1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * fs/fs-writeback.c
4 *
5 * Copyright (C) 2002, Linus Torvalds.
6 *
7 * Contains all the functions related to writing back and waiting
8 * upon dirty inodes against superblocks, and writing back dirty
9 * pages against inodes. ie: data writeback. Writeout of the
10 * inode itself is not handled here.
11 *
12 * 10Apr2002 Andrew Morton
13 * Split out of fs/inode.c
14 * Additions for address_space-based writeback
15 */
16
17 #include <linux/sched/sysctl.h>
18 #include <linux/kernel.h>
19 #include <linux/export.h>
20 #include <linux/spinlock.h>
21 #include <linux/slab.h>
22 #include <linux/sched.h>
23 #include <linux/fs.h>
24 #include <linux/mm.h>
25 #include <linux/pagemap.h>
26 #include <linux/kthread.h>
27 #include <linux/writeback.h>
28 #include <linux/blk_plug.h>
29 #include <linux/backing-dev.h>
30 #include <linux/tracepoint.h>
31 #include <linux/device.h>
32 #include <linux/memcontrol.h>
33 #include "internal.h"
34
35 /*
36 * Passed into wb_writeback(), essentially a subset of writeback_control
37 */
38 struct wb_writeback_work {
39 long nr_pages;
40 struct super_block *sb;
41 enum writeback_sync_modes sync_mode;
42 unsigned int tagged_writepages:1;
43 unsigned int for_kupdate:1;
44 unsigned int range_cyclic:1;
45 unsigned int for_background:1;
46 unsigned int for_sync:1; /* sync(2) WB_SYNC_ALL writeback */
47 unsigned int auto_free:1; /* free on completion */
48 enum wb_reason reason; /* why was writeback initiated? */
49
50 struct list_head list; /* pending work list */
51 struct wb_completion *done; /* set if the caller waits */
52 };
53
54 /*
55 * If an inode is constantly having its pages dirtied, but then the
56 * updates stop dirtytime_expire_interval seconds in the past, it's
57 * possible for the worst case time between when an inode has its
58 * timestamps updated and when they finally get written out to be two
59 * dirtytime_expire_intervals. We set the default to 12 hours (in
60 * seconds), which means most of the time inodes will have their
61 * timestamps written to disk after 12 hours, but in the worst case a
62 * few inodes might not their timestamps updated for 24 hours.
63 */
64 static unsigned int dirtytime_expire_interval = 12 * 60 * 60;
65
wb_inode(struct list_head * head)66 static inline struct inode *wb_inode(struct list_head *head)
67 {
68 return list_entry(head, struct inode, i_io_list);
69 }
70
71 /*
72 * Include the creation of the trace points after defining the
73 * wb_writeback_work structure and inline functions so that the definition
74 * remains local to this file.
75 */
76 #define CREATE_TRACE_POINTS
77 #include <trace/events/writeback.h>
78
79 EXPORT_TRACEPOINT_SYMBOL_GPL(wbc_writepage);
80
wb_io_lists_populated(struct bdi_writeback * wb)81 static bool wb_io_lists_populated(struct bdi_writeback *wb)
82 {
83 if (wb_has_dirty_io(wb)) {
84 return false;
85 } else {
86 set_bit(WB_has_dirty_io, &wb->state);
87 WARN_ON_ONCE(!wb->avg_write_bandwidth);
88 atomic_long_add(wb->avg_write_bandwidth,
89 &wb->bdi->tot_write_bandwidth);
90 return true;
91 }
92 }
93
wb_io_lists_depopulated(struct bdi_writeback * wb)94 static void wb_io_lists_depopulated(struct bdi_writeback *wb)
95 {
96 if (wb_has_dirty_io(wb) && list_empty(&wb->b_dirty) &&
97 list_empty(&wb->b_io) && list_empty(&wb->b_more_io)) {
98 clear_bit(WB_has_dirty_io, &wb->state);
99 WARN_ON_ONCE(atomic_long_sub_return(wb->avg_write_bandwidth,
100 &wb->bdi->tot_write_bandwidth) < 0);
101 }
102 }
103
104 /**
105 * inode_io_list_move_locked - move an inode onto a bdi_writeback IO list
106 * @inode: inode to be moved
107 * @wb: target bdi_writeback
108 * @head: one of @wb->b_{dirty|io|more_io|dirty_time}
109 *
110 * Move @inode->i_io_list to @list of @wb and set %WB_has_dirty_io.
111 * Returns %true if @inode is the first occupant of the !dirty_time IO
112 * lists; otherwise, %false.
113 */
inode_io_list_move_locked(struct inode * inode,struct bdi_writeback * wb,struct list_head * head)114 static bool inode_io_list_move_locked(struct inode *inode,
115 struct bdi_writeback *wb,
116 struct list_head *head)
117 {
118 assert_spin_locked(&wb->list_lock);
119 assert_spin_locked(&inode->i_lock);
120 WARN_ON_ONCE(inode_state_read(inode) & I_FREEING);
121
122 list_move(&inode->i_io_list, head);
123
124 /* dirty_time doesn't count as dirty_io until expiration */
125 if (head != &wb->b_dirty_time)
126 return wb_io_lists_populated(wb);
127
128 wb_io_lists_depopulated(wb);
129 return false;
130 }
131
wb_wakeup(struct bdi_writeback * wb)132 static void wb_wakeup(struct bdi_writeback *wb)
133 {
134 spin_lock_irq(&wb->work_lock);
135 if (test_bit(WB_registered, &wb->state))
136 mod_delayed_work(bdi_wq, &wb->dwork, 0);
137 spin_unlock_irq(&wb->work_lock);
138 }
139
140 /*
141 * This function is used when the first inode for this wb is marked dirty. It
142 * wakes-up the corresponding bdi thread which should then take care of the
143 * periodic background write-out of dirty inodes. Since the write-out would
144 * starts only 'dirty_writeback_interval' centisecs from now anyway, we just
145 * set up a timer which wakes the bdi thread up later.
146 *
147 * Note, we wouldn't bother setting up the timer, but this function is on the
148 * fast-path (used by '__mark_inode_dirty()'), so we save few context switches
149 * by delaying the wake-up.
150 *
151 * We have to be careful not to postpone flush work if it is scheduled for
152 * earlier. Thus we use queue_delayed_work().
153 */
wb_wakeup_delayed(struct bdi_writeback * wb)154 static void wb_wakeup_delayed(struct bdi_writeback *wb)
155 {
156 unsigned long timeout;
157
158 timeout = msecs_to_jiffies(dirty_writeback_interval * 10);
159 spin_lock_irq(&wb->work_lock);
160 if (test_bit(WB_registered, &wb->state))
161 queue_delayed_work(bdi_wq, &wb->dwork, timeout);
162 spin_unlock_irq(&wb->work_lock);
163 }
164
finish_writeback_work(struct wb_writeback_work * work)165 static void finish_writeback_work(struct wb_writeback_work *work)
166 {
167 struct wb_completion *done = work->done;
168
169 if (work->auto_free)
170 kfree(work);
171 if (done) {
172 wait_queue_head_t *waitq = done->waitq;
173
174 /* @done can't be accessed after the following dec */
175 if (atomic_dec_and_test(&done->cnt))
176 wake_up_all(waitq);
177 }
178 }
179
wb_queue_work(struct bdi_writeback * wb,struct wb_writeback_work * work)180 static void wb_queue_work(struct bdi_writeback *wb,
181 struct wb_writeback_work *work)
182 {
183 trace_writeback_queue(wb, work);
184
185 if (work->done)
186 atomic_inc(&work->done->cnt);
187
188 spin_lock_irq(&wb->work_lock);
189
190 if (test_bit(WB_registered, &wb->state)) {
191 list_add_tail(&work->list, &wb->work_list);
192 mod_delayed_work(bdi_wq, &wb->dwork, 0);
193 } else
194 finish_writeback_work(work);
195
196 spin_unlock_irq(&wb->work_lock);
197 }
198
wb_wait_for_completion_cb(struct wb_completion * done)199 static bool wb_wait_for_completion_cb(struct wb_completion *done)
200 {
201 unsigned long timeout = sysctl_hung_task_timeout_secs;
202 unsigned long waited_secs = (jiffies - done->wait_start) / HZ;
203
204 done->progress_stamp = jiffies;
205 if (timeout && (waited_secs > timeout))
206 pr_info("INFO: The task %s:%d has been waiting for writeback "
207 "completion for more than %lu seconds.",
208 current->comm, current->pid, waited_secs);
209
210 return !atomic_read(&done->cnt);
211 }
212
213 /**
214 * wb_wait_for_completion - wait for completion of bdi_writeback_works
215 * @done: target wb_completion
216 *
217 * Wait for one or more work items issued to @bdi with their ->done field
218 * set to @done, which should have been initialized with
219 * DEFINE_WB_COMPLETION(). This function returns after all such work items
220 * are completed. Work items which are waited upon aren't freed
221 * automatically on completion.
222 */
wb_wait_for_completion(struct wb_completion * done)223 void wb_wait_for_completion(struct wb_completion *done)
224 {
225 done->wait_start = jiffies;
226 atomic_dec(&done->cnt); /* put down the initial count */
227 wait_event(*done->waitq, wb_wait_for_completion_cb(done));
228 }
229
230 #ifdef CONFIG_CGROUP_WRITEBACK
231
232 /*
233 * Parameters for foreign inode detection, see wbc_detach_inode() to see
234 * how they're used.
235 *
236 * These paramters are inherently heuristical as the detection target
237 * itself is fuzzy. All we want to do is detaching an inode from the
238 * current owner if it's being written to by some other cgroups too much.
239 *
240 * The current cgroup writeback is built on the assumption that multiple
241 * cgroups writing to the same inode concurrently is very rare and a mode
242 * of operation which isn't well supported. As such, the goal is not
243 * taking too long when a different cgroup takes over an inode while
244 * avoiding too aggressive flip-flops from occasional foreign writes.
245 *
246 * We record, very roughly, 2s worth of IO time history and if more than
247 * half of that is foreign, trigger the switch. The recording is quantized
248 * to 16 slots. To avoid tiny writes from swinging the decision too much,
249 * writes smaller than 1/8 of avg size are ignored.
250 */
251 #define WB_FRN_TIME_SHIFT 13 /* 1s = 2^13, upto 8 secs w/ 16bit */
252 #define WB_FRN_TIME_AVG_SHIFT 3 /* avg = avg * 7/8 + new * 1/8 */
253 #define WB_FRN_TIME_CUT_DIV 8 /* ignore rounds < avg / 8 */
254 #define WB_FRN_TIME_PERIOD (2 * (1 << WB_FRN_TIME_SHIFT)) /* 2s */
255
256 #define WB_FRN_HIST_SLOTS 16 /* inode->i_wb_frn_history is 16bit */
257 #define WB_FRN_HIST_UNIT (WB_FRN_TIME_PERIOD / WB_FRN_HIST_SLOTS)
258 /* each slot's duration is 2s / 16 */
259 #define WB_FRN_HIST_THR_SLOTS (WB_FRN_HIST_SLOTS / 2)
260 /* if foreign slots >= 8, switch */
261 #define WB_FRN_HIST_MAX_SLOTS (WB_FRN_HIST_THR_SLOTS / 2 + 1)
262 /* one round can affect upto 5 slots */
263 #define WB_FRN_MAX_IN_FLIGHT 1024 /* don't queue too many concurrently */
264
265 /*
266 * Maximum inodes per isw. A specific value has been chosen to make
267 * struct inode_switch_wbs_context fit into 1024 bytes kmalloc.
268 */
269 #define WB_MAX_INODES_PER_ISW ((1024UL - sizeof(struct inode_switch_wbs_context)) \
270 / sizeof(struct inode *))
271
272 static atomic_t isw_nr_in_flight = ATOMIC_INIT(0);
273 static struct workqueue_struct *isw_wq;
274
__inode_attach_wb(struct inode * inode,struct folio * folio)275 void __inode_attach_wb(struct inode *inode, struct folio *folio)
276 {
277 struct backing_dev_info *bdi = inode_to_bdi(inode);
278 struct bdi_writeback *wb = NULL;
279
280 if (inode_cgwb_enabled(inode)) {
281 struct cgroup_subsys_state *memcg_css;
282
283 /* must pin memcg_css, see wb_get_create() */
284 if (folio)
285 memcg_css = get_mem_cgroup_css_from_folio(folio);
286 else
287 memcg_css = task_get_css(current, memory_cgrp_id);
288 wb = wb_get_create(bdi, memcg_css, GFP_ATOMIC);
289 css_put(memcg_css);
290 }
291
292 if (!wb)
293 wb = &bdi->wb;
294
295 /*
296 * There may be multiple instances of this function racing to
297 * update the same inode. Use cmpxchg() to tell the winner.
298 */
299 if (unlikely(cmpxchg(&inode->i_wb, NULL, wb)))
300 wb_put(wb);
301 }
302 EXPORT_SYMBOL_GPL(__inode_attach_wb);
303
304 /**
305 * inode_cgwb_move_to_attached - put the inode onto wb->b_attached list
306 * @inode: inode of interest with i_lock held
307 * @wb: target bdi_writeback
308 *
309 * Remove the inode from wb's io lists and if necessarily put onto b_attached
310 * list. Only inodes attached to cgwb's are kept on this list.
311 */
inode_cgwb_move_to_attached(struct inode * inode,struct bdi_writeback * wb)312 static void inode_cgwb_move_to_attached(struct inode *inode,
313 struct bdi_writeback *wb)
314 {
315 assert_spin_locked(&wb->list_lock);
316 assert_spin_locked(&inode->i_lock);
317 WARN_ON_ONCE(inode_state_read(inode) & I_FREEING);
318
319 inode_state_clear(inode, I_SYNC_QUEUED);
320 if (wb != &wb->bdi->wb)
321 list_move(&inode->i_io_list, &wb->b_attached);
322 else
323 list_del_init(&inode->i_io_list);
324 wb_io_lists_depopulated(wb);
325 }
326
327 /**
328 * locked_inode_to_wb_and_lock_list - determine a locked inode's wb and lock it
329 * @inode: inode of interest with i_lock held
330 *
331 * Returns @inode's wb with its list_lock held. @inode->i_lock must be
332 * held on entry and is released on return. The returned wb is guaranteed
333 * to stay @inode's associated wb until its list_lock is released.
334 */
335 static struct bdi_writeback *
locked_inode_to_wb_and_lock_list(struct inode * inode)336 locked_inode_to_wb_and_lock_list(struct inode *inode)
337 __releases(&inode->i_lock)
338 __acquires(&wb->list_lock)
339 {
340 while (true) {
341 struct bdi_writeback *wb = inode_to_wb(inode);
342
343 /*
344 * inode_to_wb() association is protected by both
345 * @inode->i_lock and @wb->list_lock but list_lock nests
346 * outside i_lock. Drop i_lock and verify that the
347 * association hasn't changed after acquiring list_lock.
348 */
349 wb_get(wb);
350 spin_unlock(&inode->i_lock);
351 spin_lock(&wb->list_lock);
352
353 /* i_wb may have changed inbetween, can't use inode_to_wb() */
354 if (likely(wb == inode->i_wb)) {
355 wb_put(wb); /* @inode already has ref */
356 return wb;
357 }
358
359 spin_unlock(&wb->list_lock);
360 wb_put(wb);
361 cpu_relax();
362 spin_lock(&inode->i_lock);
363 }
364 }
365
366 /**
367 * inode_to_wb_and_lock_list - determine an inode's wb and lock it
368 * @inode: inode of interest
369 *
370 * Same as locked_inode_to_wb_and_lock_list() but @inode->i_lock isn't held
371 * on entry.
372 */
inode_to_wb_and_lock_list(struct inode * inode)373 static struct bdi_writeback *inode_to_wb_and_lock_list(struct inode *inode)
374 __acquires(&wb->list_lock)
375 {
376 spin_lock(&inode->i_lock);
377 return locked_inode_to_wb_and_lock_list(inode);
378 }
379
380 struct inode_switch_wbs_context {
381 /* List of queued switching contexts for the wb */
382 struct llist_node list;
383
384 /*
385 * Multiple inodes can be switched at once. The switching procedure
386 * consists of two parts, separated by a RCU grace period. To make
387 * sure that the second part is executed for each inode gone through
388 * the first part, all inode pointers are placed into a NULL-terminated
389 * array embedded into struct inode_switch_wbs_context. Otherwise
390 * an inode could be left in a non-consistent state.
391 */
392 struct inode *inodes[];
393 };
394
bdi_down_write_wb_switch_rwsem(struct backing_dev_info * bdi)395 static void bdi_down_write_wb_switch_rwsem(struct backing_dev_info *bdi)
396 {
397 down_write(&bdi->wb_switch_rwsem);
398 }
399
bdi_up_write_wb_switch_rwsem(struct backing_dev_info * bdi)400 static void bdi_up_write_wb_switch_rwsem(struct backing_dev_info *bdi)
401 {
402 up_write(&bdi->wb_switch_rwsem);
403 }
404
inode_do_switch_wbs(struct inode * inode,struct bdi_writeback * old_wb,struct bdi_writeback * new_wb)405 static bool inode_do_switch_wbs(struct inode *inode,
406 struct bdi_writeback *old_wb,
407 struct bdi_writeback *new_wb)
408 {
409 struct address_space *mapping = inode->i_mapping;
410 XA_STATE(xas, &mapping->i_pages, 0);
411 struct folio *folio;
412 bool switched = false;
413
414 spin_lock(&inode->i_lock);
415 xa_lock_irq(&mapping->i_pages);
416
417 /*
418 * Once I_FREEING or I_WILL_FREE are visible under i_lock, the eviction
419 * path owns the inode and we shouldn't modify ->i_io_list.
420 */
421 if (unlikely(inode_state_read(inode) & (I_FREEING | I_WILL_FREE)))
422 goto skip_switch;
423
424 trace_inode_switch_wbs(inode, old_wb, new_wb);
425
426 /*
427 * Count and transfer stats. Note that PAGECACHE_TAG_DIRTY points
428 * to possibly dirty folios while PAGECACHE_TAG_WRITEBACK points to
429 * folios actually under writeback.
430 */
431 xas_for_each_marked(&xas, folio, ULONG_MAX, PAGECACHE_TAG_DIRTY) {
432 if (folio_test_dirty(folio)) {
433 long nr = folio_nr_pages(folio);
434 wb_stat_mod(old_wb, WB_RECLAIMABLE, -nr);
435 wb_stat_mod(new_wb, WB_RECLAIMABLE, nr);
436 if (folio_test_dropbehind(folio)) {
437 wb_stat_mod(old_wb, WB_DONTCACHE_DIRTY, -nr);
438 wb_stat_mod(new_wb, WB_DONTCACHE_DIRTY, nr);
439 }
440 }
441 }
442
443 xas_set(&xas, 0);
444 xas_for_each_marked(&xas, folio, ULONG_MAX, PAGECACHE_TAG_WRITEBACK) {
445 long nr = folio_nr_pages(folio);
446 WARN_ON_ONCE(!folio_test_writeback(folio));
447 wb_stat_mod(old_wb, WB_WRITEBACK, -nr);
448 wb_stat_mod(new_wb, WB_WRITEBACK, nr);
449 }
450
451 if (mapping_tagged(mapping, PAGECACHE_TAG_WRITEBACK)) {
452 atomic_dec(&old_wb->writeback_inodes);
453 atomic_inc(&new_wb->writeback_inodes);
454 }
455
456 wb_get(new_wb);
457
458 /*
459 * Transfer to @new_wb's IO list if necessary. If the @inode is dirty,
460 * the specific list @inode was on is ignored and the @inode is put on
461 * ->b_dirty which is always correct including from ->b_dirty_time.
462 * If the @inode was clean, it means it was on the b_attached list, so
463 * move it onto the b_attached list of @new_wb.
464 */
465 if (!list_empty(&inode->i_io_list)) {
466 inode->i_wb = new_wb;
467
468 if (inode_state_read(inode) & I_DIRTY_ALL) {
469 /*
470 * We need to keep b_dirty list sorted by
471 * dirtied_time_when. However properly sorting the
472 * inode in the list gets too expensive when switching
473 * many inodes. So just attach inode at the end of the
474 * dirty list and clobber the dirtied_time_when.
475 */
476 inode->dirtied_time_when = jiffies;
477 inode_io_list_move_locked(inode, new_wb,
478 &new_wb->b_dirty);
479 } else {
480 inode_cgwb_move_to_attached(inode, new_wb);
481 }
482 } else {
483 inode->i_wb = new_wb;
484 }
485
486 /* ->i_wb_frn updates may race wbc_detach_inode() but doesn't matter */
487 inode->i_wb_frn_winner = 0;
488 inode->i_wb_frn_avg_time = 0;
489 inode->i_wb_frn_history = 0;
490 switched = true;
491 skip_switch:
492 /*
493 * Paired with an acquire fence in unlocked_inode_to_wb_begin() and
494 * ensures that the new wb is visible if they see !I_WB_SWITCH.
495 */
496 smp_wmb();
497 inode_state_clear(inode, I_WB_SWITCH);
498
499 xa_unlock_irq(&mapping->i_pages);
500 spin_unlock(&inode->i_lock);
501
502 return switched;
503 }
504
cgroup_writeback_pin(struct super_block * sb)505 static inline void cgroup_writeback_pin(struct super_block *sb)
506 {
507 atomic_inc(&sb->s_isw_nr_in_flight);
508 }
509
cgroup_writeback_unpin(struct super_block * sb)510 static inline void cgroup_writeback_unpin(struct super_block *sb)
511 {
512 if (atomic_dec_and_test(&sb->s_isw_nr_in_flight))
513 wake_up_var(&sb->s_isw_nr_in_flight);
514 }
515
cgroup_writeback_drain(struct super_block * sb)516 static inline void cgroup_writeback_drain(struct super_block *sb)
517 {
518 wait_var_event(&sb->s_isw_nr_in_flight,
519 !atomic_read(&sb->s_isw_nr_in_flight));
520 }
521
process_inode_switch_wbs(struct bdi_writeback * new_wb,struct inode_switch_wbs_context * isw)522 static void process_inode_switch_wbs(struct bdi_writeback *new_wb,
523 struct inode_switch_wbs_context *isw)
524 {
525 struct backing_dev_info *bdi = inode_to_bdi(isw->inodes[0]);
526 struct bdi_writeback *old_wb = isw->inodes[0]->i_wb;
527 unsigned long nr_switched = 0;
528 struct inode **inodep;
529
530 /*
531 * If @inode switches cgwb membership while sync_inodes_sb() is
532 * being issued, sync_inodes_sb() might miss it. Synchronize.
533 */
534 down_read(&bdi->wb_switch_rwsem);
535
536 inodep = isw->inodes;
537 /*
538 * By the time control reaches here, RCU grace period has passed
539 * since I_WB_SWITCH assertion and all wb stat update transactions
540 * between unlocked_inode_to_wb_begin/end() are guaranteed to be
541 * synchronizing against the i_pages lock.
542 *
543 * Grabbing old_wb->list_lock, inode->i_lock and the i_pages lock
544 * gives us exclusion against all wb related operations on @inode
545 * including IO list manipulations and stat updates.
546 */
547 relock:
548 if (old_wb < new_wb) {
549 spin_lock(&old_wb->list_lock);
550 spin_lock_nested(&new_wb->list_lock, SINGLE_DEPTH_NESTING);
551 } else {
552 spin_lock(&new_wb->list_lock);
553 spin_lock_nested(&old_wb->list_lock, SINGLE_DEPTH_NESTING);
554 }
555
556 while (*inodep) {
557 WARN_ON_ONCE((*inodep)->i_wb != old_wb);
558 if (inode_do_switch_wbs(*inodep, old_wb, new_wb))
559 nr_switched++;
560 inodep++;
561 if (*inodep && need_resched()) {
562 spin_unlock(&new_wb->list_lock);
563 spin_unlock(&old_wb->list_lock);
564 cond_resched();
565 goto relock;
566 }
567 }
568
569 spin_unlock(&new_wb->list_lock);
570 spin_unlock(&old_wb->list_lock);
571
572 up_read(&bdi->wb_switch_rwsem);
573
574 if (nr_switched) {
575 wb_wakeup(new_wb);
576 wb_put_many(old_wb, nr_switched);
577 }
578
579 for (inodep = isw->inodes; *inodep; inodep++) {
580 struct super_block *sb = (*inodep)->i_sb;
581
582 iput(*inodep);
583 cgroup_writeback_unpin(sb);
584 }
585 wb_put(new_wb);
586 kfree(isw);
587 atomic_dec(&isw_nr_in_flight);
588 }
589
inode_switch_wbs_work_fn(struct work_struct * work)590 void inode_switch_wbs_work_fn(struct work_struct *work)
591 {
592 struct bdi_writeback *new_wb = container_of(work, struct bdi_writeback,
593 switch_work);
594 struct inode_switch_wbs_context *isw, *next_isw;
595 struct llist_node *list;
596
597 list = llist_del_all(&new_wb->switch_wbs_ctxs);
598 /*
599 * Nothing to do? That would be a problem as references held by isw
600 * items protect wb from freeing...
601 */
602 if (WARN_ON_ONCE(!list))
603 return;
604
605 /*
606 * Grab our reference to wb so that it cannot get freed under us
607 * after we process all the isw items.
608 */
609 wb_get(new_wb);
610 /*
611 * In addition to synchronizing among switchers, I_WB_SWITCH
612 * tells the RCU protected stat update paths to grab the i_page
613 * lock so that stat transfer can synchronize against them.
614 * Let's continue after I_WB_SWITCH is guaranteed to be
615 * visible.
616 */
617 synchronize_rcu();
618
619 llist_for_each_entry_safe(isw, next_isw, list, list)
620 process_inode_switch_wbs(new_wb, isw);
621 wb_put(new_wb);
622 }
623
inode_prepare_wbs_switch(struct inode * inode,struct bdi_writeback * new_wb)624 static bool inode_prepare_wbs_switch(struct inode *inode,
625 struct bdi_writeback *new_wb)
626 {
627 /* Avoid the atomic_inc/smp_mb dance once SB_ACTIVE is gone. */
628 if (!(inode->i_sb->s_flags & SB_ACTIVE))
629 return false;
630
631 /*
632 * Pairs with smp_mb() in cgroup_writeback_umount(): the umounter either
633 * sees a non-zero counter and waits, or we see SB_ACTIVE clear below.
634 */
635 cgroup_writeback_pin(inode->i_sb);
636 smp_mb();
637
638 if (IS_DAX(inode))
639 goto out_unpin;
640
641 /* while holding I_WB_SWITCH, no one else can update the association */
642 spin_lock(&inode->i_lock);
643 if (!(inode->i_sb->s_flags & SB_ACTIVE) ||
644 inode_state_read(inode) & (I_WB_SWITCH | I_FREEING | I_WILL_FREE) ||
645 inode_to_wb(inode) == new_wb) {
646 spin_unlock(&inode->i_lock);
647 goto out_unpin;
648 }
649 inode_state_set(inode, I_WB_SWITCH);
650 __iget(inode);
651 spin_unlock(&inode->i_lock);
652
653 return true;
654
655 out_unpin:
656 cgroup_writeback_unpin(inode->i_sb);
657 return false;
658 }
659
wb_queue_isw(struct bdi_writeback * wb,struct inode_switch_wbs_context * isw)660 static void wb_queue_isw(struct bdi_writeback *wb,
661 struct inode_switch_wbs_context *isw)
662 {
663 if (llist_add(&isw->list, &wb->switch_wbs_ctxs))
664 queue_work(isw_wq, &wb->switch_work);
665 }
666
667 /**
668 * inode_switch_wbs - change the wb association of an inode
669 * @inode: target inode
670 * @new_wb_id: ID of the new wb
671 *
672 * Switch @inode's wb association to the wb identified by @new_wb_id. The
673 * switching is performed asynchronously and may fail silently.
674 */
inode_switch_wbs(struct inode * inode,int new_wb_id)675 static void inode_switch_wbs(struct inode *inode, int new_wb_id)
676 {
677 struct backing_dev_info *bdi = inode_to_bdi(inode);
678 struct cgroup_subsys_state *memcg_css;
679 struct inode_switch_wbs_context *isw;
680 struct bdi_writeback *new_wb = NULL;
681
682 /* noop if seems to be already in progress */
683 if (inode_state_read_once(inode) & I_WB_SWITCH)
684 return;
685
686 /* avoid queueing a new switch if too many are already in flight */
687 if (atomic_read(&isw_nr_in_flight) > WB_FRN_MAX_IN_FLIGHT)
688 return;
689
690 isw = kzalloc_flex(*isw, inodes, 2, GFP_ATOMIC);
691 if (!isw)
692 return;
693
694 atomic_inc(&isw_nr_in_flight);
695
696 /* find and pin the new wb */
697 rcu_read_lock();
698 memcg_css = css_from_id(new_wb_id, &memory_cgrp_subsys);
699 if (memcg_css && !css_tryget(memcg_css))
700 memcg_css = NULL;
701 rcu_read_unlock();
702 if (!memcg_css)
703 goto out_free;
704
705 new_wb = wb_get_create(bdi, memcg_css, GFP_ATOMIC);
706 css_put(memcg_css);
707 if (!new_wb)
708 goto out_free;
709
710 if (!inode_prepare_wbs_switch(inode, new_wb))
711 goto out_free;
712
713 isw->inodes[0] = inode;
714
715 trace_inode_switch_wbs_queue(inode->i_wb, new_wb, 1);
716 wb_queue_isw(new_wb, isw);
717 return;
718
719 out_free:
720 atomic_dec(&isw_nr_in_flight);
721 if (new_wb)
722 wb_put(new_wb);
723 kfree(isw);
724 }
725
isw_prepare_wbs_switch(struct bdi_writeback * new_wb,struct inode_switch_wbs_context * isw,struct list_head * list,int * nr)726 static bool isw_prepare_wbs_switch(struct bdi_writeback *new_wb,
727 struct inode_switch_wbs_context *isw,
728 struct list_head *list, int *nr)
729 {
730 struct inode *inode, *tmp;
731 LIST_HEAD(scanned);
732 bool full = false;
733
734 /*
735 * Walk from the oldest end and move scanned inodes to the newest
736 * end, so the next scan resumes at unscanned inodes instead of
737 * re-walking an ever-growing run of prepared and skipped ones.
738 * For b_dirty_time this keeps the oldest unscanned inode at the
739 * end move_expired_inodes() picks from; b_attached is unordered.
740 */
741 list_for_each_entry_safe_reverse(inode, tmp, list, i_io_list) {
742 list_move(&inode->i_io_list, &scanned);
743
744 if (!inode_prepare_wbs_switch(inode, new_wb))
745 continue;
746
747 isw->inodes[*nr] = inode;
748 (*nr)++;
749
750 if (*nr >= WB_MAX_INODES_PER_ISW - 1) {
751 full = true;
752 break;
753 }
754 }
755 list_splice(&scanned, list);
756
757 return full;
758 }
759
760 /**
761 * cleanup_offline_cgwb - detach associated inodes
762 * @wb: target wb
763 *
764 * Switch all inodes attached to @wb to a nearest living ancestor's wb in order
765 * to eventually release the dying @wb. Returns %true if not all inodes were
766 * switched and the function has to be restarted.
767 */
cleanup_offline_cgwb(struct bdi_writeback * wb)768 bool cleanup_offline_cgwb(struct bdi_writeback *wb)
769 {
770 struct cgroup_subsys_state *memcg_css;
771 struct inode_switch_wbs_context *isw;
772 struct bdi_writeback *new_wb;
773 int nr;
774 bool restart = false;
775
776 isw = kzalloc_flex(*isw, inodes, WB_MAX_INODES_PER_ISW);
777 if (!isw)
778 return restart;
779
780 atomic_inc(&isw_nr_in_flight);
781
782 for (memcg_css = wb->memcg_css->parent; memcg_css;
783 memcg_css = memcg_css->parent) {
784 new_wb = wb_get_create(wb->bdi, memcg_css, GFP_KERNEL);
785 if (new_wb)
786 break;
787 }
788 if (unlikely(!new_wb))
789 new_wb = &wb->bdi->wb; /* wb_get() is noop for bdi's wb */
790
791 nr = 0;
792 spin_lock(&wb->list_lock);
793 /*
794 * In addition to the inodes that have completed writeback, also switch
795 * cgwbs for those inodes only with dirty timestamps. Otherwise, those
796 * inodes won't be written back for a long time when lazytime is
797 * enabled, and thus pinning the dying cgwbs. It won't break the
798 * bandwidth restrictions, as writeback of inode metadata is not
799 * accounted for.
800 */
801 restart = isw_prepare_wbs_switch(new_wb, isw, &wb->b_attached, &nr);
802 if (!restart)
803 restart = isw_prepare_wbs_switch(new_wb, isw, &wb->b_dirty_time,
804 &nr);
805 spin_unlock(&wb->list_lock);
806
807 /* no attached inodes? bail out */
808 if (nr == 0) {
809 atomic_dec(&isw_nr_in_flight);
810 wb_put(new_wb);
811 kfree(isw);
812 return restart;
813 }
814
815 trace_inode_switch_wbs_queue(wb, new_wb, nr);
816 wb_queue_isw(new_wb, isw);
817
818 return restart;
819 }
820
821 /**
822 * wbc_attach_and_unlock_inode - associate wbc with target inode and unlock it
823 * @wbc: writeback_control of interest
824 * @inode: target inode
825 *
826 * @inode is locked and about to be written back under the control of @wbc.
827 * Record @inode's writeback context into @wbc and unlock the i_lock. On
828 * writeback completion, wbc_detach_inode() should be called. This is used
829 * to track the cgroup writeback context.
830 */
wbc_attach_and_unlock_inode(struct writeback_control * wbc,struct inode * inode)831 static void wbc_attach_and_unlock_inode(struct writeback_control *wbc,
832 struct inode *inode)
833 __releases(&inode->i_lock)
834 {
835 if (!inode_cgwb_enabled(inode)) {
836 spin_unlock(&inode->i_lock);
837 return;
838 }
839
840 wbc->wb = inode_to_wb(inode);
841 wbc->inode = inode;
842
843 wbc->wb_id = wbc->wb->memcg_css->id;
844 wbc->wb_lcand_id = inode->i_wb_frn_winner;
845 wbc->wb_tcand_id = 0;
846 wbc->wb_bytes = 0;
847 wbc->wb_lcand_bytes = 0;
848 wbc->wb_tcand_bytes = 0;
849
850 wb_get(wbc->wb);
851 spin_unlock(&inode->i_lock);
852
853 /*
854 * A dying wb indicates that either the blkcg associated with the
855 * memcg changed or the associated memcg is dying. In the first
856 * case, a replacement wb should already be available and we should
857 * refresh the wb immediately. In the second case, trying to
858 * refresh will keep failing.
859 */
860 if (unlikely(wb_dying(wbc->wb) && !css_is_dying(wbc->wb->memcg_css)))
861 inode_switch_wbs(inode, wbc->wb_id);
862 }
863
864 /**
865 * wbc_attach_fdatawrite_inode - associate wbc and inode for fdatawrite
866 * @wbc: writeback_control of interest
867 * @inode: target inode
868 *
869 * This function is to be used by filemap_writeback(), which is an alternative
870 * entry point into writeback code, and first ensures @inode is associated with
871 * a bdi_writeback and attaches it to @wbc.
872 */
wbc_attach_fdatawrite_inode(struct writeback_control * wbc,struct inode * inode)873 void wbc_attach_fdatawrite_inode(struct writeback_control *wbc,
874 struct inode *inode)
875 {
876 spin_lock(&inode->i_lock);
877 inode_attach_wb(inode, NULL);
878 wbc_attach_and_unlock_inode(wbc, inode);
879 }
880 EXPORT_SYMBOL_GPL(wbc_attach_fdatawrite_inode);
881
882 /**
883 * wbc_detach_inode - disassociate wbc from inode and perform foreign detection
884 * @wbc: writeback_control of the just finished writeback
885 *
886 * To be called after a writeback attempt of an inode finishes and undoes
887 * wbc_attach_and_unlock_inode(). Can be called under any context.
888 *
889 * As concurrent write sharing of an inode is expected to be very rare and
890 * memcg only tracks page ownership on first-use basis severely confining
891 * the usefulness of such sharing, cgroup writeback tracks ownership
892 * per-inode. While the support for concurrent write sharing of an inode
893 * is deemed unnecessary, an inode being written to by different cgroups at
894 * different points in time is a lot more common, and, more importantly,
895 * charging only by first-use can too readily lead to grossly incorrect
896 * behaviors (single foreign page can lead to gigabytes of writeback to be
897 * incorrectly attributed).
898 *
899 * To resolve this issue, cgroup writeback detects the majority dirtier of
900 * an inode and transfers the ownership to it. To avoid unnecessary
901 * oscillation, the detection mechanism keeps track of history and gives
902 * out the switch verdict only if the foreign usage pattern is stable over
903 * a certain amount of time and/or writeback attempts.
904 *
905 * On each writeback attempt, @wbc tries to detect the majority writer
906 * using Boyer-Moore majority vote algorithm. In addition to the byte
907 * count from the majority voting, it also counts the bytes written for the
908 * current wb and the last round's winner wb (max of last round's current
909 * wb, the winner from two rounds ago, and the last round's majority
910 * candidate). Keeping track of the historical winner helps the algorithm
911 * to semi-reliably detect the most active writer even when it's not the
912 * absolute majority.
913 *
914 * Once the winner of the round is determined, whether the winner is
915 * foreign or not and how much IO time the round consumed is recorded in
916 * inode->i_wb_frn_history. If the amount of recorded foreign IO time is
917 * over a certain threshold, the switch verdict is given.
918 */
wbc_detach_inode(struct writeback_control * wbc)919 void wbc_detach_inode(struct writeback_control *wbc)
920 {
921 struct bdi_writeback *wb = wbc->wb;
922 struct inode *inode = wbc->inode;
923 unsigned long avg_time, max_bytes, max_time;
924 u16 history;
925 int max_id;
926
927 if (!wb)
928 return;
929
930 history = inode->i_wb_frn_history;
931 avg_time = inode->i_wb_frn_avg_time;
932
933 /* pick the winner of this round */
934 if (wbc->wb_bytes >= wbc->wb_lcand_bytes &&
935 wbc->wb_bytes >= wbc->wb_tcand_bytes) {
936 max_id = wbc->wb_id;
937 max_bytes = wbc->wb_bytes;
938 } else if (wbc->wb_lcand_bytes >= wbc->wb_tcand_bytes) {
939 max_id = wbc->wb_lcand_id;
940 max_bytes = wbc->wb_lcand_bytes;
941 } else {
942 max_id = wbc->wb_tcand_id;
943 max_bytes = wbc->wb_tcand_bytes;
944 }
945
946 /*
947 * Calculate the amount of IO time the winner consumed and fold it
948 * into the running average kept per inode. If the consumed IO
949 * time is lower than avag / WB_FRN_TIME_CUT_DIV, ignore it for
950 * deciding whether to switch or not. This is to prevent one-off
951 * small dirtiers from skewing the verdict.
952 */
953 max_time = DIV_ROUND_UP((max_bytes >> PAGE_SHIFT) << WB_FRN_TIME_SHIFT,
954 wb->avg_write_bandwidth);
955 if (avg_time)
956 avg_time += (max_time >> WB_FRN_TIME_AVG_SHIFT) -
957 (avg_time >> WB_FRN_TIME_AVG_SHIFT);
958 else
959 avg_time = max_time; /* immediate catch up on first run */
960
961 if (max_time >= avg_time / WB_FRN_TIME_CUT_DIV) {
962 int slots;
963
964 /*
965 * The switch verdict is reached if foreign wb's consume
966 * more than a certain proportion of IO time in a
967 * WB_FRN_TIME_PERIOD. This is loosely tracked by 16 slot
968 * history mask where each bit represents one sixteenth of
969 * the period. Determine the number of slots to shift into
970 * history from @max_time.
971 */
972 slots = min(DIV_ROUND_UP(max_time, WB_FRN_HIST_UNIT),
973 (unsigned long)WB_FRN_HIST_MAX_SLOTS);
974 history <<= slots;
975 if (wbc->wb_id != max_id)
976 history |= (1U << slots) - 1;
977
978 if (history)
979 trace_inode_foreign_history(inode, wbc, history);
980
981 /*
982 * Switch if the current wb isn't the consistent winner.
983 * If there are multiple closely competing dirtiers, the
984 * inode may switch across them repeatedly over time, which
985 * is okay. The main goal is avoiding keeping an inode on
986 * the wrong wb for an extended period of time.
987 */
988 if (hweight16(history) > WB_FRN_HIST_THR_SLOTS)
989 inode_switch_wbs(inode, max_id);
990 }
991
992 /*
993 * Multiple instances of this function may race to update the
994 * following fields but we don't mind occassional inaccuracies.
995 */
996 inode->i_wb_frn_winner = max_id;
997 inode->i_wb_frn_avg_time = min(avg_time, (unsigned long)U16_MAX);
998 inode->i_wb_frn_history = history;
999
1000 wb_put(wbc->wb);
1001 wbc->wb = NULL;
1002 }
1003 EXPORT_SYMBOL_GPL(wbc_detach_inode);
1004
1005 /**
1006 * wbc_account_cgroup_owner - account writeback to update inode cgroup ownership
1007 * @wbc: writeback_control of the writeback in progress
1008 * @folio: folio being written out
1009 * @bytes: number of bytes being written out
1010 *
1011 * @bytes from @folio are about to written out during the writeback
1012 * controlled by @wbc. Keep the book for foreign inode detection. See
1013 * wbc_detach_inode().
1014 */
wbc_account_cgroup_owner(struct writeback_control * wbc,struct folio * folio,size_t bytes)1015 void wbc_account_cgroup_owner(struct writeback_control *wbc, struct folio *folio,
1016 size_t bytes)
1017 {
1018 struct cgroup_subsys_state *css;
1019 int id;
1020
1021 /*
1022 * pageout() path doesn't attach @wbc to the inode being written
1023 * out. This is intentional as we don't want the function to block
1024 * behind a slow cgroup. Ultimately, we want pageout() to kick off
1025 * regular writeback instead of writing things out itself.
1026 */
1027 if (!wbc->wb || wbc->no_cgroup_owner)
1028 return;
1029
1030 css = get_mem_cgroup_css_from_folio(folio);
1031 /* dead cgroups shouldn't contribute to inode ownership arbitration */
1032 if (!css_is_online(css))
1033 goto out;
1034
1035 id = css->id;
1036
1037 if (id == wbc->wb_id) {
1038 wbc->wb_bytes += bytes;
1039 goto out;
1040 }
1041
1042 if (id == wbc->wb_lcand_id)
1043 wbc->wb_lcand_bytes += bytes;
1044
1045 /* Boyer-Moore majority vote algorithm */
1046 if (!wbc->wb_tcand_bytes)
1047 wbc->wb_tcand_id = id;
1048 if (id == wbc->wb_tcand_id)
1049 wbc->wb_tcand_bytes += bytes;
1050 else
1051 wbc->wb_tcand_bytes -= min(bytes, wbc->wb_tcand_bytes);
1052 out:
1053 css_put(css);
1054 }
1055 EXPORT_SYMBOL_GPL(wbc_account_cgroup_owner);
1056
1057 /**
1058 * wb_split_bdi_pages - split nr_pages to write according to bandwidth
1059 * @wb: target bdi_writeback to split @nr_pages to
1060 * @nr_pages: number of pages to write for the whole bdi
1061 *
1062 * Split @wb's portion of @nr_pages according to @wb's write bandwidth in
1063 * relation to the total write bandwidth of all wb's w/ dirty inodes on
1064 * @wb->bdi.
1065 */
wb_split_bdi_pages(struct bdi_writeback * wb,long nr_pages)1066 static long wb_split_bdi_pages(struct bdi_writeback *wb, long nr_pages)
1067 {
1068 unsigned long this_bw = wb->avg_write_bandwidth;
1069 unsigned long tot_bw = atomic_long_read(&wb->bdi->tot_write_bandwidth);
1070
1071 if (nr_pages == LONG_MAX)
1072 return LONG_MAX;
1073
1074 /*
1075 * This may be called on clean wb's and proportional distribution
1076 * may not make sense, just use the original @nr_pages in those
1077 * cases. In general, we wanna err on the side of writing more.
1078 */
1079 if (!tot_bw || this_bw >= tot_bw)
1080 return nr_pages;
1081 else
1082 return DIV_ROUND_UP_ULL((u64)nr_pages * this_bw, tot_bw);
1083 }
1084
1085 /**
1086 * bdi_split_work_to_wbs - split a wb_writeback_work to all wb's of a bdi
1087 * @bdi: target backing_dev_info
1088 * @base_work: wb_writeback_work to issue
1089 * @skip_if_busy: skip wb's which already have writeback in progress
1090 *
1091 * Split and issue @base_work to all wb's (bdi_writeback's) of @bdi which
1092 * have dirty inodes. If @base_work->nr_page isn't %LONG_MAX, it's
1093 * distributed to the busy wbs according to each wb's proportion in the
1094 * total active write bandwidth of @bdi.
1095 */
bdi_split_work_to_wbs(struct backing_dev_info * bdi,struct wb_writeback_work * base_work,bool skip_if_busy)1096 static void bdi_split_work_to_wbs(struct backing_dev_info *bdi,
1097 struct wb_writeback_work *base_work,
1098 bool skip_if_busy)
1099 {
1100 struct bdi_writeback *last_wb = NULL;
1101 struct bdi_writeback *wb = list_entry(&bdi->wb_list,
1102 struct bdi_writeback, bdi_node);
1103
1104 might_sleep();
1105 restart:
1106 rcu_read_lock();
1107 list_for_each_entry_continue_rcu(wb, &bdi->wb_list, bdi_node) {
1108 DEFINE_WB_COMPLETION(fallback_work_done, bdi);
1109 struct wb_writeback_work fallback_work;
1110 struct wb_writeback_work *work;
1111 long nr_pages;
1112
1113 if (last_wb) {
1114 wb_put(last_wb);
1115 last_wb = NULL;
1116 }
1117
1118 /* SYNC_ALL writes out I_DIRTY_TIME too */
1119 if (!wb_has_dirty_io(wb) &&
1120 (base_work->sync_mode == WB_SYNC_NONE ||
1121 list_empty(&wb->b_dirty_time)))
1122 continue;
1123 if (skip_if_busy && writeback_in_progress(wb))
1124 continue;
1125
1126 nr_pages = wb_split_bdi_pages(wb, base_work->nr_pages);
1127
1128 work = kmalloc_obj(*work, GFP_ATOMIC);
1129 if (work) {
1130 *work = *base_work;
1131 work->nr_pages = nr_pages;
1132 work->auto_free = 1;
1133 wb_queue_work(wb, work);
1134 continue;
1135 }
1136
1137 /*
1138 * If wb_tryget fails, the wb has been shutdown, skip it.
1139 *
1140 * Pin @wb so that it stays on @bdi->wb_list. This allows
1141 * continuing iteration from @wb after dropping and
1142 * regrabbing rcu read lock.
1143 */
1144 if (!wb_tryget(wb))
1145 continue;
1146
1147 /* alloc failed, execute synchronously using on-stack fallback */
1148 work = &fallback_work;
1149 *work = *base_work;
1150 work->nr_pages = nr_pages;
1151 work->auto_free = 0;
1152 work->done = &fallback_work_done;
1153
1154 wb_queue_work(wb, work);
1155 last_wb = wb;
1156
1157 rcu_read_unlock();
1158 wb_wait_for_completion(&fallback_work_done);
1159 goto restart;
1160 }
1161 rcu_read_unlock();
1162
1163 if (last_wb)
1164 wb_put(last_wb);
1165 }
1166
1167 /**
1168 * cgroup_writeback_by_id - initiate cgroup writeback from bdi and memcg IDs
1169 * @bdi_id: target bdi id
1170 * @memcg_id: target memcg css id
1171 * @reason: reason why some writeback work initiated
1172 * @done: target wb_completion
1173 *
1174 * Initiate flush of the bdi_writeback identified by @bdi_id and @memcg_id
1175 * with the specified parameters.
1176 */
cgroup_writeback_by_id(u64 bdi_id,int memcg_id,enum wb_reason reason,struct wb_completion * done)1177 int cgroup_writeback_by_id(u64 bdi_id, int memcg_id,
1178 enum wb_reason reason, struct wb_completion *done)
1179 {
1180 struct backing_dev_info *bdi;
1181 struct cgroup_subsys_state *memcg_css;
1182 struct bdi_writeback *wb;
1183 struct wb_writeback_work *work;
1184 unsigned long dirty;
1185 int ret;
1186
1187 /* lookup bdi and memcg */
1188 bdi = bdi_get_by_id(bdi_id);
1189 if (!bdi)
1190 return -ENOENT;
1191
1192 rcu_read_lock();
1193 memcg_css = css_from_id(memcg_id, &memory_cgrp_subsys);
1194 if (memcg_css && !css_tryget(memcg_css))
1195 memcg_css = NULL;
1196 rcu_read_unlock();
1197 if (!memcg_css) {
1198 ret = -ENOENT;
1199 goto out_bdi_put;
1200 }
1201
1202 /*
1203 * And find the associated wb. If the wb isn't there already
1204 * there's nothing to flush, don't create one.
1205 */
1206 wb = wb_get_lookup(bdi, memcg_css);
1207 if (!wb) {
1208 ret = -ENOENT;
1209 goto out_css_put;
1210 }
1211
1212 /*
1213 * The caller is attempting to write out most of
1214 * the currently dirty pages. Let's take the current dirty page
1215 * count and inflate it by 25% which should be large enough to
1216 * flush out most dirty pages while avoiding getting livelocked by
1217 * concurrent dirtiers.
1218 *
1219 * BTW the memcg stats are flushed periodically and this is best-effort
1220 * estimation, so some potential error is ok.
1221 */
1222 dirty = memcg_page_state(mem_cgroup_from_css(memcg_css), NR_FILE_DIRTY);
1223 dirty = dirty * 10 / 8;
1224
1225 /* issue the writeback work */
1226 work = kzalloc_obj(*work, GFP_NOWAIT);
1227 if (work) {
1228 work->nr_pages = dirty;
1229 work->sync_mode = WB_SYNC_NONE;
1230 work->range_cyclic = 1;
1231 work->reason = reason;
1232 work->done = done;
1233 work->auto_free = 1;
1234 wb_queue_work(wb, work);
1235 ret = 0;
1236 } else {
1237 ret = -ENOMEM;
1238 }
1239
1240 wb_put(wb);
1241 out_css_put:
1242 css_put(memcg_css);
1243 out_bdi_put:
1244 bdi_put(bdi);
1245 return ret;
1246 }
1247
1248 /**
1249 * cgroup_writeback_umount - wait for in-flight inode wb switches on @sb
1250 * @sb: target super_block
1251 *
1252 * Wait until every inode wb switch that already passed the SB_ACTIVE
1253 * check on this superblock has been completed by the worker. Since
1254 * SB_ACTIVE is cleared before this is called, no new switches can start
1255 * for @sb, so s_isw_nr_in_flight will monotonically drop to zero.
1256 */
cgroup_writeback_umount(struct super_block * sb)1257 void cgroup_writeback_umount(struct super_block *sb)
1258 {
1259 if (!(sb->s_bdi->capabilities & BDI_CAP_WRITEBACK))
1260 return;
1261
1262 /*
1263 * Pairs with smp_mb() in inode_prepare_wbs_switch(): we either observe
1264 * a non-zero counter and wait, or the switcher sees SB_ACTIVE clear
1265 * (cleared by generic_shutdown_super()) and bails before grabbing the
1266 * inode.
1267 */
1268 smp_mb();
1269 cgroup_writeback_drain(sb);
1270 }
1271
cgroup_writeback_init(void)1272 static int __init cgroup_writeback_init(void)
1273 {
1274 isw_wq = alloc_workqueue("inode_switch_wbs", WQ_PERCPU, 0);
1275 if (!isw_wq)
1276 return -ENOMEM;
1277 return 0;
1278 }
1279 fs_initcall(cgroup_writeback_init);
1280
1281 #else /* CONFIG_CGROUP_WRITEBACK */
1282
bdi_down_write_wb_switch_rwsem(struct backing_dev_info * bdi)1283 static void bdi_down_write_wb_switch_rwsem(struct backing_dev_info *bdi) { }
bdi_up_write_wb_switch_rwsem(struct backing_dev_info * bdi)1284 static void bdi_up_write_wb_switch_rwsem(struct backing_dev_info *bdi) { }
1285
inode_cgwb_move_to_attached(struct inode * inode,struct bdi_writeback * wb)1286 static void inode_cgwb_move_to_attached(struct inode *inode,
1287 struct bdi_writeback *wb)
1288 {
1289 assert_spin_locked(&wb->list_lock);
1290 assert_spin_locked(&inode->i_lock);
1291 WARN_ON_ONCE(inode_state_read(inode) & I_FREEING);
1292
1293 inode_state_clear(inode, I_SYNC_QUEUED);
1294 list_del_init(&inode->i_io_list);
1295 wb_io_lists_depopulated(wb);
1296 }
1297
1298 static struct bdi_writeback *
locked_inode_to_wb_and_lock_list(struct inode * inode)1299 locked_inode_to_wb_and_lock_list(struct inode *inode)
1300 __releases(&inode->i_lock)
1301 __acquires(&wb->list_lock)
1302 {
1303 struct bdi_writeback *wb = inode_to_wb(inode);
1304
1305 spin_unlock(&inode->i_lock);
1306 spin_lock(&wb->list_lock);
1307 return wb;
1308 }
1309
inode_to_wb_and_lock_list(struct inode * inode)1310 static struct bdi_writeback *inode_to_wb_and_lock_list(struct inode *inode)
1311 __acquires(&wb->list_lock)
1312 {
1313 struct bdi_writeback *wb = inode_to_wb(inode);
1314
1315 spin_lock(&wb->list_lock);
1316 return wb;
1317 }
1318
wb_split_bdi_pages(struct bdi_writeback * wb,long nr_pages)1319 static long wb_split_bdi_pages(struct bdi_writeback *wb, long nr_pages)
1320 {
1321 return nr_pages;
1322 }
1323
bdi_split_work_to_wbs(struct backing_dev_info * bdi,struct wb_writeback_work * base_work,bool skip_if_busy)1324 static void bdi_split_work_to_wbs(struct backing_dev_info *bdi,
1325 struct wb_writeback_work *base_work,
1326 bool skip_if_busy)
1327 {
1328 might_sleep();
1329
1330 if (!skip_if_busy || !writeback_in_progress(&bdi->wb)) {
1331 base_work->auto_free = 0;
1332 wb_queue_work(&bdi->wb, base_work);
1333 }
1334 }
1335
wbc_attach_and_unlock_inode(struct writeback_control * wbc,struct inode * inode)1336 static inline void wbc_attach_and_unlock_inode(struct writeback_control *wbc,
1337 struct inode *inode)
1338 __releases(&inode->i_lock)
1339 {
1340 spin_unlock(&inode->i_lock);
1341 }
1342
1343 #endif /* CONFIG_CGROUP_WRITEBACK */
1344
1345 /*
1346 * Add in the number of potentially dirty inodes, because each inode
1347 * write can dirty pagecache in the underlying blockdev.
1348 */
get_nr_dirty_pages(void)1349 static unsigned long get_nr_dirty_pages(void)
1350 {
1351 return global_node_page_state(NR_FILE_DIRTY) +
1352 get_nr_dirty_inodes();
1353 }
1354
wb_start_writeback(struct bdi_writeback * wb,enum wb_reason reason)1355 static void wb_start_writeback(struct bdi_writeback *wb, enum wb_reason reason)
1356 {
1357 if (!wb_has_dirty_io(wb))
1358 return;
1359
1360 /*
1361 * All callers of this function want to start writeback of all
1362 * dirty pages. Places like vmscan can call this at a very
1363 * high frequency, causing pointless allocations of tons of
1364 * work items and keeping the flusher threads busy retrieving
1365 * that work. Ensure that we only allow one of them pending and
1366 * inflight at the time.
1367 */
1368 if (test_bit(WB_start_all, &wb->state) ||
1369 test_and_set_bit(WB_start_all, &wb->state))
1370 return;
1371
1372 wb->start_all_reason = reason;
1373 wb_wakeup(wb);
1374 }
1375
1376 /**
1377 * wb_start_background_writeback - start background writeback
1378 * @wb: bdi_writback to write from
1379 *
1380 * Description:
1381 * This makes sure WB_SYNC_NONE background writeback happens. When
1382 * this function returns, it is only guaranteed that for given wb
1383 * some IO is happening if we are over background dirty threshold.
1384 * Caller need not hold sb s_umount semaphore.
1385 */
wb_start_background_writeback(struct bdi_writeback * wb)1386 void wb_start_background_writeback(struct bdi_writeback *wb)
1387 {
1388 /*
1389 * We just wake up the flusher thread. It will perform background
1390 * writeback as soon as there is no other work to do.
1391 */
1392 trace_writeback_wake_background(wb);
1393 wb_wakeup(wb);
1394 }
1395
1396 /*
1397 * Remove the inode from the writeback list it is on.
1398 */
inode_io_list_del(struct inode * inode)1399 void inode_io_list_del(struct inode *inode)
1400 {
1401 struct bdi_writeback *wb;
1402
1403 /*
1404 * FIXME: ext4 can call here from ext4_evict_inode() after evict() already
1405 * unlinked the inode.
1406 */
1407 if (list_empty_careful(&inode->i_io_list))
1408 return;
1409
1410 wb = inode_to_wb_and_lock_list(inode);
1411 spin_lock(&inode->i_lock);
1412
1413 inode_state_clear(inode, I_SYNC_QUEUED);
1414 list_del_init(&inode->i_io_list);
1415 wb_io_lists_depopulated(wb);
1416
1417 spin_unlock(&inode->i_lock);
1418 spin_unlock(&wb->list_lock);
1419 }
1420 EXPORT_SYMBOL(inode_io_list_del);
1421
1422 /*
1423 * mark an inode as under writeback on the sb
1424 */
sb_mark_inode_writeback(struct inode * inode)1425 void sb_mark_inode_writeback(struct inode *inode)
1426 {
1427 struct super_block *sb = inode->i_sb;
1428 unsigned long flags;
1429
1430 if (list_empty(&inode->i_wb_list)) {
1431 spin_lock_irqsave(&sb->s_inode_wblist_lock, flags);
1432 if (list_empty(&inode->i_wb_list)) {
1433 list_add_tail(&inode->i_wb_list, &sb->s_inodes_wb);
1434 trace_sb_mark_inode_writeback(inode);
1435 }
1436 spin_unlock_irqrestore(&sb->s_inode_wblist_lock, flags);
1437 }
1438 }
1439
1440 /*
1441 * clear an inode as under writeback on the sb
1442 */
sb_clear_inode_writeback(struct inode * inode)1443 void sb_clear_inode_writeback(struct inode *inode)
1444 {
1445 struct super_block *sb = inode->i_sb;
1446 unsigned long flags;
1447
1448 if (!list_empty(&inode->i_wb_list)) {
1449 spin_lock_irqsave(&sb->s_inode_wblist_lock, flags);
1450 if (!list_empty(&inode->i_wb_list)) {
1451 list_del_init(&inode->i_wb_list);
1452 trace_sb_clear_inode_writeback(inode);
1453 }
1454 spin_unlock_irqrestore(&sb->s_inode_wblist_lock, flags);
1455 }
1456 }
1457
1458 /*
1459 * Redirty an inode: set its when-it-was dirtied timestamp and move it to the
1460 * furthest end of its superblock's dirty-inode list.
1461 *
1462 * Before stamping the inode's ->dirtied_when, we check to see whether it is
1463 * already the most-recently-dirtied inode on the b_dirty list. If that is
1464 * the case then the inode must have been redirtied while it was being written
1465 * out and we don't reset its dirtied_when.
1466 */
redirty_tail_locked(struct inode * inode,struct bdi_writeback * wb)1467 static void redirty_tail_locked(struct inode *inode, struct bdi_writeback *wb)
1468 {
1469 assert_spin_locked(&inode->i_lock);
1470
1471 inode_state_clear(inode, I_SYNC_QUEUED);
1472 /*
1473 * When the inode is being freed just don't bother with dirty list
1474 * tracking. Flush worker will ignore this inode anyway and it will
1475 * trigger assertions in inode_io_list_move_locked().
1476 */
1477 if (inode_state_read(inode) & I_FREEING) {
1478 list_del_init(&inode->i_io_list);
1479 wb_io_lists_depopulated(wb);
1480 return;
1481 }
1482 if (!list_empty(&wb->b_dirty)) {
1483 struct inode *tail;
1484
1485 tail = wb_inode(wb->b_dirty.next);
1486 if (time_before(inode->dirtied_when, tail->dirtied_when))
1487 inode->dirtied_when = jiffies;
1488 }
1489 inode_io_list_move_locked(inode, wb, &wb->b_dirty);
1490 }
1491
redirty_tail(struct inode * inode,struct bdi_writeback * wb)1492 static void redirty_tail(struct inode *inode, struct bdi_writeback *wb)
1493 {
1494 spin_lock(&inode->i_lock);
1495 redirty_tail_locked(inode, wb);
1496 spin_unlock(&inode->i_lock);
1497 }
1498
1499 /*
1500 * requeue inode for re-scanning after bdi->b_io list is exhausted.
1501 */
requeue_io(struct inode * inode,struct bdi_writeback * wb)1502 static void requeue_io(struct inode *inode, struct bdi_writeback *wb)
1503 {
1504 inode_io_list_move_locked(inode, wb, &wb->b_more_io);
1505 }
1506
inode_sync_complete(struct inode * inode)1507 static void inode_sync_complete(struct inode *inode)
1508 {
1509 assert_spin_locked(&inode->i_lock);
1510
1511 inode_state_clear(inode, I_SYNC);
1512 /* If inode is clean an unused, put it into LRU now... */
1513 inode_lru_list_add(inode);
1514 /* Called with inode->i_lock which ensures memory ordering. */
1515 inode_wake_up_bit(inode, __I_SYNC);
1516 }
1517
inode_dirtied_after(struct inode * inode,unsigned long t)1518 static bool inode_dirtied_after(struct inode *inode, unsigned long t)
1519 {
1520 bool ret = time_after(inode->dirtied_when, t);
1521 #ifndef CONFIG_64BIT
1522 /*
1523 * For inodes being constantly redirtied, dirtied_when can get stuck.
1524 * It _appears_ to be in the future, but is actually in distant past.
1525 * This test is necessary to prevent such wrapped-around relative times
1526 * from permanently stopping the whole bdi writeback.
1527 */
1528 ret = ret && time_before_eq(inode->dirtied_when, jiffies);
1529 #endif
1530 return ret;
1531 }
1532
1533 /*
1534 * Move expired (dirtied before dirtied_before) dirty inodes from
1535 * @delaying_queue to @dispatch_queue.
1536 */
move_expired_inodes(struct list_head * delaying_queue,struct list_head * dispatch_queue,unsigned long dirtied_before)1537 static int move_expired_inodes(struct list_head *delaying_queue,
1538 struct list_head *dispatch_queue,
1539 unsigned long dirtied_before)
1540 {
1541 LIST_HEAD(tmp);
1542 struct list_head *pos, *node;
1543 struct super_block *sb = NULL;
1544 struct inode *inode;
1545 int do_sb_sort = 0;
1546 int moved = 0;
1547
1548 while (!list_empty(delaying_queue)) {
1549 inode = wb_inode(delaying_queue->prev);
1550 if (inode_dirtied_after(inode, dirtied_before))
1551 break;
1552 spin_lock(&inode->i_lock);
1553 list_move(&inode->i_io_list, &tmp);
1554 moved++;
1555 inode_state_set(inode, I_SYNC_QUEUED);
1556 spin_unlock(&inode->i_lock);
1557 if (sb_is_blkdev_sb(inode->i_sb))
1558 continue;
1559 if (sb && sb != inode->i_sb)
1560 do_sb_sort = 1;
1561 sb = inode->i_sb;
1562 }
1563
1564 /* just one sb in list, splice to dispatch_queue and we're done */
1565 if (!do_sb_sort) {
1566 list_splice(&tmp, dispatch_queue);
1567 goto out;
1568 }
1569
1570 /*
1571 * Although inode's i_io_list is moved from 'tmp' to 'dispatch_queue',
1572 * we don't take inode->i_lock here because it is just a pointless overhead.
1573 * Inode is already marked as I_SYNC_QUEUED so writeback list handling is
1574 * fully under our control.
1575 */
1576 while (!list_empty(&tmp)) {
1577 sb = wb_inode(tmp.prev)->i_sb;
1578 list_for_each_prev_safe(pos, node, &tmp) {
1579 inode = wb_inode(pos);
1580 if (inode->i_sb == sb)
1581 list_move(&inode->i_io_list, dispatch_queue);
1582 }
1583 }
1584 out:
1585 return moved;
1586 }
1587
1588 /*
1589 * Queue all expired dirty inodes for io, eldest first.
1590 * Before
1591 * newly dirtied b_dirty b_io b_more_io
1592 * =============> gf edc BA
1593 * After
1594 * newly dirtied b_dirty b_io b_more_io
1595 * =============> g fBAedc
1596 * |
1597 * +--> dequeue for IO
1598 */
queue_io(struct bdi_writeback * wb,struct wb_writeback_work * work,unsigned long dirtied_before)1599 static void queue_io(struct bdi_writeback *wb, struct wb_writeback_work *work,
1600 unsigned long dirtied_before)
1601 {
1602 int moved;
1603 unsigned long time_expire_jif = dirtied_before;
1604
1605 assert_spin_locked(&wb->list_lock);
1606 list_splice_init(&wb->b_more_io, &wb->b_io);
1607 moved = move_expired_inodes(&wb->b_dirty, &wb->b_io, dirtied_before);
1608 if (!work->for_sync)
1609 time_expire_jif = jiffies - dirtytime_expire_interval * HZ;
1610 moved += move_expired_inodes(&wb->b_dirty_time, &wb->b_io,
1611 time_expire_jif);
1612 if (moved)
1613 wb_io_lists_populated(wb);
1614 trace_writeback_queue_io(wb, work, dirtied_before, moved);
1615 }
1616
write_inode(struct inode * inode,struct writeback_control * wbc)1617 static int write_inode(struct inode *inode, struct writeback_control *wbc)
1618 {
1619 int ret;
1620
1621 if (inode->i_sb->s_op->write_inode && !is_bad_inode(inode)) {
1622 trace_writeback_write_inode_start(inode, wbc);
1623 ret = inode->i_sb->s_op->write_inode(inode, wbc);
1624 trace_writeback_write_inode(inode, wbc);
1625 return ret;
1626 }
1627 return 0;
1628 }
1629
1630 /*
1631 * Wait for writeback on an inode to complete. Called with i_lock held.
1632 * Caller must make sure inode cannot go away when we drop i_lock.
1633 */
inode_wait_for_writeback(struct inode * inode)1634 void inode_wait_for_writeback(struct inode *inode)
1635 {
1636 struct wait_bit_queue_entry wqe;
1637 struct wait_queue_head *wq_head;
1638
1639 assert_spin_locked(&inode->i_lock);
1640
1641 if (!(inode_state_read(inode) & I_SYNC))
1642 return;
1643
1644 wq_head = inode_bit_waitqueue(&wqe, inode, __I_SYNC);
1645 for (;;) {
1646 prepare_to_wait_event(wq_head, &wqe.wq_entry, TASK_UNINTERRUPTIBLE);
1647 /* Checking I_SYNC with inode->i_lock guarantees memory ordering. */
1648 if (!(inode_state_read(inode) & I_SYNC))
1649 break;
1650 spin_unlock(&inode->i_lock);
1651 schedule();
1652 spin_lock(&inode->i_lock);
1653 }
1654 finish_wait(wq_head, &wqe.wq_entry);
1655 }
1656
1657 /*
1658 * Sleep until I_SYNC is cleared. This function must be called with i_lock
1659 * held and drops it. It is aimed for callers not holding any inode reference
1660 * so once i_lock is dropped, inode can go away.
1661 */
inode_sleep_on_writeback(struct inode * inode)1662 static void inode_sleep_on_writeback(struct inode *inode)
1663 __releases(inode->i_lock)
1664 {
1665 struct wait_bit_queue_entry wqe;
1666 struct wait_queue_head *wq_head;
1667 bool sleep;
1668
1669 assert_spin_locked(&inode->i_lock);
1670
1671 wq_head = inode_bit_waitqueue(&wqe, inode, __I_SYNC);
1672 prepare_to_wait_event(wq_head, &wqe.wq_entry, TASK_UNINTERRUPTIBLE);
1673 /* Checking I_SYNC with inode->i_lock guarantees memory ordering. */
1674 sleep = !!(inode_state_read(inode) & I_SYNC);
1675 spin_unlock(&inode->i_lock);
1676 if (sleep)
1677 schedule();
1678 finish_wait(wq_head, &wqe.wq_entry);
1679 }
1680
1681 /*
1682 * Find proper writeback list for the inode depending on its current state and
1683 * possibly also change of its state while we were doing writeback. Here we
1684 * handle things such as livelock prevention or fairness of writeback among
1685 * inodes. This function can be called only by flusher thread - noone else
1686 * processes all inodes in writeback lists and requeueing inodes behind flusher
1687 * thread's back can have unexpected consequences.
1688 */
requeue_inode(struct inode * inode,struct bdi_writeback * wb,struct writeback_control * wbc,unsigned long dirtied_before)1689 static void requeue_inode(struct inode *inode, struct bdi_writeback *wb,
1690 struct writeback_control *wbc,
1691 unsigned long dirtied_before)
1692 {
1693 if (inode_state_read(inode) & I_FREEING)
1694 return;
1695
1696 /*
1697 * Sync livelock prevention. Each inode is tagged and synced in one
1698 * shot. If still dirty, it will be redirty_tail()'ed below. Update
1699 * the dirty time to prevent enqueue and sync it again.
1700 */
1701 if ((inode_state_read(inode) & I_DIRTY) &&
1702 (wbc->sync_mode == WB_SYNC_ALL || wbc->tagged_writepages))
1703 inode->dirtied_when = jiffies;
1704
1705 if (wbc->pages_skipped) {
1706 /*
1707 * Writeback is not making progress due to locked buffers.
1708 * Skip this inode for now. Although having skipped pages
1709 * is odd for clean inodes, it can happen for some
1710 * filesystems so handle that gracefully.
1711 */
1712 if (inode_state_read(inode) & I_DIRTY_ALL)
1713 redirty_tail_locked(inode, wb);
1714 else
1715 inode_cgwb_move_to_attached(inode, wb);
1716 return;
1717 }
1718
1719 if (mapping_tagged(inode->i_mapping, PAGECACHE_TAG_DIRTY)) {
1720 /*
1721 * We didn't write back all the pages. nfs_writepages()
1722 * sometimes bales out without doing anything.
1723 */
1724 if (wbc->nr_to_write <= 0 &&
1725 !inode_dirtied_after(inode, dirtied_before)) {
1726 /* Slice used up. Queue for next turn. */
1727 requeue_io(inode, wb);
1728 } else {
1729 /*
1730 * Writeback blocked by something other than
1731 * congestion. Delay the inode for some time to
1732 * avoid spinning on the CPU (100% iowait)
1733 * retrying writeback of the dirty page/inode
1734 * that cannot be performed immediately.
1735 */
1736 redirty_tail_locked(inode, wb);
1737 }
1738 } else if (inode_state_read(inode) & I_DIRTY) {
1739 /*
1740 * Filesystems can dirty the inode during writeback operations,
1741 * such as delayed allocation during submission or metadata
1742 * updates after data IO completion.
1743 */
1744 redirty_tail_locked(inode, wb);
1745 } else if (inode_state_read(inode) & I_DIRTY_TIME) {
1746 inode->dirtied_when = jiffies;
1747 inode_io_list_move_locked(inode, wb, &wb->b_dirty_time);
1748 inode_state_clear(inode, I_SYNC_QUEUED);
1749 } else {
1750 /* The inode is clean. Remove from writeback lists. */
1751 inode_cgwb_move_to_attached(inode, wb);
1752 }
1753 }
1754
__sync_lazytime(struct inode * inode)1755 static bool __sync_lazytime(struct inode *inode)
1756 {
1757 spin_lock(&inode->i_lock);
1758 if (!(inode_state_read(inode) & I_DIRTY_TIME)) {
1759 spin_unlock(&inode->i_lock);
1760 return false;
1761 }
1762 inode_state_clear(inode, I_DIRTY_TIME);
1763 spin_unlock(&inode->i_lock);
1764 inode->i_op->sync_lazytime(inode);
1765 return true;
1766 }
1767
sync_lazytime(struct inode * inode)1768 bool sync_lazytime(struct inode *inode)
1769 {
1770 if (!(inode_state_read_once(inode) & I_DIRTY_TIME))
1771 return false;
1772
1773 trace_writeback_lazytime(inode);
1774 if (inode->i_op->sync_lazytime)
1775 return __sync_lazytime(inode);
1776 mark_inode_dirty_sync(inode);
1777 return true;
1778 }
1779
1780 /*
1781 * Write out an inode and its dirty pages (or some of its dirty pages, depending
1782 * on @wbc->nr_to_write), and clear the relevant dirty flags from i_state.
1783 *
1784 * This doesn't remove the inode from the writeback list it is on, except
1785 * potentially to move it from b_dirty_time to b_dirty due to timestamp
1786 * expiration. The caller is otherwise responsible for writeback list handling.
1787 *
1788 * The caller is also responsible for setting the I_SYNC flag beforehand and
1789 * calling inode_sync_complete() to clear it afterwards.
1790 */
1791 static int
__writeback_single_inode(struct inode * inode,struct writeback_control * wbc)1792 __writeback_single_inode(struct inode *inode, struct writeback_control *wbc)
1793 {
1794 struct address_space *mapping = inode->i_mapping;
1795 long nr_to_write = wbc->nr_to_write;
1796 unsigned dirty;
1797 int ret;
1798
1799 WARN_ON(!(inode_state_read_once(inode) & I_SYNC));
1800
1801 trace_writeback_single_inode_start(inode, wbc, nr_to_write);
1802
1803 ret = do_writepages(mapping, wbc);
1804
1805 /*
1806 * Make sure to wait on the data before writing out the metadata.
1807 * This is important for filesystems that modify metadata on data
1808 * I/O completion. We don't do it for sync(2) writeback because it has a
1809 * separate, external IO completion path and ->sync_fs for guaranteeing
1810 * inode metadata is written back correctly.
1811 */
1812 if (wbc->sync_mode == WB_SYNC_ALL && !wbc->for_sync) {
1813 int err = filemap_fdatawait(mapping);
1814 if (ret == 0)
1815 ret = err;
1816 }
1817
1818 /*
1819 * For data integrity writeback, or when the dirty interval expired,
1820 * ask the file system to propagata lazy timestamp updates into real
1821 * dirty state.
1822 */
1823 if ((inode_state_read_once(inode) & I_DIRTY_TIME) &&
1824 (wbc->sync_mode == WB_SYNC_ALL ||
1825 time_after(jiffies, inode->dirtied_time_when +
1826 dirtytime_expire_interval * HZ)))
1827 sync_lazytime(inode);
1828
1829 /*
1830 * Get and clear the dirty flags from i_state. This needs to be done
1831 * after calling writepages because some filesystems may redirty the
1832 * inode during writepages due to delalloc. It also needs to be done
1833 * after handling timestamp expiration, as that may dirty the inode too.
1834 */
1835 spin_lock(&inode->i_lock);
1836 dirty = inode_state_read(inode) & I_DIRTY;
1837 inode_state_clear(inode, dirty);
1838
1839 /*
1840 * Paired with smp_mb() in __mark_inode_dirty(). This allows
1841 * __mark_inode_dirty() to test i_state without grabbing i_lock -
1842 * either they see the I_DIRTY bits cleared or we see the dirtied
1843 * inode.
1844 *
1845 * I_DIRTY_PAGES is always cleared together above even if @mapping
1846 * still has dirty pages. The flag is reinstated after smp_mb() if
1847 * necessary. This guarantees that either __mark_inode_dirty()
1848 * sees clear I_DIRTY_PAGES or we see PAGECACHE_TAG_DIRTY.
1849 */
1850 smp_mb();
1851
1852 if (mapping_tagged(mapping, PAGECACHE_TAG_DIRTY))
1853 inode_state_set(inode, I_DIRTY_PAGES);
1854 else if (unlikely(inode_state_read(inode) & I_PINNING_NETFS_WB)) {
1855 if (!(inode_state_read(inode) & I_DIRTY_PAGES)) {
1856 inode_state_clear(inode, I_PINNING_NETFS_WB);
1857 wbc->unpinned_netfs_wb = true;
1858 dirty |= I_PINNING_NETFS_WB; /* Cause write_inode */
1859 }
1860 }
1861
1862 spin_unlock(&inode->i_lock);
1863
1864 /* Don't write the inode if only I_DIRTY_PAGES was set */
1865 if (dirty & ~I_DIRTY_PAGES) {
1866 int err = write_inode(inode, wbc);
1867 if (ret == 0)
1868 ret = err;
1869 }
1870
1871 /*
1872 * Do we need to wait for inode metadata IO possibly submitted
1873 * by previous WB_SYNC_NONE writeback?
1874 */
1875 if (wbc->sync_mode == WB_SYNC_ALL && !wbc->for_sync &&
1876 inode_state_read_once(inode) & I_METADATA_WRITEBACK) {
1877 int err;
1878
1879 spin_lock(&inode->i_lock);
1880 inode_state_clear(inode, I_METADATA_WRITEBACK);
1881 spin_unlock(&inode->i_lock);
1882 err = inode->i_sb->s_op->sync_inode_metadata(inode, wbc);
1883 if (ret == 0)
1884 ret = err;
1885 }
1886 wbc->unpinned_netfs_wb = false;
1887 trace_writeback_single_inode(inode, wbc, nr_to_write);
1888 return ret;
1889 }
1890
1891 /*
1892 * Write out an inode's dirty data and metadata on-demand, i.e. separately from
1893 * the regular batched writeback done by the flusher threads in
1894 * writeback_sb_inodes(). @wbc controls various aspects of the write, such as
1895 * whether it is a data-integrity sync (%WB_SYNC_ALL) or not (%WB_SYNC_NONE).
1896 *
1897 * To prevent the inode from going away, either the caller must have a reference
1898 * to the inode, or the inode must have I_WILL_FREE or I_FREEING set.
1899 */
writeback_single_inode(struct inode * inode,struct writeback_control * wbc)1900 static int writeback_single_inode(struct inode *inode,
1901 struct writeback_control *wbc)
1902 {
1903 struct bdi_writeback *wb;
1904 int ret = 0;
1905
1906 spin_lock(&inode->i_lock);
1907 if (!icount_read(inode))
1908 WARN_ON(!(inode_state_read(inode) & (I_WILL_FREE | I_FREEING)));
1909 else
1910 WARN_ON(inode_state_read(inode) & I_WILL_FREE);
1911
1912 if (inode_state_read(inode) & I_SYNC) {
1913 /*
1914 * Writeback is already running on the inode. For WB_SYNC_NONE,
1915 * that's enough and we can just return. For WB_SYNC_ALL, we
1916 * must wait for the existing writeback to complete, then do
1917 * writeback again if there's anything left.
1918 */
1919 if (wbc->sync_mode != WB_SYNC_ALL)
1920 goto out;
1921 inode_wait_for_writeback(inode);
1922 }
1923 WARN_ON(inode_state_read(inode) & I_SYNC);
1924 /*
1925 * If the inode is already fully clean, then there's nothing to do.
1926 *
1927 * For data-integrity syncs we also need to check whether any folios or
1928 * metadata are still under writeback, e.g. due to prior WB_SYNC_NONE
1929 * writeback. If there, we'll need to wait for them.
1930 */
1931 if (!(inode_state_read(inode) & I_DIRTY_ALL)) {
1932 if (wbc->sync_mode != WB_SYNC_ALL)
1933 goto out;
1934 if (!mapping_tagged(inode->i_mapping, PAGECACHE_TAG_WRITEBACK) &&
1935 !(inode_state_read(inode) & I_METADATA_WRITEBACK))
1936 goto out;
1937 }
1938 inode_state_set(inode, I_SYNC);
1939 wbc_attach_and_unlock_inode(wbc, inode);
1940
1941 ret = __writeback_single_inode(inode, wbc);
1942
1943 wbc_detach_inode(wbc);
1944
1945 wb = inode_to_wb_and_lock_list(inode);
1946 spin_lock(&inode->i_lock);
1947 /*
1948 * If the inode is freeing, its i_io_list shoudn't be updated
1949 * as it can be finally deleted at this moment.
1950 */
1951 if (!(inode_state_read(inode) & I_FREEING)) {
1952 /*
1953 * If the inode is now fully clean, then it can be safely
1954 * removed from its writeback list (if any). Otherwise the
1955 * flusher threads are responsible for the writeback lists.
1956 */
1957 if (!(inode_state_read(inode) & I_DIRTY_ALL))
1958 inode_cgwb_move_to_attached(inode, wb);
1959 else if (!(inode_state_read(inode) & I_SYNC_QUEUED)) {
1960 if ((inode_state_read(inode) & I_DIRTY))
1961 redirty_tail_locked(inode, wb);
1962 else if (inode_state_read(inode) & I_DIRTY_TIME) {
1963 inode->dirtied_when = jiffies;
1964 inode_io_list_move_locked(inode,
1965 wb,
1966 &wb->b_dirty_time);
1967 }
1968 }
1969 }
1970
1971 spin_unlock(&wb->list_lock);
1972 inode_sync_complete(inode);
1973 out:
1974 spin_unlock(&inode->i_lock);
1975 return ret;
1976 }
1977
writeback_chunk_size(struct super_block * sb,struct bdi_writeback * wb,struct wb_writeback_work * work)1978 static long writeback_chunk_size(struct super_block *sb,
1979 struct bdi_writeback *wb, struct wb_writeback_work *work)
1980 {
1981 long pages;
1982
1983 /*
1984 * WB_SYNC_ALL mode does livelock avoidance by syncing dirty
1985 * inodes/pages in one big loop. Setting wbc.nr_to_write=LONG_MAX
1986 * here avoids calling into writeback_inodes_wb() more than once.
1987 *
1988 * The intended call sequence for WB_SYNC_ALL writeback is:
1989 *
1990 * wb_writeback()
1991 * writeback_sb_inodes() <== called only once
1992 * write_cache_pages() <== called once for each inode
1993 * (quickly) tag currently dirty pages
1994 * (maybe slowly) sync all tagged pages
1995 */
1996 if (work->sync_mode == WB_SYNC_ALL || work->tagged_writepages)
1997 return LONG_MAX;
1998
1999 pages = min(wb->avg_write_bandwidth / 2,
2000 global_wb_domain.dirty_limit / DIRTY_SCOPE);
2001 pages = min(pages, work->nr_pages);
2002 return round_down(pages + sb->s_min_writeback_pages,
2003 sb->s_min_writeback_pages);
2004 }
2005
2006 /*
2007 * Write a portion of b_io inodes which belong to @sb.
2008 *
2009 * Return the number of pages and/or inodes written.
2010 *
2011 * NOTE! This is called with wb->list_lock held, and will
2012 * unlock and relock that for each inode it ends up doing
2013 * IO for.
2014 */
writeback_sb_inodes(struct super_block * sb,struct bdi_writeback * wb,struct wb_writeback_work * work)2015 static long writeback_sb_inodes(struct super_block *sb,
2016 struct bdi_writeback *wb,
2017 struct wb_writeback_work *work)
2018 {
2019 struct writeback_control wbc = {
2020 .sync_mode = work->sync_mode,
2021 .tagged_writepages = work->tagged_writepages,
2022 .for_kupdate = work->for_kupdate,
2023 .for_background = work->for_background,
2024 .for_sync = work->for_sync,
2025 .range_cyclic = work->range_cyclic,
2026 .range_start = 0,
2027 .range_end = LLONG_MAX,
2028 };
2029 unsigned long start_time = jiffies;
2030 unsigned long timeout = sysctl_hung_task_timeout_secs;
2031 long write_chunk;
2032 long total_wrote = 0; /* count both pages and inodes */
2033 unsigned long dirtied_before = jiffies;
2034
2035 if (work->for_kupdate)
2036 dirtied_before = jiffies -
2037 msecs_to_jiffies(dirty_expire_interval * 10);
2038
2039 while (!list_empty(&wb->b_io)) {
2040 struct inode *inode = wb_inode(wb->b_io.prev);
2041 struct bdi_writeback *tmp_wb;
2042 long wrote;
2043
2044 if (inode->i_sb != sb) {
2045 if (work->sb) {
2046 /*
2047 * We only want to write back data for this
2048 * superblock, move all inodes not belonging
2049 * to it back onto the dirty list.
2050 */
2051 redirty_tail(inode, wb);
2052 continue;
2053 }
2054
2055 /*
2056 * The inode belongs to a different superblock.
2057 * Bounce back to the caller to unpin this and
2058 * pin the next superblock.
2059 */
2060 break;
2061 }
2062
2063 /*
2064 * Don't bother with new inodes or inodes being freed, first
2065 * kind does not need periodic writeout yet, and for the latter
2066 * kind writeout is handled by the freer.
2067 */
2068 spin_lock(&inode->i_lock);
2069 if (inode_state_read(inode) & (I_NEW | I_FREEING | I_WILL_FREE)) {
2070 redirty_tail_locked(inode, wb);
2071 spin_unlock(&inode->i_lock);
2072 continue;
2073 }
2074 if ((inode_state_read(inode) & I_SYNC) && wbc.sync_mode != WB_SYNC_ALL) {
2075 /*
2076 * If this inode is locked for writeback and we are not
2077 * doing writeback-for-data-integrity, move it to
2078 * b_more_io so that writeback can proceed with the
2079 * other inodes on s_io.
2080 *
2081 * We'll have another go at writing back this inode
2082 * when we completed a full scan of b_io.
2083 */
2084 requeue_io(inode, wb);
2085 spin_unlock(&inode->i_lock);
2086 trace_writeback_sb_inodes_requeue(inode);
2087 continue;
2088 }
2089 spin_unlock(&wb->list_lock);
2090
2091 /*
2092 * We already requeued the inode if it had I_SYNC set and we
2093 * are doing WB_SYNC_NONE writeback. So this catches only the
2094 * WB_SYNC_ALL case.
2095 */
2096 if (inode_state_read(inode) & I_SYNC) {
2097 /* Wait for I_SYNC. This function drops i_lock... */
2098 inode_sleep_on_writeback(inode);
2099 /* Inode may be gone, start again */
2100 spin_lock(&wb->list_lock);
2101 continue;
2102 }
2103 inode_state_set(inode, I_SYNC);
2104 wbc_attach_and_unlock_inode(&wbc, inode);
2105
2106 write_chunk = writeback_chunk_size(inode->i_sb, wb, work);
2107 wbc.nr_to_write = write_chunk;
2108 wbc.pages_skipped = 0;
2109
2110 /*
2111 * We use I_SYNC to pin the inode in memory. While it is set
2112 * evict_inode() will wait so the inode cannot be freed.
2113 */
2114 __writeback_single_inode(inode, &wbc);
2115
2116 /* Report progress to inform the hung task detector of the progress. */
2117 if (work->done && work->done->progress_stamp && timeout &&
2118 (jiffies - work->done->progress_stamp) > HZ * timeout / 2)
2119 wake_up_all(work->done->waitq);
2120
2121 wbc_detach_inode(&wbc);
2122 work->nr_pages -= write_chunk - wbc.nr_to_write;
2123 wrote = write_chunk - wbc.nr_to_write - wbc.pages_skipped;
2124 wrote = wrote < 0 ? 0 : wrote;
2125 total_wrote += wrote;
2126
2127 if (need_resched()) {
2128 /*
2129 * We're trying to balance between building up a nice
2130 * long list of IOs to improve our merge rate, and
2131 * getting those IOs out quickly for anyone throttling
2132 * in balance_dirty_pages(). cond_resched() doesn't
2133 * unplug, so get our IOs out the door before we
2134 * give up the CPU.
2135 */
2136 blk_flush_plug(current->plug, false);
2137 cond_resched();
2138 }
2139
2140 /*
2141 * Requeue @inode if still dirty. Be careful as @inode may
2142 * have been switched to another wb in the meantime.
2143 */
2144 tmp_wb = inode_to_wb_and_lock_list(inode);
2145 spin_lock(&inode->i_lock);
2146 if (!(inode_state_read(inode) & I_DIRTY_ALL))
2147 total_wrote++;
2148 requeue_inode(inode, tmp_wb, &wbc, dirtied_before);
2149 inode_sync_complete(inode);
2150 spin_unlock(&inode->i_lock);
2151
2152 if (unlikely(tmp_wb != wb)) {
2153 spin_unlock(&tmp_wb->list_lock);
2154 spin_lock(&wb->list_lock);
2155 }
2156
2157 /*
2158 * bail out to wb_writeback() often enough to check
2159 * background threshold and other termination conditions.
2160 */
2161 if (total_wrote) {
2162 if (time_is_before_jiffies(start_time + HZ / 10UL))
2163 break;
2164 if (work->nr_pages <= 0)
2165 break;
2166 }
2167 }
2168 return total_wrote;
2169 }
2170
__writeback_inodes_wb(struct bdi_writeback * wb,struct wb_writeback_work * work)2171 static long __writeback_inodes_wb(struct bdi_writeback *wb,
2172 struct wb_writeback_work *work)
2173 {
2174 unsigned long start_time = jiffies;
2175 long wrote = 0;
2176
2177 while (!list_empty(&wb->b_io)) {
2178 struct inode *inode = wb_inode(wb->b_io.prev);
2179 struct super_block *sb = inode->i_sb;
2180
2181 if (!super_trylock_shared(sb)) {
2182 /*
2183 * super_trylock_shared() may fail consistently due to
2184 * s_umount being grabbed by someone else. Don't use
2185 * requeue_io() to avoid busy retrying the inode/sb.
2186 */
2187 redirty_tail(inode, wb);
2188 continue;
2189 }
2190 wrote += writeback_sb_inodes(sb, wb, work);
2191 up_read(&sb->s_umount);
2192
2193 /* refer to the same tests at the end of writeback_sb_inodes */
2194 if (wrote) {
2195 if (time_is_before_jiffies(start_time + HZ / 10UL))
2196 break;
2197 if (work->nr_pages <= 0)
2198 break;
2199 }
2200 }
2201 /* Leave any unwritten inodes on b_io */
2202 return wrote;
2203 }
2204
writeback_inodes_wb(struct bdi_writeback * wb,long nr_pages,enum wb_reason reason)2205 static long writeback_inodes_wb(struct bdi_writeback *wb, long nr_pages,
2206 enum wb_reason reason)
2207 {
2208 struct wb_writeback_work work = {
2209 .nr_pages = nr_pages,
2210 .sync_mode = WB_SYNC_NONE,
2211 .range_cyclic = 1,
2212 .reason = reason,
2213 };
2214 struct blk_plug plug;
2215
2216 blk_start_plug(&plug);
2217 spin_lock(&wb->list_lock);
2218 if (list_empty(&wb->b_io))
2219 queue_io(wb, &work, jiffies);
2220 __writeback_inodes_wb(wb, &work);
2221 spin_unlock(&wb->list_lock);
2222 blk_finish_plug(&plug);
2223
2224 return nr_pages - work.nr_pages;
2225 }
2226
2227 /*
2228 * Explicit flushing or periodic writeback of "old" data.
2229 *
2230 * Define "old": the first time one of an inode's pages is dirtied, we mark the
2231 * dirtying-time in the inode's address_space. So this periodic writeback code
2232 * just walks the superblock inode list, writing back any inodes which are
2233 * older than a specific point in time.
2234 *
2235 * Try to run once per dirty_writeback_interval. But if a writeback event
2236 * takes longer than a dirty_writeback_interval interval, then leave a
2237 * one-second gap.
2238 *
2239 * dirtied_before takes precedence over nr_to_write. So we'll only write back
2240 * all dirty pages if they are all attached to "old" mappings.
2241 */
wb_writeback(struct bdi_writeback * wb,struct wb_writeback_work * work)2242 static long wb_writeback(struct bdi_writeback *wb,
2243 struct wb_writeback_work *work)
2244 {
2245 long nr_pages = work->nr_pages;
2246 unsigned long dirtied_before = jiffies;
2247 struct inode *inode;
2248 long progress;
2249 struct blk_plug plug;
2250 bool queued = false;
2251
2252 blk_start_plug(&plug);
2253 for (;;) {
2254 /*
2255 * Stop writeback when nr_pages has been consumed
2256 */
2257 if (work->nr_pages <= 0)
2258 break;
2259
2260 /*
2261 * Background writeout and kupdate-style writeback may
2262 * run forever. Stop them if there is other work to do
2263 * so that e.g. sync can proceed. They'll be restarted
2264 * after the other works are all done.
2265 */
2266 if ((work->for_background || work->for_kupdate) &&
2267 !list_empty(&wb->work_list))
2268 break;
2269
2270 /*
2271 * For background writeout, stop when we are below the
2272 * background dirty threshold
2273 */
2274 if (work->for_background && !wb_over_bg_thresh(wb))
2275 break;
2276
2277
2278 spin_lock(&wb->list_lock);
2279
2280 trace_writeback_start(wb, work);
2281 if (list_empty(&wb->b_io)) {
2282 /*
2283 * Kupdate and background works are special and we want
2284 * to include all inodes that need writing. Livelock
2285 * avoidance is handled by these works yielding to any
2286 * other work so we are safe.
2287 */
2288 if (work->for_kupdate) {
2289 dirtied_before = jiffies -
2290 msecs_to_jiffies(dirty_expire_interval *
2291 10);
2292 } else if (work->for_background)
2293 dirtied_before = jiffies;
2294
2295 queue_io(wb, work, dirtied_before);
2296 queued = true;
2297 }
2298 if (work->sb)
2299 progress = writeback_sb_inodes(work->sb, wb, work);
2300 else
2301 progress = __writeback_inodes_wb(wb, work);
2302 trace_writeback_written(wb, work);
2303
2304 /*
2305 * Did we write something? Try for more
2306 *
2307 * Dirty inodes are moved to b_io for writeback in batches.
2308 * The completion of the current batch does not necessarily
2309 * mean the overall work is done. So we keep looping as long
2310 * as made some progress on cleaning pages or inodes.
2311 */
2312 if (progress || !queued) {
2313 spin_unlock(&wb->list_lock);
2314 continue;
2315 }
2316
2317 /*
2318 * No more inodes for IO, bail
2319 */
2320 if (list_empty(&wb->b_more_io)) {
2321 spin_unlock(&wb->list_lock);
2322 break;
2323 }
2324
2325 /*
2326 * Nothing written. Wait for some inode to
2327 * become available for writeback. Otherwise
2328 * we'll just busyloop.
2329 */
2330 trace_writeback_wait(wb, work);
2331 inode = wb_inode(wb->b_more_io.prev);
2332 spin_lock(&inode->i_lock);
2333 spin_unlock(&wb->list_lock);
2334 /* This function drops i_lock... */
2335 inode_sleep_on_writeback(inode);
2336 }
2337 blk_finish_plug(&plug);
2338
2339 return nr_pages - work->nr_pages;
2340 }
2341
2342 /*
2343 * Return the next wb_writeback_work struct that hasn't been processed yet.
2344 */
get_next_work_item(struct bdi_writeback * wb)2345 static struct wb_writeback_work *get_next_work_item(struct bdi_writeback *wb)
2346 {
2347 struct wb_writeback_work *work = NULL;
2348
2349 spin_lock_irq(&wb->work_lock);
2350 if (!list_empty(&wb->work_list)) {
2351 work = list_entry(wb->work_list.next,
2352 struct wb_writeback_work, list);
2353 list_del_init(&work->list);
2354 }
2355 spin_unlock_irq(&wb->work_lock);
2356 return work;
2357 }
2358
wb_check_background_flush(struct bdi_writeback * wb)2359 static long wb_check_background_flush(struct bdi_writeback *wb)
2360 {
2361 if (wb_over_bg_thresh(wb)) {
2362
2363 struct wb_writeback_work work = {
2364 .nr_pages = LONG_MAX,
2365 .sync_mode = WB_SYNC_NONE,
2366 .for_background = 1,
2367 .range_cyclic = 1,
2368 .reason = WB_REASON_BACKGROUND,
2369 };
2370
2371 return wb_writeback(wb, &work);
2372 }
2373
2374 return 0;
2375 }
2376
wb_check_old_data_flush(struct bdi_writeback * wb)2377 static long wb_check_old_data_flush(struct bdi_writeback *wb)
2378 {
2379 unsigned long expired;
2380 long nr_pages;
2381
2382 /*
2383 * When set to zero, disable periodic writeback
2384 */
2385 if (!dirty_writeback_interval)
2386 return 0;
2387
2388 expired = wb->last_old_flush +
2389 msecs_to_jiffies(dirty_writeback_interval * 10);
2390 if (time_before(jiffies, expired))
2391 return 0;
2392
2393 wb->last_old_flush = jiffies;
2394 nr_pages = get_nr_dirty_pages();
2395
2396 if (nr_pages) {
2397 struct wb_writeback_work work = {
2398 .nr_pages = nr_pages,
2399 .sync_mode = WB_SYNC_NONE,
2400 .for_kupdate = 1,
2401 .range_cyclic = 1,
2402 .reason = WB_REASON_PERIODIC,
2403 };
2404
2405 return wb_writeback(wb, &work);
2406 }
2407
2408 return 0;
2409 }
2410
wb_check_start_all(struct bdi_writeback * wb)2411 static long wb_check_start_all(struct bdi_writeback *wb)
2412 {
2413 long nr_pages;
2414
2415 if (!test_bit(WB_start_all, &wb->state))
2416 return 0;
2417
2418 nr_pages = get_nr_dirty_pages();
2419 if (nr_pages) {
2420 struct wb_writeback_work work = {
2421 .nr_pages = wb_split_bdi_pages(wb, nr_pages),
2422 .sync_mode = WB_SYNC_NONE,
2423 .range_cyclic = 1,
2424 .reason = wb->start_all_reason,
2425 };
2426
2427 nr_pages = wb_writeback(wb, &work);
2428 }
2429
2430 clear_bit(WB_start_all, &wb->state);
2431 return nr_pages;
2432 }
2433
wb_check_start_dontcache(struct bdi_writeback * wb)2434 static long wb_check_start_dontcache(struct bdi_writeback *wb)
2435 {
2436 long nr_pages;
2437
2438 if (!test_and_clear_bit(WB_start_dontcache, &wb->state))
2439 return 0;
2440
2441 nr_pages = wb_stat_sum(wb, WB_DONTCACHE_DIRTY);
2442 if (nr_pages) {
2443 struct wb_writeback_work work = {
2444 .nr_pages = nr_pages,
2445 .sync_mode = WB_SYNC_NONE,
2446 .range_cyclic = 1,
2447 .reason = WB_REASON_DONTCACHE,
2448 };
2449
2450 nr_pages = wb_writeback(wb, &work);
2451 }
2452
2453 return nr_pages;
2454 }
2455
2456 /*
2457 * Retrieve work items and do the writeback they describe
2458 */
wb_do_writeback(struct bdi_writeback * wb)2459 static long wb_do_writeback(struct bdi_writeback *wb)
2460 {
2461 struct wb_writeback_work *work;
2462 long wrote = 0;
2463
2464 set_bit(WB_writeback_running, &wb->state);
2465 while ((work = get_next_work_item(wb)) != NULL) {
2466 trace_writeback_exec(wb, work);
2467 wrote += wb_writeback(wb, work);
2468 finish_writeback_work(work);
2469 }
2470
2471 /*
2472 * Check for a flush-everything request
2473 */
2474 wrote += wb_check_start_all(wb);
2475
2476 /*
2477 * Check for dontcache writeback request
2478 */
2479 wrote += wb_check_start_dontcache(wb);
2480
2481 /*
2482 * Check for periodic writeback, kupdated() style
2483 */
2484 wrote += wb_check_old_data_flush(wb);
2485 wrote += wb_check_background_flush(wb);
2486 clear_bit(WB_writeback_running, &wb->state);
2487
2488 return wrote;
2489 }
2490
2491 /*
2492 * Handle writeback of dirty data for the device backed by this bdi. Also
2493 * reschedules periodically and does kupdated style flushing.
2494 */
wb_workfn(struct work_struct * work)2495 void wb_workfn(struct work_struct *work)
2496 {
2497 struct bdi_writeback *wb = container_of(to_delayed_work(work),
2498 struct bdi_writeback, dwork);
2499 long pages_written;
2500
2501 set_worker_desc("flush-%s", bdi_dev_name(wb->bdi));
2502
2503 if (likely(!current_is_workqueue_rescuer() ||
2504 !test_bit(WB_registered, &wb->state))) {
2505 /*
2506 * The normal path. Keep writing back @wb until its
2507 * work_list is empty. Note that this path is also taken
2508 * if @wb is shutting down even when we're running off the
2509 * rescuer as work_list needs to be drained.
2510 */
2511 do {
2512 pages_written = wb_do_writeback(wb);
2513 trace_writeback_pages_written(pages_written);
2514 } while (!list_empty(&wb->work_list));
2515 } else {
2516 /*
2517 * bdi_wq can't get enough workers and we're running off
2518 * the emergency worker. Don't hog it. Hopefully, 1024 is
2519 * enough for efficient IO.
2520 */
2521 pages_written = writeback_inodes_wb(wb, 1024,
2522 WB_REASON_FORKER_THREAD);
2523 trace_writeback_pages_written(pages_written);
2524 }
2525
2526 if (!list_empty(&wb->work_list))
2527 wb_wakeup(wb);
2528 else if (wb_has_dirty_io(wb) && dirty_writeback_interval)
2529 wb_wakeup_delayed(wb);
2530 }
2531
2532 /*
2533 * Start writeback of all dirty pages on this bdi.
2534 */
__wakeup_flusher_threads_bdi(struct backing_dev_info * bdi,enum wb_reason reason)2535 static void __wakeup_flusher_threads_bdi(struct backing_dev_info *bdi,
2536 enum wb_reason reason)
2537 {
2538 struct bdi_writeback *wb;
2539
2540 if (!bdi_has_dirty_io(bdi))
2541 return;
2542
2543 list_for_each_entry_rcu(wb, &bdi->wb_list, bdi_node)
2544 wb_start_writeback(wb, reason);
2545 }
2546
wakeup_flusher_threads_bdi(struct backing_dev_info * bdi,enum wb_reason reason)2547 void wakeup_flusher_threads_bdi(struct backing_dev_info *bdi,
2548 enum wb_reason reason)
2549 {
2550 rcu_read_lock();
2551 __wakeup_flusher_threads_bdi(bdi, reason);
2552 rcu_read_unlock();
2553 }
2554
2555 /**
2556 * filemap_dontcache_kick_writeback - kick flusher for IOCB_DONTCACHE writes
2557 * @mapping: address_space that was just written to
2558 *
2559 * Kick the writeback flusher thread to expedite writeback of dontcache dirty
2560 * pages. Queue writeback for the inode's wb for as many pages as there are
2561 * dontcache pages, but don't restrict writeback to dontcache pages only.
2562 *
2563 * This significantly improves performance over either writing all wb's pages
2564 * or writing only dontcache pages. Although it doesn't guarantee quick
2565 * writeback and reclaim of dontcache pages, it keeps the amount of dirty pages
2566 * in check. Over longer term dontcache pages get written and reclaimed by
2567 * background writeback even with this rough heuristic.
2568 */
filemap_dontcache_kick_writeback(struct address_space * mapping)2569 void filemap_dontcache_kick_writeback(struct address_space *mapping)
2570 {
2571 struct inode *inode = mapping->host;
2572 struct bdi_writeback *wb;
2573 struct wb_lock_cookie cookie = {};
2574 bool need_wakeup = false;
2575
2576 wb = unlocked_inode_to_wb_begin(inode, &cookie);
2577 if (wb_has_dirty_io(wb) &&
2578 !test_bit(WB_start_dontcache, &wb->state) &&
2579 !test_and_set_bit(WB_start_dontcache, &wb->state)) {
2580 wb_get(wb);
2581 need_wakeup = true;
2582 }
2583 unlocked_inode_to_wb_end(inode, &cookie);
2584
2585 if (need_wakeup) {
2586 wb_wakeup(wb);
2587 wb_put(wb);
2588 }
2589 }
2590 EXPORT_SYMBOL_GPL(filemap_dontcache_kick_writeback);
2591
2592 /*
2593 * Wakeup the flusher threads to start writeback of all currently dirty pages
2594 */
wakeup_flusher_threads(enum wb_reason reason)2595 void wakeup_flusher_threads(enum wb_reason reason)
2596 {
2597 struct backing_dev_info *bdi;
2598
2599 /*
2600 * If we are expecting writeback progress we must submit plugged IO.
2601 */
2602 blk_flush_plug(current->plug, true);
2603
2604 rcu_read_lock();
2605 list_for_each_entry_rcu(bdi, &bdi_list, bdi_list)
2606 __wakeup_flusher_threads_bdi(bdi, reason);
2607 rcu_read_unlock();
2608 }
2609
2610 /*
2611 * Wake up bdi's periodically to make sure dirtytime inodes gets
2612 * written back periodically. We deliberately do *not* check the
2613 * b_dirtytime list in wb_has_dirty_io(), since this would cause the
2614 * kernel to be constantly waking up once there are any dirtytime
2615 * inodes on the system. So instead we define a separate delayed work
2616 * function which gets called much more rarely. (By default, only
2617 * once every 12 hours.)
2618 *
2619 * If there is any other write activity going on in the file system,
2620 * this function won't be necessary. But if the only thing that has
2621 * happened on the file system is a dirtytime inode caused by an atime
2622 * update, we need this infrastructure below to make sure that inode
2623 * eventually gets pushed out to disk.
2624 */
2625 static void wakeup_dirtytime_writeback(struct work_struct *w);
2626 static DECLARE_DELAYED_WORK(dirtytime_work, wakeup_dirtytime_writeback);
2627
wakeup_dirtytime_writeback(struct work_struct * w)2628 static void wakeup_dirtytime_writeback(struct work_struct *w)
2629 {
2630 struct backing_dev_info *bdi;
2631
2632 rcu_read_lock();
2633 list_for_each_entry_rcu(bdi, &bdi_list, bdi_list) {
2634 struct bdi_writeback *wb;
2635
2636 list_for_each_entry_rcu(wb, &bdi->wb_list, bdi_node)
2637 if (!list_empty(&wb->b_dirty_time))
2638 wb_wakeup(wb);
2639 }
2640 rcu_read_unlock();
2641 if (dirtytime_expire_interval)
2642 schedule_delayed_work(&dirtytime_work,
2643 round_jiffies_relative(dirtytime_expire_interval * HZ));
2644 }
2645
dirtytime_interval_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)2646 static int dirtytime_interval_handler(const struct ctl_table *table, int write,
2647 void *buffer, size_t *lenp, loff_t *ppos)
2648 {
2649 int ret;
2650
2651 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
2652 if (ret == 0 && write) {
2653 if (dirtytime_expire_interval)
2654 mod_delayed_work(system_percpu_wq, &dirtytime_work, 0);
2655 else
2656 cancel_delayed_work_sync(&dirtytime_work);
2657 }
2658 return ret;
2659 }
2660
2661 static const struct ctl_table vm_fs_writeback_table[] = {
2662 {
2663 .procname = "dirtytime_expire_seconds",
2664 .data = &dirtytime_expire_interval,
2665 .maxlen = sizeof(dirtytime_expire_interval),
2666 .mode = 0644,
2667 .proc_handler = dirtytime_interval_handler,
2668 .extra1 = SYSCTL_ZERO,
2669 },
2670 };
2671
start_dirtytime_writeback(void)2672 static int __init start_dirtytime_writeback(void)
2673 {
2674 if (dirtytime_expire_interval)
2675 schedule_delayed_work(&dirtytime_work,
2676 round_jiffies_relative(dirtytime_expire_interval * HZ));
2677 register_sysctl_init("vm", vm_fs_writeback_table);
2678 return 0;
2679 }
2680 __initcall(start_dirtytime_writeback);
2681
2682 /**
2683 * __mark_inode_dirty - internal function to mark an inode dirty
2684 *
2685 * @inode: inode to mark
2686 * @flags: what kind of dirty, e.g. I_DIRTY_SYNC. This can be a combination of
2687 * multiple I_DIRTY_* flags, except that I_DIRTY_TIME can't be combined
2688 * with I_DIRTY_PAGES.
2689 *
2690 * Mark an inode as dirty. We notify the filesystem, then update the inode's
2691 * dirty flags. Then, if needed we add the inode to the appropriate dirty list.
2692 *
2693 * Most callers should use mark_inode_dirty() or mark_inode_dirty_sync()
2694 * instead of calling this directly.
2695 *
2696 * CAREFUL! We only add the inode to the dirty list if it is hashed or if it
2697 * refers to a blockdev. Unhashed inodes will never be added to the dirty list
2698 * even if they are later hashed, as they will have been marked dirty already.
2699 *
2700 * In short, ensure you hash any inodes _before_ you start marking them dirty.
2701 *
2702 * Note that for blockdevs, inode->dirtied_when represents the dirtying time of
2703 * the block-special inode (/dev/hda1) itself. And the ->dirtied_when field of
2704 * the kernel-internal blockdev inode represents the dirtying time of the
2705 * blockdev's pages. This is why for I_DIRTY_PAGES we always use
2706 * page->mapping->host, so the page-dirtying time is recorded in the internal
2707 * blockdev inode.
2708 */
__mark_inode_dirty(struct inode * inode,int flags)2709 void __mark_inode_dirty(struct inode *inode, int flags)
2710 {
2711 struct super_block *sb = inode->i_sb;
2712 int dirtytime = 0;
2713 struct bdi_writeback *wb = NULL;
2714
2715 trace_writeback_mark_inode_dirty(inode, flags);
2716
2717 if (flags & I_DIRTY_INODE) {
2718 bool was_dirty_time = false;
2719
2720 /*
2721 * Inode timestamp update will piggback on this dirtying.
2722 * We tell ->dirty_inode callback that timestamps need to
2723 * be updated by setting I_DIRTY_TIME in flags.
2724 */
2725 if (inode_state_read_once(inode) & I_DIRTY_TIME) {
2726 spin_lock(&inode->i_lock);
2727 if (inode_state_read(inode) & I_DIRTY_TIME) {
2728 inode_state_clear(inode, I_DIRTY_TIME);
2729 flags |= I_DIRTY_TIME;
2730 was_dirty_time = true;
2731 }
2732 spin_unlock(&inode->i_lock);
2733 }
2734
2735 /*
2736 * Notify the filesystem about the inode being dirtied, so that
2737 * (if needed) it can update on-disk fields and journal the
2738 * inode. This is only needed when the inode itself is being
2739 * dirtied now. I.e. it's only needed for I_DIRTY_INODE, not
2740 * for just I_DIRTY_PAGES or I_DIRTY_TIME.
2741 */
2742 trace_writeback_dirty_inode_start(inode, flags);
2743 if (sb->s_op->dirty_inode) {
2744 sb->s_op->dirty_inode(inode,
2745 flags & (I_DIRTY_INODE | I_DIRTY_TIME));
2746 } else if (was_dirty_time && inode->i_op->sync_lazytime) {
2747 inode->i_op->sync_lazytime(inode);
2748 }
2749 trace_writeback_dirty_inode(inode, flags);
2750
2751 /* I_DIRTY_INODE supersedes I_DIRTY_TIME. */
2752 flags &= ~I_DIRTY_TIME;
2753 } else {
2754 /*
2755 * Else it's either I_DIRTY_PAGES, I_DIRTY_TIME, or nothing.
2756 * (We don't support setting both I_DIRTY_PAGES and I_DIRTY_TIME
2757 * in one call to __mark_inode_dirty().)
2758 */
2759 dirtytime = flags & I_DIRTY_TIME;
2760 WARN_ON_ONCE(dirtytime && flags != I_DIRTY_TIME);
2761 }
2762
2763 /*
2764 * Paired with smp_mb() in __writeback_single_inode() for the
2765 * following lockless i_state test. See there for details.
2766 */
2767 smp_mb();
2768
2769 if ((inode_state_read_once(inode) & flags) == flags)
2770 return;
2771
2772 spin_lock(&inode->i_lock);
2773 if ((inode_state_read(inode) & flags) != flags) {
2774 const int was_dirty = inode_state_read(inode) & I_DIRTY;
2775
2776 inode_attach_wb(inode, NULL);
2777
2778 inode_state_set(inode, flags);
2779
2780 /*
2781 * Grab inode's wb early because it requires dropping i_lock and we
2782 * need to make sure following checks happen atomically with dirty
2783 * list handling so that we don't move inodes under flush worker's
2784 * hands.
2785 */
2786 if (!was_dirty) {
2787 wb = locked_inode_to_wb_and_lock_list(inode);
2788 spin_lock(&inode->i_lock);
2789 }
2790
2791 /*
2792 * If the inode is queued for writeback by flush worker, just
2793 * update its dirty state. Once the flush worker is done with
2794 * the inode it will place it on the appropriate superblock
2795 * list, based upon its state.
2796 */
2797 if (inode_state_read(inode) & I_SYNC_QUEUED)
2798 goto out_unlock;
2799
2800 /*
2801 * Only add valid (hashed) inodes to the superblock's
2802 * dirty list. Add blockdev inodes as well.
2803 */
2804 if (!S_ISBLK(inode->i_mode)) {
2805 if (inode_unhashed(inode))
2806 goto out_unlock;
2807 }
2808 if (inode_state_read(inode) & I_FREEING)
2809 goto out_unlock;
2810
2811 /*
2812 * If the inode was already on b_dirty/b_io/b_more_io, don't
2813 * reposition it (that would break b_dirty time-ordering).
2814 */
2815 if (!was_dirty) {
2816 struct list_head *dirty_list;
2817 bool wakeup_bdi = false;
2818
2819 inode->dirtied_when = jiffies;
2820 if (dirtytime)
2821 inode->dirtied_time_when = jiffies;
2822
2823 if (inode_state_read(inode) & I_DIRTY)
2824 dirty_list = &wb->b_dirty;
2825 else
2826 dirty_list = &wb->b_dirty_time;
2827
2828 wakeup_bdi = inode_io_list_move_locked(inode, wb,
2829 dirty_list);
2830
2831 /*
2832 * If this is the first dirty inode for this bdi,
2833 * we have to wake-up the corresponding bdi thread
2834 * to make sure background write-back happens
2835 * later.
2836 */
2837 if (wakeup_bdi &&
2838 (wb->bdi->capabilities & BDI_CAP_WRITEBACK))
2839 wb_wakeup_delayed(wb);
2840
2841 spin_unlock(&wb->list_lock);
2842 spin_unlock(&inode->i_lock);
2843 trace_writeback_dirty_inode_enqueue(inode);
2844
2845 return;
2846 }
2847 }
2848 out_unlock:
2849 if (wb)
2850 spin_unlock(&wb->list_lock);
2851 spin_unlock(&inode->i_lock);
2852 }
2853 EXPORT_SYMBOL(__mark_inode_dirty);
2854
2855 /*
2856 * The @s_sync_lock is used to serialise concurrent sync operations
2857 * to avoid lock contention problems with concurrent wait_sb_inodes() calls.
2858 * Concurrent callers will block on the s_sync_lock rather than doing contending
2859 * walks. The queueing maintains sync(2) required behaviour as all the IO that
2860 * has been issued up to the time this function is enter is guaranteed to be
2861 * completed by the time we have gained the lock and waited for all IO that is
2862 * in progress regardless of the order callers are granted the lock.
2863 */
wait_sb_inodes(struct super_block * sb)2864 static void wait_sb_inodes(struct super_block *sb)
2865 {
2866 LIST_HEAD(sync_list);
2867
2868 /*
2869 * We need to be protected against the filesystem going from
2870 * r/o to r/w or vice versa.
2871 */
2872 WARN_ON(!rwsem_is_locked(&sb->s_umount));
2873
2874 mutex_lock(&sb->s_sync_lock);
2875
2876 /*
2877 * Splice the writeback list onto a temporary list to avoid waiting on
2878 * inodes that have started writeback after this point.
2879 *
2880 * Use rcu_read_lock() to keep the inodes around until we have a
2881 * reference. s_inode_wblist_lock protects sb->s_inodes_wb as well as
2882 * the local list because inodes can be dropped from either by writeback
2883 * completion.
2884 */
2885 rcu_read_lock();
2886 spin_lock_irq(&sb->s_inode_wblist_lock);
2887 list_splice_init(&sb->s_inodes_wb, &sync_list);
2888
2889 /*
2890 * Data integrity sync. Must wait for all pages under writeback, because
2891 * there may have been pages dirtied before our sync call, but which had
2892 * writeout started before we write it out. In which case, the inode
2893 * may not be on the dirty list, but we still have to wait for that
2894 * writeout.
2895 */
2896 while (!list_empty(&sync_list)) {
2897 struct inode *inode = list_first_entry(&sync_list, struct inode,
2898 i_wb_list);
2899 struct address_space *mapping = inode->i_mapping;
2900
2901 /*
2902 * Move each inode back to the wb list before we drop the lock
2903 * to preserve consistency between i_wb_list and the mapping
2904 * writeback tag. Writeback completion is responsible to remove
2905 * the inode from either list once the writeback tag is cleared.
2906 */
2907 list_move_tail(&inode->i_wb_list, &sb->s_inodes_wb);
2908
2909 /*
2910 * The mapping can appear untagged while still on-list since we
2911 * do not have the mapping lock. Skip it here, wb completion
2912 * will remove it.
2913 */
2914 if (!mapping_tagged(mapping, PAGECACHE_TAG_WRITEBACK))
2915 continue;
2916
2917 spin_unlock_irq(&sb->s_inode_wblist_lock);
2918
2919 spin_lock(&inode->i_lock);
2920 if (inode_state_read(inode) & (I_FREEING | I_WILL_FREE | I_NEW)) {
2921 spin_unlock(&inode->i_lock);
2922
2923 spin_lock_irq(&sb->s_inode_wblist_lock);
2924 continue;
2925 }
2926 __iget(inode);
2927 spin_unlock(&inode->i_lock);
2928 rcu_read_unlock();
2929
2930 /*
2931 * We keep the error status of individual mapping so that
2932 * applications can catch the writeback error using fsync(2).
2933 * See filemap_fdatawait_keep_errors() for details.
2934 */
2935 filemap_fdatawait_keep_errors(mapping);
2936
2937 cond_resched();
2938
2939 iput(inode);
2940
2941 rcu_read_lock();
2942 spin_lock_irq(&sb->s_inode_wblist_lock);
2943 }
2944 spin_unlock_irq(&sb->s_inode_wblist_lock);
2945 rcu_read_unlock();
2946 mutex_unlock(&sb->s_sync_lock);
2947 }
2948
__writeback_inodes_sb_nr(struct super_block * sb,unsigned long nr,enum wb_reason reason,bool skip_if_busy)2949 static void __writeback_inodes_sb_nr(struct super_block *sb, unsigned long nr,
2950 enum wb_reason reason, bool skip_if_busy)
2951 {
2952 struct backing_dev_info *bdi = sb->s_bdi;
2953 DEFINE_WB_COMPLETION(done, bdi);
2954 struct wb_writeback_work work = {
2955 .sb = sb,
2956 .sync_mode = WB_SYNC_NONE,
2957 .tagged_writepages = 1,
2958 .done = &done,
2959 .nr_pages = nr,
2960 .reason = reason,
2961 };
2962
2963 if (!bdi_has_dirty_io(bdi) || bdi == &noop_backing_dev_info)
2964 return;
2965 WARN_ON(!rwsem_is_locked(&sb->s_umount));
2966
2967 bdi_split_work_to_wbs(sb->s_bdi, &work, skip_if_busy);
2968 wb_wait_for_completion(&done);
2969 }
2970
2971 /**
2972 * writeback_inodes_sb_nr - writeback dirty inodes from given super_block
2973 * @sb: the superblock
2974 * @nr: the number of pages to write
2975 * @reason: reason why some writeback work initiated
2976 *
2977 * Start writeback on some inodes on this super_block. No guarantees are made
2978 * on how many (if any) will be written, and this function does not wait
2979 * for IO completion of submitted IO.
2980 */
writeback_inodes_sb_nr(struct super_block * sb,unsigned long nr,enum wb_reason reason)2981 void writeback_inodes_sb_nr(struct super_block *sb,
2982 unsigned long nr,
2983 enum wb_reason reason)
2984 {
2985 __writeback_inodes_sb_nr(sb, nr, reason, false);
2986 }
2987 EXPORT_SYMBOL(writeback_inodes_sb_nr);
2988
2989 /**
2990 * writeback_inodes_sb - writeback dirty inodes from given super_block
2991 * @sb: the superblock
2992 * @reason: reason why some writeback work was initiated
2993 *
2994 * Start writeback on some inodes on this super_block. No guarantees are made
2995 * on how many (if any) will be written, and this function does not wait
2996 * for IO completion of submitted IO.
2997 */
writeback_inodes_sb(struct super_block * sb,enum wb_reason reason)2998 void writeback_inodes_sb(struct super_block *sb, enum wb_reason reason)
2999 {
3000 writeback_inodes_sb_nr(sb, get_nr_dirty_pages(), reason);
3001 }
3002 EXPORT_SYMBOL(writeback_inodes_sb);
3003
3004 /**
3005 * try_to_writeback_inodes_sb - try to start writeback if none underway
3006 * @sb: the superblock
3007 * @reason: reason why some writeback work was initiated
3008 *
3009 * Invoke __writeback_inodes_sb_nr if no writeback is currently underway.
3010 */
try_to_writeback_inodes_sb(struct super_block * sb,enum wb_reason reason)3011 void try_to_writeback_inodes_sb(struct super_block *sb, enum wb_reason reason)
3012 {
3013 if (!down_read_trylock(&sb->s_umount))
3014 return;
3015
3016 __writeback_inodes_sb_nr(sb, get_nr_dirty_pages(), reason, true);
3017 up_read(&sb->s_umount);
3018 }
3019 EXPORT_SYMBOL(try_to_writeback_inodes_sb);
3020
3021 /**
3022 * sync_inodes_sb - sync sb inode pages
3023 * @sb: the superblock
3024 *
3025 * This function writes and waits on any dirty inode belonging to this
3026 * super_block.
3027 */
sync_inodes_sb(struct super_block * sb)3028 void sync_inodes_sb(struct super_block *sb)
3029 {
3030 struct backing_dev_info *bdi = sb->s_bdi;
3031 DEFINE_WB_COMPLETION(done, bdi);
3032 struct wb_writeback_work work = {
3033 .sb = sb,
3034 .sync_mode = WB_SYNC_ALL,
3035 .nr_pages = LONG_MAX,
3036 .range_cyclic = 0,
3037 .done = &done,
3038 .reason = WB_REASON_SYNC,
3039 .for_sync = 1,
3040 };
3041
3042 /*
3043 * Can't skip on !bdi_has_dirty() because we should wait for !dirty
3044 * inodes under writeback and I_DIRTY_TIME inodes ignored by
3045 * bdi_has_dirty() need to be written out too.
3046 */
3047 if (bdi == &noop_backing_dev_info)
3048 return;
3049
3050 /*
3051 * If the superblock has SB_I_NO_DATA_INTEGRITY set, there's no need to
3052 * wait for the writeout to complete, as the filesystem cannot guarantee
3053 * data persistence on sync. Just kick off writeback and return.
3054 */
3055 if (sb->s_iflags & SB_I_NO_DATA_INTEGRITY) {
3056 wakeup_flusher_threads_bdi(bdi, WB_REASON_SYNC);
3057 return;
3058 }
3059
3060 WARN_ON(!rwsem_is_locked(&sb->s_umount));
3061
3062 /* protect against inode wb switch, see inode_switch_wbs_work_fn() */
3063 bdi_down_write_wb_switch_rwsem(bdi);
3064 bdi_split_work_to_wbs(bdi, &work, false);
3065 wb_wait_for_completion(&done);
3066 bdi_up_write_wb_switch_rwsem(bdi);
3067
3068 wait_sb_inodes(sb);
3069 }
3070 EXPORT_SYMBOL(sync_inodes_sb);
3071
3072 /**
3073 * write_inode_now - write an inode to disk
3074 * @inode: inode to write to disk
3075 * @sync: whether the write should be synchronous or not
3076 *
3077 * This function commits an inode to disk immediately if it is dirty. This is
3078 * primarily needed by knfsd.
3079 *
3080 * The caller must either have a ref on the inode or must have set I_WILL_FREE.
3081 */
write_inode_now(struct inode * inode,int sync)3082 int write_inode_now(struct inode *inode, int sync)
3083 {
3084 struct writeback_control wbc = {
3085 .nr_to_write = LONG_MAX,
3086 .sync_mode = sync ? WB_SYNC_ALL : WB_SYNC_NONE,
3087 .range_start = 0,
3088 .range_end = LLONG_MAX,
3089 };
3090
3091 if (!mapping_can_writeback(inode->i_mapping))
3092 wbc.nr_to_write = 0;
3093
3094 might_sleep();
3095 return writeback_single_inode(inode, &wbc);
3096 }
3097 EXPORT_SYMBOL(write_inode_now);
3098
3099 /**
3100 * sync_inode_metadata - write an inode to disk
3101 * @inode: the inode to sync
3102 * @wait: wait for I/O to complete.
3103 *
3104 * Write an inode to disk and adjust its dirty state after completion.
3105 *
3106 * Note: only writes the actual inode, no associated data or other metadata.
3107 */
sync_inode_metadata(struct inode * inode,int wait)3108 int sync_inode_metadata(struct inode *inode, int wait)
3109 {
3110 struct writeback_control wbc = {
3111 .sync_mode = wait ? WB_SYNC_ALL : WB_SYNC_NONE,
3112 .nr_to_write = 0, /* metadata-only */
3113 };
3114
3115 return writeback_single_inode(inode, &wbc);
3116 }
3117 EXPORT_SYMBOL(sync_inode_metadata);
3118