vxge-main.c 118 KB

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  1. /******************************************************************************
  2. * This software may be used and distributed according to the terms of
  3. * the GNU General Public License (GPL), incorporated herein by reference.
  4. * Drivers based on or derived from this code fall under the GPL and must
  5. * retain the authorship, copyright and license notice. This file is not
  6. * a complete program and may only be used when the entire operating
  7. * system is licensed under the GPL.
  8. * See the file COPYING in this distribution for more information.
  9. *
  10. * vxge-main.c: Driver for Neterion Inc's X3100 Series 10GbE PCIe I/O
  11. * Virtualized Server Adapter.
  12. * Copyright(c) 2002-2009 Neterion Inc.
  13. *
  14. * The module loadable parameters that are supported by the driver and a brief
  15. * explanation of all the variables:
  16. * vlan_tag_strip:
  17. * Strip VLAN Tag enable/disable. Instructs the device to remove
  18. * the VLAN tag from all received tagged frames that are not
  19. * replicated at the internal L2 switch.
  20. * 0 - Do not strip the VLAN tag.
  21. * 1 - Strip the VLAN tag.
  22. *
  23. * addr_learn_en:
  24. * Enable learning the mac address of the guest OS interface in
  25. * a virtualization environment.
  26. * 0 - DISABLE
  27. * 1 - ENABLE
  28. *
  29. * max_config_port:
  30. * Maximum number of port to be supported.
  31. * MIN -1 and MAX - 2
  32. *
  33. * max_config_vpath:
  34. * This configures the maximum no of VPATH configures for each
  35. * device function.
  36. * MIN - 1 and MAX - 17
  37. *
  38. * max_config_dev:
  39. * This configures maximum no of Device function to be enabled.
  40. * MIN - 1 and MAX - 17
  41. *
  42. ******************************************************************************/
  43. #include <linux/if_vlan.h>
  44. #include <linux/pci.h>
  45. #include <linux/tcp.h>
  46. #include <net/ip.h>
  47. #include <linux/netdevice.h>
  48. #include <linux/etherdevice.h>
  49. #include "vxge-main.h"
  50. #include "vxge-reg.h"
  51. MODULE_LICENSE("Dual BSD/GPL");
  52. MODULE_DESCRIPTION("Neterion's X3100 Series 10GbE PCIe I/O"
  53. "Virtualized Server Adapter");
  54. static struct pci_device_id vxge_id_table[] __devinitdata = {
  55. {PCI_VENDOR_ID_S2IO, PCI_DEVICE_ID_TITAN_WIN, PCI_ANY_ID,
  56. PCI_ANY_ID},
  57. {PCI_VENDOR_ID_S2IO, PCI_DEVICE_ID_TITAN_UNI, PCI_ANY_ID,
  58. PCI_ANY_ID},
  59. {0}
  60. };
  61. MODULE_DEVICE_TABLE(pci, vxge_id_table);
  62. VXGE_MODULE_PARAM_INT(vlan_tag_strip, VXGE_HW_VPATH_RPA_STRIP_VLAN_TAG_ENABLE);
  63. VXGE_MODULE_PARAM_INT(addr_learn_en, VXGE_HW_MAC_ADDR_LEARN_DEFAULT);
  64. VXGE_MODULE_PARAM_INT(max_config_port, VXGE_MAX_CONFIG_PORT);
  65. VXGE_MODULE_PARAM_INT(max_config_vpath, VXGE_USE_DEFAULT);
  66. VXGE_MODULE_PARAM_INT(max_mac_vpath, VXGE_MAX_MAC_ADDR_COUNT);
  67. VXGE_MODULE_PARAM_INT(max_config_dev, VXGE_MAX_CONFIG_DEV);
  68. static u16 vpath_selector[VXGE_HW_MAX_VIRTUAL_PATHS] =
  69. {0, 1, 3, 3, 7, 7, 7, 7, 15, 15, 15, 15, 15, 15, 15, 15, 31};
  70. static unsigned int bw_percentage[VXGE_HW_MAX_VIRTUAL_PATHS] =
  71. {[0 ...(VXGE_HW_MAX_VIRTUAL_PATHS - 1)] = 0xFF};
  72. module_param_array(bw_percentage, uint, NULL, 0);
  73. static struct vxge_drv_config *driver_config;
  74. static inline int is_vxge_card_up(struct vxgedev *vdev)
  75. {
  76. return test_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  77. }
  78. static inline void VXGE_COMPLETE_VPATH_TX(struct vxge_fifo *fifo)
  79. {
  80. unsigned long flags = 0;
  81. struct sk_buff *skb_ptr = NULL;
  82. struct sk_buff **temp, *head, *skb;
  83. if (spin_trylock_irqsave(&fifo->tx_lock, flags)) {
  84. vxge_hw_vpath_poll_tx(fifo->handle, (void **)&skb_ptr);
  85. spin_unlock_irqrestore(&fifo->tx_lock, flags);
  86. }
  87. /* free SKBs */
  88. head = skb_ptr;
  89. while (head) {
  90. skb = head;
  91. temp = (struct sk_buff **)&skb->cb;
  92. head = *temp;
  93. *temp = NULL;
  94. dev_kfree_skb_irq(skb);
  95. }
  96. }
  97. static inline void VXGE_COMPLETE_ALL_TX(struct vxgedev *vdev)
  98. {
  99. int i;
  100. /* Complete all transmits */
  101. for (i = 0; i < vdev->no_of_vpath; i++)
  102. VXGE_COMPLETE_VPATH_TX(&vdev->vpaths[i].fifo);
  103. }
  104. static inline void VXGE_COMPLETE_ALL_RX(struct vxgedev *vdev)
  105. {
  106. int i;
  107. struct vxge_ring *ring;
  108. /* Complete all receives*/
  109. for (i = 0; i < vdev->no_of_vpath; i++) {
  110. ring = &vdev->vpaths[i].ring;
  111. vxge_hw_vpath_poll_rx(ring->handle);
  112. }
  113. }
  114. /*
  115. * MultiQ manipulation helper functions
  116. */
  117. void vxge_stop_all_tx_queue(struct vxgedev *vdev)
  118. {
  119. int i;
  120. struct net_device *dev = vdev->ndev;
  121. if (vdev->config.tx_steering_type != TX_MULTIQ_STEERING) {
  122. for (i = 0; i < vdev->no_of_vpath; i++)
  123. vdev->vpaths[i].fifo.queue_state = VPATH_QUEUE_STOP;
  124. }
  125. netif_tx_stop_all_queues(dev);
  126. }
  127. void vxge_stop_tx_queue(struct vxge_fifo *fifo)
  128. {
  129. struct net_device *dev = fifo->ndev;
  130. struct netdev_queue *txq = NULL;
  131. if (fifo->tx_steering_type == TX_MULTIQ_STEERING)
  132. txq = netdev_get_tx_queue(dev, fifo->driver_id);
  133. else {
  134. txq = netdev_get_tx_queue(dev, 0);
  135. fifo->queue_state = VPATH_QUEUE_STOP;
  136. }
  137. netif_tx_stop_queue(txq);
  138. }
  139. void vxge_start_all_tx_queue(struct vxgedev *vdev)
  140. {
  141. int i;
  142. struct net_device *dev = vdev->ndev;
  143. if (vdev->config.tx_steering_type != TX_MULTIQ_STEERING) {
  144. for (i = 0; i < vdev->no_of_vpath; i++)
  145. vdev->vpaths[i].fifo.queue_state = VPATH_QUEUE_START;
  146. }
  147. netif_tx_start_all_queues(dev);
  148. }
  149. static void vxge_wake_all_tx_queue(struct vxgedev *vdev)
  150. {
  151. int i;
  152. struct net_device *dev = vdev->ndev;
  153. if (vdev->config.tx_steering_type != TX_MULTIQ_STEERING) {
  154. for (i = 0; i < vdev->no_of_vpath; i++)
  155. vdev->vpaths[i].fifo.queue_state = VPATH_QUEUE_START;
  156. }
  157. netif_tx_wake_all_queues(dev);
  158. }
  159. void vxge_wake_tx_queue(struct vxge_fifo *fifo, struct sk_buff *skb)
  160. {
  161. struct net_device *dev = fifo->ndev;
  162. int vpath_no = fifo->driver_id;
  163. struct netdev_queue *txq = NULL;
  164. if (fifo->tx_steering_type == TX_MULTIQ_STEERING) {
  165. txq = netdev_get_tx_queue(dev, vpath_no);
  166. if (netif_tx_queue_stopped(txq))
  167. netif_tx_wake_queue(txq);
  168. } else {
  169. txq = netdev_get_tx_queue(dev, 0);
  170. if (fifo->queue_state == VPATH_QUEUE_STOP)
  171. if (netif_tx_queue_stopped(txq)) {
  172. fifo->queue_state = VPATH_QUEUE_START;
  173. netif_tx_wake_queue(txq);
  174. }
  175. }
  176. }
  177. /*
  178. * vxge_callback_link_up
  179. *
  180. * This function is called during interrupt context to notify link up state
  181. * change.
  182. */
  183. void
  184. vxge_callback_link_up(struct __vxge_hw_device *hldev)
  185. {
  186. struct net_device *dev = hldev->ndev;
  187. struct vxgedev *vdev = (struct vxgedev *)netdev_priv(dev);
  188. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  189. vdev->ndev->name, __func__, __LINE__);
  190. printk(KERN_NOTICE "%s: Link Up\n", vdev->ndev->name);
  191. vdev->stats.link_up++;
  192. netif_carrier_on(vdev->ndev);
  193. vxge_wake_all_tx_queue(vdev);
  194. vxge_debug_entryexit(VXGE_TRACE,
  195. "%s: %s:%d Exiting...", vdev->ndev->name, __func__, __LINE__);
  196. }
  197. /*
  198. * vxge_callback_link_down
  199. *
  200. * This function is called during interrupt context to notify link down state
  201. * change.
  202. */
  203. void
  204. vxge_callback_link_down(struct __vxge_hw_device *hldev)
  205. {
  206. struct net_device *dev = hldev->ndev;
  207. struct vxgedev *vdev = (struct vxgedev *)netdev_priv(dev);
  208. vxge_debug_entryexit(VXGE_TRACE,
  209. "%s: %s:%d", vdev->ndev->name, __func__, __LINE__);
  210. printk(KERN_NOTICE "%s: Link Down\n", vdev->ndev->name);
  211. vdev->stats.link_down++;
  212. netif_carrier_off(vdev->ndev);
  213. vxge_stop_all_tx_queue(vdev);
  214. vxge_debug_entryexit(VXGE_TRACE,
  215. "%s: %s:%d Exiting...", vdev->ndev->name, __func__, __LINE__);
  216. }
  217. /*
  218. * vxge_rx_alloc
  219. *
  220. * Allocate SKB.
  221. */
  222. static struct sk_buff*
  223. vxge_rx_alloc(void *dtrh, struct vxge_ring *ring, const int skb_size)
  224. {
  225. struct net_device *dev;
  226. struct sk_buff *skb;
  227. struct vxge_rx_priv *rx_priv;
  228. dev = ring->ndev;
  229. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  230. ring->ndev->name, __func__, __LINE__);
  231. rx_priv = vxge_hw_ring_rxd_private_get(dtrh);
  232. /* try to allocate skb first. this one may fail */
  233. skb = netdev_alloc_skb(dev, skb_size +
  234. VXGE_HW_HEADER_ETHERNET_II_802_3_ALIGN);
  235. if (skb == NULL) {
  236. vxge_debug_mem(VXGE_ERR,
  237. "%s: out of memory to allocate SKB", dev->name);
  238. ring->stats.skb_alloc_fail++;
  239. return NULL;
  240. }
  241. vxge_debug_mem(VXGE_TRACE,
  242. "%s: %s:%d Skb : 0x%p", ring->ndev->name,
  243. __func__, __LINE__, skb);
  244. skb_reserve(skb, VXGE_HW_HEADER_ETHERNET_II_802_3_ALIGN);
  245. rx_priv->skb = skb;
  246. rx_priv->data_size = skb_size;
  247. vxge_debug_entryexit(VXGE_TRACE,
  248. "%s: %s:%d Exiting...", ring->ndev->name, __func__, __LINE__);
  249. return skb;
  250. }
  251. /*
  252. * vxge_rx_map
  253. */
  254. static int vxge_rx_map(void *dtrh, struct vxge_ring *ring)
  255. {
  256. struct vxge_rx_priv *rx_priv;
  257. dma_addr_t dma_addr;
  258. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  259. ring->ndev->name, __func__, __LINE__);
  260. rx_priv = vxge_hw_ring_rxd_private_get(dtrh);
  261. dma_addr = pci_map_single(ring->pdev, rx_priv->skb->data,
  262. rx_priv->data_size, PCI_DMA_FROMDEVICE);
  263. if (dma_addr == 0) {
  264. ring->stats.pci_map_fail++;
  265. return -EIO;
  266. }
  267. vxge_debug_mem(VXGE_TRACE,
  268. "%s: %s:%d 1 buffer mode dma_addr = 0x%llx",
  269. ring->ndev->name, __func__, __LINE__,
  270. (unsigned long long)dma_addr);
  271. vxge_hw_ring_rxd_1b_set(dtrh, dma_addr, rx_priv->data_size);
  272. rx_priv->data_dma = dma_addr;
  273. vxge_debug_entryexit(VXGE_TRACE,
  274. "%s: %s:%d Exiting...", ring->ndev->name, __func__, __LINE__);
  275. return 0;
  276. }
  277. /*
  278. * vxge_rx_initial_replenish
  279. * Allocation of RxD as an initial replenish procedure.
  280. */
  281. static enum vxge_hw_status
  282. vxge_rx_initial_replenish(void *dtrh, void *userdata)
  283. {
  284. struct vxge_ring *ring = (struct vxge_ring *)userdata;
  285. struct vxge_rx_priv *rx_priv;
  286. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  287. ring->ndev->name, __func__, __LINE__);
  288. if (vxge_rx_alloc(dtrh, ring,
  289. VXGE_LL_MAX_FRAME_SIZE(ring->ndev)) == NULL)
  290. return VXGE_HW_FAIL;
  291. if (vxge_rx_map(dtrh, ring)) {
  292. rx_priv = vxge_hw_ring_rxd_private_get(dtrh);
  293. dev_kfree_skb(rx_priv->skb);
  294. return VXGE_HW_FAIL;
  295. }
  296. vxge_debug_entryexit(VXGE_TRACE,
  297. "%s: %s:%d Exiting...", ring->ndev->name, __func__, __LINE__);
  298. return VXGE_HW_OK;
  299. }
  300. static inline void
  301. vxge_rx_complete(struct vxge_ring *ring, struct sk_buff *skb, u16 vlan,
  302. int pkt_length, struct vxge_hw_ring_rxd_info *ext_info)
  303. {
  304. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  305. ring->ndev->name, __func__, __LINE__);
  306. skb_record_rx_queue(skb, ring->driver_id);
  307. skb->protocol = eth_type_trans(skb, ring->ndev);
  308. ring->stats.rx_frms++;
  309. ring->stats.rx_bytes += pkt_length;
  310. if (skb->pkt_type == PACKET_MULTICAST)
  311. ring->stats.rx_mcast++;
  312. vxge_debug_rx(VXGE_TRACE,
  313. "%s: %s:%d skb protocol = %d",
  314. ring->ndev->name, __func__, __LINE__, skb->protocol);
  315. if (ring->gro_enable) {
  316. if (ring->vlgrp && ext_info->vlan &&
  317. (ring->vlan_tag_strip ==
  318. VXGE_HW_VPATH_RPA_STRIP_VLAN_TAG_ENABLE))
  319. vlan_gro_receive(&ring->napi, ring->vlgrp,
  320. ext_info->vlan, skb);
  321. else
  322. napi_gro_receive(&ring->napi, skb);
  323. } else {
  324. if (ring->vlgrp && vlan &&
  325. (ring->vlan_tag_strip ==
  326. VXGE_HW_VPATH_RPA_STRIP_VLAN_TAG_ENABLE))
  327. vlan_hwaccel_receive_skb(skb, ring->vlgrp, vlan);
  328. else
  329. netif_receive_skb(skb);
  330. }
  331. vxge_debug_entryexit(VXGE_TRACE,
  332. "%s: %s:%d Exiting...", ring->ndev->name, __func__, __LINE__);
  333. }
  334. static inline void vxge_re_pre_post(void *dtr, struct vxge_ring *ring,
  335. struct vxge_rx_priv *rx_priv)
  336. {
  337. pci_dma_sync_single_for_device(ring->pdev,
  338. rx_priv->data_dma, rx_priv->data_size, PCI_DMA_FROMDEVICE);
  339. vxge_hw_ring_rxd_1b_set(dtr, rx_priv->data_dma, rx_priv->data_size);
  340. vxge_hw_ring_rxd_pre_post(ring->handle, dtr);
  341. }
  342. static inline void vxge_post(int *dtr_cnt, void **first_dtr,
  343. void *post_dtr, struct __vxge_hw_ring *ringh)
  344. {
  345. int dtr_count = *dtr_cnt;
  346. if ((*dtr_cnt % VXGE_HW_RXSYNC_FREQ_CNT) == 0) {
  347. if (*first_dtr)
  348. vxge_hw_ring_rxd_post_post_wmb(ringh, *first_dtr);
  349. *first_dtr = post_dtr;
  350. } else
  351. vxge_hw_ring_rxd_post_post(ringh, post_dtr);
  352. dtr_count++;
  353. *dtr_cnt = dtr_count;
  354. }
  355. /*
  356. * vxge_rx_1b_compl
  357. *
  358. * If the interrupt is because of a received frame or if the receive ring
  359. * contains fresh as yet un-processed frames, this function is called.
  360. */
  361. enum vxge_hw_status
  362. vxge_rx_1b_compl(struct __vxge_hw_ring *ringh, void *dtr,
  363. u8 t_code, void *userdata)
  364. {
  365. struct vxge_ring *ring = (struct vxge_ring *)userdata;
  366. struct net_device *dev = ring->ndev;
  367. unsigned int dma_sizes;
  368. void *first_dtr = NULL;
  369. int dtr_cnt = 0;
  370. int data_size;
  371. dma_addr_t data_dma;
  372. int pkt_length;
  373. struct sk_buff *skb;
  374. struct vxge_rx_priv *rx_priv;
  375. struct vxge_hw_ring_rxd_info ext_info;
  376. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  377. ring->ndev->name, __func__, __LINE__);
  378. ring->pkts_processed = 0;
  379. vxge_hw_ring_replenish(ringh, 0);
  380. do {
  381. rx_priv = vxge_hw_ring_rxd_private_get(dtr);
  382. skb = rx_priv->skb;
  383. data_size = rx_priv->data_size;
  384. data_dma = rx_priv->data_dma;
  385. vxge_debug_rx(VXGE_TRACE,
  386. "%s: %s:%d skb = 0x%p",
  387. ring->ndev->name, __func__, __LINE__, skb);
  388. vxge_hw_ring_rxd_1b_get(ringh, dtr, &dma_sizes);
  389. pkt_length = dma_sizes;
  390. vxge_debug_rx(VXGE_TRACE,
  391. "%s: %s:%d Packet Length = %d",
  392. ring->ndev->name, __func__, __LINE__, pkt_length);
  393. vxge_hw_ring_rxd_1b_info_get(ringh, dtr, &ext_info);
  394. /* check skb validity */
  395. vxge_assert(skb);
  396. prefetch((char *)skb + L1_CACHE_BYTES);
  397. if (unlikely(t_code)) {
  398. if (vxge_hw_ring_handle_tcode(ringh, dtr, t_code) !=
  399. VXGE_HW_OK) {
  400. ring->stats.rx_errors++;
  401. vxge_debug_rx(VXGE_TRACE,
  402. "%s: %s :%d Rx T_code is %d",
  403. ring->ndev->name, __func__,
  404. __LINE__, t_code);
  405. /* If the t_code is not supported and if the
  406. * t_code is other than 0x5 (unparseable packet
  407. * such as unknown UPV6 header), Drop it !!!
  408. */
  409. vxge_re_pre_post(dtr, ring, rx_priv);
  410. vxge_post(&dtr_cnt, &first_dtr, dtr, ringh);
  411. ring->stats.rx_dropped++;
  412. continue;
  413. }
  414. }
  415. if (pkt_length > VXGE_LL_RX_COPY_THRESHOLD) {
  416. if (vxge_rx_alloc(dtr, ring, data_size) != NULL) {
  417. if (!vxge_rx_map(dtr, ring)) {
  418. skb_put(skb, pkt_length);
  419. pci_unmap_single(ring->pdev, data_dma,
  420. data_size, PCI_DMA_FROMDEVICE);
  421. vxge_hw_ring_rxd_pre_post(ringh, dtr);
  422. vxge_post(&dtr_cnt, &first_dtr, dtr,
  423. ringh);
  424. } else {
  425. dev_kfree_skb(rx_priv->skb);
  426. rx_priv->skb = skb;
  427. rx_priv->data_size = data_size;
  428. vxge_re_pre_post(dtr, ring, rx_priv);
  429. vxge_post(&dtr_cnt, &first_dtr, dtr,
  430. ringh);
  431. ring->stats.rx_dropped++;
  432. break;
  433. }
  434. } else {
  435. vxge_re_pre_post(dtr, ring, rx_priv);
  436. vxge_post(&dtr_cnt, &first_dtr, dtr, ringh);
  437. ring->stats.rx_dropped++;
  438. break;
  439. }
  440. } else {
  441. struct sk_buff *skb_up;
  442. skb_up = netdev_alloc_skb(dev, pkt_length +
  443. VXGE_HW_HEADER_ETHERNET_II_802_3_ALIGN);
  444. if (skb_up != NULL) {
  445. skb_reserve(skb_up,
  446. VXGE_HW_HEADER_ETHERNET_II_802_3_ALIGN);
  447. pci_dma_sync_single_for_cpu(ring->pdev,
  448. data_dma, data_size,
  449. PCI_DMA_FROMDEVICE);
  450. vxge_debug_mem(VXGE_TRACE,
  451. "%s: %s:%d skb_up = %p",
  452. ring->ndev->name, __func__,
  453. __LINE__, skb);
  454. memcpy(skb_up->data, skb->data, pkt_length);
  455. vxge_re_pre_post(dtr, ring, rx_priv);
  456. vxge_post(&dtr_cnt, &first_dtr, dtr,
  457. ringh);
  458. /* will netif_rx small SKB instead */
  459. skb = skb_up;
  460. skb_put(skb, pkt_length);
  461. } else {
  462. vxge_re_pre_post(dtr, ring, rx_priv);
  463. vxge_post(&dtr_cnt, &first_dtr, dtr, ringh);
  464. vxge_debug_rx(VXGE_ERR,
  465. "%s: vxge_rx_1b_compl: out of "
  466. "memory", dev->name);
  467. ring->stats.skb_alloc_fail++;
  468. break;
  469. }
  470. }
  471. if ((ext_info.proto & VXGE_HW_FRAME_PROTO_TCP_OR_UDP) &&
  472. !(ext_info.proto & VXGE_HW_FRAME_PROTO_IP_FRAG) &&
  473. ring->rx_csum && /* Offload Rx side CSUM */
  474. ext_info.l3_cksum == VXGE_HW_L3_CKSUM_OK &&
  475. ext_info.l4_cksum == VXGE_HW_L4_CKSUM_OK)
  476. skb->ip_summed = CHECKSUM_UNNECESSARY;
  477. else
  478. skb->ip_summed = CHECKSUM_NONE;
  479. vxge_rx_complete(ring, skb, ext_info.vlan,
  480. pkt_length, &ext_info);
  481. ring->budget--;
  482. ring->pkts_processed++;
  483. if (!ring->budget)
  484. break;
  485. } while (vxge_hw_ring_rxd_next_completed(ringh, &dtr,
  486. &t_code) == VXGE_HW_OK);
  487. if (first_dtr)
  488. vxge_hw_ring_rxd_post_post_wmb(ringh, first_dtr);
  489. dev->last_rx = jiffies;
  490. vxge_debug_entryexit(VXGE_TRACE,
  491. "%s:%d Exiting...",
  492. __func__, __LINE__);
  493. return VXGE_HW_OK;
  494. }
  495. /*
  496. * vxge_xmit_compl
  497. *
  498. * If an interrupt was raised to indicate DMA complete of the Tx packet,
  499. * this function is called. It identifies the last TxD whose buffer was
  500. * freed and frees all skbs whose data have already DMA'ed into the NICs
  501. * internal memory.
  502. */
  503. enum vxge_hw_status
  504. vxge_xmit_compl(struct __vxge_hw_fifo *fifo_hw, void *dtr,
  505. enum vxge_hw_fifo_tcode t_code, void *userdata,
  506. void **skb_ptr)
  507. {
  508. struct vxge_fifo *fifo = (struct vxge_fifo *)userdata;
  509. struct sk_buff *skb, *head = NULL;
  510. struct sk_buff **temp;
  511. int pkt_cnt = 0;
  512. vxge_debug_entryexit(VXGE_TRACE,
  513. "%s:%d Entered....", __func__, __LINE__);
  514. do {
  515. int frg_cnt;
  516. skb_frag_t *frag;
  517. int i = 0, j;
  518. struct vxge_tx_priv *txd_priv =
  519. vxge_hw_fifo_txdl_private_get(dtr);
  520. skb = txd_priv->skb;
  521. frg_cnt = skb_shinfo(skb)->nr_frags;
  522. frag = &skb_shinfo(skb)->frags[0];
  523. vxge_debug_tx(VXGE_TRACE,
  524. "%s: %s:%d fifo_hw = %p dtr = %p "
  525. "tcode = 0x%x", fifo->ndev->name, __func__,
  526. __LINE__, fifo_hw, dtr, t_code);
  527. /* check skb validity */
  528. vxge_assert(skb);
  529. vxge_debug_tx(VXGE_TRACE,
  530. "%s: %s:%d skb = %p itxd_priv = %p frg_cnt = %d",
  531. fifo->ndev->name, __func__, __LINE__,
  532. skb, txd_priv, frg_cnt);
  533. if (unlikely(t_code)) {
  534. fifo->stats.tx_errors++;
  535. vxge_debug_tx(VXGE_ERR,
  536. "%s: tx: dtr %p completed due to "
  537. "error t_code %01x", fifo->ndev->name,
  538. dtr, t_code);
  539. vxge_hw_fifo_handle_tcode(fifo_hw, dtr, t_code);
  540. }
  541. /* for unfragmented skb */
  542. pci_unmap_single(fifo->pdev, txd_priv->dma_buffers[i++],
  543. skb_headlen(skb), PCI_DMA_TODEVICE);
  544. for (j = 0; j < frg_cnt; j++) {
  545. pci_unmap_page(fifo->pdev,
  546. txd_priv->dma_buffers[i++],
  547. frag->size, PCI_DMA_TODEVICE);
  548. frag += 1;
  549. }
  550. vxge_hw_fifo_txdl_free(fifo_hw, dtr);
  551. /* Updating the statistics block */
  552. fifo->stats.tx_frms++;
  553. fifo->stats.tx_bytes += skb->len;
  554. temp = (struct sk_buff **)&skb->cb;
  555. *temp = head;
  556. head = skb;
  557. pkt_cnt++;
  558. if (pkt_cnt > fifo->indicate_max_pkts)
  559. break;
  560. } while (vxge_hw_fifo_txdl_next_completed(fifo_hw,
  561. &dtr, &t_code) == VXGE_HW_OK);
  562. vxge_wake_tx_queue(fifo, skb);
  563. if (skb_ptr)
  564. *skb_ptr = (void *) head;
  565. vxge_debug_entryexit(VXGE_TRACE,
  566. "%s: %s:%d Exiting...",
  567. fifo->ndev->name, __func__, __LINE__);
  568. return VXGE_HW_OK;
  569. }
  570. /* select a vpath to transmit the packet */
  571. static u32 vxge_get_vpath_no(struct vxgedev *vdev, struct sk_buff *skb,
  572. int *do_lock)
  573. {
  574. u16 queue_len, counter = 0;
  575. if (skb->protocol == htons(ETH_P_IP)) {
  576. struct iphdr *ip;
  577. struct tcphdr *th;
  578. ip = ip_hdr(skb);
  579. if ((ip->frag_off & htons(IP_OFFSET|IP_MF)) == 0) {
  580. th = (struct tcphdr *)(((unsigned char *)ip) +
  581. ip->ihl*4);
  582. queue_len = vdev->no_of_vpath;
  583. counter = (ntohs(th->source) +
  584. ntohs(th->dest)) &
  585. vdev->vpath_selector[queue_len - 1];
  586. if (counter >= queue_len)
  587. counter = queue_len - 1;
  588. if (ip->protocol == IPPROTO_UDP) {
  589. #ifdef NETIF_F_LLTX
  590. *do_lock = 0;
  591. #endif
  592. }
  593. }
  594. }
  595. return counter;
  596. }
  597. static enum vxge_hw_status vxge_search_mac_addr_in_list(
  598. struct vxge_vpath *vpath, u64 del_mac)
  599. {
  600. struct list_head *entry, *next;
  601. list_for_each_safe(entry, next, &vpath->mac_addr_list) {
  602. if (((struct vxge_mac_addrs *)entry)->macaddr == del_mac)
  603. return TRUE;
  604. }
  605. return FALSE;
  606. }
  607. static int vxge_learn_mac(struct vxgedev *vdev, u8 *mac_header)
  608. {
  609. struct macInfo mac_info;
  610. u8 *mac_address = NULL;
  611. u64 mac_addr = 0, vpath_vector = 0;
  612. int vpath_idx = 0;
  613. enum vxge_hw_status status = VXGE_HW_OK;
  614. struct vxge_vpath *vpath = NULL;
  615. struct __vxge_hw_device *hldev;
  616. hldev = (struct __vxge_hw_device *) pci_get_drvdata(vdev->pdev);
  617. mac_address = (u8 *)&mac_addr;
  618. memcpy(mac_address, mac_header, ETH_ALEN);
  619. /* Is this mac address already in the list? */
  620. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath; vpath_idx++) {
  621. vpath = &vdev->vpaths[vpath_idx];
  622. if (vxge_search_mac_addr_in_list(vpath, mac_addr))
  623. return vpath_idx;
  624. }
  625. memset(&mac_info, 0, sizeof(struct macInfo));
  626. memcpy(mac_info.macaddr, mac_header, ETH_ALEN);
  627. /* Any vpath has room to add mac address to its da table? */
  628. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath; vpath_idx++) {
  629. vpath = &vdev->vpaths[vpath_idx];
  630. if (vpath->mac_addr_cnt < vpath->max_mac_addr_cnt) {
  631. /* Add this mac address to this vpath */
  632. mac_info.vpath_no = vpath_idx;
  633. mac_info.state = VXGE_LL_MAC_ADDR_IN_DA_TABLE;
  634. status = vxge_add_mac_addr(vdev, &mac_info);
  635. if (status != VXGE_HW_OK)
  636. return -EPERM;
  637. return vpath_idx;
  638. }
  639. }
  640. mac_info.state = VXGE_LL_MAC_ADDR_IN_LIST;
  641. vpath_idx = 0;
  642. mac_info.vpath_no = vpath_idx;
  643. /* Is the first vpath already selected as catch-basin ? */
  644. vpath = &vdev->vpaths[vpath_idx];
  645. if (vpath->mac_addr_cnt > vpath->max_mac_addr_cnt) {
  646. /* Add this mac address to this vpath */
  647. if (FALSE == vxge_mac_list_add(vpath, &mac_info))
  648. return -EPERM;
  649. return vpath_idx;
  650. }
  651. /* Select first vpath as catch-basin */
  652. vpath_vector = vxge_mBIT(vpath->device_id);
  653. status = vxge_hw_mgmt_reg_write(vpath->vdev->devh,
  654. vxge_hw_mgmt_reg_type_mrpcim,
  655. 0,
  656. (ulong)offsetof(
  657. struct vxge_hw_mrpcim_reg,
  658. rts_mgr_cbasin_cfg),
  659. vpath_vector);
  660. if (status != VXGE_HW_OK) {
  661. vxge_debug_tx(VXGE_ERR,
  662. "%s: Unable to set the vpath-%d in catch-basin mode",
  663. VXGE_DRIVER_NAME, vpath->device_id);
  664. return -EPERM;
  665. }
  666. if (FALSE == vxge_mac_list_add(vpath, &mac_info))
  667. return -EPERM;
  668. return vpath_idx;
  669. }
  670. /**
  671. * vxge_xmit
  672. * @skb : the socket buffer containing the Tx data.
  673. * @dev : device pointer.
  674. *
  675. * This function is the Tx entry point of the driver. Neterion NIC supports
  676. * certain protocol assist features on Tx side, namely CSO, S/G, LSO.
  677. * NOTE: when device cant queue the pkt, just the trans_start variable will
  678. * not be upadted.
  679. */
  680. static int
  681. vxge_xmit(struct sk_buff *skb, struct net_device *dev)
  682. {
  683. struct vxge_fifo *fifo = NULL;
  684. void *dtr_priv;
  685. void *dtr = NULL;
  686. struct vxgedev *vdev = NULL;
  687. enum vxge_hw_status status;
  688. int frg_cnt, first_frg_len;
  689. skb_frag_t *frag;
  690. int i = 0, j = 0, avail;
  691. u64 dma_pointer;
  692. struct vxge_tx_priv *txdl_priv = NULL;
  693. struct __vxge_hw_fifo *fifo_hw;
  694. u32 max_mss = 0x0;
  695. int offload_type;
  696. unsigned long flags = 0;
  697. int vpath_no = 0;
  698. int do_spin_tx_lock = 1;
  699. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  700. dev->name, __func__, __LINE__);
  701. /* A buffer with no data will be dropped */
  702. if (unlikely(skb->len <= 0)) {
  703. vxge_debug_tx(VXGE_ERR,
  704. "%s: Buffer has no data..", dev->name);
  705. dev_kfree_skb(skb);
  706. return NETDEV_TX_OK;
  707. }
  708. vdev = (struct vxgedev *)netdev_priv(dev);
  709. if (unlikely(!is_vxge_card_up(vdev))) {
  710. vxge_debug_tx(VXGE_ERR,
  711. "%s: vdev not initialized", dev->name);
  712. dev_kfree_skb(skb);
  713. return NETDEV_TX_OK;
  714. }
  715. if (vdev->config.addr_learn_en) {
  716. vpath_no = vxge_learn_mac(vdev, skb->data + ETH_ALEN);
  717. if (vpath_no == -EPERM) {
  718. vxge_debug_tx(VXGE_ERR,
  719. "%s: Failed to store the mac address",
  720. dev->name);
  721. dev_kfree_skb(skb);
  722. return NETDEV_TX_OK;
  723. }
  724. }
  725. if (vdev->config.tx_steering_type == TX_MULTIQ_STEERING)
  726. vpath_no = skb_get_queue_mapping(skb);
  727. else if (vdev->config.tx_steering_type == TX_PORT_STEERING)
  728. vpath_no = vxge_get_vpath_no(vdev, skb, &do_spin_tx_lock);
  729. vxge_debug_tx(VXGE_TRACE, "%s: vpath_no= %d", dev->name, vpath_no);
  730. if (vpath_no >= vdev->no_of_vpath)
  731. vpath_no = 0;
  732. fifo = &vdev->vpaths[vpath_no].fifo;
  733. fifo_hw = fifo->handle;
  734. if (do_spin_tx_lock)
  735. spin_lock_irqsave(&fifo->tx_lock, flags);
  736. else {
  737. if (unlikely(!spin_trylock_irqsave(&fifo->tx_lock, flags)))
  738. return NETDEV_TX_LOCKED;
  739. }
  740. if (vdev->config.tx_steering_type == TX_MULTIQ_STEERING) {
  741. if (netif_subqueue_stopped(dev, skb)) {
  742. spin_unlock_irqrestore(&fifo->tx_lock, flags);
  743. return NETDEV_TX_BUSY;
  744. }
  745. } else if (unlikely(fifo->queue_state == VPATH_QUEUE_STOP)) {
  746. if (netif_queue_stopped(dev)) {
  747. spin_unlock_irqrestore(&fifo->tx_lock, flags);
  748. return NETDEV_TX_BUSY;
  749. }
  750. }
  751. avail = vxge_hw_fifo_free_txdl_count_get(fifo_hw);
  752. if (avail == 0) {
  753. vxge_debug_tx(VXGE_ERR,
  754. "%s: No free TXDs available", dev->name);
  755. fifo->stats.txd_not_free++;
  756. vxge_stop_tx_queue(fifo);
  757. goto _exit2;
  758. }
  759. status = vxge_hw_fifo_txdl_reserve(fifo_hw, &dtr, &dtr_priv);
  760. if (unlikely(status != VXGE_HW_OK)) {
  761. vxge_debug_tx(VXGE_ERR,
  762. "%s: Out of descriptors .", dev->name);
  763. fifo->stats.txd_out_of_desc++;
  764. vxge_stop_tx_queue(fifo);
  765. goto _exit2;
  766. }
  767. vxge_debug_tx(VXGE_TRACE,
  768. "%s: %s:%d fifo_hw = %p dtr = %p dtr_priv = %p",
  769. dev->name, __func__, __LINE__,
  770. fifo_hw, dtr, dtr_priv);
  771. if (vdev->vlgrp && vlan_tx_tag_present(skb)) {
  772. u16 vlan_tag = vlan_tx_tag_get(skb);
  773. vxge_hw_fifo_txdl_vlan_set(dtr, vlan_tag);
  774. }
  775. first_frg_len = skb_headlen(skb);
  776. dma_pointer = pci_map_single(fifo->pdev, skb->data, first_frg_len,
  777. PCI_DMA_TODEVICE);
  778. if (unlikely(pci_dma_mapping_error(fifo->pdev, dma_pointer))) {
  779. vxge_hw_fifo_txdl_free(fifo_hw, dtr);
  780. vxge_stop_tx_queue(fifo);
  781. fifo->stats.pci_map_fail++;
  782. goto _exit2;
  783. }
  784. txdl_priv = vxge_hw_fifo_txdl_private_get(dtr);
  785. txdl_priv->skb = skb;
  786. txdl_priv->dma_buffers[j] = dma_pointer;
  787. frg_cnt = skb_shinfo(skb)->nr_frags;
  788. vxge_debug_tx(VXGE_TRACE,
  789. "%s: %s:%d skb = %p txdl_priv = %p "
  790. "frag_cnt = %d dma_pointer = 0x%llx", dev->name,
  791. __func__, __LINE__, skb, txdl_priv,
  792. frg_cnt, (unsigned long long)dma_pointer);
  793. vxge_hw_fifo_txdl_buffer_set(fifo_hw, dtr, j++, dma_pointer,
  794. first_frg_len);
  795. frag = &skb_shinfo(skb)->frags[0];
  796. for (i = 0; i < frg_cnt; i++) {
  797. /* ignore 0 length fragment */
  798. if (!frag->size)
  799. continue;
  800. dma_pointer =
  801. (u64)pci_map_page(fifo->pdev, frag->page,
  802. frag->page_offset, frag->size,
  803. PCI_DMA_TODEVICE);
  804. if (unlikely(pci_dma_mapping_error(fifo->pdev, dma_pointer)))
  805. goto _exit0;
  806. vxge_debug_tx(VXGE_TRACE,
  807. "%s: %s:%d frag = %d dma_pointer = 0x%llx",
  808. dev->name, __func__, __LINE__, i,
  809. (unsigned long long)dma_pointer);
  810. txdl_priv->dma_buffers[j] = dma_pointer;
  811. vxge_hw_fifo_txdl_buffer_set(fifo_hw, dtr, j++, dma_pointer,
  812. frag->size);
  813. frag += 1;
  814. }
  815. offload_type = vxge_offload_type(skb);
  816. if (offload_type & (SKB_GSO_TCPV4 | SKB_GSO_TCPV6)) {
  817. int mss = vxge_tcp_mss(skb);
  818. if (mss) {
  819. max_mss = dev->mtu + ETH_HLEN -
  820. VXGE_HW_TCPIP_HEADER_MAX_SIZE;
  821. if (mss > max_mss)
  822. mss = max_mss;
  823. vxge_debug_tx(VXGE_TRACE,
  824. "%s: %s:%d mss = %d",
  825. dev->name, __func__, __LINE__, mss);
  826. vxge_hw_fifo_txdl_mss_set(dtr, mss);
  827. } else {
  828. vxge_assert(skb->len <=
  829. dev->mtu + VXGE_HW_MAC_HEADER_MAX_SIZE);
  830. vxge_assert(0);
  831. goto _exit1;
  832. }
  833. }
  834. if (skb->ip_summed == CHECKSUM_PARTIAL)
  835. vxge_hw_fifo_txdl_cksum_set_bits(dtr,
  836. VXGE_HW_FIFO_TXD_TX_CKO_IPV4_EN |
  837. VXGE_HW_FIFO_TXD_TX_CKO_TCP_EN |
  838. VXGE_HW_FIFO_TXD_TX_CKO_UDP_EN);
  839. vxge_hw_fifo_txdl_post(fifo_hw, dtr);
  840. #ifdef NETIF_F_LLTX
  841. dev->trans_start = jiffies; /* NETIF_F_LLTX driver :( */
  842. #endif
  843. spin_unlock_irqrestore(&fifo->tx_lock, flags);
  844. VXGE_COMPLETE_VPATH_TX(fifo);
  845. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d Exiting...",
  846. dev->name, __func__, __LINE__);
  847. return 0;
  848. _exit0:
  849. vxge_debug_tx(VXGE_TRACE, "%s: pci_map_page failed", dev->name);
  850. _exit1:
  851. j = 0;
  852. frag = &skb_shinfo(skb)->frags[0];
  853. pci_unmap_single(fifo->pdev, txdl_priv->dma_buffers[j++],
  854. skb_headlen(skb), PCI_DMA_TODEVICE);
  855. for (; j < i; j++) {
  856. pci_unmap_page(fifo->pdev, txdl_priv->dma_buffers[j],
  857. frag->size, PCI_DMA_TODEVICE);
  858. frag += 1;
  859. }
  860. vxge_hw_fifo_txdl_free(fifo_hw, dtr);
  861. _exit2:
  862. dev_kfree_skb(skb);
  863. spin_unlock_irqrestore(&fifo->tx_lock, flags);
  864. VXGE_COMPLETE_VPATH_TX(fifo);
  865. return 0;
  866. }
  867. /*
  868. * vxge_rx_term
  869. *
  870. * Function will be called by hw function to abort all outstanding receive
  871. * descriptors.
  872. */
  873. static void
  874. vxge_rx_term(void *dtrh, enum vxge_hw_rxd_state state, void *userdata)
  875. {
  876. struct vxge_ring *ring = (struct vxge_ring *)userdata;
  877. struct vxge_rx_priv *rx_priv =
  878. vxge_hw_ring_rxd_private_get(dtrh);
  879. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  880. ring->ndev->name, __func__, __LINE__);
  881. if (state != VXGE_HW_RXD_STATE_POSTED)
  882. return;
  883. pci_unmap_single(ring->pdev, rx_priv->data_dma,
  884. rx_priv->data_size, PCI_DMA_FROMDEVICE);
  885. dev_kfree_skb(rx_priv->skb);
  886. vxge_debug_entryexit(VXGE_TRACE,
  887. "%s: %s:%d Exiting...",
  888. ring->ndev->name, __func__, __LINE__);
  889. }
  890. /*
  891. * vxge_tx_term
  892. *
  893. * Function will be called to abort all outstanding tx descriptors
  894. */
  895. static void
  896. vxge_tx_term(void *dtrh, enum vxge_hw_txdl_state state, void *userdata)
  897. {
  898. struct vxge_fifo *fifo = (struct vxge_fifo *)userdata;
  899. skb_frag_t *frag;
  900. int i = 0, j, frg_cnt;
  901. struct vxge_tx_priv *txd_priv = vxge_hw_fifo_txdl_private_get(dtrh);
  902. struct sk_buff *skb = txd_priv->skb;
  903. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  904. if (state != VXGE_HW_TXDL_STATE_POSTED)
  905. return;
  906. /* check skb validity */
  907. vxge_assert(skb);
  908. frg_cnt = skb_shinfo(skb)->nr_frags;
  909. frag = &skb_shinfo(skb)->frags[0];
  910. /* for unfragmented skb */
  911. pci_unmap_single(fifo->pdev, txd_priv->dma_buffers[i++],
  912. skb_headlen(skb), PCI_DMA_TODEVICE);
  913. for (j = 0; j < frg_cnt; j++) {
  914. pci_unmap_page(fifo->pdev, txd_priv->dma_buffers[i++],
  915. frag->size, PCI_DMA_TODEVICE);
  916. frag += 1;
  917. }
  918. dev_kfree_skb(skb);
  919. vxge_debug_entryexit(VXGE_TRACE,
  920. "%s:%d Exiting...", __func__, __LINE__);
  921. }
  922. /**
  923. * vxge_set_multicast
  924. * @dev: pointer to the device structure
  925. *
  926. * Entry point for multicast address enable/disable
  927. * This function is a driver entry point which gets called by the kernel
  928. * whenever multicast addresses must be enabled/disabled. This also gets
  929. * called to set/reset promiscuous mode. Depending on the deivce flag, we
  930. * determine, if multicast address must be enabled or if promiscuous mode
  931. * is to be disabled etc.
  932. */
  933. static void vxge_set_multicast(struct net_device *dev)
  934. {
  935. struct dev_mc_list *mclist;
  936. struct vxgedev *vdev;
  937. int i, mcast_cnt = 0;
  938. struct __vxge_hw_device *hldev;
  939. enum vxge_hw_status status = VXGE_HW_OK;
  940. struct macInfo mac_info;
  941. int vpath_idx = 0;
  942. struct vxge_mac_addrs *mac_entry;
  943. struct list_head *list_head;
  944. struct list_head *entry, *next;
  945. u8 *mac_address = NULL;
  946. vxge_debug_entryexit(VXGE_TRACE,
  947. "%s:%d", __func__, __LINE__);
  948. vdev = (struct vxgedev *)netdev_priv(dev);
  949. hldev = (struct __vxge_hw_device *)vdev->devh;
  950. if (unlikely(!is_vxge_card_up(vdev)))
  951. return;
  952. if ((dev->flags & IFF_ALLMULTI) && (!vdev->all_multi_flg)) {
  953. for (i = 0; i < vdev->no_of_vpath; i++) {
  954. vxge_assert(vdev->vpaths[i].is_open);
  955. status = vxge_hw_vpath_mcast_enable(
  956. vdev->vpaths[i].handle);
  957. vdev->all_multi_flg = 1;
  958. }
  959. } else if ((dev->flags & IFF_ALLMULTI) && (vdev->all_multi_flg)) {
  960. for (i = 0; i < vdev->no_of_vpath; i++) {
  961. vxge_assert(vdev->vpaths[i].is_open);
  962. status = vxge_hw_vpath_mcast_disable(
  963. vdev->vpaths[i].handle);
  964. vdev->all_multi_flg = 1;
  965. }
  966. }
  967. if (status != VXGE_HW_OK)
  968. vxge_debug_init(VXGE_ERR,
  969. "failed to %s multicast, status %d",
  970. dev->flags & IFF_ALLMULTI ?
  971. "enable" : "disable", status);
  972. if (!vdev->config.addr_learn_en) {
  973. if (dev->flags & IFF_PROMISC) {
  974. for (i = 0; i < vdev->no_of_vpath; i++) {
  975. vxge_assert(vdev->vpaths[i].is_open);
  976. status = vxge_hw_vpath_promisc_enable(
  977. vdev->vpaths[i].handle);
  978. }
  979. } else {
  980. for (i = 0; i < vdev->no_of_vpath; i++) {
  981. vxge_assert(vdev->vpaths[i].is_open);
  982. status = vxge_hw_vpath_promisc_disable(
  983. vdev->vpaths[i].handle);
  984. }
  985. }
  986. }
  987. memset(&mac_info, 0, sizeof(struct macInfo));
  988. /* Update individual M_CAST address list */
  989. if ((!vdev->all_multi_flg) && dev->mc_count) {
  990. mcast_cnt = vdev->vpaths[0].mcast_addr_cnt;
  991. list_head = &vdev->vpaths[0].mac_addr_list;
  992. if ((dev->mc_count +
  993. (vdev->vpaths[0].mac_addr_cnt - mcast_cnt)) >
  994. vdev->vpaths[0].max_mac_addr_cnt)
  995. goto _set_all_mcast;
  996. /* Delete previous MC's */
  997. for (i = 0; i < mcast_cnt; i++) {
  998. if (!list_empty(list_head))
  999. mac_entry = (struct vxge_mac_addrs *)
  1000. list_first_entry(list_head,
  1001. struct vxge_mac_addrs,
  1002. item);
  1003. list_for_each_safe(entry, next, list_head) {
  1004. mac_entry = (struct vxge_mac_addrs *) entry;
  1005. /* Copy the mac address to delete */
  1006. mac_address = (u8 *)&mac_entry->macaddr;
  1007. memcpy(mac_info.macaddr, mac_address, ETH_ALEN);
  1008. /* Is this a multicast address */
  1009. if (0x01 & mac_info.macaddr[0]) {
  1010. for (vpath_idx = 0; vpath_idx <
  1011. vdev->no_of_vpath;
  1012. vpath_idx++) {
  1013. mac_info.vpath_no = vpath_idx;
  1014. status = vxge_del_mac_addr(
  1015. vdev,
  1016. &mac_info);
  1017. }
  1018. }
  1019. }
  1020. }
  1021. /* Add new ones */
  1022. for (i = 0, mclist = dev->mc_list; i < dev->mc_count;
  1023. i++, mclist = mclist->next) {
  1024. memcpy(mac_info.macaddr, mclist->dmi_addr, ETH_ALEN);
  1025. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath;
  1026. vpath_idx++) {
  1027. mac_info.vpath_no = vpath_idx;
  1028. mac_info.state = VXGE_LL_MAC_ADDR_IN_DA_TABLE;
  1029. status = vxge_add_mac_addr(vdev, &mac_info);
  1030. if (status != VXGE_HW_OK) {
  1031. vxge_debug_init(VXGE_ERR,
  1032. "%s:%d Setting individual"
  1033. "multicast address failed",
  1034. __func__, __LINE__);
  1035. goto _set_all_mcast;
  1036. }
  1037. }
  1038. }
  1039. return;
  1040. _set_all_mcast:
  1041. mcast_cnt = vdev->vpaths[0].mcast_addr_cnt;
  1042. /* Delete previous MC's */
  1043. for (i = 0; i < mcast_cnt; i++) {
  1044. list_for_each_safe(entry, next, list_head) {
  1045. mac_entry = (struct vxge_mac_addrs *) entry;
  1046. /* Copy the mac address to delete */
  1047. mac_address = (u8 *)&mac_entry->macaddr;
  1048. memcpy(mac_info.macaddr, mac_address, ETH_ALEN);
  1049. /* Is this a multicast address */
  1050. if (0x01 & mac_info.macaddr[0])
  1051. break;
  1052. }
  1053. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath;
  1054. vpath_idx++) {
  1055. mac_info.vpath_no = vpath_idx;
  1056. status = vxge_del_mac_addr(vdev, &mac_info);
  1057. }
  1058. }
  1059. /* Enable all multicast */
  1060. for (i = 0; i < vdev->no_of_vpath; i++) {
  1061. vxge_assert(vdev->vpaths[i].is_open);
  1062. status = vxge_hw_vpath_mcast_enable(
  1063. vdev->vpaths[i].handle);
  1064. if (status != VXGE_HW_OK) {
  1065. vxge_debug_init(VXGE_ERR,
  1066. "%s:%d Enabling all multicasts failed",
  1067. __func__, __LINE__);
  1068. }
  1069. vdev->all_multi_flg = 1;
  1070. }
  1071. dev->flags |= IFF_ALLMULTI;
  1072. }
  1073. vxge_debug_entryexit(VXGE_TRACE,
  1074. "%s:%d Exiting...", __func__, __LINE__);
  1075. }
  1076. /**
  1077. * vxge_set_mac_addr
  1078. * @dev: pointer to the device structure
  1079. *
  1080. * Update entry "0" (default MAC addr)
  1081. */
  1082. static int vxge_set_mac_addr(struct net_device *dev, void *p)
  1083. {
  1084. struct sockaddr *addr = p;
  1085. struct vxgedev *vdev;
  1086. struct __vxge_hw_device *hldev;
  1087. enum vxge_hw_status status = VXGE_HW_OK;
  1088. struct macInfo mac_info_new, mac_info_old;
  1089. int vpath_idx = 0;
  1090. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  1091. vdev = (struct vxgedev *)netdev_priv(dev);
  1092. hldev = vdev->devh;
  1093. if (!is_valid_ether_addr(addr->sa_data))
  1094. return -EINVAL;
  1095. memset(&mac_info_new, 0, sizeof(struct macInfo));
  1096. memset(&mac_info_old, 0, sizeof(struct macInfo));
  1097. vxge_debug_entryexit(VXGE_TRACE, "%s:%d Exiting...",
  1098. __func__, __LINE__);
  1099. /* Get the old address */
  1100. memcpy(mac_info_old.macaddr, dev->dev_addr, dev->addr_len);
  1101. /* Copy the new address */
  1102. memcpy(mac_info_new.macaddr, addr->sa_data, dev->addr_len);
  1103. /* First delete the old mac address from all the vpaths
  1104. as we can't specify the index while adding new mac address */
  1105. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath; vpath_idx++) {
  1106. struct vxge_vpath *vpath = &vdev->vpaths[vpath_idx];
  1107. if (!vpath->is_open) {
  1108. /* This can happen when this interface is added/removed
  1109. to the bonding interface. Delete this station address
  1110. from the linked list */
  1111. vxge_mac_list_del(vpath, &mac_info_old);
  1112. /* Add this new address to the linked list
  1113. for later restoring */
  1114. vxge_mac_list_add(vpath, &mac_info_new);
  1115. continue;
  1116. }
  1117. /* Delete the station address */
  1118. mac_info_old.vpath_no = vpath_idx;
  1119. status = vxge_del_mac_addr(vdev, &mac_info_old);
  1120. }
  1121. if (unlikely(!is_vxge_card_up(vdev))) {
  1122. memcpy(dev->dev_addr, addr->sa_data, dev->addr_len);
  1123. return VXGE_HW_OK;
  1124. }
  1125. /* Set this mac address to all the vpaths */
  1126. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath; vpath_idx++) {
  1127. mac_info_new.vpath_no = vpath_idx;
  1128. mac_info_new.state = VXGE_LL_MAC_ADDR_IN_DA_TABLE;
  1129. status = vxge_add_mac_addr(vdev, &mac_info_new);
  1130. if (status != VXGE_HW_OK)
  1131. return -EINVAL;
  1132. }
  1133. memcpy(dev->dev_addr, addr->sa_data, dev->addr_len);
  1134. return status;
  1135. }
  1136. /*
  1137. * vxge_vpath_intr_enable
  1138. * @vdev: pointer to vdev
  1139. * @vp_id: vpath for which to enable the interrupts
  1140. *
  1141. * Enables the interrupts for the vpath
  1142. */
  1143. void vxge_vpath_intr_enable(struct vxgedev *vdev, int vp_id)
  1144. {
  1145. struct vxge_vpath *vpath = &vdev->vpaths[vp_id];
  1146. int msix_id, alarm_msix_id;
  1147. int tim_msix_id[4] = {[0 ...3] = 0};
  1148. vxge_hw_vpath_intr_enable(vpath->handle);
  1149. if (vdev->config.intr_type == INTA)
  1150. vxge_hw_vpath_inta_unmask_tx_rx(vpath->handle);
  1151. else {
  1152. msix_id = vp_id * VXGE_HW_VPATH_MSIX_ACTIVE;
  1153. alarm_msix_id =
  1154. VXGE_HW_VPATH_MSIX_ACTIVE * vdev->no_of_vpath - 2;
  1155. tim_msix_id[0] = msix_id;
  1156. tim_msix_id[1] = msix_id + 1;
  1157. vxge_hw_vpath_msix_set(vpath->handle, tim_msix_id,
  1158. alarm_msix_id);
  1159. vxge_hw_vpath_msix_unmask(vpath->handle, msix_id);
  1160. vxge_hw_vpath_msix_unmask(vpath->handle, msix_id + 1);
  1161. /* enable the alarm vector */
  1162. vxge_hw_vpath_msix_unmask(vpath->handle, alarm_msix_id);
  1163. }
  1164. }
  1165. /*
  1166. * vxge_vpath_intr_disable
  1167. * @vdev: pointer to vdev
  1168. * @vp_id: vpath for which to disable the interrupts
  1169. *
  1170. * Disables the interrupts for the vpath
  1171. */
  1172. void vxge_vpath_intr_disable(struct vxgedev *vdev, int vp_id)
  1173. {
  1174. struct vxge_vpath *vpath = &vdev->vpaths[vp_id];
  1175. int msix_id;
  1176. vxge_hw_vpath_intr_disable(vpath->handle);
  1177. if (vdev->config.intr_type == INTA)
  1178. vxge_hw_vpath_inta_mask_tx_rx(vpath->handle);
  1179. else {
  1180. msix_id = vp_id * VXGE_HW_VPATH_MSIX_ACTIVE;
  1181. vxge_hw_vpath_msix_mask(vpath->handle, msix_id);
  1182. vxge_hw_vpath_msix_mask(vpath->handle, msix_id + 1);
  1183. /* disable the alarm vector */
  1184. msix_id = VXGE_HW_VPATH_MSIX_ACTIVE * vdev->no_of_vpath - 2;
  1185. vxge_hw_vpath_msix_mask(vpath->handle, msix_id);
  1186. }
  1187. }
  1188. /*
  1189. * vxge_reset_vpath
  1190. * @vdev: pointer to vdev
  1191. * @vp_id: vpath to reset
  1192. *
  1193. * Resets the vpath
  1194. */
  1195. static int vxge_reset_vpath(struct vxgedev *vdev, int vp_id)
  1196. {
  1197. enum vxge_hw_status status = VXGE_HW_OK;
  1198. int ret = 0;
  1199. /* check if device is down already */
  1200. if (unlikely(!is_vxge_card_up(vdev)))
  1201. return 0;
  1202. /* is device reset already scheduled */
  1203. if (test_bit(__VXGE_STATE_RESET_CARD, &vdev->state))
  1204. return 0;
  1205. if (vdev->vpaths[vp_id].handle) {
  1206. if (vxge_hw_vpath_reset(vdev->vpaths[vp_id].handle)
  1207. == VXGE_HW_OK) {
  1208. if (is_vxge_card_up(vdev) &&
  1209. vxge_hw_vpath_recover_from_reset(
  1210. vdev->vpaths[vp_id].handle)
  1211. != VXGE_HW_OK) {
  1212. vxge_debug_init(VXGE_ERR,
  1213. "vxge_hw_vpath_recover_from_reset"
  1214. "failed for vpath:%d", vp_id);
  1215. return status;
  1216. }
  1217. } else {
  1218. vxge_debug_init(VXGE_ERR,
  1219. "vxge_hw_vpath_reset failed for"
  1220. "vpath:%d", vp_id);
  1221. return status;
  1222. }
  1223. } else
  1224. return VXGE_HW_FAIL;
  1225. vxge_restore_vpath_mac_addr(&vdev->vpaths[vp_id]);
  1226. vxge_restore_vpath_vid_table(&vdev->vpaths[vp_id]);
  1227. /* Enable all broadcast */
  1228. vxge_hw_vpath_bcast_enable(vdev->vpaths[vp_id].handle);
  1229. /* Enable the interrupts */
  1230. vxge_vpath_intr_enable(vdev, vp_id);
  1231. smp_wmb();
  1232. /* Enable the flow of traffic through the vpath */
  1233. vxge_hw_vpath_enable(vdev->vpaths[vp_id].handle);
  1234. smp_wmb();
  1235. vxge_hw_vpath_rx_doorbell_init(vdev->vpaths[vp_id].handle);
  1236. vdev->vpaths[vp_id].ring.last_status = VXGE_HW_OK;
  1237. /* Vpath reset done */
  1238. clear_bit(vp_id, &vdev->vp_reset);
  1239. /* Start the vpath queue */
  1240. vxge_wake_tx_queue(&vdev->vpaths[vp_id].fifo, NULL);
  1241. return ret;
  1242. }
  1243. static int do_vxge_reset(struct vxgedev *vdev, int event)
  1244. {
  1245. enum vxge_hw_status status;
  1246. int ret = 0, vp_id, i;
  1247. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  1248. if ((event == VXGE_LL_FULL_RESET) || (event == VXGE_LL_START_RESET)) {
  1249. /* check if device is down already */
  1250. if (unlikely(!is_vxge_card_up(vdev)))
  1251. return 0;
  1252. /* is reset already scheduled */
  1253. if (test_and_set_bit(__VXGE_STATE_RESET_CARD, &vdev->state))
  1254. return 0;
  1255. }
  1256. if (event == VXGE_LL_FULL_RESET) {
  1257. /* wait for all the vpath reset to complete */
  1258. for (vp_id = 0; vp_id < vdev->no_of_vpath; vp_id++) {
  1259. while (test_bit(vp_id, &vdev->vp_reset))
  1260. msleep(50);
  1261. }
  1262. /* if execution mode is set to debug, don't reset the adapter */
  1263. if (unlikely(vdev->exec_mode)) {
  1264. vxge_debug_init(VXGE_ERR,
  1265. "%s: execution mode is debug, returning..",
  1266. vdev->ndev->name);
  1267. clear_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  1268. vxge_stop_all_tx_queue(vdev);
  1269. return 0;
  1270. }
  1271. }
  1272. if (event == VXGE_LL_FULL_RESET) {
  1273. vxge_hw_device_intr_disable(vdev->devh);
  1274. switch (vdev->cric_err_event) {
  1275. case VXGE_HW_EVENT_UNKNOWN:
  1276. vxge_stop_all_tx_queue(vdev);
  1277. vxge_debug_init(VXGE_ERR,
  1278. "fatal: %s: Disabling device due to"
  1279. "unknown error",
  1280. vdev->ndev->name);
  1281. ret = -EPERM;
  1282. goto out;
  1283. case VXGE_HW_EVENT_RESET_START:
  1284. break;
  1285. case VXGE_HW_EVENT_RESET_COMPLETE:
  1286. case VXGE_HW_EVENT_LINK_DOWN:
  1287. case VXGE_HW_EVENT_LINK_UP:
  1288. case VXGE_HW_EVENT_ALARM_CLEARED:
  1289. case VXGE_HW_EVENT_ECCERR:
  1290. case VXGE_HW_EVENT_MRPCIM_ECCERR:
  1291. ret = -EPERM;
  1292. goto out;
  1293. case VXGE_HW_EVENT_FIFO_ERR:
  1294. case VXGE_HW_EVENT_VPATH_ERR:
  1295. break;
  1296. case VXGE_HW_EVENT_CRITICAL_ERR:
  1297. vxge_stop_all_tx_queue(vdev);
  1298. vxge_debug_init(VXGE_ERR,
  1299. "fatal: %s: Disabling device due to"
  1300. "serious error",
  1301. vdev->ndev->name);
  1302. /* SOP or device reset required */
  1303. /* This event is not currently used */
  1304. ret = -EPERM;
  1305. goto out;
  1306. case VXGE_HW_EVENT_SERR:
  1307. vxge_stop_all_tx_queue(vdev);
  1308. vxge_debug_init(VXGE_ERR,
  1309. "fatal: %s: Disabling device due to"
  1310. "serious error",
  1311. vdev->ndev->name);
  1312. ret = -EPERM;
  1313. goto out;
  1314. case VXGE_HW_EVENT_SRPCIM_SERR:
  1315. case VXGE_HW_EVENT_MRPCIM_SERR:
  1316. ret = -EPERM;
  1317. goto out;
  1318. case VXGE_HW_EVENT_SLOT_FREEZE:
  1319. vxge_stop_all_tx_queue(vdev);
  1320. vxge_debug_init(VXGE_ERR,
  1321. "fatal: %s: Disabling device due to"
  1322. "slot freeze",
  1323. vdev->ndev->name);
  1324. ret = -EPERM;
  1325. goto out;
  1326. default:
  1327. break;
  1328. }
  1329. }
  1330. if ((event == VXGE_LL_FULL_RESET) || (event == VXGE_LL_START_RESET))
  1331. vxge_stop_all_tx_queue(vdev);
  1332. if (event == VXGE_LL_FULL_RESET) {
  1333. status = vxge_reset_all_vpaths(vdev);
  1334. if (status != VXGE_HW_OK) {
  1335. vxge_debug_init(VXGE_ERR,
  1336. "fatal: %s: can not reset vpaths",
  1337. vdev->ndev->name);
  1338. ret = -EPERM;
  1339. goto out;
  1340. }
  1341. }
  1342. if (event == VXGE_LL_COMPL_RESET) {
  1343. for (i = 0; i < vdev->no_of_vpath; i++)
  1344. if (vdev->vpaths[i].handle) {
  1345. if (vxge_hw_vpath_recover_from_reset(
  1346. vdev->vpaths[i].handle)
  1347. != VXGE_HW_OK) {
  1348. vxge_debug_init(VXGE_ERR,
  1349. "vxge_hw_vpath_recover_"
  1350. "from_reset failed for vpath: "
  1351. "%d", i);
  1352. ret = -EPERM;
  1353. goto out;
  1354. }
  1355. } else {
  1356. vxge_debug_init(VXGE_ERR,
  1357. "vxge_hw_vpath_reset failed for "
  1358. "vpath:%d", i);
  1359. ret = -EPERM;
  1360. goto out;
  1361. }
  1362. }
  1363. if ((event == VXGE_LL_FULL_RESET) || (event == VXGE_LL_COMPL_RESET)) {
  1364. /* Reprogram the DA table with populated mac addresses */
  1365. for (vp_id = 0; vp_id < vdev->no_of_vpath; vp_id++) {
  1366. vxge_restore_vpath_mac_addr(&vdev->vpaths[vp_id]);
  1367. vxge_restore_vpath_vid_table(&vdev->vpaths[vp_id]);
  1368. }
  1369. /* enable vpath interrupts */
  1370. for (i = 0; i < vdev->no_of_vpath; i++)
  1371. vxge_vpath_intr_enable(vdev, i);
  1372. vxge_hw_device_intr_enable(vdev->devh);
  1373. smp_wmb();
  1374. /* Indicate card up */
  1375. set_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  1376. /* Get the traffic to flow through the vpaths */
  1377. for (i = 0; i < vdev->no_of_vpath; i++) {
  1378. vxge_hw_vpath_enable(vdev->vpaths[i].handle);
  1379. smp_wmb();
  1380. vxge_hw_vpath_rx_doorbell_init(vdev->vpaths[i].handle);
  1381. }
  1382. vxge_wake_all_tx_queue(vdev);
  1383. }
  1384. out:
  1385. vxge_debug_entryexit(VXGE_TRACE,
  1386. "%s:%d Exiting...", __func__, __LINE__);
  1387. /* Indicate reset done */
  1388. if ((event == VXGE_LL_FULL_RESET) || (event == VXGE_LL_COMPL_RESET))
  1389. clear_bit(__VXGE_STATE_RESET_CARD, &vdev->state);
  1390. return ret;
  1391. }
  1392. /*
  1393. * vxge_reset
  1394. * @vdev: pointer to ll device
  1395. *
  1396. * driver may reset the chip on events of serr, eccerr, etc
  1397. */
  1398. int vxge_reset(struct vxgedev *vdev)
  1399. {
  1400. do_vxge_reset(vdev, VXGE_LL_FULL_RESET);
  1401. return 0;
  1402. }
  1403. /**
  1404. * vxge_poll - Receive handler when Receive Polling is used.
  1405. * @dev: pointer to the device structure.
  1406. * @budget: Number of packets budgeted to be processed in this iteration.
  1407. *
  1408. * This function comes into picture only if Receive side is being handled
  1409. * through polling (called NAPI in linux). It mostly does what the normal
  1410. * Rx interrupt handler does in terms of descriptor and packet processing
  1411. * but not in an interrupt context. Also it will process a specified number
  1412. * of packets at most in one iteration. This value is passed down by the
  1413. * kernel as the function argument 'budget'.
  1414. */
  1415. static int vxge_poll_msix(struct napi_struct *napi, int budget)
  1416. {
  1417. struct vxge_ring *ring =
  1418. container_of(napi, struct vxge_ring, napi);
  1419. int budget_org = budget;
  1420. ring->budget = budget;
  1421. vxge_hw_vpath_poll_rx(ring->handle);
  1422. if (ring->pkts_processed < budget_org) {
  1423. napi_complete(napi);
  1424. /* Re enable the Rx interrupts for the vpath */
  1425. vxge_hw_channel_msix_unmask(
  1426. (struct __vxge_hw_channel *)ring->handle,
  1427. ring->rx_vector_no);
  1428. }
  1429. return ring->pkts_processed;
  1430. }
  1431. static int vxge_poll_inta(struct napi_struct *napi, int budget)
  1432. {
  1433. struct vxgedev *vdev = container_of(napi, struct vxgedev, napi);
  1434. int pkts_processed = 0;
  1435. int i;
  1436. int budget_org = budget;
  1437. struct vxge_ring *ring;
  1438. struct __vxge_hw_device *hldev = (struct __vxge_hw_device *)
  1439. pci_get_drvdata(vdev->pdev);
  1440. for (i = 0; i < vdev->no_of_vpath; i++) {
  1441. ring = &vdev->vpaths[i].ring;
  1442. ring->budget = budget;
  1443. vxge_hw_vpath_poll_rx(ring->handle);
  1444. pkts_processed += ring->pkts_processed;
  1445. budget -= ring->pkts_processed;
  1446. if (budget <= 0)
  1447. break;
  1448. }
  1449. VXGE_COMPLETE_ALL_TX(vdev);
  1450. if (pkts_processed < budget_org) {
  1451. napi_complete(napi);
  1452. /* Re enable the Rx interrupts for the ring */
  1453. vxge_hw_device_unmask_all(hldev);
  1454. vxge_hw_device_flush_io(hldev);
  1455. }
  1456. return pkts_processed;
  1457. }
  1458. #ifdef CONFIG_NET_POLL_CONTROLLER
  1459. /**
  1460. * vxge_netpoll - netpoll event handler entry point
  1461. * @dev : pointer to the device structure.
  1462. * Description:
  1463. * This function will be called by upper layer to check for events on the
  1464. * interface in situations where interrupts are disabled. It is used for
  1465. * specific in-kernel networking tasks, such as remote consoles and kernel
  1466. * debugging over the network (example netdump in RedHat).
  1467. */
  1468. static void vxge_netpoll(struct net_device *dev)
  1469. {
  1470. struct __vxge_hw_device *hldev;
  1471. struct vxgedev *vdev;
  1472. vdev = (struct vxgedev *)netdev_priv(dev);
  1473. hldev = (struct __vxge_hw_device *)pci_get_drvdata(vdev->pdev);
  1474. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  1475. if (pci_channel_offline(vdev->pdev))
  1476. return;
  1477. disable_irq(dev->irq);
  1478. vxge_hw_device_clear_tx_rx(hldev);
  1479. vxge_hw_device_clear_tx_rx(hldev);
  1480. VXGE_COMPLETE_ALL_RX(vdev);
  1481. VXGE_COMPLETE_ALL_TX(vdev);
  1482. enable_irq(dev->irq);
  1483. vxge_debug_entryexit(VXGE_TRACE,
  1484. "%s:%d Exiting...", __func__, __LINE__);
  1485. return;
  1486. }
  1487. #endif
  1488. /* RTH configuration */
  1489. static enum vxge_hw_status vxge_rth_configure(struct vxgedev *vdev)
  1490. {
  1491. enum vxge_hw_status status = VXGE_HW_OK;
  1492. struct vxge_hw_rth_hash_types hash_types;
  1493. u8 itable[256] = {0}; /* indirection table */
  1494. u8 mtable[256] = {0}; /* CPU to vpath mapping */
  1495. int index;
  1496. /*
  1497. * Filling
  1498. * - itable with bucket numbers
  1499. * - mtable with bucket-to-vpath mapping
  1500. */
  1501. for (index = 0; index < (1 << vdev->config.rth_bkt_sz); index++) {
  1502. itable[index] = index;
  1503. mtable[index] = index % vdev->no_of_vpath;
  1504. }
  1505. /* Fill RTH hash types */
  1506. hash_types.hash_type_tcpipv4_en = vdev->config.rth_hash_type_tcpipv4;
  1507. hash_types.hash_type_ipv4_en = vdev->config.rth_hash_type_ipv4;
  1508. hash_types.hash_type_tcpipv6_en = vdev->config.rth_hash_type_tcpipv6;
  1509. hash_types.hash_type_ipv6_en = vdev->config.rth_hash_type_ipv6;
  1510. hash_types.hash_type_tcpipv6ex_en =
  1511. vdev->config.rth_hash_type_tcpipv6ex;
  1512. hash_types.hash_type_ipv6ex_en = vdev->config.rth_hash_type_ipv6ex;
  1513. /* set indirection table, bucket-to-vpath mapping */
  1514. status = vxge_hw_vpath_rts_rth_itable_set(vdev->vp_handles,
  1515. vdev->no_of_vpath,
  1516. mtable, itable,
  1517. vdev->config.rth_bkt_sz);
  1518. if (status != VXGE_HW_OK) {
  1519. vxge_debug_init(VXGE_ERR,
  1520. "RTH indirection table configuration failed "
  1521. "for vpath:%d", vdev->vpaths[0].device_id);
  1522. return status;
  1523. }
  1524. /*
  1525. * Because the itable_set() method uses the active_table field
  1526. * for the target virtual path the RTH config should be updated
  1527. * for all VPATHs. The h/w only uses the lowest numbered VPATH
  1528. * when steering frames.
  1529. */
  1530. for (index = 0; index < vdev->no_of_vpath; index++) {
  1531. status = vxge_hw_vpath_rts_rth_set(
  1532. vdev->vpaths[index].handle,
  1533. vdev->config.rth_algorithm,
  1534. &hash_types,
  1535. vdev->config.rth_bkt_sz);
  1536. if (status != VXGE_HW_OK) {
  1537. vxge_debug_init(VXGE_ERR,
  1538. "RTH configuration failed for vpath:%d",
  1539. vdev->vpaths[index].device_id);
  1540. return status;
  1541. }
  1542. }
  1543. return status;
  1544. }
  1545. int vxge_mac_list_add(struct vxge_vpath *vpath, struct macInfo *mac)
  1546. {
  1547. struct vxge_mac_addrs *new_mac_entry;
  1548. u8 *mac_address = NULL;
  1549. if (vpath->mac_addr_cnt >= VXGE_MAX_LEARN_MAC_ADDR_CNT)
  1550. return TRUE;
  1551. new_mac_entry = kzalloc(sizeof(struct vxge_mac_addrs), GFP_ATOMIC);
  1552. if (!new_mac_entry) {
  1553. vxge_debug_mem(VXGE_ERR,
  1554. "%s: memory allocation failed",
  1555. VXGE_DRIVER_NAME);
  1556. return FALSE;
  1557. }
  1558. list_add(&new_mac_entry->item, &vpath->mac_addr_list);
  1559. /* Copy the new mac address to the list */
  1560. mac_address = (u8 *)&new_mac_entry->macaddr;
  1561. memcpy(mac_address, mac->macaddr, ETH_ALEN);
  1562. new_mac_entry->state = mac->state;
  1563. vpath->mac_addr_cnt++;
  1564. /* Is this a multicast address */
  1565. if (0x01 & mac->macaddr[0])
  1566. vpath->mcast_addr_cnt++;
  1567. return TRUE;
  1568. }
  1569. /* Add a mac address to DA table */
  1570. enum vxge_hw_status vxge_add_mac_addr(struct vxgedev *vdev, struct macInfo *mac)
  1571. {
  1572. enum vxge_hw_status status = VXGE_HW_OK;
  1573. struct vxge_vpath *vpath;
  1574. enum vxge_hw_vpath_mac_addr_add_mode duplicate_mode;
  1575. if (0x01 & mac->macaddr[0]) /* multicast address */
  1576. duplicate_mode = VXGE_HW_VPATH_MAC_ADDR_ADD_DUPLICATE;
  1577. else
  1578. duplicate_mode = VXGE_HW_VPATH_MAC_ADDR_REPLACE_DUPLICATE;
  1579. vpath = &vdev->vpaths[mac->vpath_no];
  1580. status = vxge_hw_vpath_mac_addr_add(vpath->handle, mac->macaddr,
  1581. mac->macmask, duplicate_mode);
  1582. if (status != VXGE_HW_OK) {
  1583. vxge_debug_init(VXGE_ERR,
  1584. "DA config add entry failed for vpath:%d",
  1585. vpath->device_id);
  1586. } else
  1587. if (FALSE == vxge_mac_list_add(vpath, mac))
  1588. status = -EPERM;
  1589. return status;
  1590. }
  1591. int vxge_mac_list_del(struct vxge_vpath *vpath, struct macInfo *mac)
  1592. {
  1593. struct list_head *entry, *next;
  1594. u64 del_mac = 0;
  1595. u8 *mac_address = (u8 *) (&del_mac);
  1596. /* Copy the mac address to delete from the list */
  1597. memcpy(mac_address, mac->macaddr, ETH_ALEN);
  1598. list_for_each_safe(entry, next, &vpath->mac_addr_list) {
  1599. if (((struct vxge_mac_addrs *)entry)->macaddr == del_mac) {
  1600. list_del(entry);
  1601. kfree((struct vxge_mac_addrs *)entry);
  1602. vpath->mac_addr_cnt--;
  1603. /* Is this a multicast address */
  1604. if (0x01 & mac->macaddr[0])
  1605. vpath->mcast_addr_cnt--;
  1606. return TRUE;
  1607. }
  1608. }
  1609. return FALSE;
  1610. }
  1611. /* delete a mac address from DA table */
  1612. enum vxge_hw_status vxge_del_mac_addr(struct vxgedev *vdev, struct macInfo *mac)
  1613. {
  1614. enum vxge_hw_status status = VXGE_HW_OK;
  1615. struct vxge_vpath *vpath;
  1616. vpath = &vdev->vpaths[mac->vpath_no];
  1617. status = vxge_hw_vpath_mac_addr_delete(vpath->handle, mac->macaddr,
  1618. mac->macmask);
  1619. if (status != VXGE_HW_OK) {
  1620. vxge_debug_init(VXGE_ERR,
  1621. "DA config delete entry failed for vpath:%d",
  1622. vpath->device_id);
  1623. } else
  1624. vxge_mac_list_del(vpath, mac);
  1625. return status;
  1626. }
  1627. /* list all mac addresses from DA table */
  1628. enum vxge_hw_status
  1629. static vxge_search_mac_addr_in_da_table(struct vxge_vpath *vpath,
  1630. struct macInfo *mac)
  1631. {
  1632. enum vxge_hw_status status = VXGE_HW_OK;
  1633. unsigned char macmask[ETH_ALEN];
  1634. unsigned char macaddr[ETH_ALEN];
  1635. status = vxge_hw_vpath_mac_addr_get(vpath->handle,
  1636. macaddr, macmask);
  1637. if (status != VXGE_HW_OK) {
  1638. vxge_debug_init(VXGE_ERR,
  1639. "DA config list entry failed for vpath:%d",
  1640. vpath->device_id);
  1641. return status;
  1642. }
  1643. while (memcmp(mac->macaddr, macaddr, ETH_ALEN)) {
  1644. status = vxge_hw_vpath_mac_addr_get_next(vpath->handle,
  1645. macaddr, macmask);
  1646. if (status != VXGE_HW_OK)
  1647. break;
  1648. }
  1649. return status;
  1650. }
  1651. /* Store all vlan ids from the list to the vid table */
  1652. enum vxge_hw_status vxge_restore_vpath_vid_table(struct vxge_vpath *vpath)
  1653. {
  1654. enum vxge_hw_status status = VXGE_HW_OK;
  1655. struct vxgedev *vdev = vpath->vdev;
  1656. u16 vid;
  1657. if (vdev->vlgrp && vpath->is_open) {
  1658. for (vid = 0; vid < VLAN_GROUP_ARRAY_LEN; vid++) {
  1659. if (!vlan_group_get_device(vdev->vlgrp, vid))
  1660. continue;
  1661. /* Add these vlan to the vid table */
  1662. status = vxge_hw_vpath_vid_add(vpath->handle, vid);
  1663. }
  1664. }
  1665. return status;
  1666. }
  1667. /* Store all mac addresses from the list to the DA table */
  1668. enum vxge_hw_status vxge_restore_vpath_mac_addr(struct vxge_vpath *vpath)
  1669. {
  1670. enum vxge_hw_status status = VXGE_HW_OK;
  1671. struct macInfo mac_info;
  1672. u8 *mac_address = NULL;
  1673. struct list_head *entry, *next;
  1674. memset(&mac_info, 0, sizeof(struct macInfo));
  1675. if (vpath->is_open) {
  1676. list_for_each_safe(entry, next, &vpath->mac_addr_list) {
  1677. mac_address =
  1678. (u8 *)&
  1679. ((struct vxge_mac_addrs *)entry)->macaddr;
  1680. memcpy(mac_info.macaddr, mac_address, ETH_ALEN);
  1681. ((struct vxge_mac_addrs *)entry)->state =
  1682. VXGE_LL_MAC_ADDR_IN_DA_TABLE;
  1683. /* does this mac address already exist in da table? */
  1684. status = vxge_search_mac_addr_in_da_table(vpath,
  1685. &mac_info);
  1686. if (status != VXGE_HW_OK) {
  1687. /* Add this mac address to the DA table */
  1688. status = vxge_hw_vpath_mac_addr_add(
  1689. vpath->handle, mac_info.macaddr,
  1690. mac_info.macmask,
  1691. VXGE_HW_VPATH_MAC_ADDR_ADD_DUPLICATE);
  1692. if (status != VXGE_HW_OK) {
  1693. vxge_debug_init(VXGE_ERR,
  1694. "DA add entry failed for vpath:%d",
  1695. vpath->device_id);
  1696. ((struct vxge_mac_addrs *)entry)->state
  1697. = VXGE_LL_MAC_ADDR_IN_LIST;
  1698. }
  1699. }
  1700. }
  1701. }
  1702. return status;
  1703. }
  1704. /* reset vpaths */
  1705. enum vxge_hw_status vxge_reset_all_vpaths(struct vxgedev *vdev)
  1706. {
  1707. int i;
  1708. enum vxge_hw_status status = VXGE_HW_OK;
  1709. for (i = 0; i < vdev->no_of_vpath; i++)
  1710. if (vdev->vpaths[i].handle) {
  1711. if (vxge_hw_vpath_reset(vdev->vpaths[i].handle)
  1712. == VXGE_HW_OK) {
  1713. if (is_vxge_card_up(vdev) &&
  1714. vxge_hw_vpath_recover_from_reset(
  1715. vdev->vpaths[i].handle)
  1716. != VXGE_HW_OK) {
  1717. vxge_debug_init(VXGE_ERR,
  1718. "vxge_hw_vpath_recover_"
  1719. "from_reset failed for vpath: "
  1720. "%d", i);
  1721. return status;
  1722. }
  1723. } else {
  1724. vxge_debug_init(VXGE_ERR,
  1725. "vxge_hw_vpath_reset failed for "
  1726. "vpath:%d", i);
  1727. return status;
  1728. }
  1729. }
  1730. return status;
  1731. }
  1732. /* close vpaths */
  1733. void vxge_close_vpaths(struct vxgedev *vdev, int index)
  1734. {
  1735. int i;
  1736. for (i = index; i < vdev->no_of_vpath; i++) {
  1737. if (vdev->vpaths[i].handle && vdev->vpaths[i].is_open) {
  1738. vxge_hw_vpath_close(vdev->vpaths[i].handle);
  1739. vdev->stats.vpaths_open--;
  1740. }
  1741. vdev->vpaths[i].is_open = 0;
  1742. vdev->vpaths[i].handle = NULL;
  1743. }
  1744. }
  1745. /* open vpaths */
  1746. int vxge_open_vpaths(struct vxgedev *vdev)
  1747. {
  1748. enum vxge_hw_status status;
  1749. int i;
  1750. u32 vp_id = 0;
  1751. struct vxge_hw_vpath_attr attr;
  1752. for (i = 0; i < vdev->no_of_vpath; i++) {
  1753. vxge_assert(vdev->vpaths[i].is_configured);
  1754. attr.vp_id = vdev->vpaths[i].device_id;
  1755. attr.fifo_attr.callback = vxge_xmit_compl;
  1756. attr.fifo_attr.txdl_term = vxge_tx_term;
  1757. attr.fifo_attr.per_txdl_space = sizeof(struct vxge_tx_priv);
  1758. attr.fifo_attr.userdata = (void *)&vdev->vpaths[i].fifo;
  1759. attr.ring_attr.callback = vxge_rx_1b_compl;
  1760. attr.ring_attr.rxd_init = vxge_rx_initial_replenish;
  1761. attr.ring_attr.rxd_term = vxge_rx_term;
  1762. attr.ring_attr.per_rxd_space = sizeof(struct vxge_rx_priv);
  1763. attr.ring_attr.userdata = (void *)&vdev->vpaths[i].ring;
  1764. vdev->vpaths[i].ring.ndev = vdev->ndev;
  1765. vdev->vpaths[i].ring.pdev = vdev->pdev;
  1766. status = vxge_hw_vpath_open(vdev->devh, &attr,
  1767. &(vdev->vpaths[i].handle));
  1768. if (status == VXGE_HW_OK) {
  1769. vdev->vpaths[i].fifo.handle =
  1770. (struct __vxge_hw_fifo *)attr.fifo_attr.userdata;
  1771. vdev->vpaths[i].ring.handle =
  1772. (struct __vxge_hw_ring *)attr.ring_attr.userdata;
  1773. vdev->vpaths[i].fifo.tx_steering_type =
  1774. vdev->config.tx_steering_type;
  1775. vdev->vpaths[i].fifo.ndev = vdev->ndev;
  1776. vdev->vpaths[i].fifo.pdev = vdev->pdev;
  1777. vdev->vpaths[i].fifo.indicate_max_pkts =
  1778. vdev->config.fifo_indicate_max_pkts;
  1779. vdev->vpaths[i].ring.rx_vector_no = 0;
  1780. vdev->vpaths[i].ring.rx_csum = vdev->rx_csum;
  1781. vdev->vpaths[i].is_open = 1;
  1782. vdev->vp_handles[i] = vdev->vpaths[i].handle;
  1783. vdev->vpaths[i].ring.gro_enable =
  1784. vdev->config.gro_enable;
  1785. vdev->vpaths[i].ring.vlan_tag_strip =
  1786. vdev->vlan_tag_strip;
  1787. vdev->stats.vpaths_open++;
  1788. } else {
  1789. vdev->stats.vpath_open_fail++;
  1790. vxge_debug_init(VXGE_ERR,
  1791. "%s: vpath: %d failed to open "
  1792. "with status: %d",
  1793. vdev->ndev->name, vdev->vpaths[i].device_id,
  1794. status);
  1795. vxge_close_vpaths(vdev, 0);
  1796. return -EPERM;
  1797. }
  1798. vp_id =
  1799. ((struct __vxge_hw_vpath_handle *)vdev->vpaths[i].handle)->
  1800. vpath->vp_id;
  1801. vdev->vpaths_deployed |= vxge_mBIT(vp_id);
  1802. }
  1803. return VXGE_HW_OK;
  1804. }
  1805. /*
  1806. * vxge_isr_napi
  1807. * @irq: the irq of the device.
  1808. * @dev_id: a void pointer to the hldev structure of the Titan device
  1809. * @ptregs: pointer to the registers pushed on the stack.
  1810. *
  1811. * This function is the ISR handler of the device when napi is enabled. It
  1812. * identifies the reason for the interrupt and calls the relevant service
  1813. * routines.
  1814. */
  1815. static irqreturn_t vxge_isr_napi(int irq, void *dev_id)
  1816. {
  1817. struct __vxge_hw_device *hldev = (struct __vxge_hw_device *)dev_id;
  1818. struct vxgedev *vdev;
  1819. struct net_device *dev;
  1820. u64 reason;
  1821. enum vxge_hw_status status;
  1822. vxge_debug_intr(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  1823. dev = hldev->ndev;
  1824. vdev = netdev_priv(dev);
  1825. if (pci_channel_offline(vdev->pdev))
  1826. return IRQ_NONE;
  1827. if (unlikely(!is_vxge_card_up(vdev)))
  1828. return IRQ_NONE;
  1829. status = vxge_hw_device_begin_irq(hldev, vdev->exec_mode,
  1830. &reason);
  1831. if (status == VXGE_HW_OK) {
  1832. vxge_hw_device_mask_all(hldev);
  1833. if (reason &
  1834. VXGE_HW_TITAN_GENERAL_INT_STATUS_VPATH_TRAFFIC_INT(
  1835. vdev->vpaths_deployed >>
  1836. (64 - VXGE_HW_MAX_VIRTUAL_PATHS))) {
  1837. vxge_hw_device_clear_tx_rx(hldev);
  1838. napi_schedule(&vdev->napi);
  1839. vxge_debug_intr(VXGE_TRACE,
  1840. "%s:%d Exiting...", __func__, __LINE__);
  1841. return IRQ_HANDLED;
  1842. } else
  1843. vxge_hw_device_unmask_all(hldev);
  1844. } else if (unlikely((status == VXGE_HW_ERR_VPATH) ||
  1845. (status == VXGE_HW_ERR_CRITICAL) ||
  1846. (status == VXGE_HW_ERR_FIFO))) {
  1847. vxge_hw_device_mask_all(hldev);
  1848. vxge_hw_device_flush_io(hldev);
  1849. return IRQ_HANDLED;
  1850. } else if (unlikely(status == VXGE_HW_ERR_SLOT_FREEZE))
  1851. return IRQ_HANDLED;
  1852. vxge_debug_intr(VXGE_TRACE, "%s:%d Exiting...", __func__, __LINE__);
  1853. return IRQ_NONE;
  1854. }
  1855. #ifdef CONFIG_PCI_MSI
  1856. static irqreturn_t
  1857. vxge_tx_msix_handle(int irq, void *dev_id)
  1858. {
  1859. struct vxge_fifo *fifo = (struct vxge_fifo *)dev_id;
  1860. VXGE_COMPLETE_VPATH_TX(fifo);
  1861. return IRQ_HANDLED;
  1862. }
  1863. static irqreturn_t
  1864. vxge_rx_msix_napi_handle(int irq, void *dev_id)
  1865. {
  1866. struct vxge_ring *ring = (struct vxge_ring *)dev_id;
  1867. /* MSIX_IDX for Rx is 1 */
  1868. vxge_hw_channel_msix_mask((struct __vxge_hw_channel *)ring->handle,
  1869. ring->rx_vector_no);
  1870. napi_schedule(&ring->napi);
  1871. return IRQ_HANDLED;
  1872. }
  1873. static irqreturn_t
  1874. vxge_alarm_msix_handle(int irq, void *dev_id)
  1875. {
  1876. int i;
  1877. enum vxge_hw_status status;
  1878. struct vxge_vpath *vpath = (struct vxge_vpath *)dev_id;
  1879. struct vxgedev *vdev = vpath->vdev;
  1880. int alarm_msix_id =
  1881. VXGE_HW_VPATH_MSIX_ACTIVE * vdev->no_of_vpath - 2;
  1882. for (i = 0; i < vdev->no_of_vpath; i++) {
  1883. vxge_hw_vpath_msix_mask(vdev->vpaths[i].handle,
  1884. alarm_msix_id);
  1885. status = vxge_hw_vpath_alarm_process(vdev->vpaths[i].handle,
  1886. vdev->exec_mode);
  1887. if (status == VXGE_HW_OK) {
  1888. vxge_hw_vpath_msix_unmask(vdev->vpaths[i].handle,
  1889. alarm_msix_id);
  1890. continue;
  1891. }
  1892. vxge_debug_intr(VXGE_ERR,
  1893. "%s: vxge_hw_vpath_alarm_process failed %x ",
  1894. VXGE_DRIVER_NAME, status);
  1895. }
  1896. return IRQ_HANDLED;
  1897. }
  1898. static int vxge_alloc_msix(struct vxgedev *vdev)
  1899. {
  1900. int j, i, ret = 0;
  1901. int intr_cnt = 0;
  1902. int alarm_msix_id = 0, msix_intr_vect = 0;
  1903. vdev->intr_cnt = 0;
  1904. /* Tx/Rx MSIX Vectors count */
  1905. vdev->intr_cnt = vdev->no_of_vpath * 2;
  1906. /* Alarm MSIX Vectors count */
  1907. vdev->intr_cnt++;
  1908. intr_cnt = (vdev->max_vpath_supported * 2) + 1;
  1909. vdev->entries = kzalloc(intr_cnt * sizeof(struct msix_entry),
  1910. GFP_KERNEL);
  1911. if (!vdev->entries) {
  1912. vxge_debug_init(VXGE_ERR,
  1913. "%s: memory allocation failed",
  1914. VXGE_DRIVER_NAME);
  1915. return -ENOMEM;
  1916. }
  1917. vdev->vxge_entries = kzalloc(intr_cnt * sizeof(struct vxge_msix_entry),
  1918. GFP_KERNEL);
  1919. if (!vdev->vxge_entries) {
  1920. vxge_debug_init(VXGE_ERR, "%s: memory allocation failed",
  1921. VXGE_DRIVER_NAME);
  1922. kfree(vdev->entries);
  1923. return -ENOMEM;
  1924. }
  1925. /* Last vector in the list is used for alarm */
  1926. alarm_msix_id = VXGE_HW_VPATH_MSIX_ACTIVE * vdev->no_of_vpath - 2;
  1927. for (i = 0, j = 0; i < vdev->max_vpath_supported; i++) {
  1928. msix_intr_vect = i * VXGE_HW_VPATH_MSIX_ACTIVE;
  1929. /* Initialize the fifo vector */
  1930. vdev->entries[j].entry = msix_intr_vect;
  1931. vdev->vxge_entries[j].entry = msix_intr_vect;
  1932. vdev->vxge_entries[j].in_use = 0;
  1933. j++;
  1934. /* Initialize the ring vector */
  1935. vdev->entries[j].entry = msix_intr_vect + 1;
  1936. vdev->vxge_entries[j].entry = msix_intr_vect + 1;
  1937. vdev->vxge_entries[j].in_use = 0;
  1938. j++;
  1939. }
  1940. /* Initialize the alarm vector */
  1941. vdev->entries[j].entry = alarm_msix_id;
  1942. vdev->vxge_entries[j].entry = alarm_msix_id;
  1943. vdev->vxge_entries[j].in_use = 0;
  1944. ret = pci_enable_msix(vdev->pdev, vdev->entries, intr_cnt);
  1945. /* if driver request exceeeds available irq's, request with a small
  1946. * number.
  1947. */
  1948. if (ret > 0) {
  1949. vxge_debug_init(VXGE_ERR,
  1950. "%s: MSI-X enable failed for %d vectors, available: %d",
  1951. VXGE_DRIVER_NAME, intr_cnt, ret);
  1952. vdev->max_vpath_supported = vdev->no_of_vpath;
  1953. intr_cnt = (vdev->max_vpath_supported * 2) + 1;
  1954. /* Reset the alarm vector setting */
  1955. vdev->entries[j].entry = 0;
  1956. vdev->vxge_entries[j].entry = 0;
  1957. /* Initialize the alarm vector with new setting */
  1958. vdev->entries[intr_cnt - 1].entry = alarm_msix_id;
  1959. vdev->vxge_entries[intr_cnt - 1].entry = alarm_msix_id;
  1960. vdev->vxge_entries[intr_cnt - 1].in_use = 0;
  1961. ret = pci_enable_msix(vdev->pdev, vdev->entries, intr_cnt);
  1962. if (!ret)
  1963. vxge_debug_init(VXGE_ERR,
  1964. "%s: MSI-X enabled for %d vectors",
  1965. VXGE_DRIVER_NAME, intr_cnt);
  1966. }
  1967. if (ret) {
  1968. vxge_debug_init(VXGE_ERR,
  1969. "%s: MSI-X enable failed for %d vectors, ret: %d",
  1970. VXGE_DRIVER_NAME, intr_cnt, ret);
  1971. kfree(vdev->entries);
  1972. kfree(vdev->vxge_entries);
  1973. vdev->entries = NULL;
  1974. vdev->vxge_entries = NULL;
  1975. return -ENODEV;
  1976. }
  1977. return 0;
  1978. }
  1979. static int vxge_enable_msix(struct vxgedev *vdev)
  1980. {
  1981. int i, ret = 0;
  1982. enum vxge_hw_status status;
  1983. /* 0 - Tx, 1 - Rx */
  1984. int tim_msix_id[4];
  1985. int alarm_msix_id = 0, msix_intr_vect = 0;;
  1986. vdev->intr_cnt = 0;
  1987. /* allocate msix vectors */
  1988. ret = vxge_alloc_msix(vdev);
  1989. if (!ret) {
  1990. /* Last vector in the list is used for alarm */
  1991. alarm_msix_id =
  1992. VXGE_HW_VPATH_MSIX_ACTIVE * vdev->no_of_vpath - 2;
  1993. for (i = 0; i < vdev->no_of_vpath; i++) {
  1994. /* If fifo or ring are not enabled
  1995. the MSIX vector for that should be set to 0
  1996. Hence initializeing this array to all 0s.
  1997. */
  1998. memset(tim_msix_id, 0, sizeof(tim_msix_id));
  1999. msix_intr_vect = i * VXGE_HW_VPATH_MSIX_ACTIVE;
  2000. tim_msix_id[0] = msix_intr_vect;
  2001. tim_msix_id[1] = msix_intr_vect + 1;
  2002. vdev->vpaths[i].ring.rx_vector_no = tim_msix_id[1];
  2003. status = vxge_hw_vpath_msix_set(
  2004. vdev->vpaths[i].handle,
  2005. tim_msix_id, alarm_msix_id);
  2006. if (status != VXGE_HW_OK) {
  2007. vxge_debug_init(VXGE_ERR,
  2008. "vxge_hw_vpath_msix_set "
  2009. "failed with status : %x", status);
  2010. kfree(vdev->entries);
  2011. kfree(vdev->vxge_entries);
  2012. pci_disable_msix(vdev->pdev);
  2013. return -ENODEV;
  2014. }
  2015. }
  2016. }
  2017. return ret;
  2018. }
  2019. static void vxge_rem_msix_isr(struct vxgedev *vdev)
  2020. {
  2021. int intr_cnt;
  2022. for (intr_cnt = 0; intr_cnt < (vdev->max_vpath_supported * 2 + 1);
  2023. intr_cnt++) {
  2024. if (vdev->vxge_entries[intr_cnt].in_use) {
  2025. synchronize_irq(vdev->entries[intr_cnt].vector);
  2026. free_irq(vdev->entries[intr_cnt].vector,
  2027. vdev->vxge_entries[intr_cnt].arg);
  2028. vdev->vxge_entries[intr_cnt].in_use = 0;
  2029. }
  2030. }
  2031. kfree(vdev->entries);
  2032. kfree(vdev->vxge_entries);
  2033. vdev->entries = NULL;
  2034. vdev->vxge_entries = NULL;
  2035. if (vdev->config.intr_type == MSI_X)
  2036. pci_disable_msix(vdev->pdev);
  2037. }
  2038. #endif
  2039. static void vxge_rem_isr(struct vxgedev *vdev)
  2040. {
  2041. struct __vxge_hw_device *hldev;
  2042. hldev = (struct __vxge_hw_device *) pci_get_drvdata(vdev->pdev);
  2043. #ifdef CONFIG_PCI_MSI
  2044. if (vdev->config.intr_type == MSI_X) {
  2045. vxge_rem_msix_isr(vdev);
  2046. } else
  2047. #endif
  2048. if (vdev->config.intr_type == INTA) {
  2049. synchronize_irq(vdev->pdev->irq);
  2050. free_irq(vdev->pdev->irq, hldev);
  2051. }
  2052. }
  2053. static int vxge_add_isr(struct vxgedev *vdev)
  2054. {
  2055. int ret = 0;
  2056. struct __vxge_hw_device *hldev =
  2057. (struct __vxge_hw_device *) pci_get_drvdata(vdev->pdev);
  2058. #ifdef CONFIG_PCI_MSI
  2059. int vp_idx = 0, intr_idx = 0, intr_cnt = 0, msix_idx = 0, irq_req = 0;
  2060. u64 function_mode = vdev->config.device_hw_info.function_mode;
  2061. int pci_fun = PCI_FUNC(vdev->pdev->devfn);
  2062. if (vdev->config.intr_type == MSI_X)
  2063. ret = vxge_enable_msix(vdev);
  2064. if (ret) {
  2065. vxge_debug_init(VXGE_ERR,
  2066. "%s: Enabling MSI-X Failed", VXGE_DRIVER_NAME);
  2067. if ((function_mode == VXGE_HW_FUNCTION_MODE_MULTI_FUNCTION) &&
  2068. test_and_set_bit(__VXGE_STATE_CARD_UP,
  2069. &driver_config->inta_dev_open))
  2070. return VXGE_HW_FAIL;
  2071. else {
  2072. vxge_debug_init(VXGE_ERR,
  2073. "%s: Defaulting to INTA", VXGE_DRIVER_NAME);
  2074. vdev->config.intr_type = INTA;
  2075. vxge_hw_device_set_intr_type(vdev->devh,
  2076. VXGE_HW_INTR_MODE_IRQLINE);
  2077. vxge_close_vpaths(vdev, 1);
  2078. vdev->no_of_vpath = 1;
  2079. vdev->stats.vpaths_open = 1;
  2080. }
  2081. }
  2082. if (vdev->config.intr_type == MSI_X) {
  2083. for (intr_idx = 0;
  2084. intr_idx < (vdev->no_of_vpath *
  2085. VXGE_HW_VPATH_MSIX_ACTIVE); intr_idx++) {
  2086. msix_idx = intr_idx % VXGE_HW_VPATH_MSIX_ACTIVE;
  2087. irq_req = 0;
  2088. switch (msix_idx) {
  2089. case 0:
  2090. snprintf(vdev->desc[intr_cnt], VXGE_INTR_STRLEN,
  2091. "%s:vxge fn: %d vpath: %d Tx MSI-X: %d",
  2092. vdev->ndev->name, pci_fun, vp_idx,
  2093. vdev->entries[intr_cnt].entry);
  2094. ret = request_irq(
  2095. vdev->entries[intr_cnt].vector,
  2096. vxge_tx_msix_handle, 0,
  2097. vdev->desc[intr_cnt],
  2098. &vdev->vpaths[vp_idx].fifo);
  2099. vdev->vxge_entries[intr_cnt].arg =
  2100. &vdev->vpaths[vp_idx].fifo;
  2101. irq_req = 1;
  2102. break;
  2103. case 1:
  2104. snprintf(vdev->desc[intr_cnt], VXGE_INTR_STRLEN,
  2105. "%s:vxge fn: %d vpath: %d Rx MSI-X: %d",
  2106. vdev->ndev->name, pci_fun, vp_idx,
  2107. vdev->entries[intr_cnt].entry);
  2108. ret = request_irq(
  2109. vdev->entries[intr_cnt].vector,
  2110. vxge_rx_msix_napi_handle,
  2111. 0,
  2112. vdev->desc[intr_cnt],
  2113. &vdev->vpaths[vp_idx].ring);
  2114. vdev->vxge_entries[intr_cnt].arg =
  2115. &vdev->vpaths[vp_idx].ring;
  2116. irq_req = 1;
  2117. break;
  2118. }
  2119. if (ret) {
  2120. vxge_debug_init(VXGE_ERR,
  2121. "%s: MSIX - %d Registration failed",
  2122. vdev->ndev->name, intr_cnt);
  2123. vxge_rem_msix_isr(vdev);
  2124. if ((function_mode ==
  2125. VXGE_HW_FUNCTION_MODE_MULTI_FUNCTION) &&
  2126. test_and_set_bit(__VXGE_STATE_CARD_UP,
  2127. &driver_config->inta_dev_open))
  2128. return VXGE_HW_FAIL;
  2129. else {
  2130. vxge_hw_device_set_intr_type(
  2131. vdev->devh,
  2132. VXGE_HW_INTR_MODE_IRQLINE);
  2133. vdev->config.intr_type = INTA;
  2134. vxge_debug_init(VXGE_ERR,
  2135. "%s: Defaulting to INTA"
  2136. , vdev->ndev->name);
  2137. vxge_close_vpaths(vdev, 1);
  2138. vdev->no_of_vpath = 1;
  2139. vdev->stats.vpaths_open = 1;
  2140. goto INTA_MODE;
  2141. }
  2142. }
  2143. if (irq_req) {
  2144. /* We requested for this msix interrupt */
  2145. vdev->vxge_entries[intr_cnt].in_use = 1;
  2146. vxge_hw_vpath_msix_unmask(
  2147. vdev->vpaths[vp_idx].handle,
  2148. intr_idx);
  2149. intr_cnt++;
  2150. }
  2151. /* Point to next vpath handler */
  2152. if (((intr_idx + 1) % VXGE_HW_VPATH_MSIX_ACTIVE == 0)
  2153. && (vp_idx < (vdev->no_of_vpath - 1)))
  2154. vp_idx++;
  2155. }
  2156. intr_cnt = vdev->max_vpath_supported * 2;
  2157. snprintf(vdev->desc[intr_cnt], VXGE_INTR_STRLEN,
  2158. "%s:vxge Alarm fn: %d MSI-X: %d",
  2159. vdev->ndev->name, pci_fun,
  2160. vdev->entries[intr_cnt].entry);
  2161. /* For Alarm interrupts */
  2162. ret = request_irq(vdev->entries[intr_cnt].vector,
  2163. vxge_alarm_msix_handle, 0,
  2164. vdev->desc[intr_cnt],
  2165. &vdev->vpaths[vp_idx]);
  2166. if (ret) {
  2167. vxge_debug_init(VXGE_ERR,
  2168. "%s: MSIX - %d Registration failed",
  2169. vdev->ndev->name, intr_cnt);
  2170. vxge_rem_msix_isr(vdev);
  2171. if ((function_mode ==
  2172. VXGE_HW_FUNCTION_MODE_MULTI_FUNCTION) &&
  2173. test_and_set_bit(__VXGE_STATE_CARD_UP,
  2174. &driver_config->inta_dev_open))
  2175. return VXGE_HW_FAIL;
  2176. else {
  2177. vxge_hw_device_set_intr_type(vdev->devh,
  2178. VXGE_HW_INTR_MODE_IRQLINE);
  2179. vdev->config.intr_type = INTA;
  2180. vxge_debug_init(VXGE_ERR,
  2181. "%s: Defaulting to INTA",
  2182. vdev->ndev->name);
  2183. vxge_close_vpaths(vdev, 1);
  2184. vdev->no_of_vpath = 1;
  2185. vdev->stats.vpaths_open = 1;
  2186. goto INTA_MODE;
  2187. }
  2188. }
  2189. vxge_hw_vpath_msix_unmask(vdev->vpaths[vp_idx].handle,
  2190. intr_idx - 2);
  2191. vdev->vxge_entries[intr_cnt].in_use = 1;
  2192. vdev->vxge_entries[intr_cnt].arg = &vdev->vpaths[vp_idx];
  2193. }
  2194. INTA_MODE:
  2195. #endif
  2196. snprintf(vdev->desc[0], VXGE_INTR_STRLEN, "%s:vxge", vdev->ndev->name);
  2197. if (vdev->config.intr_type == INTA) {
  2198. ret = request_irq((int) vdev->pdev->irq,
  2199. vxge_isr_napi,
  2200. IRQF_SHARED, vdev->desc[0], hldev);
  2201. if (ret) {
  2202. vxge_debug_init(VXGE_ERR,
  2203. "%s %s-%d: ISR registration failed",
  2204. VXGE_DRIVER_NAME, "IRQ", vdev->pdev->irq);
  2205. return -ENODEV;
  2206. }
  2207. vxge_debug_init(VXGE_TRACE,
  2208. "new %s-%d line allocated",
  2209. "IRQ", vdev->pdev->irq);
  2210. }
  2211. return VXGE_HW_OK;
  2212. }
  2213. static void vxge_poll_vp_reset(unsigned long data)
  2214. {
  2215. struct vxgedev *vdev = (struct vxgedev *)data;
  2216. int i, j = 0;
  2217. for (i = 0; i < vdev->no_of_vpath; i++) {
  2218. if (test_bit(i, &vdev->vp_reset)) {
  2219. vxge_reset_vpath(vdev, i);
  2220. j++;
  2221. }
  2222. }
  2223. if (j && (vdev->config.intr_type != MSI_X)) {
  2224. vxge_hw_device_unmask_all(vdev->devh);
  2225. vxge_hw_device_flush_io(vdev->devh);
  2226. }
  2227. mod_timer(&vdev->vp_reset_timer, jiffies + HZ / 2);
  2228. }
  2229. static void vxge_poll_vp_lockup(unsigned long data)
  2230. {
  2231. struct vxgedev *vdev = (struct vxgedev *)data;
  2232. int i;
  2233. struct vxge_ring *ring;
  2234. enum vxge_hw_status status = VXGE_HW_OK;
  2235. for (i = 0; i < vdev->no_of_vpath; i++) {
  2236. ring = &vdev->vpaths[i].ring;
  2237. /* Did this vpath received any packets */
  2238. if (ring->stats.prev_rx_frms == ring->stats.rx_frms) {
  2239. status = vxge_hw_vpath_check_leak(ring->handle);
  2240. /* Did it received any packets last time */
  2241. if ((VXGE_HW_FAIL == status) &&
  2242. (VXGE_HW_FAIL == ring->last_status)) {
  2243. /* schedule vpath reset */
  2244. if (!test_and_set_bit(i, &vdev->vp_reset)) {
  2245. /* disable interrupts for this vpath */
  2246. vxge_vpath_intr_disable(vdev, i);
  2247. /* stop the queue for this vpath */
  2248. vxge_stop_tx_queue(&vdev->vpaths[i].
  2249. fifo);
  2250. continue;
  2251. }
  2252. }
  2253. }
  2254. ring->stats.prev_rx_frms = ring->stats.rx_frms;
  2255. ring->last_status = status;
  2256. }
  2257. /* Check every 1 milli second */
  2258. mod_timer(&vdev->vp_lockup_timer, jiffies + HZ / 1000);
  2259. }
  2260. /**
  2261. * vxge_open
  2262. * @dev: pointer to the device structure.
  2263. *
  2264. * This function is the open entry point of the driver. It mainly calls a
  2265. * function to allocate Rx buffers and inserts them into the buffer
  2266. * descriptors and then enables the Rx part of the NIC.
  2267. * Return value: '0' on success and an appropriate (-)ve integer as
  2268. * defined in errno.h file on failure.
  2269. */
  2270. int
  2271. vxge_open(struct net_device *dev)
  2272. {
  2273. enum vxge_hw_status status;
  2274. struct vxgedev *vdev;
  2275. struct __vxge_hw_device *hldev;
  2276. int ret = 0;
  2277. int i;
  2278. u64 val64, function_mode;
  2279. vxge_debug_entryexit(VXGE_TRACE,
  2280. "%s: %s:%d", dev->name, __func__, __LINE__);
  2281. vdev = (struct vxgedev *)netdev_priv(dev);
  2282. hldev = (struct __vxge_hw_device *) pci_get_drvdata(vdev->pdev);
  2283. function_mode = vdev->config.device_hw_info.function_mode;
  2284. /* make sure you have link off by default every time Nic is
  2285. * initialized */
  2286. netif_carrier_off(dev);
  2287. /* Check for another device already opn with INTA */
  2288. if ((function_mode == VXGE_HW_FUNCTION_MODE_MULTI_FUNCTION) &&
  2289. test_bit(__VXGE_STATE_CARD_UP, &driver_config->inta_dev_open)) {
  2290. ret = -EPERM;
  2291. goto out0;
  2292. }
  2293. /* Open VPATHs */
  2294. status = vxge_open_vpaths(vdev);
  2295. if (status != VXGE_HW_OK) {
  2296. vxge_debug_init(VXGE_ERR,
  2297. "%s: fatal: Vpath open failed", vdev->ndev->name);
  2298. ret = -EPERM;
  2299. goto out0;
  2300. }
  2301. vdev->mtu = dev->mtu;
  2302. status = vxge_add_isr(vdev);
  2303. if (status != VXGE_HW_OK) {
  2304. vxge_debug_init(VXGE_ERR,
  2305. "%s: fatal: ISR add failed", dev->name);
  2306. ret = -EPERM;
  2307. goto out1;
  2308. }
  2309. if (vdev->config.intr_type != MSI_X) {
  2310. netif_napi_add(dev, &vdev->napi, vxge_poll_inta,
  2311. vdev->config.napi_weight);
  2312. napi_enable(&vdev->napi);
  2313. } else {
  2314. for (i = 0; i < vdev->no_of_vpath; i++) {
  2315. netif_napi_add(dev, &vdev->vpaths[i].ring.napi,
  2316. vxge_poll_msix, vdev->config.napi_weight);
  2317. napi_enable(&vdev->vpaths[i].ring.napi);
  2318. }
  2319. }
  2320. /* configure RTH */
  2321. if (vdev->config.rth_steering) {
  2322. status = vxge_rth_configure(vdev);
  2323. if (status != VXGE_HW_OK) {
  2324. vxge_debug_init(VXGE_ERR,
  2325. "%s: fatal: RTH configuration failed",
  2326. dev->name);
  2327. ret = -EPERM;
  2328. goto out2;
  2329. }
  2330. }
  2331. for (i = 0; i < vdev->no_of_vpath; i++) {
  2332. /* set initial mtu before enabling the device */
  2333. status = vxge_hw_vpath_mtu_set(vdev->vpaths[i].handle,
  2334. vdev->mtu);
  2335. if (status != VXGE_HW_OK) {
  2336. vxge_debug_init(VXGE_ERR,
  2337. "%s: fatal: can not set new MTU", dev->name);
  2338. ret = -EPERM;
  2339. goto out2;
  2340. }
  2341. }
  2342. VXGE_DEVICE_DEBUG_LEVEL_SET(VXGE_TRACE, VXGE_COMPONENT_LL, vdev);
  2343. vxge_debug_init(vdev->level_trace,
  2344. "%s: MTU is %d", vdev->ndev->name, vdev->mtu);
  2345. VXGE_DEVICE_DEBUG_LEVEL_SET(VXGE_ERR, VXGE_COMPONENT_LL, vdev);
  2346. /* Reprogram the DA table with populated mac addresses */
  2347. for (i = 0; i < vdev->no_of_vpath; i++) {
  2348. vxge_restore_vpath_mac_addr(&vdev->vpaths[i]);
  2349. vxge_restore_vpath_vid_table(&vdev->vpaths[i]);
  2350. }
  2351. /* Enable vpath to sniff all unicast/multicast traffic that not
  2352. * addressed to them. We allow promiscous mode for PF only
  2353. */
  2354. val64 = 0;
  2355. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++)
  2356. val64 |= VXGE_HW_RXMAC_AUTHORIZE_ALL_ADDR_VP(i);
  2357. vxge_hw_mgmt_reg_write(vdev->devh,
  2358. vxge_hw_mgmt_reg_type_mrpcim,
  2359. 0,
  2360. (ulong)offsetof(struct vxge_hw_mrpcim_reg,
  2361. rxmac_authorize_all_addr),
  2362. val64);
  2363. vxge_hw_mgmt_reg_write(vdev->devh,
  2364. vxge_hw_mgmt_reg_type_mrpcim,
  2365. 0,
  2366. (ulong)offsetof(struct vxge_hw_mrpcim_reg,
  2367. rxmac_authorize_all_vid),
  2368. val64);
  2369. vxge_set_multicast(dev);
  2370. /* Enabling Bcast and mcast for all vpath */
  2371. for (i = 0; i < vdev->no_of_vpath; i++) {
  2372. status = vxge_hw_vpath_bcast_enable(vdev->vpaths[i].handle);
  2373. if (status != VXGE_HW_OK)
  2374. vxge_debug_init(VXGE_ERR,
  2375. "%s : Can not enable bcast for vpath "
  2376. "id %d", dev->name, i);
  2377. if (vdev->config.addr_learn_en) {
  2378. status =
  2379. vxge_hw_vpath_mcast_enable(vdev->vpaths[i].handle);
  2380. if (status != VXGE_HW_OK)
  2381. vxge_debug_init(VXGE_ERR,
  2382. "%s : Can not enable mcast for vpath "
  2383. "id %d", dev->name, i);
  2384. }
  2385. }
  2386. vxge_hw_device_setpause_data(vdev->devh, 0,
  2387. vdev->config.tx_pause_enable,
  2388. vdev->config.rx_pause_enable);
  2389. if (vdev->vp_reset_timer.function == NULL)
  2390. vxge_os_timer(vdev->vp_reset_timer,
  2391. vxge_poll_vp_reset, vdev, (HZ/2));
  2392. if (vdev->vp_lockup_timer.function == NULL)
  2393. vxge_os_timer(vdev->vp_lockup_timer,
  2394. vxge_poll_vp_lockup, vdev, (HZ/2));
  2395. set_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  2396. smp_wmb();
  2397. if (vxge_hw_device_link_state_get(vdev->devh) == VXGE_HW_LINK_UP) {
  2398. netif_carrier_on(vdev->ndev);
  2399. printk(KERN_NOTICE "%s: Link Up\n", vdev->ndev->name);
  2400. vdev->stats.link_up++;
  2401. }
  2402. vxge_hw_device_intr_enable(vdev->devh);
  2403. smp_wmb();
  2404. for (i = 0; i < vdev->no_of_vpath; i++) {
  2405. vxge_hw_vpath_enable(vdev->vpaths[i].handle);
  2406. smp_wmb();
  2407. vxge_hw_vpath_rx_doorbell_init(vdev->vpaths[i].handle);
  2408. }
  2409. vxge_start_all_tx_queue(vdev);
  2410. goto out0;
  2411. out2:
  2412. vxge_rem_isr(vdev);
  2413. /* Disable napi */
  2414. if (vdev->config.intr_type != MSI_X)
  2415. napi_disable(&vdev->napi);
  2416. else {
  2417. for (i = 0; i < vdev->no_of_vpath; i++)
  2418. napi_disable(&vdev->vpaths[i].ring.napi);
  2419. }
  2420. out1:
  2421. vxge_close_vpaths(vdev, 0);
  2422. out0:
  2423. vxge_debug_entryexit(VXGE_TRACE,
  2424. "%s: %s:%d Exiting...",
  2425. dev->name, __func__, __LINE__);
  2426. return ret;
  2427. }
  2428. /* Loop throught the mac address list and delete all the entries */
  2429. void vxge_free_mac_add_list(struct vxge_vpath *vpath)
  2430. {
  2431. struct list_head *entry, *next;
  2432. if (list_empty(&vpath->mac_addr_list))
  2433. return;
  2434. list_for_each_safe(entry, next, &vpath->mac_addr_list) {
  2435. list_del(entry);
  2436. kfree((struct vxge_mac_addrs *)entry);
  2437. }
  2438. }
  2439. static void vxge_napi_del_all(struct vxgedev *vdev)
  2440. {
  2441. int i;
  2442. if (vdev->config.intr_type != MSI_X)
  2443. netif_napi_del(&vdev->napi);
  2444. else {
  2445. for (i = 0; i < vdev->no_of_vpath; i++)
  2446. netif_napi_del(&vdev->vpaths[i].ring.napi);
  2447. }
  2448. return;
  2449. }
  2450. int do_vxge_close(struct net_device *dev, int do_io)
  2451. {
  2452. enum vxge_hw_status status;
  2453. struct vxgedev *vdev;
  2454. struct __vxge_hw_device *hldev;
  2455. int i;
  2456. u64 val64, vpath_vector;
  2457. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d",
  2458. dev->name, __func__, __LINE__);
  2459. vdev = (struct vxgedev *)netdev_priv(dev);
  2460. hldev = (struct __vxge_hw_device *) pci_get_drvdata(vdev->pdev);
  2461. /* If vxge_handle_crit_err task is executing,
  2462. * wait till it completes. */
  2463. while (test_and_set_bit(__VXGE_STATE_RESET_CARD, &vdev->state))
  2464. msleep(50);
  2465. clear_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  2466. if (do_io) {
  2467. /* Put the vpath back in normal mode */
  2468. vpath_vector = vxge_mBIT(vdev->vpaths[0].device_id);
  2469. status = vxge_hw_mgmt_reg_read(vdev->devh,
  2470. vxge_hw_mgmt_reg_type_mrpcim,
  2471. 0,
  2472. (ulong)offsetof(
  2473. struct vxge_hw_mrpcim_reg,
  2474. rts_mgr_cbasin_cfg),
  2475. &val64);
  2476. if (status == VXGE_HW_OK) {
  2477. val64 &= ~vpath_vector;
  2478. status = vxge_hw_mgmt_reg_write(vdev->devh,
  2479. vxge_hw_mgmt_reg_type_mrpcim,
  2480. 0,
  2481. (ulong)offsetof(
  2482. struct vxge_hw_mrpcim_reg,
  2483. rts_mgr_cbasin_cfg),
  2484. val64);
  2485. }
  2486. /* Remove the function 0 from promiscous mode */
  2487. vxge_hw_mgmt_reg_write(vdev->devh,
  2488. vxge_hw_mgmt_reg_type_mrpcim,
  2489. 0,
  2490. (ulong)offsetof(struct vxge_hw_mrpcim_reg,
  2491. rxmac_authorize_all_addr),
  2492. 0);
  2493. vxge_hw_mgmt_reg_write(vdev->devh,
  2494. vxge_hw_mgmt_reg_type_mrpcim,
  2495. 0,
  2496. (ulong)offsetof(struct vxge_hw_mrpcim_reg,
  2497. rxmac_authorize_all_vid),
  2498. 0);
  2499. smp_wmb();
  2500. }
  2501. del_timer_sync(&vdev->vp_lockup_timer);
  2502. del_timer_sync(&vdev->vp_reset_timer);
  2503. /* Disable napi */
  2504. if (vdev->config.intr_type != MSI_X)
  2505. napi_disable(&vdev->napi);
  2506. else {
  2507. for (i = 0; i < vdev->no_of_vpath; i++)
  2508. napi_disable(&vdev->vpaths[i].ring.napi);
  2509. }
  2510. netif_carrier_off(vdev->ndev);
  2511. printk(KERN_NOTICE "%s: Link Down\n", vdev->ndev->name);
  2512. vxge_stop_all_tx_queue(vdev);
  2513. /* Note that at this point xmit() is stopped by upper layer */
  2514. if (do_io)
  2515. vxge_hw_device_intr_disable(vdev->devh);
  2516. mdelay(1000);
  2517. vxge_rem_isr(vdev);
  2518. vxge_napi_del_all(vdev);
  2519. if (do_io)
  2520. vxge_reset_all_vpaths(vdev);
  2521. vxge_close_vpaths(vdev, 0);
  2522. vxge_debug_entryexit(VXGE_TRACE,
  2523. "%s: %s:%d Exiting...", dev->name, __func__, __LINE__);
  2524. clear_bit(__VXGE_STATE_CARD_UP, &driver_config->inta_dev_open);
  2525. clear_bit(__VXGE_STATE_RESET_CARD, &vdev->state);
  2526. return 0;
  2527. }
  2528. /**
  2529. * vxge_close
  2530. * @dev: device pointer.
  2531. *
  2532. * This is the stop entry point of the driver. It needs to undo exactly
  2533. * whatever was done by the open entry point, thus it's usually referred to
  2534. * as the close function.Among other things this function mainly stops the
  2535. * Rx side of the NIC and frees all the Rx buffers in the Rx rings.
  2536. * Return value: '0' on success and an appropriate (-)ve integer as
  2537. * defined in errno.h file on failure.
  2538. */
  2539. int
  2540. vxge_close(struct net_device *dev)
  2541. {
  2542. do_vxge_close(dev, 1);
  2543. return 0;
  2544. }
  2545. /**
  2546. * vxge_change_mtu
  2547. * @dev: net device pointer.
  2548. * @new_mtu :the new MTU size for the device.
  2549. *
  2550. * A driver entry point to change MTU size for the device. Before changing
  2551. * the MTU the device must be stopped.
  2552. */
  2553. static int vxge_change_mtu(struct net_device *dev, int new_mtu)
  2554. {
  2555. struct vxgedev *vdev = netdev_priv(dev);
  2556. vxge_debug_entryexit(vdev->level_trace,
  2557. "%s:%d", __func__, __LINE__);
  2558. if ((new_mtu < VXGE_HW_MIN_MTU) || (new_mtu > VXGE_HW_MAX_MTU)) {
  2559. vxge_debug_init(vdev->level_err,
  2560. "%s: mtu size is invalid", dev->name);
  2561. return -EPERM;
  2562. }
  2563. /* check if device is down already */
  2564. if (unlikely(!is_vxge_card_up(vdev))) {
  2565. /* just store new value, will use later on open() */
  2566. dev->mtu = new_mtu;
  2567. vxge_debug_init(vdev->level_err,
  2568. "%s", "device is down on MTU change");
  2569. return 0;
  2570. }
  2571. vxge_debug_init(vdev->level_trace,
  2572. "trying to apply new MTU %d", new_mtu);
  2573. if (vxge_close(dev))
  2574. return -EIO;
  2575. dev->mtu = new_mtu;
  2576. vdev->mtu = new_mtu;
  2577. if (vxge_open(dev))
  2578. return -EIO;
  2579. vxge_debug_init(vdev->level_trace,
  2580. "%s: MTU changed to %d", vdev->ndev->name, new_mtu);
  2581. vxge_debug_entryexit(vdev->level_trace,
  2582. "%s:%d Exiting...", __func__, __LINE__);
  2583. return 0;
  2584. }
  2585. /**
  2586. * vxge_get_stats
  2587. * @dev: pointer to the device structure
  2588. *
  2589. * Updates the device statistics structure. This function updates the device
  2590. * statistics structure in the net_device structure and returns a pointer
  2591. * to the same.
  2592. */
  2593. static struct net_device_stats *
  2594. vxge_get_stats(struct net_device *dev)
  2595. {
  2596. struct vxgedev *vdev;
  2597. struct net_device_stats *net_stats;
  2598. int k;
  2599. vdev = netdev_priv(dev);
  2600. net_stats = &vdev->stats.net_stats;
  2601. memset(net_stats, 0, sizeof(struct net_device_stats));
  2602. for (k = 0; k < vdev->no_of_vpath; k++) {
  2603. net_stats->rx_packets += vdev->vpaths[k].ring.stats.rx_frms;
  2604. net_stats->rx_bytes += vdev->vpaths[k].ring.stats.rx_bytes;
  2605. net_stats->rx_errors += vdev->vpaths[k].ring.stats.rx_errors;
  2606. net_stats->multicast += vdev->vpaths[k].ring.stats.rx_mcast;
  2607. net_stats->rx_dropped +=
  2608. vdev->vpaths[k].ring.stats.rx_dropped;
  2609. net_stats->tx_packets += vdev->vpaths[k].fifo.stats.tx_frms;
  2610. net_stats->tx_bytes += vdev->vpaths[k].fifo.stats.tx_bytes;
  2611. net_stats->tx_errors += vdev->vpaths[k].fifo.stats.tx_errors;
  2612. }
  2613. return net_stats;
  2614. }
  2615. /**
  2616. * vxge_ioctl
  2617. * @dev: Device pointer.
  2618. * @ifr: An IOCTL specific structure, that can contain a pointer to
  2619. * a proprietary structure used to pass information to the driver.
  2620. * @cmd: This is used to distinguish between the different commands that
  2621. * can be passed to the IOCTL functions.
  2622. *
  2623. * Entry point for the Ioctl.
  2624. */
  2625. static int vxge_ioctl(struct net_device *dev, struct ifreq *rq, int cmd)
  2626. {
  2627. return -EOPNOTSUPP;
  2628. }
  2629. /**
  2630. * vxge_tx_watchdog
  2631. * @dev: pointer to net device structure
  2632. *
  2633. * Watchdog for transmit side.
  2634. * This function is triggered if the Tx Queue is stopped
  2635. * for a pre-defined amount of time when the Interface is still up.
  2636. */
  2637. static void
  2638. vxge_tx_watchdog(struct net_device *dev)
  2639. {
  2640. struct vxgedev *vdev;
  2641. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  2642. vdev = (struct vxgedev *)netdev_priv(dev);
  2643. vdev->cric_err_event = VXGE_HW_EVENT_RESET_START;
  2644. vxge_reset(vdev);
  2645. vxge_debug_entryexit(VXGE_TRACE,
  2646. "%s:%d Exiting...", __func__, __LINE__);
  2647. }
  2648. /**
  2649. * vxge_vlan_rx_register
  2650. * @dev: net device pointer.
  2651. * @grp: vlan group
  2652. *
  2653. * Vlan group registration
  2654. */
  2655. static void
  2656. vxge_vlan_rx_register(struct net_device *dev, struct vlan_group *grp)
  2657. {
  2658. struct vxgedev *vdev;
  2659. struct vxge_vpath *vpath;
  2660. int vp;
  2661. u64 vid;
  2662. enum vxge_hw_status status;
  2663. int i;
  2664. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  2665. vdev = (struct vxgedev *)netdev_priv(dev);
  2666. vpath = &vdev->vpaths[0];
  2667. if ((NULL == grp) && (vpath->is_open)) {
  2668. /* Get the first vlan */
  2669. status = vxge_hw_vpath_vid_get(vpath->handle, &vid);
  2670. while (status == VXGE_HW_OK) {
  2671. /* Delete this vlan from the vid table */
  2672. for (vp = 0; vp < vdev->no_of_vpath; vp++) {
  2673. vpath = &vdev->vpaths[vp];
  2674. if (!vpath->is_open)
  2675. continue;
  2676. vxge_hw_vpath_vid_delete(vpath->handle, vid);
  2677. }
  2678. /* Get the next vlan to be deleted */
  2679. vpath = &vdev->vpaths[0];
  2680. status = vxge_hw_vpath_vid_get(vpath->handle, &vid);
  2681. }
  2682. }
  2683. vdev->vlgrp = grp;
  2684. for (i = 0; i < vdev->no_of_vpath; i++) {
  2685. if (vdev->vpaths[i].is_configured)
  2686. vdev->vpaths[i].ring.vlgrp = grp;
  2687. }
  2688. vxge_debug_entryexit(VXGE_TRACE,
  2689. "%s:%d Exiting...", __func__, __LINE__);
  2690. }
  2691. /**
  2692. * vxge_vlan_rx_add_vid
  2693. * @dev: net device pointer.
  2694. * @vid: vid
  2695. *
  2696. * Add the vlan id to the devices vlan id table
  2697. */
  2698. static void
  2699. vxge_vlan_rx_add_vid(struct net_device *dev, unsigned short vid)
  2700. {
  2701. struct vxgedev *vdev;
  2702. struct vxge_vpath *vpath;
  2703. int vp_id;
  2704. vdev = (struct vxgedev *)netdev_priv(dev);
  2705. /* Add these vlan to the vid table */
  2706. for (vp_id = 0; vp_id < vdev->no_of_vpath; vp_id++) {
  2707. vpath = &vdev->vpaths[vp_id];
  2708. if (!vpath->is_open)
  2709. continue;
  2710. vxge_hw_vpath_vid_add(vpath->handle, vid);
  2711. }
  2712. }
  2713. /**
  2714. * vxge_vlan_rx_add_vid
  2715. * @dev: net device pointer.
  2716. * @vid: vid
  2717. *
  2718. * Remove the vlan id from the device's vlan id table
  2719. */
  2720. static void
  2721. vxge_vlan_rx_kill_vid(struct net_device *dev, unsigned short vid)
  2722. {
  2723. struct vxgedev *vdev;
  2724. struct vxge_vpath *vpath;
  2725. int vp_id;
  2726. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  2727. vdev = (struct vxgedev *)netdev_priv(dev);
  2728. vlan_group_set_device(vdev->vlgrp, vid, NULL);
  2729. /* Delete this vlan from the vid table */
  2730. for (vp_id = 0; vp_id < vdev->no_of_vpath; vp_id++) {
  2731. vpath = &vdev->vpaths[vp_id];
  2732. if (!vpath->is_open)
  2733. continue;
  2734. vxge_hw_vpath_vid_delete(vpath->handle, vid);
  2735. }
  2736. vxge_debug_entryexit(VXGE_TRACE,
  2737. "%s:%d Exiting...", __func__, __LINE__);
  2738. }
  2739. static const struct net_device_ops vxge_netdev_ops = {
  2740. .ndo_open = vxge_open,
  2741. .ndo_stop = vxge_close,
  2742. .ndo_get_stats = vxge_get_stats,
  2743. .ndo_start_xmit = vxge_xmit,
  2744. .ndo_validate_addr = eth_validate_addr,
  2745. .ndo_set_multicast_list = vxge_set_multicast,
  2746. .ndo_do_ioctl = vxge_ioctl,
  2747. .ndo_set_mac_address = vxge_set_mac_addr,
  2748. .ndo_change_mtu = vxge_change_mtu,
  2749. .ndo_vlan_rx_register = vxge_vlan_rx_register,
  2750. .ndo_vlan_rx_kill_vid = vxge_vlan_rx_kill_vid,
  2751. .ndo_vlan_rx_add_vid = vxge_vlan_rx_add_vid,
  2752. .ndo_tx_timeout = vxge_tx_watchdog,
  2753. #ifdef CONFIG_NET_POLL_CONTROLLER
  2754. .ndo_poll_controller = vxge_netpoll,
  2755. #endif
  2756. };
  2757. int __devinit vxge_device_register(struct __vxge_hw_device *hldev,
  2758. struct vxge_config *config,
  2759. int high_dma, int no_of_vpath,
  2760. struct vxgedev **vdev_out)
  2761. {
  2762. struct net_device *ndev;
  2763. enum vxge_hw_status status = VXGE_HW_OK;
  2764. struct vxgedev *vdev;
  2765. int i, ret = 0, no_of_queue = 1;
  2766. u64 stat;
  2767. *vdev_out = NULL;
  2768. if (config->tx_steering_type == TX_MULTIQ_STEERING)
  2769. no_of_queue = no_of_vpath;
  2770. ndev = alloc_etherdev_mq(sizeof(struct vxgedev),
  2771. no_of_queue);
  2772. if (ndev == NULL) {
  2773. vxge_debug_init(
  2774. vxge_hw_device_trace_level_get(hldev),
  2775. "%s : device allocation failed", __func__);
  2776. ret = -ENODEV;
  2777. goto _out0;
  2778. }
  2779. vxge_debug_entryexit(
  2780. vxge_hw_device_trace_level_get(hldev),
  2781. "%s: %s:%d Entering...",
  2782. ndev->name, __func__, __LINE__);
  2783. vdev = netdev_priv(ndev);
  2784. memset(vdev, 0, sizeof(struct vxgedev));
  2785. vdev->ndev = ndev;
  2786. vdev->devh = hldev;
  2787. vdev->pdev = hldev->pdev;
  2788. memcpy(&vdev->config, config, sizeof(struct vxge_config));
  2789. vdev->rx_csum = 1; /* Enable Rx CSUM by default. */
  2790. SET_NETDEV_DEV(ndev, &vdev->pdev->dev);
  2791. ndev->features |= NETIF_F_HW_VLAN_TX | NETIF_F_HW_VLAN_RX |
  2792. NETIF_F_HW_VLAN_FILTER;
  2793. /* Driver entry points */
  2794. ndev->irq = vdev->pdev->irq;
  2795. ndev->base_addr = (unsigned long) hldev->bar0;
  2796. ndev->netdev_ops = &vxge_netdev_ops;
  2797. ndev->watchdog_timeo = VXGE_LL_WATCH_DOG_TIMEOUT;
  2798. initialize_ethtool_ops(ndev);
  2799. /* Allocate memory for vpath */
  2800. vdev->vpaths = kzalloc((sizeof(struct vxge_vpath)) *
  2801. no_of_vpath, GFP_KERNEL);
  2802. if (!vdev->vpaths) {
  2803. vxge_debug_init(VXGE_ERR,
  2804. "%s: vpath memory allocation failed",
  2805. vdev->ndev->name);
  2806. ret = -ENODEV;
  2807. goto _out1;
  2808. }
  2809. ndev->features |= NETIF_F_SG;
  2810. ndev->features |= NETIF_F_HW_CSUM;
  2811. vxge_debug_init(vxge_hw_device_trace_level_get(hldev),
  2812. "%s : checksuming enabled", __func__);
  2813. if (high_dma) {
  2814. ndev->features |= NETIF_F_HIGHDMA;
  2815. vxge_debug_init(vxge_hw_device_trace_level_get(hldev),
  2816. "%s : using High DMA", __func__);
  2817. }
  2818. ndev->features |= NETIF_F_TSO | NETIF_F_TSO6;
  2819. if (vdev->config.gro_enable)
  2820. ndev->features |= NETIF_F_GRO;
  2821. if (vdev->config.tx_steering_type == TX_MULTIQ_STEERING)
  2822. ndev->real_num_tx_queues = no_of_vpath;
  2823. #ifdef NETIF_F_LLTX
  2824. ndev->features |= NETIF_F_LLTX;
  2825. #endif
  2826. for (i = 0; i < no_of_vpath; i++)
  2827. spin_lock_init(&vdev->vpaths[i].fifo.tx_lock);
  2828. if (register_netdev(ndev)) {
  2829. vxge_debug_init(vxge_hw_device_trace_level_get(hldev),
  2830. "%s: %s : device registration failed!",
  2831. ndev->name, __func__);
  2832. ret = -ENODEV;
  2833. goto _out2;
  2834. }
  2835. /* Set the factory defined MAC address initially */
  2836. ndev->addr_len = ETH_ALEN;
  2837. /* Make Link state as off at this point, when the Link change
  2838. * interrupt comes the state will be automatically changed to
  2839. * the right state.
  2840. */
  2841. netif_carrier_off(ndev);
  2842. vxge_debug_init(vxge_hw_device_trace_level_get(hldev),
  2843. "%s: Ethernet device registered",
  2844. ndev->name);
  2845. *vdev_out = vdev;
  2846. /* Resetting the Device stats */
  2847. status = vxge_hw_mrpcim_stats_access(
  2848. hldev,
  2849. VXGE_HW_STATS_OP_CLEAR_ALL_STATS,
  2850. 0,
  2851. 0,
  2852. &stat);
  2853. if (status == VXGE_HW_ERR_PRIVILAGED_OPEARATION)
  2854. vxge_debug_init(
  2855. vxge_hw_device_trace_level_get(hldev),
  2856. "%s: device stats clear returns"
  2857. "VXGE_HW_ERR_PRIVILAGED_OPEARATION", ndev->name);
  2858. vxge_debug_entryexit(vxge_hw_device_trace_level_get(hldev),
  2859. "%s: %s:%d Exiting...",
  2860. ndev->name, __func__, __LINE__);
  2861. return ret;
  2862. _out2:
  2863. kfree(vdev->vpaths);
  2864. _out1:
  2865. free_netdev(ndev);
  2866. _out0:
  2867. return ret;
  2868. }
  2869. /*
  2870. * vxge_device_unregister
  2871. *
  2872. * This function will unregister and free network device
  2873. */
  2874. void
  2875. vxge_device_unregister(struct __vxge_hw_device *hldev)
  2876. {
  2877. struct vxgedev *vdev;
  2878. struct net_device *dev;
  2879. char buf[IFNAMSIZ];
  2880. #if ((VXGE_DEBUG_INIT & VXGE_DEBUG_MASK) || \
  2881. (VXGE_DEBUG_ENTRYEXIT & VXGE_DEBUG_MASK))
  2882. u32 level_trace;
  2883. #endif
  2884. dev = hldev->ndev;
  2885. vdev = netdev_priv(dev);
  2886. #if ((VXGE_DEBUG_INIT & VXGE_DEBUG_MASK) || \
  2887. (VXGE_DEBUG_ENTRYEXIT & VXGE_DEBUG_MASK))
  2888. level_trace = vdev->level_trace;
  2889. #endif
  2890. vxge_debug_entryexit(level_trace,
  2891. "%s: %s:%d", vdev->ndev->name, __func__, __LINE__);
  2892. memcpy(buf, vdev->ndev->name, IFNAMSIZ);
  2893. /* in 2.6 will call stop() if device is up */
  2894. unregister_netdev(dev);
  2895. flush_scheduled_work();
  2896. vxge_debug_init(level_trace, "%s: ethernet device unregistered", buf);
  2897. vxge_debug_entryexit(level_trace,
  2898. "%s: %s:%d Exiting...", buf, __func__, __LINE__);
  2899. }
  2900. /*
  2901. * vxge_callback_crit_err
  2902. *
  2903. * This function is called by the alarm handler in interrupt context.
  2904. * Driver must analyze it based on the event type.
  2905. */
  2906. static void
  2907. vxge_callback_crit_err(struct __vxge_hw_device *hldev,
  2908. enum vxge_hw_event type, u64 vp_id)
  2909. {
  2910. struct net_device *dev = hldev->ndev;
  2911. struct vxgedev *vdev = (struct vxgedev *)netdev_priv(dev);
  2912. int vpath_idx;
  2913. vxge_debug_entryexit(vdev->level_trace,
  2914. "%s: %s:%d", vdev->ndev->name, __func__, __LINE__);
  2915. /* Note: This event type should be used for device wide
  2916. * indications only - Serious errors, Slot freeze and critical errors
  2917. */
  2918. vdev->cric_err_event = type;
  2919. for (vpath_idx = 0; vpath_idx < vdev->no_of_vpath; vpath_idx++)
  2920. if (vdev->vpaths[vpath_idx].device_id == vp_id)
  2921. break;
  2922. if (!test_bit(__VXGE_STATE_RESET_CARD, &vdev->state)) {
  2923. if (type == VXGE_HW_EVENT_SLOT_FREEZE) {
  2924. vxge_debug_init(VXGE_ERR,
  2925. "%s: Slot is frozen", vdev->ndev->name);
  2926. } else if (type == VXGE_HW_EVENT_SERR) {
  2927. vxge_debug_init(VXGE_ERR,
  2928. "%s: Encountered Serious Error",
  2929. vdev->ndev->name);
  2930. } else if (type == VXGE_HW_EVENT_CRITICAL_ERR)
  2931. vxge_debug_init(VXGE_ERR,
  2932. "%s: Encountered Critical Error",
  2933. vdev->ndev->name);
  2934. }
  2935. if ((type == VXGE_HW_EVENT_SERR) ||
  2936. (type == VXGE_HW_EVENT_SLOT_FREEZE)) {
  2937. if (unlikely(vdev->exec_mode))
  2938. clear_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  2939. } else if (type == VXGE_HW_EVENT_CRITICAL_ERR) {
  2940. vxge_hw_device_mask_all(hldev);
  2941. if (unlikely(vdev->exec_mode))
  2942. clear_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  2943. } else if ((type == VXGE_HW_EVENT_FIFO_ERR) ||
  2944. (type == VXGE_HW_EVENT_VPATH_ERR)) {
  2945. if (unlikely(vdev->exec_mode))
  2946. clear_bit(__VXGE_STATE_CARD_UP, &vdev->state);
  2947. else {
  2948. /* check if this vpath is already set for reset */
  2949. if (!test_and_set_bit(vpath_idx, &vdev->vp_reset)) {
  2950. /* disable interrupts for this vpath */
  2951. vxge_vpath_intr_disable(vdev, vpath_idx);
  2952. /* stop the queue for this vpath */
  2953. vxge_stop_tx_queue(&vdev->vpaths[vpath_idx].
  2954. fifo);
  2955. }
  2956. }
  2957. }
  2958. vxge_debug_entryexit(vdev->level_trace,
  2959. "%s: %s:%d Exiting...",
  2960. vdev->ndev->name, __func__, __LINE__);
  2961. }
  2962. static void verify_bandwidth(void)
  2963. {
  2964. int i, band_width, total = 0, equal_priority = 0;
  2965. /* 1. If user enters 0 for some fifo, give equal priority to all */
  2966. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++) {
  2967. if (bw_percentage[i] == 0) {
  2968. equal_priority = 1;
  2969. break;
  2970. }
  2971. }
  2972. if (!equal_priority) {
  2973. /* 2. If sum exceeds 100, give equal priority to all */
  2974. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++) {
  2975. if (bw_percentage[i] == 0xFF)
  2976. break;
  2977. total += bw_percentage[i];
  2978. if (total > VXGE_HW_VPATH_BANDWIDTH_MAX) {
  2979. equal_priority = 1;
  2980. break;
  2981. }
  2982. }
  2983. }
  2984. if (!equal_priority) {
  2985. /* Is all the bandwidth consumed? */
  2986. if (total < VXGE_HW_VPATH_BANDWIDTH_MAX) {
  2987. if (i < VXGE_HW_MAX_VIRTUAL_PATHS) {
  2988. /* Split rest of bw equally among next VPs*/
  2989. band_width =
  2990. (VXGE_HW_VPATH_BANDWIDTH_MAX - total) /
  2991. (VXGE_HW_MAX_VIRTUAL_PATHS - i);
  2992. if (band_width < 2) /* min of 2% */
  2993. equal_priority = 1;
  2994. else {
  2995. for (; i < VXGE_HW_MAX_VIRTUAL_PATHS;
  2996. i++)
  2997. bw_percentage[i] =
  2998. band_width;
  2999. }
  3000. }
  3001. } else if (i < VXGE_HW_MAX_VIRTUAL_PATHS)
  3002. equal_priority = 1;
  3003. }
  3004. if (equal_priority) {
  3005. vxge_debug_init(VXGE_ERR,
  3006. "%s: Assigning equal bandwidth to all the vpaths",
  3007. VXGE_DRIVER_NAME);
  3008. bw_percentage[0] = VXGE_HW_VPATH_BANDWIDTH_MAX /
  3009. VXGE_HW_MAX_VIRTUAL_PATHS;
  3010. for (i = 1; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++)
  3011. bw_percentage[i] = bw_percentage[0];
  3012. }
  3013. return;
  3014. }
  3015. /*
  3016. * Vpath configuration
  3017. */
  3018. static int __devinit vxge_config_vpaths(
  3019. struct vxge_hw_device_config *device_config,
  3020. u64 vpath_mask, struct vxge_config *config_param)
  3021. {
  3022. int i, no_of_vpaths = 0, default_no_vpath = 0, temp;
  3023. u32 txdl_size, txdl_per_memblock;
  3024. temp = driver_config->vpath_per_dev;
  3025. if ((driver_config->vpath_per_dev == VXGE_USE_DEFAULT) &&
  3026. (max_config_dev == VXGE_MAX_CONFIG_DEV)) {
  3027. /* No more CPU. Return vpath number as zero.*/
  3028. if (driver_config->g_no_cpus == -1)
  3029. return 0;
  3030. if (!driver_config->g_no_cpus)
  3031. driver_config->g_no_cpus = num_online_cpus();
  3032. driver_config->vpath_per_dev = driver_config->g_no_cpus >> 1;
  3033. if (!driver_config->vpath_per_dev)
  3034. driver_config->vpath_per_dev = 1;
  3035. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++)
  3036. if (!vxge_bVALn(vpath_mask, i, 1))
  3037. continue;
  3038. else
  3039. default_no_vpath++;
  3040. if (default_no_vpath < driver_config->vpath_per_dev)
  3041. driver_config->vpath_per_dev = default_no_vpath;
  3042. driver_config->g_no_cpus = driver_config->g_no_cpus -
  3043. (driver_config->vpath_per_dev * 2);
  3044. if (driver_config->g_no_cpus <= 0)
  3045. driver_config->g_no_cpus = -1;
  3046. }
  3047. if (driver_config->vpath_per_dev == 1) {
  3048. vxge_debug_ll_config(VXGE_TRACE,
  3049. "%s: Disable tx and rx steering, "
  3050. "as single vpath is configured", VXGE_DRIVER_NAME);
  3051. config_param->rth_steering = NO_STEERING;
  3052. config_param->tx_steering_type = NO_STEERING;
  3053. device_config->rth_en = 0;
  3054. }
  3055. /* configure bandwidth */
  3056. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++)
  3057. device_config->vp_config[i].min_bandwidth = bw_percentage[i];
  3058. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++) {
  3059. device_config->vp_config[i].vp_id = i;
  3060. device_config->vp_config[i].mtu = VXGE_HW_DEFAULT_MTU;
  3061. if (no_of_vpaths < driver_config->vpath_per_dev) {
  3062. if (!vxge_bVALn(vpath_mask, i, 1)) {
  3063. vxge_debug_ll_config(VXGE_TRACE,
  3064. "%s: vpath: %d is not available",
  3065. VXGE_DRIVER_NAME, i);
  3066. continue;
  3067. } else {
  3068. vxge_debug_ll_config(VXGE_TRACE,
  3069. "%s: vpath: %d available",
  3070. VXGE_DRIVER_NAME, i);
  3071. no_of_vpaths++;
  3072. }
  3073. } else {
  3074. vxge_debug_ll_config(VXGE_TRACE,
  3075. "%s: vpath: %d is not configured, "
  3076. "max_config_vpath exceeded",
  3077. VXGE_DRIVER_NAME, i);
  3078. break;
  3079. }
  3080. /* Configure Tx fifo's */
  3081. device_config->vp_config[i].fifo.enable =
  3082. VXGE_HW_FIFO_ENABLE;
  3083. device_config->vp_config[i].fifo.max_frags =
  3084. MAX_SKB_FRAGS;
  3085. device_config->vp_config[i].fifo.memblock_size =
  3086. VXGE_HW_MIN_FIFO_MEMBLOCK_SIZE;
  3087. txdl_size = MAX_SKB_FRAGS * sizeof(struct vxge_hw_fifo_txd);
  3088. txdl_per_memblock = VXGE_HW_MIN_FIFO_MEMBLOCK_SIZE / txdl_size;
  3089. device_config->vp_config[i].fifo.fifo_blocks =
  3090. ((VXGE_DEF_FIFO_LENGTH - 1) / txdl_per_memblock) + 1;
  3091. device_config->vp_config[i].fifo.intr =
  3092. VXGE_HW_FIFO_QUEUE_INTR_DISABLE;
  3093. /* Configure tti properties */
  3094. device_config->vp_config[i].tti.intr_enable =
  3095. VXGE_HW_TIM_INTR_ENABLE;
  3096. device_config->vp_config[i].tti.btimer_val =
  3097. (VXGE_TTI_BTIMER_VAL * 1000) / 272;
  3098. device_config->vp_config[i].tti.timer_ac_en =
  3099. VXGE_HW_TIM_TIMER_AC_ENABLE;
  3100. /* For msi-x with napi (each vector
  3101. has a handler of its own) -
  3102. Set CI to OFF for all vpaths */
  3103. device_config->vp_config[i].tti.timer_ci_en =
  3104. VXGE_HW_TIM_TIMER_CI_DISABLE;
  3105. device_config->vp_config[i].tti.timer_ri_en =
  3106. VXGE_HW_TIM_TIMER_RI_DISABLE;
  3107. device_config->vp_config[i].tti.util_sel =
  3108. VXGE_HW_TIM_UTIL_SEL_LEGACY_TX_NET_UTIL;
  3109. device_config->vp_config[i].tti.ltimer_val =
  3110. (VXGE_TTI_LTIMER_VAL * 1000) / 272;
  3111. device_config->vp_config[i].tti.rtimer_val =
  3112. (VXGE_TTI_RTIMER_VAL * 1000) / 272;
  3113. device_config->vp_config[i].tti.urange_a = TTI_TX_URANGE_A;
  3114. device_config->vp_config[i].tti.urange_b = TTI_TX_URANGE_B;
  3115. device_config->vp_config[i].tti.urange_c = TTI_TX_URANGE_C;
  3116. device_config->vp_config[i].tti.uec_a = TTI_TX_UFC_A;
  3117. device_config->vp_config[i].tti.uec_b = TTI_TX_UFC_B;
  3118. device_config->vp_config[i].tti.uec_c = TTI_TX_UFC_C;
  3119. device_config->vp_config[i].tti.uec_d = TTI_TX_UFC_D;
  3120. /* Configure Rx rings */
  3121. device_config->vp_config[i].ring.enable =
  3122. VXGE_HW_RING_ENABLE;
  3123. device_config->vp_config[i].ring.ring_blocks =
  3124. VXGE_HW_DEF_RING_BLOCKS;
  3125. device_config->vp_config[i].ring.buffer_mode =
  3126. VXGE_HW_RING_RXD_BUFFER_MODE_1;
  3127. device_config->vp_config[i].ring.rxds_limit =
  3128. VXGE_HW_DEF_RING_RXDS_LIMIT;
  3129. device_config->vp_config[i].ring.scatter_mode =
  3130. VXGE_HW_RING_SCATTER_MODE_A;
  3131. /* Configure rti properties */
  3132. device_config->vp_config[i].rti.intr_enable =
  3133. VXGE_HW_TIM_INTR_ENABLE;
  3134. device_config->vp_config[i].rti.btimer_val =
  3135. (VXGE_RTI_BTIMER_VAL * 1000)/272;
  3136. device_config->vp_config[i].rti.timer_ac_en =
  3137. VXGE_HW_TIM_TIMER_AC_ENABLE;
  3138. device_config->vp_config[i].rti.timer_ci_en =
  3139. VXGE_HW_TIM_TIMER_CI_DISABLE;
  3140. device_config->vp_config[i].rti.timer_ri_en =
  3141. VXGE_HW_TIM_TIMER_RI_DISABLE;
  3142. device_config->vp_config[i].rti.util_sel =
  3143. VXGE_HW_TIM_UTIL_SEL_LEGACY_RX_NET_UTIL;
  3144. device_config->vp_config[i].rti.urange_a =
  3145. RTI_RX_URANGE_A;
  3146. device_config->vp_config[i].rti.urange_b =
  3147. RTI_RX_URANGE_B;
  3148. device_config->vp_config[i].rti.urange_c =
  3149. RTI_RX_URANGE_C;
  3150. device_config->vp_config[i].rti.uec_a = RTI_RX_UFC_A;
  3151. device_config->vp_config[i].rti.uec_b = RTI_RX_UFC_B;
  3152. device_config->vp_config[i].rti.uec_c = RTI_RX_UFC_C;
  3153. device_config->vp_config[i].rti.uec_d = RTI_RX_UFC_D;
  3154. device_config->vp_config[i].rti.rtimer_val =
  3155. (VXGE_RTI_RTIMER_VAL * 1000) / 272;
  3156. device_config->vp_config[i].rti.ltimer_val =
  3157. (VXGE_RTI_LTIMER_VAL * 1000) / 272;
  3158. device_config->vp_config[i].rpa_strip_vlan_tag =
  3159. vlan_tag_strip;
  3160. }
  3161. driver_config->vpath_per_dev = temp;
  3162. return no_of_vpaths;
  3163. }
  3164. /* initialize device configuratrions */
  3165. static void __devinit vxge_device_config_init(
  3166. struct vxge_hw_device_config *device_config,
  3167. int *intr_type)
  3168. {
  3169. /* Used for CQRQ/SRQ. */
  3170. device_config->dma_blockpool_initial =
  3171. VXGE_HW_INITIAL_DMA_BLOCK_POOL_SIZE;
  3172. device_config->dma_blockpool_max =
  3173. VXGE_HW_MAX_DMA_BLOCK_POOL_SIZE;
  3174. if (max_mac_vpath > VXGE_MAX_MAC_ADDR_COUNT)
  3175. max_mac_vpath = VXGE_MAX_MAC_ADDR_COUNT;
  3176. #ifndef CONFIG_PCI_MSI
  3177. vxge_debug_init(VXGE_ERR,
  3178. "%s: This Kernel does not support "
  3179. "MSI-X. Defaulting to INTA", VXGE_DRIVER_NAME);
  3180. *intr_type = INTA;
  3181. #endif
  3182. /* Configure whether MSI-X or IRQL. */
  3183. switch (*intr_type) {
  3184. case INTA:
  3185. device_config->intr_mode = VXGE_HW_INTR_MODE_IRQLINE;
  3186. break;
  3187. case MSI_X:
  3188. device_config->intr_mode = VXGE_HW_INTR_MODE_MSIX;
  3189. break;
  3190. }
  3191. /* Timer period between device poll */
  3192. device_config->device_poll_millis = VXGE_TIMER_DELAY;
  3193. /* Configure mac based steering. */
  3194. device_config->rts_mac_en = addr_learn_en;
  3195. /* Configure Vpaths */
  3196. device_config->rth_it_type = VXGE_HW_RTH_IT_TYPE_MULTI_IT;
  3197. vxge_debug_ll_config(VXGE_TRACE, "%s : Device Config Params ",
  3198. __func__);
  3199. vxge_debug_ll_config(VXGE_TRACE, "dma_blockpool_initial : %d",
  3200. device_config->dma_blockpool_initial);
  3201. vxge_debug_ll_config(VXGE_TRACE, "dma_blockpool_max : %d",
  3202. device_config->dma_blockpool_max);
  3203. vxge_debug_ll_config(VXGE_TRACE, "intr_mode : %d",
  3204. device_config->intr_mode);
  3205. vxge_debug_ll_config(VXGE_TRACE, "device_poll_millis : %d",
  3206. device_config->device_poll_millis);
  3207. vxge_debug_ll_config(VXGE_TRACE, "rts_mac_en : %d",
  3208. device_config->rts_mac_en);
  3209. vxge_debug_ll_config(VXGE_TRACE, "rth_en : %d",
  3210. device_config->rth_en);
  3211. vxge_debug_ll_config(VXGE_TRACE, "rth_it_type : %d",
  3212. device_config->rth_it_type);
  3213. }
  3214. static void __devinit vxge_print_parm(struct vxgedev *vdev, u64 vpath_mask)
  3215. {
  3216. int i;
  3217. vxge_debug_init(VXGE_TRACE,
  3218. "%s: %d Vpath(s) opened",
  3219. vdev->ndev->name, vdev->no_of_vpath);
  3220. switch (vdev->config.intr_type) {
  3221. case INTA:
  3222. vxge_debug_init(VXGE_TRACE,
  3223. "%s: Interrupt type INTA", vdev->ndev->name);
  3224. break;
  3225. case MSI_X:
  3226. vxge_debug_init(VXGE_TRACE,
  3227. "%s: Interrupt type MSI-X", vdev->ndev->name);
  3228. break;
  3229. }
  3230. if (vdev->config.rth_steering) {
  3231. vxge_debug_init(VXGE_TRACE,
  3232. "%s: RTH steering enabled for TCP_IPV4",
  3233. vdev->ndev->name);
  3234. } else {
  3235. vxge_debug_init(VXGE_TRACE,
  3236. "%s: RTH steering disabled", vdev->ndev->name);
  3237. }
  3238. switch (vdev->config.tx_steering_type) {
  3239. case NO_STEERING:
  3240. vxge_debug_init(VXGE_TRACE,
  3241. "%s: Tx steering disabled", vdev->ndev->name);
  3242. break;
  3243. case TX_PRIORITY_STEERING:
  3244. vxge_debug_init(VXGE_TRACE,
  3245. "%s: Unsupported tx steering option",
  3246. vdev->ndev->name);
  3247. vxge_debug_init(VXGE_TRACE,
  3248. "%s: Tx steering disabled", vdev->ndev->name);
  3249. vdev->config.tx_steering_type = 0;
  3250. break;
  3251. case TX_VLAN_STEERING:
  3252. vxge_debug_init(VXGE_TRACE,
  3253. "%s: Unsupported tx steering option",
  3254. vdev->ndev->name);
  3255. vxge_debug_init(VXGE_TRACE,
  3256. "%s: Tx steering disabled", vdev->ndev->name);
  3257. vdev->config.tx_steering_type = 0;
  3258. break;
  3259. case TX_MULTIQ_STEERING:
  3260. vxge_debug_init(VXGE_TRACE,
  3261. "%s: Tx multiqueue steering enabled",
  3262. vdev->ndev->name);
  3263. break;
  3264. case TX_PORT_STEERING:
  3265. vxge_debug_init(VXGE_TRACE,
  3266. "%s: Tx port steering enabled",
  3267. vdev->ndev->name);
  3268. break;
  3269. default:
  3270. vxge_debug_init(VXGE_ERR,
  3271. "%s: Unsupported tx steering type",
  3272. vdev->ndev->name);
  3273. vxge_debug_init(VXGE_TRACE,
  3274. "%s: Tx steering disabled", vdev->ndev->name);
  3275. vdev->config.tx_steering_type = 0;
  3276. }
  3277. if (vdev->config.gro_enable) {
  3278. vxge_debug_init(VXGE_ERR,
  3279. "%s: Generic receive offload enabled",
  3280. vdev->ndev->name);
  3281. } else
  3282. vxge_debug_init(VXGE_TRACE,
  3283. "%s: Generic receive offload disabled",
  3284. vdev->ndev->name);
  3285. if (vdev->config.addr_learn_en)
  3286. vxge_debug_init(VXGE_TRACE,
  3287. "%s: MAC Address learning enabled", vdev->ndev->name);
  3288. vxge_debug_init(VXGE_TRACE,
  3289. "%s: Rx doorbell mode enabled", vdev->ndev->name);
  3290. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++) {
  3291. if (!vxge_bVALn(vpath_mask, i, 1))
  3292. continue;
  3293. vxge_debug_ll_config(VXGE_TRACE,
  3294. "%s: MTU size - %d", vdev->ndev->name,
  3295. ((struct __vxge_hw_device *)(vdev->devh))->
  3296. config.vp_config[i].mtu);
  3297. vxge_debug_init(VXGE_TRACE,
  3298. "%s: VLAN tag stripping %s", vdev->ndev->name,
  3299. ((struct __vxge_hw_device *)(vdev->devh))->
  3300. config.vp_config[i].rpa_strip_vlan_tag
  3301. ? "Enabled" : "Disabled");
  3302. vxge_debug_init(VXGE_TRACE,
  3303. "%s: Ring blocks : %d", vdev->ndev->name,
  3304. ((struct __vxge_hw_device *)(vdev->devh))->
  3305. config.vp_config[i].ring.ring_blocks);
  3306. vxge_debug_init(VXGE_TRACE,
  3307. "%s: Fifo blocks : %d", vdev->ndev->name,
  3308. ((struct __vxge_hw_device *)(vdev->devh))->
  3309. config.vp_config[i].fifo.fifo_blocks);
  3310. vxge_debug_ll_config(VXGE_TRACE,
  3311. "%s: Max frags : %d", vdev->ndev->name,
  3312. ((struct __vxge_hw_device *)(vdev->devh))->
  3313. config.vp_config[i].fifo.max_frags);
  3314. break;
  3315. }
  3316. }
  3317. #ifdef CONFIG_PM
  3318. /**
  3319. * vxge_pm_suspend - vxge power management suspend entry point
  3320. *
  3321. */
  3322. static int vxge_pm_suspend(struct pci_dev *pdev, pm_message_t state)
  3323. {
  3324. return -ENOSYS;
  3325. }
  3326. /**
  3327. * vxge_pm_resume - vxge power management resume entry point
  3328. *
  3329. */
  3330. static int vxge_pm_resume(struct pci_dev *pdev)
  3331. {
  3332. return -ENOSYS;
  3333. }
  3334. #endif
  3335. /**
  3336. * vxge_io_error_detected - called when PCI error is detected
  3337. * @pdev: Pointer to PCI device
  3338. * @state: The current pci connection state
  3339. *
  3340. * This function is called after a PCI bus error affecting
  3341. * this device has been detected.
  3342. */
  3343. static pci_ers_result_t vxge_io_error_detected(struct pci_dev *pdev,
  3344. pci_channel_state_t state)
  3345. {
  3346. struct __vxge_hw_device *hldev =
  3347. (struct __vxge_hw_device *) pci_get_drvdata(pdev);
  3348. struct net_device *netdev = hldev->ndev;
  3349. netif_device_detach(netdev);
  3350. if (netif_running(netdev)) {
  3351. /* Bring down the card, while avoiding PCI I/O */
  3352. do_vxge_close(netdev, 0);
  3353. }
  3354. pci_disable_device(pdev);
  3355. return PCI_ERS_RESULT_NEED_RESET;
  3356. }
  3357. /**
  3358. * vxge_io_slot_reset - called after the pci bus has been reset.
  3359. * @pdev: Pointer to PCI device
  3360. *
  3361. * Restart the card from scratch, as if from a cold-boot.
  3362. * At this point, the card has exprienced a hard reset,
  3363. * followed by fixups by BIOS, and has its config space
  3364. * set up identically to what it was at cold boot.
  3365. */
  3366. static pci_ers_result_t vxge_io_slot_reset(struct pci_dev *pdev)
  3367. {
  3368. struct __vxge_hw_device *hldev =
  3369. (struct __vxge_hw_device *) pci_get_drvdata(pdev);
  3370. struct net_device *netdev = hldev->ndev;
  3371. struct vxgedev *vdev = netdev_priv(netdev);
  3372. if (pci_enable_device(pdev)) {
  3373. printk(KERN_ERR "%s: "
  3374. "Cannot re-enable device after reset\n",
  3375. VXGE_DRIVER_NAME);
  3376. return PCI_ERS_RESULT_DISCONNECT;
  3377. }
  3378. pci_set_master(pdev);
  3379. vxge_reset(vdev);
  3380. return PCI_ERS_RESULT_RECOVERED;
  3381. }
  3382. /**
  3383. * vxge_io_resume - called when traffic can start flowing again.
  3384. * @pdev: Pointer to PCI device
  3385. *
  3386. * This callback is called when the error recovery driver tells
  3387. * us that its OK to resume normal operation.
  3388. */
  3389. static void vxge_io_resume(struct pci_dev *pdev)
  3390. {
  3391. struct __vxge_hw_device *hldev =
  3392. (struct __vxge_hw_device *) pci_get_drvdata(pdev);
  3393. struct net_device *netdev = hldev->ndev;
  3394. if (netif_running(netdev)) {
  3395. if (vxge_open(netdev)) {
  3396. printk(KERN_ERR "%s: "
  3397. "Can't bring device back up after reset\n",
  3398. VXGE_DRIVER_NAME);
  3399. return;
  3400. }
  3401. }
  3402. netif_device_attach(netdev);
  3403. }
  3404. /**
  3405. * vxge_probe
  3406. * @pdev : structure containing the PCI related information of the device.
  3407. * @pre: List of PCI devices supported by the driver listed in vxge_id_table.
  3408. * Description:
  3409. * This function is called when a new PCI device gets detected and initializes
  3410. * it.
  3411. * Return value:
  3412. * returns 0 on success and negative on failure.
  3413. *
  3414. */
  3415. static int __devinit
  3416. vxge_probe(struct pci_dev *pdev, const struct pci_device_id *pre)
  3417. {
  3418. struct __vxge_hw_device *hldev;
  3419. enum vxge_hw_status status;
  3420. int ret;
  3421. int high_dma = 0;
  3422. u64 vpath_mask = 0;
  3423. struct vxgedev *vdev;
  3424. struct vxge_config ll_config;
  3425. struct vxge_hw_device_config *device_config = NULL;
  3426. struct vxge_hw_device_attr attr;
  3427. int i, j, no_of_vpath = 0, max_vpath_supported = 0;
  3428. u8 *macaddr;
  3429. struct vxge_mac_addrs *entry;
  3430. static int bus = -1, device = -1;
  3431. u8 new_device = 0;
  3432. vxge_debug_entryexit(VXGE_TRACE, "%s:%d", __func__, __LINE__);
  3433. attr.pdev = pdev;
  3434. if (bus != pdev->bus->number)
  3435. new_device = 1;
  3436. if (device != PCI_SLOT(pdev->devfn))
  3437. new_device = 1;
  3438. bus = pdev->bus->number;
  3439. device = PCI_SLOT(pdev->devfn);
  3440. if (new_device) {
  3441. if (driver_config->config_dev_cnt &&
  3442. (driver_config->config_dev_cnt !=
  3443. driver_config->total_dev_cnt))
  3444. vxge_debug_init(VXGE_ERR,
  3445. "%s: Configured %d of %d devices",
  3446. VXGE_DRIVER_NAME,
  3447. driver_config->config_dev_cnt,
  3448. driver_config->total_dev_cnt);
  3449. driver_config->config_dev_cnt = 0;
  3450. driver_config->total_dev_cnt = 0;
  3451. driver_config->g_no_cpus = 0;
  3452. driver_config->vpath_per_dev = max_config_vpath;
  3453. }
  3454. driver_config->total_dev_cnt++;
  3455. if (++driver_config->config_dev_cnt > max_config_dev) {
  3456. ret = 0;
  3457. goto _exit0;
  3458. }
  3459. device_config = kzalloc(sizeof(struct vxge_hw_device_config),
  3460. GFP_KERNEL);
  3461. if (!device_config) {
  3462. ret = -ENOMEM;
  3463. vxge_debug_init(VXGE_ERR,
  3464. "device_config : malloc failed %s %d",
  3465. __FILE__, __LINE__);
  3466. goto _exit0;
  3467. }
  3468. memset(&ll_config, 0, sizeof(struct vxge_config));
  3469. ll_config.tx_steering_type = TX_MULTIQ_STEERING;
  3470. ll_config.intr_type = MSI_X;
  3471. ll_config.napi_weight = NEW_NAPI_WEIGHT;
  3472. ll_config.rth_steering = RTH_STEERING;
  3473. /* get the default configuration parameters */
  3474. vxge_hw_device_config_default_get(device_config);
  3475. /* initialize configuration parameters */
  3476. vxge_device_config_init(device_config, &ll_config.intr_type);
  3477. ret = pci_enable_device(pdev);
  3478. if (ret) {
  3479. vxge_debug_init(VXGE_ERR,
  3480. "%s : can not enable PCI device", __func__);
  3481. goto _exit0;
  3482. }
  3483. if (!pci_set_dma_mask(pdev, 0xffffffffffffffffULL)) {
  3484. vxge_debug_ll_config(VXGE_TRACE,
  3485. "%s : using 64bit DMA", __func__);
  3486. high_dma = 1;
  3487. if (pci_set_consistent_dma_mask(pdev,
  3488. 0xffffffffffffffffULL)) {
  3489. vxge_debug_init(VXGE_ERR,
  3490. "%s : unable to obtain 64bit DMA for "
  3491. "consistent allocations", __func__);
  3492. ret = -ENOMEM;
  3493. goto _exit1;
  3494. }
  3495. } else if (!pci_set_dma_mask(pdev, 0xffffffffUL)) {
  3496. vxge_debug_ll_config(VXGE_TRACE,
  3497. "%s : using 32bit DMA", __func__);
  3498. } else {
  3499. ret = -ENOMEM;
  3500. goto _exit1;
  3501. }
  3502. if (pci_request_regions(pdev, VXGE_DRIVER_NAME)) {
  3503. vxge_debug_init(VXGE_ERR,
  3504. "%s : request regions failed", __func__);
  3505. ret = -ENODEV;
  3506. goto _exit1;
  3507. }
  3508. pci_set_master(pdev);
  3509. attr.bar0 = pci_ioremap_bar(pdev, 0);
  3510. if (!attr.bar0) {
  3511. vxge_debug_init(VXGE_ERR,
  3512. "%s : cannot remap io memory bar0", __func__);
  3513. ret = -ENODEV;
  3514. goto _exit2;
  3515. }
  3516. vxge_debug_ll_config(VXGE_TRACE,
  3517. "pci ioremap bar0: %p:0x%llx",
  3518. attr.bar0,
  3519. (unsigned long long)pci_resource_start(pdev, 0));
  3520. attr.bar1 = pci_ioremap_bar(pdev, 2);
  3521. if (!attr.bar1) {
  3522. vxge_debug_init(VXGE_ERR,
  3523. "%s : cannot remap io memory bar2", __func__);
  3524. ret = -ENODEV;
  3525. goto _exit3;
  3526. }
  3527. vxge_debug_ll_config(VXGE_TRACE,
  3528. "pci ioremap bar1: %p:0x%llx",
  3529. attr.bar1,
  3530. (unsigned long long)pci_resource_start(pdev, 2));
  3531. status = vxge_hw_device_hw_info_get(attr.bar0,
  3532. &ll_config.device_hw_info);
  3533. if (status != VXGE_HW_OK) {
  3534. vxge_debug_init(VXGE_ERR,
  3535. "%s: Reading of hardware info failed."
  3536. "Please try upgrading the firmware.", VXGE_DRIVER_NAME);
  3537. ret = -EINVAL;
  3538. goto _exit4;
  3539. }
  3540. if (ll_config.device_hw_info.fw_version.major !=
  3541. VXGE_DRIVER_VERSION_MAJOR) {
  3542. vxge_debug_init(VXGE_ERR,
  3543. "FW Ver.(maj): %d not driver's expected version: %d",
  3544. ll_config.device_hw_info.fw_version.major,
  3545. VXGE_DRIVER_VERSION_MAJOR);
  3546. ret = -EINVAL;
  3547. goto _exit4;
  3548. }
  3549. vpath_mask = ll_config.device_hw_info.vpath_mask;
  3550. if (vpath_mask == 0) {
  3551. vxge_debug_ll_config(VXGE_TRACE,
  3552. "%s: No vpaths available in device", VXGE_DRIVER_NAME);
  3553. ret = -EINVAL;
  3554. goto _exit4;
  3555. }
  3556. vxge_debug_ll_config(VXGE_TRACE,
  3557. "%s:%d Vpath mask = %llx", __func__, __LINE__,
  3558. (unsigned long long)vpath_mask);
  3559. /* Check how many vpaths are available */
  3560. for (i = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++) {
  3561. if (!((vpath_mask) & vxge_mBIT(i)))
  3562. continue;
  3563. max_vpath_supported++;
  3564. }
  3565. /* Enable SRIOV mode, if firmware has SRIOV support and if it is a PF */
  3566. if ((VXGE_HW_FUNCTION_MODE_SRIOV ==
  3567. ll_config.device_hw_info.function_mode) &&
  3568. (max_config_dev > 1) && (pdev->is_physfn)) {
  3569. ret = pci_enable_sriov(pdev, max_config_dev - 1);
  3570. if (ret)
  3571. vxge_debug_ll_config(VXGE_ERR,
  3572. "Failed to enable SRIOV: %d \n", ret);
  3573. }
  3574. /*
  3575. * Configure vpaths and get driver configured number of vpaths
  3576. * which is less than or equal to the maximum vpaths per function.
  3577. */
  3578. no_of_vpath = vxge_config_vpaths(device_config, vpath_mask, &ll_config);
  3579. if (!no_of_vpath) {
  3580. vxge_debug_ll_config(VXGE_ERR,
  3581. "%s: No more vpaths to configure", VXGE_DRIVER_NAME);
  3582. ret = 0;
  3583. goto _exit4;
  3584. }
  3585. /* Setting driver callbacks */
  3586. attr.uld_callbacks.link_up = vxge_callback_link_up;
  3587. attr.uld_callbacks.link_down = vxge_callback_link_down;
  3588. attr.uld_callbacks.crit_err = vxge_callback_crit_err;
  3589. status = vxge_hw_device_initialize(&hldev, &attr, device_config);
  3590. if (status != VXGE_HW_OK) {
  3591. vxge_debug_init(VXGE_ERR,
  3592. "Failed to initialize device (%d)", status);
  3593. ret = -EINVAL;
  3594. goto _exit4;
  3595. }
  3596. vxge_hw_device_debug_set(hldev, VXGE_ERR, VXGE_COMPONENT_LL);
  3597. /* set private device info */
  3598. pci_set_drvdata(pdev, hldev);
  3599. ll_config.gro_enable = VXGE_GRO_ALWAYS_AGGREGATE;
  3600. ll_config.fifo_indicate_max_pkts = VXGE_FIFO_INDICATE_MAX_PKTS;
  3601. ll_config.addr_learn_en = addr_learn_en;
  3602. ll_config.rth_algorithm = RTH_ALG_JENKINS;
  3603. ll_config.rth_hash_type_tcpipv4 = VXGE_HW_RING_HASH_TYPE_TCP_IPV4;
  3604. ll_config.rth_hash_type_ipv4 = VXGE_HW_RING_HASH_TYPE_NONE;
  3605. ll_config.rth_hash_type_tcpipv6 = VXGE_HW_RING_HASH_TYPE_NONE;
  3606. ll_config.rth_hash_type_ipv6 = VXGE_HW_RING_HASH_TYPE_NONE;
  3607. ll_config.rth_hash_type_tcpipv6ex = VXGE_HW_RING_HASH_TYPE_NONE;
  3608. ll_config.rth_hash_type_ipv6ex = VXGE_HW_RING_HASH_TYPE_NONE;
  3609. ll_config.rth_bkt_sz = RTH_BUCKET_SIZE;
  3610. ll_config.tx_pause_enable = VXGE_PAUSE_CTRL_ENABLE;
  3611. ll_config.rx_pause_enable = VXGE_PAUSE_CTRL_ENABLE;
  3612. if (vxge_device_register(hldev, &ll_config, high_dma, no_of_vpath,
  3613. &vdev)) {
  3614. ret = -EINVAL;
  3615. goto _exit5;
  3616. }
  3617. vxge_hw_device_debug_set(hldev, VXGE_TRACE, VXGE_COMPONENT_LL);
  3618. VXGE_COPY_DEBUG_INFO_TO_LL(vdev, vxge_hw_device_error_level_get(hldev),
  3619. vxge_hw_device_trace_level_get(hldev));
  3620. /* set private HW device info */
  3621. hldev->ndev = vdev->ndev;
  3622. vdev->mtu = VXGE_HW_DEFAULT_MTU;
  3623. vdev->bar0 = attr.bar0;
  3624. vdev->bar1 = attr.bar1;
  3625. vdev->max_vpath_supported = max_vpath_supported;
  3626. vdev->no_of_vpath = no_of_vpath;
  3627. /* Virtual Path count */
  3628. for (i = 0, j = 0; i < VXGE_HW_MAX_VIRTUAL_PATHS; i++) {
  3629. if (!vxge_bVALn(vpath_mask, i, 1))
  3630. continue;
  3631. if (j >= vdev->no_of_vpath)
  3632. break;
  3633. vdev->vpaths[j].is_configured = 1;
  3634. vdev->vpaths[j].device_id = i;
  3635. vdev->vpaths[j].fifo.driver_id = j;
  3636. vdev->vpaths[j].ring.driver_id = j;
  3637. vdev->vpaths[j].vdev = vdev;
  3638. vdev->vpaths[j].max_mac_addr_cnt = max_mac_vpath;
  3639. memcpy((u8 *)vdev->vpaths[j].macaddr,
  3640. (u8 *)ll_config.device_hw_info.mac_addrs[i],
  3641. ETH_ALEN);
  3642. /* Initialize the mac address list header */
  3643. INIT_LIST_HEAD(&vdev->vpaths[j].mac_addr_list);
  3644. vdev->vpaths[j].mac_addr_cnt = 0;
  3645. vdev->vpaths[j].mcast_addr_cnt = 0;
  3646. j++;
  3647. }
  3648. vdev->exec_mode = VXGE_EXEC_MODE_DISABLE;
  3649. vdev->max_config_port = max_config_port;
  3650. vdev->vlan_tag_strip = vlan_tag_strip;
  3651. /* map the hashing selector table to the configured vpaths */
  3652. for (i = 0; i < vdev->no_of_vpath; i++)
  3653. vdev->vpath_selector[i] = vpath_selector[i];
  3654. macaddr = (u8 *)vdev->vpaths[0].macaddr;
  3655. ll_config.device_hw_info.serial_number[VXGE_HW_INFO_LEN - 1] = '\0';
  3656. ll_config.device_hw_info.product_desc[VXGE_HW_INFO_LEN - 1] = '\0';
  3657. ll_config.device_hw_info.part_number[VXGE_HW_INFO_LEN - 1] = '\0';
  3658. vxge_debug_init(VXGE_TRACE, "%s: SERIAL NUMBER: %s",
  3659. vdev->ndev->name, ll_config.device_hw_info.serial_number);
  3660. vxge_debug_init(VXGE_TRACE, "%s: PART NUMBER: %s",
  3661. vdev->ndev->name, ll_config.device_hw_info.part_number);
  3662. vxge_debug_init(VXGE_TRACE, "%s: Neterion %s Server Adapter",
  3663. vdev->ndev->name, ll_config.device_hw_info.product_desc);
  3664. vxge_debug_init(VXGE_TRACE,
  3665. "%s: MAC ADDR: %02X:%02X:%02X:%02X:%02X:%02X",
  3666. vdev->ndev->name, macaddr[0], macaddr[1], macaddr[2],
  3667. macaddr[3], macaddr[4], macaddr[5]);
  3668. vxge_debug_init(VXGE_TRACE, "%s: Link Width x%d",
  3669. vdev->ndev->name, vxge_hw_device_link_width_get(hldev));
  3670. vxge_debug_init(VXGE_TRACE,
  3671. "%s: Firmware version : %s Date : %s", vdev->ndev->name,
  3672. ll_config.device_hw_info.fw_version.version,
  3673. ll_config.device_hw_info.fw_date.date);
  3674. vxge_print_parm(vdev, vpath_mask);
  3675. /* Store the fw version for ethttool option */
  3676. strcpy(vdev->fw_version, ll_config.device_hw_info.fw_version.version);
  3677. memcpy(vdev->ndev->dev_addr, (u8 *)vdev->vpaths[0].macaddr, ETH_ALEN);
  3678. memcpy(vdev->ndev->perm_addr, vdev->ndev->dev_addr, ETH_ALEN);
  3679. /* Copy the station mac address to the list */
  3680. for (i = 0; i < vdev->no_of_vpath; i++) {
  3681. entry = (struct vxge_mac_addrs *)
  3682. kzalloc(sizeof(struct vxge_mac_addrs),
  3683. GFP_KERNEL);
  3684. if (NULL == entry) {
  3685. vxge_debug_init(VXGE_ERR,
  3686. "%s: mac_addr_list : memory allocation failed",
  3687. vdev->ndev->name);
  3688. ret = -EPERM;
  3689. goto _exit6;
  3690. }
  3691. macaddr = (u8 *)&entry->macaddr;
  3692. memcpy(macaddr, vdev->ndev->dev_addr, ETH_ALEN);
  3693. list_add(&entry->item, &vdev->vpaths[i].mac_addr_list);
  3694. vdev->vpaths[i].mac_addr_cnt = 1;
  3695. }
  3696. vxge_debug_entryexit(VXGE_TRACE, "%s: %s:%d Exiting...",
  3697. vdev->ndev->name, __func__, __LINE__);
  3698. vxge_hw_device_debug_set(hldev, VXGE_ERR, VXGE_COMPONENT_LL);
  3699. VXGE_COPY_DEBUG_INFO_TO_LL(vdev, vxge_hw_device_error_level_get(hldev),
  3700. vxge_hw_device_trace_level_get(hldev));
  3701. return 0;
  3702. _exit6:
  3703. for (i = 0; i < vdev->no_of_vpath; i++)
  3704. vxge_free_mac_add_list(&vdev->vpaths[i]);
  3705. vxge_device_unregister(hldev);
  3706. _exit5:
  3707. pci_disable_sriov(pdev);
  3708. vxge_hw_device_terminate(hldev);
  3709. _exit4:
  3710. iounmap(attr.bar1);
  3711. _exit3:
  3712. iounmap(attr.bar0);
  3713. _exit2:
  3714. pci_release_regions(pdev);
  3715. _exit1:
  3716. pci_disable_device(pdev);
  3717. _exit0:
  3718. kfree(device_config);
  3719. driver_config->config_dev_cnt--;
  3720. pci_set_drvdata(pdev, NULL);
  3721. return ret;
  3722. }
  3723. /**
  3724. * vxge_rem_nic - Free the PCI device
  3725. * @pdev: structure containing the PCI related information of the device.
  3726. * Description: This function is called by the Pci subsystem to release a
  3727. * PCI device and free up all resource held up by the device.
  3728. */
  3729. static void __devexit
  3730. vxge_remove(struct pci_dev *pdev)
  3731. {
  3732. struct __vxge_hw_device *hldev;
  3733. struct vxgedev *vdev = NULL;
  3734. struct net_device *dev;
  3735. int i = 0;
  3736. #if ((VXGE_DEBUG_INIT & VXGE_DEBUG_MASK) || \
  3737. (VXGE_DEBUG_ENTRYEXIT & VXGE_DEBUG_MASK))
  3738. u32 level_trace;
  3739. #endif
  3740. hldev = (struct __vxge_hw_device *) pci_get_drvdata(pdev);
  3741. if (hldev == NULL)
  3742. return;
  3743. dev = hldev->ndev;
  3744. vdev = netdev_priv(dev);
  3745. #if ((VXGE_DEBUG_INIT & VXGE_DEBUG_MASK) || \
  3746. (VXGE_DEBUG_ENTRYEXIT & VXGE_DEBUG_MASK))
  3747. level_trace = vdev->level_trace;
  3748. #endif
  3749. vxge_debug_entryexit(level_trace,
  3750. "%s:%d", __func__, __LINE__);
  3751. vxge_debug_init(level_trace,
  3752. "%s : removing PCI device...", __func__);
  3753. vxge_device_unregister(hldev);
  3754. for (i = 0; i < vdev->no_of_vpath; i++) {
  3755. vxge_free_mac_add_list(&vdev->vpaths[i]);
  3756. vdev->vpaths[i].mcast_addr_cnt = 0;
  3757. vdev->vpaths[i].mac_addr_cnt = 0;
  3758. }
  3759. kfree(vdev->vpaths);
  3760. iounmap(vdev->bar0);
  3761. iounmap(vdev->bar1);
  3762. pci_disable_sriov(pdev);
  3763. /* we are safe to free it now */
  3764. free_netdev(dev);
  3765. vxge_debug_init(level_trace,
  3766. "%s:%d Device unregistered", __func__, __LINE__);
  3767. vxge_hw_device_terminate(hldev);
  3768. pci_disable_device(pdev);
  3769. pci_release_regions(pdev);
  3770. pci_set_drvdata(pdev, NULL);
  3771. vxge_debug_entryexit(level_trace,
  3772. "%s:%d Exiting...", __func__, __LINE__);
  3773. }
  3774. static struct pci_error_handlers vxge_err_handler = {
  3775. .error_detected = vxge_io_error_detected,
  3776. .slot_reset = vxge_io_slot_reset,
  3777. .resume = vxge_io_resume,
  3778. };
  3779. static struct pci_driver vxge_driver = {
  3780. .name = VXGE_DRIVER_NAME,
  3781. .id_table = vxge_id_table,
  3782. .probe = vxge_probe,
  3783. .remove = __devexit_p(vxge_remove),
  3784. #ifdef CONFIG_PM
  3785. .suspend = vxge_pm_suspend,
  3786. .resume = vxge_pm_resume,
  3787. #endif
  3788. .err_handler = &vxge_err_handler,
  3789. };
  3790. static int __init
  3791. vxge_starter(void)
  3792. {
  3793. int ret = 0;
  3794. char version[32];
  3795. snprintf(version, 32, "%s", DRV_VERSION);
  3796. printk(KERN_CRIT "%s: Copyright(c) 2002-2009 Neterion Inc\n",
  3797. VXGE_DRIVER_NAME);
  3798. printk(KERN_CRIT "%s: Driver version: %s\n",
  3799. VXGE_DRIVER_NAME, version);
  3800. verify_bandwidth();
  3801. driver_config = kzalloc(sizeof(struct vxge_drv_config), GFP_KERNEL);
  3802. if (!driver_config)
  3803. return -ENOMEM;
  3804. ret = pci_register_driver(&vxge_driver);
  3805. if (driver_config->config_dev_cnt &&
  3806. (driver_config->config_dev_cnt != driver_config->total_dev_cnt))
  3807. vxge_debug_init(VXGE_ERR,
  3808. "%s: Configured %d of %d devices",
  3809. VXGE_DRIVER_NAME, driver_config->config_dev_cnt,
  3810. driver_config->total_dev_cnt);
  3811. if (ret)
  3812. kfree(driver_config);
  3813. return ret;
  3814. }
  3815. static void __exit
  3816. vxge_closer(void)
  3817. {
  3818. pci_unregister_driver(&vxge_driver);
  3819. kfree(driver_config);
  3820. }
  3821. module_init(vxge_starter);
  3822. module_exit(vxge_closer);