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8cdea7c0
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1/* memcontrol.c - Memory Controller
2 *
3 * Copyright IBM Corporation, 2007
4 * Author Balbir Singh <balbir@linux.vnet.ibm.com>
5 *
78fb7466
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6 * Copyright 2007 OpenVZ SWsoft Inc
7 * Author: Pavel Emelianov <xemul@openvz.org>
8 *
2e72b634
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9 * Memory thresholds
10 * Copyright (C) 2009 Nokia Corporation
11 * Author: Kirill A. Shutemov
12 *
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GC
13 * Kernel Memory Controller
14 * Copyright (C) 2012 Parallels Inc. and Google Inc.
15 * Authors: Glauber Costa and Suleiman Souhlal
16 *
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17 * This program is free software; you can redistribute it and/or modify
18 * it under the terms of the GNU General Public License as published by
19 * the Free Software Foundation; either version 2 of the License, or
20 * (at your option) any later version.
21 *
22 * This program is distributed in the hope that it will be useful,
23 * but WITHOUT ANY WARRANTY; without even the implied warranty of
24 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
25 * GNU General Public License for more details.
26 */
27
28#include <linux/res_counter.h>
29#include <linux/memcontrol.h>
30#include <linux/cgroup.h>
78fb7466 31#include <linux/mm.h>
4ffef5fe 32#include <linux/hugetlb.h>
d13d1443 33#include <linux/pagemap.h>
d52aa412 34#include <linux/smp.h>
8a9f3ccd 35#include <linux/page-flags.h>
66e1707b 36#include <linux/backing-dev.h>
8a9f3ccd
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37#include <linux/bit_spinlock.h>
38#include <linux/rcupdate.h>
e222432b 39#include <linux/limits.h>
b9e15baf 40#include <linux/export.h>
8c7c6e34 41#include <linux/mutex.h>
bb4cc1a8 42#include <linux/rbtree.h>
b6ac57d5 43#include <linux/slab.h>
66e1707b 44#include <linux/swap.h>
02491447 45#include <linux/swapops.h>
66e1707b 46#include <linux/spinlock.h>
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47#include <linux/eventfd.h>
48#include <linux/sort.h>
66e1707b 49#include <linux/fs.h>
d2ceb9b7 50#include <linux/seq_file.h>
33327948 51#include <linux/vmalloc.h>
70ddf637 52#include <linux/vmpressure.h>
b69408e8 53#include <linux/mm_inline.h>
52d4b9ac 54#include <linux/page_cgroup.h>
cdec2e42 55#include <linux/cpu.h>
158e0a2d 56#include <linux/oom.h>
0056f4e6 57#include <linux/lockdep.h>
08e552c6 58#include "internal.h"
d1a4c0b3 59#include <net/sock.h>
4bd2c1ee 60#include <net/ip.h>
d1a4c0b3 61#include <net/tcp_memcontrol.h>
8cdea7c0 62
8697d331
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63#include <asm/uaccess.h>
64
cc8e970c
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65#include <trace/events/vmscan.h>
66
a181b0e8 67struct cgroup_subsys mem_cgroup_subsys __read_mostly;
68ae564b
DR
68EXPORT_SYMBOL(mem_cgroup_subsys);
69
a181b0e8 70#define MEM_CGROUP_RECLAIM_RETRIES 5
6bbda35c 71static struct mem_cgroup *root_mem_cgroup __read_mostly;
8cdea7c0 72
c255a458 73#ifdef CONFIG_MEMCG_SWAP
338c8431 74/* Turned on only when memory cgroup is enabled && really_do_swap_account = 1 */
c077719b 75int do_swap_account __read_mostly;
a42c390c
MH
76
77/* for remember boot option*/
c255a458 78#ifdef CONFIG_MEMCG_SWAP_ENABLED
a42c390c
MH
79static int really_do_swap_account __initdata = 1;
80#else
81static int really_do_swap_account __initdata = 0;
82#endif
83
c077719b 84#else
a0db00fc 85#define do_swap_account 0
c077719b
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86#endif
87
88
af7c4b0e
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89static const char * const mem_cgroup_stat_names[] = {
90 "cache",
91 "rss",
b070e65c 92 "rss_huge",
af7c4b0e 93 "mapped_file",
3ea67d06 94 "writeback",
af7c4b0e
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95 "swap",
96};
97
e9f8974f
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98enum mem_cgroup_events_index {
99 MEM_CGROUP_EVENTS_PGPGIN, /* # of pages paged in */
100 MEM_CGROUP_EVENTS_PGPGOUT, /* # of pages paged out */
456f998e
YH
101 MEM_CGROUP_EVENTS_PGFAULT, /* # of page-faults */
102 MEM_CGROUP_EVENTS_PGMAJFAULT, /* # of major page-faults */
e9f8974f
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103 MEM_CGROUP_EVENTS_NSTATS,
104};
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105
106static const char * const mem_cgroup_events_names[] = {
107 "pgpgin",
108 "pgpgout",
109 "pgfault",
110 "pgmajfault",
111};
112
58cf188e
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113static const char * const mem_cgroup_lru_names[] = {
114 "inactive_anon",
115 "active_anon",
116 "inactive_file",
117 "active_file",
118 "unevictable",
119};
120
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JW
121/*
122 * Per memcg event counter is incremented at every pagein/pageout. With THP,
123 * it will be incremated by the number of pages. This counter is used for
124 * for trigger some periodic events. This is straightforward and better
125 * than using jiffies etc. to handle periodic memcg event.
126 */
127enum mem_cgroup_events_target {
128 MEM_CGROUP_TARGET_THRESH,
bb4cc1a8 129 MEM_CGROUP_TARGET_SOFTLIMIT,
453a9bf3 130 MEM_CGROUP_TARGET_NUMAINFO,
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131 MEM_CGROUP_NTARGETS,
132};
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133#define THRESHOLDS_EVENTS_TARGET 128
134#define SOFTLIMIT_EVENTS_TARGET 1024
135#define NUMAINFO_EVENTS_TARGET 1024
e9f8974f 136
d52aa412 137struct mem_cgroup_stat_cpu {
7a159cc9 138 long count[MEM_CGROUP_STAT_NSTATS];
e9f8974f 139 unsigned long events[MEM_CGROUP_EVENTS_NSTATS];
13114716 140 unsigned long nr_page_events;
7a159cc9 141 unsigned long targets[MEM_CGROUP_NTARGETS];
d52aa412
KH
142};
143
527a5ec9 144struct mem_cgroup_reclaim_iter {
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MH
145 /*
146 * last scanned hierarchy member. Valid only if last_dead_count
147 * matches memcg->dead_count of the hierarchy root group.
148 */
542f85f9 149 struct mem_cgroup *last_visited;
5f578161
MH
150 unsigned long last_dead_count;
151
527a5ec9
JW
152 /* scan generation, increased every round-trip */
153 unsigned int generation;
154};
155
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156/*
157 * per-zone information in memory controller.
158 */
6d12e2d8 159struct mem_cgroup_per_zone {
6290df54 160 struct lruvec lruvec;
1eb49272 161 unsigned long lru_size[NR_LRU_LISTS];
3e2f41f1 162
527a5ec9
JW
163 struct mem_cgroup_reclaim_iter reclaim_iter[DEF_PRIORITY + 1];
164
bb4cc1a8
AM
165 struct rb_node tree_node; /* RB tree node */
166 unsigned long long usage_in_excess;/* Set to the value by which */
167 /* the soft limit is exceeded*/
168 bool on_tree;
d79154bb 169 struct mem_cgroup *memcg; /* Back pointer, we cannot */
4e416953 170 /* use container_of */
6d12e2d8 171};
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172
173struct mem_cgroup_per_node {
174 struct mem_cgroup_per_zone zoneinfo[MAX_NR_ZONES];
175};
176
bb4cc1a8
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177/*
178 * Cgroups above their limits are maintained in a RB-Tree, independent of
179 * their hierarchy representation
180 */
181
182struct mem_cgroup_tree_per_zone {
183 struct rb_root rb_root;
184 spinlock_t lock;
185};
186
187struct mem_cgroup_tree_per_node {
188 struct mem_cgroup_tree_per_zone rb_tree_per_zone[MAX_NR_ZONES];
189};
190
191struct mem_cgroup_tree {
192 struct mem_cgroup_tree_per_node *rb_tree_per_node[MAX_NUMNODES];
193};
194
195static struct mem_cgroup_tree soft_limit_tree __read_mostly;
196
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197struct mem_cgroup_threshold {
198 struct eventfd_ctx *eventfd;
199 u64 threshold;
200};
201
9490ff27 202/* For threshold */
2e72b634 203struct mem_cgroup_threshold_ary {
748dad36 204 /* An array index points to threshold just below or equal to usage. */
5407a562 205 int current_threshold;
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206 /* Size of entries[] */
207 unsigned int size;
208 /* Array of thresholds */
209 struct mem_cgroup_threshold entries[0];
210};
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211
212struct mem_cgroup_thresholds {
213 /* Primary thresholds array */
214 struct mem_cgroup_threshold_ary *primary;
215 /*
216 * Spare threshold array.
217 * This is needed to make mem_cgroup_unregister_event() "never fail".
218 * It must be able to store at least primary->size - 1 entries.
219 */
220 struct mem_cgroup_threshold_ary *spare;
221};
222
9490ff27
KH
223/* for OOM */
224struct mem_cgroup_eventfd_list {
225 struct list_head list;
226 struct eventfd_ctx *eventfd;
227};
2e72b634 228
c0ff4b85
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229static void mem_cgroup_threshold(struct mem_cgroup *memcg);
230static void mem_cgroup_oom_notify(struct mem_cgroup *memcg);
2e72b634 231
8cdea7c0
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232/*
233 * The memory controller data structure. The memory controller controls both
234 * page cache and RSS per cgroup. We would eventually like to provide
235 * statistics based on the statistics developed by Rik Van Riel for clock-pro,
236 * to help the administrator determine what knobs to tune.
237 *
238 * TODO: Add a water mark for the memory controller. Reclaim will begin when
8a9f3ccd
BS
239 * we hit the water mark. May be even add a low water mark, such that
240 * no reclaim occurs from a cgroup at it's low water mark, this is
241 * a feature that will be implemented much later in the future.
8cdea7c0
BS
242 */
243struct mem_cgroup {
244 struct cgroup_subsys_state css;
245 /*
246 * the counter to account for memory usage
247 */
248 struct res_counter res;
59927fb9 249
70ddf637
AV
250 /* vmpressure notifications */
251 struct vmpressure vmpressure;
252
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253 /*
254 * the counter to account for mem+swap usage.
255 */
256 struct res_counter memsw;
59927fb9 257
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GC
258 /*
259 * the counter to account for kernel memory usage.
260 */
261 struct res_counter kmem;
18f59ea7
BS
262 /*
263 * Should the accounting and control be hierarchical, per subtree?
264 */
265 bool use_hierarchy;
510fc4e1 266 unsigned long kmem_account_flags; /* See KMEM_ACCOUNTED_*, below */
79dfdacc
MH
267
268 bool oom_lock;
269 atomic_t under_oom;
3812c8c8 270 atomic_t oom_wakeups;
79dfdacc 271
1f4c025b 272 int swappiness;
3c11ecf4
KH
273 /* OOM-Killer disable */
274 int oom_kill_disable;
a7885eb8 275
22a668d7
KH
276 /* set when res.limit == memsw.limit */
277 bool memsw_is_minimum;
278
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279 /* protect arrays of thresholds */
280 struct mutex thresholds_lock;
281
282 /* thresholds for memory usage. RCU-protected */
2c488db2 283 struct mem_cgroup_thresholds thresholds;
907860ed 284
2e72b634 285 /* thresholds for mem+swap usage. RCU-protected */
2c488db2 286 struct mem_cgroup_thresholds memsw_thresholds;
907860ed 287
9490ff27
KH
288 /* For oom notifier event fd */
289 struct list_head oom_notify;
185efc0f 290
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DN
291 /*
292 * Should we move charges of a task when a task is moved into this
293 * mem_cgroup ? And what type of charges should we move ?
294 */
f894ffa8 295 unsigned long move_charge_at_immigrate;
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KH
296 /*
297 * set > 0 if pages under this cgroup are moving to other cgroup.
298 */
299 atomic_t moving_account;
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KH
300 /* taken only while moving_account > 0 */
301 spinlock_t move_lock;
d52aa412 302 /*
c62b1a3b 303 * percpu counter.
d52aa412 304 */
3a7951b4 305 struct mem_cgroup_stat_cpu __percpu *stat;
711d3d2c
KH
306 /*
307 * used when a cpu is offlined or other synchronizations
308 * See mem_cgroup_read_stat().
309 */
310 struct mem_cgroup_stat_cpu nocpu_base;
311 spinlock_t pcp_counter_lock;
d1a4c0b3 312
5f578161 313 atomic_t dead_count;
4bd2c1ee 314#if defined(CONFIG_MEMCG_KMEM) && defined(CONFIG_INET)
d1a4c0b3
GC
315 struct tcp_memcontrol tcp_mem;
316#endif
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GC
317#if defined(CONFIG_MEMCG_KMEM)
318 /* analogous to slab_common's slab_caches list. per-memcg */
319 struct list_head memcg_slab_caches;
320 /* Not a spinlock, we can take a lot of time walking the list */
321 struct mutex slab_caches_mutex;
322 /* Index in the kmem_cache->memcg_params->memcg_caches array */
323 int kmemcg_id;
324#endif
45cf7ebd
GC
325
326 int last_scanned_node;
327#if MAX_NUMNODES > 1
328 nodemask_t scan_nodes;
329 atomic_t numainfo_events;
330 atomic_t numainfo_updating;
331#endif
70ddf637 332
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JW
333 struct mem_cgroup_per_node *nodeinfo[0];
334 /* WARNING: nodeinfo must be the last member here */
8cdea7c0
BS
335};
336
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GC
337static size_t memcg_size(void)
338{
339 return sizeof(struct mem_cgroup) +
340 nr_node_ids * sizeof(struct mem_cgroup_per_node);
341}
342
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GC
343/* internal only representation about the status of kmem accounting. */
344enum {
345 KMEM_ACCOUNTED_ACTIVE = 0, /* accounted by this cgroup itself */
a8964b9b 346 KMEM_ACCOUNTED_ACTIVATED, /* static key enabled. */
7de37682 347 KMEM_ACCOUNTED_DEAD, /* dead memcg with pending kmem charges */
510fc4e1
GC
348};
349
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GC
350/* We account when limit is on, but only after call sites are patched */
351#define KMEM_ACCOUNTED_MASK \
352 ((1 << KMEM_ACCOUNTED_ACTIVE) | (1 << KMEM_ACCOUNTED_ACTIVATED))
510fc4e1
GC
353
354#ifdef CONFIG_MEMCG_KMEM
355static inline void memcg_kmem_set_active(struct mem_cgroup *memcg)
356{
357 set_bit(KMEM_ACCOUNTED_ACTIVE, &memcg->kmem_account_flags);
358}
7de37682
GC
359
360static bool memcg_kmem_is_active(struct mem_cgroup *memcg)
361{
362 return test_bit(KMEM_ACCOUNTED_ACTIVE, &memcg->kmem_account_flags);
363}
364
a8964b9b
GC
365static void memcg_kmem_set_activated(struct mem_cgroup *memcg)
366{
367 set_bit(KMEM_ACCOUNTED_ACTIVATED, &memcg->kmem_account_flags);
368}
369
55007d84
GC
370static void memcg_kmem_clear_activated(struct mem_cgroup *memcg)
371{
372 clear_bit(KMEM_ACCOUNTED_ACTIVATED, &memcg->kmem_account_flags);
373}
374
7de37682
GC
375static void memcg_kmem_mark_dead(struct mem_cgroup *memcg)
376{
10d5ebf4
LZ
377 /*
378 * Our caller must use css_get() first, because memcg_uncharge_kmem()
379 * will call css_put() if it sees the memcg is dead.
380 */
381 smp_wmb();
7de37682
GC
382 if (test_bit(KMEM_ACCOUNTED_ACTIVE, &memcg->kmem_account_flags))
383 set_bit(KMEM_ACCOUNTED_DEAD, &memcg->kmem_account_flags);
384}
385
386static bool memcg_kmem_test_and_clear_dead(struct mem_cgroup *memcg)
387{
388 return test_and_clear_bit(KMEM_ACCOUNTED_DEAD,
389 &memcg->kmem_account_flags);
390}
510fc4e1
GC
391#endif
392
7dc74be0
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393/* Stuffs for move charges at task migration. */
394/*
ee5e8472
GC
395 * Types of charges to be moved. "move_charge_at_immitgrate" and
396 * "immigrate_flags" are treated as a left-shifted bitmap of these types.
7dc74be0
DN
397 */
398enum move_type {
4ffef5fe 399 MOVE_CHARGE_TYPE_ANON, /* private anonymous page and swap of it */
87946a72 400 MOVE_CHARGE_TYPE_FILE, /* file page(including tmpfs) and swap of it */
7dc74be0
DN
401 NR_MOVE_TYPE,
402};
403
4ffef5fe
DN
404/* "mc" and its members are protected by cgroup_mutex */
405static struct move_charge_struct {
b1dd693e 406 spinlock_t lock; /* for from, to */
4ffef5fe
DN
407 struct mem_cgroup *from;
408 struct mem_cgroup *to;
ee5e8472 409 unsigned long immigrate_flags;
4ffef5fe 410 unsigned long precharge;
854ffa8d 411 unsigned long moved_charge;
483c30b5 412 unsigned long moved_swap;
8033b97c
DN
413 struct task_struct *moving_task; /* a task moving charges */
414 wait_queue_head_t waitq; /* a waitq for other context */
415} mc = {
2bd9bb20 416 .lock = __SPIN_LOCK_UNLOCKED(mc.lock),
8033b97c
DN
417 .waitq = __WAIT_QUEUE_HEAD_INITIALIZER(mc.waitq),
418};
4ffef5fe 419
90254a65
DN
420static bool move_anon(void)
421{
ee5e8472 422 return test_bit(MOVE_CHARGE_TYPE_ANON, &mc.immigrate_flags);
90254a65
DN
423}
424
87946a72
DN
425static bool move_file(void)
426{
ee5e8472 427 return test_bit(MOVE_CHARGE_TYPE_FILE, &mc.immigrate_flags);
87946a72
DN
428}
429
4e416953
BS
430/*
431 * Maximum loops in mem_cgroup_hierarchical_reclaim(), used for soft
432 * limit reclaim to prevent infinite loops, if they ever occur.
433 */
a0db00fc 434#define MEM_CGROUP_MAX_RECLAIM_LOOPS 100
bb4cc1a8 435#define MEM_CGROUP_MAX_SOFT_LIMIT_RECLAIM_LOOPS 2
4e416953 436
217bc319
KH
437enum charge_type {
438 MEM_CGROUP_CHARGE_TYPE_CACHE = 0,
41326c17 439 MEM_CGROUP_CHARGE_TYPE_ANON,
d13d1443 440 MEM_CGROUP_CHARGE_TYPE_SWAPOUT, /* for accounting swapcache */
8a9478ca 441 MEM_CGROUP_CHARGE_TYPE_DROP, /* a page was unused swap cache */
c05555b5
KH
442 NR_CHARGE_TYPE,
443};
444
8c7c6e34 445/* for encoding cft->private value on file */
86ae53e1
GC
446enum res_type {
447 _MEM,
448 _MEMSWAP,
449 _OOM_TYPE,
510fc4e1 450 _KMEM,
86ae53e1
GC
451};
452
a0db00fc
KS
453#define MEMFILE_PRIVATE(x, val) ((x) << 16 | (val))
454#define MEMFILE_TYPE(val) ((val) >> 16 & 0xffff)
8c7c6e34 455#define MEMFILE_ATTR(val) ((val) & 0xffff)
9490ff27
KH
456/* Used for OOM nofiier */
457#define OOM_CONTROL (0)
8c7c6e34 458
75822b44
BS
459/*
460 * Reclaim flags for mem_cgroup_hierarchical_reclaim
461 */
462#define MEM_CGROUP_RECLAIM_NOSWAP_BIT 0x0
463#define MEM_CGROUP_RECLAIM_NOSWAP (1 << MEM_CGROUP_RECLAIM_NOSWAP_BIT)
464#define MEM_CGROUP_RECLAIM_SHRINK_BIT 0x1
465#define MEM_CGROUP_RECLAIM_SHRINK (1 << MEM_CGROUP_RECLAIM_SHRINK_BIT)
466
0999821b
GC
467/*
468 * The memcg_create_mutex will be held whenever a new cgroup is created.
469 * As a consequence, any change that needs to protect against new child cgroups
470 * appearing has to hold it as well.
471 */
472static DEFINE_MUTEX(memcg_create_mutex);
473
b2145145
WL
474struct mem_cgroup *mem_cgroup_from_css(struct cgroup_subsys_state *s)
475{
a7c6d554 476 return s ? container_of(s, struct mem_cgroup, css) : NULL;
b2145145
WL
477}
478
70ddf637
AV
479/* Some nice accessors for the vmpressure. */
480struct vmpressure *memcg_to_vmpressure(struct mem_cgroup *memcg)
481{
482 if (!memcg)
483 memcg = root_mem_cgroup;
484 return &memcg->vmpressure;
485}
486
487struct cgroup_subsys_state *vmpressure_to_css(struct vmpressure *vmpr)
488{
489 return &container_of(vmpr, struct mem_cgroup, vmpressure)->css;
490}
491
492struct vmpressure *css_to_vmpressure(struct cgroup_subsys_state *css)
493{
494 return &mem_cgroup_from_css(css)->vmpressure;
495}
496
7ffc0edc
MH
497static inline bool mem_cgroup_is_root(struct mem_cgroup *memcg)
498{
499 return (memcg == root_mem_cgroup);
500}
501
4219b2da
LZ
502/*
503 * We restrict the id in the range of [1, 65535], so it can fit into
504 * an unsigned short.
505 */
506#define MEM_CGROUP_ID_MAX USHRT_MAX
507
34c00c31
LZ
508static inline unsigned short mem_cgroup_id(struct mem_cgroup *memcg)
509{
510 /*
511 * The ID of the root cgroup is 0, but memcg treat 0 as an
512 * invalid ID, so we return (cgroup_id + 1).
513 */
514 return memcg->css.cgroup->id + 1;
515}
516
517static inline struct mem_cgroup *mem_cgroup_from_id(unsigned short id)
518{
519 struct cgroup_subsys_state *css;
520
521 css = css_from_id(id - 1, &mem_cgroup_subsys);
522 return mem_cgroup_from_css(css);
523}
524
e1aab161 525/* Writing them here to avoid exposing memcg's inner layout */
4bd2c1ee 526#if defined(CONFIG_INET) && defined(CONFIG_MEMCG_KMEM)
e1aab161 527
e1aab161
GC
528void sock_update_memcg(struct sock *sk)
529{
376be5ff 530 if (mem_cgroup_sockets_enabled) {
e1aab161 531 struct mem_cgroup *memcg;
3f134619 532 struct cg_proto *cg_proto;
e1aab161
GC
533
534 BUG_ON(!sk->sk_prot->proto_cgroup);
535
f3f511e1
GC
536 /* Socket cloning can throw us here with sk_cgrp already
537 * filled. It won't however, necessarily happen from
538 * process context. So the test for root memcg given
539 * the current task's memcg won't help us in this case.
540 *
541 * Respecting the original socket's memcg is a better
542 * decision in this case.
543 */
544 if (sk->sk_cgrp) {
545 BUG_ON(mem_cgroup_is_root(sk->sk_cgrp->memcg));
5347e5ae 546 css_get(&sk->sk_cgrp->memcg->css);
f3f511e1
GC
547 return;
548 }
549
e1aab161
GC
550 rcu_read_lock();
551 memcg = mem_cgroup_from_task(current);
3f134619 552 cg_proto = sk->sk_prot->proto_cgroup(memcg);
5347e5ae
LZ
553 if (!mem_cgroup_is_root(memcg) &&
554 memcg_proto_active(cg_proto) && css_tryget(&memcg->css)) {
3f134619 555 sk->sk_cgrp = cg_proto;
e1aab161
GC
556 }
557 rcu_read_unlock();
558 }
559}
560EXPORT_SYMBOL(sock_update_memcg);
561
562void sock_release_memcg(struct sock *sk)
563{
376be5ff 564 if (mem_cgroup_sockets_enabled && sk->sk_cgrp) {
e1aab161
GC
565 struct mem_cgroup *memcg;
566 WARN_ON(!sk->sk_cgrp->memcg);
567 memcg = sk->sk_cgrp->memcg;
5347e5ae 568 css_put(&sk->sk_cgrp->memcg->css);
e1aab161
GC
569 }
570}
d1a4c0b3
GC
571
572struct cg_proto *tcp_proto_cgroup(struct mem_cgroup *memcg)
573{
574 if (!memcg || mem_cgroup_is_root(memcg))
575 return NULL;
576
577 return &memcg->tcp_mem.cg_proto;
578}
579EXPORT_SYMBOL(tcp_proto_cgroup);
e1aab161 580
3f134619
GC
581static void disarm_sock_keys(struct mem_cgroup *memcg)
582{
583 if (!memcg_proto_activated(&memcg->tcp_mem.cg_proto))
584 return;
585 static_key_slow_dec(&memcg_socket_limit_enabled);
586}
587#else
588static void disarm_sock_keys(struct mem_cgroup *memcg)
589{
590}
591#endif
592
a8964b9b 593#ifdef CONFIG_MEMCG_KMEM
55007d84
GC
594/*
595 * This will be the memcg's index in each cache's ->memcg_params->memcg_caches.
b8627835
LZ
596 * The main reason for not using cgroup id for this:
597 * this works better in sparse environments, where we have a lot of memcgs,
598 * but only a few kmem-limited. Or also, if we have, for instance, 200
599 * memcgs, and none but the 200th is kmem-limited, we'd have to have a
600 * 200 entry array for that.
55007d84
GC
601 *
602 * The current size of the caches array is stored in
603 * memcg_limited_groups_array_size. It will double each time we have to
604 * increase it.
605 */
606static DEFINE_IDA(kmem_limited_groups);
749c5415
GC
607int memcg_limited_groups_array_size;
608
55007d84
GC
609/*
610 * MIN_SIZE is different than 1, because we would like to avoid going through
611 * the alloc/free process all the time. In a small machine, 4 kmem-limited
612 * cgroups is a reasonable guess. In the future, it could be a parameter or
613 * tunable, but that is strictly not necessary.
614 *
b8627835 615 * MAX_SIZE should be as large as the number of cgrp_ids. Ideally, we could get
55007d84
GC
616 * this constant directly from cgroup, but it is understandable that this is
617 * better kept as an internal representation in cgroup.c. In any case, the
b8627835 618 * cgrp_id space is not getting any smaller, and we don't have to necessarily
55007d84
GC
619 * increase ours as well if it increases.
620 */
621#define MEMCG_CACHES_MIN_SIZE 4
b8627835 622#define MEMCG_CACHES_MAX_SIZE MEM_CGROUP_ID_MAX
55007d84 623
d7f25f8a
GC
624/*
625 * A lot of the calls to the cache allocation functions are expected to be
626 * inlined by the compiler. Since the calls to memcg_kmem_get_cache are
627 * conditional to this static branch, we'll have to allow modules that does
628 * kmem_cache_alloc and the such to see this symbol as well
629 */
a8964b9b 630struct static_key memcg_kmem_enabled_key;
d7f25f8a 631EXPORT_SYMBOL(memcg_kmem_enabled_key);
a8964b9b
GC
632
633static void disarm_kmem_keys(struct mem_cgroup *memcg)
634{
55007d84 635 if (memcg_kmem_is_active(memcg)) {
a8964b9b 636 static_key_slow_dec(&memcg_kmem_enabled_key);
55007d84
GC
637 ida_simple_remove(&kmem_limited_groups, memcg->kmemcg_id);
638 }
bea207c8
GC
639 /*
640 * This check can't live in kmem destruction function,
641 * since the charges will outlive the cgroup
642 */
643 WARN_ON(res_counter_read_u64(&memcg->kmem, RES_USAGE) != 0);
a8964b9b
GC
644}
645#else
646static void disarm_kmem_keys(struct mem_cgroup *memcg)
647{
648}
649#endif /* CONFIG_MEMCG_KMEM */
650
651static void disarm_static_keys(struct mem_cgroup *memcg)
652{
653 disarm_sock_keys(memcg);
654 disarm_kmem_keys(memcg);
655}
656
c0ff4b85 657static void drain_all_stock_async(struct mem_cgroup *memcg);
8c7c6e34 658
f64c3f54 659static struct mem_cgroup_per_zone *
c0ff4b85 660mem_cgroup_zoneinfo(struct mem_cgroup *memcg, int nid, int zid)
f64c3f54 661{
45cf7ebd 662 VM_BUG_ON((unsigned)nid >= nr_node_ids);
54f72fe0 663 return &memcg->nodeinfo[nid]->zoneinfo[zid];
f64c3f54
BS
664}
665
c0ff4b85 666struct cgroup_subsys_state *mem_cgroup_css(struct mem_cgroup *memcg)
d324236b 667{
c0ff4b85 668 return &memcg->css;
d324236b
WF
669}
670
f64c3f54 671static struct mem_cgroup_per_zone *
c0ff4b85 672page_cgroup_zoneinfo(struct mem_cgroup *memcg, struct page *page)
f64c3f54 673{
97a6c37b
JW
674 int nid = page_to_nid(page);
675 int zid = page_zonenum(page);
f64c3f54 676
c0ff4b85 677 return mem_cgroup_zoneinfo(memcg, nid, zid);
f64c3f54
BS
678}
679
bb4cc1a8
AM
680static struct mem_cgroup_tree_per_zone *
681soft_limit_tree_node_zone(int nid, int zid)
682{
683 return &soft_limit_tree.rb_tree_per_node[nid]->rb_tree_per_zone[zid];
684}
685
686static struct mem_cgroup_tree_per_zone *
687soft_limit_tree_from_page(struct page *page)
688{
689 int nid = page_to_nid(page);
690 int zid = page_zonenum(page);
691
692 return &soft_limit_tree.rb_tree_per_node[nid]->rb_tree_per_zone[zid];
693}
694
695static void
696__mem_cgroup_insert_exceeded(struct mem_cgroup *memcg,
697 struct mem_cgroup_per_zone *mz,
698 struct mem_cgroup_tree_per_zone *mctz,
699 unsigned long long new_usage_in_excess)
700{
701 struct rb_node **p = &mctz->rb_root.rb_node;
702 struct rb_node *parent = NULL;
703 struct mem_cgroup_per_zone *mz_node;
704
705 if (mz->on_tree)
706 return;
707
708 mz->usage_in_excess = new_usage_in_excess;
709 if (!mz->usage_in_excess)
710 return;
711 while (*p) {
712 parent = *p;
713 mz_node = rb_entry(parent, struct mem_cgroup_per_zone,
714 tree_node);
715 if (mz->usage_in_excess < mz_node->usage_in_excess)
716 p = &(*p)->rb_left;
717 /*
718 * We can't avoid mem cgroups that are over their soft
719 * limit by the same amount
720 */
721 else if (mz->usage_in_excess >= mz_node->usage_in_excess)
722 p = &(*p)->rb_right;
723 }
724 rb_link_node(&mz->tree_node, parent, p);
725 rb_insert_color(&mz->tree_node, &mctz->rb_root);
726 mz->on_tree = true;
727}
728
729static void
730__mem_cgroup_remove_exceeded(struct mem_cgroup *memcg,
731 struct mem_cgroup_per_zone *mz,
732 struct mem_cgroup_tree_per_zone *mctz)
733{
734 if (!mz->on_tree)
735 return;
736 rb_erase(&mz->tree_node, &mctz->rb_root);
737 mz->on_tree = false;
738}
739
740static void
741mem_cgroup_remove_exceeded(struct mem_cgroup *memcg,
742 struct mem_cgroup_per_zone *mz,
743 struct mem_cgroup_tree_per_zone *mctz)
744{
745 spin_lock(&mctz->lock);
746 __mem_cgroup_remove_exceeded(memcg, mz, mctz);
747 spin_unlock(&mctz->lock);
748}
749
750
751static void mem_cgroup_update_tree(struct mem_cgroup *memcg, struct page *page)
752{
753 unsigned long long excess;
754 struct mem_cgroup_per_zone *mz;
755 struct mem_cgroup_tree_per_zone *mctz;
756 int nid = page_to_nid(page);
757 int zid = page_zonenum(page);
758 mctz = soft_limit_tree_from_page(page);
759
760 /*
761 * Necessary to update all ancestors when hierarchy is used.
762 * because their event counter is not touched.
763 */
764 for (; memcg; memcg = parent_mem_cgroup(memcg)) {
765 mz = mem_cgroup_zoneinfo(memcg, nid, zid);
766 excess = res_counter_soft_limit_excess(&memcg->res);
767 /*
768 * We have to update the tree if mz is on RB-tree or
769 * mem is over its softlimit.
770 */
771 if (excess || mz->on_tree) {
772 spin_lock(&mctz->lock);
773 /* if on-tree, remove it */
774 if (mz->on_tree)
775 __mem_cgroup_remove_exceeded(memcg, mz, mctz);
776 /*
777 * Insert again. mz->usage_in_excess will be updated.
778 * If excess is 0, no tree ops.
779 */
780 __mem_cgroup_insert_exceeded(memcg, mz, mctz, excess);
781 spin_unlock(&mctz->lock);
782 }
783 }
784}
785
786static void mem_cgroup_remove_from_trees(struct mem_cgroup *memcg)
787{
788 int node, zone;
789 struct mem_cgroup_per_zone *mz;
790 struct mem_cgroup_tree_per_zone *mctz;
791
792 for_each_node(node) {
793 for (zone = 0; zone < MAX_NR_ZONES; zone++) {
794 mz = mem_cgroup_zoneinfo(memcg, node, zone);
795 mctz = soft_limit_tree_node_zone(node, zone);
796 mem_cgroup_remove_exceeded(memcg, mz, mctz);
797 }
798 }
799}
800
801static struct mem_cgroup_per_zone *
802__mem_cgroup_largest_soft_limit_node(struct mem_cgroup_tree_per_zone *mctz)
803{
804 struct rb_node *rightmost = NULL;
805 struct mem_cgroup_per_zone *mz;
806
807retry:
808 mz = NULL;
809 rightmost = rb_last(&mctz->rb_root);
810 if (!rightmost)
811 goto done; /* Nothing to reclaim from */
812
813 mz = rb_entry(rightmost, struct mem_cgroup_per_zone, tree_node);
814 /*
815 * Remove the node now but someone else can add it back,
816 * we will to add it back at the end of reclaim to its correct
817 * position in the tree.
818 */
819 __mem_cgroup_remove_exceeded(mz->memcg, mz, mctz);
820 if (!res_counter_soft_limit_excess(&mz->memcg->res) ||
821 !css_tryget(&mz->memcg->css))
822 goto retry;
823done:
824 return mz;
825}
826
827static struct mem_cgroup_per_zone *
828mem_cgroup_largest_soft_limit_node(struct mem_cgroup_tree_per_zone *mctz)
829{
830 struct mem_cgroup_per_zone *mz;
831
832 spin_lock(&mctz->lock);
833 mz = __mem_cgroup_largest_soft_limit_node(mctz);
834 spin_unlock(&mctz->lock);
835 return mz;
836}
837
711d3d2c
KH
838/*
839 * Implementation Note: reading percpu statistics for memcg.
840 *
841 * Both of vmstat[] and percpu_counter has threshold and do periodic
842 * synchronization to implement "quick" read. There are trade-off between
843 * reading cost and precision of value. Then, we may have a chance to implement
844 * a periodic synchronizion of counter in memcg's counter.
845 *
846 * But this _read() function is used for user interface now. The user accounts
847 * memory usage by memory cgroup and he _always_ requires exact value because
848 * he accounts memory. Even if we provide quick-and-fuzzy read, we always
849 * have to visit all online cpus and make sum. So, for now, unnecessary
850 * synchronization is not implemented. (just implemented for cpu hotplug)
851 *
852 * If there are kernel internal actions which can make use of some not-exact
853 * value, and reading all cpu value can be performance bottleneck in some
854 * common workload, threashold and synchonization as vmstat[] should be
855 * implemented.
856 */
c0ff4b85 857static long mem_cgroup_read_stat(struct mem_cgroup *memcg,
7a159cc9 858 enum mem_cgroup_stat_index idx)
c62b1a3b 859{
7a159cc9 860 long val = 0;
c62b1a3b 861 int cpu;
c62b1a3b 862
711d3d2c
KH
863 get_online_cpus();
864 for_each_online_cpu(cpu)
c0ff4b85 865 val += per_cpu(memcg->stat->count[idx], cpu);
711d3d2c 866#ifdef CONFIG_HOTPLUG_CPU
c0ff4b85
R
867 spin_lock(&memcg->pcp_counter_lock);
868 val += memcg->nocpu_base.count[idx];
869 spin_unlock(&memcg->pcp_counter_lock);
711d3d2c
KH
870#endif
871 put_online_cpus();
c62b1a3b
KH
872 return val;
873}
874
c0ff4b85 875static void mem_cgroup_swap_statistics(struct mem_cgroup *memcg,
0c3e73e8
BS
876 bool charge)
877{
878 int val = (charge) ? 1 : -1;
bff6bb83 879 this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_SWAP], val);
0c3e73e8
BS
880}
881
c0ff4b85 882static unsigned long mem_cgroup_read_events(struct mem_cgroup *memcg,
e9f8974f
JW
883 enum mem_cgroup_events_index idx)
884{
885 unsigned long val = 0;
886 int cpu;
887
9c567512 888 get_online_cpus();
e9f8974f 889 for_each_online_cpu(cpu)
c0ff4b85 890 val += per_cpu(memcg->stat->events[idx], cpu);
e9f8974f 891#ifdef CONFIG_HOTPLUG_CPU
c0ff4b85
R
892 spin_lock(&memcg->pcp_counter_lock);
893 val += memcg->nocpu_base.events[idx];
894 spin_unlock(&memcg->pcp_counter_lock);
e9f8974f 895#endif
9c567512 896 put_online_cpus();
e9f8974f
JW
897 return val;
898}
899
c0ff4b85 900static void mem_cgroup_charge_statistics(struct mem_cgroup *memcg,
b070e65c 901 struct page *page,
b2402857 902 bool anon, int nr_pages)
d52aa412 903{
c62b1a3b
KH
904 preempt_disable();
905
b2402857
KH
906 /*
907 * Here, RSS means 'mapped anon' and anon's SwapCache. Shmem/tmpfs is
908 * counted as CACHE even if it's on ANON LRU.
909 */
910 if (anon)
911 __this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_RSS],
c0ff4b85 912 nr_pages);
d52aa412 913 else
b2402857 914 __this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_CACHE],
c0ff4b85 915 nr_pages);
55e462b0 916
b070e65c
DR
917 if (PageTransHuge(page))
918 __this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_RSS_HUGE],
919 nr_pages);
920
e401f176
KH
921 /* pagein of a big page is an event. So, ignore page size */
922 if (nr_pages > 0)
c0ff4b85 923 __this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGPGIN]);
3751d604 924 else {
c0ff4b85 925 __this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGPGOUT]);
3751d604
KH
926 nr_pages = -nr_pages; /* for event */
927 }
e401f176 928
13114716 929 __this_cpu_add(memcg->stat->nr_page_events, nr_pages);
2e72b634 930
c62b1a3b 931 preempt_enable();
6d12e2d8
KH
932}
933
bb2a0de9 934unsigned long
4d7dcca2 935mem_cgroup_get_lru_size(struct lruvec *lruvec, enum lru_list lru)
074291fe
KK
936{
937 struct mem_cgroup_per_zone *mz;
938
939 mz = container_of(lruvec, struct mem_cgroup_per_zone, lruvec);
940 return mz->lru_size[lru];
941}
942
943static unsigned long
c0ff4b85 944mem_cgroup_zone_nr_lru_pages(struct mem_cgroup *memcg, int nid, int zid,
bb2a0de9 945 unsigned int lru_mask)
889976db
YH
946{
947 struct mem_cgroup_per_zone *mz;
f156ab93 948 enum lru_list lru;
bb2a0de9
KH
949 unsigned long ret = 0;
950
c0ff4b85 951 mz = mem_cgroup_zoneinfo(memcg, nid, zid);
bb2a0de9 952
f156ab93
HD
953 for_each_lru(lru) {
954 if (BIT(lru) & lru_mask)
955 ret += mz->lru_size[lru];
bb2a0de9
KH
956 }
957 return ret;
958}
959
960static unsigned long
c0ff4b85 961mem_cgroup_node_nr_lru_pages(struct mem_cgroup *memcg,
bb2a0de9
KH
962 int nid, unsigned int lru_mask)
963{
889976db
YH
964 u64 total = 0;
965 int zid;
966
bb2a0de9 967 for (zid = 0; zid < MAX_NR_ZONES; zid++)
c0ff4b85
R
968 total += mem_cgroup_zone_nr_lru_pages(memcg,
969 nid, zid, lru_mask);
bb2a0de9 970
889976db
YH
971 return total;
972}
bb2a0de9 973
c0ff4b85 974static unsigned long mem_cgroup_nr_lru_pages(struct mem_cgroup *memcg,
bb2a0de9 975 unsigned int lru_mask)
6d12e2d8 976{
889976db 977 int nid;
6d12e2d8
KH
978 u64 total = 0;
979
31aaea4a 980 for_each_node_state(nid, N_MEMORY)
c0ff4b85 981 total += mem_cgroup_node_nr_lru_pages(memcg, nid, lru_mask);
6d12e2d8 982 return total;
d52aa412
KH
983}
984
f53d7ce3
JW
985static bool mem_cgroup_event_ratelimit(struct mem_cgroup *memcg,
986 enum mem_cgroup_events_target target)
7a159cc9
JW
987{
988 unsigned long val, next;
989
13114716 990 val = __this_cpu_read(memcg->stat->nr_page_events);
4799401f 991 next = __this_cpu_read(memcg->stat->targets[target]);
7a159cc9 992 /* from time_after() in jiffies.h */
f53d7ce3
JW
993 if ((long)next - (long)val < 0) {
994 switch (target) {
995 case MEM_CGROUP_TARGET_THRESH:
996 next = val + THRESHOLDS_EVENTS_TARGET;
997 break;
bb4cc1a8
AM
998 case MEM_CGROUP_TARGET_SOFTLIMIT:
999 next = val + SOFTLIMIT_EVENTS_TARGET;
1000 break;
f53d7ce3
JW
1001 case MEM_CGROUP_TARGET_NUMAINFO:
1002 next = val + NUMAINFO_EVENTS_TARGET;
1003 break;
1004 default:
1005 break;
1006 }
1007 __this_cpu_write(memcg->stat->targets[target], next);
1008 return true;
7a159cc9 1009 }
f53d7ce3 1010 return false;
d2265e6f
KH
1011}
1012
1013/*
1014 * Check events in order.
1015 *
1016 */
c0ff4b85 1017static void memcg_check_events(struct mem_cgroup *memcg, struct page *page)
d2265e6f 1018{
4799401f 1019 preempt_disable();
d2265e6f 1020 /* threshold event is triggered in finer grain than soft limit */
f53d7ce3
JW
1021 if (unlikely(mem_cgroup_event_ratelimit(memcg,
1022 MEM_CGROUP_TARGET_THRESH))) {
bb4cc1a8 1023 bool do_softlimit;
82b3f2a7 1024 bool do_numainfo __maybe_unused;
f53d7ce3 1025
bb4cc1a8
AM
1026 do_softlimit = mem_cgroup_event_ratelimit(memcg,
1027 MEM_CGROUP_TARGET_SOFTLIMIT);
f53d7ce3
JW
1028#if MAX_NUMNODES > 1
1029 do_numainfo = mem_cgroup_event_ratelimit(memcg,
1030 MEM_CGROUP_TARGET_NUMAINFO);
1031#endif
1032 preempt_enable();
1033
c0ff4b85 1034 mem_cgroup_threshold(memcg);
bb4cc1a8
AM
1035 if (unlikely(do_softlimit))
1036 mem_cgroup_update_tree(memcg, page);
453a9bf3 1037#if MAX_NUMNODES > 1
f53d7ce3 1038 if (unlikely(do_numainfo))
c0ff4b85 1039 atomic_inc(&memcg->numainfo_events);
453a9bf3 1040#endif
f53d7ce3
JW
1041 } else
1042 preempt_enable();
d2265e6f
KH
1043}
1044
cf475ad2 1045struct mem_cgroup *mem_cgroup_from_task(struct task_struct *p)
78fb7466 1046{
31a78f23
BS
1047 /*
1048 * mm_update_next_owner() may clear mm->owner to NULL
1049 * if it races with swapoff, page migration, etc.
1050 * So this can be called with p == NULL.
1051 */
1052 if (unlikely(!p))
1053 return NULL;
1054
8af01f56 1055 return mem_cgroup_from_css(task_css(p, mem_cgroup_subsys_id));
78fb7466
PE
1056}
1057
a433658c 1058struct mem_cgroup *try_get_mem_cgroup_from_mm(struct mm_struct *mm)
54595fe2 1059{
c0ff4b85 1060 struct mem_cgroup *memcg = NULL;
0b7f569e
KH
1061
1062 if (!mm)
1063 return NULL;
54595fe2
KH
1064 /*
1065 * Because we have no locks, mm->owner's may be being moved to other
1066 * cgroup. We use css_tryget() here even if this looks
1067 * pessimistic (rather than adding locks here).
1068 */
1069 rcu_read_lock();
1070 do {
c0ff4b85
R
1071 memcg = mem_cgroup_from_task(rcu_dereference(mm->owner));
1072 if (unlikely(!memcg))
54595fe2 1073 break;
c0ff4b85 1074 } while (!css_tryget(&memcg->css));
54595fe2 1075 rcu_read_unlock();
c0ff4b85 1076 return memcg;
54595fe2
KH
1077}
1078
16248d8f
MH
1079/*
1080 * Returns a next (in a pre-order walk) alive memcg (with elevated css
1081 * ref. count) or NULL if the whole root's subtree has been visited.
1082 *
1083 * helper function to be used by mem_cgroup_iter
1084 */
1085static struct mem_cgroup *__mem_cgroup_iter_next(struct mem_cgroup *root,
694fbc0f 1086 struct mem_cgroup *last_visited)
16248d8f 1087{
492eb21b 1088 struct cgroup_subsys_state *prev_css, *next_css;
16248d8f 1089
bd8815a6 1090 prev_css = last_visited ? &last_visited->css : NULL;
16248d8f 1091skip_node:
492eb21b 1092 next_css = css_next_descendant_pre(prev_css, &root->css);
16248d8f
MH
1093
1094 /*
1095 * Even if we found a group we have to make sure it is
1096 * alive. css && !memcg means that the groups should be
1097 * skipped and we should continue the tree walk.
1098 * last_visited css is safe to use because it is
1099 * protected by css_get and the tree walk is rcu safe.
1100 */
492eb21b
TH
1101 if (next_css) {
1102 struct mem_cgroup *mem = mem_cgroup_from_css(next_css);
1103
694fbc0f
AM
1104 if (css_tryget(&mem->css))
1105 return mem;
1106 else {
492eb21b 1107 prev_css = next_css;
16248d8f
MH
1108 goto skip_node;
1109 }
1110 }
1111
1112 return NULL;
1113}
1114
519ebea3
JW
1115static void mem_cgroup_iter_invalidate(struct mem_cgroup *root)
1116{
1117 /*
1118 * When a group in the hierarchy below root is destroyed, the
1119 * hierarchy iterator can no longer be trusted since it might
1120 * have pointed to the destroyed group. Invalidate it.
1121 */
1122 atomic_inc(&root->dead_count);
1123}
1124
1125static struct mem_cgroup *
1126mem_cgroup_iter_load(struct mem_cgroup_reclaim_iter *iter,
1127 struct mem_cgroup *root,
1128 int *sequence)
1129{
1130 struct mem_cgroup *position = NULL;
1131 /*
1132 * A cgroup destruction happens in two stages: offlining and
1133 * release. They are separated by a RCU grace period.
1134 *
1135 * If the iterator is valid, we may still race with an
1136 * offlining. The RCU lock ensures the object won't be
1137 * released, tryget will fail if we lost the race.
1138 */
1139 *sequence = atomic_read(&root->dead_count);
1140 if (iter->last_dead_count == *sequence) {
1141 smp_rmb();
1142 position = iter->last_visited;
1143 if (position && !css_tryget(&position->css))
1144 position = NULL;
1145 }
1146 return position;
1147}
1148
1149static void mem_cgroup_iter_update(struct mem_cgroup_reclaim_iter *iter,
1150 struct mem_cgroup *last_visited,
1151 struct mem_cgroup *new_position,
1152 int sequence)
1153{
1154 if (last_visited)
1155 css_put(&last_visited->css);
1156 /*
1157 * We store the sequence count from the time @last_visited was
1158 * loaded successfully instead of rereading it here so that we
1159 * don't lose destruction events in between. We could have
1160 * raced with the destruction of @new_position after all.
1161 */
1162 iter->last_visited = new_position;
1163 smp_wmb();
1164 iter->last_dead_count = sequence;
1165}
1166
5660048c
JW
1167/**
1168 * mem_cgroup_iter - iterate over memory cgroup hierarchy
1169 * @root: hierarchy root
1170 * @prev: previously returned memcg, NULL on first invocation
1171 * @reclaim: cookie for shared reclaim walks, NULL for full walks
1172 *
1173 * Returns references to children of the hierarchy below @root, or
1174 * @root itself, or %NULL after a full round-trip.
1175 *
1176 * Caller must pass the return value in @prev on subsequent
1177 * invocations for reference counting, or use mem_cgroup_iter_break()
1178 * to cancel a hierarchy walk before the round-trip is complete.
1179 *
1180 * Reclaimers can specify a zone and a priority level in @reclaim to
1181 * divide up the memcgs in the hierarchy among all concurrent
1182 * reclaimers operating on the same zone and priority.
1183 */
694fbc0f 1184struct mem_cgroup *mem_cgroup_iter(struct mem_cgroup *root,
5660048c 1185 struct mem_cgroup *prev,
694fbc0f 1186 struct mem_cgroup_reclaim_cookie *reclaim)
14067bb3 1187{
9f3a0d09 1188 struct mem_cgroup *memcg = NULL;
542f85f9 1189 struct mem_cgroup *last_visited = NULL;
711d3d2c 1190
694fbc0f
AM
1191 if (mem_cgroup_disabled())
1192 return NULL;
5660048c 1193
9f3a0d09
JW
1194 if (!root)
1195 root = root_mem_cgroup;
7d74b06f 1196
9f3a0d09 1197 if (prev && !reclaim)
542f85f9 1198 last_visited = prev;
14067bb3 1199
9f3a0d09
JW
1200 if (!root->use_hierarchy && root != root_mem_cgroup) {
1201 if (prev)
c40046f3 1202 goto out_css_put;
694fbc0f 1203 return root;
9f3a0d09 1204 }
14067bb3 1205
542f85f9 1206 rcu_read_lock();
9f3a0d09 1207 while (!memcg) {
527a5ec9 1208 struct mem_cgroup_reclaim_iter *uninitialized_var(iter);
519ebea3 1209 int uninitialized_var(seq);
711d3d2c 1210
527a5ec9
JW
1211 if (reclaim) {
1212 int nid = zone_to_nid(reclaim->zone);
1213 int zid = zone_idx(reclaim->zone);
1214 struct mem_cgroup_per_zone *mz;
1215
1216 mz = mem_cgroup_zoneinfo(root, nid, zid);
1217 iter = &mz->reclaim_iter[reclaim->priority];
542f85f9 1218 if (prev && reclaim->generation != iter->generation) {
5f578161 1219 iter->last_visited = NULL;
542f85f9
MH
1220 goto out_unlock;
1221 }
5f578161 1222
519ebea3 1223 last_visited = mem_cgroup_iter_load(iter, root, &seq);
527a5ec9 1224 }
7d74b06f 1225
694fbc0f 1226 memcg = __mem_cgroup_iter_next(root, last_visited);
14067bb3 1227
527a5ec9 1228 if (reclaim) {
519ebea3 1229 mem_cgroup_iter_update(iter, last_visited, memcg, seq);
542f85f9 1230
19f39402 1231 if (!memcg)
527a5ec9
JW
1232 iter->generation++;
1233 else if (!prev && memcg)
1234 reclaim->generation = iter->generation;
1235 }
9f3a0d09 1236
694fbc0f 1237 if (prev && !memcg)
542f85f9 1238 goto out_unlock;
9f3a0d09 1239 }
542f85f9
MH
1240out_unlock:
1241 rcu_read_unlock();
c40046f3
MH
1242out_css_put:
1243 if (prev && prev != root)
1244 css_put(&prev->css);
1245
9f3a0d09 1246 return memcg;
14067bb3 1247}
7d74b06f 1248
5660048c
JW
1249/**
1250 * mem_cgroup_iter_break - abort a hierarchy walk prematurely
1251 * @root: hierarchy root
1252 * @prev: last visited hierarchy member as returned by mem_cgroup_iter()
1253 */
1254void mem_cgroup_iter_break(struct mem_cgroup *root,
1255 struct mem_cgroup *prev)
9f3a0d09
JW
1256{
1257 if (!root)
1258 root = root_mem_cgroup;
1259 if (prev && prev != root)
1260 css_put(&prev->css);
1261}
7d74b06f 1262
9f3a0d09
JW
1263/*
1264 * Iteration constructs for visiting all cgroups (under a tree). If
1265 * loops are exited prematurely (break), mem_cgroup_iter_break() must
1266 * be used for reference counting.
1267 */
1268#define for_each_mem_cgroup_tree(iter, root) \
527a5ec9 1269 for (iter = mem_cgroup_iter(root, NULL, NULL); \
9f3a0d09 1270 iter != NULL; \
527a5ec9 1271 iter = mem_cgroup_iter(root, iter, NULL))
711d3d2c 1272
9f3a0d09 1273#define for_each_mem_cgroup(iter) \
527a5ec9 1274 for (iter = mem_cgroup_iter(NULL, NULL, NULL); \
9f3a0d09 1275 iter != NULL; \
527a5ec9 1276 iter = mem_cgroup_iter(NULL, iter, NULL))
14067bb3 1277
68ae564b 1278void __mem_cgroup_count_vm_event(struct mm_struct *mm, enum vm_event_item idx)
456f998e 1279{
c0ff4b85 1280 struct mem_cgroup *memcg;
456f998e 1281
456f998e 1282 rcu_read_lock();
c0ff4b85
R
1283 memcg = mem_cgroup_from_task(rcu_dereference(mm->owner));
1284 if (unlikely(!memcg))
456f998e
YH
1285 goto out;
1286
1287 switch (idx) {
456f998e 1288 case PGFAULT:
0e574a93
JW
1289 this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGFAULT]);
1290 break;
1291 case PGMAJFAULT:
1292 this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGMAJFAULT]);
456f998e
YH
1293 break;
1294 default:
1295 BUG();
1296 }
1297out:
1298 rcu_read_unlock();
1299}
68ae564b 1300EXPORT_SYMBOL(__mem_cgroup_count_vm_event);
456f998e 1301
925b7673
JW
1302/**
1303 * mem_cgroup_zone_lruvec - get the lru list vector for a zone and memcg
1304 * @zone: zone of the wanted lruvec
fa9add64 1305 * @memcg: memcg of the wanted lruvec
925b7673
JW
1306 *
1307 * Returns the lru list vector holding pages for the given @zone and
1308 * @mem. This can be the global zone lruvec, if the memory controller
1309 * is disabled.
1310 */
1311struct lruvec *mem_cgroup_zone_lruvec(struct zone *zone,
1312 struct mem_cgroup *memcg)
1313{
1314 struct mem_cgroup_per_zone *mz;
bea8c150 1315 struct lruvec *lruvec;
925b7673 1316
bea8c150
HD
1317 if (mem_cgroup_disabled()) {
1318 lruvec = &zone->lruvec;
1319 goto out;
1320 }
925b7673
JW
1321
1322 mz = mem_cgroup_zoneinfo(memcg, zone_to_nid(zone), zone_idx(zone));
bea8c150
HD
1323 lruvec = &mz->lruvec;
1324out:
1325 /*
1326 * Since a node can be onlined after the mem_cgroup was created,
1327 * we have to be prepared to initialize lruvec->zone here;
1328 * and if offlined then reonlined, we need to reinitialize it.
1329 */
1330 if (unlikely(lruvec->zone != zone))
1331 lruvec->zone = zone;
1332 return lruvec;
925b7673
JW
1333}
1334
08e552c6
KH
1335/*
1336 * Following LRU functions are allowed to be used without PCG_LOCK.
1337 * Operations are called by routine of global LRU independently from memcg.
1338 * What we have to take care of here is validness of pc->mem_cgroup.
1339 *
1340 * Changes to pc->mem_cgroup happens when
1341 * 1. charge
1342 * 2. moving account
1343 * In typical case, "charge" is done before add-to-lru. Exception is SwapCache.
1344 * It is added to LRU before charge.
1345 * If PCG_USED bit is not set, page_cgroup is not added to this private LRU.
1346 * When moving account, the page is not on LRU. It's isolated.
1347 */
4f98a2fe 1348
925b7673 1349/**
fa9add64 1350 * mem_cgroup_page_lruvec - return lruvec for adding an lru page
925b7673 1351 * @page: the page
fa9add64 1352 * @zone: zone of the page
925b7673 1353 */
fa9add64 1354struct lruvec *mem_cgroup_page_lruvec(struct page *page, struct zone *zone)
08e552c6 1355{
08e552c6 1356 struct mem_cgroup_per_zone *mz;
925b7673
JW
1357 struct mem_cgroup *memcg;
1358 struct page_cgroup *pc;
bea8c150 1359 struct lruvec *lruvec;
6d12e2d8 1360
bea8c150
HD
1361 if (mem_cgroup_disabled()) {
1362 lruvec = &zone->lruvec;
1363 goto out;
1364 }
925b7673 1365
08e552c6 1366 pc = lookup_page_cgroup(page);
38c5d72f 1367 memcg = pc->mem_cgroup;
7512102c
HD
1368
1369 /*
fa9add64 1370 * Surreptitiously switch any uncharged offlist page to root:
7512102c
HD
1371 * an uncharged page off lru does nothing to secure
1372 * its former mem_cgroup from sudden removal.
1373 *
1374 * Our caller holds lru_lock, and PageCgroupUsed is updated
1375 * under page_cgroup lock: between them, they make all uses
1376 * of pc->mem_cgroup safe.
1377 */
fa9add64 1378 if (!PageLRU(page) && !PageCgroupUsed(pc) && memcg != root_mem_cgroup)
7512102c
HD
1379 pc->mem_cgroup = memcg = root_mem_cgroup;
1380
925b7673 1381 mz = page_cgroup_zoneinfo(memcg, page);
bea8c150
HD
1382 lruvec = &mz->lruvec;
1383out:
1384 /*
1385 * Since a node can be onlined after the mem_cgroup was created,
1386 * we have to be prepared to initialize lruvec->zone here;
1387 * and if offlined then reonlined, we need to reinitialize it.
1388 */
1389 if (unlikely(lruvec->zone != zone))
1390 lruvec->zone = zone;
1391 return lruvec;
08e552c6 1392}
b69408e8 1393
925b7673 1394/**
fa9add64
HD
1395 * mem_cgroup_update_lru_size - account for adding or removing an lru page
1396 * @lruvec: mem_cgroup per zone lru vector
1397 * @lru: index of lru list the page is sitting on
1398 * @nr_pages: positive when adding or negative when removing
925b7673 1399 *
fa9add64
HD
1400 * This function must be called when a page is added to or removed from an
1401 * lru list.
3f58a829 1402 */
fa9add64
HD
1403void mem_cgroup_update_lru_size(struct lruvec *lruvec, enum lru_list lru,
1404 int nr_pages)
3f58a829
MK
1405{
1406 struct mem_cgroup_per_zone *mz;
fa9add64 1407 unsigned long *lru_size;
3f58a829
MK
1408
1409 if (mem_cgroup_disabled())
1410 return;
1411
fa9add64
HD
1412 mz = container_of(lruvec, struct mem_cgroup_per_zone, lruvec);
1413 lru_size = mz->lru_size + lru;
1414 *lru_size += nr_pages;
1415 VM_BUG_ON((long)(*lru_size) < 0);
08e552c6 1416}
544122e5 1417
3e92041d 1418/*
c0ff4b85 1419 * Checks whether given mem is same or in the root_mem_cgroup's
3e92041d
MH
1420 * hierarchy subtree
1421 */
c3ac9a8a
JW
1422bool __mem_cgroup_same_or_subtree(const struct mem_cgroup *root_memcg,
1423 struct mem_cgroup *memcg)
3e92041d 1424{
91c63734
JW
1425 if (root_memcg == memcg)
1426 return true;
3a981f48 1427 if (!root_memcg->use_hierarchy || !memcg)
91c63734 1428 return false;
b47f77b5 1429 return cgroup_is_descendant(memcg->css.cgroup, root_memcg->css.cgroup);
c3ac9a8a
JW
1430}
1431
1432static bool mem_cgroup_same_or_subtree(const struct mem_cgroup *root_memcg,
1433 struct mem_cgroup *memcg)
1434{
1435 bool ret;
1436
91c63734 1437 rcu_read_lock();
c3ac9a8a 1438 ret = __mem_cgroup_same_or_subtree(root_memcg, memcg);
91c63734
JW
1439 rcu_read_unlock();
1440 return ret;
3e92041d
MH
1441}
1442
ffbdccf5
DR
1443bool task_in_mem_cgroup(struct task_struct *task,
1444 const struct mem_cgroup *memcg)
4c4a2214 1445{
0b7f569e 1446 struct mem_cgroup *curr = NULL;
158e0a2d 1447 struct task_struct *p;
ffbdccf5 1448 bool ret;
4c4a2214 1449
158e0a2d 1450 p = find_lock_task_mm(task);
de077d22
DR
1451 if (p) {
1452 curr = try_get_mem_cgroup_from_mm(p->mm);
1453 task_unlock(p);
1454 } else {
1455 /*
1456 * All threads may have already detached their mm's, but the oom
1457 * killer still needs to detect if they have already been oom
1458 * killed to prevent needlessly killing additional tasks.
1459 */
ffbdccf5 1460 rcu_read_lock();
de077d22
DR
1461 curr = mem_cgroup_from_task(task);
1462 if (curr)
1463 css_get(&curr->css);
ffbdccf5 1464 rcu_read_unlock();
de077d22 1465 }
0b7f569e 1466 if (!curr)
ffbdccf5 1467 return false;
d31f56db 1468 /*
c0ff4b85 1469 * We should check use_hierarchy of "memcg" not "curr". Because checking
d31f56db 1470 * use_hierarchy of "curr" here make this function true if hierarchy is
c0ff4b85
R
1471 * enabled in "curr" and "curr" is a child of "memcg" in *cgroup*
1472 * hierarchy(even if use_hierarchy is disabled in "memcg").
d31f56db 1473 */
c0ff4b85 1474 ret = mem_cgroup_same_or_subtree(memcg, curr);
0b7f569e 1475 css_put(&curr->css);
4c4a2214
DR
1476 return ret;
1477}
1478
c56d5c7d 1479int mem_cgroup_inactive_anon_is_low(struct lruvec *lruvec)
14797e23 1480{
9b272977 1481 unsigned long inactive_ratio;
14797e23 1482 unsigned long inactive;
9b272977 1483 unsigned long active;
c772be93 1484 unsigned long gb;
14797e23 1485
4d7dcca2
HD
1486 inactive = mem_cgroup_get_lru_size(lruvec, LRU_INACTIVE_ANON);
1487 active = mem_cgroup_get_lru_size(lruvec, LRU_ACTIVE_ANON);
14797e23 1488
c772be93
KM
1489 gb = (inactive + active) >> (30 - PAGE_SHIFT);
1490 if (gb)
1491 inactive_ratio = int_sqrt(10 * gb);
1492 else
1493 inactive_ratio = 1;
1494
9b272977 1495 return inactive * inactive_ratio < active;
14797e23
KM
1496}
1497
6d61ef40
BS
1498#define mem_cgroup_from_res_counter(counter, member) \
1499 container_of(counter, struct mem_cgroup, member)
1500
19942822 1501/**
9d11ea9f 1502 * mem_cgroup_margin - calculate chargeable space of a memory cgroup
dad7557e 1503 * @memcg: the memory cgroup
19942822 1504 *
9d11ea9f 1505 * Returns the maximum amount of memory @mem can be charged with, in
7ec99d62 1506 * pages.
19942822 1507 */
c0ff4b85 1508static unsigned long mem_cgroup_margin(struct mem_cgroup *memcg)
19942822 1509{
9d11ea9f
JW
1510 unsigned long long margin;
1511
c0ff4b85 1512 margin = res_counter_margin(&memcg->res);
9d11ea9f 1513 if (do_swap_account)
c0ff4b85 1514 margin = min(margin, res_counter_margin(&memcg->memsw));
7ec99d62 1515 return margin >> PAGE_SHIFT;
19942822
JW
1516}
1517
1f4c025b 1518int mem_cgroup_swappiness(struct mem_cgroup *memcg)
a7885eb8 1519{
a7885eb8 1520 /* root ? */
63876986 1521 if (!css_parent(&memcg->css))
a7885eb8
KM
1522 return vm_swappiness;
1523
bf1ff263 1524 return memcg->swappiness;
a7885eb8
KM
1525}
1526
619d094b
KH
1527/*
1528 * memcg->moving_account is used for checking possibility that some thread is
1529 * calling move_account(). When a thread on CPU-A starts moving pages under
1530 * a memcg, other threads should check memcg->moving_account under
1531 * rcu_read_lock(), like this:
1532 *
1533 * CPU-A CPU-B
1534 * rcu_read_lock()
1535 * memcg->moving_account+1 if (memcg->mocing_account)
1536 * take heavy locks.
1537 * synchronize_rcu() update something.
1538 * rcu_read_unlock()
1539 * start move here.
1540 */
4331f7d3
KH
1541
1542/* for quick checking without looking up memcg */
1543atomic_t memcg_moving __read_mostly;
1544
c0ff4b85 1545static void mem_cgroup_start_move(struct mem_cgroup *memcg)
32047e2a 1546{
4331f7d3 1547 atomic_inc(&memcg_moving);
619d094b 1548 atomic_inc(&memcg->moving_account);
32047e2a
KH
1549 synchronize_rcu();
1550}
1551
c0ff4b85 1552static void mem_cgroup_end_move(struct mem_cgroup *memcg)
32047e2a 1553{
619d094b
KH
1554 /*
1555 * Now, mem_cgroup_clear_mc() may call this function with NULL.
1556 * We check NULL in callee rather than caller.
1557 */
4331f7d3
KH
1558 if (memcg) {
1559 atomic_dec(&memcg_moving);
619d094b 1560 atomic_dec(&memcg->moving_account);
4331f7d3 1561 }
32047e2a 1562}
619d094b 1563
32047e2a
KH
1564/*
1565 * 2 routines for checking "mem" is under move_account() or not.
1566 *
13fd1dd9
AM
1567 * mem_cgroup_stolen() - checking whether a cgroup is mc.from or not. This
1568 * is used for avoiding races in accounting. If true,
32047e2a
KH
1569 * pc->mem_cgroup may be overwritten.
1570 *
1571 * mem_cgroup_under_move() - checking a cgroup is mc.from or mc.to or
1572 * under hierarchy of moving cgroups. This is for
1573 * waiting at hith-memory prressure caused by "move".
1574 */
1575
13fd1dd9 1576static bool mem_cgroup_stolen(struct mem_cgroup *memcg)
32047e2a
KH
1577{
1578 VM_BUG_ON(!rcu_read_lock_held());
619d094b 1579 return atomic_read(&memcg->moving_account) > 0;
32047e2a 1580}
4b534334 1581
c0ff4b85 1582static bool mem_cgroup_under_move(struct mem_cgroup *memcg)
4b534334 1583{
2bd9bb20
KH
1584 struct mem_cgroup *from;
1585 struct mem_cgroup *to;
4b534334 1586 bool ret = false;
2bd9bb20
KH
1587 /*
1588 * Unlike task_move routines, we access mc.to, mc.from not under
1589 * mutual exclusion by cgroup_mutex. Here, we take spinlock instead.
1590 */
1591 spin_lock(&mc.lock);
1592 from = mc.from;
1593 to = mc.to;
1594 if (!from)
1595 goto unlock;
3e92041d 1596
c0ff4b85
R
1597 ret = mem_cgroup_same_or_subtree(memcg, from)
1598 || mem_cgroup_same_or_subtree(memcg, to);
2bd9bb20
KH
1599unlock:
1600 spin_unlock(&mc.lock);
4b534334
KH
1601 return ret;
1602}
1603
c0ff4b85 1604static bool mem_cgroup_wait_acct_move(struct mem_cgroup *memcg)
4b534334
KH
1605{
1606 if (mc.moving_task && current != mc.moving_task) {
c0ff4b85 1607 if (mem_cgroup_under_move(memcg)) {
4b534334
KH
1608 DEFINE_WAIT(wait);
1609 prepare_to_wait(&mc.waitq, &wait, TASK_INTERRUPTIBLE);
1610 /* moving charge context might have finished. */
1611 if (mc.moving_task)
1612 schedule();
1613 finish_wait(&mc.waitq, &wait);
1614 return true;
1615 }
1616 }
1617 return false;
1618}
1619
312734c0
KH
1620/*
1621 * Take this lock when
1622 * - a code tries to modify page's memcg while it's USED.
1623 * - a code tries to modify page state accounting in a memcg.
13fd1dd9 1624 * see mem_cgroup_stolen(), too.
312734c0
KH
1625 */
1626static void move_lock_mem_cgroup(struct mem_cgroup *memcg,
1627 unsigned long *flags)
1628{
1629 spin_lock_irqsave(&memcg->move_lock, *flags);
1630}
1631
1632static void move_unlock_mem_cgroup(struct mem_cgroup *memcg,
1633 unsigned long *flags)
1634{
1635 spin_unlock_irqrestore(&memcg->move_lock, *flags);
1636}
1637
58cf188e 1638#define K(x) ((x) << (PAGE_SHIFT-10))
e222432b 1639/**
58cf188e 1640 * mem_cgroup_print_oom_info: Print OOM information relevant to memory controller.
e222432b
BS
1641 * @memcg: The memory cgroup that went over limit
1642 * @p: Task that is going to be killed
1643 *
1644 * NOTE: @memcg and @p's mem_cgroup can be different when hierarchy is
1645 * enabled
1646 */
1647void mem_cgroup_print_oom_info(struct mem_cgroup *memcg, struct task_struct *p)
1648{
1649 struct cgroup *task_cgrp;
1650 struct cgroup *mem_cgrp;
1651 /*
1652 * Need a buffer in BSS, can't rely on allocations. The code relies
1653 * on the assumption that OOM is serialized for memory controller.
1654 * If this assumption is broken, revisit this code.
1655 */
1656 static char memcg_name[PATH_MAX];
1657 int ret;
58cf188e
SZ
1658 struct mem_cgroup *iter;
1659 unsigned int i;
e222432b 1660
58cf188e 1661 if (!p)
e222432b
BS
1662 return;
1663
e222432b
BS
1664 rcu_read_lock();
1665
1666 mem_cgrp = memcg->css.cgroup;
1667 task_cgrp = task_cgroup(p, mem_cgroup_subsys_id);
1668
1669 ret = cgroup_path(task_cgrp, memcg_name, PATH_MAX);
1670 if (ret < 0) {
1671 /*
1672 * Unfortunately, we are unable to convert to a useful name
1673 * But we'll still print out the usage information
1674 */
1675 rcu_read_unlock();
1676 goto done;
1677 }
1678 rcu_read_unlock();
1679
d045197f 1680 pr_info("Task in %s killed", memcg_name);
e222432b
BS
1681
1682 rcu_read_lock();
1683 ret = cgroup_path(mem_cgrp, memcg_name, PATH_MAX);
1684 if (ret < 0) {
1685 rcu_read_unlock();
1686 goto done;
1687 }
1688 rcu_read_unlock();
1689
1690 /*
1691 * Continues from above, so we don't need an KERN_ level
1692 */
d045197f 1693 pr_cont(" as a result of limit of %s\n", memcg_name);
e222432b
BS
1694done:
1695
d045197f 1696 pr_info("memory: usage %llukB, limit %llukB, failcnt %llu\n",
e222432b
BS
1697 res_counter_read_u64(&memcg->res, RES_USAGE) >> 10,
1698 res_counter_read_u64(&memcg->res, RES_LIMIT) >> 10,
1699 res_counter_read_u64(&memcg->res, RES_FAILCNT));
d045197f 1700 pr_info("memory+swap: usage %llukB, limit %llukB, failcnt %llu\n",
e222432b
BS
1701 res_counter_read_u64(&memcg->memsw, RES_USAGE) >> 10,
1702 res_counter_read_u64(&memcg->memsw, RES_LIMIT) >> 10,
1703 res_counter_read_u64(&memcg->memsw, RES_FAILCNT));
d045197f 1704 pr_info("kmem: usage %llukB, limit %llukB, failcnt %llu\n",
510fc4e1
GC
1705 res_counter_read_u64(&memcg->kmem, RES_USAGE) >> 10,
1706 res_counter_read_u64(&memcg->kmem, RES_LIMIT) >> 10,
1707 res_counter_read_u64(&memcg->kmem, RES_FAILCNT));
58cf188e
SZ
1708
1709 for_each_mem_cgroup_tree(iter, memcg) {
1710 pr_info("Memory cgroup stats");
1711
1712 rcu_read_lock();
1713 ret = cgroup_path(iter->css.cgroup, memcg_name, PATH_MAX);
1714 if (!ret)
1715 pr_cont(" for %s", memcg_name);
1716 rcu_read_unlock();
1717 pr_cont(":");
1718
1719 for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
1720 if (i == MEM_CGROUP_STAT_SWAP && !do_swap_account)
1721 continue;
1722 pr_cont(" %s:%ldKB", mem_cgroup_stat_names[i],
1723 K(mem_cgroup_read_stat(iter, i)));
1724 }
1725
1726 for (i = 0; i < NR_LRU_LISTS; i++)
1727 pr_cont(" %s:%luKB", mem_cgroup_lru_names[i],
1728 K(mem_cgroup_nr_lru_pages(iter, BIT(i))));
1729
1730 pr_cont("\n");
1731 }
e222432b
BS
1732}
1733
81d39c20
KH
1734/*
1735 * This function returns the number of memcg under hierarchy tree. Returns
1736 * 1(self count) if no children.
1737 */
c0ff4b85 1738static int mem_cgroup_count_children(struct mem_cgroup *memcg)
81d39c20
KH
1739{
1740 int num = 0;
7d74b06f
KH
1741 struct mem_cgroup *iter;
1742
c0ff4b85 1743 for_each_mem_cgroup_tree(iter, memcg)
7d74b06f 1744 num++;
81d39c20
KH
1745 return num;
1746}
1747
a63d83f4
DR
1748/*
1749 * Return the memory (and swap, if configured) limit for a memcg.
1750 */
9cbb78bb 1751static u64 mem_cgroup_get_limit(struct mem_cgroup *memcg)
a63d83f4
DR
1752{
1753 u64 limit;
a63d83f4 1754
f3e8eb70 1755 limit = res_counter_read_u64(&memcg->res, RES_LIMIT);
f3e8eb70 1756
a63d83f4 1757 /*
9a5a8f19 1758 * Do not consider swap space if we cannot swap due to swappiness
a63d83f4 1759 */
9a5a8f19
MH
1760 if (mem_cgroup_swappiness(memcg)) {
1761 u64 memsw;
1762
1763 limit += total_swap_pages << PAGE_SHIFT;
1764 memsw = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
1765
1766 /*
1767 * If memsw is finite and limits the amount of swap space
1768 * available to this memcg, return that limit.
1769 */
1770 limit = min(limit, memsw);
1771 }
1772
1773 return limit;
a63d83f4
DR
1774}
1775
19965460
DR
1776static void mem_cgroup_out_of_memory(struct mem_cgroup *memcg, gfp_t gfp_mask,
1777 int order)
9cbb78bb
DR
1778{
1779 struct mem_cgroup *iter;
1780 unsigned long chosen_points = 0;
1781 unsigned long totalpages;
1782 unsigned int points = 0;
1783 struct task_struct *chosen = NULL;
1784
876aafbf 1785 /*
465adcf1
DR
1786 * If current has a pending SIGKILL or is exiting, then automatically
1787 * select it. The goal is to allow it to allocate so that it may
1788 * quickly exit and free its memory.
876aafbf 1789 */
465adcf1 1790 if (fatal_signal_pending(current) || current->flags & PF_EXITING) {
876aafbf
DR
1791 set_thread_flag(TIF_MEMDIE);
1792 return;
1793 }
1794
1795 check_panic_on_oom(CONSTRAINT_MEMCG, gfp_mask, order, NULL);
9cbb78bb
DR
1796 totalpages = mem_cgroup_get_limit(memcg) >> PAGE_SHIFT ? : 1;
1797 for_each_mem_cgroup_tree(iter, memcg) {
72ec7029 1798 struct css_task_iter it;
9cbb78bb
DR
1799 struct task_struct *task;
1800
72ec7029
TH
1801 css_task_iter_start(&iter->css, &it);
1802 while ((task = css_task_iter_next(&it))) {
9cbb78bb
DR
1803 switch (oom_scan_process_thread(task, totalpages, NULL,
1804 false)) {
1805 case OOM_SCAN_SELECT:
1806 if (chosen)
1807 put_task_struct(chosen);
1808 chosen = task;
1809 chosen_points = ULONG_MAX;
1810 get_task_struct(chosen);
1811 /* fall through */
1812 case OOM_SCAN_CONTINUE:
1813 continue;
1814 case OOM_SCAN_ABORT:
72ec7029 1815 css_task_iter_end(&it);
9cbb78bb
DR
1816 mem_cgroup_iter_break(memcg, iter);
1817 if (chosen)
1818 put_task_struct(chosen);
1819 return;
1820 case OOM_SCAN_OK:
1821 break;
1822 };
1823 points = oom_badness(task, memcg, NULL, totalpages);
1824 if (points > chosen_points) {
1825 if (chosen)
1826 put_task_struct(chosen);
1827 chosen = task;
1828 chosen_points = points;
1829 get_task_struct(chosen);
1830 }
1831 }
72ec7029 1832 css_task_iter_end(&it);
9cbb78bb
DR
1833 }
1834
1835 if (!chosen)
1836 return;
1837 points = chosen_points * 1000 / totalpages;
9cbb78bb
DR
1838 oom_kill_process(chosen, gfp_mask, order, points, totalpages, memcg,
1839 NULL, "Memory cgroup out of memory");
9cbb78bb
DR
1840}
1841
5660048c
JW
1842static unsigned long mem_cgroup_reclaim(struct mem_cgroup *memcg,
1843 gfp_t gfp_mask,
1844 unsigned long flags)
1845{
1846 unsigned long total = 0;
1847 bool noswap = false;
1848 int loop;
1849
1850 if (flags & MEM_CGROUP_RECLAIM_NOSWAP)
1851 noswap = true;
1852 if (!(flags & MEM_CGROUP_RECLAIM_SHRINK) && memcg->memsw_is_minimum)
1853 noswap = true;
1854
1855 for (loop = 0; loop < MEM_CGROUP_MAX_RECLAIM_LOOPS; loop++) {
1856 if (loop)
1857 drain_all_stock_async(memcg);
1858 total += try_to_free_mem_cgroup_pages(memcg, gfp_mask, noswap);
1859 /*
1860 * Allow limit shrinkers, which are triggered directly
1861 * by userspace, to catch signals and stop reclaim
1862 * after minimal progress, regardless of the margin.
1863 */
1864 if (total && (flags & MEM_CGROUP_RECLAIM_SHRINK))
1865 break;
1866 if (mem_cgroup_margin(memcg))
1867 break;
1868 /*
1869 * If nothing was reclaimed after two attempts, there
1870 * may be no reclaimable pages in this hierarchy.
1871 */
1872 if (loop && !total)
1873 break;
1874 }
1875 return total;
1876}
1877
4d0c066d
KH
1878/**
1879 * test_mem_cgroup_node_reclaimable
dad7557e 1880 * @memcg: the target memcg
4d0c066d
KH
1881 * @nid: the node ID to be checked.
1882 * @noswap : specify true here if the user wants flle only information.
1883 *
1884 * This function returns whether the specified memcg contains any
1885 * reclaimable pages on a node. Returns true if there are any reclaimable
1886 * pages in the node.
1887 */
c0ff4b85 1888static bool test_mem_cgroup_node_reclaimable(struct mem_cgroup *memcg,
4d0c066d
KH
1889 int nid, bool noswap)
1890{
c0ff4b85 1891 if (mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL_FILE))
4d0c066d
KH
1892 return true;
1893 if (noswap || !total_swap_pages)
1894 return false;
c0ff4b85 1895 if (mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL_ANON))
4d0c066d
KH
1896 return true;
1897 return false;
1898
1899}
bb4cc1a8 1900#if MAX_NUMNODES > 1
889976db
YH
1901
1902/*
1903 * Always updating the nodemask is not very good - even if we have an empty
1904 * list or the wrong list here, we can start from some node and traverse all
1905 * nodes based on the zonelist. So update the list loosely once per 10 secs.
1906 *
1907 */
c0ff4b85 1908static void mem_cgroup_may_update_nodemask(struct mem_cgroup *memcg)
889976db
YH
1909{
1910 int nid;
453a9bf3
KH
1911 /*
1912 * numainfo_events > 0 means there was at least NUMAINFO_EVENTS_TARGET
1913 * pagein/pageout changes since the last update.
1914 */
c0ff4b85 1915 if (!atomic_read(&memcg->numainfo_events))
453a9bf3 1916 return;
c0ff4b85 1917 if (atomic_inc_return(&memcg->numainfo_updating) > 1)
889976db
YH
1918 return;
1919
889976db 1920 /* make a nodemask where this memcg uses memory from */
31aaea4a 1921 memcg->scan_nodes = node_states[N_MEMORY];
889976db 1922
31aaea4a 1923 for_each_node_mask(nid, node_states[N_MEMORY]) {
889976db 1924
c0ff4b85
R
1925 if (!test_mem_cgroup_node_reclaimable(memcg, nid, false))
1926 node_clear(nid, memcg->scan_nodes);
889976db 1927 }
453a9bf3 1928
c0ff4b85
R
1929 atomic_set(&memcg->numainfo_events, 0);
1930 atomic_set(&memcg->numainfo_updating, 0);
889976db
YH
1931}
1932
1933/*
1934 * Selecting a node where we start reclaim from. Because what we need is just
1935 * reducing usage counter, start from anywhere is O,K. Considering
1936 * memory reclaim from current node, there are pros. and cons.
1937 *
1938 * Freeing memory from current node means freeing memory from a node which
1939 * we'll use or we've used. So, it may make LRU bad. And if several threads
1940 * hit limits, it will see a contention on a node. But freeing from remote
1941 * node means more costs for memory reclaim because of memory latency.
1942 *
1943 * Now, we use round-robin. Better algorithm is welcomed.
1944 */
c0ff4b85 1945int mem_cgroup_select_victim_node(struct mem_cgroup *memcg)
889976db
YH
1946{
1947 int node;
1948
c0ff4b85
R
1949 mem_cgroup_may_update_nodemask(memcg);
1950 node = memcg->last_scanned_node;
889976db 1951
c0ff4b85 1952 node = next_node(node, memcg->scan_nodes);
889976db 1953 if (node == MAX_NUMNODES)
c0ff4b85 1954 node = first_node(memcg->scan_nodes);
889976db
YH
1955 /*
1956 * We call this when we hit limit, not when pages are added to LRU.
1957 * No LRU may hold pages because all pages are UNEVICTABLE or
1958 * memcg is too small and all pages are not on LRU. In that case,
1959 * we use curret node.
1960 */
1961 if (unlikely(node == MAX_NUMNODES))
1962 node = numa_node_id();
1963
c0ff4b85 1964 memcg->last_scanned_node = node;
889976db
YH
1965 return node;
1966}
1967
bb4cc1a8
AM
1968/*
1969 * Check all nodes whether it contains reclaimable pages or not.
1970 * For quick scan, we make use of scan_nodes. This will allow us to skip
1971 * unused nodes. But scan_nodes is lazily updated and may not cotain
1972 * enough new information. We need to do double check.
1973 */
1974static bool mem_cgroup_reclaimable(struct mem_cgroup *memcg, bool noswap)
1975{
1976 int nid;
1977
1978 /*
1979 * quick check...making use of scan_node.
1980 * We can skip unused nodes.
1981 */
1982 if (!nodes_empty(memcg->scan_nodes)) {
1983 for (nid = first_node(memcg->scan_nodes);
1984 nid < MAX_NUMNODES;
1985 nid = next_node(nid, memcg->scan_nodes)) {
1986
1987 if (test_mem_cgroup_node_reclaimable(memcg, nid, noswap))
1988 return true;
1989 }
1990 }
1991 /*
1992 * Check rest of nodes.
1993 */
1994 for_each_node_state(nid, N_MEMORY) {
1995 if (node_isset(nid, memcg->scan_nodes))
1996 continue;
1997 if (test_mem_cgroup_node_reclaimable(memcg, nid, noswap))
1998 return true;
1999 }
2000 return false;
2001}
2002
889976db 2003#else
c0ff4b85 2004int mem_cgroup_select_victim_node(struct mem_cgroup *memcg)
889976db
YH
2005{
2006 return 0;
2007}
4d0c066d 2008
bb4cc1a8
AM
2009static bool mem_cgroup_reclaimable(struct mem_cgroup *memcg, bool noswap)
2010{
2011 return test_mem_cgroup_node_reclaimable(memcg, 0, noswap);
2012}
889976db
YH
2013#endif
2014
0608f43d
AM
2015static int mem_cgroup_soft_reclaim(struct mem_cgroup *root_memcg,
2016 struct zone *zone,
2017 gfp_t gfp_mask,
2018 unsigned long *total_scanned)
2019{
2020 struct mem_cgroup *victim = NULL;
2021 int total = 0;
2022 int loop = 0;
2023 unsigned long excess;
2024 unsigned long nr_scanned;
2025 struct mem_cgroup_reclaim_cookie reclaim = {
2026 .zone = zone,
2027 .priority = 0,
2028 };
2029
2030 excess = res_counter_soft_limit_excess(&root_memcg->res) >> PAGE_SHIFT;
2031
2032 while (1) {
2033 victim = mem_cgroup_iter(root_memcg, victim, &reclaim);
2034 if (!victim) {
2035 loop++;
2036 if (loop >= 2) {
2037 /*
2038 * If we have not been able to reclaim
2039 * anything, it might because there are
2040 * no reclaimable pages under this hierarchy
2041 */
2042 if (!total)
2043 break;
2044 /*
2045 * We want to do more targeted reclaim.
2046 * excess >> 2 is not to excessive so as to
2047 * reclaim too much, nor too less that we keep
2048 * coming back to reclaim from this cgroup
2049 */
2050 if (total >= (excess >> 2) ||
2051 (loop > MEM_CGROUP_MAX_RECLAIM_LOOPS))
2052 break;
2053 }
2054 continue;
2055 }
2056 if (!mem_cgroup_reclaimable(victim, false))
2057 continue;
2058 total += mem_cgroup_shrink_node_zone(victim, gfp_mask, false,
2059 zone, &nr_scanned);
2060 *total_scanned += nr_scanned;
2061 if (!res_counter_soft_limit_excess(&root_memcg->res))
2062 break;
6d61ef40 2063 }
0608f43d
AM
2064 mem_cgroup_iter_break(root_memcg, victim);
2065 return total;
6d61ef40
BS
2066}
2067
0056f4e6
JW
2068#ifdef CONFIG_LOCKDEP
2069static struct lockdep_map memcg_oom_lock_dep_map = {
2070 .name = "memcg_oom_lock",
2071};
2072#endif
2073
fb2a6fc5
JW
2074static DEFINE_SPINLOCK(memcg_oom_lock);
2075
867578cb
KH
2076/*
2077 * Check OOM-Killer is already running under our hierarchy.
2078 * If someone is running, return false.
2079 */
fb2a6fc5 2080static bool mem_cgroup_oom_trylock(struct mem_cgroup *memcg)
867578cb 2081{
79dfdacc 2082 struct mem_cgroup *iter, *failed = NULL;
a636b327 2083
fb2a6fc5
JW
2084 spin_lock(&memcg_oom_lock);
2085
9f3a0d09 2086 for_each_mem_cgroup_tree(iter, memcg) {
23751be0 2087 if (iter->oom_lock) {
79dfdacc
MH
2088 /*
2089 * this subtree of our hierarchy is already locked
2090 * so we cannot give a lock.
2091 */
79dfdacc 2092 failed = iter;
9f3a0d09
JW
2093 mem_cgroup_iter_break(memcg, iter);
2094 break;
23751be0
JW
2095 } else
2096 iter->oom_lock = true;
7d74b06f 2097 }
867578cb 2098
fb2a6fc5
JW
2099 if (failed) {
2100 /*
2101 * OK, we failed to lock the whole subtree so we have
2102 * to clean up what we set up to the failing subtree
2103 */
2104 for_each_mem_cgroup_tree(iter, memcg) {
2105 if (iter == failed) {
2106 mem_cgroup_iter_break(memcg, iter);
2107 break;
2108 }
2109 iter->oom_lock = false;
79dfdacc 2110 }
0056f4e6
JW
2111 } else
2112 mutex_acquire(&memcg_oom_lock_dep_map, 0, 1, _RET_IP_);
fb2a6fc5
JW
2113
2114 spin_unlock(&memcg_oom_lock);
2115
2116 return !failed;
a636b327 2117}
0b7f569e 2118
fb2a6fc5 2119static void mem_cgroup_oom_unlock(struct mem_cgroup *memcg)
0b7f569e 2120{
7d74b06f
KH
2121 struct mem_cgroup *iter;
2122
fb2a6fc5 2123 spin_lock(&memcg_oom_lock);
0056f4e6 2124 mutex_release(&memcg_oom_lock_dep_map, 1, _RET_IP_);
c0ff4b85 2125 for_each_mem_cgroup_tree(iter, memcg)
79dfdacc 2126 iter->oom_lock = false;
fb2a6fc5 2127 spin_unlock(&memcg_oom_lock);
79dfdacc
MH
2128}
2129
c0ff4b85 2130static void mem_cgroup_mark_under_oom(struct mem_cgroup *memcg)
79dfdacc
MH
2131{
2132 struct mem_cgroup *iter;
2133
c0ff4b85 2134 for_each_mem_cgroup_tree(iter, memcg)
79dfdacc
MH
2135 atomic_inc(&iter->under_oom);
2136}
2137
c0ff4b85 2138static void mem_cgroup_unmark_under_oom(struct mem_cgroup *memcg)
79dfdacc
MH
2139{
2140 struct mem_cgroup *iter;
2141
867578cb
KH
2142 /*
2143 * When a new child is created while the hierarchy is under oom,
2144 * mem_cgroup_oom_lock() may not be called. We have to use
2145 * atomic_add_unless() here.
2146 */
c0ff4b85 2147 for_each_mem_cgroup_tree(iter, memcg)
79dfdacc 2148 atomic_add_unless(&iter->under_oom, -1, 0);
0b7f569e
KH
2149}
2150
867578cb
KH
2151static DECLARE_WAIT_QUEUE_HEAD(memcg_oom_waitq);
2152
dc98df5a 2153struct oom_wait_info {
d79154bb 2154 struct mem_cgroup *memcg;
dc98df5a
KH
2155 wait_queue_t wait;
2156};
2157
2158static int memcg_oom_wake_function(wait_queue_t *wait,
2159 unsigned mode, int sync, void *arg)
2160{
d79154bb
HD
2161 struct mem_cgroup *wake_memcg = (struct mem_cgroup *)arg;
2162 struct mem_cgroup *oom_wait_memcg;
dc98df5a
KH
2163 struct oom_wait_info *oom_wait_info;
2164
2165 oom_wait_info = container_of(wait, struct oom_wait_info, wait);
d79154bb 2166 oom_wait_memcg = oom_wait_info->memcg;
dc98df5a 2167
dc98df5a 2168 /*
d79154bb 2169 * Both of oom_wait_info->memcg and wake_memcg are stable under us.
dc98df5a
KH
2170 * Then we can use css_is_ancestor without taking care of RCU.
2171 */
c0ff4b85
R
2172 if (!mem_cgroup_same_or_subtree(oom_wait_memcg, wake_memcg)
2173 && !mem_cgroup_same_or_subtree(wake_memcg, oom_wait_memcg))
dc98df5a 2174 return 0;
dc98df5a
KH
2175 return autoremove_wake_function(wait, mode, sync, arg);
2176}
2177
c0ff4b85 2178static void memcg_wakeup_oom(struct mem_cgroup *memcg)
dc98df5a 2179{
3812c8c8 2180 atomic_inc(&memcg->oom_wakeups);
c0ff4b85
R
2181 /* for filtering, pass "memcg" as argument. */
2182 __wake_up(&memcg_oom_waitq, TASK_NORMAL, 0, memcg);
dc98df5a
KH
2183}
2184
c0ff4b85 2185static void memcg_oom_recover(struct mem_cgroup *memcg)
3c11ecf4 2186{
c0ff4b85
R
2187 if (memcg && atomic_read(&memcg->under_oom))
2188 memcg_wakeup_oom(memcg);
3c11ecf4
KH
2189}
2190
3812c8c8 2191static void mem_cgroup_oom(struct mem_cgroup *memcg, gfp_t mask, int order)
0b7f569e 2192{
3812c8c8
JW
2193 if (!current->memcg_oom.may_oom)
2194 return;
867578cb 2195 /*
49426420
JW
2196 * We are in the middle of the charge context here, so we
2197 * don't want to block when potentially sitting on a callstack
2198 * that holds all kinds of filesystem and mm locks.
2199 *
2200 * Also, the caller may handle a failed allocation gracefully
2201 * (like optional page cache readahead) and so an OOM killer
2202 * invocation might not even be necessary.
2203 *
2204 * That's why we don't do anything here except remember the
2205 * OOM context and then deal with it at the end of the page
2206 * fault when the stack is unwound, the locks are released,
2207 * and when we know whether the fault was overall successful.
867578cb 2208 */
49426420
JW
2209 css_get(&memcg->css);
2210 current->memcg_oom.memcg = memcg;
2211 current->memcg_oom.gfp_mask = mask;
2212 current->memcg_oom.order = order;
3812c8c8
JW
2213}
2214
2215/**
2216 * mem_cgroup_oom_synchronize - complete memcg OOM handling
49426420 2217 * @handle: actually kill/wait or just clean up the OOM state
3812c8c8 2218 *
49426420
JW
2219 * This has to be called at the end of a page fault if the memcg OOM
2220 * handler was enabled.
3812c8c8 2221 *
49426420 2222 * Memcg supports userspace OOM handling where failed allocations must
3812c8c8
JW
2223 * sleep on a waitqueue until the userspace task resolves the
2224 * situation. Sleeping directly in the charge context with all kinds
2225 * of locks held is not a good idea, instead we remember an OOM state
2226 * in the task and mem_cgroup_oom_synchronize() has to be called at
49426420 2227 * the end of the page fault to complete the OOM handling.
3812c8c8
JW
2228 *
2229 * Returns %true if an ongoing memcg OOM situation was detected and
49426420 2230 * completed, %false otherwise.
3812c8c8 2231 */
49426420 2232bool mem_cgroup_oom_synchronize(bool handle)
3812c8c8 2233{
49426420 2234 struct mem_cgroup *memcg = current->memcg_oom.memcg;
3812c8c8 2235 struct oom_wait_info owait;
49426420 2236 bool locked;
3812c8c8
JW
2237
2238 /* OOM is global, do not handle */
3812c8c8 2239 if (!memcg)
49426420 2240 return false;
3812c8c8 2241
49426420
JW
2242 if (!handle)
2243 goto cleanup;
3812c8c8
JW
2244
2245 owait.memcg = memcg;
2246 owait.wait.flags = 0;
2247 owait.wait.func = memcg_oom_wake_function;
2248 owait.wait.private = current;
2249 INIT_LIST_HEAD(&owait.wait.task_list);
867578cb 2250
3812c8c8 2251 prepare_to_wait(&memcg_oom_waitq, &owait.wait, TASK_KILLABLE);
49426420
JW
2252 mem_cgroup_mark_under_oom(memcg);
2253
2254 locked = mem_cgroup_oom_trylock(memcg);
2255
2256 if (locked)
2257 mem_cgroup_oom_notify(memcg);
2258
2259 if (locked && !memcg->oom_kill_disable) {
2260 mem_cgroup_unmark_under_oom(memcg);
2261 finish_wait(&memcg_oom_waitq, &owait.wait);
2262 mem_cgroup_out_of_memory(memcg, current->memcg_oom.gfp_mask,
2263 current->memcg_oom.order);
2264 } else {
3812c8c8 2265 schedule();
49426420
JW
2266 mem_cgroup_unmark_under_oom(memcg);
2267 finish_wait(&memcg_oom_waitq, &owait.wait);
2268 }
2269
2270 if (locked) {
fb2a6fc5
JW
2271 mem_cgroup_oom_unlock(memcg);
2272 /*
2273 * There is no guarantee that an OOM-lock contender
2274 * sees the wakeups triggered by the OOM kill
2275 * uncharges. Wake any sleepers explicitely.
2276 */
2277 memcg_oom_recover(memcg);
2278 }
49426420
JW
2279cleanup:
2280 current->memcg_oom.memcg = NULL;
3812c8c8 2281 css_put(&memcg->css);
867578cb 2282 return true;
0b7f569e
KH
2283}
2284
d69b042f
BS
2285/*
2286 * Currently used to update mapped file statistics, but the routine can be
2287 * generalized to update other statistics as well.
32047e2a
KH
2288 *
2289 * Notes: Race condition
2290 *
2291 * We usually use page_cgroup_lock() for accessing page_cgroup member but
2292 * it tends to be costly. But considering some conditions, we doesn't need
2293 * to do so _always_.
2294 *
2295 * Considering "charge", lock_page_cgroup() is not required because all
2296 * file-stat operations happen after a page is attached to radix-tree. There
2297 * are no race with "charge".
2298 *
2299 * Considering "uncharge", we know that memcg doesn't clear pc->mem_cgroup
2300 * at "uncharge" intentionally. So, we always see valid pc->mem_cgroup even
2301 * if there are race with "uncharge". Statistics itself is properly handled
2302 * by flags.
2303 *
2304 * Considering "move", this is an only case we see a race. To make the race
619d094b
KH
2305 * small, we check mm->moving_account and detect there are possibility of race
2306 * If there is, we take a lock.
d69b042f 2307 */
26174efd 2308
89c06bd5
KH
2309void __mem_cgroup_begin_update_page_stat(struct page *page,
2310 bool *locked, unsigned long *flags)
2311{
2312 struct mem_cgroup *memcg;
2313 struct page_cgroup *pc;
2314
2315 pc = lookup_page_cgroup(page);
2316again:
2317 memcg = pc->mem_cgroup;
2318 if (unlikely(!memcg || !PageCgroupUsed(pc)))
2319 return;
2320 /*
2321 * If this memory cgroup is not under account moving, we don't
da92c47d 2322 * need to take move_lock_mem_cgroup(). Because we already hold
89c06bd5 2323 * rcu_read_lock(), any calls to move_account will be delayed until
13fd1dd9 2324 * rcu_read_unlock() if mem_cgroup_stolen() == true.
89c06bd5 2325 */
13fd1dd9 2326 if (!mem_cgroup_stolen(memcg))
89c06bd5
KH
2327 return;
2328
2329 move_lock_mem_cgroup(memcg, flags);
2330 if (memcg != pc->mem_cgroup || !PageCgroupUsed(pc)) {
2331 move_unlock_mem_cgroup(memcg, flags);
2332 goto again;
2333 }
2334 *locked = true;
2335}
2336
2337void __mem_cgroup_end_update_page_stat(struct page *page, unsigned long *flags)
2338{
2339 struct page_cgroup *pc = lookup_page_cgroup(page);
2340
2341 /*
2342 * It's guaranteed that pc->mem_cgroup never changes while
2343 * lock is held because a routine modifies pc->mem_cgroup
da92c47d 2344 * should take move_lock_mem_cgroup().
89c06bd5
KH
2345 */
2346 move_unlock_mem_cgroup(pc->mem_cgroup, flags);
2347}
2348
2a7106f2 2349void mem_cgroup_update_page_stat(struct page *page,
68b4876d 2350 enum mem_cgroup_stat_index idx, int val)
d69b042f 2351{
c0ff4b85 2352 struct mem_cgroup *memcg;
32047e2a 2353 struct page_cgroup *pc = lookup_page_cgroup(page);
dbd4ea78 2354 unsigned long uninitialized_var(flags);
d69b042f 2355
cfa44946 2356 if (mem_cgroup_disabled())
d69b042f 2357 return;
89c06bd5 2358
658b72c5 2359 VM_BUG_ON(!rcu_read_lock_held());
c0ff4b85
R
2360 memcg = pc->mem_cgroup;
2361 if (unlikely(!memcg || !PageCgroupUsed(pc)))
89c06bd5 2362 return;
26174efd 2363
c0ff4b85 2364 this_cpu_add(memcg->stat->count[idx], val);
d69b042f 2365}
26174efd 2366
cdec2e42
KH
2367/*
2368 * size of first charge trial. "32" comes from vmscan.c's magic value.
2369 * TODO: maybe necessary to use big numbers in big irons.
2370 */
7ec99d62 2371#define CHARGE_BATCH 32U
cdec2e42
KH
2372struct memcg_stock_pcp {
2373 struct mem_cgroup *cached; /* this never be root cgroup */
11c9ea4e 2374 unsigned int nr_pages;
cdec2e42 2375 struct work_struct work;
26fe6168 2376 unsigned long flags;
a0db00fc 2377#define FLUSHING_CACHED_CHARGE 0
cdec2e42
KH
2378};
2379static DEFINE_PER_CPU(struct memcg_stock_pcp, memcg_stock);
9f50fad6 2380static DEFINE_MUTEX(percpu_charge_mutex);
cdec2e42 2381
a0956d54
SS
2382/**
2383 * consume_stock: Try to consume stocked charge on this cpu.
2384 * @memcg: memcg to consume from.
2385 * @nr_pages: how many pages to charge.
2386 *
2387 * The charges will only happen if @memcg matches the current cpu's memcg
2388 * stock, and at least @nr_pages are available in that stock. Failure to
2389 * service an allocation will refill the stock.
2390 *
2391 * returns true if successful, false otherwise.
cdec2e42 2392 */
a0956d54 2393static bool consume_stock(struct mem_cgroup *memcg, unsigned int nr_pages)
cdec2e42
KH
2394{
2395 struct memcg_stock_pcp *stock;
2396 bool ret = true;
2397
a0956d54
SS
2398 if (nr_pages > CHARGE_BATCH)
2399 return false;
2400
cdec2e42 2401 stock = &get_cpu_var(memcg_stock);
a0956d54
SS
2402 if (memcg == stock->cached && stock->nr_pages >= nr_pages)
2403 stock->nr_pages -= nr_pages;
cdec2e42
KH
2404 else /* need to call res_counter_charge */
2405 ret = false;
2406 put_cpu_var(memcg_stock);
2407 return ret;
2408}
2409
2410/*
2411 * Returns stocks cached in percpu to res_counter and reset cached information.
2412 */
2413static void drain_stock(struct memcg_stock_pcp *stock)
2414{
2415 struct mem_cgroup *old = stock->cached;
2416
11c9ea4e
JW
2417 if (stock->nr_pages) {
2418 unsigned long bytes = stock->nr_pages * PAGE_SIZE;
2419
2420 res_counter_uncharge(&old->res, bytes);
cdec2e42 2421 if (do_swap_account)
11c9ea4e
JW
2422 res_counter_uncharge(&old->memsw, bytes);
2423 stock->nr_pages = 0;
cdec2e42
KH
2424 }
2425 stock->cached = NULL;
cdec2e42
KH
2426}
2427
2428/*
2429 * This must be called under preempt disabled or must be called by
2430 * a thread which is pinned to local cpu.
2431 */
2432static void drain_local_stock(struct work_struct *dummy)
2433{
2434 struct memcg_stock_pcp *stock = &__get_cpu_var(memcg_stock);
2435 drain_stock(stock);
26fe6168 2436 clear_bit(FLUSHING_CACHED_CHARGE, &stock->flags);
cdec2e42
KH
2437}
2438
e4777496
MH
2439static void __init memcg_stock_init(void)
2440{
2441 int cpu;
2442
2443 for_each_possible_cpu(cpu) {
2444 struct memcg_stock_pcp *stock =
2445 &per_cpu(memcg_stock, cpu);
2446 INIT_WORK(&stock->work, drain_local_stock);
2447 }
2448}
2449
cdec2e42
KH
2450/*
2451 * Cache charges(val) which is from res_counter, to local per_cpu area.
320cc51d 2452 * This will be consumed by consume_stock() function, later.
cdec2e42 2453 */
c0ff4b85 2454static void refill_stock(struct mem_cgroup *memcg, unsigned int nr_pages)
cdec2e42
KH
2455{
2456 struct memcg_stock_pcp *stock = &get_cpu_var(memcg_stock);
2457
c0ff4b85 2458 if (stock->cached != memcg) { /* reset if necessary */
cdec2e42 2459 drain_stock(stock);
c0ff4b85 2460 stock->cached = memcg;
cdec2e42 2461 }
11c9ea4e 2462 stock->nr_pages += nr_pages;
cdec2e42
KH
2463 put_cpu_var(memcg_stock);
2464}
2465
2466/*
c0ff4b85 2467 * Drains all per-CPU charge caches for given root_memcg resp. subtree
d38144b7
MH
2468 * of the hierarchy under it. sync flag says whether we should block
2469 * until the work is done.
cdec2e42 2470 */
c0ff4b85 2471static void drain_all_stock(struct mem_cgroup *root_memcg, bool sync)
cdec2e42 2472{
26fe6168 2473 int cpu, curcpu;
d38144b7 2474
cdec2e42 2475 /* Notify other cpus that system-wide "drain" is running */
cdec2e42 2476 get_online_cpus();
5af12d0e 2477 curcpu = get_cpu();
cdec2e42
KH
2478 for_each_online_cpu(cpu) {
2479 struct memcg_stock_pcp *stock = &per_cpu(memcg_stock, cpu);
c0ff4b85 2480 struct mem_cgroup *memcg;
26fe6168 2481
c0ff4b85
R
2482 memcg = stock->cached;
2483 if (!memcg || !stock->nr_pages)
26fe6168 2484 continue;
c0ff4b85 2485 if (!mem_cgroup_same_or_subtree(root_memcg, memcg))
3e92041d 2486 continue;
d1a05b69
MH
2487 if (!test_and_set_bit(FLUSHING_CACHED_CHARGE, &stock->flags)) {
2488 if (cpu == curcpu)
2489 drain_local_stock(&stock->work);
2490 else
2491 schedule_work_on(cpu, &stock->work);
2492 }
cdec2e42 2493 }
5af12d0e 2494 put_cpu();
d38144b7
MH
2495
2496 if (!sync)
2497 goto out;
2498
2499 for_each_online_cpu(cpu) {
2500 struct memcg_stock_pcp *stock = &per_cpu(memcg_stock, cpu);
9f50fad6 2501 if (test_bit(FLUSHING_CACHED_CHARGE, &stock->flags))
d38144b7
MH
2502 flush_work(&stock->work);
2503 }
2504out:
f894ffa8 2505 put_online_cpus();
d38144b7
MH
2506}
2507
2508/*
2509 * Tries to drain stocked charges in other cpus. This function is asynchronous
2510 * and just put a work per cpu for draining localy on each cpu. Caller can
2511 * expects some charges will be back to res_counter later but cannot wait for
2512 * it.
2513 */
c0ff4b85 2514static void drain_all_stock_async(struct mem_cgroup *root_memcg)
d38144b7 2515{
9f50fad6
MH
2516 /*
2517 * If someone calls draining, avoid adding more kworker runs.
2518 */
2519 if (!mutex_trylock(&percpu_charge_mutex))
2520 return;
c0ff4b85 2521 drain_all_stock(root_memcg, false);
9f50fad6 2522 mutex_unlock(&percpu_charge_mutex);
cdec2e42
KH
2523}
2524
2525/* This is a synchronous drain interface. */
c0ff4b85 2526static void drain_all_stock_sync(struct mem_cgroup *root_memcg)
cdec2e42
KH
2527{
2528 /* called when force_empty is called */
9f50fad6 2529 mutex_lock(&percpu_charge_mutex);
c0ff4b85 2530 drain_all_stock(root_memcg, true);
9f50fad6 2531 mutex_unlock(&percpu_charge_mutex);
cdec2e42
KH
2532}
2533
711d3d2c
KH
2534/*
2535 * This function drains percpu counter value from DEAD cpu and
2536 * move it to local cpu. Note that this function can be preempted.
2537 */
c0ff4b85 2538static void mem_cgroup_drain_pcp_counter(struct mem_cgroup *memcg, int cpu)
711d3d2c
KH
2539{
2540 int i;
2541
c0ff4b85 2542 spin_lock(&memcg->pcp_counter_lock);
6104621d 2543 for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
c0ff4b85 2544 long x = per_cpu(memcg->stat->count[i], cpu);
711d3d2c 2545
c0ff4b85
R
2546 per_cpu(memcg->stat->count[i], cpu) = 0;
2547 memcg->nocpu_base.count[i] += x;
711d3d2c 2548 }
e9f8974f 2549 for (i = 0; i < MEM_CGROUP_EVENTS_NSTATS; i++) {
c0ff4b85 2550 unsigned long x = per_cpu(memcg->stat->events[i], cpu);
e9f8974f 2551
c0ff4b85
R
2552 per_cpu(memcg->stat->events[i], cpu) = 0;
2553 memcg->nocpu_base.events[i] += x;
e9f8974f 2554 }
c0ff4b85 2555 spin_unlock(&memcg->pcp_counter_lock);
711d3d2c
KH
2556}
2557
0db0628d 2558static int memcg_cpu_hotplug_callback(struct notifier_block *nb,
cdec2e42
KH
2559 unsigned long action,
2560 void *hcpu)
2561{
2562 int cpu = (unsigned long)hcpu;
2563 struct memcg_stock_pcp *stock;
711d3d2c 2564 struct mem_cgroup *iter;
cdec2e42 2565
619d094b 2566 if (action == CPU_ONLINE)
1489ebad 2567 return NOTIFY_OK;
1489ebad 2568
d833049b 2569 if (action != CPU_DEAD && action != CPU_DEAD_FROZEN)
cdec2e42 2570 return NOTIFY_OK;
711d3d2c 2571
9f3a0d09 2572 for_each_mem_cgroup(iter)
711d3d2c
KH
2573 mem_cgroup_drain_pcp_counter(iter, cpu);
2574
cdec2e42
KH
2575 stock = &per_cpu(memcg_stock, cpu);
2576 drain_stock(stock);
2577 return NOTIFY_OK;
2578}
2579
4b534334
KH
2580
2581/* See __mem_cgroup_try_charge() for details */
2582enum {
2583 CHARGE_OK, /* success */
2584 CHARGE_RETRY, /* need to retry but retry is not bad */
2585 CHARGE_NOMEM, /* we can't do more. return -ENOMEM */
2586 CHARGE_WOULDBLOCK, /* GFP_WAIT wasn't set and no enough res. */
4b534334
KH
2587};
2588
c0ff4b85 2589static int mem_cgroup_do_charge(struct mem_cgroup *memcg, gfp_t gfp_mask,
4c9c5359 2590 unsigned int nr_pages, unsigned int min_pages,
3812c8c8 2591 bool invoke_oom)
4b534334 2592{
7ec99d62 2593 unsigned long csize = nr_pages * PAGE_SIZE;
4b534334
KH
2594 struct mem_cgroup *mem_over_limit;
2595 struct res_counter *fail_res;
2596 unsigned long flags = 0;
2597 int ret;
2598
c0ff4b85 2599 ret = res_counter_charge(&memcg->res, csize, &fail_res);
4b534334
KH
2600
2601 if (likely(!ret)) {
2602 if (!do_swap_account)
2603 return CHARGE_OK;
c0ff4b85 2604 ret = res_counter_charge(&memcg->memsw, csize, &fail_res);
4b534334
KH
2605 if (likely(!ret))
2606 return CHARGE_OK;
2607
c0ff4b85 2608 res_counter_uncharge(&memcg->res, csize);
4b534334
KH
2609 mem_over_limit = mem_cgroup_from_res_counter(fail_res, memsw);
2610 flags |= MEM_CGROUP_RECLAIM_NOSWAP;
2611 } else
2612 mem_over_limit = mem_cgroup_from_res_counter(fail_res, res);
9221edb7 2613 /*
9221edb7
JW
2614 * Never reclaim on behalf of optional batching, retry with a
2615 * single page instead.
2616 */
4c9c5359 2617 if (nr_pages > min_pages)
4b534334
KH
2618 return CHARGE_RETRY;
2619
2620 if (!(gfp_mask & __GFP_WAIT))
2621 return CHARGE_WOULDBLOCK;
2622
4c9c5359
SS
2623 if (gfp_mask & __GFP_NORETRY)
2624 return CHARGE_NOMEM;
2625
5660048c 2626 ret = mem_cgroup_reclaim(mem_over_limit, gfp_mask, flags);
7ec99d62 2627 if (mem_cgroup_margin(mem_over_limit) >= nr_pages)
19942822 2628 return CHARGE_RETRY;
4b534334 2629 /*
19942822
JW
2630 * Even though the limit is exceeded at this point, reclaim
2631 * may have been able to free some pages. Retry the charge
2632 * before killing the task.
2633 *
2634 * Only for regular pages, though: huge pages are rather
2635 * unlikely to succeed so close to the limit, and we fall back
2636 * to regular pages anyway in case of failure.
4b534334 2637 */
4c9c5359 2638 if (nr_pages <= (1 << PAGE_ALLOC_COSTLY_ORDER) && ret)
4b534334
KH
2639 return CHARGE_RETRY;
2640
2641 /*
2642 * At task move, charge accounts can be doubly counted. So, it's
2643 * better to wait until the end of task_move if something is going on.
2644 */
2645 if (mem_cgroup_wait_acct_move(mem_over_limit))
2646 return CHARGE_RETRY;
2647
3812c8c8
JW
2648 if (invoke_oom)
2649 mem_cgroup_oom(mem_over_limit, gfp_mask, get_order(csize));
4b534334 2650
3812c8c8 2651 return CHARGE_NOMEM;
4b534334
KH
2652}
2653
f817ed48 2654/*
38c5d72f
KH
2655 * __mem_cgroup_try_charge() does
2656 * 1. detect memcg to be charged against from passed *mm and *ptr,
2657 * 2. update res_counter
2658 * 3. call memory reclaim if necessary.
2659 *
2660 * In some special case, if the task is fatal, fatal_signal_pending() or
2661 * has TIF_MEMDIE, this function returns -EINTR while writing root_mem_cgroup
2662 * to *ptr. There are two reasons for this. 1: fatal threads should quit as soon
2663 * as possible without any hazards. 2: all pages should have a valid
2664 * pc->mem_cgroup. If mm is NULL and the caller doesn't pass a valid memcg
2665 * pointer, that is treated as a charge to root_mem_cgroup.
2666 *
2667 * So __mem_cgroup_try_charge() will return
2668 * 0 ... on success, filling *ptr with a valid memcg pointer.
2669 * -ENOMEM ... charge failure because of resource limits.
2670 * -EINTR ... if thread is fatal. *ptr is filled with root_mem_cgroup.
2671 *
2672 * Unlike the exported interface, an "oom" parameter is added. if oom==true,
2673 * the oom-killer can be invoked.
8a9f3ccd 2674 */
f817ed48 2675static int __mem_cgroup_try_charge(struct mm_struct *mm,
ec168510 2676 gfp_t gfp_mask,
7ec99d62 2677 unsigned int nr_pages,
c0ff4b85 2678 struct mem_cgroup **ptr,
7ec99d62 2679 bool oom)
8a9f3ccd 2680{
7ec99d62 2681 unsigned int batch = max(CHARGE_BATCH, nr_pages);
4b534334 2682 int nr_oom_retries = MEM_CGROUP_RECLAIM_RETRIES;
c0ff4b85 2683 struct mem_cgroup *memcg = NULL;
4b534334 2684 int ret;
a636b327 2685
867578cb
KH
2686 /*
2687 * Unlike gloval-vm's OOM-kill, we're not in memory shortage
2688 * in system level. So, allow to go ahead dying process in addition to
2689 * MEMDIE process.
2690 */
2691 if (unlikely(test_thread_flag(TIF_MEMDIE)
2692 || fatal_signal_pending(current)))
2693 goto bypass;
a636b327 2694
49426420
JW
2695 if (unlikely(task_in_memcg_oom(current)))
2696 goto bypass;
2697
8a9f3ccd 2698 /*
3be91277
HD
2699 * We always charge the cgroup the mm_struct belongs to.
2700 * The mm_struct's mem_cgroup changes on task migration if the
8a9f3ccd 2701 * thread group leader migrates. It's possible that mm is not
24467cac 2702 * set, if so charge the root memcg (happens for pagecache usage).
8a9f3ccd 2703 */
c0ff4b85 2704 if (!*ptr && !mm)
38c5d72f 2705 *ptr = root_mem_cgroup;
f75ca962 2706again:
c0ff4b85
R
2707 if (*ptr) { /* css should be a valid one */
2708 memcg = *ptr;
c0ff4b85 2709 if (mem_cgroup_is_root(memcg))
f75ca962 2710 goto done;
a0956d54 2711 if (consume_stock(memcg, nr_pages))
f75ca962 2712 goto done;
c0ff4b85 2713 css_get(&memcg->css);
4b534334 2714 } else {
f75ca962 2715 struct task_struct *p;
54595fe2 2716
f75ca962
KH
2717 rcu_read_lock();
2718 p = rcu_dereference(mm->owner);
f75ca962 2719 /*
ebb76ce1 2720 * Because we don't have task_lock(), "p" can exit.
c0ff4b85 2721 * In that case, "memcg" can point to root or p can be NULL with
ebb76ce1
KH
2722 * race with swapoff. Then, we have small risk of mis-accouning.
2723 * But such kind of mis-account by race always happens because
2724 * we don't have cgroup_mutex(). It's overkill and we allo that
2725 * small race, here.
2726 * (*) swapoff at el will charge against mm-struct not against
2727 * task-struct. So, mm->owner can be NULL.
f75ca962 2728 */
c0ff4b85 2729 memcg = mem_cgroup_from_task(p);
38c5d72f
KH
2730 if (!memcg)
2731 memcg = root_mem_cgroup;
2732 if (mem_cgroup_is_root(memcg)) {
f75ca962
KH
2733 rcu_read_unlock();
2734 goto done;
2735 }
a0956d54 2736 if (consume_stock(memcg, nr_pages)) {
f75ca962
KH
2737 /*
2738 * It seems dagerous to access memcg without css_get().
2739 * But considering how consume_stok works, it's not
2740 * necessary. If consume_stock success, some charges
2741 * from this memcg are cached on this cpu. So, we
2742 * don't need to call css_get()/css_tryget() before
2743 * calling consume_stock().
2744 */
2745 rcu_read_unlock();
2746 goto done;
2747 }
2748 /* after here, we may be blocked. we need to get refcnt */
c0ff4b85 2749 if (!css_tryget(&memcg->css)) {
f75ca962
KH
2750 rcu_read_unlock();
2751 goto again;
2752 }
2753 rcu_read_unlock();
2754 }
8a9f3ccd 2755
4b534334 2756 do {
3812c8c8 2757 bool invoke_oom = oom && !nr_oom_retries;
7a81b88c 2758
4b534334 2759 /* If killed, bypass charge */
f75ca962 2760 if (fatal_signal_pending(current)) {
c0ff4b85 2761 css_put(&memcg->css);
4b534334 2762 goto bypass;
f75ca962 2763 }
6d61ef40 2764
3812c8c8
JW
2765 ret = mem_cgroup_do_charge(memcg, gfp_mask, batch,
2766 nr_pages, invoke_oom);
4b534334
KH
2767 switch (ret) {
2768 case CHARGE_OK:
2769 break;
2770 case CHARGE_RETRY: /* not in OOM situation but retry */
7ec99d62 2771 batch = nr_pages;
c0ff4b85
R
2772 css_put(&memcg->css);
2773 memcg = NULL;
f75ca962 2774 goto again;
4b534334 2775 case CHARGE_WOULDBLOCK: /* !__GFP_WAIT */
c0ff4b85 2776 css_put(&memcg->css);
4b534334
KH
2777 goto nomem;
2778 case CHARGE_NOMEM: /* OOM routine works */
3812c8c8 2779 if (!oom || invoke_oom) {
c0ff4b85 2780 css_put(&memcg->css);
867578cb 2781 goto nomem;
f75ca962 2782 }
4b534334
KH
2783 nr_oom_retries--;
2784 break;
66e1707b 2785 }
4b534334
KH
2786 } while (ret != CHARGE_OK);
2787
7ec99d62 2788 if (batch > nr_pages)
c0ff4b85
R
2789 refill_stock(memcg, batch - nr_pages);
2790 css_put(&memcg->css);
0c3e73e8 2791done:
c0ff4b85 2792 *ptr = memcg;
7a81b88c
KH
2793 return 0;
2794nomem:
3168ecbe
JW
2795 if (!(gfp_mask & __GFP_NOFAIL)) {
2796 *ptr = NULL;
2797 return -ENOMEM;
2798 }
867578cb 2799bypass:
38c5d72f
KH
2800 *ptr = root_mem_cgroup;
2801 return -EINTR;
7a81b88c 2802}
8a9f3ccd 2803
a3032a2c
DN
2804/*
2805 * Somemtimes we have to undo a charge we got by try_charge().
2806 * This function is for that and do uncharge, put css's refcnt.
2807 * gotten by try_charge().
2808 */
c0ff4b85 2809static void __mem_cgroup_cancel_charge(struct mem_cgroup *memcg,
e7018b8d 2810 unsigned int nr_pages)
a3032a2c 2811{
c0ff4b85 2812 if (!mem_cgroup_is_root(memcg)) {
e7018b8d
JW
2813 unsigned long bytes = nr_pages * PAGE_SIZE;
2814
c0ff4b85 2815 res_counter_uncharge(&memcg->res, bytes);
a3032a2c 2816 if (do_swap_account)
c0ff4b85 2817 res_counter_uncharge(&memcg->memsw, bytes);
a3032a2c 2818 }
854ffa8d
DN
2819}
2820
d01dd17f
KH
2821/*
2822 * Cancel chrages in this cgroup....doesn't propagate to parent cgroup.
2823 * This is useful when moving usage to parent cgroup.
2824 */
2825static void __mem_cgroup_cancel_local_charge(struct mem_cgroup *memcg,
2826 unsigned int nr_pages)
2827{
2828 unsigned long bytes = nr_pages * PAGE_SIZE;
2829
2830 if (mem_cgroup_is_root(memcg))
2831 return;
2832
2833 res_counter_uncharge_until(&memcg->res, memcg->res.parent, bytes);
2834 if (do_swap_account)
2835 res_counter_uncharge_until(&memcg->memsw,
2836 memcg->memsw.parent, bytes);
2837}
2838
a3b2d692
KH
2839/*
2840 * A helper function to get mem_cgroup from ID. must be called under
e9316080
TH
2841 * rcu_read_lock(). The caller is responsible for calling css_tryget if
2842 * the mem_cgroup is used for charging. (dropping refcnt from swap can be
2843 * called against removed memcg.)
a3b2d692
KH
2844 */
2845static struct mem_cgroup *mem_cgroup_lookup(unsigned short id)
2846{
a3b2d692
KH
2847 /* ID 0 is unused ID */
2848 if (!id)
2849 return NULL;
34c00c31 2850 return mem_cgroup_from_id(id);
a3b2d692
KH
2851}
2852
e42d9d5d 2853struct mem_cgroup *try_get_mem_cgroup_from_page(struct page *page)
b5a84319 2854{
c0ff4b85 2855 struct mem_cgroup *memcg = NULL;
3c776e64 2856 struct page_cgroup *pc;
a3b2d692 2857 unsigned short id;
b5a84319
KH
2858 swp_entry_t ent;
2859
3c776e64
DN
2860 VM_BUG_ON(!PageLocked(page));
2861
3c776e64 2862 pc = lookup_page_cgroup(page);
c0bd3f63 2863 lock_page_cgroup(pc);
a3b2d692 2864 if (PageCgroupUsed(pc)) {
c0ff4b85
R
2865 memcg = pc->mem_cgroup;
2866 if (memcg && !css_tryget(&memcg->css))
2867 memcg = NULL;
e42d9d5d 2868 } else if (PageSwapCache(page)) {
3c776e64 2869 ent.val = page_private(page);
9fb4b7cc 2870 id = lookup_swap_cgroup_id(ent);
a3b2d692 2871 rcu_read_lock();
c0ff4b85
R
2872 memcg = mem_cgroup_lookup(id);
2873 if (memcg && !css_tryget(&memcg->css))
2874 memcg = NULL;
a3b2d692 2875 rcu_read_unlock();
3c776e64 2876 }
c0bd3f63 2877 unlock_page_cgroup(pc);
c0ff4b85 2878 return memcg;
b5a84319
KH
2879}
2880
c0ff4b85 2881static void __mem_cgroup_commit_charge(struct mem_cgroup *memcg,
5564e88b 2882 struct page *page,
7ec99d62 2883 unsigned int nr_pages,
9ce70c02
HD
2884 enum charge_type ctype,
2885 bool lrucare)
7a81b88c 2886{
ce587e65 2887 struct page_cgroup *pc = lookup_page_cgroup(page);
9ce70c02 2888 struct zone *uninitialized_var(zone);
fa9add64 2889 struct lruvec *lruvec;
9ce70c02 2890 bool was_on_lru = false;
b2402857 2891 bool anon;
9ce70c02 2892
ca3e0214 2893 lock_page_cgroup(pc);
90deb788 2894 VM_BUG_ON(PageCgroupUsed(pc));
ca3e0214
KH
2895 /*
2896 * we don't need page_cgroup_lock about tail pages, becase they are not
2897 * accessed by any other context at this point.
2898 */
9ce70c02
HD
2899
2900 /*
2901 * In some cases, SwapCache and FUSE(splice_buf->radixtree), the page
2902 * may already be on some other mem_cgroup's LRU. Take care of it.
2903 */
2904 if (lrucare) {
2905 zone = page_zone(page);
2906 spin_lock_irq(&zone->lru_lock);
2907 if (PageLRU(page)) {
fa9add64 2908 lruvec = mem_cgroup_zone_lruvec(zone, pc->mem_cgroup);
9ce70c02 2909 ClearPageLRU(page);
fa9add64 2910 del_page_from_lru_list(page, lruvec, page_lru(page));
9ce70c02
HD
2911 was_on_lru = true;
2912 }
2913 }
2914
c0ff4b85 2915 pc->mem_cgroup = memcg;
261fb61a
KH
2916 /*
2917 * We access a page_cgroup asynchronously without lock_page_cgroup().
2918 * Especially when a page_cgroup is taken from a page, pc->mem_cgroup
2919 * is accessed after testing USED bit. To make pc->mem_cgroup visible
2920 * before USED bit, we need memory barrier here.
2921 * See mem_cgroup_add_lru_list(), etc.
f894ffa8 2922 */
08e552c6 2923 smp_wmb();
b2402857 2924 SetPageCgroupUsed(pc);
3be91277 2925
9ce70c02
HD
2926 if (lrucare) {
2927 if (was_on_lru) {
fa9add64 2928 lruvec = mem_cgroup_zone_lruvec(zone, pc->mem_cgroup);
9ce70c02
HD
2929 VM_BUG_ON(PageLRU(page));
2930 SetPageLRU(page);
fa9add64 2931 add_page_to_lru_list(page, lruvec, page_lru(page));
9ce70c02
HD
2932 }
2933 spin_unlock_irq(&zone->lru_lock);
2934 }
2935
41326c17 2936 if (ctype == MEM_CGROUP_CHARGE_TYPE_ANON)
b2402857
KH
2937 anon = true;
2938 else
2939 anon = false;
2940
b070e65c 2941 mem_cgroup_charge_statistics(memcg, page, anon, nr_pages);
52d4b9ac 2942 unlock_page_cgroup(pc);
9ce70c02 2943
430e4863 2944 /*
bb4cc1a8
AM
2945 * "charge_statistics" updated event counter. Then, check it.
2946 * Insert ancestor (and ancestor's ancestors), to softlimit RB-tree.
2947 * if they exceeds softlimit.
430e4863 2948 */
c0ff4b85 2949 memcg_check_events(memcg, page);
7a81b88c 2950}
66e1707b 2951
7cf27982
GC
2952static DEFINE_MUTEX(set_limit_mutex);
2953
7ae1e1d0
GC
2954#ifdef CONFIG_MEMCG_KMEM
2955static inline bool memcg_can_account_kmem(struct mem_cgroup *memcg)
2956{
2957 return !mem_cgroup_disabled() && !mem_cgroup_is_root(memcg) &&
2958 (memcg->kmem_account_flags & KMEM_ACCOUNTED_MASK);
2959}
2960
1f458cbf
GC
2961/*
2962 * This is a bit cumbersome, but it is rarely used and avoids a backpointer
2963 * in the memcg_cache_params struct.
2964 */
2965static struct kmem_cache *memcg_params_to_cache(struct memcg_cache_params *p)
2966{
2967 struct kmem_cache *cachep;
2968
2969 VM_BUG_ON(p->is_root_cache);
2970 cachep = p->root_cache;
2971 return cachep->memcg_params->memcg_caches[memcg_cache_id(p->memcg)];
2972}
2973
749c5415 2974#ifdef CONFIG_SLABINFO
182446d0
TH
2975static int mem_cgroup_slabinfo_read(struct cgroup_subsys_state *css,
2976 struct cftype *cft, struct seq_file *m)
749c5415 2977{
182446d0 2978 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
749c5415
GC
2979 struct memcg_cache_params *params;
2980
2981 if (!memcg_can_account_kmem(memcg))
2982 return -EIO;
2983
2984 print_slabinfo_header(m);
2985
2986 mutex_lock(&memcg->slab_caches_mutex);
2987 list_for_each_entry(params, &memcg->memcg_slab_caches, list)
2988 cache_show(memcg_params_to_cache(params), m);
2989 mutex_unlock(&memcg->slab_caches_mutex);
2990
2991 return 0;
2992}
2993#endif
2994
7ae1e1d0
GC
2995static int memcg_charge_kmem(struct mem_cgroup *memcg, gfp_t gfp, u64 size)
2996{
2997 struct res_counter *fail_res;
2998 struct mem_cgroup *_memcg;
2999 int ret = 0;
3000 bool may_oom;
3001
3002 ret = res_counter_charge(&memcg->kmem, size, &fail_res);
3003 if (ret)
3004 return ret;
3005
3006 /*
3007 * Conditions under which we can wait for the oom_killer. Those are
3008 * the same conditions tested by the core page allocator
3009 */
3010 may_oom = (gfp & __GFP_FS) && !(gfp & __GFP_NORETRY);
3011
3012 _memcg = memcg;
3013 ret = __mem_cgroup_try_charge(NULL, gfp, size >> PAGE_SHIFT,
3014 &_memcg, may_oom);
3015
3016 if (ret == -EINTR) {
3017 /*
3018 * __mem_cgroup_try_charge() chosed to bypass to root due to
3019 * OOM kill or fatal signal. Since our only options are to
3020 * either fail the allocation or charge it to this cgroup, do
3021 * it as a temporary condition. But we can't fail. From a
3022 * kmem/slab perspective, the cache has already been selected,
3023 * by mem_cgroup_kmem_get_cache(), so it is too late to change
3024 * our minds.
3025 *
3026 * This condition will only trigger if the task entered
3027 * memcg_charge_kmem in a sane state, but was OOM-killed during
3028 * __mem_cgroup_try_charge() above. Tasks that were already
3029 * dying when the allocation triggers should have been already
3030 * directed to the root cgroup in memcontrol.h
3031 */
3032 res_counter_charge_nofail(&memcg->res, size, &fail_res);
3033 if (do_swap_account)
3034 res_counter_charge_nofail(&memcg->memsw, size,
3035 &fail_res);
3036 ret = 0;
3037 } else if (ret)
3038 res_counter_uncharge(&memcg->kmem, size);
3039
3040 return ret;
3041}
3042
3043static void memcg_uncharge_kmem(struct mem_cgroup *memcg, u64 size)
3044{
7ae1e1d0
GC
3045 res_counter_uncharge(&memcg->res, size);
3046 if (do_swap_account)
3047 res_counter_uncharge(&memcg->memsw, size);
7de37682
GC
3048
3049 /* Not down to 0 */
3050 if (res_counter_uncharge(&memcg->kmem, size))
3051 return;
3052
10d5ebf4
LZ
3053 /*
3054 * Releases a reference taken in kmem_cgroup_css_offline in case
3055 * this last uncharge is racing with the offlining code or it is
3056 * outliving the memcg existence.
3057 *
3058 * The memory barrier imposed by test&clear is paired with the
3059 * explicit one in memcg_kmem_mark_dead().
3060 */
7de37682 3061 if (memcg_kmem_test_and_clear_dead(memcg))
10d5ebf4 3062 css_put(&memcg->css);
7ae1e1d0
GC
3063}
3064
2633d7a0
GC
3065void memcg_cache_list_add(struct mem_cgroup *memcg, struct kmem_cache *cachep)
3066{
3067 if (!memcg)
3068 return;
3069
3070 mutex_lock(&memcg->slab_caches_mutex);
3071 list_add(&cachep->memcg_params->list, &memcg->memcg_slab_caches);
3072 mutex_unlock(&memcg->slab_caches_mutex);
3073}
3074
3075/*
3076 * helper for acessing a memcg's index. It will be used as an index in the
3077 * child cache array in kmem_cache, and also to derive its name. This function
3078 * will return -1 when this is not a kmem-limited memcg.
3079 */
3080int memcg_cache_id(struct mem_cgroup *memcg)
3081{
3082 return memcg ? memcg->kmemcg_id : -1;
3083}
3084
55007d84
GC
3085/*
3086 * This ends up being protected by the set_limit mutex, during normal
3087 * operation, because that is its main call site.
3088 *
3089 * But when we create a new cache, we can call this as well if its parent
3090 * is kmem-limited. That will have to hold set_limit_mutex as well.
3091 */
3092int memcg_update_cache_sizes(struct mem_cgroup *memcg)
3093{
3094 int num, ret;
3095
3096 num = ida_simple_get(&kmem_limited_groups,
3097 0, MEMCG_CACHES_MAX_SIZE, GFP_KERNEL);
3098 if (num < 0)
3099 return num;
3100 /*
3101 * After this point, kmem_accounted (that we test atomically in
3102 * the beginning of this conditional), is no longer 0. This
3103 * guarantees only one process will set the following boolean
3104 * to true. We don't need test_and_set because we're protected
3105 * by the set_limit_mutex anyway.
3106 */
3107 memcg_kmem_set_activated(memcg);
3108
3109 ret = memcg_update_all_caches(num+1);
3110 if (ret) {
3111 ida_simple_remove(&kmem_limited_groups, num);
3112 memcg_kmem_clear_activated(memcg);
3113 return ret;
3114 }
3115
3116 memcg->kmemcg_id = num;
3117 INIT_LIST_HEAD(&memcg->memcg_slab_caches);
3118 mutex_init(&memcg->slab_caches_mutex);
3119 return 0;
3120}
3121
3122static size_t memcg_caches_array_size(int num_groups)
3123{
3124 ssize_t size;
3125 if (num_groups <= 0)
3126 return 0;
3127
3128 size = 2 * num_groups;
3129 if (size < MEMCG_CACHES_MIN_SIZE)
3130 size = MEMCG_CACHES_MIN_SIZE;
3131 else if (size > MEMCG_CACHES_MAX_SIZE)
3132 size = MEMCG_CACHES_MAX_SIZE;
3133
3134 return size;
3135}
3136
3137/*
3138 * We should update the current array size iff all caches updates succeed. This
3139 * can only be done from the slab side. The slab mutex needs to be held when
3140 * calling this.
3141 */
3142void memcg_update_array_size(int num)
3143{
3144 if (num > memcg_limited_groups_array_size)
3145 memcg_limited_groups_array_size = memcg_caches_array_size(num);
3146}
3147
15cf17d2
KK
3148static void kmem_cache_destroy_work_func(struct work_struct *w);
3149
55007d84
GC
3150int memcg_update_cache_size(struct kmem_cache *s, int num_groups)
3151{
3152 struct memcg_cache_params *cur_params = s->memcg_params;
3153
3154 VM_BUG_ON(s->memcg_params && !s->memcg_params->is_root_cache);
3155
3156 if (num_groups > memcg_limited_groups_array_size) {
3157 int i;
3158 ssize_t size = memcg_caches_array_size(num_groups);
3159
3160 size *= sizeof(void *);
90c7a79c 3161 size += offsetof(struct memcg_cache_params, memcg_caches);
55007d84
GC
3162
3163 s->memcg_params = kzalloc(size, GFP_KERNEL);
3164 if (!s->memcg_params) {
3165 s->memcg_params = cur_params;
3166 return -ENOMEM;
3167 }
3168
3169 s->memcg_params->is_root_cache = true;
3170
3171 /*
3172 * There is the chance it will be bigger than
3173 * memcg_limited_groups_array_size, if we failed an allocation
3174 * in a cache, in which case all caches updated before it, will
3175 * have a bigger array.
3176 *
3177 * But if that is the case, the data after
3178 * memcg_limited_groups_array_size is certainly unused
3179 */
3180 for (i = 0; i < memcg_limited_groups_array_size; i++) {
3181 if (!cur_params->memcg_caches[i])
3182 continue;
3183 s->memcg_params->memcg_caches[i] =
3184 cur_params->memcg_caches[i];
3185 }
3186
3187 /*
3188 * Ideally, we would wait until all caches succeed, and only
3189 * then free the old one. But this is not worth the extra
3190 * pointer per-cache we'd have to have for this.
3191 *
3192 * It is not a big deal if some caches are left with a size
3193 * bigger than the others. And all updates will reset this
3194 * anyway.
3195 */
3196 kfree(cur_params);
3197 }
3198 return 0;
3199}
3200
943a451a
GC
3201int memcg_register_cache(struct mem_cgroup *memcg, struct kmem_cache *s,
3202 struct kmem_cache *root_cache)
2633d7a0 3203{
90c7a79c 3204 size_t size;
2633d7a0
GC
3205
3206 if (!memcg_kmem_enabled())
3207 return 0;
3208
90c7a79c
AV
3209 if (!memcg) {
3210 size = offsetof(struct memcg_cache_params, memcg_caches);
55007d84 3211 size += memcg_limited_groups_array_size * sizeof(void *);
90c7a79c
AV
3212 } else
3213 size = sizeof(struct memcg_cache_params);
55007d84 3214
2633d7a0
GC
3215 s->memcg_params = kzalloc(size, GFP_KERNEL);
3216 if (!s->memcg_params)
3217 return -ENOMEM;
3218
943a451a 3219 if (memcg) {
2633d7a0 3220 s->memcg_params->memcg = memcg;
943a451a 3221 s->memcg_params->root_cache = root_cache;
3e6b11df
AV
3222 INIT_WORK(&s->memcg_params->destroy,
3223 kmem_cache_destroy_work_func);
4ba902b5
GC
3224 } else
3225 s->memcg_params->is_root_cache = true;
3226
2633d7a0
GC
3227 return 0;
3228}
3229
3230void memcg_release_cache(struct kmem_cache *s)
3231{
d7f25f8a
GC
3232 struct kmem_cache *root;
3233 struct mem_cgroup *memcg;
3234 int id;
3235
3236 /*
3237 * This happens, for instance, when a root cache goes away before we
3238 * add any memcg.
3239 */
3240 if (!s->memcg_params)
3241 return;
3242
3243 if (s->memcg_params->is_root_cache)
3244 goto out;
3245
3246 memcg = s->memcg_params->memcg;
3247 id = memcg_cache_id(memcg);
3248
3249 root = s->memcg_params->root_cache;
3250 root->memcg_params->memcg_caches[id] = NULL;
d7f25f8a
GC
3251
3252 mutex_lock(&memcg->slab_caches_mutex);
3253 list_del(&s->memcg_params->list);
3254 mutex_unlock(&memcg->slab_caches_mutex);
3255
20f05310 3256 css_put(&memcg->css);
d7f25f8a 3257out:
2633d7a0
GC
3258 kfree(s->memcg_params);
3259}
3260
0e9d92f2
GC
3261/*
3262 * During the creation a new cache, we need to disable our accounting mechanism
3263 * altogether. This is true even if we are not creating, but rather just
3264 * enqueing new caches to be created.
3265 *
3266 * This is because that process will trigger allocations; some visible, like
3267 * explicit kmallocs to auxiliary data structures, name strings and internal
3268 * cache structures; some well concealed, like INIT_WORK() that can allocate
3269 * objects during debug.
3270 *
3271 * If any allocation happens during memcg_kmem_get_cache, we will recurse back
3272 * to it. This may not be a bounded recursion: since the first cache creation
3273 * failed to complete (waiting on the allocation), we'll just try to create the
3274 * cache again, failing at the same point.
3275 *
3276 * memcg_kmem_get_cache is prepared to abort after seeing a positive count of
3277 * memcg_kmem_skip_account. So we enclose anything that might allocate memory
3278 * inside the following two functions.
3279 */
3280static inline void memcg_stop_kmem_account(void)
3281{
3282 VM_BUG_ON(!current->mm);
3283 current->memcg_kmem_skip_account++;
3284}
3285
3286static inline void memcg_resume_kmem_account(void)
3287{
3288 VM_BUG_ON(!current->mm);
3289 current->memcg_kmem_skip_account--;
3290}
3291
1f458cbf
GC
3292static void kmem_cache_destroy_work_func(struct work_struct *w)
3293{
3294 struct kmem_cache *cachep;
3295 struct memcg_cache_params *p;
3296
3297 p = container_of(w, struct memcg_cache_params, destroy);
3298
3299 cachep = memcg_params_to_cache(p);
3300
22933152
GC
3301 /*
3302 * If we get down to 0 after shrink, we could delete right away.
3303 * However, memcg_release_pages() already puts us back in the workqueue
3304 * in that case. If we proceed deleting, we'll get a dangling
3305 * reference, and removing the object from the workqueue in that case
3306 * is unnecessary complication. We are not a fast path.
3307 *
3308 * Note that this case is fundamentally different from racing with
3309 * shrink_slab(): if memcg_cgroup_destroy_cache() is called in
3310 * kmem_cache_shrink, not only we would be reinserting a dead cache
3311 * into the queue, but doing so from inside the worker racing to
3312 * destroy it.
3313 *
3314 * So if we aren't down to zero, we'll just schedule a worker and try
3315 * again
3316 */
3317 if (atomic_read(&cachep->memcg_params->nr_pages) != 0) {
3318 kmem_cache_shrink(cachep);
3319 if (atomic_read(&cachep->memcg_params->nr_pages) == 0)
3320 return;
3321 } else
1f458cbf
GC
3322 kmem_cache_destroy(cachep);
3323}
3324
3325void mem_cgroup_destroy_cache(struct kmem_cache *cachep)
3326{
3327 if (!cachep->memcg_params->dead)
3328 return;
3329
22933152
GC
3330 /*
3331 * There are many ways in which we can get here.
3332 *
3333 * We can get to a memory-pressure situation while the delayed work is
3334 * still pending to run. The vmscan shrinkers can then release all
3335 * cache memory and get us to destruction. If this is the case, we'll
3336 * be executed twice, which is a bug (the second time will execute over
3337 * bogus data). In this case, cancelling the work should be fine.
3338 *
3339 * But we can also get here from the worker itself, if
3340 * kmem_cache_shrink is enough to shake all the remaining objects and
3341 * get the page count to 0. In this case, we'll deadlock if we try to
3342 * cancel the work (the worker runs with an internal lock held, which
3343 * is the same lock we would hold for cancel_work_sync().)
3344 *
3345 * Since we can't possibly know who got us here, just refrain from
3346 * running if there is already work pending
3347 */
3348 if (work_pending(&cachep->memcg_params->destroy))
3349 return;
1f458cbf
GC
3350 /*
3351 * We have to defer the actual destroying to a workqueue, because
3352 * we might currently be in a context that cannot sleep.
3353 */
3354 schedule_work(&cachep->memcg_params->destroy);
3355}
3356
d9c10ddd
MH
3357/*
3358 * This lock protects updaters, not readers. We want readers to be as fast as
3359 * they can, and they will either see NULL or a valid cache value. Our model
3360 * allow them to see NULL, in which case the root memcg will be selected.
3361 *
3362 * We need this lock because multiple allocations to the same cache from a non
3363 * will span more than one worker. Only one of them can create the cache.
3364 */
3365static DEFINE_MUTEX(memcg_cache_mutex);
d7f25f8a 3366
d9c10ddd
MH
3367/*
3368 * Called with memcg_cache_mutex held
3369 */
d7f25f8a
GC
3370static struct kmem_cache *kmem_cache_dup(struct mem_cgroup *memcg,
3371 struct kmem_cache *s)
3372{
d7f25f8a 3373 struct kmem_cache *new;
d9c10ddd 3374 static char *tmp_name = NULL;
d7f25f8a 3375
d9c10ddd
MH
3376 lockdep_assert_held(&memcg_cache_mutex);
3377
3378 /*
3379 * kmem_cache_create_memcg duplicates the given name and
3380 * cgroup_name for this name requires RCU context.
3381 * This static temporary buffer is used to prevent from
3382 * pointless shortliving allocation.
3383 */
3384 if (!tmp_name) {
3385 tmp_name = kmalloc(PATH_MAX, GFP_KERNEL);
3386 if (!tmp_name)
3387 return NULL;
3388 }
3389
3390 rcu_read_lock();
3391 snprintf(tmp_name, PATH_MAX, "%s(%d:%s)", s->name,
3392 memcg_cache_id(memcg), cgroup_name(memcg->css.cgroup));
3393 rcu_read_unlock();
d7f25f8a 3394
d9c10ddd 3395 new = kmem_cache_create_memcg(memcg, tmp_name, s->object_size, s->align,
943a451a 3396 (s->flags & ~SLAB_PANIC), s->ctor, s);
d7f25f8a 3397
d79923fa
GC
3398 if (new)
3399 new->allocflags |= __GFP_KMEMCG;
3400
d7f25f8a
GC
3401 return new;
3402}
3403
d7f25f8a
GC
3404static struct kmem_cache *memcg_create_kmem_cache(struct mem_cgroup *memcg,
3405 struct kmem_cache *cachep)
3406{
3407 struct kmem_cache *new_cachep;
3408 int idx;
3409
3410 BUG_ON(!memcg_can_account_kmem(memcg));
3411
3412 idx = memcg_cache_id(memcg);
3413
3414 mutex_lock(&memcg_cache_mutex);
3415 new_cachep = cachep->memcg_params->memcg_caches[idx];
20f05310
LZ
3416 if (new_cachep) {
3417 css_put(&memcg->css);
d7f25f8a 3418 goto out;
20f05310 3419 }
d7f25f8a
GC
3420
3421 new_cachep = kmem_cache_dup(memcg, cachep);
d7f25f8a
GC
3422 if (new_cachep == NULL) {
3423 new_cachep = cachep;
20f05310 3424 css_put(&memcg->css);
d7f25f8a
GC
3425 goto out;
3426 }
3427
1f458cbf 3428 atomic_set(&new_cachep->memcg_params->nr_pages , 0);
d7f25f8a
GC
3429
3430 cachep->memcg_params->memcg_caches[idx] = new_cachep;
3431 /*
3432 * the readers won't lock, make sure everybody sees the updated value,
3433 * so they won't put stuff in the queue again for no reason
3434 */
3435 wmb();
3436out:
3437 mutex_unlock(&memcg_cache_mutex);
3438 return new_cachep;
3439}
3440
7cf27982
GC
3441void kmem_cache_destroy_memcg_children(struct kmem_cache *s)
3442{
3443 struct kmem_cache *c;
3444 int i;
3445
3446 if (!s->memcg_params)
3447 return;
3448 if (!s->memcg_params->is_root_cache)
3449 return;
3450
3451 /*
3452 * If the cache is being destroyed, we trust that there is no one else
3453 * requesting objects from it. Even if there are, the sanity checks in
3454 * kmem_cache_destroy should caught this ill-case.
3455 *
3456 * Still, we don't want anyone else freeing memcg_caches under our
3457 * noses, which can happen if a new memcg comes to life. As usual,
3458 * we'll take the set_limit_mutex to protect ourselves against this.
3459 */
3460 mutex_lock(&set_limit_mutex);
3461 for (i = 0; i < memcg_limited_groups_array_size; i++) {
3462 c = s->memcg_params->memcg_caches[i];
3463 if (!c)
3464 continue;
3465
3466 /*
3467 * We will now manually delete the caches, so to avoid races
3468 * we need to cancel all pending destruction workers and
3469 * proceed with destruction ourselves.
3470 *
3471 * kmem_cache_destroy() will call kmem_cache_shrink internally,
3472 * and that could spawn the workers again: it is likely that
3473 * the cache still have active pages until this very moment.
3474 * This would lead us back to mem_cgroup_destroy_cache.
3475 *
3476 * But that will not execute at all if the "dead" flag is not
3477 * set, so flip it down to guarantee we are in control.
3478 */
3479 c->memcg_params->dead = false;
22933152 3480 cancel_work_sync(&c->memcg_params->destroy);
7cf27982
GC
3481 kmem_cache_destroy(c);
3482 }
3483 mutex_unlock(&set_limit_mutex);
3484}
3485
d7f25f8a
GC
3486struct create_work {
3487 struct mem_cgroup *memcg;
3488 struct kmem_cache *cachep;
3489 struct work_struct work;
3490};
3491
1f458cbf
GC
3492static void mem_cgroup_destroy_all_caches(struct mem_cgroup *memcg)
3493{
3494 struct kmem_cache *cachep;
3495 struct memcg_cache_params *params;
3496
3497 if (!memcg_kmem_is_active(memcg))
3498 return;
3499
3500 mutex_lock(&memcg->slab_caches_mutex);
3501 list_for_each_entry(params, &memcg->memcg_slab_caches, list) {
3502 cachep = memcg_params_to_cache(params);
3503 cachep->memcg_params->dead = true;
1f458cbf
GC
3504 schedule_work(&cachep->memcg_params->destroy);
3505 }
3506 mutex_unlock(&memcg->slab_caches_mutex);
3507}
3508
d7f25f8a
GC
3509static void memcg_create_cache_work_func(struct work_struct *w)
3510{
3511 struct create_work *cw;
3512
3513 cw = container_of(w, struct create_work, work);
3514 memcg_create_kmem_cache(cw->memcg, cw->cachep);
d7f25f8a
GC
3515 kfree(cw);
3516}
3517
3518/*
3519 * Enqueue the creation of a per-memcg kmem_cache.
d7f25f8a 3520 */
0e9d92f2
GC
3521static void __memcg_create_cache_enqueue(struct mem_cgroup *memcg,
3522 struct kmem_cache *cachep)
d7f25f8a
GC
3523{
3524 struct create_work *cw;
3525
3526 cw = kmalloc(sizeof(struct create_work), GFP_NOWAIT);
ca0dde97
LZ
3527 if (cw == NULL) {
3528 css_put(&memcg->css);
d7f25f8a
GC
3529 return;
3530 }
3531
3532 cw->memcg = memcg;
3533 cw->cachep = cachep;
3534
3535 INIT_WORK(&cw->work, memcg_create_cache_work_func);
3536 schedule_work(&cw->work);
3537}
3538
0e9d92f2
GC
3539static void memcg_create_cache_enqueue(struct mem_cgroup *memcg,
3540 struct kmem_cache *cachep)
3541{
3542 /*
3543 * We need to stop accounting when we kmalloc, because if the
3544 * corresponding kmalloc cache is not yet created, the first allocation
3545 * in __memcg_create_cache_enqueue will recurse.
3546 *
3547 * However, it is better to enclose the whole function. Depending on
3548 * the debugging options enabled, INIT_WORK(), for instance, can
3549 * trigger an allocation. This too, will make us recurse. Because at
3550 * this point we can't allow ourselves back into memcg_kmem_get_cache,
3551 * the safest choice is to do it like this, wrapping the whole function.
3552 */
3553 memcg_stop_kmem_account();
3554 __memcg_create_cache_enqueue(memcg, cachep);
3555 memcg_resume_kmem_account();
3556}
d7f25f8a
GC
3557/*
3558 * Return the kmem_cache we're supposed to use for a slab allocation.
3559 * We try to use the current memcg's version of the cache.
3560 *
3561 * If the cache does not exist yet, if we are the first user of it,
3562 * we either create it immediately, if possible, or create it asynchronously
3563 * in a workqueue.
3564 * In the latter case, we will let the current allocation go through with
3565 * the original cache.
3566 *
3567 * Can't be called in interrupt context or from kernel threads.
3568 * This function needs to be called with rcu_read_lock() held.
3569 */
3570struct kmem_cache *__memcg_kmem_get_cache(struct kmem_cache *cachep,
3571 gfp_t gfp)
3572{
3573 struct mem_cgroup *memcg;
3574 int idx;
3575
3576 VM_BUG_ON(!cachep->memcg_params);
3577 VM_BUG_ON(!cachep->memcg_params->is_root_cache);
3578
0e9d92f2
GC
3579 if (!current->mm || current->memcg_kmem_skip_account)
3580 return cachep;
3581
d7f25f8a
GC
3582 rcu_read_lock();
3583 memcg = mem_cgroup_from_task(rcu_dereference(current->mm->owner));
d7f25f8a
GC
3584
3585 if (!memcg_can_account_kmem(memcg))
ca0dde97 3586 goto out;
d7f25f8a
GC
3587
3588 idx = memcg_cache_id(memcg);
3589
3590 /*
3591 * barrier to mare sure we're always seeing the up to date value. The
3592 * code updating memcg_caches will issue a write barrier to match this.
3593 */
3594 read_barrier_depends();
ca0dde97
LZ
3595 if (likely(cachep->memcg_params->memcg_caches[idx])) {
3596 cachep = cachep->memcg_params->memcg_caches[idx];
3597 goto out;
d7f25f8a
GC
3598 }
3599
ca0dde97
LZ
3600 /* The corresponding put will be done in the workqueue. */
3601 if (!css_tryget(&memcg->css))
3602 goto out;
3603 rcu_read_unlock();
3604
3605 /*
3606 * If we are in a safe context (can wait, and not in interrupt
3607 * context), we could be be predictable and return right away.
3608 * This would guarantee that the allocation being performed
3609 * already belongs in the new cache.
3610 *
3611 * However, there are some clashes that can arrive from locking.
3612 * For instance, because we acquire the slab_mutex while doing
3613 * kmem_cache_dup, this means no further allocation could happen
3614 * with the slab_mutex held.
3615 *
3616 * Also, because cache creation issue get_online_cpus(), this
3617 * creates a lock chain: memcg_slab_mutex -> cpu_hotplug_mutex,
3618 * that ends up reversed during cpu hotplug. (cpuset allocates
3619 * a bunch of GFP_KERNEL memory during cpuup). Due to all that,
3620 * better to defer everything.
3621 */
3622 memcg_create_cache_enqueue(memcg, cachep);
3623 return cachep;
3624out:
3625 rcu_read_unlock();
3626 return cachep;
d7f25f8a
GC
3627}
3628EXPORT_SYMBOL(__memcg_kmem_get_cache);
3629
7ae1e1d0
GC
3630/*
3631 * We need to verify if the allocation against current->mm->owner's memcg is
3632 * possible for the given order. But the page is not allocated yet, so we'll
3633 * need a further commit step to do the final arrangements.
3634 *
3635 * It is possible for the task to switch cgroups in this mean time, so at
3636 * commit time, we can't rely on task conversion any longer. We'll then use
3637 * the handle argument to return to the caller which cgroup we should commit
3638 * against. We could also return the memcg directly and avoid the pointer
3639 * passing, but a boolean return value gives better semantics considering
3640 * the compiled-out case as well.
3641 *
3642 * Returning true means the allocation is possible.
3643 */
3644bool
3645__memcg_kmem_newpage_charge(gfp_t gfp, struct mem_cgroup **_memcg, int order)
3646{
3647 struct mem_cgroup *memcg;
3648 int ret;
3649
3650 *_memcg = NULL;
6d42c232
GC
3651
3652 /*
3653 * Disabling accounting is only relevant for some specific memcg
3654 * internal allocations. Therefore we would initially not have such
3655 * check here, since direct calls to the page allocator that are marked
3656 * with GFP_KMEMCG only happen outside memcg core. We are mostly
3657 * concerned with cache allocations, and by having this test at
3658 * memcg_kmem_get_cache, we are already able to relay the allocation to
3659 * the root cache and bypass the memcg cache altogether.
3660 *
3661 * There is one exception, though: the SLUB allocator does not create
3662 * large order caches, but rather service large kmallocs directly from
3663 * the page allocator. Therefore, the following sequence when backed by
3664 * the SLUB allocator:
3665 *
f894ffa8
AM
3666 * memcg_stop_kmem_account();
3667 * kmalloc(<large_number>)
3668 * memcg_resume_kmem_account();
6d42c232
GC
3669 *
3670 * would effectively ignore the fact that we should skip accounting,
3671 * since it will drive us directly to this function without passing
3672 * through the cache selector memcg_kmem_get_cache. Such large
3673 * allocations are extremely rare but can happen, for instance, for the
3674 * cache arrays. We bring this test here.
3675 */
3676 if (!current->mm || current->memcg_kmem_skip_account)
3677 return true;
3678
7ae1e1d0
GC
3679 memcg = try_get_mem_cgroup_from_mm(current->mm);
3680
3681 /*
3682 * very rare case described in mem_cgroup_from_task. Unfortunately there
3683 * isn't much we can do without complicating this too much, and it would
3684 * be gfp-dependent anyway. Just let it go
3685 */
3686 if (unlikely(!memcg))
3687 return true;
3688
3689 if (!memcg_can_account_kmem(memcg)) {
3690 css_put(&memcg->css);
3691 return true;
3692 }
3693
7ae1e1d0
GC
3694 ret = memcg_charge_kmem(memcg, gfp, PAGE_SIZE << order);
3695 if (!ret)
3696 *_memcg = memcg;
7ae1e1d0
GC
3697
3698 css_put(&memcg->css);
3699 return (ret == 0);
3700}
3701
3702void __memcg_kmem_commit_charge(struct page *page, struct mem_cgroup *memcg,
3703 int order)
3704{
3705 struct page_cgroup *pc;
3706
3707 VM_BUG_ON(mem_cgroup_is_root(memcg));
3708
3709 /* The page allocation failed. Revert */
3710 if (!page) {
3711 memcg_uncharge_kmem(memcg, PAGE_SIZE << order);
7ae1e1d0
GC
3712 return;
3713 }
3714
3715 pc = lookup_page_cgroup(page);
3716 lock_page_cgroup(pc);
3717 pc->mem_cgroup = memcg;
3718 SetPageCgroupUsed(pc);
3719 unlock_page_cgroup(pc);
3720}
3721
3722void __memcg_kmem_uncharge_pages(struct page *page, int order)
3723{
3724 struct mem_cgroup *memcg = NULL;
3725 struct page_cgroup *pc;
3726
3727
3728 pc = lookup_page_cgroup(page);
3729 /*
3730 * Fast unlocked return. Theoretically might have changed, have to
3731 * check again after locking.
3732 */
3733 if (!PageCgroupUsed(pc))
3734 return;
3735
3736 lock_page_cgroup(pc);
3737 if (PageCgroupUsed(pc)) {
3738 memcg = pc->mem_cgroup;
3739 ClearPageCgroupUsed(pc);
3740 }
3741 unlock_page_cgroup(pc);
3742
3743 /*
3744 * We trust that only if there is a memcg associated with the page, it
3745 * is a valid allocation
3746 */
3747 if (!memcg)
3748 return;
3749
3750 VM_BUG_ON(mem_cgroup_is_root(memcg));
3751 memcg_uncharge_kmem(memcg, PAGE_SIZE << order);
7ae1e1d0 3752}
1f458cbf
GC
3753#else
3754static inline void mem_cgroup_destroy_all_caches(struct mem_cgroup *memcg)
3755{
3756}
7ae1e1d0
GC
3757#endif /* CONFIG_MEMCG_KMEM */
3758
ca3e0214
KH
3759#ifdef CONFIG_TRANSPARENT_HUGEPAGE
3760
a0db00fc 3761#define PCGF_NOCOPY_AT_SPLIT (1 << PCG_LOCK | 1 << PCG_MIGRATION)
ca3e0214
KH
3762/*
3763 * Because tail pages are not marked as "used", set it. We're under
e94c8a9c
KH
3764 * zone->lru_lock, 'splitting on pmd' and compound_lock.
3765 * charge/uncharge will be never happen and move_account() is done under
3766 * compound_lock(), so we don't have to take care of races.
ca3e0214 3767 */
e94c8a9c 3768void mem_cgroup_split_huge_fixup(struct page *head)
ca3e0214
KH
3769{
3770 struct page_cgroup *head_pc = lookup_page_cgroup(head);
e94c8a9c 3771 struct page_cgroup *pc;
b070e65c 3772 struct mem_cgroup *memcg;
e94c8a9c 3773 int i;
ca3e0214 3774
3d37c4a9
KH
3775 if (mem_cgroup_disabled())
3776 return;
b070e65c
DR
3777
3778 memcg = head_pc->mem_cgroup;
e94c8a9c
KH
3779 for (i = 1; i < HPAGE_PMD_NR; i++) {
3780 pc = head_pc + i;
b070e65c 3781 pc->mem_cgroup = memcg;
e94c8a9c 3782 smp_wmb();/* see __commit_charge() */
e94c8a9c
KH
3783 pc->flags = head_pc->flags & ~PCGF_NOCOPY_AT_SPLIT;
3784 }
b070e65c
DR
3785 __this_cpu_sub(memcg->stat->count[MEM_CGROUP_STAT_RSS_HUGE],
3786 HPAGE_PMD_NR);
ca3e0214 3787}
12d27107 3788#endif /* CONFIG_TRANSPARENT_HUGEPAGE */
ca3e0214 3789
3ea67d06
SZ
3790static inline
3791void mem_cgroup_move_account_page_stat(struct mem_cgroup *from,
3792 struct mem_cgroup *to,
3793 unsigned int nr_pages,
3794 enum mem_cgroup_stat_index idx)
3795{
3796 /* Update stat data for mem_cgroup */
3797 preempt_disable();
5e8cfc3c 3798 __this_cpu_sub(from->stat->count[idx], nr_pages);
3ea67d06
SZ
3799 __this_cpu_add(to->stat->count[idx], nr_pages);
3800 preempt_enable();
3801}
3802
f817ed48 3803/**
de3638d9 3804 * mem_cgroup_move_account - move account of the page
5564e88b 3805 * @page: the page
7ec99d62 3806 * @nr_pages: number of regular pages (>1 for huge pages)
f817ed48
KH
3807 * @pc: page_cgroup of the page.
3808 * @from: mem_cgroup which the page is moved from.
3809 * @to: mem_cgroup which the page is moved to. @from != @to.
3810 *
3811 * The caller must confirm following.
08e552c6 3812 * - page is not on LRU (isolate_page() is useful.)
7ec99d62 3813 * - compound_lock is held when nr_pages > 1
f817ed48 3814 *
2f3479b1
KH
3815 * This function doesn't do "charge" to new cgroup and doesn't do "uncharge"
3816 * from old cgroup.
f817ed48 3817 */
7ec99d62
JW
3818static int mem_cgroup_move_account(struct page *page,
3819 unsigned int nr_pages,
3820 struct page_cgroup *pc,
3821 struct mem_cgroup *from,
2f3479b1 3822 struct mem_cgroup *to)
f817ed48 3823{
de3638d9
JW
3824 unsigned long flags;
3825 int ret;
b2402857 3826 bool anon = PageAnon(page);
987eba66 3827
f817ed48 3828 VM_BUG_ON(from == to);
5564e88b 3829 VM_BUG_ON(PageLRU(page));
de3638d9
JW
3830 /*
3831 * The page is isolated from LRU. So, collapse function
3832 * will not handle this page. But page splitting can happen.
3833 * Do this check under compound_page_lock(). The caller should
3834 * hold it.
3835 */
3836 ret = -EBUSY;
7ec99d62 3837 if (nr_pages > 1 && !PageTransHuge(page))
de3638d9
JW
3838 goto out;
3839
3840 lock_page_cgroup(pc);
3841
3842 ret = -EINVAL;
3843 if (!PageCgroupUsed(pc) || pc->mem_cgroup != from)
3844 goto unlock;
3845
312734c0 3846 move_lock_mem_cgroup(from, &flags);
f817ed48 3847
3ea67d06
SZ
3848 if (!anon && page_mapped(page))
3849 mem_cgroup_move_account_page_stat(from, to, nr_pages,
3850 MEM_CGROUP_STAT_FILE_MAPPED);
3851
3852 if (PageWriteback(page))
3853 mem_cgroup_move_account_page_stat(from, to, nr_pages,
3854 MEM_CGROUP_STAT_WRITEBACK);
3855
b070e65c 3856 mem_cgroup_charge_statistics(from, page, anon, -nr_pages);
d69b042f 3857
854ffa8d 3858 /* caller should have done css_get */
08e552c6 3859 pc->mem_cgroup = to;
b070e65c 3860 mem_cgroup_charge_statistics(to, page, anon, nr_pages);
312734c0 3861 move_unlock_mem_cgroup(from, &flags);
de3638d9
JW
3862 ret = 0;
3863unlock:
57f9fd7d 3864 unlock_page_cgroup(pc);
d2265e6f
KH
3865 /*
3866 * check events
3867 */
5564e88b
JW
3868 memcg_check_events(to, page);
3869 memcg_check_events(from, page);
de3638d9 3870out:
f817ed48
KH
3871 return ret;
3872}
3873
2ef37d3f
MH
3874/**
3875 * mem_cgroup_move_parent - moves page to the parent group
3876 * @page: the page to move
3877 * @pc: page_cgroup of the page
3878 * @child: page's cgroup
3879 *
3880 * move charges to its parent or the root cgroup if the group has no
3881 * parent (aka use_hierarchy==0).
3882 * Although this might fail (get_page_unless_zero, isolate_lru_page or
3883 * mem_cgroup_move_account fails) the failure is always temporary and
3884 * it signals a race with a page removal/uncharge or migration. In the
3885 * first case the page is on the way out and it will vanish from the LRU
3886 * on the next attempt and the call should be retried later.
3887 * Isolation from the LRU fails only if page has been isolated from
3888 * the LRU since we looked at it and that usually means either global
3889 * reclaim or migration going on. The page will either get back to the
3890 * LRU or vanish.
3891 * Finaly mem_cgroup_move_account fails only if the page got uncharged
3892 * (!PageCgroupUsed) or moved to a different group. The page will
3893 * disappear in the next attempt.
f817ed48 3894 */
5564e88b
JW
3895static int mem_cgroup_move_parent(struct page *page,
3896 struct page_cgroup *pc,
6068bf01 3897 struct mem_cgroup *child)
f817ed48 3898{
f817ed48 3899 struct mem_cgroup *parent;
7ec99d62 3900 unsigned int nr_pages;
4be4489f 3901 unsigned long uninitialized_var(flags);
f817ed48
KH
3902 int ret;
3903
d8423011 3904 VM_BUG_ON(mem_cgroup_is_root(child));
f817ed48 3905
57f9fd7d
DN
3906 ret = -EBUSY;
3907 if (!get_page_unless_zero(page))
3908 goto out;
3909 if (isolate_lru_page(page))
3910 goto put;
52dbb905 3911
7ec99d62 3912 nr_pages = hpage_nr_pages(page);
08e552c6 3913
cc926f78
KH
3914 parent = parent_mem_cgroup(child);
3915 /*
3916 * If no parent, move charges to root cgroup.
3917 */
3918 if (!parent)
3919 parent = root_mem_cgroup;
f817ed48 3920
2ef37d3f
MH
3921 if (nr_pages > 1) {
3922 VM_BUG_ON(!PageTransHuge(page));
987eba66 3923 flags = compound_lock_irqsave(page);
2ef37d3f 3924 }
987eba66 3925
cc926f78 3926 ret = mem_cgroup_move_account(page, nr_pages,
2f3479b1 3927 pc, child, parent);
cc926f78
KH
3928 if (!ret)
3929 __mem_cgroup_cancel_local_charge(child, nr_pages);
8dba474f 3930
7ec99d62 3931 if (nr_pages > 1)
987eba66 3932 compound_unlock_irqrestore(page, flags);
08e552c6 3933 putback_lru_page(page);
57f9fd7d 3934put:
40d58138 3935 put_page(page);
57f9fd7d 3936out:
f817ed48
KH
3937 return ret;
3938}
3939
7a81b88c
KH
3940/*
3941 * Charge the memory controller for page usage.
3942 * Return
3943 * 0 if the charge was successful
3944 * < 0 if the cgroup is over its limit
3945 */
3946static int mem_cgroup_charge_common(struct page *page, struct mm_struct *mm,
73045c47 3947 gfp_t gfp_mask, enum charge_type ctype)
7a81b88c 3948{
c0ff4b85 3949 struct mem_cgroup *memcg = NULL;
7ec99d62 3950 unsigned int nr_pages = 1;
8493ae43 3951 bool oom = true;
7a81b88c 3952 int ret;
ec168510 3953
37c2ac78 3954 if (PageTransHuge(page)) {
7ec99d62 3955 nr_pages <<= compound_order(page);
37c2ac78 3956 VM_BUG_ON(!PageTransHuge(page));
8493ae43
JW
3957 /*
3958 * Never OOM-kill a process for a huge page. The
3959 * fault handler will fall back to regular pages.
3960 */
3961 oom = false;
37c2ac78 3962 }
7a81b88c 3963
c0ff4b85 3964 ret = __mem_cgroup_try_charge(mm, gfp_mask, nr_pages, &memcg, oom);
38c5d72f 3965 if (ret == -ENOMEM)
7a81b88c 3966 return ret;
ce587e65 3967 __mem_cgroup_commit_charge(memcg, page, nr_pages, ctype, false);
8a9f3ccd 3968 return 0;
8a9f3ccd
BS
3969}
3970
7a81b88c
KH
3971int mem_cgroup_newpage_charge(struct page *page,
3972 struct mm_struct *mm, gfp_t gfp_mask)
217bc319 3973{
f8d66542 3974 if (mem_cgroup_disabled())
cede86ac 3975 return 0;
7a0524cf
JW
3976 VM_BUG_ON(page_mapped(page));
3977 VM_BUG_ON(page->mapping && !PageAnon(page));
3978 VM_BUG_ON(!mm);
217bc319 3979 return mem_cgroup_charge_common(page, mm, gfp_mask,
41326c17 3980 MEM_CGROUP_CHARGE_TYPE_ANON);
217bc319
KH
3981}
3982
54595fe2
KH
3983/*
3984 * While swap-in, try_charge -> commit or cancel, the page is locked.
3985 * And when try_charge() successfully returns, one refcnt to memcg without
21ae2956 3986 * struct page_cgroup is acquired. This refcnt will be consumed by
54595fe2
KH
3987 * "commit()" or removed by "cancel()"
3988 */
0435a2fd
JW
3989static int __mem_cgroup_try_charge_swapin(struct mm_struct *mm,
3990 struct page *page,
3991 gfp_t mask,
3992 struct mem_cgroup **memcgp)
8c7c6e34 3993{
c0ff4b85 3994 struct mem_cgroup *memcg;
90deb788 3995 struct page_cgroup *pc;
54595fe2 3996 int ret;
8c7c6e34 3997
90deb788
JW
3998 pc = lookup_page_cgroup(page);
3999 /*
4000 * Every swap fault against a single page tries to charge the
4001 * page, bail as early as possible. shmem_unuse() encounters
4002 * already charged pages, too. The USED bit is protected by
4003 * the page lock, which serializes swap cache removal, which
4004 * in turn serializes uncharging.
4005 */
4006 if (PageCgroupUsed(pc))
4007 return 0;
8c7c6e34
KH
4008 if (!do_swap_account)
4009 goto charge_cur_mm;
c0ff4b85
R
4010 memcg = try_get_mem_cgroup_from_page(page);
4011 if (!memcg)
54595fe2 4012 goto charge_cur_mm;
72835c86
JW
4013 *memcgp = memcg;
4014 ret = __mem_cgroup_try_charge(NULL, mask, 1, memcgp, true);
c0ff4b85 4015 css_put(&memcg->css);
38c5d72f
KH
4016 if (ret == -EINTR)
4017 ret = 0;
54595fe2 4018 return ret;
8c7c6e34 4019charge_cur_mm:
38c5d72f
KH
4020 ret = __mem_cgroup_try_charge(mm, mask, 1, memcgp, true);
4021 if (ret == -EINTR)
4022 ret = 0;
4023 return ret;
8c7c6e34
KH
4024}
4025
0435a2fd
JW
4026int mem_cgroup_try_charge_swapin(struct mm_struct *mm, struct page *page,
4027 gfp_t gfp_mask, struct mem_cgroup **memcgp)
4028{
4029 *memcgp = NULL;
4030 if (mem_cgroup_disabled())
4031 return 0;
bdf4f4d2
JW
4032 /*
4033 * A racing thread's fault, or swapoff, may have already
4034 * updated the pte, and even removed page from swap cache: in
4035 * those cases unuse_pte()'s pte_same() test will fail; but
4036 * there's also a KSM case which does need to charge the page.
4037 */
4038 if (!PageSwapCache(page)) {
4039 int ret;
4040
4041 ret = __mem_cgroup_try_charge(mm, gfp_mask, 1, memcgp, true);
4042 if (ret == -EINTR)
4043 ret = 0;
4044 return ret;
4045 }
0435a2fd
JW
4046 return __mem_cgroup_try_charge_swapin(mm, page, gfp_mask, memcgp);
4047}
4048
827a03d2
JW
4049void mem_cgroup_cancel_charge_swapin(struct mem_cgroup *memcg)
4050{
4051 if (mem_cgroup_disabled())
4052 return;
4053 if (!memcg)
4054 return;
4055 __mem_cgroup_cancel_charge(memcg, 1);
4056}
4057
83aae4c7 4058static void
72835c86 4059__mem_cgroup_commit_charge_swapin(struct page *page, struct mem_cgroup *memcg,
83aae4c7 4060 enum charge_type ctype)
7a81b88c 4061{
f8d66542 4062 if (mem_cgroup_disabled())
7a81b88c 4063 return;
72835c86 4064 if (!memcg)
7a81b88c 4065 return;
5a6475a4 4066
ce587e65 4067 __mem_cgroup_commit_charge(memcg, page, 1, ctype, true);
8c7c6e34
KH
4068 /*
4069 * Now swap is on-memory. This means this page may be
4070 * counted both as mem and swap....double count.
03f3c433
KH
4071 * Fix it by uncharging from memsw. Basically, this SwapCache is stable
4072 * under lock_page(). But in do_swap_page()::memory.c, reuse_swap_page()
4073 * may call delete_from_swap_cache() before reach here.
8c7c6e34 4074 */
03f3c433 4075 if (do_swap_account && PageSwapCache(page)) {
8c7c6e34 4076 swp_entry_t ent = {.val = page_private(page)};
86493009 4077 mem_cgroup_uncharge_swap(ent);
8c7c6e34 4078 }
7a81b88c
KH
4079}
4080
72835c86
JW
4081void mem_cgroup_commit_charge_swapin(struct page *page,
4082 struct mem_cgroup *memcg)
83aae4c7 4083{
72835c86 4084 __mem_cgroup_commit_charge_swapin(page, memcg,
41326c17 4085 MEM_CGROUP_CHARGE_TYPE_ANON);
83aae4c7
DN
4086}
4087
827a03d2
JW
4088int mem_cgroup_cache_charge(struct page *page, struct mm_struct *mm,
4089 gfp_t gfp_mask)
7a81b88c 4090{
827a03d2
JW
4091 struct mem_cgroup *memcg = NULL;
4092 enum charge_type type = MEM_CGROUP_CHARGE_TYPE_CACHE;
4093 int ret;
4094
f8d66542 4095 if (mem_cgroup_disabled())
827a03d2
JW
4096 return 0;
4097 if (PageCompound(page))
4098 return 0;
4099
827a03d2
JW
4100 if (!PageSwapCache(page))
4101 ret = mem_cgroup_charge_common(page, mm, gfp_mask, type);
4102 else { /* page is swapcache/shmem */
0435a2fd
JW
4103 ret = __mem_cgroup_try_charge_swapin(mm, page,
4104 gfp_mask, &memcg);
827a03d2
JW
4105 if (!ret)
4106 __mem_cgroup_commit_charge_swapin(page, memcg, type);
4107 }
4108 return ret;
7a81b88c
KH
4109}
4110
c0ff4b85 4111static void mem_cgroup_do_uncharge(struct mem_cgroup *memcg,
7ec99d62
JW
4112 unsigned int nr_pages,
4113 const enum charge_type ctype)
569b846d
KH
4114{
4115 struct memcg_batch_info *batch = NULL;
4116 bool uncharge_memsw = true;
7ec99d62 4117
569b846d
KH
4118 /* If swapout, usage of swap doesn't decrease */
4119 if (!do_swap_account || ctype == MEM_CGROUP_CHARGE_TYPE_SWAPOUT)
4120 uncharge_memsw = false;
569b846d
KH
4121
4122 batch = &current->memcg_batch;
4123 /*
4124 * In usual, we do css_get() when we remember memcg pointer.
4125 * But in this case, we keep res->usage until end of a series of
4126 * uncharges. Then, it's ok to ignore memcg's refcnt.
4127 */
4128 if (!batch->memcg)
c0ff4b85 4129 batch->memcg = memcg;
3c11ecf4
KH
4130 /*
4131 * do_batch > 0 when unmapping pages or inode invalidate/truncate.
25985edc 4132 * In those cases, all pages freed continuously can be expected to be in
3c11ecf4
KH
4133 * the same cgroup and we have chance to coalesce uncharges.
4134 * But we do uncharge one by one if this is killed by OOM(TIF_MEMDIE)
4135 * because we want to do uncharge as soon as possible.
4136 */
4137
4138 if (!batch->do_batch || test_thread_flag(TIF_MEMDIE))
4139 goto direct_uncharge;
4140
7ec99d62 4141 if (nr_pages > 1)
ec168510
AA
4142 goto direct_uncharge;
4143
569b846d
KH
4144 /*
4145 * In typical case, batch->memcg == mem. This means we can
4146 * merge a series of uncharges to an uncharge of res_counter.
4147 * If not, we uncharge res_counter ony by one.
4148 */
c0ff4b85 4149 if (batch->memcg != memcg)
569b846d
KH
4150 goto direct_uncharge;
4151 /* remember freed charge and uncharge it later */
7ffd4ca7 4152 batch->nr_pages++;
569b846d 4153 if (uncharge_memsw)
7ffd4ca7 4154 batch->memsw_nr_pages++;
569b846d
KH
4155 return;
4156direct_uncharge:
c0ff4b85 4157 res_counter_uncharge(&memcg->res, nr_pages * PAGE_SIZE);
569b846d 4158 if (uncharge_memsw)
c0ff4b85
R
4159 res_counter_uncharge(&memcg->memsw, nr_pages * PAGE_SIZE);
4160 if (unlikely(batch->memcg != memcg))
4161 memcg_oom_recover(memcg);
569b846d 4162}
7a81b88c 4163
8a9f3ccd 4164/*
69029cd5 4165 * uncharge if !page_mapped(page)
8a9f3ccd 4166 */
8c7c6e34 4167static struct mem_cgroup *
0030f535
JW
4168__mem_cgroup_uncharge_common(struct page *page, enum charge_type ctype,
4169 bool end_migration)
8a9f3ccd 4170{
c0ff4b85 4171 struct mem_cgroup *memcg = NULL;
7ec99d62
JW
4172 unsigned int nr_pages = 1;
4173 struct page_cgroup *pc;
b2402857 4174 bool anon;
8a9f3ccd 4175
f8d66542 4176 if (mem_cgroup_disabled())
8c7c6e34 4177 return NULL;
4077960e 4178
37c2ac78 4179 if (PageTransHuge(page)) {
7ec99d62 4180 nr_pages <<= compound_order(page);
37c2ac78
AA
4181 VM_BUG_ON(!PageTransHuge(page));
4182 }
8697d331 4183 /*
3c541e14 4184 * Check if our page_cgroup is valid
8697d331 4185 */
52d4b9ac 4186 pc = lookup_page_cgroup(page);
cfa44946 4187 if (unlikely(!PageCgroupUsed(pc)))
8c7c6e34 4188 return NULL;
b9c565d5 4189
52d4b9ac 4190 lock_page_cgroup(pc);
d13d1443 4191
c0ff4b85 4192 memcg = pc->mem_cgroup;
8c7c6e34 4193
d13d1443
KH
4194 if (!PageCgroupUsed(pc))
4195 goto unlock_out;
4196
b2402857
KH
4197 anon = PageAnon(page);
4198
d13d1443 4199 switch (ctype) {
41326c17 4200 case MEM_CGROUP_CHARGE_TYPE_ANON:
2ff76f11
KH
4201 /*
4202 * Generally PageAnon tells if it's the anon statistics to be
4203 * updated; but sometimes e.g. mem_cgroup_uncharge_page() is
4204 * used before page reached the stage of being marked PageAnon.
4205 */
b2402857
KH
4206 anon = true;
4207 /* fallthrough */
8a9478ca 4208 case MEM_CGROUP_CHARGE_TYPE_DROP:
ac39cf8c 4209 /* See mem_cgroup_prepare_migration() */
0030f535
JW
4210 if (page_mapped(page))
4211 goto unlock_out;
4212 /*
4213 * Pages under migration may not be uncharged. But
4214 * end_migration() /must/ be the one uncharging the
4215 * unused post-migration page and so it has to call
4216 * here with the migration bit still set. See the
4217 * res_counter handling below.
4218 */
4219 if (!end_migration && PageCgroupMigration(pc))
d13d1443
KH
4220 goto unlock_out;
4221 break;
4222 case MEM_CGROUP_CHARGE_TYPE_SWAPOUT:
4223 if (!PageAnon(page)) { /* Shared memory */
4224 if (page->mapping && !page_is_file_cache(page))
4225 goto unlock_out;
4226 } else if (page_mapped(page)) /* Anon */
4227 goto unlock_out;
4228 break;
4229 default:
4230 break;
52d4b9ac 4231 }
d13d1443 4232
b070e65c 4233 mem_cgroup_charge_statistics(memcg, page, anon, -nr_pages);
04046e1a 4234
52d4b9ac 4235 ClearPageCgroupUsed(pc);
544122e5
KH
4236 /*
4237 * pc->mem_cgroup is not cleared here. It will be accessed when it's
4238 * freed from LRU. This is safe because uncharged page is expected not
4239 * to be reused (freed soon). Exception is SwapCache, it's handled by
4240 * special functions.
4241 */
b9c565d5 4242
52d4b9ac 4243 unlock_page_cgroup(pc);
f75ca962 4244 /*
c0ff4b85 4245 * even after unlock, we have memcg->res.usage here and this memcg
4050377b 4246 * will never be freed, so it's safe to call css_get().
f75ca962 4247 */
c0ff4b85 4248 memcg_check_events(memcg, page);
f75ca962 4249 if (do_swap_account && ctype == MEM_CGROUP_CHARGE_TYPE_SWAPOUT) {
c0ff4b85 4250 mem_cgroup_swap_statistics(memcg, true);
4050377b 4251 css_get(&memcg->css);
f75ca962 4252 }
0030f535
JW
4253 /*
4254 * Migration does not charge the res_counter for the
4255 * replacement page, so leave it alone when phasing out the
4256 * page that is unused after the migration.
4257 */
4258 if (!end_migration && !mem_cgroup_is_root(memcg))
c0ff4b85 4259 mem_cgroup_do_uncharge(memcg, nr_pages, ctype);
6d12e2d8 4260
c0ff4b85 4261 return memcg;
d13d1443
KH
4262
4263unlock_out:
4264 unlock_page_cgroup(pc);
8c7c6e34 4265 return NULL;
3c541e14
BS
4266}
4267
69029cd5
KH
4268void mem_cgroup_uncharge_page(struct page *page)
4269{
52d4b9ac
KH
4270 /* early check. */
4271 if (page_mapped(page))
4272 return;
40f23a21 4273 VM_BUG_ON(page->mapping && !PageAnon(page));
28ccddf7
JW
4274 /*
4275 * If the page is in swap cache, uncharge should be deferred
4276 * to the swap path, which also properly accounts swap usage
4277 * and handles memcg lifetime.
4278 *
4279 * Note that this check is not stable and reclaim may add the
4280 * page to swap cache at any time after this. However, if the
4281 * page is not in swap cache by the time page->mapcount hits
4282 * 0, there won't be any page table references to the swap
4283 * slot, and reclaim will free it and not actually write the
4284 * page to disk.
4285 */
0c59b89c
JW
4286 if (PageSwapCache(page))
4287 return;
0030f535 4288 __mem_cgroup_uncharge_common(page, MEM_CGROUP_CHARGE_TYPE_ANON, false);
69029cd5
KH
4289}
4290
4291void mem_cgroup_uncharge_cache_page(struct page *page)
4292{
4293 VM_BUG_ON(page_mapped(page));
b7abea96 4294 VM_BUG_ON(page->mapping);
0030f535 4295 __mem_cgroup_uncharge_common(page, MEM_CGROUP_CHARGE_TYPE_CACHE, false);
69029cd5
KH
4296}
4297
569b846d
KH
4298/*
4299 * Batch_start/batch_end is called in unmap_page_range/invlidate/trucate.
4300 * In that cases, pages are freed continuously and we can expect pages
4301 * are in the same memcg. All these calls itself limits the number of
4302 * pages freed at once, then uncharge_start/end() is called properly.
4303 * This may be called prural(2) times in a context,
4304 */
4305
4306void mem_cgroup_uncharge_start(void)
4307{
4308 current->memcg_batch.do_batch++;
4309 /* We can do nest. */
4310 if (current->memcg_batch.do_batch == 1) {
4311 current->memcg_batch.memcg = NULL;
7ffd4ca7
JW
4312 current->memcg_batch.nr_pages = 0;
4313 current->memcg_batch.memsw_nr_pages = 0;
569b846d
KH
4314 }
4315}
4316
4317void mem_cgroup_uncharge_end(void)
4318{
4319 struct memcg_batch_info *batch = &current->memcg_batch;
4320
4321 if (!batch->do_batch)
4322 return;
4323
4324 batch->do_batch--;
4325 if (batch->do_batch) /* If stacked, do nothing. */
4326 return;
4327
4328 if (!batch->memcg)
4329 return;
4330 /*
4331 * This "batch->memcg" is valid without any css_get/put etc...
4332 * bacause we hide charges behind us.
4333 */
7ffd4ca7
JW
4334 if (batch->nr_pages)
4335 res_counter_uncharge(&batch->memcg->res,
4336 batch->nr_pages * PAGE_SIZE);
4337 if (batch->memsw_nr_pages)
4338 res_counter_uncharge(&batch->memcg->memsw,
4339 batch->memsw_nr_pages * PAGE_SIZE);
3c11ecf4 4340 memcg_oom_recover(batch->memcg);
569b846d
KH
4341 /* forget this pointer (for sanity check) */
4342 batch->memcg = NULL;
4343}
4344
e767e056 4345#ifdef CONFIG_SWAP
8c7c6e34 4346/*
e767e056 4347 * called after __delete_from_swap_cache() and drop "page" account.
8c7c6e34
KH
4348 * memcg information is recorded to swap_cgroup of "ent"
4349 */
8a9478ca
KH
4350void
4351mem_cgroup_uncharge_swapcache(struct page *page, swp_entry_t ent, bool swapout)
8c7c6e34
KH
4352{
4353 struct mem_cgroup *memcg;
8a9478ca
KH
4354 int ctype = MEM_CGROUP_CHARGE_TYPE_SWAPOUT;
4355
4356 if (!swapout) /* this was a swap cache but the swap is unused ! */
4357 ctype = MEM_CGROUP_CHARGE_TYPE_DROP;
4358
0030f535 4359 memcg = __mem_cgroup_uncharge_common(page, ctype, false);
8c7c6e34 4360
f75ca962
KH
4361 /*
4362 * record memcg information, if swapout && memcg != NULL,
4050377b 4363 * css_get() was called in uncharge().
f75ca962
KH
4364 */
4365 if (do_swap_account && swapout && memcg)
34c00c31 4366 swap_cgroup_record(ent, mem_cgroup_id(memcg));
8c7c6e34 4367}
e767e056 4368#endif
8c7c6e34 4369
c255a458 4370#ifdef CONFIG_MEMCG_SWAP
8c7c6e34
KH
4371/*
4372 * called from swap_entry_free(). remove record in swap_cgroup and
4373 * uncharge "memsw" account.
4374 */
4375void mem_cgroup_uncharge_swap(swp_entry_t ent)
d13d1443 4376{
8c7c6e34 4377 struct mem_cgroup *memcg;
a3b2d692 4378 unsigned short id;
8c7c6e34
KH
4379
4380 if (!do_swap_account)
4381 return;
4382
a3b2d692
KH
4383 id = swap_cgroup_record(ent, 0);
4384 rcu_read_lock();
4385 memcg = mem_cgroup_lookup(id);
8c7c6e34 4386 if (memcg) {
a3b2d692
KH
4387 /*
4388 * We uncharge this because swap is freed.
4389 * This memcg can be obsolete one. We avoid calling css_tryget
4390 */
0c3e73e8 4391 if (!mem_cgroup_is_root(memcg))
4e649152 4392 res_counter_uncharge(&memcg->memsw, PAGE_SIZE);
0c3e73e8 4393 mem_cgroup_swap_statistics(memcg, false);
4050377b 4394 css_put(&memcg->css);
8c7c6e34 4395 }
a3b2d692 4396 rcu_read_unlock();
d13d1443 4397}
02491447
DN
4398
4399/**
4400 * mem_cgroup_move_swap_account - move swap charge and swap_cgroup's record.
4401 * @entry: swap entry to be moved
4402 * @from: mem_cgroup which the entry is moved from
4403 * @to: mem_cgroup which the entry is moved to
4404 *
4405 * It succeeds only when the swap_cgroup's record for this entry is the same
4406 * as the mem_cgroup's id of @from.
4407 *
4408 * Returns 0 on success, -EINVAL on failure.
4409 *
4410 * The caller must have charged to @to, IOW, called res_counter_charge() about
4411 * both res and memsw, and called css_get().
4412 */
4413static int mem_cgroup_move_swap_account(swp_entry_t entry,
e91cbb42 4414 struct mem_cgroup *from, struct mem_cgroup *to)
02491447
DN
4415{
4416 unsigned short old_id, new_id;
4417
34c00c31
LZ
4418 old_id = mem_cgroup_id(from);
4419 new_id = mem_cgroup_id(to);
02491447
DN
4420
4421 if (swap_cgroup_cmpxchg(entry, old_id, new_id) == old_id) {
02491447 4422 mem_cgroup_swap_statistics(from, false);
483c30b5 4423 mem_cgroup_swap_statistics(to, true);
02491447 4424 /*
483c30b5
DN
4425 * This function is only called from task migration context now.
4426 * It postpones res_counter and refcount handling till the end
4427 * of task migration(mem_cgroup_clear_mc()) for performance
4050377b
LZ
4428 * improvement. But we cannot postpone css_get(to) because if
4429 * the process that has been moved to @to does swap-in, the
4430 * refcount of @to might be decreased to 0.
4431 *
4432 * We are in attach() phase, so the cgroup is guaranteed to be
4433 * alive, so we can just call css_get().
02491447 4434 */
4050377b 4435 css_get(&to->css);
02491447
DN
4436 return 0;
4437 }
4438 return -EINVAL;
4439}
4440#else
4441static inline int mem_cgroup_move_swap_account(swp_entry_t entry,
e91cbb42 4442 struct mem_cgroup *from, struct mem_cgroup *to)
02491447
DN
4443{
4444 return -EINVAL;
4445}
8c7c6e34 4446#endif
d13d1443 4447
ae41be37 4448/*
01b1ae63
KH
4449 * Before starting migration, account PAGE_SIZE to mem_cgroup that the old
4450 * page belongs to.
ae41be37 4451 */
0030f535
JW
4452void mem_cgroup_prepare_migration(struct page *page, struct page *newpage,
4453 struct mem_cgroup **memcgp)
ae41be37 4454{
c0ff4b85 4455 struct mem_cgroup *memcg = NULL;
b32967ff 4456 unsigned int nr_pages = 1;
7ec99d62 4457 struct page_cgroup *pc;
ac39cf8c 4458 enum charge_type ctype;
8869b8f6 4459
72835c86 4460 *memcgp = NULL;
56039efa 4461
f8d66542 4462 if (mem_cgroup_disabled())
0030f535 4463 return;
4077960e 4464
b32967ff
MG
4465 if (PageTransHuge(page))
4466 nr_pages <<= compound_order(page);
4467
52d4b9ac
KH
4468 pc = lookup_page_cgroup(page);
4469 lock_page_cgroup(pc);
4470 if (PageCgroupUsed(pc)) {
c0ff4b85
R
4471 memcg = pc->mem_cgroup;
4472 css_get(&memcg->css);
ac39cf8c
AM
4473 /*
4474 * At migrating an anonymous page, its mapcount goes down
4475 * to 0 and uncharge() will be called. But, even if it's fully
4476 * unmapped, migration may fail and this page has to be
4477 * charged again. We set MIGRATION flag here and delay uncharge
4478 * until end_migration() is called
4479 *
4480 * Corner Case Thinking
4481 * A)
4482 * When the old page was mapped as Anon and it's unmap-and-freed
4483 * while migration was ongoing.
4484 * If unmap finds the old page, uncharge() of it will be delayed
4485 * until end_migration(). If unmap finds a new page, it's
4486 * uncharged when it make mapcount to be 1->0. If unmap code
4487 * finds swap_migration_entry, the new page will not be mapped
4488 * and end_migration() will find it(mapcount==0).
4489 *
4490 * B)
4491 * When the old page was mapped but migraion fails, the kernel
4492 * remaps it. A charge for it is kept by MIGRATION flag even
4493 * if mapcount goes down to 0. We can do remap successfully
4494 * without charging it again.
4495 *
4496 * C)
4497 * The "old" page is under lock_page() until the end of
4498 * migration, so, the old page itself will not be swapped-out.
4499 * If the new page is swapped out before end_migraton, our
4500 * hook to usual swap-out path will catch the event.
4501 */
4502 if (PageAnon(page))
4503 SetPageCgroupMigration(pc);
e8589cc1 4504 }
52d4b9ac 4505 unlock_page_cgroup(pc);
ac39cf8c
AM
4506 /*
4507 * If the page is not charged at this point,
4508 * we return here.
4509 */
c0ff4b85 4510 if (!memcg)
0030f535 4511 return;
01b1ae63 4512
72835c86 4513 *memcgp = memcg;
ac39cf8c
AM
4514 /*
4515 * We charge new page before it's used/mapped. So, even if unlock_page()
4516 * is called before end_migration, we can catch all events on this new
4517 * page. In the case new page is migrated but not remapped, new page's
4518 * mapcount will be finally 0 and we call uncharge in end_migration().
4519 */
ac39cf8c 4520 if (PageAnon(page))
41326c17 4521 ctype = MEM_CGROUP_CHARGE_TYPE_ANON;
ac39cf8c 4522 else
62ba7442 4523 ctype = MEM_CGROUP_CHARGE_TYPE_CACHE;
0030f535
JW
4524 /*
4525 * The page is committed to the memcg, but it's not actually
4526 * charged to the res_counter since we plan on replacing the
4527 * old one and only one page is going to be left afterwards.
4528 */
b32967ff 4529 __mem_cgroup_commit_charge(memcg, newpage, nr_pages, ctype, false);
ae41be37 4530}
8869b8f6 4531
69029cd5 4532/* remove redundant charge if migration failed*/
c0ff4b85 4533void mem_cgroup_end_migration(struct mem_cgroup *memcg,
50de1dd9 4534 struct page *oldpage, struct page *newpage, bool migration_ok)
ae41be37 4535{
ac39cf8c 4536 struct page *used, *unused;
01b1ae63 4537 struct page_cgroup *pc;
b2402857 4538 bool anon;
01b1ae63 4539
c0ff4b85 4540 if (!memcg)
01b1ae63 4541 return;
b25ed609 4542
50de1dd9 4543 if (!migration_ok) {
ac39cf8c
AM
4544 used = oldpage;
4545 unused = newpage;
01b1ae63 4546 } else {
ac39cf8c 4547 used = newpage;
01b1ae63
KH
4548 unused = oldpage;
4549 }
0030f535 4550 anon = PageAnon(used);
7d188958
JW
4551 __mem_cgroup_uncharge_common(unused,
4552 anon ? MEM_CGROUP_CHARGE_TYPE_ANON
4553 : MEM_CGROUP_CHARGE_TYPE_CACHE,
4554 true);
0030f535 4555 css_put(&memcg->css);
69029cd5 4556 /*
ac39cf8c
AM
4557 * We disallowed uncharge of pages under migration because mapcount
4558 * of the page goes down to zero, temporarly.
4559 * Clear the flag and check the page should be charged.
01b1ae63 4560 */
ac39cf8c
AM
4561 pc = lookup_page_cgroup(oldpage);
4562 lock_page_cgroup(pc);
4563 ClearPageCgroupMigration(pc);
4564 unlock_page_cgroup(pc);
ac39cf8c 4565
01b1ae63 4566 /*
ac39cf8c
AM
4567 * If a page is a file cache, radix-tree replacement is very atomic
4568 * and we can skip this check. When it was an Anon page, its mapcount
4569 * goes down to 0. But because we added MIGRATION flage, it's not
4570 * uncharged yet. There are several case but page->mapcount check
4571 * and USED bit check in mem_cgroup_uncharge_page() will do enough
4572 * check. (see prepare_charge() also)
69029cd5 4573 */
b2402857 4574 if (anon)
ac39cf8c 4575 mem_cgroup_uncharge_page(used);
ae41be37 4576}
78fb7466 4577
ab936cbc
KH
4578/*
4579 * At replace page cache, newpage is not under any memcg but it's on
4580 * LRU. So, this function doesn't touch res_counter but handles LRU
4581 * in correct way. Both pages are locked so we cannot race with uncharge.
4582 */
4583void mem_cgroup_replace_page_cache(struct page *oldpage,
4584 struct page *newpage)
4585{
bde05d1c 4586 struct mem_cgroup *memcg = NULL;
ab936cbc 4587 struct page_cgroup *pc;
ab936cbc 4588 enum charge_type type = MEM_CGROUP_CHARGE_TYPE_CACHE;
ab936cbc
KH
4589
4590 if (mem_cgroup_disabled())
4591 return;
4592
4593 pc = lookup_page_cgroup(oldpage);
4594 /* fix accounting on old pages */
4595 lock_page_cgroup(pc);
bde05d1c
HD
4596 if (PageCgroupUsed(pc)) {
4597 memcg = pc->mem_cgroup;
b070e65c 4598 mem_cgroup_charge_statistics(memcg, oldpage, false, -1);
bde05d1c
HD
4599 ClearPageCgroupUsed(pc);
4600 }
ab936cbc
KH
4601 unlock_page_cgroup(pc);
4602
bde05d1c
HD
4603 /*
4604 * When called from shmem_replace_page(), in some cases the
4605 * oldpage has already been charged, and in some cases not.
4606 */
4607 if (!memcg)
4608 return;
ab936cbc
KH
4609 /*
4610 * Even if newpage->mapping was NULL before starting replacement,
4611 * the newpage may be on LRU(or pagevec for LRU) already. We lock
4612 * LRU while we overwrite pc->mem_cgroup.
4613 */
ce587e65 4614 __mem_cgroup_commit_charge(memcg, newpage, 1, type, true);
ab936cbc
KH
4615}
4616
f212ad7c
DN
4617#ifdef CONFIG_DEBUG_VM
4618static struct page_cgroup *lookup_page_cgroup_used(struct page *page)
4619{
4620 struct page_cgroup *pc;
4621
4622 pc = lookup_page_cgroup(page);
cfa44946
JW
4623 /*
4624 * Can be NULL while feeding pages into the page allocator for
4625 * the first time, i.e. during boot or memory hotplug;
4626 * or when mem_cgroup_disabled().
4627 */
f212ad7c
DN
4628 if (likely(pc) && PageCgroupUsed(pc))
4629 return pc;
4630 return NULL;
4631}
4632
4633bool mem_cgroup_bad_page_check(struct page *page)
4634{
4635 if (mem_cgroup_disabled())
4636 return false;
4637
4638 return lookup_page_cgroup_used(page) != NULL;
4639}
4640
4641void mem_cgroup_print_bad_page(struct page *page)
4642{
4643 struct page_cgroup *pc;
4644
4645 pc = lookup_page_cgroup_used(page);
4646 if (pc) {
d045197f
AM
4647 pr_alert("pc:%p pc->flags:%lx pc->mem_cgroup:%p\n",
4648 pc, pc->flags, pc->mem_cgroup);
f212ad7c
DN
4649 }
4650}
4651#endif
4652
d38d2a75 4653static int mem_cgroup_resize_limit(struct mem_cgroup *memcg,
8c7c6e34 4654 unsigned long long val)
628f4235 4655{
81d39c20 4656 int retry_count;
3c11ecf4 4657 u64 memswlimit, memlimit;
628f4235 4658 int ret = 0;
81d39c20
KH
4659 int children = mem_cgroup_count_children(memcg);
4660 u64 curusage, oldusage;
3c11ecf4 4661 int enlarge;
81d39c20
KH
4662
4663 /*
4664 * For keeping hierarchical_reclaim simple, how long we should retry
4665 * is depends on callers. We set our retry-count to be function
4666 * of # of children which we should visit in this loop.
4667 */
4668 retry_count = MEM_CGROUP_RECLAIM_RETRIES * children;
4669
4670 oldusage = res_counter_read_u64(&memcg->res, RES_USAGE);
628f4235 4671
3c11ecf4 4672 enlarge = 0;
8c7c6e34 4673 while (retry_count) {
628f4235
KH
4674 if (signal_pending(current)) {
4675 ret = -EINTR;
4676 break;
4677 }
8c7c6e34
KH
4678 /*
4679 * Rather than hide all in some function, I do this in
4680 * open coded manner. You see what this really does.
aaad153e 4681 * We have to guarantee memcg->res.limit <= memcg->memsw.limit.
8c7c6e34
KH
4682 */
4683 mutex_lock(&set_limit_mutex);
4684 memswlimit = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
4685 if (memswlimit < val) {
4686 ret = -EINVAL;
4687 mutex_unlock(&set_limit_mutex);
628f4235
KH
4688 break;
4689 }
3c11ecf4
KH
4690
4691 memlimit = res_counter_read_u64(&memcg->res, RES_LIMIT);
4692 if (memlimit < val)
4693 enlarge = 1;
4694
8c7c6e34 4695 ret = res_counter_set_limit(&memcg->res, val);
22a668d7
KH
4696 if (!ret) {
4697 if (memswlimit == val)
4698 memcg->memsw_is_minimum = true;
4699 else
4700 memcg->memsw_is_minimum = false;
4701 }
8c7c6e34
KH
4702 mutex_unlock(&set_limit_mutex);
4703
4704 if (!ret)
4705 break;
4706
5660048c
JW
4707 mem_cgroup_reclaim(memcg, GFP_KERNEL,
4708 MEM_CGROUP_RECLAIM_SHRINK);
81d39c20
KH
4709 curusage = res_counter_read_u64(&memcg->res, RES_USAGE);
4710 /* Usage is reduced ? */
f894ffa8 4711 if (curusage >= oldusage)
81d39c20
KH
4712 retry_count--;
4713 else
4714 oldusage = curusage;
8c7c6e34 4715 }
3c11ecf4
KH
4716 if (!ret && enlarge)
4717 memcg_oom_recover(memcg);
14797e23 4718
8c7c6e34
KH
4719 return ret;
4720}
4721
338c8431
LZ
4722static int mem_cgroup_resize_memsw_limit(struct mem_cgroup *memcg,
4723 unsigned long long val)
8c7c6e34 4724{
81d39c20 4725 int retry_count;
3c11ecf4 4726 u64 memlimit, memswlimit, oldusage, curusage;
81d39c20
KH
4727 int children = mem_cgroup_count_children(memcg);
4728 int ret = -EBUSY;
3c11ecf4 4729 int enlarge = 0;
8c7c6e34 4730
81d39c20 4731 /* see mem_cgroup_resize_res_limit */
f894ffa8 4732 retry_count = children * MEM_CGROUP_RECLAIM_RETRIES;
81d39c20 4733 oldusage = res_counter_read_u64(&memcg->memsw, RES_USAGE);
8c7c6e34
KH
4734 while (retry_count) {
4735 if (signal_pending(current)) {
4736 ret = -EINTR;
4737 break;
4738 }
4739 /*
4740 * Rather than hide all in some function, I do this in
4741 * open coded manner. You see what this really does.
aaad153e 4742 * We have to guarantee memcg->res.limit <= memcg->memsw.limit.
8c7c6e34
KH
4743 */
4744 mutex_lock(&set_limit_mutex);
4745 memlimit = res_counter_read_u64(&memcg->res, RES_LIMIT);
4746 if (memlimit > val) {
4747 ret = -EINVAL;
4748 mutex_unlock(&set_limit_mutex);
4749 break;
4750 }
3c11ecf4
KH
4751 memswlimit = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
4752 if (memswlimit < val)
4753 enlarge = 1;
8c7c6e34 4754 ret = res_counter_set_limit(&memcg->memsw, val);
22a668d7
KH
4755 if (!ret) {
4756 if (memlimit == val)
4757 memcg->memsw_is_minimum = true;
4758 else
4759 memcg->memsw_is_minimum = false;
4760 }
8c7c6e34
KH
4761 mutex_unlock(&set_limit_mutex);
4762
4763 if (!ret)
4764 break;
4765
5660048c
JW
4766 mem_cgroup_reclaim(memcg, GFP_KERNEL,
4767 MEM_CGROUP_RECLAIM_NOSWAP |
4768 MEM_CGROUP_RECLAIM_SHRINK);
8c7c6e34 4769 curusage = res_counter_read_u64(&memcg->memsw, RES_USAGE);
81d39c20 4770 /* Usage is reduced ? */
8c7c6e34 4771 if (curusage >= oldusage)
628f4235 4772 retry_count--;
81d39c20
KH
4773 else
4774 oldusage = curusage;
628f4235 4775 }
3c11ecf4
KH
4776 if (!ret && enlarge)
4777 memcg_oom_recover(memcg);
628f4235
KH
4778 return ret;
4779}
4780
0608f43d
AM
4781unsigned long mem_cgroup_soft_limit_reclaim(struct zone *zone, int order,
4782 gfp_t gfp_mask,
4783 unsigned long *total_scanned)
4784{
4785 unsigned long nr_reclaimed = 0;
4786 struct mem_cgroup_per_zone *mz, *next_mz = NULL;
4787 unsigned long reclaimed;
4788 int loop = 0;
4789 struct mem_cgroup_tree_per_zone *mctz;
4790 unsigned long long excess;
4791 unsigned long nr_scanned;
4792
4793 if (order > 0)
4794 return 0;
4795
4796 mctz = soft_limit_tree_node_zone(zone_to_nid(zone), zone_idx(zone));
4797 /*
4798 * This loop can run a while, specially if mem_cgroup's continuously
4799 * keep exceeding their soft limit and putting the system under
4800 * pressure
4801 */
4802 do {
4803 if (next_mz)
4804 mz = next_mz;
4805 else
4806 mz = mem_cgroup_largest_soft_limit_node(mctz);
4807 if (!mz)
4808 break;
4809
4810 nr_scanned = 0;
4811 reclaimed = mem_cgroup_soft_reclaim(mz->memcg, zone,
4812 gfp_mask, &nr_scanned);
4813 nr_reclaimed += reclaimed;
4814 *total_scanned += nr_scanned;
4815 spin_lock(&mctz->lock);
4816
4817 /*
4818 * If we failed to reclaim anything from this memory cgroup
4819 * it is time to move on to the next cgroup
4820 */
4821 next_mz = NULL;
4822 if (!reclaimed) {
4823 do {
4824 /*
4825 * Loop until we find yet another one.
4826 *
4827 * By the time we get the soft_limit lock
4828 * again, someone might have aded the
4829 * group back on the RB tree. Iterate to
4830 * make sure we get a different mem.
4831 * mem_cgroup_largest_soft_limit_node returns
4832 * NULL if no other cgroup is present on
4833 * the tree
4834 */
4835 next_mz =
4836 __mem_cgroup_largest_soft_limit_node(mctz);
4837 if (next_mz == mz)
4838 css_put(&next_mz->memcg->css);
4839 else /* next_mz == NULL or other memcg */
4840 break;
4841 } while (1);
4842 }
4843 __mem_cgroup_remove_exceeded(mz->memcg, mz, mctz);
4844 excess = res_counter_soft_limit_excess(&mz->memcg->res);
4845 /*
4846 * One school of thought says that we should not add
4847 * back the node to the tree if reclaim returns 0.
4848 * But our reclaim could return 0, simply because due
4849 * to priority we are exposing a smaller subset of
4850 * memory to reclaim from. Consider this as a longer
4851 * term TODO.
4852 */
4853 /* If excess == 0, no tree ops */
4854 __mem_cgroup_insert_exceeded(mz->memcg, mz, mctz, excess);
4855 spin_unlock(&mctz->lock);
4856 css_put(&mz->memcg->css);
4857 loop++;
4858 /*
4859 * Could not reclaim anything and there are no more
4860 * mem cgroups to try or we seem to be looping without
4861 * reclaiming anything.
4862 */
4863 if (!nr_reclaimed &&
4864 (next_mz == NULL ||
4865 loop > MEM_CGROUP_MAX_SOFT_LIMIT_RECLAIM_LOOPS))
4866 break;
4867 } while (!nr_reclaimed);
4868 if (next_mz)
4869 css_put(&next_mz->memcg->css);
4870 return nr_reclaimed;
4871}
4872
2ef37d3f
MH
4873/**
4874 * mem_cgroup_force_empty_list - clears LRU of a group
4875 * @memcg: group to clear
4876 * @node: NUMA node
4877 * @zid: zone id
4878 * @lru: lru to to clear
4879 *
3c935d18 4880 * Traverse a specified page_cgroup list and try to drop them all. This doesn't
2ef37d3f
MH
4881 * reclaim the pages page themselves - pages are moved to the parent (or root)
4882 * group.
cc847582 4883 */
2ef37d3f 4884static void mem_cgroup_force_empty_list(struct mem_cgroup *memcg,
08e552c6 4885 int node, int zid, enum lru_list lru)
cc847582 4886{
bea8c150 4887 struct lruvec *lruvec;
2ef37d3f 4888 unsigned long flags;
072c56c1 4889 struct list_head *list;
925b7673
JW
4890 struct page *busy;
4891 struct zone *zone;
072c56c1 4892
08e552c6 4893 zone = &NODE_DATA(node)->node_zones[zid];
bea8c150
HD
4894 lruvec = mem_cgroup_zone_lruvec(zone, memcg);
4895 list = &lruvec->lists[lru];
cc847582 4896
f817ed48 4897 busy = NULL;
2ef37d3f 4898 do {
925b7673 4899 struct page_cgroup *pc;
5564e88b
JW
4900 struct page *page;
4901
08e552c6 4902 spin_lock_irqsave(&zone->lru_lock, flags);
f817ed48 4903 if (list_empty(list)) {
08e552c6 4904 spin_unlock_irqrestore(&zone->lru_lock, flags);
52d4b9ac 4905 break;
f817ed48 4906 }
925b7673
JW
4907 page = list_entry(list->prev, struct page, lru);
4908 if (busy == page) {
4909 list_move(&page->lru, list);
648bcc77 4910 busy = NULL;
08e552c6 4911 spin_unlock_irqrestore(&zone->lru_lock, flags);
f817ed48
KH
4912 continue;
4913 }
08e552c6 4914 spin_unlock_irqrestore(&zone->lru_lock, flags);
f817ed48 4915
925b7673 4916 pc = lookup_page_cgroup(page);
5564e88b 4917
3c935d18 4918 if (mem_cgroup_move_parent(page, pc, memcg)) {
f817ed48 4919 /* found lock contention or "pc" is obsolete. */
925b7673 4920 busy = page;
f817ed48
KH
4921 cond_resched();
4922 } else
4923 busy = NULL;
2ef37d3f 4924 } while (!list_empty(list));
cc847582
KH
4925}
4926
4927/*
c26251f9
MH
4928 * make mem_cgroup's charge to be 0 if there is no task by moving
4929 * all the charges and pages to the parent.
cc847582 4930 * This enables deleting this mem_cgroup.
c26251f9
MH
4931 *
4932 * Caller is responsible for holding css reference on the memcg.
cc847582 4933 */
ab5196c2 4934static void mem_cgroup_reparent_charges(struct mem_cgroup *memcg)
cc847582 4935{
c26251f9 4936 int node, zid;
bea207c8 4937 u64 usage;
f817ed48 4938
fce66477 4939 do {
52d4b9ac
KH
4940 /* This is for making all *used* pages to be on LRU. */
4941 lru_add_drain_all();
c0ff4b85 4942 drain_all_stock_sync(memcg);
c0ff4b85 4943 mem_cgroup_start_move(memcg);
31aaea4a 4944 for_each_node_state(node, N_MEMORY) {
2ef37d3f 4945 for (zid = 0; zid < MAX_NR_ZONES; zid++) {
f156ab93
HD
4946 enum lru_list lru;
4947 for_each_lru(lru) {
2ef37d3f 4948 mem_cgroup_force_empty_list(memcg,
f156ab93 4949 node, zid, lru);
f817ed48 4950 }
1ecaab2b 4951 }
f817ed48 4952 }
c0ff4b85
R
4953 mem_cgroup_end_move(memcg);
4954 memcg_oom_recover(memcg);
52d4b9ac 4955 cond_resched();
f817ed48 4956
2ef37d3f 4957 /*
bea207c8
GC
4958 * Kernel memory may not necessarily be trackable to a specific
4959 * process. So they are not migrated, and therefore we can't
4960 * expect their value to drop to 0 here.
4961 * Having res filled up with kmem only is enough.
4962 *
2ef37d3f
MH
4963 * This is a safety check because mem_cgroup_force_empty_list
4964 * could have raced with mem_cgroup_replace_page_cache callers
4965 * so the lru seemed empty but the page could have been added
4966 * right after the check. RES_USAGE should be safe as we always
4967 * charge before adding to the LRU.
4968 */
bea207c8
GC
4969 usage = res_counter_read_u64(&memcg->res, RES_USAGE) -
4970 res_counter_read_u64(&memcg->kmem, RES_USAGE);
4971 } while (usage > 0);
c26251f9
MH
4972}
4973
b5f99b53
GC
4974static inline bool memcg_has_children(struct mem_cgroup *memcg)
4975{
696ac172
JW
4976 lockdep_assert_held(&memcg_create_mutex);
4977 /*
4978 * The lock does not prevent addition or deletion to the list
4979 * of children, but it prevents a new child from being
4980 * initialized based on this parent in css_online(), so it's
4981 * enough to decide whether hierarchically inherited
4982 * attributes can still be changed or not.
4983 */
4984 return memcg->use_hierarchy &&
4985 !list_empty(&memcg->css.cgroup->children);
b5f99b53
GC
4986}
4987
c26251f9
MH
4988/*
4989 * Reclaims as many pages from the given memcg as possible and moves
4990 * the rest to the parent.
4991 *
4992 * Caller is responsible for holding css reference for memcg.
4993 */
4994static int mem_cgroup_force_empty(struct mem_cgroup *memcg)
4995{
4996 int nr_retries = MEM_CGROUP_RECLAIM_RETRIES;
4997 struct cgroup *cgrp = memcg->css.cgroup;
f817ed48 4998
c1e862c1 4999 /* returns EBUSY if there is a task or if we come here twice. */
c26251f9
MH
5000 if (cgroup_task_count(cgrp) || !list_empty(&cgrp->children))
5001 return -EBUSY;
5002
c1e862c1
KH
5003 /* we call try-to-free pages for make this cgroup empty */
5004 lru_add_drain_all();
f817ed48 5005 /* try to free all pages in this cgroup */
569530fb 5006 while (nr_retries && res_counter_read_u64(&memcg->res, RES_USAGE) > 0) {
f817ed48 5007 int progress;
c1e862c1 5008
c26251f9
MH
5009 if (signal_pending(current))
5010 return -EINTR;
5011
c0ff4b85 5012 progress = try_to_free_mem_cgroup_pages(memcg, GFP_KERNEL,
185efc0f 5013 false);
c1e862c1 5014 if (!progress) {
f817ed48 5015 nr_retries--;
c1e862c1 5016 /* maybe some writeback is necessary */
8aa7e847 5017 congestion_wait(BLK_RW_ASYNC, HZ/10);
c1e862c1 5018 }
f817ed48
KH
5019
5020 }
08e552c6 5021 lru_add_drain();
ab5196c2
MH
5022 mem_cgroup_reparent_charges(memcg);
5023
5024 return 0;
cc847582
KH
5025}
5026
182446d0
TH
5027static int mem_cgroup_force_empty_write(struct cgroup_subsys_state *css,
5028 unsigned int event)
c1e862c1 5029{
182446d0 5030 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
c26251f9 5031
d8423011
MH
5032 if (mem_cgroup_is_root(memcg))
5033 return -EINVAL;
c33bd835 5034 return mem_cgroup_force_empty(memcg);
c1e862c1
KH
5035}
5036
182446d0
TH
5037static u64 mem_cgroup_hierarchy_read(struct cgroup_subsys_state *css,
5038 struct cftype *cft)
18f59ea7 5039{
182446d0 5040 return mem_cgroup_from_css(css)->use_hierarchy;
18f59ea7
BS
5041}
5042
182446d0
TH
5043static int mem_cgroup_hierarchy_write(struct cgroup_subsys_state *css,
5044 struct cftype *cft, u64 val)
18f59ea7
BS
5045{
5046 int retval = 0;
182446d0 5047 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
63876986 5048 struct mem_cgroup *parent_memcg = mem_cgroup_from_css(css_parent(&memcg->css));
18f59ea7 5049
0999821b 5050 mutex_lock(&memcg_create_mutex);
567fb435
GC
5051
5052 if (memcg->use_hierarchy == val)
5053 goto out;
5054
18f59ea7 5055 /*
af901ca1 5056 * If parent's use_hierarchy is set, we can't make any modifications
18f59ea7
BS
5057 * in the child subtrees. If it is unset, then the change can
5058 * occur, provided the current cgroup has no children.
5059 *
5060 * For the root cgroup, parent_mem is NULL, we allow value to be
5061 * set if there are no children.
5062 */
c0ff4b85 5063 if ((!parent_memcg || !parent_memcg->use_hierarchy) &&
18f59ea7 5064 (val == 1 || val == 0)) {
696ac172 5065 if (list_empty(&memcg->css.cgroup->children))
c0ff4b85 5066 memcg->use_hierarchy = val;
18f59ea7
BS
5067 else
5068 retval = -EBUSY;
5069 } else
5070 retval = -EINVAL;
567fb435
GC
5071
5072out:
0999821b 5073 mutex_unlock(&memcg_create_mutex);
18f59ea7
BS
5074
5075 return retval;
5076}
5077
0c3e73e8 5078
c0ff4b85 5079static unsigned long mem_cgroup_recursive_stat(struct mem_cgroup *memcg,
7a159cc9 5080 enum mem_cgroup_stat_index idx)
0c3e73e8 5081{
7d74b06f 5082 struct mem_cgroup *iter;
7a159cc9 5083 long val = 0;
0c3e73e8 5084
7a159cc9 5085 /* Per-cpu values can be negative, use a signed accumulator */
c0ff4b85 5086 for_each_mem_cgroup_tree(iter, memcg)
7d74b06f
KH
5087 val += mem_cgroup_read_stat(iter, idx);
5088
5089 if (val < 0) /* race ? */
5090 val = 0;
5091 return val;
0c3e73e8
BS
5092}
5093
c0ff4b85 5094static inline u64 mem_cgroup_usage(struct mem_cgroup *memcg, bool swap)
104f3928 5095{
7d74b06f 5096 u64 val;
104f3928 5097
c0ff4b85 5098 if (!mem_cgroup_is_root(memcg)) {
104f3928 5099 if (!swap)
65c64ce8 5100 return res_counter_read_u64(&memcg->res, RES_USAGE);
104f3928 5101 else
65c64ce8 5102 return res_counter_read_u64(&memcg->memsw, RES_USAGE);
104f3928
KS
5103 }
5104
b070e65c
DR
5105 /*
5106 * Transparent hugepages are still accounted for in MEM_CGROUP_STAT_RSS
5107 * as well as in MEM_CGROUP_STAT_RSS_HUGE.
5108 */
c0ff4b85
R
5109 val = mem_cgroup_recursive_stat(memcg, MEM_CGROUP_STAT_CACHE);
5110 val += mem_cgroup_recursive_stat(memcg, MEM_CGROUP_STAT_RSS);
104f3928 5111
7d74b06f 5112 if (swap)
bff6bb83 5113 val += mem_cgroup_recursive_stat(memcg, MEM_CGROUP_STAT_SWAP);
104f3928
KS
5114
5115 return val << PAGE_SHIFT;
5116}
5117
182446d0
TH
5118static ssize_t mem_cgroup_read(struct cgroup_subsys_state *css,
5119 struct cftype *cft, struct file *file,
5120 char __user *buf, size_t nbytes, loff_t *ppos)
8cdea7c0 5121{
182446d0 5122 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
af36f906 5123 char str[64];
104f3928 5124 u64 val;
86ae53e1
GC
5125 int name, len;
5126 enum res_type type;
8c7c6e34
KH
5127
5128 type = MEMFILE_TYPE(cft->private);
5129 name = MEMFILE_ATTR(cft->private);
af36f906 5130
8c7c6e34
KH
5131 switch (type) {
5132 case _MEM:
104f3928 5133 if (name == RES_USAGE)
c0ff4b85 5134 val = mem_cgroup_usage(memcg, false);
104f3928 5135 else
c0ff4b85 5136 val = res_counter_read_u64(&memcg->res, name);
8c7c6e34
KH
5137 break;
5138 case _MEMSWAP:
104f3928 5139 if (name == RES_USAGE)
c0ff4b85 5140 val = mem_cgroup_usage(memcg, true);
104f3928 5141 else
c0ff4b85 5142 val = res_counter_read_u64(&memcg->memsw, name);
8c7c6e34 5143 break;
510fc4e1
GC
5144 case _KMEM:
5145 val = res_counter_read_u64(&memcg->kmem, name);
5146 break;
8c7c6e34
KH
5147 default:
5148 BUG();
8c7c6e34 5149 }
af36f906
TH
5150
5151 len = scnprintf(str, sizeof(str), "%llu\n", (unsigned long long)val);
5152 return simple_read_from_buffer(buf, nbytes, ppos, str, len);
8cdea7c0 5153}
510fc4e1 5154
182446d0 5155static int memcg_update_kmem_limit(struct cgroup_subsys_state *css, u64 val)
510fc4e1
GC
5156{
5157 int ret = -EINVAL;
5158#ifdef CONFIG_MEMCG_KMEM
182446d0 5159 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
510fc4e1
GC
5160 /*
5161 * For simplicity, we won't allow this to be disabled. It also can't
5162 * be changed if the cgroup has children already, or if tasks had
5163 * already joined.
5164 *
5165 * If tasks join before we set the limit, a person looking at
5166 * kmem.usage_in_bytes will have no way to determine when it took
5167 * place, which makes the value quite meaningless.
5168 *
5169 * After it first became limited, changes in the value of the limit are
5170 * of course permitted.
510fc4e1 5171 */
0999821b 5172 mutex_lock(&memcg_create_mutex);
510fc4e1 5173 mutex_lock(&set_limit_mutex);
6de5a8bf 5174 if (!memcg->kmem_account_flags && val != RES_COUNTER_MAX) {
182446d0 5175 if (cgroup_task_count(css->cgroup) || memcg_has_children(memcg)) {
510fc4e1
GC
5176 ret = -EBUSY;
5177 goto out;
5178 }
5179 ret = res_counter_set_limit(&memcg->kmem, val);
5180 VM_BUG_ON(ret);
5181
55007d84
GC
5182 ret = memcg_update_cache_sizes(memcg);
5183 if (ret) {
6de5a8bf 5184 res_counter_set_limit(&memcg->kmem, RES_COUNTER_MAX);
55007d84
GC
5185 goto out;
5186 }
692e89ab
GC
5187 static_key_slow_inc(&memcg_kmem_enabled_key);
5188 /*
5189 * setting the active bit after the inc will guarantee no one
5190 * starts accounting before all call sites are patched
5191 */
5192 memcg_kmem_set_active(memcg);
510fc4e1
GC
5193 } else
5194 ret = res_counter_set_limit(&memcg->kmem, val);
5195out:
5196 mutex_unlock(&set_limit_mutex);
0999821b 5197 mutex_unlock(&memcg_create_mutex);
510fc4e1
GC
5198#endif
5199 return ret;
5200}
5201
6d043990 5202#ifdef CONFIG_MEMCG_KMEM
55007d84 5203static int memcg_propagate_kmem(struct mem_cgroup *memcg)
510fc4e1 5204{
55007d84 5205 int ret = 0;
510fc4e1
GC
5206 struct mem_cgroup *parent = parent_mem_cgroup(memcg);
5207 if (!parent)
55007d84
GC
5208 goto out;
5209
510fc4e1 5210 memcg->kmem_account_flags = parent->kmem_account_flags;
a8964b9b
GC
5211 /*
5212 * When that happen, we need to disable the static branch only on those
5213 * memcgs that enabled it. To achieve this, we would be forced to
5214 * complicate the code by keeping track of which memcgs were the ones
5215 * that actually enabled limits, and which ones got it from its
5216 * parents.
5217 *
5218 * It is a lot simpler just to do static_key_slow_inc() on every child
5219 * that is accounted.
5220 */
55007d84
GC
5221 if (!memcg_kmem_is_active(memcg))
5222 goto out;
5223
5224 /*
10d5ebf4
LZ
5225 * __mem_cgroup_free() will issue static_key_slow_dec() because this
5226 * memcg is active already. If the later initialization fails then the
5227 * cgroup core triggers the cleanup so we do not have to do it here.
55007d84 5228 */
55007d84
GC
5229 static_key_slow_inc(&memcg_kmem_enabled_key);
5230
5231 mutex_lock(&set_limit_mutex);
425c598d 5232 memcg_stop_kmem_account();
55007d84 5233 ret = memcg_update_cache_sizes(memcg);
425c598d 5234 memcg_resume_kmem_account();
55007d84 5235 mutex_unlock(&set_limit_mutex);
55007d84
GC
5236out:
5237 return ret;
510fc4e1 5238}
6d043990 5239#endif /* CONFIG_MEMCG_KMEM */
510fc4e1 5240
628f4235
KH
5241/*
5242 * The user of this function is...
5243 * RES_LIMIT.
5244 */
182446d0 5245static int mem_cgroup_write(struct cgroup_subsys_state *css, struct cftype *cft,
856c13aa 5246 const char *buffer)
8cdea7c0 5247{
182446d0 5248 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
86ae53e1
GC
5249 enum res_type type;
5250 int name;
628f4235
KH
5251 unsigned long long val;
5252 int ret;
5253
8c7c6e34
KH
5254 type = MEMFILE_TYPE(cft->private);
5255 name = MEMFILE_ATTR(cft->private);
af36f906 5256
8c7c6e34 5257 switch (name) {
628f4235 5258 case RES_LIMIT:
4b3bde4c
BS
5259 if (mem_cgroup_is_root(memcg)) { /* Can't set limit on root */
5260 ret = -EINVAL;
5261 break;
5262 }
628f4235
KH
5263 /* This function does all necessary parse...reuse it */
5264 ret = res_counter_memparse_write_strategy(buffer, &val);
8c7c6e34
KH
5265 if (ret)
5266 break;
5267 if (type == _MEM)
628f4235 5268 ret = mem_cgroup_resize_limit(memcg, val);
510fc4e1 5269 else if (type == _MEMSWAP)
8c7c6e34 5270 ret = mem_cgroup_resize_memsw_limit(memcg, val);
510fc4e1 5271 else if (type == _KMEM)
182446d0 5272 ret = memcg_update_kmem_limit(css, val);
510fc4e1
GC
5273 else
5274 return -EINVAL;
628f4235 5275 break;
296c81d8
BS
5276 case RES_SOFT_LIMIT:
5277 ret = res_counter_memparse_write_strategy(buffer, &val);
5278 if (ret)
5279 break;
5280 /*
5281 * For memsw, soft limits are hard to implement in terms
5282 * of semantics, for now, we support soft limits for
5283 * control without swap
5284 */
5285 if (type == _MEM)
5286 ret = res_counter_set_soft_limit(&memcg->res, val);
5287 else
5288 ret = -EINVAL;
5289 break;
628f4235
KH
5290 default:
5291 ret = -EINVAL; /* should be BUG() ? */
5292 break;
5293 }
5294 return ret;
8cdea7c0
BS
5295}
5296
fee7b548
KH
5297static void memcg_get_hierarchical_limit(struct mem_cgroup *memcg,
5298 unsigned long long *mem_limit, unsigned long long *memsw_limit)
5299{
fee7b548
KH
5300 unsigned long long min_limit, min_memsw_limit, tmp;
5301
5302 min_limit = res_counter_read_u64(&memcg->res, RES_LIMIT);
5303 min_memsw_limit = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
fee7b548
KH
5304 if (!memcg->use_hierarchy)
5305 goto out;
5306
63876986
TH
5307 while (css_parent(&memcg->css)) {
5308 memcg = mem_cgroup_from_css(css_parent(&memcg->css));
fee7b548
KH
5309 if (!memcg->use_hierarchy)
5310 break;
5311 tmp = res_counter_read_u64(&memcg->res, RES_LIMIT);
5312 min_limit = min(min_limit, tmp);
5313 tmp = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
5314 min_memsw_limit = min(min_memsw_limit, tmp);
5315 }
5316out:
5317 *mem_limit = min_limit;
5318 *memsw_limit = min_memsw_limit;
fee7b548
KH
5319}
5320
182446d0 5321static int mem_cgroup_reset(struct cgroup_subsys_state *css, unsigned int event)
c84872e1 5322{
182446d0 5323 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
86ae53e1
GC
5324 int name;
5325 enum res_type type;
c84872e1 5326
8c7c6e34
KH
5327 type = MEMFILE_TYPE(event);
5328 name = MEMFILE_ATTR(event);
af36f906 5329
8c7c6e34 5330 switch (name) {
29f2a4da 5331 case RES_MAX_USAGE:
8c7c6e34 5332 if (type == _MEM)
c0ff4b85 5333 res_counter_reset_max(&memcg->res);
510fc4e1 5334 else if (type == _MEMSWAP)
c0ff4b85 5335 res_counter_reset_max(&memcg->memsw);
510fc4e1
GC
5336 else if (type == _KMEM)
5337 res_counter_reset_max(&memcg->kmem);
5338 else
5339 return -EINVAL;
29f2a4da
PE
5340 break;
5341 case RES_FAILCNT:
8c7c6e34 5342 if (type == _MEM)
c0ff4b85 5343 res_counter_reset_failcnt(&memcg->res);
510fc4e1 5344 else if (type == _MEMSWAP)
c0ff4b85 5345 res_counter_reset_failcnt(&memcg->memsw);
510fc4e1
GC
5346 else if (type == _KMEM)
5347 res_counter_reset_failcnt(&memcg->kmem);
5348 else
5349 return -EINVAL;
29f2a4da
PE
5350 break;
5351 }
f64c3f54 5352
85cc59db 5353 return 0;
c84872e1
PE
5354}
5355
182446d0 5356static u64 mem_cgroup_move_charge_read(struct cgroup_subsys_state *css,
7dc74be0
DN
5357 struct cftype *cft)
5358{
182446d0 5359 return mem_cgroup_from_css(css)->move_charge_at_immigrate;
7dc74be0
DN
5360}
5361
02491447 5362#ifdef CONFIG_MMU
182446d0 5363static int mem_cgroup_move_charge_write(struct cgroup_subsys_state *css,
7dc74be0
DN
5364 struct cftype *cft, u64 val)
5365{
182446d0 5366 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
7dc74be0
DN
5367
5368 if (val >= (1 << NR_MOVE_TYPE))
5369 return -EINVAL;
ee5e8472 5370
7dc74be0 5371 /*
ee5e8472
GC
5372 * No kind of locking is needed in here, because ->can_attach() will
5373 * check this value once in the beginning of the process, and then carry
5374 * on with stale data. This means that changes to this value will only
5375 * affect task migrations starting after the change.
7dc74be0 5376 */
c0ff4b85 5377 memcg->move_charge_at_immigrate = val;
7dc74be0
DN
5378 return 0;
5379}
02491447 5380#else
182446d0 5381static int mem_cgroup_move_charge_write(struct cgroup_subsys_state *css,
02491447
DN
5382 struct cftype *cft, u64 val)
5383{
5384 return -ENOSYS;
5385}
5386#endif
7dc74be0 5387
406eb0c9 5388#ifdef CONFIG_NUMA
182446d0
TH
5389static int memcg_numa_stat_show(struct cgroup_subsys_state *css,
5390 struct cftype *cft, struct seq_file *m)
406eb0c9
YH
5391{
5392 int nid;
5393 unsigned long total_nr, file_nr, anon_nr, unevictable_nr;
5394 unsigned long node_nr;
182446d0 5395 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
406eb0c9 5396
d79154bb 5397 total_nr = mem_cgroup_nr_lru_pages(memcg, LRU_ALL);
406eb0c9 5398 seq_printf(m, "total=%lu", total_nr);
31aaea4a 5399 for_each_node_state(nid, N_MEMORY) {
d79154bb 5400 node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL);
406eb0c9
YH
5401 seq_printf(m, " N%d=%lu", nid, node_nr);
5402 }
5403 seq_putc(m, '\n');
5404
d79154bb 5405 file_nr = mem_cgroup_nr_lru_pages(memcg, LRU_ALL_FILE);
406eb0c9 5406 seq_printf(m, "file=%lu", file_nr);
31aaea4a 5407 for_each_node_state(nid, N_MEMORY) {
d79154bb 5408 node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
bb2a0de9 5409 LRU_ALL_FILE);
406eb0c9
YH
5410 seq_printf(m, " N%d=%lu", nid, node_nr);
5411 }
5412 seq_putc(m, '\n');
5413
d79154bb 5414 anon_nr = mem_cgroup_nr_lru_pages(memcg, LRU_ALL_ANON);
406eb0c9 5415 seq_printf(m, "anon=%lu", anon_nr);
31aaea4a 5416 for_each_node_state(nid, N_MEMORY) {
d79154bb 5417 node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
bb2a0de9 5418 LRU_ALL_ANON);
406eb0c9
YH
5419 seq_printf(m, " N%d=%lu", nid, node_nr);
5420 }
5421 seq_putc(m, '\n');
5422
d79154bb 5423 unevictable_nr = mem_cgroup_nr_lru_pages(memcg, BIT(LRU_UNEVICTABLE));
406eb0c9 5424 seq_printf(m, "unevictable=%lu", unevictable_nr);
31aaea4a 5425 for_each_node_state(nid, N_MEMORY) {
d79154bb 5426 node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
bb2a0de9 5427 BIT(LRU_UNEVICTABLE));
406eb0c9
YH
5428 seq_printf(m, " N%d=%lu", nid, node_nr);
5429 }
5430 seq_putc(m, '\n');
5431 return 0;
5432}
5433#endif /* CONFIG_NUMA */
5434
af7c4b0e
JW
5435static inline void mem_cgroup_lru_names_not_uptodate(void)
5436{
5437 BUILD_BUG_ON(ARRAY_SIZE(mem_cgroup_lru_names) != NR_LRU_LISTS);
5438}
5439
182446d0 5440static int memcg_stat_show(struct cgroup_subsys_state *css, struct cftype *cft,
78ccf5b5 5441 struct seq_file *m)
d2ceb9b7 5442{
182446d0 5443 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
af7c4b0e
JW
5444 struct mem_cgroup *mi;
5445 unsigned int i;
406eb0c9 5446
af7c4b0e 5447 for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
bff6bb83 5448 if (i == MEM_CGROUP_STAT_SWAP && !do_swap_account)
1dd3a273 5449 continue;
af7c4b0e
JW
5450 seq_printf(m, "%s %ld\n", mem_cgroup_stat_names[i],
5451 mem_cgroup_read_stat(memcg, i) * PAGE_SIZE);
1dd3a273 5452 }
7b854121 5453
af7c4b0e
JW
5454 for (i = 0; i < MEM_CGROUP_EVENTS_NSTATS; i++)
5455 seq_printf(m, "%s %lu\n", mem_cgroup_events_names[i],
5456 mem_cgroup_read_events(memcg, i));
5457
5458 for (i = 0; i < NR_LRU_LISTS; i++)
5459 seq_printf(m, "%s %lu\n", mem_cgroup_lru_names[i],
5460 mem_cgroup_nr_lru_pages(memcg, BIT(i)) * PAGE_SIZE);
5461
14067bb3 5462 /* Hierarchical information */
fee7b548
KH
5463 {
5464 unsigned long long limit, memsw_limit;
d79154bb 5465 memcg_get_hierarchical_limit(memcg, &limit, &memsw_limit);
78ccf5b5 5466 seq_printf(m, "hierarchical_memory_limit %llu\n", limit);
fee7b548 5467 if (do_swap_account)
78ccf5b5
JW
5468 seq_printf(m, "hierarchical_memsw_limit %llu\n",
5469 memsw_limit);
fee7b548 5470 }
7f016ee8 5471
af7c4b0e
JW
5472 for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
5473 long long val = 0;
5474
bff6bb83 5475 if (i == MEM_CGROUP_STAT_SWAP && !do_swap_account)
1dd3a273 5476 continue;
af7c4b0e
JW
5477 for_each_mem_cgroup_tree(mi, memcg)
5478 val += mem_cgroup_read_stat(mi, i) * PAGE_SIZE;
5479 seq_printf(m, "total_%s %lld\n", mem_cgroup_stat_names[i], val);
5480 }
5481
5482 for (i = 0; i < MEM_CGROUP_EVENTS_NSTATS; i++) {
5483 unsigned long long val = 0;
5484
5485 for_each_mem_cgroup_tree(mi, memcg)
5486 val += mem_cgroup_read_events(mi, i);
5487 seq_printf(m, "total_%s %llu\n",
5488 mem_cgroup_events_names[i], val);
5489 }
5490
5491 for (i = 0; i < NR_LRU_LISTS; i++) {
5492 unsigned long long val = 0;
5493
5494 for_each_mem_cgroup_tree(mi, memcg)
5495 val += mem_cgroup_nr_lru_pages(mi, BIT(i)) * PAGE_SIZE;
5496 seq_printf(m, "total_%s %llu\n", mem_cgroup_lru_names[i], val);
1dd3a273 5497 }
14067bb3 5498
7f016ee8 5499#ifdef CONFIG_DEBUG_VM
7f016ee8
KM
5500 {
5501 int nid, zid;
5502 struct mem_cgroup_per_zone *mz;
89abfab1 5503 struct zone_reclaim_stat *rstat;
7f016ee8
KM
5504 unsigned long recent_rotated[2] = {0, 0};
5505 unsigned long recent_scanned[2] = {0, 0};
5506
5507 for_each_online_node(nid)
5508 for (zid = 0; zid < MAX_NR_ZONES; zid++) {
d79154bb 5509 mz = mem_cgroup_zoneinfo(memcg, nid, zid);
89abfab1 5510 rstat = &mz->lruvec.reclaim_stat;
7f016ee8 5511
89abfab1
HD
5512 recent_rotated[0] += rstat->recent_rotated[0];
5513 recent_rotated[1] += rstat->recent_rotated[1];
5514 recent_scanned[0] += rstat->recent_scanned[0];
5515 recent_scanned[1] += rstat->recent_scanned[1];
7f016ee8 5516 }
78ccf5b5
JW
5517 seq_printf(m, "recent_rotated_anon %lu\n", recent_rotated[0]);
5518 seq_printf(m, "recent_rotated_file %lu\n", recent_rotated[1]);
5519 seq_printf(m, "recent_scanned_anon %lu\n", recent_scanned[0]);
5520 seq_printf(m, "recent_scanned_file %lu\n", recent_scanned[1]);
7f016ee8
KM
5521 }
5522#endif
5523
d2ceb9b7
KH
5524 return 0;
5525}
5526
182446d0
TH
5527static u64 mem_cgroup_swappiness_read(struct cgroup_subsys_state *css,
5528 struct cftype *cft)
a7885eb8 5529{
182446d0 5530 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
a7885eb8 5531
1f4c025b 5532 return mem_cgroup_swappiness(memcg);
a7885eb8
KM
5533}
5534
182446d0
TH
5535static int mem_cgroup_swappiness_write(struct cgroup_subsys_state *css,
5536 struct cftype *cft, u64 val)
a7885eb8 5537{
182446d0 5538 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
63876986 5539 struct mem_cgroup *parent = mem_cgroup_from_css(css_parent(&memcg->css));
a7885eb8 5540
63876986 5541 if (val > 100 || !parent)
a7885eb8
KM
5542 return -EINVAL;
5543
0999821b 5544 mutex_lock(&memcg_create_mutex);
068b38c1 5545
a7885eb8 5546 /* If under hierarchy, only empty-root can set this value */
b5f99b53 5547 if ((parent->use_hierarchy) || memcg_has_children(memcg)) {
0999821b 5548 mutex_unlock(&memcg_create_mutex);
a7885eb8 5549 return -EINVAL;
068b38c1 5550 }
a7885eb8 5551
a7885eb8 5552 memcg->swappiness = val;
a7885eb8 5553
0999821b 5554 mutex_unlock(&memcg_create_mutex);
068b38c1 5555
a7885eb8
KM
5556 return 0;
5557}
5558
2e72b634
KS
5559static void __mem_cgroup_threshold(struct mem_cgroup *memcg, bool swap)
5560{
5561 struct mem_cgroup_threshold_ary *t;
5562 u64 usage;
5563 int i;
5564
5565 rcu_read_lock();
5566 if (!swap)
2c488db2 5567 t = rcu_dereference(memcg->thresholds.primary);
2e72b634 5568 else
2c488db2 5569 t = rcu_dereference(memcg->memsw_thresholds.primary);
2e72b634
KS
5570
5571 if (!t)
5572 goto unlock;
5573
5574 usage = mem_cgroup_usage(memcg, swap);
5575
5576 /*
748dad36 5577 * current_threshold points to threshold just below or equal to usage.
2e72b634
KS
5578 * If it's not true, a threshold was crossed after last
5579 * call of __mem_cgroup_threshold().
5580 */
5407a562 5581 i = t->current_threshold;
2e72b634
KS
5582
5583 /*
5584 * Iterate backward over array of thresholds starting from
5585 * current_threshold and check if a threshold is crossed.
5586 * If none of thresholds below usage is crossed, we read
5587 * only one element of the array here.
5588 */
5589 for (; i >= 0 && unlikely(t->entries[i].threshold > usage); i--)
5590 eventfd_signal(t->entries[i].eventfd, 1);
5591
5592 /* i = current_threshold + 1 */
5593 i++;
5594
5595 /*
5596 * Iterate forward over array of thresholds starting from
5597 * current_threshold+1 and check if a threshold is crossed.
5598 * If none of thresholds above usage is crossed, we read
5599 * only one element of the array here.
5600 */
5601 for (; i < t->size && unlikely(t->entries[i].threshold <= usage); i++)
5602 eventfd_signal(t->entries[i].eventfd, 1);
5603
5604 /* Update current_threshold */
5407a562 5605 t->current_threshold = i - 1;
2e72b634
KS
5606unlock:
5607 rcu_read_unlock();
5608}
5609
5610static void mem_cgroup_threshold(struct mem_cgroup *memcg)
5611{
ad4ca5f4
KS
5612 while (memcg) {
5613 __mem_cgroup_threshold(memcg, false);
5614 if (do_swap_account)
5615 __mem_cgroup_threshold(memcg, true);
5616
5617 memcg = parent_mem_cgroup(memcg);
5618 }
2e72b634
KS
5619}
5620
5621static int compare_thresholds(const void *a, const void *b)
5622{
5623 const struct mem_cgroup_threshold *_a = a;
5624 const struct mem_cgroup_threshold *_b = b;
5625
2bff24a3
GT
5626 if (_a->threshold > _b->threshold)
5627 return 1;
5628
5629 if (_a->threshold < _b->threshold)
5630 return -1;
5631
5632 return 0;
2e72b634
KS
5633}
5634
c0ff4b85 5635static int mem_cgroup_oom_notify_cb(struct mem_cgroup *memcg)
9490ff27
KH
5636{
5637 struct mem_cgroup_eventfd_list *ev;
5638
c0ff4b85 5639 list_for_each_entry(ev, &memcg->oom_notify, list)
9490ff27
KH
5640 eventfd_signal(ev->eventfd, 1);
5641 return 0;
5642}
5643
c0ff4b85 5644static void mem_cgroup_oom_notify(struct mem_cgroup *memcg)
9490ff27 5645{
7d74b06f
KH
5646 struct mem_cgroup *iter;
5647
c0ff4b85 5648 for_each_mem_cgroup_tree(iter, memcg)
7d74b06f 5649 mem_cgroup_oom_notify_cb(iter);
9490ff27
KH
5650}
5651
81eeaf04 5652static int mem_cgroup_usage_register_event(struct cgroup_subsys_state *css,
9490ff27 5653 struct cftype *cft, struct eventfd_ctx *eventfd, const char *args)
2e72b634 5654{
81eeaf04 5655 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
2c488db2
KS
5656 struct mem_cgroup_thresholds *thresholds;
5657 struct mem_cgroup_threshold_ary *new;
86ae53e1 5658 enum res_type type = MEMFILE_TYPE(cft->private);
2e72b634 5659 u64 threshold, usage;
2c488db2 5660 int i, size, ret;
2e72b634
KS
5661
5662 ret = res_counter_memparse_write_strategy(args, &threshold);
5663 if (ret)
5664 return ret;
5665
5666 mutex_lock(&memcg->thresholds_lock);
2c488db2 5667
2e72b634 5668 if (type == _MEM)
2c488db2 5669 thresholds = &memcg->thresholds;
2e72b634 5670 else if (type == _MEMSWAP)
2c488db2 5671 thresholds = &memcg->memsw_thresholds;
2e72b634
KS
5672 else
5673 BUG();
5674
5675 usage = mem_cgroup_usage(memcg, type == _MEMSWAP);
5676
5677 /* Check if a threshold crossed before adding a new one */
2c488db2 5678 if (thresholds->primary)
2e72b634
KS
5679 __mem_cgroup_threshold(memcg, type == _MEMSWAP);
5680
2c488db2 5681 size = thresholds->primary ? thresholds->primary->size + 1 : 1;
2e72b634
KS
5682
5683 /* Allocate memory for new array of thresholds */
2c488db2 5684 new = kmalloc(sizeof(*new) + size * sizeof(struct mem_cgroup_threshold),
2e72b634 5685 GFP_KERNEL);
2c488db2 5686 if (!new) {
2e72b634
KS
5687 ret = -ENOMEM;
5688 goto unlock;
5689 }
2c488db2 5690 new->size = size;
2e72b634
KS
5691
5692 /* Copy thresholds (if any) to new array */
2c488db2
KS
5693 if (thresholds->primary) {
5694 memcpy(new->entries, thresholds->primary->entries, (size - 1) *
2e72b634 5695 sizeof(struct mem_cgroup_threshold));
2c488db2
KS
5696 }
5697
2e72b634 5698 /* Add new threshold */
2c488db2
KS
5699 new->entries[size - 1].eventfd = eventfd;
5700 new->entries[size - 1].threshold = threshold;
2e72b634
KS
5701
5702 /* Sort thresholds. Registering of new threshold isn't time-critical */
2c488db2 5703 sort(new->entries, size, sizeof(struct mem_cgroup_threshold),
2e72b634
KS
5704 compare_thresholds, NULL);
5705
5706 /* Find current threshold */
2c488db2 5707 new->current_threshold = -1;
2e72b634 5708 for (i = 0; i < size; i++) {
748dad36 5709 if (new->entries[i].threshold <= usage) {
2e72b634 5710 /*
2c488db2
KS
5711 * new->current_threshold will not be used until
5712 * rcu_assign_pointer(), so it's safe to increment
2e72b634
KS
5713 * it here.
5714 */
2c488db2 5715 ++new->current_threshold;
748dad36
SZ
5716 } else
5717 break;
2e72b634
KS
5718 }
5719
2c488db2
KS
5720 /* Free old spare buffer and save old primary buffer as spare */
5721 kfree(thresholds->spare);
5722 thresholds->spare = thresholds->primary;
5723
5724 rcu_assign_pointer(thresholds->primary, new);
2e72b634 5725
907860ed 5726 /* To be sure that nobody uses thresholds */
2e72b634
KS
5727 synchronize_rcu();
5728
2e72b634
KS
5729unlock:
5730 mutex_unlock(&memcg->thresholds_lock);
5731
5732 return ret;
5733}
5734
81eeaf04 5735static void mem_cgroup_usage_unregister_event(struct cgroup_subsys_state *css,
9490ff27 5736 struct cftype *cft, struct eventfd_ctx *eventfd)
2e72b634 5737{
81eeaf04 5738 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
2c488db2
KS
5739 struct mem_cgroup_thresholds *thresholds;
5740 struct mem_cgroup_threshold_ary *new;
86ae53e1 5741 enum res_type type = MEMFILE_TYPE(cft->private);
2e72b634 5742 u64 usage;
2c488db2 5743 int i, j, size;
2e72b634
KS
5744
5745 mutex_lock(&memcg->thresholds_lock);
5746 if (type == _MEM)
2c488db2 5747 thresholds = &memcg->thresholds;
2e72b634 5748 else if (type == _MEMSWAP)
2c488db2 5749 thresholds = &memcg->memsw_thresholds;
2e72b634
KS
5750 else
5751 BUG();
5752
371528ca
AV
5753 if (!thresholds->primary)
5754 goto unlock;
5755
2e72b634
KS
5756 usage = mem_cgroup_usage(memcg, type == _MEMSWAP);
5757
5758 /* Check if a threshold crossed before removing */
5759 __mem_cgroup_threshold(memcg, type == _MEMSWAP);
5760
5761 /* Calculate new number of threshold */
2c488db2
KS
5762 size = 0;
5763 for (i = 0; i < thresholds->primary->size; i++) {
5764 if (thresholds->primary->entries[i].eventfd != eventfd)
2e72b634
KS
5765 size++;
5766 }
5767
2c488db2 5768 new = thresholds->spare;
907860ed 5769
2e72b634
KS
5770 /* Set thresholds array to NULL if we don't have thresholds */
5771 if (!size) {
2c488db2
KS
5772 kfree(new);
5773 new = NULL;
907860ed 5774 goto swap_buffers;
2e72b634
KS
5775 }
5776
2c488db2 5777 new->size = size;
2e72b634
KS
5778
5779 /* Copy thresholds and find current threshold */
2c488db2
KS
5780 new->current_threshold = -1;
5781 for (i = 0, j = 0; i < thresholds->primary->size; i++) {
5782 if (thresholds->primary->entries[i].eventfd == eventfd)
2e72b634
KS
5783 continue;
5784
2c488db2 5785 new->entries[j] = thresholds->primary->entries[i];
748dad36 5786 if (new->entries[j].threshold <= usage) {
2e72b634 5787 /*
2c488db2 5788 * new->current_threshold will not be used
2e72b634
KS
5789 * until rcu_assign_pointer(), so it's safe to increment
5790 * it here.
5791 */
2c488db2 5792 ++new->current_threshold;
2e72b634
KS
5793 }
5794 j++;
5795 }
5796
907860ed 5797swap_buffers:
2c488db2
KS
5798 /* Swap primary and spare array */
5799 thresholds->spare = thresholds->primary;
8c757763
SZ
5800 /* If all events are unregistered, free the spare array */
5801 if (!new) {
5802 kfree(thresholds->spare);
5803 thresholds->spare = NULL;
5804 }
5805
2c488db2 5806 rcu_assign_pointer(thresholds->primary, new);
2e72b634 5807
907860ed 5808 /* To be sure that nobody uses thresholds */
2e72b634 5809 synchronize_rcu();
371528ca 5810unlock:
2e72b634 5811 mutex_unlock(&memcg->thresholds_lock);
2e72b634 5812}
c1e862c1 5813
81eeaf04 5814static int mem_cgroup_oom_register_event(struct cgroup_subsys_state *css,
9490ff27
KH
5815 struct cftype *cft, struct eventfd_ctx *eventfd, const char *args)
5816{
81eeaf04 5817 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
9490ff27 5818 struct mem_cgroup_eventfd_list *event;
86ae53e1 5819 enum res_type type = MEMFILE_TYPE(cft->private);
9490ff27
KH
5820
5821 BUG_ON(type != _OOM_TYPE);
5822 event = kmalloc(sizeof(*event), GFP_KERNEL);
5823 if (!event)
5824 return -ENOMEM;
5825
1af8efe9 5826 spin_lock(&memcg_oom_lock);
9490ff27
KH
5827
5828 event->eventfd = eventfd;
5829 list_add(&event->list, &memcg->oom_notify);
5830
5831 /* already in OOM ? */
79dfdacc 5832 if (atomic_read(&memcg->under_oom))
9490ff27 5833 eventfd_signal(eventfd, 1);
1af8efe9 5834 spin_unlock(&memcg_oom_lock);
9490ff27
KH
5835
5836 return 0;
5837}
5838
81eeaf04 5839static void mem_cgroup_oom_unregister_event(struct cgroup_subsys_state *css,
9490ff27
KH
5840 struct cftype *cft, struct eventfd_ctx *eventfd)
5841{
81eeaf04 5842 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
9490ff27 5843 struct mem_cgroup_eventfd_list *ev, *tmp;
86ae53e1 5844 enum res_type type = MEMFILE_TYPE(cft->private);
9490ff27
KH
5845
5846 BUG_ON(type != _OOM_TYPE);
5847
1af8efe9 5848 spin_lock(&memcg_oom_lock);
9490ff27 5849
c0ff4b85 5850 list_for_each_entry_safe(ev, tmp, &memcg->oom_notify, list) {
9490ff27
KH
5851 if (ev->eventfd == eventfd) {
5852 list_del(&ev->list);
5853 kfree(ev);
5854 }
5855 }
5856
1af8efe9 5857 spin_unlock(&memcg_oom_lock);
9490ff27
KH
5858}
5859
182446d0 5860static int mem_cgroup_oom_control_read(struct cgroup_subsys_state *css,
3c11ecf4
KH
5861 struct cftype *cft, struct cgroup_map_cb *cb)
5862{
182446d0 5863 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
3c11ecf4 5864
c0ff4b85 5865 cb->fill(cb, "oom_kill_disable", memcg->oom_kill_disable);
3c11ecf4 5866
c0ff4b85 5867 if (atomic_read(&memcg->under_oom))
3c11ecf4
KH
5868 cb->fill(cb, "under_oom", 1);
5869 else
5870 cb->fill(cb, "under_oom", 0);
5871 return 0;
5872}
5873
182446d0 5874static int mem_cgroup_oom_control_write(struct cgroup_subsys_state *css,
3c11ecf4
KH
5875 struct cftype *cft, u64 val)
5876{
182446d0 5877 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
63876986 5878 struct mem_cgroup *parent = mem_cgroup_from_css(css_parent(&memcg->css));
3c11ecf4
KH
5879
5880 /* cannot set to root cgroup and only 0 and 1 are allowed */
63876986 5881 if (!parent || !((val == 0) || (val == 1)))
3c11ecf4
KH
5882 return -EINVAL;
5883
0999821b 5884 mutex_lock(&memcg_create_mutex);
3c11ecf4 5885 /* oom-kill-disable is a flag for subhierarchy. */
b5f99b53 5886 if ((parent->use_hierarchy) || memcg_has_children(memcg)) {
0999821b 5887 mutex_unlock(&memcg_create_mutex);
3c11ecf4
KH
5888 return -EINVAL;
5889 }
c0ff4b85 5890 memcg->oom_kill_disable = val;
4d845ebf 5891 if (!val)
c0ff4b85 5892 memcg_oom_recover(memcg);
0999821b 5893 mutex_unlock(&memcg_create_mutex);
3c11ecf4
KH
5894 return 0;
5895}
5896
c255a458 5897#ifdef CONFIG_MEMCG_KMEM
cbe128e3 5898static int memcg_init_kmem(struct mem_cgroup *memcg, struct cgroup_subsys *ss)
e5671dfa 5899{
55007d84
GC
5900 int ret;
5901
2633d7a0 5902 memcg->kmemcg_id = -1;
55007d84
GC
5903 ret = memcg_propagate_kmem(memcg);
5904 if (ret)
5905 return ret;
2633d7a0 5906
1d62e436 5907 return mem_cgroup_sockets_init(memcg, ss);
573b400d 5908}
e5671dfa 5909
10d5ebf4 5910static void memcg_destroy_kmem(struct mem_cgroup *memcg)
d1a4c0b3 5911{
1d62e436 5912 mem_cgroup_sockets_destroy(memcg);
10d5ebf4
LZ
5913}
5914
5915static void kmem_cgroup_css_offline(struct mem_cgroup *memcg)
5916{
5917 if (!memcg_kmem_is_active(memcg))
5918 return;
5919
5920 /*
5921 * kmem charges can outlive the cgroup. In the case of slab
5922 * pages, for instance, a page contain objects from various
5923 * processes. As we prevent from taking a reference for every
5924 * such allocation we have to be careful when doing uncharge
5925 * (see memcg_uncharge_kmem) and here during offlining.
5926 *
5927 * The idea is that that only the _last_ uncharge which sees
5928 * the dead memcg will drop the last reference. An additional
5929 * reference is taken here before the group is marked dead
5930 * which is then paired with css_put during uncharge resp. here.
5931 *
5932 * Although this might sound strange as this path is called from
5933 * css_offline() when the referencemight have dropped down to 0
5934 * and shouldn't be incremented anymore (css_tryget would fail)
5935 * we do not have other options because of the kmem allocations
5936 * lifetime.
5937 */
5938 css_get(&memcg->css);
7de37682
GC
5939
5940 memcg_kmem_mark_dead(memcg);
5941
5942 if (res_counter_read_u64(&memcg->kmem, RES_USAGE) != 0)
5943 return;
5944
7de37682 5945 if (memcg_kmem_test_and_clear_dead(memcg))
10d5ebf4 5946 css_put(&memcg->css);
d1a4c0b3 5947}
e5671dfa 5948#else
cbe128e3 5949static int memcg_init_kmem(struct mem_cgroup *memcg, struct cgroup_subsys *ss)
e5671dfa
GC
5950{
5951 return 0;
5952}
d1a4c0b3 5953
10d5ebf4
LZ
5954static void memcg_destroy_kmem(struct mem_cgroup *memcg)
5955{
5956}
5957
5958static void kmem_cgroup_css_offline(struct mem_cgroup *memcg)
d1a4c0b3
GC
5959{
5960}
e5671dfa
GC
5961#endif
5962
8cdea7c0
BS
5963static struct cftype mem_cgroup_files[] = {
5964 {
0eea1030 5965 .name = "usage_in_bytes",
8c7c6e34 5966 .private = MEMFILE_PRIVATE(_MEM, RES_USAGE),
af36f906 5967 .read = mem_cgroup_read,
9490ff27
KH
5968 .register_event = mem_cgroup_usage_register_event,
5969 .unregister_event = mem_cgroup_usage_unregister_event,
8cdea7c0 5970 },
c84872e1
PE
5971 {
5972 .name = "max_usage_in_bytes",
8c7c6e34 5973 .private = MEMFILE_PRIVATE(_MEM, RES_MAX_USAGE),
29f2a4da 5974 .trigger = mem_cgroup_reset,
af36f906 5975 .read = mem_cgroup_read,
c84872e1 5976 },
8cdea7c0 5977 {
0eea1030 5978 .name = "limit_in_bytes",
8c7c6e34 5979 .private = MEMFILE_PRIVATE(_MEM, RES_LIMIT),
856c13aa 5980 .write_string = mem_cgroup_write,
af36f906 5981 .read = mem_cgroup_read,
8cdea7c0 5982 },
296c81d8
BS
5983 {
5984 .name = "soft_limit_in_bytes",
5985 .private = MEMFILE_PRIVATE(_MEM, RES_SOFT_LIMIT),
5986 .write_string = mem_cgroup_write,
af36f906 5987 .read = mem_cgroup_read,
296c81d8 5988 },
8cdea7c0
BS
5989 {
5990 .name = "failcnt",
8c7c6e34 5991 .private = MEMFILE_PRIVATE(_MEM, RES_FAILCNT),
29f2a4da 5992 .trigger = mem_cgroup_reset,
af36f906 5993 .read = mem_cgroup_read,
8cdea7c0 5994 },
d2ceb9b7
KH
5995 {
5996 .name = "stat",
ab215884 5997 .read_seq_string = memcg_stat_show,
d2ceb9b7 5998 },
c1e862c1
KH
5999 {
6000 .name = "force_empty",
6001 .trigger = mem_cgroup_force_empty_write,
6002 },
18f59ea7
BS
6003 {
6004 .name = "use_hierarchy",
f00baae7 6005 .flags = CFTYPE_INSANE,
18f59ea7
BS
6006 .write_u64 = mem_cgroup_hierarchy_write,
6007 .read_u64 = mem_cgroup_hierarchy_read,
6008 },
a7885eb8
KM
6009 {
6010 .name = "swappiness",
6011 .read_u64 = mem_cgroup_swappiness_read,
6012 .write_u64 = mem_cgroup_swappiness_write,
6013 },
7dc74be0
DN
6014 {
6015 .name = "move_charge_at_immigrate",
6016 .read_u64 = mem_cgroup_move_charge_read,
6017 .write_u64 = mem_cgroup_move_charge_write,
6018 },
9490ff27
KH
6019 {
6020 .name = "oom_control",
3c11ecf4
KH
6021 .read_map = mem_cgroup_oom_control_read,
6022 .write_u64 = mem_cgroup_oom_control_write,
9490ff27
KH
6023 .register_event = mem_cgroup_oom_register_event,
6024 .unregister_event = mem_cgroup_oom_unregister_event,
6025 .private = MEMFILE_PRIVATE(_OOM_TYPE, OOM_CONTROL),
6026 },
70ddf637
AV
6027 {
6028 .name = "pressure_level",
6029 .register_event = vmpressure_register_event,
6030 .unregister_event = vmpressure_unregister_event,
6031 },
406eb0c9
YH
6032#ifdef CONFIG_NUMA
6033 {
6034 .name = "numa_stat",
ab215884 6035 .read_seq_string = memcg_numa_stat_show,
406eb0c9
YH
6036 },
6037#endif
510fc4e1
GC
6038#ifdef CONFIG_MEMCG_KMEM
6039 {
6040 .name = "kmem.limit_in_bytes",
6041 .private = MEMFILE_PRIVATE(_KMEM, RES_LIMIT),
6042 .write_string = mem_cgroup_write,
6043 .read = mem_cgroup_read,
6044 },
6045 {
6046 .name = "kmem.usage_in_bytes",
6047 .private = MEMFILE_PRIVATE(_KMEM, RES_USAGE),
6048 .read = mem_cgroup_read,
6049 },
6050 {
6051 .name = "kmem.failcnt",
6052 .private = MEMFILE_PRIVATE(_KMEM, RES_FAILCNT),
6053 .trigger = mem_cgroup_reset,
6054 .read = mem_cgroup_read,
6055 },
6056 {
6057 .name = "kmem.max_usage_in_bytes",
6058 .private = MEMFILE_PRIVATE(_KMEM, RES_MAX_USAGE),
6059 .trigger = mem_cgroup_reset,
6060 .read = mem_cgroup_read,
6061 },
749c5415
GC
6062#ifdef CONFIG_SLABINFO
6063 {
6064 .name = "kmem.slabinfo",
6065 .read_seq_string = mem_cgroup_slabinfo_read,
6066 },
6067#endif
8c7c6e34 6068#endif
6bc10349 6069 { }, /* terminate */
af36f906 6070};
8c7c6e34 6071
2d11085e
MH
6072#ifdef CONFIG_MEMCG_SWAP
6073static struct cftype memsw_cgroup_files[] = {
6074 {
6075 .name = "memsw.usage_in_bytes",
6076 .private = MEMFILE_PRIVATE(_MEMSWAP, RES_USAGE),
6077 .read = mem_cgroup_read,
6078 .register_event = mem_cgroup_usage_register_event,
6079 .unregister_event = mem_cgroup_usage_unregister_event,
6080 },
6081 {
6082 .name = "memsw.max_usage_in_bytes",
6083 .private = MEMFILE_PRIVATE(_MEMSWAP, RES_MAX_USAGE),
6084 .trigger = mem_cgroup_reset,
6085 .read = mem_cgroup_read,
6086 },
6087 {
6088 .name = "memsw.limit_in_bytes",
6089 .private = MEMFILE_PRIVATE(_MEMSWAP, RES_LIMIT),
6090 .write_string = mem_cgroup_write,
6091 .read = mem_cgroup_read,
6092 },
6093 {
6094 .name = "memsw.failcnt",
6095 .private = MEMFILE_PRIVATE(_MEMSWAP, RES_FAILCNT),
6096 .trigger = mem_cgroup_reset,
6097 .read = mem_cgroup_read,
6098 },
6099 { }, /* terminate */
6100};
6101#endif
c0ff4b85 6102static int alloc_mem_cgroup_per_zone_info(struct mem_cgroup *memcg, int node)
6d12e2d8
KH
6103{
6104 struct mem_cgroup_per_node *pn;
1ecaab2b 6105 struct mem_cgroup_per_zone *mz;
41e3355d 6106 int zone, tmp = node;
1ecaab2b
KH
6107 /*
6108 * This routine is called against possible nodes.
6109 * But it's BUG to call kmalloc() against offline node.
6110 *
6111 * TODO: this routine can waste much memory for nodes which will
6112 * never be onlined. It's better to use memory hotplug callback
6113 * function.
6114 */
41e3355d
KH
6115 if (!node_state(node, N_NORMAL_MEMORY))
6116 tmp = -1;
17295c88 6117 pn = kzalloc_node(sizeof(*pn), GFP_KERNEL, tmp);
6d12e2d8
KH
6118 if (!pn)
6119 return 1;
1ecaab2b 6120
1ecaab2b
KH
6121 for (zone = 0; zone < MAX_NR_ZONES; zone++) {
6122 mz = &pn->zoneinfo[zone];
bea8c150 6123 lruvec_init(&mz->lruvec);
bb4cc1a8
AM
6124 mz->usage_in_excess = 0;
6125 mz->on_tree = false;
d79154bb 6126 mz->memcg = memcg;
1ecaab2b 6127 }
54f72fe0 6128 memcg->nodeinfo[node] = pn;
6d12e2d8
KH
6129 return 0;
6130}
6131
c0ff4b85 6132static void free_mem_cgroup_per_zone_info(struct mem_cgroup *memcg, int node)
1ecaab2b 6133{
54f72fe0 6134 kfree(memcg->nodeinfo[node]);
1ecaab2b
KH
6135}
6136
33327948
KH
6137static struct mem_cgroup *mem_cgroup_alloc(void)
6138{
d79154bb 6139 struct mem_cgroup *memcg;
45cf7ebd 6140 size_t size = memcg_size();
33327948 6141
45cf7ebd 6142 /* Can be very big if nr_node_ids is very big */
c8dad2bb 6143 if (size < PAGE_SIZE)
d79154bb 6144 memcg = kzalloc(size, GFP_KERNEL);
33327948 6145 else
d79154bb 6146 memcg = vzalloc(size);
33327948 6147
d79154bb 6148 if (!memcg)
e7bbcdf3
DC
6149 return NULL;
6150
d79154bb
HD
6151 memcg->stat = alloc_percpu(struct mem_cgroup_stat_cpu);
6152 if (!memcg->stat)
d2e61b8d 6153 goto out_free;
d79154bb
HD
6154 spin_lock_init(&memcg->pcp_counter_lock);
6155 return memcg;
d2e61b8d
DC
6156
6157out_free:
6158 if (size < PAGE_SIZE)
d79154bb 6159 kfree(memcg);
d2e61b8d 6160 else
d79154bb 6161 vfree(memcg);
d2e61b8d 6162 return NULL;
33327948
KH
6163}
6164
59927fb9 6165/*
c8b2a36f
GC
6166 * At destroying mem_cgroup, references from swap_cgroup can remain.
6167 * (scanning all at force_empty is too costly...)
6168 *
6169 * Instead of clearing all references at force_empty, we remember
6170 * the number of reference from swap_cgroup and free mem_cgroup when
6171 * it goes down to 0.
6172 *
6173 * Removal of cgroup itself succeeds regardless of refs from swap.
59927fb9 6174 */
c8b2a36f
GC
6175
6176static void __mem_cgroup_free(struct mem_cgroup *memcg)
59927fb9 6177{
c8b2a36f 6178 int node;
45cf7ebd 6179 size_t size = memcg_size();
59927fb9 6180
bb4cc1a8 6181 mem_cgroup_remove_from_trees(memcg);
c8b2a36f
GC
6182
6183 for_each_node(node)
6184 free_mem_cgroup_per_zone_info(memcg, node);
6185
6186 free_percpu(memcg->stat);
6187
3f134619
GC
6188 /*
6189 * We need to make sure that (at least for now), the jump label
6190 * destruction code runs outside of the cgroup lock. This is because
6191 * get_online_cpus(), which is called from the static_branch update,
6192 * can't be called inside the cgroup_lock. cpusets are the ones
6193 * enforcing this dependency, so if they ever change, we might as well.
6194 *
6195 * schedule_work() will guarantee this happens. Be careful if you need
6196 * to move this code around, and make sure it is outside
6197 * the cgroup_lock.
6198 */
a8964b9b 6199 disarm_static_keys(memcg);
3afe36b1
GC
6200 if (size < PAGE_SIZE)
6201 kfree(memcg);
6202 else
6203 vfree(memcg);
59927fb9 6204}
3afe36b1 6205
7bcc1bb1
DN
6206/*
6207 * Returns the parent mem_cgroup in memcgroup hierarchy with hierarchy enabled.
6208 */
e1aab161 6209struct mem_cgroup *parent_mem_cgroup(struct mem_cgroup *memcg)
7bcc1bb1 6210{
c0ff4b85 6211 if (!memcg->res.parent)
7bcc1bb1 6212 return NULL;
c0ff4b85 6213 return mem_cgroup_from_res_counter(memcg->res.parent, res);
7bcc1bb1 6214}
e1aab161 6215EXPORT_SYMBOL(parent_mem_cgroup);
33327948 6216
bb4cc1a8
AM
6217static void __init mem_cgroup_soft_limit_tree_init(void)
6218{
6219 struct mem_cgroup_tree_per_node *rtpn;
6220 struct mem_cgroup_tree_per_zone *rtpz;
6221 int tmp, node, zone;
6222
6223 for_each_node(node) {
6224 tmp = node;
6225 if (!node_state(node, N_NORMAL_MEMORY))
6226 tmp = -1;
6227 rtpn = kzalloc_node(sizeof(*rtpn), GFP_KERNEL, tmp);
6228 BUG_ON(!rtpn);
6229
6230 soft_limit_tree.rb_tree_per_node[node] = rtpn;
6231
6232 for (zone = 0; zone < MAX_NR_ZONES; zone++) {
6233 rtpz = &rtpn->rb_tree_per_zone[zone];
6234 rtpz->rb_root = RB_ROOT;
6235 spin_lock_init(&rtpz->lock);
6236 }
6237 }
6238}
6239
0eb253e2 6240static struct cgroup_subsys_state * __ref
eb95419b 6241mem_cgroup_css_alloc(struct cgroup_subsys_state *parent_css)
8cdea7c0 6242{
d142e3e6 6243 struct mem_cgroup *memcg;
04046e1a 6244 long error = -ENOMEM;
6d12e2d8 6245 int node;
8cdea7c0 6246
c0ff4b85
R
6247 memcg = mem_cgroup_alloc();
6248 if (!memcg)
04046e1a 6249 return ERR_PTR(error);
78fb7466 6250
3ed28fa1 6251 for_each_node(node)
c0ff4b85 6252 if (alloc_mem_cgroup_per_zone_info(memcg, node))
6d12e2d8 6253 goto free_out;
f64c3f54 6254
c077719b 6255 /* root ? */
eb95419b 6256 if (parent_css == NULL) {
a41c58a6 6257 root_mem_cgroup = memcg;
d142e3e6
GC
6258 res_counter_init(&memcg->res, NULL);
6259 res_counter_init(&memcg->memsw, NULL);
6260 res_counter_init(&memcg->kmem, NULL);
18f59ea7 6261 }
28dbc4b6 6262
d142e3e6
GC
6263 memcg->last_scanned_node = MAX_NUMNODES;
6264 INIT_LIST_HEAD(&memcg->oom_notify);
d142e3e6
GC
6265 memcg->move_charge_at_immigrate = 0;
6266 mutex_init(&memcg->thresholds_lock);
6267 spin_lock_init(&memcg->move_lock);
70ddf637 6268 vmpressure_init(&memcg->vmpressure);
d142e3e6
GC
6269
6270 return &memcg->css;
6271
6272free_out:
6273 __mem_cgroup_free(memcg);
6274 return ERR_PTR(error);
6275}
6276
6277static int
eb95419b 6278mem_cgroup_css_online(struct cgroup_subsys_state *css)
d142e3e6 6279{
eb95419b
TH
6280 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
6281 struct mem_cgroup *parent = mem_cgroup_from_css(css_parent(css));
d142e3e6
GC
6282 int error = 0;
6283
4219b2da
LZ
6284 if (css->cgroup->id > MEM_CGROUP_ID_MAX)
6285 return -ENOSPC;
6286
63876986 6287 if (!parent)
d142e3e6
GC
6288 return 0;
6289
0999821b 6290 mutex_lock(&memcg_create_mutex);
d142e3e6
GC
6291
6292 memcg->use_hierarchy = parent->use_hierarchy;
6293 memcg->oom_kill_disable = parent->oom_kill_disable;
6294 memcg->swappiness = mem_cgroup_swappiness(parent);
6295
6296 if (parent->use_hierarchy) {
c0ff4b85
R
6297 res_counter_init(&memcg->res, &parent->res);
6298 res_counter_init(&memcg->memsw, &parent->memsw);
510fc4e1 6299 res_counter_init(&memcg->kmem, &parent->kmem);
55007d84 6300
7bcc1bb1 6301 /*
8d76a979
LZ
6302 * No need to take a reference to the parent because cgroup
6303 * core guarantees its existence.
7bcc1bb1 6304 */
18f59ea7 6305 } else {
c0ff4b85
R
6306 res_counter_init(&memcg->res, NULL);
6307 res_counter_init(&memcg->memsw, NULL);
510fc4e1 6308 res_counter_init(&memcg->kmem, NULL);
8c7f6edb
TH
6309 /*
6310 * Deeper hierachy with use_hierarchy == false doesn't make
6311 * much sense so let cgroup subsystem know about this
6312 * unfortunate state in our controller.
6313 */
d142e3e6 6314 if (parent != root_mem_cgroup)
8c7f6edb 6315 mem_cgroup_subsys.broken_hierarchy = true;
18f59ea7 6316 }
cbe128e3
GC
6317
6318 error = memcg_init_kmem(memcg, &mem_cgroup_subsys);
0999821b 6319 mutex_unlock(&memcg_create_mutex);
d142e3e6 6320 return error;
8cdea7c0
BS
6321}
6322
5f578161
MH
6323/*
6324 * Announce all parents that a group from their hierarchy is gone.
6325 */
6326static void mem_cgroup_invalidate_reclaim_iterators(struct mem_cgroup *memcg)
6327{
6328 struct mem_cgroup *parent = memcg;
6329
6330 while ((parent = parent_mem_cgroup(parent)))
519ebea3 6331 mem_cgroup_iter_invalidate(parent);
5f578161
MH
6332
6333 /*
6334 * if the root memcg is not hierarchical we have to check it
6335 * explicitely.
6336 */
6337 if (!root_mem_cgroup->use_hierarchy)
519ebea3 6338 mem_cgroup_iter_invalidate(root_mem_cgroup);
5f578161
MH
6339}
6340
eb95419b 6341static void mem_cgroup_css_offline(struct cgroup_subsys_state *css)
df878fb0 6342{
eb95419b 6343 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
ec64f515 6344
10d5ebf4
LZ
6345 kmem_cgroup_css_offline(memcg);
6346
5f578161 6347 mem_cgroup_invalidate_reclaim_iterators(memcg);
ab5196c2 6348 mem_cgroup_reparent_charges(memcg);
1f458cbf 6349 mem_cgroup_destroy_all_caches(memcg);
33cb876e 6350 vmpressure_cleanup(&memcg->vmpressure);
df878fb0
KH
6351}
6352
eb95419b 6353static void mem_cgroup_css_free(struct cgroup_subsys_state *css)
8cdea7c0 6354{
eb95419b 6355 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
c268e994 6356
10d5ebf4 6357 memcg_destroy_kmem(memcg);
465939a1 6358 __mem_cgroup_free(memcg);
8cdea7c0
BS
6359}
6360
02491447 6361#ifdef CONFIG_MMU
7dc74be0 6362/* Handlers for move charge at task migration. */
854ffa8d
DN
6363#define PRECHARGE_COUNT_AT_ONCE 256
6364static int mem_cgroup_do_precharge(unsigned long count)
7dc74be0 6365{
854ffa8d
DN
6366 int ret = 0;
6367 int batch_count = PRECHARGE_COUNT_AT_ONCE;
c0ff4b85 6368 struct mem_cgroup *memcg = mc.to;
4ffef5fe 6369
c0ff4b85 6370 if (mem_cgroup_is_root(memcg)) {
854ffa8d
DN
6371 mc.precharge += count;
6372 /* we don't need css_get for root */
6373 return ret;
6374 }
6375 /* try to charge at once */
6376 if (count > 1) {
6377 struct res_counter *dummy;
6378 /*
c0ff4b85 6379 * "memcg" cannot be under rmdir() because we've already checked
854ffa8d
DN
6380 * by cgroup_lock_live_cgroup() that it is not removed and we
6381 * are still under the same cgroup_mutex. So we can postpone
6382 * css_get().
6383 */
c0ff4b85 6384 if (res_counter_charge(&memcg->res, PAGE_SIZE * count, &dummy))
854ffa8d 6385 goto one_by_one;
c0ff4b85 6386 if (do_swap_account && res_counter_charge(&memcg->memsw,
854ffa8d 6387 PAGE_SIZE * count, &dummy)) {
c0ff4b85 6388 res_counter_uncharge(&memcg->res, PAGE_SIZE * count);
854ffa8d
DN
6389 goto one_by_one;
6390 }
6391 mc.precharge += count;
854ffa8d
DN
6392 return ret;
6393 }
6394one_by_one:
6395 /* fall back to one by one charge */
6396 while (count--) {
6397 if (signal_pending(current)) {
6398 ret = -EINTR;
6399 break;
6400 }
6401 if (!batch_count--) {
6402 batch_count = PRECHARGE_COUNT_AT_ONCE;
6403 cond_resched();
6404 }
c0ff4b85
R
6405 ret = __mem_cgroup_try_charge(NULL,
6406 GFP_KERNEL, 1, &memcg, false);
38c5d72f 6407 if (ret)
854ffa8d 6408 /* mem_cgroup_clear_mc() will do uncharge later */
38c5d72f 6409 return ret;
854ffa8d
DN
6410 mc.precharge++;
6411 }
4ffef5fe
DN
6412 return ret;
6413}
6414
6415/**
8d32ff84 6416 * get_mctgt_type - get target type of moving charge
4ffef5fe
DN
6417 * @vma: the vma the pte to be checked belongs
6418 * @addr: the address corresponding to the pte to be checked
6419 * @ptent: the pte to be checked
02491447 6420 * @target: the pointer the target page or swap ent will be stored(can be NULL)
4ffef5fe
DN
6421 *
6422 * Returns
6423 * 0(MC_TARGET_NONE): if the pte is not a target for move charge.
6424 * 1(MC_TARGET_PAGE): if the page corresponding to this pte is a target for
6425 * move charge. if @target is not NULL, the page is stored in target->page
6426 * with extra refcnt got(Callers should handle it).
02491447
DN
6427 * 2(MC_TARGET_SWAP): if the swap entry corresponding to this pte is a
6428 * target for charge migration. if @target is not NULL, the entry is stored
6429 * in target->ent.
4ffef5fe
DN
6430 *
6431 * Called with pte lock held.
6432 */
4ffef5fe
DN
6433union mc_target {
6434 struct page *page;
02491447 6435 swp_entry_t ent;
4ffef5fe
DN
6436};
6437
4ffef5fe 6438enum mc_target_type {
8d32ff84 6439 MC_TARGET_NONE = 0,
4ffef5fe 6440 MC_TARGET_PAGE,
02491447 6441 MC_TARGET_SWAP,
4ffef5fe
DN
6442};
6443
90254a65
DN
6444static struct page *mc_handle_present_pte(struct vm_area_struct *vma,
6445 unsigned long addr, pte_t ptent)
4ffef5fe 6446{
90254a65 6447 struct page *page = vm_normal_page(vma, addr, ptent);
4ffef5fe 6448
90254a65
DN
6449 if (!page || !page_mapped(page))
6450 return NULL;
6451 if (PageAnon(page)) {
6452 /* we don't move shared anon */
4b91355e 6453 if (!move_anon())
90254a65 6454 return NULL;
87946a72
DN
6455 } else if (!move_file())
6456 /* we ignore mapcount for file pages */
90254a65
DN
6457 return NULL;
6458 if (!get_page_unless_zero(page))
6459 return NULL;
6460
6461 return page;
6462}
6463
4b91355e 6464#ifdef CONFIG_SWAP
90254a65
DN
6465static struct page *mc_handle_swap_pte(struct vm_area_struct *vma,
6466 unsigned long addr, pte_t ptent, swp_entry_t *entry)
6467{
90254a65
DN
6468 struct page *page = NULL;
6469 swp_entry_t ent = pte_to_swp_entry(ptent);
6470
6471 if (!move_anon() || non_swap_entry(ent))
6472 return NULL;
4b91355e
KH
6473 /*
6474 * Because lookup_swap_cache() updates some statistics counter,
6475 * we call find_get_page() with swapper_space directly.
6476 */
33806f06 6477 page = find_get_page(swap_address_space(ent), ent.val);
90254a65
DN
6478 if (do_swap_account)
6479 entry->val = ent.val;
6480
6481 return page;
6482}
4b91355e
KH
6483#else
6484static struct page *mc_handle_swap_pte(struct vm_area_struct *vma,
6485 unsigned long addr, pte_t ptent, swp_entry_t *entry)
6486{
6487 return NULL;
6488}
6489#endif
90254a65 6490
87946a72
DN
6491static struct page *mc_handle_file_pte(struct vm_area_struct *vma,
6492 unsigned long addr, pte_t ptent, swp_entry_t *entry)
6493{
6494 struct page *page = NULL;
87946a72
DN
6495 struct address_space *mapping;
6496 pgoff_t pgoff;
6497
6498 if (!vma->vm_file) /* anonymous vma */
6499 return NULL;
6500 if (!move_file())
6501 return NULL;
6502
87946a72
DN
6503 mapping = vma->vm_file->f_mapping;
6504 if (pte_none(ptent))
6505 pgoff = linear_page_index(vma, addr);
6506 else /* pte_file(ptent) is true */
6507 pgoff = pte_to_pgoff(ptent);
6508
6509 /* page is moved even if it's not RSS of this task(page-faulted). */
aa3b1895
HD
6510 page = find_get_page(mapping, pgoff);
6511
6512#ifdef CONFIG_SWAP
6513 /* shmem/tmpfs may report page out on swap: account for that too. */
6514 if (radix_tree_exceptional_entry(page)) {
6515 swp_entry_t swap = radix_to_swp_entry(page);
87946a72 6516 if (do_swap_account)
aa3b1895 6517 *entry = swap;
33806f06 6518 page = find_get_page(swap_address_space(swap), swap.val);
87946a72 6519 }
aa3b1895 6520#endif
87946a72
DN
6521 return page;
6522}
6523
8d32ff84 6524static enum mc_target_type get_mctgt_type(struct vm_area_struct *vma,
90254a65
DN
6525 unsigned long addr, pte_t ptent, union mc_target *target)
6526{
6527 struct page *page = NULL;
6528 struct page_cgroup *pc;
8d32ff84 6529 enum mc_target_type ret = MC_TARGET_NONE;
90254a65
DN
6530 swp_entry_t ent = { .val = 0 };
6531
6532 if (pte_present(ptent))
6533 page = mc_handle_present_pte(vma, addr, ptent);
6534 else if (is_swap_pte(ptent))
6535 page = mc_handle_swap_pte(vma, addr, ptent, &ent);
87946a72
DN
6536 else if (pte_none(ptent) || pte_file(ptent))
6537 page = mc_handle_file_pte(vma, addr, ptent, &ent);
90254a65
DN
6538
6539 if (!page && !ent.val)
8d32ff84 6540 return ret;
02491447
DN
6541 if (page) {
6542 pc = lookup_page_cgroup(page);
6543 /*
6544 * Do only loose check w/o page_cgroup lock.
6545 * mem_cgroup_move_account() checks the pc is valid or not under
6546 * the lock.
6547 */
6548 if (PageCgroupUsed(pc) && pc->mem_cgroup == mc.from) {
6549 ret = MC_TARGET_PAGE;
6550 if (target)
6551 target->page = page;
6552 }
6553 if (!ret || !target)
6554 put_page(page);
6555 }
90254a65
DN
6556 /* There is a swap entry and a page doesn't exist or isn't charged */
6557 if (ent.val && !ret &&
34c00c31 6558 mem_cgroup_id(mc.from) == lookup_swap_cgroup_id(ent)) {
7f0f1546
KH
6559 ret = MC_TARGET_SWAP;
6560 if (target)
6561 target->ent = ent;
4ffef5fe 6562 }
4ffef5fe
DN
6563 return ret;
6564}
6565
12724850
NH
6566#ifdef CONFIG_TRANSPARENT_HUGEPAGE
6567/*
6568 * We don't consider swapping or file mapped pages because THP does not
6569 * support them for now.
6570 * Caller should make sure that pmd_trans_huge(pmd) is true.
6571 */
6572static enum mc_target_type get_mctgt_type_thp(struct vm_area_struct *vma,
6573 unsigned long addr, pmd_t pmd, union mc_target *target)
6574{
6575 struct page *page = NULL;
6576 struct page_cgroup *pc;
6577 enum mc_target_type ret = MC_TARGET_NONE;
6578
6579 page = pmd_page(pmd);
6580 VM_BUG_ON(!page || !PageHead(page));
6581 if (!move_anon())
6582 return ret;
6583 pc = lookup_page_cgroup(page);
6584 if (PageCgroupUsed(pc) && pc->mem_cgroup == mc.from) {
6585 ret = MC_TARGET_PAGE;
6586 if (target) {
6587 get_page(page);
6588 target->page = page;
6589 }
6590 }
6591 return ret;
6592}
6593#else
6594static inline enum mc_target_type get_mctgt_type_thp(struct vm_area_struct *vma,
6595 unsigned long addr, pmd_t pmd, union mc_target *target)
6596{
6597 return MC_TARGET_NONE;
6598}
6599#endif
6600
4ffef5fe
DN
6601static int mem_cgroup_count_precharge_pte_range(pmd_t *pmd,
6602 unsigned long addr, unsigned long end,
6603 struct mm_walk *walk)
6604{
6605 struct vm_area_struct *vma = walk->private;
6606 pte_t *pte;
6607 spinlock_t *ptl;
6608
12724850
NH
6609 if (pmd_trans_huge_lock(pmd, vma) == 1) {
6610 if (get_mctgt_type_thp(vma, addr, *pmd, NULL) == MC_TARGET_PAGE)
6611 mc.precharge += HPAGE_PMD_NR;
6612 spin_unlock(&vma->vm_mm->page_table_lock);
1a5a9906 6613 return 0;
12724850 6614 }
03319327 6615
45f83cef
AA
6616 if (pmd_trans_unstable(pmd))
6617 return 0;
4ffef5fe
DN
6618 pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
6619 for (; addr != end; pte++, addr += PAGE_SIZE)
8d32ff84 6620 if (get_mctgt_type(vma, addr, *pte, NULL))
4ffef5fe
DN
6621 mc.precharge++; /* increment precharge temporarily */
6622 pte_unmap_unlock(pte - 1, ptl);
6623 cond_resched();
6624
7dc74be0
DN
6625 return 0;
6626}
6627
4ffef5fe
DN
6628static unsigned long mem_cgroup_count_precharge(struct mm_struct *mm)
6629{
6630 unsigned long precharge;
6631 struct vm_area_struct *vma;
6632
dfe076b0 6633 down_read(&mm->mmap_sem);
4ffef5fe
DN
6634 for (vma = mm->mmap; vma; vma = vma->vm_next) {
6635 struct mm_walk mem_cgroup_count_precharge_walk = {
6636 .pmd_entry = mem_cgroup_count_precharge_pte_range,
6637 .mm = mm,
6638 .private = vma,
6639 };
6640 if (is_vm_hugetlb_page(vma))
6641 continue;
4ffef5fe
DN
6642 walk_page_range(vma->vm_start, vma->vm_end,
6643 &mem_cgroup_count_precharge_walk);
6644 }
dfe076b0 6645 up_read(&mm->mmap_sem);
4ffef5fe
DN
6646
6647 precharge = mc.precharge;
6648 mc.precharge = 0;
6649
6650 return precharge;
6651}
6652
4ffef5fe
DN
6653static int mem_cgroup_precharge_mc(struct mm_struct *mm)
6654{
dfe076b0
DN
6655 unsigned long precharge = mem_cgroup_count_precharge(mm);
6656
6657 VM_BUG_ON(mc.moving_task);
6658 mc.moving_task = current;
6659 return mem_cgroup_do_precharge(precharge);
4ffef5fe
DN
6660}
6661
dfe076b0
DN
6662/* cancels all extra charges on mc.from and mc.to, and wakes up all waiters. */
6663static void __mem_cgroup_clear_mc(void)
4ffef5fe 6664{
2bd9bb20
KH
6665 struct mem_cgroup *from = mc.from;
6666 struct mem_cgroup *to = mc.to;
4050377b 6667 int i;
2bd9bb20 6668
4ffef5fe 6669 /* we must uncharge all the leftover precharges from mc.to */
854ffa8d
DN
6670 if (mc.precharge) {
6671 __mem_cgroup_cancel_charge(mc.to, mc.precharge);
6672 mc.precharge = 0;
6673 }
6674 /*
6675 * we didn't uncharge from mc.from at mem_cgroup_move_account(), so
6676 * we must uncharge here.
6677 */
6678 if (mc.moved_charge) {
6679 __mem_cgroup_cancel_charge(mc.from, mc.moved_charge);
6680 mc.moved_charge = 0;
4ffef5fe 6681 }
483c30b5
DN
6682 /* we must fixup refcnts and charges */
6683 if (mc.moved_swap) {
483c30b5
DN
6684 /* uncharge swap account from the old cgroup */
6685 if (!mem_cgroup_is_root(mc.from))
6686 res_counter_uncharge(&mc.from->memsw,
6687 PAGE_SIZE * mc.moved_swap);
4050377b
LZ
6688
6689 for (i = 0; i < mc.moved_swap; i++)
6690 css_put(&mc.from->css);
483c30b5
DN
6691
6692 if (!mem_cgroup_is_root(mc.to)) {
6693 /*
6694 * we charged both to->res and to->memsw, so we should
6695 * uncharge to->res.
6696 */
6697 res_counter_uncharge(&mc.to->res,
6698 PAGE_SIZE * mc.moved_swap);
483c30b5 6699 }
4050377b 6700 /* we've already done css_get(mc.to) */
483c30b5
DN
6701 mc.moved_swap = 0;
6702 }
dfe076b0
DN
6703 memcg_oom_recover(from);
6704 memcg_oom_recover(to);
6705 wake_up_all(&mc.waitq);
6706}
6707
6708static void mem_cgroup_clear_mc(void)
6709{
6710 struct mem_cgroup *from = mc.from;
6711
6712 /*
6713 * we must clear moving_task before waking up waiters at the end of
6714 * task migration.
6715 */
6716 mc.moving_task = NULL;
6717 __mem_cgroup_clear_mc();
2bd9bb20 6718 spin_lock(&mc.lock);
4ffef5fe
DN
6719 mc.from = NULL;
6720 mc.to = NULL;
2bd9bb20 6721 spin_unlock(&mc.lock);
32047e2a 6722 mem_cgroup_end_move(from);
4ffef5fe
DN
6723}
6724
eb95419b 6725static int mem_cgroup_can_attach(struct cgroup_subsys_state *css,
761b3ef5 6726 struct cgroup_taskset *tset)
7dc74be0 6727{
2f7ee569 6728 struct task_struct *p = cgroup_taskset_first(tset);
7dc74be0 6729 int ret = 0;
eb95419b 6730 struct mem_cgroup *memcg = mem_cgroup_from_css(css);
ee5e8472 6731 unsigned long move_charge_at_immigrate;
7dc74be0 6732
ee5e8472
GC
6733 /*
6734 * We are now commited to this value whatever it is. Changes in this
6735 * tunable will only affect upcoming migrations, not the current one.
6736 * So we need to save it, and keep it going.
6737 */
6738 move_charge_at_immigrate = memcg->move_charge_at_immigrate;
6739 if (move_charge_at_immigrate) {
7dc74be0
DN
6740 struct mm_struct *mm;
6741 struct mem_cgroup *from = mem_cgroup_from_task(p);
6742
c0ff4b85 6743 VM_BUG_ON(from == memcg);
7dc74be0
DN
6744
6745 mm = get_task_mm(p);
6746 if (!mm)
6747 return 0;
7dc74be0 6748 /* We move charges only when we move a owner of the mm */
4ffef5fe
DN
6749 if (mm->owner == p) {
6750 VM_BUG_ON(mc.from);
6751 VM_BUG_ON(mc.to);
6752 VM_BUG_ON(mc.precharge);
854ffa8d 6753 VM_BUG_ON(mc.moved_charge);
483c30b5 6754 VM_BUG_ON(mc.moved_swap);
32047e2a 6755 mem_cgroup_start_move(from);
2bd9bb20 6756 spin_lock(&mc.lock);
4ffef5fe 6757 mc.from = from;
c0ff4b85 6758 mc.to = memcg;
ee5e8472 6759 mc.immigrate_flags = move_charge_at_immigrate;
2bd9bb20 6760 spin_unlock(&mc.lock);
dfe076b0 6761 /* We set mc.moving_task later */
4ffef5fe
DN
6762
6763 ret = mem_cgroup_precharge_mc(mm);
6764 if (ret)
6765 mem_cgroup_clear_mc();
dfe076b0
DN
6766 }
6767 mmput(mm);
7dc74be0
DN
6768 }
6769 return ret;
6770}
6771
eb95419b 6772static void mem_cgroup_cancel_attach(struct cgroup_subsys_state *css,
761b3ef5 6773 struct cgroup_taskset *tset)
7dc74be0 6774{
4ffef5fe 6775 mem_cgroup_clear_mc();
7dc74be0
DN
6776}
6777
4ffef5fe
DN
6778static int mem_cgroup_move_charge_pte_range(pmd_t *pmd,
6779 unsigned long addr, unsigned long end,
6780 struct mm_walk *walk)
7dc74be0 6781{
4ffef5fe
DN
6782 int ret = 0;
6783 struct vm_area_struct *vma = walk->private;
6784 pte_t *pte;
6785 spinlock_t *ptl;
12724850
NH
6786 enum mc_target_type target_type;
6787 union mc_target target;
6788 struct page *page;
6789 struct page_cgroup *pc;
4ffef5fe 6790
12724850
NH
6791 /*
6792 * We don't take compound_lock() here but no race with splitting thp
6793 * happens because:
6794 * - if pmd_trans_huge_lock() returns 1, the relevant thp is not
6795 * under splitting, which means there's no concurrent thp split,
6796 * - if another thread runs into split_huge_page() just after we
6797 * entered this if-block, the thread must wait for page table lock
6798 * to be unlocked in __split_huge_page_splitting(), where the main
6799 * part of thp split is not executed yet.
6800 */
6801 if (pmd_trans_huge_lock(pmd, vma) == 1) {
62ade86a 6802 if (mc.precharge < HPAGE_PMD_NR) {
12724850
NH
6803 spin_unlock(&vma->vm_mm->page_table_lock);
6804 return 0;
6805 }
6806 target_type = get_mctgt_type_thp(vma, addr, *pmd, &target);
6807 if (target_type == MC_TARGET_PAGE) {
6808 page = target.page;
6809 if (!isolate_lru_page(page)) {
6810 pc = lookup_page_cgroup(page);
6811 if (!mem_cgroup_move_account(page, HPAGE_PMD_NR,
2f3479b1 6812 pc, mc.from, mc.to)) {
12724850
NH
6813 mc.precharge -= HPAGE_PMD_NR;
6814 mc.moved_charge += HPAGE_PMD_NR;
6815 }
6816 putback_lru_page(page);
6817 }
6818 put_page(page);
6819 }
6820 spin_unlock(&vma->vm_mm->page_table_lock);
1a5a9906 6821 return 0;
12724850
NH
6822 }
6823
45f83cef
AA
6824 if (pmd_trans_unstable(pmd))
6825 return 0;
4ffef5fe
DN
6826retry:
6827 pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
6828 for (; addr != end; addr += PAGE_SIZE) {
6829 pte_t ptent = *(pte++);
02491447 6830 swp_entry_t ent;
4ffef5fe
DN
6831
6832 if (!mc.precharge)
6833 break;
6834
8d32ff84 6835 switch (get_mctgt_type(vma, addr, ptent, &target)) {
4ffef5fe
DN
6836 case MC_TARGET_PAGE:
6837 page = target.page;
6838 if (isolate_lru_page(page))
6839 goto put;
6840 pc = lookup_page_cgroup(page);
7ec99d62 6841 if (!mem_cgroup_move_account(page, 1, pc,
2f3479b1 6842 mc.from, mc.to)) {
4ffef5fe 6843 mc.precharge--;
854ffa8d
DN
6844 /* we uncharge from mc.from later. */
6845 mc.moved_charge++;
4ffef5fe
DN
6846 }
6847 putback_lru_page(page);
8d32ff84 6848put: /* get_mctgt_type() gets the page */
4ffef5fe
DN
6849 put_page(page);
6850 break;
02491447
DN
6851 case MC_TARGET_SWAP:
6852 ent = target.ent;
e91cbb42 6853 if (!mem_cgroup_move_swap_account(ent, mc.from, mc.to)) {
02491447 6854 mc.precharge--;
483c30b5
DN
6855 /* we fixup refcnts and charges later. */
6856 mc.moved_swap++;
6857 }
02491447 6858 break;
4ffef5fe
DN
6859 default:
6860 break;
6861 }
6862 }
6863 pte_unmap_unlock(pte - 1, ptl);
6864 cond_resched();
6865
6866 if (addr != end) {
6867 /*
6868 * We have consumed all precharges we got in can_attach().
6869 * We try charge one by one, but don't do any additional
6870 * charges to mc.to if we have failed in charge once in attach()
6871 * phase.
6872 */
854ffa8d 6873 ret = mem_cgroup_do_precharge(1);
4ffef5fe
DN
6874 if (!ret)
6875 goto retry;
6876 }
6877
6878 return ret;
6879}
6880
6881static void mem_cgroup_move_charge(struct mm_struct *mm)
6882{
6883 struct vm_area_struct *vma;
6884
6885 lru_add_drain_all();
dfe076b0
DN
6886retry:
6887 if (unlikely(!down_read_trylock(&mm->mmap_sem))) {
6888 /*
6889 * Someone who are holding the mmap_sem might be waiting in
6890 * waitq. So we cancel all extra charges, wake up all waiters,
6891 * and retry. Because we cancel precharges, we might not be able
6892 * to move enough charges, but moving charge is a best-effort
6893 * feature anyway, so it wouldn't be a big problem.
6894 */
6895 __mem_cgroup_clear_mc();
6896 cond_resched();
6897 goto retry;
6898 }
4ffef5fe
DN
6899 for (vma = mm->mmap; vma; vma = vma->vm_next) {
6900 int ret;
6901 struct mm_walk mem_cgroup_move_charge_walk = {
6902 .pmd_entry = mem_cgroup_move_charge_pte_range,
6903 .mm = mm,
6904 .private = vma,
6905 };
6906 if (is_vm_hugetlb_page(vma))
6907 continue;
4ffef5fe
DN
6908 ret = walk_page_range(vma->vm_start, vma->vm_end,
6909 &mem_cgroup_move_charge_walk);
6910 if (ret)
6911 /*
6912 * means we have consumed all precharges and failed in
6913 * doing additional charge. Just abandon here.
6914 */
6915 break;
6916 }
dfe076b0 6917 up_read(&mm->mmap_sem);
7dc74be0
DN
6918}
6919
eb95419b 6920static void mem_cgroup_move_task(struct cgroup_subsys_state *css,
761b3ef5 6921 struct cgroup_taskset *tset)
67e465a7 6922{
2f7ee569 6923 struct task_struct *p = cgroup_taskset_first(tset);
a433658c 6924 struct mm_struct *mm = get_task_mm(p);
dfe076b0 6925
dfe076b0 6926 if (mm) {
a433658c
KM
6927 if (mc.to)
6928 mem_cgroup_move_charge(mm);
dfe076b0
DN
6929 mmput(mm);
6930 }
a433658c
KM
6931 if (mc.to)
6932 mem_cgroup_clear_mc();
67e465a7 6933}
5cfb80a7 6934#else /* !CONFIG_MMU */
eb95419b 6935static int mem_cgroup_can_attach(struct cgroup_subsys_state *css,
761b3ef5 6936 struct cgroup_taskset *tset)
5cfb80a7
DN
6937{
6938 return 0;
6939}
eb95419b 6940static void mem_cgroup_cancel_attach(struct cgroup_subsys_state *css,
761b3ef5 6941 struct cgroup_taskset *tset)
5cfb80a7
DN
6942{
6943}
eb95419b 6944static void mem_cgroup_move_task(struct cgroup_subsys_state *css,
761b3ef5 6945 struct cgroup_taskset *tset)
5cfb80a7
DN
6946{
6947}
6948#endif
67e465a7 6949
f00baae7
TH
6950/*
6951 * Cgroup retains root cgroups across [un]mount cycles making it necessary
6952 * to verify sane_behavior flag on each mount attempt.
6953 */
eb95419b 6954static void mem_cgroup_bind(struct cgroup_subsys_state *root_css)
f00baae7
TH
6955{
6956 /*
6957 * use_hierarchy is forced with sane_behavior. cgroup core
6958 * guarantees that @root doesn't have any children, so turning it
6959 * on for the root memcg is enough.
6960 */
eb95419b
TH
6961 if (cgroup_sane_behavior(root_css->cgroup))
6962 mem_cgroup_from_css(root_css)->use_hierarchy = true;
f00baae7
TH
6963}
6964
8cdea7c0
BS
6965struct cgroup_subsys mem_cgroup_subsys = {
6966 .name = "memory",
6967 .subsys_id = mem_cgroup_subsys_id,
92fb9748 6968 .css_alloc = mem_cgroup_css_alloc,
d142e3e6 6969 .css_online = mem_cgroup_css_online,
92fb9748
TH
6970 .css_offline = mem_cgroup_css_offline,
6971 .css_free = mem_cgroup_css_free,
7dc74be0
DN
6972 .can_attach = mem_cgroup_can_attach,
6973 .cancel_attach = mem_cgroup_cancel_attach,
67e465a7 6974 .attach = mem_cgroup_move_task,
f00baae7 6975 .bind = mem_cgroup_bind,
6bc10349 6976 .base_cftypes = mem_cgroup_files,
6d12e2d8 6977 .early_init = 0,
8cdea7c0 6978};
c077719b 6979
c255a458 6980#ifdef CONFIG_MEMCG_SWAP
a42c390c
MH
6981static int __init enable_swap_account(char *s)
6982{
a2c8990a 6983 if (!strcmp(s, "1"))
a42c390c 6984 really_do_swap_account = 1;
a2c8990a 6985 else if (!strcmp(s, "0"))
a42c390c
MH
6986 really_do_swap_account = 0;
6987 return 1;
6988}
a2c8990a 6989__setup("swapaccount=", enable_swap_account);
c077719b 6990
2d11085e
MH
6991static void __init memsw_file_init(void)
6992{
6acc8b02
MH
6993 WARN_ON(cgroup_add_cftypes(&mem_cgroup_subsys, memsw_cgroup_files));
6994}
6995
6996static void __init enable_swap_cgroup(void)
6997{
6998 if (!mem_cgroup_disabled() && really_do_swap_account) {
6999 do_swap_account = 1;
7000 memsw_file_init();
7001 }
2d11085e 7002}
6acc8b02 7003
2d11085e 7004#else
6acc8b02 7005static void __init enable_swap_cgroup(void)
2d11085e
MH
7006{
7007}
c077719b 7008#endif
2d11085e
MH
7009
7010/*
1081312f
MH
7011 * subsys_initcall() for memory controller.
7012 *
7013 * Some parts like hotcpu_notifier() have to be initialized from this context
7014 * because of lock dependencies (cgroup_lock -> cpu hotplug) but basically
7015 * everything that doesn't depend on a specific mem_cgroup structure should
7016 * be initialized from here.
2d11085e
MH
7017 */
7018static int __init mem_cgroup_init(void)
7019{
7020 hotcpu_notifier(memcg_cpu_hotplug_callback, 0);
6acc8b02 7021 enable_swap_cgroup();
bb4cc1a8 7022 mem_cgroup_soft_limit_tree_init();
e4777496 7023 memcg_stock_init();
2d11085e
MH
7024 return 0;
7025}
7026subsys_initcall(mem_cgroup_init);