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LU-8367 osp: remove unused fail_locs from sanity/27S,822
[fs/lustre-release.git] / lustre / osp / osp_precreate.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) 2007, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Use is subject to license terms.
25  *
26  * Copyright (c) 2012, 2017, Intel Corporation.
27  */
28 /*
29  * This file is part of Lustre, http://www.lustre.org/
30  *
31  * lustre/osp/osp_precreate.c
32  *
33  * Lustre OST Proxy Device
34  *
35  * Author: Alex Zhuravlev <alexey.zhuravlev@intel.com>
36  * Author: Mikhail Pershin <mike.pershin@intel.com>
37  * Author: Di Wang <di.wang@intel.com>
38  */
39
40 #define DEBUG_SUBSYSTEM S_MDS
41
42 #include <linux/kthread.h>
43
44 #include <lustre_obdo.h>
45
46 #include "osp_internal.h"
47
48 /*
49  * there are two specific states to take care about:
50  *
51  * = import is disconnected =
52  *
53  * = import is inactive =
54  *   in this case osp_declare_create() returns an error
55  *
56  */
57
58 /**
59  * Check whether statfs data is expired
60  *
61  * OSP device caches statfs data for the target, the function checks
62  * whether the data is expired or not.
63  *
64  * \param[in] d         OSP device
65  *
66  * \retval              0 - not expired, 1 - expired
67  */
68 static inline int osp_statfs_need_update(struct osp_device *d)
69 {
70         return !ktime_before(ktime_get(), d->opd_statfs_fresh_till);
71 }
72
73 /*
74  * OSP tries to maintain pool of available objects so that calls to create
75  * objects don't block most of time
76  *
77  * each time OSP gets connected to OST, we should start from precreation cleanup
78  */
79 static void osp_statfs_timer_cb(cfs_timer_cb_arg_t data)
80 {
81         struct osp_device *d = cfs_from_timer(d, data, opd_statfs_timer);
82
83         LASSERT(d);
84         /* invalidate statfs data so osp_precreate_thread() can refresh */
85         d->opd_statfs_fresh_till = ktime_sub_ns(ktime_get(), NSEC_PER_SEC);
86         if (d->opd_pre_task)
87                 wake_up(&d->opd_pre_waitq);
88 }
89
90 static void osp_pre_update_msfs(struct osp_device *d, struct obd_statfs *msfs);
91
92 /*
93  * The function updates current precreation status if broken, and
94  * updates that cached statfs state if functional, then wakes up waiters.
95  * We don't clear opd_pre_status directly here, but rather leave this
96  * to osp_pre_update_msfs() to do if everything is OK so that we don't
97  * have a race to clear opd_pre_status and then set it to -ENOSPC again.
98  *
99  * \param[in] d         OSP device
100  * \param[in] msfs      statfs data
101  * \param[in] rc        new precreate status for device \a d
102  */
103 static void osp_pre_update_status_msfs(struct osp_device *d,
104                                        struct obd_statfs *msfs, int rc)
105 {
106         CDEBUG(D_INFO, "%s: Updating status = %d\n", d->opd_obd->obd_name, rc);
107         if (rc)
108                 d->opd_pre_status = rc;
109         else
110                 osp_pre_update_msfs(d, msfs);
111
112         wake_up_all(&d->opd_pre_user_waitq);
113 }
114
115 /* Pass in the old statfs data in case the limits have changed */
116 void osp_pre_update_status(struct osp_device *d, int rc)
117 {
118         osp_pre_update_status_msfs(d, &d->opd_statfs, rc);
119 }
120
121
122 /**
123  * RPC interpret callback for OST_STATFS RPC
124  *
125  * An interpretation callback called by ptlrpc for OST_STATFS RPC when it is
126  * replied by the target. It's used to maintain statfs cache for the target.
127  * The function fills data from the reply if successful and schedules another
128  * update.
129  *
130  * \param[in] env       LU environment provided by the caller
131  * \param[in] req       RPC replied
132  * \param[in] aa        callback data
133  * \param[in] rc        RPC result
134  *
135  * \retval 0            on success
136  * \retval negative     negated errno on error
137  */
138 static int osp_statfs_interpret(const struct lu_env *env,
139                                 struct ptlrpc_request *req, void *args, int rc)
140 {
141         union ptlrpc_async_args *aa = args;
142         struct obd_import *imp = req->rq_import;
143         struct obd_statfs *msfs;
144         struct obd_statfs *sfs;
145         struct osp_device *d;
146         u64 maxage_ns;
147
148         ENTRY;
149
150         aa = ptlrpc_req_async_args(aa, req);
151         d = aa->pointer_arg[0];
152         LASSERT(d);
153
154         if (rc != 0)
155                 GOTO(out, rc);
156
157         msfs = req_capsule_server_get(&req->rq_pill, &RMF_OBD_STATFS);
158         if (msfs == NULL)
159                 GOTO(out, rc = -EPROTO);
160
161         if (d->opd_pre)
162                 osp_pre_update_status_msfs(d, msfs, 0);
163         else
164                 osp_pre_update_msfs(d, msfs);
165
166         /* schedule next update */
167         maxage_ns = d->opd_statfs_maxage * NSEC_PER_SEC;
168         d->opd_statfs_fresh_till = ktime_add_ns(ktime_get(), maxage_ns);
169         mod_timer(&d->opd_statfs_timer,
170                   jiffies + cfs_time_seconds(d->opd_statfs_maxage));
171         d->opd_statfs_update_in_progress = 0;
172
173         sfs = &d->opd_statfs;
174         CDEBUG(D_CACHE,
175                "%s (%p): %llu blocks, %llu free, %llu avail, %u bsize, %u reserved mb low, %u reserved mb high, %u reserved ino low, %u reserved ino high, %llu files, %llu free files %#x\n",
176                d->opd_obd->obd_name, d, sfs->os_blocks, sfs->os_bfree,
177                sfs->os_bavail, sfs->os_bsize, d->opd_reserved_mb_low,
178                d->opd_reserved_mb_high, d->opd_reserved_ino_low,
179                d->opd_reserved_ino_high, sfs->os_files, sfs->os_ffree,
180                sfs->os_state);
181
182         RETURN(0);
183 out:
184         /* couldn't update statfs, try again with a small delay */
185         d->opd_statfs_fresh_till = ktime_add_ns(ktime_get(), 10 * NSEC_PER_SEC);
186         d->opd_statfs_update_in_progress = 0;
187         if (d->opd_pre && d->opd_pre_task)
188                 wake_up(&d->opd_pre_waitq);
189
190         if (req->rq_import_generation == imp->imp_generation)
191                 CDEBUG(D_CACHE, "%s: couldn't update statfs: rc = %d\n",
192                        d->opd_obd->obd_name, rc);
193         RETURN(rc);
194 }
195
196 /**
197  * Send OST_STATFS RPC
198  *
199  * Sends OST_STATFS RPC to refresh cached statfs data for the target.
200  * Also disables scheduled updates as times OSP may need to refresh
201  * statfs data before expiration. The function doesn't block, instead
202  * an interpretation callback osp_statfs_interpret() is used.
203  *
204  * \param[in] d         OSP device
205  */
206 static int osp_statfs_update(const struct lu_env *env, struct osp_device *d)
207 {
208         u64 expire = obd_timeout * 1000 * NSEC_PER_SEC;
209         struct ptlrpc_request   *req;
210         struct obd_import       *imp;
211         union ptlrpc_async_args *aa;
212         int rc;
213
214         ENTRY;
215
216         CDEBUG(D_CACHE, "going to update statfs\n");
217
218         imp = d->opd_obd->u.cli.cl_import;
219         LASSERT(imp);
220
221         req = ptlrpc_request_alloc(imp,
222                            d->opd_pre ? &RQF_OST_STATFS : &RQF_MDS_STATFS);
223         if (req == NULL)
224                 RETURN(-ENOMEM);
225
226         rc = ptlrpc_request_pack(req,
227                          d->opd_pre ? LUSTRE_OST_VERSION : LUSTRE_MDS_VERSION,
228                          d->opd_pre ? OST_STATFS : MDS_STATFS);
229         if (rc) {
230                 ptlrpc_request_free(req);
231                 RETURN(rc);
232         }
233         ptlrpc_request_set_replen(req);
234         if (d->opd_pre)
235                 req->rq_request_portal = OST_CREATE_PORTAL;
236         ptlrpc_at_set_req_timeout(req);
237
238         req->rq_interpret_reply = osp_statfs_interpret;
239         aa = ptlrpc_req_async_args(aa, req);
240         aa->pointer_arg[0] = d;
241
242         /*
243          * no updates till reply
244          */
245         timer_delete(&d->opd_statfs_timer);
246         d->opd_statfs_fresh_till = ktime_add_ns(ktime_get(), expire);
247         d->opd_statfs_update_in_progress = 1;
248
249         ptlrpcd_add_req(req);
250
251         /* we still want to sync changes if no new changes are coming */
252         if (ktime_before(ktime_get(), d->opd_sync_next_commit_cb))
253                 GOTO(out, rc);
254
255         if (atomic_read(&d->opd_sync_changes)) {
256                 struct thandle *th;
257
258                 th = dt_trans_create(env, d->opd_storage);
259                 if (IS_ERR(th)) {
260                         CERROR("%s: can't sync\n", d->opd_obd->obd_name);
261                         GOTO(out, rc);
262                 }
263                 rc = dt_trans_start_local(env, d->opd_storage, th);
264                 if (rc == 0) {
265                         CDEBUG(D_OTHER, "%s: sync forced, %d changes\n",
266                                d->opd_obd->obd_name,
267                                atomic_read(&d->opd_sync_changes));
268                         osp_sync_add_commit_cb_1s(env, d, th);
269                 }
270                 dt_trans_stop(env, d->opd_storage, th);
271         }
272
273 out:
274         RETURN(0);
275 }
276
277 /**
278  * Schedule an immediate update for statfs data
279  *
280  * If cached statfs data claim no free space, but OSP has got a request to
281  * destroy an object (so release some space probably), then we may need to
282  * refresh cached statfs data sooner than planned. The function checks there
283  * is no statfs update going and schedules immediate update if so.
284  * XXX: there might be a case where removed object(s) do not add free space (empty
285  * object). If the number of such deletions is high, then we can start to update
286  * statfs too often causing a RPC storm. some throttling is needed...
287  *
288  * \param[in] d         OSP device where statfs data needs to be refreshed
289  */
290 void osp_statfs_need_now(struct osp_device *d)
291 {
292         if (!d->opd_statfs_update_in_progress) {
293                 /*
294                  * if current status is -ENOSPC (lack of free space on OST)
295                  * then we should poll OST immediately once object destroy
296                  * is replied
297                  */
298                 d->opd_statfs_fresh_till = ktime_sub_ns(ktime_get(), NSEC_PER_SEC);
299                 timer_delete(&d->opd_statfs_timer);
300                 wake_up(&d->opd_pre_waitq);
301         }
302 }
303
304 /**
305  * Return number of precreated objects
306  *
307  * A simple helper to calculate the number of precreated objects on the device.
308  *
309  * \param[in] env       LU environment provided by the caller
310  * \param[in] osp       OSP device
311  *
312  * \retval              the number of the precreated objects
313  */
314 static inline int osp_objs_precreated(const struct lu_env *env,
315                                       struct osp_device *osp)
316 {
317         return osp_fid_diff(&osp->opd_pre_last_created_fid,
318                             &osp->opd_pre_used_fid);
319 }
320
321 /**
322  * Check pool of precreated objects is nearly empty
323  *
324  * We should not wait till the pool of the precreated objects is exhausted,
325  * because then there will be a long period of OSP being unavailable for the
326  * new creations due to lenghty precreate RPC. Instead we ask for another
327  * precreation ahead and hopefully have it ready before the current pool is
328  * empty. Notice this function relies on an external locking.
329  *
330  * \param[in] env       LU environment provided by the caller
331  * \param[in] d         OSP device
332  *
333  * \retval              0 - current pool is good enough, 1 - time to precreate
334  */
335 static inline int osp_precreate_near_empty_nolock(const struct lu_env *env,
336                                                   struct osp_device *d)
337 {
338         int window = osp_objs_precreated(env, d);
339
340         /* don't consider new precreation till OST is healty and
341          * has free space */
342         return ((window - d->opd_pre_reserved < d->opd_pre_create_count / 2 ||
343                  d->opd_force_creation) && (d->opd_pre_status == 0));
344 }
345
346 /**
347  * Check pool of precreated objects
348  *
349  * This is protected version of osp_precreate_near_empty_nolock(), check that
350  * for the details.
351  *
352  * \param[in] env       LU environment provided by the caller
353  * \param[in] d         OSP device
354  *
355  * \retval              0 - current pool is good enough, 1 - time to precreate
356  */
357 static inline int osp_precreate_near_empty(const struct lu_env *env,
358                                            struct osp_device *d)
359 {
360         int rc;
361
362         if (d->opd_pre == NULL)
363                 return 0;
364
365         /* XXX: do we really need locking here? */
366         spin_lock(&d->opd_pre_lock);
367         rc = osp_precreate_near_empty_nolock(env, d);
368         spin_unlock(&d->opd_pre_lock);
369         return rc;
370 }
371
372 /**
373  * Write FID into into last_oid/last_seq file
374  *
375  * The function stores the sequence and the in-sequence id into two dedicated
376  * files. The sync argument can be used to request synchronous commit, so the
377  * function won't return until the updates are committed.
378  *
379  * \param[in] env       LU environment provided by the caller
380  * \param[in] osp       OSP device
381  * \param[in] fid       fid where sequence/id is taken
382  * \param[in] sync      update mode: 0 - asynchronously, 1 - synchronously
383  *
384  * \retval 0            on success
385  * \retval negative     negated errno on error
386  **/
387 int osp_write_last_oid_seq_files(struct lu_env *env, struct osp_device *osp,
388                                  struct lu_fid *fid, int sync)
389 {
390         struct osp_thread_info  *oti = osp_env_info(env);
391         struct lu_buf      *lb_oid = &oti->osi_lb;
392         struct lu_buf      *lb_oseq = &oti->osi_lb2;
393         loff_t             oid_off;
394         u64                oid;
395         loff_t             oseq_off;
396         struct thandle    *th;
397         int                   rc;
398         ENTRY;
399
400         if (osp->opd_storage->dd_rdonly)
401                 RETURN(0);
402
403         /* Note: through f_oid is only 32 bits, it will also write 64 bits
404          * for oid to keep compatibility with the previous version. */
405         oid = fid->f_oid;
406         osp_objid_buf_prep(lb_oid, &oid_off,
407                            &oid, osp->opd_index);
408
409         osp_objseq_buf_prep(lb_oseq, &oseq_off,
410                             &fid->f_seq, osp->opd_index);
411
412         th = dt_trans_create(env, osp->opd_storage);
413         if (IS_ERR(th))
414                 RETURN(PTR_ERR(th));
415
416         th->th_sync |= sync;
417         rc = dt_declare_record_write(env, osp->opd_last_used_oid_file,
418                                      lb_oid, oid_off, th);
419         if (rc != 0)
420                 GOTO(out, rc);
421
422         rc = dt_declare_record_write(env, osp->opd_last_used_seq_file,
423                                      lb_oseq, oseq_off, th);
424         if (rc != 0)
425                 GOTO(out, rc);
426
427         rc = dt_trans_start_local(env, osp->opd_storage, th);
428         if (rc != 0)
429                 GOTO(out, rc);
430
431         rc = dt_record_write(env, osp->opd_last_used_oid_file, lb_oid,
432                              &oid_off, th);
433         if (rc != 0) {
434                 CERROR("%s: can not write to last seq file: rc = %d\n",
435                         osp->opd_obd->obd_name, rc);
436                 GOTO(out, rc);
437         }
438         rc = dt_record_write(env, osp->opd_last_used_seq_file, lb_oseq,
439                              &oseq_off, th);
440         if (rc) {
441                 CERROR("%s: can not write to last seq file: rc = %d\n",
442                         osp->opd_obd->obd_name, rc);
443                 GOTO(out, rc);
444         }
445 out:
446         dt_trans_stop(env, osp->opd_storage, th);
447         RETURN(rc);
448 }
449
450 /**
451  * Switch to another sequence
452  *
453  * When a current sequence has no available IDs left, OSP has to switch to
454  * another new sequence. OSP requests it using the regular FLDB protocol
455  * and stores synchronously before that is used in precreate. This is needed
456  * to basically have the sequences referenced (not orphaned), otherwise it's
457  * possible that OST has some objects precreated and the clients have data
458  * written to it, but after MDT failover nobody refers those objects and OSP
459  * has no idea that the sequence need cleanup to be done.
460  * While this is very expensive operation, it's supposed to happen infrequently
461  * because sequence has LUSTRE_DATA_SEQ_MAX_WIDTH=32M objects by default.
462  *
463  * \param[in] env       LU environment provided by the caller
464  * \param[in] osp       OSP device
465  *
466  * \retval 0            on success
467  * \retval negative     negated errno on error
468  */
469 static int osp_precreate_rollover_new_seq(struct lu_env *env,
470                                           struct osp_device *osp)
471 {
472         struct lu_fid   *fid = &osp_env_info(env)->osi_fid;
473         struct lu_fid   *last_fid = &osp->opd_last_used_fid;
474         int             rc;
475         ENTRY;
476
477         rc = seq_client_get_seq(env, osp->opd_obd->u.cli.cl_seq, &fid->f_seq);
478         if (rc != 0) {
479                 CERROR("%s: alloc fid error: rc = %d\n",
480                        osp->opd_obd->obd_name, rc);
481                 RETURN(rc);
482         }
483
484         fid->f_oid = 1;
485         fid->f_ver = 0;
486         LASSERTF(fid_seq(fid) != fid_seq(last_fid),
487                  "fid "DFID", last_fid "DFID"\n", PFID(fid),
488                  PFID(last_fid));
489
490         rc = osp_write_last_oid_seq_files(env, osp, fid, 1);
491         if (rc != 0) {
492                 CERROR("%s: Can not update oid/seq file: rc = %d\n",
493                        osp->opd_obd->obd_name, rc);
494                 RETURN(rc);
495         }
496
497         LCONSOLE(D_INFO, "%s: update sequence from %#llx to %#llx\n",
498                  osp->opd_obd->obd_name, fid_seq(last_fid),
499                  fid_seq(fid));
500         /* Update last_xxx to the new seq */
501         spin_lock(&osp->opd_pre_lock);
502         osp->opd_last_used_fid = *fid;
503         osp_fid_to_obdid(fid, &osp->opd_last_id);
504         osp->opd_gap_start_fid = *fid;
505         osp->opd_pre_used_fid = *fid;
506         osp->opd_pre_last_created_fid = *fid;
507         spin_unlock(&osp->opd_pre_lock);
508
509         RETURN(rc);
510 }
511
512 /**
513  * Find IDs available in current sequence
514  *
515  * The function calculates the highest possible ID and the number of IDs
516  * available in the current sequence OSP is using. The number is limited
517  * artifically by the caller (grow param) and the number of IDs available
518  * in the sequence by nature. The function doesn't require an external
519  * locking.
520  *
521  * \param[in] env       LU environment provided by the caller
522  * \param[in] osp       OSP device
523  * \param[in] fid       FID the caller wants to start with
524  * \param[in] grow      how many the caller wants
525  * \param[out] fid      the highest calculated FID
526  * \param[out] grow     the number of available IDs calculated
527  *
528  * \retval              0 on success, 1 - the sequence is empty
529  */
530 static int osp_precreate_fids(const struct lu_env *env, struct osp_device *osp,
531                               struct lu_fid *fid, int *grow)
532 {
533         struct osp_thread_info *osi = osp_env_info(env);
534         __u64 seq_width = osp->opd_pre_seq_width;
535         __u64 end;
536         int i = 0;
537
538         if (fid_is_idif(fid)) {
539                 struct lu_fid   *last_fid;
540                 struct ost_id   *oi = &osi->osi_oi;
541                 int rc;
542
543                 spin_lock(&osp->opd_pre_lock);
544                 last_fid = &osp->opd_pre_last_created_fid;
545                 fid_to_ostid(last_fid, oi);
546                 end = min(ostid_id(oi) + *grow, min(IDIF_MAX_OID, seq_width));
547                 *grow = end - ostid_id(oi);
548                 rc = ostid_set_id(oi, ostid_id(oi) + *grow);
549                 spin_unlock(&osp->opd_pre_lock);
550
551                 if (*grow == 0 || rc)
552                         return 1;
553
554                 ostid_to_fid(fid, oi, osp->opd_index);
555                 return 0;
556         }
557
558         spin_lock(&osp->opd_pre_lock);
559         *fid = osp->opd_pre_last_created_fid;
560         end = fid->f_oid;
561         end = min((end + *grow), min(OBIF_MAX_OID, seq_width));
562         *grow = end - fid->f_oid;
563         fid->f_oid += end - fid->f_oid;
564         spin_unlock(&osp->opd_pre_lock);
565
566         CDEBUG(D_INFO, "Expect %d, actual %d ["DFID" -- "DFID"]\n",
567                *grow, i, PFID(fid), PFID(&osp->opd_pre_last_created_fid));
568
569         return *grow > 0 ? 0 : 1;
570 }
571
572 /**
573  * Prepare and send precreate RPC
574  *
575  * The function finds how many objects should be precreated.  Then allocates,
576  * prepares and schedules precreate RPC synchronously. Upon reply the function
577  * wakes up the threads waiting for the new objects on this target. If the
578  * target wasn't able to create all the objects requested, then the next
579  * precreate will be asking for fewer objects (i.e. slow precreate down).
580  *
581  * \param[in] env       LU environment provided by the caller
582  * \param[in] d         OSP device
583  *
584  * \retval 0            on success
585  * \retval negative     negated errno on error
586  **/
587 static int osp_precreate_send(const struct lu_env *env, struct osp_device *d)
588 {
589         struct osp_thread_info  *oti = osp_env_info(env);
590         struct ptlrpc_request   *req;
591         struct obd_import       *imp;
592         struct ost_body         *body;
593         int                      rc, grow, diff;
594         struct lu_fid           *fid = &oti->osi_fid;
595         ENTRY;
596
597         /* don't precreate new objects till OST healthy and has free space */
598         if (unlikely(d->opd_pre_status)) {
599                 CDEBUG(D_INFO, "%s: don't send new precreate: rc = %d\n",
600                        d->opd_obd->obd_name, d->opd_pre_status);
601                 RETURN(0);
602         }
603
604         /*
605          * if not connection/initialization is compeleted, ignore
606          */
607         imp = d->opd_obd->u.cli.cl_import;
608         LASSERT(imp);
609
610         req = ptlrpc_request_alloc(imp, &RQF_OST_CREATE);
611         if (req == NULL)
612                 RETURN(-ENOMEM);
613         req->rq_request_portal = OST_CREATE_PORTAL;
614
615         /* Delorphan happens only with a first MDT-OST connect. resend/replay
616          * handles objects creation on reconnects, no need to do delorhpan
617          * in this case.
618          */
619
620         rc = ptlrpc_request_pack(req, LUSTRE_OST_VERSION, OST_CREATE);
621         if (rc) {
622                 ptlrpc_request_free(req);
623                 RETURN(rc);
624         }
625
626         spin_lock(&d->opd_pre_lock);
627         if (d->opd_force_creation)
628                 d->opd_pre_create_count = OST_MIN_PRECREATE;
629         else if (d->opd_pre_create_count > d->opd_pre_max_create_count / 2)
630                 d->opd_pre_create_count = d->opd_pre_max_create_count / 2;
631         grow = d->opd_pre_create_count;
632         spin_unlock(&d->opd_pre_lock);
633
634         body = req_capsule_client_get(&req->rq_pill, &RMF_OST_BODY);
635         LASSERT(body);
636
637         *fid = d->opd_pre_last_created_fid;
638         rc = osp_precreate_fids(env, d, fid, &grow);
639         if (rc == 1)
640                 /* Current seq has been used up*/
641                 GOTO(out_req, rc = -ENOSPC);
642
643         if (!osp_is_fid_client(d)) {
644                 /* Non-FID client will always send seq 0 because of
645                  * compatiblity */
646                 LASSERTF(fid_is_idif(fid), "Invalid fid "DFID"\n", PFID(fid));
647                 fid->f_seq = 0;
648         }
649
650         fid_to_ostid(fid, &body->oa.o_oi);
651         body->oa.o_valid = OBD_MD_FLGROUP;
652
653         ptlrpc_request_set_replen(req);
654
655         if (OBD_FAIL_CHECK(OBD_FAIL_OSP_FAKE_PRECREATE))
656                 GOTO(ready, rc = 0);
657
658         rc = ptlrpc_queue_wait(req);
659         if (rc) {
660                 CERROR("%s: can't precreate: rc = %d\n", d->opd_obd->obd_name,
661                        rc);
662                 if (req->rq_net_err)
663                         /* have osp_precreate_reserve() to wait for repeat */
664                         rc = -ENOTCONN;
665                 GOTO(out_req, rc);
666         }
667
668         body = req_capsule_server_get(&req->rq_pill, &RMF_OST_BODY);
669         if (body == NULL)
670                 GOTO(out_req, rc = -EPROTO);
671
672         ostid_to_fid(fid, &body->oa.o_oi, d->opd_index);
673
674 ready:
675         if (osp_fid_diff(fid, &d->opd_pre_used_fid) <= 0) {
676                 CERROR("%s: precreate fid "DFID" <= local used fid "DFID
677                        ": rc = %d\n", d->opd_obd->obd_name,
678                        PFID(fid), PFID(&d->opd_pre_used_fid), -ESTALE);
679                 GOTO(out_req, rc = -ESTALE);
680         }
681
682         diff = osp_fid_diff(fid, &d->opd_pre_last_created_fid);
683
684         spin_lock(&d->opd_pre_lock);
685         if (diff < grow) {
686                 /* the OST has not managed to create all the
687                  * objects we asked for */
688                 d->opd_pre_create_count = max(diff, OST_MIN_PRECREATE);
689                 d->opd_pre_create_slow = 1;
690         } else {
691                 /* the OST is able to keep up with the work,
692                  * we could consider increasing create_count
693                  * next time if needed */
694                 d->opd_pre_create_slow = 0;
695         }
696
697         if ((body->oa.o_valid & OBD_MD_FLSIZE) && body->oa.o_size)
698                 d->opd_pre_seq_width = body->oa.o_size;
699
700         body = req_capsule_client_get(&req->rq_pill, &RMF_OST_BODY);
701         fid_to_ostid(fid, &body->oa.o_oi);
702
703         d->opd_pre_last_created_fid = *fid;
704         d->opd_force_creation = false;
705         spin_unlock(&d->opd_pre_lock);
706
707         CDEBUG(D_HA, "%s: current precreated pool: "DFID"-"DFID"\n",
708                d->opd_obd->obd_name, PFID(&d->opd_pre_used_fid),
709                PFID(&d->opd_pre_last_created_fid));
710 out_req:
711         /* now we can wakeup all users awaiting for objects */
712         osp_pre_update_status(d, rc);
713
714         ptlrpc_req_finished(req);
715         RETURN(rc);
716 }
717
718 /**
719  * Get last precreated object from target (OST)
720  *
721  * Sends synchronous RPC to the target (OST) to learn the last precreated
722  * object. This later is used to remove all unused objects (cleanup orphan
723  * procedure). Also, the next object after one we got will be used as a
724  * starting point for the new precreates.
725  *
726  * \param[in] env       LU environment provided by the caller
727  * \param[in] d         OSP device
728  * \param[in] update    update or not update last used fid
729  *
730  * \retval 0            on success
731  * \retval negative     negated errno on error
732  **/
733 static int osp_get_lastfid_from_ost(const struct lu_env *env,
734                                     struct osp_device *d, bool update)
735 {
736         struct ptlrpc_request   *req = NULL;
737         struct obd_import       *imp;
738         struct lu_fid           *last_fid;
739         char                    *tmp;
740         int                     rc;
741         ENTRY;
742
743         imp = d->opd_obd->u.cli.cl_import;
744         LASSERT(imp);
745
746         req = ptlrpc_request_alloc(imp, &RQF_OST_GET_INFO_LAST_FID);
747         if (req == NULL)
748                 RETURN(-ENOMEM);
749
750         req_capsule_set_size(&req->rq_pill, &RMF_GETINFO_KEY, RCL_CLIENT,
751                              sizeof(KEY_LAST_FID));
752
753         rc = ptlrpc_request_pack(req, LUSTRE_OST_VERSION, OST_GET_INFO);
754         if (rc) {
755                 ptlrpc_request_free(req);
756                 RETURN(rc);
757         }
758
759         tmp = req_capsule_client_get(&req->rq_pill, &RMF_GETINFO_KEY);
760         memcpy(tmp, KEY_LAST_FID, sizeof(KEY_LAST_FID));
761
762         req->rq_no_delay = req->rq_no_resend = 1;
763         last_fid = req_capsule_client_get(&req->rq_pill, &RMF_FID);
764         fid_cpu_to_le(last_fid, &d->opd_last_used_fid);
765
766         ptlrpc_request_set_replen(req);
767
768         rc = ptlrpc_queue_wait(req);
769         if (rc) {
770                 /* -EFAULT means reading LAST_FID failed (see ofd_get_info_hld),
771                  * let sysadm sort this * out.
772                  */
773                 if (rc == -EFAULT)
774                         ptlrpc_set_import_active(imp, 0);
775                 GOTO(out, rc);
776         }
777
778         last_fid = req_capsule_server_get(&req->rq_pill, &RMF_FID);
779         if (last_fid == NULL) {
780                 CERROR("%s: Got last_fid failed.\n", d->opd_obd->obd_name);
781                 GOTO(out, rc = -EPROTO);
782         }
783
784         if (!fid_is_sane(last_fid)) {
785                 CERROR("%s: Got insane last_fid "DFID"\n",
786                        d->opd_obd->obd_name, PFID(last_fid));
787                 GOTO(out, rc = -EPROTO);
788         }
789
790         /* Only update the last used fid, if the OST has objects for
791          * this sequence, i.e. fid_oid > 0 */
792         if (fid_oid(last_fid) > 0 && update)
793                 d->opd_last_used_fid = *last_fid;
794
795         if (fid_seq(last_fid) == fid_seq(&d->opd_last_used_fid)) {
796                 if (fid_oid(last_fid) == 0 ||
797                     (fid_seq_is_norm(fid_seq(last_fid)) &&
798                      fid_oid(last_fid) == LUSTRE_FID_INIT_OID)) {
799                         /* reformatted OST, it requires creation request
800                          * to recreate objects
801                          */
802                         spin_lock(&d->opd_pre_lock);
803                         d->opd_force_creation = true;
804                         spin_unlock(&d->opd_pre_lock);
805                 }
806         }
807         CDEBUG(D_HA, "%s: Got last_fid "DFID"\n", d->opd_obd->obd_name,
808                PFID(last_fid));
809
810 out:
811         ptlrpc_req_finished(req);
812         RETURN(rc);
813 }
814
815 /**
816  * Cleanup orphans on OST
817  *
818  * This function is called in a contex of a dedicated thread handling
819  * all the precreation suff. The function waits till local recovery
820  * is complete, then identify all the unreferenced objects (orphans)
821  * using the highest ID referenced by a local and the highest object
822  * precreated by the target. The found range is a subject to removal
823  * using specially flagged RPC. During this process OSP is marked
824  * unavailable for new objects.
825  *
826  * \param[in] env       LU environment provided by the caller
827  * \param[in] d         OSP device
828  *
829  * \retval 0            on success
830  * \retval negative     negated errno on error
831  */
832 static int osp_precreate_cleanup_orphans(struct lu_env *env,
833                                          struct osp_device *d)
834 {
835         struct osp_thread_info  *osi = osp_env_info(env);
836         struct lu_fid           *last_fid = &osi->osi_fid;
837         struct ptlrpc_request   *req = NULL;
838         struct obd_import       *imp;
839         struct ost_body         *body;
840         int                      update_status = 0;
841         int                      rc;
842         int                      diff;
843
844         ENTRY;
845
846         /*
847          * Do cleanup orphans only with a first connection, after that
848          * all precreate requests uses resend/replay flags to support OST
849          * failover/reconnect.
850          */
851         if (d->opd_cleanup_orphans_done) {
852                 rc = osp_get_lastfid_from_ost(env, d, false);
853                 RETURN(0);
854         }
855         /*
856          * wait for local recovery to finish, so we can cleanup orphans
857          * orphans are all objects since "last used" (assigned), but
858          * there might be objects reserved and in some cases they won't
859          * be used. we can't cleanup them till we're sure they won't be
860          * used. also can't we allow new reservations because they may
861          * end up getting orphans being cleaned up below. so we block
862          * new reservations and wait till all reserved objects either
863          * user or released.
864          */
865         spin_lock(&d->opd_pre_lock);
866         d->opd_pre_recovering = 1;
867         spin_unlock(&d->opd_pre_lock);
868         /*
869          * The locking above makes sure the opd_pre_reserved check below will
870          * catch all osp_precreate_reserve() calls who find
871          * "!opd_pre_recovering".
872          */
873         wait_event_idle(d->opd_pre_waitq,
874                         (!d->opd_pre_reserved && d->opd_recovery_completed) ||
875                         !d->opd_pre_task || d->opd_got_disconnected);
876         if (!d->opd_pre_task || d->opd_got_disconnected)
877                 GOTO(out, rc = -EAGAIN);
878
879         CDEBUG(D_HA, "%s: going to cleanup orphans since "DFID"\n",
880                d->opd_obd->obd_name, PFID(&d->opd_last_used_fid));
881
882         OBD_FAIL_TIMEOUT(OBD_FAIL_MDS_DELAY_DELORPHAN, cfs_fail_val);
883
884         *last_fid = d->opd_last_used_fid;
885         /* The OSP should already get the valid seq now */
886         LASSERT(!fid_is_zero(last_fid));
887         if (fid_oid(&d->opd_last_used_fid) < 2) {
888                 /* lastfid looks strange... ask OST */
889                 rc = osp_get_lastfid_from_ost(env, d, true);
890                 if (rc)
891                         GOTO(out, rc);
892         }
893
894         imp = d->opd_obd->u.cli.cl_import;
895         LASSERT(imp);
896
897         req = ptlrpc_request_alloc(imp, &RQF_OST_CREATE);
898         if (req == NULL)
899                 GOTO(out, rc = -ENOMEM);
900
901         rc = ptlrpc_request_pack(req, LUSTRE_OST_VERSION, OST_CREATE);
902         if (rc) {
903                 ptlrpc_request_free(req);
904                 req = NULL;
905                 GOTO(out, rc);
906         }
907
908         body = req_capsule_client_get(&req->rq_pill, &RMF_OST_BODY);
909         if (body == NULL)
910                 GOTO(out, rc = -EPROTO);
911
912         body->oa.o_flags = OBD_FL_DELORPHAN;
913         body->oa.o_valid = OBD_MD_FLFLAGS | OBD_MD_FLGROUP;
914
915         fid_to_ostid(&d->opd_last_used_fid, &body->oa.o_oi);
916
917         ptlrpc_request_set_replen(req);
918
919         /* Don't resend the delorphan req */
920         req->rq_no_resend = req->rq_no_delay = 1;
921
922         rc = ptlrpc_queue_wait(req);
923         if (rc) {
924                 update_status = 1;
925                 GOTO(out, rc);
926         }
927
928         body = req_capsule_server_get(&req->rq_pill, &RMF_OST_BODY);
929         if (body == NULL)
930                 GOTO(out, rc = -EPROTO);
931
932         /*
933          * OST provides us with id new pool starts from in body->oa.o_id
934          */
935         ostid_to_fid(last_fid, &body->oa.o_oi, d->opd_index);
936
937         spin_lock(&d->opd_pre_lock);
938         diff = osp_fid_diff(&d->opd_last_used_fid, last_fid);
939         if (diff > 0) {
940                 d->opd_pre_create_count = OST_MIN_PRECREATE + diff;
941                 d->opd_pre_last_created_fid = d->opd_last_used_fid;
942         } else {
943                 d->opd_pre_create_count = OST_MIN_PRECREATE;
944                 d->opd_pre_last_created_fid = *last_fid;
945         }
946         /*
947          * This empties the pre-creation pool and effectively blocks any new
948          * reservations.
949          */
950         LASSERTF(fid_oid(&d->opd_pre_last_created_fid) <= IDIF_MAX_OID,
951                  "%s: last_created_fid "DFID" > %llu\n",
952                  d->opd_obd->obd_name, PFID(&d->opd_pre_last_created_fid),
953                  IDIF_MAX_OID);
954         d->opd_pre_used_fid = d->opd_pre_last_created_fid;
955         d->opd_pre_create_slow = 0;
956         if ((body->oa.o_valid & OBD_MD_FLSIZE) && body->oa.o_size)
957                 d->opd_pre_seq_width = body->oa.o_size;
958         spin_unlock(&d->opd_pre_lock);
959
960         CDEBUG(D_HA, "%s: Got last_id "DFID" from OST, last_created "DFID
961                "last_used is "DFID"\n", d->opd_obd->obd_name, PFID(last_fid),
962                PFID(&d->opd_pre_last_created_fid), PFID(&d->opd_last_used_fid));
963 out:
964         if (req)
965                 ptlrpc_req_finished(req);
966
967
968         /*
969          * If rc is zero, the pre-creation window should have been emptied.
970          * Since waking up the herd would be useless without pre-created
971          * objects, we defer the signal to osp_precreate_send() in that case.
972          */
973         if (rc != 0) {
974                 if (update_status) {
975                         CERROR("%s: cannot cleanup orphans: rc = %d\n",
976                                d->opd_obd->obd_name, rc);
977                         /* we can't proceed from here, OST seem to
978                          * be in a bad shape, better to wait for
979                          * a new instance of the server and repeat
980                          * from the beginning. notify possible waiters
981                          * this OSP isn't quite functional yet */
982                         osp_pre_update_status(d, rc);
983                 } else {
984                         wake_up_all(&d->opd_pre_user_waitq);
985                 }
986         } else {
987                 spin_lock(&d->opd_pre_lock);
988                 d->opd_pre_recovering = 0;
989                 spin_unlock(&d->opd_pre_lock);
990                 d->opd_cleanup_orphans_done = true;
991         }
992
993         RETURN(rc);
994 }
995
996 /**
997  * Update precreate status using statfs data
998  *
999  * The function decides whether this OSP should be used for new objects.
1000  * IOW, whether this OST is used up or has some free space. Cached statfs
1001  * data is used to make this decision. If the latest result of statfs
1002  * request (rc argument) is not success, then just mark OSP unavailable
1003  * right away.
1004  *
1005  * The new statfs data is passed in \a msfs and needs to be stored into
1006  * opd_statfs, but only after the various flags in os_state are set, so
1007  * that the new statfs data is not visible without appropriate flags set.
1008  * As such, there is no need to clear the flags here, since this is called
1009  * with new statfs data, and they should not be cleared if sent from OST.
1010  *
1011  * Add a bit of hysteresis so this flag isn't continually flapping, and
1012  * ensure that new files don't get extremely fragmented due to only a
1013  * small amount of available space in the filesystem.  We want to set
1014  * the ENOSPC/ENOINO flags unconditionally when there is less than the
1015  * reserved size free, and still copy them from the old state when there
1016  * is less than 2*reserved size free space or inodes.
1017  *
1018  * \param[in] d         OSP device
1019  * \param[in] msfs      statfs data
1020  */
1021 static void osp_pre_update_msfs(struct osp_device *d, struct obd_statfs *msfs)
1022 {
1023         u32 old_state = d->opd_statfs.os_state;
1024         u64 available_mb;
1025
1026         /* statfs structure not initialized yet */
1027         if (unlikely(!msfs->os_type))
1028                 return;
1029
1030         /* if the low and high watermarks have not been initialized yet */
1031         if (unlikely(d->opd_reserved_mb_high == 0 &&
1032                      d->opd_reserved_mb_low == 0)) {
1033                 /* Use ~0.1% by default to disable object allocation,
1034                  * and ~0.2% to enable, size in MB, set both watermark
1035                  */
1036                 spin_lock(&d->opd_pre_lock);
1037                 if (d->opd_reserved_mb_high == 0 &&
1038                     d->opd_reserved_mb_low == 0) {
1039                         d->opd_reserved_mb_low = ((msfs->os_bsize >> 10) *
1040                                                   msfs->os_blocks) >> 20;
1041                         if (d->opd_reserved_mb_low < 1)
1042                                 d->opd_reserved_mb_low = 1;
1043                         d->opd_reserved_mb_high =
1044                                 (d->opd_reserved_mb_low << 1) + 1;
1045                 }
1046                 spin_unlock(&d->opd_pre_lock);
1047         }
1048
1049         if (unlikely(d->opd_reserved_ino_high == 0 &&
1050                      d->opd_reserved_ino_low == 0)) {
1051                 /* Use ~0.0001% by default to disallow distributed transactions,
1052                  * and ~0.0002% to allow, set both watermark
1053                  */
1054                 spin_lock(&d->opd_pre_lock);
1055                 if (d->opd_reserved_ino_high == 0 &&
1056                     d->opd_reserved_ino_low == 0) {
1057                         d->opd_reserved_ino_low = msfs->os_ffree >> 20;
1058                         if (d->opd_reserved_ino_low < 32)
1059                                 d->opd_reserved_ino_low = 32;
1060                         d->opd_reserved_ino_high =
1061                                 (d->opd_reserved_ino_low << 1) + 1;
1062                 }
1063                 spin_unlock(&d->opd_pre_lock);
1064         }
1065
1066         available_mb = (msfs->os_bavail * (msfs->os_bsize >> 10)) >> 10;
1067         if (msfs->os_ffree < d->opd_reserved_ino_low)
1068                 msfs->os_state |= OS_STATFS_ENOINO;
1069         else if (msfs->os_ffree <= d->opd_reserved_ino_high)
1070                 msfs->os_state |= old_state & OS_STATFS_ENOINO;
1071         /* else don't clear flags in new msfs->os_state sent from OST */
1072
1073         if (available_mb < d->opd_reserved_mb_low)
1074                 msfs->os_state |= OS_STATFS_ENOSPC;
1075         else if (available_mb <= d->opd_reserved_mb_high)
1076                 msfs->os_state |= old_state & OS_STATFS_ENOSPC;
1077         /* else don't clear flags in new msfs->os_state sent from OST */
1078
1079         CDEBUG(D_INFO,
1080                "%s: blocks=%llu free=%llu avail=%llu avail_mb=%llu hwm_mb=%u files=%llu ffree=%llu state=%x: rc = %d\n",
1081                d->opd_obd->obd_name, msfs->os_blocks, msfs->os_bfree,
1082                msfs->os_bavail, available_mb, d->opd_reserved_mb_high,
1083                msfs->os_files, msfs->os_ffree, msfs->os_state,
1084                d->opd_pre ? d->opd_pre_status : 0);
1085
1086         if (!d->opd_pre)
1087                 goto update;
1088
1089         if (msfs->os_state & (OS_STATFS_ENOINO | OS_STATFS_ENOSPC)) {
1090                 d->opd_pre_status = -ENOSPC;
1091                 if (!(old_state & (OS_STATFS_ENOINO | OS_STATFS_ENOSPC)))
1092                         CDEBUG(D_INFO, "%s: full: state=%x: rc = %x\n",
1093                                d->opd_obd->obd_name, msfs->os_state,
1094                                d->opd_pre_status);
1095                 CDEBUG(D_INFO, "uncommitted changes=%u in_progress=%u\n",
1096                        atomic_read(&d->opd_sync_changes),
1097                        atomic_read(&d->opd_sync_rpcs_in_progress));
1098         } else if (old_state & (OS_STATFS_ENOINO | OS_STATFS_ENOSPC)) {
1099                 d->opd_pre_status = 0;
1100                 spin_lock(&d->opd_pre_lock);
1101                 d->opd_pre_create_slow = 0;
1102                 d->opd_pre_create_count = OST_MIN_PRECREATE;
1103                 spin_unlock(&d->opd_pre_lock);
1104                 wake_up(&d->opd_pre_waitq);
1105
1106                 CDEBUG(D_INFO,
1107                        "%s: available: state=%x: rc = %d\n",
1108                        d->opd_obd->obd_name, msfs->os_state,
1109                        d->opd_pre_status);
1110         } else {
1111                 /* we only get here if rc == 0 in the caller */
1112                 d->opd_pre_status = 0;
1113         }
1114
1115         /* Object precreation skipped on OST if manually disabled */
1116         if (d->opd_pre_max_create_count == 0)
1117                 msfs->os_state |= OS_STATFS_NOPRECREATE;
1118         /* else don't clear flags in new msfs->os_state sent from OST */
1119
1120 update:
1121         /* copy only new statfs state to make it visible to MDS threads */
1122         if (&d->opd_statfs != msfs)
1123                 d->opd_statfs = *msfs;
1124 }
1125
1126 /**
1127  * Initialize FID for precreation
1128  *
1129  * For a just created new target, a new sequence should be taken.
1130  * The function checks there is no IDIF in use (if the target was
1131  * added with the older version of Lustre), then requests a new
1132  * sequence from FLDB using the regular protocol. Then this new
1133  * sequence is stored on a persisten storage synchronously to prevent
1134  * possible object leakage (for the detail see the description for
1135  * osp_precreate_rollover_new_seq()).
1136  *
1137  * \param[in] osp       OSP device
1138  *
1139  * \retval 0            on success
1140  * \retval negative     negated errno on error
1141  */
1142 int osp_init_pre_fid(struct lu_env *env, struct osp_device *osp)
1143 {
1144         struct osp_thread_info  *osi;
1145         struct lu_client_seq    *cli_seq;
1146         struct lu_fid           *last_fid;
1147         int                     rc;
1148         ENTRY;
1149
1150         LASSERT(osp->opd_pre != NULL);
1151
1152         /* Let's check if the current last_seq/fid is valid,
1153          * otherwise request new sequence from the controller */
1154         if (osp_is_fid_client(osp) && osp->opd_group != 0) {
1155                 /* Non-MDT0 can only use normal sequence for
1156                  * OST objects */
1157                 if (fid_is_norm(&osp->opd_last_used_fid))
1158                         RETURN(0);
1159         } else {
1160                 /* Initially MDT0 will start with IDIF, after
1161                  * that it will request new sequence from the
1162                  * controller */
1163                 if (fid_is_idif(&osp->opd_last_used_fid) ||
1164                     fid_is_norm(&osp->opd_last_used_fid))
1165                         RETURN(0);
1166         }
1167
1168         if (!fid_is_zero(&osp->opd_last_used_fid))
1169                 CWARN("%s: invalid last used fid "DFID
1170                       ", try to get new sequence.\n",
1171                       osp->opd_obd->obd_name,
1172                       PFID(&osp->opd_last_used_fid));
1173
1174         osi = osp_env_info(env);
1175         last_fid = &osi->osi_fid;
1176         fid_zero(last_fid);
1177         /* For a freshed fs, it will allocate a new sequence first */
1178         if (osp_is_fid_client(osp) && osp->opd_group != 0) {
1179                 cli_seq = osp->opd_obd->u.cli.cl_seq;
1180                 rc = seq_client_get_seq(env, cli_seq, &last_fid->f_seq);
1181                 if (rc != 0) {
1182                         CERROR("%s: alloc fid error: rc = %d\n",
1183                                osp->opd_obd->obd_name, rc);
1184                         GOTO(out, rc);
1185                 }
1186         } else {
1187                 last_fid->f_seq = fid_idif_seq(0, osp->opd_index);
1188         }
1189         last_fid->f_oid = 1;
1190         last_fid->f_ver = 0;
1191
1192         spin_lock(&osp->opd_pre_lock);
1193         osp->opd_last_used_fid = *last_fid;
1194         osp->opd_pre_used_fid = *last_fid;
1195         osp->opd_pre_last_created_fid = *last_fid;
1196         spin_unlock(&osp->opd_pre_lock);
1197         rc = osp_write_last_oid_seq_files(env, osp, last_fid, 1);
1198         if (rc != 0) {
1199                 CERROR("%s: write fid error: rc = %d\n",
1200                        osp->opd_obd->obd_name, rc);
1201                 GOTO(out, rc);
1202         }
1203 out:
1204         RETURN(rc);
1205 }
1206
1207 struct opt_args {
1208         struct osp_device       *opta_dev;
1209         struct lu_env           opta_env;
1210         struct completion       *opta_started;
1211 };
1212 /**
1213  * The core of precreate functionality
1214  *
1215  * The function implements the main precreation loop. Basically it
1216  * involves connecting to the target, precerate FID initialization,
1217  * identifying and removing orphans, then serving precreation. As
1218  * part of the latter, the thread is responsible for statfs data
1219  * updates. The precreation is mostly driven by another threads
1220  * asking for new OST objects - those askers wake the thread when
1221  * the number of precreated objects reach low watermark.
1222  * After a disconnect, the sequence above repeats. This is keep going
1223  * until the thread is requested to stop.
1224  *
1225  * \param[in] _arg      private data the thread (OSP device to handle)
1226  *
1227  * \retval 0            on success
1228  * \retval negative     negated errno on error
1229  */
1230 static int osp_precreate_thread(void *_args)
1231 {
1232         struct opt_args         *args = _args;
1233         struct osp_device       *d = args->opta_dev;
1234         struct lu_env           *env = &args->opta_env;
1235         int                      rc;
1236
1237         ENTRY;
1238
1239         complete(args->opta_started);
1240
1241         /* wait for connection from the layers above */
1242         wait_event_idle(d->opd_pre_waitq,
1243                         kthread_should_stop() ||
1244                         d->opd_obd->u.cli.cl_seq->lcs_exp != NULL);
1245
1246         while (!kthread_should_stop()) {
1247                 /*
1248                  * need to be connected to OST
1249                  */
1250                 while (!kthread_should_stop()) {
1251                         if ((d->opd_pre == NULL || d->opd_pre_recovering) &&
1252                             d->opd_imp_connected &&
1253                             !d->opd_got_disconnected)
1254                                 break;
1255                         wait_event_idle(d->opd_pre_waitq,
1256                                         kthread_should_stop() ||
1257                                         d->opd_new_connection);
1258
1259                         if (!d->opd_new_connection)
1260                                 continue;
1261
1262                         OBD_FAIL_TIMEOUT(OBD_FAIL_OSP_CON_EVENT_DELAY,
1263                                          cfs_fail_val);
1264                         d->opd_new_connection = 0;
1265                         d->opd_got_disconnected = 0;
1266                         break;
1267                 }
1268
1269                 if (kthread_should_stop())
1270                         break;
1271
1272                 if (d->opd_pre) {
1273                         LASSERT(d->opd_obd->u.cli.cl_seq != NULL);
1274                         LASSERT(d->opd_obd->u.cli.cl_seq->lcs_exp != NULL);
1275
1276                         /* Init fid for osp_precreate if necessary */
1277                         rc = osp_init_pre_fid(env, d);
1278                         if (rc != 0) {
1279                                 class_export_put(d->opd_exp);
1280                                 d->opd_obd->u.cli.cl_seq->lcs_exp = NULL;
1281                                 CERROR("%s: init pre fid error: rc = %d\n",
1282                                                 d->opd_obd->obd_name, rc);
1283                                 continue;
1284                         }
1285                 }
1286
1287                 if (osp_statfs_update(env, d)) {
1288                         if (wait_event_idle_timeout(d->opd_pre_waitq,
1289                                                     kthread_should_stop(),
1290                                                     cfs_time_seconds(5)) == 0)
1291                                 l_wait_event_abortable(
1292                                         d->opd_pre_waitq,
1293                                         kthread_should_stop());
1294                         continue;
1295                 }
1296
1297                 if (d->opd_pre) {
1298                         /*
1299                          * Clean up orphans or recreate missing objects.
1300                          */
1301                         rc = osp_precreate_cleanup_orphans(env, d);
1302                         if (rc != 0) {
1303                                 schedule_timeout_interruptible(cfs_time_seconds(1));
1304                                 continue;
1305                         }
1306                 }
1307
1308                 /*
1309                  * connected, can handle precreates now
1310                  */
1311                 while (!kthread_should_stop()) {
1312                         wait_event_idle(d->opd_pre_waitq,
1313                                         kthread_should_stop() ||
1314                                         (osp_precreate_near_empty(env, d) &&
1315                                          !(osp_precreate_end_seq(env, d) &&
1316                                            osp_objs_precreated(env, d) != 0)) ||
1317                                         osp_statfs_need_update(d) ||
1318                                         d->opd_got_disconnected);
1319
1320                         if (kthread_should_stop())
1321                                 break;
1322
1323                         /* something happened to the connection
1324                          * have to start from the beginning */
1325                         if (d->opd_got_disconnected)
1326                                 break;
1327
1328                         if (osp_statfs_need_update(d))
1329                                 if (osp_statfs_update(env, d))
1330                                         break;
1331
1332                         if (d->opd_pre == NULL)
1333                                 continue;
1334
1335                         /* To avoid handling different seq in precreate/orphan
1336                          * cleanup, it will hold precreate until current seq is
1337                          * used up. */
1338                         if (unlikely(osp_precreate_end_seq(env, d))) {
1339                                 if (osp_objs_precreated(env, d) == 0) {
1340                                         rc = osp_precreate_rollover_new_seq(env, d);
1341                                         if (rc)
1342                                                 continue;
1343                                 } else {
1344                                         continue;
1345                                 }
1346                         }
1347
1348                         if (osp_precreate_near_empty(env, d)) {
1349                                 rc = osp_precreate_send(env, d);
1350                                 /* osp_precreate_send() sets opd_pre_status
1351                                  * in case of error, that prevent the using of
1352                                  * failed device. */
1353                                 if (rc < 0 && rc != -ENOSPC &&
1354                                     rc != -ETIMEDOUT && rc != -ENOTCONN)
1355                                         CERROR("%s: cannot precreate objects:"
1356                                                " rc = %d\n",
1357                                                d->opd_obd->obd_name, rc);
1358                         }
1359                 }
1360         }
1361
1362         lu_env_fini(env);
1363         OBD_FREE_PTR(args);
1364
1365         RETURN(0);
1366 }
1367
1368 /**
1369  * Check when to stop to wait for precreate objects.
1370  *
1371  * The caller wanting a new OST object can't wait undefinitely. The
1372  * function checks for few conditions including available new OST
1373  * objects, disconnected OST, lack of space with no pending destroys,
1374  * etc. IOW, it checks whether the current OSP state is good to keep
1375  * waiting or it's better to give up.
1376  *
1377  * \param[in] env       LU environment provided by the caller
1378  * \param[in] d         OSP device
1379  *
1380  * \retval              0 - keep waiting, 1 - no luck
1381  */
1382 static int osp_precreate_ready_condition(const struct lu_env *env,
1383                                          struct osp_device *d)
1384 {
1385         /* Bail out I/O fails to OST */
1386         if (d->opd_pre_status != 0 &&
1387             d->opd_pre_status != -EAGAIN &&
1388             d->opd_pre_status != -ENODEV &&
1389             d->opd_pre_status != -ENOTCONN &&
1390             d->opd_pre_status != -ENOSPC) {
1391                 /* DEBUG LU-3230 */
1392                 if (d->opd_pre_status != -EIO)
1393                         CERROR("%s: precreate failed opd_pre_status %d\n",
1394                                d->opd_obd->obd_name, d->opd_pre_status);
1395                 return 1;
1396         }
1397
1398         if (d->opd_pre_recovering || d->opd_force_creation)
1399                 return 0;
1400
1401         /* ready if got enough precreated objects */
1402         /* we need to wait for others (opd_pre_reserved) and our object (+1) */
1403         if (d->opd_pre_reserved + 1 < osp_objs_precreated(env, d))
1404                 return 1;
1405
1406         /* ready if OST reported no space and no destroys in progress */
1407         if (atomic_read(&d->opd_sync_changes) +
1408             atomic_read(&d->opd_sync_rpcs_in_progress) == 0 &&
1409             d->opd_pre_status == -ENOSPC)
1410                 return 1;
1411
1412         return 0;
1413 }
1414
1415 /**
1416  * Reserve object in precreate pool
1417  *
1418  * When the caller wants to create a new object on this target (target
1419  * represented by the given OSP), it should declare this intention using
1420  * a regular ->dt_declare_create() OSD API method. Then OSP will be trying
1421  * to reserve an object in the existing precreated pool or wait up to
1422  * obd_timeout for the available object to appear in the pool (a dedicated
1423  * thread will be doing real precreation in background). The object can be
1424  * consumed later with osp_precreate_get_fid() or be released with call to
1425  * lu_object_put(). Notice the function doesn't reserve a specific ID, just
1426  * some ID. The actual ID assignment happen in osp_precreate_get_fid().
1427  * If the space on the target is short and there is a pending object destroy,
1428  * then the function forces local commit to speedup space release (see
1429  * osp_sync.c for the details).
1430  *
1431  * \param[in] env       LU environment provided by the caller
1432  * \param[in] d         OSP device
1433  *
1434  * \retval              0 on success
1435  * \retval              -ENOSPC when no space on OST
1436  * \retval              -EAGAIN try later, slow precreation in progress
1437  * \retval              -EIO when no access to OST
1438  */
1439 int osp_precreate_reserve(const struct lu_env *env, struct osp_device *d,
1440                           bool can_block)
1441 {
1442         time64_t expire = ktime_get_seconds() + obd_timeout;
1443         int precreated, rc, synced = 0;
1444
1445         ENTRY;
1446
1447         LASSERTF(osp_objs_precreated(env, d) >= 0, "Last created FID "DFID
1448                  "Next FID "DFID"\n", PFID(&d->opd_pre_last_created_fid),
1449                  PFID(&d->opd_pre_used_fid));
1450
1451         /* opd_pre_max_create_count 0 to not use specified OST. */
1452         if (d->opd_pre_max_create_count == 0)
1453                 RETURN(-ENOBUFS);
1454
1455         /*
1456          * wait till:
1457          *  - preallocation is done
1458          *  - no free space expected soon
1459          *  - can't connect to OST for too long (obd_timeout)
1460          *  - OST can allocate fid sequence.
1461          */
1462         while ((rc = d->opd_pre_status) == 0 || rc == -ENOSPC ||
1463                 rc == -ENODEV || rc == -EAGAIN || rc == -ENOTCONN) {
1464
1465                 /*
1466                  * increase number of precreations
1467                  */
1468                 precreated = osp_objs_precreated(env, d);
1469                 if (d->opd_pre_create_count < d->opd_pre_max_create_count &&
1470                     d->opd_pre_create_slow == 0 &&
1471                     precreated <= (d->opd_pre_create_count / 4 + 1)) {
1472                         spin_lock(&d->opd_pre_lock);
1473                         d->opd_pre_create_slow = 1;
1474                         d->opd_pre_create_count *= 2;
1475                         spin_unlock(&d->opd_pre_lock);
1476                 }
1477
1478                 spin_lock(&d->opd_pre_lock);
1479                 precreated = osp_objs_precreated(env, d);
1480                 if (!d->opd_pre_recovering && !d->opd_force_creation) {
1481                         if (precreated > d->opd_pre_reserved) {
1482                                 d->opd_pre_reserved++;
1483                                 spin_unlock(&d->opd_pre_lock);
1484                                 rc = 0;
1485
1486                                 /*
1487                                  * XXX: don't wake up if precreation
1488                                  * is in progress
1489                                  */
1490                                 if (osp_precreate_near_empty_nolock(env, d) &&
1491                                    !osp_precreate_end_seq_nolock(env, d))
1492                                         wake_up(&d->opd_pre_waitq);
1493
1494                                 break;
1495                         } else if (unlikely(precreated &&
1496                                    osp_precreate_end_seq_nolock(env, d))) {
1497                                 /*
1498                                  * precreate pool is reaching the end of the
1499                                  * current seq, and doesn't have enough objects
1500                                  */
1501                                 rc = -ENOSPC;
1502                                 spin_unlock(&d->opd_pre_lock);
1503                                 break;
1504                         }
1505                 }
1506                 spin_unlock(&d->opd_pre_lock);
1507
1508                 /*
1509                  * all precreated objects have been used and no-space
1510                  * status leave us no chance to succeed very soon
1511                  * but if there is destroy in progress, then we should
1512                  * wait till that is done - some space might be released
1513                  */
1514                 if (unlikely(rc == -ENOSPC)) {
1515                         if (atomic_read(&d->opd_sync_changes) && synced == 0) {
1516                                 /* force local commit to release space */
1517                                 dt_commit_async(env, d->opd_storage);
1518                                 osp_sync_check_for_work(d);
1519                                 synced = 1;
1520                         }
1521                         if (atomic_read(&d->opd_sync_rpcs_in_progress)) {
1522                                 /* just wait till destroys are done
1523                                  * see wait_event_idle_timeout() below
1524                                  */
1525                         }
1526                         if (atomic_read(&d->opd_sync_changes) +
1527                             atomic_read(&d->opd_sync_rpcs_in_progress) == 0) {
1528                                 /* no hope for free space */
1529                                 break;
1530                         }
1531                 }
1532
1533                 /* XXX: don't wake up if precreation is in progress */
1534                 wake_up(&d->opd_pre_waitq);
1535
1536                 if (ktime_get_seconds() >= expire) {
1537                         rc = -ETIMEDOUT;
1538                         break;
1539                 }
1540
1541                 if (!can_block) {
1542                         LASSERT(d->opd_pre);
1543                         rc = -ENOBUFS;
1544                         break;
1545                 }
1546
1547                 CDEBUG(D_INFO, "%s: Sleeping on objects\n",
1548                        d->opd_obd->obd_name);
1549                 if (wait_event_idle_timeout(
1550                             d->opd_pre_user_waitq,
1551                             osp_precreate_ready_condition(env, d),
1552                             cfs_time_seconds(obd_timeout)) == 0) {
1553                         CDEBUG(D_HA,
1554                                "%s: slow creates, last="DFID", next="DFID", "
1555                                "reserved=%llu, sync_changes=%u, "
1556                                "sync_rpcs_in_progress=%d, status=%d\n",
1557                                d->opd_obd->obd_name,
1558                                PFID(&d->opd_pre_last_created_fid),
1559                                PFID(&d->opd_pre_used_fid), d->opd_pre_reserved,
1560                                atomic_read(&d->opd_sync_changes),
1561                                atomic_read(&d->opd_sync_rpcs_in_progress),
1562                                d->opd_pre_status);
1563                 } else {
1564                         CDEBUG(D_INFO, "%s: Waked up, status=%d\n",
1565                                d->opd_obd->obd_name, d->opd_pre_status);
1566                 }
1567         }
1568
1569         RETURN(rc);
1570 }
1571
1572 /**
1573  * Get a FID from precreation pool
1574  *
1575  * The function is a companion for osp_precreate_reserve() - it assigns
1576  * a specific FID from the precreate. The function should be called only
1577  * if the call to osp_precreate_reserve() was successful. The function
1578  * updates a local storage to remember the highest object ID referenced
1579  * by the node in the given sequence.
1580  *
1581  * A very importan details: this is supposed to be called once the
1582  * transaction is started, so on-disk update will be atomic with the
1583  * data (like LOVEA) refering this object. Then the object won't be leaked:
1584  * either it's referenced by the committed transaction or it's a subject
1585  * to the orphan cleanup procedure.
1586  *
1587  * \param[in] env       LU environment provided by the caller
1588  * \param[in] d         OSP device
1589  * \param[out] fid      generated FID
1590  *
1591  * \retval 0            on success
1592  * \retval negative     negated errno on error
1593  */
1594 int osp_precreate_get_fid(const struct lu_env *env, struct osp_device *d,
1595                           struct lu_fid *fid)
1596 {
1597         struct lu_fid *pre_used_fid = &d->opd_pre_used_fid;
1598
1599         /* grab next id from the pool */
1600         spin_lock(&d->opd_pre_lock);
1601
1602         LASSERTF(osp_fid_diff(&d->opd_pre_used_fid,
1603                              &d->opd_pre_last_created_fid) < 0,
1604                  "next fid "DFID" > last created fid "DFID"\n",
1605                  PFID(&d->opd_pre_used_fid),
1606                  PFID(&d->opd_pre_last_created_fid));
1607
1608         /* Non-IDIF FIDs shouldn't get here with OID == OBIF_MAX_OID. For IDIF,
1609          * f_oid wraps and "f_seq" (holding high 16 bits of ID) needs increment
1610          */
1611         if (fid_is_idif(pre_used_fid) &&
1612             unlikely(fid_oid(pre_used_fid) == OBIF_MAX_OID)) {
1613                 struct ost_id oi;
1614                 __u32 idx = fid_idif_ost_idx(pre_used_fid);
1615
1616                 fid_to_ostid(pre_used_fid, &oi);
1617                 oi.oi.oi_id++;
1618                 ostid_to_fid(pre_used_fid, &oi, idx);
1619         } else {
1620                 pre_used_fid->f_oid++;
1621         }
1622
1623         memcpy(fid, pre_used_fid, sizeof(*fid));
1624         d->opd_pre_reserved--;
1625         /*
1626          * last_used_id must be changed along with getting new id otherwise
1627          * we might miscalculate gap causing object loss or leak
1628          */
1629         osp_update_last_fid(d, fid);
1630         spin_unlock(&d->opd_pre_lock);
1631
1632         /*
1633          * probably main thread suspended orphan cleanup till
1634          * all reservations are released, see comment in
1635          * osp_precreate_thread() just before orphan cleanup
1636          */
1637         if (unlikely(d->opd_pre_reserved == 0 &&
1638                      (d->opd_pre_recovering || d->opd_pre_status)))
1639                 wake_up(&d->opd_pre_waitq);
1640
1641         return 0;
1642 }
1643
1644 /*
1645  * Set size regular attribute on an object
1646  *
1647  * When a striping is created late, it's possible that size is already
1648  * initialized on the file. Then the new striping should inherit size
1649  * from the file. The function sets size on the object using the regular
1650  * protocol (OST_PUNCH).
1651  * XXX: should be re-implemented using OUT ?
1652  *
1653  * \param[in] env       LU environment provided by the caller
1654  * \param[in] dt        object
1655  * \param[in] size      size to set.
1656  *
1657  * \retval 0            on success
1658  * \retval negative     negated errno on error
1659  */
1660 int osp_object_truncate(const struct lu_env *env, struct dt_object *dt,
1661                         __u64 size)
1662 {
1663         struct osp_device       *d = lu2osp_dev(dt->do_lu.lo_dev);
1664         struct ptlrpc_request   *req = NULL;
1665         struct obd_import       *imp;
1666         struct ost_body         *body;
1667         struct obdo             *oa = NULL;
1668         int                      rc;
1669
1670         ENTRY;
1671
1672         imp = d->opd_obd->u.cli.cl_import;
1673         LASSERT(imp);
1674
1675         req = ptlrpc_request_alloc(imp, &RQF_OST_PUNCH);
1676         if (req == NULL)
1677                 RETURN(-ENOMEM);
1678
1679         rc = ptlrpc_request_pack(req, LUSTRE_OST_VERSION, OST_PUNCH);
1680         if (rc) {
1681                 ptlrpc_request_free(req);
1682                 RETURN(rc);
1683         }
1684
1685         /*
1686          * XXX: decide how do we do here with resend
1687          * if we don't resend, then client may see wrong file size
1688          * if we do resend, then MDS thread can get stuck for quite long
1689          * and if we don't resend, then client will also get -EAGAIN !!
1690          * (see LU-7975 and sanity/test_27F use cases)
1691          * but let's decide not to resend/delay this truncate request to OST
1692          * and allow Client to decide to resend, in a less agressive way from
1693          * after_reply(), by returning -EINPROGRESS instead of
1694          * -EAGAIN/-EAGAIN upon return from ptlrpc_queue_wait() at the
1695          * end of this routine
1696          */
1697         req->rq_no_resend = req->rq_no_delay = 1;
1698
1699         req->rq_request_portal = OST_IO_PORTAL; /* bug 7198 */
1700         ptlrpc_at_set_req_timeout(req);
1701
1702         OBD_ALLOC_PTR(oa);
1703         if (oa == NULL)
1704                 GOTO(out, rc = -ENOMEM);
1705
1706         rc = fid_to_ostid(lu_object_fid(&dt->do_lu), &oa->o_oi);
1707         LASSERT(rc == 0);
1708         oa->o_size = size;
1709         oa->o_blocks = OBD_OBJECT_EOF;
1710         oa->o_valid = OBD_MD_FLSIZE | OBD_MD_FLBLOCKS |
1711                       OBD_MD_FLID | OBD_MD_FLGROUP;
1712
1713         body = req_capsule_client_get(&req->rq_pill, &RMF_OST_BODY);
1714         LASSERT(body);
1715         lustre_set_wire_obdo(&req->rq_import->imp_connect_data, &body->oa, oa);
1716
1717         /* XXX: capa support? */
1718         /* osc_pack_capa(req, body, capa); */
1719
1720         ptlrpc_request_set_replen(req);
1721
1722         rc = ptlrpc_queue_wait(req);
1723         if (rc) {
1724                 /* -EAGAIN/-EWOULDBLOCK means OST is unreachable at the moment
1725                  * since we have decided not to resend/delay, but this could
1726                  * lead to wrong size to be seen at Client side and even process
1727                  * trying to open to exit/fail if not itself handling -EAGAIN.
1728                  * So it should be better to return -EINPROGRESS instead and
1729                  * leave the decision to resend at Client side in after_reply()
1730                  */
1731                 if (rc == -EAGAIN) {
1732                         rc = -EINPROGRESS;
1733                         CDEBUG(D_HA, "returning -EINPROGRESS instead of "
1734                                "-EWOULDBLOCK/-EAGAIN to allow Client to "
1735                                "resend\n");
1736                 } else {
1737                         CERROR("can't punch object: %d\n", rc);
1738                 }
1739         }
1740 out:
1741         ptlrpc_req_finished(req);
1742         if (oa)
1743                 OBD_FREE_PTR(oa);
1744         RETURN(rc);
1745 }
1746
1747 /**
1748  * Initialize precreation functionality of OSP
1749  *
1750  * Prepares all the internal structures and starts the precreate thread
1751  *
1752  * \param[in] d         OSP device
1753  *
1754  * \retval 0            on success
1755  * \retval negative     negated errno on error
1756  */
1757 int osp_init_precreate(struct osp_device *d)
1758 {
1759         ENTRY;
1760
1761         OBD_ALLOC_PTR(d->opd_pre);
1762         if (d->opd_pre == NULL)
1763                 RETURN(-ENOMEM);
1764
1765         /* initially precreation isn't ready */
1766         init_waitqueue_head(&d->opd_pre_user_waitq);
1767         d->opd_pre_status = -EAGAIN;
1768         fid_zero(&d->opd_pre_used_fid);
1769         d->opd_pre_used_fid.f_oid = 1;
1770         fid_zero(&d->opd_pre_last_created_fid);
1771         d->opd_pre_last_created_fid.f_oid = 1;
1772         d->opd_last_id = 0;
1773         d->opd_pre_reserved = 0;
1774         d->opd_pre_seq_width = LUSTRE_DATA_SEQ_MAX_WIDTH;
1775         d->opd_got_disconnected = 1;
1776         d->opd_pre_create_slow = 0;
1777         d->opd_pre_create_count = OST_MIN_PRECREATE;
1778         d->opd_pre_min_create_count = OST_MIN_PRECREATE;
1779         d->opd_pre_max_create_count = OST_MAX_PRECREATE;
1780         d->opd_reserved_mb_high = 0;
1781         d->opd_reserved_mb_low = 0;
1782         d->opd_cleanup_orphans_done = false;
1783         d->opd_force_creation = false;
1784
1785         RETURN(0);
1786 }
1787
1788 /**
1789  * Finish precreate functionality of OSP
1790  *
1791  *
1792  * Asks all the activity (the thread, update timer) to stop, then
1793  * wait till that is done.
1794  *
1795  * \param[in] d         OSP device
1796  */
1797 void osp_precreate_fini(struct osp_device *d)
1798 {
1799         ENTRY;
1800
1801         if (d->opd_pre == NULL)
1802                 RETURN_EXIT;
1803
1804         OBD_FREE_PTR(d->opd_pre);
1805         d->opd_pre = NULL;
1806
1807         EXIT;
1808 }
1809
1810 int osp_init_statfs(struct osp_device *d)
1811 {
1812         struct task_struct      *task;
1813         struct opt_args         *args;
1814         DECLARE_COMPLETION_ONSTACK(started);
1815         int                     rc;
1816
1817         ENTRY;
1818
1819         spin_lock_init(&d->opd_pre_lock);
1820         init_waitqueue_head(&d->opd_pre_waitq);
1821
1822         /*
1823          * Initialize statfs-related things
1824          */
1825         d->opd_statfs_maxage = 5; /* defaultupdate interval */
1826         d->opd_statfs_fresh_till = ktime_sub_ns(ktime_get(),
1827                                                 1000 * NSEC_PER_SEC);
1828         CDEBUG(D_OTHER, "current %lldns, fresh till %lldns\n",
1829                ktime_get_ns(),
1830                ktime_to_ns(d->opd_statfs_fresh_till));
1831         cfs_timer_setup(&d->opd_statfs_timer, osp_statfs_timer_cb,
1832                         (unsigned long)d, 0);
1833
1834         if (d->opd_storage->dd_rdonly)
1835                 RETURN(0);
1836
1837         OBD_ALLOC_PTR(args);
1838         if (!args)
1839                 RETURN(0);
1840         args->opta_dev = d;
1841         args->opta_started = &started;
1842         rc = lu_env_init(&args->opta_env,
1843                          d->opd_dt_dev.dd_lu_dev.ld_type->ldt_ctx_tags);
1844         if (rc) {
1845                 CERROR("%s: init env error: rc = %d\n", d->opd_obd->obd_name,
1846                        rc);
1847                 OBD_FREE_PTR(args);
1848                 RETURN(0);
1849         }
1850
1851         /*
1852          * start thread handling precreation and statfs updates
1853          */
1854         task = kthread_create(osp_precreate_thread, args,
1855                               "osp-pre-%u-%u", d->opd_index, d->opd_group);
1856         if (IS_ERR(task)) {
1857                 CERROR("can't start precreate thread %ld\n", PTR_ERR(task));
1858                 lu_env_fini(&args->opta_env);
1859                 OBD_FREE_PTR(args);
1860                 RETURN(PTR_ERR(task));
1861         }
1862         d->opd_pre_task = task;
1863         wake_up_process(task);
1864         wait_for_completion(&started);
1865
1866         RETURN(0);
1867 }
1868
1869 void osp_statfs_fini(struct osp_device *d)
1870 {
1871         struct task_struct *task = d->opd_pre_task;
1872         ENTRY;
1873
1874         timer_delete(&d->opd_statfs_timer);
1875
1876         d->opd_pre_task = NULL;
1877         if (task)
1878                 kthread_stop(task);
1879
1880         EXIT;
1881 }