xref: /linux/mm/vmscan.c (revision 871402e05b24cb56bc69df47cff960d0e0d24267)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  *  linux/mm/vmscan.c
4  *
5  *  Copyright (C) 1991, 1992, 1993, 1994  Linus Torvalds
6  *
7  *  Swap reorganised 29.12.95, Stephen Tweedie.
8  *  kswapd added: 7.1.96  sct
9  *  Removed kswapd_ctl limits, and swap out as many pages as needed
10  *  to bring the system back to freepages.high: 2.4.97, Rik van Riel.
11  *  Zone aware kswapd started 02/00, Kanoj Sarcar (kanoj@sgi.com).
12  *  Multiqueue VM started 5.8.00, Rik van Riel.
13  */
14 
15 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
16 
17 #include <linux/mm.h>
18 #include <linux/sched/mm.h>
19 #include <linux/module.h>
20 #include <linux/gfp.h>
21 #include <linux/kernel_stat.h>
22 #include <linux/swap.h>
23 #include <linux/pagemap.h>
24 #include <linux/init.h>
25 #include <linux/highmem.h>
26 #include <linux/vmpressure.h>
27 #include <linux/vmstat.h>
28 #include <linux/file.h>
29 #include <linux/writeback.h>
30 #include <linux/blkdev.h>
31 #include <linux/buffer_head.h>	/* for try_to_release_page(),
32 					buffer_heads_over_limit */
33 #include <linux/mm_inline.h>
34 #include <linux/backing-dev.h>
35 #include <linux/rmap.h>
36 #include <linux/topology.h>
37 #include <linux/cpu.h>
38 #include <linux/cpuset.h>
39 #include <linux/compaction.h>
40 #include <linux/notifier.h>
41 #include <linux/rwsem.h>
42 #include <linux/delay.h>
43 #include <linux/kthread.h>
44 #include <linux/freezer.h>
45 #include <linux/memcontrol.h>
46 #include <linux/delayacct.h>
47 #include <linux/sysctl.h>
48 #include <linux/oom.h>
49 #include <linux/pagevec.h>
50 #include <linux/prefetch.h>
51 #include <linux/printk.h>
52 #include <linux/dax.h>
53 #include <linux/psi.h>
54 
55 #include <asm/tlbflush.h>
56 #include <asm/div64.h>
57 
58 #include <linux/swapops.h>
59 #include <linux/balloon_compaction.h>
60 
61 #include "internal.h"
62 
63 #define CREATE_TRACE_POINTS
64 #include <trace/events/vmscan.h>
65 
66 struct scan_control {
67 	/* How many pages shrink_list() should reclaim */
68 	unsigned long nr_to_reclaim;
69 
70 	/*
71 	 * Nodemask of nodes allowed by the caller. If NULL, all nodes
72 	 * are scanned.
73 	 */
74 	nodemask_t	*nodemask;
75 
76 	/*
77 	 * The memory cgroup that hit its limit and as a result is the
78 	 * primary target of this reclaim invocation.
79 	 */
80 	struct mem_cgroup *target_mem_cgroup;
81 
82 	/*
83 	 * Scan pressure balancing between anon and file LRUs
84 	 */
85 	unsigned long	anon_cost;
86 	unsigned long	file_cost;
87 
88 	/* Can active pages be deactivated as part of reclaim? */
89 #define DEACTIVATE_ANON 1
90 #define DEACTIVATE_FILE 2
91 	unsigned int may_deactivate:2;
92 	unsigned int force_deactivate:1;
93 	unsigned int skipped_deactivate:1;
94 
95 	/* Writepage batching in laptop mode; RECLAIM_WRITE */
96 	unsigned int may_writepage:1;
97 
98 	/* Can mapped pages be reclaimed? */
99 	unsigned int may_unmap:1;
100 
101 	/* Can pages be swapped as part of reclaim? */
102 	unsigned int may_swap:1;
103 
104 	/*
105 	 * Cgroups are not reclaimed below their configured memory.low,
106 	 * unless we threaten to OOM. If any cgroups are skipped due to
107 	 * memory.low and nothing was reclaimed, go back for memory.low.
108 	 */
109 	unsigned int memcg_low_reclaim:1;
110 	unsigned int memcg_low_skipped:1;
111 
112 	unsigned int hibernation_mode:1;
113 
114 	/* One of the zones is ready for compaction */
115 	unsigned int compaction_ready:1;
116 
117 	/* There is easily reclaimable cold cache in the current node */
118 	unsigned int cache_trim_mode:1;
119 
120 	/* The file pages on the current node are dangerously low */
121 	unsigned int file_is_tiny:1;
122 
123 	/* Allocation order */
124 	s8 order;
125 
126 	/* Scan (total_size >> priority) pages at once */
127 	s8 priority;
128 
129 	/* The highest zone to isolate pages for reclaim from */
130 	s8 reclaim_idx;
131 
132 	/* This context's GFP mask */
133 	gfp_t gfp_mask;
134 
135 	/* Incremented by the number of inactive pages that were scanned */
136 	unsigned long nr_scanned;
137 
138 	/* Number of pages freed so far during a call to shrink_zones() */
139 	unsigned long nr_reclaimed;
140 
141 	struct {
142 		unsigned int dirty;
143 		unsigned int unqueued_dirty;
144 		unsigned int congested;
145 		unsigned int writeback;
146 		unsigned int immediate;
147 		unsigned int file_taken;
148 		unsigned int taken;
149 	} nr;
150 
151 	/* for recording the reclaimed slab by now */
152 	struct reclaim_state reclaim_state;
153 };
154 
155 #ifdef ARCH_HAS_PREFETCHW
156 #define prefetchw_prev_lru_page(_page, _base, _field)			\
157 	do {								\
158 		if ((_page)->lru.prev != _base) {			\
159 			struct page *prev;				\
160 									\
161 			prev = lru_to_page(&(_page->lru));		\
162 			prefetchw(&prev->_field);			\
163 		}							\
164 	} while (0)
165 #else
166 #define prefetchw_prev_lru_page(_page, _base, _field) do { } while (0)
167 #endif
168 
169 /*
170  * From 0 .. 200.  Higher means more swappy.
171  */
172 int vm_swappiness = 60;
173 
174 static void set_task_reclaim_state(struct task_struct *task,
175 				   struct reclaim_state *rs)
176 {
177 	/* Check for an overwrite */
178 	WARN_ON_ONCE(rs && task->reclaim_state);
179 
180 	/* Check for the nulling of an already-nulled member */
181 	WARN_ON_ONCE(!rs && !task->reclaim_state);
182 
183 	task->reclaim_state = rs;
184 }
185 
186 static LIST_HEAD(shrinker_list);
187 static DECLARE_RWSEM(shrinker_rwsem);
188 
189 #ifdef CONFIG_MEMCG
190 /*
191  * We allow subsystems to populate their shrinker-related
192  * LRU lists before register_shrinker_prepared() is called
193  * for the shrinker, since we don't want to impose
194  * restrictions on their internal registration order.
195  * In this case shrink_slab_memcg() may find corresponding
196  * bit is set in the shrinkers map.
197  *
198  * This value is used by the function to detect registering
199  * shrinkers and to skip do_shrink_slab() calls for them.
200  */
201 #define SHRINKER_REGISTERING ((struct shrinker *)~0UL)
202 
203 static DEFINE_IDR(shrinker_idr);
204 static int shrinker_nr_max;
205 
206 static int prealloc_memcg_shrinker(struct shrinker *shrinker)
207 {
208 	int id, ret = -ENOMEM;
209 
210 	down_write(&shrinker_rwsem);
211 	/* This may call shrinker, so it must use down_read_trylock() */
212 	id = idr_alloc(&shrinker_idr, SHRINKER_REGISTERING, 0, 0, GFP_KERNEL);
213 	if (id < 0)
214 		goto unlock;
215 
216 	if (id >= shrinker_nr_max) {
217 		if (memcg_expand_shrinker_maps(id)) {
218 			idr_remove(&shrinker_idr, id);
219 			goto unlock;
220 		}
221 
222 		shrinker_nr_max = id + 1;
223 	}
224 	shrinker->id = id;
225 	ret = 0;
226 unlock:
227 	up_write(&shrinker_rwsem);
228 	return ret;
229 }
230 
231 static void unregister_memcg_shrinker(struct shrinker *shrinker)
232 {
233 	int id = shrinker->id;
234 
235 	BUG_ON(id < 0);
236 
237 	down_write(&shrinker_rwsem);
238 	idr_remove(&shrinker_idr, id);
239 	up_write(&shrinker_rwsem);
240 }
241 
242 static bool cgroup_reclaim(struct scan_control *sc)
243 {
244 	return sc->target_mem_cgroup;
245 }
246 
247 /**
248  * writeback_throttling_sane - is the usual dirty throttling mechanism available?
249  * @sc: scan_control in question
250  *
251  * The normal page dirty throttling mechanism in balance_dirty_pages() is
252  * completely broken with the legacy memcg and direct stalling in
253  * shrink_page_list() is used for throttling instead, which lacks all the
254  * niceties such as fairness, adaptive pausing, bandwidth proportional
255  * allocation and configurability.
256  *
257  * This function tests whether the vmscan currently in progress can assume
258  * that the normal dirty throttling mechanism is operational.
259  */
260 static bool writeback_throttling_sane(struct scan_control *sc)
261 {
262 	if (!cgroup_reclaim(sc))
263 		return true;
264 #ifdef CONFIG_CGROUP_WRITEBACK
265 	if (cgroup_subsys_on_dfl(memory_cgrp_subsys))
266 		return true;
267 #endif
268 	return false;
269 }
270 #else
271 static int prealloc_memcg_shrinker(struct shrinker *shrinker)
272 {
273 	return 0;
274 }
275 
276 static void unregister_memcg_shrinker(struct shrinker *shrinker)
277 {
278 }
279 
280 static bool cgroup_reclaim(struct scan_control *sc)
281 {
282 	return false;
283 }
284 
285 static bool writeback_throttling_sane(struct scan_control *sc)
286 {
287 	return true;
288 }
289 #endif
290 
291 /*
292  * This misses isolated pages which are not accounted for to save counters.
293  * As the data only determines if reclaim or compaction continues, it is
294  * not expected that isolated pages will be a dominating factor.
295  */
296 unsigned long zone_reclaimable_pages(struct zone *zone)
297 {
298 	unsigned long nr;
299 
300 	nr = zone_page_state_snapshot(zone, NR_ZONE_INACTIVE_FILE) +
301 		zone_page_state_snapshot(zone, NR_ZONE_ACTIVE_FILE);
302 	if (get_nr_swap_pages() > 0)
303 		nr += zone_page_state_snapshot(zone, NR_ZONE_INACTIVE_ANON) +
304 			zone_page_state_snapshot(zone, NR_ZONE_ACTIVE_ANON);
305 
306 	return nr;
307 }
308 
309 /**
310  * lruvec_lru_size -  Returns the number of pages on the given LRU list.
311  * @lruvec: lru vector
312  * @lru: lru to use
313  * @zone_idx: zones to consider (use MAX_NR_ZONES for the whole LRU list)
314  */
315 unsigned long lruvec_lru_size(struct lruvec *lruvec, enum lru_list lru, int zone_idx)
316 {
317 	unsigned long size = 0;
318 	int zid;
319 
320 	for (zid = 0; zid <= zone_idx && zid < MAX_NR_ZONES; zid++) {
321 		struct zone *zone = &lruvec_pgdat(lruvec)->node_zones[zid];
322 
323 		if (!managed_zone(zone))
324 			continue;
325 
326 		if (!mem_cgroup_disabled())
327 			size += mem_cgroup_get_zone_lru_size(lruvec, lru, zid);
328 		else
329 			size += zone_page_state(zone, NR_ZONE_LRU_BASE + lru);
330 	}
331 	return size;
332 }
333 
334 /*
335  * Add a shrinker callback to be called from the vm.
336  */
337 int prealloc_shrinker(struct shrinker *shrinker)
338 {
339 	unsigned int size = sizeof(*shrinker->nr_deferred);
340 
341 	if (shrinker->flags & SHRINKER_NUMA_AWARE)
342 		size *= nr_node_ids;
343 
344 	shrinker->nr_deferred = kzalloc(size, GFP_KERNEL);
345 	if (!shrinker->nr_deferred)
346 		return -ENOMEM;
347 
348 	if (shrinker->flags & SHRINKER_MEMCG_AWARE) {
349 		if (prealloc_memcg_shrinker(shrinker))
350 			goto free_deferred;
351 	}
352 
353 	return 0;
354 
355 free_deferred:
356 	kfree(shrinker->nr_deferred);
357 	shrinker->nr_deferred = NULL;
358 	return -ENOMEM;
359 }
360 
361 void free_prealloced_shrinker(struct shrinker *shrinker)
362 {
363 	if (!shrinker->nr_deferred)
364 		return;
365 
366 	if (shrinker->flags & SHRINKER_MEMCG_AWARE)
367 		unregister_memcg_shrinker(shrinker);
368 
369 	kfree(shrinker->nr_deferred);
370 	shrinker->nr_deferred = NULL;
371 }
372 
373 void register_shrinker_prepared(struct shrinker *shrinker)
374 {
375 	down_write(&shrinker_rwsem);
376 	list_add_tail(&shrinker->list, &shrinker_list);
377 #ifdef CONFIG_MEMCG
378 	if (shrinker->flags & SHRINKER_MEMCG_AWARE)
379 		idr_replace(&shrinker_idr, shrinker, shrinker->id);
380 #endif
381 	up_write(&shrinker_rwsem);
382 }
383 
384 int register_shrinker(struct shrinker *shrinker)
385 {
386 	int err = prealloc_shrinker(shrinker);
387 
388 	if (err)
389 		return err;
390 	register_shrinker_prepared(shrinker);
391 	return 0;
392 }
393 EXPORT_SYMBOL(register_shrinker);
394 
395 /*
396  * Remove one
397  */
398 void unregister_shrinker(struct shrinker *shrinker)
399 {
400 	if (!shrinker->nr_deferred)
401 		return;
402 	if (shrinker->flags & SHRINKER_MEMCG_AWARE)
403 		unregister_memcg_shrinker(shrinker);
404 	down_write(&shrinker_rwsem);
405 	list_del(&shrinker->list);
406 	up_write(&shrinker_rwsem);
407 	kfree(shrinker->nr_deferred);
408 	shrinker->nr_deferred = NULL;
409 }
410 EXPORT_SYMBOL(unregister_shrinker);
411 
412 #define SHRINK_BATCH 128
413 
414 static unsigned long do_shrink_slab(struct shrink_control *shrinkctl,
415 				    struct shrinker *shrinker, int priority)
416 {
417 	unsigned long freed = 0;
418 	unsigned long long delta;
419 	long total_scan;
420 	long freeable;
421 	long nr;
422 	long new_nr;
423 	int nid = shrinkctl->nid;
424 	long batch_size = shrinker->batch ? shrinker->batch
425 					  : SHRINK_BATCH;
426 	long scanned = 0, next_deferred;
427 
428 	if (!(shrinker->flags & SHRINKER_NUMA_AWARE))
429 		nid = 0;
430 
431 	freeable = shrinker->count_objects(shrinker, shrinkctl);
432 	if (freeable == 0 || freeable == SHRINK_EMPTY)
433 		return freeable;
434 
435 	/*
436 	 * copy the current shrinker scan count into a local variable
437 	 * and zero it so that other concurrent shrinker invocations
438 	 * don't also do this scanning work.
439 	 */
440 	nr = atomic_long_xchg(&shrinker->nr_deferred[nid], 0);
441 
442 	total_scan = nr;
443 	if (shrinker->seeks) {
444 		delta = freeable >> priority;
445 		delta *= 4;
446 		do_div(delta, shrinker->seeks);
447 	} else {
448 		/*
449 		 * These objects don't require any IO to create. Trim
450 		 * them aggressively under memory pressure to keep
451 		 * them from causing refetches in the IO caches.
452 		 */
453 		delta = freeable / 2;
454 	}
455 
456 	total_scan += delta;
457 	if (total_scan < 0) {
458 		pr_err("shrink_slab: %pS negative objects to delete nr=%ld\n",
459 		       shrinker->scan_objects, total_scan);
460 		total_scan = freeable;
461 		next_deferred = nr;
462 	} else
463 		next_deferred = total_scan;
464 
465 	/*
466 	 * We need to avoid excessive windup on filesystem shrinkers
467 	 * due to large numbers of GFP_NOFS allocations causing the
468 	 * shrinkers to return -1 all the time. This results in a large
469 	 * nr being built up so when a shrink that can do some work
470 	 * comes along it empties the entire cache due to nr >>>
471 	 * freeable. This is bad for sustaining a working set in
472 	 * memory.
473 	 *
474 	 * Hence only allow the shrinker to scan the entire cache when
475 	 * a large delta change is calculated directly.
476 	 */
477 	if (delta < freeable / 4)
478 		total_scan = min(total_scan, freeable / 2);
479 
480 	/*
481 	 * Avoid risking looping forever due to too large nr value:
482 	 * never try to free more than twice the estimate number of
483 	 * freeable entries.
484 	 */
485 	if (total_scan > freeable * 2)
486 		total_scan = freeable * 2;
487 
488 	trace_mm_shrink_slab_start(shrinker, shrinkctl, nr,
489 				   freeable, delta, total_scan, priority);
490 
491 	/*
492 	 * Normally, we should not scan less than batch_size objects in one
493 	 * pass to avoid too frequent shrinker calls, but if the slab has less
494 	 * than batch_size objects in total and we are really tight on memory,
495 	 * we will try to reclaim all available objects, otherwise we can end
496 	 * up failing allocations although there are plenty of reclaimable
497 	 * objects spread over several slabs with usage less than the
498 	 * batch_size.
499 	 *
500 	 * We detect the "tight on memory" situations by looking at the total
501 	 * number of objects we want to scan (total_scan). If it is greater
502 	 * than the total number of objects on slab (freeable), we must be
503 	 * scanning at high prio and therefore should try to reclaim as much as
504 	 * possible.
505 	 */
506 	while (total_scan >= batch_size ||
507 	       total_scan >= freeable) {
508 		unsigned long ret;
509 		unsigned long nr_to_scan = min(batch_size, total_scan);
510 
511 		shrinkctl->nr_to_scan = nr_to_scan;
512 		shrinkctl->nr_scanned = nr_to_scan;
513 		ret = shrinker->scan_objects(shrinker, shrinkctl);
514 		if (ret == SHRINK_STOP)
515 			break;
516 		freed += ret;
517 
518 		count_vm_events(SLABS_SCANNED, shrinkctl->nr_scanned);
519 		total_scan -= shrinkctl->nr_scanned;
520 		scanned += shrinkctl->nr_scanned;
521 
522 		cond_resched();
523 	}
524 
525 	if (next_deferred >= scanned)
526 		next_deferred -= scanned;
527 	else
528 		next_deferred = 0;
529 	/*
530 	 * move the unused scan count back into the shrinker in a
531 	 * manner that handles concurrent updates. If we exhausted the
532 	 * scan, there is no need to do an update.
533 	 */
534 	if (next_deferred > 0)
535 		new_nr = atomic_long_add_return(next_deferred,
536 						&shrinker->nr_deferred[nid]);
537 	else
538 		new_nr = atomic_long_read(&shrinker->nr_deferred[nid]);
539 
540 	trace_mm_shrink_slab_end(shrinker, nid, freed, nr, new_nr, total_scan);
541 	return freed;
542 }
543 
544 #ifdef CONFIG_MEMCG
545 static unsigned long shrink_slab_memcg(gfp_t gfp_mask, int nid,
546 			struct mem_cgroup *memcg, int priority)
547 {
548 	struct memcg_shrinker_map *map;
549 	unsigned long ret, freed = 0;
550 	int i;
551 
552 	if (!mem_cgroup_online(memcg))
553 		return 0;
554 
555 	if (!down_read_trylock(&shrinker_rwsem))
556 		return 0;
557 
558 	map = rcu_dereference_protected(memcg->nodeinfo[nid]->shrinker_map,
559 					true);
560 	if (unlikely(!map))
561 		goto unlock;
562 
563 	for_each_set_bit(i, map->map, shrinker_nr_max) {
564 		struct shrink_control sc = {
565 			.gfp_mask = gfp_mask,
566 			.nid = nid,
567 			.memcg = memcg,
568 		};
569 		struct shrinker *shrinker;
570 
571 		shrinker = idr_find(&shrinker_idr, i);
572 		if (unlikely(!shrinker || shrinker == SHRINKER_REGISTERING)) {
573 			if (!shrinker)
574 				clear_bit(i, map->map);
575 			continue;
576 		}
577 
578 		/* Call non-slab shrinkers even though kmem is disabled */
579 		if (!memcg_kmem_enabled() &&
580 		    !(shrinker->flags & SHRINKER_NONSLAB))
581 			continue;
582 
583 		ret = do_shrink_slab(&sc, shrinker, priority);
584 		if (ret == SHRINK_EMPTY) {
585 			clear_bit(i, map->map);
586 			/*
587 			 * After the shrinker reported that it had no objects to
588 			 * free, but before we cleared the corresponding bit in
589 			 * the memcg shrinker map, a new object might have been
590 			 * added. To make sure, we have the bit set in this
591 			 * case, we invoke the shrinker one more time and reset
592 			 * the bit if it reports that it is not empty anymore.
593 			 * The memory barrier here pairs with the barrier in
594 			 * memcg_set_shrinker_bit():
595 			 *
596 			 * list_lru_add()     shrink_slab_memcg()
597 			 *   list_add_tail()    clear_bit()
598 			 *   <MB>               <MB>
599 			 *   set_bit()          do_shrink_slab()
600 			 */
601 			smp_mb__after_atomic();
602 			ret = do_shrink_slab(&sc, shrinker, priority);
603 			if (ret == SHRINK_EMPTY)
604 				ret = 0;
605 			else
606 				memcg_set_shrinker_bit(memcg, nid, i);
607 		}
608 		freed += ret;
609 
610 		if (rwsem_is_contended(&shrinker_rwsem)) {
611 			freed = freed ? : 1;
612 			break;
613 		}
614 	}
615 unlock:
616 	up_read(&shrinker_rwsem);
617 	return freed;
618 }
619 #else /* CONFIG_MEMCG */
620 static unsigned long shrink_slab_memcg(gfp_t gfp_mask, int nid,
621 			struct mem_cgroup *memcg, int priority)
622 {
623 	return 0;
624 }
625 #endif /* CONFIG_MEMCG */
626 
627 /**
628  * shrink_slab - shrink slab caches
629  * @gfp_mask: allocation context
630  * @nid: node whose slab caches to target
631  * @memcg: memory cgroup whose slab caches to target
632  * @priority: the reclaim priority
633  *
634  * Call the shrink functions to age shrinkable caches.
635  *
636  * @nid is passed along to shrinkers with SHRINKER_NUMA_AWARE set,
637  * unaware shrinkers will receive a node id of 0 instead.
638  *
639  * @memcg specifies the memory cgroup to target. Unaware shrinkers
640  * are called only if it is the root cgroup.
641  *
642  * @priority is sc->priority, we take the number of objects and >> by priority
643  * in order to get the scan target.
644  *
645  * Returns the number of reclaimed slab objects.
646  */
647 static unsigned long shrink_slab(gfp_t gfp_mask, int nid,
648 				 struct mem_cgroup *memcg,
649 				 int priority)
650 {
651 	unsigned long ret, freed = 0;
652 	struct shrinker *shrinker;
653 
654 	/*
655 	 * The root memcg might be allocated even though memcg is disabled
656 	 * via "cgroup_disable=memory" boot parameter.  This could make
657 	 * mem_cgroup_is_root() return false, then just run memcg slab
658 	 * shrink, but skip global shrink.  This may result in premature
659 	 * oom.
660 	 */
661 	if (!mem_cgroup_disabled() && !mem_cgroup_is_root(memcg))
662 		return shrink_slab_memcg(gfp_mask, nid, memcg, priority);
663 
664 	if (!down_read_trylock(&shrinker_rwsem))
665 		goto out;
666 
667 	list_for_each_entry(shrinker, &shrinker_list, list) {
668 		struct shrink_control sc = {
669 			.gfp_mask = gfp_mask,
670 			.nid = nid,
671 			.memcg = memcg,
672 		};
673 
674 		ret = do_shrink_slab(&sc, shrinker, priority);
675 		if (ret == SHRINK_EMPTY)
676 			ret = 0;
677 		freed += ret;
678 		/*
679 		 * Bail out if someone want to register a new shrinker to
680 		 * prevent the registration from being stalled for long periods
681 		 * by parallel ongoing shrinking.
682 		 */
683 		if (rwsem_is_contended(&shrinker_rwsem)) {
684 			freed = freed ? : 1;
685 			break;
686 		}
687 	}
688 
689 	up_read(&shrinker_rwsem);
690 out:
691 	cond_resched();
692 	return freed;
693 }
694 
695 void drop_slab_node(int nid)
696 {
697 	unsigned long freed;
698 
699 	do {
700 		struct mem_cgroup *memcg = NULL;
701 
702 		if (fatal_signal_pending(current))
703 			return;
704 
705 		freed = 0;
706 		memcg = mem_cgroup_iter(NULL, NULL, NULL);
707 		do {
708 			freed += shrink_slab(GFP_KERNEL, nid, memcg, 0);
709 		} while ((memcg = mem_cgroup_iter(NULL, memcg, NULL)) != NULL);
710 	} while (freed > 10);
711 }
712 
713 void drop_slab(void)
714 {
715 	int nid;
716 
717 	for_each_online_node(nid)
718 		drop_slab_node(nid);
719 }
720 
721 static inline int is_page_cache_freeable(struct page *page)
722 {
723 	/*
724 	 * A freeable page cache page is referenced only by the caller
725 	 * that isolated the page, the page cache and optional buffer
726 	 * heads at page->private.
727 	 */
728 	int page_cache_pins = thp_nr_pages(page);
729 	return page_count(page) - page_has_private(page) == 1 + page_cache_pins;
730 }
731 
732 static int may_write_to_inode(struct inode *inode)
733 {
734 	if (current->flags & PF_SWAPWRITE)
735 		return 1;
736 	if (!inode_write_congested(inode))
737 		return 1;
738 	if (inode_to_bdi(inode) == current->backing_dev_info)
739 		return 1;
740 	return 0;
741 }
742 
743 /*
744  * We detected a synchronous write error writing a page out.  Probably
745  * -ENOSPC.  We need to propagate that into the address_space for a subsequent
746  * fsync(), msync() or close().
747  *
748  * The tricky part is that after writepage we cannot touch the mapping: nothing
749  * prevents it from being freed up.  But we have a ref on the page and once
750  * that page is locked, the mapping is pinned.
751  *
752  * We're allowed to run sleeping lock_page() here because we know the caller has
753  * __GFP_FS.
754  */
755 static void handle_write_error(struct address_space *mapping,
756 				struct page *page, int error)
757 {
758 	lock_page(page);
759 	if (page_mapping(page) == mapping)
760 		mapping_set_error(mapping, error);
761 	unlock_page(page);
762 }
763 
764 /* possible outcome of pageout() */
765 typedef enum {
766 	/* failed to write page out, page is locked */
767 	PAGE_KEEP,
768 	/* move page to the active list, page is locked */
769 	PAGE_ACTIVATE,
770 	/* page has been sent to the disk successfully, page is unlocked */
771 	PAGE_SUCCESS,
772 	/* page is clean and locked */
773 	PAGE_CLEAN,
774 } pageout_t;
775 
776 /*
777  * pageout is called by shrink_page_list() for each dirty page.
778  * Calls ->writepage().
779  */
780 static pageout_t pageout(struct page *page, struct address_space *mapping)
781 {
782 	/*
783 	 * If the page is dirty, only perform writeback if that write
784 	 * will be non-blocking.  To prevent this allocation from being
785 	 * stalled by pagecache activity.  But note that there may be
786 	 * stalls if we need to run get_block().  We could test
787 	 * PagePrivate for that.
788 	 *
789 	 * If this process is currently in __generic_file_write_iter() against
790 	 * this page's queue, we can perform writeback even if that
791 	 * will block.
792 	 *
793 	 * If the page is swapcache, write it back even if that would
794 	 * block, for some throttling. This happens by accident, because
795 	 * swap_backing_dev_info is bust: it doesn't reflect the
796 	 * congestion state of the swapdevs.  Easy to fix, if needed.
797 	 */
798 	if (!is_page_cache_freeable(page))
799 		return PAGE_KEEP;
800 	if (!mapping) {
801 		/*
802 		 * Some data journaling orphaned pages can have
803 		 * page->mapping == NULL while being dirty with clean buffers.
804 		 */
805 		if (page_has_private(page)) {
806 			if (try_to_free_buffers(page)) {
807 				ClearPageDirty(page);
808 				pr_info("%s: orphaned page\n", __func__);
809 				return PAGE_CLEAN;
810 			}
811 		}
812 		return PAGE_KEEP;
813 	}
814 	if (mapping->a_ops->writepage == NULL)
815 		return PAGE_ACTIVATE;
816 	if (!may_write_to_inode(mapping->host))
817 		return PAGE_KEEP;
818 
819 	if (clear_page_dirty_for_io(page)) {
820 		int res;
821 		struct writeback_control wbc = {
822 			.sync_mode = WB_SYNC_NONE,
823 			.nr_to_write = SWAP_CLUSTER_MAX,
824 			.range_start = 0,
825 			.range_end = LLONG_MAX,
826 			.for_reclaim = 1,
827 		};
828 
829 		SetPageReclaim(page);
830 		res = mapping->a_ops->writepage(page, &wbc);
831 		if (res < 0)
832 			handle_write_error(mapping, page, res);
833 		if (res == AOP_WRITEPAGE_ACTIVATE) {
834 			ClearPageReclaim(page);
835 			return PAGE_ACTIVATE;
836 		}
837 
838 		if (!PageWriteback(page)) {
839 			/* synchronous write or broken a_ops? */
840 			ClearPageReclaim(page);
841 		}
842 		trace_mm_vmscan_writepage(page);
843 		inc_node_page_state(page, NR_VMSCAN_WRITE);
844 		return PAGE_SUCCESS;
845 	}
846 
847 	return PAGE_CLEAN;
848 }
849 
850 /*
851  * Same as remove_mapping, but if the page is removed from the mapping, it
852  * gets returned with a refcount of 0.
853  */
854 static int __remove_mapping(struct address_space *mapping, struct page *page,
855 			    bool reclaimed, struct mem_cgroup *target_memcg)
856 {
857 	unsigned long flags;
858 	int refcount;
859 	void *shadow = NULL;
860 
861 	BUG_ON(!PageLocked(page));
862 	BUG_ON(mapping != page_mapping(page));
863 
864 	xa_lock_irqsave(&mapping->i_pages, flags);
865 	/*
866 	 * The non racy check for a busy page.
867 	 *
868 	 * Must be careful with the order of the tests. When someone has
869 	 * a ref to the page, it may be possible that they dirty it then
870 	 * drop the reference. So if PageDirty is tested before page_count
871 	 * here, then the following race may occur:
872 	 *
873 	 * get_user_pages(&page);
874 	 * [user mapping goes away]
875 	 * write_to(page);
876 	 *				!PageDirty(page)    [good]
877 	 * SetPageDirty(page);
878 	 * put_page(page);
879 	 *				!page_count(page)   [good, discard it]
880 	 *
881 	 * [oops, our write_to data is lost]
882 	 *
883 	 * Reversing the order of the tests ensures such a situation cannot
884 	 * escape unnoticed. The smp_rmb is needed to ensure the page->flags
885 	 * load is not satisfied before that of page->_refcount.
886 	 *
887 	 * Note that if SetPageDirty is always performed via set_page_dirty,
888 	 * and thus under the i_pages lock, then this ordering is not required.
889 	 */
890 	refcount = 1 + compound_nr(page);
891 	if (!page_ref_freeze(page, refcount))
892 		goto cannot_free;
893 	/* note: atomic_cmpxchg in page_ref_freeze provides the smp_rmb */
894 	if (unlikely(PageDirty(page))) {
895 		page_ref_unfreeze(page, refcount);
896 		goto cannot_free;
897 	}
898 
899 	if (PageSwapCache(page)) {
900 		swp_entry_t swap = { .val = page_private(page) };
901 		mem_cgroup_swapout(page, swap);
902 		if (reclaimed && !mapping_exiting(mapping))
903 			shadow = workingset_eviction(page, target_memcg);
904 		__delete_from_swap_cache(page, swap, shadow);
905 		xa_unlock_irqrestore(&mapping->i_pages, flags);
906 		put_swap_page(page, swap);
907 	} else {
908 		void (*freepage)(struct page *);
909 
910 		freepage = mapping->a_ops->freepage;
911 		/*
912 		 * Remember a shadow entry for reclaimed file cache in
913 		 * order to detect refaults, thus thrashing, later on.
914 		 *
915 		 * But don't store shadows in an address space that is
916 		 * already exiting.  This is not just an optimization,
917 		 * inode reclaim needs to empty out the radix tree or
918 		 * the nodes are lost.  Don't plant shadows behind its
919 		 * back.
920 		 *
921 		 * We also don't store shadows for DAX mappings because the
922 		 * only page cache pages found in these are zero pages
923 		 * covering holes, and because we don't want to mix DAX
924 		 * exceptional entries and shadow exceptional entries in the
925 		 * same address_space.
926 		 */
927 		if (reclaimed && page_is_file_lru(page) &&
928 		    !mapping_exiting(mapping) && !dax_mapping(mapping))
929 			shadow = workingset_eviction(page, target_memcg);
930 		__delete_from_page_cache(page, shadow);
931 		xa_unlock_irqrestore(&mapping->i_pages, flags);
932 
933 		if (freepage != NULL)
934 			freepage(page);
935 	}
936 
937 	return 1;
938 
939 cannot_free:
940 	xa_unlock_irqrestore(&mapping->i_pages, flags);
941 	return 0;
942 }
943 
944 /*
945  * Attempt to detach a locked page from its ->mapping.  If it is dirty or if
946  * someone else has a ref on the page, abort and return 0.  If it was
947  * successfully detached, return 1.  Assumes the caller has a single ref on
948  * this page.
949  */
950 int remove_mapping(struct address_space *mapping, struct page *page)
951 {
952 	if (__remove_mapping(mapping, page, false, NULL)) {
953 		/*
954 		 * Unfreezing the refcount with 1 rather than 2 effectively
955 		 * drops the pagecache ref for us without requiring another
956 		 * atomic operation.
957 		 */
958 		page_ref_unfreeze(page, 1);
959 		return 1;
960 	}
961 	return 0;
962 }
963 
964 /**
965  * putback_lru_page - put previously isolated page onto appropriate LRU list
966  * @page: page to be put back to appropriate lru list
967  *
968  * Add previously isolated @page to appropriate LRU list.
969  * Page may still be unevictable for other reasons.
970  *
971  * lru_lock must not be held, interrupts must be enabled.
972  */
973 void putback_lru_page(struct page *page)
974 {
975 	lru_cache_add(page);
976 	put_page(page);		/* drop ref from isolate */
977 }
978 
979 enum page_references {
980 	PAGEREF_RECLAIM,
981 	PAGEREF_RECLAIM_CLEAN,
982 	PAGEREF_KEEP,
983 	PAGEREF_ACTIVATE,
984 };
985 
986 static enum page_references page_check_references(struct page *page,
987 						  struct scan_control *sc)
988 {
989 	int referenced_ptes, referenced_page;
990 	unsigned long vm_flags;
991 
992 	referenced_ptes = page_referenced(page, 1, sc->target_mem_cgroup,
993 					  &vm_flags);
994 	referenced_page = TestClearPageReferenced(page);
995 
996 	/*
997 	 * Mlock lost the isolation race with us.  Let try_to_unmap()
998 	 * move the page to the unevictable list.
999 	 */
1000 	if (vm_flags & VM_LOCKED)
1001 		return PAGEREF_RECLAIM;
1002 
1003 	if (referenced_ptes) {
1004 		/*
1005 		 * All mapped pages start out with page table
1006 		 * references from the instantiating fault, so we need
1007 		 * to look twice if a mapped file page is used more
1008 		 * than once.
1009 		 *
1010 		 * Mark it and spare it for another trip around the
1011 		 * inactive list.  Another page table reference will
1012 		 * lead to its activation.
1013 		 *
1014 		 * Note: the mark is set for activated pages as well
1015 		 * so that recently deactivated but used pages are
1016 		 * quickly recovered.
1017 		 */
1018 		SetPageReferenced(page);
1019 
1020 		if (referenced_page || referenced_ptes > 1)
1021 			return PAGEREF_ACTIVATE;
1022 
1023 		/*
1024 		 * Activate file-backed executable pages after first usage.
1025 		 */
1026 		if ((vm_flags & VM_EXEC) && !PageSwapBacked(page))
1027 			return PAGEREF_ACTIVATE;
1028 
1029 		return PAGEREF_KEEP;
1030 	}
1031 
1032 	/* Reclaim if clean, defer dirty pages to writeback */
1033 	if (referenced_page && !PageSwapBacked(page))
1034 		return PAGEREF_RECLAIM_CLEAN;
1035 
1036 	return PAGEREF_RECLAIM;
1037 }
1038 
1039 /* Check if a page is dirty or under writeback */
1040 static void page_check_dirty_writeback(struct page *page,
1041 				       bool *dirty, bool *writeback)
1042 {
1043 	struct address_space *mapping;
1044 
1045 	/*
1046 	 * Anonymous pages are not handled by flushers and must be written
1047 	 * from reclaim context. Do not stall reclaim based on them
1048 	 */
1049 	if (!page_is_file_lru(page) ||
1050 	    (PageAnon(page) && !PageSwapBacked(page))) {
1051 		*dirty = false;
1052 		*writeback = false;
1053 		return;
1054 	}
1055 
1056 	/* By default assume that the page flags are accurate */
1057 	*dirty = PageDirty(page);
1058 	*writeback = PageWriteback(page);
1059 
1060 	/* Verify dirty/writeback state if the filesystem supports it */
1061 	if (!page_has_private(page))
1062 		return;
1063 
1064 	mapping = page_mapping(page);
1065 	if (mapping && mapping->a_ops->is_dirty_writeback)
1066 		mapping->a_ops->is_dirty_writeback(page, dirty, writeback);
1067 }
1068 
1069 /*
1070  * shrink_page_list() returns the number of reclaimed pages
1071  */
1072 static unsigned int shrink_page_list(struct list_head *page_list,
1073 				     struct pglist_data *pgdat,
1074 				     struct scan_control *sc,
1075 				     struct reclaim_stat *stat,
1076 				     bool ignore_references)
1077 {
1078 	LIST_HEAD(ret_pages);
1079 	LIST_HEAD(free_pages);
1080 	unsigned int nr_reclaimed = 0;
1081 	unsigned int pgactivate = 0;
1082 
1083 	memset(stat, 0, sizeof(*stat));
1084 	cond_resched();
1085 
1086 	while (!list_empty(page_list)) {
1087 		struct address_space *mapping;
1088 		struct page *page;
1089 		enum page_references references = PAGEREF_RECLAIM;
1090 		bool dirty, writeback, may_enter_fs;
1091 		unsigned int nr_pages;
1092 
1093 		cond_resched();
1094 
1095 		page = lru_to_page(page_list);
1096 		list_del(&page->lru);
1097 
1098 		if (!trylock_page(page))
1099 			goto keep;
1100 
1101 		VM_BUG_ON_PAGE(PageActive(page), page);
1102 
1103 		nr_pages = compound_nr(page);
1104 
1105 		/* Account the number of base pages even though THP */
1106 		sc->nr_scanned += nr_pages;
1107 
1108 		if (unlikely(!page_evictable(page)))
1109 			goto activate_locked;
1110 
1111 		if (!sc->may_unmap && page_mapped(page))
1112 			goto keep_locked;
1113 
1114 		may_enter_fs = (sc->gfp_mask & __GFP_FS) ||
1115 			(PageSwapCache(page) && (sc->gfp_mask & __GFP_IO));
1116 
1117 		/*
1118 		 * The number of dirty pages determines if a node is marked
1119 		 * reclaim_congested which affects wait_iff_congested. kswapd
1120 		 * will stall and start writing pages if the tail of the LRU
1121 		 * is all dirty unqueued pages.
1122 		 */
1123 		page_check_dirty_writeback(page, &dirty, &writeback);
1124 		if (dirty || writeback)
1125 			stat->nr_dirty++;
1126 
1127 		if (dirty && !writeback)
1128 			stat->nr_unqueued_dirty++;
1129 
1130 		/*
1131 		 * Treat this page as congested if the underlying BDI is or if
1132 		 * pages are cycling through the LRU so quickly that the
1133 		 * pages marked for immediate reclaim are making it to the
1134 		 * end of the LRU a second time.
1135 		 */
1136 		mapping = page_mapping(page);
1137 		if (((dirty || writeback) && mapping &&
1138 		     inode_write_congested(mapping->host)) ||
1139 		    (writeback && PageReclaim(page)))
1140 			stat->nr_congested++;
1141 
1142 		/*
1143 		 * If a page at the tail of the LRU is under writeback, there
1144 		 * are three cases to consider.
1145 		 *
1146 		 * 1) If reclaim is encountering an excessive number of pages
1147 		 *    under writeback and this page is both under writeback and
1148 		 *    PageReclaim then it indicates that pages are being queued
1149 		 *    for IO but are being recycled through the LRU before the
1150 		 *    IO can complete. Waiting on the page itself risks an
1151 		 *    indefinite stall if it is impossible to writeback the
1152 		 *    page due to IO error or disconnected storage so instead
1153 		 *    note that the LRU is being scanned too quickly and the
1154 		 *    caller can stall after page list has been processed.
1155 		 *
1156 		 * 2) Global or new memcg reclaim encounters a page that is
1157 		 *    not marked for immediate reclaim, or the caller does not
1158 		 *    have __GFP_FS (or __GFP_IO if it's simply going to swap,
1159 		 *    not to fs). In this case mark the page for immediate
1160 		 *    reclaim and continue scanning.
1161 		 *
1162 		 *    Require may_enter_fs because we would wait on fs, which
1163 		 *    may not have submitted IO yet. And the loop driver might
1164 		 *    enter reclaim, and deadlock if it waits on a page for
1165 		 *    which it is needed to do the write (loop masks off
1166 		 *    __GFP_IO|__GFP_FS for this reason); but more thought
1167 		 *    would probably show more reasons.
1168 		 *
1169 		 * 3) Legacy memcg encounters a page that is already marked
1170 		 *    PageReclaim. memcg does not have any dirty pages
1171 		 *    throttling so we could easily OOM just because too many
1172 		 *    pages are in writeback and there is nothing else to
1173 		 *    reclaim. Wait for the writeback to complete.
1174 		 *
1175 		 * In cases 1) and 2) we activate the pages to get them out of
1176 		 * the way while we continue scanning for clean pages on the
1177 		 * inactive list and refilling from the active list. The
1178 		 * observation here is that waiting for disk writes is more
1179 		 * expensive than potentially causing reloads down the line.
1180 		 * Since they're marked for immediate reclaim, they won't put
1181 		 * memory pressure on the cache working set any longer than it
1182 		 * takes to write them to disk.
1183 		 */
1184 		if (PageWriteback(page)) {
1185 			/* Case 1 above */
1186 			if (current_is_kswapd() &&
1187 			    PageReclaim(page) &&
1188 			    test_bit(PGDAT_WRITEBACK, &pgdat->flags)) {
1189 				stat->nr_immediate++;
1190 				goto activate_locked;
1191 
1192 			/* Case 2 above */
1193 			} else if (writeback_throttling_sane(sc) ||
1194 			    !PageReclaim(page) || !may_enter_fs) {
1195 				/*
1196 				 * This is slightly racy - end_page_writeback()
1197 				 * might have just cleared PageReclaim, then
1198 				 * setting PageReclaim here end up interpreted
1199 				 * as PageReadahead - but that does not matter
1200 				 * enough to care.  What we do want is for this
1201 				 * page to have PageReclaim set next time memcg
1202 				 * reclaim reaches the tests above, so it will
1203 				 * then wait_on_page_writeback() to avoid OOM;
1204 				 * and it's also appropriate in global reclaim.
1205 				 */
1206 				SetPageReclaim(page);
1207 				stat->nr_writeback++;
1208 				goto activate_locked;
1209 
1210 			/* Case 3 above */
1211 			} else {
1212 				unlock_page(page);
1213 				wait_on_page_writeback(page);
1214 				/* then go back and try same page again */
1215 				list_add_tail(&page->lru, page_list);
1216 				continue;
1217 			}
1218 		}
1219 
1220 		if (!ignore_references)
1221 			references = page_check_references(page, sc);
1222 
1223 		switch (references) {
1224 		case PAGEREF_ACTIVATE:
1225 			goto activate_locked;
1226 		case PAGEREF_KEEP:
1227 			stat->nr_ref_keep += nr_pages;
1228 			goto keep_locked;
1229 		case PAGEREF_RECLAIM:
1230 		case PAGEREF_RECLAIM_CLEAN:
1231 			; /* try to reclaim the page below */
1232 		}
1233 
1234 		/*
1235 		 * Anonymous process memory has backing store?
1236 		 * Try to allocate it some swap space here.
1237 		 * Lazyfree page could be freed directly
1238 		 */
1239 		if (PageAnon(page) && PageSwapBacked(page)) {
1240 			if (!PageSwapCache(page)) {
1241 				if (!(sc->gfp_mask & __GFP_IO))
1242 					goto keep_locked;
1243 				if (PageTransHuge(page)) {
1244 					/* cannot split THP, skip it */
1245 					if (!can_split_huge_page(page, NULL))
1246 						goto activate_locked;
1247 					/*
1248 					 * Split pages without a PMD map right
1249 					 * away. Chances are some or all of the
1250 					 * tail pages can be freed without IO.
1251 					 */
1252 					if (!compound_mapcount(page) &&
1253 					    split_huge_page_to_list(page,
1254 								    page_list))
1255 						goto activate_locked;
1256 				}
1257 				if (!add_to_swap(page)) {
1258 					if (!PageTransHuge(page))
1259 						goto activate_locked_split;
1260 					/* Fallback to swap normal pages */
1261 					if (split_huge_page_to_list(page,
1262 								    page_list))
1263 						goto activate_locked;
1264 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
1265 					count_vm_event(THP_SWPOUT_FALLBACK);
1266 #endif
1267 					if (!add_to_swap(page))
1268 						goto activate_locked_split;
1269 				}
1270 
1271 				may_enter_fs = true;
1272 
1273 				/* Adding to swap updated mapping */
1274 				mapping = page_mapping(page);
1275 			}
1276 		} else if (unlikely(PageTransHuge(page))) {
1277 			/* Split file THP */
1278 			if (split_huge_page_to_list(page, page_list))
1279 				goto keep_locked;
1280 		}
1281 
1282 		/*
1283 		 * THP may get split above, need minus tail pages and update
1284 		 * nr_pages to avoid accounting tail pages twice.
1285 		 *
1286 		 * The tail pages that are added into swap cache successfully
1287 		 * reach here.
1288 		 */
1289 		if ((nr_pages > 1) && !PageTransHuge(page)) {
1290 			sc->nr_scanned -= (nr_pages - 1);
1291 			nr_pages = 1;
1292 		}
1293 
1294 		/*
1295 		 * The page is mapped into the page tables of one or more
1296 		 * processes. Try to unmap it here.
1297 		 */
1298 		if (page_mapped(page)) {
1299 			enum ttu_flags flags = TTU_BATCH_FLUSH;
1300 			bool was_swapbacked = PageSwapBacked(page);
1301 
1302 			if (unlikely(PageTransHuge(page)))
1303 				flags |= TTU_SPLIT_HUGE_PMD;
1304 
1305 			if (!try_to_unmap(page, flags)) {
1306 				stat->nr_unmap_fail += nr_pages;
1307 				if (!was_swapbacked && PageSwapBacked(page))
1308 					stat->nr_lazyfree_fail += nr_pages;
1309 				goto activate_locked;
1310 			}
1311 		}
1312 
1313 		if (PageDirty(page)) {
1314 			/*
1315 			 * Only kswapd can writeback filesystem pages
1316 			 * to avoid risk of stack overflow. But avoid
1317 			 * injecting inefficient single-page IO into
1318 			 * flusher writeback as much as possible: only
1319 			 * write pages when we've encountered many
1320 			 * dirty pages, and when we've already scanned
1321 			 * the rest of the LRU for clean pages and see
1322 			 * the same dirty pages again (PageReclaim).
1323 			 */
1324 			if (page_is_file_lru(page) &&
1325 			    (!current_is_kswapd() || !PageReclaim(page) ||
1326 			     !test_bit(PGDAT_DIRTY, &pgdat->flags))) {
1327 				/*
1328 				 * Immediately reclaim when written back.
1329 				 * Similar in principal to deactivate_page()
1330 				 * except we already have the page isolated
1331 				 * and know it's dirty
1332 				 */
1333 				inc_node_page_state(page, NR_VMSCAN_IMMEDIATE);
1334 				SetPageReclaim(page);
1335 
1336 				goto activate_locked;
1337 			}
1338 
1339 			if (references == PAGEREF_RECLAIM_CLEAN)
1340 				goto keep_locked;
1341 			if (!may_enter_fs)
1342 				goto keep_locked;
1343 			if (!sc->may_writepage)
1344 				goto keep_locked;
1345 
1346 			/*
1347 			 * Page is dirty. Flush the TLB if a writable entry
1348 			 * potentially exists to avoid CPU writes after IO
1349 			 * starts and then write it out here.
1350 			 */
1351 			try_to_unmap_flush_dirty();
1352 			switch (pageout(page, mapping)) {
1353 			case PAGE_KEEP:
1354 				goto keep_locked;
1355 			case PAGE_ACTIVATE:
1356 				goto activate_locked;
1357 			case PAGE_SUCCESS:
1358 				stat->nr_pageout += thp_nr_pages(page);
1359 
1360 				if (PageWriteback(page))
1361 					goto keep;
1362 				if (PageDirty(page))
1363 					goto keep;
1364 
1365 				/*
1366 				 * A synchronous write - probably a ramdisk.  Go
1367 				 * ahead and try to reclaim the page.
1368 				 */
1369 				if (!trylock_page(page))
1370 					goto keep;
1371 				if (PageDirty(page) || PageWriteback(page))
1372 					goto keep_locked;
1373 				mapping = page_mapping(page);
1374 			case PAGE_CLEAN:
1375 				; /* try to free the page below */
1376 			}
1377 		}
1378 
1379 		/*
1380 		 * If the page has buffers, try to free the buffer mappings
1381 		 * associated with this page. If we succeed we try to free
1382 		 * the page as well.
1383 		 *
1384 		 * We do this even if the page is PageDirty().
1385 		 * try_to_release_page() does not perform I/O, but it is
1386 		 * possible for a page to have PageDirty set, but it is actually
1387 		 * clean (all its buffers are clean).  This happens if the
1388 		 * buffers were written out directly, with submit_bh(). ext3
1389 		 * will do this, as well as the blockdev mapping.
1390 		 * try_to_release_page() will discover that cleanness and will
1391 		 * drop the buffers and mark the page clean - it can be freed.
1392 		 *
1393 		 * Rarely, pages can have buffers and no ->mapping.  These are
1394 		 * the pages which were not successfully invalidated in
1395 		 * truncate_complete_page().  We try to drop those buffers here
1396 		 * and if that worked, and the page is no longer mapped into
1397 		 * process address space (page_count == 1) it can be freed.
1398 		 * Otherwise, leave the page on the LRU so it is swappable.
1399 		 */
1400 		if (page_has_private(page)) {
1401 			if (!try_to_release_page(page, sc->gfp_mask))
1402 				goto activate_locked;
1403 			if (!mapping && page_count(page) == 1) {
1404 				unlock_page(page);
1405 				if (put_page_testzero(page))
1406 					goto free_it;
1407 				else {
1408 					/*
1409 					 * rare race with speculative reference.
1410 					 * the speculative reference will free
1411 					 * this page shortly, so we may
1412 					 * increment nr_reclaimed here (and
1413 					 * leave it off the LRU).
1414 					 */
1415 					nr_reclaimed++;
1416 					continue;
1417 				}
1418 			}
1419 		}
1420 
1421 		if (PageAnon(page) && !PageSwapBacked(page)) {
1422 			/* follow __remove_mapping for reference */
1423 			if (!page_ref_freeze(page, 1))
1424 				goto keep_locked;
1425 			if (PageDirty(page)) {
1426 				page_ref_unfreeze(page, 1);
1427 				goto keep_locked;
1428 			}
1429 
1430 			count_vm_event(PGLAZYFREED);
1431 			count_memcg_page_event(page, PGLAZYFREED);
1432 		} else if (!mapping || !__remove_mapping(mapping, page, true,
1433 							 sc->target_mem_cgroup))
1434 			goto keep_locked;
1435 
1436 		unlock_page(page);
1437 free_it:
1438 		/*
1439 		 * THP may get swapped out in a whole, need account
1440 		 * all base pages.
1441 		 */
1442 		nr_reclaimed += nr_pages;
1443 
1444 		/*
1445 		 * Is there need to periodically free_page_list? It would
1446 		 * appear not as the counts should be low
1447 		 */
1448 		if (unlikely(PageTransHuge(page)))
1449 			destroy_compound_page(page);
1450 		else
1451 			list_add(&page->lru, &free_pages);
1452 		continue;
1453 
1454 activate_locked_split:
1455 		/*
1456 		 * The tail pages that are failed to add into swap cache
1457 		 * reach here.  Fixup nr_scanned and nr_pages.
1458 		 */
1459 		if (nr_pages > 1) {
1460 			sc->nr_scanned -= (nr_pages - 1);
1461 			nr_pages = 1;
1462 		}
1463 activate_locked:
1464 		/* Not a candidate for swapping, so reclaim swap space. */
1465 		if (PageSwapCache(page) && (mem_cgroup_swap_full(page) ||
1466 						PageMlocked(page)))
1467 			try_to_free_swap(page);
1468 		VM_BUG_ON_PAGE(PageActive(page), page);
1469 		if (!PageMlocked(page)) {
1470 			int type = page_is_file_lru(page);
1471 			SetPageActive(page);
1472 			stat->nr_activate[type] += nr_pages;
1473 			count_memcg_page_event(page, PGACTIVATE);
1474 		}
1475 keep_locked:
1476 		unlock_page(page);
1477 keep:
1478 		list_add(&page->lru, &ret_pages);
1479 		VM_BUG_ON_PAGE(PageLRU(page) || PageUnevictable(page), page);
1480 	}
1481 
1482 	pgactivate = stat->nr_activate[0] + stat->nr_activate[1];
1483 
1484 	mem_cgroup_uncharge_list(&free_pages);
1485 	try_to_unmap_flush();
1486 	free_unref_page_list(&free_pages);
1487 
1488 	list_splice(&ret_pages, page_list);
1489 	count_vm_events(PGACTIVATE, pgactivate);
1490 
1491 	return nr_reclaimed;
1492 }
1493 
1494 unsigned int reclaim_clean_pages_from_list(struct zone *zone,
1495 					    struct list_head *page_list)
1496 {
1497 	struct scan_control sc = {
1498 		.gfp_mask = GFP_KERNEL,
1499 		.priority = DEF_PRIORITY,
1500 		.may_unmap = 1,
1501 	};
1502 	struct reclaim_stat stat;
1503 	unsigned int nr_reclaimed;
1504 	struct page *page, *next;
1505 	LIST_HEAD(clean_pages);
1506 
1507 	list_for_each_entry_safe(page, next, page_list, lru) {
1508 		if (page_is_file_lru(page) && !PageDirty(page) &&
1509 		    !__PageMovable(page) && !PageUnevictable(page)) {
1510 			ClearPageActive(page);
1511 			list_move(&page->lru, &clean_pages);
1512 		}
1513 	}
1514 
1515 	nr_reclaimed = shrink_page_list(&clean_pages, zone->zone_pgdat, &sc,
1516 					&stat, true);
1517 	list_splice(&clean_pages, page_list);
1518 	mod_node_page_state(zone->zone_pgdat, NR_ISOLATED_FILE,
1519 			    -(long)nr_reclaimed);
1520 	/*
1521 	 * Since lazyfree pages are isolated from file LRU from the beginning,
1522 	 * they will rotate back to anonymous LRU in the end if it failed to
1523 	 * discard so isolated count will be mismatched.
1524 	 * Compensate the isolated count for both LRU lists.
1525 	 */
1526 	mod_node_page_state(zone->zone_pgdat, NR_ISOLATED_ANON,
1527 			    stat.nr_lazyfree_fail);
1528 	mod_node_page_state(zone->zone_pgdat, NR_ISOLATED_FILE,
1529 			    -(long)stat.nr_lazyfree_fail);
1530 	return nr_reclaimed;
1531 }
1532 
1533 /*
1534  * Attempt to remove the specified page from its LRU.  Only take this page
1535  * if it is of the appropriate PageActive status.  Pages which are being
1536  * freed elsewhere are also ignored.
1537  *
1538  * page:	page to consider
1539  * mode:	one of the LRU isolation modes defined above
1540  *
1541  * returns 0 on success, -ve errno on failure.
1542  */
1543 int __isolate_lru_page(struct page *page, isolate_mode_t mode)
1544 {
1545 	int ret = -EINVAL;
1546 
1547 	/* Only take pages on the LRU. */
1548 	if (!PageLRU(page))
1549 		return ret;
1550 
1551 	/* Compaction should not handle unevictable pages but CMA can do so */
1552 	if (PageUnevictable(page) && !(mode & ISOLATE_UNEVICTABLE))
1553 		return ret;
1554 
1555 	ret = -EBUSY;
1556 
1557 	/*
1558 	 * To minimise LRU disruption, the caller can indicate that it only
1559 	 * wants to isolate pages it will be able to operate on without
1560 	 * blocking - clean pages for the most part.
1561 	 *
1562 	 * ISOLATE_ASYNC_MIGRATE is used to indicate that it only wants to pages
1563 	 * that it is possible to migrate without blocking
1564 	 */
1565 	if (mode & ISOLATE_ASYNC_MIGRATE) {
1566 		/* All the caller can do on PageWriteback is block */
1567 		if (PageWriteback(page))
1568 			return ret;
1569 
1570 		if (PageDirty(page)) {
1571 			struct address_space *mapping;
1572 			bool migrate_dirty;
1573 
1574 			/*
1575 			 * Only pages without mappings or that have a
1576 			 * ->migratepage callback are possible to migrate
1577 			 * without blocking. However, we can be racing with
1578 			 * truncation so it's necessary to lock the page
1579 			 * to stabilise the mapping as truncation holds
1580 			 * the page lock until after the page is removed
1581 			 * from the page cache.
1582 			 */
1583 			if (!trylock_page(page))
1584 				return ret;
1585 
1586 			mapping = page_mapping(page);
1587 			migrate_dirty = !mapping || mapping->a_ops->migratepage;
1588 			unlock_page(page);
1589 			if (!migrate_dirty)
1590 				return ret;
1591 		}
1592 	}
1593 
1594 	if ((mode & ISOLATE_UNMAPPED) && page_mapped(page))
1595 		return ret;
1596 
1597 	if (likely(get_page_unless_zero(page))) {
1598 		/*
1599 		 * Be careful not to clear PageLRU until after we're
1600 		 * sure the page is not being freed elsewhere -- the
1601 		 * page release code relies on it.
1602 		 */
1603 		ClearPageLRU(page);
1604 		ret = 0;
1605 	}
1606 
1607 	return ret;
1608 }
1609 
1610 
1611 /*
1612  * Update LRU sizes after isolating pages. The LRU size updates must
1613  * be complete before mem_cgroup_update_lru_size due to a sanity check.
1614  */
1615 static __always_inline void update_lru_sizes(struct lruvec *lruvec,
1616 			enum lru_list lru, unsigned long *nr_zone_taken)
1617 {
1618 	int zid;
1619 
1620 	for (zid = 0; zid < MAX_NR_ZONES; zid++) {
1621 		if (!nr_zone_taken[zid])
1622 			continue;
1623 
1624 		update_lru_size(lruvec, lru, zid, -nr_zone_taken[zid]);
1625 	}
1626 
1627 }
1628 
1629 /**
1630  * pgdat->lru_lock is heavily contended.  Some of the functions that
1631  * shrink the lists perform better by taking out a batch of pages
1632  * and working on them outside the LRU lock.
1633  *
1634  * For pagecache intensive workloads, this function is the hottest
1635  * spot in the kernel (apart from copy_*_user functions).
1636  *
1637  * Appropriate locks must be held before calling this function.
1638  *
1639  * @nr_to_scan:	The number of eligible pages to look through on the list.
1640  * @lruvec:	The LRU vector to pull pages from.
1641  * @dst:	The temp list to put pages on to.
1642  * @nr_scanned:	The number of pages that were scanned.
1643  * @sc:		The scan_control struct for this reclaim session
1644  * @lru:	LRU list id for isolating
1645  *
1646  * returns how many pages were moved onto *@dst.
1647  */
1648 static unsigned long isolate_lru_pages(unsigned long nr_to_scan,
1649 		struct lruvec *lruvec, struct list_head *dst,
1650 		unsigned long *nr_scanned, struct scan_control *sc,
1651 		enum lru_list lru)
1652 {
1653 	struct list_head *src = &lruvec->lists[lru];
1654 	unsigned long nr_taken = 0;
1655 	unsigned long nr_zone_taken[MAX_NR_ZONES] = { 0 };
1656 	unsigned long nr_skipped[MAX_NR_ZONES] = { 0, };
1657 	unsigned long skipped = 0;
1658 	unsigned long scan, total_scan, nr_pages;
1659 	LIST_HEAD(pages_skipped);
1660 	isolate_mode_t mode = (sc->may_unmap ? 0 : ISOLATE_UNMAPPED);
1661 
1662 	total_scan = 0;
1663 	scan = 0;
1664 	while (scan < nr_to_scan && !list_empty(src)) {
1665 		struct page *page;
1666 
1667 		page = lru_to_page(src);
1668 		prefetchw_prev_lru_page(page, src, flags);
1669 
1670 		VM_BUG_ON_PAGE(!PageLRU(page), page);
1671 
1672 		nr_pages = compound_nr(page);
1673 		total_scan += nr_pages;
1674 
1675 		if (page_zonenum(page) > sc->reclaim_idx) {
1676 			list_move(&page->lru, &pages_skipped);
1677 			nr_skipped[page_zonenum(page)] += nr_pages;
1678 			continue;
1679 		}
1680 
1681 		/*
1682 		 * Do not count skipped pages because that makes the function
1683 		 * return with no isolated pages if the LRU mostly contains
1684 		 * ineligible pages.  This causes the VM to not reclaim any
1685 		 * pages, triggering a premature OOM.
1686 		 *
1687 		 * Account all tail pages of THP.  This would not cause
1688 		 * premature OOM since __isolate_lru_page() returns -EBUSY
1689 		 * only when the page is being freed somewhere else.
1690 		 */
1691 		scan += nr_pages;
1692 		switch (__isolate_lru_page(page, mode)) {
1693 		case 0:
1694 			nr_taken += nr_pages;
1695 			nr_zone_taken[page_zonenum(page)] += nr_pages;
1696 			list_move(&page->lru, dst);
1697 			break;
1698 
1699 		case -EBUSY:
1700 			/* else it is being freed elsewhere */
1701 			list_move(&page->lru, src);
1702 			continue;
1703 
1704 		default:
1705 			BUG();
1706 		}
1707 	}
1708 
1709 	/*
1710 	 * Splice any skipped pages to the start of the LRU list. Note that
1711 	 * this disrupts the LRU order when reclaiming for lower zones but
1712 	 * we cannot splice to the tail. If we did then the SWAP_CLUSTER_MAX
1713 	 * scanning would soon rescan the same pages to skip and put the
1714 	 * system at risk of premature OOM.
1715 	 */
1716 	if (!list_empty(&pages_skipped)) {
1717 		int zid;
1718 
1719 		list_splice(&pages_skipped, src);
1720 		for (zid = 0; zid < MAX_NR_ZONES; zid++) {
1721 			if (!nr_skipped[zid])
1722 				continue;
1723 
1724 			__count_zid_vm_events(PGSCAN_SKIP, zid, nr_skipped[zid]);
1725 			skipped += nr_skipped[zid];
1726 		}
1727 	}
1728 	*nr_scanned = total_scan;
1729 	trace_mm_vmscan_lru_isolate(sc->reclaim_idx, sc->order, nr_to_scan,
1730 				    total_scan, skipped, nr_taken, mode, lru);
1731 	update_lru_sizes(lruvec, lru, nr_zone_taken);
1732 	return nr_taken;
1733 }
1734 
1735 /**
1736  * isolate_lru_page - tries to isolate a page from its LRU list
1737  * @page: page to isolate from its LRU list
1738  *
1739  * Isolates a @page from an LRU list, clears PageLRU and adjusts the
1740  * vmstat statistic corresponding to whatever LRU list the page was on.
1741  *
1742  * Returns 0 if the page was removed from an LRU list.
1743  * Returns -EBUSY if the page was not on an LRU list.
1744  *
1745  * The returned page will have PageLRU() cleared.  If it was found on
1746  * the active list, it will have PageActive set.  If it was found on
1747  * the unevictable list, it will have the PageUnevictable bit set. That flag
1748  * may need to be cleared by the caller before letting the page go.
1749  *
1750  * The vmstat statistic corresponding to the list on which the page was
1751  * found will be decremented.
1752  *
1753  * Restrictions:
1754  *
1755  * (1) Must be called with an elevated refcount on the page. This is a
1756  *     fundamental difference from isolate_lru_pages (which is called
1757  *     without a stable reference).
1758  * (2) the lru_lock must not be held.
1759  * (3) interrupts must be enabled.
1760  */
1761 int isolate_lru_page(struct page *page)
1762 {
1763 	int ret = -EBUSY;
1764 
1765 	VM_BUG_ON_PAGE(!page_count(page), page);
1766 	WARN_RATELIMIT(PageTail(page), "trying to isolate tail page");
1767 
1768 	if (PageLRU(page)) {
1769 		pg_data_t *pgdat = page_pgdat(page);
1770 		struct lruvec *lruvec;
1771 
1772 		spin_lock_irq(&pgdat->lru_lock);
1773 		lruvec = mem_cgroup_page_lruvec(page, pgdat);
1774 		if (PageLRU(page)) {
1775 			int lru = page_lru(page);
1776 			get_page(page);
1777 			ClearPageLRU(page);
1778 			del_page_from_lru_list(page, lruvec, lru);
1779 			ret = 0;
1780 		}
1781 		spin_unlock_irq(&pgdat->lru_lock);
1782 	}
1783 	return ret;
1784 }
1785 
1786 /*
1787  * A direct reclaimer may isolate SWAP_CLUSTER_MAX pages from the LRU list and
1788  * then get rescheduled. When there are massive number of tasks doing page
1789  * allocation, such sleeping direct reclaimers may keep piling up on each CPU,
1790  * the LRU list will go small and be scanned faster than necessary, leading to
1791  * unnecessary swapping, thrashing and OOM.
1792  */
1793 static int too_many_isolated(struct pglist_data *pgdat, int file,
1794 		struct scan_control *sc)
1795 {
1796 	unsigned long inactive, isolated;
1797 
1798 	if (current_is_kswapd())
1799 		return 0;
1800 
1801 	if (!writeback_throttling_sane(sc))
1802 		return 0;
1803 
1804 	if (file) {
1805 		inactive = node_page_state(pgdat, NR_INACTIVE_FILE);
1806 		isolated = node_page_state(pgdat, NR_ISOLATED_FILE);
1807 	} else {
1808 		inactive = node_page_state(pgdat, NR_INACTIVE_ANON);
1809 		isolated = node_page_state(pgdat, NR_ISOLATED_ANON);
1810 	}
1811 
1812 	/*
1813 	 * GFP_NOIO/GFP_NOFS callers are allowed to isolate more pages, so they
1814 	 * won't get blocked by normal direct-reclaimers, forming a circular
1815 	 * deadlock.
1816 	 */
1817 	if ((sc->gfp_mask & (__GFP_IO | __GFP_FS)) == (__GFP_IO | __GFP_FS))
1818 		inactive >>= 3;
1819 
1820 	return isolated > inactive;
1821 }
1822 
1823 /*
1824  * This moves pages from @list to corresponding LRU list.
1825  *
1826  * We move them the other way if the page is referenced by one or more
1827  * processes, from rmap.
1828  *
1829  * If the pages are mostly unmapped, the processing is fast and it is
1830  * appropriate to hold zone_lru_lock across the whole operation.  But if
1831  * the pages are mapped, the processing is slow (page_referenced()) so we
1832  * should drop zone_lru_lock around each page.  It's impossible to balance
1833  * this, so instead we remove the pages from the LRU while processing them.
1834  * It is safe to rely on PG_active against the non-LRU pages in here because
1835  * nobody will play with that bit on a non-LRU page.
1836  *
1837  * The downside is that we have to touch page->_refcount against each page.
1838  * But we had to alter page->flags anyway.
1839  *
1840  * Returns the number of pages moved to the given lruvec.
1841  */
1842 
1843 static unsigned noinline_for_stack move_pages_to_lru(struct lruvec *lruvec,
1844 						     struct list_head *list)
1845 {
1846 	struct pglist_data *pgdat = lruvec_pgdat(lruvec);
1847 	int nr_pages, nr_moved = 0;
1848 	LIST_HEAD(pages_to_free);
1849 	struct page *page;
1850 	enum lru_list lru;
1851 
1852 	while (!list_empty(list)) {
1853 		page = lru_to_page(list);
1854 		VM_BUG_ON_PAGE(PageLRU(page), page);
1855 		if (unlikely(!page_evictable(page))) {
1856 			list_del(&page->lru);
1857 			spin_unlock_irq(&pgdat->lru_lock);
1858 			putback_lru_page(page);
1859 			spin_lock_irq(&pgdat->lru_lock);
1860 			continue;
1861 		}
1862 		lruvec = mem_cgroup_page_lruvec(page, pgdat);
1863 
1864 		SetPageLRU(page);
1865 		lru = page_lru(page);
1866 
1867 		nr_pages = thp_nr_pages(page);
1868 		update_lru_size(lruvec, lru, page_zonenum(page), nr_pages);
1869 		list_move(&page->lru, &lruvec->lists[lru]);
1870 
1871 		if (put_page_testzero(page)) {
1872 			__ClearPageLRU(page);
1873 			__ClearPageActive(page);
1874 			del_page_from_lru_list(page, lruvec, lru);
1875 
1876 			if (unlikely(PageCompound(page))) {
1877 				spin_unlock_irq(&pgdat->lru_lock);
1878 				destroy_compound_page(page);
1879 				spin_lock_irq(&pgdat->lru_lock);
1880 			} else
1881 				list_add(&page->lru, &pages_to_free);
1882 		} else {
1883 			nr_moved += nr_pages;
1884 			if (PageActive(page))
1885 				workingset_age_nonresident(lruvec, nr_pages);
1886 		}
1887 	}
1888 
1889 	/*
1890 	 * To save our caller's stack, now use input list for pages to free.
1891 	 */
1892 	list_splice(&pages_to_free, list);
1893 
1894 	return nr_moved;
1895 }
1896 
1897 /*
1898  * If a kernel thread (such as nfsd for loop-back mounts) services
1899  * a backing device by writing to the page cache it sets PF_LOCAL_THROTTLE.
1900  * In that case we should only throttle if the backing device it is
1901  * writing to is congested.  In other cases it is safe to throttle.
1902  */
1903 static int current_may_throttle(void)
1904 {
1905 	return !(current->flags & PF_LOCAL_THROTTLE) ||
1906 		current->backing_dev_info == NULL ||
1907 		bdi_write_congested(current->backing_dev_info);
1908 }
1909 
1910 /*
1911  * shrink_inactive_list() is a helper for shrink_node().  It returns the number
1912  * of reclaimed pages
1913  */
1914 static noinline_for_stack unsigned long
1915 shrink_inactive_list(unsigned long nr_to_scan, struct lruvec *lruvec,
1916 		     struct scan_control *sc, enum lru_list lru)
1917 {
1918 	LIST_HEAD(page_list);
1919 	unsigned long nr_scanned;
1920 	unsigned int nr_reclaimed = 0;
1921 	unsigned long nr_taken;
1922 	struct reclaim_stat stat;
1923 	bool file = is_file_lru(lru);
1924 	enum vm_event_item item;
1925 	struct pglist_data *pgdat = lruvec_pgdat(lruvec);
1926 	bool stalled = false;
1927 
1928 	while (unlikely(too_many_isolated(pgdat, file, sc))) {
1929 		if (stalled)
1930 			return 0;
1931 
1932 		/* wait a bit for the reclaimer. */
1933 		msleep(100);
1934 		stalled = true;
1935 
1936 		/* We are about to die and free our memory. Return now. */
1937 		if (fatal_signal_pending(current))
1938 			return SWAP_CLUSTER_MAX;
1939 	}
1940 
1941 	lru_add_drain();
1942 
1943 	spin_lock_irq(&pgdat->lru_lock);
1944 
1945 	nr_taken = isolate_lru_pages(nr_to_scan, lruvec, &page_list,
1946 				     &nr_scanned, sc, lru);
1947 
1948 	__mod_node_page_state(pgdat, NR_ISOLATED_ANON + file, nr_taken);
1949 	item = current_is_kswapd() ? PGSCAN_KSWAPD : PGSCAN_DIRECT;
1950 	if (!cgroup_reclaim(sc))
1951 		__count_vm_events(item, nr_scanned);
1952 	__count_memcg_events(lruvec_memcg(lruvec), item, nr_scanned);
1953 	__count_vm_events(PGSCAN_ANON + file, nr_scanned);
1954 
1955 	spin_unlock_irq(&pgdat->lru_lock);
1956 
1957 	if (nr_taken == 0)
1958 		return 0;
1959 
1960 	nr_reclaimed = shrink_page_list(&page_list, pgdat, sc, &stat, false);
1961 
1962 	spin_lock_irq(&pgdat->lru_lock);
1963 
1964 	move_pages_to_lru(lruvec, &page_list);
1965 
1966 	__mod_node_page_state(pgdat, NR_ISOLATED_ANON + file, -nr_taken);
1967 	lru_note_cost(lruvec, file, stat.nr_pageout);
1968 	item = current_is_kswapd() ? PGSTEAL_KSWAPD : PGSTEAL_DIRECT;
1969 	if (!cgroup_reclaim(sc))
1970 		__count_vm_events(item, nr_reclaimed);
1971 	__count_memcg_events(lruvec_memcg(lruvec), item, nr_reclaimed);
1972 	__count_vm_events(PGSTEAL_ANON + file, nr_reclaimed);
1973 
1974 	spin_unlock_irq(&pgdat->lru_lock);
1975 
1976 	mem_cgroup_uncharge_list(&page_list);
1977 	free_unref_page_list(&page_list);
1978 
1979 	/*
1980 	 * If dirty pages are scanned that are not queued for IO, it
1981 	 * implies that flushers are not doing their job. This can
1982 	 * happen when memory pressure pushes dirty pages to the end of
1983 	 * the LRU before the dirty limits are breached and the dirty
1984 	 * data has expired. It can also happen when the proportion of
1985 	 * dirty pages grows not through writes but through memory
1986 	 * pressure reclaiming all the clean cache. And in some cases,
1987 	 * the flushers simply cannot keep up with the allocation
1988 	 * rate. Nudge the flusher threads in case they are asleep.
1989 	 */
1990 	if (stat.nr_unqueued_dirty == nr_taken)
1991 		wakeup_flusher_threads(WB_REASON_VMSCAN);
1992 
1993 	sc->nr.dirty += stat.nr_dirty;
1994 	sc->nr.congested += stat.nr_congested;
1995 	sc->nr.unqueued_dirty += stat.nr_unqueued_dirty;
1996 	sc->nr.writeback += stat.nr_writeback;
1997 	sc->nr.immediate += stat.nr_immediate;
1998 	sc->nr.taken += nr_taken;
1999 	if (file)
2000 		sc->nr.file_taken += nr_taken;
2001 
2002 	trace_mm_vmscan_lru_shrink_inactive(pgdat->node_id,
2003 			nr_scanned, nr_reclaimed, &stat, sc->priority, file);
2004 	return nr_reclaimed;
2005 }
2006 
2007 static void shrink_active_list(unsigned long nr_to_scan,
2008 			       struct lruvec *lruvec,
2009 			       struct scan_control *sc,
2010 			       enum lru_list lru)
2011 {
2012 	unsigned long nr_taken;
2013 	unsigned long nr_scanned;
2014 	unsigned long vm_flags;
2015 	LIST_HEAD(l_hold);	/* The pages which were snipped off */
2016 	LIST_HEAD(l_active);
2017 	LIST_HEAD(l_inactive);
2018 	struct page *page;
2019 	unsigned nr_deactivate, nr_activate;
2020 	unsigned nr_rotated = 0;
2021 	int file = is_file_lru(lru);
2022 	struct pglist_data *pgdat = lruvec_pgdat(lruvec);
2023 
2024 	lru_add_drain();
2025 
2026 	spin_lock_irq(&pgdat->lru_lock);
2027 
2028 	nr_taken = isolate_lru_pages(nr_to_scan, lruvec, &l_hold,
2029 				     &nr_scanned, sc, lru);
2030 
2031 	__mod_node_page_state(pgdat, NR_ISOLATED_ANON + file, nr_taken);
2032 
2033 	if (!cgroup_reclaim(sc))
2034 		__count_vm_events(PGREFILL, nr_scanned);
2035 	__count_memcg_events(lruvec_memcg(lruvec), PGREFILL, nr_scanned);
2036 
2037 	spin_unlock_irq(&pgdat->lru_lock);
2038 
2039 	while (!list_empty(&l_hold)) {
2040 		cond_resched();
2041 		page = lru_to_page(&l_hold);
2042 		list_del(&page->lru);
2043 
2044 		if (unlikely(!page_evictable(page))) {
2045 			putback_lru_page(page);
2046 			continue;
2047 		}
2048 
2049 		if (unlikely(buffer_heads_over_limit)) {
2050 			if (page_has_private(page) && trylock_page(page)) {
2051 				if (page_has_private(page))
2052 					try_to_release_page(page, 0);
2053 				unlock_page(page);
2054 			}
2055 		}
2056 
2057 		if (page_referenced(page, 0, sc->target_mem_cgroup,
2058 				    &vm_flags)) {
2059 			/*
2060 			 * Identify referenced, file-backed active pages and
2061 			 * give them one more trip around the active list. So
2062 			 * that executable code get better chances to stay in
2063 			 * memory under moderate memory pressure.  Anon pages
2064 			 * are not likely to be evicted by use-once streaming
2065 			 * IO, plus JVM can create lots of anon VM_EXEC pages,
2066 			 * so we ignore them here.
2067 			 */
2068 			if ((vm_flags & VM_EXEC) && page_is_file_lru(page)) {
2069 				nr_rotated += thp_nr_pages(page);
2070 				list_add(&page->lru, &l_active);
2071 				continue;
2072 			}
2073 		}
2074 
2075 		ClearPageActive(page);	/* we are de-activating */
2076 		SetPageWorkingset(page);
2077 		list_add(&page->lru, &l_inactive);
2078 	}
2079 
2080 	/*
2081 	 * Move pages back to the lru list.
2082 	 */
2083 	spin_lock_irq(&pgdat->lru_lock);
2084 
2085 	nr_activate = move_pages_to_lru(lruvec, &l_active);
2086 	nr_deactivate = move_pages_to_lru(lruvec, &l_inactive);
2087 	/* Keep all free pages in l_active list */
2088 	list_splice(&l_inactive, &l_active);
2089 
2090 	__count_vm_events(PGDEACTIVATE, nr_deactivate);
2091 	__count_memcg_events(lruvec_memcg(lruvec), PGDEACTIVATE, nr_deactivate);
2092 
2093 	__mod_node_page_state(pgdat, NR_ISOLATED_ANON + file, -nr_taken);
2094 	spin_unlock_irq(&pgdat->lru_lock);
2095 
2096 	mem_cgroup_uncharge_list(&l_active);
2097 	free_unref_page_list(&l_active);
2098 	trace_mm_vmscan_lru_shrink_active(pgdat->node_id, nr_taken, nr_activate,
2099 			nr_deactivate, nr_rotated, sc->priority, file);
2100 }
2101 
2102 unsigned long reclaim_pages(struct list_head *page_list)
2103 {
2104 	int nid = NUMA_NO_NODE;
2105 	unsigned int nr_reclaimed = 0;
2106 	LIST_HEAD(node_page_list);
2107 	struct reclaim_stat dummy_stat;
2108 	struct page *page;
2109 	struct scan_control sc = {
2110 		.gfp_mask = GFP_KERNEL,
2111 		.priority = DEF_PRIORITY,
2112 		.may_writepage = 1,
2113 		.may_unmap = 1,
2114 		.may_swap = 1,
2115 	};
2116 
2117 	while (!list_empty(page_list)) {
2118 		page = lru_to_page(page_list);
2119 		if (nid == NUMA_NO_NODE) {
2120 			nid = page_to_nid(page);
2121 			INIT_LIST_HEAD(&node_page_list);
2122 		}
2123 
2124 		if (nid == page_to_nid(page)) {
2125 			ClearPageActive(page);
2126 			list_move(&page->lru, &node_page_list);
2127 			continue;
2128 		}
2129 
2130 		nr_reclaimed += shrink_page_list(&node_page_list,
2131 						NODE_DATA(nid),
2132 						&sc, &dummy_stat, false);
2133 		while (!list_empty(&node_page_list)) {
2134 			page = lru_to_page(&node_page_list);
2135 			list_del(&page->lru);
2136 			putback_lru_page(page);
2137 		}
2138 
2139 		nid = NUMA_NO_NODE;
2140 	}
2141 
2142 	if (!list_empty(&node_page_list)) {
2143 		nr_reclaimed += shrink_page_list(&node_page_list,
2144 						NODE_DATA(nid),
2145 						&sc, &dummy_stat, false);
2146 		while (!list_empty(&node_page_list)) {
2147 			page = lru_to_page(&node_page_list);
2148 			list_del(&page->lru);
2149 			putback_lru_page(page);
2150 		}
2151 	}
2152 
2153 	return nr_reclaimed;
2154 }
2155 
2156 static unsigned long shrink_list(enum lru_list lru, unsigned long nr_to_scan,
2157 				 struct lruvec *lruvec, struct scan_control *sc)
2158 {
2159 	if (is_active_lru(lru)) {
2160 		if (sc->may_deactivate & (1 << is_file_lru(lru)))
2161 			shrink_active_list(nr_to_scan, lruvec, sc, lru);
2162 		else
2163 			sc->skipped_deactivate = 1;
2164 		return 0;
2165 	}
2166 
2167 	return shrink_inactive_list(nr_to_scan, lruvec, sc, lru);
2168 }
2169 
2170 /*
2171  * The inactive anon list should be small enough that the VM never has
2172  * to do too much work.
2173  *
2174  * The inactive file list should be small enough to leave most memory
2175  * to the established workingset on the scan-resistant active list,
2176  * but large enough to avoid thrashing the aggregate readahead window.
2177  *
2178  * Both inactive lists should also be large enough that each inactive
2179  * page has a chance to be referenced again before it is reclaimed.
2180  *
2181  * If that fails and refaulting is observed, the inactive list grows.
2182  *
2183  * The inactive_ratio is the target ratio of ACTIVE to INACTIVE pages
2184  * on this LRU, maintained by the pageout code. An inactive_ratio
2185  * of 3 means 3:1 or 25% of the pages are kept on the inactive list.
2186  *
2187  * total     target    max
2188  * memory    ratio     inactive
2189  * -------------------------------------
2190  *   10MB       1         5MB
2191  *  100MB       1        50MB
2192  *    1GB       3       250MB
2193  *   10GB      10       0.9GB
2194  *  100GB      31         3GB
2195  *    1TB     101        10GB
2196  *   10TB     320        32GB
2197  */
2198 static bool inactive_is_low(struct lruvec *lruvec, enum lru_list inactive_lru)
2199 {
2200 	enum lru_list active_lru = inactive_lru + LRU_ACTIVE;
2201 	unsigned long inactive, active;
2202 	unsigned long inactive_ratio;
2203 	unsigned long gb;
2204 
2205 	inactive = lruvec_page_state(lruvec, NR_LRU_BASE + inactive_lru);
2206 	active = lruvec_page_state(lruvec, NR_LRU_BASE + active_lru);
2207 
2208 	gb = (inactive + active) >> (30 - PAGE_SHIFT);
2209 	if (gb)
2210 		inactive_ratio = int_sqrt(10 * gb);
2211 	else
2212 		inactive_ratio = 1;
2213 
2214 	return inactive * inactive_ratio < active;
2215 }
2216 
2217 enum scan_balance {
2218 	SCAN_EQUAL,
2219 	SCAN_FRACT,
2220 	SCAN_ANON,
2221 	SCAN_FILE,
2222 };
2223 
2224 /*
2225  * Determine how aggressively the anon and file LRU lists should be
2226  * scanned.  The relative value of each set of LRU lists is determined
2227  * by looking at the fraction of the pages scanned we did rotate back
2228  * onto the active list instead of evict.
2229  *
2230  * nr[0] = anon inactive pages to scan; nr[1] = anon active pages to scan
2231  * nr[2] = file inactive pages to scan; nr[3] = file active pages to scan
2232  */
2233 static void get_scan_count(struct lruvec *lruvec, struct scan_control *sc,
2234 			   unsigned long *nr)
2235 {
2236 	struct mem_cgroup *memcg = lruvec_memcg(lruvec);
2237 	unsigned long anon_cost, file_cost, total_cost;
2238 	int swappiness = mem_cgroup_swappiness(memcg);
2239 	u64 fraction[ANON_AND_FILE];
2240 	u64 denominator = 0;	/* gcc */
2241 	enum scan_balance scan_balance;
2242 	unsigned long ap, fp;
2243 	enum lru_list lru;
2244 
2245 	/* If we have no swap space, do not bother scanning anon pages. */
2246 	if (!sc->may_swap || mem_cgroup_get_nr_swap_pages(memcg) <= 0) {
2247 		scan_balance = SCAN_FILE;
2248 		goto out;
2249 	}
2250 
2251 	/*
2252 	 * Global reclaim will swap to prevent OOM even with no
2253 	 * swappiness, but memcg users want to use this knob to
2254 	 * disable swapping for individual groups completely when
2255 	 * using the memory controller's swap limit feature would be
2256 	 * too expensive.
2257 	 */
2258 	if (cgroup_reclaim(sc) && !swappiness) {
2259 		scan_balance = SCAN_FILE;
2260 		goto out;
2261 	}
2262 
2263 	/*
2264 	 * Do not apply any pressure balancing cleverness when the
2265 	 * system is close to OOM, scan both anon and file equally
2266 	 * (unless the swappiness setting disagrees with swapping).
2267 	 */
2268 	if (!sc->priority && swappiness) {
2269 		scan_balance = SCAN_EQUAL;
2270 		goto out;
2271 	}
2272 
2273 	/*
2274 	 * If the system is almost out of file pages, force-scan anon.
2275 	 */
2276 	if (sc->file_is_tiny) {
2277 		scan_balance = SCAN_ANON;
2278 		goto out;
2279 	}
2280 
2281 	/*
2282 	 * If there is enough inactive page cache, we do not reclaim
2283 	 * anything from the anonymous working right now.
2284 	 */
2285 	if (sc->cache_trim_mode) {
2286 		scan_balance = SCAN_FILE;
2287 		goto out;
2288 	}
2289 
2290 	scan_balance = SCAN_FRACT;
2291 	/*
2292 	 * Calculate the pressure balance between anon and file pages.
2293 	 *
2294 	 * The amount of pressure we put on each LRU is inversely
2295 	 * proportional to the cost of reclaiming each list, as
2296 	 * determined by the share of pages that are refaulting, times
2297 	 * the relative IO cost of bringing back a swapped out
2298 	 * anonymous page vs reloading a filesystem page (swappiness).
2299 	 *
2300 	 * Although we limit that influence to ensure no list gets
2301 	 * left behind completely: at least a third of the pressure is
2302 	 * applied, before swappiness.
2303 	 *
2304 	 * With swappiness at 100, anon and file have equal IO cost.
2305 	 */
2306 	total_cost = sc->anon_cost + sc->file_cost;
2307 	anon_cost = total_cost + sc->anon_cost;
2308 	file_cost = total_cost + sc->file_cost;
2309 	total_cost = anon_cost + file_cost;
2310 
2311 	ap = swappiness * (total_cost + 1);
2312 	ap /= anon_cost + 1;
2313 
2314 	fp = (200 - swappiness) * (total_cost + 1);
2315 	fp /= file_cost + 1;
2316 
2317 	fraction[0] = ap;
2318 	fraction[1] = fp;
2319 	denominator = ap + fp;
2320 out:
2321 	for_each_evictable_lru(lru) {
2322 		int file = is_file_lru(lru);
2323 		unsigned long lruvec_size;
2324 		unsigned long scan;
2325 		unsigned long protection;
2326 
2327 		lruvec_size = lruvec_lru_size(lruvec, lru, sc->reclaim_idx);
2328 		protection = mem_cgroup_protection(sc->target_mem_cgroup,
2329 						   memcg,
2330 						   sc->memcg_low_reclaim);
2331 
2332 		if (protection) {
2333 			/*
2334 			 * Scale a cgroup's reclaim pressure by proportioning
2335 			 * its current usage to its memory.low or memory.min
2336 			 * setting.
2337 			 *
2338 			 * This is important, as otherwise scanning aggression
2339 			 * becomes extremely binary -- from nothing as we
2340 			 * approach the memory protection threshold, to totally
2341 			 * nominal as we exceed it.  This results in requiring
2342 			 * setting extremely liberal protection thresholds. It
2343 			 * also means we simply get no protection at all if we
2344 			 * set it too low, which is not ideal.
2345 			 *
2346 			 * If there is any protection in place, we reduce scan
2347 			 * pressure by how much of the total memory used is
2348 			 * within protection thresholds.
2349 			 *
2350 			 * There is one special case: in the first reclaim pass,
2351 			 * we skip over all groups that are within their low
2352 			 * protection. If that fails to reclaim enough pages to
2353 			 * satisfy the reclaim goal, we come back and override
2354 			 * the best-effort low protection. However, we still
2355 			 * ideally want to honor how well-behaved groups are in
2356 			 * that case instead of simply punishing them all
2357 			 * equally. As such, we reclaim them based on how much
2358 			 * memory they are using, reducing the scan pressure
2359 			 * again by how much of the total memory used is under
2360 			 * hard protection.
2361 			 */
2362 			unsigned long cgroup_size = mem_cgroup_size(memcg);
2363 
2364 			/* Avoid TOCTOU with earlier protection check */
2365 			cgroup_size = max(cgroup_size, protection);
2366 
2367 			scan = lruvec_size - lruvec_size * protection /
2368 				cgroup_size;
2369 
2370 			/*
2371 			 * Minimally target SWAP_CLUSTER_MAX pages to keep
2372 			 * reclaim moving forwards, avoiding decrementing
2373 			 * sc->priority further than desirable.
2374 			 */
2375 			scan = max(scan, SWAP_CLUSTER_MAX);
2376 		} else {
2377 			scan = lruvec_size;
2378 		}
2379 
2380 		scan >>= sc->priority;
2381 
2382 		/*
2383 		 * If the cgroup's already been deleted, make sure to
2384 		 * scrape out the remaining cache.
2385 		 */
2386 		if (!scan && !mem_cgroup_online(memcg))
2387 			scan = min(lruvec_size, SWAP_CLUSTER_MAX);
2388 
2389 		switch (scan_balance) {
2390 		case SCAN_EQUAL:
2391 			/* Scan lists relative to size */
2392 			break;
2393 		case SCAN_FRACT:
2394 			/*
2395 			 * Scan types proportional to swappiness and
2396 			 * their relative recent reclaim efficiency.
2397 			 * Make sure we don't miss the last page on
2398 			 * the offlined memory cgroups because of a
2399 			 * round-off error.
2400 			 */
2401 			scan = mem_cgroup_online(memcg) ?
2402 			       div64_u64(scan * fraction[file], denominator) :
2403 			       DIV64_U64_ROUND_UP(scan * fraction[file],
2404 						  denominator);
2405 			break;
2406 		case SCAN_FILE:
2407 		case SCAN_ANON:
2408 			/* Scan one type exclusively */
2409 			if ((scan_balance == SCAN_FILE) != file)
2410 				scan = 0;
2411 			break;
2412 		default:
2413 			/* Look ma, no brain */
2414 			BUG();
2415 		}
2416 
2417 		nr[lru] = scan;
2418 	}
2419 }
2420 
2421 static void shrink_lruvec(struct lruvec *lruvec, struct scan_control *sc)
2422 {
2423 	unsigned long nr[NR_LRU_LISTS];
2424 	unsigned long targets[NR_LRU_LISTS];
2425 	unsigned long nr_to_scan;
2426 	enum lru_list lru;
2427 	unsigned long nr_reclaimed = 0;
2428 	unsigned long nr_to_reclaim = sc->nr_to_reclaim;
2429 	struct blk_plug plug;
2430 	bool scan_adjusted;
2431 
2432 	get_scan_count(lruvec, sc, nr);
2433 
2434 	/* Record the original scan target for proportional adjustments later */
2435 	memcpy(targets, nr, sizeof(nr));
2436 
2437 	/*
2438 	 * Global reclaiming within direct reclaim at DEF_PRIORITY is a normal
2439 	 * event that can occur when there is little memory pressure e.g.
2440 	 * multiple streaming readers/writers. Hence, we do not abort scanning
2441 	 * when the requested number of pages are reclaimed when scanning at
2442 	 * DEF_PRIORITY on the assumption that the fact we are direct
2443 	 * reclaiming implies that kswapd is not keeping up and it is best to
2444 	 * do a batch of work at once. For memcg reclaim one check is made to
2445 	 * abort proportional reclaim if either the file or anon lru has already
2446 	 * dropped to zero at the first pass.
2447 	 */
2448 	scan_adjusted = (!cgroup_reclaim(sc) && !current_is_kswapd() &&
2449 			 sc->priority == DEF_PRIORITY);
2450 
2451 	blk_start_plug(&plug);
2452 	while (nr[LRU_INACTIVE_ANON] || nr[LRU_ACTIVE_FILE] ||
2453 					nr[LRU_INACTIVE_FILE]) {
2454 		unsigned long nr_anon, nr_file, percentage;
2455 		unsigned long nr_scanned;
2456 
2457 		for_each_evictable_lru(lru) {
2458 			if (nr[lru]) {
2459 				nr_to_scan = min(nr[lru], SWAP_CLUSTER_MAX);
2460 				nr[lru] -= nr_to_scan;
2461 
2462 				nr_reclaimed += shrink_list(lru, nr_to_scan,
2463 							    lruvec, sc);
2464 			}
2465 		}
2466 
2467 		cond_resched();
2468 
2469 		if (nr_reclaimed < nr_to_reclaim || scan_adjusted)
2470 			continue;
2471 
2472 		/*
2473 		 * For kswapd and memcg, reclaim at least the number of pages
2474 		 * requested. Ensure that the anon and file LRUs are scanned
2475 		 * proportionally what was requested by get_scan_count(). We
2476 		 * stop reclaiming one LRU and reduce the amount scanning
2477 		 * proportional to the original scan target.
2478 		 */
2479 		nr_file = nr[LRU_INACTIVE_FILE] + nr[LRU_ACTIVE_FILE];
2480 		nr_anon = nr[LRU_INACTIVE_ANON] + nr[LRU_ACTIVE_ANON];
2481 
2482 		/*
2483 		 * It's just vindictive to attack the larger once the smaller
2484 		 * has gone to zero.  And given the way we stop scanning the
2485 		 * smaller below, this makes sure that we only make one nudge
2486 		 * towards proportionality once we've got nr_to_reclaim.
2487 		 */
2488 		if (!nr_file || !nr_anon)
2489 			break;
2490 
2491 		if (nr_file > nr_anon) {
2492 			unsigned long scan_target = targets[LRU_INACTIVE_ANON] +
2493 						targets[LRU_ACTIVE_ANON] + 1;
2494 			lru = LRU_BASE;
2495 			percentage = nr_anon * 100 / scan_target;
2496 		} else {
2497 			unsigned long scan_target = targets[LRU_INACTIVE_FILE] +
2498 						targets[LRU_ACTIVE_FILE] + 1;
2499 			lru = LRU_FILE;
2500 			percentage = nr_file * 100 / scan_target;
2501 		}
2502 
2503 		/* Stop scanning the smaller of the LRU */
2504 		nr[lru] = 0;
2505 		nr[lru + LRU_ACTIVE] = 0;
2506 
2507 		/*
2508 		 * Recalculate the other LRU scan count based on its original
2509 		 * scan target and the percentage scanning already complete
2510 		 */
2511 		lru = (lru == LRU_FILE) ? LRU_BASE : LRU_FILE;
2512 		nr_scanned = targets[lru] - nr[lru];
2513 		nr[lru] = targets[lru] * (100 - percentage) / 100;
2514 		nr[lru] -= min(nr[lru], nr_scanned);
2515 
2516 		lru += LRU_ACTIVE;
2517 		nr_scanned = targets[lru] - nr[lru];
2518 		nr[lru] = targets[lru] * (100 - percentage) / 100;
2519 		nr[lru] -= min(nr[lru], nr_scanned);
2520 
2521 		scan_adjusted = true;
2522 	}
2523 	blk_finish_plug(&plug);
2524 	sc->nr_reclaimed += nr_reclaimed;
2525 
2526 	/*
2527 	 * Even if we did not try to evict anon pages at all, we want to
2528 	 * rebalance the anon lru active/inactive ratio.
2529 	 */
2530 	if (total_swap_pages && inactive_is_low(lruvec, LRU_INACTIVE_ANON))
2531 		shrink_active_list(SWAP_CLUSTER_MAX, lruvec,
2532 				   sc, LRU_ACTIVE_ANON);
2533 }
2534 
2535 /* Use reclaim/compaction for costly allocs or under memory pressure */
2536 static bool in_reclaim_compaction(struct scan_control *sc)
2537 {
2538 	if (IS_ENABLED(CONFIG_COMPACTION) && sc->order &&
2539 			(sc->order > PAGE_ALLOC_COSTLY_ORDER ||
2540 			 sc->priority < DEF_PRIORITY - 2))
2541 		return true;
2542 
2543 	return false;
2544 }
2545 
2546 /*
2547  * Reclaim/compaction is used for high-order allocation requests. It reclaims
2548  * order-0 pages before compacting the zone. should_continue_reclaim() returns
2549  * true if more pages should be reclaimed such that when the page allocator
2550  * calls try_to_compact_pages() that it will have enough free pages to succeed.
2551  * It will give up earlier than that if there is difficulty reclaiming pages.
2552  */
2553 static inline bool should_continue_reclaim(struct pglist_data *pgdat,
2554 					unsigned long nr_reclaimed,
2555 					struct scan_control *sc)
2556 {
2557 	unsigned long pages_for_compaction;
2558 	unsigned long inactive_lru_pages;
2559 	int z;
2560 
2561 	/* If not in reclaim/compaction mode, stop */
2562 	if (!in_reclaim_compaction(sc))
2563 		return false;
2564 
2565 	/*
2566 	 * Stop if we failed to reclaim any pages from the last SWAP_CLUSTER_MAX
2567 	 * number of pages that were scanned. This will return to the caller
2568 	 * with the risk reclaim/compaction and the resulting allocation attempt
2569 	 * fails. In the past we have tried harder for __GFP_RETRY_MAYFAIL
2570 	 * allocations through requiring that the full LRU list has been scanned
2571 	 * first, by assuming that zero delta of sc->nr_scanned means full LRU
2572 	 * scan, but that approximation was wrong, and there were corner cases
2573 	 * where always a non-zero amount of pages were scanned.
2574 	 */
2575 	if (!nr_reclaimed)
2576 		return false;
2577 
2578 	/* If compaction would go ahead or the allocation would succeed, stop */
2579 	for (z = 0; z <= sc->reclaim_idx; z++) {
2580 		struct zone *zone = &pgdat->node_zones[z];
2581 		if (!managed_zone(zone))
2582 			continue;
2583 
2584 		switch (compaction_suitable(zone, sc->order, 0, sc->reclaim_idx)) {
2585 		case COMPACT_SUCCESS:
2586 		case COMPACT_CONTINUE:
2587 			return false;
2588 		default:
2589 			/* check next zone */
2590 			;
2591 		}
2592 	}
2593 
2594 	/*
2595 	 * If we have not reclaimed enough pages for compaction and the
2596 	 * inactive lists are large enough, continue reclaiming
2597 	 */
2598 	pages_for_compaction = compact_gap(sc->order);
2599 	inactive_lru_pages = node_page_state(pgdat, NR_INACTIVE_FILE);
2600 	if (get_nr_swap_pages() > 0)
2601 		inactive_lru_pages += node_page_state(pgdat, NR_INACTIVE_ANON);
2602 
2603 	return inactive_lru_pages > pages_for_compaction;
2604 }
2605 
2606 static void shrink_node_memcgs(pg_data_t *pgdat, struct scan_control *sc)
2607 {
2608 	struct mem_cgroup *target_memcg = sc->target_mem_cgroup;
2609 	struct mem_cgroup *memcg;
2610 
2611 	memcg = mem_cgroup_iter(target_memcg, NULL, NULL);
2612 	do {
2613 		struct lruvec *lruvec = mem_cgroup_lruvec(memcg, pgdat);
2614 		unsigned long reclaimed;
2615 		unsigned long scanned;
2616 
2617 		/*
2618 		 * This loop can become CPU-bound when target memcgs
2619 		 * aren't eligible for reclaim - either because they
2620 		 * don't have any reclaimable pages, or because their
2621 		 * memory is explicitly protected. Avoid soft lockups.
2622 		 */
2623 		cond_resched();
2624 
2625 		mem_cgroup_calculate_protection(target_memcg, memcg);
2626 
2627 		if (mem_cgroup_below_min(memcg)) {
2628 			/*
2629 			 * Hard protection.
2630 			 * If there is no reclaimable memory, OOM.
2631 			 */
2632 			continue;
2633 		} else if (mem_cgroup_below_low(memcg)) {
2634 			/*
2635 			 * Soft protection.
2636 			 * Respect the protection only as long as
2637 			 * there is an unprotected supply
2638 			 * of reclaimable memory from other cgroups.
2639 			 */
2640 			if (!sc->memcg_low_reclaim) {
2641 				sc->memcg_low_skipped = 1;
2642 				continue;
2643 			}
2644 			memcg_memory_event(memcg, MEMCG_LOW);
2645 		}
2646 
2647 		reclaimed = sc->nr_reclaimed;
2648 		scanned = sc->nr_scanned;
2649 
2650 		shrink_lruvec(lruvec, sc);
2651 
2652 		shrink_slab(sc->gfp_mask, pgdat->node_id, memcg,
2653 			    sc->priority);
2654 
2655 		/* Record the group's reclaim efficiency */
2656 		vmpressure(sc->gfp_mask, memcg, false,
2657 			   sc->nr_scanned - scanned,
2658 			   sc->nr_reclaimed - reclaimed);
2659 
2660 	} while ((memcg = mem_cgroup_iter(target_memcg, memcg, NULL)));
2661 }
2662 
2663 static void shrink_node(pg_data_t *pgdat, struct scan_control *sc)
2664 {
2665 	struct reclaim_state *reclaim_state = current->reclaim_state;
2666 	unsigned long nr_reclaimed, nr_scanned;
2667 	struct lruvec *target_lruvec;
2668 	bool reclaimable = false;
2669 	unsigned long file;
2670 
2671 	target_lruvec = mem_cgroup_lruvec(sc->target_mem_cgroup, pgdat);
2672 
2673 again:
2674 	memset(&sc->nr, 0, sizeof(sc->nr));
2675 
2676 	nr_reclaimed = sc->nr_reclaimed;
2677 	nr_scanned = sc->nr_scanned;
2678 
2679 	/*
2680 	 * Determine the scan balance between anon and file LRUs.
2681 	 */
2682 	spin_lock_irq(&pgdat->lru_lock);
2683 	sc->anon_cost = target_lruvec->anon_cost;
2684 	sc->file_cost = target_lruvec->file_cost;
2685 	spin_unlock_irq(&pgdat->lru_lock);
2686 
2687 	/*
2688 	 * Target desirable inactive:active list ratios for the anon
2689 	 * and file LRU lists.
2690 	 */
2691 	if (!sc->force_deactivate) {
2692 		unsigned long refaults;
2693 
2694 		refaults = lruvec_page_state(target_lruvec,
2695 				WORKINGSET_ACTIVATE_ANON);
2696 		if (refaults != target_lruvec->refaults[0] ||
2697 			inactive_is_low(target_lruvec, LRU_INACTIVE_ANON))
2698 			sc->may_deactivate |= DEACTIVATE_ANON;
2699 		else
2700 			sc->may_deactivate &= ~DEACTIVATE_ANON;
2701 
2702 		/*
2703 		 * When refaults are being observed, it means a new
2704 		 * workingset is being established. Deactivate to get
2705 		 * rid of any stale active pages quickly.
2706 		 */
2707 		refaults = lruvec_page_state(target_lruvec,
2708 				WORKINGSET_ACTIVATE_FILE);
2709 		if (refaults != target_lruvec->refaults[1] ||
2710 		    inactive_is_low(target_lruvec, LRU_INACTIVE_FILE))
2711 			sc->may_deactivate |= DEACTIVATE_FILE;
2712 		else
2713 			sc->may_deactivate &= ~DEACTIVATE_FILE;
2714 	} else
2715 		sc->may_deactivate = DEACTIVATE_ANON | DEACTIVATE_FILE;
2716 
2717 	/*
2718 	 * If we have plenty of inactive file pages that aren't
2719 	 * thrashing, try to reclaim those first before touching
2720 	 * anonymous pages.
2721 	 */
2722 	file = lruvec_page_state(target_lruvec, NR_INACTIVE_FILE);
2723 	if (file >> sc->priority && !(sc->may_deactivate & DEACTIVATE_FILE))
2724 		sc->cache_trim_mode = 1;
2725 	else
2726 		sc->cache_trim_mode = 0;
2727 
2728 	/*
2729 	 * Prevent the reclaimer from falling into the cache trap: as
2730 	 * cache pages start out inactive, every cache fault will tip
2731 	 * the scan balance towards the file LRU.  And as the file LRU
2732 	 * shrinks, so does the window for rotation from references.
2733 	 * This means we have a runaway feedback loop where a tiny
2734 	 * thrashing file LRU becomes infinitely more attractive than
2735 	 * anon pages.  Try to detect this based on file LRU size.
2736 	 */
2737 	if (!cgroup_reclaim(sc)) {
2738 		unsigned long total_high_wmark = 0;
2739 		unsigned long free, anon;
2740 		int z;
2741 
2742 		free = sum_zone_node_page_state(pgdat->node_id, NR_FREE_PAGES);
2743 		file = node_page_state(pgdat, NR_ACTIVE_FILE) +
2744 			   node_page_state(pgdat, NR_INACTIVE_FILE);
2745 
2746 		for (z = 0; z < MAX_NR_ZONES; z++) {
2747 			struct zone *zone = &pgdat->node_zones[z];
2748 			if (!managed_zone(zone))
2749 				continue;
2750 
2751 			total_high_wmark += high_wmark_pages(zone);
2752 		}
2753 
2754 		/*
2755 		 * Consider anon: if that's low too, this isn't a
2756 		 * runaway file reclaim problem, but rather just
2757 		 * extreme pressure. Reclaim as per usual then.
2758 		 */
2759 		anon = node_page_state(pgdat, NR_INACTIVE_ANON);
2760 
2761 		sc->file_is_tiny =
2762 			file + free <= total_high_wmark &&
2763 			!(sc->may_deactivate & DEACTIVATE_ANON) &&
2764 			anon >> sc->priority;
2765 	}
2766 
2767 	shrink_node_memcgs(pgdat, sc);
2768 
2769 	if (reclaim_state) {
2770 		sc->nr_reclaimed += reclaim_state->reclaimed_slab;
2771 		reclaim_state->reclaimed_slab = 0;
2772 	}
2773 
2774 	/* Record the subtree's reclaim efficiency */
2775 	vmpressure(sc->gfp_mask, sc->target_mem_cgroup, true,
2776 		   sc->nr_scanned - nr_scanned,
2777 		   sc->nr_reclaimed - nr_reclaimed);
2778 
2779 	if (sc->nr_reclaimed - nr_reclaimed)
2780 		reclaimable = true;
2781 
2782 	if (current_is_kswapd()) {
2783 		/*
2784 		 * If reclaim is isolating dirty pages under writeback,
2785 		 * it implies that the long-lived page allocation rate
2786 		 * is exceeding the page laundering rate. Either the
2787 		 * global limits are not being effective at throttling
2788 		 * processes due to the page distribution throughout
2789 		 * zones or there is heavy usage of a slow backing
2790 		 * device. The only option is to throttle from reclaim
2791 		 * context which is not ideal as there is no guarantee
2792 		 * the dirtying process is throttled in the same way
2793 		 * balance_dirty_pages() manages.
2794 		 *
2795 		 * Once a node is flagged PGDAT_WRITEBACK, kswapd will
2796 		 * count the number of pages under pages flagged for
2797 		 * immediate reclaim and stall if any are encountered
2798 		 * in the nr_immediate check below.
2799 		 */
2800 		if (sc->nr.writeback && sc->nr.writeback == sc->nr.taken)
2801 			set_bit(PGDAT_WRITEBACK, &pgdat->flags);
2802 
2803 		/* Allow kswapd to start writing pages during reclaim.*/
2804 		if (sc->nr.unqueued_dirty == sc->nr.file_taken)
2805 			set_bit(PGDAT_DIRTY, &pgdat->flags);
2806 
2807 		/*
2808 		 * If kswapd scans pages marked for immediate
2809 		 * reclaim and under writeback (nr_immediate), it
2810 		 * implies that pages are cycling through the LRU
2811 		 * faster than they are written so also forcibly stall.
2812 		 */
2813 		if (sc->nr.immediate)
2814 			congestion_wait(BLK_RW_ASYNC, HZ/10);
2815 	}
2816 
2817 	/*
2818 	 * Tag a node/memcg as congested if all the dirty pages
2819 	 * scanned were backed by a congested BDI and
2820 	 * wait_iff_congested will stall.
2821 	 *
2822 	 * Legacy memcg will stall in page writeback so avoid forcibly
2823 	 * stalling in wait_iff_congested().
2824 	 */
2825 	if ((current_is_kswapd() ||
2826 	     (cgroup_reclaim(sc) && writeback_throttling_sane(sc))) &&
2827 	    sc->nr.dirty && sc->nr.dirty == sc->nr.congested)
2828 		set_bit(LRUVEC_CONGESTED, &target_lruvec->flags);
2829 
2830 	/*
2831 	 * Stall direct reclaim for IO completions if underlying BDIs
2832 	 * and node is congested. Allow kswapd to continue until it
2833 	 * starts encountering unqueued dirty pages or cycling through
2834 	 * the LRU too quickly.
2835 	 */
2836 	if (!current_is_kswapd() && current_may_throttle() &&
2837 	    !sc->hibernation_mode &&
2838 	    test_bit(LRUVEC_CONGESTED, &target_lruvec->flags))
2839 		wait_iff_congested(BLK_RW_ASYNC, HZ/10);
2840 
2841 	if (should_continue_reclaim(pgdat, sc->nr_reclaimed - nr_reclaimed,
2842 				    sc))
2843 		goto again;
2844 
2845 	/*
2846 	 * Kswapd gives up on balancing particular nodes after too
2847 	 * many failures to reclaim anything from them and goes to
2848 	 * sleep. On reclaim progress, reset the failure counter. A
2849 	 * successful direct reclaim run will revive a dormant kswapd.
2850 	 */
2851 	if (reclaimable)
2852 		pgdat->kswapd_failures = 0;
2853 }
2854 
2855 /*
2856  * Returns true if compaction should go ahead for a costly-order request, or
2857  * the allocation would already succeed without compaction. Return false if we
2858  * should reclaim first.
2859  */
2860 static inline bool compaction_ready(struct zone *zone, struct scan_control *sc)
2861 {
2862 	unsigned long watermark;
2863 	enum compact_result suitable;
2864 
2865 	suitable = compaction_suitable(zone, sc->order, 0, sc->reclaim_idx);
2866 	if (suitable == COMPACT_SUCCESS)
2867 		/* Allocation should succeed already. Don't reclaim. */
2868 		return true;
2869 	if (suitable == COMPACT_SKIPPED)
2870 		/* Compaction cannot yet proceed. Do reclaim. */
2871 		return false;
2872 
2873 	/*
2874 	 * Compaction is already possible, but it takes time to run and there
2875 	 * are potentially other callers using the pages just freed. So proceed
2876 	 * with reclaim to make a buffer of free pages available to give
2877 	 * compaction a reasonable chance of completing and allocating the page.
2878 	 * Note that we won't actually reclaim the whole buffer in one attempt
2879 	 * as the target watermark in should_continue_reclaim() is lower. But if
2880 	 * we are already above the high+gap watermark, don't reclaim at all.
2881 	 */
2882 	watermark = high_wmark_pages(zone) + compact_gap(sc->order);
2883 
2884 	return zone_watermark_ok_safe(zone, 0, watermark, sc->reclaim_idx);
2885 }
2886 
2887 /*
2888  * This is the direct reclaim path, for page-allocating processes.  We only
2889  * try to reclaim pages from zones which will satisfy the caller's allocation
2890  * request.
2891  *
2892  * If a zone is deemed to be full of pinned pages then just give it a light
2893  * scan then give up on it.
2894  */
2895 static void shrink_zones(struct zonelist *zonelist, struct scan_control *sc)
2896 {
2897 	struct zoneref *z;
2898 	struct zone *zone;
2899 	unsigned long nr_soft_reclaimed;
2900 	unsigned long nr_soft_scanned;
2901 	gfp_t orig_mask;
2902 	pg_data_t *last_pgdat = NULL;
2903 
2904 	/*
2905 	 * If the number of buffer_heads in the machine exceeds the maximum
2906 	 * allowed level, force direct reclaim to scan the highmem zone as
2907 	 * highmem pages could be pinning lowmem pages storing buffer_heads
2908 	 */
2909 	orig_mask = sc->gfp_mask;
2910 	if (buffer_heads_over_limit) {
2911 		sc->gfp_mask |= __GFP_HIGHMEM;
2912 		sc->reclaim_idx = gfp_zone(sc->gfp_mask);
2913 	}
2914 
2915 	for_each_zone_zonelist_nodemask(zone, z, zonelist,
2916 					sc->reclaim_idx, sc->nodemask) {
2917 		/*
2918 		 * Take care memory controller reclaiming has small influence
2919 		 * to global LRU.
2920 		 */
2921 		if (!cgroup_reclaim(sc)) {
2922 			if (!cpuset_zone_allowed(zone,
2923 						 GFP_KERNEL | __GFP_HARDWALL))
2924 				continue;
2925 
2926 			/*
2927 			 * If we already have plenty of memory free for
2928 			 * compaction in this zone, don't free any more.
2929 			 * Even though compaction is invoked for any
2930 			 * non-zero order, only frequent costly order
2931 			 * reclamation is disruptive enough to become a
2932 			 * noticeable problem, like transparent huge
2933 			 * page allocations.
2934 			 */
2935 			if (IS_ENABLED(CONFIG_COMPACTION) &&
2936 			    sc->order > PAGE_ALLOC_COSTLY_ORDER &&
2937 			    compaction_ready(zone, sc)) {
2938 				sc->compaction_ready = true;
2939 				continue;
2940 			}
2941 
2942 			/*
2943 			 * Shrink each node in the zonelist once. If the
2944 			 * zonelist is ordered by zone (not the default) then a
2945 			 * node may be shrunk multiple times but in that case
2946 			 * the user prefers lower zones being preserved.
2947 			 */
2948 			if (zone->zone_pgdat == last_pgdat)
2949 				continue;
2950 
2951 			/*
2952 			 * This steals pages from memory cgroups over softlimit
2953 			 * and returns the number of reclaimed pages and
2954 			 * scanned pages. This works for global memory pressure
2955 			 * and balancing, not for a memcg's limit.
2956 			 */
2957 			nr_soft_scanned = 0;
2958 			nr_soft_reclaimed = mem_cgroup_soft_limit_reclaim(zone->zone_pgdat,
2959 						sc->order, sc->gfp_mask,
2960 						&nr_soft_scanned);
2961 			sc->nr_reclaimed += nr_soft_reclaimed;
2962 			sc->nr_scanned += nr_soft_scanned;
2963 			/* need some check for avoid more shrink_zone() */
2964 		}
2965 
2966 		/* See comment about same check for global reclaim above */
2967 		if (zone->zone_pgdat == last_pgdat)
2968 			continue;
2969 		last_pgdat = zone->zone_pgdat;
2970 		shrink_node(zone->zone_pgdat, sc);
2971 	}
2972 
2973 	/*
2974 	 * Restore to original mask to avoid the impact on the caller if we
2975 	 * promoted it to __GFP_HIGHMEM.
2976 	 */
2977 	sc->gfp_mask = orig_mask;
2978 }
2979 
2980 static void snapshot_refaults(struct mem_cgroup *target_memcg, pg_data_t *pgdat)
2981 {
2982 	struct lruvec *target_lruvec;
2983 	unsigned long refaults;
2984 
2985 	target_lruvec = mem_cgroup_lruvec(target_memcg, pgdat);
2986 	refaults = lruvec_page_state(target_lruvec, WORKINGSET_ACTIVATE_ANON);
2987 	target_lruvec->refaults[0] = refaults;
2988 	refaults = lruvec_page_state(target_lruvec, WORKINGSET_ACTIVATE_FILE);
2989 	target_lruvec->refaults[1] = refaults;
2990 }
2991 
2992 /*
2993  * This is the main entry point to direct page reclaim.
2994  *
2995  * If a full scan of the inactive list fails to free enough memory then we
2996  * are "out of memory" and something needs to be killed.
2997  *
2998  * If the caller is !__GFP_FS then the probability of a failure is reasonably
2999  * high - the zone may be full of dirty or under-writeback pages, which this
3000  * caller can't do much about.  We kick the writeback threads and take explicit
3001  * naps in the hope that some of these pages can be written.  But if the
3002  * allocating task holds filesystem locks which prevent writeout this might not
3003  * work, and the allocation attempt will fail.
3004  *
3005  * returns:	0, if no pages reclaimed
3006  * 		else, the number of pages reclaimed
3007  */
3008 static unsigned long do_try_to_free_pages(struct zonelist *zonelist,
3009 					  struct scan_control *sc)
3010 {
3011 	int initial_priority = sc->priority;
3012 	pg_data_t *last_pgdat;
3013 	struct zoneref *z;
3014 	struct zone *zone;
3015 retry:
3016 	delayacct_freepages_start();
3017 
3018 	if (!cgroup_reclaim(sc))
3019 		__count_zid_vm_events(ALLOCSTALL, sc->reclaim_idx, 1);
3020 
3021 	do {
3022 		vmpressure_prio(sc->gfp_mask, sc->target_mem_cgroup,
3023 				sc->priority);
3024 		sc->nr_scanned = 0;
3025 		shrink_zones(zonelist, sc);
3026 
3027 		if (sc->nr_reclaimed >= sc->nr_to_reclaim)
3028 			break;
3029 
3030 		if (sc->compaction_ready)
3031 			break;
3032 
3033 		/*
3034 		 * If we're getting trouble reclaiming, start doing
3035 		 * writepage even in laptop mode.
3036 		 */
3037 		if (sc->priority < DEF_PRIORITY - 2)
3038 			sc->may_writepage = 1;
3039 	} while (--sc->priority >= 0);
3040 
3041 	last_pgdat = NULL;
3042 	for_each_zone_zonelist_nodemask(zone, z, zonelist, sc->reclaim_idx,
3043 					sc->nodemask) {
3044 		if (zone->zone_pgdat == last_pgdat)
3045 			continue;
3046 		last_pgdat = zone->zone_pgdat;
3047 
3048 		snapshot_refaults(sc->target_mem_cgroup, zone->zone_pgdat);
3049 
3050 		if (cgroup_reclaim(sc)) {
3051 			struct lruvec *lruvec;
3052 
3053 			lruvec = mem_cgroup_lruvec(sc->target_mem_cgroup,
3054 						   zone->zone_pgdat);
3055 			clear_bit(LRUVEC_CONGESTED, &lruvec->flags);
3056 		}
3057 	}
3058 
3059 	delayacct_freepages_end();
3060 
3061 	if (sc->nr_reclaimed)
3062 		return sc->nr_reclaimed;
3063 
3064 	/* Aborted reclaim to try compaction? don't OOM, then */
3065 	if (sc->compaction_ready)
3066 		return 1;
3067 
3068 	/*
3069 	 * We make inactive:active ratio decisions based on the node's
3070 	 * composition of memory, but a restrictive reclaim_idx or a
3071 	 * memory.low cgroup setting can exempt large amounts of
3072 	 * memory from reclaim. Neither of which are very common, so
3073 	 * instead of doing costly eligibility calculations of the
3074 	 * entire cgroup subtree up front, we assume the estimates are
3075 	 * good, and retry with forcible deactivation if that fails.
3076 	 */
3077 	if (sc->skipped_deactivate) {
3078 		sc->priority = initial_priority;
3079 		sc->force_deactivate = 1;
3080 		sc->skipped_deactivate = 0;
3081 		goto retry;
3082 	}
3083 
3084 	/* Untapped cgroup reserves?  Don't OOM, retry. */
3085 	if (sc->memcg_low_skipped) {
3086 		sc->priority = initial_priority;
3087 		sc->force_deactivate = 0;
3088 		sc->memcg_low_reclaim = 1;
3089 		sc->memcg_low_skipped = 0;
3090 		goto retry;
3091 	}
3092 
3093 	return 0;
3094 }
3095 
3096 static bool allow_direct_reclaim(pg_data_t *pgdat)
3097 {
3098 	struct zone *zone;
3099 	unsigned long pfmemalloc_reserve = 0;
3100 	unsigned long free_pages = 0;
3101 	int i;
3102 	bool wmark_ok;
3103 
3104 	if (pgdat->kswapd_failures >= MAX_RECLAIM_RETRIES)
3105 		return true;
3106 
3107 	for (i = 0; i <= ZONE_NORMAL; i++) {
3108 		zone = &pgdat->node_zones[i];
3109 		if (!managed_zone(zone))
3110 			continue;
3111 
3112 		if (!zone_reclaimable_pages(zone))
3113 			continue;
3114 
3115 		pfmemalloc_reserve += min_wmark_pages(zone);
3116 		free_pages += zone_page_state(zone, NR_FREE_PAGES);
3117 	}
3118 
3119 	/* If there are no reserves (unexpected config) then do not throttle */
3120 	if (!pfmemalloc_reserve)
3121 		return true;
3122 
3123 	wmark_ok = free_pages > pfmemalloc_reserve / 2;
3124 
3125 	/* kswapd must be awake if processes are being throttled */
3126 	if (!wmark_ok && waitqueue_active(&pgdat->kswapd_wait)) {
3127 		if (READ_ONCE(pgdat->kswapd_highest_zoneidx) > ZONE_NORMAL)
3128 			WRITE_ONCE(pgdat->kswapd_highest_zoneidx, ZONE_NORMAL);
3129 
3130 		wake_up_interruptible(&pgdat->kswapd_wait);
3131 	}
3132 
3133 	return wmark_ok;
3134 }
3135 
3136 /*
3137  * Throttle direct reclaimers if backing storage is backed by the network
3138  * and the PFMEMALLOC reserve for the preferred node is getting dangerously
3139  * depleted. kswapd will continue to make progress and wake the processes
3140  * when the low watermark is reached.
3141  *
3142  * Returns true if a fatal signal was delivered during throttling. If this
3143  * happens, the page allocator should not consider triggering the OOM killer.
3144  */
3145 static bool throttle_direct_reclaim(gfp_t gfp_mask, struct zonelist *zonelist,
3146 					nodemask_t *nodemask)
3147 {
3148 	struct zoneref *z;
3149 	struct zone *zone;
3150 	pg_data_t *pgdat = NULL;
3151 
3152 	/*
3153 	 * Kernel threads should not be throttled as they may be indirectly
3154 	 * responsible for cleaning pages necessary for reclaim to make forward
3155 	 * progress. kjournald for example may enter direct reclaim while
3156 	 * committing a transaction where throttling it could forcing other
3157 	 * processes to block on log_wait_commit().
3158 	 */
3159 	if (current->flags & PF_KTHREAD)
3160 		goto out;
3161 
3162 	/*
3163 	 * If a fatal signal is pending, this process should not throttle.
3164 	 * It should return quickly so it can exit and free its memory
3165 	 */
3166 	if (fatal_signal_pending(current))
3167 		goto out;
3168 
3169 	/*
3170 	 * Check if the pfmemalloc reserves are ok by finding the first node
3171 	 * with a usable ZONE_NORMAL or lower zone. The expectation is that
3172 	 * GFP_KERNEL will be required for allocating network buffers when
3173 	 * swapping over the network so ZONE_HIGHMEM is unusable.
3174 	 *
3175 	 * Throttling is based on the first usable node and throttled processes
3176 	 * wait on a queue until kswapd makes progress and wakes them. There
3177 	 * is an affinity then between processes waking up and where reclaim
3178 	 * progress has been made assuming the process wakes on the same node.
3179 	 * More importantly, processes running on remote nodes will not compete
3180 	 * for remote pfmemalloc reserves and processes on different nodes
3181 	 * should make reasonable progress.
3182 	 */
3183 	for_each_zone_zonelist_nodemask(zone, z, zonelist,
3184 					gfp_zone(gfp_mask), nodemask) {
3185 		if (zone_idx(zone) > ZONE_NORMAL)
3186 			continue;
3187 
3188 		/* Throttle based on the first usable node */
3189 		pgdat = zone->zone_pgdat;
3190 		if (allow_direct_reclaim(pgdat))
3191 			goto out;
3192 		break;
3193 	}
3194 
3195 	/* If no zone was usable by the allocation flags then do not throttle */
3196 	if (!pgdat)
3197 		goto out;
3198 
3199 	/* Account for the throttling */
3200 	count_vm_event(PGSCAN_DIRECT_THROTTLE);
3201 
3202 	/*
3203 	 * If the caller cannot enter the filesystem, it's possible that it
3204 	 * is due to the caller holding an FS lock or performing a journal
3205 	 * transaction in the case of a filesystem like ext[3|4]. In this case,
3206 	 * it is not safe to block on pfmemalloc_wait as kswapd could be
3207 	 * blocked waiting on the same lock. Instead, throttle for up to a
3208 	 * second before continuing.
3209 	 */
3210 	if (!(gfp_mask & __GFP_FS)) {
3211 		wait_event_interruptible_timeout(pgdat->pfmemalloc_wait,
3212 			allow_direct_reclaim(pgdat), HZ);
3213 
3214 		goto check_pending;
3215 	}
3216 
3217 	/* Throttle until kswapd wakes the process */
3218 	wait_event_killable(zone->zone_pgdat->pfmemalloc_wait,
3219 		allow_direct_reclaim(pgdat));
3220 
3221 check_pending:
3222 	if (fatal_signal_pending(current))
3223 		return true;
3224 
3225 out:
3226 	return false;
3227 }
3228 
3229 unsigned long try_to_free_pages(struct zonelist *zonelist, int order,
3230 				gfp_t gfp_mask, nodemask_t *nodemask)
3231 {
3232 	unsigned long nr_reclaimed;
3233 	struct scan_control sc = {
3234 		.nr_to_reclaim = SWAP_CLUSTER_MAX,
3235 		.gfp_mask = current_gfp_context(gfp_mask),
3236 		.reclaim_idx = gfp_zone(gfp_mask),
3237 		.order = order,
3238 		.nodemask = nodemask,
3239 		.priority = DEF_PRIORITY,
3240 		.may_writepage = !laptop_mode,
3241 		.may_unmap = 1,
3242 		.may_swap = 1,
3243 	};
3244 
3245 	/*
3246 	 * scan_control uses s8 fields for order, priority, and reclaim_idx.
3247 	 * Confirm they are large enough for max values.
3248 	 */
3249 	BUILD_BUG_ON(MAX_ORDER > S8_MAX);
3250 	BUILD_BUG_ON(DEF_PRIORITY > S8_MAX);
3251 	BUILD_BUG_ON(MAX_NR_ZONES > S8_MAX);
3252 
3253 	/*
3254 	 * Do not enter reclaim if fatal signal was delivered while throttled.
3255 	 * 1 is returned so that the page allocator does not OOM kill at this
3256 	 * point.
3257 	 */
3258 	if (throttle_direct_reclaim(sc.gfp_mask, zonelist, nodemask))
3259 		return 1;
3260 
3261 	set_task_reclaim_state(current, &sc.reclaim_state);
3262 	trace_mm_vmscan_direct_reclaim_begin(order, sc.gfp_mask);
3263 
3264 	nr_reclaimed = do_try_to_free_pages(zonelist, &sc);
3265 
3266 	trace_mm_vmscan_direct_reclaim_end(nr_reclaimed);
3267 	set_task_reclaim_state(current, NULL);
3268 
3269 	return nr_reclaimed;
3270 }
3271 
3272 #ifdef CONFIG_MEMCG
3273 
3274 /* Only used by soft limit reclaim. Do not reuse for anything else. */
3275 unsigned long mem_cgroup_shrink_node(struct mem_cgroup *memcg,
3276 						gfp_t gfp_mask, bool noswap,
3277 						pg_data_t *pgdat,
3278 						unsigned long *nr_scanned)
3279 {
3280 	struct lruvec *lruvec = mem_cgroup_lruvec(memcg, pgdat);
3281 	struct scan_control sc = {
3282 		.nr_to_reclaim = SWAP_CLUSTER_MAX,
3283 		.target_mem_cgroup = memcg,
3284 		.may_writepage = !laptop_mode,
3285 		.may_unmap = 1,
3286 		.reclaim_idx = MAX_NR_ZONES - 1,
3287 		.may_swap = !noswap,
3288 	};
3289 
3290 	WARN_ON_ONCE(!current->reclaim_state);
3291 
3292 	sc.gfp_mask = (gfp_mask & GFP_RECLAIM_MASK) |
3293 			(GFP_HIGHUSER_MOVABLE & ~GFP_RECLAIM_MASK);
3294 
3295 	trace_mm_vmscan_memcg_softlimit_reclaim_begin(sc.order,
3296 						      sc.gfp_mask);
3297 
3298 	/*
3299 	 * NOTE: Although we can get the priority field, using it
3300 	 * here is not a good idea, since it limits the pages we can scan.
3301 	 * if we don't reclaim here, the shrink_node from balance_pgdat
3302 	 * will pick up pages from other mem cgroup's as well. We hack
3303 	 * the priority and make it zero.
3304 	 */
3305 	shrink_lruvec(lruvec, &sc);
3306 
3307 	trace_mm_vmscan_memcg_softlimit_reclaim_end(sc.nr_reclaimed);
3308 
3309 	*nr_scanned = sc.nr_scanned;
3310 
3311 	return sc.nr_reclaimed;
3312 }
3313 
3314 unsigned long try_to_free_mem_cgroup_pages(struct mem_cgroup *memcg,
3315 					   unsigned long nr_pages,
3316 					   gfp_t gfp_mask,
3317 					   bool may_swap)
3318 {
3319 	unsigned long nr_reclaimed;
3320 	unsigned int noreclaim_flag;
3321 	struct scan_control sc = {
3322 		.nr_to_reclaim = max(nr_pages, SWAP_CLUSTER_MAX),
3323 		.gfp_mask = (current_gfp_context(gfp_mask) & GFP_RECLAIM_MASK) |
3324 				(GFP_HIGHUSER_MOVABLE & ~GFP_RECLAIM_MASK),
3325 		.reclaim_idx = MAX_NR_ZONES - 1,
3326 		.target_mem_cgroup = memcg,
3327 		.priority = DEF_PRIORITY,
3328 		.may_writepage = !laptop_mode,
3329 		.may_unmap = 1,
3330 		.may_swap = may_swap,
3331 	};
3332 	/*
3333 	 * Traverse the ZONELIST_FALLBACK zonelist of the current node to put
3334 	 * equal pressure on all the nodes. This is based on the assumption that
3335 	 * the reclaim does not bail out early.
3336 	 */
3337 	struct zonelist *zonelist = node_zonelist(numa_node_id(), sc.gfp_mask);
3338 
3339 	set_task_reclaim_state(current, &sc.reclaim_state);
3340 	trace_mm_vmscan_memcg_reclaim_begin(0, sc.gfp_mask);
3341 	noreclaim_flag = memalloc_noreclaim_save();
3342 
3343 	nr_reclaimed = do_try_to_free_pages(zonelist, &sc);
3344 
3345 	memalloc_noreclaim_restore(noreclaim_flag);
3346 	trace_mm_vmscan_memcg_reclaim_end(nr_reclaimed);
3347 	set_task_reclaim_state(current, NULL);
3348 
3349 	return nr_reclaimed;
3350 }
3351 #endif
3352 
3353 static void age_active_anon(struct pglist_data *pgdat,
3354 				struct scan_control *sc)
3355 {
3356 	struct mem_cgroup *memcg;
3357 	struct lruvec *lruvec;
3358 
3359 	if (!total_swap_pages)
3360 		return;
3361 
3362 	lruvec = mem_cgroup_lruvec(NULL, pgdat);
3363 	if (!inactive_is_low(lruvec, LRU_INACTIVE_ANON))
3364 		return;
3365 
3366 	memcg = mem_cgroup_iter(NULL, NULL, NULL);
3367 	do {
3368 		lruvec = mem_cgroup_lruvec(memcg, pgdat);
3369 		shrink_active_list(SWAP_CLUSTER_MAX, lruvec,
3370 				   sc, LRU_ACTIVE_ANON);
3371 		memcg = mem_cgroup_iter(NULL, memcg, NULL);
3372 	} while (memcg);
3373 }
3374 
3375 static bool pgdat_watermark_boosted(pg_data_t *pgdat, int highest_zoneidx)
3376 {
3377 	int i;
3378 	struct zone *zone;
3379 
3380 	/*
3381 	 * Check for watermark boosts top-down as the higher zones
3382 	 * are more likely to be boosted. Both watermarks and boosts
3383 	 * should not be checked at the same time as reclaim would
3384 	 * start prematurely when there is no boosting and a lower
3385 	 * zone is balanced.
3386 	 */
3387 	for (i = highest_zoneidx; i >= 0; i--) {
3388 		zone = pgdat->node_zones + i;
3389 		if (!managed_zone(zone))
3390 			continue;
3391 
3392 		if (zone->watermark_boost)
3393 			return true;
3394 	}
3395 
3396 	return false;
3397 }
3398 
3399 /*
3400  * Returns true if there is an eligible zone balanced for the request order
3401  * and highest_zoneidx
3402  */
3403 static bool pgdat_balanced(pg_data_t *pgdat, int order, int highest_zoneidx)
3404 {
3405 	int i;
3406 	unsigned long mark = -1;
3407 	struct zone *zone;
3408 
3409 	/*
3410 	 * Check watermarks bottom-up as lower zones are more likely to
3411 	 * meet watermarks.
3412 	 */
3413 	for (i = 0; i <= highest_zoneidx; i++) {
3414 		zone = pgdat->node_zones + i;
3415 
3416 		if (!managed_zone(zone))
3417 			continue;
3418 
3419 		mark = high_wmark_pages(zone);
3420 		if (zone_watermark_ok_safe(zone, order, mark, highest_zoneidx))
3421 			return true;
3422 	}
3423 
3424 	/*
3425 	 * If a node has no populated zone within highest_zoneidx, it does not
3426 	 * need balancing by definition. This can happen if a zone-restricted
3427 	 * allocation tries to wake a remote kswapd.
3428 	 */
3429 	if (mark == -1)
3430 		return true;
3431 
3432 	return false;
3433 }
3434 
3435 /* Clear pgdat state for congested, dirty or under writeback. */
3436 static void clear_pgdat_congested(pg_data_t *pgdat)
3437 {
3438 	struct lruvec *lruvec = mem_cgroup_lruvec(NULL, pgdat);
3439 
3440 	clear_bit(LRUVEC_CONGESTED, &lruvec->flags);
3441 	clear_bit(PGDAT_DIRTY, &pgdat->flags);
3442 	clear_bit(PGDAT_WRITEBACK, &pgdat->flags);
3443 }
3444 
3445 /*
3446  * Prepare kswapd for sleeping. This verifies that there are no processes
3447  * waiting in throttle_direct_reclaim() and that watermarks have been met.
3448  *
3449  * Returns true if kswapd is ready to sleep
3450  */
3451 static bool prepare_kswapd_sleep(pg_data_t *pgdat, int order,
3452 				int highest_zoneidx)
3453 {
3454 	/*
3455 	 * The throttled processes are normally woken up in balance_pgdat() as
3456 	 * soon as allow_direct_reclaim() is true. But there is a potential
3457 	 * race between when kswapd checks the watermarks and a process gets
3458 	 * throttled. There is also a potential race if processes get
3459 	 * throttled, kswapd wakes, a large process exits thereby balancing the
3460 	 * zones, which causes kswapd to exit balance_pgdat() before reaching
3461 	 * the wake up checks. If kswapd is going to sleep, no process should
3462 	 * be sleeping on pfmemalloc_wait, so wake them now if necessary. If
3463 	 * the wake up is premature, processes will wake kswapd and get
3464 	 * throttled again. The difference from wake ups in balance_pgdat() is
3465 	 * that here we are under prepare_to_wait().
3466 	 */
3467 	if (waitqueue_active(&pgdat->pfmemalloc_wait))
3468 		wake_up_all(&pgdat->pfmemalloc_wait);
3469 
3470 	/* Hopeless node, leave it to direct reclaim */
3471 	if (pgdat->kswapd_failures >= MAX_RECLAIM_RETRIES)
3472 		return true;
3473 
3474 	if (pgdat_balanced(pgdat, order, highest_zoneidx)) {
3475 		clear_pgdat_congested(pgdat);
3476 		return true;
3477 	}
3478 
3479 	return false;
3480 }
3481 
3482 /*
3483  * kswapd shrinks a node of pages that are at or below the highest usable
3484  * zone that is currently unbalanced.
3485  *
3486  * Returns true if kswapd scanned at least the requested number of pages to
3487  * reclaim or if the lack of progress was due to pages under writeback.
3488  * This is used to determine if the scanning priority needs to be raised.
3489  */
3490 static bool kswapd_shrink_node(pg_data_t *pgdat,
3491 			       struct scan_control *sc)
3492 {
3493 	struct zone *zone;
3494 	int z;
3495 
3496 	/* Reclaim a number of pages proportional to the number of zones */
3497 	sc->nr_to_reclaim = 0;
3498 	for (z = 0; z <= sc->reclaim_idx; z++) {
3499 		zone = pgdat->node_zones + z;
3500 		if (!managed_zone(zone))
3501 			continue;
3502 
3503 		sc->nr_to_reclaim += max(high_wmark_pages(zone), SWAP_CLUSTER_MAX);
3504 	}
3505 
3506 	/*
3507 	 * Historically care was taken to put equal pressure on all zones but
3508 	 * now pressure is applied based on node LRU order.
3509 	 */
3510 	shrink_node(pgdat, sc);
3511 
3512 	/*
3513 	 * Fragmentation may mean that the system cannot be rebalanced for
3514 	 * high-order allocations. If twice the allocation size has been
3515 	 * reclaimed then recheck watermarks only at order-0 to prevent
3516 	 * excessive reclaim. Assume that a process requested a high-order
3517 	 * can direct reclaim/compact.
3518 	 */
3519 	if (sc->order && sc->nr_reclaimed >= compact_gap(sc->order))
3520 		sc->order = 0;
3521 
3522 	return sc->nr_scanned >= sc->nr_to_reclaim;
3523 }
3524 
3525 /*
3526  * For kswapd, balance_pgdat() will reclaim pages across a node from zones
3527  * that are eligible for use by the caller until at least one zone is
3528  * balanced.
3529  *
3530  * Returns the order kswapd finished reclaiming at.
3531  *
3532  * kswapd scans the zones in the highmem->normal->dma direction.  It skips
3533  * zones which have free_pages > high_wmark_pages(zone), but once a zone is
3534  * found to have free_pages <= high_wmark_pages(zone), any page in that zone
3535  * or lower is eligible for reclaim until at least one usable zone is
3536  * balanced.
3537  */
3538 static int balance_pgdat(pg_data_t *pgdat, int order, int highest_zoneidx)
3539 {
3540 	int i;
3541 	unsigned long nr_soft_reclaimed;
3542 	unsigned long nr_soft_scanned;
3543 	unsigned long pflags;
3544 	unsigned long nr_boost_reclaim;
3545 	unsigned long zone_boosts[MAX_NR_ZONES] = { 0, };
3546 	bool boosted;
3547 	struct zone *zone;
3548 	struct scan_control sc = {
3549 		.gfp_mask = GFP_KERNEL,
3550 		.order = order,
3551 		.may_unmap = 1,
3552 	};
3553 
3554 	set_task_reclaim_state(current, &sc.reclaim_state);
3555 	psi_memstall_enter(&pflags);
3556 	__fs_reclaim_acquire();
3557 
3558 	count_vm_event(PAGEOUTRUN);
3559 
3560 	/*
3561 	 * Account for the reclaim boost. Note that the zone boost is left in
3562 	 * place so that parallel allocations that are near the watermark will
3563 	 * stall or direct reclaim until kswapd is finished.
3564 	 */
3565 	nr_boost_reclaim = 0;
3566 	for (i = 0; i <= highest_zoneidx; i++) {
3567 		zone = pgdat->node_zones + i;
3568 		if (!managed_zone(zone))
3569 			continue;
3570 
3571 		nr_boost_reclaim += zone->watermark_boost;
3572 		zone_boosts[i] = zone->watermark_boost;
3573 	}
3574 	boosted = nr_boost_reclaim;
3575 
3576 restart:
3577 	sc.priority = DEF_PRIORITY;
3578 	do {
3579 		unsigned long nr_reclaimed = sc.nr_reclaimed;
3580 		bool raise_priority = true;
3581 		bool balanced;
3582 		bool ret;
3583 
3584 		sc.reclaim_idx = highest_zoneidx;
3585 
3586 		/*
3587 		 * If the number of buffer_heads exceeds the maximum allowed
3588 		 * then consider reclaiming from all zones. This has a dual
3589 		 * purpose -- on 64-bit systems it is expected that
3590 		 * buffer_heads are stripped during active rotation. On 32-bit
3591 		 * systems, highmem pages can pin lowmem memory and shrinking
3592 		 * buffers can relieve lowmem pressure. Reclaim may still not
3593 		 * go ahead if all eligible zones for the original allocation
3594 		 * request are balanced to avoid excessive reclaim from kswapd.
3595 		 */
3596 		if (buffer_heads_over_limit) {
3597 			for (i = MAX_NR_ZONES - 1; i >= 0; i--) {
3598 				zone = pgdat->node_zones + i;
3599 				if (!managed_zone(zone))
3600 					continue;
3601 
3602 				sc.reclaim_idx = i;
3603 				break;
3604 			}
3605 		}
3606 
3607 		/*
3608 		 * If the pgdat is imbalanced then ignore boosting and preserve
3609 		 * the watermarks for a later time and restart. Note that the
3610 		 * zone watermarks will be still reset at the end of balancing
3611 		 * on the grounds that the normal reclaim should be enough to
3612 		 * re-evaluate if boosting is required when kswapd next wakes.
3613 		 */
3614 		balanced = pgdat_balanced(pgdat, sc.order, highest_zoneidx);
3615 		if (!balanced && nr_boost_reclaim) {
3616 			nr_boost_reclaim = 0;
3617 			goto restart;
3618 		}
3619 
3620 		/*
3621 		 * If boosting is not active then only reclaim if there are no
3622 		 * eligible zones. Note that sc.reclaim_idx is not used as
3623 		 * buffer_heads_over_limit may have adjusted it.
3624 		 */
3625 		if (!nr_boost_reclaim && balanced)
3626 			goto out;
3627 
3628 		/* Limit the priority of boosting to avoid reclaim writeback */
3629 		if (nr_boost_reclaim && sc.priority == DEF_PRIORITY - 2)
3630 			raise_priority = false;
3631 
3632 		/*
3633 		 * Do not writeback or swap pages for boosted reclaim. The
3634 		 * intent is to relieve pressure not issue sub-optimal IO
3635 		 * from reclaim context. If no pages are reclaimed, the
3636 		 * reclaim will be aborted.
3637 		 */
3638 		sc.may_writepage = !laptop_mode && !nr_boost_reclaim;
3639 		sc.may_swap = !nr_boost_reclaim;
3640 
3641 		/*
3642 		 * Do some background aging of the anon list, to give
3643 		 * pages a chance to be referenced before reclaiming. All
3644 		 * pages are rotated regardless of classzone as this is
3645 		 * about consistent aging.
3646 		 */
3647 		age_active_anon(pgdat, &sc);
3648 
3649 		/*
3650 		 * If we're getting trouble reclaiming, start doing writepage
3651 		 * even in laptop mode.
3652 		 */
3653 		if (sc.priority < DEF_PRIORITY - 2)
3654 			sc.may_writepage = 1;
3655 
3656 		/* Call soft limit reclaim before calling shrink_node. */
3657 		sc.nr_scanned = 0;
3658 		nr_soft_scanned = 0;
3659 		nr_soft_reclaimed = mem_cgroup_soft_limit_reclaim(pgdat, sc.order,
3660 						sc.gfp_mask, &nr_soft_scanned);
3661 		sc.nr_reclaimed += nr_soft_reclaimed;
3662 
3663 		/*
3664 		 * There should be no need to raise the scanning priority if
3665 		 * enough pages are already being scanned that that high
3666 		 * watermark would be met at 100% efficiency.
3667 		 */
3668 		if (kswapd_shrink_node(pgdat, &sc))
3669 			raise_priority = false;
3670 
3671 		/*
3672 		 * If the low watermark is met there is no need for processes
3673 		 * to be throttled on pfmemalloc_wait as they should not be
3674 		 * able to safely make forward progress. Wake them
3675 		 */
3676 		if (waitqueue_active(&pgdat->pfmemalloc_wait) &&
3677 				allow_direct_reclaim(pgdat))
3678 			wake_up_all(&pgdat->pfmemalloc_wait);
3679 
3680 		/* Check if kswapd should be suspending */
3681 		__fs_reclaim_release();
3682 		ret = try_to_freeze();
3683 		__fs_reclaim_acquire();
3684 		if (ret || kthread_should_stop())
3685 			break;
3686 
3687 		/*
3688 		 * Raise priority if scanning rate is too low or there was no
3689 		 * progress in reclaiming pages
3690 		 */
3691 		nr_reclaimed = sc.nr_reclaimed - nr_reclaimed;
3692 		nr_boost_reclaim -= min(nr_boost_reclaim, nr_reclaimed);
3693 
3694 		/*
3695 		 * If reclaim made no progress for a boost, stop reclaim as
3696 		 * IO cannot be queued and it could be an infinite loop in
3697 		 * extreme circumstances.
3698 		 */
3699 		if (nr_boost_reclaim && !nr_reclaimed)
3700 			break;
3701 
3702 		if (raise_priority || !nr_reclaimed)
3703 			sc.priority--;
3704 	} while (sc.priority >= 1);
3705 
3706 	if (!sc.nr_reclaimed)
3707 		pgdat->kswapd_failures++;
3708 
3709 out:
3710 	/* If reclaim was boosted, account for the reclaim done in this pass */
3711 	if (boosted) {
3712 		unsigned long flags;
3713 
3714 		for (i = 0; i <= highest_zoneidx; i++) {
3715 			if (!zone_boosts[i])
3716 				continue;
3717 
3718 			/* Increments are under the zone lock */
3719 			zone = pgdat->node_zones + i;
3720 			spin_lock_irqsave(&zone->lock, flags);
3721 			zone->watermark_boost -= min(zone->watermark_boost, zone_boosts[i]);
3722 			spin_unlock_irqrestore(&zone->lock, flags);
3723 		}
3724 
3725 		/*
3726 		 * As there is now likely space, wakeup kcompact to defragment
3727 		 * pageblocks.
3728 		 */
3729 		wakeup_kcompactd(pgdat, pageblock_order, highest_zoneidx);
3730 	}
3731 
3732 	snapshot_refaults(NULL, pgdat);
3733 	__fs_reclaim_release();
3734 	psi_memstall_leave(&pflags);
3735 	set_task_reclaim_state(current, NULL);
3736 
3737 	/*
3738 	 * Return the order kswapd stopped reclaiming at as
3739 	 * prepare_kswapd_sleep() takes it into account. If another caller
3740 	 * entered the allocator slow path while kswapd was awake, order will
3741 	 * remain at the higher level.
3742 	 */
3743 	return sc.order;
3744 }
3745 
3746 /*
3747  * The pgdat->kswapd_highest_zoneidx is used to pass the highest zone index to
3748  * be reclaimed by kswapd from the waker. If the value is MAX_NR_ZONES which is
3749  * not a valid index then either kswapd runs for first time or kswapd couldn't
3750  * sleep after previous reclaim attempt (node is still unbalanced). In that
3751  * case return the zone index of the previous kswapd reclaim cycle.
3752  */
3753 static enum zone_type kswapd_highest_zoneidx(pg_data_t *pgdat,
3754 					   enum zone_type prev_highest_zoneidx)
3755 {
3756 	enum zone_type curr_idx = READ_ONCE(pgdat->kswapd_highest_zoneidx);
3757 
3758 	return curr_idx == MAX_NR_ZONES ? prev_highest_zoneidx : curr_idx;
3759 }
3760 
3761 static void kswapd_try_to_sleep(pg_data_t *pgdat, int alloc_order, int reclaim_order,
3762 				unsigned int highest_zoneidx)
3763 {
3764 	long remaining = 0;
3765 	DEFINE_WAIT(wait);
3766 
3767 	if (freezing(current) || kthread_should_stop())
3768 		return;
3769 
3770 	prepare_to_wait(&pgdat->kswapd_wait, &wait, TASK_INTERRUPTIBLE);
3771 
3772 	/*
3773 	 * Try to sleep for a short interval. Note that kcompactd will only be
3774 	 * woken if it is possible to sleep for a short interval. This is
3775 	 * deliberate on the assumption that if reclaim cannot keep an
3776 	 * eligible zone balanced that it's also unlikely that compaction will
3777 	 * succeed.
3778 	 */
3779 	if (prepare_kswapd_sleep(pgdat, reclaim_order, highest_zoneidx)) {
3780 		/*
3781 		 * Compaction records what page blocks it recently failed to
3782 		 * isolate pages from and skips them in the future scanning.
3783 		 * When kswapd is going to sleep, it is reasonable to assume
3784 		 * that pages and compaction may succeed so reset the cache.
3785 		 */
3786 		reset_isolation_suitable(pgdat);
3787 
3788 		/*
3789 		 * We have freed the memory, now we should compact it to make
3790 		 * allocation of the requested order possible.
3791 		 */
3792 		wakeup_kcompactd(pgdat, alloc_order, highest_zoneidx);
3793 
3794 		remaining = schedule_timeout(HZ/10);
3795 
3796 		/*
3797 		 * If woken prematurely then reset kswapd_highest_zoneidx and
3798 		 * order. The values will either be from a wakeup request or
3799 		 * the previous request that slept prematurely.
3800 		 */
3801 		if (remaining) {
3802 			WRITE_ONCE(pgdat->kswapd_highest_zoneidx,
3803 					kswapd_highest_zoneidx(pgdat,
3804 							highest_zoneidx));
3805 
3806 			if (READ_ONCE(pgdat->kswapd_order) < reclaim_order)
3807 				WRITE_ONCE(pgdat->kswapd_order, reclaim_order);
3808 		}
3809 
3810 		finish_wait(&pgdat->kswapd_wait, &wait);
3811 		prepare_to_wait(&pgdat->kswapd_wait, &wait, TASK_INTERRUPTIBLE);
3812 	}
3813 
3814 	/*
3815 	 * After a short sleep, check if it was a premature sleep. If not, then
3816 	 * go fully to sleep until explicitly woken up.
3817 	 */
3818 	if (!remaining &&
3819 	    prepare_kswapd_sleep(pgdat, reclaim_order, highest_zoneidx)) {
3820 		trace_mm_vmscan_kswapd_sleep(pgdat->node_id);
3821 
3822 		/*
3823 		 * vmstat counters are not perfectly accurate and the estimated
3824 		 * value for counters such as NR_FREE_PAGES can deviate from the
3825 		 * true value by nr_online_cpus * threshold. To avoid the zone
3826 		 * watermarks being breached while under pressure, we reduce the
3827 		 * per-cpu vmstat threshold while kswapd is awake and restore
3828 		 * them before going back to sleep.
3829 		 */
3830 		set_pgdat_percpu_threshold(pgdat, calculate_normal_threshold);
3831 
3832 		if (!kthread_should_stop())
3833 			schedule();
3834 
3835 		set_pgdat_percpu_threshold(pgdat, calculate_pressure_threshold);
3836 	} else {
3837 		if (remaining)
3838 			count_vm_event(KSWAPD_LOW_WMARK_HIT_QUICKLY);
3839 		else
3840 			count_vm_event(KSWAPD_HIGH_WMARK_HIT_QUICKLY);
3841 	}
3842 	finish_wait(&pgdat->kswapd_wait, &wait);
3843 }
3844 
3845 /*
3846  * The background pageout daemon, started as a kernel thread
3847  * from the init process.
3848  *
3849  * This basically trickles out pages so that we have _some_
3850  * free memory available even if there is no other activity
3851  * that frees anything up. This is needed for things like routing
3852  * etc, where we otherwise might have all activity going on in
3853  * asynchronous contexts that cannot page things out.
3854  *
3855  * If there are applications that are active memory-allocators
3856  * (most normal use), this basically shouldn't matter.
3857  */
3858 static int kswapd(void *p)
3859 {
3860 	unsigned int alloc_order, reclaim_order;
3861 	unsigned int highest_zoneidx = MAX_NR_ZONES - 1;
3862 	pg_data_t *pgdat = (pg_data_t*)p;
3863 	struct task_struct *tsk = current;
3864 	const struct cpumask *cpumask = cpumask_of_node(pgdat->node_id);
3865 
3866 	if (!cpumask_empty(cpumask))
3867 		set_cpus_allowed_ptr(tsk, cpumask);
3868 
3869 	/*
3870 	 * Tell the memory management that we're a "memory allocator",
3871 	 * and that if we need more memory we should get access to it
3872 	 * regardless (see "__alloc_pages()"). "kswapd" should
3873 	 * never get caught in the normal page freeing logic.
3874 	 *
3875 	 * (Kswapd normally doesn't need memory anyway, but sometimes
3876 	 * you need a small amount of memory in order to be able to
3877 	 * page out something else, and this flag essentially protects
3878 	 * us from recursively trying to free more memory as we're
3879 	 * trying to free the first piece of memory in the first place).
3880 	 */
3881 	tsk->flags |= PF_MEMALLOC | PF_SWAPWRITE | PF_KSWAPD;
3882 	set_freezable();
3883 
3884 	WRITE_ONCE(pgdat->kswapd_order, 0);
3885 	WRITE_ONCE(pgdat->kswapd_highest_zoneidx, MAX_NR_ZONES);
3886 	for ( ; ; ) {
3887 		bool ret;
3888 
3889 		alloc_order = reclaim_order = READ_ONCE(pgdat->kswapd_order);
3890 		highest_zoneidx = kswapd_highest_zoneidx(pgdat,
3891 							highest_zoneidx);
3892 
3893 kswapd_try_sleep:
3894 		kswapd_try_to_sleep(pgdat, alloc_order, reclaim_order,
3895 					highest_zoneidx);
3896 
3897 		/* Read the new order and highest_zoneidx */
3898 		alloc_order = reclaim_order = READ_ONCE(pgdat->kswapd_order);
3899 		highest_zoneidx = kswapd_highest_zoneidx(pgdat,
3900 							highest_zoneidx);
3901 		WRITE_ONCE(pgdat->kswapd_order, 0);
3902 		WRITE_ONCE(pgdat->kswapd_highest_zoneidx, MAX_NR_ZONES);
3903 
3904 		ret = try_to_freeze();
3905 		if (kthread_should_stop())
3906 			break;
3907 
3908 		/*
3909 		 * We can speed up thawing tasks if we don't call balance_pgdat
3910 		 * after returning from the refrigerator
3911 		 */
3912 		if (ret)
3913 			continue;
3914 
3915 		/*
3916 		 * Reclaim begins at the requested order but if a high-order
3917 		 * reclaim fails then kswapd falls back to reclaiming for
3918 		 * order-0. If that happens, kswapd will consider sleeping
3919 		 * for the order it finished reclaiming at (reclaim_order)
3920 		 * but kcompactd is woken to compact for the original
3921 		 * request (alloc_order).
3922 		 */
3923 		trace_mm_vmscan_kswapd_wake(pgdat->node_id, highest_zoneidx,
3924 						alloc_order);
3925 		reclaim_order = balance_pgdat(pgdat, alloc_order,
3926 						highest_zoneidx);
3927 		if (reclaim_order < alloc_order)
3928 			goto kswapd_try_sleep;
3929 	}
3930 
3931 	tsk->flags &= ~(PF_MEMALLOC | PF_SWAPWRITE | PF_KSWAPD);
3932 
3933 	return 0;
3934 }
3935 
3936 /*
3937  * A zone is low on free memory or too fragmented for high-order memory.  If
3938  * kswapd should reclaim (direct reclaim is deferred), wake it up for the zone's
3939  * pgdat.  It will wake up kcompactd after reclaiming memory.  If kswapd reclaim
3940  * has failed or is not needed, still wake up kcompactd if only compaction is
3941  * needed.
3942  */
3943 void wakeup_kswapd(struct zone *zone, gfp_t gfp_flags, int order,
3944 		   enum zone_type highest_zoneidx)
3945 {
3946 	pg_data_t *pgdat;
3947 	enum zone_type curr_idx;
3948 
3949 	if (!managed_zone(zone))
3950 		return;
3951 
3952 	if (!cpuset_zone_allowed(zone, gfp_flags))
3953 		return;
3954 
3955 	pgdat = zone->zone_pgdat;
3956 	curr_idx = READ_ONCE(pgdat->kswapd_highest_zoneidx);
3957 
3958 	if (curr_idx == MAX_NR_ZONES || curr_idx < highest_zoneidx)
3959 		WRITE_ONCE(pgdat->kswapd_highest_zoneidx, highest_zoneidx);
3960 
3961 	if (READ_ONCE(pgdat->kswapd_order) < order)
3962 		WRITE_ONCE(pgdat->kswapd_order, order);
3963 
3964 	if (!waitqueue_active(&pgdat->kswapd_wait))
3965 		return;
3966 
3967 	/* Hopeless node, leave it to direct reclaim if possible */
3968 	if (pgdat->kswapd_failures >= MAX_RECLAIM_RETRIES ||
3969 	    (pgdat_balanced(pgdat, order, highest_zoneidx) &&
3970 	     !pgdat_watermark_boosted(pgdat, highest_zoneidx))) {
3971 		/*
3972 		 * There may be plenty of free memory available, but it's too
3973 		 * fragmented for high-order allocations.  Wake up kcompactd
3974 		 * and rely on compaction_suitable() to determine if it's
3975 		 * needed.  If it fails, it will defer subsequent attempts to
3976 		 * ratelimit its work.
3977 		 */
3978 		if (!(gfp_flags & __GFP_DIRECT_RECLAIM))
3979 			wakeup_kcompactd(pgdat, order, highest_zoneidx);
3980 		return;
3981 	}
3982 
3983 	trace_mm_vmscan_wakeup_kswapd(pgdat->node_id, highest_zoneidx, order,
3984 				      gfp_flags);
3985 	wake_up_interruptible(&pgdat->kswapd_wait);
3986 }
3987 
3988 #ifdef CONFIG_HIBERNATION
3989 /*
3990  * Try to free `nr_to_reclaim' of memory, system-wide, and return the number of
3991  * freed pages.
3992  *
3993  * Rather than trying to age LRUs the aim is to preserve the overall
3994  * LRU order by reclaiming preferentially
3995  * inactive > active > active referenced > active mapped
3996  */
3997 unsigned long shrink_all_memory(unsigned long nr_to_reclaim)
3998 {
3999 	struct scan_control sc = {
4000 		.nr_to_reclaim = nr_to_reclaim,
4001 		.gfp_mask = GFP_HIGHUSER_MOVABLE,
4002 		.reclaim_idx = MAX_NR_ZONES - 1,
4003 		.priority = DEF_PRIORITY,
4004 		.may_writepage = 1,
4005 		.may_unmap = 1,
4006 		.may_swap = 1,
4007 		.hibernation_mode = 1,
4008 	};
4009 	struct zonelist *zonelist = node_zonelist(numa_node_id(), sc.gfp_mask);
4010 	unsigned long nr_reclaimed;
4011 	unsigned int noreclaim_flag;
4012 
4013 	fs_reclaim_acquire(sc.gfp_mask);
4014 	noreclaim_flag = memalloc_noreclaim_save();
4015 	set_task_reclaim_state(current, &sc.reclaim_state);
4016 
4017 	nr_reclaimed = do_try_to_free_pages(zonelist, &sc);
4018 
4019 	set_task_reclaim_state(current, NULL);
4020 	memalloc_noreclaim_restore(noreclaim_flag);
4021 	fs_reclaim_release(sc.gfp_mask);
4022 
4023 	return nr_reclaimed;
4024 }
4025 #endif /* CONFIG_HIBERNATION */
4026 
4027 /*
4028  * This kswapd start function will be called by init and node-hot-add.
4029  * On node-hot-add, kswapd will moved to proper cpus if cpus are hot-added.
4030  */
4031 int kswapd_run(int nid)
4032 {
4033 	pg_data_t *pgdat = NODE_DATA(nid);
4034 	int ret = 0;
4035 
4036 	if (pgdat->kswapd)
4037 		return 0;
4038 
4039 	pgdat->kswapd = kthread_run(kswapd, pgdat, "kswapd%d", nid);
4040 	if (IS_ERR(pgdat->kswapd)) {
4041 		/* failure at boot is fatal */
4042 		BUG_ON(system_state < SYSTEM_RUNNING);
4043 		pr_err("Failed to start kswapd on node %d\n", nid);
4044 		ret = PTR_ERR(pgdat->kswapd);
4045 		pgdat->kswapd = NULL;
4046 	}
4047 	return ret;
4048 }
4049 
4050 /*
4051  * Called by memory hotplug when all memory in a node is offlined.  Caller must
4052  * hold mem_hotplug_begin/end().
4053  */
4054 void kswapd_stop(int nid)
4055 {
4056 	struct task_struct *kswapd = NODE_DATA(nid)->kswapd;
4057 
4058 	if (kswapd) {
4059 		kthread_stop(kswapd);
4060 		NODE_DATA(nid)->kswapd = NULL;
4061 	}
4062 }
4063 
4064 static int __init kswapd_init(void)
4065 {
4066 	int nid;
4067 
4068 	swap_setup();
4069 	for_each_node_state(nid, N_MEMORY)
4070  		kswapd_run(nid);
4071 	return 0;
4072 }
4073 
4074 module_init(kswapd_init)
4075 
4076 #ifdef CONFIG_NUMA
4077 /*
4078  * Node reclaim mode
4079  *
4080  * If non-zero call node_reclaim when the number of free pages falls below
4081  * the watermarks.
4082  */
4083 int node_reclaim_mode __read_mostly;
4084 
4085 #define RECLAIM_WRITE (1<<0)	/* Writeout pages during reclaim */
4086 #define RECLAIM_UNMAP (1<<1)	/* Unmap pages during reclaim */
4087 
4088 /*
4089  * Priority for NODE_RECLAIM. This determines the fraction of pages
4090  * of a node considered for each zone_reclaim. 4 scans 1/16th of
4091  * a zone.
4092  */
4093 #define NODE_RECLAIM_PRIORITY 4
4094 
4095 /*
4096  * Percentage of pages in a zone that must be unmapped for node_reclaim to
4097  * occur.
4098  */
4099 int sysctl_min_unmapped_ratio = 1;
4100 
4101 /*
4102  * If the number of slab pages in a zone grows beyond this percentage then
4103  * slab reclaim needs to occur.
4104  */
4105 int sysctl_min_slab_ratio = 5;
4106 
4107 static inline unsigned long node_unmapped_file_pages(struct pglist_data *pgdat)
4108 {
4109 	unsigned long file_mapped = node_page_state(pgdat, NR_FILE_MAPPED);
4110 	unsigned long file_lru = node_page_state(pgdat, NR_INACTIVE_FILE) +
4111 		node_page_state(pgdat, NR_ACTIVE_FILE);
4112 
4113 	/*
4114 	 * It's possible for there to be more file mapped pages than
4115 	 * accounted for by the pages on the file LRU lists because
4116 	 * tmpfs pages accounted for as ANON can also be FILE_MAPPED
4117 	 */
4118 	return (file_lru > file_mapped) ? (file_lru - file_mapped) : 0;
4119 }
4120 
4121 /* Work out how many page cache pages we can reclaim in this reclaim_mode */
4122 static unsigned long node_pagecache_reclaimable(struct pglist_data *pgdat)
4123 {
4124 	unsigned long nr_pagecache_reclaimable;
4125 	unsigned long delta = 0;
4126 
4127 	/*
4128 	 * If RECLAIM_UNMAP is set, then all file pages are considered
4129 	 * potentially reclaimable. Otherwise, we have to worry about
4130 	 * pages like swapcache and node_unmapped_file_pages() provides
4131 	 * a better estimate
4132 	 */
4133 	if (node_reclaim_mode & RECLAIM_UNMAP)
4134 		nr_pagecache_reclaimable = node_page_state(pgdat, NR_FILE_PAGES);
4135 	else
4136 		nr_pagecache_reclaimable = node_unmapped_file_pages(pgdat);
4137 
4138 	/* If we can't clean pages, remove dirty pages from consideration */
4139 	if (!(node_reclaim_mode & RECLAIM_WRITE))
4140 		delta += node_page_state(pgdat, NR_FILE_DIRTY);
4141 
4142 	/* Watch for any possible underflows due to delta */
4143 	if (unlikely(delta > nr_pagecache_reclaimable))
4144 		delta = nr_pagecache_reclaimable;
4145 
4146 	return nr_pagecache_reclaimable - delta;
4147 }
4148 
4149 /*
4150  * Try to free up some pages from this node through reclaim.
4151  */
4152 static int __node_reclaim(struct pglist_data *pgdat, gfp_t gfp_mask, unsigned int order)
4153 {
4154 	/* Minimum pages needed in order to stay on node */
4155 	const unsigned long nr_pages = 1 << order;
4156 	struct task_struct *p = current;
4157 	unsigned int noreclaim_flag;
4158 	struct scan_control sc = {
4159 		.nr_to_reclaim = max(nr_pages, SWAP_CLUSTER_MAX),
4160 		.gfp_mask = current_gfp_context(gfp_mask),
4161 		.order = order,
4162 		.priority = NODE_RECLAIM_PRIORITY,
4163 		.may_writepage = !!(node_reclaim_mode & RECLAIM_WRITE),
4164 		.may_unmap = !!(node_reclaim_mode & RECLAIM_UNMAP),
4165 		.may_swap = 1,
4166 		.reclaim_idx = gfp_zone(gfp_mask),
4167 	};
4168 
4169 	trace_mm_vmscan_node_reclaim_begin(pgdat->node_id, order,
4170 					   sc.gfp_mask);
4171 
4172 	cond_resched();
4173 	fs_reclaim_acquire(sc.gfp_mask);
4174 	/*
4175 	 * We need to be able to allocate from the reserves for RECLAIM_UNMAP
4176 	 * and we also need to be able to write out pages for RECLAIM_WRITE
4177 	 * and RECLAIM_UNMAP.
4178 	 */
4179 	noreclaim_flag = memalloc_noreclaim_save();
4180 	p->flags |= PF_SWAPWRITE;
4181 	set_task_reclaim_state(p, &sc.reclaim_state);
4182 
4183 	if (node_pagecache_reclaimable(pgdat) > pgdat->min_unmapped_pages) {
4184 		/*
4185 		 * Free memory by calling shrink node with increasing
4186 		 * priorities until we have enough memory freed.
4187 		 */
4188 		do {
4189 			shrink_node(pgdat, &sc);
4190 		} while (sc.nr_reclaimed < nr_pages && --sc.priority >= 0);
4191 	}
4192 
4193 	set_task_reclaim_state(p, NULL);
4194 	current->flags &= ~PF_SWAPWRITE;
4195 	memalloc_noreclaim_restore(noreclaim_flag);
4196 	fs_reclaim_release(sc.gfp_mask);
4197 
4198 	trace_mm_vmscan_node_reclaim_end(sc.nr_reclaimed);
4199 
4200 	return sc.nr_reclaimed >= nr_pages;
4201 }
4202 
4203 int node_reclaim(struct pglist_data *pgdat, gfp_t gfp_mask, unsigned int order)
4204 {
4205 	int ret;
4206 
4207 	/*
4208 	 * Node reclaim reclaims unmapped file backed pages and
4209 	 * slab pages if we are over the defined limits.
4210 	 *
4211 	 * A small portion of unmapped file backed pages is needed for
4212 	 * file I/O otherwise pages read by file I/O will be immediately
4213 	 * thrown out if the node is overallocated. So we do not reclaim
4214 	 * if less than a specified percentage of the node is used by
4215 	 * unmapped file backed pages.
4216 	 */
4217 	if (node_pagecache_reclaimable(pgdat) <= pgdat->min_unmapped_pages &&
4218 	    node_page_state_pages(pgdat, NR_SLAB_RECLAIMABLE_B) <=
4219 	    pgdat->min_slab_pages)
4220 		return NODE_RECLAIM_FULL;
4221 
4222 	/*
4223 	 * Do not scan if the allocation should not be delayed.
4224 	 */
4225 	if (!gfpflags_allow_blocking(gfp_mask) || (current->flags & PF_MEMALLOC))
4226 		return NODE_RECLAIM_NOSCAN;
4227 
4228 	/*
4229 	 * Only run node reclaim on the local node or on nodes that do not
4230 	 * have associated processors. This will favor the local processor
4231 	 * over remote processors and spread off node memory allocations
4232 	 * as wide as possible.
4233 	 */
4234 	if (node_state(pgdat->node_id, N_CPU) && pgdat->node_id != numa_node_id())
4235 		return NODE_RECLAIM_NOSCAN;
4236 
4237 	if (test_and_set_bit(PGDAT_RECLAIM_LOCKED, &pgdat->flags))
4238 		return NODE_RECLAIM_NOSCAN;
4239 
4240 	ret = __node_reclaim(pgdat, gfp_mask, order);
4241 	clear_bit(PGDAT_RECLAIM_LOCKED, &pgdat->flags);
4242 
4243 	if (!ret)
4244 		count_vm_event(PGSCAN_ZONE_RECLAIM_FAILED);
4245 
4246 	return ret;
4247 }
4248 #endif
4249 
4250 /**
4251  * check_move_unevictable_pages - check pages for evictability and move to
4252  * appropriate zone lru list
4253  * @pvec: pagevec with lru pages to check
4254  *
4255  * Checks pages for evictability, if an evictable page is in the unevictable
4256  * lru list, moves it to the appropriate evictable lru list. This function
4257  * should be only used for lru pages.
4258  */
4259 void check_move_unevictable_pages(struct pagevec *pvec)
4260 {
4261 	struct lruvec *lruvec;
4262 	struct pglist_data *pgdat = NULL;
4263 	int pgscanned = 0;
4264 	int pgrescued = 0;
4265 	int i;
4266 
4267 	for (i = 0; i < pvec->nr; i++) {
4268 		struct page *page = pvec->pages[i];
4269 		struct pglist_data *pagepgdat = page_pgdat(page);
4270 		int nr_pages;
4271 
4272 		if (PageTransTail(page))
4273 			continue;
4274 
4275 		nr_pages = thp_nr_pages(page);
4276 		pgscanned += nr_pages;
4277 
4278 		if (pagepgdat != pgdat) {
4279 			if (pgdat)
4280 				spin_unlock_irq(&pgdat->lru_lock);
4281 			pgdat = pagepgdat;
4282 			spin_lock_irq(&pgdat->lru_lock);
4283 		}
4284 		lruvec = mem_cgroup_page_lruvec(page, pgdat);
4285 
4286 		if (!PageLRU(page) || !PageUnevictable(page))
4287 			continue;
4288 
4289 		if (page_evictable(page)) {
4290 			enum lru_list lru = page_lru_base_type(page);
4291 
4292 			VM_BUG_ON_PAGE(PageActive(page), page);
4293 			ClearPageUnevictable(page);
4294 			del_page_from_lru_list(page, lruvec, LRU_UNEVICTABLE);
4295 			add_page_to_lru_list(page, lruvec, lru);
4296 			pgrescued += nr_pages;
4297 		}
4298 	}
4299 
4300 	if (pgdat) {
4301 		__count_vm_events(UNEVICTABLE_PGRESCUED, pgrescued);
4302 		__count_vm_events(UNEVICTABLE_PGSCANNED, pgscanned);
4303 		spin_unlock_irq(&pgdat->lru_lock);
4304 	}
4305 }
4306 EXPORT_SYMBOL_GPL(check_move_unevictable_pages);
4307