1 // SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause
2 /*
3 * Copyright (c) 2016-2018 Oracle. All rights reserved.
4 * Copyright (c) 2014 Open Grid Computing, Inc. All rights reserved.
5 * Copyright (c) 2005-2006 Network Appliance, Inc. All rights reserved.
6 *
7 * This software is available to you under a choice of one of two
8 * licenses. You may choose to be licensed under the terms of the GNU
9 * General Public License (GPL) Version 2, available from the file
10 * COPYING in the main directory of this source tree, or the BSD-type
11 * license below:
12 *
13 * Redistribution and use in source and binary forms, with or without
14 * modification, are permitted provided that the following conditions
15 * are met:
16 *
17 * Redistributions of source code must retain the above copyright
18 * notice, this list of conditions and the following disclaimer.
19 *
20 * Redistributions in binary form must reproduce the above
21 * copyright notice, this list of conditions and the following
22 * disclaimer in the documentation and/or other materials provided
23 * with the distribution.
24 *
25 * Neither the name of the Network Appliance, Inc. nor the names of
26 * its contributors may be used to endorse or promote products
27 * derived from this software without specific prior written
28 * permission.
29 *
30 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
31 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
32 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
33 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
34 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
35 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
36 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
37 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
38 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
39 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
40 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
41 *
42 * Author: Tom Tucker <tom@opengridcomputing.com>
43 */
44
45 /* Operation
46 *
47 * The main entry point is svc_rdma_sendto. This is called by the
48 * RPC server when an RPC Reply is ready to be transmitted to a client.
49 *
50 * The passed-in svc_rqst contains a struct xdr_buf which holds an
51 * XDR-encoded RPC Reply message. sendto must construct the RPC-over-RDMA
52 * transport header, post all Write WRs needed for this Reply, then post
53 * a Send WR conveying the transport header and the RPC message itself to
54 * the client.
55 *
56 * svc_rdma_sendto must fully transmit the Reply before returning, as
57 * the svc_rqst will be recycled as soon as sendto returns. Remaining
58 * resources referred to by the svc_rqst are also recycled at that time.
59 * Therefore any resources that must remain longer must be detached
60 * from the svc_rqst and released later.
61 *
62 * Page Management
63 *
64 * The I/O that performs Reply transmission is asynchronous, and may
65 * complete well after sendto returns. Thus pages under I/O must be
66 * removed from the svc_rqst before sendto returns.
67 *
68 * The logic here depends on Send Queue and completion ordering. Since
69 * the Send WR is always posted last, it will always complete last. Thus
70 * when it completes, it is guaranteed that all previous Write WRs have
71 * also completed.
72 *
73 * Write WRs are constructed and posted. Each Write segment gets its own
74 * svc_rdma_rw_ctxt, allowing the Write completion handler to find and
75 * DMA-unmap the pages under I/O for that Write segment. The Write
76 * completion handler does not release any pages.
77 *
78 * When the Send WR is constructed, it also gets its own svc_rdma_send_ctxt.
79 * The ownership of all of the Reply's pages are transferred into that
80 * ctxt, the Send WR is posted, and sendto returns.
81 *
82 * The svc_rdma_send_ctxt is presented when the Send WR completes. The
83 * Send completion handler finally releases the Reply's pages.
84 *
85 * This mechanism also assumes that completions on the transport's Send
86 * Completion Queue do not run in parallel. Otherwise a Write completion
87 * and Send completion running at the same time could release pages that
88 * are still DMA-mapped.
89 *
90 * Error Handling
91 *
92 * - If the Send WR is posted successfully, it will either complete
93 * successfully, or get flushed. Either way, the Send completion
94 * handler releases the Reply's pages.
95 * - If the Send WR cannot be not posted, the forward path releases
96 * the Reply's pages.
97 *
98 * This handles the case, without the use of page reference counting,
99 * where two different Write segments send portions of the same page.
100 */
101
102 #include <linux/spinlock.h>
103 #include <asm/unaligned.h>
104
105 #include <rdma/ib_verbs.h>
106 #include <rdma/rdma_cm.h>
107
108 #include <linux/sunrpc/debug.h>
109 #include <linux/sunrpc/rpc_rdma.h>
110 #include <linux/sunrpc/svc_rdma.h>
111
112 #include "xprt_rdma.h"
113 #include <trace/events/rpcrdma.h>
114
115 #define RPCDBG_FACILITY RPCDBG_SVCXPRT
116
117 static void svc_rdma_wc_send(struct ib_cq *cq, struct ib_wc *wc);
118
119 static inline struct svc_rdma_send_ctxt *
svc_rdma_next_send_ctxt(struct list_head * list)120 svc_rdma_next_send_ctxt(struct list_head *list)
121 {
122 return list_first_entry_or_null(list, struct svc_rdma_send_ctxt,
123 sc_list);
124 }
125
126 static struct svc_rdma_send_ctxt *
svc_rdma_send_ctxt_alloc(struct svcxprt_rdma * rdma)127 svc_rdma_send_ctxt_alloc(struct svcxprt_rdma *rdma)
128 {
129 struct svc_rdma_send_ctxt *ctxt;
130 dma_addr_t addr;
131 void *buffer;
132 size_t size;
133 int i;
134
135 size = sizeof(*ctxt);
136 size += rdma->sc_max_send_sges * sizeof(struct ib_sge);
137 ctxt = kmalloc(size, GFP_KERNEL);
138 if (!ctxt)
139 goto fail0;
140 buffer = kmalloc(rdma->sc_max_req_size, GFP_KERNEL);
141 if (!buffer)
142 goto fail1;
143 addr = ib_dma_map_single(rdma->sc_pd->device, buffer,
144 rdma->sc_max_req_size, DMA_TO_DEVICE);
145 if (ib_dma_mapping_error(rdma->sc_pd->device, addr))
146 goto fail2;
147
148 ctxt->sc_send_wr.next = NULL;
149 ctxt->sc_send_wr.wr_cqe = &ctxt->sc_cqe;
150 ctxt->sc_send_wr.sg_list = ctxt->sc_sges;
151 ctxt->sc_send_wr.send_flags = IB_SEND_SIGNALED;
152 ctxt->sc_cqe.done = svc_rdma_wc_send;
153 ctxt->sc_xprt_buf = buffer;
154 ctxt->sc_sges[0].addr = addr;
155
156 for (i = 0; i < rdma->sc_max_send_sges; i++)
157 ctxt->sc_sges[i].lkey = rdma->sc_pd->local_dma_lkey;
158 return ctxt;
159
160 fail2:
161 kfree(buffer);
162 fail1:
163 kfree(ctxt);
164 fail0:
165 return NULL;
166 }
167
168 /**
169 * svc_rdma_send_ctxts_destroy - Release all send_ctxt's for an xprt
170 * @rdma: svcxprt_rdma being torn down
171 *
172 */
svc_rdma_send_ctxts_destroy(struct svcxprt_rdma * rdma)173 void svc_rdma_send_ctxts_destroy(struct svcxprt_rdma *rdma)
174 {
175 struct svc_rdma_send_ctxt *ctxt;
176
177 while ((ctxt = svc_rdma_next_send_ctxt(&rdma->sc_send_ctxts))) {
178 list_del(&ctxt->sc_list);
179 ib_dma_unmap_single(rdma->sc_pd->device,
180 ctxt->sc_sges[0].addr,
181 rdma->sc_max_req_size,
182 DMA_TO_DEVICE);
183 kfree(ctxt->sc_xprt_buf);
184 kfree(ctxt);
185 }
186 }
187
188 /**
189 * svc_rdma_send_ctxt_get - Get a free send_ctxt
190 * @rdma: controlling svcxprt_rdma
191 *
192 * Returns a ready-to-use send_ctxt, or NULL if none are
193 * available and a fresh one cannot be allocated.
194 */
svc_rdma_send_ctxt_get(struct svcxprt_rdma * rdma)195 struct svc_rdma_send_ctxt *svc_rdma_send_ctxt_get(struct svcxprt_rdma *rdma)
196 {
197 struct svc_rdma_send_ctxt *ctxt;
198
199 spin_lock(&rdma->sc_send_lock);
200 ctxt = svc_rdma_next_send_ctxt(&rdma->sc_send_ctxts);
201 if (!ctxt)
202 goto out_empty;
203 list_del(&ctxt->sc_list);
204 spin_unlock(&rdma->sc_send_lock);
205
206 out:
207 ctxt->sc_send_wr.num_sge = 0;
208 ctxt->sc_cur_sge_no = 0;
209 ctxt->sc_page_count = 0;
210 return ctxt;
211
212 out_empty:
213 spin_unlock(&rdma->sc_send_lock);
214 ctxt = svc_rdma_send_ctxt_alloc(rdma);
215 if (!ctxt)
216 return NULL;
217 goto out;
218 }
219
220 /**
221 * svc_rdma_send_ctxt_put - Return send_ctxt to free list
222 * @rdma: controlling svcxprt_rdma
223 * @ctxt: object to return to the free list
224 *
225 * Pages left in sc_pages are DMA unmapped and released.
226 */
svc_rdma_send_ctxt_put(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt)227 void svc_rdma_send_ctxt_put(struct svcxprt_rdma *rdma,
228 struct svc_rdma_send_ctxt *ctxt)
229 {
230 struct ib_device *device = rdma->sc_cm_id->device;
231 unsigned int i;
232
233 /* The first SGE contains the transport header, which
234 * remains mapped until @ctxt is destroyed.
235 */
236 for (i = 1; i < ctxt->sc_send_wr.num_sge; i++)
237 ib_dma_unmap_page(device,
238 ctxt->sc_sges[i].addr,
239 ctxt->sc_sges[i].length,
240 DMA_TO_DEVICE);
241
242 for (i = 0; i < ctxt->sc_page_count; ++i)
243 put_page(ctxt->sc_pages[i]);
244
245 spin_lock(&rdma->sc_send_lock);
246 list_add(&ctxt->sc_list, &rdma->sc_send_ctxts);
247 spin_unlock(&rdma->sc_send_lock);
248 }
249
250 /**
251 * svc_rdma_wc_send - Invoked by RDMA provider for each polled Send WC
252 * @cq: Completion Queue context
253 * @wc: Work Completion object
254 *
255 * NB: The svc_xprt/svcxprt_rdma is pinned whenever it's possible that
256 * the Send completion handler could be running.
257 */
svc_rdma_wc_send(struct ib_cq * cq,struct ib_wc * wc)258 static void svc_rdma_wc_send(struct ib_cq *cq, struct ib_wc *wc)
259 {
260 struct svcxprt_rdma *rdma = cq->cq_context;
261 struct ib_cqe *cqe = wc->wr_cqe;
262 struct svc_rdma_send_ctxt *ctxt;
263
264 trace_svcrdma_wc_send(wc);
265
266 atomic_inc(&rdma->sc_sq_avail);
267 wake_up(&rdma->sc_send_wait);
268
269 ctxt = container_of(cqe, struct svc_rdma_send_ctxt, sc_cqe);
270 svc_rdma_send_ctxt_put(rdma, ctxt);
271
272 if (unlikely(wc->status != IB_WC_SUCCESS)) {
273 set_bit(XPT_CLOSE, &rdma->sc_xprt.xpt_flags);
274 svc_xprt_enqueue(&rdma->sc_xprt);
275 if (wc->status != IB_WC_WR_FLUSH_ERR)
276 pr_err("svcrdma: Send: %s (%u/0x%x)\n",
277 ib_wc_status_msg(wc->status),
278 wc->status, wc->vendor_err);
279 }
280
281 svc_xprt_put(&rdma->sc_xprt);
282 }
283
284 /**
285 * svc_rdma_send - Post a single Send WR
286 * @rdma: transport on which to post the WR
287 * @wr: prepared Send WR to post
288 *
289 * Returns zero the Send WR was posted successfully. Otherwise, a
290 * negative errno is returned.
291 */
svc_rdma_send(struct svcxprt_rdma * rdma,struct ib_send_wr * wr)292 int svc_rdma_send(struct svcxprt_rdma *rdma, struct ib_send_wr *wr)
293 {
294 int ret;
295
296 might_sleep();
297
298 /* If the SQ is full, wait until an SQ entry is available */
299 while (1) {
300 if ((atomic_dec_return(&rdma->sc_sq_avail) < 0)) {
301 atomic_inc(&rdma_stat_sq_starve);
302 trace_svcrdma_sq_full(rdma);
303 atomic_inc(&rdma->sc_sq_avail);
304 wait_event(rdma->sc_send_wait,
305 atomic_read(&rdma->sc_sq_avail) > 1);
306 if (test_bit(XPT_CLOSE, &rdma->sc_xprt.xpt_flags))
307 return -ENOTCONN;
308 trace_svcrdma_sq_retry(rdma);
309 continue;
310 }
311
312 svc_xprt_get(&rdma->sc_xprt);
313 ret = ib_post_send(rdma->sc_qp, wr, NULL);
314 trace_svcrdma_post_send(wr, ret);
315 if (ret) {
316 set_bit(XPT_CLOSE, &rdma->sc_xprt.xpt_flags);
317 svc_xprt_put(&rdma->sc_xprt);
318 wake_up(&rdma->sc_send_wait);
319 }
320 break;
321 }
322 return ret;
323 }
324
xdr_padsize(u32 len)325 static u32 xdr_padsize(u32 len)
326 {
327 return (len & 3) ? (4 - (len & 3)) : 0;
328 }
329
330 /* Returns length of transport header, in bytes.
331 */
svc_rdma_reply_hdr_len(__be32 * rdma_resp)332 static unsigned int svc_rdma_reply_hdr_len(__be32 *rdma_resp)
333 {
334 unsigned int nsegs;
335 __be32 *p;
336
337 p = rdma_resp;
338
339 /* RPC-over-RDMA V1 replies never have a Read list. */
340 p += rpcrdma_fixed_maxsz + 1;
341
342 /* Skip Write list. */
343 while (*p++ != xdr_zero) {
344 nsegs = be32_to_cpup(p++);
345 p += nsegs * rpcrdma_segment_maxsz;
346 }
347
348 /* Skip Reply chunk. */
349 if (*p++ != xdr_zero) {
350 nsegs = be32_to_cpup(p++);
351 p += nsegs * rpcrdma_segment_maxsz;
352 }
353
354 return (unsigned long)p - (unsigned long)rdma_resp;
355 }
356
357 /* One Write chunk is copied from Call transport header to Reply
358 * transport header. Each segment's length field is updated to
359 * reflect number of bytes consumed in the segment.
360 *
361 * Returns number of segments in this chunk.
362 */
xdr_encode_write_chunk(__be32 * dst,__be32 * src,unsigned int remaining)363 static unsigned int xdr_encode_write_chunk(__be32 *dst, __be32 *src,
364 unsigned int remaining)
365 {
366 unsigned int i, nsegs;
367 u32 seg_len;
368
369 /* Write list discriminator */
370 *dst++ = *src++;
371
372 /* number of segments in this chunk */
373 nsegs = be32_to_cpup(src);
374 *dst++ = *src++;
375
376 for (i = nsegs; i; i--) {
377 /* segment's RDMA handle */
378 *dst++ = *src++;
379
380 /* bytes returned in this segment */
381 seg_len = be32_to_cpu(*src);
382 if (remaining >= seg_len) {
383 /* entire segment was consumed */
384 *dst = *src;
385 remaining -= seg_len;
386 } else {
387 /* segment only partly filled */
388 *dst = cpu_to_be32(remaining);
389 remaining = 0;
390 }
391 dst++; src++;
392
393 /* segment's RDMA offset */
394 *dst++ = *src++;
395 *dst++ = *src++;
396 }
397
398 return nsegs;
399 }
400
401 /* The client provided a Write list in the Call message. Fill in
402 * the segments in the first Write chunk in the Reply's transport
403 * header with the number of bytes consumed in each segment.
404 * Remaining chunks are returned unused.
405 *
406 * Assumptions:
407 * - Client has provided only one Write chunk
408 */
svc_rdma_xdr_encode_write_list(__be32 * rdma_resp,__be32 * wr_ch,unsigned int consumed)409 static void svc_rdma_xdr_encode_write_list(__be32 *rdma_resp, __be32 *wr_ch,
410 unsigned int consumed)
411 {
412 unsigned int nsegs;
413 __be32 *p, *q;
414
415 /* RPC-over-RDMA V1 replies never have a Read list. */
416 p = rdma_resp + rpcrdma_fixed_maxsz + 1;
417
418 q = wr_ch;
419 while (*q != xdr_zero) {
420 nsegs = xdr_encode_write_chunk(p, q, consumed);
421 q += 2 + nsegs * rpcrdma_segment_maxsz;
422 p += 2 + nsegs * rpcrdma_segment_maxsz;
423 consumed = 0;
424 }
425
426 /* Terminate Write list */
427 *p++ = xdr_zero;
428
429 /* Reply chunk discriminator; may be replaced later */
430 *p = xdr_zero;
431 }
432
433 /* The client provided a Reply chunk in the Call message. Fill in
434 * the segments in the Reply chunk in the Reply message with the
435 * number of bytes consumed in each segment.
436 *
437 * Assumptions:
438 * - Reply can always fit in the provided Reply chunk
439 */
svc_rdma_xdr_encode_reply_chunk(__be32 * rdma_resp,__be32 * rp_ch,unsigned int consumed)440 static void svc_rdma_xdr_encode_reply_chunk(__be32 *rdma_resp, __be32 *rp_ch,
441 unsigned int consumed)
442 {
443 __be32 *p;
444
445 /* Find the Reply chunk in the Reply's xprt header.
446 * RPC-over-RDMA V1 replies never have a Read list.
447 */
448 p = rdma_resp + rpcrdma_fixed_maxsz + 1;
449
450 /* Skip past Write list */
451 while (*p++ != xdr_zero)
452 p += 1 + be32_to_cpup(p) * rpcrdma_segment_maxsz;
453
454 xdr_encode_write_chunk(p, rp_ch, consumed);
455 }
456
457 /* Parse the RPC Call's transport header.
458 */
svc_rdma_get_write_arrays(__be32 * rdma_argp,__be32 ** write,__be32 ** reply)459 static void svc_rdma_get_write_arrays(__be32 *rdma_argp,
460 __be32 **write, __be32 **reply)
461 {
462 __be32 *p;
463
464 p = rdma_argp + rpcrdma_fixed_maxsz;
465
466 /* Read list */
467 while (*p++ != xdr_zero)
468 p += 5;
469
470 /* Write list */
471 if (*p != xdr_zero) {
472 *write = p;
473 while (*p++ != xdr_zero)
474 p += 1 + be32_to_cpu(*p) * 4;
475 } else {
476 *write = NULL;
477 p++;
478 }
479
480 /* Reply chunk */
481 if (*p != xdr_zero)
482 *reply = p;
483 else
484 *reply = NULL;
485 }
486
487 /* RPC-over-RDMA Version One private extension: Remote Invalidation.
488 * Responder's choice: requester signals it can handle Send With
489 * Invalidate, and responder chooses one rkey to invalidate.
490 *
491 * Find a candidate rkey to invalidate when sending a reply. Picks the
492 * first R_key it finds in the chunk lists.
493 *
494 * Returns zero if RPC's chunk lists are empty.
495 */
svc_rdma_get_inv_rkey(__be32 * rdma_argp,__be32 * wr_lst,__be32 * rp_ch)496 static u32 svc_rdma_get_inv_rkey(__be32 *rdma_argp,
497 __be32 *wr_lst, __be32 *rp_ch)
498 {
499 __be32 *p;
500
501 p = rdma_argp + rpcrdma_fixed_maxsz;
502 if (*p != xdr_zero)
503 p += 2;
504 else if (wr_lst && be32_to_cpup(wr_lst + 1))
505 p = wr_lst + 2;
506 else if (rp_ch && be32_to_cpup(rp_ch + 1))
507 p = rp_ch + 2;
508 else
509 return 0;
510 return be32_to_cpup(p);
511 }
512
svc_rdma_dma_map_page(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt,struct page * page,unsigned long offset,unsigned int len)513 static int svc_rdma_dma_map_page(struct svcxprt_rdma *rdma,
514 struct svc_rdma_send_ctxt *ctxt,
515 struct page *page,
516 unsigned long offset,
517 unsigned int len)
518 {
519 struct ib_device *dev = rdma->sc_cm_id->device;
520 dma_addr_t dma_addr;
521
522 dma_addr = ib_dma_map_page(dev, page, offset, len, DMA_TO_DEVICE);
523 if (ib_dma_mapping_error(dev, dma_addr))
524 goto out_maperr;
525
526 ctxt->sc_sges[ctxt->sc_cur_sge_no].addr = dma_addr;
527 ctxt->sc_sges[ctxt->sc_cur_sge_no].length = len;
528 ctxt->sc_send_wr.num_sge++;
529 return 0;
530
531 out_maperr:
532 trace_svcrdma_dma_map_page(rdma, page);
533 return -EIO;
534 }
535
536 /* ib_dma_map_page() is used here because svc_rdma_dma_unmap()
537 * handles DMA-unmap and it uses ib_dma_unmap_page() exclusively.
538 */
svc_rdma_dma_map_buf(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt,unsigned char * base,unsigned int len)539 static int svc_rdma_dma_map_buf(struct svcxprt_rdma *rdma,
540 struct svc_rdma_send_ctxt *ctxt,
541 unsigned char *base,
542 unsigned int len)
543 {
544 return svc_rdma_dma_map_page(rdma, ctxt, virt_to_page(base),
545 offset_in_page(base), len);
546 }
547
548 /**
549 * svc_rdma_sync_reply_hdr - DMA sync the transport header buffer
550 * @rdma: controlling transport
551 * @ctxt: send_ctxt for the Send WR
552 * @len: length of transport header
553 *
554 */
svc_rdma_sync_reply_hdr(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt,unsigned int len)555 void svc_rdma_sync_reply_hdr(struct svcxprt_rdma *rdma,
556 struct svc_rdma_send_ctxt *ctxt,
557 unsigned int len)
558 {
559 ctxt->sc_sges[0].length = len;
560 ctxt->sc_send_wr.num_sge++;
561 ib_dma_sync_single_for_device(rdma->sc_pd->device,
562 ctxt->sc_sges[0].addr, len,
563 DMA_TO_DEVICE);
564 }
565
566 /* svc_rdma_map_reply_msg - Map the buffer holding RPC message
567 * @rdma: controlling transport
568 * @ctxt: send_ctxt for the Send WR
569 * @xdr: prepared xdr_buf containing RPC message
570 * @wr_lst: pointer to Call header's Write list, or NULL
571 *
572 * Load the xdr_buf into the ctxt's sge array, and DMA map each
573 * element as it is added.
574 *
575 * Returns zero on success, or a negative errno on failure.
576 */
svc_rdma_map_reply_msg(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt,struct xdr_buf * xdr,__be32 * wr_lst)577 int svc_rdma_map_reply_msg(struct svcxprt_rdma *rdma,
578 struct svc_rdma_send_ctxt *ctxt,
579 struct xdr_buf *xdr, __be32 *wr_lst)
580 {
581 unsigned int len, remaining;
582 unsigned long page_off;
583 struct page **ppages;
584 unsigned char *base;
585 u32 xdr_pad;
586 int ret;
587
588 if (++ctxt->sc_cur_sge_no >= rdma->sc_max_send_sges)
589 return -EIO;
590 ret = svc_rdma_dma_map_buf(rdma, ctxt,
591 xdr->head[0].iov_base,
592 xdr->head[0].iov_len);
593 if (ret < 0)
594 return ret;
595
596 /* If a Write chunk is present, the xdr_buf's page list
597 * is not included inline. However the Upper Layer may
598 * have added XDR padding in the tail buffer, and that
599 * should not be included inline.
600 */
601 if (wr_lst) {
602 base = xdr->tail[0].iov_base;
603 len = xdr->tail[0].iov_len;
604 xdr_pad = xdr_padsize(xdr->page_len);
605
606 if (len && xdr_pad) {
607 base += xdr_pad;
608 len -= xdr_pad;
609 }
610
611 goto tail;
612 }
613
614 ppages = xdr->pages + (xdr->page_base >> PAGE_SHIFT);
615 page_off = xdr->page_base & ~PAGE_MASK;
616 remaining = xdr->page_len;
617 while (remaining) {
618 len = min_t(u32, PAGE_SIZE - page_off, remaining);
619
620 if (++ctxt->sc_cur_sge_no >= rdma->sc_max_send_sges)
621 return -EIO;
622 ret = svc_rdma_dma_map_page(rdma, ctxt, *ppages++,
623 page_off, len);
624 if (ret < 0)
625 return ret;
626
627 remaining -= len;
628 page_off = 0;
629 }
630
631 base = xdr->tail[0].iov_base;
632 len = xdr->tail[0].iov_len;
633 tail:
634 if (len) {
635 if (++ctxt->sc_cur_sge_no >= rdma->sc_max_send_sges)
636 return -EIO;
637 ret = svc_rdma_dma_map_buf(rdma, ctxt, base, len);
638 if (ret < 0)
639 return ret;
640 }
641
642 return 0;
643 }
644
645 /* The svc_rqst and all resources it owns are released as soon as
646 * svc_rdma_sendto returns. Transfer pages under I/O to the ctxt
647 * so they are released by the Send completion handler.
648 */
svc_rdma_save_io_pages(struct svc_rqst * rqstp,struct svc_rdma_send_ctxt * ctxt)649 static void svc_rdma_save_io_pages(struct svc_rqst *rqstp,
650 struct svc_rdma_send_ctxt *ctxt)
651 {
652 int i, pages = rqstp->rq_next_page - rqstp->rq_respages;
653
654 ctxt->sc_page_count += pages;
655 for (i = 0; i < pages; i++) {
656 ctxt->sc_pages[i] = rqstp->rq_respages[i];
657 rqstp->rq_respages[i] = NULL;
658 }
659
660 /* Prevent svc_xprt_release from releasing pages in rq_pages */
661 rqstp->rq_next_page = rqstp->rq_respages;
662 }
663
664 /* Prepare the portion of the RPC Reply that will be transmitted
665 * via RDMA Send. The RPC-over-RDMA transport header is prepared
666 * in sc_sges[0], and the RPC xdr_buf is prepared in following sges.
667 *
668 * Depending on whether a Write list or Reply chunk is present,
669 * the server may send all, a portion of, or none of the xdr_buf.
670 * In the latter case, only the transport header (sc_sges[0]) is
671 * transmitted.
672 *
673 * RDMA Send is the last step of transmitting an RPC reply. Pages
674 * involved in the earlier RDMA Writes are here transferred out
675 * of the rqstp and into the ctxt's page array. These pages are
676 * DMA unmapped by each Write completion, but the subsequent Send
677 * completion finally releases these pages.
678 *
679 * Assumptions:
680 * - The Reply's transport header will never be larger than a page.
681 */
svc_rdma_send_reply_msg(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt,__be32 * rdma_argp,struct svc_rqst * rqstp,__be32 * wr_lst,__be32 * rp_ch)682 static int svc_rdma_send_reply_msg(struct svcxprt_rdma *rdma,
683 struct svc_rdma_send_ctxt *ctxt,
684 __be32 *rdma_argp,
685 struct svc_rqst *rqstp,
686 __be32 *wr_lst, __be32 *rp_ch)
687 {
688 int ret;
689
690 if (!rp_ch) {
691 ret = svc_rdma_map_reply_msg(rdma, ctxt,
692 &rqstp->rq_res, wr_lst);
693 if (ret < 0)
694 return ret;
695 }
696
697 svc_rdma_save_io_pages(rqstp, ctxt);
698
699 ctxt->sc_send_wr.opcode = IB_WR_SEND;
700 if (rdma->sc_snd_w_inv) {
701 ctxt->sc_send_wr.ex.invalidate_rkey =
702 svc_rdma_get_inv_rkey(rdma_argp, wr_lst, rp_ch);
703 if (ctxt->sc_send_wr.ex.invalidate_rkey)
704 ctxt->sc_send_wr.opcode = IB_WR_SEND_WITH_INV;
705 }
706 dprintk("svcrdma: posting Send WR with %u sge(s)\n",
707 ctxt->sc_send_wr.num_sge);
708 return svc_rdma_send(rdma, &ctxt->sc_send_wr);
709 }
710
711 /* Given the client-provided Write and Reply chunks, the server was not
712 * able to form a complete reply. Return an RDMA_ERROR message so the
713 * client can retire this RPC transaction. As above, the Send completion
714 * routine releases payload pages that were part of a previous RDMA Write.
715 *
716 * Remote Invalidation is skipped for simplicity.
717 */
svc_rdma_send_error_msg(struct svcxprt_rdma * rdma,struct svc_rdma_send_ctxt * ctxt,struct svc_rqst * rqstp)718 static int svc_rdma_send_error_msg(struct svcxprt_rdma *rdma,
719 struct svc_rdma_send_ctxt *ctxt,
720 struct svc_rqst *rqstp)
721 {
722 __be32 *p;
723 int ret;
724
725 p = ctxt->sc_xprt_buf;
726 trace_svcrdma_err_chunk(*p);
727 p += 3;
728 *p++ = rdma_error;
729 *p = err_chunk;
730 svc_rdma_sync_reply_hdr(rdma, ctxt, RPCRDMA_HDRLEN_ERR);
731
732 svc_rdma_save_io_pages(rqstp, ctxt);
733
734 ctxt->sc_send_wr.opcode = IB_WR_SEND;
735 ret = svc_rdma_send(rdma, &ctxt->sc_send_wr);
736 if (ret) {
737 svc_rdma_send_ctxt_put(rdma, ctxt);
738 return ret;
739 }
740
741 return 0;
742 }
743
svc_rdma_prep_reply_hdr(struct svc_rqst * rqstp)744 void svc_rdma_prep_reply_hdr(struct svc_rqst *rqstp)
745 {
746 }
747
748 /**
749 * svc_rdma_sendto - Transmit an RPC reply
750 * @rqstp: processed RPC request, reply XDR already in ::rq_res
751 *
752 * Any resources still associated with @rqstp are released upon return.
753 * If no reply message was possible, the connection is closed.
754 *
755 * Returns:
756 * %0 if an RPC reply has been successfully posted,
757 * %-ENOMEM if a resource shortage occurred (connection is lost),
758 * %-ENOTCONN if posting failed (connection is lost).
759 */
svc_rdma_sendto(struct svc_rqst * rqstp)760 int svc_rdma_sendto(struct svc_rqst *rqstp)
761 {
762 struct svc_xprt *xprt = rqstp->rq_xprt;
763 struct svcxprt_rdma *rdma =
764 container_of(xprt, struct svcxprt_rdma, sc_xprt);
765 struct svc_rdma_recv_ctxt *rctxt = rqstp->rq_xprt_ctxt;
766 __be32 *p, *rdma_argp, *rdma_resp, *wr_lst, *rp_ch;
767 struct xdr_buf *xdr = &rqstp->rq_res;
768 struct svc_rdma_send_ctxt *sctxt;
769 int ret;
770
771 rdma_argp = rctxt->rc_recv_buf;
772 svc_rdma_get_write_arrays(rdma_argp, &wr_lst, &rp_ch);
773
774 /* Create the RDMA response header. xprt->xpt_mutex,
775 * acquired in svc_send(), serializes RPC replies. The
776 * code path below that inserts the credit grant value
777 * into each transport header runs only inside this
778 * critical section.
779 */
780 ret = -ENOMEM;
781 sctxt = svc_rdma_send_ctxt_get(rdma);
782 if (!sctxt)
783 goto err0;
784 rdma_resp = sctxt->sc_xprt_buf;
785
786 p = rdma_resp;
787 *p++ = *rdma_argp;
788 *p++ = *(rdma_argp + 1);
789 *p++ = rdma->sc_fc_credits;
790 *p++ = rp_ch ? rdma_nomsg : rdma_msg;
791
792 /* Start with empty chunks */
793 *p++ = xdr_zero;
794 *p++ = xdr_zero;
795 *p = xdr_zero;
796
797 if (wr_lst) {
798 /* XXX: Presume the client sent only one Write chunk */
799 ret = svc_rdma_send_write_chunk(rdma, wr_lst, xdr);
800 if (ret < 0)
801 goto err2;
802 svc_rdma_xdr_encode_write_list(rdma_resp, wr_lst, ret);
803 }
804 if (rp_ch) {
805 ret = svc_rdma_send_reply_chunk(rdma, rp_ch, wr_lst, xdr);
806 if (ret < 0)
807 goto err2;
808 svc_rdma_xdr_encode_reply_chunk(rdma_resp, rp_ch, ret);
809 }
810
811 svc_rdma_sync_reply_hdr(rdma, sctxt, svc_rdma_reply_hdr_len(rdma_resp));
812 ret = svc_rdma_send_reply_msg(rdma, sctxt, rdma_argp, rqstp,
813 wr_lst, rp_ch);
814 if (ret < 0)
815 goto err1;
816 ret = 0;
817
818 out:
819 rqstp->rq_xprt_ctxt = NULL;
820 svc_rdma_recv_ctxt_put(rdma, rctxt);
821 return ret;
822
823 err2:
824 if (ret != -E2BIG && ret != -EINVAL)
825 goto err1;
826
827 ret = svc_rdma_send_error_msg(rdma, sctxt, rqstp);
828 if (ret < 0)
829 goto err1;
830 ret = 0;
831 goto out;
832
833 err1:
834 svc_rdma_send_ctxt_put(rdma, sctxt);
835 err0:
836 trace_svcrdma_send_failed(rqstp, ret);
837 set_bit(XPT_CLOSE, &xprt->xpt_flags);
838 ret = -ENOTCONN;
839 goto out;
840 }
841