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[fs/lustre-release.git] / lustre / ptlrpc / client.c
1 /*
2  * GPL HEADER START
3  *
4  * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
5  *
6  * This program is free software; you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License version 2 only,
8  * as published by the Free Software Foundation.
9  *
10  * This program is distributed in the hope that it will be useful, but
11  * WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
13  * General Public License version 2 for more details (a copy is included
14  * in the LICENSE file that accompanied this code).
15  *
16  * You should have received a copy of the GNU General Public License
17  * version 2 along with this program; If not, see
18  * http://www.gnu.org/licenses/gpl-2.0.html
19  *
20  * GPL HEADER END
21  */
22 /*
23  * Copyright (c) 2002, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Use is subject to license terms.
25  *
26  * Copyright (c) 2011, 2016, Intel Corporation.
27  */
28 /*
29  * This file is part of Lustre, http://www.lustre.org/
30  * Lustre is a trademark of Sun Microsystems, Inc.
31  */
32
33 /** Implementation of client-side PortalRPC interfaces */
34
35 #define DEBUG_SUBSYSTEM S_RPC
36
37 #include <obd_support.h>
38 #include <obd_class.h>
39 #include <lustre_lib.h>
40 #include <lustre_ha.h>
41 #include <lustre_import.h>
42 #include <lustre_req_layout.h>
43
44 #include "ptlrpc_internal.h"
45
46 const struct ptlrpc_bulk_frag_ops ptlrpc_bulk_kiov_pin_ops = {
47         .add_kiov_frag  = ptlrpc_prep_bulk_page_pin,
48         .release_frags  = ptlrpc_release_bulk_page_pin,
49 };
50 EXPORT_SYMBOL(ptlrpc_bulk_kiov_pin_ops);
51
52 const struct ptlrpc_bulk_frag_ops ptlrpc_bulk_kiov_nopin_ops = {
53         .add_kiov_frag  = ptlrpc_prep_bulk_page_nopin,
54         .release_frags  = ptlrpc_release_bulk_noop,
55 };
56 EXPORT_SYMBOL(ptlrpc_bulk_kiov_nopin_ops);
57
58 const struct ptlrpc_bulk_frag_ops ptlrpc_bulk_kvec_ops = {
59         .add_iov_frag = ptlrpc_prep_bulk_frag,
60 };
61 EXPORT_SYMBOL(ptlrpc_bulk_kvec_ops);
62
63 static int ptlrpc_send_new_req(struct ptlrpc_request *req);
64 static int ptlrpcd_check_work(struct ptlrpc_request *req);
65 static int ptlrpc_unregister_reply(struct ptlrpc_request *request, int async);
66
67 /**
68  * Initialize passed in client structure \a cl.
69  */
70 void ptlrpc_init_client(int req_portal, int rep_portal, char *name,
71                         struct ptlrpc_client *cl)
72 {
73         cl->cli_request_portal = req_portal;
74         cl->cli_reply_portal   = rep_portal;
75         cl->cli_name           = name;
76 }
77 EXPORT_SYMBOL(ptlrpc_init_client);
78
79 /**
80  * Return PortalRPC connection for remore uud \a uuid
81  */
82 struct ptlrpc_connection *ptlrpc_uuid_to_connection(struct obd_uuid *uuid,
83                                                     lnet_nid_t nid4refnet)
84 {
85         struct ptlrpc_connection *c;
86         lnet_nid_t                self;
87         struct lnet_process_id peer;
88         int                       err;
89
90         /* ptlrpc_uuid_to_peer() initializes its 2nd parameter
91          * before accessing its values. */
92         /* coverity[uninit_use_in_call] */
93         peer.nid = nid4refnet;
94         err = ptlrpc_uuid_to_peer(uuid, &peer, &self);
95         if (err != 0) {
96                 CNETERR("cannot find peer %s!\n", uuid->uuid);
97                 return NULL;
98         }
99
100         c = ptlrpc_connection_get(peer, self, uuid);
101         if (c) {
102                 memcpy(c->c_remote_uuid.uuid,
103                        uuid->uuid, sizeof(c->c_remote_uuid.uuid));
104         }
105
106         CDEBUG(D_INFO, "%s -> %p\n", uuid->uuid, c);
107
108         return c;
109 }
110
111 /**
112  * Allocate and initialize new bulk descriptor on the sender.
113  * Returns pointer to the descriptor or NULL on error.
114  */
115 struct ptlrpc_bulk_desc *ptlrpc_new_bulk(unsigned nfrags, unsigned max_brw,
116                                          enum ptlrpc_bulk_op_type type,
117                                          unsigned portal,
118                                          const struct ptlrpc_bulk_frag_ops *ops)
119 {
120         struct ptlrpc_bulk_desc *desc;
121         int i;
122
123         /* ensure that only one of KIOV or IOVEC is set but not both */
124         LASSERT((ptlrpc_is_bulk_desc_kiov(type) &&
125                  ops->add_kiov_frag != NULL) ||
126                 (ptlrpc_is_bulk_desc_kvec(type) &&
127                  ops->add_iov_frag != NULL));
128
129         OBD_ALLOC_PTR(desc);
130         if (desc == NULL)
131                 return NULL;
132         if (type & PTLRPC_BULK_BUF_KIOV) {
133                 OBD_ALLOC_LARGE(GET_KIOV(desc),
134                                 nfrags * sizeof(*GET_KIOV(desc)));
135                 if (GET_KIOV(desc) == NULL)
136                         goto out;
137         } else {
138                 OBD_ALLOC_LARGE(GET_KVEC(desc),
139                                 nfrags * sizeof(*GET_KVEC(desc)));
140                 if (GET_KVEC(desc) == NULL)
141                         goto out;
142         }
143
144         spin_lock_init(&desc->bd_lock);
145         init_waitqueue_head(&desc->bd_waitq);
146         desc->bd_max_iov = nfrags;
147         desc->bd_iov_count = 0;
148         desc->bd_portal = portal;
149         desc->bd_type = type;
150         desc->bd_md_count = 0;
151         desc->bd_frag_ops = (struct ptlrpc_bulk_frag_ops *) ops;
152         LASSERT(max_brw > 0);
153         desc->bd_md_max_brw = min(max_brw, PTLRPC_BULK_OPS_COUNT);
154         /* PTLRPC_BULK_OPS_COUNT is the compile-time transfer limit for this
155          * node. Negotiated ocd_brw_size will always be <= this number. */
156         for (i = 0; i < PTLRPC_BULK_OPS_COUNT; i++)
157                 LNetInvalidateMDHandle(&desc->bd_mds[i]);
158
159         return desc;
160 out:
161         OBD_FREE_PTR(desc);
162         return NULL;
163 }
164
165 /**
166  * Prepare bulk descriptor for specified outgoing request \a req that
167  * can fit \a nfrags * pages. \a type is bulk type. \a portal is where
168  * the bulk to be sent. Used on client-side.
169  * Returns pointer to newly allocatrd initialized bulk descriptor or NULL on
170  * error.
171  */
172 struct ptlrpc_bulk_desc *ptlrpc_prep_bulk_imp(struct ptlrpc_request *req,
173                                               unsigned nfrags, unsigned max_brw,
174                                               unsigned int type,
175                                               unsigned portal,
176                                               const struct ptlrpc_bulk_frag_ops
177                                                 *ops)
178 {
179         struct obd_import *imp = req->rq_import;
180         struct ptlrpc_bulk_desc *desc;
181
182         ENTRY;
183         LASSERT(ptlrpc_is_bulk_op_passive(type));
184
185         desc = ptlrpc_new_bulk(nfrags, max_brw, type, portal, ops);
186         if (desc == NULL)
187                 RETURN(NULL);
188
189         desc->bd_import_generation = req->rq_import_generation;
190         desc->bd_import = class_import_get(imp);
191         desc->bd_req = req;
192
193         desc->bd_cbid.cbid_fn  = client_bulk_callback;
194         desc->bd_cbid.cbid_arg = desc;
195
196         /* This makes req own desc, and free it when she frees herself */
197         req->rq_bulk = desc;
198
199         return desc;
200 }
201 EXPORT_SYMBOL(ptlrpc_prep_bulk_imp);
202
203 void __ptlrpc_prep_bulk_page(struct ptlrpc_bulk_desc *desc,
204                              struct page *page, int pageoffset, int len,
205                              int pin)
206 {
207         lnet_kiov_t *kiov;
208
209         LASSERT(desc->bd_iov_count < desc->bd_max_iov);
210         LASSERT(page != NULL);
211         LASSERT(pageoffset >= 0);
212         LASSERT(len > 0);
213         LASSERT(pageoffset + len <= PAGE_SIZE);
214         LASSERT(ptlrpc_is_bulk_desc_kiov(desc->bd_type));
215
216         kiov = &BD_GET_KIOV(desc, desc->bd_iov_count);
217
218         desc->bd_nob += len;
219
220         if (pin)
221                 get_page(page);
222
223         kiov->kiov_page = page;
224         kiov->kiov_offset = pageoffset;
225         kiov->kiov_len = len;
226
227         desc->bd_iov_count++;
228 }
229 EXPORT_SYMBOL(__ptlrpc_prep_bulk_page);
230
231 int ptlrpc_prep_bulk_frag(struct ptlrpc_bulk_desc *desc,
232                           void *frag, int len)
233 {
234         struct kvec *iovec;
235         ENTRY;
236
237         LASSERT(desc->bd_iov_count < desc->bd_max_iov);
238         LASSERT(frag != NULL);
239         LASSERT(len > 0);
240         LASSERT(ptlrpc_is_bulk_desc_kvec(desc->bd_type));
241
242         iovec = &BD_GET_KVEC(desc, desc->bd_iov_count);
243
244         desc->bd_nob += len;
245
246         iovec->iov_base = frag;
247         iovec->iov_len = len;
248
249         desc->bd_iov_count++;
250
251         RETURN(desc->bd_nob);
252 }
253 EXPORT_SYMBOL(ptlrpc_prep_bulk_frag);
254
255 void ptlrpc_free_bulk(struct ptlrpc_bulk_desc *desc)
256 {
257         ENTRY;
258
259         LASSERT(desc != NULL);
260         LASSERT(desc->bd_iov_count != LI_POISON); /* not freed already */
261         LASSERT(desc->bd_md_count == 0);         /* network hands off */
262         LASSERT((desc->bd_export != NULL) ^ (desc->bd_import != NULL));
263         LASSERT(desc->bd_frag_ops != NULL);
264
265         if (ptlrpc_is_bulk_desc_kiov(desc->bd_type))
266                 sptlrpc_enc_pool_put_pages(desc);
267
268         if (desc->bd_export)
269                 class_export_put(desc->bd_export);
270         else
271                 class_import_put(desc->bd_import);
272
273         if (desc->bd_frag_ops->release_frags != NULL)
274                 desc->bd_frag_ops->release_frags(desc);
275
276         if (ptlrpc_is_bulk_desc_kiov(desc->bd_type))
277                 OBD_FREE_LARGE(GET_KIOV(desc),
278                         desc->bd_max_iov * sizeof(*GET_KIOV(desc)));
279         else
280                 OBD_FREE_LARGE(GET_KVEC(desc),
281                         desc->bd_max_iov * sizeof(*GET_KVEC(desc)));
282         OBD_FREE_PTR(desc);
283         EXIT;
284 }
285 EXPORT_SYMBOL(ptlrpc_free_bulk);
286
287 /**
288  * Set server timelimit for this req, i.e. how long are we willing to wait
289  * for reply before timing out this request.
290  */
291 void ptlrpc_at_set_req_timeout(struct ptlrpc_request *req)
292 {
293         __u32 serv_est;
294         int idx;
295         struct imp_at *at;
296
297         LASSERT(req->rq_import);
298
299         if (AT_OFF) {
300                 /* non-AT settings */
301                 /**
302                  * \a imp_server_timeout means this is reverse import and
303                  * we send (currently only) ASTs to the client and cannot afford
304                  * to wait too long for the reply, otherwise the other client
305                  * (because of which we are sending this request) would
306                  * timeout waiting for us
307                  */
308                 req->rq_timeout = req->rq_import->imp_server_timeout ?
309                                   obd_timeout / 2 : obd_timeout;
310         } else {
311                 at = &req->rq_import->imp_at;
312                 idx = import_at_get_index(req->rq_import,
313                                           req->rq_request_portal);
314                 serv_est = at_get(&at->iat_service_estimate[idx]);
315                 req->rq_timeout = at_est2timeout(serv_est);
316         }
317         /* We could get even fancier here, using history to predict increased
318            loading... */
319
320         /* Let the server know what this RPC timeout is by putting it in the
321            reqmsg*/
322         lustre_msg_set_timeout(req->rq_reqmsg, req->rq_timeout);
323 }
324 EXPORT_SYMBOL(ptlrpc_at_set_req_timeout);
325
326 /* Adjust max service estimate based on server value */
327 static void ptlrpc_at_adj_service(struct ptlrpc_request *req,
328                                   unsigned int serv_est)
329 {
330         int idx;
331         unsigned int oldse;
332         struct imp_at *at;
333
334         LASSERT(req->rq_import);
335         at = &req->rq_import->imp_at;
336
337         idx = import_at_get_index(req->rq_import, req->rq_request_portal);
338         /* max service estimates are tracked on the server side,
339            so just keep minimal history here */
340         oldse = at_measured(&at->iat_service_estimate[idx], serv_est);
341         if (oldse != 0)
342                 CDEBUG(D_ADAPTTO, "The RPC service estimate for %s ptl %d "
343                        "has changed from %d to %d\n",
344                        req->rq_import->imp_obd->obd_name,req->rq_request_portal,
345                        oldse, at_get(&at->iat_service_estimate[idx]));
346 }
347
348 /* Expected network latency per remote node (secs) */
349 int ptlrpc_at_get_net_latency(struct ptlrpc_request *req)
350 {
351         return AT_OFF ? 0 : at_get(&req->rq_import->imp_at.iat_net_latency);
352 }
353
354 /* Adjust expected network latency */
355 void ptlrpc_at_adj_net_latency(struct ptlrpc_request *req,
356                                unsigned int service_time)
357 {
358         unsigned int nl, oldnl;
359         struct imp_at *at;
360         time_t now = cfs_time_current_sec();
361
362         LASSERT(req->rq_import);
363
364         if (service_time > now - req->rq_sent + 3) {
365                 /* bz16408, however, this can also happen if early reply
366                  * is lost and client RPC is expired and resent, early reply
367                  * or reply of original RPC can still be fit in reply buffer
368                  * of resent RPC, now client is measuring time from the
369                  * resent time, but server sent back service time of original
370                  * RPC.
371                  */
372                 CDEBUG((lustre_msg_get_flags(req->rq_reqmsg) & MSG_RESENT) ?
373                        D_ADAPTTO : D_WARNING,
374                        "Reported service time %u > total measured time "
375                        CFS_DURATION_T"\n", service_time,
376                        cfs_time_sub(now, req->rq_sent));
377                 return;
378         }
379
380         /* Network latency is total time less server processing time */
381         nl = max_t(int, now - req->rq_sent -
382                         service_time, 0) + 1; /* st rounding */
383         at = &req->rq_import->imp_at;
384
385         oldnl = at_measured(&at->iat_net_latency, nl);
386         if (oldnl != 0)
387                 CDEBUG(D_ADAPTTO, "The network latency for %s (nid %s) "
388                        "has changed from %d to %d\n",
389                        req->rq_import->imp_obd->obd_name,
390                        obd_uuid2str(
391                                &req->rq_import->imp_connection->c_remote_uuid),
392                        oldnl, at_get(&at->iat_net_latency));
393 }
394
395 static int unpack_reply(struct ptlrpc_request *req)
396 {
397         int rc;
398
399         if (SPTLRPC_FLVR_POLICY(req->rq_flvr.sf_rpc) != SPTLRPC_POLICY_NULL) {
400                 rc = ptlrpc_unpack_rep_msg(req, req->rq_replen);
401                 if (rc) {
402                         DEBUG_REQ(D_ERROR, req, "unpack_rep failed: %d", rc);
403                         return(-EPROTO);
404                 }
405         }
406
407         rc = lustre_unpack_rep_ptlrpc_body(req, MSG_PTLRPC_BODY_OFF);
408         if (rc) {
409                 DEBUG_REQ(D_ERROR, req, "unpack ptlrpc body failed: %d", rc);
410                 return(-EPROTO);
411         }
412         return 0;
413 }
414
415 /**
416  * Handle an early reply message, called with the rq_lock held.
417  * If anything goes wrong just ignore it - same as if it never happened
418  */
419 static int ptlrpc_at_recv_early_reply(struct ptlrpc_request *req)
420 __must_hold(&req->rq_lock)
421 {
422         struct ptlrpc_request *early_req;
423         time_t                 olddl;
424         int                    rc;
425         ENTRY;
426
427         req->rq_early = 0;
428         spin_unlock(&req->rq_lock);
429
430         rc = sptlrpc_cli_unwrap_early_reply(req, &early_req);
431         if (rc) {
432                 spin_lock(&req->rq_lock);
433                 RETURN(rc);
434         }
435
436         rc = unpack_reply(early_req);
437         if (rc != 0) {
438                 sptlrpc_cli_finish_early_reply(early_req);
439                 spin_lock(&req->rq_lock);
440                 RETURN(rc);
441         }
442
443         /* Use new timeout value just to adjust the local value for this
444          * request, don't include it into at_history. It is unclear yet why
445          * service time increased and should it be counted or skipped, e.g.
446          * that can be recovery case or some error or server, the real reply
447          * will add all new data if it is worth to add. */
448         req->rq_timeout = lustre_msg_get_timeout(early_req->rq_repmsg);
449         lustre_msg_set_timeout(req->rq_reqmsg, req->rq_timeout);
450
451         /* Network latency can be adjusted, it is pure network delays */
452         ptlrpc_at_adj_net_latency(req,
453                         lustre_msg_get_service_time(early_req->rq_repmsg));
454
455         sptlrpc_cli_finish_early_reply(early_req);
456
457         spin_lock(&req->rq_lock);
458         olddl = req->rq_deadline;
459         /* server assumes it now has rq_timeout from when the request
460          * arrived, so the client should give it at least that long.
461          * since we don't know the arrival time we'll use the original
462          * sent time */
463         req->rq_deadline = req->rq_sent + req->rq_timeout +
464                            ptlrpc_at_get_net_latency(req);
465
466         DEBUG_REQ(D_ADAPTTO, req,
467                   "Early reply #%d, new deadline in "CFS_DURATION_T"s "
468                   "("CFS_DURATION_T"s)", req->rq_early_count,
469                   cfs_time_sub(req->rq_deadline, cfs_time_current_sec()),
470                   cfs_time_sub(req->rq_deadline, olddl));
471
472         RETURN(rc);
473 }
474
475 static struct kmem_cache *request_cache;
476
477 int ptlrpc_request_cache_init(void)
478 {
479         request_cache = kmem_cache_create("ptlrpc_cache",
480                                           sizeof(struct ptlrpc_request),
481                                           0, SLAB_HWCACHE_ALIGN, NULL);
482         return request_cache == NULL ? -ENOMEM : 0;
483 }
484
485 void ptlrpc_request_cache_fini(void)
486 {
487         kmem_cache_destroy(request_cache);
488 }
489
490 struct ptlrpc_request *ptlrpc_request_cache_alloc(gfp_t flags)
491 {
492         struct ptlrpc_request *req;
493
494         OBD_SLAB_ALLOC_PTR_GFP(req, request_cache, flags);
495         return req;
496 }
497
498 void ptlrpc_request_cache_free(struct ptlrpc_request *req)
499 {
500         OBD_SLAB_FREE_PTR(req, request_cache);
501 }
502
503 /**
504  * Wind down request pool \a pool.
505  * Frees all requests from the pool too
506  */
507 void ptlrpc_free_rq_pool(struct ptlrpc_request_pool *pool)
508 {
509         struct list_head *l, *tmp;
510         struct ptlrpc_request *req;
511
512         LASSERT(pool != NULL);
513
514         spin_lock(&pool->prp_lock);
515         list_for_each_safe(l, tmp, &pool->prp_req_list) {
516                 req = list_entry(l, struct ptlrpc_request, rq_list);
517                 list_del(&req->rq_list);
518                 LASSERT(req->rq_reqbuf);
519                 LASSERT(req->rq_reqbuf_len == pool->prp_rq_size);
520                 OBD_FREE_LARGE(req->rq_reqbuf, pool->prp_rq_size);
521                 ptlrpc_request_cache_free(req);
522         }
523         spin_unlock(&pool->prp_lock);
524         OBD_FREE(pool, sizeof(*pool));
525 }
526 EXPORT_SYMBOL(ptlrpc_free_rq_pool);
527
528 /**
529  * Allocates, initializes and adds \a num_rq requests to the pool \a pool
530  */
531 int ptlrpc_add_rqs_to_pool(struct ptlrpc_request_pool *pool, int num_rq)
532 {
533         int i;
534         int size = 1;
535
536         while (size < pool->prp_rq_size)
537                 size <<= 1;
538
539         LASSERTF(list_empty(&pool->prp_req_list) ||
540                  size == pool->prp_rq_size,
541                  "Trying to change pool size with nonempty pool "
542                  "from %d to %d bytes\n", pool->prp_rq_size, size);
543
544         spin_lock(&pool->prp_lock);
545         pool->prp_rq_size = size;
546         for (i = 0; i < num_rq; i++) {
547                 struct ptlrpc_request *req;
548                 struct lustre_msg *msg;
549
550                 spin_unlock(&pool->prp_lock);
551                 req = ptlrpc_request_cache_alloc(GFP_NOFS);
552                 if (!req)
553                         return i;
554                 OBD_ALLOC_LARGE(msg, size);
555                 if (!msg) {
556                         ptlrpc_request_cache_free(req);
557                         return i;
558                 }
559                 req->rq_reqbuf = msg;
560                 req->rq_reqbuf_len = size;
561                 req->rq_pool = pool;
562                 spin_lock(&pool->prp_lock);
563                 list_add_tail(&req->rq_list, &pool->prp_req_list);
564         }
565         spin_unlock(&pool->prp_lock);
566         return num_rq;
567 }
568 EXPORT_SYMBOL(ptlrpc_add_rqs_to_pool);
569
570 /**
571  * Create and initialize new request pool with given attributes:
572  * \a num_rq - initial number of requests to create for the pool
573  * \a msgsize - maximum message size possible for requests in thid pool
574  * \a populate_pool - function to be called when more requests need to be added
575  *                    to the pool
576  * Returns pointer to newly created pool or NULL on error.
577  */
578 struct ptlrpc_request_pool *
579 ptlrpc_init_rq_pool(int num_rq, int msgsize,
580                     int (*populate_pool)(struct ptlrpc_request_pool *, int))
581 {
582         struct ptlrpc_request_pool *pool;
583
584         OBD_ALLOC(pool, sizeof(struct ptlrpc_request_pool));
585         if (!pool)
586                 return NULL;
587
588         /* Request next power of two for the allocation, because internally
589            kernel would do exactly this */
590
591         spin_lock_init(&pool->prp_lock);
592         INIT_LIST_HEAD(&pool->prp_req_list);
593         pool->prp_rq_size = msgsize + SPTLRPC_MAX_PAYLOAD;
594         pool->prp_populate = populate_pool;
595
596         populate_pool(pool, num_rq);
597
598         return pool;
599 }
600 EXPORT_SYMBOL(ptlrpc_init_rq_pool);
601
602 /**
603  * Fetches one request from pool \a pool
604  */
605 static struct ptlrpc_request *
606 ptlrpc_prep_req_from_pool(struct ptlrpc_request_pool *pool)
607 {
608         struct ptlrpc_request *request;
609         struct lustre_msg *reqbuf;
610
611         if (!pool)
612                 return NULL;
613
614         spin_lock(&pool->prp_lock);
615
616         /* See if we have anything in a pool, and bail out if nothing,
617          * in writeout path, where this matters, this is safe to do, because
618          * nothing is lost in this case, and when some in-flight requests
619          * complete, this code will be called again. */
620         if (unlikely(list_empty(&pool->prp_req_list))) {
621                 spin_unlock(&pool->prp_lock);
622                 return NULL;
623         }
624
625         request = list_entry(pool->prp_req_list.next, struct ptlrpc_request,
626                              rq_list);
627         list_del_init(&request->rq_list);
628         spin_unlock(&pool->prp_lock);
629
630         LASSERT(request->rq_reqbuf);
631         LASSERT(request->rq_pool);
632
633         reqbuf = request->rq_reqbuf;
634         memset(request, 0, sizeof(*request));
635         request->rq_reqbuf = reqbuf;
636         request->rq_reqbuf_len = pool->prp_rq_size;
637         request->rq_pool = pool;
638
639         return request;
640 }
641
642 /**
643  * Returns freed \a request to pool.
644  */
645 static void __ptlrpc_free_req_to_pool(struct ptlrpc_request *request)
646 {
647         struct ptlrpc_request_pool *pool = request->rq_pool;
648
649         spin_lock(&pool->prp_lock);
650         LASSERT(list_empty(&request->rq_list));
651         LASSERT(!request->rq_receiving_reply);
652         list_add_tail(&request->rq_list, &pool->prp_req_list);
653         spin_unlock(&pool->prp_lock);
654 }
655
656 void ptlrpc_add_unreplied(struct ptlrpc_request *req)
657 {
658         struct obd_import       *imp = req->rq_import;
659         struct list_head        *tmp;
660         struct ptlrpc_request   *iter;
661
662         assert_spin_locked(&imp->imp_lock);
663         LASSERT(list_empty(&req->rq_unreplied_list));
664
665         /* unreplied list is sorted by xid in ascending order */
666         list_for_each_prev(tmp, &imp->imp_unreplied_list) {
667                 iter = list_entry(tmp, struct ptlrpc_request,
668                                   rq_unreplied_list);
669
670                 LASSERT(req->rq_xid != iter->rq_xid);
671                 if (req->rq_xid < iter->rq_xid)
672                         continue;
673                 list_add(&req->rq_unreplied_list, &iter->rq_unreplied_list);
674                 return;
675         }
676         list_add(&req->rq_unreplied_list, &imp->imp_unreplied_list);
677 }
678
679 void ptlrpc_assign_next_xid_nolock(struct ptlrpc_request *req)
680 {
681         req->rq_xid = ptlrpc_next_xid();
682         ptlrpc_add_unreplied(req);
683 }
684
685 static inline void ptlrpc_assign_next_xid(struct ptlrpc_request *req)
686 {
687         spin_lock(&req->rq_import->imp_lock);
688         ptlrpc_assign_next_xid_nolock(req);
689         spin_unlock(&req->rq_import->imp_lock);
690 }
691
692 int ptlrpc_request_bufs_pack(struct ptlrpc_request *request,
693                              __u32 version, int opcode, char **bufs,
694                              struct ptlrpc_cli_ctx *ctx)
695 {
696         int count;
697         struct obd_import *imp;
698         __u32 *lengths;
699         int rc;
700
701         ENTRY;
702
703         count = req_capsule_filled_sizes(&request->rq_pill, RCL_CLIENT);
704         imp = request->rq_import;
705         lengths = request->rq_pill.rc_area[RCL_CLIENT];
706
707         if (ctx != NULL) {
708                 request->rq_cli_ctx = sptlrpc_cli_ctx_get(ctx);
709         } else {
710                 rc = sptlrpc_req_get_ctx(request);
711                 if (rc)
712                         GOTO(out_free, rc);
713         }
714         sptlrpc_req_set_flavor(request, opcode);
715
716         rc = lustre_pack_request(request, imp->imp_msg_magic, count,
717                                  lengths, bufs);
718         if (rc)
719                 GOTO(out_ctx, rc);
720
721         lustre_msg_add_version(request->rq_reqmsg, version);
722         request->rq_send_state = LUSTRE_IMP_FULL;
723         request->rq_type = PTL_RPC_MSG_REQUEST;
724
725         request->rq_req_cbid.cbid_fn  = request_out_callback;
726         request->rq_req_cbid.cbid_arg = request;
727
728         request->rq_reply_cbid.cbid_fn  = reply_in_callback;
729         request->rq_reply_cbid.cbid_arg = request;
730
731         request->rq_reply_deadline = 0;
732         request->rq_bulk_deadline = 0;
733         request->rq_req_deadline = 0;
734         request->rq_phase = RQ_PHASE_NEW;
735         request->rq_next_phase = RQ_PHASE_UNDEFINED;
736
737         request->rq_request_portal = imp->imp_client->cli_request_portal;
738         request->rq_reply_portal = imp->imp_client->cli_reply_portal;
739
740         ptlrpc_at_set_req_timeout(request);
741
742         lustre_msg_set_opc(request->rq_reqmsg, opcode);
743         ptlrpc_assign_next_xid(request);
744
745         /* Let's setup deadline for req/reply/bulk unlink for opcode. */
746         if (cfs_fail_val == opcode) {
747                 time_t *fail_t = NULL, *fail2_t = NULL;
748
749                 if (CFS_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_BULK_UNLINK))
750                         fail_t = &request->rq_bulk_deadline;
751                 else if (CFS_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_REPL_UNLINK))
752                         fail_t = &request->rq_reply_deadline;
753                 else if (CFS_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_REQ_UNLINK))
754                         fail_t = &request->rq_req_deadline;
755                 else if (CFS_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_BOTH_UNLINK)) {
756                         fail_t = &request->rq_reply_deadline;
757                         fail2_t = &request->rq_bulk_deadline;
758                 }
759
760                 if (fail_t) {
761                         *fail_t = cfs_time_current_sec() + LONG_UNLINK;
762
763                         if (fail2_t)
764                                 *fail2_t = cfs_time_current_sec() + LONG_UNLINK;
765
766                         /* The RPC is infected, let the test to change the
767                          * fail_loc */
768                         set_current_state(TASK_UNINTERRUPTIBLE);
769                         schedule_timeout(cfs_time_seconds(2));
770                         set_current_state(TASK_RUNNING);
771                 }
772         }
773
774         RETURN(0);
775
776 out_ctx:
777         LASSERT(!request->rq_pool);
778         sptlrpc_cli_ctx_put(request->rq_cli_ctx, 1);
779 out_free:
780         class_import_put(imp);
781
782         return rc;
783
784 }
785 EXPORT_SYMBOL(ptlrpc_request_bufs_pack);
786
787 /**
788  * Pack request buffers for network transfer, performing necessary encryption
789  * steps if necessary.
790  */
791 int ptlrpc_request_pack(struct ptlrpc_request *request,
792                         __u32 version, int opcode)
793 {
794         int rc;
795         rc = ptlrpc_request_bufs_pack(request, version, opcode, NULL, NULL);
796         if (rc)
797                 return rc;
798
799         /* For some old 1.8 clients (< 1.8.7), they will LASSERT the size of
800          * ptlrpc_body sent from server equal to local ptlrpc_body size, so we
801          * have to send old ptlrpc_body to keep interoprability with these
802          * clients.
803          *
804          * Only three kinds of server->client RPCs so far:
805          *  - LDLM_BL_CALLBACK
806          *  - LDLM_CP_CALLBACK
807          *  - LDLM_GL_CALLBACK
808          *
809          * XXX This should be removed whenever we drop the interoprability with
810          *     the these old clients.
811          */
812         if (opcode == LDLM_BL_CALLBACK || opcode == LDLM_CP_CALLBACK ||
813             opcode == LDLM_GL_CALLBACK)
814                 req_capsule_shrink(&request->rq_pill, &RMF_PTLRPC_BODY,
815                                    sizeof(struct ptlrpc_body_v2), RCL_CLIENT);
816
817         return rc;
818 }
819 EXPORT_SYMBOL(ptlrpc_request_pack);
820
821 /**
822  * Helper function to allocate new request on import \a imp
823  * and possibly using existing request from pool \a pool if provided.
824  * Returns allocated request structure with import field filled or
825  * NULL on error.
826  */
827 static inline
828 struct ptlrpc_request *__ptlrpc_request_alloc(struct obd_import *imp,
829                                               struct ptlrpc_request_pool *pool)
830 {
831         struct ptlrpc_request *request = NULL;
832
833         request = ptlrpc_request_cache_alloc(GFP_NOFS);
834
835         if (!request && pool)
836                 request = ptlrpc_prep_req_from_pool(pool);
837
838         if (request) {
839                 ptlrpc_cli_req_init(request);
840
841                 LASSERTF((unsigned long)imp > 0x1000, "%p", imp);
842                 LASSERT(imp != LP_POISON);
843                 LASSERTF((unsigned long)imp->imp_client > 0x1000, "%p\n",
844                         imp->imp_client);
845                 LASSERT(imp->imp_client != LP_POISON);
846
847                 request->rq_import = class_import_get(imp);
848         } else {
849                 CERROR("request allocation out of memory\n");
850         }
851
852         return request;
853 }
854
855 /**
856  * Helper function for creating a request.
857  * Calls __ptlrpc_request_alloc to allocate new request sturcture and inits
858  * buffer structures according to capsule template \a format.
859  * Returns allocated request structure pointer or NULL on error.
860  */
861 static struct ptlrpc_request *
862 ptlrpc_request_alloc_internal(struct obd_import *imp,
863                               struct ptlrpc_request_pool * pool,
864                               const struct req_format *format)
865 {
866         struct ptlrpc_request *request;
867
868         request = __ptlrpc_request_alloc(imp, pool);
869         if (request == NULL)
870                 return NULL;
871
872         req_capsule_init(&request->rq_pill, request, RCL_CLIENT);
873         req_capsule_set(&request->rq_pill, format);
874         return request;
875 }
876
877 /**
878  * Allocate new request structure for import \a imp and initialize its
879  * buffer structure according to capsule template \a format.
880  */
881 struct ptlrpc_request *ptlrpc_request_alloc(struct obd_import *imp,
882                                             const struct req_format *format)
883 {
884         return ptlrpc_request_alloc_internal(imp, NULL, format);
885 }
886 EXPORT_SYMBOL(ptlrpc_request_alloc);
887
888 /**
889  * Allocate new request structure for import \a imp from pool \a pool and
890  * initialize its buffer structure according to capsule template \a format.
891  */
892 struct ptlrpc_request *ptlrpc_request_alloc_pool(struct obd_import *imp,
893                                             struct ptlrpc_request_pool * pool,
894                                             const struct req_format *format)
895 {
896         return ptlrpc_request_alloc_internal(imp, pool, format);
897 }
898 EXPORT_SYMBOL(ptlrpc_request_alloc_pool);
899
900 /**
901  * For requests not from pool, free memory of the request structure.
902  * For requests obtained from a pool earlier, return request back to pool.
903  */
904 void ptlrpc_request_free(struct ptlrpc_request *request)
905 {
906         if (request->rq_pool)
907                 __ptlrpc_free_req_to_pool(request);
908         else
909                 ptlrpc_request_cache_free(request);
910 }
911 EXPORT_SYMBOL(ptlrpc_request_free);
912
913 /**
914  * Allocate new request for operatione \a opcode and immediatelly pack it for
915  * network transfer.
916  * Only used for simple requests like OBD_PING where the only important
917  * part of the request is operation itself.
918  * Returns allocated request or NULL on error.
919  */
920 struct ptlrpc_request *ptlrpc_request_alloc_pack(struct obd_import *imp,
921                                                 const struct req_format *format,
922                                                 __u32 version, int opcode)
923 {
924         struct ptlrpc_request *req = ptlrpc_request_alloc(imp, format);
925         int                    rc;
926
927         if (req) {
928                 rc = ptlrpc_request_pack(req, version, opcode);
929                 if (rc) {
930                         ptlrpc_request_free(req);
931                         req = NULL;
932                 }
933         }
934         return req;
935 }
936 EXPORT_SYMBOL(ptlrpc_request_alloc_pack);
937
938 /**
939  * Allocate and initialize new request set structure on the current CPT.
940  * Returns a pointer to the newly allocated set structure or NULL on error.
941  */
942 struct ptlrpc_request_set *ptlrpc_prep_set(void)
943 {
944         struct ptlrpc_request_set       *set;
945         int                             cpt;
946
947         ENTRY;
948         cpt = cfs_cpt_current(cfs_cpt_table, 0);
949         OBD_CPT_ALLOC(set, cfs_cpt_table, cpt, sizeof *set);
950         if (!set)
951                 RETURN(NULL);
952         atomic_set(&set->set_refcount, 1);
953         INIT_LIST_HEAD(&set->set_requests);
954         init_waitqueue_head(&set->set_waitq);
955         atomic_set(&set->set_new_count, 0);
956         atomic_set(&set->set_remaining, 0);
957         spin_lock_init(&set->set_new_req_lock);
958         INIT_LIST_HEAD(&set->set_new_requests);
959         INIT_LIST_HEAD(&set->set_cblist);
960         set->set_max_inflight = UINT_MAX;
961         set->set_producer     = NULL;
962         set->set_producer_arg = NULL;
963         set->set_rc           = 0;
964
965         RETURN(set);
966 }
967 EXPORT_SYMBOL(ptlrpc_prep_set);
968
969 /**
970  * Allocate and initialize new request set structure with flow control
971  * extension. This extension allows to control the number of requests in-flight
972  * for the whole set. A callback function to generate requests must be provided
973  * and the request set will keep the number of requests sent over the wire to
974  * @max_inflight.
975  * Returns a pointer to the newly allocated set structure or NULL on error.
976  */
977 struct ptlrpc_request_set *ptlrpc_prep_fcset(int max, set_producer_func func,
978                                              void *arg)
979
980 {
981         struct ptlrpc_request_set *set;
982
983         set = ptlrpc_prep_set();
984         if (!set)
985                 RETURN(NULL);
986
987         set->set_max_inflight  = max;
988         set->set_producer      = func;
989         set->set_producer_arg  = arg;
990
991         RETURN(set);
992 }
993
994 /**
995  * Wind down and free request set structure previously allocated with
996  * ptlrpc_prep_set.
997  * Ensures that all requests on the set have completed and removes
998  * all requests from the request list in a set.
999  * If any unsent request happen to be on the list, pretends that they got
1000  * an error in flight and calls their completion handler.
1001  */
1002 void ptlrpc_set_destroy(struct ptlrpc_request_set *set)
1003 {
1004         struct list_head        *tmp;
1005         struct list_head        *next;
1006         int                      expected_phase;
1007         int                      n = 0;
1008         ENTRY;
1009
1010         /* Requests on the set should either all be completed, or all be new */
1011         expected_phase = (atomic_read(&set->set_remaining) == 0) ?
1012                          RQ_PHASE_COMPLETE : RQ_PHASE_NEW;
1013         list_for_each(tmp, &set->set_requests) {
1014                 struct ptlrpc_request *req =
1015                         list_entry(tmp, struct ptlrpc_request,
1016                                    rq_set_chain);
1017
1018                 LASSERT(req->rq_phase == expected_phase);
1019                 n++;
1020         }
1021
1022         LASSERTF(atomic_read(&set->set_remaining) == 0 ||
1023                  atomic_read(&set->set_remaining) == n, "%d / %d\n",
1024                  atomic_read(&set->set_remaining), n);
1025
1026         list_for_each_safe(tmp, next, &set->set_requests) {
1027                 struct ptlrpc_request *req =
1028                         list_entry(tmp, struct ptlrpc_request,
1029                                    rq_set_chain);
1030                 list_del_init(&req->rq_set_chain);
1031
1032                 LASSERT(req->rq_phase == expected_phase);
1033
1034                 if (req->rq_phase == RQ_PHASE_NEW) {
1035                         ptlrpc_req_interpret(NULL, req, -EBADR);
1036                         atomic_dec(&set->set_remaining);
1037                 }
1038
1039                 spin_lock(&req->rq_lock);
1040                 req->rq_set = NULL;
1041                 req->rq_invalid_rqset = 0;
1042                 spin_unlock(&req->rq_lock);
1043
1044                 ptlrpc_req_finished (req);
1045         }
1046
1047         LASSERT(atomic_read(&set->set_remaining) == 0);
1048
1049         ptlrpc_reqset_put(set);
1050         EXIT;
1051 }
1052 EXPORT_SYMBOL(ptlrpc_set_destroy);
1053
1054 /**
1055  * Add a callback function \a fn to the set.
1056  * This function would be called when all requests on this set are completed.
1057  * The function will be passed \a data argument.
1058  */
1059 int ptlrpc_set_add_cb(struct ptlrpc_request_set *set,
1060                       set_interpreter_func fn, void *data)
1061 {
1062         struct ptlrpc_set_cbdata *cbdata;
1063
1064         OBD_ALLOC_PTR(cbdata);
1065         if (cbdata == NULL)
1066                 RETURN(-ENOMEM);
1067
1068         cbdata->psc_interpret = fn;
1069         cbdata->psc_data = data;
1070         list_add_tail(&cbdata->psc_item, &set->set_cblist);
1071
1072         RETURN(0);
1073 }
1074
1075 /**
1076  * Add a new request to the general purpose request set.
1077  * Assumes request reference from the caller.
1078  */
1079 void ptlrpc_set_add_req(struct ptlrpc_request_set *set,
1080                         struct ptlrpc_request *req)
1081 {
1082         LASSERT(list_empty(&req->rq_set_chain));
1083
1084         if (req->rq_allow_intr)
1085                 set->set_allow_intr = 1;
1086
1087         /* The set takes over the caller's request reference */
1088         list_add_tail(&req->rq_set_chain, &set->set_requests);
1089         req->rq_set = set;
1090         atomic_inc(&set->set_remaining);
1091         req->rq_queued_time = cfs_time_current();
1092
1093         if (req->rq_reqmsg != NULL)
1094                 lustre_msg_set_jobid(req->rq_reqmsg, NULL);
1095
1096         if (set->set_producer != NULL)
1097                 /* If the request set has a producer callback, the RPC must be
1098                  * sent straight away */
1099                 ptlrpc_send_new_req(req);
1100 }
1101 EXPORT_SYMBOL(ptlrpc_set_add_req);
1102
1103 /**
1104  * Add a request to a request with dedicated server thread
1105  * and wake the thread to make any necessary processing.
1106  * Currently only used for ptlrpcd.
1107  */
1108 void ptlrpc_set_add_new_req(struct ptlrpcd_ctl *pc,
1109                            struct ptlrpc_request *req)
1110 {
1111         struct ptlrpc_request_set *set = pc->pc_set;
1112         int count, i;
1113
1114         LASSERT(req->rq_set == NULL);
1115         LASSERT(test_bit(LIOD_STOP, &pc->pc_flags) == 0);
1116
1117         spin_lock(&set->set_new_req_lock);
1118         /*
1119          * The set takes over the caller's request reference.
1120          */
1121         req->rq_set = set;
1122         req->rq_queued_time = cfs_time_current();
1123         list_add_tail(&req->rq_set_chain, &set->set_new_requests);
1124         count = atomic_inc_return(&set->set_new_count);
1125         spin_unlock(&set->set_new_req_lock);
1126
1127         /* Only need to call wakeup once for the first entry. */
1128         if (count == 1) {
1129                 wake_up(&set->set_waitq);
1130
1131                 /* XXX: It maybe unnecessary to wakeup all the partners. But to
1132                  *      guarantee the async RPC can be processed ASAP, we have
1133                  *      no other better choice. It maybe fixed in future. */
1134                 for (i = 0; i < pc->pc_npartners; i++)
1135                         wake_up(&pc->pc_partners[i]->pc_set->set_waitq);
1136         }
1137 }
1138
1139 /**
1140  * Based on the current state of the import, determine if the request
1141  * can be sent, is an error, or should be delayed.
1142  *
1143  * Returns true if this request should be delayed. If false, and
1144  * *status is set, then the request can not be sent and *status is the
1145  * error code.  If false and status is 0, then request can be sent.
1146  *
1147  * The imp->imp_lock must be held.
1148  */
1149 static int ptlrpc_import_delay_req(struct obd_import *imp,
1150                                    struct ptlrpc_request *req, int *status)
1151 {
1152         int delay = 0;
1153         ENTRY;
1154
1155         LASSERT (status != NULL);
1156         *status = 0;
1157
1158         if (req->rq_ctx_init || req->rq_ctx_fini) {
1159                 /* always allow ctx init/fini rpc go through */
1160         } else if (imp->imp_state == LUSTRE_IMP_NEW) {
1161                 DEBUG_REQ(D_ERROR, req, "Uninitialized import.");
1162                 *status = -EIO;
1163         } else if (imp->imp_state == LUSTRE_IMP_CLOSED) {
1164                 /* pings may safely race with umount */
1165                 DEBUG_REQ(lustre_msg_get_opc(req->rq_reqmsg) == OBD_PING ?
1166                           D_HA : D_ERROR, req, "IMP_CLOSED ");
1167                 *status = -EIO;
1168         } else if (ptlrpc_send_limit_expired(req)) {
1169                 /* probably doesn't need to be a D_ERROR after initial testing*/
1170                 DEBUG_REQ(D_HA, req, "send limit expired ");
1171                 *status = -ETIMEDOUT;
1172         } else if (req->rq_send_state == LUSTRE_IMP_CONNECTING &&
1173                    imp->imp_state == LUSTRE_IMP_CONNECTING) {
1174                 /* allow CONNECT even if import is invalid */ ;
1175                 if (atomic_read(&imp->imp_inval_count) != 0) {
1176                         DEBUG_REQ(D_ERROR, req, "invalidate in flight");
1177                         *status = -EIO;
1178                 }
1179         } else if (imp->imp_invalid || imp->imp_obd->obd_no_recov) {
1180                 if (!imp->imp_deactive)
1181                         DEBUG_REQ(D_NET, req, "IMP_INVALID");
1182                 *status = -ESHUTDOWN; /* bz 12940 */
1183         } else if (req->rq_import_generation != imp->imp_generation) {
1184                 DEBUG_REQ(D_ERROR, req, "req wrong generation:");
1185                 *status = -EIO;
1186         } else if (req->rq_send_state != imp->imp_state) {
1187                 /* invalidate in progress - any requests should be drop */
1188                 if (atomic_read(&imp->imp_inval_count) != 0) {
1189                         DEBUG_REQ(D_ERROR, req, "invalidate in flight");
1190                         *status = -EIO;
1191                 } else if (req->rq_no_delay) {
1192                         *status = -EWOULDBLOCK;
1193                 } else if (req->rq_allow_replay &&
1194                           (imp->imp_state == LUSTRE_IMP_REPLAY ||
1195                            imp->imp_state == LUSTRE_IMP_REPLAY_LOCKS ||
1196                            imp->imp_state == LUSTRE_IMP_REPLAY_WAIT ||
1197                            imp->imp_state == LUSTRE_IMP_RECOVER)) {
1198                         DEBUG_REQ(D_HA, req, "allow during recovery.\n");
1199                 } else {
1200                         delay = 1;
1201                 }
1202         }
1203
1204         RETURN(delay);
1205 }
1206
1207 /**
1208  * Decide if the error message should be printed to the console or not.
1209  * Makes its decision based on request type, status, and failure frequency.
1210  *
1211  * \param[in] req  request that failed and may need a console message
1212  *
1213  * \retval false if no message should be printed
1214  * \retval true  if console message should be printed
1215  */
1216 static bool ptlrpc_console_allow(struct ptlrpc_request *req)
1217 {
1218         __u32 opc;
1219
1220         LASSERT(req->rq_reqmsg != NULL);
1221         opc = lustre_msg_get_opc(req->rq_reqmsg);
1222
1223         /* Suppress particular reconnect errors which are to be expected. */
1224         if (opc == OST_CONNECT || opc == MDS_CONNECT || opc == MGS_CONNECT) {
1225                 int err;
1226
1227                 /* Suppress timed out reconnect requests */
1228                 if (lustre_handle_is_used(&req->rq_import->imp_remote_handle) ||
1229                     req->rq_timedout)
1230                         return false;
1231
1232                 /* Suppress most unavailable/again reconnect requests, but
1233                  * print occasionally so it is clear client is trying to
1234                  * connect to a server where no target is running. */
1235                 err = lustre_msg_get_status(req->rq_repmsg);
1236                 if ((err == -ENODEV || err == -EAGAIN) &&
1237                     req->rq_import->imp_conn_cnt % 30 != 20)
1238                         return false;
1239         }
1240
1241         return true;
1242 }
1243
1244 /**
1245  * Check request processing status.
1246  * Returns the status.
1247  */
1248 static int ptlrpc_check_status(struct ptlrpc_request *req)
1249 {
1250         int err;
1251         ENTRY;
1252
1253         err = lustre_msg_get_status(req->rq_repmsg);
1254         if (lustre_msg_get_type(req->rq_repmsg) == PTL_RPC_MSG_ERR) {
1255                 struct obd_import *imp = req->rq_import;
1256                 lnet_nid_t nid = imp->imp_connection->c_peer.nid;
1257                 __u32 opc = lustre_msg_get_opc(req->rq_reqmsg);
1258
1259                 /* -EAGAIN is normal when using POSIX flocks */
1260                 if (ptlrpc_console_allow(req) &&
1261                     !(opc == LDLM_ENQUEUE && err == -EAGAIN))
1262                         LCONSOLE_ERROR_MSG(0x11, "%s: operation %s to node %s "
1263                                            "failed: rc = %d\n",
1264                                            imp->imp_obd->obd_name,
1265                                            ll_opcode2str(opc),
1266                                            libcfs_nid2str(nid), err);
1267                 RETURN(err < 0 ? err : -EINVAL);
1268         }
1269
1270         if (err < 0) {
1271                 DEBUG_REQ(D_INFO, req, "status is %d", err);
1272         } else if (err > 0) {
1273                 /* XXX: translate this error from net to host */
1274                 DEBUG_REQ(D_INFO, req, "status is %d", err);
1275         }
1276
1277         RETURN(err);
1278 }
1279
1280 /**
1281  * save pre-versions of objects into request for replay.
1282  * Versions are obtained from server reply.
1283  * used for VBR.
1284  */
1285 static void ptlrpc_save_versions(struct ptlrpc_request *req)
1286 {
1287         struct lustre_msg *repmsg = req->rq_repmsg;
1288         struct lustre_msg *reqmsg = req->rq_reqmsg;
1289         __u64 *versions = lustre_msg_get_versions(repmsg);
1290         ENTRY;
1291
1292         if (lustre_msg_get_flags(req->rq_reqmsg) & MSG_REPLAY)
1293                 return;
1294
1295         LASSERT(versions);
1296         lustre_msg_set_versions(reqmsg, versions);
1297         CDEBUG(D_INFO, "Client save versions [%#llx/%#llx]\n",
1298                versions[0], versions[1]);
1299
1300         EXIT;
1301 }
1302
1303 __u64 ptlrpc_known_replied_xid(struct obd_import *imp)
1304 {
1305         struct ptlrpc_request *req;
1306
1307         assert_spin_locked(&imp->imp_lock);
1308         if (list_empty(&imp->imp_unreplied_list))
1309                 return 0;
1310
1311         req = list_entry(imp->imp_unreplied_list.next, struct ptlrpc_request,
1312                          rq_unreplied_list);
1313         LASSERTF(req->rq_xid >= 1, "XID:%llu\n", req->rq_xid);
1314
1315         if (imp->imp_known_replied_xid < req->rq_xid - 1)
1316                 imp->imp_known_replied_xid = req->rq_xid - 1;
1317
1318         return req->rq_xid - 1;
1319 }
1320
1321 /**
1322  * Callback function called when client receives RPC reply for \a req.
1323  * Returns 0 on success or error code.
1324  * The return alue would be assigned to req->rq_status by the caller
1325  * as request processing status.
1326  * This function also decides if the request needs to be saved for later replay.
1327  */
1328 static int after_reply(struct ptlrpc_request *req)
1329 {
1330         struct obd_import *imp = req->rq_import;
1331         struct obd_device *obd = req->rq_import->imp_obd;
1332         int rc;
1333         struct timeval work_start;
1334         __u64 committed;
1335         long timediff;
1336         ENTRY;
1337
1338         LASSERT(obd != NULL);
1339         /* repbuf must be unlinked */
1340         LASSERT(!req->rq_receiving_reply && req->rq_reply_unlinked);
1341
1342         if (req->rq_reply_truncated) {
1343                 if (ptlrpc_no_resend(req)) {
1344                         DEBUG_REQ(D_ERROR, req, "reply buffer overflow,"
1345                                   " expected: %d, actual size: %d",
1346                                   req->rq_nob_received, req->rq_repbuf_len);
1347                         RETURN(-EOVERFLOW);
1348                 }
1349
1350                 sptlrpc_cli_free_repbuf(req);
1351                 /* Pass the required reply buffer size (include
1352                  * space for early reply).
1353                  * NB: no need to roundup because alloc_repbuf
1354                  * will roundup it */
1355                 req->rq_replen       = req->rq_nob_received;
1356                 req->rq_nob_received = 0;
1357                 spin_lock(&req->rq_lock);
1358                 req->rq_resend       = 1;
1359                 spin_unlock(&req->rq_lock);
1360                 RETURN(0);
1361         }
1362
1363         do_gettimeofday(&work_start);
1364         timediff = cfs_timeval_sub(&work_start, &req->rq_sent_tv, NULL);
1365
1366         /*
1367          * NB Until this point, the whole of the incoming message,
1368          * including buflens, status etc is in the sender's byte order.
1369          */
1370         rc = sptlrpc_cli_unwrap_reply(req);
1371         if (rc) {
1372                 DEBUG_REQ(D_ERROR, req, "unwrap reply failed (%d):", rc);
1373                 RETURN(rc);
1374         }
1375
1376         /*
1377          * Security layer unwrap might ask resend this request.
1378          */
1379         if (req->rq_resend)
1380                 RETURN(0);
1381
1382         rc = unpack_reply(req);
1383         if (rc)
1384                 RETURN(rc);
1385
1386         /* retry indefinitely on EINPROGRESS */
1387         if (lustre_msg_get_status(req->rq_repmsg) == -EINPROGRESS &&
1388             ptlrpc_no_resend(req) == 0 && !req->rq_no_retry_einprogress) {
1389                 time_t  now = cfs_time_current_sec();
1390
1391                 DEBUG_REQ(D_RPCTRACE, req, "Resending request on EINPROGRESS");
1392                 spin_lock(&req->rq_lock);
1393                 req->rq_resend = 1;
1394                 spin_unlock(&req->rq_lock);
1395                 req->rq_nr_resend++;
1396
1397                 /* Readjust the timeout for current conditions */
1398                 ptlrpc_at_set_req_timeout(req);
1399                 /* delay resend to give a chance to the server to get ready.
1400                  * The delay is increased by 1s on every resend and is capped to
1401                  * the current request timeout (i.e. obd_timeout if AT is off,
1402                  * or AT service time x 125% + 5s, see at_est2timeout) */
1403                 if (req->rq_nr_resend > req->rq_timeout)
1404                         req->rq_sent = now + req->rq_timeout;
1405                 else
1406                         req->rq_sent = now + req->rq_nr_resend;
1407
1408                 /* Resend for EINPROGRESS will use a new XID */
1409                 spin_lock(&imp->imp_lock);
1410                 list_del_init(&req->rq_unreplied_list);
1411                 spin_unlock(&imp->imp_lock);
1412
1413                 RETURN(0);
1414         }
1415
1416         if (obd->obd_svc_stats != NULL) {
1417                 lprocfs_counter_add(obd->obd_svc_stats, PTLRPC_REQWAIT_CNTR,
1418                                     timediff);
1419                 ptlrpc_lprocfs_rpc_sent(req, timediff);
1420         }
1421
1422         if (lustre_msg_get_type(req->rq_repmsg) != PTL_RPC_MSG_REPLY &&
1423             lustre_msg_get_type(req->rq_repmsg) != PTL_RPC_MSG_ERR) {
1424                 DEBUG_REQ(D_ERROR, req, "invalid packet received (type=%u)",
1425                           lustre_msg_get_type(req->rq_repmsg));
1426                 RETURN(-EPROTO);
1427         }
1428
1429         if (lustre_msg_get_opc(req->rq_reqmsg) != OBD_PING)
1430                 CFS_FAIL_TIMEOUT(OBD_FAIL_PTLRPC_PAUSE_REP, cfs_fail_val);
1431         ptlrpc_at_adj_service(req, lustre_msg_get_timeout(req->rq_repmsg));
1432         ptlrpc_at_adj_net_latency(req,
1433                                   lustre_msg_get_service_time(req->rq_repmsg));
1434
1435         rc = ptlrpc_check_status(req);
1436         imp->imp_connect_error = rc;
1437
1438         if (rc) {
1439                 /*
1440                  * Either we've been evicted, or the server has failed for
1441                  * some reason. Try to reconnect, and if that fails, punt to
1442                  * the upcall.
1443                  */
1444                 if (ptlrpc_recoverable_error(rc)) {
1445                         if (req->rq_send_state != LUSTRE_IMP_FULL ||
1446                             imp->imp_obd->obd_no_recov || imp->imp_dlm_fake) {
1447                                 RETURN(rc);
1448                         }
1449                         ptlrpc_request_handle_notconn(req);
1450                         RETURN(rc);
1451                 }
1452         } else {
1453                 /*
1454                  * Let's look if server sent slv. Do it only for RPC with
1455                  * rc == 0.
1456                  */
1457                 ldlm_cli_update_pool(req);
1458         }
1459
1460         /*
1461          * Store transno in reqmsg for replay.
1462          */
1463         if (!(lustre_msg_get_flags(req->rq_reqmsg) & MSG_REPLAY)) {
1464                 req->rq_transno = lustre_msg_get_transno(req->rq_repmsg);
1465                 lustre_msg_set_transno(req->rq_reqmsg, req->rq_transno);
1466         }
1467
1468         if (imp->imp_replayable) {
1469                 spin_lock(&imp->imp_lock);
1470                 /*
1471                  * No point in adding already-committed requests to the replay
1472                  * list, we will just remove them immediately. b=9829
1473                  */
1474                 if (req->rq_transno != 0 &&
1475                     (req->rq_transno >
1476                      lustre_msg_get_last_committed(req->rq_repmsg) ||
1477                      req->rq_replay)) {
1478                         /** version recovery */
1479                         ptlrpc_save_versions(req);
1480                         ptlrpc_retain_replayable_request(req, imp);
1481                 } else if (req->rq_commit_cb != NULL &&
1482                            list_empty(&req->rq_replay_list)) {
1483                         /* NB: don't call rq_commit_cb if it's already on
1484                          * rq_replay_list, ptlrpc_free_committed() will call
1485                          * it later, see LU-3618 for details */
1486                         spin_unlock(&imp->imp_lock);
1487                         req->rq_commit_cb(req);
1488                         spin_lock(&imp->imp_lock);
1489                 }
1490
1491                 /*
1492                  * Replay-enabled imports return commit-status information.
1493                  */
1494                 committed = lustre_msg_get_last_committed(req->rq_repmsg);
1495                 if (likely(committed > imp->imp_peer_committed_transno))
1496                         imp->imp_peer_committed_transno = committed;
1497
1498                 ptlrpc_free_committed(imp);
1499
1500                 if (!list_empty(&imp->imp_replay_list)) {
1501                         struct ptlrpc_request *last;
1502
1503                         last = list_entry(imp->imp_replay_list.prev,
1504                                           struct ptlrpc_request,
1505                                           rq_replay_list);
1506                         /*
1507                          * Requests with rq_replay stay on the list even if no
1508                          * commit is expected.
1509                          */
1510                         if (last->rq_transno > imp->imp_peer_committed_transno)
1511                                 ptlrpc_pinger_commit_expected(imp);
1512                 }
1513
1514                 spin_unlock(&imp->imp_lock);
1515         }
1516
1517         RETURN(rc);
1518 }
1519
1520 /**
1521  * Helper function to send request \a req over the network for the first time
1522  * Also adjusts request phase.
1523  * Returns 0 on success or error code.
1524  */
1525 static int ptlrpc_send_new_req(struct ptlrpc_request *req)
1526 {
1527         struct obd_import     *imp = req->rq_import;
1528         __u64                  min_xid = 0;
1529         int rc;
1530         ENTRY;
1531
1532         LASSERT(req->rq_phase == RQ_PHASE_NEW);
1533
1534         /* do not try to go further if there is not enough memory in enc_pool */
1535         if (req->rq_sent && req->rq_bulk != NULL)
1536                 if (req->rq_bulk->bd_iov_count > get_free_pages_in_pool() &&
1537                     pool_is_at_full_capacity())
1538                         RETURN(-ENOMEM);
1539
1540         if (req->rq_sent && (req->rq_sent > cfs_time_current_sec()) &&
1541             (!req->rq_generation_set ||
1542              req->rq_import_generation == imp->imp_generation))
1543                 RETURN (0);
1544
1545         ptlrpc_rqphase_move(req, RQ_PHASE_RPC);
1546
1547         spin_lock(&imp->imp_lock);
1548
1549         LASSERT(req->rq_xid != 0);
1550         LASSERT(!list_empty(&req->rq_unreplied_list));
1551
1552         if (!req->rq_generation_set)
1553                 req->rq_import_generation = imp->imp_generation;
1554
1555         if (ptlrpc_import_delay_req(imp, req, &rc)) {
1556                 spin_lock(&req->rq_lock);
1557                 req->rq_waiting = 1;
1558                 spin_unlock(&req->rq_lock);
1559
1560                 DEBUG_REQ(D_HA, req, "req from PID %d waiting for recovery: "
1561                           "(%s != %s)", lustre_msg_get_status(req->rq_reqmsg),
1562                           ptlrpc_import_state_name(req->rq_send_state),
1563                           ptlrpc_import_state_name(imp->imp_state));
1564                 LASSERT(list_empty(&req->rq_list));
1565                 list_add_tail(&req->rq_list, &imp->imp_delayed_list);
1566                 atomic_inc(&req->rq_import->imp_inflight);
1567                 spin_unlock(&imp->imp_lock);
1568                 RETURN(0);
1569         }
1570
1571         if (rc != 0) {
1572                 spin_unlock(&imp->imp_lock);
1573                 req->rq_status = rc;
1574                 ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
1575                 RETURN(rc);
1576         }
1577
1578         LASSERT(list_empty(&req->rq_list));
1579         list_add_tail(&req->rq_list, &imp->imp_sending_list);
1580         atomic_inc(&req->rq_import->imp_inflight);
1581
1582         /* find the known replied XID from the unreplied list, CONNECT
1583          * and DISCONNECT requests are skipped to make the sanity check
1584          * on server side happy. see process_req_last_xid().
1585          *
1586          * For CONNECT: Because replay requests have lower XID, it'll
1587          * break the sanity check if CONNECT bump the exp_last_xid on
1588          * server.
1589          *
1590          * For DISCONNECT: Since client will abort inflight RPC before
1591          * sending DISCONNECT, DISCONNECT may carry an XID which higher
1592          * than the inflight RPC.
1593          */
1594         if (!ptlrpc_req_is_connect(req) && !ptlrpc_req_is_disconnect(req))
1595                 min_xid = ptlrpc_known_replied_xid(imp);
1596         spin_unlock(&imp->imp_lock);
1597
1598         lustre_msg_set_last_xid(req->rq_reqmsg, min_xid);
1599
1600         lustre_msg_set_status(req->rq_reqmsg, current_pid());
1601
1602         rc = sptlrpc_req_refresh_ctx(req, -1);
1603         if (rc) {
1604                 if (req->rq_err) {
1605                         req->rq_status = rc;
1606                         RETURN(1);
1607                 } else {
1608                         spin_lock(&req->rq_lock);
1609                         req->rq_wait_ctx = 1;
1610                         spin_unlock(&req->rq_lock);
1611                         RETURN(0);
1612                 }
1613         }
1614
1615         CDEBUG(D_RPCTRACE, "Sending RPC pname:cluuid:pid:xid:nid:opc"
1616                " %s:%s:%d:%llu:%s:%d\n", current_comm(),
1617                imp->imp_obd->obd_uuid.uuid,
1618                lustre_msg_get_status(req->rq_reqmsg), req->rq_xid,
1619                libcfs_nid2str(imp->imp_connection->c_peer.nid),
1620                lustre_msg_get_opc(req->rq_reqmsg));
1621
1622         rc = ptl_send_rpc(req, 0);
1623         if (rc == -ENOMEM) {
1624                 spin_lock(&imp->imp_lock);
1625                 if (!list_empty(&req->rq_list)) {
1626                         list_del_init(&req->rq_list);
1627                         atomic_dec(&req->rq_import->imp_inflight);
1628                 }
1629                 spin_unlock(&imp->imp_lock);
1630                 ptlrpc_rqphase_move(req, RQ_PHASE_NEW);
1631                 RETURN(rc);
1632         }
1633         if (rc) {
1634                 DEBUG_REQ(D_HA, req, "send failed (%d); expect timeout", rc);
1635                 spin_lock(&req->rq_lock);
1636                 req->rq_net_err = 1;
1637                 spin_unlock(&req->rq_lock);
1638                 RETURN(rc);
1639         }
1640         RETURN(0);
1641 }
1642
1643 static inline int ptlrpc_set_producer(struct ptlrpc_request_set *set)
1644 {
1645         int remaining, rc;
1646         ENTRY;
1647
1648         LASSERT(set->set_producer != NULL);
1649
1650         remaining = atomic_read(&set->set_remaining);
1651
1652         /* populate the ->set_requests list with requests until we
1653          * reach the maximum number of RPCs in flight for this set */
1654         while (atomic_read(&set->set_remaining) < set->set_max_inflight) {
1655                 rc = set->set_producer(set, set->set_producer_arg);
1656                 if (rc == -ENOENT) {
1657                         /* no more RPC to produce */
1658                         set->set_producer     = NULL;
1659                         set->set_producer_arg = NULL;
1660                         RETURN(0);
1661                 }
1662         }
1663
1664         RETURN((atomic_read(&set->set_remaining) - remaining));
1665 }
1666
1667 /**
1668  * this sends any unsent RPCs in \a set and returns 1 if all are sent
1669  * and no more replies are expected.
1670  * (it is possible to get less replies than requests sent e.g. due to timed out
1671  * requests or requests that we had trouble to send out)
1672  *
1673  * NOTE: This function contains a potential schedule point (cond_resched()).
1674  */
1675 int ptlrpc_check_set(const struct lu_env *env, struct ptlrpc_request_set *set)
1676 {
1677         struct list_head *tmp, *next;
1678         struct list_head  comp_reqs;
1679         int force_timer_recalc = 0;
1680         ENTRY;
1681
1682         if (atomic_read(&set->set_remaining) == 0)
1683                 RETURN(1);
1684
1685         INIT_LIST_HEAD(&comp_reqs);
1686         list_for_each_safe(tmp, next, &set->set_requests) {
1687                 struct ptlrpc_request *req =
1688                         list_entry(tmp, struct ptlrpc_request,
1689                                    rq_set_chain);
1690                 struct obd_import *imp = req->rq_import;
1691                 int unregistered = 0;
1692                 int async = 1;
1693                 int rc = 0;
1694
1695                 if (req->rq_phase == RQ_PHASE_COMPLETE) {
1696                         list_move_tail(&req->rq_set_chain, &comp_reqs);
1697                         continue;
1698                 }
1699
1700                 /* This schedule point is mainly for the ptlrpcd caller of this
1701                  * function.  Most ptlrpc sets are not long-lived and unbounded
1702                  * in length, but at the least the set used by the ptlrpcd is.
1703                  * Since the processing time is unbounded, we need to insert an
1704                  * explicit schedule point to make the thread well-behaved.
1705                  */
1706                 cond_resched();
1707
1708                 /* If the caller requires to allow to be interpreted by force
1709                  * and it has really been interpreted, then move the request
1710                  * to RQ_PHASE_INTERPRET phase in spite of what the current
1711                  * phase is. */
1712                 if (unlikely(req->rq_allow_intr && req->rq_intr)) {
1713                         req->rq_status = -EINTR;
1714                         ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
1715
1716                         /* Since it is interpreted and we have to wait for
1717                          * the reply to be unlinked, then use sync mode. */
1718                         async = 0;
1719
1720                         GOTO(interpret, req->rq_status);
1721                 }
1722
1723                 if (req->rq_phase == RQ_PHASE_NEW && ptlrpc_send_new_req(req))
1724                         force_timer_recalc = 1;
1725
1726                 /* delayed send - skip */
1727                 if (req->rq_phase == RQ_PHASE_NEW && req->rq_sent)
1728                         continue;
1729
1730                 /* delayed resend - skip */
1731                 if (req->rq_phase == RQ_PHASE_RPC && req->rq_resend &&
1732                     req->rq_sent > cfs_time_current_sec())
1733                         continue;
1734
1735                 if (!(req->rq_phase == RQ_PHASE_RPC ||
1736                       req->rq_phase == RQ_PHASE_BULK ||
1737                       req->rq_phase == RQ_PHASE_INTERPRET ||
1738                       req->rq_phase == RQ_PHASE_UNREG_RPC ||
1739                       req->rq_phase == RQ_PHASE_UNREG_BULK)) {
1740                         DEBUG_REQ(D_ERROR, req, "bad phase %x", req->rq_phase);
1741                         LBUG();
1742                 }
1743
1744                 if (req->rq_phase == RQ_PHASE_UNREG_RPC ||
1745                     req->rq_phase == RQ_PHASE_UNREG_BULK) {
1746                         LASSERT(req->rq_next_phase != req->rq_phase);
1747                         LASSERT(req->rq_next_phase != RQ_PHASE_UNDEFINED);
1748
1749                         if (req->rq_req_deadline &&
1750                             !OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_REQ_UNLINK))
1751                                 req->rq_req_deadline = 0;
1752                         if (req->rq_reply_deadline &&
1753                             !OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_REPL_UNLINK))
1754                                 req->rq_reply_deadline = 0;
1755                         if (req->rq_bulk_deadline &&
1756                             !OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_BULK_UNLINK))
1757                                 req->rq_bulk_deadline = 0;
1758
1759                         /*
1760                          * Skip processing until reply is unlinked. We
1761                          * can't return to pool before that and we can't
1762                          * call interpret before that. We need to make
1763                          * sure that all rdma transfers finished and will
1764                          * not corrupt any data.
1765                          */
1766                         if (req->rq_phase == RQ_PHASE_UNREG_RPC &&
1767                             ptlrpc_client_recv_or_unlink(req))
1768                                 continue;
1769                         if (req->rq_phase == RQ_PHASE_UNREG_BULK &&
1770                             ptlrpc_client_bulk_active(req))
1771                                 continue;
1772
1773                         /*
1774                          * Turn fail_loc off to prevent it from looping
1775                          * forever.
1776                          */
1777                         if (OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_REPL_UNLINK)) {
1778                                 OBD_FAIL_CHECK_ORSET(OBD_FAIL_PTLRPC_LONG_REPL_UNLINK,
1779                                                      OBD_FAIL_ONCE);
1780                         }
1781                         if (OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_BULK_UNLINK)) {
1782                                 OBD_FAIL_CHECK_ORSET(OBD_FAIL_PTLRPC_LONG_BULK_UNLINK,
1783                                                      OBD_FAIL_ONCE);
1784                         }
1785
1786                         /*
1787                          * Move to next phase if reply was successfully
1788                          * unlinked.
1789                          */
1790                         ptlrpc_rqphase_move(req, req->rq_next_phase);
1791                 }
1792
1793                 if (req->rq_phase == RQ_PHASE_INTERPRET)
1794                         GOTO(interpret, req->rq_status);
1795
1796                 /*
1797                  * Note that this also will start async reply unlink.
1798                  */
1799                 if (req->rq_net_err && !req->rq_timedout) {
1800                         ptlrpc_expire_one_request(req, 1);
1801
1802                         /*
1803                          * Check if we still need to wait for unlink.
1804                          */
1805                         if (ptlrpc_client_recv_or_unlink(req) ||
1806                             ptlrpc_client_bulk_active(req))
1807                                 continue;
1808                         /* If there is no need to resend, fail it now. */
1809                         if (req->rq_no_resend) {
1810                                 if (req->rq_status == 0)
1811                                         req->rq_status = -EIO;
1812                                 ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
1813                                 GOTO(interpret, req->rq_status);
1814                         } else {
1815                                 continue;
1816                         }
1817                 }
1818
1819                 if (req->rq_err) {
1820                         spin_lock(&req->rq_lock);
1821                         req->rq_replied = 0;
1822                         spin_unlock(&req->rq_lock);
1823                         if (req->rq_status == 0)
1824                                 req->rq_status = -EIO;
1825                         ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
1826                         GOTO(interpret, req->rq_status);
1827                 }
1828
1829                 /* ptlrpc_set_wait->l_wait_event sets lwi_allow_intr
1830                  * so it sets rq_intr regardless of individual rpc
1831                  * timeouts. The synchronous IO waiting path sets
1832                  * rq_intr irrespective of whether ptlrpcd
1833                  * has seen a timeout.  Our policy is to only interpret
1834                  * interrupted rpcs after they have timed out, so we
1835                  * need to enforce that here.
1836                  */
1837
1838                 if (req->rq_intr && (req->rq_timedout || req->rq_waiting ||
1839                                      req->rq_wait_ctx)) {
1840                         req->rq_status = -EINTR;
1841                         ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
1842                         GOTO(interpret, req->rq_status);
1843                 }
1844
1845                 if (req->rq_phase == RQ_PHASE_RPC) {
1846                         if (req->rq_timedout || req->rq_resend ||
1847                             req->rq_waiting || req->rq_wait_ctx) {
1848                                 int status;
1849
1850                                 if (!ptlrpc_unregister_reply(req, 1)) {
1851                                         ptlrpc_unregister_bulk(req, 1);
1852                                         continue;
1853                                 }
1854
1855                                 spin_lock(&imp->imp_lock);
1856                                 if (ptlrpc_import_delay_req(imp, req, &status)){
1857                                         /* put on delay list - only if we wait
1858                                          * recovery finished - before send */
1859                                         list_del_init(&req->rq_list);
1860                                         list_add_tail(&req->rq_list,
1861                                                           &imp->
1862                                                           imp_delayed_list);
1863                                         spin_unlock(&imp->imp_lock);
1864                                         continue;
1865                                 }
1866
1867                                 if (status != 0)  {
1868                                         req->rq_status = status;
1869                                         ptlrpc_rqphase_move(req,
1870                                                 RQ_PHASE_INTERPRET);
1871                                         spin_unlock(&imp->imp_lock);
1872                                         GOTO(interpret, req->rq_status);
1873                                 }
1874                                 if (ptlrpc_no_resend(req) &&
1875                                     !req->rq_wait_ctx) {
1876                                         req->rq_status = -ENOTCONN;
1877                                         ptlrpc_rqphase_move(req,
1878                                                             RQ_PHASE_INTERPRET);
1879                                         spin_unlock(&imp->imp_lock);
1880                                         GOTO(interpret, req->rq_status);
1881                                 }
1882
1883                                 list_del_init(&req->rq_list);
1884                                 list_add_tail(&req->rq_list,
1885                                                   &imp->imp_sending_list);
1886
1887                                 spin_unlock(&imp->imp_lock);
1888
1889                                 spin_lock(&req->rq_lock);
1890                                 req->rq_waiting = 0;
1891                                 spin_unlock(&req->rq_lock);
1892
1893                                 if (req->rq_timedout || req->rq_resend) {
1894                                         /* This is re-sending anyways,
1895                                          * let's mark req as resend. */
1896                                         spin_lock(&req->rq_lock);
1897                                         req->rq_resend = 1;
1898                                         spin_unlock(&req->rq_lock);
1899
1900                                         if (req->rq_bulk != NULL &&
1901                                             !ptlrpc_unregister_bulk(req, 1))
1902                                                 continue;
1903                                 }
1904                                 /*
1905                                  * rq_wait_ctx is only touched by ptlrpcd,
1906                                  * so no lock is needed here.
1907                                  */
1908                                 status = sptlrpc_req_refresh_ctx(req, -1);
1909                                 if (status) {
1910                                         if (req->rq_err) {
1911                                                 req->rq_status = status;
1912                                                 spin_lock(&req->rq_lock);
1913                                                 req->rq_wait_ctx = 0;
1914                                                 spin_unlock(&req->rq_lock);
1915                                                 force_timer_recalc = 1;
1916                                         } else {
1917                                                 spin_lock(&req->rq_lock);
1918                                                 req->rq_wait_ctx = 1;
1919                                                 spin_unlock(&req->rq_lock);
1920                                         }
1921
1922                                         continue;
1923                                 } else {
1924                                         spin_lock(&req->rq_lock);
1925                                         req->rq_wait_ctx = 0;
1926                                         spin_unlock(&req->rq_lock);
1927                                 }
1928
1929                                 rc = ptl_send_rpc(req, 0);
1930                                 if (rc == -ENOMEM) {
1931                                         spin_lock(&imp->imp_lock);
1932                                         if (!list_empty(&req->rq_list))
1933                                                 list_del_init(&req->rq_list);
1934                                         spin_unlock(&imp->imp_lock);
1935                                         ptlrpc_rqphase_move(req, RQ_PHASE_NEW);
1936                                         continue;
1937                                 }
1938                                 if (rc) {
1939                                         DEBUG_REQ(D_HA, req,
1940                                                   "send failed: rc = %d", rc);
1941                                         force_timer_recalc = 1;
1942                                         spin_lock(&req->rq_lock);
1943                                         req->rq_net_err = 1;
1944                                         spin_unlock(&req->rq_lock);
1945                                         continue;
1946                                 }
1947                                 /* need to reset the timeout */
1948                                 force_timer_recalc = 1;
1949                         }
1950
1951                         spin_lock(&req->rq_lock);
1952
1953                         if (ptlrpc_client_early(req)) {
1954                                 ptlrpc_at_recv_early_reply(req);
1955                                 spin_unlock(&req->rq_lock);
1956                                 continue;
1957                         }
1958
1959                         /* Still waiting for a reply? */
1960                         if (ptlrpc_client_recv(req)) {
1961                                 spin_unlock(&req->rq_lock);
1962                                 continue;
1963                         }
1964
1965                         /* Did we actually receive a reply? */
1966                         if (!ptlrpc_client_replied(req)) {
1967                                 spin_unlock(&req->rq_lock);
1968                                 continue;
1969                         }
1970
1971                         spin_unlock(&req->rq_lock);
1972
1973                         /* unlink from net because we are going to
1974                          * swab in-place of reply buffer */
1975                         unregistered = ptlrpc_unregister_reply(req, 1);
1976                         if (!unregistered)
1977                                 continue;
1978
1979                         req->rq_status = after_reply(req);
1980                         if (req->rq_resend)
1981                                 continue;
1982
1983                         /* If there is no bulk associated with this request,
1984                          * then we're done and should let the interpreter
1985                          * process the reply. Similarly if the RPC returned
1986                          * an error, and therefore the bulk will never arrive.
1987                          */
1988                         if (req->rq_bulk == NULL || req->rq_status < 0) {
1989                                 ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
1990                                 GOTO(interpret, req->rq_status);
1991                         }
1992
1993                         ptlrpc_rqphase_move(req, RQ_PHASE_BULK);
1994                 }
1995
1996                 LASSERT(req->rq_phase == RQ_PHASE_BULK);
1997                 if (ptlrpc_client_bulk_active(req))
1998                         continue;
1999
2000                 if (req->rq_bulk->bd_failure) {
2001                         /* The RPC reply arrived OK, but the bulk screwed
2002                          * up!  Dead weird since the server told us the RPC
2003                          * was good after getting the REPLY for her GET or
2004                          * the ACK for her PUT. */
2005                         DEBUG_REQ(D_ERROR, req, "bulk transfer failed");
2006                         req->rq_status = -EIO;
2007                 }
2008
2009                 ptlrpc_rqphase_move(req, RQ_PHASE_INTERPRET);
2010
2011         interpret:
2012                 LASSERT(req->rq_phase == RQ_PHASE_INTERPRET);
2013
2014                 /* This moves to "unregistering" phase we need to wait for
2015                  * reply unlink. */
2016                 if (!unregistered && !ptlrpc_unregister_reply(req, async)) {
2017                         /* start async bulk unlink too */
2018                         ptlrpc_unregister_bulk(req, 1);
2019                         continue;
2020                 }
2021
2022                 if (!ptlrpc_unregister_bulk(req, async))
2023                         continue;
2024
2025                 /* When calling interpret receiving already should be
2026                  * finished. */
2027                 LASSERT(!req->rq_receiving_reply);
2028
2029                 ptlrpc_req_interpret(env, req, req->rq_status);
2030
2031                 if (ptlrpcd_check_work(req)) {
2032                         atomic_dec(&set->set_remaining);
2033                         continue;
2034                 }
2035                 ptlrpc_rqphase_move(req, RQ_PHASE_COMPLETE);
2036
2037                 if (req->rq_reqmsg != NULL)
2038                         CDEBUG(D_RPCTRACE,
2039                                "Completed RPC pname:cluuid:pid:xid:nid:"
2040                                "opc %s:%s:%d:%llu:%s:%d\n", current_comm(),
2041                                imp->imp_obd->obd_uuid.uuid,
2042                                lustre_msg_get_status(req->rq_reqmsg),
2043                                req->rq_xid,
2044                                libcfs_nid2str(imp->imp_connection->c_peer.nid),
2045                                lustre_msg_get_opc(req->rq_reqmsg));
2046
2047                 spin_lock(&imp->imp_lock);
2048                 /* Request already may be not on sending or delaying list. This
2049                  * may happen in the case of marking it erroneous for the case
2050                  * ptlrpc_import_delay_req(req, status) find it impossible to
2051                  * allow sending this rpc and returns *status != 0. */
2052                 if (!list_empty(&req->rq_list)) {
2053                         list_del_init(&req->rq_list);
2054                         atomic_dec(&imp->imp_inflight);
2055                 }
2056                 list_del_init(&req->rq_unreplied_list);
2057                 spin_unlock(&imp->imp_lock);
2058
2059                 atomic_dec(&set->set_remaining);
2060                 wake_up_all(&imp->imp_recovery_waitq);
2061
2062                 if (set->set_producer) {
2063                         /* produce a new request if possible */
2064                         if (ptlrpc_set_producer(set) > 0)
2065                                 force_timer_recalc = 1;
2066
2067                         /* free the request that has just been completed
2068                          * in order not to pollute set->set_requests */
2069                         list_del_init(&req->rq_set_chain);
2070                         spin_lock(&req->rq_lock);
2071                         req->rq_set = NULL;
2072                         req->rq_invalid_rqset = 0;
2073                         spin_unlock(&req->rq_lock);
2074
2075                         /* record rq_status to compute the final status later */
2076                         if (req->rq_status != 0)
2077                                 set->set_rc = req->rq_status;
2078                         ptlrpc_req_finished(req);
2079                 } else {
2080                         list_move_tail(&req->rq_set_chain, &comp_reqs);
2081                 }
2082         }
2083
2084         /* move completed request at the head of list so it's easier for
2085          * caller to find them */
2086         list_splice(&comp_reqs, &set->set_requests);
2087
2088         /* If we hit an error, we want to recover promptly. */
2089         RETURN(atomic_read(&set->set_remaining) == 0 || force_timer_recalc);
2090 }
2091 EXPORT_SYMBOL(ptlrpc_check_set);
2092
2093 /**
2094  * Time out request \a req. is \a async_unlink is set, that means do not wait
2095  * until LNet actually confirms network buffer unlinking.
2096  * Return 1 if we should give up further retrying attempts or 0 otherwise.
2097  */
2098 int ptlrpc_expire_one_request(struct ptlrpc_request *req, int async_unlink)
2099 {
2100         struct obd_import *imp = req->rq_import;
2101         int rc = 0;
2102         ENTRY;
2103
2104         spin_lock(&req->rq_lock);
2105         req->rq_timedout = 1;
2106         spin_unlock(&req->rq_lock);
2107
2108         DEBUG_REQ(D_WARNING, req, "Request sent has %s: [sent "CFS_DURATION_T
2109                   "/real "CFS_DURATION_T"]",
2110                   req->rq_net_err ? "failed due to network error" :
2111                      ((req->rq_real_sent == 0 ||
2112                        cfs_time_before(req->rq_real_sent, req->rq_sent) ||
2113                        cfs_time_aftereq(req->rq_real_sent, req->rq_deadline)) ?
2114                       "timed out for sent delay" : "timed out for slow reply"),
2115                   req->rq_sent, req->rq_real_sent);
2116
2117         if (imp != NULL && obd_debug_peer_on_timeout)
2118                 LNetDebugPeer(imp->imp_connection->c_peer);
2119
2120         ptlrpc_unregister_reply(req, async_unlink);
2121         ptlrpc_unregister_bulk(req, async_unlink);
2122
2123         if (obd_dump_on_timeout)
2124                 libcfs_debug_dumplog();
2125
2126         if (imp == NULL) {
2127                 DEBUG_REQ(D_HA, req, "NULL import: already cleaned up?");
2128                 RETURN(1);
2129         }
2130
2131         atomic_inc(&imp->imp_timeouts);
2132
2133         /* The DLM server doesn't want recovery run on its imports. */
2134         if (imp->imp_dlm_fake)
2135                 RETURN(1);
2136
2137         /* If this request is for recovery or other primordial tasks,
2138          * then error it out here. */
2139         if (req->rq_ctx_init || req->rq_ctx_fini ||
2140             req->rq_send_state != LUSTRE_IMP_FULL ||
2141             imp->imp_obd->obd_no_recov) {
2142                 DEBUG_REQ(D_RPCTRACE, req, "err -110, sent_state=%s (now=%s)",
2143                           ptlrpc_import_state_name(req->rq_send_state),
2144                           ptlrpc_import_state_name(imp->imp_state));
2145                 spin_lock(&req->rq_lock);
2146                 req->rq_status = -ETIMEDOUT;
2147                 req->rq_err = 1;
2148                 spin_unlock(&req->rq_lock);
2149                 RETURN(1);
2150         }
2151
2152         /* if a request can't be resent we can't wait for an answer after
2153            the timeout */
2154         if (ptlrpc_no_resend(req)) {
2155                 DEBUG_REQ(D_RPCTRACE, req, "TIMEOUT-NORESEND:");
2156                 rc = 1;
2157         }
2158
2159         ptlrpc_fail_import(imp, lustre_msg_get_conn_cnt(req->rq_reqmsg));
2160
2161         RETURN(rc);
2162 }
2163
2164 /**
2165  * Time out all uncompleted requests in request set pointed by \a data
2166  * Callback used when waiting on sets with l_wait_event.
2167  * Always returns 1.
2168  */
2169 int ptlrpc_expired_set(void *data)
2170 {
2171         struct ptlrpc_request_set       *set = data;
2172         struct list_head                *tmp;
2173         time_t                          now = cfs_time_current_sec();
2174         ENTRY;
2175
2176         LASSERT(set != NULL);
2177
2178         /*
2179          * A timeout expired. See which reqs it applies to...
2180          */
2181         list_for_each(tmp, &set->set_requests) {
2182                 struct ptlrpc_request *req =
2183                         list_entry(tmp, struct ptlrpc_request,
2184                                    rq_set_chain);
2185
2186                 /* don't expire request waiting for context */
2187                 if (req->rq_wait_ctx)
2188                         continue;
2189
2190                 /* Request in-flight? */
2191                 if (!((req->rq_phase == RQ_PHASE_RPC &&
2192                        !req->rq_waiting && !req->rq_resend) ||
2193                       (req->rq_phase == RQ_PHASE_BULK)))
2194                         continue;
2195
2196                 if (req->rq_timedout ||     /* already dealt with */
2197                     req->rq_deadline > now) /* not expired */
2198                         continue;
2199
2200                 /* Deal with this guy. Do it asynchronously to not block
2201                  * ptlrpcd thread. */
2202                 ptlrpc_expire_one_request(req, 1);
2203         }
2204
2205         /*
2206          * When waiting for a whole set, we always break out of the
2207          * sleep so we can recalculate the timeout, or enable interrupts
2208          * if everyone's timed out.
2209          */
2210         RETURN(1);
2211 }
2212
2213 /**
2214  * Sets rq_intr flag in \a req under spinlock.
2215  */
2216 void ptlrpc_mark_interrupted(struct ptlrpc_request *req)
2217 {
2218         spin_lock(&req->rq_lock);
2219         req->rq_intr = 1;
2220         spin_unlock(&req->rq_lock);
2221 }
2222 EXPORT_SYMBOL(ptlrpc_mark_interrupted);
2223
2224 /**
2225  * Interrupts (sets interrupted flag) all uncompleted requests in
2226  * a set \a data. Callback for l_wait_event for interruptible waits.
2227  */
2228 static void ptlrpc_interrupted_set(void *data)
2229 {
2230         struct ptlrpc_request_set *set = data;
2231         struct list_head *tmp;
2232
2233         LASSERT(set != NULL);
2234         CDEBUG(D_RPCTRACE, "INTERRUPTED SET %p\n", set);
2235
2236         list_for_each(tmp, &set->set_requests) {
2237                 struct ptlrpc_request *req =
2238                         list_entry(tmp, struct ptlrpc_request, rq_set_chain);
2239
2240                 if (req->rq_intr)
2241                         continue;
2242
2243                 if (req->rq_phase != RQ_PHASE_RPC &&
2244                     req->rq_phase != RQ_PHASE_UNREG_RPC &&
2245                     !req->rq_allow_intr)
2246                         continue;
2247
2248                 ptlrpc_mark_interrupted(req);
2249         }
2250 }
2251
2252 /**
2253  * Get the smallest timeout in the set; this does NOT set a timeout.
2254  */
2255 int ptlrpc_set_next_timeout(struct ptlrpc_request_set *set)
2256 {
2257         struct list_head        *tmp;
2258         time_t                   now = cfs_time_current_sec();
2259         int                      timeout = 0;
2260         struct ptlrpc_request   *req;
2261         int                      deadline;
2262         ENTRY;
2263
2264         list_for_each(tmp, &set->set_requests) {
2265                 req = list_entry(tmp, struct ptlrpc_request, rq_set_chain);
2266
2267                 /*
2268                  * Request in-flight?
2269                  */
2270                 if (!(((req->rq_phase == RQ_PHASE_RPC) && !req->rq_waiting) ||
2271                       (req->rq_phase == RQ_PHASE_BULK) ||
2272                       (req->rq_phase == RQ_PHASE_NEW)))
2273                         continue;
2274
2275                 /*
2276                  * Already timed out.
2277                  */
2278                 if (req->rq_timedout)
2279                         continue;
2280
2281                 /*
2282                  * Waiting for ctx.
2283                  */
2284                 if (req->rq_wait_ctx)
2285                         continue;
2286
2287                 if (req->rq_phase == RQ_PHASE_NEW)
2288                         deadline = req->rq_sent;
2289                 else if (req->rq_phase == RQ_PHASE_RPC && req->rq_resend)
2290                         deadline = req->rq_sent;
2291                 else
2292                         deadline = req->rq_sent + req->rq_timeout;
2293
2294                 if (deadline <= now)    /* actually expired already */
2295                         timeout = 1;    /* ASAP */
2296                 else if (timeout == 0 || timeout > deadline - now)
2297                         timeout = deadline - now;
2298         }
2299         RETURN(timeout);
2300 }
2301
2302 /**
2303  * Send all unset request from the set and then wait untill all
2304  * requests in the set complete (either get a reply, timeout, get an
2305  * error or otherwise be interrupted).
2306  * Returns 0 on success or error code otherwise.
2307  */
2308 int ptlrpc_set_wait(struct ptlrpc_request_set *set)
2309 {
2310         struct list_head            *tmp;
2311         struct ptlrpc_request *req;
2312         struct l_wait_info     lwi;
2313         int                    rc, timeout;
2314         ENTRY;
2315
2316         if (set->set_producer)
2317                 (void)ptlrpc_set_producer(set);
2318         else
2319                 list_for_each(tmp, &set->set_requests) {
2320                         req = list_entry(tmp, struct ptlrpc_request,
2321                                          rq_set_chain);
2322                         if (req->rq_phase == RQ_PHASE_NEW)
2323                                 (void)ptlrpc_send_new_req(req);
2324                 }
2325
2326         if (list_empty(&set->set_requests))
2327                 RETURN(0);
2328
2329         do {
2330                 timeout = ptlrpc_set_next_timeout(set);
2331
2332                 /* wait until all complete, interrupted, or an in-flight
2333                  * req times out */
2334                 CDEBUG(D_RPCTRACE, "set %p going to sleep for %d seconds\n",
2335                        set, timeout);
2336
2337                 if ((timeout == 0 && !signal_pending(current)) ||
2338                     set->set_allow_intr)
2339                         /* No requests are in-flight (ether timed out
2340                          * or delayed), so we can allow interrupts.
2341                          * We still want to block for a limited time,
2342                          * so we allow interrupts during the timeout. */
2343                         lwi = LWI_TIMEOUT_INTR_ALL(
2344                                         cfs_time_seconds(timeout ? timeout : 1),
2345                                         ptlrpc_expired_set,
2346                                         ptlrpc_interrupted_set, set);
2347                 else
2348                         /*
2349                          * At least one request is in flight, so no
2350                          * interrupts are allowed. Wait until all
2351                          * complete, or an in-flight req times out.
2352                          */
2353                         lwi = LWI_TIMEOUT(cfs_time_seconds(timeout? timeout : 1),
2354                                           ptlrpc_expired_set, set);
2355
2356                 rc = l_wait_event(set->set_waitq, ptlrpc_check_set(NULL, set), &lwi);
2357
2358                 /* LU-769 - if we ignored the signal because it was already
2359                  * pending when we started, we need to handle it now or we risk
2360                  * it being ignored forever */
2361                 if (rc == -ETIMEDOUT &&
2362                     (!lwi.lwi_allow_intr || set->set_allow_intr) &&
2363                     signal_pending(current)) {
2364                         sigset_t blocked_sigs =
2365                                            cfs_block_sigsinv(LUSTRE_FATAL_SIGS);
2366
2367                         /* In fact we only interrupt for the "fatal" signals
2368                          * like SIGINT or SIGKILL. We still ignore less
2369                          * important signals since ptlrpc set is not easily
2370                          * reentrant from userspace again */
2371                         if (signal_pending(current))
2372                                 ptlrpc_interrupted_set(set);
2373                         cfs_restore_sigs(blocked_sigs);
2374                 }
2375
2376                 LASSERT(rc == 0 || rc == -EINTR || rc == -ETIMEDOUT);
2377
2378                 /* -EINTR => all requests have been flagged rq_intr so next
2379                  * check completes.
2380                  * -ETIMEDOUT => someone timed out.  When all reqs have
2381                  * timed out, signals are enabled allowing completion with
2382                  * EINTR.
2383                  * I don't really care if we go once more round the loop in
2384                  * the error cases -eeb. */
2385                 if (rc == 0 && atomic_read(&set->set_remaining) == 0) {
2386                         list_for_each(tmp, &set->set_requests) {
2387                                 req = list_entry(tmp, struct ptlrpc_request,
2388                                                  rq_set_chain);
2389                                 spin_lock(&req->rq_lock);
2390                                 req->rq_invalid_rqset = 1;
2391                                 spin_unlock(&req->rq_lock);
2392                         }
2393                 }
2394         } while (rc != 0 || atomic_read(&set->set_remaining) != 0);
2395
2396         LASSERT(atomic_read(&set->set_remaining) == 0);
2397
2398         rc = set->set_rc; /* rq_status of already freed requests if any */
2399         list_for_each(tmp, &set->set_requests) {
2400                 req = list_entry(tmp, struct ptlrpc_request, rq_set_chain);
2401
2402                 LASSERT(req->rq_phase == RQ_PHASE_COMPLETE);
2403                 if (req->rq_status != 0)
2404                         rc = req->rq_status;
2405         }
2406
2407         if (set->set_interpret != NULL) {
2408                 int (*interpreter)(struct ptlrpc_request_set *set,void *,int) =
2409                         set->set_interpret;
2410                 rc = interpreter (set, set->set_arg, rc);
2411         } else {
2412                 struct ptlrpc_set_cbdata *cbdata, *n;
2413                 int err;
2414
2415                 list_for_each_entry_safe(cbdata, n,
2416                                          &set->set_cblist, psc_item) {
2417                         list_del_init(&cbdata->psc_item);
2418                         err = cbdata->psc_interpret(set, cbdata->psc_data, rc);
2419                         if (err && !rc)
2420                                 rc = err;
2421                         OBD_FREE_PTR(cbdata);
2422                 }
2423         }
2424
2425         RETURN(rc);
2426 }
2427 EXPORT_SYMBOL(ptlrpc_set_wait);
2428
2429 /**
2430  * Helper fuction for request freeing.
2431  * Called when request count reached zero and request needs to be freed.
2432  * Removes request from all sorts of sending/replay lists it might be on,
2433  * frees network buffers if any are present.
2434  * If \a locked is set, that means caller is already holding import imp_lock
2435  * and so we no longer need to reobtain it (for certain lists manipulations)
2436  */
2437 static void __ptlrpc_free_req(struct ptlrpc_request *request, int locked)
2438 {
2439         ENTRY;
2440
2441         if (request == NULL)
2442                 RETURN_EXIT;
2443
2444         LASSERT(!request->rq_srv_req);
2445         LASSERT(request->rq_export == NULL);
2446         LASSERTF(!request->rq_receiving_reply, "req %p\n", request);
2447         LASSERTF(list_empty(&request->rq_list), "req %p\n", request);
2448         LASSERTF(list_empty(&request->rq_set_chain), "req %p\n", request);
2449         LASSERTF(!request->rq_replay, "req %p\n", request);
2450
2451         req_capsule_fini(&request->rq_pill);
2452
2453         /* We must take it off the imp_replay_list first.  Otherwise, we'll set
2454          * request->rq_reqmsg to NULL while osc_close is dereferencing it. */
2455         if (request->rq_import != NULL) {
2456                 if (!locked)
2457                         spin_lock(&request->rq_import->imp_lock);
2458                 list_del_init(&request->rq_replay_list);
2459                 list_del_init(&request->rq_unreplied_list);
2460                 if (!locked)
2461                         spin_unlock(&request->rq_import->imp_lock);
2462         }
2463         LASSERTF(list_empty(&request->rq_replay_list), "req %p\n", request);
2464
2465         if (atomic_read(&request->rq_refcount) != 0) {
2466                 DEBUG_REQ(D_ERROR, request,
2467                           "freeing request with nonzero refcount");
2468                 LBUG();
2469         }
2470
2471         if (request->rq_repbuf != NULL)
2472                 sptlrpc_cli_free_repbuf(request);
2473
2474         if (request->rq_import != NULL) {
2475                 class_import_put(request->rq_import);
2476                 request->rq_import = NULL;
2477         }
2478         if (request->rq_bulk != NULL)
2479                 ptlrpc_free_bulk(request->rq_bulk);
2480
2481         if (request->rq_reqbuf != NULL || request->rq_clrbuf != NULL)
2482                 sptlrpc_cli_free_reqbuf(request);
2483
2484         if (request->rq_cli_ctx)
2485                 sptlrpc_req_put_ctx(request, !locked);
2486
2487         if (request->rq_pool)
2488                 __ptlrpc_free_req_to_pool(request);
2489         else
2490                 ptlrpc_request_cache_free(request);
2491         EXIT;
2492 }
2493
2494 static int __ptlrpc_req_finished(struct ptlrpc_request *request, int locked);
2495 /**
2496  * Drop one request reference. Must be called with import imp_lock held.
2497  * When reference count drops to zero, request is freed.
2498  */
2499 void ptlrpc_req_finished_with_imp_lock(struct ptlrpc_request *request)
2500 {
2501         assert_spin_locked(&request->rq_import->imp_lock);
2502         (void)__ptlrpc_req_finished(request, 1);
2503 }
2504
2505 /**
2506  * Helper function
2507  * Drops one reference count for request \a request.
2508  * \a locked set indicates that caller holds import imp_lock.
2509  * Frees the request whe reference count reaches zero.
2510  */
2511 static int __ptlrpc_req_finished(struct ptlrpc_request *request, int locked)
2512 {
2513         ENTRY;
2514         if (request == NULL)
2515                 RETURN(1);
2516
2517         if (request == LP_POISON ||
2518             request->rq_reqmsg == LP_POISON) {
2519                 CERROR("dereferencing freed request (bug 575)\n");
2520                 LBUG();
2521                 RETURN(1);
2522         }
2523
2524         DEBUG_REQ(D_INFO, request, "refcount now %u",
2525                   atomic_read(&request->rq_refcount) - 1);
2526
2527         if (atomic_dec_and_test(&request->rq_refcount)) {
2528                 __ptlrpc_free_req(request, locked);
2529                 RETURN(1);
2530         }
2531
2532         RETURN(0);
2533 }
2534
2535 /**
2536  * Drops one reference count for a request.
2537  */
2538 void ptlrpc_req_finished(struct ptlrpc_request *request)
2539 {
2540         __ptlrpc_req_finished(request, 0);
2541 }
2542 EXPORT_SYMBOL(ptlrpc_req_finished);
2543
2544 /**
2545  * Returns xid of a \a request
2546  */
2547 __u64 ptlrpc_req_xid(struct ptlrpc_request *request)
2548 {
2549         return request->rq_xid;
2550 }
2551 EXPORT_SYMBOL(ptlrpc_req_xid);
2552
2553 /**
2554  * Disengage the client's reply buffer from the network
2555  * NB does _NOT_ unregister any client-side bulk.
2556  * IDEMPOTENT, but _not_ safe against concurrent callers.
2557  * The request owner (i.e. the thread doing the I/O) must call...
2558  * Returns 0 on success or 1 if unregistering cannot be made.
2559  */
2560 static int ptlrpc_unregister_reply(struct ptlrpc_request *request, int async)
2561 {
2562         int                rc;
2563         struct l_wait_info lwi;
2564
2565         /*
2566          * Might sleep.
2567          */
2568         LASSERT(!in_interrupt());
2569
2570         /* Let's setup deadline for reply unlink. */
2571         if (OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_LONG_REPL_UNLINK) &&
2572             async && request->rq_reply_deadline == 0 && cfs_fail_val == 0)
2573                 request->rq_reply_deadline =
2574                         cfs_time_current_sec() + LONG_UNLINK;
2575
2576         /*
2577          * Nothing left to do.
2578          */
2579         if (!ptlrpc_client_recv_or_unlink(request))
2580                 RETURN(1);
2581
2582         LNetMDUnlink(request->rq_reply_md_h);
2583
2584         /*
2585          * Let's check it once again.
2586          */
2587         if (!ptlrpc_client_recv_or_unlink(request))
2588                 RETURN(1);
2589
2590         /* Move to "Unregistering" phase as reply was not unlinked yet. */
2591         ptlrpc_rqphase_move(request, RQ_PHASE_UNREG_RPC);
2592
2593         /*
2594          * Do not wait for unlink to finish.
2595          */
2596         if (async)
2597                 RETURN(0);
2598
2599         /*
2600          * We have to l_wait_event() whatever the result, to give liblustre
2601          * a chance to run reply_in_callback(), and to make sure we've
2602          * unlinked before returning a req to the pool.
2603          */
2604         for (;;) {
2605                 /* The wq argument is ignored by user-space wait_event macros */
2606                 wait_queue_head_t *wq = (request->rq_set != NULL) ?
2607                                         &request->rq_set->set_waitq :
2608                                         &request->rq_reply_waitq;
2609                 /* Network access will complete in finite time but the HUGE
2610                  * timeout lets us CWARN for visibility of sluggish NALs */
2611                 lwi = LWI_TIMEOUT_INTERVAL(cfs_time_seconds(LONG_UNLINK),
2612                                            cfs_time_seconds(1), NULL, NULL);
2613                 rc = l_wait_event(*wq, !ptlrpc_client_recv_or_unlink(request),
2614                                   &lwi);
2615                 if (rc == 0) {
2616                         ptlrpc_rqphase_move(request, request->rq_next_phase);
2617                         RETURN(1);
2618                 }
2619
2620                 LASSERT(rc == -ETIMEDOUT);
2621                 DEBUG_REQ(D_WARNING, request, "Unexpectedly long timeout "
2622                           "receiving_reply=%d req_ulinked=%d reply_unlinked=%d",
2623                           request->rq_receiving_reply,
2624                           request->rq_req_unlinked,
2625                           request->rq_reply_unlinked);
2626         }
2627         RETURN(0);
2628 }
2629
2630 static void ptlrpc_free_request(struct ptlrpc_request *req)
2631 {
2632         spin_lock(&req->rq_lock);
2633         req->rq_replay = 0;
2634         spin_unlock(&req->rq_lock);
2635
2636         if (req->rq_commit_cb != NULL)
2637                 req->rq_commit_cb(req);
2638         list_del_init(&req->rq_replay_list);
2639
2640         __ptlrpc_req_finished(req, 1);
2641 }
2642
2643 /**
2644  * the request is committed and dropped from the replay list of its import
2645  */
2646 void ptlrpc_request_committed(struct ptlrpc_request *req, int force)
2647 {
2648         struct obd_import       *imp = req->rq_import;
2649
2650         spin_lock(&imp->imp_lock);
2651         if (list_empty(&req->rq_replay_list)) {
2652                 spin_unlock(&imp->imp_lock);
2653                 return;
2654         }
2655
2656         if (force || req->rq_transno <= imp->imp_peer_committed_transno)
2657                 ptlrpc_free_request(req);
2658
2659         spin_unlock(&imp->imp_lock);
2660 }
2661 EXPORT_SYMBOL(ptlrpc_request_committed);
2662
2663 /**
2664  * Iterates through replay_list on import and prunes
2665  * all requests have transno smaller than last_committed for the
2666  * import and don't have rq_replay set.
2667  * Since requests are sorted in transno order, stops when meetign first
2668  * transno bigger than last_committed.
2669  * caller must hold imp->imp_lock
2670  */
2671 void ptlrpc_free_committed(struct obd_import *imp)
2672 {
2673         struct ptlrpc_request   *req, *saved;
2674         struct ptlrpc_request   *last_req = NULL; /* temporary fire escape */
2675         bool                     skip_committed_list = true;
2676         ENTRY;
2677
2678         LASSERT(imp != NULL);
2679         assert_spin_locked(&imp->imp_lock);
2680
2681         if (imp->imp_peer_committed_transno == imp->imp_last_transno_checked &&
2682             imp->imp_generation == imp->imp_last_generation_checked) {
2683                 CDEBUG(D_INFO, "%s: skip recheck: last_committed %llu\n",
2684                        imp->imp_obd->obd_name, imp->imp_peer_committed_transno);
2685                 RETURN_EXIT;
2686         }
2687         CDEBUG(D_RPCTRACE, "%s: committing for last_committed %llu gen %d\n",
2688                imp->imp_obd->obd_name, imp->imp_peer_committed_transno,
2689                imp->imp_generation);
2690
2691         if (imp->imp_generation != imp->imp_last_generation_checked ||
2692             imp->imp_last_transno_checked == 0)
2693                 skip_committed_list = false;
2694
2695         imp->imp_last_transno_checked = imp->imp_peer_committed_transno;
2696         imp->imp_last_generation_checked = imp->imp_generation;
2697
2698         list_for_each_entry_safe(req, saved, &imp->imp_replay_list,
2699                                      rq_replay_list) {
2700                 /* XXX ok to remove when 1357 resolved - rread 05/29/03  */
2701                 LASSERT(req != last_req);
2702                 last_req = req;
2703
2704                 if (req->rq_transno == 0) {
2705                         DEBUG_REQ(D_EMERG, req, "zero transno during replay");
2706                         LBUG();
2707                 }
2708                 if (req->rq_import_generation < imp->imp_generation) {
2709                         DEBUG_REQ(D_RPCTRACE, req, "free request with old gen");
2710                         GOTO(free_req, 0);
2711                 }
2712
2713                 /* not yet committed */
2714                 if (req->rq_transno > imp->imp_peer_committed_transno) {
2715                         DEBUG_REQ(D_RPCTRACE, req, "stopping search");
2716                         break;
2717                 }
2718
2719                 if (req->rq_replay) {
2720                         DEBUG_REQ(D_RPCTRACE, req, "keeping (FL_REPLAY)");
2721                         list_move_tail(&req->rq_replay_list,
2722                                            &imp->imp_committed_list);
2723                         continue;
2724                 }
2725
2726                 DEBUG_REQ(D_INFO, req, "commit (last_committed %llu)",
2727                           imp->imp_peer_committed_transno);
2728 free_req:
2729                 ptlrpc_free_request(req);
2730         }
2731
2732         if (skip_committed_list)
2733                 GOTO(out, 0);
2734
2735         list_for_each_entry_safe(req, saved, &imp->imp_committed_list,
2736                                  rq_replay_list) {
2737                 LASSERT(req->rq_transno != 0);
2738                 if (req->rq_import_generation < imp->imp_generation ||
2739                     !req->rq_replay) {
2740                         DEBUG_REQ(D_RPCTRACE, req, "free %s open request",
2741                                   req->rq_import_generation <
2742                                   imp->imp_generation ? "stale" : "closed");
2743
2744                         if (imp->imp_replay_cursor == &req->rq_replay_list)
2745                                 imp->imp_replay_cursor =
2746                                         req->rq_replay_list.next;
2747
2748                         ptlrpc_free_request(req);
2749                 }
2750         }
2751 out:
2752         EXIT;
2753 }
2754
2755 void ptlrpc_cleanup_client(struct obd_import *imp)
2756 {
2757         ENTRY;
2758         EXIT;
2759 }
2760
2761 /**
2762  * Schedule previously sent request for resend.
2763  * For bulk requests we assign new xid (to avoid problems with
2764  * lost replies and therefore several transfers landing into same buffer
2765  * from different sending attempts).
2766  */
2767 void ptlrpc_resend_req(struct ptlrpc_request *req)
2768 {
2769         DEBUG_REQ(D_HA, req, "going to resend");
2770         spin_lock(&req->rq_lock);
2771
2772         /* Request got reply but linked to the import list still.
2773            Let ptlrpc_check_set() to process it. */
2774         if (ptlrpc_client_replied(req)) {
2775                 spin_unlock(&req->rq_lock);
2776                 DEBUG_REQ(D_HA, req, "it has reply, so skip it");
2777                 return;
2778         }
2779
2780         lustre_msg_set_handle(req->rq_reqmsg, &(struct lustre_handle){ 0 });
2781         req->rq_status = -EAGAIN;
2782
2783         req->rq_resend = 1;
2784         req->rq_net_err = 0;
2785         req->rq_timedout = 0;
2786
2787         ptlrpc_client_wake_req(req);
2788         spin_unlock(&req->rq_lock);
2789 }
2790
2791 /* XXX: this function and rq_status are currently unused */
2792 void ptlrpc_restart_req(struct ptlrpc_request *req)
2793 {
2794         DEBUG_REQ(D_HA, req, "restarting (possibly-)completed request");
2795         req->rq_status = -ERESTARTSYS;
2796
2797         spin_lock(&req->rq_lock);
2798         req->rq_restart = 1;
2799         req->rq_timedout = 0;
2800         ptlrpc_client_wake_req(req);
2801         spin_unlock(&req->rq_lock);
2802 }
2803
2804 /**
2805  * Grab additional reference on a request \a req
2806  */
2807 struct ptlrpc_request *ptlrpc_request_addref(struct ptlrpc_request *req)
2808 {
2809         ENTRY;
2810         atomic_inc(&req->rq_refcount);
2811         RETURN(req);
2812 }
2813 EXPORT_SYMBOL(ptlrpc_request_addref);
2814
2815 /**
2816  * Add a request to import replay_list.
2817  * Must be called under imp_lock
2818  */
2819 void ptlrpc_retain_replayable_request(struct ptlrpc_request *req,
2820                                       struct obd_import *imp)
2821 {
2822         struct list_head *tmp;
2823
2824         assert_spin_locked(&imp->imp_lock);
2825
2826         if (req->rq_transno == 0) {
2827                 DEBUG_REQ(D_EMERG, req, "saving request with zero transno");
2828                 LBUG();
2829         }
2830
2831         /* clear this for new requests that were resent as well
2832            as resent replayed requests. */
2833         lustre_msg_clear_flags(req->rq_reqmsg, MSG_RESENT);
2834
2835         /* don't re-add requests that have been replayed */
2836         if (!list_empty(&req->rq_replay_list))
2837                 return;
2838
2839         lustre_msg_add_flags(req->rq_reqmsg, MSG_REPLAY);
2840
2841         spin_lock(&req->rq_lock);
2842         req->rq_resend = 0;
2843         spin_unlock(&req->rq_lock);
2844
2845         LASSERT(imp->imp_replayable);
2846         /* Balanced in ptlrpc_free_committed, usually. */
2847         ptlrpc_request_addref(req);
2848         list_for_each_prev(tmp, &imp->imp_replay_list) {
2849                 struct ptlrpc_request *iter = list_entry(tmp,
2850                                                          struct ptlrpc_request,
2851                                                          rq_replay_list);
2852
2853                 /* We may have duplicate transnos if we create and then
2854                  * open a file, or for closes retained if to match creating
2855                  * opens, so use req->rq_xid as a secondary key.
2856                  * (See bugs 684, 685, and 428.)
2857                  * XXX no longer needed, but all opens need transnos!
2858                  */
2859                 if (iter->rq_transno > req->rq_transno)
2860                         continue;
2861
2862                 if (iter->rq_transno == req->rq_transno) {
2863                         LASSERT(iter->rq_xid != req->rq_xid);
2864                         if (iter->rq_xid > req->rq_xid)
2865                                 continue;
2866                 }
2867
2868                 list_add(&req->rq_replay_list, &iter->rq_replay_list);
2869                 return;
2870         }
2871
2872         list_add(&req->rq_replay_list, &imp->imp_replay_list);
2873 }
2874
2875 /**
2876  * Send request and wait until it completes.
2877  * Returns request processing status.
2878  */
2879 int ptlrpc_queue_wait(struct ptlrpc_request *req)
2880 {
2881         struct ptlrpc_request_set *set;
2882         int rc;
2883         ENTRY;
2884
2885         LASSERT(req->rq_set == NULL);
2886         LASSERT(!req->rq_receiving_reply);
2887
2888         set = ptlrpc_prep_set();
2889         if (set == NULL) {
2890                 CERROR("cannot allocate ptlrpc set: rc = %d\n", -ENOMEM);
2891                 RETURN(-ENOMEM);
2892         }
2893
2894         /* for distributed debugging */
2895         lustre_msg_set_status(req->rq_reqmsg, current_pid());
2896
2897         /* add a ref for the set (see comment in ptlrpc_set_add_req) */
2898         ptlrpc_request_addref(req);
2899         ptlrpc_set_add_req(set, req);
2900         rc = ptlrpc_set_wait(set);
2901         ptlrpc_set_destroy(set);
2902
2903         RETURN(rc);
2904 }
2905 EXPORT_SYMBOL(ptlrpc_queue_wait);
2906
2907 /**
2908  * Callback used for replayed requests reply processing.
2909  * In case of successful reply calls registered request replay callback.
2910  * In case of error restart replay process.
2911  */
2912 static int ptlrpc_replay_interpret(const struct lu_env *env,
2913                                    struct ptlrpc_request *req,
2914                                    void * data, int rc)
2915 {
2916         struct ptlrpc_replay_async_args *aa = data;
2917         struct obd_import *imp = req->rq_import;
2918
2919         ENTRY;
2920         atomic_dec(&imp->imp_replay_inflight);
2921
2922         /* Note: if it is bulk replay (MDS-MDS replay), then even if
2923          * server got the request, but bulk transfer timeout, let's
2924          * replay the bulk req again */
2925         if (!ptlrpc_client_replied(req) ||
2926             (req->rq_bulk != NULL &&
2927              lustre_msg_get_status(req->rq_repmsg) == -ETIMEDOUT)) {
2928                 DEBUG_REQ(D_ERROR, req, "request replay timed out.\n");
2929                 GOTO(out, rc = -ETIMEDOUT);
2930         }
2931
2932         if (lustre_msg_get_type(req->rq_repmsg) == PTL_RPC_MSG_ERR &&
2933             (lustre_msg_get_status(req->rq_repmsg) == -ENOTCONN ||
2934              lustre_msg_get_status(req->rq_repmsg) == -ENODEV))
2935                 GOTO(out, rc = lustre_msg_get_status(req->rq_repmsg));
2936
2937         /** VBR: check version failure */
2938         if (lustre_msg_get_status(req->rq_repmsg) == -EOVERFLOW) {
2939                 /** replay was failed due to version mismatch */
2940                 DEBUG_REQ(D_WARNING, req, "Version mismatch during replay\n");
2941                 spin_lock(&imp->imp_lock);
2942                 imp->imp_vbr_failed = 1;
2943                 imp->imp_no_lock_replay = 1;
2944                 spin_unlock(&imp->imp_lock);
2945                 lustre_msg_set_status(req->rq_repmsg, aa->praa_old_status);
2946         } else {
2947                 /** The transno had better not change over replay. */
2948                 LASSERTF(lustre_msg_get_transno(req->rq_reqmsg) ==
2949                          lustre_msg_get_transno(req->rq_repmsg) ||
2950                          lustre_msg_get_transno(req->rq_repmsg) == 0,
2951                          "%#llx/%#llx\n",
2952                          lustre_msg_get_transno(req->rq_reqmsg),
2953                          lustre_msg_get_transno(req->rq_repmsg));
2954         }
2955
2956         spin_lock(&imp->imp_lock);
2957         /** if replays by version then gap occur on server, no trust to locks */
2958         if (lustre_msg_get_flags(req->rq_repmsg) & MSG_VERSION_REPLAY)
2959                 imp->imp_no_lock_replay = 1;
2960         imp->imp_last_replay_transno = lustre_msg_get_transno(req->rq_reqmsg);
2961         spin_unlock(&imp->imp_lock);
2962         LASSERT(imp->imp_last_replay_transno);
2963
2964         /* transaction number shouldn't be bigger than the latest replayed */
2965         if (req->rq_transno > lustre_msg_get_transno(req->rq_reqmsg)) {
2966                 DEBUG_REQ(D_ERROR, req,
2967                           "Reported transno %llu is bigger than the "
2968                           "replayed one: %llu", req->rq_transno,
2969                           lustre_msg_get_transno(req->rq_reqmsg));
2970                 GOTO(out, rc = -EINVAL);
2971         }
2972
2973         DEBUG_REQ(D_HA, req, "got rep");
2974
2975         /* let the callback do fixups, possibly including in the request */
2976         if (req->rq_replay_cb)
2977                 req->rq_replay_cb(req);
2978
2979         if (ptlrpc_client_replied(req) &&
2980             lustre_msg_get_status(req->rq_repmsg) != aa->praa_old_status) {
2981                 DEBUG_REQ(D_ERROR, req, "status %d, old was %d",
2982                           lustre_msg_get_status(req->rq_repmsg),
2983                           aa->praa_old_status);
2984
2985                 /* Note: If the replay fails for MDT-MDT recovery, let's
2986                  * abort all of the following requests in the replay
2987                  * and sending list, because MDT-MDT update requests
2988                  * are dependent on each other, see LU-7039 */
2989                 if (imp->imp_connect_flags_orig & OBD_CONNECT_MDS_MDS) {
2990                         struct ptlrpc_request *free_req;
2991                         struct ptlrpc_request *tmp;
2992
2993                         spin_lock(&imp->imp_lock);
2994                         list_for_each_entry_safe(free_req, tmp,
2995                                                  &imp->imp_replay_list,
2996                                                  rq_replay_list) {
2997                                 ptlrpc_free_request(free_req);
2998                         }
2999
3000                         list_for_each_entry_safe(free_req, tmp,
3001                                                  &imp->imp_committed_list,
3002                                                  rq_replay_list) {
3003                                 ptlrpc_free_request(free_req);
3004                         }
3005
3006                         list_for_each_entry_safe(free_req, tmp,
3007                                                 &imp->imp_delayed_list,
3008                                                 rq_list) {
3009                                 spin_lock(&free_req->rq_lock);
3010                                 free_req->rq_err = 1;
3011                                 free_req->rq_status = -EIO;
3012                                 ptlrpc_client_wake_req(free_req);
3013                                 spin_unlock(&free_req->rq_lock);
3014                         }
3015
3016                         list_for_each_entry_safe(free_req, tmp,
3017                                                 &imp->imp_sending_list,
3018                                                 rq_list) {
3019                                 spin_lock(&free_req->rq_lock);
3020                                 free_req->rq_err = 1;
3021                                 free_req->rq_status = -EIO;
3022                                 ptlrpc_client_wake_req(free_req);
3023                                 spin_unlock(&free_req->rq_lock);
3024                         }
3025                         spin_unlock(&imp->imp_lock);
3026                 }
3027         } else {
3028                 /* Put it back for re-replay. */
3029                 lustre_msg_set_status(req->rq_repmsg, aa->praa_old_status);
3030         }
3031
3032         /*
3033          * Errors while replay can set transno to 0, but
3034          * imp_last_replay_transno shouldn't be set to 0 anyway
3035          */
3036         if (req->rq_transno == 0)
3037                 CERROR("Transno is 0 during replay!\n");
3038
3039         /* continue with recovery */
3040         rc = ptlrpc_import_recovery_state_machine(imp);
3041  out:
3042         req->rq_send_state = aa->praa_old_state;
3043
3044         if (rc != 0)
3045                 /* this replay failed, so restart recovery */
3046                 ptlrpc_connect_import(imp);
3047
3048         RETURN(rc);
3049 }
3050
3051 /**
3052  * Prepares and queues request for replay.
3053  * Adds it to ptlrpcd queue for actual sending.
3054  * Returns 0 on success.
3055  */
3056 int ptlrpc_replay_req(struct ptlrpc_request *req)
3057 {
3058         struct ptlrpc_replay_async_args *aa;
3059         ENTRY;
3060
3061         LASSERT(req->rq_import->imp_state == LUSTRE_IMP_REPLAY);
3062
3063         LASSERT (sizeof (*aa) <= sizeof (req->rq_async_args));
3064         aa = ptlrpc_req_async_args(req);
3065         memset(aa, 0, sizeof *aa);
3066
3067         /* Prepare request to be resent with ptlrpcd */
3068         aa->praa_old_state = req->rq_send_state;
3069         req->rq_send_state = LUSTRE_IMP_REPLAY;
3070         req->rq_phase = RQ_PHASE_NEW;
3071         req->rq_next_phase = RQ_PHASE_UNDEFINED;
3072         if (req->rq_repmsg)
3073                 aa->praa_old_status = lustre_msg_get_status(req->rq_repmsg);
3074         req->rq_status = 0;
3075         req->rq_interpret_reply = ptlrpc_replay_interpret;
3076         /* Readjust the timeout for current conditions */
3077         ptlrpc_at_set_req_timeout(req);
3078
3079         /* Tell server the net_latency, so the server can calculate how long
3080          * it should wait for next replay */
3081         lustre_msg_set_service_time(req->rq_reqmsg,
3082                                     ptlrpc_at_get_net_latency(req));
3083         DEBUG_REQ(D_HA, req, "REPLAY");
3084
3085         atomic_inc(&req->rq_import->imp_replay_inflight);
3086         ptlrpc_request_addref(req);     /* ptlrpcd needs a ref */
3087
3088         ptlrpcd_add_req(req);
3089         RETURN(0);
3090 }
3091
3092 /**
3093  * Aborts all in-flight request on import \a imp sending and delayed lists
3094  */
3095 void ptlrpc_abort_inflight(struct obd_import *imp)
3096 {
3097         struct list_head *tmp, *n;
3098         ENTRY;
3099
3100         /* Make sure that no new requests get processed for this import.
3101          * ptlrpc_{queue,set}_wait must (and does) hold imp_lock while testing
3102          * this flag and then putting requests on sending_list or delayed_list.
3103          */
3104         spin_lock(&imp->imp_lock);
3105
3106         /* XXX locking?  Maybe we should remove each request with the list
3107          * locked?  Also, how do we know if the requests on the list are
3108          * being freed at this time?
3109          */
3110         list_for_each_safe(tmp, n, &imp->imp_sending_list) {
3111                 struct ptlrpc_request *req = list_entry(tmp,
3112                                                         struct ptlrpc_request,
3113                                                         rq_list);
3114
3115                 DEBUG_REQ(D_RPCTRACE, req, "inflight");
3116
3117                 spin_lock(&req->rq_lock);
3118                 if (req->rq_import_generation < imp->imp_generation) {
3119                         req->rq_err = 1;
3120                         req->rq_status = -EIO;
3121                         ptlrpc_client_wake_req(req);
3122                 }
3123                 spin_unlock(&req->rq_lock);
3124         }
3125
3126         list_for_each_safe(tmp, n, &imp->imp_delayed_list) {
3127                 struct ptlrpc_request *req =
3128                         list_entry(tmp, struct ptlrpc_request, rq_list);
3129
3130                 DEBUG_REQ(D_RPCTRACE, req, "aborting waiting req");
3131
3132                 spin_lock(&req->rq_lock);
3133                 if (req->rq_import_generation < imp->imp_generation) {
3134                         req->rq_err = 1;
3135                         req->rq_status = -EIO;
3136                         ptlrpc_client_wake_req(req);
3137                 }
3138                 spin_unlock(&req->rq_lock);
3139         }
3140
3141         /* Last chance to free reqs left on the replay list, but we
3142          * will still leak reqs that haven't committed.  */
3143         if (imp->imp_replayable)
3144                 ptlrpc_free_committed(imp);
3145
3146         spin_unlock(&imp->imp_lock);
3147
3148         EXIT;
3149 }
3150
3151 /**
3152  * Abort all uncompleted requests in request set \a set
3153  */
3154 void ptlrpc_abort_set(struct ptlrpc_request_set *set)
3155 {
3156         struct list_head *tmp, *pos;
3157
3158         LASSERT(set != NULL);
3159
3160         list_for_each_safe(pos, tmp, &set->set_requests) {
3161                 struct ptlrpc_request *req =
3162                         list_entry(pos, struct ptlrpc_request,
3163                                    rq_set_chain);
3164
3165                 spin_lock(&req->rq_lock);
3166                 if (req->rq_phase != RQ_PHASE_RPC) {
3167                         spin_unlock(&req->rq_lock);
3168                         continue;
3169                 }
3170
3171                 req->rq_err = 1;
3172                 req->rq_status = -EINTR;
3173                 ptlrpc_client_wake_req(req);
3174                 spin_unlock(&req->rq_lock);
3175         }
3176 }
3177
3178 static __u64 ptlrpc_last_xid;
3179 static spinlock_t ptlrpc_last_xid_lock;
3180
3181 /**
3182  * Initialize the XID for the node.  This is common among all requests on
3183  * this node, and only requires the property that it is monotonically
3184  * increasing.  It does not need to be sequential.  Since this is also used
3185  * as the RDMA match bits, it is important that a single client NOT have
3186  * the same match bits for two different in-flight requests, hence we do
3187  * NOT want to have an XID per target or similar.
3188  *
3189  * To avoid an unlikely collision between match bits after a client reboot
3190  * (which would deliver old data into the wrong RDMA buffer) initialize
3191  * the XID based on the current time, assuming a maximum RPC rate of 1M RPC/s.
3192  * If the time is clearly incorrect, we instead use a 62-bit random number.
3193  * In the worst case the random number will overflow 1M RPCs per second in
3194  * 9133 years, or permutations thereof.
3195  */
3196 #define YEAR_2004 (1ULL << 30)
3197 void ptlrpc_init_xid(void)
3198 {
3199         time_t now = cfs_time_current_sec();
3200
3201         spin_lock_init(&ptlrpc_last_xid_lock);
3202         if (now < YEAR_2004) {
3203                 cfs_get_random_bytes(&ptlrpc_last_xid, sizeof(ptlrpc_last_xid));
3204                 ptlrpc_last_xid >>= 2;
3205                 ptlrpc_last_xid |= (1ULL << 61);
3206         } else {
3207                 ptlrpc_last_xid = (__u64)now << 20;
3208         }
3209
3210         /* Need to always be aligned to a power-of-two for mutli-bulk BRW */
3211         CLASSERT((PTLRPC_BULK_OPS_COUNT & (PTLRPC_BULK_OPS_COUNT - 1)) == 0);
3212         ptlrpc_last_xid &= PTLRPC_BULK_OPS_MASK;
3213 }
3214
3215 /**
3216  * Increase xid and returns resulting new value to the caller.
3217  *
3218  * Multi-bulk BRW RPCs consume multiple XIDs for each bulk transfer, starting
3219  * at the returned xid, up to xid + PTLRPC_BULK_OPS_COUNT - 1. The BRW RPC
3220  * itself uses the last bulk xid needed, so the server can determine the
3221  * the number of bulk transfers from the RPC XID and a bitmask.  The starting
3222  * xid must align to a power-of-two value.
3223  *
3224  * This is assumed to be true due to the initial ptlrpc_last_xid
3225  * value also being initialized to a power-of-two value. LU-1431
3226  */
3227 __u64 ptlrpc_next_xid(void)
3228 {
3229         __u64 next;
3230
3231         spin_lock(&ptlrpc_last_xid_lock);
3232         next = ptlrpc_last_xid + PTLRPC_BULK_OPS_COUNT;
3233         ptlrpc_last_xid = next;
3234         spin_unlock(&ptlrpc_last_xid_lock);
3235
3236         return next;
3237 }
3238
3239 /**
3240  * If request has a new allocated XID (new request or EINPROGRESS resend),
3241  * use this XID as matchbits of bulk, otherwise allocate a new matchbits for
3242  * request to ensure previous bulk fails and avoid problems with lost replies
3243  * and therefore several transfers landing into the same buffer from different
3244  * sending attempts.
3245  */
3246 void ptlrpc_set_bulk_mbits(struct ptlrpc_request *req)
3247 {
3248         struct ptlrpc_bulk_desc *bd = req->rq_bulk;
3249
3250         LASSERT(bd != NULL);
3251
3252         /* Generate new matchbits for all resend requests, including
3253          * resend replay. */
3254         if (req->rq_resend) {
3255                 __u64 old_mbits = req->rq_mbits;
3256
3257                 /* First time resend on -EINPROGRESS will generate new xid,
3258                  * so we can actually use the rq_xid as rq_mbits in such case,
3259                  * however, it's bit hard to distinguish such resend with a
3260                  * 'resend for the -EINPROGRESS resend'. To make it simple,
3261                  * we opt to generate mbits for all resend cases. */
3262                 if (OCD_HAS_FLAG(&bd->bd_import->imp_connect_data, BULK_MBITS)){
3263                         req->rq_mbits = ptlrpc_next_xid();
3264                 } else {
3265                         /* Old version transfers rq_xid to peer as
3266                          * matchbits. */
3267                         spin_lock(&req->rq_import->imp_lock);
3268                         list_del_init(&req->rq_unreplied_list);
3269                         ptlrpc_assign_next_xid_nolock(req);
3270                         spin_unlock(&req->rq_import->imp_lock);
3271                         req->rq_mbits = req->rq_xid;
3272                 }
3273                 CDEBUG(D_HA, "resend bulk old x%llu new x%llu\n",
3274                        old_mbits, req->rq_mbits);
3275         } else if (!(lustre_msg_get_flags(req->rq_reqmsg) & MSG_REPLAY)) {
3276                 /* Request being sent first time, use xid as matchbits. */
3277                 req->rq_mbits = req->rq_xid;
3278         } else {
3279                 /* Replay request, xid and matchbits have already been
3280                  * correctly assigned. */
3281                 return;
3282         }
3283
3284         /* For multi-bulk RPCs, rq_mbits is the last mbits needed for bulks so
3285          * that server can infer the number of bulks that were prepared,
3286          * see LU-1431 */
3287         req->rq_mbits += ((bd->bd_iov_count + LNET_MAX_IOV - 1) /
3288                           LNET_MAX_IOV) - 1;
3289
3290         /* Set rq_xid as rq_mbits to indicate the final bulk for the old
3291          * server which does not support OBD_CONNECT_BULK_MBITS. LU-6808.
3292          *
3293          * It's ok to directly set the rq_xid here, since this xid bump
3294          * won't affect the request position in unreplied list. */
3295         if (!OCD_HAS_FLAG(&bd->bd_import->imp_connect_data, BULK_MBITS))
3296                 req->rq_xid = req->rq_mbits;
3297 }
3298
3299 /**
3300  * Get a glimpse at what next xid value might have been.
3301  * Returns possible next xid.
3302  */
3303 __u64 ptlrpc_sample_next_xid(void)
3304 {
3305 #if BITS_PER_LONG == 32
3306         /* need to avoid possible word tearing on 32-bit systems */
3307         __u64 next;
3308
3309         spin_lock(&ptlrpc_last_xid_lock);
3310         next = ptlrpc_last_xid + PTLRPC_BULK_OPS_COUNT;
3311         spin_unlock(&ptlrpc_last_xid_lock);
3312
3313         return next;
3314 #else
3315         /* No need to lock, since returned value is racy anyways */
3316         return ptlrpc_last_xid + PTLRPC_BULK_OPS_COUNT;
3317 #endif
3318 }
3319 EXPORT_SYMBOL(ptlrpc_sample_next_xid);
3320
3321 /**
3322  * Functions for operating ptlrpc workers.
3323  *
3324  * A ptlrpc work is a function which will be running inside ptlrpc context.
3325  * The callback shouldn't sleep otherwise it will block that ptlrpcd thread.
3326  *
3327  * 1. after a work is created, it can be used many times, that is:
3328  *         handler = ptlrpcd_alloc_work();
3329  *         ptlrpcd_queue_work();
3330  *
3331  *    queue it again when necessary:
3332  *         ptlrpcd_queue_work();
3333  *         ptlrpcd_destroy_work();
3334  * 2. ptlrpcd_queue_work() can be called by multiple processes meanwhile, but
3335  *    it will only be queued once in any time. Also as its name implies, it may
3336  *    have delay before it really runs by ptlrpcd thread.
3337  */
3338 struct ptlrpc_work_async_args {
3339         int   (*cb)(const struct lu_env *, void *);
3340         void   *cbdata;
3341 };
3342
3343 static void ptlrpcd_add_work_req(struct ptlrpc_request *req)
3344 {
3345         /* re-initialize the req */
3346         req->rq_timeout         = obd_timeout;
3347         req->rq_sent            = cfs_time_current_sec();
3348         req->rq_deadline        = req->rq_sent + req->rq_timeout;
3349         req->rq_phase           = RQ_PHASE_INTERPRET;
3350         req->rq_next_phase      = RQ_PHASE_COMPLETE;
3351         req->rq_xid             = ptlrpc_next_xid();
3352         req->rq_import_generation = req->rq_import->imp_generation;
3353
3354         ptlrpcd_add_req(req);
3355 }
3356
3357 static int work_interpreter(const struct lu_env *env,
3358                             struct ptlrpc_request *req, void *data, int rc)
3359 {
3360         struct ptlrpc_work_async_args *arg = data;
3361
3362         LASSERT(ptlrpcd_check_work(req));
3363         LASSERT(arg->cb != NULL);
3364
3365         rc = arg->cb(env, arg->cbdata);
3366
3367         list_del_init(&req->rq_set_chain);
3368         req->rq_set = NULL;
3369
3370         if (atomic_dec_return(&req->rq_refcount) > 1) {
3371                 atomic_set(&req->rq_refcount, 2);
3372                 ptlrpcd_add_work_req(req);
3373         }
3374         return rc;
3375 }
3376
3377 static int worker_format;
3378
3379 static int ptlrpcd_check_work(struct ptlrpc_request *req)
3380 {
3381         return req->rq_pill.rc_fmt == (void *)&worker_format;
3382 }
3383
3384 /**
3385  * Create a work for ptlrpc.
3386  */
3387 void *ptlrpcd_alloc_work(struct obd_import *imp,
3388                          int (*cb)(const struct lu_env *, void *), void *cbdata)
3389 {
3390         struct ptlrpc_request         *req = NULL;
3391         struct ptlrpc_work_async_args *args;
3392         ENTRY;
3393
3394         might_sleep();
3395
3396         if (cb == NULL)
3397                 RETURN(ERR_PTR(-EINVAL));
3398
3399         /* copy some code from deprecated fakereq. */
3400         req = ptlrpc_request_cache_alloc(GFP_NOFS);
3401         if (req == NULL) {
3402                 CERROR("ptlrpc: run out of memory!\n");
3403                 RETURN(ERR_PTR(-ENOMEM));
3404         }
3405
3406         ptlrpc_cli_req_init(req);
3407
3408         req->rq_send_state = LUSTRE_IMP_FULL;
3409         req->rq_type = PTL_RPC_MSG_REQUEST;
3410         req->rq_import = class_import_get(imp);
3411         req->rq_interpret_reply = work_interpreter;
3412         /* don't want reply */
3413         req->rq_no_delay = req->rq_no_resend = 1;
3414         req->rq_pill.rc_fmt = (void *)&worker_format;
3415
3416         CLASSERT (sizeof(*args) <= sizeof(req->rq_async_args));
3417         args = ptlrpc_req_async_args(req);
3418         args->cb     = cb;
3419         args->cbdata = cbdata;
3420
3421         RETURN(req);
3422 }
3423 EXPORT_SYMBOL(ptlrpcd_alloc_work);
3424
3425 void ptlrpcd_destroy_work(void *handler)
3426 {
3427         struct ptlrpc_request *req = handler;
3428
3429         if (req)
3430                 ptlrpc_req_finished(req);
3431 }
3432 EXPORT_SYMBOL(ptlrpcd_destroy_work);
3433
3434 int ptlrpcd_queue_work(void *handler)
3435 {
3436         struct ptlrpc_request *req = handler;
3437
3438         /*
3439          * Check if the req is already being queued.
3440          *
3441          * Here comes a trick: it lacks a way of checking if a req is being
3442          * processed reliably in ptlrpc. Here I have to use refcount of req
3443          * for this purpose. This is okay because the caller should use this
3444          * req as opaque data. - Jinshan
3445          */
3446         LASSERT(atomic_read(&req->rq_refcount) > 0);
3447         if (atomic_inc_return(&req->rq_refcount) == 2)
3448                 ptlrpcd_add_work_req(req);
3449         return 0;
3450 }
3451 EXPORT_SYMBOL(ptlrpcd_queue_work);