xfs: Fix integer overflow in fs/xfs/linux-2.6/xfs_ioctl*.c
[deliverable/linux.git] / fs / xfs / linux-2.6 / xfs_sync.c
CommitLineData
fe4fa4b8
DC
1/*
2 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
3 * All Rights Reserved.
4 *
5 * This program is free software; you can redistribute it and/or
6 * modify it under the terms of the GNU General Public License as
7 * published by the Free Software Foundation.
8 *
9 * This program is distributed in the hope that it would be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
12 * GNU General Public License for more details.
13 *
14 * You should have received a copy of the GNU General Public License
15 * along with this program; if not, write the Free Software Foundation,
16 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
17 */
18#include "xfs.h"
19#include "xfs_fs.h"
20#include "xfs_types.h"
21#include "xfs_bit.h"
22#include "xfs_log.h"
23#include "xfs_inum.h"
24#include "xfs_trans.h"
25#include "xfs_sb.h"
26#include "xfs_ag.h"
27#include "xfs_dir2.h"
28#include "xfs_dmapi.h"
29#include "xfs_mount.h"
30#include "xfs_bmap_btree.h"
31#include "xfs_alloc_btree.h"
32#include "xfs_ialloc_btree.h"
33#include "xfs_btree.h"
34#include "xfs_dir2_sf.h"
35#include "xfs_attr_sf.h"
36#include "xfs_inode.h"
37#include "xfs_dinode.h"
38#include "xfs_error.h"
39#include "xfs_mru_cache.h"
40#include "xfs_filestream.h"
41#include "xfs_vnodeops.h"
42#include "xfs_utils.h"
43#include "xfs_buf_item.h"
44#include "xfs_inode_item.h"
45#include "xfs_rw.h"
7d095257 46#include "xfs_quota.h"
0b1b213f 47#include "xfs_trace.h"
fe4fa4b8 48
a167b17e
DC
49#include <linux/kthread.h>
50#include <linux/freezer.h>
51
5a34d5cd 52
75f3cb13
DC
53STATIC xfs_inode_t *
54xfs_inode_ag_lookup(
55 struct xfs_mount *mp,
56 struct xfs_perag *pag,
57 uint32_t *first_index,
58 int tag)
59{
60 int nr_found;
61 struct xfs_inode *ip;
62
63 /*
64 * use a gang lookup to find the next inode in the tree
65 * as the tree is sparse and a gang lookup walks to find
66 * the number of objects requested.
67 */
75f3cb13
DC
68 if (tag == XFS_ICI_NO_TAG) {
69 nr_found = radix_tree_gang_lookup(&pag->pag_ici_root,
70 (void **)&ip, *first_index, 1);
71 } else {
72 nr_found = radix_tree_gang_lookup_tag(&pag->pag_ici_root,
73 (void **)&ip, *first_index, 1, tag);
74 }
75 if (!nr_found)
c8e20be0 76 return NULL;
75f3cb13
DC
77
78 /*
79 * Update the index for the next lookup. Catch overflows
80 * into the next AG range which can occur if we have inodes
81 * in the last block of the AG and we are currently
82 * pointing to the last inode.
83 */
84 *first_index = XFS_INO_TO_AGINO(mp, ip->i_ino + 1);
85 if (*first_index < XFS_INO_TO_AGINO(mp, ip->i_ino))
c8e20be0 86 return NULL;
75f3cb13 87 return ip;
75f3cb13
DC
88}
89
90STATIC int
91xfs_inode_ag_walk(
92 struct xfs_mount *mp,
5017e97d 93 struct xfs_perag *pag,
75f3cb13
DC
94 int (*execute)(struct xfs_inode *ip,
95 struct xfs_perag *pag, int flags),
96 int flags,
c8e20be0 97 int tag,
9bf729c0
DC
98 int exclusive,
99 int *nr_to_scan)
75f3cb13 100{
75f3cb13
DC
101 uint32_t first_index;
102 int last_error = 0;
103 int skipped;
104
105restart:
106 skipped = 0;
107 first_index = 0;
108 do {
109 int error = 0;
110 xfs_inode_t *ip;
111
c8e20be0
DC
112 if (exclusive)
113 write_lock(&pag->pag_ici_lock);
114 else
115 read_lock(&pag->pag_ici_lock);
75f3cb13 116 ip = xfs_inode_ag_lookup(mp, pag, &first_index, tag);
c8e20be0
DC
117 if (!ip) {
118 if (exclusive)
119 write_unlock(&pag->pag_ici_lock);
120 else
121 read_unlock(&pag->pag_ici_lock);
75f3cb13 122 break;
c8e20be0 123 }
75f3cb13 124
c8e20be0 125 /* execute releases pag->pag_ici_lock */
75f3cb13
DC
126 error = execute(ip, pag, flags);
127 if (error == EAGAIN) {
128 skipped++;
129 continue;
130 }
131 if (error)
132 last_error = error;
c8e20be0
DC
133
134 /* bail out if the filesystem is corrupted. */
75f3cb13
DC
135 if (error == EFSCORRUPTED)
136 break;
137
9bf729c0 138 } while ((*nr_to_scan)--);
75f3cb13
DC
139
140 if (skipped) {
141 delay(1);
142 goto restart;
143 }
75f3cb13
DC
144 return last_error;
145}
146
fe588ed3 147int
75f3cb13
DC
148xfs_inode_ag_iterator(
149 struct xfs_mount *mp,
150 int (*execute)(struct xfs_inode *ip,
151 struct xfs_perag *pag, int flags),
152 int flags,
c8e20be0 153 int tag,
9bf729c0
DC
154 int exclusive,
155 int *nr_to_scan)
75f3cb13
DC
156{
157 int error = 0;
158 int last_error = 0;
159 xfs_agnumber_t ag;
9bf729c0 160 int nr;
75f3cb13 161
9bf729c0 162 nr = nr_to_scan ? *nr_to_scan : INT_MAX;
75f3cb13 163 for (ag = 0; ag < mp->m_sb.sb_agcount; ag++) {
5017e97d
DC
164 struct xfs_perag *pag;
165
166 pag = xfs_perag_get(mp, ag);
167 if (!pag->pag_ici_init) {
168 xfs_perag_put(pag);
75f3cb13 169 continue;
5017e97d
DC
170 }
171 error = xfs_inode_ag_walk(mp, pag, execute, flags, tag,
9bf729c0 172 exclusive, &nr);
5017e97d 173 xfs_perag_put(pag);
75f3cb13
DC
174 if (error) {
175 last_error = error;
176 if (error == EFSCORRUPTED)
177 break;
178 }
9bf729c0
DC
179 if (nr <= 0)
180 break;
75f3cb13 181 }
9bf729c0
DC
182 if (nr_to_scan)
183 *nr_to_scan = nr;
75f3cb13
DC
184 return XFS_ERROR(last_error);
185}
186
1da8eeca 187/* must be called with pag_ici_lock held and releases it */
fe588ed3 188int
1da8eeca
DC
189xfs_sync_inode_valid(
190 struct xfs_inode *ip,
191 struct xfs_perag *pag)
192{
193 struct inode *inode = VFS_I(ip);
018027be 194 int error = EFSCORRUPTED;
1da8eeca
DC
195
196 /* nothing to sync during shutdown */
018027be
DC
197 if (XFS_FORCED_SHUTDOWN(ip->i_mount))
198 goto out_unlock;
1da8eeca 199
018027be
DC
200 /* avoid new or reclaimable inodes. Leave for reclaim code to flush */
201 error = ENOENT;
202 if (xfs_iflags_test(ip, XFS_INEW | XFS_IRECLAIMABLE | XFS_IRECLAIM))
203 goto out_unlock;
1da8eeca 204
018027be
DC
205 /* If we can't grab the inode, it must on it's way to reclaim. */
206 if (!igrab(inode))
207 goto out_unlock;
208
209 if (is_bad_inode(inode)) {
1da8eeca 210 IRELE(ip);
018027be 211 goto out_unlock;
1da8eeca
DC
212 }
213
018027be
DC
214 /* inode is valid */
215 error = 0;
216out_unlock:
217 read_unlock(&pag->pag_ici_lock);
218 return error;
1da8eeca
DC
219}
220
5a34d5cd
DC
221STATIC int
222xfs_sync_inode_data(
223 struct xfs_inode *ip,
75f3cb13 224 struct xfs_perag *pag,
5a34d5cd
DC
225 int flags)
226{
227 struct inode *inode = VFS_I(ip);
228 struct address_space *mapping = inode->i_mapping;
229 int error = 0;
230
75f3cb13
DC
231 error = xfs_sync_inode_valid(ip, pag);
232 if (error)
233 return error;
234
5a34d5cd
DC
235 if (!mapping_tagged(mapping, PAGECACHE_TAG_DIRTY))
236 goto out_wait;
237
238 if (!xfs_ilock_nowait(ip, XFS_IOLOCK_SHARED)) {
239 if (flags & SYNC_TRYLOCK)
240 goto out_wait;
241 xfs_ilock(ip, XFS_IOLOCK_SHARED);
242 }
243
244 error = xfs_flush_pages(ip, 0, -1, (flags & SYNC_WAIT) ?
0cadda1c 245 0 : XBF_ASYNC, FI_NONE);
5a34d5cd
DC
246 xfs_iunlock(ip, XFS_IOLOCK_SHARED);
247
248 out_wait:
b0710ccc 249 if (flags & SYNC_WAIT)
5a34d5cd 250 xfs_ioend_wait(ip);
75f3cb13 251 IRELE(ip);
5a34d5cd
DC
252 return error;
253}
254
845b6d0c
CH
255STATIC int
256xfs_sync_inode_attr(
257 struct xfs_inode *ip,
75f3cb13 258 struct xfs_perag *pag,
845b6d0c
CH
259 int flags)
260{
261 int error = 0;
262
75f3cb13
DC
263 error = xfs_sync_inode_valid(ip, pag);
264 if (error)
265 return error;
266
845b6d0c
CH
267 xfs_ilock(ip, XFS_ILOCK_SHARED);
268 if (xfs_inode_clean(ip))
269 goto out_unlock;
270 if (!xfs_iflock_nowait(ip)) {
271 if (!(flags & SYNC_WAIT))
272 goto out_unlock;
273 xfs_iflock(ip);
274 }
275
276 if (xfs_inode_clean(ip)) {
277 xfs_ifunlock(ip);
278 goto out_unlock;
279 }
280
c854363e 281 error = xfs_iflush(ip, flags);
845b6d0c
CH
282
283 out_unlock:
284 xfs_iunlock(ip, XFS_ILOCK_SHARED);
75f3cb13 285 IRELE(ip);
845b6d0c
CH
286 return error;
287}
288
075fe102
CH
289/*
290 * Write out pagecache data for the whole filesystem.
291 */
683a8970 292int
075fe102
CH
293xfs_sync_data(
294 struct xfs_mount *mp,
295 int flags)
683a8970 296{
075fe102 297 int error;
fe4fa4b8 298
b0710ccc 299 ASSERT((flags & ~(SYNC_TRYLOCK|SYNC_WAIT)) == 0);
fe4fa4b8 300
075fe102 301 error = xfs_inode_ag_iterator(mp, xfs_sync_inode_data, flags,
9bf729c0 302 XFS_ICI_NO_TAG, 0, NULL);
075fe102
CH
303 if (error)
304 return XFS_ERROR(error);
e9f1c6ee 305
a14a348b 306 xfs_log_force(mp, (flags & SYNC_WAIT) ? XFS_LOG_SYNC : 0);
075fe102
CH
307 return 0;
308}
e9f1c6ee 309
075fe102
CH
310/*
311 * Write out inode metadata (attributes) for the whole filesystem.
312 */
313int
314xfs_sync_attr(
315 struct xfs_mount *mp,
316 int flags)
317{
318 ASSERT((flags & ~SYNC_WAIT) == 0);
75f3cb13 319
075fe102 320 return xfs_inode_ag_iterator(mp, xfs_sync_inode_attr, flags,
9bf729c0 321 XFS_ICI_NO_TAG, 0, NULL);
fe4fa4b8
DC
322}
323
2af75df7
CH
324STATIC int
325xfs_commit_dummy_trans(
326 struct xfs_mount *mp,
dce5065a 327 uint flags)
2af75df7
CH
328{
329 struct xfs_inode *ip = mp->m_rootip;
330 struct xfs_trans *tp;
331 int error;
332
333 /*
334 * Put a dummy transaction in the log to tell recovery
335 * that all others are OK.
336 */
337 tp = xfs_trans_alloc(mp, XFS_TRANS_DUMMY1);
338 error = xfs_trans_reserve(tp, 0, XFS_ICHANGE_LOG_RES(mp), 0, 0, 0);
339 if (error) {
340 xfs_trans_cancel(tp, 0);
341 return error;
342 }
343
344 xfs_ilock(ip, XFS_ILOCK_EXCL);
345
346 xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL);
347 xfs_trans_ihold(tp, ip);
348 xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE);
2af75df7 349 error = xfs_trans_commit(tp, 0);
2af75df7
CH
350 xfs_iunlock(ip, XFS_ILOCK_EXCL);
351
dce5065a 352 /* the log force ensures this transaction is pushed to disk */
a14a348b 353 xfs_log_force(mp, (flags & SYNC_WAIT) ? XFS_LOG_SYNC : 0);
dce5065a 354 return error;
2af75df7
CH
355}
356
5d77c0dc 357STATIC int
2af75df7
CH
358xfs_sync_fsdata(
359 struct xfs_mount *mp,
360 int flags)
361{
362 struct xfs_buf *bp;
363 struct xfs_buf_log_item *bip;
364 int error = 0;
365
366 /*
367 * If this is xfssyncd() then only sync the superblock if we can
368 * lock it without sleeping and it is not pinned.
369 */
8b5403a6 370 if (flags & SYNC_TRYLOCK) {
2af75df7
CH
371 ASSERT(!(flags & SYNC_WAIT));
372
0cadda1c 373 bp = xfs_getsb(mp, XBF_TRYLOCK);
2af75df7
CH
374 if (!bp)
375 goto out;
376
377 bip = XFS_BUF_FSPRIVATE(bp, struct xfs_buf_log_item *);
378 if (!bip || !xfs_buf_item_dirty(bip) || XFS_BUF_ISPINNED(bp))
379 goto out_brelse;
380 } else {
381 bp = xfs_getsb(mp, 0);
382
383 /*
384 * If the buffer is pinned then push on the log so we won't
385 * get stuck waiting in the write for someone, maybe
386 * ourselves, to flush the log.
387 *
388 * Even though we just pushed the log above, we did not have
389 * the superblock buffer locked at that point so it can
390 * become pinned in between there and here.
391 */
392 if (XFS_BUF_ISPINNED(bp))
a14a348b 393 xfs_log_force(mp, 0);
2af75df7
CH
394 }
395
396
397 if (flags & SYNC_WAIT)
398 XFS_BUF_UNASYNC(bp);
399 else
400 XFS_BUF_ASYNC(bp);
401
dce5065a
DC
402 error = xfs_bwrite(mp, bp);
403 if (error)
404 return error;
405
406 /*
407 * If this is a data integrity sync make sure all pending buffers
408 * are flushed out for the log coverage check below.
409 */
410 if (flags & SYNC_WAIT)
411 xfs_flush_buftarg(mp->m_ddev_targp, 1);
412
413 if (xfs_log_need_covered(mp))
414 error = xfs_commit_dummy_trans(mp, flags);
415 return error;
2af75df7
CH
416
417 out_brelse:
418 xfs_buf_relse(bp);
419 out:
420 return error;
e9f1c6ee
DC
421}
422
423/*
a4e4c4f4
DC
424 * When remounting a filesystem read-only or freezing the filesystem, we have
425 * two phases to execute. This first phase is syncing the data before we
426 * quiesce the filesystem, and the second is flushing all the inodes out after
427 * we've waited for all the transactions created by the first phase to
428 * complete. The second phase ensures that the inodes are written to their
429 * location on disk rather than just existing in transactions in the log. This
430 * means after a quiesce there is no log replay required to write the inodes to
431 * disk (this is the main difference between a sync and a quiesce).
432 */
433/*
434 * First stage of freeze - no writers will make progress now we are here,
e9f1c6ee
DC
435 * so we flush delwri and delalloc buffers here, then wait for all I/O to
436 * complete. Data is frozen at that point. Metadata is not frozen,
a4e4c4f4
DC
437 * transactions can still occur here so don't bother flushing the buftarg
438 * because it'll just get dirty again.
e9f1c6ee
DC
439 */
440int
441xfs_quiesce_data(
442 struct xfs_mount *mp)
443{
444 int error;
445
446 /* push non-blocking */
075fe102 447 xfs_sync_data(mp, 0);
8b5403a6 448 xfs_qm_sync(mp, SYNC_TRYLOCK);
e9f1c6ee 449
c90b07e8 450 /* push and block till complete */
b0710ccc 451 xfs_sync_data(mp, SYNC_WAIT);
7d095257 452 xfs_qm_sync(mp, SYNC_WAIT);
e9f1c6ee 453
a4e4c4f4 454 /* write superblock and hoover up shutdown errors */
c90b07e8 455 error = xfs_sync_fsdata(mp, SYNC_WAIT);
e9f1c6ee 456
a4e4c4f4 457 /* flush data-only devices */
e9f1c6ee
DC
458 if (mp->m_rtdev_targp)
459 XFS_bflush(mp->m_rtdev_targp);
460
461 return error;
2af75df7
CH
462}
463
76bf105c
DC
464STATIC void
465xfs_quiesce_fs(
466 struct xfs_mount *mp)
467{
468 int count = 0, pincount;
469
c854363e 470 xfs_reclaim_inodes(mp, 0);
76bf105c 471 xfs_flush_buftarg(mp->m_ddev_targp, 0);
76bf105c
DC
472
473 /*
474 * This loop must run at least twice. The first instance of the loop
475 * will flush most meta data but that will generate more meta data
476 * (typically directory updates). Which then must be flushed and
c854363e
DC
477 * logged before we can write the unmount record. We also so sync
478 * reclaim of inodes to catch any that the above delwri flush skipped.
76bf105c
DC
479 */
480 do {
c854363e 481 xfs_reclaim_inodes(mp, SYNC_WAIT);
075fe102 482 xfs_sync_attr(mp, SYNC_WAIT);
76bf105c
DC
483 pincount = xfs_flush_buftarg(mp->m_ddev_targp, 1);
484 if (!pincount) {
485 delay(50);
486 count++;
487 }
488 } while (count < 2);
489}
490
491/*
492 * Second stage of a quiesce. The data is already synced, now we have to take
493 * care of the metadata. New transactions are already blocked, so we need to
494 * wait for any remaining transactions to drain out before proceding.
495 */
496void
497xfs_quiesce_attr(
498 struct xfs_mount *mp)
499{
500 int error = 0;
501
502 /* wait for all modifications to complete */
503 while (atomic_read(&mp->m_active_trans) > 0)
504 delay(100);
505
506 /* flush inodes and push all remaining buffers out to disk */
507 xfs_quiesce_fs(mp);
508
5e106572
FB
509 /*
510 * Just warn here till VFS can correctly support
511 * read-only remount without racing.
512 */
513 WARN_ON(atomic_read(&mp->m_active_trans) != 0);
76bf105c
DC
514
515 /* Push the superblock and write an unmount record */
516 error = xfs_log_sbcount(mp, 1);
517 if (error)
518 xfs_fs_cmn_err(CE_WARN, mp,
519 "xfs_attr_quiesce: failed to log sb changes. "
520 "Frozen image may not be consistent.");
521 xfs_log_unmount_write(mp);
522 xfs_unmountfs_writesb(mp);
523}
524
a167b17e
DC
525/*
526 * Enqueue a work item to be picked up by the vfs xfssyncd thread.
527 * Doing this has two advantages:
528 * - It saves on stack space, which is tight in certain situations
529 * - It can be used (with care) as a mechanism to avoid deadlocks.
530 * Flushing while allocating in a full filesystem requires both.
531 */
532STATIC void
533xfs_syncd_queue_work(
534 struct xfs_mount *mp,
535 void *data,
e43afd72
DC
536 void (*syncer)(struct xfs_mount *, void *),
537 struct completion *completion)
a167b17e 538{
a8d770d9 539 struct xfs_sync_work *work;
a167b17e 540
a8d770d9 541 work = kmem_alloc(sizeof(struct xfs_sync_work), KM_SLEEP);
a167b17e
DC
542 INIT_LIST_HEAD(&work->w_list);
543 work->w_syncer = syncer;
544 work->w_data = data;
545 work->w_mount = mp;
e43afd72 546 work->w_completion = completion;
a167b17e
DC
547 spin_lock(&mp->m_sync_lock);
548 list_add_tail(&work->w_list, &mp->m_sync_list);
549 spin_unlock(&mp->m_sync_lock);
550 wake_up_process(mp->m_sync_task);
551}
552
553/*
554 * Flush delayed allocate data, attempting to free up reserved space
555 * from existing allocations. At this point a new allocation attempt
556 * has failed with ENOSPC and we are in the process of scratching our
557 * heads, looking about for more room...
558 */
559STATIC void
a8d770d9 560xfs_flush_inodes_work(
a167b17e
DC
561 struct xfs_mount *mp,
562 void *arg)
563{
564 struct inode *inode = arg;
075fe102 565 xfs_sync_data(mp, SYNC_TRYLOCK);
b0710ccc 566 xfs_sync_data(mp, SYNC_TRYLOCK | SYNC_WAIT);
a167b17e
DC
567 iput(inode);
568}
569
570void
a8d770d9 571xfs_flush_inodes(
a167b17e
DC
572 xfs_inode_t *ip)
573{
574 struct inode *inode = VFS_I(ip);
e43afd72 575 DECLARE_COMPLETION_ONSTACK(completion);
a167b17e
DC
576
577 igrab(inode);
e43afd72
DC
578 xfs_syncd_queue_work(ip->i_mount, inode, xfs_flush_inodes_work, &completion);
579 wait_for_completion(&completion);
a14a348b 580 xfs_log_force(ip->i_mount, XFS_LOG_SYNC);
a167b17e
DC
581}
582
aacaa880
DC
583/*
584 * Every sync period we need to unpin all items, reclaim inodes, sync
585 * quota and write out the superblock. We might need to cover the log
586 * to indicate it is idle.
587 */
a167b17e
DC
588STATIC void
589xfs_sync_worker(
590 struct xfs_mount *mp,
591 void *unused)
592{
593 int error;
594
aacaa880 595 if (!(mp->m_flags & XFS_MOUNT_RDONLY)) {
a14a348b 596 xfs_log_force(mp, 0);
c854363e 597 xfs_reclaim_inodes(mp, 0);
aacaa880 598 /* dgc: errors ignored here */
8b5403a6
CH
599 error = xfs_qm_sync(mp, SYNC_TRYLOCK);
600 error = xfs_sync_fsdata(mp, SYNC_TRYLOCK);
aacaa880 601 }
a167b17e
DC
602 mp->m_sync_seq++;
603 wake_up(&mp->m_wait_single_sync_task);
604}
605
606STATIC int
607xfssyncd(
608 void *arg)
609{
610 struct xfs_mount *mp = arg;
611 long timeleft;
a8d770d9 612 xfs_sync_work_t *work, *n;
a167b17e
DC
613 LIST_HEAD (tmp);
614
615 set_freezable();
616 timeleft = xfs_syncd_centisecs * msecs_to_jiffies(10);
617 for (;;) {
20f6b2c7
DC
618 if (list_empty(&mp->m_sync_list))
619 timeleft = schedule_timeout_interruptible(timeleft);
a167b17e
DC
620 /* swsusp */
621 try_to_freeze();
622 if (kthread_should_stop() && list_empty(&mp->m_sync_list))
623 break;
624
625 spin_lock(&mp->m_sync_lock);
626 /*
627 * We can get woken by laptop mode, to do a sync -
628 * that's the (only!) case where the list would be
629 * empty with time remaining.
630 */
631 if (!timeleft || list_empty(&mp->m_sync_list)) {
632 if (!timeleft)
633 timeleft = xfs_syncd_centisecs *
634 msecs_to_jiffies(10);
635 INIT_LIST_HEAD(&mp->m_sync_work.w_list);
636 list_add_tail(&mp->m_sync_work.w_list,
637 &mp->m_sync_list);
638 }
20f6b2c7 639 list_splice_init(&mp->m_sync_list, &tmp);
a167b17e
DC
640 spin_unlock(&mp->m_sync_lock);
641
642 list_for_each_entry_safe(work, n, &tmp, w_list) {
643 (*work->w_syncer)(mp, work->w_data);
644 list_del(&work->w_list);
645 if (work == &mp->m_sync_work)
646 continue;
e43afd72
DC
647 if (work->w_completion)
648 complete(work->w_completion);
a167b17e
DC
649 kmem_free(work);
650 }
651 }
652
653 return 0;
654}
655
656int
657xfs_syncd_init(
658 struct xfs_mount *mp)
659{
660 mp->m_sync_work.w_syncer = xfs_sync_worker;
661 mp->m_sync_work.w_mount = mp;
e43afd72 662 mp->m_sync_work.w_completion = NULL;
a167b17e
DC
663 mp->m_sync_task = kthread_run(xfssyncd, mp, "xfssyncd");
664 if (IS_ERR(mp->m_sync_task))
665 return -PTR_ERR(mp->m_sync_task);
666 return 0;
667}
668
669void
670xfs_syncd_stop(
671 struct xfs_mount *mp)
672{
673 kthread_stop(mp->m_sync_task);
674}
675
bc990f5c
CH
676void
677__xfs_inode_set_reclaim_tag(
678 struct xfs_perag *pag,
679 struct xfs_inode *ip)
680{
681 radix_tree_tag_set(&pag->pag_ici_root,
682 XFS_INO_TO_AGINO(ip->i_mount, ip->i_ino),
683 XFS_ICI_RECLAIM_TAG);
9bf729c0 684 pag->pag_ici_reclaimable++;
bc990f5c
CH
685}
686
11654513
DC
687/*
688 * We set the inode flag atomically with the radix tree tag.
689 * Once we get tag lookups on the radix tree, this inode flag
690 * can go away.
691 */
396beb85
DC
692void
693xfs_inode_set_reclaim_tag(
694 xfs_inode_t *ip)
695{
5017e97d
DC
696 struct xfs_mount *mp = ip->i_mount;
697 struct xfs_perag *pag;
396beb85 698
5017e97d 699 pag = xfs_perag_get(mp, XFS_INO_TO_AGNO(mp, ip->i_ino));
f1f724e4 700 write_lock(&pag->pag_ici_lock);
396beb85 701 spin_lock(&ip->i_flags_lock);
bc990f5c 702 __xfs_inode_set_reclaim_tag(pag, ip);
11654513 703 __xfs_iflags_set(ip, XFS_IRECLAIMABLE);
396beb85 704 spin_unlock(&ip->i_flags_lock);
f1f724e4 705 write_unlock(&pag->pag_ici_lock);
5017e97d 706 xfs_perag_put(pag);
396beb85
DC
707}
708
709void
710__xfs_inode_clear_reclaim_tag(
711 xfs_mount_t *mp,
712 xfs_perag_t *pag,
713 xfs_inode_t *ip)
714{
715 radix_tree_tag_clear(&pag->pag_ici_root,
716 XFS_INO_TO_AGINO(mp, ip->i_ino), XFS_ICI_RECLAIM_TAG);
9bf729c0 717 pag->pag_ici_reclaimable--;
396beb85
DC
718}
719
777df5af
DC
720/*
721 * Inodes in different states need to be treated differently, and the return
722 * value of xfs_iflush is not sufficient to get this right. The following table
723 * lists the inode states and the reclaim actions necessary for non-blocking
724 * reclaim:
725 *
726 *
727 * inode state iflush ret required action
728 * --------------- ---------- ---------------
729 * bad - reclaim
730 * shutdown EIO unpin and reclaim
731 * clean, unpinned 0 reclaim
732 * stale, unpinned 0 reclaim
c854363e
DC
733 * clean, pinned(*) 0 requeue
734 * stale, pinned EAGAIN requeue
735 * dirty, delwri ok 0 requeue
736 * dirty, delwri blocked EAGAIN requeue
737 * dirty, sync flush 0 reclaim
777df5af
DC
738 *
739 * (*) dgc: I don't think the clean, pinned state is possible but it gets
740 * handled anyway given the order of checks implemented.
741 *
c854363e
DC
742 * As can be seen from the table, the return value of xfs_iflush() is not
743 * sufficient to correctly decide the reclaim action here. The checks in
744 * xfs_iflush() might look like duplicates, but they are not.
745 *
746 * Also, because we get the flush lock first, we know that any inode that has
747 * been flushed delwri has had the flush completed by the time we check that
748 * the inode is clean. The clean inode check needs to be done before flushing
749 * the inode delwri otherwise we would loop forever requeuing clean inodes as
750 * we cannot tell apart a successful delwri flush and a clean inode from the
751 * return value of xfs_iflush().
752 *
753 * Note that because the inode is flushed delayed write by background
754 * writeback, the flush lock may already be held here and waiting on it can
755 * result in very long latencies. Hence for sync reclaims, where we wait on the
756 * flush lock, the caller should push out delayed write inodes first before
757 * trying to reclaim them to minimise the amount of time spent waiting. For
758 * background relaim, we just requeue the inode for the next pass.
759 *
777df5af
DC
760 * Hence the order of actions after gaining the locks should be:
761 * bad => reclaim
762 * shutdown => unpin and reclaim
c854363e
DC
763 * pinned, delwri => requeue
764 * pinned, sync => unpin
777df5af
DC
765 * stale => reclaim
766 * clean => reclaim
c854363e
DC
767 * dirty, delwri => flush and requeue
768 * dirty, sync => flush, wait and reclaim
777df5af 769 */
75f3cb13 770STATIC int
c8e20be0 771xfs_reclaim_inode(
75f3cb13
DC
772 struct xfs_inode *ip,
773 struct xfs_perag *pag,
c8e20be0 774 int sync_mode)
fce08f2f 775{
c854363e 776 int error = 0;
777df5af 777
c8e20be0
DC
778 /*
779 * The radix tree lock here protects a thread in xfs_iget from racing
780 * with us starting reclaim on the inode. Once we have the
781 * XFS_IRECLAIM flag set it will not touch us.
782 */
783 spin_lock(&ip->i_flags_lock);
784 ASSERT_ALWAYS(__xfs_iflags_test(ip, XFS_IRECLAIMABLE));
785 if (__xfs_iflags_test(ip, XFS_IRECLAIM)) {
786 /* ignore as it is already under reclaim */
787 spin_unlock(&ip->i_flags_lock);
788 write_unlock(&pag->pag_ici_lock);
75f3cb13 789 return 0;
fce08f2f 790 }
c8e20be0
DC
791 __xfs_iflags_set(ip, XFS_IRECLAIM);
792 spin_unlock(&ip->i_flags_lock);
793 write_unlock(&pag->pag_ici_lock);
794
c8e20be0 795 xfs_ilock(ip, XFS_ILOCK_EXCL);
c854363e
DC
796 if (!xfs_iflock_nowait(ip)) {
797 if (!(sync_mode & SYNC_WAIT))
798 goto out;
799 xfs_iflock(ip);
800 }
7a3be02b 801
777df5af
DC
802 if (is_bad_inode(VFS_I(ip)))
803 goto reclaim;
804 if (XFS_FORCED_SHUTDOWN(ip->i_mount)) {
805 xfs_iunpin_wait(ip);
806 goto reclaim;
807 }
c854363e
DC
808 if (xfs_ipincount(ip)) {
809 if (!(sync_mode & SYNC_WAIT)) {
810 xfs_ifunlock(ip);
811 goto out;
812 }
777df5af 813 xfs_iunpin_wait(ip);
c854363e 814 }
777df5af
DC
815 if (xfs_iflags_test(ip, XFS_ISTALE))
816 goto reclaim;
817 if (xfs_inode_clean(ip))
818 goto reclaim;
819
820 /* Now we have an inode that needs flushing */
821 error = xfs_iflush(ip, sync_mode);
c854363e
DC
822 if (sync_mode & SYNC_WAIT) {
823 xfs_iflock(ip);
824 goto reclaim;
c8e20be0
DC
825 }
826
c854363e
DC
827 /*
828 * When we have to flush an inode but don't have SYNC_WAIT set, we
829 * flush the inode out using a delwri buffer and wait for the next
830 * call into reclaim to find it in a clean state instead of waiting for
831 * it now. We also don't return errors here - if the error is transient
832 * then the next reclaim pass will flush the inode, and if the error
f1d486a3 833 * is permanent then the next sync reclaim will reclaim the inode and
c854363e
DC
834 * pass on the error.
835 */
f1d486a3 836 if (error && error != EAGAIN && !XFS_FORCED_SHUTDOWN(ip->i_mount)) {
c854363e
DC
837 xfs_fs_cmn_err(CE_WARN, ip->i_mount,
838 "inode 0x%llx background reclaim flush failed with %d",
839 (long long)ip->i_ino, error);
840 }
841out:
842 xfs_iflags_clear(ip, XFS_IRECLAIM);
843 xfs_iunlock(ip, XFS_ILOCK_EXCL);
844 /*
845 * We could return EAGAIN here to make reclaim rescan the inode tree in
846 * a short while. However, this just burns CPU time scanning the tree
847 * waiting for IO to complete and xfssyncd never goes back to the idle
848 * state. Instead, return 0 to let the next scheduled background reclaim
849 * attempt to reclaim the inode again.
850 */
851 return 0;
852
777df5af
DC
853reclaim:
854 xfs_ifunlock(ip);
c8e20be0
DC
855 xfs_iunlock(ip, XFS_ILOCK_EXCL);
856 xfs_ireclaim(ip);
c854363e
DC
857 return error;
858
7a3be02b
DC
859}
860
861int
862xfs_reclaim_inodes(
863 xfs_mount_t *mp,
7a3be02b
DC
864 int mode)
865{
c8e20be0 866 return xfs_inode_ag_iterator(mp, xfs_reclaim_inode, mode,
9bf729c0
DC
867 XFS_ICI_RECLAIM_TAG, 1, NULL);
868}
869
870/*
871 * Shrinker infrastructure.
872 *
873 * This is all far more complex than it needs to be. It adds a global list of
874 * mounts because the shrinkers can only call a global context. We need to make
875 * the shrinkers pass a context to avoid the need for global state.
876 */
877static LIST_HEAD(xfs_mount_list);
878static struct rw_semaphore xfs_mount_list_lock;
879
880static int
881xfs_reclaim_inode_shrink(
882 int nr_to_scan,
883 gfp_t gfp_mask)
884{
885 struct xfs_mount *mp;
886 struct xfs_perag *pag;
887 xfs_agnumber_t ag;
888 int reclaimable = 0;
889
890 if (nr_to_scan) {
891 if (!(gfp_mask & __GFP_FS))
892 return -1;
893
894 down_read(&xfs_mount_list_lock);
895 list_for_each_entry(mp, &xfs_mount_list, m_mplist) {
896 xfs_inode_ag_iterator(mp, xfs_reclaim_inode, 0,
897 XFS_ICI_RECLAIM_TAG, 1, &nr_to_scan);
898 if (nr_to_scan <= 0)
899 break;
900 }
901 up_read(&xfs_mount_list_lock);
902 }
903
904 down_read(&xfs_mount_list_lock);
905 list_for_each_entry(mp, &xfs_mount_list, m_mplist) {
906 for (ag = 0; ag < mp->m_sb.sb_agcount; ag++) {
907
908 pag = xfs_perag_get(mp, ag);
909 if (!pag->pag_ici_init) {
910 xfs_perag_put(pag);
911 continue;
912 }
913 reclaimable += pag->pag_ici_reclaimable;
914 xfs_perag_put(pag);
915 }
916 }
917 up_read(&xfs_mount_list_lock);
918 return reclaimable;
919}
920
921static struct shrinker xfs_inode_shrinker = {
922 .shrink = xfs_reclaim_inode_shrink,
923 .seeks = DEFAULT_SEEKS,
924};
925
926void __init
927xfs_inode_shrinker_init(void)
928{
929 init_rwsem(&xfs_mount_list_lock);
930 register_shrinker(&xfs_inode_shrinker);
931}
932
933void
934xfs_inode_shrinker_destroy(void)
935{
936 ASSERT(list_empty(&xfs_mount_list));
937 unregister_shrinker(&xfs_inode_shrinker);
938}
939
940void
941xfs_inode_shrinker_register(
942 struct xfs_mount *mp)
943{
944 down_write(&xfs_mount_list_lock);
945 list_add_tail(&mp->m_mplist, &xfs_mount_list);
946 up_write(&xfs_mount_list_lock);
947}
948
949void
950xfs_inode_shrinker_unregister(
951 struct xfs_mount *mp)
952{
953 down_write(&xfs_mount_list_lock);
954 list_del(&mp->m_mplist);
955 up_write(&xfs_mount_list_lock);
fce08f2f 956}
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