xfs_log_recover.c 107 KB

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  1. /*
  2. * Copyright (c) 2000-2006 Silicon Graphics, Inc.
  3. * All Rights Reserved.
  4. *
  5. * This program is free software; you can redistribute it and/or
  6. * modify it under the terms of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it would be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. * GNU General Public License for more details.
  13. *
  14. * You should have received a copy of the GNU General Public License
  15. * along with this program; if not, write the Free Software Foundation,
  16. * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
  17. */
  18. #include "xfs.h"
  19. #include "xfs_fs.h"
  20. #include "xfs_types.h"
  21. #include "xfs_bit.h"
  22. #include "xfs_log.h"
  23. #include "xfs_inum.h"
  24. #include "xfs_trans.h"
  25. #include "xfs_sb.h"
  26. #include "xfs_ag.h"
  27. #include "xfs_mount.h"
  28. #include "xfs_error.h"
  29. #include "xfs_bmap_btree.h"
  30. #include "xfs_alloc_btree.h"
  31. #include "xfs_ialloc_btree.h"
  32. #include "xfs_dinode.h"
  33. #include "xfs_inode.h"
  34. #include "xfs_inode_item.h"
  35. #include "xfs_alloc.h"
  36. #include "xfs_ialloc.h"
  37. #include "xfs_log_priv.h"
  38. #include "xfs_buf_item.h"
  39. #include "xfs_log_recover.h"
  40. #include "xfs_extfree_item.h"
  41. #include "xfs_trans_priv.h"
  42. #include "xfs_quota.h"
  43. #include "xfs_rw.h"
  44. #include "xfs_utils.h"
  45. #include "xfs_trace.h"
  46. STATIC int xlog_find_zeroed(xlog_t *, xfs_daddr_t *);
  47. STATIC int xlog_clear_stale_blocks(xlog_t *, xfs_lsn_t);
  48. #if defined(DEBUG)
  49. STATIC void xlog_recover_check_summary(xlog_t *);
  50. #else
  51. #define xlog_recover_check_summary(log)
  52. #endif
  53. /*
  54. * Sector aligned buffer routines for buffer create/read/write/access
  55. */
  56. /*
  57. * Verify the given count of basic blocks is valid number of blocks
  58. * to specify for an operation involving the given XFS log buffer.
  59. * Returns nonzero if the count is valid, 0 otherwise.
  60. */
  61. static inline int
  62. xlog_buf_bbcount_valid(
  63. xlog_t *log,
  64. int bbcount)
  65. {
  66. return bbcount > 0 && bbcount <= log->l_logBBsize;
  67. }
  68. /*
  69. * Allocate a buffer to hold log data. The buffer needs to be able
  70. * to map to a range of nbblks basic blocks at any valid (basic
  71. * block) offset within the log.
  72. */
  73. STATIC xfs_buf_t *
  74. xlog_get_bp(
  75. xlog_t *log,
  76. int nbblks)
  77. {
  78. if (!xlog_buf_bbcount_valid(log, nbblks)) {
  79. xlog_warn("XFS: Invalid block length (0x%x) given for buffer",
  80. nbblks);
  81. XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
  82. return NULL;
  83. }
  84. /*
  85. * We do log I/O in units of log sectors (a power-of-2
  86. * multiple of the basic block size), so we round up the
  87. * requested size to acommodate the basic blocks required
  88. * for complete log sectors.
  89. *
  90. * In addition, the buffer may be used for a non-sector-
  91. * aligned block offset, in which case an I/O of the
  92. * requested size could extend beyond the end of the
  93. * buffer. If the requested size is only 1 basic block it
  94. * will never straddle a sector boundary, so this won't be
  95. * an issue. Nor will this be a problem if the log I/O is
  96. * done in basic blocks (sector size 1). But otherwise we
  97. * extend the buffer by one extra log sector to ensure
  98. * there's space to accomodate this possiblility.
  99. */
  100. if (nbblks > 1 && log->l_sectBBsize > 1)
  101. nbblks += log->l_sectBBsize;
  102. nbblks = round_up(nbblks, log->l_sectBBsize);
  103. return xfs_buf_get_uncached(log->l_mp->m_logdev_targp,
  104. BBTOB(nbblks), 0);
  105. }
  106. STATIC void
  107. xlog_put_bp(
  108. xfs_buf_t *bp)
  109. {
  110. xfs_buf_free(bp);
  111. }
  112. /*
  113. * Return the address of the start of the given block number's data
  114. * in a log buffer. The buffer covers a log sector-aligned region.
  115. */
  116. STATIC xfs_caddr_t
  117. xlog_align(
  118. xlog_t *log,
  119. xfs_daddr_t blk_no,
  120. int nbblks,
  121. xfs_buf_t *bp)
  122. {
  123. xfs_daddr_t offset = blk_no & ((xfs_daddr_t)log->l_sectBBsize - 1);
  124. ASSERT(BBTOB(offset + nbblks) <= XFS_BUF_SIZE(bp));
  125. return XFS_BUF_PTR(bp) + BBTOB(offset);
  126. }
  127. /*
  128. * nbblks should be uint, but oh well. Just want to catch that 32-bit length.
  129. */
  130. STATIC int
  131. xlog_bread_noalign(
  132. xlog_t *log,
  133. xfs_daddr_t blk_no,
  134. int nbblks,
  135. xfs_buf_t *bp)
  136. {
  137. int error;
  138. if (!xlog_buf_bbcount_valid(log, nbblks)) {
  139. xlog_warn("XFS: Invalid block length (0x%x) given for buffer",
  140. nbblks);
  141. XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
  142. return EFSCORRUPTED;
  143. }
  144. blk_no = round_down(blk_no, log->l_sectBBsize);
  145. nbblks = round_up(nbblks, log->l_sectBBsize);
  146. ASSERT(nbblks > 0);
  147. ASSERT(BBTOB(nbblks) <= XFS_BUF_SIZE(bp));
  148. XFS_BUF_SET_ADDR(bp, log->l_logBBstart + blk_no);
  149. XFS_BUF_READ(bp);
  150. XFS_BUF_BUSY(bp);
  151. XFS_BUF_SET_COUNT(bp, BBTOB(nbblks));
  152. XFS_BUF_SET_TARGET(bp, log->l_mp->m_logdev_targp);
  153. xfsbdstrat(log->l_mp, bp);
  154. error = xfs_buf_iowait(bp);
  155. if (error)
  156. xfs_ioerror_alert("xlog_bread", log->l_mp,
  157. bp, XFS_BUF_ADDR(bp));
  158. return error;
  159. }
  160. STATIC int
  161. xlog_bread(
  162. xlog_t *log,
  163. xfs_daddr_t blk_no,
  164. int nbblks,
  165. xfs_buf_t *bp,
  166. xfs_caddr_t *offset)
  167. {
  168. int error;
  169. error = xlog_bread_noalign(log, blk_no, nbblks, bp);
  170. if (error)
  171. return error;
  172. *offset = xlog_align(log, blk_no, nbblks, bp);
  173. return 0;
  174. }
  175. /*
  176. * Write out the buffer at the given block for the given number of blocks.
  177. * The buffer is kept locked across the write and is returned locked.
  178. * This can only be used for synchronous log writes.
  179. */
  180. STATIC int
  181. xlog_bwrite(
  182. xlog_t *log,
  183. xfs_daddr_t blk_no,
  184. int nbblks,
  185. xfs_buf_t *bp)
  186. {
  187. int error;
  188. if (!xlog_buf_bbcount_valid(log, nbblks)) {
  189. xlog_warn("XFS: Invalid block length (0x%x) given for buffer",
  190. nbblks);
  191. XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
  192. return EFSCORRUPTED;
  193. }
  194. blk_no = round_down(blk_no, log->l_sectBBsize);
  195. nbblks = round_up(nbblks, log->l_sectBBsize);
  196. ASSERT(nbblks > 0);
  197. ASSERT(BBTOB(nbblks) <= XFS_BUF_SIZE(bp));
  198. XFS_BUF_SET_ADDR(bp, log->l_logBBstart + blk_no);
  199. XFS_BUF_ZEROFLAGS(bp);
  200. XFS_BUF_BUSY(bp);
  201. XFS_BUF_HOLD(bp);
  202. XFS_BUF_PSEMA(bp, PRIBIO);
  203. XFS_BUF_SET_COUNT(bp, BBTOB(nbblks));
  204. XFS_BUF_SET_TARGET(bp, log->l_mp->m_logdev_targp);
  205. if ((error = xfs_bwrite(log->l_mp, bp)))
  206. xfs_ioerror_alert("xlog_bwrite", log->l_mp,
  207. bp, XFS_BUF_ADDR(bp));
  208. return error;
  209. }
  210. #ifdef DEBUG
  211. /*
  212. * dump debug superblock and log record information
  213. */
  214. STATIC void
  215. xlog_header_check_dump(
  216. xfs_mount_t *mp,
  217. xlog_rec_header_t *head)
  218. {
  219. cmn_err(CE_DEBUG, "%s: SB : uuid = %pU, fmt = %d\n",
  220. __func__, &mp->m_sb.sb_uuid, XLOG_FMT);
  221. cmn_err(CE_DEBUG, " log : uuid = %pU, fmt = %d\n",
  222. &head->h_fs_uuid, be32_to_cpu(head->h_fmt));
  223. }
  224. #else
  225. #define xlog_header_check_dump(mp, head)
  226. #endif
  227. /*
  228. * check log record header for recovery
  229. */
  230. STATIC int
  231. xlog_header_check_recover(
  232. xfs_mount_t *mp,
  233. xlog_rec_header_t *head)
  234. {
  235. ASSERT(be32_to_cpu(head->h_magicno) == XLOG_HEADER_MAGIC_NUM);
  236. /*
  237. * IRIX doesn't write the h_fmt field and leaves it zeroed
  238. * (XLOG_FMT_UNKNOWN). This stops us from trying to recover
  239. * a dirty log created in IRIX.
  240. */
  241. if (unlikely(be32_to_cpu(head->h_fmt) != XLOG_FMT)) {
  242. xlog_warn(
  243. "XFS: dirty log written in incompatible format - can't recover");
  244. xlog_header_check_dump(mp, head);
  245. XFS_ERROR_REPORT("xlog_header_check_recover(1)",
  246. XFS_ERRLEVEL_HIGH, mp);
  247. return XFS_ERROR(EFSCORRUPTED);
  248. } else if (unlikely(!uuid_equal(&mp->m_sb.sb_uuid, &head->h_fs_uuid))) {
  249. xlog_warn(
  250. "XFS: dirty log entry has mismatched uuid - can't recover");
  251. xlog_header_check_dump(mp, head);
  252. XFS_ERROR_REPORT("xlog_header_check_recover(2)",
  253. XFS_ERRLEVEL_HIGH, mp);
  254. return XFS_ERROR(EFSCORRUPTED);
  255. }
  256. return 0;
  257. }
  258. /*
  259. * read the head block of the log and check the header
  260. */
  261. STATIC int
  262. xlog_header_check_mount(
  263. xfs_mount_t *mp,
  264. xlog_rec_header_t *head)
  265. {
  266. ASSERT(be32_to_cpu(head->h_magicno) == XLOG_HEADER_MAGIC_NUM);
  267. if (uuid_is_nil(&head->h_fs_uuid)) {
  268. /*
  269. * IRIX doesn't write the h_fs_uuid or h_fmt fields. If
  270. * h_fs_uuid is nil, we assume this log was last mounted
  271. * by IRIX and continue.
  272. */
  273. xlog_warn("XFS: nil uuid in log - IRIX style log");
  274. } else if (unlikely(!uuid_equal(&mp->m_sb.sb_uuid, &head->h_fs_uuid))) {
  275. xlog_warn("XFS: log has mismatched uuid - can't recover");
  276. xlog_header_check_dump(mp, head);
  277. XFS_ERROR_REPORT("xlog_header_check_mount",
  278. XFS_ERRLEVEL_HIGH, mp);
  279. return XFS_ERROR(EFSCORRUPTED);
  280. }
  281. return 0;
  282. }
  283. STATIC void
  284. xlog_recover_iodone(
  285. struct xfs_buf *bp)
  286. {
  287. if (XFS_BUF_GETERROR(bp)) {
  288. /*
  289. * We're not going to bother about retrying
  290. * this during recovery. One strike!
  291. */
  292. xfs_ioerror_alert("xlog_recover_iodone",
  293. bp->b_target->bt_mount, bp,
  294. XFS_BUF_ADDR(bp));
  295. xfs_force_shutdown(bp->b_target->bt_mount,
  296. SHUTDOWN_META_IO_ERROR);
  297. }
  298. XFS_BUF_CLR_IODONE_FUNC(bp);
  299. xfs_buf_ioend(bp, 0);
  300. }
  301. /*
  302. * This routine finds (to an approximation) the first block in the physical
  303. * log which contains the given cycle. It uses a binary search algorithm.
  304. * Note that the algorithm can not be perfect because the disk will not
  305. * necessarily be perfect.
  306. */
  307. STATIC int
  308. xlog_find_cycle_start(
  309. xlog_t *log,
  310. xfs_buf_t *bp,
  311. xfs_daddr_t first_blk,
  312. xfs_daddr_t *last_blk,
  313. uint cycle)
  314. {
  315. xfs_caddr_t offset;
  316. xfs_daddr_t mid_blk;
  317. xfs_daddr_t end_blk;
  318. uint mid_cycle;
  319. int error;
  320. end_blk = *last_blk;
  321. mid_blk = BLK_AVG(first_blk, end_blk);
  322. while (mid_blk != first_blk && mid_blk != end_blk) {
  323. error = xlog_bread(log, mid_blk, 1, bp, &offset);
  324. if (error)
  325. return error;
  326. mid_cycle = xlog_get_cycle(offset);
  327. if (mid_cycle == cycle)
  328. end_blk = mid_blk; /* last_half_cycle == mid_cycle */
  329. else
  330. first_blk = mid_blk; /* first_half_cycle == mid_cycle */
  331. mid_blk = BLK_AVG(first_blk, end_blk);
  332. }
  333. ASSERT((mid_blk == first_blk && mid_blk+1 == end_blk) ||
  334. (mid_blk == end_blk && mid_blk-1 == first_blk));
  335. *last_blk = end_blk;
  336. return 0;
  337. }
  338. /*
  339. * Check that a range of blocks does not contain stop_on_cycle_no.
  340. * Fill in *new_blk with the block offset where such a block is
  341. * found, or with -1 (an invalid block number) if there is no such
  342. * block in the range. The scan needs to occur from front to back
  343. * and the pointer into the region must be updated since a later
  344. * routine will need to perform another test.
  345. */
  346. STATIC int
  347. xlog_find_verify_cycle(
  348. xlog_t *log,
  349. xfs_daddr_t start_blk,
  350. int nbblks,
  351. uint stop_on_cycle_no,
  352. xfs_daddr_t *new_blk)
  353. {
  354. xfs_daddr_t i, j;
  355. uint cycle;
  356. xfs_buf_t *bp;
  357. xfs_daddr_t bufblks;
  358. xfs_caddr_t buf = NULL;
  359. int error = 0;
  360. /*
  361. * Greedily allocate a buffer big enough to handle the full
  362. * range of basic blocks we'll be examining. If that fails,
  363. * try a smaller size. We need to be able to read at least
  364. * a log sector, or we're out of luck.
  365. */
  366. bufblks = 1 << ffs(nbblks);
  367. while (!(bp = xlog_get_bp(log, bufblks))) {
  368. bufblks >>= 1;
  369. if (bufblks < log->l_sectBBsize)
  370. return ENOMEM;
  371. }
  372. for (i = start_blk; i < start_blk + nbblks; i += bufblks) {
  373. int bcount;
  374. bcount = min(bufblks, (start_blk + nbblks - i));
  375. error = xlog_bread(log, i, bcount, bp, &buf);
  376. if (error)
  377. goto out;
  378. for (j = 0; j < bcount; j++) {
  379. cycle = xlog_get_cycle(buf);
  380. if (cycle == stop_on_cycle_no) {
  381. *new_blk = i+j;
  382. goto out;
  383. }
  384. buf += BBSIZE;
  385. }
  386. }
  387. *new_blk = -1;
  388. out:
  389. xlog_put_bp(bp);
  390. return error;
  391. }
  392. /*
  393. * Potentially backup over partial log record write.
  394. *
  395. * In the typical case, last_blk is the number of the block directly after
  396. * a good log record. Therefore, we subtract one to get the block number
  397. * of the last block in the given buffer. extra_bblks contains the number
  398. * of blocks we would have read on a previous read. This happens when the
  399. * last log record is split over the end of the physical log.
  400. *
  401. * extra_bblks is the number of blocks potentially verified on a previous
  402. * call to this routine.
  403. */
  404. STATIC int
  405. xlog_find_verify_log_record(
  406. xlog_t *log,
  407. xfs_daddr_t start_blk,
  408. xfs_daddr_t *last_blk,
  409. int extra_bblks)
  410. {
  411. xfs_daddr_t i;
  412. xfs_buf_t *bp;
  413. xfs_caddr_t offset = NULL;
  414. xlog_rec_header_t *head = NULL;
  415. int error = 0;
  416. int smallmem = 0;
  417. int num_blks = *last_blk - start_blk;
  418. int xhdrs;
  419. ASSERT(start_blk != 0 || *last_blk != start_blk);
  420. if (!(bp = xlog_get_bp(log, num_blks))) {
  421. if (!(bp = xlog_get_bp(log, 1)))
  422. return ENOMEM;
  423. smallmem = 1;
  424. } else {
  425. error = xlog_bread(log, start_blk, num_blks, bp, &offset);
  426. if (error)
  427. goto out;
  428. offset += ((num_blks - 1) << BBSHIFT);
  429. }
  430. for (i = (*last_blk) - 1; i >= 0; i--) {
  431. if (i < start_blk) {
  432. /* valid log record not found */
  433. xlog_warn(
  434. "XFS: Log inconsistent (didn't find previous header)");
  435. ASSERT(0);
  436. error = XFS_ERROR(EIO);
  437. goto out;
  438. }
  439. if (smallmem) {
  440. error = xlog_bread(log, i, 1, bp, &offset);
  441. if (error)
  442. goto out;
  443. }
  444. head = (xlog_rec_header_t *)offset;
  445. if (XLOG_HEADER_MAGIC_NUM == be32_to_cpu(head->h_magicno))
  446. break;
  447. if (!smallmem)
  448. offset -= BBSIZE;
  449. }
  450. /*
  451. * We hit the beginning of the physical log & still no header. Return
  452. * to caller. If caller can handle a return of -1, then this routine
  453. * will be called again for the end of the physical log.
  454. */
  455. if (i == -1) {
  456. error = -1;
  457. goto out;
  458. }
  459. /*
  460. * We have the final block of the good log (the first block
  461. * of the log record _before_ the head. So we check the uuid.
  462. */
  463. if ((error = xlog_header_check_mount(log->l_mp, head)))
  464. goto out;
  465. /*
  466. * We may have found a log record header before we expected one.
  467. * last_blk will be the 1st block # with a given cycle #. We may end
  468. * up reading an entire log record. In this case, we don't want to
  469. * reset last_blk. Only when last_blk points in the middle of a log
  470. * record do we update last_blk.
  471. */
  472. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  473. uint h_size = be32_to_cpu(head->h_size);
  474. xhdrs = h_size / XLOG_HEADER_CYCLE_SIZE;
  475. if (h_size % XLOG_HEADER_CYCLE_SIZE)
  476. xhdrs++;
  477. } else {
  478. xhdrs = 1;
  479. }
  480. if (*last_blk - i + extra_bblks !=
  481. BTOBB(be32_to_cpu(head->h_len)) + xhdrs)
  482. *last_blk = i;
  483. out:
  484. xlog_put_bp(bp);
  485. return error;
  486. }
  487. /*
  488. * Head is defined to be the point of the log where the next log write
  489. * write could go. This means that incomplete LR writes at the end are
  490. * eliminated when calculating the head. We aren't guaranteed that previous
  491. * LR have complete transactions. We only know that a cycle number of
  492. * current cycle number -1 won't be present in the log if we start writing
  493. * from our current block number.
  494. *
  495. * last_blk contains the block number of the first block with a given
  496. * cycle number.
  497. *
  498. * Return: zero if normal, non-zero if error.
  499. */
  500. STATIC int
  501. xlog_find_head(
  502. xlog_t *log,
  503. xfs_daddr_t *return_head_blk)
  504. {
  505. xfs_buf_t *bp;
  506. xfs_caddr_t offset;
  507. xfs_daddr_t new_blk, first_blk, start_blk, last_blk, head_blk;
  508. int num_scan_bblks;
  509. uint first_half_cycle, last_half_cycle;
  510. uint stop_on_cycle;
  511. int error, log_bbnum = log->l_logBBsize;
  512. /* Is the end of the log device zeroed? */
  513. if ((error = xlog_find_zeroed(log, &first_blk)) == -1) {
  514. *return_head_blk = first_blk;
  515. /* Is the whole lot zeroed? */
  516. if (!first_blk) {
  517. /* Linux XFS shouldn't generate totally zeroed logs -
  518. * mkfs etc write a dummy unmount record to a fresh
  519. * log so we can store the uuid in there
  520. */
  521. xlog_warn("XFS: totally zeroed log");
  522. }
  523. return 0;
  524. } else if (error) {
  525. xlog_warn("XFS: empty log check failed");
  526. return error;
  527. }
  528. first_blk = 0; /* get cycle # of 1st block */
  529. bp = xlog_get_bp(log, 1);
  530. if (!bp)
  531. return ENOMEM;
  532. error = xlog_bread(log, 0, 1, bp, &offset);
  533. if (error)
  534. goto bp_err;
  535. first_half_cycle = xlog_get_cycle(offset);
  536. last_blk = head_blk = log_bbnum - 1; /* get cycle # of last block */
  537. error = xlog_bread(log, last_blk, 1, bp, &offset);
  538. if (error)
  539. goto bp_err;
  540. last_half_cycle = xlog_get_cycle(offset);
  541. ASSERT(last_half_cycle != 0);
  542. /*
  543. * If the 1st half cycle number is equal to the last half cycle number,
  544. * then the entire log is stamped with the same cycle number. In this
  545. * case, head_blk can't be set to zero (which makes sense). The below
  546. * math doesn't work out properly with head_blk equal to zero. Instead,
  547. * we set it to log_bbnum which is an invalid block number, but this
  548. * value makes the math correct. If head_blk doesn't changed through
  549. * all the tests below, *head_blk is set to zero at the very end rather
  550. * than log_bbnum. In a sense, log_bbnum and zero are the same block
  551. * in a circular file.
  552. */
  553. if (first_half_cycle == last_half_cycle) {
  554. /*
  555. * In this case we believe that the entire log should have
  556. * cycle number last_half_cycle. We need to scan backwards
  557. * from the end verifying that there are no holes still
  558. * containing last_half_cycle - 1. If we find such a hole,
  559. * then the start of that hole will be the new head. The
  560. * simple case looks like
  561. * x | x ... | x - 1 | x
  562. * Another case that fits this picture would be
  563. * x | x + 1 | x ... | x
  564. * In this case the head really is somewhere at the end of the
  565. * log, as one of the latest writes at the beginning was
  566. * incomplete.
  567. * One more case is
  568. * x | x + 1 | x ... | x - 1 | x
  569. * This is really the combination of the above two cases, and
  570. * the head has to end up at the start of the x-1 hole at the
  571. * end of the log.
  572. *
  573. * In the 256k log case, we will read from the beginning to the
  574. * end of the log and search for cycle numbers equal to x-1.
  575. * We don't worry about the x+1 blocks that we encounter,
  576. * because we know that they cannot be the head since the log
  577. * started with x.
  578. */
  579. head_blk = log_bbnum;
  580. stop_on_cycle = last_half_cycle - 1;
  581. } else {
  582. /*
  583. * In this case we want to find the first block with cycle
  584. * number matching last_half_cycle. We expect the log to be
  585. * some variation on
  586. * x + 1 ... | x ... | x
  587. * The first block with cycle number x (last_half_cycle) will
  588. * be where the new head belongs. First we do a binary search
  589. * for the first occurrence of last_half_cycle. The binary
  590. * search may not be totally accurate, so then we scan back
  591. * from there looking for occurrences of last_half_cycle before
  592. * us. If that backwards scan wraps around the beginning of
  593. * the log, then we look for occurrences of last_half_cycle - 1
  594. * at the end of the log. The cases we're looking for look
  595. * like
  596. * v binary search stopped here
  597. * x + 1 ... | x | x + 1 | x ... | x
  598. * ^ but we want to locate this spot
  599. * or
  600. * <---------> less than scan distance
  601. * x + 1 ... | x ... | x - 1 | x
  602. * ^ we want to locate this spot
  603. */
  604. stop_on_cycle = last_half_cycle;
  605. if ((error = xlog_find_cycle_start(log, bp, first_blk,
  606. &head_blk, last_half_cycle)))
  607. goto bp_err;
  608. }
  609. /*
  610. * Now validate the answer. Scan back some number of maximum possible
  611. * blocks and make sure each one has the expected cycle number. The
  612. * maximum is determined by the total possible amount of buffering
  613. * in the in-core log. The following number can be made tighter if
  614. * we actually look at the block size of the filesystem.
  615. */
  616. num_scan_bblks = XLOG_TOTAL_REC_SHIFT(log);
  617. if (head_blk >= num_scan_bblks) {
  618. /*
  619. * We are guaranteed that the entire check can be performed
  620. * in one buffer.
  621. */
  622. start_blk = head_blk - num_scan_bblks;
  623. if ((error = xlog_find_verify_cycle(log,
  624. start_blk, num_scan_bblks,
  625. stop_on_cycle, &new_blk)))
  626. goto bp_err;
  627. if (new_blk != -1)
  628. head_blk = new_blk;
  629. } else { /* need to read 2 parts of log */
  630. /*
  631. * We are going to scan backwards in the log in two parts.
  632. * First we scan the physical end of the log. In this part
  633. * of the log, we are looking for blocks with cycle number
  634. * last_half_cycle - 1.
  635. * If we find one, then we know that the log starts there, as
  636. * we've found a hole that didn't get written in going around
  637. * the end of the physical log. The simple case for this is
  638. * x + 1 ... | x ... | x - 1 | x
  639. * <---------> less than scan distance
  640. * If all of the blocks at the end of the log have cycle number
  641. * last_half_cycle, then we check the blocks at the start of
  642. * the log looking for occurrences of last_half_cycle. If we
  643. * find one, then our current estimate for the location of the
  644. * first occurrence of last_half_cycle is wrong and we move
  645. * back to the hole we've found. This case looks like
  646. * x + 1 ... | x | x + 1 | x ...
  647. * ^ binary search stopped here
  648. * Another case we need to handle that only occurs in 256k
  649. * logs is
  650. * x + 1 ... | x ... | x+1 | x ...
  651. * ^ binary search stops here
  652. * In a 256k log, the scan at the end of the log will see the
  653. * x + 1 blocks. We need to skip past those since that is
  654. * certainly not the head of the log. By searching for
  655. * last_half_cycle-1 we accomplish that.
  656. */
  657. ASSERT(head_blk <= INT_MAX &&
  658. (xfs_daddr_t) num_scan_bblks >= head_blk);
  659. start_blk = log_bbnum - (num_scan_bblks - head_blk);
  660. if ((error = xlog_find_verify_cycle(log, start_blk,
  661. num_scan_bblks - (int)head_blk,
  662. (stop_on_cycle - 1), &new_blk)))
  663. goto bp_err;
  664. if (new_blk != -1) {
  665. head_blk = new_blk;
  666. goto validate_head;
  667. }
  668. /*
  669. * Scan beginning of log now. The last part of the physical
  670. * log is good. This scan needs to verify that it doesn't find
  671. * the last_half_cycle.
  672. */
  673. start_blk = 0;
  674. ASSERT(head_blk <= INT_MAX);
  675. if ((error = xlog_find_verify_cycle(log,
  676. start_blk, (int)head_blk,
  677. stop_on_cycle, &new_blk)))
  678. goto bp_err;
  679. if (new_blk != -1)
  680. head_blk = new_blk;
  681. }
  682. validate_head:
  683. /*
  684. * Now we need to make sure head_blk is not pointing to a block in
  685. * the middle of a log record.
  686. */
  687. num_scan_bblks = XLOG_REC_SHIFT(log);
  688. if (head_blk >= num_scan_bblks) {
  689. start_blk = head_blk - num_scan_bblks; /* don't read head_blk */
  690. /* start ptr at last block ptr before head_blk */
  691. if ((error = xlog_find_verify_log_record(log, start_blk,
  692. &head_blk, 0)) == -1) {
  693. error = XFS_ERROR(EIO);
  694. goto bp_err;
  695. } else if (error)
  696. goto bp_err;
  697. } else {
  698. start_blk = 0;
  699. ASSERT(head_blk <= INT_MAX);
  700. if ((error = xlog_find_verify_log_record(log, start_blk,
  701. &head_blk, 0)) == -1) {
  702. /* We hit the beginning of the log during our search */
  703. start_blk = log_bbnum - (num_scan_bblks - head_blk);
  704. new_blk = log_bbnum;
  705. ASSERT(start_blk <= INT_MAX &&
  706. (xfs_daddr_t) log_bbnum-start_blk >= 0);
  707. ASSERT(head_blk <= INT_MAX);
  708. if ((error = xlog_find_verify_log_record(log,
  709. start_blk, &new_blk,
  710. (int)head_blk)) == -1) {
  711. error = XFS_ERROR(EIO);
  712. goto bp_err;
  713. } else if (error)
  714. goto bp_err;
  715. if (new_blk != log_bbnum)
  716. head_blk = new_blk;
  717. } else if (error)
  718. goto bp_err;
  719. }
  720. xlog_put_bp(bp);
  721. if (head_blk == log_bbnum)
  722. *return_head_blk = 0;
  723. else
  724. *return_head_blk = head_blk;
  725. /*
  726. * When returning here, we have a good block number. Bad block
  727. * means that during a previous crash, we didn't have a clean break
  728. * from cycle number N to cycle number N-1. In this case, we need
  729. * to find the first block with cycle number N-1.
  730. */
  731. return 0;
  732. bp_err:
  733. xlog_put_bp(bp);
  734. if (error)
  735. xlog_warn("XFS: failed to find log head");
  736. return error;
  737. }
  738. /*
  739. * Find the sync block number or the tail of the log.
  740. *
  741. * This will be the block number of the last record to have its
  742. * associated buffers synced to disk. Every log record header has
  743. * a sync lsn embedded in it. LSNs hold block numbers, so it is easy
  744. * to get a sync block number. The only concern is to figure out which
  745. * log record header to believe.
  746. *
  747. * The following algorithm uses the log record header with the largest
  748. * lsn. The entire log record does not need to be valid. We only care
  749. * that the header is valid.
  750. *
  751. * We could speed up search by using current head_blk buffer, but it is not
  752. * available.
  753. */
  754. STATIC int
  755. xlog_find_tail(
  756. xlog_t *log,
  757. xfs_daddr_t *head_blk,
  758. xfs_daddr_t *tail_blk)
  759. {
  760. xlog_rec_header_t *rhead;
  761. xlog_op_header_t *op_head;
  762. xfs_caddr_t offset = NULL;
  763. xfs_buf_t *bp;
  764. int error, i, found;
  765. xfs_daddr_t umount_data_blk;
  766. xfs_daddr_t after_umount_blk;
  767. xfs_lsn_t tail_lsn;
  768. int hblks;
  769. found = 0;
  770. /*
  771. * Find previous log record
  772. */
  773. if ((error = xlog_find_head(log, head_blk)))
  774. return error;
  775. bp = xlog_get_bp(log, 1);
  776. if (!bp)
  777. return ENOMEM;
  778. if (*head_blk == 0) { /* special case */
  779. error = xlog_bread(log, 0, 1, bp, &offset);
  780. if (error)
  781. goto done;
  782. if (xlog_get_cycle(offset) == 0) {
  783. *tail_blk = 0;
  784. /* leave all other log inited values alone */
  785. goto done;
  786. }
  787. }
  788. /*
  789. * Search backwards looking for log record header block
  790. */
  791. ASSERT(*head_blk < INT_MAX);
  792. for (i = (int)(*head_blk) - 1; i >= 0; i--) {
  793. error = xlog_bread(log, i, 1, bp, &offset);
  794. if (error)
  795. goto done;
  796. if (XLOG_HEADER_MAGIC_NUM == be32_to_cpu(*(__be32 *)offset)) {
  797. found = 1;
  798. break;
  799. }
  800. }
  801. /*
  802. * If we haven't found the log record header block, start looking
  803. * again from the end of the physical log. XXXmiken: There should be
  804. * a check here to make sure we didn't search more than N blocks in
  805. * the previous code.
  806. */
  807. if (!found) {
  808. for (i = log->l_logBBsize - 1; i >= (int)(*head_blk); i--) {
  809. error = xlog_bread(log, i, 1, bp, &offset);
  810. if (error)
  811. goto done;
  812. if (XLOG_HEADER_MAGIC_NUM ==
  813. be32_to_cpu(*(__be32 *)offset)) {
  814. found = 2;
  815. break;
  816. }
  817. }
  818. }
  819. if (!found) {
  820. xlog_warn("XFS: xlog_find_tail: couldn't find sync record");
  821. ASSERT(0);
  822. return XFS_ERROR(EIO);
  823. }
  824. /* find blk_no of tail of log */
  825. rhead = (xlog_rec_header_t *)offset;
  826. *tail_blk = BLOCK_LSN(be64_to_cpu(rhead->h_tail_lsn));
  827. /*
  828. * Reset log values according to the state of the log when we
  829. * crashed. In the case where head_blk == 0, we bump curr_cycle
  830. * one because the next write starts a new cycle rather than
  831. * continuing the cycle of the last good log record. At this
  832. * point we have guaranteed that all partial log records have been
  833. * accounted for. Therefore, we know that the last good log record
  834. * written was complete and ended exactly on the end boundary
  835. * of the physical log.
  836. */
  837. log->l_prev_block = i;
  838. log->l_curr_block = (int)*head_blk;
  839. log->l_curr_cycle = be32_to_cpu(rhead->h_cycle);
  840. if (found == 2)
  841. log->l_curr_cycle++;
  842. log->l_tail_lsn = be64_to_cpu(rhead->h_tail_lsn);
  843. log->l_last_sync_lsn = be64_to_cpu(rhead->h_lsn);
  844. log->l_grant_reserve_cycle = log->l_curr_cycle;
  845. log->l_grant_reserve_bytes = BBTOB(log->l_curr_block);
  846. log->l_grant_write_cycle = log->l_curr_cycle;
  847. log->l_grant_write_bytes = BBTOB(log->l_curr_block);
  848. /*
  849. * Look for unmount record. If we find it, then we know there
  850. * was a clean unmount. Since 'i' could be the last block in
  851. * the physical log, we convert to a log block before comparing
  852. * to the head_blk.
  853. *
  854. * Save the current tail lsn to use to pass to
  855. * xlog_clear_stale_blocks() below. We won't want to clear the
  856. * unmount record if there is one, so we pass the lsn of the
  857. * unmount record rather than the block after it.
  858. */
  859. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  860. int h_size = be32_to_cpu(rhead->h_size);
  861. int h_version = be32_to_cpu(rhead->h_version);
  862. if ((h_version & XLOG_VERSION_2) &&
  863. (h_size > XLOG_HEADER_CYCLE_SIZE)) {
  864. hblks = h_size / XLOG_HEADER_CYCLE_SIZE;
  865. if (h_size % XLOG_HEADER_CYCLE_SIZE)
  866. hblks++;
  867. } else {
  868. hblks = 1;
  869. }
  870. } else {
  871. hblks = 1;
  872. }
  873. after_umount_blk = (i + hblks + (int)
  874. BTOBB(be32_to_cpu(rhead->h_len))) % log->l_logBBsize;
  875. tail_lsn = log->l_tail_lsn;
  876. if (*head_blk == after_umount_blk &&
  877. be32_to_cpu(rhead->h_num_logops) == 1) {
  878. umount_data_blk = (i + hblks) % log->l_logBBsize;
  879. error = xlog_bread(log, umount_data_blk, 1, bp, &offset);
  880. if (error)
  881. goto done;
  882. op_head = (xlog_op_header_t *)offset;
  883. if (op_head->oh_flags & XLOG_UNMOUNT_TRANS) {
  884. /*
  885. * Set tail and last sync so that newly written
  886. * log records will point recovery to after the
  887. * current unmount record.
  888. */
  889. log->l_tail_lsn =
  890. xlog_assign_lsn(log->l_curr_cycle,
  891. after_umount_blk);
  892. log->l_last_sync_lsn =
  893. xlog_assign_lsn(log->l_curr_cycle,
  894. after_umount_blk);
  895. *tail_blk = after_umount_blk;
  896. /*
  897. * Note that the unmount was clean. If the unmount
  898. * was not clean, we need to know this to rebuild the
  899. * superblock counters from the perag headers if we
  900. * have a filesystem using non-persistent counters.
  901. */
  902. log->l_mp->m_flags |= XFS_MOUNT_WAS_CLEAN;
  903. }
  904. }
  905. /*
  906. * Make sure that there are no blocks in front of the head
  907. * with the same cycle number as the head. This can happen
  908. * because we allow multiple outstanding log writes concurrently,
  909. * and the later writes might make it out before earlier ones.
  910. *
  911. * We use the lsn from before modifying it so that we'll never
  912. * overwrite the unmount record after a clean unmount.
  913. *
  914. * Do this only if we are going to recover the filesystem
  915. *
  916. * NOTE: This used to say "if (!readonly)"
  917. * However on Linux, we can & do recover a read-only filesystem.
  918. * We only skip recovery if NORECOVERY is specified on mount,
  919. * in which case we would not be here.
  920. *
  921. * But... if the -device- itself is readonly, just skip this.
  922. * We can't recover this device anyway, so it won't matter.
  923. */
  924. if (!xfs_readonly_buftarg(log->l_mp->m_logdev_targp))
  925. error = xlog_clear_stale_blocks(log, tail_lsn);
  926. done:
  927. xlog_put_bp(bp);
  928. if (error)
  929. xlog_warn("XFS: failed to locate log tail");
  930. return error;
  931. }
  932. /*
  933. * Is the log zeroed at all?
  934. *
  935. * The last binary search should be changed to perform an X block read
  936. * once X becomes small enough. You can then search linearly through
  937. * the X blocks. This will cut down on the number of reads we need to do.
  938. *
  939. * If the log is partially zeroed, this routine will pass back the blkno
  940. * of the first block with cycle number 0. It won't have a complete LR
  941. * preceding it.
  942. *
  943. * Return:
  944. * 0 => the log is completely written to
  945. * -1 => use *blk_no as the first block of the log
  946. * >0 => error has occurred
  947. */
  948. STATIC int
  949. xlog_find_zeroed(
  950. xlog_t *log,
  951. xfs_daddr_t *blk_no)
  952. {
  953. xfs_buf_t *bp;
  954. xfs_caddr_t offset;
  955. uint first_cycle, last_cycle;
  956. xfs_daddr_t new_blk, last_blk, start_blk;
  957. xfs_daddr_t num_scan_bblks;
  958. int error, log_bbnum = log->l_logBBsize;
  959. *blk_no = 0;
  960. /* check totally zeroed log */
  961. bp = xlog_get_bp(log, 1);
  962. if (!bp)
  963. return ENOMEM;
  964. error = xlog_bread(log, 0, 1, bp, &offset);
  965. if (error)
  966. goto bp_err;
  967. first_cycle = xlog_get_cycle(offset);
  968. if (first_cycle == 0) { /* completely zeroed log */
  969. *blk_no = 0;
  970. xlog_put_bp(bp);
  971. return -1;
  972. }
  973. /* check partially zeroed log */
  974. error = xlog_bread(log, log_bbnum-1, 1, bp, &offset);
  975. if (error)
  976. goto bp_err;
  977. last_cycle = xlog_get_cycle(offset);
  978. if (last_cycle != 0) { /* log completely written to */
  979. xlog_put_bp(bp);
  980. return 0;
  981. } else if (first_cycle != 1) {
  982. /*
  983. * If the cycle of the last block is zero, the cycle of
  984. * the first block must be 1. If it's not, maybe we're
  985. * not looking at a log... Bail out.
  986. */
  987. xlog_warn("XFS: Log inconsistent or not a log (last==0, first!=1)");
  988. return XFS_ERROR(EINVAL);
  989. }
  990. /* we have a partially zeroed log */
  991. last_blk = log_bbnum-1;
  992. if ((error = xlog_find_cycle_start(log, bp, 0, &last_blk, 0)))
  993. goto bp_err;
  994. /*
  995. * Validate the answer. Because there is no way to guarantee that
  996. * the entire log is made up of log records which are the same size,
  997. * we scan over the defined maximum blocks. At this point, the maximum
  998. * is not chosen to mean anything special. XXXmiken
  999. */
  1000. num_scan_bblks = XLOG_TOTAL_REC_SHIFT(log);
  1001. ASSERT(num_scan_bblks <= INT_MAX);
  1002. if (last_blk < num_scan_bblks)
  1003. num_scan_bblks = last_blk;
  1004. start_blk = last_blk - num_scan_bblks;
  1005. /*
  1006. * We search for any instances of cycle number 0 that occur before
  1007. * our current estimate of the head. What we're trying to detect is
  1008. * 1 ... | 0 | 1 | 0...
  1009. * ^ binary search ends here
  1010. */
  1011. if ((error = xlog_find_verify_cycle(log, start_blk,
  1012. (int)num_scan_bblks, 0, &new_blk)))
  1013. goto bp_err;
  1014. if (new_blk != -1)
  1015. last_blk = new_blk;
  1016. /*
  1017. * Potentially backup over partial log record write. We don't need
  1018. * to search the end of the log because we know it is zero.
  1019. */
  1020. if ((error = xlog_find_verify_log_record(log, start_blk,
  1021. &last_blk, 0)) == -1) {
  1022. error = XFS_ERROR(EIO);
  1023. goto bp_err;
  1024. } else if (error)
  1025. goto bp_err;
  1026. *blk_no = last_blk;
  1027. bp_err:
  1028. xlog_put_bp(bp);
  1029. if (error)
  1030. return error;
  1031. return -1;
  1032. }
  1033. /*
  1034. * These are simple subroutines used by xlog_clear_stale_blocks() below
  1035. * to initialize a buffer full of empty log record headers and write
  1036. * them into the log.
  1037. */
  1038. STATIC void
  1039. xlog_add_record(
  1040. xlog_t *log,
  1041. xfs_caddr_t buf,
  1042. int cycle,
  1043. int block,
  1044. int tail_cycle,
  1045. int tail_block)
  1046. {
  1047. xlog_rec_header_t *recp = (xlog_rec_header_t *)buf;
  1048. memset(buf, 0, BBSIZE);
  1049. recp->h_magicno = cpu_to_be32(XLOG_HEADER_MAGIC_NUM);
  1050. recp->h_cycle = cpu_to_be32(cycle);
  1051. recp->h_version = cpu_to_be32(
  1052. xfs_sb_version_haslogv2(&log->l_mp->m_sb) ? 2 : 1);
  1053. recp->h_lsn = cpu_to_be64(xlog_assign_lsn(cycle, block));
  1054. recp->h_tail_lsn = cpu_to_be64(xlog_assign_lsn(tail_cycle, tail_block));
  1055. recp->h_fmt = cpu_to_be32(XLOG_FMT);
  1056. memcpy(&recp->h_fs_uuid, &log->l_mp->m_sb.sb_uuid, sizeof(uuid_t));
  1057. }
  1058. STATIC int
  1059. xlog_write_log_records(
  1060. xlog_t *log,
  1061. int cycle,
  1062. int start_block,
  1063. int blocks,
  1064. int tail_cycle,
  1065. int tail_block)
  1066. {
  1067. xfs_caddr_t offset;
  1068. xfs_buf_t *bp;
  1069. int balign, ealign;
  1070. int sectbb = log->l_sectBBsize;
  1071. int end_block = start_block + blocks;
  1072. int bufblks;
  1073. int error = 0;
  1074. int i, j = 0;
  1075. /*
  1076. * Greedily allocate a buffer big enough to handle the full
  1077. * range of basic blocks to be written. If that fails, try
  1078. * a smaller size. We need to be able to write at least a
  1079. * log sector, or we're out of luck.
  1080. */
  1081. bufblks = 1 << ffs(blocks);
  1082. while (!(bp = xlog_get_bp(log, bufblks))) {
  1083. bufblks >>= 1;
  1084. if (bufblks < sectbb)
  1085. return ENOMEM;
  1086. }
  1087. /* We may need to do a read at the start to fill in part of
  1088. * the buffer in the starting sector not covered by the first
  1089. * write below.
  1090. */
  1091. balign = round_down(start_block, sectbb);
  1092. if (balign != start_block) {
  1093. error = xlog_bread_noalign(log, start_block, 1, bp);
  1094. if (error)
  1095. goto out_put_bp;
  1096. j = start_block - balign;
  1097. }
  1098. for (i = start_block; i < end_block; i += bufblks) {
  1099. int bcount, endcount;
  1100. bcount = min(bufblks, end_block - start_block);
  1101. endcount = bcount - j;
  1102. /* We may need to do a read at the end to fill in part of
  1103. * the buffer in the final sector not covered by the write.
  1104. * If this is the same sector as the above read, skip it.
  1105. */
  1106. ealign = round_down(end_block, sectbb);
  1107. if (j == 0 && (start_block + endcount > ealign)) {
  1108. offset = XFS_BUF_PTR(bp);
  1109. balign = BBTOB(ealign - start_block);
  1110. error = XFS_BUF_SET_PTR(bp, offset + balign,
  1111. BBTOB(sectbb));
  1112. if (error)
  1113. break;
  1114. error = xlog_bread_noalign(log, ealign, sectbb, bp);
  1115. if (error)
  1116. break;
  1117. error = XFS_BUF_SET_PTR(bp, offset, bufblks);
  1118. if (error)
  1119. break;
  1120. }
  1121. offset = xlog_align(log, start_block, endcount, bp);
  1122. for (; j < endcount; j++) {
  1123. xlog_add_record(log, offset, cycle, i+j,
  1124. tail_cycle, tail_block);
  1125. offset += BBSIZE;
  1126. }
  1127. error = xlog_bwrite(log, start_block, endcount, bp);
  1128. if (error)
  1129. break;
  1130. start_block += endcount;
  1131. j = 0;
  1132. }
  1133. out_put_bp:
  1134. xlog_put_bp(bp);
  1135. return error;
  1136. }
  1137. /*
  1138. * This routine is called to blow away any incomplete log writes out
  1139. * in front of the log head. We do this so that we won't become confused
  1140. * if we come up, write only a little bit more, and then crash again.
  1141. * If we leave the partial log records out there, this situation could
  1142. * cause us to think those partial writes are valid blocks since they
  1143. * have the current cycle number. We get rid of them by overwriting them
  1144. * with empty log records with the old cycle number rather than the
  1145. * current one.
  1146. *
  1147. * The tail lsn is passed in rather than taken from
  1148. * the log so that we will not write over the unmount record after a
  1149. * clean unmount in a 512 block log. Doing so would leave the log without
  1150. * any valid log records in it until a new one was written. If we crashed
  1151. * during that time we would not be able to recover.
  1152. */
  1153. STATIC int
  1154. xlog_clear_stale_blocks(
  1155. xlog_t *log,
  1156. xfs_lsn_t tail_lsn)
  1157. {
  1158. int tail_cycle, head_cycle;
  1159. int tail_block, head_block;
  1160. int tail_distance, max_distance;
  1161. int distance;
  1162. int error;
  1163. tail_cycle = CYCLE_LSN(tail_lsn);
  1164. tail_block = BLOCK_LSN(tail_lsn);
  1165. head_cycle = log->l_curr_cycle;
  1166. head_block = log->l_curr_block;
  1167. /*
  1168. * Figure out the distance between the new head of the log
  1169. * and the tail. We want to write over any blocks beyond the
  1170. * head that we may have written just before the crash, but
  1171. * we don't want to overwrite the tail of the log.
  1172. */
  1173. if (head_cycle == tail_cycle) {
  1174. /*
  1175. * The tail is behind the head in the physical log,
  1176. * so the distance from the head to the tail is the
  1177. * distance from the head to the end of the log plus
  1178. * the distance from the beginning of the log to the
  1179. * tail.
  1180. */
  1181. if (unlikely(head_block < tail_block || head_block >= log->l_logBBsize)) {
  1182. XFS_ERROR_REPORT("xlog_clear_stale_blocks(1)",
  1183. XFS_ERRLEVEL_LOW, log->l_mp);
  1184. return XFS_ERROR(EFSCORRUPTED);
  1185. }
  1186. tail_distance = tail_block + (log->l_logBBsize - head_block);
  1187. } else {
  1188. /*
  1189. * The head is behind the tail in the physical log,
  1190. * so the distance from the head to the tail is just
  1191. * the tail block minus the head block.
  1192. */
  1193. if (unlikely(head_block >= tail_block || head_cycle != (tail_cycle + 1))){
  1194. XFS_ERROR_REPORT("xlog_clear_stale_blocks(2)",
  1195. XFS_ERRLEVEL_LOW, log->l_mp);
  1196. return XFS_ERROR(EFSCORRUPTED);
  1197. }
  1198. tail_distance = tail_block - head_block;
  1199. }
  1200. /*
  1201. * If the head is right up against the tail, we can't clear
  1202. * anything.
  1203. */
  1204. if (tail_distance <= 0) {
  1205. ASSERT(tail_distance == 0);
  1206. return 0;
  1207. }
  1208. max_distance = XLOG_TOTAL_REC_SHIFT(log);
  1209. /*
  1210. * Take the smaller of the maximum amount of outstanding I/O
  1211. * we could have and the distance to the tail to clear out.
  1212. * We take the smaller so that we don't overwrite the tail and
  1213. * we don't waste all day writing from the head to the tail
  1214. * for no reason.
  1215. */
  1216. max_distance = MIN(max_distance, tail_distance);
  1217. if ((head_block + max_distance) <= log->l_logBBsize) {
  1218. /*
  1219. * We can stomp all the blocks we need to without
  1220. * wrapping around the end of the log. Just do it
  1221. * in a single write. Use the cycle number of the
  1222. * current cycle minus one so that the log will look like:
  1223. * n ... | n - 1 ...
  1224. */
  1225. error = xlog_write_log_records(log, (head_cycle - 1),
  1226. head_block, max_distance, tail_cycle,
  1227. tail_block);
  1228. if (error)
  1229. return error;
  1230. } else {
  1231. /*
  1232. * We need to wrap around the end of the physical log in
  1233. * order to clear all the blocks. Do it in two separate
  1234. * I/Os. The first write should be from the head to the
  1235. * end of the physical log, and it should use the current
  1236. * cycle number minus one just like above.
  1237. */
  1238. distance = log->l_logBBsize - head_block;
  1239. error = xlog_write_log_records(log, (head_cycle - 1),
  1240. head_block, distance, tail_cycle,
  1241. tail_block);
  1242. if (error)
  1243. return error;
  1244. /*
  1245. * Now write the blocks at the start of the physical log.
  1246. * This writes the remainder of the blocks we want to clear.
  1247. * It uses the current cycle number since we're now on the
  1248. * same cycle as the head so that we get:
  1249. * n ... n ... | n - 1 ...
  1250. * ^^^^^ blocks we're writing
  1251. */
  1252. distance = max_distance - (log->l_logBBsize - head_block);
  1253. error = xlog_write_log_records(log, head_cycle, 0, distance,
  1254. tail_cycle, tail_block);
  1255. if (error)
  1256. return error;
  1257. }
  1258. return 0;
  1259. }
  1260. /******************************************************************************
  1261. *
  1262. * Log recover routines
  1263. *
  1264. ******************************************************************************
  1265. */
  1266. STATIC xlog_recover_t *
  1267. xlog_recover_find_tid(
  1268. struct hlist_head *head,
  1269. xlog_tid_t tid)
  1270. {
  1271. xlog_recover_t *trans;
  1272. struct hlist_node *n;
  1273. hlist_for_each_entry(trans, n, head, r_list) {
  1274. if (trans->r_log_tid == tid)
  1275. return trans;
  1276. }
  1277. return NULL;
  1278. }
  1279. STATIC void
  1280. xlog_recover_new_tid(
  1281. struct hlist_head *head,
  1282. xlog_tid_t tid,
  1283. xfs_lsn_t lsn)
  1284. {
  1285. xlog_recover_t *trans;
  1286. trans = kmem_zalloc(sizeof(xlog_recover_t), KM_SLEEP);
  1287. trans->r_log_tid = tid;
  1288. trans->r_lsn = lsn;
  1289. INIT_LIST_HEAD(&trans->r_itemq);
  1290. INIT_HLIST_NODE(&trans->r_list);
  1291. hlist_add_head(&trans->r_list, head);
  1292. }
  1293. STATIC void
  1294. xlog_recover_add_item(
  1295. struct list_head *head)
  1296. {
  1297. xlog_recover_item_t *item;
  1298. item = kmem_zalloc(sizeof(xlog_recover_item_t), KM_SLEEP);
  1299. INIT_LIST_HEAD(&item->ri_list);
  1300. list_add_tail(&item->ri_list, head);
  1301. }
  1302. STATIC int
  1303. xlog_recover_add_to_cont_trans(
  1304. struct log *log,
  1305. xlog_recover_t *trans,
  1306. xfs_caddr_t dp,
  1307. int len)
  1308. {
  1309. xlog_recover_item_t *item;
  1310. xfs_caddr_t ptr, old_ptr;
  1311. int old_len;
  1312. if (list_empty(&trans->r_itemq)) {
  1313. /* finish copying rest of trans header */
  1314. xlog_recover_add_item(&trans->r_itemq);
  1315. ptr = (xfs_caddr_t) &trans->r_theader +
  1316. sizeof(xfs_trans_header_t) - len;
  1317. memcpy(ptr, dp, len); /* d, s, l */
  1318. return 0;
  1319. }
  1320. /* take the tail entry */
  1321. item = list_entry(trans->r_itemq.prev, xlog_recover_item_t, ri_list);
  1322. old_ptr = item->ri_buf[item->ri_cnt-1].i_addr;
  1323. old_len = item->ri_buf[item->ri_cnt-1].i_len;
  1324. ptr = kmem_realloc(old_ptr, len+old_len, old_len, 0u);
  1325. memcpy(&ptr[old_len], dp, len); /* d, s, l */
  1326. item->ri_buf[item->ri_cnt-1].i_len += len;
  1327. item->ri_buf[item->ri_cnt-1].i_addr = ptr;
  1328. trace_xfs_log_recover_item_add_cont(log, trans, item, 0);
  1329. return 0;
  1330. }
  1331. /*
  1332. * The next region to add is the start of a new region. It could be
  1333. * a whole region or it could be the first part of a new region. Because
  1334. * of this, the assumption here is that the type and size fields of all
  1335. * format structures fit into the first 32 bits of the structure.
  1336. *
  1337. * This works because all regions must be 32 bit aligned. Therefore, we
  1338. * either have both fields or we have neither field. In the case we have
  1339. * neither field, the data part of the region is zero length. We only have
  1340. * a log_op_header and can throw away the header since a new one will appear
  1341. * later. If we have at least 4 bytes, then we can determine how many regions
  1342. * will appear in the current log item.
  1343. */
  1344. STATIC int
  1345. xlog_recover_add_to_trans(
  1346. struct log *log,
  1347. xlog_recover_t *trans,
  1348. xfs_caddr_t dp,
  1349. int len)
  1350. {
  1351. xfs_inode_log_format_t *in_f; /* any will do */
  1352. xlog_recover_item_t *item;
  1353. xfs_caddr_t ptr;
  1354. if (!len)
  1355. return 0;
  1356. if (list_empty(&trans->r_itemq)) {
  1357. /* we need to catch log corruptions here */
  1358. if (*(uint *)dp != XFS_TRANS_HEADER_MAGIC) {
  1359. xlog_warn("XFS: xlog_recover_add_to_trans: "
  1360. "bad header magic number");
  1361. ASSERT(0);
  1362. return XFS_ERROR(EIO);
  1363. }
  1364. if (len == sizeof(xfs_trans_header_t))
  1365. xlog_recover_add_item(&trans->r_itemq);
  1366. memcpy(&trans->r_theader, dp, len); /* d, s, l */
  1367. return 0;
  1368. }
  1369. ptr = kmem_alloc(len, KM_SLEEP);
  1370. memcpy(ptr, dp, len);
  1371. in_f = (xfs_inode_log_format_t *)ptr;
  1372. /* take the tail entry */
  1373. item = list_entry(trans->r_itemq.prev, xlog_recover_item_t, ri_list);
  1374. if (item->ri_total != 0 &&
  1375. item->ri_total == item->ri_cnt) {
  1376. /* tail item is in use, get a new one */
  1377. xlog_recover_add_item(&trans->r_itemq);
  1378. item = list_entry(trans->r_itemq.prev,
  1379. xlog_recover_item_t, ri_list);
  1380. }
  1381. if (item->ri_total == 0) { /* first region to be added */
  1382. if (in_f->ilf_size == 0 ||
  1383. in_f->ilf_size > XLOG_MAX_REGIONS_IN_ITEM) {
  1384. xlog_warn(
  1385. "XFS: bad number of regions (%d) in inode log format",
  1386. in_f->ilf_size);
  1387. ASSERT(0);
  1388. return XFS_ERROR(EIO);
  1389. }
  1390. item->ri_total = in_f->ilf_size;
  1391. item->ri_buf =
  1392. kmem_zalloc(item->ri_total * sizeof(xfs_log_iovec_t),
  1393. KM_SLEEP);
  1394. }
  1395. ASSERT(item->ri_total > item->ri_cnt);
  1396. /* Description region is ri_buf[0] */
  1397. item->ri_buf[item->ri_cnt].i_addr = ptr;
  1398. item->ri_buf[item->ri_cnt].i_len = len;
  1399. item->ri_cnt++;
  1400. trace_xfs_log_recover_item_add(log, trans, item, 0);
  1401. return 0;
  1402. }
  1403. /*
  1404. * Sort the log items in the transaction. Cancelled buffers need
  1405. * to be put first so they are processed before any items that might
  1406. * modify the buffers. If they are cancelled, then the modifications
  1407. * don't need to be replayed.
  1408. */
  1409. STATIC int
  1410. xlog_recover_reorder_trans(
  1411. struct log *log,
  1412. xlog_recover_t *trans,
  1413. int pass)
  1414. {
  1415. xlog_recover_item_t *item, *n;
  1416. LIST_HEAD(sort_list);
  1417. list_splice_init(&trans->r_itemq, &sort_list);
  1418. list_for_each_entry_safe(item, n, &sort_list, ri_list) {
  1419. xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
  1420. switch (ITEM_TYPE(item)) {
  1421. case XFS_LI_BUF:
  1422. if (!(buf_f->blf_flags & XFS_BLF_CANCEL)) {
  1423. trace_xfs_log_recover_item_reorder_head(log,
  1424. trans, item, pass);
  1425. list_move(&item->ri_list, &trans->r_itemq);
  1426. break;
  1427. }
  1428. case XFS_LI_INODE:
  1429. case XFS_LI_DQUOT:
  1430. case XFS_LI_QUOTAOFF:
  1431. case XFS_LI_EFD:
  1432. case XFS_LI_EFI:
  1433. trace_xfs_log_recover_item_reorder_tail(log,
  1434. trans, item, pass);
  1435. list_move_tail(&item->ri_list, &trans->r_itemq);
  1436. break;
  1437. default:
  1438. xlog_warn(
  1439. "XFS: xlog_recover_reorder_trans: unrecognized type of log operation");
  1440. ASSERT(0);
  1441. return XFS_ERROR(EIO);
  1442. }
  1443. }
  1444. ASSERT(list_empty(&sort_list));
  1445. return 0;
  1446. }
  1447. /*
  1448. * Build up the table of buf cancel records so that we don't replay
  1449. * cancelled data in the second pass. For buffer records that are
  1450. * not cancel records, there is nothing to do here so we just return.
  1451. *
  1452. * If we get a cancel record which is already in the table, this indicates
  1453. * that the buffer was cancelled multiple times. In order to ensure
  1454. * that during pass 2 we keep the record in the table until we reach its
  1455. * last occurrence in the log, we keep a reference count in the cancel
  1456. * record in the table to tell us how many times we expect to see this
  1457. * record during the second pass.
  1458. */
  1459. STATIC void
  1460. xlog_recover_do_buffer_pass1(
  1461. xlog_t *log,
  1462. xfs_buf_log_format_t *buf_f)
  1463. {
  1464. xfs_buf_cancel_t *bcp;
  1465. xfs_buf_cancel_t *nextp;
  1466. xfs_buf_cancel_t *prevp;
  1467. xfs_buf_cancel_t **bucket;
  1468. xfs_daddr_t blkno = 0;
  1469. uint len = 0;
  1470. ushort flags = 0;
  1471. switch (buf_f->blf_type) {
  1472. case XFS_LI_BUF:
  1473. blkno = buf_f->blf_blkno;
  1474. len = buf_f->blf_len;
  1475. flags = buf_f->blf_flags;
  1476. break;
  1477. }
  1478. /*
  1479. * If this isn't a cancel buffer item, then just return.
  1480. */
  1481. if (!(flags & XFS_BLF_CANCEL)) {
  1482. trace_xfs_log_recover_buf_not_cancel(log, buf_f);
  1483. return;
  1484. }
  1485. /*
  1486. * Insert an xfs_buf_cancel record into the hash table of
  1487. * them. If there is already an identical record, bump
  1488. * its reference count.
  1489. */
  1490. bucket = &log->l_buf_cancel_table[(__uint64_t)blkno %
  1491. XLOG_BC_TABLE_SIZE];
  1492. /*
  1493. * If the hash bucket is empty then just insert a new record into
  1494. * the bucket.
  1495. */
  1496. if (*bucket == NULL) {
  1497. bcp = (xfs_buf_cancel_t *)kmem_alloc(sizeof(xfs_buf_cancel_t),
  1498. KM_SLEEP);
  1499. bcp->bc_blkno = blkno;
  1500. bcp->bc_len = len;
  1501. bcp->bc_refcount = 1;
  1502. bcp->bc_next = NULL;
  1503. *bucket = bcp;
  1504. return;
  1505. }
  1506. /*
  1507. * The hash bucket is not empty, so search for duplicates of our
  1508. * record. If we find one them just bump its refcount. If not
  1509. * then add us at the end of the list.
  1510. */
  1511. prevp = NULL;
  1512. nextp = *bucket;
  1513. while (nextp != NULL) {
  1514. if (nextp->bc_blkno == blkno && nextp->bc_len == len) {
  1515. nextp->bc_refcount++;
  1516. trace_xfs_log_recover_buf_cancel_ref_inc(log, buf_f);
  1517. return;
  1518. }
  1519. prevp = nextp;
  1520. nextp = nextp->bc_next;
  1521. }
  1522. ASSERT(prevp != NULL);
  1523. bcp = (xfs_buf_cancel_t *)kmem_alloc(sizeof(xfs_buf_cancel_t),
  1524. KM_SLEEP);
  1525. bcp->bc_blkno = blkno;
  1526. bcp->bc_len = len;
  1527. bcp->bc_refcount = 1;
  1528. bcp->bc_next = NULL;
  1529. prevp->bc_next = bcp;
  1530. trace_xfs_log_recover_buf_cancel_add(log, buf_f);
  1531. }
  1532. /*
  1533. * Check to see whether the buffer being recovered has a corresponding
  1534. * entry in the buffer cancel record table. If it does then return 1
  1535. * so that it will be cancelled, otherwise return 0. If the buffer is
  1536. * actually a buffer cancel item (XFS_BLF_CANCEL is set), then decrement
  1537. * the refcount on the entry in the table and remove it from the table
  1538. * if this is the last reference.
  1539. *
  1540. * We remove the cancel record from the table when we encounter its
  1541. * last occurrence in the log so that if the same buffer is re-used
  1542. * again after its last cancellation we actually replay the changes
  1543. * made at that point.
  1544. */
  1545. STATIC int
  1546. xlog_check_buffer_cancelled(
  1547. xlog_t *log,
  1548. xfs_daddr_t blkno,
  1549. uint len,
  1550. ushort flags)
  1551. {
  1552. xfs_buf_cancel_t *bcp;
  1553. xfs_buf_cancel_t *prevp;
  1554. xfs_buf_cancel_t **bucket;
  1555. if (log->l_buf_cancel_table == NULL) {
  1556. /*
  1557. * There is nothing in the table built in pass one,
  1558. * so this buffer must not be cancelled.
  1559. */
  1560. ASSERT(!(flags & XFS_BLF_CANCEL));
  1561. return 0;
  1562. }
  1563. bucket = &log->l_buf_cancel_table[(__uint64_t)blkno %
  1564. XLOG_BC_TABLE_SIZE];
  1565. bcp = *bucket;
  1566. if (bcp == NULL) {
  1567. /*
  1568. * There is no corresponding entry in the table built
  1569. * in pass one, so this buffer has not been cancelled.
  1570. */
  1571. ASSERT(!(flags & XFS_BLF_CANCEL));
  1572. return 0;
  1573. }
  1574. /*
  1575. * Search for an entry in the buffer cancel table that
  1576. * matches our buffer.
  1577. */
  1578. prevp = NULL;
  1579. while (bcp != NULL) {
  1580. if (bcp->bc_blkno == blkno && bcp->bc_len == len) {
  1581. /*
  1582. * We've go a match, so return 1 so that the
  1583. * recovery of this buffer is cancelled.
  1584. * If this buffer is actually a buffer cancel
  1585. * log item, then decrement the refcount on the
  1586. * one in the table and remove it if this is the
  1587. * last reference.
  1588. */
  1589. if (flags & XFS_BLF_CANCEL) {
  1590. bcp->bc_refcount--;
  1591. if (bcp->bc_refcount == 0) {
  1592. if (prevp == NULL) {
  1593. *bucket = bcp->bc_next;
  1594. } else {
  1595. prevp->bc_next = bcp->bc_next;
  1596. }
  1597. kmem_free(bcp);
  1598. }
  1599. }
  1600. return 1;
  1601. }
  1602. prevp = bcp;
  1603. bcp = bcp->bc_next;
  1604. }
  1605. /*
  1606. * We didn't find a corresponding entry in the table, so
  1607. * return 0 so that the buffer is NOT cancelled.
  1608. */
  1609. ASSERT(!(flags & XFS_BLF_CANCEL));
  1610. return 0;
  1611. }
  1612. STATIC int
  1613. xlog_recover_do_buffer_pass2(
  1614. xlog_t *log,
  1615. xfs_buf_log_format_t *buf_f)
  1616. {
  1617. xfs_daddr_t blkno = 0;
  1618. ushort flags = 0;
  1619. uint len = 0;
  1620. switch (buf_f->blf_type) {
  1621. case XFS_LI_BUF:
  1622. blkno = buf_f->blf_blkno;
  1623. flags = buf_f->blf_flags;
  1624. len = buf_f->blf_len;
  1625. break;
  1626. }
  1627. return xlog_check_buffer_cancelled(log, blkno, len, flags);
  1628. }
  1629. /*
  1630. * Perform recovery for a buffer full of inodes. In these buffers,
  1631. * the only data which should be recovered is that which corresponds
  1632. * to the di_next_unlinked pointers in the on disk inode structures.
  1633. * The rest of the data for the inodes is always logged through the
  1634. * inodes themselves rather than the inode buffer and is recovered
  1635. * in xlog_recover_do_inode_trans().
  1636. *
  1637. * The only time when buffers full of inodes are fully recovered is
  1638. * when the buffer is full of newly allocated inodes. In this case
  1639. * the buffer will not be marked as an inode buffer and so will be
  1640. * sent to xlog_recover_do_reg_buffer() below during recovery.
  1641. */
  1642. STATIC int
  1643. xlog_recover_do_inode_buffer(
  1644. xfs_mount_t *mp,
  1645. xlog_recover_item_t *item,
  1646. xfs_buf_t *bp,
  1647. xfs_buf_log_format_t *buf_f)
  1648. {
  1649. int i;
  1650. int item_index;
  1651. int bit;
  1652. int nbits;
  1653. int reg_buf_offset;
  1654. int reg_buf_bytes;
  1655. int next_unlinked_offset;
  1656. int inodes_per_buf;
  1657. xfs_agino_t *logged_nextp;
  1658. xfs_agino_t *buffer_nextp;
  1659. unsigned int *data_map = NULL;
  1660. unsigned int map_size = 0;
  1661. trace_xfs_log_recover_buf_inode_buf(mp->m_log, buf_f);
  1662. switch (buf_f->blf_type) {
  1663. case XFS_LI_BUF:
  1664. data_map = buf_f->blf_data_map;
  1665. map_size = buf_f->blf_map_size;
  1666. break;
  1667. }
  1668. /*
  1669. * Set the variables corresponding to the current region to
  1670. * 0 so that we'll initialize them on the first pass through
  1671. * the loop.
  1672. */
  1673. reg_buf_offset = 0;
  1674. reg_buf_bytes = 0;
  1675. bit = 0;
  1676. nbits = 0;
  1677. item_index = 0;
  1678. inodes_per_buf = XFS_BUF_COUNT(bp) >> mp->m_sb.sb_inodelog;
  1679. for (i = 0; i < inodes_per_buf; i++) {
  1680. next_unlinked_offset = (i * mp->m_sb.sb_inodesize) +
  1681. offsetof(xfs_dinode_t, di_next_unlinked);
  1682. while (next_unlinked_offset >=
  1683. (reg_buf_offset + reg_buf_bytes)) {
  1684. /*
  1685. * The next di_next_unlinked field is beyond
  1686. * the current logged region. Find the next
  1687. * logged region that contains or is beyond
  1688. * the current di_next_unlinked field.
  1689. */
  1690. bit += nbits;
  1691. bit = xfs_next_bit(data_map, map_size, bit);
  1692. /*
  1693. * If there are no more logged regions in the
  1694. * buffer, then we're done.
  1695. */
  1696. if (bit == -1) {
  1697. return 0;
  1698. }
  1699. nbits = xfs_contig_bits(data_map, map_size,
  1700. bit);
  1701. ASSERT(nbits > 0);
  1702. reg_buf_offset = bit << XFS_BLF_SHIFT;
  1703. reg_buf_bytes = nbits << XFS_BLF_SHIFT;
  1704. item_index++;
  1705. }
  1706. /*
  1707. * If the current logged region starts after the current
  1708. * di_next_unlinked field, then move on to the next
  1709. * di_next_unlinked field.
  1710. */
  1711. if (next_unlinked_offset < reg_buf_offset) {
  1712. continue;
  1713. }
  1714. ASSERT(item->ri_buf[item_index].i_addr != NULL);
  1715. ASSERT((item->ri_buf[item_index].i_len % XFS_BLF_CHUNK) == 0);
  1716. ASSERT((reg_buf_offset + reg_buf_bytes) <= XFS_BUF_COUNT(bp));
  1717. /*
  1718. * The current logged region contains a copy of the
  1719. * current di_next_unlinked field. Extract its value
  1720. * and copy it to the buffer copy.
  1721. */
  1722. logged_nextp = item->ri_buf[item_index].i_addr +
  1723. next_unlinked_offset - reg_buf_offset;
  1724. if (unlikely(*logged_nextp == 0)) {
  1725. xfs_fs_cmn_err(CE_ALERT, mp,
  1726. "bad inode buffer log record (ptr = 0x%p, bp = 0x%p). XFS trying to replay bad (0) inode di_next_unlinked field",
  1727. item, bp);
  1728. XFS_ERROR_REPORT("xlog_recover_do_inode_buf",
  1729. XFS_ERRLEVEL_LOW, mp);
  1730. return XFS_ERROR(EFSCORRUPTED);
  1731. }
  1732. buffer_nextp = (xfs_agino_t *)xfs_buf_offset(bp,
  1733. next_unlinked_offset);
  1734. *buffer_nextp = *logged_nextp;
  1735. }
  1736. return 0;
  1737. }
  1738. /*
  1739. * Perform a 'normal' buffer recovery. Each logged region of the
  1740. * buffer should be copied over the corresponding region in the
  1741. * given buffer. The bitmap in the buf log format structure indicates
  1742. * where to place the logged data.
  1743. */
  1744. /*ARGSUSED*/
  1745. STATIC void
  1746. xlog_recover_do_reg_buffer(
  1747. struct xfs_mount *mp,
  1748. xlog_recover_item_t *item,
  1749. xfs_buf_t *bp,
  1750. xfs_buf_log_format_t *buf_f)
  1751. {
  1752. int i;
  1753. int bit;
  1754. int nbits;
  1755. unsigned int *data_map = NULL;
  1756. unsigned int map_size = 0;
  1757. int error;
  1758. trace_xfs_log_recover_buf_reg_buf(mp->m_log, buf_f);
  1759. switch (buf_f->blf_type) {
  1760. case XFS_LI_BUF:
  1761. data_map = buf_f->blf_data_map;
  1762. map_size = buf_f->blf_map_size;
  1763. break;
  1764. }
  1765. bit = 0;
  1766. i = 1; /* 0 is the buf format structure */
  1767. while (1) {
  1768. bit = xfs_next_bit(data_map, map_size, bit);
  1769. if (bit == -1)
  1770. break;
  1771. nbits = xfs_contig_bits(data_map, map_size, bit);
  1772. ASSERT(nbits > 0);
  1773. ASSERT(item->ri_buf[i].i_addr != NULL);
  1774. ASSERT(item->ri_buf[i].i_len % XFS_BLF_CHUNK == 0);
  1775. ASSERT(XFS_BUF_COUNT(bp) >=
  1776. ((uint)bit << XFS_BLF_SHIFT)+(nbits<<XFS_BLF_SHIFT));
  1777. /*
  1778. * Do a sanity check if this is a dquot buffer. Just checking
  1779. * the first dquot in the buffer should do. XXXThis is
  1780. * probably a good thing to do for other buf types also.
  1781. */
  1782. error = 0;
  1783. if (buf_f->blf_flags &
  1784. (XFS_BLF_UDQUOT_BUF|XFS_BLF_PDQUOT_BUF|XFS_BLF_GDQUOT_BUF)) {
  1785. if (item->ri_buf[i].i_addr == NULL) {
  1786. cmn_err(CE_ALERT,
  1787. "XFS: NULL dquot in %s.", __func__);
  1788. goto next;
  1789. }
  1790. if (item->ri_buf[i].i_len < sizeof(xfs_disk_dquot_t)) {
  1791. cmn_err(CE_ALERT,
  1792. "XFS: dquot too small (%d) in %s.",
  1793. item->ri_buf[i].i_len, __func__);
  1794. goto next;
  1795. }
  1796. error = xfs_qm_dqcheck(item->ri_buf[i].i_addr,
  1797. -1, 0, XFS_QMOPT_DOWARN,
  1798. "dquot_buf_recover");
  1799. if (error)
  1800. goto next;
  1801. }
  1802. memcpy(xfs_buf_offset(bp,
  1803. (uint)bit << XFS_BLF_SHIFT), /* dest */
  1804. item->ri_buf[i].i_addr, /* source */
  1805. nbits<<XFS_BLF_SHIFT); /* length */
  1806. next:
  1807. i++;
  1808. bit += nbits;
  1809. }
  1810. /* Shouldn't be any more regions */
  1811. ASSERT(i == item->ri_total);
  1812. }
  1813. /*
  1814. * Do some primitive error checking on ondisk dquot data structures.
  1815. */
  1816. int
  1817. xfs_qm_dqcheck(
  1818. xfs_disk_dquot_t *ddq,
  1819. xfs_dqid_t id,
  1820. uint type, /* used only when IO_dorepair is true */
  1821. uint flags,
  1822. char *str)
  1823. {
  1824. xfs_dqblk_t *d = (xfs_dqblk_t *)ddq;
  1825. int errs = 0;
  1826. /*
  1827. * We can encounter an uninitialized dquot buffer for 2 reasons:
  1828. * 1. If we crash while deleting the quotainode(s), and those blks got
  1829. * used for user data. This is because we take the path of regular
  1830. * file deletion; however, the size field of quotainodes is never
  1831. * updated, so all the tricks that we play in itruncate_finish
  1832. * don't quite matter.
  1833. *
  1834. * 2. We don't play the quota buffers when there's a quotaoff logitem.
  1835. * But the allocation will be replayed so we'll end up with an
  1836. * uninitialized quota block.
  1837. *
  1838. * This is all fine; things are still consistent, and we haven't lost
  1839. * any quota information. Just don't complain about bad dquot blks.
  1840. */
  1841. if (be16_to_cpu(ddq->d_magic) != XFS_DQUOT_MAGIC) {
  1842. if (flags & XFS_QMOPT_DOWARN)
  1843. cmn_err(CE_ALERT,
  1844. "%s : XFS dquot ID 0x%x, magic 0x%x != 0x%x",
  1845. str, id, be16_to_cpu(ddq->d_magic), XFS_DQUOT_MAGIC);
  1846. errs++;
  1847. }
  1848. if (ddq->d_version != XFS_DQUOT_VERSION) {
  1849. if (flags & XFS_QMOPT_DOWARN)
  1850. cmn_err(CE_ALERT,
  1851. "%s : XFS dquot ID 0x%x, version 0x%x != 0x%x",
  1852. str, id, ddq->d_version, XFS_DQUOT_VERSION);
  1853. errs++;
  1854. }
  1855. if (ddq->d_flags != XFS_DQ_USER &&
  1856. ddq->d_flags != XFS_DQ_PROJ &&
  1857. ddq->d_flags != XFS_DQ_GROUP) {
  1858. if (flags & XFS_QMOPT_DOWARN)
  1859. cmn_err(CE_ALERT,
  1860. "%s : XFS dquot ID 0x%x, unknown flags 0x%x",
  1861. str, id, ddq->d_flags);
  1862. errs++;
  1863. }
  1864. if (id != -1 && id != be32_to_cpu(ddq->d_id)) {
  1865. if (flags & XFS_QMOPT_DOWARN)
  1866. cmn_err(CE_ALERT,
  1867. "%s : ondisk-dquot 0x%p, ID mismatch: "
  1868. "0x%x expected, found id 0x%x",
  1869. str, ddq, id, be32_to_cpu(ddq->d_id));
  1870. errs++;
  1871. }
  1872. if (!errs && ddq->d_id) {
  1873. if (ddq->d_blk_softlimit &&
  1874. be64_to_cpu(ddq->d_bcount) >=
  1875. be64_to_cpu(ddq->d_blk_softlimit)) {
  1876. if (!ddq->d_btimer) {
  1877. if (flags & XFS_QMOPT_DOWARN)
  1878. cmn_err(CE_ALERT,
  1879. "%s : Dquot ID 0x%x (0x%p) "
  1880. "BLK TIMER NOT STARTED",
  1881. str, (int)be32_to_cpu(ddq->d_id), ddq);
  1882. errs++;
  1883. }
  1884. }
  1885. if (ddq->d_ino_softlimit &&
  1886. be64_to_cpu(ddq->d_icount) >=
  1887. be64_to_cpu(ddq->d_ino_softlimit)) {
  1888. if (!ddq->d_itimer) {
  1889. if (flags & XFS_QMOPT_DOWARN)
  1890. cmn_err(CE_ALERT,
  1891. "%s : Dquot ID 0x%x (0x%p) "
  1892. "INODE TIMER NOT STARTED",
  1893. str, (int)be32_to_cpu(ddq->d_id), ddq);
  1894. errs++;
  1895. }
  1896. }
  1897. if (ddq->d_rtb_softlimit &&
  1898. be64_to_cpu(ddq->d_rtbcount) >=
  1899. be64_to_cpu(ddq->d_rtb_softlimit)) {
  1900. if (!ddq->d_rtbtimer) {
  1901. if (flags & XFS_QMOPT_DOWARN)
  1902. cmn_err(CE_ALERT,
  1903. "%s : Dquot ID 0x%x (0x%p) "
  1904. "RTBLK TIMER NOT STARTED",
  1905. str, (int)be32_to_cpu(ddq->d_id), ddq);
  1906. errs++;
  1907. }
  1908. }
  1909. }
  1910. if (!errs || !(flags & XFS_QMOPT_DQREPAIR))
  1911. return errs;
  1912. if (flags & XFS_QMOPT_DOWARN)
  1913. cmn_err(CE_NOTE, "Re-initializing dquot ID 0x%x", id);
  1914. /*
  1915. * Typically, a repair is only requested by quotacheck.
  1916. */
  1917. ASSERT(id != -1);
  1918. ASSERT(flags & XFS_QMOPT_DQREPAIR);
  1919. memset(d, 0, sizeof(xfs_dqblk_t));
  1920. d->dd_diskdq.d_magic = cpu_to_be16(XFS_DQUOT_MAGIC);
  1921. d->dd_diskdq.d_version = XFS_DQUOT_VERSION;
  1922. d->dd_diskdq.d_flags = type;
  1923. d->dd_diskdq.d_id = cpu_to_be32(id);
  1924. return errs;
  1925. }
  1926. /*
  1927. * Perform a dquot buffer recovery.
  1928. * Simple algorithm: if we have found a QUOTAOFF logitem of the same type
  1929. * (ie. USR or GRP), then just toss this buffer away; don't recover it.
  1930. * Else, treat it as a regular buffer and do recovery.
  1931. */
  1932. STATIC void
  1933. xlog_recover_do_dquot_buffer(
  1934. xfs_mount_t *mp,
  1935. xlog_t *log,
  1936. xlog_recover_item_t *item,
  1937. xfs_buf_t *bp,
  1938. xfs_buf_log_format_t *buf_f)
  1939. {
  1940. uint type;
  1941. trace_xfs_log_recover_buf_dquot_buf(log, buf_f);
  1942. /*
  1943. * Filesystems are required to send in quota flags at mount time.
  1944. */
  1945. if (mp->m_qflags == 0) {
  1946. return;
  1947. }
  1948. type = 0;
  1949. if (buf_f->blf_flags & XFS_BLF_UDQUOT_BUF)
  1950. type |= XFS_DQ_USER;
  1951. if (buf_f->blf_flags & XFS_BLF_PDQUOT_BUF)
  1952. type |= XFS_DQ_PROJ;
  1953. if (buf_f->blf_flags & XFS_BLF_GDQUOT_BUF)
  1954. type |= XFS_DQ_GROUP;
  1955. /*
  1956. * This type of quotas was turned off, so ignore this buffer
  1957. */
  1958. if (log->l_quotaoffs_flag & type)
  1959. return;
  1960. xlog_recover_do_reg_buffer(mp, item, bp, buf_f);
  1961. }
  1962. /*
  1963. * This routine replays a modification made to a buffer at runtime.
  1964. * There are actually two types of buffer, regular and inode, which
  1965. * are handled differently. Inode buffers are handled differently
  1966. * in that we only recover a specific set of data from them, namely
  1967. * the inode di_next_unlinked fields. This is because all other inode
  1968. * data is actually logged via inode records and any data we replay
  1969. * here which overlaps that may be stale.
  1970. *
  1971. * When meta-data buffers are freed at run time we log a buffer item
  1972. * with the XFS_BLF_CANCEL bit set to indicate that previous copies
  1973. * of the buffer in the log should not be replayed at recovery time.
  1974. * This is so that if the blocks covered by the buffer are reused for
  1975. * file data before we crash we don't end up replaying old, freed
  1976. * meta-data into a user's file.
  1977. *
  1978. * To handle the cancellation of buffer log items, we make two passes
  1979. * over the log during recovery. During the first we build a table of
  1980. * those buffers which have been cancelled, and during the second we
  1981. * only replay those buffers which do not have corresponding cancel
  1982. * records in the table. See xlog_recover_do_buffer_pass[1,2] above
  1983. * for more details on the implementation of the table of cancel records.
  1984. */
  1985. STATIC int
  1986. xlog_recover_do_buffer_trans(
  1987. xlog_t *log,
  1988. xlog_recover_item_t *item,
  1989. int pass)
  1990. {
  1991. xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
  1992. xfs_mount_t *mp;
  1993. xfs_buf_t *bp;
  1994. int error;
  1995. int cancel;
  1996. xfs_daddr_t blkno;
  1997. int len;
  1998. ushort flags;
  1999. uint buf_flags;
  2000. if (pass == XLOG_RECOVER_PASS1) {
  2001. /*
  2002. * In this pass we're only looking for buf items
  2003. * with the XFS_BLF_CANCEL bit set.
  2004. */
  2005. xlog_recover_do_buffer_pass1(log, buf_f);
  2006. return 0;
  2007. } else {
  2008. /*
  2009. * In this pass we want to recover all the buffers
  2010. * which have not been cancelled and are not
  2011. * cancellation buffers themselves. The routine
  2012. * we call here will tell us whether or not to
  2013. * continue with the replay of this buffer.
  2014. */
  2015. cancel = xlog_recover_do_buffer_pass2(log, buf_f);
  2016. if (cancel) {
  2017. trace_xfs_log_recover_buf_cancel(log, buf_f);
  2018. return 0;
  2019. }
  2020. }
  2021. trace_xfs_log_recover_buf_recover(log, buf_f);
  2022. switch (buf_f->blf_type) {
  2023. case XFS_LI_BUF:
  2024. blkno = buf_f->blf_blkno;
  2025. len = buf_f->blf_len;
  2026. flags = buf_f->blf_flags;
  2027. break;
  2028. default:
  2029. xfs_fs_cmn_err(CE_ALERT, log->l_mp,
  2030. "xfs_log_recover: unknown buffer type 0x%x, logdev %s",
  2031. buf_f->blf_type, log->l_mp->m_logname ?
  2032. log->l_mp->m_logname : "internal");
  2033. XFS_ERROR_REPORT("xlog_recover_do_buffer_trans",
  2034. XFS_ERRLEVEL_LOW, log->l_mp);
  2035. return XFS_ERROR(EFSCORRUPTED);
  2036. }
  2037. mp = log->l_mp;
  2038. buf_flags = XBF_LOCK;
  2039. if (!(flags & XFS_BLF_INODE_BUF))
  2040. buf_flags |= XBF_MAPPED;
  2041. bp = xfs_buf_read(mp->m_ddev_targp, blkno, len, buf_flags);
  2042. if (XFS_BUF_ISERROR(bp)) {
  2043. xfs_ioerror_alert("xlog_recover_do..(read#1)", log->l_mp,
  2044. bp, blkno);
  2045. error = XFS_BUF_GETERROR(bp);
  2046. xfs_buf_relse(bp);
  2047. return error;
  2048. }
  2049. error = 0;
  2050. if (flags & XFS_BLF_INODE_BUF) {
  2051. error = xlog_recover_do_inode_buffer(mp, item, bp, buf_f);
  2052. } else if (flags &
  2053. (XFS_BLF_UDQUOT_BUF|XFS_BLF_PDQUOT_BUF|XFS_BLF_GDQUOT_BUF)) {
  2054. xlog_recover_do_dquot_buffer(mp, log, item, bp, buf_f);
  2055. } else {
  2056. xlog_recover_do_reg_buffer(mp, item, bp, buf_f);
  2057. }
  2058. if (error)
  2059. return XFS_ERROR(error);
  2060. /*
  2061. * Perform delayed write on the buffer. Asynchronous writes will be
  2062. * slower when taking into account all the buffers to be flushed.
  2063. *
  2064. * Also make sure that only inode buffers with good sizes stay in
  2065. * the buffer cache. The kernel moves inodes in buffers of 1 block
  2066. * or XFS_INODE_CLUSTER_SIZE bytes, whichever is bigger. The inode
  2067. * buffers in the log can be a different size if the log was generated
  2068. * by an older kernel using unclustered inode buffers or a newer kernel
  2069. * running with a different inode cluster size. Regardless, if the
  2070. * the inode buffer size isn't MAX(blocksize, XFS_INODE_CLUSTER_SIZE)
  2071. * for *our* value of XFS_INODE_CLUSTER_SIZE, then we need to keep
  2072. * the buffer out of the buffer cache so that the buffer won't
  2073. * overlap with future reads of those inodes.
  2074. */
  2075. if (XFS_DINODE_MAGIC ==
  2076. be16_to_cpu(*((__be16 *)xfs_buf_offset(bp, 0))) &&
  2077. (XFS_BUF_COUNT(bp) != MAX(log->l_mp->m_sb.sb_blocksize,
  2078. (__uint32_t)XFS_INODE_CLUSTER_SIZE(log->l_mp)))) {
  2079. XFS_BUF_STALE(bp);
  2080. error = xfs_bwrite(mp, bp);
  2081. } else {
  2082. ASSERT(bp->b_target->bt_mount == mp);
  2083. XFS_BUF_SET_IODONE_FUNC(bp, xlog_recover_iodone);
  2084. xfs_bdwrite(mp, bp);
  2085. }
  2086. return (error);
  2087. }
  2088. STATIC int
  2089. xlog_recover_do_inode_trans(
  2090. xlog_t *log,
  2091. xlog_recover_item_t *item,
  2092. int pass)
  2093. {
  2094. xfs_inode_log_format_t *in_f;
  2095. xfs_mount_t *mp;
  2096. xfs_buf_t *bp;
  2097. xfs_dinode_t *dip;
  2098. xfs_ino_t ino;
  2099. int len;
  2100. xfs_caddr_t src;
  2101. xfs_caddr_t dest;
  2102. int error;
  2103. int attr_index;
  2104. uint fields;
  2105. xfs_icdinode_t *dicp;
  2106. int need_free = 0;
  2107. if (pass == XLOG_RECOVER_PASS1) {
  2108. return 0;
  2109. }
  2110. if (item->ri_buf[0].i_len == sizeof(xfs_inode_log_format_t)) {
  2111. in_f = item->ri_buf[0].i_addr;
  2112. } else {
  2113. in_f = kmem_alloc(sizeof(xfs_inode_log_format_t), KM_SLEEP);
  2114. need_free = 1;
  2115. error = xfs_inode_item_format_convert(&item->ri_buf[0], in_f);
  2116. if (error)
  2117. goto error;
  2118. }
  2119. ino = in_f->ilf_ino;
  2120. mp = log->l_mp;
  2121. /*
  2122. * Inode buffers can be freed, look out for it,
  2123. * and do not replay the inode.
  2124. */
  2125. if (xlog_check_buffer_cancelled(log, in_f->ilf_blkno,
  2126. in_f->ilf_len, 0)) {
  2127. error = 0;
  2128. trace_xfs_log_recover_inode_cancel(log, in_f);
  2129. goto error;
  2130. }
  2131. trace_xfs_log_recover_inode_recover(log, in_f);
  2132. bp = xfs_buf_read(mp->m_ddev_targp, in_f->ilf_blkno, in_f->ilf_len,
  2133. XBF_LOCK);
  2134. if (XFS_BUF_ISERROR(bp)) {
  2135. xfs_ioerror_alert("xlog_recover_do..(read#2)", mp,
  2136. bp, in_f->ilf_blkno);
  2137. error = XFS_BUF_GETERROR(bp);
  2138. xfs_buf_relse(bp);
  2139. goto error;
  2140. }
  2141. error = 0;
  2142. ASSERT(in_f->ilf_fields & XFS_ILOG_CORE);
  2143. dip = (xfs_dinode_t *)xfs_buf_offset(bp, in_f->ilf_boffset);
  2144. /*
  2145. * Make sure the place we're flushing out to really looks
  2146. * like an inode!
  2147. */
  2148. if (unlikely(be16_to_cpu(dip->di_magic) != XFS_DINODE_MAGIC)) {
  2149. xfs_buf_relse(bp);
  2150. xfs_fs_cmn_err(CE_ALERT, mp,
  2151. "xfs_inode_recover: Bad inode magic number, dino ptr = 0x%p, dino bp = 0x%p, ino = %Ld",
  2152. dip, bp, ino);
  2153. XFS_ERROR_REPORT("xlog_recover_do_inode_trans(1)",
  2154. XFS_ERRLEVEL_LOW, mp);
  2155. error = EFSCORRUPTED;
  2156. goto error;
  2157. }
  2158. dicp = item->ri_buf[1].i_addr;
  2159. if (unlikely(dicp->di_magic != XFS_DINODE_MAGIC)) {
  2160. xfs_buf_relse(bp);
  2161. xfs_fs_cmn_err(CE_ALERT, mp,
  2162. "xfs_inode_recover: Bad inode log record, rec ptr 0x%p, ino %Ld",
  2163. item, ino);
  2164. XFS_ERROR_REPORT("xlog_recover_do_inode_trans(2)",
  2165. XFS_ERRLEVEL_LOW, mp);
  2166. error = EFSCORRUPTED;
  2167. goto error;
  2168. }
  2169. /* Skip replay when the on disk inode is newer than the log one */
  2170. if (dicp->di_flushiter < be16_to_cpu(dip->di_flushiter)) {
  2171. /*
  2172. * Deal with the wrap case, DI_MAX_FLUSH is less
  2173. * than smaller numbers
  2174. */
  2175. if (be16_to_cpu(dip->di_flushiter) == DI_MAX_FLUSH &&
  2176. dicp->di_flushiter < (DI_MAX_FLUSH >> 1)) {
  2177. /* do nothing */
  2178. } else {
  2179. xfs_buf_relse(bp);
  2180. trace_xfs_log_recover_inode_skip(log, in_f);
  2181. error = 0;
  2182. goto error;
  2183. }
  2184. }
  2185. /* Take the opportunity to reset the flush iteration count */
  2186. dicp->di_flushiter = 0;
  2187. if (unlikely((dicp->di_mode & S_IFMT) == S_IFREG)) {
  2188. if ((dicp->di_format != XFS_DINODE_FMT_EXTENTS) &&
  2189. (dicp->di_format != XFS_DINODE_FMT_BTREE)) {
  2190. XFS_CORRUPTION_ERROR("xlog_recover_do_inode_trans(3)",
  2191. XFS_ERRLEVEL_LOW, mp, dicp);
  2192. xfs_buf_relse(bp);
  2193. xfs_fs_cmn_err(CE_ALERT, mp,
  2194. "xfs_inode_recover: Bad regular inode log record, rec ptr 0x%p, ino ptr = 0x%p, ino bp = 0x%p, ino %Ld",
  2195. item, dip, bp, ino);
  2196. error = EFSCORRUPTED;
  2197. goto error;
  2198. }
  2199. } else if (unlikely((dicp->di_mode & S_IFMT) == S_IFDIR)) {
  2200. if ((dicp->di_format != XFS_DINODE_FMT_EXTENTS) &&
  2201. (dicp->di_format != XFS_DINODE_FMT_BTREE) &&
  2202. (dicp->di_format != XFS_DINODE_FMT_LOCAL)) {
  2203. XFS_CORRUPTION_ERROR("xlog_recover_do_inode_trans(4)",
  2204. XFS_ERRLEVEL_LOW, mp, dicp);
  2205. xfs_buf_relse(bp);
  2206. xfs_fs_cmn_err(CE_ALERT, mp,
  2207. "xfs_inode_recover: Bad dir inode log record, rec ptr 0x%p, ino ptr = 0x%p, ino bp = 0x%p, ino %Ld",
  2208. item, dip, bp, ino);
  2209. error = EFSCORRUPTED;
  2210. goto error;
  2211. }
  2212. }
  2213. if (unlikely(dicp->di_nextents + dicp->di_anextents > dicp->di_nblocks)){
  2214. XFS_CORRUPTION_ERROR("xlog_recover_do_inode_trans(5)",
  2215. XFS_ERRLEVEL_LOW, mp, dicp);
  2216. xfs_buf_relse(bp);
  2217. xfs_fs_cmn_err(CE_ALERT, mp,
  2218. "xfs_inode_recover: Bad inode log record, rec ptr 0x%p, dino ptr 0x%p, dino bp 0x%p, ino %Ld, total extents = %d, nblocks = %Ld",
  2219. item, dip, bp, ino,
  2220. dicp->di_nextents + dicp->di_anextents,
  2221. dicp->di_nblocks);
  2222. error = EFSCORRUPTED;
  2223. goto error;
  2224. }
  2225. if (unlikely(dicp->di_forkoff > mp->m_sb.sb_inodesize)) {
  2226. XFS_CORRUPTION_ERROR("xlog_recover_do_inode_trans(6)",
  2227. XFS_ERRLEVEL_LOW, mp, dicp);
  2228. xfs_buf_relse(bp);
  2229. xfs_fs_cmn_err(CE_ALERT, mp,
  2230. "xfs_inode_recover: Bad inode log rec ptr 0x%p, dino ptr 0x%p, dino bp 0x%p, ino %Ld, forkoff 0x%x",
  2231. item, dip, bp, ino, dicp->di_forkoff);
  2232. error = EFSCORRUPTED;
  2233. goto error;
  2234. }
  2235. if (unlikely(item->ri_buf[1].i_len > sizeof(struct xfs_icdinode))) {
  2236. XFS_CORRUPTION_ERROR("xlog_recover_do_inode_trans(7)",
  2237. XFS_ERRLEVEL_LOW, mp, dicp);
  2238. xfs_buf_relse(bp);
  2239. xfs_fs_cmn_err(CE_ALERT, mp,
  2240. "xfs_inode_recover: Bad inode log record length %d, rec ptr 0x%p",
  2241. item->ri_buf[1].i_len, item);
  2242. error = EFSCORRUPTED;
  2243. goto error;
  2244. }
  2245. /* The core is in in-core format */
  2246. xfs_dinode_to_disk(dip, item->ri_buf[1].i_addr);
  2247. /* the rest is in on-disk format */
  2248. if (item->ri_buf[1].i_len > sizeof(struct xfs_icdinode)) {
  2249. memcpy((xfs_caddr_t) dip + sizeof(struct xfs_icdinode),
  2250. item->ri_buf[1].i_addr + sizeof(struct xfs_icdinode),
  2251. item->ri_buf[1].i_len - sizeof(struct xfs_icdinode));
  2252. }
  2253. fields = in_f->ilf_fields;
  2254. switch (fields & (XFS_ILOG_DEV | XFS_ILOG_UUID)) {
  2255. case XFS_ILOG_DEV:
  2256. xfs_dinode_put_rdev(dip, in_f->ilf_u.ilfu_rdev);
  2257. break;
  2258. case XFS_ILOG_UUID:
  2259. memcpy(XFS_DFORK_DPTR(dip),
  2260. &in_f->ilf_u.ilfu_uuid,
  2261. sizeof(uuid_t));
  2262. break;
  2263. }
  2264. if (in_f->ilf_size == 2)
  2265. goto write_inode_buffer;
  2266. len = item->ri_buf[2].i_len;
  2267. src = item->ri_buf[2].i_addr;
  2268. ASSERT(in_f->ilf_size <= 4);
  2269. ASSERT((in_f->ilf_size == 3) || (fields & XFS_ILOG_AFORK));
  2270. ASSERT(!(fields & XFS_ILOG_DFORK) ||
  2271. (len == in_f->ilf_dsize));
  2272. switch (fields & XFS_ILOG_DFORK) {
  2273. case XFS_ILOG_DDATA:
  2274. case XFS_ILOG_DEXT:
  2275. memcpy(XFS_DFORK_DPTR(dip), src, len);
  2276. break;
  2277. case XFS_ILOG_DBROOT:
  2278. xfs_bmbt_to_bmdr(mp, (struct xfs_btree_block *)src, len,
  2279. (xfs_bmdr_block_t *)XFS_DFORK_DPTR(dip),
  2280. XFS_DFORK_DSIZE(dip, mp));
  2281. break;
  2282. default:
  2283. /*
  2284. * There are no data fork flags set.
  2285. */
  2286. ASSERT((fields & XFS_ILOG_DFORK) == 0);
  2287. break;
  2288. }
  2289. /*
  2290. * If we logged any attribute data, recover it. There may or
  2291. * may not have been any other non-core data logged in this
  2292. * transaction.
  2293. */
  2294. if (in_f->ilf_fields & XFS_ILOG_AFORK) {
  2295. if (in_f->ilf_fields & XFS_ILOG_DFORK) {
  2296. attr_index = 3;
  2297. } else {
  2298. attr_index = 2;
  2299. }
  2300. len = item->ri_buf[attr_index].i_len;
  2301. src = item->ri_buf[attr_index].i_addr;
  2302. ASSERT(len == in_f->ilf_asize);
  2303. switch (in_f->ilf_fields & XFS_ILOG_AFORK) {
  2304. case XFS_ILOG_ADATA:
  2305. case XFS_ILOG_AEXT:
  2306. dest = XFS_DFORK_APTR(dip);
  2307. ASSERT(len <= XFS_DFORK_ASIZE(dip, mp));
  2308. memcpy(dest, src, len);
  2309. break;
  2310. case XFS_ILOG_ABROOT:
  2311. dest = XFS_DFORK_APTR(dip);
  2312. xfs_bmbt_to_bmdr(mp, (struct xfs_btree_block *)src,
  2313. len, (xfs_bmdr_block_t*)dest,
  2314. XFS_DFORK_ASIZE(dip, mp));
  2315. break;
  2316. default:
  2317. xlog_warn("XFS: xlog_recover_do_inode_trans: Invalid flag");
  2318. ASSERT(0);
  2319. xfs_buf_relse(bp);
  2320. error = EIO;
  2321. goto error;
  2322. }
  2323. }
  2324. write_inode_buffer:
  2325. ASSERT(bp->b_target->bt_mount == mp);
  2326. XFS_BUF_SET_IODONE_FUNC(bp, xlog_recover_iodone);
  2327. xfs_bdwrite(mp, bp);
  2328. error:
  2329. if (need_free)
  2330. kmem_free(in_f);
  2331. return XFS_ERROR(error);
  2332. }
  2333. /*
  2334. * Recover QUOTAOFF records. We simply make a note of it in the xlog_t
  2335. * structure, so that we know not to do any dquot item or dquot buffer recovery,
  2336. * of that type.
  2337. */
  2338. STATIC int
  2339. xlog_recover_do_quotaoff_trans(
  2340. xlog_t *log,
  2341. xlog_recover_item_t *item,
  2342. int pass)
  2343. {
  2344. xfs_qoff_logformat_t *qoff_f;
  2345. if (pass == XLOG_RECOVER_PASS2) {
  2346. return (0);
  2347. }
  2348. qoff_f = item->ri_buf[0].i_addr;
  2349. ASSERT(qoff_f);
  2350. /*
  2351. * The logitem format's flag tells us if this was user quotaoff,
  2352. * group/project quotaoff or both.
  2353. */
  2354. if (qoff_f->qf_flags & XFS_UQUOTA_ACCT)
  2355. log->l_quotaoffs_flag |= XFS_DQ_USER;
  2356. if (qoff_f->qf_flags & XFS_PQUOTA_ACCT)
  2357. log->l_quotaoffs_flag |= XFS_DQ_PROJ;
  2358. if (qoff_f->qf_flags & XFS_GQUOTA_ACCT)
  2359. log->l_quotaoffs_flag |= XFS_DQ_GROUP;
  2360. return (0);
  2361. }
  2362. /*
  2363. * Recover a dquot record
  2364. */
  2365. STATIC int
  2366. xlog_recover_do_dquot_trans(
  2367. xlog_t *log,
  2368. xlog_recover_item_t *item,
  2369. int pass)
  2370. {
  2371. xfs_mount_t *mp;
  2372. xfs_buf_t *bp;
  2373. struct xfs_disk_dquot *ddq, *recddq;
  2374. int error;
  2375. xfs_dq_logformat_t *dq_f;
  2376. uint type;
  2377. if (pass == XLOG_RECOVER_PASS1) {
  2378. return 0;
  2379. }
  2380. mp = log->l_mp;
  2381. /*
  2382. * Filesystems are required to send in quota flags at mount time.
  2383. */
  2384. if (mp->m_qflags == 0)
  2385. return (0);
  2386. recddq = item->ri_buf[1].i_addr;
  2387. if (recddq == NULL) {
  2388. cmn_err(CE_ALERT,
  2389. "XFS: NULL dquot in %s.", __func__);
  2390. return XFS_ERROR(EIO);
  2391. }
  2392. if (item->ri_buf[1].i_len < sizeof(xfs_disk_dquot_t)) {
  2393. cmn_err(CE_ALERT,
  2394. "XFS: dquot too small (%d) in %s.",
  2395. item->ri_buf[1].i_len, __func__);
  2396. return XFS_ERROR(EIO);
  2397. }
  2398. /*
  2399. * This type of quotas was turned off, so ignore this record.
  2400. */
  2401. type = recddq->d_flags & (XFS_DQ_USER | XFS_DQ_PROJ | XFS_DQ_GROUP);
  2402. ASSERT(type);
  2403. if (log->l_quotaoffs_flag & type)
  2404. return (0);
  2405. /*
  2406. * At this point we know that quota was _not_ turned off.
  2407. * Since the mount flags are not indicating to us otherwise, this
  2408. * must mean that quota is on, and the dquot needs to be replayed.
  2409. * Remember that we may not have fully recovered the superblock yet,
  2410. * so we can't do the usual trick of looking at the SB quota bits.
  2411. *
  2412. * The other possibility, of course, is that the quota subsystem was
  2413. * removed since the last mount - ENOSYS.
  2414. */
  2415. dq_f = item->ri_buf[0].i_addr;
  2416. ASSERT(dq_f);
  2417. if ((error = xfs_qm_dqcheck(recddq,
  2418. dq_f->qlf_id,
  2419. 0, XFS_QMOPT_DOWARN,
  2420. "xlog_recover_do_dquot_trans (log copy)"))) {
  2421. return XFS_ERROR(EIO);
  2422. }
  2423. ASSERT(dq_f->qlf_len == 1);
  2424. error = xfs_read_buf(mp, mp->m_ddev_targp,
  2425. dq_f->qlf_blkno,
  2426. XFS_FSB_TO_BB(mp, dq_f->qlf_len),
  2427. 0, &bp);
  2428. if (error) {
  2429. xfs_ioerror_alert("xlog_recover_do..(read#3)", mp,
  2430. bp, dq_f->qlf_blkno);
  2431. return error;
  2432. }
  2433. ASSERT(bp);
  2434. ddq = (xfs_disk_dquot_t *)xfs_buf_offset(bp, dq_f->qlf_boffset);
  2435. /*
  2436. * At least the magic num portion should be on disk because this
  2437. * was among a chunk of dquots created earlier, and we did some
  2438. * minimal initialization then.
  2439. */
  2440. if (xfs_qm_dqcheck(ddq, dq_f->qlf_id, 0, XFS_QMOPT_DOWARN,
  2441. "xlog_recover_do_dquot_trans")) {
  2442. xfs_buf_relse(bp);
  2443. return XFS_ERROR(EIO);
  2444. }
  2445. memcpy(ddq, recddq, item->ri_buf[1].i_len);
  2446. ASSERT(dq_f->qlf_size == 2);
  2447. ASSERT(bp->b_target->bt_mount == mp);
  2448. XFS_BUF_SET_IODONE_FUNC(bp, xlog_recover_iodone);
  2449. xfs_bdwrite(mp, bp);
  2450. return (0);
  2451. }
  2452. /*
  2453. * This routine is called to create an in-core extent free intent
  2454. * item from the efi format structure which was logged on disk.
  2455. * It allocates an in-core efi, copies the extents from the format
  2456. * structure into it, and adds the efi to the AIL with the given
  2457. * LSN.
  2458. */
  2459. STATIC int
  2460. xlog_recover_do_efi_trans(
  2461. xlog_t *log,
  2462. xlog_recover_item_t *item,
  2463. xfs_lsn_t lsn,
  2464. int pass)
  2465. {
  2466. int error;
  2467. xfs_mount_t *mp;
  2468. xfs_efi_log_item_t *efip;
  2469. xfs_efi_log_format_t *efi_formatp;
  2470. if (pass == XLOG_RECOVER_PASS1) {
  2471. return 0;
  2472. }
  2473. efi_formatp = item->ri_buf[0].i_addr;
  2474. mp = log->l_mp;
  2475. efip = xfs_efi_init(mp, efi_formatp->efi_nextents);
  2476. if ((error = xfs_efi_copy_format(&(item->ri_buf[0]),
  2477. &(efip->efi_format)))) {
  2478. xfs_efi_item_free(efip);
  2479. return error;
  2480. }
  2481. efip->efi_next_extent = efi_formatp->efi_nextents;
  2482. efip->efi_flags |= XFS_EFI_COMMITTED;
  2483. spin_lock(&log->l_ailp->xa_lock);
  2484. /*
  2485. * xfs_trans_ail_update() drops the AIL lock.
  2486. */
  2487. xfs_trans_ail_update(log->l_ailp, (xfs_log_item_t *)efip, lsn);
  2488. return 0;
  2489. }
  2490. /*
  2491. * This routine is called when an efd format structure is found in
  2492. * a committed transaction in the log. It's purpose is to cancel
  2493. * the corresponding efi if it was still in the log. To do this
  2494. * it searches the AIL for the efi with an id equal to that in the
  2495. * efd format structure. If we find it, we remove the efi from the
  2496. * AIL and free it.
  2497. */
  2498. STATIC void
  2499. xlog_recover_do_efd_trans(
  2500. xlog_t *log,
  2501. xlog_recover_item_t *item,
  2502. int pass)
  2503. {
  2504. xfs_efd_log_format_t *efd_formatp;
  2505. xfs_efi_log_item_t *efip = NULL;
  2506. xfs_log_item_t *lip;
  2507. __uint64_t efi_id;
  2508. struct xfs_ail_cursor cur;
  2509. struct xfs_ail *ailp = log->l_ailp;
  2510. if (pass == XLOG_RECOVER_PASS1) {
  2511. return;
  2512. }
  2513. efd_formatp = item->ri_buf[0].i_addr;
  2514. ASSERT((item->ri_buf[0].i_len == (sizeof(xfs_efd_log_format_32_t) +
  2515. ((efd_formatp->efd_nextents - 1) * sizeof(xfs_extent_32_t)))) ||
  2516. (item->ri_buf[0].i_len == (sizeof(xfs_efd_log_format_64_t) +
  2517. ((efd_formatp->efd_nextents - 1) * sizeof(xfs_extent_64_t)))));
  2518. efi_id = efd_formatp->efd_efi_id;
  2519. /*
  2520. * Search for the efi with the id in the efd format structure
  2521. * in the AIL.
  2522. */
  2523. spin_lock(&ailp->xa_lock);
  2524. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  2525. while (lip != NULL) {
  2526. if (lip->li_type == XFS_LI_EFI) {
  2527. efip = (xfs_efi_log_item_t *)lip;
  2528. if (efip->efi_format.efi_id == efi_id) {
  2529. /*
  2530. * xfs_trans_ail_delete() drops the
  2531. * AIL lock.
  2532. */
  2533. xfs_trans_ail_delete(ailp, lip);
  2534. xfs_efi_item_free(efip);
  2535. spin_lock(&ailp->xa_lock);
  2536. break;
  2537. }
  2538. }
  2539. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  2540. }
  2541. xfs_trans_ail_cursor_done(ailp, &cur);
  2542. spin_unlock(&ailp->xa_lock);
  2543. }
  2544. /*
  2545. * Perform the transaction
  2546. *
  2547. * If the transaction modifies a buffer or inode, do it now. Otherwise,
  2548. * EFIs and EFDs get queued up by adding entries into the AIL for them.
  2549. */
  2550. STATIC int
  2551. xlog_recover_do_trans(
  2552. xlog_t *log,
  2553. xlog_recover_t *trans,
  2554. int pass)
  2555. {
  2556. int error = 0;
  2557. xlog_recover_item_t *item;
  2558. error = xlog_recover_reorder_trans(log, trans, pass);
  2559. if (error)
  2560. return error;
  2561. list_for_each_entry(item, &trans->r_itemq, ri_list) {
  2562. trace_xfs_log_recover_item_recover(log, trans, item, pass);
  2563. switch (ITEM_TYPE(item)) {
  2564. case XFS_LI_BUF:
  2565. error = xlog_recover_do_buffer_trans(log, item, pass);
  2566. break;
  2567. case XFS_LI_INODE:
  2568. error = xlog_recover_do_inode_trans(log, item, pass);
  2569. break;
  2570. case XFS_LI_EFI:
  2571. error = xlog_recover_do_efi_trans(log, item,
  2572. trans->r_lsn, pass);
  2573. break;
  2574. case XFS_LI_EFD:
  2575. xlog_recover_do_efd_trans(log, item, pass);
  2576. error = 0;
  2577. break;
  2578. case XFS_LI_DQUOT:
  2579. error = xlog_recover_do_dquot_trans(log, item, pass);
  2580. break;
  2581. case XFS_LI_QUOTAOFF:
  2582. error = xlog_recover_do_quotaoff_trans(log, item,
  2583. pass);
  2584. break;
  2585. default:
  2586. xlog_warn(
  2587. "XFS: invalid item type (%d) xlog_recover_do_trans", ITEM_TYPE(item));
  2588. ASSERT(0);
  2589. error = XFS_ERROR(EIO);
  2590. break;
  2591. }
  2592. if (error)
  2593. return error;
  2594. }
  2595. return 0;
  2596. }
  2597. /*
  2598. * Free up any resources allocated by the transaction
  2599. *
  2600. * Remember that EFIs, EFDs, and IUNLINKs are handled later.
  2601. */
  2602. STATIC void
  2603. xlog_recover_free_trans(
  2604. xlog_recover_t *trans)
  2605. {
  2606. xlog_recover_item_t *item, *n;
  2607. int i;
  2608. list_for_each_entry_safe(item, n, &trans->r_itemq, ri_list) {
  2609. /* Free the regions in the item. */
  2610. list_del(&item->ri_list);
  2611. for (i = 0; i < item->ri_cnt; i++)
  2612. kmem_free(item->ri_buf[i].i_addr);
  2613. /* Free the item itself */
  2614. kmem_free(item->ri_buf);
  2615. kmem_free(item);
  2616. }
  2617. /* Free the transaction recover structure */
  2618. kmem_free(trans);
  2619. }
  2620. STATIC int
  2621. xlog_recover_commit_trans(
  2622. xlog_t *log,
  2623. xlog_recover_t *trans,
  2624. int pass)
  2625. {
  2626. int error;
  2627. hlist_del(&trans->r_list);
  2628. if ((error = xlog_recover_do_trans(log, trans, pass)))
  2629. return error;
  2630. xlog_recover_free_trans(trans); /* no error */
  2631. return 0;
  2632. }
  2633. STATIC int
  2634. xlog_recover_unmount_trans(
  2635. xlog_recover_t *trans)
  2636. {
  2637. /* Do nothing now */
  2638. xlog_warn("XFS: xlog_recover_unmount_trans: Unmount LR");
  2639. return 0;
  2640. }
  2641. /*
  2642. * There are two valid states of the r_state field. 0 indicates that the
  2643. * transaction structure is in a normal state. We have either seen the
  2644. * start of the transaction or the last operation we added was not a partial
  2645. * operation. If the last operation we added to the transaction was a
  2646. * partial operation, we need to mark r_state with XLOG_WAS_CONT_TRANS.
  2647. *
  2648. * NOTE: skip LRs with 0 data length.
  2649. */
  2650. STATIC int
  2651. xlog_recover_process_data(
  2652. xlog_t *log,
  2653. struct hlist_head rhash[],
  2654. xlog_rec_header_t *rhead,
  2655. xfs_caddr_t dp,
  2656. int pass)
  2657. {
  2658. xfs_caddr_t lp;
  2659. int num_logops;
  2660. xlog_op_header_t *ohead;
  2661. xlog_recover_t *trans;
  2662. xlog_tid_t tid;
  2663. int error;
  2664. unsigned long hash;
  2665. uint flags;
  2666. lp = dp + be32_to_cpu(rhead->h_len);
  2667. num_logops = be32_to_cpu(rhead->h_num_logops);
  2668. /* check the log format matches our own - else we can't recover */
  2669. if (xlog_header_check_recover(log->l_mp, rhead))
  2670. return (XFS_ERROR(EIO));
  2671. while ((dp < lp) && num_logops) {
  2672. ASSERT(dp + sizeof(xlog_op_header_t) <= lp);
  2673. ohead = (xlog_op_header_t *)dp;
  2674. dp += sizeof(xlog_op_header_t);
  2675. if (ohead->oh_clientid != XFS_TRANSACTION &&
  2676. ohead->oh_clientid != XFS_LOG) {
  2677. xlog_warn(
  2678. "XFS: xlog_recover_process_data: bad clientid");
  2679. ASSERT(0);
  2680. return (XFS_ERROR(EIO));
  2681. }
  2682. tid = be32_to_cpu(ohead->oh_tid);
  2683. hash = XLOG_RHASH(tid);
  2684. trans = xlog_recover_find_tid(&rhash[hash], tid);
  2685. if (trans == NULL) { /* not found; add new tid */
  2686. if (ohead->oh_flags & XLOG_START_TRANS)
  2687. xlog_recover_new_tid(&rhash[hash], tid,
  2688. be64_to_cpu(rhead->h_lsn));
  2689. } else {
  2690. if (dp + be32_to_cpu(ohead->oh_len) > lp) {
  2691. xlog_warn(
  2692. "XFS: xlog_recover_process_data: bad length");
  2693. WARN_ON(1);
  2694. return (XFS_ERROR(EIO));
  2695. }
  2696. flags = ohead->oh_flags & ~XLOG_END_TRANS;
  2697. if (flags & XLOG_WAS_CONT_TRANS)
  2698. flags &= ~XLOG_CONTINUE_TRANS;
  2699. switch (flags) {
  2700. case XLOG_COMMIT_TRANS:
  2701. error = xlog_recover_commit_trans(log,
  2702. trans, pass);
  2703. break;
  2704. case XLOG_UNMOUNT_TRANS:
  2705. error = xlog_recover_unmount_trans(trans);
  2706. break;
  2707. case XLOG_WAS_CONT_TRANS:
  2708. error = xlog_recover_add_to_cont_trans(log,
  2709. trans, dp,
  2710. be32_to_cpu(ohead->oh_len));
  2711. break;
  2712. case XLOG_START_TRANS:
  2713. xlog_warn(
  2714. "XFS: xlog_recover_process_data: bad transaction");
  2715. ASSERT(0);
  2716. error = XFS_ERROR(EIO);
  2717. break;
  2718. case 0:
  2719. case XLOG_CONTINUE_TRANS:
  2720. error = xlog_recover_add_to_trans(log, trans,
  2721. dp, be32_to_cpu(ohead->oh_len));
  2722. break;
  2723. default:
  2724. xlog_warn(
  2725. "XFS: xlog_recover_process_data: bad flag");
  2726. ASSERT(0);
  2727. error = XFS_ERROR(EIO);
  2728. break;
  2729. }
  2730. if (error)
  2731. return error;
  2732. }
  2733. dp += be32_to_cpu(ohead->oh_len);
  2734. num_logops--;
  2735. }
  2736. return 0;
  2737. }
  2738. /*
  2739. * Process an extent free intent item that was recovered from
  2740. * the log. We need to free the extents that it describes.
  2741. */
  2742. STATIC int
  2743. xlog_recover_process_efi(
  2744. xfs_mount_t *mp,
  2745. xfs_efi_log_item_t *efip)
  2746. {
  2747. xfs_efd_log_item_t *efdp;
  2748. xfs_trans_t *tp;
  2749. int i;
  2750. int error = 0;
  2751. xfs_extent_t *extp;
  2752. xfs_fsblock_t startblock_fsb;
  2753. ASSERT(!(efip->efi_flags & XFS_EFI_RECOVERED));
  2754. /*
  2755. * First check the validity of the extents described by the
  2756. * EFI. If any are bad, then assume that all are bad and
  2757. * just toss the EFI.
  2758. */
  2759. for (i = 0; i < efip->efi_format.efi_nextents; i++) {
  2760. extp = &(efip->efi_format.efi_extents[i]);
  2761. startblock_fsb = XFS_BB_TO_FSB(mp,
  2762. XFS_FSB_TO_DADDR(mp, extp->ext_start));
  2763. if ((startblock_fsb == 0) ||
  2764. (extp->ext_len == 0) ||
  2765. (startblock_fsb >= mp->m_sb.sb_dblocks) ||
  2766. (extp->ext_len >= mp->m_sb.sb_agblocks)) {
  2767. /*
  2768. * This will pull the EFI from the AIL and
  2769. * free the memory associated with it.
  2770. */
  2771. xfs_efi_release(efip, efip->efi_format.efi_nextents);
  2772. return XFS_ERROR(EIO);
  2773. }
  2774. }
  2775. tp = xfs_trans_alloc(mp, 0);
  2776. error = xfs_trans_reserve(tp, 0, XFS_ITRUNCATE_LOG_RES(mp), 0, 0, 0);
  2777. if (error)
  2778. goto abort_error;
  2779. efdp = xfs_trans_get_efd(tp, efip, efip->efi_format.efi_nextents);
  2780. for (i = 0; i < efip->efi_format.efi_nextents; i++) {
  2781. extp = &(efip->efi_format.efi_extents[i]);
  2782. error = xfs_free_extent(tp, extp->ext_start, extp->ext_len);
  2783. if (error)
  2784. goto abort_error;
  2785. xfs_trans_log_efd_extent(tp, efdp, extp->ext_start,
  2786. extp->ext_len);
  2787. }
  2788. efip->efi_flags |= XFS_EFI_RECOVERED;
  2789. error = xfs_trans_commit(tp, 0);
  2790. return error;
  2791. abort_error:
  2792. xfs_trans_cancel(tp, XFS_TRANS_ABORT);
  2793. return error;
  2794. }
  2795. /*
  2796. * When this is called, all of the EFIs which did not have
  2797. * corresponding EFDs should be in the AIL. What we do now
  2798. * is free the extents associated with each one.
  2799. *
  2800. * Since we process the EFIs in normal transactions, they
  2801. * will be removed at some point after the commit. This prevents
  2802. * us from just walking down the list processing each one.
  2803. * We'll use a flag in the EFI to skip those that we've already
  2804. * processed and use the AIL iteration mechanism's generation
  2805. * count to try to speed this up at least a bit.
  2806. *
  2807. * When we start, we know that the EFIs are the only things in
  2808. * the AIL. As we process them, however, other items are added
  2809. * to the AIL. Since everything added to the AIL must come after
  2810. * everything already in the AIL, we stop processing as soon as
  2811. * we see something other than an EFI in the AIL.
  2812. */
  2813. STATIC int
  2814. xlog_recover_process_efis(
  2815. xlog_t *log)
  2816. {
  2817. xfs_log_item_t *lip;
  2818. xfs_efi_log_item_t *efip;
  2819. int error = 0;
  2820. struct xfs_ail_cursor cur;
  2821. struct xfs_ail *ailp;
  2822. ailp = log->l_ailp;
  2823. spin_lock(&ailp->xa_lock);
  2824. lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
  2825. while (lip != NULL) {
  2826. /*
  2827. * We're done when we see something other than an EFI.
  2828. * There should be no EFIs left in the AIL now.
  2829. */
  2830. if (lip->li_type != XFS_LI_EFI) {
  2831. #ifdef DEBUG
  2832. for (; lip; lip = xfs_trans_ail_cursor_next(ailp, &cur))
  2833. ASSERT(lip->li_type != XFS_LI_EFI);
  2834. #endif
  2835. break;
  2836. }
  2837. /*
  2838. * Skip EFIs that we've already processed.
  2839. */
  2840. efip = (xfs_efi_log_item_t *)lip;
  2841. if (efip->efi_flags & XFS_EFI_RECOVERED) {
  2842. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  2843. continue;
  2844. }
  2845. spin_unlock(&ailp->xa_lock);
  2846. error = xlog_recover_process_efi(log->l_mp, efip);
  2847. spin_lock(&ailp->xa_lock);
  2848. if (error)
  2849. goto out;
  2850. lip = xfs_trans_ail_cursor_next(ailp, &cur);
  2851. }
  2852. out:
  2853. xfs_trans_ail_cursor_done(ailp, &cur);
  2854. spin_unlock(&ailp->xa_lock);
  2855. return error;
  2856. }
  2857. /*
  2858. * This routine performs a transaction to null out a bad inode pointer
  2859. * in an agi unlinked inode hash bucket.
  2860. */
  2861. STATIC void
  2862. xlog_recover_clear_agi_bucket(
  2863. xfs_mount_t *mp,
  2864. xfs_agnumber_t agno,
  2865. int bucket)
  2866. {
  2867. xfs_trans_t *tp;
  2868. xfs_agi_t *agi;
  2869. xfs_buf_t *agibp;
  2870. int offset;
  2871. int error;
  2872. tp = xfs_trans_alloc(mp, XFS_TRANS_CLEAR_AGI_BUCKET);
  2873. error = xfs_trans_reserve(tp, 0, XFS_CLEAR_AGI_BUCKET_LOG_RES(mp),
  2874. 0, 0, 0);
  2875. if (error)
  2876. goto out_abort;
  2877. error = xfs_read_agi(mp, tp, agno, &agibp);
  2878. if (error)
  2879. goto out_abort;
  2880. agi = XFS_BUF_TO_AGI(agibp);
  2881. agi->agi_unlinked[bucket] = cpu_to_be32(NULLAGINO);
  2882. offset = offsetof(xfs_agi_t, agi_unlinked) +
  2883. (sizeof(xfs_agino_t) * bucket);
  2884. xfs_trans_log_buf(tp, agibp, offset,
  2885. (offset + sizeof(xfs_agino_t) - 1));
  2886. error = xfs_trans_commit(tp, 0);
  2887. if (error)
  2888. goto out_error;
  2889. return;
  2890. out_abort:
  2891. xfs_trans_cancel(tp, XFS_TRANS_ABORT);
  2892. out_error:
  2893. xfs_fs_cmn_err(CE_WARN, mp, "xlog_recover_clear_agi_bucket: "
  2894. "failed to clear agi %d. Continuing.", agno);
  2895. return;
  2896. }
  2897. STATIC xfs_agino_t
  2898. xlog_recover_process_one_iunlink(
  2899. struct xfs_mount *mp,
  2900. xfs_agnumber_t agno,
  2901. xfs_agino_t agino,
  2902. int bucket)
  2903. {
  2904. struct xfs_buf *ibp;
  2905. struct xfs_dinode *dip;
  2906. struct xfs_inode *ip;
  2907. xfs_ino_t ino;
  2908. int error;
  2909. ino = XFS_AGINO_TO_INO(mp, agno, agino);
  2910. error = xfs_iget(mp, NULL, ino, 0, 0, &ip);
  2911. if (error)
  2912. goto fail;
  2913. /*
  2914. * Get the on disk inode to find the next inode in the bucket.
  2915. */
  2916. error = xfs_itobp(mp, NULL, ip, &dip, &ibp, XBF_LOCK);
  2917. if (error)
  2918. goto fail_iput;
  2919. ASSERT(ip->i_d.di_nlink == 0);
  2920. ASSERT(ip->i_d.di_mode != 0);
  2921. /* setup for the next pass */
  2922. agino = be32_to_cpu(dip->di_next_unlinked);
  2923. xfs_buf_relse(ibp);
  2924. /*
  2925. * Prevent any DMAPI event from being sent when the reference on
  2926. * the inode is dropped.
  2927. */
  2928. ip->i_d.di_dmevmask = 0;
  2929. IRELE(ip);
  2930. return agino;
  2931. fail_iput:
  2932. IRELE(ip);
  2933. fail:
  2934. /*
  2935. * We can't read in the inode this bucket points to, or this inode
  2936. * is messed up. Just ditch this bucket of inodes. We will lose
  2937. * some inodes and space, but at least we won't hang.
  2938. *
  2939. * Call xlog_recover_clear_agi_bucket() to perform a transaction to
  2940. * clear the inode pointer in the bucket.
  2941. */
  2942. xlog_recover_clear_agi_bucket(mp, agno, bucket);
  2943. return NULLAGINO;
  2944. }
  2945. /*
  2946. * xlog_iunlink_recover
  2947. *
  2948. * This is called during recovery to process any inodes which
  2949. * we unlinked but not freed when the system crashed. These
  2950. * inodes will be on the lists in the AGI blocks. What we do
  2951. * here is scan all the AGIs and fully truncate and free any
  2952. * inodes found on the lists. Each inode is removed from the
  2953. * lists when it has been fully truncated and is freed. The
  2954. * freeing of the inode and its removal from the list must be
  2955. * atomic.
  2956. */
  2957. STATIC void
  2958. xlog_recover_process_iunlinks(
  2959. xlog_t *log)
  2960. {
  2961. xfs_mount_t *mp;
  2962. xfs_agnumber_t agno;
  2963. xfs_agi_t *agi;
  2964. xfs_buf_t *agibp;
  2965. xfs_agino_t agino;
  2966. int bucket;
  2967. int error;
  2968. uint mp_dmevmask;
  2969. mp = log->l_mp;
  2970. /*
  2971. * Prevent any DMAPI event from being sent while in this function.
  2972. */
  2973. mp_dmevmask = mp->m_dmevmask;
  2974. mp->m_dmevmask = 0;
  2975. for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
  2976. /*
  2977. * Find the agi for this ag.
  2978. */
  2979. error = xfs_read_agi(mp, NULL, agno, &agibp);
  2980. if (error) {
  2981. /*
  2982. * AGI is b0rked. Don't process it.
  2983. *
  2984. * We should probably mark the filesystem as corrupt
  2985. * after we've recovered all the ag's we can....
  2986. */
  2987. continue;
  2988. }
  2989. agi = XFS_BUF_TO_AGI(agibp);
  2990. for (bucket = 0; bucket < XFS_AGI_UNLINKED_BUCKETS; bucket++) {
  2991. agino = be32_to_cpu(agi->agi_unlinked[bucket]);
  2992. while (agino != NULLAGINO) {
  2993. /*
  2994. * Release the agi buffer so that it can
  2995. * be acquired in the normal course of the
  2996. * transaction to truncate and free the inode.
  2997. */
  2998. xfs_buf_relse(agibp);
  2999. agino = xlog_recover_process_one_iunlink(mp,
  3000. agno, agino, bucket);
  3001. /*
  3002. * Reacquire the agibuffer and continue around
  3003. * the loop. This should never fail as we know
  3004. * the buffer was good earlier on.
  3005. */
  3006. error = xfs_read_agi(mp, NULL, agno, &agibp);
  3007. ASSERT(error == 0);
  3008. agi = XFS_BUF_TO_AGI(agibp);
  3009. }
  3010. }
  3011. /*
  3012. * Release the buffer for the current agi so we can
  3013. * go on to the next one.
  3014. */
  3015. xfs_buf_relse(agibp);
  3016. }
  3017. mp->m_dmevmask = mp_dmevmask;
  3018. }
  3019. #ifdef DEBUG
  3020. STATIC void
  3021. xlog_pack_data_checksum(
  3022. xlog_t *log,
  3023. xlog_in_core_t *iclog,
  3024. int size)
  3025. {
  3026. int i;
  3027. __be32 *up;
  3028. uint chksum = 0;
  3029. up = (__be32 *)iclog->ic_datap;
  3030. /* divide length by 4 to get # words */
  3031. for (i = 0; i < (size >> 2); i++) {
  3032. chksum ^= be32_to_cpu(*up);
  3033. up++;
  3034. }
  3035. iclog->ic_header.h_chksum = cpu_to_be32(chksum);
  3036. }
  3037. #else
  3038. #define xlog_pack_data_checksum(log, iclog, size)
  3039. #endif
  3040. /*
  3041. * Stamp cycle number in every block
  3042. */
  3043. void
  3044. xlog_pack_data(
  3045. xlog_t *log,
  3046. xlog_in_core_t *iclog,
  3047. int roundoff)
  3048. {
  3049. int i, j, k;
  3050. int size = iclog->ic_offset + roundoff;
  3051. __be32 cycle_lsn;
  3052. xfs_caddr_t dp;
  3053. xlog_pack_data_checksum(log, iclog, size);
  3054. cycle_lsn = CYCLE_LSN_DISK(iclog->ic_header.h_lsn);
  3055. dp = iclog->ic_datap;
  3056. for (i = 0; i < BTOBB(size) &&
  3057. i < (XLOG_HEADER_CYCLE_SIZE / BBSIZE); i++) {
  3058. iclog->ic_header.h_cycle_data[i] = *(__be32 *)dp;
  3059. *(__be32 *)dp = cycle_lsn;
  3060. dp += BBSIZE;
  3061. }
  3062. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  3063. xlog_in_core_2_t *xhdr = iclog->ic_data;
  3064. for ( ; i < BTOBB(size); i++) {
  3065. j = i / (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
  3066. k = i % (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
  3067. xhdr[j].hic_xheader.xh_cycle_data[k] = *(__be32 *)dp;
  3068. *(__be32 *)dp = cycle_lsn;
  3069. dp += BBSIZE;
  3070. }
  3071. for (i = 1; i < log->l_iclog_heads; i++) {
  3072. xhdr[i].hic_xheader.xh_cycle = cycle_lsn;
  3073. }
  3074. }
  3075. }
  3076. STATIC void
  3077. xlog_unpack_data(
  3078. xlog_rec_header_t *rhead,
  3079. xfs_caddr_t dp,
  3080. xlog_t *log)
  3081. {
  3082. int i, j, k;
  3083. for (i = 0; i < BTOBB(be32_to_cpu(rhead->h_len)) &&
  3084. i < (XLOG_HEADER_CYCLE_SIZE / BBSIZE); i++) {
  3085. *(__be32 *)dp = *(__be32 *)&rhead->h_cycle_data[i];
  3086. dp += BBSIZE;
  3087. }
  3088. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  3089. xlog_in_core_2_t *xhdr = (xlog_in_core_2_t *)rhead;
  3090. for ( ; i < BTOBB(be32_to_cpu(rhead->h_len)); i++) {
  3091. j = i / (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
  3092. k = i % (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
  3093. *(__be32 *)dp = xhdr[j].hic_xheader.xh_cycle_data[k];
  3094. dp += BBSIZE;
  3095. }
  3096. }
  3097. }
  3098. STATIC int
  3099. xlog_valid_rec_header(
  3100. xlog_t *log,
  3101. xlog_rec_header_t *rhead,
  3102. xfs_daddr_t blkno)
  3103. {
  3104. int hlen;
  3105. if (unlikely(be32_to_cpu(rhead->h_magicno) != XLOG_HEADER_MAGIC_NUM)) {
  3106. XFS_ERROR_REPORT("xlog_valid_rec_header(1)",
  3107. XFS_ERRLEVEL_LOW, log->l_mp);
  3108. return XFS_ERROR(EFSCORRUPTED);
  3109. }
  3110. if (unlikely(
  3111. (!rhead->h_version ||
  3112. (be32_to_cpu(rhead->h_version) & (~XLOG_VERSION_OKBITS))))) {
  3113. xlog_warn("XFS: %s: unrecognised log version (%d).",
  3114. __func__, be32_to_cpu(rhead->h_version));
  3115. return XFS_ERROR(EIO);
  3116. }
  3117. /* LR body must have data or it wouldn't have been written */
  3118. hlen = be32_to_cpu(rhead->h_len);
  3119. if (unlikely( hlen <= 0 || hlen > INT_MAX )) {
  3120. XFS_ERROR_REPORT("xlog_valid_rec_header(2)",
  3121. XFS_ERRLEVEL_LOW, log->l_mp);
  3122. return XFS_ERROR(EFSCORRUPTED);
  3123. }
  3124. if (unlikely( blkno > log->l_logBBsize || blkno > INT_MAX )) {
  3125. XFS_ERROR_REPORT("xlog_valid_rec_header(3)",
  3126. XFS_ERRLEVEL_LOW, log->l_mp);
  3127. return XFS_ERROR(EFSCORRUPTED);
  3128. }
  3129. return 0;
  3130. }
  3131. /*
  3132. * Read the log from tail to head and process the log records found.
  3133. * Handle the two cases where the tail and head are in the same cycle
  3134. * and where the active portion of the log wraps around the end of
  3135. * the physical log separately. The pass parameter is passed through
  3136. * to the routines called to process the data and is not looked at
  3137. * here.
  3138. */
  3139. STATIC int
  3140. xlog_do_recovery_pass(
  3141. xlog_t *log,
  3142. xfs_daddr_t head_blk,
  3143. xfs_daddr_t tail_blk,
  3144. int pass)
  3145. {
  3146. xlog_rec_header_t *rhead;
  3147. xfs_daddr_t blk_no;
  3148. xfs_caddr_t offset;
  3149. xfs_buf_t *hbp, *dbp;
  3150. int error = 0, h_size;
  3151. int bblks, split_bblks;
  3152. int hblks, split_hblks, wrapped_hblks;
  3153. struct hlist_head rhash[XLOG_RHASH_SIZE];
  3154. ASSERT(head_blk != tail_blk);
  3155. /*
  3156. * Read the header of the tail block and get the iclog buffer size from
  3157. * h_size. Use this to tell how many sectors make up the log header.
  3158. */
  3159. if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
  3160. /*
  3161. * When using variable length iclogs, read first sector of
  3162. * iclog header and extract the header size from it. Get a
  3163. * new hbp that is the correct size.
  3164. */
  3165. hbp = xlog_get_bp(log, 1);
  3166. if (!hbp)
  3167. return ENOMEM;
  3168. error = xlog_bread(log, tail_blk, 1, hbp, &offset);
  3169. if (error)
  3170. goto bread_err1;
  3171. rhead = (xlog_rec_header_t *)offset;
  3172. error = xlog_valid_rec_header(log, rhead, tail_blk);
  3173. if (error)
  3174. goto bread_err1;
  3175. h_size = be32_to_cpu(rhead->h_size);
  3176. if ((be32_to_cpu(rhead->h_version) & XLOG_VERSION_2) &&
  3177. (h_size > XLOG_HEADER_CYCLE_SIZE)) {
  3178. hblks = h_size / XLOG_HEADER_CYCLE_SIZE;
  3179. if (h_size % XLOG_HEADER_CYCLE_SIZE)
  3180. hblks++;
  3181. xlog_put_bp(hbp);
  3182. hbp = xlog_get_bp(log, hblks);
  3183. } else {
  3184. hblks = 1;
  3185. }
  3186. } else {
  3187. ASSERT(log->l_sectBBsize == 1);
  3188. hblks = 1;
  3189. hbp = xlog_get_bp(log, 1);
  3190. h_size = XLOG_BIG_RECORD_BSIZE;
  3191. }
  3192. if (!hbp)
  3193. return ENOMEM;
  3194. dbp = xlog_get_bp(log, BTOBB(h_size));
  3195. if (!dbp) {
  3196. xlog_put_bp(hbp);
  3197. return ENOMEM;
  3198. }
  3199. memset(rhash, 0, sizeof(rhash));
  3200. if (tail_blk <= head_blk) {
  3201. for (blk_no = tail_blk; blk_no < head_blk; ) {
  3202. error = xlog_bread(log, blk_no, hblks, hbp, &offset);
  3203. if (error)
  3204. goto bread_err2;
  3205. rhead = (xlog_rec_header_t *)offset;
  3206. error = xlog_valid_rec_header(log, rhead, blk_no);
  3207. if (error)
  3208. goto bread_err2;
  3209. /* blocks in data section */
  3210. bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
  3211. error = xlog_bread(log, blk_no + hblks, bblks, dbp,
  3212. &offset);
  3213. if (error)
  3214. goto bread_err2;
  3215. xlog_unpack_data(rhead, offset, log);
  3216. if ((error = xlog_recover_process_data(log,
  3217. rhash, rhead, offset, pass)))
  3218. goto bread_err2;
  3219. blk_no += bblks + hblks;
  3220. }
  3221. } else {
  3222. /*
  3223. * Perform recovery around the end of the physical log.
  3224. * When the head is not on the same cycle number as the tail,
  3225. * we can't do a sequential recovery as above.
  3226. */
  3227. blk_no = tail_blk;
  3228. while (blk_no < log->l_logBBsize) {
  3229. /*
  3230. * Check for header wrapping around physical end-of-log
  3231. */
  3232. offset = XFS_BUF_PTR(hbp);
  3233. split_hblks = 0;
  3234. wrapped_hblks = 0;
  3235. if (blk_no + hblks <= log->l_logBBsize) {
  3236. /* Read header in one read */
  3237. error = xlog_bread(log, blk_no, hblks, hbp,
  3238. &offset);
  3239. if (error)
  3240. goto bread_err2;
  3241. } else {
  3242. /* This LR is split across physical log end */
  3243. if (blk_no != log->l_logBBsize) {
  3244. /* some data before physical log end */
  3245. ASSERT(blk_no <= INT_MAX);
  3246. split_hblks = log->l_logBBsize - (int)blk_no;
  3247. ASSERT(split_hblks > 0);
  3248. error = xlog_bread(log, blk_no,
  3249. split_hblks, hbp,
  3250. &offset);
  3251. if (error)
  3252. goto bread_err2;
  3253. }
  3254. /*
  3255. * Note: this black magic still works with
  3256. * large sector sizes (non-512) only because:
  3257. * - we increased the buffer size originally
  3258. * by 1 sector giving us enough extra space
  3259. * for the second read;
  3260. * - the log start is guaranteed to be sector
  3261. * aligned;
  3262. * - we read the log end (LR header start)
  3263. * _first_, then the log start (LR header end)
  3264. * - order is important.
  3265. */
  3266. wrapped_hblks = hblks - split_hblks;
  3267. error = XFS_BUF_SET_PTR(hbp,
  3268. offset + BBTOB(split_hblks),
  3269. BBTOB(hblks - split_hblks));
  3270. if (error)
  3271. goto bread_err2;
  3272. error = xlog_bread_noalign(log, 0,
  3273. wrapped_hblks, hbp);
  3274. if (error)
  3275. goto bread_err2;
  3276. error = XFS_BUF_SET_PTR(hbp, offset,
  3277. BBTOB(hblks));
  3278. if (error)
  3279. goto bread_err2;
  3280. }
  3281. rhead = (xlog_rec_header_t *)offset;
  3282. error = xlog_valid_rec_header(log, rhead,
  3283. split_hblks ? blk_no : 0);
  3284. if (error)
  3285. goto bread_err2;
  3286. bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
  3287. blk_no += hblks;
  3288. /* Read in data for log record */
  3289. if (blk_no + bblks <= log->l_logBBsize) {
  3290. error = xlog_bread(log, blk_no, bblks, dbp,
  3291. &offset);
  3292. if (error)
  3293. goto bread_err2;
  3294. } else {
  3295. /* This log record is split across the
  3296. * physical end of log */
  3297. offset = XFS_BUF_PTR(dbp);
  3298. split_bblks = 0;
  3299. if (blk_no != log->l_logBBsize) {
  3300. /* some data is before the physical
  3301. * end of log */
  3302. ASSERT(!wrapped_hblks);
  3303. ASSERT(blk_no <= INT_MAX);
  3304. split_bblks =
  3305. log->l_logBBsize - (int)blk_no;
  3306. ASSERT(split_bblks > 0);
  3307. error = xlog_bread(log, blk_no,
  3308. split_bblks, dbp,
  3309. &offset);
  3310. if (error)
  3311. goto bread_err2;
  3312. }
  3313. /*
  3314. * Note: this black magic still works with
  3315. * large sector sizes (non-512) only because:
  3316. * - we increased the buffer size originally
  3317. * by 1 sector giving us enough extra space
  3318. * for the second read;
  3319. * - the log start is guaranteed to be sector
  3320. * aligned;
  3321. * - we read the log end (LR header start)
  3322. * _first_, then the log start (LR header end)
  3323. * - order is important.
  3324. */
  3325. error = XFS_BUF_SET_PTR(dbp,
  3326. offset + BBTOB(split_bblks),
  3327. BBTOB(bblks - split_bblks));
  3328. if (error)
  3329. goto bread_err2;
  3330. error = xlog_bread_noalign(log, wrapped_hblks,
  3331. bblks - split_bblks,
  3332. dbp);
  3333. if (error)
  3334. goto bread_err2;
  3335. error = XFS_BUF_SET_PTR(dbp, offset, h_size);
  3336. if (error)
  3337. goto bread_err2;
  3338. }
  3339. xlog_unpack_data(rhead, offset, log);
  3340. if ((error = xlog_recover_process_data(log, rhash,
  3341. rhead, offset, pass)))
  3342. goto bread_err2;
  3343. blk_no += bblks;
  3344. }
  3345. ASSERT(blk_no >= log->l_logBBsize);
  3346. blk_no -= log->l_logBBsize;
  3347. /* read first part of physical log */
  3348. while (blk_no < head_blk) {
  3349. error = xlog_bread(log, blk_no, hblks, hbp, &offset);
  3350. if (error)
  3351. goto bread_err2;
  3352. rhead = (xlog_rec_header_t *)offset;
  3353. error = xlog_valid_rec_header(log, rhead, blk_no);
  3354. if (error)
  3355. goto bread_err2;
  3356. bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
  3357. error = xlog_bread(log, blk_no+hblks, bblks, dbp,
  3358. &offset);
  3359. if (error)
  3360. goto bread_err2;
  3361. xlog_unpack_data(rhead, offset, log);
  3362. if ((error = xlog_recover_process_data(log, rhash,
  3363. rhead, offset, pass)))
  3364. goto bread_err2;
  3365. blk_no += bblks + hblks;
  3366. }
  3367. }
  3368. bread_err2:
  3369. xlog_put_bp(dbp);
  3370. bread_err1:
  3371. xlog_put_bp(hbp);
  3372. return error;
  3373. }
  3374. /*
  3375. * Do the recovery of the log. We actually do this in two phases.
  3376. * The two passes are necessary in order to implement the function
  3377. * of cancelling a record written into the log. The first pass
  3378. * determines those things which have been cancelled, and the
  3379. * second pass replays log items normally except for those which
  3380. * have been cancelled. The handling of the replay and cancellations
  3381. * takes place in the log item type specific routines.
  3382. *
  3383. * The table of items which have cancel records in the log is allocated
  3384. * and freed at this level, since only here do we know when all of
  3385. * the log recovery has been completed.
  3386. */
  3387. STATIC int
  3388. xlog_do_log_recovery(
  3389. xlog_t *log,
  3390. xfs_daddr_t head_blk,
  3391. xfs_daddr_t tail_blk)
  3392. {
  3393. int error;
  3394. ASSERT(head_blk != tail_blk);
  3395. /*
  3396. * First do a pass to find all of the cancelled buf log items.
  3397. * Store them in the buf_cancel_table for use in the second pass.
  3398. */
  3399. log->l_buf_cancel_table =
  3400. (xfs_buf_cancel_t **)kmem_zalloc(XLOG_BC_TABLE_SIZE *
  3401. sizeof(xfs_buf_cancel_t*),
  3402. KM_SLEEP);
  3403. error = xlog_do_recovery_pass(log, head_blk, tail_blk,
  3404. XLOG_RECOVER_PASS1);
  3405. if (error != 0) {
  3406. kmem_free(log->l_buf_cancel_table);
  3407. log->l_buf_cancel_table = NULL;
  3408. return error;
  3409. }
  3410. /*
  3411. * Then do a second pass to actually recover the items in the log.
  3412. * When it is complete free the table of buf cancel items.
  3413. */
  3414. error = xlog_do_recovery_pass(log, head_blk, tail_blk,
  3415. XLOG_RECOVER_PASS2);
  3416. #ifdef DEBUG
  3417. if (!error) {
  3418. int i;
  3419. for (i = 0; i < XLOG_BC_TABLE_SIZE; i++)
  3420. ASSERT(log->l_buf_cancel_table[i] == NULL);
  3421. }
  3422. #endif /* DEBUG */
  3423. kmem_free(log->l_buf_cancel_table);
  3424. log->l_buf_cancel_table = NULL;
  3425. return error;
  3426. }
  3427. /*
  3428. * Do the actual recovery
  3429. */
  3430. STATIC int
  3431. xlog_do_recover(
  3432. xlog_t *log,
  3433. xfs_daddr_t head_blk,
  3434. xfs_daddr_t tail_blk)
  3435. {
  3436. int error;
  3437. xfs_buf_t *bp;
  3438. xfs_sb_t *sbp;
  3439. /*
  3440. * First replay the images in the log.
  3441. */
  3442. error = xlog_do_log_recovery(log, head_blk, tail_blk);
  3443. if (error) {
  3444. return error;
  3445. }
  3446. XFS_bflush(log->l_mp->m_ddev_targp);
  3447. /*
  3448. * If IO errors happened during recovery, bail out.
  3449. */
  3450. if (XFS_FORCED_SHUTDOWN(log->l_mp)) {
  3451. return (EIO);
  3452. }
  3453. /*
  3454. * We now update the tail_lsn since much of the recovery has completed
  3455. * and there may be space available to use. If there were no extent
  3456. * or iunlinks, we can free up the entire log and set the tail_lsn to
  3457. * be the last_sync_lsn. This was set in xlog_find_tail to be the
  3458. * lsn of the last known good LR on disk. If there are extent frees
  3459. * or iunlinks they will have some entries in the AIL; so we look at
  3460. * the AIL to determine how to set the tail_lsn.
  3461. */
  3462. xlog_assign_tail_lsn(log->l_mp);
  3463. /*
  3464. * Now that we've finished replaying all buffer and inode
  3465. * updates, re-read in the superblock.
  3466. */
  3467. bp = xfs_getsb(log->l_mp, 0);
  3468. XFS_BUF_UNDONE(bp);
  3469. ASSERT(!(XFS_BUF_ISWRITE(bp)));
  3470. ASSERT(!(XFS_BUF_ISDELAYWRITE(bp)));
  3471. XFS_BUF_READ(bp);
  3472. XFS_BUF_UNASYNC(bp);
  3473. xfsbdstrat(log->l_mp, bp);
  3474. error = xfs_buf_iowait(bp);
  3475. if (error) {
  3476. xfs_ioerror_alert("xlog_do_recover",
  3477. log->l_mp, bp, XFS_BUF_ADDR(bp));
  3478. ASSERT(0);
  3479. xfs_buf_relse(bp);
  3480. return error;
  3481. }
  3482. /* Convert superblock from on-disk format */
  3483. sbp = &log->l_mp->m_sb;
  3484. xfs_sb_from_disk(sbp, XFS_BUF_TO_SBP(bp));
  3485. ASSERT(sbp->sb_magicnum == XFS_SB_MAGIC);
  3486. ASSERT(xfs_sb_good_version(sbp));
  3487. xfs_buf_relse(bp);
  3488. /* We've re-read the superblock so re-initialize per-cpu counters */
  3489. xfs_icsb_reinit_counters(log->l_mp);
  3490. xlog_recover_check_summary(log);
  3491. /* Normal transactions can now occur */
  3492. log->l_flags &= ~XLOG_ACTIVE_RECOVERY;
  3493. return 0;
  3494. }
  3495. /*
  3496. * Perform recovery and re-initialize some log variables in xlog_find_tail.
  3497. *
  3498. * Return error or zero.
  3499. */
  3500. int
  3501. xlog_recover(
  3502. xlog_t *log)
  3503. {
  3504. xfs_daddr_t head_blk, tail_blk;
  3505. int error;
  3506. /* find the tail of the log */
  3507. if ((error = xlog_find_tail(log, &head_blk, &tail_blk)))
  3508. return error;
  3509. if (tail_blk != head_blk) {
  3510. /* There used to be a comment here:
  3511. *
  3512. * disallow recovery on read-only mounts. note -- mount
  3513. * checks for ENOSPC and turns it into an intelligent
  3514. * error message.
  3515. * ...but this is no longer true. Now, unless you specify
  3516. * NORECOVERY (in which case this function would never be
  3517. * called), we just go ahead and recover. We do this all
  3518. * under the vfs layer, so we can get away with it unless
  3519. * the device itself is read-only, in which case we fail.
  3520. */
  3521. if ((error = xfs_dev_is_read_only(log->l_mp, "recovery"))) {
  3522. return error;
  3523. }
  3524. cmn_err(CE_NOTE,
  3525. "Starting XFS recovery on filesystem: %s (logdev: %s)",
  3526. log->l_mp->m_fsname, log->l_mp->m_logname ?
  3527. log->l_mp->m_logname : "internal");
  3528. error = xlog_do_recover(log, head_blk, tail_blk);
  3529. log->l_flags |= XLOG_RECOVERY_NEEDED;
  3530. }
  3531. return error;
  3532. }
  3533. /*
  3534. * In the first part of recovery we replay inodes and buffers and build
  3535. * up the list of extent free items which need to be processed. Here
  3536. * we process the extent free items and clean up the on disk unlinked
  3537. * inode lists. This is separated from the first part of recovery so
  3538. * that the root and real-time bitmap inodes can be read in from disk in
  3539. * between the two stages. This is necessary so that we can free space
  3540. * in the real-time portion of the file system.
  3541. */
  3542. int
  3543. xlog_recover_finish(
  3544. xlog_t *log)
  3545. {
  3546. /*
  3547. * Now we're ready to do the transactions needed for the
  3548. * rest of recovery. Start with completing all the extent
  3549. * free intent records and then process the unlinked inode
  3550. * lists. At this point, we essentially run in normal mode
  3551. * except that we're still performing recovery actions
  3552. * rather than accepting new requests.
  3553. */
  3554. if (log->l_flags & XLOG_RECOVERY_NEEDED) {
  3555. int error;
  3556. error = xlog_recover_process_efis(log);
  3557. if (error) {
  3558. cmn_err(CE_ALERT,
  3559. "Failed to recover EFIs on filesystem: %s",
  3560. log->l_mp->m_fsname);
  3561. return error;
  3562. }
  3563. /*
  3564. * Sync the log to get all the EFIs out of the AIL.
  3565. * This isn't absolutely necessary, but it helps in
  3566. * case the unlink transactions would have problems
  3567. * pushing the EFIs out of the way.
  3568. */
  3569. xfs_log_force(log->l_mp, XFS_LOG_SYNC);
  3570. xlog_recover_process_iunlinks(log);
  3571. xlog_recover_check_summary(log);
  3572. cmn_err(CE_NOTE,
  3573. "Ending XFS recovery on filesystem: %s (logdev: %s)",
  3574. log->l_mp->m_fsname, log->l_mp->m_logname ?
  3575. log->l_mp->m_logname : "internal");
  3576. log->l_flags &= ~XLOG_RECOVERY_NEEDED;
  3577. } else {
  3578. cmn_err(CE_DEBUG,
  3579. "!Ending clean XFS mount for filesystem: %s\n",
  3580. log->l_mp->m_fsname);
  3581. }
  3582. return 0;
  3583. }
  3584. #if defined(DEBUG)
  3585. /*
  3586. * Read all of the agf and agi counters and check that they
  3587. * are consistent with the superblock counters.
  3588. */
  3589. void
  3590. xlog_recover_check_summary(
  3591. xlog_t *log)
  3592. {
  3593. xfs_mount_t *mp;
  3594. xfs_agf_t *agfp;
  3595. xfs_buf_t *agfbp;
  3596. xfs_buf_t *agibp;
  3597. xfs_agnumber_t agno;
  3598. __uint64_t freeblks;
  3599. __uint64_t itotal;
  3600. __uint64_t ifree;
  3601. int error;
  3602. mp = log->l_mp;
  3603. freeblks = 0LL;
  3604. itotal = 0LL;
  3605. ifree = 0LL;
  3606. for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
  3607. error = xfs_read_agf(mp, NULL, agno, 0, &agfbp);
  3608. if (error) {
  3609. xfs_fs_cmn_err(CE_ALERT, mp,
  3610. "xlog_recover_check_summary(agf)"
  3611. "agf read failed agno %d error %d",
  3612. agno, error);
  3613. } else {
  3614. agfp = XFS_BUF_TO_AGF(agfbp);
  3615. freeblks += be32_to_cpu(agfp->agf_freeblks) +
  3616. be32_to_cpu(agfp->agf_flcount);
  3617. xfs_buf_relse(agfbp);
  3618. }
  3619. error = xfs_read_agi(mp, NULL, agno, &agibp);
  3620. if (!error) {
  3621. struct xfs_agi *agi = XFS_BUF_TO_AGI(agibp);
  3622. itotal += be32_to_cpu(agi->agi_count);
  3623. ifree += be32_to_cpu(agi->agi_freecount);
  3624. xfs_buf_relse(agibp);
  3625. }
  3626. }
  3627. }
  3628. #endif /* DEBUG */