1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright (C) 2016 Oracle. All Rights Reserved.
4 * Author: Darrick J. Wong <darrick.wong@oracle.com>
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_mount.h"
13 #include "xfs_defer.h"
14 #include "xfs_trans.h"
15 #include "xfs_trans_priv.h"
16 #include "xfs_buf_item.h"
17 #include "xfs_inode.h"
18 #include "xfs_inode_item.h"
19 #include "xfs_trace.h"
20 #include "xfs_icache.h"
21 #include "xfs_log.h"
22 #include "xfs_log_priv.h"
23 #include "xfs_rmap.h"
24 #include "xfs_refcount.h"
25 #include "xfs_bmap.h"
26 #include "xfs_alloc.h"
27 #include "xfs_buf.h"
28 #include "xfs_da_format.h"
29 #include "xfs_da_btree.h"
30 #include "xfs_attr.h"
31 #include "xfs_exchmaps.h"
32
33 static struct kmem_cache *xfs_defer_pending_cache;
34
35 /*
36 * Deferred Operations in XFS
37 *
38 * Due to the way locking rules work in XFS, certain transactions (block
39 * mapping and unmapping, typically) have permanent reservations so that
40 * we can roll the transaction to adhere to AG locking order rules and
41 * to unlock buffers between metadata updates. Prior to rmap/reflink,
42 * the mapping code had a mechanism to perform these deferrals for
43 * extents that were going to be freed; this code makes that facility
44 * more generic.
45 *
46 * When adding the reverse mapping and reflink features, it became
47 * necessary to perform complex remapping multi-transactions to comply
48 * with AG locking order rules, and to be able to spread a single
49 * refcount update operation (an operation on an n-block extent can
50 * update as many as n records!) among multiple transactions. XFS can
51 * roll a transaction to facilitate this, but using this facility
52 * requires us to log "intent" items in case log recovery needs to
53 * redo the operation, and to log "done" items to indicate that redo
54 * is not necessary.
55 *
56 * Deferred work is tracked in xfs_defer_pending items. Each pending
57 * item tracks one type of deferred work. Incoming work items (which
58 * have not yet had an intent logged) are attached to a pending item
59 * on the dop_intake list, where they wait for the caller to finish
60 * the deferred operations.
61 *
62 * Finishing a set of deferred operations is an involved process. To
63 * start, we define "rolling a deferred-op transaction" as follows:
64 *
65 * > For each xfs_defer_pending item on the dop_intake list,
66 * - Sort the work items in AG order. XFS locking
67 * order rules require us to lock buffers in AG order.
68 * - Create a log intent item for that type.
69 * - Attach it to the pending item.
70 * - Move the pending item from the dop_intake list to the
71 * dop_pending list.
72 * > Roll the transaction.
73 *
74 * NOTE: To avoid exceeding the transaction reservation, we limit the
75 * number of items that we attach to a given xfs_defer_pending.
76 *
77 * The actual finishing process looks like this:
78 *
79 * > For each xfs_defer_pending in the dop_pending list,
80 * - Roll the deferred-op transaction as above.
81 * - Create a log done item for that type, and attach it to the
82 * log intent item.
83 * - For each work item attached to the log intent item,
84 * * Perform the described action.
85 * * Attach the work item to the log done item.
86 * * If the result of doing the work was -EAGAIN, ->finish work
87 * wants a new transaction. See the "Requesting a Fresh
88 * Transaction while Finishing Deferred Work" section below for
89 * details.
90 *
91 * The key here is that we must log an intent item for all pending
92 * work items every time we roll the transaction, and that we must log
93 * a done item as soon as the work is completed. With this mechanism
94 * we can perform complex remapping operations, chaining intent items
95 * as needed.
96 *
97 * Requesting a Fresh Transaction while Finishing Deferred Work
98 *
99 * If ->finish_item decides that it needs a fresh transaction to
100 * finish the work, it must ask its caller (xfs_defer_finish) for a
101 * continuation. The most likely cause of this circumstance are the
102 * refcount adjust functions deciding that they've logged enough items
103 * to be at risk of exceeding the transaction reservation.
104 *
105 * To get a fresh transaction, we want to log the existing log done
106 * item to prevent the log intent item from replaying, immediately log
107 * a new log intent item with the unfinished work items, roll the
108 * transaction, and re-call ->finish_item wherever it left off. The
109 * log done item and the new log intent item must be in the same
110 * transaction or atomicity cannot be guaranteed; defer_finish ensures
111 * that this happens.
112 *
113 * This requires some coordination between ->finish_item and
114 * defer_finish. Upon deciding to request a new transaction,
115 * ->finish_item should update the current work item to reflect the
116 * unfinished work. Next, it should reset the log done item's list
117 * count to the number of items finished, and return -EAGAIN.
118 * defer_finish sees the -EAGAIN, logs the new log intent item
119 * with the remaining work items, and leaves the xfs_defer_pending
120 * item at the head of the dop_work queue. Then it rolls the
121 * transaction and picks up processing where it left off. It is
122 * required that ->finish_item must be careful to leave enough
123 * transaction reservation to fit the new log intent item.
124 *
125 * This is an example of remapping the extent (E, E+B) into file X at
126 * offset A and dealing with the extent (C, C+B) already being mapped
127 * there:
128 * +-------------------------------------------------+
129 * | Unmap file X startblock C offset A length B | t0
130 * | Intent to reduce refcount for extent (C, B) |
131 * | Intent to remove rmap (X, C, A, B) |
132 * | Intent to free extent (D, 1) (bmbt block) |
133 * | Intent to map (X, A, B) at startblock E |
134 * +-------------------------------------------------+
135 * | Map file X startblock E offset A length B | t1
136 * | Done mapping (X, E, A, B) |
137 * | Intent to increase refcount for extent (E, B) |
138 * | Intent to add rmap (X, E, A, B) |
139 * +-------------------------------------------------+
140 * | Reduce refcount for extent (C, B) | t2
141 * | Done reducing refcount for extent (C, 9) |
142 * | Intent to reduce refcount for extent (C+9, B-9) |
143 * | (ran out of space after 9 refcount updates) |
144 * +-------------------------------------------------+
145 * | Reduce refcount for extent (C+9, B+9) | t3
146 * | Done reducing refcount for extent (C+9, B-9) |
147 * | Increase refcount for extent (E, B) |
148 * | Done increasing refcount for extent (E, B) |
149 * | Intent to free extent (C, B) |
150 * | Intent to free extent (F, 1) (refcountbt block) |
151 * | Intent to remove rmap (F, 1, REFC) |
152 * +-------------------------------------------------+
153 * | Remove rmap (X, C, A, B) | t4
154 * | Done removing rmap (X, C, A, B) |
155 * | Add rmap (X, E, A, B) |
156 * | Done adding rmap (X, E, A, B) |
157 * | Remove rmap (F, 1, REFC) |
158 * | Done removing rmap (F, 1, REFC) |
159 * +-------------------------------------------------+
160 * | Free extent (C, B) | t5
161 * | Done freeing extent (C, B) |
162 * | Free extent (D, 1) |
163 * | Done freeing extent (D, 1) |
164 * | Free extent (F, 1) |
165 * | Done freeing extent (F, 1) |
166 * +-------------------------------------------------+
167 *
168 * If we should crash before t2 commits, log recovery replays
169 * the following intent items:
170 *
171 * - Intent to reduce refcount for extent (C, B)
172 * - Intent to remove rmap (X, C, A, B)
173 * - Intent to free extent (D, 1) (bmbt block)
174 * - Intent to increase refcount for extent (E, B)
175 * - Intent to add rmap (X, E, A, B)
176 *
177 * In the process of recovering, it should also generate and take care
178 * of these intent items:
179 *
180 * - Intent to free extent (C, B)
181 * - Intent to free extent (F, 1) (refcountbt block)
182 * - Intent to remove rmap (F, 1, REFC)
183 *
184 * Note that the continuation requested between t2 and t3 is likely to
185 * reoccur.
186 */
187 STATIC struct xfs_log_item *
xfs_defer_barrier_create_intent(struct xfs_trans * tp,struct list_head * items,unsigned int count,bool sort)188 xfs_defer_barrier_create_intent(
189 struct xfs_trans *tp,
190 struct list_head *items,
191 unsigned int count,
192 bool sort)
193 {
194 return NULL;
195 }
196
197 STATIC void
xfs_defer_barrier_abort_intent(struct xfs_log_item * intent)198 xfs_defer_barrier_abort_intent(
199 struct xfs_log_item *intent)
200 {
201 /* empty */
202 }
203
204 STATIC struct xfs_log_item *
xfs_defer_barrier_create_done(struct xfs_trans * tp,struct xfs_log_item * intent,unsigned int count)205 xfs_defer_barrier_create_done(
206 struct xfs_trans *tp,
207 struct xfs_log_item *intent,
208 unsigned int count)
209 {
210 return NULL;
211 }
212
213 STATIC int
xfs_defer_barrier_finish_item(struct xfs_trans * tp,struct xfs_log_item * done,struct list_head * item,struct xfs_btree_cur ** state)214 xfs_defer_barrier_finish_item(
215 struct xfs_trans *tp,
216 struct xfs_log_item *done,
217 struct list_head *item,
218 struct xfs_btree_cur **state)
219 {
220 ASSERT(0);
221 return -EFSCORRUPTED;
222 }
223
224 STATIC void
xfs_defer_barrier_cancel_item(struct list_head * item)225 xfs_defer_barrier_cancel_item(
226 struct list_head *item)
227 {
228 ASSERT(0);
229 }
230
231 static const struct xfs_defer_op_type xfs_barrier_defer_type = {
232 .name = "barrier",
233 .max_items = 1,
234 .create_intent = xfs_defer_barrier_create_intent,
235 .abort_intent = xfs_defer_barrier_abort_intent,
236 .create_done = xfs_defer_barrier_create_done,
237 .finish_item = xfs_defer_barrier_finish_item,
238 .cancel_item = xfs_defer_barrier_cancel_item,
239 };
240
241 /* Create a log intent done item for a log intent item. */
242 static inline void
xfs_defer_create_done(struct xfs_trans * tp,struct xfs_defer_pending * dfp)243 xfs_defer_create_done(
244 struct xfs_trans *tp,
245 struct xfs_defer_pending *dfp)
246 {
247 struct xfs_log_item *lip;
248
249 /* If there is no log intent item, there can be no log done item. */
250 if (!dfp->dfp_intent)
251 return;
252
253 /*
254 * Mark the transaction dirty, even on error. This ensures the
255 * transaction is aborted, which:
256 *
257 * 1.) releases the log intent item and frees the log done item
258 * 2.) shuts down the filesystem
259 */
260 tp->t_flags |= XFS_TRANS_DIRTY;
261 lip = dfp->dfp_ops->create_done(tp, dfp->dfp_intent, dfp->dfp_count);
262 if (!lip)
263 return;
264
265 tp->t_flags |= XFS_TRANS_HAS_INTENT_DONE;
266 xfs_trans_add_item(tp, lip);
267 set_bit(XFS_LI_DIRTY, &lip->li_flags);
268 dfp->dfp_done = lip;
269 }
270
271 /*
272 * Ensure there's a log intent item associated with this deferred work item if
273 * the operation must be restarted on crash. Returns 1 if there's a log item;
274 * 0 if there isn't; or a negative errno.
275 */
276 static int
xfs_defer_create_intent(struct xfs_trans * tp,struct xfs_defer_pending * dfp,bool sort)277 xfs_defer_create_intent(
278 struct xfs_trans *tp,
279 struct xfs_defer_pending *dfp,
280 bool sort)
281 {
282 struct xfs_log_item *lip;
283
284 if (dfp->dfp_intent)
285 return 1;
286
287 lip = dfp->dfp_ops->create_intent(tp, &dfp->dfp_work, dfp->dfp_count,
288 sort);
289 if (!lip)
290 return 0;
291 if (IS_ERR(lip))
292 return PTR_ERR(lip);
293
294 tp->t_flags |= XFS_TRANS_DIRTY;
295 xfs_trans_add_item(tp, lip);
296 set_bit(XFS_LI_DIRTY, &lip->li_flags);
297 dfp->dfp_intent = lip;
298 return 1;
299 }
300
301 /*
302 * For each pending item in the intake list, log its intent item and the
303 * associated extents, then add the entire intake list to the end of
304 * the pending list.
305 *
306 * Returns 1 if at least one log item was associated with the deferred work;
307 * 0 if there are no log items; or a negative errno.
308 */
309 static int
xfs_defer_create_intents(struct xfs_trans * tp)310 xfs_defer_create_intents(
311 struct xfs_trans *tp)
312 {
313 struct xfs_defer_pending *dfp;
314 int ret = 0;
315
316 list_for_each_entry(dfp, &tp->t_dfops, dfp_list) {
317 int ret2;
318
319 trace_xfs_defer_create_intent(tp->t_mountp, dfp);
320 ret2 = xfs_defer_create_intent(tp, dfp, true);
321 if (ret2 < 0)
322 return ret2;
323 ret |= ret2;
324 }
325 return ret;
326 }
327
328 static inline void
xfs_defer_pending_abort(struct xfs_mount * mp,struct xfs_defer_pending * dfp)329 xfs_defer_pending_abort(
330 struct xfs_mount *mp,
331 struct xfs_defer_pending *dfp)
332 {
333 trace_xfs_defer_pending_abort(mp, dfp);
334
335 if (dfp->dfp_intent && !dfp->dfp_done) {
336 dfp->dfp_ops->abort_intent(dfp->dfp_intent);
337 dfp->dfp_intent = NULL;
338 }
339 }
340
341 static inline void
xfs_defer_pending_cancel_work(struct xfs_mount * mp,struct xfs_defer_pending * dfp)342 xfs_defer_pending_cancel_work(
343 struct xfs_mount *mp,
344 struct xfs_defer_pending *dfp)
345 {
346 struct list_head *pwi;
347 struct list_head *n;
348
349 trace_xfs_defer_cancel_list(mp, dfp);
350
351 list_del(&dfp->dfp_list);
352 list_for_each_safe(pwi, n, &dfp->dfp_work) {
353 list_del(pwi);
354 dfp->dfp_count--;
355 trace_xfs_defer_cancel_item(mp, dfp, pwi);
356 dfp->dfp_ops->cancel_item(pwi);
357 }
358 ASSERT(dfp->dfp_count == 0);
359 kmem_cache_free(xfs_defer_pending_cache, dfp);
360 }
361
362 STATIC void
xfs_defer_pending_abort_list(struct xfs_mount * mp,struct list_head * dop_list)363 xfs_defer_pending_abort_list(
364 struct xfs_mount *mp,
365 struct list_head *dop_list)
366 {
367 struct xfs_defer_pending *dfp;
368
369 /* Abort intent items that don't have a done item. */
370 list_for_each_entry(dfp, dop_list, dfp_list)
371 xfs_defer_pending_abort(mp, dfp);
372 }
373
374 /* Abort all the intents that were committed. */
375 STATIC void
xfs_defer_trans_abort(struct xfs_trans * tp,struct list_head * dop_pending)376 xfs_defer_trans_abort(
377 struct xfs_trans *tp,
378 struct list_head *dop_pending)
379 {
380 trace_xfs_defer_trans_abort(tp, _RET_IP_);
381 xfs_defer_pending_abort_list(tp->t_mountp, dop_pending);
382 }
383
384 /*
385 * Capture resources that the caller said not to release ("held") when the
386 * transaction commits. Caller is responsible for zero-initializing @dres.
387 */
388 static int
xfs_defer_save_resources(struct xfs_defer_resources * dres,struct xfs_trans * tp)389 xfs_defer_save_resources(
390 struct xfs_defer_resources *dres,
391 struct xfs_trans *tp)
392 {
393 struct xfs_buf_log_item *bli;
394 struct xfs_inode_log_item *ili;
395 struct xfs_log_item *lip;
396
397 BUILD_BUG_ON(NBBY * sizeof(dres->dr_ordered) < XFS_DEFER_OPS_NR_BUFS);
398
399 list_for_each_entry(lip, &tp->t_items, li_trans) {
400 switch (lip->li_type) {
401 case XFS_LI_BUF:
402 bli = container_of(lip, struct xfs_buf_log_item,
403 bli_item);
404 if (bli->bli_flags & XFS_BLI_HOLD) {
405 if (dres->dr_bufs >= XFS_DEFER_OPS_NR_BUFS) {
406 ASSERT(0);
407 return -EFSCORRUPTED;
408 }
409 if (bli->bli_flags & XFS_BLI_ORDERED)
410 dres->dr_ordered |=
411 (1U << dres->dr_bufs);
412 else
413 xfs_trans_dirty_buf(tp, bli->bli_buf);
414 dres->dr_bp[dres->dr_bufs++] = bli->bli_buf;
415 }
416 break;
417 case XFS_LI_INODE:
418 ili = container_of(lip, struct xfs_inode_log_item,
419 ili_item);
420 if (ili->ili_lock_flags == 0) {
421 if (dres->dr_inos >= XFS_DEFER_OPS_NR_INODES) {
422 ASSERT(0);
423 return -EFSCORRUPTED;
424 }
425 xfs_trans_log_inode(tp, ili->ili_inode,
426 XFS_ILOG_CORE);
427 dres->dr_ip[dres->dr_inos++] = ili->ili_inode;
428 }
429 break;
430 default:
431 break;
432 }
433 }
434
435 return 0;
436 }
437
438 /* Attach the held resources to the transaction. */
439 static void
xfs_defer_restore_resources(struct xfs_trans * tp,struct xfs_defer_resources * dres)440 xfs_defer_restore_resources(
441 struct xfs_trans *tp,
442 struct xfs_defer_resources *dres)
443 {
444 unsigned short i;
445
446 /* Rejoin the joined inodes. */
447 for (i = 0; i < dres->dr_inos; i++)
448 xfs_trans_ijoin(tp, dres->dr_ip[i], 0);
449
450 /* Rejoin the buffers and dirty them so the log moves forward. */
451 for (i = 0; i < dres->dr_bufs; i++) {
452 xfs_trans_bjoin(tp, dres->dr_bp[i]);
453 if (dres->dr_ordered & (1U << i))
454 xfs_trans_ordered_buf(tp, dres->dr_bp[i]);
455 xfs_trans_bhold(tp, dres->dr_bp[i]);
456 }
457 }
458
459 /* Roll a transaction so we can do some deferred op processing. */
460 STATIC int
xfs_defer_trans_roll(struct xfs_trans ** tpp)461 xfs_defer_trans_roll(
462 struct xfs_trans **tpp)
463 {
464 struct xfs_defer_resources dres = { };
465 int error;
466
467 error = xfs_defer_save_resources(&dres, *tpp);
468 if (error)
469 return error;
470
471 trace_xfs_defer_trans_roll(*tpp, _RET_IP_);
472
473 /*
474 * Roll the transaction. Rolling always given a new transaction (even
475 * if committing the old one fails!) to hand back to the caller, so we
476 * join the held resources to the new transaction so that we always
477 * return with the held resources joined to @tpp, no matter what
478 * happened.
479 */
480 error = xfs_trans_roll(tpp);
481
482 xfs_defer_restore_resources(*tpp, &dres);
483
484 if (error)
485 trace_xfs_defer_trans_roll_error(*tpp, error);
486 return error;
487 }
488
489 /*
490 * Free up any items left in the list.
491 */
492 static void
xfs_defer_cancel_list(struct xfs_mount * mp,struct list_head * dop_list)493 xfs_defer_cancel_list(
494 struct xfs_mount *mp,
495 struct list_head *dop_list)
496 {
497 struct xfs_defer_pending *dfp;
498 struct xfs_defer_pending *pli;
499
500 /*
501 * Free the pending items. Caller should already have arranged
502 * for the intent items to be released.
503 */
504 list_for_each_entry_safe(dfp, pli, dop_list, dfp_list)
505 xfs_defer_pending_cancel_work(mp, dfp);
506 }
507
508 static inline void
xfs_defer_relog_intent(struct xfs_trans * tp,struct xfs_defer_pending * dfp)509 xfs_defer_relog_intent(
510 struct xfs_trans *tp,
511 struct xfs_defer_pending *dfp)
512 {
513 struct xfs_log_item *lip;
514
515 xfs_defer_create_done(tp, dfp);
516
517 lip = dfp->dfp_ops->relog_intent(tp, dfp->dfp_intent, dfp->dfp_done);
518 if (lip) {
519 xfs_trans_add_item(tp, lip);
520 set_bit(XFS_LI_DIRTY, &lip->li_flags);
521 }
522 dfp->dfp_done = NULL;
523 dfp->dfp_intent = lip;
524 }
525
526 /*
527 * Prevent a log intent item from pinning the tail of the log by logging a
528 * done item to release the intent item; and then log a new intent item.
529 * The caller should provide a fresh transaction and roll it after we're done.
530 */
531 static void
xfs_defer_relog(struct xfs_trans ** tpp,struct list_head * dfops)532 xfs_defer_relog(
533 struct xfs_trans **tpp,
534 struct list_head *dfops)
535 {
536 struct xlog *log = (*tpp)->t_mountp->m_log;
537 struct xfs_defer_pending *dfp;
538 xfs_lsn_t threshold_lsn = NULLCOMMITLSN;
539
540
541 ASSERT((*tpp)->t_flags & XFS_TRANS_PERM_LOG_RES);
542
543 list_for_each_entry(dfp, dfops, dfp_list) {
544 /*
545 * If the log intent item for this deferred op is not a part of
546 * the current log checkpoint, relog the intent item to keep
547 * the log tail moving forward. We're ok with this being racy
548 * because an incorrect decision means we'll be a little slower
549 * at pushing the tail.
550 */
551 if (dfp->dfp_intent == NULL ||
552 xfs_log_item_in_current_chkpt(dfp->dfp_intent))
553 continue;
554
555 /*
556 * Figure out where we need the tail to be in order to maintain
557 * the minimum required free space in the log. Only sample
558 * the log threshold once per call.
559 */
560 if (threshold_lsn == NULLCOMMITLSN) {
561 threshold_lsn = xfs_ail_get_push_target(log->l_ailp);
562 if (threshold_lsn == NULLCOMMITLSN)
563 break;
564 }
565 if (XFS_LSN_CMP(dfp->dfp_intent->li_lsn, threshold_lsn) >= 0)
566 continue;
567
568 trace_xfs_defer_relog_intent((*tpp)->t_mountp, dfp);
569 XFS_STATS_INC((*tpp)->t_mountp, xs_defer_relog);
570
571 xfs_defer_relog_intent(*tpp, dfp);
572 }
573 }
574
575 /*
576 * Log an intent-done item for the first pending intent, and finish the work
577 * items.
578 */
579 int
xfs_defer_finish_one(struct xfs_trans * tp,struct xfs_defer_pending * dfp)580 xfs_defer_finish_one(
581 struct xfs_trans *tp,
582 struct xfs_defer_pending *dfp)
583 {
584 const struct xfs_defer_op_type *ops = dfp->dfp_ops;
585 struct xfs_btree_cur *state = NULL;
586 struct list_head *li, *n;
587 int error = 0;
588
589 trace_xfs_defer_pending_finish(tp->t_mountp, dfp);
590
591 xfs_defer_create_done(tp, dfp);
592 list_for_each_safe(li, n, &dfp->dfp_work) {
593 list_del(li);
594 dfp->dfp_count--;
595 trace_xfs_defer_finish_item(tp->t_mountp, dfp, li);
596 error = ops->finish_item(tp, dfp->dfp_done, li, &state);
597 if (error == -EAGAIN) {
598 int ret;
599
600 /*
601 * Caller wants a fresh transaction; put the work item
602 * back on the list and log a new log intent item to
603 * replace the old one. See "Requesting a Fresh
604 * Transaction while Finishing Deferred Work" above.
605 */
606 list_add(li, &dfp->dfp_work);
607 dfp->dfp_count++;
608 dfp->dfp_done = NULL;
609 dfp->dfp_intent = NULL;
610 ret = xfs_defer_create_intent(tp, dfp, false);
611 if (ret < 0)
612 error = ret;
613 }
614
615 if (error)
616 goto out;
617 }
618
619 /* Done with the dfp, free it. */
620 list_del(&dfp->dfp_list);
621 kmem_cache_free(xfs_defer_pending_cache, dfp);
622 out:
623 if (ops->finish_cleanup)
624 ops->finish_cleanup(tp, state, error);
625 return error;
626 }
627
628 /* Move all paused deferred work from @tp to @paused_list. */
629 static void
xfs_defer_isolate_paused(struct xfs_trans * tp,struct list_head * paused_list)630 xfs_defer_isolate_paused(
631 struct xfs_trans *tp,
632 struct list_head *paused_list)
633 {
634 struct xfs_defer_pending *dfp;
635 struct xfs_defer_pending *pli;
636
637 list_for_each_entry_safe(dfp, pli, &tp->t_dfops, dfp_list) {
638 if (!(dfp->dfp_flags & XFS_DEFER_PAUSED))
639 continue;
640
641 list_move_tail(&dfp->dfp_list, paused_list);
642 trace_xfs_defer_isolate_paused(tp->t_mountp, dfp);
643 }
644 }
645
646 /*
647 * Finish all the pending work. This involves logging intent items for
648 * any work items that wandered in since the last transaction roll (if
649 * one has even happened), rolling the transaction, and finishing the
650 * work items in the first item on the logged-and-pending list.
651 *
652 * If an inode is provided, relog it to the new transaction.
653 */
654 int
xfs_defer_finish_noroll(struct xfs_trans ** tp)655 xfs_defer_finish_noroll(
656 struct xfs_trans **tp)
657 {
658 struct xfs_defer_pending *dfp = NULL;
659 const char *what = "chain";
660 int error = 0;
661 LIST_HEAD(dop_pending);
662 LIST_HEAD(dop_paused);
663
664 ASSERT((*tp)->t_flags & XFS_TRANS_PERM_LOG_RES);
665
666 trace_xfs_defer_finish(*tp, _RET_IP_);
667
668 /* Until we run out of pending work to finish... */
669 while (!list_empty(&dop_pending) || !list_empty(&(*tp)->t_dfops)) {
670 /*
671 * Deferred items that are created in the process of finishing
672 * other deferred work items should be queued at the head of
673 * the pending list, which puts them ahead of the deferred work
674 * that was created by the caller. This keeps the number of
675 * pending work items to a minimum, which decreases the amount
676 * of time that any one intent item can stick around in memory,
677 * pinning the log tail.
678 */
679 int has_intents = xfs_defer_create_intents(*tp);
680
681 xfs_defer_isolate_paused(*tp, &dop_paused);
682
683 list_splice_init(&(*tp)->t_dfops, &dop_pending);
684
685 if (has_intents < 0) {
686 error = has_intents;
687 goto out_shutdown;
688 }
689 if (has_intents || dfp) {
690 error = xfs_defer_trans_roll(tp);
691 if (error)
692 goto out_shutdown;
693
694 /* Relog intent items to keep the log moving. */
695 xfs_defer_relog(tp, &dop_pending);
696 xfs_defer_relog(tp, &dop_paused);
697
698 if ((*tp)->t_flags & XFS_TRANS_DIRTY) {
699 error = xfs_defer_trans_roll(tp);
700 if (error)
701 goto out_shutdown;
702 }
703 }
704
705 dfp = list_first_entry_or_null(&dop_pending,
706 struct xfs_defer_pending, dfp_list);
707 if (!dfp)
708 break;
709 what = dfp->dfp_ops->name;
710 error = xfs_defer_finish_one(*tp, dfp);
711 if (error && error != -EAGAIN)
712 goto out_shutdown;
713 /*
714 * A finished item is no longer a candidate for a later
715 * failure. An -EAGAIN one is not finished, so it keeps the
716 * attribution across the roll that completes it.
717 */
718 if (!error)
719 what = "chain";
720 }
721
722 /* Requeue the paused items in the outgoing transaction. */
723 list_splice_tail_init(&dop_paused, &(*tp)->t_dfops);
724
725 trace_xfs_defer_finish_done(*tp, _RET_IP_);
726 return 0;
727
728 out_shutdown:
729 list_splice_tail_init(&dop_paused, &dop_pending);
730 xfs_defer_trans_abort(*tp, &dop_pending);
731 trace_xfs_defer_finish_error(*tp, error);
732 if (!xfs_is_shutdown((*tp)->t_mountp))
733 xfs_alert((*tp)->t_mountp,
734 "deferred %s work failed, error %d, %u blocks reserved",
735 what, error, (*tp)->t_blk_res);
736 xfs_force_shutdown((*tp)->t_mountp, SHUTDOWN_CORRUPT_INCORE);
737 xfs_defer_cancel_list((*tp)->t_mountp, &dop_pending);
738 xfs_defer_cancel(*tp);
739 return error;
740 }
741
742 int
xfs_defer_finish(struct xfs_trans ** tp)743 xfs_defer_finish(
744 struct xfs_trans **tp)
745 {
746 #ifdef DEBUG
747 struct xfs_defer_pending *dfp;
748 #endif
749 int error;
750
751 /*
752 * Finish and roll the transaction once more to avoid returning to the
753 * caller with a dirty transaction.
754 */
755 error = xfs_defer_finish_noroll(tp);
756 if (error)
757 return error;
758 if ((*tp)->t_flags & XFS_TRANS_DIRTY) {
759 error = xfs_defer_trans_roll(tp);
760 if (error) {
761 xfs_force_shutdown((*tp)->t_mountp,
762 SHUTDOWN_CORRUPT_INCORE);
763 return error;
764 }
765 }
766
767 /* Reset LOWMODE now that we've finished all the dfops. */
768 #ifdef DEBUG
769 list_for_each_entry(dfp, &(*tp)->t_dfops, dfp_list)
770 ASSERT(dfp->dfp_flags & XFS_DEFER_PAUSED);
771 #endif
772 (*tp)->t_flags &= ~XFS_TRANS_LOWMODE;
773 return 0;
774 }
775
776 void
xfs_defer_cancel(struct xfs_trans * tp)777 xfs_defer_cancel(
778 struct xfs_trans *tp)
779 {
780 struct xfs_mount *mp = tp->t_mountp;
781
782 trace_xfs_defer_cancel(tp, _RET_IP_);
783 xfs_defer_trans_abort(tp, &tp->t_dfops);
784 xfs_defer_cancel_list(mp, &tp->t_dfops);
785 }
786
787 /*
788 * Return the last pending work item attached to this transaction if it matches
789 * the deferred op type.
790 */
791 static inline struct xfs_defer_pending *
xfs_defer_find_last(struct xfs_trans * tp,const struct xfs_defer_op_type * ops)792 xfs_defer_find_last(
793 struct xfs_trans *tp,
794 const struct xfs_defer_op_type *ops)
795 {
796 struct xfs_defer_pending *dfp = NULL;
797
798 /* No dfops at all? */
799 if (list_empty(&tp->t_dfops))
800 return NULL;
801
802 dfp = list_last_entry(&tp->t_dfops, struct xfs_defer_pending,
803 dfp_list);
804
805 /* Wrong type? */
806 if (dfp->dfp_ops != ops)
807 return NULL;
808 return dfp;
809 }
810
811 /*
812 * Decide if we can add a deferred work item to the last dfops item attached
813 * to the transaction.
814 */
815 static inline bool
xfs_defer_can_append(struct xfs_defer_pending * dfp,const struct xfs_defer_op_type * ops)816 xfs_defer_can_append(
817 struct xfs_defer_pending *dfp,
818 const struct xfs_defer_op_type *ops)
819 {
820 /* Already logged? */
821 if (dfp->dfp_intent)
822 return false;
823
824 /* Paused items cannot absorb more work */
825 if (dfp->dfp_flags & XFS_DEFER_PAUSED)
826 return false;
827
828 /* Already full? */
829 if (ops->max_items && dfp->dfp_count >= ops->max_items)
830 return false;
831
832 return true;
833 }
834
835 /* Create a new pending item at the end of the transaction list. */
836 static inline struct xfs_defer_pending *
xfs_defer_alloc(struct list_head * dfops,const struct xfs_defer_op_type * ops)837 xfs_defer_alloc(
838 struct list_head *dfops,
839 const struct xfs_defer_op_type *ops)
840 {
841 struct xfs_defer_pending *dfp;
842
843 dfp = kmem_cache_zalloc(xfs_defer_pending_cache,
844 GFP_KERNEL | __GFP_NOFAIL);
845 dfp->dfp_ops = ops;
846 INIT_LIST_HEAD(&dfp->dfp_work);
847 list_add_tail(&dfp->dfp_list, dfops);
848
849 return dfp;
850 }
851
852 /* Add an item for later deferred processing. */
853 struct xfs_defer_pending *
xfs_defer_add(struct xfs_trans * tp,struct list_head * li,const struct xfs_defer_op_type * ops)854 xfs_defer_add(
855 struct xfs_trans *tp,
856 struct list_head *li,
857 const struct xfs_defer_op_type *ops)
858 {
859 struct xfs_defer_pending *dfp = NULL;
860
861 ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES);
862
863 if (!ops->finish_item) {
864 ASSERT(ops->finish_item != NULL);
865 xfs_force_shutdown(tp->t_mountp, SHUTDOWN_CORRUPT_INCORE);
866 return NULL;
867 }
868
869 dfp = xfs_defer_find_last(tp, ops);
870 if (!dfp || !xfs_defer_can_append(dfp, ops))
871 dfp = xfs_defer_alloc(&tp->t_dfops, ops);
872
873 xfs_defer_add_item(dfp, li);
874 trace_xfs_defer_add_item(tp->t_mountp, dfp, li);
875 return dfp;
876 }
877
878 /*
879 * Add a defer ops barrier to force two otherwise adjacent deferred work items
880 * to be tracked separately and have separate log items.
881 */
882 void
xfs_defer_add_barrier(struct xfs_trans * tp)883 xfs_defer_add_barrier(
884 struct xfs_trans *tp)
885 {
886 struct xfs_defer_pending *dfp;
887
888 ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES);
889
890 /* If the last defer op added was a barrier, we're done. */
891 dfp = xfs_defer_find_last(tp, &xfs_barrier_defer_type);
892 if (dfp)
893 return;
894
895 dfp = xfs_defer_alloc(&tp->t_dfops, &xfs_barrier_defer_type);
896
897 trace_xfs_defer_add_item(tp->t_mountp, dfp, NULL);
898 }
899
900 /*
901 * Create a pending deferred work item to replay the recovered intent item
902 * and add it to the list.
903 */
904 void
xfs_defer_start_recovery(struct xfs_log_item * lip,struct list_head * r_dfops,const struct xfs_defer_op_type * ops)905 xfs_defer_start_recovery(
906 struct xfs_log_item *lip,
907 struct list_head *r_dfops,
908 const struct xfs_defer_op_type *ops)
909 {
910 struct xfs_defer_pending *dfp = xfs_defer_alloc(r_dfops, ops);
911
912 dfp->dfp_intent = lip;
913 }
914
915 /*
916 * Cancel a deferred work item created to recover a log intent item. @dfp
917 * will be freed after this function returns.
918 */
919 void
xfs_defer_cancel_recovery(struct xfs_mount * mp,struct xfs_defer_pending * dfp)920 xfs_defer_cancel_recovery(
921 struct xfs_mount *mp,
922 struct xfs_defer_pending *dfp)
923 {
924 xfs_defer_pending_abort(mp, dfp);
925 xfs_defer_pending_cancel_work(mp, dfp);
926 }
927
928 /* Replay the deferred work item created from a recovered log intent item. */
929 int
xfs_defer_finish_recovery(struct xfs_mount * mp,struct xfs_defer_pending * dfp,struct list_head * capture_list)930 xfs_defer_finish_recovery(
931 struct xfs_mount *mp,
932 struct xfs_defer_pending *dfp,
933 struct list_head *capture_list)
934 {
935 const struct xfs_defer_op_type *ops = dfp->dfp_ops;
936 int error;
937
938 /* dfp is freed by recover_work and must not be accessed afterwards */
939 error = ops->recover_work(dfp, capture_list);
940 if (error)
941 trace_xlog_intent_recovery_failed(mp, ops, error);
942 return error;
943 }
944
945 /*
946 * Move deferred ops from one transaction to another and reset the source to
947 * initial state. This is primarily used to carry state forward across
948 * transaction rolls with pending dfops.
949 */
950 void
xfs_defer_move(struct xfs_trans * dtp,struct xfs_trans * stp)951 xfs_defer_move(
952 struct xfs_trans *dtp,
953 struct xfs_trans *stp)
954 {
955 list_splice_init(&stp->t_dfops, &dtp->t_dfops);
956
957 /*
958 * Low free space mode was historically controlled by a dfops field.
959 * This meant that low mode state potentially carried across multiple
960 * transaction rolls. Transfer low mode on a dfops move to preserve
961 * that behavior.
962 */
963 dtp->t_flags |= (stp->t_flags & XFS_TRANS_LOWMODE);
964 stp->t_flags &= ~XFS_TRANS_LOWMODE;
965 }
966
967 /*
968 * Prepare a chain of fresh deferred ops work items to be completed later. Log
969 * recovery requires the ability to put off until later the actual finishing
970 * work so that it can process unfinished items recovered from the log in
971 * correct order.
972 *
973 * Create and log intent items for all the work that we're capturing so that we
974 * can be assured that the items will get replayed if the system goes down
975 * before log recovery gets a chance to finish the work it put off. The entire
976 * deferred ops state is transferred to the capture structure and the
977 * transaction is then ready for the caller to commit it. If there are no
978 * intent items to capture, this function returns NULL.
979 *
980 * If capture_ip is not NULL, the capture structure will obtain an extra
981 * reference to the inode.
982 */
983 static struct xfs_defer_capture *
xfs_defer_ops_capture(struct xfs_trans * tp)984 xfs_defer_ops_capture(
985 struct xfs_trans *tp)
986 {
987 struct xfs_defer_capture *dfc;
988 unsigned short i;
989 int error;
990
991 if (list_empty(&tp->t_dfops))
992 return NULL;
993
994 error = xfs_defer_create_intents(tp);
995 if (error < 0)
996 return ERR_PTR(error);
997
998 /* Create an object to capture the defer ops. */
999 dfc = kzalloc_obj(*dfc, GFP_KERNEL | __GFP_NOFAIL);
1000 INIT_LIST_HEAD(&dfc->dfc_list);
1001 INIT_LIST_HEAD(&dfc->dfc_dfops);
1002
1003 /* Move the dfops chain and transaction state to the capture struct. */
1004 list_splice_init(&tp->t_dfops, &dfc->dfc_dfops);
1005 dfc->dfc_tpflags = tp->t_flags & XFS_TRANS_LOWMODE;
1006 tp->t_flags &= ~XFS_TRANS_LOWMODE;
1007
1008 /* Capture the remaining block reservations along with the dfops. */
1009 dfc->dfc_blkres = tp->t_blk_res - tp->t_blk_res_used;
1010 dfc->dfc_rtxres = tp->t_rtx_res - tp->t_rtx_res_used;
1011
1012 /* Preserve the log reservation size. */
1013 dfc->dfc_logres = tp->t_log_res;
1014
1015 error = xfs_defer_save_resources(&dfc->dfc_held, tp);
1016 if (error) {
1017 /*
1018 * Resource capture should never fail, but if it does, we
1019 * still have to shut down the log and release things
1020 * properly.
1021 */
1022 xfs_force_shutdown(tp->t_mountp, SHUTDOWN_CORRUPT_INCORE);
1023 }
1024
1025 /*
1026 * Grab extra references to the inodes and buffers because callers are
1027 * expected to release their held references after we commit the
1028 * transaction.
1029 */
1030 for (i = 0; i < dfc->dfc_held.dr_inos; i++) {
1031 xfs_assert_ilocked(dfc->dfc_held.dr_ip[i], XFS_ILOCK_EXCL);
1032 ihold(VFS_I(dfc->dfc_held.dr_ip[i]));
1033 }
1034
1035 for (i = 0; i < dfc->dfc_held.dr_bufs; i++)
1036 xfs_buf_hold(dfc->dfc_held.dr_bp[i]);
1037
1038 return dfc;
1039 }
1040
1041 /* Release all resources that we used to capture deferred ops. */
1042 void
xfs_defer_ops_capture_abort(struct xfs_mount * mp,struct xfs_defer_capture * dfc)1043 xfs_defer_ops_capture_abort(
1044 struct xfs_mount *mp,
1045 struct xfs_defer_capture *dfc)
1046 {
1047 unsigned short i;
1048
1049 xfs_defer_pending_abort_list(mp, &dfc->dfc_dfops);
1050 xfs_defer_cancel_list(mp, &dfc->dfc_dfops);
1051
1052 for (i = 0; i < dfc->dfc_held.dr_bufs; i++)
1053 xfs_buf_relse(dfc->dfc_held.dr_bp[i]);
1054
1055 for (i = 0; i < dfc->dfc_held.dr_inos; i++)
1056 xfs_irele(dfc->dfc_held.dr_ip[i]);
1057
1058 kfree(dfc);
1059 }
1060
1061 /*
1062 * Capture any deferred ops and commit the transaction. This is the last step
1063 * needed to finish a log intent item that we recovered from the log. If any
1064 * of the deferred ops operate on an inode, the caller must pass in that inode
1065 * so that the reference can be transferred to the capture structure. The
1066 * caller must hold ILOCK_EXCL on the inode, and must unlock it before calling
1067 * xfs_defer_ops_continue.
1068 */
1069 int
xfs_defer_ops_capture_and_commit(struct xfs_trans * tp,struct list_head * capture_list)1070 xfs_defer_ops_capture_and_commit(
1071 struct xfs_trans *tp,
1072 struct list_head *capture_list)
1073 {
1074 struct xfs_mount *mp = tp->t_mountp;
1075 struct xfs_defer_capture *dfc;
1076 int error;
1077
1078 /* If we don't capture anything, commit transaction and exit. */
1079 dfc = xfs_defer_ops_capture(tp);
1080 if (IS_ERR(dfc)) {
1081 xfs_trans_cancel(tp);
1082 return PTR_ERR(dfc);
1083 }
1084 if (!dfc)
1085 return xfs_trans_commit(tp);
1086
1087 /* Commit the transaction and add the capture structure to the list. */
1088 error = xfs_trans_commit(tp);
1089 if (error) {
1090 xfs_defer_ops_capture_abort(mp, dfc);
1091 return error;
1092 }
1093
1094 list_add_tail(&dfc->dfc_list, capture_list);
1095 return 0;
1096 }
1097
1098 /*
1099 * Attach a chain of captured deferred ops to a new transaction and free the
1100 * capture structure. If an inode was captured, it will be passed back to the
1101 * caller with ILOCK_EXCL held and joined to the transaction with lockflags==0.
1102 * The caller now owns the inode reference.
1103 */
1104 void
xfs_defer_ops_continue(struct xfs_defer_capture * dfc,struct xfs_trans * tp,struct xfs_defer_resources * dres)1105 xfs_defer_ops_continue(
1106 struct xfs_defer_capture *dfc,
1107 struct xfs_trans *tp,
1108 struct xfs_defer_resources *dres)
1109 {
1110 unsigned int i;
1111
1112 ASSERT(tp->t_flags & XFS_TRANS_PERM_LOG_RES);
1113 ASSERT(!(tp->t_flags & XFS_TRANS_DIRTY));
1114
1115 /* Lock the captured resources to the new transaction. */
1116 if (dfc->dfc_held.dr_inos > 2) {
1117 xfs_sort_inodes(dfc->dfc_held.dr_ip, dfc->dfc_held.dr_inos);
1118 xfs_lock_inodes(dfc->dfc_held.dr_ip, dfc->dfc_held.dr_inos,
1119 XFS_ILOCK_EXCL);
1120 } else if (dfc->dfc_held.dr_inos == 2)
1121 xfs_lock_two_inodes(dfc->dfc_held.dr_ip[0], XFS_ILOCK_EXCL,
1122 dfc->dfc_held.dr_ip[1], XFS_ILOCK_EXCL);
1123 else if (dfc->dfc_held.dr_inos == 1)
1124 xfs_ilock(dfc->dfc_held.dr_ip[0], XFS_ILOCK_EXCL);
1125
1126 for (i = 0; i < dfc->dfc_held.dr_bufs; i++)
1127 xfs_buf_lock(dfc->dfc_held.dr_bp[i]);
1128
1129 /* Join the captured resources to the new transaction. */
1130 xfs_defer_restore_resources(tp, &dfc->dfc_held);
1131 memcpy(dres, &dfc->dfc_held, sizeof(struct xfs_defer_resources));
1132 dres->dr_bufs = 0;
1133
1134 /* Move captured dfops chain and state to the transaction. */
1135 list_splice_init(&dfc->dfc_dfops, &tp->t_dfops);
1136 tp->t_flags |= dfc->dfc_tpflags;
1137
1138 kfree(dfc);
1139 }
1140
1141 /* Release the resources captured and continued during recovery. */
1142 void
xfs_defer_resources_rele(struct xfs_defer_resources * dres)1143 xfs_defer_resources_rele(
1144 struct xfs_defer_resources *dres)
1145 {
1146 unsigned short i;
1147
1148 for (i = 0; i < dres->dr_inos; i++) {
1149 xfs_iunlock(dres->dr_ip[i], XFS_ILOCK_EXCL);
1150 xfs_irele(dres->dr_ip[i]);
1151 dres->dr_ip[i] = NULL;
1152 }
1153
1154 for (i = 0; i < dres->dr_bufs; i++) {
1155 xfs_buf_relse(dres->dr_bp[i]);
1156 dres->dr_bp[i] = NULL;
1157 }
1158
1159 dres->dr_inos = 0;
1160 dres->dr_bufs = 0;
1161 dres->dr_ordered = 0;
1162 }
1163
1164 static inline int __init
xfs_defer_init_cache(void)1165 xfs_defer_init_cache(void)
1166 {
1167 xfs_defer_pending_cache = kmem_cache_create("xfs_defer_pending",
1168 sizeof(struct xfs_defer_pending),
1169 0, 0, NULL);
1170
1171 return xfs_defer_pending_cache != NULL ? 0 : -ENOMEM;
1172 }
1173
1174 static inline void
xfs_defer_destroy_cache(void)1175 xfs_defer_destroy_cache(void)
1176 {
1177 kmem_cache_destroy(xfs_defer_pending_cache);
1178 xfs_defer_pending_cache = NULL;
1179 }
1180
1181 /* Set up caches for deferred work items. */
1182 int __init
xfs_defer_init_item_caches(void)1183 xfs_defer_init_item_caches(void)
1184 {
1185 int error;
1186
1187 error = xfs_defer_init_cache();
1188 if (error)
1189 return error;
1190 error = xfs_rmap_intent_init_cache();
1191 if (error)
1192 goto err;
1193 error = xfs_refcount_intent_init_cache();
1194 if (error)
1195 goto err;
1196 error = xfs_bmap_intent_init_cache();
1197 if (error)
1198 goto err;
1199 error = xfs_extfree_intent_init_cache();
1200 if (error)
1201 goto err;
1202 error = xfs_attr_intent_init_cache();
1203 if (error)
1204 goto err;
1205 error = xfs_exchmaps_intent_init_cache();
1206 if (error)
1207 goto err;
1208
1209 return 0;
1210 err:
1211 xfs_defer_destroy_item_caches();
1212 return error;
1213 }
1214
1215 /* Destroy all the deferred work item caches, if they've been allocated. */
1216 void
xfs_defer_destroy_item_caches(void)1217 xfs_defer_destroy_item_caches(void)
1218 {
1219 xfs_exchmaps_intent_destroy_cache();
1220 xfs_attr_intent_destroy_cache();
1221 xfs_extfree_intent_destroy_cache();
1222 xfs_bmap_intent_destroy_cache();
1223 xfs_refcount_intent_destroy_cache();
1224 xfs_rmap_intent_destroy_cache();
1225 xfs_defer_destroy_cache();
1226 }
1227
1228 /*
1229 * Mark a deferred work item so that it will be requeued indefinitely without
1230 * being finished. Caller must ensure there are no data dependencies on this
1231 * work item in the meantime.
1232 */
1233 void
xfs_defer_item_pause(struct xfs_trans * tp,struct xfs_defer_pending * dfp)1234 xfs_defer_item_pause(
1235 struct xfs_trans *tp,
1236 struct xfs_defer_pending *dfp)
1237 {
1238 ASSERT(!(dfp->dfp_flags & XFS_DEFER_PAUSED));
1239
1240 dfp->dfp_flags |= XFS_DEFER_PAUSED;
1241
1242 trace_xfs_defer_item_pause(tp->t_mountp, dfp);
1243 }
1244
1245 /*
1246 * Release a paused deferred work item so that it will be finished during the
1247 * next transaction roll.
1248 */
1249 void
xfs_defer_item_unpause(struct xfs_trans * tp,struct xfs_defer_pending * dfp)1250 xfs_defer_item_unpause(
1251 struct xfs_trans *tp,
1252 struct xfs_defer_pending *dfp)
1253 {
1254 ASSERT(dfp->dfp_flags & XFS_DEFER_PAUSED);
1255
1256 dfp->dfp_flags &= ~XFS_DEFER_PAUSED;
1257
1258 trace_xfs_defer_item_unpause(tp->t_mountp, dfp);
1259 }
1260