iw_rdma.c 24 KB

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  1. /*
  2. * Copyright (c) 2006 Oracle. 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. */
  33. #include <linux/kernel.h>
  34. #include <linux/slab.h>
  35. #include <linux/ratelimit.h>
  36. #include "rds.h"
  37. #include "iw.h"
  38. /*
  39. * This is stored as mr->r_trans_private.
  40. */
  41. struct rds_iw_mr {
  42. struct rds_iw_device *device;
  43. struct rds_iw_mr_pool *pool;
  44. struct rdma_cm_id *cm_id;
  45. struct ib_mr *mr;
  46. struct ib_fast_reg_page_list *page_list;
  47. struct rds_iw_mapping mapping;
  48. unsigned char remap_count;
  49. };
  50. /*
  51. * Our own little MR pool
  52. */
  53. struct rds_iw_mr_pool {
  54. struct rds_iw_device *device; /* back ptr to the device that owns us */
  55. struct mutex flush_lock; /* serialize fmr invalidate */
  56. struct work_struct flush_worker; /* flush worker */
  57. spinlock_t list_lock; /* protect variables below */
  58. atomic_t item_count; /* total # of MRs */
  59. atomic_t dirty_count; /* # dirty of MRs */
  60. struct list_head dirty_list; /* dirty mappings */
  61. struct list_head clean_list; /* unused & unamapped MRs */
  62. atomic_t free_pinned; /* memory pinned by free MRs */
  63. unsigned long max_message_size; /* in pages */
  64. unsigned long max_items;
  65. unsigned long max_items_soft;
  66. unsigned long max_free_pinned;
  67. int max_pages;
  68. };
  69. static int rds_iw_flush_mr_pool(struct rds_iw_mr_pool *pool, int free_all);
  70. static void rds_iw_mr_pool_flush_worker(struct work_struct *work);
  71. static int rds_iw_init_fastreg(struct rds_iw_mr_pool *pool, struct rds_iw_mr *ibmr);
  72. static int rds_iw_map_fastreg(struct rds_iw_mr_pool *pool,
  73. struct rds_iw_mr *ibmr,
  74. struct scatterlist *sg, unsigned int nents);
  75. static void rds_iw_free_fastreg(struct rds_iw_mr_pool *pool, struct rds_iw_mr *ibmr);
  76. static unsigned int rds_iw_unmap_fastreg_list(struct rds_iw_mr_pool *pool,
  77. struct list_head *unmap_list,
  78. struct list_head *kill_list,
  79. int *unpinned);
  80. static void rds_iw_destroy_fastreg(struct rds_iw_mr_pool *pool, struct rds_iw_mr *ibmr);
  81. static int rds_iw_get_device(struct sockaddr_in *src, struct sockaddr_in *dst,
  82. struct rds_iw_device **rds_iwdev,
  83. struct rdma_cm_id **cm_id)
  84. {
  85. struct rds_iw_device *iwdev;
  86. struct rds_iw_cm_id *i_cm_id;
  87. *rds_iwdev = NULL;
  88. *cm_id = NULL;
  89. list_for_each_entry(iwdev, &rds_iw_devices, list) {
  90. spin_lock_irq(&iwdev->spinlock);
  91. list_for_each_entry(i_cm_id, &iwdev->cm_id_list, list) {
  92. struct sockaddr_in *src_addr, *dst_addr;
  93. src_addr = (struct sockaddr_in *)&i_cm_id->cm_id->route.addr.src_addr;
  94. dst_addr = (struct sockaddr_in *)&i_cm_id->cm_id->route.addr.dst_addr;
  95. rdsdebug("local ipaddr = %x port %d, "
  96. "remote ipaddr = %x port %d"
  97. "..looking for %x port %d, "
  98. "remote ipaddr = %x port %d\n",
  99. src_addr->sin_addr.s_addr,
  100. src_addr->sin_port,
  101. dst_addr->sin_addr.s_addr,
  102. dst_addr->sin_port,
  103. src->sin_addr.s_addr,
  104. src->sin_port,
  105. dst->sin_addr.s_addr,
  106. dst->sin_port);
  107. #ifdef WORKING_TUPLE_DETECTION
  108. if (src_addr->sin_addr.s_addr == src->sin_addr.s_addr &&
  109. src_addr->sin_port == src->sin_port &&
  110. dst_addr->sin_addr.s_addr == dst->sin_addr.s_addr &&
  111. dst_addr->sin_port == dst->sin_port) {
  112. #else
  113. /* FIXME - needs to compare the local and remote
  114. * ipaddr/port tuple, but the ipaddr is the only
  115. * available information in the rds_sock (as the rest are
  116. * zero'ed. It doesn't appear to be properly populated
  117. * during connection setup...
  118. */
  119. if (src_addr->sin_addr.s_addr == src->sin_addr.s_addr) {
  120. #endif
  121. spin_unlock_irq(&iwdev->spinlock);
  122. *rds_iwdev = iwdev;
  123. *cm_id = i_cm_id->cm_id;
  124. return 0;
  125. }
  126. }
  127. spin_unlock_irq(&iwdev->spinlock);
  128. }
  129. return 1;
  130. }
  131. static int rds_iw_add_cm_id(struct rds_iw_device *rds_iwdev, struct rdma_cm_id *cm_id)
  132. {
  133. struct rds_iw_cm_id *i_cm_id;
  134. i_cm_id = kmalloc(sizeof *i_cm_id, GFP_KERNEL);
  135. if (!i_cm_id)
  136. return -ENOMEM;
  137. i_cm_id->cm_id = cm_id;
  138. spin_lock_irq(&rds_iwdev->spinlock);
  139. list_add_tail(&i_cm_id->list, &rds_iwdev->cm_id_list);
  140. spin_unlock_irq(&rds_iwdev->spinlock);
  141. return 0;
  142. }
  143. static void rds_iw_remove_cm_id(struct rds_iw_device *rds_iwdev,
  144. struct rdma_cm_id *cm_id)
  145. {
  146. struct rds_iw_cm_id *i_cm_id;
  147. spin_lock_irq(&rds_iwdev->spinlock);
  148. list_for_each_entry(i_cm_id, &rds_iwdev->cm_id_list, list) {
  149. if (i_cm_id->cm_id == cm_id) {
  150. list_del(&i_cm_id->list);
  151. kfree(i_cm_id);
  152. break;
  153. }
  154. }
  155. spin_unlock_irq(&rds_iwdev->spinlock);
  156. }
  157. int rds_iw_update_cm_id(struct rds_iw_device *rds_iwdev, struct rdma_cm_id *cm_id)
  158. {
  159. struct sockaddr_in *src_addr, *dst_addr;
  160. struct rds_iw_device *rds_iwdev_old;
  161. struct rdma_cm_id *pcm_id;
  162. int rc;
  163. src_addr = (struct sockaddr_in *)&cm_id->route.addr.src_addr;
  164. dst_addr = (struct sockaddr_in *)&cm_id->route.addr.dst_addr;
  165. rc = rds_iw_get_device(src_addr, dst_addr, &rds_iwdev_old, &pcm_id);
  166. if (rc)
  167. rds_iw_remove_cm_id(rds_iwdev, cm_id);
  168. return rds_iw_add_cm_id(rds_iwdev, cm_id);
  169. }
  170. void rds_iw_add_conn(struct rds_iw_device *rds_iwdev, struct rds_connection *conn)
  171. {
  172. struct rds_iw_connection *ic = conn->c_transport_data;
  173. /* conn was previously on the nodev_conns_list */
  174. spin_lock_irq(&iw_nodev_conns_lock);
  175. BUG_ON(list_empty(&iw_nodev_conns));
  176. BUG_ON(list_empty(&ic->iw_node));
  177. list_del(&ic->iw_node);
  178. spin_lock(&rds_iwdev->spinlock);
  179. list_add_tail(&ic->iw_node, &rds_iwdev->conn_list);
  180. spin_unlock(&rds_iwdev->spinlock);
  181. spin_unlock_irq(&iw_nodev_conns_lock);
  182. ic->rds_iwdev = rds_iwdev;
  183. }
  184. void rds_iw_remove_conn(struct rds_iw_device *rds_iwdev, struct rds_connection *conn)
  185. {
  186. struct rds_iw_connection *ic = conn->c_transport_data;
  187. /* place conn on nodev_conns_list */
  188. spin_lock(&iw_nodev_conns_lock);
  189. spin_lock_irq(&rds_iwdev->spinlock);
  190. BUG_ON(list_empty(&ic->iw_node));
  191. list_del(&ic->iw_node);
  192. spin_unlock_irq(&rds_iwdev->spinlock);
  193. list_add_tail(&ic->iw_node, &iw_nodev_conns);
  194. spin_unlock(&iw_nodev_conns_lock);
  195. rds_iw_remove_cm_id(ic->rds_iwdev, ic->i_cm_id);
  196. ic->rds_iwdev = NULL;
  197. }
  198. void __rds_iw_destroy_conns(struct list_head *list, spinlock_t *list_lock)
  199. {
  200. struct rds_iw_connection *ic, *_ic;
  201. LIST_HEAD(tmp_list);
  202. /* avoid calling conn_destroy with irqs off */
  203. spin_lock_irq(list_lock);
  204. list_splice(list, &tmp_list);
  205. INIT_LIST_HEAD(list);
  206. spin_unlock_irq(list_lock);
  207. list_for_each_entry_safe(ic, _ic, &tmp_list, iw_node)
  208. rds_conn_destroy(ic->conn);
  209. }
  210. static void rds_iw_set_scatterlist(struct rds_iw_scatterlist *sg,
  211. struct scatterlist *list, unsigned int sg_len)
  212. {
  213. sg->list = list;
  214. sg->len = sg_len;
  215. sg->dma_len = 0;
  216. sg->dma_npages = 0;
  217. sg->bytes = 0;
  218. }
  219. static u64 *rds_iw_map_scatterlist(struct rds_iw_device *rds_iwdev,
  220. struct rds_iw_scatterlist *sg)
  221. {
  222. struct ib_device *dev = rds_iwdev->dev;
  223. u64 *dma_pages = NULL;
  224. int i, j, ret;
  225. WARN_ON(sg->dma_len);
  226. sg->dma_len = ib_dma_map_sg(dev, sg->list, sg->len, DMA_BIDIRECTIONAL);
  227. if (unlikely(!sg->dma_len)) {
  228. printk(KERN_WARNING "RDS/IW: dma_map_sg failed!\n");
  229. return ERR_PTR(-EBUSY);
  230. }
  231. sg->bytes = 0;
  232. sg->dma_npages = 0;
  233. ret = -EINVAL;
  234. for (i = 0; i < sg->dma_len; ++i) {
  235. unsigned int dma_len = ib_sg_dma_len(dev, &sg->list[i]);
  236. u64 dma_addr = ib_sg_dma_address(dev, &sg->list[i]);
  237. u64 end_addr;
  238. sg->bytes += dma_len;
  239. end_addr = dma_addr + dma_len;
  240. if (dma_addr & PAGE_MASK) {
  241. if (i > 0)
  242. goto out_unmap;
  243. dma_addr &= ~PAGE_MASK;
  244. }
  245. if (end_addr & PAGE_MASK) {
  246. if (i < sg->dma_len - 1)
  247. goto out_unmap;
  248. end_addr = (end_addr + PAGE_MASK) & ~PAGE_MASK;
  249. }
  250. sg->dma_npages += (end_addr - dma_addr) >> PAGE_SHIFT;
  251. }
  252. /* Now gather the dma addrs into one list */
  253. if (sg->dma_npages > fastreg_message_size)
  254. goto out_unmap;
  255. dma_pages = kmalloc(sizeof(u64) * sg->dma_npages, GFP_ATOMIC);
  256. if (!dma_pages) {
  257. ret = -ENOMEM;
  258. goto out_unmap;
  259. }
  260. for (i = j = 0; i < sg->dma_len; ++i) {
  261. unsigned int dma_len = ib_sg_dma_len(dev, &sg->list[i]);
  262. u64 dma_addr = ib_sg_dma_address(dev, &sg->list[i]);
  263. u64 end_addr;
  264. end_addr = dma_addr + dma_len;
  265. dma_addr &= ~PAGE_MASK;
  266. for (; dma_addr < end_addr; dma_addr += PAGE_SIZE)
  267. dma_pages[j++] = dma_addr;
  268. BUG_ON(j > sg->dma_npages);
  269. }
  270. return dma_pages;
  271. out_unmap:
  272. ib_dma_unmap_sg(rds_iwdev->dev, sg->list, sg->len, DMA_BIDIRECTIONAL);
  273. sg->dma_len = 0;
  274. kfree(dma_pages);
  275. return ERR_PTR(ret);
  276. }
  277. struct rds_iw_mr_pool *rds_iw_create_mr_pool(struct rds_iw_device *rds_iwdev)
  278. {
  279. struct rds_iw_mr_pool *pool;
  280. pool = kzalloc(sizeof(*pool), GFP_KERNEL);
  281. if (!pool) {
  282. printk(KERN_WARNING "RDS/IW: rds_iw_create_mr_pool alloc error\n");
  283. return ERR_PTR(-ENOMEM);
  284. }
  285. pool->device = rds_iwdev;
  286. INIT_LIST_HEAD(&pool->dirty_list);
  287. INIT_LIST_HEAD(&pool->clean_list);
  288. mutex_init(&pool->flush_lock);
  289. spin_lock_init(&pool->list_lock);
  290. INIT_WORK(&pool->flush_worker, rds_iw_mr_pool_flush_worker);
  291. pool->max_message_size = fastreg_message_size;
  292. pool->max_items = fastreg_pool_size;
  293. pool->max_free_pinned = pool->max_items * pool->max_message_size / 4;
  294. pool->max_pages = fastreg_message_size;
  295. /* We never allow more than max_items MRs to be allocated.
  296. * When we exceed more than max_items_soft, we start freeing
  297. * items more aggressively.
  298. * Make sure that max_items > max_items_soft > max_items / 2
  299. */
  300. pool->max_items_soft = pool->max_items * 3 / 4;
  301. return pool;
  302. }
  303. void rds_iw_get_mr_info(struct rds_iw_device *rds_iwdev, struct rds_info_rdma_connection *iinfo)
  304. {
  305. struct rds_iw_mr_pool *pool = rds_iwdev->mr_pool;
  306. iinfo->rdma_mr_max = pool->max_items;
  307. iinfo->rdma_mr_size = pool->max_pages;
  308. }
  309. void rds_iw_destroy_mr_pool(struct rds_iw_mr_pool *pool)
  310. {
  311. flush_workqueue(rds_wq);
  312. rds_iw_flush_mr_pool(pool, 1);
  313. BUG_ON(atomic_read(&pool->item_count));
  314. BUG_ON(atomic_read(&pool->free_pinned));
  315. kfree(pool);
  316. }
  317. static inline struct rds_iw_mr *rds_iw_reuse_fmr(struct rds_iw_mr_pool *pool)
  318. {
  319. struct rds_iw_mr *ibmr = NULL;
  320. unsigned long flags;
  321. spin_lock_irqsave(&pool->list_lock, flags);
  322. if (!list_empty(&pool->clean_list)) {
  323. ibmr = list_entry(pool->clean_list.next, struct rds_iw_mr, mapping.m_list);
  324. list_del_init(&ibmr->mapping.m_list);
  325. }
  326. spin_unlock_irqrestore(&pool->list_lock, flags);
  327. return ibmr;
  328. }
  329. static struct rds_iw_mr *rds_iw_alloc_mr(struct rds_iw_device *rds_iwdev)
  330. {
  331. struct rds_iw_mr_pool *pool = rds_iwdev->mr_pool;
  332. struct rds_iw_mr *ibmr = NULL;
  333. int err = 0, iter = 0;
  334. while (1) {
  335. ibmr = rds_iw_reuse_fmr(pool);
  336. if (ibmr)
  337. return ibmr;
  338. /* No clean MRs - now we have the choice of either
  339. * allocating a fresh MR up to the limit imposed by the
  340. * driver, or flush any dirty unused MRs.
  341. * We try to avoid stalling in the send path if possible,
  342. * so we allocate as long as we're allowed to.
  343. *
  344. * We're fussy with enforcing the FMR limit, though. If the driver
  345. * tells us we can't use more than N fmrs, we shouldn't start
  346. * arguing with it */
  347. if (atomic_inc_return(&pool->item_count) <= pool->max_items)
  348. break;
  349. atomic_dec(&pool->item_count);
  350. if (++iter > 2) {
  351. rds_iw_stats_inc(s_iw_rdma_mr_pool_depleted);
  352. return ERR_PTR(-EAGAIN);
  353. }
  354. /* We do have some empty MRs. Flush them out. */
  355. rds_iw_stats_inc(s_iw_rdma_mr_pool_wait);
  356. rds_iw_flush_mr_pool(pool, 0);
  357. }
  358. ibmr = kzalloc(sizeof(*ibmr), GFP_KERNEL);
  359. if (!ibmr) {
  360. err = -ENOMEM;
  361. goto out_no_cigar;
  362. }
  363. spin_lock_init(&ibmr->mapping.m_lock);
  364. INIT_LIST_HEAD(&ibmr->mapping.m_list);
  365. ibmr->mapping.m_mr = ibmr;
  366. err = rds_iw_init_fastreg(pool, ibmr);
  367. if (err)
  368. goto out_no_cigar;
  369. rds_iw_stats_inc(s_iw_rdma_mr_alloc);
  370. return ibmr;
  371. out_no_cigar:
  372. if (ibmr) {
  373. rds_iw_destroy_fastreg(pool, ibmr);
  374. kfree(ibmr);
  375. }
  376. atomic_dec(&pool->item_count);
  377. return ERR_PTR(err);
  378. }
  379. void rds_iw_sync_mr(void *trans_private, int direction)
  380. {
  381. struct rds_iw_mr *ibmr = trans_private;
  382. struct rds_iw_device *rds_iwdev = ibmr->device;
  383. switch (direction) {
  384. case DMA_FROM_DEVICE:
  385. ib_dma_sync_sg_for_cpu(rds_iwdev->dev, ibmr->mapping.m_sg.list,
  386. ibmr->mapping.m_sg.dma_len, DMA_BIDIRECTIONAL);
  387. break;
  388. case DMA_TO_DEVICE:
  389. ib_dma_sync_sg_for_device(rds_iwdev->dev, ibmr->mapping.m_sg.list,
  390. ibmr->mapping.m_sg.dma_len, DMA_BIDIRECTIONAL);
  391. break;
  392. }
  393. }
  394. /*
  395. * Flush our pool of MRs.
  396. * At a minimum, all currently unused MRs are unmapped.
  397. * If the number of MRs allocated exceeds the limit, we also try
  398. * to free as many MRs as needed to get back to this limit.
  399. */
  400. static int rds_iw_flush_mr_pool(struct rds_iw_mr_pool *pool, int free_all)
  401. {
  402. struct rds_iw_mr *ibmr, *next;
  403. LIST_HEAD(unmap_list);
  404. LIST_HEAD(kill_list);
  405. unsigned long flags;
  406. unsigned int nfreed = 0, ncleaned = 0, unpinned = 0;
  407. int ret = 0;
  408. rds_iw_stats_inc(s_iw_rdma_mr_pool_flush);
  409. mutex_lock(&pool->flush_lock);
  410. spin_lock_irqsave(&pool->list_lock, flags);
  411. /* Get the list of all mappings to be destroyed */
  412. list_splice_init(&pool->dirty_list, &unmap_list);
  413. if (free_all)
  414. list_splice_init(&pool->clean_list, &kill_list);
  415. spin_unlock_irqrestore(&pool->list_lock, flags);
  416. /* Batched invalidate of dirty MRs.
  417. * For FMR based MRs, the mappings on the unmap list are
  418. * actually members of an ibmr (ibmr->mapping). They either
  419. * migrate to the kill_list, or have been cleaned and should be
  420. * moved to the clean_list.
  421. * For fastregs, they will be dynamically allocated, and
  422. * will be destroyed by the unmap function.
  423. */
  424. if (!list_empty(&unmap_list)) {
  425. ncleaned = rds_iw_unmap_fastreg_list(pool, &unmap_list,
  426. &kill_list, &unpinned);
  427. /* If we've been asked to destroy all MRs, move those
  428. * that were simply cleaned to the kill list */
  429. if (free_all)
  430. list_splice_init(&unmap_list, &kill_list);
  431. }
  432. /* Destroy any MRs that are past their best before date */
  433. list_for_each_entry_safe(ibmr, next, &kill_list, mapping.m_list) {
  434. rds_iw_stats_inc(s_iw_rdma_mr_free);
  435. list_del(&ibmr->mapping.m_list);
  436. rds_iw_destroy_fastreg(pool, ibmr);
  437. kfree(ibmr);
  438. nfreed++;
  439. }
  440. /* Anything that remains are laundered ibmrs, which we can add
  441. * back to the clean list. */
  442. if (!list_empty(&unmap_list)) {
  443. spin_lock_irqsave(&pool->list_lock, flags);
  444. list_splice(&unmap_list, &pool->clean_list);
  445. spin_unlock_irqrestore(&pool->list_lock, flags);
  446. }
  447. atomic_sub(unpinned, &pool->free_pinned);
  448. atomic_sub(ncleaned, &pool->dirty_count);
  449. atomic_sub(nfreed, &pool->item_count);
  450. mutex_unlock(&pool->flush_lock);
  451. return ret;
  452. }
  453. static void rds_iw_mr_pool_flush_worker(struct work_struct *work)
  454. {
  455. struct rds_iw_mr_pool *pool = container_of(work, struct rds_iw_mr_pool, flush_worker);
  456. rds_iw_flush_mr_pool(pool, 0);
  457. }
  458. void rds_iw_free_mr(void *trans_private, int invalidate)
  459. {
  460. struct rds_iw_mr *ibmr = trans_private;
  461. struct rds_iw_mr_pool *pool = ibmr->device->mr_pool;
  462. rdsdebug("RDS/IW: free_mr nents %u\n", ibmr->mapping.m_sg.len);
  463. if (!pool)
  464. return;
  465. /* Return it to the pool's free list */
  466. rds_iw_free_fastreg(pool, ibmr);
  467. /* If we've pinned too many pages, request a flush */
  468. if (atomic_read(&pool->free_pinned) >= pool->max_free_pinned ||
  469. atomic_read(&pool->dirty_count) >= pool->max_items / 10)
  470. queue_work(rds_wq, &pool->flush_worker);
  471. if (invalidate) {
  472. if (likely(!in_interrupt())) {
  473. rds_iw_flush_mr_pool(pool, 0);
  474. } else {
  475. /* We get here if the user created a MR marked
  476. * as use_once and invalidate at the same time. */
  477. queue_work(rds_wq, &pool->flush_worker);
  478. }
  479. }
  480. }
  481. void rds_iw_flush_mrs(void)
  482. {
  483. struct rds_iw_device *rds_iwdev;
  484. list_for_each_entry(rds_iwdev, &rds_iw_devices, list) {
  485. struct rds_iw_mr_pool *pool = rds_iwdev->mr_pool;
  486. if (pool)
  487. rds_iw_flush_mr_pool(pool, 0);
  488. }
  489. }
  490. void *rds_iw_get_mr(struct scatterlist *sg, unsigned long nents,
  491. struct rds_sock *rs, u32 *key_ret)
  492. {
  493. struct rds_iw_device *rds_iwdev;
  494. struct rds_iw_mr *ibmr = NULL;
  495. struct rdma_cm_id *cm_id;
  496. struct sockaddr_in src = {
  497. .sin_addr.s_addr = rs->rs_bound_addr,
  498. .sin_port = rs->rs_bound_port,
  499. };
  500. struct sockaddr_in dst = {
  501. .sin_addr.s_addr = rs->rs_conn_addr,
  502. .sin_port = rs->rs_conn_port,
  503. };
  504. int ret;
  505. ret = rds_iw_get_device(&src, &dst, &rds_iwdev, &cm_id);
  506. if (ret || !cm_id) {
  507. ret = -ENODEV;
  508. goto out;
  509. }
  510. if (!rds_iwdev->mr_pool) {
  511. ret = -ENODEV;
  512. goto out;
  513. }
  514. ibmr = rds_iw_alloc_mr(rds_iwdev);
  515. if (IS_ERR(ibmr))
  516. return ibmr;
  517. ibmr->cm_id = cm_id;
  518. ibmr->device = rds_iwdev;
  519. ret = rds_iw_map_fastreg(rds_iwdev->mr_pool, ibmr, sg, nents);
  520. if (ret == 0)
  521. *key_ret = ibmr->mr->rkey;
  522. else
  523. printk(KERN_WARNING "RDS/IW: failed to map mr (errno=%d)\n", ret);
  524. out:
  525. if (ret) {
  526. if (ibmr)
  527. rds_iw_free_mr(ibmr, 0);
  528. ibmr = ERR_PTR(ret);
  529. }
  530. return ibmr;
  531. }
  532. /*
  533. * iWARP fastreg handling
  534. *
  535. * The life cycle of a fastreg registration is a bit different from
  536. * FMRs.
  537. * The idea behind fastreg is to have one MR, to which we bind different
  538. * mappings over time. To avoid stalling on the expensive map and invalidate
  539. * operations, these operations are pipelined on the same send queue on
  540. * which we want to send the message containing the r_key.
  541. *
  542. * This creates a bit of a problem for us, as we do not have the destination
  543. * IP in GET_MR, so the connection must be setup prior to the GET_MR call for
  544. * RDMA to be correctly setup. If a fastreg request is present, rds_iw_xmit
  545. * will try to queue a LOCAL_INV (if needed) and a FAST_REG_MR work request
  546. * before queuing the SEND. When completions for these arrive, they are
  547. * dispatched to the MR has a bit set showing that RDMa can be performed.
  548. *
  549. * There is another interesting aspect that's related to invalidation.
  550. * The application can request that a mapping is invalidated in FREE_MR.
  551. * The expectation there is that this invalidation step includes ALL
  552. * PREVIOUSLY FREED MRs.
  553. */
  554. static int rds_iw_init_fastreg(struct rds_iw_mr_pool *pool,
  555. struct rds_iw_mr *ibmr)
  556. {
  557. struct rds_iw_device *rds_iwdev = pool->device;
  558. struct ib_fast_reg_page_list *page_list = NULL;
  559. struct ib_mr *mr;
  560. int err;
  561. mr = ib_alloc_fast_reg_mr(rds_iwdev->pd, pool->max_message_size);
  562. if (IS_ERR(mr)) {
  563. err = PTR_ERR(mr);
  564. printk(KERN_WARNING "RDS/IW: ib_alloc_fast_reg_mr failed (err=%d)\n", err);
  565. return err;
  566. }
  567. /* FIXME - this is overkill, but mapping->m_sg.dma_len/mapping->m_sg.dma_npages
  568. * is not filled in.
  569. */
  570. page_list = ib_alloc_fast_reg_page_list(rds_iwdev->dev, pool->max_message_size);
  571. if (IS_ERR(page_list)) {
  572. err = PTR_ERR(page_list);
  573. printk(KERN_WARNING "RDS/IW: ib_alloc_fast_reg_page_list failed (err=%d)\n", err);
  574. ib_dereg_mr(mr);
  575. return err;
  576. }
  577. ibmr->page_list = page_list;
  578. ibmr->mr = mr;
  579. return 0;
  580. }
  581. static int rds_iw_rdma_build_fastreg(struct rds_iw_mapping *mapping)
  582. {
  583. struct rds_iw_mr *ibmr = mapping->m_mr;
  584. struct ib_send_wr f_wr, *failed_wr;
  585. int ret;
  586. /*
  587. * Perform a WR for the fast_reg_mr. Each individual page
  588. * in the sg list is added to the fast reg page list and placed
  589. * inside the fast_reg_mr WR. The key used is a rolling 8bit
  590. * counter, which should guarantee uniqueness.
  591. */
  592. ib_update_fast_reg_key(ibmr->mr, ibmr->remap_count++);
  593. mapping->m_rkey = ibmr->mr->rkey;
  594. memset(&f_wr, 0, sizeof(f_wr));
  595. f_wr.wr_id = RDS_IW_FAST_REG_WR_ID;
  596. f_wr.opcode = IB_WR_FAST_REG_MR;
  597. f_wr.wr.fast_reg.length = mapping->m_sg.bytes;
  598. f_wr.wr.fast_reg.rkey = mapping->m_rkey;
  599. f_wr.wr.fast_reg.page_list = ibmr->page_list;
  600. f_wr.wr.fast_reg.page_list_len = mapping->m_sg.dma_len;
  601. f_wr.wr.fast_reg.page_shift = PAGE_SHIFT;
  602. f_wr.wr.fast_reg.access_flags = IB_ACCESS_LOCAL_WRITE |
  603. IB_ACCESS_REMOTE_READ |
  604. IB_ACCESS_REMOTE_WRITE;
  605. f_wr.wr.fast_reg.iova_start = 0;
  606. f_wr.send_flags = IB_SEND_SIGNALED;
  607. failed_wr = &f_wr;
  608. ret = ib_post_send(ibmr->cm_id->qp, &f_wr, &failed_wr);
  609. BUG_ON(failed_wr != &f_wr);
  610. if (ret)
  611. printk_ratelimited(KERN_WARNING "RDS/IW: %s:%d ib_post_send returned %d\n",
  612. __func__, __LINE__, ret);
  613. return ret;
  614. }
  615. static int rds_iw_rdma_fastreg_inv(struct rds_iw_mr *ibmr)
  616. {
  617. struct ib_send_wr s_wr, *failed_wr;
  618. int ret = 0;
  619. if (!ibmr->cm_id->qp || !ibmr->mr)
  620. goto out;
  621. memset(&s_wr, 0, sizeof(s_wr));
  622. s_wr.wr_id = RDS_IW_LOCAL_INV_WR_ID;
  623. s_wr.opcode = IB_WR_LOCAL_INV;
  624. s_wr.ex.invalidate_rkey = ibmr->mr->rkey;
  625. s_wr.send_flags = IB_SEND_SIGNALED;
  626. failed_wr = &s_wr;
  627. ret = ib_post_send(ibmr->cm_id->qp, &s_wr, &failed_wr);
  628. if (ret) {
  629. printk_ratelimited(KERN_WARNING "RDS/IW: %s:%d ib_post_send returned %d\n",
  630. __func__, __LINE__, ret);
  631. goto out;
  632. }
  633. out:
  634. return ret;
  635. }
  636. static int rds_iw_map_fastreg(struct rds_iw_mr_pool *pool,
  637. struct rds_iw_mr *ibmr,
  638. struct scatterlist *sg,
  639. unsigned int sg_len)
  640. {
  641. struct rds_iw_device *rds_iwdev = pool->device;
  642. struct rds_iw_mapping *mapping = &ibmr->mapping;
  643. u64 *dma_pages;
  644. int i, ret = 0;
  645. rds_iw_set_scatterlist(&mapping->m_sg, sg, sg_len);
  646. dma_pages = rds_iw_map_scatterlist(rds_iwdev, &mapping->m_sg);
  647. if (IS_ERR(dma_pages)) {
  648. ret = PTR_ERR(dma_pages);
  649. dma_pages = NULL;
  650. goto out;
  651. }
  652. if (mapping->m_sg.dma_len > pool->max_message_size) {
  653. ret = -EMSGSIZE;
  654. goto out;
  655. }
  656. for (i = 0; i < mapping->m_sg.dma_npages; ++i)
  657. ibmr->page_list->page_list[i] = dma_pages[i];
  658. ret = rds_iw_rdma_build_fastreg(mapping);
  659. if (ret)
  660. goto out;
  661. rds_iw_stats_inc(s_iw_rdma_mr_used);
  662. out:
  663. kfree(dma_pages);
  664. return ret;
  665. }
  666. /*
  667. * "Free" a fastreg MR.
  668. */
  669. static void rds_iw_free_fastreg(struct rds_iw_mr_pool *pool,
  670. struct rds_iw_mr *ibmr)
  671. {
  672. unsigned long flags;
  673. int ret;
  674. if (!ibmr->mapping.m_sg.dma_len)
  675. return;
  676. ret = rds_iw_rdma_fastreg_inv(ibmr);
  677. if (ret)
  678. return;
  679. /* Try to post the LOCAL_INV WR to the queue. */
  680. spin_lock_irqsave(&pool->list_lock, flags);
  681. list_add_tail(&ibmr->mapping.m_list, &pool->dirty_list);
  682. atomic_add(ibmr->mapping.m_sg.len, &pool->free_pinned);
  683. atomic_inc(&pool->dirty_count);
  684. spin_unlock_irqrestore(&pool->list_lock, flags);
  685. }
  686. static unsigned int rds_iw_unmap_fastreg_list(struct rds_iw_mr_pool *pool,
  687. struct list_head *unmap_list,
  688. struct list_head *kill_list,
  689. int *unpinned)
  690. {
  691. struct rds_iw_mapping *mapping, *next;
  692. unsigned int ncleaned = 0;
  693. LIST_HEAD(laundered);
  694. /* Batched invalidation of fastreg MRs.
  695. * Why do we do it this way, even though we could pipeline unmap
  696. * and remap? The reason is the application semantics - when the
  697. * application requests an invalidation of MRs, it expects all
  698. * previously released R_Keys to become invalid.
  699. *
  700. * If we implement MR reuse naively, we risk memory corruption
  701. * (this has actually been observed). So the default behavior
  702. * requires that a MR goes through an explicit unmap operation before
  703. * we can reuse it again.
  704. *
  705. * We could probably improve on this a little, by allowing immediate
  706. * reuse of a MR on the same socket (eg you could add small
  707. * cache of unused MRs to strct rds_socket - GET_MR could grab one
  708. * of these without requiring an explicit invalidate).
  709. */
  710. while (!list_empty(unmap_list)) {
  711. unsigned long flags;
  712. spin_lock_irqsave(&pool->list_lock, flags);
  713. list_for_each_entry_safe(mapping, next, unmap_list, m_list) {
  714. *unpinned += mapping->m_sg.len;
  715. list_move(&mapping->m_list, &laundered);
  716. ncleaned++;
  717. }
  718. spin_unlock_irqrestore(&pool->list_lock, flags);
  719. }
  720. /* Move all laundered mappings back to the unmap list.
  721. * We do not kill any WRs right now - it doesn't seem the
  722. * fastreg API has a max_remap limit. */
  723. list_splice_init(&laundered, unmap_list);
  724. return ncleaned;
  725. }
  726. static void rds_iw_destroy_fastreg(struct rds_iw_mr_pool *pool,
  727. struct rds_iw_mr *ibmr)
  728. {
  729. if (ibmr->page_list)
  730. ib_free_fast_reg_page_list(ibmr->page_list);
  731. if (ibmr->mr)
  732. ib_dereg_mr(ibmr->mr);
  733. }