transport.c 23 KB

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  1. /*
  2. * Copyright (c) 2003-2007 Network Appliance, Inc. 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 BSD-type
  8. * license below:
  9. *
  10. * Redistribution and use in source and binary forms, with or without
  11. * modification, are permitted provided that the following conditions
  12. * are met:
  13. *
  14. * Redistributions of source code must retain the above copyright
  15. * notice, this list of conditions and the following disclaimer.
  16. *
  17. * Redistributions in binary form must reproduce the above
  18. * copyright notice, this list of conditions and the following
  19. * disclaimer in the documentation and/or other materials provided
  20. * with the distribution.
  21. *
  22. * Neither the name of the Network Appliance, Inc. nor the names of
  23. * its contributors may be used to endorse or promote products
  24. * derived from this software without specific prior written
  25. * permission.
  26. *
  27. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  28. * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  29. * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
  30. * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  31. * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  32. * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
  33. * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
  34. * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
  35. * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
  36. * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
  37. * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  38. */
  39. /*
  40. * transport.c
  41. *
  42. * This file contains the top-level implementation of an RPC RDMA
  43. * transport.
  44. *
  45. * Naming convention: functions beginning with xprt_ are part of the
  46. * transport switch. All others are RPC RDMA internal.
  47. */
  48. #include <linux/module.h>
  49. #include <linux/init.h>
  50. #include <linux/seq_file.h>
  51. #include "xprt_rdma.h"
  52. #ifdef RPC_DEBUG
  53. # define RPCDBG_FACILITY RPCDBG_TRANS
  54. #endif
  55. MODULE_LICENSE("Dual BSD/GPL");
  56. MODULE_DESCRIPTION("RPC/RDMA Transport for Linux kernel NFS");
  57. MODULE_AUTHOR("Network Appliance, Inc.");
  58. /*
  59. * tunables
  60. */
  61. static unsigned int xprt_rdma_slot_table_entries = RPCRDMA_DEF_SLOT_TABLE;
  62. static unsigned int xprt_rdma_max_inline_read = RPCRDMA_DEF_INLINE;
  63. static unsigned int xprt_rdma_max_inline_write = RPCRDMA_DEF_INLINE;
  64. static unsigned int xprt_rdma_inline_write_padding;
  65. #if !RPCRDMA_PERSISTENT_REGISTRATION
  66. static unsigned int xprt_rdma_memreg_strategy = RPCRDMA_REGISTER; /* FMR? */
  67. #else
  68. static unsigned int xprt_rdma_memreg_strategy = RPCRDMA_ALLPHYSICAL;
  69. #endif
  70. #ifdef RPC_DEBUG
  71. static unsigned int min_slot_table_size = RPCRDMA_MIN_SLOT_TABLE;
  72. static unsigned int max_slot_table_size = RPCRDMA_MAX_SLOT_TABLE;
  73. static unsigned int zero;
  74. static unsigned int max_padding = PAGE_SIZE;
  75. static unsigned int min_memreg = RPCRDMA_BOUNCEBUFFERS;
  76. static unsigned int max_memreg = RPCRDMA_LAST - 1;
  77. static struct ctl_table_header *sunrpc_table_header;
  78. static ctl_table xr_tunables_table[] = {
  79. {
  80. .ctl_name = CTL_UNNUMBERED,
  81. .procname = "rdma_slot_table_entries",
  82. .data = &xprt_rdma_slot_table_entries,
  83. .maxlen = sizeof(unsigned int),
  84. .mode = 0644,
  85. .proc_handler = &proc_dointvec_minmax,
  86. .strategy = &sysctl_intvec,
  87. .extra1 = &min_slot_table_size,
  88. .extra2 = &max_slot_table_size
  89. },
  90. {
  91. .ctl_name = CTL_UNNUMBERED,
  92. .procname = "rdma_max_inline_read",
  93. .data = &xprt_rdma_max_inline_read,
  94. .maxlen = sizeof(unsigned int),
  95. .mode = 0644,
  96. .proc_handler = &proc_dointvec,
  97. .strategy = &sysctl_intvec,
  98. },
  99. {
  100. .ctl_name = CTL_UNNUMBERED,
  101. .procname = "rdma_max_inline_write",
  102. .data = &xprt_rdma_max_inline_write,
  103. .maxlen = sizeof(unsigned int),
  104. .mode = 0644,
  105. .proc_handler = &proc_dointvec,
  106. .strategy = &sysctl_intvec,
  107. },
  108. {
  109. .ctl_name = CTL_UNNUMBERED,
  110. .procname = "rdma_inline_write_padding",
  111. .data = &xprt_rdma_inline_write_padding,
  112. .maxlen = sizeof(unsigned int),
  113. .mode = 0644,
  114. .proc_handler = &proc_dointvec_minmax,
  115. .strategy = &sysctl_intvec,
  116. .extra1 = &zero,
  117. .extra2 = &max_padding,
  118. },
  119. {
  120. .ctl_name = CTL_UNNUMBERED,
  121. .procname = "rdma_memreg_strategy",
  122. .data = &xprt_rdma_memreg_strategy,
  123. .maxlen = sizeof(unsigned int),
  124. .mode = 0644,
  125. .proc_handler = &proc_dointvec_minmax,
  126. .strategy = &sysctl_intvec,
  127. .extra1 = &min_memreg,
  128. .extra2 = &max_memreg,
  129. },
  130. {
  131. .ctl_name = 0,
  132. },
  133. };
  134. static ctl_table sunrpc_table[] = {
  135. {
  136. .ctl_name = CTL_SUNRPC,
  137. .procname = "sunrpc",
  138. .mode = 0555,
  139. .child = xr_tunables_table
  140. },
  141. {
  142. .ctl_name = 0,
  143. },
  144. };
  145. #endif
  146. static struct rpc_xprt_ops xprt_rdma_procs; /* forward reference */
  147. static void
  148. xprt_rdma_format_addresses(struct rpc_xprt *xprt)
  149. {
  150. struct sockaddr_in *addr = (struct sockaddr_in *)
  151. &rpcx_to_rdmad(xprt).addr;
  152. char *buf;
  153. buf = kzalloc(20, GFP_KERNEL);
  154. if (buf)
  155. snprintf(buf, 20, NIPQUAD_FMT, NIPQUAD(addr->sin_addr.s_addr));
  156. xprt->address_strings[RPC_DISPLAY_ADDR] = buf;
  157. buf = kzalloc(8, GFP_KERNEL);
  158. if (buf)
  159. snprintf(buf, 8, "%u", ntohs(addr->sin_port));
  160. xprt->address_strings[RPC_DISPLAY_PORT] = buf;
  161. xprt->address_strings[RPC_DISPLAY_PROTO] = "rdma";
  162. buf = kzalloc(48, GFP_KERNEL);
  163. if (buf)
  164. snprintf(buf, 48, "addr="NIPQUAD_FMT" port=%u proto=%s",
  165. NIPQUAD(addr->sin_addr.s_addr),
  166. ntohs(addr->sin_port), "rdma");
  167. xprt->address_strings[RPC_DISPLAY_ALL] = buf;
  168. buf = kzalloc(10, GFP_KERNEL);
  169. if (buf)
  170. snprintf(buf, 10, "%02x%02x%02x%02x",
  171. NIPQUAD(addr->sin_addr.s_addr));
  172. xprt->address_strings[RPC_DISPLAY_HEX_ADDR] = buf;
  173. buf = kzalloc(8, GFP_KERNEL);
  174. if (buf)
  175. snprintf(buf, 8, "%4hx", ntohs(addr->sin_port));
  176. xprt->address_strings[RPC_DISPLAY_HEX_PORT] = buf;
  177. buf = kzalloc(30, GFP_KERNEL);
  178. if (buf)
  179. snprintf(buf, 30, NIPQUAD_FMT".%u.%u",
  180. NIPQUAD(addr->sin_addr.s_addr),
  181. ntohs(addr->sin_port) >> 8,
  182. ntohs(addr->sin_port) & 0xff);
  183. xprt->address_strings[RPC_DISPLAY_UNIVERSAL_ADDR] = buf;
  184. /* netid */
  185. xprt->address_strings[RPC_DISPLAY_NETID] = "rdma";
  186. }
  187. static void
  188. xprt_rdma_free_addresses(struct rpc_xprt *xprt)
  189. {
  190. unsigned int i;
  191. for (i = 0; i < RPC_DISPLAY_MAX; i++)
  192. switch (i) {
  193. case RPC_DISPLAY_PROTO:
  194. case RPC_DISPLAY_NETID:
  195. continue;
  196. default:
  197. kfree(xprt->address_strings[i]);
  198. }
  199. }
  200. static void
  201. xprt_rdma_connect_worker(struct work_struct *work)
  202. {
  203. struct rpcrdma_xprt *r_xprt =
  204. container_of(work, struct rpcrdma_xprt, rdma_connect.work);
  205. struct rpc_xprt *xprt = &r_xprt->xprt;
  206. int rc = 0;
  207. if (!xprt->shutdown) {
  208. xprt_clear_connected(xprt);
  209. dprintk("RPC: %s: %sconnect\n", __func__,
  210. r_xprt->rx_ep.rep_connected != 0 ? "re" : "");
  211. rc = rpcrdma_ep_connect(&r_xprt->rx_ep, &r_xprt->rx_ia);
  212. if (rc)
  213. goto out;
  214. }
  215. goto out_clear;
  216. out:
  217. xprt_wake_pending_tasks(xprt, rc);
  218. out_clear:
  219. dprintk("RPC: %s: exit\n", __func__);
  220. xprt_clear_connecting(xprt);
  221. }
  222. /*
  223. * xprt_rdma_destroy
  224. *
  225. * Destroy the xprt.
  226. * Free all memory associated with the object, including its own.
  227. * NOTE: none of the *destroy methods free memory for their top-level
  228. * objects, even though they may have allocated it (they do free
  229. * private memory). It's up to the caller to handle it. In this
  230. * case (RDMA transport), all structure memory is inlined with the
  231. * struct rpcrdma_xprt.
  232. */
  233. static void
  234. xprt_rdma_destroy(struct rpc_xprt *xprt)
  235. {
  236. struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
  237. int rc;
  238. dprintk("RPC: %s: called\n", __func__);
  239. cancel_delayed_work(&r_xprt->rdma_connect);
  240. flush_scheduled_work();
  241. xprt_clear_connected(xprt);
  242. rpcrdma_buffer_destroy(&r_xprt->rx_buf);
  243. rc = rpcrdma_ep_destroy(&r_xprt->rx_ep, &r_xprt->rx_ia);
  244. if (rc)
  245. dprintk("RPC: %s: rpcrdma_ep_destroy returned %i\n",
  246. __func__, rc);
  247. rpcrdma_ia_close(&r_xprt->rx_ia);
  248. xprt_rdma_free_addresses(xprt);
  249. kfree(xprt->slot);
  250. xprt->slot = NULL;
  251. kfree(xprt);
  252. dprintk("RPC: %s: returning\n", __func__);
  253. module_put(THIS_MODULE);
  254. }
  255. static const struct rpc_timeout xprt_rdma_default_timeout = {
  256. .to_initval = 60 * HZ,
  257. .to_maxval = 60 * HZ,
  258. };
  259. /**
  260. * xprt_setup_rdma - Set up transport to use RDMA
  261. *
  262. * @args: rpc transport arguments
  263. */
  264. static struct rpc_xprt *
  265. xprt_setup_rdma(struct xprt_create *args)
  266. {
  267. struct rpcrdma_create_data_internal cdata;
  268. struct rpc_xprt *xprt;
  269. struct rpcrdma_xprt *new_xprt;
  270. struct rpcrdma_ep *new_ep;
  271. struct sockaddr_in *sin;
  272. int rc;
  273. if (args->addrlen > sizeof(xprt->addr)) {
  274. dprintk("RPC: %s: address too large\n", __func__);
  275. return ERR_PTR(-EBADF);
  276. }
  277. xprt = kzalloc(sizeof(struct rpcrdma_xprt), GFP_KERNEL);
  278. if (xprt == NULL) {
  279. dprintk("RPC: %s: couldn't allocate rpcrdma_xprt\n",
  280. __func__);
  281. return ERR_PTR(-ENOMEM);
  282. }
  283. xprt->max_reqs = xprt_rdma_slot_table_entries;
  284. xprt->slot = kcalloc(xprt->max_reqs,
  285. sizeof(struct rpc_rqst), GFP_KERNEL);
  286. if (xprt->slot == NULL) {
  287. dprintk("RPC: %s: couldn't allocate %d slots\n",
  288. __func__, xprt->max_reqs);
  289. kfree(xprt);
  290. return ERR_PTR(-ENOMEM);
  291. }
  292. /* 60 second timeout, no retries */
  293. xprt->timeout = &xprt_rdma_default_timeout;
  294. xprt->bind_timeout = (60U * HZ);
  295. xprt->connect_timeout = (60U * HZ);
  296. xprt->reestablish_timeout = (5U * HZ);
  297. xprt->idle_timeout = (5U * 60 * HZ);
  298. xprt->resvport = 0; /* privileged port not needed */
  299. xprt->tsh_size = 0; /* RPC-RDMA handles framing */
  300. xprt->max_payload = RPCRDMA_MAX_DATA_SEGS * PAGE_SIZE;
  301. xprt->ops = &xprt_rdma_procs;
  302. /*
  303. * Set up RDMA-specific connect data.
  304. */
  305. /* Put server RDMA address in local cdata */
  306. memcpy(&cdata.addr, args->dstaddr, args->addrlen);
  307. /* Ensure xprt->addr holds valid server TCP (not RDMA)
  308. * address, for any side protocols which peek at it */
  309. xprt->prot = IPPROTO_TCP;
  310. xprt->addrlen = args->addrlen;
  311. memcpy(&xprt->addr, &cdata.addr, xprt->addrlen);
  312. sin = (struct sockaddr_in *)&cdata.addr;
  313. if (ntohs(sin->sin_port) != 0)
  314. xprt_set_bound(xprt);
  315. dprintk("RPC: %s: %u.%u.%u.%u:%u\n", __func__,
  316. NIPQUAD(sin->sin_addr.s_addr), ntohs(sin->sin_port));
  317. /* Set max requests */
  318. cdata.max_requests = xprt->max_reqs;
  319. /* Set some length limits */
  320. cdata.rsize = RPCRDMA_MAX_SEGS * PAGE_SIZE; /* RDMA write max */
  321. cdata.wsize = RPCRDMA_MAX_SEGS * PAGE_SIZE; /* RDMA read max */
  322. cdata.inline_wsize = xprt_rdma_max_inline_write;
  323. if (cdata.inline_wsize > cdata.wsize)
  324. cdata.inline_wsize = cdata.wsize;
  325. cdata.inline_rsize = xprt_rdma_max_inline_read;
  326. if (cdata.inline_rsize > cdata.rsize)
  327. cdata.inline_rsize = cdata.rsize;
  328. cdata.padding = xprt_rdma_inline_write_padding;
  329. /*
  330. * Create new transport instance, which includes initialized
  331. * o ia
  332. * o endpoint
  333. * o buffers
  334. */
  335. new_xprt = rpcx_to_rdmax(xprt);
  336. rc = rpcrdma_ia_open(new_xprt, (struct sockaddr *) &cdata.addr,
  337. xprt_rdma_memreg_strategy);
  338. if (rc)
  339. goto out1;
  340. /*
  341. * initialize and create ep
  342. */
  343. new_xprt->rx_data = cdata;
  344. new_ep = &new_xprt->rx_ep;
  345. new_ep->rep_remote_addr = cdata.addr;
  346. rc = rpcrdma_ep_create(&new_xprt->rx_ep,
  347. &new_xprt->rx_ia, &new_xprt->rx_data);
  348. if (rc)
  349. goto out2;
  350. /*
  351. * Allocate pre-registered send and receive buffers for headers and
  352. * any inline data. Also specify any padding which will be provided
  353. * from a preregistered zero buffer.
  354. */
  355. rc = rpcrdma_buffer_create(&new_xprt->rx_buf, new_ep, &new_xprt->rx_ia,
  356. &new_xprt->rx_data);
  357. if (rc)
  358. goto out3;
  359. /*
  360. * Register a callback for connection events. This is necessary because
  361. * connection loss notification is async. We also catch connection loss
  362. * when reaping receives.
  363. */
  364. INIT_DELAYED_WORK(&new_xprt->rdma_connect, xprt_rdma_connect_worker);
  365. new_ep->rep_func = rpcrdma_conn_func;
  366. new_ep->rep_xprt = xprt;
  367. xprt_rdma_format_addresses(xprt);
  368. if (!try_module_get(THIS_MODULE))
  369. goto out4;
  370. return xprt;
  371. out4:
  372. xprt_rdma_free_addresses(xprt);
  373. rc = -EINVAL;
  374. out3:
  375. (void) rpcrdma_ep_destroy(new_ep, &new_xprt->rx_ia);
  376. out2:
  377. rpcrdma_ia_close(&new_xprt->rx_ia);
  378. out1:
  379. kfree(xprt->slot);
  380. kfree(xprt);
  381. return ERR_PTR(rc);
  382. }
  383. /*
  384. * Close a connection, during shutdown or timeout/reconnect
  385. */
  386. static void
  387. xprt_rdma_close(struct rpc_xprt *xprt)
  388. {
  389. struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
  390. dprintk("RPC: %s: closing\n", __func__);
  391. xprt_disconnect_done(xprt);
  392. (void) rpcrdma_ep_disconnect(&r_xprt->rx_ep, &r_xprt->rx_ia);
  393. }
  394. static void
  395. xprt_rdma_set_port(struct rpc_xprt *xprt, u16 port)
  396. {
  397. struct sockaddr_in *sap;
  398. sap = (struct sockaddr_in *)&xprt->addr;
  399. sap->sin_port = htons(port);
  400. sap = (struct sockaddr_in *)&rpcx_to_rdmad(xprt).addr;
  401. sap->sin_port = htons(port);
  402. dprintk("RPC: %s: %u\n", __func__, port);
  403. }
  404. static void
  405. xprt_rdma_connect(struct rpc_task *task)
  406. {
  407. struct rpc_xprt *xprt = (struct rpc_xprt *)task->tk_xprt;
  408. struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
  409. if (!xprt_test_and_set_connecting(xprt)) {
  410. if (r_xprt->rx_ep.rep_connected != 0) {
  411. /* Reconnect */
  412. schedule_delayed_work(&r_xprt->rdma_connect,
  413. xprt->reestablish_timeout);
  414. } else {
  415. schedule_delayed_work(&r_xprt->rdma_connect, 0);
  416. if (!RPC_IS_ASYNC(task))
  417. flush_scheduled_work();
  418. }
  419. }
  420. }
  421. static int
  422. xprt_rdma_reserve_xprt(struct rpc_task *task)
  423. {
  424. struct rpc_xprt *xprt = task->tk_xprt;
  425. struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
  426. int credits = atomic_read(&r_xprt->rx_buf.rb_credits);
  427. /* == RPC_CWNDSCALE @ init, but *after* setup */
  428. if (r_xprt->rx_buf.rb_cwndscale == 0UL) {
  429. r_xprt->rx_buf.rb_cwndscale = xprt->cwnd;
  430. dprintk("RPC: %s: cwndscale %lu\n", __func__,
  431. r_xprt->rx_buf.rb_cwndscale);
  432. BUG_ON(r_xprt->rx_buf.rb_cwndscale <= 0);
  433. }
  434. xprt->cwnd = credits * r_xprt->rx_buf.rb_cwndscale;
  435. return xprt_reserve_xprt_cong(task);
  436. }
  437. /*
  438. * The RDMA allocate/free functions need the task structure as a place
  439. * to hide the struct rpcrdma_req, which is necessary for the actual send/recv
  440. * sequence. For this reason, the recv buffers are attached to send
  441. * buffers for portions of the RPC. Note that the RPC layer allocates
  442. * both send and receive buffers in the same call. We may register
  443. * the receive buffer portion when using reply chunks.
  444. */
  445. static void *
  446. xprt_rdma_allocate(struct rpc_task *task, size_t size)
  447. {
  448. struct rpc_xprt *xprt = task->tk_xprt;
  449. struct rpcrdma_req *req, *nreq;
  450. req = rpcrdma_buffer_get(&rpcx_to_rdmax(xprt)->rx_buf);
  451. BUG_ON(NULL == req);
  452. if (size > req->rl_size) {
  453. dprintk("RPC: %s: size %zd too large for buffer[%zd]: "
  454. "prog %d vers %d proc %d\n",
  455. __func__, size, req->rl_size,
  456. task->tk_client->cl_prog, task->tk_client->cl_vers,
  457. task->tk_msg.rpc_proc->p_proc);
  458. /*
  459. * Outgoing length shortage. Our inline write max must have
  460. * been configured to perform direct i/o.
  461. *
  462. * This is therefore a large metadata operation, and the
  463. * allocate call was made on the maximum possible message,
  464. * e.g. containing long filename(s) or symlink data. In
  465. * fact, while these metadata operations *might* carry
  466. * large outgoing payloads, they rarely *do*. However, we
  467. * have to commit to the request here, so reallocate and
  468. * register it now. The data path will never require this
  469. * reallocation.
  470. *
  471. * If the allocation or registration fails, the RPC framework
  472. * will (doggedly) retry.
  473. */
  474. if (rpcx_to_rdmax(xprt)->rx_ia.ri_memreg_strategy ==
  475. RPCRDMA_BOUNCEBUFFERS) {
  476. /* forced to "pure inline" */
  477. dprintk("RPC: %s: too much data (%zd) for inline "
  478. "(r/w max %d/%d)\n", __func__, size,
  479. rpcx_to_rdmad(xprt).inline_rsize,
  480. rpcx_to_rdmad(xprt).inline_wsize);
  481. size = req->rl_size;
  482. rpc_exit(task, -EIO); /* fail the operation */
  483. rpcx_to_rdmax(xprt)->rx_stats.failed_marshal_count++;
  484. goto out;
  485. }
  486. if (task->tk_flags & RPC_TASK_SWAPPER)
  487. nreq = kmalloc(sizeof *req + size, GFP_ATOMIC);
  488. else
  489. nreq = kmalloc(sizeof *req + size, GFP_NOFS);
  490. if (nreq == NULL)
  491. goto outfail;
  492. if (rpcrdma_register_internal(&rpcx_to_rdmax(xprt)->rx_ia,
  493. nreq->rl_base, size + sizeof(struct rpcrdma_req)
  494. - offsetof(struct rpcrdma_req, rl_base),
  495. &nreq->rl_handle, &nreq->rl_iov)) {
  496. kfree(nreq);
  497. goto outfail;
  498. }
  499. rpcx_to_rdmax(xprt)->rx_stats.hardway_register_count += size;
  500. nreq->rl_size = size;
  501. nreq->rl_niovs = 0;
  502. nreq->rl_nchunks = 0;
  503. nreq->rl_buffer = (struct rpcrdma_buffer *)req;
  504. nreq->rl_reply = req->rl_reply;
  505. memcpy(nreq->rl_segments,
  506. req->rl_segments, sizeof nreq->rl_segments);
  507. /* flag the swap with an unused field */
  508. nreq->rl_iov.length = 0;
  509. req->rl_reply = NULL;
  510. req = nreq;
  511. }
  512. dprintk("RPC: %s: size %zd, request 0x%p\n", __func__, size, req);
  513. out:
  514. return req->rl_xdr_buf;
  515. outfail:
  516. rpcrdma_buffer_put(req);
  517. rpcx_to_rdmax(xprt)->rx_stats.failed_marshal_count++;
  518. return NULL;
  519. }
  520. /*
  521. * This function returns all RDMA resources to the pool.
  522. */
  523. static void
  524. xprt_rdma_free(void *buffer)
  525. {
  526. struct rpcrdma_req *req;
  527. struct rpcrdma_xprt *r_xprt;
  528. struct rpcrdma_rep *rep;
  529. int i;
  530. if (buffer == NULL)
  531. return;
  532. req = container_of(buffer, struct rpcrdma_req, rl_xdr_buf[0]);
  533. if (req->rl_iov.length == 0) { /* see allocate above */
  534. r_xprt = container_of(((struct rpcrdma_req *) req->rl_buffer)->rl_buffer,
  535. struct rpcrdma_xprt, rx_buf);
  536. } else
  537. r_xprt = container_of(req->rl_buffer, struct rpcrdma_xprt, rx_buf);
  538. rep = req->rl_reply;
  539. dprintk("RPC: %s: called on 0x%p%s\n",
  540. __func__, rep, (rep && rep->rr_func) ? " (with waiter)" : "");
  541. /*
  542. * Finish the deregistration. When using mw bind, this was
  543. * begun in rpcrdma_reply_handler(). In all other modes, we
  544. * do it here, in thread context. The process is considered
  545. * complete when the rr_func vector becomes NULL - this
  546. * was put in place during rpcrdma_reply_handler() - the wait
  547. * call below will not block if the dereg is "done". If
  548. * interrupted, our framework will clean up.
  549. */
  550. for (i = 0; req->rl_nchunks;) {
  551. --req->rl_nchunks;
  552. i += rpcrdma_deregister_external(
  553. &req->rl_segments[i], r_xprt, NULL);
  554. }
  555. if (rep && wait_event_interruptible(rep->rr_unbind, !rep->rr_func)) {
  556. rep->rr_func = NULL; /* abandon the callback */
  557. req->rl_reply = NULL;
  558. }
  559. if (req->rl_iov.length == 0) { /* see allocate above */
  560. struct rpcrdma_req *oreq = (struct rpcrdma_req *)req->rl_buffer;
  561. oreq->rl_reply = req->rl_reply;
  562. (void) rpcrdma_deregister_internal(&r_xprt->rx_ia,
  563. req->rl_handle,
  564. &req->rl_iov);
  565. kfree(req);
  566. req = oreq;
  567. }
  568. /* Put back request+reply buffers */
  569. rpcrdma_buffer_put(req);
  570. }
  571. /*
  572. * send_request invokes the meat of RPC RDMA. It must do the following:
  573. * 1. Marshal the RPC request into an RPC RDMA request, which means
  574. * putting a header in front of data, and creating IOVs for RDMA
  575. * from those in the request.
  576. * 2. In marshaling, detect opportunities for RDMA, and use them.
  577. * 3. Post a recv message to set up asynch completion, then send
  578. * the request (rpcrdma_ep_post).
  579. * 4. No partial sends are possible in the RPC-RDMA protocol (as in UDP).
  580. */
  581. static int
  582. xprt_rdma_send_request(struct rpc_task *task)
  583. {
  584. struct rpc_rqst *rqst = task->tk_rqstp;
  585. struct rpc_xprt *xprt = task->tk_xprt;
  586. struct rpcrdma_req *req = rpcr_to_rdmar(rqst);
  587. struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
  588. /* marshal the send itself */
  589. if (req->rl_niovs == 0 && rpcrdma_marshal_req(rqst) != 0) {
  590. r_xprt->rx_stats.failed_marshal_count++;
  591. dprintk("RPC: %s: rpcrdma_marshal_req failed\n",
  592. __func__);
  593. return -EIO;
  594. }
  595. if (req->rl_reply == NULL) /* e.g. reconnection */
  596. rpcrdma_recv_buffer_get(req);
  597. if (req->rl_reply) {
  598. req->rl_reply->rr_func = rpcrdma_reply_handler;
  599. /* this need only be done once, but... */
  600. req->rl_reply->rr_xprt = xprt;
  601. }
  602. if (rpcrdma_ep_post(&r_xprt->rx_ia, &r_xprt->rx_ep, req)) {
  603. xprt_disconnect_done(xprt);
  604. return -ENOTCONN; /* implies disconnect */
  605. }
  606. rqst->rq_bytes_sent = 0;
  607. return 0;
  608. }
  609. static void xprt_rdma_print_stats(struct rpc_xprt *xprt, struct seq_file *seq)
  610. {
  611. struct rpcrdma_xprt *r_xprt = rpcx_to_rdmax(xprt);
  612. long idle_time = 0;
  613. if (xprt_connected(xprt))
  614. idle_time = (long)(jiffies - xprt->last_used) / HZ;
  615. seq_printf(seq,
  616. "\txprt:\trdma %u %lu %lu %lu %ld %lu %lu %lu %Lu %Lu "
  617. "%lu %lu %lu %Lu %Lu %Lu %Lu %lu %lu %lu\n",
  618. 0, /* need a local port? */
  619. xprt->stat.bind_count,
  620. xprt->stat.connect_count,
  621. xprt->stat.connect_time,
  622. idle_time,
  623. xprt->stat.sends,
  624. xprt->stat.recvs,
  625. xprt->stat.bad_xids,
  626. xprt->stat.req_u,
  627. xprt->stat.bklog_u,
  628. r_xprt->rx_stats.read_chunk_count,
  629. r_xprt->rx_stats.write_chunk_count,
  630. r_xprt->rx_stats.reply_chunk_count,
  631. r_xprt->rx_stats.total_rdma_request,
  632. r_xprt->rx_stats.total_rdma_reply,
  633. r_xprt->rx_stats.pullup_copy_count,
  634. r_xprt->rx_stats.fixup_copy_count,
  635. r_xprt->rx_stats.hardway_register_count,
  636. r_xprt->rx_stats.failed_marshal_count,
  637. r_xprt->rx_stats.bad_reply_count);
  638. }
  639. /*
  640. * Plumbing for rpc transport switch and kernel module
  641. */
  642. static struct rpc_xprt_ops xprt_rdma_procs = {
  643. .reserve_xprt = xprt_rdma_reserve_xprt,
  644. .release_xprt = xprt_release_xprt_cong, /* sunrpc/xprt.c */
  645. .release_request = xprt_release_rqst_cong, /* ditto */
  646. .set_retrans_timeout = xprt_set_retrans_timeout_def, /* ditto */
  647. .rpcbind = rpcb_getport_async, /* sunrpc/rpcb_clnt.c */
  648. .set_port = xprt_rdma_set_port,
  649. .connect = xprt_rdma_connect,
  650. .buf_alloc = xprt_rdma_allocate,
  651. .buf_free = xprt_rdma_free,
  652. .send_request = xprt_rdma_send_request,
  653. .close = xprt_rdma_close,
  654. .destroy = xprt_rdma_destroy,
  655. .print_stats = xprt_rdma_print_stats
  656. };
  657. static struct xprt_class xprt_rdma = {
  658. .list = LIST_HEAD_INIT(xprt_rdma.list),
  659. .name = "rdma",
  660. .owner = THIS_MODULE,
  661. .ident = XPRT_TRANSPORT_RDMA,
  662. .setup = xprt_setup_rdma,
  663. };
  664. static void __exit xprt_rdma_cleanup(void)
  665. {
  666. int rc;
  667. dprintk("RPCRDMA Module Removed, deregister RPC RDMA transport\n");
  668. #ifdef RPC_DEBUG
  669. if (sunrpc_table_header) {
  670. unregister_sysctl_table(sunrpc_table_header);
  671. sunrpc_table_header = NULL;
  672. }
  673. #endif
  674. rc = xprt_unregister_transport(&xprt_rdma);
  675. if (rc)
  676. dprintk("RPC: %s: xprt_unregister returned %i\n",
  677. __func__, rc);
  678. }
  679. static int __init xprt_rdma_init(void)
  680. {
  681. int rc;
  682. rc = xprt_register_transport(&xprt_rdma);
  683. if (rc)
  684. return rc;
  685. dprintk(KERN_INFO "RPCRDMA Module Init, register RPC RDMA transport\n");
  686. dprintk(KERN_INFO "Defaults:\n");
  687. dprintk(KERN_INFO "\tSlots %d\n"
  688. "\tMaxInlineRead %d\n\tMaxInlineWrite %d\n",
  689. xprt_rdma_slot_table_entries,
  690. xprt_rdma_max_inline_read, xprt_rdma_max_inline_write);
  691. dprintk(KERN_INFO "\tPadding %d\n\tMemreg %d\n",
  692. xprt_rdma_inline_write_padding, xprt_rdma_memreg_strategy);
  693. #ifdef RPC_DEBUG
  694. if (!sunrpc_table_header)
  695. sunrpc_table_header = register_sysctl_table(sunrpc_table);
  696. #endif
  697. return 0;
  698. }
  699. module_init(xprt_rdma_init);
  700. module_exit(xprt_rdma_cleanup);