xfs_sync.c 23 KB

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