ib_srp.c 88 KB

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  1. /*
  2. * Copyright (c) 2005 Cisco Systems. All rights reserved.
  3. *
  4. * This software is available to you under a choice of one of two
  5. * licenses. You may choose to be licensed under the terms of the GNU
  6. * General Public License (GPL) Version 2, available from the file
  7. * COPYING in the main directory of this source tree, or the
  8. * OpenIB.org BSD license below:
  9. *
  10. * Redistribution and use in source and binary forms, with or
  11. * without modification, are permitted provided that the following
  12. * conditions are met:
  13. *
  14. * - Redistributions of source code must retain the above
  15. * copyright notice, this list of conditions and the following
  16. * disclaimer.
  17. *
  18. * - Redistributions in binary form must reproduce the above
  19. * copyright notice, this list of conditions and the following
  20. * disclaimer in the documentation and/or other materials
  21. * provided with the distribution.
  22. *
  23. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
  24. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
  25. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
  26. * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
  27. * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
  28. * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
  29. * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  30. * SOFTWARE.
  31. */
  32. #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
  33. #include <linux/module.h>
  34. #include <linux/init.h>
  35. #include <linux/slab.h>
  36. #include <linux/err.h>
  37. #include <linux/string.h>
  38. #include <linux/parser.h>
  39. #include <linux/random.h>
  40. #include <linux/jiffies.h>
  41. #include <linux/atomic.h>
  42. #include <scsi/scsi.h>
  43. #include <scsi/scsi_device.h>
  44. #include <scsi/scsi_dbg.h>
  45. #include <scsi/scsi_tcq.h>
  46. #include <scsi/srp.h>
  47. #include <scsi/scsi_transport_srp.h>
  48. #include "ib_srp.h"
  49. #define DRV_NAME "ib_srp"
  50. #define PFX DRV_NAME ": "
  51. #define DRV_VERSION "1.0"
  52. #define DRV_RELDATE "July 1, 2013"
  53. MODULE_AUTHOR("Roland Dreier");
  54. MODULE_DESCRIPTION("InfiniBand SCSI RDMA Protocol initiator "
  55. "v" DRV_VERSION " (" DRV_RELDATE ")");
  56. MODULE_LICENSE("Dual BSD/GPL");
  57. static unsigned int srp_sg_tablesize;
  58. static unsigned int cmd_sg_entries;
  59. static unsigned int indirect_sg_entries;
  60. static bool allow_ext_sg;
  61. static bool prefer_fr;
  62. static bool register_always;
  63. static int topspin_workarounds = 1;
  64. module_param(srp_sg_tablesize, uint, 0444);
  65. MODULE_PARM_DESC(srp_sg_tablesize, "Deprecated name for cmd_sg_entries");
  66. module_param(cmd_sg_entries, uint, 0444);
  67. MODULE_PARM_DESC(cmd_sg_entries,
  68. "Default number of gather/scatter entries in the SRP command (default is 12, max 255)");
  69. module_param(indirect_sg_entries, uint, 0444);
  70. MODULE_PARM_DESC(indirect_sg_entries,
  71. "Default max number of gather/scatter entries (default is 12, max is " __stringify(SCSI_MAX_SG_CHAIN_SEGMENTS) ")");
  72. module_param(allow_ext_sg, bool, 0444);
  73. MODULE_PARM_DESC(allow_ext_sg,
  74. "Default behavior when there are more than cmd_sg_entries S/G entries after mapping; fails the request when false (default false)");
  75. module_param(topspin_workarounds, int, 0444);
  76. MODULE_PARM_DESC(topspin_workarounds,
  77. "Enable workarounds for Topspin/Cisco SRP target bugs if != 0");
  78. module_param(prefer_fr, bool, 0444);
  79. MODULE_PARM_DESC(prefer_fr,
  80. "Whether to use fast registration if both FMR and fast registration are supported");
  81. module_param(register_always, bool, 0444);
  82. MODULE_PARM_DESC(register_always,
  83. "Use memory registration even for contiguous memory regions");
  84. static struct kernel_param_ops srp_tmo_ops;
  85. static int srp_reconnect_delay = 10;
  86. module_param_cb(reconnect_delay, &srp_tmo_ops, &srp_reconnect_delay,
  87. S_IRUGO | S_IWUSR);
  88. MODULE_PARM_DESC(reconnect_delay, "Time between successive reconnect attempts");
  89. static int srp_fast_io_fail_tmo = 15;
  90. module_param_cb(fast_io_fail_tmo, &srp_tmo_ops, &srp_fast_io_fail_tmo,
  91. S_IRUGO | S_IWUSR);
  92. MODULE_PARM_DESC(fast_io_fail_tmo,
  93. "Number of seconds between the observation of a transport"
  94. " layer error and failing all I/O. \"off\" means that this"
  95. " functionality is disabled.");
  96. static int srp_dev_loss_tmo = 600;
  97. module_param_cb(dev_loss_tmo, &srp_tmo_ops, &srp_dev_loss_tmo,
  98. S_IRUGO | S_IWUSR);
  99. MODULE_PARM_DESC(dev_loss_tmo,
  100. "Maximum number of seconds that the SRP transport should"
  101. " insulate transport layer errors. After this time has been"
  102. " exceeded the SCSI host is removed. Should be"
  103. " between 1 and " __stringify(SCSI_DEVICE_BLOCK_MAX_TIMEOUT)
  104. " if fast_io_fail_tmo has not been set. \"off\" means that"
  105. " this functionality is disabled.");
  106. static void srp_add_one(struct ib_device *device);
  107. static void srp_remove_one(struct ib_device *device);
  108. static void srp_recv_completion(struct ib_cq *cq, void *target_ptr);
  109. static void srp_send_completion(struct ib_cq *cq, void *target_ptr);
  110. static int srp_cm_handler(struct ib_cm_id *cm_id, struct ib_cm_event *event);
  111. static struct scsi_transport_template *ib_srp_transport_template;
  112. static struct ib_client srp_client = {
  113. .name = "srp",
  114. .add = srp_add_one,
  115. .remove = srp_remove_one
  116. };
  117. static struct ib_sa_client srp_sa_client;
  118. static int srp_tmo_get(char *buffer, const struct kernel_param *kp)
  119. {
  120. int tmo = *(int *)kp->arg;
  121. if (tmo >= 0)
  122. return sprintf(buffer, "%d", tmo);
  123. else
  124. return sprintf(buffer, "off");
  125. }
  126. static int srp_tmo_set(const char *val, const struct kernel_param *kp)
  127. {
  128. int tmo, res;
  129. if (strncmp(val, "off", 3) != 0) {
  130. res = kstrtoint(val, 0, &tmo);
  131. if (res)
  132. goto out;
  133. } else {
  134. tmo = -1;
  135. }
  136. if (kp->arg == &srp_reconnect_delay)
  137. res = srp_tmo_valid(tmo, srp_fast_io_fail_tmo,
  138. srp_dev_loss_tmo);
  139. else if (kp->arg == &srp_fast_io_fail_tmo)
  140. res = srp_tmo_valid(srp_reconnect_delay, tmo, srp_dev_loss_tmo);
  141. else
  142. res = srp_tmo_valid(srp_reconnect_delay, srp_fast_io_fail_tmo,
  143. tmo);
  144. if (res)
  145. goto out;
  146. *(int *)kp->arg = tmo;
  147. out:
  148. return res;
  149. }
  150. static struct kernel_param_ops srp_tmo_ops = {
  151. .get = srp_tmo_get,
  152. .set = srp_tmo_set,
  153. };
  154. static inline struct srp_target_port *host_to_target(struct Scsi_Host *host)
  155. {
  156. return (struct srp_target_port *) host->hostdata;
  157. }
  158. static const char *srp_target_info(struct Scsi_Host *host)
  159. {
  160. return host_to_target(host)->target_name;
  161. }
  162. static int srp_target_is_topspin(struct srp_target_port *target)
  163. {
  164. static const u8 topspin_oui[3] = { 0x00, 0x05, 0xad };
  165. static const u8 cisco_oui[3] = { 0x00, 0x1b, 0x0d };
  166. return topspin_workarounds &&
  167. (!memcmp(&target->ioc_guid, topspin_oui, sizeof topspin_oui) ||
  168. !memcmp(&target->ioc_guid, cisco_oui, sizeof cisco_oui));
  169. }
  170. static struct srp_iu *srp_alloc_iu(struct srp_host *host, size_t size,
  171. gfp_t gfp_mask,
  172. enum dma_data_direction direction)
  173. {
  174. struct srp_iu *iu;
  175. iu = kmalloc(sizeof *iu, gfp_mask);
  176. if (!iu)
  177. goto out;
  178. iu->buf = kzalloc(size, gfp_mask);
  179. if (!iu->buf)
  180. goto out_free_iu;
  181. iu->dma = ib_dma_map_single(host->srp_dev->dev, iu->buf, size,
  182. direction);
  183. if (ib_dma_mapping_error(host->srp_dev->dev, iu->dma))
  184. goto out_free_buf;
  185. iu->size = size;
  186. iu->direction = direction;
  187. return iu;
  188. out_free_buf:
  189. kfree(iu->buf);
  190. out_free_iu:
  191. kfree(iu);
  192. out:
  193. return NULL;
  194. }
  195. static void srp_free_iu(struct srp_host *host, struct srp_iu *iu)
  196. {
  197. if (!iu)
  198. return;
  199. ib_dma_unmap_single(host->srp_dev->dev, iu->dma, iu->size,
  200. iu->direction);
  201. kfree(iu->buf);
  202. kfree(iu);
  203. }
  204. static void srp_qp_event(struct ib_event *event, void *context)
  205. {
  206. pr_debug("QP event %d\n", event->event);
  207. }
  208. static int srp_init_qp(struct srp_target_port *target,
  209. struct ib_qp *qp)
  210. {
  211. struct ib_qp_attr *attr;
  212. int ret;
  213. attr = kmalloc(sizeof *attr, GFP_KERNEL);
  214. if (!attr)
  215. return -ENOMEM;
  216. ret = ib_find_pkey(target->srp_host->srp_dev->dev,
  217. target->srp_host->port,
  218. be16_to_cpu(target->path.pkey),
  219. &attr->pkey_index);
  220. if (ret)
  221. goto out;
  222. attr->qp_state = IB_QPS_INIT;
  223. attr->qp_access_flags = (IB_ACCESS_REMOTE_READ |
  224. IB_ACCESS_REMOTE_WRITE);
  225. attr->port_num = target->srp_host->port;
  226. ret = ib_modify_qp(qp, attr,
  227. IB_QP_STATE |
  228. IB_QP_PKEY_INDEX |
  229. IB_QP_ACCESS_FLAGS |
  230. IB_QP_PORT);
  231. out:
  232. kfree(attr);
  233. return ret;
  234. }
  235. static int srp_new_cm_id(struct srp_target_port *target)
  236. {
  237. struct ib_cm_id *new_cm_id;
  238. new_cm_id = ib_create_cm_id(target->srp_host->srp_dev->dev,
  239. srp_cm_handler, target);
  240. if (IS_ERR(new_cm_id))
  241. return PTR_ERR(new_cm_id);
  242. if (target->cm_id)
  243. ib_destroy_cm_id(target->cm_id);
  244. target->cm_id = new_cm_id;
  245. return 0;
  246. }
  247. static struct ib_fmr_pool *srp_alloc_fmr_pool(struct srp_target_port *target)
  248. {
  249. struct srp_device *dev = target->srp_host->srp_dev;
  250. struct ib_fmr_pool_param fmr_param;
  251. memset(&fmr_param, 0, sizeof(fmr_param));
  252. fmr_param.pool_size = target->scsi_host->can_queue;
  253. fmr_param.dirty_watermark = fmr_param.pool_size / 4;
  254. fmr_param.cache = 1;
  255. fmr_param.max_pages_per_fmr = dev->max_pages_per_mr;
  256. fmr_param.page_shift = ilog2(dev->mr_page_size);
  257. fmr_param.access = (IB_ACCESS_LOCAL_WRITE |
  258. IB_ACCESS_REMOTE_WRITE |
  259. IB_ACCESS_REMOTE_READ);
  260. return ib_create_fmr_pool(dev->pd, &fmr_param);
  261. }
  262. /**
  263. * srp_destroy_fr_pool() - free the resources owned by a pool
  264. * @pool: Fast registration pool to be destroyed.
  265. */
  266. static void srp_destroy_fr_pool(struct srp_fr_pool *pool)
  267. {
  268. int i;
  269. struct srp_fr_desc *d;
  270. if (!pool)
  271. return;
  272. for (i = 0, d = &pool->desc[0]; i < pool->size; i++, d++) {
  273. if (d->frpl)
  274. ib_free_fast_reg_page_list(d->frpl);
  275. if (d->mr)
  276. ib_dereg_mr(d->mr);
  277. }
  278. kfree(pool);
  279. }
  280. /**
  281. * srp_create_fr_pool() - allocate and initialize a pool for fast registration
  282. * @device: IB device to allocate fast registration descriptors for.
  283. * @pd: Protection domain associated with the FR descriptors.
  284. * @pool_size: Number of descriptors to allocate.
  285. * @max_page_list_len: Maximum fast registration work request page list length.
  286. */
  287. static struct srp_fr_pool *srp_create_fr_pool(struct ib_device *device,
  288. struct ib_pd *pd, int pool_size,
  289. int max_page_list_len)
  290. {
  291. struct srp_fr_pool *pool;
  292. struct srp_fr_desc *d;
  293. struct ib_mr *mr;
  294. struct ib_fast_reg_page_list *frpl;
  295. int i, ret = -EINVAL;
  296. if (pool_size <= 0)
  297. goto err;
  298. ret = -ENOMEM;
  299. pool = kzalloc(sizeof(struct srp_fr_pool) +
  300. pool_size * sizeof(struct srp_fr_desc), GFP_KERNEL);
  301. if (!pool)
  302. goto err;
  303. pool->size = pool_size;
  304. pool->max_page_list_len = max_page_list_len;
  305. spin_lock_init(&pool->lock);
  306. INIT_LIST_HEAD(&pool->free_list);
  307. for (i = 0, d = &pool->desc[0]; i < pool->size; i++, d++) {
  308. mr = ib_alloc_fast_reg_mr(pd, max_page_list_len);
  309. if (IS_ERR(mr)) {
  310. ret = PTR_ERR(mr);
  311. goto destroy_pool;
  312. }
  313. d->mr = mr;
  314. frpl = ib_alloc_fast_reg_page_list(device, max_page_list_len);
  315. if (IS_ERR(frpl)) {
  316. ret = PTR_ERR(frpl);
  317. goto destroy_pool;
  318. }
  319. d->frpl = frpl;
  320. list_add_tail(&d->entry, &pool->free_list);
  321. }
  322. out:
  323. return pool;
  324. destroy_pool:
  325. srp_destroy_fr_pool(pool);
  326. err:
  327. pool = ERR_PTR(ret);
  328. goto out;
  329. }
  330. /**
  331. * srp_fr_pool_get() - obtain a descriptor suitable for fast registration
  332. * @pool: Pool to obtain descriptor from.
  333. */
  334. static struct srp_fr_desc *srp_fr_pool_get(struct srp_fr_pool *pool)
  335. {
  336. struct srp_fr_desc *d = NULL;
  337. unsigned long flags;
  338. spin_lock_irqsave(&pool->lock, flags);
  339. if (!list_empty(&pool->free_list)) {
  340. d = list_first_entry(&pool->free_list, typeof(*d), entry);
  341. list_del(&d->entry);
  342. }
  343. spin_unlock_irqrestore(&pool->lock, flags);
  344. return d;
  345. }
  346. /**
  347. * srp_fr_pool_put() - put an FR descriptor back in the free list
  348. * @pool: Pool the descriptor was allocated from.
  349. * @desc: Pointer to an array of fast registration descriptor pointers.
  350. * @n: Number of descriptors to put back.
  351. *
  352. * Note: The caller must already have queued an invalidation request for
  353. * desc->mr->rkey before calling this function.
  354. */
  355. static void srp_fr_pool_put(struct srp_fr_pool *pool, struct srp_fr_desc **desc,
  356. int n)
  357. {
  358. unsigned long flags;
  359. int i;
  360. spin_lock_irqsave(&pool->lock, flags);
  361. for (i = 0; i < n; i++)
  362. list_add(&desc[i]->entry, &pool->free_list);
  363. spin_unlock_irqrestore(&pool->lock, flags);
  364. }
  365. static struct srp_fr_pool *srp_alloc_fr_pool(struct srp_target_port *target)
  366. {
  367. struct srp_device *dev = target->srp_host->srp_dev;
  368. return srp_create_fr_pool(dev->dev, dev->pd,
  369. target->scsi_host->can_queue,
  370. dev->max_pages_per_mr);
  371. }
  372. static int srp_create_target_ib(struct srp_target_port *target)
  373. {
  374. struct srp_device *dev = target->srp_host->srp_dev;
  375. struct ib_qp_init_attr *init_attr;
  376. struct ib_cq *recv_cq, *send_cq;
  377. struct ib_qp *qp;
  378. struct ib_fmr_pool *fmr_pool = NULL;
  379. struct srp_fr_pool *fr_pool = NULL;
  380. const int m = 1 + dev->use_fast_reg;
  381. int ret;
  382. init_attr = kzalloc(sizeof *init_attr, GFP_KERNEL);
  383. if (!init_attr)
  384. return -ENOMEM;
  385. recv_cq = ib_create_cq(dev->dev, srp_recv_completion, NULL, target,
  386. target->queue_size, target->comp_vector);
  387. if (IS_ERR(recv_cq)) {
  388. ret = PTR_ERR(recv_cq);
  389. goto err;
  390. }
  391. send_cq = ib_create_cq(dev->dev, srp_send_completion, NULL, target,
  392. m * target->queue_size, target->comp_vector);
  393. if (IS_ERR(send_cq)) {
  394. ret = PTR_ERR(send_cq);
  395. goto err_recv_cq;
  396. }
  397. ib_req_notify_cq(recv_cq, IB_CQ_NEXT_COMP);
  398. init_attr->event_handler = srp_qp_event;
  399. init_attr->cap.max_send_wr = m * target->queue_size;
  400. init_attr->cap.max_recv_wr = target->queue_size;
  401. init_attr->cap.max_recv_sge = 1;
  402. init_attr->cap.max_send_sge = 1;
  403. init_attr->sq_sig_type = IB_SIGNAL_REQ_WR;
  404. init_attr->qp_type = IB_QPT_RC;
  405. init_attr->send_cq = send_cq;
  406. init_attr->recv_cq = recv_cq;
  407. qp = ib_create_qp(dev->pd, init_attr);
  408. if (IS_ERR(qp)) {
  409. ret = PTR_ERR(qp);
  410. goto err_send_cq;
  411. }
  412. ret = srp_init_qp(target, qp);
  413. if (ret)
  414. goto err_qp;
  415. if (dev->use_fast_reg && dev->has_fr) {
  416. fr_pool = srp_alloc_fr_pool(target);
  417. if (IS_ERR(fr_pool)) {
  418. ret = PTR_ERR(fr_pool);
  419. shost_printk(KERN_WARNING, target->scsi_host, PFX
  420. "FR pool allocation failed (%d)\n", ret);
  421. goto err_qp;
  422. }
  423. if (target->fr_pool)
  424. srp_destroy_fr_pool(target->fr_pool);
  425. target->fr_pool = fr_pool;
  426. } else if (!dev->use_fast_reg && dev->has_fmr) {
  427. fmr_pool = srp_alloc_fmr_pool(target);
  428. if (IS_ERR(fmr_pool)) {
  429. ret = PTR_ERR(fmr_pool);
  430. shost_printk(KERN_WARNING, target->scsi_host, PFX
  431. "FMR pool allocation failed (%d)\n", ret);
  432. goto err_qp;
  433. }
  434. if (target->fmr_pool)
  435. ib_destroy_fmr_pool(target->fmr_pool);
  436. target->fmr_pool = fmr_pool;
  437. }
  438. if (target->qp)
  439. ib_destroy_qp(target->qp);
  440. if (target->recv_cq)
  441. ib_destroy_cq(target->recv_cq);
  442. if (target->send_cq)
  443. ib_destroy_cq(target->send_cq);
  444. target->qp = qp;
  445. target->recv_cq = recv_cq;
  446. target->send_cq = send_cq;
  447. kfree(init_attr);
  448. return 0;
  449. err_qp:
  450. ib_destroy_qp(qp);
  451. err_send_cq:
  452. ib_destroy_cq(send_cq);
  453. err_recv_cq:
  454. ib_destroy_cq(recv_cq);
  455. err:
  456. kfree(init_attr);
  457. return ret;
  458. }
  459. /*
  460. * Note: this function may be called without srp_alloc_iu_bufs() having been
  461. * invoked. Hence the target->[rt]x_ring checks.
  462. */
  463. static void srp_free_target_ib(struct srp_target_port *target)
  464. {
  465. struct srp_device *dev = target->srp_host->srp_dev;
  466. int i;
  467. if (dev->use_fast_reg) {
  468. if (target->fr_pool)
  469. srp_destroy_fr_pool(target->fr_pool);
  470. } else {
  471. if (target->fmr_pool)
  472. ib_destroy_fmr_pool(target->fmr_pool);
  473. }
  474. ib_destroy_qp(target->qp);
  475. ib_destroy_cq(target->send_cq);
  476. ib_destroy_cq(target->recv_cq);
  477. target->qp = NULL;
  478. target->send_cq = target->recv_cq = NULL;
  479. if (target->rx_ring) {
  480. for (i = 0; i < target->queue_size; ++i)
  481. srp_free_iu(target->srp_host, target->rx_ring[i]);
  482. kfree(target->rx_ring);
  483. target->rx_ring = NULL;
  484. }
  485. if (target->tx_ring) {
  486. for (i = 0; i < target->queue_size; ++i)
  487. srp_free_iu(target->srp_host, target->tx_ring[i]);
  488. kfree(target->tx_ring);
  489. target->tx_ring = NULL;
  490. }
  491. }
  492. static void srp_path_rec_completion(int status,
  493. struct ib_sa_path_rec *pathrec,
  494. void *target_ptr)
  495. {
  496. struct srp_target_port *target = target_ptr;
  497. target->status = status;
  498. if (status)
  499. shost_printk(KERN_ERR, target->scsi_host,
  500. PFX "Got failed path rec status %d\n", status);
  501. else
  502. target->path = *pathrec;
  503. complete(&target->done);
  504. }
  505. static int srp_lookup_path(struct srp_target_port *target)
  506. {
  507. int ret;
  508. target->path.numb_path = 1;
  509. init_completion(&target->done);
  510. target->path_query_id = ib_sa_path_rec_get(&srp_sa_client,
  511. target->srp_host->srp_dev->dev,
  512. target->srp_host->port,
  513. &target->path,
  514. IB_SA_PATH_REC_SERVICE_ID |
  515. IB_SA_PATH_REC_DGID |
  516. IB_SA_PATH_REC_SGID |
  517. IB_SA_PATH_REC_NUMB_PATH |
  518. IB_SA_PATH_REC_PKEY,
  519. SRP_PATH_REC_TIMEOUT_MS,
  520. GFP_KERNEL,
  521. srp_path_rec_completion,
  522. target, &target->path_query);
  523. if (target->path_query_id < 0)
  524. return target->path_query_id;
  525. ret = wait_for_completion_interruptible(&target->done);
  526. if (ret < 0)
  527. return ret;
  528. if (target->status < 0)
  529. shost_printk(KERN_WARNING, target->scsi_host,
  530. PFX "Path record query failed\n");
  531. return target->status;
  532. }
  533. static int srp_send_req(struct srp_target_port *target)
  534. {
  535. struct {
  536. struct ib_cm_req_param param;
  537. struct srp_login_req priv;
  538. } *req = NULL;
  539. int status;
  540. req = kzalloc(sizeof *req, GFP_KERNEL);
  541. if (!req)
  542. return -ENOMEM;
  543. req->param.primary_path = &target->path;
  544. req->param.alternate_path = NULL;
  545. req->param.service_id = target->service_id;
  546. req->param.qp_num = target->qp->qp_num;
  547. req->param.qp_type = target->qp->qp_type;
  548. req->param.private_data = &req->priv;
  549. req->param.private_data_len = sizeof req->priv;
  550. req->param.flow_control = 1;
  551. get_random_bytes(&req->param.starting_psn, 4);
  552. req->param.starting_psn &= 0xffffff;
  553. /*
  554. * Pick some arbitrary defaults here; we could make these
  555. * module parameters if anyone cared about setting them.
  556. */
  557. req->param.responder_resources = 4;
  558. req->param.remote_cm_response_timeout = 20;
  559. req->param.local_cm_response_timeout = 20;
  560. req->param.retry_count = target->tl_retry_count;
  561. req->param.rnr_retry_count = 7;
  562. req->param.max_cm_retries = 15;
  563. req->priv.opcode = SRP_LOGIN_REQ;
  564. req->priv.tag = 0;
  565. req->priv.req_it_iu_len = cpu_to_be32(target->max_iu_len);
  566. req->priv.req_buf_fmt = cpu_to_be16(SRP_BUF_FORMAT_DIRECT |
  567. SRP_BUF_FORMAT_INDIRECT);
  568. /*
  569. * In the published SRP specification (draft rev. 16a), the
  570. * port identifier format is 8 bytes of ID extension followed
  571. * by 8 bytes of GUID. Older drafts put the two halves in the
  572. * opposite order, so that the GUID comes first.
  573. *
  574. * Targets conforming to these obsolete drafts can be
  575. * recognized by the I/O Class they report.
  576. */
  577. if (target->io_class == SRP_REV10_IB_IO_CLASS) {
  578. memcpy(req->priv.initiator_port_id,
  579. &target->path.sgid.global.interface_id, 8);
  580. memcpy(req->priv.initiator_port_id + 8,
  581. &target->initiator_ext, 8);
  582. memcpy(req->priv.target_port_id, &target->ioc_guid, 8);
  583. memcpy(req->priv.target_port_id + 8, &target->id_ext, 8);
  584. } else {
  585. memcpy(req->priv.initiator_port_id,
  586. &target->initiator_ext, 8);
  587. memcpy(req->priv.initiator_port_id + 8,
  588. &target->path.sgid.global.interface_id, 8);
  589. memcpy(req->priv.target_port_id, &target->id_ext, 8);
  590. memcpy(req->priv.target_port_id + 8, &target->ioc_guid, 8);
  591. }
  592. /*
  593. * Topspin/Cisco SRP targets will reject our login unless we
  594. * zero out the first 8 bytes of our initiator port ID and set
  595. * the second 8 bytes to the local node GUID.
  596. */
  597. if (srp_target_is_topspin(target)) {
  598. shost_printk(KERN_DEBUG, target->scsi_host,
  599. PFX "Topspin/Cisco initiator port ID workaround "
  600. "activated for target GUID %016llx\n",
  601. (unsigned long long) be64_to_cpu(target->ioc_guid));
  602. memset(req->priv.initiator_port_id, 0, 8);
  603. memcpy(req->priv.initiator_port_id + 8,
  604. &target->srp_host->srp_dev->dev->node_guid, 8);
  605. }
  606. status = ib_send_cm_req(target->cm_id, &req->param);
  607. kfree(req);
  608. return status;
  609. }
  610. static bool srp_queue_remove_work(struct srp_target_port *target)
  611. {
  612. bool changed = false;
  613. spin_lock_irq(&target->lock);
  614. if (target->state != SRP_TARGET_REMOVED) {
  615. target->state = SRP_TARGET_REMOVED;
  616. changed = true;
  617. }
  618. spin_unlock_irq(&target->lock);
  619. if (changed)
  620. queue_work(system_long_wq, &target->remove_work);
  621. return changed;
  622. }
  623. static bool srp_change_conn_state(struct srp_target_port *target,
  624. bool connected)
  625. {
  626. bool changed = false;
  627. spin_lock_irq(&target->lock);
  628. if (target->connected != connected) {
  629. target->connected = connected;
  630. changed = true;
  631. }
  632. spin_unlock_irq(&target->lock);
  633. return changed;
  634. }
  635. static void srp_disconnect_target(struct srp_target_port *target)
  636. {
  637. if (srp_change_conn_state(target, false)) {
  638. /* XXX should send SRP_I_LOGOUT request */
  639. if (ib_send_cm_dreq(target->cm_id, NULL, 0)) {
  640. shost_printk(KERN_DEBUG, target->scsi_host,
  641. PFX "Sending CM DREQ failed\n");
  642. }
  643. }
  644. }
  645. static void srp_free_req_data(struct srp_target_port *target)
  646. {
  647. struct srp_device *dev = target->srp_host->srp_dev;
  648. struct ib_device *ibdev = dev->dev;
  649. struct srp_request *req;
  650. int i;
  651. if (!target->req_ring)
  652. return;
  653. for (i = 0; i < target->req_ring_size; ++i) {
  654. req = &target->req_ring[i];
  655. if (dev->use_fast_reg)
  656. kfree(req->fr_list);
  657. else
  658. kfree(req->fmr_list);
  659. kfree(req->map_page);
  660. if (req->indirect_dma_addr) {
  661. ib_dma_unmap_single(ibdev, req->indirect_dma_addr,
  662. target->indirect_size,
  663. DMA_TO_DEVICE);
  664. }
  665. kfree(req->indirect_desc);
  666. }
  667. kfree(target->req_ring);
  668. target->req_ring = NULL;
  669. }
  670. static int srp_alloc_req_data(struct srp_target_port *target)
  671. {
  672. struct srp_device *srp_dev = target->srp_host->srp_dev;
  673. struct ib_device *ibdev = srp_dev->dev;
  674. struct srp_request *req;
  675. void *mr_list;
  676. dma_addr_t dma_addr;
  677. int i, ret = -ENOMEM;
  678. INIT_LIST_HEAD(&target->free_reqs);
  679. target->req_ring = kzalloc(target->req_ring_size *
  680. sizeof(*target->req_ring), GFP_KERNEL);
  681. if (!target->req_ring)
  682. goto out;
  683. for (i = 0; i < target->req_ring_size; ++i) {
  684. req = &target->req_ring[i];
  685. mr_list = kmalloc(target->cmd_sg_cnt * sizeof(void *),
  686. GFP_KERNEL);
  687. if (!mr_list)
  688. goto out;
  689. if (srp_dev->use_fast_reg)
  690. req->fr_list = mr_list;
  691. else
  692. req->fmr_list = mr_list;
  693. req->map_page = kmalloc(srp_dev->max_pages_per_mr *
  694. sizeof(void *), GFP_KERNEL);
  695. if (!req->map_page)
  696. goto out;
  697. req->indirect_desc = kmalloc(target->indirect_size, GFP_KERNEL);
  698. if (!req->indirect_desc)
  699. goto out;
  700. dma_addr = ib_dma_map_single(ibdev, req->indirect_desc,
  701. target->indirect_size,
  702. DMA_TO_DEVICE);
  703. if (ib_dma_mapping_error(ibdev, dma_addr))
  704. goto out;
  705. req->indirect_dma_addr = dma_addr;
  706. req->index = i;
  707. list_add_tail(&req->list, &target->free_reqs);
  708. }
  709. ret = 0;
  710. out:
  711. return ret;
  712. }
  713. /**
  714. * srp_del_scsi_host_attr() - Remove attributes defined in the host template.
  715. * @shost: SCSI host whose attributes to remove from sysfs.
  716. *
  717. * Note: Any attributes defined in the host template and that did not exist
  718. * before invocation of this function will be ignored.
  719. */
  720. static void srp_del_scsi_host_attr(struct Scsi_Host *shost)
  721. {
  722. struct device_attribute **attr;
  723. for (attr = shost->hostt->shost_attrs; attr && *attr; ++attr)
  724. device_remove_file(&shost->shost_dev, *attr);
  725. }
  726. static void srp_remove_target(struct srp_target_port *target)
  727. {
  728. WARN_ON_ONCE(target->state != SRP_TARGET_REMOVED);
  729. srp_del_scsi_host_attr(target->scsi_host);
  730. srp_rport_get(target->rport);
  731. srp_remove_host(target->scsi_host);
  732. scsi_remove_host(target->scsi_host);
  733. srp_stop_rport_timers(target->rport);
  734. srp_disconnect_target(target);
  735. ib_destroy_cm_id(target->cm_id);
  736. srp_free_target_ib(target);
  737. cancel_work_sync(&target->tl_err_work);
  738. srp_rport_put(target->rport);
  739. srp_free_req_data(target);
  740. spin_lock(&target->srp_host->target_lock);
  741. list_del(&target->list);
  742. spin_unlock(&target->srp_host->target_lock);
  743. scsi_host_put(target->scsi_host);
  744. }
  745. static void srp_remove_work(struct work_struct *work)
  746. {
  747. struct srp_target_port *target =
  748. container_of(work, struct srp_target_port, remove_work);
  749. WARN_ON_ONCE(target->state != SRP_TARGET_REMOVED);
  750. srp_remove_target(target);
  751. }
  752. static void srp_rport_delete(struct srp_rport *rport)
  753. {
  754. struct srp_target_port *target = rport->lld_data;
  755. srp_queue_remove_work(target);
  756. }
  757. static int srp_connect_target(struct srp_target_port *target)
  758. {
  759. int retries = 3;
  760. int ret;
  761. WARN_ON_ONCE(target->connected);
  762. target->qp_in_error = false;
  763. ret = srp_lookup_path(target);
  764. if (ret)
  765. return ret;
  766. while (1) {
  767. init_completion(&target->done);
  768. ret = srp_send_req(target);
  769. if (ret)
  770. return ret;
  771. ret = wait_for_completion_interruptible(&target->done);
  772. if (ret < 0)
  773. return ret;
  774. /*
  775. * The CM event handling code will set status to
  776. * SRP_PORT_REDIRECT if we get a port redirect REJ
  777. * back, or SRP_DLID_REDIRECT if we get a lid/qp
  778. * redirect REJ back.
  779. */
  780. switch (target->status) {
  781. case 0:
  782. srp_change_conn_state(target, true);
  783. return 0;
  784. case SRP_PORT_REDIRECT:
  785. ret = srp_lookup_path(target);
  786. if (ret)
  787. return ret;
  788. break;
  789. case SRP_DLID_REDIRECT:
  790. break;
  791. case SRP_STALE_CONN:
  792. /* Our current CM id was stale, and is now in timewait.
  793. * Try to reconnect with a new one.
  794. */
  795. if (!retries-- || srp_new_cm_id(target)) {
  796. shost_printk(KERN_ERR, target->scsi_host, PFX
  797. "giving up on stale connection\n");
  798. target->status = -ECONNRESET;
  799. return target->status;
  800. }
  801. shost_printk(KERN_ERR, target->scsi_host, PFX
  802. "retrying stale connection\n");
  803. break;
  804. default:
  805. return target->status;
  806. }
  807. }
  808. }
  809. static int srp_inv_rkey(struct srp_target_port *target, u32 rkey)
  810. {
  811. struct ib_send_wr *bad_wr;
  812. struct ib_send_wr wr = {
  813. .opcode = IB_WR_LOCAL_INV,
  814. .wr_id = LOCAL_INV_WR_ID_MASK,
  815. .next = NULL,
  816. .num_sge = 0,
  817. .send_flags = 0,
  818. .ex.invalidate_rkey = rkey,
  819. };
  820. return ib_post_send(target->qp, &wr, &bad_wr);
  821. }
  822. static void srp_unmap_data(struct scsi_cmnd *scmnd,
  823. struct srp_target_port *target,
  824. struct srp_request *req)
  825. {
  826. struct srp_device *dev = target->srp_host->srp_dev;
  827. struct ib_device *ibdev = dev->dev;
  828. int i, res;
  829. if (!scsi_sglist(scmnd) ||
  830. (scmnd->sc_data_direction != DMA_TO_DEVICE &&
  831. scmnd->sc_data_direction != DMA_FROM_DEVICE))
  832. return;
  833. if (dev->use_fast_reg) {
  834. struct srp_fr_desc **pfr;
  835. for (i = req->nmdesc, pfr = req->fr_list; i > 0; i--, pfr++) {
  836. res = srp_inv_rkey(target, (*pfr)->mr->rkey);
  837. if (res < 0) {
  838. shost_printk(KERN_ERR, target->scsi_host, PFX
  839. "Queueing INV WR for rkey %#x failed (%d)\n",
  840. (*pfr)->mr->rkey, res);
  841. queue_work(system_long_wq,
  842. &target->tl_err_work);
  843. }
  844. }
  845. if (req->nmdesc)
  846. srp_fr_pool_put(target->fr_pool, req->fr_list,
  847. req->nmdesc);
  848. } else {
  849. struct ib_pool_fmr **pfmr;
  850. for (i = req->nmdesc, pfmr = req->fmr_list; i > 0; i--, pfmr++)
  851. ib_fmr_pool_unmap(*pfmr);
  852. }
  853. ib_dma_unmap_sg(ibdev, scsi_sglist(scmnd), scsi_sg_count(scmnd),
  854. scmnd->sc_data_direction);
  855. }
  856. /**
  857. * srp_claim_req - Take ownership of the scmnd associated with a request.
  858. * @target: SRP target port.
  859. * @req: SRP request.
  860. * @sdev: If not NULL, only take ownership for this SCSI device.
  861. * @scmnd: If NULL, take ownership of @req->scmnd. If not NULL, only take
  862. * ownership of @req->scmnd if it equals @scmnd.
  863. *
  864. * Return value:
  865. * Either NULL or a pointer to the SCSI command the caller became owner of.
  866. */
  867. static struct scsi_cmnd *srp_claim_req(struct srp_target_port *target,
  868. struct srp_request *req,
  869. struct scsi_device *sdev,
  870. struct scsi_cmnd *scmnd)
  871. {
  872. unsigned long flags;
  873. spin_lock_irqsave(&target->lock, flags);
  874. if (req->scmnd &&
  875. (!sdev || req->scmnd->device == sdev) &&
  876. (!scmnd || req->scmnd == scmnd)) {
  877. scmnd = req->scmnd;
  878. req->scmnd = NULL;
  879. } else {
  880. scmnd = NULL;
  881. }
  882. spin_unlock_irqrestore(&target->lock, flags);
  883. return scmnd;
  884. }
  885. /**
  886. * srp_free_req() - Unmap data and add request to the free request list.
  887. * @target: SRP target port.
  888. * @req: Request to be freed.
  889. * @scmnd: SCSI command associated with @req.
  890. * @req_lim_delta: Amount to be added to @target->req_lim.
  891. */
  892. static void srp_free_req(struct srp_target_port *target,
  893. struct srp_request *req, struct scsi_cmnd *scmnd,
  894. s32 req_lim_delta)
  895. {
  896. unsigned long flags;
  897. srp_unmap_data(scmnd, target, req);
  898. spin_lock_irqsave(&target->lock, flags);
  899. target->req_lim += req_lim_delta;
  900. list_add_tail(&req->list, &target->free_reqs);
  901. spin_unlock_irqrestore(&target->lock, flags);
  902. }
  903. static void srp_finish_req(struct srp_target_port *target,
  904. struct srp_request *req, struct scsi_device *sdev,
  905. int result)
  906. {
  907. struct scsi_cmnd *scmnd = srp_claim_req(target, req, sdev, NULL);
  908. if (scmnd) {
  909. srp_free_req(target, req, scmnd, 0);
  910. scmnd->result = result;
  911. scmnd->scsi_done(scmnd);
  912. }
  913. }
  914. static void srp_terminate_io(struct srp_rport *rport)
  915. {
  916. struct srp_target_port *target = rport->lld_data;
  917. struct Scsi_Host *shost = target->scsi_host;
  918. struct scsi_device *sdev;
  919. int i;
  920. /*
  921. * Invoking srp_terminate_io() while srp_queuecommand() is running
  922. * is not safe. Hence the warning statement below.
  923. */
  924. shost_for_each_device(sdev, shost)
  925. WARN_ON_ONCE(sdev->request_queue->request_fn_active);
  926. for (i = 0; i < target->req_ring_size; ++i) {
  927. struct srp_request *req = &target->req_ring[i];
  928. srp_finish_req(target, req, NULL, DID_TRANSPORT_FAILFAST << 16);
  929. }
  930. }
  931. /*
  932. * It is up to the caller to ensure that srp_rport_reconnect() calls are
  933. * serialized and that no concurrent srp_queuecommand(), srp_abort(),
  934. * srp_reset_device() or srp_reset_host() calls will occur while this function
  935. * is in progress. One way to realize that is not to call this function
  936. * directly but to call srp_reconnect_rport() instead since that last function
  937. * serializes calls of this function via rport->mutex and also blocks
  938. * srp_queuecommand() calls before invoking this function.
  939. */
  940. static int srp_rport_reconnect(struct srp_rport *rport)
  941. {
  942. struct srp_target_port *target = rport->lld_data;
  943. int i, ret;
  944. srp_disconnect_target(target);
  945. /*
  946. * Now get a new local CM ID so that we avoid confusing the target in
  947. * case things are really fouled up. Doing so also ensures that all CM
  948. * callbacks will have finished before a new QP is allocated.
  949. */
  950. ret = srp_new_cm_id(target);
  951. for (i = 0; i < target->req_ring_size; ++i) {
  952. struct srp_request *req = &target->req_ring[i];
  953. srp_finish_req(target, req, NULL, DID_RESET << 16);
  954. }
  955. /*
  956. * Whether or not creating a new CM ID succeeded, create a new
  957. * QP. This guarantees that all callback functions for the old QP have
  958. * finished before any send requests are posted on the new QP.
  959. */
  960. ret += srp_create_target_ib(target);
  961. INIT_LIST_HEAD(&target->free_tx);
  962. for (i = 0; i < target->queue_size; ++i)
  963. list_add(&target->tx_ring[i]->list, &target->free_tx);
  964. if (ret == 0)
  965. ret = srp_connect_target(target);
  966. if (ret == 0)
  967. shost_printk(KERN_INFO, target->scsi_host,
  968. PFX "reconnect succeeded\n");
  969. return ret;
  970. }
  971. static void srp_map_desc(struct srp_map_state *state, dma_addr_t dma_addr,
  972. unsigned int dma_len, u32 rkey)
  973. {
  974. struct srp_direct_buf *desc = state->desc;
  975. desc->va = cpu_to_be64(dma_addr);
  976. desc->key = cpu_to_be32(rkey);
  977. desc->len = cpu_to_be32(dma_len);
  978. state->total_len += dma_len;
  979. state->desc++;
  980. state->ndesc++;
  981. }
  982. static int srp_map_finish_fmr(struct srp_map_state *state,
  983. struct srp_target_port *target)
  984. {
  985. struct ib_pool_fmr *fmr;
  986. u64 io_addr = 0;
  987. fmr = ib_fmr_pool_map_phys(target->fmr_pool, state->pages,
  988. state->npages, io_addr);
  989. if (IS_ERR(fmr))
  990. return PTR_ERR(fmr);
  991. *state->next_fmr++ = fmr;
  992. state->nmdesc++;
  993. srp_map_desc(state, 0, state->dma_len, fmr->fmr->rkey);
  994. return 0;
  995. }
  996. static int srp_map_finish_fr(struct srp_map_state *state,
  997. struct srp_target_port *target)
  998. {
  999. struct srp_device *dev = target->srp_host->srp_dev;
  1000. struct ib_send_wr *bad_wr;
  1001. struct ib_send_wr wr;
  1002. struct srp_fr_desc *desc;
  1003. u32 rkey;
  1004. desc = srp_fr_pool_get(target->fr_pool);
  1005. if (!desc)
  1006. return -ENOMEM;
  1007. rkey = ib_inc_rkey(desc->mr->rkey);
  1008. ib_update_fast_reg_key(desc->mr, rkey);
  1009. memcpy(desc->frpl->page_list, state->pages,
  1010. sizeof(state->pages[0]) * state->npages);
  1011. memset(&wr, 0, sizeof(wr));
  1012. wr.opcode = IB_WR_FAST_REG_MR;
  1013. wr.wr_id = FAST_REG_WR_ID_MASK;
  1014. wr.wr.fast_reg.iova_start = state->base_dma_addr;
  1015. wr.wr.fast_reg.page_list = desc->frpl;
  1016. wr.wr.fast_reg.page_list_len = state->npages;
  1017. wr.wr.fast_reg.page_shift = ilog2(dev->mr_page_size);
  1018. wr.wr.fast_reg.length = state->dma_len;
  1019. wr.wr.fast_reg.access_flags = (IB_ACCESS_LOCAL_WRITE |
  1020. IB_ACCESS_REMOTE_READ |
  1021. IB_ACCESS_REMOTE_WRITE);
  1022. wr.wr.fast_reg.rkey = desc->mr->lkey;
  1023. *state->next_fr++ = desc;
  1024. state->nmdesc++;
  1025. srp_map_desc(state, state->base_dma_addr, state->dma_len,
  1026. desc->mr->rkey);
  1027. return ib_post_send(target->qp, &wr, &bad_wr);
  1028. }
  1029. static int srp_finish_mapping(struct srp_map_state *state,
  1030. struct srp_target_port *target)
  1031. {
  1032. int ret = 0;
  1033. if (state->npages == 0)
  1034. return 0;
  1035. if (state->npages == 1 && !register_always)
  1036. srp_map_desc(state, state->base_dma_addr, state->dma_len,
  1037. target->rkey);
  1038. else
  1039. ret = target->srp_host->srp_dev->use_fast_reg ?
  1040. srp_map_finish_fr(state, target) :
  1041. srp_map_finish_fmr(state, target);
  1042. if (ret == 0) {
  1043. state->npages = 0;
  1044. state->dma_len = 0;
  1045. }
  1046. return ret;
  1047. }
  1048. static void srp_map_update_start(struct srp_map_state *state,
  1049. struct scatterlist *sg, int sg_index,
  1050. dma_addr_t dma_addr)
  1051. {
  1052. state->unmapped_sg = sg;
  1053. state->unmapped_index = sg_index;
  1054. state->unmapped_addr = dma_addr;
  1055. }
  1056. static int srp_map_sg_entry(struct srp_map_state *state,
  1057. struct srp_target_port *target,
  1058. struct scatterlist *sg, int sg_index,
  1059. bool use_mr)
  1060. {
  1061. struct srp_device *dev = target->srp_host->srp_dev;
  1062. struct ib_device *ibdev = dev->dev;
  1063. dma_addr_t dma_addr = ib_sg_dma_address(ibdev, sg);
  1064. unsigned int dma_len = ib_sg_dma_len(ibdev, sg);
  1065. unsigned int len;
  1066. int ret;
  1067. if (!dma_len)
  1068. return 0;
  1069. if (!use_mr) {
  1070. /*
  1071. * Once we're in direct map mode for a request, we don't
  1072. * go back to FMR or FR mode, so no need to update anything
  1073. * other than the descriptor.
  1074. */
  1075. srp_map_desc(state, dma_addr, dma_len, target->rkey);
  1076. return 0;
  1077. }
  1078. /*
  1079. * Since not all RDMA HW drivers support non-zero page offsets for
  1080. * FMR, if we start at an offset into a page, don't merge into the
  1081. * current FMR mapping. Finish it out, and use the kernel's MR for
  1082. * this sg entry.
  1083. */
  1084. if ((!dev->use_fast_reg && dma_addr & ~dev->mr_page_mask) ||
  1085. dma_len > dev->mr_max_size) {
  1086. ret = srp_finish_mapping(state, target);
  1087. if (ret)
  1088. return ret;
  1089. srp_map_desc(state, dma_addr, dma_len, target->rkey);
  1090. srp_map_update_start(state, NULL, 0, 0);
  1091. return 0;
  1092. }
  1093. /*
  1094. * If this is the first sg that will be mapped via FMR or via FR, save
  1095. * our position. We need to know the first unmapped entry, its index,
  1096. * and the first unmapped address within that entry to be able to
  1097. * restart mapping after an error.
  1098. */
  1099. if (!state->unmapped_sg)
  1100. srp_map_update_start(state, sg, sg_index, dma_addr);
  1101. while (dma_len) {
  1102. unsigned offset = dma_addr & ~dev->mr_page_mask;
  1103. if (state->npages == dev->max_pages_per_mr || offset != 0) {
  1104. ret = srp_finish_mapping(state, target);
  1105. if (ret)
  1106. return ret;
  1107. srp_map_update_start(state, sg, sg_index, dma_addr);
  1108. }
  1109. len = min_t(unsigned int, dma_len, dev->mr_page_size - offset);
  1110. if (!state->npages)
  1111. state->base_dma_addr = dma_addr;
  1112. state->pages[state->npages++] = dma_addr & dev->mr_page_mask;
  1113. state->dma_len += len;
  1114. dma_addr += len;
  1115. dma_len -= len;
  1116. }
  1117. /*
  1118. * If the last entry of the MR wasn't a full page, then we need to
  1119. * close it out and start a new one -- we can only merge at page
  1120. * boundries.
  1121. */
  1122. ret = 0;
  1123. if (len != dev->mr_page_size) {
  1124. ret = srp_finish_mapping(state, target);
  1125. if (!ret)
  1126. srp_map_update_start(state, NULL, 0, 0);
  1127. }
  1128. return ret;
  1129. }
  1130. static int srp_map_sg(struct srp_map_state *state,
  1131. struct srp_target_port *target, struct srp_request *req,
  1132. struct scatterlist *scat, int count)
  1133. {
  1134. struct srp_device *dev = target->srp_host->srp_dev;
  1135. struct ib_device *ibdev = dev->dev;
  1136. struct scatterlist *sg;
  1137. int i;
  1138. bool use_mr;
  1139. state->desc = req->indirect_desc;
  1140. state->pages = req->map_page;
  1141. if (dev->use_fast_reg) {
  1142. state->next_fr = req->fr_list;
  1143. use_mr = !!target->fr_pool;
  1144. } else {
  1145. state->next_fmr = req->fmr_list;
  1146. use_mr = !!target->fmr_pool;
  1147. }
  1148. for_each_sg(scat, sg, count, i) {
  1149. if (srp_map_sg_entry(state, target, sg, i, use_mr)) {
  1150. /*
  1151. * Memory registration failed, so backtrack to the
  1152. * first unmapped entry and continue on without using
  1153. * memory registration.
  1154. */
  1155. dma_addr_t dma_addr;
  1156. unsigned int dma_len;
  1157. backtrack:
  1158. sg = state->unmapped_sg;
  1159. i = state->unmapped_index;
  1160. dma_addr = ib_sg_dma_address(ibdev, sg);
  1161. dma_len = ib_sg_dma_len(ibdev, sg);
  1162. dma_len -= (state->unmapped_addr - dma_addr);
  1163. dma_addr = state->unmapped_addr;
  1164. use_mr = false;
  1165. srp_map_desc(state, dma_addr, dma_len, target->rkey);
  1166. }
  1167. }
  1168. if (use_mr && srp_finish_mapping(state, target))
  1169. goto backtrack;
  1170. req->nmdesc = state->nmdesc;
  1171. return 0;
  1172. }
  1173. static int srp_map_data(struct scsi_cmnd *scmnd, struct srp_target_port *target,
  1174. struct srp_request *req)
  1175. {
  1176. struct scatterlist *scat;
  1177. struct srp_cmd *cmd = req->cmd->buf;
  1178. int len, nents, count;
  1179. struct srp_device *dev;
  1180. struct ib_device *ibdev;
  1181. struct srp_map_state state;
  1182. struct srp_indirect_buf *indirect_hdr;
  1183. u32 table_len;
  1184. u8 fmt;
  1185. if (!scsi_sglist(scmnd) || scmnd->sc_data_direction == DMA_NONE)
  1186. return sizeof (struct srp_cmd);
  1187. if (scmnd->sc_data_direction != DMA_FROM_DEVICE &&
  1188. scmnd->sc_data_direction != DMA_TO_DEVICE) {
  1189. shost_printk(KERN_WARNING, target->scsi_host,
  1190. PFX "Unhandled data direction %d\n",
  1191. scmnd->sc_data_direction);
  1192. return -EINVAL;
  1193. }
  1194. nents = scsi_sg_count(scmnd);
  1195. scat = scsi_sglist(scmnd);
  1196. dev = target->srp_host->srp_dev;
  1197. ibdev = dev->dev;
  1198. count = ib_dma_map_sg(ibdev, scat, nents, scmnd->sc_data_direction);
  1199. if (unlikely(count == 0))
  1200. return -EIO;
  1201. fmt = SRP_DATA_DESC_DIRECT;
  1202. len = sizeof (struct srp_cmd) + sizeof (struct srp_direct_buf);
  1203. if (count == 1 && !register_always) {
  1204. /*
  1205. * The midlayer only generated a single gather/scatter
  1206. * entry, or DMA mapping coalesced everything to a
  1207. * single entry. So a direct descriptor along with
  1208. * the DMA MR suffices.
  1209. */
  1210. struct srp_direct_buf *buf = (void *) cmd->add_data;
  1211. buf->va = cpu_to_be64(ib_sg_dma_address(ibdev, scat));
  1212. buf->key = cpu_to_be32(target->rkey);
  1213. buf->len = cpu_to_be32(ib_sg_dma_len(ibdev, scat));
  1214. req->nmdesc = 0;
  1215. goto map_complete;
  1216. }
  1217. /*
  1218. * We have more than one scatter/gather entry, so build our indirect
  1219. * descriptor table, trying to merge as many entries as we can.
  1220. */
  1221. indirect_hdr = (void *) cmd->add_data;
  1222. ib_dma_sync_single_for_cpu(ibdev, req->indirect_dma_addr,
  1223. target->indirect_size, DMA_TO_DEVICE);
  1224. memset(&state, 0, sizeof(state));
  1225. srp_map_sg(&state, target, req, scat, count);
  1226. /* We've mapped the request, now pull as much of the indirect
  1227. * descriptor table as we can into the command buffer. If this
  1228. * target is not using an external indirect table, we are
  1229. * guaranteed to fit into the command, as the SCSI layer won't
  1230. * give us more S/G entries than we allow.
  1231. */
  1232. if (state.ndesc == 1) {
  1233. /*
  1234. * Memory registration collapsed the sg-list into one entry,
  1235. * so use a direct descriptor.
  1236. */
  1237. struct srp_direct_buf *buf = (void *) cmd->add_data;
  1238. *buf = req->indirect_desc[0];
  1239. goto map_complete;
  1240. }
  1241. if (unlikely(target->cmd_sg_cnt < state.ndesc &&
  1242. !target->allow_ext_sg)) {
  1243. shost_printk(KERN_ERR, target->scsi_host,
  1244. "Could not fit S/G list into SRP_CMD\n");
  1245. return -EIO;
  1246. }
  1247. count = min(state.ndesc, target->cmd_sg_cnt);
  1248. table_len = state.ndesc * sizeof (struct srp_direct_buf);
  1249. fmt = SRP_DATA_DESC_INDIRECT;
  1250. len = sizeof(struct srp_cmd) + sizeof (struct srp_indirect_buf);
  1251. len += count * sizeof (struct srp_direct_buf);
  1252. memcpy(indirect_hdr->desc_list, req->indirect_desc,
  1253. count * sizeof (struct srp_direct_buf));
  1254. indirect_hdr->table_desc.va = cpu_to_be64(req->indirect_dma_addr);
  1255. indirect_hdr->table_desc.key = cpu_to_be32(target->rkey);
  1256. indirect_hdr->table_desc.len = cpu_to_be32(table_len);
  1257. indirect_hdr->len = cpu_to_be32(state.total_len);
  1258. if (scmnd->sc_data_direction == DMA_TO_DEVICE)
  1259. cmd->data_out_desc_cnt = count;
  1260. else
  1261. cmd->data_in_desc_cnt = count;
  1262. ib_dma_sync_single_for_device(ibdev, req->indirect_dma_addr, table_len,
  1263. DMA_TO_DEVICE);
  1264. map_complete:
  1265. if (scmnd->sc_data_direction == DMA_TO_DEVICE)
  1266. cmd->buf_fmt = fmt << 4;
  1267. else
  1268. cmd->buf_fmt = fmt;
  1269. return len;
  1270. }
  1271. /*
  1272. * Return an IU and possible credit to the free pool
  1273. */
  1274. static void srp_put_tx_iu(struct srp_target_port *target, struct srp_iu *iu,
  1275. enum srp_iu_type iu_type)
  1276. {
  1277. unsigned long flags;
  1278. spin_lock_irqsave(&target->lock, flags);
  1279. list_add(&iu->list, &target->free_tx);
  1280. if (iu_type != SRP_IU_RSP)
  1281. ++target->req_lim;
  1282. spin_unlock_irqrestore(&target->lock, flags);
  1283. }
  1284. /*
  1285. * Must be called with target->lock held to protect req_lim and free_tx.
  1286. * If IU is not sent, it must be returned using srp_put_tx_iu().
  1287. *
  1288. * Note:
  1289. * An upper limit for the number of allocated information units for each
  1290. * request type is:
  1291. * - SRP_IU_CMD: SRP_CMD_SQ_SIZE, since the SCSI mid-layer never queues
  1292. * more than Scsi_Host.can_queue requests.
  1293. * - SRP_IU_TSK_MGMT: SRP_TSK_MGMT_SQ_SIZE.
  1294. * - SRP_IU_RSP: 1, since a conforming SRP target never sends more than
  1295. * one unanswered SRP request to an initiator.
  1296. */
  1297. static struct srp_iu *__srp_get_tx_iu(struct srp_target_port *target,
  1298. enum srp_iu_type iu_type)
  1299. {
  1300. s32 rsv = (iu_type == SRP_IU_TSK_MGMT) ? 0 : SRP_TSK_MGMT_SQ_SIZE;
  1301. struct srp_iu *iu;
  1302. srp_send_completion(target->send_cq, target);
  1303. if (list_empty(&target->free_tx))
  1304. return NULL;
  1305. /* Initiator responses to target requests do not consume credits */
  1306. if (iu_type != SRP_IU_RSP) {
  1307. if (target->req_lim <= rsv) {
  1308. ++target->zero_req_lim;
  1309. return NULL;
  1310. }
  1311. --target->req_lim;
  1312. }
  1313. iu = list_first_entry(&target->free_tx, struct srp_iu, list);
  1314. list_del(&iu->list);
  1315. return iu;
  1316. }
  1317. static int srp_post_send(struct srp_target_port *target,
  1318. struct srp_iu *iu, int len)
  1319. {
  1320. struct ib_sge list;
  1321. struct ib_send_wr wr, *bad_wr;
  1322. list.addr = iu->dma;
  1323. list.length = len;
  1324. list.lkey = target->lkey;
  1325. wr.next = NULL;
  1326. wr.wr_id = (uintptr_t) iu;
  1327. wr.sg_list = &list;
  1328. wr.num_sge = 1;
  1329. wr.opcode = IB_WR_SEND;
  1330. wr.send_flags = IB_SEND_SIGNALED;
  1331. return ib_post_send(target->qp, &wr, &bad_wr);
  1332. }
  1333. static int srp_post_recv(struct srp_target_port *target, struct srp_iu *iu)
  1334. {
  1335. struct ib_recv_wr wr, *bad_wr;
  1336. struct ib_sge list;
  1337. list.addr = iu->dma;
  1338. list.length = iu->size;
  1339. list.lkey = target->lkey;
  1340. wr.next = NULL;
  1341. wr.wr_id = (uintptr_t) iu;
  1342. wr.sg_list = &list;
  1343. wr.num_sge = 1;
  1344. return ib_post_recv(target->qp, &wr, &bad_wr);
  1345. }
  1346. static void srp_process_rsp(struct srp_target_port *target, struct srp_rsp *rsp)
  1347. {
  1348. struct srp_request *req;
  1349. struct scsi_cmnd *scmnd;
  1350. unsigned long flags;
  1351. if (unlikely(rsp->tag & SRP_TAG_TSK_MGMT)) {
  1352. spin_lock_irqsave(&target->lock, flags);
  1353. target->req_lim += be32_to_cpu(rsp->req_lim_delta);
  1354. spin_unlock_irqrestore(&target->lock, flags);
  1355. target->tsk_mgmt_status = -1;
  1356. if (be32_to_cpu(rsp->resp_data_len) >= 4)
  1357. target->tsk_mgmt_status = rsp->data[3];
  1358. complete(&target->tsk_mgmt_done);
  1359. } else {
  1360. req = &target->req_ring[rsp->tag];
  1361. scmnd = srp_claim_req(target, req, NULL, NULL);
  1362. if (!scmnd) {
  1363. shost_printk(KERN_ERR, target->scsi_host,
  1364. "Null scmnd for RSP w/tag %016llx\n",
  1365. (unsigned long long) rsp->tag);
  1366. spin_lock_irqsave(&target->lock, flags);
  1367. target->req_lim += be32_to_cpu(rsp->req_lim_delta);
  1368. spin_unlock_irqrestore(&target->lock, flags);
  1369. return;
  1370. }
  1371. scmnd->result = rsp->status;
  1372. if (rsp->flags & SRP_RSP_FLAG_SNSVALID) {
  1373. memcpy(scmnd->sense_buffer, rsp->data +
  1374. be32_to_cpu(rsp->resp_data_len),
  1375. min_t(int, be32_to_cpu(rsp->sense_data_len),
  1376. SCSI_SENSE_BUFFERSIZE));
  1377. }
  1378. if (rsp->flags & (SRP_RSP_FLAG_DOOVER | SRP_RSP_FLAG_DOUNDER))
  1379. scsi_set_resid(scmnd, be32_to_cpu(rsp->data_out_res_cnt));
  1380. else if (rsp->flags & (SRP_RSP_FLAG_DIOVER | SRP_RSP_FLAG_DIUNDER))
  1381. scsi_set_resid(scmnd, be32_to_cpu(rsp->data_in_res_cnt));
  1382. srp_free_req(target, req, scmnd,
  1383. be32_to_cpu(rsp->req_lim_delta));
  1384. scmnd->host_scribble = NULL;
  1385. scmnd->scsi_done(scmnd);
  1386. }
  1387. }
  1388. static int srp_response_common(struct srp_target_port *target, s32 req_delta,
  1389. void *rsp, int len)
  1390. {
  1391. struct ib_device *dev = target->srp_host->srp_dev->dev;
  1392. unsigned long flags;
  1393. struct srp_iu *iu;
  1394. int err;
  1395. spin_lock_irqsave(&target->lock, flags);
  1396. target->req_lim += req_delta;
  1397. iu = __srp_get_tx_iu(target, SRP_IU_RSP);
  1398. spin_unlock_irqrestore(&target->lock, flags);
  1399. if (!iu) {
  1400. shost_printk(KERN_ERR, target->scsi_host, PFX
  1401. "no IU available to send response\n");
  1402. return 1;
  1403. }
  1404. ib_dma_sync_single_for_cpu(dev, iu->dma, len, DMA_TO_DEVICE);
  1405. memcpy(iu->buf, rsp, len);
  1406. ib_dma_sync_single_for_device(dev, iu->dma, len, DMA_TO_DEVICE);
  1407. err = srp_post_send(target, iu, len);
  1408. if (err) {
  1409. shost_printk(KERN_ERR, target->scsi_host, PFX
  1410. "unable to post response: %d\n", err);
  1411. srp_put_tx_iu(target, iu, SRP_IU_RSP);
  1412. }
  1413. return err;
  1414. }
  1415. static void srp_process_cred_req(struct srp_target_port *target,
  1416. struct srp_cred_req *req)
  1417. {
  1418. struct srp_cred_rsp rsp = {
  1419. .opcode = SRP_CRED_RSP,
  1420. .tag = req->tag,
  1421. };
  1422. s32 delta = be32_to_cpu(req->req_lim_delta);
  1423. if (srp_response_common(target, delta, &rsp, sizeof rsp))
  1424. shost_printk(KERN_ERR, target->scsi_host, PFX
  1425. "problems processing SRP_CRED_REQ\n");
  1426. }
  1427. static void srp_process_aer_req(struct srp_target_port *target,
  1428. struct srp_aer_req *req)
  1429. {
  1430. struct srp_aer_rsp rsp = {
  1431. .opcode = SRP_AER_RSP,
  1432. .tag = req->tag,
  1433. };
  1434. s32 delta = be32_to_cpu(req->req_lim_delta);
  1435. shost_printk(KERN_ERR, target->scsi_host, PFX
  1436. "ignoring AER for LUN %llu\n", be64_to_cpu(req->lun));
  1437. if (srp_response_common(target, delta, &rsp, sizeof rsp))
  1438. shost_printk(KERN_ERR, target->scsi_host, PFX
  1439. "problems processing SRP_AER_REQ\n");
  1440. }
  1441. static void srp_handle_recv(struct srp_target_port *target, struct ib_wc *wc)
  1442. {
  1443. struct ib_device *dev = target->srp_host->srp_dev->dev;
  1444. struct srp_iu *iu = (struct srp_iu *) (uintptr_t) wc->wr_id;
  1445. int res;
  1446. u8 opcode;
  1447. ib_dma_sync_single_for_cpu(dev, iu->dma, target->max_ti_iu_len,
  1448. DMA_FROM_DEVICE);
  1449. opcode = *(u8 *) iu->buf;
  1450. if (0) {
  1451. shost_printk(KERN_ERR, target->scsi_host,
  1452. PFX "recv completion, opcode 0x%02x\n", opcode);
  1453. print_hex_dump(KERN_ERR, "", DUMP_PREFIX_OFFSET, 8, 1,
  1454. iu->buf, wc->byte_len, true);
  1455. }
  1456. switch (opcode) {
  1457. case SRP_RSP:
  1458. srp_process_rsp(target, iu->buf);
  1459. break;
  1460. case SRP_CRED_REQ:
  1461. srp_process_cred_req(target, iu->buf);
  1462. break;
  1463. case SRP_AER_REQ:
  1464. srp_process_aer_req(target, iu->buf);
  1465. break;
  1466. case SRP_T_LOGOUT:
  1467. /* XXX Handle target logout */
  1468. shost_printk(KERN_WARNING, target->scsi_host,
  1469. PFX "Got target logout request\n");
  1470. break;
  1471. default:
  1472. shost_printk(KERN_WARNING, target->scsi_host,
  1473. PFX "Unhandled SRP opcode 0x%02x\n", opcode);
  1474. break;
  1475. }
  1476. ib_dma_sync_single_for_device(dev, iu->dma, target->max_ti_iu_len,
  1477. DMA_FROM_DEVICE);
  1478. res = srp_post_recv(target, iu);
  1479. if (res != 0)
  1480. shost_printk(KERN_ERR, target->scsi_host,
  1481. PFX "Recv failed with error code %d\n", res);
  1482. }
  1483. /**
  1484. * srp_tl_err_work() - handle a transport layer error
  1485. * @work: Work structure embedded in an SRP target port.
  1486. *
  1487. * Note: This function may get invoked before the rport has been created,
  1488. * hence the target->rport test.
  1489. */
  1490. static void srp_tl_err_work(struct work_struct *work)
  1491. {
  1492. struct srp_target_port *target;
  1493. target = container_of(work, struct srp_target_port, tl_err_work);
  1494. if (target->rport)
  1495. srp_start_tl_fail_timers(target->rport);
  1496. }
  1497. static void srp_handle_qp_err(u64 wr_id, enum ib_wc_status wc_status,
  1498. bool send_err, struct srp_target_port *target)
  1499. {
  1500. if (target->connected && !target->qp_in_error) {
  1501. if (wr_id & LOCAL_INV_WR_ID_MASK) {
  1502. shost_printk(KERN_ERR, target->scsi_host, PFX
  1503. "LOCAL_INV failed with status %d\n",
  1504. wc_status);
  1505. } else if (wr_id & FAST_REG_WR_ID_MASK) {
  1506. shost_printk(KERN_ERR, target->scsi_host, PFX
  1507. "FAST_REG_MR failed status %d\n",
  1508. wc_status);
  1509. } else {
  1510. shost_printk(KERN_ERR, target->scsi_host,
  1511. PFX "failed %s status %d for iu %p\n",
  1512. send_err ? "send" : "receive",
  1513. wc_status, (void *)(uintptr_t)wr_id);
  1514. }
  1515. queue_work(system_long_wq, &target->tl_err_work);
  1516. }
  1517. target->qp_in_error = true;
  1518. }
  1519. static void srp_recv_completion(struct ib_cq *cq, void *target_ptr)
  1520. {
  1521. struct srp_target_port *target = target_ptr;
  1522. struct ib_wc wc;
  1523. ib_req_notify_cq(cq, IB_CQ_NEXT_COMP);
  1524. while (ib_poll_cq(cq, 1, &wc) > 0) {
  1525. if (likely(wc.status == IB_WC_SUCCESS)) {
  1526. srp_handle_recv(target, &wc);
  1527. } else {
  1528. srp_handle_qp_err(wc.wr_id, wc.status, false, target);
  1529. }
  1530. }
  1531. }
  1532. static void srp_send_completion(struct ib_cq *cq, void *target_ptr)
  1533. {
  1534. struct srp_target_port *target = target_ptr;
  1535. struct ib_wc wc;
  1536. struct srp_iu *iu;
  1537. while (ib_poll_cq(cq, 1, &wc) > 0) {
  1538. if (likely(wc.status == IB_WC_SUCCESS)) {
  1539. iu = (struct srp_iu *) (uintptr_t) wc.wr_id;
  1540. list_add(&iu->list, &target->free_tx);
  1541. } else {
  1542. srp_handle_qp_err(wc.wr_id, wc.status, true, target);
  1543. }
  1544. }
  1545. }
  1546. static int srp_queuecommand(struct Scsi_Host *shost, struct scsi_cmnd *scmnd)
  1547. {
  1548. struct srp_target_port *target = host_to_target(shost);
  1549. struct srp_rport *rport = target->rport;
  1550. struct srp_request *req;
  1551. struct srp_iu *iu;
  1552. struct srp_cmd *cmd;
  1553. struct ib_device *dev;
  1554. unsigned long flags;
  1555. int len, ret;
  1556. const bool in_scsi_eh = !in_interrupt() && current == shost->ehandler;
  1557. /*
  1558. * The SCSI EH thread is the only context from which srp_queuecommand()
  1559. * can get invoked for blocked devices (SDEV_BLOCK /
  1560. * SDEV_CREATED_BLOCK). Avoid racing with srp_reconnect_rport() by
  1561. * locking the rport mutex if invoked from inside the SCSI EH.
  1562. */
  1563. if (in_scsi_eh)
  1564. mutex_lock(&rport->mutex);
  1565. scmnd->result = srp_chkready(target->rport);
  1566. if (unlikely(scmnd->result))
  1567. goto err;
  1568. spin_lock_irqsave(&target->lock, flags);
  1569. iu = __srp_get_tx_iu(target, SRP_IU_CMD);
  1570. if (!iu)
  1571. goto err_unlock;
  1572. req = list_first_entry(&target->free_reqs, struct srp_request, list);
  1573. list_del(&req->list);
  1574. spin_unlock_irqrestore(&target->lock, flags);
  1575. dev = target->srp_host->srp_dev->dev;
  1576. ib_dma_sync_single_for_cpu(dev, iu->dma, target->max_iu_len,
  1577. DMA_TO_DEVICE);
  1578. scmnd->host_scribble = (void *) req;
  1579. cmd = iu->buf;
  1580. memset(cmd, 0, sizeof *cmd);
  1581. cmd->opcode = SRP_CMD;
  1582. cmd->lun = cpu_to_be64((u64) scmnd->device->lun << 48);
  1583. cmd->tag = req->index;
  1584. memcpy(cmd->cdb, scmnd->cmnd, scmnd->cmd_len);
  1585. req->scmnd = scmnd;
  1586. req->cmd = iu;
  1587. len = srp_map_data(scmnd, target, req);
  1588. if (len < 0) {
  1589. shost_printk(KERN_ERR, target->scsi_host,
  1590. PFX "Failed to map data (%d)\n", len);
  1591. /*
  1592. * If we ran out of memory descriptors (-ENOMEM) because an
  1593. * application is queuing many requests with more than
  1594. * max_pages_per_mr sg-list elements, tell the SCSI mid-layer
  1595. * to reduce queue depth temporarily.
  1596. */
  1597. scmnd->result = len == -ENOMEM ?
  1598. DID_OK << 16 | QUEUE_FULL << 1 : DID_ERROR << 16;
  1599. goto err_iu;
  1600. }
  1601. ib_dma_sync_single_for_device(dev, iu->dma, target->max_iu_len,
  1602. DMA_TO_DEVICE);
  1603. if (srp_post_send(target, iu, len)) {
  1604. shost_printk(KERN_ERR, target->scsi_host, PFX "Send failed\n");
  1605. goto err_unmap;
  1606. }
  1607. ret = 0;
  1608. unlock_rport:
  1609. if (in_scsi_eh)
  1610. mutex_unlock(&rport->mutex);
  1611. return ret;
  1612. err_unmap:
  1613. srp_unmap_data(scmnd, target, req);
  1614. err_iu:
  1615. srp_put_tx_iu(target, iu, SRP_IU_CMD);
  1616. /*
  1617. * Avoid that the loops that iterate over the request ring can
  1618. * encounter a dangling SCSI command pointer.
  1619. */
  1620. req->scmnd = NULL;
  1621. spin_lock_irqsave(&target->lock, flags);
  1622. list_add(&req->list, &target->free_reqs);
  1623. err_unlock:
  1624. spin_unlock_irqrestore(&target->lock, flags);
  1625. err:
  1626. if (scmnd->result) {
  1627. scmnd->scsi_done(scmnd);
  1628. ret = 0;
  1629. } else {
  1630. ret = SCSI_MLQUEUE_HOST_BUSY;
  1631. }
  1632. goto unlock_rport;
  1633. }
  1634. /*
  1635. * Note: the resources allocated in this function are freed in
  1636. * srp_free_target_ib().
  1637. */
  1638. static int srp_alloc_iu_bufs(struct srp_target_port *target)
  1639. {
  1640. int i;
  1641. target->rx_ring = kzalloc(target->queue_size * sizeof(*target->rx_ring),
  1642. GFP_KERNEL);
  1643. if (!target->rx_ring)
  1644. goto err_no_ring;
  1645. target->tx_ring = kzalloc(target->queue_size * sizeof(*target->tx_ring),
  1646. GFP_KERNEL);
  1647. if (!target->tx_ring)
  1648. goto err_no_ring;
  1649. for (i = 0; i < target->queue_size; ++i) {
  1650. target->rx_ring[i] = srp_alloc_iu(target->srp_host,
  1651. target->max_ti_iu_len,
  1652. GFP_KERNEL, DMA_FROM_DEVICE);
  1653. if (!target->rx_ring[i])
  1654. goto err;
  1655. }
  1656. for (i = 0; i < target->queue_size; ++i) {
  1657. target->tx_ring[i] = srp_alloc_iu(target->srp_host,
  1658. target->max_iu_len,
  1659. GFP_KERNEL, DMA_TO_DEVICE);
  1660. if (!target->tx_ring[i])
  1661. goto err;
  1662. list_add(&target->tx_ring[i]->list, &target->free_tx);
  1663. }
  1664. return 0;
  1665. err:
  1666. for (i = 0; i < target->queue_size; ++i) {
  1667. srp_free_iu(target->srp_host, target->rx_ring[i]);
  1668. srp_free_iu(target->srp_host, target->tx_ring[i]);
  1669. }
  1670. err_no_ring:
  1671. kfree(target->tx_ring);
  1672. target->tx_ring = NULL;
  1673. kfree(target->rx_ring);
  1674. target->rx_ring = NULL;
  1675. return -ENOMEM;
  1676. }
  1677. static uint32_t srp_compute_rq_tmo(struct ib_qp_attr *qp_attr, int attr_mask)
  1678. {
  1679. uint64_t T_tr_ns, max_compl_time_ms;
  1680. uint32_t rq_tmo_jiffies;
  1681. /*
  1682. * According to section 11.2.4.2 in the IBTA spec (Modify Queue Pair,
  1683. * table 91), both the QP timeout and the retry count have to be set
  1684. * for RC QP's during the RTR to RTS transition.
  1685. */
  1686. WARN_ON_ONCE((attr_mask & (IB_QP_TIMEOUT | IB_QP_RETRY_CNT)) !=
  1687. (IB_QP_TIMEOUT | IB_QP_RETRY_CNT));
  1688. /*
  1689. * Set target->rq_tmo_jiffies to one second more than the largest time
  1690. * it can take before an error completion is generated. See also
  1691. * C9-140..142 in the IBTA spec for more information about how to
  1692. * convert the QP Local ACK Timeout value to nanoseconds.
  1693. */
  1694. T_tr_ns = 4096 * (1ULL << qp_attr->timeout);
  1695. max_compl_time_ms = qp_attr->retry_cnt * 4 * T_tr_ns;
  1696. do_div(max_compl_time_ms, NSEC_PER_MSEC);
  1697. rq_tmo_jiffies = msecs_to_jiffies(max_compl_time_ms + 1000);
  1698. return rq_tmo_jiffies;
  1699. }
  1700. static void srp_cm_rep_handler(struct ib_cm_id *cm_id,
  1701. struct srp_login_rsp *lrsp,
  1702. struct srp_target_port *target)
  1703. {
  1704. struct ib_qp_attr *qp_attr = NULL;
  1705. int attr_mask = 0;
  1706. int ret;
  1707. int i;
  1708. if (lrsp->opcode == SRP_LOGIN_RSP) {
  1709. target->max_ti_iu_len = be32_to_cpu(lrsp->max_ti_iu_len);
  1710. target->req_lim = be32_to_cpu(lrsp->req_lim_delta);
  1711. /*
  1712. * Reserve credits for task management so we don't
  1713. * bounce requests back to the SCSI mid-layer.
  1714. */
  1715. target->scsi_host->can_queue
  1716. = min(target->req_lim - SRP_TSK_MGMT_SQ_SIZE,
  1717. target->scsi_host->can_queue);
  1718. target->scsi_host->cmd_per_lun
  1719. = min_t(int, target->scsi_host->can_queue,
  1720. target->scsi_host->cmd_per_lun);
  1721. } else {
  1722. shost_printk(KERN_WARNING, target->scsi_host,
  1723. PFX "Unhandled RSP opcode %#x\n", lrsp->opcode);
  1724. ret = -ECONNRESET;
  1725. goto error;
  1726. }
  1727. if (!target->rx_ring) {
  1728. ret = srp_alloc_iu_bufs(target);
  1729. if (ret)
  1730. goto error;
  1731. }
  1732. ret = -ENOMEM;
  1733. qp_attr = kmalloc(sizeof *qp_attr, GFP_KERNEL);
  1734. if (!qp_attr)
  1735. goto error;
  1736. qp_attr->qp_state = IB_QPS_RTR;
  1737. ret = ib_cm_init_qp_attr(cm_id, qp_attr, &attr_mask);
  1738. if (ret)
  1739. goto error_free;
  1740. ret = ib_modify_qp(target->qp, qp_attr, attr_mask);
  1741. if (ret)
  1742. goto error_free;
  1743. for (i = 0; i < target->queue_size; i++) {
  1744. struct srp_iu *iu = target->rx_ring[i];
  1745. ret = srp_post_recv(target, iu);
  1746. if (ret)
  1747. goto error_free;
  1748. }
  1749. qp_attr->qp_state = IB_QPS_RTS;
  1750. ret = ib_cm_init_qp_attr(cm_id, qp_attr, &attr_mask);
  1751. if (ret)
  1752. goto error_free;
  1753. target->rq_tmo_jiffies = srp_compute_rq_tmo(qp_attr, attr_mask);
  1754. ret = ib_modify_qp(target->qp, qp_attr, attr_mask);
  1755. if (ret)
  1756. goto error_free;
  1757. ret = ib_send_cm_rtu(cm_id, NULL, 0);
  1758. error_free:
  1759. kfree(qp_attr);
  1760. error:
  1761. target->status = ret;
  1762. }
  1763. static void srp_cm_rej_handler(struct ib_cm_id *cm_id,
  1764. struct ib_cm_event *event,
  1765. struct srp_target_port *target)
  1766. {
  1767. struct Scsi_Host *shost = target->scsi_host;
  1768. struct ib_class_port_info *cpi;
  1769. int opcode;
  1770. switch (event->param.rej_rcvd.reason) {
  1771. case IB_CM_REJ_PORT_CM_REDIRECT:
  1772. cpi = event->param.rej_rcvd.ari;
  1773. target->path.dlid = cpi->redirect_lid;
  1774. target->path.pkey = cpi->redirect_pkey;
  1775. cm_id->remote_cm_qpn = be32_to_cpu(cpi->redirect_qp) & 0x00ffffff;
  1776. memcpy(target->path.dgid.raw, cpi->redirect_gid, 16);
  1777. target->status = target->path.dlid ?
  1778. SRP_DLID_REDIRECT : SRP_PORT_REDIRECT;
  1779. break;
  1780. case IB_CM_REJ_PORT_REDIRECT:
  1781. if (srp_target_is_topspin(target)) {
  1782. /*
  1783. * Topspin/Cisco SRP gateways incorrectly send
  1784. * reject reason code 25 when they mean 24
  1785. * (port redirect).
  1786. */
  1787. memcpy(target->path.dgid.raw,
  1788. event->param.rej_rcvd.ari, 16);
  1789. shost_printk(KERN_DEBUG, shost,
  1790. PFX "Topspin/Cisco redirect to target port GID %016llx%016llx\n",
  1791. (unsigned long long) be64_to_cpu(target->path.dgid.global.subnet_prefix),
  1792. (unsigned long long) be64_to_cpu(target->path.dgid.global.interface_id));
  1793. target->status = SRP_PORT_REDIRECT;
  1794. } else {
  1795. shost_printk(KERN_WARNING, shost,
  1796. " REJ reason: IB_CM_REJ_PORT_REDIRECT\n");
  1797. target->status = -ECONNRESET;
  1798. }
  1799. break;
  1800. case IB_CM_REJ_DUPLICATE_LOCAL_COMM_ID:
  1801. shost_printk(KERN_WARNING, shost,
  1802. " REJ reason: IB_CM_REJ_DUPLICATE_LOCAL_COMM_ID\n");
  1803. target->status = -ECONNRESET;
  1804. break;
  1805. case IB_CM_REJ_CONSUMER_DEFINED:
  1806. opcode = *(u8 *) event->private_data;
  1807. if (opcode == SRP_LOGIN_REJ) {
  1808. struct srp_login_rej *rej = event->private_data;
  1809. u32 reason = be32_to_cpu(rej->reason);
  1810. if (reason == SRP_LOGIN_REJ_REQ_IT_IU_LENGTH_TOO_LARGE)
  1811. shost_printk(KERN_WARNING, shost,
  1812. PFX "SRP_LOGIN_REJ: requested max_it_iu_len too large\n");
  1813. else
  1814. shost_printk(KERN_WARNING, shost, PFX
  1815. "SRP LOGIN from %pI6 to %pI6 REJECTED, reason 0x%08x\n",
  1816. target->path.sgid.raw,
  1817. target->orig_dgid, reason);
  1818. } else
  1819. shost_printk(KERN_WARNING, shost,
  1820. " REJ reason: IB_CM_REJ_CONSUMER_DEFINED,"
  1821. " opcode 0x%02x\n", opcode);
  1822. target->status = -ECONNRESET;
  1823. break;
  1824. case IB_CM_REJ_STALE_CONN:
  1825. shost_printk(KERN_WARNING, shost, " REJ reason: stale connection\n");
  1826. target->status = SRP_STALE_CONN;
  1827. break;
  1828. default:
  1829. shost_printk(KERN_WARNING, shost, " REJ reason 0x%x\n",
  1830. event->param.rej_rcvd.reason);
  1831. target->status = -ECONNRESET;
  1832. }
  1833. }
  1834. static int srp_cm_handler(struct ib_cm_id *cm_id, struct ib_cm_event *event)
  1835. {
  1836. struct srp_target_port *target = cm_id->context;
  1837. int comp = 0;
  1838. switch (event->event) {
  1839. case IB_CM_REQ_ERROR:
  1840. shost_printk(KERN_DEBUG, target->scsi_host,
  1841. PFX "Sending CM REQ failed\n");
  1842. comp = 1;
  1843. target->status = -ECONNRESET;
  1844. break;
  1845. case IB_CM_REP_RECEIVED:
  1846. comp = 1;
  1847. srp_cm_rep_handler(cm_id, event->private_data, target);
  1848. break;
  1849. case IB_CM_REJ_RECEIVED:
  1850. shost_printk(KERN_DEBUG, target->scsi_host, PFX "REJ received\n");
  1851. comp = 1;
  1852. srp_cm_rej_handler(cm_id, event, target);
  1853. break;
  1854. case IB_CM_DREQ_RECEIVED:
  1855. shost_printk(KERN_WARNING, target->scsi_host,
  1856. PFX "DREQ received - connection closed\n");
  1857. srp_change_conn_state(target, false);
  1858. if (ib_send_cm_drep(cm_id, NULL, 0))
  1859. shost_printk(KERN_ERR, target->scsi_host,
  1860. PFX "Sending CM DREP failed\n");
  1861. queue_work(system_long_wq, &target->tl_err_work);
  1862. break;
  1863. case IB_CM_TIMEWAIT_EXIT:
  1864. shost_printk(KERN_ERR, target->scsi_host,
  1865. PFX "connection closed\n");
  1866. comp = 1;
  1867. target->status = 0;
  1868. break;
  1869. case IB_CM_MRA_RECEIVED:
  1870. case IB_CM_DREQ_ERROR:
  1871. case IB_CM_DREP_RECEIVED:
  1872. break;
  1873. default:
  1874. shost_printk(KERN_WARNING, target->scsi_host,
  1875. PFX "Unhandled CM event %d\n", event->event);
  1876. break;
  1877. }
  1878. if (comp)
  1879. complete(&target->done);
  1880. return 0;
  1881. }
  1882. /**
  1883. * srp_change_queue_type - changing device queue tag type
  1884. * @sdev: scsi device struct
  1885. * @tag_type: requested tag type
  1886. *
  1887. * Returns queue tag type.
  1888. */
  1889. static int
  1890. srp_change_queue_type(struct scsi_device *sdev, int tag_type)
  1891. {
  1892. if (sdev->tagged_supported) {
  1893. scsi_set_tag_type(sdev, tag_type);
  1894. if (tag_type)
  1895. scsi_activate_tcq(sdev, sdev->queue_depth);
  1896. else
  1897. scsi_deactivate_tcq(sdev, sdev->queue_depth);
  1898. } else
  1899. tag_type = 0;
  1900. return tag_type;
  1901. }
  1902. /**
  1903. * srp_change_queue_depth - setting device queue depth
  1904. * @sdev: scsi device struct
  1905. * @qdepth: requested queue depth
  1906. * @reason: SCSI_QDEPTH_DEFAULT/SCSI_QDEPTH_QFULL/SCSI_QDEPTH_RAMP_UP
  1907. * (see include/scsi/scsi_host.h for definition)
  1908. *
  1909. * Returns queue depth.
  1910. */
  1911. static int
  1912. srp_change_queue_depth(struct scsi_device *sdev, int qdepth, int reason)
  1913. {
  1914. struct Scsi_Host *shost = sdev->host;
  1915. int max_depth;
  1916. if (reason == SCSI_QDEPTH_DEFAULT || reason == SCSI_QDEPTH_RAMP_UP) {
  1917. max_depth = shost->can_queue;
  1918. if (!sdev->tagged_supported)
  1919. max_depth = 1;
  1920. if (qdepth > max_depth)
  1921. qdepth = max_depth;
  1922. scsi_adjust_queue_depth(sdev, scsi_get_tag_type(sdev), qdepth);
  1923. } else if (reason == SCSI_QDEPTH_QFULL)
  1924. scsi_track_queue_full(sdev, qdepth);
  1925. else
  1926. return -EOPNOTSUPP;
  1927. return sdev->queue_depth;
  1928. }
  1929. static int srp_send_tsk_mgmt(struct srp_target_port *target,
  1930. u64 req_tag, unsigned int lun, u8 func)
  1931. {
  1932. struct srp_rport *rport = target->rport;
  1933. struct ib_device *dev = target->srp_host->srp_dev->dev;
  1934. struct srp_iu *iu;
  1935. struct srp_tsk_mgmt *tsk_mgmt;
  1936. if (!target->connected || target->qp_in_error)
  1937. return -1;
  1938. init_completion(&target->tsk_mgmt_done);
  1939. /*
  1940. * Lock the rport mutex to avoid that srp_create_target_ib() is
  1941. * invoked while a task management function is being sent.
  1942. */
  1943. mutex_lock(&rport->mutex);
  1944. spin_lock_irq(&target->lock);
  1945. iu = __srp_get_tx_iu(target, SRP_IU_TSK_MGMT);
  1946. spin_unlock_irq(&target->lock);
  1947. if (!iu) {
  1948. mutex_unlock(&rport->mutex);
  1949. return -1;
  1950. }
  1951. ib_dma_sync_single_for_cpu(dev, iu->dma, sizeof *tsk_mgmt,
  1952. DMA_TO_DEVICE);
  1953. tsk_mgmt = iu->buf;
  1954. memset(tsk_mgmt, 0, sizeof *tsk_mgmt);
  1955. tsk_mgmt->opcode = SRP_TSK_MGMT;
  1956. tsk_mgmt->lun = cpu_to_be64((u64) lun << 48);
  1957. tsk_mgmt->tag = req_tag | SRP_TAG_TSK_MGMT;
  1958. tsk_mgmt->tsk_mgmt_func = func;
  1959. tsk_mgmt->task_tag = req_tag;
  1960. ib_dma_sync_single_for_device(dev, iu->dma, sizeof *tsk_mgmt,
  1961. DMA_TO_DEVICE);
  1962. if (srp_post_send(target, iu, sizeof *tsk_mgmt)) {
  1963. srp_put_tx_iu(target, iu, SRP_IU_TSK_MGMT);
  1964. mutex_unlock(&rport->mutex);
  1965. return -1;
  1966. }
  1967. mutex_unlock(&rport->mutex);
  1968. if (!wait_for_completion_timeout(&target->tsk_mgmt_done,
  1969. msecs_to_jiffies(SRP_ABORT_TIMEOUT_MS)))
  1970. return -1;
  1971. return 0;
  1972. }
  1973. static int srp_abort(struct scsi_cmnd *scmnd)
  1974. {
  1975. struct srp_target_port *target = host_to_target(scmnd->device->host);
  1976. struct srp_request *req = (struct srp_request *) scmnd->host_scribble;
  1977. int ret;
  1978. shost_printk(KERN_ERR, target->scsi_host, "SRP abort called\n");
  1979. if (!req || !srp_claim_req(target, req, NULL, scmnd))
  1980. return SUCCESS;
  1981. if (srp_send_tsk_mgmt(target, req->index, scmnd->device->lun,
  1982. SRP_TSK_ABORT_TASK) == 0)
  1983. ret = SUCCESS;
  1984. else if (target->rport->state == SRP_RPORT_LOST)
  1985. ret = FAST_IO_FAIL;
  1986. else
  1987. ret = FAILED;
  1988. srp_free_req(target, req, scmnd, 0);
  1989. scmnd->result = DID_ABORT << 16;
  1990. scmnd->scsi_done(scmnd);
  1991. return ret;
  1992. }
  1993. static int srp_reset_device(struct scsi_cmnd *scmnd)
  1994. {
  1995. struct srp_target_port *target = host_to_target(scmnd->device->host);
  1996. int i;
  1997. shost_printk(KERN_ERR, target->scsi_host, "SRP reset_device called\n");
  1998. if (srp_send_tsk_mgmt(target, SRP_TAG_NO_REQ, scmnd->device->lun,
  1999. SRP_TSK_LUN_RESET))
  2000. return FAILED;
  2001. if (target->tsk_mgmt_status)
  2002. return FAILED;
  2003. for (i = 0; i < target->req_ring_size; ++i) {
  2004. struct srp_request *req = &target->req_ring[i];
  2005. srp_finish_req(target, req, scmnd->device, DID_RESET << 16);
  2006. }
  2007. return SUCCESS;
  2008. }
  2009. static int srp_reset_host(struct scsi_cmnd *scmnd)
  2010. {
  2011. struct srp_target_port *target = host_to_target(scmnd->device->host);
  2012. shost_printk(KERN_ERR, target->scsi_host, PFX "SRP reset_host called\n");
  2013. return srp_reconnect_rport(target->rport) == 0 ? SUCCESS : FAILED;
  2014. }
  2015. static int srp_slave_configure(struct scsi_device *sdev)
  2016. {
  2017. struct Scsi_Host *shost = sdev->host;
  2018. struct srp_target_port *target = host_to_target(shost);
  2019. struct request_queue *q = sdev->request_queue;
  2020. unsigned long timeout;
  2021. if (sdev->type == TYPE_DISK) {
  2022. timeout = max_t(unsigned, 30 * HZ, target->rq_tmo_jiffies);
  2023. blk_queue_rq_timeout(q, timeout);
  2024. }
  2025. return 0;
  2026. }
  2027. static ssize_t show_id_ext(struct device *dev, struct device_attribute *attr,
  2028. char *buf)
  2029. {
  2030. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2031. return sprintf(buf, "0x%016llx\n",
  2032. (unsigned long long) be64_to_cpu(target->id_ext));
  2033. }
  2034. static ssize_t show_ioc_guid(struct device *dev, struct device_attribute *attr,
  2035. char *buf)
  2036. {
  2037. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2038. return sprintf(buf, "0x%016llx\n",
  2039. (unsigned long long) be64_to_cpu(target->ioc_guid));
  2040. }
  2041. static ssize_t show_service_id(struct device *dev,
  2042. struct device_attribute *attr, char *buf)
  2043. {
  2044. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2045. return sprintf(buf, "0x%016llx\n",
  2046. (unsigned long long) be64_to_cpu(target->service_id));
  2047. }
  2048. static ssize_t show_pkey(struct device *dev, struct device_attribute *attr,
  2049. char *buf)
  2050. {
  2051. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2052. return sprintf(buf, "0x%04x\n", be16_to_cpu(target->path.pkey));
  2053. }
  2054. static ssize_t show_sgid(struct device *dev, struct device_attribute *attr,
  2055. char *buf)
  2056. {
  2057. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2058. return sprintf(buf, "%pI6\n", target->path.sgid.raw);
  2059. }
  2060. static ssize_t show_dgid(struct device *dev, struct device_attribute *attr,
  2061. char *buf)
  2062. {
  2063. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2064. return sprintf(buf, "%pI6\n", target->path.dgid.raw);
  2065. }
  2066. static ssize_t show_orig_dgid(struct device *dev,
  2067. struct device_attribute *attr, char *buf)
  2068. {
  2069. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2070. return sprintf(buf, "%pI6\n", target->orig_dgid);
  2071. }
  2072. static ssize_t show_req_lim(struct device *dev,
  2073. struct device_attribute *attr, char *buf)
  2074. {
  2075. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2076. return sprintf(buf, "%d\n", target->req_lim);
  2077. }
  2078. static ssize_t show_zero_req_lim(struct device *dev,
  2079. struct device_attribute *attr, char *buf)
  2080. {
  2081. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2082. return sprintf(buf, "%d\n", target->zero_req_lim);
  2083. }
  2084. static ssize_t show_local_ib_port(struct device *dev,
  2085. struct device_attribute *attr, char *buf)
  2086. {
  2087. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2088. return sprintf(buf, "%d\n", target->srp_host->port);
  2089. }
  2090. static ssize_t show_local_ib_device(struct device *dev,
  2091. struct device_attribute *attr, char *buf)
  2092. {
  2093. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2094. return sprintf(buf, "%s\n", target->srp_host->srp_dev->dev->name);
  2095. }
  2096. static ssize_t show_comp_vector(struct device *dev,
  2097. struct device_attribute *attr, char *buf)
  2098. {
  2099. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2100. return sprintf(buf, "%d\n", target->comp_vector);
  2101. }
  2102. static ssize_t show_tl_retry_count(struct device *dev,
  2103. struct device_attribute *attr, char *buf)
  2104. {
  2105. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2106. return sprintf(buf, "%d\n", target->tl_retry_count);
  2107. }
  2108. static ssize_t show_cmd_sg_entries(struct device *dev,
  2109. struct device_attribute *attr, char *buf)
  2110. {
  2111. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2112. return sprintf(buf, "%u\n", target->cmd_sg_cnt);
  2113. }
  2114. static ssize_t show_allow_ext_sg(struct device *dev,
  2115. struct device_attribute *attr, char *buf)
  2116. {
  2117. struct srp_target_port *target = host_to_target(class_to_shost(dev));
  2118. return sprintf(buf, "%s\n", target->allow_ext_sg ? "true" : "false");
  2119. }
  2120. static DEVICE_ATTR(id_ext, S_IRUGO, show_id_ext, NULL);
  2121. static DEVICE_ATTR(ioc_guid, S_IRUGO, show_ioc_guid, NULL);
  2122. static DEVICE_ATTR(service_id, S_IRUGO, show_service_id, NULL);
  2123. static DEVICE_ATTR(pkey, S_IRUGO, show_pkey, NULL);
  2124. static DEVICE_ATTR(sgid, S_IRUGO, show_sgid, NULL);
  2125. static DEVICE_ATTR(dgid, S_IRUGO, show_dgid, NULL);
  2126. static DEVICE_ATTR(orig_dgid, S_IRUGO, show_orig_dgid, NULL);
  2127. static DEVICE_ATTR(req_lim, S_IRUGO, show_req_lim, NULL);
  2128. static DEVICE_ATTR(zero_req_lim, S_IRUGO, show_zero_req_lim, NULL);
  2129. static DEVICE_ATTR(local_ib_port, S_IRUGO, show_local_ib_port, NULL);
  2130. static DEVICE_ATTR(local_ib_device, S_IRUGO, show_local_ib_device, NULL);
  2131. static DEVICE_ATTR(comp_vector, S_IRUGO, show_comp_vector, NULL);
  2132. static DEVICE_ATTR(tl_retry_count, S_IRUGO, show_tl_retry_count, NULL);
  2133. static DEVICE_ATTR(cmd_sg_entries, S_IRUGO, show_cmd_sg_entries, NULL);
  2134. static DEVICE_ATTR(allow_ext_sg, S_IRUGO, show_allow_ext_sg, NULL);
  2135. static struct device_attribute *srp_host_attrs[] = {
  2136. &dev_attr_id_ext,
  2137. &dev_attr_ioc_guid,
  2138. &dev_attr_service_id,
  2139. &dev_attr_pkey,
  2140. &dev_attr_sgid,
  2141. &dev_attr_dgid,
  2142. &dev_attr_orig_dgid,
  2143. &dev_attr_req_lim,
  2144. &dev_attr_zero_req_lim,
  2145. &dev_attr_local_ib_port,
  2146. &dev_attr_local_ib_device,
  2147. &dev_attr_comp_vector,
  2148. &dev_attr_tl_retry_count,
  2149. &dev_attr_cmd_sg_entries,
  2150. &dev_attr_allow_ext_sg,
  2151. NULL
  2152. };
  2153. static struct scsi_host_template srp_template = {
  2154. .module = THIS_MODULE,
  2155. .name = "InfiniBand SRP initiator",
  2156. .proc_name = DRV_NAME,
  2157. .slave_configure = srp_slave_configure,
  2158. .info = srp_target_info,
  2159. .queuecommand = srp_queuecommand,
  2160. .change_queue_depth = srp_change_queue_depth,
  2161. .change_queue_type = srp_change_queue_type,
  2162. .eh_abort_handler = srp_abort,
  2163. .eh_device_reset_handler = srp_reset_device,
  2164. .eh_host_reset_handler = srp_reset_host,
  2165. .skip_settle_delay = true,
  2166. .sg_tablesize = SRP_DEF_SG_TABLESIZE,
  2167. .can_queue = SRP_DEFAULT_CMD_SQ_SIZE,
  2168. .this_id = -1,
  2169. .cmd_per_lun = SRP_DEFAULT_CMD_SQ_SIZE,
  2170. .use_clustering = ENABLE_CLUSTERING,
  2171. .shost_attrs = srp_host_attrs
  2172. };
  2173. static int srp_add_target(struct srp_host *host, struct srp_target_port *target)
  2174. {
  2175. struct srp_rport_identifiers ids;
  2176. struct srp_rport *rport;
  2177. sprintf(target->target_name, "SRP.T10:%016llX",
  2178. (unsigned long long) be64_to_cpu(target->id_ext));
  2179. if (scsi_add_host(target->scsi_host, host->srp_dev->dev->dma_device))
  2180. return -ENODEV;
  2181. memcpy(ids.port_id, &target->id_ext, 8);
  2182. memcpy(ids.port_id + 8, &target->ioc_guid, 8);
  2183. ids.roles = SRP_RPORT_ROLE_TARGET;
  2184. rport = srp_rport_add(target->scsi_host, &ids);
  2185. if (IS_ERR(rport)) {
  2186. scsi_remove_host(target->scsi_host);
  2187. return PTR_ERR(rport);
  2188. }
  2189. rport->lld_data = target;
  2190. target->rport = rport;
  2191. spin_lock(&host->target_lock);
  2192. list_add_tail(&target->list, &host->target_list);
  2193. spin_unlock(&host->target_lock);
  2194. target->state = SRP_TARGET_LIVE;
  2195. scsi_scan_target(&target->scsi_host->shost_gendev,
  2196. 0, target->scsi_id, SCAN_WILD_CARD, 0);
  2197. return 0;
  2198. }
  2199. static void srp_release_dev(struct device *dev)
  2200. {
  2201. struct srp_host *host =
  2202. container_of(dev, struct srp_host, dev);
  2203. complete(&host->released);
  2204. }
  2205. static struct class srp_class = {
  2206. .name = "infiniband_srp",
  2207. .dev_release = srp_release_dev
  2208. };
  2209. /**
  2210. * srp_conn_unique() - check whether the connection to a target is unique
  2211. * @host: SRP host.
  2212. * @target: SRP target port.
  2213. */
  2214. static bool srp_conn_unique(struct srp_host *host,
  2215. struct srp_target_port *target)
  2216. {
  2217. struct srp_target_port *t;
  2218. bool ret = false;
  2219. if (target->state == SRP_TARGET_REMOVED)
  2220. goto out;
  2221. ret = true;
  2222. spin_lock(&host->target_lock);
  2223. list_for_each_entry(t, &host->target_list, list) {
  2224. if (t != target &&
  2225. target->id_ext == t->id_ext &&
  2226. target->ioc_guid == t->ioc_guid &&
  2227. target->initiator_ext == t->initiator_ext) {
  2228. ret = false;
  2229. break;
  2230. }
  2231. }
  2232. spin_unlock(&host->target_lock);
  2233. out:
  2234. return ret;
  2235. }
  2236. /*
  2237. * Target ports are added by writing
  2238. *
  2239. * id_ext=<SRP ID ext>,ioc_guid=<SRP IOC GUID>,dgid=<dest GID>,
  2240. * pkey=<P_Key>,service_id=<service ID>
  2241. *
  2242. * to the add_target sysfs attribute.
  2243. */
  2244. enum {
  2245. SRP_OPT_ERR = 0,
  2246. SRP_OPT_ID_EXT = 1 << 0,
  2247. SRP_OPT_IOC_GUID = 1 << 1,
  2248. SRP_OPT_DGID = 1 << 2,
  2249. SRP_OPT_PKEY = 1 << 3,
  2250. SRP_OPT_SERVICE_ID = 1 << 4,
  2251. SRP_OPT_MAX_SECT = 1 << 5,
  2252. SRP_OPT_MAX_CMD_PER_LUN = 1 << 6,
  2253. SRP_OPT_IO_CLASS = 1 << 7,
  2254. SRP_OPT_INITIATOR_EXT = 1 << 8,
  2255. SRP_OPT_CMD_SG_ENTRIES = 1 << 9,
  2256. SRP_OPT_ALLOW_EXT_SG = 1 << 10,
  2257. SRP_OPT_SG_TABLESIZE = 1 << 11,
  2258. SRP_OPT_COMP_VECTOR = 1 << 12,
  2259. SRP_OPT_TL_RETRY_COUNT = 1 << 13,
  2260. SRP_OPT_QUEUE_SIZE = 1 << 14,
  2261. SRP_OPT_ALL = (SRP_OPT_ID_EXT |
  2262. SRP_OPT_IOC_GUID |
  2263. SRP_OPT_DGID |
  2264. SRP_OPT_PKEY |
  2265. SRP_OPT_SERVICE_ID),
  2266. };
  2267. static const match_table_t srp_opt_tokens = {
  2268. { SRP_OPT_ID_EXT, "id_ext=%s" },
  2269. { SRP_OPT_IOC_GUID, "ioc_guid=%s" },
  2270. { SRP_OPT_DGID, "dgid=%s" },
  2271. { SRP_OPT_PKEY, "pkey=%x" },
  2272. { SRP_OPT_SERVICE_ID, "service_id=%s" },
  2273. { SRP_OPT_MAX_SECT, "max_sect=%d" },
  2274. { SRP_OPT_MAX_CMD_PER_LUN, "max_cmd_per_lun=%d" },
  2275. { SRP_OPT_IO_CLASS, "io_class=%x" },
  2276. { SRP_OPT_INITIATOR_EXT, "initiator_ext=%s" },
  2277. { SRP_OPT_CMD_SG_ENTRIES, "cmd_sg_entries=%u" },
  2278. { SRP_OPT_ALLOW_EXT_SG, "allow_ext_sg=%u" },
  2279. { SRP_OPT_SG_TABLESIZE, "sg_tablesize=%u" },
  2280. { SRP_OPT_COMP_VECTOR, "comp_vector=%u" },
  2281. { SRP_OPT_TL_RETRY_COUNT, "tl_retry_count=%u" },
  2282. { SRP_OPT_QUEUE_SIZE, "queue_size=%d" },
  2283. { SRP_OPT_ERR, NULL }
  2284. };
  2285. static int srp_parse_options(const char *buf, struct srp_target_port *target)
  2286. {
  2287. char *options, *sep_opt;
  2288. char *p;
  2289. char dgid[3];
  2290. substring_t args[MAX_OPT_ARGS];
  2291. int opt_mask = 0;
  2292. int token;
  2293. int ret = -EINVAL;
  2294. int i;
  2295. options = kstrdup(buf, GFP_KERNEL);
  2296. if (!options)
  2297. return -ENOMEM;
  2298. sep_opt = options;
  2299. while ((p = strsep(&sep_opt, ",")) != NULL) {
  2300. if (!*p)
  2301. continue;
  2302. token = match_token(p, srp_opt_tokens, args);
  2303. opt_mask |= token;
  2304. switch (token) {
  2305. case SRP_OPT_ID_EXT:
  2306. p = match_strdup(args);
  2307. if (!p) {
  2308. ret = -ENOMEM;
  2309. goto out;
  2310. }
  2311. target->id_ext = cpu_to_be64(simple_strtoull(p, NULL, 16));
  2312. kfree(p);
  2313. break;
  2314. case SRP_OPT_IOC_GUID:
  2315. p = match_strdup(args);
  2316. if (!p) {
  2317. ret = -ENOMEM;
  2318. goto out;
  2319. }
  2320. target->ioc_guid = cpu_to_be64(simple_strtoull(p, NULL, 16));
  2321. kfree(p);
  2322. break;
  2323. case SRP_OPT_DGID:
  2324. p = match_strdup(args);
  2325. if (!p) {
  2326. ret = -ENOMEM;
  2327. goto out;
  2328. }
  2329. if (strlen(p) != 32) {
  2330. pr_warn("bad dest GID parameter '%s'\n", p);
  2331. kfree(p);
  2332. goto out;
  2333. }
  2334. for (i = 0; i < 16; ++i) {
  2335. strlcpy(dgid, p + i * 2, 3);
  2336. target->path.dgid.raw[i] = simple_strtoul(dgid, NULL, 16);
  2337. }
  2338. kfree(p);
  2339. memcpy(target->orig_dgid, target->path.dgid.raw, 16);
  2340. break;
  2341. case SRP_OPT_PKEY:
  2342. if (match_hex(args, &token)) {
  2343. pr_warn("bad P_Key parameter '%s'\n", p);
  2344. goto out;
  2345. }
  2346. target->path.pkey = cpu_to_be16(token);
  2347. break;
  2348. case SRP_OPT_SERVICE_ID:
  2349. p = match_strdup(args);
  2350. if (!p) {
  2351. ret = -ENOMEM;
  2352. goto out;
  2353. }
  2354. target->service_id = cpu_to_be64(simple_strtoull(p, NULL, 16));
  2355. target->path.service_id = target->service_id;
  2356. kfree(p);
  2357. break;
  2358. case SRP_OPT_MAX_SECT:
  2359. if (match_int(args, &token)) {
  2360. pr_warn("bad max sect parameter '%s'\n", p);
  2361. goto out;
  2362. }
  2363. target->scsi_host->max_sectors = token;
  2364. break;
  2365. case SRP_OPT_QUEUE_SIZE:
  2366. if (match_int(args, &token) || token < 1) {
  2367. pr_warn("bad queue_size parameter '%s'\n", p);
  2368. goto out;
  2369. }
  2370. target->scsi_host->can_queue = token;
  2371. target->queue_size = token + SRP_RSP_SQ_SIZE +
  2372. SRP_TSK_MGMT_SQ_SIZE;
  2373. if (!(opt_mask & SRP_OPT_MAX_CMD_PER_LUN))
  2374. target->scsi_host->cmd_per_lun = token;
  2375. break;
  2376. case SRP_OPT_MAX_CMD_PER_LUN:
  2377. if (match_int(args, &token) || token < 1) {
  2378. pr_warn("bad max cmd_per_lun parameter '%s'\n",
  2379. p);
  2380. goto out;
  2381. }
  2382. target->scsi_host->cmd_per_lun = token;
  2383. break;
  2384. case SRP_OPT_IO_CLASS:
  2385. if (match_hex(args, &token)) {
  2386. pr_warn("bad IO class parameter '%s'\n", p);
  2387. goto out;
  2388. }
  2389. if (token != SRP_REV10_IB_IO_CLASS &&
  2390. token != SRP_REV16A_IB_IO_CLASS) {
  2391. pr_warn("unknown IO class parameter value %x specified (use %x or %x).\n",
  2392. token, SRP_REV10_IB_IO_CLASS,
  2393. SRP_REV16A_IB_IO_CLASS);
  2394. goto out;
  2395. }
  2396. target->io_class = token;
  2397. break;
  2398. case SRP_OPT_INITIATOR_EXT:
  2399. p = match_strdup(args);
  2400. if (!p) {
  2401. ret = -ENOMEM;
  2402. goto out;
  2403. }
  2404. target->initiator_ext = cpu_to_be64(simple_strtoull(p, NULL, 16));
  2405. kfree(p);
  2406. break;
  2407. case SRP_OPT_CMD_SG_ENTRIES:
  2408. if (match_int(args, &token) || token < 1 || token > 255) {
  2409. pr_warn("bad max cmd_sg_entries parameter '%s'\n",
  2410. p);
  2411. goto out;
  2412. }
  2413. target->cmd_sg_cnt = token;
  2414. break;
  2415. case SRP_OPT_ALLOW_EXT_SG:
  2416. if (match_int(args, &token)) {
  2417. pr_warn("bad allow_ext_sg parameter '%s'\n", p);
  2418. goto out;
  2419. }
  2420. target->allow_ext_sg = !!token;
  2421. break;
  2422. case SRP_OPT_SG_TABLESIZE:
  2423. if (match_int(args, &token) || token < 1 ||
  2424. token > SCSI_MAX_SG_CHAIN_SEGMENTS) {
  2425. pr_warn("bad max sg_tablesize parameter '%s'\n",
  2426. p);
  2427. goto out;
  2428. }
  2429. target->sg_tablesize = token;
  2430. break;
  2431. case SRP_OPT_COMP_VECTOR:
  2432. if (match_int(args, &token) || token < 0) {
  2433. pr_warn("bad comp_vector parameter '%s'\n", p);
  2434. goto out;
  2435. }
  2436. target->comp_vector = token;
  2437. break;
  2438. case SRP_OPT_TL_RETRY_COUNT:
  2439. if (match_int(args, &token) || token < 2 || token > 7) {
  2440. pr_warn("bad tl_retry_count parameter '%s' (must be a number between 2 and 7)\n",
  2441. p);
  2442. goto out;
  2443. }
  2444. target->tl_retry_count = token;
  2445. break;
  2446. default:
  2447. pr_warn("unknown parameter or missing value '%s' in target creation request\n",
  2448. p);
  2449. goto out;
  2450. }
  2451. }
  2452. if ((opt_mask & SRP_OPT_ALL) == SRP_OPT_ALL)
  2453. ret = 0;
  2454. else
  2455. for (i = 0; i < ARRAY_SIZE(srp_opt_tokens); ++i)
  2456. if ((srp_opt_tokens[i].token & SRP_OPT_ALL) &&
  2457. !(srp_opt_tokens[i].token & opt_mask))
  2458. pr_warn("target creation request is missing parameter '%s'\n",
  2459. srp_opt_tokens[i].pattern);
  2460. if (target->scsi_host->cmd_per_lun > target->scsi_host->can_queue
  2461. && (opt_mask & SRP_OPT_MAX_CMD_PER_LUN))
  2462. pr_warn("cmd_per_lun = %d > queue_size = %d\n",
  2463. target->scsi_host->cmd_per_lun,
  2464. target->scsi_host->can_queue);
  2465. out:
  2466. kfree(options);
  2467. return ret;
  2468. }
  2469. static ssize_t srp_create_target(struct device *dev,
  2470. struct device_attribute *attr,
  2471. const char *buf, size_t count)
  2472. {
  2473. struct srp_host *host =
  2474. container_of(dev, struct srp_host, dev);
  2475. struct Scsi_Host *target_host;
  2476. struct srp_target_port *target;
  2477. struct srp_device *srp_dev = host->srp_dev;
  2478. struct ib_device *ibdev = srp_dev->dev;
  2479. int ret;
  2480. target_host = scsi_host_alloc(&srp_template,
  2481. sizeof (struct srp_target_port));
  2482. if (!target_host)
  2483. return -ENOMEM;
  2484. target_host->transportt = ib_srp_transport_template;
  2485. target_host->max_channel = 0;
  2486. target_host->max_id = 1;
  2487. target_host->max_lun = SRP_MAX_LUN;
  2488. target_host->max_cmd_len = sizeof ((struct srp_cmd *) (void *) 0L)->cdb;
  2489. target = host_to_target(target_host);
  2490. target->io_class = SRP_REV16A_IB_IO_CLASS;
  2491. target->scsi_host = target_host;
  2492. target->srp_host = host;
  2493. target->lkey = host->srp_dev->mr->lkey;
  2494. target->rkey = host->srp_dev->mr->rkey;
  2495. target->cmd_sg_cnt = cmd_sg_entries;
  2496. target->sg_tablesize = indirect_sg_entries ? : cmd_sg_entries;
  2497. target->allow_ext_sg = allow_ext_sg;
  2498. target->tl_retry_count = 7;
  2499. target->queue_size = SRP_DEFAULT_QUEUE_SIZE;
  2500. mutex_lock(&host->add_target_mutex);
  2501. ret = srp_parse_options(buf, target);
  2502. if (ret)
  2503. goto err;
  2504. target->req_ring_size = target->queue_size - SRP_TSK_MGMT_SQ_SIZE;
  2505. if (!srp_conn_unique(target->srp_host, target)) {
  2506. shost_printk(KERN_INFO, target->scsi_host,
  2507. PFX "Already connected to target port with id_ext=%016llx;ioc_guid=%016llx;initiator_ext=%016llx\n",
  2508. be64_to_cpu(target->id_ext),
  2509. be64_to_cpu(target->ioc_guid),
  2510. be64_to_cpu(target->initiator_ext));
  2511. ret = -EEXIST;
  2512. goto err;
  2513. }
  2514. if (!srp_dev->has_fmr && !srp_dev->has_fr && !target->allow_ext_sg &&
  2515. target->cmd_sg_cnt < target->sg_tablesize) {
  2516. pr_warn("No MR pool and no external indirect descriptors, limiting sg_tablesize to cmd_sg_cnt\n");
  2517. target->sg_tablesize = target->cmd_sg_cnt;
  2518. }
  2519. target_host->sg_tablesize = target->sg_tablesize;
  2520. target->indirect_size = target->sg_tablesize *
  2521. sizeof (struct srp_direct_buf);
  2522. target->max_iu_len = sizeof (struct srp_cmd) +
  2523. sizeof (struct srp_indirect_buf) +
  2524. target->cmd_sg_cnt * sizeof (struct srp_direct_buf);
  2525. INIT_WORK(&target->tl_err_work, srp_tl_err_work);
  2526. INIT_WORK(&target->remove_work, srp_remove_work);
  2527. spin_lock_init(&target->lock);
  2528. INIT_LIST_HEAD(&target->free_tx);
  2529. ret = srp_alloc_req_data(target);
  2530. if (ret)
  2531. goto err_free_mem;
  2532. ret = ib_query_gid(ibdev, host->port, 0, &target->path.sgid);
  2533. if (ret)
  2534. goto err_free_mem;
  2535. ret = srp_create_target_ib(target);
  2536. if (ret)
  2537. goto err_free_mem;
  2538. ret = srp_new_cm_id(target);
  2539. if (ret)
  2540. goto err_free_ib;
  2541. ret = srp_connect_target(target);
  2542. if (ret) {
  2543. shost_printk(KERN_ERR, target->scsi_host,
  2544. PFX "Connection failed\n");
  2545. goto err_cm_id;
  2546. }
  2547. ret = srp_add_target(host, target);
  2548. if (ret)
  2549. goto err_disconnect;
  2550. shost_printk(KERN_DEBUG, target->scsi_host, PFX
  2551. "new target: id_ext %016llx ioc_guid %016llx pkey %04x service_id %016llx sgid %pI6 dgid %pI6\n",
  2552. be64_to_cpu(target->id_ext),
  2553. be64_to_cpu(target->ioc_guid),
  2554. be16_to_cpu(target->path.pkey),
  2555. be64_to_cpu(target->service_id),
  2556. target->path.sgid.raw, target->path.dgid.raw);
  2557. ret = count;
  2558. out:
  2559. mutex_unlock(&host->add_target_mutex);
  2560. return ret;
  2561. err_disconnect:
  2562. srp_disconnect_target(target);
  2563. err_cm_id:
  2564. ib_destroy_cm_id(target->cm_id);
  2565. err_free_ib:
  2566. srp_free_target_ib(target);
  2567. err_free_mem:
  2568. srp_free_req_data(target);
  2569. err:
  2570. scsi_host_put(target_host);
  2571. goto out;
  2572. }
  2573. static DEVICE_ATTR(add_target, S_IWUSR, NULL, srp_create_target);
  2574. static ssize_t show_ibdev(struct device *dev, struct device_attribute *attr,
  2575. char *buf)
  2576. {
  2577. struct srp_host *host = container_of(dev, struct srp_host, dev);
  2578. return sprintf(buf, "%s\n", host->srp_dev->dev->name);
  2579. }
  2580. static DEVICE_ATTR(ibdev, S_IRUGO, show_ibdev, NULL);
  2581. static ssize_t show_port(struct device *dev, struct device_attribute *attr,
  2582. char *buf)
  2583. {
  2584. struct srp_host *host = container_of(dev, struct srp_host, dev);
  2585. return sprintf(buf, "%d\n", host->port);
  2586. }
  2587. static DEVICE_ATTR(port, S_IRUGO, show_port, NULL);
  2588. static struct srp_host *srp_add_port(struct srp_device *device, u8 port)
  2589. {
  2590. struct srp_host *host;
  2591. host = kzalloc(sizeof *host, GFP_KERNEL);
  2592. if (!host)
  2593. return NULL;
  2594. INIT_LIST_HEAD(&host->target_list);
  2595. spin_lock_init(&host->target_lock);
  2596. init_completion(&host->released);
  2597. mutex_init(&host->add_target_mutex);
  2598. host->srp_dev = device;
  2599. host->port = port;
  2600. host->dev.class = &srp_class;
  2601. host->dev.parent = device->dev->dma_device;
  2602. dev_set_name(&host->dev, "srp-%s-%d", device->dev->name, port);
  2603. if (device_register(&host->dev))
  2604. goto free_host;
  2605. if (device_create_file(&host->dev, &dev_attr_add_target))
  2606. goto err_class;
  2607. if (device_create_file(&host->dev, &dev_attr_ibdev))
  2608. goto err_class;
  2609. if (device_create_file(&host->dev, &dev_attr_port))
  2610. goto err_class;
  2611. return host;
  2612. err_class:
  2613. device_unregister(&host->dev);
  2614. free_host:
  2615. kfree(host);
  2616. return NULL;
  2617. }
  2618. static void srp_add_one(struct ib_device *device)
  2619. {
  2620. struct srp_device *srp_dev;
  2621. struct ib_device_attr *dev_attr;
  2622. struct srp_host *host;
  2623. int mr_page_shift, s, e, p;
  2624. u64 max_pages_per_mr;
  2625. dev_attr = kmalloc(sizeof *dev_attr, GFP_KERNEL);
  2626. if (!dev_attr)
  2627. return;
  2628. if (ib_query_device(device, dev_attr)) {
  2629. pr_warn("Query device failed for %s\n", device->name);
  2630. goto free_attr;
  2631. }
  2632. srp_dev = kmalloc(sizeof *srp_dev, GFP_KERNEL);
  2633. if (!srp_dev)
  2634. goto free_attr;
  2635. srp_dev->has_fmr = (device->alloc_fmr && device->dealloc_fmr &&
  2636. device->map_phys_fmr && device->unmap_fmr);
  2637. srp_dev->has_fr = (dev_attr->device_cap_flags &
  2638. IB_DEVICE_MEM_MGT_EXTENSIONS);
  2639. if (!srp_dev->has_fmr && !srp_dev->has_fr)
  2640. dev_warn(&device->dev, "neither FMR nor FR is supported\n");
  2641. srp_dev->use_fast_reg = (srp_dev->has_fr &&
  2642. (!srp_dev->has_fmr || prefer_fr));
  2643. /*
  2644. * Use the smallest page size supported by the HCA, down to a
  2645. * minimum of 4096 bytes. We're unlikely to build large sglists
  2646. * out of smaller entries.
  2647. */
  2648. mr_page_shift = max(12, ffs(dev_attr->page_size_cap) - 1);
  2649. srp_dev->mr_page_size = 1 << mr_page_shift;
  2650. srp_dev->mr_page_mask = ~((u64) srp_dev->mr_page_size - 1);
  2651. max_pages_per_mr = dev_attr->max_mr_size;
  2652. do_div(max_pages_per_mr, srp_dev->mr_page_size);
  2653. srp_dev->max_pages_per_mr = min_t(u64, SRP_MAX_PAGES_PER_MR,
  2654. max_pages_per_mr);
  2655. if (srp_dev->use_fast_reg) {
  2656. srp_dev->max_pages_per_mr =
  2657. min_t(u32, srp_dev->max_pages_per_mr,
  2658. dev_attr->max_fast_reg_page_list_len);
  2659. }
  2660. srp_dev->mr_max_size = srp_dev->mr_page_size *
  2661. srp_dev->max_pages_per_mr;
  2662. pr_debug("%s: mr_page_shift = %d, dev_attr->max_mr_size = %#llx, dev_attr->max_fast_reg_page_list_len = %u, max_pages_per_mr = %d, mr_max_size = %#x\n",
  2663. device->name, mr_page_shift, dev_attr->max_mr_size,
  2664. dev_attr->max_fast_reg_page_list_len,
  2665. srp_dev->max_pages_per_mr, srp_dev->mr_max_size);
  2666. INIT_LIST_HEAD(&srp_dev->dev_list);
  2667. srp_dev->dev = device;
  2668. srp_dev->pd = ib_alloc_pd(device);
  2669. if (IS_ERR(srp_dev->pd))
  2670. goto free_dev;
  2671. srp_dev->mr = ib_get_dma_mr(srp_dev->pd,
  2672. IB_ACCESS_LOCAL_WRITE |
  2673. IB_ACCESS_REMOTE_READ |
  2674. IB_ACCESS_REMOTE_WRITE);
  2675. if (IS_ERR(srp_dev->mr))
  2676. goto err_pd;
  2677. if (device->node_type == RDMA_NODE_IB_SWITCH) {
  2678. s = 0;
  2679. e = 0;
  2680. } else {
  2681. s = 1;
  2682. e = device->phys_port_cnt;
  2683. }
  2684. for (p = s; p <= e; ++p) {
  2685. host = srp_add_port(srp_dev, p);
  2686. if (host)
  2687. list_add_tail(&host->list, &srp_dev->dev_list);
  2688. }
  2689. ib_set_client_data(device, &srp_client, srp_dev);
  2690. goto free_attr;
  2691. err_pd:
  2692. ib_dealloc_pd(srp_dev->pd);
  2693. free_dev:
  2694. kfree(srp_dev);
  2695. free_attr:
  2696. kfree(dev_attr);
  2697. }
  2698. static void srp_remove_one(struct ib_device *device)
  2699. {
  2700. struct srp_device *srp_dev;
  2701. struct srp_host *host, *tmp_host;
  2702. struct srp_target_port *target;
  2703. srp_dev = ib_get_client_data(device, &srp_client);
  2704. if (!srp_dev)
  2705. return;
  2706. list_for_each_entry_safe(host, tmp_host, &srp_dev->dev_list, list) {
  2707. device_unregister(&host->dev);
  2708. /*
  2709. * Wait for the sysfs entry to go away, so that no new
  2710. * target ports can be created.
  2711. */
  2712. wait_for_completion(&host->released);
  2713. /*
  2714. * Remove all target ports.
  2715. */
  2716. spin_lock(&host->target_lock);
  2717. list_for_each_entry(target, &host->target_list, list)
  2718. srp_queue_remove_work(target);
  2719. spin_unlock(&host->target_lock);
  2720. /*
  2721. * Wait for target port removal tasks.
  2722. */
  2723. flush_workqueue(system_long_wq);
  2724. kfree(host);
  2725. }
  2726. ib_dereg_mr(srp_dev->mr);
  2727. ib_dealloc_pd(srp_dev->pd);
  2728. kfree(srp_dev);
  2729. }
  2730. static struct srp_function_template ib_srp_transport_functions = {
  2731. .has_rport_state = true,
  2732. .reset_timer_if_blocked = true,
  2733. .reconnect_delay = &srp_reconnect_delay,
  2734. .fast_io_fail_tmo = &srp_fast_io_fail_tmo,
  2735. .dev_loss_tmo = &srp_dev_loss_tmo,
  2736. .reconnect = srp_rport_reconnect,
  2737. .rport_delete = srp_rport_delete,
  2738. .terminate_rport_io = srp_terminate_io,
  2739. };
  2740. static int __init srp_init_module(void)
  2741. {
  2742. int ret;
  2743. BUILD_BUG_ON(FIELD_SIZEOF(struct ib_wc, wr_id) < sizeof(void *));
  2744. if (srp_sg_tablesize) {
  2745. pr_warn("srp_sg_tablesize is deprecated, please use cmd_sg_entries\n");
  2746. if (!cmd_sg_entries)
  2747. cmd_sg_entries = srp_sg_tablesize;
  2748. }
  2749. if (!cmd_sg_entries)
  2750. cmd_sg_entries = SRP_DEF_SG_TABLESIZE;
  2751. if (cmd_sg_entries > 255) {
  2752. pr_warn("Clamping cmd_sg_entries to 255\n");
  2753. cmd_sg_entries = 255;
  2754. }
  2755. if (!indirect_sg_entries)
  2756. indirect_sg_entries = cmd_sg_entries;
  2757. else if (indirect_sg_entries < cmd_sg_entries) {
  2758. pr_warn("Bumping up indirect_sg_entries to match cmd_sg_entries (%u)\n",
  2759. cmd_sg_entries);
  2760. indirect_sg_entries = cmd_sg_entries;
  2761. }
  2762. ib_srp_transport_template =
  2763. srp_attach_transport(&ib_srp_transport_functions);
  2764. if (!ib_srp_transport_template)
  2765. return -ENOMEM;
  2766. ret = class_register(&srp_class);
  2767. if (ret) {
  2768. pr_err("couldn't register class infiniband_srp\n");
  2769. srp_release_transport(ib_srp_transport_template);
  2770. return ret;
  2771. }
  2772. ib_sa_register_client(&srp_sa_client);
  2773. ret = ib_register_client(&srp_client);
  2774. if (ret) {
  2775. pr_err("couldn't register IB client\n");
  2776. srp_release_transport(ib_srp_transport_template);
  2777. ib_sa_unregister_client(&srp_sa_client);
  2778. class_unregister(&srp_class);
  2779. return ret;
  2780. }
  2781. return 0;
  2782. }
  2783. static void __exit srp_cleanup_module(void)
  2784. {
  2785. ib_unregister_client(&srp_client);
  2786. ib_sa_unregister_client(&srp_sa_client);
  2787. class_unregister(&srp_class);
  2788. srp_release_transport(ib_srp_transport_template);
  2789. }
  2790. module_init(srp_init_module);
  2791. module_exit(srp_cleanup_module);