memcontrol.c 173 KB

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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. *
  6. * Copyright 2007 OpenVZ SWsoft Inc
  7. * Author: Pavel Emelianov <xemul@openvz.org>
  8. *
  9. * Memory thresholds
  10. * Copyright (C) 2009 Nokia Corporation
  11. * Author: Kirill A. Shutemov
  12. *
  13. * Kernel Memory Controller
  14. * Copyright (C) 2012 Parallels Inc. and Google Inc.
  15. * Authors: Glauber Costa and Suleiman Souhlal
  16. *
  17. * 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. #include <linux/res_counter.h>
  28. #include <linux/memcontrol.h>
  29. #include <linux/cgroup.h>
  30. #include <linux/mm.h>
  31. #include <linux/hugetlb.h>
  32. #include <linux/pagemap.h>
  33. #include <linux/smp.h>
  34. #include <linux/page-flags.h>
  35. #include <linux/backing-dev.h>
  36. #include <linux/bit_spinlock.h>
  37. #include <linux/rcupdate.h>
  38. #include <linux/limits.h>
  39. #include <linux/export.h>
  40. #include <linux/mutex.h>
  41. #include <linux/rbtree.h>
  42. #include <linux/slab.h>
  43. #include <linux/swap.h>
  44. #include <linux/swapops.h>
  45. #include <linux/spinlock.h>
  46. #include <linux/eventfd.h>
  47. #include <linux/sort.h>
  48. #include <linux/fs.h>
  49. #include <linux/seq_file.h>
  50. #include <linux/vmalloc.h>
  51. #include <linux/mm_inline.h>
  52. #include <linux/page_cgroup.h>
  53. #include <linux/cpu.h>
  54. #include <linux/oom.h>
  55. #include "internal.h"
  56. #include <net/sock.h>
  57. #include <net/ip.h>
  58. #include <net/tcp_memcontrol.h>
  59. #include <asm/uaccess.h>
  60. #include <trace/events/vmscan.h>
  61. struct cgroup_subsys mem_cgroup_subsys __read_mostly;
  62. EXPORT_SYMBOL(mem_cgroup_subsys);
  63. #define MEM_CGROUP_RECLAIM_RETRIES 5
  64. static struct mem_cgroup *root_mem_cgroup __read_mostly;
  65. #ifdef CONFIG_MEMCG_SWAP
  66. /* Turned on only when memory cgroup is enabled && really_do_swap_account = 1 */
  67. int do_swap_account __read_mostly;
  68. /* for remember boot option*/
  69. #ifdef CONFIG_MEMCG_SWAP_ENABLED
  70. static int really_do_swap_account __initdata = 1;
  71. #else
  72. static int really_do_swap_account __initdata = 0;
  73. #endif
  74. #else
  75. #define do_swap_account 0
  76. #endif
  77. /*
  78. * Statistics for memory cgroup.
  79. */
  80. enum mem_cgroup_stat_index {
  81. /*
  82. * For MEM_CONTAINER_TYPE_ALL, usage = pagecache + rss.
  83. */
  84. MEM_CGROUP_STAT_CACHE, /* # of pages charged as cache */
  85. MEM_CGROUP_STAT_RSS, /* # of pages charged as anon rss */
  86. MEM_CGROUP_STAT_FILE_MAPPED, /* # of pages charged as file rss */
  87. MEM_CGROUP_STAT_SWAP, /* # of pages, swapped out */
  88. MEM_CGROUP_STAT_NSTATS,
  89. };
  90. static const char * const mem_cgroup_stat_names[] = {
  91. "cache",
  92. "rss",
  93. "mapped_file",
  94. "swap",
  95. };
  96. enum mem_cgroup_events_index {
  97. MEM_CGROUP_EVENTS_PGPGIN, /* # of pages paged in */
  98. MEM_CGROUP_EVENTS_PGPGOUT, /* # of pages paged out */
  99. MEM_CGROUP_EVENTS_PGFAULT, /* # of page-faults */
  100. MEM_CGROUP_EVENTS_PGMAJFAULT, /* # of major page-faults */
  101. MEM_CGROUP_EVENTS_NSTATS,
  102. };
  103. static const char * const mem_cgroup_events_names[] = {
  104. "pgpgin",
  105. "pgpgout",
  106. "pgfault",
  107. "pgmajfault",
  108. };
  109. /*
  110. * Per memcg event counter is incremented at every pagein/pageout. With THP,
  111. * it will be incremated by the number of pages. This counter is used for
  112. * for trigger some periodic events. This is straightforward and better
  113. * than using jiffies etc. to handle periodic memcg event.
  114. */
  115. enum mem_cgroup_events_target {
  116. MEM_CGROUP_TARGET_THRESH,
  117. MEM_CGROUP_TARGET_SOFTLIMIT,
  118. MEM_CGROUP_TARGET_NUMAINFO,
  119. MEM_CGROUP_NTARGETS,
  120. };
  121. #define THRESHOLDS_EVENTS_TARGET 128
  122. #define SOFTLIMIT_EVENTS_TARGET 1024
  123. #define NUMAINFO_EVENTS_TARGET 1024
  124. struct mem_cgroup_stat_cpu {
  125. long count[MEM_CGROUP_STAT_NSTATS];
  126. unsigned long events[MEM_CGROUP_EVENTS_NSTATS];
  127. unsigned long nr_page_events;
  128. unsigned long targets[MEM_CGROUP_NTARGETS];
  129. };
  130. struct mem_cgroup_reclaim_iter {
  131. /* css_id of the last scanned hierarchy member */
  132. int position;
  133. /* scan generation, increased every round-trip */
  134. unsigned int generation;
  135. };
  136. /*
  137. * per-zone information in memory controller.
  138. */
  139. struct mem_cgroup_per_zone {
  140. struct lruvec lruvec;
  141. unsigned long lru_size[NR_LRU_LISTS];
  142. struct mem_cgroup_reclaim_iter reclaim_iter[DEF_PRIORITY + 1];
  143. struct rb_node tree_node; /* RB tree node */
  144. unsigned long long usage_in_excess;/* Set to the value by which */
  145. /* the soft limit is exceeded*/
  146. bool on_tree;
  147. struct mem_cgroup *memcg; /* Back pointer, we cannot */
  148. /* use container_of */
  149. };
  150. struct mem_cgroup_per_node {
  151. struct mem_cgroup_per_zone zoneinfo[MAX_NR_ZONES];
  152. };
  153. struct mem_cgroup_lru_info {
  154. struct mem_cgroup_per_node *nodeinfo[MAX_NUMNODES];
  155. };
  156. /*
  157. * Cgroups above their limits are maintained in a RB-Tree, independent of
  158. * their hierarchy representation
  159. */
  160. struct mem_cgroup_tree_per_zone {
  161. struct rb_root rb_root;
  162. spinlock_t lock;
  163. };
  164. struct mem_cgroup_tree_per_node {
  165. struct mem_cgroup_tree_per_zone rb_tree_per_zone[MAX_NR_ZONES];
  166. };
  167. struct mem_cgroup_tree {
  168. struct mem_cgroup_tree_per_node *rb_tree_per_node[MAX_NUMNODES];
  169. };
  170. static struct mem_cgroup_tree soft_limit_tree __read_mostly;
  171. struct mem_cgroup_threshold {
  172. struct eventfd_ctx *eventfd;
  173. u64 threshold;
  174. };
  175. /* For threshold */
  176. struct mem_cgroup_threshold_ary {
  177. /* An array index points to threshold just below or equal to usage. */
  178. int current_threshold;
  179. /* Size of entries[] */
  180. unsigned int size;
  181. /* Array of thresholds */
  182. struct mem_cgroup_threshold entries[0];
  183. };
  184. struct mem_cgroup_thresholds {
  185. /* Primary thresholds array */
  186. struct mem_cgroup_threshold_ary *primary;
  187. /*
  188. * Spare threshold array.
  189. * This is needed to make mem_cgroup_unregister_event() "never fail".
  190. * It must be able to store at least primary->size - 1 entries.
  191. */
  192. struct mem_cgroup_threshold_ary *spare;
  193. };
  194. /* for OOM */
  195. struct mem_cgroup_eventfd_list {
  196. struct list_head list;
  197. struct eventfd_ctx *eventfd;
  198. };
  199. static void mem_cgroup_threshold(struct mem_cgroup *memcg);
  200. static void mem_cgroup_oom_notify(struct mem_cgroup *memcg);
  201. /*
  202. * The memory controller data structure. The memory controller controls both
  203. * page cache and RSS per cgroup. We would eventually like to provide
  204. * statistics based on the statistics developed by Rik Van Riel for clock-pro,
  205. * to help the administrator determine what knobs to tune.
  206. *
  207. * TODO: Add a water mark for the memory controller. Reclaim will begin when
  208. * we hit the water mark. May be even add a low water mark, such that
  209. * no reclaim occurs from a cgroup at it's low water mark, this is
  210. * a feature that will be implemented much later in the future.
  211. */
  212. struct mem_cgroup {
  213. struct cgroup_subsys_state css;
  214. /*
  215. * the counter to account for memory usage
  216. */
  217. struct res_counter res;
  218. union {
  219. /*
  220. * the counter to account for mem+swap usage.
  221. */
  222. struct res_counter memsw;
  223. /*
  224. * rcu_freeing is used only when freeing struct mem_cgroup,
  225. * so put it into a union to avoid wasting more memory.
  226. * It must be disjoint from the css field. It could be
  227. * in a union with the res field, but res plays a much
  228. * larger part in mem_cgroup life than memsw, and might
  229. * be of interest, even at time of free, when debugging.
  230. * So share rcu_head with the less interesting memsw.
  231. */
  232. struct rcu_head rcu_freeing;
  233. /*
  234. * We also need some space for a worker in deferred freeing.
  235. * By the time we call it, rcu_freeing is no longer in use.
  236. */
  237. struct work_struct work_freeing;
  238. };
  239. /*
  240. * the counter to account for kernel memory usage.
  241. */
  242. struct res_counter kmem;
  243. /*
  244. * Per cgroup active and inactive list, similar to the
  245. * per zone LRU lists.
  246. */
  247. struct mem_cgroup_lru_info info;
  248. int last_scanned_node;
  249. #if MAX_NUMNODES > 1
  250. nodemask_t scan_nodes;
  251. atomic_t numainfo_events;
  252. atomic_t numainfo_updating;
  253. #endif
  254. /*
  255. * Should the accounting and control be hierarchical, per subtree?
  256. */
  257. bool use_hierarchy;
  258. unsigned long kmem_account_flags; /* See KMEM_ACCOUNTED_*, below */
  259. bool oom_lock;
  260. atomic_t under_oom;
  261. atomic_t refcnt;
  262. int swappiness;
  263. /* OOM-Killer disable */
  264. int oom_kill_disable;
  265. /* set when res.limit == memsw.limit */
  266. bool memsw_is_minimum;
  267. /* protect arrays of thresholds */
  268. struct mutex thresholds_lock;
  269. /* thresholds for memory usage. RCU-protected */
  270. struct mem_cgroup_thresholds thresholds;
  271. /* thresholds for mem+swap usage. RCU-protected */
  272. struct mem_cgroup_thresholds memsw_thresholds;
  273. /* For oom notifier event fd */
  274. struct list_head oom_notify;
  275. /*
  276. * Should we move charges of a task when a task is moved into this
  277. * mem_cgroup ? And what type of charges should we move ?
  278. */
  279. unsigned long move_charge_at_immigrate;
  280. /*
  281. * set > 0 if pages under this cgroup are moving to other cgroup.
  282. */
  283. atomic_t moving_account;
  284. /* taken only while moving_account > 0 */
  285. spinlock_t move_lock;
  286. /*
  287. * percpu counter.
  288. */
  289. struct mem_cgroup_stat_cpu __percpu *stat;
  290. /*
  291. * used when a cpu is offlined or other synchronizations
  292. * See mem_cgroup_read_stat().
  293. */
  294. struct mem_cgroup_stat_cpu nocpu_base;
  295. spinlock_t pcp_counter_lock;
  296. #if defined(CONFIG_MEMCG_KMEM) && defined(CONFIG_INET)
  297. struct tcp_memcontrol tcp_mem;
  298. #endif
  299. #if defined(CONFIG_MEMCG_KMEM)
  300. /* analogous to slab_common's slab_caches list. per-memcg */
  301. struct list_head memcg_slab_caches;
  302. /* Not a spinlock, we can take a lot of time walking the list */
  303. struct mutex slab_caches_mutex;
  304. /* Index in the kmem_cache->memcg_params->memcg_caches array */
  305. int kmemcg_id;
  306. #endif
  307. };
  308. /* internal only representation about the status of kmem accounting. */
  309. enum {
  310. KMEM_ACCOUNTED_ACTIVE = 0, /* accounted by this cgroup itself */
  311. KMEM_ACCOUNTED_ACTIVATED, /* static key enabled. */
  312. KMEM_ACCOUNTED_DEAD, /* dead memcg with pending kmem charges */
  313. };
  314. /* We account when limit is on, but only after call sites are patched */
  315. #define KMEM_ACCOUNTED_MASK \
  316. ((1 << KMEM_ACCOUNTED_ACTIVE) | (1 << KMEM_ACCOUNTED_ACTIVATED))
  317. #ifdef CONFIG_MEMCG_KMEM
  318. static inline void memcg_kmem_set_active(struct mem_cgroup *memcg)
  319. {
  320. set_bit(KMEM_ACCOUNTED_ACTIVE, &memcg->kmem_account_flags);
  321. }
  322. static bool memcg_kmem_is_active(struct mem_cgroup *memcg)
  323. {
  324. return test_bit(KMEM_ACCOUNTED_ACTIVE, &memcg->kmem_account_flags);
  325. }
  326. static void memcg_kmem_set_activated(struct mem_cgroup *memcg)
  327. {
  328. set_bit(KMEM_ACCOUNTED_ACTIVATED, &memcg->kmem_account_flags);
  329. }
  330. static void memcg_kmem_clear_activated(struct mem_cgroup *memcg)
  331. {
  332. clear_bit(KMEM_ACCOUNTED_ACTIVATED, &memcg->kmem_account_flags);
  333. }
  334. static void memcg_kmem_mark_dead(struct mem_cgroup *memcg)
  335. {
  336. if (test_bit(KMEM_ACCOUNTED_ACTIVE, &memcg->kmem_account_flags))
  337. set_bit(KMEM_ACCOUNTED_DEAD, &memcg->kmem_account_flags);
  338. }
  339. static bool memcg_kmem_test_and_clear_dead(struct mem_cgroup *memcg)
  340. {
  341. return test_and_clear_bit(KMEM_ACCOUNTED_DEAD,
  342. &memcg->kmem_account_flags);
  343. }
  344. #endif
  345. /* Stuffs for move charges at task migration. */
  346. /*
  347. * Types of charges to be moved. "move_charge_at_immitgrate" is treated as a
  348. * left-shifted bitmap of these types.
  349. */
  350. enum move_type {
  351. MOVE_CHARGE_TYPE_ANON, /* private anonymous page and swap of it */
  352. MOVE_CHARGE_TYPE_FILE, /* file page(including tmpfs) and swap of it */
  353. NR_MOVE_TYPE,
  354. };
  355. /* "mc" and its members are protected by cgroup_mutex */
  356. static struct move_charge_struct {
  357. spinlock_t lock; /* for from, to */
  358. struct mem_cgroup *from;
  359. struct mem_cgroup *to;
  360. unsigned long precharge;
  361. unsigned long moved_charge;
  362. unsigned long moved_swap;
  363. struct task_struct *moving_task; /* a task moving charges */
  364. wait_queue_head_t waitq; /* a waitq for other context */
  365. } mc = {
  366. .lock = __SPIN_LOCK_UNLOCKED(mc.lock),
  367. .waitq = __WAIT_QUEUE_HEAD_INITIALIZER(mc.waitq),
  368. };
  369. static bool move_anon(void)
  370. {
  371. return test_bit(MOVE_CHARGE_TYPE_ANON,
  372. &mc.to->move_charge_at_immigrate);
  373. }
  374. static bool move_file(void)
  375. {
  376. return test_bit(MOVE_CHARGE_TYPE_FILE,
  377. &mc.to->move_charge_at_immigrate);
  378. }
  379. /*
  380. * Maximum loops in mem_cgroup_hierarchical_reclaim(), used for soft
  381. * limit reclaim to prevent infinite loops, if they ever occur.
  382. */
  383. #define MEM_CGROUP_MAX_RECLAIM_LOOPS 100
  384. #define MEM_CGROUP_MAX_SOFT_LIMIT_RECLAIM_LOOPS 2
  385. enum charge_type {
  386. MEM_CGROUP_CHARGE_TYPE_CACHE = 0,
  387. MEM_CGROUP_CHARGE_TYPE_ANON,
  388. MEM_CGROUP_CHARGE_TYPE_SWAPOUT, /* for accounting swapcache */
  389. MEM_CGROUP_CHARGE_TYPE_DROP, /* a page was unused swap cache */
  390. NR_CHARGE_TYPE,
  391. };
  392. /* for encoding cft->private value on file */
  393. enum res_type {
  394. _MEM,
  395. _MEMSWAP,
  396. _OOM_TYPE,
  397. _KMEM,
  398. };
  399. #define MEMFILE_PRIVATE(x, val) ((x) << 16 | (val))
  400. #define MEMFILE_TYPE(val) ((val) >> 16 & 0xffff)
  401. #define MEMFILE_ATTR(val) ((val) & 0xffff)
  402. /* Used for OOM nofiier */
  403. #define OOM_CONTROL (0)
  404. /*
  405. * Reclaim flags for mem_cgroup_hierarchical_reclaim
  406. */
  407. #define MEM_CGROUP_RECLAIM_NOSWAP_BIT 0x0
  408. #define MEM_CGROUP_RECLAIM_NOSWAP (1 << MEM_CGROUP_RECLAIM_NOSWAP_BIT)
  409. #define MEM_CGROUP_RECLAIM_SHRINK_BIT 0x1
  410. #define MEM_CGROUP_RECLAIM_SHRINK (1 << MEM_CGROUP_RECLAIM_SHRINK_BIT)
  411. static void mem_cgroup_get(struct mem_cgroup *memcg);
  412. static void mem_cgroup_put(struct mem_cgroup *memcg);
  413. static inline
  414. struct mem_cgroup *mem_cgroup_from_css(struct cgroup_subsys_state *s)
  415. {
  416. return container_of(s, struct mem_cgroup, css);
  417. }
  418. static inline bool mem_cgroup_is_root(struct mem_cgroup *memcg)
  419. {
  420. return (memcg == root_mem_cgroup);
  421. }
  422. /* Writing them here to avoid exposing memcg's inner layout */
  423. #if defined(CONFIG_INET) && defined(CONFIG_MEMCG_KMEM)
  424. void sock_update_memcg(struct sock *sk)
  425. {
  426. if (mem_cgroup_sockets_enabled) {
  427. struct mem_cgroup *memcg;
  428. struct cg_proto *cg_proto;
  429. BUG_ON(!sk->sk_prot->proto_cgroup);
  430. /* Socket cloning can throw us here with sk_cgrp already
  431. * filled. It won't however, necessarily happen from
  432. * process context. So the test for root memcg given
  433. * the current task's memcg won't help us in this case.
  434. *
  435. * Respecting the original socket's memcg is a better
  436. * decision in this case.
  437. */
  438. if (sk->sk_cgrp) {
  439. BUG_ON(mem_cgroup_is_root(sk->sk_cgrp->memcg));
  440. mem_cgroup_get(sk->sk_cgrp->memcg);
  441. return;
  442. }
  443. rcu_read_lock();
  444. memcg = mem_cgroup_from_task(current);
  445. cg_proto = sk->sk_prot->proto_cgroup(memcg);
  446. if (!mem_cgroup_is_root(memcg) && memcg_proto_active(cg_proto)) {
  447. mem_cgroup_get(memcg);
  448. sk->sk_cgrp = cg_proto;
  449. }
  450. rcu_read_unlock();
  451. }
  452. }
  453. EXPORT_SYMBOL(sock_update_memcg);
  454. void sock_release_memcg(struct sock *sk)
  455. {
  456. if (mem_cgroup_sockets_enabled && sk->sk_cgrp) {
  457. struct mem_cgroup *memcg;
  458. WARN_ON(!sk->sk_cgrp->memcg);
  459. memcg = sk->sk_cgrp->memcg;
  460. mem_cgroup_put(memcg);
  461. }
  462. }
  463. struct cg_proto *tcp_proto_cgroup(struct mem_cgroup *memcg)
  464. {
  465. if (!memcg || mem_cgroup_is_root(memcg))
  466. return NULL;
  467. return &memcg->tcp_mem.cg_proto;
  468. }
  469. EXPORT_SYMBOL(tcp_proto_cgroup);
  470. static void disarm_sock_keys(struct mem_cgroup *memcg)
  471. {
  472. if (!memcg_proto_activated(&memcg->tcp_mem.cg_proto))
  473. return;
  474. static_key_slow_dec(&memcg_socket_limit_enabled);
  475. }
  476. #else
  477. static void disarm_sock_keys(struct mem_cgroup *memcg)
  478. {
  479. }
  480. #endif
  481. #ifdef CONFIG_MEMCG_KMEM
  482. /*
  483. * This will be the memcg's index in each cache's ->memcg_params->memcg_caches.
  484. * There are two main reasons for not using the css_id for this:
  485. * 1) this works better in sparse environments, where we have a lot of memcgs,
  486. * but only a few kmem-limited. Or also, if we have, for instance, 200
  487. * memcgs, and none but the 200th is kmem-limited, we'd have to have a
  488. * 200 entry array for that.
  489. *
  490. * 2) In order not to violate the cgroup API, we would like to do all memory
  491. * allocation in ->create(). At that point, we haven't yet allocated the
  492. * css_id. Having a separate index prevents us from messing with the cgroup
  493. * core for this
  494. *
  495. * The current size of the caches array is stored in
  496. * memcg_limited_groups_array_size. It will double each time we have to
  497. * increase it.
  498. */
  499. static DEFINE_IDA(kmem_limited_groups);
  500. static int memcg_limited_groups_array_size;
  501. /*
  502. * MIN_SIZE is different than 1, because we would like to avoid going through
  503. * the alloc/free process all the time. In a small machine, 4 kmem-limited
  504. * cgroups is a reasonable guess. In the future, it could be a parameter or
  505. * tunable, but that is strictly not necessary.
  506. *
  507. * MAX_SIZE should be as large as the number of css_ids. Ideally, we could get
  508. * this constant directly from cgroup, but it is understandable that this is
  509. * better kept as an internal representation in cgroup.c. In any case, the
  510. * css_id space is not getting any smaller, and we don't have to necessarily
  511. * increase ours as well if it increases.
  512. */
  513. #define MEMCG_CACHES_MIN_SIZE 4
  514. #define MEMCG_CACHES_MAX_SIZE 65535
  515. /*
  516. * A lot of the calls to the cache allocation functions are expected to be
  517. * inlined by the compiler. Since the calls to memcg_kmem_get_cache are
  518. * conditional to this static branch, we'll have to allow modules that does
  519. * kmem_cache_alloc and the such to see this symbol as well
  520. */
  521. struct static_key memcg_kmem_enabled_key;
  522. EXPORT_SYMBOL(memcg_kmem_enabled_key);
  523. static void disarm_kmem_keys(struct mem_cgroup *memcg)
  524. {
  525. if (memcg_kmem_is_active(memcg)) {
  526. static_key_slow_dec(&memcg_kmem_enabled_key);
  527. ida_simple_remove(&kmem_limited_groups, memcg->kmemcg_id);
  528. }
  529. /*
  530. * This check can't live in kmem destruction function,
  531. * since the charges will outlive the cgroup
  532. */
  533. WARN_ON(res_counter_read_u64(&memcg->kmem, RES_USAGE) != 0);
  534. }
  535. #else
  536. static void disarm_kmem_keys(struct mem_cgroup *memcg)
  537. {
  538. }
  539. #endif /* CONFIG_MEMCG_KMEM */
  540. static void disarm_static_keys(struct mem_cgroup *memcg)
  541. {
  542. disarm_sock_keys(memcg);
  543. disarm_kmem_keys(memcg);
  544. }
  545. static void drain_all_stock_async(struct mem_cgroup *memcg);
  546. static struct mem_cgroup_per_zone *
  547. mem_cgroup_zoneinfo(struct mem_cgroup *memcg, int nid, int zid)
  548. {
  549. return &memcg->info.nodeinfo[nid]->zoneinfo[zid];
  550. }
  551. struct cgroup_subsys_state *mem_cgroup_css(struct mem_cgroup *memcg)
  552. {
  553. return &memcg->css;
  554. }
  555. static struct mem_cgroup_per_zone *
  556. page_cgroup_zoneinfo(struct mem_cgroup *memcg, struct page *page)
  557. {
  558. int nid = page_to_nid(page);
  559. int zid = page_zonenum(page);
  560. return mem_cgroup_zoneinfo(memcg, nid, zid);
  561. }
  562. static struct mem_cgroup_tree_per_zone *
  563. soft_limit_tree_node_zone(int nid, int zid)
  564. {
  565. return &soft_limit_tree.rb_tree_per_node[nid]->rb_tree_per_zone[zid];
  566. }
  567. static struct mem_cgroup_tree_per_zone *
  568. soft_limit_tree_from_page(struct page *page)
  569. {
  570. int nid = page_to_nid(page);
  571. int zid = page_zonenum(page);
  572. return &soft_limit_tree.rb_tree_per_node[nid]->rb_tree_per_zone[zid];
  573. }
  574. static void
  575. __mem_cgroup_insert_exceeded(struct mem_cgroup *memcg,
  576. struct mem_cgroup_per_zone *mz,
  577. struct mem_cgroup_tree_per_zone *mctz,
  578. unsigned long long new_usage_in_excess)
  579. {
  580. struct rb_node **p = &mctz->rb_root.rb_node;
  581. struct rb_node *parent = NULL;
  582. struct mem_cgroup_per_zone *mz_node;
  583. if (mz->on_tree)
  584. return;
  585. mz->usage_in_excess = new_usage_in_excess;
  586. if (!mz->usage_in_excess)
  587. return;
  588. while (*p) {
  589. parent = *p;
  590. mz_node = rb_entry(parent, struct mem_cgroup_per_zone,
  591. tree_node);
  592. if (mz->usage_in_excess < mz_node->usage_in_excess)
  593. p = &(*p)->rb_left;
  594. /*
  595. * We can't avoid mem cgroups that are over their soft
  596. * limit by the same amount
  597. */
  598. else if (mz->usage_in_excess >= mz_node->usage_in_excess)
  599. p = &(*p)->rb_right;
  600. }
  601. rb_link_node(&mz->tree_node, parent, p);
  602. rb_insert_color(&mz->tree_node, &mctz->rb_root);
  603. mz->on_tree = true;
  604. }
  605. static void
  606. __mem_cgroup_remove_exceeded(struct mem_cgroup *memcg,
  607. struct mem_cgroup_per_zone *mz,
  608. struct mem_cgroup_tree_per_zone *mctz)
  609. {
  610. if (!mz->on_tree)
  611. return;
  612. rb_erase(&mz->tree_node, &mctz->rb_root);
  613. mz->on_tree = false;
  614. }
  615. static void
  616. mem_cgroup_remove_exceeded(struct mem_cgroup *memcg,
  617. struct mem_cgroup_per_zone *mz,
  618. struct mem_cgroup_tree_per_zone *mctz)
  619. {
  620. spin_lock(&mctz->lock);
  621. __mem_cgroup_remove_exceeded(memcg, mz, mctz);
  622. spin_unlock(&mctz->lock);
  623. }
  624. static void mem_cgroup_update_tree(struct mem_cgroup *memcg, struct page *page)
  625. {
  626. unsigned long long excess;
  627. struct mem_cgroup_per_zone *mz;
  628. struct mem_cgroup_tree_per_zone *mctz;
  629. int nid = page_to_nid(page);
  630. int zid = page_zonenum(page);
  631. mctz = soft_limit_tree_from_page(page);
  632. /*
  633. * Necessary to update all ancestors when hierarchy is used.
  634. * because their event counter is not touched.
  635. */
  636. for (; memcg; memcg = parent_mem_cgroup(memcg)) {
  637. mz = mem_cgroup_zoneinfo(memcg, nid, zid);
  638. excess = res_counter_soft_limit_excess(&memcg->res);
  639. /*
  640. * We have to update the tree if mz is on RB-tree or
  641. * mem is over its softlimit.
  642. */
  643. if (excess || mz->on_tree) {
  644. spin_lock(&mctz->lock);
  645. /* if on-tree, remove it */
  646. if (mz->on_tree)
  647. __mem_cgroup_remove_exceeded(memcg, mz, mctz);
  648. /*
  649. * Insert again. mz->usage_in_excess will be updated.
  650. * If excess is 0, no tree ops.
  651. */
  652. __mem_cgroup_insert_exceeded(memcg, mz, mctz, excess);
  653. spin_unlock(&mctz->lock);
  654. }
  655. }
  656. }
  657. static void mem_cgroup_remove_from_trees(struct mem_cgroup *memcg)
  658. {
  659. int node, zone;
  660. struct mem_cgroup_per_zone *mz;
  661. struct mem_cgroup_tree_per_zone *mctz;
  662. for_each_node(node) {
  663. for (zone = 0; zone < MAX_NR_ZONES; zone++) {
  664. mz = mem_cgroup_zoneinfo(memcg, node, zone);
  665. mctz = soft_limit_tree_node_zone(node, zone);
  666. mem_cgroup_remove_exceeded(memcg, mz, mctz);
  667. }
  668. }
  669. }
  670. static struct mem_cgroup_per_zone *
  671. __mem_cgroup_largest_soft_limit_node(struct mem_cgroup_tree_per_zone *mctz)
  672. {
  673. struct rb_node *rightmost = NULL;
  674. struct mem_cgroup_per_zone *mz;
  675. retry:
  676. mz = NULL;
  677. rightmost = rb_last(&mctz->rb_root);
  678. if (!rightmost)
  679. goto done; /* Nothing to reclaim from */
  680. mz = rb_entry(rightmost, struct mem_cgroup_per_zone, tree_node);
  681. /*
  682. * Remove the node now but someone else can add it back,
  683. * we will to add it back at the end of reclaim to its correct
  684. * position in the tree.
  685. */
  686. __mem_cgroup_remove_exceeded(mz->memcg, mz, mctz);
  687. if (!res_counter_soft_limit_excess(&mz->memcg->res) ||
  688. !css_tryget(&mz->memcg->css))
  689. goto retry;
  690. done:
  691. return mz;
  692. }
  693. static struct mem_cgroup_per_zone *
  694. mem_cgroup_largest_soft_limit_node(struct mem_cgroup_tree_per_zone *mctz)
  695. {
  696. struct mem_cgroup_per_zone *mz;
  697. spin_lock(&mctz->lock);
  698. mz = __mem_cgroup_largest_soft_limit_node(mctz);
  699. spin_unlock(&mctz->lock);
  700. return mz;
  701. }
  702. /*
  703. * Implementation Note: reading percpu statistics for memcg.
  704. *
  705. * Both of vmstat[] and percpu_counter has threshold and do periodic
  706. * synchronization to implement "quick" read. There are trade-off between
  707. * reading cost and precision of value. Then, we may have a chance to implement
  708. * a periodic synchronizion of counter in memcg's counter.
  709. *
  710. * But this _read() function is used for user interface now. The user accounts
  711. * memory usage by memory cgroup and he _always_ requires exact value because
  712. * he accounts memory. Even if we provide quick-and-fuzzy read, we always
  713. * have to visit all online cpus and make sum. So, for now, unnecessary
  714. * synchronization is not implemented. (just implemented for cpu hotplug)
  715. *
  716. * If there are kernel internal actions which can make use of some not-exact
  717. * value, and reading all cpu value can be performance bottleneck in some
  718. * common workload, threashold and synchonization as vmstat[] should be
  719. * implemented.
  720. */
  721. static long mem_cgroup_read_stat(struct mem_cgroup *memcg,
  722. enum mem_cgroup_stat_index idx)
  723. {
  724. long val = 0;
  725. int cpu;
  726. get_online_cpus();
  727. for_each_online_cpu(cpu)
  728. val += per_cpu(memcg->stat->count[idx], cpu);
  729. #ifdef CONFIG_HOTPLUG_CPU
  730. spin_lock(&memcg->pcp_counter_lock);
  731. val += memcg->nocpu_base.count[idx];
  732. spin_unlock(&memcg->pcp_counter_lock);
  733. #endif
  734. put_online_cpus();
  735. return val;
  736. }
  737. static void mem_cgroup_swap_statistics(struct mem_cgroup *memcg,
  738. bool charge)
  739. {
  740. int val = (charge) ? 1 : -1;
  741. this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_SWAP], val);
  742. }
  743. static unsigned long mem_cgroup_read_events(struct mem_cgroup *memcg,
  744. enum mem_cgroup_events_index idx)
  745. {
  746. unsigned long val = 0;
  747. int cpu;
  748. for_each_online_cpu(cpu)
  749. val += per_cpu(memcg->stat->events[idx], cpu);
  750. #ifdef CONFIG_HOTPLUG_CPU
  751. spin_lock(&memcg->pcp_counter_lock);
  752. val += memcg->nocpu_base.events[idx];
  753. spin_unlock(&memcg->pcp_counter_lock);
  754. #endif
  755. return val;
  756. }
  757. static void mem_cgroup_charge_statistics(struct mem_cgroup *memcg,
  758. bool anon, int nr_pages)
  759. {
  760. preempt_disable();
  761. /*
  762. * Here, RSS means 'mapped anon' and anon's SwapCache. Shmem/tmpfs is
  763. * counted as CACHE even if it's on ANON LRU.
  764. */
  765. if (anon)
  766. __this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_RSS],
  767. nr_pages);
  768. else
  769. __this_cpu_add(memcg->stat->count[MEM_CGROUP_STAT_CACHE],
  770. nr_pages);
  771. /* pagein of a big page is an event. So, ignore page size */
  772. if (nr_pages > 0)
  773. __this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGPGIN]);
  774. else {
  775. __this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGPGOUT]);
  776. nr_pages = -nr_pages; /* for event */
  777. }
  778. __this_cpu_add(memcg->stat->nr_page_events, nr_pages);
  779. preempt_enable();
  780. }
  781. unsigned long
  782. mem_cgroup_get_lru_size(struct lruvec *lruvec, enum lru_list lru)
  783. {
  784. struct mem_cgroup_per_zone *mz;
  785. mz = container_of(lruvec, struct mem_cgroup_per_zone, lruvec);
  786. return mz->lru_size[lru];
  787. }
  788. static unsigned long
  789. mem_cgroup_zone_nr_lru_pages(struct mem_cgroup *memcg, int nid, int zid,
  790. unsigned int lru_mask)
  791. {
  792. struct mem_cgroup_per_zone *mz;
  793. enum lru_list lru;
  794. unsigned long ret = 0;
  795. mz = mem_cgroup_zoneinfo(memcg, nid, zid);
  796. for_each_lru(lru) {
  797. if (BIT(lru) & lru_mask)
  798. ret += mz->lru_size[lru];
  799. }
  800. return ret;
  801. }
  802. static unsigned long
  803. mem_cgroup_node_nr_lru_pages(struct mem_cgroup *memcg,
  804. int nid, unsigned int lru_mask)
  805. {
  806. u64 total = 0;
  807. int zid;
  808. for (zid = 0; zid < MAX_NR_ZONES; zid++)
  809. total += mem_cgroup_zone_nr_lru_pages(memcg,
  810. nid, zid, lru_mask);
  811. return total;
  812. }
  813. static unsigned long mem_cgroup_nr_lru_pages(struct mem_cgroup *memcg,
  814. unsigned int lru_mask)
  815. {
  816. int nid;
  817. u64 total = 0;
  818. for_each_node_state(nid, N_MEMORY)
  819. total += mem_cgroup_node_nr_lru_pages(memcg, nid, lru_mask);
  820. return total;
  821. }
  822. static bool mem_cgroup_event_ratelimit(struct mem_cgroup *memcg,
  823. enum mem_cgroup_events_target target)
  824. {
  825. unsigned long val, next;
  826. val = __this_cpu_read(memcg->stat->nr_page_events);
  827. next = __this_cpu_read(memcg->stat->targets[target]);
  828. /* from time_after() in jiffies.h */
  829. if ((long)next - (long)val < 0) {
  830. switch (target) {
  831. case MEM_CGROUP_TARGET_THRESH:
  832. next = val + THRESHOLDS_EVENTS_TARGET;
  833. break;
  834. case MEM_CGROUP_TARGET_SOFTLIMIT:
  835. next = val + SOFTLIMIT_EVENTS_TARGET;
  836. break;
  837. case MEM_CGROUP_TARGET_NUMAINFO:
  838. next = val + NUMAINFO_EVENTS_TARGET;
  839. break;
  840. default:
  841. break;
  842. }
  843. __this_cpu_write(memcg->stat->targets[target], next);
  844. return true;
  845. }
  846. return false;
  847. }
  848. /*
  849. * Check events in order.
  850. *
  851. */
  852. static void memcg_check_events(struct mem_cgroup *memcg, struct page *page)
  853. {
  854. preempt_disable();
  855. /* threshold event is triggered in finer grain than soft limit */
  856. if (unlikely(mem_cgroup_event_ratelimit(memcg,
  857. MEM_CGROUP_TARGET_THRESH))) {
  858. bool do_softlimit;
  859. bool do_numainfo __maybe_unused;
  860. do_softlimit = mem_cgroup_event_ratelimit(memcg,
  861. MEM_CGROUP_TARGET_SOFTLIMIT);
  862. #if MAX_NUMNODES > 1
  863. do_numainfo = mem_cgroup_event_ratelimit(memcg,
  864. MEM_CGROUP_TARGET_NUMAINFO);
  865. #endif
  866. preempt_enable();
  867. mem_cgroup_threshold(memcg);
  868. if (unlikely(do_softlimit))
  869. mem_cgroup_update_tree(memcg, page);
  870. #if MAX_NUMNODES > 1
  871. if (unlikely(do_numainfo))
  872. atomic_inc(&memcg->numainfo_events);
  873. #endif
  874. } else
  875. preempt_enable();
  876. }
  877. struct mem_cgroup *mem_cgroup_from_cont(struct cgroup *cont)
  878. {
  879. return mem_cgroup_from_css(
  880. cgroup_subsys_state(cont, mem_cgroup_subsys_id));
  881. }
  882. struct mem_cgroup *mem_cgroup_from_task(struct task_struct *p)
  883. {
  884. /*
  885. * mm_update_next_owner() may clear mm->owner to NULL
  886. * if it races with swapoff, page migration, etc.
  887. * So this can be called with p == NULL.
  888. */
  889. if (unlikely(!p))
  890. return NULL;
  891. return mem_cgroup_from_css(task_subsys_state(p, mem_cgroup_subsys_id));
  892. }
  893. struct mem_cgroup *try_get_mem_cgroup_from_mm(struct mm_struct *mm)
  894. {
  895. struct mem_cgroup *memcg = NULL;
  896. if (!mm)
  897. return NULL;
  898. /*
  899. * Because we have no locks, mm->owner's may be being moved to other
  900. * cgroup. We use css_tryget() here even if this looks
  901. * pessimistic (rather than adding locks here).
  902. */
  903. rcu_read_lock();
  904. do {
  905. memcg = mem_cgroup_from_task(rcu_dereference(mm->owner));
  906. if (unlikely(!memcg))
  907. break;
  908. } while (!css_tryget(&memcg->css));
  909. rcu_read_unlock();
  910. return memcg;
  911. }
  912. /**
  913. * mem_cgroup_iter - iterate over memory cgroup hierarchy
  914. * @root: hierarchy root
  915. * @prev: previously returned memcg, NULL on first invocation
  916. * @reclaim: cookie for shared reclaim walks, NULL for full walks
  917. *
  918. * Returns references to children of the hierarchy below @root, or
  919. * @root itself, or %NULL after a full round-trip.
  920. *
  921. * Caller must pass the return value in @prev on subsequent
  922. * invocations for reference counting, or use mem_cgroup_iter_break()
  923. * to cancel a hierarchy walk before the round-trip is complete.
  924. *
  925. * Reclaimers can specify a zone and a priority level in @reclaim to
  926. * divide up the memcgs in the hierarchy among all concurrent
  927. * reclaimers operating on the same zone and priority.
  928. */
  929. struct mem_cgroup *mem_cgroup_iter(struct mem_cgroup *root,
  930. struct mem_cgroup *prev,
  931. struct mem_cgroup_reclaim_cookie *reclaim)
  932. {
  933. struct mem_cgroup *memcg = NULL;
  934. int id = 0;
  935. if (mem_cgroup_disabled())
  936. return NULL;
  937. if (!root)
  938. root = root_mem_cgroup;
  939. if (prev && !reclaim)
  940. id = css_id(&prev->css);
  941. if (prev && prev != root)
  942. css_put(&prev->css);
  943. if (!root->use_hierarchy && root != root_mem_cgroup) {
  944. if (prev)
  945. return NULL;
  946. return root;
  947. }
  948. while (!memcg) {
  949. struct mem_cgroup_reclaim_iter *uninitialized_var(iter);
  950. struct cgroup_subsys_state *css;
  951. if (reclaim) {
  952. int nid = zone_to_nid(reclaim->zone);
  953. int zid = zone_idx(reclaim->zone);
  954. struct mem_cgroup_per_zone *mz;
  955. mz = mem_cgroup_zoneinfo(root, nid, zid);
  956. iter = &mz->reclaim_iter[reclaim->priority];
  957. if (prev && reclaim->generation != iter->generation)
  958. return NULL;
  959. id = iter->position;
  960. }
  961. rcu_read_lock();
  962. css = css_get_next(&mem_cgroup_subsys, id + 1, &root->css, &id);
  963. if (css) {
  964. if (css == &root->css || css_tryget(css))
  965. memcg = mem_cgroup_from_css(css);
  966. } else
  967. id = 0;
  968. rcu_read_unlock();
  969. if (reclaim) {
  970. iter->position = id;
  971. if (!css)
  972. iter->generation++;
  973. else if (!prev && memcg)
  974. reclaim->generation = iter->generation;
  975. }
  976. if (prev && !css)
  977. return NULL;
  978. }
  979. return memcg;
  980. }
  981. /**
  982. * mem_cgroup_iter_break - abort a hierarchy walk prematurely
  983. * @root: hierarchy root
  984. * @prev: last visited hierarchy member as returned by mem_cgroup_iter()
  985. */
  986. void mem_cgroup_iter_break(struct mem_cgroup *root,
  987. struct mem_cgroup *prev)
  988. {
  989. if (!root)
  990. root = root_mem_cgroup;
  991. if (prev && prev != root)
  992. css_put(&prev->css);
  993. }
  994. /*
  995. * Iteration constructs for visiting all cgroups (under a tree). If
  996. * loops are exited prematurely (break), mem_cgroup_iter_break() must
  997. * be used for reference counting.
  998. */
  999. #define for_each_mem_cgroup_tree(iter, root) \
  1000. for (iter = mem_cgroup_iter(root, NULL, NULL); \
  1001. iter != NULL; \
  1002. iter = mem_cgroup_iter(root, iter, NULL))
  1003. #define for_each_mem_cgroup(iter) \
  1004. for (iter = mem_cgroup_iter(NULL, NULL, NULL); \
  1005. iter != NULL; \
  1006. iter = mem_cgroup_iter(NULL, iter, NULL))
  1007. void __mem_cgroup_count_vm_event(struct mm_struct *mm, enum vm_event_item idx)
  1008. {
  1009. struct mem_cgroup *memcg;
  1010. rcu_read_lock();
  1011. memcg = mem_cgroup_from_task(rcu_dereference(mm->owner));
  1012. if (unlikely(!memcg))
  1013. goto out;
  1014. switch (idx) {
  1015. case PGFAULT:
  1016. this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGFAULT]);
  1017. break;
  1018. case PGMAJFAULT:
  1019. this_cpu_inc(memcg->stat->events[MEM_CGROUP_EVENTS_PGMAJFAULT]);
  1020. break;
  1021. default:
  1022. BUG();
  1023. }
  1024. out:
  1025. rcu_read_unlock();
  1026. }
  1027. EXPORT_SYMBOL(__mem_cgroup_count_vm_event);
  1028. /**
  1029. * mem_cgroup_zone_lruvec - get the lru list vector for a zone and memcg
  1030. * @zone: zone of the wanted lruvec
  1031. * @memcg: memcg of the wanted lruvec
  1032. *
  1033. * Returns the lru list vector holding pages for the given @zone and
  1034. * @mem. This can be the global zone lruvec, if the memory controller
  1035. * is disabled.
  1036. */
  1037. struct lruvec *mem_cgroup_zone_lruvec(struct zone *zone,
  1038. struct mem_cgroup *memcg)
  1039. {
  1040. struct mem_cgroup_per_zone *mz;
  1041. struct lruvec *lruvec;
  1042. if (mem_cgroup_disabled()) {
  1043. lruvec = &zone->lruvec;
  1044. goto out;
  1045. }
  1046. mz = mem_cgroup_zoneinfo(memcg, zone_to_nid(zone), zone_idx(zone));
  1047. lruvec = &mz->lruvec;
  1048. out:
  1049. /*
  1050. * Since a node can be onlined after the mem_cgroup was created,
  1051. * we have to be prepared to initialize lruvec->zone here;
  1052. * and if offlined then reonlined, we need to reinitialize it.
  1053. */
  1054. if (unlikely(lruvec->zone != zone))
  1055. lruvec->zone = zone;
  1056. return lruvec;
  1057. }
  1058. /*
  1059. * Following LRU functions are allowed to be used without PCG_LOCK.
  1060. * Operations are called by routine of global LRU independently from memcg.
  1061. * What we have to take care of here is validness of pc->mem_cgroup.
  1062. *
  1063. * Changes to pc->mem_cgroup happens when
  1064. * 1. charge
  1065. * 2. moving account
  1066. * In typical case, "charge" is done before add-to-lru. Exception is SwapCache.
  1067. * It is added to LRU before charge.
  1068. * If PCG_USED bit is not set, page_cgroup is not added to this private LRU.
  1069. * When moving account, the page is not on LRU. It's isolated.
  1070. */
  1071. /**
  1072. * mem_cgroup_page_lruvec - return lruvec for adding an lru page
  1073. * @page: the page
  1074. * @zone: zone of the page
  1075. */
  1076. struct lruvec *mem_cgroup_page_lruvec(struct page *page, struct zone *zone)
  1077. {
  1078. struct mem_cgroup_per_zone *mz;
  1079. struct mem_cgroup *memcg;
  1080. struct page_cgroup *pc;
  1081. struct lruvec *lruvec;
  1082. if (mem_cgroup_disabled()) {
  1083. lruvec = &zone->lruvec;
  1084. goto out;
  1085. }
  1086. pc = lookup_page_cgroup(page);
  1087. memcg = pc->mem_cgroup;
  1088. /*
  1089. * Surreptitiously switch any uncharged offlist page to root:
  1090. * an uncharged page off lru does nothing to secure
  1091. * its former mem_cgroup from sudden removal.
  1092. *
  1093. * Our caller holds lru_lock, and PageCgroupUsed is updated
  1094. * under page_cgroup lock: between them, they make all uses
  1095. * of pc->mem_cgroup safe.
  1096. */
  1097. if (!PageLRU(page) && !PageCgroupUsed(pc) && memcg != root_mem_cgroup)
  1098. pc->mem_cgroup = memcg = root_mem_cgroup;
  1099. mz = page_cgroup_zoneinfo(memcg, page);
  1100. lruvec = &mz->lruvec;
  1101. out:
  1102. /*
  1103. * Since a node can be onlined after the mem_cgroup was created,
  1104. * we have to be prepared to initialize lruvec->zone here;
  1105. * and if offlined then reonlined, we need to reinitialize it.
  1106. */
  1107. if (unlikely(lruvec->zone != zone))
  1108. lruvec->zone = zone;
  1109. return lruvec;
  1110. }
  1111. /**
  1112. * mem_cgroup_update_lru_size - account for adding or removing an lru page
  1113. * @lruvec: mem_cgroup per zone lru vector
  1114. * @lru: index of lru list the page is sitting on
  1115. * @nr_pages: positive when adding or negative when removing
  1116. *
  1117. * This function must be called when a page is added to or removed from an
  1118. * lru list.
  1119. */
  1120. void mem_cgroup_update_lru_size(struct lruvec *lruvec, enum lru_list lru,
  1121. int nr_pages)
  1122. {
  1123. struct mem_cgroup_per_zone *mz;
  1124. unsigned long *lru_size;
  1125. if (mem_cgroup_disabled())
  1126. return;
  1127. mz = container_of(lruvec, struct mem_cgroup_per_zone, lruvec);
  1128. lru_size = mz->lru_size + lru;
  1129. *lru_size += nr_pages;
  1130. VM_BUG_ON((long)(*lru_size) < 0);
  1131. }
  1132. /*
  1133. * Checks whether given mem is same or in the root_mem_cgroup's
  1134. * hierarchy subtree
  1135. */
  1136. bool __mem_cgroup_same_or_subtree(const struct mem_cgroup *root_memcg,
  1137. struct mem_cgroup *memcg)
  1138. {
  1139. if (root_memcg == memcg)
  1140. return true;
  1141. if (!root_memcg->use_hierarchy || !memcg)
  1142. return false;
  1143. return css_is_ancestor(&memcg->css, &root_memcg->css);
  1144. }
  1145. static bool mem_cgroup_same_or_subtree(const struct mem_cgroup *root_memcg,
  1146. struct mem_cgroup *memcg)
  1147. {
  1148. bool ret;
  1149. rcu_read_lock();
  1150. ret = __mem_cgroup_same_or_subtree(root_memcg, memcg);
  1151. rcu_read_unlock();
  1152. return ret;
  1153. }
  1154. int task_in_mem_cgroup(struct task_struct *task, const struct mem_cgroup *memcg)
  1155. {
  1156. int ret;
  1157. struct mem_cgroup *curr = NULL;
  1158. struct task_struct *p;
  1159. p = find_lock_task_mm(task);
  1160. if (p) {
  1161. curr = try_get_mem_cgroup_from_mm(p->mm);
  1162. task_unlock(p);
  1163. } else {
  1164. /*
  1165. * All threads may have already detached their mm's, but the oom
  1166. * killer still needs to detect if they have already been oom
  1167. * killed to prevent needlessly killing additional tasks.
  1168. */
  1169. task_lock(task);
  1170. curr = mem_cgroup_from_task(task);
  1171. if (curr)
  1172. css_get(&curr->css);
  1173. task_unlock(task);
  1174. }
  1175. if (!curr)
  1176. return 0;
  1177. /*
  1178. * We should check use_hierarchy of "memcg" not "curr". Because checking
  1179. * use_hierarchy of "curr" here make this function true if hierarchy is
  1180. * enabled in "curr" and "curr" is a child of "memcg" in *cgroup*
  1181. * hierarchy(even if use_hierarchy is disabled in "memcg").
  1182. */
  1183. ret = mem_cgroup_same_or_subtree(memcg, curr);
  1184. css_put(&curr->css);
  1185. return ret;
  1186. }
  1187. int mem_cgroup_inactive_anon_is_low(struct lruvec *lruvec)
  1188. {
  1189. unsigned long inactive_ratio;
  1190. unsigned long inactive;
  1191. unsigned long active;
  1192. unsigned long gb;
  1193. inactive = mem_cgroup_get_lru_size(lruvec, LRU_INACTIVE_ANON);
  1194. active = mem_cgroup_get_lru_size(lruvec, LRU_ACTIVE_ANON);
  1195. gb = (inactive + active) >> (30 - PAGE_SHIFT);
  1196. if (gb)
  1197. inactive_ratio = int_sqrt(10 * gb);
  1198. else
  1199. inactive_ratio = 1;
  1200. return inactive * inactive_ratio < active;
  1201. }
  1202. int mem_cgroup_inactive_file_is_low(struct lruvec *lruvec)
  1203. {
  1204. unsigned long active;
  1205. unsigned long inactive;
  1206. inactive = mem_cgroup_get_lru_size(lruvec, LRU_INACTIVE_FILE);
  1207. active = mem_cgroup_get_lru_size(lruvec, LRU_ACTIVE_FILE);
  1208. return (active > inactive);
  1209. }
  1210. #define mem_cgroup_from_res_counter(counter, member) \
  1211. container_of(counter, struct mem_cgroup, member)
  1212. /**
  1213. * mem_cgroup_margin - calculate chargeable space of a memory cgroup
  1214. * @memcg: the memory cgroup
  1215. *
  1216. * Returns the maximum amount of memory @mem can be charged with, in
  1217. * pages.
  1218. */
  1219. static unsigned long mem_cgroup_margin(struct mem_cgroup *memcg)
  1220. {
  1221. unsigned long long margin;
  1222. margin = res_counter_margin(&memcg->res);
  1223. if (do_swap_account)
  1224. margin = min(margin, res_counter_margin(&memcg->memsw));
  1225. return margin >> PAGE_SHIFT;
  1226. }
  1227. int mem_cgroup_swappiness(struct mem_cgroup *memcg)
  1228. {
  1229. struct cgroup *cgrp = memcg->css.cgroup;
  1230. /* root ? */
  1231. if (cgrp->parent == NULL)
  1232. return vm_swappiness;
  1233. return memcg->swappiness;
  1234. }
  1235. /*
  1236. * memcg->moving_account is used for checking possibility that some thread is
  1237. * calling move_account(). When a thread on CPU-A starts moving pages under
  1238. * a memcg, other threads should check memcg->moving_account under
  1239. * rcu_read_lock(), like this:
  1240. *
  1241. * CPU-A CPU-B
  1242. * rcu_read_lock()
  1243. * memcg->moving_account+1 if (memcg->mocing_account)
  1244. * take heavy locks.
  1245. * synchronize_rcu() update something.
  1246. * rcu_read_unlock()
  1247. * start move here.
  1248. */
  1249. /* for quick checking without looking up memcg */
  1250. atomic_t memcg_moving __read_mostly;
  1251. static void mem_cgroup_start_move(struct mem_cgroup *memcg)
  1252. {
  1253. atomic_inc(&memcg_moving);
  1254. atomic_inc(&memcg->moving_account);
  1255. synchronize_rcu();
  1256. }
  1257. static void mem_cgroup_end_move(struct mem_cgroup *memcg)
  1258. {
  1259. /*
  1260. * Now, mem_cgroup_clear_mc() may call this function with NULL.
  1261. * We check NULL in callee rather than caller.
  1262. */
  1263. if (memcg) {
  1264. atomic_dec(&memcg_moving);
  1265. atomic_dec(&memcg->moving_account);
  1266. }
  1267. }
  1268. /*
  1269. * 2 routines for checking "mem" is under move_account() or not.
  1270. *
  1271. * mem_cgroup_stolen() - checking whether a cgroup is mc.from or not. This
  1272. * is used for avoiding races in accounting. If true,
  1273. * pc->mem_cgroup may be overwritten.
  1274. *
  1275. * mem_cgroup_under_move() - checking a cgroup is mc.from or mc.to or
  1276. * under hierarchy of moving cgroups. This is for
  1277. * waiting at hith-memory prressure caused by "move".
  1278. */
  1279. static bool mem_cgroup_stolen(struct mem_cgroup *memcg)
  1280. {
  1281. VM_BUG_ON(!rcu_read_lock_held());
  1282. return atomic_read(&memcg->moving_account) > 0;
  1283. }
  1284. static bool mem_cgroup_under_move(struct mem_cgroup *memcg)
  1285. {
  1286. struct mem_cgroup *from;
  1287. struct mem_cgroup *to;
  1288. bool ret = false;
  1289. /*
  1290. * Unlike task_move routines, we access mc.to, mc.from not under
  1291. * mutual exclusion by cgroup_mutex. Here, we take spinlock instead.
  1292. */
  1293. spin_lock(&mc.lock);
  1294. from = mc.from;
  1295. to = mc.to;
  1296. if (!from)
  1297. goto unlock;
  1298. ret = mem_cgroup_same_or_subtree(memcg, from)
  1299. || mem_cgroup_same_or_subtree(memcg, to);
  1300. unlock:
  1301. spin_unlock(&mc.lock);
  1302. return ret;
  1303. }
  1304. static bool mem_cgroup_wait_acct_move(struct mem_cgroup *memcg)
  1305. {
  1306. if (mc.moving_task && current != mc.moving_task) {
  1307. if (mem_cgroup_under_move(memcg)) {
  1308. DEFINE_WAIT(wait);
  1309. prepare_to_wait(&mc.waitq, &wait, TASK_INTERRUPTIBLE);
  1310. /* moving charge context might have finished. */
  1311. if (mc.moving_task)
  1312. schedule();
  1313. finish_wait(&mc.waitq, &wait);
  1314. return true;
  1315. }
  1316. }
  1317. return false;
  1318. }
  1319. /*
  1320. * Take this lock when
  1321. * - a code tries to modify page's memcg while it's USED.
  1322. * - a code tries to modify page state accounting in a memcg.
  1323. * see mem_cgroup_stolen(), too.
  1324. */
  1325. static void move_lock_mem_cgroup(struct mem_cgroup *memcg,
  1326. unsigned long *flags)
  1327. {
  1328. spin_lock_irqsave(&memcg->move_lock, *flags);
  1329. }
  1330. static void move_unlock_mem_cgroup(struct mem_cgroup *memcg,
  1331. unsigned long *flags)
  1332. {
  1333. spin_unlock_irqrestore(&memcg->move_lock, *flags);
  1334. }
  1335. /**
  1336. * mem_cgroup_print_oom_info: Called from OOM with tasklist_lock held in read mode.
  1337. * @memcg: The memory cgroup that went over limit
  1338. * @p: Task that is going to be killed
  1339. *
  1340. * NOTE: @memcg and @p's mem_cgroup can be different when hierarchy is
  1341. * enabled
  1342. */
  1343. void mem_cgroup_print_oom_info(struct mem_cgroup *memcg, struct task_struct *p)
  1344. {
  1345. struct cgroup *task_cgrp;
  1346. struct cgroup *mem_cgrp;
  1347. /*
  1348. * Need a buffer in BSS, can't rely on allocations. The code relies
  1349. * on the assumption that OOM is serialized for memory controller.
  1350. * If this assumption is broken, revisit this code.
  1351. */
  1352. static char memcg_name[PATH_MAX];
  1353. int ret;
  1354. if (!memcg || !p)
  1355. return;
  1356. rcu_read_lock();
  1357. mem_cgrp = memcg->css.cgroup;
  1358. task_cgrp = task_cgroup(p, mem_cgroup_subsys_id);
  1359. ret = cgroup_path(task_cgrp, memcg_name, PATH_MAX);
  1360. if (ret < 0) {
  1361. /*
  1362. * Unfortunately, we are unable to convert to a useful name
  1363. * But we'll still print out the usage information
  1364. */
  1365. rcu_read_unlock();
  1366. goto done;
  1367. }
  1368. rcu_read_unlock();
  1369. printk(KERN_INFO "Task in %s killed", memcg_name);
  1370. rcu_read_lock();
  1371. ret = cgroup_path(mem_cgrp, memcg_name, PATH_MAX);
  1372. if (ret < 0) {
  1373. rcu_read_unlock();
  1374. goto done;
  1375. }
  1376. rcu_read_unlock();
  1377. /*
  1378. * Continues from above, so we don't need an KERN_ level
  1379. */
  1380. printk(KERN_CONT " as a result of limit of %s\n", memcg_name);
  1381. done:
  1382. printk(KERN_INFO "memory: usage %llukB, limit %llukB, failcnt %llu\n",
  1383. res_counter_read_u64(&memcg->res, RES_USAGE) >> 10,
  1384. res_counter_read_u64(&memcg->res, RES_LIMIT) >> 10,
  1385. res_counter_read_u64(&memcg->res, RES_FAILCNT));
  1386. printk(KERN_INFO "memory+swap: usage %llukB, limit %llukB, "
  1387. "failcnt %llu\n",
  1388. res_counter_read_u64(&memcg->memsw, RES_USAGE) >> 10,
  1389. res_counter_read_u64(&memcg->memsw, RES_LIMIT) >> 10,
  1390. res_counter_read_u64(&memcg->memsw, RES_FAILCNT));
  1391. printk(KERN_INFO "kmem: usage %llukB, limit %llukB, failcnt %llu\n",
  1392. res_counter_read_u64(&memcg->kmem, RES_USAGE) >> 10,
  1393. res_counter_read_u64(&memcg->kmem, RES_LIMIT) >> 10,
  1394. res_counter_read_u64(&memcg->kmem, RES_FAILCNT));
  1395. }
  1396. /*
  1397. * This function returns the number of memcg under hierarchy tree. Returns
  1398. * 1(self count) if no children.
  1399. */
  1400. static int mem_cgroup_count_children(struct mem_cgroup *memcg)
  1401. {
  1402. int num = 0;
  1403. struct mem_cgroup *iter;
  1404. for_each_mem_cgroup_tree(iter, memcg)
  1405. num++;
  1406. return num;
  1407. }
  1408. /*
  1409. * Return the memory (and swap, if configured) limit for a memcg.
  1410. */
  1411. static u64 mem_cgroup_get_limit(struct mem_cgroup *memcg)
  1412. {
  1413. u64 limit;
  1414. limit = res_counter_read_u64(&memcg->res, RES_LIMIT);
  1415. /*
  1416. * Do not consider swap space if we cannot swap due to swappiness
  1417. */
  1418. if (mem_cgroup_swappiness(memcg)) {
  1419. u64 memsw;
  1420. limit += total_swap_pages << PAGE_SHIFT;
  1421. memsw = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
  1422. /*
  1423. * If memsw is finite and limits the amount of swap space
  1424. * available to this memcg, return that limit.
  1425. */
  1426. limit = min(limit, memsw);
  1427. }
  1428. return limit;
  1429. }
  1430. static void mem_cgroup_out_of_memory(struct mem_cgroup *memcg, gfp_t gfp_mask,
  1431. int order)
  1432. {
  1433. struct mem_cgroup *iter;
  1434. unsigned long chosen_points = 0;
  1435. unsigned long totalpages;
  1436. unsigned int points = 0;
  1437. struct task_struct *chosen = NULL;
  1438. /*
  1439. * If current has a pending SIGKILL, then automatically select it. The
  1440. * goal is to allow it to allocate so that it may quickly exit and free
  1441. * its memory.
  1442. */
  1443. if (fatal_signal_pending(current)) {
  1444. set_thread_flag(TIF_MEMDIE);
  1445. return;
  1446. }
  1447. check_panic_on_oom(CONSTRAINT_MEMCG, gfp_mask, order, NULL);
  1448. totalpages = mem_cgroup_get_limit(memcg) >> PAGE_SHIFT ? : 1;
  1449. for_each_mem_cgroup_tree(iter, memcg) {
  1450. struct cgroup *cgroup = iter->css.cgroup;
  1451. struct cgroup_iter it;
  1452. struct task_struct *task;
  1453. cgroup_iter_start(cgroup, &it);
  1454. while ((task = cgroup_iter_next(cgroup, &it))) {
  1455. switch (oom_scan_process_thread(task, totalpages, NULL,
  1456. false)) {
  1457. case OOM_SCAN_SELECT:
  1458. if (chosen)
  1459. put_task_struct(chosen);
  1460. chosen = task;
  1461. chosen_points = ULONG_MAX;
  1462. get_task_struct(chosen);
  1463. /* fall through */
  1464. case OOM_SCAN_CONTINUE:
  1465. continue;
  1466. case OOM_SCAN_ABORT:
  1467. cgroup_iter_end(cgroup, &it);
  1468. mem_cgroup_iter_break(memcg, iter);
  1469. if (chosen)
  1470. put_task_struct(chosen);
  1471. return;
  1472. case OOM_SCAN_OK:
  1473. break;
  1474. };
  1475. points = oom_badness(task, memcg, NULL, totalpages);
  1476. if (points > chosen_points) {
  1477. if (chosen)
  1478. put_task_struct(chosen);
  1479. chosen = task;
  1480. chosen_points = points;
  1481. get_task_struct(chosen);
  1482. }
  1483. }
  1484. cgroup_iter_end(cgroup, &it);
  1485. }
  1486. if (!chosen)
  1487. return;
  1488. points = chosen_points * 1000 / totalpages;
  1489. oom_kill_process(chosen, gfp_mask, order, points, totalpages, memcg,
  1490. NULL, "Memory cgroup out of memory");
  1491. }
  1492. static unsigned long mem_cgroup_reclaim(struct mem_cgroup *memcg,
  1493. gfp_t gfp_mask,
  1494. unsigned long flags)
  1495. {
  1496. unsigned long total = 0;
  1497. bool noswap = false;
  1498. int loop;
  1499. if (flags & MEM_CGROUP_RECLAIM_NOSWAP)
  1500. noswap = true;
  1501. if (!(flags & MEM_CGROUP_RECLAIM_SHRINK) && memcg->memsw_is_minimum)
  1502. noswap = true;
  1503. for (loop = 0; loop < MEM_CGROUP_MAX_RECLAIM_LOOPS; loop++) {
  1504. if (loop)
  1505. drain_all_stock_async(memcg);
  1506. total += try_to_free_mem_cgroup_pages(memcg, gfp_mask, noswap);
  1507. /*
  1508. * Allow limit shrinkers, which are triggered directly
  1509. * by userspace, to catch signals and stop reclaim
  1510. * after minimal progress, regardless of the margin.
  1511. */
  1512. if (total && (flags & MEM_CGROUP_RECLAIM_SHRINK))
  1513. break;
  1514. if (mem_cgroup_margin(memcg))
  1515. break;
  1516. /*
  1517. * If nothing was reclaimed after two attempts, there
  1518. * may be no reclaimable pages in this hierarchy.
  1519. */
  1520. if (loop && !total)
  1521. break;
  1522. }
  1523. return total;
  1524. }
  1525. /**
  1526. * test_mem_cgroup_node_reclaimable
  1527. * @memcg: the target memcg
  1528. * @nid: the node ID to be checked.
  1529. * @noswap : specify true here if the user wants flle only information.
  1530. *
  1531. * This function returns whether the specified memcg contains any
  1532. * reclaimable pages on a node. Returns true if there are any reclaimable
  1533. * pages in the node.
  1534. */
  1535. static bool test_mem_cgroup_node_reclaimable(struct mem_cgroup *memcg,
  1536. int nid, bool noswap)
  1537. {
  1538. if (mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL_FILE))
  1539. return true;
  1540. if (noswap || !total_swap_pages)
  1541. return false;
  1542. if (mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL_ANON))
  1543. return true;
  1544. return false;
  1545. }
  1546. #if MAX_NUMNODES > 1
  1547. /*
  1548. * Always updating the nodemask is not very good - even if we have an empty
  1549. * list or the wrong list here, we can start from some node and traverse all
  1550. * nodes based on the zonelist. So update the list loosely once per 10 secs.
  1551. *
  1552. */
  1553. static void mem_cgroup_may_update_nodemask(struct mem_cgroup *memcg)
  1554. {
  1555. int nid;
  1556. /*
  1557. * numainfo_events > 0 means there was at least NUMAINFO_EVENTS_TARGET
  1558. * pagein/pageout changes since the last update.
  1559. */
  1560. if (!atomic_read(&memcg->numainfo_events))
  1561. return;
  1562. if (atomic_inc_return(&memcg->numainfo_updating) > 1)
  1563. return;
  1564. /* make a nodemask where this memcg uses memory from */
  1565. memcg->scan_nodes = node_states[N_MEMORY];
  1566. for_each_node_mask(nid, node_states[N_MEMORY]) {
  1567. if (!test_mem_cgroup_node_reclaimable(memcg, nid, false))
  1568. node_clear(nid, memcg->scan_nodes);
  1569. }
  1570. atomic_set(&memcg->numainfo_events, 0);
  1571. atomic_set(&memcg->numainfo_updating, 0);
  1572. }
  1573. /*
  1574. * Selecting a node where we start reclaim from. Because what we need is just
  1575. * reducing usage counter, start from anywhere is O,K. Considering
  1576. * memory reclaim from current node, there are pros. and cons.
  1577. *
  1578. * Freeing memory from current node means freeing memory from a node which
  1579. * we'll use or we've used. So, it may make LRU bad. And if several threads
  1580. * hit limits, it will see a contention on a node. But freeing from remote
  1581. * node means more costs for memory reclaim because of memory latency.
  1582. *
  1583. * Now, we use round-robin. Better algorithm is welcomed.
  1584. */
  1585. int mem_cgroup_select_victim_node(struct mem_cgroup *memcg)
  1586. {
  1587. int node;
  1588. mem_cgroup_may_update_nodemask(memcg);
  1589. node = memcg->last_scanned_node;
  1590. node = next_node(node, memcg->scan_nodes);
  1591. if (node == MAX_NUMNODES)
  1592. node = first_node(memcg->scan_nodes);
  1593. /*
  1594. * We call this when we hit limit, not when pages are added to LRU.
  1595. * No LRU may hold pages because all pages are UNEVICTABLE or
  1596. * memcg is too small and all pages are not on LRU. In that case,
  1597. * we use curret node.
  1598. */
  1599. if (unlikely(node == MAX_NUMNODES))
  1600. node = numa_node_id();
  1601. memcg->last_scanned_node = node;
  1602. return node;
  1603. }
  1604. /*
  1605. * Check all nodes whether it contains reclaimable pages or not.
  1606. * For quick scan, we make use of scan_nodes. This will allow us to skip
  1607. * unused nodes. But scan_nodes is lazily updated and may not cotain
  1608. * enough new information. We need to do double check.
  1609. */
  1610. static bool mem_cgroup_reclaimable(struct mem_cgroup *memcg, bool noswap)
  1611. {
  1612. int nid;
  1613. /*
  1614. * quick check...making use of scan_node.
  1615. * We can skip unused nodes.
  1616. */
  1617. if (!nodes_empty(memcg->scan_nodes)) {
  1618. for (nid = first_node(memcg->scan_nodes);
  1619. nid < MAX_NUMNODES;
  1620. nid = next_node(nid, memcg->scan_nodes)) {
  1621. if (test_mem_cgroup_node_reclaimable(memcg, nid, noswap))
  1622. return true;
  1623. }
  1624. }
  1625. /*
  1626. * Check rest of nodes.
  1627. */
  1628. for_each_node_state(nid, N_MEMORY) {
  1629. if (node_isset(nid, memcg->scan_nodes))
  1630. continue;
  1631. if (test_mem_cgroup_node_reclaimable(memcg, nid, noswap))
  1632. return true;
  1633. }
  1634. return false;
  1635. }
  1636. #else
  1637. int mem_cgroup_select_victim_node(struct mem_cgroup *memcg)
  1638. {
  1639. return 0;
  1640. }
  1641. static bool mem_cgroup_reclaimable(struct mem_cgroup *memcg, bool noswap)
  1642. {
  1643. return test_mem_cgroup_node_reclaimable(memcg, 0, noswap);
  1644. }
  1645. #endif
  1646. static int mem_cgroup_soft_reclaim(struct mem_cgroup *root_memcg,
  1647. struct zone *zone,
  1648. gfp_t gfp_mask,
  1649. unsigned long *total_scanned)
  1650. {
  1651. struct mem_cgroup *victim = NULL;
  1652. int total = 0;
  1653. int loop = 0;
  1654. unsigned long excess;
  1655. unsigned long nr_scanned;
  1656. struct mem_cgroup_reclaim_cookie reclaim = {
  1657. .zone = zone,
  1658. .priority = 0,
  1659. };
  1660. excess = res_counter_soft_limit_excess(&root_memcg->res) >> PAGE_SHIFT;
  1661. while (1) {
  1662. victim = mem_cgroup_iter(root_memcg, victim, &reclaim);
  1663. if (!victim) {
  1664. loop++;
  1665. if (loop >= 2) {
  1666. /*
  1667. * If we have not been able to reclaim
  1668. * anything, it might because there are
  1669. * no reclaimable pages under this hierarchy
  1670. */
  1671. if (!total)
  1672. break;
  1673. /*
  1674. * We want to do more targeted reclaim.
  1675. * excess >> 2 is not to excessive so as to
  1676. * reclaim too much, nor too less that we keep
  1677. * coming back to reclaim from this cgroup
  1678. */
  1679. if (total >= (excess >> 2) ||
  1680. (loop > MEM_CGROUP_MAX_RECLAIM_LOOPS))
  1681. break;
  1682. }
  1683. continue;
  1684. }
  1685. if (!mem_cgroup_reclaimable(victim, false))
  1686. continue;
  1687. total += mem_cgroup_shrink_node_zone(victim, gfp_mask, false,
  1688. zone, &nr_scanned);
  1689. *total_scanned += nr_scanned;
  1690. if (!res_counter_soft_limit_excess(&root_memcg->res))
  1691. break;
  1692. }
  1693. mem_cgroup_iter_break(root_memcg, victim);
  1694. return total;
  1695. }
  1696. /*
  1697. * Check OOM-Killer is already running under our hierarchy.
  1698. * If someone is running, return false.
  1699. * Has to be called with memcg_oom_lock
  1700. */
  1701. static bool mem_cgroup_oom_lock(struct mem_cgroup *memcg)
  1702. {
  1703. struct mem_cgroup *iter, *failed = NULL;
  1704. for_each_mem_cgroup_tree(iter, memcg) {
  1705. if (iter->oom_lock) {
  1706. /*
  1707. * this subtree of our hierarchy is already locked
  1708. * so we cannot give a lock.
  1709. */
  1710. failed = iter;
  1711. mem_cgroup_iter_break(memcg, iter);
  1712. break;
  1713. } else
  1714. iter->oom_lock = true;
  1715. }
  1716. if (!failed)
  1717. return true;
  1718. /*
  1719. * OK, we failed to lock the whole subtree so we have to clean up
  1720. * what we set up to the failing subtree
  1721. */
  1722. for_each_mem_cgroup_tree(iter, memcg) {
  1723. if (iter == failed) {
  1724. mem_cgroup_iter_break(memcg, iter);
  1725. break;
  1726. }
  1727. iter->oom_lock = false;
  1728. }
  1729. return false;
  1730. }
  1731. /*
  1732. * Has to be called with memcg_oom_lock
  1733. */
  1734. static int mem_cgroup_oom_unlock(struct mem_cgroup *memcg)
  1735. {
  1736. struct mem_cgroup *iter;
  1737. for_each_mem_cgroup_tree(iter, memcg)
  1738. iter->oom_lock = false;
  1739. return 0;
  1740. }
  1741. static void mem_cgroup_mark_under_oom(struct mem_cgroup *memcg)
  1742. {
  1743. struct mem_cgroup *iter;
  1744. for_each_mem_cgroup_tree(iter, memcg)
  1745. atomic_inc(&iter->under_oom);
  1746. }
  1747. static void mem_cgroup_unmark_under_oom(struct mem_cgroup *memcg)
  1748. {
  1749. struct mem_cgroup *iter;
  1750. /*
  1751. * When a new child is created while the hierarchy is under oom,
  1752. * mem_cgroup_oom_lock() may not be called. We have to use
  1753. * atomic_add_unless() here.
  1754. */
  1755. for_each_mem_cgroup_tree(iter, memcg)
  1756. atomic_add_unless(&iter->under_oom, -1, 0);
  1757. }
  1758. static DEFINE_SPINLOCK(memcg_oom_lock);
  1759. static DECLARE_WAIT_QUEUE_HEAD(memcg_oom_waitq);
  1760. struct oom_wait_info {
  1761. struct mem_cgroup *memcg;
  1762. wait_queue_t wait;
  1763. };
  1764. static int memcg_oom_wake_function(wait_queue_t *wait,
  1765. unsigned mode, int sync, void *arg)
  1766. {
  1767. struct mem_cgroup *wake_memcg = (struct mem_cgroup *)arg;
  1768. struct mem_cgroup *oom_wait_memcg;
  1769. struct oom_wait_info *oom_wait_info;
  1770. oom_wait_info = container_of(wait, struct oom_wait_info, wait);
  1771. oom_wait_memcg = oom_wait_info->memcg;
  1772. /*
  1773. * Both of oom_wait_info->memcg and wake_memcg are stable under us.
  1774. * Then we can use css_is_ancestor without taking care of RCU.
  1775. */
  1776. if (!mem_cgroup_same_or_subtree(oom_wait_memcg, wake_memcg)
  1777. && !mem_cgroup_same_or_subtree(wake_memcg, oom_wait_memcg))
  1778. return 0;
  1779. return autoremove_wake_function(wait, mode, sync, arg);
  1780. }
  1781. static void memcg_wakeup_oom(struct mem_cgroup *memcg)
  1782. {
  1783. /* for filtering, pass "memcg" as argument. */
  1784. __wake_up(&memcg_oom_waitq, TASK_NORMAL, 0, memcg);
  1785. }
  1786. static void memcg_oom_recover(struct mem_cgroup *memcg)
  1787. {
  1788. if (memcg && atomic_read(&memcg->under_oom))
  1789. memcg_wakeup_oom(memcg);
  1790. }
  1791. /*
  1792. * try to call OOM killer. returns false if we should exit memory-reclaim loop.
  1793. */
  1794. static bool mem_cgroup_handle_oom(struct mem_cgroup *memcg, gfp_t mask,
  1795. int order)
  1796. {
  1797. struct oom_wait_info owait;
  1798. bool locked, need_to_kill;
  1799. owait.memcg = memcg;
  1800. owait.wait.flags = 0;
  1801. owait.wait.func = memcg_oom_wake_function;
  1802. owait.wait.private = current;
  1803. INIT_LIST_HEAD(&owait.wait.task_list);
  1804. need_to_kill = true;
  1805. mem_cgroup_mark_under_oom(memcg);
  1806. /* At first, try to OOM lock hierarchy under memcg.*/
  1807. spin_lock(&memcg_oom_lock);
  1808. locked = mem_cgroup_oom_lock(memcg);
  1809. /*
  1810. * Even if signal_pending(), we can't quit charge() loop without
  1811. * accounting. So, UNINTERRUPTIBLE is appropriate. But SIGKILL
  1812. * under OOM is always welcomed, use TASK_KILLABLE here.
  1813. */
  1814. prepare_to_wait(&memcg_oom_waitq, &owait.wait, TASK_KILLABLE);
  1815. if (!locked || memcg->oom_kill_disable)
  1816. need_to_kill = false;
  1817. if (locked)
  1818. mem_cgroup_oom_notify(memcg);
  1819. spin_unlock(&memcg_oom_lock);
  1820. if (need_to_kill) {
  1821. finish_wait(&memcg_oom_waitq, &owait.wait);
  1822. mem_cgroup_out_of_memory(memcg, mask, order);
  1823. } else {
  1824. schedule();
  1825. finish_wait(&memcg_oom_waitq, &owait.wait);
  1826. }
  1827. spin_lock(&memcg_oom_lock);
  1828. if (locked)
  1829. mem_cgroup_oom_unlock(memcg);
  1830. memcg_wakeup_oom(memcg);
  1831. spin_unlock(&memcg_oom_lock);
  1832. mem_cgroup_unmark_under_oom(memcg);
  1833. if (test_thread_flag(TIF_MEMDIE) || fatal_signal_pending(current))
  1834. return false;
  1835. /* Give chance to dying process */
  1836. schedule_timeout_uninterruptible(1);
  1837. return true;
  1838. }
  1839. /*
  1840. * Currently used to update mapped file statistics, but the routine can be
  1841. * generalized to update other statistics as well.
  1842. *
  1843. * Notes: Race condition
  1844. *
  1845. * We usually use page_cgroup_lock() for accessing page_cgroup member but
  1846. * it tends to be costly. But considering some conditions, we doesn't need
  1847. * to do so _always_.
  1848. *
  1849. * Considering "charge", lock_page_cgroup() is not required because all
  1850. * file-stat operations happen after a page is attached to radix-tree. There
  1851. * are no race with "charge".
  1852. *
  1853. * Considering "uncharge", we know that memcg doesn't clear pc->mem_cgroup
  1854. * at "uncharge" intentionally. So, we always see valid pc->mem_cgroup even
  1855. * if there are race with "uncharge". Statistics itself is properly handled
  1856. * by flags.
  1857. *
  1858. * Considering "move", this is an only case we see a race. To make the race
  1859. * small, we check mm->moving_account and detect there are possibility of race
  1860. * If there is, we take a lock.
  1861. */
  1862. void __mem_cgroup_begin_update_page_stat(struct page *page,
  1863. bool *locked, unsigned long *flags)
  1864. {
  1865. struct mem_cgroup *memcg;
  1866. struct page_cgroup *pc;
  1867. pc = lookup_page_cgroup(page);
  1868. again:
  1869. memcg = pc->mem_cgroup;
  1870. if (unlikely(!memcg || !PageCgroupUsed(pc)))
  1871. return;
  1872. /*
  1873. * If this memory cgroup is not under account moving, we don't
  1874. * need to take move_lock_mem_cgroup(). Because we already hold
  1875. * rcu_read_lock(), any calls to move_account will be delayed until
  1876. * rcu_read_unlock() if mem_cgroup_stolen() == true.
  1877. */
  1878. if (!mem_cgroup_stolen(memcg))
  1879. return;
  1880. move_lock_mem_cgroup(memcg, flags);
  1881. if (memcg != pc->mem_cgroup || !PageCgroupUsed(pc)) {
  1882. move_unlock_mem_cgroup(memcg, flags);
  1883. goto again;
  1884. }
  1885. *locked = true;
  1886. }
  1887. void __mem_cgroup_end_update_page_stat(struct page *page, unsigned long *flags)
  1888. {
  1889. struct page_cgroup *pc = lookup_page_cgroup(page);
  1890. /*
  1891. * It's guaranteed that pc->mem_cgroup never changes while
  1892. * lock is held because a routine modifies pc->mem_cgroup
  1893. * should take move_lock_mem_cgroup().
  1894. */
  1895. move_unlock_mem_cgroup(pc->mem_cgroup, flags);
  1896. }
  1897. void mem_cgroup_update_page_stat(struct page *page,
  1898. enum mem_cgroup_page_stat_item idx, int val)
  1899. {
  1900. struct mem_cgroup *memcg;
  1901. struct page_cgroup *pc = lookup_page_cgroup(page);
  1902. unsigned long uninitialized_var(flags);
  1903. if (mem_cgroup_disabled())
  1904. return;
  1905. memcg = pc->mem_cgroup;
  1906. if (unlikely(!memcg || !PageCgroupUsed(pc)))
  1907. return;
  1908. switch (idx) {
  1909. case MEMCG_NR_FILE_MAPPED:
  1910. idx = MEM_CGROUP_STAT_FILE_MAPPED;
  1911. break;
  1912. default:
  1913. BUG();
  1914. }
  1915. this_cpu_add(memcg->stat->count[idx], val);
  1916. }
  1917. /*
  1918. * size of first charge trial. "32" comes from vmscan.c's magic value.
  1919. * TODO: maybe necessary to use big numbers in big irons.
  1920. */
  1921. #define CHARGE_BATCH 32U
  1922. struct memcg_stock_pcp {
  1923. struct mem_cgroup *cached; /* this never be root cgroup */
  1924. unsigned int nr_pages;
  1925. struct work_struct work;
  1926. unsigned long flags;
  1927. #define FLUSHING_CACHED_CHARGE 0
  1928. };
  1929. static DEFINE_PER_CPU(struct memcg_stock_pcp, memcg_stock);
  1930. static DEFINE_MUTEX(percpu_charge_mutex);
  1931. /**
  1932. * consume_stock: Try to consume stocked charge on this cpu.
  1933. * @memcg: memcg to consume from.
  1934. * @nr_pages: how many pages to charge.
  1935. *
  1936. * The charges will only happen if @memcg matches the current cpu's memcg
  1937. * stock, and at least @nr_pages are available in that stock. Failure to
  1938. * service an allocation will refill the stock.
  1939. *
  1940. * returns true if successful, false otherwise.
  1941. */
  1942. static bool consume_stock(struct mem_cgroup *memcg, unsigned int nr_pages)
  1943. {
  1944. struct memcg_stock_pcp *stock;
  1945. bool ret = true;
  1946. if (nr_pages > CHARGE_BATCH)
  1947. return false;
  1948. stock = &get_cpu_var(memcg_stock);
  1949. if (memcg == stock->cached && stock->nr_pages >= nr_pages)
  1950. stock->nr_pages -= nr_pages;
  1951. else /* need to call res_counter_charge */
  1952. ret = false;
  1953. put_cpu_var(memcg_stock);
  1954. return ret;
  1955. }
  1956. /*
  1957. * Returns stocks cached in percpu to res_counter and reset cached information.
  1958. */
  1959. static void drain_stock(struct memcg_stock_pcp *stock)
  1960. {
  1961. struct mem_cgroup *old = stock->cached;
  1962. if (stock->nr_pages) {
  1963. unsigned long bytes = stock->nr_pages * PAGE_SIZE;
  1964. res_counter_uncharge(&old->res, bytes);
  1965. if (do_swap_account)
  1966. res_counter_uncharge(&old->memsw, bytes);
  1967. stock->nr_pages = 0;
  1968. }
  1969. stock->cached = NULL;
  1970. }
  1971. /*
  1972. * This must be called under preempt disabled or must be called by
  1973. * a thread which is pinned to local cpu.
  1974. */
  1975. static void drain_local_stock(struct work_struct *dummy)
  1976. {
  1977. struct memcg_stock_pcp *stock = &__get_cpu_var(memcg_stock);
  1978. drain_stock(stock);
  1979. clear_bit(FLUSHING_CACHED_CHARGE, &stock->flags);
  1980. }
  1981. /*
  1982. * Cache charges(val) which is from res_counter, to local per_cpu area.
  1983. * This will be consumed by consume_stock() function, later.
  1984. */
  1985. static void refill_stock(struct mem_cgroup *memcg, unsigned int nr_pages)
  1986. {
  1987. struct memcg_stock_pcp *stock = &get_cpu_var(memcg_stock);
  1988. if (stock->cached != memcg) { /* reset if necessary */
  1989. drain_stock(stock);
  1990. stock->cached = memcg;
  1991. }
  1992. stock->nr_pages += nr_pages;
  1993. put_cpu_var(memcg_stock);
  1994. }
  1995. /*
  1996. * Drains all per-CPU charge caches for given root_memcg resp. subtree
  1997. * of the hierarchy under it. sync flag says whether we should block
  1998. * until the work is done.
  1999. */
  2000. static void drain_all_stock(struct mem_cgroup *root_memcg, bool sync)
  2001. {
  2002. int cpu, curcpu;
  2003. /* Notify other cpus that system-wide "drain" is running */
  2004. get_online_cpus();
  2005. curcpu = get_cpu();
  2006. for_each_online_cpu(cpu) {
  2007. struct memcg_stock_pcp *stock = &per_cpu(memcg_stock, cpu);
  2008. struct mem_cgroup *memcg;
  2009. memcg = stock->cached;
  2010. if (!memcg || !stock->nr_pages)
  2011. continue;
  2012. if (!mem_cgroup_same_or_subtree(root_memcg, memcg))
  2013. continue;
  2014. if (!test_and_set_bit(FLUSHING_CACHED_CHARGE, &stock->flags)) {
  2015. if (cpu == curcpu)
  2016. drain_local_stock(&stock->work);
  2017. else
  2018. schedule_work_on(cpu, &stock->work);
  2019. }
  2020. }
  2021. put_cpu();
  2022. if (!sync)
  2023. goto out;
  2024. for_each_online_cpu(cpu) {
  2025. struct memcg_stock_pcp *stock = &per_cpu(memcg_stock, cpu);
  2026. if (test_bit(FLUSHING_CACHED_CHARGE, &stock->flags))
  2027. flush_work(&stock->work);
  2028. }
  2029. out:
  2030. put_online_cpus();
  2031. }
  2032. /*
  2033. * Tries to drain stocked charges in other cpus. This function is asynchronous
  2034. * and just put a work per cpu for draining localy on each cpu. Caller can
  2035. * expects some charges will be back to res_counter later but cannot wait for
  2036. * it.
  2037. */
  2038. static void drain_all_stock_async(struct mem_cgroup *root_memcg)
  2039. {
  2040. /*
  2041. * If someone calls draining, avoid adding more kworker runs.
  2042. */
  2043. if (!mutex_trylock(&percpu_charge_mutex))
  2044. return;
  2045. drain_all_stock(root_memcg, false);
  2046. mutex_unlock(&percpu_charge_mutex);
  2047. }
  2048. /* This is a synchronous drain interface. */
  2049. static void drain_all_stock_sync(struct mem_cgroup *root_memcg)
  2050. {
  2051. /* called when force_empty is called */
  2052. mutex_lock(&percpu_charge_mutex);
  2053. drain_all_stock(root_memcg, true);
  2054. mutex_unlock(&percpu_charge_mutex);
  2055. }
  2056. /*
  2057. * This function drains percpu counter value from DEAD cpu and
  2058. * move it to local cpu. Note that this function can be preempted.
  2059. */
  2060. static void mem_cgroup_drain_pcp_counter(struct mem_cgroup *memcg, int cpu)
  2061. {
  2062. int i;
  2063. spin_lock(&memcg->pcp_counter_lock);
  2064. for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
  2065. long x = per_cpu(memcg->stat->count[i], cpu);
  2066. per_cpu(memcg->stat->count[i], cpu) = 0;
  2067. memcg->nocpu_base.count[i] += x;
  2068. }
  2069. for (i = 0; i < MEM_CGROUP_EVENTS_NSTATS; i++) {
  2070. unsigned long x = per_cpu(memcg->stat->events[i], cpu);
  2071. per_cpu(memcg->stat->events[i], cpu) = 0;
  2072. memcg->nocpu_base.events[i] += x;
  2073. }
  2074. spin_unlock(&memcg->pcp_counter_lock);
  2075. }
  2076. static int __cpuinit memcg_cpu_hotplug_callback(struct notifier_block *nb,
  2077. unsigned long action,
  2078. void *hcpu)
  2079. {
  2080. int cpu = (unsigned long)hcpu;
  2081. struct memcg_stock_pcp *stock;
  2082. struct mem_cgroup *iter;
  2083. if (action == CPU_ONLINE)
  2084. return NOTIFY_OK;
  2085. if (action != CPU_DEAD && action != CPU_DEAD_FROZEN)
  2086. return NOTIFY_OK;
  2087. for_each_mem_cgroup(iter)
  2088. mem_cgroup_drain_pcp_counter(iter, cpu);
  2089. stock = &per_cpu(memcg_stock, cpu);
  2090. drain_stock(stock);
  2091. return NOTIFY_OK;
  2092. }
  2093. /* See __mem_cgroup_try_charge() for details */
  2094. enum {
  2095. CHARGE_OK, /* success */
  2096. CHARGE_RETRY, /* need to retry but retry is not bad */
  2097. CHARGE_NOMEM, /* we can't do more. return -ENOMEM */
  2098. CHARGE_WOULDBLOCK, /* GFP_WAIT wasn't set and no enough res. */
  2099. CHARGE_OOM_DIE, /* the current is killed because of OOM */
  2100. };
  2101. static int mem_cgroup_do_charge(struct mem_cgroup *memcg, gfp_t gfp_mask,
  2102. unsigned int nr_pages, unsigned int min_pages,
  2103. bool oom_check)
  2104. {
  2105. unsigned long csize = nr_pages * PAGE_SIZE;
  2106. struct mem_cgroup *mem_over_limit;
  2107. struct res_counter *fail_res;
  2108. unsigned long flags = 0;
  2109. int ret;
  2110. ret = res_counter_charge(&memcg->res, csize, &fail_res);
  2111. if (likely(!ret)) {
  2112. if (!do_swap_account)
  2113. return CHARGE_OK;
  2114. ret = res_counter_charge(&memcg->memsw, csize, &fail_res);
  2115. if (likely(!ret))
  2116. return CHARGE_OK;
  2117. res_counter_uncharge(&memcg->res, csize);
  2118. mem_over_limit = mem_cgroup_from_res_counter(fail_res, memsw);
  2119. flags |= MEM_CGROUP_RECLAIM_NOSWAP;
  2120. } else
  2121. mem_over_limit = mem_cgroup_from_res_counter(fail_res, res);
  2122. /*
  2123. * Never reclaim on behalf of optional batching, retry with a
  2124. * single page instead.
  2125. */
  2126. if (nr_pages > min_pages)
  2127. return CHARGE_RETRY;
  2128. if (!(gfp_mask & __GFP_WAIT))
  2129. return CHARGE_WOULDBLOCK;
  2130. if (gfp_mask & __GFP_NORETRY)
  2131. return CHARGE_NOMEM;
  2132. ret = mem_cgroup_reclaim(mem_over_limit, gfp_mask, flags);
  2133. if (mem_cgroup_margin(mem_over_limit) >= nr_pages)
  2134. return CHARGE_RETRY;
  2135. /*
  2136. * Even though the limit is exceeded at this point, reclaim
  2137. * may have been able to free some pages. Retry the charge
  2138. * before killing the task.
  2139. *
  2140. * Only for regular pages, though: huge pages are rather
  2141. * unlikely to succeed so close to the limit, and we fall back
  2142. * to regular pages anyway in case of failure.
  2143. */
  2144. if (nr_pages <= (1 << PAGE_ALLOC_COSTLY_ORDER) && ret)
  2145. return CHARGE_RETRY;
  2146. /*
  2147. * At task move, charge accounts can be doubly counted. So, it's
  2148. * better to wait until the end of task_move if something is going on.
  2149. */
  2150. if (mem_cgroup_wait_acct_move(mem_over_limit))
  2151. return CHARGE_RETRY;
  2152. /* If we don't need to call oom-killer at el, return immediately */
  2153. if (!oom_check)
  2154. return CHARGE_NOMEM;
  2155. /* check OOM */
  2156. if (!mem_cgroup_handle_oom(mem_over_limit, gfp_mask, get_order(csize)))
  2157. return CHARGE_OOM_DIE;
  2158. return CHARGE_RETRY;
  2159. }
  2160. /*
  2161. * __mem_cgroup_try_charge() does
  2162. * 1. detect memcg to be charged against from passed *mm and *ptr,
  2163. * 2. update res_counter
  2164. * 3. call memory reclaim if necessary.
  2165. *
  2166. * In some special case, if the task is fatal, fatal_signal_pending() or
  2167. * has TIF_MEMDIE, this function returns -EINTR while writing root_mem_cgroup
  2168. * to *ptr. There are two reasons for this. 1: fatal threads should quit as soon
  2169. * as possible without any hazards. 2: all pages should have a valid
  2170. * pc->mem_cgroup. If mm is NULL and the caller doesn't pass a valid memcg
  2171. * pointer, that is treated as a charge to root_mem_cgroup.
  2172. *
  2173. * So __mem_cgroup_try_charge() will return
  2174. * 0 ... on success, filling *ptr with a valid memcg pointer.
  2175. * -ENOMEM ... charge failure because of resource limits.
  2176. * -EINTR ... if thread is fatal. *ptr is filled with root_mem_cgroup.
  2177. *
  2178. * Unlike the exported interface, an "oom" parameter is added. if oom==true,
  2179. * the oom-killer can be invoked.
  2180. */
  2181. static int __mem_cgroup_try_charge(struct mm_struct *mm,
  2182. gfp_t gfp_mask,
  2183. unsigned int nr_pages,
  2184. struct mem_cgroup **ptr,
  2185. bool oom)
  2186. {
  2187. unsigned int batch = max(CHARGE_BATCH, nr_pages);
  2188. int nr_oom_retries = MEM_CGROUP_RECLAIM_RETRIES;
  2189. struct mem_cgroup *memcg = NULL;
  2190. int ret;
  2191. /*
  2192. * Unlike gloval-vm's OOM-kill, we're not in memory shortage
  2193. * in system level. So, allow to go ahead dying process in addition to
  2194. * MEMDIE process.
  2195. */
  2196. if (unlikely(test_thread_flag(TIF_MEMDIE)
  2197. || fatal_signal_pending(current)))
  2198. goto bypass;
  2199. /*
  2200. * We always charge the cgroup the mm_struct belongs to.
  2201. * The mm_struct's mem_cgroup changes on task migration if the
  2202. * thread group leader migrates. It's possible that mm is not
  2203. * set, if so charge the root memcg (happens for pagecache usage).
  2204. */
  2205. if (!*ptr && !mm)
  2206. *ptr = root_mem_cgroup;
  2207. again:
  2208. if (*ptr) { /* css should be a valid one */
  2209. memcg = *ptr;
  2210. if (mem_cgroup_is_root(memcg))
  2211. goto done;
  2212. if (consume_stock(memcg, nr_pages))
  2213. goto done;
  2214. css_get(&memcg->css);
  2215. } else {
  2216. struct task_struct *p;
  2217. rcu_read_lock();
  2218. p = rcu_dereference(mm->owner);
  2219. /*
  2220. * Because we don't have task_lock(), "p" can exit.
  2221. * In that case, "memcg" can point to root or p can be NULL with
  2222. * race with swapoff. Then, we have small risk of mis-accouning.
  2223. * But such kind of mis-account by race always happens because
  2224. * we don't have cgroup_mutex(). It's overkill and we allo that
  2225. * small race, here.
  2226. * (*) swapoff at el will charge against mm-struct not against
  2227. * task-struct. So, mm->owner can be NULL.
  2228. */
  2229. memcg = mem_cgroup_from_task(p);
  2230. if (!memcg)
  2231. memcg = root_mem_cgroup;
  2232. if (mem_cgroup_is_root(memcg)) {
  2233. rcu_read_unlock();
  2234. goto done;
  2235. }
  2236. if (consume_stock(memcg, nr_pages)) {
  2237. /*
  2238. * It seems dagerous to access memcg without css_get().
  2239. * But considering how consume_stok works, it's not
  2240. * necessary. If consume_stock success, some charges
  2241. * from this memcg are cached on this cpu. So, we
  2242. * don't need to call css_get()/css_tryget() before
  2243. * calling consume_stock().
  2244. */
  2245. rcu_read_unlock();
  2246. goto done;
  2247. }
  2248. /* after here, we may be blocked. we need to get refcnt */
  2249. if (!css_tryget(&memcg->css)) {
  2250. rcu_read_unlock();
  2251. goto again;
  2252. }
  2253. rcu_read_unlock();
  2254. }
  2255. do {
  2256. bool oom_check;
  2257. /* If killed, bypass charge */
  2258. if (fatal_signal_pending(current)) {
  2259. css_put(&memcg->css);
  2260. goto bypass;
  2261. }
  2262. oom_check = false;
  2263. if (oom && !nr_oom_retries) {
  2264. oom_check = true;
  2265. nr_oom_retries = MEM_CGROUP_RECLAIM_RETRIES;
  2266. }
  2267. ret = mem_cgroup_do_charge(memcg, gfp_mask, batch, nr_pages,
  2268. oom_check);
  2269. switch (ret) {
  2270. case CHARGE_OK:
  2271. break;
  2272. case CHARGE_RETRY: /* not in OOM situation but retry */
  2273. batch = nr_pages;
  2274. css_put(&memcg->css);
  2275. memcg = NULL;
  2276. goto again;
  2277. case CHARGE_WOULDBLOCK: /* !__GFP_WAIT */
  2278. css_put(&memcg->css);
  2279. goto nomem;
  2280. case CHARGE_NOMEM: /* OOM routine works */
  2281. if (!oom) {
  2282. css_put(&memcg->css);
  2283. goto nomem;
  2284. }
  2285. /* If oom, we never return -ENOMEM */
  2286. nr_oom_retries--;
  2287. break;
  2288. case CHARGE_OOM_DIE: /* Killed by OOM Killer */
  2289. css_put(&memcg->css);
  2290. goto bypass;
  2291. }
  2292. } while (ret != CHARGE_OK);
  2293. if (batch > nr_pages)
  2294. refill_stock(memcg, batch - nr_pages);
  2295. css_put(&memcg->css);
  2296. done:
  2297. *ptr = memcg;
  2298. return 0;
  2299. nomem:
  2300. *ptr = NULL;
  2301. return -ENOMEM;
  2302. bypass:
  2303. *ptr = root_mem_cgroup;
  2304. return -EINTR;
  2305. }
  2306. /*
  2307. * Somemtimes we have to undo a charge we got by try_charge().
  2308. * This function is for that and do uncharge, put css's refcnt.
  2309. * gotten by try_charge().
  2310. */
  2311. static void __mem_cgroup_cancel_charge(struct mem_cgroup *memcg,
  2312. unsigned int nr_pages)
  2313. {
  2314. if (!mem_cgroup_is_root(memcg)) {
  2315. unsigned long bytes = nr_pages * PAGE_SIZE;
  2316. res_counter_uncharge(&memcg->res, bytes);
  2317. if (do_swap_account)
  2318. res_counter_uncharge(&memcg->memsw, bytes);
  2319. }
  2320. }
  2321. /*
  2322. * Cancel chrages in this cgroup....doesn't propagate to parent cgroup.
  2323. * This is useful when moving usage to parent cgroup.
  2324. */
  2325. static void __mem_cgroup_cancel_local_charge(struct mem_cgroup *memcg,
  2326. unsigned int nr_pages)
  2327. {
  2328. unsigned long bytes = nr_pages * PAGE_SIZE;
  2329. if (mem_cgroup_is_root(memcg))
  2330. return;
  2331. res_counter_uncharge_until(&memcg->res, memcg->res.parent, bytes);
  2332. if (do_swap_account)
  2333. res_counter_uncharge_until(&memcg->memsw,
  2334. memcg->memsw.parent, bytes);
  2335. }
  2336. /*
  2337. * A helper function to get mem_cgroup from ID. must be called under
  2338. * rcu_read_lock(). The caller is responsible for calling css_tryget if
  2339. * the mem_cgroup is used for charging. (dropping refcnt from swap can be
  2340. * called against removed memcg.)
  2341. */
  2342. static struct mem_cgroup *mem_cgroup_lookup(unsigned short id)
  2343. {
  2344. struct cgroup_subsys_state *css;
  2345. /* ID 0 is unused ID */
  2346. if (!id)
  2347. return NULL;
  2348. css = css_lookup(&mem_cgroup_subsys, id);
  2349. if (!css)
  2350. return NULL;
  2351. return mem_cgroup_from_css(css);
  2352. }
  2353. struct mem_cgroup *try_get_mem_cgroup_from_page(struct page *page)
  2354. {
  2355. struct mem_cgroup *memcg = NULL;
  2356. struct page_cgroup *pc;
  2357. unsigned short id;
  2358. swp_entry_t ent;
  2359. VM_BUG_ON(!PageLocked(page));
  2360. pc = lookup_page_cgroup(page);
  2361. lock_page_cgroup(pc);
  2362. if (PageCgroupUsed(pc)) {
  2363. memcg = pc->mem_cgroup;
  2364. if (memcg && !css_tryget(&memcg->css))
  2365. memcg = NULL;
  2366. } else if (PageSwapCache(page)) {
  2367. ent.val = page_private(page);
  2368. id = lookup_swap_cgroup_id(ent);
  2369. rcu_read_lock();
  2370. memcg = mem_cgroup_lookup(id);
  2371. if (memcg && !css_tryget(&memcg->css))
  2372. memcg = NULL;
  2373. rcu_read_unlock();
  2374. }
  2375. unlock_page_cgroup(pc);
  2376. return memcg;
  2377. }
  2378. static void __mem_cgroup_commit_charge(struct mem_cgroup *memcg,
  2379. struct page *page,
  2380. unsigned int nr_pages,
  2381. enum charge_type ctype,
  2382. bool lrucare)
  2383. {
  2384. struct page_cgroup *pc = lookup_page_cgroup(page);
  2385. struct zone *uninitialized_var(zone);
  2386. struct lruvec *lruvec;
  2387. bool was_on_lru = false;
  2388. bool anon;
  2389. lock_page_cgroup(pc);
  2390. VM_BUG_ON(PageCgroupUsed(pc));
  2391. /*
  2392. * we don't need page_cgroup_lock about tail pages, becase they are not
  2393. * accessed by any other context at this point.
  2394. */
  2395. /*
  2396. * In some cases, SwapCache and FUSE(splice_buf->radixtree), the page
  2397. * may already be on some other mem_cgroup's LRU. Take care of it.
  2398. */
  2399. if (lrucare) {
  2400. zone = page_zone(page);
  2401. spin_lock_irq(&zone->lru_lock);
  2402. if (PageLRU(page)) {
  2403. lruvec = mem_cgroup_zone_lruvec(zone, pc->mem_cgroup);
  2404. ClearPageLRU(page);
  2405. del_page_from_lru_list(page, lruvec, page_lru(page));
  2406. was_on_lru = true;
  2407. }
  2408. }
  2409. pc->mem_cgroup = memcg;
  2410. /*
  2411. * We access a page_cgroup asynchronously without lock_page_cgroup().
  2412. * Especially when a page_cgroup is taken from a page, pc->mem_cgroup
  2413. * is accessed after testing USED bit. To make pc->mem_cgroup visible
  2414. * before USED bit, we need memory barrier here.
  2415. * See mem_cgroup_add_lru_list(), etc.
  2416. */
  2417. smp_wmb();
  2418. SetPageCgroupUsed(pc);
  2419. if (lrucare) {
  2420. if (was_on_lru) {
  2421. lruvec = mem_cgroup_zone_lruvec(zone, pc->mem_cgroup);
  2422. VM_BUG_ON(PageLRU(page));
  2423. SetPageLRU(page);
  2424. add_page_to_lru_list(page, lruvec, page_lru(page));
  2425. }
  2426. spin_unlock_irq(&zone->lru_lock);
  2427. }
  2428. if (ctype == MEM_CGROUP_CHARGE_TYPE_ANON)
  2429. anon = true;
  2430. else
  2431. anon = false;
  2432. mem_cgroup_charge_statistics(memcg, anon, nr_pages);
  2433. unlock_page_cgroup(pc);
  2434. /*
  2435. * "charge_statistics" updated event counter. Then, check it.
  2436. * Insert ancestor (and ancestor's ancestors), to softlimit RB-tree.
  2437. * if they exceeds softlimit.
  2438. */
  2439. memcg_check_events(memcg, page);
  2440. }
  2441. #ifdef CONFIG_MEMCG_KMEM
  2442. static inline bool memcg_can_account_kmem(struct mem_cgroup *memcg)
  2443. {
  2444. return !mem_cgroup_disabled() && !mem_cgroup_is_root(memcg) &&
  2445. (memcg->kmem_account_flags & KMEM_ACCOUNTED_MASK);
  2446. }
  2447. static int memcg_charge_kmem(struct mem_cgroup *memcg, gfp_t gfp, u64 size)
  2448. {
  2449. struct res_counter *fail_res;
  2450. struct mem_cgroup *_memcg;
  2451. int ret = 0;
  2452. bool may_oom;
  2453. ret = res_counter_charge(&memcg->kmem, size, &fail_res);
  2454. if (ret)
  2455. return ret;
  2456. /*
  2457. * Conditions under which we can wait for the oom_killer. Those are
  2458. * the same conditions tested by the core page allocator
  2459. */
  2460. may_oom = (gfp & __GFP_FS) && !(gfp & __GFP_NORETRY);
  2461. _memcg = memcg;
  2462. ret = __mem_cgroup_try_charge(NULL, gfp, size >> PAGE_SHIFT,
  2463. &_memcg, may_oom);
  2464. if (ret == -EINTR) {
  2465. /*
  2466. * __mem_cgroup_try_charge() chosed to bypass to root due to
  2467. * OOM kill or fatal signal. Since our only options are to
  2468. * either fail the allocation or charge it to this cgroup, do
  2469. * it as a temporary condition. But we can't fail. From a
  2470. * kmem/slab perspective, the cache has already been selected,
  2471. * by mem_cgroup_kmem_get_cache(), so it is too late to change
  2472. * our minds.
  2473. *
  2474. * This condition will only trigger if the task entered
  2475. * memcg_charge_kmem in a sane state, but was OOM-killed during
  2476. * __mem_cgroup_try_charge() above. Tasks that were already
  2477. * dying when the allocation triggers should have been already
  2478. * directed to the root cgroup in memcontrol.h
  2479. */
  2480. res_counter_charge_nofail(&memcg->res, size, &fail_res);
  2481. if (do_swap_account)
  2482. res_counter_charge_nofail(&memcg->memsw, size,
  2483. &fail_res);
  2484. ret = 0;
  2485. } else if (ret)
  2486. res_counter_uncharge(&memcg->kmem, size);
  2487. return ret;
  2488. }
  2489. static void memcg_uncharge_kmem(struct mem_cgroup *memcg, u64 size)
  2490. {
  2491. res_counter_uncharge(&memcg->res, size);
  2492. if (do_swap_account)
  2493. res_counter_uncharge(&memcg->memsw, size);
  2494. /* Not down to 0 */
  2495. if (res_counter_uncharge(&memcg->kmem, size))
  2496. return;
  2497. if (memcg_kmem_test_and_clear_dead(memcg))
  2498. mem_cgroup_put(memcg);
  2499. }
  2500. void memcg_cache_list_add(struct mem_cgroup *memcg, struct kmem_cache *cachep)
  2501. {
  2502. if (!memcg)
  2503. return;
  2504. mutex_lock(&memcg->slab_caches_mutex);
  2505. list_add(&cachep->memcg_params->list, &memcg->memcg_slab_caches);
  2506. mutex_unlock(&memcg->slab_caches_mutex);
  2507. }
  2508. /*
  2509. * helper for acessing a memcg's index. It will be used as an index in the
  2510. * child cache array in kmem_cache, and also to derive its name. This function
  2511. * will return -1 when this is not a kmem-limited memcg.
  2512. */
  2513. int memcg_cache_id(struct mem_cgroup *memcg)
  2514. {
  2515. return memcg ? memcg->kmemcg_id : -1;
  2516. }
  2517. /*
  2518. * This ends up being protected by the set_limit mutex, during normal
  2519. * operation, because that is its main call site.
  2520. *
  2521. * But when we create a new cache, we can call this as well if its parent
  2522. * is kmem-limited. That will have to hold set_limit_mutex as well.
  2523. */
  2524. int memcg_update_cache_sizes(struct mem_cgroup *memcg)
  2525. {
  2526. int num, ret;
  2527. num = ida_simple_get(&kmem_limited_groups,
  2528. 0, MEMCG_CACHES_MAX_SIZE, GFP_KERNEL);
  2529. if (num < 0)
  2530. return num;
  2531. /*
  2532. * After this point, kmem_accounted (that we test atomically in
  2533. * the beginning of this conditional), is no longer 0. This
  2534. * guarantees only one process will set the following boolean
  2535. * to true. We don't need test_and_set because we're protected
  2536. * by the set_limit_mutex anyway.
  2537. */
  2538. memcg_kmem_set_activated(memcg);
  2539. ret = memcg_update_all_caches(num+1);
  2540. if (ret) {
  2541. ida_simple_remove(&kmem_limited_groups, num);
  2542. memcg_kmem_clear_activated(memcg);
  2543. return ret;
  2544. }
  2545. memcg->kmemcg_id = num;
  2546. INIT_LIST_HEAD(&memcg->memcg_slab_caches);
  2547. mutex_init(&memcg->slab_caches_mutex);
  2548. return 0;
  2549. }
  2550. static size_t memcg_caches_array_size(int num_groups)
  2551. {
  2552. ssize_t size;
  2553. if (num_groups <= 0)
  2554. return 0;
  2555. size = 2 * num_groups;
  2556. if (size < MEMCG_CACHES_MIN_SIZE)
  2557. size = MEMCG_CACHES_MIN_SIZE;
  2558. else if (size > MEMCG_CACHES_MAX_SIZE)
  2559. size = MEMCG_CACHES_MAX_SIZE;
  2560. return size;
  2561. }
  2562. /*
  2563. * We should update the current array size iff all caches updates succeed. This
  2564. * can only be done from the slab side. The slab mutex needs to be held when
  2565. * calling this.
  2566. */
  2567. void memcg_update_array_size(int num)
  2568. {
  2569. if (num > memcg_limited_groups_array_size)
  2570. memcg_limited_groups_array_size = memcg_caches_array_size(num);
  2571. }
  2572. int memcg_update_cache_size(struct kmem_cache *s, int num_groups)
  2573. {
  2574. struct memcg_cache_params *cur_params = s->memcg_params;
  2575. VM_BUG_ON(s->memcg_params && !s->memcg_params->is_root_cache);
  2576. if (num_groups > memcg_limited_groups_array_size) {
  2577. int i;
  2578. ssize_t size = memcg_caches_array_size(num_groups);
  2579. size *= sizeof(void *);
  2580. size += sizeof(struct memcg_cache_params);
  2581. s->memcg_params = kzalloc(size, GFP_KERNEL);
  2582. if (!s->memcg_params) {
  2583. s->memcg_params = cur_params;
  2584. return -ENOMEM;
  2585. }
  2586. s->memcg_params->is_root_cache = true;
  2587. /*
  2588. * There is the chance it will be bigger than
  2589. * memcg_limited_groups_array_size, if we failed an allocation
  2590. * in a cache, in which case all caches updated before it, will
  2591. * have a bigger array.
  2592. *
  2593. * But if that is the case, the data after
  2594. * memcg_limited_groups_array_size is certainly unused
  2595. */
  2596. for (i = 0; i < memcg_limited_groups_array_size; i++) {
  2597. if (!cur_params->memcg_caches[i])
  2598. continue;
  2599. s->memcg_params->memcg_caches[i] =
  2600. cur_params->memcg_caches[i];
  2601. }
  2602. /*
  2603. * Ideally, we would wait until all caches succeed, and only
  2604. * then free the old one. But this is not worth the extra
  2605. * pointer per-cache we'd have to have for this.
  2606. *
  2607. * It is not a big deal if some caches are left with a size
  2608. * bigger than the others. And all updates will reset this
  2609. * anyway.
  2610. */
  2611. kfree(cur_params);
  2612. }
  2613. return 0;
  2614. }
  2615. int memcg_register_cache(struct mem_cgroup *memcg, struct kmem_cache *s)
  2616. {
  2617. size_t size = sizeof(struct memcg_cache_params);
  2618. if (!memcg_kmem_enabled())
  2619. return 0;
  2620. if (!memcg)
  2621. size += memcg_limited_groups_array_size * sizeof(void *);
  2622. s->memcg_params = kzalloc(size, GFP_KERNEL);
  2623. if (!s->memcg_params)
  2624. return -ENOMEM;
  2625. if (memcg)
  2626. s->memcg_params->memcg = memcg;
  2627. return 0;
  2628. }
  2629. void memcg_release_cache(struct kmem_cache *s)
  2630. {
  2631. struct kmem_cache *root;
  2632. struct mem_cgroup *memcg;
  2633. int id;
  2634. /*
  2635. * This happens, for instance, when a root cache goes away before we
  2636. * add any memcg.
  2637. */
  2638. if (!s->memcg_params)
  2639. return;
  2640. if (s->memcg_params->is_root_cache)
  2641. goto out;
  2642. memcg = s->memcg_params->memcg;
  2643. id = memcg_cache_id(memcg);
  2644. root = s->memcg_params->root_cache;
  2645. root->memcg_params->memcg_caches[id] = NULL;
  2646. mem_cgroup_put(memcg);
  2647. mutex_lock(&memcg->slab_caches_mutex);
  2648. list_del(&s->memcg_params->list);
  2649. mutex_unlock(&memcg->slab_caches_mutex);
  2650. out:
  2651. kfree(s->memcg_params);
  2652. }
  2653. /*
  2654. * During the creation a new cache, we need to disable our accounting mechanism
  2655. * altogether. This is true even if we are not creating, but rather just
  2656. * enqueing new caches to be created.
  2657. *
  2658. * This is because that process will trigger allocations; some visible, like
  2659. * explicit kmallocs to auxiliary data structures, name strings and internal
  2660. * cache structures; some well concealed, like INIT_WORK() that can allocate
  2661. * objects during debug.
  2662. *
  2663. * If any allocation happens during memcg_kmem_get_cache, we will recurse back
  2664. * to it. This may not be a bounded recursion: since the first cache creation
  2665. * failed to complete (waiting on the allocation), we'll just try to create the
  2666. * cache again, failing at the same point.
  2667. *
  2668. * memcg_kmem_get_cache is prepared to abort after seeing a positive count of
  2669. * memcg_kmem_skip_account. So we enclose anything that might allocate memory
  2670. * inside the following two functions.
  2671. */
  2672. static inline void memcg_stop_kmem_account(void)
  2673. {
  2674. VM_BUG_ON(!current->mm);
  2675. current->memcg_kmem_skip_account++;
  2676. }
  2677. static inline void memcg_resume_kmem_account(void)
  2678. {
  2679. VM_BUG_ON(!current->mm);
  2680. current->memcg_kmem_skip_account--;
  2681. }
  2682. static char *memcg_cache_name(struct mem_cgroup *memcg, struct kmem_cache *s)
  2683. {
  2684. char *name;
  2685. struct dentry *dentry;
  2686. rcu_read_lock();
  2687. dentry = rcu_dereference(memcg->css.cgroup->dentry);
  2688. rcu_read_unlock();
  2689. BUG_ON(dentry == NULL);
  2690. name = kasprintf(GFP_KERNEL, "%s(%d:%s)", s->name,
  2691. memcg_cache_id(memcg), dentry->d_name.name);
  2692. return name;
  2693. }
  2694. static struct kmem_cache *kmem_cache_dup(struct mem_cgroup *memcg,
  2695. struct kmem_cache *s)
  2696. {
  2697. char *name;
  2698. struct kmem_cache *new;
  2699. name = memcg_cache_name(memcg, s);
  2700. if (!name)
  2701. return NULL;
  2702. new = kmem_cache_create_memcg(memcg, name, s->object_size, s->align,
  2703. (s->flags & ~SLAB_PANIC), s->ctor);
  2704. if (new)
  2705. new->allocflags |= __GFP_KMEMCG;
  2706. kfree(name);
  2707. return new;
  2708. }
  2709. /*
  2710. * This lock protects updaters, not readers. We want readers to be as fast as
  2711. * they can, and they will either see NULL or a valid cache value. Our model
  2712. * allow them to see NULL, in which case the root memcg will be selected.
  2713. *
  2714. * We need this lock because multiple allocations to the same cache from a non
  2715. * will span more than one worker. Only one of them can create the cache.
  2716. */
  2717. static DEFINE_MUTEX(memcg_cache_mutex);
  2718. static struct kmem_cache *memcg_create_kmem_cache(struct mem_cgroup *memcg,
  2719. struct kmem_cache *cachep)
  2720. {
  2721. struct kmem_cache *new_cachep;
  2722. int idx;
  2723. BUG_ON(!memcg_can_account_kmem(memcg));
  2724. idx = memcg_cache_id(memcg);
  2725. mutex_lock(&memcg_cache_mutex);
  2726. new_cachep = cachep->memcg_params->memcg_caches[idx];
  2727. if (new_cachep)
  2728. goto out;
  2729. new_cachep = kmem_cache_dup(memcg, cachep);
  2730. if (new_cachep == NULL) {
  2731. new_cachep = cachep;
  2732. goto out;
  2733. }
  2734. mem_cgroup_get(memcg);
  2735. new_cachep->memcg_params->root_cache = cachep;
  2736. cachep->memcg_params->memcg_caches[idx] = new_cachep;
  2737. /*
  2738. * the readers won't lock, make sure everybody sees the updated value,
  2739. * so they won't put stuff in the queue again for no reason
  2740. */
  2741. wmb();
  2742. out:
  2743. mutex_unlock(&memcg_cache_mutex);
  2744. return new_cachep;
  2745. }
  2746. struct create_work {
  2747. struct mem_cgroup *memcg;
  2748. struct kmem_cache *cachep;
  2749. struct work_struct work;
  2750. };
  2751. static void memcg_create_cache_work_func(struct work_struct *w)
  2752. {
  2753. struct create_work *cw;
  2754. cw = container_of(w, struct create_work, work);
  2755. memcg_create_kmem_cache(cw->memcg, cw->cachep);
  2756. /* Drop the reference gotten when we enqueued. */
  2757. css_put(&cw->memcg->css);
  2758. kfree(cw);
  2759. }
  2760. /*
  2761. * Enqueue the creation of a per-memcg kmem_cache.
  2762. * Called with rcu_read_lock.
  2763. */
  2764. static void __memcg_create_cache_enqueue(struct mem_cgroup *memcg,
  2765. struct kmem_cache *cachep)
  2766. {
  2767. struct create_work *cw;
  2768. cw = kmalloc(sizeof(struct create_work), GFP_NOWAIT);
  2769. if (cw == NULL)
  2770. return;
  2771. /* The corresponding put will be done in the workqueue. */
  2772. if (!css_tryget(&memcg->css)) {
  2773. kfree(cw);
  2774. return;
  2775. }
  2776. cw->memcg = memcg;
  2777. cw->cachep = cachep;
  2778. INIT_WORK(&cw->work, memcg_create_cache_work_func);
  2779. schedule_work(&cw->work);
  2780. }
  2781. static void memcg_create_cache_enqueue(struct mem_cgroup *memcg,
  2782. struct kmem_cache *cachep)
  2783. {
  2784. /*
  2785. * We need to stop accounting when we kmalloc, because if the
  2786. * corresponding kmalloc cache is not yet created, the first allocation
  2787. * in __memcg_create_cache_enqueue will recurse.
  2788. *
  2789. * However, it is better to enclose the whole function. Depending on
  2790. * the debugging options enabled, INIT_WORK(), for instance, can
  2791. * trigger an allocation. This too, will make us recurse. Because at
  2792. * this point we can't allow ourselves back into memcg_kmem_get_cache,
  2793. * the safest choice is to do it like this, wrapping the whole function.
  2794. */
  2795. memcg_stop_kmem_account();
  2796. __memcg_create_cache_enqueue(memcg, cachep);
  2797. memcg_resume_kmem_account();
  2798. }
  2799. /*
  2800. * Return the kmem_cache we're supposed to use for a slab allocation.
  2801. * We try to use the current memcg's version of the cache.
  2802. *
  2803. * If the cache does not exist yet, if we are the first user of it,
  2804. * we either create it immediately, if possible, or create it asynchronously
  2805. * in a workqueue.
  2806. * In the latter case, we will let the current allocation go through with
  2807. * the original cache.
  2808. *
  2809. * Can't be called in interrupt context or from kernel threads.
  2810. * This function needs to be called with rcu_read_lock() held.
  2811. */
  2812. struct kmem_cache *__memcg_kmem_get_cache(struct kmem_cache *cachep,
  2813. gfp_t gfp)
  2814. {
  2815. struct mem_cgroup *memcg;
  2816. int idx;
  2817. VM_BUG_ON(!cachep->memcg_params);
  2818. VM_BUG_ON(!cachep->memcg_params->is_root_cache);
  2819. if (!current->mm || current->memcg_kmem_skip_account)
  2820. return cachep;
  2821. rcu_read_lock();
  2822. memcg = mem_cgroup_from_task(rcu_dereference(current->mm->owner));
  2823. rcu_read_unlock();
  2824. if (!memcg_can_account_kmem(memcg))
  2825. return cachep;
  2826. idx = memcg_cache_id(memcg);
  2827. /*
  2828. * barrier to mare sure we're always seeing the up to date value. The
  2829. * code updating memcg_caches will issue a write barrier to match this.
  2830. */
  2831. read_barrier_depends();
  2832. if (unlikely(cachep->memcg_params->memcg_caches[idx] == NULL)) {
  2833. /*
  2834. * If we are in a safe context (can wait, and not in interrupt
  2835. * context), we could be be predictable and return right away.
  2836. * This would guarantee that the allocation being performed
  2837. * already belongs in the new cache.
  2838. *
  2839. * However, there are some clashes that can arrive from locking.
  2840. * For instance, because we acquire the slab_mutex while doing
  2841. * kmem_cache_dup, this means no further allocation could happen
  2842. * with the slab_mutex held.
  2843. *
  2844. * Also, because cache creation issue get_online_cpus(), this
  2845. * creates a lock chain: memcg_slab_mutex -> cpu_hotplug_mutex,
  2846. * that ends up reversed during cpu hotplug. (cpuset allocates
  2847. * a bunch of GFP_KERNEL memory during cpuup). Due to all that,
  2848. * better to defer everything.
  2849. */
  2850. memcg_create_cache_enqueue(memcg, cachep);
  2851. return cachep;
  2852. }
  2853. return cachep->memcg_params->memcg_caches[idx];
  2854. }
  2855. EXPORT_SYMBOL(__memcg_kmem_get_cache);
  2856. /*
  2857. * We need to verify if the allocation against current->mm->owner's memcg is
  2858. * possible for the given order. But the page is not allocated yet, so we'll
  2859. * need a further commit step to do the final arrangements.
  2860. *
  2861. * It is possible for the task to switch cgroups in this mean time, so at
  2862. * commit time, we can't rely on task conversion any longer. We'll then use
  2863. * the handle argument to return to the caller which cgroup we should commit
  2864. * against. We could also return the memcg directly and avoid the pointer
  2865. * passing, but a boolean return value gives better semantics considering
  2866. * the compiled-out case as well.
  2867. *
  2868. * Returning true means the allocation is possible.
  2869. */
  2870. bool
  2871. __memcg_kmem_newpage_charge(gfp_t gfp, struct mem_cgroup **_memcg, int order)
  2872. {
  2873. struct mem_cgroup *memcg;
  2874. int ret;
  2875. *_memcg = NULL;
  2876. memcg = try_get_mem_cgroup_from_mm(current->mm);
  2877. /*
  2878. * very rare case described in mem_cgroup_from_task. Unfortunately there
  2879. * isn't much we can do without complicating this too much, and it would
  2880. * be gfp-dependent anyway. Just let it go
  2881. */
  2882. if (unlikely(!memcg))
  2883. return true;
  2884. if (!memcg_can_account_kmem(memcg)) {
  2885. css_put(&memcg->css);
  2886. return true;
  2887. }
  2888. ret = memcg_charge_kmem(memcg, gfp, PAGE_SIZE << order);
  2889. if (!ret)
  2890. *_memcg = memcg;
  2891. css_put(&memcg->css);
  2892. return (ret == 0);
  2893. }
  2894. void __memcg_kmem_commit_charge(struct page *page, struct mem_cgroup *memcg,
  2895. int order)
  2896. {
  2897. struct page_cgroup *pc;
  2898. VM_BUG_ON(mem_cgroup_is_root(memcg));
  2899. /* The page allocation failed. Revert */
  2900. if (!page) {
  2901. memcg_uncharge_kmem(memcg, PAGE_SIZE << order);
  2902. return;
  2903. }
  2904. pc = lookup_page_cgroup(page);
  2905. lock_page_cgroup(pc);
  2906. pc->mem_cgroup = memcg;
  2907. SetPageCgroupUsed(pc);
  2908. unlock_page_cgroup(pc);
  2909. }
  2910. void __memcg_kmem_uncharge_pages(struct page *page, int order)
  2911. {
  2912. struct mem_cgroup *memcg = NULL;
  2913. struct page_cgroup *pc;
  2914. pc = lookup_page_cgroup(page);
  2915. /*
  2916. * Fast unlocked return. Theoretically might have changed, have to
  2917. * check again after locking.
  2918. */
  2919. if (!PageCgroupUsed(pc))
  2920. return;
  2921. lock_page_cgroup(pc);
  2922. if (PageCgroupUsed(pc)) {
  2923. memcg = pc->mem_cgroup;
  2924. ClearPageCgroupUsed(pc);
  2925. }
  2926. unlock_page_cgroup(pc);
  2927. /*
  2928. * We trust that only if there is a memcg associated with the page, it
  2929. * is a valid allocation
  2930. */
  2931. if (!memcg)
  2932. return;
  2933. VM_BUG_ON(mem_cgroup_is_root(memcg));
  2934. memcg_uncharge_kmem(memcg, PAGE_SIZE << order);
  2935. }
  2936. #endif /* CONFIG_MEMCG_KMEM */
  2937. #ifdef CONFIG_TRANSPARENT_HUGEPAGE
  2938. #define PCGF_NOCOPY_AT_SPLIT (1 << PCG_LOCK | 1 << PCG_MIGRATION)
  2939. /*
  2940. * Because tail pages are not marked as "used", set it. We're under
  2941. * zone->lru_lock, 'splitting on pmd' and compound_lock.
  2942. * charge/uncharge will be never happen and move_account() is done under
  2943. * compound_lock(), so we don't have to take care of races.
  2944. */
  2945. void mem_cgroup_split_huge_fixup(struct page *head)
  2946. {
  2947. struct page_cgroup *head_pc = lookup_page_cgroup(head);
  2948. struct page_cgroup *pc;
  2949. int i;
  2950. if (mem_cgroup_disabled())
  2951. return;
  2952. for (i = 1; i < HPAGE_PMD_NR; i++) {
  2953. pc = head_pc + i;
  2954. pc->mem_cgroup = head_pc->mem_cgroup;
  2955. smp_wmb();/* see __commit_charge() */
  2956. pc->flags = head_pc->flags & ~PCGF_NOCOPY_AT_SPLIT;
  2957. }
  2958. }
  2959. #endif /* CONFIG_TRANSPARENT_HUGEPAGE */
  2960. /**
  2961. * mem_cgroup_move_account - move account of the page
  2962. * @page: the page
  2963. * @nr_pages: number of regular pages (>1 for huge pages)
  2964. * @pc: page_cgroup of the page.
  2965. * @from: mem_cgroup which the page is moved from.
  2966. * @to: mem_cgroup which the page is moved to. @from != @to.
  2967. *
  2968. * The caller must confirm following.
  2969. * - page is not on LRU (isolate_page() is useful.)
  2970. * - compound_lock is held when nr_pages > 1
  2971. *
  2972. * This function doesn't do "charge" to new cgroup and doesn't do "uncharge"
  2973. * from old cgroup.
  2974. */
  2975. static int mem_cgroup_move_account(struct page *page,
  2976. unsigned int nr_pages,
  2977. struct page_cgroup *pc,
  2978. struct mem_cgroup *from,
  2979. struct mem_cgroup *to)
  2980. {
  2981. unsigned long flags;
  2982. int ret;
  2983. bool anon = PageAnon(page);
  2984. VM_BUG_ON(from == to);
  2985. VM_BUG_ON(PageLRU(page));
  2986. /*
  2987. * The page is isolated from LRU. So, collapse function
  2988. * will not handle this page. But page splitting can happen.
  2989. * Do this check under compound_page_lock(). The caller should
  2990. * hold it.
  2991. */
  2992. ret = -EBUSY;
  2993. if (nr_pages > 1 && !PageTransHuge(page))
  2994. goto out;
  2995. lock_page_cgroup(pc);
  2996. ret = -EINVAL;
  2997. if (!PageCgroupUsed(pc) || pc->mem_cgroup != from)
  2998. goto unlock;
  2999. move_lock_mem_cgroup(from, &flags);
  3000. if (!anon && page_mapped(page)) {
  3001. /* Update mapped_file data for mem_cgroup */
  3002. preempt_disable();
  3003. __this_cpu_dec(from->stat->count[MEM_CGROUP_STAT_FILE_MAPPED]);
  3004. __this_cpu_inc(to->stat->count[MEM_CGROUP_STAT_FILE_MAPPED]);
  3005. preempt_enable();
  3006. }
  3007. mem_cgroup_charge_statistics(from, anon, -nr_pages);
  3008. /* caller should have done css_get */
  3009. pc->mem_cgroup = to;
  3010. mem_cgroup_charge_statistics(to, anon, nr_pages);
  3011. move_unlock_mem_cgroup(from, &flags);
  3012. ret = 0;
  3013. unlock:
  3014. unlock_page_cgroup(pc);
  3015. /*
  3016. * check events
  3017. */
  3018. memcg_check_events(to, page);
  3019. memcg_check_events(from, page);
  3020. out:
  3021. return ret;
  3022. }
  3023. /**
  3024. * mem_cgroup_move_parent - moves page to the parent group
  3025. * @page: the page to move
  3026. * @pc: page_cgroup of the page
  3027. * @child: page's cgroup
  3028. *
  3029. * move charges to its parent or the root cgroup if the group has no
  3030. * parent (aka use_hierarchy==0).
  3031. * Although this might fail (get_page_unless_zero, isolate_lru_page or
  3032. * mem_cgroup_move_account fails) the failure is always temporary and
  3033. * it signals a race with a page removal/uncharge or migration. In the
  3034. * first case the page is on the way out and it will vanish from the LRU
  3035. * on the next attempt and the call should be retried later.
  3036. * Isolation from the LRU fails only if page has been isolated from
  3037. * the LRU since we looked at it and that usually means either global
  3038. * reclaim or migration going on. The page will either get back to the
  3039. * LRU or vanish.
  3040. * Finaly mem_cgroup_move_account fails only if the page got uncharged
  3041. * (!PageCgroupUsed) or moved to a different group. The page will
  3042. * disappear in the next attempt.
  3043. */
  3044. static int mem_cgroup_move_parent(struct page *page,
  3045. struct page_cgroup *pc,
  3046. struct mem_cgroup *child)
  3047. {
  3048. struct mem_cgroup *parent;
  3049. unsigned int nr_pages;
  3050. unsigned long uninitialized_var(flags);
  3051. int ret;
  3052. VM_BUG_ON(mem_cgroup_is_root(child));
  3053. ret = -EBUSY;
  3054. if (!get_page_unless_zero(page))
  3055. goto out;
  3056. if (isolate_lru_page(page))
  3057. goto put;
  3058. nr_pages = hpage_nr_pages(page);
  3059. parent = parent_mem_cgroup(child);
  3060. /*
  3061. * If no parent, move charges to root cgroup.
  3062. */
  3063. if (!parent)
  3064. parent = root_mem_cgroup;
  3065. if (nr_pages > 1) {
  3066. VM_BUG_ON(!PageTransHuge(page));
  3067. flags = compound_lock_irqsave(page);
  3068. }
  3069. ret = mem_cgroup_move_account(page, nr_pages,
  3070. pc, child, parent);
  3071. if (!ret)
  3072. __mem_cgroup_cancel_local_charge(child, nr_pages);
  3073. if (nr_pages > 1)
  3074. compound_unlock_irqrestore(page, flags);
  3075. putback_lru_page(page);
  3076. put:
  3077. put_page(page);
  3078. out:
  3079. return ret;
  3080. }
  3081. /*
  3082. * Charge the memory controller for page usage.
  3083. * Return
  3084. * 0 if the charge was successful
  3085. * < 0 if the cgroup is over its limit
  3086. */
  3087. static int mem_cgroup_charge_common(struct page *page, struct mm_struct *mm,
  3088. gfp_t gfp_mask, enum charge_type ctype)
  3089. {
  3090. struct mem_cgroup *memcg = NULL;
  3091. unsigned int nr_pages = 1;
  3092. bool oom = true;
  3093. int ret;
  3094. if (PageTransHuge(page)) {
  3095. nr_pages <<= compound_order(page);
  3096. VM_BUG_ON(!PageTransHuge(page));
  3097. /*
  3098. * Never OOM-kill a process for a huge page. The
  3099. * fault handler will fall back to regular pages.
  3100. */
  3101. oom = false;
  3102. }
  3103. ret = __mem_cgroup_try_charge(mm, gfp_mask, nr_pages, &memcg, oom);
  3104. if (ret == -ENOMEM)
  3105. return ret;
  3106. __mem_cgroup_commit_charge(memcg, page, nr_pages, ctype, false);
  3107. return 0;
  3108. }
  3109. int mem_cgroup_newpage_charge(struct page *page,
  3110. struct mm_struct *mm, gfp_t gfp_mask)
  3111. {
  3112. if (mem_cgroup_disabled())
  3113. return 0;
  3114. VM_BUG_ON(page_mapped(page));
  3115. VM_BUG_ON(page->mapping && !PageAnon(page));
  3116. VM_BUG_ON(!mm);
  3117. return mem_cgroup_charge_common(page, mm, gfp_mask,
  3118. MEM_CGROUP_CHARGE_TYPE_ANON);
  3119. }
  3120. /*
  3121. * While swap-in, try_charge -> commit or cancel, the page is locked.
  3122. * And when try_charge() successfully returns, one refcnt to memcg without
  3123. * struct page_cgroup is acquired. This refcnt will be consumed by
  3124. * "commit()" or removed by "cancel()"
  3125. */
  3126. static int __mem_cgroup_try_charge_swapin(struct mm_struct *mm,
  3127. struct page *page,
  3128. gfp_t mask,
  3129. struct mem_cgroup **memcgp)
  3130. {
  3131. struct mem_cgroup *memcg;
  3132. struct page_cgroup *pc;
  3133. int ret;
  3134. pc = lookup_page_cgroup(page);
  3135. /*
  3136. * Every swap fault against a single page tries to charge the
  3137. * page, bail as early as possible. shmem_unuse() encounters
  3138. * already charged pages, too. The USED bit is protected by
  3139. * the page lock, which serializes swap cache removal, which
  3140. * in turn serializes uncharging.
  3141. */
  3142. if (PageCgroupUsed(pc))
  3143. return 0;
  3144. if (!do_swap_account)
  3145. goto charge_cur_mm;
  3146. memcg = try_get_mem_cgroup_from_page(page);
  3147. if (!memcg)
  3148. goto charge_cur_mm;
  3149. *memcgp = memcg;
  3150. ret = __mem_cgroup_try_charge(NULL, mask, 1, memcgp, true);
  3151. css_put(&memcg->css);
  3152. if (ret == -EINTR)
  3153. ret = 0;
  3154. return ret;
  3155. charge_cur_mm:
  3156. ret = __mem_cgroup_try_charge(mm, mask, 1, memcgp, true);
  3157. if (ret == -EINTR)
  3158. ret = 0;
  3159. return ret;
  3160. }
  3161. int mem_cgroup_try_charge_swapin(struct mm_struct *mm, struct page *page,
  3162. gfp_t gfp_mask, struct mem_cgroup **memcgp)
  3163. {
  3164. *memcgp = NULL;
  3165. if (mem_cgroup_disabled())
  3166. return 0;
  3167. /*
  3168. * A racing thread's fault, or swapoff, may have already
  3169. * updated the pte, and even removed page from swap cache: in
  3170. * those cases unuse_pte()'s pte_same() test will fail; but
  3171. * there's also a KSM case which does need to charge the page.
  3172. */
  3173. if (!PageSwapCache(page)) {
  3174. int ret;
  3175. ret = __mem_cgroup_try_charge(mm, gfp_mask, 1, memcgp, true);
  3176. if (ret == -EINTR)
  3177. ret = 0;
  3178. return ret;
  3179. }
  3180. return __mem_cgroup_try_charge_swapin(mm, page, gfp_mask, memcgp);
  3181. }
  3182. void mem_cgroup_cancel_charge_swapin(struct mem_cgroup *memcg)
  3183. {
  3184. if (mem_cgroup_disabled())
  3185. return;
  3186. if (!memcg)
  3187. return;
  3188. __mem_cgroup_cancel_charge(memcg, 1);
  3189. }
  3190. static void
  3191. __mem_cgroup_commit_charge_swapin(struct page *page, struct mem_cgroup *memcg,
  3192. enum charge_type ctype)
  3193. {
  3194. if (mem_cgroup_disabled())
  3195. return;
  3196. if (!memcg)
  3197. return;
  3198. __mem_cgroup_commit_charge(memcg, page, 1, ctype, true);
  3199. /*
  3200. * Now swap is on-memory. This means this page may be
  3201. * counted both as mem and swap....double count.
  3202. * Fix it by uncharging from memsw. Basically, this SwapCache is stable
  3203. * under lock_page(). But in do_swap_page()::memory.c, reuse_swap_page()
  3204. * may call delete_from_swap_cache() before reach here.
  3205. */
  3206. if (do_swap_account && PageSwapCache(page)) {
  3207. swp_entry_t ent = {.val = page_private(page)};
  3208. mem_cgroup_uncharge_swap(ent);
  3209. }
  3210. }
  3211. void mem_cgroup_commit_charge_swapin(struct page *page,
  3212. struct mem_cgroup *memcg)
  3213. {
  3214. __mem_cgroup_commit_charge_swapin(page, memcg,
  3215. MEM_CGROUP_CHARGE_TYPE_ANON);
  3216. }
  3217. int mem_cgroup_cache_charge(struct page *page, struct mm_struct *mm,
  3218. gfp_t gfp_mask)
  3219. {
  3220. struct mem_cgroup *memcg = NULL;
  3221. enum charge_type type = MEM_CGROUP_CHARGE_TYPE_CACHE;
  3222. int ret;
  3223. if (mem_cgroup_disabled())
  3224. return 0;
  3225. if (PageCompound(page))
  3226. return 0;
  3227. if (!PageSwapCache(page))
  3228. ret = mem_cgroup_charge_common(page, mm, gfp_mask, type);
  3229. else { /* page is swapcache/shmem */
  3230. ret = __mem_cgroup_try_charge_swapin(mm, page,
  3231. gfp_mask, &memcg);
  3232. if (!ret)
  3233. __mem_cgroup_commit_charge_swapin(page, memcg, type);
  3234. }
  3235. return ret;
  3236. }
  3237. static void mem_cgroup_do_uncharge(struct mem_cgroup *memcg,
  3238. unsigned int nr_pages,
  3239. const enum charge_type ctype)
  3240. {
  3241. struct memcg_batch_info *batch = NULL;
  3242. bool uncharge_memsw = true;
  3243. /* If swapout, usage of swap doesn't decrease */
  3244. if (!do_swap_account || ctype == MEM_CGROUP_CHARGE_TYPE_SWAPOUT)
  3245. uncharge_memsw = false;
  3246. batch = &current->memcg_batch;
  3247. /*
  3248. * In usual, we do css_get() when we remember memcg pointer.
  3249. * But in this case, we keep res->usage until end of a series of
  3250. * uncharges. Then, it's ok to ignore memcg's refcnt.
  3251. */
  3252. if (!batch->memcg)
  3253. batch->memcg = memcg;
  3254. /*
  3255. * do_batch > 0 when unmapping pages or inode invalidate/truncate.
  3256. * In those cases, all pages freed continuously can be expected to be in
  3257. * the same cgroup and we have chance to coalesce uncharges.
  3258. * But we do uncharge one by one if this is killed by OOM(TIF_MEMDIE)
  3259. * because we want to do uncharge as soon as possible.
  3260. */
  3261. if (!batch->do_batch || test_thread_flag(TIF_MEMDIE))
  3262. goto direct_uncharge;
  3263. if (nr_pages > 1)
  3264. goto direct_uncharge;
  3265. /*
  3266. * In typical case, batch->memcg == mem. This means we can
  3267. * merge a series of uncharges to an uncharge of res_counter.
  3268. * If not, we uncharge res_counter ony by one.
  3269. */
  3270. if (batch->memcg != memcg)
  3271. goto direct_uncharge;
  3272. /* remember freed charge and uncharge it later */
  3273. batch->nr_pages++;
  3274. if (uncharge_memsw)
  3275. batch->memsw_nr_pages++;
  3276. return;
  3277. direct_uncharge:
  3278. res_counter_uncharge(&memcg->res, nr_pages * PAGE_SIZE);
  3279. if (uncharge_memsw)
  3280. res_counter_uncharge(&memcg->memsw, nr_pages * PAGE_SIZE);
  3281. if (unlikely(batch->memcg != memcg))
  3282. memcg_oom_recover(memcg);
  3283. }
  3284. /*
  3285. * uncharge if !page_mapped(page)
  3286. */
  3287. static struct mem_cgroup *
  3288. __mem_cgroup_uncharge_common(struct page *page, enum charge_type ctype,
  3289. bool end_migration)
  3290. {
  3291. struct mem_cgroup *memcg = NULL;
  3292. unsigned int nr_pages = 1;
  3293. struct page_cgroup *pc;
  3294. bool anon;
  3295. if (mem_cgroup_disabled())
  3296. return NULL;
  3297. VM_BUG_ON(PageSwapCache(page));
  3298. if (PageTransHuge(page)) {
  3299. nr_pages <<= compound_order(page);
  3300. VM_BUG_ON(!PageTransHuge(page));
  3301. }
  3302. /*
  3303. * Check if our page_cgroup is valid
  3304. */
  3305. pc = lookup_page_cgroup(page);
  3306. if (unlikely(!PageCgroupUsed(pc)))
  3307. return NULL;
  3308. lock_page_cgroup(pc);
  3309. memcg = pc->mem_cgroup;
  3310. if (!PageCgroupUsed(pc))
  3311. goto unlock_out;
  3312. anon = PageAnon(page);
  3313. switch (ctype) {
  3314. case MEM_CGROUP_CHARGE_TYPE_ANON:
  3315. /*
  3316. * Generally PageAnon tells if it's the anon statistics to be
  3317. * updated; but sometimes e.g. mem_cgroup_uncharge_page() is
  3318. * used before page reached the stage of being marked PageAnon.
  3319. */
  3320. anon = true;
  3321. /* fallthrough */
  3322. case MEM_CGROUP_CHARGE_TYPE_DROP:
  3323. /* See mem_cgroup_prepare_migration() */
  3324. if (page_mapped(page))
  3325. goto unlock_out;
  3326. /*
  3327. * Pages under migration may not be uncharged. But
  3328. * end_migration() /must/ be the one uncharging the
  3329. * unused post-migration page and so it has to call
  3330. * here with the migration bit still set. See the
  3331. * res_counter handling below.
  3332. */
  3333. if (!end_migration && PageCgroupMigration(pc))
  3334. goto unlock_out;
  3335. break;
  3336. case MEM_CGROUP_CHARGE_TYPE_SWAPOUT:
  3337. if (!PageAnon(page)) { /* Shared memory */
  3338. if (page->mapping && !page_is_file_cache(page))
  3339. goto unlock_out;
  3340. } else if (page_mapped(page)) /* Anon */
  3341. goto unlock_out;
  3342. break;
  3343. default:
  3344. break;
  3345. }
  3346. mem_cgroup_charge_statistics(memcg, anon, -nr_pages);
  3347. ClearPageCgroupUsed(pc);
  3348. /*
  3349. * pc->mem_cgroup is not cleared here. It will be accessed when it's
  3350. * freed from LRU. This is safe because uncharged page is expected not
  3351. * to be reused (freed soon). Exception is SwapCache, it's handled by
  3352. * special functions.
  3353. */
  3354. unlock_page_cgroup(pc);
  3355. /*
  3356. * even after unlock, we have memcg->res.usage here and this memcg
  3357. * will never be freed.
  3358. */
  3359. memcg_check_events(memcg, page);
  3360. if (do_swap_account && ctype == MEM_CGROUP_CHARGE_TYPE_SWAPOUT) {
  3361. mem_cgroup_swap_statistics(memcg, true);
  3362. mem_cgroup_get(memcg);
  3363. }
  3364. /*
  3365. * Migration does not charge the res_counter for the
  3366. * replacement page, so leave it alone when phasing out the
  3367. * page that is unused after the migration.
  3368. */
  3369. if (!end_migration && !mem_cgroup_is_root(memcg))
  3370. mem_cgroup_do_uncharge(memcg, nr_pages, ctype);
  3371. return memcg;
  3372. unlock_out:
  3373. unlock_page_cgroup(pc);
  3374. return NULL;
  3375. }
  3376. void mem_cgroup_uncharge_page(struct page *page)
  3377. {
  3378. /* early check. */
  3379. if (page_mapped(page))
  3380. return;
  3381. VM_BUG_ON(page->mapping && !PageAnon(page));
  3382. if (PageSwapCache(page))
  3383. return;
  3384. __mem_cgroup_uncharge_common(page, MEM_CGROUP_CHARGE_TYPE_ANON, false);
  3385. }
  3386. void mem_cgroup_uncharge_cache_page(struct page *page)
  3387. {
  3388. VM_BUG_ON(page_mapped(page));
  3389. VM_BUG_ON(page->mapping);
  3390. __mem_cgroup_uncharge_common(page, MEM_CGROUP_CHARGE_TYPE_CACHE, false);
  3391. }
  3392. /*
  3393. * Batch_start/batch_end is called in unmap_page_range/invlidate/trucate.
  3394. * In that cases, pages are freed continuously and we can expect pages
  3395. * are in the same memcg. All these calls itself limits the number of
  3396. * pages freed at once, then uncharge_start/end() is called properly.
  3397. * This may be called prural(2) times in a context,
  3398. */
  3399. void mem_cgroup_uncharge_start(void)
  3400. {
  3401. current->memcg_batch.do_batch++;
  3402. /* We can do nest. */
  3403. if (current->memcg_batch.do_batch == 1) {
  3404. current->memcg_batch.memcg = NULL;
  3405. current->memcg_batch.nr_pages = 0;
  3406. current->memcg_batch.memsw_nr_pages = 0;
  3407. }
  3408. }
  3409. void mem_cgroup_uncharge_end(void)
  3410. {
  3411. struct memcg_batch_info *batch = &current->memcg_batch;
  3412. if (!batch->do_batch)
  3413. return;
  3414. batch->do_batch--;
  3415. if (batch->do_batch) /* If stacked, do nothing. */
  3416. return;
  3417. if (!batch->memcg)
  3418. return;
  3419. /*
  3420. * This "batch->memcg" is valid without any css_get/put etc...
  3421. * bacause we hide charges behind us.
  3422. */
  3423. if (batch->nr_pages)
  3424. res_counter_uncharge(&batch->memcg->res,
  3425. batch->nr_pages * PAGE_SIZE);
  3426. if (batch->memsw_nr_pages)
  3427. res_counter_uncharge(&batch->memcg->memsw,
  3428. batch->memsw_nr_pages * PAGE_SIZE);
  3429. memcg_oom_recover(batch->memcg);
  3430. /* forget this pointer (for sanity check) */
  3431. batch->memcg = NULL;
  3432. }
  3433. #ifdef CONFIG_SWAP
  3434. /*
  3435. * called after __delete_from_swap_cache() and drop "page" account.
  3436. * memcg information is recorded to swap_cgroup of "ent"
  3437. */
  3438. void
  3439. mem_cgroup_uncharge_swapcache(struct page *page, swp_entry_t ent, bool swapout)
  3440. {
  3441. struct mem_cgroup *memcg;
  3442. int ctype = MEM_CGROUP_CHARGE_TYPE_SWAPOUT;
  3443. if (!swapout) /* this was a swap cache but the swap is unused ! */
  3444. ctype = MEM_CGROUP_CHARGE_TYPE_DROP;
  3445. memcg = __mem_cgroup_uncharge_common(page, ctype, false);
  3446. /*
  3447. * record memcg information, if swapout && memcg != NULL,
  3448. * mem_cgroup_get() was called in uncharge().
  3449. */
  3450. if (do_swap_account && swapout && memcg)
  3451. swap_cgroup_record(ent, css_id(&memcg->css));
  3452. }
  3453. #endif
  3454. #ifdef CONFIG_MEMCG_SWAP
  3455. /*
  3456. * called from swap_entry_free(). remove record in swap_cgroup and
  3457. * uncharge "memsw" account.
  3458. */
  3459. void mem_cgroup_uncharge_swap(swp_entry_t ent)
  3460. {
  3461. struct mem_cgroup *memcg;
  3462. unsigned short id;
  3463. if (!do_swap_account)
  3464. return;
  3465. id = swap_cgroup_record(ent, 0);
  3466. rcu_read_lock();
  3467. memcg = mem_cgroup_lookup(id);
  3468. if (memcg) {
  3469. /*
  3470. * We uncharge this because swap is freed.
  3471. * This memcg can be obsolete one. We avoid calling css_tryget
  3472. */
  3473. if (!mem_cgroup_is_root(memcg))
  3474. res_counter_uncharge(&memcg->memsw, PAGE_SIZE);
  3475. mem_cgroup_swap_statistics(memcg, false);
  3476. mem_cgroup_put(memcg);
  3477. }
  3478. rcu_read_unlock();
  3479. }
  3480. /**
  3481. * mem_cgroup_move_swap_account - move swap charge and swap_cgroup's record.
  3482. * @entry: swap entry to be moved
  3483. * @from: mem_cgroup which the entry is moved from
  3484. * @to: mem_cgroup which the entry is moved to
  3485. *
  3486. * It succeeds only when the swap_cgroup's record for this entry is the same
  3487. * as the mem_cgroup's id of @from.
  3488. *
  3489. * Returns 0 on success, -EINVAL on failure.
  3490. *
  3491. * The caller must have charged to @to, IOW, called res_counter_charge() about
  3492. * both res and memsw, and called css_get().
  3493. */
  3494. static int mem_cgroup_move_swap_account(swp_entry_t entry,
  3495. struct mem_cgroup *from, struct mem_cgroup *to)
  3496. {
  3497. unsigned short old_id, new_id;
  3498. old_id = css_id(&from->css);
  3499. new_id = css_id(&to->css);
  3500. if (swap_cgroup_cmpxchg(entry, old_id, new_id) == old_id) {
  3501. mem_cgroup_swap_statistics(from, false);
  3502. mem_cgroup_swap_statistics(to, true);
  3503. /*
  3504. * This function is only called from task migration context now.
  3505. * It postpones res_counter and refcount handling till the end
  3506. * of task migration(mem_cgroup_clear_mc()) for performance
  3507. * improvement. But we cannot postpone mem_cgroup_get(to)
  3508. * because if the process that has been moved to @to does
  3509. * swap-in, the refcount of @to might be decreased to 0.
  3510. */
  3511. mem_cgroup_get(to);
  3512. return 0;
  3513. }
  3514. return -EINVAL;
  3515. }
  3516. #else
  3517. static inline int mem_cgroup_move_swap_account(swp_entry_t entry,
  3518. struct mem_cgroup *from, struct mem_cgroup *to)
  3519. {
  3520. return -EINVAL;
  3521. }
  3522. #endif
  3523. /*
  3524. * Before starting migration, account PAGE_SIZE to mem_cgroup that the old
  3525. * page belongs to.
  3526. */
  3527. void mem_cgroup_prepare_migration(struct page *page, struct page *newpage,
  3528. struct mem_cgroup **memcgp)
  3529. {
  3530. struct mem_cgroup *memcg = NULL;
  3531. unsigned int nr_pages = 1;
  3532. struct page_cgroup *pc;
  3533. enum charge_type ctype;
  3534. *memcgp = NULL;
  3535. if (mem_cgroup_disabled())
  3536. return;
  3537. if (PageTransHuge(page))
  3538. nr_pages <<= compound_order(page);
  3539. pc = lookup_page_cgroup(page);
  3540. lock_page_cgroup(pc);
  3541. if (PageCgroupUsed(pc)) {
  3542. memcg = pc->mem_cgroup;
  3543. css_get(&memcg->css);
  3544. /*
  3545. * At migrating an anonymous page, its mapcount goes down
  3546. * to 0 and uncharge() will be called. But, even if it's fully
  3547. * unmapped, migration may fail and this page has to be
  3548. * charged again. We set MIGRATION flag here and delay uncharge
  3549. * until end_migration() is called
  3550. *
  3551. * Corner Case Thinking
  3552. * A)
  3553. * When the old page was mapped as Anon and it's unmap-and-freed
  3554. * while migration was ongoing.
  3555. * If unmap finds the old page, uncharge() of it will be delayed
  3556. * until end_migration(). If unmap finds a new page, it's
  3557. * uncharged when it make mapcount to be 1->0. If unmap code
  3558. * finds swap_migration_entry, the new page will not be mapped
  3559. * and end_migration() will find it(mapcount==0).
  3560. *
  3561. * B)
  3562. * When the old page was mapped but migraion fails, the kernel
  3563. * remaps it. A charge for it is kept by MIGRATION flag even
  3564. * if mapcount goes down to 0. We can do remap successfully
  3565. * without charging it again.
  3566. *
  3567. * C)
  3568. * The "old" page is under lock_page() until the end of
  3569. * migration, so, the old page itself will not be swapped-out.
  3570. * If the new page is swapped out before end_migraton, our
  3571. * hook to usual swap-out path will catch the event.
  3572. */
  3573. if (PageAnon(page))
  3574. SetPageCgroupMigration(pc);
  3575. }
  3576. unlock_page_cgroup(pc);
  3577. /*
  3578. * If the page is not charged at this point,
  3579. * we return here.
  3580. */
  3581. if (!memcg)
  3582. return;
  3583. *memcgp = memcg;
  3584. /*
  3585. * We charge new page before it's used/mapped. So, even if unlock_page()
  3586. * is called before end_migration, we can catch all events on this new
  3587. * page. In the case new page is migrated but not remapped, new page's
  3588. * mapcount will be finally 0 and we call uncharge in end_migration().
  3589. */
  3590. if (PageAnon(page))
  3591. ctype = MEM_CGROUP_CHARGE_TYPE_ANON;
  3592. else
  3593. ctype = MEM_CGROUP_CHARGE_TYPE_CACHE;
  3594. /*
  3595. * The page is committed to the memcg, but it's not actually
  3596. * charged to the res_counter since we plan on replacing the
  3597. * old one and only one page is going to be left afterwards.
  3598. */
  3599. __mem_cgroup_commit_charge(memcg, newpage, nr_pages, ctype, false);
  3600. }
  3601. /* remove redundant charge if migration failed*/
  3602. void mem_cgroup_end_migration(struct mem_cgroup *memcg,
  3603. struct page *oldpage, struct page *newpage, bool migration_ok)
  3604. {
  3605. struct page *used, *unused;
  3606. struct page_cgroup *pc;
  3607. bool anon;
  3608. if (!memcg)
  3609. return;
  3610. if (!migration_ok) {
  3611. used = oldpage;
  3612. unused = newpage;
  3613. } else {
  3614. used = newpage;
  3615. unused = oldpage;
  3616. }
  3617. anon = PageAnon(used);
  3618. __mem_cgroup_uncharge_common(unused,
  3619. anon ? MEM_CGROUP_CHARGE_TYPE_ANON
  3620. : MEM_CGROUP_CHARGE_TYPE_CACHE,
  3621. true);
  3622. css_put(&memcg->css);
  3623. /*
  3624. * We disallowed uncharge of pages under migration because mapcount
  3625. * of the page goes down to zero, temporarly.
  3626. * Clear the flag and check the page should be charged.
  3627. */
  3628. pc = lookup_page_cgroup(oldpage);
  3629. lock_page_cgroup(pc);
  3630. ClearPageCgroupMigration(pc);
  3631. unlock_page_cgroup(pc);
  3632. /*
  3633. * If a page is a file cache, radix-tree replacement is very atomic
  3634. * and we can skip this check. When it was an Anon page, its mapcount
  3635. * goes down to 0. But because we added MIGRATION flage, it's not
  3636. * uncharged yet. There are several case but page->mapcount check
  3637. * and USED bit check in mem_cgroup_uncharge_page() will do enough
  3638. * check. (see prepare_charge() also)
  3639. */
  3640. if (anon)
  3641. mem_cgroup_uncharge_page(used);
  3642. }
  3643. /*
  3644. * At replace page cache, newpage is not under any memcg but it's on
  3645. * LRU. So, this function doesn't touch res_counter but handles LRU
  3646. * in correct way. Both pages are locked so we cannot race with uncharge.
  3647. */
  3648. void mem_cgroup_replace_page_cache(struct page *oldpage,
  3649. struct page *newpage)
  3650. {
  3651. struct mem_cgroup *memcg = NULL;
  3652. struct page_cgroup *pc;
  3653. enum charge_type type = MEM_CGROUP_CHARGE_TYPE_CACHE;
  3654. if (mem_cgroup_disabled())
  3655. return;
  3656. pc = lookup_page_cgroup(oldpage);
  3657. /* fix accounting on old pages */
  3658. lock_page_cgroup(pc);
  3659. if (PageCgroupUsed(pc)) {
  3660. memcg = pc->mem_cgroup;
  3661. mem_cgroup_charge_statistics(memcg, false, -1);
  3662. ClearPageCgroupUsed(pc);
  3663. }
  3664. unlock_page_cgroup(pc);
  3665. /*
  3666. * When called from shmem_replace_page(), in some cases the
  3667. * oldpage has already been charged, and in some cases not.
  3668. */
  3669. if (!memcg)
  3670. return;
  3671. /*
  3672. * Even if newpage->mapping was NULL before starting replacement,
  3673. * the newpage may be on LRU(or pagevec for LRU) already. We lock
  3674. * LRU while we overwrite pc->mem_cgroup.
  3675. */
  3676. __mem_cgroup_commit_charge(memcg, newpage, 1, type, true);
  3677. }
  3678. #ifdef CONFIG_DEBUG_VM
  3679. static struct page_cgroup *lookup_page_cgroup_used(struct page *page)
  3680. {
  3681. struct page_cgroup *pc;
  3682. pc = lookup_page_cgroup(page);
  3683. /*
  3684. * Can be NULL while feeding pages into the page allocator for
  3685. * the first time, i.e. during boot or memory hotplug;
  3686. * or when mem_cgroup_disabled().
  3687. */
  3688. if (likely(pc) && PageCgroupUsed(pc))
  3689. return pc;
  3690. return NULL;
  3691. }
  3692. bool mem_cgroup_bad_page_check(struct page *page)
  3693. {
  3694. if (mem_cgroup_disabled())
  3695. return false;
  3696. return lookup_page_cgroup_used(page) != NULL;
  3697. }
  3698. void mem_cgroup_print_bad_page(struct page *page)
  3699. {
  3700. struct page_cgroup *pc;
  3701. pc = lookup_page_cgroup_used(page);
  3702. if (pc) {
  3703. printk(KERN_ALERT "pc:%p pc->flags:%lx pc->mem_cgroup:%p\n",
  3704. pc, pc->flags, pc->mem_cgroup);
  3705. }
  3706. }
  3707. #endif
  3708. static DEFINE_MUTEX(set_limit_mutex);
  3709. static int mem_cgroup_resize_limit(struct mem_cgroup *memcg,
  3710. unsigned long long val)
  3711. {
  3712. int retry_count;
  3713. u64 memswlimit, memlimit;
  3714. int ret = 0;
  3715. int children = mem_cgroup_count_children(memcg);
  3716. u64 curusage, oldusage;
  3717. int enlarge;
  3718. /*
  3719. * For keeping hierarchical_reclaim simple, how long we should retry
  3720. * is depends on callers. We set our retry-count to be function
  3721. * of # of children which we should visit in this loop.
  3722. */
  3723. retry_count = MEM_CGROUP_RECLAIM_RETRIES * children;
  3724. oldusage = res_counter_read_u64(&memcg->res, RES_USAGE);
  3725. enlarge = 0;
  3726. while (retry_count) {
  3727. if (signal_pending(current)) {
  3728. ret = -EINTR;
  3729. break;
  3730. }
  3731. /*
  3732. * Rather than hide all in some function, I do this in
  3733. * open coded manner. You see what this really does.
  3734. * We have to guarantee memcg->res.limit <= memcg->memsw.limit.
  3735. */
  3736. mutex_lock(&set_limit_mutex);
  3737. memswlimit = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
  3738. if (memswlimit < val) {
  3739. ret = -EINVAL;
  3740. mutex_unlock(&set_limit_mutex);
  3741. break;
  3742. }
  3743. memlimit = res_counter_read_u64(&memcg->res, RES_LIMIT);
  3744. if (memlimit < val)
  3745. enlarge = 1;
  3746. ret = res_counter_set_limit(&memcg->res, val);
  3747. if (!ret) {
  3748. if (memswlimit == val)
  3749. memcg->memsw_is_minimum = true;
  3750. else
  3751. memcg->memsw_is_minimum = false;
  3752. }
  3753. mutex_unlock(&set_limit_mutex);
  3754. if (!ret)
  3755. break;
  3756. mem_cgroup_reclaim(memcg, GFP_KERNEL,
  3757. MEM_CGROUP_RECLAIM_SHRINK);
  3758. curusage = res_counter_read_u64(&memcg->res, RES_USAGE);
  3759. /* Usage is reduced ? */
  3760. if (curusage >= oldusage)
  3761. retry_count--;
  3762. else
  3763. oldusage = curusage;
  3764. }
  3765. if (!ret && enlarge)
  3766. memcg_oom_recover(memcg);
  3767. return ret;
  3768. }
  3769. static int mem_cgroup_resize_memsw_limit(struct mem_cgroup *memcg,
  3770. unsigned long long val)
  3771. {
  3772. int retry_count;
  3773. u64 memlimit, memswlimit, oldusage, curusage;
  3774. int children = mem_cgroup_count_children(memcg);
  3775. int ret = -EBUSY;
  3776. int enlarge = 0;
  3777. /* see mem_cgroup_resize_res_limit */
  3778. retry_count = children * MEM_CGROUP_RECLAIM_RETRIES;
  3779. oldusage = res_counter_read_u64(&memcg->memsw, RES_USAGE);
  3780. while (retry_count) {
  3781. if (signal_pending(current)) {
  3782. ret = -EINTR;
  3783. break;
  3784. }
  3785. /*
  3786. * Rather than hide all in some function, I do this in
  3787. * open coded manner. You see what this really does.
  3788. * We have to guarantee memcg->res.limit <= memcg->memsw.limit.
  3789. */
  3790. mutex_lock(&set_limit_mutex);
  3791. memlimit = res_counter_read_u64(&memcg->res, RES_LIMIT);
  3792. if (memlimit > val) {
  3793. ret = -EINVAL;
  3794. mutex_unlock(&set_limit_mutex);
  3795. break;
  3796. }
  3797. memswlimit = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
  3798. if (memswlimit < val)
  3799. enlarge = 1;
  3800. ret = res_counter_set_limit(&memcg->memsw, val);
  3801. if (!ret) {
  3802. if (memlimit == val)
  3803. memcg->memsw_is_minimum = true;
  3804. else
  3805. memcg->memsw_is_minimum = false;
  3806. }
  3807. mutex_unlock(&set_limit_mutex);
  3808. if (!ret)
  3809. break;
  3810. mem_cgroup_reclaim(memcg, GFP_KERNEL,
  3811. MEM_CGROUP_RECLAIM_NOSWAP |
  3812. MEM_CGROUP_RECLAIM_SHRINK);
  3813. curusage = res_counter_read_u64(&memcg->memsw, RES_USAGE);
  3814. /* Usage is reduced ? */
  3815. if (curusage >= oldusage)
  3816. retry_count--;
  3817. else
  3818. oldusage = curusage;
  3819. }
  3820. if (!ret && enlarge)
  3821. memcg_oom_recover(memcg);
  3822. return ret;
  3823. }
  3824. unsigned long mem_cgroup_soft_limit_reclaim(struct zone *zone, int order,
  3825. gfp_t gfp_mask,
  3826. unsigned long *total_scanned)
  3827. {
  3828. unsigned long nr_reclaimed = 0;
  3829. struct mem_cgroup_per_zone *mz, *next_mz = NULL;
  3830. unsigned long reclaimed;
  3831. int loop = 0;
  3832. struct mem_cgroup_tree_per_zone *mctz;
  3833. unsigned long long excess;
  3834. unsigned long nr_scanned;
  3835. if (order > 0)
  3836. return 0;
  3837. mctz = soft_limit_tree_node_zone(zone_to_nid(zone), zone_idx(zone));
  3838. /*
  3839. * This loop can run a while, specially if mem_cgroup's continuously
  3840. * keep exceeding their soft limit and putting the system under
  3841. * pressure
  3842. */
  3843. do {
  3844. if (next_mz)
  3845. mz = next_mz;
  3846. else
  3847. mz = mem_cgroup_largest_soft_limit_node(mctz);
  3848. if (!mz)
  3849. break;
  3850. nr_scanned = 0;
  3851. reclaimed = mem_cgroup_soft_reclaim(mz->memcg, zone,
  3852. gfp_mask, &nr_scanned);
  3853. nr_reclaimed += reclaimed;
  3854. *total_scanned += nr_scanned;
  3855. spin_lock(&mctz->lock);
  3856. /*
  3857. * If we failed to reclaim anything from this memory cgroup
  3858. * it is time to move on to the next cgroup
  3859. */
  3860. next_mz = NULL;
  3861. if (!reclaimed) {
  3862. do {
  3863. /*
  3864. * Loop until we find yet another one.
  3865. *
  3866. * By the time we get the soft_limit lock
  3867. * again, someone might have aded the
  3868. * group back on the RB tree. Iterate to
  3869. * make sure we get a different mem.
  3870. * mem_cgroup_largest_soft_limit_node returns
  3871. * NULL if no other cgroup is present on
  3872. * the tree
  3873. */
  3874. next_mz =
  3875. __mem_cgroup_largest_soft_limit_node(mctz);
  3876. if (next_mz == mz)
  3877. css_put(&next_mz->memcg->css);
  3878. else /* next_mz == NULL or other memcg */
  3879. break;
  3880. } while (1);
  3881. }
  3882. __mem_cgroup_remove_exceeded(mz->memcg, mz, mctz);
  3883. excess = res_counter_soft_limit_excess(&mz->memcg->res);
  3884. /*
  3885. * One school of thought says that we should not add
  3886. * back the node to the tree if reclaim returns 0.
  3887. * But our reclaim could return 0, simply because due
  3888. * to priority we are exposing a smaller subset of
  3889. * memory to reclaim from. Consider this as a longer
  3890. * term TODO.
  3891. */
  3892. /* If excess == 0, no tree ops */
  3893. __mem_cgroup_insert_exceeded(mz->memcg, mz, mctz, excess);
  3894. spin_unlock(&mctz->lock);
  3895. css_put(&mz->memcg->css);
  3896. loop++;
  3897. /*
  3898. * Could not reclaim anything and there are no more
  3899. * mem cgroups to try or we seem to be looping without
  3900. * reclaiming anything.
  3901. */
  3902. if (!nr_reclaimed &&
  3903. (next_mz == NULL ||
  3904. loop > MEM_CGROUP_MAX_SOFT_LIMIT_RECLAIM_LOOPS))
  3905. break;
  3906. } while (!nr_reclaimed);
  3907. if (next_mz)
  3908. css_put(&next_mz->memcg->css);
  3909. return nr_reclaimed;
  3910. }
  3911. /**
  3912. * mem_cgroup_force_empty_list - clears LRU of a group
  3913. * @memcg: group to clear
  3914. * @node: NUMA node
  3915. * @zid: zone id
  3916. * @lru: lru to to clear
  3917. *
  3918. * Traverse a specified page_cgroup list and try to drop them all. This doesn't
  3919. * reclaim the pages page themselves - pages are moved to the parent (or root)
  3920. * group.
  3921. */
  3922. static void mem_cgroup_force_empty_list(struct mem_cgroup *memcg,
  3923. int node, int zid, enum lru_list lru)
  3924. {
  3925. struct lruvec *lruvec;
  3926. unsigned long flags;
  3927. struct list_head *list;
  3928. struct page *busy;
  3929. struct zone *zone;
  3930. zone = &NODE_DATA(node)->node_zones[zid];
  3931. lruvec = mem_cgroup_zone_lruvec(zone, memcg);
  3932. list = &lruvec->lists[lru];
  3933. busy = NULL;
  3934. do {
  3935. struct page_cgroup *pc;
  3936. struct page *page;
  3937. spin_lock_irqsave(&zone->lru_lock, flags);
  3938. if (list_empty(list)) {
  3939. spin_unlock_irqrestore(&zone->lru_lock, flags);
  3940. break;
  3941. }
  3942. page = list_entry(list->prev, struct page, lru);
  3943. if (busy == page) {
  3944. list_move(&page->lru, list);
  3945. busy = NULL;
  3946. spin_unlock_irqrestore(&zone->lru_lock, flags);
  3947. continue;
  3948. }
  3949. spin_unlock_irqrestore(&zone->lru_lock, flags);
  3950. pc = lookup_page_cgroup(page);
  3951. if (mem_cgroup_move_parent(page, pc, memcg)) {
  3952. /* found lock contention or "pc" is obsolete. */
  3953. busy = page;
  3954. cond_resched();
  3955. } else
  3956. busy = NULL;
  3957. } while (!list_empty(list));
  3958. }
  3959. /*
  3960. * make mem_cgroup's charge to be 0 if there is no task by moving
  3961. * all the charges and pages to the parent.
  3962. * This enables deleting this mem_cgroup.
  3963. *
  3964. * Caller is responsible for holding css reference on the memcg.
  3965. */
  3966. static void mem_cgroup_reparent_charges(struct mem_cgroup *memcg)
  3967. {
  3968. int node, zid;
  3969. u64 usage;
  3970. do {
  3971. /* This is for making all *used* pages to be on LRU. */
  3972. lru_add_drain_all();
  3973. drain_all_stock_sync(memcg);
  3974. mem_cgroup_start_move(memcg);
  3975. for_each_node_state(node, N_MEMORY) {
  3976. for (zid = 0; zid < MAX_NR_ZONES; zid++) {
  3977. enum lru_list lru;
  3978. for_each_lru(lru) {
  3979. mem_cgroup_force_empty_list(memcg,
  3980. node, zid, lru);
  3981. }
  3982. }
  3983. }
  3984. mem_cgroup_end_move(memcg);
  3985. memcg_oom_recover(memcg);
  3986. cond_resched();
  3987. /*
  3988. * Kernel memory may not necessarily be trackable to a specific
  3989. * process. So they are not migrated, and therefore we can't
  3990. * expect their value to drop to 0 here.
  3991. * Having res filled up with kmem only is enough.
  3992. *
  3993. * This is a safety check because mem_cgroup_force_empty_list
  3994. * could have raced with mem_cgroup_replace_page_cache callers
  3995. * so the lru seemed empty but the page could have been added
  3996. * right after the check. RES_USAGE should be safe as we always
  3997. * charge before adding to the LRU.
  3998. */
  3999. usage = res_counter_read_u64(&memcg->res, RES_USAGE) -
  4000. res_counter_read_u64(&memcg->kmem, RES_USAGE);
  4001. } while (usage > 0);
  4002. }
  4003. /*
  4004. * Reclaims as many pages from the given memcg as possible and moves
  4005. * the rest to the parent.
  4006. *
  4007. * Caller is responsible for holding css reference for memcg.
  4008. */
  4009. static int mem_cgroup_force_empty(struct mem_cgroup *memcg)
  4010. {
  4011. int nr_retries = MEM_CGROUP_RECLAIM_RETRIES;
  4012. struct cgroup *cgrp = memcg->css.cgroup;
  4013. /* returns EBUSY if there is a task or if we come here twice. */
  4014. if (cgroup_task_count(cgrp) || !list_empty(&cgrp->children))
  4015. return -EBUSY;
  4016. /* we call try-to-free pages for make this cgroup empty */
  4017. lru_add_drain_all();
  4018. /* try to free all pages in this cgroup */
  4019. while (nr_retries && res_counter_read_u64(&memcg->res, RES_USAGE) > 0) {
  4020. int progress;
  4021. if (signal_pending(current))
  4022. return -EINTR;
  4023. progress = try_to_free_mem_cgroup_pages(memcg, GFP_KERNEL,
  4024. false);
  4025. if (!progress) {
  4026. nr_retries--;
  4027. /* maybe some writeback is necessary */
  4028. congestion_wait(BLK_RW_ASYNC, HZ/10);
  4029. }
  4030. }
  4031. lru_add_drain();
  4032. mem_cgroup_reparent_charges(memcg);
  4033. return 0;
  4034. }
  4035. static int mem_cgroup_force_empty_write(struct cgroup *cont, unsigned int event)
  4036. {
  4037. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4038. int ret;
  4039. if (mem_cgroup_is_root(memcg))
  4040. return -EINVAL;
  4041. css_get(&memcg->css);
  4042. ret = mem_cgroup_force_empty(memcg);
  4043. css_put(&memcg->css);
  4044. return ret;
  4045. }
  4046. static u64 mem_cgroup_hierarchy_read(struct cgroup *cont, struct cftype *cft)
  4047. {
  4048. return mem_cgroup_from_cont(cont)->use_hierarchy;
  4049. }
  4050. static int mem_cgroup_hierarchy_write(struct cgroup *cont, struct cftype *cft,
  4051. u64 val)
  4052. {
  4053. int retval = 0;
  4054. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4055. struct cgroup *parent = cont->parent;
  4056. struct mem_cgroup *parent_memcg = NULL;
  4057. if (parent)
  4058. parent_memcg = mem_cgroup_from_cont(parent);
  4059. cgroup_lock();
  4060. if (memcg->use_hierarchy == val)
  4061. goto out;
  4062. /*
  4063. * If parent's use_hierarchy is set, we can't make any modifications
  4064. * in the child subtrees. If it is unset, then the change can
  4065. * occur, provided the current cgroup has no children.
  4066. *
  4067. * For the root cgroup, parent_mem is NULL, we allow value to be
  4068. * set if there are no children.
  4069. */
  4070. if ((!parent_memcg || !parent_memcg->use_hierarchy) &&
  4071. (val == 1 || val == 0)) {
  4072. if (list_empty(&cont->children))
  4073. memcg->use_hierarchy = val;
  4074. else
  4075. retval = -EBUSY;
  4076. } else
  4077. retval = -EINVAL;
  4078. out:
  4079. cgroup_unlock();
  4080. return retval;
  4081. }
  4082. static unsigned long mem_cgroup_recursive_stat(struct mem_cgroup *memcg,
  4083. enum mem_cgroup_stat_index idx)
  4084. {
  4085. struct mem_cgroup *iter;
  4086. long val = 0;
  4087. /* Per-cpu values can be negative, use a signed accumulator */
  4088. for_each_mem_cgroup_tree(iter, memcg)
  4089. val += mem_cgroup_read_stat(iter, idx);
  4090. if (val < 0) /* race ? */
  4091. val = 0;
  4092. return val;
  4093. }
  4094. static inline u64 mem_cgroup_usage(struct mem_cgroup *memcg, bool swap)
  4095. {
  4096. u64 val;
  4097. if (!mem_cgroup_is_root(memcg)) {
  4098. if (!swap)
  4099. return res_counter_read_u64(&memcg->res, RES_USAGE);
  4100. else
  4101. return res_counter_read_u64(&memcg->memsw, RES_USAGE);
  4102. }
  4103. val = mem_cgroup_recursive_stat(memcg, MEM_CGROUP_STAT_CACHE);
  4104. val += mem_cgroup_recursive_stat(memcg, MEM_CGROUP_STAT_RSS);
  4105. if (swap)
  4106. val += mem_cgroup_recursive_stat(memcg, MEM_CGROUP_STAT_SWAP);
  4107. return val << PAGE_SHIFT;
  4108. }
  4109. static ssize_t mem_cgroup_read(struct cgroup *cont, struct cftype *cft,
  4110. struct file *file, char __user *buf,
  4111. size_t nbytes, loff_t *ppos)
  4112. {
  4113. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4114. char str[64];
  4115. u64 val;
  4116. int name, len;
  4117. enum res_type type;
  4118. type = MEMFILE_TYPE(cft->private);
  4119. name = MEMFILE_ATTR(cft->private);
  4120. if (!do_swap_account && type == _MEMSWAP)
  4121. return -EOPNOTSUPP;
  4122. switch (type) {
  4123. case _MEM:
  4124. if (name == RES_USAGE)
  4125. val = mem_cgroup_usage(memcg, false);
  4126. else
  4127. val = res_counter_read_u64(&memcg->res, name);
  4128. break;
  4129. case _MEMSWAP:
  4130. if (name == RES_USAGE)
  4131. val = mem_cgroup_usage(memcg, true);
  4132. else
  4133. val = res_counter_read_u64(&memcg->memsw, name);
  4134. break;
  4135. case _KMEM:
  4136. val = res_counter_read_u64(&memcg->kmem, name);
  4137. break;
  4138. default:
  4139. BUG();
  4140. }
  4141. len = scnprintf(str, sizeof(str), "%llu\n", (unsigned long long)val);
  4142. return simple_read_from_buffer(buf, nbytes, ppos, str, len);
  4143. }
  4144. static int memcg_update_kmem_limit(struct cgroup *cont, u64 val)
  4145. {
  4146. int ret = -EINVAL;
  4147. #ifdef CONFIG_MEMCG_KMEM
  4148. bool must_inc_static_branch = false;
  4149. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4150. /*
  4151. * For simplicity, we won't allow this to be disabled. It also can't
  4152. * be changed if the cgroup has children already, or if tasks had
  4153. * already joined.
  4154. *
  4155. * If tasks join before we set the limit, a person looking at
  4156. * kmem.usage_in_bytes will have no way to determine when it took
  4157. * place, which makes the value quite meaningless.
  4158. *
  4159. * After it first became limited, changes in the value of the limit are
  4160. * of course permitted.
  4161. *
  4162. * Taking the cgroup_lock is really offensive, but it is so far the only
  4163. * way to guarantee that no children will appear. There are plenty of
  4164. * other offenders, and they should all go away. Fine grained locking
  4165. * is probably the way to go here. When we are fully hierarchical, we
  4166. * can also get rid of the use_hierarchy check.
  4167. */
  4168. cgroup_lock();
  4169. mutex_lock(&set_limit_mutex);
  4170. if (!memcg->kmem_account_flags && val != RESOURCE_MAX) {
  4171. if (cgroup_task_count(cont) || (memcg->use_hierarchy &&
  4172. !list_empty(&cont->children))) {
  4173. ret = -EBUSY;
  4174. goto out;
  4175. }
  4176. ret = res_counter_set_limit(&memcg->kmem, val);
  4177. VM_BUG_ON(ret);
  4178. ret = memcg_update_cache_sizes(memcg);
  4179. if (ret) {
  4180. res_counter_set_limit(&memcg->kmem, RESOURCE_MAX);
  4181. goto out;
  4182. }
  4183. must_inc_static_branch = true;
  4184. /*
  4185. * kmem charges can outlive the cgroup. In the case of slab
  4186. * pages, for instance, a page contain objects from various
  4187. * processes, so it is unfeasible to migrate them away. We
  4188. * need to reference count the memcg because of that.
  4189. */
  4190. mem_cgroup_get(memcg);
  4191. } else
  4192. ret = res_counter_set_limit(&memcg->kmem, val);
  4193. out:
  4194. mutex_unlock(&set_limit_mutex);
  4195. cgroup_unlock();
  4196. /*
  4197. * We are by now familiar with the fact that we can't inc the static
  4198. * branch inside cgroup_lock. See disarm functions for details. A
  4199. * worker here is overkill, but also wrong: After the limit is set, we
  4200. * must start accounting right away. Since this operation can't fail,
  4201. * we can safely defer it to here - no rollback will be needed.
  4202. *
  4203. * The boolean used to control this is also safe, because
  4204. * KMEM_ACCOUNTED_ACTIVATED guarantees that only one process will be
  4205. * able to set it to true;
  4206. */
  4207. if (must_inc_static_branch) {
  4208. static_key_slow_inc(&memcg_kmem_enabled_key);
  4209. /*
  4210. * setting the active bit after the inc will guarantee no one
  4211. * starts accounting before all call sites are patched
  4212. */
  4213. memcg_kmem_set_active(memcg);
  4214. }
  4215. #endif
  4216. return ret;
  4217. }
  4218. static int memcg_propagate_kmem(struct mem_cgroup *memcg)
  4219. {
  4220. int ret = 0;
  4221. struct mem_cgroup *parent = parent_mem_cgroup(memcg);
  4222. if (!parent)
  4223. goto out;
  4224. memcg->kmem_account_flags = parent->kmem_account_flags;
  4225. #ifdef CONFIG_MEMCG_KMEM
  4226. /*
  4227. * When that happen, we need to disable the static branch only on those
  4228. * memcgs that enabled it. To achieve this, we would be forced to
  4229. * complicate the code by keeping track of which memcgs were the ones
  4230. * that actually enabled limits, and which ones got it from its
  4231. * parents.
  4232. *
  4233. * It is a lot simpler just to do static_key_slow_inc() on every child
  4234. * that is accounted.
  4235. */
  4236. if (!memcg_kmem_is_active(memcg))
  4237. goto out;
  4238. /*
  4239. * destroy(), called if we fail, will issue static_key_slow_inc() and
  4240. * mem_cgroup_put() if kmem is enabled. We have to either call them
  4241. * unconditionally, or clear the KMEM_ACTIVE flag. I personally find
  4242. * this more consistent, since it always leads to the same destroy path
  4243. */
  4244. mem_cgroup_get(memcg);
  4245. static_key_slow_inc(&memcg_kmem_enabled_key);
  4246. mutex_lock(&set_limit_mutex);
  4247. ret = memcg_update_cache_sizes(memcg);
  4248. mutex_unlock(&set_limit_mutex);
  4249. #endif
  4250. out:
  4251. return ret;
  4252. }
  4253. /*
  4254. * The user of this function is...
  4255. * RES_LIMIT.
  4256. */
  4257. static int mem_cgroup_write(struct cgroup *cont, struct cftype *cft,
  4258. const char *buffer)
  4259. {
  4260. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4261. enum res_type type;
  4262. int name;
  4263. unsigned long long val;
  4264. int ret;
  4265. type = MEMFILE_TYPE(cft->private);
  4266. name = MEMFILE_ATTR(cft->private);
  4267. if (!do_swap_account && type == _MEMSWAP)
  4268. return -EOPNOTSUPP;
  4269. switch (name) {
  4270. case RES_LIMIT:
  4271. if (mem_cgroup_is_root(memcg)) { /* Can't set limit on root */
  4272. ret = -EINVAL;
  4273. break;
  4274. }
  4275. /* This function does all necessary parse...reuse it */
  4276. ret = res_counter_memparse_write_strategy(buffer, &val);
  4277. if (ret)
  4278. break;
  4279. if (type == _MEM)
  4280. ret = mem_cgroup_resize_limit(memcg, val);
  4281. else if (type == _MEMSWAP)
  4282. ret = mem_cgroup_resize_memsw_limit(memcg, val);
  4283. else if (type == _KMEM)
  4284. ret = memcg_update_kmem_limit(cont, val);
  4285. else
  4286. return -EINVAL;
  4287. break;
  4288. case RES_SOFT_LIMIT:
  4289. ret = res_counter_memparse_write_strategy(buffer, &val);
  4290. if (ret)
  4291. break;
  4292. /*
  4293. * For memsw, soft limits are hard to implement in terms
  4294. * of semantics, for now, we support soft limits for
  4295. * control without swap
  4296. */
  4297. if (type == _MEM)
  4298. ret = res_counter_set_soft_limit(&memcg->res, val);
  4299. else
  4300. ret = -EINVAL;
  4301. break;
  4302. default:
  4303. ret = -EINVAL; /* should be BUG() ? */
  4304. break;
  4305. }
  4306. return ret;
  4307. }
  4308. static void memcg_get_hierarchical_limit(struct mem_cgroup *memcg,
  4309. unsigned long long *mem_limit, unsigned long long *memsw_limit)
  4310. {
  4311. struct cgroup *cgroup;
  4312. unsigned long long min_limit, min_memsw_limit, tmp;
  4313. min_limit = res_counter_read_u64(&memcg->res, RES_LIMIT);
  4314. min_memsw_limit = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
  4315. cgroup = memcg->css.cgroup;
  4316. if (!memcg->use_hierarchy)
  4317. goto out;
  4318. while (cgroup->parent) {
  4319. cgroup = cgroup->parent;
  4320. memcg = mem_cgroup_from_cont(cgroup);
  4321. if (!memcg->use_hierarchy)
  4322. break;
  4323. tmp = res_counter_read_u64(&memcg->res, RES_LIMIT);
  4324. min_limit = min(min_limit, tmp);
  4325. tmp = res_counter_read_u64(&memcg->memsw, RES_LIMIT);
  4326. min_memsw_limit = min(min_memsw_limit, tmp);
  4327. }
  4328. out:
  4329. *mem_limit = min_limit;
  4330. *memsw_limit = min_memsw_limit;
  4331. }
  4332. static int mem_cgroup_reset(struct cgroup *cont, unsigned int event)
  4333. {
  4334. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4335. int name;
  4336. enum res_type type;
  4337. type = MEMFILE_TYPE(event);
  4338. name = MEMFILE_ATTR(event);
  4339. if (!do_swap_account && type == _MEMSWAP)
  4340. return -EOPNOTSUPP;
  4341. switch (name) {
  4342. case RES_MAX_USAGE:
  4343. if (type == _MEM)
  4344. res_counter_reset_max(&memcg->res);
  4345. else if (type == _MEMSWAP)
  4346. res_counter_reset_max(&memcg->memsw);
  4347. else if (type == _KMEM)
  4348. res_counter_reset_max(&memcg->kmem);
  4349. else
  4350. return -EINVAL;
  4351. break;
  4352. case RES_FAILCNT:
  4353. if (type == _MEM)
  4354. res_counter_reset_failcnt(&memcg->res);
  4355. else if (type == _MEMSWAP)
  4356. res_counter_reset_failcnt(&memcg->memsw);
  4357. else if (type == _KMEM)
  4358. res_counter_reset_failcnt(&memcg->kmem);
  4359. else
  4360. return -EINVAL;
  4361. break;
  4362. }
  4363. return 0;
  4364. }
  4365. static u64 mem_cgroup_move_charge_read(struct cgroup *cgrp,
  4366. struct cftype *cft)
  4367. {
  4368. return mem_cgroup_from_cont(cgrp)->move_charge_at_immigrate;
  4369. }
  4370. #ifdef CONFIG_MMU
  4371. static int mem_cgroup_move_charge_write(struct cgroup *cgrp,
  4372. struct cftype *cft, u64 val)
  4373. {
  4374. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4375. if (val >= (1 << NR_MOVE_TYPE))
  4376. return -EINVAL;
  4377. /*
  4378. * We check this value several times in both in can_attach() and
  4379. * attach(), so we need cgroup lock to prevent this value from being
  4380. * inconsistent.
  4381. */
  4382. cgroup_lock();
  4383. memcg->move_charge_at_immigrate = val;
  4384. cgroup_unlock();
  4385. return 0;
  4386. }
  4387. #else
  4388. static int mem_cgroup_move_charge_write(struct cgroup *cgrp,
  4389. struct cftype *cft, u64 val)
  4390. {
  4391. return -ENOSYS;
  4392. }
  4393. #endif
  4394. #ifdef CONFIG_NUMA
  4395. static int memcg_numa_stat_show(struct cgroup *cont, struct cftype *cft,
  4396. struct seq_file *m)
  4397. {
  4398. int nid;
  4399. unsigned long total_nr, file_nr, anon_nr, unevictable_nr;
  4400. unsigned long node_nr;
  4401. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4402. total_nr = mem_cgroup_nr_lru_pages(memcg, LRU_ALL);
  4403. seq_printf(m, "total=%lu", total_nr);
  4404. for_each_node_state(nid, N_MEMORY) {
  4405. node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid, LRU_ALL);
  4406. seq_printf(m, " N%d=%lu", nid, node_nr);
  4407. }
  4408. seq_putc(m, '\n');
  4409. file_nr = mem_cgroup_nr_lru_pages(memcg, LRU_ALL_FILE);
  4410. seq_printf(m, "file=%lu", file_nr);
  4411. for_each_node_state(nid, N_MEMORY) {
  4412. node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
  4413. LRU_ALL_FILE);
  4414. seq_printf(m, " N%d=%lu", nid, node_nr);
  4415. }
  4416. seq_putc(m, '\n');
  4417. anon_nr = mem_cgroup_nr_lru_pages(memcg, LRU_ALL_ANON);
  4418. seq_printf(m, "anon=%lu", anon_nr);
  4419. for_each_node_state(nid, N_MEMORY) {
  4420. node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
  4421. LRU_ALL_ANON);
  4422. seq_printf(m, " N%d=%lu", nid, node_nr);
  4423. }
  4424. seq_putc(m, '\n');
  4425. unevictable_nr = mem_cgroup_nr_lru_pages(memcg, BIT(LRU_UNEVICTABLE));
  4426. seq_printf(m, "unevictable=%lu", unevictable_nr);
  4427. for_each_node_state(nid, N_MEMORY) {
  4428. node_nr = mem_cgroup_node_nr_lru_pages(memcg, nid,
  4429. BIT(LRU_UNEVICTABLE));
  4430. seq_printf(m, " N%d=%lu", nid, node_nr);
  4431. }
  4432. seq_putc(m, '\n');
  4433. return 0;
  4434. }
  4435. #endif /* CONFIG_NUMA */
  4436. static const char * const mem_cgroup_lru_names[] = {
  4437. "inactive_anon",
  4438. "active_anon",
  4439. "inactive_file",
  4440. "active_file",
  4441. "unevictable",
  4442. };
  4443. static inline void mem_cgroup_lru_names_not_uptodate(void)
  4444. {
  4445. BUILD_BUG_ON(ARRAY_SIZE(mem_cgroup_lru_names) != NR_LRU_LISTS);
  4446. }
  4447. static int memcg_stat_show(struct cgroup *cont, struct cftype *cft,
  4448. struct seq_file *m)
  4449. {
  4450. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  4451. struct mem_cgroup *mi;
  4452. unsigned int i;
  4453. for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
  4454. if (i == MEM_CGROUP_STAT_SWAP && !do_swap_account)
  4455. continue;
  4456. seq_printf(m, "%s %ld\n", mem_cgroup_stat_names[i],
  4457. mem_cgroup_read_stat(memcg, i) * PAGE_SIZE);
  4458. }
  4459. for (i = 0; i < MEM_CGROUP_EVENTS_NSTATS; i++)
  4460. seq_printf(m, "%s %lu\n", mem_cgroup_events_names[i],
  4461. mem_cgroup_read_events(memcg, i));
  4462. for (i = 0; i < NR_LRU_LISTS; i++)
  4463. seq_printf(m, "%s %lu\n", mem_cgroup_lru_names[i],
  4464. mem_cgroup_nr_lru_pages(memcg, BIT(i)) * PAGE_SIZE);
  4465. /* Hierarchical information */
  4466. {
  4467. unsigned long long limit, memsw_limit;
  4468. memcg_get_hierarchical_limit(memcg, &limit, &memsw_limit);
  4469. seq_printf(m, "hierarchical_memory_limit %llu\n", limit);
  4470. if (do_swap_account)
  4471. seq_printf(m, "hierarchical_memsw_limit %llu\n",
  4472. memsw_limit);
  4473. }
  4474. for (i = 0; i < MEM_CGROUP_STAT_NSTATS; i++) {
  4475. long long val = 0;
  4476. if (i == MEM_CGROUP_STAT_SWAP && !do_swap_account)
  4477. continue;
  4478. for_each_mem_cgroup_tree(mi, memcg)
  4479. val += mem_cgroup_read_stat(mi, i) * PAGE_SIZE;
  4480. seq_printf(m, "total_%s %lld\n", mem_cgroup_stat_names[i], val);
  4481. }
  4482. for (i = 0; i < MEM_CGROUP_EVENTS_NSTATS; i++) {
  4483. unsigned long long val = 0;
  4484. for_each_mem_cgroup_tree(mi, memcg)
  4485. val += mem_cgroup_read_events(mi, i);
  4486. seq_printf(m, "total_%s %llu\n",
  4487. mem_cgroup_events_names[i], val);
  4488. }
  4489. for (i = 0; i < NR_LRU_LISTS; i++) {
  4490. unsigned long long val = 0;
  4491. for_each_mem_cgroup_tree(mi, memcg)
  4492. val += mem_cgroup_nr_lru_pages(mi, BIT(i)) * PAGE_SIZE;
  4493. seq_printf(m, "total_%s %llu\n", mem_cgroup_lru_names[i], val);
  4494. }
  4495. #ifdef CONFIG_DEBUG_VM
  4496. {
  4497. int nid, zid;
  4498. struct mem_cgroup_per_zone *mz;
  4499. struct zone_reclaim_stat *rstat;
  4500. unsigned long recent_rotated[2] = {0, 0};
  4501. unsigned long recent_scanned[2] = {0, 0};
  4502. for_each_online_node(nid)
  4503. for (zid = 0; zid < MAX_NR_ZONES; zid++) {
  4504. mz = mem_cgroup_zoneinfo(memcg, nid, zid);
  4505. rstat = &mz->lruvec.reclaim_stat;
  4506. recent_rotated[0] += rstat->recent_rotated[0];
  4507. recent_rotated[1] += rstat->recent_rotated[1];
  4508. recent_scanned[0] += rstat->recent_scanned[0];
  4509. recent_scanned[1] += rstat->recent_scanned[1];
  4510. }
  4511. seq_printf(m, "recent_rotated_anon %lu\n", recent_rotated[0]);
  4512. seq_printf(m, "recent_rotated_file %lu\n", recent_rotated[1]);
  4513. seq_printf(m, "recent_scanned_anon %lu\n", recent_scanned[0]);
  4514. seq_printf(m, "recent_scanned_file %lu\n", recent_scanned[1]);
  4515. }
  4516. #endif
  4517. return 0;
  4518. }
  4519. static u64 mem_cgroup_swappiness_read(struct cgroup *cgrp, struct cftype *cft)
  4520. {
  4521. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4522. return mem_cgroup_swappiness(memcg);
  4523. }
  4524. static int mem_cgroup_swappiness_write(struct cgroup *cgrp, struct cftype *cft,
  4525. u64 val)
  4526. {
  4527. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4528. struct mem_cgroup *parent;
  4529. if (val > 100)
  4530. return -EINVAL;
  4531. if (cgrp->parent == NULL)
  4532. return -EINVAL;
  4533. parent = mem_cgroup_from_cont(cgrp->parent);
  4534. cgroup_lock();
  4535. /* If under hierarchy, only empty-root can set this value */
  4536. if ((parent->use_hierarchy) ||
  4537. (memcg->use_hierarchy && !list_empty(&cgrp->children))) {
  4538. cgroup_unlock();
  4539. return -EINVAL;
  4540. }
  4541. memcg->swappiness = val;
  4542. cgroup_unlock();
  4543. return 0;
  4544. }
  4545. static void __mem_cgroup_threshold(struct mem_cgroup *memcg, bool swap)
  4546. {
  4547. struct mem_cgroup_threshold_ary *t;
  4548. u64 usage;
  4549. int i;
  4550. rcu_read_lock();
  4551. if (!swap)
  4552. t = rcu_dereference(memcg->thresholds.primary);
  4553. else
  4554. t = rcu_dereference(memcg->memsw_thresholds.primary);
  4555. if (!t)
  4556. goto unlock;
  4557. usage = mem_cgroup_usage(memcg, swap);
  4558. /*
  4559. * current_threshold points to threshold just below or equal to usage.
  4560. * If it's not true, a threshold was crossed after last
  4561. * call of __mem_cgroup_threshold().
  4562. */
  4563. i = t->current_threshold;
  4564. /*
  4565. * Iterate backward over array of thresholds starting from
  4566. * current_threshold and check if a threshold is crossed.
  4567. * If none of thresholds below usage is crossed, we read
  4568. * only one element of the array here.
  4569. */
  4570. for (; i >= 0 && unlikely(t->entries[i].threshold > usage); i--)
  4571. eventfd_signal(t->entries[i].eventfd, 1);
  4572. /* i = current_threshold + 1 */
  4573. i++;
  4574. /*
  4575. * Iterate forward over array of thresholds starting from
  4576. * current_threshold+1 and check if a threshold is crossed.
  4577. * If none of thresholds above usage is crossed, we read
  4578. * only one element of the array here.
  4579. */
  4580. for (; i < t->size && unlikely(t->entries[i].threshold <= usage); i++)
  4581. eventfd_signal(t->entries[i].eventfd, 1);
  4582. /* Update current_threshold */
  4583. t->current_threshold = i - 1;
  4584. unlock:
  4585. rcu_read_unlock();
  4586. }
  4587. static void mem_cgroup_threshold(struct mem_cgroup *memcg)
  4588. {
  4589. while (memcg) {
  4590. __mem_cgroup_threshold(memcg, false);
  4591. if (do_swap_account)
  4592. __mem_cgroup_threshold(memcg, true);
  4593. memcg = parent_mem_cgroup(memcg);
  4594. }
  4595. }
  4596. static int compare_thresholds(const void *a, const void *b)
  4597. {
  4598. const struct mem_cgroup_threshold *_a = a;
  4599. const struct mem_cgroup_threshold *_b = b;
  4600. return _a->threshold - _b->threshold;
  4601. }
  4602. static int mem_cgroup_oom_notify_cb(struct mem_cgroup *memcg)
  4603. {
  4604. struct mem_cgroup_eventfd_list *ev;
  4605. list_for_each_entry(ev, &memcg->oom_notify, list)
  4606. eventfd_signal(ev->eventfd, 1);
  4607. return 0;
  4608. }
  4609. static void mem_cgroup_oom_notify(struct mem_cgroup *memcg)
  4610. {
  4611. struct mem_cgroup *iter;
  4612. for_each_mem_cgroup_tree(iter, memcg)
  4613. mem_cgroup_oom_notify_cb(iter);
  4614. }
  4615. static int mem_cgroup_usage_register_event(struct cgroup *cgrp,
  4616. struct cftype *cft, struct eventfd_ctx *eventfd, const char *args)
  4617. {
  4618. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4619. struct mem_cgroup_thresholds *thresholds;
  4620. struct mem_cgroup_threshold_ary *new;
  4621. enum res_type type = MEMFILE_TYPE(cft->private);
  4622. u64 threshold, usage;
  4623. int i, size, ret;
  4624. ret = res_counter_memparse_write_strategy(args, &threshold);
  4625. if (ret)
  4626. return ret;
  4627. mutex_lock(&memcg->thresholds_lock);
  4628. if (type == _MEM)
  4629. thresholds = &memcg->thresholds;
  4630. else if (type == _MEMSWAP)
  4631. thresholds = &memcg->memsw_thresholds;
  4632. else
  4633. BUG();
  4634. usage = mem_cgroup_usage(memcg, type == _MEMSWAP);
  4635. /* Check if a threshold crossed before adding a new one */
  4636. if (thresholds->primary)
  4637. __mem_cgroup_threshold(memcg, type == _MEMSWAP);
  4638. size = thresholds->primary ? thresholds->primary->size + 1 : 1;
  4639. /* Allocate memory for new array of thresholds */
  4640. new = kmalloc(sizeof(*new) + size * sizeof(struct mem_cgroup_threshold),
  4641. GFP_KERNEL);
  4642. if (!new) {
  4643. ret = -ENOMEM;
  4644. goto unlock;
  4645. }
  4646. new->size = size;
  4647. /* Copy thresholds (if any) to new array */
  4648. if (thresholds->primary) {
  4649. memcpy(new->entries, thresholds->primary->entries, (size - 1) *
  4650. sizeof(struct mem_cgroup_threshold));
  4651. }
  4652. /* Add new threshold */
  4653. new->entries[size - 1].eventfd = eventfd;
  4654. new->entries[size - 1].threshold = threshold;
  4655. /* Sort thresholds. Registering of new threshold isn't time-critical */
  4656. sort(new->entries, size, sizeof(struct mem_cgroup_threshold),
  4657. compare_thresholds, NULL);
  4658. /* Find current threshold */
  4659. new->current_threshold = -1;
  4660. for (i = 0; i < size; i++) {
  4661. if (new->entries[i].threshold <= usage) {
  4662. /*
  4663. * new->current_threshold will not be used until
  4664. * rcu_assign_pointer(), so it's safe to increment
  4665. * it here.
  4666. */
  4667. ++new->current_threshold;
  4668. } else
  4669. break;
  4670. }
  4671. /* Free old spare buffer and save old primary buffer as spare */
  4672. kfree(thresholds->spare);
  4673. thresholds->spare = thresholds->primary;
  4674. rcu_assign_pointer(thresholds->primary, new);
  4675. /* To be sure that nobody uses thresholds */
  4676. synchronize_rcu();
  4677. unlock:
  4678. mutex_unlock(&memcg->thresholds_lock);
  4679. return ret;
  4680. }
  4681. static void mem_cgroup_usage_unregister_event(struct cgroup *cgrp,
  4682. struct cftype *cft, struct eventfd_ctx *eventfd)
  4683. {
  4684. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4685. struct mem_cgroup_thresholds *thresholds;
  4686. struct mem_cgroup_threshold_ary *new;
  4687. enum res_type type = MEMFILE_TYPE(cft->private);
  4688. u64 usage;
  4689. int i, j, size;
  4690. mutex_lock(&memcg->thresholds_lock);
  4691. if (type == _MEM)
  4692. thresholds = &memcg->thresholds;
  4693. else if (type == _MEMSWAP)
  4694. thresholds = &memcg->memsw_thresholds;
  4695. else
  4696. BUG();
  4697. if (!thresholds->primary)
  4698. goto unlock;
  4699. usage = mem_cgroup_usage(memcg, type == _MEMSWAP);
  4700. /* Check if a threshold crossed before removing */
  4701. __mem_cgroup_threshold(memcg, type == _MEMSWAP);
  4702. /* Calculate new number of threshold */
  4703. size = 0;
  4704. for (i = 0; i < thresholds->primary->size; i++) {
  4705. if (thresholds->primary->entries[i].eventfd != eventfd)
  4706. size++;
  4707. }
  4708. new = thresholds->spare;
  4709. /* Set thresholds array to NULL if we don't have thresholds */
  4710. if (!size) {
  4711. kfree(new);
  4712. new = NULL;
  4713. goto swap_buffers;
  4714. }
  4715. new->size = size;
  4716. /* Copy thresholds and find current threshold */
  4717. new->current_threshold = -1;
  4718. for (i = 0, j = 0; i < thresholds->primary->size; i++) {
  4719. if (thresholds->primary->entries[i].eventfd == eventfd)
  4720. continue;
  4721. new->entries[j] = thresholds->primary->entries[i];
  4722. if (new->entries[j].threshold <= usage) {
  4723. /*
  4724. * new->current_threshold will not be used
  4725. * until rcu_assign_pointer(), so it's safe to increment
  4726. * it here.
  4727. */
  4728. ++new->current_threshold;
  4729. }
  4730. j++;
  4731. }
  4732. swap_buffers:
  4733. /* Swap primary and spare array */
  4734. thresholds->spare = thresholds->primary;
  4735. /* If all events are unregistered, free the spare array */
  4736. if (!new) {
  4737. kfree(thresholds->spare);
  4738. thresholds->spare = NULL;
  4739. }
  4740. rcu_assign_pointer(thresholds->primary, new);
  4741. /* To be sure that nobody uses thresholds */
  4742. synchronize_rcu();
  4743. unlock:
  4744. mutex_unlock(&memcg->thresholds_lock);
  4745. }
  4746. static int mem_cgroup_oom_register_event(struct cgroup *cgrp,
  4747. struct cftype *cft, struct eventfd_ctx *eventfd, const char *args)
  4748. {
  4749. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4750. struct mem_cgroup_eventfd_list *event;
  4751. enum res_type type = MEMFILE_TYPE(cft->private);
  4752. BUG_ON(type != _OOM_TYPE);
  4753. event = kmalloc(sizeof(*event), GFP_KERNEL);
  4754. if (!event)
  4755. return -ENOMEM;
  4756. spin_lock(&memcg_oom_lock);
  4757. event->eventfd = eventfd;
  4758. list_add(&event->list, &memcg->oom_notify);
  4759. /* already in OOM ? */
  4760. if (atomic_read(&memcg->under_oom))
  4761. eventfd_signal(eventfd, 1);
  4762. spin_unlock(&memcg_oom_lock);
  4763. return 0;
  4764. }
  4765. static void mem_cgroup_oom_unregister_event(struct cgroup *cgrp,
  4766. struct cftype *cft, struct eventfd_ctx *eventfd)
  4767. {
  4768. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4769. struct mem_cgroup_eventfd_list *ev, *tmp;
  4770. enum res_type type = MEMFILE_TYPE(cft->private);
  4771. BUG_ON(type != _OOM_TYPE);
  4772. spin_lock(&memcg_oom_lock);
  4773. list_for_each_entry_safe(ev, tmp, &memcg->oom_notify, list) {
  4774. if (ev->eventfd == eventfd) {
  4775. list_del(&ev->list);
  4776. kfree(ev);
  4777. }
  4778. }
  4779. spin_unlock(&memcg_oom_lock);
  4780. }
  4781. static int mem_cgroup_oom_control_read(struct cgroup *cgrp,
  4782. struct cftype *cft, struct cgroup_map_cb *cb)
  4783. {
  4784. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4785. cb->fill(cb, "oom_kill_disable", memcg->oom_kill_disable);
  4786. if (atomic_read(&memcg->under_oom))
  4787. cb->fill(cb, "under_oom", 1);
  4788. else
  4789. cb->fill(cb, "under_oom", 0);
  4790. return 0;
  4791. }
  4792. static int mem_cgroup_oom_control_write(struct cgroup *cgrp,
  4793. struct cftype *cft, u64 val)
  4794. {
  4795. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgrp);
  4796. struct mem_cgroup *parent;
  4797. /* cannot set to root cgroup and only 0 and 1 are allowed */
  4798. if (!cgrp->parent || !((val == 0) || (val == 1)))
  4799. return -EINVAL;
  4800. parent = mem_cgroup_from_cont(cgrp->parent);
  4801. cgroup_lock();
  4802. /* oom-kill-disable is a flag for subhierarchy. */
  4803. if ((parent->use_hierarchy) ||
  4804. (memcg->use_hierarchy && !list_empty(&cgrp->children))) {
  4805. cgroup_unlock();
  4806. return -EINVAL;
  4807. }
  4808. memcg->oom_kill_disable = val;
  4809. if (!val)
  4810. memcg_oom_recover(memcg);
  4811. cgroup_unlock();
  4812. return 0;
  4813. }
  4814. #ifdef CONFIG_MEMCG_KMEM
  4815. static int memcg_init_kmem(struct mem_cgroup *memcg, struct cgroup_subsys *ss)
  4816. {
  4817. int ret;
  4818. memcg->kmemcg_id = -1;
  4819. ret = memcg_propagate_kmem(memcg);
  4820. if (ret)
  4821. return ret;
  4822. return mem_cgroup_sockets_init(memcg, ss);
  4823. };
  4824. static void kmem_cgroup_destroy(struct mem_cgroup *memcg)
  4825. {
  4826. mem_cgroup_sockets_destroy(memcg);
  4827. memcg_kmem_mark_dead(memcg);
  4828. if (res_counter_read_u64(&memcg->kmem, RES_USAGE) != 0)
  4829. return;
  4830. /*
  4831. * Charges already down to 0, undo mem_cgroup_get() done in the charge
  4832. * path here, being careful not to race with memcg_uncharge_kmem: it is
  4833. * possible that the charges went down to 0 between mark_dead and the
  4834. * res_counter read, so in that case, we don't need the put
  4835. */
  4836. if (memcg_kmem_test_and_clear_dead(memcg))
  4837. mem_cgroup_put(memcg);
  4838. }
  4839. #else
  4840. static int memcg_init_kmem(struct mem_cgroup *memcg, struct cgroup_subsys *ss)
  4841. {
  4842. return 0;
  4843. }
  4844. static void kmem_cgroup_destroy(struct mem_cgroup *memcg)
  4845. {
  4846. }
  4847. #endif
  4848. static struct cftype mem_cgroup_files[] = {
  4849. {
  4850. .name = "usage_in_bytes",
  4851. .private = MEMFILE_PRIVATE(_MEM, RES_USAGE),
  4852. .read = mem_cgroup_read,
  4853. .register_event = mem_cgroup_usage_register_event,
  4854. .unregister_event = mem_cgroup_usage_unregister_event,
  4855. },
  4856. {
  4857. .name = "max_usage_in_bytes",
  4858. .private = MEMFILE_PRIVATE(_MEM, RES_MAX_USAGE),
  4859. .trigger = mem_cgroup_reset,
  4860. .read = mem_cgroup_read,
  4861. },
  4862. {
  4863. .name = "limit_in_bytes",
  4864. .private = MEMFILE_PRIVATE(_MEM, RES_LIMIT),
  4865. .write_string = mem_cgroup_write,
  4866. .read = mem_cgroup_read,
  4867. },
  4868. {
  4869. .name = "soft_limit_in_bytes",
  4870. .private = MEMFILE_PRIVATE(_MEM, RES_SOFT_LIMIT),
  4871. .write_string = mem_cgroup_write,
  4872. .read = mem_cgroup_read,
  4873. },
  4874. {
  4875. .name = "failcnt",
  4876. .private = MEMFILE_PRIVATE(_MEM, RES_FAILCNT),
  4877. .trigger = mem_cgroup_reset,
  4878. .read = mem_cgroup_read,
  4879. },
  4880. {
  4881. .name = "stat",
  4882. .read_seq_string = memcg_stat_show,
  4883. },
  4884. {
  4885. .name = "force_empty",
  4886. .trigger = mem_cgroup_force_empty_write,
  4887. },
  4888. {
  4889. .name = "use_hierarchy",
  4890. .write_u64 = mem_cgroup_hierarchy_write,
  4891. .read_u64 = mem_cgroup_hierarchy_read,
  4892. },
  4893. {
  4894. .name = "swappiness",
  4895. .read_u64 = mem_cgroup_swappiness_read,
  4896. .write_u64 = mem_cgroup_swappiness_write,
  4897. },
  4898. {
  4899. .name = "move_charge_at_immigrate",
  4900. .read_u64 = mem_cgroup_move_charge_read,
  4901. .write_u64 = mem_cgroup_move_charge_write,
  4902. },
  4903. {
  4904. .name = "oom_control",
  4905. .read_map = mem_cgroup_oom_control_read,
  4906. .write_u64 = mem_cgroup_oom_control_write,
  4907. .register_event = mem_cgroup_oom_register_event,
  4908. .unregister_event = mem_cgroup_oom_unregister_event,
  4909. .private = MEMFILE_PRIVATE(_OOM_TYPE, OOM_CONTROL),
  4910. },
  4911. #ifdef CONFIG_NUMA
  4912. {
  4913. .name = "numa_stat",
  4914. .read_seq_string = memcg_numa_stat_show,
  4915. },
  4916. #endif
  4917. #ifdef CONFIG_MEMCG_SWAP
  4918. {
  4919. .name = "memsw.usage_in_bytes",
  4920. .private = MEMFILE_PRIVATE(_MEMSWAP, RES_USAGE),
  4921. .read = mem_cgroup_read,
  4922. .register_event = mem_cgroup_usage_register_event,
  4923. .unregister_event = mem_cgroup_usage_unregister_event,
  4924. },
  4925. {
  4926. .name = "memsw.max_usage_in_bytes",
  4927. .private = MEMFILE_PRIVATE(_MEMSWAP, RES_MAX_USAGE),
  4928. .trigger = mem_cgroup_reset,
  4929. .read = mem_cgroup_read,
  4930. },
  4931. {
  4932. .name = "memsw.limit_in_bytes",
  4933. .private = MEMFILE_PRIVATE(_MEMSWAP, RES_LIMIT),
  4934. .write_string = mem_cgroup_write,
  4935. .read = mem_cgroup_read,
  4936. },
  4937. {
  4938. .name = "memsw.failcnt",
  4939. .private = MEMFILE_PRIVATE(_MEMSWAP, RES_FAILCNT),
  4940. .trigger = mem_cgroup_reset,
  4941. .read = mem_cgroup_read,
  4942. },
  4943. #endif
  4944. #ifdef CONFIG_MEMCG_KMEM
  4945. {
  4946. .name = "kmem.limit_in_bytes",
  4947. .private = MEMFILE_PRIVATE(_KMEM, RES_LIMIT),
  4948. .write_string = mem_cgroup_write,
  4949. .read = mem_cgroup_read,
  4950. },
  4951. {
  4952. .name = "kmem.usage_in_bytes",
  4953. .private = MEMFILE_PRIVATE(_KMEM, RES_USAGE),
  4954. .read = mem_cgroup_read,
  4955. },
  4956. {
  4957. .name = "kmem.failcnt",
  4958. .private = MEMFILE_PRIVATE(_KMEM, RES_FAILCNT),
  4959. .trigger = mem_cgroup_reset,
  4960. .read = mem_cgroup_read,
  4961. },
  4962. {
  4963. .name = "kmem.max_usage_in_bytes",
  4964. .private = MEMFILE_PRIVATE(_KMEM, RES_MAX_USAGE),
  4965. .trigger = mem_cgroup_reset,
  4966. .read = mem_cgroup_read,
  4967. },
  4968. #endif
  4969. { }, /* terminate */
  4970. };
  4971. static int alloc_mem_cgroup_per_zone_info(struct mem_cgroup *memcg, int node)
  4972. {
  4973. struct mem_cgroup_per_node *pn;
  4974. struct mem_cgroup_per_zone *mz;
  4975. int zone, tmp = node;
  4976. /*
  4977. * This routine is called against possible nodes.
  4978. * But it's BUG to call kmalloc() against offline node.
  4979. *
  4980. * TODO: this routine can waste much memory for nodes which will
  4981. * never be onlined. It's better to use memory hotplug callback
  4982. * function.
  4983. */
  4984. if (!node_state(node, N_NORMAL_MEMORY))
  4985. tmp = -1;
  4986. pn = kzalloc_node(sizeof(*pn), GFP_KERNEL, tmp);
  4987. if (!pn)
  4988. return 1;
  4989. for (zone = 0; zone < MAX_NR_ZONES; zone++) {
  4990. mz = &pn->zoneinfo[zone];
  4991. lruvec_init(&mz->lruvec);
  4992. mz->usage_in_excess = 0;
  4993. mz->on_tree = false;
  4994. mz->memcg = memcg;
  4995. }
  4996. memcg->info.nodeinfo[node] = pn;
  4997. return 0;
  4998. }
  4999. static void free_mem_cgroup_per_zone_info(struct mem_cgroup *memcg, int node)
  5000. {
  5001. kfree(memcg->info.nodeinfo[node]);
  5002. }
  5003. static struct mem_cgroup *mem_cgroup_alloc(void)
  5004. {
  5005. struct mem_cgroup *memcg;
  5006. int size = sizeof(struct mem_cgroup);
  5007. /* Can be very big if MAX_NUMNODES is very big */
  5008. if (size < PAGE_SIZE)
  5009. memcg = kzalloc(size, GFP_KERNEL);
  5010. else
  5011. memcg = vzalloc(size);
  5012. if (!memcg)
  5013. return NULL;
  5014. memcg->stat = alloc_percpu(struct mem_cgroup_stat_cpu);
  5015. if (!memcg->stat)
  5016. goto out_free;
  5017. spin_lock_init(&memcg->pcp_counter_lock);
  5018. return memcg;
  5019. out_free:
  5020. if (size < PAGE_SIZE)
  5021. kfree(memcg);
  5022. else
  5023. vfree(memcg);
  5024. return NULL;
  5025. }
  5026. /*
  5027. * At destroying mem_cgroup, references from swap_cgroup can remain.
  5028. * (scanning all at force_empty is too costly...)
  5029. *
  5030. * Instead of clearing all references at force_empty, we remember
  5031. * the number of reference from swap_cgroup and free mem_cgroup when
  5032. * it goes down to 0.
  5033. *
  5034. * Removal of cgroup itself succeeds regardless of refs from swap.
  5035. */
  5036. static void __mem_cgroup_free(struct mem_cgroup *memcg)
  5037. {
  5038. int node;
  5039. int size = sizeof(struct mem_cgroup);
  5040. mem_cgroup_remove_from_trees(memcg);
  5041. free_css_id(&mem_cgroup_subsys, &memcg->css);
  5042. for_each_node(node)
  5043. free_mem_cgroup_per_zone_info(memcg, node);
  5044. free_percpu(memcg->stat);
  5045. /*
  5046. * We need to make sure that (at least for now), the jump label
  5047. * destruction code runs outside of the cgroup lock. This is because
  5048. * get_online_cpus(), which is called from the static_branch update,
  5049. * can't be called inside the cgroup_lock. cpusets are the ones
  5050. * enforcing this dependency, so if they ever change, we might as well.
  5051. *
  5052. * schedule_work() will guarantee this happens. Be careful if you need
  5053. * to move this code around, and make sure it is outside
  5054. * the cgroup_lock.
  5055. */
  5056. disarm_static_keys(memcg);
  5057. if (size < PAGE_SIZE)
  5058. kfree(memcg);
  5059. else
  5060. vfree(memcg);
  5061. }
  5062. /*
  5063. * Helpers for freeing a kmalloc()ed/vzalloc()ed mem_cgroup by RCU,
  5064. * but in process context. The work_freeing structure is overlaid
  5065. * on the rcu_freeing structure, which itself is overlaid on memsw.
  5066. */
  5067. static void free_work(struct work_struct *work)
  5068. {
  5069. struct mem_cgroup *memcg;
  5070. memcg = container_of(work, struct mem_cgroup, work_freeing);
  5071. __mem_cgroup_free(memcg);
  5072. }
  5073. static void free_rcu(struct rcu_head *rcu_head)
  5074. {
  5075. struct mem_cgroup *memcg;
  5076. memcg = container_of(rcu_head, struct mem_cgroup, rcu_freeing);
  5077. INIT_WORK(&memcg->work_freeing, free_work);
  5078. schedule_work(&memcg->work_freeing);
  5079. }
  5080. static void mem_cgroup_get(struct mem_cgroup *memcg)
  5081. {
  5082. atomic_inc(&memcg->refcnt);
  5083. }
  5084. static void __mem_cgroup_put(struct mem_cgroup *memcg, int count)
  5085. {
  5086. if (atomic_sub_and_test(count, &memcg->refcnt)) {
  5087. struct mem_cgroup *parent = parent_mem_cgroup(memcg);
  5088. call_rcu(&memcg->rcu_freeing, free_rcu);
  5089. if (parent)
  5090. mem_cgroup_put(parent);
  5091. }
  5092. }
  5093. static void mem_cgroup_put(struct mem_cgroup *memcg)
  5094. {
  5095. __mem_cgroup_put(memcg, 1);
  5096. }
  5097. /*
  5098. * Returns the parent mem_cgroup in memcgroup hierarchy with hierarchy enabled.
  5099. */
  5100. struct mem_cgroup *parent_mem_cgroup(struct mem_cgroup *memcg)
  5101. {
  5102. if (!memcg->res.parent)
  5103. return NULL;
  5104. return mem_cgroup_from_res_counter(memcg->res.parent, res);
  5105. }
  5106. EXPORT_SYMBOL(parent_mem_cgroup);
  5107. #ifdef CONFIG_MEMCG_SWAP
  5108. static void __init enable_swap_cgroup(void)
  5109. {
  5110. if (!mem_cgroup_disabled() && really_do_swap_account)
  5111. do_swap_account = 1;
  5112. }
  5113. #else
  5114. static void __init enable_swap_cgroup(void)
  5115. {
  5116. }
  5117. #endif
  5118. static int mem_cgroup_soft_limit_tree_init(void)
  5119. {
  5120. struct mem_cgroup_tree_per_node *rtpn;
  5121. struct mem_cgroup_tree_per_zone *rtpz;
  5122. int tmp, node, zone;
  5123. for_each_node(node) {
  5124. tmp = node;
  5125. if (!node_state(node, N_NORMAL_MEMORY))
  5126. tmp = -1;
  5127. rtpn = kzalloc_node(sizeof(*rtpn), GFP_KERNEL, tmp);
  5128. if (!rtpn)
  5129. goto err_cleanup;
  5130. soft_limit_tree.rb_tree_per_node[node] = rtpn;
  5131. for (zone = 0; zone < MAX_NR_ZONES; zone++) {
  5132. rtpz = &rtpn->rb_tree_per_zone[zone];
  5133. rtpz->rb_root = RB_ROOT;
  5134. spin_lock_init(&rtpz->lock);
  5135. }
  5136. }
  5137. return 0;
  5138. err_cleanup:
  5139. for_each_node(node) {
  5140. if (!soft_limit_tree.rb_tree_per_node[node])
  5141. break;
  5142. kfree(soft_limit_tree.rb_tree_per_node[node]);
  5143. soft_limit_tree.rb_tree_per_node[node] = NULL;
  5144. }
  5145. return 1;
  5146. }
  5147. static struct cgroup_subsys_state * __ref
  5148. mem_cgroup_css_alloc(struct cgroup *cont)
  5149. {
  5150. struct mem_cgroup *memcg, *parent;
  5151. long error = -ENOMEM;
  5152. int node;
  5153. memcg = mem_cgroup_alloc();
  5154. if (!memcg)
  5155. return ERR_PTR(error);
  5156. for_each_node(node)
  5157. if (alloc_mem_cgroup_per_zone_info(memcg, node))
  5158. goto free_out;
  5159. /* root ? */
  5160. if (cont->parent == NULL) {
  5161. int cpu;
  5162. enable_swap_cgroup();
  5163. parent = NULL;
  5164. if (mem_cgroup_soft_limit_tree_init())
  5165. goto free_out;
  5166. root_mem_cgroup = memcg;
  5167. for_each_possible_cpu(cpu) {
  5168. struct memcg_stock_pcp *stock =
  5169. &per_cpu(memcg_stock, cpu);
  5170. INIT_WORK(&stock->work, drain_local_stock);
  5171. }
  5172. hotcpu_notifier(memcg_cpu_hotplug_callback, 0);
  5173. } else {
  5174. parent = mem_cgroup_from_cont(cont->parent);
  5175. memcg->use_hierarchy = parent->use_hierarchy;
  5176. memcg->oom_kill_disable = parent->oom_kill_disable;
  5177. }
  5178. if (parent && parent->use_hierarchy) {
  5179. res_counter_init(&memcg->res, &parent->res);
  5180. res_counter_init(&memcg->memsw, &parent->memsw);
  5181. res_counter_init(&memcg->kmem, &parent->kmem);
  5182. /*
  5183. * We increment refcnt of the parent to ensure that we can
  5184. * safely access it on res_counter_charge/uncharge.
  5185. * This refcnt will be decremented when freeing this
  5186. * mem_cgroup(see mem_cgroup_put).
  5187. */
  5188. mem_cgroup_get(parent);
  5189. } else {
  5190. res_counter_init(&memcg->res, NULL);
  5191. res_counter_init(&memcg->memsw, NULL);
  5192. res_counter_init(&memcg->kmem, NULL);
  5193. /*
  5194. * Deeper hierachy with use_hierarchy == false doesn't make
  5195. * much sense so let cgroup subsystem know about this
  5196. * unfortunate state in our controller.
  5197. */
  5198. if (parent && parent != root_mem_cgroup)
  5199. mem_cgroup_subsys.broken_hierarchy = true;
  5200. }
  5201. memcg->last_scanned_node = MAX_NUMNODES;
  5202. INIT_LIST_HEAD(&memcg->oom_notify);
  5203. if (parent)
  5204. memcg->swappiness = mem_cgroup_swappiness(parent);
  5205. atomic_set(&memcg->refcnt, 1);
  5206. memcg->move_charge_at_immigrate = 0;
  5207. mutex_init(&memcg->thresholds_lock);
  5208. spin_lock_init(&memcg->move_lock);
  5209. error = memcg_init_kmem(memcg, &mem_cgroup_subsys);
  5210. if (error) {
  5211. /*
  5212. * We call put now because our (and parent's) refcnts
  5213. * are already in place. mem_cgroup_put() will internally
  5214. * call __mem_cgroup_free, so return directly
  5215. */
  5216. mem_cgroup_put(memcg);
  5217. return ERR_PTR(error);
  5218. }
  5219. return &memcg->css;
  5220. free_out:
  5221. __mem_cgroup_free(memcg);
  5222. return ERR_PTR(error);
  5223. }
  5224. static void mem_cgroup_css_offline(struct cgroup *cont)
  5225. {
  5226. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  5227. mem_cgroup_reparent_charges(memcg);
  5228. }
  5229. static void mem_cgroup_css_free(struct cgroup *cont)
  5230. {
  5231. struct mem_cgroup *memcg = mem_cgroup_from_cont(cont);
  5232. kmem_cgroup_destroy(memcg);
  5233. mem_cgroup_put(memcg);
  5234. }
  5235. #ifdef CONFIG_MMU
  5236. /* Handlers for move charge at task migration. */
  5237. #define PRECHARGE_COUNT_AT_ONCE 256
  5238. static int mem_cgroup_do_precharge(unsigned long count)
  5239. {
  5240. int ret = 0;
  5241. int batch_count = PRECHARGE_COUNT_AT_ONCE;
  5242. struct mem_cgroup *memcg = mc.to;
  5243. if (mem_cgroup_is_root(memcg)) {
  5244. mc.precharge += count;
  5245. /* we don't need css_get for root */
  5246. return ret;
  5247. }
  5248. /* try to charge at once */
  5249. if (count > 1) {
  5250. struct res_counter *dummy;
  5251. /*
  5252. * "memcg" cannot be under rmdir() because we've already checked
  5253. * by cgroup_lock_live_cgroup() that it is not removed and we
  5254. * are still under the same cgroup_mutex. So we can postpone
  5255. * css_get().
  5256. */
  5257. if (res_counter_charge(&memcg->res, PAGE_SIZE * count, &dummy))
  5258. goto one_by_one;
  5259. if (do_swap_account && res_counter_charge(&memcg->memsw,
  5260. PAGE_SIZE * count, &dummy)) {
  5261. res_counter_uncharge(&memcg->res, PAGE_SIZE * count);
  5262. goto one_by_one;
  5263. }
  5264. mc.precharge += count;
  5265. return ret;
  5266. }
  5267. one_by_one:
  5268. /* fall back to one by one charge */
  5269. while (count--) {
  5270. if (signal_pending(current)) {
  5271. ret = -EINTR;
  5272. break;
  5273. }
  5274. if (!batch_count--) {
  5275. batch_count = PRECHARGE_COUNT_AT_ONCE;
  5276. cond_resched();
  5277. }
  5278. ret = __mem_cgroup_try_charge(NULL,
  5279. GFP_KERNEL, 1, &memcg, false);
  5280. if (ret)
  5281. /* mem_cgroup_clear_mc() will do uncharge later */
  5282. return ret;
  5283. mc.precharge++;
  5284. }
  5285. return ret;
  5286. }
  5287. /**
  5288. * get_mctgt_type - get target type of moving charge
  5289. * @vma: the vma the pte to be checked belongs
  5290. * @addr: the address corresponding to the pte to be checked
  5291. * @ptent: the pte to be checked
  5292. * @target: the pointer the target page or swap ent will be stored(can be NULL)
  5293. *
  5294. * Returns
  5295. * 0(MC_TARGET_NONE): if the pte is not a target for move charge.
  5296. * 1(MC_TARGET_PAGE): if the page corresponding to this pte is a target for
  5297. * move charge. if @target is not NULL, the page is stored in target->page
  5298. * with extra refcnt got(Callers should handle it).
  5299. * 2(MC_TARGET_SWAP): if the swap entry corresponding to this pte is a
  5300. * target for charge migration. if @target is not NULL, the entry is stored
  5301. * in target->ent.
  5302. *
  5303. * Called with pte lock held.
  5304. */
  5305. union mc_target {
  5306. struct page *page;
  5307. swp_entry_t ent;
  5308. };
  5309. enum mc_target_type {
  5310. MC_TARGET_NONE = 0,
  5311. MC_TARGET_PAGE,
  5312. MC_TARGET_SWAP,
  5313. };
  5314. static struct page *mc_handle_present_pte(struct vm_area_struct *vma,
  5315. unsigned long addr, pte_t ptent)
  5316. {
  5317. struct page *page = vm_normal_page(vma, addr, ptent);
  5318. if (!page || !page_mapped(page))
  5319. return NULL;
  5320. if (PageAnon(page)) {
  5321. /* we don't move shared anon */
  5322. if (!move_anon())
  5323. return NULL;
  5324. } else if (!move_file())
  5325. /* we ignore mapcount for file pages */
  5326. return NULL;
  5327. if (!get_page_unless_zero(page))
  5328. return NULL;
  5329. return page;
  5330. }
  5331. #ifdef CONFIG_SWAP
  5332. static struct page *mc_handle_swap_pte(struct vm_area_struct *vma,
  5333. unsigned long addr, pte_t ptent, swp_entry_t *entry)
  5334. {
  5335. struct page *page = NULL;
  5336. swp_entry_t ent = pte_to_swp_entry(ptent);
  5337. if (!move_anon() || non_swap_entry(ent))
  5338. return NULL;
  5339. /*
  5340. * Because lookup_swap_cache() updates some statistics counter,
  5341. * we call find_get_page() with swapper_space directly.
  5342. */
  5343. page = find_get_page(&swapper_space, ent.val);
  5344. if (do_swap_account)
  5345. entry->val = ent.val;
  5346. return page;
  5347. }
  5348. #else
  5349. static struct page *mc_handle_swap_pte(struct vm_area_struct *vma,
  5350. unsigned long addr, pte_t ptent, swp_entry_t *entry)
  5351. {
  5352. return NULL;
  5353. }
  5354. #endif
  5355. static struct page *mc_handle_file_pte(struct vm_area_struct *vma,
  5356. unsigned long addr, pte_t ptent, swp_entry_t *entry)
  5357. {
  5358. struct page *page = NULL;
  5359. struct address_space *mapping;
  5360. pgoff_t pgoff;
  5361. if (!vma->vm_file) /* anonymous vma */
  5362. return NULL;
  5363. if (!move_file())
  5364. return NULL;
  5365. mapping = vma->vm_file->f_mapping;
  5366. if (pte_none(ptent))
  5367. pgoff = linear_page_index(vma, addr);
  5368. else /* pte_file(ptent) is true */
  5369. pgoff = pte_to_pgoff(ptent);
  5370. /* page is moved even if it's not RSS of this task(page-faulted). */
  5371. page = find_get_page(mapping, pgoff);
  5372. #ifdef CONFIG_SWAP
  5373. /* shmem/tmpfs may report page out on swap: account for that too. */
  5374. if (radix_tree_exceptional_entry(page)) {
  5375. swp_entry_t swap = radix_to_swp_entry(page);
  5376. if (do_swap_account)
  5377. *entry = swap;
  5378. page = find_get_page(&swapper_space, swap.val);
  5379. }
  5380. #endif
  5381. return page;
  5382. }
  5383. static enum mc_target_type get_mctgt_type(struct vm_area_struct *vma,
  5384. unsigned long addr, pte_t ptent, union mc_target *target)
  5385. {
  5386. struct page *page = NULL;
  5387. struct page_cgroup *pc;
  5388. enum mc_target_type ret = MC_TARGET_NONE;
  5389. swp_entry_t ent = { .val = 0 };
  5390. if (pte_present(ptent))
  5391. page = mc_handle_present_pte(vma, addr, ptent);
  5392. else if (is_swap_pte(ptent))
  5393. page = mc_handle_swap_pte(vma, addr, ptent, &ent);
  5394. else if (pte_none(ptent) || pte_file(ptent))
  5395. page = mc_handle_file_pte(vma, addr, ptent, &ent);
  5396. if (!page && !ent.val)
  5397. return ret;
  5398. if (page) {
  5399. pc = lookup_page_cgroup(page);
  5400. /*
  5401. * Do only loose check w/o page_cgroup lock.
  5402. * mem_cgroup_move_account() checks the pc is valid or not under
  5403. * the lock.
  5404. */
  5405. if (PageCgroupUsed(pc) && pc->mem_cgroup == mc.from) {
  5406. ret = MC_TARGET_PAGE;
  5407. if (target)
  5408. target->page = page;
  5409. }
  5410. if (!ret || !target)
  5411. put_page(page);
  5412. }
  5413. /* There is a swap entry and a page doesn't exist or isn't charged */
  5414. if (ent.val && !ret &&
  5415. css_id(&mc.from->css) == lookup_swap_cgroup_id(ent)) {
  5416. ret = MC_TARGET_SWAP;
  5417. if (target)
  5418. target->ent = ent;
  5419. }
  5420. return ret;
  5421. }
  5422. #ifdef CONFIG_TRANSPARENT_HUGEPAGE
  5423. /*
  5424. * We don't consider swapping or file mapped pages because THP does not
  5425. * support them for now.
  5426. * Caller should make sure that pmd_trans_huge(pmd) is true.
  5427. */
  5428. static enum mc_target_type get_mctgt_type_thp(struct vm_area_struct *vma,
  5429. unsigned long addr, pmd_t pmd, union mc_target *target)
  5430. {
  5431. struct page *page = NULL;
  5432. struct page_cgroup *pc;
  5433. enum mc_target_type ret = MC_TARGET_NONE;
  5434. page = pmd_page(pmd);
  5435. VM_BUG_ON(!page || !PageHead(page));
  5436. if (!move_anon())
  5437. return ret;
  5438. pc = lookup_page_cgroup(page);
  5439. if (PageCgroupUsed(pc) && pc->mem_cgroup == mc.from) {
  5440. ret = MC_TARGET_PAGE;
  5441. if (target) {
  5442. get_page(page);
  5443. target->page = page;
  5444. }
  5445. }
  5446. return ret;
  5447. }
  5448. #else
  5449. static inline enum mc_target_type get_mctgt_type_thp(struct vm_area_struct *vma,
  5450. unsigned long addr, pmd_t pmd, union mc_target *target)
  5451. {
  5452. return MC_TARGET_NONE;
  5453. }
  5454. #endif
  5455. static int mem_cgroup_count_precharge_pte_range(pmd_t *pmd,
  5456. unsigned long addr, unsigned long end,
  5457. struct mm_walk *walk)
  5458. {
  5459. struct vm_area_struct *vma = walk->private;
  5460. pte_t *pte;
  5461. spinlock_t *ptl;
  5462. if (pmd_trans_huge_lock(pmd, vma) == 1) {
  5463. if (get_mctgt_type_thp(vma, addr, *pmd, NULL) == MC_TARGET_PAGE)
  5464. mc.precharge += HPAGE_PMD_NR;
  5465. spin_unlock(&vma->vm_mm->page_table_lock);
  5466. return 0;
  5467. }
  5468. if (pmd_trans_unstable(pmd))
  5469. return 0;
  5470. pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
  5471. for (; addr != end; pte++, addr += PAGE_SIZE)
  5472. if (get_mctgt_type(vma, addr, *pte, NULL))
  5473. mc.precharge++; /* increment precharge temporarily */
  5474. pte_unmap_unlock(pte - 1, ptl);
  5475. cond_resched();
  5476. return 0;
  5477. }
  5478. static unsigned long mem_cgroup_count_precharge(struct mm_struct *mm)
  5479. {
  5480. unsigned long precharge;
  5481. struct vm_area_struct *vma;
  5482. down_read(&mm->mmap_sem);
  5483. for (vma = mm->mmap; vma; vma = vma->vm_next) {
  5484. struct mm_walk mem_cgroup_count_precharge_walk = {
  5485. .pmd_entry = mem_cgroup_count_precharge_pte_range,
  5486. .mm = mm,
  5487. .private = vma,
  5488. };
  5489. if (is_vm_hugetlb_page(vma))
  5490. continue;
  5491. walk_page_range(vma->vm_start, vma->vm_end,
  5492. &mem_cgroup_count_precharge_walk);
  5493. }
  5494. up_read(&mm->mmap_sem);
  5495. precharge = mc.precharge;
  5496. mc.precharge = 0;
  5497. return precharge;
  5498. }
  5499. static int mem_cgroup_precharge_mc(struct mm_struct *mm)
  5500. {
  5501. unsigned long precharge = mem_cgroup_count_precharge(mm);
  5502. VM_BUG_ON(mc.moving_task);
  5503. mc.moving_task = current;
  5504. return mem_cgroup_do_precharge(precharge);
  5505. }
  5506. /* cancels all extra charges on mc.from and mc.to, and wakes up all waiters. */
  5507. static void __mem_cgroup_clear_mc(void)
  5508. {
  5509. struct mem_cgroup *from = mc.from;
  5510. struct mem_cgroup *to = mc.to;
  5511. /* we must uncharge all the leftover precharges from mc.to */
  5512. if (mc.precharge) {
  5513. __mem_cgroup_cancel_charge(mc.to, mc.precharge);
  5514. mc.precharge = 0;
  5515. }
  5516. /*
  5517. * we didn't uncharge from mc.from at mem_cgroup_move_account(), so
  5518. * we must uncharge here.
  5519. */
  5520. if (mc.moved_charge) {
  5521. __mem_cgroup_cancel_charge(mc.from, mc.moved_charge);
  5522. mc.moved_charge = 0;
  5523. }
  5524. /* we must fixup refcnts and charges */
  5525. if (mc.moved_swap) {
  5526. /* uncharge swap account from the old cgroup */
  5527. if (!mem_cgroup_is_root(mc.from))
  5528. res_counter_uncharge(&mc.from->memsw,
  5529. PAGE_SIZE * mc.moved_swap);
  5530. __mem_cgroup_put(mc.from, mc.moved_swap);
  5531. if (!mem_cgroup_is_root(mc.to)) {
  5532. /*
  5533. * we charged both to->res and to->memsw, so we should
  5534. * uncharge to->res.
  5535. */
  5536. res_counter_uncharge(&mc.to->res,
  5537. PAGE_SIZE * mc.moved_swap);
  5538. }
  5539. /* we've already done mem_cgroup_get(mc.to) */
  5540. mc.moved_swap = 0;
  5541. }
  5542. memcg_oom_recover(from);
  5543. memcg_oom_recover(to);
  5544. wake_up_all(&mc.waitq);
  5545. }
  5546. static void mem_cgroup_clear_mc(void)
  5547. {
  5548. struct mem_cgroup *from = mc.from;
  5549. /*
  5550. * we must clear moving_task before waking up waiters at the end of
  5551. * task migration.
  5552. */
  5553. mc.moving_task = NULL;
  5554. __mem_cgroup_clear_mc();
  5555. spin_lock(&mc.lock);
  5556. mc.from = NULL;
  5557. mc.to = NULL;
  5558. spin_unlock(&mc.lock);
  5559. mem_cgroup_end_move(from);
  5560. }
  5561. static int mem_cgroup_can_attach(struct cgroup *cgroup,
  5562. struct cgroup_taskset *tset)
  5563. {
  5564. struct task_struct *p = cgroup_taskset_first(tset);
  5565. int ret = 0;
  5566. struct mem_cgroup *memcg = mem_cgroup_from_cont(cgroup);
  5567. if (memcg->move_charge_at_immigrate) {
  5568. struct mm_struct *mm;
  5569. struct mem_cgroup *from = mem_cgroup_from_task(p);
  5570. VM_BUG_ON(from == memcg);
  5571. mm = get_task_mm(p);
  5572. if (!mm)
  5573. return 0;
  5574. /* We move charges only when we move a owner of the mm */
  5575. if (mm->owner == p) {
  5576. VM_BUG_ON(mc.from);
  5577. VM_BUG_ON(mc.to);
  5578. VM_BUG_ON(mc.precharge);
  5579. VM_BUG_ON(mc.moved_charge);
  5580. VM_BUG_ON(mc.moved_swap);
  5581. mem_cgroup_start_move(from);
  5582. spin_lock(&mc.lock);
  5583. mc.from = from;
  5584. mc.to = memcg;
  5585. spin_unlock(&mc.lock);
  5586. /* We set mc.moving_task later */
  5587. ret = mem_cgroup_precharge_mc(mm);
  5588. if (ret)
  5589. mem_cgroup_clear_mc();
  5590. }
  5591. mmput(mm);
  5592. }
  5593. return ret;
  5594. }
  5595. static void mem_cgroup_cancel_attach(struct cgroup *cgroup,
  5596. struct cgroup_taskset *tset)
  5597. {
  5598. mem_cgroup_clear_mc();
  5599. }
  5600. static int mem_cgroup_move_charge_pte_range(pmd_t *pmd,
  5601. unsigned long addr, unsigned long end,
  5602. struct mm_walk *walk)
  5603. {
  5604. int ret = 0;
  5605. struct vm_area_struct *vma = walk->private;
  5606. pte_t *pte;
  5607. spinlock_t *ptl;
  5608. enum mc_target_type target_type;
  5609. union mc_target target;
  5610. struct page *page;
  5611. struct page_cgroup *pc;
  5612. /*
  5613. * We don't take compound_lock() here but no race with splitting thp
  5614. * happens because:
  5615. * - if pmd_trans_huge_lock() returns 1, the relevant thp is not
  5616. * under splitting, which means there's no concurrent thp split,
  5617. * - if another thread runs into split_huge_page() just after we
  5618. * entered this if-block, the thread must wait for page table lock
  5619. * to be unlocked in __split_huge_page_splitting(), where the main
  5620. * part of thp split is not executed yet.
  5621. */
  5622. if (pmd_trans_huge_lock(pmd, vma) == 1) {
  5623. if (mc.precharge < HPAGE_PMD_NR) {
  5624. spin_unlock(&vma->vm_mm->page_table_lock);
  5625. return 0;
  5626. }
  5627. target_type = get_mctgt_type_thp(vma, addr, *pmd, &target);
  5628. if (target_type == MC_TARGET_PAGE) {
  5629. page = target.page;
  5630. if (!isolate_lru_page(page)) {
  5631. pc = lookup_page_cgroup(page);
  5632. if (!mem_cgroup_move_account(page, HPAGE_PMD_NR,
  5633. pc, mc.from, mc.to)) {
  5634. mc.precharge -= HPAGE_PMD_NR;
  5635. mc.moved_charge += HPAGE_PMD_NR;
  5636. }
  5637. putback_lru_page(page);
  5638. }
  5639. put_page(page);
  5640. }
  5641. spin_unlock(&vma->vm_mm->page_table_lock);
  5642. return 0;
  5643. }
  5644. if (pmd_trans_unstable(pmd))
  5645. return 0;
  5646. retry:
  5647. pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
  5648. for (; addr != end; addr += PAGE_SIZE) {
  5649. pte_t ptent = *(pte++);
  5650. swp_entry_t ent;
  5651. if (!mc.precharge)
  5652. break;
  5653. switch (get_mctgt_type(vma, addr, ptent, &target)) {
  5654. case MC_TARGET_PAGE:
  5655. page = target.page;
  5656. if (isolate_lru_page(page))
  5657. goto put;
  5658. pc = lookup_page_cgroup(page);
  5659. if (!mem_cgroup_move_account(page, 1, pc,
  5660. mc.from, mc.to)) {
  5661. mc.precharge--;
  5662. /* we uncharge from mc.from later. */
  5663. mc.moved_charge++;
  5664. }
  5665. putback_lru_page(page);
  5666. put: /* get_mctgt_type() gets the page */
  5667. put_page(page);
  5668. break;
  5669. case MC_TARGET_SWAP:
  5670. ent = target.ent;
  5671. if (!mem_cgroup_move_swap_account(ent, mc.from, mc.to)) {
  5672. mc.precharge--;
  5673. /* we fixup refcnts and charges later. */
  5674. mc.moved_swap++;
  5675. }
  5676. break;
  5677. default:
  5678. break;
  5679. }
  5680. }
  5681. pte_unmap_unlock(pte - 1, ptl);
  5682. cond_resched();
  5683. if (addr != end) {
  5684. /*
  5685. * We have consumed all precharges we got in can_attach().
  5686. * We try charge one by one, but don't do any additional
  5687. * charges to mc.to if we have failed in charge once in attach()
  5688. * phase.
  5689. */
  5690. ret = mem_cgroup_do_precharge(1);
  5691. if (!ret)
  5692. goto retry;
  5693. }
  5694. return ret;
  5695. }
  5696. static void mem_cgroup_move_charge(struct mm_struct *mm)
  5697. {
  5698. struct vm_area_struct *vma;
  5699. lru_add_drain_all();
  5700. retry:
  5701. if (unlikely(!down_read_trylock(&mm->mmap_sem))) {
  5702. /*
  5703. * Someone who are holding the mmap_sem might be waiting in
  5704. * waitq. So we cancel all extra charges, wake up all waiters,
  5705. * and retry. Because we cancel precharges, we might not be able
  5706. * to move enough charges, but moving charge is a best-effort
  5707. * feature anyway, so it wouldn't be a big problem.
  5708. */
  5709. __mem_cgroup_clear_mc();
  5710. cond_resched();
  5711. goto retry;
  5712. }
  5713. for (vma = mm->mmap; vma; vma = vma->vm_next) {
  5714. int ret;
  5715. struct mm_walk mem_cgroup_move_charge_walk = {
  5716. .pmd_entry = mem_cgroup_move_charge_pte_range,
  5717. .mm = mm,
  5718. .private = vma,
  5719. };
  5720. if (is_vm_hugetlb_page(vma))
  5721. continue;
  5722. ret = walk_page_range(vma->vm_start, vma->vm_end,
  5723. &mem_cgroup_move_charge_walk);
  5724. if (ret)
  5725. /*
  5726. * means we have consumed all precharges and failed in
  5727. * doing additional charge. Just abandon here.
  5728. */
  5729. break;
  5730. }
  5731. up_read(&mm->mmap_sem);
  5732. }
  5733. static void mem_cgroup_move_task(struct cgroup *cont,
  5734. struct cgroup_taskset *tset)
  5735. {
  5736. struct task_struct *p = cgroup_taskset_first(tset);
  5737. struct mm_struct *mm = get_task_mm(p);
  5738. if (mm) {
  5739. if (mc.to)
  5740. mem_cgroup_move_charge(mm);
  5741. mmput(mm);
  5742. }
  5743. if (mc.to)
  5744. mem_cgroup_clear_mc();
  5745. }
  5746. #else /* !CONFIG_MMU */
  5747. static int mem_cgroup_can_attach(struct cgroup *cgroup,
  5748. struct cgroup_taskset *tset)
  5749. {
  5750. return 0;
  5751. }
  5752. static void mem_cgroup_cancel_attach(struct cgroup *cgroup,
  5753. struct cgroup_taskset *tset)
  5754. {
  5755. }
  5756. static void mem_cgroup_move_task(struct cgroup *cont,
  5757. struct cgroup_taskset *tset)
  5758. {
  5759. }
  5760. #endif
  5761. struct cgroup_subsys mem_cgroup_subsys = {
  5762. .name = "memory",
  5763. .subsys_id = mem_cgroup_subsys_id,
  5764. .css_alloc = mem_cgroup_css_alloc,
  5765. .css_offline = mem_cgroup_css_offline,
  5766. .css_free = mem_cgroup_css_free,
  5767. .can_attach = mem_cgroup_can_attach,
  5768. .cancel_attach = mem_cgroup_cancel_attach,
  5769. .attach = mem_cgroup_move_task,
  5770. .base_cftypes = mem_cgroup_files,
  5771. .early_init = 0,
  5772. .use_id = 1,
  5773. };
  5774. #ifdef CONFIG_MEMCG_SWAP
  5775. static int __init enable_swap_account(char *s)
  5776. {
  5777. /* consider enabled if no parameter or 1 is given */
  5778. if (!strcmp(s, "1"))
  5779. really_do_swap_account = 1;
  5780. else if (!strcmp(s, "0"))
  5781. really_do_swap_account = 0;
  5782. return 1;
  5783. }
  5784. __setup("swapaccount=", enable_swap_account);
  5785. #endif