xfs_log_recover.c 163 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Copyright (c) 2000-2006 Silicon Graphics, Inc.
  4. * All Rights Reserved.
  5. */
  6. #include "xfs.h"
  7. #include "xfs_fs.h"
  8. #include "xfs_shared.h"
  9. #include "xfs_format.h"
  10. #include "xfs_log_format.h"
  11. #include "xfs_trans_resv.h"
  12. #include "xfs_bit.h"
  13. #include "xfs_sb.h"
  14. #include "xfs_mount.h"
  15. #include "xfs_defer.h"
  16. #include "xfs_da_format.h"
  17. #include "xfs_da_btree.h"
  18. #include "xfs_inode.h"
  19. #include "xfs_trans.h"
  20. #include "xfs_log.h"
  21. #include "xfs_log_priv.h"
  22. #include "xfs_log_recover.h"
  23. #include "xfs_inode_item.h"
  24. #include "xfs_extfree_item.h"
  25. #include "xfs_trans_priv.h"
  26. #include "xfs_alloc.h"
  27. #include "xfs_ialloc.h"
  28. #include "xfs_quota.h"
  29. #include "xfs_cksum.h"
  30. #include "xfs_trace.h"
  31. #include "xfs_icache.h"
  32. #include "xfs_bmap_btree.h"
  33. #include "xfs_error.h"
  34. #include "xfs_dir2.h"
  35. #include "xfs_rmap_item.h"
  36. #include "xfs_buf_item.h"
  37. #include "xfs_refcount_item.h"
  38. #include "xfs_bmap_item.h"
  39. #define BLK_AVG(blk1, blk2) ((blk1+blk2) >> 1)
  40. STATIC int
  41. xlog_find_zeroed(
  42. struct xlog *,
  43. xfs_daddr_t *);
  44. STATIC int
  45. xlog_clear_stale_blocks(
  46. struct xlog *,
  47. xfs_lsn_t);
  48. #if defined(DEBUG)
  49. STATIC void
  50. xlog_recover_check_summary(
  51. struct xlog *);
  52. #else
  53. #define xlog_recover_check_summary(log)
  54. #endif
  55. STATIC int
  56. xlog_do_recovery_pass(
  57. struct xlog *, xfs_daddr_t, xfs_daddr_t, int, xfs_daddr_t *);
  58. /*
  59. * This structure is used during recovery to record the buf log items which
  60. * have been canceled and should not be replayed.
  61. */
  62. struct xfs_buf_cancel {
  63. xfs_daddr_t bc_blkno;
  64. uint bc_len;
  65. int bc_refcount;
  66. struct list_head bc_list;
  67. };
  68. /*
  69. * Sector aligned buffer routines for buffer create/read/write/access
  70. */
  71. /*
  72. * Verify the log-relative block number and length in basic blocks are valid for
  73. * an operation involving the given XFS log buffer. Returns true if the fields
  74. * are valid, false otherwise.
  75. */
  76. static inline bool
  77. xlog_verify_bp(
  78. struct xlog *log,
  79. xfs_daddr_t blk_no,
  80. int bbcount)
  81. {
  82. if (blk_no < 0 || blk_no >= log->l_logBBsize)
  83. return false;
  84. if (bbcount <= 0 || (blk_no + bbcount) > log->l_logBBsize)
  85. return false;
  86. return true;
  87. }
  88. /*
  89. * Allocate a buffer to hold log data. The buffer needs to be able
  90. * to map to a range of nbblks basic blocks at any valid (basic
  91. * block) offset within the log.
  92. */
  93. STATIC xfs_buf_t *
  94. xlog_get_bp(
  95. struct xlog *log,
  96. int nbblks)
  97. {
  98. struct xfs_buf *bp;
  99. /*
  100. * Pass log block 0 since we don't have an addr yet, buffer will be
  101. * verified on read.
  102. */
  103. if (!xlog_verify_bp(log, 0, nbblks)) {
  104. xfs_warn(log->l_mp, "Invalid block length (0x%x) for buffer",
  105. nbblks);
  106. XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
  107. return NULL;
  108. }
  109. /*
  110. * We do log I/O in units of log sectors (a power-of-2
  111. * multiple of the basic block size), so we round up the
  112. * requested size to accommodate the basic blocks required
  113. * for complete log sectors.
  114. *
  115. * In addition, the buffer may be used for a non-sector-
  116. * aligned block offset, in which case an I/O of the
  117. * requested size could extend beyond the end of the
  118. * buffer. If the requested size is only 1 basic block it
  119. * will never straddle a sector boundary, so this won't be
  120. * an issue. Nor will this be a problem if the log I/O is
  121. * done in basic blocks (sector size 1). But otherwise we
  122. * extend the buffer by one extra log sector to ensure
  123. * there's space to accommodate this possibility.
  124. */
  125. if (nbblks > 1 && log->l_sectBBsize > 1)
  126. nbblks += log->l_sectBBsize;
  127. nbblks = round_up(nbblks, log->l_sectBBsize);
  128. bp = xfs_buf_get_uncached(log->l_mp->m_logdev_targp, nbblks, 0);
  129. if (bp)
  130. xfs_buf_unlock(bp);
  131. return bp;
  132. }
  133. STATIC void
  134. xlog_put_bp(
  135. xfs_buf_t *bp)
  136. {
  137. xfs_buf_free(bp);
  138. }
  139. /*
  140. * Return the address of the start of the given block number's data
  141. * in a log buffer. The buffer covers a log sector-aligned region.
  142. */
  143. STATIC char *
  144. xlog_align(
  145. struct xlog *log,
  146. xfs_daddr_t blk_no,
  147. int nbblks,
  148. struct xfs_buf *bp)
  149. {
  150. xfs_daddr_t offset = blk_no & ((xfs_daddr_t)log->l_sectBBsize - 1);
  151. ASSERT(offset + nbblks <= bp->b_length);
  152. return bp->b_addr + BBTOB(offset);
  153. }
  154. /*
  155. * nbblks should be uint, but oh well. Just want to catch that 32-bit length.
  156. */
  157. STATIC int
  158. xlog_bread_noalign(
  159. struct xlog *log,
  160. xfs_daddr_t blk_no,
  161. int nbblks,
  162. struct xfs_buf *bp)
  163. {
  164. int error;
  165. if (!xlog_verify_bp(log, blk_no, nbblks)) {
  166. xfs_warn(log->l_mp,
  167. "Invalid log block/length (0x%llx, 0x%x) for buffer",
  168. blk_no, nbblks);
  169. XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
  170. return -EFSCORRUPTED;
  171. }
  172. blk_no = round_down(blk_no, log->l_sectBBsize);
  173. nbblks = round_up(nbblks, log->l_sectBBsize);
  174. ASSERT(nbblks > 0);
  175. ASSERT(nbblks <= bp->b_length);
  176. XFS_BUF_SET_ADDR(bp, log->l_logBBstart + blk_no);
  177. bp->b_flags |= XBF_READ;
  178. bp->b_io_length = nbblks;
  179. bp->b_error = 0;
  180. error = xfs_buf_submit(bp);
  181. if (error && !XFS_FORCED_SHUTDOWN(log->l_mp))
  182. xfs_buf_ioerror_alert(bp, __func__);
  183. return error;
  184. }
  185. STATIC int
  186. xlog_bread(
  187. struct xlog *log,
  188. xfs_daddr_t blk_no,
  189. int nbblks,
  190. struct xfs_buf *bp,
  191. char **offset)
  192. {
  193. int error;
  194. error = xlog_bread_noalign(log, blk_no, nbblks, bp);
  195. if (error)
  196. return error;
  197. *offset = xlog_align(log, blk_no, nbblks, bp);
  198. return 0;
  199. }
  200. /*
  201. * Read at an offset into the buffer. Returns with the buffer in it's original
  202. * state regardless of the result of the read.
  203. */
  204. STATIC int
  205. xlog_bread_offset(
  206. struct xlog *log,
  207. xfs_daddr_t blk_no, /* block to read from */
  208. int nbblks, /* blocks to read */
  209. struct xfs_buf *bp,
  210. char *offset)
  211. {
  212. char *orig_offset = bp->b_addr;
  213. int orig_len = BBTOB(bp->b_length);
  214. int error, error2;
  215. error = xfs_buf_associate_memory(bp, offset, BBTOB(nbblks));
  216. if (error)
  217. return error;
  218. error = xlog_bread_noalign(log, blk_no, nbblks, bp);
  219. /* must reset buffer pointer even on error */
  220. error2 = xfs_buf_associate_memory(bp, orig_offset, orig_len);
  221. if (error)
  222. return error;
  223. return error2;
  224. }
  225. /*
  226. * Write out the buffer at the given block for the given number of blocks.
  227. * The buffer is kept locked across the write and is returned locked.
  228. * This can only be used for synchronous log writes.
  229. */
  230. STATIC int
  231. xlog_bwrite(
  232. struct xlog *log,
  233. xfs_daddr_t blk_no,
  234. int nbblks,
  235. struct xfs_buf *bp)
  236. {
  237. int error;
  238. if (!xlog_verify_bp(log, blk_no, nbblks)) {
  239. xfs_warn(log->l_mp,
  240. "Invalid log block/length (0x%llx, 0x%x) for buffer",
  241. blk_no, nbblks);
  242. XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
  243. return -EFSCORRUPTED;
  244. }
  245. blk_no = round_down(blk_no, log->l_sectBBsize);
  246. nbblks = round_up(nbblks, log->l_sectBBsize);
  247. ASSERT(nbblks > 0);
  248. ASSERT(nbblks <= bp->b_length);
  249. XFS_BUF_SET_ADDR(bp, log->l_logBBstart + blk_no);
  250. xfs_buf_hold(bp);
  251. xfs_buf_lock(bp);
  252. bp->b_io_length = nbblks;
  253. bp->b_error = 0;
  254. error = xfs_bwrite(bp);
  255. if (error)
  256. xfs_buf_ioerror_alert(bp, __func__);
  257. xfs_buf_relse(bp);
  258. return error;
  259. }
  260. #ifdef DEBUG
  261. /*
  262. * dump debug superblock and log record information
  263. */
  264. STATIC void
  265. xlog_header_check_dump(
  266. xfs_mount_t *mp,
  267. xlog_rec_header_t *head)
  268. {
  269. xfs_debug(mp, "%s: SB : uuid = %pU, fmt = %d",
  270. __func__, &mp->m_sb.sb_uuid, XLOG_FMT);
  271. xfs_debug(mp, " log : uuid = %pU, fmt = %d",
  272. &head->h_fs_uuid, be32_to_cpu(head->h_fmt));
  273. }
  274. #else
  275. #define xlog_header_check_dump(mp, head)
  276. #endif
  277. /*
  278. * check log record header for recovery
  279. */
  280. STATIC int
  281. xlog_header_check_recover(
  282. xfs_mount_t *mp,
  283. xlog_rec_header_t *head)
  284. {
  285. ASSERT(head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM));
  286. /*
  287. * IRIX doesn't write the h_fmt field and leaves it zeroed
  288. * (XLOG_FMT_UNKNOWN). This stops us from trying to recover
  289. * a dirty log created in IRIX.
  290. */
  291. if (unlikely(head->h_fmt != cpu_to_be32(XLOG_FMT))) {
  292. xfs_warn(mp,
  293. "dirty log written in incompatible format - can't recover");
  294. xlog_header_check_dump(mp, head);
  295. XFS_ERROR_REPORT("xlog_header_check_recover(1)",
  296. XFS_ERRLEVEL_HIGH, mp);
  297. return -EFSCORRUPTED;
  298. } else if (unlikely(!uuid_equal(&mp->m_sb.sb_uuid, &head->h_fs_uuid))) {
  299. xfs_warn(mp,
  300. "dirty log entry has mismatched uuid - can't recover");
  301. xlog_header_check_dump(mp, head);
  302. XFS_ERROR_REPORT("xlog_header_check_recover(2)",
  303. XFS_ERRLEVEL_HIGH, mp);
  304. return -EFSCORRUPTED;
  305. }
  306. return 0;
  307. }
  308. /*
  309. * read the head block of the log and check the header
  310. */
  311. STATIC int
  312. xlog_header_check_mount(
  313. xfs_mount_t *mp,
  314. xlog_rec_header_t *head)
  315. {
  316. ASSERT(head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM));
  317. if (uuid_is_null(&head->h_fs_uuid)) {
  318. /*
  319. * IRIX doesn't write the h_fs_uuid or h_fmt fields. If
  320. * h_fs_uuid is null, we assume this log was last mounted
  321. * by IRIX and continue.
  322. */
  323. xfs_warn(mp, "null uuid in log - IRIX style log");
  324. } else if (unlikely(!uuid_equal(&mp->m_sb.sb_uuid, &head->h_fs_uuid))) {
  325. xfs_warn(mp, "log has mismatched uuid - can't recover");
  326. xlog_header_check_dump(mp, head);
  327. XFS_ERROR_REPORT("xlog_header_check_mount",
  328. XFS_ERRLEVEL_HIGH, mp);
  329. return -EFSCORRUPTED;
  330. }
  331. return 0;
  332. }
  333. STATIC void
  334. xlog_recover_iodone(
  335. struct xfs_buf *bp)
  336. {
  337. if (bp->b_error) {
  338. /*
  339. * We're not going to bother about retrying
  340. * this during recovery. One strike!
  341. */
  342. if (!XFS_FORCED_SHUTDOWN(bp->b_target->bt_mount)) {
  343. xfs_buf_ioerror_alert(bp, __func__);
  344. xfs_force_shutdown(bp->b_target->bt_mount,
  345. SHUTDOWN_META_IO_ERROR);
  346. }
  347. }
  348. /*
  349. * On v5 supers, a bli could be attached to update the metadata LSN.
  350. * Clean it up.
  351. */
  352. if (bp->b_log_item)
  353. xfs_buf_item_relse(bp);
  354. ASSERT(bp->b_log_item == NULL);
  355. bp->b_iodone = NULL;
  356. xfs_buf_ioend(bp);
  357. }
  358. /*
  359. * This routine finds (to an approximation) the first block in the physical
  360. * log which contains the given cycle. It uses a binary search algorithm.
  361. * Note that the algorithm can not be perfect because the disk will not
  362. * necessarily be perfect.
  363. */
  364. STATIC int
  365. xlog_find_cycle_start(
  366. struct xlog *log,
  367. struct xfs_buf *bp,
  368. xfs_daddr_t first_blk,
  369. xfs_daddr_t *last_blk,
  370. uint cycle)
  371. {
  372. char *offset;
  373. xfs_daddr_t mid_blk;
  374. xfs_daddr_t end_blk;
  375. uint mid_cycle;
  376. int error;
  377. end_blk = *last_blk;
  378. mid_blk = BLK_AVG(first_blk, end_blk);
  379. while (mid_blk != first_blk && mid_blk != end_blk) {
  380. error = xlog_bread(log, mid_blk, 1, bp, &offset);
  381. if (error)
  382. return error;
  383. mid_cycle = xlog_get_cycle(offset);
  384. if (mid_cycle == cycle)
  385. end_blk = mid_blk; /* last_half_cycle == mid_cycle */
  386. else
  387. first_blk = mid_blk; /* first_half_cycle == mid_cycle */
  388. mid_blk = BLK_AVG(first_blk, end_blk);
  389. }
  390. ASSERT((mid_blk == first_blk && mid_blk+1 == end_blk) ||
  391. (mid_blk == end_blk && mid_blk-1 == first_blk));
  392. *last_blk = end_blk;
  393. return 0;
  394. }
  395. /*
  396. * Check that a range of blocks does not contain stop_on_cycle_no.
  397. * Fill in *new_blk with the block offset where such a block is
  398. * found, or with -1 (an invalid block number) if there is no such
  399. * block in the range. The scan needs to occur from front to back
  400. * and the pointer into the region must be updated since a later
  401. * routine will need to perform another test.
  402. */
  403. STATIC int
  404. xlog_find_verify_cycle(
  405. struct xlog *log,
  406. xfs_daddr_t start_blk,
  407. int nbblks,
  408. uint stop_on_cycle_no,
  409. xfs_daddr_t *new_blk)
  410. {
  411. xfs_daddr_t i, j;
  412. uint cycle;
  413. xfs_buf_t *bp;
  414. xfs_daddr_t bufblks;
  415. char *buf = NULL;
  416. int error = 0;
  417. /*
  418. * Greedily allocate a buffer big enough to handle the full
  419. * range of basic blocks we'll be examining. If that fails,
  420. * try a smaller size. We need to be able to read at least
  421. * a log sector, or we're out of luck.
  422. */
  423. bufblks = 1 << ffs(nbblks);
  424. while (bufblks > log->l_logBBsize)
  425. bufblks >>= 1;
  426. while (!(bp = xlog_get_bp(log, bufblks))) {
  427. bufblks >>= 1;
  428. if (bufblks < log->l_sectBBsize)
  429. return -ENOMEM;
  430. }
  431. for (i = start_blk; i < start_blk + nbblks; i += bufblks) {
  432. int bcount;
  433. bcount = min(bufblks, (start_blk + nbblks - i));
  434. error = xlog_bread(log, i, bcount, bp, &buf);
  435. if (error)
  436. goto out;
  437. for (j = 0; j < bcount; j++) {
  438. cycle = xlog_get_cycle(buf);
  439. if (cycle == stop_on_cycle_no) {
  440. *new_blk = i+j;
  441. goto out;
  442. }
  443. buf += BBSIZE;
  444. }
  445. }
  446. *new_blk = -1;
  447. out:
  448. xlog_put_bp(bp);
  449. return error;
  450. }
  451. /*
  452. * Potentially backup over partial log record write.
  453. *
  454. * In the typical case, last_blk is the number of the block directly after
  455. * a good log record. Therefore, we subtract one to get the block number
  456. * of the last block in the given buffer. extra_bblks contains the number
  457. * of blocks we would have read on a previous read. This happens when the
  458. * last log record is split over the end of the physical log.
  459. *
  460. * extra_bblks is the number of blocks potentially verified on a previous
  461. * call to this routine.
  462. */
  463. STATIC int
  464. xlog_find_verify_log_record(
  465. struct xlog *log,
  466. xfs_daddr_t start_blk,
  467. xfs_daddr_t *last_blk,
  468. int extra_bblks)
  469. {
  470. xfs_daddr_t i;
  471. xfs_buf_t *bp;
  472. char *offset = NULL;
  473. xlog_rec_header_t *head = NULL;
  474. int error = 0;
  475. int smallmem = 0;
  476. int num_blks = *last_blk - start_blk;
  477. int xhdrs;
  478. ASSERT(start_blk != 0 || *last_blk != start_blk);
  479. if (!(bp = xlog_get_bp(log, num_blks))) {
  480. if (!(bp = xlog_get_bp(log, 1)))
  481. return -ENOMEM;
  482. smallmem = 1;
  483. } else {
  484. error = xlog_bread(log, start_blk, num_blks, bp, &offset);
  485. if (error)
  486. goto out;
  487. offset += ((num_blks - 1) << BBSHIFT);
  488. }
  489. for (i = (*last_blk) - 1; i >= 0; i--) {
  490. if (i < start_blk) {
  491. /* valid log record not found */
  492. xfs_warn(log->l_mp,
  493. "Log inconsistent (didn't find previous header)");
  494. ASSERT(0);
  495. error = -EIO;
  496. goto out;
  497. }
  498. if (smallmem) {
  499. error = xlog_bread(log, i, 1, bp, &offset);
  500. if (error)
  501. goto out;
  502. }
  503. head = (xlog_rec_header_t *)offset;
  504. if (head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM))
  505. break;
  506. if (!smallmem)
  507. offset -= BBSIZE;
  508. }
  509. /*
  510. * We hit the beginning of the physical log & still no header. Return
  511. * to caller. If caller can handle a return of -1, then this routine
  512. * will be called again for the end of the physical log.
  513. */
  514. if (i == -1) {
  515. error = 1;
  516. goto out;
  517. }
  518. /*
  519. * We have the final block of the good log (the first block
  520. * of the log record _before_ the head. So we check the uuid.
  521. */
  522. if ((error = xlog_header_check_mount(log->l_mp, head)))
  523. goto out;
  524. /*
  525. * We may have found a log record header before we expected one.
  526. * last_blk will be the 1st block # with a given cycle #. We may end
  527. * up reading an entire log record. In this case, we don't want to
  528. * reset last_blk. Only when last_blk points in the middle of a log
  529. * record do we update last_blk.
  530. */
  531. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  532. uint h_size = be32_to_cpu(head->h_size);
  533. xhdrs = h_size / XLOG_HEADER_CYCLE_SIZE;
  534. if (h_size % XLOG_HEADER_CYCLE_SIZE)
  535. xhdrs++;
  536. } else {
  537. xhdrs = 1;
  538. }
  539. if (*last_blk - i + extra_bblks !=
  540. BTOBB(be32_to_cpu(head->h_len)) + xhdrs)
  541. *last_blk = i;
  542. out:
  543. xlog_put_bp(bp);
  544. return error;
  545. }
  546. /*
  547. * Head is defined to be the point of the log where the next log write
  548. * could go. This means that incomplete LR writes at the end are
  549. * eliminated when calculating the head. We aren't guaranteed that previous
  550. * LR have complete transactions. We only know that a cycle number of
  551. * current cycle number -1 won't be present in the log if we start writing
  552. * from our current block number.
  553. *
  554. * last_blk contains the block number of the first block with a given
  555. * cycle number.
  556. *
  557. * Return: zero if normal, non-zero if error.
  558. */
  559. STATIC int
  560. xlog_find_head(
  561. struct xlog *log,
  562. xfs_daddr_t *return_head_blk)
  563. {
  564. xfs_buf_t *bp;
  565. char *offset;
  566. xfs_daddr_t new_blk, first_blk, start_blk, last_blk, head_blk;
  567. int num_scan_bblks;
  568. uint first_half_cycle, last_half_cycle;
  569. uint stop_on_cycle;
  570. int error, log_bbnum = log->l_logBBsize;
  571. /* Is the end of the log device zeroed? */
  572. error = xlog_find_zeroed(log, &first_blk);
  573. if (error < 0) {
  574. xfs_warn(log->l_mp, "empty log check failed");
  575. return error;
  576. }
  577. if (error == 1) {
  578. *return_head_blk = first_blk;
  579. /* Is the whole lot zeroed? */
  580. if (!first_blk) {
  581. /* Linux XFS shouldn't generate totally zeroed logs -
  582. * mkfs etc write a dummy unmount record to a fresh
  583. * log so we can store the uuid in there
  584. */
  585. xfs_warn(log->l_mp, "totally zeroed log");
  586. }
  587. return 0;
  588. }
  589. first_blk = 0; /* get cycle # of 1st block */
  590. bp = xlog_get_bp(log, 1);
  591. if (!bp)
  592. return -ENOMEM;
  593. error = xlog_bread(log, 0, 1, bp, &offset);
  594. if (error)
  595. goto bp_err;
  596. first_half_cycle = xlog_get_cycle(offset);
  597. last_blk = head_blk = log_bbnum - 1; /* get cycle # of last block */
  598. error = xlog_bread(log, last_blk, 1, bp, &offset);
  599. if (error)
  600. goto bp_err;
  601. last_half_cycle = xlog_get_cycle(offset);
  602. ASSERT(last_half_cycle != 0);
  603. /*
  604. * If the 1st half cycle number is equal to the last half cycle number,
  605. * then the entire log is stamped with the same cycle number. In this
  606. * case, head_blk can't be set to zero (which makes sense). The below
  607. * math doesn't work out properly with head_blk equal to zero. Instead,
  608. * we set it to log_bbnum which is an invalid block number, but this
  609. * value makes the math correct. If head_blk doesn't changed through
  610. * all the tests below, *head_blk is set to zero at the very end rather
  611. * than log_bbnum. In a sense, log_bbnum and zero are the same block
  612. * in a circular file.
  613. */
  614. if (first_half_cycle == last_half_cycle) {
  615. /*
  616. * In this case we believe that the entire log should have
  617. * cycle number last_half_cycle. We need to scan backwards
  618. * from the end verifying that there are no holes still
  619. * containing last_half_cycle - 1. If we find such a hole,
  620. * then the start of that hole will be the new head. The
  621. * simple case looks like
  622. * x | x ... | x - 1 | x
  623. * Another case that fits this picture would be
  624. * x | x + 1 | x ... | x
  625. * In this case the head really is somewhere at the end of the
  626. * log, as one of the latest writes at the beginning was
  627. * incomplete.
  628. * One more case is
  629. * x | x + 1 | x ... | x - 1 | x
  630. * This is really the combination of the above two cases, and
  631. * the head has to end up at the start of the x-1 hole at the
  632. * end of the log.
  633. *
  634. * In the 256k log case, we will read from the beginning to the
  635. * end of the log and search for cycle numbers equal to x-1.
  636. * We don't worry about the x+1 blocks that we encounter,
  637. * because we know that they cannot be the head since the log
  638. * started with x.
  639. */
  640. head_blk = log_bbnum;
  641. stop_on_cycle = last_half_cycle - 1;
  642. } else {
  643. /*
  644. * In this case we want to find the first block with cycle
  645. * number matching last_half_cycle. We expect the log to be
  646. * some variation on
  647. * x + 1 ... | x ... | x
  648. * The first block with cycle number x (last_half_cycle) will
  649. * be where the new head belongs. First we do a binary search
  650. * for the first occurrence of last_half_cycle. The binary
  651. * search may not be totally accurate, so then we scan back
  652. * from there looking for occurrences of last_half_cycle before
  653. * us. If that backwards scan wraps around the beginning of
  654. * the log, then we look for occurrences of last_half_cycle - 1
  655. * at the end of the log. The cases we're looking for look
  656. * like
  657. * v binary search stopped here
  658. * x + 1 ... | x | x + 1 | x ... | x
  659. * ^ but we want to locate this spot
  660. * or
  661. * <---------> less than scan distance
  662. * x + 1 ... | x ... | x - 1 | x
  663. * ^ we want to locate this spot
  664. */
  665. stop_on_cycle = last_half_cycle;
  666. if ((error = xlog_find_cycle_start(log, bp, first_blk,
  667. &head_blk, last_half_cycle)))
  668. goto bp_err;
  669. }
  670. /*
  671. * Now validate the answer. Scan back some number of maximum possible
  672. * blocks and make sure each one has the expected cycle number. The
  673. * maximum is determined by the total possible amount of buffering
  674. * in the in-core log. The following number can be made tighter if
  675. * we actually look at the block size of the filesystem.
  676. */
  677. num_scan_bblks = min_t(int, log_bbnum, XLOG_TOTAL_REC_SHIFT(log));
  678. if (head_blk >= num_scan_bblks) {
  679. /*
  680. * We are guaranteed that the entire check can be performed
  681. * in one buffer.
  682. */
  683. start_blk = head_blk - num_scan_bblks;
  684. if ((error = xlog_find_verify_cycle(log,
  685. start_blk, num_scan_bblks,
  686. stop_on_cycle, &new_blk)))
  687. goto bp_err;
  688. if (new_blk != -1)
  689. head_blk = new_blk;
  690. } else { /* need to read 2 parts of log */
  691. /*
  692. * We are going to scan backwards in the log in two parts.
  693. * First we scan the physical end of the log. In this part
  694. * of the log, we are looking for blocks with cycle number
  695. * last_half_cycle - 1.
  696. * If we find one, then we know that the log starts there, as
  697. * we've found a hole that didn't get written in going around
  698. * the end of the physical log. The simple case for this is
  699. * x + 1 ... | x ... | x - 1 | x
  700. * <---------> less than scan distance
  701. * If all of the blocks at the end of the log have cycle number
  702. * last_half_cycle, then we check the blocks at the start of
  703. * the log looking for occurrences of last_half_cycle. If we
  704. * find one, then our current estimate for the location of the
  705. * first occurrence of last_half_cycle is wrong and we move
  706. * back to the hole we've found. This case looks like
  707. * x + 1 ... | x | x + 1 | x ...
  708. * ^ binary search stopped here
  709. * Another case we need to handle that only occurs in 256k
  710. * logs is
  711. * x + 1 ... | x ... | x+1 | x ...
  712. * ^ binary search stops here
  713. * In a 256k log, the scan at the end of the log will see the
  714. * x + 1 blocks. We need to skip past those since that is
  715. * certainly not the head of the log. By searching for
  716. * last_half_cycle-1 we accomplish that.
  717. */
  718. ASSERT(head_blk <= INT_MAX &&
  719. (xfs_daddr_t) num_scan_bblks >= head_blk);
  720. start_blk = log_bbnum - (num_scan_bblks - head_blk);
  721. if ((error = xlog_find_verify_cycle(log, start_blk,
  722. num_scan_bblks - (int)head_blk,
  723. (stop_on_cycle - 1), &new_blk)))
  724. goto bp_err;
  725. if (new_blk != -1) {
  726. head_blk = new_blk;
  727. goto validate_head;
  728. }
  729. /*
  730. * Scan beginning of log now. The last part of the physical
  731. * log is good. This scan needs to verify that it doesn't find
  732. * the last_half_cycle.
  733. */
  734. start_blk = 0;
  735. ASSERT(head_blk <= INT_MAX);
  736. if ((error = xlog_find_verify_cycle(log,
  737. start_blk, (int)head_blk,
  738. stop_on_cycle, &new_blk)))
  739. goto bp_err;
  740. if (new_blk != -1)
  741. head_blk = new_blk;
  742. }
  743. validate_head:
  744. /*
  745. * Now we need to make sure head_blk is not pointing to a block in
  746. * the middle of a log record.
  747. */
  748. num_scan_bblks = XLOG_REC_SHIFT(log);
  749. if (head_blk >= num_scan_bblks) {
  750. start_blk = head_blk - num_scan_bblks; /* don't read head_blk */
  751. /* start ptr at last block ptr before head_blk */
  752. error = xlog_find_verify_log_record(log, start_blk, &head_blk, 0);
  753. if (error == 1)
  754. error = -EIO;
  755. if (error)
  756. goto bp_err;
  757. } else {
  758. start_blk = 0;
  759. ASSERT(head_blk <= INT_MAX);
  760. error = xlog_find_verify_log_record(log, start_blk, &head_blk, 0);
  761. if (error < 0)
  762. goto bp_err;
  763. if (error == 1) {
  764. /* We hit the beginning of the log during our search */
  765. start_blk = log_bbnum - (num_scan_bblks - head_blk);
  766. new_blk = log_bbnum;
  767. ASSERT(start_blk <= INT_MAX &&
  768. (xfs_daddr_t) log_bbnum-start_blk >= 0);
  769. ASSERT(head_blk <= INT_MAX);
  770. error = xlog_find_verify_log_record(log, start_blk,
  771. &new_blk, (int)head_blk);
  772. if (error == 1)
  773. error = -EIO;
  774. if (error)
  775. goto bp_err;
  776. if (new_blk != log_bbnum)
  777. head_blk = new_blk;
  778. } else if (error)
  779. goto bp_err;
  780. }
  781. xlog_put_bp(bp);
  782. if (head_blk == log_bbnum)
  783. *return_head_blk = 0;
  784. else
  785. *return_head_blk = head_blk;
  786. /*
  787. * When returning here, we have a good block number. Bad block
  788. * means that during a previous crash, we didn't have a clean break
  789. * from cycle number N to cycle number N-1. In this case, we need
  790. * to find the first block with cycle number N-1.
  791. */
  792. return 0;
  793. bp_err:
  794. xlog_put_bp(bp);
  795. if (error)
  796. xfs_warn(log->l_mp, "failed to find log head");
  797. return error;
  798. }
  799. /*
  800. * Seek backwards in the log for log record headers.
  801. *
  802. * Given a starting log block, walk backwards until we find the provided number
  803. * of records or hit the provided tail block. The return value is the number of
  804. * records encountered or a negative error code. The log block and buffer
  805. * pointer of the last record seen are returned in rblk and rhead respectively.
  806. */
  807. STATIC int
  808. xlog_rseek_logrec_hdr(
  809. struct xlog *log,
  810. xfs_daddr_t head_blk,
  811. xfs_daddr_t tail_blk,
  812. int count,
  813. struct xfs_buf *bp,
  814. xfs_daddr_t *rblk,
  815. struct xlog_rec_header **rhead,
  816. bool *wrapped)
  817. {
  818. int i;
  819. int error;
  820. int found = 0;
  821. char *offset = NULL;
  822. xfs_daddr_t end_blk;
  823. *wrapped = false;
  824. /*
  825. * Walk backwards from the head block until we hit the tail or the first
  826. * block in the log.
  827. */
  828. end_blk = head_blk > tail_blk ? tail_blk : 0;
  829. for (i = (int) head_blk - 1; i >= end_blk; i--) {
  830. error = xlog_bread(log, i, 1, bp, &offset);
  831. if (error)
  832. goto out_error;
  833. if (*(__be32 *) offset == cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
  834. *rblk = i;
  835. *rhead = (struct xlog_rec_header *) offset;
  836. if (++found == count)
  837. break;
  838. }
  839. }
  840. /*
  841. * If we haven't hit the tail block or the log record header count,
  842. * start looking again from the end of the physical log. Note that
  843. * callers can pass head == tail if the tail is not yet known.
  844. */
  845. if (tail_blk >= head_blk && found != count) {
  846. for (i = log->l_logBBsize - 1; i >= (int) tail_blk; i--) {
  847. error = xlog_bread(log, i, 1, bp, &offset);
  848. if (error)
  849. goto out_error;
  850. if (*(__be32 *)offset ==
  851. cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
  852. *wrapped = true;
  853. *rblk = i;
  854. *rhead = (struct xlog_rec_header *) offset;
  855. if (++found == count)
  856. break;
  857. }
  858. }
  859. }
  860. return found;
  861. out_error:
  862. return error;
  863. }
  864. /*
  865. * Seek forward in the log for log record headers.
  866. *
  867. * Given head and tail blocks, walk forward from the tail block until we find
  868. * the provided number of records or hit the head block. The return value is the
  869. * number of records encountered or a negative error code. The log block and
  870. * buffer pointer of the last record seen are returned in rblk and rhead
  871. * respectively.
  872. */
  873. STATIC int
  874. xlog_seek_logrec_hdr(
  875. struct xlog *log,
  876. xfs_daddr_t head_blk,
  877. xfs_daddr_t tail_blk,
  878. int count,
  879. struct xfs_buf *bp,
  880. xfs_daddr_t *rblk,
  881. struct xlog_rec_header **rhead,
  882. bool *wrapped)
  883. {
  884. int i;
  885. int error;
  886. int found = 0;
  887. char *offset = NULL;
  888. xfs_daddr_t end_blk;
  889. *wrapped = false;
  890. /*
  891. * Walk forward from the tail block until we hit the head or the last
  892. * block in the log.
  893. */
  894. end_blk = head_blk > tail_blk ? head_blk : log->l_logBBsize - 1;
  895. for (i = (int) tail_blk; i <= end_blk; i++) {
  896. error = xlog_bread(log, i, 1, bp, &offset);
  897. if (error)
  898. goto out_error;
  899. if (*(__be32 *) offset == cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
  900. *rblk = i;
  901. *rhead = (struct xlog_rec_header *) offset;
  902. if (++found == count)
  903. break;
  904. }
  905. }
  906. /*
  907. * If we haven't hit the head block or the log record header count,
  908. * start looking again from the start of the physical log.
  909. */
  910. if (tail_blk > head_blk && found != count) {
  911. for (i = 0; i < (int) head_blk; i++) {
  912. error = xlog_bread(log, i, 1, bp, &offset);
  913. if (error)
  914. goto out_error;
  915. if (*(__be32 *)offset ==
  916. cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
  917. *wrapped = true;
  918. *rblk = i;
  919. *rhead = (struct xlog_rec_header *) offset;
  920. if (++found == count)
  921. break;
  922. }
  923. }
  924. }
  925. return found;
  926. out_error:
  927. return error;
  928. }
  929. /*
  930. * Calculate distance from head to tail (i.e., unused space in the log).
  931. */
  932. static inline int
  933. xlog_tail_distance(
  934. struct xlog *log,
  935. xfs_daddr_t head_blk,
  936. xfs_daddr_t tail_blk)
  937. {
  938. if (head_blk < tail_blk)
  939. return tail_blk - head_blk;
  940. return tail_blk + (log->l_logBBsize - head_blk);
  941. }
  942. /*
  943. * Verify the log tail. This is particularly important when torn or incomplete
  944. * writes have been detected near the front of the log and the head has been
  945. * walked back accordingly.
  946. *
  947. * We also have to handle the case where the tail was pinned and the head
  948. * blocked behind the tail right before a crash. If the tail had been pushed
  949. * immediately prior to the crash and the subsequent checkpoint was only
  950. * partially written, it's possible it overwrote the last referenced tail in the
  951. * log with garbage. This is not a coherency problem because the tail must have
  952. * been pushed before it can be overwritten, but appears as log corruption to
  953. * recovery because we have no way to know the tail was updated if the
  954. * subsequent checkpoint didn't write successfully.
  955. *
  956. * Therefore, CRC check the log from tail to head. If a failure occurs and the
  957. * offending record is within max iclog bufs from the head, walk the tail
  958. * forward and retry until a valid tail is found or corruption is detected out
  959. * of the range of a possible overwrite.
  960. */
  961. STATIC int
  962. xlog_verify_tail(
  963. struct xlog *log,
  964. xfs_daddr_t head_blk,
  965. xfs_daddr_t *tail_blk,
  966. int hsize)
  967. {
  968. struct xlog_rec_header *thead;
  969. struct xfs_buf *bp;
  970. xfs_daddr_t first_bad;
  971. int error = 0;
  972. bool wrapped;
  973. xfs_daddr_t tmp_tail;
  974. xfs_daddr_t orig_tail = *tail_blk;
  975. bp = xlog_get_bp(log, 1);
  976. if (!bp)
  977. return -ENOMEM;
  978. /*
  979. * Make sure the tail points to a record (returns positive count on
  980. * success).
  981. */
  982. error = xlog_seek_logrec_hdr(log, head_blk, *tail_blk, 1, bp,
  983. &tmp_tail, &thead, &wrapped);
  984. if (error < 0)
  985. goto out;
  986. if (*tail_blk != tmp_tail)
  987. *tail_blk = tmp_tail;
  988. /*
  989. * Run a CRC check from the tail to the head. We can't just check
  990. * MAX_ICLOGS records past the tail because the tail may point to stale
  991. * blocks cleared during the search for the head/tail. These blocks are
  992. * overwritten with zero-length records and thus record count is not a
  993. * reliable indicator of the iclog state before a crash.
  994. */
  995. first_bad = 0;
  996. error = xlog_do_recovery_pass(log, head_blk, *tail_blk,
  997. XLOG_RECOVER_CRCPASS, &first_bad);
  998. while ((error == -EFSBADCRC || error == -EFSCORRUPTED) && first_bad) {
  999. int tail_distance;
  1000. /*
  1001. * Is corruption within range of the head? If so, retry from
  1002. * the next record. Otherwise return an error.
  1003. */
  1004. tail_distance = xlog_tail_distance(log, head_blk, first_bad);
  1005. if (tail_distance > BTOBB(XLOG_MAX_ICLOGS * hsize))
  1006. break;
  1007. /* skip to the next record; returns positive count on success */
  1008. error = xlog_seek_logrec_hdr(log, head_blk, first_bad, 2, bp,
  1009. &tmp_tail, &thead, &wrapped);
  1010. if (error < 0)
  1011. goto out;
  1012. *tail_blk = tmp_tail;
  1013. first_bad = 0;
  1014. error = xlog_do_recovery_pass(log, head_blk, *tail_blk,
  1015. XLOG_RECOVER_CRCPASS, &first_bad);
  1016. }
  1017. if (!error && *tail_blk != orig_tail)
  1018. xfs_warn(log->l_mp,
  1019. "Tail block (0x%llx) overwrite detected. Updated to 0x%llx",
  1020. orig_tail, *tail_blk);
  1021. out:
  1022. xlog_put_bp(bp);
  1023. return error;
  1024. }
  1025. /*
  1026. * Detect and trim torn writes from the head of the log.
  1027. *
  1028. * Storage without sector atomicity guarantees can result in torn writes in the
  1029. * log in the event of a crash. Our only means to detect this scenario is via
  1030. * CRC verification. While we can't always be certain that CRC verification
  1031. * failure is due to a torn write vs. an unrelated corruption, we do know that
  1032. * only a certain number (XLOG_MAX_ICLOGS) of log records can be written out at
  1033. * one time. Therefore, CRC verify up to XLOG_MAX_ICLOGS records at the head of
  1034. * the log and treat failures in this range as torn writes as a matter of
  1035. * policy. In the event of CRC failure, the head is walked back to the last good
  1036. * record in the log and the tail is updated from that record and verified.
  1037. */
  1038. STATIC int
  1039. xlog_verify_head(
  1040. struct xlog *log,
  1041. xfs_daddr_t *head_blk, /* in/out: unverified head */
  1042. xfs_daddr_t *tail_blk, /* out: tail block */
  1043. struct xfs_buf *bp,
  1044. xfs_daddr_t *rhead_blk, /* start blk of last record */
  1045. struct xlog_rec_header **rhead, /* ptr to last record */
  1046. bool *wrapped) /* last rec. wraps phys. log */
  1047. {
  1048. struct xlog_rec_header *tmp_rhead;
  1049. struct xfs_buf *tmp_bp;
  1050. xfs_daddr_t first_bad;
  1051. xfs_daddr_t tmp_rhead_blk;
  1052. int found;
  1053. int error;
  1054. bool tmp_wrapped;
  1055. /*
  1056. * Check the head of the log for torn writes. Search backwards from the
  1057. * head until we hit the tail or the maximum number of log record I/Os
  1058. * that could have been in flight at one time. Use a temporary buffer so
  1059. * we don't trash the rhead/bp pointers from the caller.
  1060. */
  1061. tmp_bp = xlog_get_bp(log, 1);
  1062. if (!tmp_bp)
  1063. return -ENOMEM;
  1064. error = xlog_rseek_logrec_hdr(log, *head_blk, *tail_blk,
  1065. XLOG_MAX_ICLOGS, tmp_bp, &tmp_rhead_blk,
  1066. &tmp_rhead, &tmp_wrapped);
  1067. xlog_put_bp(tmp_bp);
  1068. if (error < 0)
  1069. return error;
  1070. /*
  1071. * Now run a CRC verification pass over the records starting at the
  1072. * block found above to the current head. If a CRC failure occurs, the
  1073. * log block of the first bad record is saved in first_bad.
  1074. */
  1075. error = xlog_do_recovery_pass(log, *head_blk, tmp_rhead_blk,
  1076. XLOG_RECOVER_CRCPASS, &first_bad);
  1077. if ((error == -EFSBADCRC || error == -EFSCORRUPTED) && first_bad) {
  1078. /*
  1079. * We've hit a potential torn write. Reset the error and warn
  1080. * about it.
  1081. */
  1082. error = 0;
  1083. xfs_warn(log->l_mp,
  1084. "Torn write (CRC failure) detected at log block 0x%llx. Truncating head block from 0x%llx.",
  1085. first_bad, *head_blk);
  1086. /*
  1087. * Get the header block and buffer pointer for the last good
  1088. * record before the bad record.
  1089. *
  1090. * Note that xlog_find_tail() clears the blocks at the new head
  1091. * (i.e., the records with invalid CRC) if the cycle number
  1092. * matches the the current cycle.
  1093. */
  1094. found = xlog_rseek_logrec_hdr(log, first_bad, *tail_blk, 1, bp,
  1095. rhead_blk, rhead, wrapped);
  1096. if (found < 0)
  1097. return found;
  1098. if (found == 0) /* XXX: right thing to do here? */
  1099. return -EIO;
  1100. /*
  1101. * Reset the head block to the starting block of the first bad
  1102. * log record and set the tail block based on the last good
  1103. * record.
  1104. *
  1105. * Bail out if the updated head/tail match as this indicates
  1106. * possible corruption outside of the acceptable
  1107. * (XLOG_MAX_ICLOGS) range. This is a job for xfs_repair...
  1108. */
  1109. *head_blk = first_bad;
  1110. *tail_blk = BLOCK_LSN(be64_to_cpu((*rhead)->h_tail_lsn));
  1111. if (*head_blk == *tail_blk) {
  1112. ASSERT(0);
  1113. return 0;
  1114. }
  1115. }
  1116. if (error)
  1117. return error;
  1118. return xlog_verify_tail(log, *head_blk, tail_blk,
  1119. be32_to_cpu((*rhead)->h_size));
  1120. }
  1121. /*
  1122. * We need to make sure we handle log wrapping properly, so we can't use the
  1123. * calculated logbno directly. Make sure it wraps to the correct bno inside the
  1124. * log.
  1125. *
  1126. * The log is limited to 32 bit sizes, so we use the appropriate modulus
  1127. * operation here and cast it back to a 64 bit daddr on return.
  1128. */
  1129. static inline xfs_daddr_t
  1130. xlog_wrap_logbno(
  1131. struct xlog *log,
  1132. xfs_daddr_t bno)
  1133. {
  1134. int mod;
  1135. div_s64_rem(bno, log->l_logBBsize, &mod);
  1136. return mod;
  1137. }
  1138. /*
  1139. * Check whether the head of the log points to an unmount record. In other
  1140. * words, determine whether the log is clean. If so, update the in-core state
  1141. * appropriately.
  1142. */
  1143. static int
  1144. xlog_check_unmount_rec(
  1145. struct xlog *log,
  1146. xfs_daddr_t *head_blk,
  1147. xfs_daddr_t *tail_blk,
  1148. struct xlog_rec_header *rhead,
  1149. xfs_daddr_t rhead_blk,
  1150. struct xfs_buf *bp,
  1151. bool *clean)
  1152. {
  1153. struct xlog_op_header *op_head;
  1154. xfs_daddr_t umount_data_blk;
  1155. xfs_daddr_t after_umount_blk;
  1156. int hblks;
  1157. int error;
  1158. char *offset;
  1159. *clean = false;
  1160. /*
  1161. * Look for unmount record. If we find it, then we know there was a
  1162. * clean unmount. Since 'i' could be the last block in the physical
  1163. * log, we convert to a log block before comparing to the head_blk.
  1164. *
  1165. * Save the current tail lsn to use to pass to xlog_clear_stale_blocks()
  1166. * below. We won't want to clear the unmount record if there is one, so
  1167. * we pass the lsn of the unmount record rather than the block after it.
  1168. */
  1169. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  1170. int h_size = be32_to_cpu(rhead->h_size);
  1171. int h_version = be32_to_cpu(rhead->h_version);
  1172. if ((h_version & XLOG_VERSION_2) &&
  1173. (h_size > XLOG_HEADER_CYCLE_SIZE)) {
  1174. hblks = h_size / XLOG_HEADER_CYCLE_SIZE;
  1175. if (h_size % XLOG_HEADER_CYCLE_SIZE)
  1176. hblks++;
  1177. } else {
  1178. hblks = 1;
  1179. }
  1180. } else {
  1181. hblks = 1;
  1182. }
  1183. after_umount_blk = xlog_wrap_logbno(log,
  1184. rhead_blk + hblks + BTOBB(be32_to_cpu(rhead->h_len)));
  1185. if (*head_blk == after_umount_blk &&
  1186. be32_to_cpu(rhead->h_num_logops) == 1) {
  1187. umount_data_blk = xlog_wrap_logbno(log, rhead_blk + hblks);
  1188. error = xlog_bread(log, umount_data_blk, 1, bp, &offset);
  1189. if (error)
  1190. return error;
  1191. op_head = (struct xlog_op_header *)offset;
  1192. if (op_head->oh_flags & XLOG_UNMOUNT_TRANS) {
  1193. /*
  1194. * Set tail and last sync so that newly written log
  1195. * records will point recovery to after the current
  1196. * unmount record.
  1197. */
  1198. xlog_assign_atomic_lsn(&log->l_tail_lsn,
  1199. log->l_curr_cycle, after_umount_blk);
  1200. xlog_assign_atomic_lsn(&log->l_last_sync_lsn,
  1201. log->l_curr_cycle, after_umount_blk);
  1202. *tail_blk = after_umount_blk;
  1203. *clean = true;
  1204. }
  1205. }
  1206. return 0;
  1207. }
  1208. static void
  1209. xlog_set_state(
  1210. struct xlog *log,
  1211. xfs_daddr_t head_blk,
  1212. struct xlog_rec_header *rhead,
  1213. xfs_daddr_t rhead_blk,
  1214. bool bump_cycle)
  1215. {
  1216. /*
  1217. * Reset log values according to the state of the log when we
  1218. * crashed. In the case where head_blk == 0, we bump curr_cycle
  1219. * one because the next write starts a new cycle rather than
  1220. * continuing the cycle of the last good log record. At this
  1221. * point we have guaranteed that all partial log records have been
  1222. * accounted for. Therefore, we know that the last good log record
  1223. * written was complete and ended exactly on the end boundary
  1224. * of the physical log.
  1225. */
  1226. log->l_prev_block = rhead_blk;
  1227. log->l_curr_block = (int)head_blk;
  1228. log->l_curr_cycle = be32_to_cpu(rhead->h_cycle);
  1229. if (bump_cycle)
  1230. log->l_curr_cycle++;
  1231. atomic64_set(&log->l_tail_lsn, be64_to_cpu(rhead->h_tail_lsn));
  1232. atomic64_set(&log->l_last_sync_lsn, be64_to_cpu(rhead->h_lsn));
  1233. xlog_assign_grant_head(&log->l_reserve_head.grant, log->l_curr_cycle,
  1234. BBTOB(log->l_curr_block));
  1235. xlog_assign_grant_head(&log->l_write_head.grant, log->l_curr_cycle,
  1236. BBTOB(log->l_curr_block));
  1237. }
  1238. /*
  1239. * Find the sync block number or the tail of the log.
  1240. *
  1241. * This will be the block number of the last record to have its
  1242. * associated buffers synced to disk. Every log record header has
  1243. * a sync lsn embedded in it. LSNs hold block numbers, so it is easy
  1244. * to get a sync block number. The only concern is to figure out which
  1245. * log record header to believe.
  1246. *
  1247. * The following algorithm uses the log record header with the largest
  1248. * lsn. The entire log record does not need to be valid. We only care
  1249. * that the header is valid.
  1250. *
  1251. * We could speed up search by using current head_blk buffer, but it is not
  1252. * available.
  1253. */
  1254. STATIC int
  1255. xlog_find_tail(
  1256. struct xlog *log,
  1257. xfs_daddr_t *head_blk,
  1258. xfs_daddr_t *tail_blk)
  1259. {
  1260. xlog_rec_header_t *rhead;
  1261. char *offset = NULL;
  1262. xfs_buf_t *bp;
  1263. int error;
  1264. xfs_daddr_t rhead_blk;
  1265. xfs_lsn_t tail_lsn;
  1266. bool wrapped = false;
  1267. bool clean = false;
  1268. /*
  1269. * Find previous log record
  1270. */
  1271. if ((error = xlog_find_head(log, head_blk)))
  1272. return error;
  1273. ASSERT(*head_blk < INT_MAX);
  1274. bp = xlog_get_bp(log, 1);
  1275. if (!bp)
  1276. return -ENOMEM;
  1277. if (*head_blk == 0) { /* special case */
  1278. error = xlog_bread(log, 0, 1, bp, &offset);
  1279. if (error)
  1280. goto done;
  1281. if (xlog_get_cycle(offset) == 0) {
  1282. *tail_blk = 0;
  1283. /* leave all other log inited values alone */
  1284. goto done;
  1285. }
  1286. }
  1287. /*
  1288. * Search backwards through the log looking for the log record header
  1289. * block. This wraps all the way back around to the head so something is
  1290. * seriously wrong if we can't find it.
  1291. */
  1292. error = xlog_rseek_logrec_hdr(log, *head_blk, *head_blk, 1, bp,
  1293. &rhead_blk, &rhead, &wrapped);
  1294. if (error < 0)
  1295. return error;
  1296. if (!error) {
  1297. xfs_warn(log->l_mp, "%s: couldn't find sync record", __func__);
  1298. return -EIO;
  1299. }
  1300. *tail_blk = BLOCK_LSN(be64_to_cpu(rhead->h_tail_lsn));
  1301. /*
  1302. * Set the log state based on the current head record.
  1303. */
  1304. xlog_set_state(log, *head_blk, rhead, rhead_blk, wrapped);
  1305. tail_lsn = atomic64_read(&log->l_tail_lsn);
  1306. /*
  1307. * Look for an unmount record at the head of the log. This sets the log
  1308. * state to determine whether recovery is necessary.
  1309. */
  1310. error = xlog_check_unmount_rec(log, head_blk, tail_blk, rhead,
  1311. rhead_blk, bp, &clean);
  1312. if (error)
  1313. goto done;
  1314. /*
  1315. * Verify the log head if the log is not clean (e.g., we have anything
  1316. * but an unmount record at the head). This uses CRC verification to
  1317. * detect and trim torn writes. If discovered, CRC failures are
  1318. * considered torn writes and the log head is trimmed accordingly.
  1319. *
  1320. * Note that we can only run CRC verification when the log is dirty
  1321. * because there's no guarantee that the log data behind an unmount
  1322. * record is compatible with the current architecture.
  1323. */
  1324. if (!clean) {
  1325. xfs_daddr_t orig_head = *head_blk;
  1326. error = xlog_verify_head(log, head_blk, tail_blk, bp,
  1327. &rhead_blk, &rhead, &wrapped);
  1328. if (error)
  1329. goto done;
  1330. /* update in-core state again if the head changed */
  1331. if (*head_blk != orig_head) {
  1332. xlog_set_state(log, *head_blk, rhead, rhead_blk,
  1333. wrapped);
  1334. tail_lsn = atomic64_read(&log->l_tail_lsn);
  1335. error = xlog_check_unmount_rec(log, head_blk, tail_blk,
  1336. rhead, rhead_blk, bp,
  1337. &clean);
  1338. if (error)
  1339. goto done;
  1340. }
  1341. }
  1342. /*
  1343. * Note that the unmount was clean. If the unmount was not clean, we
  1344. * need to know this to rebuild the superblock counters from the perag
  1345. * headers if we have a filesystem using non-persistent counters.
  1346. */
  1347. if (clean)
  1348. log->l_mp->m_flags |= XFS_MOUNT_WAS_CLEAN;
  1349. /*
  1350. * Make sure that there are no blocks in front of the head
  1351. * with the same cycle number as the head. This can happen
  1352. * because we allow multiple outstanding log writes concurrently,
  1353. * and the later writes might make it out before earlier ones.
  1354. *
  1355. * We use the lsn from before modifying it so that we'll never
  1356. * overwrite the unmount record after a clean unmount.
  1357. *
  1358. * Do this only if we are going to recover the filesystem
  1359. *
  1360. * NOTE: This used to say "if (!readonly)"
  1361. * However on Linux, we can & do recover a read-only filesystem.
  1362. * We only skip recovery if NORECOVERY is specified on mount,
  1363. * in which case we would not be here.
  1364. *
  1365. * But... if the -device- itself is readonly, just skip this.
  1366. * We can't recover this device anyway, so it won't matter.
  1367. */
  1368. if (!xfs_readonly_buftarg(log->l_mp->m_logdev_targp))
  1369. error = xlog_clear_stale_blocks(log, tail_lsn);
  1370. done:
  1371. xlog_put_bp(bp);
  1372. if (error)
  1373. xfs_warn(log->l_mp, "failed to locate log tail");
  1374. return error;
  1375. }
  1376. /*
  1377. * Is the log zeroed at all?
  1378. *
  1379. * The last binary search should be changed to perform an X block read
  1380. * once X becomes small enough. You can then search linearly through
  1381. * the X blocks. This will cut down on the number of reads we need to do.
  1382. *
  1383. * If the log is partially zeroed, this routine will pass back the blkno
  1384. * of the first block with cycle number 0. It won't have a complete LR
  1385. * preceding it.
  1386. *
  1387. * Return:
  1388. * 0 => the log is completely written to
  1389. * 1 => use *blk_no as the first block of the log
  1390. * <0 => error has occurred
  1391. */
  1392. STATIC int
  1393. xlog_find_zeroed(
  1394. struct xlog *log,
  1395. xfs_daddr_t *blk_no)
  1396. {
  1397. xfs_buf_t *bp;
  1398. char *offset;
  1399. uint first_cycle, last_cycle;
  1400. xfs_daddr_t new_blk, last_blk, start_blk;
  1401. xfs_daddr_t num_scan_bblks;
  1402. int error, log_bbnum = log->l_logBBsize;
  1403. *blk_no = 0;
  1404. /* check totally zeroed log */
  1405. bp = xlog_get_bp(log, 1);
  1406. if (!bp)
  1407. return -ENOMEM;
  1408. error = xlog_bread(log, 0, 1, bp, &offset);
  1409. if (error)
  1410. goto bp_err;
  1411. first_cycle = xlog_get_cycle(offset);
  1412. if (first_cycle == 0) { /* completely zeroed log */
  1413. *blk_no = 0;
  1414. xlog_put_bp(bp);
  1415. return 1;
  1416. }
  1417. /* check partially zeroed log */
  1418. error = xlog_bread(log, log_bbnum-1, 1, bp, &offset);
  1419. if (error)
  1420. goto bp_err;
  1421. last_cycle = xlog_get_cycle(offset);
  1422. if (last_cycle != 0) { /* log completely written to */
  1423. xlog_put_bp(bp);
  1424. return 0;
  1425. }
  1426. /* we have a partially zeroed log */
  1427. last_blk = log_bbnum-1;
  1428. if ((error = xlog_find_cycle_start(log, bp, 0, &last_blk, 0)))
  1429. goto bp_err;
  1430. /*
  1431. * Validate the answer. Because there is no way to guarantee that
  1432. * the entire log is made up of log records which are the same size,
  1433. * we scan over the defined maximum blocks. At this point, the maximum
  1434. * is not chosen to mean anything special. XXXmiken
  1435. */
  1436. num_scan_bblks = XLOG_TOTAL_REC_SHIFT(log);
  1437. ASSERT(num_scan_bblks <= INT_MAX);
  1438. if (last_blk < num_scan_bblks)
  1439. num_scan_bblks = last_blk;
  1440. start_blk = last_blk - num_scan_bblks;
  1441. /*
  1442. * We search for any instances of cycle number 0 that occur before
  1443. * our current estimate of the head. What we're trying to detect is
  1444. * 1 ... | 0 | 1 | 0...
  1445. * ^ binary search ends here
  1446. */
  1447. if ((error = xlog_find_verify_cycle(log, start_blk,
  1448. (int)num_scan_bblks, 0, &new_blk)))
  1449. goto bp_err;
  1450. if (new_blk != -1)
  1451. last_blk = new_blk;
  1452. /*
  1453. * Potentially backup over partial log record write. We don't need
  1454. * to search the end of the log because we know it is zero.
  1455. */
  1456. error = xlog_find_verify_log_record(log, start_blk, &last_blk, 0);
  1457. if (error == 1)
  1458. error = -EIO;
  1459. if (error)
  1460. goto bp_err;
  1461. *blk_no = last_blk;
  1462. bp_err:
  1463. xlog_put_bp(bp);
  1464. if (error)
  1465. return error;
  1466. return 1;
  1467. }
  1468. /*
  1469. * These are simple subroutines used by xlog_clear_stale_blocks() below
  1470. * to initialize a buffer full of empty log record headers and write
  1471. * them into the log.
  1472. */
  1473. STATIC void
  1474. xlog_add_record(
  1475. struct xlog *log,
  1476. char *buf,
  1477. int cycle,
  1478. int block,
  1479. int tail_cycle,
  1480. int tail_block)
  1481. {
  1482. xlog_rec_header_t *recp = (xlog_rec_header_t *)buf;
  1483. memset(buf, 0, BBSIZE);
  1484. recp->h_magicno = cpu_to_be32(XLOG_HEADER_MAGIC_NUM);
  1485. recp->h_cycle = cpu_to_be32(cycle);
  1486. recp->h_version = cpu_to_be32(
  1487. xfs_sb_version_haslogv2(&log->l_mp->m_sb) ? 2 : 1);
  1488. recp->h_lsn = cpu_to_be64(xlog_assign_lsn(cycle, block));
  1489. recp->h_tail_lsn = cpu_to_be64(xlog_assign_lsn(tail_cycle, tail_block));
  1490. recp->h_fmt = cpu_to_be32(XLOG_FMT);
  1491. memcpy(&recp->h_fs_uuid, &log->l_mp->m_sb.sb_uuid, sizeof(uuid_t));
  1492. }
  1493. STATIC int
  1494. xlog_write_log_records(
  1495. struct xlog *log,
  1496. int cycle,
  1497. int start_block,
  1498. int blocks,
  1499. int tail_cycle,
  1500. int tail_block)
  1501. {
  1502. char *offset;
  1503. xfs_buf_t *bp;
  1504. int balign, ealign;
  1505. int sectbb = log->l_sectBBsize;
  1506. int end_block = start_block + blocks;
  1507. int bufblks;
  1508. int error = 0;
  1509. int i, j = 0;
  1510. /*
  1511. * Greedily allocate a buffer big enough to handle the full
  1512. * range of basic blocks to be written. If that fails, try
  1513. * a smaller size. We need to be able to write at least a
  1514. * log sector, or we're out of luck.
  1515. */
  1516. bufblks = 1 << ffs(blocks);
  1517. while (bufblks > log->l_logBBsize)
  1518. bufblks >>= 1;
  1519. while (!(bp = xlog_get_bp(log, bufblks))) {
  1520. bufblks >>= 1;
  1521. if (bufblks < sectbb)
  1522. return -ENOMEM;
  1523. }
  1524. /* We may need to do a read at the start to fill in part of
  1525. * the buffer in the starting sector not covered by the first
  1526. * write below.
  1527. */
  1528. balign = round_down(start_block, sectbb);
  1529. if (balign != start_block) {
  1530. error = xlog_bread_noalign(log, start_block, 1, bp);
  1531. if (error)
  1532. goto out_put_bp;
  1533. j = start_block - balign;
  1534. }
  1535. for (i = start_block; i < end_block; i += bufblks) {
  1536. int bcount, endcount;
  1537. bcount = min(bufblks, end_block - start_block);
  1538. endcount = bcount - j;
  1539. /* We may need to do a read at the end to fill in part of
  1540. * the buffer in the final sector not covered by the write.
  1541. * If this is the same sector as the above read, skip it.
  1542. */
  1543. ealign = round_down(end_block, sectbb);
  1544. if (j == 0 && (start_block + endcount > ealign)) {
  1545. offset = bp->b_addr + BBTOB(ealign - start_block);
  1546. error = xlog_bread_offset(log, ealign, sectbb,
  1547. bp, offset);
  1548. if (error)
  1549. break;
  1550. }
  1551. offset = xlog_align(log, start_block, endcount, bp);
  1552. for (; j < endcount; j++) {
  1553. xlog_add_record(log, offset, cycle, i+j,
  1554. tail_cycle, tail_block);
  1555. offset += BBSIZE;
  1556. }
  1557. error = xlog_bwrite(log, start_block, endcount, bp);
  1558. if (error)
  1559. break;
  1560. start_block += endcount;
  1561. j = 0;
  1562. }
  1563. out_put_bp:
  1564. xlog_put_bp(bp);
  1565. return error;
  1566. }
  1567. /*
  1568. * This routine is called to blow away any incomplete log writes out
  1569. * in front of the log head. We do this so that we won't become confused
  1570. * if we come up, write only a little bit more, and then crash again.
  1571. * If we leave the partial log records out there, this situation could
  1572. * cause us to think those partial writes are valid blocks since they
  1573. * have the current cycle number. We get rid of them by overwriting them
  1574. * with empty log records with the old cycle number rather than the
  1575. * current one.
  1576. *
  1577. * The tail lsn is passed in rather than taken from
  1578. * the log so that we will not write over the unmount record after a
  1579. * clean unmount in a 512 block log. Doing so would leave the log without
  1580. * any valid log records in it until a new one was written. If we crashed
  1581. * during that time we would not be able to recover.
  1582. */
  1583. STATIC int
  1584. xlog_clear_stale_blocks(
  1585. struct xlog *log,
  1586. xfs_lsn_t tail_lsn)
  1587. {
  1588. int tail_cycle, head_cycle;
  1589. int tail_block, head_block;
  1590. int tail_distance, max_distance;
  1591. int distance;
  1592. int error;
  1593. tail_cycle = CYCLE_LSN(tail_lsn);
  1594. tail_block = BLOCK_LSN(tail_lsn);
  1595. head_cycle = log->l_curr_cycle;
  1596. head_block = log->l_curr_block;
  1597. /*
  1598. * Figure out the distance between the new head of the log
  1599. * and the tail. We want to write over any blocks beyond the
  1600. * head that we may have written just before the crash, but
  1601. * we don't want to overwrite the tail of the log.
  1602. */
  1603. if (head_cycle == tail_cycle) {
  1604. /*
  1605. * The tail is behind the head in the physical log,
  1606. * so the distance from the head to the tail is the
  1607. * distance from the head to the end of the log plus
  1608. * the distance from the beginning of the log to the
  1609. * tail.
  1610. */
  1611. if (unlikely(head_block < tail_block || head_block >= log->l_logBBsize)) {
  1612. XFS_ERROR_REPORT("xlog_clear_stale_blocks(1)",
  1613. XFS_ERRLEVEL_LOW, log->l_mp);
  1614. return -EFSCORRUPTED;
  1615. }
  1616. tail_distance = tail_block + (log->l_logBBsize - head_block);
  1617. } else {
  1618. /*
  1619. * The head is behind the tail in the physical log,
  1620. * so the distance from the head to the tail is just
  1621. * the tail block minus the head block.
  1622. */
  1623. if (unlikely(head_block >= tail_block || head_cycle != (tail_cycle + 1))){
  1624. XFS_ERROR_REPORT("xlog_clear_stale_blocks(2)",
  1625. XFS_ERRLEVEL_LOW, log->l_mp);
  1626. return -EFSCORRUPTED;
  1627. }
  1628. tail_distance = tail_block - head_block;
  1629. }
  1630. /*
  1631. * If the head is right up against the tail, we can't clear
  1632. * anything.
  1633. */
  1634. if (tail_distance <= 0) {
  1635. ASSERT(tail_distance == 0);
  1636. return 0;
  1637. }
  1638. max_distance = XLOG_TOTAL_REC_SHIFT(log);
  1639. /*
  1640. * Take the smaller of the maximum amount of outstanding I/O
  1641. * we could have and the distance to the tail to clear out.
  1642. * We take the smaller so that we don't overwrite the tail and
  1643. * we don't waste all day writing from the head to the tail
  1644. * for no reason.
  1645. */
  1646. max_distance = min(max_distance, tail_distance);
  1647. if ((head_block + max_distance) <= log->l_logBBsize) {
  1648. /*
  1649. * We can stomp all the blocks we need to without
  1650. * wrapping around the end of the log. Just do it
  1651. * in a single write. Use the cycle number of the
  1652. * current cycle minus one so that the log will look like:
  1653. * n ... | n - 1 ...
  1654. */
  1655. error = xlog_write_log_records(log, (head_cycle - 1),
  1656. head_block, max_distance, tail_cycle,
  1657. tail_block);
  1658. if (error)
  1659. return error;
  1660. } else {
  1661. /*
  1662. * We need to wrap around the end of the physical log in
  1663. * order to clear all the blocks. Do it in two separate
  1664. * I/Os. The first write should be from the head to the
  1665. * end of the physical log, and it should use the current
  1666. * cycle number minus one just like above.
  1667. */
  1668. distance = log->l_logBBsize - head_block;
  1669. error = xlog_write_log_records(log, (head_cycle - 1),
  1670. head_block, distance, tail_cycle,
  1671. tail_block);
  1672. if (error)
  1673. return error;
  1674. /*
  1675. * Now write the blocks at the start of the physical log.
  1676. * This writes the remainder of the blocks we want to clear.
  1677. * It uses the current cycle number since we're now on the
  1678. * same cycle as the head so that we get:
  1679. * n ... n ... | n - 1 ...
  1680. * ^^^^^ blocks we're writing
  1681. */
  1682. distance = max_distance - (log->l_logBBsize - head_block);
  1683. error = xlog_write_log_records(log, head_cycle, 0, distance,
  1684. tail_cycle, tail_block);
  1685. if (error)
  1686. return error;
  1687. }
  1688. return 0;
  1689. }
  1690. /******************************************************************************
  1691. *
  1692. * Log recover routines
  1693. *
  1694. ******************************************************************************
  1695. */
  1696. /*
  1697. * Sort the log items in the transaction.
  1698. *
  1699. * The ordering constraints are defined by the inode allocation and unlink
  1700. * behaviour. The rules are:
  1701. *
  1702. * 1. Every item is only logged once in a given transaction. Hence it
  1703. * represents the last logged state of the item. Hence ordering is
  1704. * dependent on the order in which operations need to be performed so
  1705. * required initial conditions are always met.
  1706. *
  1707. * 2. Cancelled buffers are recorded in pass 1 in a separate table and
  1708. * there's nothing to replay from them so we can simply cull them
  1709. * from the transaction. However, we can't do that until after we've
  1710. * replayed all the other items because they may be dependent on the
  1711. * cancelled buffer and replaying the cancelled buffer can remove it
  1712. * form the cancelled buffer table. Hence they have tobe done last.
  1713. *
  1714. * 3. Inode allocation buffers must be replayed before inode items that
  1715. * read the buffer and replay changes into it. For filesystems using the
  1716. * ICREATE transactions, this means XFS_LI_ICREATE objects need to get
  1717. * treated the same as inode allocation buffers as they create and
  1718. * initialise the buffers directly.
  1719. *
  1720. * 4. Inode unlink buffers must be replayed after inode items are replayed.
  1721. * This ensures that inodes are completely flushed to the inode buffer
  1722. * in a "free" state before we remove the unlinked inode list pointer.
  1723. *
  1724. * Hence the ordering needs to be inode allocation buffers first, inode items
  1725. * second, inode unlink buffers third and cancelled buffers last.
  1726. *
  1727. * But there's a problem with that - we can't tell an inode allocation buffer
  1728. * apart from a regular buffer, so we can't separate them. We can, however,
  1729. * tell an inode unlink buffer from the others, and so we can separate them out
  1730. * from all the other buffers and move them to last.
  1731. *
  1732. * Hence, 4 lists, in order from head to tail:
  1733. * - buffer_list for all buffers except cancelled/inode unlink buffers
  1734. * - item_list for all non-buffer items
  1735. * - inode_buffer_list for inode unlink buffers
  1736. * - cancel_list for the cancelled buffers
  1737. *
  1738. * Note that we add objects to the tail of the lists so that first-to-last
  1739. * ordering is preserved within the lists. Adding objects to the head of the
  1740. * list means when we traverse from the head we walk them in last-to-first
  1741. * order. For cancelled buffers and inode unlink buffers this doesn't matter,
  1742. * but for all other items there may be specific ordering that we need to
  1743. * preserve.
  1744. */
  1745. STATIC int
  1746. xlog_recover_reorder_trans(
  1747. struct xlog *log,
  1748. struct xlog_recover *trans,
  1749. int pass)
  1750. {
  1751. xlog_recover_item_t *item, *n;
  1752. int error = 0;
  1753. LIST_HEAD(sort_list);
  1754. LIST_HEAD(cancel_list);
  1755. LIST_HEAD(buffer_list);
  1756. LIST_HEAD(inode_buffer_list);
  1757. LIST_HEAD(inode_list);
  1758. list_splice_init(&trans->r_itemq, &sort_list);
  1759. list_for_each_entry_safe(item, n, &sort_list, ri_list) {
  1760. xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
  1761. switch (ITEM_TYPE(item)) {
  1762. case XFS_LI_ICREATE:
  1763. list_move_tail(&item->ri_list, &buffer_list);
  1764. break;
  1765. case XFS_LI_BUF:
  1766. if (buf_f->blf_flags & XFS_BLF_CANCEL) {
  1767. trace_xfs_log_recover_item_reorder_head(log,
  1768. trans, item, pass);
  1769. list_move(&item->ri_list, &cancel_list);
  1770. break;
  1771. }
  1772. if (buf_f->blf_flags & XFS_BLF_INODE_BUF) {
  1773. list_move(&item->ri_list, &inode_buffer_list);
  1774. break;
  1775. }
  1776. list_move_tail(&item->ri_list, &buffer_list);
  1777. break;
  1778. case XFS_LI_INODE:
  1779. case XFS_LI_DQUOT:
  1780. case XFS_LI_QUOTAOFF:
  1781. case XFS_LI_EFD:
  1782. case XFS_LI_EFI:
  1783. case XFS_LI_RUI:
  1784. case XFS_LI_RUD:
  1785. case XFS_LI_CUI:
  1786. case XFS_LI_CUD:
  1787. case XFS_LI_BUI:
  1788. case XFS_LI_BUD:
  1789. trace_xfs_log_recover_item_reorder_tail(log,
  1790. trans, item, pass);
  1791. list_move_tail(&item->ri_list, &inode_list);
  1792. break;
  1793. default:
  1794. xfs_warn(log->l_mp,
  1795. "%s: unrecognized type of log operation",
  1796. __func__);
  1797. ASSERT(0);
  1798. /*
  1799. * return the remaining items back to the transaction
  1800. * item list so they can be freed in caller.
  1801. */
  1802. if (!list_empty(&sort_list))
  1803. list_splice_init(&sort_list, &trans->r_itemq);
  1804. error = -EIO;
  1805. goto out;
  1806. }
  1807. }
  1808. out:
  1809. ASSERT(list_empty(&sort_list));
  1810. if (!list_empty(&buffer_list))
  1811. list_splice(&buffer_list, &trans->r_itemq);
  1812. if (!list_empty(&inode_list))
  1813. list_splice_tail(&inode_list, &trans->r_itemq);
  1814. if (!list_empty(&inode_buffer_list))
  1815. list_splice_tail(&inode_buffer_list, &trans->r_itemq);
  1816. if (!list_empty(&cancel_list))
  1817. list_splice_tail(&cancel_list, &trans->r_itemq);
  1818. return error;
  1819. }
  1820. /*
  1821. * Build up the table of buf cancel records so that we don't replay
  1822. * cancelled data in the second pass. For buffer records that are
  1823. * not cancel records, there is nothing to do here so we just return.
  1824. *
  1825. * If we get a cancel record which is already in the table, this indicates
  1826. * that the buffer was cancelled multiple times. In order to ensure
  1827. * that during pass 2 we keep the record in the table until we reach its
  1828. * last occurrence in the log, we keep a reference count in the cancel
  1829. * record in the table to tell us how many times we expect to see this
  1830. * record during the second pass.
  1831. */
  1832. STATIC int
  1833. xlog_recover_buffer_pass1(
  1834. struct xlog *log,
  1835. struct xlog_recover_item *item)
  1836. {
  1837. xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
  1838. struct list_head *bucket;
  1839. struct xfs_buf_cancel *bcp;
  1840. /*
  1841. * If this isn't a cancel buffer item, then just return.
  1842. */
  1843. if (!(buf_f->blf_flags & XFS_BLF_CANCEL)) {
  1844. trace_xfs_log_recover_buf_not_cancel(log, buf_f);
  1845. return 0;
  1846. }
  1847. /*
  1848. * Insert an xfs_buf_cancel record into the hash table of them.
  1849. * If there is already an identical record, bump its reference count.
  1850. */
  1851. bucket = XLOG_BUF_CANCEL_BUCKET(log, buf_f->blf_blkno);
  1852. list_for_each_entry(bcp, bucket, bc_list) {
  1853. if (bcp->bc_blkno == buf_f->blf_blkno &&
  1854. bcp->bc_len == buf_f->blf_len) {
  1855. bcp->bc_refcount++;
  1856. trace_xfs_log_recover_buf_cancel_ref_inc(log, buf_f);
  1857. return 0;
  1858. }
  1859. }
  1860. bcp = kmem_alloc(sizeof(struct xfs_buf_cancel), KM_SLEEP);
  1861. bcp->bc_blkno = buf_f->blf_blkno;
  1862. bcp->bc_len = buf_f->blf_len;
  1863. bcp->bc_refcount = 1;
  1864. list_add_tail(&bcp->bc_list, bucket);
  1865. trace_xfs_log_recover_buf_cancel_add(log, buf_f);
  1866. return 0;
  1867. }
  1868. /*
  1869. * Check to see whether the buffer being recovered has a corresponding
  1870. * entry in the buffer cancel record table. If it is, return the cancel
  1871. * buffer structure to the caller.
  1872. */
  1873. STATIC struct xfs_buf_cancel *
  1874. xlog_peek_buffer_cancelled(
  1875. struct xlog *log,
  1876. xfs_daddr_t blkno,
  1877. uint len,
  1878. unsigned short flags)
  1879. {
  1880. struct list_head *bucket;
  1881. struct xfs_buf_cancel *bcp;
  1882. if (!log->l_buf_cancel_table) {
  1883. /* empty table means no cancelled buffers in the log */
  1884. ASSERT(!(flags & XFS_BLF_CANCEL));
  1885. return NULL;
  1886. }
  1887. bucket = XLOG_BUF_CANCEL_BUCKET(log, blkno);
  1888. list_for_each_entry(bcp, bucket, bc_list) {
  1889. if (bcp->bc_blkno == blkno && bcp->bc_len == len)
  1890. return bcp;
  1891. }
  1892. /*
  1893. * We didn't find a corresponding entry in the table, so return 0 so
  1894. * that the buffer is NOT cancelled.
  1895. */
  1896. ASSERT(!(flags & XFS_BLF_CANCEL));
  1897. return NULL;
  1898. }
  1899. /*
  1900. * If the buffer is being cancelled then return 1 so that it will be cancelled,
  1901. * otherwise return 0. If the buffer is actually a buffer cancel item
  1902. * (XFS_BLF_CANCEL is set), then decrement the refcount on the entry in the
  1903. * table and remove it from the table if this is the last reference.
  1904. *
  1905. * We remove the cancel record from the table when we encounter its last
  1906. * occurrence in the log so that if the same buffer is re-used again after its
  1907. * last cancellation we actually replay the changes made at that point.
  1908. */
  1909. STATIC int
  1910. xlog_check_buffer_cancelled(
  1911. struct xlog *log,
  1912. xfs_daddr_t blkno,
  1913. uint len,
  1914. unsigned short flags)
  1915. {
  1916. struct xfs_buf_cancel *bcp;
  1917. bcp = xlog_peek_buffer_cancelled(log, blkno, len, flags);
  1918. if (!bcp)
  1919. return 0;
  1920. /*
  1921. * We've go a match, so return 1 so that the recovery of this buffer
  1922. * is cancelled. If this buffer is actually a buffer cancel log
  1923. * item, then decrement the refcount on the one in the table and
  1924. * remove it if this is the last reference.
  1925. */
  1926. if (flags & XFS_BLF_CANCEL) {
  1927. if (--bcp->bc_refcount == 0) {
  1928. list_del(&bcp->bc_list);
  1929. kmem_free(bcp);
  1930. }
  1931. }
  1932. return 1;
  1933. }
  1934. /*
  1935. * Perform recovery for a buffer full of inodes. In these buffers, the only
  1936. * data which should be recovered is that which corresponds to the
  1937. * di_next_unlinked pointers in the on disk inode structures. The rest of the
  1938. * data for the inodes is always logged through the inodes themselves rather
  1939. * than the inode buffer and is recovered in xlog_recover_inode_pass2().
  1940. *
  1941. * The only time when buffers full of inodes are fully recovered is when the
  1942. * buffer is full of newly allocated inodes. In this case the buffer will
  1943. * not be marked as an inode buffer and so will be sent to
  1944. * xlog_recover_do_reg_buffer() below during recovery.
  1945. */
  1946. STATIC int
  1947. xlog_recover_do_inode_buffer(
  1948. struct xfs_mount *mp,
  1949. xlog_recover_item_t *item,
  1950. struct xfs_buf *bp,
  1951. xfs_buf_log_format_t *buf_f)
  1952. {
  1953. int i;
  1954. int item_index = 0;
  1955. int bit = 0;
  1956. int nbits = 0;
  1957. int reg_buf_offset = 0;
  1958. int reg_buf_bytes = 0;
  1959. int next_unlinked_offset;
  1960. int inodes_per_buf;
  1961. xfs_agino_t *logged_nextp;
  1962. xfs_agino_t *buffer_nextp;
  1963. trace_xfs_log_recover_buf_inode_buf(mp->m_log, buf_f);
  1964. /*
  1965. * Post recovery validation only works properly on CRC enabled
  1966. * filesystems.
  1967. */
  1968. if (xfs_sb_version_hascrc(&mp->m_sb))
  1969. bp->b_ops = &xfs_inode_buf_ops;
  1970. inodes_per_buf = BBTOB(bp->b_io_length) >> mp->m_sb.sb_inodelog;
  1971. for (i = 0; i < inodes_per_buf; i++) {
  1972. next_unlinked_offset = (i * mp->m_sb.sb_inodesize) +
  1973. offsetof(xfs_dinode_t, di_next_unlinked);
  1974. while (next_unlinked_offset >=
  1975. (reg_buf_offset + reg_buf_bytes)) {
  1976. /*
  1977. * The next di_next_unlinked field is beyond
  1978. * the current logged region. Find the next
  1979. * logged region that contains or is beyond
  1980. * the current di_next_unlinked field.
  1981. */
  1982. bit += nbits;
  1983. bit = xfs_next_bit(buf_f->blf_data_map,
  1984. buf_f->blf_map_size, bit);
  1985. /*
  1986. * If there are no more logged regions in the
  1987. * buffer, then we're done.
  1988. */
  1989. if (bit == -1)
  1990. return 0;
  1991. nbits = xfs_contig_bits(buf_f->blf_data_map,
  1992. buf_f->blf_map_size, bit);
  1993. ASSERT(nbits > 0);
  1994. reg_buf_offset = bit << XFS_BLF_SHIFT;
  1995. reg_buf_bytes = nbits << XFS_BLF_SHIFT;
  1996. item_index++;
  1997. }
  1998. /*
  1999. * If the current logged region starts after the current
  2000. * di_next_unlinked field, then move on to the next
  2001. * di_next_unlinked field.
  2002. */
  2003. if (next_unlinked_offset < reg_buf_offset)
  2004. continue;
  2005. ASSERT(item->ri_buf[item_index].i_addr != NULL);
  2006. ASSERT((item->ri_buf[item_index].i_len % XFS_BLF_CHUNK) == 0);
  2007. ASSERT((reg_buf_offset + reg_buf_bytes) <=
  2008. BBTOB(bp->b_io_length));
  2009. /*
  2010. * The current logged region contains a copy of the
  2011. * current di_next_unlinked field. Extract its value
  2012. * and copy it to the buffer copy.
  2013. */
  2014. logged_nextp = item->ri_buf[item_index].i_addr +
  2015. next_unlinked_offset - reg_buf_offset;
  2016. if (unlikely(*logged_nextp == 0)) {
  2017. xfs_alert(mp,
  2018. "Bad inode buffer log record (ptr = "PTR_FMT", bp = "PTR_FMT"). "
  2019. "Trying to replay bad (0) inode di_next_unlinked field.",
  2020. item, bp);
  2021. XFS_ERROR_REPORT("xlog_recover_do_inode_buf",
  2022. XFS_ERRLEVEL_LOW, mp);
  2023. return -EFSCORRUPTED;
  2024. }
  2025. buffer_nextp = xfs_buf_offset(bp, next_unlinked_offset);
  2026. *buffer_nextp = *logged_nextp;
  2027. /*
  2028. * If necessary, recalculate the CRC in the on-disk inode. We
  2029. * have to leave the inode in a consistent state for whoever
  2030. * reads it next....
  2031. */
  2032. xfs_dinode_calc_crc(mp,
  2033. xfs_buf_offset(bp, i * mp->m_sb.sb_inodesize));
  2034. }
  2035. return 0;
  2036. }
  2037. /*
  2038. * V5 filesystems know the age of the buffer on disk being recovered. We can
  2039. * have newer objects on disk than we are replaying, and so for these cases we
  2040. * don't want to replay the current change as that will make the buffer contents
  2041. * temporarily invalid on disk.
  2042. *
  2043. * The magic number might not match the buffer type we are going to recover
  2044. * (e.g. reallocated blocks), so we ignore the xfs_buf_log_format flags. Hence
  2045. * extract the LSN of the existing object in the buffer based on it's current
  2046. * magic number. If we don't recognise the magic number in the buffer, then
  2047. * return a LSN of -1 so that the caller knows it was an unrecognised block and
  2048. * so can recover the buffer.
  2049. *
  2050. * Note: we cannot rely solely on magic number matches to determine that the
  2051. * buffer has a valid LSN - we also need to verify that it belongs to this
  2052. * filesystem, so we need to extract the object's LSN and compare it to that
  2053. * which we read from the superblock. If the UUIDs don't match, then we've got a
  2054. * stale metadata block from an old filesystem instance that we need to recover
  2055. * over the top of.
  2056. */
  2057. static xfs_lsn_t
  2058. xlog_recover_get_buf_lsn(
  2059. struct xfs_mount *mp,
  2060. struct xfs_buf *bp)
  2061. {
  2062. uint32_t magic32;
  2063. uint16_t magic16;
  2064. uint16_t magicda;
  2065. void *blk = bp->b_addr;
  2066. uuid_t *uuid;
  2067. xfs_lsn_t lsn = -1;
  2068. /* v4 filesystems always recover immediately */
  2069. if (!xfs_sb_version_hascrc(&mp->m_sb))
  2070. goto recover_immediately;
  2071. magic32 = be32_to_cpu(*(__be32 *)blk);
  2072. switch (magic32) {
  2073. case XFS_ABTB_CRC_MAGIC:
  2074. case XFS_ABTC_CRC_MAGIC:
  2075. case XFS_ABTB_MAGIC:
  2076. case XFS_ABTC_MAGIC:
  2077. case XFS_RMAP_CRC_MAGIC:
  2078. case XFS_REFC_CRC_MAGIC:
  2079. case XFS_IBT_CRC_MAGIC:
  2080. case XFS_IBT_MAGIC: {
  2081. struct xfs_btree_block *btb = blk;
  2082. lsn = be64_to_cpu(btb->bb_u.s.bb_lsn);
  2083. uuid = &btb->bb_u.s.bb_uuid;
  2084. break;
  2085. }
  2086. case XFS_BMAP_CRC_MAGIC:
  2087. case XFS_BMAP_MAGIC: {
  2088. struct xfs_btree_block *btb = blk;
  2089. lsn = be64_to_cpu(btb->bb_u.l.bb_lsn);
  2090. uuid = &btb->bb_u.l.bb_uuid;
  2091. break;
  2092. }
  2093. case XFS_AGF_MAGIC:
  2094. lsn = be64_to_cpu(((struct xfs_agf *)blk)->agf_lsn);
  2095. uuid = &((struct xfs_agf *)blk)->agf_uuid;
  2096. break;
  2097. case XFS_AGFL_MAGIC:
  2098. lsn = be64_to_cpu(((struct xfs_agfl *)blk)->agfl_lsn);
  2099. uuid = &((struct xfs_agfl *)blk)->agfl_uuid;
  2100. break;
  2101. case XFS_AGI_MAGIC:
  2102. lsn = be64_to_cpu(((struct xfs_agi *)blk)->agi_lsn);
  2103. uuid = &((struct xfs_agi *)blk)->agi_uuid;
  2104. break;
  2105. case XFS_SYMLINK_MAGIC:
  2106. lsn = be64_to_cpu(((struct xfs_dsymlink_hdr *)blk)->sl_lsn);
  2107. uuid = &((struct xfs_dsymlink_hdr *)blk)->sl_uuid;
  2108. break;
  2109. case XFS_DIR3_BLOCK_MAGIC:
  2110. case XFS_DIR3_DATA_MAGIC:
  2111. case XFS_DIR3_FREE_MAGIC:
  2112. lsn = be64_to_cpu(((struct xfs_dir3_blk_hdr *)blk)->lsn);
  2113. uuid = &((struct xfs_dir3_blk_hdr *)blk)->uuid;
  2114. break;
  2115. case XFS_ATTR3_RMT_MAGIC:
  2116. /*
  2117. * Remote attr blocks are written synchronously, rather than
  2118. * being logged. That means they do not contain a valid LSN
  2119. * (i.e. transactionally ordered) in them, and hence any time we
  2120. * see a buffer to replay over the top of a remote attribute
  2121. * block we should simply do so.
  2122. */
  2123. goto recover_immediately;
  2124. case XFS_SB_MAGIC:
  2125. /*
  2126. * superblock uuids are magic. We may or may not have a
  2127. * sb_meta_uuid on disk, but it will be set in the in-core
  2128. * superblock. We set the uuid pointer for verification
  2129. * according to the superblock feature mask to ensure we check
  2130. * the relevant UUID in the superblock.
  2131. */
  2132. lsn = be64_to_cpu(((struct xfs_dsb *)blk)->sb_lsn);
  2133. if (xfs_sb_version_hasmetauuid(&mp->m_sb))
  2134. uuid = &((struct xfs_dsb *)blk)->sb_meta_uuid;
  2135. else
  2136. uuid = &((struct xfs_dsb *)blk)->sb_uuid;
  2137. break;
  2138. default:
  2139. break;
  2140. }
  2141. if (lsn != (xfs_lsn_t)-1) {
  2142. if (!uuid_equal(&mp->m_sb.sb_meta_uuid, uuid))
  2143. goto recover_immediately;
  2144. return lsn;
  2145. }
  2146. magicda = be16_to_cpu(((struct xfs_da_blkinfo *)blk)->magic);
  2147. switch (magicda) {
  2148. case XFS_DIR3_LEAF1_MAGIC:
  2149. case XFS_DIR3_LEAFN_MAGIC:
  2150. case XFS_DA3_NODE_MAGIC:
  2151. lsn = be64_to_cpu(((struct xfs_da3_blkinfo *)blk)->lsn);
  2152. uuid = &((struct xfs_da3_blkinfo *)blk)->uuid;
  2153. break;
  2154. default:
  2155. break;
  2156. }
  2157. if (lsn != (xfs_lsn_t)-1) {
  2158. if (!uuid_equal(&mp->m_sb.sb_uuid, uuid))
  2159. goto recover_immediately;
  2160. return lsn;
  2161. }
  2162. /*
  2163. * We do individual object checks on dquot and inode buffers as they
  2164. * have their own individual LSN records. Also, we could have a stale
  2165. * buffer here, so we have to at least recognise these buffer types.
  2166. *
  2167. * A notd complexity here is inode unlinked list processing - it logs
  2168. * the inode directly in the buffer, but we don't know which inodes have
  2169. * been modified, and there is no global buffer LSN. Hence we need to
  2170. * recover all inode buffer types immediately. This problem will be
  2171. * fixed by logical logging of the unlinked list modifications.
  2172. */
  2173. magic16 = be16_to_cpu(*(__be16 *)blk);
  2174. switch (magic16) {
  2175. case XFS_DQUOT_MAGIC:
  2176. case XFS_DINODE_MAGIC:
  2177. goto recover_immediately;
  2178. default:
  2179. break;
  2180. }
  2181. /* unknown buffer contents, recover immediately */
  2182. recover_immediately:
  2183. return (xfs_lsn_t)-1;
  2184. }
  2185. /*
  2186. * Validate the recovered buffer is of the correct type and attach the
  2187. * appropriate buffer operations to them for writeback. Magic numbers are in a
  2188. * few places:
  2189. * the first 16 bits of the buffer (inode buffer, dquot buffer),
  2190. * the first 32 bits of the buffer (most blocks),
  2191. * inside a struct xfs_da_blkinfo at the start of the buffer.
  2192. */
  2193. static void
  2194. xlog_recover_validate_buf_type(
  2195. struct xfs_mount *mp,
  2196. struct xfs_buf *bp,
  2197. xfs_buf_log_format_t *buf_f,
  2198. xfs_lsn_t current_lsn)
  2199. {
  2200. struct xfs_da_blkinfo *info = bp->b_addr;
  2201. uint32_t magic32;
  2202. uint16_t magic16;
  2203. uint16_t magicda;
  2204. char *warnmsg = NULL;
  2205. /*
  2206. * We can only do post recovery validation on items on CRC enabled
  2207. * fielsystems as we need to know when the buffer was written to be able
  2208. * to determine if we should have replayed the item. If we replay old
  2209. * metadata over a newer buffer, then it will enter a temporarily
  2210. * inconsistent state resulting in verification failures. Hence for now
  2211. * just avoid the verification stage for non-crc filesystems
  2212. */
  2213. if (!xfs_sb_version_hascrc(&mp->m_sb))
  2214. return;
  2215. magic32 = be32_to_cpu(*(__be32 *)bp->b_addr);
  2216. magic16 = be16_to_cpu(*(__be16*)bp->b_addr);
  2217. magicda = be16_to_cpu(info->magic);
  2218. switch (xfs_blft_from_flags(buf_f)) {
  2219. case XFS_BLFT_BTREE_BUF:
  2220. switch (magic32) {
  2221. case XFS_ABTB_CRC_MAGIC:
  2222. case XFS_ABTC_CRC_MAGIC:
  2223. case XFS_ABTB_MAGIC:
  2224. case XFS_ABTC_MAGIC:
  2225. bp->b_ops = &xfs_allocbt_buf_ops;
  2226. break;
  2227. case XFS_IBT_CRC_MAGIC:
  2228. case XFS_FIBT_CRC_MAGIC:
  2229. case XFS_IBT_MAGIC:
  2230. case XFS_FIBT_MAGIC:
  2231. bp->b_ops = &xfs_inobt_buf_ops;
  2232. break;
  2233. case XFS_BMAP_CRC_MAGIC:
  2234. case XFS_BMAP_MAGIC:
  2235. bp->b_ops = &xfs_bmbt_buf_ops;
  2236. break;
  2237. case XFS_RMAP_CRC_MAGIC:
  2238. bp->b_ops = &xfs_rmapbt_buf_ops;
  2239. break;
  2240. case XFS_REFC_CRC_MAGIC:
  2241. bp->b_ops = &xfs_refcountbt_buf_ops;
  2242. break;
  2243. default:
  2244. warnmsg = "Bad btree block magic!";
  2245. break;
  2246. }
  2247. break;
  2248. case XFS_BLFT_AGF_BUF:
  2249. if (magic32 != XFS_AGF_MAGIC) {
  2250. warnmsg = "Bad AGF block magic!";
  2251. break;
  2252. }
  2253. bp->b_ops = &xfs_agf_buf_ops;
  2254. break;
  2255. case XFS_BLFT_AGFL_BUF:
  2256. if (magic32 != XFS_AGFL_MAGIC) {
  2257. warnmsg = "Bad AGFL block magic!";
  2258. break;
  2259. }
  2260. bp->b_ops = &xfs_agfl_buf_ops;
  2261. break;
  2262. case XFS_BLFT_AGI_BUF:
  2263. if (magic32 != XFS_AGI_MAGIC) {
  2264. warnmsg = "Bad AGI block magic!";
  2265. break;
  2266. }
  2267. bp->b_ops = &xfs_agi_buf_ops;
  2268. break;
  2269. case XFS_BLFT_UDQUOT_BUF:
  2270. case XFS_BLFT_PDQUOT_BUF:
  2271. case XFS_BLFT_GDQUOT_BUF:
  2272. #ifdef CONFIG_XFS_QUOTA
  2273. if (magic16 != XFS_DQUOT_MAGIC) {
  2274. warnmsg = "Bad DQUOT block magic!";
  2275. break;
  2276. }
  2277. bp->b_ops = &xfs_dquot_buf_ops;
  2278. #else
  2279. xfs_alert(mp,
  2280. "Trying to recover dquots without QUOTA support built in!");
  2281. ASSERT(0);
  2282. #endif
  2283. break;
  2284. case XFS_BLFT_DINO_BUF:
  2285. if (magic16 != XFS_DINODE_MAGIC) {
  2286. warnmsg = "Bad INODE block magic!";
  2287. break;
  2288. }
  2289. bp->b_ops = &xfs_inode_buf_ops;
  2290. break;
  2291. case XFS_BLFT_SYMLINK_BUF:
  2292. if (magic32 != XFS_SYMLINK_MAGIC) {
  2293. warnmsg = "Bad symlink block magic!";
  2294. break;
  2295. }
  2296. bp->b_ops = &xfs_symlink_buf_ops;
  2297. break;
  2298. case XFS_BLFT_DIR_BLOCK_BUF:
  2299. if (magic32 != XFS_DIR2_BLOCK_MAGIC &&
  2300. magic32 != XFS_DIR3_BLOCK_MAGIC) {
  2301. warnmsg = "Bad dir block magic!";
  2302. break;
  2303. }
  2304. bp->b_ops = &xfs_dir3_block_buf_ops;
  2305. break;
  2306. case XFS_BLFT_DIR_DATA_BUF:
  2307. if (magic32 != XFS_DIR2_DATA_MAGIC &&
  2308. magic32 != XFS_DIR3_DATA_MAGIC) {
  2309. warnmsg = "Bad dir data magic!";
  2310. break;
  2311. }
  2312. bp->b_ops = &xfs_dir3_data_buf_ops;
  2313. break;
  2314. case XFS_BLFT_DIR_FREE_BUF:
  2315. if (magic32 != XFS_DIR2_FREE_MAGIC &&
  2316. magic32 != XFS_DIR3_FREE_MAGIC) {
  2317. warnmsg = "Bad dir3 free magic!";
  2318. break;
  2319. }
  2320. bp->b_ops = &xfs_dir3_free_buf_ops;
  2321. break;
  2322. case XFS_BLFT_DIR_LEAF1_BUF:
  2323. if (magicda != XFS_DIR2_LEAF1_MAGIC &&
  2324. magicda != XFS_DIR3_LEAF1_MAGIC) {
  2325. warnmsg = "Bad dir leaf1 magic!";
  2326. break;
  2327. }
  2328. bp->b_ops = &xfs_dir3_leaf1_buf_ops;
  2329. break;
  2330. case XFS_BLFT_DIR_LEAFN_BUF:
  2331. if (magicda != XFS_DIR2_LEAFN_MAGIC &&
  2332. magicda != XFS_DIR3_LEAFN_MAGIC) {
  2333. warnmsg = "Bad dir leafn magic!";
  2334. break;
  2335. }
  2336. bp->b_ops = &xfs_dir3_leafn_buf_ops;
  2337. break;
  2338. case XFS_BLFT_DA_NODE_BUF:
  2339. if (magicda != XFS_DA_NODE_MAGIC &&
  2340. magicda != XFS_DA3_NODE_MAGIC) {
  2341. warnmsg = "Bad da node magic!";
  2342. break;
  2343. }
  2344. bp->b_ops = &xfs_da3_node_buf_ops;
  2345. break;
  2346. case XFS_BLFT_ATTR_LEAF_BUF:
  2347. if (magicda != XFS_ATTR_LEAF_MAGIC &&
  2348. magicda != XFS_ATTR3_LEAF_MAGIC) {
  2349. warnmsg = "Bad attr leaf magic!";
  2350. break;
  2351. }
  2352. bp->b_ops = &xfs_attr3_leaf_buf_ops;
  2353. break;
  2354. case XFS_BLFT_ATTR_RMT_BUF:
  2355. if (magic32 != XFS_ATTR3_RMT_MAGIC) {
  2356. warnmsg = "Bad attr remote magic!";
  2357. break;
  2358. }
  2359. bp->b_ops = &xfs_attr3_rmt_buf_ops;
  2360. break;
  2361. case XFS_BLFT_SB_BUF:
  2362. if (magic32 != XFS_SB_MAGIC) {
  2363. warnmsg = "Bad SB block magic!";
  2364. break;
  2365. }
  2366. bp->b_ops = &xfs_sb_buf_ops;
  2367. break;
  2368. #ifdef CONFIG_XFS_RT
  2369. case XFS_BLFT_RTBITMAP_BUF:
  2370. case XFS_BLFT_RTSUMMARY_BUF:
  2371. /* no magic numbers for verification of RT buffers */
  2372. bp->b_ops = &xfs_rtbuf_ops;
  2373. break;
  2374. #endif /* CONFIG_XFS_RT */
  2375. default:
  2376. xfs_warn(mp, "Unknown buffer type %d!",
  2377. xfs_blft_from_flags(buf_f));
  2378. break;
  2379. }
  2380. /*
  2381. * Nothing else to do in the case of a NULL current LSN as this means
  2382. * the buffer is more recent than the change in the log and will be
  2383. * skipped.
  2384. */
  2385. if (current_lsn == NULLCOMMITLSN)
  2386. return;
  2387. if (warnmsg) {
  2388. xfs_warn(mp, warnmsg);
  2389. ASSERT(0);
  2390. }
  2391. /*
  2392. * We must update the metadata LSN of the buffer as it is written out to
  2393. * ensure that older transactions never replay over this one and corrupt
  2394. * the buffer. This can occur if log recovery is interrupted at some
  2395. * point after the current transaction completes, at which point a
  2396. * subsequent mount starts recovery from the beginning.
  2397. *
  2398. * Write verifiers update the metadata LSN from log items attached to
  2399. * the buffer. Therefore, initialize a bli purely to carry the LSN to
  2400. * the verifier. We'll clean it up in our ->iodone() callback.
  2401. */
  2402. if (bp->b_ops) {
  2403. struct xfs_buf_log_item *bip;
  2404. ASSERT(!bp->b_iodone || bp->b_iodone == xlog_recover_iodone);
  2405. bp->b_iodone = xlog_recover_iodone;
  2406. xfs_buf_item_init(bp, mp);
  2407. bip = bp->b_log_item;
  2408. bip->bli_item.li_lsn = current_lsn;
  2409. }
  2410. }
  2411. /*
  2412. * Perform a 'normal' buffer recovery. Each logged region of the
  2413. * buffer should be copied over the corresponding region in the
  2414. * given buffer. The bitmap in the buf log format structure indicates
  2415. * where to place the logged data.
  2416. */
  2417. STATIC void
  2418. xlog_recover_do_reg_buffer(
  2419. struct xfs_mount *mp,
  2420. xlog_recover_item_t *item,
  2421. struct xfs_buf *bp,
  2422. xfs_buf_log_format_t *buf_f,
  2423. xfs_lsn_t current_lsn)
  2424. {
  2425. int i;
  2426. int bit;
  2427. int nbits;
  2428. xfs_failaddr_t fa;
  2429. trace_xfs_log_recover_buf_reg_buf(mp->m_log, buf_f);
  2430. bit = 0;
  2431. i = 1; /* 0 is the buf format structure */
  2432. while (1) {
  2433. bit = xfs_next_bit(buf_f->blf_data_map,
  2434. buf_f->blf_map_size, bit);
  2435. if (bit == -1)
  2436. break;
  2437. nbits = xfs_contig_bits(buf_f->blf_data_map,
  2438. buf_f->blf_map_size, bit);
  2439. ASSERT(nbits > 0);
  2440. ASSERT(item->ri_buf[i].i_addr != NULL);
  2441. ASSERT(item->ri_buf[i].i_len % XFS_BLF_CHUNK == 0);
  2442. ASSERT(BBTOB(bp->b_io_length) >=
  2443. ((uint)bit << XFS_BLF_SHIFT) + (nbits << XFS_BLF_SHIFT));
  2444. /*
  2445. * The dirty regions logged in the buffer, even though
  2446. * contiguous, may span multiple chunks. This is because the
  2447. * dirty region may span a physical page boundary in a buffer
  2448. * and hence be split into two separate vectors for writing into
  2449. * the log. Hence we need to trim nbits back to the length of
  2450. * the current region being copied out of the log.
  2451. */
  2452. if (item->ri_buf[i].i_len < (nbits << XFS_BLF_SHIFT))
  2453. nbits = item->ri_buf[i].i_len >> XFS_BLF_SHIFT;
  2454. /*
  2455. * Do a sanity check if this is a dquot buffer. Just checking
  2456. * the first dquot in the buffer should do. XXXThis is
  2457. * probably a good thing to do for other buf types also.
  2458. */
  2459. fa = NULL;
  2460. if (buf_f->blf_flags &
  2461. (XFS_BLF_UDQUOT_BUF|XFS_BLF_PDQUOT_BUF|XFS_BLF_GDQUOT_BUF)) {
  2462. if (item->ri_buf[i].i_addr == NULL) {
  2463. xfs_alert(mp,
  2464. "XFS: NULL dquot in %s.", __func__);
  2465. goto next;
  2466. }
  2467. if (item->ri_buf[i].i_len < sizeof(xfs_disk_dquot_t)) {
  2468. xfs_alert(mp,
  2469. "XFS: dquot too small (%d) in %s.",
  2470. item->ri_buf[i].i_len, __func__);
  2471. goto next;
  2472. }
  2473. fa = xfs_dquot_verify(mp, item->ri_buf[i].i_addr,
  2474. -1, 0);
  2475. if (fa) {
  2476. xfs_alert(mp,
  2477. "dquot corrupt at %pS trying to replay into block 0x%llx",
  2478. fa, bp->b_bn);
  2479. goto next;
  2480. }
  2481. }
  2482. memcpy(xfs_buf_offset(bp,
  2483. (uint)bit << XFS_BLF_SHIFT), /* dest */
  2484. item->ri_buf[i].i_addr, /* source */
  2485. nbits<<XFS_BLF_SHIFT); /* length */
  2486. next:
  2487. i++;
  2488. bit += nbits;
  2489. }
  2490. /* Shouldn't be any more regions */
  2491. ASSERT(i == item->ri_total);
  2492. xlog_recover_validate_buf_type(mp, bp, buf_f, current_lsn);
  2493. }
  2494. /*
  2495. * Perform a dquot buffer recovery.
  2496. * Simple algorithm: if we have found a QUOTAOFF log item of the same type
  2497. * (ie. USR or GRP), then just toss this buffer away; don't recover it.
  2498. * Else, treat it as a regular buffer and do recovery.
  2499. *
  2500. * Return false if the buffer was tossed and true if we recovered the buffer to
  2501. * indicate to the caller if the buffer needs writing.
  2502. */
  2503. STATIC bool
  2504. xlog_recover_do_dquot_buffer(
  2505. struct xfs_mount *mp,
  2506. struct xlog *log,
  2507. struct xlog_recover_item *item,
  2508. struct xfs_buf *bp,
  2509. struct xfs_buf_log_format *buf_f)
  2510. {
  2511. uint type;
  2512. trace_xfs_log_recover_buf_dquot_buf(log, buf_f);
  2513. /*
  2514. * Filesystems are required to send in quota flags at mount time.
  2515. */
  2516. if (!mp->m_qflags)
  2517. return false;
  2518. type = 0;
  2519. if (buf_f->blf_flags & XFS_BLF_UDQUOT_BUF)
  2520. type |= XFS_DQ_USER;
  2521. if (buf_f->blf_flags & XFS_BLF_PDQUOT_BUF)
  2522. type |= XFS_DQ_PROJ;
  2523. if (buf_f->blf_flags & XFS_BLF_GDQUOT_BUF)
  2524. type |= XFS_DQ_GROUP;
  2525. /*
  2526. * This type of quotas was turned off, so ignore this buffer
  2527. */
  2528. if (log->l_quotaoffs_flag & type)
  2529. return false;
  2530. xlog_recover_do_reg_buffer(mp, item, bp, buf_f, NULLCOMMITLSN);
  2531. return true;
  2532. }
  2533. /*
  2534. * This routine replays a modification made to a buffer at runtime.
  2535. * There are actually two types of buffer, regular and inode, which
  2536. * are handled differently. Inode buffers are handled differently
  2537. * in that we only recover a specific set of data from them, namely
  2538. * the inode di_next_unlinked fields. This is because all other inode
  2539. * data is actually logged via inode records and any data we replay
  2540. * here which overlaps that may be stale.
  2541. *
  2542. * When meta-data buffers are freed at run time we log a buffer item
  2543. * with the XFS_BLF_CANCEL bit set to indicate that previous copies
  2544. * of the buffer in the log should not be replayed at recovery time.
  2545. * This is so that if the blocks covered by the buffer are reused for
  2546. * file data before we crash we don't end up replaying old, freed
  2547. * meta-data into a user's file.
  2548. *
  2549. * To handle the cancellation of buffer log items, we make two passes
  2550. * over the log during recovery. During the first we build a table of
  2551. * those buffers which have been cancelled, and during the second we
  2552. * only replay those buffers which do not have corresponding cancel
  2553. * records in the table. See xlog_recover_buffer_pass[1,2] above
  2554. * for more details on the implementation of the table of cancel records.
  2555. */
  2556. STATIC int
  2557. xlog_recover_buffer_pass2(
  2558. struct xlog *log,
  2559. struct list_head *buffer_list,
  2560. struct xlog_recover_item *item,
  2561. xfs_lsn_t current_lsn)
  2562. {
  2563. xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
  2564. xfs_mount_t *mp = log->l_mp;
  2565. xfs_buf_t *bp;
  2566. int error;
  2567. uint buf_flags;
  2568. xfs_lsn_t lsn;
  2569. /*
  2570. * In this pass we only want to recover all the buffers which have
  2571. * not been cancelled and are not cancellation buffers themselves.
  2572. */
  2573. if (xlog_check_buffer_cancelled(log, buf_f->blf_blkno,
  2574. buf_f->blf_len, buf_f->blf_flags)) {
  2575. trace_xfs_log_recover_buf_cancel(log, buf_f);
  2576. return 0;
  2577. }
  2578. trace_xfs_log_recover_buf_recover(log, buf_f);
  2579. buf_flags = 0;
  2580. if (buf_f->blf_flags & XFS_BLF_INODE_BUF)
  2581. buf_flags |= XBF_UNMAPPED;
  2582. bp = xfs_buf_read(mp->m_ddev_targp, buf_f->blf_blkno, buf_f->blf_len,
  2583. buf_flags, NULL);
  2584. if (!bp)
  2585. return -ENOMEM;
  2586. error = bp->b_error;
  2587. if (error) {
  2588. xfs_buf_ioerror_alert(bp, "xlog_recover_do..(read#1)");
  2589. goto out_release;
  2590. }
  2591. /*
  2592. * Recover the buffer only if we get an LSN from it and it's less than
  2593. * the lsn of the transaction we are replaying.
  2594. *
  2595. * Note that we have to be extremely careful of readahead here.
  2596. * Readahead does not attach verfiers to the buffers so if we don't
  2597. * actually do any replay after readahead because of the LSN we found
  2598. * in the buffer if more recent than that current transaction then we
  2599. * need to attach the verifier directly. Failure to do so can lead to
  2600. * future recovery actions (e.g. EFI and unlinked list recovery) can
  2601. * operate on the buffers and they won't get the verifier attached. This
  2602. * can lead to blocks on disk having the correct content but a stale
  2603. * CRC.
  2604. *
  2605. * It is safe to assume these clean buffers are currently up to date.
  2606. * If the buffer is dirtied by a later transaction being replayed, then
  2607. * the verifier will be reset to match whatever recover turns that
  2608. * buffer into.
  2609. */
  2610. lsn = xlog_recover_get_buf_lsn(mp, bp);
  2611. if (lsn && lsn != -1 && XFS_LSN_CMP(lsn, current_lsn) >= 0) {
  2612. trace_xfs_log_recover_buf_skip(log, buf_f);
  2613. xlog_recover_validate_buf_type(mp, bp, buf_f, NULLCOMMITLSN);
  2614. goto out_release;
  2615. }
  2616. if (buf_f->blf_flags & XFS_BLF_INODE_BUF) {
  2617. error = xlog_recover_do_inode_buffer(mp, item, bp, buf_f);
  2618. if (error)
  2619. goto out_release;
  2620. } else if (buf_f->blf_flags &
  2621. (XFS_BLF_UDQUOT_BUF|XFS_BLF_PDQUOT_BUF|XFS_BLF_GDQUOT_BUF)) {
  2622. bool dirty;
  2623. dirty = xlog_recover_do_dquot_buffer(mp, log, item, bp, buf_f);
  2624. if (!dirty)
  2625. goto out_release;
  2626. } else {
  2627. xlog_recover_do_reg_buffer(mp, item, bp, buf_f, current_lsn);
  2628. }
  2629. /*
  2630. * Perform delayed write on the buffer. Asynchronous writes will be
  2631. * slower when taking into account all the buffers to be flushed.
  2632. *
  2633. * Also make sure that only inode buffers with good sizes stay in
  2634. * the buffer cache. The kernel moves inodes in buffers of 1 block
  2635. * or mp->m_inode_cluster_size bytes, whichever is bigger. The inode
  2636. * buffers in the log can be a different size if the log was generated
  2637. * by an older kernel using unclustered inode buffers or a newer kernel
  2638. * running with a different inode cluster size. Regardless, if the
  2639. * the inode buffer size isn't max(blocksize, mp->m_inode_cluster_size)
  2640. * for *our* value of mp->m_inode_cluster_size, then we need to keep
  2641. * the buffer out of the buffer cache so that the buffer won't
  2642. * overlap with future reads of those inodes.
  2643. */
  2644. if (XFS_DINODE_MAGIC ==
  2645. be16_to_cpu(*((__be16 *)xfs_buf_offset(bp, 0))) &&
  2646. (BBTOB(bp->b_io_length) != max(log->l_mp->m_sb.sb_blocksize,
  2647. (uint32_t)log->l_mp->m_inode_cluster_size))) {
  2648. xfs_buf_stale(bp);
  2649. error = xfs_bwrite(bp);
  2650. } else {
  2651. ASSERT(bp->b_target->bt_mount == mp);
  2652. bp->b_iodone = xlog_recover_iodone;
  2653. xfs_buf_delwri_queue(bp, buffer_list);
  2654. }
  2655. out_release:
  2656. xfs_buf_relse(bp);
  2657. return error;
  2658. }
  2659. /*
  2660. * Inode fork owner changes
  2661. *
  2662. * If we have been told that we have to reparent the inode fork, it's because an
  2663. * extent swap operation on a CRC enabled filesystem has been done and we are
  2664. * replaying it. We need to walk the BMBT of the appropriate fork and change the
  2665. * owners of it.
  2666. *
  2667. * The complexity here is that we don't have an inode context to work with, so
  2668. * after we've replayed the inode we need to instantiate one. This is where the
  2669. * fun begins.
  2670. *
  2671. * We are in the middle of log recovery, so we can't run transactions. That
  2672. * means we cannot use cache coherent inode instantiation via xfs_iget(), as
  2673. * that will result in the corresponding iput() running the inode through
  2674. * xfs_inactive(). If we've just replayed an inode core that changes the link
  2675. * count to zero (i.e. it's been unlinked), then xfs_inactive() will run
  2676. * transactions (bad!).
  2677. *
  2678. * So, to avoid this, we instantiate an inode directly from the inode core we've
  2679. * just recovered. We have the buffer still locked, and all we really need to
  2680. * instantiate is the inode core and the forks being modified. We can do this
  2681. * manually, then run the inode btree owner change, and then tear down the
  2682. * xfs_inode without having to run any transactions at all.
  2683. *
  2684. * Also, because we don't have a transaction context available here but need to
  2685. * gather all the buffers we modify for writeback so we pass the buffer_list
  2686. * instead for the operation to use.
  2687. */
  2688. STATIC int
  2689. xfs_recover_inode_owner_change(
  2690. struct xfs_mount *mp,
  2691. struct xfs_dinode *dip,
  2692. struct xfs_inode_log_format *in_f,
  2693. struct list_head *buffer_list)
  2694. {
  2695. struct xfs_inode *ip;
  2696. int error;
  2697. ASSERT(in_f->ilf_fields & (XFS_ILOG_DOWNER|XFS_ILOG_AOWNER));
  2698. ip = xfs_inode_alloc(mp, in_f->ilf_ino);
  2699. if (!ip)
  2700. return -ENOMEM;
  2701. /* instantiate the inode */
  2702. xfs_inode_from_disk(ip, dip);
  2703. ASSERT(ip->i_d.di_version >= 3);
  2704. error = xfs_iformat_fork(ip, dip);
  2705. if (error)
  2706. goto out_free_ip;
  2707. if (!xfs_inode_verify_forks(ip)) {
  2708. error = -EFSCORRUPTED;
  2709. goto out_free_ip;
  2710. }
  2711. if (in_f->ilf_fields & XFS_ILOG_DOWNER) {
  2712. ASSERT(in_f->ilf_fields & XFS_ILOG_DBROOT);
  2713. error = xfs_bmbt_change_owner(NULL, ip, XFS_DATA_FORK,
  2714. ip->i_ino, buffer_list);
  2715. if (error)
  2716. goto out_free_ip;
  2717. }
  2718. if (in_f->ilf_fields & XFS_ILOG_AOWNER) {
  2719. ASSERT(in_f->ilf_fields & XFS_ILOG_ABROOT);
  2720. error = xfs_bmbt_change_owner(NULL, ip, XFS_ATTR_FORK,
  2721. ip->i_ino, buffer_list);
  2722. if (error)
  2723. goto out_free_ip;
  2724. }
  2725. out_free_ip:
  2726. xfs_inode_free(ip);
  2727. return error;
  2728. }
  2729. STATIC int
  2730. xlog_recover_inode_pass2(
  2731. struct xlog *log,
  2732. struct list_head *buffer_list,
  2733. struct xlog_recover_item *item,
  2734. xfs_lsn_t current_lsn)
  2735. {
  2736. struct xfs_inode_log_format *in_f;
  2737. xfs_mount_t *mp = log->l_mp;
  2738. xfs_buf_t *bp;
  2739. xfs_dinode_t *dip;
  2740. int len;
  2741. char *src;
  2742. char *dest;
  2743. int error;
  2744. int attr_index;
  2745. uint fields;
  2746. struct xfs_log_dinode *ldip;
  2747. uint isize;
  2748. int need_free = 0;
  2749. if (item->ri_buf[0].i_len == sizeof(struct xfs_inode_log_format)) {
  2750. in_f = item->ri_buf[0].i_addr;
  2751. } else {
  2752. in_f = kmem_alloc(sizeof(struct xfs_inode_log_format), KM_SLEEP);
  2753. need_free = 1;
  2754. error = xfs_inode_item_format_convert(&item->ri_buf[0], in_f);
  2755. if (error)
  2756. goto error;
  2757. }
  2758. /*
  2759. * Inode buffers can be freed, look out for it,
  2760. * and do not replay the inode.
  2761. */
  2762. if (xlog_check_buffer_cancelled(log, in_f->ilf_blkno,
  2763. in_f->ilf_len, 0)) {
  2764. error = 0;
  2765. trace_xfs_log_recover_inode_cancel(log, in_f);
  2766. goto error;
  2767. }
  2768. trace_xfs_log_recover_inode_recover(log, in_f);
  2769. bp = xfs_buf_read(mp->m_ddev_targp, in_f->ilf_blkno, in_f->ilf_len, 0,
  2770. &xfs_inode_buf_ops);
  2771. if (!bp) {
  2772. error = -ENOMEM;
  2773. goto error;
  2774. }
  2775. error = bp->b_error;
  2776. if (error) {
  2777. xfs_buf_ioerror_alert(bp, "xlog_recover_do..(read#2)");
  2778. goto out_release;
  2779. }
  2780. ASSERT(in_f->ilf_fields & XFS_ILOG_CORE);
  2781. dip = xfs_buf_offset(bp, in_f->ilf_boffset);
  2782. /*
  2783. * Make sure the place we're flushing out to really looks
  2784. * like an inode!
  2785. */
  2786. if (unlikely(dip->di_magic != cpu_to_be16(XFS_DINODE_MAGIC))) {
  2787. xfs_alert(mp,
  2788. "%s: Bad inode magic number, dip = "PTR_FMT", dino bp = "PTR_FMT", ino = %Ld",
  2789. __func__, dip, bp, in_f->ilf_ino);
  2790. XFS_ERROR_REPORT("xlog_recover_inode_pass2(1)",
  2791. XFS_ERRLEVEL_LOW, mp);
  2792. error = -EFSCORRUPTED;
  2793. goto out_release;
  2794. }
  2795. ldip = item->ri_buf[1].i_addr;
  2796. if (unlikely(ldip->di_magic != XFS_DINODE_MAGIC)) {
  2797. xfs_alert(mp,
  2798. "%s: Bad inode log record, rec ptr "PTR_FMT", ino %Ld",
  2799. __func__, item, in_f->ilf_ino);
  2800. XFS_ERROR_REPORT("xlog_recover_inode_pass2(2)",
  2801. XFS_ERRLEVEL_LOW, mp);
  2802. error = -EFSCORRUPTED;
  2803. goto out_release;
  2804. }
  2805. /*
  2806. * If the inode has an LSN in it, recover the inode only if it's less
  2807. * than the lsn of the transaction we are replaying. Note: we still
  2808. * need to replay an owner change even though the inode is more recent
  2809. * than the transaction as there is no guarantee that all the btree
  2810. * blocks are more recent than this transaction, too.
  2811. */
  2812. if (dip->di_version >= 3) {
  2813. xfs_lsn_t lsn = be64_to_cpu(dip->di_lsn);
  2814. if (lsn && lsn != -1 && XFS_LSN_CMP(lsn, current_lsn) >= 0) {
  2815. trace_xfs_log_recover_inode_skip(log, in_f);
  2816. error = 0;
  2817. goto out_owner_change;
  2818. }
  2819. }
  2820. /*
  2821. * di_flushiter is only valid for v1/2 inodes. All changes for v3 inodes
  2822. * are transactional and if ordering is necessary we can determine that
  2823. * more accurately by the LSN field in the V3 inode core. Don't trust
  2824. * the inode versions we might be changing them here - use the
  2825. * superblock flag to determine whether we need to look at di_flushiter
  2826. * to skip replay when the on disk inode is newer than the log one
  2827. */
  2828. if (!xfs_sb_version_hascrc(&mp->m_sb) &&
  2829. ldip->di_flushiter < be16_to_cpu(dip->di_flushiter)) {
  2830. /*
  2831. * Deal with the wrap case, DI_MAX_FLUSH is less
  2832. * than smaller numbers
  2833. */
  2834. if (be16_to_cpu(dip->di_flushiter) == DI_MAX_FLUSH &&
  2835. ldip->di_flushiter < (DI_MAX_FLUSH >> 1)) {
  2836. /* do nothing */
  2837. } else {
  2838. trace_xfs_log_recover_inode_skip(log, in_f);
  2839. error = 0;
  2840. goto out_release;
  2841. }
  2842. }
  2843. /* Take the opportunity to reset the flush iteration count */
  2844. ldip->di_flushiter = 0;
  2845. if (unlikely(S_ISREG(ldip->di_mode))) {
  2846. if ((ldip->di_format != XFS_DINODE_FMT_EXTENTS) &&
  2847. (ldip->di_format != XFS_DINODE_FMT_BTREE)) {
  2848. XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(3)",
  2849. XFS_ERRLEVEL_LOW, mp, ldip,
  2850. sizeof(*ldip));
  2851. xfs_alert(mp,
  2852. "%s: Bad regular inode log record, rec ptr "PTR_FMT", "
  2853. "ino ptr = "PTR_FMT", ino bp = "PTR_FMT", ino %Ld",
  2854. __func__, item, dip, bp, in_f->ilf_ino);
  2855. error = -EFSCORRUPTED;
  2856. goto out_release;
  2857. }
  2858. } else if (unlikely(S_ISDIR(ldip->di_mode))) {
  2859. if ((ldip->di_format != XFS_DINODE_FMT_EXTENTS) &&
  2860. (ldip->di_format != XFS_DINODE_FMT_BTREE) &&
  2861. (ldip->di_format != XFS_DINODE_FMT_LOCAL)) {
  2862. XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(4)",
  2863. XFS_ERRLEVEL_LOW, mp, ldip,
  2864. sizeof(*ldip));
  2865. xfs_alert(mp,
  2866. "%s: Bad dir inode log record, rec ptr "PTR_FMT", "
  2867. "ino ptr = "PTR_FMT", ino bp = "PTR_FMT", ino %Ld",
  2868. __func__, item, dip, bp, in_f->ilf_ino);
  2869. error = -EFSCORRUPTED;
  2870. goto out_release;
  2871. }
  2872. }
  2873. if (unlikely(ldip->di_nextents + ldip->di_anextents > ldip->di_nblocks)){
  2874. XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(5)",
  2875. XFS_ERRLEVEL_LOW, mp, ldip,
  2876. sizeof(*ldip));
  2877. xfs_alert(mp,
  2878. "%s: Bad inode log record, rec ptr "PTR_FMT", dino ptr "PTR_FMT", "
  2879. "dino bp "PTR_FMT", ino %Ld, total extents = %d, nblocks = %Ld",
  2880. __func__, item, dip, bp, in_f->ilf_ino,
  2881. ldip->di_nextents + ldip->di_anextents,
  2882. ldip->di_nblocks);
  2883. error = -EFSCORRUPTED;
  2884. goto out_release;
  2885. }
  2886. if (unlikely(ldip->di_forkoff > mp->m_sb.sb_inodesize)) {
  2887. XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(6)",
  2888. XFS_ERRLEVEL_LOW, mp, ldip,
  2889. sizeof(*ldip));
  2890. xfs_alert(mp,
  2891. "%s: Bad inode log record, rec ptr "PTR_FMT", dino ptr "PTR_FMT", "
  2892. "dino bp "PTR_FMT", ino %Ld, forkoff 0x%x", __func__,
  2893. item, dip, bp, in_f->ilf_ino, ldip->di_forkoff);
  2894. error = -EFSCORRUPTED;
  2895. goto out_release;
  2896. }
  2897. isize = xfs_log_dinode_size(ldip->di_version);
  2898. if (unlikely(item->ri_buf[1].i_len > isize)) {
  2899. XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(7)",
  2900. XFS_ERRLEVEL_LOW, mp, ldip,
  2901. sizeof(*ldip));
  2902. xfs_alert(mp,
  2903. "%s: Bad inode log record length %d, rec ptr "PTR_FMT,
  2904. __func__, item->ri_buf[1].i_len, item);
  2905. error = -EFSCORRUPTED;
  2906. goto out_release;
  2907. }
  2908. /* recover the log dinode inode into the on disk inode */
  2909. xfs_log_dinode_to_disk(ldip, dip);
  2910. fields = in_f->ilf_fields;
  2911. if (fields & XFS_ILOG_DEV)
  2912. xfs_dinode_put_rdev(dip, in_f->ilf_u.ilfu_rdev);
  2913. if (in_f->ilf_size == 2)
  2914. goto out_owner_change;
  2915. len = item->ri_buf[2].i_len;
  2916. src = item->ri_buf[2].i_addr;
  2917. ASSERT(in_f->ilf_size <= 4);
  2918. ASSERT((in_f->ilf_size == 3) || (fields & XFS_ILOG_AFORK));
  2919. ASSERT(!(fields & XFS_ILOG_DFORK) ||
  2920. (len == in_f->ilf_dsize));
  2921. switch (fields & XFS_ILOG_DFORK) {
  2922. case XFS_ILOG_DDATA:
  2923. case XFS_ILOG_DEXT:
  2924. memcpy(XFS_DFORK_DPTR(dip), src, len);
  2925. break;
  2926. case XFS_ILOG_DBROOT:
  2927. xfs_bmbt_to_bmdr(mp, (struct xfs_btree_block *)src, len,
  2928. (xfs_bmdr_block_t *)XFS_DFORK_DPTR(dip),
  2929. XFS_DFORK_DSIZE(dip, mp));
  2930. break;
  2931. default:
  2932. /*
  2933. * There are no data fork flags set.
  2934. */
  2935. ASSERT((fields & XFS_ILOG_DFORK) == 0);
  2936. break;
  2937. }
  2938. /*
  2939. * If we logged any attribute data, recover it. There may or
  2940. * may not have been any other non-core data logged in this
  2941. * transaction.
  2942. */
  2943. if (in_f->ilf_fields & XFS_ILOG_AFORK) {
  2944. if (in_f->ilf_fields & XFS_ILOG_DFORK) {
  2945. attr_index = 3;
  2946. } else {
  2947. attr_index = 2;
  2948. }
  2949. len = item->ri_buf[attr_index].i_len;
  2950. src = item->ri_buf[attr_index].i_addr;
  2951. ASSERT(len == in_f->ilf_asize);
  2952. switch (in_f->ilf_fields & XFS_ILOG_AFORK) {
  2953. case XFS_ILOG_ADATA:
  2954. case XFS_ILOG_AEXT:
  2955. dest = XFS_DFORK_APTR(dip);
  2956. ASSERT(len <= XFS_DFORK_ASIZE(dip, mp));
  2957. memcpy(dest, src, len);
  2958. break;
  2959. case XFS_ILOG_ABROOT:
  2960. dest = XFS_DFORK_APTR(dip);
  2961. xfs_bmbt_to_bmdr(mp, (struct xfs_btree_block *)src,
  2962. len, (xfs_bmdr_block_t*)dest,
  2963. XFS_DFORK_ASIZE(dip, mp));
  2964. break;
  2965. default:
  2966. xfs_warn(log->l_mp, "%s: Invalid flag", __func__);
  2967. ASSERT(0);
  2968. error = -EIO;
  2969. goto out_release;
  2970. }
  2971. }
  2972. out_owner_change:
  2973. /* Recover the swapext owner change unless inode has been deleted */
  2974. if ((in_f->ilf_fields & (XFS_ILOG_DOWNER|XFS_ILOG_AOWNER)) &&
  2975. (dip->di_mode != 0))
  2976. error = xfs_recover_inode_owner_change(mp, dip, in_f,
  2977. buffer_list);
  2978. /* re-generate the checksum. */
  2979. xfs_dinode_calc_crc(log->l_mp, dip);
  2980. ASSERT(bp->b_target->bt_mount == mp);
  2981. bp->b_iodone = xlog_recover_iodone;
  2982. xfs_buf_delwri_queue(bp, buffer_list);
  2983. out_release:
  2984. xfs_buf_relse(bp);
  2985. error:
  2986. if (need_free)
  2987. kmem_free(in_f);
  2988. return error;
  2989. }
  2990. /*
  2991. * Recover QUOTAOFF records. We simply make a note of it in the xlog
  2992. * structure, so that we know not to do any dquot item or dquot buffer recovery,
  2993. * of that type.
  2994. */
  2995. STATIC int
  2996. xlog_recover_quotaoff_pass1(
  2997. struct xlog *log,
  2998. struct xlog_recover_item *item)
  2999. {
  3000. xfs_qoff_logformat_t *qoff_f = item->ri_buf[0].i_addr;
  3001. ASSERT(qoff_f);
  3002. /*
  3003. * The logitem format's flag tells us if this was user quotaoff,
  3004. * group/project quotaoff or both.
  3005. */
  3006. if (qoff_f->qf_flags & XFS_UQUOTA_ACCT)
  3007. log->l_quotaoffs_flag |= XFS_DQ_USER;
  3008. if (qoff_f->qf_flags & XFS_PQUOTA_ACCT)
  3009. log->l_quotaoffs_flag |= XFS_DQ_PROJ;
  3010. if (qoff_f->qf_flags & XFS_GQUOTA_ACCT)
  3011. log->l_quotaoffs_flag |= XFS_DQ_GROUP;
  3012. return 0;
  3013. }
  3014. /*
  3015. * Recover a dquot record
  3016. */
  3017. STATIC int
  3018. xlog_recover_dquot_pass2(
  3019. struct xlog *log,
  3020. struct list_head *buffer_list,
  3021. struct xlog_recover_item *item,
  3022. xfs_lsn_t current_lsn)
  3023. {
  3024. xfs_mount_t *mp = log->l_mp;
  3025. xfs_buf_t *bp;
  3026. struct xfs_disk_dquot *ddq, *recddq;
  3027. xfs_failaddr_t fa;
  3028. int error;
  3029. xfs_dq_logformat_t *dq_f;
  3030. uint type;
  3031. /*
  3032. * Filesystems are required to send in quota flags at mount time.
  3033. */
  3034. if (mp->m_qflags == 0)
  3035. return 0;
  3036. recddq = item->ri_buf[1].i_addr;
  3037. if (recddq == NULL) {
  3038. xfs_alert(log->l_mp, "NULL dquot in %s.", __func__);
  3039. return -EIO;
  3040. }
  3041. if (item->ri_buf[1].i_len < sizeof(xfs_disk_dquot_t)) {
  3042. xfs_alert(log->l_mp, "dquot too small (%d) in %s.",
  3043. item->ri_buf[1].i_len, __func__);
  3044. return -EIO;
  3045. }
  3046. /*
  3047. * This type of quotas was turned off, so ignore this record.
  3048. */
  3049. type = recddq->d_flags & (XFS_DQ_USER | XFS_DQ_PROJ | XFS_DQ_GROUP);
  3050. ASSERT(type);
  3051. if (log->l_quotaoffs_flag & type)
  3052. return 0;
  3053. /*
  3054. * At this point we know that quota was _not_ turned off.
  3055. * Since the mount flags are not indicating to us otherwise, this
  3056. * must mean that quota is on, and the dquot needs to be replayed.
  3057. * Remember that we may not have fully recovered the superblock yet,
  3058. * so we can't do the usual trick of looking at the SB quota bits.
  3059. *
  3060. * The other possibility, of course, is that the quota subsystem was
  3061. * removed since the last mount - ENOSYS.
  3062. */
  3063. dq_f = item->ri_buf[0].i_addr;
  3064. ASSERT(dq_f);
  3065. fa = xfs_dquot_verify(mp, recddq, dq_f->qlf_id, 0);
  3066. if (fa) {
  3067. xfs_alert(mp, "corrupt dquot ID 0x%x in log at %pS",
  3068. dq_f->qlf_id, fa);
  3069. return -EIO;
  3070. }
  3071. ASSERT(dq_f->qlf_len == 1);
  3072. /*
  3073. * At this point we are assuming that the dquots have been allocated
  3074. * and hence the buffer has valid dquots stamped in it. It should,
  3075. * therefore, pass verifier validation. If the dquot is bad, then the
  3076. * we'll return an error here, so we don't need to specifically check
  3077. * the dquot in the buffer after the verifier has run.
  3078. */
  3079. error = xfs_trans_read_buf(mp, NULL, mp->m_ddev_targp, dq_f->qlf_blkno,
  3080. XFS_FSB_TO_BB(mp, dq_f->qlf_len), 0, &bp,
  3081. &xfs_dquot_buf_ops);
  3082. if (error)
  3083. return error;
  3084. ASSERT(bp);
  3085. ddq = xfs_buf_offset(bp, dq_f->qlf_boffset);
  3086. /*
  3087. * If the dquot has an LSN in it, recover the dquot only if it's less
  3088. * than the lsn of the transaction we are replaying.
  3089. */
  3090. if (xfs_sb_version_hascrc(&mp->m_sb)) {
  3091. struct xfs_dqblk *dqb = (struct xfs_dqblk *)ddq;
  3092. xfs_lsn_t lsn = be64_to_cpu(dqb->dd_lsn);
  3093. if (lsn && lsn != -1 && XFS_LSN_CMP(lsn, current_lsn) >= 0) {
  3094. goto out_release;
  3095. }
  3096. }
  3097. memcpy(ddq, recddq, item->ri_buf[1].i_len);
  3098. if (xfs_sb_version_hascrc(&mp->m_sb)) {
  3099. xfs_update_cksum((char *)ddq, sizeof(struct xfs_dqblk),
  3100. XFS_DQUOT_CRC_OFF);
  3101. }
  3102. ASSERT(dq_f->qlf_size == 2);
  3103. ASSERT(bp->b_target->bt_mount == mp);
  3104. bp->b_iodone = xlog_recover_iodone;
  3105. xfs_buf_delwri_queue(bp, buffer_list);
  3106. out_release:
  3107. xfs_buf_relse(bp);
  3108. return 0;
  3109. }
  3110. /*
  3111. * This routine is called to create an in-core extent free intent
  3112. * item from the efi format structure which was logged on disk.
  3113. * It allocates an in-core efi, copies the extents from the format
  3114. * structure into it, and adds the efi to the AIL with the given
  3115. * LSN.
  3116. */
  3117. STATIC int
  3118. xlog_recover_efi_pass2(
  3119. struct xlog *log,
  3120. struct xlog_recover_item *item,
  3121. xfs_lsn_t lsn)
  3122. {
  3123. int error;
  3124. struct xfs_mount *mp = log->l_mp;
  3125. struct xfs_efi_log_item *efip;
  3126. struct xfs_efi_log_format *efi_formatp;
  3127. efi_formatp = item->ri_buf[0].i_addr;
  3128. efip = xfs_efi_init(mp, efi_formatp->efi_nextents);
  3129. error = xfs_efi_copy_format(&item->ri_buf[0], &efip->efi_format);
  3130. if (error) {
  3131. xfs_efi_item_free(efip);
  3132. return error;
  3133. }
  3134. atomic_set(&efip->efi_next_extent, efi_formatp->efi_nextents);
  3135. spin_lock(&log->l_ailp->ail_lock);
  3136. /*
  3137. * The EFI has two references. One for the EFD and one for EFI to ensure
  3138. * it makes it into the AIL. Insert the EFI into the AIL directly and
  3139. * drop the EFI reference. Note that xfs_trans_ail_update() drops the
  3140. * AIL lock.
  3141. */
  3142. xfs_trans_ail_update(log->l_ailp, &efip->efi_item, lsn);
  3143. xfs_efi_release(efip);
  3144. return 0;
  3145. }
  3146. /*
  3147. * This routine is called when an EFD format structure is found in a committed
  3148. * transaction in the log. Its purpose is to cancel the corresponding EFI if it
  3149. * was still in the log. To do this it searches the AIL for the EFI with an id
  3150. * equal to that in the EFD format structure. If we find it we drop the EFD
  3151. * reference, which removes the EFI from the AIL and frees it.
  3152. */
  3153. STATIC int
  3154. xlog_recover_efd_pass2(
  3155. struct xlog *log,
  3156. struct xlog_recover_item *item)
  3157. {
  3158. xfs_efd_log_format_t *efd_formatp;
  3159. xfs_efi_log_item_t *efip = NULL;
  3160. xfs_log_item_t *lip;
  3161. uint64_t efi_id;
  3162. struct xfs_ail_cursor cur;
  3163. struct xfs_ail *ailp = log->l_ailp;
  3164. efd_formatp = item->ri_buf[0].i_addr;
  3165. ASSERT((item->ri_buf[0].i_len == (sizeof(xfs_efd_log_format_32_t) +
  3166. ((efd_formatp->efd_nextents - 1) * sizeof(xfs_extent_32_t)))) ||
  3167. (item->ri_buf[0].i_len == (sizeof(xfs_efd_log_format_64_t) +
  3168. ((efd_formatp->efd_nextents - 1) * sizeof(xfs_extent_64_t)))));
  3169. efi_id = efd_formatp->efd_efi_id;
  3170. /*
  3171. * Search for the EFI with the id in the EFD format structure in the
  3172. * AIL.
  3173. */
  3174. spin_lock(&ailp->ail_lock);
  3175. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  3176. while (lip != NULL) {
  3177. if (lip->li_type == XFS_LI_EFI) {
  3178. efip = (xfs_efi_log_item_t *)lip;
  3179. if (efip->efi_format.efi_id == efi_id) {
  3180. /*
  3181. * Drop the EFD reference to the EFI. This
  3182. * removes the EFI from the AIL and frees it.
  3183. */
  3184. spin_unlock(&ailp->ail_lock);
  3185. xfs_efi_release(efip);
  3186. spin_lock(&ailp->ail_lock);
  3187. break;
  3188. }
  3189. }
  3190. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  3191. }
  3192. xfs_trans_ail_cursor_done(&cur);
  3193. spin_unlock(&ailp->ail_lock);
  3194. return 0;
  3195. }
  3196. /*
  3197. * This routine is called to create an in-core extent rmap update
  3198. * item from the rui format structure which was logged on disk.
  3199. * It allocates an in-core rui, copies the extents from the format
  3200. * structure into it, and adds the rui to the AIL with the given
  3201. * LSN.
  3202. */
  3203. STATIC int
  3204. xlog_recover_rui_pass2(
  3205. struct xlog *log,
  3206. struct xlog_recover_item *item,
  3207. xfs_lsn_t lsn)
  3208. {
  3209. int error;
  3210. struct xfs_mount *mp = log->l_mp;
  3211. struct xfs_rui_log_item *ruip;
  3212. struct xfs_rui_log_format *rui_formatp;
  3213. rui_formatp = item->ri_buf[0].i_addr;
  3214. ruip = xfs_rui_init(mp, rui_formatp->rui_nextents);
  3215. error = xfs_rui_copy_format(&item->ri_buf[0], &ruip->rui_format);
  3216. if (error) {
  3217. xfs_rui_item_free(ruip);
  3218. return error;
  3219. }
  3220. atomic_set(&ruip->rui_next_extent, rui_formatp->rui_nextents);
  3221. spin_lock(&log->l_ailp->ail_lock);
  3222. /*
  3223. * The RUI has two references. One for the RUD and one for RUI to ensure
  3224. * it makes it into the AIL. Insert the RUI into the AIL directly and
  3225. * drop the RUI reference. Note that xfs_trans_ail_update() drops the
  3226. * AIL lock.
  3227. */
  3228. xfs_trans_ail_update(log->l_ailp, &ruip->rui_item, lsn);
  3229. xfs_rui_release(ruip);
  3230. return 0;
  3231. }
  3232. /*
  3233. * This routine is called when an RUD format structure is found in a committed
  3234. * transaction in the log. Its purpose is to cancel the corresponding RUI if it
  3235. * was still in the log. To do this it searches the AIL for the RUI with an id
  3236. * equal to that in the RUD format structure. If we find it we drop the RUD
  3237. * reference, which removes the RUI from the AIL and frees it.
  3238. */
  3239. STATIC int
  3240. xlog_recover_rud_pass2(
  3241. struct xlog *log,
  3242. struct xlog_recover_item *item)
  3243. {
  3244. struct xfs_rud_log_format *rud_formatp;
  3245. struct xfs_rui_log_item *ruip = NULL;
  3246. struct xfs_log_item *lip;
  3247. uint64_t rui_id;
  3248. struct xfs_ail_cursor cur;
  3249. struct xfs_ail *ailp = log->l_ailp;
  3250. rud_formatp = item->ri_buf[0].i_addr;
  3251. ASSERT(item->ri_buf[0].i_len == sizeof(struct xfs_rud_log_format));
  3252. rui_id = rud_formatp->rud_rui_id;
  3253. /*
  3254. * Search for the RUI with the id in the RUD format structure in the
  3255. * AIL.
  3256. */
  3257. spin_lock(&ailp->ail_lock);
  3258. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  3259. while (lip != NULL) {
  3260. if (lip->li_type == XFS_LI_RUI) {
  3261. ruip = (struct xfs_rui_log_item *)lip;
  3262. if (ruip->rui_format.rui_id == rui_id) {
  3263. /*
  3264. * Drop the RUD reference to the RUI. This
  3265. * removes the RUI from the AIL and frees it.
  3266. */
  3267. spin_unlock(&ailp->ail_lock);
  3268. xfs_rui_release(ruip);
  3269. spin_lock(&ailp->ail_lock);
  3270. break;
  3271. }
  3272. }
  3273. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  3274. }
  3275. xfs_trans_ail_cursor_done(&cur);
  3276. spin_unlock(&ailp->ail_lock);
  3277. return 0;
  3278. }
  3279. /*
  3280. * Copy an CUI format buffer from the given buf, and into the destination
  3281. * CUI format structure. The CUI/CUD items were designed not to need any
  3282. * special alignment handling.
  3283. */
  3284. static int
  3285. xfs_cui_copy_format(
  3286. struct xfs_log_iovec *buf,
  3287. struct xfs_cui_log_format *dst_cui_fmt)
  3288. {
  3289. struct xfs_cui_log_format *src_cui_fmt;
  3290. uint len;
  3291. src_cui_fmt = buf->i_addr;
  3292. len = xfs_cui_log_format_sizeof(src_cui_fmt->cui_nextents);
  3293. if (buf->i_len == len) {
  3294. memcpy(dst_cui_fmt, src_cui_fmt, len);
  3295. return 0;
  3296. }
  3297. return -EFSCORRUPTED;
  3298. }
  3299. /*
  3300. * This routine is called to create an in-core extent refcount update
  3301. * item from the cui format structure which was logged on disk.
  3302. * It allocates an in-core cui, copies the extents from the format
  3303. * structure into it, and adds the cui to the AIL with the given
  3304. * LSN.
  3305. */
  3306. STATIC int
  3307. xlog_recover_cui_pass2(
  3308. struct xlog *log,
  3309. struct xlog_recover_item *item,
  3310. xfs_lsn_t lsn)
  3311. {
  3312. int error;
  3313. struct xfs_mount *mp = log->l_mp;
  3314. struct xfs_cui_log_item *cuip;
  3315. struct xfs_cui_log_format *cui_formatp;
  3316. cui_formatp = item->ri_buf[0].i_addr;
  3317. cuip = xfs_cui_init(mp, cui_formatp->cui_nextents);
  3318. error = xfs_cui_copy_format(&item->ri_buf[0], &cuip->cui_format);
  3319. if (error) {
  3320. xfs_cui_item_free(cuip);
  3321. return error;
  3322. }
  3323. atomic_set(&cuip->cui_next_extent, cui_formatp->cui_nextents);
  3324. spin_lock(&log->l_ailp->ail_lock);
  3325. /*
  3326. * The CUI has two references. One for the CUD and one for CUI to ensure
  3327. * it makes it into the AIL. Insert the CUI into the AIL directly and
  3328. * drop the CUI reference. Note that xfs_trans_ail_update() drops the
  3329. * AIL lock.
  3330. */
  3331. xfs_trans_ail_update(log->l_ailp, &cuip->cui_item, lsn);
  3332. xfs_cui_release(cuip);
  3333. return 0;
  3334. }
  3335. /*
  3336. * This routine is called when an CUD format structure is found in a committed
  3337. * transaction in the log. Its purpose is to cancel the corresponding CUI if it
  3338. * was still in the log. To do this it searches the AIL for the CUI with an id
  3339. * equal to that in the CUD format structure. If we find it we drop the CUD
  3340. * reference, which removes the CUI from the AIL and frees it.
  3341. */
  3342. STATIC int
  3343. xlog_recover_cud_pass2(
  3344. struct xlog *log,
  3345. struct xlog_recover_item *item)
  3346. {
  3347. struct xfs_cud_log_format *cud_formatp;
  3348. struct xfs_cui_log_item *cuip = NULL;
  3349. struct xfs_log_item *lip;
  3350. uint64_t cui_id;
  3351. struct xfs_ail_cursor cur;
  3352. struct xfs_ail *ailp = log->l_ailp;
  3353. cud_formatp = item->ri_buf[0].i_addr;
  3354. if (item->ri_buf[0].i_len != sizeof(struct xfs_cud_log_format))
  3355. return -EFSCORRUPTED;
  3356. cui_id = cud_formatp->cud_cui_id;
  3357. /*
  3358. * Search for the CUI with the id in the CUD format structure in the
  3359. * AIL.
  3360. */
  3361. spin_lock(&ailp->ail_lock);
  3362. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  3363. while (lip != NULL) {
  3364. if (lip->li_type == XFS_LI_CUI) {
  3365. cuip = (struct xfs_cui_log_item *)lip;
  3366. if (cuip->cui_format.cui_id == cui_id) {
  3367. /*
  3368. * Drop the CUD reference to the CUI. This
  3369. * removes the CUI from the AIL and frees it.
  3370. */
  3371. spin_unlock(&ailp->ail_lock);
  3372. xfs_cui_release(cuip);
  3373. spin_lock(&ailp->ail_lock);
  3374. break;
  3375. }
  3376. }
  3377. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  3378. }
  3379. xfs_trans_ail_cursor_done(&cur);
  3380. spin_unlock(&ailp->ail_lock);
  3381. return 0;
  3382. }
  3383. /*
  3384. * Copy an BUI format buffer from the given buf, and into the destination
  3385. * BUI format structure. The BUI/BUD items were designed not to need any
  3386. * special alignment handling.
  3387. */
  3388. static int
  3389. xfs_bui_copy_format(
  3390. struct xfs_log_iovec *buf,
  3391. struct xfs_bui_log_format *dst_bui_fmt)
  3392. {
  3393. struct xfs_bui_log_format *src_bui_fmt;
  3394. uint len;
  3395. src_bui_fmt = buf->i_addr;
  3396. len = xfs_bui_log_format_sizeof(src_bui_fmt->bui_nextents);
  3397. if (buf->i_len == len) {
  3398. memcpy(dst_bui_fmt, src_bui_fmt, len);
  3399. return 0;
  3400. }
  3401. return -EFSCORRUPTED;
  3402. }
  3403. /*
  3404. * This routine is called to create an in-core extent bmap update
  3405. * item from the bui format structure which was logged on disk.
  3406. * It allocates an in-core bui, copies the extents from the format
  3407. * structure into it, and adds the bui to the AIL with the given
  3408. * LSN.
  3409. */
  3410. STATIC int
  3411. xlog_recover_bui_pass2(
  3412. struct xlog *log,
  3413. struct xlog_recover_item *item,
  3414. xfs_lsn_t lsn)
  3415. {
  3416. int error;
  3417. struct xfs_mount *mp = log->l_mp;
  3418. struct xfs_bui_log_item *buip;
  3419. struct xfs_bui_log_format *bui_formatp;
  3420. bui_formatp = item->ri_buf[0].i_addr;
  3421. if (bui_formatp->bui_nextents != XFS_BUI_MAX_FAST_EXTENTS)
  3422. return -EFSCORRUPTED;
  3423. buip = xfs_bui_init(mp);
  3424. error = xfs_bui_copy_format(&item->ri_buf[0], &buip->bui_format);
  3425. if (error) {
  3426. xfs_bui_item_free(buip);
  3427. return error;
  3428. }
  3429. atomic_set(&buip->bui_next_extent, bui_formatp->bui_nextents);
  3430. spin_lock(&log->l_ailp->ail_lock);
  3431. /*
  3432. * The RUI has two references. One for the RUD and one for RUI to ensure
  3433. * it makes it into the AIL. Insert the RUI into the AIL directly and
  3434. * drop the RUI reference. Note that xfs_trans_ail_update() drops the
  3435. * AIL lock.
  3436. */
  3437. xfs_trans_ail_update(log->l_ailp, &buip->bui_item, lsn);
  3438. xfs_bui_release(buip);
  3439. return 0;
  3440. }
  3441. /*
  3442. * This routine is called when an BUD format structure is found in a committed
  3443. * transaction in the log. Its purpose is to cancel the corresponding BUI if it
  3444. * was still in the log. To do this it searches the AIL for the BUI with an id
  3445. * equal to that in the BUD format structure. If we find it we drop the BUD
  3446. * reference, which removes the BUI from the AIL and frees it.
  3447. */
  3448. STATIC int
  3449. xlog_recover_bud_pass2(
  3450. struct xlog *log,
  3451. struct xlog_recover_item *item)
  3452. {
  3453. struct xfs_bud_log_format *bud_formatp;
  3454. struct xfs_bui_log_item *buip = NULL;
  3455. struct xfs_log_item *lip;
  3456. uint64_t bui_id;
  3457. struct xfs_ail_cursor cur;
  3458. struct xfs_ail *ailp = log->l_ailp;
  3459. bud_formatp = item->ri_buf[0].i_addr;
  3460. if (item->ri_buf[0].i_len != sizeof(struct xfs_bud_log_format))
  3461. return -EFSCORRUPTED;
  3462. bui_id = bud_formatp->bud_bui_id;
  3463. /*
  3464. * Search for the BUI with the id in the BUD format structure in the
  3465. * AIL.
  3466. */
  3467. spin_lock(&ailp->ail_lock);
  3468. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  3469. while (lip != NULL) {
  3470. if (lip->li_type == XFS_LI_BUI) {
  3471. buip = (struct xfs_bui_log_item *)lip;
  3472. if (buip->bui_format.bui_id == bui_id) {
  3473. /*
  3474. * Drop the BUD reference to the BUI. This
  3475. * removes the BUI from the AIL and frees it.
  3476. */
  3477. spin_unlock(&ailp->ail_lock);
  3478. xfs_bui_release(buip);
  3479. spin_lock(&ailp->ail_lock);
  3480. break;
  3481. }
  3482. }
  3483. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  3484. }
  3485. xfs_trans_ail_cursor_done(&cur);
  3486. spin_unlock(&ailp->ail_lock);
  3487. return 0;
  3488. }
  3489. /*
  3490. * This routine is called when an inode create format structure is found in a
  3491. * committed transaction in the log. It's purpose is to initialise the inodes
  3492. * being allocated on disk. This requires us to get inode cluster buffers that
  3493. * match the range to be initialised, stamped with inode templates and written
  3494. * by delayed write so that subsequent modifications will hit the cached buffer
  3495. * and only need writing out at the end of recovery.
  3496. */
  3497. STATIC int
  3498. xlog_recover_do_icreate_pass2(
  3499. struct xlog *log,
  3500. struct list_head *buffer_list,
  3501. xlog_recover_item_t *item)
  3502. {
  3503. struct xfs_mount *mp = log->l_mp;
  3504. struct xfs_icreate_log *icl;
  3505. xfs_agnumber_t agno;
  3506. xfs_agblock_t agbno;
  3507. unsigned int count;
  3508. unsigned int isize;
  3509. xfs_agblock_t length;
  3510. int blks_per_cluster;
  3511. int bb_per_cluster;
  3512. int cancel_count;
  3513. int nbufs;
  3514. int i;
  3515. icl = (struct xfs_icreate_log *)item->ri_buf[0].i_addr;
  3516. if (icl->icl_type != XFS_LI_ICREATE) {
  3517. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad type");
  3518. return -EINVAL;
  3519. }
  3520. if (icl->icl_size != 1) {
  3521. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad icl size");
  3522. return -EINVAL;
  3523. }
  3524. agno = be32_to_cpu(icl->icl_ag);
  3525. if (agno >= mp->m_sb.sb_agcount) {
  3526. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad agno");
  3527. return -EINVAL;
  3528. }
  3529. agbno = be32_to_cpu(icl->icl_agbno);
  3530. if (!agbno || agbno == NULLAGBLOCK || agbno >= mp->m_sb.sb_agblocks) {
  3531. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad agbno");
  3532. return -EINVAL;
  3533. }
  3534. isize = be32_to_cpu(icl->icl_isize);
  3535. if (isize != mp->m_sb.sb_inodesize) {
  3536. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad isize");
  3537. return -EINVAL;
  3538. }
  3539. count = be32_to_cpu(icl->icl_count);
  3540. if (!count) {
  3541. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad count");
  3542. return -EINVAL;
  3543. }
  3544. length = be32_to_cpu(icl->icl_length);
  3545. if (!length || length >= mp->m_sb.sb_agblocks) {
  3546. xfs_warn(log->l_mp, "xlog_recover_do_icreate_trans: bad length");
  3547. return -EINVAL;
  3548. }
  3549. /*
  3550. * The inode chunk is either full or sparse and we only support
  3551. * m_ialloc_min_blks sized sparse allocations at this time.
  3552. */
  3553. if (length != mp->m_ialloc_blks &&
  3554. length != mp->m_ialloc_min_blks) {
  3555. xfs_warn(log->l_mp,
  3556. "%s: unsupported chunk length", __FUNCTION__);
  3557. return -EINVAL;
  3558. }
  3559. /* verify inode count is consistent with extent length */
  3560. if ((count >> mp->m_sb.sb_inopblog) != length) {
  3561. xfs_warn(log->l_mp,
  3562. "%s: inconsistent inode count and chunk length",
  3563. __FUNCTION__);
  3564. return -EINVAL;
  3565. }
  3566. /*
  3567. * The icreate transaction can cover multiple cluster buffers and these
  3568. * buffers could have been freed and reused. Check the individual
  3569. * buffers for cancellation so we don't overwrite anything written after
  3570. * a cancellation.
  3571. */
  3572. blks_per_cluster = xfs_icluster_size_fsb(mp);
  3573. bb_per_cluster = XFS_FSB_TO_BB(mp, blks_per_cluster);
  3574. nbufs = length / blks_per_cluster;
  3575. for (i = 0, cancel_count = 0; i < nbufs; i++) {
  3576. xfs_daddr_t daddr;
  3577. daddr = XFS_AGB_TO_DADDR(mp, agno,
  3578. agbno + i * blks_per_cluster);
  3579. if (xlog_check_buffer_cancelled(log, daddr, bb_per_cluster, 0))
  3580. cancel_count++;
  3581. }
  3582. /*
  3583. * We currently only use icreate for a single allocation at a time. This
  3584. * means we should expect either all or none of the buffers to be
  3585. * cancelled. Be conservative and skip replay if at least one buffer is
  3586. * cancelled, but warn the user that something is awry if the buffers
  3587. * are not consistent.
  3588. *
  3589. * XXX: This must be refined to only skip cancelled clusters once we use
  3590. * icreate for multiple chunk allocations.
  3591. */
  3592. ASSERT(!cancel_count || cancel_count == nbufs);
  3593. if (cancel_count) {
  3594. if (cancel_count != nbufs)
  3595. xfs_warn(mp,
  3596. "WARNING: partial inode chunk cancellation, skipped icreate.");
  3597. trace_xfs_log_recover_icreate_cancel(log, icl);
  3598. return 0;
  3599. }
  3600. trace_xfs_log_recover_icreate_recover(log, icl);
  3601. return xfs_ialloc_inode_init(mp, NULL, buffer_list, count, agno, agbno,
  3602. length, be32_to_cpu(icl->icl_gen));
  3603. }
  3604. STATIC void
  3605. xlog_recover_buffer_ra_pass2(
  3606. struct xlog *log,
  3607. struct xlog_recover_item *item)
  3608. {
  3609. struct xfs_buf_log_format *buf_f = item->ri_buf[0].i_addr;
  3610. struct xfs_mount *mp = log->l_mp;
  3611. if (xlog_peek_buffer_cancelled(log, buf_f->blf_blkno,
  3612. buf_f->blf_len, buf_f->blf_flags)) {
  3613. return;
  3614. }
  3615. xfs_buf_readahead(mp->m_ddev_targp, buf_f->blf_blkno,
  3616. buf_f->blf_len, NULL);
  3617. }
  3618. STATIC void
  3619. xlog_recover_inode_ra_pass2(
  3620. struct xlog *log,
  3621. struct xlog_recover_item *item)
  3622. {
  3623. struct xfs_inode_log_format ilf_buf;
  3624. struct xfs_inode_log_format *ilfp;
  3625. struct xfs_mount *mp = log->l_mp;
  3626. int error;
  3627. if (item->ri_buf[0].i_len == sizeof(struct xfs_inode_log_format)) {
  3628. ilfp = item->ri_buf[0].i_addr;
  3629. } else {
  3630. ilfp = &ilf_buf;
  3631. memset(ilfp, 0, sizeof(*ilfp));
  3632. error = xfs_inode_item_format_convert(&item->ri_buf[0], ilfp);
  3633. if (error)
  3634. return;
  3635. }
  3636. if (xlog_peek_buffer_cancelled(log, ilfp->ilf_blkno, ilfp->ilf_len, 0))
  3637. return;
  3638. xfs_buf_readahead(mp->m_ddev_targp, ilfp->ilf_blkno,
  3639. ilfp->ilf_len, &xfs_inode_buf_ra_ops);
  3640. }
  3641. STATIC void
  3642. xlog_recover_dquot_ra_pass2(
  3643. struct xlog *log,
  3644. struct xlog_recover_item *item)
  3645. {
  3646. struct xfs_mount *mp = log->l_mp;
  3647. struct xfs_disk_dquot *recddq;
  3648. struct xfs_dq_logformat *dq_f;
  3649. uint type;
  3650. int len;
  3651. if (mp->m_qflags == 0)
  3652. return;
  3653. recddq = item->ri_buf[1].i_addr;
  3654. if (recddq == NULL)
  3655. return;
  3656. if (item->ri_buf[1].i_len < sizeof(struct xfs_disk_dquot))
  3657. return;
  3658. type = recddq->d_flags & (XFS_DQ_USER | XFS_DQ_PROJ | XFS_DQ_GROUP);
  3659. ASSERT(type);
  3660. if (log->l_quotaoffs_flag & type)
  3661. return;
  3662. dq_f = item->ri_buf[0].i_addr;
  3663. ASSERT(dq_f);
  3664. ASSERT(dq_f->qlf_len == 1);
  3665. len = XFS_FSB_TO_BB(mp, dq_f->qlf_len);
  3666. if (xlog_peek_buffer_cancelled(log, dq_f->qlf_blkno, len, 0))
  3667. return;
  3668. xfs_buf_readahead(mp->m_ddev_targp, dq_f->qlf_blkno, len,
  3669. &xfs_dquot_buf_ra_ops);
  3670. }
  3671. STATIC void
  3672. xlog_recover_ra_pass2(
  3673. struct xlog *log,
  3674. struct xlog_recover_item *item)
  3675. {
  3676. switch (ITEM_TYPE(item)) {
  3677. case XFS_LI_BUF:
  3678. xlog_recover_buffer_ra_pass2(log, item);
  3679. break;
  3680. case XFS_LI_INODE:
  3681. xlog_recover_inode_ra_pass2(log, item);
  3682. break;
  3683. case XFS_LI_DQUOT:
  3684. xlog_recover_dquot_ra_pass2(log, item);
  3685. break;
  3686. case XFS_LI_EFI:
  3687. case XFS_LI_EFD:
  3688. case XFS_LI_QUOTAOFF:
  3689. case XFS_LI_RUI:
  3690. case XFS_LI_RUD:
  3691. case XFS_LI_CUI:
  3692. case XFS_LI_CUD:
  3693. case XFS_LI_BUI:
  3694. case XFS_LI_BUD:
  3695. default:
  3696. break;
  3697. }
  3698. }
  3699. STATIC int
  3700. xlog_recover_commit_pass1(
  3701. struct xlog *log,
  3702. struct xlog_recover *trans,
  3703. struct xlog_recover_item *item)
  3704. {
  3705. trace_xfs_log_recover_item_recover(log, trans, item, XLOG_RECOVER_PASS1);
  3706. switch (ITEM_TYPE(item)) {
  3707. case XFS_LI_BUF:
  3708. return xlog_recover_buffer_pass1(log, item);
  3709. case XFS_LI_QUOTAOFF:
  3710. return xlog_recover_quotaoff_pass1(log, item);
  3711. case XFS_LI_INODE:
  3712. case XFS_LI_EFI:
  3713. case XFS_LI_EFD:
  3714. case XFS_LI_DQUOT:
  3715. case XFS_LI_ICREATE:
  3716. case XFS_LI_RUI:
  3717. case XFS_LI_RUD:
  3718. case XFS_LI_CUI:
  3719. case XFS_LI_CUD:
  3720. case XFS_LI_BUI:
  3721. case XFS_LI_BUD:
  3722. /* nothing to do in pass 1 */
  3723. return 0;
  3724. default:
  3725. xfs_warn(log->l_mp, "%s: invalid item type (%d)",
  3726. __func__, ITEM_TYPE(item));
  3727. ASSERT(0);
  3728. return -EIO;
  3729. }
  3730. }
  3731. STATIC int
  3732. xlog_recover_commit_pass2(
  3733. struct xlog *log,
  3734. struct xlog_recover *trans,
  3735. struct list_head *buffer_list,
  3736. struct xlog_recover_item *item)
  3737. {
  3738. trace_xfs_log_recover_item_recover(log, trans, item, XLOG_RECOVER_PASS2);
  3739. switch (ITEM_TYPE(item)) {
  3740. case XFS_LI_BUF:
  3741. return xlog_recover_buffer_pass2(log, buffer_list, item,
  3742. trans->r_lsn);
  3743. case XFS_LI_INODE:
  3744. return xlog_recover_inode_pass2(log, buffer_list, item,
  3745. trans->r_lsn);
  3746. case XFS_LI_EFI:
  3747. return xlog_recover_efi_pass2(log, item, trans->r_lsn);
  3748. case XFS_LI_EFD:
  3749. return xlog_recover_efd_pass2(log, item);
  3750. case XFS_LI_RUI:
  3751. return xlog_recover_rui_pass2(log, item, trans->r_lsn);
  3752. case XFS_LI_RUD:
  3753. return xlog_recover_rud_pass2(log, item);
  3754. case XFS_LI_CUI:
  3755. return xlog_recover_cui_pass2(log, item, trans->r_lsn);
  3756. case XFS_LI_CUD:
  3757. return xlog_recover_cud_pass2(log, item);
  3758. case XFS_LI_BUI:
  3759. return xlog_recover_bui_pass2(log, item, trans->r_lsn);
  3760. case XFS_LI_BUD:
  3761. return xlog_recover_bud_pass2(log, item);
  3762. case XFS_LI_DQUOT:
  3763. return xlog_recover_dquot_pass2(log, buffer_list, item,
  3764. trans->r_lsn);
  3765. case XFS_LI_ICREATE:
  3766. return xlog_recover_do_icreate_pass2(log, buffer_list, item);
  3767. case XFS_LI_QUOTAOFF:
  3768. /* nothing to do in pass2 */
  3769. return 0;
  3770. default:
  3771. xfs_warn(log->l_mp, "%s: invalid item type (%d)",
  3772. __func__, ITEM_TYPE(item));
  3773. ASSERT(0);
  3774. return -EIO;
  3775. }
  3776. }
  3777. STATIC int
  3778. xlog_recover_items_pass2(
  3779. struct xlog *log,
  3780. struct xlog_recover *trans,
  3781. struct list_head *buffer_list,
  3782. struct list_head *item_list)
  3783. {
  3784. struct xlog_recover_item *item;
  3785. int error = 0;
  3786. list_for_each_entry(item, item_list, ri_list) {
  3787. error = xlog_recover_commit_pass2(log, trans,
  3788. buffer_list, item);
  3789. if (error)
  3790. return error;
  3791. }
  3792. return error;
  3793. }
  3794. /*
  3795. * Perform the transaction.
  3796. *
  3797. * If the transaction modifies a buffer or inode, do it now. Otherwise,
  3798. * EFIs and EFDs get queued up by adding entries into the AIL for them.
  3799. */
  3800. STATIC int
  3801. xlog_recover_commit_trans(
  3802. struct xlog *log,
  3803. struct xlog_recover *trans,
  3804. int pass,
  3805. struct list_head *buffer_list)
  3806. {
  3807. int error = 0;
  3808. int items_queued = 0;
  3809. struct xlog_recover_item *item;
  3810. struct xlog_recover_item *next;
  3811. LIST_HEAD (ra_list);
  3812. LIST_HEAD (done_list);
  3813. #define XLOG_RECOVER_COMMIT_QUEUE_MAX 100
  3814. hlist_del_init(&trans->r_list);
  3815. error = xlog_recover_reorder_trans(log, trans, pass);
  3816. if (error)
  3817. return error;
  3818. list_for_each_entry_safe(item, next, &trans->r_itemq, ri_list) {
  3819. switch (pass) {
  3820. case XLOG_RECOVER_PASS1:
  3821. error = xlog_recover_commit_pass1(log, trans, item);
  3822. break;
  3823. case XLOG_RECOVER_PASS2:
  3824. xlog_recover_ra_pass2(log, item);
  3825. list_move_tail(&item->ri_list, &ra_list);
  3826. items_queued++;
  3827. if (items_queued >= XLOG_RECOVER_COMMIT_QUEUE_MAX) {
  3828. error = xlog_recover_items_pass2(log, trans,
  3829. buffer_list, &ra_list);
  3830. list_splice_tail_init(&ra_list, &done_list);
  3831. items_queued = 0;
  3832. }
  3833. break;
  3834. default:
  3835. ASSERT(0);
  3836. }
  3837. if (error)
  3838. goto out;
  3839. }
  3840. out:
  3841. if (!list_empty(&ra_list)) {
  3842. if (!error)
  3843. error = xlog_recover_items_pass2(log, trans,
  3844. buffer_list, &ra_list);
  3845. list_splice_tail_init(&ra_list, &done_list);
  3846. }
  3847. if (!list_empty(&done_list))
  3848. list_splice_init(&done_list, &trans->r_itemq);
  3849. return error;
  3850. }
  3851. STATIC void
  3852. xlog_recover_add_item(
  3853. struct list_head *head)
  3854. {
  3855. xlog_recover_item_t *item;
  3856. item = kmem_zalloc(sizeof(xlog_recover_item_t), KM_SLEEP);
  3857. INIT_LIST_HEAD(&item->ri_list);
  3858. list_add_tail(&item->ri_list, head);
  3859. }
  3860. STATIC int
  3861. xlog_recover_add_to_cont_trans(
  3862. struct xlog *log,
  3863. struct xlog_recover *trans,
  3864. char *dp,
  3865. int len)
  3866. {
  3867. xlog_recover_item_t *item;
  3868. char *ptr, *old_ptr;
  3869. int old_len;
  3870. /*
  3871. * If the transaction is empty, the header was split across this and the
  3872. * previous record. Copy the rest of the header.
  3873. */
  3874. if (list_empty(&trans->r_itemq)) {
  3875. ASSERT(len <= sizeof(struct xfs_trans_header));
  3876. if (len > sizeof(struct xfs_trans_header)) {
  3877. xfs_warn(log->l_mp, "%s: bad header length", __func__);
  3878. return -EIO;
  3879. }
  3880. xlog_recover_add_item(&trans->r_itemq);
  3881. ptr = (char *)&trans->r_theader +
  3882. sizeof(struct xfs_trans_header) - len;
  3883. memcpy(ptr, dp, len);
  3884. return 0;
  3885. }
  3886. /* take the tail entry */
  3887. item = list_entry(trans->r_itemq.prev, xlog_recover_item_t, ri_list);
  3888. old_ptr = item->ri_buf[item->ri_cnt-1].i_addr;
  3889. old_len = item->ri_buf[item->ri_cnt-1].i_len;
  3890. ptr = kmem_realloc(old_ptr, len + old_len, KM_SLEEP);
  3891. memcpy(&ptr[old_len], dp, len);
  3892. item->ri_buf[item->ri_cnt-1].i_len += len;
  3893. item->ri_buf[item->ri_cnt-1].i_addr = ptr;
  3894. trace_xfs_log_recover_item_add_cont(log, trans, item, 0);
  3895. return 0;
  3896. }
  3897. /*
  3898. * The next region to add is the start of a new region. It could be
  3899. * a whole region or it could be the first part of a new region. Because
  3900. * of this, the assumption here is that the type and size fields of all
  3901. * format structures fit into the first 32 bits of the structure.
  3902. *
  3903. * This works because all regions must be 32 bit aligned. Therefore, we
  3904. * either have both fields or we have neither field. In the case we have
  3905. * neither field, the data part of the region is zero length. We only have
  3906. * a log_op_header and can throw away the header since a new one will appear
  3907. * later. If we have at least 4 bytes, then we can determine how many regions
  3908. * will appear in the current log item.
  3909. */
  3910. STATIC int
  3911. xlog_recover_add_to_trans(
  3912. struct xlog *log,
  3913. struct xlog_recover *trans,
  3914. char *dp,
  3915. int len)
  3916. {
  3917. struct xfs_inode_log_format *in_f; /* any will do */
  3918. xlog_recover_item_t *item;
  3919. char *ptr;
  3920. if (!len)
  3921. return 0;
  3922. if (list_empty(&trans->r_itemq)) {
  3923. /* we need to catch log corruptions here */
  3924. if (*(uint *)dp != XFS_TRANS_HEADER_MAGIC) {
  3925. xfs_warn(log->l_mp, "%s: bad header magic number",
  3926. __func__);
  3927. ASSERT(0);
  3928. return -EIO;
  3929. }
  3930. if (len > sizeof(struct xfs_trans_header)) {
  3931. xfs_warn(log->l_mp, "%s: bad header length", __func__);
  3932. ASSERT(0);
  3933. return -EIO;
  3934. }
  3935. /*
  3936. * The transaction header can be arbitrarily split across op
  3937. * records. If we don't have the whole thing here, copy what we
  3938. * do have and handle the rest in the next record.
  3939. */
  3940. if (len == sizeof(struct xfs_trans_header))
  3941. xlog_recover_add_item(&trans->r_itemq);
  3942. memcpy(&trans->r_theader, dp, len);
  3943. return 0;
  3944. }
  3945. ptr = kmem_alloc(len, KM_SLEEP);
  3946. memcpy(ptr, dp, len);
  3947. in_f = (struct xfs_inode_log_format *)ptr;
  3948. /* take the tail entry */
  3949. item = list_entry(trans->r_itemq.prev, xlog_recover_item_t, ri_list);
  3950. if (item->ri_total != 0 &&
  3951. item->ri_total == item->ri_cnt) {
  3952. /* tail item is in use, get a new one */
  3953. xlog_recover_add_item(&trans->r_itemq);
  3954. item = list_entry(trans->r_itemq.prev,
  3955. xlog_recover_item_t, ri_list);
  3956. }
  3957. if (item->ri_total == 0) { /* first region to be added */
  3958. if (in_f->ilf_size == 0 ||
  3959. in_f->ilf_size > XLOG_MAX_REGIONS_IN_ITEM) {
  3960. xfs_warn(log->l_mp,
  3961. "bad number of regions (%d) in inode log format",
  3962. in_f->ilf_size);
  3963. ASSERT(0);
  3964. kmem_free(ptr);
  3965. return -EIO;
  3966. }
  3967. item->ri_total = in_f->ilf_size;
  3968. item->ri_buf =
  3969. kmem_zalloc(item->ri_total * sizeof(xfs_log_iovec_t),
  3970. KM_SLEEP);
  3971. }
  3972. ASSERT(item->ri_total > item->ri_cnt);
  3973. /* Description region is ri_buf[0] */
  3974. item->ri_buf[item->ri_cnt].i_addr = ptr;
  3975. item->ri_buf[item->ri_cnt].i_len = len;
  3976. item->ri_cnt++;
  3977. trace_xfs_log_recover_item_add(log, trans, item, 0);
  3978. return 0;
  3979. }
  3980. /*
  3981. * Free up any resources allocated by the transaction
  3982. *
  3983. * Remember that EFIs, EFDs, and IUNLINKs are handled later.
  3984. */
  3985. STATIC void
  3986. xlog_recover_free_trans(
  3987. struct xlog_recover *trans)
  3988. {
  3989. xlog_recover_item_t *item, *n;
  3990. int i;
  3991. hlist_del_init(&trans->r_list);
  3992. list_for_each_entry_safe(item, n, &trans->r_itemq, ri_list) {
  3993. /* Free the regions in the item. */
  3994. list_del(&item->ri_list);
  3995. for (i = 0; i < item->ri_cnt; i++)
  3996. kmem_free(item->ri_buf[i].i_addr);
  3997. /* Free the item itself */
  3998. kmem_free(item->ri_buf);
  3999. kmem_free(item);
  4000. }
  4001. /* Free the transaction recover structure */
  4002. kmem_free(trans);
  4003. }
  4004. /*
  4005. * On error or completion, trans is freed.
  4006. */
  4007. STATIC int
  4008. xlog_recovery_process_trans(
  4009. struct xlog *log,
  4010. struct xlog_recover *trans,
  4011. char *dp,
  4012. unsigned int len,
  4013. unsigned int flags,
  4014. int pass,
  4015. struct list_head *buffer_list)
  4016. {
  4017. int error = 0;
  4018. bool freeit = false;
  4019. /* mask off ophdr transaction container flags */
  4020. flags &= ~XLOG_END_TRANS;
  4021. if (flags & XLOG_WAS_CONT_TRANS)
  4022. flags &= ~XLOG_CONTINUE_TRANS;
  4023. /*
  4024. * Callees must not free the trans structure. We'll decide if we need to
  4025. * free it or not based on the operation being done and it's result.
  4026. */
  4027. switch (flags) {
  4028. /* expected flag values */
  4029. case 0:
  4030. case XLOG_CONTINUE_TRANS:
  4031. error = xlog_recover_add_to_trans(log, trans, dp, len);
  4032. break;
  4033. case XLOG_WAS_CONT_TRANS:
  4034. error = xlog_recover_add_to_cont_trans(log, trans, dp, len);
  4035. break;
  4036. case XLOG_COMMIT_TRANS:
  4037. error = xlog_recover_commit_trans(log, trans, pass,
  4038. buffer_list);
  4039. /* success or fail, we are now done with this transaction. */
  4040. freeit = true;
  4041. break;
  4042. /* unexpected flag values */
  4043. case XLOG_UNMOUNT_TRANS:
  4044. /* just skip trans */
  4045. xfs_warn(log->l_mp, "%s: Unmount LR", __func__);
  4046. freeit = true;
  4047. break;
  4048. case XLOG_START_TRANS:
  4049. default:
  4050. xfs_warn(log->l_mp, "%s: bad flag 0x%x", __func__, flags);
  4051. ASSERT(0);
  4052. error = -EIO;
  4053. break;
  4054. }
  4055. if (error || freeit)
  4056. xlog_recover_free_trans(trans);
  4057. return error;
  4058. }
  4059. /*
  4060. * Lookup the transaction recovery structure associated with the ID in the
  4061. * current ophdr. If the transaction doesn't exist and the start flag is set in
  4062. * the ophdr, then allocate a new transaction for future ID matches to find.
  4063. * Either way, return what we found during the lookup - an existing transaction
  4064. * or nothing.
  4065. */
  4066. STATIC struct xlog_recover *
  4067. xlog_recover_ophdr_to_trans(
  4068. struct hlist_head rhash[],
  4069. struct xlog_rec_header *rhead,
  4070. struct xlog_op_header *ohead)
  4071. {
  4072. struct xlog_recover *trans;
  4073. xlog_tid_t tid;
  4074. struct hlist_head *rhp;
  4075. tid = be32_to_cpu(ohead->oh_tid);
  4076. rhp = &rhash[XLOG_RHASH(tid)];
  4077. hlist_for_each_entry(trans, rhp, r_list) {
  4078. if (trans->r_log_tid == tid)
  4079. return trans;
  4080. }
  4081. /*
  4082. * skip over non-start transaction headers - we could be
  4083. * processing slack space before the next transaction starts
  4084. */
  4085. if (!(ohead->oh_flags & XLOG_START_TRANS))
  4086. return NULL;
  4087. ASSERT(be32_to_cpu(ohead->oh_len) == 0);
  4088. /*
  4089. * This is a new transaction so allocate a new recovery container to
  4090. * hold the recovery ops that will follow.
  4091. */
  4092. trans = kmem_zalloc(sizeof(struct xlog_recover), KM_SLEEP);
  4093. trans->r_log_tid = tid;
  4094. trans->r_lsn = be64_to_cpu(rhead->h_lsn);
  4095. INIT_LIST_HEAD(&trans->r_itemq);
  4096. INIT_HLIST_NODE(&trans->r_list);
  4097. hlist_add_head(&trans->r_list, rhp);
  4098. /*
  4099. * Nothing more to do for this ophdr. Items to be added to this new
  4100. * transaction will be in subsequent ophdr containers.
  4101. */
  4102. return NULL;
  4103. }
  4104. STATIC int
  4105. xlog_recover_process_ophdr(
  4106. struct xlog *log,
  4107. struct hlist_head rhash[],
  4108. struct xlog_rec_header *rhead,
  4109. struct xlog_op_header *ohead,
  4110. char *dp,
  4111. char *end,
  4112. int pass,
  4113. struct list_head *buffer_list)
  4114. {
  4115. struct xlog_recover *trans;
  4116. unsigned int len;
  4117. int error;
  4118. /* Do we understand who wrote this op? */
  4119. if (ohead->oh_clientid != XFS_TRANSACTION &&
  4120. ohead->oh_clientid != XFS_LOG) {
  4121. xfs_warn(log->l_mp, "%s: bad clientid 0x%x",
  4122. __func__, ohead->oh_clientid);
  4123. ASSERT(0);
  4124. return -EIO;
  4125. }
  4126. /*
  4127. * Check the ophdr contains all the data it is supposed to contain.
  4128. */
  4129. len = be32_to_cpu(ohead->oh_len);
  4130. if (dp + len > end) {
  4131. xfs_warn(log->l_mp, "%s: bad length 0x%x", __func__, len);
  4132. WARN_ON(1);
  4133. return -EIO;
  4134. }
  4135. trans = xlog_recover_ophdr_to_trans(rhash, rhead, ohead);
  4136. if (!trans) {
  4137. /* nothing to do, so skip over this ophdr */
  4138. return 0;
  4139. }
  4140. /*
  4141. * The recovered buffer queue is drained only once we know that all
  4142. * recovery items for the current LSN have been processed. This is
  4143. * required because:
  4144. *
  4145. * - Buffer write submission updates the metadata LSN of the buffer.
  4146. * - Log recovery skips items with a metadata LSN >= the current LSN of
  4147. * the recovery item.
  4148. * - Separate recovery items against the same metadata buffer can share
  4149. * a current LSN. I.e., consider that the LSN of a recovery item is
  4150. * defined as the starting LSN of the first record in which its
  4151. * transaction appears, that a record can hold multiple transactions,
  4152. * and/or that a transaction can span multiple records.
  4153. *
  4154. * In other words, we are allowed to submit a buffer from log recovery
  4155. * once per current LSN. Otherwise, we may incorrectly skip recovery
  4156. * items and cause corruption.
  4157. *
  4158. * We don't know up front whether buffers are updated multiple times per
  4159. * LSN. Therefore, track the current LSN of each commit log record as it
  4160. * is processed and drain the queue when it changes. Use commit records
  4161. * because they are ordered correctly by the logging code.
  4162. */
  4163. if (log->l_recovery_lsn != trans->r_lsn &&
  4164. ohead->oh_flags & XLOG_COMMIT_TRANS) {
  4165. error = xfs_buf_delwri_submit(buffer_list);
  4166. if (error)
  4167. return error;
  4168. log->l_recovery_lsn = trans->r_lsn;
  4169. }
  4170. return xlog_recovery_process_trans(log, trans, dp, len,
  4171. ohead->oh_flags, pass, buffer_list);
  4172. }
  4173. /*
  4174. * There are two valid states of the r_state field. 0 indicates that the
  4175. * transaction structure is in a normal state. We have either seen the
  4176. * start of the transaction or the last operation we added was not a partial
  4177. * operation. If the last operation we added to the transaction was a
  4178. * partial operation, we need to mark r_state with XLOG_WAS_CONT_TRANS.
  4179. *
  4180. * NOTE: skip LRs with 0 data length.
  4181. */
  4182. STATIC int
  4183. xlog_recover_process_data(
  4184. struct xlog *log,
  4185. struct hlist_head rhash[],
  4186. struct xlog_rec_header *rhead,
  4187. char *dp,
  4188. int pass,
  4189. struct list_head *buffer_list)
  4190. {
  4191. struct xlog_op_header *ohead;
  4192. char *end;
  4193. int num_logops;
  4194. int error;
  4195. end = dp + be32_to_cpu(rhead->h_len);
  4196. num_logops = be32_to_cpu(rhead->h_num_logops);
  4197. /* check the log format matches our own - else we can't recover */
  4198. if (xlog_header_check_recover(log->l_mp, rhead))
  4199. return -EIO;
  4200. trace_xfs_log_recover_record(log, rhead, pass);
  4201. while ((dp < end) && num_logops) {
  4202. ohead = (struct xlog_op_header *)dp;
  4203. dp += sizeof(*ohead);
  4204. ASSERT(dp <= end);
  4205. /* errors will abort recovery */
  4206. error = xlog_recover_process_ophdr(log, rhash, rhead, ohead,
  4207. dp, end, pass, buffer_list);
  4208. if (error)
  4209. return error;
  4210. dp += be32_to_cpu(ohead->oh_len);
  4211. num_logops--;
  4212. }
  4213. return 0;
  4214. }
  4215. /* Recover the EFI if necessary. */
  4216. STATIC int
  4217. xlog_recover_process_efi(
  4218. struct xfs_mount *mp,
  4219. struct xfs_ail *ailp,
  4220. struct xfs_log_item *lip)
  4221. {
  4222. struct xfs_efi_log_item *efip;
  4223. int error;
  4224. /*
  4225. * Skip EFIs that we've already processed.
  4226. */
  4227. efip = container_of(lip, struct xfs_efi_log_item, efi_item);
  4228. if (test_bit(XFS_EFI_RECOVERED, &efip->efi_flags))
  4229. return 0;
  4230. spin_unlock(&ailp->ail_lock);
  4231. error = xfs_efi_recover(mp, efip);
  4232. spin_lock(&ailp->ail_lock);
  4233. return error;
  4234. }
  4235. /* Release the EFI since we're cancelling everything. */
  4236. STATIC void
  4237. xlog_recover_cancel_efi(
  4238. struct xfs_mount *mp,
  4239. struct xfs_ail *ailp,
  4240. struct xfs_log_item *lip)
  4241. {
  4242. struct xfs_efi_log_item *efip;
  4243. efip = container_of(lip, struct xfs_efi_log_item, efi_item);
  4244. spin_unlock(&ailp->ail_lock);
  4245. xfs_efi_release(efip);
  4246. spin_lock(&ailp->ail_lock);
  4247. }
  4248. /* Recover the RUI if necessary. */
  4249. STATIC int
  4250. xlog_recover_process_rui(
  4251. struct xfs_mount *mp,
  4252. struct xfs_ail *ailp,
  4253. struct xfs_log_item *lip)
  4254. {
  4255. struct xfs_rui_log_item *ruip;
  4256. int error;
  4257. /*
  4258. * Skip RUIs that we've already processed.
  4259. */
  4260. ruip = container_of(lip, struct xfs_rui_log_item, rui_item);
  4261. if (test_bit(XFS_RUI_RECOVERED, &ruip->rui_flags))
  4262. return 0;
  4263. spin_unlock(&ailp->ail_lock);
  4264. error = xfs_rui_recover(mp, ruip);
  4265. spin_lock(&ailp->ail_lock);
  4266. return error;
  4267. }
  4268. /* Release the RUI since we're cancelling everything. */
  4269. STATIC void
  4270. xlog_recover_cancel_rui(
  4271. struct xfs_mount *mp,
  4272. struct xfs_ail *ailp,
  4273. struct xfs_log_item *lip)
  4274. {
  4275. struct xfs_rui_log_item *ruip;
  4276. ruip = container_of(lip, struct xfs_rui_log_item, rui_item);
  4277. spin_unlock(&ailp->ail_lock);
  4278. xfs_rui_release(ruip);
  4279. spin_lock(&ailp->ail_lock);
  4280. }
  4281. /* Recover the CUI if necessary. */
  4282. STATIC int
  4283. xlog_recover_process_cui(
  4284. struct xfs_trans *parent_tp,
  4285. struct xfs_ail *ailp,
  4286. struct xfs_log_item *lip)
  4287. {
  4288. struct xfs_cui_log_item *cuip;
  4289. int error;
  4290. /*
  4291. * Skip CUIs that we've already processed.
  4292. */
  4293. cuip = container_of(lip, struct xfs_cui_log_item, cui_item);
  4294. if (test_bit(XFS_CUI_RECOVERED, &cuip->cui_flags))
  4295. return 0;
  4296. spin_unlock(&ailp->ail_lock);
  4297. error = xfs_cui_recover(parent_tp, cuip);
  4298. spin_lock(&ailp->ail_lock);
  4299. return error;
  4300. }
  4301. /* Release the CUI since we're cancelling everything. */
  4302. STATIC void
  4303. xlog_recover_cancel_cui(
  4304. struct xfs_mount *mp,
  4305. struct xfs_ail *ailp,
  4306. struct xfs_log_item *lip)
  4307. {
  4308. struct xfs_cui_log_item *cuip;
  4309. cuip = container_of(lip, struct xfs_cui_log_item, cui_item);
  4310. spin_unlock(&ailp->ail_lock);
  4311. xfs_cui_release(cuip);
  4312. spin_lock(&ailp->ail_lock);
  4313. }
  4314. /* Recover the BUI if necessary. */
  4315. STATIC int
  4316. xlog_recover_process_bui(
  4317. struct xfs_trans *parent_tp,
  4318. struct xfs_ail *ailp,
  4319. struct xfs_log_item *lip)
  4320. {
  4321. struct xfs_bui_log_item *buip;
  4322. int error;
  4323. /*
  4324. * Skip BUIs that we've already processed.
  4325. */
  4326. buip = container_of(lip, struct xfs_bui_log_item, bui_item);
  4327. if (test_bit(XFS_BUI_RECOVERED, &buip->bui_flags))
  4328. return 0;
  4329. spin_unlock(&ailp->ail_lock);
  4330. error = xfs_bui_recover(parent_tp, buip);
  4331. spin_lock(&ailp->ail_lock);
  4332. return error;
  4333. }
  4334. /* Release the BUI since we're cancelling everything. */
  4335. STATIC void
  4336. xlog_recover_cancel_bui(
  4337. struct xfs_mount *mp,
  4338. struct xfs_ail *ailp,
  4339. struct xfs_log_item *lip)
  4340. {
  4341. struct xfs_bui_log_item *buip;
  4342. buip = container_of(lip, struct xfs_bui_log_item, bui_item);
  4343. spin_unlock(&ailp->ail_lock);
  4344. xfs_bui_release(buip);
  4345. spin_lock(&ailp->ail_lock);
  4346. }
  4347. /* Is this log item a deferred action intent? */
  4348. static inline bool xlog_item_is_intent(struct xfs_log_item *lip)
  4349. {
  4350. switch (lip->li_type) {
  4351. case XFS_LI_EFI:
  4352. case XFS_LI_RUI:
  4353. case XFS_LI_CUI:
  4354. case XFS_LI_BUI:
  4355. return true;
  4356. default:
  4357. return false;
  4358. }
  4359. }
  4360. /* Take all the collected deferred ops and finish them in order. */
  4361. static int
  4362. xlog_finish_defer_ops(
  4363. struct xfs_trans *parent_tp)
  4364. {
  4365. struct xfs_mount *mp = parent_tp->t_mountp;
  4366. struct xfs_trans *tp;
  4367. int64_t freeblks;
  4368. uint resblks;
  4369. int error;
  4370. /*
  4371. * We're finishing the defer_ops that accumulated as a result of
  4372. * recovering unfinished intent items during log recovery. We
  4373. * reserve an itruncate transaction because it is the largest
  4374. * permanent transaction type. Since we're the only user of the fs
  4375. * right now, take 93% (15/16) of the available free blocks. Use
  4376. * weird math to avoid a 64-bit division.
  4377. */
  4378. freeblks = percpu_counter_sum(&mp->m_fdblocks);
  4379. if (freeblks <= 0)
  4380. return -ENOSPC;
  4381. resblks = min_t(int64_t, UINT_MAX, freeblks);
  4382. resblks = (resblks * 15) >> 4;
  4383. error = xfs_trans_alloc(mp, &M_RES(mp)->tr_itruncate, resblks,
  4384. 0, XFS_TRANS_RESERVE, &tp);
  4385. if (error)
  4386. return error;
  4387. /* transfer all collected dfops to this transaction */
  4388. xfs_defer_move(tp, parent_tp);
  4389. return xfs_trans_commit(tp);
  4390. }
  4391. /*
  4392. * When this is called, all of the log intent items which did not have
  4393. * corresponding log done items should be in the AIL. What we do now
  4394. * is update the data structures associated with each one.
  4395. *
  4396. * Since we process the log intent items in normal transactions, they
  4397. * will be removed at some point after the commit. This prevents us
  4398. * from just walking down the list processing each one. We'll use a
  4399. * flag in the intent item to skip those that we've already processed
  4400. * and use the AIL iteration mechanism's generation count to try to
  4401. * speed this up at least a bit.
  4402. *
  4403. * When we start, we know that the intents are the only things in the
  4404. * AIL. As we process them, however, other items are added to the
  4405. * AIL.
  4406. */
  4407. STATIC int
  4408. xlog_recover_process_intents(
  4409. struct xlog *log)
  4410. {
  4411. struct xfs_trans *parent_tp;
  4412. struct xfs_ail_cursor cur;
  4413. struct xfs_log_item *lip;
  4414. struct xfs_ail *ailp;
  4415. int error;
  4416. #if defined(DEBUG) || defined(XFS_WARN)
  4417. xfs_lsn_t last_lsn;
  4418. #endif
  4419. /*
  4420. * The intent recovery handlers commit transactions to complete recovery
  4421. * for individual intents, but any new deferred operations that are
  4422. * queued during that process are held off until the very end. The
  4423. * purpose of this transaction is to serve as a container for deferred
  4424. * operations. Each intent recovery handler must transfer dfops here
  4425. * before its local transaction commits, and we'll finish the entire
  4426. * list below.
  4427. */
  4428. error = xfs_trans_alloc_empty(log->l_mp, &parent_tp);
  4429. if (error)
  4430. return error;
  4431. ailp = log->l_ailp;
  4432. spin_lock(&ailp->ail_lock);
  4433. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  4434. #if defined(DEBUG) || defined(XFS_WARN)
  4435. last_lsn = xlog_assign_lsn(log->l_curr_cycle, log->l_curr_block);
  4436. #endif
  4437. while (lip != NULL) {
  4438. /*
  4439. * We're done when we see something other than an intent.
  4440. * There should be no intents left in the AIL now.
  4441. */
  4442. if (!xlog_item_is_intent(lip)) {
  4443. #ifdef DEBUG
  4444. for (; lip; lip = xfs_trans_ail_cursor_next(ailp, &cur))
  4445. ASSERT(!xlog_item_is_intent(lip));
  4446. #endif
  4447. break;
  4448. }
  4449. /*
  4450. * We should never see a redo item with a LSN higher than
  4451. * the last transaction we found in the log at the start
  4452. * of recovery.
  4453. */
  4454. ASSERT(XFS_LSN_CMP(last_lsn, lip->li_lsn) >= 0);
  4455. /*
  4456. * NOTE: If your intent processing routine can create more
  4457. * deferred ops, you /must/ attach them to the dfops in this
  4458. * routine or else those subsequent intents will get
  4459. * replayed in the wrong order!
  4460. */
  4461. switch (lip->li_type) {
  4462. case XFS_LI_EFI:
  4463. error = xlog_recover_process_efi(log->l_mp, ailp, lip);
  4464. break;
  4465. case XFS_LI_RUI:
  4466. error = xlog_recover_process_rui(log->l_mp, ailp, lip);
  4467. break;
  4468. case XFS_LI_CUI:
  4469. error = xlog_recover_process_cui(parent_tp, ailp, lip);
  4470. break;
  4471. case XFS_LI_BUI:
  4472. error = xlog_recover_process_bui(parent_tp, ailp, lip);
  4473. break;
  4474. }
  4475. if (error)
  4476. goto out;
  4477. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  4478. }
  4479. out:
  4480. xfs_trans_ail_cursor_done(&cur);
  4481. spin_unlock(&ailp->ail_lock);
  4482. if (!error)
  4483. error = xlog_finish_defer_ops(parent_tp);
  4484. xfs_trans_cancel(parent_tp);
  4485. return error;
  4486. }
  4487. /*
  4488. * A cancel occurs when the mount has failed and we're bailing out.
  4489. * Release all pending log intent items so they don't pin the AIL.
  4490. */
  4491. STATIC int
  4492. xlog_recover_cancel_intents(
  4493. struct xlog *log)
  4494. {
  4495. struct xfs_log_item *lip;
  4496. int error = 0;
  4497. struct xfs_ail_cursor cur;
  4498. struct xfs_ail *ailp;
  4499. ailp = log->l_ailp;
  4500. spin_lock(&ailp->ail_lock);
  4501. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  4502. while (lip != NULL) {
  4503. /*
  4504. * We're done when we see something other than an intent.
  4505. * There should be no intents left in the AIL now.
  4506. */
  4507. if (!xlog_item_is_intent(lip)) {
  4508. #ifdef DEBUG
  4509. for (; lip; lip = xfs_trans_ail_cursor_next(ailp, &cur))
  4510. ASSERT(!xlog_item_is_intent(lip));
  4511. #endif
  4512. break;
  4513. }
  4514. switch (lip->li_type) {
  4515. case XFS_LI_EFI:
  4516. xlog_recover_cancel_efi(log->l_mp, ailp, lip);
  4517. break;
  4518. case XFS_LI_RUI:
  4519. xlog_recover_cancel_rui(log->l_mp, ailp, lip);
  4520. break;
  4521. case XFS_LI_CUI:
  4522. xlog_recover_cancel_cui(log->l_mp, ailp, lip);
  4523. break;
  4524. case XFS_LI_BUI:
  4525. xlog_recover_cancel_bui(log->l_mp, ailp, lip);
  4526. break;
  4527. }
  4528. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  4529. }
  4530. xfs_trans_ail_cursor_done(&cur);
  4531. spin_unlock(&ailp->ail_lock);
  4532. return error;
  4533. }
  4534. /*
  4535. * This routine performs a transaction to null out a bad inode pointer
  4536. * in an agi unlinked inode hash bucket.
  4537. */
  4538. STATIC void
  4539. xlog_recover_clear_agi_bucket(
  4540. xfs_mount_t *mp,
  4541. xfs_agnumber_t agno,
  4542. int bucket)
  4543. {
  4544. xfs_trans_t *tp;
  4545. xfs_agi_t *agi;
  4546. xfs_buf_t *agibp;
  4547. int offset;
  4548. int error;
  4549. error = xfs_trans_alloc(mp, &M_RES(mp)->tr_clearagi, 0, 0, 0, &tp);
  4550. if (error)
  4551. goto out_error;
  4552. error = xfs_read_agi(mp, tp, agno, &agibp);
  4553. if (error)
  4554. goto out_abort;
  4555. agi = XFS_BUF_TO_AGI(agibp);
  4556. agi->agi_unlinked[bucket] = cpu_to_be32(NULLAGINO);
  4557. offset = offsetof(xfs_agi_t, agi_unlinked) +
  4558. (sizeof(xfs_agino_t) * bucket);
  4559. xfs_trans_log_buf(tp, agibp, offset,
  4560. (offset + sizeof(xfs_agino_t) - 1));
  4561. error = xfs_trans_commit(tp);
  4562. if (error)
  4563. goto out_error;
  4564. return;
  4565. out_abort:
  4566. xfs_trans_cancel(tp);
  4567. out_error:
  4568. xfs_warn(mp, "%s: failed to clear agi %d. Continuing.", __func__, agno);
  4569. return;
  4570. }
  4571. STATIC xfs_agino_t
  4572. xlog_recover_process_one_iunlink(
  4573. struct xfs_mount *mp,
  4574. xfs_agnumber_t agno,
  4575. xfs_agino_t agino,
  4576. int bucket)
  4577. {
  4578. struct xfs_buf *ibp;
  4579. struct xfs_dinode *dip;
  4580. struct xfs_inode *ip;
  4581. xfs_ino_t ino;
  4582. int error;
  4583. ino = XFS_AGINO_TO_INO(mp, agno, agino);
  4584. error = xfs_iget(mp, NULL, ino, 0, 0, &ip);
  4585. if (error)
  4586. goto fail;
  4587. /*
  4588. * Get the on disk inode to find the next inode in the bucket.
  4589. */
  4590. error = xfs_imap_to_bp(mp, NULL, &ip->i_imap, &dip, &ibp, 0, 0);
  4591. if (error)
  4592. goto fail_iput;
  4593. xfs_iflags_clear(ip, XFS_IRECOVERY);
  4594. ASSERT(VFS_I(ip)->i_nlink == 0);
  4595. ASSERT(VFS_I(ip)->i_mode != 0);
  4596. /* setup for the next pass */
  4597. agino = be32_to_cpu(dip->di_next_unlinked);
  4598. xfs_buf_relse(ibp);
  4599. /*
  4600. * Prevent any DMAPI event from being sent when the reference on
  4601. * the inode is dropped.
  4602. */
  4603. ip->i_d.di_dmevmask = 0;
  4604. xfs_irele(ip);
  4605. return agino;
  4606. fail_iput:
  4607. xfs_irele(ip);
  4608. fail:
  4609. /*
  4610. * We can't read in the inode this bucket points to, or this inode
  4611. * is messed up. Just ditch this bucket of inodes. We will lose
  4612. * some inodes and space, but at least we won't hang.
  4613. *
  4614. * Call xlog_recover_clear_agi_bucket() to perform a transaction to
  4615. * clear the inode pointer in the bucket.
  4616. */
  4617. xlog_recover_clear_agi_bucket(mp, agno, bucket);
  4618. return NULLAGINO;
  4619. }
  4620. /*
  4621. * xlog_iunlink_recover
  4622. *
  4623. * This is called during recovery to process any inodes which
  4624. * we unlinked but not freed when the system crashed. These
  4625. * inodes will be on the lists in the AGI blocks. What we do
  4626. * here is scan all the AGIs and fully truncate and free any
  4627. * inodes found on the lists. Each inode is removed from the
  4628. * lists when it has been fully truncated and is freed. The
  4629. * freeing of the inode and its removal from the list must be
  4630. * atomic.
  4631. */
  4632. STATIC void
  4633. xlog_recover_process_iunlinks(
  4634. struct xlog *log)
  4635. {
  4636. xfs_mount_t *mp;
  4637. xfs_agnumber_t agno;
  4638. xfs_agi_t *agi;
  4639. xfs_buf_t *agibp;
  4640. xfs_agino_t agino;
  4641. int bucket;
  4642. int error;
  4643. mp = log->l_mp;
  4644. for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
  4645. /*
  4646. * Find the agi for this ag.
  4647. */
  4648. error = xfs_read_agi(mp, NULL, agno, &agibp);
  4649. if (error) {
  4650. /*
  4651. * AGI is b0rked. Don't process it.
  4652. *
  4653. * We should probably mark the filesystem as corrupt
  4654. * after we've recovered all the ag's we can....
  4655. */
  4656. continue;
  4657. }
  4658. /*
  4659. * Unlock the buffer so that it can be acquired in the normal
  4660. * course of the transaction to truncate and free each inode.
  4661. * Because we are not racing with anyone else here for the AGI
  4662. * buffer, we don't even need to hold it locked to read the
  4663. * initial unlinked bucket entries out of the buffer. We keep
  4664. * buffer reference though, so that it stays pinned in memory
  4665. * while we need the buffer.
  4666. */
  4667. agi = XFS_BUF_TO_AGI(agibp);
  4668. xfs_buf_unlock(agibp);
  4669. for (bucket = 0; bucket < XFS_AGI_UNLINKED_BUCKETS; bucket++) {
  4670. agino = be32_to_cpu(agi->agi_unlinked[bucket]);
  4671. while (agino != NULLAGINO) {
  4672. agino = xlog_recover_process_one_iunlink(mp,
  4673. agno, agino, bucket);
  4674. }
  4675. }
  4676. xfs_buf_rele(agibp);
  4677. }
  4678. }
  4679. STATIC int
  4680. xlog_unpack_data(
  4681. struct xlog_rec_header *rhead,
  4682. char *dp,
  4683. struct xlog *log)
  4684. {
  4685. int i, j, k;
  4686. for (i = 0; i < BTOBB(be32_to_cpu(rhead->h_len)) &&
  4687. i < (XLOG_HEADER_CYCLE_SIZE / BBSIZE); i++) {
  4688. *(__be32 *)dp = *(__be32 *)&rhead->h_cycle_data[i];
  4689. dp += BBSIZE;
  4690. }
  4691. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  4692. xlog_in_core_2_t *xhdr = (xlog_in_core_2_t *)rhead;
  4693. for ( ; i < BTOBB(be32_to_cpu(rhead->h_len)); i++) {
  4694. j = i / (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
  4695. k = i % (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
  4696. *(__be32 *)dp = xhdr[j].hic_xheader.xh_cycle_data[k];
  4697. dp += BBSIZE;
  4698. }
  4699. }
  4700. return 0;
  4701. }
  4702. /*
  4703. * CRC check, unpack and process a log record.
  4704. */
  4705. STATIC int
  4706. xlog_recover_process(
  4707. struct xlog *log,
  4708. struct hlist_head rhash[],
  4709. struct xlog_rec_header *rhead,
  4710. char *dp,
  4711. int pass,
  4712. struct list_head *buffer_list)
  4713. {
  4714. int error;
  4715. __le32 old_crc = rhead->h_crc;
  4716. __le32 crc;
  4717. crc = xlog_cksum(log, rhead, dp, be32_to_cpu(rhead->h_len));
  4718. /*
  4719. * Nothing else to do if this is a CRC verification pass. Just return
  4720. * if this a record with a non-zero crc. Unfortunately, mkfs always
  4721. * sets old_crc to 0 so we must consider this valid even on v5 supers.
  4722. * Otherwise, return EFSBADCRC on failure so the callers up the stack
  4723. * know precisely what failed.
  4724. */
  4725. if (pass == XLOG_RECOVER_CRCPASS) {
  4726. if (old_crc && crc != old_crc)
  4727. return -EFSBADCRC;
  4728. return 0;
  4729. }
  4730. /*
  4731. * We're in the normal recovery path. Issue a warning if and only if the
  4732. * CRC in the header is non-zero. This is an advisory warning and the
  4733. * zero CRC check prevents warnings from being emitted when upgrading
  4734. * the kernel from one that does not add CRCs by default.
  4735. */
  4736. if (crc != old_crc) {
  4737. if (old_crc || xfs_sb_version_hascrc(&log->l_mp->m_sb)) {
  4738. xfs_alert(log->l_mp,
  4739. "log record CRC mismatch: found 0x%x, expected 0x%x.",
  4740. le32_to_cpu(old_crc),
  4741. le32_to_cpu(crc));
  4742. xfs_hex_dump(dp, 32);
  4743. }
  4744. /*
  4745. * If the filesystem is CRC enabled, this mismatch becomes a
  4746. * fatal log corruption failure.
  4747. */
  4748. if (xfs_sb_version_hascrc(&log->l_mp->m_sb))
  4749. return -EFSCORRUPTED;
  4750. }
  4751. error = xlog_unpack_data(rhead, dp, log);
  4752. if (error)
  4753. return error;
  4754. return xlog_recover_process_data(log, rhash, rhead, dp, pass,
  4755. buffer_list);
  4756. }
  4757. STATIC int
  4758. xlog_valid_rec_header(
  4759. struct xlog *log,
  4760. struct xlog_rec_header *rhead,
  4761. xfs_daddr_t blkno)
  4762. {
  4763. int hlen;
  4764. if (unlikely(rhead->h_magicno != cpu_to_be32(XLOG_HEADER_MAGIC_NUM))) {
  4765. XFS_ERROR_REPORT("xlog_valid_rec_header(1)",
  4766. XFS_ERRLEVEL_LOW, log->l_mp);
  4767. return -EFSCORRUPTED;
  4768. }
  4769. if (unlikely(
  4770. (!rhead->h_version ||
  4771. (be32_to_cpu(rhead->h_version) & (~XLOG_VERSION_OKBITS))))) {
  4772. xfs_warn(log->l_mp, "%s: unrecognised log version (%d).",
  4773. __func__, be32_to_cpu(rhead->h_version));
  4774. return -EIO;
  4775. }
  4776. /* LR body must have data or it wouldn't have been written */
  4777. hlen = be32_to_cpu(rhead->h_len);
  4778. if (unlikely( hlen <= 0 || hlen > INT_MAX )) {
  4779. XFS_ERROR_REPORT("xlog_valid_rec_header(2)",
  4780. XFS_ERRLEVEL_LOW, log->l_mp);
  4781. return -EFSCORRUPTED;
  4782. }
  4783. if (unlikely( blkno > log->l_logBBsize || blkno > INT_MAX )) {
  4784. XFS_ERROR_REPORT("xlog_valid_rec_header(3)",
  4785. XFS_ERRLEVEL_LOW, log->l_mp);
  4786. return -EFSCORRUPTED;
  4787. }
  4788. return 0;
  4789. }
  4790. /*
  4791. * Read the log from tail to head and process the log records found.
  4792. * Handle the two cases where the tail and head are in the same cycle
  4793. * and where the active portion of the log wraps around the end of
  4794. * the physical log separately. The pass parameter is passed through
  4795. * to the routines called to process the data and is not looked at
  4796. * here.
  4797. */
  4798. STATIC int
  4799. xlog_do_recovery_pass(
  4800. struct xlog *log,
  4801. xfs_daddr_t head_blk,
  4802. xfs_daddr_t tail_blk,
  4803. int pass,
  4804. xfs_daddr_t *first_bad) /* out: first bad log rec */
  4805. {
  4806. xlog_rec_header_t *rhead;
  4807. xfs_daddr_t blk_no, rblk_no;
  4808. xfs_daddr_t rhead_blk;
  4809. char *offset;
  4810. xfs_buf_t *hbp, *dbp;
  4811. int error = 0, h_size, h_len;
  4812. int error2 = 0;
  4813. int bblks, split_bblks;
  4814. int hblks, split_hblks, wrapped_hblks;
  4815. int i;
  4816. struct hlist_head rhash[XLOG_RHASH_SIZE];
  4817. LIST_HEAD (buffer_list);
  4818. ASSERT(head_blk != tail_blk);
  4819. blk_no = rhead_blk = tail_blk;
  4820. for (i = 0; i < XLOG_RHASH_SIZE; i++)
  4821. INIT_HLIST_HEAD(&rhash[i]);
  4822. /*
  4823. * Read the header of the tail block and get the iclog buffer size from
  4824. * h_size. Use this to tell how many sectors make up the log header.
  4825. */
  4826. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  4827. /*
  4828. * When using variable length iclogs, read first sector of
  4829. * iclog header and extract the header size from it. Get a
  4830. * new hbp that is the correct size.
  4831. */
  4832. hbp = xlog_get_bp(log, 1);
  4833. if (!hbp)
  4834. return -ENOMEM;
  4835. error = xlog_bread(log, tail_blk, 1, hbp, &offset);
  4836. if (error)
  4837. goto bread_err1;
  4838. rhead = (xlog_rec_header_t *)offset;
  4839. error = xlog_valid_rec_header(log, rhead, tail_blk);
  4840. if (error)
  4841. goto bread_err1;
  4842. /*
  4843. * xfsprogs has a bug where record length is based on lsunit but
  4844. * h_size (iclog size) is hardcoded to 32k. Now that we
  4845. * unconditionally CRC verify the unmount record, this means the
  4846. * log buffer can be too small for the record and cause an
  4847. * overrun.
  4848. *
  4849. * Detect this condition here. Use lsunit for the buffer size as
  4850. * long as this looks like the mkfs case. Otherwise, return an
  4851. * error to avoid a buffer overrun.
  4852. */
  4853. h_size = be32_to_cpu(rhead->h_size);
  4854. h_len = be32_to_cpu(rhead->h_len);
  4855. if (h_len > h_size) {
  4856. if (h_len <= log->l_mp->m_logbsize &&
  4857. be32_to_cpu(rhead->h_num_logops) == 1) {
  4858. xfs_warn(log->l_mp,
  4859. "invalid iclog size (%d bytes), using lsunit (%d bytes)",
  4860. h_size, log->l_mp->m_logbsize);
  4861. h_size = log->l_mp->m_logbsize;
  4862. } else
  4863. return -EFSCORRUPTED;
  4864. }
  4865. if ((be32_to_cpu(rhead->h_version) & XLOG_VERSION_2) &&
  4866. (h_size > XLOG_HEADER_CYCLE_SIZE)) {
  4867. hblks = h_size / XLOG_HEADER_CYCLE_SIZE;
  4868. if (h_size % XLOG_HEADER_CYCLE_SIZE)
  4869. hblks++;
  4870. xlog_put_bp(hbp);
  4871. hbp = xlog_get_bp(log, hblks);
  4872. } else {
  4873. hblks = 1;
  4874. }
  4875. } else {
  4876. ASSERT(log->l_sectBBsize == 1);
  4877. hblks = 1;
  4878. hbp = xlog_get_bp(log, 1);
  4879. h_size = XLOG_BIG_RECORD_BSIZE;
  4880. }
  4881. if (!hbp)
  4882. return -ENOMEM;
  4883. dbp = xlog_get_bp(log, BTOBB(h_size));
  4884. if (!dbp) {
  4885. xlog_put_bp(hbp);
  4886. return -ENOMEM;
  4887. }
  4888. memset(rhash, 0, sizeof(rhash));
  4889. if (tail_blk > head_blk) {
  4890. /*
  4891. * Perform recovery around the end of the physical log.
  4892. * When the head is not on the same cycle number as the tail,
  4893. * we can't do a sequential recovery.
  4894. */
  4895. while (blk_no < log->l_logBBsize) {
  4896. /*
  4897. * Check for header wrapping around physical end-of-log
  4898. */
  4899. offset = hbp->b_addr;
  4900. split_hblks = 0;
  4901. wrapped_hblks = 0;
  4902. if (blk_no + hblks <= log->l_logBBsize) {
  4903. /* Read header in one read */
  4904. error = xlog_bread(log, blk_no, hblks, hbp,
  4905. &offset);
  4906. if (error)
  4907. goto bread_err2;
  4908. } else {
  4909. /* This LR is split across physical log end */
  4910. if (blk_no != log->l_logBBsize) {
  4911. /* some data before physical log end */
  4912. ASSERT(blk_no <= INT_MAX);
  4913. split_hblks = log->l_logBBsize - (int)blk_no;
  4914. ASSERT(split_hblks > 0);
  4915. error = xlog_bread(log, blk_no,
  4916. split_hblks, hbp,
  4917. &offset);
  4918. if (error)
  4919. goto bread_err2;
  4920. }
  4921. /*
  4922. * Note: this black magic still works with
  4923. * large sector sizes (non-512) only because:
  4924. * - we increased the buffer size originally
  4925. * by 1 sector giving us enough extra space
  4926. * for the second read;
  4927. * - the log start is guaranteed to be sector
  4928. * aligned;
  4929. * - we read the log end (LR header start)
  4930. * _first_, then the log start (LR header end)
  4931. * - order is important.
  4932. */
  4933. wrapped_hblks = hblks - split_hblks;
  4934. error = xlog_bread_offset(log, 0,
  4935. wrapped_hblks, hbp,
  4936. offset + BBTOB(split_hblks));
  4937. if (error)
  4938. goto bread_err2;
  4939. }
  4940. rhead = (xlog_rec_header_t *)offset;
  4941. error = xlog_valid_rec_header(log, rhead,
  4942. split_hblks ? blk_no : 0);
  4943. if (error)
  4944. goto bread_err2;
  4945. bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
  4946. blk_no += hblks;
  4947. /*
  4948. * Read the log record data in multiple reads if it
  4949. * wraps around the end of the log. Note that if the
  4950. * header already wrapped, blk_no could point past the
  4951. * end of the log. The record data is contiguous in
  4952. * that case.
  4953. */
  4954. if (blk_no + bblks <= log->l_logBBsize ||
  4955. blk_no >= log->l_logBBsize) {
  4956. rblk_no = xlog_wrap_logbno(log, blk_no);
  4957. error = xlog_bread(log, rblk_no, bblks, dbp,
  4958. &offset);
  4959. if (error)
  4960. goto bread_err2;
  4961. } else {
  4962. /* This log record is split across the
  4963. * physical end of log */
  4964. offset = dbp->b_addr;
  4965. split_bblks = 0;
  4966. if (blk_no != log->l_logBBsize) {
  4967. /* some data is before the physical
  4968. * end of log */
  4969. ASSERT(!wrapped_hblks);
  4970. ASSERT(blk_no <= INT_MAX);
  4971. split_bblks =
  4972. log->l_logBBsize - (int)blk_no;
  4973. ASSERT(split_bblks > 0);
  4974. error = xlog_bread(log, blk_no,
  4975. split_bblks, dbp,
  4976. &offset);
  4977. if (error)
  4978. goto bread_err2;
  4979. }
  4980. /*
  4981. * Note: this black magic still works with
  4982. * large sector sizes (non-512) only because:
  4983. * - we increased the buffer size originally
  4984. * by 1 sector giving us enough extra space
  4985. * for the second read;
  4986. * - the log start is guaranteed to be sector
  4987. * aligned;
  4988. * - we read the log end (LR header start)
  4989. * _first_, then the log start (LR header end)
  4990. * - order is important.
  4991. */
  4992. error = xlog_bread_offset(log, 0,
  4993. bblks - split_bblks, dbp,
  4994. offset + BBTOB(split_bblks));
  4995. if (error)
  4996. goto bread_err2;
  4997. }
  4998. error = xlog_recover_process(log, rhash, rhead, offset,
  4999. pass, &buffer_list);
  5000. if (error)
  5001. goto bread_err2;
  5002. blk_no += bblks;
  5003. rhead_blk = blk_no;
  5004. }
  5005. ASSERT(blk_no >= log->l_logBBsize);
  5006. blk_no -= log->l_logBBsize;
  5007. rhead_blk = blk_no;
  5008. }
  5009. /* read first part of physical log */
  5010. while (blk_no < head_blk) {
  5011. error = xlog_bread(log, blk_no, hblks, hbp, &offset);
  5012. if (error)
  5013. goto bread_err2;
  5014. rhead = (xlog_rec_header_t *)offset;
  5015. error = xlog_valid_rec_header(log, rhead, blk_no);
  5016. if (error)
  5017. goto bread_err2;
  5018. /* blocks in data section */
  5019. bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
  5020. error = xlog_bread(log, blk_no+hblks, bblks, dbp,
  5021. &offset);
  5022. if (error)
  5023. goto bread_err2;
  5024. error = xlog_recover_process(log, rhash, rhead, offset, pass,
  5025. &buffer_list);
  5026. if (error)
  5027. goto bread_err2;
  5028. blk_no += bblks + hblks;
  5029. rhead_blk = blk_no;
  5030. }
  5031. bread_err2:
  5032. xlog_put_bp(dbp);
  5033. bread_err1:
  5034. xlog_put_bp(hbp);
  5035. /*
  5036. * Submit buffers that have been added from the last record processed,
  5037. * regardless of error status.
  5038. */
  5039. if (!list_empty(&buffer_list))
  5040. error2 = xfs_buf_delwri_submit(&buffer_list);
  5041. if (error && first_bad)
  5042. *first_bad = rhead_blk;
  5043. /*
  5044. * Transactions are freed at commit time but transactions without commit
  5045. * records on disk are never committed. Free any that may be left in the
  5046. * hash table.
  5047. */
  5048. for (i = 0; i < XLOG_RHASH_SIZE; i++) {
  5049. struct hlist_node *tmp;
  5050. struct xlog_recover *trans;
  5051. hlist_for_each_entry_safe(trans, tmp, &rhash[i], r_list)
  5052. xlog_recover_free_trans(trans);
  5053. }
  5054. return error ? error : error2;
  5055. }
  5056. /*
  5057. * Do the recovery of the log. We actually do this in two phases.
  5058. * The two passes are necessary in order to implement the function
  5059. * of cancelling a record written into the log. The first pass
  5060. * determines those things which have been cancelled, and the
  5061. * second pass replays log items normally except for those which
  5062. * have been cancelled. The handling of the replay and cancellations
  5063. * takes place in the log item type specific routines.
  5064. *
  5065. * The table of items which have cancel records in the log is allocated
  5066. * and freed at this level, since only here do we know when all of
  5067. * the log recovery has been completed.
  5068. */
  5069. STATIC int
  5070. xlog_do_log_recovery(
  5071. struct xlog *log,
  5072. xfs_daddr_t head_blk,
  5073. xfs_daddr_t tail_blk)
  5074. {
  5075. int error, i;
  5076. ASSERT(head_blk != tail_blk);
  5077. /*
  5078. * First do a pass to find all of the cancelled buf log items.
  5079. * Store them in the buf_cancel_table for use in the second pass.
  5080. */
  5081. log->l_buf_cancel_table = kmem_zalloc(XLOG_BC_TABLE_SIZE *
  5082. sizeof(struct list_head),
  5083. KM_SLEEP);
  5084. for (i = 0; i < XLOG_BC_TABLE_SIZE; i++)
  5085. INIT_LIST_HEAD(&log->l_buf_cancel_table[i]);
  5086. error = xlog_do_recovery_pass(log, head_blk, tail_blk,
  5087. XLOG_RECOVER_PASS1, NULL);
  5088. if (error != 0) {
  5089. kmem_free(log->l_buf_cancel_table);
  5090. log->l_buf_cancel_table = NULL;
  5091. return error;
  5092. }
  5093. /*
  5094. * Then do a second pass to actually recover the items in the log.
  5095. * When it is complete free the table of buf cancel items.
  5096. */
  5097. error = xlog_do_recovery_pass(log, head_blk, tail_blk,
  5098. XLOG_RECOVER_PASS2, NULL);
  5099. #ifdef DEBUG
  5100. if (!error) {
  5101. int i;
  5102. for (i = 0; i < XLOG_BC_TABLE_SIZE; i++)
  5103. ASSERT(list_empty(&log->l_buf_cancel_table[i]));
  5104. }
  5105. #endif /* DEBUG */
  5106. kmem_free(log->l_buf_cancel_table);
  5107. log->l_buf_cancel_table = NULL;
  5108. return error;
  5109. }
  5110. /*
  5111. * Do the actual recovery
  5112. */
  5113. STATIC int
  5114. xlog_do_recover(
  5115. struct xlog *log,
  5116. xfs_daddr_t head_blk,
  5117. xfs_daddr_t tail_blk)
  5118. {
  5119. struct xfs_mount *mp = log->l_mp;
  5120. int error;
  5121. xfs_buf_t *bp;
  5122. xfs_sb_t *sbp;
  5123. trace_xfs_log_recover(log, head_blk, tail_blk);
  5124. /*
  5125. * First replay the images in the log.
  5126. */
  5127. error = xlog_do_log_recovery(log, head_blk, tail_blk);
  5128. if (error)
  5129. return error;
  5130. /*
  5131. * If IO errors happened during recovery, bail out.
  5132. */
  5133. if (XFS_FORCED_SHUTDOWN(mp)) {
  5134. return -EIO;
  5135. }
  5136. /*
  5137. * We now update the tail_lsn since much of the recovery has completed
  5138. * and there may be space available to use. If there were no extent
  5139. * or iunlinks, we can free up the entire log and set the tail_lsn to
  5140. * be the last_sync_lsn. This was set in xlog_find_tail to be the
  5141. * lsn of the last known good LR on disk. If there are extent frees
  5142. * or iunlinks they will have some entries in the AIL; so we look at
  5143. * the AIL to determine how to set the tail_lsn.
  5144. */
  5145. xlog_assign_tail_lsn(mp);
  5146. /*
  5147. * Now that we've finished replaying all buffer and inode
  5148. * updates, re-read in the superblock and reverify it.
  5149. */
  5150. bp = xfs_getsb(mp, 0);
  5151. bp->b_flags &= ~(XBF_DONE | XBF_ASYNC);
  5152. ASSERT(!(bp->b_flags & XBF_WRITE));
  5153. bp->b_flags |= XBF_READ;
  5154. bp->b_ops = &xfs_sb_buf_ops;
  5155. error = xfs_buf_submit(bp);
  5156. if (error) {
  5157. if (!XFS_FORCED_SHUTDOWN(mp)) {
  5158. xfs_buf_ioerror_alert(bp, __func__);
  5159. ASSERT(0);
  5160. }
  5161. xfs_buf_relse(bp);
  5162. return error;
  5163. }
  5164. /* Convert superblock from on-disk format */
  5165. sbp = &mp->m_sb;
  5166. xfs_sb_from_disk(sbp, XFS_BUF_TO_SBP(bp));
  5167. xfs_buf_relse(bp);
  5168. /* re-initialise in-core superblock and geometry structures */
  5169. xfs_reinit_percpu_counters(mp);
  5170. error = xfs_initialize_perag(mp, sbp->sb_agcount, &mp->m_maxagi);
  5171. if (error) {
  5172. xfs_warn(mp, "Failed post-recovery per-ag init: %d", error);
  5173. return error;
  5174. }
  5175. mp->m_alloc_set_aside = xfs_alloc_set_aside(mp);
  5176. xlog_recover_check_summary(log);
  5177. /* Normal transactions can now occur */
  5178. log->l_flags &= ~XLOG_ACTIVE_RECOVERY;
  5179. return 0;
  5180. }
  5181. /*
  5182. * Perform recovery and re-initialize some log variables in xlog_find_tail.
  5183. *
  5184. * Return error or zero.
  5185. */
  5186. int
  5187. xlog_recover(
  5188. struct xlog *log)
  5189. {
  5190. xfs_daddr_t head_blk, tail_blk;
  5191. int error;
  5192. /* find the tail of the log */
  5193. error = xlog_find_tail(log, &head_blk, &tail_blk);
  5194. if (error)
  5195. return error;
  5196. /*
  5197. * The superblock was read before the log was available and thus the LSN
  5198. * could not be verified. Check the superblock LSN against the current
  5199. * LSN now that it's known.
  5200. */
  5201. if (xfs_sb_version_hascrc(&log->l_mp->m_sb) &&
  5202. !xfs_log_check_lsn(log->l_mp, log->l_mp->m_sb.sb_lsn))
  5203. return -EINVAL;
  5204. if (tail_blk != head_blk) {
  5205. /* There used to be a comment here:
  5206. *
  5207. * disallow recovery on read-only mounts. note -- mount
  5208. * checks for ENOSPC and turns it into an intelligent
  5209. * error message.
  5210. * ...but this is no longer true. Now, unless you specify
  5211. * NORECOVERY (in which case this function would never be
  5212. * called), we just go ahead and recover. We do this all
  5213. * under the vfs layer, so we can get away with it unless
  5214. * the device itself is read-only, in which case we fail.
  5215. */
  5216. if ((error = xfs_dev_is_read_only(log->l_mp, "recovery"))) {
  5217. return error;
  5218. }
  5219. /*
  5220. * Version 5 superblock log feature mask validation. We know the
  5221. * log is dirty so check if there are any unknown log features
  5222. * in what we need to recover. If there are unknown features
  5223. * (e.g. unsupported transactions, then simply reject the
  5224. * attempt at recovery before touching anything.
  5225. */
  5226. if (XFS_SB_VERSION_NUM(&log->l_mp->m_sb) == XFS_SB_VERSION_5 &&
  5227. xfs_sb_has_incompat_log_feature(&log->l_mp->m_sb,
  5228. XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN)) {
  5229. xfs_warn(log->l_mp,
  5230. "Superblock has unknown incompatible log features (0x%x) enabled.",
  5231. (log->l_mp->m_sb.sb_features_log_incompat &
  5232. XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN));
  5233. xfs_warn(log->l_mp,
  5234. "The log can not be fully and/or safely recovered by this kernel.");
  5235. xfs_warn(log->l_mp,
  5236. "Please recover the log on a kernel that supports the unknown features.");
  5237. return -EINVAL;
  5238. }
  5239. /*
  5240. * Delay log recovery if the debug hook is set. This is debug
  5241. * instrumention to coordinate simulation of I/O failures with
  5242. * log recovery.
  5243. */
  5244. if (xfs_globals.log_recovery_delay) {
  5245. xfs_notice(log->l_mp,
  5246. "Delaying log recovery for %d seconds.",
  5247. xfs_globals.log_recovery_delay);
  5248. msleep(xfs_globals.log_recovery_delay * 1000);
  5249. }
  5250. xfs_notice(log->l_mp, "Starting recovery (logdev: %s)",
  5251. log->l_mp->m_logname ? log->l_mp->m_logname
  5252. : "internal");
  5253. error = xlog_do_recover(log, head_blk, tail_blk);
  5254. log->l_flags |= XLOG_RECOVERY_NEEDED;
  5255. }
  5256. return error;
  5257. }
  5258. /*
  5259. * In the first part of recovery we replay inodes and buffers and build
  5260. * up the list of extent free items which need to be processed. Here
  5261. * we process the extent free items and clean up the on disk unlinked
  5262. * inode lists. This is separated from the first part of recovery so
  5263. * that the root and real-time bitmap inodes can be read in from disk in
  5264. * between the two stages. This is necessary so that we can free space
  5265. * in the real-time portion of the file system.
  5266. */
  5267. int
  5268. xlog_recover_finish(
  5269. struct xlog *log)
  5270. {
  5271. /*
  5272. * Now we're ready to do the transactions needed for the
  5273. * rest of recovery. Start with completing all the extent
  5274. * free intent records and then process the unlinked inode
  5275. * lists. At this point, we essentially run in normal mode
  5276. * except that we're still performing recovery actions
  5277. * rather than accepting new requests.
  5278. */
  5279. if (log->l_flags & XLOG_RECOVERY_NEEDED) {
  5280. int error;
  5281. error = xlog_recover_process_intents(log);
  5282. if (error) {
  5283. xfs_alert(log->l_mp, "Failed to recover intents");
  5284. return error;
  5285. }
  5286. /*
  5287. * Sync the log to get all the intents out of the AIL.
  5288. * This isn't absolutely necessary, but it helps in
  5289. * case the unlink transactions would have problems
  5290. * pushing the intents out of the way.
  5291. */
  5292. xfs_log_force(log->l_mp, XFS_LOG_SYNC);
  5293. xlog_recover_process_iunlinks(log);
  5294. xlog_recover_check_summary(log);
  5295. xfs_notice(log->l_mp, "Ending recovery (logdev: %s)",
  5296. log->l_mp->m_logname ? log->l_mp->m_logname
  5297. : "internal");
  5298. log->l_flags &= ~XLOG_RECOVERY_NEEDED;
  5299. } else {
  5300. xfs_info(log->l_mp, "Ending clean mount");
  5301. }
  5302. return 0;
  5303. }
  5304. int
  5305. xlog_recover_cancel(
  5306. struct xlog *log)
  5307. {
  5308. int error = 0;
  5309. if (log->l_flags & XLOG_RECOVERY_NEEDED)
  5310. error = xlog_recover_cancel_intents(log);
  5311. return error;
  5312. }
  5313. #if defined(DEBUG)
  5314. /*
  5315. * Read all of the agf and agi counters and check that they
  5316. * are consistent with the superblock counters.
  5317. */
  5318. STATIC void
  5319. xlog_recover_check_summary(
  5320. struct xlog *log)
  5321. {
  5322. xfs_mount_t *mp;
  5323. xfs_agf_t *agfp;
  5324. xfs_buf_t *agfbp;
  5325. xfs_buf_t *agibp;
  5326. xfs_agnumber_t agno;
  5327. uint64_t freeblks;
  5328. uint64_t itotal;
  5329. uint64_t ifree;
  5330. int error;
  5331. mp = log->l_mp;
  5332. freeblks = 0LL;
  5333. itotal = 0LL;
  5334. ifree = 0LL;
  5335. for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
  5336. error = xfs_read_agf(mp, NULL, agno, 0, &agfbp);
  5337. if (error) {
  5338. xfs_alert(mp, "%s agf read failed agno %d error %d",
  5339. __func__, agno, error);
  5340. } else {
  5341. agfp = XFS_BUF_TO_AGF(agfbp);
  5342. freeblks += be32_to_cpu(agfp->agf_freeblks) +
  5343. be32_to_cpu(agfp->agf_flcount);
  5344. xfs_buf_relse(agfbp);
  5345. }
  5346. error = xfs_read_agi(mp, NULL, agno, &agibp);
  5347. if (error) {
  5348. xfs_alert(mp, "%s agi read failed agno %d error %d",
  5349. __func__, agno, error);
  5350. } else {
  5351. struct xfs_agi *agi = XFS_BUF_TO_AGI(agibp);
  5352. itotal += be32_to_cpu(agi->agi_count);
  5353. ifree += be32_to_cpu(agi->agi_freecount);
  5354. xfs_buf_relse(agibp);
  5355. }
  5356. }
  5357. }
  5358. #endif /* DEBUG */