1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * mm/page-writeback.c
4 *
5 * Copyright (C) 2002, Linus Torvalds.
6 * Copyright (C) 2007 Red Hat, Inc., Peter Zijlstra
7 *
8 * Contains functions related to writing back dirty pages at the
9 * address_space level.
10 *
11 * 10Apr2002 Andrew Morton
12 * Initial version
13 */
14
15 #include <linux/kernel.h>
16 #include <linux/math64.h>
17 #include <linux/export.h>
18 #include <linux/spinlock.h>
19 #include <linux/fs.h>
20 #include <linux/mm.h>
21 #include <linux/swap.h>
22 #include <linux/slab.h>
23 #include <linux/pagemap.h>
24 #include <linux/writeback.h>
25 #include <linux/init.h>
26 #include <linux/backing-dev.h>
27 #include <linux/task_io_accounting_ops.h>
28 #include <linux/mpage.h>
29 #include <linux/rmap.h>
30 #include <linux/percpu.h>
31 #include <linux/smp.h>
32 #include <linux/sysctl.h>
33 #include <linux/cpu.h>
34 #include <linux/syscalls.h>
35 #include <linux/folio_batch.h>
36 #include <linux/timer.h>
37 #include <linux/sched/rt.h>
38 #include <linux/sched/signal.h>
39 #include <linux/mm_inline.h>
40 #include <linux/shmem_fs.h>
41 #include <trace/events/writeback.h>
42
43 #include "internal.h"
44
45 /*
46 * Sleep at most 200ms at a time in balance_dirty_pages().
47 */
48 #define MAX_PAUSE max(HZ/5, 1)
49
50 /*
51 * Try to keep balance_dirty_pages() call intervals higher than this many pages
52 * by raising pause time to max_pause when falls below it.
53 */
54 #define DIRTY_POLL_THRESH (128 >> (PAGE_SHIFT - 10))
55
56 /*
57 * Estimate write bandwidth or update dirty limit at 200ms intervals.
58 */
59 #define BANDWIDTH_INTERVAL max(HZ/5, 1)
60
61 #define RATELIMIT_CALC_SHIFT 10
62
63 /*
64 * After a CPU has dirtied this many pages, balance_dirty_pages_ratelimited
65 * will look to see if it needs to force writeback or throttling.
66 */
67 static long ratelimit_pages = 32;
68
69 /* The following parameters are exported via /proc/sys/vm */
70
71 /*
72 * Start background writeback (via writeback threads) at this percentage
73 */
74 static int dirty_background_ratio = 10;
75
76 /*
77 * dirty_background_bytes starts at 0 (disabled) so that it is a function of
78 * dirty_background_ratio * the amount of dirtyable memory
79 */
80 static unsigned long dirty_background_bytes;
81
82 /*
83 * free highmem will not be subtracted from the total free memory
84 * for calculating free ratios if vm_highmem_is_dirtyable is true
85 */
86 static int vm_highmem_is_dirtyable;
87
88 /*
89 * The generator of dirty data starts writeback at this percentage
90 */
91 static int vm_dirty_ratio = 20;
92
93 /*
94 * vm_dirty_bytes starts at 0 (disabled) so that it is a function of
95 * vm_dirty_ratio * the amount of dirtyable memory
96 */
97 static unsigned long vm_dirty_bytes;
98
99 /*
100 * The interval between `kupdate'-style writebacks
101 */
102 unsigned int dirty_writeback_interval = 5 * 100; /* centiseconds */
103
104 EXPORT_SYMBOL_GPL(dirty_writeback_interval);
105
106 /*
107 * The longest time for which data is allowed to remain dirty
108 */
109 unsigned int dirty_expire_interval = 30 * 100; /* centiseconds */
110
111 /* End of sysctl-exported parameters */
112
113 struct wb_domain global_wb_domain;
114
115 /*
116 * Length of period for aging writeout fractions of bdis. This is an
117 * arbitrarily chosen number. The longer the period, the slower fractions will
118 * reflect changes in current writeout rate.
119 */
120 #define VM_COMPLETIONS_PERIOD_LEN (3*HZ)
121
122 #ifdef CONFIG_CGROUP_WRITEBACK
123
124 #define GDTC_INIT(__wb) .wb = (__wb), \
125 .dom = &global_wb_domain, \
126 .wb_completions = &(__wb)->completions
127
128 #define GDTC_INIT_NO_WB .dom = &global_wb_domain
129
130 #define MDTC_INIT(__wb, __gdtc) .wb = (__wb), \
131 .dom = mem_cgroup_wb_domain(__wb), \
132 .wb_completions = &(__wb)->memcg_completions, \
133 .gdtc = __gdtc
134
mdtc_valid(struct dirty_throttle_control * dtc)135 static bool mdtc_valid(struct dirty_throttle_control *dtc)
136 {
137 return dtc->dom;
138 }
139
dtc_dom(struct dirty_throttle_control * dtc)140 static struct wb_domain *dtc_dom(struct dirty_throttle_control *dtc)
141 {
142 return dtc->dom;
143 }
144
mdtc_gdtc(struct dirty_throttle_control * mdtc)145 static struct dirty_throttle_control *mdtc_gdtc(struct dirty_throttle_control *mdtc)
146 {
147 return mdtc->gdtc;
148 }
149
wb_memcg_completions(struct bdi_writeback * wb)150 static struct fprop_local_percpu *wb_memcg_completions(struct bdi_writeback *wb)
151 {
152 return &wb->memcg_completions;
153 }
154
wb_min_max_ratio(struct bdi_writeback * wb,unsigned long * minp,unsigned long * maxp)155 static void wb_min_max_ratio(struct bdi_writeback *wb,
156 unsigned long *minp, unsigned long *maxp)
157 {
158 unsigned long this_bw = READ_ONCE(wb->avg_write_bandwidth);
159 unsigned long tot_bw = atomic_long_read(&wb->bdi->tot_write_bandwidth);
160 unsigned long long min = wb->bdi->min_ratio;
161 unsigned long long max = wb->bdi->max_ratio;
162
163 /*
164 * @wb may already be clean by the time control reaches here and
165 * the total may not include its bw.
166 */
167 if (this_bw < tot_bw) {
168 if (min) {
169 min *= this_bw;
170 min = div64_ul(min, tot_bw);
171 }
172 if (max < 100 * BDI_RATIO_SCALE) {
173 max *= this_bw;
174 max = div64_ul(max, tot_bw);
175 }
176 }
177
178 *minp = min;
179 *maxp = max;
180 }
181
182 #else /* CONFIG_CGROUP_WRITEBACK */
183
184 #define GDTC_INIT(__wb) .wb = (__wb), \
185 .wb_completions = &(__wb)->completions
186 #define GDTC_INIT_NO_WB
187 #define MDTC_INIT(__wb, __gdtc)
188
mdtc_valid(struct dirty_throttle_control * dtc)189 static bool mdtc_valid(struct dirty_throttle_control *dtc)
190 {
191 return false;
192 }
193
dtc_dom(struct dirty_throttle_control * dtc)194 static struct wb_domain *dtc_dom(struct dirty_throttle_control *dtc)
195 {
196 return &global_wb_domain;
197 }
198
mdtc_gdtc(struct dirty_throttle_control * mdtc)199 static struct dirty_throttle_control *mdtc_gdtc(struct dirty_throttle_control *mdtc)
200 {
201 return NULL;
202 }
203
wb_memcg_completions(struct bdi_writeback * wb)204 static struct fprop_local_percpu *wb_memcg_completions(struct bdi_writeback *wb)
205 {
206 return NULL;
207 }
208
wb_min_max_ratio(struct bdi_writeback * wb,unsigned long * minp,unsigned long * maxp)209 static void wb_min_max_ratio(struct bdi_writeback *wb,
210 unsigned long *minp, unsigned long *maxp)
211 {
212 *minp = wb->bdi->min_ratio;
213 *maxp = wb->bdi->max_ratio;
214 }
215
216 #endif /* CONFIG_CGROUP_WRITEBACK */
217
218 /*
219 * In a memory zone, there is a certain amount of pages we consider
220 * available for the page cache, which is essentially the number of
221 * free and reclaimable pages, minus some zone reserves to protect
222 * lowmem and the ability to uphold the zone's watermarks without
223 * requiring writeback.
224 *
225 * This number of dirtyable pages is the base value of which the
226 * user-configurable dirty ratio is the effective number of pages that
227 * are allowed to be actually dirtied. Per individual zone, or
228 * globally by using the sum of dirtyable pages over all zones.
229 *
230 * Because the user is allowed to specify the dirty limit globally as
231 * absolute number of bytes, calculating the per-zone dirty limit can
232 * require translating the configured limit into a percentage of
233 * global dirtyable memory first.
234 */
235
236 /**
237 * node_dirtyable_memory - number of dirtyable pages in a node
238 * @pgdat: the node
239 *
240 * Return: the node's number of pages potentially available for dirty
241 * page cache. This is the base value for the per-node dirty limits.
242 */
node_dirtyable_memory(struct pglist_data * pgdat)243 static unsigned long node_dirtyable_memory(struct pglist_data *pgdat)
244 {
245 unsigned long nr_pages = 0;
246 int z;
247
248 for (z = 0; z < MAX_NR_ZONES; z++) {
249 struct zone *zone = pgdat->node_zones + z;
250
251 if (!populated_zone(zone))
252 continue;
253
254 nr_pages += zone_page_state(zone, NR_FREE_PAGES);
255 }
256
257 /*
258 * Pages reserved for the kernel should not be considered
259 * dirtyable, to prevent a situation where reclaim has to
260 * clean pages in order to balance the zones.
261 */
262 nr_pages -= min(nr_pages, pgdat->totalreserve_pages);
263
264 nr_pages += node_page_state(pgdat, NR_INACTIVE_FILE);
265 nr_pages += node_page_state(pgdat, NR_ACTIVE_FILE);
266
267 return nr_pages;
268 }
269
highmem_dirtyable_memory(unsigned long total)270 static unsigned long highmem_dirtyable_memory(unsigned long total)
271 {
272 #ifdef CONFIG_HIGHMEM
273 int node;
274 unsigned long x = 0;
275 int i;
276
277 for_each_node_state(node, N_HIGH_MEMORY) {
278 for (i = ZONE_NORMAL + 1; i < MAX_NR_ZONES; i++) {
279 struct zone *z;
280 unsigned long nr_pages;
281
282 if (!is_highmem_idx(i))
283 continue;
284
285 z = &NODE_DATA(node)->node_zones[i];
286 if (!populated_zone(z))
287 continue;
288
289 nr_pages = zone_page_state(z, NR_FREE_PAGES);
290 /* watch for underflows */
291 nr_pages -= min(nr_pages, high_wmark_pages(z));
292 nr_pages += zone_page_state(z, NR_ZONE_INACTIVE_FILE);
293 nr_pages += zone_page_state(z, NR_ZONE_ACTIVE_FILE);
294 x += nr_pages;
295 }
296 }
297
298 /*
299 * Make sure that the number of highmem pages is never larger
300 * than the number of the total dirtyable memory. This can only
301 * occur in very strange VM situations but we want to make sure
302 * that this does not occur.
303 */
304 return min(x, total);
305 #else
306 return 0;
307 #endif
308 }
309
310 /**
311 * global_dirtyable_memory - number of globally dirtyable pages
312 *
313 * Return: the global number of pages potentially available for dirty
314 * page cache. This is the base value for the global dirty limits.
315 */
global_dirtyable_memory(void)316 static unsigned long global_dirtyable_memory(void)
317 {
318 unsigned long x;
319
320 x = global_zone_page_state(NR_FREE_PAGES);
321 /*
322 * Pages reserved for the kernel should not be considered
323 * dirtyable, to prevent a situation where reclaim has to
324 * clean pages in order to balance the zones.
325 */
326 x -= min(x, totalreserve_pages);
327
328 x += global_node_page_state(NR_INACTIVE_FILE);
329 x += global_node_page_state(NR_ACTIVE_FILE);
330
331 if (!vm_highmem_is_dirtyable)
332 x -= highmem_dirtyable_memory(x);
333
334 return x + 1; /* Ensure that we never return 0 */
335 }
336
337 /**
338 * domain_dirty_limits - calculate thresh and bg_thresh for a wb_domain
339 * @dtc: dirty_throttle_control of interest
340 *
341 * Calculate @dtc->thresh and ->bg_thresh considering
342 * vm_dirty_{bytes|ratio} and dirty_background_{bytes|ratio}. The caller
343 * must ensure that @dtc->avail is set before calling this function. The
344 * dirty limits will be lifted by 1/4 for real-time tasks.
345 */
domain_dirty_limits(struct dirty_throttle_control * dtc)346 static void domain_dirty_limits(struct dirty_throttle_control *dtc)
347 {
348 const unsigned long available_memory = dtc->avail;
349 struct dirty_throttle_control *gdtc = mdtc_gdtc(dtc);
350 unsigned long bytes = vm_dirty_bytes;
351 unsigned long bg_bytes = dirty_background_bytes;
352 /* convert ratios to per-PAGE_SIZE for higher precision */
353 unsigned long ratio = (vm_dirty_ratio * PAGE_SIZE) / 100;
354 unsigned long bg_ratio = (dirty_background_ratio * PAGE_SIZE) / 100;
355 unsigned long thresh;
356 unsigned long bg_thresh;
357 struct task_struct *tsk;
358
359 /* gdtc is !NULL iff @dtc is for memcg domain */
360 if (gdtc) {
361 unsigned long global_avail = gdtc->avail;
362
363 /*
364 * The byte settings can't be applied directly to memcg
365 * domains. Convert them to ratios by scaling against
366 * globally available memory. As the ratios are in
367 * per-PAGE_SIZE, they can be obtained by dividing bytes by
368 * number of pages.
369 */
370 if (bytes)
371 ratio = min(DIV_ROUND_UP(bytes, global_avail),
372 PAGE_SIZE);
373 if (bg_bytes)
374 bg_ratio = min(DIV_ROUND_UP(bg_bytes, global_avail),
375 PAGE_SIZE);
376 bytes = bg_bytes = 0;
377 }
378
379 if (bytes)
380 thresh = DIV_ROUND_UP(bytes, PAGE_SIZE);
381 else
382 thresh = (ratio * available_memory) / PAGE_SIZE;
383
384 if (bg_bytes)
385 bg_thresh = DIV_ROUND_UP(bg_bytes, PAGE_SIZE);
386 else
387 bg_thresh = (bg_ratio * available_memory) / PAGE_SIZE;
388
389 tsk = current;
390 if (rt_or_dl_task(tsk)) {
391 bg_thresh += bg_thresh / 4 + global_wb_domain.dirty_limit / 32;
392 thresh += thresh / 4 + global_wb_domain.dirty_limit / 32;
393 }
394 /*
395 * Dirty throttling logic assumes the limits in page units fit into
396 * 32-bits. This gives 16TB dirty limits max which is hopefully enough.
397 */
398 if (thresh > UINT_MAX)
399 thresh = UINT_MAX;
400 /* This makes sure bg_thresh is within 32-bits as well */
401 if (bg_thresh >= thresh)
402 bg_thresh = thresh / 2;
403 dtc->thresh = thresh;
404 dtc->bg_thresh = bg_thresh;
405
406 /* we should eventually report the domain in the TP */
407 if (!gdtc)
408 trace_global_dirty_state(bg_thresh, thresh);
409 }
410
411 /**
412 * global_dirty_limits - background-writeback and dirty-throttling thresholds
413 * @pbackground: out parameter for bg_thresh
414 * @pdirty: out parameter for thresh
415 *
416 * Calculate bg_thresh and thresh for global_wb_domain. See
417 * domain_dirty_limits() for details.
418 */
global_dirty_limits(unsigned long * pbackground,unsigned long * pdirty)419 void global_dirty_limits(unsigned long *pbackground, unsigned long *pdirty)
420 {
421 struct dirty_throttle_control gdtc = { GDTC_INIT_NO_WB };
422
423 gdtc.avail = global_dirtyable_memory();
424 domain_dirty_limits(&gdtc);
425
426 *pbackground = gdtc.bg_thresh;
427 *pdirty = gdtc.thresh;
428 }
429
430 /**
431 * node_dirty_limit - maximum number of dirty pages allowed in a node
432 * @pgdat: the node
433 *
434 * Return: the maximum number of dirty pages allowed in a node, based
435 * on the node's dirtyable memory.
436 */
node_dirty_limit(struct pglist_data * pgdat)437 static unsigned long node_dirty_limit(struct pglist_data *pgdat)
438 {
439 unsigned long node_memory = node_dirtyable_memory(pgdat);
440 struct task_struct *tsk = current;
441 unsigned long dirty;
442
443 if (vm_dirty_bytes)
444 dirty = DIV_ROUND_UP(vm_dirty_bytes, PAGE_SIZE) *
445 node_memory / global_dirtyable_memory();
446 else
447 dirty = vm_dirty_ratio * node_memory / 100;
448
449 if (rt_or_dl_task(tsk))
450 dirty += dirty / 4;
451
452 /*
453 * Dirty throttling logic assumes the limits in page units fit into
454 * 32-bits. This gives 16TB dirty limits max which is hopefully enough.
455 */
456 return min_t(unsigned long, dirty, UINT_MAX);
457 }
458
459 /**
460 * node_dirty_ok - tells whether a node is within its dirty limits
461 * @pgdat: the node to check
462 *
463 * Return: %true when the dirty pages in @pgdat are within the node's
464 * dirty limit, %false if the limit is exceeded.
465 */
node_dirty_ok(struct pglist_data * pgdat)466 bool node_dirty_ok(struct pglist_data *pgdat)
467 {
468 unsigned long limit = node_dirty_limit(pgdat);
469 unsigned long nr_pages = 0;
470
471 nr_pages += node_page_state(pgdat, NR_FILE_DIRTY);
472 nr_pages += node_page_state(pgdat, NR_WRITEBACK);
473
474 return nr_pages <= limit;
475 }
476
477 #ifdef CONFIG_SYSCTL
dirty_background_ratio_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)478 static int dirty_background_ratio_handler(const struct ctl_table *table, int write,
479 void *buffer, size_t *lenp, loff_t *ppos)
480 {
481 int ret;
482
483 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
484 if (ret == 0 && write)
485 dirty_background_bytes = 0;
486 return ret;
487 }
488
dirty_background_bytes_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)489 static int dirty_background_bytes_handler(const struct ctl_table *table, int write,
490 void *buffer, size_t *lenp, loff_t *ppos)
491 {
492 int ret;
493 unsigned long old_bytes = dirty_background_bytes;
494
495 ret = proc_doulongvec_minmax(table, write, buffer, lenp, ppos);
496 if (ret == 0 && write) {
497 if (DIV_ROUND_UP(dirty_background_bytes, PAGE_SIZE) >
498 UINT_MAX) {
499 dirty_background_bytes = old_bytes;
500 return -ERANGE;
501 }
502 dirty_background_ratio = 0;
503 }
504 return ret;
505 }
506
dirty_ratio_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)507 static int dirty_ratio_handler(const struct ctl_table *table, int write, void *buffer,
508 size_t *lenp, loff_t *ppos)
509 {
510 int old_ratio = vm_dirty_ratio;
511 int ret;
512
513 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
514 if (ret == 0 && write && vm_dirty_ratio != old_ratio) {
515 vm_dirty_bytes = 0;
516 writeback_set_ratelimit();
517 }
518 return ret;
519 }
520
dirty_bytes_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)521 static int dirty_bytes_handler(const struct ctl_table *table, int write,
522 void *buffer, size_t *lenp, loff_t *ppos)
523 {
524 unsigned long old_bytes = vm_dirty_bytes;
525 int ret;
526
527 ret = proc_doulongvec_minmax(table, write, buffer, lenp, ppos);
528 if (ret == 0 && write && vm_dirty_bytes != old_bytes) {
529 if (DIV_ROUND_UP(vm_dirty_bytes, PAGE_SIZE) > UINT_MAX) {
530 vm_dirty_bytes = old_bytes;
531 return -ERANGE;
532 }
533 writeback_set_ratelimit();
534 vm_dirty_ratio = 0;
535 }
536 return ret;
537 }
538 #endif
539
wp_next_time(unsigned long cur_time)540 static unsigned long wp_next_time(unsigned long cur_time)
541 {
542 cur_time += VM_COMPLETIONS_PERIOD_LEN;
543 /* 0 has a special meaning... */
544 if (!cur_time)
545 return 1;
546 return cur_time;
547 }
548
wb_domain_writeout_add(struct wb_domain * dom,struct fprop_local_percpu * completions,unsigned int max_prop_frac,long nr)549 static void wb_domain_writeout_add(struct wb_domain *dom,
550 struct fprop_local_percpu *completions,
551 unsigned int max_prop_frac, long nr)
552 {
553 __fprop_add_percpu_max(&dom->completions, completions,
554 max_prop_frac, nr);
555 /* First event after period switching was turned off? */
556 if (unlikely(!dom->period_time)) {
557 /*
558 * We can race with other wb_domain_writeout_add calls here but
559 * it does not cause any harm since the resulting time when
560 * timer will fire and what is in writeout_period_time will be
561 * roughly the same.
562 */
563 dom->period_time = wp_next_time(jiffies);
564 mod_timer(&dom->period_timer, dom->period_time);
565 }
566 }
567
568 /*
569 * Increment @wb's writeout completion count and the global writeout
570 * completion count. Called from __folio_end_writeback().
571 */
__wb_writeout_add(struct bdi_writeback * wb,long nr)572 static inline void __wb_writeout_add(struct bdi_writeback *wb, long nr)
573 {
574 struct wb_domain *cgdom;
575
576 wb_stat_mod(wb, WB_WRITTEN, nr);
577 wb_domain_writeout_add(&global_wb_domain, &wb->completions,
578 wb->bdi->max_prop_frac, nr);
579
580 cgdom = mem_cgroup_wb_domain(wb);
581 if (cgdom)
582 wb_domain_writeout_add(cgdom, wb_memcg_completions(wb),
583 wb->bdi->max_prop_frac, nr);
584 }
585
586 /*
587 * On idle system, we can be called long after we scheduled because we use
588 * deferred timers so count with missed periods.
589 */
writeout_period(struct timer_list * t)590 static void writeout_period(struct timer_list *t)
591 {
592 struct wb_domain *dom = timer_container_of(dom, t, period_timer);
593 int miss_periods = (jiffies - dom->period_time) /
594 VM_COMPLETIONS_PERIOD_LEN;
595
596 if (fprop_new_period(&dom->completions, miss_periods + 1)) {
597 dom->period_time = wp_next_time(dom->period_time +
598 miss_periods * VM_COMPLETIONS_PERIOD_LEN);
599 mod_timer(&dom->period_timer, dom->period_time);
600 } else {
601 /*
602 * Aging has zeroed all fractions. Stop wasting CPU on period
603 * updates.
604 */
605 dom->period_time = 0;
606 }
607 }
608
wb_domain_init(struct wb_domain * dom,gfp_t gfp)609 int wb_domain_init(struct wb_domain *dom, gfp_t gfp)
610 {
611 memset(dom, 0, sizeof(*dom));
612
613 spin_lock_init(&dom->lock);
614
615 timer_setup(&dom->period_timer, writeout_period, TIMER_DEFERRABLE);
616
617 dom->dirty_limit_tstamp = jiffies;
618
619 return fprop_global_init(&dom->completions, gfp);
620 }
621
622 #ifdef CONFIG_CGROUP_WRITEBACK
wb_domain_exit(struct wb_domain * dom)623 void wb_domain_exit(struct wb_domain *dom)
624 {
625 timer_delete_sync(&dom->period_timer);
626 fprop_global_destroy(&dom->completions);
627 }
628 #endif
629
630 /*
631 * bdi_min_ratio keeps the sum of the minimum dirty shares of all
632 * registered backing devices, which, for obvious reasons, can not
633 * exceed 100%.
634 */
635 static unsigned int bdi_min_ratio;
636
bdi_check_pages_limit(unsigned long pages)637 static int bdi_check_pages_limit(unsigned long pages)
638 {
639 unsigned long max_dirty_pages = global_dirtyable_memory();
640
641 if (pages > max_dirty_pages)
642 return -EINVAL;
643
644 return 0;
645 }
646
bdi_ratio_from_pages(unsigned long pages)647 static unsigned long bdi_ratio_from_pages(unsigned long pages)
648 {
649 unsigned long background_thresh;
650 unsigned long dirty_thresh;
651 unsigned long ratio;
652
653 global_dirty_limits(&background_thresh, &dirty_thresh);
654 if (!dirty_thresh)
655 return -EINVAL;
656 ratio = div64_u64(pages * 100ULL * BDI_RATIO_SCALE, dirty_thresh);
657
658 return ratio;
659 }
660
bdi_get_bytes(unsigned int ratio)661 static u64 bdi_get_bytes(unsigned int ratio)
662 {
663 unsigned long background_thresh;
664 unsigned long dirty_thresh;
665 u64 bytes;
666
667 global_dirty_limits(&background_thresh, &dirty_thresh);
668 bytes = (dirty_thresh * PAGE_SIZE * ratio) / BDI_RATIO_SCALE / 100;
669
670 return bytes;
671 }
672
__bdi_set_min_ratio(struct backing_dev_info * bdi,unsigned int min_ratio)673 static int __bdi_set_min_ratio(struct backing_dev_info *bdi, unsigned int min_ratio)
674 {
675 unsigned int delta;
676 int ret = 0;
677
678 if (min_ratio > 100 * BDI_RATIO_SCALE)
679 return -EINVAL;
680
681 spin_lock_bh(&bdi_lock);
682 if (min_ratio > bdi->max_ratio) {
683 ret = -EINVAL;
684 } else {
685 if (min_ratio < bdi->min_ratio) {
686 delta = bdi->min_ratio - min_ratio;
687 bdi_min_ratio -= delta;
688 bdi->min_ratio = min_ratio;
689 } else {
690 delta = min_ratio - bdi->min_ratio;
691 if (bdi_min_ratio + delta < 100 * BDI_RATIO_SCALE) {
692 bdi_min_ratio += delta;
693 bdi->min_ratio = min_ratio;
694 } else {
695 ret = -EINVAL;
696 }
697 }
698 }
699 spin_unlock_bh(&bdi_lock);
700
701 return ret;
702 }
703
__bdi_set_max_ratio(struct backing_dev_info * bdi,unsigned int max_ratio)704 static int __bdi_set_max_ratio(struct backing_dev_info *bdi, unsigned int max_ratio)
705 {
706 int ret = 0;
707
708 if (max_ratio > 100 * BDI_RATIO_SCALE)
709 return -EINVAL;
710
711 spin_lock_bh(&bdi_lock);
712 if (bdi->min_ratio > max_ratio) {
713 ret = -EINVAL;
714 } else {
715 bdi->max_ratio = max_ratio;
716 bdi->max_prop_frac = (FPROP_FRAC_BASE * max_ratio) /
717 (100 * BDI_RATIO_SCALE);
718 }
719 spin_unlock_bh(&bdi_lock);
720
721 return ret;
722 }
723
bdi_set_min_ratio_no_scale(struct backing_dev_info * bdi,unsigned int min_ratio)724 int bdi_set_min_ratio_no_scale(struct backing_dev_info *bdi, unsigned int min_ratio)
725 {
726 return __bdi_set_min_ratio(bdi, min_ratio);
727 }
728
bdi_set_max_ratio_no_scale(struct backing_dev_info * bdi,unsigned int max_ratio)729 int bdi_set_max_ratio_no_scale(struct backing_dev_info *bdi, unsigned int max_ratio)
730 {
731 return __bdi_set_max_ratio(bdi, max_ratio);
732 }
733
bdi_set_min_ratio(struct backing_dev_info * bdi,unsigned int min_ratio)734 int bdi_set_min_ratio(struct backing_dev_info *bdi, unsigned int min_ratio)
735 {
736 return __bdi_set_min_ratio(bdi, min_ratio * BDI_RATIO_SCALE);
737 }
738
bdi_set_max_ratio(struct backing_dev_info * bdi,unsigned int max_ratio)739 int bdi_set_max_ratio(struct backing_dev_info *bdi, unsigned int max_ratio)
740 {
741 return __bdi_set_max_ratio(bdi, max_ratio * BDI_RATIO_SCALE);
742 }
743 EXPORT_SYMBOL(bdi_set_max_ratio);
744
bdi_get_min_bytes(struct backing_dev_info * bdi)745 u64 bdi_get_min_bytes(struct backing_dev_info *bdi)
746 {
747 return bdi_get_bytes(bdi->min_ratio);
748 }
749
bdi_set_min_bytes(struct backing_dev_info * bdi,u64 min_bytes)750 int bdi_set_min_bytes(struct backing_dev_info *bdi, u64 min_bytes)
751 {
752 int ret;
753 unsigned long pages = min_bytes >> PAGE_SHIFT;
754 long min_ratio;
755
756 ret = bdi_check_pages_limit(pages);
757 if (ret)
758 return ret;
759
760 min_ratio = bdi_ratio_from_pages(pages);
761 if (min_ratio < 0)
762 return min_ratio;
763 return __bdi_set_min_ratio(bdi, min_ratio);
764 }
765
bdi_get_max_bytes(struct backing_dev_info * bdi)766 u64 bdi_get_max_bytes(struct backing_dev_info *bdi)
767 {
768 return bdi_get_bytes(bdi->max_ratio);
769 }
770
bdi_set_max_bytes(struct backing_dev_info * bdi,u64 max_bytes)771 int bdi_set_max_bytes(struct backing_dev_info *bdi, u64 max_bytes)
772 {
773 int ret;
774 unsigned long pages = max_bytes >> PAGE_SHIFT;
775 long max_ratio;
776
777 ret = bdi_check_pages_limit(pages);
778 if (ret)
779 return ret;
780
781 max_ratio = bdi_ratio_from_pages(pages);
782 if (max_ratio < 0)
783 return max_ratio;
784 return __bdi_set_max_ratio(bdi, max_ratio);
785 }
786
bdi_set_strict_limit(struct backing_dev_info * bdi,unsigned int strict_limit)787 int bdi_set_strict_limit(struct backing_dev_info *bdi, unsigned int strict_limit)
788 {
789 if (strict_limit > 1)
790 return -EINVAL;
791
792 spin_lock_bh(&bdi_lock);
793 if (strict_limit)
794 bdi->capabilities |= BDI_CAP_STRICTLIMIT;
795 else
796 bdi->capabilities &= ~BDI_CAP_STRICTLIMIT;
797 spin_unlock_bh(&bdi_lock);
798
799 return 0;
800 }
801
dirty_freerun_ceiling(unsigned long thresh,unsigned long bg_thresh)802 static unsigned long dirty_freerun_ceiling(unsigned long thresh,
803 unsigned long bg_thresh)
804 {
805 return (thresh + bg_thresh) / 2;
806 }
807
hard_dirty_limit(struct wb_domain * dom,unsigned long thresh)808 static unsigned long hard_dirty_limit(struct wb_domain *dom,
809 unsigned long thresh)
810 {
811 return max(thresh, dom->dirty_limit);
812 }
813
814 /*
815 * Memory which can be further allocated to a memcg domain is capped by
816 * system-wide clean memory excluding the amount being used in the domain.
817 */
mdtc_calc_avail(struct dirty_throttle_control * mdtc,unsigned long filepages,unsigned long headroom)818 static void mdtc_calc_avail(struct dirty_throttle_control *mdtc,
819 unsigned long filepages, unsigned long headroom)
820 {
821 struct dirty_throttle_control *gdtc = mdtc_gdtc(mdtc);
822 unsigned long clean = filepages - min(filepages, mdtc->dirty);
823 unsigned long global_clean = gdtc->avail - min(gdtc->avail, gdtc->dirty);
824 unsigned long other_clean = global_clean - min(global_clean, clean);
825
826 mdtc->avail = filepages + min(headroom, other_clean);
827 }
828
dtc_is_global(struct dirty_throttle_control * dtc)829 static inline bool dtc_is_global(struct dirty_throttle_control *dtc)
830 {
831 return mdtc_gdtc(dtc) == NULL;
832 }
833
834 /*
835 * Dirty background will ignore pages being written as we're trying to
836 * decide whether to put more under writeback.
837 */
domain_dirty_avail(struct dirty_throttle_control * dtc,bool include_writeback)838 static void domain_dirty_avail(struct dirty_throttle_control *dtc,
839 bool include_writeback)
840 {
841 if (dtc_is_global(dtc)) {
842 dtc->avail = global_dirtyable_memory();
843 dtc->dirty = global_node_page_state(NR_FILE_DIRTY);
844 if (include_writeback)
845 dtc->dirty += global_node_page_state(NR_WRITEBACK);
846 } else {
847 unsigned long filepages = 0, headroom = 0, writeback = 0;
848
849 mem_cgroup_wb_stats(dtc->wb, &filepages, &headroom, &dtc->dirty,
850 &writeback);
851 if (include_writeback)
852 dtc->dirty += writeback;
853 mdtc_calc_avail(dtc, filepages, headroom);
854 }
855 }
856
857 /**
858 * __wb_calc_thresh - @wb's share of dirty threshold
859 * @dtc: dirty_throttle_context of interest
860 * @thresh: dirty throttling or dirty background threshold of wb_domain in @dtc
861 *
862 * Note that balance_dirty_pages() will only seriously take dirty throttling
863 * threshold as a hard limit when sleeping max_pause per page is not enough
864 * to keep the dirty pages under control. For example, when the device is
865 * completely stalled due to some error conditions, or when there are 1000
866 * dd tasks writing to a slow 10MB/s USB key.
867 * In the other normal situations, it acts more gently by throttling the tasks
868 * more (rather than completely block them) when the wb dirty pages go high.
869 *
870 * It allocates high/low dirty limits to fast/slow devices, in order to prevent
871 * - starving fast devices
872 * - piling up dirty pages (that will take long time to sync) on slow devices
873 *
874 * The wb's share of dirty limit will be adapting to its throughput and
875 * bounded by the bdi->min_ratio and/or bdi->max_ratio parameters, if set.
876 *
877 * Return: @wb's dirty limit in pages. For dirty throttling limit, the term
878 * "dirty" in the context of dirty balancing includes all PG_dirty and
879 * PG_writeback pages.
880 */
__wb_calc_thresh(struct dirty_throttle_control * dtc,unsigned long thresh)881 static unsigned long __wb_calc_thresh(struct dirty_throttle_control *dtc,
882 unsigned long thresh)
883 {
884 struct wb_domain *dom = dtc_dom(dtc);
885 struct bdi_writeback *wb = dtc->wb;
886 u64 wb_thresh;
887 u64 wb_max_thresh;
888 unsigned long numerator, denominator;
889 unsigned long wb_min_ratio, wb_max_ratio;
890
891 /*
892 * Calculate this wb's share of the thresh ratio.
893 */
894 fprop_fraction_percpu(&dom->completions, dtc->wb_completions,
895 &numerator, &denominator);
896
897 wb_thresh = (thresh * (100 * BDI_RATIO_SCALE - bdi_min_ratio)) / (100 * BDI_RATIO_SCALE);
898 wb_thresh *= numerator;
899 wb_thresh = div64_ul(wb_thresh, denominator);
900
901 wb_min_max_ratio(wb, &wb_min_ratio, &wb_max_ratio);
902
903 wb_thresh += (thresh * wb_min_ratio) / (100 * BDI_RATIO_SCALE);
904
905 /*
906 * It's very possible that wb_thresh is close to 0 not because the
907 * device is slow, but that it has remained inactive for long time.
908 * Honour such devices a reasonable good (hopefully IO efficient)
909 * threshold, so that the occasional writes won't be blocked and active
910 * writes can rampup the threshold quickly.
911 */
912 if (thresh > dtc->dirty) {
913 if (unlikely(wb->bdi->capabilities & BDI_CAP_STRICTLIMIT))
914 wb_thresh = max(wb_thresh, (thresh - dtc->dirty) / 100);
915 else
916 wb_thresh = max(wb_thresh, (thresh - dtc->dirty) / 8);
917 }
918
919 wb_max_thresh = thresh * wb_max_ratio / (100 * BDI_RATIO_SCALE);
920 if (wb_thresh > wb_max_thresh)
921 wb_thresh = wb_max_thresh;
922
923 return wb_thresh;
924 }
925
wb_calc_thresh(struct bdi_writeback * wb,unsigned long thresh)926 unsigned long wb_calc_thresh(struct bdi_writeback *wb, unsigned long thresh)
927 {
928 struct dirty_throttle_control gdtc = { GDTC_INIT(wb) };
929
930 domain_dirty_avail(&gdtc, true);
931 return __wb_calc_thresh(&gdtc, thresh);
932 }
933
cgwb_calc_thresh(struct bdi_writeback * wb)934 unsigned long cgwb_calc_thresh(struct bdi_writeback *wb)
935 {
936 struct dirty_throttle_control gdtc = { GDTC_INIT_NO_WB };
937 struct dirty_throttle_control mdtc = { MDTC_INIT(wb, &gdtc) };
938
939 domain_dirty_avail(&gdtc, true);
940 domain_dirty_avail(&mdtc, true);
941 domain_dirty_limits(&mdtc);
942
943 return __wb_calc_thresh(&mdtc, mdtc.thresh);
944 }
945
946 /*
947 * setpoint - dirty 3
948 * f(dirty) := 1.0 + (----------------)
949 * limit - setpoint
950 *
951 * it's a 3rd order polynomial that subjects to
952 *
953 * (1) f(freerun) = 2.0 => rampup dirty_ratelimit reasonably fast
954 * (2) f(setpoint) = 1.0 => the balance point
955 * (3) f(limit) = 0 => the hard limit
956 * (4) df/dx <= 0 => negative feedback control
957 * (5) the closer to setpoint, the smaller |df/dx| (and the reverse)
958 * => fast response on large errors; small oscillation near setpoint
959 */
pos_ratio_polynom(unsigned long setpoint,unsigned long dirty,unsigned long limit)960 static long long pos_ratio_polynom(unsigned long setpoint,
961 unsigned long dirty,
962 unsigned long limit)
963 {
964 long long pos_ratio;
965 long x;
966
967 x = div64_s64(((s64)setpoint - (s64)dirty) << RATELIMIT_CALC_SHIFT,
968 (limit - setpoint) | 1);
969 pos_ratio = x;
970 pos_ratio = pos_ratio * x >> RATELIMIT_CALC_SHIFT;
971 pos_ratio = pos_ratio * x >> RATELIMIT_CALC_SHIFT;
972 pos_ratio += 1 << RATELIMIT_CALC_SHIFT;
973
974 return clamp(pos_ratio, 0LL, 2LL << RATELIMIT_CALC_SHIFT);
975 }
976
977 /*
978 * Dirty position control.
979 *
980 * (o) global/bdi setpoints
981 *
982 * We want the dirty pages be balanced around the global/wb setpoints.
983 * When the number of dirty pages is higher/lower than the setpoint, the
984 * dirty position control ratio (and hence task dirty ratelimit) will be
985 * decreased/increased to bring the dirty pages back to the setpoint.
986 *
987 * pos_ratio = 1 << RATELIMIT_CALC_SHIFT
988 *
989 * if (dirty < setpoint) scale up pos_ratio
990 * if (dirty > setpoint) scale down pos_ratio
991 *
992 * if (wb_dirty < wb_setpoint) scale up pos_ratio
993 * if (wb_dirty > wb_setpoint) scale down pos_ratio
994 *
995 * task_ratelimit = dirty_ratelimit * pos_ratio >> RATELIMIT_CALC_SHIFT
996 *
997 * (o) global control line
998 *
999 * ^ pos_ratio
1000 * |
1001 * | |<===== global dirty control scope ======>|
1002 * 2.0 * * * * * * *
1003 * | .*
1004 * | . *
1005 * | . *
1006 * | . *
1007 * | . *
1008 * | . *
1009 * 1.0 ................................*
1010 * | . . *
1011 * | . . *
1012 * | . . *
1013 * | . . *
1014 * | . . *
1015 * 0 +------------.------------------.----------------------*------------->
1016 * freerun^ setpoint^ limit^ dirty pages
1017 *
1018 * (o) wb control line
1019 *
1020 * ^ pos_ratio
1021 * |
1022 * | *
1023 * | *
1024 * | *
1025 * | *
1026 * | * |<=========== span ============>|
1027 * 1.0 .......................*
1028 * | . *
1029 * | . *
1030 * | . *
1031 * | . *
1032 * | . *
1033 * | . *
1034 * | . *
1035 * | . *
1036 * | . *
1037 * | . *
1038 * | . *
1039 * 1/4 ...............................................* * * * * * * * * * * *
1040 * | . .
1041 * | . .
1042 * | . .
1043 * 0 +----------------------.-------------------------------.------------->
1044 * wb_setpoint^ x_intercept^
1045 *
1046 * The wb control line won't drop below pos_ratio=1/4, so that wb_dirty can
1047 * be smoothly throttled down to normal if it starts high in situations like
1048 * - start writing to a slow SD card and a fast disk at the same time. The SD
1049 * card's wb_dirty may rush to many times higher than wb_setpoint.
1050 * - the wb dirty thresh drops quickly due to change of JBOD workload
1051 */
wb_position_ratio(struct dirty_throttle_control * dtc)1052 static void wb_position_ratio(struct dirty_throttle_control *dtc)
1053 {
1054 struct bdi_writeback *wb = dtc->wb;
1055 unsigned long write_bw = READ_ONCE(wb->avg_write_bandwidth);
1056 unsigned long freerun = dirty_freerun_ceiling(dtc->thresh, dtc->bg_thresh);
1057 unsigned long limit = dtc->limit = hard_dirty_limit(dtc_dom(dtc), dtc->thresh);
1058 unsigned long wb_thresh = dtc->wb_thresh;
1059 unsigned long x_intercept;
1060 unsigned long setpoint; /* dirty pages' target balance point */
1061 unsigned long wb_setpoint;
1062 unsigned long span;
1063 long long pos_ratio; /* for scaling up/down the rate limit */
1064 long x;
1065
1066 dtc->pos_ratio = 0;
1067
1068 if (unlikely(dtc->dirty >= limit))
1069 return;
1070
1071 /*
1072 * global setpoint
1073 *
1074 * See comment for pos_ratio_polynom().
1075 */
1076 setpoint = (freerun + limit) / 2;
1077 pos_ratio = pos_ratio_polynom(setpoint, dtc->dirty, limit);
1078
1079 /*
1080 * The strictlimit feature is a tool preventing mistrusted filesystems
1081 * from growing a large number of dirty pages before throttling. For
1082 * such filesystems balance_dirty_pages always checks wb counters
1083 * against wb limits. Even if global "nr_dirty" is under "freerun".
1084 * This is especially important for fuse which sets bdi->max_ratio to
1085 * 1% by default.
1086 *
1087 * Here, in wb_position_ratio(), we calculate pos_ratio based on
1088 * two values: wb_dirty and wb_thresh. Let's consider an example:
1089 * total amount of RAM is 16GB, bdi->max_ratio is equal to 1%, global
1090 * limits are set by default to 10% and 20% (background and throttle).
1091 * Then wb_thresh is 1% of 20% of 16GB. This amounts to ~8K pages.
1092 * wb_calc_thresh(wb, bg_thresh) is about ~4K pages. wb_setpoint is
1093 * about ~6K pages (as the average of background and throttle wb
1094 * limits). The 3rd order polynomial will provide positive feedback if
1095 * wb_dirty is under wb_setpoint and vice versa.
1096 *
1097 * Note, that we cannot use global counters in these calculations
1098 * because we want to throttle process writing to a strictlimit wb
1099 * much earlier than global "freerun" is reached (~23MB vs. ~2.3GB
1100 * in the example above).
1101 */
1102 if (unlikely(wb->bdi->capabilities & BDI_CAP_STRICTLIMIT)) {
1103 long long wb_pos_ratio;
1104
1105 if (dtc->wb_dirty >= wb_thresh)
1106 return;
1107
1108 wb_setpoint = dirty_freerun_ceiling(wb_thresh,
1109 dtc->wb_bg_thresh);
1110
1111 if (wb_setpoint == 0 || wb_setpoint == wb_thresh)
1112 return;
1113
1114 wb_pos_ratio = pos_ratio_polynom(wb_setpoint, dtc->wb_dirty,
1115 wb_thresh);
1116
1117 /*
1118 * Typically, for strictlimit case, wb_setpoint << setpoint
1119 * and pos_ratio >> wb_pos_ratio. In the other words global
1120 * state ("dirty") is not limiting factor and we have to
1121 * make decision based on wb counters. But there is an
1122 * important case when global pos_ratio should get precedence:
1123 * global limits are exceeded (e.g. due to activities on other
1124 * wb's) while given strictlimit wb is below limit.
1125 *
1126 * "pos_ratio * wb_pos_ratio" would work for the case above,
1127 * but it would look too non-natural for the case of all
1128 * activity in the system coming from a single strictlimit wb
1129 * with bdi->max_ratio == 100%.
1130 *
1131 * Note that min() below somewhat changes the dynamics of the
1132 * control system. Normally, pos_ratio value can be well over 3
1133 * (when globally we are at freerun and wb is well below wb
1134 * setpoint). Now the maximum pos_ratio in the same situation
1135 * is 2. We might want to tweak this if we observe the control
1136 * system is too slow to adapt.
1137 */
1138 dtc->pos_ratio = min(pos_ratio, wb_pos_ratio);
1139 return;
1140 }
1141
1142 /*
1143 * We have computed basic pos_ratio above based on global situation. If
1144 * the wb is over/under its share of dirty pages, we want to scale
1145 * pos_ratio further down/up. That is done by the following mechanism.
1146 */
1147
1148 /*
1149 * wb setpoint
1150 *
1151 * f(wb_dirty) := 1.0 + k * (wb_dirty - wb_setpoint)
1152 *
1153 * x_intercept - wb_dirty
1154 * := --------------------------
1155 * x_intercept - wb_setpoint
1156 *
1157 * The main wb control line is a linear function that subjects to
1158 *
1159 * (1) f(wb_setpoint) = 1.0
1160 * (2) k = - 1 / (8 * write_bw) (in single wb case)
1161 * or equally: x_intercept = wb_setpoint + 8 * write_bw
1162 *
1163 * For single wb case, the dirty pages are observed to fluctuate
1164 * regularly within range
1165 * [wb_setpoint - write_bw/2, wb_setpoint + write_bw/2]
1166 * for various filesystems, where (2) can yield in a reasonable 12.5%
1167 * fluctuation range for pos_ratio.
1168 *
1169 * For JBOD case, wb_thresh (not wb_dirty!) could fluctuate up to its
1170 * own size, so move the slope over accordingly and choose a slope that
1171 * yields 100% pos_ratio fluctuation on suddenly doubled wb_thresh.
1172 */
1173 if (unlikely(wb_thresh > dtc->thresh))
1174 wb_thresh = dtc->thresh;
1175 /*
1176 * scale global setpoint to wb's:
1177 * wb_setpoint = setpoint * wb_thresh / thresh
1178 */
1179 x = div_u64((u64)wb_thresh << 16, dtc->thresh | 1);
1180 wb_setpoint = setpoint * (u64)x >> 16;
1181 /*
1182 * Use span=(8*write_bw) in single wb case as indicated by
1183 * (thresh - wb_thresh ~= 0) and transit to wb_thresh in JBOD case.
1184 *
1185 * wb_thresh thresh - wb_thresh
1186 * span = --------- * (8 * write_bw) + ------------------ * wb_thresh
1187 * thresh thresh
1188 */
1189 span = (dtc->thresh - wb_thresh + 8 * write_bw) * (u64)x >> 16;
1190 x_intercept = wb_setpoint + span;
1191
1192 if (dtc->wb_dirty < x_intercept - span / 4) {
1193 pos_ratio = div64_u64(pos_ratio * (x_intercept - dtc->wb_dirty),
1194 (x_intercept - wb_setpoint) | 1);
1195 } else
1196 pos_ratio /= 4;
1197
1198 /*
1199 * wb reserve area, safeguard against dirty pool underrun and disk idle
1200 * It may push the desired control point of global dirty pages higher
1201 * than setpoint.
1202 */
1203 x_intercept = wb_thresh / 2;
1204 if (dtc->wb_dirty < x_intercept) {
1205 if (dtc->wb_dirty > x_intercept / 8)
1206 pos_ratio = div_u64(pos_ratio * x_intercept,
1207 dtc->wb_dirty);
1208 else
1209 pos_ratio *= 8;
1210 }
1211
1212 dtc->pos_ratio = pos_ratio;
1213 }
1214
wb_update_write_bandwidth(struct bdi_writeback * wb,unsigned long elapsed,unsigned long written)1215 static void wb_update_write_bandwidth(struct bdi_writeback *wb,
1216 unsigned long elapsed,
1217 unsigned long written)
1218 {
1219 const unsigned long period = roundup_pow_of_two(3 * HZ);
1220 unsigned long avg = wb->avg_write_bandwidth;
1221 unsigned long old = wb->write_bandwidth;
1222 u64 bw;
1223
1224 /*
1225 * bw = written * HZ / elapsed
1226 *
1227 * bw * elapsed + write_bandwidth * (period - elapsed)
1228 * write_bandwidth = ---------------------------------------------------
1229 * period
1230 *
1231 * @written may have decreased due to folio_redirty_for_writepage().
1232 * Avoid underflowing @bw calculation.
1233 */
1234 bw = written - min(written, wb->written_stamp);
1235 bw *= HZ;
1236 if (unlikely(elapsed > period)) {
1237 bw = div64_ul(bw, elapsed);
1238 avg = bw;
1239 goto out;
1240 }
1241 bw += (u64)wb->write_bandwidth * (period - elapsed);
1242 bw >>= ilog2(period);
1243
1244 /*
1245 * one more level of smoothing, for filtering out sudden spikes
1246 */
1247 if (avg > old && old >= (unsigned long)bw)
1248 avg -= (avg - old) >> 3;
1249
1250 if (avg < old && old <= (unsigned long)bw)
1251 avg += (old - avg) >> 3;
1252
1253 out:
1254 /* keep avg > 0 to guarantee that tot > 0 if there are dirty wbs */
1255 avg = max(avg, 1LU);
1256 if (wb_has_dirty_io(wb)) {
1257 long delta = avg - wb->avg_write_bandwidth;
1258 WARN_ON_ONCE(atomic_long_add_return(delta,
1259 &wb->bdi->tot_write_bandwidth) <= 0);
1260 }
1261 wb->write_bandwidth = bw;
1262 WRITE_ONCE(wb->avg_write_bandwidth, avg);
1263 }
1264
update_dirty_limit(struct dirty_throttle_control * dtc)1265 static void update_dirty_limit(struct dirty_throttle_control *dtc)
1266 {
1267 struct wb_domain *dom = dtc_dom(dtc);
1268 unsigned long thresh = dtc->thresh;
1269 unsigned long limit = dom->dirty_limit;
1270
1271 /*
1272 * Follow up in one step.
1273 */
1274 if (limit < thresh) {
1275 limit = thresh;
1276 goto update;
1277 }
1278
1279 /*
1280 * Follow down slowly. Use the higher one as the target, because thresh
1281 * may drop below dirty. This is exactly the reason to introduce
1282 * dom->dirty_limit which is guaranteed to lie above the dirty pages.
1283 */
1284 thresh = max(thresh, dtc->dirty);
1285 if (limit > thresh) {
1286 limit -= (limit - thresh) >> 5;
1287 goto update;
1288 }
1289 return;
1290 update:
1291 dom->dirty_limit = limit;
1292 }
1293
domain_update_dirty_limit(struct dirty_throttle_control * dtc,unsigned long now)1294 static void domain_update_dirty_limit(struct dirty_throttle_control *dtc,
1295 unsigned long now)
1296 {
1297 struct wb_domain *dom = dtc_dom(dtc);
1298
1299 /*
1300 * check locklessly first to optimize away locking for the most time
1301 */
1302 if (time_before(now, dom->dirty_limit_tstamp + BANDWIDTH_INTERVAL))
1303 return;
1304
1305 spin_lock(&dom->lock);
1306 if (time_after_eq(now, dom->dirty_limit_tstamp + BANDWIDTH_INTERVAL)) {
1307 update_dirty_limit(dtc);
1308 dom->dirty_limit_tstamp = now;
1309 }
1310 spin_unlock(&dom->lock);
1311 }
1312
1313 /*
1314 * Maintain wb->dirty_ratelimit, the base dirty throttle rate.
1315 *
1316 * Normal wb tasks will be curbed at or below it in long term.
1317 * Obviously it should be around (write_bw / N) when there are N dd tasks.
1318 */
wb_update_dirty_ratelimit(struct dirty_throttle_control * dtc,unsigned long dirtied,unsigned long elapsed)1319 static void wb_update_dirty_ratelimit(struct dirty_throttle_control *dtc,
1320 unsigned long dirtied,
1321 unsigned long elapsed)
1322 {
1323 struct bdi_writeback *wb = dtc->wb;
1324 unsigned long dirty = dtc->dirty;
1325 unsigned long freerun = dirty_freerun_ceiling(dtc->thresh, dtc->bg_thresh);
1326 unsigned long limit = hard_dirty_limit(dtc_dom(dtc), dtc->thresh);
1327 unsigned long setpoint = (freerun + limit) / 2;
1328 unsigned long write_bw = wb->avg_write_bandwidth;
1329 unsigned long dirty_ratelimit = wb->dirty_ratelimit;
1330 unsigned long dirty_rate;
1331 unsigned long task_ratelimit;
1332 unsigned long balanced_dirty_ratelimit;
1333 unsigned long step;
1334 unsigned long x;
1335 unsigned long shift;
1336
1337 /*
1338 * The dirty rate will match the writeout rate in long term, except
1339 * when dirty pages are truncated by userspace or re-dirtied by FS.
1340 */
1341 dirty_rate = (dirtied - wb->dirtied_stamp) * HZ / elapsed;
1342
1343 /*
1344 * task_ratelimit reflects each dd's dirty rate for the past 200ms.
1345 */
1346 task_ratelimit = (u64)dirty_ratelimit *
1347 dtc->pos_ratio >> RATELIMIT_CALC_SHIFT;
1348 task_ratelimit++; /* it helps rampup dirty_ratelimit from tiny values */
1349
1350 /*
1351 * A linear estimation of the "balanced" throttle rate. The theory is,
1352 * if there are N dd tasks, each throttled at task_ratelimit, the wb's
1353 * dirty_rate will be measured to be (N * task_ratelimit). So the below
1354 * formula will yield the balanced rate limit (write_bw / N).
1355 *
1356 * Note that the expanded form is not a pure rate feedback:
1357 * rate_(i+1) = rate_(i) * (write_bw / dirty_rate) (1)
1358 * but also takes pos_ratio into account:
1359 * rate_(i+1) = rate_(i) * (write_bw / dirty_rate) * pos_ratio (2)
1360 *
1361 * (1) is not realistic because pos_ratio also takes part in balancing
1362 * the dirty rate. Consider the state
1363 * pos_ratio = 0.5 (3)
1364 * rate = 2 * (write_bw / N) (4)
1365 * If (1) is used, it will stuck in that state! Because each dd will
1366 * be throttled at
1367 * task_ratelimit = pos_ratio * rate = (write_bw / N) (5)
1368 * yielding
1369 * dirty_rate = N * task_ratelimit = write_bw (6)
1370 * put (6) into (1) we get
1371 * rate_(i+1) = rate_(i) (7)
1372 *
1373 * So we end up using (2) to always keep
1374 * rate_(i+1) ~= (write_bw / N) (8)
1375 * regardless of the value of pos_ratio. As long as (8) is satisfied,
1376 * pos_ratio is able to drive itself to 1.0, which is not only where
1377 * the dirty count meet the setpoint, but also where the slope of
1378 * pos_ratio is most flat and hence task_ratelimit is least fluctuated.
1379 */
1380 balanced_dirty_ratelimit = div_u64((u64)task_ratelimit * write_bw,
1381 dirty_rate | 1);
1382 /*
1383 * balanced_dirty_ratelimit ~= (write_bw / N) <= write_bw
1384 */
1385 if (unlikely(balanced_dirty_ratelimit > write_bw))
1386 balanced_dirty_ratelimit = write_bw;
1387
1388 /*
1389 * We could safely do this and return immediately:
1390 *
1391 * wb->dirty_ratelimit = balanced_dirty_ratelimit;
1392 *
1393 * However to get a more stable dirty_ratelimit, the below elaborated
1394 * code makes use of task_ratelimit to filter out singular points and
1395 * limit the step size.
1396 *
1397 * The below code essentially only uses the relative value of
1398 *
1399 * task_ratelimit - dirty_ratelimit
1400 * = (pos_ratio - 1) * dirty_ratelimit
1401 *
1402 * which reflects the direction and size of dirty position error.
1403 */
1404
1405 /*
1406 * dirty_ratelimit will follow balanced_dirty_ratelimit iff
1407 * task_ratelimit is on the same side of dirty_ratelimit, too.
1408 * For example, when
1409 * - dirty_ratelimit > balanced_dirty_ratelimit
1410 * - dirty_ratelimit > task_ratelimit (dirty pages are above setpoint)
1411 * lowering dirty_ratelimit will help meet both the position and rate
1412 * control targets. Otherwise, don't update dirty_ratelimit if it will
1413 * only help meet the rate target. After all, what the users ultimately
1414 * feel and care are stable dirty rate and small position error.
1415 *
1416 * |task_ratelimit - dirty_ratelimit| is used to limit the step size
1417 * and filter out the singular points of balanced_dirty_ratelimit. Which
1418 * keeps jumping around randomly and can even leap far away at times
1419 * due to the small 200ms estimation period of dirty_rate (we want to
1420 * keep that period small to reduce time lags).
1421 */
1422 step = 0;
1423
1424 /*
1425 * For strictlimit case, calculations above were based on wb counters
1426 * and limits (starting from pos_ratio = wb_position_ratio() and up to
1427 * balanced_dirty_ratelimit = task_ratelimit * write_bw / dirty_rate).
1428 * Hence, to calculate "step" properly, we have to use wb_dirty as
1429 * "dirty" and wb_setpoint as "setpoint".
1430 */
1431 if (unlikely(wb->bdi->capabilities & BDI_CAP_STRICTLIMIT)) {
1432 dirty = dtc->wb_dirty;
1433 setpoint = (dtc->wb_thresh + dtc->wb_bg_thresh) / 2;
1434 }
1435
1436 if (dirty < setpoint) {
1437 x = min3(wb->balanced_dirty_ratelimit,
1438 balanced_dirty_ratelimit, task_ratelimit);
1439 if (dirty_ratelimit < x)
1440 step = x - dirty_ratelimit;
1441 } else {
1442 x = max3(wb->balanced_dirty_ratelimit,
1443 balanced_dirty_ratelimit, task_ratelimit);
1444 if (dirty_ratelimit > x)
1445 step = dirty_ratelimit - x;
1446 }
1447
1448 /*
1449 * Don't pursue 100% rate matching. It's impossible since the balanced
1450 * rate itself is constantly fluctuating. So decrease the track speed
1451 * when it gets close to the target. Helps eliminate pointless tremors.
1452 */
1453 shift = dirty_ratelimit / (2 * step + 1);
1454 if (shift < BITS_PER_LONG)
1455 step = DIV_ROUND_UP(step >> shift, 8);
1456 else
1457 step = 0;
1458
1459 if (dirty_ratelimit < balanced_dirty_ratelimit)
1460 dirty_ratelimit += step;
1461 else
1462 dirty_ratelimit -= step;
1463
1464 WRITE_ONCE(wb->dirty_ratelimit, max(dirty_ratelimit, 1UL));
1465 wb->balanced_dirty_ratelimit = balanced_dirty_ratelimit;
1466
1467 trace_bdi_dirty_ratelimit(wb, dirty_rate, task_ratelimit);
1468 }
1469
__wb_update_bandwidth(struct dirty_throttle_control * gdtc,struct dirty_throttle_control * mdtc,bool update_ratelimit)1470 static void __wb_update_bandwidth(struct dirty_throttle_control *gdtc,
1471 struct dirty_throttle_control *mdtc,
1472 bool update_ratelimit)
1473 {
1474 struct bdi_writeback *wb = gdtc->wb;
1475 unsigned long now = jiffies;
1476 unsigned long elapsed;
1477 unsigned long dirtied;
1478 unsigned long written;
1479
1480 spin_lock(&wb->list_lock);
1481
1482 /*
1483 * Lockless checks for elapsed time are racy and delayed update after
1484 * IO completion doesn't do it at all (to make sure written pages are
1485 * accounted reasonably quickly). Make sure elapsed >= 1 to avoid
1486 * division errors.
1487 */
1488 elapsed = max(now - wb->bw_time_stamp, 1UL);
1489 dirtied = percpu_counter_read(&wb->stat[WB_DIRTIED]);
1490 written = percpu_counter_read(&wb->stat[WB_WRITTEN]);
1491
1492 if (update_ratelimit) {
1493 domain_update_dirty_limit(gdtc, now);
1494 wb_update_dirty_ratelimit(gdtc, dirtied, elapsed);
1495
1496 /*
1497 * @mdtc is always NULL if !CGROUP_WRITEBACK but the
1498 * compiler has no way to figure that out. Help it.
1499 */
1500 if (IS_ENABLED(CONFIG_CGROUP_WRITEBACK) && mdtc) {
1501 domain_update_dirty_limit(mdtc, now);
1502 wb_update_dirty_ratelimit(mdtc, dirtied, elapsed);
1503 }
1504 }
1505 wb_update_write_bandwidth(wb, elapsed, written);
1506
1507 wb->dirtied_stamp = dirtied;
1508 wb->written_stamp = written;
1509 WRITE_ONCE(wb->bw_time_stamp, now);
1510 spin_unlock(&wb->list_lock);
1511 }
1512
wb_update_bandwidth(struct bdi_writeback * wb)1513 void wb_update_bandwidth(struct bdi_writeback *wb)
1514 {
1515 struct dirty_throttle_control gdtc = { GDTC_INIT(wb) };
1516
1517 __wb_update_bandwidth(&gdtc, NULL, false);
1518 }
1519
1520 /* Interval after which we consider wb idle and don't estimate bandwidth */
1521 #define WB_BANDWIDTH_IDLE_JIF (HZ)
1522
wb_bandwidth_estimate_start(struct bdi_writeback * wb)1523 static void wb_bandwidth_estimate_start(struct bdi_writeback *wb)
1524 {
1525 unsigned long now = jiffies;
1526 unsigned long elapsed = now - READ_ONCE(wb->bw_time_stamp);
1527
1528 if (elapsed > WB_BANDWIDTH_IDLE_JIF &&
1529 !atomic_read(&wb->writeback_inodes)) {
1530 spin_lock(&wb->list_lock);
1531 wb->dirtied_stamp = wb_stat(wb, WB_DIRTIED);
1532 wb->written_stamp = wb_stat(wb, WB_WRITTEN);
1533 WRITE_ONCE(wb->bw_time_stamp, now);
1534 spin_unlock(&wb->list_lock);
1535 }
1536 }
1537
1538 /*
1539 * After a task dirtied this many pages, balance_dirty_pages_ratelimited()
1540 * will look to see if it needs to start dirty throttling.
1541 *
1542 * If dirty_poll_interval is too low, big NUMA machines will call the expensive
1543 * global_zone_page_state() too often. So scale it near-sqrt to the safety margin
1544 * (the number of pages we may dirty without exceeding the dirty limits).
1545 */
dirty_poll_interval(unsigned long dirty,unsigned long thresh)1546 static unsigned long dirty_poll_interval(unsigned long dirty,
1547 unsigned long thresh)
1548 {
1549 if (thresh > dirty)
1550 return 1UL << (ilog2(thresh - dirty) >> 1);
1551
1552 return 1;
1553 }
1554
wb_max_pause(struct bdi_writeback * wb,unsigned long wb_dirty)1555 static unsigned long wb_max_pause(struct bdi_writeback *wb,
1556 unsigned long wb_dirty)
1557 {
1558 unsigned long bw = READ_ONCE(wb->avg_write_bandwidth);
1559 unsigned long t;
1560
1561 /*
1562 * Limit pause time for small memory systems. If sleeping for too long
1563 * time, a small pool of dirty/writeback pages may go empty and disk go
1564 * idle.
1565 *
1566 * 8 serves as the safety ratio.
1567 */
1568 t = wb_dirty / (1 + bw / roundup_pow_of_two(1 + HZ / 8));
1569 t++;
1570
1571 return min_t(unsigned long, t, MAX_PAUSE);
1572 }
1573
wb_min_pause(struct bdi_writeback * wb,long max_pause,unsigned long task_ratelimit,unsigned long dirty_ratelimit,int * nr_dirtied_pause)1574 static long wb_min_pause(struct bdi_writeback *wb,
1575 long max_pause,
1576 unsigned long task_ratelimit,
1577 unsigned long dirty_ratelimit,
1578 int *nr_dirtied_pause)
1579 {
1580 long hi = ilog2(READ_ONCE(wb->avg_write_bandwidth));
1581 long lo = ilog2(READ_ONCE(wb->dirty_ratelimit));
1582 long t; /* target pause */
1583 long pause; /* estimated next pause */
1584 int pages; /* target nr_dirtied_pause */
1585
1586 /* target for 10ms pause on 1-dd case */
1587 t = max(1, HZ / 100);
1588
1589 /*
1590 * Scale up pause time for concurrent dirtiers in order to reduce CPU
1591 * overheads.
1592 *
1593 * (N * 10ms) on 2^N concurrent tasks.
1594 */
1595 if (hi > lo)
1596 t += (hi - lo) * (10 * HZ) / 1024;
1597
1598 /*
1599 * This is a bit convoluted. We try to base the next nr_dirtied_pause
1600 * on the much more stable dirty_ratelimit. However the next pause time
1601 * will be computed based on task_ratelimit and the two rate limits may
1602 * depart considerably at some time. Especially if task_ratelimit goes
1603 * below dirty_ratelimit/2 and the target pause is max_pause, the next
1604 * pause time will be max_pause*2 _trimmed down_ to max_pause. As a
1605 * result task_ratelimit won't be executed faithfully, which could
1606 * eventually bring down dirty_ratelimit.
1607 *
1608 * We apply two rules to fix it up:
1609 * 1) try to estimate the next pause time and if necessary, use a lower
1610 * nr_dirtied_pause so as not to exceed max_pause. When this happens,
1611 * nr_dirtied_pause will be "dancing" with task_ratelimit.
1612 * 2) limit the target pause time to max_pause/2, so that the normal
1613 * small fluctuations of task_ratelimit won't trigger rule (1) and
1614 * nr_dirtied_pause will remain as stable as dirty_ratelimit.
1615 */
1616 t = min(t, 1 + max_pause / 2);
1617 pages = dirty_ratelimit * t / roundup_pow_of_two(HZ);
1618
1619 /*
1620 * Tiny nr_dirtied_pause is found to hurt I/O performance in the test
1621 * case fio-mmap-randwrite-64k, which does 16*{sync read, async write}.
1622 * When the 16 consecutive reads are often interrupted by some dirty
1623 * throttling pause during the async writes, cfq will go into idles
1624 * (deadline is fine). So push nr_dirtied_pause as high as possible
1625 * until reaches DIRTY_POLL_THRESH=32 pages.
1626 */
1627 if (pages < DIRTY_POLL_THRESH) {
1628 t = max_pause;
1629 pages = dirty_ratelimit * t / roundup_pow_of_two(HZ);
1630 if (pages > DIRTY_POLL_THRESH) {
1631 pages = DIRTY_POLL_THRESH;
1632 t = HZ * DIRTY_POLL_THRESH / dirty_ratelimit;
1633 }
1634 }
1635
1636 pause = HZ * pages / (task_ratelimit + 1);
1637 if (pause > max_pause) {
1638 t = max_pause;
1639 pages = task_ratelimit * t / roundup_pow_of_two(HZ);
1640 }
1641
1642 *nr_dirtied_pause = pages;
1643 /*
1644 * The minimal pause time will normally be half the target pause time.
1645 */
1646 return pages >= DIRTY_POLL_THRESH ? 1 + t / 2 : t;
1647 }
1648
wb_dirty_limits(struct dirty_throttle_control * dtc)1649 static inline void wb_dirty_limits(struct dirty_throttle_control *dtc)
1650 {
1651 struct bdi_writeback *wb = dtc->wb;
1652 unsigned long wb_reclaimable;
1653
1654 /*
1655 * wb_thresh is not treated as some limiting factor as
1656 * dirty_thresh, due to reasons
1657 * - in JBOD setup, wb_thresh can fluctuate a lot
1658 * - in a system with HDD and USB key, the USB key may somehow
1659 * go into state (wb_dirty >> wb_thresh) either because
1660 * wb_dirty starts high, or because wb_thresh drops low.
1661 * In this case we don't want to hard throttle the USB key
1662 * dirtiers for 100 seconds until wb_dirty drops under
1663 * wb_thresh. Instead the auxiliary wb control line in
1664 * wb_position_ratio() will let the dirtier task progress
1665 * at some rate <= (write_bw / 2) for bringing down wb_dirty.
1666 */
1667 dtc->wb_thresh = __wb_calc_thresh(dtc, dtc->thresh);
1668 dtc->wb_bg_thresh = dtc->thresh ?
1669 div_u64((u64)dtc->wb_thresh * dtc->bg_thresh, dtc->thresh) : 0;
1670
1671 /*
1672 * In order to avoid the stacked BDI deadlock we need
1673 * to ensure we accurately count the 'dirty' pages when
1674 * the threshold is low.
1675 *
1676 * Otherwise it would be possible to get thresh+n pages
1677 * reported dirty, even though there are thresh-m pages
1678 * actually dirty; with m+n sitting in the percpu
1679 * deltas.
1680 */
1681 if (dtc->wb_thresh < 2 * wb_stat_error()) {
1682 wb_reclaimable = wb_stat_sum(wb, WB_RECLAIMABLE);
1683 dtc->wb_dirty = wb_reclaimable + wb_stat_sum(wb, WB_WRITEBACK);
1684 } else {
1685 wb_reclaimable = wb_stat(wb, WB_RECLAIMABLE);
1686 dtc->wb_dirty = wb_reclaimable + wb_stat(wb, WB_WRITEBACK);
1687 }
1688 }
1689
domain_poll_intv(struct dirty_throttle_control * dtc,bool strictlimit)1690 static unsigned long domain_poll_intv(struct dirty_throttle_control *dtc,
1691 bool strictlimit)
1692 {
1693 unsigned long dirty, thresh;
1694
1695 if (strictlimit) {
1696 dirty = dtc->wb_dirty;
1697 thresh = dtc->wb_thresh;
1698 } else {
1699 dirty = dtc->dirty;
1700 thresh = dtc->thresh;
1701 }
1702
1703 return dirty_poll_interval(dirty, thresh);
1704 }
1705
1706 /*
1707 * Throttle it only when the background writeback cannot catch-up. This avoids
1708 * (excessively) small writeouts when the wb limits are ramping up in case of
1709 * !strictlimit.
1710 *
1711 * In strictlimit case make decision based on the wb counters and limits. Small
1712 * writeouts when the wb limits are ramping up are the price we consciously pay
1713 * for strictlimit-ing.
1714 */
domain_dirty_freerun(struct dirty_throttle_control * dtc,bool strictlimit)1715 static void domain_dirty_freerun(struct dirty_throttle_control *dtc,
1716 bool strictlimit)
1717 {
1718 unsigned long dirty, thresh, bg_thresh;
1719
1720 if (unlikely(strictlimit)) {
1721 wb_dirty_limits(dtc);
1722 dirty = dtc->wb_dirty;
1723 thresh = dtc->wb_thresh;
1724 bg_thresh = dtc->wb_bg_thresh;
1725 } else {
1726 dirty = dtc->dirty;
1727 thresh = dtc->thresh;
1728 bg_thresh = dtc->bg_thresh;
1729 }
1730 dtc->freerun = dirty <= dirty_freerun_ceiling(thresh, bg_thresh);
1731 }
1732
balance_domain_limits(struct dirty_throttle_control * dtc,bool strictlimit)1733 static void balance_domain_limits(struct dirty_throttle_control *dtc,
1734 bool strictlimit)
1735 {
1736 domain_dirty_avail(dtc, true);
1737 domain_dirty_limits(dtc);
1738 domain_dirty_freerun(dtc, strictlimit);
1739 }
1740
wb_dirty_freerun(struct dirty_throttle_control * dtc,bool strictlimit)1741 static void wb_dirty_freerun(struct dirty_throttle_control *dtc,
1742 bool strictlimit)
1743 {
1744 dtc->freerun = false;
1745
1746 /* was already handled in domain_dirty_freerun */
1747 if (strictlimit)
1748 return;
1749
1750 wb_dirty_limits(dtc);
1751 /*
1752 * LOCAL_THROTTLE tasks must not be throttled when below the per-wb
1753 * freerun ceiling.
1754 */
1755 if (!(current->flags & PF_LOCAL_THROTTLE))
1756 return;
1757
1758 dtc->freerun = dtc->wb_dirty <
1759 dirty_freerun_ceiling(dtc->wb_thresh, dtc->wb_bg_thresh);
1760 }
1761
wb_dirty_exceeded(struct dirty_throttle_control * dtc,bool strictlimit)1762 static inline void wb_dirty_exceeded(struct dirty_throttle_control *dtc,
1763 bool strictlimit)
1764 {
1765 dtc->dirty_exceeded = (dtc->wb_dirty > dtc->wb_thresh) &&
1766 ((dtc->dirty > dtc->thresh) || strictlimit);
1767 }
1768
1769 /*
1770 * The limits fields dirty_exceeded and pos_ratio won't be updated if wb is
1771 * in freerun state. Please don't use these invalid fields in freerun case.
1772 */
balance_wb_limits(struct dirty_throttle_control * dtc,bool strictlimit)1773 static void balance_wb_limits(struct dirty_throttle_control *dtc,
1774 bool strictlimit)
1775 {
1776 wb_dirty_freerun(dtc, strictlimit);
1777 if (dtc->freerun)
1778 return;
1779
1780 wb_dirty_exceeded(dtc, strictlimit);
1781 wb_position_ratio(dtc);
1782 }
1783
1784 /*
1785 * balance_dirty_pages() must be called by processes which are generating dirty
1786 * data. It looks at the number of dirty pages in the machine and will force
1787 * the caller to wait once crossing the (background_thresh + dirty_thresh) / 2.
1788 * If we're over `background_thresh' then the writeback threads are woken to
1789 * perform some writeout.
1790 */
balance_dirty_pages(struct bdi_writeback * wb,unsigned long pages_dirtied,unsigned int flags)1791 static int balance_dirty_pages(struct bdi_writeback *wb,
1792 unsigned long pages_dirtied, unsigned int flags)
1793 {
1794 struct dirty_throttle_control gdtc_stor = { GDTC_INIT(wb) };
1795 struct dirty_throttle_control mdtc_stor = { MDTC_INIT(wb, &gdtc_stor) };
1796 struct dirty_throttle_control * const gdtc = &gdtc_stor;
1797 struct dirty_throttle_control * const mdtc = mdtc_valid(&mdtc_stor) ?
1798 &mdtc_stor : NULL;
1799 struct dirty_throttle_control *sdtc;
1800 unsigned long nr_dirty;
1801 long period;
1802 long pause;
1803 long max_pause;
1804 long min_pause;
1805 int nr_dirtied_pause;
1806 unsigned long task_ratelimit;
1807 unsigned long dirty_ratelimit;
1808 struct backing_dev_info *bdi = wb->bdi;
1809 bool strictlimit = bdi->capabilities & BDI_CAP_STRICTLIMIT;
1810 unsigned long start_time = jiffies;
1811 int ret = 0;
1812
1813 for (;;) {
1814 unsigned long now = jiffies;
1815
1816 nr_dirty = global_node_page_state(NR_FILE_DIRTY);
1817
1818 balance_domain_limits(gdtc, strictlimit);
1819 if (mdtc) {
1820 /*
1821 * If @wb belongs to !root memcg, repeat the same
1822 * basic calculations for the memcg domain.
1823 */
1824 balance_domain_limits(mdtc, strictlimit);
1825 }
1826
1827 if (!writeback_in_progress(wb) &&
1828 (nr_dirty > gdtc->bg_thresh ||
1829 (strictlimit && gdtc->wb_dirty > gdtc->wb_bg_thresh)))
1830 wb_start_background_writeback(wb);
1831
1832 /*
1833 * If memcg domain is in effect, @dirty should be under
1834 * both global and memcg freerun ceilings.
1835 */
1836 if (gdtc->freerun && (!mdtc || mdtc->freerun)) {
1837 unsigned long intv;
1838 unsigned long m_intv;
1839
1840 free_running:
1841 intv = domain_poll_intv(gdtc, strictlimit);
1842 m_intv = ULONG_MAX;
1843
1844 current->dirty_paused_when = now;
1845 current->nr_dirtied = 0;
1846 if (mdtc)
1847 m_intv = domain_poll_intv(mdtc, strictlimit);
1848 current->nr_dirtied_pause = min(intv, m_intv);
1849 break;
1850 }
1851
1852 /*
1853 * Unconditionally start background writeback if it's not
1854 * already in progress. We need to do this because the global
1855 * dirty threshold check above (nr_dirty > gdtc->bg_thresh)
1856 * doesn't account for the memcg-based throttling case. memcg
1857 * uses its own dirty count and thresholds and can trigger
1858 * throttling even when global nr_dirty < gdtc->bg_thresh
1859 *
1860 * Writeback needs to be started else the writer stalls in the
1861 * throttle loop waiting for dirty pages to be written back
1862 * while no writeback is running.
1863 */
1864 if (unlikely(!writeback_in_progress(wb)))
1865 wb_start_background_writeback(wb);
1866
1867 mem_cgroup_flush_foreign(wb);
1868
1869 /*
1870 * Calculate global domain's pos_ratio and select the
1871 * global dtc by default.
1872 */
1873 balance_wb_limits(gdtc, strictlimit);
1874 if (gdtc->freerun)
1875 goto free_running;
1876 sdtc = gdtc;
1877
1878 if (mdtc) {
1879 /*
1880 * If memcg domain is in effect, calculate its
1881 * pos_ratio. @wb should satisfy constraints from
1882 * both global and memcg domains. Choose the one
1883 * w/ lower pos_ratio.
1884 */
1885 balance_wb_limits(mdtc, strictlimit);
1886 if (mdtc->freerun)
1887 goto free_running;
1888 if (mdtc->pos_ratio < gdtc->pos_ratio)
1889 sdtc = mdtc;
1890 }
1891
1892 wb->dirty_exceeded = gdtc->dirty_exceeded ||
1893 (mdtc && mdtc->dirty_exceeded);
1894 if (time_is_before_jiffies(READ_ONCE(wb->bw_time_stamp) +
1895 BANDWIDTH_INTERVAL))
1896 __wb_update_bandwidth(gdtc, mdtc, true);
1897
1898 /* throttle according to the chosen dtc */
1899 dirty_ratelimit = READ_ONCE(wb->dirty_ratelimit);
1900 task_ratelimit = ((u64)dirty_ratelimit * sdtc->pos_ratio) >>
1901 RATELIMIT_CALC_SHIFT;
1902 max_pause = wb_max_pause(wb, sdtc->wb_dirty);
1903 min_pause = wb_min_pause(wb, max_pause,
1904 task_ratelimit, dirty_ratelimit,
1905 &nr_dirtied_pause);
1906
1907 if (unlikely(task_ratelimit == 0)) {
1908 period = max_pause;
1909 pause = max_pause;
1910 goto pause;
1911 }
1912 period = HZ * pages_dirtied / task_ratelimit;
1913 pause = period;
1914 if (current->dirty_paused_when)
1915 pause -= now - current->dirty_paused_when;
1916 /*
1917 * For less than 1s think time (ext3/4 may block the dirtier
1918 * for up to 800ms from time to time on 1-HDD; so does xfs,
1919 * however at much less frequency), try to compensate it in
1920 * future periods by updating the virtual time; otherwise just
1921 * do a reset, as it may be a light dirtier.
1922 */
1923 if (pause < min_pause) {
1924 trace_balance_dirty_pages(wb,
1925 sdtc,
1926 dirty_ratelimit,
1927 task_ratelimit,
1928 pages_dirtied,
1929 period,
1930 min(pause, 0L),
1931 start_time);
1932 if (pause < -HZ) {
1933 current->dirty_paused_when = now;
1934 current->nr_dirtied = 0;
1935 } else if (period) {
1936 current->dirty_paused_when += period;
1937 current->nr_dirtied = 0;
1938 } else if (current->nr_dirtied_pause <= pages_dirtied)
1939 current->nr_dirtied_pause += pages_dirtied;
1940 break;
1941 }
1942 if (unlikely(pause > max_pause)) {
1943 /* for occasional dropped task_ratelimit */
1944 now += min(pause - max_pause, max_pause);
1945 pause = max_pause;
1946 }
1947
1948 pause:
1949 trace_balance_dirty_pages(wb,
1950 sdtc,
1951 dirty_ratelimit,
1952 task_ratelimit,
1953 pages_dirtied,
1954 period,
1955 pause,
1956 start_time);
1957 if (flags & BDP_ASYNC) {
1958 ret = -EAGAIN;
1959 break;
1960 }
1961 __set_current_state(TASK_KILLABLE);
1962 bdi->last_bdp_sleep = jiffies;
1963 io_schedule_timeout(pause);
1964
1965 current->dirty_paused_when = now + pause;
1966 current->nr_dirtied = 0;
1967 current->nr_dirtied_pause = nr_dirtied_pause;
1968
1969 /*
1970 * This is typically equal to (dirty < thresh) and can also
1971 * keep "1000+ dd on a slow USB stick" under control.
1972 */
1973 if (task_ratelimit)
1974 break;
1975
1976 /*
1977 * In the case of an unresponsive NFS server and the NFS dirty
1978 * pages exceeds dirty_thresh, give the other good wb's a pipe
1979 * to go through, so that tasks on them still remain responsive.
1980 *
1981 * In theory 1 page is enough to keep the consumer-producer
1982 * pipe going: the flusher cleans 1 page => the task dirties 1
1983 * more page. However wb_dirty has accounting errors. So use
1984 * the larger and more IO friendly wb_stat_error.
1985 */
1986 if (sdtc->wb_dirty <= wb_stat_error())
1987 break;
1988
1989 if (fatal_signal_pending(current))
1990 break;
1991 }
1992 return ret;
1993 }
1994
1995 static DEFINE_PER_CPU(int, bdp_ratelimits);
1996
1997 /*
1998 * Normal tasks are throttled by
1999 * loop {
2000 * dirty tsk->nr_dirtied_pause pages;
2001 * take a snap in balance_dirty_pages();
2002 * }
2003 * However there is a worst case. If every task exit immediately when dirtied
2004 * (tsk->nr_dirtied_pause - 1) pages, balance_dirty_pages() will never be
2005 * called to throttle the page dirties. The solution is to save the not yet
2006 * throttled page dirties in dirty_throttle_leaks on task exit and charge them
2007 * randomly into the running tasks. This works well for the above worst case,
2008 * as the new task will pick up and accumulate the old task's leaked dirty
2009 * count and eventually get throttled.
2010 */
2011 DEFINE_PER_CPU(int, dirty_throttle_leaks) = 0;
2012
2013 /**
2014 * balance_dirty_pages_ratelimited_flags - Balance dirty memory state.
2015 * @mapping: address_space which was dirtied.
2016 * @flags: BDP flags.
2017 *
2018 * Processes which are dirtying memory should call in here once for each page
2019 * which was newly dirtied. The function will periodically check the system's
2020 * dirty state and will initiate writeback if needed.
2021 *
2022 * See balance_dirty_pages_ratelimited() for details.
2023 *
2024 * Return: If @flags contains BDP_ASYNC, it may return -EAGAIN to
2025 * indicate that memory is out of balance and the caller must wait
2026 * for I/O to complete. Otherwise, it will return 0 to indicate
2027 * that either memory was already in balance, or it was able to sleep
2028 * until the amount of dirty memory returned to balance.
2029 */
balance_dirty_pages_ratelimited_flags(struct address_space * mapping,unsigned int flags)2030 int balance_dirty_pages_ratelimited_flags(struct address_space *mapping,
2031 unsigned int flags)
2032 {
2033 struct inode *inode = mapping->host;
2034 struct backing_dev_info *bdi = inode_to_bdi(inode);
2035 struct bdi_writeback *wb = NULL;
2036 int ratelimit;
2037 int ret = 0;
2038 int *p;
2039
2040 if (!(bdi->capabilities & BDI_CAP_WRITEBACK))
2041 return ret;
2042
2043 if (inode_cgwb_enabled(inode))
2044 wb = wb_get_create_current(bdi, GFP_KERNEL);
2045 if (!wb)
2046 wb = &bdi->wb;
2047
2048 ratelimit = current->nr_dirtied_pause;
2049 if (wb->dirty_exceeded)
2050 ratelimit = min(ratelimit, 32 >> (PAGE_SHIFT - 10));
2051
2052 preempt_disable();
2053 /*
2054 * This prevents one CPU to accumulate too many dirtied pages without
2055 * calling into balance_dirty_pages(), which can happen when there are
2056 * 1000+ tasks, all of them start dirtying pages at exactly the same
2057 * time, hence all honoured too large initial task->nr_dirtied_pause.
2058 */
2059 p = this_cpu_ptr(&bdp_ratelimits);
2060 if (unlikely(current->nr_dirtied >= ratelimit))
2061 *p = 0;
2062 else if (unlikely(*p >= ratelimit_pages)) {
2063 *p = 0;
2064 ratelimit = 0;
2065 }
2066 /*
2067 * Pick up the dirtied pages by the exited tasks. This avoids lots of
2068 * short-lived tasks (eg. gcc invocations in a kernel build) escaping
2069 * the dirty throttling and livelock other long-run dirtiers.
2070 */
2071 p = this_cpu_ptr(&dirty_throttle_leaks);
2072 if (*p > 0 && current->nr_dirtied < ratelimit) {
2073 unsigned long nr_pages_dirtied;
2074 nr_pages_dirtied = min(*p, ratelimit - current->nr_dirtied);
2075 *p -= nr_pages_dirtied;
2076 current->nr_dirtied += nr_pages_dirtied;
2077 }
2078 preempt_enable();
2079
2080 if (unlikely(current->nr_dirtied >= ratelimit))
2081 ret = balance_dirty_pages(wb, current->nr_dirtied, flags);
2082
2083 wb_put(wb);
2084 return ret;
2085 }
2086 EXPORT_SYMBOL_GPL(balance_dirty_pages_ratelimited_flags);
2087
2088 /**
2089 * balance_dirty_pages_ratelimited - balance dirty memory state.
2090 * @mapping: address_space which was dirtied.
2091 *
2092 * Processes which are dirtying memory should call in here once for each page
2093 * which was newly dirtied. The function will periodically check the system's
2094 * dirty state and will initiate writeback if needed.
2095 *
2096 * Once we're over the dirty memory limit we decrease the ratelimiting
2097 * by a lot, to prevent individual processes from overshooting the limit
2098 * by (ratelimit_pages) each.
2099 */
balance_dirty_pages_ratelimited(struct address_space * mapping)2100 void balance_dirty_pages_ratelimited(struct address_space *mapping)
2101 {
2102 balance_dirty_pages_ratelimited_flags(mapping, 0);
2103 }
2104 EXPORT_SYMBOL(balance_dirty_pages_ratelimited);
2105
2106 /*
2107 * Similar to wb_dirty_limits, wb_bg_dirty_limits also calculates dirty
2108 * and thresh, but it's for background writeback.
2109 */
wb_bg_dirty_limits(struct dirty_throttle_control * dtc)2110 static void wb_bg_dirty_limits(struct dirty_throttle_control *dtc)
2111 {
2112 struct bdi_writeback *wb = dtc->wb;
2113
2114 dtc->wb_bg_thresh = __wb_calc_thresh(dtc, dtc->bg_thresh);
2115 if (dtc->wb_bg_thresh < 2 * wb_stat_error())
2116 dtc->wb_dirty = wb_stat_sum(wb, WB_RECLAIMABLE);
2117 else
2118 dtc->wb_dirty = wb_stat(wb, WB_RECLAIMABLE);
2119 }
2120
domain_over_bg_thresh(struct dirty_throttle_control * dtc)2121 static bool domain_over_bg_thresh(struct dirty_throttle_control *dtc)
2122 {
2123 domain_dirty_avail(dtc, false);
2124 domain_dirty_limits(dtc);
2125 if (dtc->dirty > dtc->bg_thresh)
2126 return true;
2127
2128 wb_bg_dirty_limits(dtc);
2129 if (dtc->wb_dirty > dtc->wb_bg_thresh)
2130 return true;
2131
2132 return false;
2133 }
2134
2135 /**
2136 * wb_over_bg_thresh - does @wb need to be written back?
2137 * @wb: bdi_writeback of interest
2138 *
2139 * Determines whether background writeback should keep writing @wb or it's
2140 * clean enough.
2141 *
2142 * Return: %true if writeback should continue.
2143 */
wb_over_bg_thresh(struct bdi_writeback * wb)2144 bool wb_over_bg_thresh(struct bdi_writeback *wb)
2145 {
2146 struct dirty_throttle_control gdtc = { GDTC_INIT(wb) };
2147 struct dirty_throttle_control mdtc = { MDTC_INIT(wb, &gdtc) };
2148
2149 if (domain_over_bg_thresh(&gdtc))
2150 return true;
2151
2152 if (mdtc_valid(&mdtc))
2153 return domain_over_bg_thresh(&mdtc);
2154
2155 return false;
2156 }
2157
2158 #ifdef CONFIG_SYSCTL
2159 /*
2160 * sysctl handler for /proc/sys/vm/dirty_writeback_centisecs
2161 */
dirty_writeback_centisecs_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)2162 static int dirty_writeback_centisecs_handler(const struct ctl_table *table, int write,
2163 void *buffer, size_t *length, loff_t *ppos)
2164 {
2165 unsigned int old_interval = dirty_writeback_interval;
2166 int ret;
2167
2168 ret = proc_dointvec(table, write, buffer, length, ppos);
2169
2170 /*
2171 * Writing 0 to dirty_writeback_interval will disable periodic writeback
2172 * and a different non-zero value will wakeup the writeback threads.
2173 * wb_wakeup_delayed() would be more appropriate, but it's a pain to
2174 * iterate over all bdis and wbs.
2175 * The reason we do this is to make the change take effect immediately.
2176 */
2177 if (!ret && write && dirty_writeback_interval &&
2178 dirty_writeback_interval != old_interval)
2179 wakeup_flusher_threads(WB_REASON_PERIODIC);
2180
2181 return ret;
2182 }
2183 #endif
2184
2185 /*
2186 * If ratelimit_pages is too high then we can get into dirty-data overload
2187 * if a large number of processes all perform writes at the same time.
2188 *
2189 * Here we set ratelimit_pages to a level which ensures that when all CPUs are
2190 * dirtying in parallel, we cannot go more than 3% (1/32) over the dirty memory
2191 * thresholds.
2192 */
2193
writeback_set_ratelimit(void)2194 void writeback_set_ratelimit(void)
2195 {
2196 struct wb_domain *dom = &global_wb_domain;
2197 unsigned long background_thresh;
2198 unsigned long dirty_thresh;
2199
2200 global_dirty_limits(&background_thresh, &dirty_thresh);
2201 dom->dirty_limit = dirty_thresh;
2202 ratelimit_pages = dirty_thresh / (num_online_cpus() * 32);
2203 if (ratelimit_pages < 16)
2204 ratelimit_pages = 16;
2205 }
2206
page_writeback_cpu_online(unsigned int cpu)2207 static int page_writeback_cpu_online(unsigned int cpu)
2208 {
2209 writeback_set_ratelimit();
2210 return 0;
2211 }
2212
2213 #ifdef CONFIG_SYSCTL
2214
2215 static int laptop_mode;
laptop_mode_handler(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)2216 static int laptop_mode_handler(const struct ctl_table *table, int write,
2217 void *buffer, size_t *lenp, loff_t *ppos)
2218 {
2219 int ret = proc_dointvec_jiffies(table, write, buffer, lenp, ppos);
2220
2221 if (!ret && write)
2222 pr_warn("%s: vm.laptop_mode is deprecated. Ignoring setting.\n",
2223 current->comm);
2224
2225 return ret;
2226 }
2227
2228 /* this is needed for the proc_doulongvec_minmax of vm_dirty_bytes */
2229 static const unsigned long dirty_bytes_min = 2 * PAGE_SIZE;
2230
2231 static const struct ctl_table vm_page_writeback_sysctls[] = {
2232 {
2233 .procname = "dirty_background_ratio",
2234 .data = &dirty_background_ratio,
2235 .maxlen = sizeof(dirty_background_ratio),
2236 .mode = 0644,
2237 .proc_handler = dirty_background_ratio_handler,
2238 .extra1 = SYSCTL_ZERO,
2239 .extra2 = SYSCTL_ONE_HUNDRED,
2240 },
2241 {
2242 .procname = "dirty_background_bytes",
2243 .data = &dirty_background_bytes,
2244 .maxlen = sizeof(dirty_background_bytes),
2245 .mode = 0644,
2246 .proc_handler = dirty_background_bytes_handler,
2247 .extra1 = SYSCTL_LONG_ONE,
2248 },
2249 {
2250 .procname = "dirty_ratio",
2251 .data = &vm_dirty_ratio,
2252 .maxlen = sizeof(vm_dirty_ratio),
2253 .mode = 0644,
2254 .proc_handler = dirty_ratio_handler,
2255 .extra1 = SYSCTL_ZERO,
2256 .extra2 = SYSCTL_ONE_HUNDRED,
2257 },
2258 {
2259 .procname = "dirty_bytes",
2260 .data = &vm_dirty_bytes,
2261 .maxlen = sizeof(vm_dirty_bytes),
2262 .mode = 0644,
2263 .proc_handler = dirty_bytes_handler,
2264 .extra1 = (void *)&dirty_bytes_min,
2265 },
2266 {
2267 .procname = "dirty_writeback_centisecs",
2268 .data = &dirty_writeback_interval,
2269 .maxlen = sizeof(dirty_writeback_interval),
2270 .mode = 0644,
2271 .proc_handler = dirty_writeback_centisecs_handler,
2272 },
2273 {
2274 .procname = "dirty_expire_centisecs",
2275 .data = &dirty_expire_interval,
2276 .maxlen = sizeof(dirty_expire_interval),
2277 .mode = 0644,
2278 .proc_handler = proc_dointvec_minmax,
2279 .extra1 = SYSCTL_ZERO,
2280 },
2281 #ifdef CONFIG_HIGHMEM
2282 {
2283 .procname = "highmem_is_dirtyable",
2284 .data = &vm_highmem_is_dirtyable,
2285 .maxlen = sizeof(vm_highmem_is_dirtyable),
2286 .mode = 0644,
2287 .proc_handler = proc_dointvec_minmax,
2288 .extra1 = SYSCTL_ZERO,
2289 .extra2 = SYSCTL_ONE,
2290 },
2291 #endif
2292 {
2293 .procname = "laptop_mode",
2294 .data = &laptop_mode,
2295 .maxlen = sizeof(laptop_mode),
2296 .mode = 0644,
2297 .proc_handler = laptop_mode_handler,
2298 },
2299 };
2300 #endif
2301
2302 /*
2303 * Called early on to tune the page writeback dirty limits.
2304 *
2305 * We used to scale dirty pages according to how total memory
2306 * related to pages that could be allocated for buffers.
2307 *
2308 * However, that was when we used "dirty_ratio" to scale with
2309 * all memory, and we don't do that any more. "dirty_ratio"
2310 * is now applied to total non-HIGHPAGE memory, and as such we can't
2311 * get into the old insane situation any more where we had
2312 * large amounts of dirty pages compared to a small amount of
2313 * non-HIGHMEM memory.
2314 *
2315 * But we might still want to scale the dirty_ratio by how
2316 * much memory the box has..
2317 */
page_writeback_init(void)2318 void __init page_writeback_init(void)
2319 {
2320 BUG_ON(wb_domain_init(&global_wb_domain, GFP_KERNEL));
2321
2322 cpuhp_setup_state(CPUHP_AP_ONLINE_DYN, "mm/writeback:online",
2323 page_writeback_cpu_online, NULL);
2324 cpuhp_setup_state(CPUHP_MM_WRITEBACK_DEAD, "mm/writeback:dead", NULL,
2325 page_writeback_cpu_online);
2326 #ifdef CONFIG_SYSCTL
2327 register_sysctl_init("vm", vm_page_writeback_sysctls);
2328 #endif
2329 }
2330
2331 /**
2332 * tag_pages_for_writeback - tag pages to be written by writeback
2333 * @mapping: address space structure to write
2334 * @start: starting page index
2335 * @end: ending page index (inclusive)
2336 *
2337 * This function scans the page range from @start to @end (inclusive) and tags
2338 * all pages that have DIRTY tag set with a special TOWRITE tag. The caller
2339 * can then use the TOWRITE tag to identify pages eligible for writeback.
2340 * This mechanism is used to avoid livelocking of writeback by a process
2341 * steadily creating new dirty pages in the file (thus it is important for this
2342 * function to be quick so that it can tag pages faster than a dirtying process
2343 * can create them).
2344 */
tag_pages_for_writeback(struct address_space * mapping,pgoff_t start,pgoff_t end)2345 void tag_pages_for_writeback(struct address_space *mapping,
2346 pgoff_t start, pgoff_t end)
2347 {
2348 XA_STATE(xas, &mapping->i_pages, start);
2349 unsigned int tagged = 0;
2350 void *page;
2351
2352 xas_lock_irq(&xas);
2353 xas_for_each_marked(&xas, page, end, PAGECACHE_TAG_DIRTY) {
2354 xas_set_mark(&xas, PAGECACHE_TAG_TOWRITE);
2355 if (++tagged % XA_CHECK_SCHED)
2356 continue;
2357
2358 xas_pause(&xas);
2359 xas_unlock_irq(&xas);
2360 cond_resched();
2361 xas_lock_irq(&xas);
2362 }
2363 xas_unlock_irq(&xas);
2364 }
2365 EXPORT_SYMBOL(tag_pages_for_writeback);
2366
folio_prepare_writeback(struct address_space * mapping,struct writeback_control * wbc,struct folio * folio)2367 static bool folio_prepare_writeback(struct address_space *mapping,
2368 struct writeback_control *wbc, struct folio *folio)
2369 {
2370 /*
2371 * Folio truncated or invalidated. We can freely skip it then,
2372 * even for data integrity operations: the folio has disappeared
2373 * concurrently, so there could be no real expectation of this
2374 * data integrity operation even if there is now a new, dirty
2375 * folio at the same pagecache index.
2376 */
2377 if (unlikely(folio->mapping != mapping))
2378 return false;
2379
2380 /*
2381 * Did somebody else write it for us?
2382 */
2383 if (!folio_test_dirty(folio))
2384 return false;
2385
2386 if (folio_test_writeback(folio)) {
2387 if (wbc->sync_mode == WB_SYNC_NONE)
2388 return false;
2389 folio_wait_writeback(folio);
2390 }
2391 BUG_ON(folio_test_writeback(folio));
2392
2393 if (!folio_clear_dirty_for_io(folio))
2394 return false;
2395
2396 return true;
2397 }
2398
2399
wbc_end(struct writeback_control * wbc)2400 static pgoff_t wbc_end(struct writeback_control *wbc)
2401 {
2402 if (wbc->range_cyclic)
2403 return -1;
2404 return wbc->range_end >> PAGE_SHIFT;
2405 }
2406
writeback_get_folio(struct address_space * mapping,struct writeback_control * wbc)2407 static struct folio *writeback_get_folio(struct address_space *mapping,
2408 struct writeback_control *wbc)
2409 {
2410 struct folio *folio;
2411
2412 retry:
2413 folio = folio_batch_next(&wbc->fbatch);
2414 if (!folio) {
2415 folio_batch_release(&wbc->fbatch);
2416 cond_resched();
2417 filemap_get_folios_tag(mapping, &wbc->index, wbc_end(wbc),
2418 wbc_to_tag(wbc), &wbc->fbatch);
2419 folio = folio_batch_next(&wbc->fbatch);
2420 if (!folio)
2421 return NULL;
2422 }
2423
2424 folio_lock(folio);
2425 if (unlikely(!folio_prepare_writeback(mapping, wbc, folio))) {
2426 folio_unlock(folio);
2427 goto retry;
2428 }
2429
2430 trace_wbc_writepage(wbc, inode_to_bdi(mapping->host));
2431 return folio;
2432 }
2433
2434 /**
2435 * writeback_iter - iterate folio of a mapping for writeback
2436 * @mapping: address space structure to write
2437 * @wbc: writeback context
2438 * @folio: previously iterated folio (%NULL to start)
2439 * @error: in-out pointer for writeback errors (see below)
2440 *
2441 * This function returns the next folio for the writeback operation described by
2442 * @wbc on @mapping and should be called in a while loop in the ->writepages
2443 * implementation.
2444 *
2445 * To start the writeback operation, %NULL is passed in the @folio argument, and
2446 * for every subsequent iteration the folio returned previously should be passed
2447 * back in.
2448 *
2449 * If there was an error in the per-folio writeback inside the writeback_iter()
2450 * loop, @error should be set to the error value.
2451 *
2452 * Once the writeback described in @wbc has finished, this function will return
2453 * %NULL and if there was an error in any iteration restore it to @error.
2454 *
2455 * Note: callers should not manually break out of the loop using break or goto
2456 * but must keep calling writeback_iter() until it returns %NULL.
2457 *
2458 * Return: the folio to write or %NULL if the loop is done.
2459 */
writeback_iter(struct address_space * mapping,struct writeback_control * wbc,struct folio * folio,int * error)2460 struct folio *writeback_iter(struct address_space *mapping,
2461 struct writeback_control *wbc, struct folio *folio, int *error)
2462 {
2463 if (!folio) {
2464 folio_batch_init(&wbc->fbatch);
2465 wbc->saved_err = *error = 0;
2466
2467 /*
2468 * For range cyclic writeback we remember where we stopped so
2469 * that we can continue where we stopped.
2470 *
2471 * For non-cyclic writeback we always start at the beginning of
2472 * the passed in range.
2473 */
2474 if (wbc->range_cyclic)
2475 wbc->index = mapping->writeback_index;
2476 else
2477 wbc->index = wbc->range_start >> PAGE_SHIFT;
2478
2479 /*
2480 * To avoid livelocks when other processes dirty new pages, we
2481 * first tag pages which should be written back and only then
2482 * start writing them.
2483 *
2484 * For data-integrity writeback we have to be careful so that we
2485 * do not miss some pages (e.g., because some other process has
2486 * cleared the TOWRITE tag we set). The rule we follow is that
2487 * TOWRITE tag can be cleared only by the process clearing the
2488 * DIRTY tag (and submitting the page for I/O).
2489 */
2490 if (wbc->sync_mode == WB_SYNC_ALL || wbc->tagged_writepages)
2491 tag_pages_for_writeback(mapping, wbc->index,
2492 wbc_end(wbc));
2493 } else {
2494 wbc->nr_to_write -= folio_nr_pages(folio);
2495
2496 WARN_ON_ONCE(*error > 0);
2497
2498 /*
2499 * For integrity writeback we have to keep going until we have
2500 * written all the folios we tagged for writeback above, even if
2501 * we run past wbc->nr_to_write or encounter errors.
2502 * We stash away the first error we encounter in wbc->saved_err
2503 * so that it can be retrieved when we're done. This is because
2504 * the file system may still have state to clear for each folio.
2505 *
2506 * For background writeback we exit as soon as we run past
2507 * wbc->nr_to_write or encounter the first error.
2508 */
2509 if (wbc->sync_mode == WB_SYNC_ALL) {
2510 if (*error && !wbc->saved_err)
2511 wbc->saved_err = *error;
2512 } else {
2513 if (*error || wbc->nr_to_write <= 0)
2514 goto done;
2515 }
2516 }
2517
2518 folio = writeback_get_folio(mapping, wbc);
2519 if (!folio) {
2520 /*
2521 * To avoid deadlocks between range_cyclic writeback and callers
2522 * that hold folios in writeback to aggregate I/O until
2523 * the writeback iteration finishes, we do not loop back to the
2524 * start of the file. Doing so causes a folio lock/folio
2525 * writeback access order inversion - we should only ever lock
2526 * multiple folios in ascending folio->index order, and looping
2527 * back to the start of the file violates that rule and causes
2528 * deadlocks.
2529 */
2530 if (wbc->range_cyclic)
2531 mapping->writeback_index = 0;
2532
2533 /*
2534 * Return the first error we encountered (if there was any) to
2535 * the caller.
2536 */
2537 *error = wbc->saved_err;
2538 }
2539 return folio;
2540
2541 done:
2542 if (wbc->range_cyclic)
2543 mapping->writeback_index = folio_next_index(folio);
2544 folio_batch_release(&wbc->fbatch);
2545 return NULL;
2546 }
2547 EXPORT_SYMBOL_GPL(writeback_iter);
2548
do_writepages(struct address_space * mapping,struct writeback_control * wbc)2549 int do_writepages(struct address_space *mapping, struct writeback_control *wbc)
2550 {
2551 int ret;
2552 struct bdi_writeback *wb;
2553
2554 if (wbc->nr_to_write <= 0)
2555 return 0;
2556 wb = inode_to_wb_wbc(mapping->host, wbc);
2557 wb_bandwidth_estimate_start(wb);
2558 while (1) {
2559 if (mapping->a_ops->writepages)
2560 ret = mapping->a_ops->writepages(mapping, wbc);
2561 else
2562 /* deal with chardevs and other special files */
2563 ret = 0;
2564 if (ret != -ENOMEM || wbc->sync_mode != WB_SYNC_ALL)
2565 break;
2566
2567 /*
2568 * Lacking an allocation context or the locality or writeback
2569 * state of any of the inode's pages, throttle based on
2570 * writeback activity on the local node. It's as good a
2571 * guess as any.
2572 */
2573 reclaim_throttle(NODE_DATA(numa_node_id()),
2574 VMSCAN_THROTTLE_WRITEBACK);
2575 }
2576 /*
2577 * Usually few pages are written by now from those we've just submitted
2578 * but if there's constant writeback being submitted, this makes sure
2579 * writeback bandwidth is updated once in a while.
2580 */
2581 if (time_is_before_jiffies(READ_ONCE(wb->bw_time_stamp) +
2582 BANDWIDTH_INTERVAL))
2583 wb_update_bandwidth(wb);
2584 return ret;
2585 }
2586
2587 /*
2588 * For address_spaces which do not use buffers nor write back.
2589 */
noop_dirty_folio(struct address_space * mapping,struct folio * folio)2590 bool noop_dirty_folio(struct address_space *mapping, struct folio *folio)
2591 {
2592 if (!folio_test_dirty(folio))
2593 return !folio_test_set_dirty(folio);
2594 return false;
2595 }
2596 EXPORT_SYMBOL(noop_dirty_folio);
2597
2598 /*
2599 * Helper function for set_page_dirty family.
2600 *
2601 * NOTE: This relies on being atomic wrt interrupts.
2602 */
folio_account_dirtied(struct folio * folio,struct address_space * mapping)2603 static void folio_account_dirtied(struct folio *folio,
2604 struct address_space *mapping)
2605 {
2606 struct inode *inode = mapping->host;
2607
2608 trace_writeback_dirty_folio(folio, mapping);
2609
2610 if (mapping_can_writeback(mapping)) {
2611 struct bdi_writeback *wb;
2612 long nr = folio_nr_pages(folio);
2613
2614 inode_attach_wb(inode, folio);
2615 wb = inode_to_wb(inode);
2616
2617 lruvec_stat_mod_folio(folio, NR_FILE_DIRTY, nr);
2618 if (folio_test_dropbehind(folio))
2619 wb_stat_mod(wb, WB_DONTCACHE_DIRTY, nr);
2620 __zone_stat_mod_folio(folio, NR_ZONE_WRITE_PENDING, nr);
2621 __node_stat_mod_folio(folio, NR_DIRTIED, nr);
2622 wb_stat_mod(wb, WB_RECLAIMABLE, nr);
2623 wb_stat_mod(wb, WB_DIRTIED, nr);
2624 task_io_account_write(nr * PAGE_SIZE);
2625 current->nr_dirtied += nr;
2626 __this_cpu_add(bdp_ratelimits, nr);
2627
2628 mem_cgroup_track_foreign_dirty(folio, wb);
2629 }
2630 }
2631
2632 /*
2633 * Helper function for deaccounting dirty page without writeback.
2634 *
2635 */
folio_account_cleaned(struct folio * folio,struct bdi_writeback * wb)2636 void folio_account_cleaned(struct folio *folio, struct bdi_writeback *wb)
2637 {
2638 long nr = folio_nr_pages(folio);
2639
2640 lruvec_stat_mod_folio(folio, NR_FILE_DIRTY, -nr);
2641 if (folio_test_dropbehind(folio))
2642 wb_stat_mod(wb, WB_DONTCACHE_DIRTY, -nr);
2643 zone_stat_mod_folio(folio, NR_ZONE_WRITE_PENDING, -nr);
2644 wb_stat_mod(wb, WB_RECLAIMABLE, -nr);
2645 task_io_account_cancelled_write(nr * PAGE_SIZE);
2646 }
2647
2648 /*
2649 * Mark the folio dirty, and set it dirty in the page cache.
2650 *
2651 * If warn is true, then emit a warning if the folio is not uptodate and has
2652 * not been truncated.
2653 *
2654 * It is the caller's responsibility to prevent the folio from being truncated
2655 * while this function is in progress, although it may have been truncated
2656 * before this function is called. Most callers have the folio locked.
2657 * A few have the folio blocked from truncation through other means (e.g.
2658 * zap_vma() has it mapped and is holding the page table lock).
2659 * When called from mark_buffer_dirty(), the filesystem should hold a
2660 * reference to the buffer_head that is being marked dirty, which causes
2661 * try_to_free_buffers() to fail.
2662 */
__folio_mark_dirty(struct folio * folio,struct address_space * mapping,int warn)2663 void __folio_mark_dirty(struct folio *folio, struct address_space *mapping,
2664 int warn)
2665 {
2666 unsigned long flags;
2667
2668 /*
2669 * Shmem writeback relies on swap, and swap writeback is LRU based,
2670 * not using the dirty mark.
2671 */
2672 VM_WARN_ON_ONCE(folio_test_swapcache(folio) || shmem_mapping(mapping));
2673
2674 xa_lock_irqsave(&mapping->i_pages, flags);
2675 if (folio->mapping) { /* Race with truncate? */
2676 WARN_ON_ONCE(warn && !folio_test_uptodate(folio));
2677 folio_account_dirtied(folio, mapping);
2678 __xa_set_mark(&mapping->i_pages, folio->index,
2679 PAGECACHE_TAG_DIRTY);
2680 }
2681 xa_unlock_irqrestore(&mapping->i_pages, flags);
2682 }
2683
2684 /**
2685 * filemap_dirty_folio - Mark a folio dirty for filesystems which do not use buffer_heads.
2686 * @mapping: Address space this folio belongs to.
2687 * @folio: Folio to be marked as dirty.
2688 *
2689 * Filesystems which do not use buffer heads should call this function
2690 * from their dirty_folio address space operation. It ignores the
2691 * contents of folio_get_private(), so if the filesystem marks individual
2692 * blocks as dirty, the filesystem should handle that itself.
2693 *
2694 * This is also sometimes used by filesystems which use buffer_heads when
2695 * a single buffer is being dirtied: we want to set the folio dirty in
2696 * that case, but not all the buffers. This is a "bottom-up" dirtying,
2697 * whereas block_dirty_folio() is a "top-down" dirtying.
2698 *
2699 * The caller must ensure this doesn't race with truncation. Most will
2700 * simply hold the folio lock, but e.g. zap_pte_range() calls with the
2701 * folio mapped and the pte lock held, which also locks out truncation.
2702 */
filemap_dirty_folio(struct address_space * mapping,struct folio * folio)2703 bool filemap_dirty_folio(struct address_space *mapping, struct folio *folio)
2704 {
2705 if (folio_test_set_dirty(folio))
2706 return false;
2707
2708 __folio_mark_dirty(folio, mapping, !folio_test_private(folio));
2709
2710 if (mapping->host) {
2711 /* !PageAnon && !swapper_space */
2712 __mark_inode_dirty(mapping->host, I_DIRTY_PAGES);
2713 }
2714 return true;
2715 }
2716 EXPORT_SYMBOL(filemap_dirty_folio);
2717
2718 /**
2719 * folio_redirty_for_writepage - Decline to write a dirty folio.
2720 * @wbc: The writeback control.
2721 * @folio: The folio.
2722 *
2723 * When a writepage implementation decides that it doesn't want to write
2724 * @folio for some reason, it should call this function, unlock @folio and
2725 * return 0.
2726 *
2727 * Return: True if we redirtied the folio. False if someone else dirtied
2728 * it first.
2729 */
folio_redirty_for_writepage(struct writeback_control * wbc,struct folio * folio)2730 bool folio_redirty_for_writepage(struct writeback_control *wbc,
2731 struct folio *folio)
2732 {
2733 struct address_space *mapping = folio->mapping;
2734 long nr = folio_nr_pages(folio);
2735 bool ret;
2736
2737 wbc->pages_skipped += nr;
2738 ret = filemap_dirty_folio(mapping, folio);
2739 if (mapping && mapping_can_writeback(mapping)) {
2740 struct inode *inode = mapping->host;
2741 struct bdi_writeback *wb;
2742 struct wb_lock_cookie cookie = {};
2743
2744 wb = unlocked_inode_to_wb_begin(inode, &cookie);
2745 current->nr_dirtied -= nr;
2746 node_stat_mod_folio(folio, NR_DIRTIED, -nr);
2747 wb_stat_mod(wb, WB_DIRTIED, -nr);
2748 unlocked_inode_to_wb_end(inode, &cookie);
2749 }
2750 return ret;
2751 }
2752 EXPORT_SYMBOL(folio_redirty_for_writepage);
2753
2754 /**
2755 * folio_mark_dirty - Mark a folio as being modified.
2756 * @folio: The folio.
2757 *
2758 * The folio may not be truncated while this function is running.
2759 * Holding the folio lock is sufficient to prevent truncation, but some
2760 * callers cannot acquire a sleeping lock. These callers instead hold
2761 * the page table lock for a page table which contains at least one page
2762 * in this folio. Truncation will block on the page table lock as it
2763 * unmaps pages before removing the folio from its mapping.
2764 *
2765 * .. DANGER::
2766 * Do not use this on a folio obtained from a function like
2767 * get_user_pages_fast() without holding appropriate locks; you might want to
2768 * use set_page_dirty_lock() or folio_mark_dirty_lock() instead.
2769 *
2770 * Return: True if the folio was newly dirtied, false if it was already dirty.
2771 */
folio_mark_dirty(struct folio * folio)2772 bool folio_mark_dirty(struct folio *folio)
2773 {
2774 struct address_space *mapping = folio_mapping(folio);
2775
2776 if (likely(mapping)) {
2777 /*
2778 * readahead/folio_deactivate could remain
2779 * PG_readahead/PG_reclaim due to race with folio_end_writeback
2780 * About readahead, if the folio is written, the flags would be
2781 * reset. So no problem.
2782 * About folio_deactivate, if the folio is redirtied,
2783 * the flag will be reset. So no problem. but if the
2784 * folio is used by readahead it will confuse readahead
2785 * and make it restart the size rampup process. But it's
2786 * a trivial problem.
2787 */
2788 if (folio_test_reclaim(folio))
2789 folio_clear_reclaim(folio);
2790 return mapping->a_ops->dirty_folio(mapping, folio);
2791 }
2792
2793 return noop_dirty_folio(mapping, folio);
2794 }
2795 EXPORT_SYMBOL(folio_mark_dirty);
2796
2797 /*
2798 * folio_mark_dirty() is racy if the caller has no reference against
2799 * folio->mapping->host, and if the folio is unlocked. This is because another
2800 * CPU could truncate the folio off the mapping and then free the mapping.
2801 *
2802 * Usually, the folio _is_ locked, or the caller is a user-space process which
2803 * holds a reference on the inode by having an open file.
2804 *
2805 * In other cases, the folio should be locked before running folio_mark_dirty().
2806 */
folio_mark_dirty_lock(struct folio * folio)2807 bool folio_mark_dirty_lock(struct folio *folio)
2808 {
2809 bool ret;
2810
2811 folio_lock(folio);
2812 ret = folio_mark_dirty(folio);
2813 folio_unlock(folio);
2814 return ret;
2815 }
2816 EXPORT_SYMBOL(folio_mark_dirty_lock);
2817
2818 /*
2819 * This cancels just the dirty bit on the kernel page itself, it does NOT
2820 * actually remove dirty bits on any mmap's that may be around. It also
2821 * leaves the page tagged dirty, so any sync activity will still find it on
2822 * the dirty lists, and in particular, clear_page_dirty_for_io() will still
2823 * look at the dirty bits in the VM.
2824 *
2825 * Doing this should *normally* only ever be done when a page is truncated,
2826 * and is not actually mapped anywhere at all. However, fs/buffer.c does
2827 * this when it notices that somebody has cleaned out all the buffers on a
2828 * page without actually doing it through the VM. Can you say "ext3 is
2829 * horribly ugly"? Thought you could.
2830 */
__folio_cancel_dirty(struct folio * folio)2831 void __folio_cancel_dirty(struct folio *folio)
2832 {
2833 struct address_space *mapping = folio_mapping(folio);
2834
2835 if (mapping_can_writeback(mapping)) {
2836 struct inode *inode = mapping->host;
2837 struct bdi_writeback *wb;
2838 struct wb_lock_cookie cookie = {};
2839
2840 wb = unlocked_inode_to_wb_begin(inode, &cookie);
2841
2842 if (folio_test_clear_dirty(folio))
2843 folio_account_cleaned(folio, wb);
2844
2845 unlocked_inode_to_wb_end(inode, &cookie);
2846 } else {
2847 folio_clear_dirty(folio);
2848 }
2849 }
2850 EXPORT_SYMBOL(__folio_cancel_dirty);
2851
2852 /*
2853 * Clear a folio's dirty flag, while caring for dirty memory accounting.
2854 * Returns true if the folio was previously dirty.
2855 *
2856 * This is for preparing to put the folio under writeout. We leave
2857 * the folio tagged as dirty in the xarray so that a concurrent
2858 * write-for-sync can discover it via a PAGECACHE_TAG_DIRTY walk.
2859 * The ->writepage implementation will run either folio_start_writeback()
2860 * or folio_mark_dirty(), at which stage we bring the folio's dirty flag
2861 * and xarray dirty tag back into sync.
2862 *
2863 * This incoherency between the folio's dirty flag and xarray tag is
2864 * unfortunate, but it only exists while the folio is locked.
2865 */
folio_clear_dirty_for_io(struct folio * folio)2866 bool folio_clear_dirty_for_io(struct folio *folio)
2867 {
2868 struct address_space *mapping = folio_mapping(folio);
2869 bool ret = false;
2870
2871 VM_BUG_ON_FOLIO(!folio_test_locked(folio), folio);
2872
2873 if (mapping && mapping_can_writeback(mapping)) {
2874 struct inode *inode = mapping->host;
2875 struct bdi_writeback *wb;
2876 struct wb_lock_cookie cookie = {};
2877
2878 /*
2879 * Yes, Virginia, this is indeed insane.
2880 *
2881 * We use this sequence to make sure that
2882 * (a) we account for dirty stats properly
2883 * (b) we tell the low-level filesystem to
2884 * mark the whole folio dirty if it was
2885 * dirty in a pagetable. Only to then
2886 * (c) clean the folio again and return 1 to
2887 * cause the writeback.
2888 *
2889 * This way we avoid all nasty races with the
2890 * dirty bit in multiple places and clearing
2891 * them concurrently from different threads.
2892 *
2893 * Note! Normally the "folio_mark_dirty(folio)"
2894 * has no effect on the actual dirty bit - since
2895 * that will already usually be set. But we
2896 * need the side effects, and it can help us
2897 * avoid races.
2898 *
2899 * We basically use the folio "master dirty bit"
2900 * as a serialization point for all the different
2901 * threads doing their things.
2902 */
2903 if (folio_mkclean(folio))
2904 folio_mark_dirty(folio);
2905 /*
2906 * We carefully synchronise fault handlers against
2907 * installing a dirty pte and marking the folio dirty
2908 * at this point. We do this by having them hold the
2909 * page lock while dirtying the folio, and folios are
2910 * always locked coming in here, so we get the desired
2911 * exclusion.
2912 */
2913 wb = unlocked_inode_to_wb_begin(inode, &cookie);
2914 if (folio_test_clear_dirty(folio)) {
2915 long nr = folio_nr_pages(folio);
2916 lruvec_stat_mod_folio(folio, NR_FILE_DIRTY, -nr);
2917 if (folio_test_dropbehind(folio))
2918 wb_stat_mod(wb, WB_DONTCACHE_DIRTY, -nr);
2919 zone_stat_mod_folio(folio, NR_ZONE_WRITE_PENDING, -nr);
2920 wb_stat_mod(wb, WB_RECLAIMABLE, -nr);
2921 ret = true;
2922 }
2923 unlocked_inode_to_wb_end(inode, &cookie);
2924 return ret;
2925 }
2926 return folio_test_clear_dirty(folio);
2927 }
2928 EXPORT_SYMBOL(folio_clear_dirty_for_io);
2929
wb_inode_writeback_start(struct bdi_writeback * wb)2930 static void wb_inode_writeback_start(struct bdi_writeback *wb)
2931 {
2932 atomic_inc(&wb->writeback_inodes);
2933 }
2934
wb_inode_writeback_end(struct bdi_writeback * wb)2935 static void wb_inode_writeback_end(struct bdi_writeback *wb)
2936 {
2937 unsigned long flags;
2938 atomic_dec(&wb->writeback_inodes);
2939 /*
2940 * Make sure estimate of writeback throughput gets updated after
2941 * writeback completed. We delay the update by BANDWIDTH_INTERVAL
2942 * (which is the interval other bandwidth updates use for batching) so
2943 * that if multiple inodes end writeback at a similar time, they get
2944 * batched into one bandwidth update.
2945 */
2946 spin_lock_irqsave(&wb->work_lock, flags);
2947 if (test_bit(WB_registered, &wb->state))
2948 queue_delayed_work(bdi_wq, &wb->bw_dwork, BANDWIDTH_INTERVAL);
2949 spin_unlock_irqrestore(&wb->work_lock, flags);
2950 }
2951
__folio_end_writeback(struct folio * folio)2952 bool __folio_end_writeback(struct folio *folio)
2953 {
2954 long nr = folio_nr_pages(folio);
2955 struct address_space *mapping = folio_mapping(folio);
2956 bool ret;
2957
2958 if (mapping && mapping_use_writeback_tags(mapping)) {
2959 struct inode *inode = mapping->host;
2960 struct bdi_writeback *wb;
2961 unsigned long flags;
2962
2963 xa_lock_irqsave(&mapping->i_pages, flags);
2964 ret = folio_xor_flags_has_waiters(folio, 1 << PG_writeback);
2965 __xa_clear_mark(&mapping->i_pages, folio->index,
2966 PAGECACHE_TAG_WRITEBACK);
2967
2968 wb = inode_to_wb(inode);
2969 wb_stat_mod(wb, WB_WRITEBACK, -nr);
2970 __wb_writeout_add(wb, nr);
2971 if (!mapping_tagged(mapping, PAGECACHE_TAG_WRITEBACK)) {
2972 wb_inode_writeback_end(wb);
2973 if (mapping->host)
2974 sb_clear_inode_writeback(mapping->host);
2975 }
2976
2977 xa_unlock_irqrestore(&mapping->i_pages, flags);
2978 } else {
2979 ret = folio_xor_flags_has_waiters(folio, 1 << PG_writeback);
2980 }
2981
2982 lruvec_stat_mod_folio(folio, NR_WRITEBACK, -nr);
2983 zone_stat_mod_folio(folio, NR_ZONE_WRITE_PENDING, -nr);
2984 node_stat_mod_folio(folio, NR_WRITTEN, nr);
2985
2986 return ret;
2987 }
2988
__folio_start_writeback(struct folio * folio,bool keep_write)2989 void __folio_start_writeback(struct folio *folio, bool keep_write)
2990 {
2991 long nr = folio_nr_pages(folio);
2992 struct address_space *mapping = folio_mapping(folio);
2993 int access_ret;
2994
2995 VM_BUG_ON_FOLIO(folio_test_writeback(folio), folio);
2996 VM_BUG_ON_FOLIO(!folio_test_locked(folio), folio);
2997
2998 if (mapping && mapping_use_writeback_tags(mapping)) {
2999 XA_STATE(xas, &mapping->i_pages, folio->index);
3000 struct inode *inode = mapping->host;
3001 struct bdi_writeback *wb;
3002 unsigned long flags;
3003 bool on_wblist;
3004
3005 xas_lock_irqsave(&xas, flags);
3006 xas_load(&xas);
3007 folio_test_set_writeback(folio);
3008
3009 on_wblist = mapping_tagged(mapping, PAGECACHE_TAG_WRITEBACK);
3010
3011 xas_set_mark(&xas, PAGECACHE_TAG_WRITEBACK);
3012 wb = inode_to_wb(inode);
3013 wb_stat_mod(wb, WB_WRITEBACK, nr);
3014 if (!on_wblist) {
3015 wb_inode_writeback_start(wb);
3016 /*
3017 * We can come through here when swapping anonymous
3018 * folios, so we don't necessarily have an inode to
3019 * track for sync.
3020 */
3021 if (mapping->host)
3022 sb_mark_inode_writeback(mapping->host);
3023 }
3024
3025 if (!folio_test_dirty(folio))
3026 xas_clear_mark(&xas, PAGECACHE_TAG_DIRTY);
3027 if (!keep_write)
3028 xas_clear_mark(&xas, PAGECACHE_TAG_TOWRITE);
3029 xas_unlock_irqrestore(&xas, flags);
3030 } else {
3031 folio_test_set_writeback(folio);
3032 }
3033
3034 lruvec_stat_mod_folio(folio, NR_WRITEBACK, nr);
3035 zone_stat_mod_folio(folio, NR_ZONE_WRITE_PENDING, nr);
3036
3037 access_ret = arch_make_folio_accessible(folio);
3038 /*
3039 * If writeback has been triggered on a page that cannot be made
3040 * accessible, it is too late to recover here.
3041 */
3042 VM_BUG_ON_FOLIO(access_ret != 0, folio);
3043 }
3044 EXPORT_SYMBOL(__folio_start_writeback);
3045
3046 /**
3047 * folio_wait_writeback - Wait for a folio to finish writeback.
3048 * @folio: The folio to wait for.
3049 *
3050 * If the folio is currently being written back to storage, wait for the
3051 * I/O to complete.
3052 *
3053 * Context: Sleeps. Must be called in process context and with
3054 * no spinlocks held. Caller should hold a reference on the folio.
3055 * If the folio is not locked, writeback may start again after writeback
3056 * has finished.
3057 */
folio_wait_writeback(struct folio * folio)3058 void folio_wait_writeback(struct folio *folio)
3059 {
3060 while (folio_test_writeback(folio)) {
3061 trace_folio_wait_writeback(folio, folio_mapping(folio));
3062 folio_wait_bit(folio, PG_writeback);
3063 }
3064 }
3065 EXPORT_SYMBOL_GPL(folio_wait_writeback);
3066
3067 /**
3068 * folio_wait_writeback_killable - Wait for a folio to finish writeback.
3069 * @folio: The folio to wait for.
3070 *
3071 * If the folio is currently being written back to storage, wait for the
3072 * I/O to complete or a fatal signal to arrive.
3073 *
3074 * Context: Sleeps. Must be called in process context and with
3075 * no spinlocks held. Caller should hold a reference on the folio.
3076 * If the folio is not locked, writeback may start again after writeback
3077 * has finished.
3078 * Return: 0 on success, -EINTR if we get a fatal signal while waiting.
3079 */
folio_wait_writeback_killable(struct folio * folio)3080 int folio_wait_writeback_killable(struct folio *folio)
3081 {
3082 while (folio_test_writeback(folio)) {
3083 trace_folio_wait_writeback(folio, folio_mapping(folio));
3084 if (folio_wait_bit_killable(folio, PG_writeback))
3085 return -EINTR;
3086 }
3087
3088 return 0;
3089 }
3090 EXPORT_SYMBOL_GPL(folio_wait_writeback_killable);
3091
3092 /**
3093 * folio_wait_stable() - wait for writeback to finish, if necessary.
3094 * @folio: The folio to wait on.
3095 *
3096 * This function determines if the given folio is related to a backing
3097 * device that requires folio contents to be held stable during writeback.
3098 * If so, then it will wait for any pending writeback to complete.
3099 *
3100 * Context: Sleeps. Must be called in process context and with
3101 * no spinlocks held. Caller should hold a reference on the folio.
3102 * If the folio is not locked, writeback may start again after writeback
3103 * has finished.
3104 */
folio_wait_stable(struct folio * folio)3105 void folio_wait_stable(struct folio *folio)
3106 {
3107 if (mapping_stable_writes(folio_mapping(folio)))
3108 folio_wait_writeback(folio);
3109 }
3110 EXPORT_SYMBOL_GPL(folio_wait_stable);
3111