verbs.c 53 KB

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  1. /*
  2. * Copyright (c) 2004 Mellanox Technologies Ltd. All rights reserved.
  3. * Copyright (c) 2004 Infinicon Corporation. All rights reserved.
  4. * Copyright (c) 2004 Intel Corporation. All rights reserved.
  5. * Copyright (c) 2004 Topspin Corporation. All rights reserved.
  6. * Copyright (c) 2004 Voltaire Corporation. All rights reserved.
  7. * Copyright (c) 2005 Sun Microsystems, Inc. All rights reserved.
  8. * Copyright (c) 2005, 2006 Cisco Systems. All rights reserved.
  9. *
  10. * This software is available to you under a choice of one of two
  11. * licenses. You may choose to be licensed under the terms of the GNU
  12. * General Public License (GPL) Version 2, available from the file
  13. * COPYING in the main directory of this source tree, or the
  14. * OpenIB.org BSD license below:
  15. *
  16. * Redistribution and use in source and binary forms, with or
  17. * without modification, are permitted provided that the following
  18. * conditions are met:
  19. *
  20. * - Redistributions of source code must retain the above
  21. * copyright notice, this list of conditions and the following
  22. * disclaimer.
  23. *
  24. * - Redistributions in binary form must reproduce the above
  25. * copyright notice, this list of conditions and the following
  26. * disclaimer in the documentation and/or other materials
  27. * provided with the distribution.
  28. *
  29. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
  30. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
  31. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
  32. * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
  33. * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
  34. * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
  35. * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  36. * SOFTWARE.
  37. */
  38. #include <linux/errno.h>
  39. #include <linux/err.h>
  40. #include <linux/export.h>
  41. #include <linux/string.h>
  42. #include <linux/slab.h>
  43. #include <linux/in.h>
  44. #include <linux/in6.h>
  45. #include <net/addrconf.h>
  46. #include <rdma/ib_verbs.h>
  47. #include <rdma/ib_cache.h>
  48. #include <rdma/ib_addr.h>
  49. #include <rdma/rw.h>
  50. #include "core_priv.h"
  51. static const char * const ib_events[] = {
  52. [IB_EVENT_CQ_ERR] = "CQ error",
  53. [IB_EVENT_QP_FATAL] = "QP fatal error",
  54. [IB_EVENT_QP_REQ_ERR] = "QP request error",
  55. [IB_EVENT_QP_ACCESS_ERR] = "QP access error",
  56. [IB_EVENT_COMM_EST] = "communication established",
  57. [IB_EVENT_SQ_DRAINED] = "send queue drained",
  58. [IB_EVENT_PATH_MIG] = "path migration successful",
  59. [IB_EVENT_PATH_MIG_ERR] = "path migration error",
  60. [IB_EVENT_DEVICE_FATAL] = "device fatal error",
  61. [IB_EVENT_PORT_ACTIVE] = "port active",
  62. [IB_EVENT_PORT_ERR] = "port error",
  63. [IB_EVENT_LID_CHANGE] = "LID change",
  64. [IB_EVENT_PKEY_CHANGE] = "P_key change",
  65. [IB_EVENT_SM_CHANGE] = "SM change",
  66. [IB_EVENT_SRQ_ERR] = "SRQ error",
  67. [IB_EVENT_SRQ_LIMIT_REACHED] = "SRQ limit reached",
  68. [IB_EVENT_QP_LAST_WQE_REACHED] = "last WQE reached",
  69. [IB_EVENT_CLIENT_REREGISTER] = "client reregister",
  70. [IB_EVENT_GID_CHANGE] = "GID changed",
  71. };
  72. const char *__attribute_const__ ib_event_msg(enum ib_event_type event)
  73. {
  74. size_t index = event;
  75. return (index < ARRAY_SIZE(ib_events) && ib_events[index]) ?
  76. ib_events[index] : "unrecognized event";
  77. }
  78. EXPORT_SYMBOL(ib_event_msg);
  79. static const char * const wc_statuses[] = {
  80. [IB_WC_SUCCESS] = "success",
  81. [IB_WC_LOC_LEN_ERR] = "local length error",
  82. [IB_WC_LOC_QP_OP_ERR] = "local QP operation error",
  83. [IB_WC_LOC_EEC_OP_ERR] = "local EE context operation error",
  84. [IB_WC_LOC_PROT_ERR] = "local protection error",
  85. [IB_WC_WR_FLUSH_ERR] = "WR flushed",
  86. [IB_WC_MW_BIND_ERR] = "memory management operation error",
  87. [IB_WC_BAD_RESP_ERR] = "bad response error",
  88. [IB_WC_LOC_ACCESS_ERR] = "local access error",
  89. [IB_WC_REM_INV_REQ_ERR] = "invalid request error",
  90. [IB_WC_REM_ACCESS_ERR] = "remote access error",
  91. [IB_WC_REM_OP_ERR] = "remote operation error",
  92. [IB_WC_RETRY_EXC_ERR] = "transport retry counter exceeded",
  93. [IB_WC_RNR_RETRY_EXC_ERR] = "RNR retry counter exceeded",
  94. [IB_WC_LOC_RDD_VIOL_ERR] = "local RDD violation error",
  95. [IB_WC_REM_INV_RD_REQ_ERR] = "remote invalid RD request",
  96. [IB_WC_REM_ABORT_ERR] = "operation aborted",
  97. [IB_WC_INV_EECN_ERR] = "invalid EE context number",
  98. [IB_WC_INV_EEC_STATE_ERR] = "invalid EE context state",
  99. [IB_WC_FATAL_ERR] = "fatal error",
  100. [IB_WC_RESP_TIMEOUT_ERR] = "response timeout error",
  101. [IB_WC_GENERAL_ERR] = "general error",
  102. };
  103. const char *__attribute_const__ ib_wc_status_msg(enum ib_wc_status status)
  104. {
  105. size_t index = status;
  106. return (index < ARRAY_SIZE(wc_statuses) && wc_statuses[index]) ?
  107. wc_statuses[index] : "unrecognized status";
  108. }
  109. EXPORT_SYMBOL(ib_wc_status_msg);
  110. __attribute_const__ int ib_rate_to_mult(enum ib_rate rate)
  111. {
  112. switch (rate) {
  113. case IB_RATE_2_5_GBPS: return 1;
  114. case IB_RATE_5_GBPS: return 2;
  115. case IB_RATE_10_GBPS: return 4;
  116. case IB_RATE_20_GBPS: return 8;
  117. case IB_RATE_30_GBPS: return 12;
  118. case IB_RATE_40_GBPS: return 16;
  119. case IB_RATE_60_GBPS: return 24;
  120. case IB_RATE_80_GBPS: return 32;
  121. case IB_RATE_120_GBPS: return 48;
  122. default: return -1;
  123. }
  124. }
  125. EXPORT_SYMBOL(ib_rate_to_mult);
  126. __attribute_const__ enum ib_rate mult_to_ib_rate(int mult)
  127. {
  128. switch (mult) {
  129. case 1: return IB_RATE_2_5_GBPS;
  130. case 2: return IB_RATE_5_GBPS;
  131. case 4: return IB_RATE_10_GBPS;
  132. case 8: return IB_RATE_20_GBPS;
  133. case 12: return IB_RATE_30_GBPS;
  134. case 16: return IB_RATE_40_GBPS;
  135. case 24: return IB_RATE_60_GBPS;
  136. case 32: return IB_RATE_80_GBPS;
  137. case 48: return IB_RATE_120_GBPS;
  138. default: return IB_RATE_PORT_CURRENT;
  139. }
  140. }
  141. EXPORT_SYMBOL(mult_to_ib_rate);
  142. __attribute_const__ int ib_rate_to_mbps(enum ib_rate rate)
  143. {
  144. switch (rate) {
  145. case IB_RATE_2_5_GBPS: return 2500;
  146. case IB_RATE_5_GBPS: return 5000;
  147. case IB_RATE_10_GBPS: return 10000;
  148. case IB_RATE_20_GBPS: return 20000;
  149. case IB_RATE_30_GBPS: return 30000;
  150. case IB_RATE_40_GBPS: return 40000;
  151. case IB_RATE_60_GBPS: return 60000;
  152. case IB_RATE_80_GBPS: return 80000;
  153. case IB_RATE_120_GBPS: return 120000;
  154. case IB_RATE_14_GBPS: return 14062;
  155. case IB_RATE_56_GBPS: return 56250;
  156. case IB_RATE_112_GBPS: return 112500;
  157. case IB_RATE_168_GBPS: return 168750;
  158. case IB_RATE_25_GBPS: return 25781;
  159. case IB_RATE_100_GBPS: return 103125;
  160. case IB_RATE_200_GBPS: return 206250;
  161. case IB_RATE_300_GBPS: return 309375;
  162. default: return -1;
  163. }
  164. }
  165. EXPORT_SYMBOL(ib_rate_to_mbps);
  166. __attribute_const__ enum rdma_transport_type
  167. rdma_node_get_transport(enum rdma_node_type node_type)
  168. {
  169. switch (node_type) {
  170. case RDMA_NODE_IB_CA:
  171. case RDMA_NODE_IB_SWITCH:
  172. case RDMA_NODE_IB_ROUTER:
  173. return RDMA_TRANSPORT_IB;
  174. case RDMA_NODE_RNIC:
  175. return RDMA_TRANSPORT_IWARP;
  176. case RDMA_NODE_USNIC:
  177. return RDMA_TRANSPORT_USNIC;
  178. case RDMA_NODE_USNIC_UDP:
  179. return RDMA_TRANSPORT_USNIC_UDP;
  180. default:
  181. BUG();
  182. return 0;
  183. }
  184. }
  185. EXPORT_SYMBOL(rdma_node_get_transport);
  186. enum rdma_link_layer rdma_port_get_link_layer(struct ib_device *device, u8 port_num)
  187. {
  188. if (device->get_link_layer)
  189. return device->get_link_layer(device, port_num);
  190. switch (rdma_node_get_transport(device->node_type)) {
  191. case RDMA_TRANSPORT_IB:
  192. return IB_LINK_LAYER_INFINIBAND;
  193. case RDMA_TRANSPORT_IWARP:
  194. case RDMA_TRANSPORT_USNIC:
  195. case RDMA_TRANSPORT_USNIC_UDP:
  196. return IB_LINK_LAYER_ETHERNET;
  197. default:
  198. return IB_LINK_LAYER_UNSPECIFIED;
  199. }
  200. }
  201. EXPORT_SYMBOL(rdma_port_get_link_layer);
  202. /* Protection domains */
  203. /**
  204. * ib_alloc_pd - Allocates an unused protection domain.
  205. * @device: The device on which to allocate the protection domain.
  206. *
  207. * A protection domain object provides an association between QPs, shared
  208. * receive queues, address handles, memory regions, and memory windows.
  209. *
  210. * Every PD has a local_dma_lkey which can be used as the lkey value for local
  211. * memory operations.
  212. */
  213. struct ib_pd *__ib_alloc_pd(struct ib_device *device, unsigned int flags,
  214. const char *caller)
  215. {
  216. struct ib_pd *pd;
  217. int mr_access_flags = 0;
  218. pd = device->alloc_pd(device, NULL, NULL);
  219. if (IS_ERR(pd))
  220. return pd;
  221. pd->device = device;
  222. pd->uobject = NULL;
  223. pd->__internal_mr = NULL;
  224. atomic_set(&pd->usecnt, 0);
  225. pd->flags = flags;
  226. if (device->attrs.device_cap_flags & IB_DEVICE_LOCAL_DMA_LKEY)
  227. pd->local_dma_lkey = device->local_dma_lkey;
  228. else
  229. mr_access_flags |= IB_ACCESS_LOCAL_WRITE;
  230. if (flags & IB_PD_UNSAFE_GLOBAL_RKEY) {
  231. pr_warn("%s: enabling unsafe global rkey\n", caller);
  232. mr_access_flags |= IB_ACCESS_REMOTE_READ | IB_ACCESS_REMOTE_WRITE;
  233. }
  234. if (mr_access_flags) {
  235. struct ib_mr *mr;
  236. mr = pd->device->get_dma_mr(pd, mr_access_flags);
  237. if (IS_ERR(mr)) {
  238. ib_dealloc_pd(pd);
  239. return ERR_CAST(mr);
  240. }
  241. mr->device = pd->device;
  242. mr->pd = pd;
  243. mr->uobject = NULL;
  244. mr->need_inval = false;
  245. pd->__internal_mr = mr;
  246. if (!(device->attrs.device_cap_flags & IB_DEVICE_LOCAL_DMA_LKEY))
  247. pd->local_dma_lkey = pd->__internal_mr->lkey;
  248. if (flags & IB_PD_UNSAFE_GLOBAL_RKEY)
  249. pd->unsafe_global_rkey = pd->__internal_mr->rkey;
  250. }
  251. return pd;
  252. }
  253. EXPORT_SYMBOL(__ib_alloc_pd);
  254. /**
  255. * ib_dealloc_pd - Deallocates a protection domain.
  256. * @pd: The protection domain to deallocate.
  257. *
  258. * It is an error to call this function while any resources in the pd still
  259. * exist. The caller is responsible to synchronously destroy them and
  260. * guarantee no new allocations will happen.
  261. */
  262. void ib_dealloc_pd(struct ib_pd *pd)
  263. {
  264. int ret;
  265. if (pd->__internal_mr) {
  266. ret = pd->device->dereg_mr(pd->__internal_mr);
  267. WARN_ON(ret);
  268. pd->__internal_mr = NULL;
  269. }
  270. /* uverbs manipulates usecnt with proper locking, while the kabi
  271. requires the caller to guarantee we can't race here. */
  272. WARN_ON(atomic_read(&pd->usecnt));
  273. /* Making delalloc_pd a void return is a WIP, no driver should return
  274. an error here. */
  275. ret = pd->device->dealloc_pd(pd);
  276. WARN_ONCE(ret, "Infiniband HW driver failed dealloc_pd");
  277. }
  278. EXPORT_SYMBOL(ib_dealloc_pd);
  279. /* Address handles */
  280. struct ib_ah *ib_create_ah(struct ib_pd *pd, struct ib_ah_attr *ah_attr)
  281. {
  282. struct ib_ah *ah;
  283. ah = pd->device->create_ah(pd, ah_attr);
  284. if (!IS_ERR(ah)) {
  285. ah->device = pd->device;
  286. ah->pd = pd;
  287. ah->uobject = NULL;
  288. atomic_inc(&pd->usecnt);
  289. }
  290. return ah;
  291. }
  292. EXPORT_SYMBOL(ib_create_ah);
  293. static int ib_get_header_version(const union rdma_network_hdr *hdr)
  294. {
  295. const struct iphdr *ip4h = (struct iphdr *)&hdr->roce4grh;
  296. struct iphdr ip4h_checked;
  297. const struct ipv6hdr *ip6h = (struct ipv6hdr *)&hdr->ibgrh;
  298. /* If it's IPv6, the version must be 6, otherwise, the first
  299. * 20 bytes (before the IPv4 header) are garbled.
  300. */
  301. if (ip6h->version != 6)
  302. return (ip4h->version == 4) ? 4 : 0;
  303. /* version may be 6 or 4 because the first 20 bytes could be garbled */
  304. /* RoCE v2 requires no options, thus header length
  305. * must be 5 words
  306. */
  307. if (ip4h->ihl != 5)
  308. return 6;
  309. /* Verify checksum.
  310. * We can't write on scattered buffers so we need to copy to
  311. * temp buffer.
  312. */
  313. memcpy(&ip4h_checked, ip4h, sizeof(ip4h_checked));
  314. ip4h_checked.check = 0;
  315. ip4h_checked.check = ip_fast_csum((u8 *)&ip4h_checked, 5);
  316. /* if IPv4 header checksum is OK, believe it */
  317. if (ip4h->check == ip4h_checked.check)
  318. return 4;
  319. return 6;
  320. }
  321. static enum rdma_network_type ib_get_net_type_by_grh(struct ib_device *device,
  322. u8 port_num,
  323. const struct ib_grh *grh)
  324. {
  325. int grh_version;
  326. if (rdma_protocol_ib(device, port_num))
  327. return RDMA_NETWORK_IB;
  328. grh_version = ib_get_header_version((union rdma_network_hdr *)grh);
  329. if (grh_version == 4)
  330. return RDMA_NETWORK_IPV4;
  331. if (grh->next_hdr == IPPROTO_UDP)
  332. return RDMA_NETWORK_IPV6;
  333. return RDMA_NETWORK_ROCE_V1;
  334. }
  335. struct find_gid_index_context {
  336. u16 vlan_id;
  337. enum ib_gid_type gid_type;
  338. };
  339. static bool find_gid_index(const union ib_gid *gid,
  340. const struct ib_gid_attr *gid_attr,
  341. void *context)
  342. {
  343. struct find_gid_index_context *ctx =
  344. (struct find_gid_index_context *)context;
  345. if (ctx->gid_type != gid_attr->gid_type)
  346. return false;
  347. if ((!!(ctx->vlan_id != 0xffff) == !is_vlan_dev(gid_attr->ndev)) ||
  348. (is_vlan_dev(gid_attr->ndev) &&
  349. vlan_dev_vlan_id(gid_attr->ndev) != ctx->vlan_id))
  350. return false;
  351. return true;
  352. }
  353. static int get_sgid_index_from_eth(struct ib_device *device, u8 port_num,
  354. u16 vlan_id, const union ib_gid *sgid,
  355. enum ib_gid_type gid_type,
  356. u16 *gid_index)
  357. {
  358. struct find_gid_index_context context = {.vlan_id = vlan_id,
  359. .gid_type = gid_type};
  360. return ib_find_gid_by_filter(device, sgid, port_num, find_gid_index,
  361. &context, gid_index);
  362. }
  363. static int get_gids_from_rdma_hdr(union rdma_network_hdr *hdr,
  364. enum rdma_network_type net_type,
  365. union ib_gid *sgid, union ib_gid *dgid)
  366. {
  367. struct sockaddr_in src_in;
  368. struct sockaddr_in dst_in;
  369. __be32 src_saddr, dst_saddr;
  370. if (!sgid || !dgid)
  371. return -EINVAL;
  372. if (net_type == RDMA_NETWORK_IPV4) {
  373. memcpy(&src_in.sin_addr.s_addr,
  374. &hdr->roce4grh.saddr, 4);
  375. memcpy(&dst_in.sin_addr.s_addr,
  376. &hdr->roce4grh.daddr, 4);
  377. src_saddr = src_in.sin_addr.s_addr;
  378. dst_saddr = dst_in.sin_addr.s_addr;
  379. ipv6_addr_set_v4mapped(src_saddr,
  380. (struct in6_addr *)sgid);
  381. ipv6_addr_set_v4mapped(dst_saddr,
  382. (struct in6_addr *)dgid);
  383. return 0;
  384. } else if (net_type == RDMA_NETWORK_IPV6 ||
  385. net_type == RDMA_NETWORK_IB) {
  386. *dgid = hdr->ibgrh.dgid;
  387. *sgid = hdr->ibgrh.sgid;
  388. return 0;
  389. } else {
  390. return -EINVAL;
  391. }
  392. }
  393. int ib_init_ah_from_wc(struct ib_device *device, u8 port_num,
  394. const struct ib_wc *wc, const struct ib_grh *grh,
  395. struct ib_ah_attr *ah_attr)
  396. {
  397. u32 flow_class;
  398. u16 gid_index;
  399. int ret;
  400. enum rdma_network_type net_type = RDMA_NETWORK_IB;
  401. enum ib_gid_type gid_type = IB_GID_TYPE_IB;
  402. int hoplimit = 0xff;
  403. union ib_gid dgid;
  404. union ib_gid sgid;
  405. memset(ah_attr, 0, sizeof *ah_attr);
  406. if (rdma_cap_eth_ah(device, port_num)) {
  407. if (wc->wc_flags & IB_WC_WITH_NETWORK_HDR_TYPE)
  408. net_type = wc->network_hdr_type;
  409. else
  410. net_type = ib_get_net_type_by_grh(device, port_num, grh);
  411. gid_type = ib_network_to_gid_type(net_type);
  412. }
  413. ret = get_gids_from_rdma_hdr((union rdma_network_hdr *)grh, net_type,
  414. &sgid, &dgid);
  415. if (ret)
  416. return ret;
  417. if (rdma_protocol_roce(device, port_num)) {
  418. int if_index = 0;
  419. u16 vlan_id = wc->wc_flags & IB_WC_WITH_VLAN ?
  420. wc->vlan_id : 0xffff;
  421. struct net_device *idev;
  422. struct net_device *resolved_dev;
  423. if (!(wc->wc_flags & IB_WC_GRH))
  424. return -EPROTOTYPE;
  425. if (!device->get_netdev)
  426. return -EOPNOTSUPP;
  427. idev = device->get_netdev(device, port_num);
  428. if (!idev)
  429. return -ENODEV;
  430. ret = rdma_addr_find_l2_eth_by_grh(&dgid, &sgid,
  431. ah_attr->dmac,
  432. wc->wc_flags & IB_WC_WITH_VLAN ?
  433. NULL : &vlan_id,
  434. &if_index, &hoplimit);
  435. if (ret) {
  436. dev_put(idev);
  437. return ret;
  438. }
  439. resolved_dev = dev_get_by_index(&init_net, if_index);
  440. if (resolved_dev->flags & IFF_LOOPBACK) {
  441. dev_put(resolved_dev);
  442. resolved_dev = idev;
  443. dev_hold(resolved_dev);
  444. }
  445. rcu_read_lock();
  446. if (resolved_dev != idev && !rdma_is_upper_dev_rcu(idev,
  447. resolved_dev))
  448. ret = -EHOSTUNREACH;
  449. rcu_read_unlock();
  450. dev_put(idev);
  451. dev_put(resolved_dev);
  452. if (ret)
  453. return ret;
  454. ret = get_sgid_index_from_eth(device, port_num, vlan_id,
  455. &dgid, gid_type, &gid_index);
  456. if (ret)
  457. return ret;
  458. }
  459. ah_attr->dlid = wc->slid;
  460. ah_attr->sl = wc->sl;
  461. ah_attr->src_path_bits = wc->dlid_path_bits;
  462. ah_attr->port_num = port_num;
  463. if (wc->wc_flags & IB_WC_GRH) {
  464. ah_attr->ah_flags = IB_AH_GRH;
  465. ah_attr->grh.dgid = sgid;
  466. if (!rdma_cap_eth_ah(device, port_num)) {
  467. if (dgid.global.interface_id != cpu_to_be64(IB_SA_WELL_KNOWN_GUID)) {
  468. ret = ib_find_cached_gid_by_port(device, &dgid,
  469. IB_GID_TYPE_IB,
  470. port_num, NULL,
  471. &gid_index);
  472. if (ret)
  473. return ret;
  474. } else {
  475. gid_index = 0;
  476. }
  477. }
  478. ah_attr->grh.sgid_index = (u8) gid_index;
  479. flow_class = be32_to_cpu(grh->version_tclass_flow);
  480. ah_attr->grh.flow_label = flow_class & 0xFFFFF;
  481. ah_attr->grh.hop_limit = hoplimit;
  482. ah_attr->grh.traffic_class = (flow_class >> 20) & 0xFF;
  483. }
  484. return 0;
  485. }
  486. EXPORT_SYMBOL(ib_init_ah_from_wc);
  487. struct ib_ah *ib_create_ah_from_wc(struct ib_pd *pd, const struct ib_wc *wc,
  488. const struct ib_grh *grh, u8 port_num)
  489. {
  490. struct ib_ah_attr ah_attr;
  491. int ret;
  492. ret = ib_init_ah_from_wc(pd->device, port_num, wc, grh, &ah_attr);
  493. if (ret)
  494. return ERR_PTR(ret);
  495. return ib_create_ah(pd, &ah_attr);
  496. }
  497. EXPORT_SYMBOL(ib_create_ah_from_wc);
  498. int ib_modify_ah(struct ib_ah *ah, struct ib_ah_attr *ah_attr)
  499. {
  500. return ah->device->modify_ah ?
  501. ah->device->modify_ah(ah, ah_attr) :
  502. -ENOSYS;
  503. }
  504. EXPORT_SYMBOL(ib_modify_ah);
  505. int ib_query_ah(struct ib_ah *ah, struct ib_ah_attr *ah_attr)
  506. {
  507. return ah->device->query_ah ?
  508. ah->device->query_ah(ah, ah_attr) :
  509. -ENOSYS;
  510. }
  511. EXPORT_SYMBOL(ib_query_ah);
  512. int ib_destroy_ah(struct ib_ah *ah)
  513. {
  514. struct ib_pd *pd;
  515. int ret;
  516. pd = ah->pd;
  517. ret = ah->device->destroy_ah(ah);
  518. if (!ret)
  519. atomic_dec(&pd->usecnt);
  520. return ret;
  521. }
  522. EXPORT_SYMBOL(ib_destroy_ah);
  523. /* Shared receive queues */
  524. struct ib_srq *ib_create_srq(struct ib_pd *pd,
  525. struct ib_srq_init_attr *srq_init_attr)
  526. {
  527. struct ib_srq *srq;
  528. if (!pd->device->create_srq)
  529. return ERR_PTR(-ENOSYS);
  530. srq = pd->device->create_srq(pd, srq_init_attr, NULL);
  531. if (!IS_ERR(srq)) {
  532. srq->device = pd->device;
  533. srq->pd = pd;
  534. srq->uobject = NULL;
  535. srq->event_handler = srq_init_attr->event_handler;
  536. srq->srq_context = srq_init_attr->srq_context;
  537. srq->srq_type = srq_init_attr->srq_type;
  538. if (srq->srq_type == IB_SRQT_XRC) {
  539. srq->ext.xrc.xrcd = srq_init_attr->ext.xrc.xrcd;
  540. srq->ext.xrc.cq = srq_init_attr->ext.xrc.cq;
  541. atomic_inc(&srq->ext.xrc.xrcd->usecnt);
  542. atomic_inc(&srq->ext.xrc.cq->usecnt);
  543. }
  544. atomic_inc(&pd->usecnt);
  545. atomic_set(&srq->usecnt, 0);
  546. }
  547. return srq;
  548. }
  549. EXPORT_SYMBOL(ib_create_srq);
  550. int ib_modify_srq(struct ib_srq *srq,
  551. struct ib_srq_attr *srq_attr,
  552. enum ib_srq_attr_mask srq_attr_mask)
  553. {
  554. return srq->device->modify_srq ?
  555. srq->device->modify_srq(srq, srq_attr, srq_attr_mask, NULL) :
  556. -ENOSYS;
  557. }
  558. EXPORT_SYMBOL(ib_modify_srq);
  559. int ib_query_srq(struct ib_srq *srq,
  560. struct ib_srq_attr *srq_attr)
  561. {
  562. return srq->device->query_srq ?
  563. srq->device->query_srq(srq, srq_attr) : -ENOSYS;
  564. }
  565. EXPORT_SYMBOL(ib_query_srq);
  566. int ib_destroy_srq(struct ib_srq *srq)
  567. {
  568. struct ib_pd *pd;
  569. enum ib_srq_type srq_type;
  570. struct ib_xrcd *uninitialized_var(xrcd);
  571. struct ib_cq *uninitialized_var(cq);
  572. int ret;
  573. if (atomic_read(&srq->usecnt))
  574. return -EBUSY;
  575. pd = srq->pd;
  576. srq_type = srq->srq_type;
  577. if (srq_type == IB_SRQT_XRC) {
  578. xrcd = srq->ext.xrc.xrcd;
  579. cq = srq->ext.xrc.cq;
  580. }
  581. ret = srq->device->destroy_srq(srq);
  582. if (!ret) {
  583. atomic_dec(&pd->usecnt);
  584. if (srq_type == IB_SRQT_XRC) {
  585. atomic_dec(&xrcd->usecnt);
  586. atomic_dec(&cq->usecnt);
  587. }
  588. }
  589. return ret;
  590. }
  591. EXPORT_SYMBOL(ib_destroy_srq);
  592. /* Queue pairs */
  593. static void __ib_shared_qp_event_handler(struct ib_event *event, void *context)
  594. {
  595. struct ib_qp *qp = context;
  596. unsigned long flags;
  597. spin_lock_irqsave(&qp->device->event_handler_lock, flags);
  598. list_for_each_entry(event->element.qp, &qp->open_list, open_list)
  599. if (event->element.qp->event_handler)
  600. event->element.qp->event_handler(event, event->element.qp->qp_context);
  601. spin_unlock_irqrestore(&qp->device->event_handler_lock, flags);
  602. }
  603. static void __ib_insert_xrcd_qp(struct ib_xrcd *xrcd, struct ib_qp *qp)
  604. {
  605. mutex_lock(&xrcd->tgt_qp_mutex);
  606. list_add(&qp->xrcd_list, &xrcd->tgt_qp_list);
  607. mutex_unlock(&xrcd->tgt_qp_mutex);
  608. }
  609. static struct ib_qp *__ib_open_qp(struct ib_qp *real_qp,
  610. void (*event_handler)(struct ib_event *, void *),
  611. void *qp_context)
  612. {
  613. struct ib_qp *qp;
  614. unsigned long flags;
  615. qp = kzalloc(sizeof *qp, GFP_KERNEL);
  616. if (!qp)
  617. return ERR_PTR(-ENOMEM);
  618. qp->real_qp = real_qp;
  619. atomic_inc(&real_qp->usecnt);
  620. qp->device = real_qp->device;
  621. qp->event_handler = event_handler;
  622. qp->qp_context = qp_context;
  623. qp->qp_num = real_qp->qp_num;
  624. qp->qp_type = real_qp->qp_type;
  625. spin_lock_irqsave(&real_qp->device->event_handler_lock, flags);
  626. list_add(&qp->open_list, &real_qp->open_list);
  627. spin_unlock_irqrestore(&real_qp->device->event_handler_lock, flags);
  628. return qp;
  629. }
  630. struct ib_qp *ib_open_qp(struct ib_xrcd *xrcd,
  631. struct ib_qp_open_attr *qp_open_attr)
  632. {
  633. struct ib_qp *qp, *real_qp;
  634. if (qp_open_attr->qp_type != IB_QPT_XRC_TGT)
  635. return ERR_PTR(-EINVAL);
  636. qp = ERR_PTR(-EINVAL);
  637. mutex_lock(&xrcd->tgt_qp_mutex);
  638. list_for_each_entry(real_qp, &xrcd->tgt_qp_list, xrcd_list) {
  639. if (real_qp->qp_num == qp_open_attr->qp_num) {
  640. qp = __ib_open_qp(real_qp, qp_open_attr->event_handler,
  641. qp_open_attr->qp_context);
  642. break;
  643. }
  644. }
  645. mutex_unlock(&xrcd->tgt_qp_mutex);
  646. return qp;
  647. }
  648. EXPORT_SYMBOL(ib_open_qp);
  649. static struct ib_qp *ib_create_xrc_qp(struct ib_qp *qp,
  650. struct ib_qp_init_attr *qp_init_attr)
  651. {
  652. struct ib_qp *real_qp = qp;
  653. qp->event_handler = __ib_shared_qp_event_handler;
  654. qp->qp_context = qp;
  655. qp->pd = NULL;
  656. qp->send_cq = qp->recv_cq = NULL;
  657. qp->srq = NULL;
  658. qp->xrcd = qp_init_attr->xrcd;
  659. atomic_inc(&qp_init_attr->xrcd->usecnt);
  660. INIT_LIST_HEAD(&qp->open_list);
  661. qp = __ib_open_qp(real_qp, qp_init_attr->event_handler,
  662. qp_init_attr->qp_context);
  663. if (!IS_ERR(qp))
  664. __ib_insert_xrcd_qp(qp_init_attr->xrcd, real_qp);
  665. else
  666. real_qp->device->destroy_qp(real_qp);
  667. return qp;
  668. }
  669. struct ib_qp *ib_create_qp(struct ib_pd *pd,
  670. struct ib_qp_init_attr *qp_init_attr)
  671. {
  672. struct ib_device *device = pd ? pd->device : qp_init_attr->xrcd->device;
  673. struct ib_qp *qp;
  674. int ret;
  675. if (qp_init_attr->rwq_ind_tbl &&
  676. (qp_init_attr->recv_cq ||
  677. qp_init_attr->srq || qp_init_attr->cap.max_recv_wr ||
  678. qp_init_attr->cap.max_recv_sge))
  679. return ERR_PTR(-EINVAL);
  680. /*
  681. * If the callers is using the RDMA API calculate the resources
  682. * needed for the RDMA READ/WRITE operations.
  683. *
  684. * Note that these callers need to pass in a port number.
  685. */
  686. if (qp_init_attr->cap.max_rdma_ctxs)
  687. rdma_rw_init_qp(device, qp_init_attr);
  688. qp = device->create_qp(pd, qp_init_attr, NULL);
  689. if (IS_ERR(qp))
  690. return qp;
  691. qp->device = device;
  692. qp->real_qp = qp;
  693. qp->uobject = NULL;
  694. qp->qp_type = qp_init_attr->qp_type;
  695. qp->rwq_ind_tbl = qp_init_attr->rwq_ind_tbl;
  696. atomic_set(&qp->usecnt, 0);
  697. qp->mrs_used = 0;
  698. spin_lock_init(&qp->mr_lock);
  699. INIT_LIST_HEAD(&qp->rdma_mrs);
  700. INIT_LIST_HEAD(&qp->sig_mrs);
  701. if (qp_init_attr->qp_type == IB_QPT_XRC_TGT)
  702. return ib_create_xrc_qp(qp, qp_init_attr);
  703. qp->event_handler = qp_init_attr->event_handler;
  704. qp->qp_context = qp_init_attr->qp_context;
  705. if (qp_init_attr->qp_type == IB_QPT_XRC_INI) {
  706. qp->recv_cq = NULL;
  707. qp->srq = NULL;
  708. } else {
  709. qp->recv_cq = qp_init_attr->recv_cq;
  710. if (qp_init_attr->recv_cq)
  711. atomic_inc(&qp_init_attr->recv_cq->usecnt);
  712. qp->srq = qp_init_attr->srq;
  713. if (qp->srq)
  714. atomic_inc(&qp_init_attr->srq->usecnt);
  715. }
  716. qp->pd = pd;
  717. qp->send_cq = qp_init_attr->send_cq;
  718. qp->xrcd = NULL;
  719. atomic_inc(&pd->usecnt);
  720. if (qp_init_attr->send_cq)
  721. atomic_inc(&qp_init_attr->send_cq->usecnt);
  722. if (qp_init_attr->rwq_ind_tbl)
  723. atomic_inc(&qp->rwq_ind_tbl->usecnt);
  724. if (qp_init_attr->cap.max_rdma_ctxs) {
  725. ret = rdma_rw_init_mrs(qp, qp_init_attr);
  726. if (ret) {
  727. pr_err("failed to init MR pool ret= %d\n", ret);
  728. ib_destroy_qp(qp);
  729. return ERR_PTR(ret);
  730. }
  731. }
  732. /*
  733. * Note: all hw drivers guarantee that max_send_sge is lower than
  734. * the device RDMA WRITE SGE limit but not all hw drivers ensure that
  735. * max_send_sge <= max_sge_rd.
  736. */
  737. qp->max_write_sge = qp_init_attr->cap.max_send_sge;
  738. qp->max_read_sge = min_t(u32, qp_init_attr->cap.max_send_sge,
  739. device->attrs.max_sge_rd);
  740. return qp;
  741. }
  742. EXPORT_SYMBOL(ib_create_qp);
  743. static const struct {
  744. int valid;
  745. enum ib_qp_attr_mask req_param[IB_QPT_MAX];
  746. enum ib_qp_attr_mask opt_param[IB_QPT_MAX];
  747. } qp_state_table[IB_QPS_ERR + 1][IB_QPS_ERR + 1] = {
  748. [IB_QPS_RESET] = {
  749. [IB_QPS_RESET] = { .valid = 1 },
  750. [IB_QPS_INIT] = {
  751. .valid = 1,
  752. .req_param = {
  753. [IB_QPT_UD] = (IB_QP_PKEY_INDEX |
  754. IB_QP_PORT |
  755. IB_QP_QKEY),
  756. [IB_QPT_RAW_PACKET] = IB_QP_PORT,
  757. [IB_QPT_UC] = (IB_QP_PKEY_INDEX |
  758. IB_QP_PORT |
  759. IB_QP_ACCESS_FLAGS),
  760. [IB_QPT_RC] = (IB_QP_PKEY_INDEX |
  761. IB_QP_PORT |
  762. IB_QP_ACCESS_FLAGS),
  763. [IB_QPT_XRC_INI] = (IB_QP_PKEY_INDEX |
  764. IB_QP_PORT |
  765. IB_QP_ACCESS_FLAGS),
  766. [IB_QPT_XRC_TGT] = (IB_QP_PKEY_INDEX |
  767. IB_QP_PORT |
  768. IB_QP_ACCESS_FLAGS),
  769. [IB_QPT_SMI] = (IB_QP_PKEY_INDEX |
  770. IB_QP_QKEY),
  771. [IB_QPT_GSI] = (IB_QP_PKEY_INDEX |
  772. IB_QP_QKEY),
  773. }
  774. },
  775. },
  776. [IB_QPS_INIT] = {
  777. [IB_QPS_RESET] = { .valid = 1 },
  778. [IB_QPS_ERR] = { .valid = 1 },
  779. [IB_QPS_INIT] = {
  780. .valid = 1,
  781. .opt_param = {
  782. [IB_QPT_UD] = (IB_QP_PKEY_INDEX |
  783. IB_QP_PORT |
  784. IB_QP_QKEY),
  785. [IB_QPT_UC] = (IB_QP_PKEY_INDEX |
  786. IB_QP_PORT |
  787. IB_QP_ACCESS_FLAGS),
  788. [IB_QPT_RC] = (IB_QP_PKEY_INDEX |
  789. IB_QP_PORT |
  790. IB_QP_ACCESS_FLAGS),
  791. [IB_QPT_XRC_INI] = (IB_QP_PKEY_INDEX |
  792. IB_QP_PORT |
  793. IB_QP_ACCESS_FLAGS),
  794. [IB_QPT_XRC_TGT] = (IB_QP_PKEY_INDEX |
  795. IB_QP_PORT |
  796. IB_QP_ACCESS_FLAGS),
  797. [IB_QPT_SMI] = (IB_QP_PKEY_INDEX |
  798. IB_QP_QKEY),
  799. [IB_QPT_GSI] = (IB_QP_PKEY_INDEX |
  800. IB_QP_QKEY),
  801. }
  802. },
  803. [IB_QPS_RTR] = {
  804. .valid = 1,
  805. .req_param = {
  806. [IB_QPT_UC] = (IB_QP_AV |
  807. IB_QP_PATH_MTU |
  808. IB_QP_DEST_QPN |
  809. IB_QP_RQ_PSN),
  810. [IB_QPT_RC] = (IB_QP_AV |
  811. IB_QP_PATH_MTU |
  812. IB_QP_DEST_QPN |
  813. IB_QP_RQ_PSN |
  814. IB_QP_MAX_DEST_RD_ATOMIC |
  815. IB_QP_MIN_RNR_TIMER),
  816. [IB_QPT_XRC_INI] = (IB_QP_AV |
  817. IB_QP_PATH_MTU |
  818. IB_QP_DEST_QPN |
  819. IB_QP_RQ_PSN),
  820. [IB_QPT_XRC_TGT] = (IB_QP_AV |
  821. IB_QP_PATH_MTU |
  822. IB_QP_DEST_QPN |
  823. IB_QP_RQ_PSN |
  824. IB_QP_MAX_DEST_RD_ATOMIC |
  825. IB_QP_MIN_RNR_TIMER),
  826. },
  827. .opt_param = {
  828. [IB_QPT_UD] = (IB_QP_PKEY_INDEX |
  829. IB_QP_QKEY),
  830. [IB_QPT_UC] = (IB_QP_ALT_PATH |
  831. IB_QP_ACCESS_FLAGS |
  832. IB_QP_PKEY_INDEX),
  833. [IB_QPT_RC] = (IB_QP_ALT_PATH |
  834. IB_QP_ACCESS_FLAGS |
  835. IB_QP_PKEY_INDEX),
  836. [IB_QPT_XRC_INI] = (IB_QP_ALT_PATH |
  837. IB_QP_ACCESS_FLAGS |
  838. IB_QP_PKEY_INDEX),
  839. [IB_QPT_XRC_TGT] = (IB_QP_ALT_PATH |
  840. IB_QP_ACCESS_FLAGS |
  841. IB_QP_PKEY_INDEX),
  842. [IB_QPT_SMI] = (IB_QP_PKEY_INDEX |
  843. IB_QP_QKEY),
  844. [IB_QPT_GSI] = (IB_QP_PKEY_INDEX |
  845. IB_QP_QKEY),
  846. },
  847. },
  848. },
  849. [IB_QPS_RTR] = {
  850. [IB_QPS_RESET] = { .valid = 1 },
  851. [IB_QPS_ERR] = { .valid = 1 },
  852. [IB_QPS_RTS] = {
  853. .valid = 1,
  854. .req_param = {
  855. [IB_QPT_UD] = IB_QP_SQ_PSN,
  856. [IB_QPT_UC] = IB_QP_SQ_PSN,
  857. [IB_QPT_RC] = (IB_QP_TIMEOUT |
  858. IB_QP_RETRY_CNT |
  859. IB_QP_RNR_RETRY |
  860. IB_QP_SQ_PSN |
  861. IB_QP_MAX_QP_RD_ATOMIC),
  862. [IB_QPT_XRC_INI] = (IB_QP_TIMEOUT |
  863. IB_QP_RETRY_CNT |
  864. IB_QP_RNR_RETRY |
  865. IB_QP_SQ_PSN |
  866. IB_QP_MAX_QP_RD_ATOMIC),
  867. [IB_QPT_XRC_TGT] = (IB_QP_TIMEOUT |
  868. IB_QP_SQ_PSN),
  869. [IB_QPT_SMI] = IB_QP_SQ_PSN,
  870. [IB_QPT_GSI] = IB_QP_SQ_PSN,
  871. },
  872. .opt_param = {
  873. [IB_QPT_UD] = (IB_QP_CUR_STATE |
  874. IB_QP_QKEY),
  875. [IB_QPT_UC] = (IB_QP_CUR_STATE |
  876. IB_QP_ALT_PATH |
  877. IB_QP_ACCESS_FLAGS |
  878. IB_QP_PATH_MIG_STATE),
  879. [IB_QPT_RC] = (IB_QP_CUR_STATE |
  880. IB_QP_ALT_PATH |
  881. IB_QP_ACCESS_FLAGS |
  882. IB_QP_MIN_RNR_TIMER |
  883. IB_QP_PATH_MIG_STATE),
  884. [IB_QPT_XRC_INI] = (IB_QP_CUR_STATE |
  885. IB_QP_ALT_PATH |
  886. IB_QP_ACCESS_FLAGS |
  887. IB_QP_PATH_MIG_STATE),
  888. [IB_QPT_XRC_TGT] = (IB_QP_CUR_STATE |
  889. IB_QP_ALT_PATH |
  890. IB_QP_ACCESS_FLAGS |
  891. IB_QP_MIN_RNR_TIMER |
  892. IB_QP_PATH_MIG_STATE),
  893. [IB_QPT_SMI] = (IB_QP_CUR_STATE |
  894. IB_QP_QKEY),
  895. [IB_QPT_GSI] = (IB_QP_CUR_STATE |
  896. IB_QP_QKEY),
  897. }
  898. }
  899. },
  900. [IB_QPS_RTS] = {
  901. [IB_QPS_RESET] = { .valid = 1 },
  902. [IB_QPS_ERR] = { .valid = 1 },
  903. [IB_QPS_RTS] = {
  904. .valid = 1,
  905. .opt_param = {
  906. [IB_QPT_UD] = (IB_QP_CUR_STATE |
  907. IB_QP_QKEY),
  908. [IB_QPT_UC] = (IB_QP_CUR_STATE |
  909. IB_QP_ACCESS_FLAGS |
  910. IB_QP_ALT_PATH |
  911. IB_QP_PATH_MIG_STATE),
  912. [IB_QPT_RC] = (IB_QP_CUR_STATE |
  913. IB_QP_ACCESS_FLAGS |
  914. IB_QP_ALT_PATH |
  915. IB_QP_PATH_MIG_STATE |
  916. IB_QP_MIN_RNR_TIMER),
  917. [IB_QPT_XRC_INI] = (IB_QP_CUR_STATE |
  918. IB_QP_ACCESS_FLAGS |
  919. IB_QP_ALT_PATH |
  920. IB_QP_PATH_MIG_STATE),
  921. [IB_QPT_XRC_TGT] = (IB_QP_CUR_STATE |
  922. IB_QP_ACCESS_FLAGS |
  923. IB_QP_ALT_PATH |
  924. IB_QP_PATH_MIG_STATE |
  925. IB_QP_MIN_RNR_TIMER),
  926. [IB_QPT_SMI] = (IB_QP_CUR_STATE |
  927. IB_QP_QKEY),
  928. [IB_QPT_GSI] = (IB_QP_CUR_STATE |
  929. IB_QP_QKEY),
  930. }
  931. },
  932. [IB_QPS_SQD] = {
  933. .valid = 1,
  934. .opt_param = {
  935. [IB_QPT_UD] = IB_QP_EN_SQD_ASYNC_NOTIFY,
  936. [IB_QPT_UC] = IB_QP_EN_SQD_ASYNC_NOTIFY,
  937. [IB_QPT_RC] = IB_QP_EN_SQD_ASYNC_NOTIFY,
  938. [IB_QPT_XRC_INI] = IB_QP_EN_SQD_ASYNC_NOTIFY,
  939. [IB_QPT_XRC_TGT] = IB_QP_EN_SQD_ASYNC_NOTIFY, /* ??? */
  940. [IB_QPT_SMI] = IB_QP_EN_SQD_ASYNC_NOTIFY,
  941. [IB_QPT_GSI] = IB_QP_EN_SQD_ASYNC_NOTIFY
  942. }
  943. },
  944. },
  945. [IB_QPS_SQD] = {
  946. [IB_QPS_RESET] = { .valid = 1 },
  947. [IB_QPS_ERR] = { .valid = 1 },
  948. [IB_QPS_RTS] = {
  949. .valid = 1,
  950. .opt_param = {
  951. [IB_QPT_UD] = (IB_QP_CUR_STATE |
  952. IB_QP_QKEY),
  953. [IB_QPT_UC] = (IB_QP_CUR_STATE |
  954. IB_QP_ALT_PATH |
  955. IB_QP_ACCESS_FLAGS |
  956. IB_QP_PATH_MIG_STATE),
  957. [IB_QPT_RC] = (IB_QP_CUR_STATE |
  958. IB_QP_ALT_PATH |
  959. IB_QP_ACCESS_FLAGS |
  960. IB_QP_MIN_RNR_TIMER |
  961. IB_QP_PATH_MIG_STATE),
  962. [IB_QPT_XRC_INI] = (IB_QP_CUR_STATE |
  963. IB_QP_ALT_PATH |
  964. IB_QP_ACCESS_FLAGS |
  965. IB_QP_PATH_MIG_STATE),
  966. [IB_QPT_XRC_TGT] = (IB_QP_CUR_STATE |
  967. IB_QP_ALT_PATH |
  968. IB_QP_ACCESS_FLAGS |
  969. IB_QP_MIN_RNR_TIMER |
  970. IB_QP_PATH_MIG_STATE),
  971. [IB_QPT_SMI] = (IB_QP_CUR_STATE |
  972. IB_QP_QKEY),
  973. [IB_QPT_GSI] = (IB_QP_CUR_STATE |
  974. IB_QP_QKEY),
  975. }
  976. },
  977. [IB_QPS_SQD] = {
  978. .valid = 1,
  979. .opt_param = {
  980. [IB_QPT_UD] = (IB_QP_PKEY_INDEX |
  981. IB_QP_QKEY),
  982. [IB_QPT_UC] = (IB_QP_AV |
  983. IB_QP_ALT_PATH |
  984. IB_QP_ACCESS_FLAGS |
  985. IB_QP_PKEY_INDEX |
  986. IB_QP_PATH_MIG_STATE),
  987. [IB_QPT_RC] = (IB_QP_PORT |
  988. IB_QP_AV |
  989. IB_QP_TIMEOUT |
  990. IB_QP_RETRY_CNT |
  991. IB_QP_RNR_RETRY |
  992. IB_QP_MAX_QP_RD_ATOMIC |
  993. IB_QP_MAX_DEST_RD_ATOMIC |
  994. IB_QP_ALT_PATH |
  995. IB_QP_ACCESS_FLAGS |
  996. IB_QP_PKEY_INDEX |
  997. IB_QP_MIN_RNR_TIMER |
  998. IB_QP_PATH_MIG_STATE),
  999. [IB_QPT_XRC_INI] = (IB_QP_PORT |
  1000. IB_QP_AV |
  1001. IB_QP_TIMEOUT |
  1002. IB_QP_RETRY_CNT |
  1003. IB_QP_RNR_RETRY |
  1004. IB_QP_MAX_QP_RD_ATOMIC |
  1005. IB_QP_ALT_PATH |
  1006. IB_QP_ACCESS_FLAGS |
  1007. IB_QP_PKEY_INDEX |
  1008. IB_QP_PATH_MIG_STATE),
  1009. [IB_QPT_XRC_TGT] = (IB_QP_PORT |
  1010. IB_QP_AV |
  1011. IB_QP_TIMEOUT |
  1012. IB_QP_MAX_DEST_RD_ATOMIC |
  1013. IB_QP_ALT_PATH |
  1014. IB_QP_ACCESS_FLAGS |
  1015. IB_QP_PKEY_INDEX |
  1016. IB_QP_MIN_RNR_TIMER |
  1017. IB_QP_PATH_MIG_STATE),
  1018. [IB_QPT_SMI] = (IB_QP_PKEY_INDEX |
  1019. IB_QP_QKEY),
  1020. [IB_QPT_GSI] = (IB_QP_PKEY_INDEX |
  1021. IB_QP_QKEY),
  1022. }
  1023. }
  1024. },
  1025. [IB_QPS_SQE] = {
  1026. [IB_QPS_RESET] = { .valid = 1 },
  1027. [IB_QPS_ERR] = { .valid = 1 },
  1028. [IB_QPS_RTS] = {
  1029. .valid = 1,
  1030. .opt_param = {
  1031. [IB_QPT_UD] = (IB_QP_CUR_STATE |
  1032. IB_QP_QKEY),
  1033. [IB_QPT_UC] = (IB_QP_CUR_STATE |
  1034. IB_QP_ACCESS_FLAGS),
  1035. [IB_QPT_SMI] = (IB_QP_CUR_STATE |
  1036. IB_QP_QKEY),
  1037. [IB_QPT_GSI] = (IB_QP_CUR_STATE |
  1038. IB_QP_QKEY),
  1039. }
  1040. }
  1041. },
  1042. [IB_QPS_ERR] = {
  1043. [IB_QPS_RESET] = { .valid = 1 },
  1044. [IB_QPS_ERR] = { .valid = 1 }
  1045. }
  1046. };
  1047. int ib_modify_qp_is_ok(enum ib_qp_state cur_state, enum ib_qp_state next_state,
  1048. enum ib_qp_type type, enum ib_qp_attr_mask mask,
  1049. enum rdma_link_layer ll)
  1050. {
  1051. enum ib_qp_attr_mask req_param, opt_param;
  1052. if (cur_state < 0 || cur_state > IB_QPS_ERR ||
  1053. next_state < 0 || next_state > IB_QPS_ERR)
  1054. return 0;
  1055. if (mask & IB_QP_CUR_STATE &&
  1056. cur_state != IB_QPS_RTR && cur_state != IB_QPS_RTS &&
  1057. cur_state != IB_QPS_SQD && cur_state != IB_QPS_SQE)
  1058. return 0;
  1059. if (!qp_state_table[cur_state][next_state].valid)
  1060. return 0;
  1061. req_param = qp_state_table[cur_state][next_state].req_param[type];
  1062. opt_param = qp_state_table[cur_state][next_state].opt_param[type];
  1063. if ((mask & req_param) != req_param)
  1064. return 0;
  1065. if (mask & ~(req_param | opt_param | IB_QP_STATE))
  1066. return 0;
  1067. return 1;
  1068. }
  1069. EXPORT_SYMBOL(ib_modify_qp_is_ok);
  1070. int ib_resolve_eth_dmac(struct ib_qp *qp,
  1071. struct ib_qp_attr *qp_attr, int *qp_attr_mask)
  1072. {
  1073. int ret = 0;
  1074. if (*qp_attr_mask & IB_QP_AV) {
  1075. if (qp_attr->ah_attr.port_num < rdma_start_port(qp->device) ||
  1076. qp_attr->ah_attr.port_num > rdma_end_port(qp->device))
  1077. return -EINVAL;
  1078. if (!rdma_cap_eth_ah(qp->device, qp_attr->ah_attr.port_num))
  1079. return 0;
  1080. if (rdma_link_local_addr((struct in6_addr *)qp_attr->ah_attr.grh.dgid.raw)) {
  1081. rdma_get_ll_mac((struct in6_addr *)qp_attr->ah_attr.grh.dgid.raw,
  1082. qp_attr->ah_attr.dmac);
  1083. } else {
  1084. union ib_gid sgid;
  1085. struct ib_gid_attr sgid_attr;
  1086. int ifindex;
  1087. int hop_limit;
  1088. ret = ib_query_gid(qp->device,
  1089. qp_attr->ah_attr.port_num,
  1090. qp_attr->ah_attr.grh.sgid_index,
  1091. &sgid, &sgid_attr);
  1092. if (ret || !sgid_attr.ndev) {
  1093. if (!ret)
  1094. ret = -ENXIO;
  1095. goto out;
  1096. }
  1097. ifindex = sgid_attr.ndev->ifindex;
  1098. ret = rdma_addr_find_l2_eth_by_grh(&sgid,
  1099. &qp_attr->ah_attr.grh.dgid,
  1100. qp_attr->ah_attr.dmac,
  1101. NULL, &ifindex, &hop_limit);
  1102. dev_put(sgid_attr.ndev);
  1103. qp_attr->ah_attr.grh.hop_limit = hop_limit;
  1104. }
  1105. }
  1106. out:
  1107. return ret;
  1108. }
  1109. EXPORT_SYMBOL(ib_resolve_eth_dmac);
  1110. int ib_modify_qp(struct ib_qp *qp,
  1111. struct ib_qp_attr *qp_attr,
  1112. int qp_attr_mask)
  1113. {
  1114. int ret;
  1115. ret = ib_resolve_eth_dmac(qp, qp_attr, &qp_attr_mask);
  1116. if (ret)
  1117. return ret;
  1118. return qp->device->modify_qp(qp->real_qp, qp_attr, qp_attr_mask, NULL);
  1119. }
  1120. EXPORT_SYMBOL(ib_modify_qp);
  1121. int ib_query_qp(struct ib_qp *qp,
  1122. struct ib_qp_attr *qp_attr,
  1123. int qp_attr_mask,
  1124. struct ib_qp_init_attr *qp_init_attr)
  1125. {
  1126. return qp->device->query_qp ?
  1127. qp->device->query_qp(qp->real_qp, qp_attr, qp_attr_mask, qp_init_attr) :
  1128. -ENOSYS;
  1129. }
  1130. EXPORT_SYMBOL(ib_query_qp);
  1131. int ib_close_qp(struct ib_qp *qp)
  1132. {
  1133. struct ib_qp *real_qp;
  1134. unsigned long flags;
  1135. real_qp = qp->real_qp;
  1136. if (real_qp == qp)
  1137. return -EINVAL;
  1138. spin_lock_irqsave(&real_qp->device->event_handler_lock, flags);
  1139. list_del(&qp->open_list);
  1140. spin_unlock_irqrestore(&real_qp->device->event_handler_lock, flags);
  1141. atomic_dec(&real_qp->usecnt);
  1142. kfree(qp);
  1143. return 0;
  1144. }
  1145. EXPORT_SYMBOL(ib_close_qp);
  1146. static int __ib_destroy_shared_qp(struct ib_qp *qp)
  1147. {
  1148. struct ib_xrcd *xrcd;
  1149. struct ib_qp *real_qp;
  1150. int ret;
  1151. real_qp = qp->real_qp;
  1152. xrcd = real_qp->xrcd;
  1153. mutex_lock(&xrcd->tgt_qp_mutex);
  1154. ib_close_qp(qp);
  1155. if (atomic_read(&real_qp->usecnt) == 0)
  1156. list_del(&real_qp->xrcd_list);
  1157. else
  1158. real_qp = NULL;
  1159. mutex_unlock(&xrcd->tgt_qp_mutex);
  1160. if (real_qp) {
  1161. ret = ib_destroy_qp(real_qp);
  1162. if (!ret)
  1163. atomic_dec(&xrcd->usecnt);
  1164. else
  1165. __ib_insert_xrcd_qp(xrcd, real_qp);
  1166. }
  1167. return 0;
  1168. }
  1169. int ib_destroy_qp(struct ib_qp *qp)
  1170. {
  1171. struct ib_pd *pd;
  1172. struct ib_cq *scq, *rcq;
  1173. struct ib_srq *srq;
  1174. struct ib_rwq_ind_table *ind_tbl;
  1175. int ret;
  1176. WARN_ON_ONCE(qp->mrs_used > 0);
  1177. if (atomic_read(&qp->usecnt))
  1178. return -EBUSY;
  1179. if (qp->real_qp != qp)
  1180. return __ib_destroy_shared_qp(qp);
  1181. pd = qp->pd;
  1182. scq = qp->send_cq;
  1183. rcq = qp->recv_cq;
  1184. srq = qp->srq;
  1185. ind_tbl = qp->rwq_ind_tbl;
  1186. if (!qp->uobject)
  1187. rdma_rw_cleanup_mrs(qp);
  1188. ret = qp->device->destroy_qp(qp);
  1189. if (!ret) {
  1190. if (pd)
  1191. atomic_dec(&pd->usecnt);
  1192. if (scq)
  1193. atomic_dec(&scq->usecnt);
  1194. if (rcq)
  1195. atomic_dec(&rcq->usecnt);
  1196. if (srq)
  1197. atomic_dec(&srq->usecnt);
  1198. if (ind_tbl)
  1199. atomic_dec(&ind_tbl->usecnt);
  1200. }
  1201. return ret;
  1202. }
  1203. EXPORT_SYMBOL(ib_destroy_qp);
  1204. /* Completion queues */
  1205. struct ib_cq *ib_create_cq(struct ib_device *device,
  1206. ib_comp_handler comp_handler,
  1207. void (*event_handler)(struct ib_event *, void *),
  1208. void *cq_context,
  1209. const struct ib_cq_init_attr *cq_attr)
  1210. {
  1211. struct ib_cq *cq;
  1212. cq = device->create_cq(device, cq_attr, NULL, NULL);
  1213. if (!IS_ERR(cq)) {
  1214. cq->device = device;
  1215. cq->uobject = NULL;
  1216. cq->comp_handler = comp_handler;
  1217. cq->event_handler = event_handler;
  1218. cq->cq_context = cq_context;
  1219. atomic_set(&cq->usecnt, 0);
  1220. }
  1221. return cq;
  1222. }
  1223. EXPORT_SYMBOL(ib_create_cq);
  1224. int ib_modify_cq(struct ib_cq *cq, u16 cq_count, u16 cq_period)
  1225. {
  1226. return cq->device->modify_cq ?
  1227. cq->device->modify_cq(cq, cq_count, cq_period) : -ENOSYS;
  1228. }
  1229. EXPORT_SYMBOL(ib_modify_cq);
  1230. int ib_destroy_cq(struct ib_cq *cq)
  1231. {
  1232. if (atomic_read(&cq->usecnt))
  1233. return -EBUSY;
  1234. return cq->device->destroy_cq(cq);
  1235. }
  1236. EXPORT_SYMBOL(ib_destroy_cq);
  1237. int ib_resize_cq(struct ib_cq *cq, int cqe)
  1238. {
  1239. return cq->device->resize_cq ?
  1240. cq->device->resize_cq(cq, cqe, NULL) : -ENOSYS;
  1241. }
  1242. EXPORT_SYMBOL(ib_resize_cq);
  1243. /* Memory regions */
  1244. int ib_dereg_mr(struct ib_mr *mr)
  1245. {
  1246. struct ib_pd *pd = mr->pd;
  1247. int ret;
  1248. ret = mr->device->dereg_mr(mr);
  1249. if (!ret)
  1250. atomic_dec(&pd->usecnt);
  1251. return ret;
  1252. }
  1253. EXPORT_SYMBOL(ib_dereg_mr);
  1254. /**
  1255. * ib_alloc_mr() - Allocates a memory region
  1256. * @pd: protection domain associated with the region
  1257. * @mr_type: memory region type
  1258. * @max_num_sg: maximum sg entries available for registration.
  1259. *
  1260. * Notes:
  1261. * Memory registeration page/sg lists must not exceed max_num_sg.
  1262. * For mr_type IB_MR_TYPE_MEM_REG, the total length cannot exceed
  1263. * max_num_sg * used_page_size.
  1264. *
  1265. */
  1266. struct ib_mr *ib_alloc_mr(struct ib_pd *pd,
  1267. enum ib_mr_type mr_type,
  1268. u32 max_num_sg)
  1269. {
  1270. struct ib_mr *mr;
  1271. if (!pd->device->alloc_mr)
  1272. return ERR_PTR(-ENOSYS);
  1273. mr = pd->device->alloc_mr(pd, mr_type, max_num_sg);
  1274. if (!IS_ERR(mr)) {
  1275. mr->device = pd->device;
  1276. mr->pd = pd;
  1277. mr->uobject = NULL;
  1278. atomic_inc(&pd->usecnt);
  1279. mr->need_inval = false;
  1280. }
  1281. return mr;
  1282. }
  1283. EXPORT_SYMBOL(ib_alloc_mr);
  1284. /* "Fast" memory regions */
  1285. struct ib_fmr *ib_alloc_fmr(struct ib_pd *pd,
  1286. int mr_access_flags,
  1287. struct ib_fmr_attr *fmr_attr)
  1288. {
  1289. struct ib_fmr *fmr;
  1290. if (!pd->device->alloc_fmr)
  1291. return ERR_PTR(-ENOSYS);
  1292. fmr = pd->device->alloc_fmr(pd, mr_access_flags, fmr_attr);
  1293. if (!IS_ERR(fmr)) {
  1294. fmr->device = pd->device;
  1295. fmr->pd = pd;
  1296. atomic_inc(&pd->usecnt);
  1297. }
  1298. return fmr;
  1299. }
  1300. EXPORT_SYMBOL(ib_alloc_fmr);
  1301. int ib_unmap_fmr(struct list_head *fmr_list)
  1302. {
  1303. struct ib_fmr *fmr;
  1304. if (list_empty(fmr_list))
  1305. return 0;
  1306. fmr = list_entry(fmr_list->next, struct ib_fmr, list);
  1307. return fmr->device->unmap_fmr(fmr_list);
  1308. }
  1309. EXPORT_SYMBOL(ib_unmap_fmr);
  1310. int ib_dealloc_fmr(struct ib_fmr *fmr)
  1311. {
  1312. struct ib_pd *pd;
  1313. int ret;
  1314. pd = fmr->pd;
  1315. ret = fmr->device->dealloc_fmr(fmr);
  1316. if (!ret)
  1317. atomic_dec(&pd->usecnt);
  1318. return ret;
  1319. }
  1320. EXPORT_SYMBOL(ib_dealloc_fmr);
  1321. /* Multicast groups */
  1322. int ib_attach_mcast(struct ib_qp *qp, union ib_gid *gid, u16 lid)
  1323. {
  1324. int ret;
  1325. if (!qp->device->attach_mcast)
  1326. return -ENOSYS;
  1327. if (gid->raw[0] != 0xff || qp->qp_type != IB_QPT_UD)
  1328. return -EINVAL;
  1329. ret = qp->device->attach_mcast(qp, gid, lid);
  1330. if (!ret)
  1331. atomic_inc(&qp->usecnt);
  1332. return ret;
  1333. }
  1334. EXPORT_SYMBOL(ib_attach_mcast);
  1335. int ib_detach_mcast(struct ib_qp *qp, union ib_gid *gid, u16 lid)
  1336. {
  1337. int ret;
  1338. if (!qp->device->detach_mcast)
  1339. return -ENOSYS;
  1340. if (gid->raw[0] != 0xff || qp->qp_type != IB_QPT_UD)
  1341. return -EINVAL;
  1342. ret = qp->device->detach_mcast(qp, gid, lid);
  1343. if (!ret)
  1344. atomic_dec(&qp->usecnt);
  1345. return ret;
  1346. }
  1347. EXPORT_SYMBOL(ib_detach_mcast);
  1348. struct ib_xrcd *ib_alloc_xrcd(struct ib_device *device)
  1349. {
  1350. struct ib_xrcd *xrcd;
  1351. if (!device->alloc_xrcd)
  1352. return ERR_PTR(-ENOSYS);
  1353. xrcd = device->alloc_xrcd(device, NULL, NULL);
  1354. if (!IS_ERR(xrcd)) {
  1355. xrcd->device = device;
  1356. xrcd->inode = NULL;
  1357. atomic_set(&xrcd->usecnt, 0);
  1358. mutex_init(&xrcd->tgt_qp_mutex);
  1359. INIT_LIST_HEAD(&xrcd->tgt_qp_list);
  1360. }
  1361. return xrcd;
  1362. }
  1363. EXPORT_SYMBOL(ib_alloc_xrcd);
  1364. int ib_dealloc_xrcd(struct ib_xrcd *xrcd)
  1365. {
  1366. struct ib_qp *qp;
  1367. int ret;
  1368. if (atomic_read(&xrcd->usecnt))
  1369. return -EBUSY;
  1370. while (!list_empty(&xrcd->tgt_qp_list)) {
  1371. qp = list_entry(xrcd->tgt_qp_list.next, struct ib_qp, xrcd_list);
  1372. ret = ib_destroy_qp(qp);
  1373. if (ret)
  1374. return ret;
  1375. }
  1376. return xrcd->device->dealloc_xrcd(xrcd);
  1377. }
  1378. EXPORT_SYMBOL(ib_dealloc_xrcd);
  1379. /**
  1380. * ib_create_wq - Creates a WQ associated with the specified protection
  1381. * domain.
  1382. * @pd: The protection domain associated with the WQ.
  1383. * @wq_init_attr: A list of initial attributes required to create the
  1384. * WQ. If WQ creation succeeds, then the attributes are updated to
  1385. * the actual capabilities of the created WQ.
  1386. *
  1387. * wq_init_attr->max_wr and wq_init_attr->max_sge determine
  1388. * the requested size of the WQ, and set to the actual values allocated
  1389. * on return.
  1390. * If ib_create_wq() succeeds, then max_wr and max_sge will always be
  1391. * at least as large as the requested values.
  1392. */
  1393. struct ib_wq *ib_create_wq(struct ib_pd *pd,
  1394. struct ib_wq_init_attr *wq_attr)
  1395. {
  1396. struct ib_wq *wq;
  1397. if (!pd->device->create_wq)
  1398. return ERR_PTR(-ENOSYS);
  1399. wq = pd->device->create_wq(pd, wq_attr, NULL);
  1400. if (!IS_ERR(wq)) {
  1401. wq->event_handler = wq_attr->event_handler;
  1402. wq->wq_context = wq_attr->wq_context;
  1403. wq->wq_type = wq_attr->wq_type;
  1404. wq->cq = wq_attr->cq;
  1405. wq->device = pd->device;
  1406. wq->pd = pd;
  1407. wq->uobject = NULL;
  1408. atomic_inc(&pd->usecnt);
  1409. atomic_inc(&wq_attr->cq->usecnt);
  1410. atomic_set(&wq->usecnt, 0);
  1411. }
  1412. return wq;
  1413. }
  1414. EXPORT_SYMBOL(ib_create_wq);
  1415. /**
  1416. * ib_destroy_wq - Destroys the specified WQ.
  1417. * @wq: The WQ to destroy.
  1418. */
  1419. int ib_destroy_wq(struct ib_wq *wq)
  1420. {
  1421. int err;
  1422. struct ib_cq *cq = wq->cq;
  1423. struct ib_pd *pd = wq->pd;
  1424. if (atomic_read(&wq->usecnt))
  1425. return -EBUSY;
  1426. err = wq->device->destroy_wq(wq);
  1427. if (!err) {
  1428. atomic_dec(&pd->usecnt);
  1429. atomic_dec(&cq->usecnt);
  1430. }
  1431. return err;
  1432. }
  1433. EXPORT_SYMBOL(ib_destroy_wq);
  1434. /**
  1435. * ib_modify_wq - Modifies the specified WQ.
  1436. * @wq: The WQ to modify.
  1437. * @wq_attr: On input, specifies the WQ attributes to modify.
  1438. * @wq_attr_mask: A bit-mask used to specify which attributes of the WQ
  1439. * are being modified.
  1440. * On output, the current values of selected WQ attributes are returned.
  1441. */
  1442. int ib_modify_wq(struct ib_wq *wq, struct ib_wq_attr *wq_attr,
  1443. u32 wq_attr_mask)
  1444. {
  1445. int err;
  1446. if (!wq->device->modify_wq)
  1447. return -ENOSYS;
  1448. err = wq->device->modify_wq(wq, wq_attr, wq_attr_mask, NULL);
  1449. return err;
  1450. }
  1451. EXPORT_SYMBOL(ib_modify_wq);
  1452. /*
  1453. * ib_create_rwq_ind_table - Creates a RQ Indirection Table.
  1454. * @device: The device on which to create the rwq indirection table.
  1455. * @ib_rwq_ind_table_init_attr: A list of initial attributes required to
  1456. * create the Indirection Table.
  1457. *
  1458. * Note: The life time of ib_rwq_ind_table_init_attr->ind_tbl is not less
  1459. * than the created ib_rwq_ind_table object and the caller is responsible
  1460. * for its memory allocation/free.
  1461. */
  1462. struct ib_rwq_ind_table *ib_create_rwq_ind_table(struct ib_device *device,
  1463. struct ib_rwq_ind_table_init_attr *init_attr)
  1464. {
  1465. struct ib_rwq_ind_table *rwq_ind_table;
  1466. int i;
  1467. u32 table_size;
  1468. if (!device->create_rwq_ind_table)
  1469. return ERR_PTR(-ENOSYS);
  1470. table_size = (1 << init_attr->log_ind_tbl_size);
  1471. rwq_ind_table = device->create_rwq_ind_table(device,
  1472. init_attr, NULL);
  1473. if (IS_ERR(rwq_ind_table))
  1474. return rwq_ind_table;
  1475. rwq_ind_table->ind_tbl = init_attr->ind_tbl;
  1476. rwq_ind_table->log_ind_tbl_size = init_attr->log_ind_tbl_size;
  1477. rwq_ind_table->device = device;
  1478. rwq_ind_table->uobject = NULL;
  1479. atomic_set(&rwq_ind_table->usecnt, 0);
  1480. for (i = 0; i < table_size; i++)
  1481. atomic_inc(&rwq_ind_table->ind_tbl[i]->usecnt);
  1482. return rwq_ind_table;
  1483. }
  1484. EXPORT_SYMBOL(ib_create_rwq_ind_table);
  1485. /*
  1486. * ib_destroy_rwq_ind_table - Destroys the specified Indirection Table.
  1487. * @wq_ind_table: The Indirection Table to destroy.
  1488. */
  1489. int ib_destroy_rwq_ind_table(struct ib_rwq_ind_table *rwq_ind_table)
  1490. {
  1491. int err, i;
  1492. u32 table_size = (1 << rwq_ind_table->log_ind_tbl_size);
  1493. struct ib_wq **ind_tbl = rwq_ind_table->ind_tbl;
  1494. if (atomic_read(&rwq_ind_table->usecnt))
  1495. return -EBUSY;
  1496. err = rwq_ind_table->device->destroy_rwq_ind_table(rwq_ind_table);
  1497. if (!err) {
  1498. for (i = 0; i < table_size; i++)
  1499. atomic_dec(&ind_tbl[i]->usecnt);
  1500. }
  1501. return err;
  1502. }
  1503. EXPORT_SYMBOL(ib_destroy_rwq_ind_table);
  1504. struct ib_flow *ib_create_flow(struct ib_qp *qp,
  1505. struct ib_flow_attr *flow_attr,
  1506. int domain)
  1507. {
  1508. struct ib_flow *flow_id;
  1509. if (!qp->device->create_flow)
  1510. return ERR_PTR(-ENOSYS);
  1511. flow_id = qp->device->create_flow(qp, flow_attr, domain);
  1512. if (!IS_ERR(flow_id))
  1513. atomic_inc(&qp->usecnt);
  1514. return flow_id;
  1515. }
  1516. EXPORT_SYMBOL(ib_create_flow);
  1517. int ib_destroy_flow(struct ib_flow *flow_id)
  1518. {
  1519. int err;
  1520. struct ib_qp *qp = flow_id->qp;
  1521. err = qp->device->destroy_flow(flow_id);
  1522. if (!err)
  1523. atomic_dec(&qp->usecnt);
  1524. return err;
  1525. }
  1526. EXPORT_SYMBOL(ib_destroy_flow);
  1527. int ib_check_mr_status(struct ib_mr *mr, u32 check_mask,
  1528. struct ib_mr_status *mr_status)
  1529. {
  1530. return mr->device->check_mr_status ?
  1531. mr->device->check_mr_status(mr, check_mask, mr_status) : -ENOSYS;
  1532. }
  1533. EXPORT_SYMBOL(ib_check_mr_status);
  1534. int ib_set_vf_link_state(struct ib_device *device, int vf, u8 port,
  1535. int state)
  1536. {
  1537. if (!device->set_vf_link_state)
  1538. return -ENOSYS;
  1539. return device->set_vf_link_state(device, vf, port, state);
  1540. }
  1541. EXPORT_SYMBOL(ib_set_vf_link_state);
  1542. int ib_get_vf_config(struct ib_device *device, int vf, u8 port,
  1543. struct ifla_vf_info *info)
  1544. {
  1545. if (!device->get_vf_config)
  1546. return -ENOSYS;
  1547. return device->get_vf_config(device, vf, port, info);
  1548. }
  1549. EXPORT_SYMBOL(ib_get_vf_config);
  1550. int ib_get_vf_stats(struct ib_device *device, int vf, u8 port,
  1551. struct ifla_vf_stats *stats)
  1552. {
  1553. if (!device->get_vf_stats)
  1554. return -ENOSYS;
  1555. return device->get_vf_stats(device, vf, port, stats);
  1556. }
  1557. EXPORT_SYMBOL(ib_get_vf_stats);
  1558. int ib_set_vf_guid(struct ib_device *device, int vf, u8 port, u64 guid,
  1559. int type)
  1560. {
  1561. if (!device->set_vf_guid)
  1562. return -ENOSYS;
  1563. return device->set_vf_guid(device, vf, port, guid, type);
  1564. }
  1565. EXPORT_SYMBOL(ib_set_vf_guid);
  1566. /**
  1567. * ib_map_mr_sg() - Map the largest prefix of a dma mapped SG list
  1568. * and set it the memory region.
  1569. * @mr: memory region
  1570. * @sg: dma mapped scatterlist
  1571. * @sg_nents: number of entries in sg
  1572. * @sg_offset: offset in bytes into sg
  1573. * @page_size: page vector desired page size
  1574. *
  1575. * Constraints:
  1576. * - The first sg element is allowed to have an offset.
  1577. * - Each sg element must either be aligned to page_size or virtually
  1578. * contiguous to the previous element. In case an sg element has a
  1579. * non-contiguous offset, the mapping prefix will not include it.
  1580. * - The last sg element is allowed to have length less than page_size.
  1581. * - If sg_nents total byte length exceeds the mr max_num_sge * page_size
  1582. * then only max_num_sg entries will be mapped.
  1583. * - If the MR was allocated with type IB_MR_TYPE_SG_GAPS, none of these
  1584. * constraints holds and the page_size argument is ignored.
  1585. *
  1586. * Returns the number of sg elements that were mapped to the memory region.
  1587. *
  1588. * After this completes successfully, the memory region
  1589. * is ready for registration.
  1590. */
  1591. int ib_map_mr_sg(struct ib_mr *mr, struct scatterlist *sg, int sg_nents,
  1592. unsigned int *sg_offset, unsigned int page_size)
  1593. {
  1594. if (unlikely(!mr->device->map_mr_sg))
  1595. return -ENOSYS;
  1596. mr->page_size = page_size;
  1597. return mr->device->map_mr_sg(mr, sg, sg_nents, sg_offset);
  1598. }
  1599. EXPORT_SYMBOL(ib_map_mr_sg);
  1600. /**
  1601. * ib_sg_to_pages() - Convert the largest prefix of a sg list
  1602. * to a page vector
  1603. * @mr: memory region
  1604. * @sgl: dma mapped scatterlist
  1605. * @sg_nents: number of entries in sg
  1606. * @sg_offset_p: IN: start offset in bytes into sg
  1607. * OUT: offset in bytes for element n of the sg of the first
  1608. * byte that has not been processed where n is the return
  1609. * value of this function.
  1610. * @set_page: driver page assignment function pointer
  1611. *
  1612. * Core service helper for drivers to convert the largest
  1613. * prefix of given sg list to a page vector. The sg list
  1614. * prefix converted is the prefix that meet the requirements
  1615. * of ib_map_mr_sg.
  1616. *
  1617. * Returns the number of sg elements that were assigned to
  1618. * a page vector.
  1619. */
  1620. int ib_sg_to_pages(struct ib_mr *mr, struct scatterlist *sgl, int sg_nents,
  1621. unsigned int *sg_offset_p, int (*set_page)(struct ib_mr *, u64))
  1622. {
  1623. struct scatterlist *sg;
  1624. u64 last_end_dma_addr = 0;
  1625. unsigned int sg_offset = sg_offset_p ? *sg_offset_p : 0;
  1626. unsigned int last_page_off = 0;
  1627. u64 page_mask = ~((u64)mr->page_size - 1);
  1628. int i, ret;
  1629. if (unlikely(sg_nents <= 0 || sg_offset > sg_dma_len(&sgl[0])))
  1630. return -EINVAL;
  1631. mr->iova = sg_dma_address(&sgl[0]) + sg_offset;
  1632. mr->length = 0;
  1633. for_each_sg(sgl, sg, sg_nents, i) {
  1634. u64 dma_addr = sg_dma_address(sg) + sg_offset;
  1635. u64 prev_addr = dma_addr;
  1636. unsigned int dma_len = sg_dma_len(sg) - sg_offset;
  1637. u64 end_dma_addr = dma_addr + dma_len;
  1638. u64 page_addr = dma_addr & page_mask;
  1639. /*
  1640. * For the second and later elements, check whether either the
  1641. * end of element i-1 or the start of element i is not aligned
  1642. * on a page boundary.
  1643. */
  1644. if (i && (last_page_off != 0 || page_addr != dma_addr)) {
  1645. /* Stop mapping if there is a gap. */
  1646. if (last_end_dma_addr != dma_addr)
  1647. break;
  1648. /*
  1649. * Coalesce this element with the last. If it is small
  1650. * enough just update mr->length. Otherwise start
  1651. * mapping from the next page.
  1652. */
  1653. goto next_page;
  1654. }
  1655. do {
  1656. ret = set_page(mr, page_addr);
  1657. if (unlikely(ret < 0)) {
  1658. sg_offset = prev_addr - sg_dma_address(sg);
  1659. mr->length += prev_addr - dma_addr;
  1660. if (sg_offset_p)
  1661. *sg_offset_p = sg_offset;
  1662. return i || sg_offset ? i : ret;
  1663. }
  1664. prev_addr = page_addr;
  1665. next_page:
  1666. page_addr += mr->page_size;
  1667. } while (page_addr < end_dma_addr);
  1668. mr->length += dma_len;
  1669. last_end_dma_addr = end_dma_addr;
  1670. last_page_off = end_dma_addr & ~page_mask;
  1671. sg_offset = 0;
  1672. }
  1673. if (sg_offset_p)
  1674. *sg_offset_p = 0;
  1675. return i;
  1676. }
  1677. EXPORT_SYMBOL(ib_sg_to_pages);
  1678. struct ib_drain_cqe {
  1679. struct ib_cqe cqe;
  1680. struct completion done;
  1681. };
  1682. static void ib_drain_qp_done(struct ib_cq *cq, struct ib_wc *wc)
  1683. {
  1684. struct ib_drain_cqe *cqe = container_of(wc->wr_cqe, struct ib_drain_cqe,
  1685. cqe);
  1686. complete(&cqe->done);
  1687. }
  1688. /*
  1689. * Post a WR and block until its completion is reaped for the SQ.
  1690. */
  1691. static void __ib_drain_sq(struct ib_qp *qp)
  1692. {
  1693. struct ib_qp_attr attr = { .qp_state = IB_QPS_ERR };
  1694. struct ib_drain_cqe sdrain;
  1695. struct ib_send_wr swr = {}, *bad_swr;
  1696. int ret;
  1697. if (qp->send_cq->poll_ctx == IB_POLL_DIRECT) {
  1698. WARN_ONCE(qp->send_cq->poll_ctx == IB_POLL_DIRECT,
  1699. "IB_POLL_DIRECT poll_ctx not supported for drain\n");
  1700. return;
  1701. }
  1702. swr.wr_cqe = &sdrain.cqe;
  1703. sdrain.cqe.done = ib_drain_qp_done;
  1704. init_completion(&sdrain.done);
  1705. ret = ib_modify_qp(qp, &attr, IB_QP_STATE);
  1706. if (ret) {
  1707. WARN_ONCE(ret, "failed to drain send queue: %d\n", ret);
  1708. return;
  1709. }
  1710. ret = ib_post_send(qp, &swr, &bad_swr);
  1711. if (ret) {
  1712. WARN_ONCE(ret, "failed to drain send queue: %d\n", ret);
  1713. return;
  1714. }
  1715. wait_for_completion(&sdrain.done);
  1716. }
  1717. /*
  1718. * Post a WR and block until its completion is reaped for the RQ.
  1719. */
  1720. static void __ib_drain_rq(struct ib_qp *qp)
  1721. {
  1722. struct ib_qp_attr attr = { .qp_state = IB_QPS_ERR };
  1723. struct ib_drain_cqe rdrain;
  1724. struct ib_recv_wr rwr = {}, *bad_rwr;
  1725. int ret;
  1726. if (qp->recv_cq->poll_ctx == IB_POLL_DIRECT) {
  1727. WARN_ONCE(qp->recv_cq->poll_ctx == IB_POLL_DIRECT,
  1728. "IB_POLL_DIRECT poll_ctx not supported for drain\n");
  1729. return;
  1730. }
  1731. rwr.wr_cqe = &rdrain.cqe;
  1732. rdrain.cqe.done = ib_drain_qp_done;
  1733. init_completion(&rdrain.done);
  1734. ret = ib_modify_qp(qp, &attr, IB_QP_STATE);
  1735. if (ret) {
  1736. WARN_ONCE(ret, "failed to drain recv queue: %d\n", ret);
  1737. return;
  1738. }
  1739. ret = ib_post_recv(qp, &rwr, &bad_rwr);
  1740. if (ret) {
  1741. WARN_ONCE(ret, "failed to drain recv queue: %d\n", ret);
  1742. return;
  1743. }
  1744. wait_for_completion(&rdrain.done);
  1745. }
  1746. /**
  1747. * ib_drain_sq() - Block until all SQ CQEs have been consumed by the
  1748. * application.
  1749. * @qp: queue pair to drain
  1750. *
  1751. * If the device has a provider-specific drain function, then
  1752. * call that. Otherwise call the generic drain function
  1753. * __ib_drain_sq().
  1754. *
  1755. * The caller must:
  1756. *
  1757. * ensure there is room in the CQ and SQ for the drain work request and
  1758. * completion.
  1759. *
  1760. * allocate the CQ using ib_alloc_cq() and the CQ poll context cannot be
  1761. * IB_POLL_DIRECT.
  1762. *
  1763. * ensure that there are no other contexts that are posting WRs concurrently.
  1764. * Otherwise the drain is not guaranteed.
  1765. */
  1766. void ib_drain_sq(struct ib_qp *qp)
  1767. {
  1768. if (qp->device->drain_sq)
  1769. qp->device->drain_sq(qp);
  1770. else
  1771. __ib_drain_sq(qp);
  1772. }
  1773. EXPORT_SYMBOL(ib_drain_sq);
  1774. /**
  1775. * ib_drain_rq() - Block until all RQ CQEs have been consumed by the
  1776. * application.
  1777. * @qp: queue pair to drain
  1778. *
  1779. * If the device has a provider-specific drain function, then
  1780. * call that. Otherwise call the generic drain function
  1781. * __ib_drain_rq().
  1782. *
  1783. * The caller must:
  1784. *
  1785. * ensure there is room in the CQ and RQ for the drain work request and
  1786. * completion.
  1787. *
  1788. * allocate the CQ using ib_alloc_cq() and the CQ poll context cannot be
  1789. * IB_POLL_DIRECT.
  1790. *
  1791. * ensure that there are no other contexts that are posting WRs concurrently.
  1792. * Otherwise the drain is not guaranteed.
  1793. */
  1794. void ib_drain_rq(struct ib_qp *qp)
  1795. {
  1796. if (qp->device->drain_rq)
  1797. qp->device->drain_rq(qp);
  1798. else
  1799. __ib_drain_rq(qp);
  1800. }
  1801. EXPORT_SYMBOL(ib_drain_rq);
  1802. /**
  1803. * ib_drain_qp() - Block until all CQEs have been consumed by the
  1804. * application on both the RQ and SQ.
  1805. * @qp: queue pair to drain
  1806. *
  1807. * The caller must:
  1808. *
  1809. * ensure there is room in the CQ(s), SQ, and RQ for drain work requests
  1810. * and completions.
  1811. *
  1812. * allocate the CQs using ib_alloc_cq() and the CQ poll context cannot be
  1813. * IB_POLL_DIRECT.
  1814. *
  1815. * ensure that there are no other contexts that are posting WRs concurrently.
  1816. * Otherwise the drain is not guaranteed.
  1817. */
  1818. void ib_drain_qp(struct ib_qp *qp)
  1819. {
  1820. ib_drain_sq(qp);
  1821. if (!qp->srq)
  1822. ib_drain_rq(qp);
  1823. }
  1824. EXPORT_SYMBOL(ib_drain_qp);