  29. #include <linux/ipv6.h>
  30. #include <net/checksum.h>
  31. #include <net/ip6_checksum.h>
  32. #include <linux/mii.h>
  33. #include <linux/ethtool.h>
  34. #include <linux/if_vlan.h>
  35. #include <linux/pm_qos_params.h>
  36. #include "igbvf.h"
  37. #define DRV_VERSION "1.0.0-k0"
  38. char igbvf_driver_name[] = "igbvf";
  39. const char igbvf_driver_version[] = DRV_VERSION;
  40. static const char igbvf_driver_string[] =
  41. "Intel(R) Virtual Function Network Driver";
  42. static const char igbvf_copyright[] = "Copyright (c) 2009 Intel Corporation.";
  43. static int igbvf_poll(struct napi_struct *napi, int budget);
  44. static void igbvf_reset(struct igbvf_adapter *);
  45. static void igbvf_set_interrupt_capability(struct igbvf_adapter *);
  46. static void igbvf_reset_interrupt_capability(struct igbvf_adapter *);
  47. static struct igbvf_info igbvf_vf_info = {
  48. .mac = e1000_vfadapt,
  49. .flags = FLAG_HAS_JUMBO_FRAMES
  50. | FLAG_RX_CSUM_ENABLED,
  51. .pba = 10,
  52. .init_ops = e1000_init_function_pointers_vf,
  53. };
  54. static const struct igbvf_info *igbvf_info_tbl[] = {
  55. [board_vf] = &igbvf_vf_info,
  56. };
  57. /**
  58. * igbvf_desc_unused - calculate if we have unused descriptors
  59. **/
  60. static int igbvf_desc_unused(struct igbvf_ring *ring)
  61. {
  62. if (ring->next_to_clean > ring->next_to_use)
  63. return ring->next_to_clean - ring->next_to_use - 1;
  64. return ring->count + ring->next_to_clean - ring->next_to_use - 1;
  65. }
  66. /**
  67. * igbvf_receive_skb - helper function to handle Rx indications
  68. * @adapter: board private structure
  69. * @status: descriptor status field as written by hardware
  70. * @vlan: descriptor vlan field as written by hardware (no le/be conversion)
  71. * @skb: pointer to sk_buff to be indicated to stack
  72. **/
  73. static void igbvf_receive_skb(struct igbvf_adapter *adapter,
  74. struct net_device *netdev,
  75. struct sk_buff *skb,
  76. u32 status, u16 vlan)
  77. {
  78. if (adapter->vlgrp && (status & E1000_RXD_STAT_VP))
  79. vlan_hwaccel_receive_skb(skb, adapter->vlgrp,
  80. le16_to_cpu(vlan) &
  81. E1000_RXD_SPC_VLAN_MASK);
  82. else
  83. netif_receive_skb(skb);
  84. netdev->last_rx = jiffies;
  85. }
  86. static inline void igbvf_rx_checksum_adv(struct igbvf_adapter *adapter,
  87. u32 status_err, struct sk_buff *skb)
  88. {
  89. skb->ip_summed = CHECKSUM_NONE;
  90. /* Ignore Checksum bit is set or checksum is disabled through ethtool */
  91. if ((status_err & E1000_RXD_STAT_IXSM))
  92. return;
  93. /* TCP/UDP checksum error bit is set */
  94. if (status_err &
  95. (E1000_RXDEXT_STATERR_TCPE | E1000_RXDEXT_STATERR_IPE)) {
  96. /* let the stack verify checksum errors */
  97. adapter->hw_csum_err++;
  98. return;
  99. }
  100. /* It must be a TCP or UDP packet with a valid checksum */
  101. if (status_err & (E1000_RXD_STAT_TCPCS | E1000_RXD_STAT_UDPCS))
  102. skb->ip_summed = CHECKSUM_UNNECESSARY;
  103. adapter->hw_csum_good++;
  104. }
  105. /**
  106. * igbvf_alloc_rx_buffers - Replace used receive buffers; packet split
  107. * @rx_ring: address of ring structure to repopulate
  108. * @cleaned_count: number of buffers to repopulate
  109. **/
  110. static void igbvf_alloc_rx_buffers(struct igbvf_ring *rx_ring,
  111. int cleaned_count)
  112. {
  113. struct igbvf_adapter *adapter = rx_ring->adapter;
  114. struct net_device *netdev = adapter->netdev;
  115. struct pci_dev *pdev = adapter->pdev;
  116. union e1000_adv_rx_desc *rx_desc;
  117. struct igbvf_buffer *buffer_info;
  118. struct sk_buff *skb;
  119. unsigned int i;
  120. int bufsz;
  121. i = rx_ring->next_to_use;
  122. buffer_info = &rx_ring->buffer_info[i];
  123. if (adapter->rx_ps_hdr_size)
  124. bufsz = adapter->rx_ps_hdr_size;
  125. else
  126. bufsz = adapter->rx_buffer_len;
  127. bufsz += NET_IP_ALIGN;
  128. while (cleaned_count--) {
  129. rx_desc = IGBVF_RX_DESC_ADV(*rx_ring, i);
  130. if (adapter->rx_ps_hdr_size && !buffer_info->page_dma) {
  131. if (!buffer_info->page) {
  132. buffer_info->page = alloc_page(GFP_ATOMIC);
  133. if (!buffer_info->page) {
  134. adapter->alloc_rx_buff_failed++;
  135. goto no_buffers;
  136. }
  137. buffer_info->page_offset = 0;
  138. } else {
  139. buffer_info->page_offset ^= PAGE_SIZE / 2;
  140. }
  141. buffer_info->page_dma =
  142. pci_map_page(pdev, buffer_info->page,
  143. buffer_info->page_offset,
  144. PAGE_SIZE / 2,
  145. PCI_DMA_FROMDEVICE);
  146. }
  147. if (!buffer_info->skb) {
  148. skb = netdev_alloc_skb(netdev, bufsz);
  149. if (!skb) {
  150. adapter->alloc_rx_buff_failed++;
  151. goto no_buffers;
  152. }
  153. /* Make buffer alignment 2 beyond a 16 byte boundary
  154. * this will result in a 16 byte aligned IP header after
  155. * the 14 byte MAC header is removed
  156. */
  157. skb_reserve(skb, NET_IP_ALIGN);
  158. buffer_info->skb = skb;
  159. buffer_info->dma = pci_map_single(pdev, skb->data,
  160. bufsz,
  161. PCI_DMA_FROMDEVICE);
  162. }
  163. /* Refresh the desc even if buffer_addrs didn't change because
  164. * each write-back erases this info. */
  165. if (adapter->rx_ps_hdr_size) {
  166. rx_desc->read.pkt_addr =
  167. cpu_to_le64(buffer_info->page_dma);
  168. rx_desc->read.hdr_addr = cpu_to_le64(buffer_info->dma);
  169. } else {
  170. rx_desc->read.pkt_addr =
  171. cpu_to_le64(buffer_info->dma);
  172. rx_desc->read.hdr_addr = 0;
  173. }
  174. i++;
  175. if (i == rx_ring->count)
  176. i = 0;
  177. buffer_info = &rx_ring->buffer_info[i];
  178. }
  179. no_buffers:
  180. if (rx_ring->next_to_use != i) {
  181. rx_ring->next_to_use = i;
  182. if (i == 0)
  183. i = (rx_ring->count - 1);
  184. else
  185. i--;
  186. /* Force memory writes to complete before letting h/w
  187. * know there are new descriptors to fetch. (Only
  188. * applicable for weak-ordered memory model archs,
  189. * such as IA-64). */
  190. wmb();
  191. writel(i, adapter->hw.hw_addr + rx_ring->tail);
  192. }
  193. }
  194. /**
  195. * igbvf_clean_rx_irq - Send received data up the network stack; legacy
  196. * @adapter: board private structure
  197. *
  198. * the return value indicates whether actual cleaning was done, there
  199. * is no guarantee that everything was cleaned
  200. **/
  201. static bool igbvf_clean_rx_irq(struct igbvf_adapter *adapter,
  202. int *work_done, int work_to_do)
  203. {
  204. struct igbvf_ring *rx_ring = adapter->rx_ring;
  205. struct net_device *netdev = adapter->netdev;
  206. struct pci_dev *pdev = adapter->pdev;
  207. union e1000_adv_rx_desc *rx_desc, *next_rxd;
  208. struct igbvf_buffer *buffer_info, *next_buffer;
  209. struct sk_buff *skb;
  210. bool cleaned = false;
  211. int cleaned_count = 0;
  212. unsigned int total_bytes = 0, total_packets = 0;
  213. unsigned int i;
  214. u32 length, hlen, staterr;
  215. i = rx_ring->next_to_clean;
  216. rx_desc = IGBVF_RX_DESC_ADV(*rx_ring, i);
  217. staterr = le32_to_cpu(rx_desc->wb.upper.status_error);
  218. while (staterr & E1000_RXD_STAT_DD) {
  219. if (*work_done >= work_to_do)
  220. break;
  221. (*work_done)++;
  222. buffer_info = &rx_ring->buffer_info[i];
  223. /* HW will not DMA in data larger than the given buffer, even
  224. * if it parses the (NFS, of course) header to be larger. In
  225. * that case, it fills the header buffer and spills the rest
  226. * into the page.
  227. */
  228. hlen = (le16_to_cpu(rx_desc->wb.lower.lo_dword.hs_rss.hdr_info) &
  229. E1000_RXDADV_HDRBUFLEN_MASK) >> E1000_RXDADV_HDRBUFLEN_SHIFT;
  230. if (hlen > adapter->rx_ps_hdr_size)
  231. hlen = adapter->rx_ps_hdr_size;
  232. length = le16_to_cpu(rx_desc->wb.upper.length);
  233. cleaned = true;
  234. cleaned_count++;
  235. skb = buffer_info->skb;
  236. prefetch(skb->data - NET_IP_ALIGN);
  237. buffer_info->skb = NULL;
  238. if (!adapter->rx_ps_hdr_size) {
  239. pci_unmap_single(pdev, buffer_info->dma,
  240. adapter->rx_buffer_len,
  241. PCI_DMA_FROMDEVICE);
  242. buffer_info->dma = 0;
  243. skb_put(skb, length);
  244. goto send_up;
  245. }
  246. if (!skb_shinfo(skb)->nr_frags) {
  247. pci_unmap_single(pdev, buffer_info->dma,
  248. adapter->rx_ps_hdr_size + NET_IP_ALIGN,
  249. PCI_DMA_FROMDEVICE);
  250. skb_put(skb, hlen);
  251. }
  252. if (length) {
  253. pci_unmap_page(pdev, buffer_info->page_dma,
  254. PAGE_SIZE / 2,
  255. PCI_DMA_FROMDEVICE);
  256. buffer_info->page_dma = 0;
  257. skb_fill_page_desc(skb, skb_shinfo(skb)->nr_frags++,
  258. buffer_info->page,
  259. buffer_info->page_offset,
  260. length);
  261. if ((adapter->rx_buffer_len > (PAGE_SIZE / 2)) ||
  262. (page_count(buffer_info->page) != 1))
  263. buffer_info->page = NULL;
  264. else
  265. get_page(buffer_info->page);
  266. skb->len += length;
  267. skb->data_len += length;
  268. skb->truesize += length;
  269. }
  270. send_up:
  271. i++;
  272. if (i == rx_ring->count)
  273. i = 0;
  274. next_rxd = IGBVF_RX_DESC_ADV(*rx_ring, i);
  275. prefetch(next_rxd);
  276. next_buffer = &rx_ring->buffer_info[i];
  277. if (!(staterr & E1000_RXD_STAT_EOP)) {
  278. buffer_info->skb = next_buffer->skb;
  279. buffer_info->dma = next_buffer->dma;
  280. next_buffer->skb = skb;
  281. next_buffer->dma = 0;
  282. goto next_desc;
  283. }
  284. if (staterr & E1000_RXDEXT_ERR_FRAME_ERR_MASK) {
  285. dev_kfree_skb_irq(skb);
  286. goto next_desc;
  287. }
  288. total_bytes += skb->len;
  289. total_packets++;
  290. igbvf_rx_checksum_adv(adapter, staterr, skb);
  291. skb->protocol = eth_type_trans(skb, netdev);
  292. igbvf_receive_skb(adapter, netdev, skb, staterr,
  293. rx_desc->wb.upper.vlan);
  294. netdev->last_rx = jiffies;
  295. next_desc:
  296. rx_desc->wb.upper.status_error = 0;
  297. /* return some buffers to hardware, one at a time is too slow */
  298. if (cleaned_count >= IGBVF_RX_BUFFER_WRITE) {
  299. igbvf_alloc_rx_buffers(rx_ring, cleaned_count);
  300. cleaned_count = 0;
  301. }
  302. /* use prefetched values */
  303. rx_desc = next_rxd;
  304. buffer_info = next_buffer;
  305. staterr = le32_to_cpu(rx_desc->wb.upper.status_error);
  306. }
  307. rx_ring->next_to_clean = i;
  308. cleaned_count = igbvf_desc_unused(rx_ring);
  309. if (cleaned_count)
  310. igbvf_alloc_rx_buffers(rx_ring, cleaned_count);
  311. adapter->total_rx_packets += total_packets;
  312. adapter->total_rx_bytes += total_bytes;
  313. adapter->net_stats.rx_bytes += total_bytes;
  314. adapter->net_stats.rx_packets += total_packets;
  315. return cleaned;
  316. }
  317. static void igbvf_put_txbuf(struct igbvf_adapter *adapter,
  318. struct igbvf_buffer *buffer_info)
  319. {
  320. buffer_info->dma = 0;
  321. if (buffer_info->skb) {
  322. skb_dma_unmap(&adapter->pdev->dev, buffer_info->skb,
  323. DMA_TO_DEVICE);
  324. dev_kfree_skb_any(buffer_info->skb);
  325. buffer_info->skb = NULL;
  326. }
  327. buffer_info->time_stamp = 0;
  328. }
  329. static void igbvf_print_tx_hang(struct igbvf_adapter *adapter)
  330. {
  331. struct igbvf_ring *tx_ring = adapter->tx_ring;
  332. unsigned int i = tx_ring->next_to_clean;
  333. unsigned int eop = tx_ring->buffer_info[i].next_to_watch;
  334. union e1000_adv_tx_desc *eop_desc = IGBVF_TX_DESC_ADV(*tx_ring, eop);
  335. /* detected Tx unit hang */
  336. dev_err(&adapter->pdev->dev,
  337. "Detected Tx Unit Hang:\n"
  338. " TDH <%x>\n"
  339. " TDT <%x>\n"
  340. " next_to_use <%x>\n"
  341. " next_to_clean <%x>\n"
  342. "buffer_info[next_to_clean]:\n"
  343. " time_stamp <%lx>\n"
  344. " next_to_watch <%x>\n"
  345. " jiffies <%lx>\n"
  346. " next_to_watch.status <%x>\n",
  347. readl(adapter->hw.hw_addr + tx_ring->head),
  348. readl(adapter->hw.hw_addr + tx_ring->tail),
  349. tx_ring->next_to_use,
  350. tx_ring->next_to_clean,
  351. tx_ring->buffer_info[eop].time_stamp,
  352. eop,
  353. jiffies,
  354. eop_desc->wb.status);
  355. }
  356. /**
  357. * igbvf_setup_tx_resources - allocate Tx resources (Descriptors)
  358. * @adapter: board private structure
  359. *
  360. * Return 0 on success, negative on failure
  361. **/
  362. int igbvf_setup_tx_resources(struct igbvf_adapter *adapter,
  363. struct igbvf_ring *tx_ring)
  364. {
  365. struct pci_dev *pdev = adapter->pdev;
  366. int size;
  367. size = sizeof(struct igbvf_buffer) * tx_ring->count;
  368. tx_ring->buffer_info = vmalloc(size);
  369. if (!tx_ring->buffer_info)
  370. goto err;
  371. memset(tx_ring->buffer_info, 0, size);
  372. /* round up to nearest 4K */
  373. tx_ring->size = tx_ring->count * sizeof(union e1000_adv_tx_desc);
  374. tx_ring->size = ALIGN(tx_ring->size, 4096);
  375. tx_ring->desc = pci_alloc_consistent(pdev, tx_ring->size,
  376. &tx_ring->dma);
  377. if (!tx_ring->desc)
  378. goto err;
  379. tx_ring->adapter = adapter;
  380. tx_ring->next_to_use = 0;
  381. tx_ring->next_to_clean = 0;
  382. return 0;
  383. err:
  384. vfree(tx_ring->buffer_info);
  385. dev_err(&adapter->pdev->dev,
  386. "Unable to allocate memory for the transmit descriptor ring\n");
  387. return -ENOMEM;
  388. }
  389. /**
  390. * igbvf_setup_rx_resources - allocate Rx resources (Descriptors)
  391. * @adapter: board private structure
  392. *
  393. * Returns 0 on success, negative on failure
  394. **/
  395. int igbvf_setup_rx_resources(struct igbvf_adapter *adapter,
  396. struct igbvf_ring *rx_ring)
  397. {
  398. struct pci_dev *pdev = adapter->pdev;
  399. int size, desc_len;
  400. size = sizeof(struct igbvf_buffer) * rx_ring->count;
  401. rx_ring->buffer_info = vmalloc(size);
  402. if (!rx_ring->buffer_info)
  403. goto err;
  404. memset(rx_ring->buffer_info, 0, size);
  405. desc_len = sizeof(union e1000_adv_rx_desc);
  406. /* Round up to nearest 4K */
  407. rx_ring->size = rx_ring->count * desc_len;
  408. rx_ring->size = ALIGN(rx_ring->size, 4096);
  409. rx_ring->desc = pci_alloc_consistent(pdev, rx_ring->size,
  410. &rx_ring->dma);
  411. if (!rx_ring->desc)
  412. goto err;
  413. rx_ring->next_to_clean = 0;
  414. rx_ring->next_to_use = 0;
  415. rx_ring->adapter = adapter;
  416. return 0;
  417. err:
  418. vfree(rx_ring->buffer_info);
  419. rx_ring->buffer_info = NULL;
  420. dev_err(&adapter->pdev->dev,
  421. "Unable to allocate memory for the receive descriptor ring\n");
  422. return -ENOMEM;
  423. }
  424. /**
  425. * igbvf_clean_tx_ring - Free Tx Buffers
  426. * @tx_ring: ring to be cleaned
  427. **/
  428. static void igbvf_clean_tx_ring(struct igbvf_ring *tx_ring)
  429. {
  430. struct igbvf_adapter *adapter = tx_ring->adapter;
  431. struct igbvf_buffer *buffer_info;
  432. unsigned long size;
  433. unsigned int i;
  434. if (!tx_ring->buffer_info)
  435. return;
  436. /* Free all the Tx ring sk_buffs */
  437. for (i = 0; i < tx_ring->count; i++) {
  438. buffer_info = &tx_ring->buffer_info[i];
  439. igbvf_put_txbuf(adapter, buffer_info);
  440. }
  441. size = sizeof(struct igbvf_buffer) * tx_ring->count;
  442. memset(tx_ring->buffer_info, 0, size);
  443. /* Zero out the descriptor ring */
  444. memset(tx_ring->desc, 0, tx_ring->size);
  445. tx_ring->next_to_use = 0;
  446. tx_ring->next_to_clean = 0;
  447. writel(0, adapter->hw.hw_addr + tx_ring->head);
  448. writel(0, adapter->hw.hw_addr + tx_ring->tail);
  449. }
  450. /**
  451. * igbvf_free_tx_resources - Free Tx Resources per Queue
  452. * @tx_ring: ring to free resources from
  453. *
  454. * Free all transmit software resources
  455. **/
  456. void igbvf_free_tx_resources(struct igbvf_ring *tx_ring)
  457. {
  458. struct pci_dev *pdev = tx_ring->adapter->pdev;
  459. igbvf_clean_tx_ring(tx_ring);
  460. vfree(tx_ring->buffer_info);
  461. tx_ring->buffer_info = NULL;
  462. pci_free_consistent(pdev, tx_ring->size, tx_ring->desc, tx_ring->dma);
  463. tx_ring->desc = NULL;
  464. }
  465. /**
  466. * igbvf_clean_rx_ring - Free Rx Buffers per Queue
  467. * @adapter: board private structure
  468. **/
  469. static void igbvf_clean_rx_ring(struct igbvf_ring *rx_ring)
  470. {
  471. struct igbvf_adapter *adapter = rx_ring->adapter;
  472. struct igbvf_buffer *buffer_info;
  473. struct pci_dev *pdev = adapter->pdev;
  474. unsigned long size;
  475. unsigned int i;
  476. if (!rx_ring->buffer_info)
  477. return;
  478. /* Free all the Rx ring sk_buffs */
  479. for (i = 0; i < rx_ring->count; i++) {
  480. buffer_info = &rx_ring->buffer_info[i];
  481. if (buffer_info->dma) {
  482. if (adapter->rx_ps_hdr_size){
  483. pci_unmap_single(pdev, buffer_info->dma,
  484. adapter->rx_ps_hdr_size,
  485. PCI_DMA_FROMDEVICE);
  486. } else {
  487. pci_unmap_single(pdev, buffer_info->dma,
  488. adapter->rx_buffer_len,
  489. PCI_DMA_FROMDEVICE);
  490. }
  491. buffer_info->dma = 0;
  492. }
  493. if (buffer_info->skb) {
  494. dev_kfree_skb(buffer_info->skb);
  495. buffer_info->skb = NULL;
  496. }
  497. if (buffer_info->page) {
  498. if (buffer_info->page_dma)
  499. pci_unmap_page(pdev, buffer_info->page_dma,
  500. PAGE_SIZE / 2,
  501. PCI_DMA_FROMDEVICE);
  502. put_page(buffer_info->page);
  503. buffer_info->page = NULL;
  504. buffer_info->page_dma = 0;
  505. buffer_info->page_offset = 0;
  506. }
  507. }
  508. size = sizeof(struct igbvf_buffer) * rx_ring->count;
  509. memset(rx_ring->buffer_info, 0, size);
  510. /* Zero out the descriptor ring */
  511. memset(rx_ring->desc, 0, rx_ring->size);
  512. rx_ring->next_to_clean = 0;
  513. rx_ring->next_to_use = 0;
  514. writel(0, adapter->hw.hw_addr + rx_ring->head);
  515. writel(0, adapter->hw.hw_addr + rx_ring->tail);
  516. }
  517. /**
  518. * igbvf_free_rx_resources - Free Rx Resources
  519. * @rx_ring: ring to clean the resources from
  520. *
  521. * Free all receive software resources
  522. **/
  523. void igbvf_free_rx_resources(struct igbvf_ring *rx_ring)
  524. {
  525. struct pci_dev *pdev = rx_ring->adapter->pdev;
  526. igbvf_clean_rx_ring(rx_ring);
  527. vfree(rx_ring->buffer_info);
  528. rx_ring->buffer_info = NULL;
  529. dma_free_coherent(&pdev->dev, rx_ring->size, rx_ring->desc,
  530. rx_ring->dma);
  531. rx_ring->desc = NULL;
  532. }
  533. /**
  534. * igbvf_update_itr - update the dynamic ITR value based on statistics
  535. * @adapter: pointer to adapter
  536. * @itr_setting: current adapter->itr
  537. * @packets: the number of packets during this measurement interval
  538. * @bytes: the number of bytes during this measurement interval
  539. *
  540. * Stores a new ITR value based on packets and byte
  541. * counts during the last interrupt. The advantage of per interrupt
  542. * computation is faster updates and more accurate ITR for the current
  543. * traffic pattern. Constants in this function were computed
  544. * based on theoretical maximum wire speed and thresholds were set based
  545. * on testing data as well as attempting to minimize response time
  546. * while increasing bulk throughput. This functionality is controlled
  547. * by the InterruptThrottleRate module parameter.
  548. **/
  549. static unsigned int igbvf_update_itr(struct igbvf_adapter *adapter,
  550. u16 itr_setting, int packets,
  551. int bytes)
  552. {
  553. unsigned int retval = itr_setting;
  554. if (packets == 0)
  555. goto update_itr_done;
  556. switch (itr_setting) {
  557. case lowest_latency:
  558. /* handle TSO and jumbo frames */
  559. if (bytes/packets > 8000)
  560. retval = bulk_latency;
  561. else if ((packets < 5) && (bytes > 512))
  562. retval = low_latency;
  563. break;
  564. case low_latency: /* 50 usec aka 20000 ints/s */
  565. if (bytes > 10000) {
  566. /* this if handles the TSO accounting */
  567. if (bytes/packets > 8000)
  568. retval = bulk_latency;
  569. else if ((packets < 10) || ((bytes/packets) > 1200))
  570. retval = bulk_latency;
  571. else if ((packets > 35))
  572. retval = lowest_latency;
  573. } else if (bytes/packets > 2000) {
  574. retval = bulk_latency;
  575. } else if (packets <= 2 && bytes < 512) {
  576. retval = lowest_latency;
  577. }
  578. break;
  579. case bulk_latency: /* 250 usec aka 4000 ints/s */
  580. if (bytes > 25000) {
  581. if (packets > 35)
  582. retval = low_latency;
  583. } else if (bytes < 6000) {
  584. retval = low_latency;
  585. }
  586. break;
  587. }
  588. update_itr_done:
  589. return retval;
  590. }
  591. static void igbvf_set_itr(struct igbvf_adapter *adapter)
  592. {
  593. struct e1000_hw *hw = &adapter->hw;
  594. u16 current_itr;
  595. u32 new_itr = adapter->itr;
  596. adapter->tx_itr = igbvf_update_itr(adapter, adapter->tx_itr,
  597. adapter->total_tx_packets,
  598. adapter->total_tx_bytes);
  599. /* conservative mode (itr 3) eliminates the lowest_latency setting */
  600. if (adapter->itr_setting == 3 && adapter->tx_itr == lowest_latency)
  601. adapter->tx_itr = low_latency;
  602. adapter->rx_itr = igbvf_update_itr(adapter, adapter->rx_itr,
  603. adapter->total_rx_packets,
  604. adapter->total_rx_bytes);
  605. /* conservative mode (itr 3) eliminates the lowest_latency setting */
  606. if (adapter->itr_setting == 3 && adapter->rx_itr == lowest_latency)
  607. adapter->rx_itr = low_latency;
  608. current_itr = max(adapter->rx_itr, adapter->tx_itr);
  609. switch (current_itr) {
  610. /* counts and packets in update_itr are dependent on these numbers */
  611. case lowest_latency:
  612. new_itr = 70000;
  613. break;
  614. case low_latency:
  615. new_itr = 20000; /* aka hwitr = ~200 */
  616. break;
  617. case bulk_latency:
  618. new_itr = 4000;
  619. break;
  620. default:
  621. break;
  622. }
  623. if (new_itr != adapter->itr) {
  624. /*
  625. * this attempts to bias the interrupt rate towards Bulk
  626. * by adding intermediate steps when interrupt rate is
  627. * increasing
  628. */
  629. new_itr = new_itr > adapter->itr ?
  630. min(adapter->itr + (new_itr >> 2), new_itr) :
  631. new_itr;
  632. adapter->itr = new_itr;
  633. adapter->rx_ring->itr_val = 1952;
  634. if (adapter->msix_entries)
  635. adapter->rx_ring->set_itr = 1;
  636. else
  637. ew32(ITR, 1952);
  638. }
  639. }
  640. /**
  641. * igbvf_clean_tx_irq - Reclaim resources after transmit completes
  642. * @adapter: board private structure
  643. * returns true if ring is completely cleaned
  644. **/
  645. static bool igbvf_clean_tx_irq(struct igbvf_ring *tx_ring)
  646. {
  647. struct igbvf_adapter *adapter = tx_ring->adapter;
  648. struct e1000_hw *hw = &adapter->hw;
  649. struct net_device *netdev = adapter->netdev;
  650. struct igbvf_buffer *buffer_info;
  651. struct sk_buff *skb;
  652. union e1000_adv_tx_desc *tx_desc, *eop_desc;
  653. unsigned int total_bytes = 0, total_packets = 0;
  654. unsigned int i, eop, count = 0;
  655. bool cleaned = false;
  656. i = tx_ring->next_to_clean;
  657. eop = tx_ring->buffer_info[i].next_to_watch;
  658. eop_desc = IGBVF_TX_DESC_ADV(*tx_ring, eop);
  659. while ((eop_desc->wb.status & cpu_to_le32(E1000_TXD_STAT_DD)) &&
  660. (count < tx_ring->count)) {
  661. for (cleaned = false; !cleaned; count++) {
  662. tx_desc = IGBVF_TX_DESC_ADV(*tx_ring, i);
  663. buffer_info = &tx_ring->buffer_info[i];
  664. cleaned = (i == eop);
  665. skb = buffer_info->skb;
  666. if (skb) {
  667. unsigned int segs, bytecount;
  668. /* gso_segs is currently only valid for tcp */
  669. segs = skb_shinfo(skb)->gso_segs ?: 1;
  670. /* multiply data chunks by size of headers */
  671. bytecount = ((segs - 1) * skb_headlen(skb)) +
  672. skb->len;
  673. total_packets += segs;
  674. total_bytes += bytecount;
  675. }
  676. igbvf_put_txbuf(adapter, buffer_info);
  677. tx_desc->wb.status = 0;
  678. i++;
  679. if (i == tx_ring->count)
  680. i = 0;
  681. }
  682. eop = tx_ring->buffer_info[i].next_to_watch;
  683. eop_desc = IGBVF_TX_DESC_ADV(*tx_ring, eop);
  684. }
  685. tx_ring->next_to_clean = i;
  686. if (unlikely(count &&
  687. netif_carrier_ok(netdev) &&
  688. igbvf_desc_unused(tx_ring) >= IGBVF_TX_QUEUE_WAKE)) {
  689. /* Make sure that anybody stopping the queue after this
  690. * sees the new next_to_clean.
  691. */
  692. smp_mb();
  693. if (netif_queue_stopped(netdev) &&
  694. !(test_bit(__IGBVF_DOWN, &adapter->state))) {
  695. netif_wake_queue(netdev);
  696. ++adapter->restart_queue;
  697. }
  698. }
  699. if (adapter->detect_tx_hung) {
  700. /* Detect a transmit hang in hardware, this serializes the
  701. * check with the clearing of time_stamp and movement of i */
  702. adapter->detect_tx_hung = false;
  703. if (tx_ring->buffer_info[i].time_stamp &&
  704. time_after(jiffies, tx_ring->buffer_info[i].time_stamp +
  705. (adapter->tx_timeout_factor * HZ))
  706. && !(er32(STATUS) & E1000_STATUS_TXOFF)) {
  707. tx_desc = IGBVF_TX_DESC_ADV(*tx_ring, i);
  708. /* detected Tx unit hang */
  709. igbvf_print_tx_hang(adapter);
  710. netif_stop_queue(netdev);
  711. }
  712. }
  713. adapter->net_stats.tx_bytes += total_bytes;
  714. adapter->net_stats.tx_packets += total_packets;
  715. return (count < tx_ring->count);
  716. }
  717. static irqreturn_t igbvf_msix_other(int irq, void *data)
  718. {
  719. struct net_device *netdev = data;
  720. struct igbvf_adapter *adapter = netdev_priv(netdev);
  721. struct e1000_hw *hw = &adapter->hw;
  722. adapter->int_counter1++;
  723. netif_carrier_off(netdev);
  724. hw->mac.get_link_status = 1;
  725. if (!test_bit(__IGBVF_DOWN, &adapter->state))
  726. mod_timer(&adapter->watchdog_timer, jiffies + 1);
  727. ew32(EIMS, adapter->eims_other);
  728. return IRQ_HANDLED;
  729. }
  730. static irqreturn_t igbvf_intr_msix_tx(int irq, void *data)
  731. {
  732. struct net_device *netdev = data;
  733. struct igbvf_adapter *adapter = netdev_priv(netdev);
  734. struct e1000_hw *hw = &adapter->hw;
  735. struct igbvf_ring *tx_ring = adapter->tx_ring;
  736. adapter->total_tx_bytes = 0;
  737. adapter->total_tx_packets = 0;
  738. /* auto mask will automatically reenable the interrupt when we write
  739. * EICS */
  740. if (!igbvf_clean_tx_irq(tx_ring))
  741. /* Ring was not completely cleaned, so fire another interrupt */
  742. ew32(EICS, tx_ring->eims_value);
  743. else
  744. ew32(EIMS, tx_ring->eims_value);
  745. return IRQ_HANDLED;
  746. }
  747. static irqreturn_t igbvf_intr_msix_rx(int irq, void *data)
  748. {
  749. struct net_device *netdev = data;
  750. struct igbvf_adapter *adapter = netdev_priv(netdev);
  751. adapter->int_counter0++;
  752. /* Write the ITR value calculated at the end of the
  753. * previous interrupt.
  754. */
  755. if (adapter->rx_ring->set_itr) {
  756. writel(adapter->rx_ring->itr_val,
  757. adapter->hw.hw_addr + adapter->rx_ring->itr_register);
  758. adapter->rx_ring->set_itr = 0;
  759. }
  760. if (napi_schedule_prep(&adapter->rx_ring->napi)) {
  761. adapter->total_rx_bytes = 0;
  762. adapter->total_rx_packets = 0;
  763. __napi_schedule(&adapter->rx_ring->napi);
  764. }
  765. return IRQ_HANDLED;
  766. }
  767. #define IGBVF_NO_QUEUE -1
  768. static void igbvf_assign_vector(struct igbvf_adapter *adapter, int rx_queue,
  769. int tx_queue, int msix_vector)
  770. {
  771. struct e1000_hw *hw = &adapter->hw;
  772. u32 ivar, index;
  773. /* 82576 uses a table-based method for assigning vectors.
  774. Each queue has a single entry in the table to which we write
  775. a vector number along with a "valid" bit. Sadly, the layout
  776. of the table is somewhat counterintuitive. */
  777. if (rx_queue > IGBVF_NO_QUEUE) {
  778. index = (rx_queue >> 1);
  779. ivar = array_er32(IVAR0, index);
  780. if (rx_queue & 0x1) {
  781. /* vector goes into third byte of register */
  782. ivar = ivar & 0xFF00FFFF;
  783. ivar |= (msix_vector | E1000_IVAR_VALID) << 16;
  784. } else {
  785. /* vector goes into low byte of register */
  786. ivar = ivar & 0xFFFFFF00;
  787. ivar |= msix_vector | E1000_IVAR_VALID;
  788. }
  789. adapter->rx_ring[rx_queue].eims_value = 1 << msix_vector;
  790. array_ew32(IVAR0, index, ivar);
  791. }
  792. if (tx_queue > IGBVF_NO_QUEUE) {
  793. index = (tx_queue >> 1);
  794. ivar = array_er32(IVAR0, index);
  795. if (tx_queue & 0x1) {
  796. /* vector goes into high byte of register */
  797. ivar = ivar & 0x00FFFFFF;
  798. ivar |= (msix_vector | E1000_IVAR_VALID) << 24;
  799. } else {
  800. /* vector goes into second byte of register */
  801. ivar = ivar & 0xFFFF00FF;
  802. ivar |= (msix_vector | E1000_IVAR_VALID) << 8;
  803. }
  804. adapter->tx_ring[tx_queue].eims_value = 1 << msix_vector;
  805. array_ew32(IVAR0, index, ivar);
  806. }
  807. }
  808. /**
  809. * igbvf_configure_msix - Configure MSI-X hardware
  810. *
  811. * igbvf_configure_msix sets up the hardware to properly
  812. * generate MSI-X interrupts.
  813. **/
  814. static void igbvf_configure_msix(struct igbvf_adapter *adapter)
  815. {
  816. u32 tmp;
  817. struct e1000_hw *hw = &adapter->hw;
  818. struct igbvf_ring *tx_ring = adapter->tx_ring;
  819. struct igbvf_ring *rx_ring = adapter->rx_ring;
  820. int vector = 0;
  821. adapter->eims_enable_mask = 0;
  822. igbvf_assign_vector(adapter, IGBVF_NO_QUEUE, 0, vector++);
  823. adapter->eims_enable_mask |= tx_ring->eims_value;
  824. if (tx_ring->itr_val)
  825. writel(tx_ring->itr_val,
  826. hw->hw_addr + tx_ring->itr_register);
  827. else
  828. writel(1952, hw->hw_addr + tx_ring->itr_register);
  829. igbvf_assign_vector(adapter, 0, IGBVF_NO_QUEUE, vector++);
  830. adapter->eims_enable_mask |= rx_ring->eims_value;
  831. if (rx_ring->itr_val)
  832. writel(rx_ring->itr_val,
  833. hw->hw_addr + rx_ring->itr_register);
  834. else
  835. writel(1952, hw->hw_addr + rx_ring->itr_register);
  836. /* set vector for other causes, i.e. link changes */
  837. tmp = (vector++ | E1000_IVAR_VALID);
  838. ew32(IVAR_MISC, tmp);
  839. adapter->eims_enable_mask = (1 << (vector)) - 1;
  840. adapter->eims_other = 1 << (vector - 1);
  841. e1e_flush();
  842. }
  843. static void igbvf_reset_interrupt_capability(struct igbvf_adapter *adapter)
  844. {
  845. if (adapter->msix_entries) {
  846. pci_disable_msix(adapter->pdev);
  847. kfree(adapter->msix_entries);
  848. adapter->msix_entries = NULL;
  849. }
  850. }
  851. /**
  852. * igbvf_set_interrupt_capability - set MSI or MSI-X if supported
  853. *
  854. * Attempt to configure interrupts using the best available
  855. * capabilities of the hardware and kernel.
  856. **/
  857. static void igbvf_set_interrupt_capability(struct igbvf_adapter *adapter)
  858. {
  859. int err = -ENOMEM;
  860. int i;
  861. /* we allocate 3 vectors, 1 for tx, 1 for rx, one for pf messages */
  862. adapter->msix_entries = kcalloc(3, sizeof(struct msix_entry),
  863. GFP_KERNEL);
  864. if (adapter->msix_entries) {
  865. for (i = 0; i < 3; i++)
  866. adapter->msix_entries[i].entry = i;
  867. err = pci_enable_msix(adapter->pdev,
  868. adapter->msix_entries, 3);
  869. }
  870. if (err) {
  871. /* MSI-X failed */
  872. dev_err(&adapter->pdev->dev,
  873. "Failed to initialize MSI-X interrupts.\n");
  874. igbvf_reset_interrupt_capability(adapter);
  875. }
  876. }
  877. /**
  878. * igbvf_request_msix - Initialize MSI-X interrupts
  879. *
  880. * igbvf_request_msix allocates MSI-X vectors and requests interrupts from the
  881. * kernel.
  882. **/
  883. static int igbvf_request_msix(struct igbvf_adapter *adapter)
  884. {
  885. struct net_device *netdev = adapter->netdev;
  886. int err = 0, vector = 0;
  887. if (strlen(netdev->name) < (IFNAMSIZ - 5)) {
  888. sprintf(adapter->tx_ring->name, "%s-tx-0", netdev->name);
  889. sprintf(adapter->rx_ring->name, "%s-rx-0", netdev->name);
  890. } else {
  891. memcpy(adapter->tx_ring->name, netdev->name, IFNAMSIZ);
  892. memcpy(adapter->rx_ring->name, netdev->name, IFNAMSIZ);
  893. }
  894. err = request_irq(adapter->msix_entries[vector].vector,
  895. &igbvf_intr_msix_tx, 0, adapter->tx_ring->name,
  896. netdev);
  897. if (err)
  898. goto out;
  899. adapter->tx_ring->itr_register = E1000_EITR(vector);
  900. adapter->tx_ring->itr_val = 1952;
  901. vector++;
  902. err = request_irq(adapter->msix_entries[vector].vector,
  903. &igbvf_intr_msix_rx, 0, adapter->rx_ring->name,
  904. netdev);
  905. if (err)
  906. goto out;
  907. adapter->rx_ring->itr_register = E1000_EITR(vector);
  908. adapter->rx_ring->itr_val = 1952;
  909. vector++;
  910. err = request_irq(adapter->msix_entries[vector].vector,
  911. &igbvf_msix_other, 0, netdev->name, netdev);
  912. if (err)
  913. goto out;
  914. igbvf_configure_msix(adapter);
  915. return 0;
  916. out:
  917. return err;
  918. }
  919. /**
  920. * igbvf_alloc_queues - Allocate memory for all rings
  921. * @adapter: board private structure to initialize
  922. **/
  923. static int __devinit igbvf_alloc_queues(struct igbvf_adapter *adapter)
  924. {
  925. struct net_device *netdev = adapter->netdev;
  926. adapter->tx_ring = kzalloc(sizeof(struct igbvf_ring), GFP_KERNEL);
  927. if (!adapter->tx_ring)
  928. return -ENOMEM;
  929. adapter->rx_ring = kzalloc(sizeof(struct igbvf_ring), GFP_KERNEL);
  930. if (!adapter->rx_ring) {
  931. kfree(adapter->tx_ring);
  932. return -ENOMEM;
  933. }
  934. netif_napi_add(netdev, &adapter->rx_ring->napi, igbvf_poll, 64);
  935. return 0;
  936. }
  937. /**
  938. * igbvf_request_irq - initialize interrupts
  939. *
  940. * Attempts to configure interrupts using the best available
  941. * capabilities of the hardware and kernel.
  942. **/
  943. static int igbvf_request_irq(struct igbvf_adapter *adapter)
  944. {
  945. int err = -1;
  946. /* igbvf supports msi-x only */
  947. if (adapter->msix_entries)
  948. err = igbvf_request_msix(adapter);
  949. if (!err)
  950. return err;
  951. dev_err(&adapter->pdev->dev,
  952. "Unable to allocate interrupt, Error: %d\n", err);
  953. return err;
  954. }
  955. static void igbvf_free_irq(struct igbvf_adapter *adapter)
  956. {
  957. struct net_device *netdev = adapter->netdev;
  958. int vector;
  959. if (adapter->msix_entries) {
  960. for (vector = 0; vector < 3; vector++)
  961. free_irq(adapter->msix_entries[vector].vector, netdev);
  962. }
  963. }
  964. /**
  965. * igbvf_irq_disable - Mask off interrupt generation on the NIC
  966. **/
  967. static void igbvf_irq_disable(struct igbvf_adapter *adapter)
  968. {
  969. struct e1000_hw *hw = &adapter->hw;
  970. ew32(EIMC, ~0);
  971. if (adapter->msix_entries)
  972. ew32(EIAC, 0);
  973. }
  974. /**
  975. * igbvf_irq_enable - Enable default interrupt generation settings
  976. **/
  977. static void igbvf_irq_enable(struct igbvf_adapter *adapter)
  978. {
  979. struct e1000_hw *hw = &adapter->hw;
  980. ew32(EIAC, adapter->eims_enable_mask);
  981. ew32(EIAM, adapter->eims_enable_mask);
  982. ew32(EIMS, adapter->eims_enable_mask);
  983. }
  984. /**
  985. * igbvf_poll - NAPI Rx polling callback
  986. * @napi: struct associated with this polling callback
  987. * @budget: amount of packets driver is allowed to process this poll
  988. **/
  989. static int igbvf_poll(struct napi_struct *napi, int budget)
  990. {
  991. struct igbvf_ring *rx_ring = container_of(napi, struct igbvf_ring, napi);
  992. struct igbvf_adapter *adapter = rx_ring->adapter;
  993. struct e1000_hw *hw = &adapter->hw;
  994. int work_done = 0;
  995. igbvf_clean_rx_irq(adapter, &work_done, budget);
  996. /* If not enough Rx work done, exit the polling mode */
  997. if (work_done < budget) {
  998. napi_complete(napi);
  999. if (adapter->itr_setting & 3)
  1000. igbvf_set_itr(adapter);
  1001. if (!test_bit(__IGBVF_DOWN, &adapter->state))
  1002. ew32(EIMS, adapter->rx_ring->eims_value);
  1003. }
  1004. return work_done;
  1005. }
  1006. /**
  1007. * igbvf_set_rlpml - set receive large packet maximum length
  1008. * @adapter: board private structure
  1009. *
  1010. * Configure the maximum size of packets that will be received
  1011. */
  1012. static void igbvf_set_rlpml(struct igbvf_adapter *adapter)
  1013. {
  1014. int max_frame_size = adapter->max_frame_size;
  1015. struct e1000_hw *hw = &adapter->hw;
  1016. if (adapter->vlgrp)
  1017. max_frame_size += VLAN_TAG_SIZE;
  1018. e1000_rlpml_set_vf(hw, max_frame_size);
  1019. }
  1020. static void igbvf_vlan_rx_add_vid(struct net_device *netdev, u16 vid)
  1021. {
  1022. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1023. struct e1000_hw *hw = &adapter->hw;
  1024. if (hw->mac.ops.set_vfta(hw, vid, true))
  1025. dev_err(&adapter->pdev->dev, "Failed to add vlan id %d\n", vid);
  1026. }
  1027. static void igbvf_vlan_rx_kill_vid(struct net_device *netdev, u16 vid)
  1028. {
  1029. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1030. struct e1000_hw *hw = &adapter->hw;
  1031. igbvf_irq_disable(adapter);
  1032. vlan_group_set_device(adapter->vlgrp, vid, NULL);
  1033. if (!test_bit(__IGBVF_DOWN, &adapter->state))
  1034. igbvf_irq_enable(adapter);
  1035. if (hw->mac.ops.set_vfta(hw, vid, false))
  1036. dev_err(&adapter->pdev->dev,
  1037. "Failed to remove vlan id %d\n", vid);
  1038. }
  1039. static void igbvf_vlan_rx_register(struct net_device *netdev,
  1040. struct vlan_group *grp)
  1041. {
  1042. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1043. adapter->vlgrp = grp;
  1044. }
  1045. static void igbvf_restore_vlan(struct igbvf_adapter *adapter)
  1046. {
  1047. u16 vid;
  1048. if (!adapter->vlgrp)
  1049. return;
  1050. for (vid = 0; vid < VLAN_GROUP_ARRAY_LEN; vid++) {
  1051. if (!vlan_group_get_device(adapter->vlgrp, vid))
  1052. continue;
  1053. igbvf_vlan_rx_add_vid(adapter->netdev, vid);
  1054. }
  1055. igbvf_set_rlpml(adapter);
  1056. }
  1057. /**
  1058. * igbvf_configure_tx - Configure Transmit Unit after Reset
  1059. * @adapter: board private structure
  1060. *
  1061. * Configure the Tx unit of the MAC after a reset.
  1062. **/
  1063. static void igbvf_configure_tx(struct igbvf_adapter *adapter)
  1064. {
  1065. struct e1000_hw *hw = &adapter->hw;
  1066. struct igbvf_ring *tx_ring = adapter->tx_ring;
  1067. u64 tdba;
  1068. u32 txdctl, dca_txctrl;
  1069. /* disable transmits */
  1070. txdctl = er32(TXDCTL(0));
  1071. ew32(TXDCTL(0), txdctl & ~E1000_TXDCTL_QUEUE_ENABLE);
  1072. msleep(10);
  1073. /* Setup the HW Tx Head and Tail descriptor pointers */
  1074. ew32(TDLEN(0), tx_ring->count * sizeof(union e1000_adv_tx_desc));
  1075. tdba = tx_ring->dma;
  1076. ew32(TDBAL(0), (tdba & DMA_32BIT_MASK));
  1077. ew32(TDBAH(0), (tdba >> 32));
  1078. ew32(TDH(0), 0);
  1079. ew32(TDT(0), 0);
  1080. tx_ring->head = E1000_TDH(0);
  1081. tx_ring->tail = E1000_TDT(0);
  1082. /* Turn off Relaxed Ordering on head write-backs. The writebacks
  1083. * MUST be delivered in order or it will completely screw up
  1084. * our bookeeping.
  1085. */
  1086. dca_txctrl = er32(DCA_TXCTRL(0));
  1087. dca_txctrl &= ~E1000_DCA_TXCTRL_TX_WB_RO_EN;
  1088. ew32(DCA_TXCTRL(0), dca_txctrl);
  1089. /* enable transmits */
  1090. txdctl |= E1000_TXDCTL_QUEUE_ENABLE;
  1091. ew32(TXDCTL(0), txdctl);
  1092. /* Setup Transmit Descriptor Settings for eop descriptor */
  1093. adapter->txd_cmd = E1000_ADVTXD_DCMD_EOP | E1000_ADVTXD_DCMD_IFCS;
  1094. /* enable Report Status bit */
  1095. adapter->txd_cmd |= E1000_ADVTXD_DCMD_RS;
  1096. adapter->tx_queue_len = adapter->netdev->tx_queue_len;
  1097. }
  1098. /**
  1099. * igbvf_setup_srrctl - configure the receive control registers
  1100. * @adapter: Board private structure
  1101. **/
  1102. static void igbvf_setup_srrctl(struct igbvf_adapter *adapter)
  1103. {
  1104. struct e1000_hw *hw = &adapter->hw;
  1105. u32 srrctl = 0;
  1106. srrctl &= ~(E1000_SRRCTL_DESCTYPE_MASK |
  1107. E1000_SRRCTL_BSIZEHDR_MASK |
  1108. E1000_SRRCTL_BSIZEPKT_MASK);
  1109. /* Enable queue drop to avoid head of line blocking */
  1110. srrctl |= E1000_SRRCTL_DROP_EN;
  1111. /* Setup buffer sizes */
  1112. srrctl |= ALIGN(adapter->rx_buffer_len, 1024) >>
  1113. E1000_SRRCTL_BSIZEPKT_SHIFT;
  1114. if (adapter->rx_buffer_len < 2048) {
  1115. adapter->rx_ps_hdr_size = 0;
  1116. srrctl |= E1000_SRRCTL_DESCTYPE_ADV_ONEBUF;
  1117. } else {
  1118. adapter->rx_ps_hdr_size = 128;
  1119. srrctl |= adapter->rx_ps_hdr_size <<
  1120. E1000_SRRCTL_BSIZEHDRSIZE_SHIFT;
  1121. srrctl |= E1000_SRRCTL_DESCTYPE_HDR_SPLIT_ALWAYS;
  1122. }
  1123. ew32(SRRCTL(0), srrctl);
  1124. }
  1125. /**
  1126. * igbvf_configure_rx - Configure Receive Unit after Reset
  1127. * @adapter: board private structure
  1128. *
  1129. * Configure the Rx unit of the MAC after a reset.
  1130. **/
  1131. static void igbvf_configure_rx(struct igbvf_adapter *adapter)
  1132. {
  1133. struct e1000_hw *hw = &adapter->hw;
  1134. struct igbvf_ring *rx_ring = adapter->rx_ring;
  1135. u64 rdba;
  1136. u32 rdlen, rxdctl;
  1137. /* disable receives */
  1138. rxdctl = er32(RXDCTL(0));
  1139. ew32(RXDCTL(0), rxdctl & ~E1000_RXDCTL_QUEUE_ENABLE);
  1140. msleep(10);
  1141. rdlen = rx_ring->count * sizeof(union e1000_adv_rx_desc);
  1142. /*
  1143. * Setup the HW Rx Head and Tail Descriptor Pointers and
  1144. * the Base and Length of the Rx Descriptor Ring
  1145. */
  1146. rdba = rx_ring->dma;
  1147. ew32(RDBAL(0), (rdba & DMA_32BIT_MASK));
  1148. ew32(RDBAH(0), (rdba >> 32));
  1149. ew32(RDLEN(0), rx_ring->count * sizeof(union e1000_adv_rx_desc));
  1150. rx_ring->head = E1000_RDH(0);
  1151. rx_ring->tail = E1000_RDT(0);
  1152. ew32(RDH(0), 0);
  1153. ew32(RDT(0), 0);
  1154. rxdctl |= E1000_RXDCTL_QUEUE_ENABLE;
  1155. rxdctl &= 0xFFF00000;
  1156. rxdctl |= IGBVF_RX_PTHRESH;
  1157. rxdctl |= IGBVF_RX_HTHRESH << 8;
  1158. rxdctl |= IGBVF_RX_WTHRESH << 16;
  1159. igbvf_set_rlpml(adapter);
  1160. /* enable receives */
  1161. ew32(RXDCTL(0), rxdctl);
  1162. }
  1163. /**
  1164. * igbvf_set_multi - Multicast and Promiscuous mode set
  1165. * @netdev: network interface device structure
  1166. *
  1167. * The set_multi entry point is called whenever the multicast address
  1168. * list or the network interface flags are updated. This routine is
  1169. * responsible for configuring the hardware for proper multicast,
  1170. * promiscuous mode, and all-multi behavior.
  1171. **/
  1172. static void igbvf_set_multi(struct net_device *netdev)
  1173. {
  1174. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1175. struct e1000_hw *hw = &adapter->hw;
  1176. struct dev_mc_list *mc_ptr;
  1177. u8 *mta_list = NULL;
  1178. int i;
  1179. if (netdev->mc_count) {
  1180. mta_list = kmalloc(netdev->mc_count * 6, GFP_ATOMIC);
  1181. if (!mta_list) {
  1182. dev_err(&adapter->pdev->dev,
  1183. "failed to allocate multicast filter list\n");
  1184. return;
  1185. }
  1186. }
  1187. /* prepare a packed array of only addresses. */
  1188. mc_ptr = netdev->mc_list;
  1189. for (i = 0; i < netdev->mc_count; i++) {
  1190. if (!mc_ptr)
  1191. break;
  1192. memcpy(mta_list + (i*ETH_ALEN), mc_ptr->dmi_addr,
  1193. ETH_ALEN);
  1194. mc_ptr = mc_ptr->next;
  1195. }
  1196. hw->mac.ops.update_mc_addr_list(hw, mta_list, i, 0, 0);
  1197. kfree(mta_list);
  1198. }
  1199. /**
  1200. * igbvf_configure - configure the hardware for Rx and Tx
  1201. * @adapter: private board structure
  1202. **/
  1203. static void igbvf_configure(struct igbvf_adapter *adapter)
  1204. {
  1205. igbvf_set_multi(adapter->netdev);
  1206. igbvf_restore_vlan(adapter);
  1207. igbvf_configure_tx(adapter);
  1208. igbvf_setup_srrctl(adapter);
  1209. igbvf_configure_rx(adapter);
  1210. igbvf_alloc_rx_buffers(adapter->rx_ring,
  1211. igbvf_desc_unused(adapter->rx_ring));
  1212. }
  1213. /* igbvf_reset - bring the hardware into a known good state
  1214. *
  1215. * This function boots the hardware and enables some settings that
  1216. * require a configuration cycle of the hardware - those cannot be
  1217. * set/changed during runtime. After reset the device needs to be
  1218. * properly configured for Rx, Tx etc.
  1219. */
  1220. static void igbvf_reset(struct igbvf_adapter *adapter)
  1221. {
  1222. struct e1000_mac_info *mac = &adapter->hw.mac;
  1223. struct net_device *netdev = adapter->netdev;
  1224. struct e1000_hw *hw = &adapter->hw;
  1225. /* Allow time for pending master requests to run */
  1226. if (mac->ops.reset_hw(hw))
  1227. dev_err(&adapter->pdev->dev, "PF still resetting\n");
  1228. mac->ops.init_hw(hw);
  1229. if (is_valid_ether_addr(adapter->hw.mac.addr)) {
  1230. memcpy(netdev->dev_addr, adapter->hw.mac.addr,
  1231. netdev->addr_len);
  1232. memcpy(netdev->perm_addr, adapter->hw.mac.addr,
  1233. netdev->addr_len);
  1234. }
  1235. }
  1236. int igbvf_up(struct igbvf_adapter *adapter)
  1237. {
  1238. struct e1000_hw *hw = &adapter->hw;
  1239. /* hardware has been reset, we need to reload some things */
  1240. igbvf_configure(adapter);
  1241. clear_bit(__IGBVF_DOWN, &adapter->state);
  1242. napi_enable(&adapter->rx_ring->napi);
  1243. if (adapter->msix_entries)
  1244. igbvf_configure_msix(adapter);
  1245. /* Clear any pending interrupts. */
  1246. er32(EICR);
  1247. igbvf_irq_enable(adapter);
  1248. /* start the watchdog */
  1249. hw->mac.get_link_status = 1;
  1250. mod_timer(&adapter->watchdog_timer, jiffies + 1);
  1251. return 0;
  1252. }
  1253. void igbvf_down(struct igbvf_adapter *adapter)
  1254. {
  1255. struct net_device *netdev = adapter->netdev;
  1256. struct e1000_hw *hw = &adapter->hw;
  1257. u32 rxdctl, txdctl;
  1258. /*
  1259. * signal that we're down so the interrupt handler does not
  1260. * reschedule our watchdog timer
  1261. */
  1262. set_bit(__IGBVF_DOWN, &adapter->state);
  1263. /* disable receives in the hardware */
  1264. rxdctl = er32(RXDCTL(0));
  1265. ew32(RXDCTL(0), rxdctl & ~E1000_RXDCTL_QUEUE_ENABLE);
  1266. netif_stop_queue(netdev);
  1267. /* disable transmits in the hardware */
  1268. txdctl = er32(TXDCTL(0));
  1269. ew32(TXDCTL(0), txdctl & ~E1000_TXDCTL_QUEUE_ENABLE);
  1270. /* flush both disables and wait for them to finish */
  1271. e1e_flush();
  1272. msleep(10);
  1273. napi_disable(&adapter->rx_ring->napi);
  1274. igbvf_irq_disable(adapter);
  1275. del_timer_sync(&adapter->watchdog_timer);
  1276. netdev->tx_queue_len = adapter->tx_queue_len;
  1277. netif_carrier_off(netdev);
  1278. /* record the stats before reset*/
  1279. igbvf_update_stats(adapter);
  1280. adapter->link_speed = 0;
  1281. adapter->link_duplex = 0;
  1282. igbvf_reset(adapter);
  1283. igbvf_clean_tx_ring(adapter->tx_ring);
  1284. igbvf_clean_rx_ring(adapter->rx_ring);
  1285. }
  1286. void igbvf_reinit_locked(struct igbvf_adapter *adapter)
  1287. {
  1288. might_sleep();
  1289. while (test_and_set_bit(__IGBVF_RESETTING, &adapter->state))
  1290. msleep(1);
  1291. igbvf_down(adapter);
  1292. igbvf_up(adapter);
  1293. clear_bit(__IGBVF_RESETTING, &adapter->state);
  1294. }
  1295. /**
  1296. * igbvf_sw_init - Initialize general software structures (struct igbvf_adapter)
  1297. * @adapter: board private structure to initialize
  1298. *
  1299. * igbvf_sw_init initializes the Adapter private data structure.
  1300. * Fields are initialized based on PCI device information and
  1301. * OS network device settings (MTU size).
  1302. **/
  1303. static int __devinit igbvf_sw_init(struct igbvf_adapter *adapter)
  1304. {
  1305. struct net_device *netdev = adapter->netdev;
  1306. s32 rc;
  1307. adapter->rx_buffer_len = ETH_FRAME_LEN + VLAN_HLEN + ETH_FCS_LEN;
  1308. adapter->rx_ps_hdr_size = 0;
  1309. adapter->max_frame_size = netdev->mtu + ETH_HLEN + ETH_FCS_LEN;
  1310. adapter->min_frame_size = ETH_ZLEN + ETH_FCS_LEN;
  1311. adapter->tx_int_delay = 8;
  1312. adapter->tx_abs_int_delay = 32;
  1313. adapter->rx_int_delay = 0;
  1314. adapter->rx_abs_int_delay = 8;
  1315. adapter->itr_setting = 3;
  1316. adapter->itr = 20000;
  1317. /* Set various function pointers */
  1318. adapter->ei->init_ops(&adapter->hw);
  1319. rc = adapter->hw.mac.ops.init_params(&adapter->hw);
  1320. if (rc)
  1321. return rc;
  1322. rc = adapter->hw.mbx.ops.init_params(&adapter->hw);
  1323. if (rc)
  1324. return rc;
  1325. igbvf_set_interrupt_capability(adapter);
  1326. if (igbvf_alloc_queues(adapter))
  1327. return -ENOMEM;
  1328. spin_lock_init(&adapter->tx_queue_lock);
  1329. /* Explicitly disable IRQ since the NIC can be in any state. */
  1330. igbvf_irq_disable(adapter);
  1331. spin_lock_init(&adapter->stats_lock);
  1332. set_bit(__IGBVF_DOWN, &adapter->state);
  1333. return 0;
  1334. }
  1335. static void igbvf_initialize_last_counter_stats(struct igbvf_adapter *adapter)
  1336. {
  1337. struct e1000_hw *hw = &adapter->hw;
  1338. adapter->stats.last_gprc = er32(VFGPRC);
  1339. adapter->stats.last_gorc = er32(VFGORC);
  1340. adapter->stats.last_gptc = er32(VFGPTC);
  1341. adapter->stats.last_gotc = er32(VFGOTC);
  1342. adapter->stats.last_mprc = er32(VFMPRC);
  1343. adapter->stats.last_gotlbc = er32(VFGOTLBC);
  1344. adapter->stats.last_gptlbc = er32(VFGPTLBC);
  1345. adapter->stats.last_gorlbc = er32(VFGORLBC);
  1346. adapter->stats.last_gprlbc = er32(VFGPRLBC);
  1347. adapter->stats.base_gprc = er32(VFGPRC);
  1348. adapter->stats.base_gorc = er32(VFGORC);
  1349. adapter->stats.base_gptc = er32(VFGPTC);
  1350. adapter->stats.base_gotc = er32(VFGOTC);
  1351. adapter->stats.base_mprc = er32(VFMPRC);
  1352. adapter->stats.base_gotlbc = er32(VFGOTLBC);
  1353. adapter->stats.base_gptlbc = er32(VFGPTLBC);
  1354. adapter->stats.base_gorlbc = er32(VFGORLBC);
  1355. adapter->stats.base_gprlbc = er32(VFGPRLBC);
  1356. }
  1357. /**
  1358. * igbvf_open - Called when a network interface is made active
  1359. * @netdev: network interface device structure
  1360. *
  1361. * Returns 0 on success, negative value on failure
  1362. *
  1363. * The open entry point is called when a network interface is made
  1364. * active by the system (IFF_UP). At this point all resources needed
  1365. * for transmit and receive operations are allocated, the interrupt
  1366. * handler is registered with the OS, the watchdog timer is started,
  1367. * and the stack is notified that the interface is ready.
  1368. **/
  1369. static int igbvf_open(struct net_device *netdev)
  1370. {
  1371. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1372. struct e1000_hw *hw = &adapter->hw;
  1373. int err;
  1374. /* disallow open during test */
  1375. if (test_bit(__IGBVF_TESTING, &adapter->state))
  1376. return -EBUSY;
  1377. /* allocate transmit descriptors */
  1378. err = igbvf_setup_tx_resources(adapter, adapter->tx_ring);
  1379. if (err)
  1380. goto err_setup_tx;
  1381. /* allocate receive descriptors */
  1382. err = igbvf_setup_rx_resources(adapter, adapter->rx_ring);
  1383. if (err)
  1384. goto err_setup_rx;
  1385. /*
  1386. * before we allocate an interrupt, we must be ready to handle it.
  1387. * Setting DEBUG_SHIRQ in the kernel makes it fire an interrupt
  1388. * as soon as we call pci_request_irq, so we have to setup our
  1389. * clean_rx handler before we do so.
  1390. */
  1391. igbvf_configure(adapter);
  1392. err = igbvf_request_irq(adapter);
  1393. if (err)
  1394. goto err_req_irq;
  1395. /* From here on the code is the same as igbvf_up() */
  1396. clear_bit(__IGBVF_DOWN, &adapter->state);
  1397. napi_enable(&adapter->rx_ring->napi);
  1398. /* clear any pending interrupts */
  1399. er32(EICR);
  1400. igbvf_irq_enable(adapter);
  1401. /* start the watchdog */
  1402. hw->mac.get_link_status = 1;
  1403. mod_timer(&adapter->watchdog_timer, jiffies + 1);
  1404. return 0;
  1405. err_req_irq:
  1406. igbvf_free_rx_resources(adapter->rx_ring);
  1407. err_setup_rx:
  1408. igbvf_free_tx_resources(adapter->tx_ring);
  1409. err_setup_tx:
  1410. igbvf_reset(adapter);
  1411. return err;
  1412. }
  1413. /**
  1414. * igbvf_close - Disables a network interface
  1415. * @netdev: network interface device structure
  1416. *
  1417. * Returns 0, this is not allowed to fail
  1418. *
  1419. * The close entry point is called when an interface is de-activated
  1420. * by the OS. The hardware is still under the drivers control, but
  1421. * needs to be disabled. A global MAC reset is issued to stop the
  1422. * hardware, and all transmit and receive resources are freed.
  1423. **/
  1424. static int igbvf_close(struct net_device *netdev)
  1425. {
  1426. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1427. WARN_ON(test_bit(__IGBVF_RESETTING, &adapter->state));
  1428. igbvf_down(adapter);
  1429. igbvf_free_irq(adapter);
  1430. igbvf_free_tx_resources(adapter->tx_ring);
  1431. igbvf_free_rx_resources(adapter->rx_ring);
  1432. return 0;
  1433. }
  1434. /**
  1435. * igbvf_set_mac - Change the Ethernet Address of the NIC
  1436. * @netdev: network interface device structure
  1437. * @p: pointer to an address structure
  1438. *
  1439. * Returns 0 on success, negative on failure
  1440. **/
  1441. static int igbvf_set_mac(struct net_device *netdev, void *p)
  1442. {
  1443. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1444. struct e1000_hw *hw = &adapter->hw;
  1445. struct sockaddr *addr = p;
  1446. if (!is_valid_ether_addr(addr->sa_data))
  1447. return -EADDRNOTAVAIL;
  1448. memcpy(hw->mac.addr, addr->sa_data, netdev->addr_len);
  1449. hw->mac.ops.rar_set(hw, hw->mac.addr, 0);
  1450. if (memcmp(addr->sa_data, hw->mac.addr, 6))
  1451. return -EADDRNOTAVAIL;
  1452. memcpy(netdev->dev_addr, addr->sa_data, netdev->addr_len);
  1453. return 0;
  1454. }
  1455. #define UPDATE_VF_COUNTER(reg, name) \
  1456. { \
  1457. u32 current_counter = er32(reg); \
  1458. if (current_counter < adapter->stats.last_##name) \
  1459. adapter->stats.name += 0x100000000LL; \
  1460. adapter->stats.last_##name = current_counter; \
  1461. adapter->stats.name &= 0xFFFFFFFF00000000LL; \
  1462. adapter->stats.name |= current_counter; \
  1463. }
  1464. /**
  1465. * igbvf_update_stats - Update the board statistics counters
  1466. * @adapter: board private structure
  1467. **/
  1468. void igbvf_update_stats(struct igbvf_adapter *adapter)
  1469. {
  1470. struct e1000_hw *hw = &adapter->hw;
  1471. struct pci_dev *pdev = adapter->pdev;
  1472. /*
  1473. * Prevent stats update while adapter is being reset, link is down
  1474. * or if the pci connection is down.
  1475. */
  1476. if (adapter->link_speed == 0)
  1477. return;
  1478. if (test_bit(__IGBVF_RESETTING, &adapter->state))
  1479. return;
  1480. if (pci_channel_offline(pdev))
  1481. return;
  1482. UPDATE_VF_COUNTER(VFGPRC, gprc);
  1483. UPDATE_VF_COUNTER(VFGORC, gorc);
  1484. UPDATE_VF_COUNTER(VFGPTC, gptc);
  1485. UPDATE_VF_COUNTER(VFGOTC, gotc);
  1486. UPDATE_VF_COUNTER(VFMPRC, mprc);
  1487. UPDATE_VF_COUNTER(VFGOTLBC, gotlbc);
  1488. UPDATE_VF_COUNTER(VFGPTLBC, gptlbc);
  1489. UPDATE_VF_COUNTER(VFGORLBC, gorlbc);
  1490. UPDATE_VF_COUNTER(VFGPRLBC, gprlbc);
  1491. /* Fill out the OS statistics structure */
  1492. adapter->net_stats.multicast = adapter->stats.mprc;
  1493. }
  1494. static void igbvf_print_link_info(struct igbvf_adapter *adapter)
  1495. {
  1496. dev_info(&adapter->pdev->dev, "Link is Up %d Mbps %s\n",
  1497. adapter->link_speed,
  1498. ((adapter->link_duplex == FULL_DUPLEX) ?
  1499. "Full Duplex" : "Half Duplex"));
  1500. }
  1501. static bool igbvf_has_link(struct igbvf_adapter *adapter)
  1502. {
  1503. struct e1000_hw *hw = &adapter->hw;
  1504. s32 ret_val = E1000_SUCCESS;
  1505. bool link_active;
  1506. ret_val = hw->mac.ops.check_for_link(hw);
  1507. link_active = !hw->mac.get_link_status;
  1508. /* if check for link returns error we will need to reset */
  1509. if (ret_val)
  1510. schedule_work(&adapter->reset_task);
  1511. return link_active;
  1512. }
  1513. /**
  1514. * igbvf_watchdog - Timer Call-back
  1515. * @data: pointer to adapter cast into an unsigned long
  1516. **/
  1517. static void igbvf_watchdog(unsigned long data)
  1518. {
  1519. struct igbvf_adapter *adapter = (struct igbvf_adapter *) data;
  1520. /* Do the rest outside of interrupt context */
  1521. schedule_work(&adapter->watchdog_task);
  1522. }
  1523. static void igbvf_watchdog_task(struct work_struct *work)
  1524. {
  1525. struct igbvf_adapter *adapter = container_of(work,
  1526. struct igbvf_adapter,
  1527. watchdog_task);
  1528. struct net_device *netdev = adapter->netdev;
  1529. struct e1000_mac_info *mac = &adapter->hw.mac;
  1530. struct igbvf_ring *tx_ring = adapter->tx_ring;
  1531. struct e1000_hw *hw = &adapter->hw;
  1532. u32 link;
  1533. int tx_pending = 0;
  1534. link = igbvf_has_link(adapter);
  1535. if (link) {
  1536. if (!netif_carrier_ok(netdev)) {
  1537. bool txb2b = 1;
  1538. mac->ops.get_link_up_info(&adapter->hw,
  1539. &adapter->link_speed,
  1540. &adapter->link_duplex);
  1541. igbvf_print_link_info(adapter);
  1542. /*
  1543. * tweak tx_queue_len according to speed/duplex
  1544. * and adjust the timeout factor
  1545. */
  1546. netdev->tx_queue_len = adapter->tx_queue_len;
  1547. adapter->tx_timeout_factor = 1;
  1548. switch (adapter->link_speed) {
  1549. case SPEED_10:
  1550. txb2b = 0;
  1551. netdev->tx_queue_len = 10;
  1552. adapter->tx_timeout_factor = 16;
  1553. break;
  1554. case SPEED_100:
  1555. txb2b = 0;
  1556. netdev->tx_queue_len = 100;
  1557. /* maybe add some timeout factor ? */
  1558. break;
  1559. }
  1560. netif_carrier_on(netdev);
  1561. netif_wake_queue(netdev);
  1562. }
  1563. } else {
  1564. if (netif_carrier_ok(netdev)) {
  1565. adapter->link_speed = 0;
  1566. adapter->link_duplex = 0;
  1567. dev_info(&adapter->pdev->dev, "Link is Down\n");
  1568. netif_carrier_off(netdev);
  1569. netif_stop_queue(netdev);
  1570. }
  1571. }
  1572. if (netif_carrier_ok(netdev)) {
  1573. igbvf_update_stats(adapter);
  1574. } else {
  1575. tx_pending = (igbvf_desc_unused(tx_ring) + 1 <
  1576. tx_ring->count);
  1577. if (tx_pending) {
  1578. /*
  1579. * We've lost link, so the controller stops DMA,
  1580. * but we've got queued Tx work that's never going
  1581. * to get done, so reset controller to flush Tx.
  1582. * (Do the reset outside of interrupt context).
  1583. */
  1584. adapter->tx_timeout_count++;
  1585. schedule_work(&adapter->reset_task);
  1586. }
  1587. }
  1588. /* Cause software interrupt to ensure Rx ring is cleaned */
  1589. ew32(EICS, adapter->rx_ring->eims_value);
  1590. /* Force detection of hung controller every watchdog period */
  1591. adapter->detect_tx_hung = 1;
  1592. /* Reset the timer */
  1593. if (!test_bit(__IGBVF_DOWN, &adapter->state))
  1594. mod_timer(&adapter->watchdog_timer,
  1595. round_jiffies(jiffies + (2 * HZ)));
  1596. }
  1597. #define IGBVF_TX_FLAGS_CSUM 0x00000001
  1598. #define IGBVF_TX_FLAGS_VLAN 0x00000002
  1599. #define IGBVF_TX_FLAGS_TSO 0x00000004
  1600. #define IGBVF_TX_FLAGS_IPV4 0x00000008
  1601. #define IGBVF_TX_FLAGS_VLAN_MASK 0xffff0000
  1602. #define IGBVF_TX_FLAGS_VLAN_SHIFT 16
  1603. static int igbvf_tso(struct igbvf_adapter *adapter,
  1604. struct igbvf_ring *tx_ring,
  1605. struct sk_buff *skb, u32 tx_flags, u8 *hdr_len)
  1606. {
  1607. struct e1000_adv_tx_context_desc *context_desc;
  1608. unsigned int i;
  1609. int err;
  1610. struct igbvf_buffer *buffer_info;
  1611. u32 info = 0, tu_cmd = 0;
  1612. u32 mss_l4len_idx, l4len;
  1613. *hdr_len = 0;
  1614. if (skb_header_cloned(skb)) {
  1615. err = pskb_expand_head(skb, 0, 0, GFP_ATOMIC);
  1616. if (err) {
  1617. dev_err(&adapter->pdev->dev,
  1618. "igbvf_tso returning an error\n");
  1619. return err;
  1620. }
  1621. }
  1622. l4len = tcp_hdrlen(skb);
  1623. *hdr_len += l4len;
  1624. if (skb->protocol == htons(ETH_P_IP)) {
  1625. struct iphdr *iph = ip_hdr(skb);
  1626. iph->tot_len = 0;
  1627. iph->check = 0;
  1628. tcp_hdr(skb)->check = ~csum_tcpudp_magic(iph->saddr,
  1629. iph->daddr, 0,
  1630. IPPROTO_TCP,
  1631. 0);
  1632. } else if (skb_shinfo(skb)->gso_type == SKB_GSO_TCPV6) {
  1633. ipv6_hdr(skb)->payload_len = 0;
  1634. tcp_hdr(skb)->check = ~csum_ipv6_magic(&ipv6_hdr(skb)->saddr,
  1635. &ipv6_hdr(skb)->daddr,
  1636. 0, IPPROTO_TCP, 0);
  1637. }
  1638. i = tx_ring->next_to_use;
  1639. buffer_info = &tx_ring->buffer_info[i];
  1640. context_desc = IGBVF_TX_CTXTDESC_ADV(*tx_ring, i);
  1641. /* VLAN MACLEN IPLEN */
  1642. if (tx_flags & IGBVF_TX_FLAGS_VLAN)
  1643. info |= (tx_flags & IGBVF_TX_FLAGS_VLAN_MASK);
  1644. info |= (skb_network_offset(skb) << E1000_ADVTXD_MACLEN_SHIFT);
  1645. *hdr_len += skb_network_offset(skb);
  1646. info |= (skb_transport_header(skb) - skb_network_header(skb));
  1647. *hdr_len += (skb_transport_header(skb) - skb_network_header(skb));
  1648. context_desc->vlan_macip_lens = cpu_to_le32(info);
  1649. /* ADV DTYP TUCMD MKRLOC/ISCSIHEDLEN */
  1650. tu_cmd |= (E1000_TXD_CMD_DEXT | E1000_ADVTXD_DTYP_CTXT);
  1651. if (skb->protocol == htons(ETH_P_IP))
  1652. tu_cmd |= E1000_ADVTXD_TUCMD_IPV4;
  1653. tu_cmd |= E1000_ADVTXD_TUCMD_L4T_TCP;
  1654. context_desc->type_tucmd_mlhl = cpu_to_le32(tu_cmd);
  1655. /* MSS L4LEN IDX */
  1656. mss_l4len_idx = (skb_shinfo(skb)->gso_size << E1000_ADVTXD_MSS_SHIFT);
  1657. mss_l4len_idx |= (l4len << E1000_ADVTXD_L4LEN_SHIFT);
  1658. context_desc->mss_l4len_idx = cpu_to_le32(mss_l4len_idx);
  1659. context_desc->seqnum_seed = 0;
  1660. buffer_info->time_stamp = jiffies;
  1661. buffer_info->next_to_watch = i;
  1662. buffer_info->dma = 0;
  1663. i++;
  1664. if (i == tx_ring->count)
  1665. i = 0;
  1666. tx_ring->next_to_use = i;
  1667. return true;
  1668. }
  1669. static inline bool igbvf_tx_csum(struct igbvf_adapter *adapter,
  1670. struct igbvf_ring *tx_ring,
  1671. struct sk_buff *skb, u32 tx_flags)
  1672. {
  1673. struct e1000_adv_tx_context_desc *context_desc;
  1674. unsigned int i;
  1675. struct igbvf_buffer *buffer_info;
  1676. u32 info = 0, tu_cmd = 0;
  1677. if ((skb->ip_summed == CHECKSUM_PARTIAL) ||
  1678. (tx_flags & IGBVF_TX_FLAGS_VLAN)) {
  1679. i = tx_ring->next_to_use;
  1680. buffer_info = &tx_ring->buffer_info[i];
  1681. context_desc = IGBVF_TX_CTXTDESC_ADV(*tx_ring, i);
  1682. if (tx_flags & IGBVF_TX_FLAGS_VLAN)
  1683. info |= (tx_flags & IGBVF_TX_FLAGS_VLAN_MASK);
  1684. info |= (skb_network_offset(skb) << E1000_ADVTXD_MACLEN_SHIFT);
  1685. if (skb->ip_summed == CHECKSUM_PARTIAL)
  1686. info |= (skb_transport_header(skb) -
  1687. skb_network_header(skb));
  1688. context_desc->vlan_macip_lens = cpu_to_le32(info);
  1689. tu_cmd |= (E1000_TXD_CMD_DEXT | E1000_ADVTXD_DTYP_CTXT);
  1690. if (skb->ip_summed == CHECKSUM_PARTIAL) {
  1691. switch (skb->protocol) {
  1692. case __constant_htons(ETH_P_IP):
  1693. tu_cmd |= E1000_ADVTXD_TUCMD_IPV4;
  1694. if (ip_hdr(skb)->protocol == IPPROTO_TCP)
  1695. tu_cmd |= E1000_ADVTXD_TUCMD_L4T_TCP;
  1696. break;
  1697. case __constant_htons(ETH_P_IPV6):
  1698. if (ipv6_hdr(skb)->nexthdr == IPPROTO_TCP)
  1699. tu_cmd |= E1000_ADVTXD_TUCMD_L4T_TCP;
  1700. break;
  1701. default:
  1702. break;
  1703. }
  1704. }
  1705. context_desc->type_tucmd_mlhl = cpu_to_le32(tu_cmd);
  1706. context_desc->seqnum_seed = 0;
  1707. context_desc->mss_l4len_idx = 0;
  1708. buffer_info->time_stamp = jiffies;
  1709. buffer_info->next_to_watch = i;
  1710. buffer_info->dma = 0;
  1711. i++;
  1712. if (i == tx_ring->count)
  1713. i = 0;
  1714. tx_ring->next_to_use = i;
  1715. return true;
  1716. }
  1717. return false;
  1718. }
  1719. static int igbvf_maybe_stop_tx(struct net_device *netdev, int size)
  1720. {
  1721. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1722. /* there is enough descriptors then we don't need to worry */
  1723. if (igbvf_desc_unused(adapter->tx_ring) >= size)
  1724. return 0;
  1725. netif_stop_queue(netdev);
  1726. smp_mb();
  1727. /* We need to check again just in case room has been made available */
  1728. if (igbvf_desc_unused(adapter->tx_ring) < size)
  1729. return -EBUSY;
  1730. netif_wake_queue(netdev);
  1731. ++adapter->restart_queue;
  1732. return 0;
  1733. }
  1734. #define IGBVF_MAX_TXD_PWR 16
  1735. #define IGBVF_MAX_DATA_PER_TXD (1 << IGBVF_MAX_TXD_PWR)
  1736. static inline int igbvf_tx_map_adv(struct igbvf_adapter *adapter,
  1737. struct igbvf_ring *tx_ring,
  1738. struct sk_buff *skb,
  1739. unsigned int first)
  1740. {
  1741. struct igbvf_buffer *buffer_info;
  1742. unsigned int len = skb_headlen(skb);
  1743. unsigned int count = 0, i;
  1744. unsigned int f;
  1745. dma_addr_t *map;
  1746. i = tx_ring->next_to_use;
  1747. if (skb_dma_map(&adapter->pdev->dev, skb, DMA_TO_DEVICE)) {
  1748. dev_err(&adapter->pdev->dev, "TX DMA map failed\n");
  1749. return 0;
  1750. }
  1751. map = skb_shinfo(skb)->dma_maps;
  1752. buffer_info = &tx_ring->buffer_info[i];
  1753. BUG_ON(len >= IGBVF_MAX_DATA_PER_TXD);
  1754. buffer_info->length = len;
  1755. /* set time_stamp *before* dma to help avoid a possible race */
  1756. buffer_info->time_stamp = jiffies;
  1757. buffer_info->next_to_watch = i;
  1758. buffer_info->dma = map[count];
  1759. count++;
  1760. for (f = 0; f < skb_shinfo(skb)->nr_frags; f++) {
  1761. struct skb_frag_struct *frag;
  1762. i++;
  1763. if (i == tx_ring->count)
  1764. i = 0;
  1765. frag = &skb_shinfo(skb)->frags[f];
  1766. len = frag->size;
  1767. buffer_info = &tx_ring->buffer_info[i];
  1768. BUG_ON(len >= IGBVF_MAX_DATA_PER_TXD);
  1769. buffer_info->length = len;
  1770. buffer_info->time_stamp = jiffies;
  1771. buffer_info->next_to_watch = i;
  1772. buffer_info->dma = map[count];
  1773. count++;
  1774. }
  1775. tx_ring->buffer_info[i].skb = skb;
  1776. tx_ring->buffer_info[first].next_to_watch = i;
  1777. return count;
  1778. }
  1779. static inline void igbvf_tx_queue_adv(struct igbvf_adapter *adapter,
  1780. struct igbvf_ring *tx_ring,
  1781. int tx_flags, int count, u32 paylen,
  1782. u8 hdr_len)
  1783. {
  1784. union e1000_adv_tx_desc *tx_desc = NULL;
  1785. struct igbvf_buffer *buffer_info;
  1786. u32 olinfo_status = 0, cmd_type_len;
  1787. unsigned int i;
  1788. cmd_type_len = (E1000_ADVTXD_DTYP_DATA | E1000_ADVTXD_DCMD_IFCS |
  1789. E1000_ADVTXD_DCMD_DEXT);
  1790. if (tx_flags & IGBVF_TX_FLAGS_VLAN)
  1791. cmd_type_len |= E1000_ADVTXD_DCMD_VLE;
  1792. if (tx_flags & IGBVF_TX_FLAGS_TSO) {
  1793. cmd_type_len |= E1000_ADVTXD_DCMD_TSE;
  1794. /* insert tcp checksum */
  1795. olinfo_status |= E1000_TXD_POPTS_TXSM << 8;
  1796. /* insert ip checksum */
  1797. if (tx_flags & IGBVF_TX_FLAGS_IPV4)
  1798. olinfo_status |= E1000_TXD_POPTS_IXSM << 8;
  1799. } else if (tx_flags & IGBVF_TX_FLAGS_CSUM) {
  1800. olinfo_status |= E1000_TXD_POPTS_TXSM << 8;
  1801. }
  1802. olinfo_status |= ((paylen - hdr_len) << E1000_ADVTXD_PAYLEN_SHIFT);
  1803. i = tx_ring->next_to_use;
  1804. while (count--) {
  1805. buffer_info = &tx_ring->buffer_info[i];
  1806. tx_desc = IGBVF_TX_DESC_ADV(*tx_ring, i);
  1807. tx_desc->read.buffer_addr = cpu_to_le64(buffer_info->dma);
  1808. tx_desc->read.cmd_type_len =
  1809. cpu_to_le32(cmd_type_len | buffer_info->length);
  1810. tx_desc->read.olinfo_status = cpu_to_le32(olinfo_status);
  1811. i++;
  1812. if (i == tx_ring->count)
  1813. i = 0;
  1814. }
  1815. tx_desc->read.cmd_type_len |= cpu_to_le32(adapter->txd_cmd);
  1816. /* Force memory writes to complete before letting h/w
  1817. * know there are new descriptors to fetch. (Only
  1818. * applicable for weak-ordered memory model archs,
  1819. * such as IA-64). */
  1820. wmb();
  1821. tx_ring->next_to_use = i;
  1822. writel(i, adapter->hw.hw_addr + tx_ring->tail);
  1823. /* we need this if more than one processor can write to our tail
  1824. * at a time, it syncronizes IO on IA64/Altix systems */
  1825. mmiowb();
  1826. }
  1827. static int igbvf_xmit_frame_ring_adv(struct sk_buff *skb,
  1828. struct net_device *netdev,
  1829. struct igbvf_ring *tx_ring)
  1830. {
  1831. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1832. unsigned int first, tx_flags = 0;
  1833. u8 hdr_len = 0;
  1834. int count = 0;
  1835. int tso = 0;
  1836. if (test_bit(__IGBVF_DOWN, &adapter->state)) {
  1837. dev_kfree_skb_any(skb);
  1838. return NETDEV_TX_OK;
  1839. }
  1840. if (skb->len <= 0) {
  1841. dev_kfree_skb_any(skb);
  1842. return NETDEV_TX_OK;
  1843. }
  1844. /*
  1845. * need: count + 4 desc gap to keep tail from touching
  1846. * + 2 desc gap to keep tail from touching head,
  1847. * + 1 desc for skb->data,
  1848. * + 1 desc for context descriptor,
  1849. * head, otherwise try next time
  1850. */
  1851. if (igbvf_maybe_stop_tx(netdev, skb_shinfo(skb)->nr_frags + 4)) {
  1852. /* this is a hard error */
  1853. return NETDEV_TX_BUSY;
  1854. }
  1855. if (adapter->vlgrp && vlan_tx_tag_present(skb)) {
  1856. tx_flags |= IGBVF_TX_FLAGS_VLAN;
  1857. tx_flags |= (vlan_tx_tag_get(skb) << IGBVF_TX_FLAGS_VLAN_SHIFT);
  1858. }
  1859. if (skb->protocol == htons(ETH_P_IP))
  1860. tx_flags |= IGBVF_TX_FLAGS_IPV4;
  1861. first = tx_ring->next_to_use;
  1862. tso = skb_is_gso(skb) ?
  1863. igbvf_tso(adapter, tx_ring, skb, tx_flags, &hdr_len) : 0;
  1864. if (unlikely(tso < 0)) {
  1865. dev_kfree_skb_any(skb);
  1866. return NETDEV_TX_OK;
  1867. }
  1868. if (tso)
  1869. tx_flags |= IGBVF_TX_FLAGS_TSO;
  1870. else if (igbvf_tx_csum(adapter, tx_ring, skb, tx_flags) &&
  1871. (skb->ip_summed == CHECKSUM_PARTIAL))
  1872. tx_flags |= IGBVF_TX_FLAGS_CSUM;
  1873. /*
  1874. * count reflects descriptors mapped, if 0 then mapping error
  1875. * has occured and we need to rewind the descriptor queue
  1876. */
  1877. count = igbvf_tx_map_adv(adapter, tx_ring, skb, first);
  1878. if (count) {
  1879. igbvf_tx_queue_adv(adapter, tx_ring, tx_flags, count,
  1880. skb->len, hdr_len);
  1881. netdev->trans_start = jiffies;
  1882. /* Make sure there is space in the ring for the next send. */
  1883. igbvf_maybe_stop_tx(netdev, MAX_SKB_FRAGS + 4);
  1884. } else {
  1885. dev_kfree_skb_any(skb);
  1886. tx_ring->buffer_info[first].time_stamp = 0;
  1887. tx_ring->next_to_use = first;
  1888. }
  1889. return NETDEV_TX_OK;
  1890. }
  1891. static int igbvf_xmit_frame(struct sk_buff *skb, struct net_device *netdev)
  1892. {
  1893. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1894. struct igbvf_ring *tx_ring;
  1895. int retval;
  1896. if (test_bit(__IGBVF_DOWN, &adapter->state)) {
  1897. dev_kfree_skb_any(skb);
  1898. return NETDEV_TX_OK;
  1899. }
  1900. tx_ring = &adapter->tx_ring[0];
  1901. retval = igbvf_xmit_frame_ring_adv(skb, netdev, tx_ring);
  1902. return retval;
  1903. }
  1904. /**
  1905. * igbvf_tx_timeout - Respond to a Tx Hang
  1906. * @netdev: network interface device structure
  1907. **/
  1908. static void igbvf_tx_timeout(struct net_device *netdev)
  1909. {
  1910. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1911. /* Do the reset outside of interrupt context */
  1912. adapter->tx_timeout_count++;
  1913. schedule_work(&adapter->reset_task);
  1914. }
  1915. static void igbvf_reset_task(struct work_struct *work)
  1916. {
  1917. struct igbvf_adapter *adapter;
  1918. adapter = container_of(work, struct igbvf_adapter, reset_task);
  1919. igbvf_reinit_locked(adapter);
  1920. }
  1921. /**
  1922. * igbvf_get_stats - Get System Network Statistics
  1923. * @netdev: network interface device structure
  1924. *
  1925. * Returns the address of the device statistics structure.
  1926. * The statistics are actually updated from the timer callback.
  1927. **/
  1928. static struct net_device_stats *igbvf_get_stats(struct net_device *netdev)
  1929. {
  1930. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1931. /* only return the current stats */
  1932. return &adapter->net_stats;
  1933. }
  1934. /**
  1935. * igbvf_change_mtu - Change the Maximum Transfer Unit
  1936. * @netdev: network interface device structure
  1937. * @new_mtu: new value for maximum frame size
  1938. *
  1939. * Returns 0 on success, negative on failure
  1940. **/
  1941. static int igbvf_change_mtu(struct net_device *netdev, int new_mtu)
  1942. {
  1943. struct igbvf_adapter *adapter = netdev_priv(netdev);
  1944. int max_frame = new_mtu + ETH_HLEN + ETH_FCS_LEN;
  1945. if ((new_mtu < 68) || (max_frame > MAX_JUMBO_FRAME_SIZE)) {
  1946. dev_err(&adapter->pdev->dev, "Invalid MTU setting\n");
  1947. return -EINVAL;
  1948. }
  1949. /* Jumbo frame size limits */
  1950. if (max_frame > ETH_FRAME_LEN + ETH_FCS_LEN) {
  1951. if (!(adapter->flags & FLAG_HAS_JUMBO_FRAMES)) {
  1952. dev_err(&adapter->pdev->dev,
  1953. "Jumbo Frames not supported.\n");
  1954. return -EINVAL;
  1955. }
  1956. }
  1957. #define MAX_STD_JUMBO_FRAME_SIZE 9234
  1958. if (max_frame > MAX_STD_JUMBO_FRAME_SIZE) {
  1959. dev_err(&adapter->pdev->dev, "MTU > 9216 not supported.\n");
  1960. return -EINVAL;
  1961. }
  1962. while (test_and_set_bit(__IGBVF_RESETTING, &adapter->state))
  1963. msleep(1);
  1964. /* igbvf_down has a dependency on max_frame_size */
  1965. adapter->max_frame_size = max_frame;
  1966. if (netif_running(netdev))
  1967. igbvf_down(adapter);
  1968. /*
  1969. * NOTE: netdev_alloc_skb reserves 16 bytes, and typically NET_IP_ALIGN
  1970. * means we reserve 2 more, this pushes us to allocate from the next
  1971. * larger slab size.
  1972. * i.e. RXBUFFER_2048 --> size-4096 slab
  1973. * However with the new *_jumbo_rx* routines, jumbo receives will use
  1974. * fragmented skbs
  1975. */
  1976. if (max_frame <= 1024)
  1977. adapter->rx_buffer_len = 1024;
  1978. else if (max_frame <= 2048)
  1979. adapter->rx_buffer_len = 2048;
  1980. else
  1981. #if (PAGE_SIZE / 2) > 16384
  1982. adapter->rx_buffer_len = 16384;
  1983. #else
  1984. adapter->rx_buffer_len = PAGE_SIZE / 2;
  1985. #endif
  1986. /* adjust allocation if LPE protects us, and we aren't using SBP */
  1987. if ((max_frame == ETH_FRAME_LEN + ETH_FCS_LEN) ||
  1988. (max_frame == ETH_FRAME_LEN + VLAN_HLEN + ETH_FCS_LEN))
  1989. adapter->rx_buffer_len = ETH_FRAME_LEN + VLAN_HLEN +
  1990. ETH_FCS_LEN;
  1991. dev_info(&adapter->pdev->dev, "changing MTU from %d to %d\n",
  1992. netdev->mtu, new_mtu);
  1993. netdev->mtu = new_mtu;
  1994. if (netif_running(netdev))
  1995. igbvf_up(adapter);
  1996. else
  1997. igbvf_reset(adapter);
  1998. clear_bit(__IGBVF_RESETTING, &adapter->state);
  1999. return 0;
  2000. }
  2001. static int igbvf_ioctl(struct net_device *netdev, struct ifreq *ifr, int cmd)
  2002. {
  2003. switch (cmd) {
  2004. default:
  2005. return -EOPNOTSUPP;
  2006. }
  2007. }
  2008. static int igbvf_suspend(struct pci_dev *pdev, pm_message_t state)
  2009. {
  2010. struct net_device *netdev = pci_get_drvdata(pdev);
  2011. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2012. #ifdef CONFIG_PM
  2013. int retval = 0;
  2014. #endif
  2015. netif_device_detach(netdev);
  2016. if (netif_running(netdev)) {
  2017. WARN_ON(test_bit(__IGBVF_RESETTING, &adapter->state));
  2018. igbvf_down(adapter);
  2019. igbvf_free_irq(adapter);
  2020. }
  2021. #ifdef CONFIG_PM
  2022. retval = pci_save_state(pdev);
  2023. if (retval)
  2024. return retval;
  2025. #endif
  2026. pci_disable_device(pdev);
  2027. return 0;
  2028. }
  2029. #ifdef CONFIG_PM
  2030. static int igbvf_resume(struct pci_dev *pdev)
  2031. {
  2032. struct net_device *netdev = pci_get_drvdata(pdev);
  2033. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2034. u32 err;
  2035. pci_restore_state(pdev);
  2036. err = pci_enable_device_mem(pdev);
  2037. if (err) {
  2038. dev_err(&pdev->dev, "Cannot enable PCI device from suspend\n");
  2039. return err;
  2040. }
  2041. pci_set_master(pdev);
  2042. if (netif_running(netdev)) {
  2043. err = igbvf_request_irq(adapter);
  2044. if (err)
  2045. return err;
  2046. }
  2047. igbvf_reset(adapter);
  2048. if (netif_running(netdev))
  2049. igbvf_up(adapter);
  2050. netif_device_attach(netdev);
  2051. return 0;
  2052. }
  2053. #endif
  2054. static void igbvf_shutdown(struct pci_dev *pdev)
  2055. {
  2056. igbvf_suspend(pdev, PMSG_SUSPEND);
  2057. }
  2058. #ifdef CONFIG_NET_POLL_CONTROLLER
  2059. /*
  2060. * Polling 'interrupt' - used by things like netconsole to send skbs
  2061. * without having to re-enable interrupts. It's not called while
  2062. * the interrupt routine is executing.
  2063. */
  2064. static void igbvf_netpoll(struct net_device *netdev)
  2065. {
  2066. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2067. disable_irq(adapter->pdev->irq);
  2068. igbvf_clean_tx_irq(adapter->tx_ring);
  2069. enable_irq(adapter->pdev->irq);
  2070. }
  2071. #endif
  2072. /**
  2073. * igbvf_io_error_detected - called when PCI error is detected
  2074. * @pdev: Pointer to PCI device
  2075. * @state: The current pci connection state
  2076. *
  2077. * This function is called after a PCI bus error affecting
  2078. * this device has been detected.
  2079. */
  2080. static pci_ers_result_t igbvf_io_error_detected(struct pci_dev *pdev,
  2081. pci_channel_state_t state)
  2082. {
  2083. struct net_device *netdev = pci_get_drvdata(pdev);
  2084. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2085. netif_device_detach(netdev);
  2086. if (netif_running(netdev))
  2087. igbvf_down(adapter);
  2088. pci_disable_device(pdev);
  2089. /* Request a slot slot reset. */
  2090. return PCI_ERS_RESULT_NEED_RESET;
  2091. }
  2092. /**
  2093. * igbvf_io_slot_reset - called after the pci bus has been reset.
  2094. * @pdev: Pointer to PCI device
  2095. *
  2096. * Restart the card from scratch, as if from a cold-boot. Implementation
  2097. * resembles the first-half of the igbvf_resume routine.
  2098. */
  2099. static pci_ers_result_t igbvf_io_slot_reset(struct pci_dev *pdev)
  2100. {
  2101. struct net_device *netdev = pci_get_drvdata(pdev);
  2102. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2103. if (pci_enable_device_mem(pdev)) {
  2104. dev_err(&pdev->dev,
  2105. "Cannot re-enable PCI device after reset.\n");
  2106. return PCI_ERS_RESULT_DISCONNECT;
  2107. }
  2108. pci_set_master(pdev);
  2109. igbvf_reset(adapter);
  2110. return PCI_ERS_RESULT_RECOVERED;
  2111. }
  2112. /**
  2113. * igbvf_io_resume - called when traffic can start flowing again.
  2114. * @pdev: Pointer to PCI device
  2115. *
  2116. * This callback is called when the error recovery driver tells us that
  2117. * its OK to resume normal operation. Implementation resembles the
  2118. * second-half of the igbvf_resume routine.
  2119. */
  2120. static void igbvf_io_resume(struct pci_dev *pdev)
  2121. {
  2122. struct net_device *netdev = pci_get_drvdata(pdev);
  2123. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2124. if (netif_running(netdev)) {
  2125. if (igbvf_up(adapter)) {
  2126. dev_err(&pdev->dev,
  2127. "can't bring device back up after reset\n");
  2128. return;
  2129. }
  2130. }
  2131. netif_device_attach(netdev);
  2132. }
  2133. static void igbvf_print_device_info(struct igbvf_adapter *adapter)
  2134. {
  2135. struct e1000_hw *hw = &adapter->hw;
  2136. struct net_device *netdev = adapter->netdev;
  2137. struct pci_dev *pdev = adapter->pdev;
  2138. dev_info(&pdev->dev, "Intel(R) 82576 Virtual Function\n");
  2139. dev_info(&pdev->dev, "Address: %02x:%02x:%02x:%02x:%02x:%02x\n",
  2140. /* MAC address */
  2141. netdev->dev_addr[0], netdev->dev_addr[1],
  2142. netdev->dev_addr[2], netdev->dev_addr[3],
  2143. netdev->dev_addr[4], netdev->dev_addr[5]);
  2144. dev_info(&pdev->dev, "MAC: %d\n", hw->mac.type);
  2145. }
  2146. static const struct net_device_ops igbvf_netdev_ops = {
  2147. .ndo_open = igbvf_open,
  2148. .ndo_stop = igbvf_close,
  2149. .ndo_start_xmit = igbvf_xmit_frame,
  2150. .ndo_get_stats = igbvf_get_stats,
  2151. .ndo_set_multicast_list = igbvf_set_multi,
  2152. .ndo_set_mac_address = igbvf_set_mac,
  2153. .ndo_change_mtu = igbvf_change_mtu,
  2154. .ndo_do_ioctl = igbvf_ioctl,
  2155. .ndo_tx_timeout = igbvf_tx_timeout,
  2156. .ndo_vlan_rx_register = igbvf_vlan_rx_register,
  2157. .ndo_vlan_rx_add_vid = igbvf_vlan_rx_add_vid,
  2158. .ndo_vlan_rx_kill_vid = igbvf_vlan_rx_kill_vid,
  2159. #ifdef CONFIG_NET_POLL_CONTROLLER
  2160. .ndo_poll_controller = igbvf_netpoll,
  2161. #endif
  2162. };
  2163. /**
  2164. * igbvf_probe - Device Initialization Routine
  2165. * @pdev: PCI device information struct
  2166. * @ent: entry in igbvf_pci_tbl
  2167. *
  2168. * Returns 0 on success, negative on failure
  2169. *
  2170. * igbvf_probe initializes an adapter identified by a pci_dev structure.
  2171. * The OS initialization, configuring of the adapter private structure,
  2172. * and a hardware reset occur.
  2173. **/
  2174. static int __devinit igbvf_probe(struct pci_dev *pdev,
  2175. const struct pci_device_id *ent)
  2176. {
  2177. struct net_device *netdev;
  2178. struct igbvf_adapter *adapter;
  2179. struct e1000_hw *hw;
  2180. const struct igbvf_info *ei = igbvf_info_tbl[ent->driver_data];
  2181. static int cards_found;
  2182. int err, pci_using_dac;
  2183. err = pci_enable_device_mem(pdev);
  2184. if (err)
  2185. return err;
  2186. pci_using_dac = 0;
  2187. err = pci_set_dma_mask(pdev, DMA_64BIT_MASK);
  2188. if (!err) {
  2189. err = pci_set_consistent_dma_mask(pdev, DMA_64BIT_MASK);
  2190. if (!err)
  2191. pci_using_dac = 1;
  2192. } else {
  2193. err = pci_set_dma_mask(pdev, DMA_32BIT_MASK);
  2194. if (err) {
  2195. err = pci_set_consistent_dma_mask(pdev, DMA_32BIT_MASK);
  2196. if (err) {
  2197. dev_err(&pdev->dev, "No usable DMA "
  2198. "configuration, aborting\n");
  2199. goto err_dma;
  2200. }
  2201. }
  2202. }
  2203. err = pci_request_regions(pdev, igbvf_driver_name);
  2204. if (err)
  2205. goto err_pci_reg;
  2206. pci_set_master(pdev);
  2207. err = -ENOMEM;
  2208. netdev = alloc_etherdev(sizeof(struct igbvf_adapter));
  2209. if (!netdev)
  2210. goto err_alloc_etherdev;
  2211. SET_NETDEV_DEV(netdev, &pdev->dev);
  2212. pci_set_drvdata(pdev, netdev);
  2213. adapter = netdev_priv(netdev);
  2214. hw = &adapter->hw;
  2215. adapter->netdev = netdev;
  2216. adapter->pdev = pdev;
  2217. adapter->ei = ei;
  2218. adapter->pba = ei->pba;
  2219. adapter->flags = ei->flags;
  2220. adapter->hw.back = adapter;
  2221. adapter->hw.mac.type = ei->mac;
  2222. adapter->msg_enable = (1 << NETIF_MSG_DRV | NETIF_MSG_PROBE) - 1;
  2223. /* PCI config space info */
  2224. hw->vendor_id = pdev->vendor;
  2225. hw->device_id = pdev->device;
  2226. hw->subsystem_vendor_id = pdev->subsystem_vendor;
  2227. hw->subsystem_device_id = pdev->subsystem_device;
  2228. pci_read_config_byte(pdev, PCI_REVISION_ID, &hw->revision_id);
  2229. err = -EIO;
  2230. adapter->hw.hw_addr = ioremap(pci_resource_start(pdev, 0),
  2231. pci_resource_len(pdev, 0));
  2232. if (!adapter->hw.hw_addr)
  2233. goto err_ioremap;
  2234. if (ei->get_variants) {
  2235. err = ei->get_variants(adapter);
  2236. if (err)
  2237. goto err_ioremap;
  2238. }
  2239. /* setup adapter struct */
  2240. err = igbvf_sw_init(adapter);
  2241. if (err)
  2242. goto err_sw_init;
  2243. /* construct the net_device struct */
  2244. netdev->netdev_ops = &igbvf_netdev_ops;
  2245. igbvf_set_ethtool_ops(netdev);
  2246. netdev->watchdog_timeo = 5 * HZ;
  2247. strncpy(netdev->name, pci_name(pdev), sizeof(netdev->name) - 1);
  2248. adapter->bd_number = cards_found++;
  2249. netdev->features = NETIF_F_SG |
  2250. NETIF_F_IP_CSUM |
  2251. NETIF_F_HW_VLAN_TX |
  2252. NETIF_F_HW_VLAN_RX |
  2253. NETIF_F_HW_VLAN_FILTER;
  2254. netdev->features |= NETIF_F_IPV6_CSUM;
  2255. netdev->features |= NETIF_F_TSO;
  2256. netdev->features |= NETIF_F_TSO6;
  2257. if (pci_using_dac)
  2258. netdev->features |= NETIF_F_HIGHDMA;
  2259. netdev->vlan_features |= NETIF_F_TSO;
  2260. netdev->vlan_features |= NETIF_F_TSO6;
  2261. netdev->vlan_features |= NETIF_F_IP_CSUM;
  2262. netdev->vlan_features |= NETIF_F_IPV6_CSUM;
  2263. netdev->vlan_features |= NETIF_F_SG;
  2264. /*reset the controller to put the device in a known good state */
  2265. err = hw->mac.ops.reset_hw(hw);
  2266. if (err) {
  2267. dev_info(&pdev->dev,
  2268. "PF still in reset state, assigning new address\n");
  2269. random_ether_addr(hw->mac.addr);
  2270. } else {
  2271. err = hw->mac.ops.read_mac_addr(hw);
  2272. if (err) {
  2273. dev_err(&pdev->dev, "Error reading MAC address\n");
  2274. goto err_hw_init;
  2275. }
  2276. }
  2277. memcpy(netdev->dev_addr, adapter->hw.mac.addr, netdev->addr_len);
  2278. memcpy(netdev->perm_addr, adapter->hw.mac.addr, netdev->addr_len);
  2279. if (!is_valid_ether_addr(netdev->perm_addr)) {
  2280. dev_err(&pdev->dev, "Invalid MAC Address: "
  2281. "%02x:%02x:%02x:%02x:%02x:%02x\n",
  2282. netdev->dev_addr[0], netdev->dev_addr[1],
  2283. netdev->dev_addr[2], netdev->dev_addr[3],
  2284. netdev->dev_addr[4], netdev->dev_addr[5]);
  2285. err = -EIO;
  2286. goto err_hw_init;
  2287. }
  2288. setup_timer(&adapter->watchdog_timer, &igbvf_watchdog,
  2289. (unsigned long) adapter);
  2290. INIT_WORK(&adapter->reset_task, igbvf_reset_task);
  2291. INIT_WORK(&adapter->watchdog_task, igbvf_watchdog_task);
  2292. /* ring size defaults */
  2293. adapter->rx_ring->count = 1024;
  2294. adapter->tx_ring->count = 1024;
  2295. /* reset the hardware with the new settings */
  2296. igbvf_reset(adapter);
  2297. /* tell the stack to leave us alone until igbvf_open() is called */
  2298. netif_carrier_off(netdev);
  2299. netif_stop_queue(netdev);
  2300. strcpy(netdev->name, "eth%d");
  2301. err = register_netdev(netdev);
  2302. if (err)
  2303. goto err_hw_init;
  2304. igbvf_print_device_info(adapter);
  2305. igbvf_initialize_last_counter_stats(adapter);
  2306. return 0;
  2307. err_hw_init:
  2308. kfree(adapter->tx_ring);
  2309. kfree(adapter->rx_ring);
  2310. err_sw_init:
  2311. igbvf_reset_interrupt_capability(adapter);
  2312. iounmap(adapter->hw.hw_addr);
  2313. err_ioremap:
  2314. free_netdev(netdev);
  2315. err_alloc_etherdev:
  2316. pci_release_regions(pdev);
  2317. err_pci_reg:
  2318. err_dma:
  2319. pci_disable_device(pdev);
  2320. return err;
  2321. }
  2322. /**
  2323. * igbvf_remove - Device Removal Routine
  2324. * @pdev: PCI device information struct
  2325. *
  2326. * igbvf_remove is called by the PCI subsystem to alert the driver
  2327. * that it should release a PCI device. The could be caused by a
  2328. * Hot-Plug event, or because the driver is going to be removed from
  2329. * memory.
  2330. **/
  2331. static void __devexit igbvf_remove(struct pci_dev *pdev)
  2332. {
  2333. struct net_device *netdev = pci_get_drvdata(pdev);
  2334. struct igbvf_adapter *adapter = netdev_priv(netdev);
  2335. struct e1000_hw *hw = &adapter->hw;
  2336. /*
  2337. * flush_scheduled work may reschedule our watchdog task, so
  2338. * explicitly disable watchdog tasks from being rescheduled
  2339. */
  2340. set_bit(__IGBVF_DOWN, &adapter->state);
  2341. del_timer_sync(&adapter->watchdog_timer);
  2342. flush_scheduled_work();
  2343. unregister_netdev(netdev);
  2344. igbvf_reset_interrupt_capability(adapter);
  2345. /*
  2346. * it is important to delete the napi struct prior to freeing the
  2347. * rx ring so that you do not end up with null pointer refs
  2348. */
  2349. netif_napi_del(&adapter->rx_ring->napi);
  2350. kfree(adapter->tx_ring);
  2351. kfree(adapter->rx_ring);
  2352. iounmap(hw->hw_addr);
  2353. if (hw->flash_address)
  2354. iounmap(hw->flash_address);
  2355. pci_release_regions(pdev);
  2356. free_netdev(netdev);
  2357. pci_disable_device(pdev);
  2358. }
  2359. /* PCI Error Recovery (ERS) */
  2360. static struct pci_error_handlers igbvf_err_handler = {
  2361. .error_detected = igbvf_io_error_detected,
  2362. .slot_reset = igbvf_io_slot_reset,
  2363. .resume = igbvf_io_resume,
  2364. };
  2365. static struct pci_device_id igbvf_pci_tbl[] = {
  2366. { PCI_VDEVICE(INTEL, E1000_DEV_ID_82576_VF), board_vf },
  2367. { } /* terminate list */
  2368. };
  2369. MODULE_DEVICE_TABLE(pci, igbvf_pci_tbl);
  2370. /* PCI Device API Driver */
  2371. static struct pci_driver igbvf_driver = {
  2372. .name = igbvf_driver_name,
  2373. .id_table = igbvf_pci_tbl,
  2374. .probe = igbvf_probe,
  2375. .remove = __devexit_p(igbvf_remove),
  2376. #ifdef CONFIG_PM
  2377. /* Power Management Hooks */
  2378. .suspend = igbvf_suspend,
  2379. .resume = igbvf_resume,
  2380. #endif
  2381. .shutdown = igbvf_shutdown,
  2382. .err_handler = &igbvf_err_handler
  2383. };
  2384. /**
  2385. * igbvf_init_module - Driver Registration Routine
  2386. *
  2387. * igbvf_init_module is the first routine called when the driver is
  2388. * loaded. All it does is register with the PCI subsystem.
  2389. **/
  2390. static int __init igbvf_init_module(void)
  2391. {
  2392. int ret;
  2393. printk(KERN_INFO "%s - version %s\n",
  2394. igbvf_driver_string, igbvf_driver_version);
  2395. printk(KERN_INFO "%s\n", igbvf_copyright);
  2396. ret = pci_register_driver(&igbvf_driver);
  2397. pm_qos_add_requirement(PM_QOS_CPU_DMA_LATENCY, igbvf_driver_name,
  2398. PM_QOS_DEFAULT_VALUE);
  2399. return ret;
  2400. }
  2401. module_init(igbvf_init_module);
  2402. /**
  2403. * igbvf_exit_module - Driver Exit Cleanup Routine
  2404. *
  2405. * igbvf_exit_module is called just before the driver is removed
  2406. * from memory.
  2407. **/
  2408. static void __exit igbvf_exit_module(void)
  2409. {
  2410. pci_unregister_driver(&igbvf_driver);
  2411. pm_qos_remove_requirement(PM_QOS_CPU_DMA_LATENCY, igbvf_driver_name);
  2412. }
  2413. module_exit(igbvf_exit_module);
  2414. MODULE_AUTHOR("Intel Corporation, <e1000-devel@lists.sourceforge.net>");
  2415. MODULE_DESCRIPTION("Intel(R) 82576 Virtual Function Network Driver");
  2416. MODULE_LICENSE("GPL");
  2417. MODULE_VERSION(DRV_VERSION);
  2418. /* netdev.c */