xref: /linux/fs/xfs/xfs_log_recover.c (revision fab183d632628381b466a41479489541ac0e29a0)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (c) 2000-2006 Silicon Graphics, Inc.
4  * All Rights Reserved.
5  */
6 #include "xfs_platform.h"
7 #include "xfs_fs.h"
8 #include "xfs_shared.h"
9 #include "xfs_format.h"
10 #include "xfs_log_format.h"
11 #include "xfs_trans_resv.h"
12 #include "xfs_bit.h"
13 #include "xfs_sb.h"
14 #include "xfs_mount.h"
15 #include "xfs_defer.h"
16 #include "xfs_inode.h"
17 #include "xfs_trans.h"
18 #include "xfs_log.h"
19 #include "xfs_log_priv.h"
20 #include "xfs_log_recover.h"
21 #include "xfs_trans_priv.h"
22 #include "xfs_alloc.h"
23 #include "xfs_ialloc.h"
24 #include "xfs_trace.h"
25 #include "xfs_icache.h"
26 #include "xfs_error.h"
27 #include "xfs_buf_item.h"
28 #include "xfs_ag.h"
29 #include "xfs_quota.h"
30 #include "xfs_reflink.h"
31 
32 #define BLK_AVG(blk1, blk2)	((blk1+blk2) >> 1)
33 
34 STATIC int
35 xlog_find_zeroed(
36 	struct xlog	*,
37 	xfs_daddr_t	*);
38 STATIC int
39 xlog_clear_stale_blocks(
40 	struct xlog	*,
41 	xfs_lsn_t);
42 STATIC int
43 xlog_do_recovery_pass(
44         struct xlog *, xfs_daddr_t, xfs_daddr_t, int, xfs_daddr_t *);
45 
46 /*
47  * Sector aligned buffer routines for buffer create/read/write/access
48  */
49 
50 /*
51  * Verify the log-relative block number and length in basic blocks are valid for
52  * an operation involving the given XFS log buffer. Returns true if the fields
53  * are valid, false otherwise.
54  */
55 static inline bool
xlog_verify_bno(struct xlog * log,xfs_daddr_t blk_no,int bbcount)56 xlog_verify_bno(
57 	struct xlog	*log,
58 	xfs_daddr_t	blk_no,
59 	int		bbcount)
60 {
61 	if (blk_no < 0 || blk_no >= log->l_logBBsize)
62 		return false;
63 	if (bbcount <= 0 || (blk_no + bbcount) > log->l_logBBsize)
64 		return false;
65 	return true;
66 }
67 
68 /*
69  * Allocate a buffer to hold log data.  The buffer needs to be able to map to
70  * a range of nbblks basic blocks at any valid offset within the log.
71  */
72 static char *
xlog_alloc_buffer(struct xlog * log,int nbblks)73 xlog_alloc_buffer(
74 	struct xlog	*log,
75 	int		nbblks)
76 {
77 	/*
78 	 * Pass log block 0 since we don't have an addr yet, buffer will be
79 	 * verified on read.
80 	 */
81 	if (XFS_IS_CORRUPT(log->l_mp, !xlog_verify_bno(log, 0, nbblks))) {
82 		xfs_warn(log->l_mp, "Invalid block length (0x%x) for buffer",
83 			nbblks);
84 		return NULL;
85 	}
86 
87 	/*
88 	 * We do log I/O in units of log sectors (a power-of-2 multiple of the
89 	 * basic block size), so we round up the requested size to accommodate
90 	 * the basic blocks required for complete log sectors.
91 	 *
92 	 * In addition, the buffer may be used for a non-sector-aligned block
93 	 * offset, in which case an I/O of the requested size could extend
94 	 * beyond the end of the buffer.  If the requested size is only 1 basic
95 	 * block it will never straddle a sector boundary, so this won't be an
96 	 * issue.  Nor will this be a problem if the log I/O is done in basic
97 	 * blocks (sector size 1).  But otherwise we extend the buffer by one
98 	 * extra log sector to ensure there's space to accommodate this
99 	 * possibility.
100 	 */
101 	if (nbblks > 1 && log->l_sectBBsize > 1)
102 		nbblks += log->l_sectBBsize;
103 	nbblks = round_up(nbblks, log->l_sectBBsize);
104 	return kvzalloc(BBTOB(nbblks), GFP_KERNEL | __GFP_RETRY_MAYFAIL);
105 }
106 
107 /*
108  * Return the address of the start of the given block number's data
109  * in a log buffer.  The buffer covers a log sector-aligned region.
110  */
111 static inline unsigned int
xlog_align(struct xlog * log,xfs_daddr_t blk_no)112 xlog_align(
113 	struct xlog	*log,
114 	xfs_daddr_t	blk_no)
115 {
116 	return BBTOB(blk_no & ((xfs_daddr_t)log->l_sectBBsize - 1));
117 }
118 
119 static int
xlog_do_io(struct xlog * log,xfs_daddr_t blk_no,unsigned int nbblks,char * data,enum req_op op)120 xlog_do_io(
121 	struct xlog		*log,
122 	xfs_daddr_t		blk_no,
123 	unsigned int		nbblks,
124 	char			*data,
125 	enum req_op		op)
126 {
127 	int			error;
128 
129 	if (XFS_IS_CORRUPT(log->l_mp, !xlog_verify_bno(log, blk_no, nbblks))) {
130 		xfs_warn(log->l_mp,
131 			 "Invalid log block/length (0x%llx, 0x%x) for buffer",
132 			 blk_no, nbblks);
133 		return -EFSCORRUPTED;
134 	}
135 
136 	blk_no = round_down(blk_no, log->l_sectBBsize);
137 	nbblks = round_up(nbblks, log->l_sectBBsize);
138 	ASSERT(nbblks > 0);
139 
140 	error = xfs_rw_bdev(log->l_targ->bt_bdev, log->l_logBBstart + blk_no,
141 			BBTOB(nbblks), data, op);
142 	if (error && !xlog_is_shutdown(log)) {
143 		xfs_alert(log->l_mp,
144 			  "log recovery %s I/O error at daddr 0x%llx len %d error %d",
145 			  op == REQ_OP_WRITE ? "write" : "read",
146 			  blk_no, nbblks, error);
147 	}
148 	return error;
149 }
150 
151 STATIC int
xlog_bread_noalign(struct xlog * log,xfs_daddr_t blk_no,int nbblks,char * data)152 xlog_bread_noalign(
153 	struct xlog	*log,
154 	xfs_daddr_t	blk_no,
155 	int		nbblks,
156 	char		*data)
157 {
158 	return xlog_do_io(log, blk_no, nbblks, data, REQ_OP_READ);
159 }
160 
161 STATIC int
xlog_bread(struct xlog * log,xfs_daddr_t blk_no,int nbblks,char * data,char ** offset)162 xlog_bread(
163 	struct xlog	*log,
164 	xfs_daddr_t	blk_no,
165 	int		nbblks,
166 	char		*data,
167 	char		**offset)
168 {
169 	int		error;
170 
171 	error = xlog_do_io(log, blk_no, nbblks, data, REQ_OP_READ);
172 	if (!error)
173 		*offset = data + xlog_align(log, blk_no);
174 	return error;
175 }
176 
177 STATIC int
xlog_bwrite(struct xlog * log,xfs_daddr_t blk_no,int nbblks,char * data)178 xlog_bwrite(
179 	struct xlog	*log,
180 	xfs_daddr_t	blk_no,
181 	int		nbblks,
182 	char		*data)
183 {
184 	return xlog_do_io(log, blk_no, nbblks, data, REQ_OP_WRITE);
185 }
186 
187 #ifdef DEBUG
188 /*
189  * dump debug superblock and log record information
190  */
191 STATIC void
xlog_header_check_dump(struct xfs_mount * mp,struct xlog_rec_header * head)192 xlog_header_check_dump(
193 	struct xfs_mount		*mp,
194 	struct xlog_rec_header		*head)
195 {
196 	xfs_debug(mp, "%s:  SB : uuid = %pU, fmt = %d",
197 		__func__, &mp->m_sb.sb_uuid, XLOG_FMT);
198 	xfs_debug(mp, "    log : uuid = %pU, fmt = %d",
199 		&head->h_fs_uuid, be32_to_cpu(head->h_fmt));
200 }
201 #else
202 #define xlog_header_check_dump(mp, head)
203 #endif
204 
205 /*
206  * check log record header for recovery
207  */
208 STATIC int
xlog_header_check_recover(struct xfs_mount * mp,struct xlog_rec_header * head)209 xlog_header_check_recover(
210 	struct xfs_mount	*mp,
211 	struct xlog_rec_header	*head)
212 {
213 	ASSERT(head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM));
214 
215 	/*
216 	 * IRIX doesn't write the h_fmt field and leaves it zeroed
217 	 * (XLOG_FMT_UNKNOWN). This stops us from trying to recover
218 	 * a dirty log created in IRIX.
219 	 */
220 	if (XFS_IS_CORRUPT(mp, head->h_fmt != cpu_to_be32(XLOG_FMT))) {
221 		xfs_warn(mp,
222 	"dirty log written in incompatible format - can't recover");
223 		xlog_header_check_dump(mp, head);
224 		return -EFSCORRUPTED;
225 	}
226 	if (XFS_IS_CORRUPT(mp, !uuid_equal(&mp->m_sb.sb_uuid,
227 					   &head->h_fs_uuid))) {
228 		xfs_warn(mp,
229 	"dirty log entry has mismatched uuid - can't recover");
230 		xlog_header_check_dump(mp, head);
231 		return -EFSCORRUPTED;
232 	}
233 	return 0;
234 }
235 
236 /*
237  * read the head block of the log and check the header
238  */
239 STATIC int
xlog_header_check_mount(struct xfs_mount * mp,struct xlog_rec_header * head)240 xlog_header_check_mount(
241 	struct xfs_mount	*mp,
242 	struct xlog_rec_header	*head)
243 {
244 	ASSERT(head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM));
245 
246 	if (uuid_is_null(&head->h_fs_uuid)) {
247 		/*
248 		 * IRIX doesn't write the h_fs_uuid or h_fmt fields. If
249 		 * h_fs_uuid is null, we assume this log was last mounted
250 		 * by IRIX and continue.
251 		 */
252 		xfs_warn(mp, "null uuid in log - IRIX style log");
253 	} else if (XFS_IS_CORRUPT(mp, !uuid_equal(&mp->m_sb.sb_uuid,
254 						  &head->h_fs_uuid))) {
255 		xfs_warn(mp, "log has mismatched uuid - can't recover");
256 		xlog_header_check_dump(mp, head);
257 		return -EFSCORRUPTED;
258 	}
259 	return 0;
260 }
261 
262 /*
263  * This routine finds (to an approximation) the first block in the physical
264  * log which contains the given cycle.  It uses a binary search algorithm.
265  * Note that the algorithm can not be perfect because the disk will not
266  * necessarily be perfect.
267  */
268 STATIC int
xlog_find_cycle_start(struct xlog * log,char * buffer,xfs_daddr_t first_blk,xfs_daddr_t * last_blk,uint cycle)269 xlog_find_cycle_start(
270 	struct xlog	*log,
271 	char		*buffer,
272 	xfs_daddr_t	first_blk,
273 	xfs_daddr_t	*last_blk,
274 	uint		cycle)
275 {
276 	char		*offset;
277 	xfs_daddr_t	mid_blk;
278 	xfs_daddr_t	end_blk;
279 	uint		mid_cycle;
280 	int		error;
281 
282 	end_blk = *last_blk;
283 	mid_blk = BLK_AVG(first_blk, end_blk);
284 	while (mid_blk != first_blk && mid_blk != end_blk) {
285 		error = xlog_bread(log, mid_blk, 1, buffer, &offset);
286 		if (error)
287 			return error;
288 		mid_cycle = xlog_get_cycle(offset);
289 		if (mid_cycle == cycle)
290 			end_blk = mid_blk;   /* last_half_cycle == mid_cycle */
291 		else
292 			first_blk = mid_blk; /* first_half_cycle == mid_cycle */
293 		mid_blk = BLK_AVG(first_blk, end_blk);
294 	}
295 	ASSERT((mid_blk == first_blk && mid_blk+1 == end_blk) ||
296 	       (mid_blk == end_blk && mid_blk-1 == first_blk));
297 
298 	*last_blk = end_blk;
299 
300 	return 0;
301 }
302 
303 /*
304  * Check that a range of blocks does not contain stop_on_cycle_no.
305  * Fill in *new_blk with the block offset where such a block is
306  * found, or with -1 (an invalid block number) if there is no such
307  * block in the range.  The scan needs to occur from front to back
308  * and the pointer into the region must be updated since a later
309  * routine will need to perform another test.
310  */
311 STATIC int
xlog_find_verify_cycle(struct xlog * log,xfs_daddr_t start_blk,int nbblks,uint stop_on_cycle_no,xfs_daddr_t * new_blk)312 xlog_find_verify_cycle(
313 	struct xlog	*log,
314 	xfs_daddr_t	start_blk,
315 	int		nbblks,
316 	uint		stop_on_cycle_no,
317 	xfs_daddr_t	*new_blk)
318 {
319 	xfs_daddr_t	i, j;
320 	uint		cycle;
321 	char		*buffer;
322 	xfs_daddr_t	bufblks;
323 	char		*buf = NULL;
324 	int		error = 0;
325 
326 	/*
327 	 * Greedily allocate a buffer big enough to handle the full
328 	 * range of basic blocks we'll be examining.  If that fails,
329 	 * try a smaller size.  We need to be able to read at least
330 	 * a log sector, or we're out of luck.
331 	 */
332 	bufblks = roundup_pow_of_two(nbblks);
333 	while (bufblks > log->l_logBBsize)
334 		bufblks >>= 1;
335 	while (!(buffer = xlog_alloc_buffer(log, bufblks))) {
336 		bufblks >>= 1;
337 		if (bufblks < log->l_sectBBsize)
338 			return -ENOMEM;
339 	}
340 
341 	for (i = start_blk; i < start_blk + nbblks; i += bufblks) {
342 		int	bcount;
343 
344 		bcount = min(bufblks, (start_blk + nbblks - i));
345 
346 		error = xlog_bread(log, i, bcount, buffer, &buf);
347 		if (error)
348 			goto out;
349 
350 		for (j = 0; j < bcount; j++) {
351 			cycle = xlog_get_cycle(buf);
352 			if (cycle == stop_on_cycle_no) {
353 				*new_blk = i+j;
354 				goto out;
355 			}
356 
357 			buf += BBSIZE;
358 		}
359 	}
360 
361 	*new_blk = -1;
362 
363 out:
364 	kvfree(buffer);
365 	return error;
366 }
367 
368 static inline int
xlog_logrec_hblks(struct xlog * log,struct xlog_rec_header * rh)369 xlog_logrec_hblks(struct xlog *log, struct xlog_rec_header *rh)
370 {
371 	if (xfs_has_logv2(log->l_mp)) {
372 		int	h_size = be32_to_cpu(rh->h_size);
373 
374 		if ((be32_to_cpu(rh->h_version) & XLOG_VERSION_2) &&
375 		    h_size > XLOG_HEADER_CYCLE_SIZE)
376 			return DIV_ROUND_UP(h_size, XLOG_HEADER_CYCLE_SIZE);
377 	}
378 	return 1;
379 }
380 
381 /*
382  * Potentially backup over partial log record write.
383  *
384  * In the typical case, last_blk is the number of the block directly after
385  * a good log record.  Therefore, we subtract one to get the block number
386  * of the last block in the given buffer.  extra_bblks contains the number
387  * of blocks we would have read on a previous read.  This happens when the
388  * last log record is split over the end of the physical log.
389  *
390  * extra_bblks is the number of blocks potentially verified on a previous
391  * call to this routine.
392  */
393 STATIC int
xlog_find_verify_log_record(struct xlog * log,xfs_daddr_t start_blk,xfs_daddr_t * last_blk,int extra_bblks)394 xlog_find_verify_log_record(
395 	struct xlog		*log,
396 	xfs_daddr_t		start_blk,
397 	xfs_daddr_t		*last_blk,
398 	int			extra_bblks)
399 {
400 	xfs_daddr_t		i;
401 	char			*buffer;
402 	char			*offset = NULL;
403 	struct xlog_rec_header	*head = NULL;
404 	int			error = 0;
405 	int			smallmem = 0;
406 	int			num_blks = *last_blk - start_blk;
407 	int			xhdrs;
408 
409 	ASSERT(start_blk != 0 || *last_blk != start_blk);
410 
411 	buffer = xlog_alloc_buffer(log, num_blks);
412 	if (!buffer) {
413 		buffer = xlog_alloc_buffer(log, 1);
414 		if (!buffer)
415 			return -ENOMEM;
416 		smallmem = 1;
417 	} else {
418 		error = xlog_bread(log, start_blk, num_blks, buffer, &offset);
419 		if (error)
420 			goto out;
421 		offset += ((num_blks - 1) << BBSHIFT);
422 	}
423 
424 	for (i = (*last_blk) - 1; i >= 0; i--) {
425 		if (i < start_blk) {
426 			/* valid log record not found */
427 			xfs_warn(log->l_mp,
428 		"Log inconsistent (didn't find previous header)");
429 			ASSERT(0);
430 			error = -EFSCORRUPTED;
431 			goto out;
432 		}
433 
434 		if (smallmem) {
435 			error = xlog_bread(log, i, 1, buffer, &offset);
436 			if (error)
437 				goto out;
438 		}
439 
440 		head = (struct xlog_rec_header *)offset;
441 
442 		if (head->h_magicno == cpu_to_be32(XLOG_HEADER_MAGIC_NUM))
443 			break;
444 
445 		if (!smallmem)
446 			offset -= BBSIZE;
447 	}
448 
449 	/*
450 	 * We hit the beginning of the physical log & still no header.  Return
451 	 * to caller.  If caller can handle a return of -1, then this routine
452 	 * will be called again for the end of the physical log.
453 	 */
454 	if (i == -1) {
455 		error = 1;
456 		goto out;
457 	}
458 
459 	/*
460 	 * We have the final block of the good log (the first block
461 	 * of the log record _before_ the head. So we check the uuid.
462 	 */
463 	if ((error = xlog_header_check_mount(log->l_mp, head)))
464 		goto out;
465 
466 	/*
467 	 * We may have found a log record header before we expected one.
468 	 * last_blk will be the 1st block # with a given cycle #.  We may end
469 	 * up reading an entire log record.  In this case, we don't want to
470 	 * reset last_blk.  Only when last_blk points in the middle of a log
471 	 * record do we update last_blk.
472 	 */
473 	xhdrs = xlog_logrec_hblks(log, head);
474 
475 	if (*last_blk - i + extra_bblks !=
476 	    BTOBB(be32_to_cpu(head->h_len)) + xhdrs)
477 		*last_blk = i;
478 
479 out:
480 	kvfree(buffer);
481 	return error;
482 }
483 
484 /*
485  * Head is defined to be the point of the log where the next log write
486  * could go.  This means that incomplete LR writes at the end are
487  * eliminated when calculating the head.  We aren't guaranteed that previous
488  * LR have complete transactions.  We only know that a cycle number of
489  * current cycle number -1 won't be present in the log if we start writing
490  * from our current block number.
491  *
492  * last_blk contains the block number of the first block with a given
493  * cycle number.
494  *
495  * Return: zero if normal, non-zero if error.
496  */
497 STATIC int
xlog_find_head(struct xlog * log,xfs_daddr_t * return_head_blk)498 xlog_find_head(
499 	struct xlog	*log,
500 	xfs_daddr_t	*return_head_blk)
501 {
502 	char		*buffer;
503 	char		*offset;
504 	xfs_daddr_t	new_blk, first_blk, start_blk, last_blk, head_blk;
505 	int		num_scan_bblks;
506 	uint		first_half_cycle, last_half_cycle;
507 	uint		stop_on_cycle;
508 	int		error, log_bbnum = log->l_logBBsize;
509 
510 	/* Is the end of the log device zeroed? */
511 	error = xlog_find_zeroed(log, &first_blk);
512 	if (error < 0) {
513 		xfs_warn(log->l_mp, "empty log check failed");
514 		return error;
515 	}
516 	if (error == 1) {
517 		*return_head_blk = first_blk;
518 
519 		/* Is the whole lot zeroed? */
520 		if (!first_blk) {
521 			/* Linux XFS shouldn't generate totally zeroed logs -
522 			 * mkfs etc write a dummy unmount record to a fresh
523 			 * log so we can store the uuid in there
524 			 */
525 			xfs_warn(log->l_mp, "totally zeroed log");
526 		}
527 
528 		return 0;
529 	}
530 
531 	first_blk = 0;			/* get cycle # of 1st block */
532 	buffer = xlog_alloc_buffer(log, 1);
533 	if (!buffer)
534 		return -ENOMEM;
535 
536 	error = xlog_bread(log, 0, 1, buffer, &offset);
537 	if (error)
538 		goto out_free_buffer;
539 
540 	first_half_cycle = xlog_get_cycle(offset);
541 
542 	last_blk = head_blk = log_bbnum - 1;	/* get cycle # of last block */
543 	error = xlog_bread(log, last_blk, 1, buffer, &offset);
544 	if (error)
545 		goto out_free_buffer;
546 
547 	last_half_cycle = xlog_get_cycle(offset);
548 	ASSERT(last_half_cycle != 0);
549 
550 	/*
551 	 * If the 1st half cycle number is equal to the last half cycle number,
552 	 * then the entire log is stamped with the same cycle number.  In this
553 	 * case, head_blk can't be set to zero (which makes sense).  The below
554 	 * math doesn't work out properly with head_blk equal to zero.  Instead,
555 	 * we set it to log_bbnum which is an invalid block number, but this
556 	 * value makes the math correct.  If head_blk doesn't changed through
557 	 * all the tests below, *head_blk is set to zero at the very end rather
558 	 * than log_bbnum.  In a sense, log_bbnum and zero are the same block
559 	 * in a circular file.
560 	 */
561 	if (first_half_cycle == last_half_cycle) {
562 		/*
563 		 * In this case we believe that the entire log should have
564 		 * cycle number last_half_cycle.  We need to scan backwards
565 		 * from the end verifying that there are no holes still
566 		 * containing last_half_cycle - 1.  If we find such a hole,
567 		 * then the start of that hole will be the new head.  The
568 		 * simple case looks like
569 		 *        x | x ... | x - 1 | x
570 		 * Another case that fits this picture would be
571 		 *        x | x + 1 | x ... | x
572 		 * In this case the head really is somewhere at the end of the
573 		 * log, as one of the latest writes at the beginning was
574 		 * incomplete.
575 		 * One more case is
576 		 *        x | x + 1 | x ... | x - 1 | x
577 		 * This is really the combination of the above two cases, and
578 		 * the head has to end up at the start of the x-1 hole at the
579 		 * end of the log.
580 		 *
581 		 * In the 256k log case, we will read from the beginning to the
582 		 * end of the log and search for cycle numbers equal to x-1.
583 		 * We don't worry about the x+1 blocks that we encounter,
584 		 * because we know that they cannot be the head since the log
585 		 * started with x.
586 		 */
587 		head_blk = log_bbnum;
588 		stop_on_cycle = last_half_cycle - 1;
589 	} else {
590 		/*
591 		 * In this case we want to find the first block with cycle
592 		 * number matching last_half_cycle.  We expect the log to be
593 		 * some variation on
594 		 *        x + 1 ... | x ... | x
595 		 * The first block with cycle number x (last_half_cycle) will
596 		 * be where the new head belongs.  First we do a binary search
597 		 * for the first occurrence of last_half_cycle.  The binary
598 		 * search may not be totally accurate, so then we scan back
599 		 * from there looking for occurrences of last_half_cycle before
600 		 * us.  If that backwards scan wraps around the beginning of
601 		 * the log, then we look for occurrences of last_half_cycle - 1
602 		 * at the end of the log.  The cases we're looking for look
603 		 * like
604 		 *                               v binary search stopped here
605 		 *        x + 1 ... | x | x + 1 | x ... | x
606 		 *                   ^ but we want to locate this spot
607 		 * or
608 		 *        <---------> less than scan distance
609 		 *        x + 1 ... | x ... | x - 1 | x
610 		 *                           ^ we want to locate this spot
611 		 */
612 		stop_on_cycle = last_half_cycle;
613 		error = xlog_find_cycle_start(log, buffer, first_blk, &head_blk,
614 				last_half_cycle);
615 		if (error)
616 			goto out_free_buffer;
617 	}
618 
619 	/*
620 	 * Now validate the answer.  Scan back some number of maximum possible
621 	 * blocks and make sure each one has the expected cycle number.  The
622 	 * maximum is determined by the total possible amount of buffering
623 	 * in the in-core log.  The following number can be made tighter if
624 	 * we actually look at the block size of the filesystem.
625 	 */
626 	num_scan_bblks = min_t(int, log_bbnum, XLOG_TOTAL_REC_SHIFT(log));
627 	if (head_blk >= num_scan_bblks) {
628 		/*
629 		 * We are guaranteed that the entire check can be performed
630 		 * in one buffer.
631 		 */
632 		start_blk = head_blk - num_scan_bblks;
633 		if ((error = xlog_find_verify_cycle(log,
634 						start_blk, num_scan_bblks,
635 						stop_on_cycle, &new_blk)))
636 			goto out_free_buffer;
637 		if (new_blk != -1)
638 			head_blk = new_blk;
639 	} else {		/* need to read 2 parts of log */
640 		/*
641 		 * We are going to scan backwards in the log in two parts.
642 		 * First we scan the physical end of the log.  In this part
643 		 * of the log, we are looking for blocks with cycle number
644 		 * last_half_cycle - 1.
645 		 * If we find one, then we know that the log starts there, as
646 		 * we've found a hole that didn't get written in going around
647 		 * the end of the physical log.  The simple case for this is
648 		 *        x + 1 ... | x ... | x - 1 | x
649 		 *        <---------> less than scan distance
650 		 * If all of the blocks at the end of the log have cycle number
651 		 * last_half_cycle, then we check the blocks at the start of
652 		 * the log looking for occurrences of last_half_cycle.  If we
653 		 * find one, then our current estimate for the location of the
654 		 * first occurrence of last_half_cycle is wrong and we move
655 		 * back to the hole we've found.  This case looks like
656 		 *        x + 1 ... | x | x + 1 | x ...
657 		 *                               ^ binary search stopped here
658 		 * Another case we need to handle that only occurs in 256k
659 		 * logs is
660 		 *        x + 1 ... | x ... | x+1 | x ...
661 		 *                   ^ binary search stops here
662 		 * In a 256k log, the scan at the end of the log will see the
663 		 * x + 1 blocks.  We need to skip past those since that is
664 		 * certainly not the head of the log.  By searching for
665 		 * last_half_cycle-1 we accomplish that.
666 		 */
667 		ASSERT(head_blk <= INT_MAX &&
668 			(xfs_daddr_t) num_scan_bblks >= head_blk);
669 		start_blk = log_bbnum - (num_scan_bblks - head_blk);
670 		if ((error = xlog_find_verify_cycle(log, start_blk,
671 					num_scan_bblks - (int)head_blk,
672 					(stop_on_cycle - 1), &new_blk)))
673 			goto out_free_buffer;
674 		if (new_blk != -1) {
675 			head_blk = new_blk;
676 			goto validate_head;
677 		}
678 
679 		/*
680 		 * Scan beginning of log now.  The last part of the physical
681 		 * log is good.  This scan needs to verify that it doesn't find
682 		 * the last_half_cycle.
683 		 */
684 		start_blk = 0;
685 		ASSERT(head_blk <= INT_MAX);
686 		if ((error = xlog_find_verify_cycle(log,
687 					start_blk, (int)head_blk,
688 					stop_on_cycle, &new_blk)))
689 			goto out_free_buffer;
690 		if (new_blk != -1)
691 			head_blk = new_blk;
692 	}
693 
694 validate_head:
695 	/*
696 	 * Now we need to make sure head_blk is not pointing to a block in
697 	 * the middle of a log record.
698 	 */
699 	num_scan_bblks = XLOG_REC_SHIFT(log);
700 	if (head_blk >= num_scan_bblks) {
701 		start_blk = head_blk - num_scan_bblks; /* don't read head_blk */
702 
703 		/* start ptr at last block ptr before head_blk */
704 		error = xlog_find_verify_log_record(log, start_blk, &head_blk, 0);
705 		if (error == 1)
706 			error = -EIO;
707 		if (error)
708 			goto out_free_buffer;
709 	} else {
710 		start_blk = 0;
711 		ASSERT(head_blk <= INT_MAX);
712 		error = xlog_find_verify_log_record(log, start_blk, &head_blk, 0);
713 		if (error < 0)
714 			goto out_free_buffer;
715 		if (error == 1) {
716 			/* We hit the beginning of the log during our search */
717 			start_blk = log_bbnum - (num_scan_bblks - head_blk);
718 			new_blk = log_bbnum;
719 			ASSERT(start_blk <= INT_MAX &&
720 				(xfs_daddr_t) log_bbnum-start_blk >= 0);
721 			ASSERT(head_blk <= INT_MAX);
722 			error = xlog_find_verify_log_record(log, start_blk,
723 							&new_blk, (int)head_blk);
724 			if (error == 1)
725 				error = -EIO;
726 			if (error)
727 				goto out_free_buffer;
728 			if (new_blk != log_bbnum)
729 				head_blk = new_blk;
730 		} else if (error)
731 			goto out_free_buffer;
732 	}
733 
734 	kvfree(buffer);
735 	if (head_blk == log_bbnum)
736 		*return_head_blk = 0;
737 	else
738 		*return_head_blk = head_blk;
739 	/*
740 	 * When returning here, we have a good block number.  Bad block
741 	 * means that during a previous crash, we didn't have a clean break
742 	 * from cycle number N to cycle number N-1.  In this case, we need
743 	 * to find the first block with cycle number N-1.
744 	 */
745 	return 0;
746 
747 out_free_buffer:
748 	kvfree(buffer);
749 	if (error)
750 		xfs_warn(log->l_mp, "failed to find log head");
751 	return error;
752 }
753 
754 /*
755  * Seek backwards in the log for log record headers.
756  *
757  * Given a starting log block, walk backwards until we find the provided number
758  * of records or hit the provided tail block. The return value is the number of
759  * records encountered or a negative error code. The log block and buffer
760  * pointer of the last record seen are returned in rblk and rhead respectively.
761  */
762 STATIC int
xlog_rseek_logrec_hdr(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t tail_blk,int count,char * buffer,xfs_daddr_t * rblk,struct xlog_rec_header ** rhead,bool * wrapped)763 xlog_rseek_logrec_hdr(
764 	struct xlog		*log,
765 	xfs_daddr_t		head_blk,
766 	xfs_daddr_t		tail_blk,
767 	int			count,
768 	char			*buffer,
769 	xfs_daddr_t		*rblk,
770 	struct xlog_rec_header	**rhead,
771 	bool			*wrapped)
772 {
773 	int			i;
774 	int			error;
775 	int			found = 0;
776 	char			*offset = NULL;
777 	xfs_daddr_t		end_blk;
778 
779 	*wrapped = false;
780 
781 	/*
782 	 * Walk backwards from the head block until we hit the tail or the first
783 	 * block in the log.
784 	 */
785 	end_blk = head_blk > tail_blk ? tail_blk : 0;
786 	for (i = (int) head_blk - 1; i >= end_blk; i--) {
787 		error = xlog_bread(log, i, 1, buffer, &offset);
788 		if (error)
789 			goto out_error;
790 
791 		if (*(__be32 *) offset == cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
792 			*rblk = i;
793 			*rhead = (struct xlog_rec_header *) offset;
794 			if (++found == count)
795 				break;
796 		}
797 	}
798 
799 	/*
800 	 * If we haven't hit the tail block or the log record header count,
801 	 * start looking again from the end of the physical log. Note that
802 	 * callers can pass head == tail if the tail is not yet known.
803 	 */
804 	if (tail_blk >= head_blk && found != count) {
805 		for (i = log->l_logBBsize - 1; i >= (int) tail_blk; i--) {
806 			error = xlog_bread(log, i, 1, buffer, &offset);
807 			if (error)
808 				goto out_error;
809 
810 			if (*(__be32 *)offset ==
811 			    cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
812 				*wrapped = true;
813 				*rblk = i;
814 				*rhead = (struct xlog_rec_header *) offset;
815 				if (++found == count)
816 					break;
817 			}
818 		}
819 	}
820 
821 	return found;
822 
823 out_error:
824 	return error;
825 }
826 
827 /*
828  * Seek forward in the log for log record headers.
829  *
830  * Given head and tail blocks, walk forward from the tail block until we find
831  * the provided number of records or hit the head block. The return value is the
832  * number of records encountered or a negative error code. The log block and
833  * buffer pointer of the last record seen are returned in rblk and rhead
834  * respectively.
835  */
836 STATIC int
xlog_seek_logrec_hdr(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t tail_blk,int count,char * buffer,xfs_daddr_t * rblk,struct xlog_rec_header ** rhead,bool * wrapped)837 xlog_seek_logrec_hdr(
838 	struct xlog		*log,
839 	xfs_daddr_t		head_blk,
840 	xfs_daddr_t		tail_blk,
841 	int			count,
842 	char			*buffer,
843 	xfs_daddr_t		*rblk,
844 	struct xlog_rec_header	**rhead,
845 	bool			*wrapped)
846 {
847 	int			i;
848 	int			error;
849 	int			found = 0;
850 	char			*offset = NULL;
851 	xfs_daddr_t		end_blk;
852 
853 	*wrapped = false;
854 
855 	/*
856 	 * Walk forward from the tail block until we hit the head or the last
857 	 * block in the log.
858 	 */
859 	end_blk = head_blk > tail_blk ? head_blk : log->l_logBBsize - 1;
860 	for (i = (int) tail_blk; i <= end_blk; i++) {
861 		error = xlog_bread(log, i, 1, buffer, &offset);
862 		if (error)
863 			goto out_error;
864 
865 		if (*(__be32 *) offset == cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
866 			*rblk = i;
867 			*rhead = (struct xlog_rec_header *) offset;
868 			if (++found == count)
869 				break;
870 		}
871 	}
872 
873 	/*
874 	 * If we haven't hit the head block or the log record header count,
875 	 * start looking again from the start of the physical log.
876 	 */
877 	if (tail_blk > head_blk && found != count) {
878 		for (i = 0; i < (int) head_blk; i++) {
879 			error = xlog_bread(log, i, 1, buffer, &offset);
880 			if (error)
881 				goto out_error;
882 
883 			if (*(__be32 *)offset ==
884 			    cpu_to_be32(XLOG_HEADER_MAGIC_NUM)) {
885 				*wrapped = true;
886 				*rblk = i;
887 				*rhead = (struct xlog_rec_header *) offset;
888 				if (++found == count)
889 					break;
890 			}
891 		}
892 	}
893 
894 	return found;
895 
896 out_error:
897 	return error;
898 }
899 
900 /*
901  * Calculate distance from head to tail (i.e., unused space in the log).
902  */
903 static inline int
xlog_tail_distance(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t tail_blk)904 xlog_tail_distance(
905 	struct xlog	*log,
906 	xfs_daddr_t	head_blk,
907 	xfs_daddr_t	tail_blk)
908 {
909 	if (head_blk < tail_blk)
910 		return tail_blk - head_blk;
911 
912 	return tail_blk + (log->l_logBBsize - head_blk);
913 }
914 
915 /*
916  * Verify the log tail. This is particularly important when torn or incomplete
917  * writes have been detected near the front of the log and the head has been
918  * walked back accordingly.
919  *
920  * We also have to handle the case where the tail was pinned and the head
921  * blocked behind the tail right before a crash. If the tail had been pushed
922  * immediately prior to the crash and the subsequent checkpoint was only
923  * partially written, it's possible it overwrote the last referenced tail in the
924  * log with garbage. This is not a coherency problem because the tail must have
925  * been pushed before it can be overwritten, but appears as log corruption to
926  * recovery because we have no way to know the tail was updated if the
927  * subsequent checkpoint didn't write successfully.
928  *
929  * Therefore, CRC check the log from tail to head. If a failure occurs and the
930  * offending record is within max iclog bufs from the head, walk the tail
931  * forward and retry until a valid tail is found or corruption is detected out
932  * of the range of a possible overwrite.
933  */
934 STATIC int
xlog_verify_tail(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t * tail_blk,int hsize)935 xlog_verify_tail(
936 	struct xlog		*log,
937 	xfs_daddr_t		head_blk,
938 	xfs_daddr_t		*tail_blk,
939 	int			hsize)
940 {
941 	struct xlog_rec_header	*thead;
942 	char			*buffer;
943 	xfs_daddr_t		first_bad;
944 	int			error = 0;
945 	bool			wrapped;
946 	xfs_daddr_t		tmp_tail;
947 	xfs_daddr_t		orig_tail = *tail_blk;
948 
949 	buffer = xlog_alloc_buffer(log, 1);
950 	if (!buffer)
951 		return -ENOMEM;
952 
953 	/*
954 	 * Make sure the tail points to a record (returns positive count on
955 	 * success).
956 	 */
957 	error = xlog_seek_logrec_hdr(log, head_blk, *tail_blk, 1, buffer,
958 			&tmp_tail, &thead, &wrapped);
959 	if (error < 0)
960 		goto out;
961 	if (*tail_blk != tmp_tail)
962 		*tail_blk = tmp_tail;
963 
964 	/*
965 	 * Run a CRC check from the tail to the head. We can't just check
966 	 * MAX_ICLOGS records past the tail because the tail may point to stale
967 	 * blocks cleared during the search for the head/tail. These blocks are
968 	 * overwritten with zero-length records and thus record count is not a
969 	 * reliable indicator of the iclog state before a crash.
970 	 */
971 	first_bad = 0;
972 	error = xlog_do_recovery_pass(log, head_blk, *tail_blk,
973 				      XLOG_RECOVER_CRCPASS, &first_bad);
974 	while ((error == -EFSBADCRC || error == -EFSCORRUPTED) && first_bad) {
975 		int	tail_distance;
976 
977 		/*
978 		 * Is corruption within range of the head? If so, retry from
979 		 * the next record. Otherwise return an error.
980 		 */
981 		tail_distance = xlog_tail_distance(log, head_blk, first_bad);
982 		if (tail_distance > BTOBB(XLOG_MAX_ICLOGS * hsize))
983 			break;
984 
985 		/* skip to the next record; returns positive count on success */
986 		error = xlog_seek_logrec_hdr(log, head_blk, first_bad, 2,
987 				buffer, &tmp_tail, &thead, &wrapped);
988 		if (error < 0)
989 			goto out;
990 
991 		*tail_blk = tmp_tail;
992 		first_bad = 0;
993 		error = xlog_do_recovery_pass(log, head_blk, *tail_blk,
994 					      XLOG_RECOVER_CRCPASS, &first_bad);
995 	}
996 
997 	if (!error && *tail_blk != orig_tail)
998 		xfs_warn(log->l_mp,
999 		"Tail block (0x%llx) overwrite detected. Updated to 0x%llx",
1000 			 orig_tail, *tail_blk);
1001 out:
1002 	kvfree(buffer);
1003 	return error;
1004 }
1005 
1006 /*
1007  * Detect and trim torn writes from the head of the log.
1008  *
1009  * Storage without sector atomicity guarantees can result in torn writes in the
1010  * log in the event of a crash. Our only means to detect this scenario is via
1011  * CRC verification. While we can't always be certain that CRC verification
1012  * failure is due to a torn write vs. an unrelated corruption, we do know that
1013  * only a certain number (XLOG_MAX_ICLOGS) of log records can be written out at
1014  * one time. Therefore, CRC verify up to XLOG_MAX_ICLOGS records at the head of
1015  * the log and treat failures in this range as torn writes as a matter of
1016  * policy. In the event of CRC failure, the head is walked back to the last good
1017  * record in the log and the tail is updated from that record and verified.
1018  */
1019 STATIC int
xlog_verify_head(struct xlog * log,xfs_daddr_t * head_blk,xfs_daddr_t * tail_blk,char * buffer,xfs_daddr_t * rhead_blk,struct xlog_rec_header ** rhead,bool * wrapped)1020 xlog_verify_head(
1021 	struct xlog		*log,
1022 	xfs_daddr_t		*head_blk,	/* in/out: unverified head */
1023 	xfs_daddr_t		*tail_blk,	/* out: tail block */
1024 	char			*buffer,
1025 	xfs_daddr_t		*rhead_blk,	/* start blk of last record */
1026 	struct xlog_rec_header	**rhead,	/* ptr to last record */
1027 	bool			*wrapped)	/* last rec. wraps phys. log */
1028 {
1029 	struct xlog_rec_header	*tmp_rhead;
1030 	char			*tmp_buffer;
1031 	xfs_daddr_t		first_bad = XFS_BUF_DADDR_NULL;
1032 	xfs_daddr_t		tmp_rhead_blk;
1033 	int			found;
1034 	int			error;
1035 	bool			tmp_wrapped;
1036 
1037 	/*
1038 	 * Check the head of the log for torn writes. Search backwards from the
1039 	 * head until we hit the tail or the maximum number of log record I/Os
1040 	 * that could have been in flight at one time. Use a temporary buffer so
1041 	 * we don't trash the rhead/buffer pointers from the caller.
1042 	 */
1043 	tmp_buffer = xlog_alloc_buffer(log, 1);
1044 	if (!tmp_buffer)
1045 		return -ENOMEM;
1046 	error = xlog_rseek_logrec_hdr(log, *head_blk, *tail_blk,
1047 				      XLOG_MAX_ICLOGS, tmp_buffer,
1048 				      &tmp_rhead_blk, &tmp_rhead, &tmp_wrapped);
1049 	kvfree(tmp_buffer);
1050 	if (error < 0)
1051 		return error;
1052 
1053 	/*
1054 	 * Now run a CRC verification pass over the records starting at the
1055 	 * block found above to the current head. If a CRC failure occurs, the
1056 	 * log block of the first bad record is saved in first_bad.
1057 	 */
1058 	error = xlog_do_recovery_pass(log, *head_blk, tmp_rhead_blk,
1059 				      XLOG_RECOVER_CRCPASS, &first_bad);
1060 	if ((error == -EFSBADCRC || error == -EFSCORRUPTED) &&
1061 	    first_bad != XFS_BUF_DADDR_NULL) {
1062 		/*
1063 		 * We've hit a potential torn write. Reset the error and warn
1064 		 * about it.
1065 		 */
1066 		error = 0;
1067 		xfs_warn(log->l_mp,
1068 "Torn write (CRC failure) detected at log block 0x%llx. Truncating head block from 0x%llx.",
1069 			 first_bad, *head_blk);
1070 
1071 		/*
1072 		 * Get the header block and buffer pointer for the last good
1073 		 * record before the bad record.
1074 		 *
1075 		 * Note that xlog_find_tail() clears the blocks at the new head
1076 		 * (i.e., the records with invalid CRC) if the cycle number
1077 		 * matches the current cycle.
1078 		 */
1079 		found = xlog_rseek_logrec_hdr(log, first_bad, *tail_blk, 1,
1080 				buffer, rhead_blk, rhead, wrapped);
1081 		if (found < 0)
1082 			return found;
1083 		if (found == 0)		/* XXX: right thing to do here? */
1084 			return -EIO;
1085 
1086 		/*
1087 		 * Reset the head block to the starting block of the first bad
1088 		 * log record and set the tail block based on the last good
1089 		 * record.
1090 		 *
1091 		 * Bail out if the updated head/tail match as this indicates
1092 		 * possible corruption outside of the acceptable
1093 		 * (XLOG_MAX_ICLOGS) range. This is a job for xfs_repair...
1094 		 */
1095 		*head_blk = first_bad;
1096 		*tail_blk = BLOCK_LSN(be64_to_cpu((*rhead)->h_tail_lsn));
1097 		if (*head_blk == *tail_blk) {
1098 			ASSERT(0);
1099 			return 0;
1100 		}
1101 	}
1102 	if (error)
1103 		return error;
1104 
1105 	return xlog_verify_tail(log, *head_blk, tail_blk,
1106 				be32_to_cpu((*rhead)->h_size));
1107 }
1108 
1109 /*
1110  * We need to make sure we handle log wrapping properly, so we can't use the
1111  * calculated logbno directly. Make sure it wraps to the correct bno inside the
1112  * log.
1113  *
1114  * The log is limited to 32 bit sizes, so we use the appropriate modulus
1115  * operation here and cast it back to a 64 bit daddr on return.
1116  */
1117 static inline xfs_daddr_t
xlog_wrap_logbno(struct xlog * log,xfs_daddr_t bno)1118 xlog_wrap_logbno(
1119 	struct xlog		*log,
1120 	xfs_daddr_t		bno)
1121 {
1122 	int			mod;
1123 
1124 	div_s64_rem(bno, log->l_logBBsize, &mod);
1125 	return mod;
1126 }
1127 
1128 /*
1129  * Check whether the head of the log points to an unmount record. In other
1130  * words, determine whether the log is clean. If so, update the in-core state
1131  * appropriately.
1132  */
1133 static int
xlog_check_unmount_rec(struct xlog * log,xfs_daddr_t * head_blk,xfs_daddr_t * tail_blk,struct xlog_rec_header * rhead,xfs_daddr_t rhead_blk,char * buffer,bool * clean)1134 xlog_check_unmount_rec(
1135 	struct xlog		*log,
1136 	xfs_daddr_t		*head_blk,
1137 	xfs_daddr_t		*tail_blk,
1138 	struct xlog_rec_header	*rhead,
1139 	xfs_daddr_t		rhead_blk,
1140 	char			*buffer,
1141 	bool			*clean)
1142 {
1143 	struct xlog_op_header	*op_head;
1144 	xfs_daddr_t		umount_data_blk;
1145 	xfs_daddr_t		after_umount_blk;
1146 	int			hblks;
1147 	int			error;
1148 	char			*offset;
1149 
1150 	*clean = false;
1151 
1152 	/*
1153 	 * Look for unmount record. If we find it, then we know there was a
1154 	 * clean unmount. Since 'i' could be the last block in the physical
1155 	 * log, we convert to a log block before comparing to the head_blk.
1156 	 *
1157 	 * Save the current tail lsn to use to pass to xlog_clear_stale_blocks()
1158 	 * below. We won't want to clear the unmount record if there is one, so
1159 	 * we pass the lsn of the unmount record rather than the block after it.
1160 	 */
1161 	hblks = xlog_logrec_hblks(log, rhead);
1162 	after_umount_blk = xlog_wrap_logbno(log,
1163 			rhead_blk + hblks + BTOBB(be32_to_cpu(rhead->h_len)));
1164 
1165 	if (*head_blk == after_umount_blk &&
1166 	    be32_to_cpu(rhead->h_num_logops) == 1) {
1167 		umount_data_blk = xlog_wrap_logbno(log, rhead_blk + hblks);
1168 		error = xlog_bread(log, umount_data_blk, 1, buffer, &offset);
1169 		if (error)
1170 			return error;
1171 
1172 		op_head = (struct xlog_op_header *)offset;
1173 		if (op_head->oh_flags & XLOG_UNMOUNT_TRANS) {
1174 			/*
1175 			 * Set tail and last sync so that newly written log
1176 			 * records will point recovery to after the current
1177 			 * unmount record.
1178 			 */
1179 			xlog_assign_atomic_lsn(&log->l_tail_lsn,
1180 					log->l_curr_cycle, after_umount_blk);
1181 			log->l_ailp->ail_head_lsn =
1182 					atomic64_read(&log->l_tail_lsn);
1183 			*tail_blk = after_umount_blk;
1184 
1185 			*clean = true;
1186 		}
1187 	}
1188 
1189 	return 0;
1190 }
1191 
1192 static void
xlog_set_state(struct xlog * log,xfs_daddr_t head_blk,struct xlog_rec_header * rhead,xfs_daddr_t rhead_blk,bool bump_cycle)1193 xlog_set_state(
1194 	struct xlog		*log,
1195 	xfs_daddr_t		head_blk,
1196 	struct xlog_rec_header	*rhead,
1197 	xfs_daddr_t		rhead_blk,
1198 	bool			bump_cycle)
1199 {
1200 	/*
1201 	 * Reset log values according to the state of the log when we
1202 	 * crashed.  In the case where head_blk == 0, we bump curr_cycle
1203 	 * one because the next write starts a new cycle rather than
1204 	 * continuing the cycle of the last good log record.  At this
1205 	 * point we have guaranteed that all partial log records have been
1206 	 * accounted for.  Therefore, we know that the last good log record
1207 	 * written was complete and ended exactly on the end boundary
1208 	 * of the physical log.
1209 	 */
1210 	log->l_prev_block = rhead_blk;
1211 	log->l_curr_block = (int)head_blk;
1212 	log->l_curr_cycle = be32_to_cpu(rhead->h_cycle);
1213 	if (bump_cycle)
1214 		log->l_curr_cycle++;
1215 	atomic64_set(&log->l_tail_lsn, be64_to_cpu(rhead->h_tail_lsn));
1216 	log->l_ailp->ail_head_lsn = be64_to_cpu(rhead->h_lsn);
1217 }
1218 
1219 /*
1220  * Find the sync block number or the tail of the log.
1221  *
1222  * This will be the block number of the last record to have its
1223  * associated buffers synced to disk.  Every log record header has
1224  * a sync lsn embedded in it.  LSNs hold block numbers, so it is easy
1225  * to get a sync block number.  The only concern is to figure out which
1226  * log record header to believe.
1227  *
1228  * The following algorithm uses the log record header with the largest
1229  * lsn.  The entire log record does not need to be valid.  We only care
1230  * that the header is valid.
1231  *
1232  * We could speed up search by using current head_blk buffer, but it is not
1233  * available.
1234  */
1235 STATIC int
xlog_find_tail(struct xlog * log,xfs_daddr_t * head_blk,xfs_daddr_t * tail_blk)1236 xlog_find_tail(
1237 	struct xlog		*log,
1238 	xfs_daddr_t		*head_blk,
1239 	xfs_daddr_t		*tail_blk)
1240 {
1241 	struct xlog_rec_header	*rhead;
1242 	char			*offset = NULL;
1243 	char			*buffer;
1244 	int			error;
1245 	xfs_daddr_t		rhead_blk;
1246 	xfs_lsn_t		tail_lsn;
1247 	bool			wrapped = false;
1248 	bool			clean = false;
1249 
1250 	/*
1251 	 * Find previous log record
1252 	 */
1253 	if ((error = xlog_find_head(log, head_blk)))
1254 		return error;
1255 	ASSERT(*head_blk < INT_MAX);
1256 
1257 	buffer = xlog_alloc_buffer(log, 1);
1258 	if (!buffer)
1259 		return -ENOMEM;
1260 	if (*head_blk == 0) {				/* special case */
1261 		error = xlog_bread(log, 0, 1, buffer, &offset);
1262 		if (error)
1263 			goto done;
1264 
1265 		if (xlog_get_cycle(offset) == 0) {
1266 			*tail_blk = 0;
1267 			/* leave all other log inited values alone */
1268 			goto done;
1269 		}
1270 	}
1271 
1272 	/*
1273 	 * Search backwards through the log looking for the log record header
1274 	 * block. This wraps all the way back around to the head so something is
1275 	 * seriously wrong if we can't find it.
1276 	 */
1277 	error = xlog_rseek_logrec_hdr(log, *head_blk, *head_blk, 1, buffer,
1278 				      &rhead_blk, &rhead, &wrapped);
1279 	if (error < 0)
1280 		goto done;
1281 	if (!error) {
1282 		xfs_warn(log->l_mp, "%s: couldn't find sync record", __func__);
1283 		error = -EFSCORRUPTED;
1284 		goto done;
1285 	}
1286 	*tail_blk = BLOCK_LSN(be64_to_cpu(rhead->h_tail_lsn));
1287 
1288 	/*
1289 	 * Set the log state based on the current head record.
1290 	 */
1291 	xlog_set_state(log, *head_blk, rhead, rhead_blk, wrapped);
1292 	tail_lsn = atomic64_read(&log->l_tail_lsn);
1293 
1294 	/*
1295 	 * Look for an unmount record at the head of the log. This sets the log
1296 	 * state to determine whether recovery is necessary.
1297 	 */
1298 	error = xlog_check_unmount_rec(log, head_blk, tail_blk, rhead,
1299 				       rhead_blk, buffer, &clean);
1300 	if (error)
1301 		goto done;
1302 
1303 	/*
1304 	 * Verify the log head if the log is not clean (e.g., we have anything
1305 	 * but an unmount record at the head). This uses CRC verification to
1306 	 * detect and trim torn writes. If discovered, CRC failures are
1307 	 * considered torn writes and the log head is trimmed accordingly.
1308 	 *
1309 	 * Note that we can only run CRC verification when the log is dirty
1310 	 * because there's no guarantee that the log data behind an unmount
1311 	 * record is compatible with the current architecture.
1312 	 */
1313 	if (!clean) {
1314 		xfs_daddr_t	orig_head = *head_blk;
1315 
1316 		error = xlog_verify_head(log, head_blk, tail_blk, buffer,
1317 					 &rhead_blk, &rhead, &wrapped);
1318 		if (error)
1319 			goto done;
1320 
1321 		/* update in-core state again if the head changed */
1322 		if (*head_blk != orig_head) {
1323 			xlog_set_state(log, *head_blk, rhead, rhead_blk,
1324 				       wrapped);
1325 			tail_lsn = atomic64_read(&log->l_tail_lsn);
1326 			error = xlog_check_unmount_rec(log, head_blk, tail_blk,
1327 						       rhead, rhead_blk, buffer,
1328 						       &clean);
1329 			if (error)
1330 				goto done;
1331 		}
1332 	}
1333 
1334 	/*
1335 	 * Note that the unmount was clean. If the unmount was not clean, we
1336 	 * need to know this to rebuild the superblock counters from the perag
1337 	 * headers if we have a filesystem using non-persistent counters.
1338 	 */
1339 	if (clean)
1340 		xfs_set_clean(log->l_mp);
1341 
1342 	/*
1343 	 * Make sure that there are no blocks in front of the head
1344 	 * with the same cycle number as the head.  This can happen
1345 	 * because we allow multiple outstanding log writes concurrently,
1346 	 * and the later writes might make it out before earlier ones.
1347 	 *
1348 	 * We use the lsn from before modifying it so that we'll never
1349 	 * overwrite the unmount record after a clean unmount.
1350 	 *
1351 	 * Do this only if we are going to recover the filesystem
1352 	 *
1353 	 * NOTE: This used to say "if (!readonly)"
1354 	 * However on Linux, we can & do recover a read-only filesystem.
1355 	 * We only skip recovery if NORECOVERY is specified on mount,
1356 	 * in which case we would not be here.
1357 	 *
1358 	 * But... if the -device- itself is readonly, just skip this.
1359 	 * We can't recover this device anyway, so it won't matter.
1360 	 */
1361 	if (!xfs_readonly_buftarg(log->l_targ))
1362 		error = xlog_clear_stale_blocks(log, tail_lsn);
1363 
1364 done:
1365 	kvfree(buffer);
1366 
1367 	if (error)
1368 		xfs_warn(log->l_mp, "failed to locate log tail");
1369 	return error;
1370 }
1371 
1372 /*
1373  * Is the log zeroed at all?
1374  *
1375  * The last binary search should be changed to perform an X block read
1376  * once X becomes small enough.  You can then search linearly through
1377  * the X blocks.  This will cut down on the number of reads we need to do.
1378  *
1379  * If the log is partially zeroed, this routine will pass back the blkno
1380  * of the first block with cycle number 0.  It won't have a complete LR
1381  * preceding it.
1382  *
1383  * Return:
1384  *	0  => the log is completely written to
1385  *	1 => use *blk_no as the first block of the log
1386  *	<0 => error has occurred
1387  */
1388 STATIC int
xlog_find_zeroed(struct xlog * log,xfs_daddr_t * blk_no)1389 xlog_find_zeroed(
1390 	struct xlog	*log,
1391 	xfs_daddr_t	*blk_no)
1392 {
1393 	char		*buffer;
1394 	char		*offset;
1395 	uint	        first_cycle, last_cycle;
1396 	xfs_daddr_t	new_blk, last_blk, start_blk;
1397 	xfs_daddr_t     num_scan_bblks;
1398 	int	        error, log_bbnum = log->l_logBBsize;
1399 	int		ret = 1;
1400 
1401 	*blk_no = 0;
1402 
1403 	/* check totally zeroed log */
1404 	buffer = xlog_alloc_buffer(log, 1);
1405 	if (!buffer)
1406 		return -ENOMEM;
1407 	error = xlog_bread(log, 0, 1, buffer, &offset);
1408 	if (error)
1409 		goto out_free_buffer;
1410 
1411 	first_cycle = xlog_get_cycle(offset);
1412 	if (first_cycle == 0) {		/* completely zeroed log */
1413 		*blk_no = 0;
1414 		goto out_free_buffer;
1415 	}
1416 
1417 	/* check partially zeroed log */
1418 	error = xlog_bread(log, log_bbnum-1, 1, buffer, &offset);
1419 	if (error)
1420 		goto out_free_buffer;
1421 
1422 	last_cycle = xlog_get_cycle(offset);
1423 	if (last_cycle != 0) {		/* log completely written to */
1424 		ret = 0;
1425 		goto out_free_buffer;
1426 	}
1427 
1428 	/* we have a partially zeroed log */
1429 	last_blk = log_bbnum-1;
1430 	error = xlog_find_cycle_start(log, buffer, 0, &last_blk, 0);
1431 	if (error)
1432 		goto out_free_buffer;
1433 
1434 	/*
1435 	 * Validate the answer.  Because there is no way to guarantee that
1436 	 * the entire log is made up of log records which are the same size,
1437 	 * we scan over the defined maximum blocks.  At this point, the maximum
1438 	 * is not chosen to mean anything special.   XXXmiken
1439 	 */
1440 	num_scan_bblks = XLOG_TOTAL_REC_SHIFT(log);
1441 	ASSERT(num_scan_bblks <= INT_MAX);
1442 
1443 	if (last_blk < num_scan_bblks)
1444 		num_scan_bblks = last_blk;
1445 	start_blk = last_blk - num_scan_bblks;
1446 
1447 	/*
1448 	 * We search for any instances of cycle number 0 that occur before
1449 	 * our current estimate of the head.  What we're trying to detect is
1450 	 *        1 ... | 0 | 1 | 0...
1451 	 *                       ^ binary search ends here
1452 	 */
1453 	if ((error = xlog_find_verify_cycle(log, start_blk,
1454 					 (int)num_scan_bblks, 0, &new_blk)))
1455 		goto out_free_buffer;
1456 	if (new_blk != -1)
1457 		last_blk = new_blk;
1458 
1459 	/*
1460 	 * Potentially backup over partial log record write.  We don't need
1461 	 * to search the end of the log because we know it is zero.
1462 	 */
1463 	error = xlog_find_verify_log_record(log, start_blk, &last_blk, 0);
1464 	if (error == 1)
1465 		error = -EIO;
1466 	if (error)
1467 		goto out_free_buffer;
1468 
1469 	*blk_no = last_blk;
1470 out_free_buffer:
1471 	kvfree(buffer);
1472 	if (error)
1473 		return error;
1474 	return ret;
1475 }
1476 
1477 /*
1478  * These are simple subroutines used by xlog_clear_stale_blocks() below
1479  * to initialize a buffer full of empty log record headers and write
1480  * them into the log.
1481  */
1482 STATIC void
xlog_add_record(struct xlog * log,char * buf,int cycle,int block,int tail_cycle,int tail_block)1483 xlog_add_record(
1484 	struct xlog		*log,
1485 	char			*buf,
1486 	int			cycle,
1487 	int			block,
1488 	int			tail_cycle,
1489 	int			tail_block)
1490 {
1491 	struct xlog_rec_header	*recp = (struct xlog_rec_header *)buf;
1492 
1493 	memset(buf, 0, BBSIZE);
1494 	recp->h_magicno = cpu_to_be32(XLOG_HEADER_MAGIC_NUM);
1495 	recp->h_cycle = cpu_to_be32(cycle);
1496 	recp->h_version = cpu_to_be32(
1497 			xfs_has_logv2(log->l_mp) ? 2 : 1);
1498 	recp->h_lsn = cpu_to_be64(xlog_assign_lsn(cycle, block));
1499 	recp->h_tail_lsn = cpu_to_be64(xlog_assign_lsn(tail_cycle, tail_block));
1500 	recp->h_fmt = cpu_to_be32(XLOG_FMT);
1501 	memcpy(&recp->h_fs_uuid, &log->l_mp->m_sb.sb_uuid, sizeof(uuid_t));
1502 }
1503 
1504 STATIC int
xlog_write_log_records(struct xlog * log,int cycle,int start_block,int blocks,int tail_cycle,int tail_block)1505 xlog_write_log_records(
1506 	struct xlog	*log,
1507 	int		cycle,
1508 	int		start_block,
1509 	int		blocks,
1510 	int		tail_cycle,
1511 	int		tail_block)
1512 {
1513 	char		*offset;
1514 	char		*buffer;
1515 	int		balign, ealign;
1516 	int		sectbb = log->l_sectBBsize;
1517 	int		end_block = start_block + blocks;
1518 	int		bufblks;
1519 	int		error = 0;
1520 	int		i, j = 0;
1521 
1522 	/*
1523 	 * Greedily allocate a buffer big enough to handle the full
1524 	 * range of basic blocks to be written.  If that fails, try
1525 	 * a smaller size.  We need to be able to write at least a
1526 	 * log sector, or we're out of luck.
1527 	 */
1528 	bufblks = roundup_pow_of_two(blocks);
1529 	while (bufblks > log->l_logBBsize)
1530 		bufblks >>= 1;
1531 	while (!(buffer = xlog_alloc_buffer(log, bufblks))) {
1532 		bufblks >>= 1;
1533 		if (bufblks < sectbb)
1534 			return -ENOMEM;
1535 	}
1536 
1537 	/* We may need to do a read at the start to fill in part of
1538 	 * the buffer in the starting sector not covered by the first
1539 	 * write below.
1540 	 */
1541 	balign = round_down(start_block, sectbb);
1542 	if (balign != start_block) {
1543 		error = xlog_bread_noalign(log, start_block, 1, buffer);
1544 		if (error)
1545 			goto out_free_buffer;
1546 
1547 		j = start_block - balign;
1548 	}
1549 
1550 	for (i = start_block; i < end_block; i += bufblks) {
1551 		int		bcount, endcount;
1552 
1553 		bcount = min(bufblks, end_block - start_block);
1554 		endcount = bcount - j;
1555 
1556 		/* We may need to do a read at the end to fill in part of
1557 		 * the buffer in the final sector not covered by the write.
1558 		 * If this is the same sector as the above read, skip it.
1559 		 */
1560 		ealign = round_down(end_block, sectbb);
1561 		if (j == 0 && (start_block + endcount > ealign)) {
1562 			error = xlog_bread_noalign(log, ealign, sectbb,
1563 					buffer + BBTOB(ealign - start_block));
1564 			if (error)
1565 				break;
1566 
1567 		}
1568 
1569 		offset = buffer + xlog_align(log, start_block);
1570 		for (; j < endcount; j++) {
1571 			xlog_add_record(log, offset, cycle, i+j,
1572 					tail_cycle, tail_block);
1573 			offset += BBSIZE;
1574 		}
1575 		error = xlog_bwrite(log, start_block, endcount, buffer);
1576 		if (error)
1577 			break;
1578 		start_block += endcount;
1579 		j = 0;
1580 	}
1581 
1582 out_free_buffer:
1583 	kvfree(buffer);
1584 	return error;
1585 }
1586 
1587 /*
1588  * This routine is called to blow away any incomplete log writes out
1589  * in front of the log head.  We do this so that we won't become confused
1590  * if we come up, write only a little bit more, and then crash again.
1591  * If we leave the partial log records out there, this situation could
1592  * cause us to think those partial writes are valid blocks since they
1593  * have the current cycle number.  We get rid of them by overwriting them
1594  * with empty log records with the old cycle number rather than the
1595  * current one.
1596  *
1597  * The tail lsn is passed in rather than taken from
1598  * the log so that we will not write over the unmount record after a
1599  * clean unmount in a 512 block log.  Doing so would leave the log without
1600  * any valid log records in it until a new one was written.  If we crashed
1601  * during that time we would not be able to recover.
1602  */
1603 STATIC int
xlog_clear_stale_blocks(struct xlog * log,xfs_lsn_t tail_lsn)1604 xlog_clear_stale_blocks(
1605 	struct xlog	*log,
1606 	xfs_lsn_t	tail_lsn)
1607 {
1608 	int		tail_cycle, head_cycle;
1609 	int		tail_block, head_block;
1610 	int		tail_distance, max_distance;
1611 	int		distance;
1612 	int		error;
1613 
1614 	tail_cycle = CYCLE_LSN(tail_lsn);
1615 	tail_block = BLOCK_LSN(tail_lsn);
1616 	head_cycle = log->l_curr_cycle;
1617 	head_block = log->l_curr_block;
1618 
1619 	/*
1620 	 * Figure out the distance between the new head of the log
1621 	 * and the tail.  We want to write over any blocks beyond the
1622 	 * head that we may have written just before the crash, but
1623 	 * we don't want to overwrite the tail of the log.
1624 	 */
1625 	if (head_cycle == tail_cycle) {
1626 		/*
1627 		 * The tail is behind the head in the physical log,
1628 		 * so the distance from the head to the tail is the
1629 		 * distance from the head to the end of the log plus
1630 		 * the distance from the beginning of the log to the
1631 		 * tail.
1632 		 */
1633 		if (XFS_IS_CORRUPT(log->l_mp,
1634 				   head_block < tail_block ||
1635 				   head_block >= log->l_logBBsize))
1636 			return -EFSCORRUPTED;
1637 		tail_distance = tail_block + (log->l_logBBsize - head_block);
1638 	} else {
1639 		/*
1640 		 * The head is behind the tail in the physical log,
1641 		 * so the distance from the head to the tail is just
1642 		 * the tail block minus the head block.
1643 		 */
1644 		if (XFS_IS_CORRUPT(log->l_mp,
1645 				   head_block >= tail_block ||
1646 				   head_cycle != tail_cycle + 1))
1647 			return -EFSCORRUPTED;
1648 		tail_distance = tail_block - head_block;
1649 	}
1650 
1651 	/*
1652 	 * If the head is right up against the tail, we can't clear
1653 	 * anything.
1654 	 */
1655 	if (tail_distance <= 0) {
1656 		ASSERT(tail_distance == 0);
1657 		return 0;
1658 	}
1659 
1660 	max_distance = XLOG_TOTAL_REC_SHIFT(log);
1661 	/*
1662 	 * Take the smaller of the maximum amount of outstanding I/O
1663 	 * we could have and the distance to the tail to clear out.
1664 	 * We take the smaller so that we don't overwrite the tail and
1665 	 * we don't waste all day writing from the head to the tail
1666 	 * for no reason.
1667 	 */
1668 	max_distance = min(max_distance, tail_distance);
1669 
1670 	if ((head_block + max_distance) <= log->l_logBBsize) {
1671 		/*
1672 		 * We can stomp all the blocks we need to without
1673 		 * wrapping around the end of the log.  Just do it
1674 		 * in a single write.  Use the cycle number of the
1675 		 * current cycle minus one so that the log will look like:
1676 		 *     n ... | n - 1 ...
1677 		 */
1678 		error = xlog_write_log_records(log, (head_cycle - 1),
1679 				head_block, max_distance, tail_cycle,
1680 				tail_block);
1681 		if (error)
1682 			return error;
1683 	} else {
1684 		/*
1685 		 * We need to wrap around the end of the physical log in
1686 		 * order to clear all the blocks.  Do it in two separate
1687 		 * I/Os.  The first write should be from the head to the
1688 		 * end of the physical log, and it should use the current
1689 		 * cycle number minus one just like above.
1690 		 */
1691 		distance = log->l_logBBsize - head_block;
1692 		error = xlog_write_log_records(log, (head_cycle - 1),
1693 				head_block, distance, tail_cycle,
1694 				tail_block);
1695 
1696 		if (error)
1697 			return error;
1698 
1699 		/*
1700 		 * Now write the blocks at the start of the physical log.
1701 		 * This writes the remainder of the blocks we want to clear.
1702 		 * It uses the current cycle number since we're now on the
1703 		 * same cycle as the head so that we get:
1704 		 *    n ... n ... | n - 1 ...
1705 		 *    ^^^^^ blocks we're writing
1706 		 */
1707 		distance = max_distance - (log->l_logBBsize - head_block);
1708 		error = xlog_write_log_records(log, head_cycle, 0, distance,
1709 				tail_cycle, tail_block);
1710 		if (error)
1711 			return error;
1712 	}
1713 
1714 	return 0;
1715 }
1716 
1717 /*
1718  * Release the recovered intent item in the AIL that matches the given intent
1719  * type and intent id.
1720  */
1721 void
xlog_recover_release_intent(struct xlog * log,unsigned short intent_type,uint64_t intent_id)1722 xlog_recover_release_intent(
1723 	struct xlog			*log,
1724 	unsigned short			intent_type,
1725 	uint64_t			intent_id)
1726 {
1727 	struct xfs_defer_pending	*dfp, *n;
1728 
1729 	list_for_each_entry_safe(dfp, n, &log->r_dfops, dfp_list) {
1730 		struct xfs_log_item	*lip = dfp->dfp_intent;
1731 
1732 		if (lip->li_type != intent_type)
1733 			continue;
1734 		if (!lip->li_ops->iop_match(lip, intent_id))
1735 			continue;
1736 
1737 		ASSERT(xlog_item_is_intent(lip));
1738 
1739 		xfs_defer_cancel_recovery(log->l_mp, dfp);
1740 	}
1741 }
1742 
1743 int
xlog_recover_iget(struct xfs_mount * mp,xfs_ino_t ino,struct xfs_inode ** ipp)1744 xlog_recover_iget(
1745 	struct xfs_mount	*mp,
1746 	xfs_ino_t		ino,
1747 	struct xfs_inode	**ipp)
1748 {
1749 	int			error;
1750 
1751 	error = xfs_iget(mp, NULL, ino, 0, 0, ipp);
1752 	if (error)
1753 		return error;
1754 
1755 	error = xfs_qm_dqattach(*ipp);
1756 	if (error) {
1757 		xfs_irele(*ipp);
1758 		return error;
1759 	}
1760 
1761 	if (VFS_I(*ipp)->i_nlink == 0)
1762 		xfs_iflags_set(*ipp, XFS_IRECOVERY);
1763 
1764 	return 0;
1765 }
1766 
1767 /*
1768  * Get an inode so that we can recover a log operation.
1769  *
1770  * Log intent items that target inodes effectively contain a file handle.
1771  * Check that the generation number matches the intent item like we do for
1772  * other file handles.  Log intent items defined after this validation weakness
1773  * was identified must use this function.
1774  */
1775 int
xlog_recover_iget_handle(struct xfs_mount * mp,xfs_ino_t ino,uint32_t gen,struct xfs_inode ** ipp)1776 xlog_recover_iget_handle(
1777 	struct xfs_mount	*mp,
1778 	xfs_ino_t		ino,
1779 	uint32_t		gen,
1780 	struct xfs_inode	**ipp)
1781 {
1782 	struct xfs_inode	*ip;
1783 	int			error;
1784 
1785 	error = xlog_recover_iget(mp, ino, &ip);
1786 	if (error)
1787 		return error;
1788 
1789 	if (VFS_I(ip)->i_generation != gen) {
1790 		xfs_irele(ip);
1791 		return -EFSCORRUPTED;
1792 	}
1793 
1794 	*ipp = ip;
1795 	return 0;
1796 }
1797 
1798 /******************************************************************************
1799  *
1800  *		Log recover routines
1801  *
1802  ******************************************************************************
1803  */
1804 static const struct xlog_recover_item_ops *xlog_recover_item_ops[] = {
1805 	&xlog_buf_item_ops,
1806 	&xlog_inode_item_ops,
1807 	&xlog_dquot_item_ops,
1808 	&xlog_quotaoff_item_ops,
1809 	&xlog_icreate_item_ops,
1810 	&xlog_efi_item_ops,
1811 	&xlog_efd_item_ops,
1812 	&xlog_rui_item_ops,
1813 	&xlog_rud_item_ops,
1814 	&xlog_cui_item_ops,
1815 	&xlog_cud_item_ops,
1816 	&xlog_bui_item_ops,
1817 	&xlog_bud_item_ops,
1818 	&xlog_attri_item_ops,
1819 	&xlog_attrd_item_ops,
1820 	&xlog_xmi_item_ops,
1821 	&xlog_xmd_item_ops,
1822 	&xlog_rtefi_item_ops,
1823 	&xlog_rtefd_item_ops,
1824 	&xlog_rtrui_item_ops,
1825 	&xlog_rtrud_item_ops,
1826 	&xlog_rtcui_item_ops,
1827 	&xlog_rtcud_item_ops,
1828 };
1829 
1830 static const struct xlog_recover_item_ops *
xlog_find_item_ops(struct xlog_recover_item * item)1831 xlog_find_item_ops(
1832 	struct xlog_recover_item		*item)
1833 {
1834 	unsigned int				i;
1835 
1836 	for (i = 0; i < ARRAY_SIZE(xlog_recover_item_ops); i++)
1837 		if (ITEM_TYPE(item) == xlog_recover_item_ops[i]->item_type)
1838 			return xlog_recover_item_ops[i];
1839 
1840 	return NULL;
1841 }
1842 
1843 /*
1844  * Sort the log items in the transaction.
1845  *
1846  * The ordering constraints are defined by the inode allocation and unlink
1847  * behaviour. The rules are:
1848  *
1849  *	1. Every item is only logged once in a given transaction. Hence it
1850  *	   represents the last logged state of the item. Hence ordering is
1851  *	   dependent on the order in which operations need to be performed so
1852  *	   required initial conditions are always met.
1853  *
1854  *	2. Cancelled buffers are recorded in pass 1 in a separate table and
1855  *	   there's nothing to replay from them so we can simply cull them
1856  *	   from the transaction. However, we can't do that until after we've
1857  *	   replayed all the other items because they may be dependent on the
1858  *	   cancelled buffer and replaying the cancelled buffer can remove it
1859  *	   form the cancelled buffer table. Hence they have to be done last.
1860  *
1861  *	3. Inode allocation buffers must be replayed before inode items that
1862  *	   read the buffer and replay changes into it. For filesystems using the
1863  *	   ICREATE transactions, this means XFS_LI_ICREATE objects need to get
1864  *	   treated the same as inode allocation buffers as they create and
1865  *	   initialise the buffers directly.
1866  *
1867  *	4. Inode unlink buffers must be replayed after inode items are replayed.
1868  *	   This ensures that inodes are completely flushed to the inode buffer
1869  *	   in a "free" state before we remove the unlinked inode list pointer.
1870  *
1871  * Hence the ordering needs to be inode allocation buffers first, inode items
1872  * second, inode unlink buffers third and cancelled buffers last.
1873  *
1874  * But there's a problem with that - we can't tell an inode allocation buffer
1875  * apart from a regular buffer, so we can't separate them. We can, however,
1876  * tell an inode unlink buffer from the others, and so we can separate them out
1877  * from all the other buffers and move them to last.
1878  *
1879  * Hence, 4 lists, in order from head to tail:
1880  *	- buffer_list for all buffers except cancelled/inode unlink buffers
1881  *	- item_list for all non-buffer items
1882  *	- inode_buffer_list for inode unlink buffers
1883  *	- cancel_list for the cancelled buffers
1884  *
1885  * Note that we add objects to the tail of the lists so that first-to-last
1886  * ordering is preserved within the lists. Adding objects to the head of the
1887  * list means when we traverse from the head we walk them in last-to-first
1888  * order. For cancelled buffers and inode unlink buffers this doesn't matter,
1889  * but for all other items there may be specific ordering that we need to
1890  * preserve.
1891  */
1892 STATIC int
xlog_recover_reorder_trans(struct xlog * log,struct xlog_recover * trans,int pass)1893 xlog_recover_reorder_trans(
1894 	struct xlog		*log,
1895 	struct xlog_recover	*trans,
1896 	int			pass)
1897 {
1898 	struct xlog_recover_item *item, *n;
1899 	int			error = 0;
1900 	LIST_HEAD(sort_list);
1901 	LIST_HEAD(cancel_list);
1902 	LIST_HEAD(buffer_list);
1903 	LIST_HEAD(inode_buffer_list);
1904 	LIST_HEAD(item_list);
1905 
1906 	list_splice_init(&trans->r_itemq, &sort_list);
1907 	list_for_each_entry_safe(item, n, &sort_list, ri_list) {
1908 		enum xlog_recover_reorder	fate = XLOG_REORDER_ITEM_LIST;
1909 
1910 		/* a committed item with no regions has a NULL ri_buf[0] */
1911 		if (!item->ri_cnt || !item->ri_buf) {
1912 			xfs_warn(log->l_mp,
1913 				"%s: committed log item has no regions",
1914 				__func__);
1915 			error = -EFSCORRUPTED;
1916 			break;
1917 		}
1918 
1919 		item->ri_ops = xlog_find_item_ops(item);
1920 		if (!item->ri_ops) {
1921 			xfs_warn(log->l_mp,
1922 				"%s: unrecognized type of log operation (%d)",
1923 				__func__, ITEM_TYPE(item));
1924 			error = -EFSCORRUPTED;
1925 			break;
1926 		}
1927 
1928 		if (item->ri_ops->reorder)
1929 			fate = item->ri_ops->reorder(item);
1930 
1931 		switch (fate) {
1932 		case XLOG_REORDER_BUFFER_LIST:
1933 			list_move_tail(&item->ri_list, &buffer_list);
1934 			break;
1935 		case XLOG_REORDER_CANCEL_LIST:
1936 			trace_xfs_log_recover_item_reorder_head(log,
1937 					trans, item, pass);
1938 			list_move(&item->ri_list, &cancel_list);
1939 			break;
1940 		case XLOG_REORDER_INODE_BUFFER_LIST:
1941 			list_move(&item->ri_list, &inode_buffer_list);
1942 			break;
1943 		case XLOG_REORDER_ITEM_LIST:
1944 			trace_xfs_log_recover_item_reorder_tail(log,
1945 							trans, item, pass);
1946 			list_move_tail(&item->ri_list, &item_list);
1947 			break;
1948 		}
1949 	}
1950 
1951 	/*
1952 	 * Return the remaining items back to the transaction item list so they
1953 	 * can be freed in caller.  This should only happen when we encounter
1954 	 * an error.
1955 	 */
1956 	if (!list_empty(&sort_list)) {
1957 		ASSERT(error);
1958 		list_splice_init(&sort_list, &trans->r_itemq);
1959 	}
1960 	if (!list_empty(&buffer_list))
1961 		list_splice(&buffer_list, &trans->r_itemq);
1962 	if (!list_empty(&item_list))
1963 		list_splice_tail(&item_list, &trans->r_itemq);
1964 	if (!list_empty(&inode_buffer_list))
1965 		list_splice_tail(&inode_buffer_list, &trans->r_itemq);
1966 	if (!list_empty(&cancel_list))
1967 		list_splice_tail(&cancel_list, &trans->r_itemq);
1968 	return error;
1969 }
1970 
1971 void
xlog_buf_readahead(struct xlog * log,xfs_daddr_t blkno,uint len,const struct xfs_buf_ops * ops)1972 xlog_buf_readahead(
1973 	struct xlog		*log,
1974 	xfs_daddr_t		blkno,
1975 	uint			len,
1976 	const struct xfs_buf_ops *ops)
1977 {
1978 	if (!xlog_is_buffer_cancelled(log, blkno, len))
1979 		xfs_buf_readahead(log->l_mp->m_ddev_targp, blkno, len, ops);
1980 }
1981 
1982 /*
1983  * Create a deferred work structure for resuming and tracking the progress of a
1984  * log intent item that was found during recovery.
1985  */
1986 void
xlog_recover_intent_item(struct xlog * log,struct xfs_log_item * lip,xfs_lsn_t lsn,const struct xfs_defer_op_type * ops)1987 xlog_recover_intent_item(
1988 	struct xlog			*log,
1989 	struct xfs_log_item		*lip,
1990 	xfs_lsn_t			lsn,
1991 	const struct xfs_defer_op_type	*ops)
1992 {
1993 	ASSERT(xlog_item_is_intent(lip));
1994 
1995 	xfs_defer_start_recovery(lip, &log->r_dfops, ops);
1996 
1997 	/*
1998 	 * Insert the intent into the AIL directly and drop one reference so
1999 	 * that finishing or canceling the work will drop the other.
2000 	 */
2001 	xfs_trans_ail_insert(log->l_ailp, lip, lsn);
2002 	lip->li_ops->iop_unpin(lip, 0);
2003 }
2004 
2005 STATIC int
xlog_recover_items_pass2(struct xlog * log,struct xlog_recover * trans,struct list_head * buffer_list,struct list_head * item_list)2006 xlog_recover_items_pass2(
2007 	struct xlog                     *log,
2008 	struct xlog_recover             *trans,
2009 	struct list_head                *buffer_list,
2010 	struct list_head                *item_list)
2011 {
2012 	struct xlog_recover_item	*item;
2013 	int				error = 0;
2014 
2015 	list_for_each_entry(item, item_list, ri_list) {
2016 		trace_xfs_log_recover_item_recover(log, trans, item,
2017 				XLOG_RECOVER_PASS2);
2018 
2019 		if (item->ri_ops->commit_pass2)
2020 			error = item->ri_ops->commit_pass2(log, buffer_list,
2021 					item, trans->r_lsn);
2022 		if (error)
2023 			return error;
2024 	}
2025 
2026 	return error;
2027 }
2028 
2029 /*
2030  * Perform the transaction.
2031  *
2032  * If the transaction modifies a buffer or inode, do it now.  Otherwise,
2033  * EFIs and EFDs get queued up by adding entries into the AIL for them.
2034  */
2035 STATIC int
xlog_recover_commit_trans(struct xlog * log,struct xlog_recover * trans,int pass,struct list_head * buffer_list)2036 xlog_recover_commit_trans(
2037 	struct xlog		*log,
2038 	struct xlog_recover	*trans,
2039 	int			pass,
2040 	struct list_head	*buffer_list)
2041 {
2042 	int				error = 0;
2043 	int				items_queued = 0;
2044 	struct xlog_recover_item	*item;
2045 	struct xlog_recover_item	*next;
2046 	LIST_HEAD			(ra_list);
2047 	LIST_HEAD			(done_list);
2048 
2049 	#define XLOG_RECOVER_COMMIT_QUEUE_MAX 100
2050 
2051 	hlist_del_init(&trans->r_list);
2052 
2053 	error = xlog_recover_reorder_trans(log, trans, pass);
2054 	if (error)
2055 		return error;
2056 
2057 	list_for_each_entry_safe(item, next, &trans->r_itemq, ri_list) {
2058 		trace_xfs_log_recover_item_recover(log, trans, item, pass);
2059 
2060 		switch (pass) {
2061 		case XLOG_RECOVER_PASS1:
2062 			if (item->ri_ops->commit_pass1)
2063 				error = item->ri_ops->commit_pass1(log, item);
2064 			break;
2065 		case XLOG_RECOVER_PASS2:
2066 			if (item->ri_ops->ra_pass2)
2067 				item->ri_ops->ra_pass2(log, item);
2068 			list_move_tail(&item->ri_list, &ra_list);
2069 			items_queued++;
2070 			if (items_queued >= XLOG_RECOVER_COMMIT_QUEUE_MAX) {
2071 				error = xlog_recover_items_pass2(log, trans,
2072 						buffer_list, &ra_list);
2073 				list_splice_tail_init(&ra_list, &done_list);
2074 				items_queued = 0;
2075 			}
2076 
2077 			break;
2078 		default:
2079 			ASSERT(0);
2080 		}
2081 
2082 		if (error)
2083 			goto out;
2084 	}
2085 
2086 out:
2087 	if (!list_empty(&ra_list)) {
2088 		if (!error)
2089 			error = xlog_recover_items_pass2(log, trans,
2090 					buffer_list, &ra_list);
2091 		list_splice_tail_init(&ra_list, &done_list);
2092 	}
2093 
2094 	if (!list_empty(&done_list))
2095 		list_splice_init(&done_list, &trans->r_itemq);
2096 
2097 	return error;
2098 }
2099 
2100 STATIC void
xlog_recover_add_item(struct list_head * head)2101 xlog_recover_add_item(
2102 	struct list_head	*head)
2103 {
2104 	struct xlog_recover_item *item;
2105 
2106 	item = kzalloc_obj(struct xlog_recover_item, GFP_KERNEL | __GFP_NOFAIL);
2107 	INIT_LIST_HEAD(&item->ri_list);
2108 	list_add_tail(&item->ri_list, head);
2109 }
2110 
2111 STATIC int
xlog_recover_add_to_cont_trans(struct xlog * log,struct xlog_recover * trans,char * dp,int len)2112 xlog_recover_add_to_cont_trans(
2113 	struct xlog		*log,
2114 	struct xlog_recover	*trans,
2115 	char			*dp,
2116 	int			len)
2117 {
2118 	struct xlog_recover_item *item;
2119 	char			*ptr, *old_ptr;
2120 	int			old_len;
2121 
2122 	/*
2123 	 * If the transaction is empty, the header was split across this and the
2124 	 * previous record. Copy the rest of the header.
2125 	 */
2126 	if (list_empty(&trans->r_itemq)) {
2127 		ASSERT(len <= sizeof(struct xfs_trans_header));
2128 		if (len > sizeof(struct xfs_trans_header)) {
2129 			xfs_warn(log->l_mp, "%s: bad header length", __func__);
2130 			return -EFSCORRUPTED;
2131 		}
2132 
2133 		xlog_recover_add_item(&trans->r_itemq);
2134 		ptr = (char *)&trans->r_theader +
2135 				sizeof(struct xfs_trans_header) - len;
2136 		memcpy(ptr, dp, len);
2137 		return 0;
2138 	}
2139 
2140 	/* take the tail entry */
2141 	item = list_entry(trans->r_itemq.prev, struct xlog_recover_item,
2142 			  ri_list);
2143 
2144 	old_ptr = item->ri_buf[item->ri_cnt-1].iov_base;
2145 	old_len = item->ri_buf[item->ri_cnt-1].iov_len;
2146 
2147 	ptr = kvrealloc(old_ptr, len + old_len, GFP_KERNEL);
2148 	if (!ptr)
2149 		return -ENOMEM;
2150 	memcpy(&ptr[old_len], dp, len);
2151 	item->ri_buf[item->ri_cnt-1].iov_len += len;
2152 	item->ri_buf[item->ri_cnt-1].iov_base = ptr;
2153 	trace_xfs_log_recover_item_add_cont(log, trans, item, 0);
2154 	return 0;
2155 }
2156 
2157 /*
2158  * The next region to add is the start of a new region.  It could be
2159  * a whole region or it could be the first part of a new region.  Because
2160  * of this, the assumption here is that the type and size fields of all
2161  * format structures fit into the first 32 bits of the structure.
2162  *
2163  * This works because all regions must be 32 bit aligned.  Therefore, we
2164  * either have both fields or we have neither field.  In the case we have
2165  * neither field, the data part of the region is zero length.  We only have
2166  * a log_op_header and can throw away the header since a new one will appear
2167  * later.  If we have at least 4 bytes, then we can determine how many regions
2168  * will appear in the current log item.
2169  */
2170 STATIC int
xlog_recover_add_to_trans(struct xlog * log,struct xlog_recover * trans,char * dp,int len)2171 xlog_recover_add_to_trans(
2172 	struct xlog		*log,
2173 	struct xlog_recover	*trans,
2174 	char			*dp,
2175 	int			len)
2176 {
2177 	struct xfs_inode_log_format	*in_f;			/* any will do */
2178 	struct xlog_recover_item *item;
2179 	char			*ptr;
2180 
2181 	if (!len)
2182 		return 0;
2183 	if (list_empty(&trans->r_itemq)) {
2184 		/* we need to catch log corruptions here */
2185 		if (*(uint *)dp != XFS_TRANS_HEADER_MAGIC) {
2186 			xfs_warn(log->l_mp, "%s: bad header magic number",
2187 				__func__);
2188 			ASSERT(0);
2189 			return -EFSCORRUPTED;
2190 		}
2191 
2192 		if (len > sizeof(struct xfs_trans_header)) {
2193 			xfs_warn(log->l_mp, "%s: bad header length", __func__);
2194 			ASSERT(0);
2195 			return -EFSCORRUPTED;
2196 		}
2197 
2198 		/*
2199 		 * The transaction header can be arbitrarily split across op
2200 		 * records. If we don't have the whole thing here, copy what we
2201 		 * do have and handle the rest in the next record.
2202 		 */
2203 		if (len == sizeof(struct xfs_trans_header))
2204 			xlog_recover_add_item(&trans->r_itemq);
2205 		memcpy(&trans->r_theader, dp, len);
2206 		return 0;
2207 	}
2208 
2209 	ptr = xlog_kvmalloc(len);
2210 	memcpy(ptr, dp, len);
2211 	in_f = (struct xfs_inode_log_format *)ptr;
2212 
2213 	/* take the tail entry */
2214 	item = list_entry(trans->r_itemq.prev, struct xlog_recover_item,
2215 			  ri_list);
2216 	if (item->ri_total != 0 &&
2217 	     item->ri_total == item->ri_cnt) {
2218 		/* tail item is in use, get a new one */
2219 		xlog_recover_add_item(&trans->r_itemq);
2220 		item = list_entry(trans->r_itemq.prev,
2221 					struct xlog_recover_item, ri_list);
2222 	}
2223 
2224 	if (item->ri_total == 0) {		/* first region to be added */
2225 		if (in_f->ilf_size == 0 ||
2226 		    in_f->ilf_size > XLOG_MAX_REGIONS_IN_ITEM) {
2227 			xfs_warn(log->l_mp,
2228 		"bad number of regions (%d) in inode log format",
2229 				  in_f->ilf_size);
2230 			ASSERT(0);
2231 			kvfree(ptr);
2232 			return -EFSCORRUPTED;
2233 		}
2234 
2235 		item->ri_total = in_f->ilf_size;
2236 		item->ri_buf = kzalloc_objs(*item->ri_buf, item->ri_total,
2237 					    GFP_KERNEL | __GFP_NOFAIL);
2238 	}
2239 
2240 	if (item->ri_total <= item->ri_cnt) {
2241 		xfs_warn(log->l_mp,
2242 	"log item region count (%d) overflowed size (%d)",
2243 				item->ri_cnt, item->ri_total);
2244 		ASSERT(0);
2245 		kvfree(ptr);
2246 		return -EFSCORRUPTED;
2247 	}
2248 
2249 	/* Description region is ri_buf[0] */
2250 	item->ri_buf[item->ri_cnt].iov_base = ptr;
2251 	item->ri_buf[item->ri_cnt].iov_len  = len;
2252 	item->ri_cnt++;
2253 	trace_xfs_log_recover_item_add(log, trans, item, 0);
2254 	return 0;
2255 }
2256 
2257 /*
2258  * Free up any resources allocated by the transaction
2259  *
2260  * Remember that EFIs, EFDs, and IUNLINKs are handled later.
2261  */
2262 STATIC void
xlog_recover_free_trans(struct xlog_recover * trans)2263 xlog_recover_free_trans(
2264 	struct xlog_recover	*trans)
2265 {
2266 	struct xlog_recover_item *item, *n;
2267 	int			i;
2268 
2269 	hlist_del_init(&trans->r_list);
2270 
2271 	list_for_each_entry_safe(item, n, &trans->r_itemq, ri_list) {
2272 		/* Free the regions in the item. */
2273 		list_del(&item->ri_list);
2274 		for (i = 0; i < item->ri_cnt; i++)
2275 			kvfree(item->ri_buf[i].iov_base);
2276 		/* Free the item itself */
2277 		kfree(item->ri_buf);
2278 		kfree(item);
2279 	}
2280 	/* Free the transaction recover structure */
2281 	kfree(trans);
2282 }
2283 
2284 /*
2285  * On error or completion, trans is freed.
2286  */
2287 STATIC int
xlog_recovery_process_trans(struct xlog * log,struct xlog_recover * trans,char * dp,unsigned int len,unsigned int flags,int pass,struct list_head * buffer_list)2288 xlog_recovery_process_trans(
2289 	struct xlog		*log,
2290 	struct xlog_recover	*trans,
2291 	char			*dp,
2292 	unsigned int		len,
2293 	unsigned int		flags,
2294 	int			pass,
2295 	struct list_head	*buffer_list)
2296 {
2297 	int			error = 0;
2298 	bool			freeit = false;
2299 
2300 	/* mask off ophdr transaction container flags */
2301 	flags &= ~XLOG_END_TRANS;
2302 	if (flags & XLOG_WAS_CONT_TRANS)
2303 		flags &= ~XLOG_CONTINUE_TRANS;
2304 
2305 	/*
2306 	 * Callees must not free the trans structure. We'll decide if we need to
2307 	 * free it or not based on the operation being done and it's result.
2308 	 */
2309 	switch (flags) {
2310 	/* expected flag values */
2311 	case 0:
2312 	case XLOG_CONTINUE_TRANS:
2313 		error = xlog_recover_add_to_trans(log, trans, dp, len);
2314 		break;
2315 	case XLOG_WAS_CONT_TRANS:
2316 		error = xlog_recover_add_to_cont_trans(log, trans, dp, len);
2317 		break;
2318 	case XLOG_COMMIT_TRANS:
2319 		error = xlog_recover_commit_trans(log, trans, pass,
2320 						  buffer_list);
2321 		/* success or fail, we are now done with this transaction. */
2322 		freeit = true;
2323 		break;
2324 
2325 	/* unexpected flag values */
2326 	case XLOG_UNMOUNT_TRANS:
2327 		/* just skip trans */
2328 		xfs_warn(log->l_mp, "%s: Unmount LR", __func__);
2329 		freeit = true;
2330 		break;
2331 	case XLOG_START_TRANS:
2332 	default:
2333 		xfs_warn(log->l_mp, "%s: bad flag 0x%x", __func__, flags);
2334 		ASSERT(0);
2335 		error = -EFSCORRUPTED;
2336 		break;
2337 	}
2338 	if (error || freeit)
2339 		xlog_recover_free_trans(trans);
2340 	return error;
2341 }
2342 
2343 /*
2344  * Lookup the transaction recovery structure associated with the ID in the
2345  * current ophdr. If the transaction doesn't exist and the start flag is set in
2346  * the ophdr, then allocate a new transaction for future ID matches to find.
2347  * Either way, return what we found during the lookup - an existing transaction
2348  * or nothing.
2349  */
2350 STATIC struct xlog_recover *
xlog_recover_ophdr_to_trans(struct hlist_head rhash[],struct xlog_rec_header * rhead,struct xlog_op_header * ohead)2351 xlog_recover_ophdr_to_trans(
2352 	struct hlist_head	rhash[],
2353 	struct xlog_rec_header	*rhead,
2354 	struct xlog_op_header	*ohead)
2355 {
2356 	struct xlog_recover	*trans;
2357 	xlog_tid_t		tid;
2358 	struct hlist_head	*rhp;
2359 
2360 	tid = be32_to_cpu(ohead->oh_tid);
2361 	rhp = &rhash[XLOG_RHASH(tid)];
2362 	hlist_for_each_entry(trans, rhp, r_list) {
2363 		if (trans->r_log_tid == tid)
2364 			return trans;
2365 	}
2366 
2367 	/*
2368 	 * skip over non-start transaction headers - we could be
2369 	 * processing slack space before the next transaction starts
2370 	 */
2371 	if (!(ohead->oh_flags & XLOG_START_TRANS))
2372 		return NULL;
2373 
2374 	ASSERT(be32_to_cpu(ohead->oh_len) == 0);
2375 
2376 	/*
2377 	 * This is a new transaction so allocate a new recovery container to
2378 	 * hold the recovery ops that will follow.
2379 	 */
2380 	trans = kzalloc_obj(struct xlog_recover, GFP_KERNEL | __GFP_NOFAIL);
2381 	trans->r_log_tid = tid;
2382 	trans->r_lsn = be64_to_cpu(rhead->h_lsn);
2383 	INIT_LIST_HEAD(&trans->r_itemq);
2384 	INIT_HLIST_NODE(&trans->r_list);
2385 	hlist_add_head(&trans->r_list, rhp);
2386 
2387 	/*
2388 	 * Nothing more to do for this ophdr. Items to be added to this new
2389 	 * transaction will be in subsequent ophdr containers.
2390 	 */
2391 	return NULL;
2392 }
2393 
2394 STATIC int
xlog_recover_process_ophdr(struct xlog * log,struct hlist_head rhash[],struct xlog_rec_header * rhead,struct xlog_op_header * ohead,char * dp,char * end,int pass,struct list_head * buffer_list)2395 xlog_recover_process_ophdr(
2396 	struct xlog		*log,
2397 	struct hlist_head	rhash[],
2398 	struct xlog_rec_header	*rhead,
2399 	struct xlog_op_header	*ohead,
2400 	char			*dp,
2401 	char			*end,
2402 	int			pass,
2403 	struct list_head	*buffer_list)
2404 {
2405 	struct xlog_recover	*trans;
2406 	unsigned int		len;
2407 	int			error;
2408 
2409 	/* Do we understand who wrote this op? */
2410 	if (ohead->oh_clientid != XFS_TRANSACTION &&
2411 	    ohead->oh_clientid != XFS_LOG) {
2412 		xfs_warn(log->l_mp, "%s: bad clientid 0x%x",
2413 			__func__, ohead->oh_clientid);
2414 		ASSERT(0);
2415 		return -EFSCORRUPTED;
2416 	}
2417 
2418 	/*
2419 	 * Check the ophdr contains all the data it is supposed to contain.
2420 	 */
2421 	len = be32_to_cpu(ohead->oh_len);
2422 	if (dp + len > end) {
2423 		xfs_warn(log->l_mp, "%s: bad length 0x%x", __func__, len);
2424 		WARN_ON(1);
2425 		return -EFSCORRUPTED;
2426 	}
2427 
2428 	trans = xlog_recover_ophdr_to_trans(rhash, rhead, ohead);
2429 	if (!trans) {
2430 		/* nothing to do, so skip over this ophdr */
2431 		return 0;
2432 	}
2433 
2434 	/*
2435 	 * The recovered buffer queue is drained only once we know that all
2436 	 * recovery items for the current LSN have been processed. This is
2437 	 * required because:
2438 	 *
2439 	 * - Buffer write submission updates the metadata LSN of the buffer.
2440 	 * - Log recovery skips items with a metadata LSN >= the current LSN of
2441 	 *   the recovery item.
2442 	 * - Separate recovery items against the same metadata buffer can share
2443 	 *   a current LSN. I.e., consider that the LSN of a recovery item is
2444 	 *   defined as the starting LSN of the first record in which its
2445 	 *   transaction appears, that a record can hold multiple transactions,
2446 	 *   and/or that a transaction can span multiple records.
2447 	 *
2448 	 * In other words, we are allowed to submit a buffer from log recovery
2449 	 * once per current LSN. Otherwise, we may incorrectly skip recovery
2450 	 * items and cause corruption.
2451 	 *
2452 	 * We don't know up front whether buffers are updated multiple times per
2453 	 * LSN. Therefore, track the current LSN of each commit log record as it
2454 	 * is processed and drain the queue when it changes. Use commit records
2455 	 * because they are ordered correctly by the logging code.
2456 	 */
2457 	if (log->l_recovery_lsn != trans->r_lsn &&
2458 	    ohead->oh_flags & XLOG_COMMIT_TRANS) {
2459 		error = xfs_buf_delwri_submit(buffer_list);
2460 		if (error)
2461 			return error;
2462 		log->l_recovery_lsn = trans->r_lsn;
2463 	}
2464 
2465 	return xlog_recovery_process_trans(log, trans, dp, len,
2466 					   ohead->oh_flags, pass, buffer_list);
2467 }
2468 
2469 /*
2470  * There are two valid states of the r_state field.  0 indicates that the
2471  * transaction structure is in a normal state.  We have either seen the
2472  * start of the transaction or the last operation we added was not a partial
2473  * operation.  If the last operation we added to the transaction was a
2474  * partial operation, we need to mark r_state with XLOG_WAS_CONT_TRANS.
2475  *
2476  * NOTE: skip LRs with 0 data length.
2477  */
2478 STATIC int
xlog_recover_process_data(struct xlog * log,struct hlist_head rhash[],struct xlog_rec_header * rhead,char * dp,int pass,struct list_head * buffer_list)2479 xlog_recover_process_data(
2480 	struct xlog		*log,
2481 	struct hlist_head	rhash[],
2482 	struct xlog_rec_header	*rhead,
2483 	char			*dp,
2484 	int			pass,
2485 	struct list_head	*buffer_list)
2486 {
2487 	struct xlog_op_header	*ohead;
2488 	char			*end;
2489 	int			num_logops;
2490 	int			error;
2491 
2492 	end = dp + be32_to_cpu(rhead->h_len);
2493 	num_logops = be32_to_cpu(rhead->h_num_logops);
2494 
2495 	/* check the log format matches our own - else we can't recover */
2496 	if (xlog_header_check_recover(log->l_mp, rhead))
2497 		return -EIO;
2498 
2499 	trace_xfs_log_recover_record(log, rhead, pass);
2500 	while ((dp < end) && num_logops) {
2501 
2502 		ohead = (struct xlog_op_header *)dp;
2503 		dp += sizeof(*ohead);
2504 		if (dp > end) {
2505 			xfs_warn(log->l_mp, "%s: op header overrun", __func__);
2506 			return -EFSCORRUPTED;
2507 		}
2508 
2509 		/* errors will abort recovery */
2510 		error = xlog_recover_process_ophdr(log, rhash, rhead, ohead,
2511 						   dp, end, pass, buffer_list);
2512 		if (error)
2513 			return error;
2514 
2515 		dp += be32_to_cpu(ohead->oh_len);
2516 		num_logops--;
2517 	}
2518 	return 0;
2519 }
2520 
2521 /* Take all the collected deferred ops and finish them in order. */
2522 static int
xlog_finish_defer_ops(struct xfs_mount * mp,struct list_head * capture_list)2523 xlog_finish_defer_ops(
2524 	struct xfs_mount	*mp,
2525 	struct list_head	*capture_list)
2526 {
2527 	struct xfs_defer_capture *dfc, *next;
2528 	struct xfs_trans	*tp;
2529 	int			error = 0;
2530 
2531 	list_for_each_entry_safe(dfc, next, capture_list, dfc_list) {
2532 		struct xfs_trans_res	resv;
2533 		struct xfs_defer_resources dres;
2534 
2535 		/*
2536 		 * Create a new transaction reservation from the captured
2537 		 * information.  Set logcount to 1 to force the new transaction
2538 		 * to regrant every roll so that we can make forward progress
2539 		 * in recovery no matter how full the log might be.
2540 		 */
2541 		resv.tr_logres = dfc->dfc_logres;
2542 		resv.tr_logcount = 1;
2543 		resv.tr_logflags = XFS_TRANS_PERM_LOG_RES;
2544 
2545 		error = xfs_trans_alloc(mp, &resv, dfc->dfc_blkres,
2546 				dfc->dfc_rtxres, XFS_TRANS_RESERVE, &tp);
2547 		if (error) {
2548 			xlog_force_shutdown(mp->m_log, SHUTDOWN_LOG_IO_ERROR);
2549 			return error;
2550 		}
2551 
2552 		/*
2553 		 * Transfer to this new transaction all the dfops we captured
2554 		 * from recovering a single intent item.
2555 		 */
2556 		list_del_init(&dfc->dfc_list);
2557 		xfs_defer_ops_continue(dfc, tp, &dres);
2558 		error = xfs_trans_commit(tp);
2559 		xfs_defer_resources_rele(&dres);
2560 		if (error)
2561 			return error;
2562 	}
2563 
2564 	ASSERT(list_empty(capture_list));
2565 	return 0;
2566 }
2567 
2568 /* Release all the captured defer ops and capture structures in this list. */
2569 static void
xlog_abort_defer_ops(struct xfs_mount * mp,struct list_head * capture_list)2570 xlog_abort_defer_ops(
2571 	struct xfs_mount		*mp,
2572 	struct list_head		*capture_list)
2573 {
2574 	struct xfs_defer_capture	*dfc;
2575 	struct xfs_defer_capture	*next;
2576 
2577 	list_for_each_entry_safe(dfc, next, capture_list, dfc_list) {
2578 		list_del_init(&dfc->dfc_list);
2579 		xfs_defer_ops_capture_abort(mp, dfc);
2580 	}
2581 }
2582 
2583 /*
2584  * When this is called, all of the log intent items which did not have
2585  * corresponding log done items should be in the AIL.  What we do now is update
2586  * the data structures associated with each one.
2587  *
2588  * Since we process the log intent items in normal transactions, they will be
2589  * removed at some point after the commit.  This prevents us from just walking
2590  * down the list processing each one.  We'll use a flag in the intent item to
2591  * skip those that we've already processed and use the AIL iteration mechanism's
2592  * generation count to try to speed this up at least a bit.
2593  *
2594  * When we start, we know that the intents are the only things in the AIL. As we
2595  * process them, however, other items are added to the AIL. Hence we know we
2596  * have started recovery on all the pending intents when we find an non-intent
2597  * item in the AIL.
2598  */
2599 STATIC int
xlog_recover_process_intents(struct xlog * log)2600 xlog_recover_process_intents(
2601 	struct xlog			*log)
2602 {
2603 	LIST_HEAD(capture_list);
2604 	struct xfs_defer_pending	*dfp, *n;
2605 	int				error = 0;
2606 #if defined(DEBUG) || defined(XFS_WARN)
2607 	xfs_lsn_t			last_lsn;
2608 
2609 	last_lsn = xlog_assign_lsn(log->l_curr_cycle, log->l_curr_block);
2610 #endif
2611 
2612 	list_for_each_entry_safe(dfp, n, &log->r_dfops, dfp_list) {
2613 		ASSERT(xlog_item_is_intent(dfp->dfp_intent));
2614 
2615 		/*
2616 		 * We should never see a redo item with a LSN higher than
2617 		 * the last transaction we found in the log at the start
2618 		 * of recovery.
2619 		 */
2620 		ASSERT(XFS_LSN_CMP(last_lsn, dfp->dfp_intent->li_lsn) >= 0);
2621 
2622 		/*
2623 		 * NOTE: If your intent processing routine can create more
2624 		 * deferred ops, you /must/ attach them to the capture list in
2625 		 * the recover routine or else those subsequent intents will be
2626 		 * replayed in the wrong order!
2627 		 *
2628 		 * The recovery function can free the log item, so we must not
2629 		 * access dfp->dfp_intent after it returns.  It must dispose of
2630 		 * @dfp if it returns 0.
2631 		 */
2632 		error = xfs_defer_finish_recovery(log->l_mp, dfp,
2633 				&capture_list);
2634 		if (error)
2635 			break;
2636 	}
2637 	if (error)
2638 		goto err;
2639 
2640 	error = xlog_finish_defer_ops(log->l_mp, &capture_list);
2641 	if (error)
2642 		goto err;
2643 
2644 	return 0;
2645 err:
2646 	xlog_abort_defer_ops(log->l_mp, &capture_list);
2647 	return error;
2648 }
2649 
2650 /*
2651  * A cancel occurs when the mount has failed and we're bailing out.  Release all
2652  * pending log intent items that we haven't started recovery on so they don't
2653  * pin the AIL.
2654  */
2655 STATIC void
xlog_recover_cancel_intents(struct xlog * log)2656 xlog_recover_cancel_intents(
2657 	struct xlog			*log)
2658 {
2659 	struct xfs_defer_pending	*dfp, *n;
2660 
2661 	list_for_each_entry_safe(dfp, n, &log->r_dfops, dfp_list) {
2662 		ASSERT(xlog_item_is_intent(dfp->dfp_intent));
2663 
2664 		xfs_defer_cancel_recovery(log->l_mp, dfp);
2665 	}
2666 }
2667 
2668 /*
2669  * Transfer ownership of the recovered pending work to the recovery transaction
2670  * and try to finish the work.  If there is more work to be done, the dfp will
2671  * remain attached to the transaction.  If not, the dfp is freed.
2672  */
2673 int
xlog_recover_finish_intent(struct xfs_trans * tp,struct xfs_defer_pending * dfp)2674 xlog_recover_finish_intent(
2675 	struct xfs_trans		*tp,
2676 	struct xfs_defer_pending	*dfp)
2677 {
2678 	int				error;
2679 
2680 	list_move(&dfp->dfp_list, &tp->t_dfops);
2681 	error = xfs_defer_finish_one(tp, dfp);
2682 	if (error == -EAGAIN)
2683 		return 0;
2684 	return error;
2685 }
2686 
2687 /*
2688  * This routine performs a transaction to null out a bad inode pointer
2689  * in an agi unlinked inode hash bucket.
2690  */
2691 STATIC void
xlog_recover_clear_agi_bucket(struct xfs_perag * pag,int bucket)2692 xlog_recover_clear_agi_bucket(
2693 	struct xfs_perag	*pag,
2694 	int			bucket)
2695 {
2696 	struct xfs_mount	*mp = pag_mount(pag);
2697 	struct xfs_trans	*tp;
2698 	struct xfs_agi		*agi;
2699 	struct xfs_buf		*agibp;
2700 	int			offset;
2701 	int			error;
2702 
2703 	error = xfs_trans_alloc(mp, &M_RES(mp)->tr_clearagi, 0, 0, 0, &tp);
2704 	if (error)
2705 		goto out_error;
2706 
2707 	error = xfs_read_agi(pag, tp, 0, &agibp);
2708 	if (error)
2709 		goto out_abort;
2710 
2711 	agi = agibp->b_addr;
2712 	agi->agi_unlinked[bucket] = cpu_to_be32(NULLAGINO);
2713 	offset = offsetof(xfs_agi_t, agi_unlinked) +
2714 		 (sizeof(xfs_agino_t) * bucket);
2715 	xfs_trans_log_buf(tp, agibp, offset,
2716 			  (offset + sizeof(xfs_agino_t) - 1));
2717 
2718 	error = xfs_trans_commit(tp);
2719 	if (error)
2720 		goto out_error;
2721 	return;
2722 
2723 out_abort:
2724 	xfs_trans_cancel(tp);
2725 out_error:
2726 	xfs_warn(mp, "%s: failed to clear agi %d. Continuing.", __func__,
2727 			pag_agno(pag));
2728 	return;
2729 }
2730 
2731 static int
xlog_recover_iunlink_bucket(struct xfs_perag * pag,struct xfs_agi * agi,int bucket)2732 xlog_recover_iunlink_bucket(
2733 	struct xfs_perag	*pag,
2734 	struct xfs_agi		*agi,
2735 	int			bucket)
2736 {
2737 	struct xfs_mount	*mp = pag_mount(pag);
2738 	struct xfs_inode	*prev_ip = NULL;
2739 	struct xfs_inode	*ip;
2740 	xfs_agino_t		prev_agino, agino;
2741 	int			error = 0;
2742 
2743 	agino = be32_to_cpu(agi->agi_unlinked[bucket]);
2744 	while (agino != NULLAGINO) {
2745 		error = xfs_iget(mp, NULL, xfs_agino_to_ino(pag, agino), 0, 0,
2746 				&ip);
2747 		if (error)
2748 			break;
2749 
2750 		ASSERT(VFS_I(ip)->i_nlink == 0);
2751 		ASSERT(VFS_I(ip)->i_mode != 0);
2752 		xfs_iflags_clear(ip, XFS_IRECOVERY);
2753 		agino = ip->i_next_unlinked;
2754 
2755 		if (prev_ip) {
2756 			ip->i_prev_unlinked = prev_agino;
2757 			xfs_irele(prev_ip);
2758 
2759 			/*
2760 			 * Ensure the inode is removed from the unlinked list
2761 			 * before we continue so that it won't race with
2762 			 * building the in-memory list here. This could be
2763 			 * serialised with the agibp lock, but that just
2764 			 * serialises via lockstepping and it's much simpler
2765 			 * just to flush the inodegc queue and wait for it to
2766 			 * complete.
2767 			 */
2768 			error = xfs_inodegc_flush(mp);
2769 			if (error)
2770 				break;
2771 		}
2772 
2773 		prev_agino = agino;
2774 		prev_ip = ip;
2775 	}
2776 
2777 	if (prev_ip) {
2778 		int	error2;
2779 
2780 		ip->i_prev_unlinked = prev_agino;
2781 		xfs_irele(prev_ip);
2782 
2783 		error2 = xfs_inodegc_flush(mp);
2784 		if (error2 && !error)
2785 			return error2;
2786 	}
2787 	return error;
2788 }
2789 
2790 /*
2791  * Recover AGI unlinked lists
2792  *
2793  * This is called during recovery to process any inodes which we unlinked but
2794  * not freed when the system crashed.  These inodes will be on the lists in the
2795  * AGI blocks. What we do here is scan all the AGIs and fully truncate and free
2796  * any inodes found on the lists. Each inode is removed from the lists when it
2797  * has been fully truncated and is freed. The freeing of the inode and its
2798  * removal from the list must be atomic.
2799  *
2800  * If everything we touch in the agi processing loop is already in memory, this
2801  * loop can hold the cpu for a long time. It runs without lock contention,
2802  * memory allocation contention, the need wait for IO, etc, and so will run
2803  * until we either run out of inodes to process, run low on memory or we run out
2804  * of log space.
2805  *
2806  * This behaviour is bad for latency on single CPU and non-preemptible kernels,
2807  * and can prevent other filesystem work (such as CIL pushes) from running. This
2808  * can lead to deadlocks if the recovery process runs out of log reservation
2809  * space. Hence we need to yield the CPU when there is other kernel work
2810  * scheduled on this CPU to ensure other scheduled work can run without undue
2811  * latency.
2812  */
2813 static void
xlog_recover_iunlink_ag(struct xfs_perag * pag)2814 xlog_recover_iunlink_ag(
2815 	struct xfs_perag	*pag)
2816 {
2817 	struct xfs_agi		*agi;
2818 	struct xfs_buf		*agibp;
2819 	int			bucket;
2820 	int			error;
2821 
2822 	error = xfs_read_agi(pag, NULL, 0, &agibp);
2823 	if (error) {
2824 		/*
2825 		 * AGI is b0rked. Don't process it.
2826 		 *
2827 		 * We should probably mark the filesystem as corrupt after we've
2828 		 * recovered all the ag's we can....
2829 		 */
2830 		return;
2831 	}
2832 
2833 	/*
2834 	 * Unlock the buffer so that it can be acquired in the normal course of
2835 	 * the transaction to truncate and free each inode.  Because we are not
2836 	 * racing with anyone else here for the AGI buffer, we don't even need
2837 	 * to hold it locked to read the initial unlinked bucket entries out of
2838 	 * the buffer. We keep buffer reference though, so that it stays pinned
2839 	 * in memory while we need the buffer.
2840 	 */
2841 	agi = agibp->b_addr;
2842 	xfs_buf_unlock(agibp);
2843 
2844 	for (bucket = 0; bucket < XFS_AGI_UNLINKED_BUCKETS; bucket++) {
2845 		error = xlog_recover_iunlink_bucket(pag, agi, bucket);
2846 		if (error) {
2847 			/*
2848 			 * Bucket is unrecoverable, so only a repair scan can
2849 			 * free the remaining unlinked inodes. Just empty the
2850 			 * bucket and remaining inodes on it unreferenced and
2851 			 * unfreeable.
2852 			 */
2853 			xlog_recover_clear_agi_bucket(pag, bucket);
2854 		}
2855 	}
2856 
2857 	xfs_buf_rele(agibp);
2858 }
2859 
2860 static void
xlog_recover_process_iunlinks(struct xlog * log)2861 xlog_recover_process_iunlinks(
2862 	struct xlog	*log)
2863 {
2864 	struct xfs_perag	*pag = NULL;
2865 
2866 	while ((pag = xfs_perag_next(log->l_mp, pag)))
2867 		xlog_recover_iunlink_ag(pag);
2868 }
2869 
2870 STATIC void
xlog_unpack_data(struct xlog_rec_header * rhead,char * dp,struct xlog * log)2871 xlog_unpack_data(
2872 	struct xlog_rec_header	*rhead,
2873 	char			*dp,
2874 	struct xlog		*log)
2875 {
2876 	int			i;
2877 
2878 	for (i = 0; i < BTOBB(be32_to_cpu(rhead->h_len)); i++) {
2879 		*(__be32 *)dp = *xlog_cycle_data(rhead, i);
2880 		dp += BBSIZE;
2881 	}
2882 }
2883 
2884 /*
2885  * CRC check, unpack and process a log record.
2886  */
2887 STATIC int
xlog_recover_process(struct xlog * log,struct hlist_head rhash[],struct xlog_rec_header * rhead,char * dp,int pass,struct list_head * buffer_list)2888 xlog_recover_process(
2889 	struct xlog		*log,
2890 	struct hlist_head	rhash[],
2891 	struct xlog_rec_header	*rhead,
2892 	char			*dp,
2893 	int			pass,
2894 	struct list_head	*buffer_list)
2895 {
2896 	__le32			expected_crc = rhead->h_crc, crc, other_crc;
2897 
2898 	crc = xlog_cksum(log, rhead, dp, XLOG_REC_SIZE,
2899 			be32_to_cpu(rhead->h_len));
2900 
2901 	/*
2902 	 * Look at the end of the struct xlog_rec_header definition in
2903 	 * xfs_log_format.h for the glory details.
2904 	 */
2905 	if (expected_crc && crc != expected_crc) {
2906 		other_crc = xlog_cksum(log, rhead, dp, XLOG_REC_SIZE_OTHER,
2907 				be32_to_cpu(rhead->h_len));
2908 		if (other_crc == expected_crc) {
2909 			xfs_notice_once(log->l_mp,
2910 	"Fixing up incorrect CRC due to padding.");
2911 			crc = other_crc;
2912 		}
2913 	}
2914 
2915 	/*
2916 	 * Nothing else to do if this is a CRC verification pass. Just return
2917 	 * if this a record with a non-zero crc. Unfortunately, mkfs always
2918 	 * sets expected_crc to 0 so we must consider this valid even on v5
2919 	 * supers.  Otherwise, return EFSBADCRC on failure so the callers up the
2920 	 * stack know precisely what failed.
2921 	 */
2922 	if (pass == XLOG_RECOVER_CRCPASS) {
2923 		if (expected_crc && crc != expected_crc)
2924 			return -EFSBADCRC;
2925 		return 0;
2926 	}
2927 
2928 	/*
2929 	 * We're in the normal recovery path. Issue a warning if and only if the
2930 	 * CRC in the header is non-zero. This is an advisory warning and the
2931 	 * zero CRC check prevents warnings from being emitted when upgrading
2932 	 * the kernel from one that does not add CRCs by default.
2933 	 */
2934 	if (crc != expected_crc) {
2935 		if (expected_crc || xfs_has_crc(log->l_mp)) {
2936 			xfs_alert(log->l_mp,
2937 		"log record CRC mismatch: found 0x%x, expected 0x%x.",
2938 					le32_to_cpu(expected_crc),
2939 					le32_to_cpu(crc));
2940 			xfs_hex_dump(dp, 32);
2941 		}
2942 
2943 		/*
2944 		 * If the filesystem is CRC enabled, this mismatch becomes a
2945 		 * fatal log corruption failure.
2946 		 */
2947 		if (xfs_has_crc(log->l_mp)) {
2948 			XFS_ERROR_REPORT(__func__, XFS_ERRLEVEL_LOW, log->l_mp);
2949 			return -EFSCORRUPTED;
2950 		}
2951 	}
2952 
2953 	xlog_unpack_data(rhead, dp, log);
2954 
2955 	return xlog_recover_process_data(log, rhash, rhead, dp, pass,
2956 					 buffer_list);
2957 }
2958 
2959 STATIC int
xlog_valid_rec_header(struct xlog * log,struct xlog_rec_header * rhead,xfs_daddr_t blkno,int bufsize)2960 xlog_valid_rec_header(
2961 	struct xlog		*log,
2962 	struct xlog_rec_header	*rhead,
2963 	xfs_daddr_t		blkno,
2964 	int			bufsize)
2965 {
2966 	struct xfs_mount	*mp = log->l_mp;
2967 	u32			h_version = be32_to_cpu(rhead->h_version);
2968 	int			hlen;
2969 
2970 	if (XFS_IS_CORRUPT(mp,
2971 			   rhead->h_magicno != cpu_to_be32(XLOG_HEADER_MAGIC_NUM)))
2972 		return -EFSCORRUPTED;
2973 
2974 	/*
2975 	 * The log version must match the superblock
2976 	 */
2977 	if (xfs_has_logv2(mp)) {
2978 		if (XFS_IS_CORRUPT(mp, h_version != XLOG_VERSION_2))
2979 			return -EFSCORRUPTED;
2980 	} else {
2981 		if (XFS_IS_CORRUPT(mp, h_version != XLOG_VERSION_1))
2982 			return -EFSCORRUPTED;
2983 	}
2984 
2985 	/*
2986 	 * LR body must have data (or it wouldn't have been written)
2987 	 * and h_len must not be greater than LR buffer size.
2988 	 */
2989 	hlen = be32_to_cpu(rhead->h_len);
2990 	if (XFS_IS_CORRUPT(mp, hlen <= 0 || hlen > bufsize))
2991 		return -EFSCORRUPTED;
2992 
2993 	if (XFS_IS_CORRUPT(mp, blkno > log->l_logBBsize || blkno > INT_MAX))
2994 		return -EFSCORRUPTED;
2995 
2996 	return 0;
2997 }
2998 
2999 /*
3000  * Read the log from tail to head and process the log records found.
3001  * Handle the two cases where the tail and head are in the same cycle
3002  * and where the active portion of the log wraps around the end of
3003  * the physical log separately.  The pass parameter is passed through
3004  * to the routines called to process the data and is not looked at
3005  * here.
3006  */
3007 STATIC int
xlog_do_recovery_pass(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t tail_blk,int pass,xfs_daddr_t * first_bad)3008 xlog_do_recovery_pass(
3009 	struct xlog		*log,
3010 	xfs_daddr_t		head_blk,
3011 	xfs_daddr_t		tail_blk,
3012 	int			pass,
3013 	xfs_daddr_t		*first_bad)	/* out: first bad log rec */
3014 {
3015 	struct xlog_rec_header	*rhead;
3016 	xfs_daddr_t		blk_no, rblk_no;
3017 	xfs_daddr_t		rhead_blk;
3018 	char			*offset;
3019 	char			*hbp, *dbp;
3020 	int			error = 0, h_size, h_len;
3021 	int			error2 = 0;
3022 	int			bblks, split_bblks;
3023 	int			hblks = 1, split_hblks, wrapped_hblks;
3024 	int			i;
3025 	struct hlist_head	rhash[XLOG_RHASH_SIZE];
3026 	LIST_HEAD		(buffer_list);
3027 
3028 	ASSERT(head_blk != tail_blk);
3029 	blk_no = rhead_blk = tail_blk;
3030 
3031 	for (i = 0; i < XLOG_RHASH_SIZE; i++)
3032 		INIT_HLIST_HEAD(&rhash[i]);
3033 
3034 	hbp = xlog_alloc_buffer(log, hblks);
3035 	if (!hbp)
3036 		return -ENOMEM;
3037 
3038 	/*
3039 	 * Read the header of the tail block and get the iclog buffer size from
3040 	 * h_size.  Use this to tell how many sectors make up the log header.
3041 	 */
3042 	if (xfs_has_logv2(log->l_mp)) {
3043 		/*
3044 		 * When using variable length iclogs, read first sector of
3045 		 * iclog header and extract the header size from it.  Get a
3046 		 * new hbp that is the correct size.
3047 		 */
3048 		error = xlog_bread(log, tail_blk, 1, hbp, &offset);
3049 		if (error)
3050 			goto bread_err1;
3051 
3052 		rhead = (struct xlog_rec_header *)offset;
3053 
3054 		/*
3055 		 * xfsprogs has a bug where record length is based on lsunit but
3056 		 * h_size (iclog size) is hardcoded to 32k. Now that we
3057 		 * unconditionally CRC verify the unmount record, this means the
3058 		 * log buffer can be too small for the record and cause an
3059 		 * overrun.
3060 		 *
3061 		 * Detect this condition here. Use lsunit for the buffer size as
3062 		 * long as this looks like the mkfs case. Otherwise, return an
3063 		 * error to avoid a buffer overrun.
3064 		 */
3065 		h_size = be32_to_cpu(rhead->h_size);
3066 		h_len = be32_to_cpu(rhead->h_len);
3067 		if (h_len > h_size && h_len <= log->l_mp->m_logbsize &&
3068 		    rhead->h_num_logops == cpu_to_be32(1)) {
3069 			xfs_warn(log->l_mp,
3070 		"invalid iclog size (%d bytes), using lsunit (%d bytes)",
3071 				 h_size, log->l_mp->m_logbsize);
3072 			h_size = log->l_mp->m_logbsize;
3073 		}
3074 
3075 		error = xlog_valid_rec_header(log, rhead, tail_blk, h_size);
3076 		if (error)
3077 			goto bread_err1;
3078 
3079 		/*
3080 		 * This open codes xlog_logrec_hblks so that we can reuse the
3081 		 * fixed up h_size value calculated above.  Without that we'd
3082 		 * still allocate the buffer based on the incorrect on-disk
3083 		 * size.
3084 		 */
3085 		if (h_size > XLOG_HEADER_CYCLE_SIZE &&
3086 		    (rhead->h_version & cpu_to_be32(XLOG_VERSION_2))) {
3087 			hblks = DIV_ROUND_UP(h_size, XLOG_HEADER_CYCLE_SIZE);
3088 			if (hblks > 1) {
3089 				kvfree(hbp);
3090 				hbp = xlog_alloc_buffer(log, hblks);
3091 				if (!hbp)
3092 					return -ENOMEM;
3093 			}
3094 		}
3095 	} else {
3096 		ASSERT(log->l_sectBBsize == 1);
3097 		h_size = XLOG_BIG_RECORD_BSIZE;
3098 	}
3099 
3100 	dbp = xlog_alloc_buffer(log, BTOBB(h_size));
3101 	if (!dbp) {
3102 		kvfree(hbp);
3103 		return -ENOMEM;
3104 	}
3105 
3106 	memset(rhash, 0, sizeof(rhash));
3107 	if (tail_blk > head_blk) {
3108 		/*
3109 		 * Perform recovery around the end of the physical log.
3110 		 * When the head is not on the same cycle number as the tail,
3111 		 * we can't do a sequential recovery.
3112 		 */
3113 		while (blk_no < log->l_logBBsize) {
3114 			/*
3115 			 * Check for header wrapping around physical end-of-log
3116 			 */
3117 			offset = hbp;
3118 			split_hblks = 0;
3119 			wrapped_hblks = 0;
3120 			if (blk_no + hblks <= log->l_logBBsize) {
3121 				/* Read header in one read */
3122 				error = xlog_bread(log, blk_no, hblks, hbp,
3123 						   &offset);
3124 				if (error)
3125 					goto bread_err2;
3126 			} else {
3127 				/* This LR is split across physical log end */
3128 				if (blk_no != log->l_logBBsize) {
3129 					/* some data before physical log end */
3130 					ASSERT(blk_no <= INT_MAX);
3131 					split_hblks = log->l_logBBsize - (int)blk_no;
3132 					ASSERT(split_hblks > 0);
3133 					error = xlog_bread(log, blk_no,
3134 							   split_hblks, hbp,
3135 							   &offset);
3136 					if (error)
3137 						goto bread_err2;
3138 				}
3139 
3140 				/*
3141 				 * Note: this black magic still works with
3142 				 * large sector sizes (non-512) only because:
3143 				 * - we increased the buffer size originally
3144 				 *   by 1 sector giving us enough extra space
3145 				 *   for the second read;
3146 				 * - the log start is guaranteed to be sector
3147 				 *   aligned;
3148 				 * - we read the log end (LR header start)
3149 				 *   _first_, then the log start (LR header end)
3150 				 *   - order is important.
3151 				 */
3152 				wrapped_hblks = hblks - split_hblks;
3153 				error = xlog_bread_noalign(log, 0,
3154 						wrapped_hblks,
3155 						offset + BBTOB(split_hblks));
3156 				if (error)
3157 					goto bread_err2;
3158 			}
3159 			rhead = (struct xlog_rec_header *)offset;
3160 			error = xlog_valid_rec_header(log, rhead,
3161 					split_hblks ? blk_no : 0, h_size);
3162 			if (error)
3163 				goto bread_err2;
3164 
3165 			bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
3166 			blk_no += hblks;
3167 
3168 			/*
3169 			 * Read the log record data in multiple reads if it
3170 			 * wraps around the end of the log. Note that if the
3171 			 * header already wrapped, blk_no could point past the
3172 			 * end of the log. The record data is contiguous in
3173 			 * that case.
3174 			 */
3175 			if (blk_no + bblks <= log->l_logBBsize ||
3176 			    blk_no >= log->l_logBBsize) {
3177 				rblk_no = xlog_wrap_logbno(log, blk_no);
3178 				error = xlog_bread(log, rblk_no, bblks, dbp,
3179 						   &offset);
3180 				if (error)
3181 					goto bread_err2;
3182 			} else {
3183 				/* This log record is split across the
3184 				 * physical end of log */
3185 				offset = dbp;
3186 				split_bblks = 0;
3187 				if (blk_no != log->l_logBBsize) {
3188 					/* some data is before the physical
3189 					 * end of log */
3190 					ASSERT(!wrapped_hblks);
3191 					ASSERT(blk_no <= INT_MAX);
3192 					split_bblks =
3193 						log->l_logBBsize - (int)blk_no;
3194 					ASSERT(split_bblks > 0);
3195 					error = xlog_bread(log, blk_no,
3196 							split_bblks, dbp,
3197 							&offset);
3198 					if (error)
3199 						goto bread_err2;
3200 				}
3201 
3202 				/*
3203 				 * Note: this black magic still works with
3204 				 * large sector sizes (non-512) only because:
3205 				 * - we increased the buffer size originally
3206 				 *   by 1 sector giving us enough extra space
3207 				 *   for the second read;
3208 				 * - the log start is guaranteed to be sector
3209 				 *   aligned;
3210 				 * - we read the log end (LR header start)
3211 				 *   _first_, then the log start (LR header end)
3212 				 *   - order is important.
3213 				 */
3214 				error = xlog_bread_noalign(log, 0,
3215 						bblks - split_bblks,
3216 						offset + BBTOB(split_bblks));
3217 				if (error)
3218 					goto bread_err2;
3219 			}
3220 
3221 			error = xlog_recover_process(log, rhash, rhead, offset,
3222 						     pass, &buffer_list);
3223 			if (error)
3224 				goto bread_err2;
3225 
3226 			blk_no += bblks;
3227 			rhead_blk = blk_no;
3228 		}
3229 
3230 		ASSERT(blk_no >= log->l_logBBsize);
3231 		blk_no -= log->l_logBBsize;
3232 		rhead_blk = blk_no;
3233 	}
3234 
3235 	/* read first part of physical log */
3236 	while (blk_no < head_blk) {
3237 		error = xlog_bread(log, blk_no, hblks, hbp, &offset);
3238 		if (error)
3239 			goto bread_err2;
3240 
3241 		rhead = (struct xlog_rec_header *)offset;
3242 		error = xlog_valid_rec_header(log, rhead, blk_no, h_size);
3243 		if (error)
3244 			goto bread_err2;
3245 
3246 		/* blocks in data section */
3247 		bblks = (int)BTOBB(be32_to_cpu(rhead->h_len));
3248 		error = xlog_bread(log, blk_no+hblks, bblks, dbp,
3249 				   &offset);
3250 		if (error)
3251 			goto bread_err2;
3252 
3253 		error = xlog_recover_process(log, rhash, rhead, offset, pass,
3254 					     &buffer_list);
3255 		if (error)
3256 			goto bread_err2;
3257 
3258 		blk_no += bblks + hblks;
3259 		rhead_blk = blk_no;
3260 	}
3261 
3262  bread_err2:
3263 	kvfree(dbp);
3264  bread_err1:
3265 	kvfree(hbp);
3266 
3267 	/*
3268 	 * Submit buffers that have been dirtied by the last record recovered.
3269 	 */
3270 	if (!list_empty(&buffer_list)) {
3271 		if (error) {
3272 			/*
3273 			 * If there has been an item recovery error then we
3274 			 * cannot allow partial checkpoint writeback to
3275 			 * occur.  We might have multiple checkpoints with the
3276 			 * same start LSN in this buffer list, and partial
3277 			 * writeback of a checkpoint in this situation can
3278 			 * prevent future recovery of all the changes in the
3279 			 * checkpoints at this start LSN.
3280 			 *
3281 			 * Note: Shutting down the filesystem will result in the
3282 			 * delwri submission marking all the buffers stale and
3283 			 * completing them without doing any IO.
3284 			 */
3285 			xlog_force_shutdown(log, SHUTDOWN_LOG_IO_ERROR);
3286 		}
3287 		error2 = xfs_buf_delwri_submit(&buffer_list);
3288 	}
3289 
3290 	if (error && first_bad)
3291 		*first_bad = rhead_blk;
3292 
3293 	/*
3294 	 * Transactions are freed at commit time but transactions without commit
3295 	 * records on disk are never committed. Free any that may be left in the
3296 	 * hash table.
3297 	 */
3298 	for (i = 0; i < XLOG_RHASH_SIZE; i++) {
3299 		struct hlist_node	*tmp;
3300 		struct xlog_recover	*trans;
3301 
3302 		hlist_for_each_entry_safe(trans, tmp, &rhash[i], r_list)
3303 			xlog_recover_free_trans(trans);
3304 	}
3305 
3306 	return error ? error : error2;
3307 }
3308 
3309 /*
3310  * Do the recovery of the log.  We actually do this in two phases.
3311  * The two passes are necessary in order to implement the function
3312  * of cancelling a record written into the log.  The first pass
3313  * determines those things which have been cancelled, and the
3314  * second pass replays log items normally except for those which
3315  * have been cancelled.  The handling of the replay and cancellations
3316  * takes place in the log item type specific routines.
3317  *
3318  * The table of items which have cancel records in the log is allocated
3319  * and freed at this level, since only here do we know when all of
3320  * the log recovery has been completed.
3321  */
3322 STATIC int
xlog_do_log_recovery(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t tail_blk)3323 xlog_do_log_recovery(
3324 	struct xlog	*log,
3325 	xfs_daddr_t	head_blk,
3326 	xfs_daddr_t	tail_blk)
3327 {
3328 	int		error;
3329 
3330 	ASSERT(head_blk != tail_blk);
3331 
3332 	/*
3333 	 * First do a pass to find all of the cancelled buf log items.
3334 	 * Store them in the buf_cancel_table for use in the second pass.
3335 	 */
3336 	error = xlog_alloc_buf_cancel_table(log);
3337 	if (error)
3338 		return error;
3339 
3340 	error = xlog_do_recovery_pass(log, head_blk, tail_blk,
3341 				      XLOG_RECOVER_PASS1, NULL);
3342 	if (error != 0)
3343 		goto out_cancel;
3344 
3345 	/*
3346 	 * Then do a second pass to actually recover the items in the log.
3347 	 * When it is complete free the table of buf cancel items.
3348 	 */
3349 	error = xlog_do_recovery_pass(log, head_blk, tail_blk,
3350 				      XLOG_RECOVER_PASS2, NULL);
3351 	if (!error)
3352 		xlog_check_buf_cancel_table(log);
3353 out_cancel:
3354 	xlog_free_buf_cancel_table(log);
3355 	return error;
3356 }
3357 
3358 /*
3359  * Do the actual recovery
3360  */
3361 STATIC int
xlog_do_recover(struct xlog * log,xfs_daddr_t head_blk,xfs_daddr_t tail_blk)3362 xlog_do_recover(
3363 	struct xlog		*log,
3364 	xfs_daddr_t		head_blk,
3365 	xfs_daddr_t		tail_blk)
3366 {
3367 	struct xfs_mount	*mp = log->l_mp;
3368 	struct xfs_buf		*bp = mp->m_sb_bp;
3369 	struct xfs_sb		*sbp = &mp->m_sb;
3370 	int			error;
3371 
3372 	trace_xfs_log_recover(log, head_blk, tail_blk);
3373 
3374 	/*
3375 	 * First replay the images in the log.
3376 	 */
3377 	error = xlog_do_log_recovery(log, head_blk, tail_blk);
3378 	if (error)
3379 		return error;
3380 
3381 	if (xlog_is_shutdown(log))
3382 		return -EIO;
3383 
3384 	/*
3385 	 * We now update the tail_lsn since much of the recovery has completed
3386 	 * and there may be space available to use.  If there were no extent or
3387 	 * iunlinks, we can free up the entire log.  This was set in
3388 	 * xlog_find_tail to be the lsn of the last known good LR on disk.  If
3389 	 * there are extent frees or iunlinks they will have some entries in the
3390 	 * AIL; so we look at the AIL to determine how to set the tail_lsn.
3391 	 */
3392 	xfs_ail_assign_tail_lsn(log->l_ailp);
3393 
3394 	/*
3395 	 * Now that we've finished replaying all buffer and inode updates,
3396 	 * re-read the superblock and reverify it.
3397 	 */
3398 	xfs_buf_lock(bp);
3399 	xfs_buf_hold(bp);
3400 	error = _xfs_buf_read(bp);
3401 	if (error) {
3402 		if (!xlog_is_shutdown(log)) {
3403 			xfs_buf_ioerror_alert(bp, __this_address);
3404 			ASSERT(0);
3405 		}
3406 		xfs_buf_relse(bp);
3407 		return error;
3408 	}
3409 
3410 	/* Convert superblock from on-disk format */
3411 	xfs_sb_from_disk(sbp, bp->b_addr);
3412 	xfs_buf_relse(bp);
3413 
3414 	/* re-initialise in-core superblock and geometry structures */
3415 	mp->m_features |= xfs_sb_version_to_features(sbp);
3416 	xfs_reinit_percpu_counters(mp);
3417 
3418 	/* Normal transactions can now occur */
3419 	clear_bit(XLOG_ACTIVE_RECOVERY, &log->l_opstate);
3420 	return 0;
3421 }
3422 
3423 /*
3424  * Perform recovery and re-initialize some log variables in xlog_find_tail.
3425  *
3426  * Return error or zero.
3427  */
3428 int
xlog_recover(struct xlog * log)3429 xlog_recover(
3430 	struct xlog	*log)
3431 {
3432 	xfs_daddr_t	head_blk, tail_blk;
3433 	int		error;
3434 
3435 	/* find the tail of the log */
3436 	error = xlog_find_tail(log, &head_blk, &tail_blk);
3437 	if (error)
3438 		return error;
3439 
3440 	/*
3441 	 * The superblock was read before the log was available and thus the LSN
3442 	 * could not be verified. Check the superblock LSN against the current
3443 	 * LSN now that it's known.
3444 	 */
3445 	if (xfs_has_crc(log->l_mp) &&
3446 	    !xfs_log_check_lsn(log->l_mp, log->l_mp->m_sb.sb_lsn))
3447 		return -EINVAL;
3448 
3449 	if (tail_blk != head_blk) {
3450 		/* There used to be a comment here:
3451 		 *
3452 		 * disallow recovery on read-only mounts.  note -- mount
3453 		 * checks for ENOSPC and turns it into an intelligent
3454 		 * error message.
3455 		 * ...but this is no longer true.  Now, unless you specify
3456 		 * NORECOVERY (in which case this function would never be
3457 		 * called), we just go ahead and recover.  We do this all
3458 		 * under the vfs layer, so we can get away with it unless
3459 		 * the device itself is read-only, in which case we fail.
3460 		 */
3461 		if ((error = xfs_dev_is_read_only(log->l_mp, "recovery"))) {
3462 			return error;
3463 		}
3464 
3465 		/*
3466 		 * Version 5 superblock log feature mask validation. We know the
3467 		 * log is dirty so check if there are any unknown log features
3468 		 * in what we need to recover. If there are unknown features
3469 		 * (e.g. unsupported transactions, then simply reject the
3470 		 * attempt at recovery before touching anything.
3471 		 */
3472 		if (xfs_sb_is_v5(&log->l_mp->m_sb) &&
3473 		    xfs_sb_has_incompat_log_feature(&log->l_mp->m_sb,
3474 					XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN)) {
3475 			xfs_warn(log->l_mp,
3476 "Superblock has unknown incompatible log features (0x%x) enabled.",
3477 				(log->l_mp->m_sb.sb_features_log_incompat &
3478 					XFS_SB_FEAT_INCOMPAT_LOG_UNKNOWN));
3479 			xfs_warn(log->l_mp,
3480 "The log can not be fully and/or safely recovered by this kernel.");
3481 			xfs_warn(log->l_mp,
3482 "Please recover the log on a kernel that supports the unknown features.");
3483 			return -EINVAL;
3484 		}
3485 
3486 		/*
3487 		 * Delay log recovery if the debug hook is set. This is debug
3488 		 * instrumentation to coordinate simulation of I/O failures with
3489 		 * log recovery.
3490 		 */
3491 		if (xfs_globals.log_recovery_delay) {
3492 			xfs_notice(log->l_mp,
3493 				"Delaying log recovery for %d seconds.",
3494 				xfs_globals.log_recovery_delay);
3495 			msleep(xfs_globals.log_recovery_delay * 1000);
3496 		}
3497 
3498 		xfs_notice(log->l_mp, "Starting recovery (logdev: %s)",
3499 				log->l_mp->m_logname ? log->l_mp->m_logname
3500 						     : "internal");
3501 
3502 		error = xlog_do_recover(log, head_blk, tail_blk);
3503 		set_bit(XLOG_RECOVERY_NEEDED, &log->l_opstate);
3504 	}
3505 	return error;
3506 }
3507 
3508 /*
3509  * In the first part of recovery we replay inodes and buffers and build up the
3510  * list of intents which need to be processed. Here we process the intents and
3511  * clean up the on disk unlinked inode lists. This is separated from the first
3512  * part of recovery so that the root and real-time bitmap inodes can be read in
3513  * from disk in between the two stages.  This is necessary so that we can free
3514  * space in the real-time portion of the file system.
3515  *
3516  * We run this whole process under GFP_NOFS allocation context. We do a
3517  * combination of non-transactional and transactional work, yet we really don't
3518  * want to recurse into the filesystem from direct reclaim during any of this
3519  * processing. This allows all the recovery code run here not to care about the
3520  * memory allocation context it is running in.
3521  */
3522 int
xlog_recover_finish(struct xlog * log)3523 xlog_recover_finish(
3524 	struct xlog	*log)
3525 {
3526 	unsigned int	nofs_flags = memalloc_nofs_save();
3527 	int		error;
3528 
3529 	error = xlog_recover_process_intents(log);
3530 	if (error) {
3531 		/*
3532 		 * Cancel all the unprocessed intent items now so that we don't
3533 		 * leave them pinned in the AIL.  This can cause the AIL to
3534 		 * livelock on the pinned item if anyone tries to push the AIL
3535 		 * (inode reclaim does this) before we get around to
3536 		 * xfs_log_mount_cancel.
3537 		 */
3538 		xlog_recover_cancel_intents(log);
3539 		xfs_alert(log->l_mp, "Failed to recover intents");
3540 		xlog_force_shutdown(log, SHUTDOWN_LOG_IO_ERROR);
3541 		goto out_error;
3542 	}
3543 
3544 	/*
3545 	 * Sync the log to get all the intents out of the AIL.  This isn't
3546 	 * absolutely necessary, but it helps in case the unlink transactions
3547 	 * would have problems pushing the intents out of the way.
3548 	 */
3549 	xfs_log_force(log->l_mp, XFS_LOG_SYNC);
3550 
3551 	xlog_recover_process_iunlinks(log);
3552 
3553 	/*
3554 	 * Recover any CoW staging blocks that are still referenced by the
3555 	 * ondisk refcount metadata.  During mount there cannot be any live
3556 	 * staging extents as we have not permitted any user modifications.
3557 	 * Therefore, it is safe to free them all right now, even on a
3558 	 * read-only mount.
3559 	 */
3560 	error = xfs_reflink_recover_cow(log->l_mp);
3561 	if (error) {
3562 		xfs_alert(log->l_mp,
3563 	"Failed to recover leftover CoW staging extents, err %d.",
3564 				error);
3565 		/*
3566 		 * If we get an error here, make sure the log is shut down
3567 		 * but return zero so that any log items committed since the
3568 		 * end of intents processing can be pushed through the CIL
3569 		 * and AIL.
3570 		 */
3571 		xlog_force_shutdown(log, SHUTDOWN_LOG_IO_ERROR);
3572 		error = 0;
3573 		goto out_error;
3574 	}
3575 
3576 out_error:
3577 	memalloc_nofs_restore(nofs_flags);
3578 	return error;
3579 }
3580 
3581 void
xlog_recover_cancel(struct xlog * log)3582 xlog_recover_cancel(
3583 	struct xlog	*log)
3584 {
3585 	if (xlog_recovery_needed(log))
3586 		xlog_recover_cancel_intents(log);
3587 }
3588