i40e_main.c 202 KB

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  1. /*******************************************************************************
  2. *
  3. * Intel Ethernet Controller XL710 Family Linux Driver
  4. * Copyright(c) 2013 Intel Corporation.
  5. *
  6. * This program is free software; you can redistribute it and/or modify it
  7. * under the terms and conditions of the GNU General Public License,
  8. * version 2, as published by the Free Software Foundation.
  9. *
  10. * This program is distributed in the hope it will be useful, but WITHOUT
  11. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  12. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  13. * more details.
  14. *
  15. * You should have received a copy of the GNU General Public License along with
  16. * this program; if not, write to the Free Software Foundation, Inc.,
  17. * 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
  18. *
  19. * The full GNU General Public License is included in this distribution in
  20. * the file called "COPYING".
  21. *
  22. * Contact Information:
  23. * e1000-devel Mailing List <e1000-devel@lists.sourceforge.net>
  24. * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
  25. *
  26. ******************************************************************************/
  27. /* Local includes */
  28. #include "i40e.h"
  29. const char i40e_driver_name[] = "i40e";
  30. static const char i40e_driver_string[] =
  31. "Intel(R) Ethernet Connection XL710 Network Driver";
  32. #define DRV_KERN "-k"
  33. #define DRV_VERSION_MAJOR 0
  34. #define DRV_VERSION_MINOR 3
  35. #define DRV_VERSION_BUILD 11
  36. #define DRV_VERSION __stringify(DRV_VERSION_MAJOR) "." \
  37. __stringify(DRV_VERSION_MINOR) "." \
  38. __stringify(DRV_VERSION_BUILD) DRV_KERN
  39. const char i40e_driver_version_str[] = DRV_VERSION;
  40. static const char i40e_copyright[] = "Copyright (c) 2013 Intel Corporation.";
  41. /* a bit of forward declarations */
  42. static void i40e_vsi_reinit_locked(struct i40e_vsi *vsi);
  43. static void i40e_handle_reset_warning(struct i40e_pf *pf);
  44. static int i40e_add_vsi(struct i40e_vsi *vsi);
  45. static int i40e_add_veb(struct i40e_veb *veb, struct i40e_vsi *vsi);
  46. static int i40e_setup_pf_switch(struct i40e_pf *pf);
  47. static int i40e_setup_misc_vector(struct i40e_pf *pf);
  48. static void i40e_determine_queue_usage(struct i40e_pf *pf);
  49. static int i40e_setup_pf_filter_control(struct i40e_pf *pf);
  50. /* i40e_pci_tbl - PCI Device ID Table
  51. *
  52. * Last entry must be all 0s
  53. *
  54. * { Vendor ID, Device ID, SubVendor ID, SubDevice ID,
  55. * Class, Class Mask, private data (not used) }
  56. */
  57. static DEFINE_PCI_DEVICE_TABLE(i40e_pci_tbl) = {
  58. {PCI_VDEVICE(INTEL, I40E_SFP_XL710_DEVICE_ID), 0},
  59. {PCI_VDEVICE(INTEL, I40E_SFP_X710_DEVICE_ID), 0},
  60. {PCI_VDEVICE(INTEL, I40E_QEMU_DEVICE_ID), 0},
  61. {PCI_VDEVICE(INTEL, I40E_KX_A_DEVICE_ID), 0},
  62. {PCI_VDEVICE(INTEL, I40E_KX_B_DEVICE_ID), 0},
  63. {PCI_VDEVICE(INTEL, I40E_KX_C_DEVICE_ID), 0},
  64. {PCI_VDEVICE(INTEL, I40E_KX_D_DEVICE_ID), 0},
  65. {PCI_VDEVICE(INTEL, I40E_QSFP_A_DEVICE_ID), 0},
  66. {PCI_VDEVICE(INTEL, I40E_QSFP_B_DEVICE_ID), 0},
  67. {PCI_VDEVICE(INTEL, I40E_QSFP_C_DEVICE_ID), 0},
  68. /* required last entry */
  69. {0, }
  70. };
  71. MODULE_DEVICE_TABLE(pci, i40e_pci_tbl);
  72. #define I40E_MAX_VF_COUNT 128
  73. static int debug = -1;
  74. module_param(debug, int, 0);
  75. MODULE_PARM_DESC(debug, "Debug level (0=none,...,16=all)");
  76. MODULE_AUTHOR("Intel Corporation, <e1000-devel@lists.sourceforge.net>");
  77. MODULE_DESCRIPTION("Intel(R) Ethernet Connection XL710 Network Driver");
  78. MODULE_LICENSE("GPL");
  79. MODULE_VERSION(DRV_VERSION);
  80. /**
  81. * i40e_allocate_dma_mem_d - OS specific memory alloc for shared code
  82. * @hw: pointer to the HW structure
  83. * @mem: ptr to mem struct to fill out
  84. * @size: size of memory requested
  85. * @alignment: what to align the allocation to
  86. **/
  87. int i40e_allocate_dma_mem_d(struct i40e_hw *hw, struct i40e_dma_mem *mem,
  88. u64 size, u32 alignment)
  89. {
  90. struct i40e_pf *pf = (struct i40e_pf *)hw->back;
  91. mem->size = ALIGN(size, alignment);
  92. mem->va = dma_zalloc_coherent(&pf->pdev->dev, mem->size,
  93. &mem->pa, GFP_KERNEL);
  94. if (!mem->va)
  95. return -ENOMEM;
  96. return 0;
  97. }
  98. /**
  99. * i40e_free_dma_mem_d - OS specific memory free for shared code
  100. * @hw: pointer to the HW structure
  101. * @mem: ptr to mem struct to free
  102. **/
  103. int i40e_free_dma_mem_d(struct i40e_hw *hw, struct i40e_dma_mem *mem)
  104. {
  105. struct i40e_pf *pf = (struct i40e_pf *)hw->back;
  106. dma_free_coherent(&pf->pdev->dev, mem->size, mem->va, mem->pa);
  107. mem->va = NULL;
  108. mem->pa = 0;
  109. mem->size = 0;
  110. return 0;
  111. }
  112. /**
  113. * i40e_allocate_virt_mem_d - OS specific memory alloc for shared code
  114. * @hw: pointer to the HW structure
  115. * @mem: ptr to mem struct to fill out
  116. * @size: size of memory requested
  117. **/
  118. int i40e_allocate_virt_mem_d(struct i40e_hw *hw, struct i40e_virt_mem *mem,
  119. u32 size)
  120. {
  121. mem->size = size;
  122. mem->va = kzalloc(size, GFP_KERNEL);
  123. if (!mem->va)
  124. return -ENOMEM;
  125. return 0;
  126. }
  127. /**
  128. * i40e_free_virt_mem_d - OS specific memory free for shared code
  129. * @hw: pointer to the HW structure
  130. * @mem: ptr to mem struct to free
  131. **/
  132. int i40e_free_virt_mem_d(struct i40e_hw *hw, struct i40e_virt_mem *mem)
  133. {
  134. /* it's ok to kfree a NULL pointer */
  135. kfree(mem->va);
  136. mem->va = NULL;
  137. mem->size = 0;
  138. return 0;
  139. }
  140. /**
  141. * i40e_get_lump - find a lump of free generic resource
  142. * @pf: board private structure
  143. * @pile: the pile of resource to search
  144. * @needed: the number of items needed
  145. * @id: an owner id to stick on the items assigned
  146. *
  147. * Returns the base item index of the lump, or negative for error
  148. *
  149. * The search_hint trick and lack of advanced fit-finding only work
  150. * because we're highly likely to have all the same size lump requests.
  151. * Linear search time and any fragmentation should be minimal.
  152. **/
  153. static int i40e_get_lump(struct i40e_pf *pf, struct i40e_lump_tracking *pile,
  154. u16 needed, u16 id)
  155. {
  156. int ret = -ENOMEM;
  157. int i, j;
  158. if (!pile || needed == 0 || id >= I40E_PILE_VALID_BIT) {
  159. dev_info(&pf->pdev->dev,
  160. "param err: pile=%p needed=%d id=0x%04x\n",
  161. pile, needed, id);
  162. return -EINVAL;
  163. }
  164. /* start the linear search with an imperfect hint */
  165. i = pile->search_hint;
  166. while (i < pile->num_entries) {
  167. /* skip already allocated entries */
  168. if (pile->list[i] & I40E_PILE_VALID_BIT) {
  169. i++;
  170. continue;
  171. }
  172. /* do we have enough in this lump? */
  173. for (j = 0; (j < needed) && ((i+j) < pile->num_entries); j++) {
  174. if (pile->list[i+j] & I40E_PILE_VALID_BIT)
  175. break;
  176. }
  177. if (j == needed) {
  178. /* there was enough, so assign it to the requestor */
  179. for (j = 0; j < needed; j++)
  180. pile->list[i+j] = id | I40E_PILE_VALID_BIT;
  181. ret = i;
  182. pile->search_hint = i + j;
  183. break;
  184. } else {
  185. /* not enough, so skip over it and continue looking */
  186. i += j;
  187. }
  188. }
  189. return ret;
  190. }
  191. /**
  192. * i40e_put_lump - return a lump of generic resource
  193. * @pile: the pile of resource to search
  194. * @index: the base item index
  195. * @id: the owner id of the items assigned
  196. *
  197. * Returns the count of items in the lump
  198. **/
  199. static int i40e_put_lump(struct i40e_lump_tracking *pile, u16 index, u16 id)
  200. {
  201. int valid_id = (id | I40E_PILE_VALID_BIT);
  202. int count = 0;
  203. int i;
  204. if (!pile || index >= pile->num_entries)
  205. return -EINVAL;
  206. for (i = index;
  207. i < pile->num_entries && pile->list[i] == valid_id;
  208. i++) {
  209. pile->list[i] = 0;
  210. count++;
  211. }
  212. if (count && index < pile->search_hint)
  213. pile->search_hint = index;
  214. return count;
  215. }
  216. /**
  217. * i40e_service_event_schedule - Schedule the service task to wake up
  218. * @pf: board private structure
  219. *
  220. * If not already scheduled, this puts the task into the work queue
  221. **/
  222. static void i40e_service_event_schedule(struct i40e_pf *pf)
  223. {
  224. if (!test_bit(__I40E_DOWN, &pf->state) &&
  225. !test_bit(__I40E_RESET_RECOVERY_PENDING, &pf->state) &&
  226. !test_and_set_bit(__I40E_SERVICE_SCHED, &pf->state))
  227. schedule_work(&pf->service_task);
  228. }
  229. /**
  230. * i40e_tx_timeout - Respond to a Tx Hang
  231. * @netdev: network interface device structure
  232. *
  233. * If any port has noticed a Tx timeout, it is likely that the whole
  234. * device is munged, not just the one netdev port, so go for the full
  235. * reset.
  236. **/
  237. static void i40e_tx_timeout(struct net_device *netdev)
  238. {
  239. struct i40e_netdev_priv *np = netdev_priv(netdev);
  240. struct i40e_vsi *vsi = np->vsi;
  241. struct i40e_pf *pf = vsi->back;
  242. pf->tx_timeout_count++;
  243. if (time_after(jiffies, (pf->tx_timeout_last_recovery + HZ*20)))
  244. pf->tx_timeout_recovery_level = 0;
  245. pf->tx_timeout_last_recovery = jiffies;
  246. netdev_info(netdev, "tx_timeout recovery level %d\n",
  247. pf->tx_timeout_recovery_level);
  248. switch (pf->tx_timeout_recovery_level) {
  249. case 0:
  250. /* disable and re-enable queues for the VSI */
  251. if (in_interrupt()) {
  252. set_bit(__I40E_REINIT_REQUESTED, &pf->state);
  253. set_bit(__I40E_REINIT_REQUESTED, &vsi->state);
  254. } else {
  255. i40e_vsi_reinit_locked(vsi);
  256. }
  257. break;
  258. case 1:
  259. set_bit(__I40E_PF_RESET_REQUESTED, &pf->state);
  260. break;
  261. case 2:
  262. set_bit(__I40E_CORE_RESET_REQUESTED, &pf->state);
  263. break;
  264. case 3:
  265. set_bit(__I40E_GLOBAL_RESET_REQUESTED, &pf->state);
  266. break;
  267. default:
  268. netdev_err(netdev, "tx_timeout recovery unsuccessful\n");
  269. i40e_down(vsi);
  270. break;
  271. }
  272. i40e_service_event_schedule(pf);
  273. pf->tx_timeout_recovery_level++;
  274. }
  275. /**
  276. * i40e_release_rx_desc - Store the new tail and head values
  277. * @rx_ring: ring to bump
  278. * @val: new head index
  279. **/
  280. static inline void i40e_release_rx_desc(struct i40e_ring *rx_ring, u32 val)
  281. {
  282. rx_ring->next_to_use = val;
  283. /* Force memory writes to complete before letting h/w
  284. * know there are new descriptors to fetch. (Only
  285. * applicable for weak-ordered memory model archs,
  286. * such as IA-64).
  287. */
  288. wmb();
  289. writel(val, rx_ring->tail);
  290. }
  291. /**
  292. * i40e_get_vsi_stats_struct - Get System Network Statistics
  293. * @vsi: the VSI we care about
  294. *
  295. * Returns the address of the device statistics structure.
  296. * The statistics are actually updated from the service task.
  297. **/
  298. struct rtnl_link_stats64 *i40e_get_vsi_stats_struct(struct i40e_vsi *vsi)
  299. {
  300. return &vsi->net_stats;
  301. }
  302. /**
  303. * i40e_get_netdev_stats_struct - Get statistics for netdev interface
  304. * @netdev: network interface device structure
  305. *
  306. * Returns the address of the device statistics structure.
  307. * The statistics are actually updated from the service task.
  308. **/
  309. static struct rtnl_link_stats64 *i40e_get_netdev_stats_struct(
  310. struct net_device *netdev,
  311. struct rtnl_link_stats64 *stats)
  312. {
  313. struct i40e_netdev_priv *np = netdev_priv(netdev);
  314. struct i40e_vsi *vsi = np->vsi;
  315. struct rtnl_link_stats64 *vsi_stats = i40e_get_vsi_stats_struct(vsi);
  316. int i;
  317. if (!vsi->tx_rings)
  318. return stats;
  319. rcu_read_lock();
  320. for (i = 0; i < vsi->num_queue_pairs; i++) {
  321. struct i40e_ring *tx_ring, *rx_ring;
  322. u64 bytes, packets;
  323. unsigned int start;
  324. tx_ring = ACCESS_ONCE(vsi->tx_rings[i]);
  325. if (!tx_ring)
  326. continue;
  327. do {
  328. start = u64_stats_fetch_begin_bh(&tx_ring->syncp);
  329. packets = tx_ring->stats.packets;
  330. bytes = tx_ring->stats.bytes;
  331. } while (u64_stats_fetch_retry_bh(&tx_ring->syncp, start));
  332. stats->tx_packets += packets;
  333. stats->tx_bytes += bytes;
  334. rx_ring = &tx_ring[1];
  335. do {
  336. start = u64_stats_fetch_begin_bh(&rx_ring->syncp);
  337. packets = rx_ring->stats.packets;
  338. bytes = rx_ring->stats.bytes;
  339. } while (u64_stats_fetch_retry_bh(&rx_ring->syncp, start));
  340. stats->rx_packets += packets;
  341. stats->rx_bytes += bytes;
  342. }
  343. rcu_read_unlock();
  344. /* following stats updated by ixgbe_watchdog_task() */
  345. stats->multicast = vsi_stats->multicast;
  346. stats->tx_errors = vsi_stats->tx_errors;
  347. stats->tx_dropped = vsi_stats->tx_dropped;
  348. stats->rx_errors = vsi_stats->rx_errors;
  349. stats->rx_crc_errors = vsi_stats->rx_crc_errors;
  350. stats->rx_length_errors = vsi_stats->rx_length_errors;
  351. return stats;
  352. }
  353. /**
  354. * i40e_vsi_reset_stats - Resets all stats of the given vsi
  355. * @vsi: the VSI to have its stats reset
  356. **/
  357. void i40e_vsi_reset_stats(struct i40e_vsi *vsi)
  358. {
  359. struct rtnl_link_stats64 *ns;
  360. int i;
  361. if (!vsi)
  362. return;
  363. ns = i40e_get_vsi_stats_struct(vsi);
  364. memset(ns, 0, sizeof(*ns));
  365. memset(&vsi->net_stats_offsets, 0, sizeof(vsi->net_stats_offsets));
  366. memset(&vsi->eth_stats, 0, sizeof(vsi->eth_stats));
  367. memset(&vsi->eth_stats_offsets, 0, sizeof(vsi->eth_stats_offsets));
  368. if (vsi->rx_rings)
  369. for (i = 0; i < vsi->num_queue_pairs; i++) {
  370. memset(&vsi->rx_rings[i]->stats, 0 ,
  371. sizeof(vsi->rx_rings[i]->stats));
  372. memset(&vsi->rx_rings[i]->rx_stats, 0 ,
  373. sizeof(vsi->rx_rings[i]->rx_stats));
  374. memset(&vsi->tx_rings[i]->stats, 0 ,
  375. sizeof(vsi->tx_rings[i]->stats));
  376. memset(&vsi->tx_rings[i]->tx_stats, 0,
  377. sizeof(vsi->tx_rings[i]->tx_stats));
  378. }
  379. vsi->stat_offsets_loaded = false;
  380. }
  381. /**
  382. * i40e_pf_reset_stats - Reset all of the stats for the given pf
  383. * @pf: the PF to be reset
  384. **/
  385. void i40e_pf_reset_stats(struct i40e_pf *pf)
  386. {
  387. memset(&pf->stats, 0, sizeof(pf->stats));
  388. memset(&pf->stats_offsets, 0, sizeof(pf->stats_offsets));
  389. pf->stat_offsets_loaded = false;
  390. }
  391. /**
  392. * i40e_stat_update48 - read and update a 48 bit stat from the chip
  393. * @hw: ptr to the hardware info
  394. * @hireg: the high 32 bit reg to read
  395. * @loreg: the low 32 bit reg to read
  396. * @offset_loaded: has the initial offset been loaded yet
  397. * @offset: ptr to current offset value
  398. * @stat: ptr to the stat
  399. *
  400. * Since the device stats are not reset at PFReset, they likely will not
  401. * be zeroed when the driver starts. We'll save the first values read
  402. * and use them as offsets to be subtracted from the raw values in order
  403. * to report stats that count from zero. In the process, we also manage
  404. * the potential roll-over.
  405. **/
  406. static void i40e_stat_update48(struct i40e_hw *hw, u32 hireg, u32 loreg,
  407. bool offset_loaded, u64 *offset, u64 *stat)
  408. {
  409. u64 new_data;
  410. if (hw->device_id == I40E_QEMU_DEVICE_ID) {
  411. new_data = rd32(hw, loreg);
  412. new_data |= ((u64)(rd32(hw, hireg) & 0xFFFF)) << 32;
  413. } else {
  414. new_data = rd64(hw, loreg);
  415. }
  416. if (!offset_loaded)
  417. *offset = new_data;
  418. if (likely(new_data >= *offset))
  419. *stat = new_data - *offset;
  420. else
  421. *stat = (new_data + ((u64)1 << 48)) - *offset;
  422. *stat &= 0xFFFFFFFFFFFFULL;
  423. }
  424. /**
  425. * i40e_stat_update32 - read and update a 32 bit stat from the chip
  426. * @hw: ptr to the hardware info
  427. * @reg: the hw reg to read
  428. * @offset_loaded: has the initial offset been loaded yet
  429. * @offset: ptr to current offset value
  430. * @stat: ptr to the stat
  431. **/
  432. static void i40e_stat_update32(struct i40e_hw *hw, u32 reg,
  433. bool offset_loaded, u64 *offset, u64 *stat)
  434. {
  435. u32 new_data;
  436. new_data = rd32(hw, reg);
  437. if (!offset_loaded)
  438. *offset = new_data;
  439. if (likely(new_data >= *offset))
  440. *stat = (u32)(new_data - *offset);
  441. else
  442. *stat = (u32)((new_data + ((u64)1 << 32)) - *offset);
  443. }
  444. /**
  445. * i40e_update_eth_stats - Update VSI-specific ethernet statistics counters.
  446. * @vsi: the VSI to be updated
  447. **/
  448. void i40e_update_eth_stats(struct i40e_vsi *vsi)
  449. {
  450. int stat_idx = le16_to_cpu(vsi->info.stat_counter_idx);
  451. struct i40e_pf *pf = vsi->back;
  452. struct i40e_hw *hw = &pf->hw;
  453. struct i40e_eth_stats *oes;
  454. struct i40e_eth_stats *es; /* device's eth stats */
  455. es = &vsi->eth_stats;
  456. oes = &vsi->eth_stats_offsets;
  457. /* Gather up the stats that the hw collects */
  458. i40e_stat_update32(hw, I40E_GLV_TEPC(stat_idx),
  459. vsi->stat_offsets_loaded,
  460. &oes->tx_errors, &es->tx_errors);
  461. i40e_stat_update32(hw, I40E_GLV_RDPC(stat_idx),
  462. vsi->stat_offsets_loaded,
  463. &oes->rx_discards, &es->rx_discards);
  464. i40e_stat_update48(hw, I40E_GLV_GORCH(stat_idx),
  465. I40E_GLV_GORCL(stat_idx),
  466. vsi->stat_offsets_loaded,
  467. &oes->rx_bytes, &es->rx_bytes);
  468. i40e_stat_update48(hw, I40E_GLV_UPRCH(stat_idx),
  469. I40E_GLV_UPRCL(stat_idx),
  470. vsi->stat_offsets_loaded,
  471. &oes->rx_unicast, &es->rx_unicast);
  472. i40e_stat_update48(hw, I40E_GLV_MPRCH(stat_idx),
  473. I40E_GLV_MPRCL(stat_idx),
  474. vsi->stat_offsets_loaded,
  475. &oes->rx_multicast, &es->rx_multicast);
  476. i40e_stat_update48(hw, I40E_GLV_BPRCH(stat_idx),
  477. I40E_GLV_BPRCL(stat_idx),
  478. vsi->stat_offsets_loaded,
  479. &oes->rx_broadcast, &es->rx_broadcast);
  480. i40e_stat_update48(hw, I40E_GLV_GOTCH(stat_idx),
  481. I40E_GLV_GOTCL(stat_idx),
  482. vsi->stat_offsets_loaded,
  483. &oes->tx_bytes, &es->tx_bytes);
  484. i40e_stat_update48(hw, I40E_GLV_UPTCH(stat_idx),
  485. I40E_GLV_UPTCL(stat_idx),
  486. vsi->stat_offsets_loaded,
  487. &oes->tx_unicast, &es->tx_unicast);
  488. i40e_stat_update48(hw, I40E_GLV_MPTCH(stat_idx),
  489. I40E_GLV_MPTCL(stat_idx),
  490. vsi->stat_offsets_loaded,
  491. &oes->tx_multicast, &es->tx_multicast);
  492. i40e_stat_update48(hw, I40E_GLV_BPTCH(stat_idx),
  493. I40E_GLV_BPTCL(stat_idx),
  494. vsi->stat_offsets_loaded,
  495. &oes->tx_broadcast, &es->tx_broadcast);
  496. vsi->stat_offsets_loaded = true;
  497. }
  498. /**
  499. * i40e_update_veb_stats - Update Switch component statistics
  500. * @veb: the VEB being updated
  501. **/
  502. static void i40e_update_veb_stats(struct i40e_veb *veb)
  503. {
  504. struct i40e_pf *pf = veb->pf;
  505. struct i40e_hw *hw = &pf->hw;
  506. struct i40e_eth_stats *oes;
  507. struct i40e_eth_stats *es; /* device's eth stats */
  508. int idx = 0;
  509. idx = veb->stats_idx;
  510. es = &veb->stats;
  511. oes = &veb->stats_offsets;
  512. /* Gather up the stats that the hw collects */
  513. i40e_stat_update32(hw, I40E_GLSW_TDPC(idx),
  514. veb->stat_offsets_loaded,
  515. &oes->tx_discards, &es->tx_discards);
  516. i40e_stat_update32(hw, I40E_GLSW_RUPP(idx),
  517. veb->stat_offsets_loaded,
  518. &oes->rx_unknown_protocol, &es->rx_unknown_protocol);
  519. i40e_stat_update48(hw, I40E_GLSW_GORCH(idx), I40E_GLSW_GORCL(idx),
  520. veb->stat_offsets_loaded,
  521. &oes->rx_bytes, &es->rx_bytes);
  522. i40e_stat_update48(hw, I40E_GLSW_UPRCH(idx), I40E_GLSW_UPRCL(idx),
  523. veb->stat_offsets_loaded,
  524. &oes->rx_unicast, &es->rx_unicast);
  525. i40e_stat_update48(hw, I40E_GLSW_MPRCH(idx), I40E_GLSW_MPRCL(idx),
  526. veb->stat_offsets_loaded,
  527. &oes->rx_multicast, &es->rx_multicast);
  528. i40e_stat_update48(hw, I40E_GLSW_BPRCH(idx), I40E_GLSW_BPRCL(idx),
  529. veb->stat_offsets_loaded,
  530. &oes->rx_broadcast, &es->rx_broadcast);
  531. i40e_stat_update48(hw, I40E_GLSW_GOTCH(idx), I40E_GLSW_GOTCL(idx),
  532. veb->stat_offsets_loaded,
  533. &oes->tx_bytes, &es->tx_bytes);
  534. i40e_stat_update48(hw, I40E_GLSW_UPTCH(idx), I40E_GLSW_UPTCL(idx),
  535. veb->stat_offsets_loaded,
  536. &oes->tx_unicast, &es->tx_unicast);
  537. i40e_stat_update48(hw, I40E_GLSW_MPTCH(idx), I40E_GLSW_MPTCL(idx),
  538. veb->stat_offsets_loaded,
  539. &oes->tx_multicast, &es->tx_multicast);
  540. i40e_stat_update48(hw, I40E_GLSW_BPTCH(idx), I40E_GLSW_BPTCL(idx),
  541. veb->stat_offsets_loaded,
  542. &oes->tx_broadcast, &es->tx_broadcast);
  543. veb->stat_offsets_loaded = true;
  544. }
  545. /**
  546. * i40e_update_link_xoff_rx - Update XOFF received in link flow control mode
  547. * @pf: the corresponding PF
  548. *
  549. * Update the Rx XOFF counter (PAUSE frames) in link flow control mode
  550. **/
  551. static void i40e_update_link_xoff_rx(struct i40e_pf *pf)
  552. {
  553. struct i40e_hw_port_stats *osd = &pf->stats_offsets;
  554. struct i40e_hw_port_stats *nsd = &pf->stats;
  555. struct i40e_hw *hw = &pf->hw;
  556. u64 xoff = 0;
  557. u16 i, v;
  558. if ((hw->fc.current_mode != I40E_FC_FULL) &&
  559. (hw->fc.current_mode != I40E_FC_RX_PAUSE))
  560. return;
  561. xoff = nsd->link_xoff_rx;
  562. i40e_stat_update32(hw, I40E_GLPRT_LXOFFRXC(hw->port),
  563. pf->stat_offsets_loaded,
  564. &osd->link_xoff_rx, &nsd->link_xoff_rx);
  565. /* No new LFC xoff rx */
  566. if (!(nsd->link_xoff_rx - xoff))
  567. return;
  568. /* Clear the __I40E_HANG_CHECK_ARMED bit for all Tx rings */
  569. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  570. struct i40e_vsi *vsi = pf->vsi[v];
  571. if (!vsi)
  572. continue;
  573. for (i = 0; i < vsi->num_queue_pairs; i++) {
  574. struct i40e_ring *ring = vsi->tx_rings[i];
  575. clear_bit(__I40E_HANG_CHECK_ARMED, &ring->state);
  576. }
  577. }
  578. }
  579. /**
  580. * i40e_update_prio_xoff_rx - Update XOFF received in PFC mode
  581. * @pf: the corresponding PF
  582. *
  583. * Update the Rx XOFF counter (PAUSE frames) in PFC mode
  584. **/
  585. static void i40e_update_prio_xoff_rx(struct i40e_pf *pf)
  586. {
  587. struct i40e_hw_port_stats *osd = &pf->stats_offsets;
  588. struct i40e_hw_port_stats *nsd = &pf->stats;
  589. bool xoff[I40E_MAX_TRAFFIC_CLASS] = {false};
  590. struct i40e_dcbx_config *dcb_cfg;
  591. struct i40e_hw *hw = &pf->hw;
  592. u16 i, v;
  593. u8 tc;
  594. dcb_cfg = &hw->local_dcbx_config;
  595. /* See if DCB enabled with PFC TC */
  596. if (!(pf->flags & I40E_FLAG_DCB_ENABLED) ||
  597. !(dcb_cfg->pfc.pfcenable)) {
  598. i40e_update_link_xoff_rx(pf);
  599. return;
  600. }
  601. for (i = 0; i < I40E_MAX_USER_PRIORITY; i++) {
  602. u64 prio_xoff = nsd->priority_xoff_rx[i];
  603. i40e_stat_update32(hw, I40E_GLPRT_PXOFFRXC(hw->port, i),
  604. pf->stat_offsets_loaded,
  605. &osd->priority_xoff_rx[i],
  606. &nsd->priority_xoff_rx[i]);
  607. /* No new PFC xoff rx */
  608. if (!(nsd->priority_xoff_rx[i] - prio_xoff))
  609. continue;
  610. /* Get the TC for given priority */
  611. tc = dcb_cfg->etscfg.prioritytable[i];
  612. xoff[tc] = true;
  613. }
  614. /* Clear the __I40E_HANG_CHECK_ARMED bit for Tx rings */
  615. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  616. struct i40e_vsi *vsi = pf->vsi[v];
  617. if (!vsi)
  618. continue;
  619. for (i = 0; i < vsi->num_queue_pairs; i++) {
  620. struct i40e_ring *ring = vsi->tx_rings[i];
  621. tc = ring->dcb_tc;
  622. if (xoff[tc])
  623. clear_bit(__I40E_HANG_CHECK_ARMED,
  624. &ring->state);
  625. }
  626. }
  627. }
  628. /**
  629. * i40e_update_stats - Update the board statistics counters.
  630. * @vsi: the VSI to be updated
  631. *
  632. * There are a few instances where we store the same stat in a
  633. * couple of different structs. This is partly because we have
  634. * the netdev stats that need to be filled out, which is slightly
  635. * different from the "eth_stats" defined by the chip and used in
  636. * VF communications. We sort it all out here in a central place.
  637. **/
  638. void i40e_update_stats(struct i40e_vsi *vsi)
  639. {
  640. struct i40e_pf *pf = vsi->back;
  641. struct i40e_hw *hw = &pf->hw;
  642. struct rtnl_link_stats64 *ons;
  643. struct rtnl_link_stats64 *ns; /* netdev stats */
  644. struct i40e_eth_stats *oes;
  645. struct i40e_eth_stats *es; /* device's eth stats */
  646. u32 tx_restart, tx_busy;
  647. u32 rx_page, rx_buf;
  648. u64 rx_p, rx_b;
  649. u64 tx_p, tx_b;
  650. int i;
  651. u16 q;
  652. if (test_bit(__I40E_DOWN, &vsi->state) ||
  653. test_bit(__I40E_CONFIG_BUSY, &pf->state))
  654. return;
  655. ns = i40e_get_vsi_stats_struct(vsi);
  656. ons = &vsi->net_stats_offsets;
  657. es = &vsi->eth_stats;
  658. oes = &vsi->eth_stats_offsets;
  659. /* Gather up the netdev and vsi stats that the driver collects
  660. * on the fly during packet processing
  661. */
  662. rx_b = rx_p = 0;
  663. tx_b = tx_p = 0;
  664. tx_restart = tx_busy = 0;
  665. rx_page = 0;
  666. rx_buf = 0;
  667. rcu_read_lock();
  668. for (q = 0; q < vsi->num_queue_pairs; q++) {
  669. struct i40e_ring *p;
  670. u64 bytes, packets;
  671. unsigned int start;
  672. /* locate Tx ring */
  673. p = ACCESS_ONCE(vsi->tx_rings[q]);
  674. do {
  675. start = u64_stats_fetch_begin_bh(&p->syncp);
  676. packets = p->stats.packets;
  677. bytes = p->stats.bytes;
  678. } while (u64_stats_fetch_retry_bh(&p->syncp, start));
  679. tx_b += bytes;
  680. tx_p += packets;
  681. tx_restart += p->tx_stats.restart_queue;
  682. tx_busy += p->tx_stats.tx_busy;
  683. /* Rx queue is part of the same block as Tx queue */
  684. p = &p[1];
  685. do {
  686. start = u64_stats_fetch_begin_bh(&p->syncp);
  687. packets = p->stats.packets;
  688. bytes = p->stats.bytes;
  689. } while (u64_stats_fetch_retry_bh(&p->syncp, start));
  690. rx_b += bytes;
  691. rx_p += packets;
  692. rx_buf += p->rx_stats.alloc_rx_buff_failed;
  693. rx_page += p->rx_stats.alloc_rx_page_failed;
  694. }
  695. rcu_read_unlock();
  696. vsi->tx_restart = tx_restart;
  697. vsi->tx_busy = tx_busy;
  698. vsi->rx_page_failed = rx_page;
  699. vsi->rx_buf_failed = rx_buf;
  700. ns->rx_packets = rx_p;
  701. ns->rx_bytes = rx_b;
  702. ns->tx_packets = tx_p;
  703. ns->tx_bytes = tx_b;
  704. i40e_update_eth_stats(vsi);
  705. /* update netdev stats from eth stats */
  706. ons->rx_errors = oes->rx_errors;
  707. ns->rx_errors = es->rx_errors;
  708. ons->tx_errors = oes->tx_errors;
  709. ns->tx_errors = es->tx_errors;
  710. ons->multicast = oes->rx_multicast;
  711. ns->multicast = es->rx_multicast;
  712. ons->tx_dropped = oes->tx_discards;
  713. ns->tx_dropped = es->tx_discards;
  714. /* Get the port data only if this is the main PF VSI */
  715. if (vsi == pf->vsi[pf->lan_vsi]) {
  716. struct i40e_hw_port_stats *nsd = &pf->stats;
  717. struct i40e_hw_port_stats *osd = &pf->stats_offsets;
  718. i40e_stat_update48(hw, I40E_GLPRT_GORCH(hw->port),
  719. I40E_GLPRT_GORCL(hw->port),
  720. pf->stat_offsets_loaded,
  721. &osd->eth.rx_bytes, &nsd->eth.rx_bytes);
  722. i40e_stat_update48(hw, I40E_GLPRT_GOTCH(hw->port),
  723. I40E_GLPRT_GOTCL(hw->port),
  724. pf->stat_offsets_loaded,
  725. &osd->eth.tx_bytes, &nsd->eth.tx_bytes);
  726. i40e_stat_update32(hw, I40E_GLPRT_RDPC(hw->port),
  727. pf->stat_offsets_loaded,
  728. &osd->eth.rx_discards,
  729. &nsd->eth.rx_discards);
  730. i40e_stat_update32(hw, I40E_GLPRT_TDPC(hw->port),
  731. pf->stat_offsets_loaded,
  732. &osd->eth.tx_discards,
  733. &nsd->eth.tx_discards);
  734. i40e_stat_update48(hw, I40E_GLPRT_MPRCH(hw->port),
  735. I40E_GLPRT_MPRCL(hw->port),
  736. pf->stat_offsets_loaded,
  737. &osd->eth.rx_multicast,
  738. &nsd->eth.rx_multicast);
  739. i40e_stat_update32(hw, I40E_GLPRT_TDOLD(hw->port),
  740. pf->stat_offsets_loaded,
  741. &osd->tx_dropped_link_down,
  742. &nsd->tx_dropped_link_down);
  743. i40e_stat_update32(hw, I40E_GLPRT_CRCERRS(hw->port),
  744. pf->stat_offsets_loaded,
  745. &osd->crc_errors, &nsd->crc_errors);
  746. ns->rx_crc_errors = nsd->crc_errors;
  747. i40e_stat_update32(hw, I40E_GLPRT_ILLERRC(hw->port),
  748. pf->stat_offsets_loaded,
  749. &osd->illegal_bytes, &nsd->illegal_bytes);
  750. ns->rx_errors = nsd->crc_errors
  751. + nsd->illegal_bytes;
  752. i40e_stat_update32(hw, I40E_GLPRT_MLFC(hw->port),
  753. pf->stat_offsets_loaded,
  754. &osd->mac_local_faults,
  755. &nsd->mac_local_faults);
  756. i40e_stat_update32(hw, I40E_GLPRT_MRFC(hw->port),
  757. pf->stat_offsets_loaded,
  758. &osd->mac_remote_faults,
  759. &nsd->mac_remote_faults);
  760. i40e_stat_update32(hw, I40E_GLPRT_RLEC(hw->port),
  761. pf->stat_offsets_loaded,
  762. &osd->rx_length_errors,
  763. &nsd->rx_length_errors);
  764. ns->rx_length_errors = nsd->rx_length_errors;
  765. i40e_stat_update32(hw, I40E_GLPRT_LXONRXC(hw->port),
  766. pf->stat_offsets_loaded,
  767. &osd->link_xon_rx, &nsd->link_xon_rx);
  768. i40e_stat_update32(hw, I40E_GLPRT_LXONTXC(hw->port),
  769. pf->stat_offsets_loaded,
  770. &osd->link_xon_tx, &nsd->link_xon_tx);
  771. i40e_update_prio_xoff_rx(pf); /* handles I40E_GLPRT_LXOFFRXC */
  772. i40e_stat_update32(hw, I40E_GLPRT_LXOFFTXC(hw->port),
  773. pf->stat_offsets_loaded,
  774. &osd->link_xoff_tx, &nsd->link_xoff_tx);
  775. for (i = 0; i < 8; i++) {
  776. i40e_stat_update32(hw, I40E_GLPRT_PXONRXC(hw->port, i),
  777. pf->stat_offsets_loaded,
  778. &osd->priority_xon_rx[i],
  779. &nsd->priority_xon_rx[i]);
  780. i40e_stat_update32(hw, I40E_GLPRT_PXONTXC(hw->port, i),
  781. pf->stat_offsets_loaded,
  782. &osd->priority_xon_tx[i],
  783. &nsd->priority_xon_tx[i]);
  784. i40e_stat_update32(hw, I40E_GLPRT_PXOFFTXC(hw->port, i),
  785. pf->stat_offsets_loaded,
  786. &osd->priority_xoff_tx[i],
  787. &nsd->priority_xoff_tx[i]);
  788. i40e_stat_update32(hw,
  789. I40E_GLPRT_RXON2OFFCNT(hw->port, i),
  790. pf->stat_offsets_loaded,
  791. &osd->priority_xon_2_xoff[i],
  792. &nsd->priority_xon_2_xoff[i]);
  793. }
  794. i40e_stat_update48(hw, I40E_GLPRT_PRC64H(hw->port),
  795. I40E_GLPRT_PRC64L(hw->port),
  796. pf->stat_offsets_loaded,
  797. &osd->rx_size_64, &nsd->rx_size_64);
  798. i40e_stat_update48(hw, I40E_GLPRT_PRC127H(hw->port),
  799. I40E_GLPRT_PRC127L(hw->port),
  800. pf->stat_offsets_loaded,
  801. &osd->rx_size_127, &nsd->rx_size_127);
  802. i40e_stat_update48(hw, I40E_GLPRT_PRC255H(hw->port),
  803. I40E_GLPRT_PRC255L(hw->port),
  804. pf->stat_offsets_loaded,
  805. &osd->rx_size_255, &nsd->rx_size_255);
  806. i40e_stat_update48(hw, I40E_GLPRT_PRC511H(hw->port),
  807. I40E_GLPRT_PRC511L(hw->port),
  808. pf->stat_offsets_loaded,
  809. &osd->rx_size_511, &nsd->rx_size_511);
  810. i40e_stat_update48(hw, I40E_GLPRT_PRC1023H(hw->port),
  811. I40E_GLPRT_PRC1023L(hw->port),
  812. pf->stat_offsets_loaded,
  813. &osd->rx_size_1023, &nsd->rx_size_1023);
  814. i40e_stat_update48(hw, I40E_GLPRT_PRC1522H(hw->port),
  815. I40E_GLPRT_PRC1522L(hw->port),
  816. pf->stat_offsets_loaded,
  817. &osd->rx_size_1522, &nsd->rx_size_1522);
  818. i40e_stat_update48(hw, I40E_GLPRT_PRC9522H(hw->port),
  819. I40E_GLPRT_PRC9522L(hw->port),
  820. pf->stat_offsets_loaded,
  821. &osd->rx_size_big, &nsd->rx_size_big);
  822. i40e_stat_update48(hw, I40E_GLPRT_PTC64H(hw->port),
  823. I40E_GLPRT_PTC64L(hw->port),
  824. pf->stat_offsets_loaded,
  825. &osd->tx_size_64, &nsd->tx_size_64);
  826. i40e_stat_update48(hw, I40E_GLPRT_PTC127H(hw->port),
  827. I40E_GLPRT_PTC127L(hw->port),
  828. pf->stat_offsets_loaded,
  829. &osd->tx_size_127, &nsd->tx_size_127);
  830. i40e_stat_update48(hw, I40E_GLPRT_PTC255H(hw->port),
  831. I40E_GLPRT_PTC255L(hw->port),
  832. pf->stat_offsets_loaded,
  833. &osd->tx_size_255, &nsd->tx_size_255);
  834. i40e_stat_update48(hw, I40E_GLPRT_PTC511H(hw->port),
  835. I40E_GLPRT_PTC511L(hw->port),
  836. pf->stat_offsets_loaded,
  837. &osd->tx_size_511, &nsd->tx_size_511);
  838. i40e_stat_update48(hw, I40E_GLPRT_PTC1023H(hw->port),
  839. I40E_GLPRT_PTC1023L(hw->port),
  840. pf->stat_offsets_loaded,
  841. &osd->tx_size_1023, &nsd->tx_size_1023);
  842. i40e_stat_update48(hw, I40E_GLPRT_PTC1522H(hw->port),
  843. I40E_GLPRT_PTC1522L(hw->port),
  844. pf->stat_offsets_loaded,
  845. &osd->tx_size_1522, &nsd->tx_size_1522);
  846. i40e_stat_update48(hw, I40E_GLPRT_PTC9522H(hw->port),
  847. I40E_GLPRT_PTC9522L(hw->port),
  848. pf->stat_offsets_loaded,
  849. &osd->tx_size_big, &nsd->tx_size_big);
  850. i40e_stat_update32(hw, I40E_GLPRT_RUC(hw->port),
  851. pf->stat_offsets_loaded,
  852. &osd->rx_undersize, &nsd->rx_undersize);
  853. i40e_stat_update32(hw, I40E_GLPRT_RFC(hw->port),
  854. pf->stat_offsets_loaded,
  855. &osd->rx_fragments, &nsd->rx_fragments);
  856. i40e_stat_update32(hw, I40E_GLPRT_ROC(hw->port),
  857. pf->stat_offsets_loaded,
  858. &osd->rx_oversize, &nsd->rx_oversize);
  859. i40e_stat_update32(hw, I40E_GLPRT_RJC(hw->port),
  860. pf->stat_offsets_loaded,
  861. &osd->rx_jabber, &nsd->rx_jabber);
  862. }
  863. pf->stat_offsets_loaded = true;
  864. }
  865. /**
  866. * i40e_find_filter - Search VSI filter list for specific mac/vlan filter
  867. * @vsi: the VSI to be searched
  868. * @macaddr: the MAC address
  869. * @vlan: the vlan
  870. * @is_vf: make sure its a vf filter, else doesn't matter
  871. * @is_netdev: make sure its a netdev filter, else doesn't matter
  872. *
  873. * Returns ptr to the filter object or NULL
  874. **/
  875. static struct i40e_mac_filter *i40e_find_filter(struct i40e_vsi *vsi,
  876. u8 *macaddr, s16 vlan,
  877. bool is_vf, bool is_netdev)
  878. {
  879. struct i40e_mac_filter *f;
  880. if (!vsi || !macaddr)
  881. return NULL;
  882. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  883. if ((ether_addr_equal(macaddr, f->macaddr)) &&
  884. (vlan == f->vlan) &&
  885. (!is_vf || f->is_vf) &&
  886. (!is_netdev || f->is_netdev))
  887. return f;
  888. }
  889. return NULL;
  890. }
  891. /**
  892. * i40e_find_mac - Find a mac addr in the macvlan filters list
  893. * @vsi: the VSI to be searched
  894. * @macaddr: the MAC address we are searching for
  895. * @is_vf: make sure its a vf filter, else doesn't matter
  896. * @is_netdev: make sure its a netdev filter, else doesn't matter
  897. *
  898. * Returns the first filter with the provided MAC address or NULL if
  899. * MAC address was not found
  900. **/
  901. struct i40e_mac_filter *i40e_find_mac(struct i40e_vsi *vsi, u8 *macaddr,
  902. bool is_vf, bool is_netdev)
  903. {
  904. struct i40e_mac_filter *f;
  905. if (!vsi || !macaddr)
  906. return NULL;
  907. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  908. if ((ether_addr_equal(macaddr, f->macaddr)) &&
  909. (!is_vf || f->is_vf) &&
  910. (!is_netdev || f->is_netdev))
  911. return f;
  912. }
  913. return NULL;
  914. }
  915. /**
  916. * i40e_is_vsi_in_vlan - Check if VSI is in vlan mode
  917. * @vsi: the VSI to be searched
  918. *
  919. * Returns true if VSI is in vlan mode or false otherwise
  920. **/
  921. bool i40e_is_vsi_in_vlan(struct i40e_vsi *vsi)
  922. {
  923. struct i40e_mac_filter *f;
  924. /* Only -1 for all the filters denotes not in vlan mode
  925. * so we have to go through all the list in order to make sure
  926. */
  927. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  928. if (f->vlan >= 0)
  929. return true;
  930. }
  931. return false;
  932. }
  933. /**
  934. * i40e_put_mac_in_vlan - Make macvlan filters from macaddrs and vlans
  935. * @vsi: the VSI to be searched
  936. * @macaddr: the mac address to be filtered
  937. * @is_vf: true if it is a vf
  938. * @is_netdev: true if it is a netdev
  939. *
  940. * Goes through all the macvlan filters and adds a
  941. * macvlan filter for each unique vlan that already exists
  942. *
  943. * Returns first filter found on success, else NULL
  944. **/
  945. struct i40e_mac_filter *i40e_put_mac_in_vlan(struct i40e_vsi *vsi, u8 *macaddr,
  946. bool is_vf, bool is_netdev)
  947. {
  948. struct i40e_mac_filter *f;
  949. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  950. if (!i40e_find_filter(vsi, macaddr, f->vlan,
  951. is_vf, is_netdev)) {
  952. if (!i40e_add_filter(vsi, macaddr, f->vlan,
  953. is_vf, is_netdev))
  954. return NULL;
  955. }
  956. }
  957. return list_first_entry_or_null(&vsi->mac_filter_list,
  958. struct i40e_mac_filter, list);
  959. }
  960. /**
  961. * i40e_add_filter - Add a mac/vlan filter to the VSI
  962. * @vsi: the VSI to be searched
  963. * @macaddr: the MAC address
  964. * @vlan: the vlan
  965. * @is_vf: make sure its a vf filter, else doesn't matter
  966. * @is_netdev: make sure its a netdev filter, else doesn't matter
  967. *
  968. * Returns ptr to the filter object or NULL when no memory available.
  969. **/
  970. struct i40e_mac_filter *i40e_add_filter(struct i40e_vsi *vsi,
  971. u8 *macaddr, s16 vlan,
  972. bool is_vf, bool is_netdev)
  973. {
  974. struct i40e_mac_filter *f;
  975. if (!vsi || !macaddr)
  976. return NULL;
  977. f = i40e_find_filter(vsi, macaddr, vlan, is_vf, is_netdev);
  978. if (!f) {
  979. f = kzalloc(sizeof(*f), GFP_ATOMIC);
  980. if (!f)
  981. goto add_filter_out;
  982. memcpy(f->macaddr, macaddr, ETH_ALEN);
  983. f->vlan = vlan;
  984. f->changed = true;
  985. INIT_LIST_HEAD(&f->list);
  986. list_add(&f->list, &vsi->mac_filter_list);
  987. }
  988. /* increment counter and add a new flag if needed */
  989. if (is_vf) {
  990. if (!f->is_vf) {
  991. f->is_vf = true;
  992. f->counter++;
  993. }
  994. } else if (is_netdev) {
  995. if (!f->is_netdev) {
  996. f->is_netdev = true;
  997. f->counter++;
  998. }
  999. } else {
  1000. f->counter++;
  1001. }
  1002. /* changed tells sync_filters_subtask to
  1003. * push the filter down to the firmware
  1004. */
  1005. if (f->changed) {
  1006. vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
  1007. vsi->back->flags |= I40E_FLAG_FILTER_SYNC;
  1008. }
  1009. add_filter_out:
  1010. return f;
  1011. }
  1012. /**
  1013. * i40e_del_filter - Remove a mac/vlan filter from the VSI
  1014. * @vsi: the VSI to be searched
  1015. * @macaddr: the MAC address
  1016. * @vlan: the vlan
  1017. * @is_vf: make sure it's a vf filter, else doesn't matter
  1018. * @is_netdev: make sure it's a netdev filter, else doesn't matter
  1019. **/
  1020. void i40e_del_filter(struct i40e_vsi *vsi,
  1021. u8 *macaddr, s16 vlan,
  1022. bool is_vf, bool is_netdev)
  1023. {
  1024. struct i40e_mac_filter *f;
  1025. if (!vsi || !macaddr)
  1026. return;
  1027. f = i40e_find_filter(vsi, macaddr, vlan, is_vf, is_netdev);
  1028. if (!f || f->counter == 0)
  1029. return;
  1030. if (is_vf) {
  1031. if (f->is_vf) {
  1032. f->is_vf = false;
  1033. f->counter--;
  1034. }
  1035. } else if (is_netdev) {
  1036. if (f->is_netdev) {
  1037. f->is_netdev = false;
  1038. f->counter--;
  1039. }
  1040. } else {
  1041. /* make sure we don't remove a filter in use by vf or netdev */
  1042. int min_f = 0;
  1043. min_f += (f->is_vf ? 1 : 0);
  1044. min_f += (f->is_netdev ? 1 : 0);
  1045. if (f->counter > min_f)
  1046. f->counter--;
  1047. }
  1048. /* counter == 0 tells sync_filters_subtask to
  1049. * remove the filter from the firmware's list
  1050. */
  1051. if (f->counter == 0) {
  1052. f->changed = true;
  1053. vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
  1054. vsi->back->flags |= I40E_FLAG_FILTER_SYNC;
  1055. }
  1056. }
  1057. /**
  1058. * i40e_set_mac - NDO callback to set mac address
  1059. * @netdev: network interface device structure
  1060. * @p: pointer to an address structure
  1061. *
  1062. * Returns 0 on success, negative on failure
  1063. **/
  1064. static int i40e_set_mac(struct net_device *netdev, void *p)
  1065. {
  1066. struct i40e_netdev_priv *np = netdev_priv(netdev);
  1067. struct i40e_vsi *vsi = np->vsi;
  1068. struct sockaddr *addr = p;
  1069. struct i40e_mac_filter *f;
  1070. if (!is_valid_ether_addr(addr->sa_data))
  1071. return -EADDRNOTAVAIL;
  1072. netdev_info(netdev, "set mac address=%pM\n", addr->sa_data);
  1073. if (ether_addr_equal(netdev->dev_addr, addr->sa_data))
  1074. return 0;
  1075. if (vsi->type == I40E_VSI_MAIN) {
  1076. i40e_status ret;
  1077. ret = i40e_aq_mac_address_write(&vsi->back->hw,
  1078. I40E_AQC_WRITE_TYPE_LAA_ONLY,
  1079. addr->sa_data, NULL);
  1080. if (ret) {
  1081. netdev_info(netdev,
  1082. "Addr change for Main VSI failed: %d\n",
  1083. ret);
  1084. return -EADDRNOTAVAIL;
  1085. }
  1086. memcpy(vsi->back->hw.mac.addr, addr->sa_data, netdev->addr_len);
  1087. }
  1088. /* In order to be sure to not drop any packets, add the new address
  1089. * then delete the old one.
  1090. */
  1091. f = i40e_add_filter(vsi, addr->sa_data, I40E_VLAN_ANY, false, false);
  1092. if (!f)
  1093. return -ENOMEM;
  1094. i40e_sync_vsi_filters(vsi);
  1095. i40e_del_filter(vsi, netdev->dev_addr, I40E_VLAN_ANY, false, false);
  1096. i40e_sync_vsi_filters(vsi);
  1097. memcpy(netdev->dev_addr, addr->sa_data, netdev->addr_len);
  1098. return 0;
  1099. }
  1100. /**
  1101. * i40e_vsi_setup_queue_map - Setup a VSI queue map based on enabled_tc
  1102. * @vsi: the VSI being setup
  1103. * @ctxt: VSI context structure
  1104. * @enabled_tc: Enabled TCs bitmap
  1105. * @is_add: True if called before Add VSI
  1106. *
  1107. * Setup VSI queue mapping for enabled traffic classes.
  1108. **/
  1109. static void i40e_vsi_setup_queue_map(struct i40e_vsi *vsi,
  1110. struct i40e_vsi_context *ctxt,
  1111. u8 enabled_tc,
  1112. bool is_add)
  1113. {
  1114. struct i40e_pf *pf = vsi->back;
  1115. u16 sections = 0;
  1116. u8 netdev_tc = 0;
  1117. u16 numtc = 0;
  1118. u16 qcount;
  1119. u8 offset;
  1120. u16 qmap;
  1121. int i;
  1122. sections = I40E_AQ_VSI_PROP_QUEUE_MAP_VALID;
  1123. offset = 0;
  1124. if (enabled_tc && (vsi->back->flags & I40E_FLAG_DCB_ENABLED)) {
  1125. /* Find numtc from enabled TC bitmap */
  1126. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  1127. if (enabled_tc & (1 << i)) /* TC is enabled */
  1128. numtc++;
  1129. }
  1130. if (!numtc) {
  1131. dev_warn(&pf->pdev->dev, "DCB is enabled but no TC enabled, forcing TC0\n");
  1132. numtc = 1;
  1133. }
  1134. } else {
  1135. /* At least TC0 is enabled in case of non-DCB case */
  1136. numtc = 1;
  1137. }
  1138. vsi->tc_config.numtc = numtc;
  1139. vsi->tc_config.enabled_tc = enabled_tc ? enabled_tc : 1;
  1140. /* Setup queue offset/count for all TCs for given VSI */
  1141. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  1142. /* See if the given TC is enabled for the given VSI */
  1143. if (vsi->tc_config.enabled_tc & (1 << i)) { /* TC is enabled */
  1144. int pow, num_qps;
  1145. vsi->tc_config.tc_info[i].qoffset = offset;
  1146. switch (vsi->type) {
  1147. case I40E_VSI_MAIN:
  1148. if (i == 0)
  1149. qcount = pf->rss_size;
  1150. else
  1151. qcount = pf->num_tc_qps;
  1152. vsi->tc_config.tc_info[i].qcount = qcount;
  1153. break;
  1154. case I40E_VSI_FDIR:
  1155. case I40E_VSI_SRIOV:
  1156. case I40E_VSI_VMDQ2:
  1157. default:
  1158. qcount = vsi->alloc_queue_pairs;
  1159. vsi->tc_config.tc_info[i].qcount = qcount;
  1160. WARN_ON(i != 0);
  1161. break;
  1162. }
  1163. /* find the power-of-2 of the number of queue pairs */
  1164. num_qps = vsi->tc_config.tc_info[i].qcount;
  1165. pow = 0;
  1166. while (num_qps &&
  1167. ((1 << pow) < vsi->tc_config.tc_info[i].qcount)) {
  1168. pow++;
  1169. num_qps >>= 1;
  1170. }
  1171. vsi->tc_config.tc_info[i].netdev_tc = netdev_tc++;
  1172. qmap =
  1173. (offset << I40E_AQ_VSI_TC_QUE_OFFSET_SHIFT) |
  1174. (pow << I40E_AQ_VSI_TC_QUE_NUMBER_SHIFT);
  1175. offset += vsi->tc_config.tc_info[i].qcount;
  1176. } else {
  1177. /* TC is not enabled so set the offset to
  1178. * default queue and allocate one queue
  1179. * for the given TC.
  1180. */
  1181. vsi->tc_config.tc_info[i].qoffset = 0;
  1182. vsi->tc_config.tc_info[i].qcount = 1;
  1183. vsi->tc_config.tc_info[i].netdev_tc = 0;
  1184. qmap = 0;
  1185. }
  1186. ctxt->info.tc_mapping[i] = cpu_to_le16(qmap);
  1187. }
  1188. /* Set actual Tx/Rx queue pairs */
  1189. vsi->num_queue_pairs = offset;
  1190. /* Scheduler section valid can only be set for ADD VSI */
  1191. if (is_add) {
  1192. sections |= I40E_AQ_VSI_PROP_SCHED_VALID;
  1193. ctxt->info.up_enable_bits = enabled_tc;
  1194. }
  1195. if (vsi->type == I40E_VSI_SRIOV) {
  1196. ctxt->info.mapping_flags |=
  1197. cpu_to_le16(I40E_AQ_VSI_QUE_MAP_NONCONTIG);
  1198. for (i = 0; i < vsi->num_queue_pairs; i++)
  1199. ctxt->info.queue_mapping[i] =
  1200. cpu_to_le16(vsi->base_queue + i);
  1201. } else {
  1202. ctxt->info.mapping_flags |=
  1203. cpu_to_le16(I40E_AQ_VSI_QUE_MAP_CONTIG);
  1204. ctxt->info.queue_mapping[0] = cpu_to_le16(vsi->base_queue);
  1205. }
  1206. ctxt->info.valid_sections |= cpu_to_le16(sections);
  1207. }
  1208. /**
  1209. * i40e_set_rx_mode - NDO callback to set the netdev filters
  1210. * @netdev: network interface device structure
  1211. **/
  1212. static void i40e_set_rx_mode(struct net_device *netdev)
  1213. {
  1214. struct i40e_netdev_priv *np = netdev_priv(netdev);
  1215. struct i40e_mac_filter *f, *ftmp;
  1216. struct i40e_vsi *vsi = np->vsi;
  1217. struct netdev_hw_addr *uca;
  1218. struct netdev_hw_addr *mca;
  1219. struct netdev_hw_addr *ha;
  1220. /* add addr if not already in the filter list */
  1221. netdev_for_each_uc_addr(uca, netdev) {
  1222. if (!i40e_find_mac(vsi, uca->addr, false, true)) {
  1223. if (i40e_is_vsi_in_vlan(vsi))
  1224. i40e_put_mac_in_vlan(vsi, uca->addr,
  1225. false, true);
  1226. else
  1227. i40e_add_filter(vsi, uca->addr, I40E_VLAN_ANY,
  1228. false, true);
  1229. }
  1230. }
  1231. netdev_for_each_mc_addr(mca, netdev) {
  1232. if (!i40e_find_mac(vsi, mca->addr, false, true)) {
  1233. if (i40e_is_vsi_in_vlan(vsi))
  1234. i40e_put_mac_in_vlan(vsi, mca->addr,
  1235. false, true);
  1236. else
  1237. i40e_add_filter(vsi, mca->addr, I40E_VLAN_ANY,
  1238. false, true);
  1239. }
  1240. }
  1241. /* remove filter if not in netdev list */
  1242. list_for_each_entry_safe(f, ftmp, &vsi->mac_filter_list, list) {
  1243. bool found = false;
  1244. if (!f->is_netdev)
  1245. continue;
  1246. if (is_multicast_ether_addr(f->macaddr)) {
  1247. netdev_for_each_mc_addr(mca, netdev) {
  1248. if (ether_addr_equal(mca->addr, f->macaddr)) {
  1249. found = true;
  1250. break;
  1251. }
  1252. }
  1253. } else {
  1254. netdev_for_each_uc_addr(uca, netdev) {
  1255. if (ether_addr_equal(uca->addr, f->macaddr)) {
  1256. found = true;
  1257. break;
  1258. }
  1259. }
  1260. for_each_dev_addr(netdev, ha) {
  1261. if (ether_addr_equal(ha->addr, f->macaddr)) {
  1262. found = true;
  1263. break;
  1264. }
  1265. }
  1266. }
  1267. if (!found)
  1268. i40e_del_filter(
  1269. vsi, f->macaddr, I40E_VLAN_ANY, false, true);
  1270. }
  1271. /* check for other flag changes */
  1272. if (vsi->current_netdev_flags != vsi->netdev->flags) {
  1273. vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
  1274. vsi->back->flags |= I40E_FLAG_FILTER_SYNC;
  1275. }
  1276. }
  1277. /**
  1278. * i40e_sync_vsi_filters - Update the VSI filter list to the HW
  1279. * @vsi: ptr to the VSI
  1280. *
  1281. * Push any outstanding VSI filter changes through the AdminQ.
  1282. *
  1283. * Returns 0 or error value
  1284. **/
  1285. int i40e_sync_vsi_filters(struct i40e_vsi *vsi)
  1286. {
  1287. struct i40e_mac_filter *f, *ftmp;
  1288. bool promisc_forced_on = false;
  1289. bool add_happened = false;
  1290. int filter_list_len = 0;
  1291. u32 changed_flags = 0;
  1292. i40e_status aq_ret = 0;
  1293. struct i40e_pf *pf;
  1294. int num_add = 0;
  1295. int num_del = 0;
  1296. u16 cmd_flags;
  1297. /* empty array typed pointers, kcalloc later */
  1298. struct i40e_aqc_add_macvlan_element_data *add_list;
  1299. struct i40e_aqc_remove_macvlan_element_data *del_list;
  1300. while (test_and_set_bit(__I40E_CONFIG_BUSY, &vsi->state))
  1301. usleep_range(1000, 2000);
  1302. pf = vsi->back;
  1303. if (vsi->netdev) {
  1304. changed_flags = vsi->current_netdev_flags ^ vsi->netdev->flags;
  1305. vsi->current_netdev_flags = vsi->netdev->flags;
  1306. }
  1307. if (vsi->flags & I40E_VSI_FLAG_FILTER_CHANGED) {
  1308. vsi->flags &= ~I40E_VSI_FLAG_FILTER_CHANGED;
  1309. filter_list_len = pf->hw.aq.asq_buf_size /
  1310. sizeof(struct i40e_aqc_remove_macvlan_element_data);
  1311. del_list = kcalloc(filter_list_len,
  1312. sizeof(struct i40e_aqc_remove_macvlan_element_data),
  1313. GFP_KERNEL);
  1314. if (!del_list)
  1315. return -ENOMEM;
  1316. list_for_each_entry_safe(f, ftmp, &vsi->mac_filter_list, list) {
  1317. if (!f->changed)
  1318. continue;
  1319. if (f->counter != 0)
  1320. continue;
  1321. f->changed = false;
  1322. cmd_flags = 0;
  1323. /* add to delete list */
  1324. memcpy(del_list[num_del].mac_addr,
  1325. f->macaddr, ETH_ALEN);
  1326. del_list[num_del].vlan_tag =
  1327. cpu_to_le16((u16)(f->vlan ==
  1328. I40E_VLAN_ANY ? 0 : f->vlan));
  1329. /* vlan0 as wild card to allow packets from all vlans */
  1330. if (f->vlan == I40E_VLAN_ANY ||
  1331. (vsi->netdev && !(vsi->netdev->features &
  1332. NETIF_F_HW_VLAN_CTAG_FILTER)))
  1333. cmd_flags |= I40E_AQC_MACVLAN_DEL_IGNORE_VLAN;
  1334. cmd_flags |= I40E_AQC_MACVLAN_DEL_PERFECT_MATCH;
  1335. del_list[num_del].flags = cmd_flags;
  1336. num_del++;
  1337. /* unlink from filter list */
  1338. list_del(&f->list);
  1339. kfree(f);
  1340. /* flush a full buffer */
  1341. if (num_del == filter_list_len) {
  1342. aq_ret = i40e_aq_remove_macvlan(&pf->hw,
  1343. vsi->seid, del_list, num_del,
  1344. NULL);
  1345. num_del = 0;
  1346. memset(del_list, 0, sizeof(*del_list));
  1347. if (aq_ret)
  1348. dev_info(&pf->pdev->dev,
  1349. "ignoring delete macvlan error, err %d, aq_err %d while flushing a full buffer\n",
  1350. aq_ret,
  1351. pf->hw.aq.asq_last_status);
  1352. }
  1353. }
  1354. if (num_del) {
  1355. aq_ret = i40e_aq_remove_macvlan(&pf->hw, vsi->seid,
  1356. del_list, num_del, NULL);
  1357. num_del = 0;
  1358. if (aq_ret)
  1359. dev_info(&pf->pdev->dev,
  1360. "ignoring delete macvlan error, err %d, aq_err %d\n",
  1361. aq_ret, pf->hw.aq.asq_last_status);
  1362. }
  1363. kfree(del_list);
  1364. del_list = NULL;
  1365. /* do all the adds now */
  1366. filter_list_len = pf->hw.aq.asq_buf_size /
  1367. sizeof(struct i40e_aqc_add_macvlan_element_data),
  1368. add_list = kcalloc(filter_list_len,
  1369. sizeof(struct i40e_aqc_add_macvlan_element_data),
  1370. GFP_KERNEL);
  1371. if (!add_list)
  1372. return -ENOMEM;
  1373. list_for_each_entry_safe(f, ftmp, &vsi->mac_filter_list, list) {
  1374. if (!f->changed)
  1375. continue;
  1376. if (f->counter == 0)
  1377. continue;
  1378. f->changed = false;
  1379. add_happened = true;
  1380. cmd_flags = 0;
  1381. /* add to add array */
  1382. memcpy(add_list[num_add].mac_addr,
  1383. f->macaddr, ETH_ALEN);
  1384. add_list[num_add].vlan_tag =
  1385. cpu_to_le16(
  1386. (u16)(f->vlan == I40E_VLAN_ANY ? 0 : f->vlan));
  1387. add_list[num_add].queue_number = 0;
  1388. cmd_flags |= I40E_AQC_MACVLAN_ADD_PERFECT_MATCH;
  1389. /* vlan0 as wild card to allow packets from all vlans */
  1390. if (f->vlan == I40E_VLAN_ANY || (vsi->netdev &&
  1391. !(vsi->netdev->features &
  1392. NETIF_F_HW_VLAN_CTAG_FILTER)))
  1393. cmd_flags |= I40E_AQC_MACVLAN_ADD_IGNORE_VLAN;
  1394. add_list[num_add].flags = cpu_to_le16(cmd_flags);
  1395. num_add++;
  1396. /* flush a full buffer */
  1397. if (num_add == filter_list_len) {
  1398. aq_ret = i40e_aq_add_macvlan(&pf->hw, vsi->seid,
  1399. add_list, num_add,
  1400. NULL);
  1401. num_add = 0;
  1402. if (aq_ret)
  1403. break;
  1404. memset(add_list, 0, sizeof(*add_list));
  1405. }
  1406. }
  1407. if (num_add) {
  1408. aq_ret = i40e_aq_add_macvlan(&pf->hw, vsi->seid,
  1409. add_list, num_add, NULL);
  1410. num_add = 0;
  1411. }
  1412. kfree(add_list);
  1413. add_list = NULL;
  1414. if (add_happened && (!aq_ret)) {
  1415. /* do nothing */;
  1416. } else if (add_happened && (aq_ret)) {
  1417. dev_info(&pf->pdev->dev,
  1418. "add filter failed, err %d, aq_err %d\n",
  1419. aq_ret, pf->hw.aq.asq_last_status);
  1420. if ((pf->hw.aq.asq_last_status == I40E_AQ_RC_ENOSPC) &&
  1421. !test_bit(__I40E_FILTER_OVERFLOW_PROMISC,
  1422. &vsi->state)) {
  1423. promisc_forced_on = true;
  1424. set_bit(__I40E_FILTER_OVERFLOW_PROMISC,
  1425. &vsi->state);
  1426. dev_info(&pf->pdev->dev, "promiscuous mode forced on\n");
  1427. }
  1428. }
  1429. }
  1430. /* check for changes in promiscuous modes */
  1431. if (changed_flags & IFF_ALLMULTI) {
  1432. bool cur_multipromisc;
  1433. cur_multipromisc = !!(vsi->current_netdev_flags & IFF_ALLMULTI);
  1434. aq_ret = i40e_aq_set_vsi_multicast_promiscuous(&vsi->back->hw,
  1435. vsi->seid,
  1436. cur_multipromisc,
  1437. NULL);
  1438. if (aq_ret)
  1439. dev_info(&pf->pdev->dev,
  1440. "set multi promisc failed, err %d, aq_err %d\n",
  1441. aq_ret, pf->hw.aq.asq_last_status);
  1442. }
  1443. if ((changed_flags & IFF_PROMISC) || promisc_forced_on) {
  1444. bool cur_promisc;
  1445. cur_promisc = (!!(vsi->current_netdev_flags & IFF_PROMISC) ||
  1446. test_bit(__I40E_FILTER_OVERFLOW_PROMISC,
  1447. &vsi->state));
  1448. aq_ret = i40e_aq_set_vsi_unicast_promiscuous(&vsi->back->hw,
  1449. vsi->seid,
  1450. cur_promisc, NULL);
  1451. if (aq_ret)
  1452. dev_info(&pf->pdev->dev,
  1453. "set uni promisc failed, err %d, aq_err %d\n",
  1454. aq_ret, pf->hw.aq.asq_last_status);
  1455. }
  1456. clear_bit(__I40E_CONFIG_BUSY, &vsi->state);
  1457. return 0;
  1458. }
  1459. /**
  1460. * i40e_sync_filters_subtask - Sync the VSI filter list with HW
  1461. * @pf: board private structure
  1462. **/
  1463. static void i40e_sync_filters_subtask(struct i40e_pf *pf)
  1464. {
  1465. int v;
  1466. if (!pf || !(pf->flags & I40E_FLAG_FILTER_SYNC))
  1467. return;
  1468. pf->flags &= ~I40E_FLAG_FILTER_SYNC;
  1469. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  1470. if (pf->vsi[v] &&
  1471. (pf->vsi[v]->flags & I40E_VSI_FLAG_FILTER_CHANGED))
  1472. i40e_sync_vsi_filters(pf->vsi[v]);
  1473. }
  1474. }
  1475. /**
  1476. * i40e_change_mtu - NDO callback to change the Maximum Transfer Unit
  1477. * @netdev: network interface device structure
  1478. * @new_mtu: new value for maximum frame size
  1479. *
  1480. * Returns 0 on success, negative on failure
  1481. **/
  1482. static int i40e_change_mtu(struct net_device *netdev, int new_mtu)
  1483. {
  1484. struct i40e_netdev_priv *np = netdev_priv(netdev);
  1485. int max_frame = new_mtu + ETH_HLEN + ETH_FCS_LEN;
  1486. struct i40e_vsi *vsi = np->vsi;
  1487. /* MTU < 68 is an error and causes problems on some kernels */
  1488. if ((new_mtu < 68) || (max_frame > I40E_MAX_RXBUFFER))
  1489. return -EINVAL;
  1490. netdev_info(netdev, "changing MTU from %d to %d\n",
  1491. netdev->mtu, new_mtu);
  1492. netdev->mtu = new_mtu;
  1493. if (netif_running(netdev))
  1494. i40e_vsi_reinit_locked(vsi);
  1495. return 0;
  1496. }
  1497. /**
  1498. * i40e_vlan_stripping_enable - Turn on vlan stripping for the VSI
  1499. * @vsi: the vsi being adjusted
  1500. **/
  1501. void i40e_vlan_stripping_enable(struct i40e_vsi *vsi)
  1502. {
  1503. struct i40e_vsi_context ctxt;
  1504. i40e_status ret;
  1505. if ((vsi->info.valid_sections &
  1506. cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID)) &&
  1507. ((vsi->info.port_vlan_flags & I40E_AQ_VSI_PVLAN_MODE_MASK) == 0))
  1508. return; /* already enabled */
  1509. vsi->info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
  1510. vsi->info.port_vlan_flags = I40E_AQ_VSI_PVLAN_MODE_ALL |
  1511. I40E_AQ_VSI_PVLAN_EMOD_STR_BOTH;
  1512. ctxt.seid = vsi->seid;
  1513. memcpy(&ctxt.info, &vsi->info, sizeof(vsi->info));
  1514. ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
  1515. if (ret) {
  1516. dev_info(&vsi->back->pdev->dev,
  1517. "%s: update vsi failed, aq_err=%d\n",
  1518. __func__, vsi->back->hw.aq.asq_last_status);
  1519. }
  1520. }
  1521. /**
  1522. * i40e_vlan_stripping_disable - Turn off vlan stripping for the VSI
  1523. * @vsi: the vsi being adjusted
  1524. **/
  1525. void i40e_vlan_stripping_disable(struct i40e_vsi *vsi)
  1526. {
  1527. struct i40e_vsi_context ctxt;
  1528. i40e_status ret;
  1529. if ((vsi->info.valid_sections &
  1530. cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID)) &&
  1531. ((vsi->info.port_vlan_flags & I40E_AQ_VSI_PVLAN_EMOD_MASK) ==
  1532. I40E_AQ_VSI_PVLAN_EMOD_MASK))
  1533. return; /* already disabled */
  1534. vsi->info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
  1535. vsi->info.port_vlan_flags = I40E_AQ_VSI_PVLAN_MODE_ALL |
  1536. I40E_AQ_VSI_PVLAN_EMOD_NOTHING;
  1537. ctxt.seid = vsi->seid;
  1538. memcpy(&ctxt.info, &vsi->info, sizeof(vsi->info));
  1539. ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
  1540. if (ret) {
  1541. dev_info(&vsi->back->pdev->dev,
  1542. "%s: update vsi failed, aq_err=%d\n",
  1543. __func__, vsi->back->hw.aq.asq_last_status);
  1544. }
  1545. }
  1546. /**
  1547. * i40e_vlan_rx_register - Setup or shutdown vlan offload
  1548. * @netdev: network interface to be adjusted
  1549. * @features: netdev features to test if VLAN offload is enabled or not
  1550. **/
  1551. static void i40e_vlan_rx_register(struct net_device *netdev, u32 features)
  1552. {
  1553. struct i40e_netdev_priv *np = netdev_priv(netdev);
  1554. struct i40e_vsi *vsi = np->vsi;
  1555. if (features & NETIF_F_HW_VLAN_CTAG_RX)
  1556. i40e_vlan_stripping_enable(vsi);
  1557. else
  1558. i40e_vlan_stripping_disable(vsi);
  1559. }
  1560. /**
  1561. * i40e_vsi_add_vlan - Add vsi membership for given vlan
  1562. * @vsi: the vsi being configured
  1563. * @vid: vlan id to be added (0 = untagged only , -1 = any)
  1564. **/
  1565. int i40e_vsi_add_vlan(struct i40e_vsi *vsi, s16 vid)
  1566. {
  1567. struct i40e_mac_filter *f, *add_f;
  1568. bool is_netdev, is_vf;
  1569. int ret;
  1570. is_vf = (vsi->type == I40E_VSI_SRIOV);
  1571. is_netdev = !!(vsi->netdev);
  1572. if (is_netdev) {
  1573. add_f = i40e_add_filter(vsi, vsi->netdev->dev_addr, vid,
  1574. is_vf, is_netdev);
  1575. if (!add_f) {
  1576. dev_info(&vsi->back->pdev->dev,
  1577. "Could not add vlan filter %d for %pM\n",
  1578. vid, vsi->netdev->dev_addr);
  1579. return -ENOMEM;
  1580. }
  1581. }
  1582. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  1583. add_f = i40e_add_filter(vsi, f->macaddr, vid, is_vf, is_netdev);
  1584. if (!add_f) {
  1585. dev_info(&vsi->back->pdev->dev,
  1586. "Could not add vlan filter %d for %pM\n",
  1587. vid, f->macaddr);
  1588. return -ENOMEM;
  1589. }
  1590. }
  1591. ret = i40e_sync_vsi_filters(vsi);
  1592. if (ret) {
  1593. dev_info(&vsi->back->pdev->dev,
  1594. "Could not sync filters for vid %d\n", vid);
  1595. return ret;
  1596. }
  1597. /* Now if we add a vlan tag, make sure to check if it is the first
  1598. * tag (i.e. a "tag" -1 does exist) and if so replace the -1 "tag"
  1599. * with 0, so we now accept untagged and specified tagged traffic
  1600. * (and not any taged and untagged)
  1601. */
  1602. if (vid > 0) {
  1603. if (is_netdev && i40e_find_filter(vsi, vsi->netdev->dev_addr,
  1604. I40E_VLAN_ANY,
  1605. is_vf, is_netdev)) {
  1606. i40e_del_filter(vsi, vsi->netdev->dev_addr,
  1607. I40E_VLAN_ANY, is_vf, is_netdev);
  1608. add_f = i40e_add_filter(vsi, vsi->netdev->dev_addr, 0,
  1609. is_vf, is_netdev);
  1610. if (!add_f) {
  1611. dev_info(&vsi->back->pdev->dev,
  1612. "Could not add filter 0 for %pM\n",
  1613. vsi->netdev->dev_addr);
  1614. return -ENOMEM;
  1615. }
  1616. }
  1617. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  1618. if (i40e_find_filter(vsi, f->macaddr, I40E_VLAN_ANY,
  1619. is_vf, is_netdev)) {
  1620. i40e_del_filter(vsi, f->macaddr, I40E_VLAN_ANY,
  1621. is_vf, is_netdev);
  1622. add_f = i40e_add_filter(vsi, f->macaddr,
  1623. 0, is_vf, is_netdev);
  1624. if (!add_f) {
  1625. dev_info(&vsi->back->pdev->dev,
  1626. "Could not add filter 0 for %pM\n",
  1627. f->macaddr);
  1628. return -ENOMEM;
  1629. }
  1630. }
  1631. }
  1632. ret = i40e_sync_vsi_filters(vsi);
  1633. }
  1634. return ret;
  1635. }
  1636. /**
  1637. * i40e_vsi_kill_vlan - Remove vsi membership for given vlan
  1638. * @vsi: the vsi being configured
  1639. * @vid: vlan id to be removed (0 = untagged only , -1 = any)
  1640. *
  1641. * Return: 0 on success or negative otherwise
  1642. **/
  1643. int i40e_vsi_kill_vlan(struct i40e_vsi *vsi, s16 vid)
  1644. {
  1645. struct net_device *netdev = vsi->netdev;
  1646. struct i40e_mac_filter *f, *add_f;
  1647. bool is_vf, is_netdev;
  1648. int filter_count = 0;
  1649. int ret;
  1650. is_vf = (vsi->type == I40E_VSI_SRIOV);
  1651. is_netdev = !!(netdev);
  1652. if (is_netdev)
  1653. i40e_del_filter(vsi, netdev->dev_addr, vid, is_vf, is_netdev);
  1654. list_for_each_entry(f, &vsi->mac_filter_list, list)
  1655. i40e_del_filter(vsi, f->macaddr, vid, is_vf, is_netdev);
  1656. ret = i40e_sync_vsi_filters(vsi);
  1657. if (ret) {
  1658. dev_info(&vsi->back->pdev->dev, "Could not sync filters\n");
  1659. return ret;
  1660. }
  1661. /* go through all the filters for this VSI and if there is only
  1662. * vid == 0 it means there are no other filters, so vid 0 must
  1663. * be replaced with -1. This signifies that we should from now
  1664. * on accept any traffic (with any tag present, or untagged)
  1665. */
  1666. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  1667. if (is_netdev) {
  1668. if (f->vlan &&
  1669. ether_addr_equal(netdev->dev_addr, f->macaddr))
  1670. filter_count++;
  1671. }
  1672. if (f->vlan)
  1673. filter_count++;
  1674. }
  1675. if (!filter_count && is_netdev) {
  1676. i40e_del_filter(vsi, netdev->dev_addr, 0, is_vf, is_netdev);
  1677. f = i40e_add_filter(vsi, netdev->dev_addr, I40E_VLAN_ANY,
  1678. is_vf, is_netdev);
  1679. if (!f) {
  1680. dev_info(&vsi->back->pdev->dev,
  1681. "Could not add filter %d for %pM\n",
  1682. I40E_VLAN_ANY, netdev->dev_addr);
  1683. return -ENOMEM;
  1684. }
  1685. }
  1686. if (!filter_count) {
  1687. list_for_each_entry(f, &vsi->mac_filter_list, list) {
  1688. i40e_del_filter(vsi, f->macaddr, 0, is_vf, is_netdev);
  1689. add_f = i40e_add_filter(vsi, f->macaddr, I40E_VLAN_ANY,
  1690. is_vf, is_netdev);
  1691. if (!add_f) {
  1692. dev_info(&vsi->back->pdev->dev,
  1693. "Could not add filter %d for %pM\n",
  1694. I40E_VLAN_ANY, f->macaddr);
  1695. return -ENOMEM;
  1696. }
  1697. }
  1698. }
  1699. return i40e_sync_vsi_filters(vsi);
  1700. }
  1701. /**
  1702. * i40e_vlan_rx_add_vid - Add a vlan id filter to HW offload
  1703. * @netdev: network interface to be adjusted
  1704. * @vid: vlan id to be added
  1705. *
  1706. * net_device_ops implementation for adding vlan ids
  1707. **/
  1708. static int i40e_vlan_rx_add_vid(struct net_device *netdev,
  1709. __always_unused __be16 proto, u16 vid)
  1710. {
  1711. struct i40e_netdev_priv *np = netdev_priv(netdev);
  1712. struct i40e_vsi *vsi = np->vsi;
  1713. int ret = 0;
  1714. if (vid > 4095)
  1715. return -EINVAL;
  1716. netdev_info(netdev, "adding %pM vid=%d\n", netdev->dev_addr, vid);
  1717. /* If the network stack called us with vid = 0, we should
  1718. * indicate to i40e_vsi_add_vlan() that we want to receive
  1719. * any traffic (i.e. with any vlan tag, or untagged)
  1720. */
  1721. ret = i40e_vsi_add_vlan(vsi, vid ? vid : I40E_VLAN_ANY);
  1722. if (!ret && (vid < VLAN_N_VID))
  1723. set_bit(vid, vsi->active_vlans);
  1724. return ret;
  1725. }
  1726. /**
  1727. * i40e_vlan_rx_kill_vid - Remove a vlan id filter from HW offload
  1728. * @netdev: network interface to be adjusted
  1729. * @vid: vlan id to be removed
  1730. *
  1731. * net_device_ops implementation for adding vlan ids
  1732. **/
  1733. static int i40e_vlan_rx_kill_vid(struct net_device *netdev,
  1734. __always_unused __be16 proto, u16 vid)
  1735. {
  1736. struct i40e_netdev_priv *np = netdev_priv(netdev);
  1737. struct i40e_vsi *vsi = np->vsi;
  1738. netdev_info(netdev, "removing %pM vid=%d\n", netdev->dev_addr, vid);
  1739. /* return code is ignored as there is nothing a user
  1740. * can do about failure to remove and a log message was
  1741. * already printed from the other function
  1742. */
  1743. i40e_vsi_kill_vlan(vsi, vid);
  1744. clear_bit(vid, vsi->active_vlans);
  1745. return 0;
  1746. }
  1747. /**
  1748. * i40e_restore_vlan - Reinstate vlans when vsi/netdev comes back up
  1749. * @vsi: the vsi being brought back up
  1750. **/
  1751. static void i40e_restore_vlan(struct i40e_vsi *vsi)
  1752. {
  1753. u16 vid;
  1754. if (!vsi->netdev)
  1755. return;
  1756. i40e_vlan_rx_register(vsi->netdev, vsi->netdev->features);
  1757. for_each_set_bit(vid, vsi->active_vlans, VLAN_N_VID)
  1758. i40e_vlan_rx_add_vid(vsi->netdev, htons(ETH_P_8021Q),
  1759. vid);
  1760. }
  1761. /**
  1762. * i40e_vsi_add_pvid - Add pvid for the VSI
  1763. * @vsi: the vsi being adjusted
  1764. * @vid: the vlan id to set as a PVID
  1765. **/
  1766. int i40e_vsi_add_pvid(struct i40e_vsi *vsi, u16 vid)
  1767. {
  1768. struct i40e_vsi_context ctxt;
  1769. i40e_status aq_ret;
  1770. vsi->info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
  1771. vsi->info.pvid = cpu_to_le16(vid);
  1772. vsi->info.port_vlan_flags |= I40E_AQ_VSI_PVLAN_INSERT_PVID;
  1773. vsi->info.port_vlan_flags |= I40E_AQ_VSI_PVLAN_MODE_UNTAGGED;
  1774. ctxt.seid = vsi->seid;
  1775. memcpy(&ctxt.info, &vsi->info, sizeof(vsi->info));
  1776. aq_ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
  1777. if (aq_ret) {
  1778. dev_info(&vsi->back->pdev->dev,
  1779. "%s: update vsi failed, aq_err=%d\n",
  1780. __func__, vsi->back->hw.aq.asq_last_status);
  1781. return -ENOENT;
  1782. }
  1783. return 0;
  1784. }
  1785. /**
  1786. * i40e_vsi_remove_pvid - Remove the pvid from the VSI
  1787. * @vsi: the vsi being adjusted
  1788. *
  1789. * Just use the vlan_rx_register() service to put it back to normal
  1790. **/
  1791. void i40e_vsi_remove_pvid(struct i40e_vsi *vsi)
  1792. {
  1793. vsi->info.pvid = 0;
  1794. i40e_vlan_rx_register(vsi->netdev, vsi->netdev->features);
  1795. }
  1796. /**
  1797. * i40e_vsi_setup_tx_resources - Allocate VSI Tx queue resources
  1798. * @vsi: ptr to the VSI
  1799. *
  1800. * If this function returns with an error, then it's possible one or
  1801. * more of the rings is populated (while the rest are not). It is the
  1802. * callers duty to clean those orphaned rings.
  1803. *
  1804. * Return 0 on success, negative on failure
  1805. **/
  1806. static int i40e_vsi_setup_tx_resources(struct i40e_vsi *vsi)
  1807. {
  1808. int i, err = 0;
  1809. for (i = 0; i < vsi->num_queue_pairs && !err; i++)
  1810. err = i40e_setup_tx_descriptors(vsi->tx_rings[i]);
  1811. return err;
  1812. }
  1813. /**
  1814. * i40e_vsi_free_tx_resources - Free Tx resources for VSI queues
  1815. * @vsi: ptr to the VSI
  1816. *
  1817. * Free VSI's transmit software resources
  1818. **/
  1819. static void i40e_vsi_free_tx_resources(struct i40e_vsi *vsi)
  1820. {
  1821. int i;
  1822. for (i = 0; i < vsi->num_queue_pairs; i++)
  1823. if (vsi->tx_rings[i]->desc)
  1824. i40e_free_tx_resources(vsi->tx_rings[i]);
  1825. }
  1826. /**
  1827. * i40e_vsi_setup_rx_resources - Allocate VSI queues Rx resources
  1828. * @vsi: ptr to the VSI
  1829. *
  1830. * If this function returns with an error, then it's possible one or
  1831. * more of the rings is populated (while the rest are not). It is the
  1832. * callers duty to clean those orphaned rings.
  1833. *
  1834. * Return 0 on success, negative on failure
  1835. **/
  1836. static int i40e_vsi_setup_rx_resources(struct i40e_vsi *vsi)
  1837. {
  1838. int i, err = 0;
  1839. for (i = 0; i < vsi->num_queue_pairs && !err; i++)
  1840. err = i40e_setup_rx_descriptors(vsi->rx_rings[i]);
  1841. return err;
  1842. }
  1843. /**
  1844. * i40e_vsi_free_rx_resources - Free Rx Resources for VSI queues
  1845. * @vsi: ptr to the VSI
  1846. *
  1847. * Free all receive software resources
  1848. **/
  1849. static void i40e_vsi_free_rx_resources(struct i40e_vsi *vsi)
  1850. {
  1851. int i;
  1852. for (i = 0; i < vsi->num_queue_pairs; i++)
  1853. if (vsi->rx_rings[i]->desc)
  1854. i40e_free_rx_resources(vsi->rx_rings[i]);
  1855. }
  1856. /**
  1857. * i40e_configure_tx_ring - Configure a transmit ring context and rest
  1858. * @ring: The Tx ring to configure
  1859. *
  1860. * Configure the Tx descriptor ring in the HMC context.
  1861. **/
  1862. static int i40e_configure_tx_ring(struct i40e_ring *ring)
  1863. {
  1864. struct i40e_vsi *vsi = ring->vsi;
  1865. u16 pf_q = vsi->base_queue + ring->queue_index;
  1866. struct i40e_hw *hw = &vsi->back->hw;
  1867. struct i40e_hmc_obj_txq tx_ctx;
  1868. i40e_status err = 0;
  1869. u32 qtx_ctl = 0;
  1870. /* some ATR related tx ring init */
  1871. if (vsi->back->flags & I40E_FLAG_FDIR_ATR_ENABLED) {
  1872. ring->atr_sample_rate = vsi->back->atr_sample_rate;
  1873. ring->atr_count = 0;
  1874. } else {
  1875. ring->atr_sample_rate = 0;
  1876. }
  1877. /* initialize XPS */
  1878. if (ring->q_vector && ring->netdev &&
  1879. !test_and_set_bit(__I40E_TX_XPS_INIT_DONE, &ring->state))
  1880. netif_set_xps_queue(ring->netdev,
  1881. &ring->q_vector->affinity_mask,
  1882. ring->queue_index);
  1883. /* clear the context structure first */
  1884. memset(&tx_ctx, 0, sizeof(tx_ctx));
  1885. tx_ctx.new_context = 1;
  1886. tx_ctx.base = (ring->dma / 128);
  1887. tx_ctx.qlen = ring->count;
  1888. tx_ctx.fd_ena = !!(vsi->back->flags & (I40E_FLAG_FDIR_ENABLED |
  1889. I40E_FLAG_FDIR_ATR_ENABLED));
  1890. /* As part of VSI creation/update, FW allocates certain
  1891. * Tx arbitration queue sets for each TC enabled for
  1892. * the VSI. The FW returns the handles to these queue
  1893. * sets as part of the response buffer to Add VSI,
  1894. * Update VSI, etc. AQ commands. It is expected that
  1895. * these queue set handles be associated with the Tx
  1896. * queues by the driver as part of the TX queue context
  1897. * initialization. This has to be done regardless of
  1898. * DCB as by default everything is mapped to TC0.
  1899. */
  1900. tx_ctx.rdylist = le16_to_cpu(vsi->info.qs_handle[ring->dcb_tc]);
  1901. tx_ctx.rdylist_act = 0;
  1902. /* clear the context in the HMC */
  1903. err = i40e_clear_lan_tx_queue_context(hw, pf_q);
  1904. if (err) {
  1905. dev_info(&vsi->back->pdev->dev,
  1906. "Failed to clear LAN Tx queue context on Tx ring %d (pf_q %d), error: %d\n",
  1907. ring->queue_index, pf_q, err);
  1908. return -ENOMEM;
  1909. }
  1910. /* set the context in the HMC */
  1911. err = i40e_set_lan_tx_queue_context(hw, pf_q, &tx_ctx);
  1912. if (err) {
  1913. dev_info(&vsi->back->pdev->dev,
  1914. "Failed to set LAN Tx queue context on Tx ring %d (pf_q %d, error: %d\n",
  1915. ring->queue_index, pf_q, err);
  1916. return -ENOMEM;
  1917. }
  1918. /* Now associate this queue with this PCI function */
  1919. qtx_ctl = I40E_QTX_CTL_PF_QUEUE;
  1920. qtx_ctl |= ((hw->pf_id << I40E_QTX_CTL_PF_INDX_SHIFT) &
  1921. I40E_QTX_CTL_PF_INDX_MASK);
  1922. wr32(hw, I40E_QTX_CTL(pf_q), qtx_ctl);
  1923. i40e_flush(hw);
  1924. clear_bit(__I40E_HANG_CHECK_ARMED, &ring->state);
  1925. /* cache tail off for easier writes later */
  1926. ring->tail = hw->hw_addr + I40E_QTX_TAIL(pf_q);
  1927. return 0;
  1928. }
  1929. /**
  1930. * i40e_configure_rx_ring - Configure a receive ring context
  1931. * @ring: The Rx ring to configure
  1932. *
  1933. * Configure the Rx descriptor ring in the HMC context.
  1934. **/
  1935. static int i40e_configure_rx_ring(struct i40e_ring *ring)
  1936. {
  1937. struct i40e_vsi *vsi = ring->vsi;
  1938. u32 chain_len = vsi->back->hw.func_caps.rx_buf_chain_len;
  1939. u16 pf_q = vsi->base_queue + ring->queue_index;
  1940. struct i40e_hw *hw = &vsi->back->hw;
  1941. struct i40e_hmc_obj_rxq rx_ctx;
  1942. i40e_status err = 0;
  1943. ring->state = 0;
  1944. /* clear the context structure first */
  1945. memset(&rx_ctx, 0, sizeof(rx_ctx));
  1946. ring->rx_buf_len = vsi->rx_buf_len;
  1947. ring->rx_hdr_len = vsi->rx_hdr_len;
  1948. rx_ctx.dbuff = ring->rx_buf_len >> I40E_RXQ_CTX_DBUFF_SHIFT;
  1949. rx_ctx.hbuff = ring->rx_hdr_len >> I40E_RXQ_CTX_HBUFF_SHIFT;
  1950. rx_ctx.base = (ring->dma / 128);
  1951. rx_ctx.qlen = ring->count;
  1952. if (vsi->back->flags & I40E_FLAG_16BYTE_RX_DESC_ENABLED) {
  1953. set_ring_16byte_desc_enabled(ring);
  1954. rx_ctx.dsize = 0;
  1955. } else {
  1956. rx_ctx.dsize = 1;
  1957. }
  1958. rx_ctx.dtype = vsi->dtype;
  1959. if (vsi->dtype) {
  1960. set_ring_ps_enabled(ring);
  1961. rx_ctx.hsplit_0 = I40E_RX_SPLIT_L2 |
  1962. I40E_RX_SPLIT_IP |
  1963. I40E_RX_SPLIT_TCP_UDP |
  1964. I40E_RX_SPLIT_SCTP;
  1965. } else {
  1966. rx_ctx.hsplit_0 = 0;
  1967. }
  1968. rx_ctx.rxmax = min_t(u16, vsi->max_frame,
  1969. (chain_len * ring->rx_buf_len));
  1970. rx_ctx.tphrdesc_ena = 1;
  1971. rx_ctx.tphwdesc_ena = 1;
  1972. rx_ctx.tphdata_ena = 1;
  1973. rx_ctx.tphhead_ena = 1;
  1974. rx_ctx.lrxqthresh = 2;
  1975. rx_ctx.crcstrip = 1;
  1976. rx_ctx.l2tsel = 1;
  1977. rx_ctx.showiv = 1;
  1978. /* clear the context in the HMC */
  1979. err = i40e_clear_lan_rx_queue_context(hw, pf_q);
  1980. if (err) {
  1981. dev_info(&vsi->back->pdev->dev,
  1982. "Failed to clear LAN Rx queue context on Rx ring %d (pf_q %d), error: %d\n",
  1983. ring->queue_index, pf_q, err);
  1984. return -ENOMEM;
  1985. }
  1986. /* set the context in the HMC */
  1987. err = i40e_set_lan_rx_queue_context(hw, pf_q, &rx_ctx);
  1988. if (err) {
  1989. dev_info(&vsi->back->pdev->dev,
  1990. "Failed to set LAN Rx queue context on Rx ring %d (pf_q %d), error: %d\n",
  1991. ring->queue_index, pf_q, err);
  1992. return -ENOMEM;
  1993. }
  1994. /* cache tail for quicker writes, and clear the reg before use */
  1995. ring->tail = hw->hw_addr + I40E_QRX_TAIL(pf_q);
  1996. writel(0, ring->tail);
  1997. i40e_alloc_rx_buffers(ring, I40E_DESC_UNUSED(ring));
  1998. return 0;
  1999. }
  2000. /**
  2001. * i40e_vsi_configure_tx - Configure the VSI for Tx
  2002. * @vsi: VSI structure describing this set of rings and resources
  2003. *
  2004. * Configure the Tx VSI for operation.
  2005. **/
  2006. static int i40e_vsi_configure_tx(struct i40e_vsi *vsi)
  2007. {
  2008. int err = 0;
  2009. u16 i;
  2010. for (i = 0; (i < vsi->num_queue_pairs) && !err; i++)
  2011. err = i40e_configure_tx_ring(vsi->tx_rings[i]);
  2012. return err;
  2013. }
  2014. /**
  2015. * i40e_vsi_configure_rx - Configure the VSI for Rx
  2016. * @vsi: the VSI being configured
  2017. *
  2018. * Configure the Rx VSI for operation.
  2019. **/
  2020. static int i40e_vsi_configure_rx(struct i40e_vsi *vsi)
  2021. {
  2022. int err = 0;
  2023. u16 i;
  2024. if (vsi->netdev && (vsi->netdev->mtu > ETH_DATA_LEN))
  2025. vsi->max_frame = vsi->netdev->mtu + ETH_HLEN
  2026. + ETH_FCS_LEN + VLAN_HLEN;
  2027. else
  2028. vsi->max_frame = I40E_RXBUFFER_2048;
  2029. /* figure out correct receive buffer length */
  2030. switch (vsi->back->flags & (I40E_FLAG_RX_1BUF_ENABLED |
  2031. I40E_FLAG_RX_PS_ENABLED)) {
  2032. case I40E_FLAG_RX_1BUF_ENABLED:
  2033. vsi->rx_hdr_len = 0;
  2034. vsi->rx_buf_len = vsi->max_frame;
  2035. vsi->dtype = I40E_RX_DTYPE_NO_SPLIT;
  2036. break;
  2037. case I40E_FLAG_RX_PS_ENABLED:
  2038. vsi->rx_hdr_len = I40E_RX_HDR_SIZE;
  2039. vsi->rx_buf_len = I40E_RXBUFFER_2048;
  2040. vsi->dtype = I40E_RX_DTYPE_HEADER_SPLIT;
  2041. break;
  2042. default:
  2043. vsi->rx_hdr_len = I40E_RX_HDR_SIZE;
  2044. vsi->rx_buf_len = I40E_RXBUFFER_2048;
  2045. vsi->dtype = I40E_RX_DTYPE_SPLIT_ALWAYS;
  2046. break;
  2047. }
  2048. /* round up for the chip's needs */
  2049. vsi->rx_hdr_len = ALIGN(vsi->rx_hdr_len,
  2050. (1 << I40E_RXQ_CTX_HBUFF_SHIFT));
  2051. vsi->rx_buf_len = ALIGN(vsi->rx_buf_len,
  2052. (1 << I40E_RXQ_CTX_DBUFF_SHIFT));
  2053. /* set up individual rings */
  2054. for (i = 0; i < vsi->num_queue_pairs && !err; i++)
  2055. err = i40e_configure_rx_ring(vsi->rx_rings[i]);
  2056. return err;
  2057. }
  2058. /**
  2059. * i40e_vsi_config_dcb_rings - Update rings to reflect DCB TC
  2060. * @vsi: ptr to the VSI
  2061. **/
  2062. static void i40e_vsi_config_dcb_rings(struct i40e_vsi *vsi)
  2063. {
  2064. u16 qoffset, qcount;
  2065. int i, n;
  2066. if (!(vsi->back->flags & I40E_FLAG_DCB_ENABLED))
  2067. return;
  2068. for (n = 0; n < I40E_MAX_TRAFFIC_CLASS; n++) {
  2069. if (!(vsi->tc_config.enabled_tc & (1 << n)))
  2070. continue;
  2071. qoffset = vsi->tc_config.tc_info[n].qoffset;
  2072. qcount = vsi->tc_config.tc_info[n].qcount;
  2073. for (i = qoffset; i < (qoffset + qcount); i++) {
  2074. struct i40e_ring *rx_ring = vsi->rx_rings[i];
  2075. struct i40e_ring *tx_ring = vsi->tx_rings[i];
  2076. rx_ring->dcb_tc = n;
  2077. tx_ring->dcb_tc = n;
  2078. }
  2079. }
  2080. }
  2081. /**
  2082. * i40e_set_vsi_rx_mode - Call set_rx_mode on a VSI
  2083. * @vsi: ptr to the VSI
  2084. **/
  2085. static void i40e_set_vsi_rx_mode(struct i40e_vsi *vsi)
  2086. {
  2087. if (vsi->netdev)
  2088. i40e_set_rx_mode(vsi->netdev);
  2089. }
  2090. /**
  2091. * i40e_vsi_configure - Set up the VSI for action
  2092. * @vsi: the VSI being configured
  2093. **/
  2094. static int i40e_vsi_configure(struct i40e_vsi *vsi)
  2095. {
  2096. int err;
  2097. i40e_set_vsi_rx_mode(vsi);
  2098. i40e_restore_vlan(vsi);
  2099. i40e_vsi_config_dcb_rings(vsi);
  2100. err = i40e_vsi_configure_tx(vsi);
  2101. if (!err)
  2102. err = i40e_vsi_configure_rx(vsi);
  2103. return err;
  2104. }
  2105. /**
  2106. * i40e_vsi_configure_msix - MSIX mode Interrupt Config in the HW
  2107. * @vsi: the VSI being configured
  2108. **/
  2109. static void i40e_vsi_configure_msix(struct i40e_vsi *vsi)
  2110. {
  2111. struct i40e_pf *pf = vsi->back;
  2112. struct i40e_q_vector *q_vector;
  2113. struct i40e_hw *hw = &pf->hw;
  2114. u16 vector;
  2115. int i, q;
  2116. u32 val;
  2117. u32 qp;
  2118. /* The interrupt indexing is offset by 1 in the PFINT_ITRn
  2119. * and PFINT_LNKLSTn registers, e.g.:
  2120. * PFINT_ITRn[0..n-1] gets msix-1..msix-n (qpair interrupts)
  2121. */
  2122. qp = vsi->base_queue;
  2123. vector = vsi->base_vector;
  2124. for (i = 0; i < vsi->num_q_vectors; i++, vector++) {
  2125. q_vector = vsi->q_vectors[i];
  2126. q_vector->rx.itr = ITR_TO_REG(vsi->rx_itr_setting);
  2127. q_vector->rx.latency_range = I40E_LOW_LATENCY;
  2128. wr32(hw, I40E_PFINT_ITRN(I40E_RX_ITR, vector - 1),
  2129. q_vector->rx.itr);
  2130. q_vector->tx.itr = ITR_TO_REG(vsi->tx_itr_setting);
  2131. q_vector->tx.latency_range = I40E_LOW_LATENCY;
  2132. wr32(hw, I40E_PFINT_ITRN(I40E_TX_ITR, vector - 1),
  2133. q_vector->tx.itr);
  2134. /* Linked list for the queuepairs assigned to this vector */
  2135. wr32(hw, I40E_PFINT_LNKLSTN(vector - 1), qp);
  2136. for (q = 0; q < q_vector->num_ringpairs; q++) {
  2137. val = I40E_QINT_RQCTL_CAUSE_ENA_MASK |
  2138. (I40E_RX_ITR << I40E_QINT_RQCTL_ITR_INDX_SHIFT) |
  2139. (vector << I40E_QINT_RQCTL_MSIX_INDX_SHIFT) |
  2140. (qp << I40E_QINT_RQCTL_NEXTQ_INDX_SHIFT)|
  2141. (I40E_QUEUE_TYPE_TX
  2142. << I40E_QINT_RQCTL_NEXTQ_TYPE_SHIFT);
  2143. wr32(hw, I40E_QINT_RQCTL(qp), val);
  2144. val = I40E_QINT_TQCTL_CAUSE_ENA_MASK |
  2145. (I40E_TX_ITR << I40E_QINT_TQCTL_ITR_INDX_SHIFT) |
  2146. (vector << I40E_QINT_TQCTL_MSIX_INDX_SHIFT) |
  2147. ((qp+1) << I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT)|
  2148. (I40E_QUEUE_TYPE_RX
  2149. << I40E_QINT_TQCTL_NEXTQ_TYPE_SHIFT);
  2150. /* Terminate the linked list */
  2151. if (q == (q_vector->num_ringpairs - 1))
  2152. val |= (I40E_QUEUE_END_OF_LIST
  2153. << I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT);
  2154. wr32(hw, I40E_QINT_TQCTL(qp), val);
  2155. qp++;
  2156. }
  2157. }
  2158. i40e_flush(hw);
  2159. }
  2160. /**
  2161. * i40e_enable_misc_int_causes - enable the non-queue interrupts
  2162. * @hw: ptr to the hardware info
  2163. **/
  2164. static void i40e_enable_misc_int_causes(struct i40e_hw *hw)
  2165. {
  2166. u32 val;
  2167. /* clear things first */
  2168. wr32(hw, I40E_PFINT_ICR0_ENA, 0); /* disable all */
  2169. rd32(hw, I40E_PFINT_ICR0); /* read to clear */
  2170. val = I40E_PFINT_ICR0_ENA_ECC_ERR_MASK |
  2171. I40E_PFINT_ICR0_ENA_MAL_DETECT_MASK |
  2172. I40E_PFINT_ICR0_ENA_GRST_MASK |
  2173. I40E_PFINT_ICR0_ENA_PCI_EXCEPTION_MASK |
  2174. I40E_PFINT_ICR0_ENA_GPIO_MASK |
  2175. I40E_PFINT_ICR0_ENA_STORM_DETECT_MASK |
  2176. I40E_PFINT_ICR0_ENA_HMC_ERR_MASK |
  2177. I40E_PFINT_ICR0_ENA_VFLR_MASK |
  2178. I40E_PFINT_ICR0_ENA_ADMINQ_MASK;
  2179. wr32(hw, I40E_PFINT_ICR0_ENA, val);
  2180. /* SW_ITR_IDX = 0, but don't change INTENA */
  2181. wr32(hw, I40E_PFINT_DYN_CTL0, I40E_PFINT_DYN_CTLN_SW_ITR_INDX_MASK |
  2182. I40E_PFINT_DYN_CTLN_INTENA_MSK_MASK);
  2183. /* OTHER_ITR_IDX = 0 */
  2184. wr32(hw, I40E_PFINT_STAT_CTL0, 0);
  2185. }
  2186. /**
  2187. * i40e_configure_msi_and_legacy - Legacy mode interrupt config in the HW
  2188. * @vsi: the VSI being configured
  2189. **/
  2190. static void i40e_configure_msi_and_legacy(struct i40e_vsi *vsi)
  2191. {
  2192. struct i40e_q_vector *q_vector = vsi->q_vectors[0];
  2193. struct i40e_pf *pf = vsi->back;
  2194. struct i40e_hw *hw = &pf->hw;
  2195. u32 val;
  2196. /* set the ITR configuration */
  2197. q_vector->rx.itr = ITR_TO_REG(vsi->rx_itr_setting);
  2198. q_vector->rx.latency_range = I40E_LOW_LATENCY;
  2199. wr32(hw, I40E_PFINT_ITR0(I40E_RX_ITR), q_vector->rx.itr);
  2200. q_vector->tx.itr = ITR_TO_REG(vsi->tx_itr_setting);
  2201. q_vector->tx.latency_range = I40E_LOW_LATENCY;
  2202. wr32(hw, I40E_PFINT_ITR0(I40E_TX_ITR), q_vector->tx.itr);
  2203. i40e_enable_misc_int_causes(hw);
  2204. /* FIRSTQ_INDX = 0, FIRSTQ_TYPE = 0 (rx) */
  2205. wr32(hw, I40E_PFINT_LNKLST0, 0);
  2206. /* Associate the queue pair to the vector and enable the q int */
  2207. val = I40E_QINT_RQCTL_CAUSE_ENA_MASK |
  2208. (I40E_RX_ITR << I40E_QINT_RQCTL_ITR_INDX_SHIFT) |
  2209. (I40E_QUEUE_TYPE_TX << I40E_QINT_TQCTL_NEXTQ_TYPE_SHIFT);
  2210. wr32(hw, I40E_QINT_RQCTL(0), val);
  2211. val = I40E_QINT_TQCTL_CAUSE_ENA_MASK |
  2212. (I40E_TX_ITR << I40E_QINT_TQCTL_ITR_INDX_SHIFT) |
  2213. (I40E_QUEUE_END_OF_LIST << I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT);
  2214. wr32(hw, I40E_QINT_TQCTL(0), val);
  2215. i40e_flush(hw);
  2216. }
  2217. /**
  2218. * i40e_irq_dynamic_enable_icr0 - Enable default interrupt generation for icr0
  2219. * @pf: board private structure
  2220. **/
  2221. void i40e_irq_dynamic_enable_icr0(struct i40e_pf *pf)
  2222. {
  2223. struct i40e_hw *hw = &pf->hw;
  2224. u32 val;
  2225. val = I40E_PFINT_DYN_CTL0_INTENA_MASK |
  2226. I40E_PFINT_DYN_CTL0_CLEARPBA_MASK |
  2227. (I40E_ITR_NONE << I40E_PFINT_DYN_CTL0_ITR_INDX_SHIFT);
  2228. wr32(hw, I40E_PFINT_DYN_CTL0, val);
  2229. i40e_flush(hw);
  2230. }
  2231. /**
  2232. * i40e_irq_dynamic_enable - Enable default interrupt generation settings
  2233. * @vsi: pointer to a vsi
  2234. * @vector: enable a particular Hw Interrupt vector
  2235. **/
  2236. void i40e_irq_dynamic_enable(struct i40e_vsi *vsi, int vector)
  2237. {
  2238. struct i40e_pf *pf = vsi->back;
  2239. struct i40e_hw *hw = &pf->hw;
  2240. u32 val;
  2241. val = I40E_PFINT_DYN_CTLN_INTENA_MASK |
  2242. I40E_PFINT_DYN_CTLN_CLEARPBA_MASK |
  2243. (I40E_ITR_NONE << I40E_PFINT_DYN_CTLN_ITR_INDX_SHIFT);
  2244. wr32(hw, I40E_PFINT_DYN_CTLN(vector - 1), val);
  2245. /* skip the flush */
  2246. }
  2247. /**
  2248. * i40e_msix_clean_rings - MSIX mode Interrupt Handler
  2249. * @irq: interrupt number
  2250. * @data: pointer to a q_vector
  2251. **/
  2252. static irqreturn_t i40e_msix_clean_rings(int irq, void *data)
  2253. {
  2254. struct i40e_q_vector *q_vector = data;
  2255. if (!q_vector->tx.ring && !q_vector->rx.ring)
  2256. return IRQ_HANDLED;
  2257. napi_schedule(&q_vector->napi);
  2258. return IRQ_HANDLED;
  2259. }
  2260. /**
  2261. * i40e_fdir_clean_rings - Interrupt Handler for FDIR rings
  2262. * @irq: interrupt number
  2263. * @data: pointer to a q_vector
  2264. **/
  2265. static irqreturn_t i40e_fdir_clean_rings(int irq, void *data)
  2266. {
  2267. struct i40e_q_vector *q_vector = data;
  2268. if (!q_vector->tx.ring && !q_vector->rx.ring)
  2269. return IRQ_HANDLED;
  2270. pr_info("fdir ring cleaning needed\n");
  2271. return IRQ_HANDLED;
  2272. }
  2273. /**
  2274. * i40e_vsi_request_irq_msix - Initialize MSI-X interrupts
  2275. * @vsi: the VSI being configured
  2276. * @basename: name for the vector
  2277. *
  2278. * Allocates MSI-X vectors and requests interrupts from the kernel.
  2279. **/
  2280. static int i40e_vsi_request_irq_msix(struct i40e_vsi *vsi, char *basename)
  2281. {
  2282. int q_vectors = vsi->num_q_vectors;
  2283. struct i40e_pf *pf = vsi->back;
  2284. int base = vsi->base_vector;
  2285. int rx_int_idx = 0;
  2286. int tx_int_idx = 0;
  2287. int vector, err;
  2288. for (vector = 0; vector < q_vectors; vector++) {
  2289. struct i40e_q_vector *q_vector = vsi->q_vectors[vector];
  2290. if (q_vector->tx.ring && q_vector->rx.ring) {
  2291. snprintf(q_vector->name, sizeof(q_vector->name) - 1,
  2292. "%s-%s-%d", basename, "TxRx", rx_int_idx++);
  2293. tx_int_idx++;
  2294. } else if (q_vector->rx.ring) {
  2295. snprintf(q_vector->name, sizeof(q_vector->name) - 1,
  2296. "%s-%s-%d", basename, "rx", rx_int_idx++);
  2297. } else if (q_vector->tx.ring) {
  2298. snprintf(q_vector->name, sizeof(q_vector->name) - 1,
  2299. "%s-%s-%d", basename, "tx", tx_int_idx++);
  2300. } else {
  2301. /* skip this unused q_vector */
  2302. continue;
  2303. }
  2304. err = request_irq(pf->msix_entries[base + vector].vector,
  2305. vsi->irq_handler,
  2306. 0,
  2307. q_vector->name,
  2308. q_vector);
  2309. if (err) {
  2310. dev_info(&pf->pdev->dev,
  2311. "%s: request_irq failed, error: %d\n",
  2312. __func__, err);
  2313. goto free_queue_irqs;
  2314. }
  2315. /* assign the mask for this irq */
  2316. irq_set_affinity_hint(pf->msix_entries[base + vector].vector,
  2317. &q_vector->affinity_mask);
  2318. }
  2319. return 0;
  2320. free_queue_irqs:
  2321. while (vector) {
  2322. vector--;
  2323. irq_set_affinity_hint(pf->msix_entries[base + vector].vector,
  2324. NULL);
  2325. free_irq(pf->msix_entries[base + vector].vector,
  2326. &(vsi->q_vectors[vector]));
  2327. }
  2328. return err;
  2329. }
  2330. /**
  2331. * i40e_vsi_disable_irq - Mask off queue interrupt generation on the VSI
  2332. * @vsi: the VSI being un-configured
  2333. **/
  2334. static void i40e_vsi_disable_irq(struct i40e_vsi *vsi)
  2335. {
  2336. struct i40e_pf *pf = vsi->back;
  2337. struct i40e_hw *hw = &pf->hw;
  2338. int base = vsi->base_vector;
  2339. int i;
  2340. for (i = 0; i < vsi->num_queue_pairs; i++) {
  2341. wr32(hw, I40E_QINT_TQCTL(vsi->tx_rings[i]->reg_idx), 0);
  2342. wr32(hw, I40E_QINT_RQCTL(vsi->rx_rings[i]->reg_idx), 0);
  2343. }
  2344. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  2345. for (i = vsi->base_vector;
  2346. i < (vsi->num_q_vectors + vsi->base_vector); i++)
  2347. wr32(hw, I40E_PFINT_DYN_CTLN(i - 1), 0);
  2348. i40e_flush(hw);
  2349. for (i = 0; i < vsi->num_q_vectors; i++)
  2350. synchronize_irq(pf->msix_entries[i + base].vector);
  2351. } else {
  2352. /* Legacy and MSI mode - this stops all interrupt handling */
  2353. wr32(hw, I40E_PFINT_ICR0_ENA, 0);
  2354. wr32(hw, I40E_PFINT_DYN_CTL0, 0);
  2355. i40e_flush(hw);
  2356. synchronize_irq(pf->pdev->irq);
  2357. }
  2358. }
  2359. /**
  2360. * i40e_vsi_enable_irq - Enable IRQ for the given VSI
  2361. * @vsi: the VSI being configured
  2362. **/
  2363. static int i40e_vsi_enable_irq(struct i40e_vsi *vsi)
  2364. {
  2365. struct i40e_pf *pf = vsi->back;
  2366. int i;
  2367. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  2368. for (i = vsi->base_vector;
  2369. i < (vsi->num_q_vectors + vsi->base_vector); i++)
  2370. i40e_irq_dynamic_enable(vsi, i);
  2371. } else {
  2372. i40e_irq_dynamic_enable_icr0(pf);
  2373. }
  2374. i40e_flush(&pf->hw);
  2375. return 0;
  2376. }
  2377. /**
  2378. * i40e_stop_misc_vector - Stop the vector that handles non-queue events
  2379. * @pf: board private structure
  2380. **/
  2381. static void i40e_stop_misc_vector(struct i40e_pf *pf)
  2382. {
  2383. /* Disable ICR 0 */
  2384. wr32(&pf->hw, I40E_PFINT_ICR0_ENA, 0);
  2385. i40e_flush(&pf->hw);
  2386. }
  2387. /**
  2388. * i40e_intr - MSI/Legacy and non-queue interrupt handler
  2389. * @irq: interrupt number
  2390. * @data: pointer to a q_vector
  2391. *
  2392. * This is the handler used for all MSI/Legacy interrupts, and deals
  2393. * with both queue and non-queue interrupts. This is also used in
  2394. * MSIX mode to handle the non-queue interrupts.
  2395. **/
  2396. static irqreturn_t i40e_intr(int irq, void *data)
  2397. {
  2398. struct i40e_pf *pf = (struct i40e_pf *)data;
  2399. struct i40e_hw *hw = &pf->hw;
  2400. u32 icr0, icr0_remaining;
  2401. u32 val, ena_mask;
  2402. icr0 = rd32(hw, I40E_PFINT_ICR0);
  2403. val = rd32(hw, I40E_PFINT_DYN_CTL0);
  2404. val = val | I40E_PFINT_DYN_CTL0_CLEARPBA_MASK;
  2405. wr32(hw, I40E_PFINT_DYN_CTL0, val);
  2406. /* if sharing a legacy IRQ, we might get called w/o an intr pending */
  2407. if ((icr0 & I40E_PFINT_ICR0_INTEVENT_MASK) == 0)
  2408. return IRQ_NONE;
  2409. ena_mask = rd32(hw, I40E_PFINT_ICR0_ENA);
  2410. /* only q0 is used in MSI/Legacy mode, and none are used in MSIX */
  2411. if (icr0 & I40E_PFINT_ICR0_QUEUE_0_MASK) {
  2412. /* temporarily disable queue cause for NAPI processing */
  2413. u32 qval = rd32(hw, I40E_QINT_RQCTL(0));
  2414. qval &= ~I40E_QINT_RQCTL_CAUSE_ENA_MASK;
  2415. wr32(hw, I40E_QINT_RQCTL(0), qval);
  2416. qval = rd32(hw, I40E_QINT_TQCTL(0));
  2417. qval &= ~I40E_QINT_TQCTL_CAUSE_ENA_MASK;
  2418. wr32(hw, I40E_QINT_TQCTL(0), qval);
  2419. if (!test_bit(__I40E_DOWN, &pf->state))
  2420. napi_schedule(&pf->vsi[pf->lan_vsi]->q_vectors[0]->napi);
  2421. }
  2422. if (icr0 & I40E_PFINT_ICR0_ADMINQ_MASK) {
  2423. ena_mask &= ~I40E_PFINT_ICR0_ENA_ADMINQ_MASK;
  2424. set_bit(__I40E_ADMINQ_EVENT_PENDING, &pf->state);
  2425. }
  2426. if (icr0 & I40E_PFINT_ICR0_MAL_DETECT_MASK) {
  2427. ena_mask &= ~I40E_PFINT_ICR0_ENA_MAL_DETECT_MASK;
  2428. set_bit(__I40E_MDD_EVENT_PENDING, &pf->state);
  2429. }
  2430. if (icr0 & I40E_PFINT_ICR0_VFLR_MASK) {
  2431. ena_mask &= ~I40E_PFINT_ICR0_ENA_VFLR_MASK;
  2432. set_bit(__I40E_VFLR_EVENT_PENDING, &pf->state);
  2433. }
  2434. if (icr0 & I40E_PFINT_ICR0_GRST_MASK) {
  2435. if (!test_bit(__I40E_RESET_RECOVERY_PENDING, &pf->state))
  2436. set_bit(__I40E_RESET_INTR_RECEIVED, &pf->state);
  2437. ena_mask &= ~I40E_PFINT_ICR0_ENA_GRST_MASK;
  2438. val = rd32(hw, I40E_GLGEN_RSTAT);
  2439. val = (val & I40E_GLGEN_RSTAT_RESET_TYPE_MASK)
  2440. >> I40E_GLGEN_RSTAT_RESET_TYPE_SHIFT;
  2441. if (val & I40E_RESET_CORER)
  2442. pf->corer_count++;
  2443. else if (val & I40E_RESET_GLOBR)
  2444. pf->globr_count++;
  2445. else if (val & I40E_RESET_EMPR)
  2446. pf->empr_count++;
  2447. }
  2448. /* If a critical error is pending we have no choice but to reset the
  2449. * device.
  2450. * Report and mask out any remaining unexpected interrupts.
  2451. */
  2452. icr0_remaining = icr0 & ena_mask;
  2453. if (icr0_remaining) {
  2454. dev_info(&pf->pdev->dev, "unhandled interrupt icr0=0x%08x\n",
  2455. icr0_remaining);
  2456. if ((icr0_remaining & I40E_PFINT_ICR0_HMC_ERR_MASK) ||
  2457. (icr0_remaining & I40E_PFINT_ICR0_PE_CRITERR_MASK) ||
  2458. (icr0_remaining & I40E_PFINT_ICR0_PCI_EXCEPTION_MASK) ||
  2459. (icr0_remaining & I40E_PFINT_ICR0_ECC_ERR_MASK) ||
  2460. (icr0_remaining & I40E_PFINT_ICR0_MAL_DETECT_MASK)) {
  2461. if (icr0 & I40E_PFINT_ICR0_HMC_ERR_MASK) {
  2462. dev_info(&pf->pdev->dev, "HMC error interrupt\n");
  2463. } else {
  2464. dev_info(&pf->pdev->dev, "device will be reset\n");
  2465. set_bit(__I40E_PF_RESET_REQUESTED, &pf->state);
  2466. i40e_service_event_schedule(pf);
  2467. }
  2468. }
  2469. ena_mask &= ~icr0_remaining;
  2470. }
  2471. /* re-enable interrupt causes */
  2472. wr32(hw, I40E_PFINT_ICR0_ENA, ena_mask);
  2473. if (!test_bit(__I40E_DOWN, &pf->state)) {
  2474. i40e_service_event_schedule(pf);
  2475. i40e_irq_dynamic_enable_icr0(pf);
  2476. }
  2477. return IRQ_HANDLED;
  2478. }
  2479. /**
  2480. * i40e_map_vector_to_qp - Assigns the queue pair to the vector
  2481. * @vsi: the VSI being configured
  2482. * @v_idx: vector index
  2483. * @qp_idx: queue pair index
  2484. **/
  2485. static void map_vector_to_qp(struct i40e_vsi *vsi, int v_idx, int qp_idx)
  2486. {
  2487. struct i40e_q_vector *q_vector = vsi->q_vectors[v_idx];
  2488. struct i40e_ring *tx_ring = vsi->tx_rings[qp_idx];
  2489. struct i40e_ring *rx_ring = vsi->rx_rings[qp_idx];
  2490. tx_ring->q_vector = q_vector;
  2491. tx_ring->next = q_vector->tx.ring;
  2492. q_vector->tx.ring = tx_ring;
  2493. q_vector->tx.count++;
  2494. rx_ring->q_vector = q_vector;
  2495. rx_ring->next = q_vector->rx.ring;
  2496. q_vector->rx.ring = rx_ring;
  2497. q_vector->rx.count++;
  2498. }
  2499. /**
  2500. * i40e_vsi_map_rings_to_vectors - Maps descriptor rings to vectors
  2501. * @vsi: the VSI being configured
  2502. *
  2503. * This function maps descriptor rings to the queue-specific vectors
  2504. * we were allotted through the MSI-X enabling code. Ideally, we'd have
  2505. * one vector per queue pair, but on a constrained vector budget, we
  2506. * group the queue pairs as "efficiently" as possible.
  2507. **/
  2508. static void i40e_vsi_map_rings_to_vectors(struct i40e_vsi *vsi)
  2509. {
  2510. int qp_remaining = vsi->num_queue_pairs;
  2511. int q_vectors = vsi->num_q_vectors;
  2512. int num_ringpairs;
  2513. int v_start = 0;
  2514. int qp_idx = 0;
  2515. /* If we don't have enough vectors for a 1-to-1 mapping, we'll have to
  2516. * group them so there are multiple queues per vector.
  2517. */
  2518. for (; v_start < q_vectors && qp_remaining; v_start++) {
  2519. struct i40e_q_vector *q_vector = vsi->q_vectors[v_start];
  2520. num_ringpairs = DIV_ROUND_UP(qp_remaining, q_vectors - v_start);
  2521. q_vector->num_ringpairs = num_ringpairs;
  2522. q_vector->rx.count = 0;
  2523. q_vector->tx.count = 0;
  2524. q_vector->rx.ring = NULL;
  2525. q_vector->tx.ring = NULL;
  2526. while (num_ringpairs--) {
  2527. map_vector_to_qp(vsi, v_start, qp_idx);
  2528. qp_idx++;
  2529. qp_remaining--;
  2530. }
  2531. }
  2532. }
  2533. /**
  2534. * i40e_vsi_request_irq - Request IRQ from the OS
  2535. * @vsi: the VSI being configured
  2536. * @basename: name for the vector
  2537. **/
  2538. static int i40e_vsi_request_irq(struct i40e_vsi *vsi, char *basename)
  2539. {
  2540. struct i40e_pf *pf = vsi->back;
  2541. int err;
  2542. if (pf->flags & I40E_FLAG_MSIX_ENABLED)
  2543. err = i40e_vsi_request_irq_msix(vsi, basename);
  2544. else if (pf->flags & I40E_FLAG_MSI_ENABLED)
  2545. err = request_irq(pf->pdev->irq, i40e_intr, 0,
  2546. pf->misc_int_name, pf);
  2547. else
  2548. err = request_irq(pf->pdev->irq, i40e_intr, IRQF_SHARED,
  2549. pf->misc_int_name, pf);
  2550. if (err)
  2551. dev_info(&pf->pdev->dev, "request_irq failed, Error %d\n", err);
  2552. return err;
  2553. }
  2554. #ifdef CONFIG_NET_POLL_CONTROLLER
  2555. /**
  2556. * i40e_netpoll - A Polling 'interrupt'handler
  2557. * @netdev: network interface device structure
  2558. *
  2559. * This is used by netconsole to send skbs without having to re-enable
  2560. * interrupts. It's not called while the normal interrupt routine is executing.
  2561. **/
  2562. static void i40e_netpoll(struct net_device *netdev)
  2563. {
  2564. struct i40e_netdev_priv *np = netdev_priv(netdev);
  2565. struct i40e_vsi *vsi = np->vsi;
  2566. struct i40e_pf *pf = vsi->back;
  2567. int i;
  2568. /* if interface is down do nothing */
  2569. if (test_bit(__I40E_DOWN, &vsi->state))
  2570. return;
  2571. pf->flags |= I40E_FLAG_IN_NETPOLL;
  2572. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  2573. for (i = 0; i < vsi->num_q_vectors; i++)
  2574. i40e_msix_clean_rings(0, vsi->q_vectors[i]);
  2575. } else {
  2576. i40e_intr(pf->pdev->irq, netdev);
  2577. }
  2578. pf->flags &= ~I40E_FLAG_IN_NETPOLL;
  2579. }
  2580. #endif
  2581. /**
  2582. * i40e_vsi_control_tx - Start or stop a VSI's rings
  2583. * @vsi: the VSI being configured
  2584. * @enable: start or stop the rings
  2585. **/
  2586. static int i40e_vsi_control_tx(struct i40e_vsi *vsi, bool enable)
  2587. {
  2588. struct i40e_pf *pf = vsi->back;
  2589. struct i40e_hw *hw = &pf->hw;
  2590. int i, j, pf_q;
  2591. u32 tx_reg;
  2592. pf_q = vsi->base_queue;
  2593. for (i = 0; i < vsi->num_queue_pairs; i++, pf_q++) {
  2594. j = 1000;
  2595. do {
  2596. usleep_range(1000, 2000);
  2597. tx_reg = rd32(hw, I40E_QTX_ENA(pf_q));
  2598. } while (j-- && ((tx_reg >> I40E_QTX_ENA_QENA_REQ_SHIFT)
  2599. ^ (tx_reg >> I40E_QTX_ENA_QENA_STAT_SHIFT)) & 1);
  2600. if (enable) {
  2601. /* is STAT set ? */
  2602. if ((tx_reg & I40E_QTX_ENA_QENA_STAT_MASK)) {
  2603. dev_info(&pf->pdev->dev,
  2604. "Tx %d already enabled\n", i);
  2605. continue;
  2606. }
  2607. } else {
  2608. /* is !STAT set ? */
  2609. if (!(tx_reg & I40E_QTX_ENA_QENA_STAT_MASK)) {
  2610. dev_info(&pf->pdev->dev,
  2611. "Tx %d already disabled\n", i);
  2612. continue;
  2613. }
  2614. }
  2615. /* turn on/off the queue */
  2616. if (enable)
  2617. tx_reg |= I40E_QTX_ENA_QENA_REQ_MASK |
  2618. I40E_QTX_ENA_QENA_STAT_MASK;
  2619. else
  2620. tx_reg &= ~I40E_QTX_ENA_QENA_REQ_MASK;
  2621. wr32(hw, I40E_QTX_ENA(pf_q), tx_reg);
  2622. /* wait for the change to finish */
  2623. for (j = 0; j < 10; j++) {
  2624. tx_reg = rd32(hw, I40E_QTX_ENA(pf_q));
  2625. if (enable) {
  2626. if ((tx_reg & I40E_QTX_ENA_QENA_STAT_MASK))
  2627. break;
  2628. } else {
  2629. if (!(tx_reg & I40E_QTX_ENA_QENA_STAT_MASK))
  2630. break;
  2631. }
  2632. udelay(10);
  2633. }
  2634. if (j >= 10) {
  2635. dev_info(&pf->pdev->dev, "Tx ring %d %sable timeout\n",
  2636. pf_q, (enable ? "en" : "dis"));
  2637. return -ETIMEDOUT;
  2638. }
  2639. }
  2640. return 0;
  2641. }
  2642. /**
  2643. * i40e_vsi_control_rx - Start or stop a VSI's rings
  2644. * @vsi: the VSI being configured
  2645. * @enable: start or stop the rings
  2646. **/
  2647. static int i40e_vsi_control_rx(struct i40e_vsi *vsi, bool enable)
  2648. {
  2649. struct i40e_pf *pf = vsi->back;
  2650. struct i40e_hw *hw = &pf->hw;
  2651. int i, j, pf_q;
  2652. u32 rx_reg;
  2653. pf_q = vsi->base_queue;
  2654. for (i = 0; i < vsi->num_queue_pairs; i++, pf_q++) {
  2655. j = 1000;
  2656. do {
  2657. usleep_range(1000, 2000);
  2658. rx_reg = rd32(hw, I40E_QRX_ENA(pf_q));
  2659. } while (j-- && ((rx_reg >> I40E_QRX_ENA_QENA_REQ_SHIFT)
  2660. ^ (rx_reg >> I40E_QRX_ENA_QENA_STAT_SHIFT)) & 1);
  2661. if (enable) {
  2662. /* is STAT set ? */
  2663. if ((rx_reg & I40E_QRX_ENA_QENA_STAT_MASK))
  2664. continue;
  2665. } else {
  2666. /* is !STAT set ? */
  2667. if (!(rx_reg & I40E_QRX_ENA_QENA_STAT_MASK))
  2668. continue;
  2669. }
  2670. /* turn on/off the queue */
  2671. if (enable)
  2672. rx_reg |= I40E_QRX_ENA_QENA_REQ_MASK |
  2673. I40E_QRX_ENA_QENA_STAT_MASK;
  2674. else
  2675. rx_reg &= ~(I40E_QRX_ENA_QENA_REQ_MASK |
  2676. I40E_QRX_ENA_QENA_STAT_MASK);
  2677. wr32(hw, I40E_QRX_ENA(pf_q), rx_reg);
  2678. /* wait for the change to finish */
  2679. for (j = 0; j < 10; j++) {
  2680. rx_reg = rd32(hw, I40E_QRX_ENA(pf_q));
  2681. if (enable) {
  2682. if ((rx_reg & I40E_QRX_ENA_QENA_STAT_MASK))
  2683. break;
  2684. } else {
  2685. if (!(rx_reg & I40E_QRX_ENA_QENA_STAT_MASK))
  2686. break;
  2687. }
  2688. udelay(10);
  2689. }
  2690. if (j >= 10) {
  2691. dev_info(&pf->pdev->dev, "Rx ring %d %sable timeout\n",
  2692. pf_q, (enable ? "en" : "dis"));
  2693. return -ETIMEDOUT;
  2694. }
  2695. }
  2696. return 0;
  2697. }
  2698. /**
  2699. * i40e_vsi_control_rings - Start or stop a VSI's rings
  2700. * @vsi: the VSI being configured
  2701. * @enable: start or stop the rings
  2702. **/
  2703. static int i40e_vsi_control_rings(struct i40e_vsi *vsi, bool request)
  2704. {
  2705. int ret;
  2706. /* do rx first for enable and last for disable */
  2707. if (request) {
  2708. ret = i40e_vsi_control_rx(vsi, request);
  2709. if (ret)
  2710. return ret;
  2711. ret = i40e_vsi_control_tx(vsi, request);
  2712. } else {
  2713. ret = i40e_vsi_control_tx(vsi, request);
  2714. if (ret)
  2715. return ret;
  2716. ret = i40e_vsi_control_rx(vsi, request);
  2717. }
  2718. return ret;
  2719. }
  2720. /**
  2721. * i40e_vsi_free_irq - Free the irq association with the OS
  2722. * @vsi: the VSI being configured
  2723. **/
  2724. static void i40e_vsi_free_irq(struct i40e_vsi *vsi)
  2725. {
  2726. struct i40e_pf *pf = vsi->back;
  2727. struct i40e_hw *hw = &pf->hw;
  2728. int base = vsi->base_vector;
  2729. u32 val, qp;
  2730. int i;
  2731. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  2732. if (!vsi->q_vectors)
  2733. return;
  2734. for (i = 0; i < vsi->num_q_vectors; i++) {
  2735. u16 vector = i + base;
  2736. /* free only the irqs that were actually requested */
  2737. if (vsi->q_vectors[i]->num_ringpairs == 0)
  2738. continue;
  2739. /* clear the affinity_mask in the IRQ descriptor */
  2740. irq_set_affinity_hint(pf->msix_entries[vector].vector,
  2741. NULL);
  2742. free_irq(pf->msix_entries[vector].vector,
  2743. vsi->q_vectors[i]);
  2744. /* Tear down the interrupt queue link list
  2745. *
  2746. * We know that they come in pairs and always
  2747. * the Rx first, then the Tx. To clear the
  2748. * link list, stick the EOL value into the
  2749. * next_q field of the registers.
  2750. */
  2751. val = rd32(hw, I40E_PFINT_LNKLSTN(vector - 1));
  2752. qp = (val & I40E_PFINT_LNKLSTN_FIRSTQ_INDX_MASK)
  2753. >> I40E_PFINT_LNKLSTN_FIRSTQ_INDX_SHIFT;
  2754. val |= I40E_QUEUE_END_OF_LIST
  2755. << I40E_PFINT_LNKLSTN_FIRSTQ_INDX_SHIFT;
  2756. wr32(hw, I40E_PFINT_LNKLSTN(vector - 1), val);
  2757. while (qp != I40E_QUEUE_END_OF_LIST) {
  2758. u32 next;
  2759. val = rd32(hw, I40E_QINT_RQCTL(qp));
  2760. val &= ~(I40E_QINT_RQCTL_MSIX_INDX_MASK |
  2761. I40E_QINT_RQCTL_MSIX0_INDX_MASK |
  2762. I40E_QINT_RQCTL_CAUSE_ENA_MASK |
  2763. I40E_QINT_RQCTL_INTEVENT_MASK);
  2764. val |= (I40E_QINT_RQCTL_ITR_INDX_MASK |
  2765. I40E_QINT_RQCTL_NEXTQ_INDX_MASK);
  2766. wr32(hw, I40E_QINT_RQCTL(qp), val);
  2767. val = rd32(hw, I40E_QINT_TQCTL(qp));
  2768. next = (val & I40E_QINT_TQCTL_NEXTQ_INDX_MASK)
  2769. >> I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT;
  2770. val &= ~(I40E_QINT_TQCTL_MSIX_INDX_MASK |
  2771. I40E_QINT_TQCTL_MSIX0_INDX_MASK |
  2772. I40E_QINT_TQCTL_CAUSE_ENA_MASK |
  2773. I40E_QINT_TQCTL_INTEVENT_MASK);
  2774. val |= (I40E_QINT_TQCTL_ITR_INDX_MASK |
  2775. I40E_QINT_TQCTL_NEXTQ_INDX_MASK);
  2776. wr32(hw, I40E_QINT_TQCTL(qp), val);
  2777. qp = next;
  2778. }
  2779. }
  2780. } else {
  2781. free_irq(pf->pdev->irq, pf);
  2782. val = rd32(hw, I40E_PFINT_LNKLST0);
  2783. qp = (val & I40E_PFINT_LNKLSTN_FIRSTQ_INDX_MASK)
  2784. >> I40E_PFINT_LNKLSTN_FIRSTQ_INDX_SHIFT;
  2785. val |= I40E_QUEUE_END_OF_LIST
  2786. << I40E_PFINT_LNKLST0_FIRSTQ_INDX_SHIFT;
  2787. wr32(hw, I40E_PFINT_LNKLST0, val);
  2788. val = rd32(hw, I40E_QINT_RQCTL(qp));
  2789. val &= ~(I40E_QINT_RQCTL_MSIX_INDX_MASK |
  2790. I40E_QINT_RQCTL_MSIX0_INDX_MASK |
  2791. I40E_QINT_RQCTL_CAUSE_ENA_MASK |
  2792. I40E_QINT_RQCTL_INTEVENT_MASK);
  2793. val |= (I40E_QINT_RQCTL_ITR_INDX_MASK |
  2794. I40E_QINT_RQCTL_NEXTQ_INDX_MASK);
  2795. wr32(hw, I40E_QINT_RQCTL(qp), val);
  2796. val = rd32(hw, I40E_QINT_TQCTL(qp));
  2797. val &= ~(I40E_QINT_TQCTL_MSIX_INDX_MASK |
  2798. I40E_QINT_TQCTL_MSIX0_INDX_MASK |
  2799. I40E_QINT_TQCTL_CAUSE_ENA_MASK |
  2800. I40E_QINT_TQCTL_INTEVENT_MASK);
  2801. val |= (I40E_QINT_TQCTL_ITR_INDX_MASK |
  2802. I40E_QINT_TQCTL_NEXTQ_INDX_MASK);
  2803. wr32(hw, I40E_QINT_TQCTL(qp), val);
  2804. }
  2805. }
  2806. /**
  2807. * i40e_free_q_vector - Free memory allocated for specific interrupt vector
  2808. * @vsi: the VSI being configured
  2809. * @v_idx: Index of vector to be freed
  2810. *
  2811. * This function frees the memory allocated to the q_vector. In addition if
  2812. * NAPI is enabled it will delete any references to the NAPI struct prior
  2813. * to freeing the q_vector.
  2814. **/
  2815. static void i40e_free_q_vector(struct i40e_vsi *vsi, int v_idx)
  2816. {
  2817. struct i40e_q_vector *q_vector = vsi->q_vectors[v_idx];
  2818. struct i40e_ring *ring;
  2819. if (!q_vector)
  2820. return;
  2821. /* disassociate q_vector from rings */
  2822. i40e_for_each_ring(ring, q_vector->tx)
  2823. ring->q_vector = NULL;
  2824. i40e_for_each_ring(ring, q_vector->rx)
  2825. ring->q_vector = NULL;
  2826. /* only VSI w/ an associated netdev is set up w/ NAPI */
  2827. if (vsi->netdev)
  2828. netif_napi_del(&q_vector->napi);
  2829. vsi->q_vectors[v_idx] = NULL;
  2830. kfree_rcu(q_vector, rcu);
  2831. }
  2832. /**
  2833. * i40e_vsi_free_q_vectors - Free memory allocated for interrupt vectors
  2834. * @vsi: the VSI being un-configured
  2835. *
  2836. * This frees the memory allocated to the q_vectors and
  2837. * deletes references to the NAPI struct.
  2838. **/
  2839. static void i40e_vsi_free_q_vectors(struct i40e_vsi *vsi)
  2840. {
  2841. int v_idx;
  2842. for (v_idx = 0; v_idx < vsi->num_q_vectors; v_idx++)
  2843. i40e_free_q_vector(vsi, v_idx);
  2844. }
  2845. /**
  2846. * i40e_reset_interrupt_capability - Disable interrupt setup in OS
  2847. * @pf: board private structure
  2848. **/
  2849. static void i40e_reset_interrupt_capability(struct i40e_pf *pf)
  2850. {
  2851. /* If we're in Legacy mode, the interrupt was cleaned in vsi_close */
  2852. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  2853. pci_disable_msix(pf->pdev);
  2854. kfree(pf->msix_entries);
  2855. pf->msix_entries = NULL;
  2856. } else if (pf->flags & I40E_FLAG_MSI_ENABLED) {
  2857. pci_disable_msi(pf->pdev);
  2858. }
  2859. pf->flags &= ~(I40E_FLAG_MSIX_ENABLED | I40E_FLAG_MSI_ENABLED);
  2860. }
  2861. /**
  2862. * i40e_clear_interrupt_scheme - Clear the current interrupt scheme settings
  2863. * @pf: board private structure
  2864. *
  2865. * We go through and clear interrupt specific resources and reset the structure
  2866. * to pre-load conditions
  2867. **/
  2868. static void i40e_clear_interrupt_scheme(struct i40e_pf *pf)
  2869. {
  2870. int i;
  2871. i40e_put_lump(pf->irq_pile, 0, I40E_PILE_VALID_BIT-1);
  2872. for (i = 0; i < pf->hw.func_caps.num_vsis; i++)
  2873. if (pf->vsi[i])
  2874. i40e_vsi_free_q_vectors(pf->vsi[i]);
  2875. i40e_reset_interrupt_capability(pf);
  2876. }
  2877. /**
  2878. * i40e_napi_enable_all - Enable NAPI for all q_vectors in the VSI
  2879. * @vsi: the VSI being configured
  2880. **/
  2881. static void i40e_napi_enable_all(struct i40e_vsi *vsi)
  2882. {
  2883. int q_idx;
  2884. if (!vsi->netdev)
  2885. return;
  2886. for (q_idx = 0; q_idx < vsi->num_q_vectors; q_idx++)
  2887. napi_enable(&vsi->q_vectors[q_idx]->napi);
  2888. }
  2889. /**
  2890. * i40e_napi_disable_all - Disable NAPI for all q_vectors in the VSI
  2891. * @vsi: the VSI being configured
  2892. **/
  2893. static void i40e_napi_disable_all(struct i40e_vsi *vsi)
  2894. {
  2895. int q_idx;
  2896. if (!vsi->netdev)
  2897. return;
  2898. for (q_idx = 0; q_idx < vsi->num_q_vectors; q_idx++)
  2899. napi_disable(&vsi->q_vectors[q_idx]->napi);
  2900. }
  2901. /**
  2902. * i40e_quiesce_vsi - Pause a given VSI
  2903. * @vsi: the VSI being paused
  2904. **/
  2905. static void i40e_quiesce_vsi(struct i40e_vsi *vsi)
  2906. {
  2907. if (test_bit(__I40E_DOWN, &vsi->state))
  2908. return;
  2909. set_bit(__I40E_NEEDS_RESTART, &vsi->state);
  2910. if (vsi->netdev && netif_running(vsi->netdev)) {
  2911. vsi->netdev->netdev_ops->ndo_stop(vsi->netdev);
  2912. } else {
  2913. set_bit(__I40E_DOWN, &vsi->state);
  2914. i40e_down(vsi);
  2915. }
  2916. }
  2917. /**
  2918. * i40e_unquiesce_vsi - Resume a given VSI
  2919. * @vsi: the VSI being resumed
  2920. **/
  2921. static void i40e_unquiesce_vsi(struct i40e_vsi *vsi)
  2922. {
  2923. if (!test_bit(__I40E_NEEDS_RESTART, &vsi->state))
  2924. return;
  2925. clear_bit(__I40E_NEEDS_RESTART, &vsi->state);
  2926. if (vsi->netdev && netif_running(vsi->netdev))
  2927. vsi->netdev->netdev_ops->ndo_open(vsi->netdev);
  2928. else
  2929. i40e_up(vsi); /* this clears the DOWN bit */
  2930. }
  2931. /**
  2932. * i40e_pf_quiesce_all_vsi - Pause all VSIs on a PF
  2933. * @pf: the PF
  2934. **/
  2935. static void i40e_pf_quiesce_all_vsi(struct i40e_pf *pf)
  2936. {
  2937. int v;
  2938. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  2939. if (pf->vsi[v])
  2940. i40e_quiesce_vsi(pf->vsi[v]);
  2941. }
  2942. }
  2943. /**
  2944. * i40e_pf_unquiesce_all_vsi - Resume all VSIs on a PF
  2945. * @pf: the PF
  2946. **/
  2947. static void i40e_pf_unquiesce_all_vsi(struct i40e_pf *pf)
  2948. {
  2949. int v;
  2950. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  2951. if (pf->vsi[v])
  2952. i40e_unquiesce_vsi(pf->vsi[v]);
  2953. }
  2954. }
  2955. /**
  2956. * i40e_dcb_get_num_tc - Get the number of TCs from DCBx config
  2957. * @dcbcfg: the corresponding DCBx configuration structure
  2958. *
  2959. * Return the number of TCs from given DCBx configuration
  2960. **/
  2961. static u8 i40e_dcb_get_num_tc(struct i40e_dcbx_config *dcbcfg)
  2962. {
  2963. u8 num_tc = 0;
  2964. int i;
  2965. /* Scan the ETS Config Priority Table to find
  2966. * traffic class enabled for a given priority
  2967. * and use the traffic class index to get the
  2968. * number of traffic classes enabled
  2969. */
  2970. for (i = 0; i < I40E_MAX_USER_PRIORITY; i++) {
  2971. if (dcbcfg->etscfg.prioritytable[i] > num_tc)
  2972. num_tc = dcbcfg->etscfg.prioritytable[i];
  2973. }
  2974. /* Traffic class index starts from zero so
  2975. * increment to return the actual count
  2976. */
  2977. return num_tc + 1;
  2978. }
  2979. /**
  2980. * i40e_dcb_get_enabled_tc - Get enabled traffic classes
  2981. * @dcbcfg: the corresponding DCBx configuration structure
  2982. *
  2983. * Query the current DCB configuration and return the number of
  2984. * traffic classes enabled from the given DCBX config
  2985. **/
  2986. static u8 i40e_dcb_get_enabled_tc(struct i40e_dcbx_config *dcbcfg)
  2987. {
  2988. u8 num_tc = i40e_dcb_get_num_tc(dcbcfg);
  2989. u8 enabled_tc = 1;
  2990. u8 i;
  2991. for (i = 0; i < num_tc; i++)
  2992. enabled_tc |= 1 << i;
  2993. return enabled_tc;
  2994. }
  2995. /**
  2996. * i40e_pf_get_num_tc - Get enabled traffic classes for PF
  2997. * @pf: PF being queried
  2998. *
  2999. * Return number of traffic classes enabled for the given PF
  3000. **/
  3001. static u8 i40e_pf_get_num_tc(struct i40e_pf *pf)
  3002. {
  3003. struct i40e_hw *hw = &pf->hw;
  3004. u8 i, enabled_tc;
  3005. u8 num_tc = 0;
  3006. struct i40e_dcbx_config *dcbcfg = &hw->local_dcbx_config;
  3007. /* If DCB is not enabled then always in single TC */
  3008. if (!(pf->flags & I40E_FLAG_DCB_ENABLED))
  3009. return 1;
  3010. /* MFP mode return count of enabled TCs for this PF */
  3011. if (pf->flags & I40E_FLAG_MFP_ENABLED) {
  3012. enabled_tc = pf->hw.func_caps.enabled_tcmap;
  3013. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  3014. if (enabled_tc & (1 << i))
  3015. num_tc++;
  3016. }
  3017. return num_tc;
  3018. }
  3019. /* SFP mode will be enabled for all TCs on port */
  3020. return i40e_dcb_get_num_tc(dcbcfg);
  3021. }
  3022. /**
  3023. * i40e_pf_get_default_tc - Get bitmap for first enabled TC
  3024. * @pf: PF being queried
  3025. *
  3026. * Return a bitmap for first enabled traffic class for this PF.
  3027. **/
  3028. static u8 i40e_pf_get_default_tc(struct i40e_pf *pf)
  3029. {
  3030. u8 enabled_tc = pf->hw.func_caps.enabled_tcmap;
  3031. u8 i = 0;
  3032. if (!enabled_tc)
  3033. return 0x1; /* TC0 */
  3034. /* Find the first enabled TC */
  3035. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  3036. if (enabled_tc & (1 << i))
  3037. break;
  3038. }
  3039. return 1 << i;
  3040. }
  3041. /**
  3042. * i40e_pf_get_pf_tc_map - Get bitmap for enabled traffic classes
  3043. * @pf: PF being queried
  3044. *
  3045. * Return a bitmap for enabled traffic classes for this PF.
  3046. **/
  3047. static u8 i40e_pf_get_tc_map(struct i40e_pf *pf)
  3048. {
  3049. /* If DCB is not enabled for this PF then just return default TC */
  3050. if (!(pf->flags & I40E_FLAG_DCB_ENABLED))
  3051. return i40e_pf_get_default_tc(pf);
  3052. /* MFP mode will have enabled TCs set by FW */
  3053. if (pf->flags & I40E_FLAG_MFP_ENABLED)
  3054. return pf->hw.func_caps.enabled_tcmap;
  3055. /* SFP mode we want PF to be enabled for all TCs */
  3056. return i40e_dcb_get_enabled_tc(&pf->hw.local_dcbx_config);
  3057. }
  3058. /**
  3059. * i40e_vsi_get_bw_info - Query VSI BW Information
  3060. * @vsi: the VSI being queried
  3061. *
  3062. * Returns 0 on success, negative value on failure
  3063. **/
  3064. static int i40e_vsi_get_bw_info(struct i40e_vsi *vsi)
  3065. {
  3066. struct i40e_aqc_query_vsi_ets_sla_config_resp bw_ets_config = {0};
  3067. struct i40e_aqc_query_vsi_bw_config_resp bw_config = {0};
  3068. struct i40e_pf *pf = vsi->back;
  3069. struct i40e_hw *hw = &pf->hw;
  3070. i40e_status aq_ret;
  3071. u32 tc_bw_max;
  3072. int i;
  3073. /* Get the VSI level BW configuration */
  3074. aq_ret = i40e_aq_query_vsi_bw_config(hw, vsi->seid, &bw_config, NULL);
  3075. if (aq_ret) {
  3076. dev_info(&pf->pdev->dev,
  3077. "couldn't get pf vsi bw config, err %d, aq_err %d\n",
  3078. aq_ret, pf->hw.aq.asq_last_status);
  3079. return -EINVAL;
  3080. }
  3081. /* Get the VSI level BW configuration per TC */
  3082. aq_ret = i40e_aq_query_vsi_ets_sla_config(hw, vsi->seid, &bw_ets_config,
  3083. NULL);
  3084. if (aq_ret) {
  3085. dev_info(&pf->pdev->dev,
  3086. "couldn't get pf vsi ets bw config, err %d, aq_err %d\n",
  3087. aq_ret, pf->hw.aq.asq_last_status);
  3088. return -EINVAL;
  3089. }
  3090. if (bw_config.tc_valid_bits != bw_ets_config.tc_valid_bits) {
  3091. dev_info(&pf->pdev->dev,
  3092. "Enabled TCs mismatch from querying VSI BW info 0x%08x 0x%08x\n",
  3093. bw_config.tc_valid_bits,
  3094. bw_ets_config.tc_valid_bits);
  3095. /* Still continuing */
  3096. }
  3097. vsi->bw_limit = le16_to_cpu(bw_config.port_bw_limit);
  3098. vsi->bw_max_quanta = bw_config.max_bw;
  3099. tc_bw_max = le16_to_cpu(bw_ets_config.tc_bw_max[0]) |
  3100. (le16_to_cpu(bw_ets_config.tc_bw_max[1]) << 16);
  3101. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  3102. vsi->bw_ets_share_credits[i] = bw_ets_config.share_credits[i];
  3103. vsi->bw_ets_limit_credits[i] =
  3104. le16_to_cpu(bw_ets_config.credits[i]);
  3105. /* 3 bits out of 4 for each TC */
  3106. vsi->bw_ets_max_quanta[i] = (u8)((tc_bw_max >> (i*4)) & 0x7);
  3107. }
  3108. return 0;
  3109. }
  3110. /**
  3111. * i40e_vsi_configure_bw_alloc - Configure VSI BW allocation per TC
  3112. * @vsi: the VSI being configured
  3113. * @enabled_tc: TC bitmap
  3114. * @bw_credits: BW shared credits per TC
  3115. *
  3116. * Returns 0 on success, negative value on failure
  3117. **/
  3118. static int i40e_vsi_configure_bw_alloc(struct i40e_vsi *vsi, u8 enabled_tc,
  3119. u8 *bw_share)
  3120. {
  3121. struct i40e_aqc_configure_vsi_tc_bw_data bw_data;
  3122. i40e_status aq_ret;
  3123. int i;
  3124. bw_data.tc_valid_bits = enabled_tc;
  3125. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++)
  3126. bw_data.tc_bw_credits[i] = bw_share[i];
  3127. aq_ret = i40e_aq_config_vsi_tc_bw(&vsi->back->hw, vsi->seid, &bw_data,
  3128. NULL);
  3129. if (aq_ret) {
  3130. dev_info(&vsi->back->pdev->dev,
  3131. "%s: AQ command Config VSI BW allocation per TC failed = %d\n",
  3132. __func__, vsi->back->hw.aq.asq_last_status);
  3133. return -EINVAL;
  3134. }
  3135. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++)
  3136. vsi->info.qs_handle[i] = bw_data.qs_handles[i];
  3137. return 0;
  3138. }
  3139. /**
  3140. * i40e_vsi_config_netdev_tc - Setup the netdev TC configuration
  3141. * @vsi: the VSI being configured
  3142. * @enabled_tc: TC map to be enabled
  3143. *
  3144. **/
  3145. static void i40e_vsi_config_netdev_tc(struct i40e_vsi *vsi, u8 enabled_tc)
  3146. {
  3147. struct net_device *netdev = vsi->netdev;
  3148. struct i40e_pf *pf = vsi->back;
  3149. struct i40e_hw *hw = &pf->hw;
  3150. u8 netdev_tc = 0;
  3151. int i;
  3152. struct i40e_dcbx_config *dcbcfg = &hw->local_dcbx_config;
  3153. if (!netdev)
  3154. return;
  3155. if (!enabled_tc) {
  3156. netdev_reset_tc(netdev);
  3157. return;
  3158. }
  3159. /* Set up actual enabled TCs on the VSI */
  3160. if (netdev_set_num_tc(netdev, vsi->tc_config.numtc))
  3161. return;
  3162. /* set per TC queues for the VSI */
  3163. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  3164. /* Only set TC queues for enabled tcs
  3165. *
  3166. * e.g. For a VSI that has TC0 and TC3 enabled the
  3167. * enabled_tc bitmap would be 0x00001001; the driver
  3168. * will set the numtc for netdev as 2 that will be
  3169. * referenced by the netdev layer as TC 0 and 1.
  3170. */
  3171. if (vsi->tc_config.enabled_tc & (1 << i))
  3172. netdev_set_tc_queue(netdev,
  3173. vsi->tc_config.tc_info[i].netdev_tc,
  3174. vsi->tc_config.tc_info[i].qcount,
  3175. vsi->tc_config.tc_info[i].qoffset);
  3176. }
  3177. /* Assign UP2TC map for the VSI */
  3178. for (i = 0; i < I40E_MAX_USER_PRIORITY; i++) {
  3179. /* Get the actual TC# for the UP */
  3180. u8 ets_tc = dcbcfg->etscfg.prioritytable[i];
  3181. /* Get the mapped netdev TC# for the UP */
  3182. netdev_tc = vsi->tc_config.tc_info[ets_tc].netdev_tc;
  3183. netdev_set_prio_tc_map(netdev, i, netdev_tc);
  3184. }
  3185. }
  3186. /**
  3187. * i40e_vsi_update_queue_map - Update our copy of VSi info with new queue map
  3188. * @vsi: the VSI being configured
  3189. * @ctxt: the ctxt buffer returned from AQ VSI update param command
  3190. **/
  3191. static void i40e_vsi_update_queue_map(struct i40e_vsi *vsi,
  3192. struct i40e_vsi_context *ctxt)
  3193. {
  3194. /* copy just the sections touched not the entire info
  3195. * since not all sections are valid as returned by
  3196. * update vsi params
  3197. */
  3198. vsi->info.mapping_flags = ctxt->info.mapping_flags;
  3199. memcpy(&vsi->info.queue_mapping,
  3200. &ctxt->info.queue_mapping, sizeof(vsi->info.queue_mapping));
  3201. memcpy(&vsi->info.tc_mapping, ctxt->info.tc_mapping,
  3202. sizeof(vsi->info.tc_mapping));
  3203. }
  3204. /**
  3205. * i40e_vsi_config_tc - Configure VSI Tx Scheduler for given TC map
  3206. * @vsi: VSI to be configured
  3207. * @enabled_tc: TC bitmap
  3208. *
  3209. * This configures a particular VSI for TCs that are mapped to the
  3210. * given TC bitmap. It uses default bandwidth share for TCs across
  3211. * VSIs to configure TC for a particular VSI.
  3212. *
  3213. * NOTE:
  3214. * It is expected that the VSI queues have been quisced before calling
  3215. * this function.
  3216. **/
  3217. static int i40e_vsi_config_tc(struct i40e_vsi *vsi, u8 enabled_tc)
  3218. {
  3219. u8 bw_share[I40E_MAX_TRAFFIC_CLASS] = {0};
  3220. struct i40e_vsi_context ctxt;
  3221. int ret = 0;
  3222. int i;
  3223. /* Check if enabled_tc is same as existing or new TCs */
  3224. if (vsi->tc_config.enabled_tc == enabled_tc)
  3225. return ret;
  3226. /* Enable ETS TCs with equal BW Share for now across all VSIs */
  3227. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  3228. if (enabled_tc & (1 << i))
  3229. bw_share[i] = 1;
  3230. }
  3231. ret = i40e_vsi_configure_bw_alloc(vsi, enabled_tc, bw_share);
  3232. if (ret) {
  3233. dev_info(&vsi->back->pdev->dev,
  3234. "Failed configuring TC map %d for VSI %d\n",
  3235. enabled_tc, vsi->seid);
  3236. goto out;
  3237. }
  3238. /* Update Queue Pairs Mapping for currently enabled UPs */
  3239. ctxt.seid = vsi->seid;
  3240. ctxt.pf_num = vsi->back->hw.pf_id;
  3241. ctxt.vf_num = 0;
  3242. ctxt.uplink_seid = vsi->uplink_seid;
  3243. memcpy(&ctxt.info, &vsi->info, sizeof(vsi->info));
  3244. i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, false);
  3245. /* Update the VSI after updating the VSI queue-mapping information */
  3246. ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
  3247. if (ret) {
  3248. dev_info(&vsi->back->pdev->dev,
  3249. "update vsi failed, aq_err=%d\n",
  3250. vsi->back->hw.aq.asq_last_status);
  3251. goto out;
  3252. }
  3253. /* update the local VSI info with updated queue map */
  3254. i40e_vsi_update_queue_map(vsi, &ctxt);
  3255. vsi->info.valid_sections = 0;
  3256. /* Update current VSI BW information */
  3257. ret = i40e_vsi_get_bw_info(vsi);
  3258. if (ret) {
  3259. dev_info(&vsi->back->pdev->dev,
  3260. "Failed updating vsi bw info, aq_err=%d\n",
  3261. vsi->back->hw.aq.asq_last_status);
  3262. goto out;
  3263. }
  3264. /* Update the netdev TC setup */
  3265. i40e_vsi_config_netdev_tc(vsi, enabled_tc);
  3266. out:
  3267. return ret;
  3268. }
  3269. /**
  3270. * i40e_up_complete - Finish the last steps of bringing up a connection
  3271. * @vsi: the VSI being configured
  3272. **/
  3273. static int i40e_up_complete(struct i40e_vsi *vsi)
  3274. {
  3275. struct i40e_pf *pf = vsi->back;
  3276. int err;
  3277. if (pf->flags & I40E_FLAG_MSIX_ENABLED)
  3278. i40e_vsi_configure_msix(vsi);
  3279. else
  3280. i40e_configure_msi_and_legacy(vsi);
  3281. /* start rings */
  3282. err = i40e_vsi_control_rings(vsi, true);
  3283. if (err)
  3284. return err;
  3285. clear_bit(__I40E_DOWN, &vsi->state);
  3286. i40e_napi_enable_all(vsi);
  3287. i40e_vsi_enable_irq(vsi);
  3288. if ((pf->hw.phy.link_info.link_info & I40E_AQ_LINK_UP) &&
  3289. (vsi->netdev)) {
  3290. netdev_info(vsi->netdev, "NIC Link is Up\n");
  3291. netif_tx_start_all_queues(vsi->netdev);
  3292. netif_carrier_on(vsi->netdev);
  3293. } else if (vsi->netdev) {
  3294. netdev_info(vsi->netdev, "NIC Link is Down\n");
  3295. }
  3296. i40e_service_event_schedule(pf);
  3297. return 0;
  3298. }
  3299. /**
  3300. * i40e_vsi_reinit_locked - Reset the VSI
  3301. * @vsi: the VSI being configured
  3302. *
  3303. * Rebuild the ring structs after some configuration
  3304. * has changed, e.g. MTU size.
  3305. **/
  3306. static void i40e_vsi_reinit_locked(struct i40e_vsi *vsi)
  3307. {
  3308. struct i40e_pf *pf = vsi->back;
  3309. WARN_ON(in_interrupt());
  3310. while (test_and_set_bit(__I40E_CONFIG_BUSY, &pf->state))
  3311. usleep_range(1000, 2000);
  3312. i40e_down(vsi);
  3313. /* Give a VF some time to respond to the reset. The
  3314. * two second wait is based upon the watchdog cycle in
  3315. * the VF driver.
  3316. */
  3317. if (vsi->type == I40E_VSI_SRIOV)
  3318. msleep(2000);
  3319. i40e_up(vsi);
  3320. clear_bit(__I40E_CONFIG_BUSY, &pf->state);
  3321. }
  3322. /**
  3323. * i40e_up - Bring the connection back up after being down
  3324. * @vsi: the VSI being configured
  3325. **/
  3326. int i40e_up(struct i40e_vsi *vsi)
  3327. {
  3328. int err;
  3329. err = i40e_vsi_configure(vsi);
  3330. if (!err)
  3331. err = i40e_up_complete(vsi);
  3332. return err;
  3333. }
  3334. /**
  3335. * i40e_down - Shutdown the connection processing
  3336. * @vsi: the VSI being stopped
  3337. **/
  3338. void i40e_down(struct i40e_vsi *vsi)
  3339. {
  3340. int i;
  3341. /* It is assumed that the caller of this function
  3342. * sets the vsi->state __I40E_DOWN bit.
  3343. */
  3344. if (vsi->netdev) {
  3345. netif_carrier_off(vsi->netdev);
  3346. netif_tx_disable(vsi->netdev);
  3347. }
  3348. i40e_vsi_disable_irq(vsi);
  3349. i40e_vsi_control_rings(vsi, false);
  3350. i40e_napi_disable_all(vsi);
  3351. for (i = 0; i < vsi->num_queue_pairs; i++) {
  3352. i40e_clean_tx_ring(vsi->tx_rings[i]);
  3353. i40e_clean_rx_ring(vsi->rx_rings[i]);
  3354. }
  3355. }
  3356. /**
  3357. * i40e_setup_tc - configure multiple traffic classes
  3358. * @netdev: net device to configure
  3359. * @tc: number of traffic classes to enable
  3360. **/
  3361. static int i40e_setup_tc(struct net_device *netdev, u8 tc)
  3362. {
  3363. struct i40e_netdev_priv *np = netdev_priv(netdev);
  3364. struct i40e_vsi *vsi = np->vsi;
  3365. struct i40e_pf *pf = vsi->back;
  3366. u8 enabled_tc = 0;
  3367. int ret = -EINVAL;
  3368. int i;
  3369. /* Check if DCB enabled to continue */
  3370. if (!(pf->flags & I40E_FLAG_DCB_ENABLED)) {
  3371. netdev_info(netdev, "DCB is not enabled for adapter\n");
  3372. goto exit;
  3373. }
  3374. /* Check if MFP enabled */
  3375. if (pf->flags & I40E_FLAG_MFP_ENABLED) {
  3376. netdev_info(netdev, "Configuring TC not supported in MFP mode\n");
  3377. goto exit;
  3378. }
  3379. /* Check whether tc count is within enabled limit */
  3380. if (tc > i40e_pf_get_num_tc(pf)) {
  3381. netdev_info(netdev, "TC count greater than enabled on link for adapter\n");
  3382. goto exit;
  3383. }
  3384. /* Generate TC map for number of tc requested */
  3385. for (i = 0; i < tc; i++)
  3386. enabled_tc |= (1 << i);
  3387. /* Requesting same TC configuration as already enabled */
  3388. if (enabled_tc == vsi->tc_config.enabled_tc)
  3389. return 0;
  3390. /* Quiesce VSI queues */
  3391. i40e_quiesce_vsi(vsi);
  3392. /* Configure VSI for enabled TCs */
  3393. ret = i40e_vsi_config_tc(vsi, enabled_tc);
  3394. if (ret) {
  3395. netdev_info(netdev, "Failed configuring TC for VSI seid=%d\n",
  3396. vsi->seid);
  3397. goto exit;
  3398. }
  3399. /* Unquiesce VSI */
  3400. i40e_unquiesce_vsi(vsi);
  3401. exit:
  3402. return ret;
  3403. }
  3404. /**
  3405. * i40e_open - Called when a network interface is made active
  3406. * @netdev: network interface device structure
  3407. *
  3408. * The open entry point is called when a network interface is made
  3409. * active by the system (IFF_UP). At this point all resources needed
  3410. * for transmit and receive operations are allocated, the interrupt
  3411. * handler is registered with the OS, the netdev watchdog subtask is
  3412. * enabled, and the stack is notified that the interface is ready.
  3413. *
  3414. * Returns 0 on success, negative value on failure
  3415. **/
  3416. static int i40e_open(struct net_device *netdev)
  3417. {
  3418. struct i40e_netdev_priv *np = netdev_priv(netdev);
  3419. struct i40e_vsi *vsi = np->vsi;
  3420. struct i40e_pf *pf = vsi->back;
  3421. char int_name[IFNAMSIZ];
  3422. int err;
  3423. /* disallow open during test */
  3424. if (test_bit(__I40E_TESTING, &pf->state))
  3425. return -EBUSY;
  3426. netif_carrier_off(netdev);
  3427. /* allocate descriptors */
  3428. err = i40e_vsi_setup_tx_resources(vsi);
  3429. if (err)
  3430. goto err_setup_tx;
  3431. err = i40e_vsi_setup_rx_resources(vsi);
  3432. if (err)
  3433. goto err_setup_rx;
  3434. err = i40e_vsi_configure(vsi);
  3435. if (err)
  3436. goto err_setup_rx;
  3437. snprintf(int_name, sizeof(int_name) - 1, "%s-%s",
  3438. dev_driver_string(&pf->pdev->dev), netdev->name);
  3439. err = i40e_vsi_request_irq(vsi, int_name);
  3440. if (err)
  3441. goto err_setup_rx;
  3442. err = i40e_up_complete(vsi);
  3443. if (err)
  3444. goto err_up_complete;
  3445. if ((vsi->type == I40E_VSI_MAIN) || (vsi->type == I40E_VSI_VMDQ2)) {
  3446. err = i40e_aq_set_vsi_broadcast(&pf->hw, vsi->seid, true, NULL);
  3447. if (err)
  3448. netdev_info(netdev,
  3449. "couldn't set broadcast err %d aq_err %d\n",
  3450. err, pf->hw.aq.asq_last_status);
  3451. }
  3452. return 0;
  3453. err_up_complete:
  3454. i40e_down(vsi);
  3455. i40e_vsi_free_irq(vsi);
  3456. err_setup_rx:
  3457. i40e_vsi_free_rx_resources(vsi);
  3458. err_setup_tx:
  3459. i40e_vsi_free_tx_resources(vsi);
  3460. if (vsi == pf->vsi[pf->lan_vsi])
  3461. i40e_do_reset(pf, (1 << __I40E_PF_RESET_REQUESTED));
  3462. return err;
  3463. }
  3464. /**
  3465. * i40e_close - Disables a network interface
  3466. * @netdev: network interface device structure
  3467. *
  3468. * The close entry point is called when an interface is de-activated
  3469. * by the OS. The hardware is still under the driver's control, but
  3470. * this netdev interface is disabled.
  3471. *
  3472. * Returns 0, this is not allowed to fail
  3473. **/
  3474. static int i40e_close(struct net_device *netdev)
  3475. {
  3476. struct i40e_netdev_priv *np = netdev_priv(netdev);
  3477. struct i40e_vsi *vsi = np->vsi;
  3478. if (test_and_set_bit(__I40E_DOWN, &vsi->state))
  3479. return 0;
  3480. i40e_down(vsi);
  3481. i40e_vsi_free_irq(vsi);
  3482. i40e_vsi_free_tx_resources(vsi);
  3483. i40e_vsi_free_rx_resources(vsi);
  3484. return 0;
  3485. }
  3486. /**
  3487. * i40e_do_reset - Start a PF or Core Reset sequence
  3488. * @pf: board private structure
  3489. * @reset_flags: which reset is requested
  3490. *
  3491. * The essential difference in resets is that the PF Reset
  3492. * doesn't clear the packet buffers, doesn't reset the PE
  3493. * firmware, and doesn't bother the other PFs on the chip.
  3494. **/
  3495. void i40e_do_reset(struct i40e_pf *pf, u32 reset_flags)
  3496. {
  3497. u32 val;
  3498. WARN_ON(in_interrupt());
  3499. /* do the biggest reset indicated */
  3500. if (reset_flags & (1 << __I40E_GLOBAL_RESET_REQUESTED)) {
  3501. /* Request a Global Reset
  3502. *
  3503. * This will start the chip's countdown to the actual full
  3504. * chip reset event, and a warning interrupt to be sent
  3505. * to all PFs, including the requestor. Our handler
  3506. * for the warning interrupt will deal with the shutdown
  3507. * and recovery of the switch setup.
  3508. */
  3509. dev_info(&pf->pdev->dev, "GlobalR requested\n");
  3510. val = rd32(&pf->hw, I40E_GLGEN_RTRIG);
  3511. val |= I40E_GLGEN_RTRIG_GLOBR_MASK;
  3512. wr32(&pf->hw, I40E_GLGEN_RTRIG, val);
  3513. } else if (reset_flags & (1 << __I40E_CORE_RESET_REQUESTED)) {
  3514. /* Request a Core Reset
  3515. *
  3516. * Same as Global Reset, except does *not* include the MAC/PHY
  3517. */
  3518. dev_info(&pf->pdev->dev, "CoreR requested\n");
  3519. val = rd32(&pf->hw, I40E_GLGEN_RTRIG);
  3520. val |= I40E_GLGEN_RTRIG_CORER_MASK;
  3521. wr32(&pf->hw, I40E_GLGEN_RTRIG, val);
  3522. i40e_flush(&pf->hw);
  3523. } else if (reset_flags & (1 << __I40E_PF_RESET_REQUESTED)) {
  3524. /* Request a PF Reset
  3525. *
  3526. * Resets only the PF-specific registers
  3527. *
  3528. * This goes directly to the tear-down and rebuild of
  3529. * the switch, since we need to do all the recovery as
  3530. * for the Core Reset.
  3531. */
  3532. dev_info(&pf->pdev->dev, "PFR requested\n");
  3533. i40e_handle_reset_warning(pf);
  3534. } else if (reset_flags & (1 << __I40E_REINIT_REQUESTED)) {
  3535. int v;
  3536. /* Find the VSI(s) that requested a re-init */
  3537. dev_info(&pf->pdev->dev,
  3538. "VSI reinit requested\n");
  3539. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  3540. struct i40e_vsi *vsi = pf->vsi[v];
  3541. if (vsi != NULL &&
  3542. test_bit(__I40E_REINIT_REQUESTED, &vsi->state)) {
  3543. i40e_vsi_reinit_locked(pf->vsi[v]);
  3544. clear_bit(__I40E_REINIT_REQUESTED, &vsi->state);
  3545. }
  3546. }
  3547. /* no further action needed, so return now */
  3548. return;
  3549. } else {
  3550. dev_info(&pf->pdev->dev,
  3551. "bad reset request 0x%08x\n", reset_flags);
  3552. return;
  3553. }
  3554. }
  3555. /**
  3556. * i40e_handle_lan_overflow_event - Handler for LAN queue overflow event
  3557. * @pf: board private structure
  3558. * @e: event info posted on ARQ
  3559. *
  3560. * Handler for LAN Queue Overflow Event generated by the firmware for PF
  3561. * and VF queues
  3562. **/
  3563. static void i40e_handle_lan_overflow_event(struct i40e_pf *pf,
  3564. struct i40e_arq_event_info *e)
  3565. {
  3566. struct i40e_aqc_lan_overflow *data =
  3567. (struct i40e_aqc_lan_overflow *)&e->desc.params.raw;
  3568. u32 queue = le32_to_cpu(data->prtdcb_rupto);
  3569. u32 qtx_ctl = le32_to_cpu(data->otx_ctl);
  3570. struct i40e_hw *hw = &pf->hw;
  3571. struct i40e_vf *vf;
  3572. u16 vf_id;
  3573. dev_info(&pf->pdev->dev, "%s: Rx Queue Number = %d QTX_CTL=0x%08x\n",
  3574. __func__, queue, qtx_ctl);
  3575. /* Queue belongs to VF, find the VF and issue VF reset */
  3576. if (((qtx_ctl & I40E_QTX_CTL_PFVF_Q_MASK)
  3577. >> I40E_QTX_CTL_PFVF_Q_SHIFT) == I40E_QTX_CTL_VF_QUEUE) {
  3578. vf_id = (u16)((qtx_ctl & I40E_QTX_CTL_VFVM_INDX_MASK)
  3579. >> I40E_QTX_CTL_VFVM_INDX_SHIFT);
  3580. vf_id -= hw->func_caps.vf_base_id;
  3581. vf = &pf->vf[vf_id];
  3582. i40e_vc_notify_vf_reset(vf);
  3583. /* Allow VF to process pending reset notification */
  3584. msleep(20);
  3585. i40e_reset_vf(vf, false);
  3586. }
  3587. }
  3588. /**
  3589. * i40e_service_event_complete - Finish up the service event
  3590. * @pf: board private structure
  3591. **/
  3592. static void i40e_service_event_complete(struct i40e_pf *pf)
  3593. {
  3594. BUG_ON(!test_bit(__I40E_SERVICE_SCHED, &pf->state));
  3595. /* flush memory to make sure state is correct before next watchog */
  3596. smp_mb__before_clear_bit();
  3597. clear_bit(__I40E_SERVICE_SCHED, &pf->state);
  3598. }
  3599. /**
  3600. * i40e_fdir_reinit_subtask - Worker thread to reinit FDIR filter table
  3601. * @pf: board private structure
  3602. **/
  3603. static void i40e_fdir_reinit_subtask(struct i40e_pf *pf)
  3604. {
  3605. if (!(pf->flags & I40E_FLAG_FDIR_REQUIRES_REINIT))
  3606. return;
  3607. pf->flags &= ~I40E_FLAG_FDIR_REQUIRES_REINIT;
  3608. /* if interface is down do nothing */
  3609. if (test_bit(__I40E_DOWN, &pf->state))
  3610. return;
  3611. }
  3612. /**
  3613. * i40e_vsi_link_event - notify VSI of a link event
  3614. * @vsi: vsi to be notified
  3615. * @link_up: link up or down
  3616. **/
  3617. static void i40e_vsi_link_event(struct i40e_vsi *vsi, bool link_up)
  3618. {
  3619. if (!vsi)
  3620. return;
  3621. switch (vsi->type) {
  3622. case I40E_VSI_MAIN:
  3623. if (!vsi->netdev || !vsi->netdev_registered)
  3624. break;
  3625. if (link_up) {
  3626. netif_carrier_on(vsi->netdev);
  3627. netif_tx_wake_all_queues(vsi->netdev);
  3628. } else {
  3629. netif_carrier_off(vsi->netdev);
  3630. netif_tx_stop_all_queues(vsi->netdev);
  3631. }
  3632. break;
  3633. case I40E_VSI_SRIOV:
  3634. break;
  3635. case I40E_VSI_VMDQ2:
  3636. case I40E_VSI_CTRL:
  3637. case I40E_VSI_MIRROR:
  3638. default:
  3639. /* there is no notification for other VSIs */
  3640. break;
  3641. }
  3642. }
  3643. /**
  3644. * i40e_veb_link_event - notify elements on the veb of a link event
  3645. * @veb: veb to be notified
  3646. * @link_up: link up or down
  3647. **/
  3648. static void i40e_veb_link_event(struct i40e_veb *veb, bool link_up)
  3649. {
  3650. struct i40e_pf *pf;
  3651. int i;
  3652. if (!veb || !veb->pf)
  3653. return;
  3654. pf = veb->pf;
  3655. /* depth first... */
  3656. for (i = 0; i < I40E_MAX_VEB; i++)
  3657. if (pf->veb[i] && (pf->veb[i]->uplink_seid == veb->seid))
  3658. i40e_veb_link_event(pf->veb[i], link_up);
  3659. /* ... now the local VSIs */
  3660. for (i = 0; i < pf->hw.func_caps.num_vsis; i++)
  3661. if (pf->vsi[i] && (pf->vsi[i]->uplink_seid == veb->seid))
  3662. i40e_vsi_link_event(pf->vsi[i], link_up);
  3663. }
  3664. /**
  3665. * i40e_link_event - Update netif_carrier status
  3666. * @pf: board private structure
  3667. **/
  3668. static void i40e_link_event(struct i40e_pf *pf)
  3669. {
  3670. bool new_link, old_link;
  3671. new_link = (pf->hw.phy.link_info.link_info & I40E_AQ_LINK_UP);
  3672. old_link = (pf->hw.phy.link_info_old.link_info & I40E_AQ_LINK_UP);
  3673. if (new_link == old_link)
  3674. return;
  3675. if (!test_bit(__I40E_DOWN, &pf->vsi[pf->lan_vsi]->state))
  3676. netdev_info(pf->vsi[pf->lan_vsi]->netdev,
  3677. "NIC Link is %s\n", (new_link ? "Up" : "Down"));
  3678. /* Notify the base of the switch tree connected to
  3679. * the link. Floating VEBs are not notified.
  3680. */
  3681. if (pf->lan_veb != I40E_NO_VEB && pf->veb[pf->lan_veb])
  3682. i40e_veb_link_event(pf->veb[pf->lan_veb], new_link);
  3683. else
  3684. i40e_vsi_link_event(pf->vsi[pf->lan_vsi], new_link);
  3685. if (pf->vf)
  3686. i40e_vc_notify_link_state(pf);
  3687. }
  3688. /**
  3689. * i40e_check_hang_subtask - Check for hung queues and dropped interrupts
  3690. * @pf: board private structure
  3691. *
  3692. * Set the per-queue flags to request a check for stuck queues in the irq
  3693. * clean functions, then force interrupts to be sure the irq clean is called.
  3694. **/
  3695. static void i40e_check_hang_subtask(struct i40e_pf *pf)
  3696. {
  3697. int i, v;
  3698. /* If we're down or resetting, just bail */
  3699. if (test_bit(__I40E_CONFIG_BUSY, &pf->state))
  3700. return;
  3701. /* for each VSI/netdev
  3702. * for each Tx queue
  3703. * set the check flag
  3704. * for each q_vector
  3705. * force an interrupt
  3706. */
  3707. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  3708. struct i40e_vsi *vsi = pf->vsi[v];
  3709. int armed = 0;
  3710. if (!pf->vsi[v] ||
  3711. test_bit(__I40E_DOWN, &vsi->state) ||
  3712. (vsi->netdev && !netif_carrier_ok(vsi->netdev)))
  3713. continue;
  3714. for (i = 0; i < vsi->num_queue_pairs; i++) {
  3715. set_check_for_tx_hang(vsi->tx_rings[i]);
  3716. if (test_bit(__I40E_HANG_CHECK_ARMED,
  3717. &vsi->tx_rings[i]->state))
  3718. armed++;
  3719. }
  3720. if (armed) {
  3721. if (!(pf->flags & I40E_FLAG_MSIX_ENABLED)) {
  3722. wr32(&vsi->back->hw, I40E_PFINT_DYN_CTL0,
  3723. (I40E_PFINT_DYN_CTL0_INTENA_MASK |
  3724. I40E_PFINT_DYN_CTL0_SWINT_TRIG_MASK));
  3725. } else {
  3726. u16 vec = vsi->base_vector - 1;
  3727. u32 val = (I40E_PFINT_DYN_CTLN_INTENA_MASK |
  3728. I40E_PFINT_DYN_CTLN_SWINT_TRIG_MASK);
  3729. for (i = 0; i < vsi->num_q_vectors; i++, vec++)
  3730. wr32(&vsi->back->hw,
  3731. I40E_PFINT_DYN_CTLN(vec), val);
  3732. }
  3733. i40e_flush(&vsi->back->hw);
  3734. }
  3735. }
  3736. }
  3737. /**
  3738. * i40e_watchdog_subtask - Check and bring link up
  3739. * @pf: board private structure
  3740. **/
  3741. static void i40e_watchdog_subtask(struct i40e_pf *pf)
  3742. {
  3743. int i;
  3744. /* if interface is down do nothing */
  3745. if (test_bit(__I40E_DOWN, &pf->state) ||
  3746. test_bit(__I40E_CONFIG_BUSY, &pf->state))
  3747. return;
  3748. /* Update the stats for active netdevs so the network stack
  3749. * can look at updated numbers whenever it cares to
  3750. */
  3751. for (i = 0; i < pf->hw.func_caps.num_vsis; i++)
  3752. if (pf->vsi[i] && pf->vsi[i]->netdev)
  3753. i40e_update_stats(pf->vsi[i]);
  3754. /* Update the stats for the active switching components */
  3755. for (i = 0; i < I40E_MAX_VEB; i++)
  3756. if (pf->veb[i])
  3757. i40e_update_veb_stats(pf->veb[i]);
  3758. }
  3759. /**
  3760. * i40e_reset_subtask - Set up for resetting the device and driver
  3761. * @pf: board private structure
  3762. **/
  3763. static void i40e_reset_subtask(struct i40e_pf *pf)
  3764. {
  3765. u32 reset_flags = 0;
  3766. if (test_bit(__I40E_REINIT_REQUESTED, &pf->state)) {
  3767. reset_flags |= (1 << __I40E_REINIT_REQUESTED);
  3768. clear_bit(__I40E_REINIT_REQUESTED, &pf->state);
  3769. }
  3770. if (test_bit(__I40E_PF_RESET_REQUESTED, &pf->state)) {
  3771. reset_flags |= (1 << __I40E_PF_RESET_REQUESTED);
  3772. clear_bit(__I40E_PF_RESET_REQUESTED, &pf->state);
  3773. }
  3774. if (test_bit(__I40E_CORE_RESET_REQUESTED, &pf->state)) {
  3775. reset_flags |= (1 << __I40E_CORE_RESET_REQUESTED);
  3776. clear_bit(__I40E_CORE_RESET_REQUESTED, &pf->state);
  3777. }
  3778. if (test_bit(__I40E_GLOBAL_RESET_REQUESTED, &pf->state)) {
  3779. reset_flags |= (1 << __I40E_GLOBAL_RESET_REQUESTED);
  3780. clear_bit(__I40E_GLOBAL_RESET_REQUESTED, &pf->state);
  3781. }
  3782. /* If there's a recovery already waiting, it takes
  3783. * precedence before starting a new reset sequence.
  3784. */
  3785. if (test_bit(__I40E_RESET_INTR_RECEIVED, &pf->state)) {
  3786. i40e_handle_reset_warning(pf);
  3787. return;
  3788. }
  3789. /* If we're already down or resetting, just bail */
  3790. if (reset_flags &&
  3791. !test_bit(__I40E_DOWN, &pf->state) &&
  3792. !test_bit(__I40E_CONFIG_BUSY, &pf->state))
  3793. i40e_do_reset(pf, reset_flags);
  3794. }
  3795. /**
  3796. * i40e_handle_link_event - Handle link event
  3797. * @pf: board private structure
  3798. * @e: event info posted on ARQ
  3799. **/
  3800. static void i40e_handle_link_event(struct i40e_pf *pf,
  3801. struct i40e_arq_event_info *e)
  3802. {
  3803. struct i40e_hw *hw = &pf->hw;
  3804. struct i40e_aqc_get_link_status *status =
  3805. (struct i40e_aqc_get_link_status *)&e->desc.params.raw;
  3806. struct i40e_link_status *hw_link_info = &hw->phy.link_info;
  3807. /* save off old link status information */
  3808. memcpy(&pf->hw.phy.link_info_old, hw_link_info,
  3809. sizeof(pf->hw.phy.link_info_old));
  3810. /* update link status */
  3811. hw_link_info->phy_type = (enum i40e_aq_phy_type)status->phy_type;
  3812. hw_link_info->link_speed = (enum i40e_aq_link_speed)status->link_speed;
  3813. hw_link_info->link_info = status->link_info;
  3814. hw_link_info->an_info = status->an_info;
  3815. hw_link_info->ext_info = status->ext_info;
  3816. hw_link_info->lse_enable =
  3817. le16_to_cpu(status->command_flags) &
  3818. I40E_AQ_LSE_ENABLE;
  3819. /* process the event */
  3820. i40e_link_event(pf);
  3821. /* Do a new status request to re-enable LSE reporting
  3822. * and load new status information into the hw struct,
  3823. * then see if the status changed while processing the
  3824. * initial event.
  3825. */
  3826. i40e_aq_get_link_info(&pf->hw, true, NULL, NULL);
  3827. i40e_link_event(pf);
  3828. }
  3829. /**
  3830. * i40e_clean_adminq_subtask - Clean the AdminQ rings
  3831. * @pf: board private structure
  3832. **/
  3833. static void i40e_clean_adminq_subtask(struct i40e_pf *pf)
  3834. {
  3835. struct i40e_arq_event_info event;
  3836. struct i40e_hw *hw = &pf->hw;
  3837. u16 pending, i = 0;
  3838. i40e_status ret;
  3839. u16 opcode;
  3840. u32 val;
  3841. if (!test_bit(__I40E_ADMINQ_EVENT_PENDING, &pf->state))
  3842. return;
  3843. event.msg_size = I40E_MAX_AQ_BUF_SIZE;
  3844. event.msg_buf = kzalloc(event.msg_size, GFP_KERNEL);
  3845. if (!event.msg_buf)
  3846. return;
  3847. do {
  3848. ret = i40e_clean_arq_element(hw, &event, &pending);
  3849. if (ret == I40E_ERR_ADMIN_QUEUE_NO_WORK) {
  3850. dev_info(&pf->pdev->dev, "No ARQ event found\n");
  3851. break;
  3852. } else if (ret) {
  3853. dev_info(&pf->pdev->dev, "ARQ event error %d\n", ret);
  3854. break;
  3855. }
  3856. opcode = le16_to_cpu(event.desc.opcode);
  3857. switch (opcode) {
  3858. case i40e_aqc_opc_get_link_status:
  3859. i40e_handle_link_event(pf, &event);
  3860. break;
  3861. case i40e_aqc_opc_send_msg_to_pf:
  3862. ret = i40e_vc_process_vf_msg(pf,
  3863. le16_to_cpu(event.desc.retval),
  3864. le32_to_cpu(event.desc.cookie_high),
  3865. le32_to_cpu(event.desc.cookie_low),
  3866. event.msg_buf,
  3867. event.msg_size);
  3868. break;
  3869. case i40e_aqc_opc_lldp_update_mib:
  3870. dev_info(&pf->pdev->dev, "ARQ: Update LLDP MIB event received\n");
  3871. break;
  3872. case i40e_aqc_opc_event_lan_overflow:
  3873. dev_info(&pf->pdev->dev, "ARQ LAN queue overflow event received\n");
  3874. i40e_handle_lan_overflow_event(pf, &event);
  3875. break;
  3876. default:
  3877. dev_info(&pf->pdev->dev,
  3878. "ARQ Error: Unknown event %d received\n",
  3879. event.desc.opcode);
  3880. break;
  3881. }
  3882. } while (pending && (i++ < pf->adminq_work_limit));
  3883. clear_bit(__I40E_ADMINQ_EVENT_PENDING, &pf->state);
  3884. /* re-enable Admin queue interrupt cause */
  3885. val = rd32(hw, I40E_PFINT_ICR0_ENA);
  3886. val |= I40E_PFINT_ICR0_ENA_ADMINQ_MASK;
  3887. wr32(hw, I40E_PFINT_ICR0_ENA, val);
  3888. i40e_flush(hw);
  3889. kfree(event.msg_buf);
  3890. }
  3891. /**
  3892. * i40e_reconstitute_veb - rebuild the VEB and anything connected to it
  3893. * @veb: pointer to the VEB instance
  3894. *
  3895. * This is a recursive function that first builds the attached VSIs then
  3896. * recurses in to build the next layer of VEB. We track the connections
  3897. * through our own index numbers because the seid's from the HW could
  3898. * change across the reset.
  3899. **/
  3900. static int i40e_reconstitute_veb(struct i40e_veb *veb)
  3901. {
  3902. struct i40e_vsi *ctl_vsi = NULL;
  3903. struct i40e_pf *pf = veb->pf;
  3904. int v, veb_idx;
  3905. int ret;
  3906. /* build VSI that owns this VEB, temporarily attached to base VEB */
  3907. for (v = 0; v < pf->hw.func_caps.num_vsis && !ctl_vsi; v++) {
  3908. if (pf->vsi[v] &&
  3909. pf->vsi[v]->veb_idx == veb->idx &&
  3910. pf->vsi[v]->flags & I40E_VSI_FLAG_VEB_OWNER) {
  3911. ctl_vsi = pf->vsi[v];
  3912. break;
  3913. }
  3914. }
  3915. if (!ctl_vsi) {
  3916. dev_info(&pf->pdev->dev,
  3917. "missing owner VSI for veb_idx %d\n", veb->idx);
  3918. ret = -ENOENT;
  3919. goto end_reconstitute;
  3920. }
  3921. if (ctl_vsi != pf->vsi[pf->lan_vsi])
  3922. ctl_vsi->uplink_seid = pf->vsi[pf->lan_vsi]->uplink_seid;
  3923. ret = i40e_add_vsi(ctl_vsi);
  3924. if (ret) {
  3925. dev_info(&pf->pdev->dev,
  3926. "rebuild of owner VSI failed: %d\n", ret);
  3927. goto end_reconstitute;
  3928. }
  3929. i40e_vsi_reset_stats(ctl_vsi);
  3930. /* create the VEB in the switch and move the VSI onto the VEB */
  3931. ret = i40e_add_veb(veb, ctl_vsi);
  3932. if (ret)
  3933. goto end_reconstitute;
  3934. /* create the remaining VSIs attached to this VEB */
  3935. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  3936. if (!pf->vsi[v] || pf->vsi[v] == ctl_vsi)
  3937. continue;
  3938. if (pf->vsi[v]->veb_idx == veb->idx) {
  3939. struct i40e_vsi *vsi = pf->vsi[v];
  3940. vsi->uplink_seid = veb->seid;
  3941. ret = i40e_add_vsi(vsi);
  3942. if (ret) {
  3943. dev_info(&pf->pdev->dev,
  3944. "rebuild of vsi_idx %d failed: %d\n",
  3945. v, ret);
  3946. goto end_reconstitute;
  3947. }
  3948. i40e_vsi_reset_stats(vsi);
  3949. }
  3950. }
  3951. /* create any VEBs attached to this VEB - RECURSION */
  3952. for (veb_idx = 0; veb_idx < I40E_MAX_VEB; veb_idx++) {
  3953. if (pf->veb[veb_idx] && pf->veb[veb_idx]->veb_idx == veb->idx) {
  3954. pf->veb[veb_idx]->uplink_seid = veb->seid;
  3955. ret = i40e_reconstitute_veb(pf->veb[veb_idx]);
  3956. if (ret)
  3957. break;
  3958. }
  3959. }
  3960. end_reconstitute:
  3961. return ret;
  3962. }
  3963. /**
  3964. * i40e_get_capabilities - get info about the HW
  3965. * @pf: the PF struct
  3966. **/
  3967. static int i40e_get_capabilities(struct i40e_pf *pf)
  3968. {
  3969. struct i40e_aqc_list_capabilities_element_resp *cap_buf;
  3970. u16 data_size;
  3971. int buf_len;
  3972. int err;
  3973. buf_len = 40 * sizeof(struct i40e_aqc_list_capabilities_element_resp);
  3974. do {
  3975. cap_buf = kzalloc(buf_len, GFP_KERNEL);
  3976. if (!cap_buf)
  3977. return -ENOMEM;
  3978. /* this loads the data into the hw struct for us */
  3979. err = i40e_aq_discover_capabilities(&pf->hw, cap_buf, buf_len,
  3980. &data_size,
  3981. i40e_aqc_opc_list_func_capabilities,
  3982. NULL);
  3983. /* data loaded, buffer no longer needed */
  3984. kfree(cap_buf);
  3985. if (pf->hw.aq.asq_last_status == I40E_AQ_RC_ENOMEM) {
  3986. /* retry with a larger buffer */
  3987. buf_len = data_size;
  3988. } else if (pf->hw.aq.asq_last_status != I40E_AQ_RC_OK) {
  3989. dev_info(&pf->pdev->dev,
  3990. "capability discovery failed: aq=%d\n",
  3991. pf->hw.aq.asq_last_status);
  3992. return -ENODEV;
  3993. }
  3994. } while (err);
  3995. if (pf->hw.debug_mask & I40E_DEBUG_USER)
  3996. dev_info(&pf->pdev->dev,
  3997. "pf=%d, num_vfs=%d, msix_pf=%d, msix_vf=%d, fd_g=%d, fd_b=%d, pf_max_q=%d num_vsi=%d\n",
  3998. pf->hw.pf_id, pf->hw.func_caps.num_vfs,
  3999. pf->hw.func_caps.num_msix_vectors,
  4000. pf->hw.func_caps.num_msix_vectors_vf,
  4001. pf->hw.func_caps.fd_filters_guaranteed,
  4002. pf->hw.func_caps.fd_filters_best_effort,
  4003. pf->hw.func_caps.num_tx_qp,
  4004. pf->hw.func_caps.num_vsis);
  4005. return 0;
  4006. }
  4007. /**
  4008. * i40e_fdir_setup - initialize the Flow Director resources
  4009. * @pf: board private structure
  4010. **/
  4011. static void i40e_fdir_setup(struct i40e_pf *pf)
  4012. {
  4013. struct i40e_vsi *vsi;
  4014. bool new_vsi = false;
  4015. int err, i;
  4016. if (!(pf->flags & (I40E_FLAG_FDIR_ENABLED |
  4017. I40E_FLAG_FDIR_ATR_ENABLED)))
  4018. return;
  4019. pf->atr_sample_rate = I40E_DEFAULT_ATR_SAMPLE_RATE;
  4020. /* find existing or make new FDIR VSI */
  4021. vsi = NULL;
  4022. for (i = 0; i < pf->hw.func_caps.num_vsis; i++)
  4023. if (pf->vsi[i] && pf->vsi[i]->type == I40E_VSI_FDIR)
  4024. vsi = pf->vsi[i];
  4025. if (!vsi) {
  4026. vsi = i40e_vsi_setup(pf, I40E_VSI_FDIR, pf->mac_seid, 0);
  4027. if (!vsi) {
  4028. dev_info(&pf->pdev->dev, "Couldn't create FDir VSI\n");
  4029. pf->flags &= ~I40E_FLAG_FDIR_ENABLED;
  4030. return;
  4031. }
  4032. new_vsi = true;
  4033. }
  4034. WARN_ON(vsi->base_queue != I40E_FDIR_RING);
  4035. i40e_vsi_setup_irqhandler(vsi, i40e_fdir_clean_rings);
  4036. err = i40e_vsi_setup_tx_resources(vsi);
  4037. if (!err)
  4038. err = i40e_vsi_setup_rx_resources(vsi);
  4039. if (!err)
  4040. err = i40e_vsi_configure(vsi);
  4041. if (!err && new_vsi) {
  4042. char int_name[IFNAMSIZ + 9];
  4043. snprintf(int_name, sizeof(int_name) - 1, "%s-fdir",
  4044. dev_driver_string(&pf->pdev->dev));
  4045. err = i40e_vsi_request_irq(vsi, int_name);
  4046. }
  4047. if (!err)
  4048. err = i40e_up_complete(vsi);
  4049. clear_bit(__I40E_NEEDS_RESTART, &vsi->state);
  4050. }
  4051. /**
  4052. * i40e_fdir_teardown - release the Flow Director resources
  4053. * @pf: board private structure
  4054. **/
  4055. static void i40e_fdir_teardown(struct i40e_pf *pf)
  4056. {
  4057. int i;
  4058. for (i = 0; i < pf->hw.func_caps.num_vsis; i++) {
  4059. if (pf->vsi[i] && pf->vsi[i]->type == I40E_VSI_FDIR) {
  4060. i40e_vsi_release(pf->vsi[i]);
  4061. break;
  4062. }
  4063. }
  4064. }
  4065. /**
  4066. * i40e_handle_reset_warning - prep for the core to reset
  4067. * @pf: board private structure
  4068. *
  4069. * Close up the VFs and other things in prep for a Core Reset,
  4070. * then get ready to rebuild the world.
  4071. **/
  4072. static void i40e_handle_reset_warning(struct i40e_pf *pf)
  4073. {
  4074. struct i40e_driver_version dv;
  4075. struct i40e_hw *hw = &pf->hw;
  4076. i40e_status ret;
  4077. u32 v;
  4078. clear_bit(__I40E_RESET_INTR_RECEIVED, &pf->state);
  4079. if (test_and_set_bit(__I40E_RESET_RECOVERY_PENDING, &pf->state))
  4080. return;
  4081. dev_info(&pf->pdev->dev, "Tearing down internal switch for reset\n");
  4082. i40e_vc_notify_reset(pf);
  4083. /* quiesce the VSIs and their queues that are not already DOWN */
  4084. i40e_pf_quiesce_all_vsi(pf);
  4085. for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
  4086. if (pf->vsi[v])
  4087. pf->vsi[v]->seid = 0;
  4088. }
  4089. i40e_shutdown_adminq(&pf->hw);
  4090. /* Now we wait for GRST to settle out.
  4091. * We don't have to delete the VEBs or VSIs from the hw switch
  4092. * because the reset will make them disappear.
  4093. */
  4094. ret = i40e_pf_reset(hw);
  4095. if (ret)
  4096. dev_info(&pf->pdev->dev, "PF reset failed, %d\n", ret);
  4097. pf->pfr_count++;
  4098. if (test_bit(__I40E_DOWN, &pf->state))
  4099. goto end_core_reset;
  4100. dev_info(&pf->pdev->dev, "Rebuilding internal switch\n");
  4101. /* rebuild the basics for the AdminQ, HMC, and initial HW switch */
  4102. ret = i40e_init_adminq(&pf->hw);
  4103. if (ret) {
  4104. dev_info(&pf->pdev->dev, "Rebuild AdminQ failed, %d\n", ret);
  4105. goto end_core_reset;
  4106. }
  4107. ret = i40e_get_capabilities(pf);
  4108. if (ret) {
  4109. dev_info(&pf->pdev->dev, "i40e_get_capabilities failed, %d\n",
  4110. ret);
  4111. goto end_core_reset;
  4112. }
  4113. /* call shutdown HMC */
  4114. ret = i40e_shutdown_lan_hmc(hw);
  4115. if (ret) {
  4116. dev_info(&pf->pdev->dev, "shutdown_lan_hmc failed: %d\n", ret);
  4117. goto end_core_reset;
  4118. }
  4119. ret = i40e_init_lan_hmc(hw, hw->func_caps.num_tx_qp,
  4120. hw->func_caps.num_rx_qp,
  4121. pf->fcoe_hmc_cntx_num, pf->fcoe_hmc_filt_num);
  4122. if (ret) {
  4123. dev_info(&pf->pdev->dev, "init_lan_hmc failed: %d\n", ret);
  4124. goto end_core_reset;
  4125. }
  4126. ret = i40e_configure_lan_hmc(hw, I40E_HMC_MODEL_DIRECT_ONLY);
  4127. if (ret) {
  4128. dev_info(&pf->pdev->dev, "configure_lan_hmc failed: %d\n", ret);
  4129. goto end_core_reset;
  4130. }
  4131. /* do basic switch setup */
  4132. ret = i40e_setup_pf_switch(pf);
  4133. if (ret)
  4134. goto end_core_reset;
  4135. /* Rebuild the VSIs and VEBs that existed before reset.
  4136. * They are still in our local switch element arrays, so only
  4137. * need to rebuild the switch model in the HW.
  4138. *
  4139. * If there were VEBs but the reconstitution failed, we'll try
  4140. * try to recover minimal use by getting the basic PF VSI working.
  4141. */
  4142. if (pf->vsi[pf->lan_vsi]->uplink_seid != pf->mac_seid) {
  4143. dev_info(&pf->pdev->dev, "attempting to rebuild switch\n");
  4144. /* find the one VEB connected to the MAC, and find orphans */
  4145. for (v = 0; v < I40E_MAX_VEB; v++) {
  4146. if (!pf->veb[v])
  4147. continue;
  4148. if (pf->veb[v]->uplink_seid == pf->mac_seid ||
  4149. pf->veb[v]->uplink_seid == 0) {
  4150. ret = i40e_reconstitute_veb(pf->veb[v]);
  4151. if (!ret)
  4152. continue;
  4153. /* If Main VEB failed, we're in deep doodoo,
  4154. * so give up rebuilding the switch and set up
  4155. * for minimal rebuild of PF VSI.
  4156. * If orphan failed, we'll report the error
  4157. * but try to keep going.
  4158. */
  4159. if (pf->veb[v]->uplink_seid == pf->mac_seid) {
  4160. dev_info(&pf->pdev->dev,
  4161. "rebuild of switch failed: %d, will try to set up simple PF connection\n",
  4162. ret);
  4163. pf->vsi[pf->lan_vsi]->uplink_seid
  4164. = pf->mac_seid;
  4165. break;
  4166. } else if (pf->veb[v]->uplink_seid == 0) {
  4167. dev_info(&pf->pdev->dev,
  4168. "rebuild of orphan VEB failed: %d\n",
  4169. ret);
  4170. }
  4171. }
  4172. }
  4173. }
  4174. if (pf->vsi[pf->lan_vsi]->uplink_seid == pf->mac_seid) {
  4175. dev_info(&pf->pdev->dev, "attempting to rebuild PF VSI\n");
  4176. /* no VEB, so rebuild only the Main VSI */
  4177. ret = i40e_add_vsi(pf->vsi[pf->lan_vsi]);
  4178. if (ret) {
  4179. dev_info(&pf->pdev->dev,
  4180. "rebuild of Main VSI failed: %d\n", ret);
  4181. goto end_core_reset;
  4182. }
  4183. }
  4184. /* reinit the misc interrupt */
  4185. if (pf->flags & I40E_FLAG_MSIX_ENABLED)
  4186. ret = i40e_setup_misc_vector(pf);
  4187. /* restart the VSIs that were rebuilt and running before the reset */
  4188. i40e_pf_unquiesce_all_vsi(pf);
  4189. /* tell the firmware that we're starting */
  4190. dv.major_version = DRV_VERSION_MAJOR;
  4191. dv.minor_version = DRV_VERSION_MINOR;
  4192. dv.build_version = DRV_VERSION_BUILD;
  4193. dv.subbuild_version = 0;
  4194. i40e_aq_send_driver_version(&pf->hw, &dv, NULL);
  4195. dev_info(&pf->pdev->dev, "PF reset done\n");
  4196. end_core_reset:
  4197. clear_bit(__I40E_RESET_RECOVERY_PENDING, &pf->state);
  4198. }
  4199. /**
  4200. * i40e_handle_mdd_event
  4201. * @pf: pointer to the pf structure
  4202. *
  4203. * Called from the MDD irq handler to identify possibly malicious vfs
  4204. **/
  4205. static void i40e_handle_mdd_event(struct i40e_pf *pf)
  4206. {
  4207. struct i40e_hw *hw = &pf->hw;
  4208. bool mdd_detected = false;
  4209. struct i40e_vf *vf;
  4210. u32 reg;
  4211. int i;
  4212. if (!test_bit(__I40E_MDD_EVENT_PENDING, &pf->state))
  4213. return;
  4214. /* find what triggered the MDD event */
  4215. reg = rd32(hw, I40E_GL_MDET_TX);
  4216. if (reg & I40E_GL_MDET_TX_VALID_MASK) {
  4217. u8 func = (reg & I40E_GL_MDET_TX_FUNCTION_MASK)
  4218. >> I40E_GL_MDET_TX_FUNCTION_SHIFT;
  4219. u8 event = (reg & I40E_GL_MDET_TX_EVENT_SHIFT)
  4220. >> I40E_GL_MDET_TX_EVENT_SHIFT;
  4221. u8 queue = (reg & I40E_GL_MDET_TX_QUEUE_MASK)
  4222. >> I40E_GL_MDET_TX_QUEUE_SHIFT;
  4223. dev_info(&pf->pdev->dev,
  4224. "Malicious Driver Detection TX event 0x%02x on q %d of function 0x%02x\n",
  4225. event, queue, func);
  4226. wr32(hw, I40E_GL_MDET_TX, 0xffffffff);
  4227. mdd_detected = true;
  4228. }
  4229. reg = rd32(hw, I40E_GL_MDET_RX);
  4230. if (reg & I40E_GL_MDET_RX_VALID_MASK) {
  4231. u8 func = (reg & I40E_GL_MDET_RX_FUNCTION_MASK)
  4232. >> I40E_GL_MDET_RX_FUNCTION_SHIFT;
  4233. u8 event = (reg & I40E_GL_MDET_RX_EVENT_SHIFT)
  4234. >> I40E_GL_MDET_RX_EVENT_SHIFT;
  4235. u8 queue = (reg & I40E_GL_MDET_RX_QUEUE_MASK)
  4236. >> I40E_GL_MDET_RX_QUEUE_SHIFT;
  4237. dev_info(&pf->pdev->dev,
  4238. "Malicious Driver Detection RX event 0x%02x on q %d of function 0x%02x\n",
  4239. event, queue, func);
  4240. wr32(hw, I40E_GL_MDET_RX, 0xffffffff);
  4241. mdd_detected = true;
  4242. }
  4243. /* see if one of the VFs needs its hand slapped */
  4244. for (i = 0; i < pf->num_alloc_vfs && mdd_detected; i++) {
  4245. vf = &(pf->vf[i]);
  4246. reg = rd32(hw, I40E_VP_MDET_TX(i));
  4247. if (reg & I40E_VP_MDET_TX_VALID_MASK) {
  4248. wr32(hw, I40E_VP_MDET_TX(i), 0xFFFF);
  4249. vf->num_mdd_events++;
  4250. dev_info(&pf->pdev->dev, "MDD TX event on VF %d\n", i);
  4251. }
  4252. reg = rd32(hw, I40E_VP_MDET_RX(i));
  4253. if (reg & I40E_VP_MDET_RX_VALID_MASK) {
  4254. wr32(hw, I40E_VP_MDET_RX(i), 0xFFFF);
  4255. vf->num_mdd_events++;
  4256. dev_info(&pf->pdev->dev, "MDD RX event on VF %d\n", i);
  4257. }
  4258. if (vf->num_mdd_events > I40E_DEFAULT_NUM_MDD_EVENTS_ALLOWED) {
  4259. dev_info(&pf->pdev->dev,
  4260. "Too many MDD events on VF %d, disabled\n", i);
  4261. dev_info(&pf->pdev->dev,
  4262. "Use PF Control I/F to re-enable the VF\n");
  4263. set_bit(I40E_VF_STAT_DISABLED, &vf->vf_states);
  4264. }
  4265. }
  4266. /* re-enable mdd interrupt cause */
  4267. clear_bit(__I40E_MDD_EVENT_PENDING, &pf->state);
  4268. reg = rd32(hw, I40E_PFINT_ICR0_ENA);
  4269. reg |= I40E_PFINT_ICR0_ENA_MAL_DETECT_MASK;
  4270. wr32(hw, I40E_PFINT_ICR0_ENA, reg);
  4271. i40e_flush(hw);
  4272. }
  4273. /**
  4274. * i40e_service_task - Run the driver's async subtasks
  4275. * @work: pointer to work_struct containing our data
  4276. **/
  4277. static void i40e_service_task(struct work_struct *work)
  4278. {
  4279. struct i40e_pf *pf = container_of(work,
  4280. struct i40e_pf,
  4281. service_task);
  4282. unsigned long start_time = jiffies;
  4283. i40e_reset_subtask(pf);
  4284. i40e_handle_mdd_event(pf);
  4285. i40e_vc_process_vflr_event(pf);
  4286. i40e_watchdog_subtask(pf);
  4287. i40e_fdir_reinit_subtask(pf);
  4288. i40e_check_hang_subtask(pf);
  4289. i40e_sync_filters_subtask(pf);
  4290. i40e_clean_adminq_subtask(pf);
  4291. i40e_service_event_complete(pf);
  4292. /* If the tasks have taken longer than one timer cycle or there
  4293. * is more work to be done, reschedule the service task now
  4294. * rather than wait for the timer to tick again.
  4295. */
  4296. if (time_after(jiffies, (start_time + pf->service_timer_period)) ||
  4297. test_bit(__I40E_ADMINQ_EVENT_PENDING, &pf->state) ||
  4298. test_bit(__I40E_MDD_EVENT_PENDING, &pf->state) ||
  4299. test_bit(__I40E_VFLR_EVENT_PENDING, &pf->state))
  4300. i40e_service_event_schedule(pf);
  4301. }
  4302. /**
  4303. * i40e_service_timer - timer callback
  4304. * @data: pointer to PF struct
  4305. **/
  4306. static void i40e_service_timer(unsigned long data)
  4307. {
  4308. struct i40e_pf *pf = (struct i40e_pf *)data;
  4309. mod_timer(&pf->service_timer,
  4310. round_jiffies(jiffies + pf->service_timer_period));
  4311. i40e_service_event_schedule(pf);
  4312. }
  4313. /**
  4314. * i40e_set_num_rings_in_vsi - Determine number of rings in the VSI
  4315. * @vsi: the VSI being configured
  4316. **/
  4317. static int i40e_set_num_rings_in_vsi(struct i40e_vsi *vsi)
  4318. {
  4319. struct i40e_pf *pf = vsi->back;
  4320. switch (vsi->type) {
  4321. case I40E_VSI_MAIN:
  4322. vsi->alloc_queue_pairs = pf->num_lan_qps;
  4323. vsi->num_desc = ALIGN(I40E_DEFAULT_NUM_DESCRIPTORS,
  4324. I40E_REQ_DESCRIPTOR_MULTIPLE);
  4325. if (pf->flags & I40E_FLAG_MSIX_ENABLED)
  4326. vsi->num_q_vectors = pf->num_lan_msix;
  4327. else
  4328. vsi->num_q_vectors = 1;
  4329. break;
  4330. case I40E_VSI_FDIR:
  4331. vsi->alloc_queue_pairs = 1;
  4332. vsi->num_desc = ALIGN(I40E_FDIR_RING_COUNT,
  4333. I40E_REQ_DESCRIPTOR_MULTIPLE);
  4334. vsi->num_q_vectors = 1;
  4335. break;
  4336. case I40E_VSI_VMDQ2:
  4337. vsi->alloc_queue_pairs = pf->num_vmdq_qps;
  4338. vsi->num_desc = ALIGN(I40E_DEFAULT_NUM_DESCRIPTORS,
  4339. I40E_REQ_DESCRIPTOR_MULTIPLE);
  4340. vsi->num_q_vectors = pf->num_vmdq_msix;
  4341. break;
  4342. case I40E_VSI_SRIOV:
  4343. vsi->alloc_queue_pairs = pf->num_vf_qps;
  4344. vsi->num_desc = ALIGN(I40E_DEFAULT_NUM_DESCRIPTORS,
  4345. I40E_REQ_DESCRIPTOR_MULTIPLE);
  4346. break;
  4347. default:
  4348. WARN_ON(1);
  4349. return -ENODATA;
  4350. }
  4351. return 0;
  4352. }
  4353. /**
  4354. * i40e_vsi_mem_alloc - Allocates the next available struct vsi in the PF
  4355. * @pf: board private structure
  4356. * @type: type of VSI
  4357. *
  4358. * On error: returns error code (negative)
  4359. * On success: returns vsi index in PF (positive)
  4360. **/
  4361. static int i40e_vsi_mem_alloc(struct i40e_pf *pf, enum i40e_vsi_type type)
  4362. {
  4363. int ret = -ENODEV;
  4364. struct i40e_vsi *vsi;
  4365. int sz_vectors;
  4366. int sz_rings;
  4367. int vsi_idx;
  4368. int i;
  4369. /* Need to protect the allocation of the VSIs at the PF level */
  4370. mutex_lock(&pf->switch_mutex);
  4371. /* VSI list may be fragmented if VSI creation/destruction has
  4372. * been happening. We can afford to do a quick scan to look
  4373. * for any free VSIs in the list.
  4374. *
  4375. * find next empty vsi slot, looping back around if necessary
  4376. */
  4377. i = pf->next_vsi;
  4378. while (i < pf->hw.func_caps.num_vsis && pf->vsi[i])
  4379. i++;
  4380. if (i >= pf->hw.func_caps.num_vsis) {
  4381. i = 0;
  4382. while (i < pf->next_vsi && pf->vsi[i])
  4383. i++;
  4384. }
  4385. if (i < pf->hw.func_caps.num_vsis && !pf->vsi[i]) {
  4386. vsi_idx = i; /* Found one! */
  4387. } else {
  4388. ret = -ENODEV;
  4389. goto unlock_pf; /* out of VSI slots! */
  4390. }
  4391. pf->next_vsi = ++i;
  4392. vsi = kzalloc(sizeof(*vsi), GFP_KERNEL);
  4393. if (!vsi) {
  4394. ret = -ENOMEM;
  4395. goto unlock_pf;
  4396. }
  4397. vsi->type = type;
  4398. vsi->back = pf;
  4399. set_bit(__I40E_DOWN, &vsi->state);
  4400. vsi->flags = 0;
  4401. vsi->idx = vsi_idx;
  4402. vsi->rx_itr_setting = pf->rx_itr_default;
  4403. vsi->tx_itr_setting = pf->tx_itr_default;
  4404. vsi->netdev_registered = false;
  4405. vsi->work_limit = I40E_DEFAULT_IRQ_WORK;
  4406. INIT_LIST_HEAD(&vsi->mac_filter_list);
  4407. ret = i40e_set_num_rings_in_vsi(vsi);
  4408. if (ret)
  4409. goto err_rings;
  4410. /* allocate memory for ring pointers */
  4411. sz_rings = sizeof(struct i40e_ring *) * vsi->alloc_queue_pairs * 2;
  4412. vsi->tx_rings = kzalloc(sz_rings, GFP_KERNEL);
  4413. if (!vsi->tx_rings) {
  4414. ret = -ENOMEM;
  4415. goto err_rings;
  4416. }
  4417. vsi->rx_rings = &vsi->tx_rings[vsi->alloc_queue_pairs];
  4418. /* allocate memory for q_vector pointers */
  4419. sz_vectors = sizeof(struct i40e_q_vectors *) * vsi->num_q_vectors;
  4420. vsi->q_vectors = kzalloc(sz_vectors, GFP_KERNEL);
  4421. if (!vsi->q_vectors) {
  4422. ret = -ENOMEM;
  4423. goto err_vectors;
  4424. }
  4425. /* Setup default MSIX irq handler for VSI */
  4426. i40e_vsi_setup_irqhandler(vsi, i40e_msix_clean_rings);
  4427. pf->vsi[vsi_idx] = vsi;
  4428. ret = vsi_idx;
  4429. goto unlock_pf;
  4430. err_vectors:
  4431. kfree(vsi->tx_rings);
  4432. err_rings:
  4433. pf->next_vsi = i - 1;
  4434. kfree(vsi);
  4435. unlock_pf:
  4436. mutex_unlock(&pf->switch_mutex);
  4437. return ret;
  4438. }
  4439. /**
  4440. * i40e_vsi_clear - Deallocate the VSI provided
  4441. * @vsi: the VSI being un-configured
  4442. **/
  4443. static int i40e_vsi_clear(struct i40e_vsi *vsi)
  4444. {
  4445. struct i40e_pf *pf;
  4446. if (!vsi)
  4447. return 0;
  4448. if (!vsi->back)
  4449. goto free_vsi;
  4450. pf = vsi->back;
  4451. mutex_lock(&pf->switch_mutex);
  4452. if (!pf->vsi[vsi->idx]) {
  4453. dev_err(&pf->pdev->dev, "pf->vsi[%d] is NULL, just free vsi[%d](%p,type %d)\n",
  4454. vsi->idx, vsi->idx, vsi, vsi->type);
  4455. goto unlock_vsi;
  4456. }
  4457. if (pf->vsi[vsi->idx] != vsi) {
  4458. dev_err(&pf->pdev->dev,
  4459. "pf->vsi[%d](%p, type %d) != vsi[%d](%p,type %d): no free!\n",
  4460. pf->vsi[vsi->idx]->idx,
  4461. pf->vsi[vsi->idx],
  4462. pf->vsi[vsi->idx]->type,
  4463. vsi->idx, vsi, vsi->type);
  4464. goto unlock_vsi;
  4465. }
  4466. /* updates the pf for this cleared vsi */
  4467. i40e_put_lump(pf->qp_pile, vsi->base_queue, vsi->idx);
  4468. i40e_put_lump(pf->irq_pile, vsi->base_vector, vsi->idx);
  4469. /* free the ring and vector containers */
  4470. kfree(vsi->q_vectors);
  4471. kfree(vsi->tx_rings);
  4472. pf->vsi[vsi->idx] = NULL;
  4473. if (vsi->idx < pf->next_vsi)
  4474. pf->next_vsi = vsi->idx;
  4475. unlock_vsi:
  4476. mutex_unlock(&pf->switch_mutex);
  4477. free_vsi:
  4478. kfree(vsi);
  4479. return 0;
  4480. }
  4481. /**
  4482. * i40e_vsi_clear_rings - Deallocates the Rx and Tx rings for the provided VSI
  4483. * @vsi: the VSI being cleaned
  4484. **/
  4485. static s32 i40e_vsi_clear_rings(struct i40e_vsi *vsi)
  4486. {
  4487. int i;
  4488. if (vsi->tx_rings[0])
  4489. for (i = 0; i < vsi->alloc_queue_pairs; i++) {
  4490. kfree_rcu(vsi->tx_rings[i], rcu);
  4491. vsi->tx_rings[i] = NULL;
  4492. vsi->rx_rings[i] = NULL;
  4493. }
  4494. return 0;
  4495. }
  4496. /**
  4497. * i40e_alloc_rings - Allocates the Rx and Tx rings for the provided VSI
  4498. * @vsi: the VSI being configured
  4499. **/
  4500. static int i40e_alloc_rings(struct i40e_vsi *vsi)
  4501. {
  4502. struct i40e_pf *pf = vsi->back;
  4503. int i;
  4504. /* Set basic values in the rings to be used later during open() */
  4505. for (i = 0; i < vsi->alloc_queue_pairs; i++) {
  4506. struct i40e_ring *tx_ring;
  4507. struct i40e_ring *rx_ring;
  4508. tx_ring = kzalloc(sizeof(struct i40e_ring) * 2, GFP_KERNEL);
  4509. if (!tx_ring)
  4510. goto err_out;
  4511. tx_ring->queue_index = i;
  4512. tx_ring->reg_idx = vsi->base_queue + i;
  4513. tx_ring->ring_active = false;
  4514. tx_ring->vsi = vsi;
  4515. tx_ring->netdev = vsi->netdev;
  4516. tx_ring->dev = &pf->pdev->dev;
  4517. tx_ring->count = vsi->num_desc;
  4518. tx_ring->size = 0;
  4519. tx_ring->dcb_tc = 0;
  4520. vsi->tx_rings[i] = tx_ring;
  4521. rx_ring = &tx_ring[1];
  4522. rx_ring->queue_index = i;
  4523. rx_ring->reg_idx = vsi->base_queue + i;
  4524. rx_ring->ring_active = false;
  4525. rx_ring->vsi = vsi;
  4526. rx_ring->netdev = vsi->netdev;
  4527. rx_ring->dev = &pf->pdev->dev;
  4528. rx_ring->count = vsi->num_desc;
  4529. rx_ring->size = 0;
  4530. rx_ring->dcb_tc = 0;
  4531. if (pf->flags & I40E_FLAG_16BYTE_RX_DESC_ENABLED)
  4532. set_ring_16byte_desc_enabled(rx_ring);
  4533. else
  4534. clear_ring_16byte_desc_enabled(rx_ring);
  4535. vsi->rx_rings[i] = rx_ring;
  4536. }
  4537. return 0;
  4538. err_out:
  4539. i40e_vsi_clear_rings(vsi);
  4540. return -ENOMEM;
  4541. }
  4542. /**
  4543. * i40e_reserve_msix_vectors - Reserve MSI-X vectors in the kernel
  4544. * @pf: board private structure
  4545. * @vectors: the number of MSI-X vectors to request
  4546. *
  4547. * Returns the number of vectors reserved, or error
  4548. **/
  4549. static int i40e_reserve_msix_vectors(struct i40e_pf *pf, int vectors)
  4550. {
  4551. int err = 0;
  4552. pf->num_msix_entries = 0;
  4553. while (vectors >= I40E_MIN_MSIX) {
  4554. err = pci_enable_msix(pf->pdev, pf->msix_entries, vectors);
  4555. if (err == 0) {
  4556. /* good to go */
  4557. pf->num_msix_entries = vectors;
  4558. break;
  4559. } else if (err < 0) {
  4560. /* total failure */
  4561. dev_info(&pf->pdev->dev,
  4562. "MSI-X vector reservation failed: %d\n", err);
  4563. vectors = 0;
  4564. break;
  4565. } else {
  4566. /* err > 0 is the hint for retry */
  4567. dev_info(&pf->pdev->dev,
  4568. "MSI-X vectors wanted %d, retrying with %d\n",
  4569. vectors, err);
  4570. vectors = err;
  4571. }
  4572. }
  4573. if (vectors > 0 && vectors < I40E_MIN_MSIX) {
  4574. dev_info(&pf->pdev->dev,
  4575. "Couldn't get enough vectors, only %d available\n",
  4576. vectors);
  4577. vectors = 0;
  4578. }
  4579. return vectors;
  4580. }
  4581. /**
  4582. * i40e_init_msix - Setup the MSIX capability
  4583. * @pf: board private structure
  4584. *
  4585. * Work with the OS to set up the MSIX vectors needed.
  4586. *
  4587. * Returns 0 on success, negative on failure
  4588. **/
  4589. static int i40e_init_msix(struct i40e_pf *pf)
  4590. {
  4591. i40e_status err = 0;
  4592. struct i40e_hw *hw = &pf->hw;
  4593. int v_budget, i;
  4594. int vec;
  4595. if (!(pf->flags & I40E_FLAG_MSIX_ENABLED))
  4596. return -ENODEV;
  4597. /* The number of vectors we'll request will be comprised of:
  4598. * - Add 1 for "other" cause for Admin Queue events, etc.
  4599. * - The number of LAN queue pairs
  4600. * already adjusted for the NUMA node
  4601. * assumes symmetric Tx/Rx pairing
  4602. * - The number of VMDq pairs
  4603. * Once we count this up, try the request.
  4604. *
  4605. * If we can't get what we want, we'll simplify to nearly nothing
  4606. * and try again. If that still fails, we punt.
  4607. */
  4608. pf->num_lan_msix = pf->num_lan_qps;
  4609. pf->num_vmdq_msix = pf->num_vmdq_qps;
  4610. v_budget = 1 + pf->num_lan_msix;
  4611. v_budget += (pf->num_vmdq_vsis * pf->num_vmdq_msix);
  4612. if (pf->flags & I40E_FLAG_FDIR_ENABLED)
  4613. v_budget++;
  4614. /* Scale down if necessary, and the rings will share vectors */
  4615. v_budget = min_t(int, v_budget, hw->func_caps.num_msix_vectors);
  4616. pf->msix_entries = kcalloc(v_budget, sizeof(struct msix_entry),
  4617. GFP_KERNEL);
  4618. if (!pf->msix_entries)
  4619. return -ENOMEM;
  4620. for (i = 0; i < v_budget; i++)
  4621. pf->msix_entries[i].entry = i;
  4622. vec = i40e_reserve_msix_vectors(pf, v_budget);
  4623. if (vec < I40E_MIN_MSIX) {
  4624. pf->flags &= ~I40E_FLAG_MSIX_ENABLED;
  4625. kfree(pf->msix_entries);
  4626. pf->msix_entries = NULL;
  4627. return -ENODEV;
  4628. } else if (vec == I40E_MIN_MSIX) {
  4629. /* Adjust for minimal MSIX use */
  4630. dev_info(&pf->pdev->dev, "Features disabled, not enough MSIX vectors\n");
  4631. pf->flags &= ~I40E_FLAG_VMDQ_ENABLED;
  4632. pf->num_vmdq_vsis = 0;
  4633. pf->num_vmdq_qps = 0;
  4634. pf->num_vmdq_msix = 0;
  4635. pf->num_lan_qps = 1;
  4636. pf->num_lan_msix = 1;
  4637. } else if (vec != v_budget) {
  4638. /* Scale vector usage down */
  4639. pf->num_vmdq_msix = 1; /* force VMDqs to only one vector */
  4640. vec--; /* reserve the misc vector */
  4641. /* partition out the remaining vectors */
  4642. switch (vec) {
  4643. case 2:
  4644. pf->num_vmdq_vsis = 1;
  4645. pf->num_lan_msix = 1;
  4646. break;
  4647. case 3:
  4648. pf->num_vmdq_vsis = 1;
  4649. pf->num_lan_msix = 2;
  4650. break;
  4651. default:
  4652. pf->num_lan_msix = min_t(int, (vec / 2),
  4653. pf->num_lan_qps);
  4654. pf->num_vmdq_vsis = min_t(int, (vec - pf->num_lan_msix),
  4655. I40E_DEFAULT_NUM_VMDQ_VSI);
  4656. break;
  4657. }
  4658. }
  4659. return err;
  4660. }
  4661. /**
  4662. * i40e_alloc_q_vector - Allocate memory for a single interrupt vector
  4663. * @vsi: the VSI being configured
  4664. * @v_idx: index of the vector in the vsi struct
  4665. *
  4666. * We allocate one q_vector. If allocation fails we return -ENOMEM.
  4667. **/
  4668. static int i40e_alloc_q_vector(struct i40e_vsi *vsi, int v_idx)
  4669. {
  4670. struct i40e_q_vector *q_vector;
  4671. /* allocate q_vector */
  4672. q_vector = kzalloc(sizeof(struct i40e_q_vector), GFP_KERNEL);
  4673. if (!q_vector)
  4674. return -ENOMEM;
  4675. q_vector->vsi = vsi;
  4676. q_vector->v_idx = v_idx;
  4677. cpumask_set_cpu(v_idx, &q_vector->affinity_mask);
  4678. if (vsi->netdev)
  4679. netif_napi_add(vsi->netdev, &q_vector->napi,
  4680. i40e_napi_poll, vsi->work_limit);
  4681. q_vector->rx.latency_range = I40E_LOW_LATENCY;
  4682. q_vector->tx.latency_range = I40E_LOW_LATENCY;
  4683. /* tie q_vector and vsi together */
  4684. vsi->q_vectors[v_idx] = q_vector;
  4685. return 0;
  4686. }
  4687. /**
  4688. * i40e_alloc_q_vectors - Allocate memory for interrupt vectors
  4689. * @vsi: the VSI being configured
  4690. *
  4691. * We allocate one q_vector per queue interrupt. If allocation fails we
  4692. * return -ENOMEM.
  4693. **/
  4694. static int i40e_alloc_q_vectors(struct i40e_vsi *vsi)
  4695. {
  4696. struct i40e_pf *pf = vsi->back;
  4697. int v_idx, num_q_vectors;
  4698. int err;
  4699. /* if not MSIX, give the one vector only to the LAN VSI */
  4700. if (pf->flags & I40E_FLAG_MSIX_ENABLED)
  4701. num_q_vectors = vsi->num_q_vectors;
  4702. else if (vsi == pf->vsi[pf->lan_vsi])
  4703. num_q_vectors = 1;
  4704. else
  4705. return -EINVAL;
  4706. for (v_idx = 0; v_idx < num_q_vectors; v_idx++) {
  4707. err = i40e_alloc_q_vector(vsi, v_idx);
  4708. if (err)
  4709. goto err_out;
  4710. }
  4711. return 0;
  4712. err_out:
  4713. while (v_idx--)
  4714. i40e_free_q_vector(vsi, v_idx);
  4715. return err;
  4716. }
  4717. /**
  4718. * i40e_init_interrupt_scheme - Determine proper interrupt scheme
  4719. * @pf: board private structure to initialize
  4720. **/
  4721. static void i40e_init_interrupt_scheme(struct i40e_pf *pf)
  4722. {
  4723. int err = 0;
  4724. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  4725. err = i40e_init_msix(pf);
  4726. if (err) {
  4727. pf->flags &= ~(I40E_FLAG_MSIX_ENABLED |
  4728. I40E_FLAG_RSS_ENABLED |
  4729. I40E_FLAG_MQ_ENABLED |
  4730. I40E_FLAG_DCB_ENABLED |
  4731. I40E_FLAG_SRIOV_ENABLED |
  4732. I40E_FLAG_FDIR_ENABLED |
  4733. I40E_FLAG_FDIR_ATR_ENABLED |
  4734. I40E_FLAG_VMDQ_ENABLED);
  4735. /* rework the queue expectations without MSIX */
  4736. i40e_determine_queue_usage(pf);
  4737. }
  4738. }
  4739. if (!(pf->flags & I40E_FLAG_MSIX_ENABLED) &&
  4740. (pf->flags & I40E_FLAG_MSI_ENABLED)) {
  4741. dev_info(&pf->pdev->dev, "MSIX not available, trying MSI\n");
  4742. err = pci_enable_msi(pf->pdev);
  4743. if (err) {
  4744. dev_info(&pf->pdev->dev, "MSI init failed - %d\n", err);
  4745. pf->flags &= ~I40E_FLAG_MSI_ENABLED;
  4746. }
  4747. }
  4748. if (!(pf->flags & (I40E_FLAG_MSIX_ENABLED | I40E_FLAG_MSI_ENABLED)))
  4749. dev_info(&pf->pdev->dev, "MSIX and MSI not available, falling back to Legacy IRQ\n");
  4750. /* track first vector for misc interrupts */
  4751. err = i40e_get_lump(pf, pf->irq_pile, 1, I40E_PILE_VALID_BIT-1);
  4752. }
  4753. /**
  4754. * i40e_setup_misc_vector - Setup the misc vector to handle non queue events
  4755. * @pf: board private structure
  4756. *
  4757. * This sets up the handler for MSIX 0, which is used to manage the
  4758. * non-queue interrupts, e.g. AdminQ and errors. This is not used
  4759. * when in MSI or Legacy interrupt mode.
  4760. **/
  4761. static int i40e_setup_misc_vector(struct i40e_pf *pf)
  4762. {
  4763. struct i40e_hw *hw = &pf->hw;
  4764. int err = 0;
  4765. /* Only request the irq if this is the first time through, and
  4766. * not when we're rebuilding after a Reset
  4767. */
  4768. if (!test_bit(__I40E_RESET_RECOVERY_PENDING, &pf->state)) {
  4769. err = request_irq(pf->msix_entries[0].vector,
  4770. i40e_intr, 0, pf->misc_int_name, pf);
  4771. if (err) {
  4772. dev_info(&pf->pdev->dev,
  4773. "request_irq for msix_misc failed: %d\n", err);
  4774. return -EFAULT;
  4775. }
  4776. }
  4777. i40e_enable_misc_int_causes(hw);
  4778. /* associate no queues to the misc vector */
  4779. wr32(hw, I40E_PFINT_LNKLST0, I40E_QUEUE_END_OF_LIST);
  4780. wr32(hw, I40E_PFINT_ITR0(I40E_RX_ITR), I40E_ITR_8K);
  4781. i40e_flush(hw);
  4782. i40e_irq_dynamic_enable_icr0(pf);
  4783. return err;
  4784. }
  4785. /**
  4786. * i40e_config_rss - Prepare for RSS if used
  4787. * @pf: board private structure
  4788. **/
  4789. static int i40e_config_rss(struct i40e_pf *pf)
  4790. {
  4791. struct i40e_hw *hw = &pf->hw;
  4792. u32 lut = 0;
  4793. int i, j;
  4794. u64 hena;
  4795. /* Set of random keys generated using kernel random number generator */
  4796. static const u32 seed[I40E_PFQF_HKEY_MAX_INDEX + 1] = {0x41b01687,
  4797. 0x183cfd8c, 0xce880440, 0x580cbc3c, 0x35897377,
  4798. 0x328b25e1, 0x4fa98922, 0xb7d90c14, 0xd5bad70d,
  4799. 0xcd15a2c1, 0xe8580225, 0x4a1e9d11, 0xfe5731be};
  4800. /* Fill out hash function seed */
  4801. for (i = 0; i <= I40E_PFQF_HKEY_MAX_INDEX; i++)
  4802. wr32(hw, I40E_PFQF_HKEY(i), seed[i]);
  4803. /* By default we enable TCP/UDP with IPv4/IPv6 ptypes */
  4804. hena = (u64)rd32(hw, I40E_PFQF_HENA(0)) |
  4805. ((u64)rd32(hw, I40E_PFQF_HENA(1)) << 32);
  4806. hena |= ((u64)1 << I40E_FILTER_PCTYPE_NONF_IPV4_UDP) |
  4807. ((u64)1 << I40E_FILTER_PCTYPE_NONF_UNICAST_IPV4_UDP) |
  4808. ((u64)1 << I40E_FILTER_PCTYPE_NONF_MULTICAST_IPV4_UDP) |
  4809. ((u64)1 << I40E_FILTER_PCTYPE_NONF_IPV4_TCP) |
  4810. ((u64)1 << I40E_FILTER_PCTYPE_NONF_IPV6_TCP) |
  4811. ((u64)1 << I40E_FILTER_PCTYPE_NONF_IPV6_UDP) |
  4812. ((u64)1 << I40E_FILTER_PCTYPE_NONF_UNICAST_IPV6_UDP) |
  4813. ((u64)1 << I40E_FILTER_PCTYPE_NONF_MULTICAST_IPV6_UDP) |
  4814. ((u64)1 << I40E_FILTER_PCTYPE_FRAG_IPV4)|
  4815. ((u64)1 << I40E_FILTER_PCTYPE_FRAG_IPV6);
  4816. wr32(hw, I40E_PFQF_HENA(0), (u32)hena);
  4817. wr32(hw, I40E_PFQF_HENA(1), (u32)(hena >> 32));
  4818. /* Populate the LUT with max no. of queues in round robin fashion */
  4819. for (i = 0, j = 0; i < pf->hw.func_caps.rss_table_size; i++, j++) {
  4820. /* The assumption is that lan qp count will be the highest
  4821. * qp count for any PF VSI that needs RSS.
  4822. * If multiple VSIs need RSS support, all the qp counts
  4823. * for those VSIs should be a power of 2 for RSS to work.
  4824. * If LAN VSI is the only consumer for RSS then this requirement
  4825. * is not necessary.
  4826. */
  4827. if (j == pf->rss_size)
  4828. j = 0;
  4829. /* lut = 4-byte sliding window of 4 lut entries */
  4830. lut = (lut << 8) | (j &
  4831. ((0x1 << pf->hw.func_caps.rss_table_entry_width) - 1));
  4832. /* On i = 3, we have 4 entries in lut; write to the register */
  4833. if ((i & 3) == 3)
  4834. wr32(hw, I40E_PFQF_HLUT(i >> 2), lut);
  4835. }
  4836. i40e_flush(hw);
  4837. return 0;
  4838. }
  4839. /**
  4840. * i40e_sw_init - Initialize general software structures (struct i40e_pf)
  4841. * @pf: board private structure to initialize
  4842. *
  4843. * i40e_sw_init initializes the Adapter private data structure.
  4844. * Fields are initialized based on PCI device information and
  4845. * OS network device settings (MTU size).
  4846. **/
  4847. static int i40e_sw_init(struct i40e_pf *pf)
  4848. {
  4849. int err = 0;
  4850. int size;
  4851. pf->msg_enable = netif_msg_init(I40E_DEFAULT_MSG_ENABLE,
  4852. (NETIF_MSG_DRV|NETIF_MSG_PROBE|NETIF_MSG_LINK));
  4853. if (debug != -1 && debug != I40E_DEFAULT_MSG_ENABLE) {
  4854. if (I40E_DEBUG_USER & debug)
  4855. pf->hw.debug_mask = debug;
  4856. pf->msg_enable = netif_msg_init((debug & ~I40E_DEBUG_USER),
  4857. I40E_DEFAULT_MSG_ENABLE);
  4858. }
  4859. /* Set default capability flags */
  4860. pf->flags = I40E_FLAG_RX_CSUM_ENABLED |
  4861. I40E_FLAG_MSI_ENABLED |
  4862. I40E_FLAG_MSIX_ENABLED |
  4863. I40E_FLAG_RX_PS_ENABLED |
  4864. I40E_FLAG_MQ_ENABLED |
  4865. I40E_FLAG_RX_1BUF_ENABLED;
  4866. pf->rss_size_max = 0x1 << pf->hw.func_caps.rss_table_entry_width;
  4867. if (pf->hw.func_caps.rss) {
  4868. pf->flags |= I40E_FLAG_RSS_ENABLED;
  4869. pf->rss_size = min_t(int, pf->rss_size_max,
  4870. nr_cpus_node(numa_node_id()));
  4871. } else {
  4872. pf->rss_size = 1;
  4873. }
  4874. if (pf->hw.func_caps.dcb)
  4875. pf->num_tc_qps = I40E_DEFAULT_QUEUES_PER_TC;
  4876. else
  4877. pf->num_tc_qps = 0;
  4878. if (pf->hw.func_caps.fd) {
  4879. /* FW/NVM is not yet fixed in this regard */
  4880. if ((pf->hw.func_caps.fd_filters_guaranteed > 0) ||
  4881. (pf->hw.func_caps.fd_filters_best_effort > 0)) {
  4882. pf->flags |= I40E_FLAG_FDIR_ATR_ENABLED;
  4883. dev_info(&pf->pdev->dev,
  4884. "Flow Director ATR mode Enabled\n");
  4885. pf->flags |= I40E_FLAG_FDIR_ENABLED;
  4886. dev_info(&pf->pdev->dev,
  4887. "Flow Director Side Band mode Enabled\n");
  4888. pf->fdir_pf_filter_count =
  4889. pf->hw.func_caps.fd_filters_guaranteed;
  4890. }
  4891. } else {
  4892. pf->fdir_pf_filter_count = 0;
  4893. }
  4894. if (pf->hw.func_caps.vmdq) {
  4895. pf->flags |= I40E_FLAG_VMDQ_ENABLED;
  4896. pf->num_vmdq_vsis = I40E_DEFAULT_NUM_VMDQ_VSI;
  4897. pf->num_vmdq_qps = I40E_DEFAULT_QUEUES_PER_VMDQ;
  4898. }
  4899. /* MFP mode enabled */
  4900. if (pf->hw.func_caps.npar_enable || pf->hw.func_caps.mfp_mode_1) {
  4901. pf->flags |= I40E_FLAG_MFP_ENABLED;
  4902. dev_info(&pf->pdev->dev, "MFP mode Enabled\n");
  4903. }
  4904. #ifdef CONFIG_PCI_IOV
  4905. if (pf->hw.func_caps.num_vfs) {
  4906. pf->num_vf_qps = I40E_DEFAULT_QUEUES_PER_VF;
  4907. pf->flags |= I40E_FLAG_SRIOV_ENABLED;
  4908. pf->num_req_vfs = min_t(int,
  4909. pf->hw.func_caps.num_vfs,
  4910. I40E_MAX_VF_COUNT);
  4911. }
  4912. #endif /* CONFIG_PCI_IOV */
  4913. pf->eeprom_version = 0xDEAD;
  4914. pf->lan_veb = I40E_NO_VEB;
  4915. pf->lan_vsi = I40E_NO_VSI;
  4916. /* set up queue assignment tracking */
  4917. size = sizeof(struct i40e_lump_tracking)
  4918. + (sizeof(u16) * pf->hw.func_caps.num_tx_qp);
  4919. pf->qp_pile = kzalloc(size, GFP_KERNEL);
  4920. if (!pf->qp_pile) {
  4921. err = -ENOMEM;
  4922. goto sw_init_done;
  4923. }
  4924. pf->qp_pile->num_entries = pf->hw.func_caps.num_tx_qp;
  4925. pf->qp_pile->search_hint = 0;
  4926. /* set up vector assignment tracking */
  4927. size = sizeof(struct i40e_lump_tracking)
  4928. + (sizeof(u16) * pf->hw.func_caps.num_msix_vectors);
  4929. pf->irq_pile = kzalloc(size, GFP_KERNEL);
  4930. if (!pf->irq_pile) {
  4931. kfree(pf->qp_pile);
  4932. err = -ENOMEM;
  4933. goto sw_init_done;
  4934. }
  4935. pf->irq_pile->num_entries = pf->hw.func_caps.num_msix_vectors;
  4936. pf->irq_pile->search_hint = 0;
  4937. mutex_init(&pf->switch_mutex);
  4938. sw_init_done:
  4939. return err;
  4940. }
  4941. /**
  4942. * i40e_set_features - set the netdev feature flags
  4943. * @netdev: ptr to the netdev being adjusted
  4944. * @features: the feature set that the stack is suggesting
  4945. **/
  4946. static int i40e_set_features(struct net_device *netdev,
  4947. netdev_features_t features)
  4948. {
  4949. struct i40e_netdev_priv *np = netdev_priv(netdev);
  4950. struct i40e_vsi *vsi = np->vsi;
  4951. if (features & NETIF_F_HW_VLAN_CTAG_RX)
  4952. i40e_vlan_stripping_enable(vsi);
  4953. else
  4954. i40e_vlan_stripping_disable(vsi);
  4955. return 0;
  4956. }
  4957. static const struct net_device_ops i40e_netdev_ops = {
  4958. .ndo_open = i40e_open,
  4959. .ndo_stop = i40e_close,
  4960. .ndo_start_xmit = i40e_lan_xmit_frame,
  4961. .ndo_get_stats64 = i40e_get_netdev_stats_struct,
  4962. .ndo_set_rx_mode = i40e_set_rx_mode,
  4963. .ndo_validate_addr = eth_validate_addr,
  4964. .ndo_set_mac_address = i40e_set_mac,
  4965. .ndo_change_mtu = i40e_change_mtu,
  4966. .ndo_tx_timeout = i40e_tx_timeout,
  4967. .ndo_vlan_rx_add_vid = i40e_vlan_rx_add_vid,
  4968. .ndo_vlan_rx_kill_vid = i40e_vlan_rx_kill_vid,
  4969. #ifdef CONFIG_NET_POLL_CONTROLLER
  4970. .ndo_poll_controller = i40e_netpoll,
  4971. #endif
  4972. .ndo_setup_tc = i40e_setup_tc,
  4973. .ndo_set_features = i40e_set_features,
  4974. .ndo_set_vf_mac = i40e_ndo_set_vf_mac,
  4975. .ndo_set_vf_vlan = i40e_ndo_set_vf_port_vlan,
  4976. .ndo_set_vf_tx_rate = i40e_ndo_set_vf_bw,
  4977. .ndo_get_vf_config = i40e_ndo_get_vf_config,
  4978. };
  4979. /**
  4980. * i40e_config_netdev - Setup the netdev flags
  4981. * @vsi: the VSI being configured
  4982. *
  4983. * Returns 0 on success, negative value on failure
  4984. **/
  4985. static int i40e_config_netdev(struct i40e_vsi *vsi)
  4986. {
  4987. struct i40e_pf *pf = vsi->back;
  4988. struct i40e_hw *hw = &pf->hw;
  4989. struct i40e_netdev_priv *np;
  4990. struct net_device *netdev;
  4991. u8 mac_addr[ETH_ALEN];
  4992. int etherdev_size;
  4993. etherdev_size = sizeof(struct i40e_netdev_priv);
  4994. netdev = alloc_etherdev_mq(etherdev_size, vsi->alloc_queue_pairs);
  4995. if (!netdev)
  4996. return -ENOMEM;
  4997. vsi->netdev = netdev;
  4998. np = netdev_priv(netdev);
  4999. np->vsi = vsi;
  5000. netdev->hw_enc_features = NETIF_F_IP_CSUM |
  5001. NETIF_F_GSO_UDP_TUNNEL |
  5002. NETIF_F_TSO |
  5003. NETIF_F_SG;
  5004. netdev->features = NETIF_F_SG |
  5005. NETIF_F_IP_CSUM |
  5006. NETIF_F_SCTP_CSUM |
  5007. NETIF_F_HIGHDMA |
  5008. NETIF_F_GSO_UDP_TUNNEL |
  5009. NETIF_F_HW_VLAN_CTAG_TX |
  5010. NETIF_F_HW_VLAN_CTAG_RX |
  5011. NETIF_F_HW_VLAN_CTAG_FILTER |
  5012. NETIF_F_IPV6_CSUM |
  5013. NETIF_F_TSO |
  5014. NETIF_F_TSO6 |
  5015. NETIF_F_RXCSUM |
  5016. NETIF_F_RXHASH |
  5017. 0;
  5018. /* copy netdev features into list of user selectable features */
  5019. netdev->hw_features |= netdev->features;
  5020. if (vsi->type == I40E_VSI_MAIN) {
  5021. SET_NETDEV_DEV(netdev, &pf->pdev->dev);
  5022. memcpy(mac_addr, hw->mac.perm_addr, ETH_ALEN);
  5023. } else {
  5024. /* relate the VSI_VMDQ name to the VSI_MAIN name */
  5025. snprintf(netdev->name, IFNAMSIZ, "%sv%%d",
  5026. pf->vsi[pf->lan_vsi]->netdev->name);
  5027. random_ether_addr(mac_addr);
  5028. i40e_add_filter(vsi, mac_addr, I40E_VLAN_ANY, false, false);
  5029. }
  5030. memcpy(netdev->dev_addr, mac_addr, ETH_ALEN);
  5031. memcpy(netdev->perm_addr, mac_addr, ETH_ALEN);
  5032. /* vlan gets same features (except vlan offload)
  5033. * after any tweaks for specific VSI types
  5034. */
  5035. netdev->vlan_features = netdev->features & ~(NETIF_F_HW_VLAN_CTAG_TX |
  5036. NETIF_F_HW_VLAN_CTAG_RX |
  5037. NETIF_F_HW_VLAN_CTAG_FILTER);
  5038. netdev->priv_flags |= IFF_UNICAST_FLT;
  5039. netdev->priv_flags |= IFF_SUPP_NOFCS;
  5040. /* Setup netdev TC information */
  5041. i40e_vsi_config_netdev_tc(vsi, vsi->tc_config.enabled_tc);
  5042. netdev->netdev_ops = &i40e_netdev_ops;
  5043. netdev->watchdog_timeo = 5 * HZ;
  5044. i40e_set_ethtool_ops(netdev);
  5045. return 0;
  5046. }
  5047. /**
  5048. * i40e_vsi_delete - Delete a VSI from the switch
  5049. * @vsi: the VSI being removed
  5050. *
  5051. * Returns 0 on success, negative value on failure
  5052. **/
  5053. static void i40e_vsi_delete(struct i40e_vsi *vsi)
  5054. {
  5055. /* remove default VSI is not allowed */
  5056. if (vsi == vsi->back->vsi[vsi->back->lan_vsi])
  5057. return;
  5058. /* there is no HW VSI for FDIR */
  5059. if (vsi->type == I40E_VSI_FDIR)
  5060. return;
  5061. i40e_aq_delete_element(&vsi->back->hw, vsi->seid, NULL);
  5062. return;
  5063. }
  5064. /**
  5065. * i40e_add_vsi - Add a VSI to the switch
  5066. * @vsi: the VSI being configured
  5067. *
  5068. * This initializes a VSI context depending on the VSI type to be added and
  5069. * passes it down to the add_vsi aq command.
  5070. **/
  5071. static int i40e_add_vsi(struct i40e_vsi *vsi)
  5072. {
  5073. int ret = -ENODEV;
  5074. struct i40e_mac_filter *f, *ftmp;
  5075. struct i40e_pf *pf = vsi->back;
  5076. struct i40e_hw *hw = &pf->hw;
  5077. struct i40e_vsi_context ctxt;
  5078. u8 enabled_tc = 0x1; /* TC0 enabled */
  5079. int f_count = 0;
  5080. memset(&ctxt, 0, sizeof(ctxt));
  5081. switch (vsi->type) {
  5082. case I40E_VSI_MAIN:
  5083. /* The PF's main VSI is already setup as part of the
  5084. * device initialization, so we'll not bother with
  5085. * the add_vsi call, but we will retrieve the current
  5086. * VSI context.
  5087. */
  5088. ctxt.seid = pf->main_vsi_seid;
  5089. ctxt.pf_num = pf->hw.pf_id;
  5090. ctxt.vf_num = 0;
  5091. ret = i40e_aq_get_vsi_params(&pf->hw, &ctxt, NULL);
  5092. ctxt.flags = I40E_AQ_VSI_TYPE_PF;
  5093. if (ret) {
  5094. dev_info(&pf->pdev->dev,
  5095. "couldn't get pf vsi config, err %d, aq_err %d\n",
  5096. ret, pf->hw.aq.asq_last_status);
  5097. return -ENOENT;
  5098. }
  5099. memcpy(&vsi->info, &ctxt.info, sizeof(ctxt.info));
  5100. vsi->info.valid_sections = 0;
  5101. vsi->seid = ctxt.seid;
  5102. vsi->id = ctxt.vsi_number;
  5103. enabled_tc = i40e_pf_get_tc_map(pf);
  5104. /* MFP mode setup queue map and update VSI */
  5105. if (pf->flags & I40E_FLAG_MFP_ENABLED) {
  5106. memset(&ctxt, 0, sizeof(ctxt));
  5107. ctxt.seid = pf->main_vsi_seid;
  5108. ctxt.pf_num = pf->hw.pf_id;
  5109. ctxt.vf_num = 0;
  5110. i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, false);
  5111. ret = i40e_aq_update_vsi_params(hw, &ctxt, NULL);
  5112. if (ret) {
  5113. dev_info(&pf->pdev->dev,
  5114. "update vsi failed, aq_err=%d\n",
  5115. pf->hw.aq.asq_last_status);
  5116. ret = -ENOENT;
  5117. goto err;
  5118. }
  5119. /* update the local VSI info queue map */
  5120. i40e_vsi_update_queue_map(vsi, &ctxt);
  5121. vsi->info.valid_sections = 0;
  5122. } else {
  5123. /* Default/Main VSI is only enabled for TC0
  5124. * reconfigure it to enable all TCs that are
  5125. * available on the port in SFP mode.
  5126. */
  5127. ret = i40e_vsi_config_tc(vsi, enabled_tc);
  5128. if (ret) {
  5129. dev_info(&pf->pdev->dev,
  5130. "failed to configure TCs for main VSI tc_map 0x%08x, err %d, aq_err %d\n",
  5131. enabled_tc, ret,
  5132. pf->hw.aq.asq_last_status);
  5133. ret = -ENOENT;
  5134. }
  5135. }
  5136. break;
  5137. case I40E_VSI_FDIR:
  5138. /* no queue mapping or actual HW VSI needed */
  5139. vsi->info.valid_sections = 0;
  5140. vsi->seid = 0;
  5141. vsi->id = 0;
  5142. i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, true);
  5143. return 0;
  5144. break;
  5145. case I40E_VSI_VMDQ2:
  5146. ctxt.pf_num = hw->pf_id;
  5147. ctxt.vf_num = 0;
  5148. ctxt.uplink_seid = vsi->uplink_seid;
  5149. ctxt.connection_type = 0x1; /* regular data port */
  5150. ctxt.flags = I40E_AQ_VSI_TYPE_VMDQ2;
  5151. ctxt.info.valid_sections |= cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
  5152. /* This VSI is connected to VEB so the switch_id
  5153. * should be set to zero by default.
  5154. */
  5155. ctxt.info.switch_id = 0;
  5156. ctxt.info.switch_id |= cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_LOCAL_LB);
  5157. ctxt.info.switch_id |= cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
  5158. /* Setup the VSI tx/rx queue map for TC0 only for now */
  5159. i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, true);
  5160. break;
  5161. case I40E_VSI_SRIOV:
  5162. ctxt.pf_num = hw->pf_id;
  5163. ctxt.vf_num = vsi->vf_id + hw->func_caps.vf_base_id;
  5164. ctxt.uplink_seid = vsi->uplink_seid;
  5165. ctxt.connection_type = 0x1; /* regular data port */
  5166. ctxt.flags = I40E_AQ_VSI_TYPE_VF;
  5167. ctxt.info.valid_sections |= cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
  5168. /* This VSI is connected to VEB so the switch_id
  5169. * should be set to zero by default.
  5170. */
  5171. ctxt.info.switch_id = cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
  5172. ctxt.info.valid_sections |= cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
  5173. ctxt.info.port_vlan_flags |= I40E_AQ_VSI_PVLAN_MODE_ALL;
  5174. /* Setup the VSI tx/rx queue map for TC0 only for now */
  5175. i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, true);
  5176. break;
  5177. default:
  5178. return -ENODEV;
  5179. }
  5180. if (vsi->type != I40E_VSI_MAIN) {
  5181. ret = i40e_aq_add_vsi(hw, &ctxt, NULL);
  5182. if (ret) {
  5183. dev_info(&vsi->back->pdev->dev,
  5184. "add vsi failed, aq_err=%d\n",
  5185. vsi->back->hw.aq.asq_last_status);
  5186. ret = -ENOENT;
  5187. goto err;
  5188. }
  5189. memcpy(&vsi->info, &ctxt.info, sizeof(ctxt.info));
  5190. vsi->info.valid_sections = 0;
  5191. vsi->seid = ctxt.seid;
  5192. vsi->id = ctxt.vsi_number;
  5193. }
  5194. /* If macvlan filters already exist, force them to get loaded */
  5195. list_for_each_entry_safe(f, ftmp, &vsi->mac_filter_list, list) {
  5196. f->changed = true;
  5197. f_count++;
  5198. }
  5199. if (f_count) {
  5200. vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
  5201. pf->flags |= I40E_FLAG_FILTER_SYNC;
  5202. }
  5203. /* Update VSI BW information */
  5204. ret = i40e_vsi_get_bw_info(vsi);
  5205. if (ret) {
  5206. dev_info(&pf->pdev->dev,
  5207. "couldn't get vsi bw info, err %d, aq_err %d\n",
  5208. ret, pf->hw.aq.asq_last_status);
  5209. /* VSI is already added so not tearing that up */
  5210. ret = 0;
  5211. }
  5212. err:
  5213. return ret;
  5214. }
  5215. /**
  5216. * i40e_vsi_release - Delete a VSI and free its resources
  5217. * @vsi: the VSI being removed
  5218. *
  5219. * Returns 0 on success or < 0 on error
  5220. **/
  5221. int i40e_vsi_release(struct i40e_vsi *vsi)
  5222. {
  5223. struct i40e_mac_filter *f, *ftmp;
  5224. struct i40e_veb *veb = NULL;
  5225. struct i40e_pf *pf;
  5226. u16 uplink_seid;
  5227. int i, n;
  5228. pf = vsi->back;
  5229. /* release of a VEB-owner or last VSI is not allowed */
  5230. if (vsi->flags & I40E_VSI_FLAG_VEB_OWNER) {
  5231. dev_info(&pf->pdev->dev, "VSI %d has existing VEB %d\n",
  5232. vsi->seid, vsi->uplink_seid);
  5233. return -ENODEV;
  5234. }
  5235. if (vsi == pf->vsi[pf->lan_vsi] &&
  5236. !test_bit(__I40E_DOWN, &pf->state)) {
  5237. dev_info(&pf->pdev->dev, "Can't remove PF VSI\n");
  5238. return -ENODEV;
  5239. }
  5240. uplink_seid = vsi->uplink_seid;
  5241. if (vsi->type != I40E_VSI_SRIOV) {
  5242. if (vsi->netdev_registered) {
  5243. vsi->netdev_registered = false;
  5244. if (vsi->netdev) {
  5245. /* results in a call to i40e_close() */
  5246. unregister_netdev(vsi->netdev);
  5247. free_netdev(vsi->netdev);
  5248. vsi->netdev = NULL;
  5249. }
  5250. } else {
  5251. if (!test_and_set_bit(__I40E_DOWN, &vsi->state))
  5252. i40e_down(vsi);
  5253. i40e_vsi_free_irq(vsi);
  5254. i40e_vsi_free_tx_resources(vsi);
  5255. i40e_vsi_free_rx_resources(vsi);
  5256. }
  5257. i40e_vsi_disable_irq(vsi);
  5258. }
  5259. list_for_each_entry_safe(f, ftmp, &vsi->mac_filter_list, list)
  5260. i40e_del_filter(vsi, f->macaddr, f->vlan,
  5261. f->is_vf, f->is_netdev);
  5262. i40e_sync_vsi_filters(vsi);
  5263. i40e_vsi_delete(vsi);
  5264. i40e_vsi_free_q_vectors(vsi);
  5265. i40e_vsi_clear_rings(vsi);
  5266. i40e_vsi_clear(vsi);
  5267. /* If this was the last thing on the VEB, except for the
  5268. * controlling VSI, remove the VEB, which puts the controlling
  5269. * VSI onto the next level down in the switch.
  5270. *
  5271. * Well, okay, there's one more exception here: don't remove
  5272. * the orphan VEBs yet. We'll wait for an explicit remove request
  5273. * from up the network stack.
  5274. */
  5275. for (n = 0, i = 0; i < pf->hw.func_caps.num_vsis; i++) {
  5276. if (pf->vsi[i] &&
  5277. pf->vsi[i]->uplink_seid == uplink_seid &&
  5278. (pf->vsi[i]->flags & I40E_VSI_FLAG_VEB_OWNER) == 0) {
  5279. n++; /* count the VSIs */
  5280. }
  5281. }
  5282. for (i = 0; i < I40E_MAX_VEB; i++) {
  5283. if (!pf->veb[i])
  5284. continue;
  5285. if (pf->veb[i]->uplink_seid == uplink_seid)
  5286. n++; /* count the VEBs */
  5287. if (pf->veb[i]->seid == uplink_seid)
  5288. veb = pf->veb[i];
  5289. }
  5290. if (n == 0 && veb && veb->uplink_seid != 0)
  5291. i40e_veb_release(veb);
  5292. return 0;
  5293. }
  5294. /**
  5295. * i40e_vsi_setup_vectors - Set up the q_vectors for the given VSI
  5296. * @vsi: ptr to the VSI
  5297. *
  5298. * This should only be called after i40e_vsi_mem_alloc() which allocates the
  5299. * corresponding SW VSI structure and initializes num_queue_pairs for the
  5300. * newly allocated VSI.
  5301. *
  5302. * Returns 0 on success or negative on failure
  5303. **/
  5304. static int i40e_vsi_setup_vectors(struct i40e_vsi *vsi)
  5305. {
  5306. int ret = -ENOENT;
  5307. struct i40e_pf *pf = vsi->back;
  5308. if (vsi->q_vectors[0]) {
  5309. dev_info(&pf->pdev->dev, "VSI %d has existing q_vectors\n",
  5310. vsi->seid);
  5311. return -EEXIST;
  5312. }
  5313. if (vsi->base_vector) {
  5314. dev_info(&pf->pdev->dev,
  5315. "VSI %d has non-zero base vector %d\n",
  5316. vsi->seid, vsi->base_vector);
  5317. return -EEXIST;
  5318. }
  5319. ret = i40e_alloc_q_vectors(vsi);
  5320. if (ret) {
  5321. dev_info(&pf->pdev->dev,
  5322. "failed to allocate %d q_vector for VSI %d, ret=%d\n",
  5323. vsi->num_q_vectors, vsi->seid, ret);
  5324. vsi->num_q_vectors = 0;
  5325. goto vector_setup_out;
  5326. }
  5327. if (vsi->num_q_vectors)
  5328. vsi->base_vector = i40e_get_lump(pf, pf->irq_pile,
  5329. vsi->num_q_vectors, vsi->idx);
  5330. if (vsi->base_vector < 0) {
  5331. dev_info(&pf->pdev->dev,
  5332. "failed to get q tracking for VSI %d, err=%d\n",
  5333. vsi->seid, vsi->base_vector);
  5334. i40e_vsi_free_q_vectors(vsi);
  5335. ret = -ENOENT;
  5336. goto vector_setup_out;
  5337. }
  5338. vector_setup_out:
  5339. return ret;
  5340. }
  5341. /**
  5342. * i40e_vsi_setup - Set up a VSI by a given type
  5343. * @pf: board private structure
  5344. * @type: VSI type
  5345. * @uplink_seid: the switch element to link to
  5346. * @param1: usage depends upon VSI type. For VF types, indicates VF id
  5347. *
  5348. * This allocates the sw VSI structure and its queue resources, then add a VSI
  5349. * to the identified VEB.
  5350. *
  5351. * Returns pointer to the successfully allocated and configure VSI sw struct on
  5352. * success, otherwise returns NULL on failure.
  5353. **/
  5354. struct i40e_vsi *i40e_vsi_setup(struct i40e_pf *pf, u8 type,
  5355. u16 uplink_seid, u32 param1)
  5356. {
  5357. struct i40e_vsi *vsi = NULL;
  5358. struct i40e_veb *veb = NULL;
  5359. int ret, i;
  5360. int v_idx;
  5361. /* The requested uplink_seid must be either
  5362. * - the PF's port seid
  5363. * no VEB is needed because this is the PF
  5364. * or this is a Flow Director special case VSI
  5365. * - seid of an existing VEB
  5366. * - seid of a VSI that owns an existing VEB
  5367. * - seid of a VSI that doesn't own a VEB
  5368. * a new VEB is created and the VSI becomes the owner
  5369. * - seid of the PF VSI, which is what creates the first VEB
  5370. * this is a special case of the previous
  5371. *
  5372. * Find which uplink_seid we were given and create a new VEB if needed
  5373. */
  5374. for (i = 0; i < I40E_MAX_VEB; i++) {
  5375. if (pf->veb[i] && pf->veb[i]->seid == uplink_seid) {
  5376. veb = pf->veb[i];
  5377. break;
  5378. }
  5379. }
  5380. if (!veb && uplink_seid != pf->mac_seid) {
  5381. for (i = 0; i < pf->hw.func_caps.num_vsis; i++) {
  5382. if (pf->vsi[i] && pf->vsi[i]->seid == uplink_seid) {
  5383. vsi = pf->vsi[i];
  5384. break;
  5385. }
  5386. }
  5387. if (!vsi) {
  5388. dev_info(&pf->pdev->dev, "no such uplink_seid %d\n",
  5389. uplink_seid);
  5390. return NULL;
  5391. }
  5392. if (vsi->uplink_seid == pf->mac_seid)
  5393. veb = i40e_veb_setup(pf, 0, pf->mac_seid, vsi->seid,
  5394. vsi->tc_config.enabled_tc);
  5395. else if ((vsi->flags & I40E_VSI_FLAG_VEB_OWNER) == 0)
  5396. veb = i40e_veb_setup(pf, 0, vsi->uplink_seid, vsi->seid,
  5397. vsi->tc_config.enabled_tc);
  5398. for (i = 0; i < I40E_MAX_VEB && !veb; i++) {
  5399. if (pf->veb[i] && pf->veb[i]->seid == vsi->uplink_seid)
  5400. veb = pf->veb[i];
  5401. }
  5402. if (!veb) {
  5403. dev_info(&pf->pdev->dev, "couldn't add VEB\n");
  5404. return NULL;
  5405. }
  5406. vsi->flags |= I40E_VSI_FLAG_VEB_OWNER;
  5407. uplink_seid = veb->seid;
  5408. }
  5409. /* get vsi sw struct */
  5410. v_idx = i40e_vsi_mem_alloc(pf, type);
  5411. if (v_idx < 0)
  5412. goto err_alloc;
  5413. vsi = pf->vsi[v_idx];
  5414. vsi->type = type;
  5415. vsi->veb_idx = (veb ? veb->idx : I40E_NO_VEB);
  5416. if (type == I40E_VSI_MAIN)
  5417. pf->lan_vsi = v_idx;
  5418. else if (type == I40E_VSI_SRIOV)
  5419. vsi->vf_id = param1;
  5420. /* assign it some queues */
  5421. ret = i40e_get_lump(pf, pf->qp_pile, vsi->alloc_queue_pairs, vsi->idx);
  5422. if (ret < 0) {
  5423. dev_info(&pf->pdev->dev, "VSI %d get_lump failed %d\n",
  5424. vsi->seid, ret);
  5425. goto err_vsi;
  5426. }
  5427. vsi->base_queue = ret;
  5428. /* get a VSI from the hardware */
  5429. vsi->uplink_seid = uplink_seid;
  5430. ret = i40e_add_vsi(vsi);
  5431. if (ret)
  5432. goto err_vsi;
  5433. switch (vsi->type) {
  5434. /* setup the netdev if needed */
  5435. case I40E_VSI_MAIN:
  5436. case I40E_VSI_VMDQ2:
  5437. ret = i40e_config_netdev(vsi);
  5438. if (ret)
  5439. goto err_netdev;
  5440. ret = register_netdev(vsi->netdev);
  5441. if (ret)
  5442. goto err_netdev;
  5443. vsi->netdev_registered = true;
  5444. netif_carrier_off(vsi->netdev);
  5445. /* fall through */
  5446. case I40E_VSI_FDIR:
  5447. /* set up vectors and rings if needed */
  5448. ret = i40e_vsi_setup_vectors(vsi);
  5449. if (ret)
  5450. goto err_msix;
  5451. ret = i40e_alloc_rings(vsi);
  5452. if (ret)
  5453. goto err_rings;
  5454. /* map all of the rings to the q_vectors */
  5455. i40e_vsi_map_rings_to_vectors(vsi);
  5456. i40e_vsi_reset_stats(vsi);
  5457. break;
  5458. default:
  5459. /* no netdev or rings for the other VSI types */
  5460. break;
  5461. }
  5462. return vsi;
  5463. err_rings:
  5464. i40e_vsi_free_q_vectors(vsi);
  5465. err_msix:
  5466. if (vsi->netdev_registered) {
  5467. vsi->netdev_registered = false;
  5468. unregister_netdev(vsi->netdev);
  5469. free_netdev(vsi->netdev);
  5470. vsi->netdev = NULL;
  5471. }
  5472. err_netdev:
  5473. i40e_aq_delete_element(&pf->hw, vsi->seid, NULL);
  5474. err_vsi:
  5475. i40e_vsi_clear(vsi);
  5476. err_alloc:
  5477. return NULL;
  5478. }
  5479. /**
  5480. * i40e_veb_get_bw_info - Query VEB BW information
  5481. * @veb: the veb to query
  5482. *
  5483. * Query the Tx scheduler BW configuration data for given VEB
  5484. **/
  5485. static int i40e_veb_get_bw_info(struct i40e_veb *veb)
  5486. {
  5487. struct i40e_aqc_query_switching_comp_ets_config_resp ets_data;
  5488. struct i40e_aqc_query_switching_comp_bw_config_resp bw_data;
  5489. struct i40e_pf *pf = veb->pf;
  5490. struct i40e_hw *hw = &pf->hw;
  5491. u32 tc_bw_max;
  5492. int ret = 0;
  5493. int i;
  5494. ret = i40e_aq_query_switch_comp_bw_config(hw, veb->seid,
  5495. &bw_data, NULL);
  5496. if (ret) {
  5497. dev_info(&pf->pdev->dev,
  5498. "query veb bw config failed, aq_err=%d\n",
  5499. hw->aq.asq_last_status);
  5500. goto out;
  5501. }
  5502. ret = i40e_aq_query_switch_comp_ets_config(hw, veb->seid,
  5503. &ets_data, NULL);
  5504. if (ret) {
  5505. dev_info(&pf->pdev->dev,
  5506. "query veb bw ets config failed, aq_err=%d\n",
  5507. hw->aq.asq_last_status);
  5508. goto out;
  5509. }
  5510. veb->bw_limit = le16_to_cpu(ets_data.port_bw_limit);
  5511. veb->bw_max_quanta = ets_data.tc_bw_max;
  5512. veb->is_abs_credits = bw_data.absolute_credits_enable;
  5513. tc_bw_max = le16_to_cpu(bw_data.tc_bw_max[0]) |
  5514. (le16_to_cpu(bw_data.tc_bw_max[1]) << 16);
  5515. for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
  5516. veb->bw_tc_share_credits[i] = bw_data.tc_bw_share_credits[i];
  5517. veb->bw_tc_limit_credits[i] =
  5518. le16_to_cpu(bw_data.tc_bw_limits[i]);
  5519. veb->bw_tc_max_quanta[i] = ((tc_bw_max >> (i*4)) & 0x7);
  5520. }
  5521. out:
  5522. return ret;
  5523. }
  5524. /**
  5525. * i40e_veb_mem_alloc - Allocates the next available struct veb in the PF
  5526. * @pf: board private structure
  5527. *
  5528. * On error: returns error code (negative)
  5529. * On success: returns vsi index in PF (positive)
  5530. **/
  5531. static int i40e_veb_mem_alloc(struct i40e_pf *pf)
  5532. {
  5533. int ret = -ENOENT;
  5534. struct i40e_veb *veb;
  5535. int i;
  5536. /* Need to protect the allocation of switch elements at the PF level */
  5537. mutex_lock(&pf->switch_mutex);
  5538. /* VEB list may be fragmented if VEB creation/destruction has
  5539. * been happening. We can afford to do a quick scan to look
  5540. * for any free slots in the list.
  5541. *
  5542. * find next empty veb slot, looping back around if necessary
  5543. */
  5544. i = 0;
  5545. while ((i < I40E_MAX_VEB) && (pf->veb[i] != NULL))
  5546. i++;
  5547. if (i >= I40E_MAX_VEB) {
  5548. ret = -ENOMEM;
  5549. goto err_alloc_veb; /* out of VEB slots! */
  5550. }
  5551. veb = kzalloc(sizeof(*veb), GFP_KERNEL);
  5552. if (!veb) {
  5553. ret = -ENOMEM;
  5554. goto err_alloc_veb;
  5555. }
  5556. veb->pf = pf;
  5557. veb->idx = i;
  5558. veb->enabled_tc = 1;
  5559. pf->veb[i] = veb;
  5560. ret = i;
  5561. err_alloc_veb:
  5562. mutex_unlock(&pf->switch_mutex);
  5563. return ret;
  5564. }
  5565. /**
  5566. * i40e_switch_branch_release - Delete a branch of the switch tree
  5567. * @branch: where to start deleting
  5568. *
  5569. * This uses recursion to find the tips of the branch to be
  5570. * removed, deleting until we get back to and can delete this VEB.
  5571. **/
  5572. static void i40e_switch_branch_release(struct i40e_veb *branch)
  5573. {
  5574. struct i40e_pf *pf = branch->pf;
  5575. u16 branch_seid = branch->seid;
  5576. u16 veb_idx = branch->idx;
  5577. int i;
  5578. /* release any VEBs on this VEB - RECURSION */
  5579. for (i = 0; i < I40E_MAX_VEB; i++) {
  5580. if (!pf->veb[i])
  5581. continue;
  5582. if (pf->veb[i]->uplink_seid == branch->seid)
  5583. i40e_switch_branch_release(pf->veb[i]);
  5584. }
  5585. /* Release the VSIs on this VEB, but not the owner VSI.
  5586. *
  5587. * NOTE: Removing the last VSI on a VEB has the SIDE EFFECT of removing
  5588. * the VEB itself, so don't use (*branch) after this loop.
  5589. */
  5590. for (i = 0; i < pf->hw.func_caps.num_vsis; i++) {
  5591. if (!pf->vsi[i])
  5592. continue;
  5593. if (pf->vsi[i]->uplink_seid == branch_seid &&
  5594. (pf->vsi[i]->flags & I40E_VSI_FLAG_VEB_OWNER) == 0) {
  5595. i40e_vsi_release(pf->vsi[i]);
  5596. }
  5597. }
  5598. /* There's one corner case where the VEB might not have been
  5599. * removed, so double check it here and remove it if needed.
  5600. * This case happens if the veb was created from the debugfs
  5601. * commands and no VSIs were added to it.
  5602. */
  5603. if (pf->veb[veb_idx])
  5604. i40e_veb_release(pf->veb[veb_idx]);
  5605. }
  5606. /**
  5607. * i40e_veb_clear - remove veb struct
  5608. * @veb: the veb to remove
  5609. **/
  5610. static void i40e_veb_clear(struct i40e_veb *veb)
  5611. {
  5612. if (!veb)
  5613. return;
  5614. if (veb->pf) {
  5615. struct i40e_pf *pf = veb->pf;
  5616. mutex_lock(&pf->switch_mutex);
  5617. if (pf->veb[veb->idx] == veb)
  5618. pf->veb[veb->idx] = NULL;
  5619. mutex_unlock(&pf->switch_mutex);
  5620. }
  5621. kfree(veb);
  5622. }
  5623. /**
  5624. * i40e_veb_release - Delete a VEB and free its resources
  5625. * @veb: the VEB being removed
  5626. **/
  5627. void i40e_veb_release(struct i40e_veb *veb)
  5628. {
  5629. struct i40e_vsi *vsi = NULL;
  5630. struct i40e_pf *pf;
  5631. int i, n = 0;
  5632. pf = veb->pf;
  5633. /* find the remaining VSI and check for extras */
  5634. for (i = 0; i < pf->hw.func_caps.num_vsis; i++) {
  5635. if (pf->vsi[i] && pf->vsi[i]->uplink_seid == veb->seid) {
  5636. n++;
  5637. vsi = pf->vsi[i];
  5638. }
  5639. }
  5640. if (n != 1) {
  5641. dev_info(&pf->pdev->dev,
  5642. "can't remove VEB %d with %d VSIs left\n",
  5643. veb->seid, n);
  5644. return;
  5645. }
  5646. /* move the remaining VSI to uplink veb */
  5647. vsi->flags &= ~I40E_VSI_FLAG_VEB_OWNER;
  5648. if (veb->uplink_seid) {
  5649. vsi->uplink_seid = veb->uplink_seid;
  5650. if (veb->uplink_seid == pf->mac_seid)
  5651. vsi->veb_idx = I40E_NO_VEB;
  5652. else
  5653. vsi->veb_idx = veb->veb_idx;
  5654. } else {
  5655. /* floating VEB */
  5656. vsi->uplink_seid = pf->vsi[pf->lan_vsi]->uplink_seid;
  5657. vsi->veb_idx = pf->vsi[pf->lan_vsi]->veb_idx;
  5658. }
  5659. i40e_aq_delete_element(&pf->hw, veb->seid, NULL);
  5660. i40e_veb_clear(veb);
  5661. return;
  5662. }
  5663. /**
  5664. * i40e_add_veb - create the VEB in the switch
  5665. * @veb: the VEB to be instantiated
  5666. * @vsi: the controlling VSI
  5667. **/
  5668. static int i40e_add_veb(struct i40e_veb *veb, struct i40e_vsi *vsi)
  5669. {
  5670. bool is_default = (vsi->idx == vsi->back->lan_vsi);
  5671. int ret;
  5672. /* get a VEB from the hardware */
  5673. ret = i40e_aq_add_veb(&veb->pf->hw, veb->uplink_seid, vsi->seid,
  5674. veb->enabled_tc, is_default, &veb->seid, NULL);
  5675. if (ret) {
  5676. dev_info(&veb->pf->pdev->dev,
  5677. "couldn't add VEB, err %d, aq_err %d\n",
  5678. ret, veb->pf->hw.aq.asq_last_status);
  5679. return -EPERM;
  5680. }
  5681. /* get statistics counter */
  5682. ret = i40e_aq_get_veb_parameters(&veb->pf->hw, veb->seid, NULL, NULL,
  5683. &veb->stats_idx, NULL, NULL, NULL);
  5684. if (ret) {
  5685. dev_info(&veb->pf->pdev->dev,
  5686. "couldn't get VEB statistics idx, err %d, aq_err %d\n",
  5687. ret, veb->pf->hw.aq.asq_last_status);
  5688. return -EPERM;
  5689. }
  5690. ret = i40e_veb_get_bw_info(veb);
  5691. if (ret) {
  5692. dev_info(&veb->pf->pdev->dev,
  5693. "couldn't get VEB bw info, err %d, aq_err %d\n",
  5694. ret, veb->pf->hw.aq.asq_last_status);
  5695. i40e_aq_delete_element(&veb->pf->hw, veb->seid, NULL);
  5696. return -ENOENT;
  5697. }
  5698. vsi->uplink_seid = veb->seid;
  5699. vsi->veb_idx = veb->idx;
  5700. vsi->flags |= I40E_VSI_FLAG_VEB_OWNER;
  5701. return 0;
  5702. }
  5703. /**
  5704. * i40e_veb_setup - Set up a VEB
  5705. * @pf: board private structure
  5706. * @flags: VEB setup flags
  5707. * @uplink_seid: the switch element to link to
  5708. * @vsi_seid: the initial VSI seid
  5709. * @enabled_tc: Enabled TC bit-map
  5710. *
  5711. * This allocates the sw VEB structure and links it into the switch
  5712. * It is possible and legal for this to be a duplicate of an already
  5713. * existing VEB. It is also possible for both uplink and vsi seids
  5714. * to be zero, in order to create a floating VEB.
  5715. *
  5716. * Returns pointer to the successfully allocated VEB sw struct on
  5717. * success, otherwise returns NULL on failure.
  5718. **/
  5719. struct i40e_veb *i40e_veb_setup(struct i40e_pf *pf, u16 flags,
  5720. u16 uplink_seid, u16 vsi_seid,
  5721. u8 enabled_tc)
  5722. {
  5723. struct i40e_veb *veb, *uplink_veb = NULL;
  5724. int vsi_idx, veb_idx;
  5725. int ret;
  5726. /* if one seid is 0, the other must be 0 to create a floating relay */
  5727. if ((uplink_seid == 0 || vsi_seid == 0) &&
  5728. (uplink_seid + vsi_seid != 0)) {
  5729. dev_info(&pf->pdev->dev,
  5730. "one, not both seid's are 0: uplink=%d vsi=%d\n",
  5731. uplink_seid, vsi_seid);
  5732. return NULL;
  5733. }
  5734. /* make sure there is such a vsi and uplink */
  5735. for (vsi_idx = 0; vsi_idx < pf->hw.func_caps.num_vsis; vsi_idx++)
  5736. if (pf->vsi[vsi_idx] && pf->vsi[vsi_idx]->seid == vsi_seid)
  5737. break;
  5738. if (vsi_idx >= pf->hw.func_caps.num_vsis && vsi_seid != 0) {
  5739. dev_info(&pf->pdev->dev, "vsi seid %d not found\n",
  5740. vsi_seid);
  5741. return NULL;
  5742. }
  5743. if (uplink_seid && uplink_seid != pf->mac_seid) {
  5744. for (veb_idx = 0; veb_idx < I40E_MAX_VEB; veb_idx++) {
  5745. if (pf->veb[veb_idx] &&
  5746. pf->veb[veb_idx]->seid == uplink_seid) {
  5747. uplink_veb = pf->veb[veb_idx];
  5748. break;
  5749. }
  5750. }
  5751. if (!uplink_veb) {
  5752. dev_info(&pf->pdev->dev,
  5753. "uplink seid %d not found\n", uplink_seid);
  5754. return NULL;
  5755. }
  5756. }
  5757. /* get veb sw struct */
  5758. veb_idx = i40e_veb_mem_alloc(pf);
  5759. if (veb_idx < 0)
  5760. goto err_alloc;
  5761. veb = pf->veb[veb_idx];
  5762. veb->flags = flags;
  5763. veb->uplink_seid = uplink_seid;
  5764. veb->veb_idx = (uplink_veb ? uplink_veb->idx : I40E_NO_VEB);
  5765. veb->enabled_tc = (enabled_tc ? enabled_tc : 0x1);
  5766. /* create the VEB in the switch */
  5767. ret = i40e_add_veb(veb, pf->vsi[vsi_idx]);
  5768. if (ret)
  5769. goto err_veb;
  5770. return veb;
  5771. err_veb:
  5772. i40e_veb_clear(veb);
  5773. err_alloc:
  5774. return NULL;
  5775. }
  5776. /**
  5777. * i40e_setup_pf_switch_element - set pf vars based on switch type
  5778. * @pf: board private structure
  5779. * @ele: element we are building info from
  5780. * @num_reported: total number of elements
  5781. * @printconfig: should we print the contents
  5782. *
  5783. * helper function to assist in extracting a few useful SEID values.
  5784. **/
  5785. static void i40e_setup_pf_switch_element(struct i40e_pf *pf,
  5786. struct i40e_aqc_switch_config_element_resp *ele,
  5787. u16 num_reported, bool printconfig)
  5788. {
  5789. u16 downlink_seid = le16_to_cpu(ele->downlink_seid);
  5790. u16 uplink_seid = le16_to_cpu(ele->uplink_seid);
  5791. u8 element_type = ele->element_type;
  5792. u16 seid = le16_to_cpu(ele->seid);
  5793. if (printconfig)
  5794. dev_info(&pf->pdev->dev,
  5795. "type=%d seid=%d uplink=%d downlink=%d\n",
  5796. element_type, seid, uplink_seid, downlink_seid);
  5797. switch (element_type) {
  5798. case I40E_SWITCH_ELEMENT_TYPE_MAC:
  5799. pf->mac_seid = seid;
  5800. break;
  5801. case I40E_SWITCH_ELEMENT_TYPE_VEB:
  5802. /* Main VEB? */
  5803. if (uplink_seid != pf->mac_seid)
  5804. break;
  5805. if (pf->lan_veb == I40E_NO_VEB) {
  5806. int v;
  5807. /* find existing or else empty VEB */
  5808. for (v = 0; v < I40E_MAX_VEB; v++) {
  5809. if (pf->veb[v] && (pf->veb[v]->seid == seid)) {
  5810. pf->lan_veb = v;
  5811. break;
  5812. }
  5813. }
  5814. if (pf->lan_veb == I40E_NO_VEB) {
  5815. v = i40e_veb_mem_alloc(pf);
  5816. if (v < 0)
  5817. break;
  5818. pf->lan_veb = v;
  5819. }
  5820. }
  5821. pf->veb[pf->lan_veb]->seid = seid;
  5822. pf->veb[pf->lan_veb]->uplink_seid = pf->mac_seid;
  5823. pf->veb[pf->lan_veb]->pf = pf;
  5824. pf->veb[pf->lan_veb]->veb_idx = I40E_NO_VEB;
  5825. break;
  5826. case I40E_SWITCH_ELEMENT_TYPE_VSI:
  5827. if (num_reported != 1)
  5828. break;
  5829. /* This is immediately after a reset so we can assume this is
  5830. * the PF's VSI
  5831. */
  5832. pf->mac_seid = uplink_seid;
  5833. pf->pf_seid = downlink_seid;
  5834. pf->main_vsi_seid = seid;
  5835. if (printconfig)
  5836. dev_info(&pf->pdev->dev,
  5837. "pf_seid=%d main_vsi_seid=%d\n",
  5838. pf->pf_seid, pf->main_vsi_seid);
  5839. break;
  5840. case I40E_SWITCH_ELEMENT_TYPE_PF:
  5841. case I40E_SWITCH_ELEMENT_TYPE_VF:
  5842. case I40E_SWITCH_ELEMENT_TYPE_EMP:
  5843. case I40E_SWITCH_ELEMENT_TYPE_BMC:
  5844. case I40E_SWITCH_ELEMENT_TYPE_PE:
  5845. case I40E_SWITCH_ELEMENT_TYPE_PA:
  5846. /* ignore these for now */
  5847. break;
  5848. default:
  5849. dev_info(&pf->pdev->dev, "unknown element type=%d seid=%d\n",
  5850. element_type, seid);
  5851. break;
  5852. }
  5853. }
  5854. /**
  5855. * i40e_fetch_switch_configuration - Get switch config from firmware
  5856. * @pf: board private structure
  5857. * @printconfig: should we print the contents
  5858. *
  5859. * Get the current switch configuration from the device and
  5860. * extract a few useful SEID values.
  5861. **/
  5862. int i40e_fetch_switch_configuration(struct i40e_pf *pf, bool printconfig)
  5863. {
  5864. struct i40e_aqc_get_switch_config_resp *sw_config;
  5865. u16 next_seid = 0;
  5866. int ret = 0;
  5867. u8 *aq_buf;
  5868. int i;
  5869. aq_buf = kzalloc(I40E_AQ_LARGE_BUF, GFP_KERNEL);
  5870. if (!aq_buf)
  5871. return -ENOMEM;
  5872. sw_config = (struct i40e_aqc_get_switch_config_resp *)aq_buf;
  5873. do {
  5874. u16 num_reported, num_total;
  5875. ret = i40e_aq_get_switch_config(&pf->hw, sw_config,
  5876. I40E_AQ_LARGE_BUF,
  5877. &next_seid, NULL);
  5878. if (ret) {
  5879. dev_info(&pf->pdev->dev,
  5880. "get switch config failed %d aq_err=%x\n",
  5881. ret, pf->hw.aq.asq_last_status);
  5882. kfree(aq_buf);
  5883. return -ENOENT;
  5884. }
  5885. num_reported = le16_to_cpu(sw_config->header.num_reported);
  5886. num_total = le16_to_cpu(sw_config->header.num_total);
  5887. if (printconfig)
  5888. dev_info(&pf->pdev->dev,
  5889. "header: %d reported %d total\n",
  5890. num_reported, num_total);
  5891. if (num_reported) {
  5892. int sz = sizeof(*sw_config) * num_reported;
  5893. kfree(pf->sw_config);
  5894. pf->sw_config = kzalloc(sz, GFP_KERNEL);
  5895. if (pf->sw_config)
  5896. memcpy(pf->sw_config, sw_config, sz);
  5897. }
  5898. for (i = 0; i < num_reported; i++) {
  5899. struct i40e_aqc_switch_config_element_resp *ele =
  5900. &sw_config->element[i];
  5901. i40e_setup_pf_switch_element(pf, ele, num_reported,
  5902. printconfig);
  5903. }
  5904. } while (next_seid != 0);
  5905. kfree(aq_buf);
  5906. return ret;
  5907. }
  5908. /**
  5909. * i40e_setup_pf_switch - Setup the HW switch on startup or after reset
  5910. * @pf: board private structure
  5911. *
  5912. * Returns 0 on success, negative value on failure
  5913. **/
  5914. static int i40e_setup_pf_switch(struct i40e_pf *pf)
  5915. {
  5916. int ret;
  5917. /* find out what's out there already */
  5918. ret = i40e_fetch_switch_configuration(pf, false);
  5919. if (ret) {
  5920. dev_info(&pf->pdev->dev,
  5921. "couldn't fetch switch config, err %d, aq_err %d\n",
  5922. ret, pf->hw.aq.asq_last_status);
  5923. return ret;
  5924. }
  5925. i40e_pf_reset_stats(pf);
  5926. /* fdir VSI must happen first to be sure it gets queue 0, but only
  5927. * if there is enough room for the fdir VSI
  5928. */
  5929. if (pf->num_lan_qps > 1)
  5930. i40e_fdir_setup(pf);
  5931. /* first time setup */
  5932. if (pf->lan_vsi == I40E_NO_VSI) {
  5933. struct i40e_vsi *vsi = NULL;
  5934. u16 uplink_seid;
  5935. /* Set up the PF VSI associated with the PF's main VSI
  5936. * that is already in the HW switch
  5937. */
  5938. if (pf->lan_veb != I40E_NO_VEB && pf->veb[pf->lan_veb])
  5939. uplink_seid = pf->veb[pf->lan_veb]->seid;
  5940. else
  5941. uplink_seid = pf->mac_seid;
  5942. vsi = i40e_vsi_setup(pf, I40E_VSI_MAIN, uplink_seid, 0);
  5943. if (!vsi) {
  5944. dev_info(&pf->pdev->dev, "setup of MAIN VSI failed\n");
  5945. i40e_fdir_teardown(pf);
  5946. return -EAGAIN;
  5947. }
  5948. /* accommodate kcompat by copying the main VSI queue count
  5949. * into the pf, since this newer code pushes the pf queue
  5950. * info down a level into a VSI
  5951. */
  5952. pf->num_rx_queues = vsi->alloc_queue_pairs;
  5953. pf->num_tx_queues = vsi->alloc_queue_pairs;
  5954. } else {
  5955. /* force a reset of TC and queue layout configurations */
  5956. u8 enabled_tc = pf->vsi[pf->lan_vsi]->tc_config.enabled_tc;
  5957. pf->vsi[pf->lan_vsi]->tc_config.enabled_tc = 0;
  5958. pf->vsi[pf->lan_vsi]->seid = pf->main_vsi_seid;
  5959. i40e_vsi_config_tc(pf->vsi[pf->lan_vsi], enabled_tc);
  5960. }
  5961. i40e_vlan_stripping_disable(pf->vsi[pf->lan_vsi]);
  5962. /* Setup static PF queue filter control settings */
  5963. ret = i40e_setup_pf_filter_control(pf);
  5964. if (ret) {
  5965. dev_info(&pf->pdev->dev, "setup_pf_filter_control failed: %d\n",
  5966. ret);
  5967. /* Failure here should not stop continuing other steps */
  5968. }
  5969. /* enable RSS in the HW, even for only one queue, as the stack can use
  5970. * the hash
  5971. */
  5972. if ((pf->flags & I40E_FLAG_RSS_ENABLED))
  5973. i40e_config_rss(pf);
  5974. /* fill in link information and enable LSE reporting */
  5975. i40e_aq_get_link_info(&pf->hw, true, NULL, NULL);
  5976. i40e_link_event(pf);
  5977. /* Initialize user-specifics link properties */
  5978. pf->fc_autoneg_status = ((pf->hw.phy.link_info.an_info &
  5979. I40E_AQ_AN_COMPLETED) ? true : false);
  5980. pf->hw.fc.requested_mode = I40E_FC_DEFAULT;
  5981. if (pf->hw.phy.link_info.an_info &
  5982. (I40E_AQ_LINK_PAUSE_TX | I40E_AQ_LINK_PAUSE_RX))
  5983. pf->hw.fc.current_mode = I40E_FC_FULL;
  5984. else if (pf->hw.phy.link_info.an_info & I40E_AQ_LINK_PAUSE_TX)
  5985. pf->hw.fc.current_mode = I40E_FC_TX_PAUSE;
  5986. else if (pf->hw.phy.link_info.an_info & I40E_AQ_LINK_PAUSE_RX)
  5987. pf->hw.fc.current_mode = I40E_FC_RX_PAUSE;
  5988. else
  5989. pf->hw.fc.current_mode = I40E_FC_DEFAULT;
  5990. return ret;
  5991. }
  5992. /**
  5993. * i40e_set_rss_size - helper to set rss_size
  5994. * @pf: board private structure
  5995. * @queues_left: how many queues
  5996. */
  5997. static u16 i40e_set_rss_size(struct i40e_pf *pf, int queues_left)
  5998. {
  5999. int num_tc0;
  6000. num_tc0 = min_t(int, queues_left, pf->rss_size_max);
  6001. num_tc0 = min_t(int, num_tc0, nr_cpus_node(numa_node_id()));
  6002. num_tc0 = rounddown_pow_of_two(num_tc0);
  6003. return num_tc0;
  6004. }
  6005. /**
  6006. * i40e_determine_queue_usage - Work out queue distribution
  6007. * @pf: board private structure
  6008. **/
  6009. static void i40e_determine_queue_usage(struct i40e_pf *pf)
  6010. {
  6011. int accum_tc_size;
  6012. int queues_left;
  6013. pf->num_lan_qps = 0;
  6014. pf->num_tc_qps = rounddown_pow_of_two(pf->num_tc_qps);
  6015. accum_tc_size = (I40E_MAX_TRAFFIC_CLASS - 1) * pf->num_tc_qps;
  6016. /* Find the max queues to be put into basic use. We'll always be
  6017. * using TC0, whether or not DCB is running, and TC0 will get the
  6018. * big RSS set.
  6019. */
  6020. queues_left = pf->hw.func_caps.num_tx_qp;
  6021. if (!((pf->flags & I40E_FLAG_MSIX_ENABLED) &&
  6022. (pf->flags & I40E_FLAG_MQ_ENABLED)) ||
  6023. !(pf->flags & (I40E_FLAG_RSS_ENABLED |
  6024. I40E_FLAG_FDIR_ENABLED | I40E_FLAG_DCB_ENABLED)) ||
  6025. (queues_left == 1)) {
  6026. /* one qp for PF, no queues for anything else */
  6027. queues_left = 0;
  6028. pf->rss_size = pf->num_lan_qps = 1;
  6029. /* make sure all the fancies are disabled */
  6030. pf->flags &= ~(I40E_FLAG_RSS_ENABLED |
  6031. I40E_FLAG_MQ_ENABLED |
  6032. I40E_FLAG_FDIR_ENABLED |
  6033. I40E_FLAG_FDIR_ATR_ENABLED |
  6034. I40E_FLAG_DCB_ENABLED |
  6035. I40E_FLAG_SRIOV_ENABLED |
  6036. I40E_FLAG_VMDQ_ENABLED);
  6037. } else if (pf->flags & I40E_FLAG_RSS_ENABLED &&
  6038. !(pf->flags & I40E_FLAG_FDIR_ENABLED) &&
  6039. !(pf->flags & I40E_FLAG_DCB_ENABLED)) {
  6040. pf->rss_size = i40e_set_rss_size(pf, queues_left);
  6041. queues_left -= pf->rss_size;
  6042. pf->num_lan_qps = pf->rss_size;
  6043. } else if (pf->flags & I40E_FLAG_RSS_ENABLED &&
  6044. !(pf->flags & I40E_FLAG_FDIR_ENABLED) &&
  6045. (pf->flags & I40E_FLAG_DCB_ENABLED)) {
  6046. /* save num_tc_qps queues for TCs 1 thru 7 and the rest
  6047. * are set up for RSS in TC0
  6048. */
  6049. queues_left -= accum_tc_size;
  6050. pf->rss_size = i40e_set_rss_size(pf, queues_left);
  6051. queues_left -= pf->rss_size;
  6052. if (queues_left < 0) {
  6053. dev_info(&pf->pdev->dev, "not enough queues for DCB\n");
  6054. return;
  6055. }
  6056. pf->num_lan_qps = pf->rss_size + accum_tc_size;
  6057. } else if (pf->flags & I40E_FLAG_RSS_ENABLED &&
  6058. (pf->flags & I40E_FLAG_FDIR_ENABLED) &&
  6059. !(pf->flags & I40E_FLAG_DCB_ENABLED)) {
  6060. queues_left -= 1; /* save 1 queue for FD */
  6061. pf->rss_size = i40e_set_rss_size(pf, queues_left);
  6062. queues_left -= pf->rss_size;
  6063. if (queues_left < 0) {
  6064. dev_info(&pf->pdev->dev, "not enough queues for Flow Director\n");
  6065. return;
  6066. }
  6067. pf->num_lan_qps = pf->rss_size;
  6068. } else if (pf->flags & I40E_FLAG_RSS_ENABLED &&
  6069. (pf->flags & I40E_FLAG_FDIR_ENABLED) &&
  6070. (pf->flags & I40E_FLAG_DCB_ENABLED)) {
  6071. /* save 1 queue for TCs 1 thru 7,
  6072. * 1 queue for flow director,
  6073. * and the rest are set up for RSS in TC0
  6074. */
  6075. queues_left -= 1;
  6076. queues_left -= accum_tc_size;
  6077. pf->rss_size = i40e_set_rss_size(pf, queues_left);
  6078. queues_left -= pf->rss_size;
  6079. if (queues_left < 0) {
  6080. dev_info(&pf->pdev->dev, "not enough queues for DCB and Flow Director\n");
  6081. return;
  6082. }
  6083. pf->num_lan_qps = pf->rss_size + accum_tc_size;
  6084. } else {
  6085. dev_info(&pf->pdev->dev,
  6086. "Invalid configuration, flags=0x%08llx\n", pf->flags);
  6087. return;
  6088. }
  6089. if ((pf->flags & I40E_FLAG_SRIOV_ENABLED) &&
  6090. pf->num_vf_qps && pf->num_req_vfs && queues_left) {
  6091. pf->num_req_vfs = min_t(int, pf->num_req_vfs, (queues_left /
  6092. pf->num_vf_qps));
  6093. queues_left -= (pf->num_req_vfs * pf->num_vf_qps);
  6094. }
  6095. if ((pf->flags & I40E_FLAG_VMDQ_ENABLED) &&
  6096. pf->num_vmdq_vsis && pf->num_vmdq_qps && queues_left) {
  6097. pf->num_vmdq_vsis = min_t(int, pf->num_vmdq_vsis,
  6098. (queues_left / pf->num_vmdq_qps));
  6099. queues_left -= (pf->num_vmdq_vsis * pf->num_vmdq_qps);
  6100. }
  6101. return;
  6102. }
  6103. /**
  6104. * i40e_setup_pf_filter_control - Setup PF static filter control
  6105. * @pf: PF to be setup
  6106. *
  6107. * i40e_setup_pf_filter_control sets up a pf's initial filter control
  6108. * settings. If PE/FCoE are enabled then it will also set the per PF
  6109. * based filter sizes required for them. It also enables Flow director,
  6110. * ethertype and macvlan type filter settings for the pf.
  6111. *
  6112. * Returns 0 on success, negative on failure
  6113. **/
  6114. static int i40e_setup_pf_filter_control(struct i40e_pf *pf)
  6115. {
  6116. struct i40e_filter_control_settings *settings = &pf->filter_settings;
  6117. settings->hash_lut_size = I40E_HASH_LUT_SIZE_128;
  6118. /* Flow Director is enabled */
  6119. if (pf->flags & (I40E_FLAG_FDIR_ENABLED | I40E_FLAG_FDIR_ATR_ENABLED))
  6120. settings->enable_fdir = true;
  6121. /* Ethtype and MACVLAN filters enabled for PF */
  6122. settings->enable_ethtype = true;
  6123. settings->enable_macvlan = true;
  6124. if (i40e_set_filter_control(&pf->hw, settings))
  6125. return -ENOENT;
  6126. return 0;
  6127. }
  6128. /**
  6129. * i40e_probe - Device initialization routine
  6130. * @pdev: PCI device information struct
  6131. * @ent: entry in i40e_pci_tbl
  6132. *
  6133. * i40e_probe initializes a pf identified by a pci_dev structure.
  6134. * The OS initialization, configuring of the pf private structure,
  6135. * and a hardware reset occur.
  6136. *
  6137. * Returns 0 on success, negative on failure
  6138. **/
  6139. static int i40e_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
  6140. {
  6141. struct i40e_driver_version dv;
  6142. struct i40e_pf *pf;
  6143. struct i40e_hw *hw;
  6144. int err = 0;
  6145. u32 len;
  6146. err = pci_enable_device_mem(pdev);
  6147. if (err)
  6148. return err;
  6149. /* set up for high or low dma */
  6150. if (!dma_set_mask(&pdev->dev, DMA_BIT_MASK(64))) {
  6151. /* coherent mask for the same size will always succeed if
  6152. * dma_set_mask does
  6153. */
  6154. dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(64));
  6155. } else if (!dma_set_mask(&pdev->dev, DMA_BIT_MASK(32))) {
  6156. dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(32));
  6157. } else {
  6158. dev_err(&pdev->dev, "DMA configuration failed: %d\n", err);
  6159. err = -EIO;
  6160. goto err_dma;
  6161. }
  6162. /* set up pci connections */
  6163. err = pci_request_selected_regions(pdev, pci_select_bars(pdev,
  6164. IORESOURCE_MEM), i40e_driver_name);
  6165. if (err) {
  6166. dev_info(&pdev->dev,
  6167. "pci_request_selected_regions failed %d\n", err);
  6168. goto err_pci_reg;
  6169. }
  6170. pci_enable_pcie_error_reporting(pdev);
  6171. pci_set_master(pdev);
  6172. /* Now that we have a PCI connection, we need to do the
  6173. * low level device setup. This is primarily setting up
  6174. * the Admin Queue structures and then querying for the
  6175. * device's current profile information.
  6176. */
  6177. pf = kzalloc(sizeof(*pf), GFP_KERNEL);
  6178. if (!pf) {
  6179. err = -ENOMEM;
  6180. goto err_pf_alloc;
  6181. }
  6182. pf->next_vsi = 0;
  6183. pf->pdev = pdev;
  6184. set_bit(__I40E_DOWN, &pf->state);
  6185. hw = &pf->hw;
  6186. hw->back = pf;
  6187. hw->hw_addr = ioremap(pci_resource_start(pdev, 0),
  6188. pci_resource_len(pdev, 0));
  6189. if (!hw->hw_addr) {
  6190. err = -EIO;
  6191. dev_info(&pdev->dev, "ioremap(0x%04x, 0x%04x) failed: 0x%x\n",
  6192. (unsigned int)pci_resource_start(pdev, 0),
  6193. (unsigned int)pci_resource_len(pdev, 0), err);
  6194. goto err_ioremap;
  6195. }
  6196. hw->vendor_id = pdev->vendor;
  6197. hw->device_id = pdev->device;
  6198. pci_read_config_byte(pdev, PCI_REVISION_ID, &hw->revision_id);
  6199. hw->subsystem_vendor_id = pdev->subsystem_vendor;
  6200. hw->subsystem_device_id = pdev->subsystem_device;
  6201. hw->bus.device = PCI_SLOT(pdev->devfn);
  6202. hw->bus.func = PCI_FUNC(pdev->devfn);
  6203. /* Reset here to make sure all is clean and to define PF 'n' */
  6204. err = i40e_pf_reset(hw);
  6205. if (err) {
  6206. dev_info(&pdev->dev, "Initial pf_reset failed: %d\n", err);
  6207. goto err_pf_reset;
  6208. }
  6209. pf->pfr_count++;
  6210. hw->aq.num_arq_entries = I40E_AQ_LEN;
  6211. hw->aq.num_asq_entries = I40E_AQ_LEN;
  6212. hw->aq.arq_buf_size = I40E_MAX_AQ_BUF_SIZE;
  6213. hw->aq.asq_buf_size = I40E_MAX_AQ_BUF_SIZE;
  6214. pf->adminq_work_limit = I40E_AQ_WORK_LIMIT;
  6215. snprintf(pf->misc_int_name, sizeof(pf->misc_int_name) - 1,
  6216. "%s-pf%d:misc",
  6217. dev_driver_string(&pf->pdev->dev), pf->hw.pf_id);
  6218. err = i40e_init_shared_code(hw);
  6219. if (err) {
  6220. dev_info(&pdev->dev, "init_shared_code failed: %d\n", err);
  6221. goto err_pf_reset;
  6222. }
  6223. err = i40e_init_adminq(hw);
  6224. dev_info(&pdev->dev, "%s\n", i40e_fw_version_str(hw));
  6225. if (err) {
  6226. dev_info(&pdev->dev,
  6227. "init_adminq failed: %d expecting API %02x.%02x\n",
  6228. err,
  6229. I40E_FW_API_VERSION_MAJOR, I40E_FW_API_VERSION_MINOR);
  6230. goto err_pf_reset;
  6231. }
  6232. err = i40e_get_capabilities(pf);
  6233. if (err)
  6234. goto err_adminq_setup;
  6235. err = i40e_sw_init(pf);
  6236. if (err) {
  6237. dev_info(&pdev->dev, "sw_init failed: %d\n", err);
  6238. goto err_sw_init;
  6239. }
  6240. err = i40e_init_lan_hmc(hw, hw->func_caps.num_tx_qp,
  6241. hw->func_caps.num_rx_qp,
  6242. pf->fcoe_hmc_cntx_num, pf->fcoe_hmc_filt_num);
  6243. if (err) {
  6244. dev_info(&pdev->dev, "init_lan_hmc failed: %d\n", err);
  6245. goto err_init_lan_hmc;
  6246. }
  6247. err = i40e_configure_lan_hmc(hw, I40E_HMC_MODEL_DIRECT_ONLY);
  6248. if (err) {
  6249. dev_info(&pdev->dev, "configure_lan_hmc failed: %d\n", err);
  6250. err = -ENOENT;
  6251. goto err_configure_lan_hmc;
  6252. }
  6253. i40e_get_mac_addr(hw, hw->mac.addr);
  6254. if (i40e_validate_mac_addr(hw->mac.addr)) {
  6255. dev_info(&pdev->dev, "invalid MAC address %pM\n", hw->mac.addr);
  6256. err = -EIO;
  6257. goto err_mac_addr;
  6258. }
  6259. dev_info(&pdev->dev, "MAC address: %pM\n", hw->mac.addr);
  6260. memcpy(hw->mac.perm_addr, hw->mac.addr, ETH_ALEN);
  6261. pci_set_drvdata(pdev, pf);
  6262. pci_save_state(pdev);
  6263. /* set up periodic task facility */
  6264. setup_timer(&pf->service_timer, i40e_service_timer, (unsigned long)pf);
  6265. pf->service_timer_period = HZ;
  6266. INIT_WORK(&pf->service_task, i40e_service_task);
  6267. clear_bit(__I40E_SERVICE_SCHED, &pf->state);
  6268. pf->flags |= I40E_FLAG_NEED_LINK_UPDATE;
  6269. pf->link_check_timeout = jiffies;
  6270. /* set up the main switch operations */
  6271. i40e_determine_queue_usage(pf);
  6272. i40e_init_interrupt_scheme(pf);
  6273. /* Set up the *vsi struct based on the number of VSIs in the HW,
  6274. * and set up our local tracking of the MAIN PF vsi.
  6275. */
  6276. len = sizeof(struct i40e_vsi *) * pf->hw.func_caps.num_vsis;
  6277. pf->vsi = kzalloc(len, GFP_KERNEL);
  6278. if (!pf->vsi) {
  6279. err = -ENOMEM;
  6280. goto err_switch_setup;
  6281. }
  6282. err = i40e_setup_pf_switch(pf);
  6283. if (err) {
  6284. dev_info(&pdev->dev, "setup_pf_switch failed: %d\n", err);
  6285. goto err_vsis;
  6286. }
  6287. /* The main driver is (mostly) up and happy. We need to set this state
  6288. * before setting up the misc vector or we get a race and the vector
  6289. * ends up disabled forever.
  6290. */
  6291. clear_bit(__I40E_DOWN, &pf->state);
  6292. /* In case of MSIX we are going to setup the misc vector right here
  6293. * to handle admin queue events etc. In case of legacy and MSI
  6294. * the misc functionality and queue processing is combined in
  6295. * the same vector and that gets setup at open.
  6296. */
  6297. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  6298. err = i40e_setup_misc_vector(pf);
  6299. if (err) {
  6300. dev_info(&pdev->dev,
  6301. "setup of misc vector failed: %d\n", err);
  6302. goto err_vsis;
  6303. }
  6304. }
  6305. /* prep for VF support */
  6306. if ((pf->flags & I40E_FLAG_SRIOV_ENABLED) &&
  6307. (pf->flags & I40E_FLAG_MSIX_ENABLED)) {
  6308. u32 val;
  6309. /* disable link interrupts for VFs */
  6310. val = rd32(hw, I40E_PFGEN_PORTMDIO_NUM);
  6311. val &= ~I40E_PFGEN_PORTMDIO_NUM_VFLINK_STAT_ENA_MASK;
  6312. wr32(hw, I40E_PFGEN_PORTMDIO_NUM, val);
  6313. i40e_flush(hw);
  6314. }
  6315. i40e_dbg_pf_init(pf);
  6316. /* tell the firmware that we're starting */
  6317. dv.major_version = DRV_VERSION_MAJOR;
  6318. dv.minor_version = DRV_VERSION_MINOR;
  6319. dv.build_version = DRV_VERSION_BUILD;
  6320. dv.subbuild_version = 0;
  6321. i40e_aq_send_driver_version(&pf->hw, &dv, NULL);
  6322. /* since everything's happy, start the service_task timer */
  6323. mod_timer(&pf->service_timer,
  6324. round_jiffies(jiffies + pf->service_timer_period));
  6325. return 0;
  6326. /* Unwind what we've done if something failed in the setup */
  6327. err_vsis:
  6328. set_bit(__I40E_DOWN, &pf->state);
  6329. err_switch_setup:
  6330. i40e_clear_interrupt_scheme(pf);
  6331. kfree(pf->vsi);
  6332. del_timer_sync(&pf->service_timer);
  6333. err_mac_addr:
  6334. err_configure_lan_hmc:
  6335. (void)i40e_shutdown_lan_hmc(hw);
  6336. err_init_lan_hmc:
  6337. kfree(pf->qp_pile);
  6338. kfree(pf->irq_pile);
  6339. err_sw_init:
  6340. err_adminq_setup:
  6341. (void)i40e_shutdown_adminq(hw);
  6342. err_pf_reset:
  6343. iounmap(hw->hw_addr);
  6344. err_ioremap:
  6345. kfree(pf);
  6346. err_pf_alloc:
  6347. pci_disable_pcie_error_reporting(pdev);
  6348. pci_release_selected_regions(pdev,
  6349. pci_select_bars(pdev, IORESOURCE_MEM));
  6350. err_pci_reg:
  6351. err_dma:
  6352. pci_disable_device(pdev);
  6353. return err;
  6354. }
  6355. /**
  6356. * i40e_remove - Device removal routine
  6357. * @pdev: PCI device information struct
  6358. *
  6359. * i40e_remove is called by the PCI subsystem to alert the driver
  6360. * that is should release a PCI device. This could be caused by a
  6361. * Hot-Plug event, or because the driver is going to be removed from
  6362. * memory.
  6363. **/
  6364. static void i40e_remove(struct pci_dev *pdev)
  6365. {
  6366. struct i40e_pf *pf = pci_get_drvdata(pdev);
  6367. i40e_status ret_code;
  6368. u32 reg;
  6369. int i;
  6370. i40e_dbg_pf_exit(pf);
  6371. if (pf->flags & I40E_FLAG_SRIOV_ENABLED) {
  6372. i40e_free_vfs(pf);
  6373. pf->flags &= ~I40E_FLAG_SRIOV_ENABLED;
  6374. }
  6375. /* no more scheduling of any task */
  6376. set_bit(__I40E_DOWN, &pf->state);
  6377. del_timer_sync(&pf->service_timer);
  6378. cancel_work_sync(&pf->service_task);
  6379. i40e_fdir_teardown(pf);
  6380. /* If there is a switch structure or any orphans, remove them.
  6381. * This will leave only the PF's VSI remaining.
  6382. */
  6383. for (i = 0; i < I40E_MAX_VEB; i++) {
  6384. if (!pf->veb[i])
  6385. continue;
  6386. if (pf->veb[i]->uplink_seid == pf->mac_seid ||
  6387. pf->veb[i]->uplink_seid == 0)
  6388. i40e_switch_branch_release(pf->veb[i]);
  6389. }
  6390. /* Now we can shutdown the PF's VSI, just before we kill
  6391. * adminq and hmc.
  6392. */
  6393. if (pf->vsi[pf->lan_vsi])
  6394. i40e_vsi_release(pf->vsi[pf->lan_vsi]);
  6395. i40e_stop_misc_vector(pf);
  6396. if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
  6397. synchronize_irq(pf->msix_entries[0].vector);
  6398. free_irq(pf->msix_entries[0].vector, pf);
  6399. }
  6400. /* shutdown and destroy the HMC */
  6401. ret_code = i40e_shutdown_lan_hmc(&pf->hw);
  6402. if (ret_code)
  6403. dev_warn(&pdev->dev,
  6404. "Failed to destroy the HMC resources: %d\n", ret_code);
  6405. /* shutdown the adminq */
  6406. i40e_aq_queue_shutdown(&pf->hw, true);
  6407. ret_code = i40e_shutdown_adminq(&pf->hw);
  6408. if (ret_code)
  6409. dev_warn(&pdev->dev,
  6410. "Failed to destroy the Admin Queue resources: %d\n",
  6411. ret_code);
  6412. /* Clear all dynamic memory lists of rings, q_vectors, and VSIs */
  6413. i40e_clear_interrupt_scheme(pf);
  6414. for (i = 0; i < pf->hw.func_caps.num_vsis; i++) {
  6415. if (pf->vsi[i]) {
  6416. i40e_vsi_clear_rings(pf->vsi[i]);
  6417. i40e_vsi_clear(pf->vsi[i]);
  6418. pf->vsi[i] = NULL;
  6419. }
  6420. }
  6421. for (i = 0; i < I40E_MAX_VEB; i++) {
  6422. kfree(pf->veb[i]);
  6423. pf->veb[i] = NULL;
  6424. }
  6425. kfree(pf->qp_pile);
  6426. kfree(pf->irq_pile);
  6427. kfree(pf->sw_config);
  6428. kfree(pf->vsi);
  6429. /* force a PF reset to clean anything leftover */
  6430. reg = rd32(&pf->hw, I40E_PFGEN_CTRL);
  6431. wr32(&pf->hw, I40E_PFGEN_CTRL, (reg | I40E_PFGEN_CTRL_PFSWR_MASK));
  6432. i40e_flush(&pf->hw);
  6433. iounmap(pf->hw.hw_addr);
  6434. kfree(pf);
  6435. pci_release_selected_regions(pdev,
  6436. pci_select_bars(pdev, IORESOURCE_MEM));
  6437. pci_disable_pcie_error_reporting(pdev);
  6438. pci_disable_device(pdev);
  6439. }
  6440. /**
  6441. * i40e_pci_error_detected - warning that something funky happened in PCI land
  6442. * @pdev: PCI device information struct
  6443. *
  6444. * Called to warn that something happened and the error handling steps
  6445. * are in progress. Allows the driver to quiesce things, be ready for
  6446. * remediation.
  6447. **/
  6448. static pci_ers_result_t i40e_pci_error_detected(struct pci_dev *pdev,
  6449. enum pci_channel_state error)
  6450. {
  6451. struct i40e_pf *pf = pci_get_drvdata(pdev);
  6452. dev_info(&pdev->dev, "%s: error %d\n", __func__, error);
  6453. /* shutdown all operations */
  6454. i40e_pf_quiesce_all_vsi(pf);
  6455. /* Request a slot reset */
  6456. return PCI_ERS_RESULT_NEED_RESET;
  6457. }
  6458. /**
  6459. * i40e_pci_error_slot_reset - a PCI slot reset just happened
  6460. * @pdev: PCI device information struct
  6461. *
  6462. * Called to find if the driver can work with the device now that
  6463. * the pci slot has been reset. If a basic connection seems good
  6464. * (registers are readable and have sane content) then return a
  6465. * happy little PCI_ERS_RESULT_xxx.
  6466. **/
  6467. static pci_ers_result_t i40e_pci_error_slot_reset(struct pci_dev *pdev)
  6468. {
  6469. struct i40e_pf *pf = pci_get_drvdata(pdev);
  6470. pci_ers_result_t result;
  6471. int err;
  6472. u32 reg;
  6473. dev_info(&pdev->dev, "%s\n", __func__);
  6474. if (pci_enable_device_mem(pdev)) {
  6475. dev_info(&pdev->dev,
  6476. "Cannot re-enable PCI device after reset.\n");
  6477. result = PCI_ERS_RESULT_DISCONNECT;
  6478. } else {
  6479. pci_set_master(pdev);
  6480. pci_restore_state(pdev);
  6481. pci_save_state(pdev);
  6482. pci_wake_from_d3(pdev, false);
  6483. reg = rd32(&pf->hw, I40E_GLGEN_RTRIG);
  6484. if (reg == 0)
  6485. result = PCI_ERS_RESULT_RECOVERED;
  6486. else
  6487. result = PCI_ERS_RESULT_DISCONNECT;
  6488. }
  6489. err = pci_cleanup_aer_uncorrect_error_status(pdev);
  6490. if (err) {
  6491. dev_info(&pdev->dev,
  6492. "pci_cleanup_aer_uncorrect_error_status failed 0x%0x\n",
  6493. err);
  6494. /* non-fatal, continue */
  6495. }
  6496. return result;
  6497. }
  6498. /**
  6499. * i40e_pci_error_resume - restart operations after PCI error recovery
  6500. * @pdev: PCI device information struct
  6501. *
  6502. * Called to allow the driver to bring things back up after PCI error
  6503. * and/or reset recovery has finished.
  6504. **/
  6505. static void i40e_pci_error_resume(struct pci_dev *pdev)
  6506. {
  6507. struct i40e_pf *pf = pci_get_drvdata(pdev);
  6508. dev_info(&pdev->dev, "%s\n", __func__);
  6509. i40e_handle_reset_warning(pf);
  6510. }
  6511. static const struct pci_error_handlers i40e_err_handler = {
  6512. .error_detected = i40e_pci_error_detected,
  6513. .slot_reset = i40e_pci_error_slot_reset,
  6514. .resume = i40e_pci_error_resume,
  6515. };
  6516. static struct pci_driver i40e_driver = {
  6517. .name = i40e_driver_name,
  6518. .id_table = i40e_pci_tbl,
  6519. .probe = i40e_probe,
  6520. .remove = i40e_remove,
  6521. .err_handler = &i40e_err_handler,
  6522. .sriov_configure = i40e_pci_sriov_configure,
  6523. };
  6524. /**
  6525. * i40e_init_module - Driver registration routine
  6526. *
  6527. * i40e_init_module is the first routine called when the driver is
  6528. * loaded. All it does is register with the PCI subsystem.
  6529. **/
  6530. static int __init i40e_init_module(void)
  6531. {
  6532. pr_info("%s: %s - version %s\n", i40e_driver_name,
  6533. i40e_driver_string, i40e_driver_version_str);
  6534. pr_info("%s: %s\n", i40e_driver_name, i40e_copyright);
  6535. i40e_dbg_init();
  6536. return pci_register_driver(&i40e_driver);
  6537. }
  6538. module_init(i40e_init_module);
  6539. /**
  6540. * i40e_exit_module - Driver exit cleanup routine
  6541. *
  6542. * i40e_exit_module is called just before the driver is removed
  6543. * from memory.
  6544. **/
  6545. static void __exit i40e_exit_module(void)
  6546. {
  6547. pci_unregister_driver(&i40e_driver);
  6548. i40e_dbg_exit();
  6549. }
  6550. module_exit(i40e_exit_module);