1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * journal.c
4 *
5 * Defines functions of journalling api
6 *
7 * Copyright (C) 2003, 2004 Oracle. All rights reserved.
8 */
9
10 #include <linux/fs.h>
11 #include <linux/types.h>
12 #include <linux/slab.h>
13 #include <linux/highmem.h>
14 #include <linux/kthread.h>
15 #include <linux/time.h>
16 #include <linux/random.h>
17 #include <linux/delay.h>
18 #include <linux/writeback.h>
19
20 #include <cluster/masklog.h>
21
22 #include "ocfs2.h"
23
24 #include "alloc.h"
25 #include "blockcheck.h"
26 #include "dir.h"
27 #include "dlmglue.h"
28 #include "extent_map.h"
29 #include "heartbeat.h"
30 #include "inode.h"
31 #include "journal.h"
32 #include "localalloc.h"
33 #include "slot_map.h"
34 #include "super.h"
35 #include "sysfile.h"
36 #include "uptodate.h"
37 #include "quota.h"
38 #include "file.h"
39 #include "namei.h"
40
41 #include "buffer_head_io.h"
42 #include "ocfs2_trace.h"
43
44 DEFINE_SPINLOCK(trans_inc_lock);
45
46 #define ORPHAN_SCAN_SCHEDULE_TIMEOUT 300000
47
48 static int ocfs2_force_read_journal(struct inode *inode);
49 static int ocfs2_recover_node(struct ocfs2_super *osb,
50 int node_num, int slot_num);
51 static int __ocfs2_recovery_thread(void *arg);
52 static int ocfs2_commit_cache(struct ocfs2_super *osb);
53 static int __ocfs2_wait_on_mount(struct ocfs2_super *osb, int quota);
54 static int ocfs2_journal_toggle_dirty(struct ocfs2_super *osb,
55 int dirty, int replayed);
56 static int ocfs2_trylock_journal(struct ocfs2_super *osb,
57 int slot_num);
58 static int ocfs2_recover_orphans(struct ocfs2_super *osb,
59 int slot,
60 enum ocfs2_orphan_reco_type orphan_reco_type);
61 static int ocfs2_commit_thread(void *arg);
62 static void ocfs2_queue_recovery_completion(struct ocfs2_journal *journal,
63 int slot_num,
64 struct ocfs2_dinode *la_dinode,
65 struct ocfs2_dinode *tl_dinode,
66 struct ocfs2_quota_recovery *qrec,
67 enum ocfs2_orphan_reco_type orphan_reco_type);
68
ocfs2_wait_on_mount(struct ocfs2_super * osb)69 static inline int ocfs2_wait_on_mount(struct ocfs2_super *osb)
70 {
71 return __ocfs2_wait_on_mount(osb, 0);
72 }
73
ocfs2_wait_on_quotas(struct ocfs2_super * osb)74 static inline int ocfs2_wait_on_quotas(struct ocfs2_super *osb)
75 {
76 return __ocfs2_wait_on_mount(osb, 1);
77 }
78
79 /*
80 * This replay_map is to track online/offline slots, so we could recover
81 * offline slots during recovery and mount
82 */
83
84 enum ocfs2_replay_state {
85 REPLAY_UNNEEDED = 0, /* Replay is not needed, so ignore this map */
86 REPLAY_NEEDED, /* Replay slots marked in rm_replay_slots */
87 REPLAY_DONE /* Replay was already queued */
88 };
89
90 struct ocfs2_replay_map {
91 unsigned int rm_slots;
92 enum ocfs2_replay_state rm_state;
93 unsigned char rm_replay_slots[] __counted_by(rm_slots);
94 };
95
ocfs2_replay_map_set_state(struct ocfs2_super * osb,int state)96 static void ocfs2_replay_map_set_state(struct ocfs2_super *osb, int state)
97 {
98 if (!osb->replay_map)
99 return;
100
101 /* If we've already queued the replay, we don't have any more to do */
102 if (osb->replay_map->rm_state == REPLAY_DONE)
103 return;
104
105 osb->replay_map->rm_state = state;
106 }
107
ocfs2_compute_replay_slots(struct ocfs2_super * osb)108 int ocfs2_compute_replay_slots(struct ocfs2_super *osb)
109 {
110 struct ocfs2_replay_map *replay_map;
111 int i, node_num;
112
113 /* If replay map is already set, we don't do it again */
114 if (osb->replay_map)
115 return 0;
116
117 replay_map = kzalloc_flex(*replay_map, rm_replay_slots, osb->max_slots);
118 if (!replay_map) {
119 mlog_errno(-ENOMEM);
120 return -ENOMEM;
121 }
122
123 spin_lock(&osb->osb_lock);
124
125 replay_map->rm_slots = osb->max_slots;
126 replay_map->rm_state = REPLAY_UNNEEDED;
127
128 /* set rm_replay_slots for offline slot(s) */
129 for (i = 0; i < replay_map->rm_slots; i++) {
130 if (ocfs2_slot_to_node_num_locked(osb, i, &node_num) == -ENOENT)
131 replay_map->rm_replay_slots[i] = 1;
132 }
133
134 osb->replay_map = replay_map;
135 spin_unlock(&osb->osb_lock);
136 return 0;
137 }
138
ocfs2_queue_replay_slots(struct ocfs2_super * osb,enum ocfs2_orphan_reco_type orphan_reco_type)139 static void ocfs2_queue_replay_slots(struct ocfs2_super *osb,
140 enum ocfs2_orphan_reco_type orphan_reco_type)
141 {
142 struct ocfs2_replay_map *replay_map = osb->replay_map;
143 int i;
144
145 if (!replay_map)
146 return;
147
148 if (replay_map->rm_state != REPLAY_NEEDED)
149 return;
150
151 for (i = 0; i < replay_map->rm_slots; i++)
152 if (replay_map->rm_replay_slots[i])
153 ocfs2_queue_recovery_completion(osb->journal, i, NULL,
154 NULL, NULL,
155 orphan_reco_type);
156 replay_map->rm_state = REPLAY_DONE;
157 }
158
ocfs2_free_replay_slots(struct ocfs2_super * osb)159 void ocfs2_free_replay_slots(struct ocfs2_super *osb)
160 {
161 struct ocfs2_replay_map *replay_map = osb->replay_map;
162
163 if (!osb->replay_map)
164 return;
165
166 kfree(replay_map);
167 osb->replay_map = NULL;
168 }
169
ocfs2_recovery_init(struct ocfs2_super * osb)170 int ocfs2_recovery_init(struct ocfs2_super *osb)
171 {
172 struct ocfs2_recovery_map *rm;
173
174 mutex_init(&osb->recovery_lock);
175 osb->recovery_state = OCFS2_REC_ENABLED;
176 osb->recovery_thread_task = NULL;
177 init_waitqueue_head(&osb->recovery_event);
178
179 rm = kzalloc_flex(*rm, rm_entries, osb->max_slots);
180 if (!rm) {
181 mlog_errno(-ENOMEM);
182 return -ENOMEM;
183 }
184
185 osb->recovery_map = rm;
186
187 return 0;
188 }
189
ocfs2_recovery_thread_running(struct ocfs2_super * osb)190 static int ocfs2_recovery_thread_running(struct ocfs2_super *osb)
191 {
192 return osb->recovery_thread_task != NULL;
193 }
194
ocfs2_recovery_disable(struct ocfs2_super * osb,enum ocfs2_recovery_state state)195 static void ocfs2_recovery_disable(struct ocfs2_super *osb,
196 enum ocfs2_recovery_state state)
197 {
198 mutex_lock(&osb->recovery_lock);
199 /*
200 * If recovery thread is not running, we can directly transition to
201 * final state.
202 */
203 if (!ocfs2_recovery_thread_running(osb)) {
204 osb->recovery_state = state + 1;
205 goto out_lock;
206 }
207 osb->recovery_state = state;
208 /* Wait for recovery thread to acknowledge state transition */
209 wait_event_cmd(osb->recovery_event,
210 !ocfs2_recovery_thread_running(osb) ||
211 osb->recovery_state >= state + 1,
212 mutex_unlock(&osb->recovery_lock),
213 mutex_lock(&osb->recovery_lock));
214 out_lock:
215 mutex_unlock(&osb->recovery_lock);
216
217 /*
218 * At this point we know that no more recovery work can be queued so
219 * wait for any recovery completion work to complete.
220 */
221 if (osb->ocfs2_wq)
222 flush_workqueue(osb->ocfs2_wq);
223 }
224
ocfs2_recovery_disable_quota(struct ocfs2_super * osb)225 void ocfs2_recovery_disable_quota(struct ocfs2_super *osb)
226 {
227 ocfs2_recovery_disable(osb, OCFS2_REC_QUOTA_WANT_DISABLE);
228 }
229
ocfs2_recovery_exit(struct ocfs2_super * osb)230 void ocfs2_recovery_exit(struct ocfs2_super *osb)
231 {
232 struct ocfs2_recovery_map *rm;
233
234 /* disable any new recovery threads and wait for any currently
235 * running ones to exit. Do this before setting the vol_state. */
236 ocfs2_recovery_disable(osb, OCFS2_REC_WANT_DISABLE);
237
238 /*
239 * Now that recovery is shut down, and the osb is about to be
240 * freed, the osb_lock is not taken here.
241 */
242 rm = osb->recovery_map;
243 /* XXX: Should we bug if there are dirty entries? */
244
245 kfree(rm);
246 }
247
__ocfs2_recovery_map_test(struct ocfs2_super * osb,unsigned int node_num)248 static int __ocfs2_recovery_map_test(struct ocfs2_super *osb,
249 unsigned int node_num)
250 {
251 int i;
252 struct ocfs2_recovery_map *rm = osb->recovery_map;
253
254 assert_spin_locked(&osb->osb_lock);
255
256 for (i = 0; i < rm->rm_used; i++) {
257 if (rm->rm_entries[i] == node_num)
258 return 1;
259 }
260
261 return 0;
262 }
263
264 /* Behaves like test-and-set. Returns the previous value */
ocfs2_recovery_map_set(struct ocfs2_super * osb,unsigned int node_num)265 static int ocfs2_recovery_map_set(struct ocfs2_super *osb,
266 unsigned int node_num)
267 {
268 struct ocfs2_recovery_map *rm = osb->recovery_map;
269
270 spin_lock(&osb->osb_lock);
271 if (__ocfs2_recovery_map_test(osb, node_num)) {
272 spin_unlock(&osb->osb_lock);
273 return 1;
274 }
275
276 /* XXX: Can this be exploited? Not from o2dlm... */
277 BUG_ON(rm->rm_used >= osb->max_slots);
278
279 rm->rm_entries[rm->rm_used] = node_num;
280 rm->rm_used++;
281 spin_unlock(&osb->osb_lock);
282
283 return 0;
284 }
285
ocfs2_recovery_map_clear(struct ocfs2_super * osb,unsigned int node_num)286 static void ocfs2_recovery_map_clear(struct ocfs2_super *osb,
287 unsigned int node_num)
288 {
289 int i;
290 struct ocfs2_recovery_map *rm = osb->recovery_map;
291
292 spin_lock(&osb->osb_lock);
293
294 for (i = 0; i < rm->rm_used; i++) {
295 if (rm->rm_entries[i] == node_num)
296 break;
297 }
298
299 if (i < rm->rm_used) {
300 /* XXX: be careful with the pointer math */
301 memmove(&(rm->rm_entries[i]), &(rm->rm_entries[i + 1]),
302 (rm->rm_used - i - 1) * sizeof(unsigned int));
303 rm->rm_used--;
304 }
305
306 spin_unlock(&osb->osb_lock);
307 }
308
ocfs2_commit_cache(struct ocfs2_super * osb)309 static int ocfs2_commit_cache(struct ocfs2_super *osb)
310 {
311 int status = 0;
312 unsigned int flushed;
313 struct ocfs2_journal *journal = NULL;
314
315 journal = osb->journal;
316
317 /* Flush all pending commits and checkpoint the journal. */
318 down_write(&journal->j_trans_barrier);
319
320 flushed = atomic_read(&journal->j_num_trans);
321 trace_ocfs2_commit_cache_begin(flushed);
322 if (flushed == 0) {
323 up_write(&journal->j_trans_barrier);
324 goto finally;
325 }
326
327 jbd2_journal_lock_updates(journal->j_journal);
328 status = jbd2_journal_flush(journal->j_journal, 0);
329 jbd2_journal_unlock_updates(journal->j_journal);
330 if (status < 0) {
331 up_write(&journal->j_trans_barrier);
332 mlog_errno(status);
333 goto finally;
334 }
335
336 ocfs2_inc_trans_id(journal);
337
338 flushed = atomic_read(&journal->j_num_trans);
339 atomic_set(&journal->j_num_trans, 0);
340 up_write(&journal->j_trans_barrier);
341
342 trace_ocfs2_commit_cache_end(journal->j_trans_id, flushed);
343
344 ocfs2_wake_downconvert_thread(osb);
345 wake_up(&journal->j_checkpointed);
346 finally:
347 return status;
348 }
349
ocfs2_start_trans(struct ocfs2_super * osb,int max_buffs)350 handle_t *ocfs2_start_trans(struct ocfs2_super *osb, int max_buffs)
351 {
352 journal_t *journal = osb->journal->j_journal;
353 handle_t *handle;
354
355 BUG_ON(!osb || !osb->journal->j_journal);
356
357 if (ocfs2_is_hard_readonly(osb))
358 return ERR_PTR(-EROFS);
359
360 BUG_ON(osb->journal->j_state == OCFS2_JOURNAL_FREE);
361 BUG_ON(max_buffs <= 0);
362
363 /* Nested transaction? Just return the handle... */
364 if (journal_current_handle())
365 return jbd2_journal_start(journal, max_buffs);
366
367 sb_start_intwrite(osb->sb);
368
369 down_read(&osb->journal->j_trans_barrier);
370
371 handle = jbd2_journal_start(journal, max_buffs);
372 if (IS_ERR(handle)) {
373 up_read(&osb->journal->j_trans_barrier);
374 sb_end_intwrite(osb->sb);
375
376 mlog_errno(PTR_ERR(handle));
377
378 if (is_journal_aborted(journal)) {
379 ocfs2_abort(osb->sb, "Detected aborted journal\n");
380 handle = ERR_PTR(-EROFS);
381 }
382 } else {
383 if (!ocfs2_mount_local(osb))
384 atomic_inc(&(osb->journal->j_num_trans));
385 }
386
387 return handle;
388 }
389
ocfs2_commit_trans(struct ocfs2_super * osb,handle_t * handle)390 int ocfs2_commit_trans(struct ocfs2_super *osb,
391 handle_t *handle)
392 {
393 int ret, nested;
394 struct ocfs2_journal *journal = osb->journal;
395
396 BUG_ON(!handle);
397
398 nested = handle->h_ref > 1;
399 ret = jbd2_journal_stop(handle);
400 if (ret < 0)
401 mlog_errno(ret);
402
403 if (!nested) {
404 up_read(&journal->j_trans_barrier);
405 sb_end_intwrite(osb->sb);
406 }
407
408 return ret;
409 }
410
411 /*
412 * 'nblocks' is what you want to add to the current transaction.
413 *
414 * This might call jbd2_journal_restart() which will commit dirty buffers
415 * and then restart the transaction. Before calling
416 * ocfs2_extend_trans(), any changed blocks should have been
417 * dirtied. After calling it, all blocks which need to be changed must
418 * go through another set of journal_access/journal_dirty calls.
419 *
420 * WARNING: This will not release any semaphores or disk locks taken
421 * during the transaction, so make sure they were taken *before*
422 * start_trans or we'll have ordering deadlocks.
423 *
424 * WARNING2: Note that we do *not* drop j_trans_barrier here. This is
425 * good because transaction ids haven't yet been recorded on the
426 * cluster locks associated with this handle.
427 */
ocfs2_extend_trans(handle_t * handle,int nblocks)428 int ocfs2_extend_trans(handle_t *handle, int nblocks)
429 {
430 int status, old_nblocks;
431
432 BUG_ON(!handle);
433 BUG_ON(nblocks < 0);
434
435 if (!nblocks)
436 return 0;
437
438 old_nblocks = jbd2_handle_buffer_credits(handle);
439
440 trace_ocfs2_extend_trans(old_nblocks, nblocks);
441
442 #ifdef CONFIG_OCFS2_DEBUG_FS
443 status = 1;
444 #else
445 status = jbd2_journal_extend(handle, nblocks, 0);
446 if (status < 0) {
447 mlog_errno(status);
448 goto bail;
449 }
450 #endif
451
452 if (status > 0) {
453 trace_ocfs2_extend_trans_restart(old_nblocks + nblocks);
454 status = jbd2_journal_restart(handle,
455 old_nblocks + nblocks);
456 if (status < 0) {
457 mlog_errno(status);
458 goto bail;
459 }
460 }
461
462 status = 0;
463 bail:
464 return status;
465 }
466
467 /*
468 * Make sure handle has at least 'nblocks' credits available. If it does not
469 * have that many credits available, we will try to extend the handle to have
470 * enough credits. If that fails, we will restart transaction to have enough
471 * credits. Similar notes regarding data consistency and locking implications
472 * as for ocfs2_extend_trans() apply here.
473 */
ocfs2_assure_trans_credits(handle_t * handle,int nblocks)474 int ocfs2_assure_trans_credits(handle_t *handle, int nblocks)
475 {
476 int old_nblks = jbd2_handle_buffer_credits(handle);
477
478 trace_ocfs2_assure_trans_credits(old_nblks);
479 if (old_nblks >= nblocks)
480 return 0;
481 return ocfs2_extend_trans(handle, nblocks - old_nblks);
482 }
483
484 /*
485 * If we have fewer than thresh credits, extend by OCFS2_MAX_TRANS_DATA.
486 * If that fails, restart the transaction & regain write access for the
487 * buffer head which is used for metadata modifications.
488 * Taken from Ext4: extend_or_restart_transaction()
489 */
ocfs2_allocate_extend_trans(handle_t * handle,int thresh)490 int ocfs2_allocate_extend_trans(handle_t *handle, int thresh)
491 {
492 int status, old_nblks;
493
494 BUG_ON(!handle);
495
496 old_nblks = jbd2_handle_buffer_credits(handle);
497 trace_ocfs2_allocate_extend_trans(old_nblks, thresh);
498
499 if (old_nblks < thresh)
500 return 0;
501
502 status = jbd2_journal_extend(handle, OCFS2_MAX_TRANS_DATA, 0);
503 if (status < 0) {
504 mlog_errno(status);
505 goto bail;
506 }
507
508 if (status > 0) {
509 status = jbd2_journal_restart(handle, OCFS2_MAX_TRANS_DATA);
510 if (status < 0)
511 mlog_errno(status);
512 }
513
514 bail:
515 return status;
516 }
517
to_ocfs2_trigger(struct jbd2_buffer_trigger_type * triggers)518 static inline struct ocfs2_triggers *to_ocfs2_trigger(struct jbd2_buffer_trigger_type *triggers)
519 {
520 return container_of(triggers, struct ocfs2_triggers, ot_triggers);
521 }
522
ocfs2_frozen_trigger(struct jbd2_buffer_trigger_type * triggers,struct buffer_head * bh,void * data,size_t size)523 static void ocfs2_frozen_trigger(struct jbd2_buffer_trigger_type *triggers,
524 struct buffer_head *bh,
525 void *data, size_t size)
526 {
527 struct ocfs2_triggers *ot = to_ocfs2_trigger(triggers);
528
529 /*
530 * We aren't guaranteed to have the superblock here, so we
531 * must unconditionally compute the ecc data.
532 * __ocfs2_journal_access() will only set the triggers if
533 * metaecc is enabled.
534 */
535 ocfs2_block_check_compute(data, size, data + ot->ot_offset);
536 }
537
538 /*
539 * Quota blocks have their own trigger because the struct ocfs2_block_check
540 * offset depends on the blocksize.
541 */
ocfs2_dq_frozen_trigger(struct jbd2_buffer_trigger_type * triggers,struct buffer_head * bh,void * data,size_t size)542 static void ocfs2_dq_frozen_trigger(struct jbd2_buffer_trigger_type *triggers,
543 struct buffer_head *bh,
544 void *data, size_t size)
545 {
546 struct ocfs2_disk_dqtrailer *dqt =
547 ocfs2_block_dqtrailer(size, data);
548
549 /*
550 * We aren't guaranteed to have the superblock here, so we
551 * must unconditionally compute the ecc data.
552 * __ocfs2_journal_access() will only set the triggers if
553 * metaecc is enabled.
554 */
555 ocfs2_block_check_compute(data, size, &dqt->dq_check);
556 }
557
558 /*
559 * Directory blocks also have their own trigger because the
560 * struct ocfs2_block_check offset depends on the blocksize.
561 */
ocfs2_db_frozen_trigger(struct jbd2_buffer_trigger_type * triggers,struct buffer_head * bh,void * data,size_t size)562 static void ocfs2_db_frozen_trigger(struct jbd2_buffer_trigger_type *triggers,
563 struct buffer_head *bh,
564 void *data, size_t size)
565 {
566 struct ocfs2_dir_block_trailer *trailer =
567 ocfs2_dir_trailer_from_size(size, data);
568
569 /*
570 * We aren't guaranteed to have the superblock here, so we
571 * must unconditionally compute the ecc data.
572 * __ocfs2_journal_access() will only set the triggers if
573 * metaecc is enabled.
574 */
575 ocfs2_block_check_compute(data, size, &trailer->db_check);
576 }
577
ocfs2_abort_trigger(struct jbd2_buffer_trigger_type * triggers,struct buffer_head * bh)578 static void ocfs2_abort_trigger(struct jbd2_buffer_trigger_type *triggers,
579 struct buffer_head *bh)
580 {
581 struct ocfs2_triggers *ot = to_ocfs2_trigger(triggers);
582
583 mlog(ML_ERROR,
584 "ocfs2_abort_trigger called by JBD2. bh = 0x%lx, "
585 "bh->b_blocknr = %llu\n",
586 (unsigned long)bh,
587 (unsigned long long)bh->b_blocknr);
588
589 ocfs2_error(ot->sb,
590 "JBD2 has aborted our journal, ocfs2 cannot continue\n");
591 }
592
ocfs2_setup_csum_triggers(struct super_block * sb,enum ocfs2_journal_trigger_type type,struct ocfs2_triggers * ot)593 static void ocfs2_setup_csum_triggers(struct super_block *sb,
594 enum ocfs2_journal_trigger_type type,
595 struct ocfs2_triggers *ot)
596 {
597 BUG_ON(type >= OCFS2_JOURNAL_TRIGGER_COUNT);
598
599 switch (type) {
600 case OCFS2_JTR_DI:
601 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
602 ot->ot_offset = offsetof(struct ocfs2_dinode, i_check);
603 break;
604 case OCFS2_JTR_EB:
605 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
606 ot->ot_offset = offsetof(struct ocfs2_extent_block, h_check);
607 break;
608 case OCFS2_JTR_RB:
609 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
610 ot->ot_offset = offsetof(struct ocfs2_refcount_block, rf_check);
611 break;
612 case OCFS2_JTR_GD:
613 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
614 ot->ot_offset = offsetof(struct ocfs2_group_desc, bg_check);
615 break;
616 case OCFS2_JTR_DB:
617 ot->ot_triggers.t_frozen = ocfs2_db_frozen_trigger;
618 break;
619 case OCFS2_JTR_XB:
620 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
621 ot->ot_offset = offsetof(struct ocfs2_xattr_block, xb_check);
622 break;
623 case OCFS2_JTR_DQ:
624 ot->ot_triggers.t_frozen = ocfs2_dq_frozen_trigger;
625 break;
626 case OCFS2_JTR_DR:
627 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
628 ot->ot_offset = offsetof(struct ocfs2_dx_root_block, dr_check);
629 break;
630 case OCFS2_JTR_DL:
631 ot->ot_triggers.t_frozen = ocfs2_frozen_trigger;
632 ot->ot_offset = offsetof(struct ocfs2_dx_leaf, dl_check);
633 break;
634 case OCFS2_JTR_NONE:
635 /* To make compiler happy... */
636 return;
637 }
638
639 ot->ot_triggers.t_abort = ocfs2_abort_trigger;
640 ot->sb = sb;
641 }
642
ocfs2_initialize_journal_triggers(struct super_block * sb,struct ocfs2_triggers triggers[])643 void ocfs2_initialize_journal_triggers(struct super_block *sb,
644 struct ocfs2_triggers triggers[])
645 {
646 enum ocfs2_journal_trigger_type type;
647
648 for (type = OCFS2_JTR_DI; type < OCFS2_JOURNAL_TRIGGER_COUNT; type++)
649 ocfs2_setup_csum_triggers(sb, type, &triggers[type]);
650 }
651
__ocfs2_journal_access(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,struct ocfs2_triggers * triggers,int type)652 static int __ocfs2_journal_access(handle_t *handle,
653 struct ocfs2_caching_info *ci,
654 struct buffer_head *bh,
655 struct ocfs2_triggers *triggers,
656 int type)
657 {
658 int status;
659 struct ocfs2_super *osb =
660 OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
661
662 BUG_ON(!ci || !ci->ci_ops);
663 BUG_ON(!handle);
664 BUG_ON(!bh);
665
666 trace_ocfs2_journal_access(
667 (unsigned long long)ocfs2_metadata_cache_owner(ci),
668 (unsigned long long)bh->b_blocknr, type, bh->b_size);
669
670 /* we can safely remove this assertion after testing. */
671 if (!buffer_uptodate(bh)) {
672 mlog(ML_ERROR, "giving me a buffer that's not uptodate!\n");
673 mlog(ML_ERROR, "b_blocknr=%llu, b_state=0x%lx\n",
674 (unsigned long long)bh->b_blocknr, bh->b_state);
675
676 lock_buffer(bh);
677 /*
678 * A previous transaction with a couple of buffer heads fail
679 * to checkpoint, so all the bhs are marked as BH_Write_EIO.
680 * For current transaction, the bh is just among those error
681 * bhs which previous transaction handle. We can't just clear
682 * its BH_Write_EIO and reuse directly, since other bhs are
683 * not written to disk yet and that will cause metadata
684 * inconsistency. So we should set fs read-only to avoid
685 * further damage.
686 */
687 if (buffer_write_io_error(bh) && !buffer_uptodate(bh)) {
688 unlock_buffer(bh);
689 return ocfs2_error(osb->sb, "A previous attempt to "
690 "write this buffer head failed\n");
691 }
692 unlock_buffer(bh);
693 }
694
695 /* Set the current transaction information on the ci so
696 * that the locking code knows whether it can drop it's locks
697 * on this ci or not. We're protected from the commit
698 * thread updating the current transaction id until
699 * ocfs2_commit_trans() because ocfs2_start_trans() took
700 * j_trans_barrier for us. */
701 ocfs2_set_ci_lock_trans(osb->journal, ci);
702
703 ocfs2_metadata_cache_io_lock(ci);
704 switch (type) {
705 case OCFS2_JOURNAL_ACCESS_CREATE:
706 case OCFS2_JOURNAL_ACCESS_WRITE:
707 status = jbd2_journal_get_write_access(handle, bh);
708 break;
709
710 case OCFS2_JOURNAL_ACCESS_UNDO:
711 status = jbd2_journal_get_undo_access(handle, bh);
712 break;
713
714 default:
715 status = -EINVAL;
716 mlog(ML_ERROR, "Unknown access type!\n");
717 }
718 if (!status && ocfs2_meta_ecc(osb) && triggers)
719 jbd2_journal_set_triggers(bh, &triggers->ot_triggers);
720 ocfs2_metadata_cache_io_unlock(ci);
721
722 if (status < 0)
723 mlog(ML_ERROR, "Error %d getting %d access to buffer!\n",
724 status, type);
725
726 return status;
727 }
728
ocfs2_journal_access_di(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)729 int ocfs2_journal_access_di(handle_t *handle, struct ocfs2_caching_info *ci,
730 struct buffer_head *bh, int type)
731 {
732 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
733
734 return __ocfs2_journal_access(handle, ci, bh,
735 &osb->s_journal_triggers[OCFS2_JTR_DI],
736 type);
737 }
738
ocfs2_journal_access_eb(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)739 int ocfs2_journal_access_eb(handle_t *handle, struct ocfs2_caching_info *ci,
740 struct buffer_head *bh, int type)
741 {
742 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
743
744 return __ocfs2_journal_access(handle, ci, bh,
745 &osb->s_journal_triggers[OCFS2_JTR_EB],
746 type);
747 }
748
ocfs2_journal_access_rb(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)749 int ocfs2_journal_access_rb(handle_t *handle, struct ocfs2_caching_info *ci,
750 struct buffer_head *bh, int type)
751 {
752 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
753
754 return __ocfs2_journal_access(handle, ci, bh,
755 &osb->s_journal_triggers[OCFS2_JTR_RB],
756 type);
757 }
758
ocfs2_journal_access_gd(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)759 int ocfs2_journal_access_gd(handle_t *handle, struct ocfs2_caching_info *ci,
760 struct buffer_head *bh, int type)
761 {
762 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
763
764 return __ocfs2_journal_access(handle, ci, bh,
765 &osb->s_journal_triggers[OCFS2_JTR_GD],
766 type);
767 }
768
ocfs2_journal_access_db(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)769 int ocfs2_journal_access_db(handle_t *handle, struct ocfs2_caching_info *ci,
770 struct buffer_head *bh, int type)
771 {
772 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
773
774 return __ocfs2_journal_access(handle, ci, bh,
775 &osb->s_journal_triggers[OCFS2_JTR_DB],
776 type);
777 }
778
ocfs2_journal_access_xb(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)779 int ocfs2_journal_access_xb(handle_t *handle, struct ocfs2_caching_info *ci,
780 struct buffer_head *bh, int type)
781 {
782 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
783
784 return __ocfs2_journal_access(handle, ci, bh,
785 &osb->s_journal_triggers[OCFS2_JTR_XB],
786 type);
787 }
788
ocfs2_journal_access_dq(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)789 int ocfs2_journal_access_dq(handle_t *handle, struct ocfs2_caching_info *ci,
790 struct buffer_head *bh, int type)
791 {
792 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
793
794 return __ocfs2_journal_access(handle, ci, bh,
795 &osb->s_journal_triggers[OCFS2_JTR_DQ],
796 type);
797 }
798
ocfs2_journal_access_dr(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)799 int ocfs2_journal_access_dr(handle_t *handle, struct ocfs2_caching_info *ci,
800 struct buffer_head *bh, int type)
801 {
802 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
803
804 return __ocfs2_journal_access(handle, ci, bh,
805 &osb->s_journal_triggers[OCFS2_JTR_DR],
806 type);
807 }
808
ocfs2_journal_access_dl(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)809 int ocfs2_journal_access_dl(handle_t *handle, struct ocfs2_caching_info *ci,
810 struct buffer_head *bh, int type)
811 {
812 struct ocfs2_super *osb = OCFS2_SB(ocfs2_metadata_cache_get_super(ci));
813
814 return __ocfs2_journal_access(handle, ci, bh,
815 &osb->s_journal_triggers[OCFS2_JTR_DL],
816 type);
817 }
818
ocfs2_journal_access(handle_t * handle,struct ocfs2_caching_info * ci,struct buffer_head * bh,int type)819 int ocfs2_journal_access(handle_t *handle, struct ocfs2_caching_info *ci,
820 struct buffer_head *bh, int type)
821 {
822 return __ocfs2_journal_access(handle, ci, bh, NULL, type);
823 }
824
ocfs2_journal_dirty(handle_t * handle,struct buffer_head * bh)825 void ocfs2_journal_dirty(handle_t *handle, struct buffer_head *bh)
826 {
827 int status;
828
829 trace_ocfs2_journal_dirty((unsigned long long)bh->b_blocknr);
830
831 status = jbd2_journal_dirty_metadata(handle, bh);
832 if (status) {
833 mlog_errno(status);
834 if (!is_handle_aborted(handle)) {
835 journal_t *journal = handle->h_transaction->t_journal;
836
837 mlog(ML_ERROR, "jbd2_journal_dirty_metadata failed: "
838 "handle type %u started at line %u, credits %u/%u "
839 "errcode %d. Aborting transaction and journal.\n",
840 handle->h_type, handle->h_line_no,
841 handle->h_requested_credits,
842 jbd2_handle_buffer_credits(handle), status);
843 handle->h_err = status;
844 jbd2_journal_abort_handle(handle);
845 jbd2_journal_abort(journal, status);
846 }
847 }
848 }
849
850 #define OCFS2_DEFAULT_COMMIT_INTERVAL (HZ * JBD2_DEFAULT_MAX_COMMIT_AGE)
851
ocfs2_set_journal_params(struct ocfs2_super * osb)852 void ocfs2_set_journal_params(struct ocfs2_super *osb)
853 {
854 journal_t *journal = osb->journal->j_journal;
855 unsigned long commit_interval = OCFS2_DEFAULT_COMMIT_INTERVAL;
856
857 if (osb->osb_commit_interval)
858 commit_interval = osb->osb_commit_interval;
859
860 write_lock(&journal->j_state_lock);
861 journal->j_commit_interval = commit_interval;
862 if (osb->s_mount_opt & OCFS2_MOUNT_BARRIER)
863 journal->j_flags |= JBD2_BARRIER;
864 else
865 journal->j_flags &= ~JBD2_BARRIER;
866 write_unlock(&journal->j_state_lock);
867 }
868
869 /*
870 * alloc & initialize skeleton for journal structure.
871 * ocfs2_journal_init() will make fs have journal ability.
872 */
ocfs2_journal_alloc(struct ocfs2_super * osb)873 int ocfs2_journal_alloc(struct ocfs2_super *osb)
874 {
875 int status = 0;
876 struct ocfs2_journal *journal;
877
878 journal = kzalloc_obj(struct ocfs2_journal);
879 if (!journal) {
880 mlog(ML_ERROR, "unable to alloc journal\n");
881 status = -ENOMEM;
882 goto bail;
883 }
884 osb->journal = journal;
885 journal->j_osb = osb;
886
887 atomic_set(&journal->j_num_trans, 0);
888 init_rwsem(&journal->j_trans_barrier);
889 init_waitqueue_head(&journal->j_checkpointed);
890 spin_lock_init(&journal->j_lock);
891 journal->j_trans_id = 1UL;
892 INIT_LIST_HEAD(&journal->j_la_cleanups);
893 INIT_WORK(&journal->j_recovery_work, ocfs2_complete_recovery);
894 journal->j_state = OCFS2_JOURNAL_FREE;
895
896 bail:
897 return status;
898 }
899
ocfs2_journal_submit_inode_data_buffers(struct jbd2_inode * jinode)900 static int ocfs2_journal_submit_inode_data_buffers(struct jbd2_inode *jinode)
901 {
902 return filemap_fdatawrite_range(jinode->i_vfs_inode->i_mapping,
903 jinode->i_dirty_start, jinode->i_dirty_end);
904 }
905
ocfs2_journal_init(struct ocfs2_super * osb,int * dirty)906 int ocfs2_journal_init(struct ocfs2_super *osb, int *dirty)
907 {
908 int status = -1;
909 struct inode *inode = NULL; /* the journal inode */
910 journal_t *j_journal = NULL;
911 struct ocfs2_journal *journal = osb->journal;
912 struct ocfs2_dinode *di = NULL;
913 struct buffer_head *bh = NULL;
914 int inode_lock = 0;
915
916 BUG_ON(!journal);
917 /* already have the inode for our journal */
918 inode = ocfs2_get_system_file_inode(osb, JOURNAL_SYSTEM_INODE,
919 osb->slot_num);
920 if (inode == NULL) {
921 status = -EACCES;
922 mlog_errno(status);
923 goto done;
924 }
925 if (is_bad_inode(inode)) {
926 mlog(ML_ERROR, "access error (bad inode)\n");
927 iput(inode);
928 inode = NULL;
929 status = -EACCES;
930 goto done;
931 }
932
933 SET_INODE_JOURNAL(inode);
934 OCFS2_I(inode)->ip_open_count++;
935
936 /* Skip recovery waits here - journal inode metadata never
937 * changes in a live cluster so it can be considered an
938 * exception to the rule. */
939 status = ocfs2_inode_lock_full(inode, &bh, 1, OCFS2_META_LOCK_RECOVERY);
940 if (status < 0) {
941 if (status != -ERESTARTSYS)
942 mlog(ML_ERROR, "Could not get lock on journal!\n");
943 goto done;
944 }
945
946 inode_lock = 1;
947 di = (struct ocfs2_dinode *)bh->b_data;
948
949 if (i_size_read(inode) < OCFS2_MIN_JOURNAL_SIZE) {
950 mlog(ML_ERROR, "Journal file size (%lld) is too small!\n",
951 i_size_read(inode));
952 status = -EINVAL;
953 goto done;
954 }
955
956 trace_ocfs2_journal_init(i_size_read(inode),
957 (unsigned long long)inode->i_blocks,
958 OCFS2_I(inode)->ip_clusters);
959
960 /* call the kernels journal init function now */
961 j_journal = jbd2_journal_init_inode(inode);
962 if (IS_ERR(j_journal)) {
963 mlog(ML_ERROR, "Linux journal layer error\n");
964 status = PTR_ERR(j_journal);
965 goto done;
966 }
967
968 trace_ocfs2_journal_init_maxlen(j_journal->j_total_len);
969
970 *dirty = (le32_to_cpu(di->id1.journal1.ij_flags) &
971 OCFS2_JOURNAL_DIRTY_FL);
972
973 journal->j_journal = j_journal;
974 journal->j_journal->j_submit_inode_data_buffers =
975 ocfs2_journal_submit_inode_data_buffers;
976 journal->j_journal->j_finish_inode_data_buffers =
977 jbd2_journal_finish_inode_data_buffers;
978 journal->j_inode = inode;
979 journal->j_bh = bh;
980
981 ocfs2_set_journal_params(osb);
982
983 journal->j_state = OCFS2_JOURNAL_LOADED;
984
985 status = 0;
986 done:
987 if (status < 0) {
988 if (inode_lock)
989 ocfs2_inode_unlock(inode, 1);
990 brelse(bh);
991 if (inode) {
992 OCFS2_I(inode)->ip_open_count--;
993 iput(inode);
994 }
995 }
996
997 return status;
998 }
999
ocfs2_bump_recovery_generation(struct ocfs2_dinode * di)1000 static void ocfs2_bump_recovery_generation(struct ocfs2_dinode *di)
1001 {
1002 le32_add_cpu(&(di->id1.journal1.ij_recovery_generation), 1);
1003 }
1004
ocfs2_get_recovery_generation(struct ocfs2_dinode * di)1005 static u32 ocfs2_get_recovery_generation(struct ocfs2_dinode *di)
1006 {
1007 return le32_to_cpu(di->id1.journal1.ij_recovery_generation);
1008 }
1009
ocfs2_journal_toggle_dirty(struct ocfs2_super * osb,int dirty,int replayed)1010 static int ocfs2_journal_toggle_dirty(struct ocfs2_super *osb,
1011 int dirty, int replayed)
1012 {
1013 int status;
1014 unsigned int flags;
1015 struct ocfs2_journal *journal = osb->journal;
1016 struct buffer_head *bh = journal->j_bh;
1017 struct ocfs2_dinode *fe;
1018
1019 fe = (struct ocfs2_dinode *)bh->b_data;
1020
1021 /* The journal bh on the osb always comes from ocfs2_journal_init()
1022 * and was validated there inside ocfs2_inode_lock_full(). It's a
1023 * code bug if we mess it up. */
1024 BUG_ON(!OCFS2_IS_VALID_DINODE(fe));
1025
1026 flags = le32_to_cpu(fe->id1.journal1.ij_flags);
1027 if (dirty)
1028 flags |= OCFS2_JOURNAL_DIRTY_FL;
1029 else
1030 flags &= ~OCFS2_JOURNAL_DIRTY_FL;
1031 fe->id1.journal1.ij_flags = cpu_to_le32(flags);
1032
1033 if (replayed)
1034 ocfs2_bump_recovery_generation(fe);
1035
1036 ocfs2_compute_meta_ecc(osb->sb, bh->b_data, &fe->i_check);
1037 status = ocfs2_write_block(osb, bh, INODE_CACHE(journal->j_inode));
1038 if (status < 0)
1039 mlog_errno(status);
1040
1041 return status;
1042 }
1043
1044 /*
1045 * If the journal has been kmalloc'd it needs to be freed after this
1046 * call.
1047 */
ocfs2_journal_shutdown(struct ocfs2_super * osb)1048 void ocfs2_journal_shutdown(struct ocfs2_super *osb)
1049 {
1050 struct ocfs2_journal *journal = NULL;
1051 int status = 0;
1052 struct inode *inode = NULL;
1053 int num_running_trans = 0;
1054
1055 BUG_ON(!osb);
1056
1057 journal = osb->journal;
1058 if (!journal)
1059 goto done;
1060
1061 inode = journal->j_inode;
1062
1063 if (journal->j_state != OCFS2_JOURNAL_LOADED)
1064 goto done;
1065
1066 /* need to inc inode use count - jbd2_journal_destroy will iput. */
1067 if (!igrab(inode))
1068 BUG();
1069
1070 num_running_trans = atomic_read(&(journal->j_num_trans));
1071 trace_ocfs2_journal_shutdown(num_running_trans);
1072
1073 /* Do a commit_cache here. It will flush our journal, *and*
1074 * release any locks that are still held.
1075 * set the SHUTDOWN flag and release the trans lock.
1076 * the commit thread will take the trans lock for us below. */
1077 journal->j_state = OCFS2_JOURNAL_IN_SHUTDOWN;
1078
1079 /* The OCFS2_JOURNAL_IN_SHUTDOWN will signal to commit_cache to not
1080 * drop the trans_lock (which we want to hold until we
1081 * completely destroy the journal. */
1082 if (osb->commit_task) {
1083 /* Wait for the commit thread */
1084 trace_ocfs2_journal_shutdown_wait(osb->commit_task);
1085 kthread_stop(osb->commit_task);
1086 osb->commit_task = NULL;
1087 }
1088
1089 BUG_ON(atomic_read(&(journal->j_num_trans)) != 0);
1090
1091 if (ocfs2_mount_local(osb) &&
1092 (journal->j_journal->j_flags & JBD2_LOADED)) {
1093 jbd2_journal_lock_updates(journal->j_journal);
1094 status = jbd2_journal_flush(journal->j_journal, 0);
1095 jbd2_journal_unlock_updates(journal->j_journal);
1096 if (status < 0)
1097 mlog_errno(status);
1098 }
1099
1100 /* Shutdown the kernel journal system */
1101 if (!jbd2_journal_destroy(journal->j_journal) && !status) {
1102 /*
1103 * Do not toggle if flush was unsuccessful otherwise
1104 * will leave dirty metadata in a "clean" journal
1105 */
1106 status = ocfs2_journal_toggle_dirty(osb, 0, 0);
1107 if (status < 0)
1108 mlog_errno(status);
1109 }
1110 journal->j_journal = NULL;
1111
1112 OCFS2_I(inode)->ip_open_count--;
1113
1114 /* unlock our journal */
1115 ocfs2_inode_unlock(inode, 1);
1116
1117 brelse(journal->j_bh);
1118 journal->j_bh = NULL;
1119
1120 journal->j_state = OCFS2_JOURNAL_FREE;
1121
1122 done:
1123 iput(inode);
1124 kfree(journal);
1125 osb->journal = NULL;
1126 }
1127
ocfs2_clear_journal_error(struct super_block * sb,journal_t * journal,int slot)1128 static void ocfs2_clear_journal_error(struct super_block *sb,
1129 journal_t *journal,
1130 int slot)
1131 {
1132 int olderr;
1133
1134 olderr = jbd2_journal_errno(journal);
1135 if (olderr) {
1136 mlog(ML_ERROR, "File system error %d recorded in "
1137 "journal %u.\n", olderr, slot);
1138 mlog(ML_ERROR, "File system on device %s needs checking.\n",
1139 sb->s_id);
1140
1141 jbd2_journal_ack_err(journal);
1142 jbd2_journal_clear_err(journal);
1143 }
1144 }
1145
ocfs2_journal_load(struct ocfs2_journal * journal,int local,int replayed)1146 int ocfs2_journal_load(struct ocfs2_journal *journal, int local, int replayed)
1147 {
1148 int status = 0;
1149 struct ocfs2_super *osb;
1150
1151 BUG_ON(!journal);
1152
1153 osb = journal->j_osb;
1154
1155 status = jbd2_journal_load(journal->j_journal);
1156 if (status < 0) {
1157 mlog(ML_ERROR, "Failed to load journal!\n");
1158 goto done;
1159 }
1160
1161 ocfs2_clear_journal_error(osb->sb, journal->j_journal, osb->slot_num);
1162
1163 if (replayed) {
1164 jbd2_journal_lock_updates(journal->j_journal);
1165 status = jbd2_journal_flush(journal->j_journal, 0);
1166 jbd2_journal_unlock_updates(journal->j_journal);
1167 if (status < 0)
1168 mlog_errno(status);
1169 }
1170
1171 status = ocfs2_journal_toggle_dirty(osb, 1, replayed);
1172 if (status < 0) {
1173 mlog_errno(status);
1174 goto done;
1175 }
1176
1177 /* Launch the commit thread */
1178 if (!local) {
1179 osb->commit_task = kthread_run(ocfs2_commit_thread, osb,
1180 "ocfs2cmt-%s", osb->uuid_str);
1181 if (IS_ERR(osb->commit_task)) {
1182 status = PTR_ERR(osb->commit_task);
1183 osb->commit_task = NULL;
1184 mlog(ML_ERROR, "unable to launch ocfs2commit thread, "
1185 "error=%d", status);
1186 goto done;
1187 }
1188 } else
1189 osb->commit_task = NULL;
1190
1191 done:
1192 return status;
1193 }
1194
1195
1196 /* 'full' flag tells us whether we clear out all blocks or if we just
1197 * mark the journal clean */
ocfs2_journal_wipe(struct ocfs2_journal * journal,int full)1198 int ocfs2_journal_wipe(struct ocfs2_journal *journal, int full)
1199 {
1200 int status;
1201
1202 BUG_ON(!journal);
1203
1204 status = jbd2_journal_wipe(journal->j_journal, full);
1205 if (status < 0) {
1206 mlog_errno(status);
1207 goto bail;
1208 }
1209
1210 status = ocfs2_journal_toggle_dirty(journal->j_osb, 0, 0);
1211 if (status < 0)
1212 mlog_errno(status);
1213
1214 bail:
1215 return status;
1216 }
1217
ocfs2_recovery_completed(struct ocfs2_super * osb)1218 static int ocfs2_recovery_completed(struct ocfs2_super *osb)
1219 {
1220 int empty;
1221 struct ocfs2_recovery_map *rm = osb->recovery_map;
1222
1223 spin_lock(&osb->osb_lock);
1224 empty = (rm->rm_used == 0);
1225 spin_unlock(&osb->osb_lock);
1226
1227 return empty;
1228 }
1229
ocfs2_wait_for_recovery(struct ocfs2_super * osb)1230 void ocfs2_wait_for_recovery(struct ocfs2_super *osb)
1231 {
1232 wait_event(osb->recovery_event, ocfs2_recovery_completed(osb));
1233 }
1234
1235 /*
1236 * JBD Might read a cached version of another nodes journal file. We
1237 * don't want this as this file changes often and we get no
1238 * notification on those changes. The only way to be sure that we've
1239 * got the most up to date version of those blocks then is to force
1240 * read them off disk. Just searching through the buffer cache won't
1241 * work as there may be pages backing this file which are still marked
1242 * up to date. We know things can't change on this file underneath us
1243 * as we have the lock by now :)
1244 */
ocfs2_force_read_journal(struct inode * inode)1245 static int ocfs2_force_read_journal(struct inode *inode)
1246 {
1247 int status = 0;
1248 int i;
1249 u64 v_blkno, p_blkno, p_blocks, num_blocks;
1250 struct buffer_head *bh = NULL;
1251 struct ocfs2_super *osb = OCFS2_SB(inode->i_sb);
1252
1253 num_blocks = ocfs2_blocks_for_bytes(inode->i_sb, i_size_read(inode));
1254 v_blkno = 0;
1255 while (v_blkno < num_blocks) {
1256 status = ocfs2_extent_map_get_blocks(inode, v_blkno,
1257 &p_blkno, &p_blocks, NULL);
1258 if (status < 0) {
1259 mlog_errno(status);
1260 goto bail;
1261 }
1262
1263 for (i = 0; i < p_blocks; i++, p_blkno++) {
1264 bh = __find_get_block_nonatomic(osb->sb->s_bdev, p_blkno,
1265 osb->sb->s_blocksize);
1266 /* block not cached. */
1267 if (!bh)
1268 continue;
1269
1270 brelse(bh);
1271 bh = NULL;
1272 /* We are reading journal data which should not
1273 * be put in the uptodate cache.
1274 */
1275 status = ocfs2_read_blocks_sync(osb, p_blkno, 1, &bh);
1276 if (status < 0) {
1277 mlog_errno(status);
1278 goto bail;
1279 }
1280
1281 brelse(bh);
1282 bh = NULL;
1283 }
1284
1285 v_blkno += p_blocks;
1286 }
1287
1288 bail:
1289 return status;
1290 }
1291
1292 struct ocfs2_la_recovery_item {
1293 struct list_head lri_list;
1294 int lri_slot;
1295 struct ocfs2_dinode *lri_la_dinode;
1296 struct ocfs2_dinode *lri_tl_dinode;
1297 struct ocfs2_quota_recovery *lri_qrec;
1298 enum ocfs2_orphan_reco_type lri_orphan_reco_type;
1299 };
1300
1301 /* Does the second half of the recovery process. By this point, the
1302 * node is marked clean and can actually be considered recovered,
1303 * hence it's no longer in the recovery map, but there's still some
1304 * cleanup we can do which shouldn't happen within the recovery thread
1305 * as locking in that context becomes very difficult if we are to take
1306 * recovering nodes into account.
1307 *
1308 * NOTE: This function can and will sleep on recovery of other nodes
1309 * during cluster locking, just like any other ocfs2 process.
1310 */
ocfs2_complete_recovery(struct work_struct * work)1311 void ocfs2_complete_recovery(struct work_struct *work)
1312 {
1313 int ret = 0;
1314 struct ocfs2_journal *journal =
1315 container_of(work, struct ocfs2_journal, j_recovery_work);
1316 struct ocfs2_super *osb = journal->j_osb;
1317 struct ocfs2_dinode *la_dinode, *tl_dinode;
1318 struct ocfs2_la_recovery_item *item, *n;
1319 struct ocfs2_quota_recovery *qrec;
1320 enum ocfs2_orphan_reco_type orphan_reco_type;
1321 LIST_HEAD(tmp_la_list);
1322
1323 trace_ocfs2_complete_recovery(
1324 (unsigned long long)OCFS2_I(journal->j_inode)->ip_blkno);
1325
1326 spin_lock(&journal->j_lock);
1327 list_splice_init(&journal->j_la_cleanups, &tmp_la_list);
1328 spin_unlock(&journal->j_lock);
1329
1330 list_for_each_entry_safe(item, n, &tmp_la_list, lri_list) {
1331 list_del_init(&item->lri_list);
1332
1333 ocfs2_wait_on_quotas(osb);
1334
1335 la_dinode = item->lri_la_dinode;
1336 tl_dinode = item->lri_tl_dinode;
1337 qrec = item->lri_qrec;
1338 orphan_reco_type = item->lri_orphan_reco_type;
1339
1340 trace_ocfs2_complete_recovery_slot(item->lri_slot,
1341 la_dinode ? le64_to_cpu(la_dinode->i_blkno) : 0,
1342 tl_dinode ? le64_to_cpu(tl_dinode->i_blkno) : 0,
1343 qrec);
1344
1345 if (la_dinode) {
1346 ret = ocfs2_complete_local_alloc_recovery(osb,
1347 la_dinode);
1348 if (ret < 0)
1349 mlog_errno(ret);
1350
1351 kfree(la_dinode);
1352 }
1353
1354 if (tl_dinode) {
1355 ret = ocfs2_complete_truncate_log_recovery(osb,
1356 tl_dinode);
1357 if (ret < 0)
1358 mlog_errno(ret);
1359
1360 kfree(tl_dinode);
1361 }
1362
1363 ret = ocfs2_recover_orphans(osb, item->lri_slot,
1364 orphan_reco_type);
1365 if (ret < 0)
1366 mlog_errno(ret);
1367
1368 if (qrec) {
1369 ret = ocfs2_finish_quota_recovery(osb, qrec,
1370 item->lri_slot);
1371 if (ret < 0)
1372 mlog_errno(ret);
1373 /* Recovery info is already freed now */
1374 }
1375
1376 kfree(item);
1377 }
1378
1379 trace_ocfs2_complete_recovery_end(ret);
1380 }
1381
1382 /* NOTE: This function always eats your references to la_dinode and
1383 * tl_dinode, either manually on error, or by passing them to
1384 * ocfs2_complete_recovery */
ocfs2_queue_recovery_completion(struct ocfs2_journal * journal,int slot_num,struct ocfs2_dinode * la_dinode,struct ocfs2_dinode * tl_dinode,struct ocfs2_quota_recovery * qrec,enum ocfs2_orphan_reco_type orphan_reco_type)1385 static void ocfs2_queue_recovery_completion(struct ocfs2_journal *journal,
1386 int slot_num,
1387 struct ocfs2_dinode *la_dinode,
1388 struct ocfs2_dinode *tl_dinode,
1389 struct ocfs2_quota_recovery *qrec,
1390 enum ocfs2_orphan_reco_type orphan_reco_type)
1391 {
1392 struct ocfs2_la_recovery_item *item;
1393
1394 item = kmalloc_obj(struct ocfs2_la_recovery_item, GFP_NOFS);
1395 if (!item) {
1396 /* Though we wish to avoid it, we are in fact safe in
1397 * skipping local alloc cleanup as fsck.ocfs2 is more
1398 * than capable of reclaiming unused space. */
1399 kfree(la_dinode);
1400 kfree(tl_dinode);
1401
1402 if (qrec)
1403 ocfs2_free_quota_recovery(qrec);
1404
1405 mlog_errno(-ENOMEM);
1406 return;
1407 }
1408
1409 INIT_LIST_HEAD(&item->lri_list);
1410 item->lri_la_dinode = la_dinode;
1411 item->lri_slot = slot_num;
1412 item->lri_tl_dinode = tl_dinode;
1413 item->lri_qrec = qrec;
1414 item->lri_orphan_reco_type = orphan_reco_type;
1415
1416 spin_lock(&journal->j_lock);
1417 list_add_tail(&item->lri_list, &journal->j_la_cleanups);
1418 queue_work(journal->j_osb->ocfs2_wq, &journal->j_recovery_work);
1419 spin_unlock(&journal->j_lock);
1420 }
1421
1422 /* Called by the mount code to queue recovery the last part of
1423 * recovery for it's own and offline slot(s). */
ocfs2_complete_mount_recovery(struct ocfs2_super * osb)1424 void ocfs2_complete_mount_recovery(struct ocfs2_super *osb)
1425 {
1426 struct ocfs2_journal *journal = osb->journal;
1427
1428 if (ocfs2_is_hard_readonly(osb))
1429 return;
1430
1431 /* No need to queue up our truncate_log as regular cleanup will catch
1432 * that */
1433 ocfs2_queue_recovery_completion(journal, osb->slot_num,
1434 osb->local_alloc_copy, NULL, NULL,
1435 ORPHAN_NEED_TRUNCATE);
1436 ocfs2_schedule_truncate_log_flush(osb, 0);
1437
1438 osb->local_alloc_copy = NULL;
1439
1440 /* queue to recover orphan slots for all offline slots */
1441 ocfs2_replay_map_set_state(osb, REPLAY_NEEDED);
1442 ocfs2_queue_replay_slots(osb, ORPHAN_NEED_TRUNCATE);
1443 ocfs2_free_replay_slots(osb);
1444 }
1445
ocfs2_complete_quota_recovery(struct ocfs2_super * osb)1446 void ocfs2_complete_quota_recovery(struct ocfs2_super *osb)
1447 {
1448 if (osb->quota_rec) {
1449 ocfs2_queue_recovery_completion(osb->journal,
1450 osb->slot_num,
1451 NULL,
1452 NULL,
1453 osb->quota_rec,
1454 ORPHAN_NEED_TRUNCATE);
1455 osb->quota_rec = NULL;
1456 }
1457 }
1458
__ocfs2_recovery_thread(void * arg)1459 static int __ocfs2_recovery_thread(void *arg)
1460 {
1461 int status, node_num, slot_num;
1462 struct ocfs2_super *osb = arg;
1463 struct ocfs2_recovery_map *rm = osb->recovery_map;
1464 int *rm_quota = NULL;
1465 int rm_quota_used = 0, i;
1466 struct ocfs2_quota_recovery *qrec;
1467
1468 /* Whether the quota supported. */
1469 int quota_enabled = OCFS2_HAS_RO_COMPAT_FEATURE(osb->sb,
1470 OCFS2_FEATURE_RO_COMPAT_USRQUOTA)
1471 || OCFS2_HAS_RO_COMPAT_FEATURE(osb->sb,
1472 OCFS2_FEATURE_RO_COMPAT_GRPQUOTA);
1473
1474 status = ocfs2_wait_on_mount(osb);
1475 if (status < 0) {
1476 goto bail;
1477 }
1478
1479 if (quota_enabled) {
1480 rm_quota = kzalloc_objs(int, osb->max_slots, GFP_NOFS);
1481 if (!rm_quota) {
1482 status = -ENOMEM;
1483 goto bail;
1484 }
1485 }
1486 restart:
1487 if (quota_enabled) {
1488 mutex_lock(&osb->recovery_lock);
1489 /* Confirm that recovery thread will no longer recover quotas */
1490 if (osb->recovery_state == OCFS2_REC_QUOTA_WANT_DISABLE) {
1491 osb->recovery_state = OCFS2_REC_QUOTA_DISABLED;
1492 wake_up(&osb->recovery_event);
1493 }
1494 if (osb->recovery_state >= OCFS2_REC_QUOTA_DISABLED)
1495 quota_enabled = 0;
1496 mutex_unlock(&osb->recovery_lock);
1497 }
1498
1499 status = ocfs2_super_lock(osb, 1);
1500 if (status < 0) {
1501 mlog_errno(status);
1502 goto bail;
1503 }
1504
1505 status = ocfs2_compute_replay_slots(osb);
1506 if (status < 0)
1507 mlog_errno(status);
1508
1509 /* queue recovery for our own slot */
1510 ocfs2_queue_recovery_completion(osb->journal, osb->slot_num, NULL,
1511 NULL, NULL, ORPHAN_NO_NEED_TRUNCATE);
1512
1513 spin_lock(&osb->osb_lock);
1514 while (rm->rm_used) {
1515 /* It's always safe to remove entry zero, as we won't
1516 * clear it until ocfs2_recover_node() has succeeded. */
1517 node_num = rm->rm_entries[0];
1518 spin_unlock(&osb->osb_lock);
1519 slot_num = ocfs2_node_num_to_slot(osb, node_num);
1520 trace_ocfs2_recovery_thread_node(node_num, slot_num);
1521 if (slot_num == -ENOENT) {
1522 status = 0;
1523 goto skip_recovery;
1524 }
1525
1526 /* It is a bit subtle with quota recovery. We cannot do it
1527 * immediately because we have to obtain cluster locks from
1528 * quota files and we also don't want to just skip it because
1529 * then quota usage would be out of sync until some node takes
1530 * the slot. So we remember which nodes need quota recovery
1531 * and when everything else is done, we recover quotas. */
1532 if (quota_enabled) {
1533 for (i = 0; i < rm_quota_used
1534 && rm_quota[i] != slot_num; i++)
1535 ;
1536
1537 if (i == rm_quota_used)
1538 rm_quota[rm_quota_used++] = slot_num;
1539 }
1540
1541 status = ocfs2_recover_node(osb, node_num, slot_num);
1542 skip_recovery:
1543 if (!status) {
1544 ocfs2_recovery_map_clear(osb, node_num);
1545 } else {
1546 mlog(ML_ERROR,
1547 "Error %d recovering node %d on device (%u,%u)!\n",
1548 status, node_num,
1549 MAJOR(osb->sb->s_dev), MINOR(osb->sb->s_dev));
1550 mlog(ML_ERROR, "Volume requires unmount.\n");
1551 }
1552
1553 spin_lock(&osb->osb_lock);
1554 }
1555 spin_unlock(&osb->osb_lock);
1556 trace_ocfs2_recovery_thread_end(status);
1557
1558 /* Refresh all journal recovery generations from disk */
1559 status = ocfs2_check_journals_nolocks(osb);
1560 status = (status == -EROFS) ? 0 : status;
1561 if (status < 0)
1562 mlog_errno(status);
1563
1564 /* Now it is right time to recover quotas... We have to do this under
1565 * superblock lock so that no one can start using the slot (and crash)
1566 * before we recover it */
1567 if (quota_enabled) {
1568 for (i = 0; i < rm_quota_used; i++) {
1569 qrec = ocfs2_begin_quota_recovery(osb, rm_quota[i]);
1570 if (IS_ERR(qrec)) {
1571 status = PTR_ERR(qrec);
1572 mlog_errno(status);
1573 continue;
1574 }
1575 ocfs2_queue_recovery_completion(osb->journal,
1576 rm_quota[i],
1577 NULL, NULL, qrec,
1578 ORPHAN_NEED_TRUNCATE);
1579 }
1580 }
1581
1582 ocfs2_super_unlock(osb, 1);
1583
1584 /* queue recovery for offline slots */
1585 ocfs2_queue_replay_slots(osb, ORPHAN_NEED_TRUNCATE);
1586
1587 bail:
1588 mutex_lock(&osb->recovery_lock);
1589 if (!status && !ocfs2_recovery_completed(osb)) {
1590 mutex_unlock(&osb->recovery_lock);
1591 goto restart;
1592 }
1593
1594 ocfs2_free_replay_slots(osb);
1595 osb->recovery_thread_task = NULL;
1596 if (osb->recovery_state == OCFS2_REC_WANT_DISABLE)
1597 osb->recovery_state = OCFS2_REC_DISABLED;
1598 wake_up(&osb->recovery_event);
1599
1600 mutex_unlock(&osb->recovery_lock);
1601
1602 kfree(rm_quota);
1603
1604 return status;
1605 }
1606
ocfs2_recovery_thread(struct ocfs2_super * osb,int node_num)1607 void ocfs2_recovery_thread(struct ocfs2_super *osb, int node_num)
1608 {
1609 int was_set = -1;
1610
1611 mutex_lock(&osb->recovery_lock);
1612 if (osb->recovery_state < OCFS2_REC_WANT_DISABLE)
1613 was_set = ocfs2_recovery_map_set(osb, node_num);
1614
1615 trace_ocfs2_recovery_thread(node_num, osb->node_num,
1616 osb->recovery_state, osb->recovery_thread_task, was_set);
1617
1618 if (osb->recovery_state >= OCFS2_REC_WANT_DISABLE)
1619 goto out;
1620
1621 if (osb->recovery_thread_task)
1622 goto out;
1623
1624 osb->recovery_thread_task = kthread_run(__ocfs2_recovery_thread, osb,
1625 "ocfs2rec-%s", osb->uuid_str);
1626 if (IS_ERR(osb->recovery_thread_task)) {
1627 mlog_errno((int)PTR_ERR(osb->recovery_thread_task));
1628 osb->recovery_thread_task = NULL;
1629 }
1630
1631 out:
1632 mutex_unlock(&osb->recovery_lock);
1633 wake_up(&osb->recovery_event);
1634 }
1635
ocfs2_read_journal_inode(struct ocfs2_super * osb,int slot_num,struct buffer_head ** bh,struct inode ** ret_inode)1636 static int ocfs2_read_journal_inode(struct ocfs2_super *osb,
1637 int slot_num,
1638 struct buffer_head **bh,
1639 struct inode **ret_inode)
1640 {
1641 int status = -EACCES;
1642 struct inode *inode = NULL;
1643
1644 BUG_ON(slot_num >= osb->max_slots);
1645
1646 inode = ocfs2_get_system_file_inode(osb, JOURNAL_SYSTEM_INODE,
1647 slot_num);
1648 if (!inode || is_bad_inode(inode)) {
1649 mlog_errno(status);
1650 goto bail;
1651 }
1652 SET_INODE_JOURNAL(inode);
1653
1654 status = ocfs2_read_inode_block_full(inode, bh, OCFS2_BH_IGNORE_CACHE);
1655 if (status < 0) {
1656 mlog_errno(status);
1657 goto bail;
1658 }
1659
1660 status = 0;
1661
1662 bail:
1663 if (inode) {
1664 if (status || !ret_inode)
1665 iput(inode);
1666 else
1667 *ret_inode = inode;
1668 }
1669 return status;
1670 }
1671
1672 /* Does the actual journal replay and marks the journal inode as
1673 * clean. Will only replay if the journal inode is marked dirty. */
ocfs2_replay_journal(struct ocfs2_super * osb,int node_num,int slot_num)1674 static int ocfs2_replay_journal(struct ocfs2_super *osb,
1675 int node_num,
1676 int slot_num)
1677 {
1678 int status;
1679 int got_lock = 0;
1680 unsigned int flags;
1681 struct inode *inode = NULL;
1682 struct ocfs2_dinode *fe;
1683 journal_t *journal = NULL;
1684 struct buffer_head *bh = NULL;
1685 u32 slot_reco_gen;
1686
1687 status = ocfs2_read_journal_inode(osb, slot_num, &bh, &inode);
1688 if (status) {
1689 mlog_errno(status);
1690 goto done;
1691 }
1692
1693 fe = (struct ocfs2_dinode *)bh->b_data;
1694 slot_reco_gen = ocfs2_get_recovery_generation(fe);
1695 brelse(bh);
1696 bh = NULL;
1697
1698 /*
1699 * As the fs recovery is asynchronous, there is a small chance that
1700 * another node mounted (and recovered) the slot before the recovery
1701 * thread could get the lock. To handle that, we dirty read the journal
1702 * inode for that slot to get the recovery generation. If it is
1703 * different than what we expected, the slot has been recovered.
1704 * If not, it needs recovery.
1705 */
1706 if (osb->slot_recovery_generations[slot_num] != slot_reco_gen) {
1707 trace_ocfs2_replay_journal_recovered(slot_num,
1708 osb->slot_recovery_generations[slot_num], slot_reco_gen);
1709 osb->slot_recovery_generations[slot_num] = slot_reco_gen;
1710 status = -EBUSY;
1711 goto done;
1712 }
1713
1714 /* Continue with recovery as the journal has not yet been recovered */
1715
1716 status = ocfs2_inode_lock_full(inode, &bh, 1, OCFS2_META_LOCK_RECOVERY);
1717 if (status < 0) {
1718 trace_ocfs2_replay_journal_lock_err(status);
1719 if (status != -ERESTARTSYS)
1720 mlog(ML_ERROR, "Could not lock journal!\n");
1721 goto done;
1722 }
1723 got_lock = 1;
1724
1725 fe = (struct ocfs2_dinode *) bh->b_data;
1726
1727 flags = le32_to_cpu(fe->id1.journal1.ij_flags);
1728 slot_reco_gen = ocfs2_get_recovery_generation(fe);
1729
1730 if (!(flags & OCFS2_JOURNAL_DIRTY_FL)) {
1731 trace_ocfs2_replay_journal_skip(node_num);
1732 /* Refresh recovery generation for the slot */
1733 osb->slot_recovery_generations[slot_num] = slot_reco_gen;
1734 goto done;
1735 }
1736
1737 /* we need to run complete recovery for offline orphan slots */
1738 ocfs2_replay_map_set_state(osb, REPLAY_NEEDED);
1739
1740 printk(KERN_NOTICE "ocfs2: Begin replay journal (node %d, slot %d) on "\
1741 "device (%u,%u)\n", node_num, slot_num, MAJOR(osb->sb->s_dev),
1742 MINOR(osb->sb->s_dev));
1743
1744 OCFS2_I(inode)->ip_clusters = le32_to_cpu(fe->i_clusters);
1745
1746 status = ocfs2_force_read_journal(inode);
1747 if (status < 0) {
1748 mlog_errno(status);
1749 goto done;
1750 }
1751
1752 journal = jbd2_journal_init_inode(inode);
1753 if (IS_ERR(journal)) {
1754 mlog(ML_ERROR, "Linux journal layer error\n");
1755 status = PTR_ERR(journal);
1756 goto done;
1757 }
1758
1759 status = jbd2_journal_load(journal);
1760 if (status < 0) {
1761 mlog_errno(status);
1762 BUG_ON(!igrab(inode));
1763 jbd2_journal_destroy(journal);
1764 goto done;
1765 }
1766
1767 ocfs2_clear_journal_error(osb->sb, journal, slot_num);
1768
1769 /* wipe the journal */
1770 jbd2_journal_lock_updates(journal);
1771 status = jbd2_journal_flush(journal, 0);
1772 jbd2_journal_unlock_updates(journal);
1773 if (status < 0)
1774 mlog_errno(status);
1775
1776 /* This will mark the node clean */
1777 flags = le32_to_cpu(fe->id1.journal1.ij_flags);
1778 flags &= ~OCFS2_JOURNAL_DIRTY_FL;
1779 fe->id1.journal1.ij_flags = cpu_to_le32(flags);
1780
1781 /* Increment recovery generation to indicate successful recovery */
1782 ocfs2_bump_recovery_generation(fe);
1783 osb->slot_recovery_generations[slot_num] =
1784 ocfs2_get_recovery_generation(fe);
1785
1786 ocfs2_compute_meta_ecc(osb->sb, bh->b_data, &fe->i_check);
1787 status = ocfs2_write_block(osb, bh, INODE_CACHE(inode));
1788 if (status < 0)
1789 mlog_errno(status);
1790
1791 BUG_ON(!igrab(inode));
1792
1793 jbd2_journal_destroy(journal);
1794
1795 printk(KERN_NOTICE "ocfs2: End replay journal (node %d, slot %d) on "\
1796 "device (%u,%u)\n", node_num, slot_num, MAJOR(osb->sb->s_dev),
1797 MINOR(osb->sb->s_dev));
1798 done:
1799 /* drop the lock on this nodes journal */
1800 if (got_lock)
1801 ocfs2_inode_unlock(inode, 1);
1802
1803 iput(inode);
1804 brelse(bh);
1805
1806 return status;
1807 }
1808
1809 /*
1810 * Do the most important parts of node recovery:
1811 * - Replay it's journal
1812 * - Stamp a clean local allocator file
1813 * - Stamp a clean truncate log
1814 * - Mark the node clean
1815 *
1816 * If this function completes without error, a node in OCFS2 can be
1817 * said to have been safely recovered. As a result, failure during the
1818 * second part of a nodes recovery process (local alloc recovery) is
1819 * far less concerning.
1820 */
ocfs2_recover_node(struct ocfs2_super * osb,int node_num,int slot_num)1821 static int ocfs2_recover_node(struct ocfs2_super *osb,
1822 int node_num, int slot_num)
1823 {
1824 int status = 0;
1825 struct ocfs2_dinode *la_copy = NULL;
1826 struct ocfs2_dinode *tl_copy = NULL;
1827
1828 trace_ocfs2_recover_node(node_num, slot_num, osb->node_num);
1829
1830 /* Should not ever be called to recover ourselves -- in that
1831 * case we should've called ocfs2_journal_load instead. */
1832 BUG_ON(osb->node_num == node_num);
1833
1834 status = ocfs2_replay_journal(osb, node_num, slot_num);
1835 if (status < 0) {
1836 if (status == -EBUSY) {
1837 trace_ocfs2_recover_node_skip(slot_num, node_num);
1838 status = 0;
1839 goto done;
1840 }
1841 mlog_errno(status);
1842 goto done;
1843 }
1844
1845 /* Stamp a clean local alloc file AFTER recovering the journal... */
1846 status = ocfs2_begin_local_alloc_recovery(osb, slot_num, &la_copy);
1847 if (status < 0) {
1848 mlog_errno(status);
1849 goto done;
1850 }
1851
1852 /* An error from begin_truncate_log_recovery is not
1853 * serious enough to warrant halting the rest of
1854 * recovery. */
1855 status = ocfs2_begin_truncate_log_recovery(osb, slot_num, &tl_copy);
1856 if (status < 0)
1857 mlog_errno(status);
1858
1859 /* Likewise, this would be a strange but ultimately not so
1860 * harmful place to get an error... */
1861 status = ocfs2_clear_slot(osb, slot_num);
1862 if (status < 0)
1863 mlog_errno(status);
1864
1865 /* This will kfree the memory pointed to by la_copy and tl_copy */
1866 ocfs2_queue_recovery_completion(osb->journal, slot_num, la_copy,
1867 tl_copy, NULL, ORPHAN_NEED_TRUNCATE);
1868
1869 status = 0;
1870 done:
1871
1872 return status;
1873 }
1874
1875 /* Test node liveness by trylocking his journal. If we get the lock,
1876 * we drop it here. Return 0 if we got the lock, -EAGAIN if node is
1877 * still alive (we couldn't get the lock) and < 0 on error. */
ocfs2_trylock_journal(struct ocfs2_super * osb,int slot_num)1878 static int ocfs2_trylock_journal(struct ocfs2_super *osb,
1879 int slot_num)
1880 {
1881 int status, flags;
1882 struct inode *inode = NULL;
1883
1884 inode = ocfs2_get_system_file_inode(osb, JOURNAL_SYSTEM_INODE,
1885 slot_num);
1886 if (inode == NULL) {
1887 mlog(ML_ERROR, "access error\n");
1888 status = -EACCES;
1889 goto bail;
1890 }
1891 if (is_bad_inode(inode)) {
1892 mlog(ML_ERROR, "access error (bad inode)\n");
1893 iput(inode);
1894 inode = NULL;
1895 status = -EACCES;
1896 goto bail;
1897 }
1898 SET_INODE_JOURNAL(inode);
1899
1900 flags = OCFS2_META_LOCK_RECOVERY | OCFS2_META_LOCK_NOQUEUE;
1901 status = ocfs2_inode_lock_full(inode, NULL, 1, flags);
1902 if (status < 0) {
1903 if (status != -EAGAIN)
1904 mlog_errno(status);
1905 goto bail;
1906 }
1907
1908 ocfs2_inode_unlock(inode, 1);
1909 bail:
1910 iput(inode);
1911
1912 return status;
1913 }
1914
1915 /* Call this underneath ocfs2_super_lock. It also assumes that the
1916 * slot info struct has been updated from disk. */
ocfs2_mark_dead_nodes(struct ocfs2_super * osb)1917 int ocfs2_mark_dead_nodes(struct ocfs2_super *osb)
1918 {
1919 unsigned int node_num;
1920 int status, i;
1921 u32 gen;
1922 struct buffer_head *bh = NULL;
1923 struct ocfs2_dinode *di;
1924
1925 /* This is called with the super block cluster lock, so we
1926 * know that the slot map can't change underneath us. */
1927
1928 for (i = 0; i < osb->max_slots; i++) {
1929 /* Read journal inode to get the recovery generation */
1930 status = ocfs2_read_journal_inode(osb, i, &bh, NULL);
1931 if (status) {
1932 mlog_errno(status);
1933 goto bail;
1934 }
1935 di = (struct ocfs2_dinode *)bh->b_data;
1936 gen = ocfs2_get_recovery_generation(di);
1937 brelse(bh);
1938 bh = NULL;
1939
1940 spin_lock(&osb->osb_lock);
1941 osb->slot_recovery_generations[i] = gen;
1942
1943 trace_ocfs2_mark_dead_nodes(i,
1944 osb->slot_recovery_generations[i]);
1945
1946 if (i == osb->slot_num) {
1947 spin_unlock(&osb->osb_lock);
1948 continue;
1949 }
1950
1951 status = ocfs2_slot_to_node_num_locked(osb, i, &node_num);
1952 if (status == -ENOENT) {
1953 spin_unlock(&osb->osb_lock);
1954 continue;
1955 }
1956
1957 if (__ocfs2_recovery_map_test(osb, node_num)) {
1958 spin_unlock(&osb->osb_lock);
1959 continue;
1960 }
1961 spin_unlock(&osb->osb_lock);
1962
1963 /* Ok, we have a slot occupied by another node which
1964 * is not in the recovery map. We trylock his journal
1965 * file here to test if he's alive. */
1966 status = ocfs2_trylock_journal(osb, i);
1967 if (!status) {
1968 /* Since we're called from mount, we know that
1969 * the recovery thread can't race us on
1970 * setting / checking the recovery bits. */
1971 ocfs2_recovery_thread(osb, node_num);
1972 } else if ((status < 0) && (status != -EAGAIN)) {
1973 mlog_errno(status);
1974 goto bail;
1975 }
1976 }
1977
1978 status = 0;
1979 bail:
1980 return status;
1981 }
1982
1983 /*
1984 * Scan timer should get fired every ORPHAN_SCAN_SCHEDULE_TIMEOUT. Add some
1985 * randomness to the timeout to minimize multiple nodes firing the timer at the
1986 * same time.
1987 */
ocfs2_orphan_scan_timeout(void)1988 static inline unsigned long ocfs2_orphan_scan_timeout(void)
1989 {
1990 unsigned long time;
1991
1992 get_random_bytes(&time, sizeof(time));
1993 time = ORPHAN_SCAN_SCHEDULE_TIMEOUT + (time % 5000);
1994 return msecs_to_jiffies(time);
1995 }
1996
1997 /*
1998 * ocfs2_queue_orphan_scan calls ocfs2_queue_recovery_completion for
1999 * every slot, queuing a recovery of the slot on the ocfs2_wq thread. This
2000 * is done to catch any orphans that are left over in orphan directories.
2001 *
2002 * It scans all slots, even ones that are in use. It does so to handle the
2003 * case described below:
2004 *
2005 * Node 1 has an inode it was using. The dentry went away due to memory
2006 * pressure. Node 1 closes the inode, but it's on the free list. The node
2007 * has the open lock.
2008 * Node 2 unlinks the inode. It grabs the dentry lock to notify others,
2009 * but node 1 has no dentry and doesn't get the message. It trylocks the
2010 * open lock, sees that another node has a PR, and does nothing.
2011 * Later node 2 runs its orphan dir. It igets the inode, trylocks the
2012 * open lock, sees the PR still, and does nothing.
2013 * Basically, we have to trigger an orphan iput on node 1. The only way
2014 * for this to happen is if node 1 runs node 2's orphan dir.
2015 *
2016 * ocfs2_queue_orphan_scan gets called every ORPHAN_SCAN_SCHEDULE_TIMEOUT
2017 * seconds. It gets an EX lock on os_lockres and checks sequence number
2018 * stored in LVB. If the sequence number has changed, it means some other
2019 * node has done the scan. This node skips the scan and tracks the
2020 * sequence number. If the sequence number didn't change, it means a scan
2021 * hasn't happened. The node queues a scan and increments the
2022 * sequence number in the LVB.
2023 */
ocfs2_queue_orphan_scan(struct ocfs2_super * osb)2024 static void ocfs2_queue_orphan_scan(struct ocfs2_super *osb)
2025 {
2026 struct ocfs2_orphan_scan *os;
2027 int status, i;
2028 u32 seqno = 0;
2029
2030 os = &osb->osb_orphan_scan;
2031
2032 if (atomic_read(&os->os_state) == ORPHAN_SCAN_INACTIVE)
2033 goto out;
2034
2035 trace_ocfs2_queue_orphan_scan_begin(os->os_count, os->os_seqno,
2036 atomic_read(&os->os_state));
2037
2038 status = ocfs2_orphan_scan_lock(osb, &seqno);
2039 if (status < 0) {
2040 if (status != -EAGAIN)
2041 mlog_errno(status);
2042 goto out;
2043 }
2044
2045 /* Do no queue the tasks if the volume is being umounted */
2046 if (atomic_read(&os->os_state) == ORPHAN_SCAN_INACTIVE)
2047 goto unlock;
2048
2049 if (os->os_seqno != seqno) {
2050 os->os_seqno = seqno;
2051 goto unlock;
2052 }
2053
2054 for (i = 0; i < osb->max_slots; i++)
2055 ocfs2_queue_recovery_completion(osb->journal, i, NULL, NULL,
2056 NULL, ORPHAN_NO_NEED_TRUNCATE);
2057 /*
2058 * We queued a recovery on orphan slots, increment the sequence
2059 * number and update LVB so other node will skip the scan for a while
2060 */
2061 seqno++;
2062 os->os_count++;
2063 os->os_scantime = ktime_get_seconds();
2064 unlock:
2065 ocfs2_orphan_scan_unlock(osb, seqno);
2066 out:
2067 trace_ocfs2_queue_orphan_scan_end(os->os_count, os->os_seqno,
2068 atomic_read(&os->os_state));
2069 return;
2070 }
2071
2072 /* Worker task that gets fired every ORPHAN_SCAN_SCHEDULE_TIMEOUT millsec */
ocfs2_orphan_scan_work(struct work_struct * work)2073 static void ocfs2_orphan_scan_work(struct work_struct *work)
2074 {
2075 struct ocfs2_orphan_scan *os;
2076 struct ocfs2_super *osb;
2077
2078 os = container_of(work, struct ocfs2_orphan_scan,
2079 os_orphan_scan_work.work);
2080 osb = os->os_osb;
2081
2082 mutex_lock(&os->os_lock);
2083 ocfs2_queue_orphan_scan(osb);
2084 if (atomic_read(&os->os_state) == ORPHAN_SCAN_ACTIVE)
2085 queue_delayed_work(osb->ocfs2_wq, &os->os_orphan_scan_work,
2086 ocfs2_orphan_scan_timeout());
2087 mutex_unlock(&os->os_lock);
2088 }
2089
ocfs2_orphan_scan_stop(struct ocfs2_super * osb)2090 void ocfs2_orphan_scan_stop(struct ocfs2_super *osb)
2091 {
2092 struct ocfs2_orphan_scan *os;
2093
2094 os = &osb->osb_orphan_scan;
2095 if (atomic_read(&os->os_state) == ORPHAN_SCAN_ACTIVE) {
2096 atomic_set(&os->os_state, ORPHAN_SCAN_INACTIVE);
2097 mutex_lock(&os->os_lock);
2098 cancel_delayed_work(&os->os_orphan_scan_work);
2099 mutex_unlock(&os->os_lock);
2100 }
2101 }
2102
ocfs2_orphan_scan_init(struct ocfs2_super * osb)2103 void ocfs2_orphan_scan_init(struct ocfs2_super *osb)
2104 {
2105 struct ocfs2_orphan_scan *os;
2106
2107 os = &osb->osb_orphan_scan;
2108 os->os_osb = osb;
2109 os->os_count = 0;
2110 os->os_seqno = 0;
2111 mutex_init(&os->os_lock);
2112 INIT_DELAYED_WORK(&os->os_orphan_scan_work, ocfs2_orphan_scan_work);
2113 }
2114
ocfs2_orphan_scan_start(struct ocfs2_super * osb)2115 void ocfs2_orphan_scan_start(struct ocfs2_super *osb)
2116 {
2117 struct ocfs2_orphan_scan *os;
2118
2119 os = &osb->osb_orphan_scan;
2120 os->os_scantime = ktime_get_seconds();
2121 if (ocfs2_is_hard_readonly(osb) || ocfs2_mount_local(osb))
2122 atomic_set(&os->os_state, ORPHAN_SCAN_INACTIVE);
2123 else {
2124 atomic_set(&os->os_state, ORPHAN_SCAN_ACTIVE);
2125 queue_delayed_work(osb->ocfs2_wq, &os->os_orphan_scan_work,
2126 ocfs2_orphan_scan_timeout());
2127 }
2128 }
2129
2130 struct ocfs2_orphan_filldir_priv {
2131 struct dir_context ctx;
2132 struct inode *head;
2133 struct ocfs2_super *osb;
2134 enum ocfs2_orphan_reco_type orphan_reco_type;
2135 };
2136
ocfs2_orphan_filldir(struct dir_context * ctx,const char * name,int name_len,loff_t pos,u64 ino,unsigned type)2137 static bool ocfs2_orphan_filldir(struct dir_context *ctx, const char *name,
2138 int name_len, loff_t pos, u64 ino,
2139 unsigned type)
2140 {
2141 struct ocfs2_orphan_filldir_priv *p =
2142 container_of(ctx, struct ocfs2_orphan_filldir_priv, ctx);
2143 struct inode *iter;
2144
2145 if (name_len == 1 && !strncmp(".", name, 1))
2146 return true;
2147 if (name_len == 2 && !strncmp("..", name, 2))
2148 return true;
2149
2150 /* do not include dio entry in case of orphan scan */
2151 if ((p->orphan_reco_type == ORPHAN_NO_NEED_TRUNCATE) &&
2152 (!strncmp(name, OCFS2_DIO_ORPHAN_PREFIX,
2153 OCFS2_DIO_ORPHAN_PREFIX_LEN)))
2154 return true;
2155
2156 /* Skip bad inodes so that recovery can continue */
2157 iter = ocfs2_iget(p->osb, ino,
2158 OCFS2_FI_FLAG_ORPHAN_RECOVERY, 0);
2159 if (IS_ERR(iter))
2160 return true;
2161
2162 if (!strncmp(name, OCFS2_DIO_ORPHAN_PREFIX,
2163 OCFS2_DIO_ORPHAN_PREFIX_LEN))
2164 OCFS2_I(iter)->ip_flags |= OCFS2_INODE_DIO_ORPHAN_ENTRY;
2165
2166 /* Skip inodes which are already added to recover list, since dio may
2167 * happen concurrently with unlink/rename */
2168 if (OCFS2_I(iter)->ip_next_orphan) {
2169 iput(iter);
2170 return true;
2171 }
2172
2173 trace_ocfs2_orphan_filldir((unsigned long long)OCFS2_I(iter)->ip_blkno);
2174 /* No locking is required for the next_orphan queue as there
2175 * is only ever a single process doing orphan recovery. */
2176 OCFS2_I(iter)->ip_next_orphan = p->head;
2177 p->head = iter;
2178
2179 return true;
2180 }
2181
ocfs2_queue_orphans(struct ocfs2_super * osb,int slot,struct inode ** head,enum ocfs2_orphan_reco_type orphan_reco_type)2182 static int ocfs2_queue_orphans(struct ocfs2_super *osb,
2183 int slot,
2184 struct inode **head,
2185 enum ocfs2_orphan_reco_type orphan_reco_type)
2186 {
2187 int status;
2188 struct inode *orphan_dir_inode = NULL;
2189 struct ocfs2_orphan_filldir_priv priv = {
2190 .ctx.actor = ocfs2_orphan_filldir,
2191 .osb = osb,
2192 .head = *head,
2193 .orphan_reco_type = orphan_reco_type
2194 };
2195
2196 orphan_dir_inode = ocfs2_get_system_file_inode(osb,
2197 ORPHAN_DIR_SYSTEM_INODE,
2198 slot);
2199 if (!orphan_dir_inode) {
2200 status = -ENOENT;
2201 mlog_errno(status);
2202 return status;
2203 }
2204
2205 inode_lock(orphan_dir_inode);
2206 status = ocfs2_inode_lock(orphan_dir_inode, NULL, 0);
2207 if (status < 0) {
2208 mlog_errno(status);
2209 goto out;
2210 }
2211
2212 status = ocfs2_dir_foreach(orphan_dir_inode, &priv.ctx);
2213 if (status) {
2214 mlog_errno(status);
2215 goto out_cluster;
2216 }
2217
2218 *head = priv.head;
2219
2220 out_cluster:
2221 ocfs2_inode_unlock(orphan_dir_inode, 0);
2222 out:
2223 inode_unlock(orphan_dir_inode);
2224 iput(orphan_dir_inode);
2225 return status;
2226 }
2227
ocfs2_orphan_recovery_can_continue(struct ocfs2_super * osb,int slot)2228 static int ocfs2_orphan_recovery_can_continue(struct ocfs2_super *osb,
2229 int slot)
2230 {
2231 int ret;
2232
2233 spin_lock(&osb->osb_lock);
2234 ret = !osb->osb_orphan_wipes[slot];
2235 spin_unlock(&osb->osb_lock);
2236 return ret;
2237 }
2238
ocfs2_mark_recovering_orphan_dir(struct ocfs2_super * osb,int slot)2239 static void ocfs2_mark_recovering_orphan_dir(struct ocfs2_super *osb,
2240 int slot)
2241 {
2242 spin_lock(&osb->osb_lock);
2243 /* Mark ourselves such that new processes in delete_inode()
2244 * know to quit early. */
2245 ocfs2_node_map_set_bit(osb, &osb->osb_recovering_orphan_dirs, slot);
2246 while (osb->osb_orphan_wipes[slot]) {
2247 /* If any processes are already in the middle of an
2248 * orphan wipe on this dir, then we need to wait for
2249 * them. */
2250 spin_unlock(&osb->osb_lock);
2251 wait_event_interruptible(osb->osb_wipe_event,
2252 ocfs2_orphan_recovery_can_continue(osb, slot));
2253 spin_lock(&osb->osb_lock);
2254 }
2255 spin_unlock(&osb->osb_lock);
2256 }
2257
ocfs2_clear_recovering_orphan_dir(struct ocfs2_super * osb,int slot)2258 static void ocfs2_clear_recovering_orphan_dir(struct ocfs2_super *osb,
2259 int slot)
2260 {
2261 ocfs2_node_map_clear_bit(osb, &osb->osb_recovering_orphan_dirs, slot);
2262 }
2263
2264 /*
2265 * Orphan recovery. Each mounted node has it's own orphan dir which we
2266 * must run during recovery. Our strategy here is to build a list of
2267 * the inodes in the orphan dir and iget/iput them. The VFS does
2268 * (most) of the rest of the work.
2269 *
2270 * Orphan recovery can happen at any time, not just mount so we have a
2271 * couple of extra considerations.
2272 *
2273 * - We grab as many inodes as we can under the orphan dir lock -
2274 * doing iget() outside the orphan dir risks getting a reference on
2275 * an invalid inode.
2276 * - We must be sure not to deadlock with other processes on the
2277 * system wanting to run delete_inode(). This can happen when they go
2278 * to lock the orphan dir and the orphan recovery process attempts to
2279 * iget() inside the orphan dir lock. This can be avoided by
2280 * advertising our state to ocfs2_delete_inode().
2281 */
ocfs2_recover_orphans(struct ocfs2_super * osb,int slot,enum ocfs2_orphan_reco_type orphan_reco_type)2282 static int ocfs2_recover_orphans(struct ocfs2_super *osb,
2283 int slot,
2284 enum ocfs2_orphan_reco_type orphan_reco_type)
2285 {
2286 int ret = 0;
2287 struct inode *inode = NULL;
2288 struct inode *iter;
2289 struct ocfs2_inode_info *oi;
2290 struct buffer_head *di_bh = NULL;
2291 struct ocfs2_dinode *di = NULL;
2292
2293 trace_ocfs2_recover_orphans(slot);
2294
2295 ocfs2_mark_recovering_orphan_dir(osb, slot);
2296 ret = ocfs2_queue_orphans(osb, slot, &inode, orphan_reco_type);
2297 ocfs2_clear_recovering_orphan_dir(osb, slot);
2298
2299 /* Error here should be noted, but we want to continue with as
2300 * many queued inodes as we've got. */
2301 if (ret)
2302 mlog_errno(ret);
2303
2304 while (inode) {
2305 oi = OCFS2_I(inode);
2306 trace_ocfs2_recover_orphans_iput(
2307 (unsigned long long)oi->ip_blkno);
2308
2309 iter = oi->ip_next_orphan;
2310 oi->ip_next_orphan = NULL;
2311
2312 if (oi->ip_flags & OCFS2_INODE_DIO_ORPHAN_ENTRY) {
2313 inode_lock(inode);
2314 ret = ocfs2_rw_lock(inode, 1);
2315 if (ret < 0) {
2316 mlog_errno(ret);
2317 goto unlock_mutex;
2318 }
2319 /*
2320 * We need to take and drop the inode lock to
2321 * force read inode from disk.
2322 */
2323 ret = ocfs2_inode_lock(inode, &di_bh, 1);
2324 if (ret) {
2325 mlog_errno(ret);
2326 goto unlock_rw;
2327 }
2328
2329 di = (struct ocfs2_dinode *)di_bh->b_data;
2330
2331 if (di->i_flags & cpu_to_le32(OCFS2_DIO_ORPHANED_FL)) {
2332 ret = ocfs2_truncate_file(inode, di_bh,
2333 i_size_read(inode));
2334 if (ret < 0) {
2335 if (ret != -ENOSPC)
2336 mlog_errno(ret);
2337 goto unlock_inode;
2338 }
2339
2340 ret = ocfs2_del_inode_from_orphan(osb, inode,
2341 di_bh, 0, 0);
2342 if (ret)
2343 mlog_errno(ret);
2344 }
2345 unlock_inode:
2346 ocfs2_inode_unlock(inode, 1);
2347 brelse(di_bh);
2348 di_bh = NULL;
2349 unlock_rw:
2350 ocfs2_rw_unlock(inode, 1);
2351 unlock_mutex:
2352 inode_unlock(inode);
2353
2354 /* clear dio flag in ocfs2_inode_info */
2355 oi->ip_flags &= ~OCFS2_INODE_DIO_ORPHAN_ENTRY;
2356 } else {
2357 spin_lock(&oi->ip_lock);
2358 /* Set the proper information to get us going into
2359 * ocfs2_delete_inode. */
2360 oi->ip_flags |= OCFS2_INODE_MAYBE_ORPHANED;
2361 spin_unlock(&oi->ip_lock);
2362 }
2363
2364 iput(inode);
2365 inode = iter;
2366 }
2367
2368 return ret;
2369 }
2370
__ocfs2_wait_on_mount(struct ocfs2_super * osb,int quota)2371 static int __ocfs2_wait_on_mount(struct ocfs2_super *osb, int quota)
2372 {
2373 /* This check is good because ocfs2 will wait on our recovery
2374 * thread before changing it to something other than MOUNTED
2375 * or DISABLED. */
2376 wait_event(osb->osb_mount_event,
2377 (!quota && atomic_read(&osb->vol_state) == VOLUME_MOUNTED) ||
2378 atomic_read(&osb->vol_state) == VOLUME_MOUNTED_QUOTAS ||
2379 atomic_read(&osb->vol_state) == VOLUME_DISABLED);
2380
2381 /* If there's an error on mount, then we may never get to the
2382 * MOUNTED flag, but this is set right before
2383 * dismount_volume() so we can trust it. */
2384 if (atomic_read(&osb->vol_state) == VOLUME_DISABLED) {
2385 trace_ocfs2_wait_on_mount(VOLUME_DISABLED);
2386 mlog(0, "mount error, exiting!\n");
2387 return -EBUSY;
2388 }
2389
2390 return 0;
2391 }
2392
ocfs2_commit_thread(void * arg)2393 static int ocfs2_commit_thread(void *arg)
2394 {
2395 int status;
2396 struct ocfs2_super *osb = arg;
2397 struct ocfs2_journal *journal = osb->journal;
2398
2399 /* we can trust j_num_trans here because _should_stop() is only set in
2400 * shutdown and nobody other than ourselves should be able to start
2401 * transactions. committing on shutdown might take a few iterations
2402 * as final transactions put deleted inodes on the list */
2403 while (!(kthread_should_stop() &&
2404 atomic_read(&journal->j_num_trans) == 0)) {
2405
2406 wait_event_interruptible(osb->checkpoint_event,
2407 atomic_read(&journal->j_num_trans)
2408 || kthread_should_stop());
2409
2410 status = ocfs2_commit_cache(osb);
2411 if (status < 0) {
2412 static unsigned long abort_warn_time;
2413
2414 /* Warn about this once per minute */
2415 if (printk_timed_ratelimit(&abort_warn_time, 60*HZ))
2416 mlog(ML_ERROR, "status = %d, journal is "
2417 "already aborted.\n", status);
2418 /*
2419 * After ocfs2_commit_cache() fails, j_num_trans has a
2420 * non-zero value. Sleep here to avoid a busy-wait
2421 * loop.
2422 */
2423 msleep_interruptible(1000);
2424 }
2425
2426 if (kthread_should_stop() && atomic_read(&journal->j_num_trans)){
2427 mlog(ML_KTHREAD,
2428 "commit_thread: %u transactions pending on "
2429 "shutdown\n",
2430 atomic_read(&journal->j_num_trans));
2431 }
2432 }
2433
2434 return 0;
2435 }
2436
2437 /* Reads all the journal inodes without taking any cluster locks. Used
2438 * for hard readonly access to determine whether any journal requires
2439 * recovery. Also used to refresh the recovery generation numbers after
2440 * a journal has been recovered by another node.
2441 */
ocfs2_check_journals_nolocks(struct ocfs2_super * osb)2442 int ocfs2_check_journals_nolocks(struct ocfs2_super *osb)
2443 {
2444 int ret = 0;
2445 unsigned int slot;
2446 struct buffer_head *di_bh = NULL;
2447 struct ocfs2_dinode *di;
2448 int journal_dirty = 0;
2449
2450 for(slot = 0; slot < osb->max_slots; slot++) {
2451 ret = ocfs2_read_journal_inode(osb, slot, &di_bh, NULL);
2452 if (ret) {
2453 mlog_errno(ret);
2454 goto out;
2455 }
2456
2457 di = (struct ocfs2_dinode *) di_bh->b_data;
2458
2459 osb->slot_recovery_generations[slot] =
2460 ocfs2_get_recovery_generation(di);
2461
2462 if (le32_to_cpu(di->id1.journal1.ij_flags) &
2463 OCFS2_JOURNAL_DIRTY_FL)
2464 journal_dirty = 1;
2465
2466 brelse(di_bh);
2467 di_bh = NULL;
2468 }
2469
2470 out:
2471 if (journal_dirty)
2472 ret = -EROFS;
2473 return ret;
2474 }
2475