1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
4 * All Rights Reserved.
5 */
6 #include "xfs_platform.h"
7 #include "xfs_fs.h"
8 #include "xfs_shared.h"
9 #include "xfs_format.h"
10 #include "xfs_log_format.h"
11 #include "xfs_trans_resv.h"
12 #include "xfs_mount.h"
13 #include "xfs_errortag.h"
14 #include "xfs_error.h"
15 #include "xfs_trans.h"
16 #include "xfs_trans_priv.h"
17 #include "xfs_log.h"
18 #include "xfs_log_priv.h"
19 #include "xfs_trace.h"
20 #include "xfs_sysfs.h"
21 #include "xfs_sb.h"
22 #include "xfs_health.h"
23 #include "xfs_zone_alloc.h"
24
25 struct xlog_write_data {
26 struct xlog_ticket *ticket;
27 struct xlog_in_core *iclog;
28 uint32_t bytes_left;
29 uint32_t record_cnt;
30 uint32_t data_cnt;
31 int log_offset;
32 };
33
34 struct kmem_cache *xfs_log_ticket_cache;
35
36 /* Local miscellaneous function prototypes */
37 STATIC struct xlog *
38 xlog_alloc_log(
39 struct xfs_mount *mp,
40 struct xfs_buftarg *log_target,
41 xfs_daddr_t blk_offset,
42 int num_bblks);
43 STATIC void
44 xlog_dealloc_log(
45 struct xlog *log);
46
47 /* local state machine functions */
48 STATIC void xlog_state_done_syncing(
49 struct xlog_in_core *iclog);
50 STATIC void xlog_state_do_callback(
51 struct xlog *log);
52 STATIC int
53 xlog_state_get_iclog_space(
54 struct xlog *log,
55 struct xlog_write_data *data);
56 STATIC void
57 xlog_sync(
58 struct xlog *log,
59 struct xlog_in_core *iclog,
60 struct xlog_ticket *ticket);
61 #if defined(DEBUG)
62 STATIC void
63 xlog_verify_iclog(
64 struct xlog *log,
65 struct xlog_in_core *iclog,
66 int count);
67 STATIC void
68 xlog_verify_tail_lsn(
69 struct xlog *log,
70 struct xlog_in_core *iclog);
71 #else
72 #define xlog_verify_iclog(a,b,c)
73 #define xlog_verify_tail_lsn(a,b)
74 #endif
75
76 STATIC int
77 xlog_iclogs_empty(
78 struct xlog *log);
79
80 static int
81 xfs_log_cover(struct xfs_mount *);
82
83 static inline void
xlog_grant_sub_space(struct xlog_grant_head * head,int64_t bytes)84 xlog_grant_sub_space(
85 struct xlog_grant_head *head,
86 int64_t bytes)
87 {
88 atomic64_sub(bytes, &head->grant);
89 }
90
91 static inline void
xlog_grant_add_space(struct xlog_grant_head * head,int64_t bytes)92 xlog_grant_add_space(
93 struct xlog_grant_head *head,
94 int64_t bytes)
95 {
96 atomic64_add(bytes, &head->grant);
97 }
98
99 static void
xlog_grant_head_init(struct xlog_grant_head * head)100 xlog_grant_head_init(
101 struct xlog_grant_head *head)
102 {
103 atomic64_set(&head->grant, 0);
104 INIT_LIST_HEAD(&head->waiters);
105 spin_lock_init(&head->lock);
106 }
107
108 void
xlog_grant_return_space(struct xlog * log,xfs_lsn_t old_head,xfs_lsn_t new_head)109 xlog_grant_return_space(
110 struct xlog *log,
111 xfs_lsn_t old_head,
112 xfs_lsn_t new_head)
113 {
114 int64_t diff = xlog_lsn_sub(log, new_head, old_head);
115
116 xlog_grant_sub_space(&log->l_reserve_head, diff);
117 xlog_grant_sub_space(&log->l_write_head, diff);
118 }
119
120 /*
121 * Return the space in the log between the tail and the head. In the case where
122 * we have overrun available reservation space, return 0. The memory barrier
123 * pairs with the smp_wmb() in xlog_cil_ail_insert() to ensure that grant head
124 * vs tail space updates are seen in the correct order and hence avoid
125 * transients as space is transferred from the grant heads to the AIL on commit
126 * completion.
127 */
128 static uint64_t
xlog_grant_space_left(struct xlog * log,struct xlog_grant_head * head)129 xlog_grant_space_left(
130 struct xlog *log,
131 struct xlog_grant_head *head)
132 {
133 int64_t free_bytes;
134
135 smp_rmb(); /* paired with smp_wmb in xlog_cil_ail_insert() */
136 free_bytes = log->l_logsize - READ_ONCE(log->l_tail_space) -
137 atomic64_read(&head->grant);
138 if (free_bytes > 0)
139 return free_bytes;
140 return 0;
141 }
142
143 STATIC void
xlog_grant_head_wake_all(struct xlog_grant_head * head)144 xlog_grant_head_wake_all(
145 struct xlog_grant_head *head)
146 {
147 struct xlog_ticket *tic;
148
149 spin_lock(&head->lock);
150 list_for_each_entry(tic, &head->waiters, t_queue)
151 wake_up_process(tic->t_task);
152 spin_unlock(&head->lock);
153 }
154
155 static inline int
xlog_ticket_reservation(struct xlog * log,struct xlog_grant_head * head,struct xlog_ticket * tic)156 xlog_ticket_reservation(
157 struct xlog *log,
158 struct xlog_grant_head *head,
159 struct xlog_ticket *tic)
160 {
161 if (head == &log->l_write_head) {
162 ASSERT(tic->t_flags & XLOG_TIC_PERM_RESERV);
163 return tic->t_unit_res;
164 }
165
166 if (tic->t_flags & XLOG_TIC_PERM_RESERV)
167 return tic->t_unit_res * tic->t_cnt;
168
169 return tic->t_unit_res;
170 }
171
172 STATIC bool
xlog_grant_head_wake(struct xlog * log,struct xlog_grant_head * head,int * free_bytes)173 xlog_grant_head_wake(
174 struct xlog *log,
175 struct xlog_grant_head *head,
176 int *free_bytes)
177 {
178 struct xlog_ticket *tic;
179 int need_bytes;
180
181 list_for_each_entry(tic, &head->waiters, t_queue) {
182 need_bytes = xlog_ticket_reservation(log, head, tic);
183 if (*free_bytes < need_bytes)
184 return false;
185
186 *free_bytes -= need_bytes;
187 trace_xfs_log_grant_wake_up(log, tic);
188 wake_up_process(tic->t_task);
189 }
190
191 return true;
192 }
193
194 STATIC int
xlog_grant_head_wait(struct xlog * log,struct xlog_grant_head * head,struct xlog_ticket * tic,int need_bytes)195 xlog_grant_head_wait(
196 struct xlog *log,
197 struct xlog_grant_head *head,
198 struct xlog_ticket *tic,
199 int need_bytes) __releases(&head->lock)
200 __acquires(&head->lock)
201 {
202 list_add_tail(&tic->t_queue, &head->waiters);
203
204 do {
205 if (xlog_is_shutdown(log))
206 goto shutdown;
207
208 __set_current_state(TASK_UNINTERRUPTIBLE);
209 spin_unlock(&head->lock);
210
211 XFS_STATS_INC(log->l_mp, xs_sleep_logspace);
212
213 /* Push on the AIL to free up all the log space. */
214 xfs_ail_push_all(log->l_ailp);
215
216 trace_xfs_log_grant_sleep(log, tic);
217 schedule();
218 trace_xfs_log_grant_wake(log, tic);
219
220 spin_lock(&head->lock);
221 if (xlog_is_shutdown(log))
222 goto shutdown;
223 } while (xlog_grant_space_left(log, head) < need_bytes);
224
225 list_del_init(&tic->t_queue);
226 return 0;
227 shutdown:
228 list_del_init(&tic->t_queue);
229 return -EIO;
230 }
231
232 /*
233 * Atomically get the log space required for a log ticket.
234 *
235 * Once a ticket gets put onto head->waiters, it will only return after the
236 * needed reservation is satisfied.
237 *
238 * This function is structured so that it has a lock free fast path. This is
239 * necessary because every new transaction reservation will come through this
240 * path. Hence any lock will be globally hot if we take it unconditionally on
241 * every pass.
242 *
243 * As tickets are only ever moved on and off head->waiters under head->lock, we
244 * only need to take that lock if we are going to add the ticket to the queue
245 * and sleep. We can avoid taking the lock if the ticket was never added to
246 * head->waiters because the t_queue list head will be empty and we hold the
247 * only reference to it so it can safely be checked unlocked.
248 */
249 STATIC int
xlog_grant_head_check(struct xlog * log,struct xlog_grant_head * head,struct xlog_ticket * tic,int * need_bytes)250 xlog_grant_head_check(
251 struct xlog *log,
252 struct xlog_grant_head *head,
253 struct xlog_ticket *tic,
254 int *need_bytes)
255 {
256 int free_bytes;
257 int error = 0;
258
259 ASSERT(!xlog_in_recovery(log));
260
261 /*
262 * If there are other waiters on the queue then give them a chance at
263 * logspace before us. Wake up the first waiters, if we do not wake
264 * up all the waiters then go to sleep waiting for more free space,
265 * otherwise try to get some space for this transaction.
266 */
267 *need_bytes = xlog_ticket_reservation(log, head, tic);
268 free_bytes = xlog_grant_space_left(log, head);
269 if (!list_empty_careful(&head->waiters)) {
270 spin_lock(&head->lock);
271 if (!xlog_grant_head_wake(log, head, &free_bytes) ||
272 free_bytes < *need_bytes) {
273 error = xlog_grant_head_wait(log, head, tic,
274 *need_bytes);
275 }
276 spin_unlock(&head->lock);
277 } else if (free_bytes < *need_bytes) {
278 spin_lock(&head->lock);
279 error = xlog_grant_head_wait(log, head, tic, *need_bytes);
280 spin_unlock(&head->lock);
281 }
282
283 return error;
284 }
285
286 bool
xfs_log_writable(struct xfs_mount * mp)287 xfs_log_writable(
288 struct xfs_mount *mp)
289 {
290 /*
291 * Do not write to the log on norecovery mounts, if the data or log
292 * devices are read-only, or if the filesystem is shutdown. Read-only
293 * mounts allow internal writes for log recovery and unmount purposes,
294 * so don't restrict that case.
295 */
296 if (xfs_has_norecovery(mp))
297 return false;
298 if (xfs_readonly_buftarg(mp->m_ddev_targp))
299 return false;
300 if (xfs_readonly_buftarg(mp->m_log->l_targ))
301 return false;
302 if (xlog_is_shutdown(mp->m_log))
303 return false;
304 return true;
305 }
306
307 /*
308 * Replenish the byte reservation required by moving the grant write head.
309 */
310 int
xfs_log_regrant(struct xfs_mount * mp,struct xlog_ticket * tic)311 xfs_log_regrant(
312 struct xfs_mount *mp,
313 struct xlog_ticket *tic)
314 {
315 struct xlog *log = mp->m_log;
316 int need_bytes;
317 int error = 0;
318
319 if (xlog_is_shutdown(log))
320 return -EIO;
321
322 XFS_STATS_INC(mp, xs_try_logspace);
323
324 /*
325 * This is a new transaction on the ticket, so we need to change the
326 * transaction ID so that the next transaction has a different TID in
327 * the log. Just add one to the existing tid so that we can see chains
328 * of rolling transactions in the log easily.
329 */
330 tic->t_tid++;
331 tic->t_curr_res = tic->t_unit_res;
332 if (tic->t_cnt > 0)
333 return 0;
334
335 trace_xfs_log_regrant(log, tic);
336
337 error = xlog_grant_head_check(log, &log->l_write_head, tic,
338 &need_bytes);
339 if (error)
340 goto out_error;
341
342 xlog_grant_add_space(&log->l_write_head, need_bytes);
343 trace_xfs_log_regrant_exit(log, tic);
344 return 0;
345
346 out_error:
347 /*
348 * If we are failing, make sure the ticket doesn't have any current
349 * reservations. We don't want to add this back when the ticket/
350 * transaction gets cancelled.
351 */
352 tic->t_curr_res = 0;
353 tic->t_cnt = 0; /* ungrant will give back unit_res * t_cnt. */
354 return error;
355 }
356
357 /*
358 * Reserve log space and return a ticket corresponding to the reservation.
359 *
360 * Each reservation is going to reserve extra space for a log record header.
361 * When writes happen to the on-disk log, we don't subtract the length of the
362 * log record header from any reservation. By wasting space in each
363 * reservation, we prevent over allocation problems.
364 */
365 int
xfs_log_reserve(struct xfs_mount * mp,int unit_bytes,int cnt,struct xlog_ticket ** ticp,bool permanent)366 xfs_log_reserve(
367 struct xfs_mount *mp,
368 int unit_bytes,
369 int cnt,
370 struct xlog_ticket **ticp,
371 bool permanent)
372 {
373 struct xlog *log = mp->m_log;
374 struct xlog_ticket *tic;
375 int need_bytes;
376 int error = 0;
377
378 if (xlog_is_shutdown(log))
379 return -EIO;
380
381 XFS_STATS_INC(mp, xs_try_logspace);
382
383 ASSERT(*ticp == NULL);
384 tic = xlog_ticket_alloc(log, unit_bytes, cnt, permanent);
385 *ticp = tic;
386 trace_xfs_log_reserve(log, tic);
387 error = xlog_grant_head_check(log, &log->l_reserve_head, tic,
388 &need_bytes);
389 if (error)
390 goto out_error;
391
392 xlog_grant_add_space(&log->l_reserve_head, need_bytes);
393 xlog_grant_add_space(&log->l_write_head, need_bytes);
394 trace_xfs_log_reserve_exit(log, tic);
395 return 0;
396
397 out_error:
398 /*
399 * If we are failing, make sure the ticket doesn't have any current
400 * reservations. We don't want to add this back when the ticket/
401 * transaction gets cancelled.
402 */
403 tic->t_curr_res = 0;
404 tic->t_cnt = 0; /* ungrant will give back unit_res * t_cnt. */
405 return error;
406 }
407
408 /*
409 * Run all the pending iclog callbacks and wake log force waiters and iclog
410 * space waiters so they can process the newly set shutdown state. We really
411 * don't care what order we process callbacks here because the log is shut down
412 * and so state cannot change on disk anymore. However, we cannot wake waiters
413 * until the callbacks have been processed because we may be in unmount and
414 * we must ensure that all AIL operations the callbacks perform have completed
415 * before we tear down the AIL.
416 *
417 * We avoid processing actively referenced iclogs so that we don't run callbacks
418 * while the iclog owner might still be preparing the iclog for IO submssion.
419 * These will be caught by xlog_state_iclog_release() and call this function
420 * again to process any callbacks that may have been added to that iclog.
421 */
422 static void
xlog_state_shutdown_callbacks(struct xlog * log)423 xlog_state_shutdown_callbacks(
424 struct xlog *log)
425 __releases(&log->l_icloglock)
426 __acquires(&log->l_icloglock)
427 {
428 struct xlog_in_core *iclog;
429 LIST_HEAD(cb_list);
430
431 iclog = log->l_iclog;
432 do {
433 if (atomic_read(&iclog->ic_refcnt)) {
434 /* Reference holder will re-run iclog callbacks. */
435 continue;
436 }
437 list_splice_init(&iclog->ic_callbacks, &cb_list);
438 spin_unlock(&log->l_icloglock);
439
440 xlog_cil_process_committed(&cb_list);
441
442 spin_lock(&log->l_icloglock);
443 wake_up_all(&iclog->ic_write_wait);
444 wake_up_all(&iclog->ic_force_wait);
445 } while ((iclog = iclog->ic_next) != log->l_iclog);
446
447 wake_up_all(&log->l_flush_wait);
448 }
449
450 /*
451 * Flush iclog to disk if this is the last reference to the given iclog and the
452 * it is in the WANT_SYNC state.
453 *
454 * If XLOG_ICL_NEED_FUA is already set on the iclog, we need to ensure that the
455 * log tail is updated correctly. NEED_FUA indicates that the iclog will be
456 * written to stable storage, and implies that a commit record is contained
457 * within the iclog. We need to ensure that the log tail does not move beyond
458 * the tail that the first commit record in the iclog ordered against, otherwise
459 * correct recovery of that checkpoint becomes dependent on future operations
460 * performed on this iclog.
461 *
462 * Hence if NEED_FUA is set and the current iclog tail lsn is empty, write the
463 * current tail into iclog. Once the iclog tail is set, future operations must
464 * not modify it, otherwise they potentially violate ordering constraints for
465 * the checkpoint commit that wrote the initial tail lsn value. The tail lsn in
466 * the iclog will get zeroed on activation of the iclog after sync, so we
467 * always capture the tail lsn on the iclog on the first NEED_FUA release
468 * regardless of the number of active reference counts on this iclog.
469 */
470 int
xlog_state_release_iclog(struct xlog * log,struct xlog_in_core * iclog,struct xlog_ticket * ticket)471 xlog_state_release_iclog(
472 struct xlog *log,
473 struct xlog_in_core *iclog,
474 struct xlog_ticket *ticket)
475 __releases(&log->l_icloglock)
476 __acquires(&log->l_icloglock)
477 {
478 bool last_ref;
479
480 lockdep_assert_held(&log->l_icloglock);
481
482 trace_xlog_iclog_release(iclog, _RET_IP_);
483 /*
484 * Grabbing the current log tail needs to be atomic w.r.t. the writing
485 * of the tail LSN into the iclog so we guarantee that the log tail does
486 * not move between the first time we know that the iclog needs to be
487 * made stable and when we eventually submit it.
488 */
489 if ((iclog->ic_state == XLOG_STATE_WANT_SYNC ||
490 (iclog->ic_flags & XLOG_ICL_NEED_FUA)) &&
491 !iclog->ic_header->h_tail_lsn) {
492 iclog->ic_header->h_tail_lsn =
493 cpu_to_be64(atomic64_read(&log->l_tail_lsn));
494 }
495
496 last_ref = atomic_dec_and_test(&iclog->ic_refcnt);
497
498 if (xlog_is_shutdown(log)) {
499 /*
500 * If there are no more references to this iclog, process the
501 * pending iclog callbacks that were waiting on the release of
502 * this iclog.
503 */
504 if (last_ref)
505 xlog_state_shutdown_callbacks(log);
506 return -EIO;
507 }
508
509 if (!last_ref)
510 return 0;
511
512 if (iclog->ic_state != XLOG_STATE_WANT_SYNC) {
513 ASSERT(iclog->ic_state == XLOG_STATE_ACTIVE);
514 return 0;
515 }
516
517 iclog->ic_state = XLOG_STATE_SYNCING;
518 xlog_verify_tail_lsn(log, iclog);
519 trace_xlog_iclog_syncing(iclog, _RET_IP_);
520
521 spin_unlock(&log->l_icloglock);
522 xlog_sync(log, iclog, ticket);
523 spin_lock(&log->l_icloglock);
524 return 0;
525 }
526
527 /*
528 * Mount a log filesystem
529 *
530 * mp - ubiquitous xfs mount point structure
531 * log_target - buftarg of on-disk log device
532 * blk_offset - Start block # where block size is 512 bytes (BBSIZE)
533 * num_bblocks - Number of BBSIZE blocks in on-disk log
534 *
535 * Return error or zero.
536 */
537 int
xfs_log_mount(xfs_mount_t * mp,struct xfs_buftarg * log_target,xfs_daddr_t blk_offset,int num_bblks)538 xfs_log_mount(
539 xfs_mount_t *mp,
540 struct xfs_buftarg *log_target,
541 xfs_daddr_t blk_offset,
542 int num_bblks)
543 {
544 struct xlog *log;
545 int error = 0;
546 int min_logfsbs;
547
548 if (!xfs_has_norecovery(mp)) {
549 xfs_notice(mp, "Mounting V%d Filesystem %pU",
550 XFS_SB_VERSION_NUM(&mp->m_sb),
551 &mp->m_sb.sb_uuid);
552 } else {
553 xfs_notice(mp,
554 "Mounting V%d filesystem %pU in no-recovery mode. Filesystem will be inconsistent.",
555 XFS_SB_VERSION_NUM(&mp->m_sb),
556 &mp->m_sb.sb_uuid);
557 ASSERT(xfs_is_readonly(mp));
558 }
559
560 log = xlog_alloc_log(mp, log_target, blk_offset, num_bblks);
561 if (IS_ERR(log)) {
562 error = PTR_ERR(log);
563 goto out;
564 }
565 mp->m_log = log;
566
567 /*
568 * Now that we have set up the log and it's internal geometry
569 * parameters, we can validate the given log space and drop a critical
570 * message via syslog if the log size is too small. A log that is too
571 * small can lead to unexpected situations in transaction log space
572 * reservation stage. The superblock verifier has already validated all
573 * the other log geometry constraints, so we don't have to check those
574 * here.
575 *
576 * Note: For v4 filesystems, we can't just reject the mount if the
577 * validation fails. This would mean that people would have to
578 * downgrade their kernel just to remedy the situation as there is no
579 * way to grow the log (short of black magic surgery with xfs_db).
580 *
581 * We can, however, reject mounts for V5 format filesystems, as the
582 * mkfs binary being used to make the filesystem should never create a
583 * filesystem with a log that is too small.
584 */
585 min_logfsbs = xfs_log_calc_minimum_size(mp);
586 if (mp->m_sb.sb_logblocks < min_logfsbs) {
587 xfs_warn(mp,
588 "Log size %d blocks too small, minimum size is %d blocks",
589 mp->m_sb.sb_logblocks, min_logfsbs);
590
591 /*
592 * Log check errors are always fatal on v5; or whenever bad
593 * metadata leads to a crash.
594 */
595 if (xfs_has_crc(mp)) {
596 xfs_crit(mp, "AAIEEE! Log failed size checks. Abort!");
597 ASSERT(0);
598 error = -EINVAL;
599 goto out_free_log;
600 }
601 xfs_crit(mp, "Log size out of supported range.");
602 xfs_crit(mp,
603 "Continuing onwards, but if log hangs are experienced then please report this message in the bug report.");
604 }
605
606 /*
607 * Initialize the AIL now we have a log.
608 */
609 error = xfs_trans_ail_init(mp);
610 if (error) {
611 xfs_warn(mp, "AIL initialisation failed: error %d", error);
612 goto out_free_log;
613 }
614 log->l_ailp = mp->m_ail;
615
616 /*
617 * skip log recovery on a norecovery mount. pretend it all
618 * just worked.
619 */
620 if (!xfs_has_norecovery(mp)) {
621 error = xlog_recover(log);
622 if (error) {
623 xfs_warn(mp, "log mount/recovery failed: error %d",
624 error);
625 xlog_recover_cancel(log);
626 goto out_destroy_ail;
627 }
628 }
629
630 error = xfs_sysfs_init(&log->l_kobj, &xfs_log_ktype, &mp->m_kobj,
631 "log");
632 if (error)
633 goto out_destroy_ail;
634
635 /* Normal transactions can now occur */
636 clear_bit(XLOG_ACTIVE_RECOVERY, &log->l_opstate);
637
638 /*
639 * Now the log has been fully initialised and we know were our
640 * space grant counters are, we can initialise the permanent ticket
641 * needed for delayed logging to work.
642 */
643 xlog_cil_init_post_recovery(log);
644
645 return 0;
646
647 out_destroy_ail:
648 xfs_trans_ail_destroy(mp);
649 out_free_log:
650 xlog_dealloc_log(log);
651 out:
652 return error;
653 }
654
655 /*
656 * Finish the recovery of the file system. This is separate from the
657 * xfs_log_mount() call, because it depends on the code in xfs_mountfs() to read
658 * in the root and real-time bitmap inodes between calling xfs_log_mount() and
659 * here.
660 *
661 * If we finish recovery successfully, start the background log work. If we are
662 * not doing recovery, then we have a RO filesystem and we don't need to start
663 * it.
664 */
665 int
xfs_log_mount_finish(struct xfs_mount * mp)666 xfs_log_mount_finish(
667 struct xfs_mount *mp)
668 {
669 struct xlog *log = mp->m_log;
670 int error = 0;
671
672 if (xfs_has_norecovery(mp)) {
673 ASSERT(xfs_is_readonly(mp));
674 return 0;
675 }
676
677 /*
678 * During the second phase of log recovery, we need iget and
679 * iput to behave like they do for an active filesystem.
680 * xfs_fs_drop_inode needs to be able to prevent the deletion
681 * of inodes before we're done replaying log items on those
682 * inodes. Turn it off immediately after recovery finishes
683 * so that we don't leak the quota inodes if subsequent mount
684 * activities fail.
685 *
686 * We let all inodes involved in redo item processing end up on
687 * the LRU instead of being evicted immediately so that if we do
688 * something to an unlinked inode, the irele won't cause
689 * premature truncation and freeing of the inode, which results
690 * in log recovery failure. We have to evict the unreferenced
691 * lru inodes after clearing SB_ACTIVE because we don't
692 * otherwise clean up the lru if there's a subsequent failure in
693 * xfs_mountfs, which leads to us leaking the inodes if nothing
694 * else (e.g. quotacheck) references the inodes before the
695 * mount failure occurs.
696 */
697 mp->m_super->s_flags |= SB_ACTIVE;
698 xfs_log_work_queue(mp);
699 if (xlog_recovery_needed(log))
700 error = xlog_recover_finish(log);
701 mp->m_super->s_flags &= ~SB_ACTIVE;
702 evict_inodes(mp->m_super);
703
704 /*
705 * Drain the buffer LRU after log recovery. This is required for v4
706 * filesystems to avoid leaving around buffers with NULL verifier ops,
707 * but we do it unconditionally to make sure we're always in a clean
708 * cache state after mount.
709 *
710 * Don't push in the error case because the AIL may have pending intents
711 * that aren't removed until recovery is cancelled.
712 */
713 if (xlog_recovery_needed(log)) {
714 if (!error) {
715 xfs_log_force(mp, XFS_LOG_SYNC);
716 xfs_ail_push_all_sync(mp->m_ail);
717 }
718 xfs_notice(mp, "Ending recovery (logdev: %s)",
719 mp->m_logname ? mp->m_logname : "internal");
720 } else {
721 xfs_info(mp, "Ending clean mount");
722 }
723 xfs_buftarg_drain(mp->m_ddev_targp);
724
725 clear_bit(XLOG_RECOVERY_NEEDED, &log->l_opstate);
726
727 /* Make sure the log is dead if we're returning failure. */
728 ASSERT(!error || xlog_is_shutdown(log));
729
730 return error;
731 }
732
733 /*
734 * The mount has failed. Cancel the recovery if it hasn't completed and destroy
735 * the log.
736 */
737 void
xfs_log_mount_cancel(struct xfs_mount * mp)738 xfs_log_mount_cancel(
739 struct xfs_mount *mp)
740 {
741 xlog_recover_cancel(mp->m_log);
742 xfs_log_unmount(mp);
743 }
744
745 /*
746 * Flush out the iclog to disk ensuring that device caches are flushed and
747 * the iclog hits stable storage before any completion waiters are woken.
748 */
749 static inline int
xlog_force_iclog(struct xlog * log,struct xlog_in_core * iclog)750 xlog_force_iclog(
751 struct xlog *log,
752 struct xlog_in_core *iclog)
753 __releases(&log->l_icloglock)
754 __acquires(&log->l_icloglock)
755 {
756 atomic_inc(&iclog->ic_refcnt);
757 iclog->ic_flags |= XLOG_ICL_NEED_FLUSH | XLOG_ICL_NEED_FUA;
758 if (iclog->ic_state == XLOG_STATE_ACTIVE)
759 xlog_state_switch_iclogs(log, iclog, 0);
760 return xlog_state_release_iclog(log, iclog, NULL);
761 }
762
763 /*
764 * Cycle all the iclogbuf locks to make sure all log IO completion
765 * is done before we tear down these buffers.
766 */
767 static void
xlog_wait_iclog_completion(struct xlog * log)768 xlog_wait_iclog_completion(struct xlog *log)
769 {
770 int i;
771 struct xlog_in_core *iclog = log->l_iclog;
772
773 for (i = 0; i < log->l_iclog_bufs; i++) {
774 down(&iclog->ic_sema);
775 up(&iclog->ic_sema);
776 iclog = iclog->ic_next;
777 }
778 }
779
780 /*
781 * Wait for the iclog and all prior iclogs to be written disk as required by the
782 * log force state machine. Waiting on ic_force_wait ensures iclog completions
783 * have been ordered and callbacks run before we are woken here, hence
784 * guaranteeing that all the iclogs up to this one are on stable storage.
785 */
786 int
xlog_wait_on_iclog(struct xlog * log,struct xlog_in_core * iclog)787 xlog_wait_on_iclog(
788 struct xlog *log,
789 struct xlog_in_core *iclog)
790 __releases(log->l_icloglock)
791 {
792 trace_xlog_iclog_wait_on(iclog, _RET_IP_);
793 if (!xlog_is_shutdown(log) &&
794 iclog->ic_state != XLOG_STATE_ACTIVE &&
795 iclog->ic_state != XLOG_STATE_DIRTY) {
796 XFS_STATS_INC(log->l_mp, xs_log_force_sleep);
797 xlog_wait(&iclog->ic_force_wait, &log->l_icloglock);
798 } else {
799 spin_unlock(&log->l_icloglock);
800 }
801
802 if (xlog_is_shutdown(log))
803 return -EIO;
804 return 0;
805 }
806
807 int
xlog_write_one_vec(struct xlog * log,struct xfs_cil_ctx * ctx,struct xfs_log_iovec * reg,struct xlog_ticket * ticket)808 xlog_write_one_vec(
809 struct xlog *log,
810 struct xfs_cil_ctx *ctx,
811 struct xfs_log_iovec *reg,
812 struct xlog_ticket *ticket)
813 {
814 struct xfs_log_vec lv = {
815 .lv_niovecs = 1,
816 .lv_iovecp = reg,
817 .lv_bytes = reg->i_len,
818 };
819 LIST_HEAD (lv_chain);
820
821 /* account for space used by record data */
822 ticket->t_curr_res -= lv.lv_bytes;
823
824 list_add(&lv.lv_list, &lv_chain);
825 return xlog_write(log, ctx, &lv_chain, ticket, lv.lv_bytes);
826 }
827
828 /*
829 * Write out an unmount record using the ticket provided. We have to account for
830 * the data space used in the unmount ticket as this write is not done from a
831 * transaction context that has already done the accounting for us.
832 */
833 static int
xlog_write_unmount_record(struct xlog * log,struct xlog_ticket * ticket)834 xlog_write_unmount_record(
835 struct xlog *log,
836 struct xlog_ticket *ticket)
837 {
838 struct {
839 struct xlog_op_header ophdr;
840 struct xfs_unmount_log_format ulf;
841 } unmount_rec = {
842 .ophdr = {
843 .oh_clientid = XFS_LOG,
844 .oh_tid = cpu_to_be32(ticket->t_tid),
845 .oh_flags = XLOG_UNMOUNT_TRANS,
846 },
847 .ulf = {
848 .magic = XLOG_UNMOUNT_TYPE,
849 },
850 };
851 struct xfs_log_iovec reg = {
852 .i_addr = &unmount_rec,
853 .i_len = sizeof(unmount_rec),
854 .i_type = XLOG_REG_TYPE_UNMOUNT,
855 };
856
857 return xlog_write_one_vec(log, NULL, ®, ticket);
858 }
859
860 /*
861 * Mark the filesystem clean by writing an unmount record to the head of the
862 * log.
863 */
864 static void
xlog_unmount_write(struct xlog * log)865 xlog_unmount_write(
866 struct xlog *log)
867 {
868 struct xfs_mount *mp = log->l_mp;
869 struct xlog_in_core *iclog;
870 struct xlog_ticket *tic = NULL;
871 int error;
872
873 error = xfs_log_reserve(mp, 600, 1, &tic, 0);
874 if (error)
875 goto out_err;
876
877 error = xlog_write_unmount_record(log, tic);
878 /*
879 * At this point, we're umounting anyway, so there's no point in
880 * transitioning log state to shutdown. Just continue...
881 */
882 out_err:
883 if (error)
884 xfs_alert(mp, "%s: unmount record failed", __func__);
885
886 spin_lock(&log->l_icloglock);
887 iclog = log->l_iclog;
888 error = xlog_force_iclog(log, iclog);
889 xlog_wait_on_iclog(log, iclog);
890
891 if (tic) {
892 trace_xfs_log_umount_write(log, tic);
893 xfs_log_ticket_ungrant(log, tic);
894 }
895 }
896
897 static void
xfs_log_unmount_verify_iclog(struct xlog * log)898 xfs_log_unmount_verify_iclog(
899 struct xlog *log)
900 {
901 struct xlog_in_core *iclog = log->l_iclog;
902
903 do {
904 ASSERT(iclog->ic_state == XLOG_STATE_ACTIVE);
905 ASSERT(iclog->ic_offset == 0);
906 } while ((iclog = iclog->ic_next) != log->l_iclog);
907 }
908
909 /*
910 * Unmount record used to have a string "Unmount filesystem--" in the
911 * data section where the "Un" was really a magic number (XLOG_UNMOUNT_TYPE).
912 * We just write the magic number now since that particular field isn't
913 * currently architecture converted and "Unmount" is a bit foo.
914 * As far as I know, there weren't any dependencies on the old behaviour.
915 */
916 static void
xfs_log_unmount_write(struct xfs_mount * mp)917 xfs_log_unmount_write(
918 struct xfs_mount *mp)
919 {
920 struct xlog *log = mp->m_log;
921
922 if (!xfs_log_writable(mp))
923 return;
924
925 xfs_log_force(mp, XFS_LOG_SYNC);
926
927 if (xlog_is_shutdown(log))
928 return;
929
930 /*
931 * If we think the summary counters are bad, avoid writing the unmount
932 * record to force log recovery at next mount, after which the summary
933 * counters will be recalculated. Refer to xlog_check_unmount_rec for
934 * more details.
935 */
936 if (xfs_fs_has_sickness(mp, XFS_SICK_FS_COUNTERS) ||
937 XFS_TEST_ERROR(mp, XFS_ERRTAG_FORCE_SUMMARY_RECALC)) {
938 xfs_alert(mp, "%s: will fix summary counters at next mount",
939 __func__);
940 return;
941 }
942
943 xfs_log_unmount_verify_iclog(log);
944 xlog_unmount_write(log);
945 }
946
947 /*
948 * Empty the log for unmount/freeze.
949 *
950 * To do this, we first need to shut down the background log work so it is not
951 * trying to cover the log as we clean up. We then need to unpin all objects in
952 * the log so we can then flush them out. Once they have completed their IO and
953 * run the callbacks removing themselves from the AIL, we can cover the log.
954 */
955 int
xfs_log_quiesce(struct xfs_mount * mp)956 xfs_log_quiesce(
957 struct xfs_mount *mp)
958 {
959 /*
960 * Clear log incompat features since we're quiescing the log. Report
961 * failures, though it's not fatal to have a higher log feature
962 * protection level than the log contents actually require.
963 */
964 if (xfs_clear_incompat_log_features(mp)) {
965 int error;
966
967 error = xfs_sync_sb(mp, false);
968 if (error)
969 xfs_warn(mp,
970 "Failed to clear log incompat features on quiesce");
971 }
972
973 cancel_delayed_work_sync(&mp->m_log->l_work);
974 xfs_log_force(mp, XFS_LOG_SYNC);
975
976 /*
977 * The superblock buffer is uncached and while xfs_ail_push_all_sync()
978 * will push it, xfs_buftarg_wait() will not wait for it. Further,
979 * xfs_buf_iowait() cannot be used because it was pushed with the
980 * XBF_ASYNC flag set, so we need to use a lock/unlock pair to wait for
981 * the IO to complete.
982 */
983 xfs_ail_push_all_sync(mp->m_ail);
984 xfs_buftarg_wait(mp->m_ddev_targp);
985 xfs_buf_lock(mp->m_sb_bp);
986 xfs_buf_unlock(mp->m_sb_bp);
987
988 return xfs_log_cover(mp);
989 }
990
991 void
xfs_log_clean(struct xfs_mount * mp)992 xfs_log_clean(
993 struct xfs_mount *mp)
994 {
995 xfs_log_quiesce(mp);
996 xfs_log_unmount_write(mp);
997 }
998
999 /*
1000 * Shut down and release the AIL and Log.
1001 *
1002 * During unmount, we need to ensure we flush all the dirty metadata objects
1003 * from the AIL so that the log is empty before we write the unmount record to
1004 * the log. Once this is done, we can tear down the AIL and the log.
1005 */
1006 void
xfs_log_unmount(struct xfs_mount * mp)1007 xfs_log_unmount(
1008 struct xfs_mount *mp)
1009 {
1010 xfs_log_clean(mp);
1011
1012 /*
1013 * If shutdown has come from iclog IO context, the log
1014 * cleaning will have been skipped and so we need to wait
1015 * for the iclog to complete shutdown processing before we
1016 * tear anything down.
1017 */
1018 xlog_wait_iclog_completion(mp->m_log);
1019
1020 xfs_buftarg_drain(mp->m_ddev_targp);
1021
1022 xfs_trans_ail_destroy(mp);
1023
1024 xfs_sysfs_del(&mp->m_log->l_kobj);
1025
1026 xlog_dealloc_log(mp->m_log);
1027 }
1028
1029 void
xfs_log_item_init(struct xfs_mount * mp,struct xfs_log_item * item,int type,const struct xfs_item_ops * ops)1030 xfs_log_item_init(
1031 struct xfs_mount *mp,
1032 struct xfs_log_item *item,
1033 int type,
1034 const struct xfs_item_ops *ops)
1035 {
1036 item->li_log = mp->m_log;
1037 item->li_ailp = mp->m_ail;
1038 item->li_type = type;
1039 item->li_ops = ops;
1040 item->li_lv = NULL;
1041
1042 INIT_LIST_HEAD(&item->li_ail);
1043 INIT_LIST_HEAD(&item->li_cil);
1044 INIT_LIST_HEAD(&item->li_bio_list);
1045 INIT_LIST_HEAD(&item->li_trans);
1046 }
1047
1048 /*
1049 * Wake up processes waiting for log space after we have moved the log tail.
1050 */
1051 void
xfs_log_space_wake(struct xfs_mount * mp)1052 xfs_log_space_wake(
1053 struct xfs_mount *mp)
1054 {
1055 struct xlog *log = mp->m_log;
1056 int free_bytes;
1057
1058 if (xlog_is_shutdown(log))
1059 return;
1060
1061 if (!list_empty_careful(&log->l_write_head.waiters)) {
1062 ASSERT(!xlog_in_recovery(log));
1063
1064 spin_lock(&log->l_write_head.lock);
1065 free_bytes = xlog_grant_space_left(log, &log->l_write_head);
1066 xlog_grant_head_wake(log, &log->l_write_head, &free_bytes);
1067 spin_unlock(&log->l_write_head.lock);
1068 }
1069
1070 if (!list_empty_careful(&log->l_reserve_head.waiters)) {
1071 ASSERT(!xlog_in_recovery(log));
1072
1073 spin_lock(&log->l_reserve_head.lock);
1074 free_bytes = xlog_grant_space_left(log, &log->l_reserve_head);
1075 xlog_grant_head_wake(log, &log->l_reserve_head, &free_bytes);
1076 spin_unlock(&log->l_reserve_head.lock);
1077 }
1078 }
1079
1080 /*
1081 * Determine if we have a transaction that has gone to disk that needs to be
1082 * covered. To begin the transition to the idle state firstly the log needs to
1083 * be idle. That means the CIL, the AIL and the iclogs needs to be empty before
1084 * we start attempting to cover the log.
1085 *
1086 * Only if we are then in a state where covering is needed, the caller is
1087 * informed that dummy transactions are required to move the log into the idle
1088 * state.
1089 *
1090 * If there are any items in the AIl or CIL, then we do not want to attempt to
1091 * cover the log as we may be in a situation where there isn't log space
1092 * available to run a dummy transaction and this can lead to deadlocks when the
1093 * tail of the log is pinned by an item that is modified in the CIL. Hence
1094 * there's no point in running a dummy transaction at this point because we
1095 * can't start trying to idle the log until both the CIL and AIL are empty.
1096 */
1097 static bool
xfs_log_need_covered(struct xfs_mount * mp)1098 xfs_log_need_covered(
1099 struct xfs_mount *mp)
1100 {
1101 struct xlog *log = mp->m_log;
1102 bool needed = false;
1103
1104 if (!xlog_cil_empty(log))
1105 return false;
1106
1107 spin_lock(&log->l_icloglock);
1108 switch (log->l_covered_state) {
1109 case XLOG_STATE_COVER_DONE:
1110 case XLOG_STATE_COVER_DONE2:
1111 case XLOG_STATE_COVER_IDLE:
1112 break;
1113 case XLOG_STATE_COVER_NEED:
1114 case XLOG_STATE_COVER_NEED2:
1115 if (xfs_ail_min_lsn(log->l_ailp))
1116 break;
1117 if (!xlog_iclogs_empty(log))
1118 break;
1119
1120 needed = true;
1121 if (log->l_covered_state == XLOG_STATE_COVER_NEED)
1122 log->l_covered_state = XLOG_STATE_COVER_DONE;
1123 else
1124 log->l_covered_state = XLOG_STATE_COVER_DONE2;
1125 break;
1126 default:
1127 needed = true;
1128 break;
1129 }
1130 spin_unlock(&log->l_icloglock);
1131 return needed;
1132 }
1133
1134 /*
1135 * Explicitly cover the log. This is similar to background log covering but
1136 * intended for usage in quiesce codepaths. The caller is responsible to ensure
1137 * the log is idle and suitable for covering. The CIL, iclog buffers and AIL
1138 * must all be empty.
1139 */
1140 static int
xfs_log_cover(struct xfs_mount * mp)1141 xfs_log_cover(
1142 struct xfs_mount *mp)
1143 {
1144 int error = 0;
1145 bool need_covered;
1146
1147 if (!xlog_is_shutdown(mp->m_log)) {
1148 ASSERT(xlog_cil_empty(mp->m_log));
1149 ASSERT(xlog_iclogs_empty(mp->m_log));
1150 ASSERT(!xfs_ail_min_lsn(mp->m_log->l_ailp));
1151 }
1152
1153 if (!xfs_log_writable(mp))
1154 return 0;
1155
1156 /*
1157 * xfs_log_need_covered() is not idempotent because it progresses the
1158 * state machine if the log requires covering. Therefore, we must call
1159 * this function once and use the result until we've issued an sb sync.
1160 * Do so first to make that abundantly clear.
1161 *
1162 * Fall into the covering sequence if the log needs covering or the
1163 * mount has lazy superblock accounting to sync to disk. The sb sync
1164 * used for covering accumulates the in-core counters, so covering
1165 * handles this for us.
1166 */
1167 need_covered = xfs_log_need_covered(mp);
1168 if (!need_covered && !xfs_has_lazysbcount(mp))
1169 return 0;
1170
1171 /*
1172 * To cover the log, commit the superblock twice (at most) in
1173 * independent checkpoints. The first serves as a reference for the
1174 * tail pointer. The sync transaction and AIL push empties the AIL and
1175 * updates the in-core tail to the LSN of the first checkpoint. The
1176 * second commit updates the on-disk tail with the in-core LSN,
1177 * covering the log. Push the AIL one more time to leave it empty, as
1178 * we found it.
1179 */
1180 do {
1181 error = xfs_sync_sb(mp, true);
1182 if (error)
1183 break;
1184 xfs_ail_push_all_sync(mp->m_ail);
1185 } while (xfs_log_need_covered(mp));
1186
1187 return error;
1188 }
1189
1190 static void
xlog_ioend_work(struct work_struct * work)1191 xlog_ioend_work(
1192 struct work_struct *work)
1193 {
1194 struct xlog_in_core *iclog =
1195 container_of(work, struct xlog_in_core, ic_end_io_work);
1196 struct xlog *log = iclog->ic_log;
1197 int error;
1198
1199 error = blk_status_to_errno(iclog->ic_bio.bi_status);
1200 #ifdef DEBUG
1201 /* treat writes with injected CRC errors as failed */
1202 if (iclog->ic_fail_crc)
1203 error = -EIO;
1204 #endif
1205
1206 /*
1207 * Race to shutdown the filesystem if we see an error.
1208 */
1209 if (error || XFS_TEST_ERROR(log->l_mp, XFS_ERRTAG_IODONE_IOERR)) {
1210 xfs_alert(log->l_mp, "log I/O error %d", error);
1211 xlog_force_shutdown(log, SHUTDOWN_LOG_IO_ERROR);
1212 }
1213
1214 xlog_state_done_syncing(iclog);
1215 bio_uninit(&iclog->ic_bio);
1216
1217 /*
1218 * Drop the lock to signal that we are done. Nothing references the
1219 * iclog after this, so an unmount waiting on this lock can now tear it
1220 * down safely. As such, it is unsafe to reference the iclog after the
1221 * unlock as we could race with it being freed.
1222 */
1223 up(&iclog->ic_sema);
1224 }
1225
1226 /*
1227 * Return size of each in-core log record buffer.
1228 *
1229 * All machines get 8 x 32kB buffers by default, unless tuned otherwise.
1230 *
1231 * If the filesystem blocksize is too large, we may need to choose a
1232 * larger size since the directory code currently logs entire blocks.
1233 */
1234 STATIC void
xlog_get_iclog_buffer_size(struct xfs_mount * mp,struct xlog * log)1235 xlog_get_iclog_buffer_size(
1236 struct xfs_mount *mp,
1237 struct xlog *log)
1238 {
1239 if (mp->m_logbufs <= 0)
1240 mp->m_logbufs = XLOG_MAX_ICLOGS;
1241 if (mp->m_logbsize <= 0)
1242 mp->m_logbsize = XLOG_BIG_RECORD_BSIZE;
1243
1244 log->l_iclog_bufs = mp->m_logbufs;
1245 log->l_iclog_size = mp->m_logbsize;
1246
1247 /*
1248 * Combined size of the log record headers. The first 32k cycles
1249 * are stored directly in the xlog_rec_header, the rest in the
1250 * variable number of xlog_rec_ext_headers at its end.
1251 */
1252 log->l_iclog_hsize = struct_size(log->l_iclog->ic_header, h_ext,
1253 DIV_ROUND_UP(mp->m_logbsize, XLOG_HEADER_CYCLE_SIZE) - 1);
1254 }
1255
1256 void
xfs_log_work_queue(struct xfs_mount * mp)1257 xfs_log_work_queue(
1258 struct xfs_mount *mp)
1259 {
1260 queue_delayed_work(mp->m_sync_workqueue, &mp->m_log->l_work,
1261 msecs_to_jiffies(xfs_syncd_centisecs * 10));
1262 }
1263
1264 /*
1265 * Clear the log incompat flags if we have the opportunity.
1266 *
1267 * This only happens if we're about to log the second dummy transaction as part
1268 * of covering the log.
1269 */
1270 static inline void
xlog_clear_incompat(struct xlog * log)1271 xlog_clear_incompat(
1272 struct xlog *log)
1273 {
1274 struct xfs_mount *mp = log->l_mp;
1275
1276 if (!xfs_sb_has_incompat_log_feature(&mp->m_sb,
1277 XFS_SB_FEAT_INCOMPAT_LOG_ALL))
1278 return;
1279
1280 if (log->l_covered_state != XLOG_STATE_COVER_DONE2)
1281 return;
1282
1283 xfs_clear_incompat_log_features(mp);
1284 }
1285
1286 /*
1287 * Every sync period we need to unpin all items in the AIL and push them to
1288 * disk. If there is nothing dirty, then we might need to cover the log to
1289 * indicate that the filesystem is idle.
1290 */
1291 static void
xfs_log_worker(struct work_struct * work)1292 xfs_log_worker(
1293 struct work_struct *work)
1294 {
1295 struct xlog *log = container_of(to_delayed_work(work),
1296 struct xlog, l_work);
1297 struct xfs_mount *mp = log->l_mp;
1298
1299 /* dgc: errors ignored - not fatal and nowhere to report them */
1300 if (xfs_fs_writable(mp, SB_FREEZE_WRITE) && xfs_log_need_covered(mp)) {
1301 /*
1302 * Dump a transaction into the log that contains no real change.
1303 * This is needed to stamp the current tail LSN into the log
1304 * during the covering operation.
1305 *
1306 * We cannot use an inode here for this - that will push dirty
1307 * state back up into the VFS and then periodic inode flushing
1308 * will prevent log covering from making progress. Hence we
1309 * synchronously log the superblock instead to ensure the
1310 * superblock is immediately unpinned and can be written back.
1311 */
1312 xlog_clear_incompat(log);
1313 xfs_sync_sb(mp, true);
1314 } else
1315 xfs_log_force(mp, 0);
1316
1317 /* start pushing all the metadata that is currently dirty */
1318 xfs_ail_push_all(mp->m_ail);
1319
1320 /* queue us up again */
1321 xfs_log_work_queue(mp);
1322 }
1323
1324 /*
1325 * This routine initializes some of the log structure for a given mount point.
1326 * Its primary purpose is to fill in enough, so recovery can occur. However,
1327 * some other stuff may be filled in too.
1328 */
1329 STATIC struct xlog *
xlog_alloc_log(struct xfs_mount * mp,struct xfs_buftarg * log_target,xfs_daddr_t blk_offset,int num_bblks)1330 xlog_alloc_log(
1331 struct xfs_mount *mp,
1332 struct xfs_buftarg *log_target,
1333 xfs_daddr_t blk_offset,
1334 int num_bblks)
1335 {
1336 struct xlog *log;
1337 struct xlog_in_core **iclogp;
1338 struct xlog_in_core *iclog, *prev_iclog = NULL;
1339 int i;
1340 int error = -ENOMEM;
1341 uint log2_size = 0;
1342
1343 log = kzalloc_obj(struct xlog, GFP_KERNEL | __GFP_RETRY_MAYFAIL);
1344 if (!log) {
1345 xfs_warn(mp, "Log allocation failed: No memory!");
1346 goto out;
1347 }
1348
1349 log->l_mp = mp;
1350 log->l_targ = log_target;
1351 log->l_logsize = BBTOB(num_bblks);
1352 log->l_logBBstart = blk_offset;
1353 log->l_logBBsize = num_bblks;
1354 log->l_covered_state = XLOG_STATE_COVER_IDLE;
1355 set_bit(XLOG_ACTIVE_RECOVERY, &log->l_opstate);
1356 INIT_DELAYED_WORK(&log->l_work, xfs_log_worker);
1357 INIT_LIST_HEAD(&log->r_dfops);
1358
1359 log->l_prev_block = -1;
1360 /* log->l_tail_lsn = 0x100000000LL; cycle = 1; current block = 0 */
1361 xlog_assign_atomic_lsn(&log->l_tail_lsn, 1, 0);
1362 log->l_curr_cycle = 1; /* 0 is bad since this is initial value */
1363
1364 if (xfs_has_logv2(mp) && mp->m_sb.sb_logsunit > 1)
1365 log->l_iclog_roundoff = mp->m_sb.sb_logsunit;
1366 else if (mp->m_sb.sb_logsectsize > 0)
1367 log->l_iclog_roundoff = mp->m_sb.sb_logsectsize;
1368 else
1369 log->l_iclog_roundoff = BBSIZE;
1370
1371 xlog_grant_head_init(&log->l_reserve_head);
1372 xlog_grant_head_init(&log->l_write_head);
1373
1374 error = -EFSCORRUPTED;
1375 if (xfs_has_sector(mp)) {
1376 log2_size = mp->m_sb.sb_logsectlog;
1377 if (log2_size < BBSHIFT) {
1378 xfs_warn(mp, "Log sector size too small (0x%x < 0x%x)",
1379 log2_size, BBSHIFT);
1380 goto out_free_log;
1381 }
1382
1383 log2_size -= BBSHIFT;
1384 if (log2_size > mp->m_sectbb_log) {
1385 xfs_warn(mp, "Log sector size too large (0x%x > 0x%x)",
1386 log2_size, mp->m_sectbb_log);
1387 goto out_free_log;
1388 }
1389
1390 /* for larger sector sizes, must have v2 or external log */
1391 if (log2_size && log->l_logBBstart > 0 &&
1392 !xfs_has_logv2(mp)) {
1393 xfs_warn(mp,
1394 "log sector size (0x%x) invalid for configuration.",
1395 log2_size);
1396 goto out_free_log;
1397 }
1398 }
1399 log->l_sectBBsize = 1 << log2_size;
1400
1401 xlog_get_iclog_buffer_size(mp, log);
1402
1403 spin_lock_init(&log->l_icloglock);
1404 init_waitqueue_head(&log->l_flush_wait);
1405
1406 iclogp = &log->l_iclog;
1407 ASSERT(log->l_iclog_size >= 4096);
1408 for (i = 0; i < log->l_iclog_bufs; i++) {
1409 size_t bvec_size = howmany(log->l_iclog_size, PAGE_SIZE) *
1410 sizeof(struct bio_vec);
1411
1412 iclog = kzalloc(sizeof(*iclog) + bvec_size,
1413 GFP_KERNEL | __GFP_RETRY_MAYFAIL);
1414 if (!iclog)
1415 goto out_free_iclog;
1416
1417 *iclogp = iclog;
1418 iclog->ic_prev = prev_iclog;
1419 prev_iclog = iclog;
1420
1421 iclog->ic_header = kvzalloc(log->l_iclog_size,
1422 GFP_KERNEL | __GFP_RETRY_MAYFAIL);
1423 if (!iclog->ic_header)
1424 goto out_free_iclog;
1425 iclog->ic_header->h_magicno =
1426 cpu_to_be32(XLOG_HEADER_MAGIC_NUM);
1427 iclog->ic_header->h_version = cpu_to_be32(
1428 xfs_has_logv2(log->l_mp) ? 2 : 1);
1429 iclog->ic_header->h_size = cpu_to_be32(log->l_iclog_size);
1430 iclog->ic_header->h_fmt = cpu_to_be32(XLOG_FMT);
1431 memcpy(&iclog->ic_header->h_fs_uuid, &mp->m_sb.sb_uuid,
1432 sizeof(iclog->ic_header->h_fs_uuid));
1433
1434 iclog->ic_datap = (void *)iclog->ic_header + log->l_iclog_hsize;
1435 iclog->ic_size = log->l_iclog_size - log->l_iclog_hsize;
1436 iclog->ic_state = XLOG_STATE_ACTIVE;
1437 iclog->ic_log = log;
1438 atomic_set(&iclog->ic_refcnt, 0);
1439 INIT_LIST_HEAD(&iclog->ic_callbacks);
1440
1441 init_waitqueue_head(&iclog->ic_force_wait);
1442 init_waitqueue_head(&iclog->ic_write_wait);
1443 INIT_WORK(&iclog->ic_end_io_work, xlog_ioend_work);
1444 sema_init(&iclog->ic_sema, 1);
1445
1446 iclogp = &iclog->ic_next;
1447 }
1448 *iclogp = log->l_iclog; /* complete ring */
1449 log->l_iclog->ic_prev = prev_iclog; /* re-write 1st prev ptr */
1450
1451 log->l_ioend_workqueue = alloc_workqueue("xfs-log/%s",
1452 XFS_WQFLAGS(WQ_FREEZABLE | WQ_MEM_RECLAIM | WQ_HIGHPRI | WQ_PERCPU),
1453 0, mp->m_super->s_id);
1454 if (!log->l_ioend_workqueue)
1455 goto out_free_iclog;
1456
1457 error = xlog_cil_init(log);
1458 if (error)
1459 goto out_destroy_workqueue;
1460 return log;
1461
1462 out_destroy_workqueue:
1463 destroy_workqueue(log->l_ioend_workqueue);
1464 out_free_iclog:
1465 for (iclog = log->l_iclog; iclog; iclog = prev_iclog) {
1466 prev_iclog = iclog->ic_next;
1467 kvfree(iclog->ic_header);
1468 kfree(iclog);
1469 if (prev_iclog == log->l_iclog)
1470 break;
1471 }
1472 out_free_log:
1473 kfree(log);
1474 out:
1475 return ERR_PTR(error);
1476 } /* xlog_alloc_log */
1477
1478 /*
1479 * Stamp cycle number in every block
1480 */
1481 STATIC void
xlog_pack_data(struct xlog * log,struct xlog_in_core * iclog,int roundoff)1482 xlog_pack_data(
1483 struct xlog *log,
1484 struct xlog_in_core *iclog,
1485 int roundoff)
1486 {
1487 struct xlog_rec_header *rhead = iclog->ic_header;
1488 __be32 cycle_lsn = CYCLE_LSN_DISK(rhead->h_lsn);
1489 char *dp = iclog->ic_datap;
1490 int i;
1491
1492 for (i = 0; i < BTOBB(iclog->ic_offset + roundoff); i++) {
1493 *xlog_cycle_data(rhead, i) = *(__be32 *)dp;
1494 *(__be32 *)dp = cycle_lsn;
1495 dp += BBSIZE;
1496 }
1497
1498 for (i = 0; i < (log->l_iclog_hsize >> BBSHIFT) - 1; i++)
1499 rhead->h_ext[i].xh_cycle = cycle_lsn;
1500 }
1501
1502 /*
1503 * Calculate the checksum for a log buffer.
1504 *
1505 * This is a little more complicated than it should be because the various
1506 * headers and the actual data are non-contiguous.
1507 */
1508 __le32
xlog_cksum(struct xlog * log,struct xlog_rec_header * rhead,char * dp,unsigned int hdrsize,unsigned int size)1509 xlog_cksum(
1510 struct xlog *log,
1511 struct xlog_rec_header *rhead,
1512 char *dp,
1513 unsigned int hdrsize,
1514 unsigned int size)
1515 {
1516 uint32_t crc;
1517
1518 /* first generate the crc for the record header ... */
1519 crc = xfs_start_cksum_update((char *)rhead, hdrsize,
1520 offsetof(struct xlog_rec_header, h_crc));
1521
1522 /* ... then for additional cycle data for v2 logs ... */
1523 if (xfs_has_logv2(log->l_mp)) {
1524 int xheads, i;
1525
1526 xheads = DIV_ROUND_UP(size, XLOG_HEADER_CYCLE_SIZE) - 1;
1527 for (i = 0; i < xheads; i++)
1528 crc = crc32c(crc, &rhead->h_ext[i], XLOG_REC_EXT_SIZE);
1529 }
1530
1531 /* ... and finally for the payload */
1532 crc = crc32c(crc, dp, size);
1533
1534 return xfs_end_cksum(crc);
1535 }
1536
1537 static void
xlog_bio_end_io(struct bio * bio)1538 xlog_bio_end_io(
1539 struct bio *bio)
1540 {
1541 struct xlog_in_core *iclog = bio->bi_private;
1542
1543 queue_work(iclog->ic_log->l_ioend_workqueue,
1544 &iclog->ic_end_io_work);
1545 }
1546
1547 /*
1548 * When using multiple devices, we also need to flush the data and RT device
1549 * caches first to ensure that all metadata writeback covered by the LSN in
1550 * this iclog is on stable storage. This is slow, but it *must* complete
1551 * before we issue the external log IO.
1552 *
1553 * If the flush fails, we cannot conclude that past metadata writeback from
1554 * the log succeeded. Repeating the flush is not possible, hence we must
1555 * shut down with log IO error to avoid shutdown re-entering this path and
1556 * erroring out again.
1557 */
1558 static int
xlog_flush_data_caches(struct xlog * log)1559 xlog_flush_data_caches(
1560 struct xlog *log)
1561 {
1562 struct xfs_mount *mp = log->l_mp;
1563
1564 if (log->l_targ != mp->m_ddev_targp) {
1565 if (blkdev_issue_flush(mp->m_ddev_targp->bt_bdev))
1566 return -EIO;
1567 }
1568 if (mp->m_rtdev_targp && mp->m_rtdev_targp != mp->m_ddev_targp) {
1569 if (blkdev_issue_flush(mp->m_rtdev_targp->bt_bdev))
1570 return -EIO;
1571 }
1572
1573 return 0;
1574 }
1575
1576 STATIC void
xlog_write_iclog(struct xlog * log,struct xlog_in_core * iclog,uint64_t bno,unsigned int count)1577 xlog_write_iclog(
1578 struct xlog *log,
1579 struct xlog_in_core *iclog,
1580 uint64_t bno,
1581 unsigned int count)
1582 {
1583 ASSERT(bno < log->l_logBBsize);
1584 trace_xlog_iclog_write(iclog, _RET_IP_);
1585
1586 /*
1587 * We lock the iclogbufs here so that we can serialise against I/O
1588 * completion during unmount. We might be processing a shutdown
1589 * triggered during unmount, and that can occur asynchronously to the
1590 * unmount thread, and hence we need to ensure that completes before
1591 * tearing down the iclogbufs. Hence we need to hold the buffer lock
1592 * across the log IO to archieve that.
1593 */
1594 down(&iclog->ic_sema);
1595 if (xlog_is_shutdown(log)) {
1596 /*
1597 * It would seem logical to return EIO here, but we rely on
1598 * the log state machine to propagate I/O errors instead of
1599 * doing it here. We kick of the state machine and unlock
1600 * the buffer manually, the code needs to be kept in sync
1601 * with the I/O completion path.
1602 */
1603 goto sync;
1604 }
1605
1606 /*
1607 * We use REQ_SYNC | REQ_IDLE here to tell the block layer the are more
1608 * IOs coming immediately after this one. This prevents the block layer
1609 * writeback throttle from throttling log writes behind background
1610 * metadata writeback and causing priority inversions.
1611 */
1612 bio_init(&iclog->ic_bio, log->l_targ->bt_bdev, iclog->ic_bvec,
1613 howmany(count, PAGE_SIZE),
1614 REQ_OP_WRITE | REQ_META | REQ_SYNC | REQ_IDLE);
1615 iclog->ic_bio.bi_iter.bi_sector = log->l_logBBstart + bno;
1616 iclog->ic_bio.bi_end_io = xlog_bio_end_io;
1617 iclog->ic_bio.bi_private = iclog;
1618
1619 if (iclog->ic_flags & XLOG_ICL_NEED_FLUSH) {
1620 if (xlog_flush_data_caches(log))
1621 goto shutdown;
1622 iclog->ic_bio.bi_opf |= REQ_PREFLUSH;
1623 }
1624 if (iclog->ic_flags & XLOG_ICL_NEED_FUA)
1625 iclog->ic_bio.bi_opf |= REQ_FUA;
1626
1627 iclog->ic_flags &= ~(XLOG_ICL_NEED_FLUSH | XLOG_ICL_NEED_FUA);
1628
1629 if (is_vmalloc_addr(iclog->ic_header)) {
1630 if (!bio_add_vmalloc(&iclog->ic_bio, iclog->ic_header, count))
1631 goto shutdown;
1632 } else {
1633 bio_add_virt_nofail(&iclog->ic_bio, iclog->ic_header, count);
1634 }
1635
1636 /*
1637 * If this log buffer would straddle the end of the log we will have
1638 * to split it up into two bios, so that we can continue at the start.
1639 */
1640 if (bno + BTOBB(count) > log->l_logBBsize) {
1641 struct bio *split;
1642
1643 split = bio_split(&iclog->ic_bio, log->l_logBBsize - bno,
1644 GFP_NOIO, &fs_bio_set);
1645 bio_chain(split, &iclog->ic_bio);
1646 submit_bio(split);
1647
1648 /* restart at logical offset zero for the remainder */
1649 iclog->ic_bio.bi_iter.bi_sector = log->l_logBBstart;
1650 }
1651
1652 submit_bio(&iclog->ic_bio);
1653 return;
1654 shutdown:
1655 xlog_force_shutdown(log, SHUTDOWN_LOG_IO_ERROR);
1656 sync:
1657 xlog_state_done_syncing(iclog);
1658 up(&iclog->ic_sema);
1659 }
1660
1661 /*
1662 * We need to bump cycle number for the part of the iclog that is
1663 * written to the start of the log. Watch out for the header magic
1664 * number case, though.
1665 */
1666 static void
xlog_split_iclog(struct xlog * log,void * data,uint64_t bno,unsigned int count)1667 xlog_split_iclog(
1668 struct xlog *log,
1669 void *data,
1670 uint64_t bno,
1671 unsigned int count)
1672 {
1673 unsigned int split_offset = BBTOB(log->l_logBBsize - bno);
1674 unsigned int i;
1675
1676 for (i = split_offset; i < count; i += BBSIZE) {
1677 uint32_t cycle = get_unaligned_be32(data + i);
1678
1679 if (++cycle == XLOG_HEADER_MAGIC_NUM)
1680 cycle++;
1681 put_unaligned_be32(cycle, data + i);
1682 }
1683 }
1684
1685 static int
xlog_calc_iclog_size(struct xlog * log,struct xlog_in_core * iclog,uint32_t * roundoff)1686 xlog_calc_iclog_size(
1687 struct xlog *log,
1688 struct xlog_in_core *iclog,
1689 uint32_t *roundoff)
1690 {
1691 uint32_t count_init, count;
1692
1693 /* Add for LR header */
1694 count_init = log->l_iclog_hsize + iclog->ic_offset;
1695 count = roundup(count_init, log->l_iclog_roundoff);
1696
1697 *roundoff = count - count_init;
1698
1699 ASSERT(count >= count_init);
1700 ASSERT(*roundoff < log->l_iclog_roundoff);
1701 return count;
1702 }
1703
1704 /*
1705 * Flush out the in-core log (iclog) to the on-disk log in an asynchronous
1706 * fashion. Previously, we should have moved the current iclog
1707 * ptr in the log to point to the next available iclog. This allows further
1708 * write to continue while this code syncs out an iclog ready to go.
1709 * Before an in-core log can be written out, the data section must be scanned
1710 * to save away the 1st word of each BBSIZE block into the header. We replace
1711 * it with the current cycle count. Each BBSIZE block is tagged with the
1712 * cycle count because there in an implicit assumption that drives will
1713 * guarantee that entire 512 byte blocks get written at once. In other words,
1714 * we can't have part of a 512 byte block written and part not written. By
1715 * tagging each block, we will know which blocks are valid when recovering
1716 * after an unclean shutdown.
1717 *
1718 * This routine is single threaded on the iclog. No other thread can be in
1719 * this routine with the same iclog. Changing contents of iclog can there-
1720 * fore be done without grabbing the state machine lock. Updating the global
1721 * log will require grabbing the lock though.
1722 *
1723 * The entire log manager uses a logical block numbering scheme. Only
1724 * xlog_write_iclog knows about the fact that the log may not start with
1725 * block zero on a given device.
1726 */
1727 STATIC void
xlog_sync(struct xlog * log,struct xlog_in_core * iclog,struct xlog_ticket * ticket)1728 xlog_sync(
1729 struct xlog *log,
1730 struct xlog_in_core *iclog,
1731 struct xlog_ticket *ticket)
1732 {
1733 unsigned int count; /* byte count of bwrite */
1734 unsigned int roundoff; /* roundoff to BB or stripe */
1735 uint64_t bno;
1736 unsigned int size;
1737
1738 ASSERT(atomic_read(&iclog->ic_refcnt) == 0);
1739 trace_xlog_iclog_sync(iclog, _RET_IP_);
1740
1741 count = xlog_calc_iclog_size(log, iclog, &roundoff);
1742
1743 /*
1744 * If we have a ticket, account for the roundoff via the ticket
1745 * reservation to avoid touching the hot grant heads needlessly.
1746 * Otherwise, we have to move grant heads directly.
1747 */
1748 if (ticket) {
1749 ticket->t_curr_res -= roundoff;
1750 } else {
1751 xlog_grant_add_space(&log->l_reserve_head, roundoff);
1752 xlog_grant_add_space(&log->l_write_head, roundoff);
1753 }
1754
1755 /* put cycle number in every block */
1756 xlog_pack_data(log, iclog, roundoff);
1757
1758 /* real byte length */
1759 size = iclog->ic_offset;
1760 if (xfs_has_logv2(log->l_mp))
1761 size += roundoff;
1762 iclog->ic_header->h_len = cpu_to_be32(size);
1763
1764 XFS_STATS_INC(log->l_mp, xs_log_writes);
1765 XFS_STATS_ADD(log->l_mp, xs_log_blocks, BTOBB(count));
1766
1767 bno = BLOCK_LSN(be64_to_cpu(iclog->ic_header->h_lsn));
1768
1769 /* Do we need to split this write into 2 parts? */
1770 if (bno + BTOBB(count) > log->l_logBBsize)
1771 xlog_split_iclog(log, iclog->ic_header, bno, count);
1772
1773 /* calculcate the checksum */
1774 iclog->ic_header->h_crc = xlog_cksum(log, iclog->ic_header,
1775 iclog->ic_datap, XLOG_REC_SIZE, size);
1776 /*
1777 * Intentionally corrupt the log record CRC based on the error injection
1778 * frequency, if defined. This facilitates testing log recovery in the
1779 * event of torn writes. Hence, set the IOABORT state to abort the log
1780 * write on I/O completion and shutdown the fs. The subsequent mount
1781 * detects the bad CRC and attempts to recover.
1782 */
1783 #ifdef DEBUG
1784 if (XFS_TEST_ERROR(log->l_mp, XFS_ERRTAG_LOG_BAD_CRC)) {
1785 iclog->ic_header->h_crc &= cpu_to_le32(0xAAAAAAAA);
1786 iclog->ic_fail_crc = true;
1787 xfs_warn(log->l_mp,
1788 "Intentionally corrupted log record at LSN 0x%llx. Shutdown imminent.",
1789 be64_to_cpu(iclog->ic_header->h_lsn));
1790 }
1791 #endif
1792 xlog_verify_iclog(log, iclog, count);
1793 xlog_write_iclog(log, iclog, bno, count);
1794 }
1795
1796 /*
1797 * Deallocate a log structure
1798 */
1799 STATIC void
xlog_dealloc_log(struct xlog * log)1800 xlog_dealloc_log(
1801 struct xlog *log)
1802 {
1803 struct xlog_in_core *iclog, *next_iclog;
1804 int i;
1805
1806 /*
1807 * Destroy the CIL after waiting for iclog IO completion because an
1808 * iclog EIO error will try to shut down the log, which accesses the
1809 * CIL to wake up the waiters.
1810 */
1811 xlog_cil_destroy(log);
1812
1813 iclog = log->l_iclog;
1814 for (i = 0; i < log->l_iclog_bufs; i++) {
1815 next_iclog = iclog->ic_next;
1816 kvfree(iclog->ic_header);
1817 kfree(iclog);
1818 iclog = next_iclog;
1819 }
1820
1821 log->l_mp->m_log = NULL;
1822 destroy_workqueue(log->l_ioend_workqueue);
1823 kfree(log);
1824 }
1825
1826 /*
1827 * Update counters atomically now that memcpy is done.
1828 */
1829 static inline void
xlog_state_finish_copy(struct xlog * log,struct xlog_in_core * iclog,int record_cnt,int copy_bytes)1830 xlog_state_finish_copy(
1831 struct xlog *log,
1832 struct xlog_in_core *iclog,
1833 int record_cnt,
1834 int copy_bytes)
1835 {
1836 lockdep_assert_held(&log->l_icloglock);
1837
1838 be32_add_cpu(&iclog->ic_header->h_num_logops, record_cnt);
1839 iclog->ic_offset += copy_bytes;
1840 }
1841
1842 /*
1843 * print out info relating to regions written which consume
1844 * the reservation
1845 */
1846 void
xlog_print_tic_res(struct xfs_mount * mp,struct xlog_ticket * ticket)1847 xlog_print_tic_res(
1848 struct xfs_mount *mp,
1849 struct xlog_ticket *ticket)
1850 {
1851 xfs_warn(mp, "ticket reservation summary:");
1852 xfs_warn(mp, " unit res = %d bytes", ticket->t_unit_res);
1853 xfs_warn(mp, " current res = %d bytes", ticket->t_curr_res);
1854 xfs_warn(mp, " original count = %d", ticket->t_ocnt);
1855 xfs_warn(mp, " remaining count = %d", ticket->t_cnt);
1856 }
1857
1858 /*
1859 * Print a summary of the transaction.
1860 */
1861 void
xlog_print_trans(struct xfs_trans * tp)1862 xlog_print_trans(
1863 struct xfs_trans *tp)
1864 {
1865 struct xfs_mount *mp = tp->t_mountp;
1866 struct xfs_log_item *lip;
1867
1868 /* dump core transaction and ticket info */
1869 xfs_warn(mp, "transaction summary:");
1870 xfs_warn(mp, " log res = %d", tp->t_log_res);
1871 xfs_warn(mp, " log count = %d", tp->t_log_count);
1872 xfs_warn(mp, " flags = 0x%x", tp->t_flags);
1873
1874 xlog_print_tic_res(mp, tp->t_ticket);
1875
1876 /* dump each log item */
1877 list_for_each_entry(lip, &tp->t_items, li_trans) {
1878 struct xfs_log_vec *lv = lip->li_lv;
1879 struct xfs_log_iovec *vec;
1880 int i;
1881
1882 xfs_warn(mp, "log item: ");
1883 xfs_warn(mp, " type = 0x%x", lip->li_type);
1884 xfs_warn(mp, " flags = 0x%lx", lip->li_flags);
1885 if (!lv)
1886 continue;
1887 xfs_warn(mp, " niovecs = %d", lv->lv_niovecs);
1888 xfs_warn(mp, " alloc_size = %d", lv->lv_alloc_size);
1889 xfs_warn(mp, " bytes = %d", lv->lv_bytes);
1890 xfs_warn(mp, " buf used= %d", lv->lv_buf_used);
1891
1892 /* dump each iovec for the log item */
1893 vec = lv->lv_iovecp;
1894 for (i = 0; i < lv->lv_niovecs; i++) {
1895 int dumplen = min(vec->i_len, 32);
1896
1897 xfs_warn(mp, " iovec[%d]", i);
1898 xfs_warn(mp, " type = 0x%x", vec->i_type);
1899 xfs_warn(mp, " len = %d", vec->i_len);
1900 xfs_warn(mp, " first %d bytes of iovec[%d]:", dumplen, i);
1901 xfs_hex_dump(vec->i_addr, dumplen);
1902
1903 vec++;
1904 }
1905 }
1906 }
1907
xlog_write_space_left(struct xlog_write_data * data)1908 static inline uint32_t xlog_write_space_left(struct xlog_write_data *data)
1909 {
1910 return data->iclog->ic_size - data->log_offset;
1911 }
1912
1913 static void *
xlog_write_space_advance(struct xlog_write_data * data,unsigned int len)1914 xlog_write_space_advance(
1915 struct xlog_write_data *data,
1916 unsigned int len)
1917 {
1918 void *p = data->iclog->ic_datap + data->log_offset;
1919
1920 ASSERT(xlog_write_space_left(data) >= len);
1921 ASSERT(data->log_offset % sizeof(int32_t) == 0);
1922 ASSERT(len % sizeof(int32_t) == 0);
1923
1924 data->data_cnt += len;
1925 data->log_offset += len;
1926 data->bytes_left -= len;
1927 return p;
1928 }
1929
1930 static inline void
xlog_write_iovec(struct xlog_write_data * data,void * buf,uint32_t buf_len)1931 xlog_write_iovec(
1932 struct xlog_write_data *data,
1933 void *buf,
1934 uint32_t buf_len)
1935 {
1936 memcpy(xlog_write_space_advance(data, buf_len), buf, buf_len);
1937 data->record_cnt++;
1938 }
1939
1940 /*
1941 * Write log vectors into a single iclog which is guaranteed by the caller
1942 * to have enough space to write the entire log vector into.
1943 */
1944 static void
xlog_write_full(struct xfs_log_vec * lv,struct xlog_write_data * data)1945 xlog_write_full(
1946 struct xfs_log_vec *lv,
1947 struct xlog_write_data *data)
1948 {
1949 int index;
1950
1951 ASSERT(data->bytes_left <= xlog_write_space_left(data) ||
1952 data->iclog->ic_state == XLOG_STATE_WANT_SYNC);
1953
1954 /*
1955 * Ordered log vectors have no regions to write so this
1956 * loop will naturally skip them.
1957 */
1958 for (index = 0; index < lv->lv_niovecs; index++) {
1959 struct xfs_log_iovec *reg = &lv->lv_iovecp[index];
1960 struct xlog_op_header *ophdr = reg->i_addr;
1961
1962 ophdr->oh_tid = cpu_to_be32(data->ticket->t_tid);
1963 xlog_write_iovec(data, reg->i_addr, reg->i_len);
1964 }
1965 }
1966
1967 static int
xlog_write_get_more_iclog_space(struct xlog_write_data * data)1968 xlog_write_get_more_iclog_space(
1969 struct xlog_write_data *data)
1970 {
1971 struct xlog *log = data->iclog->ic_log;
1972 int error;
1973
1974 spin_lock(&log->l_icloglock);
1975 ASSERT(data->iclog->ic_state == XLOG_STATE_WANT_SYNC);
1976 xlog_state_finish_copy(log, data->iclog, data->record_cnt,
1977 data->data_cnt);
1978 error = xlog_state_release_iclog(log, data->iclog, data->ticket);
1979 spin_unlock(&log->l_icloglock);
1980 if (error)
1981 return error;
1982
1983 error = xlog_state_get_iclog_space(log, data);
1984 if (error)
1985 return error;
1986 data->record_cnt = 0;
1987 data->data_cnt = 0;
1988 return 0;
1989 }
1990
1991 /*
1992 * Write log vectors into a single iclog which is smaller than the current chain
1993 * length. We write until we cannot fit a full record into the remaining space
1994 * and then stop. We return the log vector that is to be written that cannot
1995 * wholly fit in the iclog.
1996 */
1997 static int
xlog_write_partial(struct xfs_log_vec * lv,struct xlog_write_data * data)1998 xlog_write_partial(
1999 struct xfs_log_vec *lv,
2000 struct xlog_write_data *data)
2001 {
2002 struct xlog_op_header *ophdr;
2003 int index = 0;
2004 uint32_t rlen;
2005 int error;
2006
2007 /* walk the logvec, copying until we run out of space in the iclog */
2008 for (index = 0; index < lv->lv_niovecs; index++) {
2009 struct xfs_log_iovec *reg = &lv->lv_iovecp[index];
2010 uint32_t reg_offset = 0;
2011
2012 /*
2013 * The first region of a continuation must have a non-zero
2014 * length otherwise log recovery will just skip over it and
2015 * start recovering from the next opheader it finds. Because we
2016 * mark the next opheader as a continuation, recovery will then
2017 * incorrectly add the continuation to the previous region and
2018 * that breaks stuff.
2019 *
2020 * Hence if there isn't space for region data after the
2021 * opheader, then we need to start afresh with a new iclog.
2022 */
2023 if (xlog_write_space_left(data) <=
2024 sizeof(struct xlog_op_header)) {
2025 error = xlog_write_get_more_iclog_space(data);
2026 if (error)
2027 return error;
2028 }
2029
2030 ophdr = reg->i_addr;
2031 rlen = min_t(uint32_t, reg->i_len, xlog_write_space_left(data));
2032
2033 ophdr->oh_tid = cpu_to_be32(data->ticket->t_tid);
2034 ophdr->oh_len = cpu_to_be32(rlen - sizeof(struct xlog_op_header));
2035 if (rlen != reg->i_len)
2036 ophdr->oh_flags |= XLOG_CONTINUE_TRANS;
2037
2038 xlog_write_iovec(data, reg->i_addr, rlen);
2039
2040 /* If we wrote the whole region, move to the next. */
2041 if (rlen == reg->i_len)
2042 continue;
2043
2044 /*
2045 * We now have a partially written iovec, but it can span
2046 * multiple iclogs so we loop here. First we release the iclog
2047 * we currently have, then we get a new iclog and add a new
2048 * opheader. Then we continue copying from where we were until
2049 * we either complete the iovec or fill the iclog. If we
2050 * complete the iovec, then we increment the index and go right
2051 * back to the top of the outer loop. if we fill the iclog, we
2052 * run the inner loop again.
2053 *
2054 * This is complicated by the tail of a region using all the
2055 * space in an iclog and hence requiring us to release the iclog
2056 * and get a new one before returning to the outer loop. We must
2057 * always guarantee that we exit this inner loop with at least
2058 * space for log transaction opheaders left in the current
2059 * iclog, hence we cannot just terminate the loop at the end
2060 * of the of the continuation. So we loop while there is no
2061 * space left in the current iclog, and check for the end of the
2062 * continuation after getting a new iclog.
2063 */
2064 do {
2065 /*
2066 * Ensure we include the continuation opheader in the
2067 * space we need in the new iclog by adding that size
2068 * to the length we require. This continuation opheader
2069 * needs to be accounted to the ticket as the space it
2070 * consumes hasn't been accounted to the lv we are
2071 * writing.
2072 */
2073 data->bytes_left += sizeof(struct xlog_op_header);
2074 error = xlog_write_get_more_iclog_space(data);
2075 if (error)
2076 return error;
2077
2078 ophdr = xlog_write_space_advance(data,
2079 sizeof(struct xlog_op_header));
2080 ophdr->oh_tid = cpu_to_be32(data->ticket->t_tid);
2081 ophdr->oh_clientid = XFS_TRANSACTION;
2082 ophdr->oh_res2 = 0;
2083 ophdr->oh_flags = XLOG_WAS_CONT_TRANS;
2084
2085 data->ticket->t_curr_res -=
2086 sizeof(struct xlog_op_header);
2087
2088 /*
2089 * If rlen fits in the iclog, then end the region
2090 * continuation. Otherwise we're going around again.
2091 */
2092 reg_offset += rlen;
2093 rlen = reg->i_len - reg_offset;
2094 if (rlen <= xlog_write_space_left(data))
2095 ophdr->oh_flags |= XLOG_END_TRANS;
2096 else
2097 ophdr->oh_flags |= XLOG_CONTINUE_TRANS;
2098
2099 rlen = min_t(uint32_t, rlen,
2100 xlog_write_space_left(data));
2101 ophdr->oh_len = cpu_to_be32(rlen);
2102
2103 xlog_write_iovec(data, reg->i_addr + reg_offset, rlen);
2104 } while (ophdr->oh_flags & XLOG_CONTINUE_TRANS);
2105 }
2106
2107 return 0;
2108 }
2109
2110 /*
2111 * Write some region out to in-core log
2112 *
2113 * This will be called when writing externally provided regions or when
2114 * writing out a commit record for a given transaction.
2115 *
2116 * General algorithm:
2117 * 1. Find total length of this write. This may include adding to the
2118 * lengths passed in.
2119 * 2. Check whether we violate the tickets reservation.
2120 * 3. While writing to this iclog
2121 * A. Reserve as much space in this iclog as can get
2122 * B. If this is first write, save away start lsn
2123 * C. While writing this region:
2124 * 1. If first write of transaction, write start record
2125 * 2. Write log operation header (header per region)
2126 * 3. Find out if we can fit entire region into this iclog
2127 * 4. Potentially, verify destination memcpy ptr
2128 * 5. Memcpy (partial) region
2129 * 6. If partial copy, release iclog; otherwise, continue
2130 * copying more regions into current iclog
2131 * 4. Mark want sync bit (in simulation mode)
2132 * 5. Release iclog for potential flush to on-disk log.
2133 *
2134 * ERRORS:
2135 * 1. Panic if reservation is overrun. This should never happen since
2136 * reservation amounts are generated internal to the filesystem.
2137 * NOTES:
2138 * 1. Tickets are single threaded data structures.
2139 * 2. The XLOG_END_TRANS & XLOG_CONTINUE_TRANS flags are passed down to the
2140 * syncing routine. When a single log_write region needs to span
2141 * multiple in-core logs, the XLOG_CONTINUE_TRANS bit should be set
2142 * on all log operation writes which don't contain the end of the
2143 * region. The XLOG_END_TRANS bit is used for the in-core log
2144 * operation which contains the end of the continued log_write region.
2145 * 3. When xlog_state_get_iclog_space() grabs the rest of the current iclog,
2146 * we don't really know exactly how much space will be used. As a result,
2147 * we don't update ic_offset until the end when we know exactly how many
2148 * bytes have been written out.
2149 */
2150 int
xlog_write(struct xlog * log,struct xfs_cil_ctx * ctx,struct list_head * lv_chain,struct xlog_ticket * ticket,uint32_t len)2151 xlog_write(
2152 struct xlog *log,
2153 struct xfs_cil_ctx *ctx,
2154 struct list_head *lv_chain,
2155 struct xlog_ticket *ticket,
2156 uint32_t len)
2157
2158 {
2159 struct xfs_log_vec *lv;
2160 struct xlog_write_data data = {
2161 .ticket = ticket,
2162 .bytes_left = len,
2163 };
2164 int error;
2165
2166 if (ticket->t_curr_res < 0) {
2167 xfs_alert_tag(log->l_mp, XFS_PTAG_LOGRES,
2168 "ctx ticket reservation ran out. Need to up reservation");
2169 xlog_print_tic_res(log->l_mp, ticket);
2170 xlog_force_shutdown(log, SHUTDOWN_LOG_IO_ERROR);
2171 }
2172
2173 error = xlog_state_get_iclog_space(log, &data);
2174 if (error)
2175 return error;
2176
2177 ASSERT(xlog_write_space_left(&data) > 0);
2178
2179 /*
2180 * If we have a context pointer, pass it the first iclog we are
2181 * writing to so it can record state needed for iclog write
2182 * ordering.
2183 */
2184 if (ctx)
2185 xlog_cil_set_ctx_write_state(ctx, data.iclog);
2186
2187 list_for_each_entry(lv, lv_chain, lv_list) {
2188 /*
2189 * If the entire log vec does not fit in the iclog, punt it to
2190 * the partial copy loop which can handle this case.
2191 */
2192 if (lv->lv_niovecs &&
2193 lv->lv_bytes > xlog_write_space_left(&data)) {
2194 error = xlog_write_partial(lv, &data);
2195 if (error) {
2196 /*
2197 * We have no iclog to release, so just return
2198 * the error immediately.
2199 */
2200 return error;
2201 }
2202 } else {
2203 xlog_write_full(lv, &data);
2204 }
2205 }
2206 ASSERT(data.bytes_left == 0);
2207
2208 /*
2209 * We've already been guaranteed that the last writes will fit inside
2210 * the current iclog, and hence it will already have the space used by
2211 * those writes accounted to it. Hence we do not need to update the
2212 * iclog with the number of bytes written here.
2213 */
2214 spin_lock(&log->l_icloglock);
2215 xlog_state_finish_copy(log, data.iclog, data.record_cnt, 0);
2216 error = xlog_state_release_iclog(log, data.iclog, ticket);
2217 spin_unlock(&log->l_icloglock);
2218
2219 return error;
2220 }
2221
2222 static void
xlog_state_activate_iclog(struct xlog_in_core * iclog,int * iclogs_changed)2223 xlog_state_activate_iclog(
2224 struct xlog_in_core *iclog,
2225 int *iclogs_changed)
2226 {
2227 ASSERT(list_empty_careful(&iclog->ic_callbacks));
2228 trace_xlog_iclog_activate(iclog, _RET_IP_);
2229
2230 /*
2231 * If the number of ops in this iclog indicate it just contains the
2232 * dummy transaction, we can change state into IDLE (the second time
2233 * around). Otherwise we should change the state into NEED a dummy.
2234 * We don't need to cover the dummy.
2235 */
2236 if (*iclogs_changed == 0 &&
2237 iclog->ic_header->h_num_logops == cpu_to_be32(XLOG_COVER_OPS)) {
2238 *iclogs_changed = 1;
2239 } else {
2240 /*
2241 * We have two dirty iclogs so start over. This could also be
2242 * num of ops indicating this is not the dummy going out.
2243 */
2244 *iclogs_changed = 2;
2245 }
2246
2247 iclog->ic_state = XLOG_STATE_ACTIVE;
2248 iclog->ic_offset = 0;
2249 iclog->ic_header->h_num_logops = 0;
2250 memset(iclog->ic_header->h_cycle_data, 0,
2251 sizeof(iclog->ic_header->h_cycle_data));
2252 iclog->ic_header->h_lsn = 0;
2253 iclog->ic_header->h_tail_lsn = 0;
2254 }
2255
2256 /*
2257 * Loop through all iclogs and mark all iclogs currently marked DIRTY as
2258 * ACTIVE after iclog I/O has completed.
2259 */
2260 static void
xlog_state_activate_iclogs(struct xlog * log,int * iclogs_changed)2261 xlog_state_activate_iclogs(
2262 struct xlog *log,
2263 int *iclogs_changed)
2264 {
2265 struct xlog_in_core *iclog = log->l_iclog;
2266
2267 do {
2268 if (iclog->ic_state == XLOG_STATE_DIRTY)
2269 xlog_state_activate_iclog(iclog, iclogs_changed);
2270 /*
2271 * The ordering of marking iclogs ACTIVE must be maintained, so
2272 * an iclog doesn't become ACTIVE beyond one that is SYNCING.
2273 */
2274 else if (iclog->ic_state != XLOG_STATE_ACTIVE)
2275 break;
2276 } while ((iclog = iclog->ic_next) != log->l_iclog);
2277 }
2278
2279 static int
xlog_covered_state(int prev_state,int iclogs_changed)2280 xlog_covered_state(
2281 int prev_state,
2282 int iclogs_changed)
2283 {
2284 /*
2285 * We go to NEED for any non-covering writes. We go to NEED2 if we just
2286 * wrote the first covering record (DONE). We go to IDLE if we just
2287 * wrote the second covering record (DONE2) and remain in IDLE until a
2288 * non-covering write occurs.
2289 */
2290 switch (prev_state) {
2291 case XLOG_STATE_COVER_IDLE:
2292 if (iclogs_changed == 1)
2293 return XLOG_STATE_COVER_IDLE;
2294 fallthrough;
2295 case XLOG_STATE_COVER_NEED:
2296 case XLOG_STATE_COVER_NEED2:
2297 break;
2298 case XLOG_STATE_COVER_DONE:
2299 if (iclogs_changed == 1)
2300 return XLOG_STATE_COVER_NEED2;
2301 break;
2302 case XLOG_STATE_COVER_DONE2:
2303 if (iclogs_changed == 1)
2304 return XLOG_STATE_COVER_IDLE;
2305 break;
2306 default:
2307 ASSERT(0);
2308 }
2309
2310 return XLOG_STATE_COVER_NEED;
2311 }
2312
2313 STATIC void
xlog_state_clean_iclog(struct xlog * log,struct xlog_in_core * dirty_iclog)2314 xlog_state_clean_iclog(
2315 struct xlog *log,
2316 struct xlog_in_core *dirty_iclog)
2317 {
2318 int iclogs_changed = 0;
2319
2320 trace_xlog_iclog_clean(dirty_iclog, _RET_IP_);
2321
2322 dirty_iclog->ic_state = XLOG_STATE_DIRTY;
2323
2324 xlog_state_activate_iclogs(log, &iclogs_changed);
2325 wake_up_all(&dirty_iclog->ic_force_wait);
2326
2327 if (iclogs_changed) {
2328 log->l_covered_state = xlog_covered_state(log->l_covered_state,
2329 iclogs_changed);
2330 }
2331 }
2332
2333 STATIC xfs_lsn_t
xlog_get_lowest_lsn(struct xlog * log)2334 xlog_get_lowest_lsn(
2335 struct xlog *log)
2336 {
2337 struct xlog_in_core *iclog = log->l_iclog;
2338 xfs_lsn_t lowest_lsn = 0, lsn;
2339
2340 do {
2341 if (iclog->ic_state == XLOG_STATE_ACTIVE ||
2342 iclog->ic_state == XLOG_STATE_DIRTY)
2343 continue;
2344
2345 lsn = be64_to_cpu(iclog->ic_header->h_lsn);
2346 if ((lsn && !lowest_lsn) || XFS_LSN_CMP(lsn, lowest_lsn) < 0)
2347 lowest_lsn = lsn;
2348 } while ((iclog = iclog->ic_next) != log->l_iclog);
2349
2350 return lowest_lsn;
2351 }
2352
2353 /*
2354 * Return true if we need to stop processing, false to continue to the next
2355 * iclog. The caller will need to run callbacks if the iclog is returned in the
2356 * XLOG_STATE_CALLBACK state.
2357 */
2358 static bool
xlog_state_iodone_process_iclog(struct xlog * log,struct xlog_in_core * iclog)2359 xlog_state_iodone_process_iclog(
2360 struct xlog *log,
2361 struct xlog_in_core *iclog)
2362 {
2363 xfs_lsn_t lowest_lsn;
2364 xfs_lsn_t header_lsn;
2365
2366 switch (iclog->ic_state) {
2367 case XLOG_STATE_ACTIVE:
2368 case XLOG_STATE_DIRTY:
2369 /*
2370 * Skip all iclogs in the ACTIVE & DIRTY states:
2371 */
2372 return false;
2373 case XLOG_STATE_DONE_SYNC:
2374 /*
2375 * Now that we have an iclog that is in the DONE_SYNC state, do
2376 * one more check here to see if we have chased our tail around.
2377 * If this is not the lowest lsn iclog, then we will leave it
2378 * for another completion to process.
2379 */
2380 header_lsn = be64_to_cpu(iclog->ic_header->h_lsn);
2381 lowest_lsn = xlog_get_lowest_lsn(log);
2382 if (lowest_lsn && XFS_LSN_CMP(lowest_lsn, header_lsn) < 0)
2383 return false;
2384 /*
2385 * If there are no callbacks on this iclog, we can mark it clean
2386 * immediately and return. Otherwise we need to run the
2387 * callbacks.
2388 */
2389 if (list_empty(&iclog->ic_callbacks)) {
2390 xlog_state_clean_iclog(log, iclog);
2391 return false;
2392 }
2393 trace_xlog_iclog_callback(iclog, _RET_IP_);
2394 iclog->ic_state = XLOG_STATE_CALLBACK;
2395 return false;
2396 default:
2397 /*
2398 * Can only perform callbacks in order. Since this iclog is not
2399 * in the DONE_SYNC state, we skip the rest and just try to
2400 * clean up.
2401 */
2402 return true;
2403 }
2404 }
2405
2406 /*
2407 * Loop over all the iclogs, running attached callbacks on them. Return true if
2408 * we ran any callbacks, indicating that we dropped the icloglock. We don't need
2409 * to handle transient shutdown state here at all because
2410 * xlog_state_shutdown_callbacks() will be run to do the necessary shutdown
2411 * cleanup of the callbacks.
2412 */
2413 static bool
xlog_state_do_iclog_callbacks(struct xlog * log)2414 xlog_state_do_iclog_callbacks(
2415 struct xlog *log)
2416 __releases(&log->l_icloglock)
2417 __acquires(&log->l_icloglock)
2418 {
2419 struct xlog_in_core *first_iclog = log->l_iclog;
2420 struct xlog_in_core *iclog = first_iclog;
2421 bool ran_callback = false;
2422
2423 do {
2424 LIST_HEAD(cb_list);
2425
2426 if (xlog_state_iodone_process_iclog(log, iclog))
2427 break;
2428 if (iclog->ic_state != XLOG_STATE_CALLBACK) {
2429 iclog = iclog->ic_next;
2430 continue;
2431 }
2432 list_splice_init(&iclog->ic_callbacks, &cb_list);
2433 spin_unlock(&log->l_icloglock);
2434
2435 trace_xlog_iclog_callbacks_start(iclog, _RET_IP_);
2436 xlog_cil_process_committed(&cb_list);
2437 trace_xlog_iclog_callbacks_done(iclog, _RET_IP_);
2438 ran_callback = true;
2439
2440 spin_lock(&log->l_icloglock);
2441 xlog_state_clean_iclog(log, iclog);
2442 iclog = iclog->ic_next;
2443 } while (iclog != first_iclog);
2444
2445 return ran_callback;
2446 }
2447
2448
2449 /*
2450 * Loop running iclog completion callbacks until there are no more iclogs in a
2451 * state that can run callbacks.
2452 */
2453 STATIC void
xlog_state_do_callback(struct xlog * log)2454 xlog_state_do_callback(
2455 struct xlog *log)
2456 {
2457 int flushcnt = 0;
2458 int repeats = 0;
2459
2460 spin_lock(&log->l_icloglock);
2461 while (xlog_state_do_iclog_callbacks(log)) {
2462 if (xlog_is_shutdown(log))
2463 break;
2464
2465 if (++repeats > 5000) {
2466 flushcnt += repeats;
2467 repeats = 0;
2468 xfs_warn(log->l_mp,
2469 "%s: possible infinite loop (%d iterations)",
2470 __func__, flushcnt);
2471 }
2472 }
2473
2474 if (log->l_iclog->ic_state == XLOG_STATE_ACTIVE)
2475 wake_up_all(&log->l_flush_wait);
2476
2477 spin_unlock(&log->l_icloglock);
2478 }
2479
2480
2481 /*
2482 * Finish transitioning this iclog to the dirty state.
2483 *
2484 * Callbacks could take time, so they are done outside the scope of the
2485 * global state machine log lock.
2486 */
2487 STATIC void
xlog_state_done_syncing(struct xlog_in_core * iclog)2488 xlog_state_done_syncing(
2489 struct xlog_in_core *iclog)
2490 {
2491 struct xlog *log = iclog->ic_log;
2492
2493 spin_lock(&log->l_icloglock);
2494 ASSERT(atomic_read(&iclog->ic_refcnt) == 0);
2495 trace_xlog_iclog_sync_done(iclog, _RET_IP_);
2496
2497 /*
2498 * If we got an error, either on the first buffer, or in the case of
2499 * split log writes, on the second, we shut down the file system and
2500 * no iclogs should ever be attempted to be written to disk again.
2501 */
2502 if (!xlog_is_shutdown(log)) {
2503 ASSERT(iclog->ic_state == XLOG_STATE_SYNCING);
2504 iclog->ic_state = XLOG_STATE_DONE_SYNC;
2505 }
2506
2507 /*
2508 * Someone could be sleeping prior to writing out the next
2509 * iclog buffer, we wake them all, one will get to do the
2510 * I/O, the others get to wait for the result.
2511 */
2512 wake_up_all(&iclog->ic_write_wait);
2513 spin_unlock(&log->l_icloglock);
2514 xlog_state_do_callback(log);
2515 }
2516
2517 /*
2518 * If the head of the in-core log ring is not (ACTIVE or DIRTY), then we must
2519 * sleep. We wait on the flush queue on the head iclog as that should be
2520 * the first iclog to complete flushing. Hence if all iclogs are syncing,
2521 * we will wait here and all new writes will sleep until a sync completes.
2522 *
2523 * The in-core logs are used in a circular fashion. They are not used
2524 * out-of-order even when an iclog past the head is free.
2525 *
2526 * return:
2527 * * log_offset where xlog_write() can start writing into the in-core
2528 * log's data space.
2529 * * in-core log pointer to which xlog_write() should write.
2530 * * boolean indicating this is a continued write to an in-core log.
2531 * If this is the last write, then the in-core log's offset field
2532 * needs to be incremented, depending on the amount of data which
2533 * is copied.
2534 */
2535 STATIC int
xlog_state_get_iclog_space(struct xlog * log,struct xlog_write_data * data)2536 xlog_state_get_iclog_space(
2537 struct xlog *log,
2538 struct xlog_write_data *data)
2539 {
2540 int log_offset;
2541 struct xlog_rec_header *head;
2542 struct xlog_in_core *iclog;
2543
2544 restart:
2545 spin_lock(&log->l_icloglock);
2546 if (xlog_is_shutdown(log)) {
2547 spin_unlock(&log->l_icloglock);
2548 return -EIO;
2549 }
2550
2551 iclog = log->l_iclog;
2552 if (iclog->ic_state != XLOG_STATE_ACTIVE) {
2553 XFS_STATS_INC(log->l_mp, xs_log_noiclogs);
2554
2555 /* Wait for log writes to have flushed */
2556 xlog_wait(&log->l_flush_wait, &log->l_icloglock);
2557 goto restart;
2558 }
2559
2560 head = iclog->ic_header;
2561
2562 atomic_inc(&iclog->ic_refcnt); /* prevents sync */
2563 log_offset = iclog->ic_offset;
2564
2565 trace_xlog_iclog_get_space(iclog, _RET_IP_);
2566
2567 /* On the 1st write to an iclog, figure out lsn. This works
2568 * if iclogs marked XLOG_STATE_WANT_SYNC always write out what they are
2569 * committing to. If the offset is set, that's how many blocks
2570 * must be written.
2571 */
2572 if (log_offset == 0) {
2573 data->ticket->t_curr_res -= log->l_iclog_hsize;
2574 head->h_cycle = cpu_to_be32(log->l_curr_cycle);
2575 head->h_lsn = cpu_to_be64(
2576 xlog_assign_lsn(log->l_curr_cycle, log->l_curr_block));
2577 ASSERT(log->l_curr_block >= 0);
2578 }
2579
2580 /* If there is enough room to write everything, then do it. Otherwise,
2581 * claim the rest of the region and make sure the XLOG_STATE_WANT_SYNC
2582 * bit is on, so this will get flushed out. Don't update ic_offset
2583 * until you know exactly how many bytes get copied. Therefore, wait
2584 * until later to update ic_offset.
2585 *
2586 * xlog_write() algorithm assumes that at least 2 xlog_op_header's
2587 * can fit into remaining data section.
2588 */
2589 if (iclog->ic_size - iclog->ic_offset <
2590 2 * sizeof(struct xlog_op_header)) {
2591 int error = 0;
2592
2593 xlog_state_switch_iclogs(log, iclog, iclog->ic_size);
2594
2595 /*
2596 * If we are the only one writing to this iclog, sync it to
2597 * disk. We need to do an atomic compare and decrement here to
2598 * avoid racing with concurrent atomic_dec_and_lock() calls in
2599 * xlog_state_release_iclog() when there is more than one
2600 * reference to the iclog.
2601 */
2602 if (!atomic_add_unless(&iclog->ic_refcnt, -1, 1))
2603 error = xlog_state_release_iclog(log, iclog,
2604 data->ticket);
2605 spin_unlock(&log->l_icloglock);
2606 if (error)
2607 return error;
2608 goto restart;
2609 }
2610
2611 /* Do we have enough room to write the full amount in the remainder
2612 * of this iclog? Or must we continue a write on the next iclog and
2613 * mark this iclog as completely taken? In the case where we switch
2614 * iclogs (to mark it taken), this particular iclog will release/sync
2615 * to disk in xlog_write().
2616 */
2617 if (data->bytes_left <= iclog->ic_size - iclog->ic_offset)
2618 iclog->ic_offset += data->bytes_left;
2619 else
2620 xlog_state_switch_iclogs(log, iclog, iclog->ic_size);
2621 data->iclog = iclog;
2622
2623 ASSERT(iclog->ic_offset <= iclog->ic_size);
2624 spin_unlock(&log->l_icloglock);
2625
2626 data->log_offset = log_offset;
2627 return 0;
2628 }
2629
2630 /*
2631 * The first cnt-1 times a ticket goes through here we don't need to move the
2632 * grant write head because the permanent reservation has reserved cnt times the
2633 * unit amount. Release part of current permanent unit reservation and reset
2634 * current reservation to be one units worth. Also move grant reservation head
2635 * forward.
2636 */
2637 void
xfs_log_ticket_regrant(struct xlog * log,struct xlog_ticket * ticket)2638 xfs_log_ticket_regrant(
2639 struct xlog *log,
2640 struct xlog_ticket *ticket)
2641 {
2642 trace_xfs_log_ticket_regrant(log, ticket);
2643
2644 if (ticket->t_cnt > 0)
2645 ticket->t_cnt--;
2646
2647 xlog_grant_sub_space(&log->l_reserve_head, ticket->t_curr_res);
2648 xlog_grant_sub_space(&log->l_write_head, ticket->t_curr_res);
2649 ticket->t_curr_res = ticket->t_unit_res;
2650
2651 trace_xfs_log_ticket_regrant_sub(log, ticket);
2652
2653 /* just return if we still have some of the pre-reserved space */
2654 if (!ticket->t_cnt) {
2655 xlog_grant_add_space(&log->l_reserve_head, ticket->t_unit_res);
2656 trace_xfs_log_ticket_regrant_exit(log, ticket);
2657 }
2658
2659 xfs_log_ticket_put(ticket);
2660 }
2661
2662 /*
2663 * Give back the space left from a reservation.
2664 *
2665 * All the information we need to make a correct determination of space left
2666 * is present. For non-permanent reservations, things are quite easy. The
2667 * count should have been decremented to zero. We only need to deal with the
2668 * space remaining in the current reservation part of the ticket. If the
2669 * ticket contains a permanent reservation, there may be left over space which
2670 * needs to be released. A count of N means that N-1 refills of the current
2671 * reservation can be done before we need to ask for more space. The first
2672 * one goes to fill up the first current reservation. Once we run out of
2673 * space, the count will stay at zero and the only space remaining will be
2674 * in the current reservation field.
2675 */
2676 void
xfs_log_ticket_ungrant(struct xlog * log,struct xlog_ticket * ticket)2677 xfs_log_ticket_ungrant(
2678 struct xlog *log,
2679 struct xlog_ticket *ticket)
2680 {
2681 int bytes;
2682
2683 trace_xfs_log_ticket_ungrant(log, ticket);
2684
2685 if (ticket->t_cnt > 0)
2686 ticket->t_cnt--;
2687
2688 trace_xfs_log_ticket_ungrant_sub(log, ticket);
2689
2690 /*
2691 * If this is a permanent reservation ticket, we may be able to free
2692 * up more space based on the remaining count.
2693 */
2694 bytes = ticket->t_curr_res;
2695 if (ticket->t_cnt > 0) {
2696 ASSERT(ticket->t_flags & XLOG_TIC_PERM_RESERV);
2697 bytes += ticket->t_unit_res*ticket->t_cnt;
2698 }
2699
2700 xlog_grant_sub_space(&log->l_reserve_head, bytes);
2701 xlog_grant_sub_space(&log->l_write_head, bytes);
2702
2703 trace_xfs_log_ticket_ungrant_exit(log, ticket);
2704
2705 xfs_log_space_wake(log->l_mp);
2706 xfs_log_ticket_put(ticket);
2707 }
2708
2709 /*
2710 * This routine will mark the current iclog in the ring as WANT_SYNC and move
2711 * the current iclog pointer to the next iclog in the ring.
2712 */
2713 void
xlog_state_switch_iclogs(struct xlog * log,struct xlog_in_core * iclog,int eventual_size)2714 xlog_state_switch_iclogs(
2715 struct xlog *log,
2716 struct xlog_in_core *iclog,
2717 int eventual_size)
2718 {
2719 ASSERT(iclog->ic_state == XLOG_STATE_ACTIVE);
2720 assert_spin_locked(&log->l_icloglock);
2721 trace_xlog_iclog_switch(iclog, _RET_IP_);
2722
2723 if (!eventual_size)
2724 eventual_size = iclog->ic_offset;
2725 iclog->ic_state = XLOG_STATE_WANT_SYNC;
2726 iclog->ic_header->h_prev_block = cpu_to_be32(log->l_prev_block);
2727 log->l_prev_block = log->l_curr_block;
2728 log->l_prev_cycle = log->l_curr_cycle;
2729
2730 /* roll log?: ic_offset changed later */
2731 log->l_curr_block += BTOBB(eventual_size)+BTOBB(log->l_iclog_hsize);
2732
2733 /* Round up to next log-sunit */
2734 if (log->l_iclog_roundoff > BBSIZE) {
2735 uint32_t sunit_bb = BTOBB(log->l_iclog_roundoff);
2736 log->l_curr_block = roundup(log->l_curr_block, sunit_bb);
2737 }
2738
2739 if (log->l_curr_block >= log->l_logBBsize) {
2740 /*
2741 * Rewind the current block before the cycle is bumped to make
2742 * sure that the combined LSN never transiently moves forward
2743 * when the log wraps to the next cycle. This is to support the
2744 * unlocked sample of these fields from xlog_valid_lsn(). Most
2745 * other cases should acquire l_icloglock.
2746 */
2747 log->l_curr_block -= log->l_logBBsize;
2748 ASSERT(log->l_curr_block >= 0);
2749 smp_wmb();
2750 log->l_curr_cycle++;
2751 if (log->l_curr_cycle == XLOG_HEADER_MAGIC_NUM)
2752 log->l_curr_cycle++;
2753 }
2754 ASSERT(iclog == log->l_iclog);
2755 log->l_iclog = iclog->ic_next;
2756 }
2757
2758 /*
2759 * Force the iclog to disk and check if the iclog has been completed before
2760 * xlog_force_iclog() returns. This can happen on synchronous (e.g.
2761 * pmem) or fast async storage because we drop the icloglock to issue the IO.
2762 * If completion has already occurred, tell the caller so that it can avoid an
2763 * unnecessary wait on the iclog.
2764 */
2765 static int
xlog_force_and_check_iclog(struct xlog * log,struct xlog_in_core * iclog,bool * completed)2766 xlog_force_and_check_iclog(
2767 struct xlog *log,
2768 struct xlog_in_core *iclog,
2769 bool *completed)
2770 __releases(&log->l_icloglock)
2771 __acquires(&log->l_icloglock)
2772 {
2773 xfs_lsn_t lsn = be64_to_cpu(iclog->ic_header->h_lsn);
2774 int error;
2775
2776 *completed = false;
2777 error = xlog_force_iclog(log, iclog);
2778 if (error)
2779 return error;
2780
2781 /*
2782 * If the iclog has already been completed and reused the header LSN
2783 * will have been rewritten by completion
2784 */
2785 if (be64_to_cpu(iclog->ic_header->h_lsn) != lsn)
2786 *completed = true;
2787 return 0;
2788 }
2789
2790 /*
2791 * Write out all data in the in-core log as of this exact moment in time.
2792 *
2793 * Data may be written to the in-core log during this call. However,
2794 * we don't guarantee this data will be written out. A change from past
2795 * implementation means this routine will *not* write out zero length LRs.
2796 *
2797 * Basically, we try and perform an intelligent scan of the in-core logs.
2798 * If we determine there is no flushable data, we just return. There is no
2799 * flushable data if:
2800 *
2801 * 1. the current iclog is active and has no data; the previous iclog
2802 * is in the active or dirty state.
2803 * 2. the current iclog is dirty, and the previous iclog is in the
2804 * active or dirty state.
2805 *
2806 * We may sleep if:
2807 *
2808 * 1. the current iclog is not in the active nor dirty state.
2809 * 2. the current iclog dirty, and the previous iclog is not in the
2810 * active nor dirty state.
2811 * 3. the current iclog is active, and there is another thread writing
2812 * to this particular iclog.
2813 * 4. a) the current iclog is active and has no other writers
2814 * b) when we return from flushing out this iclog, it is still
2815 * not in the active nor dirty state.
2816 */
2817 int
xfs_log_force(struct xfs_mount * mp,uint flags)2818 xfs_log_force(
2819 struct xfs_mount *mp,
2820 uint flags)
2821 {
2822 struct xlog *log = mp->m_log;
2823 struct xlog_in_core *iclog;
2824
2825 XFS_STATS_INC(mp, xs_log_force);
2826 trace_xfs_log_force(mp, 0, _RET_IP_);
2827
2828 xlog_cil_force(log);
2829
2830 spin_lock(&log->l_icloglock);
2831 if (xlog_is_shutdown(log))
2832 goto out_error;
2833
2834 iclog = log->l_iclog;
2835 trace_xlog_iclog_force(iclog, _RET_IP_);
2836
2837 if (iclog->ic_state == XLOG_STATE_DIRTY ||
2838 (iclog->ic_state == XLOG_STATE_ACTIVE &&
2839 atomic_read(&iclog->ic_refcnt) == 0 && iclog->ic_offset == 0)) {
2840 /*
2841 * If the head is dirty or (active and empty), then we need to
2842 * look at the previous iclog.
2843 *
2844 * If the previous iclog is active or dirty we are done. There
2845 * is nothing to sync out. Otherwise, we attach ourselves to the
2846 * previous iclog and go to sleep.
2847 */
2848 iclog = iclog->ic_prev;
2849 } else if (iclog->ic_state == XLOG_STATE_ACTIVE) {
2850 if (atomic_read(&iclog->ic_refcnt) == 0) {
2851 /* We have exclusive access to this iclog. */
2852 bool completed;
2853
2854 if (xlog_force_and_check_iclog(log, iclog, &completed))
2855 goto out_error;
2856
2857 if (completed)
2858 goto out_unlock;
2859 } else {
2860 /*
2861 * Someone else is still writing to this iclog, so we
2862 * need to ensure that when they release the iclog it
2863 * gets synced immediately as we may be waiting on it.
2864 */
2865 xlog_state_switch_iclogs(log, iclog, 0);
2866 }
2867 }
2868
2869 /*
2870 * The iclog we are about to wait on may contain the checkpoint pushed
2871 * by the above xlog_cil_force() call, but it may not have been pushed
2872 * to disk yet. Like the ACTIVE case above, we need to make sure caches
2873 * are flushed when this iclog is written.
2874 */
2875 if (iclog->ic_state == XLOG_STATE_WANT_SYNC)
2876 iclog->ic_flags |= XLOG_ICL_NEED_FLUSH | XLOG_ICL_NEED_FUA;
2877
2878 if (flags & XFS_LOG_SYNC)
2879 return xlog_wait_on_iclog(log, iclog);
2880 out_unlock:
2881 spin_unlock(&log->l_icloglock);
2882 return 0;
2883 out_error:
2884 spin_unlock(&log->l_icloglock);
2885 return -EIO;
2886 }
2887
2888 /*
2889 * Force the log to a specific LSN.
2890 *
2891 * If an iclog with that lsn can be found:
2892 * If it is in the DIRTY state, just return.
2893 * If it is in the ACTIVE state, move the in-core log into the WANT_SYNC
2894 * state and go to sleep or return.
2895 * If it is in any other state, go to sleep or return.
2896 *
2897 * Synchronous forces are implemented with a wait queue. All callers trying
2898 * to force a given lsn to disk must wait on the queue attached to the
2899 * specific in-core log. When given in-core log finally completes its write
2900 * to disk, that thread will wake up all threads waiting on the queue.
2901 */
2902 static int
xlog_force_lsn(struct xlog * log,xfs_lsn_t lsn,uint flags,int * log_flushed,bool already_slept)2903 xlog_force_lsn(
2904 struct xlog *log,
2905 xfs_lsn_t lsn,
2906 uint flags,
2907 int *log_flushed,
2908 bool already_slept)
2909 {
2910 struct xlog_in_core *iclog;
2911 bool completed;
2912
2913 spin_lock(&log->l_icloglock);
2914 if (xlog_is_shutdown(log))
2915 goto out_error;
2916
2917 iclog = log->l_iclog;
2918 while (be64_to_cpu(iclog->ic_header->h_lsn) != lsn) {
2919 trace_xlog_iclog_force_lsn(iclog, _RET_IP_);
2920 iclog = iclog->ic_next;
2921 if (iclog == log->l_iclog)
2922 goto out_unlock;
2923 }
2924
2925 switch (iclog->ic_state) {
2926 case XLOG_STATE_ACTIVE:
2927 /*
2928 * We sleep here if we haven't already slept (e.g. this is the
2929 * first time we've looked at the correct iclog buf) and the
2930 * buffer before us is going to be sync'ed. The reason for this
2931 * is that if we are doing sync transactions here, by waiting
2932 * for the previous I/O to complete, we can allow a few more
2933 * transactions into this iclog before we close it down.
2934 *
2935 * Otherwise, we mark the buffer WANT_SYNC, and bump up the
2936 * refcnt so we can release the log (which drops the ref count).
2937 * The state switch keeps new transaction commits from using
2938 * this buffer. When the current commits finish writing into
2939 * the buffer, the refcount will drop to zero and the buffer
2940 * will go out then.
2941 */
2942 if (!already_slept &&
2943 (iclog->ic_prev->ic_state == XLOG_STATE_WANT_SYNC ||
2944 iclog->ic_prev->ic_state == XLOG_STATE_SYNCING)) {
2945 xlog_wait(&iclog->ic_prev->ic_write_wait,
2946 &log->l_icloglock);
2947 return -EAGAIN;
2948 }
2949 if (xlog_force_and_check_iclog(log, iclog, &completed))
2950 goto out_error;
2951 if (log_flushed)
2952 *log_flushed = 1;
2953 if (completed)
2954 goto out_unlock;
2955 break;
2956 case XLOG_STATE_WANT_SYNC:
2957 /*
2958 * This iclog may contain the checkpoint pushed by the
2959 * xlog_cil_force_seq() call, but there are other writers still
2960 * accessing it so it hasn't been pushed to disk yet. Like the
2961 * ACTIVE case above, we need to make sure caches are flushed
2962 * when this iclog is written.
2963 */
2964 iclog->ic_flags |= XLOG_ICL_NEED_FLUSH | XLOG_ICL_NEED_FUA;
2965 break;
2966 default:
2967 /*
2968 * The entire checkpoint was written by the CIL force and is on
2969 * its way to disk already. It will be stable when it
2970 * completes, so we don't need to manipulate caches here at all.
2971 * We just need to wait for completion if necessary.
2972 */
2973 break;
2974 }
2975
2976 if (flags & XFS_LOG_SYNC)
2977 return xlog_wait_on_iclog(log, iclog);
2978 out_unlock:
2979 spin_unlock(&log->l_icloglock);
2980 return 0;
2981 out_error:
2982 spin_unlock(&log->l_icloglock);
2983 return -EIO;
2984 }
2985
2986 /*
2987 * Force the log to a specific checkpoint sequence.
2988 *
2989 * First force the CIL so that all the required changes have been flushed to the
2990 * iclogs. If the CIL force completed it will return a commit LSN that indicates
2991 * the iclog that needs to be flushed to stable storage. If the caller needs
2992 * a synchronous log force, we will wait on the iclog with the LSN returned by
2993 * xlog_cil_force_seq() to be completed.
2994 */
2995 int
xfs_log_force_seq(struct xfs_mount * mp,xfs_csn_t seq,uint flags,int * log_flushed)2996 xfs_log_force_seq(
2997 struct xfs_mount *mp,
2998 xfs_csn_t seq,
2999 uint flags,
3000 int *log_flushed)
3001 {
3002 struct xlog *log = mp->m_log;
3003 xfs_lsn_t lsn;
3004 int ret;
3005 ASSERT(seq != 0);
3006
3007 XFS_STATS_INC(mp, xs_log_force);
3008 trace_xfs_log_force(mp, seq, _RET_IP_);
3009
3010 lsn = xlog_cil_force_seq(log, seq);
3011 if (lsn == NULLCOMMITLSN)
3012 return 0;
3013
3014 ret = xlog_force_lsn(log, lsn, flags, log_flushed, false);
3015 if (ret == -EAGAIN) {
3016 XFS_STATS_INC(mp, xs_log_force_sleep);
3017 ret = xlog_force_lsn(log, lsn, flags, log_flushed, true);
3018 }
3019 return ret;
3020 }
3021
3022 /*
3023 * Free a used ticket when its refcount falls to zero.
3024 */
3025 void
xfs_log_ticket_put(struct xlog_ticket * ticket)3026 xfs_log_ticket_put(
3027 struct xlog_ticket *ticket)
3028 {
3029 ASSERT(atomic_read(&ticket->t_ref) > 0);
3030 if (atomic_dec_and_test(&ticket->t_ref))
3031 kmem_cache_free(xfs_log_ticket_cache, ticket);
3032 }
3033
3034 struct xlog_ticket *
xfs_log_ticket_get(struct xlog_ticket * ticket)3035 xfs_log_ticket_get(
3036 struct xlog_ticket *ticket)
3037 {
3038 ASSERT(atomic_read(&ticket->t_ref) > 0);
3039 atomic_inc(&ticket->t_ref);
3040 return ticket;
3041 }
3042
3043 /*
3044 * Figure out the total log space unit (in bytes) that would be
3045 * required for a log ticket.
3046 */
3047 static int
xlog_calc_unit_res(struct xlog * log,int unit_bytes,int * niclogs)3048 xlog_calc_unit_res(
3049 struct xlog *log,
3050 int unit_bytes,
3051 int *niclogs)
3052 {
3053 int iclog_space;
3054 uint num_headers;
3055
3056 /*
3057 * Permanent reservations have up to 'cnt'-1 active log operations
3058 * in the log. A unit in this case is the amount of space for one
3059 * of these log operations. Normal reservations have a cnt of 1
3060 * and their unit amount is the total amount of space required.
3061 *
3062 * The following lines of code account for non-transaction data
3063 * which occupy space in the on-disk log.
3064 *
3065 * Normal form of a transaction is:
3066 * <oph><trans-hdr><start-oph><reg1-oph><reg1><reg2-oph>...<commit-oph>
3067 * and then there are LR hdrs, split-recs and roundoff at end of syncs.
3068 *
3069 * We need to account for all the leadup data and trailer data
3070 * around the transaction data.
3071 * And then we need to account for the worst case in terms of using
3072 * more space.
3073 * The worst case will happen if:
3074 * - the placement of the transaction happens to be such that the
3075 * roundoff is at its maximum
3076 * - the transaction data is synced before the commit record is synced
3077 * i.e. <transaction-data><roundoff> | <commit-rec><roundoff>
3078 * Therefore the commit record is in its own Log Record.
3079 * This can happen as the commit record is called with its
3080 * own region to xlog_write().
3081 * This then means that in the worst case, roundoff can happen for
3082 * the commit-rec as well.
3083 * The commit-rec is smaller than padding in this scenario and so it is
3084 * not added separately.
3085 */
3086
3087 /* for trans header */
3088 unit_bytes += sizeof(struct xlog_op_header);
3089 unit_bytes += sizeof(struct xfs_trans_header);
3090
3091 /* for start-rec */
3092 unit_bytes += sizeof(struct xlog_op_header);
3093
3094 /*
3095 * for LR headers - the space for data in an iclog is the size minus
3096 * the space used for the headers. If we use the iclog size, then we
3097 * undercalculate the number of headers required.
3098 *
3099 * Furthermore - the addition of op headers for split-recs might
3100 * increase the space required enough to require more log and op
3101 * headers, so take that into account too.
3102 *
3103 * IMPORTANT: This reservation makes the assumption that if this
3104 * transaction is the first in an iclog and hence has the LR headers
3105 * accounted to it, then the remaining space in the iclog is
3106 * exclusively for this transaction. i.e. if the transaction is larger
3107 * than the iclog, it will be the only thing in that iclog.
3108 * Fundamentally, this means we must pass the entire log vector to
3109 * xlog_write to guarantee this.
3110 */
3111 iclog_space = log->l_iclog_size - log->l_iclog_hsize;
3112 num_headers = howmany(unit_bytes, iclog_space);
3113
3114 /* for split-recs - ophdrs added when data split over LRs */
3115 unit_bytes += sizeof(struct xlog_op_header) * num_headers;
3116
3117 /* add extra header reservations if we overrun */
3118 while (!num_headers ||
3119 howmany(unit_bytes, iclog_space) > num_headers) {
3120 unit_bytes += sizeof(struct xlog_op_header);
3121 num_headers++;
3122 }
3123 unit_bytes += log->l_iclog_hsize * num_headers;
3124
3125 /* for commit-rec LR header - note: padding will subsume the ophdr */
3126 unit_bytes += log->l_iclog_hsize;
3127
3128 /* roundoff padding for transaction data and one for commit record */
3129 unit_bytes += 2 * log->l_iclog_roundoff;
3130
3131 if (niclogs)
3132 *niclogs = num_headers;
3133 return unit_bytes;
3134 }
3135
3136 int
xfs_log_calc_unit_res(struct xfs_mount * mp,int unit_bytes)3137 xfs_log_calc_unit_res(
3138 struct xfs_mount *mp,
3139 int unit_bytes)
3140 {
3141 return xlog_calc_unit_res(mp->m_log, unit_bytes, NULL);
3142 }
3143
3144 /*
3145 * Allocate and initialise a new log ticket.
3146 */
3147 struct xlog_ticket *
xlog_ticket_alloc(struct xlog * log,int unit_bytes,int cnt,bool permanent)3148 xlog_ticket_alloc(
3149 struct xlog *log,
3150 int unit_bytes,
3151 int cnt,
3152 bool permanent)
3153 {
3154 struct xlog_ticket *tic;
3155 int unit_res;
3156
3157 tic = kmem_cache_zalloc(xfs_log_ticket_cache,
3158 GFP_KERNEL | __GFP_NOFAIL);
3159
3160 unit_res = xlog_calc_unit_res(log, unit_bytes, &tic->t_iclog_hdrs);
3161
3162 atomic_set(&tic->t_ref, 1);
3163 tic->t_task = current;
3164 INIT_LIST_HEAD(&tic->t_queue);
3165 tic->t_unit_res = unit_res;
3166 tic->t_curr_res = unit_res;
3167 tic->t_cnt = cnt;
3168 tic->t_ocnt = cnt;
3169 tic->t_tid = get_random_u32();
3170 if (permanent)
3171 tic->t_flags |= XLOG_TIC_PERM_RESERV;
3172
3173 return tic;
3174 }
3175
3176 #if defined(DEBUG)
3177 static void
xlog_verify_dump_tail(struct xlog * log,struct xlog_in_core * iclog)3178 xlog_verify_dump_tail(
3179 struct xlog *log,
3180 struct xlog_in_core *iclog)
3181 {
3182 xfs_alert(log->l_mp,
3183 "ran out of log space tail 0x%llx/0x%llx, head lsn 0x%llx, head 0x%x/0x%x, prev head 0x%x/0x%x",
3184 iclog ? be64_to_cpu(iclog->ic_header->h_tail_lsn) : -1,
3185 atomic64_read(&log->l_tail_lsn),
3186 log->l_ailp->ail_head_lsn,
3187 log->l_curr_cycle, log->l_curr_block,
3188 log->l_prev_cycle, log->l_prev_block);
3189 xfs_alert(log->l_mp,
3190 "write grant 0x%llx, reserve grant 0x%llx, tail_space 0x%llx, size 0x%x, iclog flags 0x%x",
3191 atomic64_read(&log->l_write_head.grant),
3192 atomic64_read(&log->l_reserve_head.grant),
3193 log->l_tail_space, log->l_logsize,
3194 iclog ? iclog->ic_flags : -1);
3195 }
3196
3197 /* Check if the new iclog will fit in the log. */
3198 STATIC void
xlog_verify_tail_lsn(struct xlog * log,struct xlog_in_core * iclog)3199 xlog_verify_tail_lsn(
3200 struct xlog *log,
3201 struct xlog_in_core *iclog)
3202 {
3203 xfs_lsn_t tail_lsn = be64_to_cpu(iclog->ic_header->h_tail_lsn);
3204 int blocks;
3205
3206 if (CYCLE_LSN(tail_lsn) == log->l_prev_cycle) {
3207 blocks = log->l_logBBsize -
3208 (log->l_prev_block - BLOCK_LSN(tail_lsn));
3209 if (blocks < BTOBB(iclog->ic_offset) +
3210 BTOBB(log->l_iclog_hsize)) {
3211 xfs_emerg(log->l_mp,
3212 "%s: ran out of log space", __func__);
3213 xlog_verify_dump_tail(log, iclog);
3214 }
3215 return;
3216 }
3217
3218 if (CYCLE_LSN(tail_lsn) + 1 != log->l_prev_cycle) {
3219 xfs_emerg(log->l_mp, "%s: head has wrapped tail.", __func__);
3220 xlog_verify_dump_tail(log, iclog);
3221 return;
3222 }
3223 if (BLOCK_LSN(tail_lsn) == log->l_prev_block) {
3224 xfs_emerg(log->l_mp, "%s: tail wrapped", __func__);
3225 xlog_verify_dump_tail(log, iclog);
3226 return;
3227 }
3228
3229 blocks = BLOCK_LSN(tail_lsn) - log->l_prev_block;
3230 if (blocks < BTOBB(iclog->ic_offset) + 1) {
3231 xfs_emerg(log->l_mp, "%s: ran out of iclog space", __func__);
3232 xlog_verify_dump_tail(log, iclog);
3233 }
3234 }
3235
3236 /*
3237 * Perform a number of checks on the iclog before writing to disk.
3238 *
3239 * 1. Make sure the iclogs are still circular
3240 * 2. Make sure we have a good magic number
3241 * 3. Make sure we don't have magic numbers in the data
3242 * 4. Check fields of each log operation header for:
3243 * A. Valid client identifier
3244 * B. tid ptr value falls in valid ptr space (user space code)
3245 * C. Length in log record header is correct according to the
3246 * individual operation headers within record.
3247 * 5. When a bwrite will occur within 5 blocks of the front of the physical
3248 * log, check the preceding blocks of the physical log to make sure all
3249 * the cycle numbers agree with the current cycle number.
3250 */
3251 STATIC void
xlog_verify_iclog(struct xlog * log,struct xlog_in_core * iclog,int count)3252 xlog_verify_iclog(
3253 struct xlog *log,
3254 struct xlog_in_core *iclog,
3255 int count)
3256 {
3257 struct xlog_rec_header *rhead = iclog->ic_header;
3258 struct xlog_in_core *icptr;
3259 void *base_ptr, *ptr;
3260 ptrdiff_t field_offset;
3261 uint8_t clientid;
3262 int len, i, op_len;
3263 int idx;
3264
3265 /* check validity of iclog pointers */
3266 spin_lock(&log->l_icloglock);
3267 icptr = log->l_iclog;
3268 for (i = 0; i < log->l_iclog_bufs; i++, icptr = icptr->ic_next)
3269 ASSERT(icptr);
3270
3271 if (icptr != log->l_iclog)
3272 xfs_emerg(log->l_mp, "%s: corrupt iclog ring", __func__);
3273 spin_unlock(&log->l_icloglock);
3274
3275 /* check log magic numbers */
3276 if (rhead->h_magicno != cpu_to_be32(XLOG_HEADER_MAGIC_NUM))
3277 xfs_emerg(log->l_mp, "%s: invalid magic num", __func__);
3278
3279 base_ptr = ptr = rhead;
3280 for (ptr += BBSIZE; ptr < base_ptr + count; ptr += BBSIZE) {
3281 if (*(__be32 *)ptr == cpu_to_be32(XLOG_HEADER_MAGIC_NUM))
3282 xfs_emerg(log->l_mp, "%s: unexpected magic num",
3283 __func__);
3284 }
3285
3286 /* check fields */
3287 len = be32_to_cpu(rhead->h_num_logops);
3288 base_ptr = ptr = iclog->ic_datap;
3289 for (i = 0; i < len; i++) {
3290 struct xlog_op_header *ophead = ptr;
3291 void *p = &ophead->oh_clientid;
3292
3293 /* clientid is only 1 byte */
3294 field_offset = p - base_ptr;
3295 if (field_offset & 0x1ff) {
3296 clientid = ophead->oh_clientid;
3297 } else {
3298 idx = BTOBBT((void *)&ophead->oh_clientid - iclog->ic_datap);
3299 clientid = xlog_get_client_id(*xlog_cycle_data(rhead, idx));
3300 }
3301 if (clientid != XFS_TRANSACTION && clientid != XFS_LOG) {
3302 xfs_warn(log->l_mp,
3303 "%s: op %d invalid clientid %d op "PTR_FMT" offset 0x%lx",
3304 __func__, i, clientid, ophead,
3305 (unsigned long)field_offset);
3306 }
3307
3308 /* check length */
3309 p = &ophead->oh_len;
3310 field_offset = p - base_ptr;
3311 if (field_offset & 0x1ff) {
3312 op_len = be32_to_cpu(ophead->oh_len);
3313 } else {
3314 idx = BTOBBT((void *)&ophead->oh_len - iclog->ic_datap);
3315 op_len = be32_to_cpu(*xlog_cycle_data(rhead, idx));
3316 }
3317 ptr += sizeof(struct xlog_op_header) + op_len;
3318 }
3319 }
3320 #endif
3321
3322 /*
3323 * Perform a forced shutdown on the log.
3324 *
3325 * This can be called from low level log code to trigger a shutdown, or from the
3326 * high level mount shutdown code when the mount shuts down.
3327 *
3328 * Our main objectives here are to make sure that:
3329 * a. if the shutdown was not due to a log IO error, flush the logs to
3330 * disk. Anything modified after this is ignored.
3331 * b. the log gets atomically marked 'XLOG_IO_ERROR' for all interested
3332 * parties to find out. Nothing new gets queued after this is done.
3333 * c. Tasks sleeping on log reservations, pinned objects and
3334 * other resources get woken up.
3335 * d. The mount is also marked as shut down so that log triggered shutdowns
3336 * still behave the same as if they called xfs_forced_shutdown().
3337 *
3338 * Return true if the shutdown cause was a log IO error and we actually shut the
3339 * log down.
3340 */
3341 bool
xlog_force_shutdown(struct xlog * log,uint32_t shutdown_flags)3342 xlog_force_shutdown(
3343 struct xlog *log,
3344 uint32_t shutdown_flags)
3345 {
3346 bool log_error = (shutdown_flags & SHUTDOWN_LOG_IO_ERROR);
3347
3348 if (!log)
3349 return false;
3350
3351 /*
3352 * Ensure that there is only ever one log shutdown being processed.
3353 * If we allow the log force below on a second pass after shutting
3354 * down the log, we risk deadlocking the CIL push as it may require
3355 * locks on objects the current shutdown context holds (e.g. taking
3356 * buffer locks to abort buffers on last unpin of buf log items).
3357 */
3358 if (test_and_set_bit(XLOG_SHUTDOWN_STARTED, &log->l_opstate))
3359 return false;
3360
3361 /*
3362 * Flush all the completed transactions to disk before marking the log
3363 * being shut down. We need to do this first as shutting down the log
3364 * before the force will prevent the log force from flushing the iclogs
3365 * to disk.
3366 *
3367 * When we are in recovery, there are no transactions to flush, and
3368 * we don't want to touch the log because we don't want to perturb the
3369 * current head/tail for future recovery attempts. Hence we need to
3370 * avoid a log force in this case.
3371 *
3372 * If we are shutting down due to a log IO error, then we must avoid
3373 * trying to write the log as that may just result in more IO errors and
3374 * an endless shutdown/force loop.
3375 */
3376 if (!log_error && !xlog_in_recovery(log))
3377 xfs_log_force(log->l_mp, XFS_LOG_SYNC);
3378
3379 /*
3380 * Atomically set the shutdown state. If the shutdown state is already
3381 * set, there someone else is performing the shutdown and so we are done
3382 * here. This should never happen because we should only ever get called
3383 * once by the first shutdown caller.
3384 *
3385 * Much of the log state machine transitions assume that shutdown state
3386 * cannot change once they hold the log->l_icloglock. Hence we need to
3387 * hold that lock here, even though we use the atomic test_and_set_bit()
3388 * operation to set the shutdown state.
3389 */
3390 spin_lock(&log->l_icloglock);
3391 if (test_and_set_bit(XLOG_IO_ERROR, &log->l_opstate)) {
3392 spin_unlock(&log->l_icloglock);
3393 ASSERT(0);
3394 return false;
3395 }
3396 spin_unlock(&log->l_icloglock);
3397
3398 /*
3399 * If this log shutdown also sets the mount shutdown state, issue a
3400 * shutdown warning message.
3401 */
3402 if (!xfs_set_shutdown(log->l_mp)) {
3403 xfs_alert_tag(log->l_mp, XFS_PTAG_SHUTDOWN_LOGERROR,
3404 "Filesystem has been shut down due to log error (0x%x).",
3405 shutdown_flags);
3406 xfs_alert(log->l_mp,
3407 "Please unmount the filesystem and rectify the problem(s).");
3408 if (xfs_error_level >= XFS_ERRLEVEL_HIGH)
3409 xfs_stack_trace();
3410 }
3411
3412 /*
3413 * We don't want anybody waiting for log reservations after this. That
3414 * means we have to wake up everybody queued up on reserveq as well as
3415 * writeq. In addition, we make sure in xlog_{re}grant_log_space that
3416 * we don't enqueue anything once the SHUTDOWN flag is set, and this
3417 * action is protected by the grant locks.
3418 */
3419 xlog_grant_head_wake_all(&log->l_reserve_head);
3420 xlog_grant_head_wake_all(&log->l_write_head);
3421
3422 /*
3423 * Wake up everybody waiting on xfs_log_force. Wake the CIL push first
3424 * as if the log writes were completed. The abort handling in the log
3425 * item committed callback functions will do this again under lock to
3426 * avoid races.
3427 */
3428 spin_lock(&log->l_cilp->xc_push_lock);
3429 wake_up_all(&log->l_cilp->xc_start_wait);
3430 wake_up_all(&log->l_cilp->xc_commit_wait);
3431 spin_unlock(&log->l_cilp->xc_push_lock);
3432
3433 spin_lock(&log->l_icloglock);
3434 xlog_state_shutdown_callbacks(log);
3435 spin_unlock(&log->l_icloglock);
3436
3437 wake_up_var(&log->l_opstate);
3438 if (IS_ENABLED(CONFIG_XFS_RT) && xfs_has_zoned(log->l_mp))
3439 xfs_zoned_wake_all(log->l_mp);
3440
3441 return log_error;
3442 }
3443
3444 STATIC int
xlog_iclogs_empty(struct xlog * log)3445 xlog_iclogs_empty(
3446 struct xlog *log)
3447 {
3448 struct xlog_in_core *iclog = log->l_iclog;
3449
3450 do {
3451 /* endianness does not matter here, zero is zero in
3452 * any language.
3453 */
3454 if (iclog->ic_header->h_num_logops)
3455 return 0;
3456 iclog = iclog->ic_next;
3457 } while (iclog != log->l_iclog);
3458
3459 return 1;
3460 }
3461
3462 /*
3463 * Verify that an LSN stamped into a piece of metadata is valid. This is
3464 * intended for use in read verifiers on v5 superblocks.
3465 */
3466 bool
xfs_log_check_lsn(struct xfs_mount * mp,xfs_lsn_t lsn)3467 xfs_log_check_lsn(
3468 struct xfs_mount *mp,
3469 xfs_lsn_t lsn)
3470 {
3471 struct xlog *log = mp->m_log;
3472 bool valid;
3473
3474 /*
3475 * norecovery mode skips mount-time log processing and unconditionally
3476 * resets the in-core LSN. We can't validate in this mode, but
3477 * modifications are not allowed anyways so just return true.
3478 */
3479 if (xfs_has_norecovery(mp))
3480 return true;
3481
3482 /*
3483 * Some metadata LSNs are initialized to NULL (e.g., the agfl). This is
3484 * handled by recovery and thus safe to ignore here.
3485 */
3486 if (lsn == NULLCOMMITLSN)
3487 return true;
3488
3489 valid = xlog_valid_lsn(mp->m_log, lsn);
3490
3491 /* warn the user about what's gone wrong before verifier failure */
3492 if (!valid) {
3493 spin_lock(&log->l_icloglock);
3494 xfs_warn(mp,
3495 "Corruption warning: Metadata has LSN (%d:%d) ahead of current LSN (%d:%d). "
3496 "Please unmount and run xfs_repair (>= v4.3) to resolve.",
3497 CYCLE_LSN(lsn), BLOCK_LSN(lsn),
3498 log->l_curr_cycle, log->l_curr_block);
3499 spin_unlock(&log->l_icloglock);
3500 }
3501
3502 return valid;
3503 }
3504