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LU-8174 misc: name open file handles as such
[fs/lustre-release.git] / lustre / ptlrpc / service.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) 2010, 2017, 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 #define DEBUG_SUBSYSTEM S_RPC
34
35 #include <linux/kthread.h>
36 #include <obd_support.h>
37 #include <obd_class.h>
38 #include <lustre_net.h>
39 #include <lu_object.h>
40 #include <uapi/linux/lnet/lnet-types.h>
41 #include "ptlrpc_internal.h"
42
43 /* The following are visible and mutable through /sys/module/ptlrpc */
44 int test_req_buffer_pressure = 0;
45 module_param(test_req_buffer_pressure, int, 0444);
46 MODULE_PARM_DESC(test_req_buffer_pressure, "set non-zero to put pressure on request buffer pools");
47 module_param(at_min, int, 0644);
48 MODULE_PARM_DESC(at_min, "Adaptive timeout minimum (sec)");
49 module_param(at_max, int, 0644);
50 MODULE_PARM_DESC(at_max, "Adaptive timeout maximum (sec)");
51 module_param(at_history, int, 0644);
52 MODULE_PARM_DESC(at_history,
53                  "Adaptive timeouts remember the slowest event that took place within this period (sec)");
54 module_param(at_early_margin, int, 0644);
55 MODULE_PARM_DESC(at_early_margin, "How soon before an RPC deadline to send an early reply");
56 module_param(at_extra, int, 0644);
57 MODULE_PARM_DESC(at_extra, "How much extra time to give with each early reply");
58
59 /* forward ref */
60 static int ptlrpc_server_post_idle_rqbds(struct ptlrpc_service_part *svcpt);
61 static void ptlrpc_server_hpreq_fini(struct ptlrpc_request *req);
62 static void ptlrpc_at_remove_timed(struct ptlrpc_request *req);
63
64 /** Holds a list of all PTLRPC services */
65 struct list_head ptlrpc_all_services;
66 /** Used to protect the \e ptlrpc_all_services list */
67 struct mutex ptlrpc_all_services_mutex;
68
69 static struct ptlrpc_request_buffer_desc *
70 ptlrpc_alloc_rqbd(struct ptlrpc_service_part *svcpt)
71 {
72         struct ptlrpc_service             *svc = svcpt->scp_service;
73         struct ptlrpc_request_buffer_desc *rqbd;
74
75         OBD_CPT_ALLOC_PTR(rqbd, svc->srv_cptable, svcpt->scp_cpt);
76         if (rqbd == NULL)
77                 return NULL;
78
79         rqbd->rqbd_svcpt = svcpt;
80         rqbd->rqbd_refcount = 0;
81         rqbd->rqbd_cbid.cbid_fn = request_in_callback;
82         rqbd->rqbd_cbid.cbid_arg = rqbd;
83         INIT_LIST_HEAD(&rqbd->rqbd_reqs);
84         OBD_CPT_ALLOC_LARGE(rqbd->rqbd_buffer, svc->srv_cptable,
85                             svcpt->scp_cpt, svc->srv_buf_size);
86         if (rqbd->rqbd_buffer == NULL) {
87                 OBD_FREE_PTR(rqbd);
88                 return NULL;
89         }
90
91         spin_lock(&svcpt->scp_lock);
92         list_add(&rqbd->rqbd_list, &svcpt->scp_rqbd_idle);
93         svcpt->scp_nrqbds_total++;
94         spin_unlock(&svcpt->scp_lock);
95
96         return rqbd;
97 }
98
99 static void
100 ptlrpc_free_rqbd(struct ptlrpc_request_buffer_desc *rqbd)
101 {
102         struct ptlrpc_service_part *svcpt = rqbd->rqbd_svcpt;
103
104         LASSERT(rqbd->rqbd_refcount == 0);
105         LASSERT(list_empty(&rqbd->rqbd_reqs));
106
107         spin_lock(&svcpt->scp_lock);
108         list_del(&rqbd->rqbd_list);
109         svcpt->scp_nrqbds_total--;
110         spin_unlock(&svcpt->scp_lock);
111
112         OBD_FREE_LARGE(rqbd->rqbd_buffer, svcpt->scp_service->srv_buf_size);
113         OBD_FREE_PTR(rqbd);
114 }
115
116 static int
117 ptlrpc_grow_req_bufs(struct ptlrpc_service_part *svcpt, int post)
118 {
119         struct ptlrpc_service             *svc = svcpt->scp_service;
120         struct ptlrpc_request_buffer_desc *rqbd;
121         int                                rc = 0;
122         int                                i;
123
124         if (svcpt->scp_rqbd_allocating)
125                 goto try_post;
126
127         spin_lock(&svcpt->scp_lock);
128         /* check again with lock */
129         if (svcpt->scp_rqbd_allocating) {
130                 /* NB: we might allow more than one thread in the future */
131                 LASSERT(svcpt->scp_rqbd_allocating == 1);
132                 spin_unlock(&svcpt->scp_lock);
133                 goto try_post;
134         }
135
136         svcpt->scp_rqbd_allocating++;
137         spin_unlock(&svcpt->scp_lock);
138
139
140         for (i = 0; i < svc->srv_nbuf_per_group; i++) {
141                 /* NB: another thread might have recycled enough rqbds, we
142                  * need to make sure it wouldn't over-allocate, see LU-1212. */
143                 if (svcpt->scp_nrqbds_posted >= svc->srv_nbuf_per_group ||
144                     (svc->srv_nrqbds_max != 0 &&
145                      svcpt->scp_nrqbds_total > svc->srv_nrqbds_max))
146                         break;
147
148                 rqbd = ptlrpc_alloc_rqbd(svcpt);
149
150                 if (rqbd == NULL) {
151                         CERROR("%s: Can't allocate request buffer\n",
152                                svc->srv_name);
153                         rc = -ENOMEM;
154                         break;
155                 }
156         }
157
158         spin_lock(&svcpt->scp_lock);
159
160         LASSERT(svcpt->scp_rqbd_allocating == 1);
161         svcpt->scp_rqbd_allocating--;
162
163         spin_unlock(&svcpt->scp_lock);
164
165         CDEBUG(D_RPCTRACE,
166                "%s: allocate %d new %d-byte reqbufs (%d/%d left), rc = %d\n",
167                svc->srv_name, i, svc->srv_buf_size, svcpt->scp_nrqbds_posted,
168                svcpt->scp_nrqbds_total, rc);
169
170  try_post:
171         if (post && rc == 0)
172                 rc = ptlrpc_server_post_idle_rqbds(svcpt);
173
174         return rc;
175 }
176
177 /**
178  * Part of Rep-Ack logic.
179  * Puts a lock and its mode into reply state assotiated to request reply.
180  */
181 void
182 ptlrpc_save_lock(struct ptlrpc_request *req, struct lustre_handle *lock,
183                  int mode, bool no_ack, bool convert_lock)
184 {
185         struct ptlrpc_reply_state *rs = req->rq_reply_state;
186         int idx;
187
188         LASSERT(rs != NULL);
189         LASSERT(rs->rs_nlocks < RS_MAX_LOCKS);
190
191         idx = rs->rs_nlocks++;
192         rs->rs_locks[idx] = *lock;
193         rs->rs_modes[idx] = mode;
194         rs->rs_difficult = 1;
195         rs->rs_no_ack = no_ack;
196         rs->rs_convert_lock = convert_lock;
197 }
198 EXPORT_SYMBOL(ptlrpc_save_lock);
199
200
201 struct ptlrpc_hr_partition;
202
203 struct ptlrpc_hr_thread {
204         int                             hrt_id;         /* thread ID */
205         spinlock_t                      hrt_lock;
206         wait_queue_head_t               hrt_waitq;
207         struct list_head                hrt_queue;
208         struct ptlrpc_hr_partition      *hrt_partition;
209 };
210
211 struct ptlrpc_hr_partition {
212         /* # of started threads */
213         atomic_t                        hrp_nstarted;
214         /* # of stopped threads */
215         atomic_t                        hrp_nstopped;
216         /* cpu partition id */
217         int                             hrp_cpt;
218         /* round-robin rotor for choosing thread */
219         int                             hrp_rotor;
220         /* total number of threads on this partition */
221         int                             hrp_nthrs;
222         /* threads table */
223         struct ptlrpc_hr_thread         *hrp_thrs;
224 };
225
226 #define HRT_RUNNING 0
227 #define HRT_STOPPING 1
228
229 struct ptlrpc_hr_service {
230         /* CPU partition table, it's just cfs_cpt_table for now */
231         struct cfs_cpt_table            *hr_cpt_table;
232         /** controller sleep waitq */
233         wait_queue_head_t               hr_waitq;
234         unsigned int                    hr_stopping;
235         /** roundrobin rotor for non-affinity service */
236         unsigned int                    hr_rotor;
237         /* partition data */
238         struct ptlrpc_hr_partition      **hr_partitions;
239 };
240
241 struct rs_batch {
242         struct list_head                        rsb_replies;
243         unsigned int                    rsb_n_replies;
244         struct ptlrpc_service_part      *rsb_svcpt;
245 };
246
247 /** reply handling service. */
248 static struct ptlrpc_hr_service         ptlrpc_hr;
249
250 /**
251  * maximum mumber of replies scheduled in one batch
252  */
253 #define MAX_SCHEDULED 256
254
255 /**
256  * Initialize a reply batch.
257  *
258  * \param b batch
259  */
260 static void rs_batch_init(struct rs_batch *b)
261 {
262         memset(b, 0, sizeof *b);
263         INIT_LIST_HEAD(&b->rsb_replies);
264 }
265
266 /**
267  * Choose an hr thread to dispatch requests to.
268  */
269 static struct ptlrpc_hr_thread *
270 ptlrpc_hr_select(struct ptlrpc_service_part *svcpt)
271 {
272         struct ptlrpc_hr_partition      *hrp;
273         unsigned int                    rotor;
274
275         if (svcpt->scp_cpt >= 0 &&
276             svcpt->scp_service->srv_cptable == ptlrpc_hr.hr_cpt_table) {
277                 /* directly match partition */
278                 hrp = ptlrpc_hr.hr_partitions[svcpt->scp_cpt];
279
280         } else {
281                 rotor = ptlrpc_hr.hr_rotor++;
282                 rotor %= cfs_cpt_number(ptlrpc_hr.hr_cpt_table);
283
284                 hrp = ptlrpc_hr.hr_partitions[rotor];
285         }
286
287         rotor = hrp->hrp_rotor++;
288         return &hrp->hrp_thrs[rotor % hrp->hrp_nthrs];
289 }
290
291 /**
292  * Dispatch all replies accumulated in the batch to one from
293  * dedicated reply handling threads.
294  *
295  * \param b batch
296  */
297 static void rs_batch_dispatch(struct rs_batch *b)
298 {
299         if (b->rsb_n_replies != 0) {
300                 struct ptlrpc_hr_thread *hrt;
301
302                 hrt = ptlrpc_hr_select(b->rsb_svcpt);
303
304                 spin_lock(&hrt->hrt_lock);
305                 list_splice_init(&b->rsb_replies, &hrt->hrt_queue);
306                 spin_unlock(&hrt->hrt_lock);
307
308                 wake_up(&hrt->hrt_waitq);
309                 b->rsb_n_replies = 0;
310         }
311 }
312
313 /**
314  * Add a reply to a batch.
315  * Add one reply object to a batch, schedule batched replies if overload.
316  *
317  * \param b batch
318  * \param rs reply
319  */
320 static void rs_batch_add(struct rs_batch *b, struct ptlrpc_reply_state *rs)
321 {
322         struct ptlrpc_service_part *svcpt = rs->rs_svcpt;
323
324         if (svcpt != b->rsb_svcpt || b->rsb_n_replies >= MAX_SCHEDULED) {
325                 if (b->rsb_svcpt != NULL) {
326                         rs_batch_dispatch(b);
327                         spin_unlock(&b->rsb_svcpt->scp_rep_lock);
328                 }
329                 spin_lock(&svcpt->scp_rep_lock);
330                 b->rsb_svcpt = svcpt;
331         }
332         spin_lock(&rs->rs_lock);
333         rs->rs_scheduled_ever = 1;
334         if (rs->rs_scheduled == 0) {
335                 list_move(&rs->rs_list, &b->rsb_replies);
336                 rs->rs_scheduled = 1;
337                 b->rsb_n_replies++;
338         }
339         rs->rs_committed = 1;
340         spin_unlock(&rs->rs_lock);
341 }
342
343 /**
344  * Reply batch finalization.
345  * Dispatch remaining replies from the batch
346  * and release remaining spinlock.
347  *
348  * \param b batch
349  */
350 static void rs_batch_fini(struct rs_batch *b)
351 {
352         if (b->rsb_svcpt != NULL) {
353                 rs_batch_dispatch(b);
354                 spin_unlock(&b->rsb_svcpt->scp_rep_lock);
355         }
356 }
357
358 #define DECLARE_RS_BATCH(b)     struct rs_batch b
359
360
361 /**
362  * Put reply state into a queue for processing because we received
363  * ACK from the client
364  */
365 void ptlrpc_dispatch_difficult_reply(struct ptlrpc_reply_state *rs)
366 {
367         struct ptlrpc_hr_thread *hrt;
368         ENTRY;
369
370         LASSERT(list_empty(&rs->rs_list));
371
372         hrt = ptlrpc_hr_select(rs->rs_svcpt);
373
374         spin_lock(&hrt->hrt_lock);
375         list_add_tail(&rs->rs_list, &hrt->hrt_queue);
376         spin_unlock(&hrt->hrt_lock);
377
378         wake_up(&hrt->hrt_waitq);
379         EXIT;
380 }
381
382 void
383 ptlrpc_schedule_difficult_reply(struct ptlrpc_reply_state *rs)
384 {
385         ENTRY;
386
387         assert_spin_locked(&rs->rs_svcpt->scp_rep_lock);
388         assert_spin_locked(&rs->rs_lock);
389         LASSERT (rs->rs_difficult);
390         rs->rs_scheduled_ever = 1;  /* flag any notification attempt */
391
392         if (rs->rs_scheduled) {     /* being set up or already notified */
393                 EXIT;
394                 return;
395         }
396
397         rs->rs_scheduled = 1;
398         list_del_init(&rs->rs_list);
399         ptlrpc_dispatch_difficult_reply(rs);
400         EXIT;
401 }
402 EXPORT_SYMBOL(ptlrpc_schedule_difficult_reply);
403
404 void ptlrpc_commit_replies(struct obd_export *exp)
405 {
406         struct ptlrpc_reply_state *rs, *nxt;
407         DECLARE_RS_BATCH(batch);
408         ENTRY;
409
410         rs_batch_init(&batch);
411         /* Find any replies that have been committed and get their service
412          * to attend to complete them. */
413
414         /* CAVEAT EMPTOR: spinlock ordering!!! */
415         spin_lock(&exp->exp_uncommitted_replies_lock);
416         list_for_each_entry_safe(rs, nxt, &exp->exp_uncommitted_replies,
417                                      rs_obd_list) {
418                 LASSERT (rs->rs_difficult);
419                 /* VBR: per-export last_committed */
420                 LASSERT(rs->rs_export);
421                 if (rs->rs_transno <= exp->exp_last_committed) {
422                         list_del_init(&rs->rs_obd_list);
423                         rs_batch_add(&batch, rs);
424                 }
425         }
426         spin_unlock(&exp->exp_uncommitted_replies_lock);
427         rs_batch_fini(&batch);
428         EXIT;
429 }
430
431 static int
432 ptlrpc_server_post_idle_rqbds(struct ptlrpc_service_part *svcpt)
433 {
434         struct ptlrpc_request_buffer_desc *rqbd;
435         int                               rc;
436         int                               posted = 0;
437
438         for (;;) {
439                 spin_lock(&svcpt->scp_lock);
440
441                 if (list_empty(&svcpt->scp_rqbd_idle)) {
442                         spin_unlock(&svcpt->scp_lock);
443                         return posted;
444                 }
445
446                 rqbd = list_entry(svcpt->scp_rqbd_idle.next,
447                                       struct ptlrpc_request_buffer_desc,
448                                       rqbd_list);
449                 list_del(&rqbd->rqbd_list);
450
451                 /* assume we will post successfully */
452                 svcpt->scp_nrqbds_posted++;
453                 list_add(&rqbd->rqbd_list, &svcpt->scp_rqbd_posted);
454
455                 spin_unlock(&svcpt->scp_lock);
456
457                 rc = ptlrpc_register_rqbd(rqbd);
458                 if (rc != 0)
459                         break;
460
461                 posted = 1;
462         }
463
464         spin_lock(&svcpt->scp_lock);
465
466         svcpt->scp_nrqbds_posted--;
467         list_del(&rqbd->rqbd_list);
468         list_add_tail(&rqbd->rqbd_list, &svcpt->scp_rqbd_idle);
469
470         /* Don't complain if no request buffers are posted right now; LNET
471          * won't drop requests because we set the portal lazy! */
472
473         spin_unlock(&svcpt->scp_lock);
474
475         return -1;
476 }
477
478 static void ptlrpc_at_timer(cfs_timer_cb_arg_t data)
479 {
480         struct ptlrpc_service_part *svcpt;
481
482         svcpt = cfs_from_timer(svcpt, data, scp_at_timer);
483
484         svcpt->scp_at_check = 1;
485         svcpt->scp_at_checktime = ktime_get();
486         wake_up(&svcpt->scp_waitq);
487 }
488
489 static void
490 ptlrpc_server_nthreads_check(struct ptlrpc_service *svc,
491                              struct ptlrpc_service_conf *conf)
492 {
493         struct ptlrpc_service_thr_conf  *tc = &conf->psc_thr;
494         unsigned                        init;
495         unsigned                        total;
496         unsigned                        nthrs;
497         int                             weight;
498
499         /*
500          * Common code for estimating & validating threads number.
501          * CPT affinity service could have percpt thread-pool instead
502          * of a global thread-pool, which means user might not always
503          * get the threads number they give it in conf::tc_nthrs_user
504          * even they did set. It's because we need to validate threads
505          * number for each CPT to guarantee each pool will have enough
506          * threads to keep the service healthy.
507          */
508         init = PTLRPC_NTHRS_INIT + (svc->srv_ops.so_hpreq_handler != NULL);
509         init = max_t(int, init, tc->tc_nthrs_init);
510
511         /* NB: please see comments in lustre_lnet.h for definition
512          * details of these members */
513         LASSERT(tc->tc_nthrs_max != 0);
514
515         if (tc->tc_nthrs_user != 0) {
516                 /* In case there is a reason to test a service with many
517                  * threads, we give a less strict check here, it can
518                  * be up to 8 * nthrs_max */
519                 total = min(tc->tc_nthrs_max * 8, tc->tc_nthrs_user);
520                 nthrs = total / svc->srv_ncpts;
521                 init  = max(init, nthrs);
522                 goto out;
523         }
524
525         total = tc->tc_nthrs_max;
526         if (tc->tc_nthrs_base == 0) {
527                 /* don't care about base threads number per partition,
528                  * this is most for non-affinity service */
529                 nthrs = total / svc->srv_ncpts;
530                 goto out;
531         }
532
533         nthrs = tc->tc_nthrs_base;
534         if (svc->srv_ncpts == 1) {
535                 int     i;
536
537                 /* NB: Increase the base number if it's single partition
538                  * and total number of cores/HTs is larger or equal to 4.
539                  * result will always < 2 * nthrs_base */
540                 weight = cfs_cpt_weight(svc->srv_cptable, CFS_CPT_ANY);
541                 for (i = 1; (weight >> (i + 1)) != 0 && /* >= 4 cores/HTs */
542                             (tc->tc_nthrs_base >> i) != 0; i++)
543                         nthrs += tc->tc_nthrs_base >> i;
544         }
545
546         if (tc->tc_thr_factor != 0) {
547                 int       factor = tc->tc_thr_factor;
548                 const int fade = 4;
549
550                 /*
551                  * User wants to increase number of threads with for
552                  * each CPU core/HT, most likely the factor is larger than
553                  * one thread/core because service threads are supposed to
554                  * be blocked by lock or wait for IO.
555                  */
556                 /*
557                  * Amdahl's law says that adding processors wouldn't give
558                  * a linear increasing of parallelism, so it's nonsense to
559                  * have too many threads no matter how many cores/HTs
560                  * there are.
561                  */
562                 if (cpumask_weight(topology_sibling_cpumask(smp_processor_id())) > 1) {
563                         /* weight is # of HTs */
564                         /* depress thread factor for hyper-thread */
565                         factor = factor - (factor >> 1) + (factor >> 3);
566                 }
567
568                 weight = cfs_cpt_weight(svc->srv_cptable, 0);
569
570                 for (; factor > 0 && weight > 0; factor--, weight -= fade)
571                         nthrs += min(weight, fade) * factor;
572         }
573
574         if (nthrs * svc->srv_ncpts > tc->tc_nthrs_max) {
575                 nthrs = max(tc->tc_nthrs_base,
576                             tc->tc_nthrs_max / svc->srv_ncpts);
577         }
578  out:
579         nthrs = max(nthrs, tc->tc_nthrs_init);
580         svc->srv_nthrs_cpt_limit = nthrs;
581         svc->srv_nthrs_cpt_init = init;
582
583         if (nthrs * svc->srv_ncpts > tc->tc_nthrs_max) {
584                 CDEBUG(D_OTHER, "%s: This service may have more threads (%d) "
585                        "than the given soft limit (%d)\n",
586                        svc->srv_name, nthrs * svc->srv_ncpts,
587                        tc->tc_nthrs_max);
588         }
589 }
590
591 /**
592  * Initialize percpt data for a service
593  */
594 static int
595 ptlrpc_service_part_init(struct ptlrpc_service *svc,
596                          struct ptlrpc_service_part *svcpt, int cpt)
597 {
598         struct ptlrpc_at_array  *array;
599         int                     size;
600         int                     index;
601         int                     rc;
602
603         svcpt->scp_cpt = cpt;
604         INIT_LIST_HEAD(&svcpt->scp_threads);
605
606         /* rqbd and incoming request queue */
607         spin_lock_init(&svcpt->scp_lock);
608         mutex_init(&svcpt->scp_mutex);
609         INIT_LIST_HEAD(&svcpt->scp_rqbd_idle);
610         INIT_LIST_HEAD(&svcpt->scp_rqbd_posted);
611         INIT_LIST_HEAD(&svcpt->scp_req_incoming);
612         init_waitqueue_head(&svcpt->scp_waitq);
613         /* history request & rqbd list */
614         INIT_LIST_HEAD(&svcpt->scp_hist_reqs);
615         INIT_LIST_HEAD(&svcpt->scp_hist_rqbds);
616
617         /* acitve requests and hp requests */
618         spin_lock_init(&svcpt->scp_req_lock);
619
620         /* reply states */
621         spin_lock_init(&svcpt->scp_rep_lock);
622         INIT_LIST_HEAD(&svcpt->scp_rep_active);
623         INIT_LIST_HEAD(&svcpt->scp_rep_idle);
624         init_waitqueue_head(&svcpt->scp_rep_waitq);
625         atomic_set(&svcpt->scp_nreps_difficult, 0);
626
627         /* adaptive timeout */
628         spin_lock_init(&svcpt->scp_at_lock);
629         array = &svcpt->scp_at_array;
630
631         size = at_est2timeout(at_max);
632         array->paa_size     = size;
633         array->paa_count    = 0;
634         array->paa_deadline = -1;
635
636         /* allocate memory for scp_at_array (ptlrpc_at_array) */
637         OBD_CPT_ALLOC(array->paa_reqs_array,
638                       svc->srv_cptable, cpt, sizeof(struct list_head) * size);
639         if (array->paa_reqs_array == NULL)
640                 return -ENOMEM;
641
642         for (index = 0; index < size; index++)
643                 INIT_LIST_HEAD(&array->paa_reqs_array[index]);
644
645         OBD_CPT_ALLOC(array->paa_reqs_count,
646                       svc->srv_cptable, cpt, sizeof(__u32) * size);
647         if (array->paa_reqs_count == NULL)
648                 goto failed;
649
650         cfs_timer_setup(&svcpt->scp_at_timer, ptlrpc_at_timer,
651                         (unsigned long)svcpt, 0);
652
653         /* At SOW, service time should be quick; 10s seems generous. If client
654          * timeout is less than this, we'll be sending an early reply. */
655         at_init(&svcpt->scp_at_estimate, 10, 0);
656
657         /* assign this before call ptlrpc_grow_req_bufs */
658         svcpt->scp_service = svc;
659         /* Now allocate the request buffers, but don't post them now */
660         rc = ptlrpc_grow_req_bufs(svcpt, 0);
661         /* We shouldn't be under memory pressure at startup, so
662          * fail if we can't allocate all our buffers at this time. */
663         if (rc != 0)
664                 goto failed;
665
666         return 0;
667
668  failed:
669         if (array->paa_reqs_count != NULL) {
670                 OBD_FREE(array->paa_reqs_count, sizeof(__u32) * size);
671                 array->paa_reqs_count = NULL;
672         }
673
674         if (array->paa_reqs_array != NULL) {
675                 OBD_FREE(array->paa_reqs_array,
676                          sizeof(struct list_head) * array->paa_size);
677                 array->paa_reqs_array = NULL;
678         }
679
680         return -ENOMEM;
681 }
682
683 /**
684  * Initialize service on a given portal.
685  * This includes starting serving threads , allocating and posting rqbds and
686  * so on.
687  */
688 struct ptlrpc_service *
689 ptlrpc_register_service(struct ptlrpc_service_conf *conf,
690                         struct kset *parent,
691                         struct dentry *debugfs_entry)
692 {
693         struct ptlrpc_service_cpt_conf  *cconf = &conf->psc_cpt;
694         struct ptlrpc_service           *service;
695         struct ptlrpc_service_part      *svcpt;
696         struct cfs_cpt_table            *cptable;
697         __u32                           *cpts = NULL;
698         int                             ncpts;
699         int                             cpt;
700         int                             rc;
701         int                             i;
702         ENTRY;
703
704         LASSERT(conf->psc_buf.bc_nbufs > 0);
705         LASSERT(conf->psc_buf.bc_buf_size >=
706                 conf->psc_buf.bc_req_max_size + SPTLRPC_MAX_PAYLOAD);
707         LASSERT(conf->psc_thr.tc_ctx_tags != 0);
708
709         cptable = cconf->cc_cptable;
710         if (cptable == NULL)
711                 cptable = cfs_cpt_table;
712
713         if (!conf->psc_thr.tc_cpu_affinity) {
714                 ncpts = 1;
715         } else {
716                 ncpts = cfs_cpt_number(cptable);
717                 if (cconf->cc_pattern != NULL) {
718                         struct cfs_expr_list    *el;
719
720                         rc = cfs_expr_list_parse(cconf->cc_pattern,
721                                                  strlen(cconf->cc_pattern),
722                                                  0, ncpts - 1, &el);
723                         if (rc != 0) {
724                                 CERROR("%s: invalid CPT pattern string: %s",
725                                        conf->psc_name, cconf->cc_pattern);
726                                 RETURN(ERR_PTR(-EINVAL));
727                         }
728
729                         rc = cfs_expr_list_values(el, ncpts, &cpts);
730                         cfs_expr_list_free(el);
731                         if (rc <= 0) {
732                                 CERROR("%s: failed to parse CPT array %s: %d\n",
733                                        conf->psc_name, cconf->cc_pattern, rc);
734                                 if (cpts != NULL)
735                                         OBD_FREE(cpts, sizeof(*cpts) * ncpts);
736                                 RETURN(ERR_PTR(rc < 0 ? rc : -EINVAL));
737                         }
738                         ncpts = rc;
739                 }
740         }
741
742         OBD_ALLOC(service, offsetof(struct ptlrpc_service, srv_parts[ncpts]));
743         if (service == NULL) {
744                 if (cpts != NULL)
745                         OBD_FREE(cpts, sizeof(*cpts) * ncpts);
746                 RETURN(ERR_PTR(-ENOMEM));
747         }
748
749         service->srv_cptable            = cptable;
750         service->srv_cpts               = cpts;
751         service->srv_ncpts              = ncpts;
752
753         service->srv_cpt_bits = 0; /* it's zero already, easy to read... */
754         while ((1 << service->srv_cpt_bits) < cfs_cpt_number(cptable))
755                 service->srv_cpt_bits++;
756
757         /* public members */
758         spin_lock_init(&service->srv_lock);
759         service->srv_name               = conf->psc_name;
760         service->srv_watchdog_factor    = conf->psc_watchdog_factor;
761         INIT_LIST_HEAD(&service->srv_list); /* for safty of cleanup */
762
763         /* buffer configuration */
764         service->srv_nbuf_per_group     = test_req_buffer_pressure ?
765                                           1 : conf->psc_buf.bc_nbufs;
766         /* do not limit max number of rqbds by default */
767         service->srv_nrqbds_max         = 0;
768
769         service->srv_max_req_size       = conf->psc_buf.bc_req_max_size +
770                                           SPTLRPC_MAX_PAYLOAD;
771         service->srv_buf_size           = conf->psc_buf.bc_buf_size;
772         service->srv_rep_portal         = conf->psc_buf.bc_rep_portal;
773         service->srv_req_portal         = conf->psc_buf.bc_req_portal;
774
775         /* Increase max reply size to next power of two */
776         service->srv_max_reply_size = 1;
777         while (service->srv_max_reply_size <
778                conf->psc_buf.bc_rep_max_size + SPTLRPC_MAX_PAYLOAD)
779                 service->srv_max_reply_size <<= 1;
780
781         service->srv_thread_name        = conf->psc_thr.tc_thr_name;
782         service->srv_ctx_tags           = conf->psc_thr.tc_ctx_tags;
783         service->srv_hpreq_ratio        = PTLRPC_SVC_HP_RATIO;
784         service->srv_ops                = conf->psc_ops;
785
786         for (i = 0; i < ncpts; i++) {
787                 if (!conf->psc_thr.tc_cpu_affinity)
788                         cpt = CFS_CPT_ANY;
789                 else
790                         cpt = cpts != NULL ? cpts[i] : i;
791
792                 OBD_CPT_ALLOC(svcpt, cptable, cpt, sizeof(*svcpt));
793                 if (svcpt == NULL)
794                         GOTO(failed, rc = -ENOMEM);
795
796                 service->srv_parts[i] = svcpt;
797                 rc = ptlrpc_service_part_init(service, svcpt, cpt);
798                 if (rc != 0)
799                         GOTO(failed, rc);
800         }
801
802         ptlrpc_server_nthreads_check(service, conf);
803
804         rc = LNetSetLazyPortal(service->srv_req_portal);
805         LASSERT(rc == 0);
806
807         mutex_lock(&ptlrpc_all_services_mutex);
808         list_add(&service->srv_list, &ptlrpc_all_services);
809         mutex_unlock(&ptlrpc_all_services_mutex);
810
811         if (parent) {
812                 rc = ptlrpc_sysfs_register_service(parent, service);
813                 if (rc)
814                         GOTO(failed, rc);
815         }
816
817         if (debugfs_entry != NULL)
818                 ptlrpc_ldebugfs_register_service(debugfs_entry, service);
819
820         rc = ptlrpc_service_nrs_setup(service);
821         if (rc != 0)
822                 GOTO(failed, rc);
823
824         CDEBUG(D_NET, "%s: Started, listening on portal %d\n",
825                service->srv_name, service->srv_req_portal);
826
827         rc = ptlrpc_start_threads(service);
828         if (rc != 0) {
829                 CERROR("Failed to start threads for service %s: %d\n",
830                        service->srv_name, rc);
831                 GOTO(failed, rc);
832         }
833
834         RETURN(service);
835 failed:
836         ptlrpc_unregister_service(service);
837         RETURN(ERR_PTR(rc));
838 }
839 EXPORT_SYMBOL(ptlrpc_register_service);
840
841 /**
842  * to actually free the request, must be called without holding svc_lock.
843  * note it's caller's responsibility to unlink req->rq_list.
844  */
845 static void ptlrpc_server_free_request(struct ptlrpc_request *req)
846 {
847         LASSERT(atomic_read(&req->rq_refcount) == 0);
848         LASSERT(list_empty(&req->rq_timed_list));
849
850         /* DEBUG_REQ() assumes the reply state of a request with a valid
851          * ref will not be destroyed until that reference is dropped. */
852         ptlrpc_req_drop_rs(req);
853
854         sptlrpc_svc_ctx_decref(req);
855
856         if (req != &req->rq_rqbd->rqbd_req) {
857                 /* NB request buffers use an embedded
858                  * req if the incoming req unlinked the
859                  * MD; this isn't one of them! */
860                 ptlrpc_request_cache_free(req);
861         }
862 }
863
864 /**
865  * drop a reference count of the request. if it reaches 0, we either
866  * put it into history list, or free it immediately.
867  */
868 void ptlrpc_server_drop_request(struct ptlrpc_request *req)
869 {
870         struct ptlrpc_request_buffer_desc *rqbd = req->rq_rqbd;
871         struct ptlrpc_service_part        *svcpt = rqbd->rqbd_svcpt;
872         struct ptlrpc_service             *svc = svcpt->scp_service;
873         int                                refcount;
874         struct list_head                          *tmp;
875         struct list_head                          *nxt;
876
877         if (!atomic_dec_and_test(&req->rq_refcount))
878                 return;
879
880         if (req->rq_session.lc_state == LCS_ENTERED) {
881                 lu_context_exit(&req->rq_session);
882                 lu_context_fini(&req->rq_session);
883         }
884
885         if (req->rq_at_linked) {
886                 spin_lock(&svcpt->scp_at_lock);
887                 /* recheck with lock, in case it's unlinked by
888                  * ptlrpc_at_check_timed() */
889                 if (likely(req->rq_at_linked))
890                         ptlrpc_at_remove_timed(req);
891                 spin_unlock(&svcpt->scp_at_lock);
892         }
893
894         LASSERT(list_empty(&req->rq_timed_list));
895
896         /* finalize request */
897         if (req->rq_export) {
898                 class_export_put(req->rq_export);
899                 req->rq_export = NULL;
900         }
901
902         spin_lock(&svcpt->scp_lock);
903
904         list_add(&req->rq_list, &rqbd->rqbd_reqs);
905
906         refcount = --(rqbd->rqbd_refcount);
907         if (refcount == 0) {
908                 /* request buffer is now idle: add to history */
909                 list_del(&rqbd->rqbd_list);
910
911                 list_add_tail(&rqbd->rqbd_list, &svcpt->scp_hist_rqbds);
912                 svcpt->scp_hist_nrqbds++;
913
914                 /* cull some history?
915                  * I expect only about 1 or 2 rqbds need to be recycled here */
916                 while (svcpt->scp_hist_nrqbds > svc->srv_hist_nrqbds_cpt_max) {
917                         rqbd = list_entry(svcpt->scp_hist_rqbds.next,
918                                           struct ptlrpc_request_buffer_desc,
919                                           rqbd_list);
920
921                         list_del(&rqbd->rqbd_list);
922                         svcpt->scp_hist_nrqbds--;
923
924                         /* remove rqbd's reqs from svc's req history while
925                          * I've got the service lock */
926                         list_for_each(tmp, &rqbd->rqbd_reqs) {
927                                 req = list_entry(tmp, struct ptlrpc_request,
928                                                  rq_list);
929                                 /* Track the highest culled req seq */
930                                 if (req->rq_history_seq >
931                                     svcpt->scp_hist_seq_culled) {
932                                         svcpt->scp_hist_seq_culled =
933                                                 req->rq_history_seq;
934                                 }
935                                 list_del(&req->rq_history_list);
936                         }
937
938                         spin_unlock(&svcpt->scp_lock);
939
940                         list_for_each_safe(tmp, nxt, &rqbd->rqbd_reqs) {
941                                 req = list_entry(rqbd->rqbd_reqs.next,
942                                                  struct ptlrpc_request,
943                                                  rq_list);
944                                 list_del(&req->rq_list);
945                                 ptlrpc_server_free_request(req);
946                         }
947
948                         spin_lock(&svcpt->scp_lock);
949                         /*
950                          * now all reqs including the embedded req has been
951                          * disposed, schedule request buffer for re-use
952                          * or free it to drain some in excess.
953                          */
954                         LASSERT(atomic_read(&rqbd->rqbd_req.rq_refcount) == 0);
955                         if (svcpt->scp_nrqbds_posted >=
956                             svc->srv_nbuf_per_group ||
957                             (svc->srv_nrqbds_max != 0 &&
958                              svcpt->scp_nrqbds_total > svc->srv_nrqbds_max) ||
959                             test_req_buffer_pressure) {
960                                 /* like in ptlrpc_free_rqbd() */
961                                 svcpt->scp_nrqbds_total--;
962                                 OBD_FREE_LARGE(rqbd->rqbd_buffer,
963                                                svc->srv_buf_size);
964                                 OBD_FREE_PTR(rqbd);
965                         } else {
966                                 list_add_tail(&rqbd->rqbd_list,
967                                               &svcpt->scp_rqbd_idle);
968                         }
969                 }
970
971                 spin_unlock(&svcpt->scp_lock);
972         } else if (req->rq_reply_state && req->rq_reply_state->rs_prealloc) {
973                 /* If we are low on memory, we are not interested in history */
974                 list_del(&req->rq_list);
975                 list_del_init(&req->rq_history_list);
976
977                 /* Track the highest culled req seq */
978                 if (req->rq_history_seq > svcpt->scp_hist_seq_culled)
979                         svcpt->scp_hist_seq_culled = req->rq_history_seq;
980
981                 spin_unlock(&svcpt->scp_lock);
982
983                 ptlrpc_server_free_request(req);
984         } else {
985                 spin_unlock(&svcpt->scp_lock);
986         }
987 }
988
989 /** Change request export and move hp request from old export to new */
990 void ptlrpc_request_change_export(struct ptlrpc_request *req,
991                                   struct obd_export *export)
992 {
993         if (req->rq_export != NULL) {
994                 LASSERT(!list_empty(&req->rq_exp_list));
995                 /* remove rq_exp_list from last export */
996                 spin_lock(&req->rq_export->exp_rpc_lock);
997                 list_del_init(&req->rq_exp_list);
998                 spin_unlock(&req->rq_export->exp_rpc_lock);
999                 /* export has one reference already, so it`s safe to
1000                  * add req to export queue here and get another
1001                  * reference for request later */
1002                 spin_lock(&export->exp_rpc_lock);
1003                 if (req->rq_ops != NULL) /* hp request */
1004                         list_add(&req->rq_exp_list, &export->exp_hp_rpcs);
1005                 else
1006                         list_add(&req->rq_exp_list, &export->exp_reg_rpcs);
1007                 spin_unlock(&export->exp_rpc_lock);
1008
1009                 class_export_rpc_dec(req->rq_export);
1010                 class_export_put(req->rq_export);
1011         }
1012
1013         /* request takes one export refcount */
1014         req->rq_export = class_export_get(export);
1015         class_export_rpc_inc(export);
1016
1017         return;
1018 }
1019
1020 /**
1021  * to finish a request: stop sending more early replies, and release
1022  * the request.
1023  */
1024 static void ptlrpc_server_finish_request(struct ptlrpc_service_part *svcpt,
1025                                          struct ptlrpc_request *req)
1026 {
1027         ptlrpc_server_hpreq_fini(req);
1028
1029         ptlrpc_server_drop_request(req);
1030 }
1031
1032 /**
1033  * to finish an active request: stop sending more early replies, and release
1034  * the request. should be called after we finished handling the request.
1035  */
1036 static void ptlrpc_server_finish_active_request(
1037                                         struct ptlrpc_service_part *svcpt,
1038                                         struct ptlrpc_request *req)
1039 {
1040         spin_lock(&svcpt->scp_req_lock);
1041         ptlrpc_nrs_req_stop_nolock(req);
1042         svcpt->scp_nreqs_active--;
1043         if (req->rq_hp)
1044                 svcpt->scp_nhreqs_active--;
1045         spin_unlock(&svcpt->scp_req_lock);
1046
1047         ptlrpc_nrs_req_finalize(req);
1048
1049         if (req->rq_export != NULL)
1050                 class_export_rpc_dec(req->rq_export);
1051
1052         ptlrpc_server_finish_request(svcpt, req);
1053 }
1054
1055 /**
1056  * This function makes sure dead exports are evicted in a timely manner.
1057  * This function is only called when some export receives a message (i.e.,
1058  * the network is up.)
1059  */
1060 void ptlrpc_update_export_timer(struct obd_export *exp, time64_t extra_delay)
1061 {
1062         struct obd_export *oldest_exp;
1063         time64_t oldest_time, new_time;
1064
1065         ENTRY;
1066
1067         LASSERT(exp);
1068
1069         /* Compensate for slow machines, etc, by faking our request time
1070            into the future.  Although this can break the strict time-ordering
1071            of the list, we can be really lazy here - we don't have to evict
1072            at the exact right moment.  Eventually, all silent exports
1073            will make it to the top of the list. */
1074
1075         /* Do not pay attention on 1sec or smaller renewals. */
1076         new_time = ktime_get_real_seconds() + extra_delay;
1077         if (exp->exp_last_request_time + 1 /*second */ >= new_time)
1078                 RETURN_EXIT;
1079
1080         exp->exp_last_request_time = new_time;
1081
1082         /* exports may get disconnected from the chain even though the
1083            export has references, so we must keep the spin lock while
1084            manipulating the lists */
1085         spin_lock(&exp->exp_obd->obd_dev_lock);
1086
1087         if (list_empty(&exp->exp_obd_chain_timed)) {
1088                 /* this one is not timed */
1089                 spin_unlock(&exp->exp_obd->obd_dev_lock);
1090                 RETURN_EXIT;
1091         }
1092
1093         list_move_tail(&exp->exp_obd_chain_timed,
1094                        &exp->exp_obd->obd_exports_timed);
1095
1096         oldest_exp = list_entry(exp->exp_obd->obd_exports_timed.next,
1097                                 struct obd_export, exp_obd_chain_timed);
1098         oldest_time = oldest_exp->exp_last_request_time;
1099         spin_unlock(&exp->exp_obd->obd_dev_lock);
1100
1101         if (exp->exp_obd->obd_recovering) {
1102                 /* be nice to everyone during recovery */
1103                 EXIT;
1104                 return;
1105         }
1106
1107         /* Note - racing to start/reset the obd_eviction timer is safe */
1108         if (exp->exp_obd->obd_eviction_timer == 0) {
1109                 /* Check if the oldest entry is expired. */
1110                 if (ktime_get_real_seconds() >
1111                     oldest_time + PING_EVICT_TIMEOUT + extra_delay) {
1112                         /* We need a second timer, in case the net was down and
1113                          * it just came back. Since the pinger may skip every
1114                          * other PING_INTERVAL (see note in ptlrpc_pinger_main),
1115                          * we better wait for 3.
1116                          */
1117                         exp->exp_obd->obd_eviction_timer =
1118                                 ktime_get_real_seconds() + 3 * PING_INTERVAL;
1119                         CDEBUG(D_HA, "%s: Think about evicting %s from %lld\n",
1120                                exp->exp_obd->obd_name,
1121                                obd_export_nid2str(oldest_exp), oldest_time);
1122                 }
1123         } else {
1124                 if (ktime_get_real_seconds() >
1125                     (exp->exp_obd->obd_eviction_timer + extra_delay)) {
1126                         /* The evictor won't evict anyone who we've heard from
1127                          * recently, so we don't have to check before we start
1128                          * it.
1129                          */
1130                         if (!ping_evictor_wake(exp))
1131                                 exp->exp_obd->obd_eviction_timer = 0;
1132                 }
1133         }
1134
1135         EXIT;
1136 }
1137
1138 /**
1139  * Sanity check request \a req.
1140  * Return 0 if all is ok, error code otherwise.
1141  */
1142 static int ptlrpc_check_req(struct ptlrpc_request *req)
1143 {
1144         struct obd_device *obd = req->rq_export->exp_obd;
1145         int rc = 0;
1146
1147         if (unlikely(lustre_msg_get_conn_cnt(req->rq_reqmsg) <
1148                      req->rq_export->exp_conn_cnt)) {
1149                 DEBUG_REQ(D_RPCTRACE, req,
1150                           "DROPPING req from old connection %d < %d",
1151                           lustre_msg_get_conn_cnt(req->rq_reqmsg),
1152                           req->rq_export->exp_conn_cnt);
1153                 return -EEXIST;
1154         }
1155         if (unlikely(obd == NULL || obd->obd_fail)) {
1156                 /* Failing over, don't handle any more reqs,
1157                  * send error response instead. */
1158                 CDEBUG(D_RPCTRACE, "Dropping req %p for failed obd %s\n",
1159                         req, (obd != NULL) ? obd->obd_name : "unknown");
1160                 rc = -ENODEV;
1161         } else if (lustre_msg_get_flags(req->rq_reqmsg) &
1162                    (MSG_REPLAY | MSG_REQ_REPLAY_DONE) &&
1163                    !obd->obd_recovering) {
1164                         DEBUG_REQ(D_ERROR, req,
1165                                   "Invalid replay without recovery");
1166                         class_fail_export(req->rq_export);
1167                         rc = -ENODEV;
1168         } else if (lustre_msg_get_transno(req->rq_reqmsg) != 0 &&
1169                    !obd->obd_recovering) {
1170                         DEBUG_REQ(D_ERROR, req, "Invalid req with transno "
1171                                   "%llu without recovery",
1172                                   lustre_msg_get_transno(req->rq_reqmsg));
1173                         class_fail_export(req->rq_export);
1174                         rc = -ENODEV;
1175         }
1176
1177         if (unlikely(rc < 0)) {
1178                 req->rq_status = rc;
1179                 ptlrpc_error(req);
1180         }
1181         return rc;
1182 }
1183
1184 static void ptlrpc_at_set_timer(struct ptlrpc_service_part *svcpt)
1185 {
1186         struct ptlrpc_at_array *array = &svcpt->scp_at_array;
1187         time64_t next;
1188
1189         if (array->paa_count == 0) {
1190                 del_timer(&svcpt->scp_at_timer);
1191                 return;
1192         }
1193
1194         /* Set timer for closest deadline */
1195         next = array->paa_deadline - ktime_get_real_seconds() -
1196                at_early_margin;
1197         if (next <= 0) {
1198                 ptlrpc_at_timer(cfs_timer_cb_arg(svcpt, scp_at_timer));
1199         } else {
1200                 mod_timer(&svcpt->scp_at_timer,
1201                           jiffies + nsecs_to_jiffies(next * NSEC_PER_SEC));
1202                 CDEBUG(D_INFO, "armed %s at %+llds\n",
1203                        svcpt->scp_service->srv_name, next);
1204         }
1205 }
1206
1207 /* Add rpc to early reply check list */
1208 static int ptlrpc_at_add_timed(struct ptlrpc_request *req)
1209 {
1210         struct ptlrpc_service_part *svcpt = req->rq_rqbd->rqbd_svcpt;
1211         struct ptlrpc_at_array *array = &svcpt->scp_at_array;
1212         struct ptlrpc_request *rq = NULL;
1213         __u32 index;
1214
1215         if (AT_OFF)
1216                 return(0);
1217
1218         if (req->rq_no_reply)
1219                 return 0;
1220
1221         if ((lustre_msghdr_get_flags(req->rq_reqmsg) & MSGHDR_AT_SUPPORT) == 0)
1222                 return(-ENOSYS);
1223
1224         spin_lock(&svcpt->scp_at_lock);
1225         LASSERT(list_empty(&req->rq_timed_list));
1226
1227         div_u64_rem(req->rq_deadline, array->paa_size, &index);
1228         if (array->paa_reqs_count[index] > 0) {
1229                 /* latest rpcs will have the latest deadlines in the list,
1230                  * so search backward. */
1231                 list_for_each_entry_reverse(rq,
1232                                                 &array->paa_reqs_array[index],
1233                                                 rq_timed_list) {
1234                         if (req->rq_deadline >= rq->rq_deadline) {
1235                                 list_add(&req->rq_timed_list,
1236                                              &rq->rq_timed_list);
1237                                 break;
1238                         }
1239                 }
1240         }
1241
1242         /* Add the request at the head of the list */
1243         if (list_empty(&req->rq_timed_list))
1244                 list_add(&req->rq_timed_list,
1245                              &array->paa_reqs_array[index]);
1246
1247         spin_lock(&req->rq_lock);
1248         req->rq_at_linked = 1;
1249         spin_unlock(&req->rq_lock);
1250         req->rq_at_index = index;
1251         array->paa_reqs_count[index]++;
1252         array->paa_count++;
1253         if (array->paa_count == 1 || array->paa_deadline > req->rq_deadline) {
1254                 array->paa_deadline = req->rq_deadline;
1255                 ptlrpc_at_set_timer(svcpt);
1256         }
1257         spin_unlock(&svcpt->scp_at_lock);
1258
1259         return 0;
1260 }
1261
1262 static void
1263 ptlrpc_at_remove_timed(struct ptlrpc_request *req)
1264 {
1265         struct ptlrpc_at_array *array;
1266
1267         array = &req->rq_rqbd->rqbd_svcpt->scp_at_array;
1268
1269         /* NB: must call with hold svcpt::scp_at_lock */
1270         LASSERT(!list_empty(&req->rq_timed_list));
1271         list_del_init(&req->rq_timed_list);
1272
1273         spin_lock(&req->rq_lock);
1274         req->rq_at_linked = 0;
1275         spin_unlock(&req->rq_lock);
1276
1277         array->paa_reqs_count[req->rq_at_index]--;
1278         array->paa_count--;
1279 }
1280
1281 /*
1282  * Attempt to extend the request deadline by sending an early reply to the
1283  * client.
1284  */
1285 static int ptlrpc_at_send_early_reply(struct ptlrpc_request *req)
1286 {
1287         struct ptlrpc_service_part *svcpt = req->rq_rqbd->rqbd_svcpt;
1288         struct ptlrpc_request *reqcopy;
1289         struct lustre_msg *reqmsg;
1290         time64_t olddl = req->rq_deadline - ktime_get_real_seconds();
1291         time64_t newdl;
1292         int rc;
1293
1294         ENTRY;
1295
1296         if (CFS_FAIL_CHECK(OBD_FAIL_TGT_REPLAY_RECONNECT)) {
1297                 /* don't send early reply */
1298                 RETURN(1);
1299         }
1300
1301         /* deadline is when the client expects us to reply, margin is the
1302            difference between clients' and servers' expectations */
1303         DEBUG_REQ(D_ADAPTTO, req,
1304                   "%ssending early reply (deadline %+llds, margin %+llds) for "
1305                   "%d+%d", AT_OFF ? "AT off - not " : "",
1306                   (s64)olddl, (s64)(olddl - at_get(&svcpt->scp_at_estimate)),
1307                   at_get(&svcpt->scp_at_estimate), at_extra);
1308
1309         if (AT_OFF)
1310                 RETURN(0);
1311
1312         if (olddl < 0) {
1313                 DEBUG_REQ(D_WARNING, req, "Already past deadline (%+llds), "
1314                           "not sending early reply. Consider increasing "
1315                           "at_early_margin (%d)?", (s64)olddl, at_early_margin);
1316
1317                 /* Return an error so we're not re-added to the timed list. */
1318                 RETURN(-ETIMEDOUT);
1319         }
1320
1321         if ((lustre_msghdr_get_flags(req->rq_reqmsg) & MSGHDR_AT_SUPPORT) == 0){
1322                 DEBUG_REQ(D_INFO, req, "Wanted to ask client for more time, "
1323                           "but no AT support");
1324                 RETURN(-ENOSYS);
1325         }
1326
1327         if (req->rq_export &&
1328             lustre_msg_get_flags(req->rq_reqmsg) &
1329             (MSG_REPLAY | MSG_REQ_REPLAY_DONE | MSG_LOCK_REPLAY_DONE)) {
1330                 struct obd_device *obd_exp = req->rq_export->exp_obd;
1331
1332                 /* During recovery, we don't want to send too many early
1333                  * replies, but on the other hand we want to make sure the
1334                  * client has enough time to resend if the rpc is lost. So
1335                  * during the recovery period send at least 4 early replies,
1336                  * spacing them every at_extra if we can. at_estimate should
1337                  * always equal this fixed value during recovery.
1338                  */
1339                 /* Don't account request processing time into AT history
1340                  * during recovery, it is not service time we need but
1341                  * includes also waiting time for recovering clients
1342                  */
1343                 newdl = min_t(time64_t, at_extra,
1344                               obd_exp->obd_recovery_timeout / 4) +
1345                         ktime_get_real_seconds();
1346         } else {
1347                 /* We want to extend the request deadline by at_extra seconds,
1348                  * so we set our service estimate to reflect how much time has
1349                  * passed since this request arrived plus an additional
1350                  * at_extra seconds. The client will calculate the new deadline
1351                  * based on this service estimate (plus some additional time to
1352                  * account for network latency). See ptlrpc_at_recv_early_reply
1353                  */
1354                 at_measured(&svcpt->scp_at_estimate, at_extra +
1355                             ktime_get_real_seconds() -
1356                             req->rq_arrival_time.tv_sec);
1357                 newdl = req->rq_arrival_time.tv_sec +
1358                         at_get(&svcpt->scp_at_estimate);
1359         }
1360
1361         /* Check to see if we've actually increased the deadline -
1362          * we may be past adaptive_max */
1363         if (req->rq_deadline >= newdl) {
1364                 DEBUG_REQ(D_WARNING, req, "Couldn't add any time (%lld/%lld), not sending early reply\n",
1365                           (s64)olddl, (s64)(newdl - ktime_get_real_seconds()));
1366                 RETURN(-ETIMEDOUT);
1367         }
1368
1369         reqcopy = ptlrpc_request_cache_alloc(GFP_NOFS);
1370         if (reqcopy == NULL)
1371                 RETURN(-ENOMEM);
1372         OBD_ALLOC_LARGE(reqmsg, req->rq_reqlen);
1373         if (!reqmsg)
1374                 GOTO(out_free, rc = -ENOMEM);
1375
1376         *reqcopy = *req;
1377         reqcopy->rq_reply_state = NULL;
1378         reqcopy->rq_rep_swab_mask = 0;
1379         reqcopy->rq_pack_bulk = 0;
1380         reqcopy->rq_pack_udesc = 0;
1381         reqcopy->rq_packed_final = 0;
1382         sptlrpc_svc_ctx_addref(reqcopy);
1383         /* We only need the reqmsg for the magic */
1384         reqcopy->rq_reqmsg = reqmsg;
1385         memcpy(reqmsg, req->rq_reqmsg, req->rq_reqlen);
1386
1387         /*
1388          * tgt_brw_read() and tgt_brw_write() may have decided not to reply.
1389          * Without this check, we would fail the rq_no_reply assertion in
1390          * ptlrpc_send_reply().
1391          */
1392         if (reqcopy->rq_no_reply)
1393                 GOTO(out, rc = -ETIMEDOUT);
1394
1395         LASSERT(atomic_read(&req->rq_refcount));
1396         /** if it is last refcount then early reply isn't needed */
1397         if (atomic_read(&req->rq_refcount) == 1) {
1398                 DEBUG_REQ(D_ADAPTTO, reqcopy, "Normal reply already sent out, "
1399                           "abort sending early reply\n");
1400                 GOTO(out, rc = -EINVAL);
1401         }
1402
1403         /* Connection ref */
1404         reqcopy->rq_export = class_conn2export(
1405                                      lustre_msg_get_handle(reqcopy->rq_reqmsg));
1406         if (reqcopy->rq_export == NULL)
1407                 GOTO(out, rc = -ENODEV);
1408
1409         /* RPC ref */
1410         class_export_rpc_inc(reqcopy->rq_export);
1411         if (reqcopy->rq_export->exp_obd &&
1412             reqcopy->rq_export->exp_obd->obd_fail)
1413                 GOTO(out_put, rc = -ENODEV);
1414
1415         rc = lustre_pack_reply_flags(reqcopy, 1, NULL, NULL, LPRFL_EARLY_REPLY);
1416         if (rc)
1417                 GOTO(out_put, rc);
1418
1419         rc = ptlrpc_send_reply(reqcopy, PTLRPC_REPLY_EARLY);
1420
1421         if (!rc) {
1422                 /* Adjust our own deadline to what we told the client */
1423                 req->rq_deadline = newdl;
1424                 req->rq_early_count++; /* number sent, server side */
1425         } else {
1426                 DEBUG_REQ(D_ERROR, req, "Early reply send failed %d", rc);
1427         }
1428
1429         /* Free the (early) reply state from lustre_pack_reply.
1430            (ptlrpc_send_reply takes it's own rs ref, so this is safe here) */
1431         ptlrpc_req_drop_rs(reqcopy);
1432
1433 out_put:
1434         class_export_rpc_dec(reqcopy->rq_export);
1435         class_export_put(reqcopy->rq_export);
1436 out:
1437         sptlrpc_svc_ctx_decref(reqcopy);
1438         OBD_FREE_LARGE(reqmsg, req->rq_reqlen);
1439 out_free:
1440         ptlrpc_request_cache_free(reqcopy);
1441         RETURN(rc);
1442 }
1443
1444 /* Send early replies to everybody expiring within at_early_margin
1445    asking for at_extra time */
1446 static int ptlrpc_at_check_timed(struct ptlrpc_service_part *svcpt)
1447 {
1448         struct ptlrpc_at_array *array = &svcpt->scp_at_array;
1449         struct ptlrpc_request *rq, *n;
1450         struct list_head work_list;
1451         __u32  index, count;
1452         time64_t deadline;
1453         time64_t now = ktime_get_real_seconds();
1454         s64 delay;
1455         int first, counter = 0;
1456
1457         ENTRY;
1458         spin_lock(&svcpt->scp_at_lock);
1459         if (svcpt->scp_at_check == 0) {
1460                 spin_unlock(&svcpt->scp_at_lock);
1461                 RETURN(0);
1462         }
1463         delay = ktime_ms_delta(ktime_get(), svcpt->scp_at_checktime);
1464         svcpt->scp_at_check = 0;
1465
1466         if (array->paa_count == 0) {
1467                 spin_unlock(&svcpt->scp_at_lock);
1468                 RETURN(0);
1469         }
1470
1471         /* The timer went off, but maybe the nearest rpc already completed. */
1472         first = array->paa_deadline - now;
1473         if (first > at_early_margin) {
1474                 /* We've still got plenty of time.  Reset the timer. */
1475                 ptlrpc_at_set_timer(svcpt);
1476                 spin_unlock(&svcpt->scp_at_lock);
1477                 RETURN(0);
1478         }
1479
1480         /* We're close to a timeout, and we don't know how much longer the
1481            server will take. Send early replies to everyone expiring soon. */
1482         INIT_LIST_HEAD(&work_list);
1483         deadline = -1;
1484         div_u64_rem(array->paa_deadline, array->paa_size, &index);
1485         count = array->paa_count;
1486         while (count > 0) {
1487                 count -= array->paa_reqs_count[index];
1488                 list_for_each_entry_safe(rq, n,
1489                                          &array->paa_reqs_array[index],
1490                                          rq_timed_list) {
1491                         if (rq->rq_deadline > now + at_early_margin) {
1492                                 /* update the earliest deadline */
1493                                 if (deadline == -1 ||
1494                                     rq->rq_deadline < deadline)
1495                                         deadline = rq->rq_deadline;
1496                                 break;
1497                         }
1498
1499                         /**
1500                          * ptlrpc_server_drop_request() may drop
1501                          * refcount to 0 already. Let's check this and
1502                          * don't add entry to work_list
1503                          */
1504                         if (likely(atomic_inc_not_zero(&rq->rq_refcount))) {
1505                                 ptlrpc_at_remove_timed(rq);
1506                                 list_add(&rq->rq_timed_list, &work_list);
1507                         } else {
1508                                 ptlrpc_at_remove_timed(rq);
1509                         }
1510
1511                         counter++;
1512                 }
1513
1514                 if (++index >= array->paa_size)
1515                         index = 0;
1516         }
1517         array->paa_deadline = deadline;
1518         /* we have a new earliest deadline, restart the timer */
1519         ptlrpc_at_set_timer(svcpt);
1520
1521         spin_unlock(&svcpt->scp_at_lock);
1522
1523         CDEBUG(D_ADAPTTO, "timeout in %+ds, asking for %d secs on %d early "
1524                "replies\n", first, at_extra, counter);
1525         if (first < 0) {
1526                 /* We're already past request deadlines before we even get a
1527                    chance to send early replies */
1528                 LCONSOLE_WARN("%s: This server is not able to keep up with "
1529                               "request traffic (cpu-bound).\n",
1530                               svcpt->scp_service->srv_name);
1531                 CWARN("earlyQ=%d reqQ=%d recA=%d, svcEst=%d, delay=%lld\n",
1532                       counter, svcpt->scp_nreqs_incoming,
1533                       svcpt->scp_nreqs_active,
1534                       at_get(&svcpt->scp_at_estimate), delay);
1535         }
1536
1537         /* we took additional refcount so entries can't be deleted from list, no
1538          * locking is needed */
1539         while (!list_empty(&work_list)) {
1540                 rq = list_entry(work_list.next, struct ptlrpc_request,
1541                                     rq_timed_list);
1542                 list_del_init(&rq->rq_timed_list);
1543
1544                 if (ptlrpc_at_send_early_reply(rq) == 0)
1545                         ptlrpc_at_add_timed(rq);
1546
1547                 ptlrpc_server_drop_request(rq);
1548         }
1549
1550         RETURN(1); /* return "did_something" for liblustre */
1551 }
1552
1553 /* Check if we are already handling earlier incarnation of this request.
1554  * Called under &req->rq_export->exp_rpc_lock locked */
1555 static struct ptlrpc_request*
1556 ptlrpc_server_check_resend_in_progress(struct ptlrpc_request *req)
1557 {
1558         struct ptlrpc_request   *tmp = NULL;
1559
1560         if (!(lustre_msg_get_flags(req->rq_reqmsg) & MSG_RESENT) ||
1561             (atomic_read(&req->rq_export->exp_rpc_count) == 0))
1562                 return NULL;
1563
1564         /* bulk request are aborted upon reconnect, don't try to
1565          * find a match */
1566         if (req->rq_bulk_write || req->rq_bulk_read)
1567                 return NULL;
1568
1569         /* This list should not be longer than max_requests in
1570          * flights on the client, so it is not all that long.
1571          * Also we only hit this codepath in case of a resent
1572          * request which makes it even more rarely hit */
1573         list_for_each_entry(tmp, &req->rq_export->exp_reg_rpcs,
1574                                 rq_exp_list) {
1575                 /* Found duplicate one */
1576                 if (tmp->rq_xid == req->rq_xid)
1577                         goto found;
1578         }
1579         list_for_each_entry(tmp, &req->rq_export->exp_hp_rpcs,
1580                                 rq_exp_list) {
1581                 /* Found duplicate one */
1582                 if (tmp->rq_xid == req->rq_xid)
1583                         goto found;
1584         }
1585         return NULL;
1586
1587 found:
1588         DEBUG_REQ(D_HA, req, "Found duplicate req in processing");
1589         DEBUG_REQ(D_HA, tmp, "Request being processed");
1590         return tmp;
1591 }
1592
1593 /**
1594  * Check if a request should be assigned with a high priority.
1595  *
1596  * \retval      < 0: error occurred
1597  *                0: normal RPC request
1598  *               +1: high priority request
1599  */
1600 static int ptlrpc_server_hpreq_init(struct ptlrpc_service_part *svcpt,
1601                                     struct ptlrpc_request *req)
1602 {
1603         int rc = 0;
1604         ENTRY;
1605
1606         if (svcpt->scp_service->srv_ops.so_hpreq_handler != NULL) {
1607                 rc = svcpt->scp_service->srv_ops.so_hpreq_handler(req);
1608                 if (rc < 0)
1609                         RETURN(rc);
1610
1611                 LASSERT(rc == 0);
1612         }
1613
1614         if (req->rq_export != NULL && req->rq_ops != NULL) {
1615                 /* Perform request specific check. We should do this
1616                  * check before the request is added into exp_hp_rpcs
1617                  * list otherwise it may hit swab race at LU-1044. */
1618                 if (req->rq_ops->hpreq_check != NULL) {
1619                         rc = req->rq_ops->hpreq_check(req);
1620                         if (rc == -ESTALE) {
1621                                 req->rq_status = rc;
1622                                 ptlrpc_error(req);
1623                         }
1624                         /** can only return error,
1625                          * 0 for normal request,
1626                          *  or 1 for high priority request */
1627                         LASSERT(rc <= 1);
1628                 }
1629         }
1630
1631         RETURN(rc);
1632 }
1633
1634 /** Remove the request from the export list. */
1635 static void ptlrpc_server_hpreq_fini(struct ptlrpc_request *req)
1636 {
1637         ENTRY;
1638         if (req->rq_export) {
1639                 /* refresh lock timeout again so that client has more
1640                  * room to send lock cancel RPC. */
1641                 if (req->rq_ops && req->rq_ops->hpreq_fini)
1642                         req->rq_ops->hpreq_fini(req);
1643
1644                 spin_lock(&req->rq_export->exp_rpc_lock);
1645                 list_del_init(&req->rq_exp_list);
1646                 spin_unlock(&req->rq_export->exp_rpc_lock);
1647         }
1648         EXIT;
1649 }
1650
1651 static int ptlrpc_hpreq_check(struct ptlrpc_request *req)
1652 {
1653         return 1;
1654 }
1655
1656 static struct ptlrpc_hpreq_ops ptlrpc_hpreq_common = {
1657         .hpreq_check       = ptlrpc_hpreq_check,
1658 };
1659
1660 /* Hi-Priority RPC check by RPC operation code. */
1661 int ptlrpc_hpreq_handler(struct ptlrpc_request *req)
1662 {
1663         int opc = lustre_msg_get_opc(req->rq_reqmsg);
1664
1665         /* Check for export to let only reconnects for not yet evicted
1666          * export to become a HP rpc. */
1667         if ((req->rq_export != NULL) &&
1668             (opc == OBD_PING || opc == MDS_CONNECT || opc == OST_CONNECT))
1669                 req->rq_ops = &ptlrpc_hpreq_common;
1670
1671         return 0;
1672 }
1673 EXPORT_SYMBOL(ptlrpc_hpreq_handler);
1674
1675 static int ptlrpc_server_request_add(struct ptlrpc_service_part *svcpt,
1676                                      struct ptlrpc_request *req)
1677 {
1678         int rc;
1679         bool hp;
1680         struct ptlrpc_request *orig;
1681         ENTRY;
1682
1683         rc = ptlrpc_server_hpreq_init(svcpt, req);
1684         if (rc < 0)
1685                 RETURN(rc);
1686
1687         hp = rc > 0;
1688         ptlrpc_nrs_req_initialize(svcpt, req, hp);
1689
1690         if (req->rq_export != NULL) {
1691                 struct obd_export *exp = req->rq_export;
1692
1693                 /* do search for duplicated xid and the adding to the list
1694                  * atomically */
1695                 spin_lock_bh(&exp->exp_rpc_lock);
1696                 orig = ptlrpc_server_check_resend_in_progress(req);
1697                 if (orig && likely(atomic_inc_not_zero(&orig->rq_refcount))) {
1698                         bool linked;
1699
1700                         spin_unlock_bh(&exp->exp_rpc_lock);
1701
1702                         /*
1703                          * When the client resend request and the server has
1704                          * the previous copy of it, we need to update deadlines,
1705                          * to be sure that the client and the server have equal
1706                          *  request deadlines.
1707                          */
1708
1709                         spin_lock(&orig->rq_rqbd->rqbd_svcpt->scp_at_lock);
1710                         linked = orig->rq_at_linked;
1711                         if (likely(linked))
1712                                 ptlrpc_at_remove_timed(orig);
1713                         spin_unlock(&orig->rq_rqbd->rqbd_svcpt->scp_at_lock);
1714                         orig->rq_deadline = req->rq_deadline;
1715                         if (likely(linked))
1716                                 ptlrpc_at_add_timed(orig);
1717                         ptlrpc_server_drop_request(orig);
1718                         ptlrpc_nrs_req_finalize(req);
1719                         RETURN(-EBUSY);
1720                 }
1721
1722                 if (hp || req->rq_ops != NULL)
1723                         list_add(&req->rq_exp_list, &exp->exp_hp_rpcs);
1724                 else
1725                         list_add(&req->rq_exp_list, &exp->exp_reg_rpcs);
1726                 spin_unlock_bh(&exp->exp_rpc_lock);
1727         }
1728
1729         /* the current thread is not the processing thread for this request
1730          * since that, but request is in exp_hp_list and can be find there.
1731          * Remove all relations between request and old thread. */
1732         req->rq_svc_thread->t_env->le_ses = NULL;
1733         req->rq_svc_thread = NULL;
1734         req->rq_session.lc_thread = NULL;
1735
1736         ptlrpc_nrs_req_add(svcpt, req, hp);
1737
1738         RETURN(0);
1739 }
1740
1741 /**
1742  * Allow to handle high priority request
1743  * User can call it w/o any lock but need to hold
1744  * ptlrpc_service_part::scp_req_lock to get reliable result
1745  */
1746 static bool ptlrpc_server_allow_high(struct ptlrpc_service_part *svcpt,
1747                                      bool force)
1748 {
1749         int running = svcpt->scp_nthrs_running;
1750
1751         if (!nrs_svcpt_has_hp(svcpt))
1752                 return false;
1753
1754         if (force)
1755                 return true;
1756
1757         if (ptlrpc_nrs_req_throttling_nolock(svcpt, true))
1758                 return false;
1759
1760         if (unlikely(svcpt->scp_service->srv_req_portal == MDS_REQUEST_PORTAL &&
1761                      CFS_FAIL_PRECHECK(OBD_FAIL_PTLRPC_CANCEL_RESEND))) {
1762                 /* leave just 1 thread for normal RPCs */
1763                 running = PTLRPC_NTHRS_INIT;
1764                 if (svcpt->scp_service->srv_ops.so_hpreq_handler != NULL)
1765                         running += 1;
1766         }
1767
1768         if (svcpt->scp_nreqs_active >= running - 1)
1769                 return false;
1770
1771         if (svcpt->scp_nhreqs_active == 0)
1772                 return true;
1773
1774         return !ptlrpc_nrs_req_pending_nolock(svcpt, false) ||
1775                svcpt->scp_hreq_count < svcpt->scp_service->srv_hpreq_ratio;
1776 }
1777
1778 static bool ptlrpc_server_high_pending(struct ptlrpc_service_part *svcpt,
1779                                        bool force)
1780 {
1781         return ptlrpc_server_allow_high(svcpt, force) &&
1782                ptlrpc_nrs_req_pending_nolock(svcpt, true);
1783 }
1784
1785 /**
1786  * Only allow normal priority requests on a service that has a high-priority
1787  * queue if forced (i.e. cleanup), if there are other high priority requests
1788  * already being processed (i.e. those threads can service more high-priority
1789  * requests), or if there are enough idle threads that a later thread can do
1790  * a high priority request.
1791  * User can call it w/o any lock but need to hold
1792  * ptlrpc_service_part::scp_req_lock to get reliable result
1793  */
1794 static bool ptlrpc_server_allow_normal(struct ptlrpc_service_part *svcpt,
1795                                        bool force)
1796 {
1797         int running = svcpt->scp_nthrs_running;
1798         if (unlikely(svcpt->scp_service->srv_req_portal == MDS_REQUEST_PORTAL &&
1799                      CFS_FAIL_PRECHECK(OBD_FAIL_PTLRPC_CANCEL_RESEND))) {
1800                 /* leave just 1 thread for normal RPCs */
1801                 running = PTLRPC_NTHRS_INIT;
1802                 if (svcpt->scp_service->srv_ops.so_hpreq_handler != NULL)
1803                         running += 1;
1804         }
1805
1806         if (force)
1807                 return true;
1808
1809         if (ptlrpc_nrs_req_throttling_nolock(svcpt, false))
1810                 return false;
1811
1812         if (svcpt->scp_nreqs_active < running - 2)
1813                 return true;
1814
1815         if (svcpt->scp_nreqs_active >= running - 1)
1816                 return false;
1817
1818         return svcpt->scp_nhreqs_active > 0 || !nrs_svcpt_has_hp(svcpt);
1819 }
1820
1821 static bool ptlrpc_server_normal_pending(struct ptlrpc_service_part *svcpt,
1822                                          bool force)
1823 {
1824         return ptlrpc_server_allow_normal(svcpt, force) &&
1825                ptlrpc_nrs_req_pending_nolock(svcpt, false);
1826 }
1827
1828 /**
1829  * Returns true if there are requests available in incoming
1830  * request queue for processing and it is allowed to fetch them.
1831  * User can call it w/o any lock but need to hold ptlrpc_service::scp_req_lock
1832  * to get reliable result
1833  * \see ptlrpc_server_allow_normal
1834  * \see ptlrpc_server_allow high
1835  */
1836 static inline bool
1837 ptlrpc_server_request_pending(struct ptlrpc_service_part *svcpt, bool force)
1838 {
1839         return ptlrpc_server_high_pending(svcpt, force) ||
1840                ptlrpc_server_normal_pending(svcpt, force);
1841 }
1842
1843 /**
1844  * Fetch a request for processing from queue of unprocessed requests.
1845  * Favors high-priority requests.
1846  * Returns a pointer to fetched request.
1847  */
1848 static struct ptlrpc_request *
1849 ptlrpc_server_request_get(struct ptlrpc_service_part *svcpt, bool force)
1850 {
1851         struct ptlrpc_request *req = NULL;
1852         ENTRY;
1853
1854         spin_lock(&svcpt->scp_req_lock);
1855
1856         if (ptlrpc_server_high_pending(svcpt, force)) {
1857                 req = ptlrpc_nrs_req_get_nolock(svcpt, true, force);
1858                 if (req != NULL) {
1859                         svcpt->scp_hreq_count++;
1860                         goto got_request;
1861                 }
1862         }
1863
1864         if (ptlrpc_server_normal_pending(svcpt, force)) {
1865                 req = ptlrpc_nrs_req_get_nolock(svcpt, false, force);
1866                 if (req != NULL) {
1867                         svcpt->scp_hreq_count = 0;
1868                         goto got_request;
1869                 }
1870         }
1871
1872         spin_unlock(&svcpt->scp_req_lock);
1873         RETURN(NULL);
1874
1875 got_request:
1876         svcpt->scp_nreqs_active++;
1877         if (req->rq_hp)
1878                 svcpt->scp_nhreqs_active++;
1879
1880         spin_unlock(&svcpt->scp_req_lock);
1881
1882         if (likely(req->rq_export))
1883                 class_export_rpc_inc(req->rq_export);
1884
1885         RETURN(req);
1886 }
1887
1888 /**
1889  * Handle freshly incoming reqs, add to timed early reply list,
1890  * pass on to regular request queue.
1891  * All incoming requests pass through here before getting into
1892  * ptlrpc_server_handle_req later on.
1893  */
1894 static int
1895 ptlrpc_server_handle_req_in(struct ptlrpc_service_part *svcpt,
1896                             struct ptlrpc_thread *thread)
1897 {
1898         struct ptlrpc_service   *svc = svcpt->scp_service;
1899         struct ptlrpc_request   *req;
1900         __u32                   deadline;
1901         int                     rc;
1902         ENTRY;
1903
1904         spin_lock(&svcpt->scp_lock);
1905         if (list_empty(&svcpt->scp_req_incoming)) {
1906                 spin_unlock(&svcpt->scp_lock);
1907                 RETURN(0);
1908         }
1909
1910         req = list_entry(svcpt->scp_req_incoming.next,
1911                              struct ptlrpc_request, rq_list);
1912         list_del_init(&req->rq_list);
1913         svcpt->scp_nreqs_incoming--;
1914         /* Consider this still a "queued" request as far as stats are
1915          * concerned */
1916         spin_unlock(&svcpt->scp_lock);
1917
1918         /* go through security check/transform */
1919         rc = sptlrpc_svc_unwrap_request(req);
1920         switch (rc) {
1921         case SECSVC_OK:
1922                 break;
1923         case SECSVC_COMPLETE:
1924                 target_send_reply(req, 0, OBD_FAIL_MDS_ALL_REPLY_NET);
1925                 goto err_req;
1926         case SECSVC_DROP:
1927                 goto err_req;
1928         default:
1929                 LBUG();
1930         }
1931
1932         /*
1933          * for null-flavored rpc, msg has been unpacked by sptlrpc, although
1934          * redo it wouldn't be harmful.
1935          */
1936         if (SPTLRPC_FLVR_POLICY(req->rq_flvr.sf_rpc) != SPTLRPC_POLICY_NULL) {
1937                 rc = ptlrpc_unpack_req_msg(req, req->rq_reqlen);
1938                 if (rc != 0) {
1939                         CERROR("error unpacking request: ptl %d from %s "
1940                                "x%llu\n", svc->srv_req_portal,
1941                                libcfs_id2str(req->rq_peer), req->rq_xid);
1942                         goto err_req;
1943                 }
1944         }
1945
1946         rc = lustre_unpack_req_ptlrpc_body(req, MSG_PTLRPC_BODY_OFF);
1947         if (rc) {
1948                 CERROR ("error unpacking ptlrpc body: ptl %d from %s x"
1949                         "%llu\n", svc->srv_req_portal,
1950                         libcfs_id2str(req->rq_peer), req->rq_xid);
1951                 goto err_req;
1952         }
1953
1954         if (OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_DROP_REQ_OPC) &&
1955             lustre_msg_get_opc(req->rq_reqmsg) == cfs_fail_val) {
1956                 CERROR("drop incoming rpc opc %u, x%llu\n",
1957                        cfs_fail_val, req->rq_xid);
1958                 goto err_req;
1959         }
1960
1961         rc = -EINVAL;
1962         if (lustre_msg_get_type(req->rq_reqmsg) != PTL_RPC_MSG_REQUEST) {
1963                 CERROR("wrong packet type received (type=%u) from %s\n",
1964                        lustre_msg_get_type(req->rq_reqmsg),
1965                        libcfs_id2str(req->rq_peer));
1966                 goto err_req;
1967         }
1968
1969         switch (lustre_msg_get_opc(req->rq_reqmsg)) {
1970         case MDS_WRITEPAGE:
1971         case OST_WRITE:
1972         case OUT_UPDATE:
1973                 req->rq_bulk_write = 1;
1974                 break;
1975         case MDS_READPAGE:
1976         case OST_READ:
1977         case MGS_CONFIG_READ:
1978                 req->rq_bulk_read = 1;
1979                 break;
1980         }
1981
1982         CDEBUG(D_RPCTRACE, "got req x%llu\n", req->rq_xid);
1983
1984         req->rq_export = class_conn2export(
1985                 lustre_msg_get_handle(req->rq_reqmsg));
1986         if (req->rq_export) {
1987                 rc = ptlrpc_check_req(req);
1988                 if (rc == 0) {
1989                         rc = sptlrpc_target_export_check(req->rq_export, req);
1990                         if (rc)
1991                                 DEBUG_REQ(D_ERROR, req, "DROPPING req with "
1992                                           "illegal security flavor,");
1993                 }
1994
1995                 if (rc)
1996                         goto err_req;
1997                 ptlrpc_update_export_timer(req->rq_export, 0);
1998         }
1999
2000         /* req_in handling should/must be fast */
2001         if (ktime_get_real_seconds() - req->rq_arrival_time.tv_sec > 5)
2002                 DEBUG_REQ(D_WARNING, req, "Slow req_in handling %llds",
2003                           (s64)(ktime_get_real_seconds() -
2004                                 req->rq_arrival_time.tv_sec));
2005
2006         /* Set rpc server deadline and add it to the timed list */
2007         deadline = (lustre_msghdr_get_flags(req->rq_reqmsg) &
2008                     MSGHDR_AT_SUPPORT) ?
2009                    /* The max time the client expects us to take */
2010                    lustre_msg_get_timeout(req->rq_reqmsg) : obd_timeout;
2011
2012         req->rq_deadline = req->rq_arrival_time.tv_sec + deadline;
2013         if (unlikely(deadline == 0)) {
2014                 DEBUG_REQ(D_ERROR, req, "Dropping request with 0 timeout");
2015                 goto err_req;
2016         }
2017
2018         /* Skip early reply */
2019         if (OBD_FAIL_PRECHECK(OBD_FAIL_MDS_RESEND))
2020                 req->rq_deadline += obd_timeout;
2021
2022         req->rq_svc_thread = thread;
2023         if (thread != NULL) {
2024                 /* initialize request session, it is needed for request
2025                  * processing by target */
2026                 rc = lu_context_init(&req->rq_session, LCT_SERVER_SESSION |
2027                                                        LCT_NOREF);
2028                 if (rc) {
2029                         CERROR("%s: failure to initialize session: rc = %d\n",
2030                                thread->t_name, rc);
2031                         goto err_req;
2032                 }
2033                 req->rq_session.lc_thread = thread;
2034                 lu_context_enter(&req->rq_session);
2035                 thread->t_env->le_ses = &req->rq_session;
2036         }
2037
2038         ptlrpc_at_add_timed(req);
2039
2040         /* Move it over to the request processing queue */
2041         rc = ptlrpc_server_request_add(svcpt, req);
2042         if (rc)
2043                 GOTO(err_req, rc);
2044
2045         wake_up(&svcpt->scp_waitq);
2046         RETURN(1);
2047
2048 err_req:
2049         ptlrpc_server_finish_request(svcpt, req);
2050
2051         RETURN(1);
2052 }
2053
2054 /**
2055  * Main incoming request handling logic.
2056  * Calls handler function from service to do actual processing.
2057  */
2058 static int
2059 ptlrpc_server_handle_request(struct ptlrpc_service_part *svcpt,
2060                              struct ptlrpc_thread *thread)
2061 {
2062         struct ptlrpc_service *svc = svcpt->scp_service;
2063         struct ptlrpc_request *request;
2064         ktime_t work_start;
2065         ktime_t work_end;
2066         ktime_t arrived;
2067         s64 timediff_usecs;
2068         s64 arrived_usecs;
2069         int fail_opc = 0;
2070
2071         ENTRY;
2072
2073         request = ptlrpc_server_request_get(svcpt, false);
2074         if (request == NULL)
2075                 RETURN(0);
2076
2077         if (OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_HPREQ_NOTIMEOUT))
2078                 fail_opc = OBD_FAIL_PTLRPC_HPREQ_NOTIMEOUT;
2079         else if (OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_HPREQ_TIMEOUT))
2080                 fail_opc = OBD_FAIL_PTLRPC_HPREQ_TIMEOUT;
2081
2082         if (unlikely(fail_opc)) {
2083                 if (request->rq_export && request->rq_ops)
2084                         OBD_FAIL_TIMEOUT(fail_opc, 4);
2085         }
2086
2087         ptlrpc_rqphase_move(request, RQ_PHASE_INTERPRET);
2088
2089         if(OBD_FAIL_CHECK(OBD_FAIL_PTLRPC_DUMP_LOG))
2090                 libcfs_debug_dumplog();
2091
2092         work_start = ktime_get_real();
2093         arrived = timespec64_to_ktime(request->rq_arrival_time);
2094         timediff_usecs = ktime_us_delta(work_start, arrived);
2095         if (likely(svc->srv_stats != NULL)) {
2096                 lprocfs_counter_add(svc->srv_stats, PTLRPC_REQWAIT_CNTR,
2097                                     timediff_usecs);
2098                 lprocfs_counter_add(svc->srv_stats, PTLRPC_REQQDEPTH_CNTR,
2099                                     svcpt->scp_nreqs_incoming);
2100                 lprocfs_counter_add(svc->srv_stats, PTLRPC_REQACTIVE_CNTR,
2101                                     svcpt->scp_nreqs_active);
2102                 lprocfs_counter_add(svc->srv_stats, PTLRPC_TIMEOUT,
2103                                     at_get(&svcpt->scp_at_estimate));
2104         }
2105
2106         if (likely(request->rq_export)) {
2107                 if (unlikely(ptlrpc_check_req(request)))
2108                         goto put_conn;
2109                 ptlrpc_update_export_timer(request->rq_export,
2110                                            div_u64(timediff_usecs,
2111                                                    USEC_PER_SEC / 2));
2112         }
2113
2114         /* Discard requests queued for longer than the deadline.
2115            The deadline is increased if we send an early reply. */
2116         if (ktime_get_real_seconds() > request->rq_deadline) {
2117                 DEBUG_REQ(D_ERROR, request, "Dropping timed-out request from %s: deadline %lld:%llds ago\n",
2118                           libcfs_id2str(request->rq_peer),
2119                           request->rq_deadline -
2120                           request->rq_arrival_time.tv_sec,
2121                           ktime_get_real_seconds() - request->rq_deadline);
2122                 goto put_conn;
2123         }
2124
2125         CDEBUG(D_RPCTRACE, "Handling RPC pname:cluuid+ref:pid:xid:nid:opc "
2126                "%s:%s+%d:%d:x%llu:%s:%d\n", current_comm(),
2127                (request->rq_export ?
2128                 (char *)request->rq_export->exp_client_uuid.uuid : "0"),
2129                (request->rq_export ?
2130                 atomic_read(&request->rq_export->exp_refcount) : -99),
2131                lustre_msg_get_status(request->rq_reqmsg), request->rq_xid,
2132                libcfs_id2str(request->rq_peer),
2133                lustre_msg_get_opc(request->rq_reqmsg));
2134
2135         if (lustre_msg_get_opc(request->rq_reqmsg) != OBD_PING)
2136                 CFS_FAIL_TIMEOUT_MS(OBD_FAIL_PTLRPC_PAUSE_REQ, cfs_fail_val);
2137
2138         CDEBUG(D_NET, "got req %llu\n", request->rq_xid);
2139
2140         /* re-assign request and sesson thread to the current one */
2141         request->rq_svc_thread = thread;
2142         if (thread != NULL) {
2143                 LASSERT(request->rq_session.lc_thread == NULL);
2144                 request->rq_session.lc_thread = thread;
2145                 thread->t_env->le_ses = &request->rq_session;
2146         }
2147         svc->srv_ops.so_req_handler(request);
2148
2149         ptlrpc_rqphase_move(request, RQ_PHASE_COMPLETE);
2150
2151 put_conn:
2152         if (unlikely(ktime_get_real_seconds() > request->rq_deadline)) {
2153                 DEBUG_REQ(D_WARNING, request,
2154                           "Request took longer than estimated (%lld:%llds); "
2155                           "client may timeout.",
2156                           request->rq_deadline -
2157                           request->rq_arrival_time.tv_sec,
2158                           ktime_get_real_seconds() - request->rq_deadline);
2159         }
2160
2161         work_end = ktime_get_real();
2162         timediff_usecs = ktime_us_delta(work_end, work_start);
2163         arrived_usecs = ktime_us_delta(work_end, arrived);
2164         CDEBUG(D_RPCTRACE, "Handled RPC pname:cluuid+ref:pid:xid:nid:opc "
2165                "%s:%s+%d:%d:x%llu:%s:%d Request processed in %lldus "
2166                "(%lldus total) trans %llu rc %d/%d\n",
2167                current_comm(),
2168                (request->rq_export ?
2169                (char *)request->rq_export->exp_client_uuid.uuid : "0"),
2170                (request->rq_export ?
2171                atomic_read(&request->rq_export->exp_refcount) : -99),
2172                lustre_msg_get_status(request->rq_reqmsg),
2173                request->rq_xid,
2174                libcfs_id2str(request->rq_peer),
2175                lustre_msg_get_opc(request->rq_reqmsg),
2176                timediff_usecs,
2177                arrived_usecs,
2178                (request->rq_repmsg ?
2179                lustre_msg_get_transno(request->rq_repmsg) :
2180                request->rq_transno),
2181                request->rq_status,
2182                (request->rq_repmsg ?
2183                lustre_msg_get_status(request->rq_repmsg) : -999));
2184         if (likely(svc->srv_stats != NULL && request->rq_reqmsg != NULL)) {
2185                 __u32 op = lustre_msg_get_opc(request->rq_reqmsg);
2186                 int opc = opcode_offset(op);
2187                 if (opc > 0 && !(op == LDLM_ENQUEUE || op == MDS_REINT)) {
2188                         LASSERT(opc < LUSTRE_MAX_OPCODES);
2189                         lprocfs_counter_add(svc->srv_stats,
2190                                             opc + EXTRA_MAX_OPCODES,
2191                                             timediff_usecs);
2192                 }
2193         }
2194         if (unlikely(request->rq_early_count)) {
2195                 DEBUG_REQ(D_ADAPTTO, request,
2196                           "sent %d early replies before finishing in %llds",
2197                           request->rq_early_count,
2198                           div_u64(arrived_usecs, USEC_PER_SEC));
2199         }
2200
2201         ptlrpc_server_finish_active_request(svcpt, request);
2202
2203         RETURN(1);
2204 }
2205
2206 /**
2207  * An internal function to process a single reply state object.
2208  */
2209 static int
2210 ptlrpc_handle_rs(struct ptlrpc_reply_state *rs)
2211 {
2212         struct ptlrpc_service_part *svcpt = rs->rs_svcpt;
2213         struct ptlrpc_service     *svc = svcpt->scp_service;
2214         struct obd_export         *exp;
2215         int                        nlocks;
2216         int                        been_handled;
2217         ENTRY;
2218
2219         exp = rs->rs_export;
2220
2221         LASSERT(rs->rs_difficult);
2222         LASSERT(rs->rs_scheduled);
2223         LASSERT(list_empty(&rs->rs_list));
2224
2225         /* The disk commit callback holds exp_uncommitted_replies_lock while it
2226          * iterates over newly committed replies, removing them from
2227          * exp_uncommitted_replies.  It then drops this lock and schedules the
2228          * replies it found for handling here.
2229          *
2230          * We can avoid contention for exp_uncommitted_replies_lock between the
2231          * HRT threads and further commit callbacks by checking rs_committed
2232          * which is set in the commit callback while it holds both
2233          * rs_lock and exp_uncommitted_reples.
2234          *
2235          * If we see rs_committed clear, the commit callback _may_ not have
2236          * handled this reply yet and we race with it to grab
2237          * exp_uncommitted_replies_lock before removing the reply from
2238          * exp_uncommitted_replies.  Note that if we lose the race and the
2239          * reply has already been removed, list_del_init() is a noop.
2240          *
2241          * If we see rs_committed set, we know the commit callback is handling,
2242          * or has handled this reply since store reordering might allow us to
2243          * see rs_committed set out of sequence.  But since this is done
2244          * holding rs_lock, we can be sure it has all completed once we hold
2245          * rs_lock, which we do right next.
2246          */
2247         if (!rs->rs_committed) {
2248                 /* if rs was commited, no need to convert locks, don't check
2249                  * rs_committed here because rs may never be added into
2250                  * exp_uncommitted_replies and this flag never be set, see
2251                  * target_send_reply() */
2252                 if (rs->rs_convert_lock &&
2253                     rs->rs_transno > exp->exp_last_committed) {
2254                         struct ldlm_lock *lock;
2255                         struct ldlm_lock *ack_locks[RS_MAX_LOCKS] = { NULL };
2256
2257                         spin_lock(&rs->rs_lock);
2258                         if (rs->rs_convert_lock &&
2259                             rs->rs_transno > exp->exp_last_committed) {
2260                                 nlocks = rs->rs_nlocks;
2261                                 while (nlocks-- > 0) {
2262                                         /*
2263                                          * NB don't assume rs is always handled
2264                                          * by the same service thread (see
2265                                          * ptlrpc_hr_select, so REP-ACK hr may
2266                                          * race with trans commit, while the
2267                                          * latter will release locks, get locks
2268                                          * here early to convert to COS mode
2269                                          * safely.
2270                                          */
2271                                         lock = ldlm_handle2lock(
2272                                                         &rs->rs_locks[nlocks]);
2273                                         LASSERT(lock);
2274                                         ack_locks[nlocks] = lock;
2275                                         rs->rs_modes[nlocks] = LCK_COS;
2276                                 }
2277                                 nlocks = rs->rs_nlocks;
2278                                 rs->rs_convert_lock = 0;
2279                                 /* clear rs_scheduled so that commit callback
2280                                  * can schedule again */
2281                                 rs->rs_scheduled = 0;
2282                                 spin_unlock(&rs->rs_lock);
2283
2284                                 while (nlocks-- > 0) {
2285                                         lock = ack_locks[nlocks];
2286                                         ldlm_lock_mode_downgrade(lock, LCK_COS);
2287                                         LDLM_LOCK_PUT(lock);
2288                                 }
2289                                 RETURN(0);
2290                         }
2291                         spin_unlock(&rs->rs_lock);
2292                 }
2293
2294                 spin_lock(&exp->exp_uncommitted_replies_lock);
2295                 list_del_init(&rs->rs_obd_list);
2296                 spin_unlock(&exp->exp_uncommitted_replies_lock);
2297         }
2298
2299         spin_lock(&exp->exp_lock);
2300         /* Noop if removed already */
2301         list_del_init(&rs->rs_exp_list);
2302         spin_unlock(&exp->exp_lock);
2303
2304         spin_lock(&rs->rs_lock);
2305
2306         been_handled = rs->rs_handled;
2307         rs->rs_handled = 1;
2308
2309         nlocks = rs->rs_nlocks;                 /* atomic "steal", but */
2310         rs->rs_nlocks = 0;                      /* locks still on rs_locks! */
2311
2312         if (nlocks == 0 && !been_handled) {
2313                 /* If we see this, we should already have seen the warning
2314                  * in mds_steal_ack_locks()  */
2315                 CDEBUG(D_HA, "All locks stolen from rs %p x%lld.t%lld"
2316                        " o%d NID %s\n",
2317                        rs,
2318                        rs->rs_xid, rs->rs_transno, rs->rs_opc,
2319                        libcfs_nid2str(exp->exp_connection->c_peer.nid));
2320         }
2321
2322         if ((!been_handled && rs->rs_on_net) || nlocks > 0) {
2323                 spin_unlock(&rs->rs_lock);
2324
2325                 if (!been_handled && rs->rs_on_net) {
2326                         LNetMDUnlink(rs->rs_md_h);
2327                         /* Ignore return code; we're racing with completion */
2328                 }
2329
2330                 while (nlocks-- > 0)
2331                         ldlm_lock_decref(&rs->rs_locks[nlocks],
2332                                          rs->rs_modes[nlocks]);
2333
2334                 spin_lock(&rs->rs_lock);
2335         }
2336
2337         rs->rs_scheduled = 0;
2338         rs->rs_convert_lock = 0;
2339
2340         if (!rs->rs_on_net) {
2341                 /* Off the net */
2342                 spin_unlock(&rs->rs_lock);
2343
2344                 class_export_put (exp);
2345                 rs->rs_export = NULL;
2346                 ptlrpc_rs_decref(rs);
2347                 if (atomic_dec_and_test(&svcpt->scp_nreps_difficult) &&
2348                     svc->srv_is_stopping)
2349                         wake_up_all(&svcpt->scp_waitq);
2350                 RETURN(1);
2351         }
2352
2353         /* still on the net; callback will schedule */
2354         spin_unlock(&rs->rs_lock);
2355         RETURN(1);
2356 }
2357
2358
2359 static void
2360 ptlrpc_check_rqbd_pool(struct ptlrpc_service_part *svcpt)
2361 {
2362         int avail = svcpt->scp_nrqbds_posted;
2363         int low_water = test_req_buffer_pressure ? 0 :
2364                         svcpt->scp_service->srv_nbuf_per_group / 2;
2365
2366         /* NB I'm not locking; just looking. */
2367
2368         /* CAVEAT EMPTOR: We might be allocating buffers here because we've
2369          * allowed the request history to grow out of control.  We could put a
2370          * sanity check on that here and cull some history if we need the
2371          * space. */
2372
2373         if (avail <= low_water)
2374                 ptlrpc_grow_req_bufs(svcpt, 1);
2375
2376         if (svcpt->scp_service->srv_stats) {
2377                 lprocfs_counter_add(svcpt->scp_service->srv_stats,
2378                                     PTLRPC_REQBUF_AVAIL_CNTR, avail);
2379         }
2380 }
2381
2382 static int
2383 ptlrpc_retry_rqbds(void *arg)
2384 {
2385         struct ptlrpc_service_part *svcpt = (struct ptlrpc_service_part *)arg;
2386
2387         svcpt->scp_rqbd_timeout = 0;
2388         return -ETIMEDOUT;
2389 }
2390
2391 static inline int
2392 ptlrpc_threads_enough(struct ptlrpc_service_part *svcpt)
2393 {
2394         return svcpt->scp_nreqs_active <
2395                svcpt->scp_nthrs_running - 1 -
2396                (svcpt->scp_service->srv_ops.so_hpreq_handler != NULL);
2397 }
2398
2399 /**
2400  * allowed to create more threads
2401  * user can call it w/o any lock but need to hold
2402  * ptlrpc_service_part::scp_lock to get reliable result
2403  */
2404 static inline int
2405 ptlrpc_threads_increasable(struct ptlrpc_service_part *svcpt)
2406 {
2407         return svcpt->scp_nthrs_running +
2408                svcpt->scp_nthrs_starting <
2409                svcpt->scp_service->srv_nthrs_cpt_limit;
2410 }
2411
2412 /**
2413  * too many requests and allowed to create more threads
2414  */
2415 static inline int
2416 ptlrpc_threads_need_create(struct ptlrpc_service_part *svcpt)
2417 {
2418         return !ptlrpc_threads_enough(svcpt) &&
2419                 ptlrpc_threads_increasable(svcpt);
2420 }
2421
2422 static inline int
2423 ptlrpc_thread_stopping(struct ptlrpc_thread *thread)
2424 {
2425         return thread_is_stopping(thread) ||
2426                thread->t_svcpt->scp_service->srv_is_stopping;
2427 }
2428
2429 static inline int
2430 ptlrpc_rqbd_pending(struct ptlrpc_service_part *svcpt)
2431 {
2432         return !list_empty(&svcpt->scp_rqbd_idle) &&
2433                svcpt->scp_rqbd_timeout == 0;
2434 }
2435
2436 static inline int
2437 ptlrpc_at_check(struct ptlrpc_service_part *svcpt)
2438 {
2439         return svcpt->scp_at_check;
2440 }
2441
2442 /**
2443  * requests wait on preprocessing
2444  * user can call it w/o any lock but need to hold
2445  * ptlrpc_service_part::scp_lock to get reliable result
2446  */
2447 static inline int
2448 ptlrpc_server_request_incoming(struct ptlrpc_service_part *svcpt)
2449 {
2450         return !list_empty(&svcpt->scp_req_incoming);
2451 }
2452
2453 static __attribute__((__noinline__)) int
2454 ptlrpc_wait_event(struct ptlrpc_service_part *svcpt,
2455                   struct ptlrpc_thread *thread)
2456 {
2457         /* Don't exit while there are replies to be handled */
2458         struct l_wait_info lwi = LWI_TIMEOUT(svcpt->scp_rqbd_timeout,
2459                                              ptlrpc_retry_rqbds, svcpt);
2460
2461         lc_watchdog_disable(thread->t_watchdog);
2462
2463         cond_resched();
2464
2465         l_wait_event_exclusive_head(svcpt->scp_waitq,
2466                                 ptlrpc_thread_stopping(thread) ||
2467                                 ptlrpc_server_request_incoming(svcpt) ||
2468                                 ptlrpc_server_request_pending(svcpt, false) ||
2469                                 ptlrpc_rqbd_pending(svcpt) ||
2470                                 ptlrpc_at_check(svcpt), &lwi);
2471
2472         if (ptlrpc_thread_stopping(thread))
2473                 return -EINTR;
2474
2475         lc_watchdog_touch(thread->t_watchdog,
2476                           ptlrpc_server_get_timeout(svcpt));
2477         return 0;
2478 }
2479
2480 /**
2481  * Main thread body for service threads.
2482  * Waits in a loop waiting for new requests to process to appear.
2483  * Every time an incoming requests is added to its queue, a waitq
2484  * is woken up and one of the threads will handle it.
2485  */
2486 static int ptlrpc_main(void *arg)
2487 {
2488         struct ptlrpc_thread            *thread = (struct ptlrpc_thread *)arg;
2489         struct ptlrpc_service_part      *svcpt = thread->t_svcpt;
2490         struct ptlrpc_service           *svc = svcpt->scp_service;
2491         struct ptlrpc_reply_state       *rs;
2492         struct group_info *ginfo = NULL;
2493         struct lu_env *env;
2494         int counter = 0, rc = 0;
2495         ENTRY;
2496
2497         thread->t_pid = current_pid();
2498         unshare_fs_struct();
2499
2500         /* NB: we will call cfs_cpt_bind() for all threads, because we
2501          * might want to run lustre server only on a subset of system CPUs,
2502          * in that case ->scp_cpt is CFS_CPT_ANY */
2503         rc = cfs_cpt_bind(svc->srv_cptable, svcpt->scp_cpt);
2504         if (rc != 0) {
2505                 CWARN("%s: failed to bind %s on CPT %d\n",
2506                       svc->srv_name, thread->t_name, svcpt->scp_cpt);
2507         }
2508
2509         ginfo = groups_alloc(0);
2510         if (!ginfo) {
2511                 rc = -ENOMEM;
2512                 goto out;
2513         }
2514
2515         set_current_groups(ginfo);
2516         put_group_info(ginfo);
2517
2518         if (svc->srv_ops.so_thr_init != NULL) {
2519                 rc = svc->srv_ops.so_thr_init(thread);
2520                 if (rc)
2521                         goto out;
2522         }
2523
2524         OBD_ALLOC_PTR(env);
2525         if (env == NULL) {
2526                 rc = -ENOMEM;
2527                 goto out_srv_fini;
2528         }
2529
2530         rc = lu_context_init(&env->le_ctx,
2531                              svc->srv_ctx_tags|LCT_REMEMBER|LCT_NOREF);
2532         if (rc)
2533                 goto out_srv_fini;
2534
2535         thread->t_env = env;
2536         env->le_ctx.lc_thread = thread;
2537         env->le_ctx.lc_cookie = 0x6;
2538
2539         while (!list_empty(&svcpt->scp_rqbd_idle)) {
2540                 rc = ptlrpc_server_post_idle_rqbds(svcpt);
2541                 if (rc >= 0)
2542                         continue;
2543
2544                 CERROR("Failed to post rqbd for %s on CPT %d: %d\n",
2545                         svc->srv_name, svcpt->scp_cpt, rc);
2546                 goto out_srv_fini;
2547         }
2548
2549         /* Alloc reply state structure for this one */
2550         OBD_ALLOC_LARGE(rs, svc->srv_max_reply_size);
2551         if (!rs) {
2552                 rc = -ENOMEM;
2553                 goto out_srv_fini;
2554         }
2555
2556         spin_lock(&svcpt->scp_lock);
2557
2558         LASSERT(thread_is_starting(thread));
2559         thread_clear_flags(thread, SVC_STARTING);
2560
2561         LASSERT(svcpt->scp_nthrs_starting == 1);
2562         svcpt->scp_nthrs_starting--;
2563
2564         /* SVC_STOPPING may already be set here if someone else is trying
2565          * to stop the service while this new thread has been dynamically
2566          * forked. We still set SVC_RUNNING to let our creator know that
2567          * we are now running, however we will exit as soon as possible */
2568         thread_add_flags(thread, SVC_RUNNING);
2569         svcpt->scp_nthrs_running++;
2570         spin_unlock(&svcpt->scp_lock);
2571
2572         /* wake up our creator in case he's still waiting. */
2573         wake_up(&thread->t_ctl_waitq);
2574
2575         thread->t_watchdog = lc_watchdog_add(ptlrpc_server_get_timeout(svcpt),
2576                                              NULL, NULL);
2577
2578         spin_lock(&svcpt->scp_rep_lock);
2579         list_add(&rs->rs_list, &svcpt->scp_rep_idle);
2580         wake_up(&svcpt->scp_rep_waitq);
2581         spin_unlock(&svcpt->scp_rep_lock);
2582
2583         CDEBUG(D_NET, "service thread %d (#%d) started\n", thread->t_id,
2584                svcpt->scp_nthrs_running);
2585
2586         /* XXX maintain a list of all managed devices: insert here */
2587         while (!ptlrpc_thread_stopping(thread)) {
2588                 if (ptlrpc_wait_event(svcpt, thread))
2589                         break;
2590
2591                 ptlrpc_check_rqbd_pool(svcpt);
2592
2593                 if (ptlrpc_threads_need_create(svcpt)) {
2594                         /* Ignore return code - we tried... */
2595                         ptlrpc_start_thread(svcpt, 0);
2596                 }
2597
2598                 /* reset le_ses to initial state */
2599                 env->le_ses = NULL;
2600                 /* Process all incoming reqs before handling any */
2601                 if (ptlrpc_server_request_incoming(svcpt)) {
2602                         lu_context_enter(&env->le_ctx);
2603                         ptlrpc_server_handle_req_in(svcpt, thread);
2604                         lu_context_exit(&env->le_ctx);
2605
2606                         /* but limit ourselves in case of flood */
2607                         if (counter++ < 100)
2608                                 continue;
2609                         counter = 0;
2610                 }
2611
2612                 if (ptlrpc_at_check(svcpt))
2613                         ptlrpc_at_check_timed(svcpt);
2614
2615                 if (ptlrpc_server_request_pending(svcpt, false)) {
2616                         lu_context_enter(&env->le_ctx);
2617                         ptlrpc_server_handle_request(svcpt, thread);
2618                         lu_context_exit(&env->le_ctx);
2619                 }
2620
2621                 if (ptlrpc_rqbd_pending(svcpt) &&
2622                     ptlrpc_server_post_idle_rqbds(svcpt) < 0) {
2623                         /* I just failed to repost request buffers.
2624                          * Wait for a timeout (unless something else
2625                          * happens) before I try again */
2626                         svcpt->scp_rqbd_timeout = cfs_time_seconds(1) / 10;
2627                         CDEBUG(D_RPCTRACE, "Posted buffers: %d\n",
2628                                svcpt->scp_nrqbds_posted);
2629                 }
2630         }
2631
2632         lc_watchdog_delete(thread->t_watchdog);
2633         thread->t_watchdog = NULL;
2634
2635 out_srv_fini:
2636         /*
2637          * deconstruct service specific state created by ptlrpc_start_thread()
2638          */
2639         if (svc->srv_ops.so_thr_done != NULL)
2640                 svc->srv_ops.so_thr_done(thread);
2641
2642         if (env != NULL) {
2643                 lu_context_fini(&env->le_ctx);
2644                 OBD_FREE_PTR(env);
2645         }
2646 out:
2647         CDEBUG(D_RPCTRACE, "service thread [ %p : %u ] %d exiting: rc %d\n",
2648                thread, thread->t_pid, thread->t_id, rc);
2649
2650         spin_lock(&svcpt->scp_lock);
2651         if (thread_test_and_clear_flags(thread, SVC_STARTING))
2652                 svcpt->scp_nthrs_starting--;
2653
2654         if (thread_test_and_clear_flags(thread, SVC_RUNNING)) {
2655                 /* must know immediately */
2656                 svcpt->scp_nthrs_running--;
2657         }
2658
2659         thread->t_id = rc;
2660         thread_add_flags(thread, SVC_STOPPED);
2661
2662         wake_up(&thread->t_ctl_waitq);
2663         spin_unlock(&svcpt->scp_lock);
2664
2665         return rc;
2666 }
2667
2668 static int hrt_dont_sleep(struct ptlrpc_hr_thread *hrt,
2669                           struct list_head *replies)
2670 {
2671         int result;
2672
2673         spin_lock(&hrt->hrt_lock);
2674
2675         list_splice_init(&hrt->hrt_queue, replies);
2676         result = ptlrpc_hr.hr_stopping || !list_empty(replies);
2677
2678         spin_unlock(&hrt->hrt_lock);
2679         return result;
2680 }
2681
2682 /**
2683  * Main body of "handle reply" function.
2684  * It processes acked reply states
2685  */
2686 static int ptlrpc_hr_main(void *arg)
2687 {
2688         struct ptlrpc_hr_thread         *hrt = (struct ptlrpc_hr_thread *)arg;
2689         struct ptlrpc_hr_partition      *hrp = hrt->hrt_partition;
2690         struct list_head                replies;
2691         int                             rc;
2692
2693         INIT_LIST_HEAD(&replies);
2694         unshare_fs_struct();
2695
2696         rc = cfs_cpt_bind(ptlrpc_hr.hr_cpt_table, hrp->hrp_cpt);
2697         if (rc != 0) {
2698                 char threadname[20];
2699
2700                 snprintf(threadname, sizeof(threadname), "ptlrpc_hr%02d_%03d",
2701                          hrp->hrp_cpt, hrt->hrt_id);
2702                 CWARN("Failed to bind %s on CPT %d of CPT table %p: rc = %d\n",
2703                       threadname, hrp->hrp_cpt, ptlrpc_hr.hr_cpt_table, rc);
2704         }
2705
2706         atomic_inc(&hrp->hrp_nstarted);
2707         wake_up(&ptlrpc_hr.hr_waitq);
2708
2709         while (!ptlrpc_hr.hr_stopping) {
2710                 l_wait_condition(hrt->hrt_waitq, hrt_dont_sleep(hrt, &replies));
2711
2712                 while (!list_empty(&replies)) {
2713                         struct ptlrpc_reply_state *rs;
2714
2715                         rs = list_entry(replies.prev,
2716                                         struct ptlrpc_reply_state,
2717                                         rs_list);
2718                         list_del_init(&rs->rs_list);
2719                         ptlrpc_handle_rs(rs);
2720                 }
2721         }
2722
2723         atomic_inc(&hrp->hrp_nstopped);
2724         wake_up(&ptlrpc_hr.hr_waitq);
2725
2726         return 0;
2727 }
2728
2729 static void ptlrpc_stop_hr_threads(void)
2730 {
2731         struct ptlrpc_hr_partition      *hrp;
2732         int                             i;
2733         int                             j;
2734
2735         ptlrpc_hr.hr_stopping = 1;
2736
2737         cfs_percpt_for_each(hrp, i, ptlrpc_hr.hr_partitions) {
2738                 if (hrp->hrp_thrs == NULL)
2739                         continue; /* uninitialized */
2740                 for (j = 0; j < hrp->hrp_nthrs; j++)
2741                         wake_up_all(&hrp->hrp_thrs[j].hrt_waitq);
2742         }
2743
2744         cfs_percpt_for_each(hrp, i, ptlrpc_hr.hr_partitions) {
2745                 if (hrp->hrp_thrs == NULL)
2746                         continue; /* uninitialized */
2747                 wait_event(ptlrpc_hr.hr_waitq,
2748                                atomic_read(&hrp->hrp_nstopped) ==
2749                                atomic_read(&hrp->hrp_nstarted));
2750         }
2751 }
2752
2753 static int ptlrpc_start_hr_threads(void)
2754 {
2755         struct ptlrpc_hr_partition      *hrp;
2756         int                             i;
2757         int                             j;
2758         ENTRY;
2759
2760         cfs_percpt_for_each(hrp, i, ptlrpc_hr.hr_partitions) {
2761                 int     rc = 0;
2762
2763                 for (j = 0; j < hrp->hrp_nthrs; j++) {
2764                         struct ptlrpc_hr_thread *hrt = &hrp->hrp_thrs[j];
2765                         struct task_struct *task;
2766
2767                         task = kthread_run(ptlrpc_hr_main,
2768                                            &hrp->hrp_thrs[j],
2769                                            "ptlrpc_hr%02d_%03d",
2770                                            hrp->hrp_cpt,
2771                                            hrt->hrt_id);
2772                         if (IS_ERR(task)) {
2773                                 rc = PTR_ERR(task);
2774                                 break;
2775                         }
2776                 }
2777
2778                 wait_event(ptlrpc_hr.hr_waitq,
2779                            atomic_read(&hrp->hrp_nstarted) == j);
2780
2781                 if (rc < 0) {
2782                         CERROR("cannot start reply handler thread %d:%d: "
2783                                "rc = %d\n", i, j, rc);
2784                         ptlrpc_stop_hr_threads();
2785                         RETURN(rc);
2786                 }
2787         }
2788
2789         RETURN(0);
2790 }
2791
2792 static void ptlrpc_svcpt_stop_threads(struct ptlrpc_service_part *svcpt)
2793 {
2794         struct l_wait_info      lwi = { 0 };
2795         struct ptlrpc_thread    *thread;
2796         struct list_head        zombie;
2797
2798         ENTRY;
2799
2800         CDEBUG(D_INFO, "Stopping threads for service %s\n",
2801                svcpt->scp_service->srv_name);
2802
2803         INIT_LIST_HEAD(&zombie);
2804         spin_lock(&svcpt->scp_lock);
2805         /* let the thread know that we would like it to stop asap */
2806         list_for_each_entry(thread, &svcpt->scp_threads, t_link) {
2807                 CDEBUG(D_INFO, "Stopping thread %s #%u\n",
2808                        svcpt->scp_service->srv_thread_name, thread->t_id);
2809                 thread_add_flags(thread, SVC_STOPPING);
2810         }
2811
2812         wake_up_all(&svcpt->scp_waitq);
2813
2814         while (!list_empty(&svcpt->scp_threads)) {
2815                 thread = list_entry(svcpt->scp_threads.next,
2816                                         struct ptlrpc_thread, t_link);
2817                 if (thread_is_stopped(thread)) {
2818                         list_del(&thread->t_link);
2819                         list_add(&thread->t_link, &zombie);
2820                         continue;
2821                 }
2822                 spin_unlock(&svcpt->scp_lock);
2823
2824                 CDEBUG(D_INFO, "waiting for stopping-thread %s #%u\n",
2825                        svcpt->scp_service->srv_thread_name, thread->t_id);
2826                 l_wait_event(thread->t_ctl_waitq,
2827                              thread_is_stopped(thread), &lwi);
2828
2829                 spin_lock(&svcpt->scp_lock);
2830         }
2831
2832         spin_unlock(&svcpt->scp_lock);
2833
2834         while (!list_empty(&zombie)) {
2835                 thread = list_entry(zombie.next,
2836                                         struct ptlrpc_thread, t_link);
2837                 list_del(&thread->t_link);
2838                 OBD_FREE_PTR(thread);
2839         }
2840         EXIT;
2841 }
2842
2843 /**
2844  * Stops all threads of a particular service \a svc
2845  */
2846 void ptlrpc_stop_all_threads(struct ptlrpc_service *svc)
2847 {
2848         struct ptlrpc_service_part *svcpt;
2849         int                        i;
2850         ENTRY;
2851
2852         ptlrpc_service_for_each_part(svcpt, i, svc) {
2853                 if (svcpt->scp_service != NULL)
2854                         ptlrpc_svcpt_stop_threads(svcpt);
2855         }
2856
2857         EXIT;
2858 }
2859
2860 int ptlrpc_start_threads(struct ptlrpc_service *svc)
2861 {
2862         int     rc = 0;
2863         int     i;
2864         int     j;
2865         ENTRY;
2866
2867         /* We require 2 threads min, see note in ptlrpc_server_handle_request */
2868         LASSERT(svc->srv_nthrs_cpt_init >= PTLRPC_NTHRS_INIT);
2869
2870         for (i = 0; i < svc->srv_ncpts; i++) {
2871                 for (j = 0; j < svc->srv_nthrs_cpt_init; j++) {
2872                         rc = ptlrpc_start_thread(svc->srv_parts[i], 1);
2873                         if (rc == 0)
2874                                 continue;
2875
2876                         if (rc != -EMFILE)
2877                                 goto failed;
2878                         /* We have enough threads, don't start more. b=15759 */
2879                         break;
2880                 }
2881         }
2882
2883         RETURN(0);
2884  failed:
2885         CERROR("cannot start %s thread #%d_%d: rc %d\n",
2886                svc->srv_thread_name, i, j, rc);
2887         ptlrpc_stop_all_threads(svc);
2888         RETURN(rc);
2889 }
2890
2891 int ptlrpc_start_thread(struct ptlrpc_service_part *svcpt, int wait)
2892 {
2893         struct l_wait_info      lwi = { 0 };
2894         struct ptlrpc_thread    *thread;
2895         struct ptlrpc_service   *svc;
2896         struct task_struct      *task;
2897         int                     rc;
2898         ENTRY;
2899
2900         LASSERT(svcpt != NULL);
2901
2902         svc = svcpt->scp_service;
2903
2904         CDEBUG(D_RPCTRACE, "%s[%d] started %d min %d max %d\n",
2905                svc->srv_name, svcpt->scp_cpt, svcpt->scp_nthrs_running,
2906                svc->srv_nthrs_cpt_init, svc->srv_nthrs_cpt_limit);
2907
2908  again:
2909         if (unlikely(svc->srv_is_stopping))
2910                 RETURN(-ESRCH);
2911
2912         if (!ptlrpc_threads_increasable(svcpt) ||
2913             (OBD_FAIL_CHECK(OBD_FAIL_TGT_TOOMANY_THREADS) &&
2914              svcpt->scp_nthrs_running == svc->srv_nthrs_cpt_init - 1))
2915                 RETURN(-EMFILE);
2916
2917         OBD_CPT_ALLOC_PTR(thread, svc->srv_cptable, svcpt->scp_cpt);
2918         if (thread == NULL)
2919                 RETURN(-ENOMEM);
2920         init_waitqueue_head(&thread->t_ctl_waitq);
2921
2922         spin_lock(&svcpt->scp_lock);
2923         if (!ptlrpc_threads_increasable(svcpt)) {
2924                 spin_unlock(&svcpt->scp_lock);
2925                 OBD_FREE_PTR(thread);
2926                 RETURN(-EMFILE);
2927         }
2928
2929         if (svcpt->scp_nthrs_starting != 0) {
2930                 /* serialize starting because some modules (obdfilter)
2931                  * might require unique and contiguous t_id */
2932                 LASSERT(svcpt->scp_nthrs_starting == 1);
2933                 spin_unlock(&svcpt->scp_lock);
2934                 OBD_FREE_PTR(thread);
2935                 if (wait) {
2936                         CDEBUG(D_INFO, "Waiting for creating thread %s #%d\n",
2937                                svc->srv_thread_name, svcpt->scp_thr_nextid);
2938                         schedule();
2939                         goto again;
2940                 }
2941
2942                 CDEBUG(D_INFO, "Creating thread %s #%d race, retry later\n",
2943                        svc->srv_thread_name, svcpt->scp_thr_nextid);
2944                 RETURN(-EAGAIN);
2945         }
2946
2947         svcpt->scp_nthrs_starting++;
2948         thread->t_id = svcpt->scp_thr_nextid++;
2949         thread_add_flags(thread, SVC_STARTING);
2950         thread->t_svcpt = svcpt;
2951
2952         list_add(&thread->t_link, &svcpt->scp_threads);
2953         spin_unlock(&svcpt->scp_lock);
2954
2955         if (svcpt->scp_cpt >= 0) {
2956                 snprintf(thread->t_name, PTLRPC_THR_NAME_LEN, "%s%02d_%03d",
2957                          svc->srv_thread_name, svcpt->scp_cpt, thread->t_id);
2958         } else {
2959                 snprintf(thread->t_name, PTLRPC_THR_NAME_LEN, "%s_%04d",
2960                          svc->srv_thread_name, thread->t_id);
2961         }
2962
2963         CDEBUG(D_RPCTRACE, "starting thread '%s'\n", thread->t_name);
2964         task = kthread_run(ptlrpc_main, thread, "%s", thread->t_name);
2965         if (IS_ERR(task)) {
2966                 rc = PTR_ERR(task);
2967                 CERROR("cannot start thread '%s': rc = %d\n",
2968                        thread->t_name, rc);
2969                 spin_lock(&svcpt->scp_lock);
2970                 --svcpt->scp_nthrs_starting;
2971                 if (thread_is_stopping(thread)) {
2972                         /* this ptlrpc_thread is being hanled
2973                          * by ptlrpc_svcpt_stop_threads now
2974                          */
2975                         thread_add_flags(thread, SVC_STOPPED);
2976                         wake_up(&thread->t_ctl_waitq);
2977                         spin_unlock(&svcpt->scp_lock);
2978                 } else {
2979                         list_del(&thread->t_link);
2980                         spin_unlock(&svcpt->scp_lock);
2981                         OBD_FREE_PTR(thread);
2982                 }
2983                 RETURN(rc);
2984         }
2985
2986         if (!wait)
2987                 RETURN(0);
2988
2989         l_wait_event(thread->t_ctl_waitq,
2990                      thread_is_running(thread) || thread_is_stopped(thread),
2991                      &lwi);
2992
2993         rc = thread_is_stopped(thread) ? thread->t_id : 0;
2994         RETURN(rc);
2995 }
2996
2997 int ptlrpc_hr_init(void)
2998 {
2999         struct ptlrpc_hr_partition      *hrp;
3000         struct ptlrpc_hr_thread         *hrt;
3001         int                             rc;
3002         int                             cpt;
3003         int                             i;
3004         int                             weight;
3005         ENTRY;
3006
3007         memset(&ptlrpc_hr, 0, sizeof(ptlrpc_hr));
3008         ptlrpc_hr.hr_cpt_table = cfs_cpt_table;
3009
3010         ptlrpc_hr.hr_partitions = cfs_percpt_alloc(ptlrpc_hr.hr_cpt_table,
3011                                                    sizeof(*hrp));
3012         if (ptlrpc_hr.hr_partitions == NULL)
3013                 RETURN(-ENOMEM);
3014
3015         init_waitqueue_head(&ptlrpc_hr.hr_waitq);
3016
3017         weight = cpumask_weight(topology_sibling_cpumask(smp_processor_id()));
3018
3019         cfs_percpt_for_each(hrp, cpt, ptlrpc_hr.hr_partitions) {
3020                 hrp->hrp_cpt = cpt;
3021
3022                 atomic_set(&hrp->hrp_nstarted, 0);
3023                 atomic_set(&hrp->hrp_nstopped, 0);
3024
3025                 hrp->hrp_nthrs = cfs_cpt_weight(ptlrpc_hr.hr_cpt_table, cpt);
3026                 hrp->hrp_nthrs /= weight;
3027                 if (hrp->hrp_nthrs == 0)
3028                         hrp->hrp_nthrs = 1;
3029
3030                 OBD_CPT_ALLOC(hrp->hrp_thrs, ptlrpc_hr.hr_cpt_table, cpt,
3031                               hrp->hrp_nthrs * sizeof(*hrt));
3032                 if (hrp->hrp_thrs == NULL)
3033                         GOTO(out, rc = -ENOMEM);
3034
3035                 for (i = 0; i < hrp->hrp_nthrs; i++) {
3036                         hrt = &hrp->hrp_thrs[i];
3037
3038                         hrt->hrt_id = i;
3039                         hrt->hrt_partition = hrp;
3040                         init_waitqueue_head(&hrt->hrt_waitq);
3041                         spin_lock_init(&hrt->hrt_lock);
3042                         INIT_LIST_HEAD(&hrt->hrt_queue);
3043                 }
3044         }
3045
3046         rc = ptlrpc_start_hr_threads();
3047 out:
3048         if (rc != 0)
3049                 ptlrpc_hr_fini();
3050         RETURN(rc);
3051 }
3052
3053 void ptlrpc_hr_fini(void)
3054 {
3055         struct ptlrpc_hr_partition      *hrp;
3056         int                             cpt;
3057
3058         if (ptlrpc_hr.hr_partitions == NULL)
3059                 return;
3060
3061         ptlrpc_stop_hr_threads();
3062
3063         cfs_percpt_for_each(hrp, cpt, ptlrpc_hr.hr_partitions) {
3064                 if (hrp->hrp_thrs != NULL) {
3065                         OBD_FREE(hrp->hrp_thrs,
3066                                  hrp->hrp_nthrs * sizeof(hrp->hrp_thrs[0]));
3067                 }
3068         }
3069
3070         cfs_percpt_free(ptlrpc_hr.hr_partitions);
3071         ptlrpc_hr.hr_partitions = NULL;
3072 }
3073
3074
3075 /**
3076  * Wait until all already scheduled replies are processed.
3077  */
3078 static void ptlrpc_wait_replies(struct ptlrpc_service_part *svcpt)
3079 {
3080         while (1) {
3081                 int rc;
3082                 struct l_wait_info lwi = LWI_TIMEOUT(cfs_time_seconds(10),
3083                                                      NULL, NULL);
3084
3085                 rc = l_wait_event(svcpt->scp_waitq,
3086                      atomic_read(&svcpt->scp_nreps_difficult) == 0, &lwi);
3087                 if (rc == 0)
3088                         break;
3089                 CWARN("Unexpectedly long timeout %s %p\n",
3090                       svcpt->scp_service->srv_name, svcpt->scp_service);
3091         }
3092 }
3093
3094 static void
3095 ptlrpc_service_del_atimer(struct ptlrpc_service *svc)
3096 {
3097         struct ptlrpc_service_part      *svcpt;
3098         int                             i;
3099
3100         /* early disarm AT timer... */
3101         ptlrpc_service_for_each_part(svcpt, i, svc) {
3102                 if (svcpt->scp_service != NULL)
3103                         del_timer(&svcpt->scp_at_timer);
3104         }
3105 }
3106
3107 static void
3108 ptlrpc_service_unlink_rqbd(struct ptlrpc_service *svc)
3109 {
3110         struct ptlrpc_service_part        *svcpt;
3111         struct ptlrpc_request_buffer_desc *rqbd;
3112         struct l_wait_info                lwi;
3113         int                               rc;
3114         int                               i;
3115
3116         /* All history will be culled when the next request buffer is
3117          * freed in ptlrpc_service_purge_all() */
3118         svc->srv_hist_nrqbds_cpt_max = 0;
3119
3120         rc = LNetClearLazyPortal(svc->srv_req_portal);
3121         LASSERT(rc == 0);
3122
3123         ptlrpc_service_for_each_part(svcpt, i, svc) {
3124                 if (svcpt->scp_service == NULL)
3125                         break;
3126
3127                 /* Unlink all the request buffers.  This forces a 'final'
3128                  * event with its 'unlink' flag set for each posted rqbd */
3129                 list_for_each_entry(rqbd, &svcpt->scp_rqbd_posted,
3130                                         rqbd_list) {
3131                         rc = LNetMDUnlink(rqbd->rqbd_md_h);
3132                         LASSERT(rc == 0 || rc == -ENOENT);
3133                 }
3134         }
3135
3136         ptlrpc_service_for_each_part(svcpt, i, svc) {
3137                 if (svcpt->scp_service == NULL)
3138                         break;
3139
3140                 /* Wait for the network to release any buffers
3141                  * it's currently filling */
3142                 spin_lock(&svcpt->scp_lock);
3143                 while (svcpt->scp_nrqbds_posted != 0) {
3144                         spin_unlock(&svcpt->scp_lock);
3145                         /* Network access will complete in finite time but
3146                          * the HUGE timeout lets us CWARN for visibility
3147                          * of sluggish NALs */
3148                         lwi = LWI_TIMEOUT_INTERVAL(
3149                                         cfs_time_seconds(LONG_UNLINK),
3150                                         cfs_time_seconds(1), NULL, NULL);
3151                         rc = l_wait_event(svcpt->scp_waitq,
3152                                           svcpt->scp_nrqbds_posted == 0, &lwi);
3153                         if (rc == -ETIMEDOUT) {
3154                                 CWARN("Service %s waiting for "
3155                                       "request buffers\n",
3156                                       svcpt->scp_service->srv_name);
3157                         }
3158                         spin_lock(&svcpt->scp_lock);
3159                 }
3160                 spin_unlock(&svcpt->scp_lock);
3161         }
3162 }
3163
3164 static void
3165 ptlrpc_service_purge_all(struct ptlrpc_service *svc)
3166 {
3167         struct ptlrpc_service_part              *svcpt;
3168         struct ptlrpc_request_buffer_desc       *rqbd;
3169         struct ptlrpc_request                   *req;
3170         struct ptlrpc_reply_state               *rs;
3171         int                                     i;
3172
3173         ptlrpc_service_for_each_part(svcpt, i, svc) {
3174                 if (svcpt->scp_service == NULL)
3175                         break;
3176
3177                 spin_lock(&svcpt->scp_rep_lock);
3178                 while (!list_empty(&svcpt->scp_rep_active)) {
3179                         rs = list_entry(svcpt->scp_rep_active.next,
3180                                             struct ptlrpc_reply_state, rs_list);
3181                         spin_lock(&rs->rs_lock);
3182                         ptlrpc_schedule_difficult_reply(rs);
3183                         spin_unlock(&rs->rs_lock);
3184                 }
3185                 spin_unlock(&svcpt->scp_rep_lock);
3186
3187                 /* purge the request queue.  NB No new replies (rqbds
3188                  * all unlinked) and no service threads, so I'm the only
3189                  * thread noodling the request queue now */
3190                 while (!list_empty(&svcpt->scp_req_incoming)) {
3191                         req = list_entry(svcpt->scp_req_incoming.next,
3192                                              struct ptlrpc_request, rq_list);
3193
3194                         list_del(&req->rq_list);
3195                         svcpt->scp_nreqs_incoming--;
3196                         ptlrpc_server_finish_request(svcpt, req);
3197                 }
3198
3199                 while (ptlrpc_server_request_pending(svcpt, true)) {
3200                         req = ptlrpc_server_request_get(svcpt, true);
3201                         ptlrpc_server_finish_active_request(svcpt, req);
3202                 }
3203
3204                 LASSERT(list_empty(&svcpt->scp_rqbd_posted));
3205                 LASSERT(svcpt->scp_nreqs_incoming == 0);
3206                 LASSERT(svcpt->scp_nreqs_active == 0);
3207                 /* history should have been culled by
3208                  * ptlrpc_server_finish_request */
3209                 LASSERT(svcpt->scp_hist_nrqbds == 0);
3210
3211                 /* Now free all the request buffers since nothing
3212                  * references them any more... */
3213
3214                 while (!list_empty(&svcpt->scp_rqbd_idle)) {
3215                         rqbd = list_entry(svcpt->scp_rqbd_idle.next,
3216                                               struct ptlrpc_request_buffer_desc,
3217                                               rqbd_list);
3218                         ptlrpc_free_rqbd(rqbd);
3219                 }
3220                 ptlrpc_wait_replies(svcpt);
3221
3222                 while (!list_empty(&svcpt->scp_rep_idle)) {
3223                         rs = list_entry(svcpt->scp_rep_idle.next,
3224                                             struct ptlrpc_reply_state,
3225                                             rs_list);
3226                         list_del(&rs->rs_list);
3227                         OBD_FREE_LARGE(rs, svc->srv_max_reply_size);
3228                 }
3229         }
3230 }
3231
3232 static void
3233 ptlrpc_service_free(struct ptlrpc_service *svc)
3234 {
3235         struct ptlrpc_service_part      *svcpt;
3236         struct ptlrpc_at_array          *array;
3237         int                             i;
3238
3239         ptlrpc_service_for_each_part(svcpt, i, svc) {
3240                 if (svcpt->scp_service == NULL)
3241                         break;
3242
3243                 /* In case somebody rearmed this in the meantime */
3244                 del_timer(&svcpt->scp_at_timer);
3245                 array = &svcpt->scp_at_array;
3246
3247                 if (array->paa_reqs_array != NULL) {
3248                         OBD_FREE(array->paa_reqs_array,
3249                                  sizeof(struct list_head) * array->paa_size);
3250                         array->paa_reqs_array = NULL;
3251                 }
3252
3253                 if (array->paa_reqs_count != NULL) {
3254                         OBD_FREE(array->paa_reqs_count,
3255                                  sizeof(__u32) * array->paa_size);
3256                         array->paa_reqs_count = NULL;
3257                 }
3258         }
3259
3260         ptlrpc_service_for_each_part(svcpt, i, svc)
3261                 OBD_FREE_PTR(svcpt);
3262
3263         if (svc->srv_cpts != NULL)
3264                 cfs_expr_list_values_free(svc->srv_cpts, svc->srv_ncpts);
3265
3266         OBD_FREE(svc, offsetof(struct ptlrpc_service,
3267                                srv_parts[svc->srv_ncpts]));
3268 }
3269
3270 int ptlrpc_unregister_service(struct ptlrpc_service *service)
3271 {
3272         ENTRY;
3273
3274         CDEBUG(D_NET, "%s: tearing down\n", service->srv_name);
3275
3276         service->srv_is_stopping = 1;
3277
3278         mutex_lock(&ptlrpc_all_services_mutex);
3279         list_del_init(&service->srv_list);
3280         mutex_unlock(&ptlrpc_all_services_mutex);
3281
3282         ptlrpc_service_del_atimer(service);
3283         ptlrpc_stop_all_threads(service);
3284
3285         ptlrpc_service_unlink_rqbd(service);
3286         ptlrpc_service_purge_all(service);
3287         ptlrpc_service_nrs_cleanup(service);
3288
3289         ptlrpc_lprocfs_unregister_service(service);
3290         ptlrpc_sysfs_unregister_service(service);
3291
3292         ptlrpc_service_free(service);
3293
3294         RETURN(0);
3295 }
3296 EXPORT_SYMBOL(ptlrpc_unregister_service);
3297
3298 /**
3299  * Returns 0 if the service is healthy.
3300  *
3301  * Right now, it just checks to make sure that requests aren't languishing
3302  * in the queue.  We'll use this health check to govern whether a node needs
3303  * to be shot, so it's intentionally non-aggressive. */
3304 static int ptlrpc_svcpt_health_check(struct ptlrpc_service_part *svcpt)
3305 {
3306         struct ptlrpc_request *request = NULL;
3307         struct timespec64 right_now;
3308         struct timespec64 timediff;
3309
3310         ktime_get_real_ts64(&right_now);
3311
3312         spin_lock(&svcpt->scp_req_lock);
3313         /* How long has the next entry been waiting? */
3314         if (ptlrpc_server_high_pending(svcpt, true))
3315                 request = ptlrpc_nrs_req_peek_nolock(svcpt, true);
3316         else if (ptlrpc_server_normal_pending(svcpt, true))
3317                 request = ptlrpc_nrs_req_peek_nolock(svcpt, false);
3318
3319         if (request == NULL) {
3320                 spin_unlock(&svcpt->scp_req_lock);
3321                 return 0;
3322         }
3323
3324         timediff = timespec64_sub(right_now, request->rq_arrival_time);
3325         spin_unlock(&svcpt->scp_req_lock);
3326
3327         if ((timediff.tv_sec) >
3328             (AT_OFF ? obd_timeout * 3 / 2 : at_max)) {
3329                 CERROR("%s: unhealthy - request has been waiting %llds\n",
3330                        svcpt->scp_service->srv_name, (s64)timediff.tv_sec);
3331                 return -1;
3332         }
3333
3334         return 0;
3335 }
3336
3337 int
3338 ptlrpc_service_health_check(struct ptlrpc_service *svc)
3339 {
3340         struct ptlrpc_service_part      *svcpt;
3341         int                             i;
3342
3343         if (svc == NULL)
3344                 return 0;
3345
3346         ptlrpc_service_for_each_part(svcpt, i, svc) {
3347                 int rc = ptlrpc_svcpt_health_check(svcpt);
3348
3349                 if (rc != 0)
3350                         return rc;
3351         }
3352         return 0;
3353 }
3354 EXPORT_SYMBOL(ptlrpc_service_health_check);