iw_recv.c 26 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/pci.h>
  36. #include <linux/dma-mapping.h>
  37. #include <rdma/rdma_cm.h>
  38. #include "rds.h"
  39. #include "iw.h"
  40. static struct kmem_cache *rds_iw_incoming_slab;
  41. static struct kmem_cache *rds_iw_frag_slab;
  42. static atomic_t rds_iw_allocation = ATOMIC_INIT(0);
  43. static void rds_iw_frag_drop_page(struct rds_page_frag *frag)
  44. {
  45. rdsdebug("frag %p page %p\n", frag, frag->f_page);
  46. __free_page(frag->f_page);
  47. frag->f_page = NULL;
  48. }
  49. static void rds_iw_frag_free(struct rds_page_frag *frag)
  50. {
  51. rdsdebug("frag %p page %p\n", frag, frag->f_page);
  52. BUG_ON(frag->f_page);
  53. kmem_cache_free(rds_iw_frag_slab, frag);
  54. }
  55. /*
  56. * We map a page at a time. Its fragments are posted in order. This
  57. * is called in fragment order as the fragments get send completion events.
  58. * Only the last frag in the page performs the unmapping.
  59. *
  60. * It's OK for ring cleanup to call this in whatever order it likes because
  61. * DMA is not in flight and so we can unmap while other ring entries still
  62. * hold page references in their frags.
  63. */
  64. static void rds_iw_recv_unmap_page(struct rds_iw_connection *ic,
  65. struct rds_iw_recv_work *recv)
  66. {
  67. struct rds_page_frag *frag = recv->r_frag;
  68. rdsdebug("recv %p frag %p page %p\n", recv, frag, frag->f_page);
  69. if (frag->f_mapped)
  70. ib_dma_unmap_page(ic->i_cm_id->device,
  71. frag->f_mapped,
  72. RDS_FRAG_SIZE, DMA_FROM_DEVICE);
  73. frag->f_mapped = 0;
  74. }
  75. void rds_iw_recv_init_ring(struct rds_iw_connection *ic)
  76. {
  77. struct rds_iw_recv_work *recv;
  78. u32 i;
  79. for (i = 0, recv = ic->i_recvs; i < ic->i_recv_ring.w_nr; i++, recv++) {
  80. struct ib_sge *sge;
  81. recv->r_iwinc = NULL;
  82. recv->r_frag = NULL;
  83. recv->r_wr.next = NULL;
  84. recv->r_wr.wr_id = i;
  85. recv->r_wr.sg_list = recv->r_sge;
  86. recv->r_wr.num_sge = RDS_IW_RECV_SGE;
  87. sge = rds_iw_data_sge(ic, recv->r_sge);
  88. sge->addr = 0;
  89. sge->length = RDS_FRAG_SIZE;
  90. sge->lkey = 0;
  91. sge = rds_iw_header_sge(ic, recv->r_sge);
  92. sge->addr = ic->i_recv_hdrs_dma + (i * sizeof(struct rds_header));
  93. sge->length = sizeof(struct rds_header);
  94. sge->lkey = 0;
  95. }
  96. }
  97. static void rds_iw_recv_clear_one(struct rds_iw_connection *ic,
  98. struct rds_iw_recv_work *recv)
  99. {
  100. if (recv->r_iwinc) {
  101. rds_inc_put(&recv->r_iwinc->ii_inc);
  102. recv->r_iwinc = NULL;
  103. }
  104. if (recv->r_frag) {
  105. rds_iw_recv_unmap_page(ic, recv);
  106. if (recv->r_frag->f_page)
  107. rds_iw_frag_drop_page(recv->r_frag);
  108. rds_iw_frag_free(recv->r_frag);
  109. recv->r_frag = NULL;
  110. }
  111. }
  112. void rds_iw_recv_clear_ring(struct rds_iw_connection *ic)
  113. {
  114. u32 i;
  115. for (i = 0; i < ic->i_recv_ring.w_nr; i++)
  116. rds_iw_recv_clear_one(ic, &ic->i_recvs[i]);
  117. if (ic->i_frag.f_page)
  118. rds_iw_frag_drop_page(&ic->i_frag);
  119. }
  120. static int rds_iw_recv_refill_one(struct rds_connection *conn,
  121. struct rds_iw_recv_work *recv,
  122. gfp_t kptr_gfp, gfp_t page_gfp)
  123. {
  124. struct rds_iw_connection *ic = conn->c_transport_data;
  125. dma_addr_t dma_addr;
  126. struct ib_sge *sge;
  127. int ret = -ENOMEM;
  128. if (!recv->r_iwinc) {
  129. if (!atomic_add_unless(&rds_iw_allocation, 1, rds_iw_sysctl_max_recv_allocation)) {
  130. rds_iw_stats_inc(s_iw_rx_alloc_limit);
  131. goto out;
  132. }
  133. recv->r_iwinc = kmem_cache_alloc(rds_iw_incoming_slab,
  134. kptr_gfp);
  135. if (!recv->r_iwinc) {
  136. atomic_dec(&rds_iw_allocation);
  137. goto out;
  138. }
  139. INIT_LIST_HEAD(&recv->r_iwinc->ii_frags);
  140. rds_inc_init(&recv->r_iwinc->ii_inc, conn, conn->c_faddr);
  141. }
  142. if (!recv->r_frag) {
  143. recv->r_frag = kmem_cache_alloc(rds_iw_frag_slab, kptr_gfp);
  144. if (!recv->r_frag)
  145. goto out;
  146. INIT_LIST_HEAD(&recv->r_frag->f_item);
  147. recv->r_frag->f_page = NULL;
  148. }
  149. if (!ic->i_frag.f_page) {
  150. ic->i_frag.f_page = alloc_page(page_gfp);
  151. if (!ic->i_frag.f_page)
  152. goto out;
  153. ic->i_frag.f_offset = 0;
  154. }
  155. dma_addr = ib_dma_map_page(ic->i_cm_id->device,
  156. ic->i_frag.f_page,
  157. ic->i_frag.f_offset,
  158. RDS_FRAG_SIZE,
  159. DMA_FROM_DEVICE);
  160. if (ib_dma_mapping_error(ic->i_cm_id->device, dma_addr))
  161. goto out;
  162. /*
  163. * Once we get the RDS_PAGE_LAST_OFF frag then rds_iw_frag_unmap()
  164. * must be called on this recv. This happens as completions hit
  165. * in order or on connection shutdown.
  166. */
  167. recv->r_frag->f_page = ic->i_frag.f_page;
  168. recv->r_frag->f_offset = ic->i_frag.f_offset;
  169. recv->r_frag->f_mapped = dma_addr;
  170. sge = rds_iw_data_sge(ic, recv->r_sge);
  171. sge->addr = dma_addr;
  172. sge->length = RDS_FRAG_SIZE;
  173. sge = rds_iw_header_sge(ic, recv->r_sge);
  174. sge->addr = ic->i_recv_hdrs_dma + (recv - ic->i_recvs) * sizeof(struct rds_header);
  175. sge->length = sizeof(struct rds_header);
  176. get_page(recv->r_frag->f_page);
  177. if (ic->i_frag.f_offset < RDS_PAGE_LAST_OFF) {
  178. ic->i_frag.f_offset += RDS_FRAG_SIZE;
  179. } else {
  180. put_page(ic->i_frag.f_page);
  181. ic->i_frag.f_page = NULL;
  182. ic->i_frag.f_offset = 0;
  183. }
  184. ret = 0;
  185. out:
  186. return ret;
  187. }
  188. /*
  189. * This tries to allocate and post unused work requests after making sure that
  190. * they have all the allocations they need to queue received fragments into
  191. * sockets. The i_recv_mutex is held here so that ring_alloc and _unalloc
  192. * pairs don't go unmatched.
  193. *
  194. * -1 is returned if posting fails due to temporary resource exhaustion.
  195. */
  196. int rds_iw_recv_refill(struct rds_connection *conn, gfp_t kptr_gfp,
  197. gfp_t page_gfp, int prefill)
  198. {
  199. struct rds_iw_connection *ic = conn->c_transport_data;
  200. struct rds_iw_recv_work *recv;
  201. struct ib_recv_wr *failed_wr;
  202. unsigned int posted = 0;
  203. int ret = 0;
  204. u32 pos;
  205. while ((prefill || rds_conn_up(conn)) &&
  206. rds_iw_ring_alloc(&ic->i_recv_ring, 1, &pos)) {
  207. if (pos >= ic->i_recv_ring.w_nr) {
  208. printk(KERN_NOTICE "Argh - ring alloc returned pos=%u\n",
  209. pos);
  210. ret = -EINVAL;
  211. break;
  212. }
  213. recv = &ic->i_recvs[pos];
  214. ret = rds_iw_recv_refill_one(conn, recv, kptr_gfp, page_gfp);
  215. if (ret) {
  216. ret = -1;
  217. break;
  218. }
  219. /* XXX when can this fail? */
  220. ret = ib_post_recv(ic->i_cm_id->qp, &recv->r_wr, &failed_wr);
  221. rdsdebug("recv %p iwinc %p page %p addr %lu ret %d\n", recv,
  222. recv->r_iwinc, recv->r_frag->f_page,
  223. (long) recv->r_frag->f_mapped, ret);
  224. if (ret) {
  225. rds_iw_conn_error(conn, "recv post on "
  226. "%pI4 returned %d, disconnecting and "
  227. "reconnecting\n", &conn->c_faddr,
  228. ret);
  229. ret = -1;
  230. break;
  231. }
  232. posted++;
  233. }
  234. /* We're doing flow control - update the window. */
  235. if (ic->i_flowctl && posted)
  236. rds_iw_advertise_credits(conn, posted);
  237. if (ret)
  238. rds_iw_ring_unalloc(&ic->i_recv_ring, 1);
  239. return ret;
  240. }
  241. static void rds_iw_inc_purge(struct rds_incoming *inc)
  242. {
  243. struct rds_iw_incoming *iwinc;
  244. struct rds_page_frag *frag;
  245. struct rds_page_frag *pos;
  246. iwinc = container_of(inc, struct rds_iw_incoming, ii_inc);
  247. rdsdebug("purging iwinc %p inc %p\n", iwinc, inc);
  248. list_for_each_entry_safe(frag, pos, &iwinc->ii_frags, f_item) {
  249. list_del_init(&frag->f_item);
  250. rds_iw_frag_drop_page(frag);
  251. rds_iw_frag_free(frag);
  252. }
  253. }
  254. void rds_iw_inc_free(struct rds_incoming *inc)
  255. {
  256. struct rds_iw_incoming *iwinc;
  257. iwinc = container_of(inc, struct rds_iw_incoming, ii_inc);
  258. rds_iw_inc_purge(inc);
  259. rdsdebug("freeing iwinc %p inc %p\n", iwinc, inc);
  260. BUG_ON(!list_empty(&iwinc->ii_frags));
  261. kmem_cache_free(rds_iw_incoming_slab, iwinc);
  262. atomic_dec(&rds_iw_allocation);
  263. BUG_ON(atomic_read(&rds_iw_allocation) < 0);
  264. }
  265. int rds_iw_inc_copy_to_user(struct rds_incoming *inc, struct iovec *first_iov,
  266. size_t size)
  267. {
  268. struct rds_iw_incoming *iwinc;
  269. struct rds_page_frag *frag;
  270. struct iovec *iov = first_iov;
  271. unsigned long to_copy;
  272. unsigned long frag_off = 0;
  273. unsigned long iov_off = 0;
  274. int copied = 0;
  275. int ret;
  276. u32 len;
  277. iwinc = container_of(inc, struct rds_iw_incoming, ii_inc);
  278. frag = list_entry(iwinc->ii_frags.next, struct rds_page_frag, f_item);
  279. len = be32_to_cpu(inc->i_hdr.h_len);
  280. while (copied < size && copied < len) {
  281. if (frag_off == RDS_FRAG_SIZE) {
  282. frag = list_entry(frag->f_item.next,
  283. struct rds_page_frag, f_item);
  284. frag_off = 0;
  285. }
  286. while (iov_off == iov->iov_len) {
  287. iov_off = 0;
  288. iov++;
  289. }
  290. to_copy = min(iov->iov_len - iov_off, RDS_FRAG_SIZE - frag_off);
  291. to_copy = min_t(size_t, to_copy, size - copied);
  292. to_copy = min_t(unsigned long, to_copy, len - copied);
  293. rdsdebug("%lu bytes to user [%p, %zu] + %lu from frag "
  294. "[%p, %lu] + %lu\n",
  295. to_copy, iov->iov_base, iov->iov_len, iov_off,
  296. frag->f_page, frag->f_offset, frag_off);
  297. /* XXX needs + offset for multiple recvs per page */
  298. ret = rds_page_copy_to_user(frag->f_page,
  299. frag->f_offset + frag_off,
  300. iov->iov_base + iov_off,
  301. to_copy);
  302. if (ret) {
  303. copied = ret;
  304. break;
  305. }
  306. iov_off += to_copy;
  307. frag_off += to_copy;
  308. copied += to_copy;
  309. }
  310. return copied;
  311. }
  312. /* ic starts out kzalloc()ed */
  313. void rds_iw_recv_init_ack(struct rds_iw_connection *ic)
  314. {
  315. struct ib_send_wr *wr = &ic->i_ack_wr;
  316. struct ib_sge *sge = &ic->i_ack_sge;
  317. sge->addr = ic->i_ack_dma;
  318. sge->length = sizeof(struct rds_header);
  319. sge->lkey = rds_iw_local_dma_lkey(ic);
  320. wr->sg_list = sge;
  321. wr->num_sge = 1;
  322. wr->opcode = IB_WR_SEND;
  323. wr->wr_id = RDS_IW_ACK_WR_ID;
  324. wr->send_flags = IB_SEND_SIGNALED | IB_SEND_SOLICITED;
  325. }
  326. /*
  327. * You'd think that with reliable IB connections you wouldn't need to ack
  328. * messages that have been received. The problem is that IB hardware generates
  329. * an ack message before it has DMAed the message into memory. This creates a
  330. * potential message loss if the HCA is disabled for any reason between when it
  331. * sends the ack and before the message is DMAed and processed. This is only a
  332. * potential issue if another HCA is available for fail-over.
  333. *
  334. * When the remote host receives our ack they'll free the sent message from
  335. * their send queue. To decrease the latency of this we always send an ack
  336. * immediately after we've received messages.
  337. *
  338. * For simplicity, we only have one ack in flight at a time. This puts
  339. * pressure on senders to have deep enough send queues to absorb the latency of
  340. * a single ack frame being in flight. This might not be good enough.
  341. *
  342. * This is implemented by have a long-lived send_wr and sge which point to a
  343. * statically allocated ack frame. This ack wr does not fall under the ring
  344. * accounting that the tx and rx wrs do. The QP attribute specifically makes
  345. * room for it beyond the ring size. Send completion notices its special
  346. * wr_id and avoids working with the ring in that case.
  347. */
  348. #ifndef KERNEL_HAS_ATOMIC64
  349. static void rds_iw_set_ack(struct rds_iw_connection *ic, u64 seq,
  350. int ack_required)
  351. {
  352. unsigned long flags;
  353. spin_lock_irqsave(&ic->i_ack_lock, flags);
  354. ic->i_ack_next = seq;
  355. if (ack_required)
  356. set_bit(IB_ACK_REQUESTED, &ic->i_ack_flags);
  357. spin_unlock_irqrestore(&ic->i_ack_lock, flags);
  358. }
  359. static u64 rds_iw_get_ack(struct rds_iw_connection *ic)
  360. {
  361. unsigned long flags;
  362. u64 seq;
  363. clear_bit(IB_ACK_REQUESTED, &ic->i_ack_flags);
  364. spin_lock_irqsave(&ic->i_ack_lock, flags);
  365. seq = ic->i_ack_next;
  366. spin_unlock_irqrestore(&ic->i_ack_lock, flags);
  367. return seq;
  368. }
  369. #else
  370. static void rds_iw_set_ack(struct rds_iw_connection *ic, u64 seq,
  371. int ack_required)
  372. {
  373. atomic64_set(&ic->i_ack_next, seq);
  374. if (ack_required) {
  375. smp_mb__before_clear_bit();
  376. set_bit(IB_ACK_REQUESTED, &ic->i_ack_flags);
  377. }
  378. }
  379. static u64 rds_iw_get_ack(struct rds_iw_connection *ic)
  380. {
  381. clear_bit(IB_ACK_REQUESTED, &ic->i_ack_flags);
  382. smp_mb__after_clear_bit();
  383. return atomic64_read(&ic->i_ack_next);
  384. }
  385. #endif
  386. static void rds_iw_send_ack(struct rds_iw_connection *ic, unsigned int adv_credits)
  387. {
  388. struct rds_header *hdr = ic->i_ack;
  389. struct ib_send_wr *failed_wr;
  390. u64 seq;
  391. int ret;
  392. seq = rds_iw_get_ack(ic);
  393. rdsdebug("send_ack: ic %p ack %llu\n", ic, (unsigned long long) seq);
  394. rds_message_populate_header(hdr, 0, 0, 0);
  395. hdr->h_ack = cpu_to_be64(seq);
  396. hdr->h_credit = adv_credits;
  397. rds_message_make_checksum(hdr);
  398. ic->i_ack_queued = jiffies;
  399. ret = ib_post_send(ic->i_cm_id->qp, &ic->i_ack_wr, &failed_wr);
  400. if (unlikely(ret)) {
  401. /* Failed to send. Release the WR, and
  402. * force another ACK.
  403. */
  404. clear_bit(IB_ACK_IN_FLIGHT, &ic->i_ack_flags);
  405. set_bit(IB_ACK_REQUESTED, &ic->i_ack_flags);
  406. rds_iw_stats_inc(s_iw_ack_send_failure);
  407. rds_iw_conn_error(ic->conn, "sending ack failed\n");
  408. } else
  409. rds_iw_stats_inc(s_iw_ack_sent);
  410. }
  411. /*
  412. * There are 3 ways of getting acknowledgements to the peer:
  413. * 1. We call rds_iw_attempt_ack from the recv completion handler
  414. * to send an ACK-only frame.
  415. * However, there can be only one such frame in the send queue
  416. * at any time, so we may have to postpone it.
  417. * 2. When another (data) packet is transmitted while there's
  418. * an ACK in the queue, we piggyback the ACK sequence number
  419. * on the data packet.
  420. * 3. If the ACK WR is done sending, we get called from the
  421. * send queue completion handler, and check whether there's
  422. * another ACK pending (postponed because the WR was on the
  423. * queue). If so, we transmit it.
  424. *
  425. * We maintain 2 variables:
  426. * - i_ack_flags, which keeps track of whether the ACK WR
  427. * is currently in the send queue or not (IB_ACK_IN_FLIGHT)
  428. * - i_ack_next, which is the last sequence number we received
  429. *
  430. * Potentially, send queue and receive queue handlers can run concurrently.
  431. * It would be nice to not have to use a spinlock to synchronize things,
  432. * but the one problem that rules this out is that 64bit updates are
  433. * not atomic on all platforms. Things would be a lot simpler if
  434. * we had atomic64 or maybe cmpxchg64 everywhere.
  435. *
  436. * Reconnecting complicates this picture just slightly. When we
  437. * reconnect, we may be seeing duplicate packets. The peer
  438. * is retransmitting them, because it hasn't seen an ACK for
  439. * them. It is important that we ACK these.
  440. *
  441. * ACK mitigation adds a header flag "ACK_REQUIRED"; any packet with
  442. * this flag set *MUST* be acknowledged immediately.
  443. */
  444. /*
  445. * When we get here, we're called from the recv queue handler.
  446. * Check whether we ought to transmit an ACK.
  447. */
  448. void rds_iw_attempt_ack(struct rds_iw_connection *ic)
  449. {
  450. unsigned int adv_credits;
  451. if (!test_bit(IB_ACK_REQUESTED, &ic->i_ack_flags))
  452. return;
  453. if (test_and_set_bit(IB_ACK_IN_FLIGHT, &ic->i_ack_flags)) {
  454. rds_iw_stats_inc(s_iw_ack_send_delayed);
  455. return;
  456. }
  457. /* Can we get a send credit? */
  458. if (!rds_iw_send_grab_credits(ic, 1, &adv_credits, 0, RDS_MAX_ADV_CREDIT)) {
  459. rds_iw_stats_inc(s_iw_tx_throttle);
  460. clear_bit(IB_ACK_IN_FLIGHT, &ic->i_ack_flags);
  461. return;
  462. }
  463. clear_bit(IB_ACK_REQUESTED, &ic->i_ack_flags);
  464. rds_iw_send_ack(ic, adv_credits);
  465. }
  466. /*
  467. * We get here from the send completion handler, when the
  468. * adapter tells us the ACK frame was sent.
  469. */
  470. void rds_iw_ack_send_complete(struct rds_iw_connection *ic)
  471. {
  472. clear_bit(IB_ACK_IN_FLIGHT, &ic->i_ack_flags);
  473. rds_iw_attempt_ack(ic);
  474. }
  475. /*
  476. * This is called by the regular xmit code when it wants to piggyback
  477. * an ACK on an outgoing frame.
  478. */
  479. u64 rds_iw_piggyb_ack(struct rds_iw_connection *ic)
  480. {
  481. if (test_and_clear_bit(IB_ACK_REQUESTED, &ic->i_ack_flags))
  482. rds_iw_stats_inc(s_iw_ack_send_piggybacked);
  483. return rds_iw_get_ack(ic);
  484. }
  485. /*
  486. * It's kind of lame that we're copying from the posted receive pages into
  487. * long-lived bitmaps. We could have posted the bitmaps and rdma written into
  488. * them. But receiving new congestion bitmaps should be a *rare* event, so
  489. * hopefully we won't need to invest that complexity in making it more
  490. * efficient. By copying we can share a simpler core with TCP which has to
  491. * copy.
  492. */
  493. static void rds_iw_cong_recv(struct rds_connection *conn,
  494. struct rds_iw_incoming *iwinc)
  495. {
  496. struct rds_cong_map *map;
  497. unsigned int map_off;
  498. unsigned int map_page;
  499. struct rds_page_frag *frag;
  500. unsigned long frag_off;
  501. unsigned long to_copy;
  502. unsigned long copied;
  503. uint64_t uncongested = 0;
  504. void *addr;
  505. /* catch completely corrupt packets */
  506. if (be32_to_cpu(iwinc->ii_inc.i_hdr.h_len) != RDS_CONG_MAP_BYTES)
  507. return;
  508. map = conn->c_fcong;
  509. map_page = 0;
  510. map_off = 0;
  511. frag = list_entry(iwinc->ii_frags.next, struct rds_page_frag, f_item);
  512. frag_off = 0;
  513. copied = 0;
  514. while (copied < RDS_CONG_MAP_BYTES) {
  515. uint64_t *src, *dst;
  516. unsigned int k;
  517. to_copy = min(RDS_FRAG_SIZE - frag_off, PAGE_SIZE - map_off);
  518. BUG_ON(to_copy & 7); /* Must be 64bit aligned. */
  519. addr = kmap_atomic(frag->f_page);
  520. src = addr + frag_off;
  521. dst = (void *)map->m_page_addrs[map_page] + map_off;
  522. for (k = 0; k < to_copy; k += 8) {
  523. /* Record ports that became uncongested, ie
  524. * bits that changed from 0 to 1. */
  525. uncongested |= ~(*src) & *dst;
  526. *dst++ = *src++;
  527. }
  528. kunmap_atomic(addr);
  529. copied += to_copy;
  530. map_off += to_copy;
  531. if (map_off == PAGE_SIZE) {
  532. map_off = 0;
  533. map_page++;
  534. }
  535. frag_off += to_copy;
  536. if (frag_off == RDS_FRAG_SIZE) {
  537. frag = list_entry(frag->f_item.next,
  538. struct rds_page_frag, f_item);
  539. frag_off = 0;
  540. }
  541. }
  542. /* the congestion map is in little endian order */
  543. uncongested = le64_to_cpu(uncongested);
  544. rds_cong_map_updated(map, uncongested);
  545. }
  546. /*
  547. * Rings are posted with all the allocations they'll need to queue the
  548. * incoming message to the receiving socket so this can't fail.
  549. * All fragments start with a header, so we can make sure we're not receiving
  550. * garbage, and we can tell a small 8 byte fragment from an ACK frame.
  551. */
  552. struct rds_iw_ack_state {
  553. u64 ack_next;
  554. u64 ack_recv;
  555. unsigned int ack_required:1;
  556. unsigned int ack_next_valid:1;
  557. unsigned int ack_recv_valid:1;
  558. };
  559. static void rds_iw_process_recv(struct rds_connection *conn,
  560. struct rds_iw_recv_work *recv, u32 byte_len,
  561. struct rds_iw_ack_state *state)
  562. {
  563. struct rds_iw_connection *ic = conn->c_transport_data;
  564. struct rds_iw_incoming *iwinc = ic->i_iwinc;
  565. struct rds_header *ihdr, *hdr;
  566. /* XXX shut down the connection if port 0,0 are seen? */
  567. rdsdebug("ic %p iwinc %p recv %p byte len %u\n", ic, iwinc, recv,
  568. byte_len);
  569. if (byte_len < sizeof(struct rds_header)) {
  570. rds_iw_conn_error(conn, "incoming message "
  571. "from %pI4 didn't include a "
  572. "header, disconnecting and "
  573. "reconnecting\n",
  574. &conn->c_faddr);
  575. return;
  576. }
  577. byte_len -= sizeof(struct rds_header);
  578. ihdr = &ic->i_recv_hdrs[recv - ic->i_recvs];
  579. /* Validate the checksum. */
  580. if (!rds_message_verify_checksum(ihdr)) {
  581. rds_iw_conn_error(conn, "incoming message "
  582. "from %pI4 has corrupted header - "
  583. "forcing a reconnect\n",
  584. &conn->c_faddr);
  585. rds_stats_inc(s_recv_drop_bad_checksum);
  586. return;
  587. }
  588. /* Process the ACK sequence which comes with every packet */
  589. state->ack_recv = be64_to_cpu(ihdr->h_ack);
  590. state->ack_recv_valid = 1;
  591. /* Process the credits update if there was one */
  592. if (ihdr->h_credit)
  593. rds_iw_send_add_credits(conn, ihdr->h_credit);
  594. if (ihdr->h_sport == 0 && ihdr->h_dport == 0 && byte_len == 0) {
  595. /* This is an ACK-only packet. The fact that it gets
  596. * special treatment here is that historically, ACKs
  597. * were rather special beasts.
  598. */
  599. rds_iw_stats_inc(s_iw_ack_received);
  600. /*
  601. * Usually the frags make their way on to incs and are then freed as
  602. * the inc is freed. We don't go that route, so we have to drop the
  603. * page ref ourselves. We can't just leave the page on the recv
  604. * because that confuses the dma mapping of pages and each recv's use
  605. * of a partial page. We can leave the frag, though, it will be
  606. * reused.
  607. *
  608. * FIXME: Fold this into the code path below.
  609. */
  610. rds_iw_frag_drop_page(recv->r_frag);
  611. return;
  612. }
  613. /*
  614. * If we don't already have an inc on the connection then this
  615. * fragment has a header and starts a message.. copy its header
  616. * into the inc and save the inc so we can hang upcoming fragments
  617. * off its list.
  618. */
  619. if (!iwinc) {
  620. iwinc = recv->r_iwinc;
  621. recv->r_iwinc = NULL;
  622. ic->i_iwinc = iwinc;
  623. hdr = &iwinc->ii_inc.i_hdr;
  624. memcpy(hdr, ihdr, sizeof(*hdr));
  625. ic->i_recv_data_rem = be32_to_cpu(hdr->h_len);
  626. rdsdebug("ic %p iwinc %p rem %u flag 0x%x\n", ic, iwinc,
  627. ic->i_recv_data_rem, hdr->h_flags);
  628. } else {
  629. hdr = &iwinc->ii_inc.i_hdr;
  630. /* We can't just use memcmp here; fragments of a
  631. * single message may carry different ACKs */
  632. if (hdr->h_sequence != ihdr->h_sequence ||
  633. hdr->h_len != ihdr->h_len ||
  634. hdr->h_sport != ihdr->h_sport ||
  635. hdr->h_dport != ihdr->h_dport) {
  636. rds_iw_conn_error(conn,
  637. "fragment header mismatch; forcing reconnect\n");
  638. return;
  639. }
  640. }
  641. list_add_tail(&recv->r_frag->f_item, &iwinc->ii_frags);
  642. recv->r_frag = NULL;
  643. if (ic->i_recv_data_rem > RDS_FRAG_SIZE)
  644. ic->i_recv_data_rem -= RDS_FRAG_SIZE;
  645. else {
  646. ic->i_recv_data_rem = 0;
  647. ic->i_iwinc = NULL;
  648. if (iwinc->ii_inc.i_hdr.h_flags == RDS_FLAG_CONG_BITMAP)
  649. rds_iw_cong_recv(conn, iwinc);
  650. else {
  651. rds_recv_incoming(conn, conn->c_faddr, conn->c_laddr,
  652. &iwinc->ii_inc, GFP_ATOMIC);
  653. state->ack_next = be64_to_cpu(hdr->h_sequence);
  654. state->ack_next_valid = 1;
  655. }
  656. /* Evaluate the ACK_REQUIRED flag *after* we received
  657. * the complete frame, and after bumping the next_rx
  658. * sequence. */
  659. if (hdr->h_flags & RDS_FLAG_ACK_REQUIRED) {
  660. rds_stats_inc(s_recv_ack_required);
  661. state->ack_required = 1;
  662. }
  663. rds_inc_put(&iwinc->ii_inc);
  664. }
  665. }
  666. /*
  667. * Plucking the oldest entry from the ring can be done concurrently with
  668. * the thread refilling the ring. Each ring operation is protected by
  669. * spinlocks and the transient state of refilling doesn't change the
  670. * recording of which entry is oldest.
  671. *
  672. * This relies on IB only calling one cq comp_handler for each cq so that
  673. * there will only be one caller of rds_recv_incoming() per RDS connection.
  674. */
  675. void rds_iw_recv_cq_comp_handler(struct ib_cq *cq, void *context)
  676. {
  677. struct rds_connection *conn = context;
  678. struct rds_iw_connection *ic = conn->c_transport_data;
  679. rdsdebug("conn %p cq %p\n", conn, cq);
  680. rds_iw_stats_inc(s_iw_rx_cq_call);
  681. tasklet_schedule(&ic->i_recv_tasklet);
  682. }
  683. static inline void rds_poll_cq(struct rds_iw_connection *ic,
  684. struct rds_iw_ack_state *state)
  685. {
  686. struct rds_connection *conn = ic->conn;
  687. struct ib_wc wc;
  688. struct rds_iw_recv_work *recv;
  689. while (ib_poll_cq(ic->i_recv_cq, 1, &wc) > 0) {
  690. rdsdebug("wc wr_id 0x%llx status %u byte_len %u imm_data %u\n",
  691. (unsigned long long)wc.wr_id, wc.status, wc.byte_len,
  692. be32_to_cpu(wc.ex.imm_data));
  693. rds_iw_stats_inc(s_iw_rx_cq_event);
  694. recv = &ic->i_recvs[rds_iw_ring_oldest(&ic->i_recv_ring)];
  695. rds_iw_recv_unmap_page(ic, recv);
  696. /*
  697. * Also process recvs in connecting state because it is possible
  698. * to get a recv completion _before_ the rdmacm ESTABLISHED
  699. * event is processed.
  700. */
  701. if (rds_conn_up(conn) || rds_conn_connecting(conn)) {
  702. /* We expect errors as the qp is drained during shutdown */
  703. if (wc.status == IB_WC_SUCCESS) {
  704. rds_iw_process_recv(conn, recv, wc.byte_len, state);
  705. } else {
  706. rds_iw_conn_error(conn, "recv completion on "
  707. "%pI4 had status %u, disconnecting and "
  708. "reconnecting\n", &conn->c_faddr,
  709. wc.status);
  710. }
  711. }
  712. rds_iw_ring_free(&ic->i_recv_ring, 1);
  713. }
  714. }
  715. void rds_iw_recv_tasklet_fn(unsigned long data)
  716. {
  717. struct rds_iw_connection *ic = (struct rds_iw_connection *) data;
  718. struct rds_connection *conn = ic->conn;
  719. struct rds_iw_ack_state state = { 0, };
  720. rds_poll_cq(ic, &state);
  721. ib_req_notify_cq(ic->i_recv_cq, IB_CQ_SOLICITED);
  722. rds_poll_cq(ic, &state);
  723. if (state.ack_next_valid)
  724. rds_iw_set_ack(ic, state.ack_next, state.ack_required);
  725. if (state.ack_recv_valid && state.ack_recv > ic->i_ack_recv) {
  726. rds_send_drop_acked(conn, state.ack_recv, NULL);
  727. ic->i_ack_recv = state.ack_recv;
  728. }
  729. if (rds_conn_up(conn))
  730. rds_iw_attempt_ack(ic);
  731. /* If we ever end up with a really empty receive ring, we're
  732. * in deep trouble, as the sender will definitely see RNR
  733. * timeouts. */
  734. if (rds_iw_ring_empty(&ic->i_recv_ring))
  735. rds_iw_stats_inc(s_iw_rx_ring_empty);
  736. /*
  737. * If the ring is running low, then schedule the thread to refill.
  738. */
  739. if (rds_iw_ring_low(&ic->i_recv_ring))
  740. queue_delayed_work(rds_wq, &conn->c_recv_w, 0);
  741. }
  742. int rds_iw_recv(struct rds_connection *conn)
  743. {
  744. struct rds_iw_connection *ic = conn->c_transport_data;
  745. int ret = 0;
  746. rdsdebug("conn %p\n", conn);
  747. /*
  748. * If we get a temporary posting failure in this context then
  749. * we're really low and we want the caller to back off for a bit.
  750. */
  751. mutex_lock(&ic->i_recv_mutex);
  752. if (rds_iw_recv_refill(conn, GFP_KERNEL, GFP_HIGHUSER, 0))
  753. ret = -ENOMEM;
  754. else
  755. rds_iw_stats_inc(s_iw_rx_refill_from_thread);
  756. mutex_unlock(&ic->i_recv_mutex);
  757. if (rds_conn_up(conn))
  758. rds_iw_attempt_ack(ic);
  759. return ret;
  760. }
  761. int rds_iw_recv_init(void)
  762. {
  763. struct sysinfo si;
  764. int ret = -ENOMEM;
  765. /* Default to 30% of all available RAM for recv memory */
  766. si_meminfo(&si);
  767. rds_iw_sysctl_max_recv_allocation = si.totalram / 3 * PAGE_SIZE / RDS_FRAG_SIZE;
  768. rds_iw_incoming_slab = kmem_cache_create("rds_iw_incoming",
  769. sizeof(struct rds_iw_incoming),
  770. 0, 0, NULL);
  771. if (!rds_iw_incoming_slab)
  772. goto out;
  773. rds_iw_frag_slab = kmem_cache_create("rds_iw_frag",
  774. sizeof(struct rds_page_frag),
  775. 0, 0, NULL);
  776. if (!rds_iw_frag_slab)
  777. kmem_cache_destroy(rds_iw_incoming_slab);
  778. else
  779. ret = 0;
  780. out:
  781. return ret;
  782. }
  783. void rds_iw_recv_exit(void)
  784. {
  785. kmem_cache_destroy(rds_iw_incoming_slab);
  786. kmem_cache_destroy(rds_iw_frag_slab);
  787. }