smc_tx.c 16 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Shared Memory Communications over RDMA (SMC-R) and RoCE
  4. *
  5. * Manage send buffer.
  6. * Producer:
  7. * Copy user space data into send buffer, if send buffer space available.
  8. * Consumer:
  9. * Trigger RDMA write into RMBE of peer and send CDC, if RMBE space available.
  10. *
  11. * Copyright IBM Corp. 2016
  12. *
  13. * Author(s): Ursula Braun <ubraun@linux.vnet.ibm.com>
  14. */
  15. #include <linux/net.h>
  16. #include <linux/rcupdate.h>
  17. #include <linux/workqueue.h>
  18. #include <linux/sched/signal.h>
  19. #include <net/sock.h>
  20. #include <net/tcp.h>
  21. #include "smc.h"
  22. #include "smc_wr.h"
  23. #include "smc_cdc.h"
  24. #include "smc_tx.h"
  25. #define SMC_TX_WORK_DELAY HZ
  26. #define SMC_TX_CORK_DELAY (HZ >> 2) /* 250 ms */
  27. /***************************** sndbuf producer *******************************/
  28. /* callback implementation for sk.sk_write_space()
  29. * to wakeup sndbuf producers that blocked with smc_tx_wait().
  30. * called under sk_socket lock.
  31. */
  32. static void smc_tx_write_space(struct sock *sk)
  33. {
  34. struct socket *sock = sk->sk_socket;
  35. struct smc_sock *smc = smc_sk(sk);
  36. struct socket_wq *wq;
  37. /* similar to sk_stream_write_space */
  38. if (atomic_read(&smc->conn.sndbuf_space) && sock) {
  39. clear_bit(SOCK_NOSPACE, &sock->flags);
  40. rcu_read_lock();
  41. wq = rcu_dereference(sk->sk_wq);
  42. if (skwq_has_sleeper(wq))
  43. wake_up_interruptible_poll(&wq->wait,
  44. EPOLLOUT | EPOLLWRNORM |
  45. EPOLLWRBAND);
  46. if (wq && wq->fasync_list && !(sk->sk_shutdown & SEND_SHUTDOWN))
  47. sock_wake_async(wq, SOCK_WAKE_SPACE, POLL_OUT);
  48. rcu_read_unlock();
  49. }
  50. }
  51. /* Wakeup sndbuf producers that blocked with smc_tx_wait().
  52. * Cf. tcp_data_snd_check()=>tcp_check_space()=>tcp_new_space().
  53. */
  54. void smc_tx_sndbuf_nonfull(struct smc_sock *smc)
  55. {
  56. if (smc->sk.sk_socket &&
  57. test_bit(SOCK_NOSPACE, &smc->sk.sk_socket->flags))
  58. smc->sk.sk_write_space(&smc->sk);
  59. }
  60. /* blocks sndbuf producer until at least one byte of free space available
  61. * or urgent Byte was consumed
  62. */
  63. static int smc_tx_wait(struct smc_sock *smc, int flags)
  64. {
  65. DEFINE_WAIT_FUNC(wait, woken_wake_function);
  66. struct smc_connection *conn = &smc->conn;
  67. struct sock *sk = &smc->sk;
  68. bool noblock;
  69. long timeo;
  70. int rc = 0;
  71. /* similar to sk_stream_wait_memory */
  72. timeo = sock_sndtimeo(sk, flags & MSG_DONTWAIT);
  73. noblock = timeo ? false : true;
  74. add_wait_queue(sk_sleep(sk), &wait);
  75. while (1) {
  76. sk_set_bit(SOCKWQ_ASYNC_NOSPACE, sk);
  77. if (sk->sk_err ||
  78. (sk->sk_shutdown & SEND_SHUTDOWN) ||
  79. conn->local_tx_ctrl.conn_state_flags.peer_done_writing) {
  80. rc = -EPIPE;
  81. break;
  82. }
  83. if (smc_cdc_rxed_any_close(conn)) {
  84. rc = -ECONNRESET;
  85. break;
  86. }
  87. if (!timeo) {
  88. if (noblock)
  89. set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
  90. rc = -EAGAIN;
  91. break;
  92. }
  93. if (signal_pending(current)) {
  94. rc = sock_intr_errno(timeo);
  95. break;
  96. }
  97. sk_clear_bit(SOCKWQ_ASYNC_NOSPACE, sk);
  98. if (atomic_read(&conn->sndbuf_space) && !conn->urg_tx_pend)
  99. break; /* at least 1 byte of free & no urgent data */
  100. set_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
  101. sk_wait_event(sk, &timeo,
  102. sk->sk_err ||
  103. (sk->sk_shutdown & SEND_SHUTDOWN) ||
  104. smc_cdc_rxed_any_close(conn) ||
  105. (atomic_read(&conn->sndbuf_space) &&
  106. !conn->urg_tx_pend),
  107. &wait);
  108. }
  109. remove_wait_queue(sk_sleep(sk), &wait);
  110. return rc;
  111. }
  112. static bool smc_tx_is_corked(struct smc_sock *smc)
  113. {
  114. struct tcp_sock *tp = tcp_sk(smc->clcsock->sk);
  115. return (tp->nonagle & TCP_NAGLE_CORK) ? true : false;
  116. }
  117. /* sndbuf producer: main API called by socket layer.
  118. * called under sock lock.
  119. */
  120. int smc_tx_sendmsg(struct smc_sock *smc, struct msghdr *msg, size_t len)
  121. {
  122. size_t copylen, send_done = 0, send_remaining = len;
  123. size_t chunk_len, chunk_off, chunk_len_sum;
  124. struct smc_connection *conn = &smc->conn;
  125. union smc_host_cursor prep;
  126. struct sock *sk = &smc->sk;
  127. char *sndbuf_base;
  128. int tx_cnt_prep;
  129. int writespace;
  130. int rc, chunk;
  131. /* This should be in poll */
  132. sk_clear_bit(SOCKWQ_ASYNC_NOSPACE, sk);
  133. if (sk->sk_err || (sk->sk_shutdown & SEND_SHUTDOWN)) {
  134. rc = -EPIPE;
  135. goto out_err;
  136. }
  137. while (msg_data_left(msg)) {
  138. if (sk->sk_state == SMC_INIT)
  139. return -ENOTCONN;
  140. if (smc->sk.sk_shutdown & SEND_SHUTDOWN ||
  141. (smc->sk.sk_err == ECONNABORTED) ||
  142. conn->local_tx_ctrl.conn_state_flags.peer_conn_abort)
  143. return -EPIPE;
  144. if (smc_cdc_rxed_any_close(conn))
  145. return send_done ?: -ECONNRESET;
  146. if (msg->msg_flags & MSG_OOB)
  147. conn->local_tx_ctrl.prod_flags.urg_data_pending = 1;
  148. if (!atomic_read(&conn->sndbuf_space) || conn->urg_tx_pend) {
  149. rc = smc_tx_wait(smc, msg->msg_flags);
  150. if (rc) {
  151. if (send_done)
  152. return send_done;
  153. goto out_err;
  154. }
  155. continue;
  156. }
  157. /* initialize variables for 1st iteration of subsequent loop */
  158. /* could be just 1 byte, even after smc_tx_wait above */
  159. writespace = atomic_read(&conn->sndbuf_space);
  160. /* not more than what user space asked for */
  161. copylen = min_t(size_t, send_remaining, writespace);
  162. /* determine start of sndbuf */
  163. sndbuf_base = conn->sndbuf_desc->cpu_addr;
  164. smc_curs_write(&prep,
  165. smc_curs_read(&conn->tx_curs_prep, conn),
  166. conn);
  167. tx_cnt_prep = prep.count;
  168. /* determine chunks where to write into sndbuf */
  169. /* either unwrapped case, or 1st chunk of wrapped case */
  170. chunk_len = min_t(size_t, copylen, conn->sndbuf_desc->len -
  171. tx_cnt_prep);
  172. chunk_len_sum = chunk_len;
  173. chunk_off = tx_cnt_prep;
  174. smc_sndbuf_sync_sg_for_cpu(conn);
  175. for (chunk = 0; chunk < 2; chunk++) {
  176. rc = memcpy_from_msg(sndbuf_base + chunk_off,
  177. msg, chunk_len);
  178. if (rc) {
  179. smc_sndbuf_sync_sg_for_device(conn);
  180. if (send_done)
  181. return send_done;
  182. goto out_err;
  183. }
  184. send_done += chunk_len;
  185. send_remaining -= chunk_len;
  186. if (chunk_len_sum == copylen)
  187. break; /* either on 1st or 2nd iteration */
  188. /* prepare next (== 2nd) iteration */
  189. chunk_len = copylen - chunk_len; /* remainder */
  190. chunk_len_sum += chunk_len;
  191. chunk_off = 0; /* modulo offset in send ring buffer */
  192. }
  193. smc_sndbuf_sync_sg_for_device(conn);
  194. /* update cursors */
  195. smc_curs_add(conn->sndbuf_desc->len, &prep, copylen);
  196. smc_curs_write(&conn->tx_curs_prep,
  197. smc_curs_read(&prep, conn),
  198. conn);
  199. /* increased in send tasklet smc_cdc_tx_handler() */
  200. smp_mb__before_atomic();
  201. atomic_sub(copylen, &conn->sndbuf_space);
  202. /* guarantee 0 <= sndbuf_space <= sndbuf_desc->len */
  203. smp_mb__after_atomic();
  204. /* since we just produced more new data into sndbuf,
  205. * trigger sndbuf consumer: RDMA write into peer RMBE and CDC
  206. */
  207. if ((msg->msg_flags & MSG_OOB) && !send_remaining)
  208. conn->urg_tx_pend = true;
  209. if ((msg->msg_flags & MSG_MORE || smc_tx_is_corked(smc)) &&
  210. (atomic_read(&conn->sndbuf_space) >
  211. (conn->sndbuf_desc->len >> 1)))
  212. /* for a corked socket defer the RDMA writes if there
  213. * is still sufficient sndbuf_space available
  214. */
  215. schedule_delayed_work(&conn->tx_work,
  216. SMC_TX_CORK_DELAY);
  217. else
  218. smc_tx_sndbuf_nonempty(conn);
  219. } /* while (msg_data_left(msg)) */
  220. return send_done;
  221. out_err:
  222. rc = sk_stream_error(sk, msg->msg_flags, rc);
  223. /* make sure we wake any epoll edge trigger waiter */
  224. if (unlikely(rc == -EAGAIN))
  225. sk->sk_write_space(sk);
  226. return rc;
  227. }
  228. /***************************** sndbuf consumer *******************************/
  229. /* sndbuf consumer: actual data transfer of one target chunk with RDMA write */
  230. static int smc_tx_rdma_write(struct smc_connection *conn, int peer_rmbe_offset,
  231. int num_sges, struct ib_sge sges[])
  232. {
  233. struct smc_link_group *lgr = conn->lgr;
  234. struct ib_send_wr *failed_wr = NULL;
  235. struct ib_rdma_wr rdma_wr;
  236. struct smc_link *link;
  237. int rc;
  238. memset(&rdma_wr, 0, sizeof(rdma_wr));
  239. link = &lgr->lnk[SMC_SINGLE_LINK];
  240. rdma_wr.wr.wr_id = smc_wr_tx_get_next_wr_id(link);
  241. rdma_wr.wr.sg_list = sges;
  242. rdma_wr.wr.num_sge = num_sges;
  243. rdma_wr.wr.opcode = IB_WR_RDMA_WRITE;
  244. rdma_wr.remote_addr =
  245. lgr->rtokens[conn->rtoken_idx][SMC_SINGLE_LINK].dma_addr +
  246. /* RMBE within RMB */
  247. conn->tx_off +
  248. /* offset within RMBE */
  249. peer_rmbe_offset;
  250. rdma_wr.rkey = lgr->rtokens[conn->rtoken_idx][SMC_SINGLE_LINK].rkey;
  251. rc = ib_post_send(link->roce_qp, &rdma_wr.wr, &failed_wr);
  252. if (rc) {
  253. conn->local_tx_ctrl.conn_state_flags.peer_conn_abort = 1;
  254. smc_lgr_terminate(lgr);
  255. }
  256. return rc;
  257. }
  258. /* sndbuf consumer */
  259. static inline void smc_tx_advance_cursors(struct smc_connection *conn,
  260. union smc_host_cursor *prod,
  261. union smc_host_cursor *sent,
  262. size_t len)
  263. {
  264. smc_curs_add(conn->peer_rmbe_size, prod, len);
  265. /* increased in recv tasklet smc_cdc_msg_rcv() */
  266. smp_mb__before_atomic();
  267. /* data in flight reduces usable snd_wnd */
  268. atomic_sub(len, &conn->peer_rmbe_space);
  269. /* guarantee 0 <= peer_rmbe_space <= peer_rmbe_size */
  270. smp_mb__after_atomic();
  271. smc_curs_add(conn->sndbuf_desc->len, sent, len);
  272. }
  273. /* sndbuf consumer: prepare all necessary (src&dst) chunks of data transmit;
  274. * usable snd_wnd as max transmit
  275. */
  276. static int smc_tx_rdma_writes(struct smc_connection *conn)
  277. {
  278. size_t src_off, src_len, dst_off, dst_len; /* current chunk values */
  279. size_t len, dst_len_sum, src_len_sum, dstchunk, srcchunk;
  280. union smc_host_cursor sent, prep, prod, cons;
  281. struct ib_sge sges[SMC_IB_MAX_SEND_SGE];
  282. struct smc_link_group *lgr = conn->lgr;
  283. struct smc_cdc_producer_flags *pflags;
  284. int to_send, rmbespace;
  285. struct smc_link *link;
  286. dma_addr_t dma_addr;
  287. int num_sges;
  288. int rc;
  289. /* source: sndbuf */
  290. smc_curs_write(&sent, smc_curs_read(&conn->tx_curs_sent, conn), conn);
  291. smc_curs_write(&prep, smc_curs_read(&conn->tx_curs_prep, conn), conn);
  292. /* cf. wmem_alloc - (snd_max - snd_una) */
  293. to_send = smc_curs_diff(conn->sndbuf_desc->len, &sent, &prep);
  294. if (to_send <= 0)
  295. return 0;
  296. /* destination: RMBE */
  297. /* cf. snd_wnd */
  298. rmbespace = atomic_read(&conn->peer_rmbe_space);
  299. if (rmbespace <= 0)
  300. return 0;
  301. smc_curs_write(&prod,
  302. smc_curs_read(&conn->local_tx_ctrl.prod, conn),
  303. conn);
  304. smc_curs_write(&cons,
  305. smc_curs_read(&conn->local_rx_ctrl.cons, conn),
  306. conn);
  307. /* if usable snd_wnd closes ask peer to advertise once it opens again */
  308. pflags = &conn->local_tx_ctrl.prod_flags;
  309. pflags->write_blocked = (to_send >= rmbespace);
  310. /* cf. usable snd_wnd */
  311. len = min(to_send, rmbespace);
  312. /* initialize variables for first iteration of subsequent nested loop */
  313. link = &lgr->lnk[SMC_SINGLE_LINK];
  314. dst_off = prod.count;
  315. if (prod.wrap == cons.wrap) {
  316. /* the filled destination area is unwrapped,
  317. * hence the available free destination space is wrapped
  318. * and we need 2 destination chunks of sum len; start with 1st
  319. * which is limited by what's available in sndbuf
  320. */
  321. dst_len = min_t(size_t,
  322. conn->peer_rmbe_size - prod.count, len);
  323. } else {
  324. /* the filled destination area is wrapped,
  325. * hence the available free destination space is unwrapped
  326. * and we need a single destination chunk of entire len
  327. */
  328. dst_len = len;
  329. }
  330. dst_len_sum = dst_len;
  331. src_off = sent.count;
  332. /* dst_len determines the maximum src_len */
  333. if (sent.count + dst_len <= conn->sndbuf_desc->len) {
  334. /* unwrapped src case: single chunk of entire dst_len */
  335. src_len = dst_len;
  336. } else {
  337. /* wrapped src case: 2 chunks of sum dst_len; start with 1st: */
  338. src_len = conn->sndbuf_desc->len - sent.count;
  339. }
  340. src_len_sum = src_len;
  341. dma_addr = sg_dma_address(conn->sndbuf_desc->sgt[SMC_SINGLE_LINK].sgl);
  342. for (dstchunk = 0; dstchunk < 2; dstchunk++) {
  343. num_sges = 0;
  344. for (srcchunk = 0; srcchunk < 2; srcchunk++) {
  345. sges[srcchunk].addr = dma_addr + src_off;
  346. sges[srcchunk].length = src_len;
  347. sges[srcchunk].lkey = link->roce_pd->local_dma_lkey;
  348. num_sges++;
  349. src_off += src_len;
  350. if (src_off >= conn->sndbuf_desc->len)
  351. src_off -= conn->sndbuf_desc->len;
  352. /* modulo in send ring */
  353. if (src_len_sum == dst_len)
  354. break; /* either on 1st or 2nd iteration */
  355. /* prepare next (== 2nd) iteration */
  356. src_len = dst_len - src_len; /* remainder */
  357. src_len_sum += src_len;
  358. }
  359. rc = smc_tx_rdma_write(conn, dst_off, num_sges, sges);
  360. if (rc)
  361. return rc;
  362. if (dst_len_sum == len)
  363. break; /* either on 1st or 2nd iteration */
  364. /* prepare next (== 2nd) iteration */
  365. dst_off = 0; /* modulo offset in RMBE ring buffer */
  366. dst_len = len - dst_len; /* remainder */
  367. dst_len_sum += dst_len;
  368. src_len = min_t(int,
  369. dst_len, conn->sndbuf_desc->len - sent.count);
  370. src_len_sum = src_len;
  371. }
  372. if (conn->urg_tx_pend && len == to_send)
  373. pflags->urg_data_present = 1;
  374. smc_tx_advance_cursors(conn, &prod, &sent, len);
  375. /* update connection's cursors with advanced local cursors */
  376. smc_curs_write(&conn->local_tx_ctrl.prod,
  377. smc_curs_read(&prod, conn),
  378. conn);
  379. /* dst: peer RMBE */
  380. smc_curs_write(&conn->tx_curs_sent,
  381. smc_curs_read(&sent, conn),
  382. conn);
  383. /* src: local sndbuf */
  384. return 0;
  385. }
  386. /* Wakeup sndbuf consumers from any context (IRQ or process)
  387. * since there is more data to transmit; usable snd_wnd as max transmit
  388. */
  389. int smc_tx_sndbuf_nonempty(struct smc_connection *conn)
  390. {
  391. struct smc_cdc_producer_flags *pflags;
  392. struct smc_cdc_tx_pend *pend;
  393. struct smc_wr_buf *wr_buf;
  394. int rc;
  395. spin_lock_bh(&conn->send_lock);
  396. rc = smc_cdc_get_free_slot(conn, &wr_buf, &pend);
  397. if (rc < 0) {
  398. if (rc == -EBUSY) {
  399. struct smc_sock *smc =
  400. container_of(conn, struct smc_sock, conn);
  401. if (smc->sk.sk_err == ECONNABORTED) {
  402. rc = sock_error(&smc->sk);
  403. goto out_unlock;
  404. }
  405. rc = 0;
  406. if (conn->alert_token_local) /* connection healthy */
  407. mod_delayed_work(system_wq, &conn->tx_work,
  408. SMC_TX_WORK_DELAY);
  409. }
  410. goto out_unlock;
  411. }
  412. if (!conn->local_tx_ctrl.prod_flags.urg_data_present) {
  413. rc = smc_tx_rdma_writes(conn);
  414. if (rc) {
  415. smc_wr_tx_put_slot(&conn->lgr->lnk[SMC_SINGLE_LINK],
  416. (struct smc_wr_tx_pend_priv *)pend);
  417. goto out_unlock;
  418. }
  419. }
  420. rc = smc_cdc_msg_send(conn, wr_buf, pend);
  421. pflags = &conn->local_tx_ctrl.prod_flags;
  422. if (!rc && pflags->urg_data_present) {
  423. pflags->urg_data_pending = 0;
  424. pflags->urg_data_present = 0;
  425. }
  426. out_unlock:
  427. spin_unlock_bh(&conn->send_lock);
  428. return rc;
  429. }
  430. /* Wakeup sndbuf consumers from process context
  431. * since there is more data to transmit
  432. */
  433. void smc_tx_work(struct work_struct *work)
  434. {
  435. struct smc_connection *conn = container_of(to_delayed_work(work),
  436. struct smc_connection,
  437. tx_work);
  438. struct smc_sock *smc = container_of(conn, struct smc_sock, conn);
  439. int rc;
  440. lock_sock(&smc->sk);
  441. if (smc->sk.sk_err ||
  442. !conn->alert_token_local ||
  443. conn->local_rx_ctrl.conn_state_flags.peer_conn_abort)
  444. goto out;
  445. rc = smc_tx_sndbuf_nonempty(conn);
  446. if (!rc && conn->local_rx_ctrl.prod_flags.write_blocked &&
  447. !atomic_read(&conn->bytes_to_rcv))
  448. conn->local_rx_ctrl.prod_flags.write_blocked = 0;
  449. out:
  450. release_sock(&smc->sk);
  451. }
  452. void smc_tx_consumer_update(struct smc_connection *conn, bool force)
  453. {
  454. union smc_host_cursor cfed, cons;
  455. int to_confirm;
  456. smc_curs_write(&cons,
  457. smc_curs_read(&conn->local_tx_ctrl.cons, conn),
  458. conn);
  459. smc_curs_write(&cfed,
  460. smc_curs_read(&conn->rx_curs_confirmed, conn),
  461. conn);
  462. to_confirm = smc_curs_diff(conn->rmb_desc->len, &cfed, &cons);
  463. if (conn->local_rx_ctrl.prod_flags.cons_curs_upd_req ||
  464. force ||
  465. ((to_confirm > conn->rmbe_update_limit) &&
  466. ((to_confirm > (conn->rmb_desc->len / 2)) ||
  467. conn->local_rx_ctrl.prod_flags.write_blocked))) {
  468. if ((smc_cdc_get_slot_and_msg_send(conn) < 0) &&
  469. conn->alert_token_local) { /* connection healthy */
  470. schedule_delayed_work(&conn->tx_work,
  471. SMC_TX_WORK_DELAY);
  472. return;
  473. }
  474. smc_curs_write(&conn->rx_curs_confirmed,
  475. smc_curs_read(&conn->local_tx_ctrl.cons, conn),
  476. conn);
  477. conn->local_rx_ctrl.prod_flags.cons_curs_upd_req = 0;
  478. }
  479. if (conn->local_rx_ctrl.prod_flags.write_blocked &&
  480. !atomic_read(&conn->bytes_to_rcv))
  481. conn->local_rx_ctrl.prod_flags.write_blocked = 0;
  482. }
  483. /***************************** send initialize *******************************/
  484. /* Initialize send properties on connection establishment. NB: not __init! */
  485. void smc_tx_init(struct smc_sock *smc)
  486. {
  487. smc->sk.sk_write_space = smc_tx_write_space;
  488. }