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1 /*
2 * fs/fs-writeback.c
3 *
4 * Copyright (C) 2002, Linus Torvalds.
5 *
6 * Contains all the functions related to writing back and waiting
7 * upon dirty inodes against superblocks, and writing back dirty
8 * pages against inodes. ie: data writeback. Writeout of the
9 * inode itself is not handled here.
10 *
11 * 10Apr2002 Andrew Morton
12 * Split out of fs/inode.c
13 * Additions for address_space-based writeback
14 */
15
16 #include <linux/kernel.h>
17 #include <linux/export.h>
18 #include <linux/spinlock.h>
19 #include <linux/slab.h>
20 #include <linux/sched.h>
21 #include <linux/fs.h>
22 #include <linux/mm.h>
23 #include <linux/pagemap.h>
24 #include <linux/kthread.h>
25 #include <linux/writeback.h>
26 #include <linux/blkdev.h>
27 #include <linux/backing-dev.h>
28 #include <linux/tracepoint.h>
29 #include <linux/device.h>
30 #include <linux/memcontrol.h>
31 #include "internal.h"
32
33 /*
34 * 4MB minimal write chunk size
35 */
36 #define MIN_WRITEBACK_PAGES (4096UL >> (PAGE_CACHE_SHIFT - 10))
37
38 struct wb_completion {
39 atomic_t cnt;
40 };
41
42 /*
43 * Passed into wb_writeback(), essentially a subset of writeback_control
44 */
45 struct wb_writeback_work {
46 long nr_pages;
47 struct super_block *sb;
48 unsigned long *older_than_this;
49 enum writeback_sync_modes sync_mode;
50 unsigned int tagged_writepages:1;
51 unsigned int for_kupdate:1;
52 unsigned int range_cyclic:1;
53 unsigned int for_background:1;
54 unsigned int for_sync:1; /* sync(2) WB_SYNC_ALL writeback */
55 unsigned int auto_free:1; /* free on completion */
56 enum wb_reason reason; /* why was writeback initiated? */
57
58 struct list_head list; /* pending work list */
59 struct wb_completion *done; /* set if the caller waits */
60 };
61
62 /*
63 * If one wants to wait for one or more wb_writeback_works, each work's
64 * ->done should be set to a wb_completion defined using the following
65 * macro. Once all work items are issued with wb_queue_work(), the caller
66 * can wait for the completion of all using wb_wait_for_completion(). Work
67 * items which are waited upon aren't freed automatically on completion.
68 */
69 #define DEFINE_WB_COMPLETION_ONSTACK(cmpl) \
70 struct wb_completion cmpl = { \
71 .cnt = ATOMIC_INIT(1), \
72 }
73
74
75 /*
76 * If an inode is constantly having its pages dirtied, but then the
77 * updates stop dirtytime_expire_interval seconds in the past, it's
78 * possible for the worst case time between when an inode has its
79 * timestamps updated and when they finally get written out to be two
80 * dirtytime_expire_intervals. We set the default to 12 hours (in
81 * seconds), which means most of the time inodes will have their
82 * timestamps written to disk after 12 hours, but in the worst case a
83 * few inodes might not their timestamps updated for 24 hours.
84 */
85 unsigned int dirtytime_expire_interval = 12 * 60 * 60;
86
87 static inline struct inode *wb_inode(struct list_head *head)
88 {
89 return list_entry(head, struct inode, i_io_list);
90 }
91
92 /*
93 * Include the creation of the trace points after defining the
94 * wb_writeback_work structure and inline functions so that the definition
95 * remains local to this file.
96 */
97 #define CREATE_TRACE_POINTS
98 #include <trace/events/writeback.h>
99
100 EXPORT_TRACEPOINT_SYMBOL_GPL(wbc_writepage);
101
102 static bool wb_io_lists_populated(struct bdi_writeback *wb)
103 {
104 if (wb_has_dirty_io(wb)) {
105 return false;
106 } else {
107 set_bit(WB_has_dirty_io, &wb->state);
108 WARN_ON_ONCE(!wb->avg_write_bandwidth);
109 atomic_long_add(wb->avg_write_bandwidth,
110 &wb->bdi->tot_write_bandwidth);
111 return true;
112 }
113 }
114
115 static void wb_io_lists_depopulated(struct bdi_writeback *wb)
116 {
117 if (wb_has_dirty_io(wb) && list_empty(&wb->b_dirty) &&
118 list_empty(&wb->b_io) && list_empty(&wb->b_more_io)) {
119 clear_bit(WB_has_dirty_io, &wb->state);
120 WARN_ON_ONCE(atomic_long_sub_return(wb->avg_write_bandwidth,
121 &wb->bdi->tot_write_bandwidth) < 0);
122 }
123 }
124
125 /**
126 * inode_io_list_move_locked - move an inode onto a bdi_writeback IO list
127 * @inode: inode to be moved
128 * @wb: target bdi_writeback
129 * @head: one of @wb->b_{dirty|io|more_io}
130 *
131 * Move @inode->i_io_list to @list of @wb and set %WB_has_dirty_io.
132 * Returns %true if @inode is the first occupant of the !dirty_time IO
133 * lists; otherwise, %false.
134 */
135 static bool inode_io_list_move_locked(struct inode *inode,
136 struct bdi_writeback *wb,
137 struct list_head *head)
138 {
139 assert_spin_locked(&wb->list_lock);
140
141 list_move(&inode->i_io_list, head);
142
143 /* dirty_time doesn't count as dirty_io until expiration */
144 if (head != &wb->b_dirty_time)
145 return wb_io_lists_populated(wb);
146
147 wb_io_lists_depopulated(wb);
148 return false;
149 }
150
151 /**
152 * inode_io_list_del_locked - remove an inode from its bdi_writeback IO list
153 * @inode: inode to be removed
154 * @wb: bdi_writeback @inode is being removed from
155 *
156 * Remove @inode which may be on one of @wb->b_{dirty|io|more_io} lists and
157 * clear %WB_has_dirty_io if all are empty afterwards.
158 */
159 static void inode_io_list_del_locked(struct inode *inode,
160 struct bdi_writeback *wb)
161 {
162 assert_spin_locked(&wb->list_lock);
163
164 list_del_init(&inode->i_io_list);
165 wb_io_lists_depopulated(wb);
166 }
167
168 static void wb_wakeup(struct bdi_writeback *wb)
169 {
170 spin_lock_bh(&wb->work_lock);
171 if (test_bit(WB_registered, &wb->state))
172 mod_delayed_work(bdi_wq, &wb->dwork, 0);
173 spin_unlock_bh(&wb->work_lock);
174 }
175
176 static void finish_writeback_work(struct bdi_writeback *wb,
177 struct wb_writeback_work *work)
178 {
179 struct wb_completion *done = work->done;
180
181 if (work->auto_free)
182 kfree(work);
183 if (done && atomic_dec_and_test(&done->cnt))
184 wake_up_all(&wb->bdi->wb_waitq);
185 }
186
187 static void wb_queue_work(struct bdi_writeback *wb,
188 struct wb_writeback_work *work)
189 {
190 trace_writeback_queue(wb, work);
191
192 if (work->done)
193 atomic_inc(&work->done->cnt);
194
195 spin_lock_bh(&wb->work_lock);
196
197 if (test_bit(WB_registered, &wb->state)) {
198 list_add_tail(&work->list, &wb->work_list);
199 mod_delayed_work(bdi_wq, &wb->dwork, 0);
200 } else
201 finish_writeback_work(wb, work);
202
203 spin_unlock_bh(&wb->work_lock);
204 }
205
206 /**
207 * wb_wait_for_completion - wait for completion of bdi_writeback_works
208 * @bdi: bdi work items were issued to
209 * @done: target wb_completion
210 *
211 * Wait for one or more work items issued to @bdi with their ->done field
212 * set to @done, which should have been defined with
213 * DEFINE_WB_COMPLETION_ONSTACK(). This function returns after all such
214 * work items are completed. Work items which are waited upon aren't freed
215 * automatically on completion.
216 */
217 static void wb_wait_for_completion(struct backing_dev_info *bdi,
218 struct wb_completion *done)
219 {
220 atomic_dec(&done->cnt); /* put down the initial count */
221 wait_event(bdi->wb_waitq, !atomic_read(&done->cnt));
222 }
223
224 #ifdef CONFIG_CGROUP_WRITEBACK
225
226 /* parameters for foreign inode detection, see wb_detach_inode() */
227 #define WB_FRN_TIME_SHIFT 13 /* 1s = 2^13, upto 8 secs w/ 16bit */
228 #define WB_FRN_TIME_AVG_SHIFT 3 /* avg = avg * 7/8 + new * 1/8 */
229 #define WB_FRN_TIME_CUT_DIV 2 /* ignore rounds < avg / 2 */
230 #define WB_FRN_TIME_PERIOD (2 * (1 << WB_FRN_TIME_SHIFT)) /* 2s */
231
232 #define WB_FRN_HIST_SLOTS 16 /* inode->i_wb_frn_history is 16bit */
233 #define WB_FRN_HIST_UNIT (WB_FRN_TIME_PERIOD / WB_FRN_HIST_SLOTS)
234 /* each slot's duration is 2s / 16 */
235 #define WB_FRN_HIST_THR_SLOTS (WB_FRN_HIST_SLOTS / 2)
236 /* if foreign slots >= 8, switch */
237 #define WB_FRN_HIST_MAX_SLOTS (WB_FRN_HIST_THR_SLOTS / 2 + 1)
238 /* one round can affect upto 5 slots */
239
240 static atomic_t isw_nr_in_flight = ATOMIC_INIT(0);
241 static struct workqueue_struct *isw_wq;
242
243 void __inode_attach_wb(struct inode *inode, struct page *page)
244 {
245 struct backing_dev_info *bdi = inode_to_bdi(inode);
246 struct bdi_writeback *wb = NULL;
247
248 if (inode_cgwb_enabled(inode)) {
249 struct cgroup_subsys_state *memcg_css;
250
251 if (page) {
252 memcg_css = mem_cgroup_css_from_page(page);
253 wb = wb_get_create(bdi, memcg_css, GFP_ATOMIC);
254 } else {
255 /* must pin memcg_css, see wb_get_create() */
256 memcg_css = task_get_css(current, memory_cgrp_id);
257 wb = wb_get_create(bdi, memcg_css, GFP_ATOMIC);
258 css_put(memcg_css);
259 }
260 }
261
262 if (!wb)
263 wb = &bdi->wb;
264
265 /*
266 * There may be multiple instances of this function racing to
267 * update the same inode. Use cmpxchg() to tell the winner.
268 */
269 if (unlikely(cmpxchg(&inode->i_wb, NULL, wb)))
270 wb_put(wb);
271 }
272
273 /**
274 * locked_inode_to_wb_and_lock_list - determine a locked inode's wb and lock it
275 * @inode: inode of interest with i_lock held
276 *
277 * Returns @inode's wb with its list_lock held. @inode->i_lock must be
278 * held on entry and is released on return. The returned wb is guaranteed
279 * to stay @inode's associated wb until its list_lock is released.
280 */
281 static struct bdi_writeback *
282 locked_inode_to_wb_and_lock_list(struct inode *inode)
283 __releases(&inode->i_lock)
284 __acquires(&wb->list_lock)
285 {
286 while (true) {
287 struct bdi_writeback *wb = inode_to_wb(inode);
288
289 /*
290 * inode_to_wb() association is protected by both
291 * @inode->i_lock and @wb->list_lock but list_lock nests
292 * outside i_lock. Drop i_lock and verify that the
293 * association hasn't changed after acquiring list_lock.
294 */
295 wb_get(wb);
296 spin_unlock(&inode->i_lock);
297 spin_lock(&wb->list_lock);
298
299 /* i_wb may have changed inbetween, can't use inode_to_wb() */
300 if (likely(wb == inode->i_wb)) {
301 wb_put(wb); /* @inode already has ref */
302 return wb;
303 }
304
305 spin_unlock(&wb->list_lock);
306 wb_put(wb);
307 cpu_relax();
308 spin_lock(&inode->i_lock);
309 }
310 }
311
312 /**
313 * inode_to_wb_and_lock_list - determine an inode's wb and lock it
314 * @inode: inode of interest
315 *
316 * Same as locked_inode_to_wb_and_lock_list() but @inode->i_lock isn't held
317 * on entry.
318 */
319 static struct bdi_writeback *inode_to_wb_and_lock_list(struct inode *inode)
320 __acquires(&wb->list_lock)
321 {
322 spin_lock(&inode->i_lock);
323 return locked_inode_to_wb_and_lock_list(inode);
324 }
325
326 struct inode_switch_wbs_context {
327 struct inode *inode;
328 struct bdi_writeback *new_wb;
329
330 struct rcu_head rcu_head;
331 struct work_struct work;
332 };
333
334 static void inode_switch_wbs_work_fn(struct work_struct *work)
335 {
336 struct inode_switch_wbs_context *isw =
337 container_of(work, struct inode_switch_wbs_context, work);
338 struct inode *inode = isw->inode;
339 struct address_space *mapping = inode->i_mapping;
340 struct bdi_writeback *old_wb = inode->i_wb;
341 struct bdi_writeback *new_wb = isw->new_wb;
342 struct radix_tree_iter iter;
343 bool switched = false;
344 void **slot;
345
346 /*
347 * By the time control reaches here, RCU grace period has passed
348 * since I_WB_SWITCH assertion and all wb stat update transactions
349 * between unlocked_inode_to_wb_begin/end() are guaranteed to be
350 * synchronizing against mapping->tree_lock.
351 *
352 * Grabbing old_wb->list_lock, inode->i_lock and mapping->tree_lock
353 * gives us exclusion against all wb related operations on @inode
354 * including IO list manipulations and stat updates.
355 */
356 if (old_wb < new_wb) {
357 spin_lock(&old_wb->list_lock);
358 spin_lock_nested(&new_wb->list_lock, SINGLE_DEPTH_NESTING);
359 } else {
360 spin_lock(&new_wb->list_lock);
361 spin_lock_nested(&old_wb->list_lock, SINGLE_DEPTH_NESTING);
362 }
363 spin_lock(&inode->i_lock);
364 spin_lock_irq(&mapping->tree_lock);
365
366 /*
367 * Once I_FREEING is visible under i_lock, the eviction path owns
368 * the inode and we shouldn't modify ->i_io_list.
369 */
370 if (unlikely(inode->i_state & I_FREEING))
371 goto skip_switch;
372
373 /*
374 * Count and transfer stats. Note that PAGECACHE_TAG_DIRTY points
375 * to possibly dirty pages while PAGECACHE_TAG_WRITEBACK points to
376 * pages actually under underwriteback.
377 */
378 radix_tree_for_each_tagged(slot, &mapping->page_tree, &iter, 0,
379 PAGECACHE_TAG_DIRTY) {
380 struct page *page = radix_tree_deref_slot_protected(slot,
381 &mapping->tree_lock);
382 if (likely(page) && PageDirty(page)) {
383 __dec_wb_stat(old_wb, WB_RECLAIMABLE);
384 __inc_wb_stat(new_wb, WB_RECLAIMABLE);
385 }
386 }
387
388 radix_tree_for_each_tagged(slot, &mapping->page_tree, &iter, 0,
389 PAGECACHE_TAG_WRITEBACK) {
390 struct page *page = radix_tree_deref_slot_protected(slot,
391 &mapping->tree_lock);
392 if (likely(page)) {
393 WARN_ON_ONCE(!PageWriteback(page));
394 __dec_wb_stat(old_wb, WB_WRITEBACK);
395 __inc_wb_stat(new_wb, WB_WRITEBACK);
396 }
397 }
398
399 wb_get(new_wb);
400
401 /*
402 * Transfer to @new_wb's IO list if necessary. The specific list
403 * @inode was on is ignored and the inode is put on ->b_dirty which
404 * is always correct including from ->b_dirty_time. The transfer
405 * preserves @inode->dirtied_when ordering.
406 */
407 if (!list_empty(&inode->i_io_list)) {
408 struct inode *pos;
409
410 inode_io_list_del_locked(inode, old_wb);
411 inode->i_wb = new_wb;
412 list_for_each_entry(pos, &new_wb->b_dirty, i_io_list)
413 if (time_after_eq(inode->dirtied_when,
414 pos->dirtied_when))
415 break;
416 inode_io_list_move_locked(inode, new_wb, pos->i_io_list.prev);
417 } else {
418 inode->i_wb = new_wb;
419 }
420
421 /* ->i_wb_frn updates may race wbc_detach_inode() but doesn't matter */
422 inode->i_wb_frn_winner = 0;
423 inode->i_wb_frn_avg_time = 0;
424 inode->i_wb_frn_history = 0;
425 switched = true;
426 skip_switch:
427 /*
428 * Paired with load_acquire in unlocked_inode_to_wb_begin() and
429 * ensures that the new wb is visible if they see !I_WB_SWITCH.
430 */
431 smp_store_release(&inode->i_state, inode->i_state & ~I_WB_SWITCH);
432
433 spin_unlock_irq(&mapping->tree_lock);
434 spin_unlock(&inode->i_lock);
435 spin_unlock(&new_wb->list_lock);
436 spin_unlock(&old_wb->list_lock);
437
438 if (switched) {
439 wb_wakeup(new_wb);
440 wb_put(old_wb);
441 }
442 wb_put(new_wb);
443
444 iput(inode);
445 kfree(isw);
446
447 atomic_dec(&isw_nr_in_flight);
448 }
449
450 static void inode_switch_wbs_rcu_fn(struct rcu_head *rcu_head)
451 {
452 struct inode_switch_wbs_context *isw = container_of(rcu_head,
453 struct inode_switch_wbs_context, rcu_head);
454
455 /* needs to grab bh-unsafe locks, bounce to work item */
456 INIT_WORK(&isw->work, inode_switch_wbs_work_fn);
457 queue_work(isw_wq, &isw->work);
458 }
459
460 /**
461 * inode_switch_wbs - change the wb association of an inode
462 * @inode: target inode
463 * @new_wb_id: ID of the new wb
464 *
465 * Switch @inode's wb association to the wb identified by @new_wb_id. The
466 * switching is performed asynchronously and may fail silently.
467 */
468 static void inode_switch_wbs(struct inode *inode, int new_wb_id)
469 {
470 struct backing_dev_info *bdi = inode_to_bdi(inode);
471 struct cgroup_subsys_state *memcg_css;
472 struct inode_switch_wbs_context *isw;
473
474 /* noop if seems to be already in progress */
475 if (inode->i_state & I_WB_SWITCH)
476 return;
477
478 isw = kzalloc(sizeof(*isw), GFP_ATOMIC);
479 if (!isw)
480 return;
481
482 /* find and pin the new wb */
483 rcu_read_lock();
484 memcg_css = css_from_id(new_wb_id, &memory_cgrp_subsys);
485 if (memcg_css)
486 isw->new_wb = wb_get_create(bdi, memcg_css, GFP_ATOMIC);
487 rcu_read_unlock();
488 if (!isw->new_wb)
489 goto out_free;
490
491 /* while holding I_WB_SWITCH, no one else can update the association */
492 spin_lock(&inode->i_lock);
493 if (!(inode->i_sb->s_flags & MS_ACTIVE) ||
494 inode->i_state & (I_WB_SWITCH | I_FREEING) ||
495 inode_to_wb(inode) == isw->new_wb) {
496 spin_unlock(&inode->i_lock);
497 goto out_free;
498 }
499 inode->i_state |= I_WB_SWITCH;
500 spin_unlock(&inode->i_lock);
501
502 ihold(inode);
503 isw->inode = inode;
504
505 atomic_inc(&isw_nr_in_flight);
506
507 /*
508 * In addition to synchronizing among switchers, I_WB_SWITCH tells
509 * the RCU protected stat update paths to grab the mapping's
510 * tree_lock so that stat transfer can synchronize against them.
511 * Let's continue after I_WB_SWITCH is guaranteed to be visible.
512 */
513 call_rcu(&isw->rcu_head, inode_switch_wbs_rcu_fn);
514 return;
515
516 out_free:
517 if (isw->new_wb)
518 wb_put(isw->new_wb);
519 kfree(isw);
520 }
521
522 /**
523 * wbc_attach_and_unlock_inode - associate wbc with target inode and unlock it
524 * @wbc: writeback_control of interest
525 * @inode: target inode
526 *
527 * @inode is locked and about to be written back under the control of @wbc.
528 * Record @inode's writeback context into @wbc and unlock the i_lock. On
529 * writeback completion, wbc_detach_inode() should be called. This is used
530 * to track the cgroup writeback context.
531 */
532 void wbc_attach_and_unlock_inode(struct writeback_control *wbc,
533 struct inode *inode)
534 {
535 if (!inode_cgwb_enabled(inode)) {
536 spin_unlock(&inode->i_lock);
537 return;
538 }
539
540 wbc->wb = inode_to_wb(inode);
541 wbc->inode = inode;
542
543 wbc->wb_id = wbc->wb->memcg_css->id;
544 wbc->wb_lcand_id = inode->i_wb_frn_winner;
545 wbc->wb_tcand_id = 0;
546 wbc->wb_bytes = 0;
547 wbc->wb_lcand_bytes = 0;
548 wbc->wb_tcand_bytes = 0;
549
550 wb_get(wbc->wb);
551 spin_unlock(&inode->i_lock);
552
553 /*
554 * A dying wb indicates that the memcg-blkcg mapping has changed
555 * and a new wb is already serving the memcg. Switch immediately.
556 */
557 if (unlikely(wb_dying(wbc->wb)))
558 inode_switch_wbs(inode, wbc->wb_id);
559 }
560
561 /**
562 * wbc_detach_inode - disassociate wbc from inode and perform foreign detection
563 * @wbc: writeback_control of the just finished writeback
564 *
565 * To be called after a writeback attempt of an inode finishes and undoes
566 * wbc_attach_and_unlock_inode(). Can be called under any context.
567 *
568 * As concurrent write sharing of an inode is expected to be very rare and
569 * memcg only tracks page ownership on first-use basis severely confining
570 * the usefulness of such sharing, cgroup writeback tracks ownership
571 * per-inode. While the support for concurrent write sharing of an inode
572 * is deemed unnecessary, an inode being written to by different cgroups at
573 * different points in time is a lot more common, and, more importantly,
574 * charging only by first-use can too readily lead to grossly incorrect
575 * behaviors (single foreign page can lead to gigabytes of writeback to be
576 * incorrectly attributed).
577 *
578 * To resolve this issue, cgroup writeback detects the majority dirtier of
579 * an inode and transfers the ownership to it. To avoid unnnecessary
580 * oscillation, the detection mechanism keeps track of history and gives
581 * out the switch verdict only if the foreign usage pattern is stable over
582 * a certain amount of time and/or writeback attempts.
583 *
584 * On each writeback attempt, @wbc tries to detect the majority writer
585 * using Boyer-Moore majority vote algorithm. In addition to the byte
586 * count from the majority voting, it also counts the bytes written for the
587 * current wb and the last round's winner wb (max of last round's current
588 * wb, the winner from two rounds ago, and the last round's majority
589 * candidate). Keeping track of the historical winner helps the algorithm
590 * to semi-reliably detect the most active writer even when it's not the
591 * absolute majority.
592 *
593 * Once the winner of the round is determined, whether the winner is
594 * foreign or not and how much IO time the round consumed is recorded in
595 * inode->i_wb_frn_history. If the amount of recorded foreign IO time is
596 * over a certain threshold, the switch verdict is given.
597 */
598 void wbc_detach_inode(struct writeback_control *wbc)
599 {
600 struct bdi_writeback *wb = wbc->wb;
601 struct inode *inode = wbc->inode;
602 unsigned long avg_time, max_bytes, max_time;
603 u16 history;
604 int max_id;
605
606 if (!wb)
607 return;
608
609 history = inode->i_wb_frn_history;
610 avg_time = inode->i_wb_frn_avg_time;
611
612 /* pick the winner of this round */
613 if (wbc->wb_bytes >= wbc->wb_lcand_bytes &&
614 wbc->wb_bytes >= wbc->wb_tcand_bytes) {
615 max_id = wbc->wb_id;
616 max_bytes = wbc->wb_bytes;
617 } else if (wbc->wb_lcand_bytes >= wbc->wb_tcand_bytes) {
618 max_id = wbc->wb_lcand_id;
619 max_bytes = wbc->wb_lcand_bytes;
620 } else {
621 max_id = wbc->wb_tcand_id;
622 max_bytes = wbc->wb_tcand_bytes;
623 }
624
625 /*
626 * Calculate the amount of IO time the winner consumed and fold it
627 * into the running average kept per inode. If the consumed IO
628 * time is lower than avag / WB_FRN_TIME_CUT_DIV, ignore it for
629 * deciding whether to switch or not. This is to prevent one-off
630 * small dirtiers from skewing the verdict.
631 */
632 max_time = DIV_ROUND_UP((max_bytes >> PAGE_SHIFT) << WB_FRN_TIME_SHIFT,
633 wb->avg_write_bandwidth);
634 if (avg_time)
635 avg_time += (max_time >> WB_FRN_TIME_AVG_SHIFT) -
636 (avg_time >> WB_FRN_TIME_AVG_SHIFT);
637 else
638 avg_time = max_time; /* immediate catch up on first run */
639
640 if (max_time >= avg_time / WB_FRN_TIME_CUT_DIV) {
641 int slots;
642
643 /*
644 * The switch verdict is reached if foreign wb's consume
645 * more than a certain proportion of IO time in a
646 * WB_FRN_TIME_PERIOD. This is loosely tracked by 16 slot
647 * history mask where each bit represents one sixteenth of
648 * the period. Determine the number of slots to shift into
649 * history from @max_time.
650 */
651 slots = min(DIV_ROUND_UP(max_time, WB_FRN_HIST_UNIT),
652 (unsigned long)WB_FRN_HIST_MAX_SLOTS);
653 history <<= slots;
654 if (wbc->wb_id != max_id)
655 history |= (1U << slots) - 1;
656
657 /*
658 * Switch if the current wb isn't the consistent winner.
659 * If there are multiple closely competing dirtiers, the
660 * inode may switch across them repeatedly over time, which
661 * is okay. The main goal is avoiding keeping an inode on
662 * the wrong wb for an extended period of time.
663 */
664 if (hweight32(history) > WB_FRN_HIST_THR_SLOTS)
665 inode_switch_wbs(inode, max_id);
666 }
667
668 /*
669 * Multiple instances of this function may race to update the
670 * following fields but we don't mind occassional inaccuracies.
671 */
672 inode->i_wb_frn_winner = max_id;
673 inode->i_wb_frn_avg_time = min(avg_time, (unsigned long)U16_MAX);
674 inode->i_wb_frn_history = history;
675
676 wb_put(wbc->wb);
677 wbc->wb = NULL;
678 }
679
680 /**
681 * wbc_account_io - account IO issued during writeback
682 * @wbc: writeback_control of the writeback in progress
683 * @page: page being written out
684 * @bytes: number of bytes being written out
685 *
686 * @bytes from @page are about to written out during the writeback
687 * controlled by @wbc. Keep the book for foreign inode detection. See
688 * wbc_detach_inode().
689 */
690 void wbc_account_io(struct writeback_control *wbc, struct page *page,
691 size_t bytes)
692 {
693 int id;
694
695 /*
696 * pageout() path doesn't attach @wbc to the inode being written
697 * out. This is intentional as we don't want the function to block
698 * behind a slow cgroup. Ultimately, we want pageout() to kick off
699 * regular writeback instead of writing things out itself.
700 */
701 if (!wbc->wb)
702 return;
703
704 rcu_read_lock();
705 id = mem_cgroup_css_from_page(page)->id;
706 rcu_read_unlock();
707
708 if (id == wbc->wb_id) {
709 wbc->wb_bytes += bytes;
710 return;
711 }
712
713 if (id == wbc->wb_lcand_id)
714 wbc->wb_lcand_bytes += bytes;
715
716 /* Boyer-Moore majority vote algorithm */
717 if (!wbc->wb_tcand_bytes)
718 wbc->wb_tcand_id = id;
719 if (id == wbc->wb_tcand_id)
720 wbc->wb_tcand_bytes += bytes;
721 else
722 wbc->wb_tcand_bytes -= min(bytes, wbc->wb_tcand_bytes);
723 }
724 EXPORT_SYMBOL_GPL(wbc_account_io);
725
726 /**
727 * inode_congested - test whether an inode is congested
728 * @inode: inode to test for congestion (may be NULL)
729 * @cong_bits: mask of WB_[a]sync_congested bits to test
730 *
731 * Tests whether @inode is congested. @cong_bits is the mask of congestion
732 * bits to test and the return value is the mask of set bits.
733 *
734 * If cgroup writeback is enabled for @inode, the congestion state is
735 * determined by whether the cgwb (cgroup bdi_writeback) for the blkcg
736 * associated with @inode is congested; otherwise, the root wb's congestion
737 * state is used.
738 *
739 * @inode is allowed to be NULL as this function is often called on
740 * mapping->host which is NULL for the swapper space.
741 */
742 int inode_congested(struct inode *inode, int cong_bits)
743 {
744 /*
745 * Once set, ->i_wb never becomes NULL while the inode is alive.
746 * Start transaction iff ->i_wb is visible.
747 */
748 if (inode && inode_to_wb_is_valid(inode)) {
749 struct bdi_writeback *wb;
750 bool locked, congested;
751
752 wb = unlocked_inode_to_wb_begin(inode, &locked);
753 congested = wb_congested(wb, cong_bits);
754 unlocked_inode_to_wb_end(inode, locked);
755 return congested;
756 }
757
758 return wb_congested(&inode_to_bdi(inode)->wb, cong_bits);
759 }
760 EXPORT_SYMBOL_GPL(inode_congested);
761
762 /**
763 * wb_split_bdi_pages - split nr_pages to write according to bandwidth
764 * @wb: target bdi_writeback to split @nr_pages to
765 * @nr_pages: number of pages to write for the whole bdi
766 *
767 * Split @wb's portion of @nr_pages according to @wb's write bandwidth in
768 * relation to the total write bandwidth of all wb's w/ dirty inodes on
769 * @wb->bdi.
770 */
771 static long wb_split_bdi_pages(struct bdi_writeback *wb, long nr_pages)
772 {
773 unsigned long this_bw = wb->avg_write_bandwidth;
774 unsigned long tot_bw = atomic_long_read(&wb->bdi->tot_write_bandwidth);
775
776 if (nr_pages == LONG_MAX)
777 return LONG_MAX;
778
779 /*
780 * This may be called on clean wb's and proportional distribution
781 * may not make sense, just use the original @nr_pages in those
782 * cases. In general, we wanna err on the side of writing more.
783 */
784 if (!tot_bw || this_bw >= tot_bw)
785 return nr_pages;
786 else
787 return DIV_ROUND_UP_ULL((u64)nr_pages * this_bw, tot_bw);
788 }
789
790 /**
791 * bdi_split_work_to_wbs - split a wb_writeback_work to all wb's of a bdi
792 * @bdi: target backing_dev_info
793 * @base_work: wb_writeback_work to issue
794 * @skip_if_busy: skip wb's which already have writeback in progress
795 *
796 * Split and issue @base_work to all wb's (bdi_writeback's) of @bdi which
797 * have dirty inodes. If @base_work->nr_page isn't %LONG_MAX, it's
798 * distributed to the busy wbs according to each wb's proportion in the
799 * total active write bandwidth of @bdi.
800 */
801 static void bdi_split_work_to_wbs(struct backing_dev_info *bdi,
802 struct wb_writeback_work *base_work,
803 bool skip_if_busy)
804 {
805 struct bdi_writeback *last_wb = NULL;
806 struct bdi_writeback *wb = list_entry(&bdi->wb_list,
807 struct bdi_writeback, bdi_node);
808
809 might_sleep();
810 restart:
811 rcu_read_lock();
812 list_for_each_entry_continue_rcu(wb, &bdi->wb_list, bdi_node) {
813 DEFINE_WB_COMPLETION_ONSTACK(fallback_work_done);
814 struct wb_writeback_work fallback_work;
815 struct wb_writeback_work *work;
816 long nr_pages;
817
818 if (last_wb) {
819 wb_put(last_wb);
820 last_wb = NULL;
821 }
822
823 /* SYNC_ALL writes out I_DIRTY_TIME too */
824 if (!wb_has_dirty_io(wb) &&
825 (base_work->sync_mode == WB_SYNC_NONE ||
826 list_empty(&wb->b_dirty_time)))
827 continue;
828 if (skip_if_busy && writeback_in_progress(wb))
829 continue;
830
831 nr_pages = wb_split_bdi_pages(wb, base_work->nr_pages);
832
833 work = kmalloc(sizeof(*work), GFP_ATOMIC);
834 if (work) {
835 *work = *base_work;
836 work->nr_pages = nr_pages;
837 work->auto_free = 1;
838 wb_queue_work(wb, work);
839 continue;
840 }
841
842 /* alloc failed, execute synchronously using on-stack fallback */
843 work = &fallback_work;
844 *work = *base_work;
845 work->nr_pages = nr_pages;
846 work->auto_free = 0;
847 work->done = &fallback_work_done;
848
849 wb_queue_work(wb, work);
850
851 /*
852 * Pin @wb so that it stays on @bdi->wb_list. This allows
853 * continuing iteration from @wb after dropping and
854 * regrabbing rcu read lock.
855 */
856 wb_get(wb);
857 last_wb = wb;
858
859 rcu_read_unlock();
860 wb_wait_for_completion(bdi, &fallback_work_done);
861 goto restart;
862 }
863 rcu_read_unlock();
864
865 if (last_wb)
866 wb_put(last_wb);
867 }
868
869 /**
870 * cgroup_writeback_umount - flush inode wb switches for umount
871 *
872 * This function is called when a super_block is about to be destroyed and
873 * flushes in-flight inode wb switches. An inode wb switch goes through
874 * RCU and then workqueue, so the two need to be flushed in order to ensure
875 * that all previously scheduled switches are finished. As wb switches are
876 * rare occurrences and synchronize_rcu() can take a while, perform
877 * flushing iff wb switches are in flight.
878 */
879 void cgroup_writeback_umount(void)
880 {
881 if (atomic_read(&isw_nr_in_flight)) {
882 synchronize_rcu();
883 flush_workqueue(isw_wq);
884 }
885 }
886
887 static int __init cgroup_writeback_init(void)
888 {
889 isw_wq = alloc_workqueue("inode_switch_wbs", 0, 0);
890 if (!isw_wq)
891 return -ENOMEM;
892 return 0;
893 }
894 fs_initcall(cgroup_writeback_init);
895
896 #else /* CONFIG_CGROUP_WRITEBACK */
897
898 static struct bdi_writeback *
899 locked_inode_to_wb_and_lock_list(struct inode *inode)
900 __releases(&inode->i_lock)
901 __acquires(&wb->list_lock)
902 {
903 struct bdi_writeback *wb = inode_to_wb(inode);
904
905 spin_unlock(&inode->i_lock);
906 spin_lock(&wb->list_lock);
907 return wb;
908 }
909
910 static struct bdi_writeback *inode_to_wb_and_lock_list(struct inode *inode)
911 __acquires(&wb->list_lock)
912 {
913 struct bdi_writeback *wb = inode_to_wb(inode);
914
915 spin_lock(&wb->list_lock);
916 return wb;
917 }
918
919 static long wb_split_bdi_pages(struct bdi_writeback *wb, long nr_pages)
920 {
921 return nr_pages;
922 }
923
924 static void bdi_split_work_to_wbs(struct backing_dev_info *bdi,
925 struct wb_writeback_work *base_work,
926 bool skip_if_busy)
927 {
928 might_sleep();
929
930 if (!skip_if_busy || !writeback_in_progress(&bdi->wb)) {
931 base_work->auto_free = 0;
932 wb_queue_work(&bdi->wb, base_work);
933 }
934 }
935
936 #endif /* CONFIG_CGROUP_WRITEBACK */
937
938 void wb_start_writeback(struct bdi_writeback *wb, long nr_pages,
939 bool range_cyclic, enum wb_reason reason)
940 {
941 struct wb_writeback_work *work;
942
943 if (!wb_has_dirty_io(wb))
944 return;
945
946 /*
947 * This is WB_SYNC_NONE writeback, so if allocation fails just
948 * wakeup the thread for old dirty data writeback
949 */
950 work = kzalloc(sizeof(*work), GFP_ATOMIC);
951 if (!work) {
952 trace_writeback_nowork(wb);
953 wb_wakeup(wb);
954 return;
955 }
956
957 work->sync_mode = WB_SYNC_NONE;
958 work->nr_pages = nr_pages;
959 work->range_cyclic = range_cyclic;
960 work->reason = reason;
961 work->auto_free = 1;
962
963 wb_queue_work(wb, work);
964 }
965
966 /**
967 * wb_start_background_writeback - start background writeback
968 * @wb: bdi_writback to write from
969 *
970 * Description:
971 * This makes sure WB_SYNC_NONE background writeback happens. When
972 * this function returns, it is only guaranteed that for given wb
973 * some IO is happening if we are over background dirty threshold.
974 * Caller need not hold sb s_umount semaphore.
975 */
976 void wb_start_background_writeback(struct bdi_writeback *wb)
977 {
978 /*
979 * We just wake up the flusher thread. It will perform background
980 * writeback as soon as there is no other work to do.
981 */
982 trace_writeback_wake_background(wb);
983 wb_wakeup(wb);
984 }
985
986 /*
987 * Remove the inode from the writeback list it is on.
988 */
989 void inode_io_list_del(struct inode *inode)
990 {
991 struct bdi_writeback *wb;
992
993 wb = inode_to_wb_and_lock_list(inode);
994 inode_io_list_del_locked(inode, wb);
995 spin_unlock(&wb->list_lock);
996 }
997
998 /*
999 * Redirty an inode: set its when-it-was dirtied timestamp and move it to the
1000 * furthest end of its superblock's dirty-inode list.
1001 *
1002 * Before stamping the inode's ->dirtied_when, we check to see whether it is
1003 * already the most-recently-dirtied inode on the b_dirty list. If that is
1004 * the case then the inode must have been redirtied while it was being written
1005 * out and we don't reset its dirtied_when.
1006 */
1007 static void redirty_tail(struct inode *inode, struct bdi_writeback *wb)
1008 {
1009 if (!list_empty(&wb->b_dirty)) {
1010 struct inode *tail;
1011
1012 tail = wb_inode(wb->b_dirty.next);
1013 if (time_before(inode->dirtied_when, tail->dirtied_when))
1014 inode->dirtied_when = jiffies;
1015 }
1016 inode_io_list_move_locked(inode, wb, &wb->b_dirty);
1017 }
1018
1019 /*
1020 * requeue inode for re-scanning after bdi->b_io list is exhausted.
1021 */
1022 static void requeue_io(struct inode *inode, struct bdi_writeback *wb)
1023 {
1024 inode_io_list_move_locked(inode, wb, &wb->b_more_io);
1025 }
1026
1027 static void inode_sync_complete(struct inode *inode)
1028 {
1029 inode->i_state &= ~I_SYNC;
1030 /* If inode is clean an unused, put it into LRU now... */
1031 inode_add_lru(inode);
1032 /* Waiters must see I_SYNC cleared before being woken up */
1033 smp_mb();
1034 wake_up_bit(&inode->i_state, __I_SYNC);
1035 }
1036
1037 static bool inode_dirtied_after(struct inode *inode, unsigned long t)
1038 {
1039 bool ret = time_after(inode->dirtied_when, t);
1040 #ifndef CONFIG_64BIT
1041 /*
1042 * For inodes being constantly redirtied, dirtied_when can get stuck.
1043 * It _appears_ to be in the future, but is actually in distant past.
1044 * This test is necessary to prevent such wrapped-around relative times
1045 * from permanently stopping the whole bdi writeback.
1046 */
1047 ret = ret && time_before_eq(inode->dirtied_when, jiffies);
1048 #endif
1049 return ret;
1050 }
1051
1052 #define EXPIRE_DIRTY_ATIME 0x0001
1053
1054 /*
1055 * Move expired (dirtied before work->older_than_this) dirty inodes from
1056 * @delaying_queue to @dispatch_queue.
1057 */
1058 static int move_expired_inodes(struct list_head *delaying_queue,
1059 struct list_head *dispatch_queue,
1060 int flags,
1061 struct wb_writeback_work *work)
1062 {
1063 unsigned long *older_than_this = NULL;
1064 unsigned long expire_time;
1065 LIST_HEAD(tmp);
1066 struct list_head *pos, *node;
1067 struct super_block *sb = NULL;
1068 struct inode *inode;
1069 int do_sb_sort = 0;
1070 int moved = 0;
1071
1072 if ((flags & EXPIRE_DIRTY_ATIME) == 0)
1073 older_than_this = work->older_than_this;
1074 else if (!work->for_sync) {
1075 expire_time = jiffies - (dirtytime_expire_interval * HZ);
1076 older_than_this = &expire_time;
1077 }
1078 while (!list_empty(delaying_queue)) {
1079 inode = wb_inode(delaying_queue->prev);
1080 if (older_than_this &&
1081 inode_dirtied_after(inode, *older_than_this))
1082 break;
1083 list_move(&inode->i_io_list, &tmp);
1084 moved++;
1085 if (flags & EXPIRE_DIRTY_ATIME)
1086 set_bit(__I_DIRTY_TIME_EXPIRED, &inode->i_state);
1087 if (sb_is_blkdev_sb(inode->i_sb))
1088 continue;
1089 if (sb && sb != inode->i_sb)
1090 do_sb_sort = 1;
1091 sb = inode->i_sb;
1092 }
1093
1094 /* just one sb in list, splice to dispatch_queue and we're done */
1095 if (!do_sb_sort) {
1096 list_splice(&tmp, dispatch_queue);
1097 goto out;
1098 }
1099
1100 /* Move inodes from one superblock together */
1101 while (!list_empty(&tmp)) {
1102 sb = wb_inode(tmp.prev)->i_sb;
1103 list_for_each_prev_safe(pos, node, &tmp) {
1104 inode = wb_inode(pos);
1105 if (inode->i_sb == sb)
1106 list_move(&inode->i_io_list, dispatch_queue);
1107 }
1108 }
1109 out:
1110 return moved;
1111 }
1112
1113 /*
1114 * Queue all expired dirty inodes for io, eldest first.
1115 * Before
1116 * newly dirtied b_dirty b_io b_more_io
1117 * =============> gf edc BA
1118 * After
1119 * newly dirtied b_dirty b_io b_more_io
1120 * =============> g fBAedc
1121 * |
1122 * +--> dequeue for IO
1123 */
1124 static void queue_io(struct bdi_writeback *wb, struct wb_writeback_work *work)
1125 {
1126 int moved;
1127
1128 assert_spin_locked(&wb->list_lock);
1129 list_splice_init(&wb->b_more_io, &wb->b_io);
1130 moved = move_expired_inodes(&wb->b_dirty, &wb->b_io, 0, work);
1131 moved += move_expired_inodes(&wb->b_dirty_time, &wb->b_io,
1132 EXPIRE_DIRTY_ATIME, work);
1133 if (moved)
1134 wb_io_lists_populated(wb);
1135 trace_writeback_queue_io(wb, work, moved);
1136 }
1137
1138 static int write_inode(struct inode *inode, struct writeback_control *wbc)
1139 {
1140 int ret;
1141
1142 if (inode->i_sb->s_op->write_inode && !is_bad_inode(inode)) {
1143 trace_writeback_write_inode_start(inode, wbc);
1144 ret = inode->i_sb->s_op->write_inode(inode, wbc);
1145 trace_writeback_write_inode(inode, wbc);
1146 return ret;
1147 }
1148 return 0;
1149 }
1150
1151 /*
1152 * Wait for writeback on an inode to complete. Called with i_lock held.
1153 * Caller must make sure inode cannot go away when we drop i_lock.
1154 */
1155 static void __inode_wait_for_writeback(struct inode *inode)
1156 __releases(inode->i_lock)
1157 __acquires(inode->i_lock)
1158 {
1159 DEFINE_WAIT_BIT(wq, &inode->i_state, __I_SYNC);
1160 wait_queue_head_t *wqh;
1161
1162 wqh = bit_waitqueue(&inode->i_state, __I_SYNC);
1163 while (inode->i_state & I_SYNC) {
1164 spin_unlock(&inode->i_lock);
1165 __wait_on_bit(wqh, &wq, bit_wait,
1166 TASK_UNINTERRUPTIBLE);
1167 spin_lock(&inode->i_lock);
1168 }
1169 }
1170
1171 /*
1172 * Wait for writeback on an inode to complete. Caller must have inode pinned.
1173 */
1174 void inode_wait_for_writeback(struct inode *inode)
1175 {
1176 spin_lock(&inode->i_lock);
1177 __inode_wait_for_writeback(inode);
1178 spin_unlock(&inode->i_lock);
1179 }
1180
1181 /*
1182 * Sleep until I_SYNC is cleared. This function must be called with i_lock
1183 * held and drops it. It is aimed for callers not holding any inode reference
1184 * so once i_lock is dropped, inode can go away.
1185 */
1186 static void inode_sleep_on_writeback(struct inode *inode)
1187 __releases(inode->i_lock)
1188 {
1189 DEFINE_WAIT(wait);
1190 wait_queue_head_t *wqh = bit_waitqueue(&inode->i_state, __I_SYNC);
1191 int sleep;
1192
1193 prepare_to_wait(wqh, &wait, TASK_UNINTERRUPTIBLE);
1194 sleep = inode->i_state & I_SYNC;
1195 spin_unlock(&inode->i_lock);
1196 if (sleep)
1197 schedule();
1198 finish_wait(wqh, &wait);
1199 }
1200
1201 /*
1202 * Find proper writeback list for the inode depending on its current state and
1203 * possibly also change of its state while we were doing writeback. Here we
1204 * handle things such as livelock prevention or fairness of writeback among
1205 * inodes. This function can be called only by flusher thread - noone else
1206 * processes all inodes in writeback lists and requeueing inodes behind flusher
1207 * thread's back can have unexpected consequences.
1208 */
1209 static void requeue_inode(struct inode *inode, struct bdi_writeback *wb,
1210 struct writeback_control *wbc)
1211 {
1212 if (inode->i_state & I_FREEING)
1213 return;
1214
1215 /*
1216 * Sync livelock prevention. Each inode is tagged and synced in one
1217 * shot. If still dirty, it will be redirty_tail()'ed below. Update
1218 * the dirty time to prevent enqueue and sync it again.
1219 */
1220 if ((inode->i_state & I_DIRTY) &&
1221 (wbc->sync_mode == WB_SYNC_ALL || wbc->tagged_writepages))
1222 inode->dirtied_when = jiffies;
1223
1224 if (wbc->pages_skipped) {
1225 /*
1226 * writeback is not making progress due to locked
1227 * buffers. Skip this inode for now.
1228 */
1229 redirty_tail(inode, wb);
1230 return;
1231 }
1232
1233 if (mapping_tagged(inode->i_mapping, PAGECACHE_TAG_DIRTY)) {
1234 /*
1235 * We didn't write back all the pages. nfs_writepages()
1236 * sometimes bales out without doing anything.
1237 */
1238 if (wbc->nr_to_write <= 0) {
1239 /* Slice used up. Queue for next turn. */
1240 requeue_io(inode, wb);
1241 } else {
1242 /*
1243 * Writeback blocked by something other than
1244 * congestion. Delay the inode for some time to
1245 * avoid spinning on the CPU (100% iowait)
1246 * retrying writeback of the dirty page/inode
1247 * that cannot be performed immediately.
1248 */
1249 redirty_tail(inode, wb);
1250 }
1251 } else if (inode->i_state & I_DIRTY) {
1252 /*
1253 * Filesystems can dirty the inode during writeback operations,
1254 * such as delayed allocation during submission or metadata
1255 * updates after data IO completion.
1256 */
1257 redirty_tail(inode, wb);
1258 } else if (inode->i_state & I_DIRTY_TIME) {
1259 inode->dirtied_when = jiffies;
1260 inode_io_list_move_locked(inode, wb, &wb->b_dirty_time);
1261 } else {
1262 /* The inode is clean. Remove from writeback lists. */
1263 inode_io_list_del_locked(inode, wb);
1264 }
1265 }
1266
1267 /*
1268 * Write out an inode and its dirty pages. Do not update the writeback list
1269 * linkage. That is left to the caller. The caller is also responsible for
1270 * setting I_SYNC flag and calling inode_sync_complete() to clear it.
1271 */
1272 static int
1273 __writeback_single_inode(struct inode *inode, struct writeback_control *wbc)
1274 {
1275 struct address_space *mapping = inode->i_mapping;
1276 long nr_to_write = wbc->nr_to_write;
1277 unsigned dirty;
1278 int ret;
1279
1280 WARN_ON(!(inode->i_state & I_SYNC));
1281
1282 trace_writeback_single_inode_start(inode, wbc, nr_to_write);
1283
1284 ret = do_writepages(mapping, wbc);
1285
1286 /*
1287 * Make sure to wait on the data before writing out the metadata.
1288 * This is important for filesystems that modify metadata on data
1289 * I/O completion. We don't do it for sync(2) writeback because it has a
1290 * separate, external IO completion path and ->sync_fs for guaranteeing
1291 * inode metadata is written back correctly.
1292 */
1293 if (wbc->sync_mode == WB_SYNC_ALL && !wbc->for_sync) {
1294 int err = filemap_fdatawait(mapping);
1295 if (ret == 0)
1296 ret = err;
1297 }
1298
1299 /*
1300 * Some filesystems may redirty the inode during the writeback
1301 * due to delalloc, clear dirty metadata flags right before
1302 * write_inode()
1303 */
1304 spin_lock(&inode->i_lock);
1305
1306 dirty = inode->i_state & I_DIRTY;
1307 if (inode->i_state & I_DIRTY_TIME) {
1308 if ((dirty & (I_DIRTY_SYNC | I_DIRTY_DATASYNC)) ||
1309 wbc->sync_mode == WB_SYNC_ALL ||
1310 unlikely(inode->i_state & I_DIRTY_TIME_EXPIRED) ||
1311 unlikely(time_after(jiffies,
1312 (inode->dirtied_time_when +
1313 dirtytime_expire_interval * HZ)))) {
1314 dirty |= I_DIRTY_TIME | I_DIRTY_TIME_EXPIRED;
1315 trace_writeback_lazytime(inode);
1316 }
1317 } else
1318 inode->i_state &= ~I_DIRTY_TIME_EXPIRED;
1319 inode->i_state &= ~dirty;
1320
1321 /*
1322 * Paired with smp_mb() in __mark_inode_dirty(). This allows
1323 * __mark_inode_dirty() to test i_state without grabbing i_lock -
1324 * either they see the I_DIRTY bits cleared or we see the dirtied
1325 * inode.
1326 *
1327 * I_DIRTY_PAGES is always cleared together above even if @mapping
1328 * still has dirty pages. The flag is reinstated after smp_mb() if
1329 * necessary. This guarantees that either __mark_inode_dirty()
1330 * sees clear I_DIRTY_PAGES or we see PAGECACHE_TAG_DIRTY.
1331 */
1332 smp_mb();
1333
1334 if (mapping_tagged(mapping, PAGECACHE_TAG_DIRTY))
1335 inode->i_state |= I_DIRTY_PAGES;
1336
1337 spin_unlock(&inode->i_lock);
1338
1339 if (dirty & I_DIRTY_TIME)
1340 mark_inode_dirty_sync(inode);
1341 /* Don't write the inode if only I_DIRTY_PAGES was set */
1342 if (dirty & ~I_DIRTY_PAGES) {
1343 int err = write_inode(inode, wbc);
1344 if (ret == 0)
1345 ret = err;
1346 }
1347 trace_writeback_single_inode(inode, wbc, nr_to_write);
1348 return ret;
1349 }
1350
1351 /*
1352 * Write out an inode's dirty pages. Either the caller has an active reference
1353 * on the inode or the inode has I_WILL_FREE set.
1354 *
1355 * This function is designed to be called for writing back one inode which
1356 * we go e.g. from filesystem. Flusher thread uses __writeback_single_inode()
1357 * and does more profound writeback list handling in writeback_sb_inodes().
1358 */
1359 static int writeback_single_inode(struct inode *inode,
1360 struct writeback_control *wbc)
1361 {
1362 struct bdi_writeback *wb;
1363 int ret = 0;
1364
1365 spin_lock(&inode->i_lock);
1366 if (!atomic_read(&inode->i_count))
1367 WARN_ON(!(inode->i_state & (I_WILL_FREE|I_FREEING)));
1368 else
1369 WARN_ON(inode->i_state & I_WILL_FREE);
1370
1371 if (inode->i_state & I_SYNC) {
1372 if (wbc->sync_mode != WB_SYNC_ALL)
1373 goto out;
1374 /*
1375 * It's a data-integrity sync. We must wait. Since callers hold
1376 * inode reference or inode has I_WILL_FREE set, it cannot go
1377 * away under us.
1378 */
1379 __inode_wait_for_writeback(inode);
1380 }
1381 WARN_ON(inode->i_state & I_SYNC);
1382 /*
1383 * Skip inode if it is clean and we have no outstanding writeback in
1384 * WB_SYNC_ALL mode. We don't want to mess with writeback lists in this
1385 * function since flusher thread may be doing for example sync in
1386 * parallel and if we move the inode, it could get skipped. So here we
1387 * make sure inode is on some writeback list and leave it there unless
1388 * we have completely cleaned the inode.
1389 */
1390 if (!(inode->i_state & I_DIRTY_ALL) &&
1391 (wbc->sync_mode != WB_SYNC_ALL ||
1392 !mapping_tagged(inode->i_mapping, PAGECACHE_TAG_WRITEBACK)))
1393 goto out;
1394 inode->i_state |= I_SYNC;
1395 wbc_attach_and_unlock_inode(wbc, inode);
1396
1397 ret = __writeback_single_inode(inode, wbc);
1398
1399 wbc_detach_inode(wbc);
1400
1401 wb = inode_to_wb_and_lock_list(inode);
1402 spin_lock(&inode->i_lock);
1403 /*
1404 * If inode is clean, remove it from writeback lists. Otherwise don't
1405 * touch it. See comment above for explanation.
1406 */
1407 if (!(inode->i_state & I_DIRTY_ALL))
1408 inode_io_list_del_locked(inode, wb);
1409 spin_unlock(&wb->list_lock);
1410 inode_sync_complete(inode);
1411 out:
1412 spin_unlock(&inode->i_lock);
1413 return ret;
1414 }
1415
1416 static long writeback_chunk_size(struct bdi_writeback *wb,
1417 struct wb_writeback_work *work)
1418 {
1419 long pages;
1420
1421 /*
1422 * WB_SYNC_ALL mode does livelock avoidance by syncing dirty
1423 * inodes/pages in one big loop. Setting wbc.nr_to_write=LONG_MAX
1424 * here avoids calling into writeback_inodes_wb() more than once.
1425 *
1426 * The intended call sequence for WB_SYNC_ALL writeback is:
1427 *
1428 * wb_writeback()
1429 * writeback_sb_inodes() <== called only once
1430 * write_cache_pages() <== called once for each inode
1431 * (quickly) tag currently dirty pages
1432 * (maybe slowly) sync all tagged pages
1433 */
1434 if (work->sync_mode == WB_SYNC_ALL || work->tagged_writepages)
1435 pages = LONG_MAX;
1436 else {
1437 pages = min(wb->avg_write_bandwidth / 2,
1438 global_wb_domain.dirty_limit / DIRTY_SCOPE);
1439 pages = min(pages, work->nr_pages);
1440 pages = round_down(pages + MIN_WRITEBACK_PAGES,
1441 MIN_WRITEBACK_PAGES);
1442 }
1443
1444 return pages;
1445 }
1446
1447 /*
1448 * Write a portion of b_io inodes which belong to @sb.
1449 *
1450 * Return the number of pages and/or inodes written.
1451 *
1452 * NOTE! This is called with wb->list_lock held, and will
1453 * unlock and relock that for each inode it ends up doing
1454 * IO for.
1455 */
1456 static long writeback_sb_inodes(struct super_block *sb,
1457 struct bdi_writeback *wb,
1458 struct wb_writeback_work *work)
1459 {
1460 struct writeback_control wbc = {
1461 .sync_mode = work->sync_mode,
1462 .tagged_writepages = work->tagged_writepages,
1463 .for_kupdate = work->for_kupdate,
1464 .for_background = work->for_background,
1465 .for_sync = work->for_sync,
1466 .range_cyclic = work->range_cyclic,
1467 .range_start = 0,
1468 .range_end = LLONG_MAX,
1469 };
1470 unsigned long start_time = jiffies;
1471 long write_chunk;
1472 long wrote = 0; /* count both pages and inodes */
1473
1474 while (!list_empty(&wb->b_io)) {
1475 struct inode *inode = wb_inode(wb->b_io.prev);
1476 struct bdi_writeback *tmp_wb;
1477
1478 if (inode->i_sb != sb) {
1479 if (work->sb) {
1480 /*
1481 * We only want to write back data for this
1482 * superblock, move all inodes not belonging
1483 * to it back onto the dirty list.
1484 */
1485 redirty_tail(inode, wb);
1486 continue;
1487 }
1488
1489 /*
1490 * The inode belongs to a different superblock.
1491 * Bounce back to the caller to unpin this and
1492 * pin the next superblock.
1493 */
1494 break;
1495 }
1496
1497 /*
1498 * Don't bother with new inodes or inodes being freed, first
1499 * kind does not need periodic writeout yet, and for the latter
1500 * kind writeout is handled by the freer.
1501 */
1502 spin_lock(&inode->i_lock);
1503 if (inode->i_state & (I_NEW | I_FREEING | I_WILL_FREE)) {
1504 spin_unlock(&inode->i_lock);
1505 redirty_tail(inode, wb);
1506 continue;
1507 }
1508 if ((inode->i_state & I_SYNC) && wbc.sync_mode != WB_SYNC_ALL) {
1509 /*
1510 * If this inode is locked for writeback and we are not
1511 * doing writeback-for-data-integrity, move it to
1512 * b_more_io so that writeback can proceed with the
1513 * other inodes on s_io.
1514 *
1515 * We'll have another go at writing back this inode
1516 * when we completed a full scan of b_io.
1517 */
1518 spin_unlock(&inode->i_lock);
1519 requeue_io(inode, wb);
1520 trace_writeback_sb_inodes_requeue(inode);
1521 continue;
1522 }
1523 spin_unlock(&wb->list_lock);
1524
1525 /*
1526 * We already requeued the inode if it had I_SYNC set and we
1527 * are doing WB_SYNC_NONE writeback. So this catches only the
1528 * WB_SYNC_ALL case.
1529 */
1530 if (inode->i_state & I_SYNC) {
1531 /* Wait for I_SYNC. This function drops i_lock... */
1532 inode_sleep_on_writeback(inode);
1533 /* Inode may be gone, start again */
1534 spin_lock(&wb->list_lock);
1535 continue;
1536 }
1537 inode->i_state |= I_SYNC;
1538 wbc_attach_and_unlock_inode(&wbc, inode);
1539
1540 write_chunk = writeback_chunk_size(wb, work);
1541 wbc.nr_to_write = write_chunk;
1542 wbc.pages_skipped = 0;
1543
1544 /*
1545 * We use I_SYNC to pin the inode in memory. While it is set
1546 * evict_inode() will wait so the inode cannot be freed.
1547 */
1548 __writeback_single_inode(inode, &wbc);
1549
1550 wbc_detach_inode(&wbc);
1551 work->nr_pages -= write_chunk - wbc.nr_to_write;
1552 wrote += write_chunk - wbc.nr_to_write;
1553
1554 if (need_resched()) {
1555 /*
1556 * We're trying to balance between building up a nice
1557 * long list of IOs to improve our merge rate, and
1558 * getting those IOs out quickly for anyone throttling
1559 * in balance_dirty_pages(). cond_resched() doesn't
1560 * unplug, so get our IOs out the door before we
1561 * give up the CPU.
1562 */
1563 blk_flush_plug(current);
1564 cond_resched();
1565 }
1566
1567 /*
1568 * Requeue @inode if still dirty. Be careful as @inode may
1569 * have been switched to another wb in the meantime.
1570 */
1571 tmp_wb = inode_to_wb_and_lock_list(inode);
1572 spin_lock(&inode->i_lock);
1573 if (!(inode->i_state & I_DIRTY_ALL))
1574 wrote++;
1575 requeue_inode(inode, tmp_wb, &wbc);
1576 inode_sync_complete(inode);
1577 spin_unlock(&inode->i_lock);
1578
1579 if (unlikely(tmp_wb != wb)) {
1580 spin_unlock(&tmp_wb->list_lock);
1581 spin_lock(&wb->list_lock);
1582 }
1583
1584 /*
1585 * bail out to wb_writeback() often enough to check
1586 * background threshold and other termination conditions.
1587 */
1588 if (wrote) {
1589 if (time_is_before_jiffies(start_time + HZ / 10UL))
1590 break;
1591 if (work->nr_pages <= 0)
1592 break;
1593 }
1594 }
1595 return wrote;
1596 }
1597
1598 static long __writeback_inodes_wb(struct bdi_writeback *wb,
1599 struct wb_writeback_work *work)
1600 {
1601 unsigned long start_time = jiffies;
1602 long wrote = 0;
1603
1604 while (!list_empty(&wb->b_io)) {
1605 struct inode *inode = wb_inode(wb->b_io.prev);
1606 struct super_block *sb = inode->i_sb;
1607
1608 if (!trylock_super(sb)) {
1609 /*
1610 * trylock_super() may fail consistently due to
1611 * s_umount being grabbed by someone else. Don't use
1612 * requeue_io() to avoid busy retrying the inode/sb.
1613 */
1614 redirty_tail(inode, wb);
1615 continue;
1616 }
1617 wrote += writeback_sb_inodes(sb, wb, work);
1618 up_read(&sb->s_umount);
1619
1620 /* refer to the same tests at the end of writeback_sb_inodes */
1621 if (wrote) {
1622 if (time_is_before_jiffies(start_time + HZ / 10UL))
1623 break;
1624 if (work->nr_pages <= 0)
1625 break;
1626 }
1627 }
1628 /* Leave any unwritten inodes on b_io */
1629 return wrote;
1630 }
1631
1632 static long writeback_inodes_wb(struct bdi_writeback *wb, long nr_pages,
1633 enum wb_reason reason)
1634 {
1635 struct wb_writeback_work work = {
1636 .nr_pages = nr_pages,
1637 .sync_mode = WB_SYNC_NONE,
1638 .range_cyclic = 1,
1639 .reason = reason,
1640 };
1641 struct blk_plug plug;
1642
1643 blk_start_plug(&plug);
1644 spin_lock(&wb->list_lock);
1645 if (list_empty(&wb->b_io))
1646 queue_io(wb, &work);
1647 __writeback_inodes_wb(wb, &work);
1648 spin_unlock(&wb->list_lock);
1649 blk_finish_plug(&plug);
1650
1651 return nr_pages - work.nr_pages;
1652 }
1653
1654 /*
1655 * Explicit flushing or periodic writeback of "old" data.
1656 *
1657 * Define "old": the first time one of an inode's pages is dirtied, we mark the
1658 * dirtying-time in the inode's address_space. So this periodic writeback code
1659 * just walks the superblock inode list, writing back any inodes which are
1660 * older than a specific point in time.
1661 *
1662 * Try to run once per dirty_writeback_interval. But if a writeback event
1663 * takes longer than a dirty_writeback_interval interval, then leave a
1664 * one-second gap.
1665 *
1666 * older_than_this takes precedence over nr_to_write. So we'll only write back
1667 * all dirty pages if they are all attached to "old" mappings.
1668 */
1669 static long wb_writeback(struct bdi_writeback *wb,
1670 struct wb_writeback_work *work)
1671 {
1672 unsigned long wb_start = jiffies;
1673 long nr_pages = work->nr_pages;
1674 unsigned long oldest_jif;
1675 struct inode *inode;
1676 long progress;
1677 struct blk_plug plug;
1678
1679 oldest_jif = jiffies;
1680 work->older_than_this = &oldest_jif;
1681
1682 blk_start_plug(&plug);
1683 spin_lock(&wb->list_lock);
1684 for (;;) {
1685 /*
1686 * Stop writeback when nr_pages has been consumed
1687 */
1688 if (work->nr_pages <= 0)
1689 break;
1690
1691 /*
1692 * Background writeout and kupdate-style writeback may
1693 * run forever. Stop them if there is other work to do
1694 * so that e.g. sync can proceed. They'll be restarted
1695 * after the other works are all done.
1696 */
1697 if ((work->for_background || work->for_kupdate) &&
1698 !list_empty(&wb->work_list))
1699 break;
1700
1701 /*
1702 * For background writeout, stop when we are below the
1703 * background dirty threshold
1704 */
1705 if (work->for_background && !wb_over_bg_thresh(wb))
1706 break;
1707
1708 /*
1709 * Kupdate and background works are special and we want to
1710 * include all inodes that need writing. Livelock avoidance is
1711 * handled by these works yielding to any other work so we are
1712 * safe.
1713 */
1714 if (work->for_kupdate) {
1715 oldest_jif = jiffies -
1716 msecs_to_jiffies(dirty_expire_interval * 10);
1717 } else if (work->for_background)
1718 oldest_jif = jiffies;
1719
1720 trace_writeback_start(wb, work);
1721 if (list_empty(&wb->b_io))
1722 queue_io(wb, work);
1723 if (work->sb)
1724 progress = writeback_sb_inodes(work->sb, wb, work);
1725 else
1726 progress = __writeback_inodes_wb(wb, work);
1727 trace_writeback_written(wb, work);
1728
1729 wb_update_bandwidth(wb, wb_start);
1730
1731 /*
1732 * Did we write something? Try for more
1733 *
1734 * Dirty inodes are moved to b_io for writeback in batches.
1735 * The completion of the current batch does not necessarily
1736 * mean the overall work is done. So we keep looping as long
1737 * as made some progress on cleaning pages or inodes.
1738 */
1739 if (progress)
1740 continue;
1741 /*
1742 * No more inodes for IO, bail
1743 */
1744 if (list_empty(&wb->b_more_io))
1745 break;
1746 /*
1747 * Nothing written. Wait for some inode to
1748 * become available for writeback. Otherwise
1749 * we'll just busyloop.
1750 */
1751 if (!list_empty(&wb->b_more_io)) {
1752 trace_writeback_wait(wb, work);
1753 inode = wb_inode(wb->b_more_io.prev);
1754 spin_lock(&inode->i_lock);
1755 spin_unlock(&wb->list_lock);
1756 /* This function drops i_lock... */
1757 inode_sleep_on_writeback(inode);
1758 spin_lock(&wb->list_lock);
1759 }
1760 }
1761 spin_unlock(&wb->list_lock);
1762 blk_finish_plug(&plug);
1763
1764 return nr_pages - work->nr_pages;
1765 }
1766
1767 /*
1768 * Return the next wb_writeback_work struct that hasn't been processed yet.
1769 */
1770 static struct wb_writeback_work *get_next_work_item(struct bdi_writeback *wb)
1771 {
1772 struct wb_writeback_work *work = NULL;
1773
1774 spin_lock_bh(&wb->work_lock);
1775 if (!list_empty(&wb->work_list)) {
1776 work = list_entry(wb->work_list.next,
1777 struct wb_writeback_work, list);
1778 list_del_init(&work->list);
1779 }
1780 spin_unlock_bh(&wb->work_lock);
1781 return work;
1782 }
1783
1784 /*
1785 * Add in the number of potentially dirty inodes, because each inode
1786 * write can dirty pagecache in the underlying blockdev.
1787 */
1788 static unsigned long get_nr_dirty_pages(void)
1789 {
1790 return global_page_state(NR_FILE_DIRTY) +
1791 global_page_state(NR_UNSTABLE_NFS) +
1792 get_nr_dirty_inodes();
1793 }
1794
1795 static long wb_check_background_flush(struct bdi_writeback *wb)
1796 {
1797 if (wb_over_bg_thresh(wb)) {
1798
1799 struct wb_writeback_work work = {
1800 .nr_pages = LONG_MAX,
1801 .sync_mode = WB_SYNC_NONE,
1802 .for_background = 1,
1803 .range_cyclic = 1,
1804 .reason = WB_REASON_BACKGROUND,
1805 };
1806
1807 return wb_writeback(wb, &work);
1808 }
1809
1810 return 0;
1811 }
1812
1813 static long wb_check_old_data_flush(struct bdi_writeback *wb)
1814 {
1815 unsigned long expired;
1816 long nr_pages;
1817
1818 /*
1819 * When set to zero, disable periodic writeback
1820 */
1821 if (!dirty_writeback_interval)
1822 return 0;
1823
1824 expired = wb->last_old_flush +
1825 msecs_to_jiffies(dirty_writeback_interval * 10);
1826 if (time_before(jiffies, expired))
1827 return 0;
1828
1829 wb->last_old_flush = jiffies;
1830 nr_pages = get_nr_dirty_pages();
1831
1832 if (nr_pages) {
1833 struct wb_writeback_work work = {
1834 .nr_pages = nr_pages,
1835 .sync_mode = WB_SYNC_NONE,
1836 .for_kupdate = 1,
1837 .range_cyclic = 1,
1838 .reason = WB_REASON_PERIODIC,
1839 };
1840
1841 return wb_writeback(wb, &work);
1842 }
1843
1844 return 0;
1845 }
1846
1847 /*
1848 * Retrieve work items and do the writeback they describe
1849 */
1850 static long wb_do_writeback(struct bdi_writeback *wb)
1851 {
1852 struct wb_writeback_work *work;
1853 long wrote = 0;
1854
1855 set_bit(WB_writeback_running, &wb->state);
1856 while ((work = get_next_work_item(wb)) != NULL) {
1857 trace_writeback_exec(wb, work);
1858 wrote += wb_writeback(wb, work);
1859 finish_writeback_work(wb, work);
1860 }
1861
1862 /*
1863 * Check for periodic writeback, kupdated() style
1864 */
1865 wrote += wb_check_old_data_flush(wb);
1866 wrote += wb_check_background_flush(wb);
1867 clear_bit(WB_writeback_running, &wb->state);
1868
1869 return wrote;
1870 }
1871
1872 /*
1873 * Handle writeback of dirty data for the device backed by this bdi. Also
1874 * reschedules periodically and does kupdated style flushing.
1875 */
1876 void wb_workfn(struct work_struct *work)
1877 {
1878 struct bdi_writeback *wb = container_of(to_delayed_work(work),
1879 struct bdi_writeback, dwork);
1880 long pages_written;
1881
1882 set_worker_desc("flush-%s", dev_name(wb->bdi->dev));
1883 current->flags |= PF_SWAPWRITE;
1884
1885 if (likely(!current_is_workqueue_rescuer() ||
1886 !test_bit(WB_registered, &wb->state))) {
1887 /*
1888 * The normal path. Keep writing back @wb until its
1889 * work_list is empty. Note that this path is also taken
1890 * if @wb is shutting down even when we're running off the
1891 * rescuer as work_list needs to be drained.
1892 */
1893 do {
1894 pages_written = wb_do_writeback(wb);
1895 trace_writeback_pages_written(pages_written);
1896 } while (!list_empty(&wb->work_list));
1897 } else {
1898 /*
1899 * bdi_wq can't get enough workers and we're running off
1900 * the emergency worker. Don't hog it. Hopefully, 1024 is
1901 * enough for efficient IO.
1902 */
1903 pages_written = writeback_inodes_wb(wb, 1024,
1904 WB_REASON_FORKER_THREAD);
1905 trace_writeback_pages_written(pages_written);
1906 }
1907
1908 if (!list_empty(&wb->work_list))
1909 mod_delayed_work(bdi_wq, &wb->dwork, 0);
1910 else if (wb_has_dirty_io(wb) && dirty_writeback_interval)
1911 wb_wakeup_delayed(wb);
1912
1913 current->flags &= ~PF_SWAPWRITE;
1914 }
1915
1916 /*
1917 * Start writeback of `nr_pages' pages. If `nr_pages' is zero, write back
1918 * the whole world.
1919 */
1920 void wakeup_flusher_threads(long nr_pages, enum wb_reason reason)
1921 {
1922 struct backing_dev_info *bdi;
1923
1924 if (!nr_pages)
1925 nr_pages = get_nr_dirty_pages();
1926
1927 rcu_read_lock();
1928 list_for_each_entry_rcu(bdi, &bdi_list, bdi_list) {
1929 struct bdi_writeback *wb;
1930
1931 if (!bdi_has_dirty_io(bdi))
1932 continue;
1933
1934 list_for_each_entry_rcu(wb, &bdi->wb_list, bdi_node)
1935 wb_start_writeback(wb, wb_split_bdi_pages(wb, nr_pages),
1936 false, reason);
1937 }
1938 rcu_read_unlock();
1939 }
1940
1941 /*
1942 * Wake up bdi's periodically to make sure dirtytime inodes gets
1943 * written back periodically. We deliberately do *not* check the
1944 * b_dirtytime list in wb_has_dirty_io(), since this would cause the
1945 * kernel to be constantly waking up once there are any dirtytime
1946 * inodes on the system. So instead we define a separate delayed work
1947 * function which gets called much more rarely. (By default, only
1948 * once every 12 hours.)
1949 *
1950 * If there is any other write activity going on in the file system,
1951 * this function won't be necessary. But if the only thing that has
1952 * happened on the file system is a dirtytime inode caused by an atime
1953 * update, we need this infrastructure below to make sure that inode
1954 * eventually gets pushed out to disk.
1955 */
1956 static void wakeup_dirtytime_writeback(struct work_struct *w);
1957 static DECLARE_DELAYED_WORK(dirtytime_work, wakeup_dirtytime_writeback);
1958
1959 static void wakeup_dirtytime_writeback(struct work_struct *w)
1960 {
1961 struct backing_dev_info *bdi;
1962
1963 rcu_read_lock();
1964 list_for_each_entry_rcu(bdi, &bdi_list, bdi_list) {
1965 struct bdi_writeback *wb;
1966
1967 list_for_each_entry_rcu(wb, &bdi->wb_list, bdi_node)
1968 if (!list_empty(&wb->b_dirty_time))
1969 wb_wakeup(wb);
1970 }
1971 rcu_read_unlock();
1972 schedule_delayed_work(&dirtytime_work, dirtytime_expire_interval * HZ);
1973 }
1974
1975 static int __init start_dirtytime_writeback(void)
1976 {
1977 schedule_delayed_work(&dirtytime_work, dirtytime_expire_interval * HZ);
1978 return 0;
1979 }
1980 __initcall(start_dirtytime_writeback);
1981
1982 int dirtytime_interval_handler(struct ctl_table *table, int write,
1983 void __user *buffer, size_t *lenp, loff_t *ppos)
1984 {
1985 int ret;
1986
1987 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
1988 if (ret == 0 && write)
1989 mod_delayed_work(system_wq, &dirtytime_work, 0);
1990 return ret;
1991 }
1992
1993 static noinline void block_dump___mark_inode_dirty(struct inode *inode)
1994 {
1995 if (inode->i_ino || strcmp(inode->i_sb->s_id, "bdev")) {
1996 struct dentry *dentry;
1997 const char *name = "?";
1998
1999 dentry = d_find_alias(inode);
2000 if (dentry) {
2001 spin_lock(&dentry->d_lock);
2002 name = (const char *) dentry->d_name.name;
2003 }
2004 printk(KERN_DEBUG
2005 "%s(%d): dirtied inode %lu (%s) on %s\n",
2006 current->comm, task_pid_nr(current), inode->i_ino,
2007 name, inode->i_sb->s_id);
2008 if (dentry) {
2009 spin_unlock(&dentry->d_lock);
2010 dput(dentry);
2011 }
2012 }
2013 }
2014
2015 /**
2016 * __mark_inode_dirty - internal function
2017 * @inode: inode to mark
2018 * @flags: what kind of dirty (i.e. I_DIRTY_SYNC)
2019 * Mark an inode as dirty. Callers should use mark_inode_dirty or
2020 * mark_inode_dirty_sync.
2021 *
2022 * Put the inode on the super block's dirty list.
2023 *
2024 * CAREFUL! We mark it dirty unconditionally, but move it onto the
2025 * dirty list only if it is hashed or if it refers to a blockdev.
2026 * If it was not hashed, it will never be added to the dirty list
2027 * even if it is later hashed, as it will have been marked dirty already.
2028 *
2029 * In short, make sure you hash any inodes _before_ you start marking
2030 * them dirty.
2031 *
2032 * Note that for blockdevs, inode->dirtied_when represents the dirtying time of
2033 * the block-special inode (/dev/hda1) itself. And the ->dirtied_when field of
2034 * the kernel-internal blockdev inode represents the dirtying time of the
2035 * blockdev's pages. This is why for I_DIRTY_PAGES we always use
2036 * page->mapping->host, so the page-dirtying time is recorded in the internal
2037 * blockdev inode.
2038 */
2039 void __mark_inode_dirty(struct inode *inode, int flags)
2040 {
2041 #define I_DIRTY_INODE (I_DIRTY_SYNC | I_DIRTY_DATASYNC)
2042 struct super_block *sb = inode->i_sb;
2043 int dirtytime;
2044
2045 trace_writeback_mark_inode_dirty(inode, flags);
2046
2047 /*
2048 * Don't do this for I_DIRTY_PAGES - that doesn't actually
2049 * dirty the inode itself
2050 */
2051 if (flags & (I_DIRTY_SYNC | I_DIRTY_DATASYNC | I_DIRTY_TIME)) {
2052 trace_writeback_dirty_inode_start(inode, flags);
2053
2054 if (sb->s_op->dirty_inode)
2055 sb->s_op->dirty_inode(inode, flags);
2056
2057 trace_writeback_dirty_inode(inode, flags);
2058 }
2059 if (flags & I_DIRTY_INODE)
2060 flags &= ~I_DIRTY_TIME;
2061 dirtytime = flags & I_DIRTY_TIME;
2062
2063 /*
2064 * Paired with smp_mb() in __writeback_single_inode() for the
2065 * following lockless i_state test. See there for details.
2066 */
2067 smp_mb();
2068
2069 if (((inode->i_state & flags) == flags) ||
2070 (dirtytime && (inode->i_state & I_DIRTY_INODE)))
2071 return;
2072
2073 if (unlikely(block_dump))
2074 block_dump___mark_inode_dirty(inode);
2075
2076 spin_lock(&inode->i_lock);
2077 if (dirtytime && (inode->i_state & I_DIRTY_INODE))
2078 goto out_unlock_inode;
2079 if ((inode->i_state & flags) != flags) {
2080 const int was_dirty = inode->i_state & I_DIRTY;
2081
2082 inode_attach_wb(inode, NULL);
2083
2084 if (flags & I_DIRTY_INODE)
2085 inode->i_state &= ~I_DIRTY_TIME;
2086 inode->i_state |= flags;
2087
2088 /*
2089 * If the inode is being synced, just update its dirty state.
2090 * The unlocker will place the inode on the appropriate
2091 * superblock list, based upon its state.
2092 */
2093 if (inode->i_state & I_SYNC)
2094 goto out_unlock_inode;
2095
2096 /*
2097 * Only add valid (hashed) inodes to the superblock's
2098 * dirty list. Add blockdev inodes as well.
2099 */
2100 if (!S_ISBLK(inode->i_mode)) {
2101 if (inode_unhashed(inode))
2102 goto out_unlock_inode;
2103 }
2104 if (inode->i_state & I_FREEING)
2105 goto out_unlock_inode;
2106
2107 /*
2108 * If the inode was already on b_dirty/b_io/b_more_io, don't
2109 * reposition it (that would break b_dirty time-ordering).
2110 */
2111 if (!was_dirty) {
2112 struct bdi_writeback *wb;
2113 struct list_head *dirty_list;
2114 bool wakeup_bdi = false;
2115
2116 wb = locked_inode_to_wb_and_lock_list(inode);
2117
2118 WARN(bdi_cap_writeback_dirty(wb->bdi) &&
2119 !test_bit(WB_registered, &wb->state),
2120 "bdi-%s not registered\n", wb->bdi->name);
2121
2122 inode->dirtied_when = jiffies;
2123 if (dirtytime)
2124 inode->dirtied_time_when = jiffies;
2125
2126 if (inode->i_state & (I_DIRTY_INODE | I_DIRTY_PAGES))
2127 dirty_list = &wb->b_dirty;
2128 else
2129 dirty_list = &wb->b_dirty_time;
2130
2131 wakeup_bdi = inode_io_list_move_locked(inode, wb,
2132 dirty_list);
2133
2134 spin_unlock(&wb->list_lock);
2135 trace_writeback_dirty_inode_enqueue(inode);
2136
2137 /*
2138 * If this is the first dirty inode for this bdi,
2139 * we have to wake-up the corresponding bdi thread
2140 * to make sure background write-back happens
2141 * later.
2142 */
2143 if (bdi_cap_writeback_dirty(wb->bdi) && wakeup_bdi)
2144 wb_wakeup_delayed(wb);
2145 return;
2146 }
2147 }
2148 out_unlock_inode:
2149 spin_unlock(&inode->i_lock);
2150
2151 #undef I_DIRTY_INODE
2152 }
2153 EXPORT_SYMBOL(__mark_inode_dirty);
2154
2155 /*
2156 * The @s_sync_lock is used to serialise concurrent sync operations
2157 * to avoid lock contention problems with concurrent wait_sb_inodes() calls.
2158 * Concurrent callers will block on the s_sync_lock rather than doing contending
2159 * walks. The queueing maintains sync(2) required behaviour as all the IO that
2160 * has been issued up to the time this function is enter is guaranteed to be
2161 * completed by the time we have gained the lock and waited for all IO that is
2162 * in progress regardless of the order callers are granted the lock.
2163 */
2164 static void wait_sb_inodes(struct super_block *sb)
2165 {
2166 struct inode *inode, *old_inode = NULL;
2167
2168 /*
2169 * We need to be protected against the filesystem going from
2170 * r/o to r/w or vice versa.
2171 */
2172 WARN_ON(!rwsem_is_locked(&sb->s_umount));
2173
2174 mutex_lock(&sb->s_sync_lock);
2175 spin_lock(&sb->s_inode_list_lock);
2176
2177 /*
2178 * Data integrity sync. Must wait for all pages under writeback,
2179 * because there may have been pages dirtied before our sync
2180 * call, but which had writeout started before we write it out.
2181 * In which case, the inode may not be on the dirty list, but
2182 * we still have to wait for that writeout.
2183 */
2184 list_for_each_entry(inode, &sb->s_inodes, i_sb_list) {
2185 struct address_space *mapping = inode->i_mapping;
2186
2187 spin_lock(&inode->i_lock);
2188 if ((inode->i_state & (I_FREEING|I_WILL_FREE|I_NEW)) ||
2189 (mapping->nrpages == 0)) {
2190 spin_unlock(&inode->i_lock);
2191 continue;
2192 }
2193 __iget(inode);
2194 spin_unlock(&inode->i_lock);
2195 spin_unlock(&sb->s_inode_list_lock);
2196
2197 /*
2198 * We hold a reference to 'inode' so it couldn't have been
2199 * removed from s_inodes list while we dropped the
2200 * s_inode_list_lock. We cannot iput the inode now as we can
2201 * be holding the last reference and we cannot iput it under
2202 * s_inode_list_lock. So we keep the reference and iput it
2203 * later.
2204 */
2205 iput(old_inode);
2206 old_inode = inode;
2207
2208 /*
2209 * We keep the error status of individual mapping so that
2210 * applications can catch the writeback error using fsync(2).
2211 * See filemap_fdatawait_keep_errors() for details.
2212 */
2213 filemap_fdatawait_keep_errors(mapping);
2214
2215 cond_resched();
2216
2217 spin_lock(&sb->s_inode_list_lock);
2218 }
2219 spin_unlock(&sb->s_inode_list_lock);
2220 iput(old_inode);
2221 mutex_unlock(&sb->s_sync_lock);
2222 }
2223
2224 static void __writeback_inodes_sb_nr(struct super_block *sb, unsigned long nr,
2225 enum wb_reason reason, bool skip_if_busy)
2226 {
2227 DEFINE_WB_COMPLETION_ONSTACK(done);
2228 struct wb_writeback_work work = {
2229 .sb = sb,
2230 .sync_mode = WB_SYNC_NONE,
2231 .tagged_writepages = 1,
2232 .done = &done,
2233 .nr_pages = nr,
2234 .reason = reason,
2235 };
2236 struct backing_dev_info *bdi = sb->s_bdi;
2237
2238 if (!bdi_has_dirty_io(bdi) || bdi == &noop_backing_dev_info)
2239 return;
2240 WARN_ON(!rwsem_is_locked(&sb->s_umount));
2241
2242 bdi_split_work_to_wbs(sb->s_bdi, &work, skip_if_busy);
2243 wb_wait_for_completion(bdi, &done);
2244 }
2245
2246 /**
2247 * writeback_inodes_sb_nr - writeback dirty inodes from given super_block
2248 * @sb: the superblock
2249 * @nr: the number of pages to write
2250 * @reason: reason why some writeback work initiated
2251 *
2252 * Start writeback on some inodes on this super_block. No guarantees are made
2253 * on how many (if any) will be written, and this function does not wait
2254 * for IO completion of submitted IO.
2255 */
2256 void writeback_inodes_sb_nr(struct super_block *sb,
2257 unsigned long nr,
2258 enum wb_reason reason)
2259 {
2260 __writeback_inodes_sb_nr(sb, nr, reason, false);
2261 }
2262 EXPORT_SYMBOL(writeback_inodes_sb_nr);
2263
2264 /**
2265 * writeback_inodes_sb - writeback dirty inodes from given super_block
2266 * @sb: the superblock
2267 * @reason: reason why some writeback work was initiated
2268 *
2269 * Start writeback on some inodes on this super_block. No guarantees are made
2270 * on how many (if any) will be written, and this function does not wait
2271 * for IO completion of submitted IO.
2272 */
2273 void writeback_inodes_sb(struct super_block *sb, enum wb_reason reason)
2274 {
2275 return writeback_inodes_sb_nr(sb, get_nr_dirty_pages(), reason);
2276 }
2277 EXPORT_SYMBOL(writeback_inodes_sb);
2278
2279 /**
2280 * try_to_writeback_inodes_sb_nr - try to start writeback if none underway
2281 * @sb: the superblock
2282 * @nr: the number of pages to write
2283 * @reason: the reason of writeback
2284 *
2285 * Invoke writeback_inodes_sb_nr if no writeback is currently underway.
2286 * Returns 1 if writeback was started, 0 if not.
2287 */
2288 bool try_to_writeback_inodes_sb_nr(struct super_block *sb, unsigned long nr,
2289 enum wb_reason reason)
2290 {
2291 if (!down_read_trylock(&sb->s_umount))
2292 return false;
2293
2294 __writeback_inodes_sb_nr(sb, nr, reason, true);
2295 up_read(&sb->s_umount);
2296 return true;
2297 }
2298 EXPORT_SYMBOL(try_to_writeback_inodes_sb_nr);
2299
2300 /**
2301 * try_to_writeback_inodes_sb - try to start writeback if none underway
2302 * @sb: the superblock
2303 * @reason: reason why some writeback work was initiated
2304 *
2305 * Implement by try_to_writeback_inodes_sb_nr()
2306 * Returns 1 if writeback was started, 0 if not.
2307 */
2308 bool try_to_writeback_inodes_sb(struct super_block *sb, enum wb_reason reason)
2309 {
2310 return try_to_writeback_inodes_sb_nr(sb, get_nr_dirty_pages(), reason);
2311 }
2312 EXPORT_SYMBOL(try_to_writeback_inodes_sb);
2313
2314 /**
2315 * sync_inodes_sb - sync sb inode pages
2316 * @sb: the superblock
2317 *
2318 * This function writes and waits on any dirty inode belonging to this
2319 * super_block.
2320 */
2321 void sync_inodes_sb(struct super_block *sb)
2322 {
2323 DEFINE_WB_COMPLETION_ONSTACK(done);
2324 struct wb_writeback_work work = {
2325 .sb = sb,
2326 .sync_mode = WB_SYNC_ALL,
2327 .nr_pages = LONG_MAX,
2328 .range_cyclic = 0,
2329 .done = &done,
2330 .reason = WB_REASON_SYNC,
2331 .for_sync = 1,
2332 };
2333 struct backing_dev_info *bdi = sb->s_bdi;
2334
2335 /*
2336 * Can't skip on !bdi_has_dirty() because we should wait for !dirty
2337 * inodes under writeback and I_DIRTY_TIME inodes ignored by
2338 * bdi_has_dirty() need to be written out too.
2339 */
2340 if (bdi == &noop_backing_dev_info)
2341 return;
2342 WARN_ON(!rwsem_is_locked(&sb->s_umount));
2343
2344 bdi_split_work_to_wbs(bdi, &work, false);
2345 wb_wait_for_completion(bdi, &done);
2346
2347 wait_sb_inodes(sb);
2348 }
2349 EXPORT_SYMBOL(sync_inodes_sb);
2350
2351 /**
2352 * write_inode_now - write an inode to disk
2353 * @inode: inode to write to disk
2354 * @sync: whether the write should be synchronous or not
2355 *
2356 * This function commits an inode to disk immediately if it is dirty. This is
2357 * primarily needed by knfsd.
2358 *
2359 * The caller must either have a ref on the inode or must have set I_WILL_FREE.
2360 */
2361 int write_inode_now(struct inode *inode, int sync)
2362 {
2363 struct writeback_control wbc = {
2364 .nr_to_write = LONG_MAX,
2365 .sync_mode = sync ? WB_SYNC_ALL : WB_SYNC_NONE,
2366 .range_start = 0,
2367 .range_end = LLONG_MAX,
2368 };
2369
2370 if (!mapping_cap_writeback_dirty(inode->i_mapping))
2371 wbc.nr_to_write = 0;
2372
2373 might_sleep();
2374 return writeback_single_inode(inode, &wbc);
2375 }
2376 EXPORT_SYMBOL(write_inode_now);
2377
2378 /**
2379 * sync_inode - write an inode and its pages to disk.
2380 * @inode: the inode to sync
2381 * @wbc: controls the writeback mode
2382 *
2383 * sync_inode() will write an inode and its pages to disk. It will also
2384 * correctly update the inode on its superblock's dirty inode lists and will
2385 * update inode->i_state.
2386 *
2387 * The caller must have a ref on the inode.
2388 */
2389 int sync_inode(struct inode *inode, struct writeback_control *wbc)
2390 {
2391 return writeback_single_inode(inode, wbc);
2392 }
2393 EXPORT_SYMBOL(sync_inode);
2394
2395 /**
2396 * sync_inode_metadata - write an inode to disk
2397 * @inode: the inode to sync
2398 * @wait: wait for I/O to complete.
2399 *
2400 * Write an inode to disk and adjust its dirty state after completion.
2401 *
2402 * Note: only writes the actual inode, no associated data or other metadata.
2403 */
2404 int sync_inode_metadata(struct inode *inode, int wait)
2405 {
2406 struct writeback_control wbc = {
2407 .sync_mode = wait ? WB_SYNC_ALL : WB_SYNC_NONE,
2408 .nr_to_write = 0, /* metadata-only */
2409 };
2410
2411 return sync_inode(inode, &wbc);
2412 }
2413 EXPORT_SYMBOL(sync_inode_metadata);