1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (c) 2000-2003,2005 Silicon Graphics, Inc.
4 * Copyright (C) 2010 Red Hat, Inc.
5 * All Rights Reserved.
6 */
7 #include "xfs_platform.h"
8 #include "xfs_fs.h"
9 #include "xfs_shared.h"
10 #include "xfs_format.h"
11 #include "xfs_log_format.h"
12 #include "xfs_trans_resv.h"
13 #include "xfs_mount.h"
14 #include "xfs_extent_busy.h"
15 #include "xfs_quota.h"
16 #include "xfs_trans.h"
17 #include "xfs_trans_priv.h"
18 #include "xfs_log.h"
19 #include "xfs_log_priv.h"
20 #include "xfs_trace.h"
21 #include "xfs_error.h"
22 #include "xfs_defer.h"
23 #include "xfs_inode.h"
24 #include "xfs_dquot_item.h"
25 #include "xfs_dquot.h"
26 #include "xfs_icache.h"
27 #include "xfs_rtbitmap.h"
28 #include "xfs_rtgroup.h"
29 #include "xfs_sb.h"
30
31 struct kmem_cache *xfs_trans_cache;
32
33 #if defined(CONFIG_TRACEPOINTS)
34 static void
xfs_trans_trace_reservations(struct xfs_mount * mp)35 xfs_trans_trace_reservations(
36 struct xfs_mount *mp)
37 {
38 struct xfs_trans_res *res;
39 struct xfs_trans_res *end_res;
40 int i;
41
42 res = (struct xfs_trans_res *)M_RES(mp);
43 end_res = (struct xfs_trans_res *)(M_RES(mp) + 1);
44 for (i = 0; res < end_res; i++, res++)
45 trace_xfs_trans_resv_calc(mp, i, res);
46 }
47 #else
48 # define xfs_trans_trace_reservations(mp)
49 #endif
50
51 /*
52 * Initialize the precomputed transaction reservation values
53 * in the mount structure.
54 */
55 void
xfs_trans_init(struct xfs_mount * mp)56 xfs_trans_init(
57 struct xfs_mount *mp)
58 {
59 xfs_trans_resv_calc(mp, M_RES(mp));
60 xfs_trans_trace_reservations(mp);
61 }
62
63 /*
64 * Free the transaction structure. If there is more clean up
65 * to do when the structure is freed, add it here.
66 */
67 STATIC void
xfs_trans_free(struct xfs_trans * tp)68 xfs_trans_free(
69 struct xfs_trans *tp)
70 {
71 xfs_extent_busy_sort(&tp->t_busy);
72 xfs_extent_busy_clear(&tp->t_busy, false);
73
74 trace_xfs_trans_free(tp, _RET_IP_);
75 xfs_trans_clear_context(tp);
76 if (!(tp->t_flags & XFS_TRANS_NO_WRITECOUNT))
77 sb_end_intwrite(tp->t_mountp->m_super);
78 xfs_trans_free_dqinfo(tp);
79 kmem_cache_free(xfs_trans_cache, tp);
80 }
81
82 /*
83 * This is called to create a new transaction which will share the
84 * permanent log reservation of the given transaction. The remaining
85 * unused block and rt extent reservations are also inherited. This
86 * implies that the original transaction is no longer allowed to allocate
87 * blocks. Locks and log items, however, are no inherited. They must
88 * be added to the new transaction explicitly.
89 */
90 STATIC struct xfs_trans *
xfs_trans_dup(struct xfs_trans * tp)91 xfs_trans_dup(
92 struct xfs_trans *tp)
93 {
94 struct xfs_trans *ntp;
95
96 trace_xfs_trans_dup(tp, _RET_IP_);
97
98 ntp = kmem_cache_zalloc(xfs_trans_cache, GFP_KERNEL | __GFP_NOFAIL);
99
100 /*
101 * Initialize the new transaction structure.
102 */
103 ntp->t_mountp = tp->t_mountp;
104 INIT_LIST_HEAD(&ntp->t_items);
105 INIT_LIST_HEAD(&ntp->t_busy);
106 INIT_LIST_HEAD(&ntp->t_dfops);
107 ntp->t_highest_agno = NULLAGNUMBER;
108
109 ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES);
110 ASSERT(tp->t_ticket != NULL);
111
112 ntp->t_flags = XFS_TRANS_PERM_LOG_RES |
113 (tp->t_flags & XFS_TRANS_RESERVE) |
114 (tp->t_flags & XFS_TRANS_NO_WRITECOUNT) |
115 (tp->t_flags & XFS_TRANS_RES_FDBLKS);
116 /* We gave our writer reference to the new transaction */
117 tp->t_flags |= XFS_TRANS_NO_WRITECOUNT;
118 ntp->t_ticket = xfs_log_ticket_get(tp->t_ticket);
119
120 ASSERT(tp->t_blk_res >= tp->t_blk_res_used);
121 ntp->t_blk_res = tp->t_blk_res - tp->t_blk_res_used;
122 tp->t_blk_res = tp->t_blk_res_used;
123
124 ntp->t_rtx_res = tp->t_rtx_res - tp->t_rtx_res_used;
125 tp->t_rtx_res = tp->t_rtx_res_used;
126
127 /* move deferred ops over to the new tp */
128 xfs_defer_move(ntp, tp);
129
130 xfs_trans_dup_dqinfo(tp, ntp);
131 return ntp;
132 }
133
134 /*
135 * This is called to reserve free disk blocks and log space for the given
136 * transaction before allocating any resources within the transaction.
137 *
138 * This will return ENOSPC if there are not enough blocks available.
139 * It will sleep waiting for available log space.
140 *
141 * This does not do quota reservations. That typically is done by the caller
142 * afterwards.
143 */
144 static int
xfs_trans_reserve(struct xfs_trans * tp,struct xfs_trans_res * resp,uint blocks,uint rtextents)145 xfs_trans_reserve(
146 struct xfs_trans *tp,
147 struct xfs_trans_res *resp,
148 uint blocks,
149 uint rtextents)
150 {
151 struct xfs_mount *mp = tp->t_mountp;
152 int error = 0;
153 bool rsvd = (tp->t_flags & XFS_TRANS_RESERVE) != 0;
154
155 ASSERT(resp->tr_logres > 0);
156
157 /*
158 * Attempt to reserve the needed disk blocks by decrementing the number
159 * needed from the number available. This will fail if the count would
160 * go below zero.
161 */
162 if (blocks > 0) {
163 error = xfs_dec_fdblocks(mp, blocks, rsvd);
164 if (error != 0)
165 return -ENOSPC;
166 tp->t_blk_res += blocks;
167 }
168
169 /*
170 * Reserve the log space needed for this transaction.
171 */
172 if (resp->tr_logflags & XFS_TRANS_PERM_LOG_RES)
173 tp->t_flags |= XFS_TRANS_PERM_LOG_RES;
174 error = xfs_log_reserve(mp, resp->tr_logres, resp->tr_logcount,
175 &tp->t_ticket, (tp->t_flags & XFS_TRANS_PERM_LOG_RES));
176 if (error)
177 goto undo_blocks;
178
179 tp->t_log_res = resp->tr_logres;
180 tp->t_log_count = resp->tr_logcount;
181
182 /*
183 * Attempt to reserve the needed realtime extents by decrementing the
184 * number needed from the number available. This will fail if the
185 * count would go below zero.
186 */
187 if (rtextents > 0) {
188 error = xfs_dec_frextents(mp, rtextents);
189 if (error) {
190 error = -ENOSPC;
191 goto undo_log;
192 }
193 tp->t_rtx_res += rtextents;
194 }
195
196 return 0;
197
198 undo_log:
199 xfs_log_ticket_ungrant(mp->m_log, tp->t_ticket);
200 tp->t_ticket = NULL;
201 tp->t_log_res = 0;
202 tp->t_flags &= ~XFS_TRANS_PERM_LOG_RES;
203 undo_blocks:
204 if (blocks > 0) {
205 xfs_add_fdblocks(mp, blocks);
206 tp->t_blk_res = 0;
207 }
208 return error;
209 }
210
211 static struct xfs_trans *
__xfs_trans_alloc(struct xfs_mount * mp,uint flags)212 __xfs_trans_alloc(
213 struct xfs_mount *mp,
214 uint flags)
215 {
216 struct xfs_trans *tp;
217
218 ASSERT(!(flags & XFS_TRANS_RES_FDBLKS) || xfs_has_lazysbcount(mp));
219
220 tp = kmem_cache_zalloc(xfs_trans_cache, GFP_KERNEL | __GFP_NOFAIL);
221 if (!(flags & XFS_TRANS_NO_WRITECOUNT))
222 sb_start_intwrite(mp->m_super);
223 xfs_trans_set_context(tp);
224 tp->t_flags = flags;
225 tp->t_mountp = mp;
226 INIT_LIST_HEAD(&tp->t_items);
227 INIT_LIST_HEAD(&tp->t_busy);
228 INIT_LIST_HEAD(&tp->t_dfops);
229 tp->t_highest_agno = NULLAGNUMBER;
230 return tp;
231 }
232
233 int
xfs_trans_alloc(struct xfs_mount * mp,struct xfs_trans_res * resp,uint blocks,uint rtextents,uint flags,struct xfs_trans ** tpp)234 xfs_trans_alloc(
235 struct xfs_mount *mp,
236 struct xfs_trans_res *resp,
237 uint blocks,
238 uint rtextents,
239 uint flags,
240 struct xfs_trans **tpp)
241 {
242 struct xfs_trans *tp;
243 bool want_retry = true;
244 int error;
245
246 ASSERT(resp->tr_logres > 0);
247
248 /*
249 * Allocate the handle before we do our freeze accounting and setting up
250 * GFP_NOFS allocation context so that we avoid lockdep false positives
251 * by doing GFP_KERNEL allocations inside sb_start_intwrite().
252 */
253 retry:
254 tp = __xfs_trans_alloc(mp, flags);
255 WARN_ON(mp->m_super->s_writers.frozen == SB_FREEZE_COMPLETE);
256 error = xfs_trans_reserve(tp, resp, blocks, rtextents);
257 if (error == -ENOSPC && want_retry) {
258 xfs_trans_cancel(tp);
259
260 /*
261 * We weren't able to reserve enough space for the transaction.
262 * Flush the other speculative space allocations to free space.
263 * Do not perform a synchronous scan because callers can hold
264 * other locks.
265 */
266 error = xfs_blockgc_flush_all(mp);
267 if (error)
268 return error;
269 want_retry = false;
270 goto retry;
271 }
272 if (error) {
273 xfs_trans_cancel(tp);
274 return error;
275 }
276
277 trace_xfs_trans_alloc(tp, _RET_IP_);
278
279 *tpp = tp;
280 return 0;
281 }
282
283 /*
284 * Create an empty transaction with no reservation. This is a defensive
285 * mechanism for routines that query metadata without actually modifying them --
286 * if the metadata being queried is somehow cross-linked (think a btree block
287 * pointer that points higher in the tree), we risk deadlock. However, blocks
288 * grabbed as part of a transaction can be re-grabbed. The verifiers will
289 * notice the corrupt block and the operation will fail back to userspace
290 * without deadlocking.
291 *
292 * Note the zero-length reservation; this transaction MUST be cancelled without
293 * any dirty data.
294 *
295 * Callers should obtain freeze protection to avoid a conflict with fs freezing
296 * where we can be grabbing buffers at the same time that freeze is trying to
297 * drain the buffer LRU list.
298 */
299 struct xfs_trans *
xfs_trans_alloc_empty(struct xfs_mount * mp)300 xfs_trans_alloc_empty(
301 struct xfs_mount *mp)
302 {
303 return __xfs_trans_alloc(mp, XFS_TRANS_NO_WRITECOUNT);
304 }
305
306 /*
307 * Record the indicated change to the given field for application
308 * to the file system's superblock when the transaction commits.
309 * For now, just store the change in the transaction structure.
310 *
311 * Mark the transaction structure to indicate that the superblock
312 * needs to be updated before committing.
313 *
314 * Because we may not be keeping track of allocated/free inodes and
315 * used filesystem blocks in the superblock, we do not mark the
316 * superblock dirty in this transaction if we modify these fields.
317 * We still need to update the transaction deltas so that they get
318 * applied to the incore superblock, but we don't want them to
319 * cause the superblock to get locked and logged if these are the
320 * only fields in the superblock that the transaction modifies.
321 */
322 void
xfs_trans_mod_sb(xfs_trans_t * tp,uint field,int64_t delta)323 xfs_trans_mod_sb(
324 xfs_trans_t *tp,
325 uint field,
326 int64_t delta)
327 {
328 uint32_t flags = (XFS_TRANS_DIRTY|XFS_TRANS_SB_DIRTY);
329 xfs_mount_t *mp = tp->t_mountp;
330
331 switch (field) {
332 case XFS_TRANS_SB_ICOUNT:
333 tp->t_icount_delta += delta;
334 if (xfs_has_lazysbcount(mp))
335 flags &= ~XFS_TRANS_SB_DIRTY;
336 break;
337 case XFS_TRANS_SB_IFREE:
338 tp->t_ifree_delta += delta;
339 if (xfs_has_lazysbcount(mp))
340 flags &= ~XFS_TRANS_SB_DIRTY;
341 break;
342 case XFS_TRANS_SB_FDBLOCKS:
343 /*
344 * Track the number of blocks allocated in the transaction.
345 * Make sure it does not exceed the number reserved. If so,
346 * shutdown as this can lead to accounting inconsistency.
347 */
348 if (delta < 0) {
349 tp->t_blk_res_used += (uint)-delta;
350 if (tp->t_blk_res_used > tp->t_blk_res)
351 xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
352 } else if (delta > 0 && (tp->t_flags & XFS_TRANS_RES_FDBLKS)) {
353 int64_t blkres_delta;
354
355 /*
356 * Return freed blocks directly to the reservation
357 * instead of the global pool, being careful not to
358 * overflow the trans counter. This is used to preserve
359 * reservation across chains of transaction rolls that
360 * repeatedly free and allocate blocks.
361 */
362 blkres_delta = min_t(int64_t, delta,
363 UINT_MAX - tp->t_blk_res);
364 tp->t_blk_res += blkres_delta;
365 delta -= blkres_delta;
366 }
367 tp->t_fdblocks_delta += delta;
368 if (xfs_has_lazysbcount(mp))
369 flags &= ~XFS_TRANS_SB_DIRTY;
370 break;
371 case XFS_TRANS_SB_RES_FDBLOCKS:
372 /*
373 * The allocation has already been applied to the
374 * in-core superblock's counter. This should only
375 * be applied to the on-disk superblock.
376 */
377 tp->t_res_fdblocks_delta += delta;
378 if (xfs_has_lazysbcount(mp))
379 flags &= ~XFS_TRANS_SB_DIRTY;
380 break;
381 case XFS_TRANS_SB_FREXTENTS:
382 /*
383 * Track the number of blocks allocated in the
384 * transaction. Make sure it does not exceed the
385 * number reserved.
386 */
387 if (delta < 0) {
388 tp->t_rtx_res_used += (uint)-delta;
389 ASSERT(tp->t_rtx_res_used <= tp->t_rtx_res);
390 }
391 tp->t_frextents_delta += delta;
392 if (xfs_has_rtgroups(mp))
393 flags &= ~XFS_TRANS_SB_DIRTY;
394 break;
395 case XFS_TRANS_SB_RES_FREXTENTS:
396 /*
397 * The allocation has already been applied to the
398 * in-core superblock's counter. This should only
399 * be applied to the on-disk superblock.
400 */
401 ASSERT(delta < 0);
402 tp->t_res_frextents_delta += delta;
403 if (xfs_has_rtgroups(mp))
404 flags &= ~XFS_TRANS_SB_DIRTY;
405 break;
406 case XFS_TRANS_SB_DBLOCKS:
407 tp->t_dblocks_delta += delta;
408 break;
409 case XFS_TRANS_SB_AGCOUNT:
410 ASSERT(delta > 0);
411 tp->t_agcount_delta += delta;
412 break;
413 case XFS_TRANS_SB_IMAXPCT:
414 tp->t_imaxpct_delta += delta;
415 break;
416 case XFS_TRANS_SB_REXTSIZE:
417 tp->t_rextsize_delta += delta;
418 break;
419 case XFS_TRANS_SB_RBMBLOCKS:
420 tp->t_rbmblocks_delta += delta;
421 break;
422 case XFS_TRANS_SB_RBLOCKS:
423 tp->t_rblocks_delta += delta;
424 break;
425 case XFS_TRANS_SB_REXTENTS:
426 tp->t_rextents_delta += delta;
427 break;
428 case XFS_TRANS_SB_REXTSLOG:
429 tp->t_rextslog_delta += delta;
430 break;
431 case XFS_TRANS_SB_RGCOUNT:
432 ASSERT(delta > 0);
433 tp->t_rgcount_delta += delta;
434 break;
435 default:
436 ASSERT(0);
437 return;
438 }
439
440 tp->t_flags |= flags;
441 }
442
443 /*
444 * xfs_trans_apply_sb_deltas() is called from the commit code
445 * to bring the superblock buffer into the current transaction
446 * and modify it as requested by earlier calls to xfs_trans_mod_sb().
447 *
448 * For now we just look at each field allowed to change and change
449 * it if necessary.
450 */
451 STATIC void
xfs_trans_apply_sb_deltas(struct xfs_trans * tp)452 xfs_trans_apply_sb_deltas(
453 struct xfs_trans *tp)
454 {
455 struct xfs_mount *mp = tp->t_mountp;
456 struct xfs_buf *bp = xfs_trans_getsb(tp);
457 struct xfs_dsb *sbp = bp->b_addr;
458 int whole = 0;
459
460 /*
461 * Only update the superblock counters if we are logging them
462 */
463 if (!xfs_has_lazysbcount(mp)) {
464 if (tp->t_icount_delta)
465 be64_add_cpu(&sbp->sb_icount, tp->t_icount_delta);
466 if (tp->t_ifree_delta)
467 be64_add_cpu(&sbp->sb_ifree, tp->t_ifree_delta);
468 if (tp->t_fdblocks_delta)
469 be64_add_cpu(&sbp->sb_fdblocks, tp->t_fdblocks_delta);
470 if (tp->t_res_fdblocks_delta)
471 be64_add_cpu(&sbp->sb_fdblocks, tp->t_res_fdblocks_delta);
472 }
473
474 /*
475 * sb_frextents was added to the lazy sb counters when the rt groups
476 * feature was introduced. This is possible because we know that all
477 * kernels supporting rtgroups will also recompute frextents from the
478 * realtime bitmap.
479 *
480 * For older file systems, updating frextents requires careful handling
481 * because we cannot rely on log recovery in older kernels to recompute
482 * the value from the rtbitmap. This means that the ondisk frextents
483 * must be consistent with the rtbitmap.
484 *
485 * Therefore, log the frextents change to the ondisk superblock and
486 * update the incore superblock so that future calls to xfs_log_sb
487 * write the correct value ondisk.
488 */
489 if ((tp->t_frextents_delta || tp->t_res_frextents_delta) &&
490 !xfs_has_rtgroups(mp)) {
491 int64_t rtxdelta;
492
493 rtxdelta = tp->t_frextents_delta + tp->t_res_frextents_delta;
494
495 spin_lock(&mp->m_sb_lock);
496 be64_add_cpu(&sbp->sb_frextents, rtxdelta);
497 mp->m_sb.sb_frextents += rtxdelta;
498 spin_unlock(&mp->m_sb_lock);
499 }
500
501 if (tp->t_dblocks_delta) {
502 be64_add_cpu(&sbp->sb_dblocks, tp->t_dblocks_delta);
503 mp->m_ddev_targp->bt_nr_sectors +=
504 XFS_FSB_TO_BB(mp, tp->t_dblocks_delta);
505 whole = 1;
506 }
507 if (tp->t_agcount_delta) {
508 be32_add_cpu(&sbp->sb_agcount, tp->t_agcount_delta);
509 whole = 1;
510 }
511 if (tp->t_imaxpct_delta) {
512 sbp->sb_imax_pct += tp->t_imaxpct_delta;
513 whole = 1;
514 }
515 if (tp->t_rextsize_delta) {
516 be32_add_cpu(&sbp->sb_rextsize, tp->t_rextsize_delta);
517
518 /*
519 * Because the ondisk sb records rtgroup size in units of rt
520 * extents, any time we update the rt extent size we have to
521 * recompute the ondisk rtgroup block log. The incore values
522 * will be recomputed in xfs_trans_unreserve_and_mod_sb.
523 */
524 if (xfs_has_rtgroups(mp)) {
525 sbp->sb_rgblklog = xfs_compute_rgblklog(
526 be32_to_cpu(sbp->sb_rgextents),
527 be32_to_cpu(sbp->sb_rextsize));
528 }
529 whole = 1;
530 }
531 if (tp->t_rbmblocks_delta) {
532 be32_add_cpu(&sbp->sb_rbmblocks, tp->t_rbmblocks_delta);
533 whole = 1;
534 }
535 if (tp->t_rblocks_delta) {
536 be64_add_cpu(&sbp->sb_rblocks, tp->t_rblocks_delta);
537 mp->m_rtdev_targp->bt_nr_sectors +=
538 XFS_FSB_TO_BB(mp, tp->t_rblocks_delta);
539 whole = 1;
540 }
541 if (tp->t_rextents_delta) {
542 be64_add_cpu(&sbp->sb_rextents, tp->t_rextents_delta);
543 whole = 1;
544 }
545 if (tp->t_rextslog_delta) {
546 sbp->sb_rextslog += tp->t_rextslog_delta;
547 whole = 1;
548 }
549 if (tp->t_rgcount_delta) {
550 be32_add_cpu(&sbp->sb_rgcount, tp->t_rgcount_delta);
551 whole = 1;
552 }
553
554 xfs_trans_buf_set_type(tp, bp, XFS_BLFT_SB_BUF);
555 if (whole)
556 /*
557 * Log the whole thing, the fields are noncontiguous.
558 */
559 xfs_trans_log_buf(tp, bp, 0, sizeof(struct xfs_dsb) - 1);
560 else
561 /*
562 * Since all the modifiable fields are contiguous, we
563 * can get away with this.
564 */
565 xfs_trans_log_buf(tp, bp, offsetof(struct xfs_dsb, sb_icount),
566 offsetof(struct xfs_dsb, sb_frextents) +
567 sizeof(sbp->sb_frextents) - 1);
568 }
569
570 /*
571 * xfs_trans_unreserve_and_mod_sb() is called to release unused reservations and
572 * apply superblock counter changes to the in-core superblock. The
573 * t_res_fdblocks_delta and t_res_frextents_delta fields are explicitly NOT
574 * applied to the in-core superblock. The idea is that that has already been
575 * done.
576 *
577 * If we are not logging superblock counters, then the inode allocated/free and
578 * used block counts are not updated in the on disk superblock. In this case,
579 * XFS_TRANS_SB_DIRTY will not be set when the transaction is updated but we
580 * still need to update the incore superblock with the changes.
581 *
582 * Deltas for the inode count are +/-64, hence we use a large batch size of 128
583 * so we don't need to take the counter lock on every update.
584 */
585 #define XFS_ICOUNT_BATCH 128
586
587 void
xfs_trans_unreserve_and_mod_sb(struct xfs_trans * tp)588 xfs_trans_unreserve_and_mod_sb(
589 struct xfs_trans *tp)
590 {
591 struct xfs_mount *mp = tp->t_mountp;
592 int64_t blkdelta = tp->t_blk_res;
593 int64_t rtxdelta = tp->t_rtx_res;
594 int64_t idelta = 0;
595 int64_t ifreedelta = 0;
596
597 /*
598 * Calculate the deltas.
599 *
600 * t_fdblocks_delta and t_frextents_delta can be positive or negative:
601 *
602 * - positive values indicate blocks freed in the transaction.
603 * - negative values indicate blocks allocated in the transaction
604 *
605 * Negative values can only happen if the transaction has a block
606 * reservation that covers the allocated block. The end result is
607 * that the calculated delta values must always be positive and we
608 * can only put back previous allocated or reserved blocks here.
609 */
610 ASSERT(tp->t_blk_res || tp->t_fdblocks_delta >= 0);
611 if (xfs_has_lazysbcount(mp) || (tp->t_flags & XFS_TRANS_SB_DIRTY)) {
612 blkdelta += tp->t_fdblocks_delta;
613 ASSERT(blkdelta >= 0);
614 }
615
616 ASSERT(tp->t_rtx_res || tp->t_frextents_delta >= 0);
617 if (xfs_has_rtgroups(mp) || (tp->t_flags & XFS_TRANS_SB_DIRTY)) {
618 rtxdelta += tp->t_frextents_delta;
619 ASSERT(rtxdelta >= 0);
620 }
621
622 if (xfs_has_lazysbcount(mp) || (tp->t_flags & XFS_TRANS_SB_DIRTY)) {
623 idelta = tp->t_icount_delta;
624 ifreedelta = tp->t_ifree_delta;
625 }
626
627 /* apply the per-cpu counters */
628 if (blkdelta)
629 xfs_add_fdblocks(mp, blkdelta);
630
631 if (idelta)
632 percpu_counter_add_batch(&mp->m_icount, idelta,
633 XFS_ICOUNT_BATCH);
634
635 if (ifreedelta)
636 percpu_counter_add(&mp->m_ifree, ifreedelta);
637
638 if (rtxdelta)
639 xfs_add_frextents(mp, rtxdelta);
640
641 if (!(tp->t_flags & XFS_TRANS_SB_DIRTY))
642 return;
643
644 /* apply remaining deltas */
645 spin_lock(&mp->m_sb_lock);
646 mp->m_sb.sb_fdblocks += tp->t_fdblocks_delta + tp->t_res_fdblocks_delta;
647 mp->m_sb.sb_icount += idelta;
648 mp->m_sb.sb_ifree += ifreedelta;
649 /*
650 * Do not touch sb_frextents here because it is handled in
651 * xfs_trans_apply_sb_deltas for file systems where it isn't a lazy
652 * counter anyway.
653 */
654 mp->m_sb.sb_dblocks += tp->t_dblocks_delta;
655 mp->m_sb.sb_agcount += tp->t_agcount_delta;
656 mp->m_sb.sb_imax_pct += tp->t_imaxpct_delta;
657 if (tp->t_rextsize_delta)
658 xfs_mount_sb_set_rextsize(mp, &mp->m_sb,
659 mp->m_sb.sb_rextsize + tp->t_rextsize_delta);
660 mp->m_sb.sb_rbmblocks += tp->t_rbmblocks_delta;
661 mp->m_sb.sb_rblocks += tp->t_rblocks_delta;
662 mp->m_sb.sb_rextents += tp->t_rextents_delta;
663 mp->m_sb.sb_rextslog += tp->t_rextslog_delta;
664 mp->m_sb.sb_rgcount += tp->t_rgcount_delta;
665 spin_unlock(&mp->m_sb_lock);
666
667 /*
668 * Debug checks outside of the spinlock so they don't lock up the
669 * machine if they fail.
670 */
671 ASSERT(mp->m_sb.sb_imax_pct >= 0);
672 ASSERT(mp->m_sb.sb_rextslog >= 0);
673 }
674
675 /* Add the given log item to the transaction's list of log items. */
676 void
xfs_trans_add_item(struct xfs_trans * tp,struct xfs_log_item * lip)677 xfs_trans_add_item(
678 struct xfs_trans *tp,
679 struct xfs_log_item *lip)
680 {
681 ASSERT(lip->li_log == tp->t_mountp->m_log);
682 ASSERT(lip->li_ailp == tp->t_mountp->m_ail);
683 ASSERT(list_empty(&lip->li_trans));
684 ASSERT(!test_bit(XFS_LI_DIRTY, &lip->li_flags));
685
686 list_add_tail(&lip->li_trans, &tp->t_items);
687 trace_xfs_trans_add_item(tp, _RET_IP_);
688 }
689
690 /*
691 * Unlink the log item from the transaction. the log item is no longer
692 * considered dirty in this transaction, as the linked transaction has
693 * finished, either by abort or commit completion.
694 */
695 void
xfs_trans_del_item(struct xfs_log_item * lip)696 xfs_trans_del_item(
697 struct xfs_log_item *lip)
698 {
699 clear_bit(XFS_LI_DIRTY, &lip->li_flags);
700 list_del_init(&lip->li_trans);
701 }
702
703 /* Detach and unlock all of the items in a transaction */
704 static void
xfs_trans_free_items(struct xfs_trans * tp,bool abort)705 xfs_trans_free_items(
706 struct xfs_trans *tp,
707 bool abort)
708 {
709 struct xfs_log_item *lip, *next;
710
711 trace_xfs_trans_free_items(tp, _RET_IP_);
712
713 list_for_each_entry_safe(lip, next, &tp->t_items, li_trans) {
714 xfs_trans_del_item(lip);
715 if (abort) {
716 trace_xfs_trans_free_abort(lip);
717 set_bit(XFS_LI_ABORTED, &lip->li_flags);
718 }
719 if (lip->li_ops->iop_release)
720 lip->li_ops->iop_release(lip);
721 }
722 }
723
724 /*
725 * Sort transaction items prior to running precommit operations. This will
726 * attempt to order the items such that they will always be locked in the same
727 * order. Items that have no sort function are moved to the end of the list
728 * and so are locked last.
729 *
730 * This may need refinement as different types of objects add sort functions.
731 *
732 * Function is more complex than it needs to be because we are comparing 64 bit
733 * values and the function only returns 32 bit values.
734 */
735 static int
xfs_trans_precommit_sort(void * unused_arg,const struct list_head * a,const struct list_head * b)736 xfs_trans_precommit_sort(
737 void *unused_arg,
738 const struct list_head *a,
739 const struct list_head *b)
740 {
741 struct xfs_log_item *lia = container_of(a,
742 struct xfs_log_item, li_trans);
743 struct xfs_log_item *lib = container_of(b,
744 struct xfs_log_item, li_trans);
745 int64_t diff;
746
747 /*
748 * If both items are non-sortable, leave them alone. If only one is
749 * sortable, move the non-sortable item towards the end of the list.
750 */
751 if (!lia->li_ops->iop_sort && !lib->li_ops->iop_sort)
752 return 0;
753 if (!lia->li_ops->iop_sort)
754 return 1;
755 if (!lib->li_ops->iop_sort)
756 return -1;
757
758 diff = lia->li_ops->iop_sort(lia) - lib->li_ops->iop_sort(lib);
759 if (diff < 0)
760 return -1;
761 if (diff > 0)
762 return 1;
763 return 0;
764 }
765
766 /*
767 * Run transaction precommit functions.
768 *
769 * If there is an error in any of the callouts, then stop immediately and
770 * trigger a shutdown to abort the transaction. There is no recovery possible
771 * from errors at this point as the transaction is dirty....
772 */
773 static int
xfs_trans_run_precommits(struct xfs_trans * tp)774 xfs_trans_run_precommits(
775 struct xfs_trans *tp)
776 {
777 struct xfs_mount *mp = tp->t_mountp;
778 struct xfs_log_item *lip, *n;
779 int error = 0;
780
781 /*
782 * Sort the item list to avoid ABBA deadlocks with other transactions
783 * running precommit operations that lock multiple shared items such as
784 * inode cluster buffers.
785 */
786 list_sort(NULL, &tp->t_items, xfs_trans_precommit_sort);
787
788 /*
789 * Precommit operations can remove the log item from the transaction
790 * if the log item exists purely to delay modifications until they
791 * can be ordered against other operations. Hence we have to use
792 * list_for_each_entry_safe() here.
793 */
794 list_for_each_entry_safe(lip, n, &tp->t_items, li_trans) {
795 if (!test_bit(XFS_LI_DIRTY, &lip->li_flags))
796 continue;
797 if (lip->li_ops->iop_precommit) {
798 error = lip->li_ops->iop_precommit(tp, lip);
799 if (error)
800 break;
801 }
802 }
803 if (error)
804 xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
805 return error;
806 }
807
808 /*
809 * Commit the given transaction to the log.
810 *
811 * XFS disk error handling mechanism is not based on a typical
812 * transaction abort mechanism. Logically after the filesystem
813 * gets marked 'SHUTDOWN', we can't let any new transactions
814 * be durable - ie. committed to disk - because some metadata might
815 * be inconsistent. In such cases, this returns an error, and the
816 * caller may assume that all locked objects joined to the transaction
817 * have already been unlocked as if the commit had succeeded.
818 * Do not reference the transaction structure after this call.
819 */
820 static int
__xfs_trans_commit(struct xfs_trans * tp,bool regrant)821 __xfs_trans_commit(
822 struct xfs_trans *tp,
823 bool regrant)
824 {
825 struct xfs_mount *mp = tp->t_mountp;
826 struct xlog *log = mp->m_log;
827 xfs_csn_t commit_seq = 0;
828 int error = 0;
829 int sync = tp->t_flags & XFS_TRANS_SYNC;
830
831 trace_xfs_trans_commit(tp, _RET_IP_);
832
833 /*
834 * Commit per-transaction changes that are not already tracked through
835 * log items. This can add dirty log items to the transaction.
836 */
837 if (tp->t_flags & XFS_TRANS_SB_DIRTY)
838 xfs_trans_apply_sb_deltas(tp);
839 xfs_trans_apply_dquot_deltas(tp);
840
841 error = xfs_trans_run_precommits(tp);
842 if (error)
843 goto out_unreserve;
844
845 /*
846 * If there is nothing to be logged by the transaction,
847 * then unlock all of the items associated with the
848 * transaction and free the transaction structure.
849 * Also make sure to return any reserved blocks to
850 * the free pool.
851 */
852 if (!(tp->t_flags & XFS_TRANS_DIRTY))
853 goto out_unreserve;
854
855 /*
856 * We must check against log shutdown here because we cannot abort log
857 * items and leave them dirty, inconsistent and unpinned in memory while
858 * the log is active. This leaves them open to being written back to
859 * disk, and that will lead to on-disk corruption.
860 */
861 if (xlog_is_shutdown(log)) {
862 error = -EIO;
863 goto out_unreserve;
864 }
865
866 ASSERT(tp->t_ticket != NULL);
867
868 xlog_cil_commit(log, tp, &commit_seq, regrant);
869
870 xfs_trans_free(tp);
871
872 /*
873 * If the transaction needs to be synchronous, then force the
874 * log out now and wait for it.
875 */
876 if (sync) {
877 error = xfs_log_force_seq(mp, commit_seq, XFS_LOG_SYNC, NULL);
878 XFS_STATS_INC(mp, xs_trans_sync);
879 } else {
880 XFS_STATS_INC(mp, xs_trans_async);
881 }
882
883 return error;
884
885 out_unreserve:
886 xfs_trans_unreserve_and_mod_sb(tp);
887
888 /*
889 * It is indeed possible for the transaction to be not dirty but
890 * the dqinfo portion to be. All that means is that we have some
891 * (non-persistent) quota reservations that need to be unreserved.
892 */
893 xfs_trans_unreserve_and_mod_dquots(tp, true);
894 if (tp->t_ticket) {
895 if (regrant && !xlog_is_shutdown(log))
896 xfs_log_ticket_regrant(log, tp->t_ticket);
897 else
898 xfs_log_ticket_ungrant(log, tp->t_ticket);
899 tp->t_ticket = NULL;
900 }
901 xfs_trans_free_items(tp, !!error);
902 xfs_trans_free(tp);
903
904 XFS_STATS_INC(mp, xs_trans_empty);
905 return error;
906 }
907
908 int
xfs_trans_commit(struct xfs_trans * tp)909 xfs_trans_commit(
910 struct xfs_trans *tp)
911 {
912 /*
913 * Finish deferred items on final commit. Only permanent transactions
914 * should ever have deferred ops.
915 */
916 WARN_ON_ONCE(!list_empty(&tp->t_dfops) &&
917 !(tp->t_flags & XFS_TRANS_PERM_LOG_RES));
918 if (tp->t_flags & XFS_TRANS_PERM_LOG_RES) {
919 int error = xfs_defer_finish_noroll(&tp);
920 if (error) {
921 xfs_trans_cancel(tp);
922 return error;
923 }
924 }
925
926 return __xfs_trans_commit(tp, false);
927 }
928
929 /*
930 * Unlock all of the transaction's items and free the transaction. If the
931 * transaction is dirty, we must shut down the filesystem because there is no
932 * way to restore them to their previous state.
933 *
934 * If the transaction has made a log reservation, make sure to release it as
935 * well.
936 *
937 * This is a high level function (equivalent to xfs_trans_commit()) and so can
938 * be called after the transaction has effectively been aborted due to the mount
939 * being shut down. However, if the mount has not been shut down and the
940 * transaction is dirty we will shut the mount down and, in doing so, that
941 * guarantees that the log is shut down, too. Hence we don't need to be as
942 * careful with shutdown state and dirty items here as we need to be in
943 * xfs_trans_commit().
944 */
945 void
xfs_trans_cancel(struct xfs_trans * tp)946 xfs_trans_cancel(
947 struct xfs_trans *tp)
948 {
949 struct xfs_mount *mp = tp->t_mountp;
950 struct xlog *log = mp->m_log;
951 bool dirty = (tp->t_flags & XFS_TRANS_DIRTY);
952
953 trace_xfs_trans_cancel(tp, _RET_IP_);
954
955 /*
956 * It's never valid to cancel a transaction with deferred ops attached,
957 * because the transaction is effectively dirty. Complain about this
958 * loudly before freeing the in-memory defer items and shutting down the
959 * filesystem.
960 */
961 if (!list_empty(&tp->t_dfops)) {
962 ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES);
963 dirty = true;
964 xfs_defer_cancel(tp);
965 }
966
967 /*
968 * See if the caller is relying on us to shut down the filesystem. We
969 * only want an error report if there isn't already a shutdown in
970 * progress, so we only need to check against the mount shutdown state
971 * here.
972 */
973 if (dirty && !xfs_is_shutdown(mp)) {
974 XFS_ERROR_REPORT("xfs_trans_cancel", XFS_ERRLEVEL_LOW, mp);
975 xfs_force_shutdown(mp, SHUTDOWN_CORRUPT_INCORE);
976 }
977 #ifdef DEBUG
978 /* Log items need to be consistent until the log is shut down. */
979 if (!dirty && !xlog_is_shutdown(log)) {
980 struct xfs_log_item *lip;
981
982 list_for_each_entry(lip, &tp->t_items, li_trans)
983 ASSERT(!xlog_item_is_intent_done(lip));
984 }
985 #endif
986 xfs_trans_unreserve_and_mod_sb(tp);
987 xfs_trans_unreserve_and_mod_dquots(tp, false);
988
989 if (tp->t_ticket) {
990 xfs_log_ticket_ungrant(log, tp->t_ticket);
991 tp->t_ticket = NULL;
992 }
993
994 xfs_trans_free_items(tp, dirty);
995 xfs_trans_free(tp);
996 }
997
998 /*
999 * Roll from one trans in the sequence of PERMANENT transactions to the next:
1000 * permanent transactions are only flushed out when committed with
1001 * xfs_trans_commit(), but we still want as soon as possible to let chunks of it
1002 * go to the log. So we commit the chunk we've been working on and get a new
1003 * transaction to continue.
1004 */
1005 int
xfs_trans_roll(struct xfs_trans ** tpp)1006 xfs_trans_roll(
1007 struct xfs_trans **tpp)
1008 {
1009 struct xfs_trans *tp = *tpp;
1010 unsigned int log_res = tp->t_log_res;
1011 unsigned int log_count = tp->t_log_count;
1012 int error;
1013
1014 trace_xfs_trans_roll(tp, _RET_IP_);
1015
1016 ASSERT(log_res > 0);
1017
1018 /*
1019 * Copy the critical parameters from one trans to the next.
1020 */
1021 *tpp = xfs_trans_dup(tp);
1022
1023 /*
1024 * Commit the current transaction.
1025 *
1026 * If this commit failed, then it'd just unlock those items that are not
1027 * marked ihold. That also means that a filesystem shutdown is in
1028 * progress. The caller takes the responsibility to cancel the
1029 * duplicate transaction that gets returned.
1030 */
1031 error = __xfs_trans_commit(tp, true);
1032 if (error)
1033 return error;
1034
1035 /*
1036 * Reserve space in the log for the next transaction.
1037 *
1038 * This also pushes items in the AIL out to disk if they are taking up
1039 * space at the tail of the log that we want to use. This requires that
1040 * either nothing be locked across this call, or that anything that is
1041 * locked be logged in the prior and the next transactions.
1042 */
1043 tp = *tpp;
1044 /*
1045 * __xfs_trans_commit cleared the NOFS flag by calling into
1046 * xfs_trans_free. Set it again here before doing memory
1047 * allocations.
1048 */
1049 xfs_trans_set_context(tp);
1050 error = xfs_log_regrant(tp->t_mountp, tp->t_ticket);
1051 if (error)
1052 return error;
1053 tp->t_log_res = log_res;
1054 tp->t_log_count = log_count;
1055 return 0;
1056 }
1057
1058 /*
1059 * Allocate an transaction, lock and join the inode to it, and reserve quota.
1060 *
1061 * The caller must ensure that the on-disk dquots attached to this inode have
1062 * already been allocated and initialized. The caller is responsible for
1063 * releasing ILOCK_EXCL if a new transaction is returned.
1064 */
1065 int
xfs_trans_alloc_inode(struct xfs_inode * ip,struct xfs_trans_res * resv,unsigned int dblocks,unsigned int rblocks,bool force,struct xfs_trans ** tpp)1066 xfs_trans_alloc_inode(
1067 struct xfs_inode *ip,
1068 struct xfs_trans_res *resv,
1069 unsigned int dblocks,
1070 unsigned int rblocks,
1071 bool force,
1072 struct xfs_trans **tpp)
1073 {
1074 struct xfs_trans *tp;
1075 struct xfs_mount *mp = ip->i_mount;
1076 bool retried = false;
1077 int error;
1078
1079 retry:
1080 error = xfs_trans_alloc(mp, resv, dblocks,
1081 xfs_extlen_to_rtxlen(mp, rblocks),
1082 force ? XFS_TRANS_RESERVE : 0, &tp);
1083 if (error)
1084 return error;
1085
1086 xfs_ilock(ip, XFS_ILOCK_EXCL);
1087 xfs_trans_ijoin(tp, ip, 0);
1088
1089 error = xfs_qm_dqattach_locked(ip, false);
1090 if (error) {
1091 /* Caller should have allocated the dquots! */
1092 ASSERT(error != -ENOENT);
1093 goto out_cancel;
1094 }
1095
1096 error = xfs_trans_reserve_quota_nblks(tp, ip, dblocks, rblocks, force);
1097 if ((error == -EDQUOT || error == -ENOSPC) && !retried) {
1098 xfs_trans_cancel(tp);
1099 xfs_iunlock(ip, XFS_ILOCK_EXCL);
1100 xfs_blockgc_free_quota(ip, 0);
1101 retried = true;
1102 goto retry;
1103 }
1104 if (error)
1105 goto out_cancel;
1106
1107 *tpp = tp;
1108 return 0;
1109
1110 out_cancel:
1111 xfs_trans_cancel(tp);
1112 xfs_iunlock(ip, XFS_ILOCK_EXCL);
1113 return error;
1114 }
1115
1116 /*
1117 * Try to reserve more blocks for a transaction.
1118 *
1119 * This is for callers that need to attach resources to a transaction, scan
1120 * those resources to determine the space reservation requirements, and then
1121 * modify the attached resources. In other words, online repair. This can
1122 * fail due to ENOSPC, so the caller must be able to cancel the transaction
1123 * without shutting down the fs.
1124 */
1125 int
xfs_trans_reserve_more(struct xfs_trans * tp,unsigned int blocks,unsigned int rtextents)1126 xfs_trans_reserve_more(
1127 struct xfs_trans *tp,
1128 unsigned int blocks,
1129 unsigned int rtextents)
1130 {
1131 bool rsvd = tp->t_flags & XFS_TRANS_RESERVE;
1132
1133 if (blocks && xfs_dec_fdblocks(tp->t_mountp, blocks, rsvd))
1134 return -ENOSPC;
1135 if (rtextents && xfs_dec_frextents(tp->t_mountp, rtextents)) {
1136 if (blocks)
1137 xfs_add_fdblocks(tp->t_mountp, blocks);
1138 return -ENOSPC;
1139 }
1140 tp->t_blk_res += blocks;
1141 tp->t_rtx_res += rtextents;
1142 return 0;
1143 }
1144
1145 /*
1146 * Try to reserve more blocks and file quota for a transaction. Same
1147 * conditions of usage as xfs_trans_reserve_more.
1148 */
1149 int
xfs_trans_reserve_more_inode(struct xfs_trans * tp,struct xfs_inode * ip,unsigned int dblocks,unsigned int rblocks,bool force_quota)1150 xfs_trans_reserve_more_inode(
1151 struct xfs_trans *tp,
1152 struct xfs_inode *ip,
1153 unsigned int dblocks,
1154 unsigned int rblocks,
1155 bool force_quota)
1156 {
1157 struct xfs_mount *mp = ip->i_mount;
1158 unsigned int rtx = xfs_extlen_to_rtxlen(mp, rblocks);
1159 int error;
1160
1161 xfs_assert_ilocked(ip, XFS_ILOCK_EXCL);
1162
1163 error = xfs_trans_reserve_more(tp, dblocks, rtx);
1164 if (error)
1165 return error;
1166
1167 if (!XFS_IS_QUOTA_ON(mp) || xfs_is_quota_inode(&mp->m_sb, ip->i_ino))
1168 return 0;
1169
1170 if (tp->t_flags & XFS_TRANS_RESERVE)
1171 force_quota = true;
1172
1173 error = xfs_trans_reserve_quota_nblks(tp, ip, dblocks, rblocks,
1174 force_quota);
1175 if (!error)
1176 return 0;
1177
1178 /* Quota failed, give back the new reservation. */
1179 xfs_add_fdblocks(mp, dblocks);
1180 tp->t_blk_res -= dblocks;
1181 xfs_add_frextents(mp, rtx);
1182 tp->t_rtx_res -= rtx;
1183 return error;
1184 }
1185
1186 /*
1187 * Allocate an transaction in preparation for inode creation by reserving quota
1188 * against the given dquots. Callers are not required to hold any inode locks.
1189 */
1190 int
xfs_trans_alloc_icreate(struct xfs_mount * mp,struct xfs_trans_res * resv,struct xfs_dquot * udqp,struct xfs_dquot * gdqp,struct xfs_dquot * pdqp,unsigned int dblocks,struct xfs_trans ** tpp)1191 xfs_trans_alloc_icreate(
1192 struct xfs_mount *mp,
1193 struct xfs_trans_res *resv,
1194 struct xfs_dquot *udqp,
1195 struct xfs_dquot *gdqp,
1196 struct xfs_dquot *pdqp,
1197 unsigned int dblocks,
1198 struct xfs_trans **tpp)
1199 {
1200 struct xfs_trans *tp;
1201 bool retried = false;
1202 int error;
1203
1204 retry:
1205 error = xfs_trans_alloc(mp, resv, dblocks, 0, 0, &tp);
1206 if (error)
1207 return error;
1208
1209 error = xfs_trans_reserve_quota_icreate(tp, udqp, gdqp, pdqp, dblocks);
1210 if ((error == -EDQUOT || error == -ENOSPC) && !retried) {
1211 xfs_trans_cancel(tp);
1212 xfs_blockgc_free_dquots(mp, udqp, gdqp, pdqp, 0);
1213 retried = true;
1214 goto retry;
1215 }
1216 if (error) {
1217 xfs_trans_cancel(tp);
1218 return error;
1219 }
1220
1221 *tpp = tp;
1222 return 0;
1223 }
1224
1225 /*
1226 * Allocate an transaction, lock and join the inode to it, and reserve quota
1227 * in preparation for inode attribute changes that include uid, gid, or prid
1228 * changes.
1229 *
1230 * The caller must ensure that the on-disk dquots attached to this inode have
1231 * already been allocated and initialized. The ILOCK will be dropped when the
1232 * transaction is committed or cancelled.
1233 */
1234 int
xfs_trans_alloc_ichange(struct xfs_inode * ip,struct xfs_dquot * new_udqp,struct xfs_dquot * new_gdqp,struct xfs_dquot * new_pdqp,bool force,struct xfs_trans ** tpp)1235 xfs_trans_alloc_ichange(
1236 struct xfs_inode *ip,
1237 struct xfs_dquot *new_udqp,
1238 struct xfs_dquot *new_gdqp,
1239 struct xfs_dquot *new_pdqp,
1240 bool force,
1241 struct xfs_trans **tpp)
1242 {
1243 struct xfs_trans *tp;
1244 struct xfs_mount *mp = ip->i_mount;
1245 struct xfs_dquot *udqp;
1246 struct xfs_dquot *gdqp;
1247 struct xfs_dquot *pdqp;
1248 bool retried = false;
1249 int error;
1250
1251 retry:
1252 error = xfs_trans_alloc(mp, &M_RES(mp)->tr_ichange, 0, 0, 0, &tp);
1253 if (error)
1254 return error;
1255
1256 xfs_ilock(ip, XFS_ILOCK_EXCL);
1257 xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL);
1258
1259 if (xfs_is_metadir_inode(ip))
1260 goto out;
1261
1262 error = xfs_qm_dqattach_locked(ip, false);
1263 if (error) {
1264 /* Caller should have allocated the dquots! */
1265 ASSERT(error != -ENOENT);
1266 goto out_cancel;
1267 }
1268
1269 /*
1270 * For each quota type, skip quota reservations if the inode's dquots
1271 * now match the ones that came from the caller, or the caller didn't
1272 * pass one in. The inode's dquots can change if we drop the ILOCK to
1273 * perform a blockgc scan, so we must preserve the caller's arguments.
1274 */
1275 udqp = (new_udqp != ip->i_udquot) ? new_udqp : NULL;
1276 gdqp = (new_gdqp != ip->i_gdquot) ? new_gdqp : NULL;
1277 pdqp = (new_pdqp != ip->i_pdquot) ? new_pdqp : NULL;
1278 if (udqp || gdqp || pdqp) {
1279 xfs_filblks_t dblocks, rblocks;
1280 unsigned int qflags = XFS_QMOPT_RES_REGBLKS;
1281 bool isrt = XFS_IS_REALTIME_INODE(ip);
1282
1283 if (force)
1284 qflags |= XFS_QMOPT_FORCE_RES;
1285
1286 if (isrt) {
1287 error = xfs_iread_extents(tp, ip, XFS_DATA_FORK);
1288 if (error)
1289 goto out_cancel;
1290 }
1291
1292 xfs_inode_count_blocks(tp, ip, &dblocks, &rblocks);
1293
1294 if (isrt)
1295 rblocks += ip->i_delayed_blks;
1296 else
1297 dblocks += ip->i_delayed_blks;
1298
1299 /*
1300 * Reserve enough quota to handle blocks on disk and reserved
1301 * for a delayed allocation. We'll actually transfer the
1302 * delalloc reservation between dquots at chown time, even
1303 * though that part is only semi-transactional.
1304 */
1305 error = xfs_trans_reserve_quota_bydquots(tp, mp, udqp, gdqp,
1306 pdqp, dblocks, 1, qflags);
1307 if ((error == -EDQUOT || error == -ENOSPC) && !retried) {
1308 xfs_trans_cancel(tp);
1309 xfs_blockgc_free_dquots(mp, udqp, gdqp, pdqp, 0);
1310 retried = true;
1311 goto retry;
1312 }
1313 if (error)
1314 goto out_cancel;
1315
1316 /* Do the same for realtime. */
1317 qflags = XFS_QMOPT_RES_RTBLKS | (qflags & XFS_QMOPT_FORCE_RES);
1318 error = xfs_trans_reserve_quota_bydquots(tp, mp, udqp, gdqp,
1319 pdqp, rblocks, 0, qflags);
1320 if ((error == -EDQUOT || error == -ENOSPC) && !retried) {
1321 xfs_trans_cancel(tp);
1322 xfs_blockgc_free_dquots(mp, udqp, gdqp, pdqp, 0);
1323 retried = true;
1324 goto retry;
1325 }
1326 if (error)
1327 goto out_cancel;
1328 }
1329
1330 out:
1331 *tpp = tp;
1332 return 0;
1333
1334 out_cancel:
1335 xfs_trans_cancel(tp);
1336 return error;
1337 }
1338
1339 /*
1340 * Allocate an transaction, lock and join the directory and child inodes to it,
1341 * and reserve quota for a directory update. If there isn't sufficient space,
1342 * @dblocks will be set to zero for a reservationless directory update and
1343 * @nospace_error will be set to a negative errno describing the space
1344 * constraint we hit.
1345 *
1346 * The caller must ensure that the on-disk dquots attached to this inode have
1347 * already been allocated and initialized. The ILOCKs will be dropped when the
1348 * transaction is committed or cancelled.
1349 *
1350 * Caller is responsible for unlocking the inodes manually upon return
1351 */
1352 int
xfs_trans_alloc_dir(struct xfs_inode * dp,struct xfs_trans_res * resv,struct xfs_inode * ip,unsigned int * dblocks,struct xfs_trans ** tpp,int * nospace_error)1353 xfs_trans_alloc_dir(
1354 struct xfs_inode *dp,
1355 struct xfs_trans_res *resv,
1356 struct xfs_inode *ip,
1357 unsigned int *dblocks,
1358 struct xfs_trans **tpp,
1359 int *nospace_error)
1360 {
1361 struct xfs_trans *tp;
1362 struct xfs_mount *mp = ip->i_mount;
1363 unsigned int resblks;
1364 bool retried = false;
1365 int error;
1366
1367 retry:
1368 *nospace_error = 0;
1369 resblks = *dblocks;
1370 error = xfs_trans_alloc(mp, resv, resblks, 0, 0, &tp);
1371 if (error == -ENOSPC) {
1372 *nospace_error = error;
1373 resblks = 0;
1374 error = xfs_trans_alloc(mp, resv, resblks, 0, 0, &tp);
1375 }
1376 if (error)
1377 return error;
1378
1379 xfs_lock_two_inodes(dp, XFS_ILOCK_EXCL, ip, XFS_ILOCK_EXCL);
1380
1381 xfs_trans_ijoin(tp, dp, 0);
1382 xfs_trans_ijoin(tp, ip, 0);
1383
1384 error = xfs_qm_dqattach_locked(dp, false);
1385 if (error) {
1386 /* Caller should have allocated the dquots! */
1387 ASSERT(error != -ENOENT);
1388 goto out_cancel;
1389 }
1390
1391 error = xfs_qm_dqattach_locked(ip, false);
1392 if (error) {
1393 /* Caller should have allocated the dquots! */
1394 ASSERT(error != -ENOENT);
1395 goto out_cancel;
1396 }
1397
1398 if (resblks == 0)
1399 goto done;
1400
1401 error = xfs_trans_reserve_quota_nblks(tp, dp, resblks, 0, false);
1402 if (error == -EDQUOT || error == -ENOSPC) {
1403 if (!retried) {
1404 xfs_trans_cancel(tp);
1405 xfs_iunlock(dp, XFS_ILOCK_EXCL);
1406 if (dp != ip)
1407 xfs_iunlock(ip, XFS_ILOCK_EXCL);
1408 xfs_blockgc_free_quota(dp, 0);
1409 retried = true;
1410 goto retry;
1411 }
1412
1413 *nospace_error = error;
1414 resblks = 0;
1415 error = 0;
1416 }
1417 if (error)
1418 goto out_cancel;
1419
1420 done:
1421 *tpp = tp;
1422 *dblocks = resblks;
1423 return 0;
1424
1425 out_cancel:
1426 xfs_trans_cancel(tp);
1427 xfs_iunlock(dp, XFS_ILOCK_EXCL);
1428 if (dp != ip)
1429 xfs_iunlock(ip, XFS_ILOCK_EXCL);
1430 return error;
1431 }
1432