xref: /linux/mm/memcontrol.c (revision d503ac531a5246e4d910f971b213807fea925956)
1 /* memcontrol.c - Memory Controller
2  *
3  * Copyright IBM Corporation, 2007
4  * Author Balbir Singh <balbir@linux.vnet.ibm.com>
5  *
6  * Copyright 2007 OpenVZ SWsoft Inc
7  * Author: Pavel Emelianov <xemul@openvz.org>
8  *
9  * Memory thresholds
10  * Copyright (C) 2009 Nokia Corporation
11  * Author: Kirill A. Shutemov
12  *
13  * Kernel Memory Controller
14  * Copyright (C) 2012 Parallels Inc. and Google Inc.
15  * Authors: Glauber Costa and Suleiman Souhlal
16  *
17  * Native page reclaim
18  * Charge lifetime sanitation
19  * Lockless page tracking & accounting
20  * Unified hierarchy configuration model
21  * Copyright (C) 2015 Red Hat, Inc., Johannes Weiner
22  *
23  * This program is free software; you can redistribute it and/or modify
24  * it under the terms of the GNU General Public License as published by
25  * the Free Software Foundation; either version 2 of the License, or
26  * (at your option) any later version.
27  *
28  * This program is distributed in the hope that it will be useful,
29  * but WITHOUT ANY WARRANTY; without even the implied warranty of
30  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
31  * GNU General Public License for more details.
32  */
33 
34 #include <linux/page_counter.h>
35 #include <linux/memcontrol.h>
36 #include <linux/cgroup.h>
37 #include <linux/mm.h>
38 #include <linux/sched/mm.h>
39 #include <linux/shmem_fs.h>
40 #include <linux/hugetlb.h>
41 #include <linux/pagemap.h>
42 #include <linux/smp.h>
43 #include <linux/page-flags.h>
44 #include <linux/backing-dev.h>
45 #include <linux/bit_spinlock.h>
46 #include <linux/rcupdate.h>
47 #include <linux/limits.h>
48 #include <linux/export.h>
49 #include <linux/mutex.h>
50 #include <linux/rbtree.h>
51 #include <linux/slab.h>
52 #include <linux/swap.h>
53 #include <linux/swapops.h>
54 #include <linux/spinlock.h>
55 #include <linux/eventfd.h>
56 #include <linux/poll.h>
57 #include <linux/sort.h>
58 #include <linux/fs.h>
59 #include <linux/seq_file.h>
60 #include <linux/vmpressure.h>
61 #include <linux/mm_inline.h>
62 #include <linux/swap_cgroup.h>
63 #include <linux/cpu.h>
64 #include <linux/oom.h>
65 #include <linux/lockdep.h>
66 #include <linux/file.h>
67 #include <linux/tracehook.h>
68 #include "internal.h"
69 #include <net/sock.h>
70 #include <net/ip.h>
71 #include "slab.h"
72 
73 #include <linux/uaccess.h>
74 
75 #include <trace/events/vmscan.h>
76 
77 struct cgroup_subsys memory_cgrp_subsys __read_mostly;
78 EXPORT_SYMBOL(memory_cgrp_subsys);
79 
80 struct mem_cgroup *root_mem_cgroup __read_mostly;
81 
82 #define MEM_CGROUP_RECLAIM_RETRIES	5
83 
84 /* Socket memory accounting disabled? */
85 static bool cgroup_memory_nosocket;
86 
87 /* Kernel memory accounting disabled? */
88 static bool cgroup_memory_nokmem;
89 
90 /* Whether the swap controller is active */
91 #ifdef CONFIG_MEMCG_SWAP
92 int do_swap_account __read_mostly;
93 #else
94 #define do_swap_account		0
95 #endif
96 
97 /* Whether legacy memory+swap accounting is active */
98 static bool do_memsw_account(void)
99 {
100 	return !cgroup_subsys_on_dfl(memory_cgrp_subsys) && do_swap_account;
101 }
102 
103 static const char *const mem_cgroup_lru_names[] = {
104 	"inactive_anon",
105 	"active_anon",
106 	"inactive_file",
107 	"active_file",
108 	"unevictable",
109 };
110 
111 #define THRESHOLDS_EVENTS_TARGET 128
112 #define SOFTLIMIT_EVENTS_TARGET 1024
113 #define NUMAINFO_EVENTS_TARGET	1024
114 
115 /*
116  * Cgroups above their limits are maintained in a RB-Tree, independent of
117  * their hierarchy representation
118  */
119 
120 struct mem_cgroup_tree_per_node {
121 	struct rb_root rb_root;
122 	struct rb_node *rb_rightmost;
123 	spinlock_t lock;
124 };
125 
126 struct mem_cgroup_tree {
127 	struct mem_cgroup_tree_per_node *rb_tree_per_node[MAX_NUMNODES];
128 };
129 
130 static struct mem_cgroup_tree soft_limit_tree __read_mostly;
131 
132 /* for OOM */
133 struct mem_cgroup_eventfd_list {
134 	struct list_head list;
135 	struct eventfd_ctx *eventfd;
136 };
137 
138 /*
139  * cgroup_event represents events which userspace want to receive.
140  */
141 struct mem_cgroup_event {
142 	/*
143 	 * memcg which the event belongs to.
144 	 */
145 	struct mem_cgroup *memcg;
146 	/*
147 	 * eventfd to signal userspace about the event.
148 	 */
149 	struct eventfd_ctx *eventfd;
150 	/*
151 	 * Each of these stored in a list by the cgroup.
152 	 */
153 	struct list_head list;
154 	/*
155 	 * register_event() callback will be used to add new userspace
156 	 * waiter for changes related to this event.  Use eventfd_signal()
157 	 * on eventfd to send notification to userspace.
158 	 */
159 	int (*register_event)(struct mem_cgroup *memcg,
160 			      struct eventfd_ctx *eventfd, const char *args);
161 	/*
162 	 * unregister_event() callback will be called when userspace closes
163 	 * the eventfd or on cgroup removing.  This callback must be set,
164 	 * if you want provide notification functionality.
165 	 */
166 	void (*unregister_event)(struct mem_cgroup *memcg,
167 				 struct eventfd_ctx *eventfd);
168 	/*
169 	 * All fields below needed to unregister event when
170 	 * userspace closes eventfd.
171 	 */
172 	poll_table pt;
173 	wait_queue_head_t *wqh;
174 	wait_queue_entry_t wait;
175 	struct work_struct remove;
176 };
177 
178 static void mem_cgroup_threshold(struct mem_cgroup *memcg);
179 static void mem_cgroup_oom_notify(struct mem_cgroup *memcg);
180 
181 /* Stuffs for move charges at task migration. */
182 /*
183  * Types of charges to be moved.
184  */
185 #define MOVE_ANON	0x1U
186 #define MOVE_FILE	0x2U
187 #define MOVE_MASK	(MOVE_ANON | MOVE_FILE)
188 
189 /* "mc" and its members are protected by cgroup_mutex */
190 static struct move_charge_struct {
191 	spinlock_t	  lock; /* for from, to */
192 	struct mm_struct  *mm;
193 	struct mem_cgroup *from;
194 	struct mem_cgroup *to;
195 	unsigned long flags;
196 	unsigned long precharge;
197 	unsigned long moved_charge;
198 	unsigned long moved_swap;
199 	struct task_struct *moving_task;	/* a task moving charges */
200 	wait_queue_head_t waitq;		/* a waitq for other context */
201 } mc = {
202 	.lock = __SPIN_LOCK_UNLOCKED(mc.lock),
203 	.waitq = __WAIT_QUEUE_HEAD_INITIALIZER(mc.waitq),
204 };
205 
206 /*
207  * Maximum loops in mem_cgroup_hierarchical_reclaim(), used for soft
208  * limit reclaim to prevent infinite loops, if they ever occur.
209  */
210 #define	MEM_CGROUP_MAX_RECLAIM_LOOPS		100
211 #define	MEM_CGROUP_MAX_SOFT_LIMIT_RECLAIM_LOOPS	2
212 
213 enum charge_type {
214 	MEM_CGROUP_CHARGE_TYPE_CACHE = 0,
215 	MEM_CGROUP_CHARGE_TYPE_ANON,
216 	MEM_CGROUP_CHARGE_TYPE_SWAPOUT,	/* for accounting swapcache */
217 	MEM_CGROUP_CHARGE_TYPE_DROP,	/* a page was unused swap cache */
218 	NR_CHARGE_TYPE,
219 };
220 
221 /* for encoding cft->private value on file */
222 enum res_type {
223 	_MEM,
224 	_MEMSWAP,
225 	_OOM_TYPE,
226 	_KMEM,
227 	_TCP,
228 };
229 
230 #define MEMFILE_PRIVATE(x, val)	((x) << 16 | (val))
231 #define MEMFILE_TYPE(val)	((val) >> 16 & 0xffff)
232 #define MEMFILE_ATTR(val)	((val) & 0xffff)
233 /* Used for OOM nofiier */
234 #define OOM_CONTROL		(0)
235 
236 /*
237  * Iteration constructs for visiting all cgroups (under a tree).  If
238  * loops are exited prematurely (break), mem_cgroup_iter_break() must
239  * be used for reference counting.
240  */
241 #define for_each_mem_cgroup_tree(iter, root)		\
242 	for (iter = mem_cgroup_iter(root, NULL, NULL);	\
243 	     iter != NULL;				\
244 	     iter = mem_cgroup_iter(root, iter, NULL))
245 
246 #define for_each_mem_cgroup(iter)			\
247 	for (iter = mem_cgroup_iter(NULL, NULL, NULL);	\
248 	     iter != NULL;				\
249 	     iter = mem_cgroup_iter(NULL, iter, NULL))
250 
251 /* Some nice accessors for the vmpressure. */
252 struct vmpressure *memcg_to_vmpressure(struct mem_cgroup *memcg)
253 {
254 	if (!memcg)
255 		memcg = root_mem_cgroup;
256 	return &memcg->vmpressure;
257 }
258 
259 struct cgroup_subsys_state *vmpressure_to_css(struct vmpressure *vmpr)
260 {
261 	return &container_of(vmpr, struct mem_cgroup, vmpressure)->css;
262 }
263 
264 #ifdef CONFIG_MEMCG_KMEM
265 /*
266  * This will be the memcg's index in each cache's ->memcg_params.memcg_caches.
267  * The main reason for not using cgroup id for this:
268  *  this works better in sparse environments, where we have a lot of memcgs,
269  *  but only a few kmem-limited. Or also, if we have, for instance, 200
270  *  memcgs, and none but the 200th is kmem-limited, we'd have to have a
271  *  200 entry array for that.
272  *
273  * The current size of the caches array is stored in memcg_nr_cache_ids. It
274  * will double each time we have to increase it.
275  */
276 static DEFINE_IDA(memcg_cache_ida);
277 int memcg_nr_cache_ids;
278 
279 /* Protects memcg_nr_cache_ids */
280 static DECLARE_RWSEM(memcg_cache_ids_sem);
281 
282 void memcg_get_cache_ids(void)
283 {
284 	down_read(&memcg_cache_ids_sem);
285 }
286 
287 void memcg_put_cache_ids(void)
288 {
289 	up_read(&memcg_cache_ids_sem);
290 }
291 
292 /*
293  * MIN_SIZE is different than 1, because we would like to avoid going through
294  * the alloc/free process all the time. In a small machine, 4 kmem-limited
295  * cgroups is a reasonable guess. In the future, it could be a parameter or
296  * tunable, but that is strictly not necessary.
297  *
298  * MAX_SIZE should be as large as the number of cgrp_ids. Ideally, we could get
299  * this constant directly from cgroup, but it is understandable that this is
300  * better kept as an internal representation in cgroup.c. In any case, the
301  * cgrp_id space is not getting any smaller, and we don't have to necessarily
302  * increase ours as well if it increases.
303  */
304 #define MEMCG_CACHES_MIN_SIZE 4
305 #define MEMCG_CACHES_MAX_SIZE MEM_CGROUP_ID_MAX
306 
307 /*
308  * A lot of the calls to the cache allocation functions are expected to be
309  * inlined by the compiler. Since the calls to memcg_kmem_get_cache are
310  * conditional to this static branch, we'll have to allow modules that does
311  * kmem_cache_alloc and the such to see this symbol as well
312  */
313 DEFINE_STATIC_KEY_FALSE(memcg_kmem_enabled_key);
314 EXPORT_SYMBOL(memcg_kmem_enabled_key);
315 
316 struct workqueue_struct *memcg_kmem_cache_wq;
317 
318 static int memcg_shrinker_map_size;
319 static DEFINE_MUTEX(memcg_shrinker_map_mutex);
320 
321 static void memcg_free_shrinker_map_rcu(struct rcu_head *head)
322 {
323 	kvfree(container_of(head, struct memcg_shrinker_map, rcu));
324 }
325 
326 static int memcg_expand_one_shrinker_map(struct mem_cgroup *memcg,
327 					 int size, int old_size)
328 {
329 	struct memcg_shrinker_map *new, *old;
330 	int nid;
331 
332 	lockdep_assert_held(&memcg_shrinker_map_mutex);
333 
334 	for_each_node(nid) {
335 		old = rcu_dereference_protected(
336 			mem_cgroup_nodeinfo(memcg, nid)->shrinker_map, true);
337 		/* Not yet online memcg */
338 		if (!old)
339 			return 0;
340 
341 		new = kvmalloc(sizeof(*new) + size, GFP_KERNEL);
342 		if (!new)
343 			return -ENOMEM;
344 
345 		/* Set all old bits, clear all new bits */
346 		memset(new->map, (int)0xff, old_size);
347 		memset((void *)new->map + old_size, 0, size - old_size);
348 
349 		rcu_assign_pointer(memcg->nodeinfo[nid]->shrinker_map, new);
350 		call_rcu(&old->rcu, memcg_free_shrinker_map_rcu);
351 	}
352 
353 	return 0;
354 }
355 
356 static void memcg_free_shrinker_maps(struct mem_cgroup *memcg)
357 {
358 	struct mem_cgroup_per_node *pn;
359 	struct memcg_shrinker_map *map;
360 	int nid;
361 
362 	if (mem_cgroup_is_root(memcg))
363 		return;
364 
365 	for_each_node(nid) {
366 		pn = mem_cgroup_nodeinfo(memcg, nid);
367 		map = rcu_dereference_protected(pn->shrinker_map, true);
368 		if (map)
369 			kvfree(map);
370 		rcu_assign_pointer(pn->shrinker_map, NULL);
371 	}
372 }
373 
374 static int memcg_alloc_shrinker_maps(struct mem_cgroup *memcg)
375 {
376 	struct memcg_shrinker_map *map;
377 	int nid, size, ret = 0;
378 
379 	if (mem_cgroup_is_root(memcg))
380 		return 0;
381 
382 	mutex_lock(&memcg_shrinker_map_mutex);
383 	size = memcg_shrinker_map_size;
384 	for_each_node(nid) {
385 		map = kvzalloc(sizeof(*map) + size, GFP_KERNEL);
386 		if (!map) {
387 			memcg_free_shrinker_maps(memcg);
388 			ret = -ENOMEM;
389 			break;
390 		}
391 		rcu_assign_pointer(memcg->nodeinfo[nid]->shrinker_map, map);
392 	}
393 	mutex_unlock(&memcg_shrinker_map_mutex);
394 
395 	return ret;
396 }
397 
398 int memcg_expand_shrinker_maps(int new_id)
399 {
400 	int size, old_size, ret = 0;
401 	struct mem_cgroup *memcg;
402 
403 	size = DIV_ROUND_UP(new_id + 1, BITS_PER_LONG) * sizeof(unsigned long);
404 	old_size = memcg_shrinker_map_size;
405 	if (size <= old_size)
406 		return 0;
407 
408 	mutex_lock(&memcg_shrinker_map_mutex);
409 	if (!root_mem_cgroup)
410 		goto unlock;
411 
412 	for_each_mem_cgroup(memcg) {
413 		if (mem_cgroup_is_root(memcg))
414 			continue;
415 		ret = memcg_expand_one_shrinker_map(memcg, size, old_size);
416 		if (ret)
417 			goto unlock;
418 	}
419 unlock:
420 	if (!ret)
421 		memcg_shrinker_map_size = size;
422 	mutex_unlock(&memcg_shrinker_map_mutex);
423 	return ret;
424 }
425 
426 void memcg_set_shrinker_bit(struct mem_cgroup *memcg, int nid, int shrinker_id)
427 {
428 	if (shrinker_id >= 0 && memcg && !mem_cgroup_is_root(memcg)) {
429 		struct memcg_shrinker_map *map;
430 
431 		rcu_read_lock();
432 		map = rcu_dereference(memcg->nodeinfo[nid]->shrinker_map);
433 		/* Pairs with smp mb in shrink_slab() */
434 		smp_mb__before_atomic();
435 		set_bit(shrinker_id, map->map);
436 		rcu_read_unlock();
437 	}
438 }
439 
440 #else /* CONFIG_MEMCG_KMEM */
441 static int memcg_alloc_shrinker_maps(struct mem_cgroup *memcg)
442 {
443 	return 0;
444 }
445 static void memcg_free_shrinker_maps(struct mem_cgroup *memcg) { }
446 #endif /* CONFIG_MEMCG_KMEM */
447 
448 /**
449  * mem_cgroup_css_from_page - css of the memcg associated with a page
450  * @page: page of interest
451  *
452  * If memcg is bound to the default hierarchy, css of the memcg associated
453  * with @page is returned.  The returned css remains associated with @page
454  * until it is released.
455  *
456  * If memcg is bound to a traditional hierarchy, the css of root_mem_cgroup
457  * is returned.
458  */
459 struct cgroup_subsys_state *mem_cgroup_css_from_page(struct page *page)
460 {
461 	struct mem_cgroup *memcg;
462 
463 	memcg = page->mem_cgroup;
464 
465 	if (!memcg || !cgroup_subsys_on_dfl(memory_cgrp_subsys))
466 		memcg = root_mem_cgroup;
467 
468 	return &memcg->css;
469 }
470 
471 /**
472  * page_cgroup_ino - return inode number of the memcg a page is charged to
473  * @page: the page
474  *
475  * Look up the closest online ancestor of the memory cgroup @page is charged to
476  * and return its inode number or 0 if @page is not charged to any cgroup. It
477  * is safe to call this function without holding a reference to @page.
478  *
479  * Note, this function is inherently racy, because there is nothing to prevent
480  * the cgroup inode from getting torn down and potentially reallocated a moment
481  * after page_cgroup_ino() returns, so it only should be used by callers that
482  * do not care (such as procfs interfaces).
483  */
484 ino_t page_cgroup_ino(struct page *page)
485 {
486 	struct mem_cgroup *memcg;
487 	unsigned long ino = 0;
488 
489 	rcu_read_lock();
490 	memcg = READ_ONCE(page->mem_cgroup);
491 	while (memcg && !(memcg->css.flags & CSS_ONLINE))
492 		memcg = parent_mem_cgroup(memcg);
493 	if (memcg)
494 		ino = cgroup_ino(memcg->css.cgroup);
495 	rcu_read_unlock();
496 	return ino;
497 }
498 
499 static struct mem_cgroup_per_node *
500 mem_cgroup_page_nodeinfo(struct mem_cgroup *memcg, struct page *page)
501 {
502 	int nid = page_to_nid(page);
503 
504 	return memcg->nodeinfo[nid];
505 }
506 
507 static struct mem_cgroup_tree_per_node *
508 soft_limit_tree_node(int nid)
509 {
510 	return soft_limit_tree.rb_tree_per_node[nid];
511 }
512 
513 static struct mem_cgroup_tree_per_node *
514 soft_limit_tree_from_page(struct page *page)
515 {
516 	int nid = page_to_nid(page);
517 
518 	return soft_limit_tree.rb_tree_per_node[nid];
519 }
520 
521 static void __mem_cgroup_insert_exceeded(struct mem_cgroup_per_node *mz,
522 					 struct mem_cgroup_tree_per_node *mctz,
523 					 unsigned long new_usage_in_excess)
524 {
525 	struct rb_node **p = &mctz->rb_root.rb_node;
526 	struct rb_node *parent = NULL;
527 	struct mem_cgroup_per_node *mz_node;
528 	bool rightmost = true;
529 
530 	if (mz->on_tree)
531 		return;
532 
533 	mz->usage_in_excess = new_usage_in_excess;
534 	if (!mz->usage_in_excess)
535 		return;
536 	while (*p) {
537 		parent = *p;
538 		mz_node = rb_entry(parent, struct mem_cgroup_per_node,
539 					tree_node);
540 		if (mz->usage_in_excess < mz_node->usage_in_excess) {
541 			p = &(*p)->rb_left;
542 			rightmost = false;
543 		}
544 
545 		/*
546 		 * We can't avoid mem cgroups that are over their soft
547 		 * limit by the same amount
548 		 */
549 		else if (mz->usage_in_excess >= mz_node->usage_in_excess)
550 			p = &(*p)->rb_right;
551 	}
552 
553 	if (rightmost)
554 		mctz->rb_rightmost = &mz->tree_node;
555 
556 	rb_link_node(&mz->tree_node, parent, p);
557 	rb_insert_color(&mz->tree_node, &mctz->rb_root);
558 	mz->on_tree = true;
559 }
560 
561 static void __mem_cgroup_remove_exceeded(struct mem_cgroup_per_node *mz,
562 					 struct mem_cgroup_tree_per_node *mctz)
563 {
564 	if (!mz->on_tree)
565 		return;
566 
567 	if (&mz->tree_node == mctz->rb_rightmost)
568 		mctz->rb_rightmost = rb_prev(&mz->tree_node);
569 
570 	rb_erase(&mz->tree_node, &mctz->rb_root);
571 	mz->on_tree = false;
572 }
573 
574 static void mem_cgroup_remove_exceeded(struct mem_cgroup_per_node *mz,
575 				       struct mem_cgroup_tree_per_node *mctz)
576 {
577 	unsigned long flags;
578 
579 	spin_lock_irqsave(&mctz->lock, flags);
580 	__mem_cgroup_remove_exceeded(mz, mctz);
581 	spin_unlock_irqrestore(&mctz->lock, flags);
582 }
583 
584 static unsigned long soft_limit_excess(struct mem_cgroup *memcg)
585 {
586 	unsigned long nr_pages = page_counter_read(&memcg->memory);
587 	unsigned long soft_limit = READ_ONCE(memcg->soft_limit);
588 	unsigned long excess = 0;
589 
590 	if (nr_pages > soft_limit)
591 		excess = nr_pages - soft_limit;
592 
593 	return excess;
594 }
595 
596 static void mem_cgroup_update_tree(struct mem_cgroup *memcg, struct page *page)
597 {
598 	unsigned long excess;
599 	struct mem_cgroup_per_node *mz;
600 	struct mem_cgroup_tree_per_node *mctz;
601 
602 	mctz = soft_limit_tree_from_page(page);
603 	if (!mctz)
604 		return;
605 	/*
606 	 * Necessary to update all ancestors when hierarchy is used.
607 	 * because their event counter is not touched.
608 	 */
609 	for (; memcg; memcg = parent_mem_cgroup(memcg)) {
610 		mz = mem_cgroup_page_nodeinfo(memcg, page);
611 		excess = soft_limit_excess(memcg);
612 		/*
613 		 * We have to update the tree if mz is on RB-tree or
614 		 * mem is over its softlimit.
615 		 */
616 		if (excess || mz->on_tree) {
617 			unsigned long flags;
618 
619 			spin_lock_irqsave(&mctz->lock, flags);
620 			/* if on-tree, remove it */
621 			if (mz->on_tree)
622 				__mem_cgroup_remove_exceeded(mz, mctz);
623 			/*
624 			 * Insert again. mz->usage_in_excess will be updated.
625 			 * If excess is 0, no tree ops.
626 			 */
627 			__mem_cgroup_insert_exceeded(mz, mctz, excess);
628 			spin_unlock_irqrestore(&mctz->lock, flags);
629 		}
630 	}
631 }
632 
633 static void mem_cgroup_remove_from_trees(struct mem_cgroup *memcg)
634 {
635 	struct mem_cgroup_tree_per_node *mctz;
636 	struct mem_cgroup_per_node *mz;
637 	int nid;
638 
639 	for_each_node(nid) {
640 		mz = mem_cgroup_nodeinfo(memcg, nid);
641 		mctz = soft_limit_tree_node(nid);
642 		if (mctz)
643 			mem_cgroup_remove_exceeded(mz, mctz);
644 	}
645 }
646 
647 static struct mem_cgroup_per_node *
648 __mem_cgroup_largest_soft_limit_node(struct mem_cgroup_tree_per_node *mctz)
649 {
650 	struct mem_cgroup_per_node *mz;
651 
652 retry:
653 	mz = NULL;
654 	if (!mctz->rb_rightmost)
655 		goto done;		/* Nothing to reclaim from */
656 
657 	mz = rb_entry(mctz->rb_rightmost,
658 		      struct mem_cgroup_per_node, tree_node);
659 	/*
660 	 * Remove the node now but someone else can add it back,
661 	 * we will to add it back at the end of reclaim to its correct
662 	 * position in the tree.
663 	 */
664 	__mem_cgroup_remove_exceeded(mz, mctz);
665 	if (!soft_limit_excess(mz->memcg) ||
666 	    !css_tryget_online(&mz->memcg->css))
667 		goto retry;
668 done:
669 	return mz;
670 }
671 
672 static struct mem_cgroup_per_node *
673 mem_cgroup_largest_soft_limit_node(struct mem_cgroup_tree_per_node *mctz)
674 {
675 	struct mem_cgroup_per_node *mz;
676 
677 	spin_lock_irq(&mctz->lock);
678 	mz = __mem_cgroup_largest_soft_limit_node(mctz);
679 	spin_unlock_irq(&mctz->lock);
680 	return mz;
681 }
682 
683 static unsigned long memcg_sum_events(struct mem_cgroup *memcg,
684 				      int event)
685 {
686 	return atomic_long_read(&memcg->events[event]);
687 }
688 
689 static void mem_cgroup_charge_statistics(struct mem_cgroup *memcg,
690 					 struct page *page,
691 					 bool compound, int nr_pages)
692 {
693 	/*
694 	 * Here, RSS means 'mapped anon' and anon's SwapCache. Shmem/tmpfs is
695 	 * counted as CACHE even if it's on ANON LRU.
696 	 */
697 	if (PageAnon(page))
698 		__mod_memcg_state(memcg, MEMCG_RSS, nr_pages);
699 	else {
700 		__mod_memcg_state(memcg, MEMCG_CACHE, nr_pages);
701 		if (PageSwapBacked(page))
702 			__mod_memcg_state(memcg, NR_SHMEM, nr_pages);
703 	}
704 
705 	if (compound) {
706 		VM_BUG_ON_PAGE(!PageTransHuge(page), page);
707 		__mod_memcg_state(memcg, MEMCG_RSS_HUGE, nr_pages);
708 	}
709 
710 	/* pagein of a big page is an event. So, ignore page size */
711 	if (nr_pages > 0)
712 		__count_memcg_events(memcg, PGPGIN, 1);
713 	else {
714 		__count_memcg_events(memcg, PGPGOUT, 1);
715 		nr_pages = -nr_pages; /* for event */
716 	}
717 
718 	__this_cpu_add(memcg->stat_cpu->nr_page_events, nr_pages);
719 }
720 
721 unsigned long mem_cgroup_node_nr_lru_pages(struct mem_cgroup *memcg,
722 					   int nid, unsigned int lru_mask)
723 {
724 	struct lruvec *lruvec = mem_cgroup_lruvec(NODE_DATA(nid), memcg);
725 	unsigned long nr = 0;
726 	enum lru_list lru;
727 
728 	VM_BUG_ON((unsigned)nid >= nr_node_ids);
729 
730 	for_each_lru(lru) {
731 		if (!(BIT(lru) & lru_mask))
732 			continue;
733 		nr += mem_cgroup_get_lru_size(lruvec, lru);
734 	}
735 	return nr;
736 }
737 
738 static unsigned long mem_cgroup_nr_lru_pages(struct mem_cgroup *memcg,
739 			unsigned int lru_mask)
740 {
741 	unsigned long nr = 0;
742 	int nid;
743 
744 	for_each_node_state(nid, N_MEMORY)
745 		nr += mem_cgroup_node_nr_lru_pages(memcg, nid, lru_mask);
746 	return nr;
747 }
748 
749 static bool mem_cgroup_event_ratelimit(struct mem_cgroup *memcg,
750 				       enum mem_cgroup_events_target target)
751 {
752 	unsigned long val, next;
753 
754 	val = __this_cpu_read(memcg->stat_cpu->nr_page_events);
755 	next = __this_cpu_read(memcg->stat_cpu->targets[target]);
756 	/* from time_after() in jiffies.h */
757 	if ((long)(next - val) < 0) {
758 		switch (target) {
759 		case MEM_CGROUP_TARGET_THRESH:
760 			next = val + THRESHOLDS_EVENTS_TARGET;
761 			break;
762 		case MEM_CGROUP_TARGET_SOFTLIMIT:
763 			next = val + SOFTLIMIT_EVENTS_TARGET;
764 			break;
765 		case MEM_CGROUP_TARGET_NUMAINFO:
766 			next = val + NUMAINFO_EVENTS_TARGET;
767 			break;
768 		default:
769 			break;
770 		}
771 		__this_cpu_write(memcg->stat_cpu->targets[target], next);
772 		return true;
773 	}
774 	return false;
775 }
776 
777 /*
778  * Check events in order.
779  *
780  */
781 static void memcg_check_events(struct mem_cgroup *memcg, struct page *page)
782 {
783 	/* threshold event is triggered in finer grain than soft limit */
784 	if (unlikely(mem_cgroup_event_ratelimit(memcg,
785 						MEM_CGROUP_TARGET_THRESH))) {
786 		bool do_softlimit;
787 		bool do_numainfo __maybe_unused;
788 
789 		do_softlimit = mem_cgroup_event_ratelimit(memcg,
790 						MEM_CGROUP_TARGET_SOFTLIMIT);
791 #if MAX_NUMNODES > 1
792 		do_numainfo = mem_cgroup_event_ratelimit(memcg,
793 						MEM_CGROUP_TARGET_NUMAINFO);
794 #endif
795 		mem_cgroup_threshold(memcg);
796 		if (unlikely(do_softlimit))
797 			mem_cgroup_update_tree(memcg, page);
798 #if MAX_NUMNODES > 1
799 		if (unlikely(do_numainfo))
800 			atomic_inc(&memcg->numainfo_events);
801 #endif
802 	}
803 }
804 
805 struct mem_cgroup *mem_cgroup_from_task(struct task_struct *p)
806 {
807 	/*
808 	 * mm_update_next_owner() may clear mm->owner to NULL
809 	 * if it races with swapoff, page migration, etc.
810 	 * So this can be called with p == NULL.
811 	 */
812 	if (unlikely(!p))
813 		return NULL;
814 
815 	return mem_cgroup_from_css(task_css(p, memory_cgrp_id));
816 }
817 EXPORT_SYMBOL(mem_cgroup_from_task);
818 
819 /**
820  * get_mem_cgroup_from_mm: Obtain a reference on given mm_struct's memcg.
821  * @mm: mm from which memcg should be extracted. It can be NULL.
822  *
823  * Obtain a reference on mm->memcg and returns it if successful. Otherwise
824  * root_mem_cgroup is returned. However if mem_cgroup is disabled, NULL is
825  * returned.
826  */
827 struct mem_cgroup *get_mem_cgroup_from_mm(struct mm_struct *mm)
828 {
829 	struct mem_cgroup *memcg;
830 
831 	if (mem_cgroup_disabled())
832 		return NULL;
833 
834 	rcu_read_lock();
835 	do {
836 		/*
837 		 * Page cache insertions can happen withou an
838 		 * actual mm context, e.g. during disk probing
839 		 * on boot, loopback IO, acct() writes etc.
840 		 */
841 		if (unlikely(!mm))
842 			memcg = root_mem_cgroup;
843 		else {
844 			memcg = mem_cgroup_from_task(rcu_dereference(mm->owner));
845 			if (unlikely(!memcg))
846 				memcg = root_mem_cgroup;
847 		}
848 	} while (!css_tryget_online(&memcg->css));
849 	rcu_read_unlock();
850 	return memcg;
851 }
852 EXPORT_SYMBOL(get_mem_cgroup_from_mm);
853 
854 /**
855  * get_mem_cgroup_from_page: Obtain a reference on given page's memcg.
856  * @page: page from which memcg should be extracted.
857  *
858  * Obtain a reference on page->memcg and returns it if successful. Otherwise
859  * root_mem_cgroup is returned.
860  */
861 struct mem_cgroup *get_mem_cgroup_from_page(struct page *page)
862 {
863 	struct mem_cgroup *memcg = page->mem_cgroup;
864 
865 	if (mem_cgroup_disabled())
866 		return NULL;
867 
868 	rcu_read_lock();
869 	if (!memcg || !css_tryget_online(&memcg->css))
870 		memcg = root_mem_cgroup;
871 	rcu_read_unlock();
872 	return memcg;
873 }
874 EXPORT_SYMBOL(get_mem_cgroup_from_page);
875 
876 /**
877  * If current->active_memcg is non-NULL, do not fallback to current->mm->memcg.
878  */
879 static __always_inline struct mem_cgroup *get_mem_cgroup_from_current(void)
880 {
881 	if (unlikely(current->active_memcg)) {
882 		struct mem_cgroup *memcg = root_mem_cgroup;
883 
884 		rcu_read_lock();
885 		if (css_tryget_online(&current->active_memcg->css))
886 			memcg = current->active_memcg;
887 		rcu_read_unlock();
888 		return memcg;
889 	}
890 	return get_mem_cgroup_from_mm(current->mm);
891 }
892 
893 /**
894  * mem_cgroup_iter - iterate over memory cgroup hierarchy
895  * @root: hierarchy root
896  * @prev: previously returned memcg, NULL on first invocation
897  * @reclaim: cookie for shared reclaim walks, NULL for full walks
898  *
899  * Returns references to children of the hierarchy below @root, or
900  * @root itself, or %NULL after a full round-trip.
901  *
902  * Caller must pass the return value in @prev on subsequent
903  * invocations for reference counting, or use mem_cgroup_iter_break()
904  * to cancel a hierarchy walk before the round-trip is complete.
905  *
906  * Reclaimers can specify a node and a priority level in @reclaim to
907  * divide up the memcgs in the hierarchy among all concurrent
908  * reclaimers operating on the same node and priority.
909  */
910 struct mem_cgroup *mem_cgroup_iter(struct mem_cgroup *root,
911 				   struct mem_cgroup *prev,
912 				   struct mem_cgroup_reclaim_cookie *reclaim)
913 {
914 	struct mem_cgroup_reclaim_iter *uninitialized_var(iter);
915 	struct cgroup_subsys_state *css = NULL;
916 	struct mem_cgroup *memcg = NULL;
917 	struct mem_cgroup *pos = NULL;
918 
919 	if (mem_cgroup_disabled())
920 		return NULL;
921 
922 	if (!root)
923 		root = root_mem_cgroup;
924 
925 	if (prev && !reclaim)
926 		pos = prev;
927 
928 	if (!root->use_hierarchy && root != root_mem_cgroup) {
929 		if (prev)
930 			goto out;
931 		return root;
932 	}
933 
934 	rcu_read_lock();
935 
936 	if (reclaim) {
937 		struct mem_cgroup_per_node *mz;
938 
939 		mz = mem_cgroup_nodeinfo(root, reclaim->pgdat->node_id);
940 		iter = &mz->iter[reclaim->priority];
941 
942 		if (prev && reclaim->generation != iter->generation)
943 			goto out_unlock;
944 
945 		while (1) {
946 			pos = READ_ONCE(iter->position);
947 			if (!pos || css_tryget(&pos->css))
948 				break;
949 			/*
950 			 * css reference reached zero, so iter->position will
951 			 * be cleared by ->css_released. However, we should not
952 			 * rely on this happening soon, because ->css_released
953 			 * is called from a work queue, and by busy-waiting we
954 			 * might block it. So we clear iter->position right
955 			 * away.
956 			 */
957 			(void)cmpxchg(&iter->position, pos, NULL);
958 		}
959 	}
960 
961 	if (pos)
962 		css = &pos->css;
963 
964 	for (;;) {
965 		css = css_next_descendant_pre(css, &root->css);
966 		if (!css) {
967 			/*
968 			 * Reclaimers share the hierarchy walk, and a
969 			 * new one might jump in right at the end of
970 			 * the hierarchy - make sure they see at least
971 			 * one group and restart from the beginning.
972 			 */
973 			if (!prev)
974 				continue;
975 			break;
976 		}
977 
978 		/*
979 		 * Verify the css and acquire a reference.  The root
980 		 * is provided by the caller, so we know it's alive
981 		 * and kicking, and don't take an extra reference.
982 		 */
983 		memcg = mem_cgroup_from_css(css);
984 
985 		if (css == &root->css)
986 			break;
987 
988 		if (css_tryget(css))
989 			break;
990 
991 		memcg = NULL;
992 	}
993 
994 	if (reclaim) {
995 		/*
996 		 * The position could have already been updated by a competing
997 		 * thread, so check that the value hasn't changed since we read
998 		 * it to avoid reclaiming from the same cgroup twice.
999 		 */
1000 		(void)cmpxchg(&iter->position, pos, memcg);
1001 
1002 		if (pos)
1003 			css_put(&pos->css);
1004 
1005 		if (!memcg)
1006 			iter->generation++;
1007 		else if (!prev)
1008 			reclaim->generation = iter->generation;
1009 	}
1010 
1011 out_unlock:
1012 	rcu_read_unlock();
1013 out:
1014 	if (prev && prev != root)
1015 		css_put(&prev->css);
1016 
1017 	return memcg;
1018 }
1019 
1020 /**
1021  * mem_cgroup_iter_break - abort a hierarchy walk prematurely
1022  * @root: hierarchy root
1023  * @prev: last visited hierarchy member as returned by mem_cgroup_iter()
1024  */
1025 void mem_cgroup_iter_break(struct mem_cgroup *root,
1026 			   struct mem_cgroup *prev)
1027 {
1028 	if (!root)
1029 		root = root_mem_cgroup;
1030 	if (prev && prev != root)
1031 		css_put(&prev->css);
1032 }
1033 
1034 static void invalidate_reclaim_iterators(struct mem_cgroup *dead_memcg)
1035 {
1036 	struct mem_cgroup *memcg = dead_memcg;
1037 	struct mem_cgroup_reclaim_iter *iter;
1038 	struct mem_cgroup_per_node *mz;
1039 	int nid;
1040 	int i;
1041 
1042 	for (; memcg; memcg = parent_mem_cgroup(memcg)) {
1043 		for_each_node(nid) {
1044 			mz = mem_cgroup_nodeinfo(memcg, nid);
1045 			for (i = 0; i <= DEF_PRIORITY; i++) {
1046 				iter = &mz->iter[i];
1047 				cmpxchg(&iter->position,
1048 					dead_memcg, NULL);
1049 			}
1050 		}
1051 	}
1052 }
1053 
1054 /**
1055  * mem_cgroup_scan_tasks - iterate over tasks of a memory cgroup hierarchy
1056  * @memcg: hierarchy root
1057  * @fn: function to call for each task
1058  * @arg: argument passed to @fn
1059  *
1060  * This function iterates over tasks attached to @memcg or to any of its
1061  * descendants and calls @fn for each task. If @fn returns a non-zero
1062  * value, the function breaks the iteration loop and returns the value.
1063  * Otherwise, it will iterate over all tasks and return 0.
1064  *
1065  * This function must not be called for the root memory cgroup.
1066  */
1067 int mem_cgroup_scan_tasks(struct mem_cgroup *memcg,
1068 			  int (*fn)(struct task_struct *, void *), void *arg)
1069 {
1070 	struct mem_cgroup *iter;
1071 	int ret = 0;
1072 
1073 	BUG_ON(memcg == root_mem_cgroup);
1074 
1075 	for_each_mem_cgroup_tree(iter, memcg) {
1076 		struct css_task_iter it;
1077 		struct task_struct *task;
1078 
1079 		css_task_iter_start(&iter->css, 0, &it);
1080 		while (!ret && (task = css_task_iter_next(&it)))
1081 			ret = fn(task, arg);
1082 		css_task_iter_end(&it);
1083 		if (ret) {
1084 			mem_cgroup_iter_break(memcg, iter);
1085 			break;
1086 		}
1087 	}
1088 	return ret;
1089 }
1090 
1091 /**
1092  * mem_cgroup_page_lruvec - return lruvec for isolating/putting an LRU page
1093  * @page: the page
1094  * @pgdat: pgdat of the page
1095  *
1096  * This function is only safe when following the LRU page isolation
1097  * and putback protocol: the LRU lock must be held, and the page must
1098  * either be PageLRU() or the caller must have isolated/allocated it.
1099  */
1100 struct lruvec *mem_cgroup_page_lruvec(struct page *page, struct pglist_data *pgdat)
1101 {
1102 	struct mem_cgroup_per_node *mz;
1103 	struct mem_cgroup *memcg;
1104 	struct lruvec *lruvec;
1105 
1106 	if (mem_cgroup_disabled()) {
1107 		lruvec = &pgdat->lruvec;
1108 		goto out;
1109 	}
1110 
1111 	memcg = page->mem_cgroup;
1112 	/*
1113 	 * Swapcache readahead pages are added to the LRU - and
1114 	 * possibly migrated - before they are charged.
1115 	 */
1116 	if (!memcg)
1117 		memcg = root_mem_cgroup;
1118 
1119 	mz = mem_cgroup_page_nodeinfo(memcg, page);
1120 	lruvec = &mz->lruvec;
1121 out:
1122 	/*
1123 	 * Since a node can be onlined after the mem_cgroup was created,
1124 	 * we have to be prepared to initialize lruvec->zone here;
1125 	 * and if offlined then reonlined, we need to reinitialize it.
1126 	 */
1127 	if (unlikely(lruvec->pgdat != pgdat))
1128 		lruvec->pgdat = pgdat;
1129 	return lruvec;
1130 }
1131 
1132 /**
1133  * mem_cgroup_update_lru_size - account for adding or removing an lru page
1134  * @lruvec: mem_cgroup per zone lru vector
1135  * @lru: index of lru list the page is sitting on
1136  * @zid: zone id of the accounted pages
1137  * @nr_pages: positive when adding or negative when removing
1138  *
1139  * This function must be called under lru_lock, just before a page is added
1140  * to or just after a page is removed from an lru list (that ordering being
1141  * so as to allow it to check that lru_size 0 is consistent with list_empty).
1142  */
1143 void mem_cgroup_update_lru_size(struct lruvec *lruvec, enum lru_list lru,
1144 				int zid, int nr_pages)
1145 {
1146 	struct mem_cgroup_per_node *mz;
1147 	unsigned long *lru_size;
1148 	long size;
1149 
1150 	if (mem_cgroup_disabled())
1151 		return;
1152 
1153 	mz = container_of(lruvec, struct mem_cgroup_per_node, lruvec);
1154 	lru_size = &mz->lru_zone_size[zid][lru];
1155 
1156 	if (nr_pages < 0)
1157 		*lru_size += nr_pages;
1158 
1159 	size = *lru_size;
1160 	if (WARN_ONCE(size < 0,
1161 		"%s(%p, %d, %d): lru_size %ld\n",
1162 		__func__, lruvec, lru, nr_pages, size)) {
1163 		VM_BUG_ON(1);
1164 		*lru_size = 0;
1165 	}
1166 
1167 	if (nr_pages > 0)
1168 		*lru_size += nr_pages;
1169 }
1170 
1171 bool task_in_mem_cgroup(struct task_struct *task, struct mem_cgroup *memcg)
1172 {
1173 	struct mem_cgroup *task_memcg;
1174 	struct task_struct *p;
1175 	bool ret;
1176 
1177 	p = find_lock_task_mm(task);
1178 	if (p) {
1179 		task_memcg = get_mem_cgroup_from_mm(p->mm);
1180 		task_unlock(p);
1181 	} else {
1182 		/*
1183 		 * All threads may have already detached their mm's, but the oom
1184 		 * killer still needs to detect if they have already been oom
1185 		 * killed to prevent needlessly killing additional tasks.
1186 		 */
1187 		rcu_read_lock();
1188 		task_memcg = mem_cgroup_from_task(task);
1189 		css_get(&task_memcg->css);
1190 		rcu_read_unlock();
1191 	}
1192 	ret = mem_cgroup_is_descendant(task_memcg, memcg);
1193 	css_put(&task_memcg->css);
1194 	return ret;
1195 }
1196 
1197 /**
1198  * mem_cgroup_margin - calculate chargeable space of a memory cgroup
1199  * @memcg: the memory cgroup
1200  *
1201  * Returns the maximum amount of memory @mem can be charged with, in
1202  * pages.
1203  */
1204 static unsigned long mem_cgroup_margin(struct mem_cgroup *memcg)
1205 {
1206 	unsigned long margin = 0;
1207 	unsigned long count;
1208 	unsigned long limit;
1209 
1210 	count = page_counter_read(&memcg->memory);
1211 	limit = READ_ONCE(memcg->memory.max);
1212 	if (count < limit)
1213 		margin = limit - count;
1214 
1215 	if (do_memsw_account()) {
1216 		count = page_counter_read(&memcg->memsw);
1217 		limit = READ_ONCE(memcg->memsw.max);
1218 		if (count <= limit)
1219 			margin = min(margin, limit - count);
1220 		else
1221 			margin = 0;
1222 	}
1223 
1224 	return margin;
1225 }
1226 
1227 /*
1228  * A routine for checking "mem" is under move_account() or not.
1229  *
1230  * Checking a cgroup is mc.from or mc.to or under hierarchy of
1231  * moving cgroups. This is for waiting at high-memory pressure
1232  * caused by "move".
1233  */
1234 static bool mem_cgroup_under_move(struct mem_cgroup *memcg)
1235 {
1236 	struct mem_cgroup *from;
1237 	struct mem_cgroup *to;
1238 	bool ret = false;
1239 	/*
1240 	 * Unlike task_move routines, we access mc.to, mc.from not under
1241 	 * mutual exclusion by cgroup_mutex. Here, we take spinlock instead.
1242 	 */
1243 	spin_lock(&mc.lock);
1244 	from = mc.from;
1245 	to = mc.to;
1246 	if (!from)
1247 		goto unlock;
1248 
1249 	ret = mem_cgroup_is_descendant(from, memcg) ||
1250 		mem_cgroup_is_descendant(to, memcg);
1251 unlock:
1252 	spin_unlock(&mc.lock);
1253 	return ret;
1254 }
1255 
1256 static bool mem_cgroup_wait_acct_move(struct mem_cgroup *memcg)
1257 {
1258 	if (mc.moving_task && current != mc.moving_task) {
1259 		if (mem_cgroup_under_move(memcg)) {
1260 			DEFINE_WAIT(wait);
1261 			prepare_to_wait(&mc.waitq, &wait, TASK_INTERRUPTIBLE);
1262 			/* moving charge context might have finished. */
1263 			if (mc.moving_task)
1264 				schedule();
1265 			finish_wait(&mc.waitq, &wait);
1266 			return true;
1267 		}
1268 	}
1269 	return false;
1270 }
1271 
1272 static const unsigned int memcg1_stats[] = {
1273 	MEMCG_CACHE,
1274 	MEMCG_RSS,
1275 	MEMCG_RSS_HUGE,
1276 	NR_SHMEM,
1277 	NR_FILE_MAPPED,
1278 	NR_FILE_DIRTY,
1279 	NR_WRITEBACK,
1280 	MEMCG_SWAP,
1281 };
1282 
1283 static const char *const memcg1_stat_names[] = {
1284 	"cache",
1285 	"rss",
1286 	"rss_huge",
1287 	"shmem",
1288 	"mapped_file",
1289 	"dirty",
1290 	"writeback",
1291 	"swap",
1292 };
1293 
1294 #define K(x) ((x) << (PAGE_SHIFT-10))
1295 /**
1296  * mem_cgroup_print_oom_info: Print OOM information relevant to memory controller.
1297  * @memcg: The memory cgroup that went over limit
1298  * @p: Task that is going to be killed
1299  *
1300  * NOTE: @memcg and @p's mem_cgroup can be different when hierarchy is
1301  * enabled
1302  */
1303 void mem_cgroup_print_oom_info(struct mem_cgroup *memcg, struct task_struct *p)
1304 {
1305 	struct mem_cgroup *iter;
1306 	unsigned int i;
1307 
1308 	rcu_read_lock();
1309 
1310 	if (p) {
1311 		pr_info("Task in ");
1312 		pr_cont_cgroup_path(task_cgroup(p, memory_cgrp_id));
1313 		pr_cont(" killed as a result of limit of ");
1314 	} else {
1315 		pr_info("Memory limit reached of cgroup ");
1316 	}
1317 
1318 	pr_cont_cgroup_path(memcg->css.cgroup);
1319 	pr_cont("\n");
1320 
1321 	rcu_read_unlock();
1322 
1323 	pr_info("memory: usage %llukB, limit %llukB, failcnt %lu\n",
1324 		K((u64)page_counter_read(&memcg->memory)),
1325 		K((u64)memcg->memory.max), memcg->memory.failcnt);
1326 	pr_info("memory+swap: usage %llukB, limit %llukB, failcnt %lu\n",
1327 		K((u64)page_counter_read(&memcg->memsw)),
1328 		K((u64)memcg->memsw.max), memcg->memsw.failcnt);
1329 	pr_info("kmem: usage %llukB, limit %llukB, failcnt %lu\n",
1330 		K((u64)page_counter_read(&memcg->kmem)),
1331 		K((u64)memcg->kmem.max), memcg->kmem.failcnt);
1332 
1333 	for_each_mem_cgroup_tree(iter, memcg) {
1334 		pr_info("Memory cgroup stats for ");
1335 		pr_cont_cgroup_path(iter->css.cgroup);
1336 		pr_cont(":");
1337 
1338 		for (i = 0; i < ARRAY_SIZE(memcg1_stats); i++) {
1339 			if (memcg1_stats[i] == MEMCG_SWAP && !do_swap_account)
1340 				continue;
1341 			pr_cont(" %s:%luKB", memcg1_stat_names[i],
1342 				K(memcg_page_state(iter, memcg1_stats[i])));
1343 		}
1344 
1345 		for (i = 0; i < NR_LRU_LISTS; i++)
1346 			pr_cont(" %s:%luKB", mem_cgroup_lru_names[i],
1347 				K(mem_cgroup_nr_lru_pages(iter, BIT(i))));
1348 
1349 		pr_cont("\n");
1350 	}
1351 }
1352 
1353 /*
1354  * Return the memory (and swap, if configured) limit for a memcg.
1355  */
1356 unsigned long mem_cgroup_get_max(struct mem_cgroup *memcg)
1357 {
1358 	unsigned long max;
1359 
1360 	max = memcg->memory.max;
1361 	if (mem_cgroup_swappiness(memcg)) {
1362 		unsigned long memsw_max;
1363 		unsigned long swap_max;
1364 
1365 		memsw_max = memcg->memsw.max;
1366 		swap_max = memcg->swap.max;
1367 		swap_max = min(swap_max, (unsigned long)total_swap_pages);
1368 		max = min(max + swap_max, memsw_max);
1369 	}
1370 	return max;
1371 }
1372 
1373 static bool mem_cgroup_out_of_memory(struct mem_cgroup *memcg, gfp_t gfp_mask,
1374 				     int order)
1375 {
1376 	struct oom_control oc = {
1377 		.zonelist = NULL,
1378 		.nodemask = NULL,
1379 		.memcg = memcg,
1380 		.gfp_mask = gfp_mask,
1381 		.order = order,
1382 	};
1383 	bool ret;
1384 
1385 	mutex_lock(&oom_lock);
1386 	ret = out_of_memory(&oc);
1387 	mutex_unlock(&oom_lock);
1388 	return ret;
1389 }
1390 
1391 #if MAX_NUMNODES > 1
1392 
1393 /**
1394  * test_mem_cgroup_node_reclaimable
1395  * @memcg: the target memcg
1396  * @nid: the node ID to be checked.
1397  * @noswap : specify true here if the user wants flle only information.
1398  *
1399  * This function returns whether the specified memcg contains any
1400  * reclaimable pages on a node. Returns true if there are any reclaimable
1401  * pages in the node.
1402  */
1403 static bool test_mem_cgroup_node_reclaimable(struct mem_cgroup *memcg,
1404 		int nid, bool noswap)
1405 {
1406 	if (mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL_FILE))
1407 		return true;
1408 	if (noswap || !total_swap_pages)
1409 		return false;
1410 	if (mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL_ANON))
1411 		return true;
1412 	return false;
1413 
1414 }
1415 
1416 /*
1417  * Always updating the nodemask is not very good - even if we have an empty
1418  * list or the wrong list here, we can start from some node and traverse all
1419  * nodes based on the zonelist. So update the list loosely once per 10 secs.
1420  *
1421  */
1422 static void mem_cgroup_may_update_nodemask(struct mem_cgroup *memcg)
1423 {
1424 	int nid;
1425 	/*
1426 	 * numainfo_events > 0 means there was at least NUMAINFO_EVENTS_TARGET
1427 	 * pagein/pageout changes since the last update.
1428 	 */
1429 	if (!atomic_read(&memcg->numainfo_events))
1430 		return;
1431 	if (atomic_inc_return(&memcg->numainfo_updating) > 1)
1432 		return;
1433 
1434 	/* make a nodemask where this memcg uses memory from */
1435 	memcg->scan_nodes = node_states[N_MEMORY];
1436 
1437 	for_each_node_mask(nid, node_states[N_MEMORY]) {
1438 
1439 		if (!test_mem_cgroup_node_reclaimable(memcg, nid, false))
1440 			node_clear(nid, memcg->scan_nodes);
1441 	}
1442 
1443 	atomic_set(&memcg->numainfo_events, 0);
1444 	atomic_set(&memcg->numainfo_updating, 0);
1445 }
1446 
1447 /*
1448  * Selecting a node where we start reclaim from. Because what we need is just
1449  * reducing usage counter, start from anywhere is O,K. Considering
1450  * memory reclaim from current node, there are pros. and cons.
1451  *
1452  * Freeing memory from current node means freeing memory from a node which
1453  * we'll use or we've used. So, it may make LRU bad. And if several threads
1454  * hit limits, it will see a contention on a node. But freeing from remote
1455  * node means more costs for memory reclaim because of memory latency.
1456  *
1457  * Now, we use round-robin. Better algorithm is welcomed.
1458  */
1459 int mem_cgroup_select_victim_node(struct mem_cgroup *memcg)
1460 {
1461 	int node;
1462 
1463 	mem_cgroup_may_update_nodemask(memcg);
1464 	node = memcg->last_scanned_node;
1465 
1466 	node = next_node_in(node, memcg->scan_nodes);
1467 	/*
1468 	 * mem_cgroup_may_update_nodemask might have seen no reclaimmable pages
1469 	 * last time it really checked all the LRUs due to rate limiting.
1470 	 * Fallback to the current node in that case for simplicity.
1471 	 */
1472 	if (unlikely(node == MAX_NUMNODES))
1473 		node = numa_node_id();
1474 
1475 	memcg->last_scanned_node = node;
1476 	return node;
1477 }
1478 #else
1479 int mem_cgroup_select_victim_node(struct mem_cgroup *memcg)
1480 {
1481 	return 0;
1482 }
1483 #endif
1484 
1485 static int mem_cgroup_soft_reclaim(struct mem_cgroup *root_memcg,
1486 				   pg_data_t *pgdat,
1487 				   gfp_t gfp_mask,
1488 				   unsigned long *total_scanned)
1489 {
1490 	struct mem_cgroup *victim = NULL;
1491 	int total = 0;
1492 	int loop = 0;
1493 	unsigned long excess;
1494 	unsigned long nr_scanned;
1495 	struct mem_cgroup_reclaim_cookie reclaim = {
1496 		.pgdat = pgdat,
1497 		.priority = 0,
1498 	};
1499 
1500 	excess = soft_limit_excess(root_memcg);
1501 
1502 	while (1) {
1503 		victim = mem_cgroup_iter(root_memcg, victim, &reclaim);
1504 		if (!victim) {
1505 			loop++;
1506 			if (loop >= 2) {
1507 				/*
1508 				 * If we have not been able to reclaim
1509 				 * anything, it might because there are
1510 				 * no reclaimable pages under this hierarchy
1511 				 */
1512 				if (!total)
1513 					break;
1514 				/*
1515 				 * We want to do more targeted reclaim.
1516 				 * excess >> 2 is not to excessive so as to
1517 				 * reclaim too much, nor too less that we keep
1518 				 * coming back to reclaim from this cgroup
1519 				 */
1520 				if (total >= (excess >> 2) ||
1521 					(loop > MEM_CGROUP_MAX_RECLAIM_LOOPS))
1522 					break;
1523 			}
1524 			continue;
1525 		}
1526 		total += mem_cgroup_shrink_node(victim, gfp_mask, false,
1527 					pgdat, &nr_scanned);
1528 		*total_scanned += nr_scanned;
1529 		if (!soft_limit_excess(root_memcg))
1530 			break;
1531 	}
1532 	mem_cgroup_iter_break(root_memcg, victim);
1533 	return total;
1534 }
1535 
1536 #ifdef CONFIG_LOCKDEP
1537 static struct lockdep_map memcg_oom_lock_dep_map = {
1538 	.name = "memcg_oom_lock",
1539 };
1540 #endif
1541 
1542 static DEFINE_SPINLOCK(memcg_oom_lock);
1543 
1544 /*
1545  * Check OOM-Killer is already running under our hierarchy.
1546  * If someone is running, return false.
1547  */
1548 static bool mem_cgroup_oom_trylock(struct mem_cgroup *memcg)
1549 {
1550 	struct mem_cgroup *iter, *failed = NULL;
1551 
1552 	spin_lock(&memcg_oom_lock);
1553 
1554 	for_each_mem_cgroup_tree(iter, memcg) {
1555 		if (iter->oom_lock) {
1556 			/*
1557 			 * this subtree of our hierarchy is already locked
1558 			 * so we cannot give a lock.
1559 			 */
1560 			failed = iter;
1561 			mem_cgroup_iter_break(memcg, iter);
1562 			break;
1563 		} else
1564 			iter->oom_lock = true;
1565 	}
1566 
1567 	if (failed) {
1568 		/*
1569 		 * OK, we failed to lock the whole subtree so we have
1570 		 * to clean up what we set up to the failing subtree
1571 		 */
1572 		for_each_mem_cgroup_tree(iter, memcg) {
1573 			if (iter == failed) {
1574 				mem_cgroup_iter_break(memcg, iter);
1575 				break;
1576 			}
1577 			iter->oom_lock = false;
1578 		}
1579 	} else
1580 		mutex_acquire(&memcg_oom_lock_dep_map, 0, 1, _RET_IP_);
1581 
1582 	spin_unlock(&memcg_oom_lock);
1583 
1584 	return !failed;
1585 }
1586 
1587 static void mem_cgroup_oom_unlock(struct mem_cgroup *memcg)
1588 {
1589 	struct mem_cgroup *iter;
1590 
1591 	spin_lock(&memcg_oom_lock);
1592 	mutex_release(&memcg_oom_lock_dep_map, 1, _RET_IP_);
1593 	for_each_mem_cgroup_tree(iter, memcg)
1594 		iter->oom_lock = false;
1595 	spin_unlock(&memcg_oom_lock);
1596 }
1597 
1598 static void mem_cgroup_mark_under_oom(struct mem_cgroup *memcg)
1599 {
1600 	struct mem_cgroup *iter;
1601 
1602 	spin_lock(&memcg_oom_lock);
1603 	for_each_mem_cgroup_tree(iter, memcg)
1604 		iter->under_oom++;
1605 	spin_unlock(&memcg_oom_lock);
1606 }
1607 
1608 static void mem_cgroup_unmark_under_oom(struct mem_cgroup *memcg)
1609 {
1610 	struct mem_cgroup *iter;
1611 
1612 	/*
1613 	 * When a new child is created while the hierarchy is under oom,
1614 	 * mem_cgroup_oom_lock() may not be called. Watch for underflow.
1615 	 */
1616 	spin_lock(&memcg_oom_lock);
1617 	for_each_mem_cgroup_tree(iter, memcg)
1618 		if (iter->under_oom > 0)
1619 			iter->under_oom--;
1620 	spin_unlock(&memcg_oom_lock);
1621 }
1622 
1623 static DECLARE_WAIT_QUEUE_HEAD(memcg_oom_waitq);
1624 
1625 struct oom_wait_info {
1626 	struct mem_cgroup *memcg;
1627 	wait_queue_entry_t	wait;
1628 };
1629 
1630 static int memcg_oom_wake_function(wait_queue_entry_t *wait,
1631 	unsigned mode, int sync, void *arg)
1632 {
1633 	struct mem_cgroup *wake_memcg = (struct mem_cgroup *)arg;
1634 	struct mem_cgroup *oom_wait_memcg;
1635 	struct oom_wait_info *oom_wait_info;
1636 
1637 	oom_wait_info = container_of(wait, struct oom_wait_info, wait);
1638 	oom_wait_memcg = oom_wait_info->memcg;
1639 
1640 	if (!mem_cgroup_is_descendant(wake_memcg, oom_wait_memcg) &&
1641 	    !mem_cgroup_is_descendant(oom_wait_memcg, wake_memcg))
1642 		return 0;
1643 	return autoremove_wake_function(wait, mode, sync, arg);
1644 }
1645 
1646 static void memcg_oom_recover(struct mem_cgroup *memcg)
1647 {
1648 	/*
1649 	 * For the following lockless ->under_oom test, the only required
1650 	 * guarantee is that it must see the state asserted by an OOM when
1651 	 * this function is called as a result of userland actions
1652 	 * triggered by the notification of the OOM.  This is trivially
1653 	 * achieved by invoking mem_cgroup_mark_under_oom() before
1654 	 * triggering notification.
1655 	 */
1656 	if (memcg && memcg->under_oom)
1657 		__wake_up(&memcg_oom_waitq, TASK_NORMAL, 0, memcg);
1658 }
1659 
1660 enum oom_status {
1661 	OOM_SUCCESS,
1662 	OOM_FAILED,
1663 	OOM_ASYNC,
1664 	OOM_SKIPPED
1665 };
1666 
1667 static enum oom_status mem_cgroup_oom(struct mem_cgroup *memcg, gfp_t mask, int order)
1668 {
1669 	if (order > PAGE_ALLOC_COSTLY_ORDER)
1670 		return OOM_SKIPPED;
1671 
1672 	/*
1673 	 * We are in the middle of the charge context here, so we
1674 	 * don't want to block when potentially sitting on a callstack
1675 	 * that holds all kinds of filesystem and mm locks.
1676 	 *
1677 	 * cgroup1 allows disabling the OOM killer and waiting for outside
1678 	 * handling until the charge can succeed; remember the context and put
1679 	 * the task to sleep at the end of the page fault when all locks are
1680 	 * released.
1681 	 *
1682 	 * On the other hand, in-kernel OOM killer allows for an async victim
1683 	 * memory reclaim (oom_reaper) and that means that we are not solely
1684 	 * relying on the oom victim to make a forward progress and we can
1685 	 * invoke the oom killer here.
1686 	 *
1687 	 * Please note that mem_cgroup_out_of_memory might fail to find a
1688 	 * victim and then we have to bail out from the charge path.
1689 	 */
1690 	if (memcg->oom_kill_disable) {
1691 		if (!current->in_user_fault)
1692 			return OOM_SKIPPED;
1693 		css_get(&memcg->css);
1694 		current->memcg_in_oom = memcg;
1695 		current->memcg_oom_gfp_mask = mask;
1696 		current->memcg_oom_order = order;
1697 
1698 		return OOM_ASYNC;
1699 	}
1700 
1701 	if (mem_cgroup_out_of_memory(memcg, mask, order))
1702 		return OOM_SUCCESS;
1703 
1704 	WARN(1,"Memory cgroup charge failed because of no reclaimable memory! "
1705 		"This looks like a misconfiguration or a kernel bug.");
1706 	return OOM_FAILED;
1707 }
1708 
1709 /**
1710  * mem_cgroup_oom_synchronize - complete memcg OOM handling
1711  * @handle: actually kill/wait or just clean up the OOM state
1712  *
1713  * This has to be called at the end of a page fault if the memcg OOM
1714  * handler was enabled.
1715  *
1716  * Memcg supports userspace OOM handling where failed allocations must
1717  * sleep on a waitqueue until the userspace task resolves the
1718  * situation.  Sleeping directly in the charge context with all kinds
1719  * of locks held is not a good idea, instead we remember an OOM state
1720  * in the task and mem_cgroup_oom_synchronize() has to be called at
1721  * the end of the page fault to complete the OOM handling.
1722  *
1723  * Returns %true if an ongoing memcg OOM situation was detected and
1724  * completed, %false otherwise.
1725  */
1726 bool mem_cgroup_oom_synchronize(bool handle)
1727 {
1728 	struct mem_cgroup *memcg = current->memcg_in_oom;
1729 	struct oom_wait_info owait;
1730 	bool locked;
1731 
1732 	/* OOM is global, do not handle */
1733 	if (!memcg)
1734 		return false;
1735 
1736 	if (!handle)
1737 		goto cleanup;
1738 
1739 	owait.memcg = memcg;
1740 	owait.wait.flags = 0;
1741 	owait.wait.func = memcg_oom_wake_function;
1742 	owait.wait.private = current;
1743 	INIT_LIST_HEAD(&owait.wait.entry);
1744 
1745 	prepare_to_wait(&memcg_oom_waitq, &owait.wait, TASK_KILLABLE);
1746 	mem_cgroup_mark_under_oom(memcg);
1747 
1748 	locked = mem_cgroup_oom_trylock(memcg);
1749 
1750 	if (locked)
1751 		mem_cgroup_oom_notify(memcg);
1752 
1753 	if (locked && !memcg->oom_kill_disable) {
1754 		mem_cgroup_unmark_under_oom(memcg);
1755 		finish_wait(&memcg_oom_waitq, &owait.wait);
1756 		mem_cgroup_out_of_memory(memcg, current->memcg_oom_gfp_mask,
1757 					 current->memcg_oom_order);
1758 	} else {
1759 		schedule();
1760 		mem_cgroup_unmark_under_oom(memcg);
1761 		finish_wait(&memcg_oom_waitq, &owait.wait);
1762 	}
1763 
1764 	if (locked) {
1765 		mem_cgroup_oom_unlock(memcg);
1766 		/*
1767 		 * There is no guarantee that an OOM-lock contender
1768 		 * sees the wakeups triggered by the OOM kill
1769 		 * uncharges.  Wake any sleepers explicitely.
1770 		 */
1771 		memcg_oom_recover(memcg);
1772 	}
1773 cleanup:
1774 	current->memcg_in_oom = NULL;
1775 	css_put(&memcg->css);
1776 	return true;
1777 }
1778 
1779 /**
1780  * lock_page_memcg - lock a page->mem_cgroup binding
1781  * @page: the page
1782  *
1783  * This function protects unlocked LRU pages from being moved to
1784  * another cgroup.
1785  *
1786  * It ensures lifetime of the returned memcg. Caller is responsible
1787  * for the lifetime of the page; __unlock_page_memcg() is available
1788  * when @page might get freed inside the locked section.
1789  */
1790 struct mem_cgroup *lock_page_memcg(struct page *page)
1791 {
1792 	struct mem_cgroup *memcg;
1793 	unsigned long flags;
1794 
1795 	/*
1796 	 * The RCU lock is held throughout the transaction.  The fast
1797 	 * path can get away without acquiring the memcg->move_lock
1798 	 * because page moving starts with an RCU grace period.
1799 	 *
1800 	 * The RCU lock also protects the memcg from being freed when
1801 	 * the page state that is going to change is the only thing
1802 	 * preventing the page itself from being freed. E.g. writeback
1803 	 * doesn't hold a page reference and relies on PG_writeback to
1804 	 * keep off truncation, migration and so forth.
1805          */
1806 	rcu_read_lock();
1807 
1808 	if (mem_cgroup_disabled())
1809 		return NULL;
1810 again:
1811 	memcg = page->mem_cgroup;
1812 	if (unlikely(!memcg))
1813 		return NULL;
1814 
1815 	if (atomic_read(&memcg->moving_account) <= 0)
1816 		return memcg;
1817 
1818 	spin_lock_irqsave(&memcg->move_lock, flags);
1819 	if (memcg != page->mem_cgroup) {
1820 		spin_unlock_irqrestore(&memcg->move_lock, flags);
1821 		goto again;
1822 	}
1823 
1824 	/*
1825 	 * When charge migration first begins, we can have locked and
1826 	 * unlocked page stat updates happening concurrently.  Track
1827 	 * the task who has the lock for unlock_page_memcg().
1828 	 */
1829 	memcg->move_lock_task = current;
1830 	memcg->move_lock_flags = flags;
1831 
1832 	return memcg;
1833 }
1834 EXPORT_SYMBOL(lock_page_memcg);
1835 
1836 /**
1837  * __unlock_page_memcg - unlock and unpin a memcg
1838  * @memcg: the memcg
1839  *
1840  * Unlock and unpin a memcg returned by lock_page_memcg().
1841  */
1842 void __unlock_page_memcg(struct mem_cgroup *memcg)
1843 {
1844 	if (memcg && memcg->move_lock_task == current) {
1845 		unsigned long flags = memcg->move_lock_flags;
1846 
1847 		memcg->move_lock_task = NULL;
1848 		memcg->move_lock_flags = 0;
1849 
1850 		spin_unlock_irqrestore(&memcg->move_lock, flags);
1851 	}
1852 
1853 	rcu_read_unlock();
1854 }
1855 
1856 /**
1857  * unlock_page_memcg - unlock a page->mem_cgroup binding
1858  * @page: the page
1859  */
1860 void unlock_page_memcg(struct page *page)
1861 {
1862 	__unlock_page_memcg(page->mem_cgroup);
1863 }
1864 EXPORT_SYMBOL(unlock_page_memcg);
1865 
1866 struct memcg_stock_pcp {
1867 	struct mem_cgroup *cached; /* this never be root cgroup */
1868 	unsigned int nr_pages;
1869 	struct work_struct work;
1870 	unsigned long flags;
1871 #define FLUSHING_CACHED_CHARGE	0
1872 };
1873 static DEFINE_PER_CPU(struct memcg_stock_pcp, memcg_stock);
1874 static DEFINE_MUTEX(percpu_charge_mutex);
1875 
1876 /**
1877  * consume_stock: Try to consume stocked charge on this cpu.
1878  * @memcg: memcg to consume from.
1879  * @nr_pages: how many pages to charge.
1880  *
1881  * The charges will only happen if @memcg matches the current cpu's memcg
1882  * stock, and at least @nr_pages are available in that stock.  Failure to
1883  * service an allocation will refill the stock.
1884  *
1885  * returns true if successful, false otherwise.
1886  */
1887 static bool consume_stock(struct mem_cgroup *memcg, unsigned int nr_pages)
1888 {
1889 	struct memcg_stock_pcp *stock;
1890 	unsigned long flags;
1891 	bool ret = false;
1892 
1893 	if (nr_pages > MEMCG_CHARGE_BATCH)
1894 		return ret;
1895 
1896 	local_irq_save(flags);
1897 
1898 	stock = this_cpu_ptr(&memcg_stock);
1899 	if (memcg == stock->cached && stock->nr_pages >= nr_pages) {
1900 		stock->nr_pages -= nr_pages;
1901 		ret = true;
1902 	}
1903 
1904 	local_irq_restore(flags);
1905 
1906 	return ret;
1907 }
1908 
1909 /*
1910  * Returns stocks cached in percpu and reset cached information.
1911  */
1912 static void drain_stock(struct memcg_stock_pcp *stock)
1913 {
1914 	struct mem_cgroup *old = stock->cached;
1915 
1916 	if (stock->nr_pages) {
1917 		page_counter_uncharge(&old->memory, stock->nr_pages);
1918 		if (do_memsw_account())
1919 			page_counter_uncharge(&old->memsw, stock->nr_pages);
1920 		css_put_many(&old->css, stock->nr_pages);
1921 		stock->nr_pages = 0;
1922 	}
1923 	stock->cached = NULL;
1924 }
1925 
1926 static void drain_local_stock(struct work_struct *dummy)
1927 {
1928 	struct memcg_stock_pcp *stock;
1929 	unsigned long flags;
1930 
1931 	/*
1932 	 * The only protection from memory hotplug vs. drain_stock races is
1933 	 * that we always operate on local CPU stock here with IRQ disabled
1934 	 */
1935 	local_irq_save(flags);
1936 
1937 	stock = this_cpu_ptr(&memcg_stock);
1938 	drain_stock(stock);
1939 	clear_bit(FLUSHING_CACHED_CHARGE, &stock->flags);
1940 
1941 	local_irq_restore(flags);
1942 }
1943 
1944 /*
1945  * Cache charges(val) to local per_cpu area.
1946  * This will be consumed by consume_stock() function, later.
1947  */
1948 static void refill_stock(struct mem_cgroup *memcg, unsigned int nr_pages)
1949 {
1950 	struct memcg_stock_pcp *stock;
1951 	unsigned long flags;
1952 
1953 	local_irq_save(flags);
1954 
1955 	stock = this_cpu_ptr(&memcg_stock);
1956 	if (stock->cached != memcg) { /* reset if necessary */
1957 		drain_stock(stock);
1958 		stock->cached = memcg;
1959 	}
1960 	stock->nr_pages += nr_pages;
1961 
1962 	if (stock->nr_pages > MEMCG_CHARGE_BATCH)
1963 		drain_stock(stock);
1964 
1965 	local_irq_restore(flags);
1966 }
1967 
1968 /*
1969  * Drains all per-CPU charge caches for given root_memcg resp. subtree
1970  * of the hierarchy under it.
1971  */
1972 static void drain_all_stock(struct mem_cgroup *root_memcg)
1973 {
1974 	int cpu, curcpu;
1975 
1976 	/* If someone's already draining, avoid adding running more workers. */
1977 	if (!mutex_trylock(&percpu_charge_mutex))
1978 		return;
1979 	/*
1980 	 * Notify other cpus that system-wide "drain" is running
1981 	 * We do not care about races with the cpu hotplug because cpu down
1982 	 * as well as workers from this path always operate on the local
1983 	 * per-cpu data. CPU up doesn't touch memcg_stock at all.
1984 	 */
1985 	curcpu = get_cpu();
1986 	for_each_online_cpu(cpu) {
1987 		struct memcg_stock_pcp *stock = &per_cpu(memcg_stock, cpu);
1988 		struct mem_cgroup *memcg;
1989 
1990 		memcg = stock->cached;
1991 		if (!memcg || !stock->nr_pages || !css_tryget(&memcg->css))
1992 			continue;
1993 		if (!mem_cgroup_is_descendant(memcg, root_memcg)) {
1994 			css_put(&memcg->css);
1995 			continue;
1996 		}
1997 		if (!test_and_set_bit(FLUSHING_CACHED_CHARGE, &stock->flags)) {
1998 			if (cpu == curcpu)
1999 				drain_local_stock(&stock->work);
2000 			else
2001 				schedule_work_on(cpu, &stock->work);
2002 		}
2003 		css_put(&memcg->css);
2004 	}
2005 	put_cpu();
2006 	mutex_unlock(&percpu_charge_mutex);
2007 }
2008 
2009 static int memcg_hotplug_cpu_dead(unsigned int cpu)
2010 {
2011 	struct memcg_stock_pcp *stock;
2012 	struct mem_cgroup *memcg;
2013 
2014 	stock = &per_cpu(memcg_stock, cpu);
2015 	drain_stock(stock);
2016 
2017 	for_each_mem_cgroup(memcg) {
2018 		int i;
2019 
2020 		for (i = 0; i < MEMCG_NR_STAT; i++) {
2021 			int nid;
2022 			long x;
2023 
2024 			x = this_cpu_xchg(memcg->stat_cpu->count[i], 0);
2025 			if (x)
2026 				atomic_long_add(x, &memcg->stat[i]);
2027 
2028 			if (i >= NR_VM_NODE_STAT_ITEMS)
2029 				continue;
2030 
2031 			for_each_node(nid) {
2032 				struct mem_cgroup_per_node *pn;
2033 
2034 				pn = mem_cgroup_nodeinfo(memcg, nid);
2035 				x = this_cpu_xchg(pn->lruvec_stat_cpu->count[i], 0);
2036 				if (x)
2037 					atomic_long_add(x, &pn->lruvec_stat[i]);
2038 			}
2039 		}
2040 
2041 		for (i = 0; i < NR_VM_EVENT_ITEMS; i++) {
2042 			long x;
2043 
2044 			x = this_cpu_xchg(memcg->stat_cpu->events[i], 0);
2045 			if (x)
2046 				atomic_long_add(x, &memcg->events[i]);
2047 		}
2048 	}
2049 
2050 	return 0;
2051 }
2052 
2053 static void reclaim_high(struct mem_cgroup *memcg,
2054 			 unsigned int nr_pages,
2055 			 gfp_t gfp_mask)
2056 {
2057 	do {
2058 		if (page_counter_read(&memcg->memory) <= memcg->high)
2059 			continue;
2060 		memcg_memory_event(memcg, MEMCG_HIGH);
2061 		try_to_free_mem_cgroup_pages(memcg, nr_pages, gfp_mask, true);
2062 	} while ((memcg = parent_mem_cgroup(memcg)));
2063 }
2064 
2065 static void high_work_func(struct work_struct *work)
2066 {
2067 	struct mem_cgroup *memcg;
2068 
2069 	memcg = container_of(work, struct mem_cgroup, high_work);
2070 	reclaim_high(memcg, MEMCG_CHARGE_BATCH, GFP_KERNEL);
2071 }
2072 
2073 /*
2074  * Scheduled by try_charge() to be executed from the userland return path
2075  * and reclaims memory over the high limit.
2076  */
2077 void mem_cgroup_handle_over_high(void)
2078 {
2079 	unsigned int nr_pages = current->memcg_nr_pages_over_high;
2080 	struct mem_cgroup *memcg;
2081 
2082 	if (likely(!nr_pages))
2083 		return;
2084 
2085 	memcg = get_mem_cgroup_from_mm(current->mm);
2086 	reclaim_high(memcg, nr_pages, GFP_KERNEL);
2087 	css_put(&memcg->css);
2088 	current->memcg_nr_pages_over_high = 0;
2089 }
2090 
2091 static int try_charge(struct mem_cgroup *memcg, gfp_t gfp_mask,
2092 		      unsigned int nr_pages)
2093 {
2094 	unsigned int batch = max(MEMCG_CHARGE_BATCH, nr_pages);
2095 	int nr_retries = MEM_CGROUP_RECLAIM_RETRIES;
2096 	struct mem_cgroup *mem_over_limit;
2097 	struct page_counter *counter;
2098 	unsigned long nr_reclaimed;
2099 	bool may_swap = true;
2100 	bool drained = false;
2101 	bool oomed = false;
2102 	enum oom_status oom_status;
2103 
2104 	if (mem_cgroup_is_root(memcg))
2105 		return 0;
2106 retry:
2107 	if (consume_stock(memcg, nr_pages))
2108 		return 0;
2109 
2110 	if (!do_memsw_account() ||
2111 	    page_counter_try_charge(&memcg->memsw, batch, &counter)) {
2112 		if (page_counter_try_charge(&memcg->memory, batch, &counter))
2113 			goto done_restock;
2114 		if (do_memsw_account())
2115 			page_counter_uncharge(&memcg->memsw, batch);
2116 		mem_over_limit = mem_cgroup_from_counter(counter, memory);
2117 	} else {
2118 		mem_over_limit = mem_cgroup_from_counter(counter, memsw);
2119 		may_swap = false;
2120 	}
2121 
2122 	if (batch > nr_pages) {
2123 		batch = nr_pages;
2124 		goto retry;
2125 	}
2126 
2127 	/*
2128 	 * Unlike in global OOM situations, memcg is not in a physical
2129 	 * memory shortage.  Allow dying and OOM-killed tasks to
2130 	 * bypass the last charges so that they can exit quickly and
2131 	 * free their memory.
2132 	 */
2133 	if (unlikely(tsk_is_oom_victim(current) ||
2134 		     fatal_signal_pending(current) ||
2135 		     current->flags & PF_EXITING))
2136 		goto force;
2137 
2138 	/*
2139 	 * Prevent unbounded recursion when reclaim operations need to
2140 	 * allocate memory. This might exceed the limits temporarily,
2141 	 * but we prefer facilitating memory reclaim and getting back
2142 	 * under the limit over triggering OOM kills in these cases.
2143 	 */
2144 	if (unlikely(current->flags & PF_MEMALLOC))
2145 		goto force;
2146 
2147 	if (unlikely(task_in_memcg_oom(current)))
2148 		goto nomem;
2149 
2150 	if (!gfpflags_allow_blocking(gfp_mask))
2151 		goto nomem;
2152 
2153 	memcg_memory_event(mem_over_limit, MEMCG_MAX);
2154 
2155 	nr_reclaimed = try_to_free_mem_cgroup_pages(mem_over_limit, nr_pages,
2156 						    gfp_mask, may_swap);
2157 
2158 	if (mem_cgroup_margin(mem_over_limit) >= nr_pages)
2159 		goto retry;
2160 
2161 	if (!drained) {
2162 		drain_all_stock(mem_over_limit);
2163 		drained = true;
2164 		goto retry;
2165 	}
2166 
2167 	if (gfp_mask & __GFP_NORETRY)
2168 		goto nomem;
2169 	/*
2170 	 * Even though the limit is exceeded at this point, reclaim
2171 	 * may have been able to free some pages.  Retry the charge
2172 	 * before killing the task.
2173 	 *
2174 	 * Only for regular pages, though: huge pages are rather
2175 	 * unlikely to succeed so close to the limit, and we fall back
2176 	 * to regular pages anyway in case of failure.
2177 	 */
2178 	if (nr_reclaimed && nr_pages <= (1 << PAGE_ALLOC_COSTLY_ORDER))
2179 		goto retry;
2180 	/*
2181 	 * At task move, charge accounts can be doubly counted. So, it's
2182 	 * better to wait until the end of task_move if something is going on.
2183 	 */
2184 	if (mem_cgroup_wait_acct_move(mem_over_limit))
2185 		goto retry;
2186 
2187 	if (nr_retries--)
2188 		goto retry;
2189 
2190 	if (gfp_mask & __GFP_RETRY_MAYFAIL && oomed)
2191 		goto nomem;
2192 
2193 	if (gfp_mask & __GFP_NOFAIL)
2194 		goto force;
2195 
2196 	if (fatal_signal_pending(current))
2197 		goto force;
2198 
2199 	memcg_memory_event(mem_over_limit, MEMCG_OOM);
2200 
2201 	/*
2202 	 * keep retrying as long as the memcg oom killer is able to make
2203 	 * a forward progress or bypass the charge if the oom killer
2204 	 * couldn't make any progress.
2205 	 */
2206 	oom_status = mem_cgroup_oom(mem_over_limit, gfp_mask,
2207 		       get_order(nr_pages * PAGE_SIZE));
2208 	switch (oom_status) {
2209 	case OOM_SUCCESS:
2210 		nr_retries = MEM_CGROUP_RECLAIM_RETRIES;
2211 		oomed = true;
2212 		goto retry;
2213 	case OOM_FAILED:
2214 		goto force;
2215 	default:
2216 		goto nomem;
2217 	}
2218 nomem:
2219 	if (!(gfp_mask & __GFP_NOFAIL))
2220 		return -ENOMEM;
2221 force:
2222 	/*
2223 	 * The allocation either can't fail or will lead to more memory
2224 	 * being freed very soon.  Allow memory usage go over the limit
2225 	 * temporarily by force charging it.
2226 	 */
2227 	page_counter_charge(&memcg->memory, nr_pages);
2228 	if (do_memsw_account())
2229 		page_counter_charge(&memcg->memsw, nr_pages);
2230 	css_get_many(&memcg->css, nr_pages);
2231 
2232 	return 0;
2233 
2234 done_restock:
2235 	css_get_many(&memcg->css, batch);
2236 	if (batch > nr_pages)
2237 		refill_stock(memcg, batch - nr_pages);
2238 
2239 	/*
2240 	 * If the hierarchy is above the normal consumption range, schedule
2241 	 * reclaim on returning to userland.  We can perform reclaim here
2242 	 * if __GFP_RECLAIM but let's always punt for simplicity and so that
2243 	 * GFP_KERNEL can consistently be used during reclaim.  @memcg is
2244 	 * not recorded as it most likely matches current's and won't
2245 	 * change in the meantime.  As high limit is checked again before
2246 	 * reclaim, the cost of mismatch is negligible.
2247 	 */
2248 	do {
2249 		if (page_counter_read(&memcg->memory) > memcg->high) {
2250 			/* Don't bother a random interrupted task */
2251 			if (in_interrupt()) {
2252 				schedule_work(&memcg->high_work);
2253 				break;
2254 			}
2255 			current->memcg_nr_pages_over_high += batch;
2256 			set_notify_resume(current);
2257 			break;
2258 		}
2259 	} while ((memcg = parent_mem_cgroup(memcg)));
2260 
2261 	return 0;
2262 }
2263 
2264 static void cancel_charge(struct mem_cgroup *memcg, unsigned int nr_pages)
2265 {
2266 	if (mem_cgroup_is_root(memcg))
2267 		return;
2268 
2269 	page_counter_uncharge(&memcg->memory, nr_pages);
2270 	if (do_memsw_account())
2271 		page_counter_uncharge(&memcg->memsw, nr_pages);
2272 
2273 	css_put_many(&memcg->css, nr_pages);
2274 }
2275 
2276 static void lock_page_lru(struct page *page, int *isolated)
2277 {
2278 	struct zone *zone = page_zone(page);
2279 
2280 	spin_lock_irq(zone_lru_lock(zone));
2281 	if (PageLRU(page)) {
2282 		struct lruvec *lruvec;
2283 
2284 		lruvec = mem_cgroup_page_lruvec(page, zone->zone_pgdat);
2285 		ClearPageLRU(page);
2286 		del_page_from_lru_list(page, lruvec, page_lru(page));
2287 		*isolated = 1;
2288 	} else
2289 		*isolated = 0;
2290 }
2291 
2292 static void unlock_page_lru(struct page *page, int isolated)
2293 {
2294 	struct zone *zone = page_zone(page);
2295 
2296 	if (isolated) {
2297 		struct lruvec *lruvec;
2298 
2299 		lruvec = mem_cgroup_page_lruvec(page, zone->zone_pgdat);
2300 		VM_BUG_ON_PAGE(PageLRU(page), page);
2301 		SetPageLRU(page);
2302 		add_page_to_lru_list(page, lruvec, page_lru(page));
2303 	}
2304 	spin_unlock_irq(zone_lru_lock(zone));
2305 }
2306 
2307 static void commit_charge(struct page *page, struct mem_cgroup *memcg,
2308 			  bool lrucare)
2309 {
2310 	int isolated;
2311 
2312 	VM_BUG_ON_PAGE(page->mem_cgroup, page);
2313 
2314 	/*
2315 	 * In some cases, SwapCache and FUSE(splice_buf->radixtree), the page
2316 	 * may already be on some other mem_cgroup's LRU.  Take care of it.
2317 	 */
2318 	if (lrucare)
2319 		lock_page_lru(page, &isolated);
2320 
2321 	/*
2322 	 * Nobody should be changing or seriously looking at
2323 	 * page->mem_cgroup at this point:
2324 	 *
2325 	 * - the page is uncharged
2326 	 *
2327 	 * - the page is off-LRU
2328 	 *
2329 	 * - an anonymous fault has exclusive page access, except for
2330 	 *   a locked page table
2331 	 *
2332 	 * - a page cache insertion, a swapin fault, or a migration
2333 	 *   have the page locked
2334 	 */
2335 	page->mem_cgroup = memcg;
2336 
2337 	if (lrucare)
2338 		unlock_page_lru(page, isolated);
2339 }
2340 
2341 #ifdef CONFIG_MEMCG_KMEM
2342 static int memcg_alloc_cache_id(void)
2343 {
2344 	int id, size;
2345 	int err;
2346 
2347 	id = ida_simple_get(&memcg_cache_ida,
2348 			    0, MEMCG_CACHES_MAX_SIZE, GFP_KERNEL);
2349 	if (id < 0)
2350 		return id;
2351 
2352 	if (id < memcg_nr_cache_ids)
2353 		return id;
2354 
2355 	/*
2356 	 * There's no space for the new id in memcg_caches arrays,
2357 	 * so we have to grow them.
2358 	 */
2359 	down_write(&memcg_cache_ids_sem);
2360 
2361 	size = 2 * (id + 1);
2362 	if (size < MEMCG_CACHES_MIN_SIZE)
2363 		size = MEMCG_CACHES_MIN_SIZE;
2364 	else if (size > MEMCG_CACHES_MAX_SIZE)
2365 		size = MEMCG_CACHES_MAX_SIZE;
2366 
2367 	err = memcg_update_all_caches(size);
2368 	if (!err)
2369 		err = memcg_update_all_list_lrus(size);
2370 	if (!err)
2371 		memcg_nr_cache_ids = size;
2372 
2373 	up_write(&memcg_cache_ids_sem);
2374 
2375 	if (err) {
2376 		ida_simple_remove(&memcg_cache_ida, id);
2377 		return err;
2378 	}
2379 	return id;
2380 }
2381 
2382 static void memcg_free_cache_id(int id)
2383 {
2384 	ida_simple_remove(&memcg_cache_ida, id);
2385 }
2386 
2387 struct memcg_kmem_cache_create_work {
2388 	struct mem_cgroup *memcg;
2389 	struct kmem_cache *cachep;
2390 	struct work_struct work;
2391 };
2392 
2393 static void memcg_kmem_cache_create_func(struct work_struct *w)
2394 {
2395 	struct memcg_kmem_cache_create_work *cw =
2396 		container_of(w, struct memcg_kmem_cache_create_work, work);
2397 	struct mem_cgroup *memcg = cw->memcg;
2398 	struct kmem_cache *cachep = cw->cachep;
2399 
2400 	memcg_create_kmem_cache(memcg, cachep);
2401 
2402 	css_put(&memcg->css);
2403 	kfree(cw);
2404 }
2405 
2406 /*
2407  * Enqueue the creation of a per-memcg kmem_cache.
2408  */
2409 static void __memcg_schedule_kmem_cache_create(struct mem_cgroup *memcg,
2410 					       struct kmem_cache *cachep)
2411 {
2412 	struct memcg_kmem_cache_create_work *cw;
2413 
2414 	cw = kmalloc(sizeof(*cw), GFP_NOWAIT | __GFP_NOWARN);
2415 	if (!cw)
2416 		return;
2417 
2418 	css_get(&memcg->css);
2419 
2420 	cw->memcg = memcg;
2421 	cw->cachep = cachep;
2422 	INIT_WORK(&cw->work, memcg_kmem_cache_create_func);
2423 
2424 	queue_work(memcg_kmem_cache_wq, &cw->work);
2425 }
2426 
2427 static void memcg_schedule_kmem_cache_create(struct mem_cgroup *memcg,
2428 					     struct kmem_cache *cachep)
2429 {
2430 	/*
2431 	 * We need to stop accounting when we kmalloc, because if the
2432 	 * corresponding kmalloc cache is not yet created, the first allocation
2433 	 * in __memcg_schedule_kmem_cache_create will recurse.
2434 	 *
2435 	 * However, it is better to enclose the whole function. Depending on
2436 	 * the debugging options enabled, INIT_WORK(), for instance, can
2437 	 * trigger an allocation. This too, will make us recurse. Because at
2438 	 * this point we can't allow ourselves back into memcg_kmem_get_cache,
2439 	 * the safest choice is to do it like this, wrapping the whole function.
2440 	 */
2441 	current->memcg_kmem_skip_account = 1;
2442 	__memcg_schedule_kmem_cache_create(memcg, cachep);
2443 	current->memcg_kmem_skip_account = 0;
2444 }
2445 
2446 static inline bool memcg_kmem_bypass(void)
2447 {
2448 	if (in_interrupt() || !current->mm || (current->flags & PF_KTHREAD))
2449 		return true;
2450 	return false;
2451 }
2452 
2453 /**
2454  * memcg_kmem_get_cache: select the correct per-memcg cache for allocation
2455  * @cachep: the original global kmem cache
2456  *
2457  * Return the kmem_cache we're supposed to use for a slab allocation.
2458  * We try to use the current memcg's version of the cache.
2459  *
2460  * If the cache does not exist yet, if we are the first user of it, we
2461  * create it asynchronously in a workqueue and let the current allocation
2462  * go through with the original cache.
2463  *
2464  * This function takes a reference to the cache it returns to assure it
2465  * won't get destroyed while we are working with it. Once the caller is
2466  * done with it, memcg_kmem_put_cache() must be called to release the
2467  * reference.
2468  */
2469 struct kmem_cache *memcg_kmem_get_cache(struct kmem_cache *cachep)
2470 {
2471 	struct mem_cgroup *memcg;
2472 	struct kmem_cache *memcg_cachep;
2473 	int kmemcg_id;
2474 
2475 	VM_BUG_ON(!is_root_cache(cachep));
2476 
2477 	if (memcg_kmem_bypass())
2478 		return cachep;
2479 
2480 	if (current->memcg_kmem_skip_account)
2481 		return cachep;
2482 
2483 	memcg = get_mem_cgroup_from_current();
2484 	kmemcg_id = READ_ONCE(memcg->kmemcg_id);
2485 	if (kmemcg_id < 0)
2486 		goto out;
2487 
2488 	memcg_cachep = cache_from_memcg_idx(cachep, kmemcg_id);
2489 	if (likely(memcg_cachep))
2490 		return memcg_cachep;
2491 
2492 	/*
2493 	 * If we are in a safe context (can wait, and not in interrupt
2494 	 * context), we could be be predictable and return right away.
2495 	 * This would guarantee that the allocation being performed
2496 	 * already belongs in the new cache.
2497 	 *
2498 	 * However, there are some clashes that can arrive from locking.
2499 	 * For instance, because we acquire the slab_mutex while doing
2500 	 * memcg_create_kmem_cache, this means no further allocation
2501 	 * could happen with the slab_mutex held. So it's better to
2502 	 * defer everything.
2503 	 */
2504 	memcg_schedule_kmem_cache_create(memcg, cachep);
2505 out:
2506 	css_put(&memcg->css);
2507 	return cachep;
2508 }
2509 
2510 /**
2511  * memcg_kmem_put_cache: drop reference taken by memcg_kmem_get_cache
2512  * @cachep: the cache returned by memcg_kmem_get_cache
2513  */
2514 void memcg_kmem_put_cache(struct kmem_cache *cachep)
2515 {
2516 	if (!is_root_cache(cachep))
2517 		css_put(&cachep->memcg_params.memcg->css);
2518 }
2519 
2520 /**
2521  * memcg_kmem_charge_memcg: charge a kmem page
2522  * @page: page to charge
2523  * @gfp: reclaim mode
2524  * @order: allocation order
2525  * @memcg: memory cgroup to charge
2526  *
2527  * Returns 0 on success, an error code on failure.
2528  */
2529 int memcg_kmem_charge_memcg(struct page *page, gfp_t gfp, int order,
2530 			    struct mem_cgroup *memcg)
2531 {
2532 	unsigned int nr_pages = 1 << order;
2533 	struct page_counter *counter;
2534 	int ret;
2535 
2536 	ret = try_charge(memcg, gfp, nr_pages);
2537 	if (ret)
2538 		return ret;
2539 
2540 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys) &&
2541 	    !page_counter_try_charge(&memcg->kmem, nr_pages, &counter)) {
2542 		cancel_charge(memcg, nr_pages);
2543 		return -ENOMEM;
2544 	}
2545 
2546 	page->mem_cgroup = memcg;
2547 
2548 	return 0;
2549 }
2550 
2551 /**
2552  * memcg_kmem_charge: charge a kmem page to the current memory cgroup
2553  * @page: page to charge
2554  * @gfp: reclaim mode
2555  * @order: allocation order
2556  *
2557  * Returns 0 on success, an error code on failure.
2558  */
2559 int memcg_kmem_charge(struct page *page, gfp_t gfp, int order)
2560 {
2561 	struct mem_cgroup *memcg;
2562 	int ret = 0;
2563 
2564 	if (memcg_kmem_bypass())
2565 		return 0;
2566 
2567 	memcg = get_mem_cgroup_from_current();
2568 	if (!mem_cgroup_is_root(memcg)) {
2569 		ret = memcg_kmem_charge_memcg(page, gfp, order, memcg);
2570 		if (!ret)
2571 			__SetPageKmemcg(page);
2572 	}
2573 	css_put(&memcg->css);
2574 	return ret;
2575 }
2576 /**
2577  * memcg_kmem_uncharge: uncharge a kmem page
2578  * @page: page to uncharge
2579  * @order: allocation order
2580  */
2581 void memcg_kmem_uncharge(struct page *page, int order)
2582 {
2583 	struct mem_cgroup *memcg = page->mem_cgroup;
2584 	unsigned int nr_pages = 1 << order;
2585 
2586 	if (!memcg)
2587 		return;
2588 
2589 	VM_BUG_ON_PAGE(mem_cgroup_is_root(memcg), page);
2590 
2591 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys))
2592 		page_counter_uncharge(&memcg->kmem, nr_pages);
2593 
2594 	page_counter_uncharge(&memcg->memory, nr_pages);
2595 	if (do_memsw_account())
2596 		page_counter_uncharge(&memcg->memsw, nr_pages);
2597 
2598 	page->mem_cgroup = NULL;
2599 
2600 	/* slab pages do not have PageKmemcg flag set */
2601 	if (PageKmemcg(page))
2602 		__ClearPageKmemcg(page);
2603 
2604 	css_put_many(&memcg->css, nr_pages);
2605 }
2606 #endif /* CONFIG_MEMCG_KMEM */
2607 
2608 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
2609 
2610 /*
2611  * Because tail pages are not marked as "used", set it. We're under
2612  * zone_lru_lock and migration entries setup in all page mappings.
2613  */
2614 void mem_cgroup_split_huge_fixup(struct page *head)
2615 {
2616 	int i;
2617 
2618 	if (mem_cgroup_disabled())
2619 		return;
2620 
2621 	for (i = 1; i < HPAGE_PMD_NR; i++)
2622 		head[i].mem_cgroup = head->mem_cgroup;
2623 
2624 	__mod_memcg_state(head->mem_cgroup, MEMCG_RSS_HUGE, -HPAGE_PMD_NR);
2625 }
2626 #endif /* CONFIG_TRANSPARENT_HUGEPAGE */
2627 
2628 #ifdef CONFIG_MEMCG_SWAP
2629 /**
2630  * mem_cgroup_move_swap_account - move swap charge and swap_cgroup's record.
2631  * @entry: swap entry to be moved
2632  * @from:  mem_cgroup which the entry is moved from
2633  * @to:  mem_cgroup which the entry is moved to
2634  *
2635  * It succeeds only when the swap_cgroup's record for this entry is the same
2636  * as the mem_cgroup's id of @from.
2637  *
2638  * Returns 0 on success, -EINVAL on failure.
2639  *
2640  * The caller must have charged to @to, IOW, called page_counter_charge() about
2641  * both res and memsw, and called css_get().
2642  */
2643 static int mem_cgroup_move_swap_account(swp_entry_t entry,
2644 				struct mem_cgroup *from, struct mem_cgroup *to)
2645 {
2646 	unsigned short old_id, new_id;
2647 
2648 	old_id = mem_cgroup_id(from);
2649 	new_id = mem_cgroup_id(to);
2650 
2651 	if (swap_cgroup_cmpxchg(entry, old_id, new_id) == old_id) {
2652 		mod_memcg_state(from, MEMCG_SWAP, -1);
2653 		mod_memcg_state(to, MEMCG_SWAP, 1);
2654 		return 0;
2655 	}
2656 	return -EINVAL;
2657 }
2658 #else
2659 static inline int mem_cgroup_move_swap_account(swp_entry_t entry,
2660 				struct mem_cgroup *from, struct mem_cgroup *to)
2661 {
2662 	return -EINVAL;
2663 }
2664 #endif
2665 
2666 static DEFINE_MUTEX(memcg_max_mutex);
2667 
2668 static int mem_cgroup_resize_max(struct mem_cgroup *memcg,
2669 				 unsigned long max, bool memsw)
2670 {
2671 	bool enlarge = false;
2672 	bool drained = false;
2673 	int ret;
2674 	bool limits_invariant;
2675 	struct page_counter *counter = memsw ? &memcg->memsw : &memcg->memory;
2676 
2677 	do {
2678 		if (signal_pending(current)) {
2679 			ret = -EINTR;
2680 			break;
2681 		}
2682 
2683 		mutex_lock(&memcg_max_mutex);
2684 		/*
2685 		 * Make sure that the new limit (memsw or memory limit) doesn't
2686 		 * break our basic invariant rule memory.max <= memsw.max.
2687 		 */
2688 		limits_invariant = memsw ? max >= memcg->memory.max :
2689 					   max <= memcg->memsw.max;
2690 		if (!limits_invariant) {
2691 			mutex_unlock(&memcg_max_mutex);
2692 			ret = -EINVAL;
2693 			break;
2694 		}
2695 		if (max > counter->max)
2696 			enlarge = true;
2697 		ret = page_counter_set_max(counter, max);
2698 		mutex_unlock(&memcg_max_mutex);
2699 
2700 		if (!ret)
2701 			break;
2702 
2703 		if (!drained) {
2704 			drain_all_stock(memcg);
2705 			drained = true;
2706 			continue;
2707 		}
2708 
2709 		if (!try_to_free_mem_cgroup_pages(memcg, 1,
2710 					GFP_KERNEL, !memsw)) {
2711 			ret = -EBUSY;
2712 			break;
2713 		}
2714 	} while (true);
2715 
2716 	if (!ret && enlarge)
2717 		memcg_oom_recover(memcg);
2718 
2719 	return ret;
2720 }
2721 
2722 unsigned long mem_cgroup_soft_limit_reclaim(pg_data_t *pgdat, int order,
2723 					    gfp_t gfp_mask,
2724 					    unsigned long *total_scanned)
2725 {
2726 	unsigned long nr_reclaimed = 0;
2727 	struct mem_cgroup_per_node *mz, *next_mz = NULL;
2728 	unsigned long reclaimed;
2729 	int loop = 0;
2730 	struct mem_cgroup_tree_per_node *mctz;
2731 	unsigned long excess;
2732 	unsigned long nr_scanned;
2733 
2734 	if (order > 0)
2735 		return 0;
2736 
2737 	mctz = soft_limit_tree_node(pgdat->node_id);
2738 
2739 	/*
2740 	 * Do not even bother to check the largest node if the root
2741 	 * is empty. Do it lockless to prevent lock bouncing. Races
2742 	 * are acceptable as soft limit is best effort anyway.
2743 	 */
2744 	if (!mctz || RB_EMPTY_ROOT(&mctz->rb_root))
2745 		return 0;
2746 
2747 	/*
2748 	 * This loop can run a while, specially if mem_cgroup's continuously
2749 	 * keep exceeding their soft limit and putting the system under
2750 	 * pressure
2751 	 */
2752 	do {
2753 		if (next_mz)
2754 			mz = next_mz;
2755 		else
2756 			mz = mem_cgroup_largest_soft_limit_node(mctz);
2757 		if (!mz)
2758 			break;
2759 
2760 		nr_scanned = 0;
2761 		reclaimed = mem_cgroup_soft_reclaim(mz->memcg, pgdat,
2762 						    gfp_mask, &nr_scanned);
2763 		nr_reclaimed += reclaimed;
2764 		*total_scanned += nr_scanned;
2765 		spin_lock_irq(&mctz->lock);
2766 		__mem_cgroup_remove_exceeded(mz, mctz);
2767 
2768 		/*
2769 		 * If we failed to reclaim anything from this memory cgroup
2770 		 * it is time to move on to the next cgroup
2771 		 */
2772 		next_mz = NULL;
2773 		if (!reclaimed)
2774 			next_mz = __mem_cgroup_largest_soft_limit_node(mctz);
2775 
2776 		excess = soft_limit_excess(mz->memcg);
2777 		/*
2778 		 * One school of thought says that we should not add
2779 		 * back the node to the tree if reclaim returns 0.
2780 		 * But our reclaim could return 0, simply because due
2781 		 * to priority we are exposing a smaller subset of
2782 		 * memory to reclaim from. Consider this as a longer
2783 		 * term TODO.
2784 		 */
2785 		/* If excess == 0, no tree ops */
2786 		__mem_cgroup_insert_exceeded(mz, mctz, excess);
2787 		spin_unlock_irq(&mctz->lock);
2788 		css_put(&mz->memcg->css);
2789 		loop++;
2790 		/*
2791 		 * Could not reclaim anything and there are no more
2792 		 * mem cgroups to try or we seem to be looping without
2793 		 * reclaiming anything.
2794 		 */
2795 		if (!nr_reclaimed &&
2796 			(next_mz == NULL ||
2797 			loop > MEM_CGROUP_MAX_SOFT_LIMIT_RECLAIM_LOOPS))
2798 			break;
2799 	} while (!nr_reclaimed);
2800 	if (next_mz)
2801 		css_put(&next_mz->memcg->css);
2802 	return nr_reclaimed;
2803 }
2804 
2805 /*
2806  * Test whether @memcg has children, dead or alive.  Note that this
2807  * function doesn't care whether @memcg has use_hierarchy enabled and
2808  * returns %true if there are child csses according to the cgroup
2809  * hierarchy.  Testing use_hierarchy is the caller's responsiblity.
2810  */
2811 static inline bool memcg_has_children(struct mem_cgroup *memcg)
2812 {
2813 	bool ret;
2814 
2815 	rcu_read_lock();
2816 	ret = css_next_child(NULL, &memcg->css);
2817 	rcu_read_unlock();
2818 	return ret;
2819 }
2820 
2821 /*
2822  * Reclaims as many pages from the given memcg as possible.
2823  *
2824  * Caller is responsible for holding css reference for memcg.
2825  */
2826 static int mem_cgroup_force_empty(struct mem_cgroup *memcg)
2827 {
2828 	int nr_retries = MEM_CGROUP_RECLAIM_RETRIES;
2829 
2830 	/* we call try-to-free pages for make this cgroup empty */
2831 	lru_add_drain_all();
2832 
2833 	drain_all_stock(memcg);
2834 
2835 	/* try to free all pages in this cgroup */
2836 	while (nr_retries && page_counter_read(&memcg->memory)) {
2837 		int progress;
2838 
2839 		if (signal_pending(current))
2840 			return -EINTR;
2841 
2842 		progress = try_to_free_mem_cgroup_pages(memcg, 1,
2843 							GFP_KERNEL, true);
2844 		if (!progress) {
2845 			nr_retries--;
2846 			/* maybe some writeback is necessary */
2847 			congestion_wait(BLK_RW_ASYNC, HZ/10);
2848 		}
2849 
2850 	}
2851 
2852 	return 0;
2853 }
2854 
2855 static ssize_t mem_cgroup_force_empty_write(struct kernfs_open_file *of,
2856 					    char *buf, size_t nbytes,
2857 					    loff_t off)
2858 {
2859 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
2860 
2861 	if (mem_cgroup_is_root(memcg))
2862 		return -EINVAL;
2863 	return mem_cgroup_force_empty(memcg) ?: nbytes;
2864 }
2865 
2866 static u64 mem_cgroup_hierarchy_read(struct cgroup_subsys_state *css,
2867 				     struct cftype *cft)
2868 {
2869 	return mem_cgroup_from_css(css)->use_hierarchy;
2870 }
2871 
2872 static int mem_cgroup_hierarchy_write(struct cgroup_subsys_state *css,
2873 				      struct cftype *cft, u64 val)
2874 {
2875 	int retval = 0;
2876 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
2877 	struct mem_cgroup *parent_memcg = mem_cgroup_from_css(memcg->css.parent);
2878 
2879 	if (memcg->use_hierarchy == val)
2880 		return 0;
2881 
2882 	/*
2883 	 * If parent's use_hierarchy is set, we can't make any modifications
2884 	 * in the child subtrees. If it is unset, then the change can
2885 	 * occur, provided the current cgroup has no children.
2886 	 *
2887 	 * For the root cgroup, parent_mem is NULL, we allow value to be
2888 	 * set if there are no children.
2889 	 */
2890 	if ((!parent_memcg || !parent_memcg->use_hierarchy) &&
2891 				(val == 1 || val == 0)) {
2892 		if (!memcg_has_children(memcg))
2893 			memcg->use_hierarchy = val;
2894 		else
2895 			retval = -EBUSY;
2896 	} else
2897 		retval = -EINVAL;
2898 
2899 	return retval;
2900 }
2901 
2902 static void tree_stat(struct mem_cgroup *memcg, unsigned long *stat)
2903 {
2904 	struct mem_cgroup *iter;
2905 	int i;
2906 
2907 	memset(stat, 0, sizeof(*stat) * MEMCG_NR_STAT);
2908 
2909 	for_each_mem_cgroup_tree(iter, memcg) {
2910 		for (i = 0; i < MEMCG_NR_STAT; i++)
2911 			stat[i] += memcg_page_state(iter, i);
2912 	}
2913 }
2914 
2915 static void tree_events(struct mem_cgroup *memcg, unsigned long *events)
2916 {
2917 	struct mem_cgroup *iter;
2918 	int i;
2919 
2920 	memset(events, 0, sizeof(*events) * NR_VM_EVENT_ITEMS);
2921 
2922 	for_each_mem_cgroup_tree(iter, memcg) {
2923 		for (i = 0; i < NR_VM_EVENT_ITEMS; i++)
2924 			events[i] += memcg_sum_events(iter, i);
2925 	}
2926 }
2927 
2928 static unsigned long mem_cgroup_usage(struct mem_cgroup *memcg, bool swap)
2929 {
2930 	unsigned long val = 0;
2931 
2932 	if (mem_cgroup_is_root(memcg)) {
2933 		struct mem_cgroup *iter;
2934 
2935 		for_each_mem_cgroup_tree(iter, memcg) {
2936 			val += memcg_page_state(iter, MEMCG_CACHE);
2937 			val += memcg_page_state(iter, MEMCG_RSS);
2938 			if (swap)
2939 				val += memcg_page_state(iter, MEMCG_SWAP);
2940 		}
2941 	} else {
2942 		if (!swap)
2943 			val = page_counter_read(&memcg->memory);
2944 		else
2945 			val = page_counter_read(&memcg->memsw);
2946 	}
2947 	return val;
2948 }
2949 
2950 enum {
2951 	RES_USAGE,
2952 	RES_LIMIT,
2953 	RES_MAX_USAGE,
2954 	RES_FAILCNT,
2955 	RES_SOFT_LIMIT,
2956 };
2957 
2958 static u64 mem_cgroup_read_u64(struct cgroup_subsys_state *css,
2959 			       struct cftype *cft)
2960 {
2961 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
2962 	struct page_counter *counter;
2963 
2964 	switch (MEMFILE_TYPE(cft->private)) {
2965 	case _MEM:
2966 		counter = &memcg->memory;
2967 		break;
2968 	case _MEMSWAP:
2969 		counter = &memcg->memsw;
2970 		break;
2971 	case _KMEM:
2972 		counter = &memcg->kmem;
2973 		break;
2974 	case _TCP:
2975 		counter = &memcg->tcpmem;
2976 		break;
2977 	default:
2978 		BUG();
2979 	}
2980 
2981 	switch (MEMFILE_ATTR(cft->private)) {
2982 	case RES_USAGE:
2983 		if (counter == &memcg->memory)
2984 			return (u64)mem_cgroup_usage(memcg, false) * PAGE_SIZE;
2985 		if (counter == &memcg->memsw)
2986 			return (u64)mem_cgroup_usage(memcg, true) * PAGE_SIZE;
2987 		return (u64)page_counter_read(counter) * PAGE_SIZE;
2988 	case RES_LIMIT:
2989 		return (u64)counter->max * PAGE_SIZE;
2990 	case RES_MAX_USAGE:
2991 		return (u64)counter->watermark * PAGE_SIZE;
2992 	case RES_FAILCNT:
2993 		return counter->failcnt;
2994 	case RES_SOFT_LIMIT:
2995 		return (u64)memcg->soft_limit * PAGE_SIZE;
2996 	default:
2997 		BUG();
2998 	}
2999 }
3000 
3001 #ifdef CONFIG_MEMCG_KMEM
3002 static int memcg_online_kmem(struct mem_cgroup *memcg)
3003 {
3004 	int memcg_id;
3005 
3006 	if (cgroup_memory_nokmem)
3007 		return 0;
3008 
3009 	BUG_ON(memcg->kmemcg_id >= 0);
3010 	BUG_ON(memcg->kmem_state);
3011 
3012 	memcg_id = memcg_alloc_cache_id();
3013 	if (memcg_id < 0)
3014 		return memcg_id;
3015 
3016 	static_branch_inc(&memcg_kmem_enabled_key);
3017 	/*
3018 	 * A memory cgroup is considered kmem-online as soon as it gets
3019 	 * kmemcg_id. Setting the id after enabling static branching will
3020 	 * guarantee no one starts accounting before all call sites are
3021 	 * patched.
3022 	 */
3023 	memcg->kmemcg_id = memcg_id;
3024 	memcg->kmem_state = KMEM_ONLINE;
3025 	INIT_LIST_HEAD(&memcg->kmem_caches);
3026 
3027 	return 0;
3028 }
3029 
3030 static void memcg_offline_kmem(struct mem_cgroup *memcg)
3031 {
3032 	struct cgroup_subsys_state *css;
3033 	struct mem_cgroup *parent, *child;
3034 	int kmemcg_id;
3035 
3036 	if (memcg->kmem_state != KMEM_ONLINE)
3037 		return;
3038 	/*
3039 	 * Clear the online state before clearing memcg_caches array
3040 	 * entries. The slab_mutex in memcg_deactivate_kmem_caches()
3041 	 * guarantees that no cache will be created for this cgroup
3042 	 * after we are done (see memcg_create_kmem_cache()).
3043 	 */
3044 	memcg->kmem_state = KMEM_ALLOCATED;
3045 
3046 	memcg_deactivate_kmem_caches(memcg);
3047 
3048 	kmemcg_id = memcg->kmemcg_id;
3049 	BUG_ON(kmemcg_id < 0);
3050 
3051 	parent = parent_mem_cgroup(memcg);
3052 	if (!parent)
3053 		parent = root_mem_cgroup;
3054 
3055 	/*
3056 	 * Change kmemcg_id of this cgroup and all its descendants to the
3057 	 * parent's id, and then move all entries from this cgroup's list_lrus
3058 	 * to ones of the parent. After we have finished, all list_lrus
3059 	 * corresponding to this cgroup are guaranteed to remain empty. The
3060 	 * ordering is imposed by list_lru_node->lock taken by
3061 	 * memcg_drain_all_list_lrus().
3062 	 */
3063 	rcu_read_lock(); /* can be called from css_free w/o cgroup_mutex */
3064 	css_for_each_descendant_pre(css, &memcg->css) {
3065 		child = mem_cgroup_from_css(css);
3066 		BUG_ON(child->kmemcg_id != kmemcg_id);
3067 		child->kmemcg_id = parent->kmemcg_id;
3068 		if (!memcg->use_hierarchy)
3069 			break;
3070 	}
3071 	rcu_read_unlock();
3072 
3073 	memcg_drain_all_list_lrus(kmemcg_id, parent);
3074 
3075 	memcg_free_cache_id(kmemcg_id);
3076 }
3077 
3078 static void memcg_free_kmem(struct mem_cgroup *memcg)
3079 {
3080 	/* css_alloc() failed, offlining didn't happen */
3081 	if (unlikely(memcg->kmem_state == KMEM_ONLINE))
3082 		memcg_offline_kmem(memcg);
3083 
3084 	if (memcg->kmem_state == KMEM_ALLOCATED) {
3085 		memcg_destroy_kmem_caches(memcg);
3086 		static_branch_dec(&memcg_kmem_enabled_key);
3087 		WARN_ON(page_counter_read(&memcg->kmem));
3088 	}
3089 }
3090 #else
3091 static int memcg_online_kmem(struct mem_cgroup *memcg)
3092 {
3093 	return 0;
3094 }
3095 static void memcg_offline_kmem(struct mem_cgroup *memcg)
3096 {
3097 }
3098 static void memcg_free_kmem(struct mem_cgroup *memcg)
3099 {
3100 }
3101 #endif /* CONFIG_MEMCG_KMEM */
3102 
3103 static int memcg_update_kmem_max(struct mem_cgroup *memcg,
3104 				 unsigned long max)
3105 {
3106 	int ret;
3107 
3108 	mutex_lock(&memcg_max_mutex);
3109 	ret = page_counter_set_max(&memcg->kmem, max);
3110 	mutex_unlock(&memcg_max_mutex);
3111 	return ret;
3112 }
3113 
3114 static int memcg_update_tcp_max(struct mem_cgroup *memcg, unsigned long max)
3115 {
3116 	int ret;
3117 
3118 	mutex_lock(&memcg_max_mutex);
3119 
3120 	ret = page_counter_set_max(&memcg->tcpmem, max);
3121 	if (ret)
3122 		goto out;
3123 
3124 	if (!memcg->tcpmem_active) {
3125 		/*
3126 		 * The active flag needs to be written after the static_key
3127 		 * update. This is what guarantees that the socket activation
3128 		 * function is the last one to run. See mem_cgroup_sk_alloc()
3129 		 * for details, and note that we don't mark any socket as
3130 		 * belonging to this memcg until that flag is up.
3131 		 *
3132 		 * We need to do this, because static_keys will span multiple
3133 		 * sites, but we can't control their order. If we mark a socket
3134 		 * as accounted, but the accounting functions are not patched in
3135 		 * yet, we'll lose accounting.
3136 		 *
3137 		 * We never race with the readers in mem_cgroup_sk_alloc(),
3138 		 * because when this value change, the code to process it is not
3139 		 * patched in yet.
3140 		 */
3141 		static_branch_inc(&memcg_sockets_enabled_key);
3142 		memcg->tcpmem_active = true;
3143 	}
3144 out:
3145 	mutex_unlock(&memcg_max_mutex);
3146 	return ret;
3147 }
3148 
3149 /*
3150  * The user of this function is...
3151  * RES_LIMIT.
3152  */
3153 static ssize_t mem_cgroup_write(struct kernfs_open_file *of,
3154 				char *buf, size_t nbytes, loff_t off)
3155 {
3156 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
3157 	unsigned long nr_pages;
3158 	int ret;
3159 
3160 	buf = strstrip(buf);
3161 	ret = page_counter_memparse(buf, "-1", &nr_pages);
3162 	if (ret)
3163 		return ret;
3164 
3165 	switch (MEMFILE_ATTR(of_cft(of)->private)) {
3166 	case RES_LIMIT:
3167 		if (mem_cgroup_is_root(memcg)) { /* Can't set limit on root */
3168 			ret = -EINVAL;
3169 			break;
3170 		}
3171 		switch (MEMFILE_TYPE(of_cft(of)->private)) {
3172 		case _MEM:
3173 			ret = mem_cgroup_resize_max(memcg, nr_pages, false);
3174 			break;
3175 		case _MEMSWAP:
3176 			ret = mem_cgroup_resize_max(memcg, nr_pages, true);
3177 			break;
3178 		case _KMEM:
3179 			ret = memcg_update_kmem_max(memcg, nr_pages);
3180 			break;
3181 		case _TCP:
3182 			ret = memcg_update_tcp_max(memcg, nr_pages);
3183 			break;
3184 		}
3185 		break;
3186 	case RES_SOFT_LIMIT:
3187 		memcg->soft_limit = nr_pages;
3188 		ret = 0;
3189 		break;
3190 	}
3191 	return ret ?: nbytes;
3192 }
3193 
3194 static ssize_t mem_cgroup_reset(struct kernfs_open_file *of, char *buf,
3195 				size_t nbytes, loff_t off)
3196 {
3197 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
3198 	struct page_counter *counter;
3199 
3200 	switch (MEMFILE_TYPE(of_cft(of)->private)) {
3201 	case _MEM:
3202 		counter = &memcg->memory;
3203 		break;
3204 	case _MEMSWAP:
3205 		counter = &memcg->memsw;
3206 		break;
3207 	case _KMEM:
3208 		counter = &memcg->kmem;
3209 		break;
3210 	case _TCP:
3211 		counter = &memcg->tcpmem;
3212 		break;
3213 	default:
3214 		BUG();
3215 	}
3216 
3217 	switch (MEMFILE_ATTR(of_cft(of)->private)) {
3218 	case RES_MAX_USAGE:
3219 		page_counter_reset_watermark(counter);
3220 		break;
3221 	case RES_FAILCNT:
3222 		counter->failcnt = 0;
3223 		break;
3224 	default:
3225 		BUG();
3226 	}
3227 
3228 	return nbytes;
3229 }
3230 
3231 static u64 mem_cgroup_move_charge_read(struct cgroup_subsys_state *css,
3232 					struct cftype *cft)
3233 {
3234 	return mem_cgroup_from_css(css)->move_charge_at_immigrate;
3235 }
3236 
3237 #ifdef CONFIG_MMU
3238 static int mem_cgroup_move_charge_write(struct cgroup_subsys_state *css,
3239 					struct cftype *cft, u64 val)
3240 {
3241 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
3242 
3243 	if (val & ~MOVE_MASK)
3244 		return -EINVAL;
3245 
3246 	/*
3247 	 * No kind of locking is needed in here, because ->can_attach() will
3248 	 * check this value once in the beginning of the process, and then carry
3249 	 * on with stale data. This means that changes to this value will only
3250 	 * affect task migrations starting after the change.
3251 	 */
3252 	memcg->move_charge_at_immigrate = val;
3253 	return 0;
3254 }
3255 #else
3256 static int mem_cgroup_move_charge_write(struct cgroup_subsys_state *css,
3257 					struct cftype *cft, u64 val)
3258 {
3259 	return -ENOSYS;
3260 }
3261 #endif
3262 
3263 #ifdef CONFIG_NUMA
3264 static int memcg_numa_stat_show(struct seq_file *m, void *v)
3265 {
3266 	struct numa_stat {
3267 		const char *name;
3268 		unsigned int lru_mask;
3269 	};
3270 
3271 	static const struct numa_stat stats[] = {
3272 		{ "total", LRU_ALL },
3273 		{ "file", LRU_ALL_FILE },
3274 		{ "anon", LRU_ALL_ANON },
3275 		{ "unevictable", BIT(LRU_UNEVICTABLE) },
3276 	};
3277 	const struct numa_stat *stat;
3278 	int nid;
3279 	unsigned long nr;
3280 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
3281 
3282 	for (stat = stats; stat < stats + ARRAY_SIZE(stats); stat++) {
3283 		nr = mem_cgroup_nr_lru_pages(memcg, stat->lru_mask);
3284 		seq_printf(m, "%s=%lu", stat->name, nr);
3285 		for_each_node_state(nid, N_MEMORY) {
3286 			nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
3287 							  stat->lru_mask);
3288 			seq_printf(m, " N%d=%lu", nid, nr);
3289 		}
3290 		seq_putc(m, '\n');
3291 	}
3292 
3293 	for (stat = stats; stat < stats + ARRAY_SIZE(stats); stat++) {
3294 		struct mem_cgroup *iter;
3295 
3296 		nr = 0;
3297 		for_each_mem_cgroup_tree(iter, memcg)
3298 			nr += mem_cgroup_nr_lru_pages(iter, stat->lru_mask);
3299 		seq_printf(m, "hierarchical_%s=%lu", stat->name, nr);
3300 		for_each_node_state(nid, N_MEMORY) {
3301 			nr = 0;
3302 			for_each_mem_cgroup_tree(iter, memcg)
3303 				nr += mem_cgroup_node_nr_lru_pages(
3304 					iter, nid, stat->lru_mask);
3305 			seq_printf(m, " N%d=%lu", nid, nr);
3306 		}
3307 		seq_putc(m, '\n');
3308 	}
3309 
3310 	return 0;
3311 }
3312 #endif /* CONFIG_NUMA */
3313 
3314 /* Universal VM events cgroup1 shows, original sort order */
3315 static const unsigned int memcg1_events[] = {
3316 	PGPGIN,
3317 	PGPGOUT,
3318 	PGFAULT,
3319 	PGMAJFAULT,
3320 };
3321 
3322 static const char *const memcg1_event_names[] = {
3323 	"pgpgin",
3324 	"pgpgout",
3325 	"pgfault",
3326 	"pgmajfault",
3327 };
3328 
3329 static int memcg_stat_show(struct seq_file *m, void *v)
3330 {
3331 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
3332 	unsigned long memory, memsw;
3333 	struct mem_cgroup *mi;
3334 	unsigned int i;
3335 
3336 	BUILD_BUG_ON(ARRAY_SIZE(memcg1_stat_names) != ARRAY_SIZE(memcg1_stats));
3337 	BUILD_BUG_ON(ARRAY_SIZE(mem_cgroup_lru_names) != NR_LRU_LISTS);
3338 
3339 	for (i = 0; i < ARRAY_SIZE(memcg1_stats); i++) {
3340 		if (memcg1_stats[i] == MEMCG_SWAP && !do_memsw_account())
3341 			continue;
3342 		seq_printf(m, "%s %lu\n", memcg1_stat_names[i],
3343 			   memcg_page_state(memcg, memcg1_stats[i]) *
3344 			   PAGE_SIZE);
3345 	}
3346 
3347 	for (i = 0; i < ARRAY_SIZE(memcg1_events); i++)
3348 		seq_printf(m, "%s %lu\n", memcg1_event_names[i],
3349 			   memcg_sum_events(memcg, memcg1_events[i]));
3350 
3351 	for (i = 0; i < NR_LRU_LISTS; i++)
3352 		seq_printf(m, "%s %lu\n", mem_cgroup_lru_names[i],
3353 			   mem_cgroup_nr_lru_pages(memcg, BIT(i)) * PAGE_SIZE);
3354 
3355 	/* Hierarchical information */
3356 	memory = memsw = PAGE_COUNTER_MAX;
3357 	for (mi = memcg; mi; mi = parent_mem_cgroup(mi)) {
3358 		memory = min(memory, mi->memory.max);
3359 		memsw = min(memsw, mi->memsw.max);
3360 	}
3361 	seq_printf(m, "hierarchical_memory_limit %llu\n",
3362 		   (u64)memory * PAGE_SIZE);
3363 	if (do_memsw_account())
3364 		seq_printf(m, "hierarchical_memsw_limit %llu\n",
3365 			   (u64)memsw * PAGE_SIZE);
3366 
3367 	for (i = 0; i < ARRAY_SIZE(memcg1_stats); i++) {
3368 		unsigned long long val = 0;
3369 
3370 		if (memcg1_stats[i] == MEMCG_SWAP && !do_memsw_account())
3371 			continue;
3372 		for_each_mem_cgroup_tree(mi, memcg)
3373 			val += memcg_page_state(mi, memcg1_stats[i]) *
3374 			PAGE_SIZE;
3375 		seq_printf(m, "total_%s %llu\n", memcg1_stat_names[i], val);
3376 	}
3377 
3378 	for (i = 0; i < ARRAY_SIZE(memcg1_events); i++) {
3379 		unsigned long long val = 0;
3380 
3381 		for_each_mem_cgroup_tree(mi, memcg)
3382 			val += memcg_sum_events(mi, memcg1_events[i]);
3383 		seq_printf(m, "total_%s %llu\n", memcg1_event_names[i], val);
3384 	}
3385 
3386 	for (i = 0; i < NR_LRU_LISTS; i++) {
3387 		unsigned long long val = 0;
3388 
3389 		for_each_mem_cgroup_tree(mi, memcg)
3390 			val += mem_cgroup_nr_lru_pages(mi, BIT(i)) * PAGE_SIZE;
3391 		seq_printf(m, "total_%s %llu\n", mem_cgroup_lru_names[i], val);
3392 	}
3393 
3394 #ifdef CONFIG_DEBUG_VM
3395 	{
3396 		pg_data_t *pgdat;
3397 		struct mem_cgroup_per_node *mz;
3398 		struct zone_reclaim_stat *rstat;
3399 		unsigned long recent_rotated[2] = {0, 0};
3400 		unsigned long recent_scanned[2] = {0, 0};
3401 
3402 		for_each_online_pgdat(pgdat) {
3403 			mz = mem_cgroup_nodeinfo(memcg, pgdat->node_id);
3404 			rstat = &mz->lruvec.reclaim_stat;
3405 
3406 			recent_rotated[0] += rstat->recent_rotated[0];
3407 			recent_rotated[1] += rstat->recent_rotated[1];
3408 			recent_scanned[0] += rstat->recent_scanned[0];
3409 			recent_scanned[1] += rstat->recent_scanned[1];
3410 		}
3411 		seq_printf(m, "recent_rotated_anon %lu\n", recent_rotated[0]);
3412 		seq_printf(m, "recent_rotated_file %lu\n", recent_rotated[1]);
3413 		seq_printf(m, "recent_scanned_anon %lu\n", recent_scanned[0]);
3414 		seq_printf(m, "recent_scanned_file %lu\n", recent_scanned[1]);
3415 	}
3416 #endif
3417 
3418 	return 0;
3419 }
3420 
3421 static u64 mem_cgroup_swappiness_read(struct cgroup_subsys_state *css,
3422 				      struct cftype *cft)
3423 {
3424 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
3425 
3426 	return mem_cgroup_swappiness(memcg);
3427 }
3428 
3429 static int mem_cgroup_swappiness_write(struct cgroup_subsys_state *css,
3430 				       struct cftype *cft, u64 val)
3431 {
3432 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
3433 
3434 	if (val > 100)
3435 		return -EINVAL;
3436 
3437 	if (css->parent)
3438 		memcg->swappiness = val;
3439 	else
3440 		vm_swappiness = val;
3441 
3442 	return 0;
3443 }
3444 
3445 static void __mem_cgroup_threshold(struct mem_cgroup *memcg, bool swap)
3446 {
3447 	struct mem_cgroup_threshold_ary *t;
3448 	unsigned long usage;
3449 	int i;
3450 
3451 	rcu_read_lock();
3452 	if (!swap)
3453 		t = rcu_dereference(memcg->thresholds.primary);
3454 	else
3455 		t = rcu_dereference(memcg->memsw_thresholds.primary);
3456 
3457 	if (!t)
3458 		goto unlock;
3459 
3460 	usage = mem_cgroup_usage(memcg, swap);
3461 
3462 	/*
3463 	 * current_threshold points to threshold just below or equal to usage.
3464 	 * If it's not true, a threshold was crossed after last
3465 	 * call of __mem_cgroup_threshold().
3466 	 */
3467 	i = t->current_threshold;
3468 
3469 	/*
3470 	 * Iterate backward over array of thresholds starting from
3471 	 * current_threshold and check if a threshold is crossed.
3472 	 * If none of thresholds below usage is crossed, we read
3473 	 * only one element of the array here.
3474 	 */
3475 	for (; i >= 0 && unlikely(t->entries[i].threshold > usage); i--)
3476 		eventfd_signal(t->entries[i].eventfd, 1);
3477 
3478 	/* i = current_threshold + 1 */
3479 	i++;
3480 
3481 	/*
3482 	 * Iterate forward over array of thresholds starting from
3483 	 * current_threshold+1 and check if a threshold is crossed.
3484 	 * If none of thresholds above usage is crossed, we read
3485 	 * only one element of the array here.
3486 	 */
3487 	for (; i < t->size && unlikely(t->entries[i].threshold <= usage); i++)
3488 		eventfd_signal(t->entries[i].eventfd, 1);
3489 
3490 	/* Update current_threshold */
3491 	t->current_threshold = i - 1;
3492 unlock:
3493 	rcu_read_unlock();
3494 }
3495 
3496 static void mem_cgroup_threshold(struct mem_cgroup *memcg)
3497 {
3498 	while (memcg) {
3499 		__mem_cgroup_threshold(memcg, false);
3500 		if (do_memsw_account())
3501 			__mem_cgroup_threshold(memcg, true);
3502 
3503 		memcg = parent_mem_cgroup(memcg);
3504 	}
3505 }
3506 
3507 static int compare_thresholds(const void *a, const void *b)
3508 {
3509 	const struct mem_cgroup_threshold *_a = a;
3510 	const struct mem_cgroup_threshold *_b = b;
3511 
3512 	if (_a->threshold > _b->threshold)
3513 		return 1;
3514 
3515 	if (_a->threshold < _b->threshold)
3516 		return -1;
3517 
3518 	return 0;
3519 }
3520 
3521 static int mem_cgroup_oom_notify_cb(struct mem_cgroup *memcg)
3522 {
3523 	struct mem_cgroup_eventfd_list *ev;
3524 
3525 	spin_lock(&memcg_oom_lock);
3526 
3527 	list_for_each_entry(ev, &memcg->oom_notify, list)
3528 		eventfd_signal(ev->eventfd, 1);
3529 
3530 	spin_unlock(&memcg_oom_lock);
3531 	return 0;
3532 }
3533 
3534 static void mem_cgroup_oom_notify(struct mem_cgroup *memcg)
3535 {
3536 	struct mem_cgroup *iter;
3537 
3538 	for_each_mem_cgroup_tree(iter, memcg)
3539 		mem_cgroup_oom_notify_cb(iter);
3540 }
3541 
3542 static int __mem_cgroup_usage_register_event(struct mem_cgroup *memcg,
3543 	struct eventfd_ctx *eventfd, const char *args, enum res_type type)
3544 {
3545 	struct mem_cgroup_thresholds *thresholds;
3546 	struct mem_cgroup_threshold_ary *new;
3547 	unsigned long threshold;
3548 	unsigned long usage;
3549 	int i, size, ret;
3550 
3551 	ret = page_counter_memparse(args, "-1", &threshold);
3552 	if (ret)
3553 		return ret;
3554 
3555 	mutex_lock(&memcg->thresholds_lock);
3556 
3557 	if (type == _MEM) {
3558 		thresholds = &memcg->thresholds;
3559 		usage = mem_cgroup_usage(memcg, false);
3560 	} else if (type == _MEMSWAP) {
3561 		thresholds = &memcg->memsw_thresholds;
3562 		usage = mem_cgroup_usage(memcg, true);
3563 	} else
3564 		BUG();
3565 
3566 	/* Check if a threshold crossed before adding a new one */
3567 	if (thresholds->primary)
3568 		__mem_cgroup_threshold(memcg, type == _MEMSWAP);
3569 
3570 	size = thresholds->primary ? thresholds->primary->size + 1 : 1;
3571 
3572 	/* Allocate memory for new array of thresholds */
3573 	new = kmalloc(sizeof(*new) + size * sizeof(struct mem_cgroup_threshold),
3574 			GFP_KERNEL);
3575 	if (!new) {
3576 		ret = -ENOMEM;
3577 		goto unlock;
3578 	}
3579 	new->size = size;
3580 
3581 	/* Copy thresholds (if any) to new array */
3582 	if (thresholds->primary) {
3583 		memcpy(new->entries, thresholds->primary->entries, (size - 1) *
3584 				sizeof(struct mem_cgroup_threshold));
3585 	}
3586 
3587 	/* Add new threshold */
3588 	new->entries[size - 1].eventfd = eventfd;
3589 	new->entries[size - 1].threshold = threshold;
3590 
3591 	/* Sort thresholds. Registering of new threshold isn't time-critical */
3592 	sort(new->entries, size, sizeof(struct mem_cgroup_threshold),
3593 			compare_thresholds, NULL);
3594 
3595 	/* Find current threshold */
3596 	new->current_threshold = -1;
3597 	for (i = 0; i < size; i++) {
3598 		if (new->entries[i].threshold <= usage) {
3599 			/*
3600 			 * new->current_threshold will not be used until
3601 			 * rcu_assign_pointer(), so it's safe to increment
3602 			 * it here.
3603 			 */
3604 			++new->current_threshold;
3605 		} else
3606 			break;
3607 	}
3608 
3609 	/* Free old spare buffer and save old primary buffer as spare */
3610 	kfree(thresholds->spare);
3611 	thresholds->spare = thresholds->primary;
3612 
3613 	rcu_assign_pointer(thresholds->primary, new);
3614 
3615 	/* To be sure that nobody uses thresholds */
3616 	synchronize_rcu();
3617 
3618 unlock:
3619 	mutex_unlock(&memcg->thresholds_lock);
3620 
3621 	return ret;
3622 }
3623 
3624 static int mem_cgroup_usage_register_event(struct mem_cgroup *memcg,
3625 	struct eventfd_ctx *eventfd, const char *args)
3626 {
3627 	return __mem_cgroup_usage_register_event(memcg, eventfd, args, _MEM);
3628 }
3629 
3630 static int memsw_cgroup_usage_register_event(struct mem_cgroup *memcg,
3631 	struct eventfd_ctx *eventfd, const char *args)
3632 {
3633 	return __mem_cgroup_usage_register_event(memcg, eventfd, args, _MEMSWAP);
3634 }
3635 
3636 static void __mem_cgroup_usage_unregister_event(struct mem_cgroup *memcg,
3637 	struct eventfd_ctx *eventfd, enum res_type type)
3638 {
3639 	struct mem_cgroup_thresholds *thresholds;
3640 	struct mem_cgroup_threshold_ary *new;
3641 	unsigned long usage;
3642 	int i, j, size;
3643 
3644 	mutex_lock(&memcg->thresholds_lock);
3645 
3646 	if (type == _MEM) {
3647 		thresholds = &memcg->thresholds;
3648 		usage = mem_cgroup_usage(memcg, false);
3649 	} else if (type == _MEMSWAP) {
3650 		thresholds = &memcg->memsw_thresholds;
3651 		usage = mem_cgroup_usage(memcg, true);
3652 	} else
3653 		BUG();
3654 
3655 	if (!thresholds->primary)
3656 		goto unlock;
3657 
3658 	/* Check if a threshold crossed before removing */
3659 	__mem_cgroup_threshold(memcg, type == _MEMSWAP);
3660 
3661 	/* Calculate new number of threshold */
3662 	size = 0;
3663 	for (i = 0; i < thresholds->primary->size; i++) {
3664 		if (thresholds->primary->entries[i].eventfd != eventfd)
3665 			size++;
3666 	}
3667 
3668 	new = thresholds->spare;
3669 
3670 	/* Set thresholds array to NULL if we don't have thresholds */
3671 	if (!size) {
3672 		kfree(new);
3673 		new = NULL;
3674 		goto swap_buffers;
3675 	}
3676 
3677 	new->size = size;
3678 
3679 	/* Copy thresholds and find current threshold */
3680 	new->current_threshold = -1;
3681 	for (i = 0, j = 0; i < thresholds->primary->size; i++) {
3682 		if (thresholds->primary->entries[i].eventfd == eventfd)
3683 			continue;
3684 
3685 		new->entries[j] = thresholds->primary->entries[i];
3686 		if (new->entries[j].threshold <= usage) {
3687 			/*
3688 			 * new->current_threshold will not be used
3689 			 * until rcu_assign_pointer(), so it's safe to increment
3690 			 * it here.
3691 			 */
3692 			++new->current_threshold;
3693 		}
3694 		j++;
3695 	}
3696 
3697 swap_buffers:
3698 	/* Swap primary and spare array */
3699 	thresholds->spare = thresholds->primary;
3700 
3701 	rcu_assign_pointer(thresholds->primary, new);
3702 
3703 	/* To be sure that nobody uses thresholds */
3704 	synchronize_rcu();
3705 
3706 	/* If all events are unregistered, free the spare array */
3707 	if (!new) {
3708 		kfree(thresholds->spare);
3709 		thresholds->spare = NULL;
3710 	}
3711 unlock:
3712 	mutex_unlock(&memcg->thresholds_lock);
3713 }
3714 
3715 static void mem_cgroup_usage_unregister_event(struct mem_cgroup *memcg,
3716 	struct eventfd_ctx *eventfd)
3717 {
3718 	return __mem_cgroup_usage_unregister_event(memcg, eventfd, _MEM);
3719 }
3720 
3721 static void memsw_cgroup_usage_unregister_event(struct mem_cgroup *memcg,
3722 	struct eventfd_ctx *eventfd)
3723 {
3724 	return __mem_cgroup_usage_unregister_event(memcg, eventfd, _MEMSWAP);
3725 }
3726 
3727 static int mem_cgroup_oom_register_event(struct mem_cgroup *memcg,
3728 	struct eventfd_ctx *eventfd, const char *args)
3729 {
3730 	struct mem_cgroup_eventfd_list *event;
3731 
3732 	event = kmalloc(sizeof(*event),	GFP_KERNEL);
3733 	if (!event)
3734 		return -ENOMEM;
3735 
3736 	spin_lock(&memcg_oom_lock);
3737 
3738 	event->eventfd = eventfd;
3739 	list_add(&event->list, &memcg->oom_notify);
3740 
3741 	/* already in OOM ? */
3742 	if (memcg->under_oom)
3743 		eventfd_signal(eventfd, 1);
3744 	spin_unlock(&memcg_oom_lock);
3745 
3746 	return 0;
3747 }
3748 
3749 static void mem_cgroup_oom_unregister_event(struct mem_cgroup *memcg,
3750 	struct eventfd_ctx *eventfd)
3751 {
3752 	struct mem_cgroup_eventfd_list *ev, *tmp;
3753 
3754 	spin_lock(&memcg_oom_lock);
3755 
3756 	list_for_each_entry_safe(ev, tmp, &memcg->oom_notify, list) {
3757 		if (ev->eventfd == eventfd) {
3758 			list_del(&ev->list);
3759 			kfree(ev);
3760 		}
3761 	}
3762 
3763 	spin_unlock(&memcg_oom_lock);
3764 }
3765 
3766 static int mem_cgroup_oom_control_read(struct seq_file *sf, void *v)
3767 {
3768 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(sf));
3769 
3770 	seq_printf(sf, "oom_kill_disable %d\n", memcg->oom_kill_disable);
3771 	seq_printf(sf, "under_oom %d\n", (bool)memcg->under_oom);
3772 	seq_printf(sf, "oom_kill %lu\n",
3773 		   atomic_long_read(&memcg->memory_events[MEMCG_OOM_KILL]));
3774 	return 0;
3775 }
3776 
3777 static int mem_cgroup_oom_control_write(struct cgroup_subsys_state *css,
3778 	struct cftype *cft, u64 val)
3779 {
3780 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
3781 
3782 	/* cannot set to root cgroup and only 0 and 1 are allowed */
3783 	if (!css->parent || !((val == 0) || (val == 1)))
3784 		return -EINVAL;
3785 
3786 	memcg->oom_kill_disable = val;
3787 	if (!val)
3788 		memcg_oom_recover(memcg);
3789 
3790 	return 0;
3791 }
3792 
3793 #ifdef CONFIG_CGROUP_WRITEBACK
3794 
3795 static int memcg_wb_domain_init(struct mem_cgroup *memcg, gfp_t gfp)
3796 {
3797 	return wb_domain_init(&memcg->cgwb_domain, gfp);
3798 }
3799 
3800 static void memcg_wb_domain_exit(struct mem_cgroup *memcg)
3801 {
3802 	wb_domain_exit(&memcg->cgwb_domain);
3803 }
3804 
3805 static void memcg_wb_domain_size_changed(struct mem_cgroup *memcg)
3806 {
3807 	wb_domain_size_changed(&memcg->cgwb_domain);
3808 }
3809 
3810 struct wb_domain *mem_cgroup_wb_domain(struct bdi_writeback *wb)
3811 {
3812 	struct mem_cgroup *memcg = mem_cgroup_from_css(wb->memcg_css);
3813 
3814 	if (!memcg->css.parent)
3815 		return NULL;
3816 
3817 	return &memcg->cgwb_domain;
3818 }
3819 
3820 /**
3821  * mem_cgroup_wb_stats - retrieve writeback related stats from its memcg
3822  * @wb: bdi_writeback in question
3823  * @pfilepages: out parameter for number of file pages
3824  * @pheadroom: out parameter for number of allocatable pages according to memcg
3825  * @pdirty: out parameter for number of dirty pages
3826  * @pwriteback: out parameter for number of pages under writeback
3827  *
3828  * Determine the numbers of file, headroom, dirty, and writeback pages in
3829  * @wb's memcg.  File, dirty and writeback are self-explanatory.  Headroom
3830  * is a bit more involved.
3831  *
3832  * A memcg's headroom is "min(max, high) - used".  In the hierarchy, the
3833  * headroom is calculated as the lowest headroom of itself and the
3834  * ancestors.  Note that this doesn't consider the actual amount of
3835  * available memory in the system.  The caller should further cap
3836  * *@pheadroom accordingly.
3837  */
3838 void mem_cgroup_wb_stats(struct bdi_writeback *wb, unsigned long *pfilepages,
3839 			 unsigned long *pheadroom, unsigned long *pdirty,
3840 			 unsigned long *pwriteback)
3841 {
3842 	struct mem_cgroup *memcg = mem_cgroup_from_css(wb->memcg_css);
3843 	struct mem_cgroup *parent;
3844 
3845 	*pdirty = memcg_page_state(memcg, NR_FILE_DIRTY);
3846 
3847 	/* this should eventually include NR_UNSTABLE_NFS */
3848 	*pwriteback = memcg_page_state(memcg, NR_WRITEBACK);
3849 	*pfilepages = mem_cgroup_nr_lru_pages(memcg, (1 << LRU_INACTIVE_FILE) |
3850 						     (1 << LRU_ACTIVE_FILE));
3851 	*pheadroom = PAGE_COUNTER_MAX;
3852 
3853 	while ((parent = parent_mem_cgroup(memcg))) {
3854 		unsigned long ceiling = min(memcg->memory.max, memcg->high);
3855 		unsigned long used = page_counter_read(&memcg->memory);
3856 
3857 		*pheadroom = min(*pheadroom, ceiling - min(ceiling, used));
3858 		memcg = parent;
3859 	}
3860 }
3861 
3862 #else	/* CONFIG_CGROUP_WRITEBACK */
3863 
3864 static int memcg_wb_domain_init(struct mem_cgroup *memcg, gfp_t gfp)
3865 {
3866 	return 0;
3867 }
3868 
3869 static void memcg_wb_domain_exit(struct mem_cgroup *memcg)
3870 {
3871 }
3872 
3873 static void memcg_wb_domain_size_changed(struct mem_cgroup *memcg)
3874 {
3875 }
3876 
3877 #endif	/* CONFIG_CGROUP_WRITEBACK */
3878 
3879 /*
3880  * DO NOT USE IN NEW FILES.
3881  *
3882  * "cgroup.event_control" implementation.
3883  *
3884  * This is way over-engineered.  It tries to support fully configurable
3885  * events for each user.  Such level of flexibility is completely
3886  * unnecessary especially in the light of the planned unified hierarchy.
3887  *
3888  * Please deprecate this and replace with something simpler if at all
3889  * possible.
3890  */
3891 
3892 /*
3893  * Unregister event and free resources.
3894  *
3895  * Gets called from workqueue.
3896  */
3897 static void memcg_event_remove(struct work_struct *work)
3898 {
3899 	struct mem_cgroup_event *event =
3900 		container_of(work, struct mem_cgroup_event, remove);
3901 	struct mem_cgroup *memcg = event->memcg;
3902 
3903 	remove_wait_queue(event->wqh, &event->wait);
3904 
3905 	event->unregister_event(memcg, event->eventfd);
3906 
3907 	/* Notify userspace the event is going away. */
3908 	eventfd_signal(event->eventfd, 1);
3909 
3910 	eventfd_ctx_put(event->eventfd);
3911 	kfree(event);
3912 	css_put(&memcg->css);
3913 }
3914 
3915 /*
3916  * Gets called on EPOLLHUP on eventfd when user closes it.
3917  *
3918  * Called with wqh->lock held and interrupts disabled.
3919  */
3920 static int memcg_event_wake(wait_queue_entry_t *wait, unsigned mode,
3921 			    int sync, void *key)
3922 {
3923 	struct mem_cgroup_event *event =
3924 		container_of(wait, struct mem_cgroup_event, wait);
3925 	struct mem_cgroup *memcg = event->memcg;
3926 	__poll_t flags = key_to_poll(key);
3927 
3928 	if (flags & EPOLLHUP) {
3929 		/*
3930 		 * If the event has been detached at cgroup removal, we
3931 		 * can simply return knowing the other side will cleanup
3932 		 * for us.
3933 		 *
3934 		 * We can't race against event freeing since the other
3935 		 * side will require wqh->lock via remove_wait_queue(),
3936 		 * which we hold.
3937 		 */
3938 		spin_lock(&memcg->event_list_lock);
3939 		if (!list_empty(&event->list)) {
3940 			list_del_init(&event->list);
3941 			/*
3942 			 * We are in atomic context, but cgroup_event_remove()
3943 			 * may sleep, so we have to call it in workqueue.
3944 			 */
3945 			schedule_work(&event->remove);
3946 		}
3947 		spin_unlock(&memcg->event_list_lock);
3948 	}
3949 
3950 	return 0;
3951 }
3952 
3953 static void memcg_event_ptable_queue_proc(struct file *file,
3954 		wait_queue_head_t *wqh, poll_table *pt)
3955 {
3956 	struct mem_cgroup_event *event =
3957 		container_of(pt, struct mem_cgroup_event, pt);
3958 
3959 	event->wqh = wqh;
3960 	add_wait_queue(wqh, &event->wait);
3961 }
3962 
3963 /*
3964  * DO NOT USE IN NEW FILES.
3965  *
3966  * Parse input and register new cgroup event handler.
3967  *
3968  * Input must be in format '<event_fd> <control_fd> <args>'.
3969  * Interpretation of args is defined by control file implementation.
3970  */
3971 static ssize_t memcg_write_event_control(struct kernfs_open_file *of,
3972 					 char *buf, size_t nbytes, loff_t off)
3973 {
3974 	struct cgroup_subsys_state *css = of_css(of);
3975 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
3976 	struct mem_cgroup_event *event;
3977 	struct cgroup_subsys_state *cfile_css;
3978 	unsigned int efd, cfd;
3979 	struct fd efile;
3980 	struct fd cfile;
3981 	const char *name;
3982 	char *endp;
3983 	int ret;
3984 
3985 	buf = strstrip(buf);
3986 
3987 	efd = simple_strtoul(buf, &endp, 10);
3988 	if (*endp != ' ')
3989 		return -EINVAL;
3990 	buf = endp + 1;
3991 
3992 	cfd = simple_strtoul(buf, &endp, 10);
3993 	if ((*endp != ' ') && (*endp != '\0'))
3994 		return -EINVAL;
3995 	buf = endp + 1;
3996 
3997 	event = kzalloc(sizeof(*event), GFP_KERNEL);
3998 	if (!event)
3999 		return -ENOMEM;
4000 
4001 	event->memcg = memcg;
4002 	INIT_LIST_HEAD(&event->list);
4003 	init_poll_funcptr(&event->pt, memcg_event_ptable_queue_proc);
4004 	init_waitqueue_func_entry(&event->wait, memcg_event_wake);
4005 	INIT_WORK(&event->remove, memcg_event_remove);
4006 
4007 	efile = fdget(efd);
4008 	if (!efile.file) {
4009 		ret = -EBADF;
4010 		goto out_kfree;
4011 	}
4012 
4013 	event->eventfd = eventfd_ctx_fileget(efile.file);
4014 	if (IS_ERR(event->eventfd)) {
4015 		ret = PTR_ERR(event->eventfd);
4016 		goto out_put_efile;
4017 	}
4018 
4019 	cfile = fdget(cfd);
4020 	if (!cfile.file) {
4021 		ret = -EBADF;
4022 		goto out_put_eventfd;
4023 	}
4024 
4025 	/* the process need read permission on control file */
4026 	/* AV: shouldn't we check that it's been opened for read instead? */
4027 	ret = inode_permission(file_inode(cfile.file), MAY_READ);
4028 	if (ret < 0)
4029 		goto out_put_cfile;
4030 
4031 	/*
4032 	 * Determine the event callbacks and set them in @event.  This used
4033 	 * to be done via struct cftype but cgroup core no longer knows
4034 	 * about these events.  The following is crude but the whole thing
4035 	 * is for compatibility anyway.
4036 	 *
4037 	 * DO NOT ADD NEW FILES.
4038 	 */
4039 	name = cfile.file->f_path.dentry->d_name.name;
4040 
4041 	if (!strcmp(name, "memory.usage_in_bytes")) {
4042 		event->register_event = mem_cgroup_usage_register_event;
4043 		event->unregister_event = mem_cgroup_usage_unregister_event;
4044 	} else if (!strcmp(name, "memory.oom_control")) {
4045 		event->register_event = mem_cgroup_oom_register_event;
4046 		event->unregister_event = mem_cgroup_oom_unregister_event;
4047 	} else if (!strcmp(name, "memory.pressure_level")) {
4048 		event->register_event = vmpressure_register_event;
4049 		event->unregister_event = vmpressure_unregister_event;
4050 	} else if (!strcmp(name, "memory.memsw.usage_in_bytes")) {
4051 		event->register_event = memsw_cgroup_usage_register_event;
4052 		event->unregister_event = memsw_cgroup_usage_unregister_event;
4053 	} else {
4054 		ret = -EINVAL;
4055 		goto out_put_cfile;
4056 	}
4057 
4058 	/*
4059 	 * Verify @cfile should belong to @css.  Also, remaining events are
4060 	 * automatically removed on cgroup destruction but the removal is
4061 	 * asynchronous, so take an extra ref on @css.
4062 	 */
4063 	cfile_css = css_tryget_online_from_dir(cfile.file->f_path.dentry->d_parent,
4064 					       &memory_cgrp_subsys);
4065 	ret = -EINVAL;
4066 	if (IS_ERR(cfile_css))
4067 		goto out_put_cfile;
4068 	if (cfile_css != css) {
4069 		css_put(cfile_css);
4070 		goto out_put_cfile;
4071 	}
4072 
4073 	ret = event->register_event(memcg, event->eventfd, buf);
4074 	if (ret)
4075 		goto out_put_css;
4076 
4077 	vfs_poll(efile.file, &event->pt);
4078 
4079 	spin_lock(&memcg->event_list_lock);
4080 	list_add(&event->list, &memcg->event_list);
4081 	spin_unlock(&memcg->event_list_lock);
4082 
4083 	fdput(cfile);
4084 	fdput(efile);
4085 
4086 	return nbytes;
4087 
4088 out_put_css:
4089 	css_put(css);
4090 out_put_cfile:
4091 	fdput(cfile);
4092 out_put_eventfd:
4093 	eventfd_ctx_put(event->eventfd);
4094 out_put_efile:
4095 	fdput(efile);
4096 out_kfree:
4097 	kfree(event);
4098 
4099 	return ret;
4100 }
4101 
4102 static struct cftype mem_cgroup_legacy_files[] = {
4103 	{
4104 		.name = "usage_in_bytes",
4105 		.private = MEMFILE_PRIVATE(_MEM, RES_USAGE),
4106 		.read_u64 = mem_cgroup_read_u64,
4107 	},
4108 	{
4109 		.name = "max_usage_in_bytes",
4110 		.private = MEMFILE_PRIVATE(_MEM, RES_MAX_USAGE),
4111 		.write = mem_cgroup_reset,
4112 		.read_u64 = mem_cgroup_read_u64,
4113 	},
4114 	{
4115 		.name = "limit_in_bytes",
4116 		.private = MEMFILE_PRIVATE(_MEM, RES_LIMIT),
4117 		.write = mem_cgroup_write,
4118 		.read_u64 = mem_cgroup_read_u64,
4119 	},
4120 	{
4121 		.name = "soft_limit_in_bytes",
4122 		.private = MEMFILE_PRIVATE(_MEM, RES_SOFT_LIMIT),
4123 		.write = mem_cgroup_write,
4124 		.read_u64 = mem_cgroup_read_u64,
4125 	},
4126 	{
4127 		.name = "failcnt",
4128 		.private = MEMFILE_PRIVATE(_MEM, RES_FAILCNT),
4129 		.write = mem_cgroup_reset,
4130 		.read_u64 = mem_cgroup_read_u64,
4131 	},
4132 	{
4133 		.name = "stat",
4134 		.seq_show = memcg_stat_show,
4135 	},
4136 	{
4137 		.name = "force_empty",
4138 		.write = mem_cgroup_force_empty_write,
4139 	},
4140 	{
4141 		.name = "use_hierarchy",
4142 		.write_u64 = mem_cgroup_hierarchy_write,
4143 		.read_u64 = mem_cgroup_hierarchy_read,
4144 	},
4145 	{
4146 		.name = "cgroup.event_control",		/* XXX: for compat */
4147 		.write = memcg_write_event_control,
4148 		.flags = CFTYPE_NO_PREFIX | CFTYPE_WORLD_WRITABLE,
4149 	},
4150 	{
4151 		.name = "swappiness",
4152 		.read_u64 = mem_cgroup_swappiness_read,
4153 		.write_u64 = mem_cgroup_swappiness_write,
4154 	},
4155 	{
4156 		.name = "move_charge_at_immigrate",
4157 		.read_u64 = mem_cgroup_move_charge_read,
4158 		.write_u64 = mem_cgroup_move_charge_write,
4159 	},
4160 	{
4161 		.name = "oom_control",
4162 		.seq_show = mem_cgroup_oom_control_read,
4163 		.write_u64 = mem_cgroup_oom_control_write,
4164 		.private = MEMFILE_PRIVATE(_OOM_TYPE, OOM_CONTROL),
4165 	},
4166 	{
4167 		.name = "pressure_level",
4168 	},
4169 #ifdef CONFIG_NUMA
4170 	{
4171 		.name = "numa_stat",
4172 		.seq_show = memcg_numa_stat_show,
4173 	},
4174 #endif
4175 	{
4176 		.name = "kmem.limit_in_bytes",
4177 		.private = MEMFILE_PRIVATE(_KMEM, RES_LIMIT),
4178 		.write = mem_cgroup_write,
4179 		.read_u64 = mem_cgroup_read_u64,
4180 	},
4181 	{
4182 		.name = "kmem.usage_in_bytes",
4183 		.private = MEMFILE_PRIVATE(_KMEM, RES_USAGE),
4184 		.read_u64 = mem_cgroup_read_u64,
4185 	},
4186 	{
4187 		.name = "kmem.failcnt",
4188 		.private = MEMFILE_PRIVATE(_KMEM, RES_FAILCNT),
4189 		.write = mem_cgroup_reset,
4190 		.read_u64 = mem_cgroup_read_u64,
4191 	},
4192 	{
4193 		.name = "kmem.max_usage_in_bytes",
4194 		.private = MEMFILE_PRIVATE(_KMEM, RES_MAX_USAGE),
4195 		.write = mem_cgroup_reset,
4196 		.read_u64 = mem_cgroup_read_u64,
4197 	},
4198 #if defined(CONFIG_SLAB) || defined(CONFIG_SLUB_DEBUG)
4199 	{
4200 		.name = "kmem.slabinfo",
4201 		.seq_start = memcg_slab_start,
4202 		.seq_next = memcg_slab_next,
4203 		.seq_stop = memcg_slab_stop,
4204 		.seq_show = memcg_slab_show,
4205 	},
4206 #endif
4207 	{
4208 		.name = "kmem.tcp.limit_in_bytes",
4209 		.private = MEMFILE_PRIVATE(_TCP, RES_LIMIT),
4210 		.write = mem_cgroup_write,
4211 		.read_u64 = mem_cgroup_read_u64,
4212 	},
4213 	{
4214 		.name = "kmem.tcp.usage_in_bytes",
4215 		.private = MEMFILE_PRIVATE(_TCP, RES_USAGE),
4216 		.read_u64 = mem_cgroup_read_u64,
4217 	},
4218 	{
4219 		.name = "kmem.tcp.failcnt",
4220 		.private = MEMFILE_PRIVATE(_TCP, RES_FAILCNT),
4221 		.write = mem_cgroup_reset,
4222 		.read_u64 = mem_cgroup_read_u64,
4223 	},
4224 	{
4225 		.name = "kmem.tcp.max_usage_in_bytes",
4226 		.private = MEMFILE_PRIVATE(_TCP, RES_MAX_USAGE),
4227 		.write = mem_cgroup_reset,
4228 		.read_u64 = mem_cgroup_read_u64,
4229 	},
4230 	{ },	/* terminate */
4231 };
4232 
4233 /*
4234  * Private memory cgroup IDR
4235  *
4236  * Swap-out records and page cache shadow entries need to store memcg
4237  * references in constrained space, so we maintain an ID space that is
4238  * limited to 16 bit (MEM_CGROUP_ID_MAX), limiting the total number of
4239  * memory-controlled cgroups to 64k.
4240  *
4241  * However, there usually are many references to the oflline CSS after
4242  * the cgroup has been destroyed, such as page cache or reclaimable
4243  * slab objects, that don't need to hang on to the ID. We want to keep
4244  * those dead CSS from occupying IDs, or we might quickly exhaust the
4245  * relatively small ID space and prevent the creation of new cgroups
4246  * even when there are much fewer than 64k cgroups - possibly none.
4247  *
4248  * Maintain a private 16-bit ID space for memcg, and allow the ID to
4249  * be freed and recycled when it's no longer needed, which is usually
4250  * when the CSS is offlined.
4251  *
4252  * The only exception to that are records of swapped out tmpfs/shmem
4253  * pages that need to be attributed to live ancestors on swapin. But
4254  * those references are manageable from userspace.
4255  */
4256 
4257 static DEFINE_IDR(mem_cgroup_idr);
4258 
4259 static void mem_cgroup_id_remove(struct mem_cgroup *memcg)
4260 {
4261 	if (memcg->id.id > 0) {
4262 		idr_remove(&mem_cgroup_idr, memcg->id.id);
4263 		memcg->id.id = 0;
4264 	}
4265 }
4266 
4267 static void mem_cgroup_id_get_many(struct mem_cgroup *memcg, unsigned int n)
4268 {
4269 	VM_BUG_ON(atomic_read(&memcg->id.ref) <= 0);
4270 	atomic_add(n, &memcg->id.ref);
4271 }
4272 
4273 static void mem_cgroup_id_put_many(struct mem_cgroup *memcg, unsigned int n)
4274 {
4275 	VM_BUG_ON(atomic_read(&memcg->id.ref) < n);
4276 	if (atomic_sub_and_test(n, &memcg->id.ref)) {
4277 		mem_cgroup_id_remove(memcg);
4278 
4279 		/* Memcg ID pins CSS */
4280 		css_put(&memcg->css);
4281 	}
4282 }
4283 
4284 static inline void mem_cgroup_id_get(struct mem_cgroup *memcg)
4285 {
4286 	mem_cgroup_id_get_many(memcg, 1);
4287 }
4288 
4289 static inline void mem_cgroup_id_put(struct mem_cgroup *memcg)
4290 {
4291 	mem_cgroup_id_put_many(memcg, 1);
4292 }
4293 
4294 /**
4295  * mem_cgroup_from_id - look up a memcg from a memcg id
4296  * @id: the memcg id to look up
4297  *
4298  * Caller must hold rcu_read_lock().
4299  */
4300 struct mem_cgroup *mem_cgroup_from_id(unsigned short id)
4301 {
4302 	WARN_ON_ONCE(!rcu_read_lock_held());
4303 	return idr_find(&mem_cgroup_idr, id);
4304 }
4305 
4306 static int alloc_mem_cgroup_per_node_info(struct mem_cgroup *memcg, int node)
4307 {
4308 	struct mem_cgroup_per_node *pn;
4309 	int tmp = node;
4310 	/*
4311 	 * This routine is called against possible nodes.
4312 	 * But it's BUG to call kmalloc() against offline node.
4313 	 *
4314 	 * TODO: this routine can waste much memory for nodes which will
4315 	 *       never be onlined. It's better to use memory hotplug callback
4316 	 *       function.
4317 	 */
4318 	if (!node_state(node, N_NORMAL_MEMORY))
4319 		tmp = -1;
4320 	pn = kzalloc_node(sizeof(*pn), GFP_KERNEL, tmp);
4321 	if (!pn)
4322 		return 1;
4323 
4324 	pn->lruvec_stat_cpu = alloc_percpu(struct lruvec_stat);
4325 	if (!pn->lruvec_stat_cpu) {
4326 		kfree(pn);
4327 		return 1;
4328 	}
4329 
4330 	lruvec_init(&pn->lruvec);
4331 	pn->usage_in_excess = 0;
4332 	pn->on_tree = false;
4333 	pn->memcg = memcg;
4334 
4335 	memcg->nodeinfo[node] = pn;
4336 	return 0;
4337 }
4338 
4339 static void free_mem_cgroup_per_node_info(struct mem_cgroup *memcg, int node)
4340 {
4341 	struct mem_cgroup_per_node *pn = memcg->nodeinfo[node];
4342 
4343 	if (!pn)
4344 		return;
4345 
4346 	free_percpu(pn->lruvec_stat_cpu);
4347 	kfree(pn);
4348 }
4349 
4350 static void __mem_cgroup_free(struct mem_cgroup *memcg)
4351 {
4352 	int node;
4353 
4354 	for_each_node(node)
4355 		free_mem_cgroup_per_node_info(memcg, node);
4356 	free_percpu(memcg->stat_cpu);
4357 	kfree(memcg);
4358 }
4359 
4360 static void mem_cgroup_free(struct mem_cgroup *memcg)
4361 {
4362 	memcg_wb_domain_exit(memcg);
4363 	__mem_cgroup_free(memcg);
4364 }
4365 
4366 static struct mem_cgroup *mem_cgroup_alloc(void)
4367 {
4368 	struct mem_cgroup *memcg;
4369 	size_t size;
4370 	int node;
4371 
4372 	size = sizeof(struct mem_cgroup);
4373 	size += nr_node_ids * sizeof(struct mem_cgroup_per_node *);
4374 
4375 	memcg = kzalloc(size, GFP_KERNEL);
4376 	if (!memcg)
4377 		return NULL;
4378 
4379 	memcg->id.id = idr_alloc(&mem_cgroup_idr, NULL,
4380 				 1, MEM_CGROUP_ID_MAX,
4381 				 GFP_KERNEL);
4382 	if (memcg->id.id < 0)
4383 		goto fail;
4384 
4385 	memcg->stat_cpu = alloc_percpu(struct mem_cgroup_stat_cpu);
4386 	if (!memcg->stat_cpu)
4387 		goto fail;
4388 
4389 	for_each_node(node)
4390 		if (alloc_mem_cgroup_per_node_info(memcg, node))
4391 			goto fail;
4392 
4393 	if (memcg_wb_domain_init(memcg, GFP_KERNEL))
4394 		goto fail;
4395 
4396 	INIT_WORK(&memcg->high_work, high_work_func);
4397 	memcg->last_scanned_node = MAX_NUMNODES;
4398 	INIT_LIST_HEAD(&memcg->oom_notify);
4399 	mutex_init(&memcg->thresholds_lock);
4400 	spin_lock_init(&memcg->move_lock);
4401 	vmpressure_init(&memcg->vmpressure);
4402 	INIT_LIST_HEAD(&memcg->event_list);
4403 	spin_lock_init(&memcg->event_list_lock);
4404 	memcg->socket_pressure = jiffies;
4405 #ifdef CONFIG_MEMCG_KMEM
4406 	memcg->kmemcg_id = -1;
4407 #endif
4408 #ifdef CONFIG_CGROUP_WRITEBACK
4409 	INIT_LIST_HEAD(&memcg->cgwb_list);
4410 #endif
4411 	idr_replace(&mem_cgroup_idr, memcg, memcg->id.id);
4412 	return memcg;
4413 fail:
4414 	mem_cgroup_id_remove(memcg);
4415 	__mem_cgroup_free(memcg);
4416 	return NULL;
4417 }
4418 
4419 static struct cgroup_subsys_state * __ref
4420 mem_cgroup_css_alloc(struct cgroup_subsys_state *parent_css)
4421 {
4422 	struct mem_cgroup *parent = mem_cgroup_from_css(parent_css);
4423 	struct mem_cgroup *memcg;
4424 	long error = -ENOMEM;
4425 
4426 	memcg = mem_cgroup_alloc();
4427 	if (!memcg)
4428 		return ERR_PTR(error);
4429 
4430 	memcg->high = PAGE_COUNTER_MAX;
4431 	memcg->soft_limit = PAGE_COUNTER_MAX;
4432 	if (parent) {
4433 		memcg->swappiness = mem_cgroup_swappiness(parent);
4434 		memcg->oom_kill_disable = parent->oom_kill_disable;
4435 	}
4436 	if (parent && parent->use_hierarchy) {
4437 		memcg->use_hierarchy = true;
4438 		page_counter_init(&memcg->memory, &parent->memory);
4439 		page_counter_init(&memcg->swap, &parent->swap);
4440 		page_counter_init(&memcg->memsw, &parent->memsw);
4441 		page_counter_init(&memcg->kmem, &parent->kmem);
4442 		page_counter_init(&memcg->tcpmem, &parent->tcpmem);
4443 	} else {
4444 		page_counter_init(&memcg->memory, NULL);
4445 		page_counter_init(&memcg->swap, NULL);
4446 		page_counter_init(&memcg->memsw, NULL);
4447 		page_counter_init(&memcg->kmem, NULL);
4448 		page_counter_init(&memcg->tcpmem, NULL);
4449 		/*
4450 		 * Deeper hierachy with use_hierarchy == false doesn't make
4451 		 * much sense so let cgroup subsystem know about this
4452 		 * unfortunate state in our controller.
4453 		 */
4454 		if (parent != root_mem_cgroup)
4455 			memory_cgrp_subsys.broken_hierarchy = true;
4456 	}
4457 
4458 	/* The following stuff does not apply to the root */
4459 	if (!parent) {
4460 		root_mem_cgroup = memcg;
4461 		return &memcg->css;
4462 	}
4463 
4464 	error = memcg_online_kmem(memcg);
4465 	if (error)
4466 		goto fail;
4467 
4468 	if (cgroup_subsys_on_dfl(memory_cgrp_subsys) && !cgroup_memory_nosocket)
4469 		static_branch_inc(&memcg_sockets_enabled_key);
4470 
4471 	return &memcg->css;
4472 fail:
4473 	mem_cgroup_id_remove(memcg);
4474 	mem_cgroup_free(memcg);
4475 	return ERR_PTR(-ENOMEM);
4476 }
4477 
4478 static int mem_cgroup_css_online(struct cgroup_subsys_state *css)
4479 {
4480 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
4481 
4482 	/*
4483 	 * A memcg must be visible for memcg_expand_shrinker_maps()
4484 	 * by the time the maps are allocated. So, we allocate maps
4485 	 * here, when for_each_mem_cgroup() can't skip it.
4486 	 */
4487 	if (memcg_alloc_shrinker_maps(memcg)) {
4488 		mem_cgroup_id_remove(memcg);
4489 		return -ENOMEM;
4490 	}
4491 
4492 	/* Online state pins memcg ID, memcg ID pins CSS */
4493 	atomic_set(&memcg->id.ref, 1);
4494 	css_get(css);
4495 	return 0;
4496 }
4497 
4498 static void mem_cgroup_css_offline(struct cgroup_subsys_state *css)
4499 {
4500 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
4501 	struct mem_cgroup_event *event, *tmp;
4502 
4503 	/*
4504 	 * Unregister events and notify userspace.
4505 	 * Notify userspace about cgroup removing only after rmdir of cgroup
4506 	 * directory to avoid race between userspace and kernelspace.
4507 	 */
4508 	spin_lock(&memcg->event_list_lock);
4509 	list_for_each_entry_safe(event, tmp, &memcg->event_list, list) {
4510 		list_del_init(&event->list);
4511 		schedule_work(&event->remove);
4512 	}
4513 	spin_unlock(&memcg->event_list_lock);
4514 
4515 	page_counter_set_min(&memcg->memory, 0);
4516 	page_counter_set_low(&memcg->memory, 0);
4517 
4518 	memcg_offline_kmem(memcg);
4519 	wb_memcg_offline(memcg);
4520 
4521 	mem_cgroup_id_put(memcg);
4522 }
4523 
4524 static void mem_cgroup_css_released(struct cgroup_subsys_state *css)
4525 {
4526 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
4527 
4528 	invalidate_reclaim_iterators(memcg);
4529 }
4530 
4531 static void mem_cgroup_css_free(struct cgroup_subsys_state *css)
4532 {
4533 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
4534 
4535 	if (cgroup_subsys_on_dfl(memory_cgrp_subsys) && !cgroup_memory_nosocket)
4536 		static_branch_dec(&memcg_sockets_enabled_key);
4537 
4538 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys) && memcg->tcpmem_active)
4539 		static_branch_dec(&memcg_sockets_enabled_key);
4540 
4541 	vmpressure_cleanup(&memcg->vmpressure);
4542 	cancel_work_sync(&memcg->high_work);
4543 	mem_cgroup_remove_from_trees(memcg);
4544 	memcg_free_shrinker_maps(memcg);
4545 	memcg_free_kmem(memcg);
4546 	mem_cgroup_free(memcg);
4547 }
4548 
4549 /**
4550  * mem_cgroup_css_reset - reset the states of a mem_cgroup
4551  * @css: the target css
4552  *
4553  * Reset the states of the mem_cgroup associated with @css.  This is
4554  * invoked when the userland requests disabling on the default hierarchy
4555  * but the memcg is pinned through dependency.  The memcg should stop
4556  * applying policies and should revert to the vanilla state as it may be
4557  * made visible again.
4558  *
4559  * The current implementation only resets the essential configurations.
4560  * This needs to be expanded to cover all the visible parts.
4561  */
4562 static void mem_cgroup_css_reset(struct cgroup_subsys_state *css)
4563 {
4564 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
4565 
4566 	page_counter_set_max(&memcg->memory, PAGE_COUNTER_MAX);
4567 	page_counter_set_max(&memcg->swap, PAGE_COUNTER_MAX);
4568 	page_counter_set_max(&memcg->memsw, PAGE_COUNTER_MAX);
4569 	page_counter_set_max(&memcg->kmem, PAGE_COUNTER_MAX);
4570 	page_counter_set_max(&memcg->tcpmem, PAGE_COUNTER_MAX);
4571 	page_counter_set_min(&memcg->memory, 0);
4572 	page_counter_set_low(&memcg->memory, 0);
4573 	memcg->high = PAGE_COUNTER_MAX;
4574 	memcg->soft_limit = PAGE_COUNTER_MAX;
4575 	memcg_wb_domain_size_changed(memcg);
4576 }
4577 
4578 #ifdef CONFIG_MMU
4579 /* Handlers for move charge at task migration. */
4580 static int mem_cgroup_do_precharge(unsigned long count)
4581 {
4582 	int ret;
4583 
4584 	/* Try a single bulk charge without reclaim first, kswapd may wake */
4585 	ret = try_charge(mc.to, GFP_KERNEL & ~__GFP_DIRECT_RECLAIM, count);
4586 	if (!ret) {
4587 		mc.precharge += count;
4588 		return ret;
4589 	}
4590 
4591 	/* Try charges one by one with reclaim, but do not retry */
4592 	while (count--) {
4593 		ret = try_charge(mc.to, GFP_KERNEL | __GFP_NORETRY, 1);
4594 		if (ret)
4595 			return ret;
4596 		mc.precharge++;
4597 		cond_resched();
4598 	}
4599 	return 0;
4600 }
4601 
4602 union mc_target {
4603 	struct page	*page;
4604 	swp_entry_t	ent;
4605 };
4606 
4607 enum mc_target_type {
4608 	MC_TARGET_NONE = 0,
4609 	MC_TARGET_PAGE,
4610 	MC_TARGET_SWAP,
4611 	MC_TARGET_DEVICE,
4612 };
4613 
4614 static struct page *mc_handle_present_pte(struct vm_area_struct *vma,
4615 						unsigned long addr, pte_t ptent)
4616 {
4617 	struct page *page = _vm_normal_page(vma, addr, ptent, true);
4618 
4619 	if (!page || !page_mapped(page))
4620 		return NULL;
4621 	if (PageAnon(page)) {
4622 		if (!(mc.flags & MOVE_ANON))
4623 			return NULL;
4624 	} else {
4625 		if (!(mc.flags & MOVE_FILE))
4626 			return NULL;
4627 	}
4628 	if (!get_page_unless_zero(page))
4629 		return NULL;
4630 
4631 	return page;
4632 }
4633 
4634 #if defined(CONFIG_SWAP) || defined(CONFIG_DEVICE_PRIVATE)
4635 static struct page *mc_handle_swap_pte(struct vm_area_struct *vma,
4636 			pte_t ptent, swp_entry_t *entry)
4637 {
4638 	struct page *page = NULL;
4639 	swp_entry_t ent = pte_to_swp_entry(ptent);
4640 
4641 	if (!(mc.flags & MOVE_ANON) || non_swap_entry(ent))
4642 		return NULL;
4643 
4644 	/*
4645 	 * Handle MEMORY_DEVICE_PRIVATE which are ZONE_DEVICE page belonging to
4646 	 * a device and because they are not accessible by CPU they are store
4647 	 * as special swap entry in the CPU page table.
4648 	 */
4649 	if (is_device_private_entry(ent)) {
4650 		page = device_private_entry_to_page(ent);
4651 		/*
4652 		 * MEMORY_DEVICE_PRIVATE means ZONE_DEVICE page and which have
4653 		 * a refcount of 1 when free (unlike normal page)
4654 		 */
4655 		if (!page_ref_add_unless(page, 1, 1))
4656 			return NULL;
4657 		return page;
4658 	}
4659 
4660 	/*
4661 	 * Because lookup_swap_cache() updates some statistics counter,
4662 	 * we call find_get_page() with swapper_space directly.
4663 	 */
4664 	page = find_get_page(swap_address_space(ent), swp_offset(ent));
4665 	if (do_memsw_account())
4666 		entry->val = ent.val;
4667 
4668 	return page;
4669 }
4670 #else
4671 static struct page *mc_handle_swap_pte(struct vm_area_struct *vma,
4672 			pte_t ptent, swp_entry_t *entry)
4673 {
4674 	return NULL;
4675 }
4676 #endif
4677 
4678 static struct page *mc_handle_file_pte(struct vm_area_struct *vma,
4679 			unsigned long addr, pte_t ptent, swp_entry_t *entry)
4680 {
4681 	struct page *page = NULL;
4682 	struct address_space *mapping;
4683 	pgoff_t pgoff;
4684 
4685 	if (!vma->vm_file) /* anonymous vma */
4686 		return NULL;
4687 	if (!(mc.flags & MOVE_FILE))
4688 		return NULL;
4689 
4690 	mapping = vma->vm_file->f_mapping;
4691 	pgoff = linear_page_index(vma, addr);
4692 
4693 	/* page is moved even if it's not RSS of this task(page-faulted). */
4694 #ifdef CONFIG_SWAP
4695 	/* shmem/tmpfs may report page out on swap: account for that too. */
4696 	if (shmem_mapping(mapping)) {
4697 		page = find_get_entry(mapping, pgoff);
4698 		if (radix_tree_exceptional_entry(page)) {
4699 			swp_entry_t swp = radix_to_swp_entry(page);
4700 			if (do_memsw_account())
4701 				*entry = swp;
4702 			page = find_get_page(swap_address_space(swp),
4703 					     swp_offset(swp));
4704 		}
4705 	} else
4706 		page = find_get_page(mapping, pgoff);
4707 #else
4708 	page = find_get_page(mapping, pgoff);
4709 #endif
4710 	return page;
4711 }
4712 
4713 /**
4714  * mem_cgroup_move_account - move account of the page
4715  * @page: the page
4716  * @compound: charge the page as compound or small page
4717  * @from: mem_cgroup which the page is moved from.
4718  * @to:	mem_cgroup which the page is moved to. @from != @to.
4719  *
4720  * The caller must make sure the page is not on LRU (isolate_page() is useful.)
4721  *
4722  * This function doesn't do "charge" to new cgroup and doesn't do "uncharge"
4723  * from old cgroup.
4724  */
4725 static int mem_cgroup_move_account(struct page *page,
4726 				   bool compound,
4727 				   struct mem_cgroup *from,
4728 				   struct mem_cgroup *to)
4729 {
4730 	unsigned long flags;
4731 	unsigned int nr_pages = compound ? hpage_nr_pages(page) : 1;
4732 	int ret;
4733 	bool anon;
4734 
4735 	VM_BUG_ON(from == to);
4736 	VM_BUG_ON_PAGE(PageLRU(page), page);
4737 	VM_BUG_ON(compound && !PageTransHuge(page));
4738 
4739 	/*
4740 	 * Prevent mem_cgroup_migrate() from looking at
4741 	 * page->mem_cgroup of its source page while we change it.
4742 	 */
4743 	ret = -EBUSY;
4744 	if (!trylock_page(page))
4745 		goto out;
4746 
4747 	ret = -EINVAL;
4748 	if (page->mem_cgroup != from)
4749 		goto out_unlock;
4750 
4751 	anon = PageAnon(page);
4752 
4753 	spin_lock_irqsave(&from->move_lock, flags);
4754 
4755 	if (!anon && page_mapped(page)) {
4756 		__mod_memcg_state(from, NR_FILE_MAPPED, -nr_pages);
4757 		__mod_memcg_state(to, NR_FILE_MAPPED, nr_pages);
4758 	}
4759 
4760 	/*
4761 	 * move_lock grabbed above and caller set from->moving_account, so
4762 	 * mod_memcg_page_state will serialize updates to PageDirty.
4763 	 * So mapping should be stable for dirty pages.
4764 	 */
4765 	if (!anon && PageDirty(page)) {
4766 		struct address_space *mapping = page_mapping(page);
4767 
4768 		if (mapping_cap_account_dirty(mapping)) {
4769 			__mod_memcg_state(from, NR_FILE_DIRTY, -nr_pages);
4770 			__mod_memcg_state(to, NR_FILE_DIRTY, nr_pages);
4771 		}
4772 	}
4773 
4774 	if (PageWriteback(page)) {
4775 		__mod_memcg_state(from, NR_WRITEBACK, -nr_pages);
4776 		__mod_memcg_state(to, NR_WRITEBACK, nr_pages);
4777 	}
4778 
4779 	/*
4780 	 * It is safe to change page->mem_cgroup here because the page
4781 	 * is referenced, charged, and isolated - we can't race with
4782 	 * uncharging, charging, migration, or LRU putback.
4783 	 */
4784 
4785 	/* caller should have done css_get */
4786 	page->mem_cgroup = to;
4787 	spin_unlock_irqrestore(&from->move_lock, flags);
4788 
4789 	ret = 0;
4790 
4791 	local_irq_disable();
4792 	mem_cgroup_charge_statistics(to, page, compound, nr_pages);
4793 	memcg_check_events(to, page);
4794 	mem_cgroup_charge_statistics(from, page, compound, -nr_pages);
4795 	memcg_check_events(from, page);
4796 	local_irq_enable();
4797 out_unlock:
4798 	unlock_page(page);
4799 out:
4800 	return ret;
4801 }
4802 
4803 /**
4804  * get_mctgt_type - get target type of moving charge
4805  * @vma: the vma the pte to be checked belongs
4806  * @addr: the address corresponding to the pte to be checked
4807  * @ptent: the pte to be checked
4808  * @target: the pointer the target page or swap ent will be stored(can be NULL)
4809  *
4810  * Returns
4811  *   0(MC_TARGET_NONE): if the pte is not a target for move charge.
4812  *   1(MC_TARGET_PAGE): if the page corresponding to this pte is a target for
4813  *     move charge. if @target is not NULL, the page is stored in target->page
4814  *     with extra refcnt got(Callers should handle it).
4815  *   2(MC_TARGET_SWAP): if the swap entry corresponding to this pte is a
4816  *     target for charge migration. if @target is not NULL, the entry is stored
4817  *     in target->ent.
4818  *   3(MC_TARGET_DEVICE): like MC_TARGET_PAGE  but page is MEMORY_DEVICE_PUBLIC
4819  *     or MEMORY_DEVICE_PRIVATE (so ZONE_DEVICE page and thus not on the lru).
4820  *     For now we such page is charge like a regular page would be as for all
4821  *     intent and purposes it is just special memory taking the place of a
4822  *     regular page.
4823  *
4824  *     See Documentations/vm/hmm.txt and include/linux/hmm.h
4825  *
4826  * Called with pte lock held.
4827  */
4828 
4829 static enum mc_target_type get_mctgt_type(struct vm_area_struct *vma,
4830 		unsigned long addr, pte_t ptent, union mc_target *target)
4831 {
4832 	struct page *page = NULL;
4833 	enum mc_target_type ret = MC_TARGET_NONE;
4834 	swp_entry_t ent = { .val = 0 };
4835 
4836 	if (pte_present(ptent))
4837 		page = mc_handle_present_pte(vma, addr, ptent);
4838 	else if (is_swap_pte(ptent))
4839 		page = mc_handle_swap_pte(vma, ptent, &ent);
4840 	else if (pte_none(ptent))
4841 		page = mc_handle_file_pte(vma, addr, ptent, &ent);
4842 
4843 	if (!page && !ent.val)
4844 		return ret;
4845 	if (page) {
4846 		/*
4847 		 * Do only loose check w/o serialization.
4848 		 * mem_cgroup_move_account() checks the page is valid or
4849 		 * not under LRU exclusion.
4850 		 */
4851 		if (page->mem_cgroup == mc.from) {
4852 			ret = MC_TARGET_PAGE;
4853 			if (is_device_private_page(page) ||
4854 			    is_device_public_page(page))
4855 				ret = MC_TARGET_DEVICE;
4856 			if (target)
4857 				target->page = page;
4858 		}
4859 		if (!ret || !target)
4860 			put_page(page);
4861 	}
4862 	/*
4863 	 * There is a swap entry and a page doesn't exist or isn't charged.
4864 	 * But we cannot move a tail-page in a THP.
4865 	 */
4866 	if (ent.val && !ret && (!page || !PageTransCompound(page)) &&
4867 	    mem_cgroup_id(mc.from) == lookup_swap_cgroup_id(ent)) {
4868 		ret = MC_TARGET_SWAP;
4869 		if (target)
4870 			target->ent = ent;
4871 	}
4872 	return ret;
4873 }
4874 
4875 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
4876 /*
4877  * We don't consider PMD mapped swapping or file mapped pages because THP does
4878  * not support them for now.
4879  * Caller should make sure that pmd_trans_huge(pmd) is true.
4880  */
4881 static enum mc_target_type get_mctgt_type_thp(struct vm_area_struct *vma,
4882 		unsigned long addr, pmd_t pmd, union mc_target *target)
4883 {
4884 	struct page *page = NULL;
4885 	enum mc_target_type ret = MC_TARGET_NONE;
4886 
4887 	if (unlikely(is_swap_pmd(pmd))) {
4888 		VM_BUG_ON(thp_migration_supported() &&
4889 				  !is_pmd_migration_entry(pmd));
4890 		return ret;
4891 	}
4892 	page = pmd_page(pmd);
4893 	VM_BUG_ON_PAGE(!page || !PageHead(page), page);
4894 	if (!(mc.flags & MOVE_ANON))
4895 		return ret;
4896 	if (page->mem_cgroup == mc.from) {
4897 		ret = MC_TARGET_PAGE;
4898 		if (target) {
4899 			get_page(page);
4900 			target->page = page;
4901 		}
4902 	}
4903 	return ret;
4904 }
4905 #else
4906 static inline enum mc_target_type get_mctgt_type_thp(struct vm_area_struct *vma,
4907 		unsigned long addr, pmd_t pmd, union mc_target *target)
4908 {
4909 	return MC_TARGET_NONE;
4910 }
4911 #endif
4912 
4913 static int mem_cgroup_count_precharge_pte_range(pmd_t *pmd,
4914 					unsigned long addr, unsigned long end,
4915 					struct mm_walk *walk)
4916 {
4917 	struct vm_area_struct *vma = walk->vma;
4918 	pte_t *pte;
4919 	spinlock_t *ptl;
4920 
4921 	ptl = pmd_trans_huge_lock(pmd, vma);
4922 	if (ptl) {
4923 		/*
4924 		 * Note their can not be MC_TARGET_DEVICE for now as we do not
4925 		 * support transparent huge page with MEMORY_DEVICE_PUBLIC or
4926 		 * MEMORY_DEVICE_PRIVATE but this might change.
4927 		 */
4928 		if (get_mctgt_type_thp(vma, addr, *pmd, NULL) == MC_TARGET_PAGE)
4929 			mc.precharge += HPAGE_PMD_NR;
4930 		spin_unlock(ptl);
4931 		return 0;
4932 	}
4933 
4934 	if (pmd_trans_unstable(pmd))
4935 		return 0;
4936 	pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
4937 	for (; addr != end; pte++, addr += PAGE_SIZE)
4938 		if (get_mctgt_type(vma, addr, *pte, NULL))
4939 			mc.precharge++;	/* increment precharge temporarily */
4940 	pte_unmap_unlock(pte - 1, ptl);
4941 	cond_resched();
4942 
4943 	return 0;
4944 }
4945 
4946 static unsigned long mem_cgroup_count_precharge(struct mm_struct *mm)
4947 {
4948 	unsigned long precharge;
4949 
4950 	struct mm_walk mem_cgroup_count_precharge_walk = {
4951 		.pmd_entry = mem_cgroup_count_precharge_pte_range,
4952 		.mm = mm,
4953 	};
4954 	down_read(&mm->mmap_sem);
4955 	walk_page_range(0, mm->highest_vm_end,
4956 			&mem_cgroup_count_precharge_walk);
4957 	up_read(&mm->mmap_sem);
4958 
4959 	precharge = mc.precharge;
4960 	mc.precharge = 0;
4961 
4962 	return precharge;
4963 }
4964 
4965 static int mem_cgroup_precharge_mc(struct mm_struct *mm)
4966 {
4967 	unsigned long precharge = mem_cgroup_count_precharge(mm);
4968 
4969 	VM_BUG_ON(mc.moving_task);
4970 	mc.moving_task = current;
4971 	return mem_cgroup_do_precharge(precharge);
4972 }
4973 
4974 /* cancels all extra charges on mc.from and mc.to, and wakes up all waiters. */
4975 static void __mem_cgroup_clear_mc(void)
4976 {
4977 	struct mem_cgroup *from = mc.from;
4978 	struct mem_cgroup *to = mc.to;
4979 
4980 	/* we must uncharge all the leftover precharges from mc.to */
4981 	if (mc.precharge) {
4982 		cancel_charge(mc.to, mc.precharge);
4983 		mc.precharge = 0;
4984 	}
4985 	/*
4986 	 * we didn't uncharge from mc.from at mem_cgroup_move_account(), so
4987 	 * we must uncharge here.
4988 	 */
4989 	if (mc.moved_charge) {
4990 		cancel_charge(mc.from, mc.moved_charge);
4991 		mc.moved_charge = 0;
4992 	}
4993 	/* we must fixup refcnts and charges */
4994 	if (mc.moved_swap) {
4995 		/* uncharge swap account from the old cgroup */
4996 		if (!mem_cgroup_is_root(mc.from))
4997 			page_counter_uncharge(&mc.from->memsw, mc.moved_swap);
4998 
4999 		mem_cgroup_id_put_many(mc.from, mc.moved_swap);
5000 
5001 		/*
5002 		 * we charged both to->memory and to->memsw, so we
5003 		 * should uncharge to->memory.
5004 		 */
5005 		if (!mem_cgroup_is_root(mc.to))
5006 			page_counter_uncharge(&mc.to->memory, mc.moved_swap);
5007 
5008 		mem_cgroup_id_get_many(mc.to, mc.moved_swap);
5009 		css_put_many(&mc.to->css, mc.moved_swap);
5010 
5011 		mc.moved_swap = 0;
5012 	}
5013 	memcg_oom_recover(from);
5014 	memcg_oom_recover(to);
5015 	wake_up_all(&mc.waitq);
5016 }
5017 
5018 static void mem_cgroup_clear_mc(void)
5019 {
5020 	struct mm_struct *mm = mc.mm;
5021 
5022 	/*
5023 	 * we must clear moving_task before waking up waiters at the end of
5024 	 * task migration.
5025 	 */
5026 	mc.moving_task = NULL;
5027 	__mem_cgroup_clear_mc();
5028 	spin_lock(&mc.lock);
5029 	mc.from = NULL;
5030 	mc.to = NULL;
5031 	mc.mm = NULL;
5032 	spin_unlock(&mc.lock);
5033 
5034 	mmput(mm);
5035 }
5036 
5037 static int mem_cgroup_can_attach(struct cgroup_taskset *tset)
5038 {
5039 	struct cgroup_subsys_state *css;
5040 	struct mem_cgroup *memcg = NULL; /* unneeded init to make gcc happy */
5041 	struct mem_cgroup *from;
5042 	struct task_struct *leader, *p;
5043 	struct mm_struct *mm;
5044 	unsigned long move_flags;
5045 	int ret = 0;
5046 
5047 	/* charge immigration isn't supported on the default hierarchy */
5048 	if (cgroup_subsys_on_dfl(memory_cgrp_subsys))
5049 		return 0;
5050 
5051 	/*
5052 	 * Multi-process migrations only happen on the default hierarchy
5053 	 * where charge immigration is not used.  Perform charge
5054 	 * immigration if @tset contains a leader and whine if there are
5055 	 * multiple.
5056 	 */
5057 	p = NULL;
5058 	cgroup_taskset_for_each_leader(leader, css, tset) {
5059 		WARN_ON_ONCE(p);
5060 		p = leader;
5061 		memcg = mem_cgroup_from_css(css);
5062 	}
5063 	if (!p)
5064 		return 0;
5065 
5066 	/*
5067 	 * We are now commited to this value whatever it is. Changes in this
5068 	 * tunable will only affect upcoming migrations, not the current one.
5069 	 * So we need to save it, and keep it going.
5070 	 */
5071 	move_flags = READ_ONCE(memcg->move_charge_at_immigrate);
5072 	if (!move_flags)
5073 		return 0;
5074 
5075 	from = mem_cgroup_from_task(p);
5076 
5077 	VM_BUG_ON(from == memcg);
5078 
5079 	mm = get_task_mm(p);
5080 	if (!mm)
5081 		return 0;
5082 	/* We move charges only when we move a owner of the mm */
5083 	if (mm->owner == p) {
5084 		VM_BUG_ON(mc.from);
5085 		VM_BUG_ON(mc.to);
5086 		VM_BUG_ON(mc.precharge);
5087 		VM_BUG_ON(mc.moved_charge);
5088 		VM_BUG_ON(mc.moved_swap);
5089 
5090 		spin_lock(&mc.lock);
5091 		mc.mm = mm;
5092 		mc.from = from;
5093 		mc.to = memcg;
5094 		mc.flags = move_flags;
5095 		spin_unlock(&mc.lock);
5096 		/* We set mc.moving_task later */
5097 
5098 		ret = mem_cgroup_precharge_mc(mm);
5099 		if (ret)
5100 			mem_cgroup_clear_mc();
5101 	} else {
5102 		mmput(mm);
5103 	}
5104 	return ret;
5105 }
5106 
5107 static void mem_cgroup_cancel_attach(struct cgroup_taskset *tset)
5108 {
5109 	if (mc.to)
5110 		mem_cgroup_clear_mc();
5111 }
5112 
5113 static int mem_cgroup_move_charge_pte_range(pmd_t *pmd,
5114 				unsigned long addr, unsigned long end,
5115 				struct mm_walk *walk)
5116 {
5117 	int ret = 0;
5118 	struct vm_area_struct *vma = walk->vma;
5119 	pte_t *pte;
5120 	spinlock_t *ptl;
5121 	enum mc_target_type target_type;
5122 	union mc_target target;
5123 	struct page *page;
5124 
5125 	ptl = pmd_trans_huge_lock(pmd, vma);
5126 	if (ptl) {
5127 		if (mc.precharge < HPAGE_PMD_NR) {
5128 			spin_unlock(ptl);
5129 			return 0;
5130 		}
5131 		target_type = get_mctgt_type_thp(vma, addr, *pmd, &target);
5132 		if (target_type == MC_TARGET_PAGE) {
5133 			page = target.page;
5134 			if (!isolate_lru_page(page)) {
5135 				if (!mem_cgroup_move_account(page, true,
5136 							     mc.from, mc.to)) {
5137 					mc.precharge -= HPAGE_PMD_NR;
5138 					mc.moved_charge += HPAGE_PMD_NR;
5139 				}
5140 				putback_lru_page(page);
5141 			}
5142 			put_page(page);
5143 		} else if (target_type == MC_TARGET_DEVICE) {
5144 			page = target.page;
5145 			if (!mem_cgroup_move_account(page, true,
5146 						     mc.from, mc.to)) {
5147 				mc.precharge -= HPAGE_PMD_NR;
5148 				mc.moved_charge += HPAGE_PMD_NR;
5149 			}
5150 			put_page(page);
5151 		}
5152 		spin_unlock(ptl);
5153 		return 0;
5154 	}
5155 
5156 	if (pmd_trans_unstable(pmd))
5157 		return 0;
5158 retry:
5159 	pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
5160 	for (; addr != end; addr += PAGE_SIZE) {
5161 		pte_t ptent = *(pte++);
5162 		bool device = false;
5163 		swp_entry_t ent;
5164 
5165 		if (!mc.precharge)
5166 			break;
5167 
5168 		switch (get_mctgt_type(vma, addr, ptent, &target)) {
5169 		case MC_TARGET_DEVICE:
5170 			device = true;
5171 			/* fall through */
5172 		case MC_TARGET_PAGE:
5173 			page = target.page;
5174 			/*
5175 			 * We can have a part of the split pmd here. Moving it
5176 			 * can be done but it would be too convoluted so simply
5177 			 * ignore such a partial THP and keep it in original
5178 			 * memcg. There should be somebody mapping the head.
5179 			 */
5180 			if (PageTransCompound(page))
5181 				goto put;
5182 			if (!device && isolate_lru_page(page))
5183 				goto put;
5184 			if (!mem_cgroup_move_account(page, false,
5185 						mc.from, mc.to)) {
5186 				mc.precharge--;
5187 				/* we uncharge from mc.from later. */
5188 				mc.moved_charge++;
5189 			}
5190 			if (!device)
5191 				putback_lru_page(page);
5192 put:			/* get_mctgt_type() gets the page */
5193 			put_page(page);
5194 			break;
5195 		case MC_TARGET_SWAP:
5196 			ent = target.ent;
5197 			if (!mem_cgroup_move_swap_account(ent, mc.from, mc.to)) {
5198 				mc.precharge--;
5199 				/* we fixup refcnts and charges later. */
5200 				mc.moved_swap++;
5201 			}
5202 			break;
5203 		default:
5204 			break;
5205 		}
5206 	}
5207 	pte_unmap_unlock(pte - 1, ptl);
5208 	cond_resched();
5209 
5210 	if (addr != end) {
5211 		/*
5212 		 * We have consumed all precharges we got in can_attach().
5213 		 * We try charge one by one, but don't do any additional
5214 		 * charges to mc.to if we have failed in charge once in attach()
5215 		 * phase.
5216 		 */
5217 		ret = mem_cgroup_do_precharge(1);
5218 		if (!ret)
5219 			goto retry;
5220 	}
5221 
5222 	return ret;
5223 }
5224 
5225 static void mem_cgroup_move_charge(void)
5226 {
5227 	struct mm_walk mem_cgroup_move_charge_walk = {
5228 		.pmd_entry = mem_cgroup_move_charge_pte_range,
5229 		.mm = mc.mm,
5230 	};
5231 
5232 	lru_add_drain_all();
5233 	/*
5234 	 * Signal lock_page_memcg() to take the memcg's move_lock
5235 	 * while we're moving its pages to another memcg. Then wait
5236 	 * for already started RCU-only updates to finish.
5237 	 */
5238 	atomic_inc(&mc.from->moving_account);
5239 	synchronize_rcu();
5240 retry:
5241 	if (unlikely(!down_read_trylock(&mc.mm->mmap_sem))) {
5242 		/*
5243 		 * Someone who are holding the mmap_sem might be waiting in
5244 		 * waitq. So we cancel all extra charges, wake up all waiters,
5245 		 * and retry. Because we cancel precharges, we might not be able
5246 		 * to move enough charges, but moving charge is a best-effort
5247 		 * feature anyway, so it wouldn't be a big problem.
5248 		 */
5249 		__mem_cgroup_clear_mc();
5250 		cond_resched();
5251 		goto retry;
5252 	}
5253 	/*
5254 	 * When we have consumed all precharges and failed in doing
5255 	 * additional charge, the page walk just aborts.
5256 	 */
5257 	walk_page_range(0, mc.mm->highest_vm_end, &mem_cgroup_move_charge_walk);
5258 
5259 	up_read(&mc.mm->mmap_sem);
5260 	atomic_dec(&mc.from->moving_account);
5261 }
5262 
5263 static void mem_cgroup_move_task(void)
5264 {
5265 	if (mc.to) {
5266 		mem_cgroup_move_charge();
5267 		mem_cgroup_clear_mc();
5268 	}
5269 }
5270 #else	/* !CONFIG_MMU */
5271 static int mem_cgroup_can_attach(struct cgroup_taskset *tset)
5272 {
5273 	return 0;
5274 }
5275 static void mem_cgroup_cancel_attach(struct cgroup_taskset *tset)
5276 {
5277 }
5278 static void mem_cgroup_move_task(void)
5279 {
5280 }
5281 #endif
5282 
5283 /*
5284  * Cgroup retains root cgroups across [un]mount cycles making it necessary
5285  * to verify whether we're attached to the default hierarchy on each mount
5286  * attempt.
5287  */
5288 static void mem_cgroup_bind(struct cgroup_subsys_state *root_css)
5289 {
5290 	/*
5291 	 * use_hierarchy is forced on the default hierarchy.  cgroup core
5292 	 * guarantees that @root doesn't have any children, so turning it
5293 	 * on for the root memcg is enough.
5294 	 */
5295 	if (cgroup_subsys_on_dfl(memory_cgrp_subsys))
5296 		root_mem_cgroup->use_hierarchy = true;
5297 	else
5298 		root_mem_cgroup->use_hierarchy = false;
5299 }
5300 
5301 static u64 memory_current_read(struct cgroup_subsys_state *css,
5302 			       struct cftype *cft)
5303 {
5304 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
5305 
5306 	return (u64)page_counter_read(&memcg->memory) * PAGE_SIZE;
5307 }
5308 
5309 static int memory_min_show(struct seq_file *m, void *v)
5310 {
5311 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
5312 	unsigned long min = READ_ONCE(memcg->memory.min);
5313 
5314 	if (min == PAGE_COUNTER_MAX)
5315 		seq_puts(m, "max\n");
5316 	else
5317 		seq_printf(m, "%llu\n", (u64)min * PAGE_SIZE);
5318 
5319 	return 0;
5320 }
5321 
5322 static ssize_t memory_min_write(struct kernfs_open_file *of,
5323 				char *buf, size_t nbytes, loff_t off)
5324 {
5325 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
5326 	unsigned long min;
5327 	int err;
5328 
5329 	buf = strstrip(buf);
5330 	err = page_counter_memparse(buf, "max", &min);
5331 	if (err)
5332 		return err;
5333 
5334 	page_counter_set_min(&memcg->memory, min);
5335 
5336 	return nbytes;
5337 }
5338 
5339 static int memory_low_show(struct seq_file *m, void *v)
5340 {
5341 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
5342 	unsigned long low = READ_ONCE(memcg->memory.low);
5343 
5344 	if (low == PAGE_COUNTER_MAX)
5345 		seq_puts(m, "max\n");
5346 	else
5347 		seq_printf(m, "%llu\n", (u64)low * PAGE_SIZE);
5348 
5349 	return 0;
5350 }
5351 
5352 static ssize_t memory_low_write(struct kernfs_open_file *of,
5353 				char *buf, size_t nbytes, loff_t off)
5354 {
5355 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
5356 	unsigned long low;
5357 	int err;
5358 
5359 	buf = strstrip(buf);
5360 	err = page_counter_memparse(buf, "max", &low);
5361 	if (err)
5362 		return err;
5363 
5364 	page_counter_set_low(&memcg->memory, low);
5365 
5366 	return nbytes;
5367 }
5368 
5369 static int memory_high_show(struct seq_file *m, void *v)
5370 {
5371 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
5372 	unsigned long high = READ_ONCE(memcg->high);
5373 
5374 	if (high == PAGE_COUNTER_MAX)
5375 		seq_puts(m, "max\n");
5376 	else
5377 		seq_printf(m, "%llu\n", (u64)high * PAGE_SIZE);
5378 
5379 	return 0;
5380 }
5381 
5382 static ssize_t memory_high_write(struct kernfs_open_file *of,
5383 				 char *buf, size_t nbytes, loff_t off)
5384 {
5385 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
5386 	unsigned long nr_pages;
5387 	unsigned long high;
5388 	int err;
5389 
5390 	buf = strstrip(buf);
5391 	err = page_counter_memparse(buf, "max", &high);
5392 	if (err)
5393 		return err;
5394 
5395 	memcg->high = high;
5396 
5397 	nr_pages = page_counter_read(&memcg->memory);
5398 	if (nr_pages > high)
5399 		try_to_free_mem_cgroup_pages(memcg, nr_pages - high,
5400 					     GFP_KERNEL, true);
5401 
5402 	memcg_wb_domain_size_changed(memcg);
5403 	return nbytes;
5404 }
5405 
5406 static int memory_max_show(struct seq_file *m, void *v)
5407 {
5408 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
5409 	unsigned long max = READ_ONCE(memcg->memory.max);
5410 
5411 	if (max == PAGE_COUNTER_MAX)
5412 		seq_puts(m, "max\n");
5413 	else
5414 		seq_printf(m, "%llu\n", (u64)max * PAGE_SIZE);
5415 
5416 	return 0;
5417 }
5418 
5419 static ssize_t memory_max_write(struct kernfs_open_file *of,
5420 				char *buf, size_t nbytes, loff_t off)
5421 {
5422 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
5423 	unsigned int nr_reclaims = MEM_CGROUP_RECLAIM_RETRIES;
5424 	bool drained = false;
5425 	unsigned long max;
5426 	int err;
5427 
5428 	buf = strstrip(buf);
5429 	err = page_counter_memparse(buf, "max", &max);
5430 	if (err)
5431 		return err;
5432 
5433 	xchg(&memcg->memory.max, max);
5434 
5435 	for (;;) {
5436 		unsigned long nr_pages = page_counter_read(&memcg->memory);
5437 
5438 		if (nr_pages <= max)
5439 			break;
5440 
5441 		if (signal_pending(current)) {
5442 			err = -EINTR;
5443 			break;
5444 		}
5445 
5446 		if (!drained) {
5447 			drain_all_stock(memcg);
5448 			drained = true;
5449 			continue;
5450 		}
5451 
5452 		if (nr_reclaims) {
5453 			if (!try_to_free_mem_cgroup_pages(memcg, nr_pages - max,
5454 							  GFP_KERNEL, true))
5455 				nr_reclaims--;
5456 			continue;
5457 		}
5458 
5459 		memcg_memory_event(memcg, MEMCG_OOM);
5460 		if (!mem_cgroup_out_of_memory(memcg, GFP_KERNEL, 0))
5461 			break;
5462 	}
5463 
5464 	memcg_wb_domain_size_changed(memcg);
5465 	return nbytes;
5466 }
5467 
5468 static int memory_events_show(struct seq_file *m, void *v)
5469 {
5470 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
5471 
5472 	seq_printf(m, "low %lu\n",
5473 		   atomic_long_read(&memcg->memory_events[MEMCG_LOW]));
5474 	seq_printf(m, "high %lu\n",
5475 		   atomic_long_read(&memcg->memory_events[MEMCG_HIGH]));
5476 	seq_printf(m, "max %lu\n",
5477 		   atomic_long_read(&memcg->memory_events[MEMCG_MAX]));
5478 	seq_printf(m, "oom %lu\n",
5479 		   atomic_long_read(&memcg->memory_events[MEMCG_OOM]));
5480 	seq_printf(m, "oom_kill %lu\n",
5481 		   atomic_long_read(&memcg->memory_events[MEMCG_OOM_KILL]));
5482 
5483 	return 0;
5484 }
5485 
5486 static int memory_stat_show(struct seq_file *m, void *v)
5487 {
5488 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
5489 	unsigned long stat[MEMCG_NR_STAT];
5490 	unsigned long events[NR_VM_EVENT_ITEMS];
5491 	int i;
5492 
5493 	/*
5494 	 * Provide statistics on the state of the memory subsystem as
5495 	 * well as cumulative event counters that show past behavior.
5496 	 *
5497 	 * This list is ordered following a combination of these gradients:
5498 	 * 1) generic big picture -> specifics and details
5499 	 * 2) reflecting userspace activity -> reflecting kernel heuristics
5500 	 *
5501 	 * Current memory state:
5502 	 */
5503 
5504 	tree_stat(memcg, stat);
5505 	tree_events(memcg, events);
5506 
5507 	seq_printf(m, "anon %llu\n",
5508 		   (u64)stat[MEMCG_RSS] * PAGE_SIZE);
5509 	seq_printf(m, "file %llu\n",
5510 		   (u64)stat[MEMCG_CACHE] * PAGE_SIZE);
5511 	seq_printf(m, "kernel_stack %llu\n",
5512 		   (u64)stat[MEMCG_KERNEL_STACK_KB] * 1024);
5513 	seq_printf(m, "slab %llu\n",
5514 		   (u64)(stat[NR_SLAB_RECLAIMABLE] +
5515 			 stat[NR_SLAB_UNRECLAIMABLE]) * PAGE_SIZE);
5516 	seq_printf(m, "sock %llu\n",
5517 		   (u64)stat[MEMCG_SOCK] * PAGE_SIZE);
5518 
5519 	seq_printf(m, "shmem %llu\n",
5520 		   (u64)stat[NR_SHMEM] * PAGE_SIZE);
5521 	seq_printf(m, "file_mapped %llu\n",
5522 		   (u64)stat[NR_FILE_MAPPED] * PAGE_SIZE);
5523 	seq_printf(m, "file_dirty %llu\n",
5524 		   (u64)stat[NR_FILE_DIRTY] * PAGE_SIZE);
5525 	seq_printf(m, "file_writeback %llu\n",
5526 		   (u64)stat[NR_WRITEBACK] * PAGE_SIZE);
5527 
5528 	for (i = 0; i < NR_LRU_LISTS; i++) {
5529 		struct mem_cgroup *mi;
5530 		unsigned long val = 0;
5531 
5532 		for_each_mem_cgroup_tree(mi, memcg)
5533 			val += mem_cgroup_nr_lru_pages(mi, BIT(i));
5534 		seq_printf(m, "%s %llu\n",
5535 			   mem_cgroup_lru_names[i], (u64)val * PAGE_SIZE);
5536 	}
5537 
5538 	seq_printf(m, "slab_reclaimable %llu\n",
5539 		   (u64)stat[NR_SLAB_RECLAIMABLE] * PAGE_SIZE);
5540 	seq_printf(m, "slab_unreclaimable %llu\n",
5541 		   (u64)stat[NR_SLAB_UNRECLAIMABLE] * PAGE_SIZE);
5542 
5543 	/* Accumulated memory events */
5544 
5545 	seq_printf(m, "pgfault %lu\n", events[PGFAULT]);
5546 	seq_printf(m, "pgmajfault %lu\n", events[PGMAJFAULT]);
5547 
5548 	seq_printf(m, "pgrefill %lu\n", events[PGREFILL]);
5549 	seq_printf(m, "pgscan %lu\n", events[PGSCAN_KSWAPD] +
5550 		   events[PGSCAN_DIRECT]);
5551 	seq_printf(m, "pgsteal %lu\n", events[PGSTEAL_KSWAPD] +
5552 		   events[PGSTEAL_DIRECT]);
5553 	seq_printf(m, "pgactivate %lu\n", events[PGACTIVATE]);
5554 	seq_printf(m, "pgdeactivate %lu\n", events[PGDEACTIVATE]);
5555 	seq_printf(m, "pglazyfree %lu\n", events[PGLAZYFREE]);
5556 	seq_printf(m, "pglazyfreed %lu\n", events[PGLAZYFREED]);
5557 
5558 	seq_printf(m, "workingset_refault %lu\n",
5559 		   stat[WORKINGSET_REFAULT]);
5560 	seq_printf(m, "workingset_activate %lu\n",
5561 		   stat[WORKINGSET_ACTIVATE]);
5562 	seq_printf(m, "workingset_nodereclaim %lu\n",
5563 		   stat[WORKINGSET_NODERECLAIM]);
5564 
5565 	return 0;
5566 }
5567 
5568 static struct cftype memory_files[] = {
5569 	{
5570 		.name = "current",
5571 		.flags = CFTYPE_NOT_ON_ROOT,
5572 		.read_u64 = memory_current_read,
5573 	},
5574 	{
5575 		.name = "min",
5576 		.flags = CFTYPE_NOT_ON_ROOT,
5577 		.seq_show = memory_min_show,
5578 		.write = memory_min_write,
5579 	},
5580 	{
5581 		.name = "low",
5582 		.flags = CFTYPE_NOT_ON_ROOT,
5583 		.seq_show = memory_low_show,
5584 		.write = memory_low_write,
5585 	},
5586 	{
5587 		.name = "high",
5588 		.flags = CFTYPE_NOT_ON_ROOT,
5589 		.seq_show = memory_high_show,
5590 		.write = memory_high_write,
5591 	},
5592 	{
5593 		.name = "max",
5594 		.flags = CFTYPE_NOT_ON_ROOT,
5595 		.seq_show = memory_max_show,
5596 		.write = memory_max_write,
5597 	},
5598 	{
5599 		.name = "events",
5600 		.flags = CFTYPE_NOT_ON_ROOT,
5601 		.file_offset = offsetof(struct mem_cgroup, events_file),
5602 		.seq_show = memory_events_show,
5603 	},
5604 	{
5605 		.name = "stat",
5606 		.flags = CFTYPE_NOT_ON_ROOT,
5607 		.seq_show = memory_stat_show,
5608 	},
5609 	{ }	/* terminate */
5610 };
5611 
5612 struct cgroup_subsys memory_cgrp_subsys = {
5613 	.css_alloc = mem_cgroup_css_alloc,
5614 	.css_online = mem_cgroup_css_online,
5615 	.css_offline = mem_cgroup_css_offline,
5616 	.css_released = mem_cgroup_css_released,
5617 	.css_free = mem_cgroup_css_free,
5618 	.css_reset = mem_cgroup_css_reset,
5619 	.can_attach = mem_cgroup_can_attach,
5620 	.cancel_attach = mem_cgroup_cancel_attach,
5621 	.post_attach = mem_cgroup_move_task,
5622 	.bind = mem_cgroup_bind,
5623 	.dfl_cftypes = memory_files,
5624 	.legacy_cftypes = mem_cgroup_legacy_files,
5625 	.early_init = 0,
5626 };
5627 
5628 /**
5629  * mem_cgroup_protected - check if memory consumption is in the normal range
5630  * @root: the top ancestor of the sub-tree being checked
5631  * @memcg: the memory cgroup to check
5632  *
5633  * WARNING: This function is not stateless! It can only be used as part
5634  *          of a top-down tree iteration, not for isolated queries.
5635  *
5636  * Returns one of the following:
5637  *   MEMCG_PROT_NONE: cgroup memory is not protected
5638  *   MEMCG_PROT_LOW: cgroup memory is protected as long there is
5639  *     an unprotected supply of reclaimable memory from other cgroups.
5640  *   MEMCG_PROT_MIN: cgroup memory is protected
5641  *
5642  * @root is exclusive; it is never protected when looked at directly
5643  *
5644  * To provide a proper hierarchical behavior, effective memory.min/low values
5645  * are used. Below is the description of how effective memory.low is calculated.
5646  * Effective memory.min values is calculated in the same way.
5647  *
5648  * Effective memory.low is always equal or less than the original memory.low.
5649  * If there is no memory.low overcommittment (which is always true for
5650  * top-level memory cgroups), these two values are equal.
5651  * Otherwise, it's a part of parent's effective memory.low,
5652  * calculated as a cgroup's memory.low usage divided by sum of sibling's
5653  * memory.low usages, where memory.low usage is the size of actually
5654  * protected memory.
5655  *
5656  *                                             low_usage
5657  * elow = min( memory.low, parent->elow * ------------------ ),
5658  *                                        siblings_low_usage
5659  *
5660  *             | memory.current, if memory.current < memory.low
5661  * low_usage = |
5662 	       | 0, otherwise.
5663  *
5664  *
5665  * Such definition of the effective memory.low provides the expected
5666  * hierarchical behavior: parent's memory.low value is limiting
5667  * children, unprotected memory is reclaimed first and cgroups,
5668  * which are not using their guarantee do not affect actual memory
5669  * distribution.
5670  *
5671  * For example, if there are memcgs A, A/B, A/C, A/D and A/E:
5672  *
5673  *     A      A/memory.low = 2G, A/memory.current = 6G
5674  *    //\\
5675  *   BC  DE   B/memory.low = 3G  B/memory.current = 2G
5676  *            C/memory.low = 1G  C/memory.current = 2G
5677  *            D/memory.low = 0   D/memory.current = 2G
5678  *            E/memory.low = 10G E/memory.current = 0
5679  *
5680  * and the memory pressure is applied, the following memory distribution
5681  * is expected (approximately):
5682  *
5683  *     A/memory.current = 2G
5684  *
5685  *     B/memory.current = 1.3G
5686  *     C/memory.current = 0.6G
5687  *     D/memory.current = 0
5688  *     E/memory.current = 0
5689  *
5690  * These calculations require constant tracking of the actual low usages
5691  * (see propagate_protected_usage()), as well as recursive calculation of
5692  * effective memory.low values. But as we do call mem_cgroup_protected()
5693  * path for each memory cgroup top-down from the reclaim,
5694  * it's possible to optimize this part, and save calculated elow
5695  * for next usage. This part is intentionally racy, but it's ok,
5696  * as memory.low is a best-effort mechanism.
5697  */
5698 enum mem_cgroup_protection mem_cgroup_protected(struct mem_cgroup *root,
5699 						struct mem_cgroup *memcg)
5700 {
5701 	struct mem_cgroup *parent;
5702 	unsigned long emin, parent_emin;
5703 	unsigned long elow, parent_elow;
5704 	unsigned long usage;
5705 
5706 	if (mem_cgroup_disabled())
5707 		return MEMCG_PROT_NONE;
5708 
5709 	if (!root)
5710 		root = root_mem_cgroup;
5711 	if (memcg == root)
5712 		return MEMCG_PROT_NONE;
5713 
5714 	usage = page_counter_read(&memcg->memory);
5715 	if (!usage)
5716 		return MEMCG_PROT_NONE;
5717 
5718 	emin = memcg->memory.min;
5719 	elow = memcg->memory.low;
5720 
5721 	parent = parent_mem_cgroup(memcg);
5722 	/* No parent means a non-hierarchical mode on v1 memcg */
5723 	if (!parent)
5724 		return MEMCG_PROT_NONE;
5725 
5726 	if (parent == root)
5727 		goto exit;
5728 
5729 	parent_emin = READ_ONCE(parent->memory.emin);
5730 	emin = min(emin, parent_emin);
5731 	if (emin && parent_emin) {
5732 		unsigned long min_usage, siblings_min_usage;
5733 
5734 		min_usage = min(usage, memcg->memory.min);
5735 		siblings_min_usage = atomic_long_read(
5736 			&parent->memory.children_min_usage);
5737 
5738 		if (min_usage && siblings_min_usage)
5739 			emin = min(emin, parent_emin * min_usage /
5740 				   siblings_min_usage);
5741 	}
5742 
5743 	parent_elow = READ_ONCE(parent->memory.elow);
5744 	elow = min(elow, parent_elow);
5745 	if (elow && parent_elow) {
5746 		unsigned long low_usage, siblings_low_usage;
5747 
5748 		low_usage = min(usage, memcg->memory.low);
5749 		siblings_low_usage = atomic_long_read(
5750 			&parent->memory.children_low_usage);
5751 
5752 		if (low_usage && siblings_low_usage)
5753 			elow = min(elow, parent_elow * low_usage /
5754 				   siblings_low_usage);
5755 	}
5756 
5757 exit:
5758 	memcg->memory.emin = emin;
5759 	memcg->memory.elow = elow;
5760 
5761 	if (usage <= emin)
5762 		return MEMCG_PROT_MIN;
5763 	else if (usage <= elow)
5764 		return MEMCG_PROT_LOW;
5765 	else
5766 		return MEMCG_PROT_NONE;
5767 }
5768 
5769 /**
5770  * mem_cgroup_try_charge - try charging a page
5771  * @page: page to charge
5772  * @mm: mm context of the victim
5773  * @gfp_mask: reclaim mode
5774  * @memcgp: charged memcg return
5775  * @compound: charge the page as compound or small page
5776  *
5777  * Try to charge @page to the memcg that @mm belongs to, reclaiming
5778  * pages according to @gfp_mask if necessary.
5779  *
5780  * Returns 0 on success, with *@memcgp pointing to the charged memcg.
5781  * Otherwise, an error code is returned.
5782  *
5783  * After page->mapping has been set up, the caller must finalize the
5784  * charge with mem_cgroup_commit_charge().  Or abort the transaction
5785  * with mem_cgroup_cancel_charge() in case page instantiation fails.
5786  */
5787 int mem_cgroup_try_charge(struct page *page, struct mm_struct *mm,
5788 			  gfp_t gfp_mask, struct mem_cgroup **memcgp,
5789 			  bool compound)
5790 {
5791 	struct mem_cgroup *memcg = NULL;
5792 	unsigned int nr_pages = compound ? hpage_nr_pages(page) : 1;
5793 	int ret = 0;
5794 
5795 	if (mem_cgroup_disabled())
5796 		goto out;
5797 
5798 	if (PageSwapCache(page)) {
5799 		/*
5800 		 * Every swap fault against a single page tries to charge the
5801 		 * page, bail as early as possible.  shmem_unuse() encounters
5802 		 * already charged pages, too.  The USED bit is protected by
5803 		 * the page lock, which serializes swap cache removal, which
5804 		 * in turn serializes uncharging.
5805 		 */
5806 		VM_BUG_ON_PAGE(!PageLocked(page), page);
5807 		if (compound_head(page)->mem_cgroup)
5808 			goto out;
5809 
5810 		if (do_swap_account) {
5811 			swp_entry_t ent = { .val = page_private(page), };
5812 			unsigned short id = lookup_swap_cgroup_id(ent);
5813 
5814 			rcu_read_lock();
5815 			memcg = mem_cgroup_from_id(id);
5816 			if (memcg && !css_tryget_online(&memcg->css))
5817 				memcg = NULL;
5818 			rcu_read_unlock();
5819 		}
5820 	}
5821 
5822 	if (!memcg)
5823 		memcg = get_mem_cgroup_from_mm(mm);
5824 
5825 	ret = try_charge(memcg, gfp_mask, nr_pages);
5826 
5827 	css_put(&memcg->css);
5828 out:
5829 	*memcgp = memcg;
5830 	return ret;
5831 }
5832 
5833 int mem_cgroup_try_charge_delay(struct page *page, struct mm_struct *mm,
5834 			  gfp_t gfp_mask, struct mem_cgroup **memcgp,
5835 			  bool compound)
5836 {
5837 	struct mem_cgroup *memcg;
5838 	int ret;
5839 
5840 	ret = mem_cgroup_try_charge(page, mm, gfp_mask, memcgp, compound);
5841 	memcg = *memcgp;
5842 	mem_cgroup_throttle_swaprate(memcg, page_to_nid(page), gfp_mask);
5843 	return ret;
5844 }
5845 
5846 /**
5847  * mem_cgroup_commit_charge - commit a page charge
5848  * @page: page to charge
5849  * @memcg: memcg to charge the page to
5850  * @lrucare: page might be on LRU already
5851  * @compound: charge the page as compound or small page
5852  *
5853  * Finalize a charge transaction started by mem_cgroup_try_charge(),
5854  * after page->mapping has been set up.  This must happen atomically
5855  * as part of the page instantiation, i.e. under the page table lock
5856  * for anonymous pages, under the page lock for page and swap cache.
5857  *
5858  * In addition, the page must not be on the LRU during the commit, to
5859  * prevent racing with task migration.  If it might be, use @lrucare.
5860  *
5861  * Use mem_cgroup_cancel_charge() to cancel the transaction instead.
5862  */
5863 void mem_cgroup_commit_charge(struct page *page, struct mem_cgroup *memcg,
5864 			      bool lrucare, bool compound)
5865 {
5866 	unsigned int nr_pages = compound ? hpage_nr_pages(page) : 1;
5867 
5868 	VM_BUG_ON_PAGE(!page->mapping, page);
5869 	VM_BUG_ON_PAGE(PageLRU(page) && !lrucare, page);
5870 
5871 	if (mem_cgroup_disabled())
5872 		return;
5873 	/*
5874 	 * Swap faults will attempt to charge the same page multiple
5875 	 * times.  But reuse_swap_page() might have removed the page
5876 	 * from swapcache already, so we can't check PageSwapCache().
5877 	 */
5878 	if (!memcg)
5879 		return;
5880 
5881 	commit_charge(page, memcg, lrucare);
5882 
5883 	local_irq_disable();
5884 	mem_cgroup_charge_statistics(memcg, page, compound, nr_pages);
5885 	memcg_check_events(memcg, page);
5886 	local_irq_enable();
5887 
5888 	if (do_memsw_account() && PageSwapCache(page)) {
5889 		swp_entry_t entry = { .val = page_private(page) };
5890 		/*
5891 		 * The swap entry might not get freed for a long time,
5892 		 * let's not wait for it.  The page already received a
5893 		 * memory+swap charge, drop the swap entry duplicate.
5894 		 */
5895 		mem_cgroup_uncharge_swap(entry, nr_pages);
5896 	}
5897 }
5898 
5899 /**
5900  * mem_cgroup_cancel_charge - cancel a page charge
5901  * @page: page to charge
5902  * @memcg: memcg to charge the page to
5903  * @compound: charge the page as compound or small page
5904  *
5905  * Cancel a charge transaction started by mem_cgroup_try_charge().
5906  */
5907 void mem_cgroup_cancel_charge(struct page *page, struct mem_cgroup *memcg,
5908 		bool compound)
5909 {
5910 	unsigned int nr_pages = compound ? hpage_nr_pages(page) : 1;
5911 
5912 	if (mem_cgroup_disabled())
5913 		return;
5914 	/*
5915 	 * Swap faults will attempt to charge the same page multiple
5916 	 * times.  But reuse_swap_page() might have removed the page
5917 	 * from swapcache already, so we can't check PageSwapCache().
5918 	 */
5919 	if (!memcg)
5920 		return;
5921 
5922 	cancel_charge(memcg, nr_pages);
5923 }
5924 
5925 struct uncharge_gather {
5926 	struct mem_cgroup *memcg;
5927 	unsigned long pgpgout;
5928 	unsigned long nr_anon;
5929 	unsigned long nr_file;
5930 	unsigned long nr_kmem;
5931 	unsigned long nr_huge;
5932 	unsigned long nr_shmem;
5933 	struct page *dummy_page;
5934 };
5935 
5936 static inline void uncharge_gather_clear(struct uncharge_gather *ug)
5937 {
5938 	memset(ug, 0, sizeof(*ug));
5939 }
5940 
5941 static void uncharge_batch(const struct uncharge_gather *ug)
5942 {
5943 	unsigned long nr_pages = ug->nr_anon + ug->nr_file + ug->nr_kmem;
5944 	unsigned long flags;
5945 
5946 	if (!mem_cgroup_is_root(ug->memcg)) {
5947 		page_counter_uncharge(&ug->memcg->memory, nr_pages);
5948 		if (do_memsw_account())
5949 			page_counter_uncharge(&ug->memcg->memsw, nr_pages);
5950 		if (!cgroup_subsys_on_dfl(memory_cgrp_subsys) && ug->nr_kmem)
5951 			page_counter_uncharge(&ug->memcg->kmem, ug->nr_kmem);
5952 		memcg_oom_recover(ug->memcg);
5953 	}
5954 
5955 	local_irq_save(flags);
5956 	__mod_memcg_state(ug->memcg, MEMCG_RSS, -ug->nr_anon);
5957 	__mod_memcg_state(ug->memcg, MEMCG_CACHE, -ug->nr_file);
5958 	__mod_memcg_state(ug->memcg, MEMCG_RSS_HUGE, -ug->nr_huge);
5959 	__mod_memcg_state(ug->memcg, NR_SHMEM, -ug->nr_shmem);
5960 	__count_memcg_events(ug->memcg, PGPGOUT, ug->pgpgout);
5961 	__this_cpu_add(ug->memcg->stat_cpu->nr_page_events, nr_pages);
5962 	memcg_check_events(ug->memcg, ug->dummy_page);
5963 	local_irq_restore(flags);
5964 
5965 	if (!mem_cgroup_is_root(ug->memcg))
5966 		css_put_many(&ug->memcg->css, nr_pages);
5967 }
5968 
5969 static void uncharge_page(struct page *page, struct uncharge_gather *ug)
5970 {
5971 	VM_BUG_ON_PAGE(PageLRU(page), page);
5972 	VM_BUG_ON_PAGE(page_count(page) && !is_zone_device_page(page) &&
5973 			!PageHWPoison(page) , page);
5974 
5975 	if (!page->mem_cgroup)
5976 		return;
5977 
5978 	/*
5979 	 * Nobody should be changing or seriously looking at
5980 	 * page->mem_cgroup at this point, we have fully
5981 	 * exclusive access to the page.
5982 	 */
5983 
5984 	if (ug->memcg != page->mem_cgroup) {
5985 		if (ug->memcg) {
5986 			uncharge_batch(ug);
5987 			uncharge_gather_clear(ug);
5988 		}
5989 		ug->memcg = page->mem_cgroup;
5990 	}
5991 
5992 	if (!PageKmemcg(page)) {
5993 		unsigned int nr_pages = 1;
5994 
5995 		if (PageTransHuge(page)) {
5996 			nr_pages <<= compound_order(page);
5997 			ug->nr_huge += nr_pages;
5998 		}
5999 		if (PageAnon(page))
6000 			ug->nr_anon += nr_pages;
6001 		else {
6002 			ug->nr_file += nr_pages;
6003 			if (PageSwapBacked(page))
6004 				ug->nr_shmem += nr_pages;
6005 		}
6006 		ug->pgpgout++;
6007 	} else {
6008 		ug->nr_kmem += 1 << compound_order(page);
6009 		__ClearPageKmemcg(page);
6010 	}
6011 
6012 	ug->dummy_page = page;
6013 	page->mem_cgroup = NULL;
6014 }
6015 
6016 static void uncharge_list(struct list_head *page_list)
6017 {
6018 	struct uncharge_gather ug;
6019 	struct list_head *next;
6020 
6021 	uncharge_gather_clear(&ug);
6022 
6023 	/*
6024 	 * Note that the list can be a single page->lru; hence the
6025 	 * do-while loop instead of a simple list_for_each_entry().
6026 	 */
6027 	next = page_list->next;
6028 	do {
6029 		struct page *page;
6030 
6031 		page = list_entry(next, struct page, lru);
6032 		next = page->lru.next;
6033 
6034 		uncharge_page(page, &ug);
6035 	} while (next != page_list);
6036 
6037 	if (ug.memcg)
6038 		uncharge_batch(&ug);
6039 }
6040 
6041 /**
6042  * mem_cgroup_uncharge - uncharge a page
6043  * @page: page to uncharge
6044  *
6045  * Uncharge a page previously charged with mem_cgroup_try_charge() and
6046  * mem_cgroup_commit_charge().
6047  */
6048 void mem_cgroup_uncharge(struct page *page)
6049 {
6050 	struct uncharge_gather ug;
6051 
6052 	if (mem_cgroup_disabled())
6053 		return;
6054 
6055 	/* Don't touch page->lru of any random page, pre-check: */
6056 	if (!page->mem_cgroup)
6057 		return;
6058 
6059 	uncharge_gather_clear(&ug);
6060 	uncharge_page(page, &ug);
6061 	uncharge_batch(&ug);
6062 }
6063 
6064 /**
6065  * mem_cgroup_uncharge_list - uncharge a list of page
6066  * @page_list: list of pages to uncharge
6067  *
6068  * Uncharge a list of pages previously charged with
6069  * mem_cgroup_try_charge() and mem_cgroup_commit_charge().
6070  */
6071 void mem_cgroup_uncharge_list(struct list_head *page_list)
6072 {
6073 	if (mem_cgroup_disabled())
6074 		return;
6075 
6076 	if (!list_empty(page_list))
6077 		uncharge_list(page_list);
6078 }
6079 
6080 /**
6081  * mem_cgroup_migrate - charge a page's replacement
6082  * @oldpage: currently circulating page
6083  * @newpage: replacement page
6084  *
6085  * Charge @newpage as a replacement page for @oldpage. @oldpage will
6086  * be uncharged upon free.
6087  *
6088  * Both pages must be locked, @newpage->mapping must be set up.
6089  */
6090 void mem_cgroup_migrate(struct page *oldpage, struct page *newpage)
6091 {
6092 	struct mem_cgroup *memcg;
6093 	unsigned int nr_pages;
6094 	bool compound;
6095 	unsigned long flags;
6096 
6097 	VM_BUG_ON_PAGE(!PageLocked(oldpage), oldpage);
6098 	VM_BUG_ON_PAGE(!PageLocked(newpage), newpage);
6099 	VM_BUG_ON_PAGE(PageAnon(oldpage) != PageAnon(newpage), newpage);
6100 	VM_BUG_ON_PAGE(PageTransHuge(oldpage) != PageTransHuge(newpage),
6101 		       newpage);
6102 
6103 	if (mem_cgroup_disabled())
6104 		return;
6105 
6106 	/* Page cache replacement: new page already charged? */
6107 	if (newpage->mem_cgroup)
6108 		return;
6109 
6110 	/* Swapcache readahead pages can get replaced before being charged */
6111 	memcg = oldpage->mem_cgroup;
6112 	if (!memcg)
6113 		return;
6114 
6115 	/* Force-charge the new page. The old one will be freed soon */
6116 	compound = PageTransHuge(newpage);
6117 	nr_pages = compound ? hpage_nr_pages(newpage) : 1;
6118 
6119 	page_counter_charge(&memcg->memory, nr_pages);
6120 	if (do_memsw_account())
6121 		page_counter_charge(&memcg->memsw, nr_pages);
6122 	css_get_many(&memcg->css, nr_pages);
6123 
6124 	commit_charge(newpage, memcg, false);
6125 
6126 	local_irq_save(flags);
6127 	mem_cgroup_charge_statistics(memcg, newpage, compound, nr_pages);
6128 	memcg_check_events(memcg, newpage);
6129 	local_irq_restore(flags);
6130 }
6131 
6132 DEFINE_STATIC_KEY_FALSE(memcg_sockets_enabled_key);
6133 EXPORT_SYMBOL(memcg_sockets_enabled_key);
6134 
6135 void mem_cgroup_sk_alloc(struct sock *sk)
6136 {
6137 	struct mem_cgroup *memcg;
6138 
6139 	if (!mem_cgroup_sockets_enabled)
6140 		return;
6141 
6142 	/*
6143 	 * Socket cloning can throw us here with sk_memcg already
6144 	 * filled. It won't however, necessarily happen from
6145 	 * process context. So the test for root memcg given
6146 	 * the current task's memcg won't help us in this case.
6147 	 *
6148 	 * Respecting the original socket's memcg is a better
6149 	 * decision in this case.
6150 	 */
6151 	if (sk->sk_memcg) {
6152 		css_get(&sk->sk_memcg->css);
6153 		return;
6154 	}
6155 
6156 	rcu_read_lock();
6157 	memcg = mem_cgroup_from_task(current);
6158 	if (memcg == root_mem_cgroup)
6159 		goto out;
6160 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys) && !memcg->tcpmem_active)
6161 		goto out;
6162 	if (css_tryget_online(&memcg->css))
6163 		sk->sk_memcg = memcg;
6164 out:
6165 	rcu_read_unlock();
6166 }
6167 
6168 void mem_cgroup_sk_free(struct sock *sk)
6169 {
6170 	if (sk->sk_memcg)
6171 		css_put(&sk->sk_memcg->css);
6172 }
6173 
6174 /**
6175  * mem_cgroup_charge_skmem - charge socket memory
6176  * @memcg: memcg to charge
6177  * @nr_pages: number of pages to charge
6178  *
6179  * Charges @nr_pages to @memcg. Returns %true if the charge fit within
6180  * @memcg's configured limit, %false if the charge had to be forced.
6181  */
6182 bool mem_cgroup_charge_skmem(struct mem_cgroup *memcg, unsigned int nr_pages)
6183 {
6184 	gfp_t gfp_mask = GFP_KERNEL;
6185 
6186 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys)) {
6187 		struct page_counter *fail;
6188 
6189 		if (page_counter_try_charge(&memcg->tcpmem, nr_pages, &fail)) {
6190 			memcg->tcpmem_pressure = 0;
6191 			return true;
6192 		}
6193 		page_counter_charge(&memcg->tcpmem, nr_pages);
6194 		memcg->tcpmem_pressure = 1;
6195 		return false;
6196 	}
6197 
6198 	/* Don't block in the packet receive path */
6199 	if (in_softirq())
6200 		gfp_mask = GFP_NOWAIT;
6201 
6202 	mod_memcg_state(memcg, MEMCG_SOCK, nr_pages);
6203 
6204 	if (try_charge(memcg, gfp_mask, nr_pages) == 0)
6205 		return true;
6206 
6207 	try_charge(memcg, gfp_mask|__GFP_NOFAIL, nr_pages);
6208 	return false;
6209 }
6210 
6211 /**
6212  * mem_cgroup_uncharge_skmem - uncharge socket memory
6213  * @memcg: memcg to uncharge
6214  * @nr_pages: number of pages to uncharge
6215  */
6216 void mem_cgroup_uncharge_skmem(struct mem_cgroup *memcg, unsigned int nr_pages)
6217 {
6218 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys)) {
6219 		page_counter_uncharge(&memcg->tcpmem, nr_pages);
6220 		return;
6221 	}
6222 
6223 	mod_memcg_state(memcg, MEMCG_SOCK, -nr_pages);
6224 
6225 	refill_stock(memcg, nr_pages);
6226 }
6227 
6228 static int __init cgroup_memory(char *s)
6229 {
6230 	char *token;
6231 
6232 	while ((token = strsep(&s, ",")) != NULL) {
6233 		if (!*token)
6234 			continue;
6235 		if (!strcmp(token, "nosocket"))
6236 			cgroup_memory_nosocket = true;
6237 		if (!strcmp(token, "nokmem"))
6238 			cgroup_memory_nokmem = true;
6239 	}
6240 	return 0;
6241 }
6242 __setup("cgroup.memory=", cgroup_memory);
6243 
6244 /*
6245  * subsys_initcall() for memory controller.
6246  *
6247  * Some parts like memcg_hotplug_cpu_dead() have to be initialized from this
6248  * context because of lock dependencies (cgroup_lock -> cpu hotplug) but
6249  * basically everything that doesn't depend on a specific mem_cgroup structure
6250  * should be initialized from here.
6251  */
6252 static int __init mem_cgroup_init(void)
6253 {
6254 	int cpu, node;
6255 
6256 #ifdef CONFIG_MEMCG_KMEM
6257 	/*
6258 	 * Kmem cache creation is mostly done with the slab_mutex held,
6259 	 * so use a workqueue with limited concurrency to avoid stalling
6260 	 * all worker threads in case lots of cgroups are created and
6261 	 * destroyed simultaneously.
6262 	 */
6263 	memcg_kmem_cache_wq = alloc_workqueue("memcg_kmem_cache", 0, 1);
6264 	BUG_ON(!memcg_kmem_cache_wq);
6265 #endif
6266 
6267 	cpuhp_setup_state_nocalls(CPUHP_MM_MEMCQ_DEAD, "mm/memctrl:dead", NULL,
6268 				  memcg_hotplug_cpu_dead);
6269 
6270 	for_each_possible_cpu(cpu)
6271 		INIT_WORK(&per_cpu_ptr(&memcg_stock, cpu)->work,
6272 			  drain_local_stock);
6273 
6274 	for_each_node(node) {
6275 		struct mem_cgroup_tree_per_node *rtpn;
6276 
6277 		rtpn = kzalloc_node(sizeof(*rtpn), GFP_KERNEL,
6278 				    node_online(node) ? node : NUMA_NO_NODE);
6279 
6280 		rtpn->rb_root = RB_ROOT;
6281 		rtpn->rb_rightmost = NULL;
6282 		spin_lock_init(&rtpn->lock);
6283 		soft_limit_tree.rb_tree_per_node[node] = rtpn;
6284 	}
6285 
6286 	return 0;
6287 }
6288 subsys_initcall(mem_cgroup_init);
6289 
6290 #ifdef CONFIG_MEMCG_SWAP
6291 static struct mem_cgroup *mem_cgroup_id_get_online(struct mem_cgroup *memcg)
6292 {
6293 	while (!atomic_inc_not_zero(&memcg->id.ref)) {
6294 		/*
6295 		 * The root cgroup cannot be destroyed, so it's refcount must
6296 		 * always be >= 1.
6297 		 */
6298 		if (WARN_ON_ONCE(memcg == root_mem_cgroup)) {
6299 			VM_BUG_ON(1);
6300 			break;
6301 		}
6302 		memcg = parent_mem_cgroup(memcg);
6303 		if (!memcg)
6304 			memcg = root_mem_cgroup;
6305 	}
6306 	return memcg;
6307 }
6308 
6309 /**
6310  * mem_cgroup_swapout - transfer a memsw charge to swap
6311  * @page: page whose memsw charge to transfer
6312  * @entry: swap entry to move the charge to
6313  *
6314  * Transfer the memsw charge of @page to @entry.
6315  */
6316 void mem_cgroup_swapout(struct page *page, swp_entry_t entry)
6317 {
6318 	struct mem_cgroup *memcg, *swap_memcg;
6319 	unsigned int nr_entries;
6320 	unsigned short oldid;
6321 
6322 	VM_BUG_ON_PAGE(PageLRU(page), page);
6323 	VM_BUG_ON_PAGE(page_count(page), page);
6324 
6325 	if (!do_memsw_account())
6326 		return;
6327 
6328 	memcg = page->mem_cgroup;
6329 
6330 	/* Readahead page, never charged */
6331 	if (!memcg)
6332 		return;
6333 
6334 	/*
6335 	 * In case the memcg owning these pages has been offlined and doesn't
6336 	 * have an ID allocated to it anymore, charge the closest online
6337 	 * ancestor for the swap instead and transfer the memory+swap charge.
6338 	 */
6339 	swap_memcg = mem_cgroup_id_get_online(memcg);
6340 	nr_entries = hpage_nr_pages(page);
6341 	/* Get references for the tail pages, too */
6342 	if (nr_entries > 1)
6343 		mem_cgroup_id_get_many(swap_memcg, nr_entries - 1);
6344 	oldid = swap_cgroup_record(entry, mem_cgroup_id(swap_memcg),
6345 				   nr_entries);
6346 	VM_BUG_ON_PAGE(oldid, page);
6347 	mod_memcg_state(swap_memcg, MEMCG_SWAP, nr_entries);
6348 
6349 	page->mem_cgroup = NULL;
6350 
6351 	if (!mem_cgroup_is_root(memcg))
6352 		page_counter_uncharge(&memcg->memory, nr_entries);
6353 
6354 	if (memcg != swap_memcg) {
6355 		if (!mem_cgroup_is_root(swap_memcg))
6356 			page_counter_charge(&swap_memcg->memsw, nr_entries);
6357 		page_counter_uncharge(&memcg->memsw, nr_entries);
6358 	}
6359 
6360 	/*
6361 	 * Interrupts should be disabled here because the caller holds the
6362 	 * i_pages lock which is taken with interrupts-off. It is
6363 	 * important here to have the interrupts disabled because it is the
6364 	 * only synchronisation we have for updating the per-CPU variables.
6365 	 */
6366 	VM_BUG_ON(!irqs_disabled());
6367 	mem_cgroup_charge_statistics(memcg, page, PageTransHuge(page),
6368 				     -nr_entries);
6369 	memcg_check_events(memcg, page);
6370 
6371 	if (!mem_cgroup_is_root(memcg))
6372 		css_put_many(&memcg->css, nr_entries);
6373 }
6374 
6375 /**
6376  * mem_cgroup_try_charge_swap - try charging swap space for a page
6377  * @page: page being added to swap
6378  * @entry: swap entry to charge
6379  *
6380  * Try to charge @page's memcg for the swap space at @entry.
6381  *
6382  * Returns 0 on success, -ENOMEM on failure.
6383  */
6384 int mem_cgroup_try_charge_swap(struct page *page, swp_entry_t entry)
6385 {
6386 	unsigned int nr_pages = hpage_nr_pages(page);
6387 	struct page_counter *counter;
6388 	struct mem_cgroup *memcg;
6389 	unsigned short oldid;
6390 
6391 	if (!cgroup_subsys_on_dfl(memory_cgrp_subsys) || !do_swap_account)
6392 		return 0;
6393 
6394 	memcg = page->mem_cgroup;
6395 
6396 	/* Readahead page, never charged */
6397 	if (!memcg)
6398 		return 0;
6399 
6400 	if (!entry.val) {
6401 		memcg_memory_event(memcg, MEMCG_SWAP_FAIL);
6402 		return 0;
6403 	}
6404 
6405 	memcg = mem_cgroup_id_get_online(memcg);
6406 
6407 	if (!mem_cgroup_is_root(memcg) &&
6408 	    !page_counter_try_charge(&memcg->swap, nr_pages, &counter)) {
6409 		memcg_memory_event(memcg, MEMCG_SWAP_MAX);
6410 		memcg_memory_event(memcg, MEMCG_SWAP_FAIL);
6411 		mem_cgroup_id_put(memcg);
6412 		return -ENOMEM;
6413 	}
6414 
6415 	/* Get references for the tail pages, too */
6416 	if (nr_pages > 1)
6417 		mem_cgroup_id_get_many(memcg, nr_pages - 1);
6418 	oldid = swap_cgroup_record(entry, mem_cgroup_id(memcg), nr_pages);
6419 	VM_BUG_ON_PAGE(oldid, page);
6420 	mod_memcg_state(memcg, MEMCG_SWAP, nr_pages);
6421 
6422 	return 0;
6423 }
6424 
6425 /**
6426  * mem_cgroup_uncharge_swap - uncharge swap space
6427  * @entry: swap entry to uncharge
6428  * @nr_pages: the amount of swap space to uncharge
6429  */
6430 void mem_cgroup_uncharge_swap(swp_entry_t entry, unsigned int nr_pages)
6431 {
6432 	struct mem_cgroup *memcg;
6433 	unsigned short id;
6434 
6435 	if (!do_swap_account)
6436 		return;
6437 
6438 	id = swap_cgroup_record(entry, 0, nr_pages);
6439 	rcu_read_lock();
6440 	memcg = mem_cgroup_from_id(id);
6441 	if (memcg) {
6442 		if (!mem_cgroup_is_root(memcg)) {
6443 			if (cgroup_subsys_on_dfl(memory_cgrp_subsys))
6444 				page_counter_uncharge(&memcg->swap, nr_pages);
6445 			else
6446 				page_counter_uncharge(&memcg->memsw, nr_pages);
6447 		}
6448 		mod_memcg_state(memcg, MEMCG_SWAP, -nr_pages);
6449 		mem_cgroup_id_put_many(memcg, nr_pages);
6450 	}
6451 	rcu_read_unlock();
6452 }
6453 
6454 long mem_cgroup_get_nr_swap_pages(struct mem_cgroup *memcg)
6455 {
6456 	long nr_swap_pages = get_nr_swap_pages();
6457 
6458 	if (!do_swap_account || !cgroup_subsys_on_dfl(memory_cgrp_subsys))
6459 		return nr_swap_pages;
6460 	for (; memcg != root_mem_cgroup; memcg = parent_mem_cgroup(memcg))
6461 		nr_swap_pages = min_t(long, nr_swap_pages,
6462 				      READ_ONCE(memcg->swap.max) -
6463 				      page_counter_read(&memcg->swap));
6464 	return nr_swap_pages;
6465 }
6466 
6467 bool mem_cgroup_swap_full(struct page *page)
6468 {
6469 	struct mem_cgroup *memcg;
6470 
6471 	VM_BUG_ON_PAGE(!PageLocked(page), page);
6472 
6473 	if (vm_swap_full())
6474 		return true;
6475 	if (!do_swap_account || !cgroup_subsys_on_dfl(memory_cgrp_subsys))
6476 		return false;
6477 
6478 	memcg = page->mem_cgroup;
6479 	if (!memcg)
6480 		return false;
6481 
6482 	for (; memcg != root_mem_cgroup; memcg = parent_mem_cgroup(memcg))
6483 		if (page_counter_read(&memcg->swap) * 2 >= memcg->swap.max)
6484 			return true;
6485 
6486 	return false;
6487 }
6488 
6489 /* for remember boot option*/
6490 #ifdef CONFIG_MEMCG_SWAP_ENABLED
6491 static int really_do_swap_account __initdata = 1;
6492 #else
6493 static int really_do_swap_account __initdata;
6494 #endif
6495 
6496 static int __init enable_swap_account(char *s)
6497 {
6498 	if (!strcmp(s, "1"))
6499 		really_do_swap_account = 1;
6500 	else if (!strcmp(s, "0"))
6501 		really_do_swap_account = 0;
6502 	return 1;
6503 }
6504 __setup("swapaccount=", enable_swap_account);
6505 
6506 static u64 swap_current_read(struct cgroup_subsys_state *css,
6507 			     struct cftype *cft)
6508 {
6509 	struct mem_cgroup *memcg = mem_cgroup_from_css(css);
6510 
6511 	return (u64)page_counter_read(&memcg->swap) * PAGE_SIZE;
6512 }
6513 
6514 static int swap_max_show(struct seq_file *m, void *v)
6515 {
6516 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
6517 	unsigned long max = READ_ONCE(memcg->swap.max);
6518 
6519 	if (max == PAGE_COUNTER_MAX)
6520 		seq_puts(m, "max\n");
6521 	else
6522 		seq_printf(m, "%llu\n", (u64)max * PAGE_SIZE);
6523 
6524 	return 0;
6525 }
6526 
6527 static ssize_t swap_max_write(struct kernfs_open_file *of,
6528 			      char *buf, size_t nbytes, loff_t off)
6529 {
6530 	struct mem_cgroup *memcg = mem_cgroup_from_css(of_css(of));
6531 	unsigned long max;
6532 	int err;
6533 
6534 	buf = strstrip(buf);
6535 	err = page_counter_memparse(buf, "max", &max);
6536 	if (err)
6537 		return err;
6538 
6539 	xchg(&memcg->swap.max, max);
6540 
6541 	return nbytes;
6542 }
6543 
6544 static int swap_events_show(struct seq_file *m, void *v)
6545 {
6546 	struct mem_cgroup *memcg = mem_cgroup_from_css(seq_css(m));
6547 
6548 	seq_printf(m, "max %lu\n",
6549 		   atomic_long_read(&memcg->memory_events[MEMCG_SWAP_MAX]));
6550 	seq_printf(m, "fail %lu\n",
6551 		   atomic_long_read(&memcg->memory_events[MEMCG_SWAP_FAIL]));
6552 
6553 	return 0;
6554 }
6555 
6556 static struct cftype swap_files[] = {
6557 	{
6558 		.name = "swap.current",
6559 		.flags = CFTYPE_NOT_ON_ROOT,
6560 		.read_u64 = swap_current_read,
6561 	},
6562 	{
6563 		.name = "swap.max",
6564 		.flags = CFTYPE_NOT_ON_ROOT,
6565 		.seq_show = swap_max_show,
6566 		.write = swap_max_write,
6567 	},
6568 	{
6569 		.name = "swap.events",
6570 		.flags = CFTYPE_NOT_ON_ROOT,
6571 		.file_offset = offsetof(struct mem_cgroup, swap_events_file),
6572 		.seq_show = swap_events_show,
6573 	},
6574 	{ }	/* terminate */
6575 };
6576 
6577 static struct cftype memsw_cgroup_files[] = {
6578 	{
6579 		.name = "memsw.usage_in_bytes",
6580 		.private = MEMFILE_PRIVATE(_MEMSWAP, RES_USAGE),
6581 		.read_u64 = mem_cgroup_read_u64,
6582 	},
6583 	{
6584 		.name = "memsw.max_usage_in_bytes",
6585 		.private = MEMFILE_PRIVATE(_MEMSWAP, RES_MAX_USAGE),
6586 		.write = mem_cgroup_reset,
6587 		.read_u64 = mem_cgroup_read_u64,
6588 	},
6589 	{
6590 		.name = "memsw.limit_in_bytes",
6591 		.private = MEMFILE_PRIVATE(_MEMSWAP, RES_LIMIT),
6592 		.write = mem_cgroup_write,
6593 		.read_u64 = mem_cgroup_read_u64,
6594 	},
6595 	{
6596 		.name = "memsw.failcnt",
6597 		.private = MEMFILE_PRIVATE(_MEMSWAP, RES_FAILCNT),
6598 		.write = mem_cgroup_reset,
6599 		.read_u64 = mem_cgroup_read_u64,
6600 	},
6601 	{ },	/* terminate */
6602 };
6603 
6604 static int __init mem_cgroup_swap_init(void)
6605 {
6606 	if (!mem_cgroup_disabled() && really_do_swap_account) {
6607 		do_swap_account = 1;
6608 		WARN_ON(cgroup_add_dfl_cftypes(&memory_cgrp_subsys,
6609 					       swap_files));
6610 		WARN_ON(cgroup_add_legacy_cftypes(&memory_cgrp_subsys,
6611 						  memsw_cgroup_files));
6612 	}
6613 	return 0;
6614 }
6615 subsys_initcall(mem_cgroup_swap_init);
6616 
6617 #endif /* CONFIG_MEMCG_SWAP */
6618