powerpc/perf/hv-24x7: Move cpumask file to top folder of hv-24x7 driver
[linux-2.6-microblaze.git] / fs / jbd2 / journal.c
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * linux/fs/jbd2/journal.c
4  *
5  * Written by Stephen C. Tweedie <sct@redhat.com>, 1998
6  *
7  * Copyright 1998 Red Hat corp --- All Rights Reserved
8  *
9  * Generic filesystem journal-writing code; part of the ext2fs
10  * journaling system.
11  *
12  * This file manages journals: areas of disk reserved for logging
13  * transactional updates.  This includes the kernel journaling thread
14  * which is responsible for scheduling updates to the log.
15  *
16  * We do not actually manage the physical storage of the journal in this
17  * file: that is left to a per-journal policy function, which allows us
18  * to store the journal within a filesystem-specified area for ext2
19  * journaling (ext2 can use a reserved inode for storing the log).
20  */
21
22 #include <linux/module.h>
23 #include <linux/time.h>
24 #include <linux/fs.h>
25 #include <linux/jbd2.h>
26 #include <linux/errno.h>
27 #include <linux/slab.h>
28 #include <linux/init.h>
29 #include <linux/mm.h>
30 #include <linux/freezer.h>
31 #include <linux/pagemap.h>
32 #include <linux/kthread.h>
33 #include <linux/poison.h>
34 #include <linux/proc_fs.h>
35 #include <linux/seq_file.h>
36 #include <linux/math64.h>
37 #include <linux/hash.h>
38 #include <linux/log2.h>
39 #include <linux/vmalloc.h>
40 #include <linux/backing-dev.h>
41 #include <linux/bitops.h>
42 #include <linux/ratelimit.h>
43 #include <linux/sched/mm.h>
44
45 #define CREATE_TRACE_POINTS
46 #include <trace/events/jbd2.h>
47
48 #include <linux/uaccess.h>
49 #include <asm/page.h>
50
51 #ifdef CONFIG_JBD2_DEBUG
52 ushort jbd2_journal_enable_debug __read_mostly;
53 EXPORT_SYMBOL(jbd2_journal_enable_debug);
54
55 module_param_named(jbd2_debug, jbd2_journal_enable_debug, ushort, 0644);
56 MODULE_PARM_DESC(jbd2_debug, "Debugging level for jbd2");
57 #endif
58
59 EXPORT_SYMBOL(jbd2_journal_extend);
60 EXPORT_SYMBOL(jbd2_journal_stop);
61 EXPORT_SYMBOL(jbd2_journal_lock_updates);
62 EXPORT_SYMBOL(jbd2_journal_unlock_updates);
63 EXPORT_SYMBOL(jbd2_journal_get_write_access);
64 EXPORT_SYMBOL(jbd2_journal_get_create_access);
65 EXPORT_SYMBOL(jbd2_journal_get_undo_access);
66 EXPORT_SYMBOL(jbd2_journal_set_triggers);
67 EXPORT_SYMBOL(jbd2_journal_dirty_metadata);
68 EXPORT_SYMBOL(jbd2_journal_forget);
69 EXPORT_SYMBOL(jbd2_journal_flush);
70 EXPORT_SYMBOL(jbd2_journal_revoke);
71
72 EXPORT_SYMBOL(jbd2_journal_init_dev);
73 EXPORT_SYMBOL(jbd2_journal_init_inode);
74 EXPORT_SYMBOL(jbd2_journal_check_used_features);
75 EXPORT_SYMBOL(jbd2_journal_check_available_features);
76 EXPORT_SYMBOL(jbd2_journal_set_features);
77 EXPORT_SYMBOL(jbd2_journal_load);
78 EXPORT_SYMBOL(jbd2_journal_destroy);
79 EXPORT_SYMBOL(jbd2_journal_abort);
80 EXPORT_SYMBOL(jbd2_journal_errno);
81 EXPORT_SYMBOL(jbd2_journal_ack_err);
82 EXPORT_SYMBOL(jbd2_journal_clear_err);
83 EXPORT_SYMBOL(jbd2_log_wait_commit);
84 EXPORT_SYMBOL(jbd2_log_start_commit);
85 EXPORT_SYMBOL(jbd2_journal_start_commit);
86 EXPORT_SYMBOL(jbd2_journal_force_commit_nested);
87 EXPORT_SYMBOL(jbd2_journal_wipe);
88 EXPORT_SYMBOL(jbd2_journal_blocks_per_page);
89 EXPORT_SYMBOL(jbd2_journal_invalidatepage);
90 EXPORT_SYMBOL(jbd2_journal_try_to_free_buffers);
91 EXPORT_SYMBOL(jbd2_journal_force_commit);
92 EXPORT_SYMBOL(jbd2_journal_inode_ranged_write);
93 EXPORT_SYMBOL(jbd2_journal_inode_ranged_wait);
94 EXPORT_SYMBOL(jbd2_journal_init_jbd_inode);
95 EXPORT_SYMBOL(jbd2_journal_release_jbd_inode);
96 EXPORT_SYMBOL(jbd2_journal_begin_ordered_truncate);
97 EXPORT_SYMBOL(jbd2_inode_cache);
98
99 static int jbd2_journal_create_slab(size_t slab_size);
100
101 #ifdef CONFIG_JBD2_DEBUG
102 void __jbd2_debug(int level, const char *file, const char *func,
103                   unsigned int line, const char *fmt, ...)
104 {
105         struct va_format vaf;
106         va_list args;
107
108         if (level > jbd2_journal_enable_debug)
109                 return;
110         va_start(args, fmt);
111         vaf.fmt = fmt;
112         vaf.va = &args;
113         printk(KERN_DEBUG "%s: (%s, %u): %pV", file, func, line, &vaf);
114         va_end(args);
115 }
116 EXPORT_SYMBOL(__jbd2_debug);
117 #endif
118
119 /* Checksumming functions */
120 static int jbd2_verify_csum_type(journal_t *j, journal_superblock_t *sb)
121 {
122         if (!jbd2_journal_has_csum_v2or3_feature(j))
123                 return 1;
124
125         return sb->s_checksum_type == JBD2_CRC32C_CHKSUM;
126 }
127
128 static __be32 jbd2_superblock_csum(journal_t *j, journal_superblock_t *sb)
129 {
130         __u32 csum;
131         __be32 old_csum;
132
133         old_csum = sb->s_checksum;
134         sb->s_checksum = 0;
135         csum = jbd2_chksum(j, ~0, (char *)sb, sizeof(journal_superblock_t));
136         sb->s_checksum = old_csum;
137
138         return cpu_to_be32(csum);
139 }
140
141 /*
142  * Helper function used to manage commit timeouts
143  */
144
145 static void commit_timeout(struct timer_list *t)
146 {
147         journal_t *journal = from_timer(journal, t, j_commit_timer);
148
149         wake_up_process(journal->j_task);
150 }
151
152 /*
153  * kjournald2: The main thread function used to manage a logging device
154  * journal.
155  *
156  * This kernel thread is responsible for two things:
157  *
158  * 1) COMMIT:  Every so often we need to commit the current state of the
159  *    filesystem to disk.  The journal thread is responsible for writing
160  *    all of the metadata buffers to disk.
161  *
162  * 2) CHECKPOINT: We cannot reuse a used section of the log file until all
163  *    of the data in that part of the log has been rewritten elsewhere on
164  *    the disk.  Flushing these old buffers to reclaim space in the log is
165  *    known as checkpointing, and this thread is responsible for that job.
166  */
167
168 static int kjournald2(void *arg)
169 {
170         journal_t *journal = arg;
171         transaction_t *transaction;
172
173         /*
174          * Set up an interval timer which can be used to trigger a commit wakeup
175          * after the commit interval expires
176          */
177         timer_setup(&journal->j_commit_timer, commit_timeout, 0);
178
179         set_freezable();
180
181         /* Record that the journal thread is running */
182         journal->j_task = current;
183         wake_up(&journal->j_wait_done_commit);
184
185         /*
186          * Make sure that no allocations from this kernel thread will ever
187          * recurse to the fs layer because we are responsible for the
188          * transaction commit and any fs involvement might get stuck waiting for
189          * the trasn. commit.
190          */
191         memalloc_nofs_save();
192
193         /*
194          * And now, wait forever for commit wakeup events.
195          */
196         write_lock(&journal->j_state_lock);
197
198 loop:
199         if (journal->j_flags & JBD2_UNMOUNT)
200                 goto end_loop;
201
202         jbd_debug(1, "commit_sequence=%u, commit_request=%u\n",
203                 journal->j_commit_sequence, journal->j_commit_request);
204
205         if (journal->j_commit_sequence != journal->j_commit_request) {
206                 jbd_debug(1, "OK, requests differ\n");
207                 write_unlock(&journal->j_state_lock);
208                 del_timer_sync(&journal->j_commit_timer);
209                 jbd2_journal_commit_transaction(journal);
210                 write_lock(&journal->j_state_lock);
211                 goto loop;
212         }
213
214         wake_up(&journal->j_wait_done_commit);
215         if (freezing(current)) {
216                 /*
217                  * The simpler the better. Flushing journal isn't a
218                  * good idea, because that depends on threads that may
219                  * be already stopped.
220                  */
221                 jbd_debug(1, "Now suspending kjournald2\n");
222                 write_unlock(&journal->j_state_lock);
223                 try_to_freeze();
224                 write_lock(&journal->j_state_lock);
225         } else {
226                 /*
227                  * We assume on resume that commits are already there,
228                  * so we don't sleep
229                  */
230                 DEFINE_WAIT(wait);
231                 int should_sleep = 1;
232
233                 prepare_to_wait(&journal->j_wait_commit, &wait,
234                                 TASK_INTERRUPTIBLE);
235                 if (journal->j_commit_sequence != journal->j_commit_request)
236                         should_sleep = 0;
237                 transaction = journal->j_running_transaction;
238                 if (transaction && time_after_eq(jiffies,
239                                                 transaction->t_expires))
240                         should_sleep = 0;
241                 if (journal->j_flags & JBD2_UNMOUNT)
242                         should_sleep = 0;
243                 if (should_sleep) {
244                         write_unlock(&journal->j_state_lock);
245                         schedule();
246                         write_lock(&journal->j_state_lock);
247                 }
248                 finish_wait(&journal->j_wait_commit, &wait);
249         }
250
251         jbd_debug(1, "kjournald2 wakes\n");
252
253         /*
254          * Were we woken up by a commit wakeup event?
255          */
256         transaction = journal->j_running_transaction;
257         if (transaction && time_after_eq(jiffies, transaction->t_expires)) {
258                 journal->j_commit_request = transaction->t_tid;
259                 jbd_debug(1, "woke because of timeout\n");
260         }
261         goto loop;
262
263 end_loop:
264         del_timer_sync(&journal->j_commit_timer);
265         journal->j_task = NULL;
266         wake_up(&journal->j_wait_done_commit);
267         jbd_debug(1, "Journal thread exiting.\n");
268         write_unlock(&journal->j_state_lock);
269         return 0;
270 }
271
272 static int jbd2_journal_start_thread(journal_t *journal)
273 {
274         struct task_struct *t;
275
276         t = kthread_run(kjournald2, journal, "jbd2/%s",
277                         journal->j_devname);
278         if (IS_ERR(t))
279                 return PTR_ERR(t);
280
281         wait_event(journal->j_wait_done_commit, journal->j_task != NULL);
282         return 0;
283 }
284
285 static void journal_kill_thread(journal_t *journal)
286 {
287         write_lock(&journal->j_state_lock);
288         journal->j_flags |= JBD2_UNMOUNT;
289
290         while (journal->j_task) {
291                 write_unlock(&journal->j_state_lock);
292                 wake_up(&journal->j_wait_commit);
293                 wait_event(journal->j_wait_done_commit, journal->j_task == NULL);
294                 write_lock(&journal->j_state_lock);
295         }
296         write_unlock(&journal->j_state_lock);
297 }
298
299 /*
300  * jbd2_journal_write_metadata_buffer: write a metadata buffer to the journal.
301  *
302  * Writes a metadata buffer to a given disk block.  The actual IO is not
303  * performed but a new buffer_head is constructed which labels the data
304  * to be written with the correct destination disk block.
305  *
306  * Any magic-number escaping which needs to be done will cause a
307  * copy-out here.  If the buffer happens to start with the
308  * JBD2_MAGIC_NUMBER, then we can't write it to the log directly: the
309  * magic number is only written to the log for descripter blocks.  In
310  * this case, we copy the data and replace the first word with 0, and we
311  * return a result code which indicates that this buffer needs to be
312  * marked as an escaped buffer in the corresponding log descriptor
313  * block.  The missing word can then be restored when the block is read
314  * during recovery.
315  *
316  * If the source buffer has already been modified by a new transaction
317  * since we took the last commit snapshot, we use the frozen copy of
318  * that data for IO. If we end up using the existing buffer_head's data
319  * for the write, then we have to make sure nobody modifies it while the
320  * IO is in progress. do_get_write_access() handles this.
321  *
322  * The function returns a pointer to the buffer_head to be used for IO.
323  *
324  *
325  * Return value:
326  *  <0: Error
327  * >=0: Finished OK
328  *
329  * On success:
330  * Bit 0 set == escape performed on the data
331  * Bit 1 set == buffer copy-out performed (kfree the data after IO)
332  */
333
334 int jbd2_journal_write_metadata_buffer(transaction_t *transaction,
335                                   struct journal_head  *jh_in,
336                                   struct buffer_head **bh_out,
337                                   sector_t blocknr)
338 {
339         int need_copy_out = 0;
340         int done_copy_out = 0;
341         int do_escape = 0;
342         char *mapped_data;
343         struct buffer_head *new_bh;
344         struct page *new_page;
345         unsigned int new_offset;
346         struct buffer_head *bh_in = jh2bh(jh_in);
347         journal_t *journal = transaction->t_journal;
348
349         /*
350          * The buffer really shouldn't be locked: only the current committing
351          * transaction is allowed to write it, so nobody else is allowed
352          * to do any IO.
353          *
354          * akpm: except if we're journalling data, and write() output is
355          * also part of a shared mapping, and another thread has
356          * decided to launch a writepage() against this buffer.
357          */
358         J_ASSERT_BH(bh_in, buffer_jbddirty(bh_in));
359
360         new_bh = alloc_buffer_head(GFP_NOFS|__GFP_NOFAIL);
361
362         /* keep subsequent assertions sane */
363         atomic_set(&new_bh->b_count, 1);
364
365         spin_lock(&jh_in->b_state_lock);
366 repeat:
367         /*
368          * If a new transaction has already done a buffer copy-out, then
369          * we use that version of the data for the commit.
370          */
371         if (jh_in->b_frozen_data) {
372                 done_copy_out = 1;
373                 new_page = virt_to_page(jh_in->b_frozen_data);
374                 new_offset = offset_in_page(jh_in->b_frozen_data);
375         } else {
376                 new_page = jh2bh(jh_in)->b_page;
377                 new_offset = offset_in_page(jh2bh(jh_in)->b_data);
378         }
379
380         mapped_data = kmap_atomic(new_page);
381         /*
382          * Fire data frozen trigger if data already wasn't frozen.  Do this
383          * before checking for escaping, as the trigger may modify the magic
384          * offset.  If a copy-out happens afterwards, it will have the correct
385          * data in the buffer.
386          */
387         if (!done_copy_out)
388                 jbd2_buffer_frozen_trigger(jh_in, mapped_data + new_offset,
389                                            jh_in->b_triggers);
390
391         /*
392          * Check for escaping
393          */
394         if (*((__be32 *)(mapped_data + new_offset)) ==
395                                 cpu_to_be32(JBD2_MAGIC_NUMBER)) {
396                 need_copy_out = 1;
397                 do_escape = 1;
398         }
399         kunmap_atomic(mapped_data);
400
401         /*
402          * Do we need to do a data copy?
403          */
404         if (need_copy_out && !done_copy_out) {
405                 char *tmp;
406
407                 spin_unlock(&jh_in->b_state_lock);
408                 tmp = jbd2_alloc(bh_in->b_size, GFP_NOFS);
409                 if (!tmp) {
410                         brelse(new_bh);
411                         return -ENOMEM;
412                 }
413                 spin_lock(&jh_in->b_state_lock);
414                 if (jh_in->b_frozen_data) {
415                         jbd2_free(tmp, bh_in->b_size);
416                         goto repeat;
417                 }
418
419                 jh_in->b_frozen_data = tmp;
420                 mapped_data = kmap_atomic(new_page);
421                 memcpy(tmp, mapped_data + new_offset, bh_in->b_size);
422                 kunmap_atomic(mapped_data);
423
424                 new_page = virt_to_page(tmp);
425                 new_offset = offset_in_page(tmp);
426                 done_copy_out = 1;
427
428                 /*
429                  * This isn't strictly necessary, as we're using frozen
430                  * data for the escaping, but it keeps consistency with
431                  * b_frozen_data usage.
432                  */
433                 jh_in->b_frozen_triggers = jh_in->b_triggers;
434         }
435
436         /*
437          * Did we need to do an escaping?  Now we've done all the
438          * copying, we can finally do so.
439          */
440         if (do_escape) {
441                 mapped_data = kmap_atomic(new_page);
442                 *((unsigned int *)(mapped_data + new_offset)) = 0;
443                 kunmap_atomic(mapped_data);
444         }
445
446         set_bh_page(new_bh, new_page, new_offset);
447         new_bh->b_size = bh_in->b_size;
448         new_bh->b_bdev = journal->j_dev;
449         new_bh->b_blocknr = blocknr;
450         new_bh->b_private = bh_in;
451         set_buffer_mapped(new_bh);
452         set_buffer_dirty(new_bh);
453
454         *bh_out = new_bh;
455
456         /*
457          * The to-be-written buffer needs to get moved to the io queue,
458          * and the original buffer whose contents we are shadowing or
459          * copying is moved to the transaction's shadow queue.
460          */
461         JBUFFER_TRACE(jh_in, "file as BJ_Shadow");
462         spin_lock(&journal->j_list_lock);
463         __jbd2_journal_file_buffer(jh_in, transaction, BJ_Shadow);
464         spin_unlock(&journal->j_list_lock);
465         set_buffer_shadow(bh_in);
466         spin_unlock(&jh_in->b_state_lock);
467
468         return do_escape | (done_copy_out << 1);
469 }
470
471 /*
472  * Allocation code for the journal file.  Manage the space left in the
473  * journal, so that we can begin checkpointing when appropriate.
474  */
475
476 /*
477  * Called with j_state_lock locked for writing.
478  * Returns true if a transaction commit was started.
479  */
480 int __jbd2_log_start_commit(journal_t *journal, tid_t target)
481 {
482         /* Return if the txn has already requested to be committed */
483         if (journal->j_commit_request == target)
484                 return 0;
485
486         /*
487          * The only transaction we can possibly wait upon is the
488          * currently running transaction (if it exists).  Otherwise,
489          * the target tid must be an old one.
490          */
491         if (journal->j_running_transaction &&
492             journal->j_running_transaction->t_tid == target) {
493                 /*
494                  * We want a new commit: OK, mark the request and wakeup the
495                  * commit thread.  We do _not_ do the commit ourselves.
496                  */
497
498                 journal->j_commit_request = target;
499                 jbd_debug(1, "JBD2: requesting commit %u/%u\n",
500                           journal->j_commit_request,
501                           journal->j_commit_sequence);
502                 journal->j_running_transaction->t_requested = jiffies;
503                 wake_up(&journal->j_wait_commit);
504                 return 1;
505         } else if (!tid_geq(journal->j_commit_request, target))
506                 /* This should never happen, but if it does, preserve
507                    the evidence before kjournald goes into a loop and
508                    increments j_commit_sequence beyond all recognition. */
509                 WARN_ONCE(1, "JBD2: bad log_start_commit: %u %u %u %u\n",
510                           journal->j_commit_request,
511                           journal->j_commit_sequence,
512                           target, journal->j_running_transaction ?
513                           journal->j_running_transaction->t_tid : 0);
514         return 0;
515 }
516
517 int jbd2_log_start_commit(journal_t *journal, tid_t tid)
518 {
519         int ret;
520
521         write_lock(&journal->j_state_lock);
522         ret = __jbd2_log_start_commit(journal, tid);
523         write_unlock(&journal->j_state_lock);
524         return ret;
525 }
526
527 /*
528  * Force and wait any uncommitted transactions.  We can only force the running
529  * transaction if we don't have an active handle, otherwise, we will deadlock.
530  * Returns: <0 in case of error,
531  *           0 if nothing to commit,
532  *           1 if transaction was successfully committed.
533  */
534 static int __jbd2_journal_force_commit(journal_t *journal)
535 {
536         transaction_t *transaction = NULL;
537         tid_t tid;
538         int need_to_start = 0, ret = 0;
539
540         read_lock(&journal->j_state_lock);
541         if (journal->j_running_transaction && !current->journal_info) {
542                 transaction = journal->j_running_transaction;
543                 if (!tid_geq(journal->j_commit_request, transaction->t_tid))
544                         need_to_start = 1;
545         } else if (journal->j_committing_transaction)
546                 transaction = journal->j_committing_transaction;
547
548         if (!transaction) {
549                 /* Nothing to commit */
550                 read_unlock(&journal->j_state_lock);
551                 return 0;
552         }
553         tid = transaction->t_tid;
554         read_unlock(&journal->j_state_lock);
555         if (need_to_start)
556                 jbd2_log_start_commit(journal, tid);
557         ret = jbd2_log_wait_commit(journal, tid);
558         if (!ret)
559                 ret = 1;
560
561         return ret;
562 }
563
564 /**
565  * Force and wait upon a commit if the calling process is not within
566  * transaction.  This is used for forcing out undo-protected data which contains
567  * bitmaps, when the fs is running out of space.
568  *
569  * @journal: journal to force
570  * Returns true if progress was made.
571  */
572 int jbd2_journal_force_commit_nested(journal_t *journal)
573 {
574         int ret;
575
576         ret = __jbd2_journal_force_commit(journal);
577         return ret > 0;
578 }
579
580 /**
581  * int journal_force_commit() - force any uncommitted transactions
582  * @journal: journal to force
583  *
584  * Caller want unconditional commit. We can only force the running transaction
585  * if we don't have an active handle, otherwise, we will deadlock.
586  */
587 int jbd2_journal_force_commit(journal_t *journal)
588 {
589         int ret;
590
591         J_ASSERT(!current->journal_info);
592         ret = __jbd2_journal_force_commit(journal);
593         if (ret > 0)
594                 ret = 0;
595         return ret;
596 }
597
598 /*
599  * Start a commit of the current running transaction (if any).  Returns true
600  * if a transaction is going to be committed (or is currently already
601  * committing), and fills its tid in at *ptid
602  */
603 int jbd2_journal_start_commit(journal_t *journal, tid_t *ptid)
604 {
605         int ret = 0;
606
607         write_lock(&journal->j_state_lock);
608         if (journal->j_running_transaction) {
609                 tid_t tid = journal->j_running_transaction->t_tid;
610
611                 __jbd2_log_start_commit(journal, tid);
612                 /* There's a running transaction and we've just made sure
613                  * it's commit has been scheduled. */
614                 if (ptid)
615                         *ptid = tid;
616                 ret = 1;
617         } else if (journal->j_committing_transaction) {
618                 /*
619                  * If commit has been started, then we have to wait for
620                  * completion of that transaction.
621                  */
622                 if (ptid)
623                         *ptid = journal->j_committing_transaction->t_tid;
624                 ret = 1;
625         }
626         write_unlock(&journal->j_state_lock);
627         return ret;
628 }
629
630 /*
631  * Return 1 if a given transaction has not yet sent barrier request
632  * connected with a transaction commit. If 0 is returned, transaction
633  * may or may not have sent the barrier. Used to avoid sending barrier
634  * twice in common cases.
635  */
636 int jbd2_trans_will_send_data_barrier(journal_t *journal, tid_t tid)
637 {
638         int ret = 0;
639         transaction_t *commit_trans;
640
641         if (!(journal->j_flags & JBD2_BARRIER))
642                 return 0;
643         read_lock(&journal->j_state_lock);
644         /* Transaction already committed? */
645         if (tid_geq(journal->j_commit_sequence, tid))
646                 goto out;
647         commit_trans = journal->j_committing_transaction;
648         if (!commit_trans || commit_trans->t_tid != tid) {
649                 ret = 1;
650                 goto out;
651         }
652         /*
653          * Transaction is being committed and we already proceeded to
654          * submitting a flush to fs partition?
655          */
656         if (journal->j_fs_dev != journal->j_dev) {
657                 if (!commit_trans->t_need_data_flush ||
658                     commit_trans->t_state >= T_COMMIT_DFLUSH)
659                         goto out;
660         } else {
661                 if (commit_trans->t_state >= T_COMMIT_JFLUSH)
662                         goto out;
663         }
664         ret = 1;
665 out:
666         read_unlock(&journal->j_state_lock);
667         return ret;
668 }
669 EXPORT_SYMBOL(jbd2_trans_will_send_data_barrier);
670
671 /*
672  * Wait for a specified commit to complete.
673  * The caller may not hold the journal lock.
674  */
675 int jbd2_log_wait_commit(journal_t *journal, tid_t tid)
676 {
677         int err = 0;
678
679         read_lock(&journal->j_state_lock);
680 #ifdef CONFIG_PROVE_LOCKING
681         /*
682          * Some callers make sure transaction is already committing and in that
683          * case we cannot block on open handles anymore. So don't warn in that
684          * case.
685          */
686         if (tid_gt(tid, journal->j_commit_sequence) &&
687             (!journal->j_committing_transaction ||
688              journal->j_committing_transaction->t_tid != tid)) {
689                 read_unlock(&journal->j_state_lock);
690                 jbd2_might_wait_for_commit(journal);
691                 read_lock(&journal->j_state_lock);
692         }
693 #endif
694 #ifdef CONFIG_JBD2_DEBUG
695         if (!tid_geq(journal->j_commit_request, tid)) {
696                 printk(KERN_ERR
697                        "%s: error: j_commit_request=%u, tid=%u\n",
698                        __func__, journal->j_commit_request, tid);
699         }
700 #endif
701         while (tid_gt(tid, journal->j_commit_sequence)) {
702                 jbd_debug(1, "JBD2: want %u, j_commit_sequence=%u\n",
703                                   tid, journal->j_commit_sequence);
704                 read_unlock(&journal->j_state_lock);
705                 wake_up(&journal->j_wait_commit);
706                 wait_event(journal->j_wait_done_commit,
707                                 !tid_gt(tid, journal->j_commit_sequence));
708                 read_lock(&journal->j_state_lock);
709         }
710         read_unlock(&journal->j_state_lock);
711
712         if (unlikely(is_journal_aborted(journal)))
713                 err = -EIO;
714         return err;
715 }
716
717 /* Return 1 when transaction with given tid has already committed. */
718 int jbd2_transaction_committed(journal_t *journal, tid_t tid)
719 {
720         int ret = 1;
721
722         read_lock(&journal->j_state_lock);
723         if (journal->j_running_transaction &&
724             journal->j_running_transaction->t_tid == tid)
725                 ret = 0;
726         if (journal->j_committing_transaction &&
727             journal->j_committing_transaction->t_tid == tid)
728                 ret = 0;
729         read_unlock(&journal->j_state_lock);
730         return ret;
731 }
732 EXPORT_SYMBOL(jbd2_transaction_committed);
733
734 /*
735  * When this function returns the transaction corresponding to tid
736  * will be completed.  If the transaction has currently running, start
737  * committing that transaction before waiting for it to complete.  If
738  * the transaction id is stale, it is by definition already completed,
739  * so just return SUCCESS.
740  */
741 int jbd2_complete_transaction(journal_t *journal, tid_t tid)
742 {
743         int     need_to_wait = 1;
744
745         read_lock(&journal->j_state_lock);
746         if (journal->j_running_transaction &&
747             journal->j_running_transaction->t_tid == tid) {
748                 if (journal->j_commit_request != tid) {
749                         /* transaction not yet started, so request it */
750                         read_unlock(&journal->j_state_lock);
751                         jbd2_log_start_commit(journal, tid);
752                         goto wait_commit;
753                 }
754         } else if (!(journal->j_committing_transaction &&
755                      journal->j_committing_transaction->t_tid == tid))
756                 need_to_wait = 0;
757         read_unlock(&journal->j_state_lock);
758         if (!need_to_wait)
759                 return 0;
760 wait_commit:
761         return jbd2_log_wait_commit(journal, tid);
762 }
763 EXPORT_SYMBOL(jbd2_complete_transaction);
764
765 /*
766  * Log buffer allocation routines:
767  */
768
769 int jbd2_journal_next_log_block(journal_t *journal, unsigned long long *retp)
770 {
771         unsigned long blocknr;
772
773         write_lock(&journal->j_state_lock);
774         J_ASSERT(journal->j_free > 1);
775
776         blocknr = journal->j_head;
777         journal->j_head++;
778         journal->j_free--;
779         if (journal->j_head == journal->j_last)
780                 journal->j_head = journal->j_first;
781         write_unlock(&journal->j_state_lock);
782         return jbd2_journal_bmap(journal, blocknr, retp);
783 }
784
785 /*
786  * Conversion of logical to physical block numbers for the journal
787  *
788  * On external journals the journal blocks are identity-mapped, so
789  * this is a no-op.  If needed, we can use j_blk_offset - everything is
790  * ready.
791  */
792 int jbd2_journal_bmap(journal_t *journal, unsigned long blocknr,
793                  unsigned long long *retp)
794 {
795         int err = 0;
796         unsigned long long ret;
797         sector_t block = 0;
798
799         if (journal->j_inode) {
800                 block = blocknr;
801                 ret = bmap(journal->j_inode, &block);
802
803                 if (ret || !block) {
804                         printk(KERN_ALERT "%s: journal block not found "
805                                         "at offset %lu on %s\n",
806                                __func__, blocknr, journal->j_devname);
807                         err = -EIO;
808                         jbd2_journal_abort(journal, err);
809                 } else {
810                         *retp = block;
811                 }
812
813         } else {
814                 *retp = blocknr; /* +journal->j_blk_offset */
815         }
816         return err;
817 }
818
819 /*
820  * We play buffer_head aliasing tricks to write data/metadata blocks to
821  * the journal without copying their contents, but for journal
822  * descriptor blocks we do need to generate bona fide buffers.
823  *
824  * After the caller of jbd2_journal_get_descriptor_buffer() has finished modifying
825  * the buffer's contents they really should run flush_dcache_page(bh->b_page).
826  * But we don't bother doing that, so there will be coherency problems with
827  * mmaps of blockdevs which hold live JBD-controlled filesystems.
828  */
829 struct buffer_head *
830 jbd2_journal_get_descriptor_buffer(transaction_t *transaction, int type)
831 {
832         journal_t *journal = transaction->t_journal;
833         struct buffer_head *bh;
834         unsigned long long blocknr;
835         journal_header_t *header;
836         int err;
837
838         err = jbd2_journal_next_log_block(journal, &blocknr);
839
840         if (err)
841                 return NULL;
842
843         bh = __getblk(journal->j_dev, blocknr, journal->j_blocksize);
844         if (!bh)
845                 return NULL;
846         atomic_dec(&transaction->t_outstanding_credits);
847         lock_buffer(bh);
848         memset(bh->b_data, 0, journal->j_blocksize);
849         header = (journal_header_t *)bh->b_data;
850         header->h_magic = cpu_to_be32(JBD2_MAGIC_NUMBER);
851         header->h_blocktype = cpu_to_be32(type);
852         header->h_sequence = cpu_to_be32(transaction->t_tid);
853         set_buffer_uptodate(bh);
854         unlock_buffer(bh);
855         BUFFER_TRACE(bh, "return this buffer");
856         return bh;
857 }
858
859 void jbd2_descriptor_block_csum_set(journal_t *j, struct buffer_head *bh)
860 {
861         struct jbd2_journal_block_tail *tail;
862         __u32 csum;
863
864         if (!jbd2_journal_has_csum_v2or3(j))
865                 return;
866
867         tail = (struct jbd2_journal_block_tail *)(bh->b_data + j->j_blocksize -
868                         sizeof(struct jbd2_journal_block_tail));
869         tail->t_checksum = 0;
870         csum = jbd2_chksum(j, j->j_csum_seed, bh->b_data, j->j_blocksize);
871         tail->t_checksum = cpu_to_be32(csum);
872 }
873
874 /*
875  * Return tid of the oldest transaction in the journal and block in the journal
876  * where the transaction starts.
877  *
878  * If the journal is now empty, return which will be the next transaction ID
879  * we will write and where will that transaction start.
880  *
881  * The return value is 0 if journal tail cannot be pushed any further, 1 if
882  * it can.
883  */
884 int jbd2_journal_get_log_tail(journal_t *journal, tid_t *tid,
885                               unsigned long *block)
886 {
887         transaction_t *transaction;
888         int ret;
889
890         read_lock(&journal->j_state_lock);
891         spin_lock(&journal->j_list_lock);
892         transaction = journal->j_checkpoint_transactions;
893         if (transaction) {
894                 *tid = transaction->t_tid;
895                 *block = transaction->t_log_start;
896         } else if ((transaction = journal->j_committing_transaction) != NULL) {
897                 *tid = transaction->t_tid;
898                 *block = transaction->t_log_start;
899         } else if ((transaction = journal->j_running_transaction) != NULL) {
900                 *tid = transaction->t_tid;
901                 *block = journal->j_head;
902         } else {
903                 *tid = journal->j_transaction_sequence;
904                 *block = journal->j_head;
905         }
906         ret = tid_gt(*tid, journal->j_tail_sequence);
907         spin_unlock(&journal->j_list_lock);
908         read_unlock(&journal->j_state_lock);
909
910         return ret;
911 }
912
913 /*
914  * Update information in journal structure and in on disk journal superblock
915  * about log tail. This function does not check whether information passed in
916  * really pushes log tail further. It's responsibility of the caller to make
917  * sure provided log tail information is valid (e.g. by holding
918  * j_checkpoint_mutex all the time between computing log tail and calling this
919  * function as is the case with jbd2_cleanup_journal_tail()).
920  *
921  * Requires j_checkpoint_mutex
922  */
923 int __jbd2_update_log_tail(journal_t *journal, tid_t tid, unsigned long block)
924 {
925         unsigned long freed;
926         int ret;
927
928         BUG_ON(!mutex_is_locked(&journal->j_checkpoint_mutex));
929
930         /*
931          * We cannot afford for write to remain in drive's caches since as
932          * soon as we update j_tail, next transaction can start reusing journal
933          * space and if we lose sb update during power failure we'd replay
934          * old transaction with possibly newly overwritten data.
935          */
936         ret = jbd2_journal_update_sb_log_tail(journal, tid, block,
937                                               REQ_SYNC | REQ_FUA);
938         if (ret)
939                 goto out;
940
941         write_lock(&journal->j_state_lock);
942         freed = block - journal->j_tail;
943         if (block < journal->j_tail)
944                 freed += journal->j_last - journal->j_first;
945
946         trace_jbd2_update_log_tail(journal, tid, block, freed);
947         jbd_debug(1,
948                   "Cleaning journal tail from %u to %u (offset %lu), "
949                   "freeing %lu\n",
950                   journal->j_tail_sequence, tid, block, freed);
951
952         journal->j_free += freed;
953         journal->j_tail_sequence = tid;
954         journal->j_tail = block;
955         write_unlock(&journal->j_state_lock);
956
957 out:
958         return ret;
959 }
960
961 /*
962  * This is a variation of __jbd2_update_log_tail which checks for validity of
963  * provided log tail and locks j_checkpoint_mutex. So it is safe against races
964  * with other threads updating log tail.
965  */
966 void jbd2_update_log_tail(journal_t *journal, tid_t tid, unsigned long block)
967 {
968         mutex_lock_io(&journal->j_checkpoint_mutex);
969         if (tid_gt(tid, journal->j_tail_sequence))
970                 __jbd2_update_log_tail(journal, tid, block);
971         mutex_unlock(&journal->j_checkpoint_mutex);
972 }
973
974 struct jbd2_stats_proc_session {
975         journal_t *journal;
976         struct transaction_stats_s *stats;
977         int start;
978         int max;
979 };
980
981 static void *jbd2_seq_info_start(struct seq_file *seq, loff_t *pos)
982 {
983         return *pos ? NULL : SEQ_START_TOKEN;
984 }
985
986 static void *jbd2_seq_info_next(struct seq_file *seq, void *v, loff_t *pos)
987 {
988         (*pos)++;
989         return NULL;
990 }
991
992 static int jbd2_seq_info_show(struct seq_file *seq, void *v)
993 {
994         struct jbd2_stats_proc_session *s = seq->private;
995
996         if (v != SEQ_START_TOKEN)
997                 return 0;
998         seq_printf(seq, "%lu transactions (%lu requested), "
999                    "each up to %u blocks\n",
1000                    s->stats->ts_tid, s->stats->ts_requested,
1001                    s->journal->j_max_transaction_buffers);
1002         if (s->stats->ts_tid == 0)
1003                 return 0;
1004         seq_printf(seq, "average: \n  %ums waiting for transaction\n",
1005             jiffies_to_msecs(s->stats->run.rs_wait / s->stats->ts_tid));
1006         seq_printf(seq, "  %ums request delay\n",
1007             (s->stats->ts_requested == 0) ? 0 :
1008             jiffies_to_msecs(s->stats->run.rs_request_delay /
1009                              s->stats->ts_requested));
1010         seq_printf(seq, "  %ums running transaction\n",
1011             jiffies_to_msecs(s->stats->run.rs_running / s->stats->ts_tid));
1012         seq_printf(seq, "  %ums transaction was being locked\n",
1013             jiffies_to_msecs(s->stats->run.rs_locked / s->stats->ts_tid));
1014         seq_printf(seq, "  %ums flushing data (in ordered mode)\n",
1015             jiffies_to_msecs(s->stats->run.rs_flushing / s->stats->ts_tid));
1016         seq_printf(seq, "  %ums logging transaction\n",
1017             jiffies_to_msecs(s->stats->run.rs_logging / s->stats->ts_tid));
1018         seq_printf(seq, "  %lluus average transaction commit time\n",
1019                    div_u64(s->journal->j_average_commit_time, 1000));
1020         seq_printf(seq, "  %lu handles per transaction\n",
1021             s->stats->run.rs_handle_count / s->stats->ts_tid);
1022         seq_printf(seq, "  %lu blocks per transaction\n",
1023             s->stats->run.rs_blocks / s->stats->ts_tid);
1024         seq_printf(seq, "  %lu logged blocks per transaction\n",
1025             s->stats->run.rs_blocks_logged / s->stats->ts_tid);
1026         return 0;
1027 }
1028
1029 static void jbd2_seq_info_stop(struct seq_file *seq, void *v)
1030 {
1031 }
1032
1033 static const struct seq_operations jbd2_seq_info_ops = {
1034         .start  = jbd2_seq_info_start,
1035         .next   = jbd2_seq_info_next,
1036         .stop   = jbd2_seq_info_stop,
1037         .show   = jbd2_seq_info_show,
1038 };
1039
1040 static int jbd2_seq_info_open(struct inode *inode, struct file *file)
1041 {
1042         journal_t *journal = PDE_DATA(inode);
1043         struct jbd2_stats_proc_session *s;
1044         int rc, size;
1045
1046         s = kmalloc(sizeof(*s), GFP_KERNEL);
1047         if (s == NULL)
1048                 return -ENOMEM;
1049         size = sizeof(struct transaction_stats_s);
1050         s->stats = kmalloc(size, GFP_KERNEL);
1051         if (s->stats == NULL) {
1052                 kfree(s);
1053                 return -ENOMEM;
1054         }
1055         spin_lock(&journal->j_history_lock);
1056         memcpy(s->stats, &journal->j_stats, size);
1057         s->journal = journal;
1058         spin_unlock(&journal->j_history_lock);
1059
1060         rc = seq_open(file, &jbd2_seq_info_ops);
1061         if (rc == 0) {
1062                 struct seq_file *m = file->private_data;
1063                 m->private = s;
1064         } else {
1065                 kfree(s->stats);
1066                 kfree(s);
1067         }
1068         return rc;
1069
1070 }
1071
1072 static int jbd2_seq_info_release(struct inode *inode, struct file *file)
1073 {
1074         struct seq_file *seq = file->private_data;
1075         struct jbd2_stats_proc_session *s = seq->private;
1076         kfree(s->stats);
1077         kfree(s);
1078         return seq_release(inode, file);
1079 }
1080
1081 static const struct proc_ops jbd2_info_proc_ops = {
1082         .proc_open      = jbd2_seq_info_open,
1083         .proc_read      = seq_read,
1084         .proc_lseek     = seq_lseek,
1085         .proc_release   = jbd2_seq_info_release,
1086 };
1087
1088 static struct proc_dir_entry *proc_jbd2_stats;
1089
1090 static void jbd2_stats_proc_init(journal_t *journal)
1091 {
1092         journal->j_proc_entry = proc_mkdir(journal->j_devname, proc_jbd2_stats);
1093         if (journal->j_proc_entry) {
1094                 proc_create_data("info", S_IRUGO, journal->j_proc_entry,
1095                                  &jbd2_info_proc_ops, journal);
1096         }
1097 }
1098
1099 static void jbd2_stats_proc_exit(journal_t *journal)
1100 {
1101         remove_proc_entry("info", journal->j_proc_entry);
1102         remove_proc_entry(journal->j_devname, proc_jbd2_stats);
1103 }
1104
1105 /* Minimum size of descriptor tag */
1106 static int jbd2_min_tag_size(void)
1107 {
1108         /*
1109          * Tag with 32-bit block numbers does not use last four bytes of the
1110          * structure
1111          */
1112         return sizeof(journal_block_tag_t) - 4;
1113 }
1114
1115 /*
1116  * Management for journal control blocks: functions to create and
1117  * destroy journal_t structures, and to initialise and read existing
1118  * journal blocks from disk.  */
1119
1120 /* First: create and setup a journal_t object in memory.  We initialise
1121  * very few fields yet: that has to wait until we have created the
1122  * journal structures from from scratch, or loaded them from disk. */
1123
1124 static journal_t *journal_init_common(struct block_device *bdev,
1125                         struct block_device *fs_dev,
1126                         unsigned long long start, int len, int blocksize)
1127 {
1128         static struct lock_class_key jbd2_trans_commit_key;
1129         journal_t *journal;
1130         int err;
1131         struct buffer_head *bh;
1132         int n;
1133
1134         journal = kzalloc(sizeof(*journal), GFP_KERNEL);
1135         if (!journal)
1136                 return NULL;
1137
1138         init_waitqueue_head(&journal->j_wait_transaction_locked);
1139         init_waitqueue_head(&journal->j_wait_done_commit);
1140         init_waitqueue_head(&journal->j_wait_commit);
1141         init_waitqueue_head(&journal->j_wait_updates);
1142         init_waitqueue_head(&journal->j_wait_reserved);
1143         mutex_init(&journal->j_abort_mutex);
1144         mutex_init(&journal->j_barrier);
1145         mutex_init(&journal->j_checkpoint_mutex);
1146         spin_lock_init(&journal->j_revoke_lock);
1147         spin_lock_init(&journal->j_list_lock);
1148         rwlock_init(&journal->j_state_lock);
1149
1150         journal->j_commit_interval = (HZ * JBD2_DEFAULT_MAX_COMMIT_AGE);
1151         journal->j_min_batch_time = 0;
1152         journal->j_max_batch_time = 15000; /* 15ms */
1153         atomic_set(&journal->j_reserved_credits, 0);
1154
1155         /* The journal is marked for error until we succeed with recovery! */
1156         journal->j_flags = JBD2_ABORT;
1157
1158         /* Set up a default-sized revoke table for the new mount. */
1159         err = jbd2_journal_init_revoke(journal, JOURNAL_REVOKE_DEFAULT_HASH);
1160         if (err)
1161                 goto err_cleanup;
1162
1163         spin_lock_init(&journal->j_history_lock);
1164
1165         lockdep_init_map(&journal->j_trans_commit_map, "jbd2_handle",
1166                          &jbd2_trans_commit_key, 0);
1167
1168         /* journal descriptor can store up to n blocks -bzzz */
1169         journal->j_blocksize = blocksize;
1170         journal->j_dev = bdev;
1171         journal->j_fs_dev = fs_dev;
1172         journal->j_blk_offset = start;
1173         journal->j_maxlen = len;
1174         /* We need enough buffers to write out full descriptor block. */
1175         n = journal->j_blocksize / jbd2_min_tag_size();
1176         journal->j_wbufsize = n;
1177         journal->j_wbuf = kmalloc_array(n, sizeof(struct buffer_head *),
1178                                         GFP_KERNEL);
1179         if (!journal->j_wbuf)
1180                 goto err_cleanup;
1181
1182         bh = getblk_unmovable(journal->j_dev, start, journal->j_blocksize);
1183         if (!bh) {
1184                 pr_err("%s: Cannot get buffer for journal superblock\n",
1185                         __func__);
1186                 goto err_cleanup;
1187         }
1188         journal->j_sb_buffer = bh;
1189         journal->j_superblock = (journal_superblock_t *)bh->b_data;
1190
1191         return journal;
1192
1193 err_cleanup:
1194         kfree(journal->j_wbuf);
1195         jbd2_journal_destroy_revoke(journal);
1196         kfree(journal);
1197         return NULL;
1198 }
1199
1200 /* jbd2_journal_init_dev and jbd2_journal_init_inode:
1201  *
1202  * Create a journal structure assigned some fixed set of disk blocks to
1203  * the journal.  We don't actually touch those disk blocks yet, but we
1204  * need to set up all of the mapping information to tell the journaling
1205  * system where the journal blocks are.
1206  *
1207  */
1208
1209 /**
1210  *  journal_t * jbd2_journal_init_dev() - creates and initialises a journal structure
1211  *  @bdev: Block device on which to create the journal
1212  *  @fs_dev: Device which hold journalled filesystem for this journal.
1213  *  @start: Block nr Start of journal.
1214  *  @len:  Length of the journal in blocks.
1215  *  @blocksize: blocksize of journalling device
1216  *
1217  *  Returns: a newly created journal_t *
1218  *
1219  *  jbd2_journal_init_dev creates a journal which maps a fixed contiguous
1220  *  range of blocks on an arbitrary block device.
1221  *
1222  */
1223 journal_t *jbd2_journal_init_dev(struct block_device *bdev,
1224                         struct block_device *fs_dev,
1225                         unsigned long long start, int len, int blocksize)
1226 {
1227         journal_t *journal;
1228
1229         journal = journal_init_common(bdev, fs_dev, start, len, blocksize);
1230         if (!journal)
1231                 return NULL;
1232
1233         bdevname(journal->j_dev, journal->j_devname);
1234         strreplace(journal->j_devname, '/', '!');
1235         jbd2_stats_proc_init(journal);
1236
1237         return journal;
1238 }
1239
1240 /**
1241  *  journal_t * jbd2_journal_init_inode () - creates a journal which maps to a inode.
1242  *  @inode: An inode to create the journal in
1243  *
1244  * jbd2_journal_init_inode creates a journal which maps an on-disk inode as
1245  * the journal.  The inode must exist already, must support bmap() and
1246  * must have all data blocks preallocated.
1247  */
1248 journal_t *jbd2_journal_init_inode(struct inode *inode)
1249 {
1250         journal_t *journal;
1251         sector_t blocknr;
1252         char *p;
1253         int err = 0;
1254
1255         blocknr = 0;
1256         err = bmap(inode, &blocknr);
1257
1258         if (err || !blocknr) {
1259                 pr_err("%s: Cannot locate journal superblock\n",
1260                         __func__);
1261                 return NULL;
1262         }
1263
1264         jbd_debug(1, "JBD2: inode %s/%ld, size %lld, bits %d, blksize %ld\n",
1265                   inode->i_sb->s_id, inode->i_ino, (long long) inode->i_size,
1266                   inode->i_sb->s_blocksize_bits, inode->i_sb->s_blocksize);
1267
1268         journal = journal_init_common(inode->i_sb->s_bdev, inode->i_sb->s_bdev,
1269                         blocknr, inode->i_size >> inode->i_sb->s_blocksize_bits,
1270                         inode->i_sb->s_blocksize);
1271         if (!journal)
1272                 return NULL;
1273
1274         journal->j_inode = inode;
1275         bdevname(journal->j_dev, journal->j_devname);
1276         p = strreplace(journal->j_devname, '/', '!');
1277         sprintf(p, "-%lu", journal->j_inode->i_ino);
1278         jbd2_stats_proc_init(journal);
1279
1280         return journal;
1281 }
1282
1283 /*
1284  * If the journal init or create aborts, we need to mark the journal
1285  * superblock as being NULL to prevent the journal destroy from writing
1286  * back a bogus superblock.
1287  */
1288 static void journal_fail_superblock (journal_t *journal)
1289 {
1290         struct buffer_head *bh = journal->j_sb_buffer;
1291         brelse(bh);
1292         journal->j_sb_buffer = NULL;
1293 }
1294
1295 /*
1296  * Given a journal_t structure, initialise the various fields for
1297  * startup of a new journaling session.  We use this both when creating
1298  * a journal, and after recovering an old journal to reset it for
1299  * subsequent use.
1300  */
1301
1302 static int journal_reset(journal_t *journal)
1303 {
1304         journal_superblock_t *sb = journal->j_superblock;
1305         unsigned long long first, last;
1306
1307         first = be32_to_cpu(sb->s_first);
1308         last = be32_to_cpu(sb->s_maxlen);
1309         if (first + JBD2_MIN_JOURNAL_BLOCKS > last + 1) {
1310                 printk(KERN_ERR "JBD2: Journal too short (blocks %llu-%llu).\n",
1311                        first, last);
1312                 journal_fail_superblock(journal);
1313                 return -EINVAL;
1314         }
1315
1316         journal->j_first = first;
1317         journal->j_last = last;
1318
1319         journal->j_head = first;
1320         journal->j_tail = first;
1321         journal->j_free = last - first;
1322
1323         journal->j_tail_sequence = journal->j_transaction_sequence;
1324         journal->j_commit_sequence = journal->j_transaction_sequence - 1;
1325         journal->j_commit_request = journal->j_commit_sequence;
1326
1327         journal->j_max_transaction_buffers = journal->j_maxlen / 4;
1328
1329         /*
1330          * As a special case, if the on-disk copy is already marked as needing
1331          * no recovery (s_start == 0), then we can safely defer the superblock
1332          * update until the next commit by setting JBD2_FLUSHED.  This avoids
1333          * attempting a write to a potential-readonly device.
1334          */
1335         if (sb->s_start == 0) {
1336                 jbd_debug(1, "JBD2: Skipping superblock update on recovered sb "
1337                         "(start %ld, seq %u, errno %d)\n",
1338                         journal->j_tail, journal->j_tail_sequence,
1339                         journal->j_errno);
1340                 journal->j_flags |= JBD2_FLUSHED;
1341         } else {
1342                 /* Lock here to make assertions happy... */
1343                 mutex_lock_io(&journal->j_checkpoint_mutex);
1344                 /*
1345                  * Update log tail information. We use REQ_FUA since new
1346                  * transaction will start reusing journal space and so we
1347                  * must make sure information about current log tail is on
1348                  * disk before that.
1349                  */
1350                 jbd2_journal_update_sb_log_tail(journal,
1351                                                 journal->j_tail_sequence,
1352                                                 journal->j_tail,
1353                                                 REQ_SYNC | REQ_FUA);
1354                 mutex_unlock(&journal->j_checkpoint_mutex);
1355         }
1356         return jbd2_journal_start_thread(journal);
1357 }
1358
1359 /*
1360  * This function expects that the caller will have locked the journal
1361  * buffer head, and will return with it unlocked
1362  */
1363 static int jbd2_write_superblock(journal_t *journal, int write_flags)
1364 {
1365         struct buffer_head *bh = journal->j_sb_buffer;
1366         journal_superblock_t *sb = journal->j_superblock;
1367         int ret;
1368
1369         /* Buffer got discarded which means block device got invalidated */
1370         if (!buffer_mapped(bh))
1371                 return -EIO;
1372
1373         trace_jbd2_write_superblock(journal, write_flags);
1374         if (!(journal->j_flags & JBD2_BARRIER))
1375                 write_flags &= ~(REQ_FUA | REQ_PREFLUSH);
1376         if (buffer_write_io_error(bh)) {
1377                 /*
1378                  * Oh, dear.  A previous attempt to write the journal
1379                  * superblock failed.  This could happen because the
1380                  * USB device was yanked out.  Or it could happen to
1381                  * be a transient write error and maybe the block will
1382                  * be remapped.  Nothing we can do but to retry the
1383                  * write and hope for the best.
1384                  */
1385                 printk(KERN_ERR "JBD2: previous I/O error detected "
1386                        "for journal superblock update for %s.\n",
1387                        journal->j_devname);
1388                 clear_buffer_write_io_error(bh);
1389                 set_buffer_uptodate(bh);
1390         }
1391         if (jbd2_journal_has_csum_v2or3(journal))
1392                 sb->s_checksum = jbd2_superblock_csum(journal, sb);
1393         get_bh(bh);
1394         bh->b_end_io = end_buffer_write_sync;
1395         ret = submit_bh(REQ_OP_WRITE, write_flags, bh);
1396         wait_on_buffer(bh);
1397         if (buffer_write_io_error(bh)) {
1398                 clear_buffer_write_io_error(bh);
1399                 set_buffer_uptodate(bh);
1400                 ret = -EIO;
1401         }
1402         if (ret) {
1403                 printk(KERN_ERR "JBD2: Error %d detected when updating "
1404                        "journal superblock for %s.\n", ret,
1405                        journal->j_devname);
1406                 if (!is_journal_aborted(journal))
1407                         jbd2_journal_abort(journal, ret);
1408         }
1409
1410         return ret;
1411 }
1412
1413 /**
1414  * jbd2_journal_update_sb_log_tail() - Update log tail in journal sb on disk.
1415  * @journal: The journal to update.
1416  * @tail_tid: TID of the new transaction at the tail of the log
1417  * @tail_block: The first block of the transaction at the tail of the log
1418  * @write_op: With which operation should we write the journal sb
1419  *
1420  * Update a journal's superblock information about log tail and write it to
1421  * disk, waiting for the IO to complete.
1422  */
1423 int jbd2_journal_update_sb_log_tail(journal_t *journal, tid_t tail_tid,
1424                                      unsigned long tail_block, int write_op)
1425 {
1426         journal_superblock_t *sb = journal->j_superblock;
1427         int ret;
1428
1429         if (is_journal_aborted(journal))
1430                 return -EIO;
1431
1432         BUG_ON(!mutex_is_locked(&journal->j_checkpoint_mutex));
1433         jbd_debug(1, "JBD2: updating superblock (start %lu, seq %u)\n",
1434                   tail_block, tail_tid);
1435
1436         lock_buffer(journal->j_sb_buffer);
1437         sb->s_sequence = cpu_to_be32(tail_tid);
1438         sb->s_start    = cpu_to_be32(tail_block);
1439
1440         ret = jbd2_write_superblock(journal, write_op);
1441         if (ret)
1442                 goto out;
1443
1444         /* Log is no longer empty */
1445         write_lock(&journal->j_state_lock);
1446         WARN_ON(!sb->s_sequence);
1447         journal->j_flags &= ~JBD2_FLUSHED;
1448         write_unlock(&journal->j_state_lock);
1449
1450 out:
1451         return ret;
1452 }
1453
1454 /**
1455  * jbd2_mark_journal_empty() - Mark on disk journal as empty.
1456  * @journal: The journal to update.
1457  * @write_op: With which operation should we write the journal sb
1458  *
1459  * Update a journal's dynamic superblock fields to show that journal is empty.
1460  * Write updated superblock to disk waiting for IO to complete.
1461  */
1462 static void jbd2_mark_journal_empty(journal_t *journal, int write_op)
1463 {
1464         journal_superblock_t *sb = journal->j_superblock;
1465
1466         BUG_ON(!mutex_is_locked(&journal->j_checkpoint_mutex));
1467         lock_buffer(journal->j_sb_buffer);
1468         if (sb->s_start == 0) {         /* Is it already empty? */
1469                 unlock_buffer(journal->j_sb_buffer);
1470                 return;
1471         }
1472
1473         jbd_debug(1, "JBD2: Marking journal as empty (seq %u)\n",
1474                   journal->j_tail_sequence);
1475
1476         sb->s_sequence = cpu_to_be32(journal->j_tail_sequence);
1477         sb->s_start    = cpu_to_be32(0);
1478
1479         jbd2_write_superblock(journal, write_op);
1480
1481         /* Log is no longer empty */
1482         write_lock(&journal->j_state_lock);
1483         journal->j_flags |= JBD2_FLUSHED;
1484         write_unlock(&journal->j_state_lock);
1485 }
1486
1487
1488 /**
1489  * jbd2_journal_update_sb_errno() - Update error in the journal.
1490  * @journal: The journal to update.
1491  *
1492  * Update a journal's errno.  Write updated superblock to disk waiting for IO
1493  * to complete.
1494  */
1495 void jbd2_journal_update_sb_errno(journal_t *journal)
1496 {
1497         journal_superblock_t *sb = journal->j_superblock;
1498         int errcode;
1499
1500         lock_buffer(journal->j_sb_buffer);
1501         errcode = journal->j_errno;
1502         if (errcode == -ESHUTDOWN)
1503                 errcode = 0;
1504         jbd_debug(1, "JBD2: updating superblock error (errno %d)\n", errcode);
1505         sb->s_errno    = cpu_to_be32(errcode);
1506
1507         jbd2_write_superblock(journal, REQ_SYNC | REQ_FUA);
1508 }
1509 EXPORT_SYMBOL(jbd2_journal_update_sb_errno);
1510
1511 static int journal_revoke_records_per_block(journal_t *journal)
1512 {
1513         int record_size;
1514         int space = journal->j_blocksize - sizeof(jbd2_journal_revoke_header_t);
1515
1516         if (jbd2_has_feature_64bit(journal))
1517                 record_size = 8;
1518         else
1519                 record_size = 4;
1520
1521         if (jbd2_journal_has_csum_v2or3(journal))
1522                 space -= sizeof(struct jbd2_journal_block_tail);
1523         return space / record_size;
1524 }
1525
1526 /*
1527  * Read the superblock for a given journal, performing initial
1528  * validation of the format.
1529  */
1530 static int journal_get_superblock(journal_t *journal)
1531 {
1532         struct buffer_head *bh;
1533         journal_superblock_t *sb;
1534         int err = -EIO;
1535
1536         bh = journal->j_sb_buffer;
1537
1538         J_ASSERT(bh != NULL);
1539         if (!buffer_uptodate(bh)) {
1540                 ll_rw_block(REQ_OP_READ, 0, 1, &bh);
1541                 wait_on_buffer(bh);
1542                 if (!buffer_uptodate(bh)) {
1543                         printk(KERN_ERR
1544                                 "JBD2: IO error reading journal superblock\n");
1545                         goto out;
1546                 }
1547         }
1548
1549         if (buffer_verified(bh))
1550                 return 0;
1551
1552         sb = journal->j_superblock;
1553
1554         err = -EINVAL;
1555
1556         if (sb->s_header.h_magic != cpu_to_be32(JBD2_MAGIC_NUMBER) ||
1557             sb->s_blocksize != cpu_to_be32(journal->j_blocksize)) {
1558                 printk(KERN_WARNING "JBD2: no valid journal superblock found\n");
1559                 goto out;
1560         }
1561
1562         switch(be32_to_cpu(sb->s_header.h_blocktype)) {
1563         case JBD2_SUPERBLOCK_V1:
1564                 journal->j_format_version = 1;
1565                 break;
1566         case JBD2_SUPERBLOCK_V2:
1567                 journal->j_format_version = 2;
1568                 break;
1569         default:
1570                 printk(KERN_WARNING "JBD2: unrecognised superblock format ID\n");
1571                 goto out;
1572         }
1573
1574         if (be32_to_cpu(sb->s_maxlen) < journal->j_maxlen)
1575                 journal->j_maxlen = be32_to_cpu(sb->s_maxlen);
1576         else if (be32_to_cpu(sb->s_maxlen) > journal->j_maxlen) {
1577                 printk(KERN_WARNING "JBD2: journal file too short\n");
1578                 goto out;
1579         }
1580
1581         if (be32_to_cpu(sb->s_first) == 0 ||
1582             be32_to_cpu(sb->s_first) >= journal->j_maxlen) {
1583                 printk(KERN_WARNING
1584                         "JBD2: Invalid start block of journal: %u\n",
1585                         be32_to_cpu(sb->s_first));
1586                 goto out;
1587         }
1588
1589         if (jbd2_has_feature_csum2(journal) &&
1590             jbd2_has_feature_csum3(journal)) {
1591                 /* Can't have checksum v2 and v3 at the same time! */
1592                 printk(KERN_ERR "JBD2: Can't enable checksumming v2 and v3 "
1593                        "at the same time!\n");
1594                 goto out;
1595         }
1596
1597         if (jbd2_journal_has_csum_v2or3_feature(journal) &&
1598             jbd2_has_feature_checksum(journal)) {
1599                 /* Can't have checksum v1 and v2 on at the same time! */
1600                 printk(KERN_ERR "JBD2: Can't enable checksumming v1 and v2/3 "
1601                        "at the same time!\n");
1602                 goto out;
1603         }
1604
1605         if (!jbd2_verify_csum_type(journal, sb)) {
1606                 printk(KERN_ERR "JBD2: Unknown checksum type\n");
1607                 goto out;
1608         }
1609
1610         /* Load the checksum driver */
1611         if (jbd2_journal_has_csum_v2or3_feature(journal)) {
1612                 journal->j_chksum_driver = crypto_alloc_shash("crc32c", 0, 0);
1613                 if (IS_ERR(journal->j_chksum_driver)) {
1614                         printk(KERN_ERR "JBD2: Cannot load crc32c driver.\n");
1615                         err = PTR_ERR(journal->j_chksum_driver);
1616                         journal->j_chksum_driver = NULL;
1617                         goto out;
1618                 }
1619         }
1620
1621         if (jbd2_journal_has_csum_v2or3(journal)) {
1622                 /* Check superblock checksum */
1623                 if (sb->s_checksum != jbd2_superblock_csum(journal, sb)) {
1624                         printk(KERN_ERR "JBD2: journal checksum error\n");
1625                         err = -EFSBADCRC;
1626                         goto out;
1627                 }
1628
1629                 /* Precompute checksum seed for all metadata */
1630                 journal->j_csum_seed = jbd2_chksum(journal, ~0, sb->s_uuid,
1631                                                    sizeof(sb->s_uuid));
1632         }
1633
1634         journal->j_revoke_records_per_block =
1635                                 journal_revoke_records_per_block(journal);
1636         set_buffer_verified(bh);
1637
1638         return 0;
1639
1640 out:
1641         journal_fail_superblock(journal);
1642         return err;
1643 }
1644
1645 /*
1646  * Load the on-disk journal superblock and read the key fields into the
1647  * journal_t.
1648  */
1649
1650 static int load_superblock(journal_t *journal)
1651 {
1652         int err;
1653         journal_superblock_t *sb;
1654
1655         err = journal_get_superblock(journal);
1656         if (err)
1657                 return err;
1658
1659         sb = journal->j_superblock;
1660
1661         journal->j_tail_sequence = be32_to_cpu(sb->s_sequence);
1662         journal->j_tail = be32_to_cpu(sb->s_start);
1663         journal->j_first = be32_to_cpu(sb->s_first);
1664         journal->j_last = be32_to_cpu(sb->s_maxlen);
1665         journal->j_errno = be32_to_cpu(sb->s_errno);
1666
1667         return 0;
1668 }
1669
1670
1671 /**
1672  * int jbd2_journal_load() - Read journal from disk.
1673  * @journal: Journal to act on.
1674  *
1675  * Given a journal_t structure which tells us which disk blocks contain
1676  * a journal, read the journal from disk to initialise the in-memory
1677  * structures.
1678  */
1679 int jbd2_journal_load(journal_t *journal)
1680 {
1681         int err;
1682         journal_superblock_t *sb;
1683
1684         err = load_superblock(journal);
1685         if (err)
1686                 return err;
1687
1688         sb = journal->j_superblock;
1689         /* If this is a V2 superblock, then we have to check the
1690          * features flags on it. */
1691
1692         if (journal->j_format_version >= 2) {
1693                 if ((sb->s_feature_ro_compat &
1694                      ~cpu_to_be32(JBD2_KNOWN_ROCOMPAT_FEATURES)) ||
1695                     (sb->s_feature_incompat &
1696                      ~cpu_to_be32(JBD2_KNOWN_INCOMPAT_FEATURES))) {
1697                         printk(KERN_WARNING
1698                                 "JBD2: Unrecognised features on journal\n");
1699                         return -EINVAL;
1700                 }
1701         }
1702
1703         /*
1704          * Create a slab for this blocksize
1705          */
1706         err = jbd2_journal_create_slab(be32_to_cpu(sb->s_blocksize));
1707         if (err)
1708                 return err;
1709
1710         /* Let the recovery code check whether it needs to recover any
1711          * data from the journal. */
1712         if (jbd2_journal_recover(journal))
1713                 goto recovery_error;
1714
1715         if (journal->j_failed_commit) {
1716                 printk(KERN_ERR "JBD2: journal transaction %u on %s "
1717                        "is corrupt.\n", journal->j_failed_commit,
1718                        journal->j_devname);
1719                 return -EFSCORRUPTED;
1720         }
1721         /*
1722          * clear JBD2_ABORT flag initialized in journal_init_common
1723          * here to update log tail information with the newest seq.
1724          */
1725         journal->j_flags &= ~JBD2_ABORT;
1726
1727         /* OK, we've finished with the dynamic journal bits:
1728          * reinitialise the dynamic contents of the superblock in memory
1729          * and reset them on disk. */
1730         if (journal_reset(journal))
1731                 goto recovery_error;
1732
1733         journal->j_flags |= JBD2_LOADED;
1734         return 0;
1735
1736 recovery_error:
1737         printk(KERN_WARNING "JBD2: recovery failed\n");
1738         return -EIO;
1739 }
1740
1741 /**
1742  * void jbd2_journal_destroy() - Release a journal_t structure.
1743  * @journal: Journal to act on.
1744  *
1745  * Release a journal_t structure once it is no longer in use by the
1746  * journaled object.
1747  * Return <0 if we couldn't clean up the journal.
1748  */
1749 int jbd2_journal_destroy(journal_t *journal)
1750 {
1751         int err = 0;
1752
1753         /* Wait for the commit thread to wake up and die. */
1754         journal_kill_thread(journal);
1755
1756         /* Force a final log commit */
1757         if (journal->j_running_transaction)
1758                 jbd2_journal_commit_transaction(journal);
1759
1760         /* Force any old transactions to disk */
1761
1762         /* Totally anal locking here... */
1763         spin_lock(&journal->j_list_lock);
1764         while (journal->j_checkpoint_transactions != NULL) {
1765                 spin_unlock(&journal->j_list_lock);
1766                 mutex_lock_io(&journal->j_checkpoint_mutex);
1767                 err = jbd2_log_do_checkpoint(journal);
1768                 mutex_unlock(&journal->j_checkpoint_mutex);
1769                 /*
1770                  * If checkpointing failed, just free the buffers to avoid
1771                  * looping forever
1772                  */
1773                 if (err) {
1774                         jbd2_journal_destroy_checkpoint(journal);
1775                         spin_lock(&journal->j_list_lock);
1776                         break;
1777                 }
1778                 spin_lock(&journal->j_list_lock);
1779         }
1780
1781         J_ASSERT(journal->j_running_transaction == NULL);
1782         J_ASSERT(journal->j_committing_transaction == NULL);
1783         J_ASSERT(journal->j_checkpoint_transactions == NULL);
1784         spin_unlock(&journal->j_list_lock);
1785
1786         if (journal->j_sb_buffer) {
1787                 if (!is_journal_aborted(journal)) {
1788                         mutex_lock_io(&journal->j_checkpoint_mutex);
1789
1790                         write_lock(&journal->j_state_lock);
1791                         journal->j_tail_sequence =
1792                                 ++journal->j_transaction_sequence;
1793                         write_unlock(&journal->j_state_lock);
1794
1795                         jbd2_mark_journal_empty(journal,
1796                                         REQ_SYNC | REQ_PREFLUSH | REQ_FUA);
1797                         mutex_unlock(&journal->j_checkpoint_mutex);
1798                 } else
1799                         err = -EIO;
1800                 brelse(journal->j_sb_buffer);
1801         }
1802
1803         if (journal->j_proc_entry)
1804                 jbd2_stats_proc_exit(journal);
1805         iput(journal->j_inode);
1806         if (journal->j_revoke)
1807                 jbd2_journal_destroy_revoke(journal);
1808         if (journal->j_chksum_driver)
1809                 crypto_free_shash(journal->j_chksum_driver);
1810         kfree(journal->j_wbuf);
1811         kfree(journal);
1812
1813         return err;
1814 }
1815
1816
1817 /**
1818  *int jbd2_journal_check_used_features () - Check if features specified are used.
1819  * @journal: Journal to check.
1820  * @compat: bitmask of compatible features
1821  * @ro: bitmask of features that force read-only mount
1822  * @incompat: bitmask of incompatible features
1823  *
1824  * Check whether the journal uses all of a given set of
1825  * features.  Return true (non-zero) if it does.
1826  **/
1827
1828 int jbd2_journal_check_used_features (journal_t *journal, unsigned long compat,
1829                                  unsigned long ro, unsigned long incompat)
1830 {
1831         journal_superblock_t *sb;
1832
1833         if (!compat && !ro && !incompat)
1834                 return 1;
1835         /* Load journal superblock if it is not loaded yet. */
1836         if (journal->j_format_version == 0 &&
1837             journal_get_superblock(journal) != 0)
1838                 return 0;
1839         if (journal->j_format_version == 1)
1840                 return 0;
1841
1842         sb = journal->j_superblock;
1843
1844         if (((be32_to_cpu(sb->s_feature_compat) & compat) == compat) &&
1845             ((be32_to_cpu(sb->s_feature_ro_compat) & ro) == ro) &&
1846             ((be32_to_cpu(sb->s_feature_incompat) & incompat) == incompat))
1847                 return 1;
1848
1849         return 0;
1850 }
1851
1852 /**
1853  * int jbd2_journal_check_available_features() - Check feature set in journalling layer
1854  * @journal: Journal to check.
1855  * @compat: bitmask of compatible features
1856  * @ro: bitmask of features that force read-only mount
1857  * @incompat: bitmask of incompatible features
1858  *
1859  * Check whether the journaling code supports the use of
1860  * all of a given set of features on this journal.  Return true
1861  * (non-zero) if it can. */
1862
1863 int jbd2_journal_check_available_features (journal_t *journal, unsigned long compat,
1864                                       unsigned long ro, unsigned long incompat)
1865 {
1866         if (!compat && !ro && !incompat)
1867                 return 1;
1868
1869         /* We can support any known requested features iff the
1870          * superblock is in version 2.  Otherwise we fail to support any
1871          * extended sb features. */
1872
1873         if (journal->j_format_version != 2)
1874                 return 0;
1875
1876         if ((compat   & JBD2_KNOWN_COMPAT_FEATURES) == compat &&
1877             (ro       & JBD2_KNOWN_ROCOMPAT_FEATURES) == ro &&
1878             (incompat & JBD2_KNOWN_INCOMPAT_FEATURES) == incompat)
1879                 return 1;
1880
1881         return 0;
1882 }
1883
1884 /**
1885  * int jbd2_journal_set_features () - Mark a given journal feature in the superblock
1886  * @journal: Journal to act on.
1887  * @compat: bitmask of compatible features
1888  * @ro: bitmask of features that force read-only mount
1889  * @incompat: bitmask of incompatible features
1890  *
1891  * Mark a given journal feature as present on the
1892  * superblock.  Returns true if the requested features could be set.
1893  *
1894  */
1895
1896 int jbd2_journal_set_features (journal_t *journal, unsigned long compat,
1897                           unsigned long ro, unsigned long incompat)
1898 {
1899 #define INCOMPAT_FEATURE_ON(f) \
1900                 ((incompat & (f)) && !(sb->s_feature_incompat & cpu_to_be32(f)))
1901 #define COMPAT_FEATURE_ON(f) \
1902                 ((compat & (f)) && !(sb->s_feature_compat & cpu_to_be32(f)))
1903         journal_superblock_t *sb;
1904
1905         if (jbd2_journal_check_used_features(journal, compat, ro, incompat))
1906                 return 1;
1907
1908         if (!jbd2_journal_check_available_features(journal, compat, ro, incompat))
1909                 return 0;
1910
1911         /* If enabling v2 checksums, turn on v3 instead */
1912         if (incompat & JBD2_FEATURE_INCOMPAT_CSUM_V2) {
1913                 incompat &= ~JBD2_FEATURE_INCOMPAT_CSUM_V2;
1914                 incompat |= JBD2_FEATURE_INCOMPAT_CSUM_V3;
1915         }
1916
1917         /* Asking for checksumming v3 and v1?  Only give them v3. */
1918         if (incompat & JBD2_FEATURE_INCOMPAT_CSUM_V3 &&
1919             compat & JBD2_FEATURE_COMPAT_CHECKSUM)
1920                 compat &= ~JBD2_FEATURE_COMPAT_CHECKSUM;
1921
1922         jbd_debug(1, "Setting new features 0x%lx/0x%lx/0x%lx\n",
1923                   compat, ro, incompat);
1924
1925         sb = journal->j_superblock;
1926
1927         /* Load the checksum driver if necessary */
1928         if ((journal->j_chksum_driver == NULL) &&
1929             INCOMPAT_FEATURE_ON(JBD2_FEATURE_INCOMPAT_CSUM_V3)) {
1930                 journal->j_chksum_driver = crypto_alloc_shash("crc32c", 0, 0);
1931                 if (IS_ERR(journal->j_chksum_driver)) {
1932                         printk(KERN_ERR "JBD2: Cannot load crc32c driver.\n");
1933                         journal->j_chksum_driver = NULL;
1934                         return 0;
1935                 }
1936                 /* Precompute checksum seed for all metadata */
1937                 journal->j_csum_seed = jbd2_chksum(journal, ~0, sb->s_uuid,
1938                                                    sizeof(sb->s_uuid));
1939         }
1940
1941         lock_buffer(journal->j_sb_buffer);
1942
1943         /* If enabling v3 checksums, update superblock */
1944         if (INCOMPAT_FEATURE_ON(JBD2_FEATURE_INCOMPAT_CSUM_V3)) {
1945                 sb->s_checksum_type = JBD2_CRC32C_CHKSUM;
1946                 sb->s_feature_compat &=
1947                         ~cpu_to_be32(JBD2_FEATURE_COMPAT_CHECKSUM);
1948         }
1949
1950         /* If enabling v1 checksums, downgrade superblock */
1951         if (COMPAT_FEATURE_ON(JBD2_FEATURE_COMPAT_CHECKSUM))
1952                 sb->s_feature_incompat &=
1953                         ~cpu_to_be32(JBD2_FEATURE_INCOMPAT_CSUM_V2 |
1954                                      JBD2_FEATURE_INCOMPAT_CSUM_V3);
1955
1956         sb->s_feature_compat    |= cpu_to_be32(compat);
1957         sb->s_feature_ro_compat |= cpu_to_be32(ro);
1958         sb->s_feature_incompat  |= cpu_to_be32(incompat);
1959         unlock_buffer(journal->j_sb_buffer);
1960         journal->j_revoke_records_per_block =
1961                                 journal_revoke_records_per_block(journal);
1962
1963         return 1;
1964 #undef COMPAT_FEATURE_ON
1965 #undef INCOMPAT_FEATURE_ON
1966 }
1967
1968 /*
1969  * jbd2_journal_clear_features () - Clear a given journal feature in the
1970  *                                  superblock
1971  * @journal: Journal to act on.
1972  * @compat: bitmask of compatible features
1973  * @ro: bitmask of features that force read-only mount
1974  * @incompat: bitmask of incompatible features
1975  *
1976  * Clear a given journal feature as present on the
1977  * superblock.
1978  */
1979 void jbd2_journal_clear_features(journal_t *journal, unsigned long compat,
1980                                 unsigned long ro, unsigned long incompat)
1981 {
1982         journal_superblock_t *sb;
1983
1984         jbd_debug(1, "Clear features 0x%lx/0x%lx/0x%lx\n",
1985                   compat, ro, incompat);
1986
1987         sb = journal->j_superblock;
1988
1989         sb->s_feature_compat    &= ~cpu_to_be32(compat);
1990         sb->s_feature_ro_compat &= ~cpu_to_be32(ro);
1991         sb->s_feature_incompat  &= ~cpu_to_be32(incompat);
1992         journal->j_revoke_records_per_block =
1993                                 journal_revoke_records_per_block(journal);
1994 }
1995 EXPORT_SYMBOL(jbd2_journal_clear_features);
1996
1997 /**
1998  * int jbd2_journal_flush () - Flush journal
1999  * @journal: Journal to act on.
2000  *
2001  * Flush all data for a given journal to disk and empty the journal.
2002  * Filesystems can use this when remounting readonly to ensure that
2003  * recovery does not need to happen on remount.
2004  */
2005
2006 int jbd2_journal_flush(journal_t *journal)
2007 {
2008         int err = 0;
2009         transaction_t *transaction = NULL;
2010
2011         write_lock(&journal->j_state_lock);
2012
2013         /* Force everything buffered to the log... */
2014         if (journal->j_running_transaction) {
2015                 transaction = journal->j_running_transaction;
2016                 __jbd2_log_start_commit(journal, transaction->t_tid);
2017         } else if (journal->j_committing_transaction)
2018                 transaction = journal->j_committing_transaction;
2019
2020         /* Wait for the log commit to complete... */
2021         if (transaction) {
2022                 tid_t tid = transaction->t_tid;
2023
2024                 write_unlock(&journal->j_state_lock);
2025                 jbd2_log_wait_commit(journal, tid);
2026         } else {
2027                 write_unlock(&journal->j_state_lock);
2028         }
2029
2030         /* ...and flush everything in the log out to disk. */
2031         spin_lock(&journal->j_list_lock);
2032         while (!err && journal->j_checkpoint_transactions != NULL) {
2033                 spin_unlock(&journal->j_list_lock);
2034                 mutex_lock_io(&journal->j_checkpoint_mutex);
2035                 err = jbd2_log_do_checkpoint(journal);
2036                 mutex_unlock(&journal->j_checkpoint_mutex);
2037                 spin_lock(&journal->j_list_lock);
2038         }
2039         spin_unlock(&journal->j_list_lock);
2040
2041         if (is_journal_aborted(journal))
2042                 return -EIO;
2043
2044         mutex_lock_io(&journal->j_checkpoint_mutex);
2045         if (!err) {
2046                 err = jbd2_cleanup_journal_tail(journal);
2047                 if (err < 0) {
2048                         mutex_unlock(&journal->j_checkpoint_mutex);
2049                         goto out;
2050                 }
2051                 err = 0;
2052         }
2053
2054         /* Finally, mark the journal as really needing no recovery.
2055          * This sets s_start==0 in the underlying superblock, which is
2056          * the magic code for a fully-recovered superblock.  Any future
2057          * commits of data to the journal will restore the current
2058          * s_start value. */
2059         jbd2_mark_journal_empty(journal, REQ_SYNC | REQ_FUA);
2060         mutex_unlock(&journal->j_checkpoint_mutex);
2061         write_lock(&journal->j_state_lock);
2062         J_ASSERT(!journal->j_running_transaction);
2063         J_ASSERT(!journal->j_committing_transaction);
2064         J_ASSERT(!journal->j_checkpoint_transactions);
2065         J_ASSERT(journal->j_head == journal->j_tail);
2066         J_ASSERT(journal->j_tail_sequence == journal->j_transaction_sequence);
2067         write_unlock(&journal->j_state_lock);
2068 out:
2069         return err;
2070 }
2071
2072 /**
2073  * int jbd2_journal_wipe() - Wipe journal contents
2074  * @journal: Journal to act on.
2075  * @write: flag (see below)
2076  *
2077  * Wipe out all of the contents of a journal, safely.  This will produce
2078  * a warning if the journal contains any valid recovery information.
2079  * Must be called between journal_init_*() and jbd2_journal_load().
2080  *
2081  * If 'write' is non-zero, then we wipe out the journal on disk; otherwise
2082  * we merely suppress recovery.
2083  */
2084
2085 int jbd2_journal_wipe(journal_t *journal, int write)
2086 {
2087         int err = 0;
2088
2089         J_ASSERT (!(journal->j_flags & JBD2_LOADED));
2090
2091         err = load_superblock(journal);
2092         if (err)
2093                 return err;
2094
2095         if (!journal->j_tail)
2096                 goto no_recovery;
2097
2098         printk(KERN_WARNING "JBD2: %s recovery information on journal\n",
2099                 write ? "Clearing" : "Ignoring");
2100
2101         err = jbd2_journal_skip_recovery(journal);
2102         if (write) {
2103                 /* Lock to make assertions happy... */
2104                 mutex_lock_io(&journal->j_checkpoint_mutex);
2105                 jbd2_mark_journal_empty(journal, REQ_SYNC | REQ_FUA);
2106                 mutex_unlock(&journal->j_checkpoint_mutex);
2107         }
2108
2109  no_recovery:
2110         return err;
2111 }
2112
2113 /**
2114  * void jbd2_journal_abort () - Shutdown the journal immediately.
2115  * @journal: the journal to shutdown.
2116  * @errno:   an error number to record in the journal indicating
2117  *           the reason for the shutdown.
2118  *
2119  * Perform a complete, immediate shutdown of the ENTIRE
2120  * journal (not of a single transaction).  This operation cannot be
2121  * undone without closing and reopening the journal.
2122  *
2123  * The jbd2_journal_abort function is intended to support higher level error
2124  * recovery mechanisms such as the ext2/ext3 remount-readonly error
2125  * mode.
2126  *
2127  * Journal abort has very specific semantics.  Any existing dirty,
2128  * unjournaled buffers in the main filesystem will still be written to
2129  * disk by bdflush, but the journaling mechanism will be suspended
2130  * immediately and no further transaction commits will be honoured.
2131  *
2132  * Any dirty, journaled buffers will be written back to disk without
2133  * hitting the journal.  Atomicity cannot be guaranteed on an aborted
2134  * filesystem, but we _do_ attempt to leave as much data as possible
2135  * behind for fsck to use for cleanup.
2136  *
2137  * Any attempt to get a new transaction handle on a journal which is in
2138  * ABORT state will just result in an -EROFS error return.  A
2139  * jbd2_journal_stop on an existing handle will return -EIO if we have
2140  * entered abort state during the update.
2141  *
2142  * Recursive transactions are not disturbed by journal abort until the
2143  * final jbd2_journal_stop, which will receive the -EIO error.
2144  *
2145  * Finally, the jbd2_journal_abort call allows the caller to supply an errno
2146  * which will be recorded (if possible) in the journal superblock.  This
2147  * allows a client to record failure conditions in the middle of a
2148  * transaction without having to complete the transaction to record the
2149  * failure to disk.  ext3_error, for example, now uses this
2150  * functionality.
2151  *
2152  */
2153
2154 void jbd2_journal_abort(journal_t *journal, int errno)
2155 {
2156         transaction_t *transaction;
2157
2158         /*
2159          * Lock the aborting procedure until everything is done, this avoid
2160          * races between filesystem's error handling flow (e.g. ext4_abort()),
2161          * ensure panic after the error info is written into journal's
2162          * superblock.
2163          */
2164         mutex_lock(&journal->j_abort_mutex);
2165         /*
2166          * ESHUTDOWN always takes precedence because a file system check
2167          * caused by any other journal abort error is not required after
2168          * a shutdown triggered.
2169          */
2170         write_lock(&journal->j_state_lock);
2171         if (journal->j_flags & JBD2_ABORT) {
2172                 int old_errno = journal->j_errno;
2173
2174                 write_unlock(&journal->j_state_lock);
2175                 if (old_errno != -ESHUTDOWN && errno == -ESHUTDOWN) {
2176                         journal->j_errno = errno;
2177                         jbd2_journal_update_sb_errno(journal);
2178                 }
2179                 mutex_unlock(&journal->j_abort_mutex);
2180                 return;
2181         }
2182
2183         /*
2184          * Mark the abort as occurred and start current running transaction
2185          * to release all journaled buffer.
2186          */
2187         pr_err("Aborting journal on device %s.\n", journal->j_devname);
2188
2189         journal->j_flags |= JBD2_ABORT;
2190         journal->j_errno = errno;
2191         transaction = journal->j_running_transaction;
2192         if (transaction)
2193                 __jbd2_log_start_commit(journal, transaction->t_tid);
2194         write_unlock(&journal->j_state_lock);
2195
2196         /*
2197          * Record errno to the journal super block, so that fsck and jbd2
2198          * layer could realise that a filesystem check is needed.
2199          */
2200         jbd2_journal_update_sb_errno(journal);
2201         mutex_unlock(&journal->j_abort_mutex);
2202 }
2203
2204 /**
2205  * int jbd2_journal_errno () - returns the journal's error state.
2206  * @journal: journal to examine.
2207  *
2208  * This is the errno number set with jbd2_journal_abort(), the last
2209  * time the journal was mounted - if the journal was stopped
2210  * without calling abort this will be 0.
2211  *
2212  * If the journal has been aborted on this mount time -EROFS will
2213  * be returned.
2214  */
2215 int jbd2_journal_errno(journal_t *journal)
2216 {
2217         int err;
2218
2219         read_lock(&journal->j_state_lock);
2220         if (journal->j_flags & JBD2_ABORT)
2221                 err = -EROFS;
2222         else
2223                 err = journal->j_errno;
2224         read_unlock(&journal->j_state_lock);
2225         return err;
2226 }
2227
2228 /**
2229  * int jbd2_journal_clear_err () - clears the journal's error state
2230  * @journal: journal to act on.
2231  *
2232  * An error must be cleared or acked to take a FS out of readonly
2233  * mode.
2234  */
2235 int jbd2_journal_clear_err(journal_t *journal)
2236 {
2237         int err = 0;
2238
2239         write_lock(&journal->j_state_lock);
2240         if (journal->j_flags & JBD2_ABORT)
2241                 err = -EROFS;
2242         else
2243                 journal->j_errno = 0;
2244         write_unlock(&journal->j_state_lock);
2245         return err;
2246 }
2247
2248 /**
2249  * void jbd2_journal_ack_err() - Ack journal err.
2250  * @journal: journal to act on.
2251  *
2252  * An error must be cleared or acked to take a FS out of readonly
2253  * mode.
2254  */
2255 void jbd2_journal_ack_err(journal_t *journal)
2256 {
2257         write_lock(&journal->j_state_lock);
2258         if (journal->j_errno)
2259                 journal->j_flags |= JBD2_ACK_ERR;
2260         write_unlock(&journal->j_state_lock);
2261 }
2262
2263 int jbd2_journal_blocks_per_page(struct inode *inode)
2264 {
2265         return 1 << (PAGE_SHIFT - inode->i_sb->s_blocksize_bits);
2266 }
2267
2268 /*
2269  * helper functions to deal with 32 or 64bit block numbers.
2270  */
2271 size_t journal_tag_bytes(journal_t *journal)
2272 {
2273         size_t sz;
2274
2275         if (jbd2_has_feature_csum3(journal))
2276                 return sizeof(journal_block_tag3_t);
2277
2278         sz = sizeof(journal_block_tag_t);
2279
2280         if (jbd2_has_feature_csum2(journal))
2281                 sz += sizeof(__u16);
2282
2283         if (jbd2_has_feature_64bit(journal))
2284                 return sz;
2285         else
2286                 return sz - sizeof(__u32);
2287 }
2288
2289 /*
2290  * JBD memory management
2291  *
2292  * These functions are used to allocate block-sized chunks of memory
2293  * used for making copies of buffer_head data.  Very often it will be
2294  * page-sized chunks of data, but sometimes it will be in
2295  * sub-page-size chunks.  (For example, 16k pages on Power systems
2296  * with a 4k block file system.)  For blocks smaller than a page, we
2297  * use a SLAB allocator.  There are slab caches for each block size,
2298  * which are allocated at mount time, if necessary, and we only free
2299  * (all of) the slab caches when/if the jbd2 module is unloaded.  For
2300  * this reason we don't need to a mutex to protect access to
2301  * jbd2_slab[] allocating or releasing memory; only in
2302  * jbd2_journal_create_slab().
2303  */
2304 #define JBD2_MAX_SLABS 8
2305 static struct kmem_cache *jbd2_slab[JBD2_MAX_SLABS];
2306
2307 static const char *jbd2_slab_names[JBD2_MAX_SLABS] = {
2308         "jbd2_1k", "jbd2_2k", "jbd2_4k", "jbd2_8k",
2309         "jbd2_16k", "jbd2_32k", "jbd2_64k", "jbd2_128k"
2310 };
2311
2312
2313 static void jbd2_journal_destroy_slabs(void)
2314 {
2315         int i;
2316
2317         for (i = 0; i < JBD2_MAX_SLABS; i++) {
2318                 kmem_cache_destroy(jbd2_slab[i]);
2319                 jbd2_slab[i] = NULL;
2320         }
2321 }
2322
2323 static int jbd2_journal_create_slab(size_t size)
2324 {
2325         static DEFINE_MUTEX(jbd2_slab_create_mutex);
2326         int i = order_base_2(size) - 10;
2327         size_t slab_size;
2328
2329         if (size == PAGE_SIZE)
2330                 return 0;
2331
2332         if (i >= JBD2_MAX_SLABS)
2333                 return -EINVAL;
2334
2335         if (unlikely(i < 0))
2336                 i = 0;
2337         mutex_lock(&jbd2_slab_create_mutex);
2338         if (jbd2_slab[i]) {
2339                 mutex_unlock(&jbd2_slab_create_mutex);
2340                 return 0;       /* Already created */
2341         }
2342
2343         slab_size = 1 << (i+10);
2344         jbd2_slab[i] = kmem_cache_create(jbd2_slab_names[i], slab_size,
2345                                          slab_size, 0, NULL);
2346         mutex_unlock(&jbd2_slab_create_mutex);
2347         if (!jbd2_slab[i]) {
2348                 printk(KERN_EMERG "JBD2: no memory for jbd2_slab cache\n");
2349                 return -ENOMEM;
2350         }
2351         return 0;
2352 }
2353
2354 static struct kmem_cache *get_slab(size_t size)
2355 {
2356         int i = order_base_2(size) - 10;
2357
2358         BUG_ON(i >= JBD2_MAX_SLABS);
2359         if (unlikely(i < 0))
2360                 i = 0;
2361         BUG_ON(jbd2_slab[i] == NULL);
2362         return jbd2_slab[i];
2363 }
2364
2365 void *jbd2_alloc(size_t size, gfp_t flags)
2366 {
2367         void *ptr;
2368
2369         BUG_ON(size & (size-1)); /* Must be a power of 2 */
2370
2371         if (size < PAGE_SIZE)
2372                 ptr = kmem_cache_alloc(get_slab(size), flags);
2373         else
2374                 ptr = (void *)__get_free_pages(flags, get_order(size));
2375
2376         /* Check alignment; SLUB has gotten this wrong in the past,
2377          * and this can lead to user data corruption! */
2378         BUG_ON(((unsigned long) ptr) & (size-1));
2379
2380         return ptr;
2381 }
2382
2383 void jbd2_free(void *ptr, size_t size)
2384 {
2385         if (size < PAGE_SIZE)
2386                 kmem_cache_free(get_slab(size), ptr);
2387         else
2388                 free_pages((unsigned long)ptr, get_order(size));
2389 };
2390
2391 /*
2392  * Journal_head storage management
2393  */
2394 static struct kmem_cache *jbd2_journal_head_cache;
2395 #ifdef CONFIG_JBD2_DEBUG
2396 static atomic_t nr_journal_heads = ATOMIC_INIT(0);
2397 #endif
2398
2399 static int __init jbd2_journal_init_journal_head_cache(void)
2400 {
2401         J_ASSERT(!jbd2_journal_head_cache);
2402         jbd2_journal_head_cache = kmem_cache_create("jbd2_journal_head",
2403                                 sizeof(struct journal_head),
2404                                 0,              /* offset */
2405                                 SLAB_TEMPORARY | SLAB_TYPESAFE_BY_RCU,
2406                                 NULL);          /* ctor */
2407         if (!jbd2_journal_head_cache) {
2408                 printk(KERN_EMERG "JBD2: no memory for journal_head cache\n");
2409                 return -ENOMEM;
2410         }
2411         return 0;
2412 }
2413
2414 static void jbd2_journal_destroy_journal_head_cache(void)
2415 {
2416         kmem_cache_destroy(jbd2_journal_head_cache);
2417         jbd2_journal_head_cache = NULL;
2418 }
2419
2420 /*
2421  * journal_head splicing and dicing
2422  */
2423 static struct journal_head *journal_alloc_journal_head(void)
2424 {
2425         struct journal_head *ret;
2426
2427 #ifdef CONFIG_JBD2_DEBUG
2428         atomic_inc(&nr_journal_heads);
2429 #endif
2430         ret = kmem_cache_zalloc(jbd2_journal_head_cache, GFP_NOFS);
2431         if (!ret) {
2432                 jbd_debug(1, "out of memory for journal_head\n");
2433                 pr_notice_ratelimited("ENOMEM in %s, retrying.\n", __func__);
2434                 ret = kmem_cache_zalloc(jbd2_journal_head_cache,
2435                                 GFP_NOFS | __GFP_NOFAIL);
2436         }
2437         if (ret)
2438                 spin_lock_init(&ret->b_state_lock);
2439         return ret;
2440 }
2441
2442 static void journal_free_journal_head(struct journal_head *jh)
2443 {
2444 #ifdef CONFIG_JBD2_DEBUG
2445         atomic_dec(&nr_journal_heads);
2446         memset(jh, JBD2_POISON_FREE, sizeof(*jh));
2447 #endif
2448         kmem_cache_free(jbd2_journal_head_cache, jh);
2449 }
2450
2451 /*
2452  * A journal_head is attached to a buffer_head whenever JBD has an
2453  * interest in the buffer.
2454  *
2455  * Whenever a buffer has an attached journal_head, its ->b_state:BH_JBD bit
2456  * is set.  This bit is tested in core kernel code where we need to take
2457  * JBD-specific actions.  Testing the zeroness of ->b_private is not reliable
2458  * there.
2459  *
2460  * When a buffer has its BH_JBD bit set, its ->b_count is elevated by one.
2461  *
2462  * When a buffer has its BH_JBD bit set it is immune from being released by
2463  * core kernel code, mainly via ->b_count.
2464  *
2465  * A journal_head is detached from its buffer_head when the journal_head's
2466  * b_jcount reaches zero. Running transaction (b_transaction) and checkpoint
2467  * transaction (b_cp_transaction) hold their references to b_jcount.
2468  *
2469  * Various places in the kernel want to attach a journal_head to a buffer_head
2470  * _before_ attaching the journal_head to a transaction.  To protect the
2471  * journal_head in this situation, jbd2_journal_add_journal_head elevates the
2472  * journal_head's b_jcount refcount by one.  The caller must call
2473  * jbd2_journal_put_journal_head() to undo this.
2474  *
2475  * So the typical usage would be:
2476  *
2477  *      (Attach a journal_head if needed.  Increments b_jcount)
2478  *      struct journal_head *jh = jbd2_journal_add_journal_head(bh);
2479  *      ...
2480  *      (Get another reference for transaction)
2481  *      jbd2_journal_grab_journal_head(bh);
2482  *      jh->b_transaction = xxx;
2483  *      (Put original reference)
2484  *      jbd2_journal_put_journal_head(jh);
2485  */
2486
2487 /*
2488  * Give a buffer_head a journal_head.
2489  *
2490  * May sleep.
2491  */
2492 struct journal_head *jbd2_journal_add_journal_head(struct buffer_head *bh)
2493 {
2494         struct journal_head *jh;
2495         struct journal_head *new_jh = NULL;
2496
2497 repeat:
2498         if (!buffer_jbd(bh))
2499                 new_jh = journal_alloc_journal_head();
2500
2501         jbd_lock_bh_journal_head(bh);
2502         if (buffer_jbd(bh)) {
2503                 jh = bh2jh(bh);
2504         } else {
2505                 J_ASSERT_BH(bh,
2506                         (atomic_read(&bh->b_count) > 0) ||
2507                         (bh->b_page && bh->b_page->mapping));
2508
2509                 if (!new_jh) {
2510                         jbd_unlock_bh_journal_head(bh);
2511                         goto repeat;
2512                 }
2513
2514                 jh = new_jh;
2515                 new_jh = NULL;          /* We consumed it */
2516                 set_buffer_jbd(bh);
2517                 bh->b_private = jh;
2518                 jh->b_bh = bh;
2519                 get_bh(bh);
2520                 BUFFER_TRACE(bh, "added journal_head");
2521         }
2522         jh->b_jcount++;
2523         jbd_unlock_bh_journal_head(bh);
2524         if (new_jh)
2525                 journal_free_journal_head(new_jh);
2526         return bh->b_private;
2527 }
2528
2529 /*
2530  * Grab a ref against this buffer_head's journal_head.  If it ended up not
2531  * having a journal_head, return NULL
2532  */
2533 struct journal_head *jbd2_journal_grab_journal_head(struct buffer_head *bh)
2534 {
2535         struct journal_head *jh = NULL;
2536
2537         jbd_lock_bh_journal_head(bh);
2538         if (buffer_jbd(bh)) {
2539                 jh = bh2jh(bh);
2540                 jh->b_jcount++;
2541         }
2542         jbd_unlock_bh_journal_head(bh);
2543         return jh;
2544 }
2545
2546 static void __journal_remove_journal_head(struct buffer_head *bh)
2547 {
2548         struct journal_head *jh = bh2jh(bh);
2549
2550         J_ASSERT_JH(jh, jh->b_transaction == NULL);
2551         J_ASSERT_JH(jh, jh->b_next_transaction == NULL);
2552         J_ASSERT_JH(jh, jh->b_cp_transaction == NULL);
2553         J_ASSERT_JH(jh, jh->b_jlist == BJ_None);
2554         J_ASSERT_BH(bh, buffer_jbd(bh));
2555         J_ASSERT_BH(bh, jh2bh(jh) == bh);
2556         BUFFER_TRACE(bh, "remove journal_head");
2557
2558         /* Unlink before dropping the lock */
2559         bh->b_private = NULL;
2560         jh->b_bh = NULL;        /* debug, really */
2561         clear_buffer_jbd(bh);
2562 }
2563
2564 static void journal_release_journal_head(struct journal_head *jh, size_t b_size)
2565 {
2566         if (jh->b_frozen_data) {
2567                 printk(KERN_WARNING "%s: freeing b_frozen_data\n", __func__);
2568                 jbd2_free(jh->b_frozen_data, b_size);
2569         }
2570         if (jh->b_committed_data) {
2571                 printk(KERN_WARNING "%s: freeing b_committed_data\n", __func__);
2572                 jbd2_free(jh->b_committed_data, b_size);
2573         }
2574         journal_free_journal_head(jh);
2575 }
2576
2577 /*
2578  * Drop a reference on the passed journal_head.  If it fell to zero then
2579  * release the journal_head from the buffer_head.
2580  */
2581 void jbd2_journal_put_journal_head(struct journal_head *jh)
2582 {
2583         struct buffer_head *bh = jh2bh(jh);
2584
2585         jbd_lock_bh_journal_head(bh);
2586         J_ASSERT_JH(jh, jh->b_jcount > 0);
2587         --jh->b_jcount;
2588         if (!jh->b_jcount) {
2589                 __journal_remove_journal_head(bh);
2590                 jbd_unlock_bh_journal_head(bh);
2591                 journal_release_journal_head(jh, bh->b_size);
2592                 __brelse(bh);
2593         } else {
2594                 jbd_unlock_bh_journal_head(bh);
2595         }
2596 }
2597
2598 /*
2599  * Initialize jbd inode head
2600  */
2601 void jbd2_journal_init_jbd_inode(struct jbd2_inode *jinode, struct inode *inode)
2602 {
2603         jinode->i_transaction = NULL;
2604         jinode->i_next_transaction = NULL;
2605         jinode->i_vfs_inode = inode;
2606         jinode->i_flags = 0;
2607         jinode->i_dirty_start = 0;
2608         jinode->i_dirty_end = 0;
2609         INIT_LIST_HEAD(&jinode->i_list);
2610 }
2611
2612 /*
2613  * Function to be called before we start removing inode from memory (i.e.,
2614  * clear_inode() is a fine place to be called from). It removes inode from
2615  * transaction's lists.
2616  */
2617 void jbd2_journal_release_jbd_inode(journal_t *journal,
2618                                     struct jbd2_inode *jinode)
2619 {
2620         if (!journal)
2621                 return;
2622 restart:
2623         spin_lock(&journal->j_list_lock);
2624         /* Is commit writing out inode - we have to wait */
2625         if (jinode->i_flags & JI_COMMIT_RUNNING) {
2626                 wait_queue_head_t *wq;
2627                 DEFINE_WAIT_BIT(wait, &jinode->i_flags, __JI_COMMIT_RUNNING);
2628                 wq = bit_waitqueue(&jinode->i_flags, __JI_COMMIT_RUNNING);
2629                 prepare_to_wait(wq, &wait.wq_entry, TASK_UNINTERRUPTIBLE);
2630                 spin_unlock(&journal->j_list_lock);
2631                 schedule();
2632                 finish_wait(wq, &wait.wq_entry);
2633                 goto restart;
2634         }
2635
2636         if (jinode->i_transaction) {
2637                 list_del(&jinode->i_list);
2638                 jinode->i_transaction = NULL;
2639         }
2640         spin_unlock(&journal->j_list_lock);
2641 }
2642
2643
2644 #ifdef CONFIG_PROC_FS
2645
2646 #define JBD2_STATS_PROC_NAME "fs/jbd2"
2647
2648 static void __init jbd2_create_jbd_stats_proc_entry(void)
2649 {
2650         proc_jbd2_stats = proc_mkdir(JBD2_STATS_PROC_NAME, NULL);
2651 }
2652
2653 static void __exit jbd2_remove_jbd_stats_proc_entry(void)
2654 {
2655         if (proc_jbd2_stats)
2656                 remove_proc_entry(JBD2_STATS_PROC_NAME, NULL);
2657 }
2658
2659 #else
2660
2661 #define jbd2_create_jbd_stats_proc_entry() do {} while (0)
2662 #define jbd2_remove_jbd_stats_proc_entry() do {} while (0)
2663
2664 #endif
2665
2666 struct kmem_cache *jbd2_handle_cache, *jbd2_inode_cache;
2667
2668 static int __init jbd2_journal_init_inode_cache(void)
2669 {
2670         J_ASSERT(!jbd2_inode_cache);
2671         jbd2_inode_cache = KMEM_CACHE(jbd2_inode, 0);
2672         if (!jbd2_inode_cache) {
2673                 pr_emerg("JBD2: failed to create inode cache\n");
2674                 return -ENOMEM;
2675         }
2676         return 0;
2677 }
2678
2679 static int __init jbd2_journal_init_handle_cache(void)
2680 {
2681         J_ASSERT(!jbd2_handle_cache);
2682         jbd2_handle_cache = KMEM_CACHE(jbd2_journal_handle, SLAB_TEMPORARY);
2683         if (!jbd2_handle_cache) {
2684                 printk(KERN_EMERG "JBD2: failed to create handle cache\n");
2685                 return -ENOMEM;
2686         }
2687         return 0;
2688 }
2689
2690 static void jbd2_journal_destroy_inode_cache(void)
2691 {
2692         kmem_cache_destroy(jbd2_inode_cache);
2693         jbd2_inode_cache = NULL;
2694 }
2695
2696 static void jbd2_journal_destroy_handle_cache(void)
2697 {
2698         kmem_cache_destroy(jbd2_handle_cache);
2699         jbd2_handle_cache = NULL;
2700 }
2701
2702 /*
2703  * Module startup and shutdown
2704  */
2705
2706 static int __init journal_init_caches(void)
2707 {
2708         int ret;
2709
2710         ret = jbd2_journal_init_revoke_record_cache();
2711         if (ret == 0)
2712                 ret = jbd2_journal_init_revoke_table_cache();
2713         if (ret == 0)
2714                 ret = jbd2_journal_init_journal_head_cache();
2715         if (ret == 0)
2716                 ret = jbd2_journal_init_handle_cache();
2717         if (ret == 0)
2718                 ret = jbd2_journal_init_inode_cache();
2719         if (ret == 0)
2720                 ret = jbd2_journal_init_transaction_cache();
2721         return ret;
2722 }
2723
2724 static void jbd2_journal_destroy_caches(void)
2725 {
2726         jbd2_journal_destroy_revoke_record_cache();
2727         jbd2_journal_destroy_revoke_table_cache();
2728         jbd2_journal_destroy_journal_head_cache();
2729         jbd2_journal_destroy_handle_cache();
2730         jbd2_journal_destroy_inode_cache();
2731         jbd2_journal_destroy_transaction_cache();
2732         jbd2_journal_destroy_slabs();
2733 }
2734
2735 static int __init journal_init(void)
2736 {
2737         int ret;
2738
2739         BUILD_BUG_ON(sizeof(struct journal_superblock_s) != 1024);
2740
2741         ret = journal_init_caches();
2742         if (ret == 0) {
2743                 jbd2_create_jbd_stats_proc_entry();
2744         } else {
2745                 jbd2_journal_destroy_caches();
2746         }
2747         return ret;
2748 }
2749
2750 static void __exit journal_exit(void)
2751 {
2752 #ifdef CONFIG_JBD2_DEBUG
2753         int n = atomic_read(&nr_journal_heads);
2754         if (n)
2755                 printk(KERN_ERR "JBD2: leaked %d journal_heads!\n", n);
2756 #endif
2757         jbd2_remove_jbd_stats_proc_entry();
2758         jbd2_journal_destroy_caches();
2759 }
2760
2761 MODULE_LICENSE("GPL");
2762 module_init(journal_init);
2763 module_exit(journal_exit);
2764