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xfs: fix dir3 freespace block corruption
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1da177e4 1/*
87c199c2 2 * Copyright (c) 2000-2006 Silicon Graphics, Inc.
7b718769 3 * All Rights Reserved.
1da177e4 4 *
7b718769
NS
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
1da177e4
LT
7 * published by the Free Software Foundation.
8 *
7b718769
NS
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.
1da177e4 13 *
7b718769
NS
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
1da177e4 17 */
1da177e4 18#include "xfs.h"
a844f451 19#include "xfs_fs.h"
1da177e4 20#include "xfs_types.h"
a844f451 21#include "xfs_bit.h"
1da177e4 22#include "xfs_log.h"
a844f451 23#include "xfs_inum.h"
1da177e4 24#include "xfs_trans.h"
a844f451
NS
25#include "xfs_sb.h"
26#include "xfs_ag.h"
1da177e4
LT
27#include "xfs_mount.h"
28#include "xfs_error.h"
29#include "xfs_bmap_btree.h"
a844f451
NS
30#include "xfs_alloc_btree.h"
31#include "xfs_ialloc_btree.h"
ee1a47ab 32#include "xfs_btree.h"
1da177e4 33#include "xfs_dinode.h"
1da177e4 34#include "xfs_inode.h"
a844f451 35#include "xfs_inode_item.h"
a844f451 36#include "xfs_alloc.h"
1da177e4
LT
37#include "xfs_ialloc.h"
38#include "xfs_log_priv.h"
39#include "xfs_buf_item.h"
1da177e4
LT
40#include "xfs_log_recover.h"
41#include "xfs_extfree_item.h"
42#include "xfs_trans_priv.h"
1da177e4 43#include "xfs_quota.h"
43355099 44#include "xfs_utils.h"
0e446be4 45#include "xfs_cksum.h"
0b1b213f 46#include "xfs_trace.h"
33479e05 47#include "xfs_icache.h"
d75afeb3
DC
48
49/* Need all the magic numbers and buffer ops structures from these headers */
f948dd76 50#include "xfs_symlink.h"
d75afeb3
DC
51#include "xfs_da_btree.h"
52#include "xfs_dir2_format.h"
53#include "xfs_dir2_priv.h"
54#include "xfs_attr_leaf.h"
55#include "xfs_attr_remote.h"
1da177e4 56
9a8d2fdb
MT
57STATIC int
58xlog_find_zeroed(
59 struct xlog *,
60 xfs_daddr_t *);
61STATIC int
62xlog_clear_stale_blocks(
63 struct xlog *,
64 xfs_lsn_t);
1da177e4 65#if defined(DEBUG)
9a8d2fdb
MT
66STATIC void
67xlog_recover_check_summary(
68 struct xlog *);
1da177e4
LT
69#else
70#define xlog_recover_check_summary(log)
1da177e4
LT
71#endif
72
d5689eaa
CH
73/*
74 * This structure is used during recovery to record the buf log items which
75 * have been canceled and should not be replayed.
76 */
77struct xfs_buf_cancel {
78 xfs_daddr_t bc_blkno;
79 uint bc_len;
80 int bc_refcount;
81 struct list_head bc_list;
82};
83
1da177e4
LT
84/*
85 * Sector aligned buffer routines for buffer create/read/write/access
86 */
87
ff30a622
AE
88/*
89 * Verify the given count of basic blocks is valid number of blocks
90 * to specify for an operation involving the given XFS log buffer.
91 * Returns nonzero if the count is valid, 0 otherwise.
92 */
93
94static inline int
95xlog_buf_bbcount_valid(
9a8d2fdb 96 struct xlog *log,
ff30a622
AE
97 int bbcount)
98{
99 return bbcount > 0 && bbcount <= log->l_logBBsize;
100}
101
36adecff
AE
102/*
103 * Allocate a buffer to hold log data. The buffer needs to be able
104 * to map to a range of nbblks basic blocks at any valid (basic
105 * block) offset within the log.
106 */
5d77c0dc 107STATIC xfs_buf_t *
1da177e4 108xlog_get_bp(
9a8d2fdb 109 struct xlog *log,
3228149c 110 int nbblks)
1da177e4 111{
c8da0faf
CH
112 struct xfs_buf *bp;
113
ff30a622 114 if (!xlog_buf_bbcount_valid(log, nbblks)) {
a0fa2b67 115 xfs_warn(log->l_mp, "Invalid block length (0x%x) for buffer",
ff30a622
AE
116 nbblks);
117 XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
3228149c
DC
118 return NULL;
119 }
1da177e4 120
36adecff
AE
121 /*
122 * We do log I/O in units of log sectors (a power-of-2
123 * multiple of the basic block size), so we round up the
25985edc 124 * requested size to accommodate the basic blocks required
36adecff
AE
125 * for complete log sectors.
126 *
127 * In addition, the buffer may be used for a non-sector-
128 * aligned block offset, in which case an I/O of the
129 * requested size could extend beyond the end of the
130 * buffer. If the requested size is only 1 basic block it
131 * will never straddle a sector boundary, so this won't be
132 * an issue. Nor will this be a problem if the log I/O is
133 * done in basic blocks (sector size 1). But otherwise we
134 * extend the buffer by one extra log sector to ensure
25985edc 135 * there's space to accommodate this possibility.
36adecff 136 */
69ce58f0
AE
137 if (nbblks > 1 && log->l_sectBBsize > 1)
138 nbblks += log->l_sectBBsize;
139 nbblks = round_up(nbblks, log->l_sectBBsize);
36adecff 140
e70b73f8 141 bp = xfs_buf_get_uncached(log->l_mp->m_logdev_targp, nbblks, 0);
c8da0faf
CH
142 if (bp)
143 xfs_buf_unlock(bp);
144 return bp;
1da177e4
LT
145}
146
5d77c0dc 147STATIC void
1da177e4
LT
148xlog_put_bp(
149 xfs_buf_t *bp)
150{
151 xfs_buf_free(bp);
152}
153
48389ef1
AE
154/*
155 * Return the address of the start of the given block number's data
156 * in a log buffer. The buffer covers a log sector-aligned region.
157 */
076e6acb
CH
158STATIC xfs_caddr_t
159xlog_align(
9a8d2fdb 160 struct xlog *log,
076e6acb
CH
161 xfs_daddr_t blk_no,
162 int nbblks,
9a8d2fdb 163 struct xfs_buf *bp)
076e6acb 164{
fdc07f44 165 xfs_daddr_t offset = blk_no & ((xfs_daddr_t)log->l_sectBBsize - 1);
076e6acb 166
4e94b71b 167 ASSERT(offset + nbblks <= bp->b_length);
62926044 168 return bp->b_addr + BBTOB(offset);
076e6acb
CH
169}
170
1da177e4
LT
171
172/*
173 * nbblks should be uint, but oh well. Just want to catch that 32-bit length.
174 */
076e6acb
CH
175STATIC int
176xlog_bread_noalign(
9a8d2fdb 177 struct xlog *log,
1da177e4
LT
178 xfs_daddr_t blk_no,
179 int nbblks,
9a8d2fdb 180 struct xfs_buf *bp)
1da177e4
LT
181{
182 int error;
183
ff30a622 184 if (!xlog_buf_bbcount_valid(log, nbblks)) {
a0fa2b67 185 xfs_warn(log->l_mp, "Invalid block length (0x%x) for buffer",
ff30a622
AE
186 nbblks);
187 XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
3228149c
DC
188 return EFSCORRUPTED;
189 }
190
69ce58f0
AE
191 blk_no = round_down(blk_no, log->l_sectBBsize);
192 nbblks = round_up(nbblks, log->l_sectBBsize);
1da177e4
LT
193
194 ASSERT(nbblks > 0);
4e94b71b 195 ASSERT(nbblks <= bp->b_length);
1da177e4
LT
196
197 XFS_BUF_SET_ADDR(bp, log->l_logBBstart + blk_no);
198 XFS_BUF_READ(bp);
aa0e8833 199 bp->b_io_length = nbblks;
0e95f19a 200 bp->b_error = 0;
1da177e4
LT
201
202 xfsbdstrat(log->l_mp, bp);
1a1a3e97 203 error = xfs_buf_iowait(bp);
d64e31a2 204 if (error)
901796af 205 xfs_buf_ioerror_alert(bp, __func__);
1da177e4
LT
206 return error;
207}
208
076e6acb
CH
209STATIC int
210xlog_bread(
9a8d2fdb 211 struct xlog *log,
076e6acb
CH
212 xfs_daddr_t blk_no,
213 int nbblks,
9a8d2fdb 214 struct xfs_buf *bp,
076e6acb
CH
215 xfs_caddr_t *offset)
216{
217 int error;
218
219 error = xlog_bread_noalign(log, blk_no, nbblks, bp);
220 if (error)
221 return error;
222
223 *offset = xlog_align(log, blk_no, nbblks, bp);
224 return 0;
225}
226
44396476
DC
227/*
228 * Read at an offset into the buffer. Returns with the buffer in it's original
229 * state regardless of the result of the read.
230 */
231STATIC int
232xlog_bread_offset(
9a8d2fdb 233 struct xlog *log,
44396476
DC
234 xfs_daddr_t blk_no, /* block to read from */
235 int nbblks, /* blocks to read */
9a8d2fdb 236 struct xfs_buf *bp,
44396476
DC
237 xfs_caddr_t offset)
238{
62926044 239 xfs_caddr_t orig_offset = bp->b_addr;
4e94b71b 240 int orig_len = BBTOB(bp->b_length);
44396476
DC
241 int error, error2;
242
02fe03d9 243 error = xfs_buf_associate_memory(bp, offset, BBTOB(nbblks));
44396476
DC
244 if (error)
245 return error;
246
247 error = xlog_bread_noalign(log, blk_no, nbblks, bp);
248
249 /* must reset buffer pointer even on error */
02fe03d9 250 error2 = xfs_buf_associate_memory(bp, orig_offset, orig_len);
44396476
DC
251 if (error)
252 return error;
253 return error2;
254}
255
1da177e4
LT
256/*
257 * Write out the buffer at the given block for the given number of blocks.
258 * The buffer is kept locked across the write and is returned locked.
259 * This can only be used for synchronous log writes.
260 */
ba0f32d4 261STATIC int
1da177e4 262xlog_bwrite(
9a8d2fdb 263 struct xlog *log,
1da177e4
LT
264 xfs_daddr_t blk_no,
265 int nbblks,
9a8d2fdb 266 struct xfs_buf *bp)
1da177e4
LT
267{
268 int error;
269
ff30a622 270 if (!xlog_buf_bbcount_valid(log, nbblks)) {
a0fa2b67 271 xfs_warn(log->l_mp, "Invalid block length (0x%x) for buffer",
ff30a622
AE
272 nbblks);
273 XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_HIGH, log->l_mp);
3228149c
DC
274 return EFSCORRUPTED;
275 }
276
69ce58f0
AE
277 blk_no = round_down(blk_no, log->l_sectBBsize);
278 nbblks = round_up(nbblks, log->l_sectBBsize);
1da177e4
LT
279
280 ASSERT(nbblks > 0);
4e94b71b 281 ASSERT(nbblks <= bp->b_length);
1da177e4
LT
282
283 XFS_BUF_SET_ADDR(bp, log->l_logBBstart + blk_no);
284 XFS_BUF_ZEROFLAGS(bp);
72790aa1 285 xfs_buf_hold(bp);
0c842ad4 286 xfs_buf_lock(bp);
aa0e8833 287 bp->b_io_length = nbblks;
0e95f19a 288 bp->b_error = 0;
1da177e4 289
c2b006c1 290 error = xfs_bwrite(bp);
901796af
CH
291 if (error)
292 xfs_buf_ioerror_alert(bp, __func__);
c2b006c1 293 xfs_buf_relse(bp);
1da177e4
LT
294 return error;
295}
296
1da177e4
LT
297#ifdef DEBUG
298/*
299 * dump debug superblock and log record information
300 */
301STATIC void
302xlog_header_check_dump(
303 xfs_mount_t *mp,
304 xlog_rec_header_t *head)
305{
a0fa2b67 306 xfs_debug(mp, "%s: SB : uuid = %pU, fmt = %d\n",
03daa57c 307 __func__, &mp->m_sb.sb_uuid, XLOG_FMT);
a0fa2b67 308 xfs_debug(mp, " log : uuid = %pU, fmt = %d\n",
03daa57c 309 &head->h_fs_uuid, be32_to_cpu(head->h_fmt));
1da177e4
LT
310}
311#else
312#define xlog_header_check_dump(mp, head)
313#endif
314
315/*
316 * check log record header for recovery
317 */
318STATIC int
319xlog_header_check_recover(
320 xfs_mount_t *mp,
321 xlog_rec_header_t *head)
322{
69ef921b 323 ASSERT(head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM));
1da177e4
LT
324
325 /*
326 * IRIX doesn't write the h_fmt field and leaves it zeroed
327 * (XLOG_FMT_UNKNOWN). This stops us from trying to recover
328 * a dirty log created in IRIX.
329 */
69ef921b 330 if (unlikely(head->h_fmt != cpu_to_be32(XLOG_FMT))) {
a0fa2b67
DC
331 xfs_warn(mp,
332 "dirty log written in incompatible format - can't recover");
1da177e4
LT
333 xlog_header_check_dump(mp, head);
334 XFS_ERROR_REPORT("xlog_header_check_recover(1)",
335 XFS_ERRLEVEL_HIGH, mp);
336 return XFS_ERROR(EFSCORRUPTED);
337 } else if (unlikely(!uuid_equal(&mp->m_sb.sb_uuid, &head->h_fs_uuid))) {
a0fa2b67
DC
338 xfs_warn(mp,
339 "dirty log entry has mismatched uuid - can't recover");
1da177e4
LT
340 xlog_header_check_dump(mp, head);
341 XFS_ERROR_REPORT("xlog_header_check_recover(2)",
342 XFS_ERRLEVEL_HIGH, mp);
343 return XFS_ERROR(EFSCORRUPTED);
344 }
345 return 0;
346}
347
348/*
349 * read the head block of the log and check the header
350 */
351STATIC int
352xlog_header_check_mount(
353 xfs_mount_t *mp,
354 xlog_rec_header_t *head)
355{
69ef921b 356 ASSERT(head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM));
1da177e4
LT
357
358 if (uuid_is_nil(&head->h_fs_uuid)) {
359 /*
360 * IRIX doesn't write the h_fs_uuid or h_fmt fields. If
361 * h_fs_uuid is nil, we assume this log was last mounted
362 * by IRIX and continue.
363 */
a0fa2b67 364 xfs_warn(mp, "nil uuid in log - IRIX style log");
1da177e4 365 } else if (unlikely(!uuid_equal(&mp->m_sb.sb_uuid, &head->h_fs_uuid))) {
a0fa2b67 366 xfs_warn(mp, "log has mismatched uuid - can't recover");
1da177e4
LT
367 xlog_header_check_dump(mp, head);
368 XFS_ERROR_REPORT("xlog_header_check_mount",
369 XFS_ERRLEVEL_HIGH, mp);
370 return XFS_ERROR(EFSCORRUPTED);
371 }
372 return 0;
373}
374
375STATIC void
376xlog_recover_iodone(
377 struct xfs_buf *bp)
378{
5a52c2a5 379 if (bp->b_error) {
1da177e4
LT
380 /*
381 * We're not going to bother about retrying
382 * this during recovery. One strike!
383 */
901796af 384 xfs_buf_ioerror_alert(bp, __func__);
ebad861b
DC
385 xfs_force_shutdown(bp->b_target->bt_mount,
386 SHUTDOWN_META_IO_ERROR);
1da177e4 387 }
cb669ca5 388 bp->b_iodone = NULL;
1a1a3e97 389 xfs_buf_ioend(bp, 0);
1da177e4
LT
390}
391
392/*
393 * This routine finds (to an approximation) the first block in the physical
394 * log which contains the given cycle. It uses a binary search algorithm.
395 * Note that the algorithm can not be perfect because the disk will not
396 * necessarily be perfect.
397 */
a8272ce0 398STATIC int
1da177e4 399xlog_find_cycle_start(
9a8d2fdb
MT
400 struct xlog *log,
401 struct xfs_buf *bp,
1da177e4
LT
402 xfs_daddr_t first_blk,
403 xfs_daddr_t *last_blk,
404 uint cycle)
405{
406 xfs_caddr_t offset;
407 xfs_daddr_t mid_blk;
e3bb2e30 408 xfs_daddr_t end_blk;
1da177e4
LT
409 uint mid_cycle;
410 int error;
411
e3bb2e30
AE
412 end_blk = *last_blk;
413 mid_blk = BLK_AVG(first_blk, end_blk);
414 while (mid_blk != first_blk && mid_blk != end_blk) {
076e6acb
CH
415 error = xlog_bread(log, mid_blk, 1, bp, &offset);
416 if (error)
1da177e4 417 return error;
03bea6fe 418 mid_cycle = xlog_get_cycle(offset);
e3bb2e30
AE
419 if (mid_cycle == cycle)
420 end_blk = mid_blk; /* last_half_cycle == mid_cycle */
421 else
422 first_blk = mid_blk; /* first_half_cycle == mid_cycle */
423 mid_blk = BLK_AVG(first_blk, end_blk);
1da177e4 424 }
e3bb2e30
AE
425 ASSERT((mid_blk == first_blk && mid_blk+1 == end_blk) ||
426 (mid_blk == end_blk && mid_blk-1 == first_blk));
427
428 *last_blk = end_blk;
1da177e4
LT
429
430 return 0;
431}
432
433/*
3f943d85
AE
434 * Check that a range of blocks does not contain stop_on_cycle_no.
435 * Fill in *new_blk with the block offset where such a block is
436 * found, or with -1 (an invalid block number) if there is no such
437 * block in the range. The scan needs to occur from front to back
438 * and the pointer into the region must be updated since a later
439 * routine will need to perform another test.
1da177e4
LT
440 */
441STATIC int
442xlog_find_verify_cycle(
9a8d2fdb 443 struct xlog *log,
1da177e4
LT
444 xfs_daddr_t start_blk,
445 int nbblks,
446 uint stop_on_cycle_no,
447 xfs_daddr_t *new_blk)
448{
449 xfs_daddr_t i, j;
450 uint cycle;
451 xfs_buf_t *bp;
452 xfs_daddr_t bufblks;
453 xfs_caddr_t buf = NULL;
454 int error = 0;
455
6881a229
AE
456 /*
457 * Greedily allocate a buffer big enough to handle the full
458 * range of basic blocks we'll be examining. If that fails,
459 * try a smaller size. We need to be able to read at least
460 * a log sector, or we're out of luck.
461 */
1da177e4 462 bufblks = 1 << ffs(nbblks);
81158e0c
DC
463 while (bufblks > log->l_logBBsize)
464 bufblks >>= 1;
1da177e4 465 while (!(bp = xlog_get_bp(log, bufblks))) {
1da177e4 466 bufblks >>= 1;
69ce58f0 467 if (bufblks < log->l_sectBBsize)
1da177e4
LT
468 return ENOMEM;
469 }
470
471 for (i = start_blk; i < start_blk + nbblks; i += bufblks) {
472 int bcount;
473
474 bcount = min(bufblks, (start_blk + nbblks - i));
475
076e6acb
CH
476 error = xlog_bread(log, i, bcount, bp, &buf);
477 if (error)
1da177e4
LT
478 goto out;
479
1da177e4 480 for (j = 0; j < bcount; j++) {
03bea6fe 481 cycle = xlog_get_cycle(buf);
1da177e4
LT
482 if (cycle == stop_on_cycle_no) {
483 *new_blk = i+j;
484 goto out;
485 }
486
487 buf += BBSIZE;
488 }
489 }
490
491 *new_blk = -1;
492
493out:
494 xlog_put_bp(bp);
495 return error;
496}
497
498/*
499 * Potentially backup over partial log record write.
500 *
501 * In the typical case, last_blk is the number of the block directly after
502 * a good log record. Therefore, we subtract one to get the block number
503 * of the last block in the given buffer. extra_bblks contains the number
504 * of blocks we would have read on a previous read. This happens when the
505 * last log record is split over the end of the physical log.
506 *
507 * extra_bblks is the number of blocks potentially verified on a previous
508 * call to this routine.
509 */
510STATIC int
511xlog_find_verify_log_record(
9a8d2fdb 512 struct xlog *log,
1da177e4
LT
513 xfs_daddr_t start_blk,
514 xfs_daddr_t *last_blk,
515 int extra_bblks)
516{
517 xfs_daddr_t i;
518 xfs_buf_t *bp;
519 xfs_caddr_t offset = NULL;
520 xlog_rec_header_t *head = NULL;
521 int error = 0;
522 int smallmem = 0;
523 int num_blks = *last_blk - start_blk;
524 int xhdrs;
525
526 ASSERT(start_blk != 0 || *last_blk != start_blk);
527
528 if (!(bp = xlog_get_bp(log, num_blks))) {
529 if (!(bp = xlog_get_bp(log, 1)))
530 return ENOMEM;
531 smallmem = 1;
532 } else {
076e6acb
CH
533 error = xlog_bread(log, start_blk, num_blks, bp, &offset);
534 if (error)
1da177e4 535 goto out;
1da177e4
LT
536 offset += ((num_blks - 1) << BBSHIFT);
537 }
538
539 for (i = (*last_blk) - 1; i >= 0; i--) {
540 if (i < start_blk) {
541 /* valid log record not found */
a0fa2b67
DC
542 xfs_warn(log->l_mp,
543 "Log inconsistent (didn't find previous header)");
1da177e4
LT
544 ASSERT(0);
545 error = XFS_ERROR(EIO);
546 goto out;
547 }
548
549 if (smallmem) {
076e6acb
CH
550 error = xlog_bread(log, i, 1, bp, &offset);
551 if (error)
1da177e4 552 goto out;
1da177e4
LT
553 }
554
555 head = (xlog_rec_header_t *)offset;
556
69ef921b 557 if (head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM))
1da177e4
LT
558 break;
559
560 if (!smallmem)
561 offset -= BBSIZE;
562 }
563
564 /*
565 * We hit the beginning of the physical log & still no header. Return
566 * to caller. If caller can handle a return of -1, then this routine
567 * will be called again for the end of the physical log.
568 */
569 if (i == -1) {
570 error = -1;
571 goto out;
572 }
573
574 /*
575 * We have the final block of the good log (the first block
576 * of the log record _before_ the head. So we check the uuid.
577 */
578 if ((error = xlog_header_check_mount(log->l_mp, head)))
579 goto out;
580
581 /*
582 * We may have found a log record header before we expected one.
583 * last_blk will be the 1st block # with a given cycle #. We may end
584 * up reading an entire log record. In this case, we don't want to
585 * reset last_blk. Only when last_blk points in the middle of a log
586 * record do we update last_blk.
587 */
62118709 588 if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
b53e675d 589 uint h_size = be32_to_cpu(head->h_size);
1da177e4
LT
590
591 xhdrs = h_size / XLOG_HEADER_CYCLE_SIZE;
592 if (h_size % XLOG_HEADER_CYCLE_SIZE)
593 xhdrs++;
594 } else {
595 xhdrs = 1;
596 }
597
b53e675d
CH
598 if (*last_blk - i + extra_bblks !=
599 BTOBB(be32_to_cpu(head->h_len)) + xhdrs)
1da177e4
LT
600 *last_blk = i;
601
602out:
603 xlog_put_bp(bp);
604 return error;
605}
606
607/*
608 * Head is defined to be the point of the log where the next log write
609 * write could go. This means that incomplete LR writes at the end are
610 * eliminated when calculating the head. We aren't guaranteed that previous
611 * LR have complete transactions. We only know that a cycle number of
612 * current cycle number -1 won't be present in the log if we start writing
613 * from our current block number.
614 *
615 * last_blk contains the block number of the first block with a given
616 * cycle number.
617 *
618 * Return: zero if normal, non-zero if error.
619 */
ba0f32d4 620STATIC int
1da177e4 621xlog_find_head(
9a8d2fdb 622 struct xlog *log,
1da177e4
LT
623 xfs_daddr_t *return_head_blk)
624{
625 xfs_buf_t *bp;
626 xfs_caddr_t offset;
627 xfs_daddr_t new_blk, first_blk, start_blk, last_blk, head_blk;
628 int num_scan_bblks;
629 uint first_half_cycle, last_half_cycle;
630 uint stop_on_cycle;
631 int error, log_bbnum = log->l_logBBsize;
632
633 /* Is the end of the log device zeroed? */
634 if ((error = xlog_find_zeroed(log, &first_blk)) == -1) {
635 *return_head_blk = first_blk;
636
637 /* Is the whole lot zeroed? */
638 if (!first_blk) {
639 /* Linux XFS shouldn't generate totally zeroed logs -
640 * mkfs etc write a dummy unmount record to a fresh
641 * log so we can store the uuid in there
642 */
a0fa2b67 643 xfs_warn(log->l_mp, "totally zeroed log");
1da177e4
LT
644 }
645
646 return 0;
647 } else if (error) {
a0fa2b67 648 xfs_warn(log->l_mp, "empty log check failed");
1da177e4
LT
649 return error;
650 }
651
652 first_blk = 0; /* get cycle # of 1st block */
653 bp = xlog_get_bp(log, 1);
654 if (!bp)
655 return ENOMEM;
076e6acb
CH
656
657 error = xlog_bread(log, 0, 1, bp, &offset);
658 if (error)
1da177e4 659 goto bp_err;
076e6acb 660
03bea6fe 661 first_half_cycle = xlog_get_cycle(offset);
1da177e4
LT
662
663 last_blk = head_blk = log_bbnum - 1; /* get cycle # of last block */
076e6acb
CH
664 error = xlog_bread(log, last_blk, 1, bp, &offset);
665 if (error)
1da177e4 666 goto bp_err;
076e6acb 667
03bea6fe 668 last_half_cycle = xlog_get_cycle(offset);
1da177e4
LT
669 ASSERT(last_half_cycle != 0);
670
671 /*
672 * If the 1st half cycle number is equal to the last half cycle number,
673 * then the entire log is stamped with the same cycle number. In this
674 * case, head_blk can't be set to zero (which makes sense). The below
675 * math doesn't work out properly with head_blk equal to zero. Instead,
676 * we set it to log_bbnum which is an invalid block number, but this
677 * value makes the math correct. If head_blk doesn't changed through
678 * all the tests below, *head_blk is set to zero at the very end rather
679 * than log_bbnum. In a sense, log_bbnum and zero are the same block
680 * in a circular file.
681 */
682 if (first_half_cycle == last_half_cycle) {
683 /*
684 * In this case we believe that the entire log should have
685 * cycle number last_half_cycle. We need to scan backwards
686 * from the end verifying that there are no holes still
687 * containing last_half_cycle - 1. If we find such a hole,
688 * then the start of that hole will be the new head. The
689 * simple case looks like
690 * x | x ... | x - 1 | x
691 * Another case that fits this picture would be
692 * x | x + 1 | x ... | x
c41564b5 693 * In this case the head really is somewhere at the end of the
1da177e4
LT
694 * log, as one of the latest writes at the beginning was
695 * incomplete.
696 * One more case is
697 * x | x + 1 | x ... | x - 1 | x
698 * This is really the combination of the above two cases, and
699 * the head has to end up at the start of the x-1 hole at the
700 * end of the log.
701 *
702 * In the 256k log case, we will read from the beginning to the
703 * end of the log and search for cycle numbers equal to x-1.
704 * We don't worry about the x+1 blocks that we encounter,
705 * because we know that they cannot be the head since the log
706 * started with x.
707 */
708 head_blk = log_bbnum;
709 stop_on_cycle = last_half_cycle - 1;
710 } else {
711 /*
712 * In this case we want to find the first block with cycle
713 * number matching last_half_cycle. We expect the log to be
714 * some variation on
3f943d85 715 * x + 1 ... | x ... | x
1da177e4
LT
716 * The first block with cycle number x (last_half_cycle) will
717 * be where the new head belongs. First we do a binary search
718 * for the first occurrence of last_half_cycle. The binary
719 * search may not be totally accurate, so then we scan back
720 * from there looking for occurrences of last_half_cycle before
721 * us. If that backwards scan wraps around the beginning of
722 * the log, then we look for occurrences of last_half_cycle - 1
723 * at the end of the log. The cases we're looking for look
724 * like
3f943d85
AE
725 * v binary search stopped here
726 * x + 1 ... | x | x + 1 | x ... | x
727 * ^ but we want to locate this spot
1da177e4 728 * or
1da177e4 729 * <---------> less than scan distance
3f943d85
AE
730 * x + 1 ... | x ... | x - 1 | x
731 * ^ we want to locate this spot
1da177e4
LT
732 */
733 stop_on_cycle = last_half_cycle;
734 if ((error = xlog_find_cycle_start(log, bp, first_blk,
735 &head_blk, last_half_cycle)))
736 goto bp_err;
737 }
738
739 /*
740 * Now validate the answer. Scan back some number of maximum possible
741 * blocks and make sure each one has the expected cycle number. The
742 * maximum is determined by the total possible amount of buffering
743 * in the in-core log. The following number can be made tighter if
744 * we actually look at the block size of the filesystem.
745 */
746 num_scan_bblks = XLOG_TOTAL_REC_SHIFT(log);
747 if (head_blk >= num_scan_bblks) {
748 /*
749 * We are guaranteed that the entire check can be performed
750 * in one buffer.
751 */
752 start_blk = head_blk - num_scan_bblks;
753 if ((error = xlog_find_verify_cycle(log,
754 start_blk, num_scan_bblks,
755 stop_on_cycle, &new_blk)))
756 goto bp_err;
757 if (new_blk != -1)
758 head_blk = new_blk;
759 } else { /* need to read 2 parts of log */
760 /*
761 * We are going to scan backwards in the log in two parts.
762 * First we scan the physical end of the log. In this part
763 * of the log, we are looking for blocks with cycle number
764 * last_half_cycle - 1.
765 * If we find one, then we know that the log starts there, as
766 * we've found a hole that didn't get written in going around
767 * the end of the physical log. The simple case for this is
768 * x + 1 ... | x ... | x - 1 | x
769 * <---------> less than scan distance
770 * If all of the blocks at the end of the log have cycle number
771 * last_half_cycle, then we check the blocks at the start of
772 * the log looking for occurrences of last_half_cycle. If we
773 * find one, then our current estimate for the location of the
774 * first occurrence of last_half_cycle is wrong and we move
775 * back to the hole we've found. This case looks like
776 * x + 1 ... | x | x + 1 | x ...
777 * ^ binary search stopped here
778 * Another case we need to handle that only occurs in 256k
779 * logs is
780 * x + 1 ... | x ... | x+1 | x ...
781 * ^ binary search stops here
782 * In a 256k log, the scan at the end of the log will see the
783 * x + 1 blocks. We need to skip past those since that is
784 * certainly not the head of the log. By searching for
785 * last_half_cycle-1 we accomplish that.
786 */
1da177e4 787 ASSERT(head_blk <= INT_MAX &&
3f943d85
AE
788 (xfs_daddr_t) num_scan_bblks >= head_blk);
789 start_blk = log_bbnum - (num_scan_bblks - head_blk);
1da177e4
LT
790 if ((error = xlog_find_verify_cycle(log, start_blk,
791 num_scan_bblks - (int)head_blk,
792 (stop_on_cycle - 1), &new_blk)))
793 goto bp_err;
794 if (new_blk != -1) {
795 head_blk = new_blk;
9db127ed 796 goto validate_head;
1da177e4
LT
797 }
798
799 /*
800 * Scan beginning of log now. The last part of the physical
801 * log is good. This scan needs to verify that it doesn't find
802 * the last_half_cycle.
803 */
804 start_blk = 0;
805 ASSERT(head_blk <= INT_MAX);
806 if ((error = xlog_find_verify_cycle(log,
807 start_blk, (int)head_blk,
808 stop_on_cycle, &new_blk)))
809 goto bp_err;
810 if (new_blk != -1)
811 head_blk = new_blk;
812 }
813
9db127ed 814validate_head:
1da177e4
LT
815 /*
816 * Now we need to make sure head_blk is not pointing to a block in
817 * the middle of a log record.
818 */
819 num_scan_bblks = XLOG_REC_SHIFT(log);
820 if (head_blk >= num_scan_bblks) {
821 start_blk = head_blk - num_scan_bblks; /* don't read head_blk */
822
823 /* start ptr at last block ptr before head_blk */
824 if ((error = xlog_find_verify_log_record(log, start_blk,
825 &head_blk, 0)) == -1) {
826 error = XFS_ERROR(EIO);
827 goto bp_err;
828 } else if (error)
829 goto bp_err;
830 } else {
831 start_blk = 0;
832 ASSERT(head_blk <= INT_MAX);
833 if ((error = xlog_find_verify_log_record(log, start_blk,
834 &head_blk, 0)) == -1) {
835 /* We hit the beginning of the log during our search */
3f943d85 836 start_blk = log_bbnum - (num_scan_bblks - head_blk);
1da177e4
LT
837 new_blk = log_bbnum;
838 ASSERT(start_blk <= INT_MAX &&
839 (xfs_daddr_t) log_bbnum-start_blk >= 0);
840 ASSERT(head_blk <= INT_MAX);
841 if ((error = xlog_find_verify_log_record(log,
842 start_blk, &new_blk,
843 (int)head_blk)) == -1) {
844 error = XFS_ERROR(EIO);
845 goto bp_err;
846 } else if (error)
847 goto bp_err;
848 if (new_blk != log_bbnum)
849 head_blk = new_blk;
850 } else if (error)
851 goto bp_err;
852 }
853
854 xlog_put_bp(bp);
855 if (head_blk == log_bbnum)
856 *return_head_blk = 0;
857 else
858 *return_head_blk = head_blk;
859 /*
860 * When returning here, we have a good block number. Bad block
861 * means that during a previous crash, we didn't have a clean break
862 * from cycle number N to cycle number N-1. In this case, we need
863 * to find the first block with cycle number N-1.
864 */
865 return 0;
866
867 bp_err:
868 xlog_put_bp(bp);
869
870 if (error)
a0fa2b67 871 xfs_warn(log->l_mp, "failed to find log head");
1da177e4
LT
872 return error;
873}
874
875/*
876 * Find the sync block number or the tail of the log.
877 *
878 * This will be the block number of the last record to have its
879 * associated buffers synced to disk. Every log record header has
880 * a sync lsn embedded in it. LSNs hold block numbers, so it is easy
881 * to get a sync block number. The only concern is to figure out which
882 * log record header to believe.
883 *
884 * The following algorithm uses the log record header with the largest
885 * lsn. The entire log record does not need to be valid. We only care
886 * that the header is valid.
887 *
888 * We could speed up search by using current head_blk buffer, but it is not
889 * available.
890 */
5d77c0dc 891STATIC int
1da177e4 892xlog_find_tail(
9a8d2fdb 893 struct xlog *log,
1da177e4 894 xfs_daddr_t *head_blk,
65be6054 895 xfs_daddr_t *tail_blk)
1da177e4
LT
896{
897 xlog_rec_header_t *rhead;
898 xlog_op_header_t *op_head;
899 xfs_caddr_t offset = NULL;
900 xfs_buf_t *bp;
901 int error, i, found;
902 xfs_daddr_t umount_data_blk;
903 xfs_daddr_t after_umount_blk;
904 xfs_lsn_t tail_lsn;
905 int hblks;
906
907 found = 0;
908
909 /*
910 * Find previous log record
911 */
912 if ((error = xlog_find_head(log, head_blk)))
913 return error;
914
915 bp = xlog_get_bp(log, 1);
916 if (!bp)
917 return ENOMEM;
918 if (*head_blk == 0) { /* special case */
076e6acb
CH
919 error = xlog_bread(log, 0, 1, bp, &offset);
920 if (error)
9db127ed 921 goto done;
076e6acb 922
03bea6fe 923 if (xlog_get_cycle(offset) == 0) {
1da177e4
LT
924 *tail_blk = 0;
925 /* leave all other log inited values alone */
9db127ed 926 goto done;
1da177e4
LT
927 }
928 }
929
930 /*
931 * Search backwards looking for log record header block
932 */
933 ASSERT(*head_blk < INT_MAX);
934 for (i = (int)(*head_blk) - 1; i >= 0; i--) {
076e6acb
CH
935 error = xlog_bread(log, i, 1, bp, &offset);
936 if (error)
9db127ed 937 goto done;
076e6acb 938
69ef921b 939 if (*(__be32 *)offset == cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
1da177e4
LT
940 found = 1;
941 break;
942 }
943 }
944 /*
945 * If we haven't found the log record header block, start looking
946 * again from the end of the physical log. XXXmiken: There should be
947 * a check here to make sure we didn't search more than N blocks in
948 * the previous code.
949 */
950 if (!found) {
951 for (i = log->l_logBBsize - 1; i >= (int)(*head_blk); i--) {
076e6acb
CH
952 error = xlog_bread(log, i, 1, bp, &offset);
953 if (error)
9db127ed 954 goto done;
076e6acb 955
69ef921b
CH
956 if (*(__be32 *)offset ==
957 cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
1da177e4
LT
958 found = 2;
959 break;
960 }
961 }
962 }
963 if (!found) {
a0fa2b67 964 xfs_warn(log->l_mp, "%s: couldn't find sync record", __func__);
1da177e4
LT
965 ASSERT(0);
966 return XFS_ERROR(EIO);
967 }
968
969 /* find blk_no of tail of log */
970 rhead = (xlog_rec_header_t *)offset;
b53e675d 971 *tail_blk = BLOCK_LSN(be64_to_cpu(rhead->h_tail_lsn));
1da177e4
LT
972
973 /*
974 * Reset log values according to the state of the log when we
975 * crashed. In the case where head_blk == 0, we bump curr_cycle
976 * one because the next write starts a new cycle rather than
977 * continuing the cycle of the last good log record. At this
978 * point we have guaranteed that all partial log records have been
979 * accounted for. Therefore, we know that the last good log record
980 * written was complete and ended exactly on the end boundary
981 * of the physical log.
982 */
983 log->l_prev_block = i;
984 log->l_curr_block = (int)*head_blk;
b53e675d 985 log->l_curr_cycle = be32_to_cpu(rhead->h_cycle);
1da177e4
LT
986 if (found == 2)
987 log->l_curr_cycle++;
1c3cb9ec 988 atomic64_set(&log->l_tail_lsn, be64_to_cpu(rhead->h_tail_lsn));
84f3c683 989 atomic64_set(&log->l_last_sync_lsn, be64_to_cpu(rhead->h_lsn));
28496968 990 xlog_assign_grant_head(&log->l_reserve_head.grant, log->l_curr_cycle,
a69ed03c 991 BBTOB(log->l_curr_block));
28496968 992 xlog_assign_grant_head(&log->l_write_head.grant, log->l_curr_cycle,
a69ed03c 993 BBTOB(log->l_curr_block));
1da177e4
LT
994
995 /*
996 * Look for unmount record. If we find it, then we know there
997 * was a clean unmount. Since 'i' could be the last block in
998 * the physical log, we convert to a log block before comparing
999 * to the head_blk.
1000 *
1001 * Save the current tail lsn to use to pass to
1002 * xlog_clear_stale_blocks() below. We won't want to clear the
1003 * unmount record if there is one, so we pass the lsn of the
1004 * unmount record rather than the block after it.
1005 */
62118709 1006 if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
b53e675d
CH
1007 int h_size = be32_to_cpu(rhead->h_size);
1008 int h_version = be32_to_cpu(rhead->h_version);
1da177e4
LT
1009
1010 if ((h_version & XLOG_VERSION_2) &&
1011 (h_size > XLOG_HEADER_CYCLE_SIZE)) {
1012 hblks = h_size / XLOG_HEADER_CYCLE_SIZE;
1013 if (h_size % XLOG_HEADER_CYCLE_SIZE)
1014 hblks++;
1015 } else {
1016 hblks = 1;
1017 }
1018 } else {
1019 hblks = 1;
1020 }
1021 after_umount_blk = (i + hblks + (int)
b53e675d 1022 BTOBB(be32_to_cpu(rhead->h_len))) % log->l_logBBsize;
1c3cb9ec 1023 tail_lsn = atomic64_read(&log->l_tail_lsn);
1da177e4 1024 if (*head_blk == after_umount_blk &&
b53e675d 1025 be32_to_cpu(rhead->h_num_logops) == 1) {
1da177e4 1026 umount_data_blk = (i + hblks) % log->l_logBBsize;
076e6acb
CH
1027 error = xlog_bread(log, umount_data_blk, 1, bp, &offset);
1028 if (error)
9db127ed 1029 goto done;
076e6acb 1030
1da177e4
LT
1031 op_head = (xlog_op_header_t *)offset;
1032 if (op_head->oh_flags & XLOG_UNMOUNT_TRANS) {
1033 /*
1034 * Set tail and last sync so that newly written
1035 * log records will point recovery to after the
1036 * current unmount record.
1037 */
1c3cb9ec
DC
1038 xlog_assign_atomic_lsn(&log->l_tail_lsn,
1039 log->l_curr_cycle, after_umount_blk);
1040 xlog_assign_atomic_lsn(&log->l_last_sync_lsn,
1041 log->l_curr_cycle, after_umount_blk);
1da177e4 1042 *tail_blk = after_umount_blk;
92821e2b
DC
1043
1044 /*
1045 * Note that the unmount was clean. If the unmount
1046 * was not clean, we need to know this to rebuild the
1047 * superblock counters from the perag headers if we
1048 * have a filesystem using non-persistent counters.
1049 */
1050 log->l_mp->m_flags |= XFS_MOUNT_WAS_CLEAN;
1da177e4
LT
1051 }
1052 }
1053
1054 /*
1055 * Make sure that there are no blocks in front of the head
1056 * with the same cycle number as the head. This can happen
1057 * because we allow multiple outstanding log writes concurrently,
1058 * and the later writes might make it out before earlier ones.
1059 *
1060 * We use the lsn from before modifying it so that we'll never
1061 * overwrite the unmount record after a clean unmount.
1062 *
1063 * Do this only if we are going to recover the filesystem
1064 *
1065 * NOTE: This used to say "if (!readonly)"
1066 * However on Linux, we can & do recover a read-only filesystem.
1067 * We only skip recovery if NORECOVERY is specified on mount,
1068 * in which case we would not be here.
1069 *
1070 * But... if the -device- itself is readonly, just skip this.
1071 * We can't recover this device anyway, so it won't matter.
1072 */
9db127ed 1073 if (!xfs_readonly_buftarg(log->l_mp->m_logdev_targp))
1da177e4 1074 error = xlog_clear_stale_blocks(log, tail_lsn);
1da177e4 1075
9db127ed 1076done:
1da177e4
LT
1077 xlog_put_bp(bp);
1078
1079 if (error)
a0fa2b67 1080 xfs_warn(log->l_mp, "failed to locate log tail");
1da177e4
LT
1081 return error;
1082}
1083
1084/*
1085 * Is the log zeroed at all?
1086 *
1087 * The last binary search should be changed to perform an X block read
1088 * once X becomes small enough. You can then search linearly through
1089 * the X blocks. This will cut down on the number of reads we need to do.
1090 *
1091 * If the log is partially zeroed, this routine will pass back the blkno
1092 * of the first block with cycle number 0. It won't have a complete LR
1093 * preceding it.
1094 *
1095 * Return:
1096 * 0 => the log is completely written to
1097 * -1 => use *blk_no as the first block of the log
1098 * >0 => error has occurred
1099 */
a8272ce0 1100STATIC int
1da177e4 1101xlog_find_zeroed(
9a8d2fdb 1102 struct xlog *log,
1da177e4
LT
1103 xfs_daddr_t *blk_no)
1104{
1105 xfs_buf_t *bp;
1106 xfs_caddr_t offset;
1107 uint first_cycle, last_cycle;
1108 xfs_daddr_t new_blk, last_blk, start_blk;
1109 xfs_daddr_t num_scan_bblks;
1110 int error, log_bbnum = log->l_logBBsize;
1111
6fdf8ccc
NS
1112 *blk_no = 0;
1113
1da177e4
LT
1114 /* check totally zeroed log */
1115 bp = xlog_get_bp(log, 1);
1116 if (!bp)
1117 return ENOMEM;
076e6acb
CH
1118 error = xlog_bread(log, 0, 1, bp, &offset);
1119 if (error)
1da177e4 1120 goto bp_err;
076e6acb 1121
03bea6fe 1122 first_cycle = xlog_get_cycle(offset);
1da177e4
LT
1123 if (first_cycle == 0) { /* completely zeroed log */
1124 *blk_no = 0;
1125 xlog_put_bp(bp);
1126 return -1;
1127 }
1128
1129 /* check partially zeroed log */
076e6acb
CH
1130 error = xlog_bread(log, log_bbnum-1, 1, bp, &offset);
1131 if (error)
1da177e4 1132 goto bp_err;
076e6acb 1133
03bea6fe 1134 last_cycle = xlog_get_cycle(offset);
1da177e4
LT
1135 if (last_cycle != 0) { /* log completely written to */
1136 xlog_put_bp(bp);
1137 return 0;
1138 } else if (first_cycle != 1) {
1139 /*
1140 * If the cycle of the last block is zero, the cycle of
1141 * the first block must be 1. If it's not, maybe we're
1142 * not looking at a log... Bail out.
1143 */
a0fa2b67
DC
1144 xfs_warn(log->l_mp,
1145 "Log inconsistent or not a log (last==0, first!=1)");
1da177e4
LT
1146 return XFS_ERROR(EINVAL);
1147 }
1148
1149 /* we have a partially zeroed log */
1150 last_blk = log_bbnum-1;
1151 if ((error = xlog_find_cycle_start(log, bp, 0, &last_blk, 0)))
1152 goto bp_err;
1153
1154 /*
1155 * Validate the answer. Because there is no way to guarantee that
1156 * the entire log is made up of log records which are the same size,
1157 * we scan over the defined maximum blocks. At this point, the maximum
1158 * is not chosen to mean anything special. XXXmiken
1159 */
1160 num_scan_bblks = XLOG_TOTAL_REC_SHIFT(log);
1161 ASSERT(num_scan_bblks <= INT_MAX);
1162
1163 if (last_blk < num_scan_bblks)
1164 num_scan_bblks = last_blk;
1165 start_blk = last_blk - num_scan_bblks;
1166
1167 /*
1168 * We search for any instances of cycle number 0 that occur before
1169 * our current estimate of the head. What we're trying to detect is
1170 * 1 ... | 0 | 1 | 0...
1171 * ^ binary search ends here
1172 */
1173 if ((error = xlog_find_verify_cycle(log, start_blk,
1174 (int)num_scan_bblks, 0, &new_blk)))
1175 goto bp_err;
1176 if (new_blk != -1)
1177 last_blk = new_blk;
1178
1179 /*
1180 * Potentially backup over partial log record write. We don't need
1181 * to search the end of the log because we know it is zero.
1182 */
1183 if ((error = xlog_find_verify_log_record(log, start_blk,
1184 &last_blk, 0)) == -1) {
1185 error = XFS_ERROR(EIO);
1186 goto bp_err;
1187 } else if (error)
1188 goto bp_err;
1189
1190 *blk_no = last_blk;
1191bp_err:
1192 xlog_put_bp(bp);
1193 if (error)
1194 return error;
1195 return -1;
1196}
1197
1198/*
1199 * These are simple subroutines used by xlog_clear_stale_blocks() below
1200 * to initialize a buffer full of empty log record headers and write
1201 * them into the log.
1202 */
1203STATIC void
1204xlog_add_record(
9a8d2fdb 1205 struct xlog *log,
1da177e4
LT
1206 xfs_caddr_t buf,
1207 int cycle,
1208 int block,
1209 int tail_cycle,
1210 int tail_block)
1211{
1212 xlog_rec_header_t *recp = (xlog_rec_header_t *)buf;
1213
1214 memset(buf, 0, BBSIZE);
b53e675d
CH
1215 recp->h_magicno = cpu_to_be32(XLOG_HEADER_MAGIC_NUM);
1216 recp->h_cycle = cpu_to_be32(cycle);
1217 recp->h_version = cpu_to_be32(
62118709 1218 xfs_sb_version_haslogv2(&log->l_mp->m_sb) ? 2 : 1);
b53e675d
CH
1219 recp->h_lsn = cpu_to_be64(xlog_assign_lsn(cycle, block));
1220 recp->h_tail_lsn = cpu_to_be64(xlog_assign_lsn(tail_cycle, tail_block));
1221 recp->h_fmt = cpu_to_be32(XLOG_FMT);
1da177e4
LT
1222 memcpy(&recp->h_fs_uuid, &log->l_mp->m_sb.sb_uuid, sizeof(uuid_t));
1223}
1224
1225STATIC int
1226xlog_write_log_records(
9a8d2fdb 1227 struct xlog *log,
1da177e4
LT
1228 int cycle,
1229 int start_block,
1230 int blocks,
1231 int tail_cycle,
1232 int tail_block)
1233{
1234 xfs_caddr_t offset;
1235 xfs_buf_t *bp;
1236 int balign, ealign;
69ce58f0 1237 int sectbb = log->l_sectBBsize;
1da177e4
LT
1238 int end_block = start_block + blocks;
1239 int bufblks;
1240 int error = 0;
1241 int i, j = 0;
1242
6881a229
AE
1243 /*
1244 * Greedily allocate a buffer big enough to handle the full
1245 * range of basic blocks to be written. If that fails, try
1246 * a smaller size. We need to be able to write at least a
1247 * log sector, or we're out of luck.
1248 */
1da177e4 1249 bufblks = 1 << ffs(blocks);
81158e0c
DC
1250 while (bufblks > log->l_logBBsize)
1251 bufblks >>= 1;
1da177e4
LT
1252 while (!(bp = xlog_get_bp(log, bufblks))) {
1253 bufblks >>= 1;
69ce58f0 1254 if (bufblks < sectbb)
1da177e4
LT
1255 return ENOMEM;
1256 }
1257
1258 /* We may need to do a read at the start to fill in part of
1259 * the buffer in the starting sector not covered by the first
1260 * write below.
1261 */
5c17f533 1262 balign = round_down(start_block, sectbb);
1da177e4 1263 if (balign != start_block) {
076e6acb
CH
1264 error = xlog_bread_noalign(log, start_block, 1, bp);
1265 if (error)
1266 goto out_put_bp;
1267
1da177e4
LT
1268 j = start_block - balign;
1269 }
1270
1271 for (i = start_block; i < end_block; i += bufblks) {
1272 int bcount, endcount;
1273
1274 bcount = min(bufblks, end_block - start_block);
1275 endcount = bcount - j;
1276
1277 /* We may need to do a read at the end to fill in part of
1278 * the buffer in the final sector not covered by the write.
1279 * If this is the same sector as the above read, skip it.
1280 */
5c17f533 1281 ealign = round_down(end_block, sectbb);
1da177e4 1282 if (j == 0 && (start_block + endcount > ealign)) {
62926044 1283 offset = bp->b_addr + BBTOB(ealign - start_block);
44396476
DC
1284 error = xlog_bread_offset(log, ealign, sectbb,
1285 bp, offset);
076e6acb
CH
1286 if (error)
1287 break;
1288
1da177e4
LT
1289 }
1290
1291 offset = xlog_align(log, start_block, endcount, bp);
1292 for (; j < endcount; j++) {
1293 xlog_add_record(log, offset, cycle, i+j,
1294 tail_cycle, tail_block);
1295 offset += BBSIZE;
1296 }
1297 error = xlog_bwrite(log, start_block, endcount, bp);
1298 if (error)
1299 break;
1300 start_block += endcount;
1301 j = 0;
1302 }
076e6acb
CH
1303
1304 out_put_bp:
1da177e4
LT
1305 xlog_put_bp(bp);
1306 return error;
1307}
1308
1309/*
1310 * This routine is called to blow away any incomplete log writes out
1311 * in front of the log head. We do this so that we won't become confused
1312 * if we come up, write only a little bit more, and then crash again.
1313 * If we leave the partial log records out there, this situation could
1314 * cause us to think those partial writes are valid blocks since they
1315 * have the current cycle number. We get rid of them by overwriting them
1316 * with empty log records with the old cycle number rather than the
1317 * current one.
1318 *
1319 * The tail lsn is passed in rather than taken from
1320 * the log so that we will not write over the unmount record after a
1321 * clean unmount in a 512 block log. Doing so would leave the log without
1322 * any valid log records in it until a new one was written. If we crashed
1323 * during that time we would not be able to recover.
1324 */
1325STATIC int
1326xlog_clear_stale_blocks(
9a8d2fdb 1327 struct xlog *log,
1da177e4
LT
1328 xfs_lsn_t tail_lsn)
1329{
1330 int tail_cycle, head_cycle;
1331 int tail_block, head_block;
1332 int tail_distance, max_distance;
1333 int distance;
1334 int error;
1335
1336 tail_cycle = CYCLE_LSN(tail_lsn);
1337 tail_block = BLOCK_LSN(tail_lsn);
1338 head_cycle = log->l_curr_cycle;
1339 head_block = log->l_curr_block;
1340
1341 /*
1342 * Figure out the distance between the new head of the log
1343 * and the tail. We want to write over any blocks beyond the
1344 * head that we may have written just before the crash, but
1345 * we don't want to overwrite the tail of the log.
1346 */
1347 if (head_cycle == tail_cycle) {
1348 /*
1349 * The tail is behind the head in the physical log,
1350 * so the distance from the head to the tail is the
1351 * distance from the head to the end of the log plus
1352 * the distance from the beginning of the log to the
1353 * tail.
1354 */
1355 if (unlikely(head_block < tail_block || head_block >= log->l_logBBsize)) {
1356 XFS_ERROR_REPORT("xlog_clear_stale_blocks(1)",
1357 XFS_ERRLEVEL_LOW, log->l_mp);
1358 return XFS_ERROR(EFSCORRUPTED);
1359 }
1360 tail_distance = tail_block + (log->l_logBBsize - head_block);
1361 } else {
1362 /*
1363 * The head is behind the tail in the physical log,
1364 * so the distance from the head to the tail is just
1365 * the tail block minus the head block.
1366 */
1367 if (unlikely(head_block >= tail_block || head_cycle != (tail_cycle + 1))){
1368 XFS_ERROR_REPORT("xlog_clear_stale_blocks(2)",
1369 XFS_ERRLEVEL_LOW, log->l_mp);
1370 return XFS_ERROR(EFSCORRUPTED);
1371 }
1372 tail_distance = tail_block - head_block;
1373 }
1374
1375 /*
1376 * If the head is right up against the tail, we can't clear
1377 * anything.
1378 */
1379 if (tail_distance <= 0) {
1380 ASSERT(tail_distance == 0);
1381 return 0;
1382 }
1383
1384 max_distance = XLOG_TOTAL_REC_SHIFT(log);
1385 /*
1386 * Take the smaller of the maximum amount of outstanding I/O
1387 * we could have and the distance to the tail to clear out.
1388 * We take the smaller so that we don't overwrite the tail and
1389 * we don't waste all day writing from the head to the tail
1390 * for no reason.
1391 */
1392 max_distance = MIN(max_distance, tail_distance);
1393
1394 if ((head_block + max_distance) <= log->l_logBBsize) {
1395 /*
1396 * We can stomp all the blocks we need to without
1397 * wrapping around the end of the log. Just do it
1398 * in a single write. Use the cycle number of the
1399 * current cycle minus one so that the log will look like:
1400 * n ... | n - 1 ...
1401 */
1402 error = xlog_write_log_records(log, (head_cycle - 1),
1403 head_block, max_distance, tail_cycle,
1404 tail_block);
1405 if (error)
1406 return error;
1407 } else {
1408 /*
1409 * We need to wrap around the end of the physical log in
1410 * order to clear all the blocks. Do it in two separate
1411 * I/Os. The first write should be from the head to the
1412 * end of the physical log, and it should use the current
1413 * cycle number minus one just like above.
1414 */
1415 distance = log->l_logBBsize - head_block;
1416 error = xlog_write_log_records(log, (head_cycle - 1),
1417 head_block, distance, tail_cycle,
1418 tail_block);
1419
1420 if (error)
1421 return error;
1422
1423 /*
1424 * Now write the blocks at the start of the physical log.
1425 * This writes the remainder of the blocks we want to clear.
1426 * It uses the current cycle number since we're now on the
1427 * same cycle as the head so that we get:
1428 * n ... n ... | n - 1 ...
1429 * ^^^^^ blocks we're writing
1430 */
1431 distance = max_distance - (log->l_logBBsize - head_block);
1432 error = xlog_write_log_records(log, head_cycle, 0, distance,
1433 tail_cycle, tail_block);
1434 if (error)
1435 return error;
1436 }
1437
1438 return 0;
1439}
1440
1441/******************************************************************************
1442 *
1443 * Log recover routines
1444 *
1445 ******************************************************************************
1446 */
1447
1448STATIC xlog_recover_t *
1449xlog_recover_find_tid(
f0a76953 1450 struct hlist_head *head,
1da177e4
LT
1451 xlog_tid_t tid)
1452{
f0a76953 1453 xlog_recover_t *trans;
1da177e4 1454
b67bfe0d 1455 hlist_for_each_entry(trans, head, r_list) {
f0a76953
DC
1456 if (trans->r_log_tid == tid)
1457 return trans;
1da177e4 1458 }
f0a76953 1459 return NULL;
1da177e4
LT
1460}
1461
1462STATIC void
f0a76953
DC
1463xlog_recover_new_tid(
1464 struct hlist_head *head,
1465 xlog_tid_t tid,
1466 xfs_lsn_t lsn)
1da177e4 1467{
f0a76953
DC
1468 xlog_recover_t *trans;
1469
1470 trans = kmem_zalloc(sizeof(xlog_recover_t), KM_SLEEP);
1471 trans->r_log_tid = tid;
1472 trans->r_lsn = lsn;
1473 INIT_LIST_HEAD(&trans->r_itemq);
1474
1475 INIT_HLIST_NODE(&trans->r_list);
1476 hlist_add_head(&trans->r_list, head);
1da177e4
LT
1477}
1478
1479STATIC void
1480xlog_recover_add_item(
f0a76953 1481 struct list_head *head)
1da177e4
LT
1482{
1483 xlog_recover_item_t *item;
1484
1485 item = kmem_zalloc(sizeof(xlog_recover_item_t), KM_SLEEP);
f0a76953
DC
1486 INIT_LIST_HEAD(&item->ri_list);
1487 list_add_tail(&item->ri_list, head);
1da177e4
LT
1488}
1489
1490STATIC int
1491xlog_recover_add_to_cont_trans(
ad223e60
MT
1492 struct xlog *log,
1493 struct xlog_recover *trans,
1da177e4
LT
1494 xfs_caddr_t dp,
1495 int len)
1496{
1497 xlog_recover_item_t *item;
1498 xfs_caddr_t ptr, old_ptr;
1499 int old_len;
1500
f0a76953 1501 if (list_empty(&trans->r_itemq)) {
1da177e4
LT
1502 /* finish copying rest of trans header */
1503 xlog_recover_add_item(&trans->r_itemq);
1504 ptr = (xfs_caddr_t) &trans->r_theader +
1505 sizeof(xfs_trans_header_t) - len;
1506 memcpy(ptr, dp, len); /* d, s, l */
1507 return 0;
1508 }
f0a76953
DC
1509 /* take the tail entry */
1510 item = list_entry(trans->r_itemq.prev, xlog_recover_item_t, ri_list);
1da177e4
LT
1511
1512 old_ptr = item->ri_buf[item->ri_cnt-1].i_addr;
1513 old_len = item->ri_buf[item->ri_cnt-1].i_len;
1514
45053603 1515 ptr = kmem_realloc(old_ptr, len+old_len, old_len, KM_SLEEP);
1da177e4
LT
1516 memcpy(&ptr[old_len], dp, len); /* d, s, l */
1517 item->ri_buf[item->ri_cnt-1].i_len += len;
1518 item->ri_buf[item->ri_cnt-1].i_addr = ptr;
9abbc539 1519 trace_xfs_log_recover_item_add_cont(log, trans, item, 0);
1da177e4
LT
1520 return 0;
1521}
1522
1523/*
1524 * The next region to add is the start of a new region. It could be
1525 * a whole region or it could be the first part of a new region. Because
1526 * of this, the assumption here is that the type and size fields of all
1527 * format structures fit into the first 32 bits of the structure.
1528 *
1529 * This works because all regions must be 32 bit aligned. Therefore, we
1530 * either have both fields or we have neither field. In the case we have
1531 * neither field, the data part of the region is zero length. We only have
1532 * a log_op_header and can throw away the header since a new one will appear
1533 * later. If we have at least 4 bytes, then we can determine how many regions
1534 * will appear in the current log item.
1535 */
1536STATIC int
1537xlog_recover_add_to_trans(
ad223e60
MT
1538 struct xlog *log,
1539 struct xlog_recover *trans,
1da177e4
LT
1540 xfs_caddr_t dp,
1541 int len)
1542{
1543 xfs_inode_log_format_t *in_f; /* any will do */
1544 xlog_recover_item_t *item;
1545 xfs_caddr_t ptr;
1546
1547 if (!len)
1548 return 0;
f0a76953 1549 if (list_empty(&trans->r_itemq)) {
5a792c45
DC
1550 /* we need to catch log corruptions here */
1551 if (*(uint *)dp != XFS_TRANS_HEADER_MAGIC) {
a0fa2b67
DC
1552 xfs_warn(log->l_mp, "%s: bad header magic number",
1553 __func__);
5a792c45
DC
1554 ASSERT(0);
1555 return XFS_ERROR(EIO);
1556 }
1da177e4
LT
1557 if (len == sizeof(xfs_trans_header_t))
1558 xlog_recover_add_item(&trans->r_itemq);
1559 memcpy(&trans->r_theader, dp, len); /* d, s, l */
1560 return 0;
1561 }
1562
1563 ptr = kmem_alloc(len, KM_SLEEP);
1564 memcpy(ptr, dp, len);
1565 in_f = (xfs_inode_log_format_t *)ptr;
1566
f0a76953
DC
1567 /* take the tail entry */
1568 item = list_entry(trans->r_itemq.prev, xlog_recover_item_t, ri_list);
1569 if (item->ri_total != 0 &&
1570 item->ri_total == item->ri_cnt) {
1571 /* tail item is in use, get a new one */
1da177e4 1572 xlog_recover_add_item(&trans->r_itemq);
f0a76953
DC
1573 item = list_entry(trans->r_itemq.prev,
1574 xlog_recover_item_t, ri_list);
1da177e4 1575 }
1da177e4
LT
1576
1577 if (item->ri_total == 0) { /* first region to be added */
e8fa6b48
CH
1578 if (in_f->ilf_size == 0 ||
1579 in_f->ilf_size > XLOG_MAX_REGIONS_IN_ITEM) {
a0fa2b67
DC
1580 xfs_warn(log->l_mp,
1581 "bad number of regions (%d) in inode log format",
e8fa6b48
CH
1582 in_f->ilf_size);
1583 ASSERT(0);
1584 return XFS_ERROR(EIO);
1585 }
1586
1587 item->ri_total = in_f->ilf_size;
1588 item->ri_buf =
1589 kmem_zalloc(item->ri_total * sizeof(xfs_log_iovec_t),
1590 KM_SLEEP);
1da177e4
LT
1591 }
1592 ASSERT(item->ri_total > item->ri_cnt);
1593 /* Description region is ri_buf[0] */
1594 item->ri_buf[item->ri_cnt].i_addr = ptr;
1595 item->ri_buf[item->ri_cnt].i_len = len;
1596 item->ri_cnt++;
9abbc539 1597 trace_xfs_log_recover_item_add(log, trans, item, 0);
1da177e4
LT
1598 return 0;
1599}
1600
f0a76953
DC
1601/*
1602 * Sort the log items in the transaction. Cancelled buffers need
1603 * to be put first so they are processed before any items that might
1604 * modify the buffers. If they are cancelled, then the modifications
1605 * don't need to be replayed.
1606 */
1da177e4
LT
1607STATIC int
1608xlog_recover_reorder_trans(
ad223e60
MT
1609 struct xlog *log,
1610 struct xlog_recover *trans,
9abbc539 1611 int pass)
1da177e4 1612{
f0a76953
DC
1613 xlog_recover_item_t *item, *n;
1614 LIST_HEAD(sort_list);
1615
1616 list_splice_init(&trans->r_itemq, &sort_list);
1617 list_for_each_entry_safe(item, n, &sort_list, ri_list) {
4e0d5f92 1618 xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
1da177e4 1619
f0a76953 1620 switch (ITEM_TYPE(item)) {
1da177e4 1621 case XFS_LI_BUF:
c1155410 1622 if (!(buf_f->blf_flags & XFS_BLF_CANCEL)) {
9abbc539
DC
1623 trace_xfs_log_recover_item_reorder_head(log,
1624 trans, item, pass);
f0a76953 1625 list_move(&item->ri_list, &trans->r_itemq);
1da177e4
LT
1626 break;
1627 }
1628 case XFS_LI_INODE:
1da177e4
LT
1629 case XFS_LI_DQUOT:
1630 case XFS_LI_QUOTAOFF:
1631 case XFS_LI_EFD:
1632 case XFS_LI_EFI:
9abbc539
DC
1633 trace_xfs_log_recover_item_reorder_tail(log,
1634 trans, item, pass);
f0a76953 1635 list_move_tail(&item->ri_list, &trans->r_itemq);
1da177e4
LT
1636 break;
1637 default:
a0fa2b67
DC
1638 xfs_warn(log->l_mp,
1639 "%s: unrecognized type of log operation",
1640 __func__);
1da177e4
LT
1641 ASSERT(0);
1642 return XFS_ERROR(EIO);
1643 }
f0a76953
DC
1644 }
1645 ASSERT(list_empty(&sort_list));
1da177e4
LT
1646 return 0;
1647}
1648
1649/*
1650 * Build up the table of buf cancel records so that we don't replay
1651 * cancelled data in the second pass. For buffer records that are
1652 * not cancel records, there is nothing to do here so we just return.
1653 *
1654 * If we get a cancel record which is already in the table, this indicates
1655 * that the buffer was cancelled multiple times. In order to ensure
1656 * that during pass 2 we keep the record in the table until we reach its
1657 * last occurrence in the log, we keep a reference count in the cancel
1658 * record in the table to tell us how many times we expect to see this
1659 * record during the second pass.
1660 */
c9f71f5f
CH
1661STATIC int
1662xlog_recover_buffer_pass1(
ad223e60
MT
1663 struct xlog *log,
1664 struct xlog_recover_item *item)
1da177e4 1665{
c9f71f5f 1666 xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
d5689eaa
CH
1667 struct list_head *bucket;
1668 struct xfs_buf_cancel *bcp;
1da177e4
LT
1669
1670 /*
1671 * If this isn't a cancel buffer item, then just return.
1672 */
e2714bf8 1673 if (!(buf_f->blf_flags & XFS_BLF_CANCEL)) {
9abbc539 1674 trace_xfs_log_recover_buf_not_cancel(log, buf_f);
c9f71f5f 1675 return 0;
9abbc539 1676 }
1da177e4
LT
1677
1678 /*
d5689eaa
CH
1679 * Insert an xfs_buf_cancel record into the hash table of them.
1680 * If there is already an identical record, bump its reference count.
1da177e4 1681 */
d5689eaa
CH
1682 bucket = XLOG_BUF_CANCEL_BUCKET(log, buf_f->blf_blkno);
1683 list_for_each_entry(bcp, bucket, bc_list) {
1684 if (bcp->bc_blkno == buf_f->blf_blkno &&
1685 bcp->bc_len == buf_f->blf_len) {
1686 bcp->bc_refcount++;
9abbc539 1687 trace_xfs_log_recover_buf_cancel_ref_inc(log, buf_f);
c9f71f5f 1688 return 0;
1da177e4 1689 }
d5689eaa
CH
1690 }
1691
1692 bcp = kmem_alloc(sizeof(struct xfs_buf_cancel), KM_SLEEP);
1693 bcp->bc_blkno = buf_f->blf_blkno;
1694 bcp->bc_len = buf_f->blf_len;
1da177e4 1695 bcp->bc_refcount = 1;
d5689eaa
CH
1696 list_add_tail(&bcp->bc_list, bucket);
1697
9abbc539 1698 trace_xfs_log_recover_buf_cancel_add(log, buf_f);
c9f71f5f 1699 return 0;
1da177e4
LT
1700}
1701
1702/*
1703 * Check to see whether the buffer being recovered has a corresponding
1704 * entry in the buffer cancel record table. If it does then return 1
1705 * so that it will be cancelled, otherwise return 0. If the buffer is
c1155410 1706 * actually a buffer cancel item (XFS_BLF_CANCEL is set), then decrement
1da177e4
LT
1707 * the refcount on the entry in the table and remove it from the table
1708 * if this is the last reference.
1709 *
1710 * We remove the cancel record from the table when we encounter its
1711 * last occurrence in the log so that if the same buffer is re-used
1712 * again after its last cancellation we actually replay the changes
1713 * made at that point.
1714 */
1715STATIC int
1716xlog_check_buffer_cancelled(
ad223e60 1717 struct xlog *log,
1da177e4
LT
1718 xfs_daddr_t blkno,
1719 uint len,
1720 ushort flags)
1721{
d5689eaa
CH
1722 struct list_head *bucket;
1723 struct xfs_buf_cancel *bcp;
1da177e4
LT
1724
1725 if (log->l_buf_cancel_table == NULL) {
1726 /*
1727 * There is nothing in the table built in pass one,
1728 * so this buffer must not be cancelled.
1729 */
c1155410 1730 ASSERT(!(flags & XFS_BLF_CANCEL));
1da177e4
LT
1731 return 0;
1732 }
1733
1da177e4 1734 /*
d5689eaa 1735 * Search for an entry in the cancel table that matches our buffer.
1da177e4 1736 */
d5689eaa
CH
1737 bucket = XLOG_BUF_CANCEL_BUCKET(log, blkno);
1738 list_for_each_entry(bcp, bucket, bc_list) {
1739 if (bcp->bc_blkno == blkno && bcp->bc_len == len)
1740 goto found;
1da177e4 1741 }
d5689eaa 1742
1da177e4 1743 /*
d5689eaa
CH
1744 * We didn't find a corresponding entry in the table, so return 0 so
1745 * that the buffer is NOT cancelled.
1da177e4 1746 */
c1155410 1747 ASSERT(!(flags & XFS_BLF_CANCEL));
1da177e4 1748 return 0;
d5689eaa
CH
1749
1750found:
1751 /*
1752 * We've go a match, so return 1 so that the recovery of this buffer
1753 * is cancelled. If this buffer is actually a buffer cancel log
1754 * item, then decrement the refcount on the one in the table and
1755 * remove it if this is the last reference.
1756 */
1757 if (flags & XFS_BLF_CANCEL) {
1758 if (--bcp->bc_refcount == 0) {
1759 list_del(&bcp->bc_list);
1760 kmem_free(bcp);
1761 }
1762 }
1763 return 1;
1da177e4
LT
1764}
1765
1da177e4 1766/*
e2714bf8
CH
1767 * Perform recovery for a buffer full of inodes. In these buffers, the only
1768 * data which should be recovered is that which corresponds to the
1769 * di_next_unlinked pointers in the on disk inode structures. The rest of the
1770 * data for the inodes is always logged through the inodes themselves rather
1771 * than the inode buffer and is recovered in xlog_recover_inode_pass2().
1da177e4 1772 *
e2714bf8
CH
1773 * The only time when buffers full of inodes are fully recovered is when the
1774 * buffer is full of newly allocated inodes. In this case the buffer will
1775 * not be marked as an inode buffer and so will be sent to
1776 * xlog_recover_do_reg_buffer() below during recovery.
1da177e4
LT
1777 */
1778STATIC int
1779xlog_recover_do_inode_buffer(
e2714bf8 1780 struct xfs_mount *mp,
1da177e4 1781 xlog_recover_item_t *item,
e2714bf8 1782 struct xfs_buf *bp,
1da177e4
LT
1783 xfs_buf_log_format_t *buf_f)
1784{
1785 int i;
e2714bf8
CH
1786 int item_index = 0;
1787 int bit = 0;
1788 int nbits = 0;
1789 int reg_buf_offset = 0;
1790 int reg_buf_bytes = 0;
1da177e4
LT
1791 int next_unlinked_offset;
1792 int inodes_per_buf;
1793 xfs_agino_t *logged_nextp;
1794 xfs_agino_t *buffer_nextp;
1da177e4 1795
9abbc539 1796 trace_xfs_log_recover_buf_inode_buf(mp->m_log, buf_f);
93848a99 1797 bp->b_ops = &xfs_inode_buf_ops;
9abbc539 1798
aa0e8833 1799 inodes_per_buf = BBTOB(bp->b_io_length) >> mp->m_sb.sb_inodelog;
1da177e4
LT
1800 for (i = 0; i < inodes_per_buf; i++) {
1801 next_unlinked_offset = (i * mp->m_sb.sb_inodesize) +
1802 offsetof(xfs_dinode_t, di_next_unlinked);
1803
1804 while (next_unlinked_offset >=
1805 (reg_buf_offset + reg_buf_bytes)) {
1806 /*
1807 * The next di_next_unlinked field is beyond
1808 * the current logged region. Find the next
1809 * logged region that contains or is beyond
1810 * the current di_next_unlinked field.
1811 */
1812 bit += nbits;
e2714bf8
CH
1813 bit = xfs_next_bit(buf_f->blf_data_map,
1814 buf_f->blf_map_size, bit);
1da177e4
LT
1815
1816 /*
1817 * If there are no more logged regions in the
1818 * buffer, then we're done.
1819 */
e2714bf8 1820 if (bit == -1)
1da177e4 1821 return 0;
1da177e4 1822
e2714bf8
CH
1823 nbits = xfs_contig_bits(buf_f->blf_data_map,
1824 buf_f->blf_map_size, bit);
1da177e4 1825 ASSERT(nbits > 0);
c1155410
DC
1826 reg_buf_offset = bit << XFS_BLF_SHIFT;
1827 reg_buf_bytes = nbits << XFS_BLF_SHIFT;
1da177e4
LT
1828 item_index++;
1829 }
1830
1831 /*
1832 * If the current logged region starts after the current
1833 * di_next_unlinked field, then move on to the next
1834 * di_next_unlinked field.
1835 */
e2714bf8 1836 if (next_unlinked_offset < reg_buf_offset)
1da177e4 1837 continue;
1da177e4
LT
1838
1839 ASSERT(item->ri_buf[item_index].i_addr != NULL);
c1155410 1840 ASSERT((item->ri_buf[item_index].i_len % XFS_BLF_CHUNK) == 0);
aa0e8833
DC
1841 ASSERT((reg_buf_offset + reg_buf_bytes) <=
1842 BBTOB(bp->b_io_length));
1da177e4
LT
1843
1844 /*
1845 * The current logged region contains a copy of the
1846 * current di_next_unlinked field. Extract its value
1847 * and copy it to the buffer copy.
1848 */
4e0d5f92
CH
1849 logged_nextp = item->ri_buf[item_index].i_addr +
1850 next_unlinked_offset - reg_buf_offset;
1da177e4 1851 if (unlikely(*logged_nextp == 0)) {
a0fa2b67
DC
1852 xfs_alert(mp,
1853 "Bad inode buffer log record (ptr = 0x%p, bp = 0x%p). "
1854 "Trying to replay bad (0) inode di_next_unlinked field.",
1da177e4
LT
1855 item, bp);
1856 XFS_ERROR_REPORT("xlog_recover_do_inode_buf",
1857 XFS_ERRLEVEL_LOW, mp);
1858 return XFS_ERROR(EFSCORRUPTED);
1859 }
1860
1861 buffer_nextp = (xfs_agino_t *)xfs_buf_offset(bp,
1862 next_unlinked_offset);
87c199c2 1863 *buffer_nextp = *logged_nextp;
1da177e4
LT
1864 }
1865
1866 return 0;
1867}
1868
1869/*
d75afeb3
DC
1870 * Validate the recovered buffer is of the correct type and attach the
1871 * appropriate buffer operations to them for writeback. Magic numbers are in a
1872 * few places:
1873 * the first 16 bits of the buffer (inode buffer, dquot buffer),
1874 * the first 32 bits of the buffer (most blocks),
1875 * inside a struct xfs_da_blkinfo at the start of the buffer.
1da177e4 1876 */
d75afeb3
DC
1877static void
1878xlog_recovery_validate_buf_type(
9abbc539 1879 struct xfs_mount *mp,
e2714bf8 1880 struct xfs_buf *bp,
1da177e4
LT
1881 xfs_buf_log_format_t *buf_f)
1882{
d75afeb3
DC
1883 struct xfs_da_blkinfo *info = bp->b_addr;
1884 __uint32_t magic32;
1885 __uint16_t magic16;
1886 __uint16_t magicda;
1887
1888 magic32 = be32_to_cpu(*(__be32 *)bp->b_addr);
1889 magic16 = be16_to_cpu(*(__be16*)bp->b_addr);
1890 magicda = be16_to_cpu(info->magic);
61fe135c
DC
1891 switch (xfs_blft_from_flags(buf_f)) {
1892 case XFS_BLFT_BTREE_BUF:
d75afeb3 1893 switch (magic32) {
ee1a47ab
CH
1894 case XFS_ABTB_CRC_MAGIC:
1895 case XFS_ABTC_CRC_MAGIC:
1896 case XFS_ABTB_MAGIC:
1897 case XFS_ABTC_MAGIC:
1898 bp->b_ops = &xfs_allocbt_buf_ops;
1899 break;
1900 case XFS_IBT_CRC_MAGIC:
1901 case XFS_IBT_MAGIC:
1902 bp->b_ops = &xfs_inobt_buf_ops;
1903 break;
1904 case XFS_BMAP_CRC_MAGIC:
1905 case XFS_BMAP_MAGIC:
1906 bp->b_ops = &xfs_bmbt_buf_ops;
1907 break;
1908 default:
1909 xfs_warn(mp, "Bad btree block magic!");
1910 ASSERT(0);
1911 break;
1912 }
1913 break;
61fe135c 1914 case XFS_BLFT_AGF_BUF:
d75afeb3 1915 if (magic32 != XFS_AGF_MAGIC) {
4e0e6040
DC
1916 xfs_warn(mp, "Bad AGF block magic!");
1917 ASSERT(0);
1918 break;
1919 }
1920 bp->b_ops = &xfs_agf_buf_ops;
1921 break;
61fe135c 1922 case XFS_BLFT_AGFL_BUF:
77c95bba
CH
1923 if (!xfs_sb_version_hascrc(&mp->m_sb))
1924 break;
d75afeb3 1925 if (magic32 != XFS_AGFL_MAGIC) {
77c95bba
CH
1926 xfs_warn(mp, "Bad AGFL block magic!");
1927 ASSERT(0);
1928 break;
1929 }
1930 bp->b_ops = &xfs_agfl_buf_ops;
1931 break;
61fe135c 1932 case XFS_BLFT_AGI_BUF:
d75afeb3 1933 if (magic32 != XFS_AGI_MAGIC) {
983d09ff
DC
1934 xfs_warn(mp, "Bad AGI block magic!");
1935 ASSERT(0);
1936 break;
1937 }
1938 bp->b_ops = &xfs_agi_buf_ops;
1939 break;
61fe135c
DC
1940 case XFS_BLFT_UDQUOT_BUF:
1941 case XFS_BLFT_PDQUOT_BUF:
1942 case XFS_BLFT_GDQUOT_BUF:
123887e8 1943#ifdef CONFIG_XFS_QUOTA
d75afeb3 1944 if (magic16 != XFS_DQUOT_MAGIC) {
3fe58f30
CH
1945 xfs_warn(mp, "Bad DQUOT block magic!");
1946 ASSERT(0);
1947 break;
1948 }
1949 bp->b_ops = &xfs_dquot_buf_ops;
123887e8
DC
1950#else
1951 xfs_alert(mp,
1952 "Trying to recover dquots without QUOTA support built in!");
1953 ASSERT(0);
1954#endif
3fe58f30 1955 break;
61fe135c 1956 case XFS_BLFT_DINO_BUF:
93848a99
CH
1957 /*
1958 * we get here with inode allocation buffers, not buffers that
1959 * track unlinked list changes.
1960 */
d75afeb3 1961 if (magic16 != XFS_DINODE_MAGIC) {
93848a99
CH
1962 xfs_warn(mp, "Bad INODE block magic!");
1963 ASSERT(0);
1964 break;
1965 }
1966 bp->b_ops = &xfs_inode_buf_ops;
1967 break;
61fe135c 1968 case XFS_BLFT_SYMLINK_BUF:
d75afeb3 1969 if (magic32 != XFS_SYMLINK_MAGIC) {
f948dd76
DC
1970 xfs_warn(mp, "Bad symlink block magic!");
1971 ASSERT(0);
1972 break;
1973 }
1974 bp->b_ops = &xfs_symlink_buf_ops;
1975 break;
61fe135c 1976 case XFS_BLFT_DIR_BLOCK_BUF:
d75afeb3
DC
1977 if (magic32 != XFS_DIR2_BLOCK_MAGIC &&
1978 magic32 != XFS_DIR3_BLOCK_MAGIC) {
1979 xfs_warn(mp, "Bad dir block magic!");
1980 ASSERT(0);
1981 break;
1982 }
1983 bp->b_ops = &xfs_dir3_block_buf_ops;
1984 break;
61fe135c 1985 case XFS_BLFT_DIR_DATA_BUF:
d75afeb3
DC
1986 if (magic32 != XFS_DIR2_DATA_MAGIC &&
1987 magic32 != XFS_DIR3_DATA_MAGIC) {
1988 xfs_warn(mp, "Bad dir data magic!");
1989 ASSERT(0);
1990 break;
1991 }
1992 bp->b_ops = &xfs_dir3_data_buf_ops;
1993 break;
61fe135c 1994 case XFS_BLFT_DIR_FREE_BUF:
d75afeb3
DC
1995 if (magic32 != XFS_DIR2_FREE_MAGIC &&
1996 magic32 != XFS_DIR3_FREE_MAGIC) {
1997 xfs_warn(mp, "Bad dir3 free magic!");
1998 ASSERT(0);
1999 break;
2000 }
2001 bp->b_ops = &xfs_dir3_free_buf_ops;
2002 break;
61fe135c 2003 case XFS_BLFT_DIR_LEAF1_BUF:
d75afeb3
DC
2004 if (magicda != XFS_DIR2_LEAF1_MAGIC &&
2005 magicda != XFS_DIR3_LEAF1_MAGIC) {
2006 xfs_warn(mp, "Bad dir leaf1 magic!");
2007 ASSERT(0);
2008 break;
2009 }
2010 bp->b_ops = &xfs_dir3_leaf1_buf_ops;
2011 break;
61fe135c 2012 case XFS_BLFT_DIR_LEAFN_BUF:
d75afeb3
DC
2013 if (magicda != XFS_DIR2_LEAFN_MAGIC &&
2014 magicda != XFS_DIR3_LEAFN_MAGIC) {
2015 xfs_warn(mp, "Bad dir leafn magic!");
2016 ASSERT(0);
2017 break;
2018 }
2019 bp->b_ops = &xfs_dir3_leafn_buf_ops;
2020 break;
61fe135c 2021 case XFS_BLFT_DA_NODE_BUF:
d75afeb3
DC
2022 if (magicda != XFS_DA_NODE_MAGIC &&
2023 magicda != XFS_DA3_NODE_MAGIC) {
2024 xfs_warn(mp, "Bad da node magic!");
2025 ASSERT(0);
2026 break;
2027 }
2028 bp->b_ops = &xfs_da3_node_buf_ops;
2029 break;
61fe135c 2030 case XFS_BLFT_ATTR_LEAF_BUF:
d75afeb3
DC
2031 if (magicda != XFS_ATTR_LEAF_MAGIC &&
2032 magicda != XFS_ATTR3_LEAF_MAGIC) {
2033 xfs_warn(mp, "Bad attr leaf magic!");
2034 ASSERT(0);
2035 break;
2036 }
2037 bp->b_ops = &xfs_attr3_leaf_buf_ops;
2038 break;
61fe135c 2039 case XFS_BLFT_ATTR_RMT_BUF:
d75afeb3
DC
2040 if (!xfs_sb_version_hascrc(&mp->m_sb))
2041 break;
cab09a81 2042 if (magic32 != XFS_ATTR3_RMT_MAGIC) {
d75afeb3
DC
2043 xfs_warn(mp, "Bad attr remote magic!");
2044 ASSERT(0);
2045 break;
2046 }
2047 bp->b_ops = &xfs_attr3_rmt_buf_ops;
2048 break;
04a1e6c5
DC
2049 case XFS_BLFT_SB_BUF:
2050 if (magic32 != XFS_SB_MAGIC) {
2051 xfs_warn(mp, "Bad SB block magic!");
2052 ASSERT(0);
2053 break;
2054 }
2055 bp->b_ops = &xfs_sb_buf_ops;
2056 break;
ee1a47ab 2057 default:
61fe135c
DC
2058 xfs_warn(mp, "Unknown buffer type %d!",
2059 xfs_blft_from_flags(buf_f));
ee1a47ab
CH
2060 break;
2061 }
1da177e4
LT
2062}
2063
d75afeb3
DC
2064/*
2065 * Perform a 'normal' buffer recovery. Each logged region of the
2066 * buffer should be copied over the corresponding region in the
2067 * given buffer. The bitmap in the buf log format structure indicates
2068 * where to place the logged data.
2069 */
2070STATIC void
2071xlog_recover_do_reg_buffer(
2072 struct xfs_mount *mp,
2073 xlog_recover_item_t *item,
2074 struct xfs_buf *bp,
2075 xfs_buf_log_format_t *buf_f)
2076{
2077 int i;
2078 int bit;
2079 int nbits;
2080 int error;
2081
2082 trace_xfs_log_recover_buf_reg_buf(mp->m_log, buf_f);
2083
2084 bit = 0;
2085 i = 1; /* 0 is the buf format structure */
2086 while (1) {
2087 bit = xfs_next_bit(buf_f->blf_data_map,
2088 buf_f->blf_map_size, bit);
2089 if (bit == -1)
2090 break;
2091 nbits = xfs_contig_bits(buf_f->blf_data_map,
2092 buf_f->blf_map_size, bit);
2093 ASSERT(nbits > 0);
2094 ASSERT(item->ri_buf[i].i_addr != NULL);
2095 ASSERT(item->ri_buf[i].i_len % XFS_BLF_CHUNK == 0);
2096 ASSERT(BBTOB(bp->b_io_length) >=
2097 ((uint)bit << XFS_BLF_SHIFT) + (nbits << XFS_BLF_SHIFT));
2098
709da6a6
DC
2099 /*
2100 * The dirty regions logged in the buffer, even though
2101 * contiguous, may span multiple chunks. This is because the
2102 * dirty region may span a physical page boundary in a buffer
2103 * and hence be split into two separate vectors for writing into
2104 * the log. Hence we need to trim nbits back to the length of
2105 * the current region being copied out of the log.
2106 */
2107 if (item->ri_buf[i].i_len < (nbits << XFS_BLF_SHIFT))
2108 nbits = item->ri_buf[i].i_len >> XFS_BLF_SHIFT;
2109
d75afeb3
DC
2110 /*
2111 * Do a sanity check if this is a dquot buffer. Just checking
2112 * the first dquot in the buffer should do. XXXThis is
2113 * probably a good thing to do for other buf types also.
2114 */
2115 error = 0;
2116 if (buf_f->blf_flags &
2117 (XFS_BLF_UDQUOT_BUF|XFS_BLF_PDQUOT_BUF|XFS_BLF_GDQUOT_BUF)) {
2118 if (item->ri_buf[i].i_addr == NULL) {
2119 xfs_alert(mp,
2120 "XFS: NULL dquot in %s.", __func__);
2121 goto next;
2122 }
2123 if (item->ri_buf[i].i_len < sizeof(xfs_disk_dquot_t)) {
2124 xfs_alert(mp,
2125 "XFS: dquot too small (%d) in %s.",
2126 item->ri_buf[i].i_len, __func__);
2127 goto next;
2128 }
2129 error = xfs_qm_dqcheck(mp, item->ri_buf[i].i_addr,
2130 -1, 0, XFS_QMOPT_DOWARN,
2131 "dquot_buf_recover");
2132 if (error)
2133 goto next;
2134 }
2135
2136 memcpy(xfs_buf_offset(bp,
2137 (uint)bit << XFS_BLF_SHIFT), /* dest */
2138 item->ri_buf[i].i_addr, /* source */
2139 nbits<<XFS_BLF_SHIFT); /* length */
2140 next:
2141 i++;
2142 bit += nbits;
2143 }
2144
2145 /* Shouldn't be any more regions */
2146 ASSERT(i == item->ri_total);
2147
2148 xlog_recovery_validate_buf_type(mp, bp, buf_f);
d75afeb3
DC
2149}
2150
1da177e4
LT
2151/*
2152 * Do some primitive error checking on ondisk dquot data structures.
2153 */
2154int
2155xfs_qm_dqcheck(
a0fa2b67 2156 struct xfs_mount *mp,
1da177e4
LT
2157 xfs_disk_dquot_t *ddq,
2158 xfs_dqid_t id,
2159 uint type, /* used only when IO_dorepair is true */
2160 uint flags,
2161 char *str)
2162{
2163 xfs_dqblk_t *d = (xfs_dqblk_t *)ddq;
2164 int errs = 0;
2165
2166 /*
2167 * We can encounter an uninitialized dquot buffer for 2 reasons:
2168 * 1. If we crash while deleting the quotainode(s), and those blks got
2169 * used for user data. This is because we take the path of regular
2170 * file deletion; however, the size field of quotainodes is never
2171 * updated, so all the tricks that we play in itruncate_finish
2172 * don't quite matter.
2173 *
2174 * 2. We don't play the quota buffers when there's a quotaoff logitem.
2175 * But the allocation will be replayed so we'll end up with an
2176 * uninitialized quota block.
2177 *
2178 * This is all fine; things are still consistent, and we haven't lost
2179 * any quota information. Just don't complain about bad dquot blks.
2180 */
69ef921b 2181 if (ddq->d_magic != cpu_to_be16(XFS_DQUOT_MAGIC)) {
1da177e4 2182 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67 2183 xfs_alert(mp,
1da177e4 2184 "%s : XFS dquot ID 0x%x, magic 0x%x != 0x%x",
1149d96a 2185 str, id, be16_to_cpu(ddq->d_magic), XFS_DQUOT_MAGIC);
1da177e4
LT
2186 errs++;
2187 }
1149d96a 2188 if (ddq->d_version != XFS_DQUOT_VERSION) {
1da177e4 2189 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67 2190 xfs_alert(mp,
1da177e4 2191 "%s : XFS dquot ID 0x%x, version 0x%x != 0x%x",
1149d96a 2192 str, id, ddq->d_version, XFS_DQUOT_VERSION);
1da177e4
LT
2193 errs++;
2194 }
2195
1149d96a
CH
2196 if (ddq->d_flags != XFS_DQ_USER &&
2197 ddq->d_flags != XFS_DQ_PROJ &&
2198 ddq->d_flags != XFS_DQ_GROUP) {
1da177e4 2199 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67 2200 xfs_alert(mp,
1da177e4 2201 "%s : XFS dquot ID 0x%x, unknown flags 0x%x",
1149d96a 2202 str, id, ddq->d_flags);
1da177e4
LT
2203 errs++;
2204 }
2205
1149d96a 2206 if (id != -1 && id != be32_to_cpu(ddq->d_id)) {
1da177e4 2207 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67 2208 xfs_alert(mp,
1da177e4
LT
2209 "%s : ondisk-dquot 0x%p, ID mismatch: "
2210 "0x%x expected, found id 0x%x",
1149d96a 2211 str, ddq, id, be32_to_cpu(ddq->d_id));
1da177e4
LT
2212 errs++;
2213 }
2214
2215 if (!errs && ddq->d_id) {
1149d96a 2216 if (ddq->d_blk_softlimit &&
d0a3fe67 2217 be64_to_cpu(ddq->d_bcount) >
1149d96a 2218 be64_to_cpu(ddq->d_blk_softlimit)) {
1da177e4
LT
2219 if (!ddq->d_btimer) {
2220 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67
DC
2221 xfs_alert(mp,
2222 "%s : Dquot ID 0x%x (0x%p) BLK TIMER NOT STARTED",
1149d96a 2223 str, (int)be32_to_cpu(ddq->d_id), ddq);
1da177e4
LT
2224 errs++;
2225 }
2226 }
1149d96a 2227 if (ddq->d_ino_softlimit &&
d0a3fe67 2228 be64_to_cpu(ddq->d_icount) >
1149d96a 2229 be64_to_cpu(ddq->d_ino_softlimit)) {
1da177e4
LT
2230 if (!ddq->d_itimer) {
2231 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67
DC
2232 xfs_alert(mp,
2233 "%s : Dquot ID 0x%x (0x%p) INODE TIMER NOT STARTED",
1149d96a 2234 str, (int)be32_to_cpu(ddq->d_id), ddq);
1da177e4
LT
2235 errs++;
2236 }
2237 }
1149d96a 2238 if (ddq->d_rtb_softlimit &&
d0a3fe67 2239 be64_to_cpu(ddq->d_rtbcount) >
1149d96a 2240 be64_to_cpu(ddq->d_rtb_softlimit)) {
1da177e4
LT
2241 if (!ddq->d_rtbtimer) {
2242 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67
DC
2243 xfs_alert(mp,
2244 "%s : Dquot ID 0x%x (0x%p) RTBLK TIMER NOT STARTED",
1149d96a 2245 str, (int)be32_to_cpu(ddq->d_id), ddq);
1da177e4
LT
2246 errs++;
2247 }
2248 }
2249 }
2250
2251 if (!errs || !(flags & XFS_QMOPT_DQREPAIR))
2252 return errs;
2253
2254 if (flags & XFS_QMOPT_DOWARN)
a0fa2b67 2255 xfs_notice(mp, "Re-initializing dquot ID 0x%x", id);
1da177e4
LT
2256
2257 /*
2258 * Typically, a repair is only requested by quotacheck.
2259 */
2260 ASSERT(id != -1);
2261 ASSERT(flags & XFS_QMOPT_DQREPAIR);
2262 memset(d, 0, sizeof(xfs_dqblk_t));
1149d96a
CH
2263
2264 d->dd_diskdq.d_magic = cpu_to_be16(XFS_DQUOT_MAGIC);
2265 d->dd_diskdq.d_version = XFS_DQUOT_VERSION;
2266 d->dd_diskdq.d_flags = type;
2267 d->dd_diskdq.d_id = cpu_to_be32(id);
1da177e4
LT
2268
2269 return errs;
2270}
2271
2272/*
2273 * Perform a dquot buffer recovery.
2274 * Simple algorithm: if we have found a QUOTAOFF logitem of the same type
2275 * (ie. USR or GRP), then just toss this buffer away; don't recover it.
2276 * Else, treat it as a regular buffer and do recovery.
2277 */
2278STATIC void
2279xlog_recover_do_dquot_buffer(
9a8d2fdb
MT
2280 struct xfs_mount *mp,
2281 struct xlog *log,
2282 struct xlog_recover_item *item,
2283 struct xfs_buf *bp,
2284 struct xfs_buf_log_format *buf_f)
1da177e4
LT
2285{
2286 uint type;
2287
9abbc539
DC
2288 trace_xfs_log_recover_buf_dquot_buf(log, buf_f);
2289
1da177e4
LT
2290 /*
2291 * Filesystems are required to send in quota flags at mount time.
2292 */
2293 if (mp->m_qflags == 0) {
2294 return;
2295 }
2296
2297 type = 0;
c1155410 2298 if (buf_f->blf_flags & XFS_BLF_UDQUOT_BUF)
1da177e4 2299 type |= XFS_DQ_USER;
c1155410 2300 if (buf_f->blf_flags & XFS_BLF_PDQUOT_BUF)
c8ad20ff 2301 type |= XFS_DQ_PROJ;
c1155410 2302 if (buf_f->blf_flags & XFS_BLF_GDQUOT_BUF)
1da177e4
LT
2303 type |= XFS_DQ_GROUP;
2304 /*
2305 * This type of quotas was turned off, so ignore this buffer
2306 */
2307 if (log->l_quotaoffs_flag & type)
2308 return;
2309
9abbc539 2310 xlog_recover_do_reg_buffer(mp, item, bp, buf_f);
1da177e4
LT
2311}
2312
2313/*
2314 * This routine replays a modification made to a buffer at runtime.
2315 * There are actually two types of buffer, regular and inode, which
2316 * are handled differently. Inode buffers are handled differently
2317 * in that we only recover a specific set of data from them, namely
2318 * the inode di_next_unlinked fields. This is because all other inode
2319 * data is actually logged via inode records and any data we replay
2320 * here which overlaps that may be stale.
2321 *
2322 * When meta-data buffers are freed at run time we log a buffer item
c1155410 2323 * with the XFS_BLF_CANCEL bit set to indicate that previous copies
1da177e4
LT
2324 * of the buffer in the log should not be replayed at recovery time.
2325 * This is so that if the blocks covered by the buffer are reused for
2326 * file data before we crash we don't end up replaying old, freed
2327 * meta-data into a user's file.
2328 *
2329 * To handle the cancellation of buffer log items, we make two passes
2330 * over the log during recovery. During the first we build a table of
2331 * those buffers which have been cancelled, and during the second we
2332 * only replay those buffers which do not have corresponding cancel
2333 * records in the table. See xlog_recover_do_buffer_pass[1,2] above
2334 * for more details on the implementation of the table of cancel records.
2335 */
2336STATIC int
c9f71f5f 2337xlog_recover_buffer_pass2(
9a8d2fdb
MT
2338 struct xlog *log,
2339 struct list_head *buffer_list,
2340 struct xlog_recover_item *item)
1da177e4 2341{
4e0d5f92 2342 xfs_buf_log_format_t *buf_f = item->ri_buf[0].i_addr;
e2714bf8 2343 xfs_mount_t *mp = log->l_mp;
1da177e4
LT
2344 xfs_buf_t *bp;
2345 int error;
6ad112bf 2346 uint buf_flags;
1da177e4 2347
c9f71f5f
CH
2348 /*
2349 * In this pass we only want to recover all the buffers which have
2350 * not been cancelled and are not cancellation buffers themselves.
2351 */
2352 if (xlog_check_buffer_cancelled(log, buf_f->blf_blkno,
2353 buf_f->blf_len, buf_f->blf_flags)) {
2354 trace_xfs_log_recover_buf_cancel(log, buf_f);
1da177e4 2355 return 0;
1da177e4 2356 }
c9f71f5f 2357
9abbc539 2358 trace_xfs_log_recover_buf_recover(log, buf_f);
1da177e4 2359
a8acad70 2360 buf_flags = 0;
611c9946
DC
2361 if (buf_f->blf_flags & XFS_BLF_INODE_BUF)
2362 buf_flags |= XBF_UNMAPPED;
6ad112bf 2363
e2714bf8 2364 bp = xfs_buf_read(mp->m_ddev_targp, buf_f->blf_blkno, buf_f->blf_len,
c3f8fc73 2365 buf_flags, NULL);
ac4d6888
CS
2366 if (!bp)
2367 return XFS_ERROR(ENOMEM);
e5702805 2368 error = bp->b_error;
5a52c2a5 2369 if (error) {
901796af 2370 xfs_buf_ioerror_alert(bp, "xlog_recover_do..(read#1)");
1da177e4
LT
2371 xfs_buf_relse(bp);
2372 return error;
2373 }
2374
e2714bf8 2375 if (buf_f->blf_flags & XFS_BLF_INODE_BUF) {
1da177e4 2376 error = xlog_recover_do_inode_buffer(mp, item, bp, buf_f);
e2714bf8 2377 } else if (buf_f->blf_flags &
c1155410 2378 (XFS_BLF_UDQUOT_BUF|XFS_BLF_PDQUOT_BUF|XFS_BLF_GDQUOT_BUF)) {
1da177e4
LT
2379 xlog_recover_do_dquot_buffer(mp, log, item, bp, buf_f);
2380 } else {
9abbc539 2381 xlog_recover_do_reg_buffer(mp, item, bp, buf_f);
1da177e4
LT
2382 }
2383 if (error)
2384 return XFS_ERROR(error);
2385
2386 /*
2387 * Perform delayed write on the buffer. Asynchronous writes will be
2388 * slower when taking into account all the buffers to be flushed.
2389 *
2390 * Also make sure that only inode buffers with good sizes stay in
2391 * the buffer cache. The kernel moves inodes in buffers of 1 block
2392 * or XFS_INODE_CLUSTER_SIZE bytes, whichever is bigger. The inode
2393 * buffers in the log can be a different size if the log was generated
2394 * by an older kernel using unclustered inode buffers or a newer kernel
2395 * running with a different inode cluster size. Regardless, if the
2396 * the inode buffer size isn't MAX(blocksize, XFS_INODE_CLUSTER_SIZE)
2397 * for *our* value of XFS_INODE_CLUSTER_SIZE, then we need to keep
2398 * the buffer out of the buffer cache so that the buffer won't
2399 * overlap with future reads of those inodes.
2400 */
2401 if (XFS_DINODE_MAGIC ==
b53e675d 2402 be16_to_cpu(*((__be16 *)xfs_buf_offset(bp, 0))) &&
aa0e8833 2403 (BBTOB(bp->b_io_length) != MAX(log->l_mp->m_sb.sb_blocksize,
1da177e4 2404 (__uint32_t)XFS_INODE_CLUSTER_SIZE(log->l_mp)))) {
c867cb61 2405 xfs_buf_stale(bp);
c2b006c1 2406 error = xfs_bwrite(bp);
1da177e4 2407 } else {
ebad861b 2408 ASSERT(bp->b_target->bt_mount == mp);
cb669ca5 2409 bp->b_iodone = xlog_recover_iodone;
43ff2122 2410 xfs_buf_delwri_queue(bp, buffer_list);
1da177e4
LT
2411 }
2412
c2b006c1
CH
2413 xfs_buf_relse(bp);
2414 return error;
1da177e4
LT
2415}
2416
2417STATIC int
c9f71f5f 2418xlog_recover_inode_pass2(
9a8d2fdb
MT
2419 struct xlog *log,
2420 struct list_head *buffer_list,
2421 struct xlog_recover_item *item)
1da177e4
LT
2422{
2423 xfs_inode_log_format_t *in_f;
c9f71f5f 2424 xfs_mount_t *mp = log->l_mp;
1da177e4 2425 xfs_buf_t *bp;
1da177e4 2426 xfs_dinode_t *dip;
1da177e4
LT
2427 int len;
2428 xfs_caddr_t src;
2429 xfs_caddr_t dest;
2430 int error;
2431 int attr_index;
2432 uint fields;
347d1c01 2433 xfs_icdinode_t *dicp;
93848a99 2434 uint isize;
6d192a9b 2435 int need_free = 0;
1da177e4 2436
6d192a9b 2437 if (item->ri_buf[0].i_len == sizeof(xfs_inode_log_format_t)) {
4e0d5f92 2438 in_f = item->ri_buf[0].i_addr;
6d192a9b 2439 } else {
4e0d5f92 2440 in_f = kmem_alloc(sizeof(xfs_inode_log_format_t), KM_SLEEP);
6d192a9b
TS
2441 need_free = 1;
2442 error = xfs_inode_item_format_convert(&item->ri_buf[0], in_f);
2443 if (error)
2444 goto error;
2445 }
1da177e4
LT
2446
2447 /*
2448 * Inode buffers can be freed, look out for it,
2449 * and do not replay the inode.
2450 */
a1941895
CH
2451 if (xlog_check_buffer_cancelled(log, in_f->ilf_blkno,
2452 in_f->ilf_len, 0)) {
6d192a9b 2453 error = 0;
9abbc539 2454 trace_xfs_log_recover_inode_cancel(log, in_f);
6d192a9b
TS
2455 goto error;
2456 }
9abbc539 2457 trace_xfs_log_recover_inode_recover(log, in_f);
1da177e4 2458
c3f8fc73 2459 bp = xfs_buf_read(mp->m_ddev_targp, in_f->ilf_blkno, in_f->ilf_len, 0,
93848a99 2460 &xfs_inode_buf_ops);
ac4d6888
CS
2461 if (!bp) {
2462 error = ENOMEM;
2463 goto error;
2464 }
e5702805 2465 error = bp->b_error;
5a52c2a5 2466 if (error) {
901796af 2467 xfs_buf_ioerror_alert(bp, "xlog_recover_do..(read#2)");
1da177e4 2468 xfs_buf_relse(bp);
6d192a9b 2469 goto error;
1da177e4 2470 }
1da177e4 2471 ASSERT(in_f->ilf_fields & XFS_ILOG_CORE);
a1941895 2472 dip = (xfs_dinode_t *)xfs_buf_offset(bp, in_f->ilf_boffset);
1da177e4
LT
2473
2474 /*
2475 * Make sure the place we're flushing out to really looks
2476 * like an inode!
2477 */
69ef921b 2478 if (unlikely(dip->di_magic != cpu_to_be16(XFS_DINODE_MAGIC))) {
1da177e4 2479 xfs_buf_relse(bp);
a0fa2b67
DC
2480 xfs_alert(mp,
2481 "%s: Bad inode magic number, dip = 0x%p, dino bp = 0x%p, ino = %Ld",
2482 __func__, dip, bp, in_f->ilf_ino);
c9f71f5f 2483 XFS_ERROR_REPORT("xlog_recover_inode_pass2(1)",
1da177e4 2484 XFS_ERRLEVEL_LOW, mp);
6d192a9b
TS
2485 error = EFSCORRUPTED;
2486 goto error;
1da177e4 2487 }
4e0d5f92 2488 dicp = item->ri_buf[1].i_addr;
1da177e4
LT
2489 if (unlikely(dicp->di_magic != XFS_DINODE_MAGIC)) {
2490 xfs_buf_relse(bp);
a0fa2b67
DC
2491 xfs_alert(mp,
2492 "%s: Bad inode log record, rec ptr 0x%p, ino %Ld",
2493 __func__, item, in_f->ilf_ino);
c9f71f5f 2494 XFS_ERROR_REPORT("xlog_recover_inode_pass2(2)",
1da177e4 2495 XFS_ERRLEVEL_LOW, mp);
6d192a9b
TS
2496 error = EFSCORRUPTED;
2497 goto error;
1da177e4
LT
2498 }
2499
2500 /* Skip replay when the on disk inode is newer than the log one */
81591fe2 2501 if (dicp->di_flushiter < be16_to_cpu(dip->di_flushiter)) {
1da177e4
LT
2502 /*
2503 * Deal with the wrap case, DI_MAX_FLUSH is less
2504 * than smaller numbers
2505 */
81591fe2 2506 if (be16_to_cpu(dip->di_flushiter) == DI_MAX_FLUSH &&
347d1c01 2507 dicp->di_flushiter < (DI_MAX_FLUSH >> 1)) {
1da177e4
LT
2508 /* do nothing */
2509 } else {
2510 xfs_buf_relse(bp);
9abbc539 2511 trace_xfs_log_recover_inode_skip(log, in_f);
6d192a9b
TS
2512 error = 0;
2513 goto error;
1da177e4
LT
2514 }
2515 }
2516 /* Take the opportunity to reset the flush iteration count */
2517 dicp->di_flushiter = 0;
2518
abbede1b 2519 if (unlikely(S_ISREG(dicp->di_mode))) {
1da177e4
LT
2520 if ((dicp->di_format != XFS_DINODE_FMT_EXTENTS) &&
2521 (dicp->di_format != XFS_DINODE_FMT_BTREE)) {
c9f71f5f 2522 XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(3)",
1da177e4
LT
2523 XFS_ERRLEVEL_LOW, mp, dicp);
2524 xfs_buf_relse(bp);
a0fa2b67
DC
2525 xfs_alert(mp,
2526 "%s: Bad regular inode log record, rec ptr 0x%p, "
2527 "ino ptr = 0x%p, ino bp = 0x%p, ino %Ld",
2528 __func__, item, dip, bp, in_f->ilf_ino);
6d192a9b
TS
2529 error = EFSCORRUPTED;
2530 goto error;
1da177e4 2531 }
abbede1b 2532 } else if (unlikely(S_ISDIR(dicp->di_mode))) {
1da177e4
LT
2533 if ((dicp->di_format != XFS_DINODE_FMT_EXTENTS) &&
2534 (dicp->di_format != XFS_DINODE_FMT_BTREE) &&
2535 (dicp->di_format != XFS_DINODE_FMT_LOCAL)) {
c9f71f5f 2536 XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(4)",
1da177e4
LT
2537 XFS_ERRLEVEL_LOW, mp, dicp);
2538 xfs_buf_relse(bp);
a0fa2b67
DC
2539 xfs_alert(mp,
2540 "%s: Bad dir inode log record, rec ptr 0x%p, "
2541 "ino ptr = 0x%p, ino bp = 0x%p, ino %Ld",
2542 __func__, item, dip, bp, in_f->ilf_ino);
6d192a9b
TS
2543 error = EFSCORRUPTED;
2544 goto error;
1da177e4
LT
2545 }
2546 }
2547 if (unlikely(dicp->di_nextents + dicp->di_anextents > dicp->di_nblocks)){
c9f71f5f 2548 XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(5)",
1da177e4
LT
2549 XFS_ERRLEVEL_LOW, mp, dicp);
2550 xfs_buf_relse(bp);
a0fa2b67
DC
2551 xfs_alert(mp,
2552 "%s: Bad inode log record, rec ptr 0x%p, dino ptr 0x%p, "
2553 "dino bp 0x%p, ino %Ld, total extents = %d, nblocks = %Ld",
2554 __func__, item, dip, bp, in_f->ilf_ino,
1da177e4
LT
2555 dicp->di_nextents + dicp->di_anextents,
2556 dicp->di_nblocks);
6d192a9b
TS
2557 error = EFSCORRUPTED;
2558 goto error;
1da177e4
LT
2559 }
2560 if (unlikely(dicp->di_forkoff > mp->m_sb.sb_inodesize)) {
c9f71f5f 2561 XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(6)",
1da177e4
LT
2562 XFS_ERRLEVEL_LOW, mp, dicp);
2563 xfs_buf_relse(bp);
a0fa2b67
DC
2564 xfs_alert(mp,
2565 "%s: Bad inode log record, rec ptr 0x%p, dino ptr 0x%p, "
2566 "dino bp 0x%p, ino %Ld, forkoff 0x%x", __func__,
c9f71f5f 2567 item, dip, bp, in_f->ilf_ino, dicp->di_forkoff);
6d192a9b
TS
2568 error = EFSCORRUPTED;
2569 goto error;
1da177e4 2570 }
93848a99
CH
2571 isize = xfs_icdinode_size(dicp->di_version);
2572 if (unlikely(item->ri_buf[1].i_len > isize)) {
c9f71f5f 2573 XFS_CORRUPTION_ERROR("xlog_recover_inode_pass2(7)",
1da177e4
LT
2574 XFS_ERRLEVEL_LOW, mp, dicp);
2575 xfs_buf_relse(bp);
a0fa2b67
DC
2576 xfs_alert(mp,
2577 "%s: Bad inode log record length %d, rec ptr 0x%p",
2578 __func__, item->ri_buf[1].i_len, item);
6d192a9b
TS
2579 error = EFSCORRUPTED;
2580 goto error;
1da177e4
LT
2581 }
2582
2583 /* The core is in in-core format */
93848a99 2584 xfs_dinode_to_disk(dip, dicp);
1da177e4
LT
2585
2586 /* the rest is in on-disk format */
93848a99
CH
2587 if (item->ri_buf[1].i_len > isize) {
2588 memcpy((char *)dip + isize,
2589 item->ri_buf[1].i_addr + isize,
2590 item->ri_buf[1].i_len - isize);
1da177e4
LT
2591 }
2592
2593 fields = in_f->ilf_fields;
2594 switch (fields & (XFS_ILOG_DEV | XFS_ILOG_UUID)) {
2595 case XFS_ILOG_DEV:
81591fe2 2596 xfs_dinode_put_rdev(dip, in_f->ilf_u.ilfu_rdev);
1da177e4
LT
2597 break;
2598 case XFS_ILOG_UUID:
81591fe2
CH
2599 memcpy(XFS_DFORK_DPTR(dip),
2600 &in_f->ilf_u.ilfu_uuid,
2601 sizeof(uuid_t));
1da177e4
LT
2602 break;
2603 }
2604
2605 if (in_f->ilf_size == 2)
2606 goto write_inode_buffer;
2607 len = item->ri_buf[2].i_len;
2608 src = item->ri_buf[2].i_addr;
2609 ASSERT(in_f->ilf_size <= 4);
2610 ASSERT((in_f->ilf_size == 3) || (fields & XFS_ILOG_AFORK));
2611 ASSERT(!(fields & XFS_ILOG_DFORK) ||
2612 (len == in_f->ilf_dsize));
2613
2614 switch (fields & XFS_ILOG_DFORK) {
2615 case XFS_ILOG_DDATA:
2616 case XFS_ILOG_DEXT:
81591fe2 2617 memcpy(XFS_DFORK_DPTR(dip), src, len);
1da177e4
LT
2618 break;
2619
2620 case XFS_ILOG_DBROOT:
7cc95a82 2621 xfs_bmbt_to_bmdr(mp, (struct xfs_btree_block *)src, len,
81591fe2 2622 (xfs_bmdr_block_t *)XFS_DFORK_DPTR(dip),
1da177e4
LT
2623 XFS_DFORK_DSIZE(dip, mp));
2624 break;
2625
2626 default:
2627 /*
2628 * There are no data fork flags set.
2629 */
2630 ASSERT((fields & XFS_ILOG_DFORK) == 0);
2631 break;
2632 }
2633
2634 /*
2635 * If we logged any attribute data, recover it. There may or
2636 * may not have been any other non-core data logged in this
2637 * transaction.
2638 */
2639 if (in_f->ilf_fields & XFS_ILOG_AFORK) {
2640 if (in_f->ilf_fields & XFS_ILOG_DFORK) {
2641 attr_index = 3;
2642 } else {
2643 attr_index = 2;
2644 }
2645 len = item->ri_buf[attr_index].i_len;
2646 src = item->ri_buf[attr_index].i_addr;
2647 ASSERT(len == in_f->ilf_asize);
2648
2649 switch (in_f->ilf_fields & XFS_ILOG_AFORK) {
2650 case XFS_ILOG_ADATA:
2651 case XFS_ILOG_AEXT:
2652 dest = XFS_DFORK_APTR(dip);
2653 ASSERT(len <= XFS_DFORK_ASIZE(dip, mp));
2654 memcpy(dest, src, len);
2655 break;
2656
2657 case XFS_ILOG_ABROOT:
2658 dest = XFS_DFORK_APTR(dip);
7cc95a82
CH
2659 xfs_bmbt_to_bmdr(mp, (struct xfs_btree_block *)src,
2660 len, (xfs_bmdr_block_t*)dest,
1da177e4
LT
2661 XFS_DFORK_ASIZE(dip, mp));
2662 break;
2663
2664 default:
a0fa2b67 2665 xfs_warn(log->l_mp, "%s: Invalid flag", __func__);
1da177e4
LT
2666 ASSERT(0);
2667 xfs_buf_relse(bp);
6d192a9b
TS
2668 error = EIO;
2669 goto error;
1da177e4
LT
2670 }
2671 }
2672
2673write_inode_buffer:
93848a99
CH
2674 /* re-generate the checksum. */
2675 xfs_dinode_calc_crc(log->l_mp, dip);
2676
ebad861b 2677 ASSERT(bp->b_target->bt_mount == mp);
cb669ca5 2678 bp->b_iodone = xlog_recover_iodone;
43ff2122 2679 xfs_buf_delwri_queue(bp, buffer_list);
61551f1e 2680 xfs_buf_relse(bp);
6d192a9b
TS
2681error:
2682 if (need_free)
f0e2d93c 2683 kmem_free(in_f);
6d192a9b 2684 return XFS_ERROR(error);
1da177e4
LT
2685}
2686
2687/*
9a8d2fdb 2688 * Recover QUOTAOFF records. We simply make a note of it in the xlog
1da177e4
LT
2689 * structure, so that we know not to do any dquot item or dquot buffer recovery,
2690 * of that type.
2691 */
2692STATIC int
c9f71f5f 2693xlog_recover_quotaoff_pass1(
9a8d2fdb
MT
2694 struct xlog *log,
2695 struct xlog_recover_item *item)
1da177e4 2696{
c9f71f5f 2697 xfs_qoff_logformat_t *qoff_f = item->ri_buf[0].i_addr;
1da177e4
LT
2698 ASSERT(qoff_f);
2699
2700 /*
2701 * The logitem format's flag tells us if this was user quotaoff,
77a7cce4 2702 * group/project quotaoff or both.
1da177e4
LT
2703 */
2704 if (qoff_f->qf_flags & XFS_UQUOTA_ACCT)
2705 log->l_quotaoffs_flag |= XFS_DQ_USER;
77a7cce4
NS
2706 if (qoff_f->qf_flags & XFS_PQUOTA_ACCT)
2707 log->l_quotaoffs_flag |= XFS_DQ_PROJ;
1da177e4
LT
2708 if (qoff_f->qf_flags & XFS_GQUOTA_ACCT)
2709 log->l_quotaoffs_flag |= XFS_DQ_GROUP;
2710
2711 return (0);
2712}
2713
2714/*
2715 * Recover a dquot record
2716 */
2717STATIC int
c9f71f5f 2718xlog_recover_dquot_pass2(
9a8d2fdb
MT
2719 struct xlog *log,
2720 struct list_head *buffer_list,
2721 struct xlog_recover_item *item)
1da177e4 2722{
c9f71f5f 2723 xfs_mount_t *mp = log->l_mp;
1da177e4
LT
2724 xfs_buf_t *bp;
2725 struct xfs_disk_dquot *ddq, *recddq;
2726 int error;
2727 xfs_dq_logformat_t *dq_f;
2728 uint type;
2729
1da177e4
LT
2730
2731 /*
2732 * Filesystems are required to send in quota flags at mount time.
2733 */
2734 if (mp->m_qflags == 0)
2735 return (0);
2736
4e0d5f92
CH
2737 recddq = item->ri_buf[1].i_addr;
2738 if (recddq == NULL) {
a0fa2b67 2739 xfs_alert(log->l_mp, "NULL dquot in %s.", __func__);
0c5e1ce8
CH
2740 return XFS_ERROR(EIO);
2741 }
8ec6dba2 2742 if (item->ri_buf[1].i_len < sizeof(xfs_disk_dquot_t)) {
a0fa2b67 2743 xfs_alert(log->l_mp, "dquot too small (%d) in %s.",
0c5e1ce8
CH
2744 item->ri_buf[1].i_len, __func__);
2745 return XFS_ERROR(EIO);
2746 }
2747
1da177e4
LT
2748 /*
2749 * This type of quotas was turned off, so ignore this record.
2750 */
b53e675d 2751 type = recddq->d_flags & (XFS_DQ_USER | XFS_DQ_PROJ | XFS_DQ_GROUP);
1da177e4
LT
2752 ASSERT(type);
2753 if (log->l_quotaoffs_flag & type)
2754 return (0);
2755
2756 /*
2757 * At this point we know that quota was _not_ turned off.
2758 * Since the mount flags are not indicating to us otherwise, this
2759 * must mean that quota is on, and the dquot needs to be replayed.
2760 * Remember that we may not have fully recovered the superblock yet,
2761 * so we can't do the usual trick of looking at the SB quota bits.
2762 *
2763 * The other possibility, of course, is that the quota subsystem was
2764 * removed since the last mount - ENOSYS.
2765 */
4e0d5f92 2766 dq_f = item->ri_buf[0].i_addr;
1da177e4 2767 ASSERT(dq_f);
a0fa2b67
DC
2768 error = xfs_qm_dqcheck(mp, recddq, dq_f->qlf_id, 0, XFS_QMOPT_DOWARN,
2769 "xlog_recover_dquot_pass2 (log copy)");
2770 if (error)
1da177e4 2771 return XFS_ERROR(EIO);
1da177e4
LT
2772 ASSERT(dq_f->qlf_len == 1);
2773
7ca790a5 2774 error = xfs_trans_read_buf(mp, NULL, mp->m_ddev_targp, dq_f->qlf_blkno,
c3f8fc73
DC
2775 XFS_FSB_TO_BB(mp, dq_f->qlf_len), 0, &bp,
2776 NULL);
7ca790a5 2777 if (error)
1da177e4 2778 return error;
7ca790a5 2779
1da177e4
LT
2780 ASSERT(bp);
2781 ddq = (xfs_disk_dquot_t *)xfs_buf_offset(bp, dq_f->qlf_boffset);
2782
2783 /*
2784 * At least the magic num portion should be on disk because this
2785 * was among a chunk of dquots created earlier, and we did some
2786 * minimal initialization then.
2787 */
a0fa2b67
DC
2788 error = xfs_qm_dqcheck(mp, ddq, dq_f->qlf_id, 0, XFS_QMOPT_DOWARN,
2789 "xlog_recover_dquot_pass2");
2790 if (error) {
1da177e4
LT
2791 xfs_buf_relse(bp);
2792 return XFS_ERROR(EIO);
2793 }
2794
2795 memcpy(ddq, recddq, item->ri_buf[1].i_len);
2796
2797 ASSERT(dq_f->qlf_size == 2);
ebad861b 2798 ASSERT(bp->b_target->bt_mount == mp);
cb669ca5 2799 bp->b_iodone = xlog_recover_iodone;
43ff2122 2800 xfs_buf_delwri_queue(bp, buffer_list);
61551f1e 2801 xfs_buf_relse(bp);
1da177e4
LT
2802
2803 return (0);
2804}
2805
2806/*
2807 * This routine is called to create an in-core extent free intent
2808 * item from the efi format structure which was logged on disk.
2809 * It allocates an in-core efi, copies the extents from the format
2810 * structure into it, and adds the efi to the AIL with the given
2811 * LSN.
2812 */
6d192a9b 2813STATIC int
c9f71f5f 2814xlog_recover_efi_pass2(
9a8d2fdb
MT
2815 struct xlog *log,
2816 struct xlog_recover_item *item,
2817 xfs_lsn_t lsn)
1da177e4 2818{
6d192a9b 2819 int error;
c9f71f5f 2820 xfs_mount_t *mp = log->l_mp;
1da177e4
LT
2821 xfs_efi_log_item_t *efip;
2822 xfs_efi_log_format_t *efi_formatp;
1da177e4 2823
4e0d5f92 2824 efi_formatp = item->ri_buf[0].i_addr;
1da177e4 2825
1da177e4 2826 efip = xfs_efi_init(mp, efi_formatp->efi_nextents);
6d192a9b
TS
2827 if ((error = xfs_efi_copy_format(&(item->ri_buf[0]),
2828 &(efip->efi_format)))) {
2829 xfs_efi_item_free(efip);
2830 return error;
2831 }
b199c8a4 2832 atomic_set(&efip->efi_next_extent, efi_formatp->efi_nextents);
1da177e4 2833
a9c21c1b 2834 spin_lock(&log->l_ailp->xa_lock);
1da177e4 2835 /*
783a2f65 2836 * xfs_trans_ail_update() drops the AIL lock.
1da177e4 2837 */
e6059949 2838 xfs_trans_ail_update(log->l_ailp, &efip->efi_item, lsn);
6d192a9b 2839 return 0;
1da177e4
LT
2840}
2841
2842
2843/*
2844 * This routine is called when an efd format structure is found in
2845 * a committed transaction in the log. It's purpose is to cancel
2846 * the corresponding efi if it was still in the log. To do this
2847 * it searches the AIL for the efi with an id equal to that in the
2848 * efd format structure. If we find it, we remove the efi from the
2849 * AIL and free it.
2850 */
c9f71f5f
CH
2851STATIC int
2852xlog_recover_efd_pass2(
9a8d2fdb
MT
2853 struct xlog *log,
2854 struct xlog_recover_item *item)
1da177e4 2855{
1da177e4
LT
2856 xfs_efd_log_format_t *efd_formatp;
2857 xfs_efi_log_item_t *efip = NULL;
2858 xfs_log_item_t *lip;
1da177e4 2859 __uint64_t efi_id;
27d8d5fe 2860 struct xfs_ail_cursor cur;
783a2f65 2861 struct xfs_ail *ailp = log->l_ailp;
1da177e4 2862
4e0d5f92 2863 efd_formatp = item->ri_buf[0].i_addr;
6d192a9b
TS
2864 ASSERT((item->ri_buf[0].i_len == (sizeof(xfs_efd_log_format_32_t) +
2865 ((efd_formatp->efd_nextents - 1) * sizeof(xfs_extent_32_t)))) ||
2866 (item->ri_buf[0].i_len == (sizeof(xfs_efd_log_format_64_t) +
2867 ((efd_formatp->efd_nextents - 1) * sizeof(xfs_extent_64_t)))));
1da177e4
LT
2868 efi_id = efd_formatp->efd_efi_id;
2869
2870 /*
2871 * Search for the efi with the id in the efd format structure
2872 * in the AIL.
2873 */
a9c21c1b
DC
2874 spin_lock(&ailp->xa_lock);
2875 lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
1da177e4
LT
2876 while (lip != NULL) {
2877 if (lip->li_type == XFS_LI_EFI) {
2878 efip = (xfs_efi_log_item_t *)lip;
2879 if (efip->efi_format.efi_id == efi_id) {
2880 /*
783a2f65 2881 * xfs_trans_ail_delete() drops the
1da177e4
LT
2882 * AIL lock.
2883 */
04913fdd
DC
2884 xfs_trans_ail_delete(ailp, lip,
2885 SHUTDOWN_CORRUPT_INCORE);
8ae2c0f6 2886 xfs_efi_item_free(efip);
a9c21c1b 2887 spin_lock(&ailp->xa_lock);
27d8d5fe 2888 break;
1da177e4
LT
2889 }
2890 }
a9c21c1b 2891 lip = xfs_trans_ail_cursor_next(ailp, &cur);
1da177e4 2892 }
a9c21c1b
DC
2893 xfs_trans_ail_cursor_done(ailp, &cur);
2894 spin_unlock(&ailp->xa_lock);
c9f71f5f
CH
2895
2896 return 0;
1da177e4
LT
2897}
2898
1da177e4
LT
2899/*
2900 * Free up any resources allocated by the transaction
2901 *
2902 * Remember that EFIs, EFDs, and IUNLINKs are handled later.
2903 */
2904STATIC void
2905xlog_recover_free_trans(
d0450948 2906 struct xlog_recover *trans)
1da177e4 2907{
f0a76953 2908 xlog_recover_item_t *item, *n;
1da177e4
LT
2909 int i;
2910
f0a76953
DC
2911 list_for_each_entry_safe(item, n, &trans->r_itemq, ri_list) {
2912 /* Free the regions in the item. */
2913 list_del(&item->ri_list);
2914 for (i = 0; i < item->ri_cnt; i++)
2915 kmem_free(item->ri_buf[i].i_addr);
1da177e4 2916 /* Free the item itself */
f0a76953
DC
2917 kmem_free(item->ri_buf);
2918 kmem_free(item);
2919 }
1da177e4 2920 /* Free the transaction recover structure */
f0e2d93c 2921 kmem_free(trans);
1da177e4
LT
2922}
2923
d0450948 2924STATIC int
c9f71f5f 2925xlog_recover_commit_pass1(
ad223e60
MT
2926 struct xlog *log,
2927 struct xlog_recover *trans,
2928 struct xlog_recover_item *item)
d0450948 2929{
c9f71f5f 2930 trace_xfs_log_recover_item_recover(log, trans, item, XLOG_RECOVER_PASS1);
d0450948
CH
2931
2932 switch (ITEM_TYPE(item)) {
2933 case XFS_LI_BUF:
c9f71f5f
CH
2934 return xlog_recover_buffer_pass1(log, item);
2935 case XFS_LI_QUOTAOFF:
2936 return xlog_recover_quotaoff_pass1(log, item);
d0450948 2937 case XFS_LI_INODE:
d0450948 2938 case XFS_LI_EFI:
d0450948 2939 case XFS_LI_EFD:
c9f71f5f
CH
2940 case XFS_LI_DQUOT:
2941 /* nothing to do in pass 1 */
d0450948 2942 return 0;
c9f71f5f 2943 default:
a0fa2b67
DC
2944 xfs_warn(log->l_mp, "%s: invalid item type (%d)",
2945 __func__, ITEM_TYPE(item));
c9f71f5f
CH
2946 ASSERT(0);
2947 return XFS_ERROR(EIO);
2948 }
2949}
2950
2951STATIC int
2952xlog_recover_commit_pass2(
ad223e60
MT
2953 struct xlog *log,
2954 struct xlog_recover *trans,
2955 struct list_head *buffer_list,
2956 struct xlog_recover_item *item)
c9f71f5f
CH
2957{
2958 trace_xfs_log_recover_item_recover(log, trans, item, XLOG_RECOVER_PASS2);
2959
2960 switch (ITEM_TYPE(item)) {
2961 case XFS_LI_BUF:
43ff2122 2962 return xlog_recover_buffer_pass2(log, buffer_list, item);
c9f71f5f 2963 case XFS_LI_INODE:
43ff2122 2964 return xlog_recover_inode_pass2(log, buffer_list, item);
c9f71f5f
CH
2965 case XFS_LI_EFI:
2966 return xlog_recover_efi_pass2(log, item, trans->r_lsn);
2967 case XFS_LI_EFD:
2968 return xlog_recover_efd_pass2(log, item);
d0450948 2969 case XFS_LI_DQUOT:
43ff2122 2970 return xlog_recover_dquot_pass2(log, buffer_list, item);
d0450948 2971 case XFS_LI_QUOTAOFF:
c9f71f5f
CH
2972 /* nothing to do in pass2 */
2973 return 0;
d0450948 2974 default:
a0fa2b67
DC
2975 xfs_warn(log->l_mp, "%s: invalid item type (%d)",
2976 __func__, ITEM_TYPE(item));
d0450948
CH
2977 ASSERT(0);
2978 return XFS_ERROR(EIO);
2979 }
2980}
2981
2982/*
2983 * Perform the transaction.
2984 *
2985 * If the transaction modifies a buffer or inode, do it now. Otherwise,
2986 * EFIs and EFDs get queued up by adding entries into the AIL for them.
2987 */
1da177e4
LT
2988STATIC int
2989xlog_recover_commit_trans(
ad223e60 2990 struct xlog *log,
d0450948 2991 struct xlog_recover *trans,
1da177e4
LT
2992 int pass)
2993{
43ff2122 2994 int error = 0, error2;
d0450948 2995 xlog_recover_item_t *item;
43ff2122 2996 LIST_HEAD (buffer_list);
1da177e4 2997
f0a76953 2998 hlist_del(&trans->r_list);
d0450948
CH
2999
3000 error = xlog_recover_reorder_trans(log, trans, pass);
3001 if (error)
1da177e4 3002 return error;
d0450948
CH
3003
3004 list_for_each_entry(item, &trans->r_itemq, ri_list) {
43ff2122
CH
3005 switch (pass) {
3006 case XLOG_RECOVER_PASS1:
c9f71f5f 3007 error = xlog_recover_commit_pass1(log, trans, item);
43ff2122
CH
3008 break;
3009 case XLOG_RECOVER_PASS2:
3010 error = xlog_recover_commit_pass2(log, trans,
3011 &buffer_list, item);
3012 break;
3013 default:
3014 ASSERT(0);
3015 }
3016
d0450948 3017 if (error)
43ff2122 3018 goto out;
d0450948
CH
3019 }
3020
3021 xlog_recover_free_trans(trans);
43ff2122
CH
3022
3023out:
3024 error2 = xfs_buf_delwri_submit(&buffer_list);
3025 return error ? error : error2;
1da177e4
LT
3026}
3027
3028STATIC int
3029xlog_recover_unmount_trans(
ad223e60
MT
3030 struct xlog *log,
3031 struct xlog_recover *trans)
1da177e4
LT
3032{
3033 /* Do nothing now */
a0fa2b67 3034 xfs_warn(log->l_mp, "%s: Unmount LR", __func__);
1da177e4
LT
3035 return 0;
3036}
3037
3038/*
3039 * There are two valid states of the r_state field. 0 indicates that the
3040 * transaction structure is in a normal state. We have either seen the
3041 * start of the transaction or the last operation we added was not a partial
3042 * operation. If the last operation we added to the transaction was a
3043 * partial operation, we need to mark r_state with XLOG_WAS_CONT_TRANS.
3044 *
3045 * NOTE: skip LRs with 0 data length.
3046 */
3047STATIC int
3048xlog_recover_process_data(
9a8d2fdb 3049 struct xlog *log,
f0a76953 3050 struct hlist_head rhash[],
9a8d2fdb 3051 struct xlog_rec_header *rhead,
1da177e4
LT
3052 xfs_caddr_t dp,
3053 int pass)
3054{
3055 xfs_caddr_t lp;
3056 int num_logops;
3057 xlog_op_header_t *ohead;
3058 xlog_recover_t *trans;
3059 xlog_tid_t tid;
3060 int error;
3061 unsigned long hash;
3062 uint flags;
3063
b53e675d
CH
3064 lp = dp + be32_to_cpu(rhead->h_len);
3065 num_logops = be32_to_cpu(rhead->h_num_logops);
1da177e4
LT
3066
3067 /* check the log format matches our own - else we can't recover */
3068 if (xlog_header_check_recover(log->l_mp, rhead))
3069 return (XFS_ERROR(EIO));
3070
3071 while ((dp < lp) && num_logops) {
3072 ASSERT(dp + sizeof(xlog_op_header_t) <= lp);
3073 ohead = (xlog_op_header_t *)dp;
3074 dp += sizeof(xlog_op_header_t);
3075 if (ohead->oh_clientid != XFS_TRANSACTION &&
3076 ohead->oh_clientid != XFS_LOG) {
a0fa2b67
DC
3077 xfs_warn(log->l_mp, "%s: bad clientid 0x%x",
3078 __func__, ohead->oh_clientid);
1da177e4
LT
3079 ASSERT(0);
3080 return (XFS_ERROR(EIO));
3081 }
67fcb7bf 3082 tid = be32_to_cpu(ohead->oh_tid);
1da177e4 3083 hash = XLOG_RHASH(tid);
f0a76953 3084 trans = xlog_recover_find_tid(&rhash[hash], tid);
1da177e4
LT
3085 if (trans == NULL) { /* not found; add new tid */
3086 if (ohead->oh_flags & XLOG_START_TRANS)
3087 xlog_recover_new_tid(&rhash[hash], tid,
b53e675d 3088 be64_to_cpu(rhead->h_lsn));
1da177e4 3089 } else {
9742bb93 3090 if (dp + be32_to_cpu(ohead->oh_len) > lp) {
a0fa2b67
DC
3091 xfs_warn(log->l_mp, "%s: bad length 0x%x",
3092 __func__, be32_to_cpu(ohead->oh_len));
9742bb93
LM
3093 WARN_ON(1);
3094 return (XFS_ERROR(EIO));
3095 }
1da177e4
LT
3096 flags = ohead->oh_flags & ~XLOG_END_TRANS;
3097 if (flags & XLOG_WAS_CONT_TRANS)
3098 flags &= ~XLOG_CONTINUE_TRANS;
3099 switch (flags) {
3100 case XLOG_COMMIT_TRANS:
3101 error = xlog_recover_commit_trans(log,
f0a76953 3102 trans, pass);
1da177e4
LT
3103 break;
3104 case XLOG_UNMOUNT_TRANS:
a0fa2b67 3105 error = xlog_recover_unmount_trans(log, trans);
1da177e4
LT
3106 break;
3107 case XLOG_WAS_CONT_TRANS:
9abbc539
DC
3108 error = xlog_recover_add_to_cont_trans(log,
3109 trans, dp,
3110 be32_to_cpu(ohead->oh_len));
1da177e4
LT
3111 break;
3112 case XLOG_START_TRANS:
a0fa2b67
DC
3113 xfs_warn(log->l_mp, "%s: bad transaction",
3114 __func__);
1da177e4
LT
3115 ASSERT(0);
3116 error = XFS_ERROR(EIO);
3117 break;
3118 case 0:
3119 case XLOG_CONTINUE_TRANS:
9abbc539 3120 error = xlog_recover_add_to_trans(log, trans,
67fcb7bf 3121 dp, be32_to_cpu(ohead->oh_len));
1da177e4
LT
3122 break;
3123 default:
a0fa2b67
DC
3124 xfs_warn(log->l_mp, "%s: bad flag 0x%x",
3125 __func__, flags);
1da177e4
LT
3126 ASSERT(0);
3127 error = XFS_ERROR(EIO);
3128 break;
3129 }
3130 if (error)
3131 return error;
3132 }
67fcb7bf 3133 dp += be32_to_cpu(ohead->oh_len);
1da177e4
LT
3134 num_logops--;
3135 }
3136 return 0;
3137}
3138
3139/*
3140 * Process an extent free intent item that was recovered from
3141 * the log. We need to free the extents that it describes.
3142 */
3c1e2bbe 3143STATIC int
1da177e4
LT
3144xlog_recover_process_efi(
3145 xfs_mount_t *mp,
3146 xfs_efi_log_item_t *efip)
3147{
3148 xfs_efd_log_item_t *efdp;
3149 xfs_trans_t *tp;
3150 int i;
3c1e2bbe 3151 int error = 0;
1da177e4
LT
3152 xfs_extent_t *extp;
3153 xfs_fsblock_t startblock_fsb;
3154
b199c8a4 3155 ASSERT(!test_bit(XFS_EFI_RECOVERED, &efip->efi_flags));
1da177e4
LT
3156
3157 /*
3158 * First check the validity of the extents described by the
3159 * EFI. If any are bad, then assume that all are bad and
3160 * just toss the EFI.
3161 */
3162 for (i = 0; i < efip->efi_format.efi_nextents; i++) {
3163 extp = &(efip->efi_format.efi_extents[i]);
3164 startblock_fsb = XFS_BB_TO_FSB(mp,
3165 XFS_FSB_TO_DADDR(mp, extp->ext_start));
3166 if ((startblock_fsb == 0) ||
3167 (extp->ext_len == 0) ||
3168 (startblock_fsb >= mp->m_sb.sb_dblocks) ||
3169 (extp->ext_len >= mp->m_sb.sb_agblocks)) {
3170 /*
3171 * This will pull the EFI from the AIL and
3172 * free the memory associated with it.
3173 */
666d644c 3174 set_bit(XFS_EFI_RECOVERED, &efip->efi_flags);
1da177e4 3175 xfs_efi_release(efip, efip->efi_format.efi_nextents);
3c1e2bbe 3176 return XFS_ERROR(EIO);
1da177e4
LT
3177 }
3178 }
3179
3180 tp = xfs_trans_alloc(mp, 0);
3c1e2bbe 3181 error = xfs_trans_reserve(tp, 0, XFS_ITRUNCATE_LOG_RES(mp), 0, 0, 0);
fc6149d8
DC
3182 if (error)
3183 goto abort_error;
1da177e4
LT
3184 efdp = xfs_trans_get_efd(tp, efip, efip->efi_format.efi_nextents);
3185
3186 for (i = 0; i < efip->efi_format.efi_nextents; i++) {
3187 extp = &(efip->efi_format.efi_extents[i]);
fc6149d8
DC
3188 error = xfs_free_extent(tp, extp->ext_start, extp->ext_len);
3189 if (error)
3190 goto abort_error;
1da177e4
LT
3191 xfs_trans_log_efd_extent(tp, efdp, extp->ext_start,
3192 extp->ext_len);
3193 }
3194
b199c8a4 3195 set_bit(XFS_EFI_RECOVERED, &efip->efi_flags);
e5720eec 3196 error = xfs_trans_commit(tp, 0);
3c1e2bbe 3197 return error;
fc6149d8
DC
3198
3199abort_error:
3200 xfs_trans_cancel(tp, XFS_TRANS_ABORT);
3201 return error;
1da177e4
LT
3202}
3203
1da177e4
LT
3204/*
3205 * When this is called, all of the EFIs which did not have
3206 * corresponding EFDs should be in the AIL. What we do now
3207 * is free the extents associated with each one.
3208 *
3209 * Since we process the EFIs in normal transactions, they
3210 * will be removed at some point after the commit. This prevents
3211 * us from just walking down the list processing each one.
3212 * We'll use a flag in the EFI to skip those that we've already
3213 * processed and use the AIL iteration mechanism's generation
3214 * count to try to speed this up at least a bit.
3215 *
3216 * When we start, we know that the EFIs are the only things in
3217 * the AIL. As we process them, however, other items are added
3218 * to the AIL. Since everything added to the AIL must come after
3219 * everything already in the AIL, we stop processing as soon as
3220 * we see something other than an EFI in the AIL.
3221 */
3c1e2bbe 3222STATIC int
1da177e4 3223xlog_recover_process_efis(
9a8d2fdb 3224 struct xlog *log)
1da177e4
LT
3225{
3226 xfs_log_item_t *lip;
3227 xfs_efi_log_item_t *efip;
3c1e2bbe 3228 int error = 0;
27d8d5fe 3229 struct xfs_ail_cursor cur;
a9c21c1b 3230 struct xfs_ail *ailp;
1da177e4 3231
a9c21c1b
DC
3232 ailp = log->l_ailp;
3233 spin_lock(&ailp->xa_lock);
3234 lip = xfs_trans_ail_cursor_first(ailp, &cur, 0);
1da177e4
LT
3235 while (lip != NULL) {
3236 /*
3237 * We're done when we see something other than an EFI.
27d8d5fe 3238 * There should be no EFIs left in the AIL now.
1da177e4
LT
3239 */
3240 if (lip->li_type != XFS_LI_EFI) {
27d8d5fe 3241#ifdef DEBUG
a9c21c1b 3242 for (; lip; lip = xfs_trans_ail_cursor_next(ailp, &cur))
27d8d5fe
DC
3243 ASSERT(lip->li_type != XFS_LI_EFI);
3244#endif
1da177e4
LT
3245 break;
3246 }
3247
3248 /*
3249 * Skip EFIs that we've already processed.
3250 */
3251 efip = (xfs_efi_log_item_t *)lip;
b199c8a4 3252 if (test_bit(XFS_EFI_RECOVERED, &efip->efi_flags)) {
a9c21c1b 3253 lip = xfs_trans_ail_cursor_next(ailp, &cur);
1da177e4
LT
3254 continue;
3255 }
3256
a9c21c1b
DC
3257 spin_unlock(&ailp->xa_lock);
3258 error = xlog_recover_process_efi(log->l_mp, efip);
3259 spin_lock(&ailp->xa_lock);
27d8d5fe
DC
3260 if (error)
3261 goto out;
a9c21c1b 3262 lip = xfs_trans_ail_cursor_next(ailp, &cur);
1da177e4 3263 }
27d8d5fe 3264out:
a9c21c1b
DC
3265 xfs_trans_ail_cursor_done(ailp, &cur);
3266 spin_unlock(&ailp->xa_lock);
3c1e2bbe 3267 return error;
1da177e4
LT
3268}
3269
3270/*
3271 * This routine performs a transaction to null out a bad inode pointer
3272 * in an agi unlinked inode hash bucket.
3273 */
3274STATIC void
3275xlog_recover_clear_agi_bucket(
3276 xfs_mount_t *mp,
3277 xfs_agnumber_t agno,
3278 int bucket)
3279{
3280 xfs_trans_t *tp;
3281 xfs_agi_t *agi;
3282 xfs_buf_t *agibp;
3283 int offset;
3284 int error;
3285
3286 tp = xfs_trans_alloc(mp, XFS_TRANS_CLEAR_AGI_BUCKET);
5e1be0fb
CH
3287 error = xfs_trans_reserve(tp, 0, XFS_CLEAR_AGI_BUCKET_LOG_RES(mp),
3288 0, 0, 0);
e5720eec
DC
3289 if (error)
3290 goto out_abort;
1da177e4 3291
5e1be0fb
CH
3292 error = xfs_read_agi(mp, tp, agno, &agibp);
3293 if (error)
e5720eec 3294 goto out_abort;
1da177e4 3295
5e1be0fb 3296 agi = XFS_BUF_TO_AGI(agibp);
16259e7d 3297 agi->agi_unlinked[bucket] = cpu_to_be32(NULLAGINO);
1da177e4
LT
3298 offset = offsetof(xfs_agi_t, agi_unlinked) +
3299 (sizeof(xfs_agino_t) * bucket);
3300 xfs_trans_log_buf(tp, agibp, offset,
3301 (offset + sizeof(xfs_agino_t) - 1));
3302
e5720eec
DC
3303 error = xfs_trans_commit(tp, 0);
3304 if (error)
3305 goto out_error;
3306 return;
3307
3308out_abort:
3309 xfs_trans_cancel(tp, XFS_TRANS_ABORT);
3310out_error:
a0fa2b67 3311 xfs_warn(mp, "%s: failed to clear agi %d. Continuing.", __func__, agno);
e5720eec 3312 return;
1da177e4
LT
3313}
3314
23fac50f
CH
3315STATIC xfs_agino_t
3316xlog_recover_process_one_iunlink(
3317 struct xfs_mount *mp,
3318 xfs_agnumber_t agno,
3319 xfs_agino_t agino,
3320 int bucket)
3321{
3322 struct xfs_buf *ibp;
3323 struct xfs_dinode *dip;
3324 struct xfs_inode *ip;
3325 xfs_ino_t ino;
3326 int error;
3327
3328 ino = XFS_AGINO_TO_INO(mp, agno, agino);
7b6259e7 3329 error = xfs_iget(mp, NULL, ino, 0, 0, &ip);
23fac50f
CH
3330 if (error)
3331 goto fail;
3332
3333 /*
3334 * Get the on disk inode to find the next inode in the bucket.
3335 */
475ee413 3336 error = xfs_imap_to_bp(mp, NULL, &ip->i_imap, &dip, &ibp, 0, 0);
23fac50f 3337 if (error)
0e446673 3338 goto fail_iput;
23fac50f 3339
23fac50f 3340 ASSERT(ip->i_d.di_nlink == 0);
0e446673 3341 ASSERT(ip->i_d.di_mode != 0);
23fac50f
CH
3342
3343 /* setup for the next pass */
3344 agino = be32_to_cpu(dip->di_next_unlinked);
3345 xfs_buf_relse(ibp);
3346
3347 /*
3348 * Prevent any DMAPI event from being sent when the reference on
3349 * the inode is dropped.
3350 */
3351 ip->i_d.di_dmevmask = 0;
3352
0e446673 3353 IRELE(ip);
23fac50f
CH
3354 return agino;
3355
0e446673
CH
3356 fail_iput:
3357 IRELE(ip);
23fac50f
CH
3358 fail:
3359 /*
3360 * We can't read in the inode this bucket points to, or this inode
3361 * is messed up. Just ditch this bucket of inodes. We will lose
3362 * some inodes and space, but at least we won't hang.
3363 *
3364 * Call xlog_recover_clear_agi_bucket() to perform a transaction to
3365 * clear the inode pointer in the bucket.
3366 */
3367 xlog_recover_clear_agi_bucket(mp, agno, bucket);
3368 return NULLAGINO;
3369}
3370
1da177e4
LT
3371/*
3372 * xlog_iunlink_recover
3373 *
3374 * This is called during recovery to process any inodes which
3375 * we unlinked but not freed when the system crashed. These
3376 * inodes will be on the lists in the AGI blocks. What we do
3377 * here is scan all the AGIs and fully truncate and free any
3378 * inodes found on the lists. Each inode is removed from the
3379 * lists when it has been fully truncated and is freed. The
3380 * freeing of the inode and its removal from the list must be
3381 * atomic.
3382 */
d96f8f89 3383STATIC void
1da177e4 3384xlog_recover_process_iunlinks(
9a8d2fdb 3385 struct xlog *log)
1da177e4
LT
3386{
3387 xfs_mount_t *mp;
3388 xfs_agnumber_t agno;
3389 xfs_agi_t *agi;
3390 xfs_buf_t *agibp;
1da177e4 3391 xfs_agino_t agino;
1da177e4
LT
3392 int bucket;
3393 int error;
3394 uint mp_dmevmask;
3395
3396 mp = log->l_mp;
3397
3398 /*
3399 * Prevent any DMAPI event from being sent while in this function.
3400 */
3401 mp_dmevmask = mp->m_dmevmask;
3402 mp->m_dmevmask = 0;
3403
3404 for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
3405 /*
3406 * Find the agi for this ag.
3407 */
5e1be0fb
CH
3408 error = xfs_read_agi(mp, NULL, agno, &agibp);
3409 if (error) {
3410 /*
3411 * AGI is b0rked. Don't process it.
3412 *
3413 * We should probably mark the filesystem as corrupt
3414 * after we've recovered all the ag's we can....
3415 */
3416 continue;
1da177e4 3417 }
d97d32ed
JK
3418 /*
3419 * Unlock the buffer so that it can be acquired in the normal
3420 * course of the transaction to truncate and free each inode.
3421 * Because we are not racing with anyone else here for the AGI
3422 * buffer, we don't even need to hold it locked to read the
3423 * initial unlinked bucket entries out of the buffer. We keep
3424 * buffer reference though, so that it stays pinned in memory
3425 * while we need the buffer.
3426 */
1da177e4 3427 agi = XFS_BUF_TO_AGI(agibp);
d97d32ed 3428 xfs_buf_unlock(agibp);
1da177e4
LT
3429
3430 for (bucket = 0; bucket < XFS_AGI_UNLINKED_BUCKETS; bucket++) {
16259e7d 3431 agino = be32_to_cpu(agi->agi_unlinked[bucket]);
1da177e4 3432 while (agino != NULLAGINO) {
23fac50f
CH
3433 agino = xlog_recover_process_one_iunlink(mp,
3434 agno, agino, bucket);
1da177e4
LT
3435 }
3436 }
d97d32ed 3437 xfs_buf_rele(agibp);
1da177e4
LT
3438 }
3439
3440 mp->m_dmevmask = mp_dmevmask;
3441}
3442
1da177e4 3443/*
0e446be4
CH
3444 * Upack the log buffer data and crc check it. If the check fails, issue a
3445 * warning if and only if the CRC in the header is non-zero. This makes the
3446 * check an advisory warning, and the zero CRC check will prevent failure
3447 * warnings from being emitted when upgrading the kernel from one that does not
3448 * add CRCs by default.
3449 *
3450 * When filesystems are CRC enabled, this CRC mismatch becomes a fatal log
3451 * corruption failure
1da177e4 3452 */
0e446be4
CH
3453STATIC int
3454xlog_unpack_data_crc(
3455 struct xlog_rec_header *rhead,
3456 xfs_caddr_t dp,
3457 struct xlog *log)
1da177e4 3458{
f9668a09 3459 __le32 crc;
0e446be4
CH
3460
3461 crc = xlog_cksum(log, rhead, dp, be32_to_cpu(rhead->h_len));
3462 if (crc != rhead->h_crc) {
3463 if (rhead->h_crc || xfs_sb_version_hascrc(&log->l_mp->m_sb)) {
3464 xfs_alert(log->l_mp,
3465 "log record CRC mismatch: found 0x%x, expected 0x%x.\n",
f9668a09
DC
3466 le32_to_cpu(rhead->h_crc),
3467 le32_to_cpu(crc));
0e446be4 3468 xfs_hex_dump(dp, 32);
1da177e4
LT
3469 }
3470
0e446be4
CH
3471 /*
3472 * If we've detected a log record corruption, then we can't
3473 * recover past this point. Abort recovery if we are enforcing
3474 * CRC protection by punting an error back up the stack.
3475 */
3476 if (xfs_sb_version_hascrc(&log->l_mp->m_sb))
3477 return EFSCORRUPTED;
1da177e4 3478 }
0e446be4
CH
3479
3480 return 0;
1da177e4
LT
3481}
3482
0e446be4 3483STATIC int
1da177e4 3484xlog_unpack_data(
9a8d2fdb 3485 struct xlog_rec_header *rhead,
1da177e4 3486 xfs_caddr_t dp,
9a8d2fdb 3487 struct xlog *log)
1da177e4
LT
3488{
3489 int i, j, k;
0e446be4
CH
3490 int error;
3491
3492 error = xlog_unpack_data_crc(rhead, dp, log);
3493 if (error)
3494 return error;
1da177e4 3495
b53e675d 3496 for (i = 0; i < BTOBB(be32_to_cpu(rhead->h_len)) &&
1da177e4 3497 i < (XLOG_HEADER_CYCLE_SIZE / BBSIZE); i++) {
b53e675d 3498 *(__be32 *)dp = *(__be32 *)&rhead->h_cycle_data[i];
1da177e4
LT
3499 dp += BBSIZE;
3500 }
3501
62118709 3502 if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
b28708d6 3503 xlog_in_core_2_t *xhdr = (xlog_in_core_2_t *)rhead;
b53e675d 3504 for ( ; i < BTOBB(be32_to_cpu(rhead->h_len)); i++) {
1da177e4
LT
3505 j = i / (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
3506 k = i % (XLOG_HEADER_CYCLE_SIZE / BBSIZE);
b53e675d 3507 *(__be32 *)dp = xhdr[j].hic_xheader.xh_cycle_data[k];
1da177e4
LT
3508 dp += BBSIZE;
3509 }
3510 }
0e446be4
CH
3511
3512 return 0;
1da177e4
LT
3513}
3514
3515STATIC int
3516xlog_valid_rec_header(
9a8d2fdb
MT
3517 struct xlog *log,
3518 struct xlog_rec_header *rhead,
1da177e4
LT
3519 xfs_daddr_t blkno)
3520{
3521 int hlen;
3522
69ef921b 3523 if (unlikely(rhead->h_magicno != cpu_to_be32(XLOG_HEADER_MAGIC_NUM))) {
1da177e4
LT
3524 XFS_ERROR_REPORT("xlog_valid_rec_header(1)",
3525 XFS_ERRLEVEL_LOW, log->l_mp);
3526 return XFS_ERROR(EFSCORRUPTED);
3527 }
3528 if (unlikely(
3529 (!rhead->h_version ||
b53e675d 3530 (be32_to_cpu(rhead->h_version) & (~XLOG_VERSION_OKBITS))))) {
a0fa2b67 3531 xfs_warn(log->l_mp, "%s: unrecognised log version (%d).",
34a622b2 3532 __func__, be32_to_cpu(rhead->h_version));
1da177e4
LT
3533 return XFS_ERROR(EIO);
3534 }
3535
3536 /* LR body must have data or it wouldn't have been written */
b53e675d 3537 hlen = be32_to_cpu(rhead->h_len);
1da177e4
LT
3538 if (unlikely( hlen <= 0 || hlen > INT_MAX )) {
3539 XFS_ERROR_REPORT("xlog_valid_rec_header(2)",
3540 XFS_ERRLEVEL_LOW, log->l_mp);
3541 return XFS_ERROR(EFSCORRUPTED);
3542 }
3543 if (unlikely( blkno > log->l_logBBsize || blkno > INT_MAX )) {
3544 XFS_ERROR_REPORT("xlog_valid_rec_header(3)",
3545 XFS_ERRLEVEL_LOW, log->l_mp);
3546 return XFS_ERROR(EFSCORRUPTED);
3547 }
3548 return 0;
3549}
3550
3551/*
3552 * Read the log from tail to head and process the log records found.
3553 * Handle the two cases where the tail and head are in the same cycle
3554 * and where the active portion of the log wraps around the end of
3555 * the physical log separately. The pass parameter is passed through
3556 * to the routines called to process the data and is not looked at
3557 * here.
3558 */
3559STATIC int
3560xlog_do_recovery_pass(
9a8d2fdb 3561 struct xlog *log,
1da177e4
LT
3562 xfs_daddr_t head_blk,
3563 xfs_daddr_t tail_blk,
3564 int pass)
3565{
3566 xlog_rec_header_t *rhead;
3567 xfs_daddr_t blk_no;
fc5bc4c8 3568 xfs_caddr_t offset;
1da177e4
LT
3569 xfs_buf_t *hbp, *dbp;
3570 int error = 0, h_size;
3571 int bblks, split_bblks;
3572 int hblks, split_hblks, wrapped_hblks;
f0a76953 3573 struct hlist_head rhash[XLOG_RHASH_SIZE];
1da177e4
LT
3574
3575 ASSERT(head_blk != tail_blk);
3576
3577 /*
3578 * Read the header of the tail block and get the iclog buffer size from
3579 * h_size. Use this to tell how many sectors make up the log header.
3580 */
62118709 3581 if (xfs_sb_version_haslogv2(&log->l_mp->m_sb)) {
1da177e4
LT
3582 /*
3583 * When using variable length iclogs, read first sector of
3584 * iclog header and extract the header size from it. Get a
3585 * new hbp that is the correct size.
3586 */
3587 hbp = xlog_get_bp(log, 1);
3588 if (!hbp)
3589 return ENOMEM;
076e6acb
CH
3590
3591 error = xlog_bread(log, tail_blk, 1, hbp, &offset);
3592 if (error)
1da177e4 3593 goto bread_err1;
076e6acb 3594
1da177e4
LT
3595 rhead = (xlog_rec_header_t *)offset;
3596 error = xlog_valid_rec_header(log, rhead, tail_blk);
3597 if (error)
3598 goto bread_err1;
b53e675d
CH
3599 h_size = be32_to_cpu(rhead->h_size);
3600 if ((be32_to_cpu(rhead->h_version) & XLOG_VERSION_2) &&
1da177e4
LT
3601 (h_size > XLOG_HEADER_CYCLE_SIZE)) {
3602 hblks = h_size / XLOG_HEADER_CYCLE_SIZE;
3603 if (h_size % XLOG_HEADER_CYCLE_SIZE)
3604 hblks++;
3605 xlog_put_bp(hbp);
3606 hbp = xlog_get_bp(log, hblks);
3607 } else {
3608 hblks = 1;
3609 }
3610 } else {
69ce58f0 3611 ASSERT(log->l_sectBBsize == 1);
1da177e4
LT
3612 hblks = 1;
3613 hbp = xlog_get_bp(log, 1);
3614 h_size = XLOG_BIG_RECORD_BSIZE;
3615 }
3616
3617 if (!hbp)
3618 return ENOMEM;
3619 dbp = xlog_get_bp(log, BTOBB(h_size));
3620 if (!dbp) {
3621 xlog_put_bp(hbp);
3622 return ENOMEM;
3623 }
3624
3625 memset(rhash, 0, sizeof(rhash));
3626 if (tail_blk <= head_blk) {
3627 for (blk_no = tail_blk; blk_no < head_blk; ) {
076e6acb
CH
3628 error = xlog_bread(log, blk_no, hblks, hbp, &offset);
3629 if (error)
1da177e4 3630 goto bread_err2;
076e6acb 3631
1da177e4
LT
3632 rhead = (xlog_rec_header_t *)offset;
3633 error = xlog_valid_rec_header(log, rhead, blk_no);
3634 if (error)
3635 goto bread_err2;
3636
3637 /* blocks in data section */
b53e675d 3638 bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
076e6acb
CH
3639 error = xlog_bread(log, blk_no + hblks, bblks, dbp,
3640 &offset);
1da177e4
LT
3641 if (error)
3642 goto bread_err2;
076e6acb 3643
0e446be4
CH
3644 error = xlog_unpack_data(rhead, offset, log);
3645 if (error)
3646 goto bread_err2;
3647
3648 error = xlog_recover_process_data(log,
3649 rhash, rhead, offset, pass);
3650 if (error)
1da177e4
LT
3651 goto bread_err2;
3652 blk_no += bblks + hblks;
3653 }
3654 } else {
3655 /*
3656 * Perform recovery around the end of the physical log.
3657 * When the head is not on the same cycle number as the tail,
3658 * we can't do a sequential recovery as above.
3659 */
3660 blk_no = tail_blk;
3661 while (blk_no < log->l_logBBsize) {
3662 /*
3663 * Check for header wrapping around physical end-of-log
3664 */
62926044 3665 offset = hbp->b_addr;
1da177e4
LT
3666 split_hblks = 0;
3667 wrapped_hblks = 0;
3668 if (blk_no + hblks <= log->l_logBBsize) {
3669 /* Read header in one read */
076e6acb
CH
3670 error = xlog_bread(log, blk_no, hblks, hbp,
3671 &offset);
1da177e4
LT
3672 if (error)
3673 goto bread_err2;
1da177e4
LT
3674 } else {
3675 /* This LR is split across physical log end */
3676 if (blk_no != log->l_logBBsize) {
3677 /* some data before physical log end */
3678 ASSERT(blk_no <= INT_MAX);
3679 split_hblks = log->l_logBBsize - (int)blk_no;
3680 ASSERT(split_hblks > 0);
076e6acb
CH
3681 error = xlog_bread(log, blk_no,
3682 split_hblks, hbp,
3683 &offset);
3684 if (error)
1da177e4 3685 goto bread_err2;
1da177e4 3686 }
076e6acb 3687
1da177e4
LT
3688 /*
3689 * Note: this black magic still works with
3690 * large sector sizes (non-512) only because:
3691 * - we increased the buffer size originally
3692 * by 1 sector giving us enough extra space
3693 * for the second read;
3694 * - the log start is guaranteed to be sector
3695 * aligned;
3696 * - we read the log end (LR header start)
3697 * _first_, then the log start (LR header end)
3698 * - order is important.
3699 */
234f56ac 3700 wrapped_hblks = hblks - split_hblks;
44396476
DC
3701 error = xlog_bread_offset(log, 0,
3702 wrapped_hblks, hbp,
3703 offset + BBTOB(split_hblks));
1da177e4
LT
3704 if (error)
3705 goto bread_err2;
1da177e4
LT
3706 }
3707 rhead = (xlog_rec_header_t *)offset;
3708 error = xlog_valid_rec_header(log, rhead,
3709 split_hblks ? blk_no : 0);
3710 if (error)
3711 goto bread_err2;
3712
b53e675d 3713 bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
1da177e4
LT
3714 blk_no += hblks;
3715
3716 /* Read in data for log record */
3717 if (blk_no + bblks <= log->l_logBBsize) {
076e6acb
CH
3718 error = xlog_bread(log, blk_no, bblks, dbp,
3719 &offset);
1da177e4
LT
3720 if (error)
3721 goto bread_err2;
1da177e4
LT
3722 } else {
3723 /* This log record is split across the
3724 * physical end of log */
62926044 3725 offset = dbp->b_addr;
1da177e4
LT
3726 split_bblks = 0;
3727 if (blk_no != log->l_logBBsize) {
3728 /* some data is before the physical
3729 * end of log */
3730 ASSERT(!wrapped_hblks);
3731 ASSERT(blk_no <= INT_MAX);
3732 split_bblks =
3733 log->l_logBBsize - (int)blk_no;
3734 ASSERT(split_bblks > 0);
076e6acb
CH
3735 error = xlog_bread(log, blk_no,
3736 split_bblks, dbp,
3737 &offset);
3738 if (error)
1da177e4 3739 goto bread_err2;
1da177e4 3740 }
076e6acb 3741
1da177e4
LT
3742 /*
3743 * Note: this black magic still works with
3744 * large sector sizes (non-512) only because:
3745 * - we increased the buffer size originally
3746 * by 1 sector giving us enough extra space
3747 * for the second read;
3748 * - the log start is guaranteed to be sector
3749 * aligned;
3750 * - we read the log end (LR header start)
3751 * _first_, then the log start (LR header end)
3752 * - order is important.
3753 */
44396476 3754 error = xlog_bread_offset(log, 0,
009507b0 3755 bblks - split_bblks, dbp,
44396476 3756 offset + BBTOB(split_bblks));
076e6acb
CH
3757 if (error)
3758 goto bread_err2;
1da177e4 3759 }
0e446be4
CH
3760
3761 error = xlog_unpack_data(rhead, offset, log);
3762 if (error)
3763 goto bread_err2;
3764
3765 error = xlog_recover_process_data(log, rhash,
3766 rhead, offset, pass);
3767 if (error)
1da177e4
LT
3768 goto bread_err2;
3769 blk_no += bblks;
3770 }
3771
3772 ASSERT(blk_no >= log->l_logBBsize);
3773 blk_no -= log->l_logBBsize;
3774
3775 /* read first part of physical log */
3776 while (blk_no < head_blk) {
076e6acb
CH
3777 error = xlog_bread(log, blk_no, hblks, hbp, &offset);
3778 if (error)
1da177e4 3779 goto bread_err2;
076e6acb 3780
1da177e4
LT
3781 rhead = (xlog_rec_header_t *)offset;
3782 error = xlog_valid_rec_header(log, rhead, blk_no);
3783 if (error)
3784 goto bread_err2;
076e6acb 3785
b53e675d 3786 bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
076e6acb
CH
3787 error = xlog_bread(log, blk_no+hblks, bblks, dbp,
3788 &offset);
3789 if (error)
1da177e4 3790 goto bread_err2;
076e6acb 3791
0e446be4
CH
3792 error = xlog_unpack_data(rhead, offset, log);
3793 if (error)
3794 goto bread_err2;
3795
3796 error = xlog_recover_process_data(log, rhash,
3797 rhead, offset, pass);
3798 if (error)
1da177e4
LT
3799 goto bread_err2;
3800 blk_no += bblks + hblks;
3801 }
3802 }
3803
3804 bread_err2:
3805 xlog_put_bp(dbp);
3806 bread_err1:
3807 xlog_put_bp(hbp);
3808 return error;
3809}
3810
3811/*
3812 * Do the recovery of the log. We actually do this in two phases.
3813 * The two passes are necessary in order to implement the function
3814 * of cancelling a record written into the log. The first pass
3815 * determines those things which have been cancelled, and the
3816 * second pass replays log items normally except for those which
3817 * have been cancelled. The handling of the replay and cancellations
3818 * takes place in the log item type specific routines.
3819 *
3820 * The table of items which have cancel records in the log is allocated
3821 * and freed at this level, since only here do we know when all of
3822 * the log recovery has been completed.
3823 */
3824STATIC int
3825xlog_do_log_recovery(
9a8d2fdb 3826 struct xlog *log,
1da177e4
LT
3827 xfs_daddr_t head_blk,
3828 xfs_daddr_t tail_blk)
3829{
d5689eaa 3830 int error, i;
1da177e4
LT
3831
3832 ASSERT(head_blk != tail_blk);
3833
3834 /*
3835 * First do a pass to find all of the cancelled buf log items.
3836 * Store them in the buf_cancel_table for use in the second pass.
3837 */
d5689eaa
CH
3838 log->l_buf_cancel_table = kmem_zalloc(XLOG_BC_TABLE_SIZE *
3839 sizeof(struct list_head),
1da177e4 3840 KM_SLEEP);
d5689eaa
CH
3841 for (i = 0; i < XLOG_BC_TABLE_SIZE; i++)
3842 INIT_LIST_HEAD(&log->l_buf_cancel_table[i]);
3843
1da177e4
LT
3844 error = xlog_do_recovery_pass(log, head_blk, tail_blk,
3845 XLOG_RECOVER_PASS1);
3846 if (error != 0) {
f0e2d93c 3847 kmem_free(log->l_buf_cancel_table);
1da177e4
LT
3848 log->l_buf_cancel_table = NULL;
3849 return error;
3850 }
3851 /*
3852 * Then do a second pass to actually recover the items in the log.
3853 * When it is complete free the table of buf cancel items.
3854 */
3855 error = xlog_do_recovery_pass(log, head_blk, tail_blk,
3856 XLOG_RECOVER_PASS2);
3857#ifdef DEBUG
6d192a9b 3858 if (!error) {
1da177e4
LT
3859 int i;
3860
3861 for (i = 0; i < XLOG_BC_TABLE_SIZE; i++)
d5689eaa 3862 ASSERT(list_empty(&log->l_buf_cancel_table[i]));
1da177e4
LT
3863 }
3864#endif /* DEBUG */
3865
f0e2d93c 3866 kmem_free(log->l_buf_cancel_table);
1da177e4
LT
3867 log->l_buf_cancel_table = NULL;
3868
3869 return error;
3870}
3871
3872/*
3873 * Do the actual recovery
3874 */
3875STATIC int
3876xlog_do_recover(
9a8d2fdb 3877 struct xlog *log,
1da177e4
LT
3878 xfs_daddr_t head_blk,
3879 xfs_daddr_t tail_blk)
3880{
3881 int error;
3882 xfs_buf_t *bp;
3883 xfs_sb_t *sbp;
3884
3885 /*
3886 * First replay the images in the log.
3887 */
3888 error = xlog_do_log_recovery(log, head_blk, tail_blk);
43ff2122 3889 if (error)
1da177e4 3890 return error;
1da177e4
LT
3891
3892 /*
3893 * If IO errors happened during recovery, bail out.
3894 */
3895 if (XFS_FORCED_SHUTDOWN(log->l_mp)) {
3896 return (EIO);
3897 }
3898
3899 /*
3900 * We now update the tail_lsn since much of the recovery has completed
3901 * and there may be space available to use. If there were no extent
3902 * or iunlinks, we can free up the entire log and set the tail_lsn to
3903 * be the last_sync_lsn. This was set in xlog_find_tail to be the
3904 * lsn of the last known good LR on disk. If there are extent frees
3905 * or iunlinks they will have some entries in the AIL; so we look at
3906 * the AIL to determine how to set the tail_lsn.
3907 */
3908 xlog_assign_tail_lsn(log->l_mp);
3909
3910 /*
3911 * Now that we've finished replaying all buffer and inode
98021821 3912 * updates, re-read in the superblock and reverify it.
1da177e4
LT
3913 */
3914 bp = xfs_getsb(log->l_mp, 0);
3915 XFS_BUF_UNDONE(bp);
bebf963f 3916 ASSERT(!(XFS_BUF_ISWRITE(bp)));
1da177e4 3917 XFS_BUF_READ(bp);
bebf963f 3918 XFS_BUF_UNASYNC(bp);
1813dd64 3919 bp->b_ops = &xfs_sb_buf_ops;
1da177e4 3920 xfsbdstrat(log->l_mp, bp);
1a1a3e97 3921 error = xfs_buf_iowait(bp);
d64e31a2 3922 if (error) {
901796af 3923 xfs_buf_ioerror_alert(bp, __func__);
1da177e4
LT
3924 ASSERT(0);
3925 xfs_buf_relse(bp);
3926 return error;
3927 }
3928
3929 /* Convert superblock from on-disk format */
3930 sbp = &log->l_mp->m_sb;
98021821 3931 xfs_sb_from_disk(sbp, XFS_BUF_TO_SBP(bp));
1da177e4 3932 ASSERT(sbp->sb_magicnum == XFS_SB_MAGIC);
62118709 3933 ASSERT(xfs_sb_good_version(sbp));
1da177e4
LT
3934 xfs_buf_relse(bp);
3935
5478eead
LM
3936 /* We've re-read the superblock so re-initialize per-cpu counters */
3937 xfs_icsb_reinit_counters(log->l_mp);
3938
1da177e4
LT
3939 xlog_recover_check_summary(log);
3940
3941 /* Normal transactions can now occur */
3942 log->l_flags &= ~XLOG_ACTIVE_RECOVERY;
3943 return 0;
3944}
3945
3946/*
3947 * Perform recovery and re-initialize some log variables in xlog_find_tail.
3948 *
3949 * Return error or zero.
3950 */
3951int
3952xlog_recover(
9a8d2fdb 3953 struct xlog *log)
1da177e4
LT
3954{
3955 xfs_daddr_t head_blk, tail_blk;
3956 int error;
3957
3958 /* find the tail of the log */
65be6054 3959 if ((error = xlog_find_tail(log, &head_blk, &tail_blk)))
1da177e4
LT
3960 return error;
3961
3962 if (tail_blk != head_blk) {
3963 /* There used to be a comment here:
3964 *
3965 * disallow recovery on read-only mounts. note -- mount
3966 * checks for ENOSPC and turns it into an intelligent
3967 * error message.
3968 * ...but this is no longer true. Now, unless you specify
3969 * NORECOVERY (in which case this function would never be
3970 * called), we just go ahead and recover. We do this all
3971 * under the vfs layer, so we can get away with it unless
3972 * the device itself is read-only, in which case we fail.
3973 */
3a02ee18 3974 if ((error = xfs_dev_is_read_only(log->l_mp, "recovery"))) {
1da177e4
LT
3975 return error;
3976 }
3977
e721f504
DC
3978 /*
3979 * Version 5 superblock log feature mask validation. We know the
3980 * log is dirty so check if there are any unknown log features
3981 * in what we need to recover. If there are unknown features
3982 * (e.g. unsupported transactions, then simply reject the
3983 * attempt at recovery before touching anything.
3984 */
3985 if (XFS_SB_VERSION_NUM(&log->l_mp->m_sb) == XFS_SB_VERSION_5 &&
3986 xfs_sb_has_incompat_log_feature(&log->l_mp->m_sb,
3987 XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN)) {
3988 xfs_warn(log->l_mp,
3989"Superblock has unknown incompatible log features (0x%x) enabled.\n"
3990"The log can not be fully and/or safely recovered by this kernel.\n"
3991"Please recover the log on a kernel that supports the unknown features.",
3992 (log->l_mp->m_sb.sb_features_log_incompat &
3993 XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN));
3994 return EINVAL;
3995 }
3996
a0fa2b67
DC
3997 xfs_notice(log->l_mp, "Starting recovery (logdev: %s)",
3998 log->l_mp->m_logname ? log->l_mp->m_logname
3999 : "internal");
1da177e4
LT
4000
4001 error = xlog_do_recover(log, head_blk, tail_blk);
4002 log->l_flags |= XLOG_RECOVERY_NEEDED;
4003 }
4004 return error;
4005}
4006
4007/*
4008 * In the first part of recovery we replay inodes and buffers and build
4009 * up the list of extent free items which need to be processed. Here
4010 * we process the extent free items and clean up the on disk unlinked
4011 * inode lists. This is separated from the first part of recovery so
4012 * that the root and real-time bitmap inodes can be read in from disk in
4013 * between the two stages. This is necessary so that we can free space
4014 * in the real-time portion of the file system.
4015 */
4016int
4017xlog_recover_finish(
9a8d2fdb 4018 struct xlog *log)
1da177e4
LT
4019{
4020 /*
4021 * Now we're ready to do the transactions needed for the
4022 * rest of recovery. Start with completing all the extent
4023 * free intent records and then process the unlinked inode
4024 * lists. At this point, we essentially run in normal mode
4025 * except that we're still performing recovery actions
4026 * rather than accepting new requests.
4027 */
4028 if (log->l_flags & XLOG_RECOVERY_NEEDED) {
3c1e2bbe
DC
4029 int error;
4030 error = xlog_recover_process_efis(log);
4031 if (error) {
a0fa2b67 4032 xfs_alert(log->l_mp, "Failed to recover EFIs");
3c1e2bbe
DC
4033 return error;
4034 }
1da177e4
LT
4035 /*
4036 * Sync the log to get all the EFIs out of the AIL.
4037 * This isn't absolutely necessary, but it helps in
4038 * case the unlink transactions would have problems
4039 * pushing the EFIs out of the way.
4040 */
a14a348b 4041 xfs_log_force(log->l_mp, XFS_LOG_SYNC);
1da177e4 4042
4249023a 4043 xlog_recover_process_iunlinks(log);
1da177e4
LT
4044
4045 xlog_recover_check_summary(log);
4046
a0fa2b67
DC
4047 xfs_notice(log->l_mp, "Ending recovery (logdev: %s)",
4048 log->l_mp->m_logname ? log->l_mp->m_logname
4049 : "internal");
1da177e4
LT
4050 log->l_flags &= ~XLOG_RECOVERY_NEEDED;
4051 } else {
a0fa2b67 4052 xfs_info(log->l_mp, "Ending clean mount");
1da177e4
LT
4053 }
4054 return 0;
4055}
4056
4057
4058#if defined(DEBUG)
4059/*
4060 * Read all of the agf and agi counters and check that they
4061 * are consistent with the superblock counters.
4062 */
4063void
4064xlog_recover_check_summary(
9a8d2fdb 4065 struct xlog *log)
1da177e4
LT
4066{
4067 xfs_mount_t *mp;
4068 xfs_agf_t *agfp;
1da177e4
LT
4069 xfs_buf_t *agfbp;
4070 xfs_buf_t *agibp;
1da177e4
LT
4071 xfs_agnumber_t agno;
4072 __uint64_t freeblks;
4073 __uint64_t itotal;
4074 __uint64_t ifree;
5e1be0fb 4075 int error;
1da177e4
LT
4076
4077 mp = log->l_mp;
4078
4079 freeblks = 0LL;
4080 itotal = 0LL;
4081 ifree = 0LL;
4082 for (agno = 0; agno < mp->m_sb.sb_agcount; agno++) {
4805621a
CH
4083 error = xfs_read_agf(mp, NULL, agno, 0, &agfbp);
4084 if (error) {
a0fa2b67
DC
4085 xfs_alert(mp, "%s agf read failed agno %d error %d",
4086 __func__, agno, error);
4805621a
CH
4087 } else {
4088 agfp = XFS_BUF_TO_AGF(agfbp);
4089 freeblks += be32_to_cpu(agfp->agf_freeblks) +
4090 be32_to_cpu(agfp->agf_flcount);
4091 xfs_buf_relse(agfbp);
1da177e4 4092 }
1da177e4 4093
5e1be0fb 4094 error = xfs_read_agi(mp, NULL, agno, &agibp);
a0fa2b67
DC
4095 if (error) {
4096 xfs_alert(mp, "%s agi read failed agno %d error %d",
4097 __func__, agno, error);
4098 } else {
5e1be0fb 4099 struct xfs_agi *agi = XFS_BUF_TO_AGI(agibp);
16259e7d 4100
5e1be0fb
CH
4101 itotal += be32_to_cpu(agi->agi_count);
4102 ifree += be32_to_cpu(agi->agi_freecount);
4103 xfs_buf_relse(agibp);
4104 }
1da177e4 4105 }
1da177e4
LT
4106}
4107#endif /* DEBUG */