svc_rdma_sendto.c 21 KB

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  1. /*
  2. * Copyright (c) 2005-2006 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. * Author: Tom Tucker <tom@opengridcomputing.com>
  40. */
  41. #include <linux/sunrpc/debug.h>
  42. #include <linux/sunrpc/rpc_rdma.h>
  43. #include <linux/spinlock.h>
  44. #include <asm/unaligned.h>
  45. #include <rdma/ib_verbs.h>
  46. #include <rdma/rdma_cm.h>
  47. #include <linux/sunrpc/svc_rdma.h>
  48. #define RPCDBG_FACILITY RPCDBG_SVCXPRT
  49. /* Encode an XDR as an array of IB SGE
  50. *
  51. * Assumptions:
  52. * - head[0] is physically contiguous.
  53. * - tail[0] is physically contiguous.
  54. * - pages[] is not physically or virtually contiguous and consists of
  55. * PAGE_SIZE elements.
  56. *
  57. * Output:
  58. * SGE[0] reserved for RCPRDMA header
  59. * SGE[1] data from xdr->head[]
  60. * SGE[2..sge_count-2] data from xdr->pages[]
  61. * SGE[sge_count-1] data from xdr->tail.
  62. *
  63. * The max SGE we need is the length of the XDR / pagesize + one for
  64. * head + one for tail + one for RPCRDMA header. Since RPCSVC_MAXPAGES
  65. * reserves a page for both the request and the reply header, and this
  66. * array is only concerned with the reply we are assured that we have
  67. * on extra page for the RPCRMDA header.
  68. */
  69. static int fast_reg_xdr(struct svcxprt_rdma *xprt,
  70. struct xdr_buf *xdr,
  71. struct svc_rdma_req_map *vec)
  72. {
  73. int sge_no;
  74. u32 sge_bytes;
  75. u32 page_bytes;
  76. u32 page_off;
  77. int page_no = 0;
  78. u8 *frva;
  79. struct svc_rdma_fastreg_mr *frmr;
  80. frmr = svc_rdma_get_frmr(xprt);
  81. if (IS_ERR(frmr))
  82. return -ENOMEM;
  83. vec->frmr = frmr;
  84. /* Skip the RPCRDMA header */
  85. sge_no = 1;
  86. /* Map the head. */
  87. frva = (void *)((unsigned long)(xdr->head[0].iov_base) & PAGE_MASK);
  88. vec->sge[sge_no].iov_base = xdr->head[0].iov_base;
  89. vec->sge[sge_no].iov_len = xdr->head[0].iov_len;
  90. vec->count = 2;
  91. sge_no++;
  92. /* Map the XDR head */
  93. frmr->kva = frva;
  94. frmr->direction = DMA_TO_DEVICE;
  95. frmr->access_flags = 0;
  96. frmr->map_len = PAGE_SIZE;
  97. frmr->page_list_len = 1;
  98. page_off = (unsigned long)xdr->head[0].iov_base & ~PAGE_MASK;
  99. frmr->page_list->page_list[page_no] =
  100. ib_dma_map_page(xprt->sc_cm_id->device,
  101. virt_to_page(xdr->head[0].iov_base),
  102. page_off,
  103. PAGE_SIZE - page_off,
  104. DMA_TO_DEVICE);
  105. if (ib_dma_mapping_error(xprt->sc_cm_id->device,
  106. frmr->page_list->page_list[page_no]))
  107. goto fatal_err;
  108. atomic_inc(&xprt->sc_dma_used);
  109. /* Map the XDR page list */
  110. page_off = xdr->page_base;
  111. page_bytes = xdr->page_len + page_off;
  112. if (!page_bytes)
  113. goto encode_tail;
  114. /* Map the pages */
  115. vec->sge[sge_no].iov_base = frva + frmr->map_len + page_off;
  116. vec->sge[sge_no].iov_len = page_bytes;
  117. sge_no++;
  118. while (page_bytes) {
  119. struct page *page;
  120. page = xdr->pages[page_no++];
  121. sge_bytes = min_t(u32, page_bytes, (PAGE_SIZE - page_off));
  122. page_bytes -= sge_bytes;
  123. frmr->page_list->page_list[page_no] =
  124. ib_dma_map_page(xprt->sc_cm_id->device,
  125. page, page_off,
  126. sge_bytes, DMA_TO_DEVICE);
  127. if (ib_dma_mapping_error(xprt->sc_cm_id->device,
  128. frmr->page_list->page_list[page_no]))
  129. goto fatal_err;
  130. atomic_inc(&xprt->sc_dma_used);
  131. page_off = 0; /* reset for next time through loop */
  132. frmr->map_len += PAGE_SIZE;
  133. frmr->page_list_len++;
  134. }
  135. vec->count++;
  136. encode_tail:
  137. /* Map tail */
  138. if (0 == xdr->tail[0].iov_len)
  139. goto done;
  140. vec->count++;
  141. vec->sge[sge_no].iov_len = xdr->tail[0].iov_len;
  142. if (((unsigned long)xdr->tail[0].iov_base & PAGE_MASK) ==
  143. ((unsigned long)xdr->head[0].iov_base & PAGE_MASK)) {
  144. /*
  145. * If head and tail use the same page, we don't need
  146. * to map it again.
  147. */
  148. vec->sge[sge_no].iov_base = xdr->tail[0].iov_base;
  149. } else {
  150. void *va;
  151. /* Map another page for the tail */
  152. page_off = (unsigned long)xdr->tail[0].iov_base & ~PAGE_MASK;
  153. va = (void *)((unsigned long)xdr->tail[0].iov_base & PAGE_MASK);
  154. vec->sge[sge_no].iov_base = frva + frmr->map_len + page_off;
  155. frmr->page_list->page_list[page_no] =
  156. ib_dma_map_page(xprt->sc_cm_id->device, virt_to_page(va),
  157. page_off,
  158. PAGE_SIZE,
  159. DMA_TO_DEVICE);
  160. if (ib_dma_mapping_error(xprt->sc_cm_id->device,
  161. frmr->page_list->page_list[page_no]))
  162. goto fatal_err;
  163. atomic_inc(&xprt->sc_dma_used);
  164. frmr->map_len += PAGE_SIZE;
  165. frmr->page_list_len++;
  166. }
  167. done:
  168. if (svc_rdma_fastreg(xprt, frmr))
  169. goto fatal_err;
  170. return 0;
  171. fatal_err:
  172. printk("svcrdma: Error fast registering memory for xprt %p\n", xprt);
  173. vec->frmr = NULL;
  174. svc_rdma_put_frmr(xprt, frmr);
  175. return -EIO;
  176. }
  177. static int map_xdr(struct svcxprt_rdma *xprt,
  178. struct xdr_buf *xdr,
  179. struct svc_rdma_req_map *vec)
  180. {
  181. int sge_no;
  182. u32 sge_bytes;
  183. u32 page_bytes;
  184. u32 page_off;
  185. int page_no;
  186. BUG_ON(xdr->len !=
  187. (xdr->head[0].iov_len + xdr->page_len + xdr->tail[0].iov_len));
  188. if (xprt->sc_frmr_pg_list_len)
  189. return fast_reg_xdr(xprt, xdr, vec);
  190. /* Skip the first sge, this is for the RPCRDMA header */
  191. sge_no = 1;
  192. /* Head SGE */
  193. vec->sge[sge_no].iov_base = xdr->head[0].iov_base;
  194. vec->sge[sge_no].iov_len = xdr->head[0].iov_len;
  195. sge_no++;
  196. /* pages SGE */
  197. page_no = 0;
  198. page_bytes = xdr->page_len;
  199. page_off = xdr->page_base;
  200. while (page_bytes) {
  201. vec->sge[sge_no].iov_base =
  202. page_address(xdr->pages[page_no]) + page_off;
  203. sge_bytes = min_t(u32, page_bytes, (PAGE_SIZE - page_off));
  204. page_bytes -= sge_bytes;
  205. vec->sge[sge_no].iov_len = sge_bytes;
  206. sge_no++;
  207. page_no++;
  208. page_off = 0; /* reset for next time through loop */
  209. }
  210. /* Tail SGE */
  211. if (xdr->tail[0].iov_len) {
  212. vec->sge[sge_no].iov_base = xdr->tail[0].iov_base;
  213. vec->sge[sge_no].iov_len = xdr->tail[0].iov_len;
  214. sge_no++;
  215. }
  216. dprintk("svcrdma: map_xdr: sge_no %d page_no %d "
  217. "page_base %u page_len %u head_len %zu tail_len %zu\n",
  218. sge_no, page_no, xdr->page_base, xdr->page_len,
  219. xdr->head[0].iov_len, xdr->tail[0].iov_len);
  220. vec->count = sge_no;
  221. return 0;
  222. }
  223. static dma_addr_t dma_map_xdr(struct svcxprt_rdma *xprt,
  224. struct xdr_buf *xdr,
  225. u32 xdr_off, size_t len, int dir)
  226. {
  227. struct page *page;
  228. dma_addr_t dma_addr;
  229. if (xdr_off < xdr->head[0].iov_len) {
  230. /* This offset is in the head */
  231. xdr_off += (unsigned long)xdr->head[0].iov_base & ~PAGE_MASK;
  232. page = virt_to_page(xdr->head[0].iov_base);
  233. } else {
  234. xdr_off -= xdr->head[0].iov_len;
  235. if (xdr_off < xdr->page_len) {
  236. /* This offset is in the page list */
  237. page = xdr->pages[xdr_off >> PAGE_SHIFT];
  238. xdr_off &= ~PAGE_MASK;
  239. } else {
  240. /* This offset is in the tail */
  241. xdr_off -= xdr->page_len;
  242. xdr_off += (unsigned long)
  243. xdr->tail[0].iov_base & ~PAGE_MASK;
  244. page = virt_to_page(xdr->tail[0].iov_base);
  245. }
  246. }
  247. dma_addr = ib_dma_map_page(xprt->sc_cm_id->device, page, xdr_off,
  248. min_t(size_t, PAGE_SIZE, len), dir);
  249. return dma_addr;
  250. }
  251. /* Assumptions:
  252. * - We are using FRMR
  253. * - or -
  254. * - The specified write_len can be represented in sc_max_sge * PAGE_SIZE
  255. */
  256. static int send_write(struct svcxprt_rdma *xprt, struct svc_rqst *rqstp,
  257. u32 rmr, u64 to,
  258. u32 xdr_off, int write_len,
  259. struct svc_rdma_req_map *vec)
  260. {
  261. struct ib_send_wr write_wr;
  262. struct ib_sge *sge;
  263. int xdr_sge_no;
  264. int sge_no;
  265. int sge_bytes;
  266. int sge_off;
  267. int bc;
  268. struct svc_rdma_op_ctxt *ctxt;
  269. BUG_ON(vec->count > RPCSVC_MAXPAGES);
  270. dprintk("svcrdma: RDMA_WRITE rmr=%x, to=%llx, xdr_off=%d, "
  271. "write_len=%d, vec->sge=%p, vec->count=%lu\n",
  272. rmr, (unsigned long long)to, xdr_off,
  273. write_len, vec->sge, vec->count);
  274. ctxt = svc_rdma_get_context(xprt);
  275. ctxt->direction = DMA_TO_DEVICE;
  276. sge = ctxt->sge;
  277. /* Find the SGE associated with xdr_off */
  278. for (bc = xdr_off, xdr_sge_no = 1; bc && xdr_sge_no < vec->count;
  279. xdr_sge_no++) {
  280. if (vec->sge[xdr_sge_no].iov_len > bc)
  281. break;
  282. bc -= vec->sge[xdr_sge_no].iov_len;
  283. }
  284. sge_off = bc;
  285. bc = write_len;
  286. sge_no = 0;
  287. /* Copy the remaining SGE */
  288. while (bc != 0) {
  289. sge_bytes = min_t(size_t,
  290. bc, vec->sge[xdr_sge_no].iov_len-sge_off);
  291. sge[sge_no].length = sge_bytes;
  292. if (!vec->frmr) {
  293. sge[sge_no].addr =
  294. dma_map_xdr(xprt, &rqstp->rq_res, xdr_off,
  295. sge_bytes, DMA_TO_DEVICE);
  296. xdr_off += sge_bytes;
  297. if (ib_dma_mapping_error(xprt->sc_cm_id->device,
  298. sge[sge_no].addr))
  299. goto err;
  300. atomic_inc(&xprt->sc_dma_used);
  301. sge[sge_no].lkey = xprt->sc_dma_lkey;
  302. } else {
  303. sge[sge_no].addr = (unsigned long)
  304. vec->sge[xdr_sge_no].iov_base + sge_off;
  305. sge[sge_no].lkey = vec->frmr->mr->lkey;
  306. }
  307. ctxt->count++;
  308. ctxt->frmr = vec->frmr;
  309. sge_off = 0;
  310. sge_no++;
  311. xdr_sge_no++;
  312. BUG_ON(xdr_sge_no > vec->count);
  313. bc -= sge_bytes;
  314. }
  315. /* Prepare WRITE WR */
  316. memset(&write_wr, 0, sizeof write_wr);
  317. ctxt->wr_op = IB_WR_RDMA_WRITE;
  318. write_wr.wr_id = (unsigned long)ctxt;
  319. write_wr.sg_list = &sge[0];
  320. write_wr.num_sge = sge_no;
  321. write_wr.opcode = IB_WR_RDMA_WRITE;
  322. write_wr.send_flags = IB_SEND_SIGNALED;
  323. write_wr.wr.rdma.rkey = rmr;
  324. write_wr.wr.rdma.remote_addr = to;
  325. /* Post It */
  326. atomic_inc(&rdma_stat_write);
  327. if (svc_rdma_send(xprt, &write_wr))
  328. goto err;
  329. return 0;
  330. err:
  331. svc_rdma_unmap_dma(ctxt);
  332. svc_rdma_put_frmr(xprt, vec->frmr);
  333. svc_rdma_put_context(ctxt, 0);
  334. /* Fatal error, close transport */
  335. return -EIO;
  336. }
  337. static int send_write_chunks(struct svcxprt_rdma *xprt,
  338. struct rpcrdma_msg *rdma_argp,
  339. struct rpcrdma_msg *rdma_resp,
  340. struct svc_rqst *rqstp,
  341. struct svc_rdma_req_map *vec)
  342. {
  343. u32 xfer_len = rqstp->rq_res.page_len + rqstp->rq_res.tail[0].iov_len;
  344. int write_len;
  345. int max_write;
  346. u32 xdr_off;
  347. int chunk_off;
  348. int chunk_no;
  349. struct rpcrdma_write_array *arg_ary;
  350. struct rpcrdma_write_array *res_ary;
  351. int ret;
  352. arg_ary = svc_rdma_get_write_array(rdma_argp);
  353. if (!arg_ary)
  354. return 0;
  355. res_ary = (struct rpcrdma_write_array *)
  356. &rdma_resp->rm_body.rm_chunks[1];
  357. if (vec->frmr)
  358. max_write = vec->frmr->map_len;
  359. else
  360. max_write = xprt->sc_max_sge * PAGE_SIZE;
  361. /* Write chunks start at the pagelist */
  362. for (xdr_off = rqstp->rq_res.head[0].iov_len, chunk_no = 0;
  363. xfer_len && chunk_no < arg_ary->wc_nchunks;
  364. chunk_no++) {
  365. struct rpcrdma_segment *arg_ch;
  366. u64 rs_offset;
  367. arg_ch = &arg_ary->wc_array[chunk_no].wc_target;
  368. write_len = min(xfer_len, ntohl(arg_ch->rs_length));
  369. /* Prepare the response chunk given the length actually
  370. * written */
  371. xdr_decode_hyper((__be32 *)&arg_ch->rs_offset, &rs_offset);
  372. svc_rdma_xdr_encode_array_chunk(res_ary, chunk_no,
  373. arg_ch->rs_handle,
  374. arg_ch->rs_offset,
  375. write_len);
  376. chunk_off = 0;
  377. while (write_len) {
  378. int this_write;
  379. this_write = min(write_len, max_write);
  380. ret = send_write(xprt, rqstp,
  381. ntohl(arg_ch->rs_handle),
  382. rs_offset + chunk_off,
  383. xdr_off,
  384. this_write,
  385. vec);
  386. if (ret) {
  387. dprintk("svcrdma: RDMA_WRITE failed, ret=%d\n",
  388. ret);
  389. return -EIO;
  390. }
  391. chunk_off += this_write;
  392. xdr_off += this_write;
  393. xfer_len -= this_write;
  394. write_len -= this_write;
  395. }
  396. }
  397. /* Update the req with the number of chunks actually used */
  398. svc_rdma_xdr_encode_write_list(rdma_resp, chunk_no);
  399. return rqstp->rq_res.page_len + rqstp->rq_res.tail[0].iov_len;
  400. }
  401. static int send_reply_chunks(struct svcxprt_rdma *xprt,
  402. struct rpcrdma_msg *rdma_argp,
  403. struct rpcrdma_msg *rdma_resp,
  404. struct svc_rqst *rqstp,
  405. struct svc_rdma_req_map *vec)
  406. {
  407. u32 xfer_len = rqstp->rq_res.len;
  408. int write_len;
  409. int max_write;
  410. u32 xdr_off;
  411. int chunk_no;
  412. int chunk_off;
  413. int nchunks;
  414. struct rpcrdma_segment *ch;
  415. struct rpcrdma_write_array *arg_ary;
  416. struct rpcrdma_write_array *res_ary;
  417. int ret;
  418. arg_ary = svc_rdma_get_reply_array(rdma_argp);
  419. if (!arg_ary)
  420. return 0;
  421. /* XXX: need to fix when reply lists occur with read-list and or
  422. * write-list */
  423. res_ary = (struct rpcrdma_write_array *)
  424. &rdma_resp->rm_body.rm_chunks[2];
  425. if (vec->frmr)
  426. max_write = vec->frmr->map_len;
  427. else
  428. max_write = xprt->sc_max_sge * PAGE_SIZE;
  429. /* xdr offset starts at RPC message */
  430. nchunks = ntohl(arg_ary->wc_nchunks);
  431. for (xdr_off = 0, chunk_no = 0;
  432. xfer_len && chunk_no < nchunks;
  433. chunk_no++) {
  434. u64 rs_offset;
  435. ch = &arg_ary->wc_array[chunk_no].wc_target;
  436. write_len = min(xfer_len, htonl(ch->rs_length));
  437. /* Prepare the reply chunk given the length actually
  438. * written */
  439. xdr_decode_hyper((__be32 *)&ch->rs_offset, &rs_offset);
  440. svc_rdma_xdr_encode_array_chunk(res_ary, chunk_no,
  441. ch->rs_handle, ch->rs_offset,
  442. write_len);
  443. chunk_off = 0;
  444. while (write_len) {
  445. int this_write;
  446. this_write = min(write_len, max_write);
  447. ret = send_write(xprt, rqstp,
  448. ntohl(ch->rs_handle),
  449. rs_offset + chunk_off,
  450. xdr_off,
  451. this_write,
  452. vec);
  453. if (ret) {
  454. dprintk("svcrdma: RDMA_WRITE failed, ret=%d\n",
  455. ret);
  456. return -EIO;
  457. }
  458. chunk_off += this_write;
  459. xdr_off += this_write;
  460. xfer_len -= this_write;
  461. write_len -= this_write;
  462. }
  463. }
  464. /* Update the req with the number of chunks actually used */
  465. svc_rdma_xdr_encode_reply_array(res_ary, chunk_no);
  466. return rqstp->rq_res.len;
  467. }
  468. /* This function prepares the portion of the RPCRDMA message to be
  469. * sent in the RDMA_SEND. This function is called after data sent via
  470. * RDMA has already been transmitted. There are three cases:
  471. * - The RPCRDMA header, RPC header, and payload are all sent in a
  472. * single RDMA_SEND. This is the "inline" case.
  473. * - The RPCRDMA header and some portion of the RPC header and data
  474. * are sent via this RDMA_SEND and another portion of the data is
  475. * sent via RDMA.
  476. * - The RPCRDMA header [NOMSG] is sent in this RDMA_SEND and the RPC
  477. * header and data are all transmitted via RDMA.
  478. * In all three cases, this function prepares the RPCRDMA header in
  479. * sge[0], the 'type' parameter indicates the type to place in the
  480. * RPCRDMA header, and the 'byte_count' field indicates how much of
  481. * the XDR to include in this RDMA_SEND. NB: The offset of the payload
  482. * to send is zero in the XDR.
  483. */
  484. static int send_reply(struct svcxprt_rdma *rdma,
  485. struct svc_rqst *rqstp,
  486. struct page *page,
  487. struct rpcrdma_msg *rdma_resp,
  488. struct svc_rdma_op_ctxt *ctxt,
  489. struct svc_rdma_req_map *vec,
  490. int byte_count)
  491. {
  492. struct ib_send_wr send_wr;
  493. struct ib_send_wr inv_wr;
  494. u32 xdr_off;
  495. int sge_no;
  496. int sge_bytes;
  497. int page_no;
  498. int ret;
  499. /* Post a recv buffer to handle another request. */
  500. ret = svc_rdma_post_recv(rdma);
  501. if (ret) {
  502. printk(KERN_INFO
  503. "svcrdma: could not post a receive buffer, err=%d."
  504. "Closing transport %p.\n", ret, rdma);
  505. set_bit(XPT_CLOSE, &rdma->sc_xprt.xpt_flags);
  506. svc_rdma_put_frmr(rdma, vec->frmr);
  507. svc_rdma_put_context(ctxt, 0);
  508. return -ENOTCONN;
  509. }
  510. /* Prepare the context */
  511. ctxt->pages[0] = page;
  512. ctxt->count = 1;
  513. ctxt->frmr = vec->frmr;
  514. if (vec->frmr)
  515. set_bit(RDMACTXT_F_FAST_UNREG, &ctxt->flags);
  516. else
  517. clear_bit(RDMACTXT_F_FAST_UNREG, &ctxt->flags);
  518. /* Prepare the SGE for the RPCRDMA Header */
  519. ctxt->sge[0].lkey = rdma->sc_dma_lkey;
  520. ctxt->sge[0].length = svc_rdma_xdr_get_reply_hdr_len(rdma_resp);
  521. ctxt->sge[0].addr =
  522. ib_dma_map_page(rdma->sc_cm_id->device, page, 0,
  523. ctxt->sge[0].length, DMA_TO_DEVICE);
  524. if (ib_dma_mapping_error(rdma->sc_cm_id->device, ctxt->sge[0].addr))
  525. goto err;
  526. atomic_inc(&rdma->sc_dma_used);
  527. ctxt->direction = DMA_TO_DEVICE;
  528. /* Map the payload indicated by 'byte_count' */
  529. xdr_off = 0;
  530. for (sge_no = 1; byte_count && sge_no < vec->count; sge_no++) {
  531. sge_bytes = min_t(size_t, vec->sge[sge_no].iov_len, byte_count);
  532. byte_count -= sge_bytes;
  533. if (!vec->frmr) {
  534. ctxt->sge[sge_no].addr =
  535. dma_map_xdr(rdma, &rqstp->rq_res, xdr_off,
  536. sge_bytes, DMA_TO_DEVICE);
  537. xdr_off += sge_bytes;
  538. if (ib_dma_mapping_error(rdma->sc_cm_id->device,
  539. ctxt->sge[sge_no].addr))
  540. goto err;
  541. atomic_inc(&rdma->sc_dma_used);
  542. ctxt->sge[sge_no].lkey = rdma->sc_dma_lkey;
  543. } else {
  544. ctxt->sge[sge_no].addr = (unsigned long)
  545. vec->sge[sge_no].iov_base;
  546. ctxt->sge[sge_no].lkey = vec->frmr->mr->lkey;
  547. }
  548. ctxt->sge[sge_no].length = sge_bytes;
  549. }
  550. BUG_ON(byte_count != 0);
  551. /* Save all respages in the ctxt and remove them from the
  552. * respages array. They are our pages until the I/O
  553. * completes.
  554. */
  555. for (page_no = 0; page_no < rqstp->rq_resused; page_no++) {
  556. ctxt->pages[page_no+1] = rqstp->rq_respages[page_no];
  557. ctxt->count++;
  558. rqstp->rq_respages[page_no] = NULL;
  559. /*
  560. * If there are more pages than SGE, terminate SGE
  561. * list so that svc_rdma_unmap_dma doesn't attempt to
  562. * unmap garbage.
  563. */
  564. if (page_no+1 >= sge_no)
  565. ctxt->sge[page_no+1].length = 0;
  566. }
  567. /* The loop above bumps sc_dma_used for each sge. The
  568. * xdr_buf.tail gets a separate sge, but resides in the
  569. * same page as xdr_buf.head. Don't count it twice.
  570. */
  571. if (sge_no > ctxt->count)
  572. atomic_dec(&rdma->sc_dma_used);
  573. BUG_ON(sge_no > rdma->sc_max_sge);
  574. memset(&send_wr, 0, sizeof send_wr);
  575. ctxt->wr_op = IB_WR_SEND;
  576. send_wr.wr_id = (unsigned long)ctxt;
  577. send_wr.sg_list = ctxt->sge;
  578. send_wr.num_sge = sge_no;
  579. send_wr.opcode = IB_WR_SEND;
  580. send_wr.send_flags = IB_SEND_SIGNALED;
  581. if (vec->frmr) {
  582. /* Prepare INVALIDATE WR */
  583. memset(&inv_wr, 0, sizeof inv_wr);
  584. inv_wr.opcode = IB_WR_LOCAL_INV;
  585. inv_wr.send_flags = IB_SEND_SIGNALED;
  586. inv_wr.ex.invalidate_rkey =
  587. vec->frmr->mr->lkey;
  588. send_wr.next = &inv_wr;
  589. }
  590. ret = svc_rdma_send(rdma, &send_wr);
  591. if (ret)
  592. goto err;
  593. return 0;
  594. err:
  595. svc_rdma_unmap_dma(ctxt);
  596. svc_rdma_put_frmr(rdma, vec->frmr);
  597. svc_rdma_put_context(ctxt, 1);
  598. return -EIO;
  599. }
  600. void svc_rdma_prep_reply_hdr(struct svc_rqst *rqstp)
  601. {
  602. }
  603. /*
  604. * Return the start of an xdr buffer.
  605. */
  606. static void *xdr_start(struct xdr_buf *xdr)
  607. {
  608. return xdr->head[0].iov_base -
  609. (xdr->len -
  610. xdr->page_len -
  611. xdr->tail[0].iov_len -
  612. xdr->head[0].iov_len);
  613. }
  614. int svc_rdma_sendto(struct svc_rqst *rqstp)
  615. {
  616. struct svc_xprt *xprt = rqstp->rq_xprt;
  617. struct svcxprt_rdma *rdma =
  618. container_of(xprt, struct svcxprt_rdma, sc_xprt);
  619. struct rpcrdma_msg *rdma_argp;
  620. struct rpcrdma_msg *rdma_resp;
  621. struct rpcrdma_write_array *reply_ary;
  622. enum rpcrdma_proc reply_type;
  623. int ret;
  624. int inline_bytes;
  625. struct page *res_page;
  626. struct svc_rdma_op_ctxt *ctxt;
  627. struct svc_rdma_req_map *vec;
  628. dprintk("svcrdma: sending response for rqstp=%p\n", rqstp);
  629. /* Get the RDMA request header. */
  630. rdma_argp = xdr_start(&rqstp->rq_arg);
  631. /* Build an req vec for the XDR */
  632. ctxt = svc_rdma_get_context(rdma);
  633. ctxt->direction = DMA_TO_DEVICE;
  634. vec = svc_rdma_get_req_map();
  635. ret = map_xdr(rdma, &rqstp->rq_res, vec);
  636. if (ret)
  637. goto err0;
  638. inline_bytes = rqstp->rq_res.len;
  639. /* Create the RDMA response header */
  640. res_page = svc_rdma_get_page();
  641. rdma_resp = page_address(res_page);
  642. reply_ary = svc_rdma_get_reply_array(rdma_argp);
  643. if (reply_ary)
  644. reply_type = RDMA_NOMSG;
  645. else
  646. reply_type = RDMA_MSG;
  647. svc_rdma_xdr_encode_reply_header(rdma, rdma_argp,
  648. rdma_resp, reply_type);
  649. /* Send any write-chunk data and build resp write-list */
  650. ret = send_write_chunks(rdma, rdma_argp, rdma_resp,
  651. rqstp, vec);
  652. if (ret < 0) {
  653. printk(KERN_ERR "svcrdma: failed to send write chunks, rc=%d\n",
  654. ret);
  655. goto err1;
  656. }
  657. inline_bytes -= ret;
  658. /* Send any reply-list data and update resp reply-list */
  659. ret = send_reply_chunks(rdma, rdma_argp, rdma_resp,
  660. rqstp, vec);
  661. if (ret < 0) {
  662. printk(KERN_ERR "svcrdma: failed to send reply chunks, rc=%d\n",
  663. ret);
  664. goto err1;
  665. }
  666. inline_bytes -= ret;
  667. ret = send_reply(rdma, rqstp, res_page, rdma_resp, ctxt, vec,
  668. inline_bytes);
  669. svc_rdma_put_req_map(vec);
  670. dprintk("svcrdma: send_reply returns %d\n", ret);
  671. return ret;
  672. err1:
  673. put_page(res_page);
  674. err0:
  675. svc_rdma_put_req_map(vec);
  676. svc_rdma_put_context(ctxt, 0);
  677. return ret;
  678. }