xref: /linux/fs/xfs/xfs_trans_ail.c (revision ed4abd8617ba348802575a0ae8e01e6c0f7eb2cf)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (c) 2000-2002,2005 Silicon Graphics, Inc.
4  * Copyright (c) 2008 Dave Chinner
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_trans.h"
15 #include "xfs_trans_priv.h"
16 #include "xfs_trace.h"
17 #include "xfs_errortag.h"
18 #include "xfs_error.h"
19 #include "xfs_log.h"
20 #include "xfs_log_priv.h"
21 
22 #ifdef DEBUG
23 /*
24  * Check that the list is sorted as it should be.
25  *
26  * Called with the ail lock held, but we don't want to assert fail with it
27  * held otherwise we'll lock everything up and won't be able to debug the
28  * cause. Hence we sample and check the state under the AIL lock and return if
29  * everything is fine, otherwise we drop the lock and run the ASSERT checks.
30  * Asserts may not be fatal, so pick the lock back up and continue onwards.
31  */
32 STATIC void
33 xfs_ail_check(
34 	struct xfs_ail		*ailp,
35 	struct xfs_log_item	*lip)
36 		__must_hold(&ailp->ail_lock)
37 {
38 	struct xfs_log_item	*prev_lip;
39 	struct xfs_log_item	*next_lip;
40 	xfs_lsn_t		prev_lsn = NULLCOMMITLSN;
41 	xfs_lsn_t		next_lsn = NULLCOMMITLSN;
42 	xfs_lsn_t		lsn;
43 	bool			in_ail;
44 
45 
46 	if (list_empty(&ailp->ail_head))
47 		return;
48 
49 	/*
50 	 * Sample then check the next and previous entries are valid.
51 	 */
52 	in_ail = test_bit(XFS_LI_IN_AIL, &lip->li_flags);
53 	prev_lip = list_entry(lip->li_ail.prev, struct xfs_log_item, li_ail);
54 	if (&prev_lip->li_ail != &ailp->ail_head)
55 		prev_lsn = prev_lip->li_lsn;
56 	next_lip = list_entry(lip->li_ail.next, struct xfs_log_item, li_ail);
57 	if (&next_lip->li_ail != &ailp->ail_head)
58 		next_lsn = next_lip->li_lsn;
59 	lsn = lip->li_lsn;
60 
61 	if (in_ail &&
62 	    (prev_lsn == NULLCOMMITLSN || XFS_LSN_CMP(prev_lsn, lsn) <= 0) &&
63 	    (next_lsn == NULLCOMMITLSN || XFS_LSN_CMP(next_lsn, lsn) >= 0))
64 		return;
65 
66 	spin_unlock(&ailp->ail_lock);
67 	ASSERT(in_ail);
68 	ASSERT(prev_lsn == NULLCOMMITLSN || XFS_LSN_CMP(prev_lsn, lsn) <= 0);
69 	ASSERT(next_lsn == NULLCOMMITLSN || XFS_LSN_CMP(next_lsn, lsn) >= 0);
70 	spin_lock(&ailp->ail_lock);
71 }
72 #else /* !DEBUG */
73 #define	xfs_ail_check(a,l)
74 #endif /* DEBUG */
75 
76 /*
77  * Return a pointer to the last item in the AIL.  If the AIL is empty, then
78  * return NULL.
79  */
80 static struct xfs_log_item *
81 xfs_ail_max(
82 	struct xfs_ail  *ailp)
83 {
84 	if (list_empty(&ailp->ail_head))
85 		return NULL;
86 
87 	return list_entry(ailp->ail_head.prev, struct xfs_log_item, li_ail);
88 }
89 
90 /*
91  * Return a pointer to the item which follows the given item in the AIL.  If
92  * the given item is the last item in the list, then return NULL.
93  */
94 static struct xfs_log_item *
95 xfs_ail_next(
96 	struct xfs_ail		*ailp,
97 	struct xfs_log_item	*lip)
98 {
99 	if (lip->li_ail.next == &ailp->ail_head)
100 		return NULL;
101 
102 	return list_first_entry(&lip->li_ail, struct xfs_log_item, li_ail);
103 }
104 
105 /*
106  * This is called by the log manager code to determine the LSN of the tail of
107  * the log.  This is exactly the LSN of the first item in the AIL.  If the AIL
108  * is empty, then this function returns 0.
109  *
110  * We need the AIL lock in order to get a coherent read of the lsn of the last
111  * item in the AIL.
112  */
113 static xfs_lsn_t
114 __xfs_ail_min_lsn(
115 	struct xfs_ail		*ailp)
116 {
117 	struct xfs_log_item	*lip = xfs_ail_min(ailp);
118 
119 	if (lip)
120 		return lip->li_lsn;
121 	return 0;
122 }
123 
124 xfs_lsn_t
125 xfs_ail_min_lsn(
126 	struct xfs_ail		*ailp)
127 {
128 	xfs_lsn_t		lsn;
129 
130 	spin_lock(&ailp->ail_lock);
131 	lsn = __xfs_ail_min_lsn(ailp);
132 	spin_unlock(&ailp->ail_lock);
133 
134 	return lsn;
135 }
136 
137 /*
138  * The cursor keeps track of where our current traversal is up to by tracking
139  * the next item in the list for us. However, for this to be safe, removing an
140  * object from the AIL needs to invalidate any cursor that points to it. hence
141  * the traversal cursor needs to be linked to the struct xfs_ail so that
142  * deletion can search all the active cursors for invalidation.
143  */
144 STATIC void
145 xfs_trans_ail_cursor_init(
146 	struct xfs_ail		*ailp,
147 	struct xfs_ail_cursor	*cur)
148 {
149 	cur->item = NULL;
150 	list_add_tail(&cur->list, &ailp->ail_cursors);
151 }
152 
153 /*
154  * Get the next item in the traversal and advance the cursor.  If the cursor
155  * was invalidated (indicated by a lip of 1), restart the traversal.
156  */
157 struct xfs_log_item *
158 xfs_trans_ail_cursor_next(
159 	struct xfs_ail		*ailp,
160 	struct xfs_ail_cursor	*cur)
161 {
162 	struct xfs_log_item	*lip = cur->item;
163 
164 	if ((uintptr_t)lip & 1)
165 		lip = xfs_ail_min(ailp);
166 	if (lip)
167 		cur->item = xfs_ail_next(ailp, lip);
168 	return lip;
169 }
170 
171 /*
172  * When the traversal is complete, we need to remove the cursor from the list
173  * of traversing cursors.
174  */
175 void
176 xfs_trans_ail_cursor_done(
177 	struct xfs_ail_cursor	*cur)
178 {
179 	cur->item = NULL;
180 	list_del_init(&cur->list);
181 }
182 
183 /*
184  * Invalidate any cursor that is pointing to this item. This is called when an
185  * item is removed from the AIL. Any cursor pointing to this object is now
186  * invalid and the traversal needs to be terminated so it doesn't reference a
187  * freed object. We set the low bit of the cursor item pointer so we can
188  * distinguish between an invalidation and the end of the list when getting the
189  * next item from the cursor.
190  */
191 STATIC void
192 xfs_trans_ail_cursor_clear(
193 	struct xfs_ail		*ailp,
194 	struct xfs_log_item	*lip)
195 {
196 	struct xfs_ail_cursor	*cur;
197 
198 	list_for_each_entry(cur, &ailp->ail_cursors, list) {
199 		if (cur->item == lip)
200 			cur->item = (struct xfs_log_item *)
201 					((uintptr_t)cur->item | 1);
202 	}
203 }
204 
205 /*
206  * Find the first item in the AIL with the given @lsn by searching in ascending
207  * LSN order and initialise the cursor to point to the next item for a
208  * ascending traversal.  Pass a @lsn of zero to initialise the cursor to the
209  * first item in the AIL. Returns NULL if the list is empty.
210  */
211 struct xfs_log_item *
212 xfs_trans_ail_cursor_first(
213 	struct xfs_ail		*ailp,
214 	struct xfs_ail_cursor	*cur,
215 	xfs_lsn_t		lsn)
216 {
217 	struct xfs_log_item	*lip;
218 
219 	xfs_trans_ail_cursor_init(ailp, cur);
220 
221 	if (lsn == 0) {
222 		lip = xfs_ail_min(ailp);
223 		goto out;
224 	}
225 
226 	list_for_each_entry(lip, &ailp->ail_head, li_ail) {
227 		if (XFS_LSN_CMP(lip->li_lsn, lsn) >= 0)
228 			goto out;
229 	}
230 	return NULL;
231 
232 out:
233 	if (lip)
234 		cur->item = xfs_ail_next(ailp, lip);
235 	return lip;
236 }
237 
238 static struct xfs_log_item *
239 __xfs_trans_ail_cursor_last(
240 	struct xfs_ail		*ailp,
241 	xfs_lsn_t		lsn)
242 {
243 	struct xfs_log_item	*lip;
244 
245 	list_for_each_entry_reverse(lip, &ailp->ail_head, li_ail) {
246 		if (XFS_LSN_CMP(lip->li_lsn, lsn) <= 0)
247 			return lip;
248 	}
249 	return NULL;
250 }
251 
252 /*
253  * Find the last item in the AIL with the given @lsn by searching in descending
254  * LSN order and initialise the cursor to point to that item.  If there is no
255  * item with the value of @lsn, then it sets the cursor to the last item with an
256  * LSN lower than @lsn.  Returns NULL if the list is empty.
257  */
258 struct xfs_log_item *
259 xfs_trans_ail_cursor_last(
260 	struct xfs_ail		*ailp,
261 	struct xfs_ail_cursor	*cur,
262 	xfs_lsn_t		lsn)
263 {
264 	xfs_trans_ail_cursor_init(ailp, cur);
265 	cur->item = __xfs_trans_ail_cursor_last(ailp, lsn);
266 	return cur->item;
267 }
268 
269 /*
270  * Splice the log item list into the AIL at the given LSN. We splice to the
271  * tail of the given LSN to maintain insert order for push traversals. The
272  * cursor is optional, allowing repeated updates to the same LSN to avoid
273  * repeated traversals.  This should not be called with an empty list.
274  */
275 static void
276 xfs_ail_splice(
277 	struct xfs_ail		*ailp,
278 	struct xfs_ail_cursor	*cur,
279 	struct list_head	*list,
280 	xfs_lsn_t		lsn)
281 {
282 	struct xfs_log_item	*lip;
283 
284 	ASSERT(!list_empty(list));
285 
286 	/*
287 	 * Use the cursor to determine the insertion point if one is
288 	 * provided.  If not, or if the one we got is not valid,
289 	 * find the place in the AIL where the items belong.
290 	 */
291 	lip = cur ? cur->item : NULL;
292 	if (!lip || (uintptr_t)lip & 1)
293 		lip = __xfs_trans_ail_cursor_last(ailp, lsn);
294 
295 	/*
296 	 * If a cursor is provided, we know we're processing the AIL
297 	 * in lsn order, and future items to be spliced in will
298 	 * follow the last one being inserted now.  Update the
299 	 * cursor to point to that last item, now while we have a
300 	 * reliable pointer to it.
301 	 */
302 	if (cur)
303 		cur->item = list_entry(list->prev, struct xfs_log_item, li_ail);
304 
305 	/*
306 	 * Finally perform the splice.  Unless the AIL was empty,
307 	 * lip points to the item in the AIL _after_ which the new
308 	 * items should go.  If lip is null the AIL was empty, so
309 	 * the new items go at the head of the AIL.
310 	 */
311 	if (lip)
312 		list_splice(list, &lip->li_ail);
313 	else
314 		list_splice(list, &ailp->ail_head);
315 }
316 
317 /*
318  * Delete the given item from the AIL.
319  */
320 static void
321 xfs_ail_delete(
322 	struct xfs_ail		*ailp,
323 	struct xfs_log_item	*lip)
324 		__must_hold(&ailp->ail_lock)
325 {
326 	xfs_ail_check(ailp, lip);
327 	list_del(&lip->li_ail);
328 	xfs_trans_ail_cursor_clear(ailp, lip);
329 }
330 
331 /*
332  * Requeue a failed buffer for writeback.
333  *
334  * We clear the log item failed state here as well, but we have to be careful
335  * about reference counts because the only active reference counts on the buffer
336  * may be the failed log items. Hence if we clear the log item failed state
337  * before queuing the buffer for IO we can release all active references to
338  * the buffer and free it, leading to use after free problems in
339  * xfs_buf_delwri_queue. It makes no difference to the buffer or log items which
340  * order we process them in - the buffer is locked, and we own the buffer list
341  * so nothing on them is going to change while we are performing this action.
342  *
343  * Hence we can safely queue the buffer for IO before we clear the failed log
344  * item state, therefore  always having an active reference to the buffer and
345  * avoiding the transient zero-reference state that leads to use-after-free.
346  */
347 static inline int
348 xfsaild_resubmit_item(
349 	struct xfs_log_item	*lip,
350 	struct list_head	*buffer_list)
351 {
352 	struct xfs_buf		*bp = lip->li_buf;
353 
354 	if (!xfs_buf_trylock(bp))
355 		return XFS_ITEM_LOCKED;
356 
357 	if (!xfs_buf_delwri_queue(bp, buffer_list)) {
358 		xfs_buf_unlock(bp);
359 		return XFS_ITEM_FLUSHING;
360 	}
361 
362 	/* protected by ail_lock */
363 	list_for_each_entry(lip, &bp->b_li_list, li_bio_list)
364 		clear_bit(XFS_LI_FAILED, &lip->li_flags);
365 	xfs_buf_unlock(bp);
366 	return XFS_ITEM_SUCCESS;
367 }
368 
369 /*
370  * Push a single log item from the AIL.
371  *
372  * @lip may have been released and freed by the time this function returns,
373  * so callers must not dereference the log item afterwards.
374  */
375 static inline uint
376 xfsaild_push_item(
377 	struct xfs_ail		*ailp,
378 	struct xfs_log_item	*lip)
379 {
380 	/*
381 	 * If log item pinning is enabled, skip the push and track the item as
382 	 * pinned. This can help induce head-behind-tail conditions.
383 	 */
384 	if (XFS_TEST_ERROR(ailp->ail_log->l_mp, XFS_ERRTAG_LOG_ITEM_PIN))
385 		return XFS_ITEM_PINNED;
386 
387 	/*
388 	 * Consider the item pinned if a push callback is not defined so the
389 	 * caller will force the log. This should only happen for intent items
390 	 * as they are unpinned once the associated done item is committed to
391 	 * the on-disk log.
392 	 */
393 	if (!lip->li_ops->iop_push)
394 		return XFS_ITEM_PINNED;
395 	if (test_bit(XFS_LI_FAILED, &lip->li_flags))
396 		return xfsaild_resubmit_item(lip, &ailp->ail_buf_list);
397 	return lip->li_ops->iop_push(lip, &ailp->ail_buf_list);
398 }
399 
400 /*
401  * Compute the LSN that we'd need to push the log tail towards in order to have
402  * at least 25% of the log space free.  If the log free space already meets this
403  * threshold, this function returns the lowest LSN in the AIL to slowly keep
404  * writeback ticking over and the tail of the log moving forward.
405  */
406 static xfs_lsn_t
407 xfs_ail_calc_push_target(
408 	struct xfs_ail		*ailp)
409 {
410 	struct xlog		*log = ailp->ail_log;
411 	struct xfs_log_item	*lip;
412 	xfs_lsn_t		target_lsn;
413 	xfs_lsn_t		max_lsn;
414 	xfs_lsn_t		min_lsn;
415 	int32_t			free_bytes;
416 	uint32_t		target_block;
417 	uint32_t		target_cycle;
418 
419 	lockdep_assert_held(&ailp->ail_lock);
420 
421 	lip = xfs_ail_max(ailp);
422 	if (!lip)
423 		return NULLCOMMITLSN;
424 
425 	max_lsn = lip->li_lsn;
426 	min_lsn = __xfs_ail_min_lsn(ailp);
427 
428 	/*
429 	 * If we are supposed to push all the items in the AIL, we want to push
430 	 * to the current head. We then clear the push flag so that we don't
431 	 * keep pushing newly queued items beyond where the push all command was
432 	 * run. If the push waiter wants to empty the ail, it should queue
433 	 * itself on the ail_empty wait queue.
434 	 */
435 	if (test_and_clear_bit(XFS_AIL_OPSTATE_PUSH_ALL, &ailp->ail_opstate))
436 		return max_lsn;
437 
438 	/* If someone wants the AIL empty, keep pushing everything we have. */
439 	if (waitqueue_active(&ailp->ail_empty))
440 		return max_lsn;
441 
442 	/*
443 	 * Background pushing - attempt to keep 25% of the log free and if we
444 	 * have that much free retain the existing target.
445 	 */
446 	free_bytes = log->l_logsize - xlog_lsn_sub(log, max_lsn, min_lsn);
447 	if (free_bytes >= log->l_logsize >> 2)
448 		return ailp->ail_target;
449 
450 	target_cycle = CYCLE_LSN(min_lsn);
451 	target_block = BLOCK_LSN(min_lsn) + (log->l_logBBsize >> 2);
452 	if (target_block >= log->l_logBBsize) {
453 		target_block -= log->l_logBBsize;
454 		target_cycle += 1;
455 	}
456 	target_lsn = xlog_assign_lsn(target_cycle, target_block);
457 
458 	/* Cap the target to the highest LSN known to be in the AIL. */
459 	if (XFS_LSN_CMP(target_lsn, max_lsn) > 0)
460 		return max_lsn;
461 
462 	/* If the existing target is higher than the new target, keep it. */
463 	if (XFS_LSN_CMP(ailp->ail_target, target_lsn) >= 0)
464 		return ailp->ail_target;
465 	return target_lsn;
466 }
467 
468 static void
469 xfsaild_process_logitem(
470 	struct xfs_ail		*ailp,
471 	struct xfs_log_item	*lip,
472 	int			*stuck,
473 	int			*flushing)
474 {
475 	struct xfs_mount	*mp = ailp->ail_log->l_mp;
476 	uint			type = lip->li_type;
477 	unsigned long		flags = lip->li_flags;
478 	xfs_lsn_t		item_lsn = lip->li_lsn;
479 	int			lock_result;
480 
481 	/*
482 	 * Note that iop_push may unlock and reacquire the AIL lock. We
483 	 * rely on the AIL cursor implementation to be able to deal with
484 	 * the dropped lock.
485 	 *
486 	 * The log item may have been freed by the push, so it must not
487 	 * be accessed or dereferenced below this line.
488 	 */
489 	lock_result = xfsaild_push_item(ailp, lip);
490 	switch (lock_result) {
491 	case XFS_ITEM_SUCCESS:
492 		XFS_STATS_INC(mp, xs_push_ail_success);
493 		trace_xfs_ail_push(ailp, type, flags, item_lsn);
494 
495 		ailp->ail_last_pushed_lsn = item_lsn;
496 		break;
497 
498 	case XFS_ITEM_FLUSHING:
499 		/*
500 		 * The item or its backing buffer is already being
501 		 * flushed.  The typical reason for that is that an
502 		 * inode buffer is locked because we already pushed the
503 		 * updates to it as part of inode clustering.
504 		 *
505 		 * We do not want to stop flushing just because lots
506 		 * of items are already being flushed, but we need to
507 		 * re-try the flushing relatively soon if most of the
508 		 * AIL is being flushed.
509 		 */
510 		XFS_STATS_INC(mp, xs_push_ail_flushing);
511 		trace_xfs_ail_flushing(ailp, type, flags, item_lsn);
512 
513 		(*flushing)++;
514 		ailp->ail_last_pushed_lsn = item_lsn;
515 		break;
516 
517 	case XFS_ITEM_PINNED:
518 		XFS_STATS_INC(mp, xs_push_ail_pinned);
519 		trace_xfs_ail_pinned(ailp, type, flags, item_lsn);
520 
521 		(*stuck)++;
522 		ailp->ail_log_flush++;
523 		break;
524 	case XFS_ITEM_LOCKED:
525 		XFS_STATS_INC(mp, xs_push_ail_locked);
526 		trace_xfs_ail_locked(ailp, type, flags, item_lsn);
527 
528 		(*stuck)++;
529 		break;
530 	default:
531 		ASSERT(0);
532 		break;
533 	}
534 }
535 
536 static long
537 xfsaild_push(
538 	struct xfs_ail		*ailp)
539 {
540 	struct xfs_mount	*mp = ailp->ail_log->l_mp;
541 	struct xfs_ail_cursor	cur;
542 	struct xfs_log_item	*lip;
543 	xfs_lsn_t		lsn;
544 	long			tout;
545 	int			stuck = 0;
546 	int			flushing = 0;
547 	int			count = 0;
548 
549 	/*
550 	 * If we encountered pinned items or did not finish writing out all
551 	 * buffers the last time we ran, force a background CIL push to get the
552 	 * items unpinned in the near future. We do not wait on the CIL push as
553 	 * that could stall us for seconds if there is enough background IO
554 	 * load. Stalling for that long when the tail of the log is pinned and
555 	 * needs flushing will hard stop the transaction subsystem when log
556 	 * space runs out.
557 	 */
558 	if (ailp->ail_log_flush && ailp->ail_last_pushed_lsn == 0 &&
559 	    (!list_empty_careful(&ailp->ail_buf_list) ||
560 	     xfs_ail_min_lsn(ailp))) {
561 		ailp->ail_log_flush = 0;
562 
563 		XFS_STATS_INC(mp, xs_push_ail_flush);
564 		xlog_cil_flush(ailp->ail_log);
565 	}
566 
567 	spin_lock(&ailp->ail_lock);
568 	WRITE_ONCE(ailp->ail_target, xfs_ail_calc_push_target(ailp));
569 	if (ailp->ail_target == NULLCOMMITLSN)
570 		goto out_done;
571 
572 	/* we're done if the AIL is empty or our push has reached the end */
573 	lip = xfs_trans_ail_cursor_first(ailp, &cur, ailp->ail_last_pushed_lsn);
574 	if (!lip)
575 		goto out_done_cursor;
576 
577 	XFS_STATS_INC(mp, xs_push_ail);
578 
579 	ASSERT(ailp->ail_target != NULLCOMMITLSN);
580 
581 	lsn = lip->li_lsn;
582 	while ((XFS_LSN_CMP(lip->li_lsn, ailp->ail_target) <= 0)) {
583 
584 		if (test_bit(XFS_LI_FLUSHING, &lip->li_flags))
585 			goto next_item;
586 
587 		xfsaild_process_logitem(ailp, lip, &stuck, &flushing);
588 		count++;
589 
590 		/*
591 		 * Are there too many items we can't do anything with?
592 		 *
593 		 * If we are skipping too many items because we can't flush
594 		 * them or they are already being flushed, we back off and
595 		 * given them time to complete whatever operation is being
596 		 * done. i.e. remove pressure from the AIL while we can't make
597 		 * progress so traversals don't slow down further inserts and
598 		 * removals to/from the AIL.
599 		 *
600 		 * The value of 100 is an arbitrary magic number based on
601 		 * observation.
602 		 */
603 		if (stuck > 100)
604 			break;
605 
606 next_item:
607 		lip = xfs_trans_ail_cursor_next(ailp, &cur);
608 		if (lip == NULL)
609 			break;
610 		if (lip->li_lsn != lsn && count > 1000)
611 			break;
612 		lsn = lip->li_lsn;
613 	}
614 
615 out_done_cursor:
616 	xfs_trans_ail_cursor_done(&cur);
617 out_done:
618 	spin_unlock(&ailp->ail_lock);
619 
620 	if (xfs_buf_delwri_submit_nowait(&ailp->ail_buf_list))
621 		ailp->ail_log_flush++;
622 
623 	if (!count || XFS_LSN_CMP(lsn, ailp->ail_target) >= 0) {
624 		/*
625 		 * We reached the target or the AIL is empty, so wait a bit
626 		 * longer for I/O to complete and remove pushed items from the
627 		 * AIL before we start the next scan from the start of the AIL.
628 		 */
629 		tout = 50;
630 		ailp->ail_last_pushed_lsn = 0;
631 	} else if (((stuck + flushing) * 100) / count > 90) {
632 		/*
633 		 * Either there is a lot of contention on the AIL or we are
634 		 * stuck due to operations in progress. "Stuck" in this case
635 		 * is defined as >90% of the items we tried to push were stuck.
636 		 *
637 		 * Backoff a bit more to allow some I/O to complete before
638 		 * restarting from the start of the AIL. This prevents us from
639 		 * spinning on the same items, and if they are pinned will all
640 		 * the restart to issue a log force to unpin the stuck items.
641 		 */
642 		tout = 20;
643 		ailp->ail_last_pushed_lsn = 0;
644 	} else {
645 		/*
646 		 * Assume we have more work to do in a short while.
647 		 */
648 		tout = 0;
649 	}
650 
651 	return tout;
652 }
653 
654 static int
655 xfsaild(
656 	void		*data)
657 {
658 	struct xfs_ail	*ailp = data;
659 	long		tout = 0;	/* milliseconds */
660 	unsigned int	noreclaim_flag;
661 
662 	noreclaim_flag = memalloc_noreclaim_save();
663 	set_freezable();
664 
665 	while (1) {
666 		/*
667 		 * Long waits of 50ms or more occur when we've run out of items
668 		 * to push, so we only want uninterruptible state if we're
669 		 * actually blocked on something.
670 		 */
671 		if (tout && tout <= 20)
672 			set_current_state(TASK_KILLABLE|TASK_FREEZABLE);
673 		else
674 			set_current_state(TASK_INTERRUPTIBLE|TASK_FREEZABLE);
675 
676 		/*
677 		 * Check kthread_should_stop() after we set the task state to
678 		 * guarantee that we either see the stop bit and exit or the
679 		 * task state is reset to runnable such that it's not scheduled
680 		 * out indefinitely and detects the stop bit at next iteration.
681 		 * A memory barrier is included in above task state set to
682 		 * serialize again kthread_stop().
683 		 */
684 		if (kthread_should_stop()) {
685 			__set_current_state(TASK_RUNNING);
686 
687 			/*
688 			 * The caller forces out the AIL before stopping the
689 			 * thread in the common case, which means the delwri
690 			 * queue is drained. In the shutdown case, the queue may
691 			 * still hold relogged buffers that haven't been
692 			 * submitted because they were pinned since added to the
693 			 * queue.
694 			 *
695 			 * Log I/O error processing stales the underlying buffer
696 			 * and clears the delwri state, expecting the buf to be
697 			 * removed on the next submission attempt. That won't
698 			 * happen if we're shutting down, so this is the last
699 			 * opportunity to release such buffers from the queue.
700 			 */
701 			ASSERT(list_empty(&ailp->ail_buf_list) ||
702 			       xlog_is_shutdown(ailp->ail_log));
703 			xfs_buf_delwri_cancel(&ailp->ail_buf_list);
704 			break;
705 		}
706 
707 		/* Idle if the AIL is empty. */
708 		spin_lock(&ailp->ail_lock);
709 		if (!xfs_ail_min(ailp) && list_empty(&ailp->ail_buf_list)) {
710 			spin_unlock(&ailp->ail_lock);
711 			schedule();
712 			tout = 0;
713 			continue;
714 		}
715 		spin_unlock(&ailp->ail_lock);
716 
717 		if (tout)
718 			schedule_timeout(msecs_to_jiffies(tout));
719 
720 		__set_current_state(TASK_RUNNING);
721 
722 		try_to_freeze();
723 
724 		tout = xfsaild_push(ailp);
725 	}
726 
727 	memalloc_noreclaim_restore(noreclaim_flag);
728 	return 0;
729 }
730 
731 /*
732  * Push out all items in the AIL immediately and wait until the AIL is empty.
733  */
734 void
735 xfs_ail_push_all_sync(
736 	struct xfs_ail  *ailp)
737 {
738 	DEFINE_WAIT(wait);
739 
740 	spin_lock(&ailp->ail_lock);
741 	while (xfs_ail_max(ailp) != NULL) {
742 		prepare_to_wait(&ailp->ail_empty, &wait, TASK_UNINTERRUPTIBLE);
743 		wake_up_process(ailp->ail_task);
744 		spin_unlock(&ailp->ail_lock);
745 		schedule();
746 		spin_lock(&ailp->ail_lock);
747 	}
748 	spin_unlock(&ailp->ail_lock);
749 
750 	finish_wait(&ailp->ail_empty, &wait);
751 }
752 
753 void
754 __xfs_ail_assign_tail_lsn(
755 	struct xfs_ail		*ailp)
756 {
757 	struct xlog		*log = ailp->ail_log;
758 	xfs_lsn_t		tail_lsn;
759 
760 	assert_spin_locked(&ailp->ail_lock);
761 
762 	if (xlog_is_shutdown(log))
763 		return;
764 
765 	tail_lsn = __xfs_ail_min_lsn(ailp);
766 	if (!tail_lsn)
767 		tail_lsn = ailp->ail_head_lsn;
768 
769 	WRITE_ONCE(log->l_tail_space,
770 			xlog_lsn_sub(log, ailp->ail_head_lsn, tail_lsn));
771 	trace_xfs_log_assign_tail_lsn(log, tail_lsn);
772 	atomic64_set(&log->l_tail_lsn, tail_lsn);
773 }
774 
775 /*
776  * Callers should pass the original tail lsn so that we can detect if the tail
777  * has moved as a result of the operation that was performed. If the caller
778  * needs to force a tail space update, it should pass NULLCOMMITLSN to bypass
779  * the "did the tail LSN change?" checks. If the caller wants to avoid a tail
780  * update (e.g. it knows the tail did not change) it should pass an @old_lsn of
781  * 0.
782  */
783 void
784 xfs_ail_update_finish(
785 	struct xfs_ail		*ailp,
786 	xfs_lsn_t		old_lsn) __releases(ailp->ail_lock)
787 {
788 	struct xlog		*log = ailp->ail_log;
789 
790 	/* If the tail lsn hasn't changed, don't do updates or wakeups. */
791 	if (!old_lsn || old_lsn == __xfs_ail_min_lsn(ailp)) {
792 		spin_unlock(&ailp->ail_lock);
793 		return;
794 	}
795 
796 	__xfs_ail_assign_tail_lsn(ailp);
797 	if (list_empty(&ailp->ail_head))
798 		wake_up_all(&ailp->ail_empty);
799 	spin_unlock(&ailp->ail_lock);
800 	xfs_log_space_wake(log->l_mp);
801 }
802 
803 /*
804  * xfs_trans_ail_update_bulk - bulk AIL insertion operation.
805  *
806  * @xfs_trans_ail_update_bulk takes an array of log items that all need to be
807  * positioned at the same LSN in the AIL. If an item is not in the AIL, it will
808  * be added. Otherwise, it will be repositioned by removing it and re-adding
809  * it to the AIL.
810  *
811  * If we move the first item in the AIL, update the log tail to match the new
812  * minimum LSN in the AIL.
813  *
814  * This function should be called with the AIL lock held.
815  *
816  * To optimise the insert operation, we add all items to a temporary list, then
817  * splice this list into the correct position in the AIL.
818  *
819  * Items that are already in the AIL are first deleted from their current
820  * location before being added to the temporary list.
821  *
822  * This avoids needing to do an insert operation on every item.
823  *
824  * The AIL lock is dropped by xfs_ail_update_finish() before returning to
825  * the caller.
826  */
827 void
828 xfs_trans_ail_update_bulk(
829 	struct xfs_ail		*ailp,
830 	struct xfs_ail_cursor	*cur,
831 	struct xfs_log_item	**log_items,
832 	int			nr_items,
833 	xfs_lsn_t		lsn) __releases(ailp->ail_lock)
834 {
835 	struct xfs_log_item	*mlip;
836 	xfs_lsn_t		tail_lsn = 0;
837 	int			i;
838 	LIST_HEAD(tmp);
839 
840 	ASSERT(nr_items > 0);		/* Not required, but true. */
841 	mlip = xfs_ail_min(ailp);
842 
843 	for (i = 0; i < nr_items; i++) {
844 		struct xfs_log_item *lip = log_items[i];
845 		if (test_and_set_bit(XFS_LI_IN_AIL, &lip->li_flags)) {
846 			/* check if we really need to move the item */
847 			if (XFS_LSN_CMP(lsn, lip->li_lsn) <= 0)
848 				continue;
849 
850 			trace_xfs_ail_move(lip, lip->li_lsn, lsn);
851 			if (mlip == lip && !tail_lsn)
852 				tail_lsn = lip->li_lsn;
853 
854 			xfs_ail_delete(ailp, lip);
855 		} else {
856 			trace_xfs_ail_insert(lip, 0, lsn);
857 		}
858 		lip->li_lsn = lsn;
859 		list_add_tail(&lip->li_ail, &tmp);
860 	}
861 
862 	if (!list_empty(&tmp))
863 		xfs_ail_splice(ailp, cur, &tmp, lsn);
864 
865 	/*
866 	 * If this is the first insert, wake up the push daemon so it can
867 	 * actively scan for items to push. We also need to do a log tail
868 	 * LSN update to ensure that it is correctly tracked by the log, so
869 	 * set the tail_lsn to NULLCOMMITLSN so that xfs_ail_update_finish()
870 	 * will see that the tail lsn has changed and will update the tail
871 	 * appropriately.
872 	 */
873 	if (!mlip) {
874 		wake_up_process(ailp->ail_task);
875 		tail_lsn = NULLCOMMITLSN;
876 	}
877 
878 	xfs_ail_update_finish(ailp, tail_lsn);
879 }
880 
881 /* Insert a log item into the AIL. */
882 void
883 xfs_trans_ail_insert(
884 	struct xfs_ail		*ailp,
885 	struct xfs_log_item	*lip,
886 	xfs_lsn_t		lsn)
887 {
888 	spin_lock(&ailp->ail_lock);
889 	xfs_trans_ail_update_bulk(ailp, NULL, &lip, 1, lsn);
890 }
891 
892 /*
893  * Delete one log item from the AIL.
894  *
895  * If this item was at the tail of the AIL, return the LSN of the log item so
896  * that we can use it to check if the LSN of the tail of the log has moved
897  * when finishing up the AIL delete process in xfs_ail_update_finish().
898  */
899 xfs_lsn_t
900 xfs_ail_delete_one(
901 	struct xfs_ail		*ailp,
902 	struct xfs_log_item	*lip)
903 		__must_hold(&ailp->ail_lock)
904 {
905 	struct xfs_log_item	*mlip = xfs_ail_min(ailp);
906 	xfs_lsn_t		lsn = lip->li_lsn;
907 
908 	trace_xfs_ail_delete(lip, mlip->li_lsn, lip->li_lsn);
909 	xfs_ail_delete(ailp, lip);
910 	clear_bit(XFS_LI_IN_AIL, &lip->li_flags);
911 	lip->li_lsn = 0;
912 
913 	if (mlip == lip)
914 		return lsn;
915 	return 0;
916 }
917 
918 void
919 xfs_trans_ail_delete(
920 	struct xfs_log_item	*lip,
921 	int			shutdown_type)
922 {
923 	struct xfs_ail		*ailp = lip->li_ailp;
924 	struct xlog		*log = ailp->ail_log;
925 	xfs_lsn_t		tail_lsn;
926 
927 	spin_lock(&ailp->ail_lock);
928 	if (!test_bit(XFS_LI_IN_AIL, &lip->li_flags)) {
929 		spin_unlock(&ailp->ail_lock);
930 		if (shutdown_type && !xlog_is_shutdown(log)) {
931 			xfs_alert_tag(log->l_mp, XFS_PTAG_AILDELETE,
932 	"%s: attempting to delete a log item that is not in the AIL",
933 					__func__);
934 			xlog_force_shutdown(log, shutdown_type);
935 		}
936 		return;
937 	}
938 
939 	clear_bit(XFS_LI_FAILED, &lip->li_flags);
940 	tail_lsn = xfs_ail_delete_one(ailp, lip);
941 	xfs_ail_update_finish(ailp, tail_lsn);	/* drops the AIL lock */
942 }
943 
944 int
945 xfs_trans_ail_init(
946 	xfs_mount_t	*mp)
947 {
948 	struct xfs_ail	*ailp;
949 
950 	ailp = kzalloc_obj(struct xfs_ail, GFP_KERNEL | __GFP_RETRY_MAYFAIL);
951 	if (!ailp)
952 		return -ENOMEM;
953 
954 	ailp->ail_log = mp->m_log;
955 	INIT_LIST_HEAD(&ailp->ail_head);
956 	INIT_LIST_HEAD(&ailp->ail_cursors);
957 	spin_lock_init(&ailp->ail_lock);
958 	INIT_LIST_HEAD(&ailp->ail_buf_list);
959 	init_waitqueue_head(&ailp->ail_empty);
960 
961 	ailp->ail_task = kthread_run(xfsaild, ailp, "xfsaild/%s",
962 				mp->m_super->s_id);
963 	if (IS_ERR(ailp->ail_task))
964 		goto out_free_ailp;
965 
966 	mp->m_ail = ailp;
967 	return 0;
968 
969 out_free_ailp:
970 	kfree(ailp);
971 	return -ENOMEM;
972 }
973 
974 void
975 xfs_trans_ail_destroy(
976 	xfs_mount_t	*mp)
977 {
978 	struct xfs_ail	*ailp = mp->m_ail;
979 
980 	kthread_stop(ailp->ail_task);
981 	kfree(ailp);
982 }
983