1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * linux/mm/compaction.c
4 *
5 * Memory compaction for the reduction of external fragmentation. Note that
6 * this heavily depends upon page migration to do all the real heavy
7 * lifting
8 *
9 * Copyright IBM Corp. 2007-2010 Mel Gorman <mel@csn.ul.ie>
10 */
11 #include <linux/cpu.h>
12 #include <linux/swap.h>
13 #include <linux/migrate.h>
14 #include <linux/compaction.h>
15 #include <linux/mm_inline.h>
16 #include <linux/sched/signal.h>
17 #include <linux/backing-dev.h>
18 #include <linux/sysctl.h>
19 #include <linux/sysfs.h>
20 #include <linux/page-isolation.h>
21 #include <linux/kasan.h>
22 #include <linux/kthread.h>
23 #include <linux/freezer.h>
24 #include <linux/page_owner.h>
25 #include <linux/psi.h>
26 #include <linux/cpuset.h>
27 #include "internal.h"
28
29 #ifdef CONFIG_COMPACTION
30 /*
31 * Fragmentation score check interval for proactive compaction purposes.
32 */
33 #define HPAGE_FRAG_CHECK_INTERVAL_MSEC (500)
34
count_compact_event(enum vm_event_item item)35 static inline void count_compact_event(enum vm_event_item item)
36 {
37 count_vm_event(item);
38 }
39
count_compact_events(enum vm_event_item item,long delta)40 static inline void count_compact_events(enum vm_event_item item, long delta)
41 {
42 count_vm_events(item, delta);
43 }
44
45 /*
46 * order == -1 is expected when compacting proactively via
47 * 1. /proc/sys/vm/compact_memory
48 * 2. /sys/devices/system/node/nodex/compact
49 * 3. /proc/sys/vm/compaction_proactiveness
50 */
is_via_compact_memory(int order)51 static inline bool is_via_compact_memory(int order)
52 {
53 return order == -1;
54 }
55
56 #else
57 #define count_compact_event(item) do { } while (0)
58 #define count_compact_events(item, delta) do { } while (0)
is_via_compact_memory(int order)59 static inline bool is_via_compact_memory(int order) { return false; }
60 #endif
61
62 #if defined CONFIG_COMPACTION || defined CONFIG_CMA
63
64 #define CREATE_TRACE_POINTS
65 #include <trace/events/compaction.h>
66
67 #define block_start_pfn(pfn, order) round_down(pfn, 1UL << (order))
68 #define block_end_pfn(pfn, order) ALIGN((pfn) + 1, 1UL << (order))
69
70 /*
71 * Page order with-respect-to which proactive compaction
72 * calculates external fragmentation, which is used as
73 * the "fragmentation score" of a node/zone.
74 */
75 #if defined CONFIG_TRANSPARENT_HUGEPAGE
76 #define COMPACTION_HPAGE_ORDER HPAGE_PMD_ORDER
77 #elif defined CONFIG_HUGETLBFS
78 #define COMPACTION_HPAGE_ORDER HUGETLB_PAGE_ORDER
79 #else
80 #define COMPACTION_HPAGE_ORDER (PMD_SHIFT - PAGE_SHIFT)
81 #endif
82
mark_allocated_noprof(struct page * page,unsigned int order,gfp_t gfp_flags)83 static struct page *mark_allocated_noprof(struct page *page, unsigned int order, gfp_t gfp_flags)
84 {
85 post_alloc_hook(page, order, __GFP_MOVABLE);
86 set_page_refcounted(page);
87 return page;
88 }
89 #define mark_allocated(...) alloc_hooks(mark_allocated_noprof(__VA_ARGS__))
90
release_free_list(struct list_head * freepages)91 static unsigned long release_free_list(struct list_head *freepages)
92 {
93 int order;
94 unsigned long high_pfn = 0;
95
96 for (order = 0; order < NR_PAGE_ORDERS; order++) {
97 struct page *page, *next;
98
99 list_for_each_entry_safe(page, next, &freepages[order], lru) {
100 unsigned long pfn = page_to_pfn(page);
101
102 list_del(&page->lru);
103 /*
104 * Convert free pages into post allocation pages, so
105 * that we can free them via __free_page.
106 */
107 mark_allocated(page, order, __GFP_MOVABLE);
108 __free_pages(page, order);
109 if (pfn > high_pfn)
110 high_pfn = pfn;
111 }
112 }
113 return high_pfn;
114 }
115
116 #ifdef CONFIG_COMPACTION
117
118 /* Do not skip compaction more than 64 times */
119 #define COMPACT_MAX_DEFER_SHIFT 6
120
121 /*
122 * Compaction is deferred when compaction fails to result in a page
123 * allocation success. 1 << compact_defer_shift, compactions are skipped up
124 * to a limit of 1 << COMPACT_MAX_DEFER_SHIFT
125 */
defer_compaction(struct zone * zone,int order)126 static void defer_compaction(struct zone *zone, int order)
127 {
128 zone->compact_considered = 0;
129 zone->compact_defer_shift++;
130
131 if (order < zone->compact_order_failed)
132 zone->compact_order_failed = order;
133
134 if (zone->compact_defer_shift > COMPACT_MAX_DEFER_SHIFT)
135 zone->compact_defer_shift = COMPACT_MAX_DEFER_SHIFT;
136
137 trace_mm_compaction_defer_compaction(zone, order);
138 }
139
140 /* Returns true if compaction should be skipped this time */
compaction_deferred(struct zone * zone,int order)141 static bool compaction_deferred(struct zone *zone, int order)
142 {
143 unsigned long defer_limit = 1UL << zone->compact_defer_shift;
144
145 if (order < zone->compact_order_failed)
146 return false;
147
148 /* Avoid possible overflow */
149 if (++zone->compact_considered >= defer_limit) {
150 zone->compact_considered = defer_limit;
151 return false;
152 }
153
154 trace_mm_compaction_deferred(zone, order);
155
156 return true;
157 }
158
159 /*
160 * Update defer tracking counters after successful compaction of given order,
161 * which means an allocation either succeeded (alloc_success == true) or is
162 * expected to succeed.
163 */
compaction_defer_reset(struct zone * zone,int order,bool alloc_success)164 void compaction_defer_reset(struct zone *zone, int order,
165 bool alloc_success)
166 {
167 if (alloc_success) {
168 zone->compact_considered = 0;
169 zone->compact_defer_shift = 0;
170 }
171 if (order >= zone->compact_order_failed)
172 zone->compact_order_failed = order + 1;
173
174 trace_mm_compaction_defer_reset(zone, order);
175 }
176
177 /* Returns true if restarting compaction after many failures */
compaction_restarting(struct zone * zone,int order)178 static bool compaction_restarting(struct zone *zone, int order)
179 {
180 if (order < zone->compact_order_failed)
181 return false;
182
183 return zone->compact_defer_shift == COMPACT_MAX_DEFER_SHIFT &&
184 zone->compact_considered >= 1UL << zone->compact_defer_shift;
185 }
186
187 /* Returns true if the pageblock should be scanned for pages to isolate. */
isolation_suitable(struct compact_control * cc,struct page * page)188 static inline bool isolation_suitable(struct compact_control *cc,
189 struct page *page)
190 {
191 if (cc->ignore_skip_hint)
192 return true;
193
194 return !get_pageblock_skip(page);
195 }
196
reset_cached_positions(struct zone * zone)197 static void reset_cached_positions(struct zone *zone)
198 {
199 zone->compact_cached_migrate_pfn[0] = zone->zone_start_pfn;
200 zone->compact_cached_migrate_pfn[1] = zone->zone_start_pfn;
201 zone->compact_cached_free_pfn =
202 pageblock_start_pfn(zone_end_pfn(zone) - 1);
203 }
204
205 #ifdef CONFIG_SPARSEMEM
206 /*
207 * If the PFN falls into an offline section, return the start PFN of the
208 * next online section. If the PFN falls into an online section or if
209 * there is no next online section, return 0.
210 */
skip_offline_sections(unsigned long start_pfn)211 static unsigned long skip_offline_sections(unsigned long start_pfn)
212 {
213 unsigned long start_nr = pfn_to_section_nr(start_pfn);
214
215 if (online_section_nr(start_nr))
216 return 0;
217
218 while (++start_nr <= __highest_present_section_nr) {
219 if (online_section_nr(start_nr))
220 return section_nr_to_pfn(start_nr);
221 }
222
223 return 0;
224 }
225
226 /*
227 * If the PFN falls into an offline section, return the end PFN of the
228 * next online section in reverse. If the PFN falls into an online section
229 * or if there is no next online section in reverse, return 0.
230 */
skip_offline_sections_reverse(unsigned long start_pfn)231 static unsigned long skip_offline_sections_reverse(unsigned long start_pfn)
232 {
233 unsigned long start_nr = pfn_to_section_nr(start_pfn);
234
235 if (!start_nr || online_section_nr(start_nr))
236 return 0;
237
238 while (start_nr-- > 0) {
239 if (online_section_nr(start_nr))
240 return section_nr_to_pfn(start_nr) + PAGES_PER_SECTION;
241 }
242
243 return 0;
244 }
245 #else
skip_offline_sections(unsigned long start_pfn)246 static unsigned long skip_offline_sections(unsigned long start_pfn)
247 {
248 return 0;
249 }
250
skip_offline_sections_reverse(unsigned long start_pfn)251 static unsigned long skip_offline_sections_reverse(unsigned long start_pfn)
252 {
253 return 0;
254 }
255 #endif
256
257 /*
258 * Compound pages of >= pageblock_order should consistently be skipped until
259 * released. It is always pointless to compact pages of such order (if they are
260 * migratable), and the pageblocks they occupy cannot contain any free pages.
261 */
pageblock_skip_persistent(struct page * page)262 static bool pageblock_skip_persistent(struct page *page)
263 {
264 if (!PageCompound(page))
265 return false;
266
267 page = compound_head(page);
268
269 if (compound_order(page) >= pageblock_order)
270 return true;
271
272 return false;
273 }
274
275 static bool
__reset_isolation_pfn(struct zone * zone,unsigned long pfn,bool check_source,bool check_target)276 __reset_isolation_pfn(struct zone *zone, unsigned long pfn, bool check_source,
277 bool check_target)
278 {
279 struct page *page = pfn_to_online_page(pfn);
280 struct page *block_page;
281 struct page *end_page;
282 unsigned long block_pfn;
283
284 if (!page)
285 return false;
286 if (zone != page_zone(page))
287 return false;
288 if (pageblock_skip_persistent(page))
289 return false;
290
291 /*
292 * If skip is already cleared do no further checking once the
293 * restart points have been set.
294 */
295 if (check_source && check_target && !get_pageblock_skip(page))
296 return true;
297
298 /*
299 * If clearing skip for the target scanner, do not select a
300 * non-movable pageblock as the starting point.
301 */
302 if (!check_source && check_target &&
303 get_pageblock_migratetype(page) != MIGRATE_MOVABLE)
304 return false;
305
306 /* Ensure the start of the pageblock or zone is online and valid */
307 block_pfn = pageblock_start_pfn(pfn);
308 block_pfn = max(block_pfn, zone->zone_start_pfn);
309 block_page = pfn_to_online_page(block_pfn);
310 if (block_page) {
311 page = block_page;
312 pfn = block_pfn;
313 }
314
315 /* Ensure the end of the pageblock or zone is online and valid */
316 block_pfn = pageblock_end_pfn(pfn) - 1;
317 block_pfn = min(block_pfn, zone_end_pfn(zone) - 1);
318 end_page = pfn_to_online_page(block_pfn);
319 if (!end_page)
320 return false;
321
322 /*
323 * Only clear the hint if a sample indicates there is either a
324 * free page or an LRU page in the block. One or other condition
325 * is necessary for the block to be a migration source/target.
326 */
327 do {
328 if (check_source && PageLRU(page)) {
329 clear_pageblock_skip(page);
330 return true;
331 }
332
333 if (check_target && PageBuddy(page)) {
334 clear_pageblock_skip(page);
335 return true;
336 }
337
338 page += (1 << PAGE_ALLOC_COSTLY_ORDER);
339 } while (page <= end_page);
340
341 return false;
342 }
343
344 /*
345 * This function is called to clear all cached information on pageblocks that
346 * should be skipped for page isolation when the migrate and free page scanner
347 * meet.
348 */
__reset_isolation_suitable(struct zone * zone)349 static void __reset_isolation_suitable(struct zone *zone)
350 {
351 unsigned long migrate_pfn = zone->zone_start_pfn;
352 unsigned long free_pfn = zone_end_pfn(zone) - 1;
353 unsigned long reset_migrate = free_pfn;
354 unsigned long reset_free = migrate_pfn;
355 bool source_set = false;
356 bool free_set = false;
357
358 /* Only flush if a full compaction finished recently */
359 if (!zone->compact_blockskip_flush)
360 return;
361
362 zone->compact_blockskip_flush = false;
363
364 /*
365 * Walk the zone and update pageblock skip information. Source looks
366 * for PageLRU while target looks for PageBuddy. When the scanner
367 * is found, both PageBuddy and PageLRU are checked as the pageblock
368 * is suitable as both source and target.
369 */
370 for (; migrate_pfn < free_pfn; migrate_pfn += pageblock_nr_pages,
371 free_pfn -= pageblock_nr_pages) {
372 cond_resched();
373
374 /* Update the migrate PFN */
375 if (__reset_isolation_pfn(zone, migrate_pfn, true, source_set) &&
376 migrate_pfn < reset_migrate) {
377 source_set = true;
378 reset_migrate = migrate_pfn;
379 zone->compact_init_migrate_pfn = reset_migrate;
380 zone->compact_cached_migrate_pfn[0] = reset_migrate;
381 zone->compact_cached_migrate_pfn[1] = reset_migrate;
382 }
383
384 /* Update the free PFN */
385 if (__reset_isolation_pfn(zone, free_pfn, free_set, true) &&
386 free_pfn > reset_free) {
387 free_set = true;
388 reset_free = free_pfn;
389 zone->compact_init_free_pfn = reset_free;
390 zone->compact_cached_free_pfn = reset_free;
391 }
392 }
393
394 /* Leave no distance if no suitable block was reset */
395 if (reset_migrate >= reset_free) {
396 zone->compact_cached_migrate_pfn[0] = migrate_pfn;
397 zone->compact_cached_migrate_pfn[1] = migrate_pfn;
398 zone->compact_cached_free_pfn = free_pfn;
399 }
400 }
401
reset_isolation_suitable(pg_data_t * pgdat)402 void reset_isolation_suitable(pg_data_t *pgdat)
403 {
404 int zoneid;
405
406 for (zoneid = 0; zoneid < MAX_NR_ZONES; zoneid++) {
407 struct zone *zone = &pgdat->node_zones[zoneid];
408 if (!populated_zone(zone))
409 continue;
410
411 __reset_isolation_suitable(zone);
412 }
413 }
414
415 /*
416 * Sets the pageblock skip bit if it was clear. Note that this is a hint as
417 * locks are not required for read/writers. Returns true if it was already set.
418 */
test_and_set_skip(struct compact_control * cc,struct page * page)419 static bool test_and_set_skip(struct compact_control *cc, struct page *page)
420 {
421 bool skip;
422
423 /* Do not update if skip hint is being ignored */
424 if (cc->ignore_skip_hint)
425 return false;
426
427 skip = get_pageblock_skip(page);
428 if (!skip && !cc->no_set_skip_hint)
429 set_pageblock_skip(page);
430
431 return skip;
432 }
433
update_cached_migrate(struct compact_control * cc,unsigned long pfn)434 static void update_cached_migrate(struct compact_control *cc, unsigned long pfn)
435 {
436 struct zone *zone = cc->zone;
437
438 /* Set for isolation rather than compaction */
439 if (cc->no_set_skip_hint)
440 return;
441
442 pfn = pageblock_end_pfn(pfn);
443
444 /* Update where async and sync compaction should restart */
445 if (pfn > zone->compact_cached_migrate_pfn[0])
446 zone->compact_cached_migrate_pfn[0] = pfn;
447 if (cc->mode != MIGRATE_ASYNC &&
448 pfn > zone->compact_cached_migrate_pfn[1])
449 zone->compact_cached_migrate_pfn[1] = pfn;
450 }
451
452 /*
453 * If no pages were isolated then mark this pageblock to be skipped in the
454 * future. The information is later cleared by __reset_isolation_suitable().
455 */
update_pageblock_skip(struct compact_control * cc,struct page * page,unsigned long pfn)456 static void update_pageblock_skip(struct compact_control *cc,
457 struct page *page, unsigned long pfn)
458 {
459 struct zone *zone = cc->zone;
460
461 if (cc->no_set_skip_hint)
462 return;
463
464 set_pageblock_skip(page);
465
466 if (pfn < zone->compact_cached_free_pfn)
467 zone->compact_cached_free_pfn = pfn;
468 }
469 #else
isolation_suitable(struct compact_control * cc,struct page * page)470 static inline bool isolation_suitable(struct compact_control *cc,
471 struct page *page)
472 {
473 return true;
474 }
475
pageblock_skip_persistent(struct page * page)476 static inline bool pageblock_skip_persistent(struct page *page)
477 {
478 return false;
479 }
480
update_pageblock_skip(struct compact_control * cc,struct page * page,unsigned long pfn)481 static inline void update_pageblock_skip(struct compact_control *cc,
482 struct page *page, unsigned long pfn)
483 {
484 }
485
update_cached_migrate(struct compact_control * cc,unsigned long pfn)486 static void update_cached_migrate(struct compact_control *cc, unsigned long pfn)
487 {
488 }
489
test_and_set_skip(struct compact_control * cc,struct page * page)490 static bool test_and_set_skip(struct compact_control *cc, struct page *page)
491 {
492 return false;
493 }
494 #endif /* CONFIG_COMPACTION */
495
496 /*
497 * Compaction requires the taking of some coarse locks that are potentially
498 * very heavily contended. For async compaction, trylock and record if the
499 * lock is contended. The lock will still be acquired but compaction will
500 * abort when the current block is finished regardless of success rate.
501 * Sync compaction acquires the lock.
502 *
503 * Always returns true which makes it easier to track lock state in callers.
504 */
compact_lock_irqsave(spinlock_t * lock,unsigned long * flags,struct compact_control * cc)505 static bool compact_lock_irqsave(spinlock_t *lock, unsigned long *flags,
506 struct compact_control *cc)
507 __acquires(lock)
508 {
509 /* Track if the lock is contended in async mode */
510 if (cc->mode == MIGRATE_ASYNC && !cc->contended) {
511 if (spin_trylock_irqsave(lock, *flags))
512 return true;
513
514 cc->contended = true;
515 }
516
517 spin_lock_irqsave(lock, *flags);
518 return true;
519 }
520
521 static struct lruvec *
compact_folio_lruvec_lock_irqsave(struct folio * folio,unsigned long * flags,struct compact_control * cc)522 compact_folio_lruvec_lock_irqsave(struct folio *folio, unsigned long *flags,
523 struct compact_control *cc)
524 {
525 struct lruvec *lruvec;
526
527 rcu_read_lock();
528 retry:
529 lruvec = folio_lruvec(folio);
530 compact_lock_irqsave(&lruvec->lru_lock, flags, cc);
531 if (unlikely(lruvec_memcg(lruvec) != folio_memcg(folio))) {
532 spin_unlock_irqrestore(&lruvec->lru_lock, *flags);
533 goto retry;
534 }
535
536 return lruvec;
537 }
538
539 /*
540 * Compaction requires the taking of some coarse locks that are potentially
541 * very heavily contended. The lock should be periodically unlocked to avoid
542 * having disabled IRQs for a long time, even when there is nobody waiting on
543 * the lock. It might also be that allowing the IRQs will result in
544 * need_resched() becoming true. If scheduling is needed, compaction schedules.
545 * Either compaction type will also abort if a fatal signal is pending.
546 * In either case if the lock was locked, it is dropped and not regained.
547 *
548 * Returns true if compaction should abort due to fatal signal pending.
549 * Returns false when compaction can continue.
550 */
compact_unlock_should_abort(spinlock_t * lock,unsigned long flags,bool * locked,struct compact_control * cc)551 static bool compact_unlock_should_abort(spinlock_t *lock,
552 unsigned long flags, bool *locked, struct compact_control *cc)
553 {
554 if (*locked) {
555 spin_unlock_irqrestore(lock, flags);
556 *locked = false;
557 }
558
559 if (fatal_signal_pending(current)) {
560 cc->contended = true;
561 return true;
562 }
563
564 cond_resched();
565
566 return false;
567 }
568
569 /*
570 * Isolate free pages onto a private freelist. If @strict is true, will abort
571 * returning 0 on any invalid PFNs or non-free pages inside of the pageblock
572 * (even though it may still end up isolating some pages).
573 */
isolate_freepages_block(struct compact_control * cc,unsigned long * start_pfn,unsigned long end_pfn,struct list_head * freelist,unsigned int stride,bool strict)574 static unsigned long isolate_freepages_block(struct compact_control *cc,
575 unsigned long *start_pfn,
576 unsigned long end_pfn,
577 struct list_head *freelist,
578 unsigned int stride,
579 bool strict)
580 {
581 int nr_scanned = 0, total_isolated = 0;
582 struct page *page;
583 unsigned long flags = 0;
584 bool locked = false;
585 unsigned long blockpfn = *start_pfn;
586 unsigned int order;
587
588 /* Strict mode is for isolation, speed is secondary */
589 if (strict)
590 stride = 1;
591
592 page = pfn_to_page(blockpfn);
593
594 /* Isolate free pages. */
595 for (; blockpfn < end_pfn; blockpfn += stride, page += stride) {
596 int isolated;
597
598 /*
599 * Periodically drop the lock (if held) regardless of its
600 * contention, to give chance to IRQs. Abort if fatal signal
601 * pending.
602 */
603 if (!(blockpfn % COMPACT_CLUSTER_MAX)
604 && compact_unlock_should_abort(&cc->zone->lock, flags,
605 &locked, cc))
606 break;
607
608 nr_scanned++;
609
610 /*
611 * For compound pages such as THP and hugetlbfs, we can save
612 * potentially a lot of iterations if we skip them at once.
613 * The check is racy, but we can consider only valid values
614 * and the only danger is skipping too much.
615 */
616 if (PageCompound(page)) {
617 const unsigned int order = compound_order(page);
618
619 if ((order <= MAX_PAGE_ORDER) &&
620 (blockpfn + (1UL << order) <= end_pfn)) {
621 blockpfn += (1UL << order) - 1;
622 page += (1UL << order) - 1;
623 nr_scanned += (1UL << order) - 1;
624 }
625
626 goto isolate_fail;
627 }
628
629 if (!PageBuddy(page))
630 goto isolate_fail;
631
632 /* If we already hold the lock, we can skip some rechecking. */
633 if (!locked) {
634 locked = compact_lock_irqsave(&cc->zone->lock,
635 &flags, cc);
636
637 /* Recheck this is a buddy page under lock */
638 if (!PageBuddy(page))
639 goto isolate_fail;
640 }
641
642 /* Found a free page, will break it into order-0 pages */
643 order = buddy_order(page);
644 isolated = __isolate_free_page(page, order);
645 if (!isolated)
646 break;
647 set_page_private(page, order);
648
649 nr_scanned += isolated - 1;
650 total_isolated += isolated;
651 cc->nr_freepages += isolated;
652 list_add_tail(&page->lru, &freelist[order]);
653
654 if (!strict && cc->nr_migratepages <= cc->nr_freepages) {
655 blockpfn += isolated;
656 break;
657 }
658 /* Advance to the end of split page */
659 blockpfn += isolated - 1;
660 page += isolated - 1;
661 continue;
662
663 isolate_fail:
664 if (strict)
665 break;
666
667 }
668
669 if (locked)
670 spin_unlock_irqrestore(&cc->zone->lock, flags);
671
672 /*
673 * Be careful to not go outside of the pageblock.
674 */
675 if (unlikely(blockpfn > end_pfn))
676 blockpfn = end_pfn;
677
678 trace_mm_compaction_isolate_freepages(*start_pfn, blockpfn,
679 nr_scanned, total_isolated);
680
681 /* Record how far we have got within the block */
682 *start_pfn = blockpfn;
683
684 /*
685 * If strict isolation is requested by CMA then check that all the
686 * pages requested were isolated. If there were any failures, 0 is
687 * returned and CMA will fail.
688 */
689 if (strict && blockpfn < end_pfn)
690 total_isolated = 0;
691
692 cc->total_free_scanned += nr_scanned;
693 if (total_isolated)
694 count_compact_events(COMPACTISOLATED, total_isolated);
695 return total_isolated;
696 }
697
698 /**
699 * isolate_freepages_range() - isolate free pages.
700 * @cc: Compaction control structure.
701 * @start_pfn: The first PFN to start isolating.
702 * @end_pfn: The one-past-last PFN.
703 *
704 * Non-free pages, invalid PFNs, or zone boundaries within the
705 * [start_pfn, end_pfn) range are considered errors, cause function to
706 * undo its actions and return zero. cc->freepages[] are empty.
707 *
708 * Otherwise, function returns one-past-the-last PFN of isolated page
709 * (which may be greater then end_pfn if end fell in a middle of
710 * a free page). cc->freepages[] contain free pages isolated.
711 */
712 unsigned long
isolate_freepages_range(struct compact_control * cc,unsigned long start_pfn,unsigned long end_pfn)713 isolate_freepages_range(struct compact_control *cc,
714 unsigned long start_pfn, unsigned long end_pfn)
715 {
716 unsigned long isolated, pfn, block_start_pfn, block_end_pfn;
717 int order;
718
719 for (order = 0; order < NR_PAGE_ORDERS; order++)
720 INIT_LIST_HEAD(&cc->freepages[order]);
721
722 pfn = start_pfn;
723 block_start_pfn = pageblock_start_pfn(pfn);
724 if (block_start_pfn < cc->zone->zone_start_pfn)
725 block_start_pfn = cc->zone->zone_start_pfn;
726 block_end_pfn = pageblock_end_pfn(pfn);
727
728 for (; pfn < end_pfn; pfn += isolated,
729 block_start_pfn = block_end_pfn,
730 block_end_pfn += pageblock_nr_pages) {
731 /* Protect pfn from changing by isolate_freepages_block */
732 unsigned long isolate_start_pfn = pfn;
733
734 /*
735 * pfn could pass the block_end_pfn if isolated freepage
736 * is more than pageblock order. In this case, we adjust
737 * scanning range to right one.
738 */
739 if (pfn >= block_end_pfn) {
740 block_start_pfn = pageblock_start_pfn(pfn);
741 block_end_pfn = pageblock_end_pfn(pfn);
742 }
743
744 block_end_pfn = min(block_end_pfn, end_pfn);
745
746 if (!pageblock_pfn_to_page(block_start_pfn,
747 block_end_pfn, cc->zone))
748 break;
749
750 isolated = isolate_freepages_block(cc, &isolate_start_pfn,
751 block_end_pfn, cc->freepages, 0, true);
752
753 /*
754 * In strict mode, isolate_freepages_block() returns 0 if
755 * there are any holes in the block (ie. invalid PFNs or
756 * non-free pages).
757 */
758 if (!isolated)
759 break;
760
761 /*
762 * If we managed to isolate pages, it is always (1 << n) *
763 * pageblock_nr_pages for some non-negative n. (Max order
764 * page may span two pageblocks).
765 */
766 }
767
768 if (pfn < end_pfn) {
769 /* Loop terminated early, cleanup. */
770 release_free_list(cc->freepages);
771 return 0;
772 }
773
774 /* We don't use freelists for anything. */
775 return pfn;
776 }
777
778 /* Similar to reclaim, but different enough that they don't share logic */
too_many_isolated(struct compact_control * cc)779 static bool too_many_isolated(struct compact_control *cc)
780 {
781 pg_data_t *pgdat = cc->zone->zone_pgdat;
782 bool too_many;
783
784 unsigned long active, inactive, isolated;
785
786 inactive = node_page_state(pgdat, NR_INACTIVE_FILE) +
787 node_page_state(pgdat, NR_INACTIVE_ANON);
788 active = node_page_state(pgdat, NR_ACTIVE_FILE) +
789 node_page_state(pgdat, NR_ACTIVE_ANON);
790 isolated = node_page_state(pgdat, NR_ISOLATED_FILE) +
791 node_page_state(pgdat, NR_ISOLATED_ANON);
792
793 /*
794 * Allow GFP_NOFS to isolate past the limit set for regular
795 * compaction runs. This prevents an ABBA deadlock when other
796 * compactors have already isolated to the limit, but are
797 * blocked on filesystem locks held by the GFP_NOFS thread.
798 */
799 if (cc->gfp_mask & __GFP_FS) {
800 inactive >>= 3;
801 active >>= 3;
802 }
803
804 too_many = isolated > (inactive + active) / 2;
805 if (!too_many)
806 wake_throttle_isolated(pgdat);
807
808 return too_many;
809 }
810
811 /**
812 * skip_isolation_on_order() - determine when to skip folio isolation based on
813 * folio order and compaction target order
814 * @order: to-be-isolated folio order
815 * @target_order: compaction target order
816 *
817 * This avoids unnecessary folio isolations during compaction.
818 */
skip_isolation_on_order(int order,int target_order)819 static bool skip_isolation_on_order(int order, int target_order)
820 {
821 /*
822 * Unless we are performing global compaction (i.e.,
823 * is_via_compact_memory), skip any folios that are larger than the
824 * target order: we wouldn't be here if we'd have a free folio with
825 * the desired target_order, so migrating this folio would likely fail
826 * later.
827 */
828 if (!is_via_compact_memory(target_order) && order >= target_order)
829 return true;
830 /*
831 * We limit memory compaction to pageblocks and won't try
832 * creating free blocks of memory that are larger than that.
833 */
834 return order >= pageblock_order;
835 }
836
837 /**
838 * isolate_migratepages_block() - isolate all migrate-able pages within
839 * a single pageblock
840 * @cc: Compaction control structure.
841 * @low_pfn: The first PFN to isolate
842 * @end_pfn: The one-past-the-last PFN to isolate, within same pageblock
843 * @mode: Isolation mode to be used.
844 *
845 * Isolate all pages that can be migrated from the range specified by
846 * [low_pfn, end_pfn). The range is expected to be within same pageblock.
847 * Returns errno, like -EAGAIN or -EINTR in case e.g signal pending or congestion,
848 * -ENOMEM in case we could not allocate a page, or 0.
849 * cc->migrate_pfn will contain the next pfn to scan.
850 *
851 * The pages are isolated on cc->migratepages list (not required to be empty),
852 * and cc->nr_migratepages is updated accordingly.
853 */
854 static int
isolate_migratepages_block(struct compact_control * cc,unsigned long low_pfn,unsigned long end_pfn,isolate_mode_t mode)855 isolate_migratepages_block(struct compact_control *cc, unsigned long low_pfn,
856 unsigned long end_pfn, isolate_mode_t mode)
857 {
858 pg_data_t *pgdat = cc->zone->zone_pgdat;
859 unsigned long nr_scanned = 0, nr_isolated = 0;
860 struct lruvec *lruvec = NULL;
861 unsigned long flags = 0;
862 struct lruvec *locked = NULL;
863 struct folio *folio = NULL;
864 struct page *page = NULL, *valid_page = NULL;
865 struct address_space *mapping;
866 unsigned long start_pfn = low_pfn;
867 bool skip_on_failure = false;
868 unsigned long next_skip_pfn = 0;
869 bool skip_updated = false;
870 int ret = 0;
871
872 cc->migrate_pfn = low_pfn;
873
874 /*
875 * Ensure that there are not too many pages isolated from the LRU
876 * list by either parallel reclaimers or compaction. If there are,
877 * delay for some time until fewer pages are isolated
878 */
879 while (unlikely(too_many_isolated(cc))) {
880 /* stop isolation if there are still pages not migrated */
881 if (cc->nr_migratepages)
882 return -EAGAIN;
883
884 /* async migration should just abort */
885 if (cc->mode == MIGRATE_ASYNC)
886 return -EAGAIN;
887
888 reclaim_throttle(pgdat, VMSCAN_THROTTLE_ISOLATED);
889
890 if (fatal_signal_pending(current))
891 return -EINTR;
892 }
893
894 cond_resched();
895
896 if (cc->direct_compaction && (cc->mode == MIGRATE_ASYNC)) {
897 skip_on_failure = true;
898 next_skip_pfn = block_end_pfn(low_pfn, cc->order);
899 }
900
901 /* Time to isolate some pages for migration */
902 for (; low_pfn < end_pfn; low_pfn++) {
903 bool is_dirty, is_unevictable;
904
905 if (skip_on_failure && low_pfn >= next_skip_pfn) {
906 /*
907 * We have isolated all migration candidates in the
908 * previous order-aligned block, and did not skip it due
909 * to failure. We should migrate the pages now and
910 * hopefully succeed compaction.
911 */
912 if (nr_isolated)
913 break;
914
915 /*
916 * We failed to isolate in the previous order-aligned
917 * block. Set the new boundary to the end of the
918 * current block. Note we can't simply increase
919 * next_skip_pfn by 1 << order, as low_pfn might have
920 * been incremented by a higher number due to skipping
921 * a compound or a high-order buddy page in the
922 * previous loop iteration.
923 */
924 next_skip_pfn = block_end_pfn(low_pfn, cc->order);
925 }
926
927 /*
928 * Periodically drop the lock (if held) regardless of its
929 * contention, to give chance to IRQs. Abort completely if
930 * a fatal signal is pending.
931 */
932 if (!(low_pfn % COMPACT_CLUSTER_MAX)) {
933 if (locked) {
934 lruvec_unlock_irqrestore(locked, flags);
935 locked = NULL;
936 }
937
938 if (fatal_signal_pending(current)) {
939 cc->contended = true;
940 ret = -EINTR;
941
942 goto fatal_pending;
943 }
944
945 cond_resched();
946 }
947
948 nr_scanned++;
949
950 page = pfn_to_page(low_pfn);
951
952 /*
953 * Check if the pageblock has already been marked skipped.
954 * Only the first PFN is checked as the caller isolates
955 * COMPACT_CLUSTER_MAX at a time so the second call must
956 * not falsely conclude that the block should be skipped.
957 */
958 if (!valid_page && (pageblock_aligned(low_pfn) ||
959 low_pfn == cc->zone->zone_start_pfn)) {
960 if (!isolation_suitable(cc, page)) {
961 low_pfn = end_pfn;
962 folio = NULL;
963 goto isolate_abort;
964 }
965 valid_page = page;
966 }
967
968 if (PageHuge(page)) {
969 const unsigned int order = compound_order(page);
970 /*
971 * skip hugetlbfs if we are not compacting for pages
972 * bigger than its order. THPs and other compound pages
973 * are handled below.
974 */
975 if (!cc->alloc_contig) {
976
977 if (order <= MAX_PAGE_ORDER) {
978 low_pfn += (1UL << order) - 1;
979 nr_scanned += (1UL << order) - 1;
980 }
981 goto isolate_fail;
982 }
983 /* for alloc_contig case */
984 if (locked) {
985 lruvec_unlock_irqrestore(locked, flags);
986 locked = NULL;
987 }
988
989 folio = page_folio(page);
990 ret = isolate_or_dissolve_huge_folio(folio, &cc->migratepages);
991
992 /*
993 * Fail isolation in case isolate_or_dissolve_huge_folio()
994 * reports an error. In case of -ENOMEM, abort right away.
995 */
996 if (ret < 0) {
997 /* Do not report -EBUSY down the chain */
998 if (ret == -EBUSY)
999 ret = 0;
1000 low_pfn += (1UL << order) - 1;
1001 nr_scanned += (1UL << order) - 1;
1002 goto isolate_fail;
1003 }
1004
1005 if (folio_test_hugetlb(folio)) {
1006 /*
1007 * Hugepage was successfully isolated and placed
1008 * on the cc->migratepages list.
1009 */
1010 low_pfn += folio_nr_pages(folio) - folio_page_idx(folio, page) - 1;
1011 goto isolate_success_no_list;
1012 }
1013
1014 /*
1015 * Ok, the hugepage was dissolved. Now these pages are
1016 * Buddy and cannot be re-allocated because they are
1017 * isolated. Fall-through as the check below handles
1018 * Buddy pages.
1019 */
1020 }
1021
1022 /*
1023 * Skip if free. We read page order here without zone lock
1024 * which is generally unsafe, but the race window is small and
1025 * the worst thing that can happen is that we skip some
1026 * potential isolation targets.
1027 */
1028 if (PageBuddy(page)) {
1029 unsigned long freepage_order = buddy_order_unsafe(page);
1030
1031 /*
1032 * Without lock, we cannot be sure that what we got is
1033 * a valid page order. Consider only values in the
1034 * valid order range to prevent low_pfn overflow.
1035 */
1036 if (freepage_order > 0 && freepage_order <= MAX_PAGE_ORDER) {
1037 low_pfn += (1UL << freepage_order) - 1;
1038 nr_scanned += (1UL << freepage_order) - 1;
1039 }
1040 continue;
1041 }
1042
1043 /*
1044 * Regardless of being on LRU, compound pages such as THP
1045 * (hugetlbfs is handled above) are not to be compacted unless
1046 * we are attempting an allocation larger than the compound
1047 * page size. We can potentially save a lot of iterations if we
1048 * skip them at once. The check is racy, but we can consider
1049 * only valid values and the only danger is skipping too much.
1050 */
1051 if (PageCompound(page) && !cc->alloc_contig) {
1052 const unsigned int order = compound_order(page);
1053
1054 /* Skip based on page order and compaction target order. */
1055 if (skip_isolation_on_order(order, cc->order)) {
1056 if (order <= MAX_PAGE_ORDER) {
1057 low_pfn += (1UL << order) - 1;
1058 nr_scanned += (1UL << order) - 1;
1059 }
1060 goto isolate_fail;
1061 }
1062 }
1063
1064 /*
1065 * Check may be lockless but that's ok as we recheck later.
1066 * It's possible to migrate LRU and non-lru movable pages.
1067 * Skip any other type of page
1068 */
1069 if (!PageLRU(page)) {
1070 /* Isolation code will deal with any races. */
1071 if (unlikely(page_has_movable_ops(page)) &&
1072 !PageMovableOpsIsolated(page)) {
1073 if (locked) {
1074 lruvec_unlock_irqrestore(locked, flags);
1075 locked = NULL;
1076 }
1077
1078 if (isolate_movable_ops_page(page, mode)) {
1079 folio = page_folio(page);
1080 goto isolate_success;
1081 }
1082 }
1083
1084 goto isolate_fail;
1085 }
1086
1087 /*
1088 * Be careful not to clear PageLRU until after we're
1089 * sure the page is not being freed elsewhere -- the
1090 * page release code relies on it.
1091 */
1092 folio = folio_get_nontail_page(page);
1093 if (unlikely(!folio))
1094 goto isolate_fail;
1095
1096 /*
1097 * Migration will fail if an anonymous page is pinned in memory,
1098 * so avoid taking lru_lock and isolating it unnecessarily in an
1099 * admittedly racy check.
1100 */
1101 mapping = folio_mapping(folio);
1102 if (!mapping && (folio_ref_count(folio) - 1) > folio_mapcount(folio))
1103 goto isolate_fail_put;
1104
1105 /*
1106 * Only allow to migrate anonymous pages in GFP_NOFS context
1107 * because those do not depend on fs locks.
1108 */
1109 if (!(cc->gfp_mask & __GFP_FS) && mapping)
1110 goto isolate_fail_put;
1111
1112 /* Only take pages on LRU: a check now makes later tests safe */
1113 if (!folio_test_lru(folio))
1114 goto isolate_fail_put;
1115
1116 is_unevictable = folio_test_unevictable(folio);
1117
1118 /* Compaction might skip unevictable pages but CMA takes them */
1119 if (!(mode & ISOLATE_UNEVICTABLE) && is_unevictable)
1120 goto isolate_fail_put;
1121
1122 /*
1123 * To minimise LRU disruption, the caller can indicate with
1124 * ISOLATE_ASYNC_MIGRATE that it only wants to isolate pages
1125 * it will be able to migrate without blocking - clean pages
1126 * for the most part. PageWriteback would require blocking.
1127 */
1128 if ((mode & ISOLATE_ASYNC_MIGRATE) && folio_test_writeback(folio))
1129 goto isolate_fail_put;
1130
1131 is_dirty = folio_test_dirty(folio);
1132
1133 if (((mode & ISOLATE_ASYNC_MIGRATE) && is_dirty) ||
1134 (mapping && is_unevictable)) {
1135 bool migrate_dirty = true;
1136 bool is_inaccessible;
1137
1138 /*
1139 * Only folios without mappings or that have
1140 * a ->migrate_folio callback are possible to migrate
1141 * without blocking.
1142 *
1143 * Folios from inaccessible mappings are not migratable.
1144 *
1145 * However, we can be racing with truncation, which can
1146 * free the mapping that we need to check. Truncation
1147 * holds the folio lock until after the folio is removed
1148 * from the page so holding it ourselves is sufficient.
1149 *
1150 * To avoid locking the folio just to check inaccessible,
1151 * assume every inaccessible folio is also unevictable,
1152 * which is a cheaper test. If our assumption goes
1153 * wrong, it's not a correctness bug, just potentially
1154 * wasted cycles.
1155 */
1156 if (!folio_trylock(folio))
1157 goto isolate_fail_put;
1158
1159 mapping = folio_mapping(folio);
1160 if ((mode & ISOLATE_ASYNC_MIGRATE) && is_dirty) {
1161 migrate_dirty = !mapping ||
1162 mapping->a_ops->migrate_folio;
1163 }
1164 is_inaccessible = mapping && mapping_inaccessible(mapping);
1165 folio_unlock(folio);
1166 if (!migrate_dirty || is_inaccessible)
1167 goto isolate_fail_put;
1168 }
1169
1170 /* Try isolate the folio */
1171 if (!folio_test_clear_lru(folio))
1172 goto isolate_fail_put;
1173
1174 if (locked)
1175 lruvec = folio_lruvec(folio);
1176
1177 /* If we already hold the lock, we can skip some rechecking */
1178 if (lruvec != locked || !locked) {
1179 if (locked)
1180 lruvec_unlock_irqrestore(locked, flags);
1181
1182 lruvec = compact_folio_lruvec_lock_irqsave(folio, &flags, cc);
1183 locked = lruvec;
1184
1185 /*
1186 * Try get exclusive access under lock. If marked for
1187 * skip, the scan is aborted unless the current context
1188 * is a rescan to reach the end of the pageblock.
1189 */
1190 if (!skip_updated && valid_page) {
1191 skip_updated = true;
1192 if (test_and_set_skip(cc, valid_page) &&
1193 !cc->finish_pageblock) {
1194 low_pfn = end_pfn;
1195 goto isolate_abort;
1196 }
1197 }
1198
1199 /*
1200 * Check LRU folio order under the lock
1201 */
1202 if (unlikely(skip_isolation_on_order(folio_order(folio),
1203 cc->order) &&
1204 !cc->alloc_contig)) {
1205 low_pfn += folio_nr_pages(folio) - 1;
1206 nr_scanned += folio_nr_pages(folio) - 1;
1207 folio_set_lru(folio);
1208 goto isolate_fail_put;
1209 }
1210 }
1211
1212 /* The folio is taken off the LRU */
1213 if (folio_test_large(folio))
1214 low_pfn += folio_nr_pages(folio) - 1;
1215
1216 /* Successfully isolated */
1217 lruvec_del_folio(lruvec, folio);
1218 node_stat_mod_folio(folio,
1219 NR_ISOLATED_ANON + folio_is_file_lru(folio),
1220 folio_nr_pages(folio));
1221
1222 isolate_success:
1223 list_add(&folio->lru, &cc->migratepages);
1224 isolate_success_no_list:
1225 cc->nr_migratepages += folio_nr_pages(folio);
1226 nr_isolated += folio_nr_pages(folio);
1227 nr_scanned += folio_nr_pages(folio) - 1;
1228
1229 /*
1230 * Avoid isolating too much unless this block is being
1231 * fully scanned (e.g. dirty/writeback pages, parallel allocation)
1232 * or a lock is contended. For contention, isolate quickly to
1233 * potentially remove one source of contention.
1234 */
1235 if (cc->nr_migratepages >= COMPACT_CLUSTER_MAX &&
1236 !cc->finish_pageblock && !cc->contended) {
1237 ++low_pfn;
1238 break;
1239 }
1240
1241 continue;
1242
1243 isolate_fail_put:
1244 /* Avoid potential deadlock in freeing page under lru_lock */
1245 if (locked) {
1246 lruvec_unlock_irqrestore(locked, flags);
1247 locked = NULL;
1248 }
1249 folio_put(folio);
1250
1251 isolate_fail:
1252 if (!skip_on_failure && ret != -ENOMEM)
1253 continue;
1254
1255 /*
1256 * We have isolated some pages, but then failed. Release them
1257 * instead of migrating, as we cannot form the cc->order buddy
1258 * page anyway.
1259 */
1260 if (nr_isolated) {
1261 if (locked) {
1262 lruvec_unlock_irqrestore(locked, flags);
1263 locked = NULL;
1264 }
1265 putback_movable_pages(&cc->migratepages);
1266 cc->nr_migratepages = 0;
1267 nr_isolated = 0;
1268 }
1269
1270 if (low_pfn < next_skip_pfn) {
1271 low_pfn = next_skip_pfn - 1;
1272 /*
1273 * The check near the loop beginning would have updated
1274 * next_skip_pfn too, but this is a bit simpler.
1275 */
1276 next_skip_pfn += 1UL << cc->order;
1277 }
1278
1279 if (ret == -ENOMEM)
1280 break;
1281 }
1282
1283 /*
1284 * The PageBuddy() check could have potentially brought us outside
1285 * the range to be scanned.
1286 */
1287 if (unlikely(low_pfn > end_pfn))
1288 low_pfn = end_pfn;
1289
1290 folio = NULL;
1291
1292 isolate_abort:
1293 if (locked)
1294 lruvec_unlock_irqrestore(locked, flags);
1295 if (folio) {
1296 folio_set_lru(folio);
1297 folio_put(folio);
1298 }
1299
1300 /*
1301 * Update the cached scanner pfn once the pageblock has been scanned.
1302 * Pages will either be migrated in which case there is no point
1303 * scanning in the near future or migration failed in which case the
1304 * failure reason may persist. The block is marked for skipping if
1305 * there were no pages isolated in the block or if the block is
1306 * rescanned twice in a row.
1307 */
1308 if (low_pfn == end_pfn && (!nr_isolated || cc->finish_pageblock)) {
1309 if (!cc->no_set_skip_hint && valid_page && !skip_updated)
1310 set_pageblock_skip(valid_page);
1311 update_cached_migrate(cc, low_pfn);
1312 }
1313
1314 trace_mm_compaction_isolate_migratepages(start_pfn, low_pfn,
1315 nr_scanned, nr_isolated);
1316
1317 fatal_pending:
1318 cc->total_migrate_scanned += nr_scanned;
1319 if (nr_isolated)
1320 count_compact_events(COMPACTISOLATED, nr_isolated);
1321
1322 cc->migrate_pfn = low_pfn;
1323
1324 return ret;
1325 }
1326
1327 /**
1328 * isolate_migratepages_range() - isolate migrate-able pages in a PFN range
1329 * @cc: Compaction control structure.
1330 * @start_pfn: The first PFN to start isolating.
1331 * @end_pfn: The one-past-last PFN.
1332 *
1333 * Returns -EAGAIN when contented, -EINTR in case of a signal pending, -ENOMEM
1334 * in case we could not allocate a page, or 0.
1335 */
1336 int
isolate_migratepages_range(struct compact_control * cc,unsigned long start_pfn,unsigned long end_pfn)1337 isolate_migratepages_range(struct compact_control *cc, unsigned long start_pfn,
1338 unsigned long end_pfn)
1339 {
1340 unsigned long pfn, block_start_pfn, block_end_pfn;
1341 int ret = 0;
1342
1343 /* Scan block by block. First and last block may be incomplete */
1344 pfn = start_pfn;
1345 block_start_pfn = pageblock_start_pfn(pfn);
1346 if (block_start_pfn < cc->zone->zone_start_pfn)
1347 block_start_pfn = cc->zone->zone_start_pfn;
1348 block_end_pfn = pageblock_end_pfn(pfn);
1349
1350 for (; pfn < end_pfn; pfn = block_end_pfn,
1351 block_start_pfn = block_end_pfn,
1352 block_end_pfn += pageblock_nr_pages) {
1353
1354 block_end_pfn = min(block_end_pfn, end_pfn);
1355
1356 if (!pageblock_pfn_to_page(block_start_pfn,
1357 block_end_pfn, cc->zone))
1358 continue;
1359
1360 ret = isolate_migratepages_block(cc, pfn, block_end_pfn,
1361 ISOLATE_UNEVICTABLE);
1362
1363 if (ret)
1364 break;
1365
1366 if (cc->nr_migratepages >= COMPACT_CLUSTER_MAX)
1367 break;
1368 }
1369
1370 return ret;
1371 }
1372
1373 #endif /* CONFIG_COMPACTION || CONFIG_CMA */
1374 #ifdef CONFIG_COMPACTION
1375
suitable_migration_source(struct compact_control * cc,struct page * page)1376 static bool suitable_migration_source(struct compact_control *cc,
1377 struct page *page)
1378 {
1379 int block_mt;
1380
1381 if (pageblock_skip_persistent(page))
1382 return false;
1383
1384 if ((cc->mode != MIGRATE_ASYNC) || !cc->direct_compaction)
1385 return true;
1386
1387 block_mt = get_pageblock_migratetype(page);
1388
1389 if (cc->migratetype == MIGRATE_MOVABLE)
1390 return is_migrate_movable(block_mt);
1391 else
1392 return block_mt == cc->migratetype;
1393 }
1394
1395 /* Returns true if the page is within a block suitable for migration to */
suitable_migration_target(struct compact_control * cc,struct page * page)1396 static bool suitable_migration_target(struct compact_control *cc,
1397 struct page *page)
1398 {
1399 /* If the page is a large free page, then disallow migration */
1400 if (PageBuddy(page)) {
1401 int order = cc->order > 0 ? cc->order : pageblock_order;
1402
1403 /*
1404 * We are checking page_order without zone->lock taken. But
1405 * the only small danger is that we skip a potentially suitable
1406 * pageblock, so it's not worth to check order for valid range.
1407 */
1408 if (buddy_order_unsafe(page) >= order)
1409 return false;
1410 }
1411
1412 if (cc->ignore_block_suitable)
1413 return true;
1414
1415 /* If the block is MIGRATE_MOVABLE or MIGRATE_CMA, allow migration */
1416 if (is_migrate_movable(get_pageblock_migratetype(page)))
1417 return true;
1418
1419 /* Otherwise skip the block */
1420 return false;
1421 }
1422
1423 static inline unsigned int
freelist_scan_limit(struct compact_control * cc)1424 freelist_scan_limit(struct compact_control *cc)
1425 {
1426 unsigned short shift = BITS_PER_LONG - 1;
1427
1428 return (COMPACT_CLUSTER_MAX >> min(shift, cc->fast_search_fail)) + 1;
1429 }
1430
1431 /*
1432 * Test whether the free scanner has reached the same or lower pageblock than
1433 * the migration scanner, and compaction should thus terminate.
1434 */
compact_scanners_met(struct compact_control * cc)1435 static inline bool compact_scanners_met(struct compact_control *cc)
1436 {
1437 return (cc->free_pfn >> pageblock_order)
1438 <= (cc->migrate_pfn >> pageblock_order);
1439 }
1440
1441 /*
1442 * Used when scanning for a suitable migration target which scans freelists
1443 * in reverse. Reorders the list such as the unscanned pages are scanned
1444 * first on the next iteration of the free scanner
1445 */
1446 static void
move_freelist_head(struct list_head * freelist,struct page * freepage)1447 move_freelist_head(struct list_head *freelist, struct page *freepage)
1448 {
1449 LIST_HEAD(sublist);
1450
1451 if (!list_is_first(&freepage->buddy_list, freelist)) {
1452 list_cut_before(&sublist, freelist, &freepage->buddy_list);
1453 list_splice_tail(&sublist, freelist);
1454 }
1455 }
1456
1457 /*
1458 * Similar to move_freelist_head except used by the migration scanner
1459 * when scanning forward. It's possible for these list operations to
1460 * move against each other if they search the free list exactly in
1461 * lockstep.
1462 */
1463 static void
move_freelist_tail(struct list_head * freelist,struct page * freepage)1464 move_freelist_tail(struct list_head *freelist, struct page *freepage)
1465 {
1466 LIST_HEAD(sublist);
1467
1468 if (!list_is_last(&freepage->buddy_list, freelist)) {
1469 list_cut_position(&sublist, freelist, &freepage->buddy_list);
1470 list_splice_tail(&sublist, freelist);
1471 }
1472 }
1473
1474 static void
fast_isolate_around(struct compact_control * cc,unsigned long pfn)1475 fast_isolate_around(struct compact_control *cc, unsigned long pfn)
1476 {
1477 unsigned long start_pfn, end_pfn;
1478 struct page *page;
1479
1480 /* Do not search around if there are enough pages already */
1481 if (cc->nr_freepages >= cc->nr_migratepages)
1482 return;
1483
1484 /* Minimise scanning during async compaction */
1485 if (cc->direct_compaction && cc->mode == MIGRATE_ASYNC)
1486 return;
1487
1488 /* Pageblock boundaries */
1489 start_pfn = max(pageblock_start_pfn(pfn), cc->zone->zone_start_pfn);
1490 end_pfn = min(pageblock_end_pfn(pfn), zone_end_pfn(cc->zone));
1491
1492 page = pageblock_pfn_to_page(start_pfn, end_pfn, cc->zone);
1493 if (!page)
1494 return;
1495
1496 isolate_freepages_block(cc, &start_pfn, end_pfn, cc->freepages, 1, false);
1497
1498 /* Skip this pageblock in the future as it's full or nearly full */
1499 if (start_pfn == end_pfn && !cc->no_set_skip_hint)
1500 set_pageblock_skip(page);
1501 }
1502
1503 /* Search orders in round-robin fashion */
next_search_order(struct compact_control * cc,int order)1504 static int next_search_order(struct compact_control *cc, int order)
1505 {
1506 order--;
1507 if (order < 0)
1508 order = cc->order - 1;
1509
1510 /* Search wrapped around? */
1511 if (order == cc->search_order) {
1512 cc->search_order--;
1513 if (cc->search_order < 0)
1514 cc->search_order = cc->order - 1;
1515 return -1;
1516 }
1517
1518 return order;
1519 }
1520
fast_isolate_freepages(struct compact_control * cc)1521 static void fast_isolate_freepages(struct compact_control *cc)
1522 {
1523 unsigned int limit = max(1U, freelist_scan_limit(cc) >> 1);
1524 unsigned int nr_scanned = 0, total_isolated = 0;
1525 unsigned long low_pfn, min_pfn, highest = 0;
1526 unsigned long nr_isolated = 0;
1527 unsigned long distance;
1528 struct page *page = NULL;
1529 bool scan_start = false;
1530 int order;
1531
1532 /* Full compaction passes in a negative order */
1533 if (cc->order <= 0)
1534 return;
1535
1536 /*
1537 * If starting the scan, use a deeper search and use the highest
1538 * PFN found if a suitable one is not found.
1539 */
1540 if (cc->free_pfn >= cc->zone->compact_init_free_pfn) {
1541 limit = pageblock_nr_pages >> 1;
1542 scan_start = true;
1543 }
1544
1545 /*
1546 * Preferred point is in the top quarter of the scan space but take
1547 * a pfn from the top half if the search is problematic.
1548 */
1549 distance = (cc->free_pfn - cc->migrate_pfn);
1550 low_pfn = pageblock_start_pfn(cc->free_pfn - (distance >> 2));
1551 min_pfn = pageblock_start_pfn(cc->free_pfn - (distance >> 1));
1552
1553 if (WARN_ON_ONCE(min_pfn > low_pfn))
1554 low_pfn = min_pfn;
1555
1556 /*
1557 * Search starts from the last successful isolation order or the next
1558 * order to search after a previous failure
1559 */
1560 cc->search_order = min_t(unsigned int, cc->order - 1, cc->search_order);
1561
1562 for (order = cc->search_order;
1563 !page && order >= 0;
1564 order = next_search_order(cc, order)) {
1565 struct free_area *area = &cc->zone->free_area[order];
1566 struct list_head *freelist;
1567 struct page *freepage;
1568 unsigned long flags;
1569 unsigned int order_scanned = 0;
1570 unsigned long high_pfn = 0;
1571
1572 if (!area->nr_free)
1573 continue;
1574
1575 spin_lock_irqsave(&cc->zone->lock, flags);
1576 freelist = &area->free_list[MIGRATE_MOVABLE];
1577 list_for_each_entry_reverse(freepage, freelist, buddy_list) {
1578 unsigned long pfn;
1579
1580 order_scanned++;
1581 nr_scanned++;
1582 pfn = page_to_pfn(freepage);
1583
1584 if (pfn >= highest)
1585 highest = max(pageblock_start_pfn(pfn),
1586 cc->zone->zone_start_pfn);
1587
1588 if (pfn >= low_pfn) {
1589 cc->fast_search_fail = 0;
1590 cc->search_order = order;
1591 page = freepage;
1592 break;
1593 }
1594
1595 if (pfn >= min_pfn && pfn > high_pfn) {
1596 high_pfn = pfn;
1597
1598 /* Shorten the scan if a candidate is found */
1599 limit >>= 1;
1600 }
1601
1602 if (order_scanned >= limit)
1603 break;
1604 }
1605
1606 /* Use a maximum candidate pfn if a preferred one was not found */
1607 if (!page && high_pfn) {
1608 page = pfn_to_page(high_pfn);
1609
1610 /* Update freepage for the list reorder below */
1611 freepage = page;
1612 }
1613
1614 /* Reorder to so a future search skips recent pages */
1615 move_freelist_head(freelist, freepage);
1616
1617 /* Isolate the page if available */
1618 if (page) {
1619 if (__isolate_free_page(page, order)) {
1620 set_page_private(page, order);
1621 nr_isolated = 1 << order;
1622 nr_scanned += nr_isolated - 1;
1623 total_isolated += nr_isolated;
1624 cc->nr_freepages += nr_isolated;
1625 list_add_tail(&page->lru, &cc->freepages[order]);
1626 count_compact_events(COMPACTISOLATED, nr_isolated);
1627 } else {
1628 /* If isolation fails, abort the search */
1629 order = cc->search_order + 1;
1630 page = NULL;
1631 }
1632 }
1633
1634 spin_unlock_irqrestore(&cc->zone->lock, flags);
1635
1636 /* Skip fast search if enough freepages isolated */
1637 if (cc->nr_freepages >= cc->nr_migratepages)
1638 break;
1639
1640 /*
1641 * Smaller scan on next order so the total scan is related
1642 * to freelist_scan_limit.
1643 */
1644 if (order_scanned >= limit)
1645 limit = max(1U, limit >> 1);
1646 }
1647
1648 trace_mm_compaction_fast_isolate_freepages(min_pfn, cc->free_pfn,
1649 nr_scanned, total_isolated);
1650
1651 if (!page) {
1652 cc->fast_search_fail++;
1653 if (scan_start) {
1654 /*
1655 * Use the highest PFN found above min. If one was
1656 * not found, be pessimistic for direct compaction
1657 * and use the min mark.
1658 */
1659 if (highest >= min_pfn) {
1660 page = pfn_to_page(highest);
1661 cc->free_pfn = highest;
1662 } else {
1663 if (cc->direct_compaction && pfn_valid(min_pfn)) {
1664 page = pageblock_pfn_to_page(min_pfn,
1665 min(pageblock_end_pfn(min_pfn),
1666 zone_end_pfn(cc->zone)),
1667 cc->zone);
1668 if (page && !suitable_migration_target(cc, page))
1669 page = NULL;
1670
1671 cc->free_pfn = min_pfn;
1672 }
1673 }
1674 }
1675 }
1676
1677 if (highest && highest >= cc->zone->compact_cached_free_pfn) {
1678 highest -= pageblock_nr_pages;
1679 cc->zone->compact_cached_free_pfn = highest;
1680 }
1681
1682 cc->total_free_scanned += nr_scanned;
1683 if (!page)
1684 return;
1685
1686 low_pfn = page_to_pfn(page);
1687 fast_isolate_around(cc, low_pfn);
1688 }
1689
1690 /*
1691 * Based on information in the current compact_control, find blocks
1692 * suitable for isolating free pages from and then isolate them.
1693 */
isolate_freepages(struct compact_control * cc)1694 static void isolate_freepages(struct compact_control *cc)
1695 {
1696 struct zone *zone = cc->zone;
1697 struct page *page;
1698 unsigned long block_start_pfn; /* start of current pageblock */
1699 unsigned long isolate_start_pfn; /* exact pfn we start at */
1700 unsigned long block_end_pfn; /* end of current pageblock */
1701 unsigned long low_pfn; /* lowest pfn scanner is able to scan */
1702 unsigned int stride;
1703
1704 /* Try a small search of the free lists for a candidate */
1705 fast_isolate_freepages(cc);
1706 if (cc->nr_freepages)
1707 return;
1708
1709 /*
1710 * Initialise the free scanner. The starting point is where we last
1711 * successfully isolated from, zone-cached value, or the end of the
1712 * zone when isolating for the first time. For looping we also need
1713 * this pfn aligned down to the pageblock boundary, because we do
1714 * block_start_pfn -= pageblock_nr_pages in the for loop.
1715 * For ending point, take care when isolating in last pageblock of a
1716 * zone which ends in the middle of a pageblock.
1717 * The low boundary is the end of the pageblock the migration scanner
1718 * is using.
1719 */
1720 isolate_start_pfn = cc->free_pfn;
1721 block_start_pfn = pageblock_start_pfn(isolate_start_pfn);
1722 block_end_pfn = min(block_start_pfn + pageblock_nr_pages,
1723 zone_end_pfn(zone));
1724 low_pfn = pageblock_end_pfn(cc->migrate_pfn);
1725 stride = cc->mode == MIGRATE_ASYNC ? COMPACT_CLUSTER_MAX : 1;
1726
1727 /*
1728 * Isolate free pages until enough are available to migrate the
1729 * pages on cc->migratepages. We stop searching if the migrate
1730 * and free page scanners meet or enough free pages are isolated.
1731 */
1732 for (; block_start_pfn >= low_pfn;
1733 block_end_pfn = block_start_pfn,
1734 block_start_pfn -= pageblock_nr_pages,
1735 isolate_start_pfn = block_start_pfn) {
1736 unsigned long nr_isolated;
1737
1738 /*
1739 * This can iterate a massively long zone without finding any
1740 * suitable migration targets, so periodically check resched.
1741 */
1742 if (!(block_start_pfn % (COMPACT_CLUSTER_MAX * pageblock_nr_pages)))
1743 cond_resched();
1744
1745 page = pageblock_pfn_to_page(block_start_pfn, block_end_pfn,
1746 zone);
1747 if (!page) {
1748 unsigned long next_pfn;
1749
1750 next_pfn = skip_offline_sections_reverse(block_start_pfn);
1751 if (next_pfn)
1752 block_start_pfn = max(next_pfn, low_pfn);
1753
1754 continue;
1755 }
1756
1757 /* Check the block is suitable for migration */
1758 if (!suitable_migration_target(cc, page))
1759 continue;
1760
1761 /* If isolation recently failed, do not retry */
1762 if (!isolation_suitable(cc, page))
1763 continue;
1764
1765 /* Found a block suitable for isolating free pages from. */
1766 nr_isolated = isolate_freepages_block(cc, &isolate_start_pfn,
1767 block_end_pfn, cc->freepages, stride, false);
1768
1769 /* Update the skip hint if the full pageblock was scanned */
1770 if (isolate_start_pfn == block_end_pfn)
1771 update_pageblock_skip(cc, page, block_start_pfn -
1772 pageblock_nr_pages);
1773
1774 /* Are enough freepages isolated? */
1775 if (cc->nr_freepages >= cc->nr_migratepages) {
1776 if (isolate_start_pfn >= block_end_pfn) {
1777 /*
1778 * Restart at previous pageblock if more
1779 * freepages can be isolated next time.
1780 */
1781 isolate_start_pfn =
1782 block_start_pfn - pageblock_nr_pages;
1783 }
1784 break;
1785 } else if (isolate_start_pfn < block_end_pfn) {
1786 /*
1787 * If isolation failed early, do not continue
1788 * needlessly.
1789 */
1790 break;
1791 }
1792
1793 /* Adjust stride depending on isolation */
1794 if (nr_isolated) {
1795 stride = 1;
1796 continue;
1797 }
1798 stride = min_t(unsigned int, COMPACT_CLUSTER_MAX, stride << 1);
1799 }
1800
1801 /*
1802 * Record where the free scanner will restart next time. Either we
1803 * broke from the loop and set isolate_start_pfn based on the last
1804 * call to isolate_freepages_block(), or we met the migration scanner
1805 * and the loop terminated due to isolate_start_pfn < low_pfn
1806 */
1807 cc->free_pfn = isolate_start_pfn;
1808 }
1809
1810 /*
1811 * This is a migrate-callback that "allocates" freepages by taking pages
1812 * from the isolated freelists in the block we are migrating to.
1813 */
compaction_alloc_noprof(struct folio * src,unsigned long data)1814 static struct folio *compaction_alloc_noprof(struct folio *src, unsigned long data)
1815 {
1816 struct compact_control *cc = (struct compact_control *)data;
1817 struct folio *dst;
1818 int order = folio_order(src);
1819 bool has_isolated_pages = false;
1820 int start_order;
1821 struct page *freepage;
1822 unsigned long size;
1823
1824 again:
1825 for (start_order = order; start_order < NR_PAGE_ORDERS; start_order++)
1826 if (!list_empty(&cc->freepages[start_order]))
1827 break;
1828
1829 /* no free pages in the list */
1830 if (start_order == NR_PAGE_ORDERS) {
1831 if (has_isolated_pages)
1832 return NULL;
1833 isolate_freepages(cc);
1834 has_isolated_pages = true;
1835 goto again;
1836 }
1837
1838 freepage = list_first_entry(&cc->freepages[start_order], struct page,
1839 lru);
1840 size = 1 << start_order;
1841
1842 list_del(&freepage->lru);
1843
1844 while (start_order > order) {
1845 start_order--;
1846 size >>= 1;
1847
1848 list_add(&freepage[size].lru, &cc->freepages[start_order]);
1849 set_page_private(&freepage[size], start_order);
1850 }
1851 dst = (struct folio *)freepage;
1852
1853 post_alloc_hook(&dst->page, order, __GFP_MOVABLE);
1854 set_page_refcounted(&dst->page);
1855 if (order)
1856 prep_compound_page(&dst->page, order);
1857 cc->nr_freepages -= 1 << order;
1858 cc->nr_migratepages -= 1 << order;
1859 return page_rmappable_folio(&dst->page);
1860 }
1861
compaction_alloc(struct folio * src,unsigned long data)1862 static struct folio *compaction_alloc(struct folio *src, unsigned long data)
1863 {
1864 return alloc_hooks(compaction_alloc_noprof(src, data));
1865 }
1866
1867 /*
1868 * This is a migrate-callback that "frees" freepages back to the isolated
1869 * freelist. All pages on the freelist are from the same zone, so there is no
1870 * special handling needed for NUMA.
1871 */
compaction_free(struct folio * dst,unsigned long data)1872 static void compaction_free(struct folio *dst, unsigned long data)
1873 {
1874 struct compact_control *cc = (struct compact_control *)data;
1875 int order = folio_order(dst);
1876 struct page *page = &dst->page;
1877
1878 if (folio_put_testzero(dst)) {
1879 free_pages_prepare(page, order);
1880 list_add(&dst->lru, &cc->freepages[order]);
1881 cc->nr_freepages += 1 << order;
1882 }
1883 cc->nr_migratepages += 1 << order;
1884 /*
1885 * someone else has referenced the page, we cannot take it back to our
1886 * free list.
1887 */
1888 }
1889
1890 /* possible outcome of isolate_migratepages */
1891 typedef enum {
1892 ISOLATE_ABORT, /* Abort compaction now */
1893 ISOLATE_NONE, /* No pages isolated, continue scanning */
1894 ISOLATE_SUCCESS, /* Pages isolated, migrate */
1895 } isolate_migrate_t;
1896
1897 /*
1898 * Allow userspace to control policy on scanning the unevictable LRU for
1899 * compactable pages.
1900 */
1901 static int sysctl_compact_unevictable_allowed __read_mostly = CONFIG_COMPACT_UNEVICTABLE_DEFAULT;
1902 /*
1903 * Tunable for proactive compaction. It determines how
1904 * aggressively the kernel should compact memory in the
1905 * background. It takes values in the range [0, 100].
1906 */
1907 static unsigned int __read_mostly sysctl_compaction_proactiveness = 20;
1908 static int sysctl_extfrag_threshold = 500;
1909 static int __read_mostly sysctl_compact_memory;
1910
1911 static inline void
update_fast_start_pfn(struct compact_control * cc,unsigned long pfn)1912 update_fast_start_pfn(struct compact_control *cc, unsigned long pfn)
1913 {
1914 if (cc->fast_start_pfn == ULONG_MAX)
1915 return;
1916
1917 if (!cc->fast_start_pfn)
1918 cc->fast_start_pfn = pfn;
1919
1920 cc->fast_start_pfn = min(cc->fast_start_pfn, pfn);
1921 }
1922
1923 static inline unsigned long
reinit_migrate_pfn(struct compact_control * cc)1924 reinit_migrate_pfn(struct compact_control *cc)
1925 {
1926 if (!cc->fast_start_pfn || cc->fast_start_pfn == ULONG_MAX)
1927 return cc->migrate_pfn;
1928
1929 cc->migrate_pfn = cc->fast_start_pfn;
1930 cc->fast_start_pfn = ULONG_MAX;
1931
1932 return cc->migrate_pfn;
1933 }
1934
1935 /*
1936 * Briefly search the free lists for a migration source that already has
1937 * some free pages to reduce the number of pages that need migration
1938 * before a pageblock is free.
1939 */
fast_find_migrateblock(struct compact_control * cc)1940 static unsigned long fast_find_migrateblock(struct compact_control *cc)
1941 {
1942 unsigned int limit = freelist_scan_limit(cc);
1943 unsigned int nr_scanned = 0;
1944 unsigned long distance;
1945 unsigned long pfn = cc->migrate_pfn;
1946 unsigned long high_pfn;
1947 int order;
1948 bool found_block = false;
1949
1950 /* Skip hints are relied on to avoid repeats on the fast search */
1951 if (cc->ignore_skip_hint)
1952 return pfn;
1953
1954 /*
1955 * If the pageblock should be finished then do not select a different
1956 * pageblock.
1957 */
1958 if (cc->finish_pageblock)
1959 return pfn;
1960
1961 /*
1962 * If the migrate_pfn is not at the start of a zone or the start
1963 * of a pageblock then assume this is a continuation of a previous
1964 * scan restarted due to COMPACT_CLUSTER_MAX.
1965 */
1966 if (pfn != cc->zone->zone_start_pfn && pfn != pageblock_start_pfn(pfn))
1967 return pfn;
1968
1969 /*
1970 * For smaller orders, just linearly scan as the number of pages
1971 * to migrate should be relatively small and does not necessarily
1972 * justify freeing up a large block for a small allocation.
1973 */
1974 if (cc->order <= PAGE_ALLOC_COSTLY_ORDER)
1975 return pfn;
1976
1977 /*
1978 * Only allow kcompactd and direct requests for movable pages to
1979 * quickly clear out a MOVABLE pageblock for allocation. This
1980 * reduces the risk that a large movable pageblock is freed for
1981 * an unmovable/reclaimable small allocation.
1982 */
1983 if (cc->direct_compaction && cc->migratetype != MIGRATE_MOVABLE)
1984 return pfn;
1985
1986 /*
1987 * When starting the migration scanner, pick any pageblock within the
1988 * first half of the search space. Otherwise try and pick a pageblock
1989 * within the first eighth to reduce the chances that a migration
1990 * target later becomes a source.
1991 */
1992 distance = (cc->free_pfn - cc->migrate_pfn) >> 1;
1993 if (cc->migrate_pfn != cc->zone->zone_start_pfn)
1994 distance >>= 2;
1995 high_pfn = pageblock_start_pfn(cc->migrate_pfn + distance);
1996
1997 for (order = cc->order - 1;
1998 order >= PAGE_ALLOC_COSTLY_ORDER && !found_block && nr_scanned < limit;
1999 order--) {
2000 struct free_area *area = &cc->zone->free_area[order];
2001 struct list_head *freelist;
2002 unsigned long flags;
2003 struct page *freepage;
2004
2005 if (!area->nr_free)
2006 continue;
2007
2008 spin_lock_irqsave(&cc->zone->lock, flags);
2009 freelist = &area->free_list[MIGRATE_MOVABLE];
2010 list_for_each_entry(freepage, freelist, buddy_list) {
2011 unsigned long free_pfn;
2012
2013 if (nr_scanned++ >= limit) {
2014 move_freelist_tail(freelist, freepage);
2015 break;
2016 }
2017
2018 free_pfn = page_to_pfn(freepage);
2019 if (free_pfn < high_pfn) {
2020 /*
2021 * Avoid if skipped recently. Ideally it would
2022 * move to the tail but even safe iteration of
2023 * the list assumes an entry is deleted, not
2024 * reordered.
2025 */
2026 if (get_pageblock_skip(freepage))
2027 continue;
2028
2029 /* Reorder to so a future search skips recent pages */
2030 move_freelist_tail(freelist, freepage);
2031
2032 update_fast_start_pfn(cc, free_pfn);
2033 pfn = pageblock_start_pfn(free_pfn);
2034 if (pfn < cc->zone->zone_start_pfn)
2035 pfn = cc->zone->zone_start_pfn;
2036 cc->fast_search_fail = 0;
2037 found_block = true;
2038 break;
2039 }
2040 }
2041 spin_unlock_irqrestore(&cc->zone->lock, flags);
2042 }
2043
2044 cc->total_migrate_scanned += nr_scanned;
2045
2046 /*
2047 * If fast scanning failed then use a cached entry for a page block
2048 * that had free pages as the basis for starting a linear scan.
2049 */
2050 if (!found_block) {
2051 cc->fast_search_fail++;
2052 pfn = reinit_migrate_pfn(cc);
2053 }
2054 return pfn;
2055 }
2056
2057 /*
2058 * Isolate all pages that can be migrated from the first suitable block,
2059 * starting at the block pointed to by the migrate scanner pfn within
2060 * compact_control.
2061 */
isolate_migratepages(struct compact_control * cc)2062 static isolate_migrate_t isolate_migratepages(struct compact_control *cc)
2063 {
2064 unsigned long block_start_pfn;
2065 unsigned long block_end_pfn;
2066 unsigned long low_pfn;
2067 struct page *page;
2068 const isolate_mode_t isolate_mode =
2069 (sysctl_compact_unevictable_allowed ? ISOLATE_UNEVICTABLE : 0) |
2070 (cc->mode != MIGRATE_SYNC ? ISOLATE_ASYNC_MIGRATE : 0);
2071 bool fast_find_block;
2072
2073 /*
2074 * Start at where we last stopped, or beginning of the zone as
2075 * initialized by compact_zone(). The first failure will use
2076 * the lowest PFN as the starting point for linear scanning.
2077 */
2078 low_pfn = fast_find_migrateblock(cc);
2079 block_start_pfn = pageblock_start_pfn(low_pfn);
2080 if (block_start_pfn < cc->zone->zone_start_pfn)
2081 block_start_pfn = cc->zone->zone_start_pfn;
2082
2083 /*
2084 * fast_find_migrateblock() has already ensured the pageblock is not
2085 * set with a skipped flag, so to avoid the isolation_suitable check
2086 * below again, check whether the fast search was successful.
2087 */
2088 fast_find_block = low_pfn != cc->migrate_pfn && !cc->fast_search_fail;
2089
2090 /* Only scan within a pageblock boundary */
2091 block_end_pfn = pageblock_end_pfn(low_pfn);
2092
2093 /*
2094 * Iterate over whole pageblocks until we find the first suitable.
2095 * Do not cross the free scanner.
2096 */
2097 for (; block_end_pfn <= cc->free_pfn;
2098 fast_find_block = false,
2099 cc->migrate_pfn = low_pfn = block_end_pfn,
2100 block_start_pfn = block_end_pfn,
2101 block_end_pfn += pageblock_nr_pages) {
2102
2103 /*
2104 * This can potentially iterate a massively long zone with
2105 * many pageblocks unsuitable, so periodically check if we
2106 * need to schedule.
2107 */
2108 if (!(low_pfn % (COMPACT_CLUSTER_MAX * pageblock_nr_pages)))
2109 cond_resched();
2110
2111 page = pageblock_pfn_to_page(block_start_pfn,
2112 block_end_pfn, cc->zone);
2113 if (!page) {
2114 unsigned long next_pfn;
2115
2116 next_pfn = skip_offline_sections(block_start_pfn);
2117 if (next_pfn)
2118 block_end_pfn = min(next_pfn, cc->free_pfn);
2119 continue;
2120 }
2121
2122 /*
2123 * If isolation recently failed, do not retry. Only check the
2124 * pageblock once. COMPACT_CLUSTER_MAX causes a pageblock
2125 * to be visited multiple times. Assume skip was checked
2126 * before making it "skip" so other compaction instances do
2127 * not scan the same block.
2128 */
2129 if ((pageblock_aligned(low_pfn) ||
2130 low_pfn == cc->zone->zone_start_pfn) &&
2131 !fast_find_block && !isolation_suitable(cc, page))
2132 continue;
2133
2134 /*
2135 * For async direct compaction, only scan the pageblocks of the
2136 * same migratetype without huge pages. Async direct compaction
2137 * is optimistic to see if the minimum amount of work satisfies
2138 * the allocation. The cached PFN is updated as it's possible
2139 * that all remaining blocks between source and target are
2140 * unsuitable and the compaction scanners fail to meet.
2141 */
2142 if (!suitable_migration_source(cc, page)) {
2143 update_cached_migrate(cc, block_end_pfn);
2144 continue;
2145 }
2146
2147 /* Perform the isolation */
2148 if (isolate_migratepages_block(cc, low_pfn, block_end_pfn,
2149 isolate_mode))
2150 return ISOLATE_ABORT;
2151
2152 /*
2153 * Either we isolated something and proceed with migration. Or
2154 * we failed and compact_zone should decide if we should
2155 * continue or not.
2156 */
2157 break;
2158 }
2159
2160 return cc->nr_migratepages ? ISOLATE_SUCCESS : ISOLATE_NONE;
2161 }
2162
2163 /*
2164 * Determine whether kswapd is (or recently was!) running on this node.
2165 *
2166 * pgdat_kswapd_lock() pins pgdat->kswapd, so a concurrent kswapd_stop() can't
2167 * zero it.
2168 */
kswapd_is_running(pg_data_t * pgdat)2169 static bool kswapd_is_running(pg_data_t *pgdat)
2170 {
2171 bool running;
2172
2173 pgdat_kswapd_lock(pgdat);
2174 running = pgdat->kswapd && task_is_running(pgdat->kswapd);
2175 pgdat_kswapd_unlock(pgdat);
2176
2177 return running;
2178 }
2179
2180 /*
2181 * A zone's fragmentation score is the external fragmentation wrt to the
2182 * COMPACTION_HPAGE_ORDER. It returns a value in the range [0, 100].
2183 */
fragmentation_score_zone(struct zone * zone)2184 static unsigned int fragmentation_score_zone(struct zone *zone)
2185 {
2186 return extfrag_for_order(zone, COMPACTION_HPAGE_ORDER);
2187 }
2188
2189 /*
2190 * A weighted zone's fragmentation score is the external fragmentation
2191 * wrt to the COMPACTION_HPAGE_ORDER scaled by the zone's size. It
2192 * returns a value in the range [0, 100].
2193 *
2194 * The scaling factor ensures that proactive compaction focuses on larger
2195 * zones like ZONE_NORMAL, rather than smaller, specialized zones like
2196 * ZONE_DMA32. For smaller zones, the score value remains close to zero,
2197 * and thus never exceeds the high threshold for proactive compaction.
2198 */
fragmentation_score_zone_weighted(struct zone * zone)2199 static unsigned int fragmentation_score_zone_weighted(struct zone *zone)
2200 {
2201 unsigned long score;
2202
2203 score = zone->present_pages * fragmentation_score_zone(zone);
2204 return div64_ul(score, zone->zone_pgdat->node_present_pages + 1);
2205 }
2206
2207 /*
2208 * The per-node proactive (background) compaction process is started by its
2209 * corresponding kcompactd thread when the node's fragmentation score
2210 * exceeds the high threshold. The compaction process remains active till
2211 * the node's score falls below the low threshold, or one of the back-off
2212 * conditions is met.
2213 */
fragmentation_score_node(pg_data_t * pgdat)2214 static unsigned int fragmentation_score_node(pg_data_t *pgdat)
2215 {
2216 unsigned int score = 0;
2217 int zoneid;
2218
2219 for (zoneid = 0; zoneid < MAX_NR_ZONES; zoneid++) {
2220 struct zone *zone;
2221
2222 zone = &pgdat->node_zones[zoneid];
2223 if (!populated_zone(zone))
2224 continue;
2225 score += fragmentation_score_zone_weighted(zone);
2226 }
2227
2228 return score;
2229 }
2230
fragmentation_score_wmark(bool low)2231 static unsigned int fragmentation_score_wmark(bool low)
2232 {
2233 unsigned int wmark_low, leeway;
2234
2235 wmark_low = 100U - sysctl_compaction_proactiveness;
2236 leeway = min(10U, wmark_low / 2);
2237 return low ? wmark_low : min(wmark_low + leeway, 100U);
2238 }
2239
should_proactive_compact_node(pg_data_t * pgdat)2240 static bool should_proactive_compact_node(pg_data_t *pgdat)
2241 {
2242 int wmark_high;
2243
2244 if (!sysctl_compaction_proactiveness || kswapd_is_running(pgdat))
2245 return false;
2246
2247 wmark_high = fragmentation_score_wmark(false);
2248 return fragmentation_score_node(pgdat) > wmark_high;
2249 }
2250
__compact_finished(struct compact_control * cc)2251 static enum compact_result __compact_finished(struct compact_control *cc)
2252 {
2253 unsigned int order;
2254 const int migratetype = cc->migratetype;
2255 int ret;
2256
2257 /* Compaction run completes if the migrate and free scanner meet */
2258 if (compact_scanners_met(cc)) {
2259 /* Let the next compaction start anew. */
2260 reset_cached_positions(cc->zone);
2261
2262 /*
2263 * Mark that the PG_migrate_skip information should be cleared
2264 * by kswapd when it goes to sleep. kcompactd does not set the
2265 * flag itself as the decision to be clear should be directly
2266 * based on an allocation request.
2267 */
2268 if (cc->direct_compaction)
2269 cc->zone->compact_blockskip_flush = true;
2270
2271 if (cc->whole_zone)
2272 return COMPACT_COMPLETE;
2273 else
2274 return COMPACT_PARTIAL_SKIPPED;
2275 }
2276
2277 if (cc->proactive_compaction) {
2278 int score, wmark_low;
2279 pg_data_t *pgdat;
2280
2281 pgdat = cc->zone->zone_pgdat;
2282 if (kswapd_is_running(pgdat))
2283 return COMPACT_PARTIAL_SKIPPED;
2284
2285 score = fragmentation_score_zone(cc->zone);
2286 wmark_low = fragmentation_score_wmark(true);
2287
2288 if (score > wmark_low)
2289 ret = COMPACT_CONTINUE;
2290 else
2291 ret = COMPACT_SUCCESS;
2292
2293 goto out;
2294 }
2295
2296 if (is_via_compact_memory(cc->order))
2297 return COMPACT_CONTINUE;
2298
2299 /*
2300 * Always finish scanning a pageblock to reduce the possibility of
2301 * fallbacks in the future. This is particularly important when
2302 * migration source is unmovable/reclaimable but it's not worth
2303 * special casing.
2304 */
2305 if (!pageblock_aligned(cc->migrate_pfn))
2306 return COMPACT_CONTINUE;
2307
2308 /*
2309 * When defrag_mode is enabled, make kcompactd target
2310 * watermarks in whole pageblocks. Because they can be stolen
2311 * without polluting, no further fallback checks are needed.
2312 */
2313 if (defrag_mode && !cc->direct_compaction) {
2314 if (__zone_watermark_ok(cc->zone, cc->order,
2315 high_wmark_pages(cc->zone),
2316 cc->highest_zoneidx, cc->alloc_flags,
2317 zone_page_state(cc->zone,
2318 NR_FREE_PAGES_BLOCKS)))
2319 return COMPACT_SUCCESS;
2320
2321 return COMPACT_CONTINUE;
2322 }
2323
2324 /* Direct compactor: Is a suitable page free? */
2325 ret = COMPACT_NO_SUITABLE_PAGE;
2326 for (order = cc->order; order < NR_PAGE_ORDERS; order++) {
2327 struct free_area *area = &cc->zone->free_area[order];
2328
2329 /* Job done if page is free of the right migratetype */
2330 if (!free_area_empty(area, migratetype))
2331 return COMPACT_SUCCESS;
2332
2333 #ifdef CONFIG_CMA
2334 /* MIGRATE_MOVABLE can fallback on MIGRATE_CMA */
2335 if (migratetype == MIGRATE_MOVABLE &&
2336 !free_area_empty(area, MIGRATE_CMA))
2337 return COMPACT_SUCCESS;
2338 #endif
2339 /*
2340 * Job done if allocation would steal freepages from
2341 * other migratetype buddy lists.
2342 */
2343 if (find_suitable_fallback(area, order, migratetype, true) >= 0)
2344 /*
2345 * Movable pages are OK in any pageblock. If we are
2346 * stealing for a non-movable allocation, make sure
2347 * we finish compacting the current pageblock first
2348 * (which is assured by the above migrate_pfn align
2349 * check) so it is as free as possible and we won't
2350 * have to steal another one soon.
2351 */
2352 return COMPACT_SUCCESS;
2353 }
2354
2355 out:
2356 if (cc->contended || fatal_signal_pending(current))
2357 ret = COMPACT_CONTENDED;
2358
2359 return ret;
2360 }
2361
compact_finished(struct compact_control * cc)2362 static enum compact_result compact_finished(struct compact_control *cc)
2363 {
2364 int ret;
2365
2366 ret = __compact_finished(cc);
2367 trace_mm_compaction_finished(cc->zone, cc->order, ret);
2368 if (ret == COMPACT_NO_SUITABLE_PAGE)
2369 ret = COMPACT_CONTINUE;
2370
2371 return ret;
2372 }
2373
__compaction_suitable(struct zone * zone,int order,unsigned long watermark,int highest_zoneidx,unsigned long free_pages)2374 static bool __compaction_suitable(struct zone *zone, int order,
2375 unsigned long watermark, int highest_zoneidx,
2376 unsigned long free_pages)
2377 {
2378 /*
2379 * Watermarks for order-0 must be met for compaction to be able to
2380 * isolate free pages for migration targets. This means that the
2381 * watermark have to match, or be more pessimistic than the check in
2382 * __isolate_free_page().
2383 *
2384 * For costly orders, we require a higher watermark for compaction to
2385 * proceed to increase its chances.
2386 *
2387 * We use the direct compactor's highest_zoneidx to skip over zones
2388 * where lowmem reserves would prevent allocation even if compaction
2389 * succeeds.
2390 *
2391 * ALLOC_CMA is used, as pages in CMA pageblocks are considered
2392 * suitable migration targets.
2393 */
2394 watermark += compact_gap(order);
2395 if (order > PAGE_ALLOC_COSTLY_ORDER)
2396 watermark += low_wmark_pages(zone) - min_wmark_pages(zone);
2397 return __zone_watermark_ok(zone, 0, watermark, highest_zoneidx,
2398 ALLOC_CMA, free_pages);
2399 }
2400
2401 /*
2402 * compaction_suitable: Is this suitable to run compaction on this zone now?
2403 */
compaction_suitable(struct zone * zone,int order,unsigned long watermark,int highest_zoneidx)2404 bool compaction_suitable(struct zone *zone, int order, unsigned long watermark,
2405 int highest_zoneidx)
2406 {
2407 enum compact_result compact_result;
2408 bool suitable;
2409
2410 suitable = __compaction_suitable(zone, order, watermark, highest_zoneidx,
2411 zone_page_state(zone, NR_FREE_PAGES));
2412 /*
2413 * fragmentation index determines if allocation failures are due to
2414 * low memory or external fragmentation
2415 *
2416 * index of -1000 would imply allocations might succeed depending on
2417 * watermarks, but we already failed the high-order watermark check
2418 * index towards 0 implies failure is due to lack of memory
2419 * index towards 1000 implies failure is due to fragmentation
2420 *
2421 * Only compact if a failure would be due to fragmentation. Also
2422 * ignore fragindex for non-costly orders where the alternative to
2423 * a successful reclaim/compaction is OOM. Fragindex and the
2424 * vm.extfrag_threshold sysctl is meant as a heuristic to prevent
2425 * excessive compaction for costly orders, but it should not be at the
2426 * expense of system stability.
2427 */
2428 if (suitable) {
2429 compact_result = COMPACT_CONTINUE;
2430 if (order > PAGE_ALLOC_COSTLY_ORDER) {
2431 int fragindex = fragmentation_index(zone, order);
2432
2433 if (fragindex >= 0 &&
2434 fragindex <= sysctl_extfrag_threshold) {
2435 suitable = false;
2436 compact_result = COMPACT_NOT_SUITABLE_ZONE;
2437 }
2438 }
2439 } else {
2440 compact_result = COMPACT_SKIPPED;
2441 }
2442
2443 trace_mm_compaction_suitable(zone, order, compact_result);
2444
2445 return suitable;
2446 }
2447
2448 /* Used by direct reclaimers */
compaction_zonelist_suitable(struct alloc_context * ac,int order,int alloc_flags)2449 bool compaction_zonelist_suitable(struct alloc_context *ac, int order,
2450 int alloc_flags)
2451 {
2452 struct zone *zone;
2453 struct zoneref *z;
2454
2455 /*
2456 * Make sure at least one zone would pass __compaction_suitable if we continue
2457 * retrying the reclaim.
2458 */
2459 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist,
2460 ac->highest_zoneidx, ac->nodemask) {
2461 unsigned long available;
2462
2463 /*
2464 * Do not consider all the reclaimable memory because we do not
2465 * want to trash just for a single high order allocation which
2466 * is even not guaranteed to appear even if __compaction_suitable
2467 * is happy about the watermark check.
2468 */
2469 available = zone_reclaimable_pages(zone) / order;
2470 available += zone_page_state_snapshot(zone, NR_FREE_PAGES);
2471 if (__compaction_suitable(zone, order, min_wmark_pages(zone),
2472 ac->highest_zoneidx, available))
2473 return true;
2474 }
2475
2476 return false;
2477 }
2478
2479 /*
2480 * Should we do compaction for target allocation order.
2481 * Return COMPACT_SUCCESS if allocation for target order can be already
2482 * satisfied
2483 * Return COMPACT_SKIPPED if compaction for target order is likely to fail
2484 * Return COMPACT_CONTINUE if compaction for target order should be ran
2485 */
2486 static enum compact_result
compaction_suit_allocation_order(struct zone * zone,unsigned int order,int highest_zoneidx,unsigned int alloc_flags,bool async,bool kcompactd)2487 compaction_suit_allocation_order(struct zone *zone, unsigned int order,
2488 int highest_zoneidx, unsigned int alloc_flags,
2489 bool async, bool kcompactd)
2490 {
2491 unsigned long free_pages;
2492 unsigned long watermark;
2493
2494 if (kcompactd && defrag_mode)
2495 free_pages = zone_page_state(zone, NR_FREE_PAGES_BLOCKS);
2496 else
2497 free_pages = zone_page_state(zone, NR_FREE_PAGES);
2498
2499 watermark = wmark_pages(zone, alloc_flags & ALLOC_WMARK_MASK);
2500 if (__zone_watermark_ok(zone, order, watermark, highest_zoneidx,
2501 alloc_flags, free_pages))
2502 return COMPACT_SUCCESS;
2503
2504 /*
2505 * For unmovable allocations (without ALLOC_CMA), check if there is enough
2506 * free memory in the non-CMA pageblocks. Otherwise compaction could form
2507 * the high-order page in CMA pageblocks, which would not help the
2508 * allocation to succeed. However, limit the check to costly order async
2509 * compaction (such as opportunistic THP attempts) because there is the
2510 * possibility that compaction would migrate pages from non-CMA to CMA
2511 * pageblock.
2512 */
2513 if (order > PAGE_ALLOC_COSTLY_ORDER && async &&
2514 !(alloc_flags & ALLOC_CMA)) {
2515 if (!__zone_watermark_ok(zone, 0, watermark + compact_gap(order),
2516 highest_zoneidx, 0,
2517 zone_page_state(zone, NR_FREE_PAGES)))
2518 return COMPACT_SKIPPED;
2519 }
2520
2521 if (!compaction_suitable(zone, order, watermark, highest_zoneidx))
2522 return COMPACT_SKIPPED;
2523
2524 return COMPACT_CONTINUE;
2525 }
2526
2527 static enum compact_result
compact_zone(struct compact_control * cc,struct capture_control * capc)2528 compact_zone(struct compact_control *cc, struct capture_control *capc)
2529 {
2530 enum compact_result ret;
2531 unsigned long start_pfn = cc->zone->zone_start_pfn;
2532 unsigned long end_pfn = zone_end_pfn(cc->zone);
2533 unsigned long last_migrated_pfn;
2534 const bool sync = cc->mode != MIGRATE_ASYNC;
2535 bool update_cached;
2536 unsigned int nr_succeeded = 0, nr_migratepages;
2537 int order;
2538
2539 /*
2540 * These counters track activities during zone compaction. Initialize
2541 * them before compacting a new zone.
2542 */
2543 cc->total_migrate_scanned = 0;
2544 cc->total_free_scanned = 0;
2545 cc->nr_migratepages = 0;
2546 cc->nr_freepages = 0;
2547 for (order = 0; order < NR_PAGE_ORDERS; order++)
2548 INIT_LIST_HEAD(&cc->freepages[order]);
2549 INIT_LIST_HEAD(&cc->migratepages);
2550
2551 cc->migratetype = gfp_migratetype(cc->gfp_mask);
2552
2553 if (!is_via_compact_memory(cc->order)) {
2554 ret = compaction_suit_allocation_order(cc->zone, cc->order,
2555 cc->highest_zoneidx,
2556 cc->alloc_flags,
2557 cc->mode == MIGRATE_ASYNC,
2558 !cc->direct_compaction);
2559 if (ret != COMPACT_CONTINUE)
2560 return ret;
2561 }
2562
2563 /*
2564 * Clear pageblock skip if there were failures recently and compaction
2565 * is about to be retried after being deferred.
2566 */
2567 if (compaction_restarting(cc->zone, cc->order))
2568 __reset_isolation_suitable(cc->zone);
2569
2570 /*
2571 * Setup to move all movable pages to the end of the zone. Used cached
2572 * information on where the scanners should start (unless we explicitly
2573 * want to compact the whole zone), but check that it is initialised
2574 * by ensuring the values are within zone boundaries.
2575 */
2576 cc->fast_start_pfn = 0;
2577 if (cc->whole_zone) {
2578 cc->migrate_pfn = start_pfn;
2579 cc->free_pfn = pageblock_start_pfn(end_pfn - 1);
2580 } else {
2581 cc->migrate_pfn = cc->zone->compact_cached_migrate_pfn[sync];
2582 cc->free_pfn = cc->zone->compact_cached_free_pfn;
2583 if (cc->free_pfn < start_pfn || cc->free_pfn >= end_pfn) {
2584 cc->free_pfn = pageblock_start_pfn(end_pfn - 1);
2585 cc->zone->compact_cached_free_pfn = cc->free_pfn;
2586 }
2587 if (cc->migrate_pfn < start_pfn || cc->migrate_pfn >= end_pfn) {
2588 cc->migrate_pfn = start_pfn;
2589 cc->zone->compact_cached_migrate_pfn[0] = cc->migrate_pfn;
2590 cc->zone->compact_cached_migrate_pfn[1] = cc->migrate_pfn;
2591 }
2592
2593 if (cc->migrate_pfn <= cc->zone->compact_init_migrate_pfn)
2594 cc->whole_zone = true;
2595 }
2596
2597 last_migrated_pfn = 0;
2598
2599 /*
2600 * Migrate has separate cached PFNs for ASYNC and SYNC* migration on
2601 * the basis that some migrations will fail in ASYNC mode. However,
2602 * if the cached PFNs match and pageblocks are skipped due to having
2603 * no isolation candidates, then the sync state does not matter.
2604 * Until a pageblock with isolation candidates is found, keep the
2605 * cached PFNs in sync to avoid revisiting the same blocks.
2606 */
2607 update_cached = !sync &&
2608 cc->zone->compact_cached_migrate_pfn[0] == cc->zone->compact_cached_migrate_pfn[1];
2609
2610 trace_mm_compaction_begin(cc, start_pfn, end_pfn, sync);
2611
2612 /* lru_add_drain_all could be expensive with involving other CPUs */
2613 lru_add_drain();
2614
2615 while ((ret = compact_finished(cc)) == COMPACT_CONTINUE) {
2616 int err;
2617 unsigned long iteration_start_pfn = cc->migrate_pfn;
2618
2619 /*
2620 * Avoid multiple rescans of the same pageblock which can
2621 * happen if a page cannot be isolated (dirty/writeback in
2622 * async mode) or if the migrated pages are being allocated
2623 * before the pageblock is cleared. The first rescan will
2624 * capture the entire pageblock for migration. If it fails,
2625 * it'll be marked skip and scanning will proceed as normal.
2626 */
2627 cc->finish_pageblock = false;
2628 if (pageblock_start_pfn(last_migrated_pfn) ==
2629 pageblock_start_pfn(iteration_start_pfn)) {
2630 cc->finish_pageblock = true;
2631 }
2632
2633 rescan:
2634 switch (isolate_migratepages(cc)) {
2635 case ISOLATE_ABORT:
2636 ret = COMPACT_CONTENDED;
2637 putback_movable_pages(&cc->migratepages);
2638 cc->nr_migratepages = 0;
2639 goto out;
2640 case ISOLATE_NONE:
2641 if (update_cached) {
2642 cc->zone->compact_cached_migrate_pfn[1] =
2643 cc->zone->compact_cached_migrate_pfn[0];
2644 }
2645
2646 /*
2647 * We haven't isolated and migrated anything, but
2648 * there might still be unflushed migrations from
2649 * previous cc->order aligned block.
2650 */
2651 goto check_drain;
2652 case ISOLATE_SUCCESS:
2653 update_cached = false;
2654 last_migrated_pfn = max(cc->zone->zone_start_pfn,
2655 pageblock_start_pfn(cc->migrate_pfn - 1));
2656 }
2657
2658 /*
2659 * Record the number of pages to migrate since the
2660 * compaction_alloc/free() will update cc->nr_migratepages
2661 * properly.
2662 */
2663 nr_migratepages = cc->nr_migratepages;
2664 err = migrate_pages(&cc->migratepages, compaction_alloc,
2665 compaction_free, (unsigned long)cc, cc->mode,
2666 MR_COMPACTION, &nr_succeeded);
2667
2668 trace_mm_compaction_migratepages(nr_migratepages, nr_succeeded);
2669
2670 /* All pages were either migrated or will be released */
2671 cc->nr_migratepages = 0;
2672 if (err) {
2673 putback_movable_pages(&cc->migratepages);
2674 /*
2675 * migrate_pages() may return -ENOMEM when scanners meet
2676 * and we want compact_finished() to detect it
2677 */
2678 if (err == -ENOMEM && !compact_scanners_met(cc)) {
2679 ret = COMPACT_CONTENDED;
2680 goto out;
2681 }
2682 /*
2683 * If an ASYNC or SYNC_LIGHT fails to migrate a page
2684 * within the pageblock_order-aligned block and
2685 * fast_find_migrateblock may be used then scan the
2686 * remainder of the pageblock. This will mark the
2687 * pageblock "skip" to avoid rescanning in the near
2688 * future. This will isolate more pages than necessary
2689 * for the request but avoid loops due to
2690 * fast_find_migrateblock revisiting blocks that were
2691 * recently partially scanned.
2692 */
2693 if (!pageblock_aligned(cc->migrate_pfn) &&
2694 !cc->ignore_skip_hint && !cc->finish_pageblock &&
2695 (cc->mode < MIGRATE_SYNC)) {
2696 cc->finish_pageblock = true;
2697
2698 /*
2699 * Draining pcplists does not help THP if
2700 * any page failed to migrate. Even after
2701 * drain, the pageblock will not be free.
2702 */
2703 if (cc->order == COMPACTION_HPAGE_ORDER)
2704 last_migrated_pfn = 0;
2705
2706 goto rescan;
2707 }
2708 }
2709
2710 /* Stop if a page has been captured */
2711 if (capc && capc->page) {
2712 ret = COMPACT_SUCCESS;
2713 break;
2714 }
2715
2716 check_drain:
2717 /*
2718 * Has the migration scanner moved away from the previous
2719 * cc->order aligned block where we migrated from? If yes,
2720 * flush the pages that were freed, so that they can merge and
2721 * compact_finished() can detect immediately if allocation
2722 * would succeed.
2723 */
2724 if (cc->order > 0 && last_migrated_pfn) {
2725 unsigned long current_block_start =
2726 block_start_pfn(cc->migrate_pfn, cc->order);
2727
2728 if (last_migrated_pfn < current_block_start) {
2729 lru_add_drain_cpu_zone(cc->zone);
2730 /* No more flushing until we migrate again */
2731 last_migrated_pfn = 0;
2732 }
2733 }
2734 }
2735
2736 out:
2737 /*
2738 * Release free pages and update where the free scanner should restart,
2739 * so we don't leave any returned pages behind in the next attempt.
2740 */
2741 if (cc->nr_freepages > 0) {
2742 unsigned long free_pfn = release_free_list(cc->freepages);
2743
2744 cc->nr_freepages = 0;
2745 VM_BUG_ON(free_pfn == 0);
2746 /* The cached pfn is always the first in a pageblock */
2747 free_pfn = pageblock_start_pfn(free_pfn);
2748 /*
2749 * Only go back, not forward. The cached pfn might have been
2750 * already reset to zone end in compact_finished()
2751 */
2752 if (free_pfn > cc->zone->compact_cached_free_pfn)
2753 cc->zone->compact_cached_free_pfn = free_pfn;
2754 }
2755
2756 count_compact_events(COMPACTMIGRATE_SCANNED, cc->total_migrate_scanned);
2757 count_compact_events(COMPACTFREE_SCANNED, cc->total_free_scanned);
2758
2759 trace_mm_compaction_end(cc, start_pfn, end_pfn, sync, ret);
2760
2761 VM_BUG_ON(!list_empty(&cc->migratepages));
2762
2763 return ret;
2764 }
2765
compact_zone_order(struct zone * zone,int order,gfp_t gfp_mask,enum compact_priority prio,unsigned int alloc_flags,int highest_zoneidx,struct page ** capture)2766 static enum compact_result compact_zone_order(struct zone *zone, int order,
2767 gfp_t gfp_mask, enum compact_priority prio,
2768 unsigned int alloc_flags, int highest_zoneidx,
2769 struct page **capture)
2770 {
2771 enum compact_result ret;
2772 struct compact_control cc = {
2773 .order = order,
2774 .search_order = order,
2775 .gfp_mask = gfp_mask,
2776 .zone = zone,
2777 .mode = (prio == COMPACT_PRIO_ASYNC) ?
2778 MIGRATE_ASYNC : MIGRATE_SYNC_LIGHT,
2779 .alloc_flags = alloc_flags,
2780 .highest_zoneidx = highest_zoneidx,
2781 .direct_compaction = true,
2782 .whole_zone = (prio == MIN_COMPACT_PRIORITY),
2783 .ignore_skip_hint = (prio == MIN_COMPACT_PRIORITY),
2784 .ignore_block_suitable = (prio == MIN_COMPACT_PRIORITY)
2785 };
2786 struct capture_control capc = {
2787 .cc = &cc,
2788 .page = NULL,
2789 };
2790
2791 /*
2792 * Make sure the structs are really initialized before we expose the
2793 * capture control, in case we are interrupted and the interrupt handler
2794 * frees a page.
2795 */
2796 barrier();
2797 WRITE_ONCE(current->capture_control, &capc);
2798
2799 ret = compact_zone(&cc, &capc);
2800
2801 /*
2802 * Make sure we hide capture control first before we read the captured
2803 * page pointer, otherwise an interrupt could free and capture a page
2804 * and we would leak it.
2805 */
2806 WRITE_ONCE(current->capture_control, NULL);
2807 *capture = READ_ONCE(capc.page);
2808 /*
2809 * Technically, it is also possible that compaction is skipped but
2810 * the page is still captured out of luck(IRQ came and freed the page).
2811 * Returning COMPACT_SUCCESS in such cases helps in properly accounting
2812 * the COMPACT[STALL|FAIL] when compaction is skipped.
2813 */
2814 if (*capture)
2815 ret = COMPACT_SUCCESS;
2816
2817 return ret;
2818 }
2819
2820 /**
2821 * try_to_compact_pages - Direct compact to satisfy a high-order allocation
2822 * @gfp_mask: The GFP mask of the current allocation
2823 * @order: The order of the current allocation
2824 * @alloc_flags: The allocation flags of the current allocation
2825 * @ac: The context of current allocation
2826 * @prio: Determines how hard direct compaction should try to succeed
2827 * @capture: Pointer to free page created by compaction will be stored here
2828 *
2829 * This is the main entry point for direct page compaction.
2830 */
try_to_compact_pages(gfp_t gfp_mask,unsigned int order,unsigned int alloc_flags,const struct alloc_context * ac,enum compact_priority prio,struct page ** capture)2831 enum compact_result try_to_compact_pages(gfp_t gfp_mask, unsigned int order,
2832 unsigned int alloc_flags, const struct alloc_context *ac,
2833 enum compact_priority prio, struct page **capture)
2834 {
2835 struct zoneref *z;
2836 struct zone *zone;
2837 enum compact_result rc = COMPACT_SKIPPED;
2838
2839 if (!gfp_compaction_allowed(gfp_mask))
2840 return COMPACT_SKIPPED;
2841
2842 trace_mm_compaction_try_to_compact_pages(order, gfp_mask, prio);
2843
2844 /* Compact each zone in the list */
2845 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist,
2846 ac->highest_zoneidx, ac->nodemask) {
2847 enum compact_result status;
2848
2849 if (cpusets_enabled() &&
2850 (alloc_flags & ALLOC_CPUSET) &&
2851 !__cpuset_zone_allowed(zone, gfp_mask))
2852 continue;
2853
2854 if (prio > MIN_COMPACT_PRIORITY
2855 && compaction_deferred(zone, order)) {
2856 rc = max_t(enum compact_result, COMPACT_DEFERRED, rc);
2857 continue;
2858 }
2859
2860 status = compact_zone_order(zone, order, gfp_mask, prio,
2861 alloc_flags, ac->highest_zoneidx, capture);
2862 rc = max(status, rc);
2863
2864 /* The allocation should succeed, stop compacting */
2865 if (status == COMPACT_SUCCESS) {
2866 /*
2867 * We think the allocation will succeed in this zone,
2868 * but it is not certain, hence the false. The caller
2869 * will repeat this with true if allocation indeed
2870 * succeeds in this zone.
2871 */
2872 compaction_defer_reset(zone, order, false);
2873
2874 break;
2875 }
2876
2877 if (prio != COMPACT_PRIO_ASYNC && (status == COMPACT_COMPLETE ||
2878 status == COMPACT_PARTIAL_SKIPPED))
2879 /*
2880 * We think that allocation won't succeed in this zone
2881 * so we defer compaction there. If it ends up
2882 * succeeding after all, it will be reset.
2883 */
2884 defer_compaction(zone, order);
2885
2886 /*
2887 * We might have stopped compacting due to need_resched() in
2888 * async compaction, or due to a fatal signal detected. In that
2889 * case do not try further zones
2890 */
2891 if ((prio == COMPACT_PRIO_ASYNC && need_resched())
2892 || fatal_signal_pending(current))
2893 break;
2894 }
2895
2896 return rc;
2897 }
2898
2899 /*
2900 * compact_node() - compact all zones within a node
2901 * @pgdat: The node page data
2902 * @proactive: Whether the compaction is proactive
2903 *
2904 * For proactive compaction, compact till each zone's fragmentation score
2905 * reaches within proactive compaction thresholds (as determined by the
2906 * proactiveness tunable), it is possible that the function returns before
2907 * reaching score targets due to various back-off conditions, such as,
2908 * contention on per-node or per-zone locks.
2909 */
compact_node(pg_data_t * pgdat,bool proactive)2910 static int compact_node(pg_data_t *pgdat, bool proactive)
2911 {
2912 int zoneid;
2913 struct zone *zone;
2914 struct compact_control cc = {
2915 .order = -1,
2916 .mode = proactive ? MIGRATE_SYNC_LIGHT : MIGRATE_SYNC,
2917 .ignore_skip_hint = true,
2918 .whole_zone = true,
2919 .gfp_mask = GFP_KERNEL,
2920 .proactive_compaction = proactive,
2921 };
2922
2923 for (zoneid = 0; zoneid < MAX_NR_ZONES; zoneid++) {
2924 zone = &pgdat->node_zones[zoneid];
2925 if (!populated_zone(zone))
2926 continue;
2927
2928 if (fatal_signal_pending(current))
2929 return -EINTR;
2930
2931 cc.zone = zone;
2932
2933 compact_zone(&cc, NULL);
2934
2935 if (proactive) {
2936 count_compact_events(KCOMPACTD_MIGRATE_SCANNED,
2937 cc.total_migrate_scanned);
2938 count_compact_events(KCOMPACTD_FREE_SCANNED,
2939 cc.total_free_scanned);
2940 }
2941 }
2942
2943 return 0;
2944 }
2945
2946 /* Compact all zones of all nodes in the system */
compact_nodes(void)2947 static int compact_nodes(void)
2948 {
2949 int ret, nid;
2950
2951 /* Flush pending updates to the LRU lists */
2952 lru_add_drain_all();
2953
2954 for_each_online_node(nid) {
2955 ret = compact_node(NODE_DATA(nid), false);
2956 if (ret)
2957 return ret;
2958 }
2959
2960 return 0;
2961 }
2962
compaction_proactiveness_sysctl_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)2963 static int compaction_proactiveness_sysctl_handler(const struct ctl_table *table, int write,
2964 void *buffer, size_t *length, loff_t *ppos)
2965 {
2966 int rc, nid;
2967
2968 rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
2969 if (rc)
2970 return rc;
2971
2972 if (write && sysctl_compaction_proactiveness) {
2973 for_each_online_node(nid) {
2974 pg_data_t *pgdat = NODE_DATA(nid);
2975
2976 if (pgdat->proactive_compact_trigger)
2977 continue;
2978
2979 pgdat->proactive_compact_trigger = true;
2980 trace_mm_compaction_wakeup_kcompactd(pgdat->node_id, -1,
2981 pgdat->nr_zones - 1);
2982 wake_up_interruptible(&pgdat->kcompactd_wait);
2983 }
2984 }
2985
2986 return 0;
2987 }
2988
2989 /*
2990 * This is the entry point for compacting all nodes via
2991 * /proc/sys/vm/compact_memory
2992 */
sysctl_compaction_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)2993 static int sysctl_compaction_handler(const struct ctl_table *table, int write,
2994 void *buffer, size_t *length, loff_t *ppos)
2995 {
2996 int ret;
2997
2998 ret = proc_dointvec(table, write, buffer, length, ppos);
2999 if (ret)
3000 return ret;
3001
3002 if (sysctl_compact_memory != 1)
3003 return -EINVAL;
3004
3005 if (write)
3006 ret = compact_nodes();
3007
3008 return ret;
3009 }
3010
3011 #if defined(CONFIG_SYSFS) && defined(CONFIG_NUMA)
compact_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3012 static ssize_t compact_store(struct device *dev,
3013 struct device_attribute *attr,
3014 const char *buf, size_t count)
3015 {
3016 int nid = dev->id;
3017
3018 if (nid >= 0 && nid < nr_node_ids && node_online(nid)) {
3019 /* Flush pending updates to the LRU lists */
3020 lru_add_drain_all();
3021
3022 compact_node(NODE_DATA(nid), false);
3023 }
3024
3025 return count;
3026 }
3027 static DEVICE_ATTR_WO(compact);
3028
compaction_register_node(struct node * node)3029 int compaction_register_node(struct node *node)
3030 {
3031 return device_create_file(&node->dev, &dev_attr_compact);
3032 }
3033
compaction_unregister_node(struct node * node)3034 void compaction_unregister_node(struct node *node)
3035 {
3036 device_remove_file(&node->dev, &dev_attr_compact);
3037 }
3038 #endif /* CONFIG_SYSFS && CONFIG_NUMA */
3039
kcompactd_work_requested(pg_data_t * pgdat)3040 static inline bool kcompactd_work_requested(pg_data_t *pgdat)
3041 {
3042 return pgdat->kcompactd_max_order > 0 || kthread_should_stop() ||
3043 pgdat->proactive_compact_trigger;
3044 }
3045
kcompactd_node_suitable(pg_data_t * pgdat)3046 static bool kcompactd_node_suitable(pg_data_t *pgdat)
3047 {
3048 int zoneid;
3049 struct zone *zone;
3050 enum zone_type highest_zoneidx = pgdat->kcompactd_highest_zoneidx;
3051 enum compact_result ret;
3052 unsigned int alloc_flags = defrag_mode ?
3053 ALLOC_WMARK_HIGH : ALLOC_WMARK_MIN;
3054
3055 for (zoneid = 0; zoneid <= highest_zoneidx; zoneid++) {
3056 zone = &pgdat->node_zones[zoneid];
3057
3058 if (!populated_zone(zone))
3059 continue;
3060
3061 ret = compaction_suit_allocation_order(zone,
3062 pgdat->kcompactd_max_order,
3063 highest_zoneidx, alloc_flags,
3064 false, true);
3065 if (ret == COMPACT_CONTINUE)
3066 return true;
3067 }
3068
3069 return false;
3070 }
3071
kcompactd_do_work(pg_data_t * pgdat)3072 static void kcompactd_do_work(pg_data_t *pgdat)
3073 {
3074 /*
3075 * With no special task, compact all zones so that a page of requested
3076 * order is allocatable.
3077 */
3078 int zoneid;
3079 struct zone *zone;
3080 struct compact_control cc = {
3081 .order = pgdat->kcompactd_max_order,
3082 .search_order = pgdat->kcompactd_max_order,
3083 .highest_zoneidx = pgdat->kcompactd_highest_zoneidx,
3084 .mode = MIGRATE_SYNC_LIGHT,
3085 .ignore_skip_hint = false,
3086 .gfp_mask = GFP_KERNEL,
3087 .alloc_flags = defrag_mode ? ALLOC_WMARK_HIGH : ALLOC_WMARK_MIN,
3088 };
3089 enum compact_result ret;
3090
3091 trace_mm_compaction_kcompactd_wake(pgdat->node_id, cc.order,
3092 cc.highest_zoneidx);
3093 count_compact_event(KCOMPACTD_WAKE);
3094
3095 for (zoneid = 0; zoneid <= cc.highest_zoneidx; zoneid++) {
3096 int status;
3097
3098 zone = &pgdat->node_zones[zoneid];
3099 if (!populated_zone(zone))
3100 continue;
3101
3102 if (compaction_deferred(zone, cc.order))
3103 continue;
3104
3105 ret = compaction_suit_allocation_order(zone,
3106 cc.order, zoneid, cc.alloc_flags,
3107 false, true);
3108 if (ret != COMPACT_CONTINUE)
3109 continue;
3110
3111 if (kthread_should_stop())
3112 return;
3113
3114 cc.zone = zone;
3115 status = compact_zone(&cc, NULL);
3116
3117 if (status == COMPACT_SUCCESS) {
3118 compaction_defer_reset(zone, cc.order, false);
3119 } else if (status == COMPACT_PARTIAL_SKIPPED || status == COMPACT_COMPLETE) {
3120 /*
3121 * Buddy pages may become stranded on pcps that could
3122 * otherwise coalesce on the zone's free area for
3123 * order >= cc.order. This is ratelimited by the
3124 * upcoming deferral.
3125 */
3126 drain_all_pages(zone);
3127
3128 /*
3129 * We use sync migration mode here, so we defer like
3130 * sync direct compaction does.
3131 */
3132 defer_compaction(zone, cc.order);
3133 }
3134
3135 count_compact_events(KCOMPACTD_MIGRATE_SCANNED,
3136 cc.total_migrate_scanned);
3137 count_compact_events(KCOMPACTD_FREE_SCANNED,
3138 cc.total_free_scanned);
3139 }
3140
3141 /*
3142 * Regardless of success, we are done until woken up next. But remember
3143 * the requested order/highest_zoneidx in case it was higher/tighter
3144 * than our current ones
3145 */
3146 if (pgdat->kcompactd_max_order <= cc.order)
3147 pgdat->kcompactd_max_order = 0;
3148 if (pgdat->kcompactd_highest_zoneidx >= cc.highest_zoneidx)
3149 pgdat->kcompactd_highest_zoneidx = pgdat->nr_zones - 1;
3150 }
3151
wakeup_kcompactd(pg_data_t * pgdat,int order,int highest_zoneidx)3152 void wakeup_kcompactd(pg_data_t *pgdat, int order, int highest_zoneidx)
3153 {
3154 if (!order)
3155 return;
3156
3157 if (pgdat->kcompactd_max_order < order)
3158 pgdat->kcompactd_max_order = order;
3159
3160 if (pgdat->kcompactd_highest_zoneidx > highest_zoneidx)
3161 pgdat->kcompactd_highest_zoneidx = highest_zoneidx;
3162
3163 /*
3164 * Pairs with implicit barrier in wait_event_freezable()
3165 * such that wakeups are not missed.
3166 */
3167 if (!wq_has_sleeper(&pgdat->kcompactd_wait))
3168 return;
3169
3170 if (!kcompactd_node_suitable(pgdat))
3171 return;
3172
3173 trace_mm_compaction_wakeup_kcompactd(pgdat->node_id, order,
3174 highest_zoneidx);
3175 wake_up_interruptible(&pgdat->kcompactd_wait);
3176 }
3177
3178 /*
3179 * The background compaction daemon, started as a kernel thread
3180 * from the init process.
3181 */
kcompactd(void * p)3182 static int kcompactd(void *p)
3183 {
3184 pg_data_t *pgdat = (pg_data_t *)p;
3185 long default_timeout = msecs_to_jiffies(HPAGE_FRAG_CHECK_INTERVAL_MSEC);
3186 long timeout = default_timeout;
3187
3188 current->flags |= PF_KCOMPACTD;
3189 set_freezable();
3190
3191 pgdat->kcompactd_max_order = 0;
3192 pgdat->kcompactd_highest_zoneidx = pgdat->nr_zones - 1;
3193
3194 while (!kthread_should_stop()) {
3195 unsigned long pflags;
3196
3197 /*
3198 * Avoid the unnecessary wakeup for proactive compaction
3199 * when it is disabled.
3200 */
3201 if (!sysctl_compaction_proactiveness)
3202 timeout = MAX_SCHEDULE_TIMEOUT;
3203 trace_mm_compaction_kcompactd_sleep(pgdat->node_id);
3204 if (wait_event_freezable_timeout(pgdat->kcompactd_wait,
3205 kcompactd_work_requested(pgdat), timeout) &&
3206 !pgdat->proactive_compact_trigger) {
3207
3208 psi_memstall_enter(&pflags);
3209 kcompactd_do_work(pgdat);
3210 psi_memstall_leave(&pflags);
3211 /*
3212 * Reset the timeout value. The defer timeout from
3213 * proactive compaction is lost here but that is fine
3214 * as the condition of the zone changing substantionally
3215 * then carrying on with the previous defer interval is
3216 * not useful.
3217 */
3218 timeout = default_timeout;
3219 continue;
3220 }
3221
3222 /*
3223 * Start the proactive work with default timeout. Based
3224 * on the fragmentation score, this timeout is updated.
3225 */
3226 timeout = default_timeout;
3227 if (should_proactive_compact_node(pgdat)) {
3228 unsigned int prev_score, score;
3229
3230 prev_score = fragmentation_score_node(pgdat);
3231 compact_node(pgdat, true);
3232 score = fragmentation_score_node(pgdat);
3233 /*
3234 * Defer proactive compaction if the fragmentation
3235 * score did not go down i.e. no progress made.
3236 */
3237 if (unlikely(score >= prev_score))
3238 timeout =
3239 default_timeout << COMPACT_MAX_DEFER_SHIFT;
3240 }
3241 if (unlikely(pgdat->proactive_compact_trigger))
3242 pgdat->proactive_compact_trigger = false;
3243 }
3244
3245 current->flags &= ~PF_KCOMPACTD;
3246
3247 return 0;
3248 }
3249
3250 /*
3251 * This kcompactd start function will be called by init and node-hot-add.
3252 * On node-hot-add, kcompactd will moved to proper cpus if cpus are hot-added.
3253 */
kcompactd_run(int nid)3254 void __meminit kcompactd_run(int nid)
3255 {
3256 pg_data_t *pgdat = NODE_DATA(nid);
3257
3258 if (pgdat->kcompactd)
3259 return;
3260
3261 pgdat->kcompactd = kthread_create_on_node(kcompactd, pgdat, nid, "kcompactd%d", nid);
3262 if (IS_ERR(pgdat->kcompactd)) {
3263 pr_err("Failed to start kcompactd on node %d\n", nid);
3264 pgdat->kcompactd = NULL;
3265 } else {
3266 wake_up_process(pgdat->kcompactd);
3267 }
3268 }
3269
3270 /*
3271 * Called by memory hotplug when all memory in a node is offlined. Caller must
3272 * be holding mem_hotplug_begin/done().
3273 */
kcompactd_stop(int nid)3274 void __meminit kcompactd_stop(int nid)
3275 {
3276 struct task_struct *kcompactd = NODE_DATA(nid)->kcompactd;
3277
3278 if (kcompactd) {
3279 kthread_stop(kcompactd);
3280 NODE_DATA(nid)->kcompactd = NULL;
3281 }
3282 }
3283
proc_dointvec_minmax_warn_RT_change(const struct ctl_table * table,int write,void * buffer,size_t * lenp,loff_t * ppos)3284 static int proc_dointvec_minmax_warn_RT_change(const struct ctl_table *table,
3285 int write, void *buffer, size_t *lenp, loff_t *ppos)
3286 {
3287 int ret, old;
3288
3289 if (!IS_ENABLED(CONFIG_PREEMPT_RT) || !write)
3290 return proc_dointvec_minmax(table, write, buffer, lenp, ppos);
3291
3292 old = *(int *)table->data;
3293 ret = proc_dointvec_minmax(table, write, buffer, lenp, ppos);
3294 if (ret)
3295 return ret;
3296 if (old != *(int *)table->data)
3297 pr_warn_once("sysctl attribute %s changed by %s[%d]\n",
3298 table->procname, current->comm,
3299 task_pid_nr(current));
3300 return ret;
3301 }
3302
3303 static const struct ctl_table vm_compaction[] = {
3304 {
3305 .procname = "compact_memory",
3306 .data = &sysctl_compact_memory,
3307 .maxlen = sizeof(int),
3308 .mode = 0200,
3309 .proc_handler = sysctl_compaction_handler,
3310 },
3311 {
3312 .procname = "compaction_proactiveness",
3313 .data = &sysctl_compaction_proactiveness,
3314 .maxlen = sizeof(sysctl_compaction_proactiveness),
3315 .mode = 0644,
3316 .proc_handler = compaction_proactiveness_sysctl_handler,
3317 .extra1 = SYSCTL_ZERO,
3318 .extra2 = SYSCTL_ONE_HUNDRED,
3319 },
3320 {
3321 .procname = "extfrag_threshold",
3322 .data = &sysctl_extfrag_threshold,
3323 .maxlen = sizeof(int),
3324 .mode = 0644,
3325 .proc_handler = proc_dointvec_minmax,
3326 .extra1 = SYSCTL_ZERO,
3327 .extra2 = SYSCTL_ONE_THOUSAND,
3328 },
3329 {
3330 .procname = "compact_unevictable_allowed",
3331 .data = &sysctl_compact_unevictable_allowed,
3332 .maxlen = sizeof(int),
3333 .mode = 0644,
3334 .proc_handler = proc_dointvec_minmax_warn_RT_change,
3335 .extra1 = SYSCTL_ZERO,
3336 .extra2 = SYSCTL_ONE,
3337 },
3338 };
3339
kcompactd_init(void)3340 static int __init kcompactd_init(void)
3341 {
3342 int nid;
3343
3344 for_each_node_state(nid, N_MEMORY)
3345 kcompactd_run(nid);
3346 register_sysctl_init("vm", vm_compaction);
3347 return 0;
3348 }
3349 subsys_initcall(kcompactd_init)
3350
3351 #endif /* CONFIG_COMPACTION */
3352