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CommitLineData
1da177e4
LT
1/*
2 * linux/mm/oom_kill.c
3 *
4 * Copyright (C) 1998,2000 Rik van Riel
5 * Thanks go out to Claus Fischer for some serious inspiration and
6 * for goading me into coding this file...
a63d83f4
DR
7 * Copyright (C) 2010 Google, Inc.
8 * Rewritten by David Rientjes
1da177e4
LT
9 *
10 * The routines in this file are used to kill a process when
a49335cc
PJ
11 * we're seriously out of memory. This gets called from __alloc_pages()
12 * in mm/page_alloc.c when we really run out of memory.
1da177e4
LT
13 *
14 * Since we won't call these routines often (on a well-configured
15 * machine) this file will double as a 'coding guide' and a signpost
16 * for newbie kernel hackers. It features several pointers to major
17 * kernel subsystems and hints as to where to find out what things do.
18 */
19
8ac773b4 20#include <linux/oom.h>
1da177e4 21#include <linux/mm.h>
4e950f6f 22#include <linux/err.h>
5a0e3ad6 23#include <linux/gfp.h>
1da177e4 24#include <linux/sched.h>
6e84f315 25#include <linux/sched/mm.h>
f7ccbae4 26#include <linux/sched/coredump.h>
29930025 27#include <linux/sched/task.h>
1da177e4
LT
28#include <linux/swap.h>
29#include <linux/timex.h>
30#include <linux/jiffies.h>
ef08e3b4 31#include <linux/cpuset.h>
b95f1b31 32#include <linux/export.h>
8bc719d3 33#include <linux/notifier.h>
c7ba5c9e 34#include <linux/memcontrol.h>
6f48d0eb 35#include <linux/mempolicy.h>
5cd9c58f 36#include <linux/security.h>
edd45544 37#include <linux/ptrace.h>
f660daac 38#include <linux/freezer.h>
43d2b113 39#include <linux/ftrace.h>
dc3f21ea 40#include <linux/ratelimit.h>
aac45363
MH
41#include <linux/kthread.h>
42#include <linux/init.h>
5cc96a7b 43#include <linux/mmu_notifier.h>
aac45363
MH
44
45#include <asm/tlb.h>
46#include "internal.h"
43d2b113
KH
47
48#define CREATE_TRACE_POINTS
49#include <trace/events/oom.h>
1da177e4 50
fadd8fbd 51int sysctl_panic_on_oom;
fe071d7e 52int sysctl_oom_kill_allocating_task;
ad915c43 53int sysctl_oom_dump_tasks = 1;
dc56401f
JW
54
55DEFINE_MUTEX(oom_lock);
1da177e4 56
6f48d0eb
DR
57#ifdef CONFIG_NUMA
58/**
59 * has_intersects_mems_allowed() - check task eligiblity for kill
ad962441 60 * @start: task struct of which task to consider
6f48d0eb
DR
61 * @mask: nodemask passed to page allocator for mempolicy ooms
62 *
63 * Task eligibility is determined by whether or not a candidate task, @tsk,
64 * shares the same mempolicy nodes as current if it is bound by such a policy
65 * and whether or not it has the same set of allowed cpuset nodes.
495789a5 66 */
ad962441 67static bool has_intersects_mems_allowed(struct task_struct *start,
6f48d0eb 68 const nodemask_t *mask)
495789a5 69{
ad962441
ON
70 struct task_struct *tsk;
71 bool ret = false;
495789a5 72
ad962441 73 rcu_read_lock();
1da4db0c 74 for_each_thread(start, tsk) {
6f48d0eb
DR
75 if (mask) {
76 /*
77 * If this is a mempolicy constrained oom, tsk's
78 * cpuset is irrelevant. Only return true if its
79 * mempolicy intersects current, otherwise it may be
80 * needlessly killed.
81 */
ad962441 82 ret = mempolicy_nodemask_intersects(tsk, mask);
6f48d0eb
DR
83 } else {
84 /*
85 * This is not a mempolicy constrained oom, so only
86 * check the mems of tsk's cpuset.
87 */
ad962441 88 ret = cpuset_mems_allowed_intersects(current, tsk);
6f48d0eb 89 }
ad962441
ON
90 if (ret)
91 break;
1da4db0c 92 }
ad962441 93 rcu_read_unlock();
df1090a8 94
ad962441 95 return ret;
6f48d0eb
DR
96}
97#else
98static bool has_intersects_mems_allowed(struct task_struct *tsk,
99 const nodemask_t *mask)
100{
101 return true;
495789a5 102}
6f48d0eb 103#endif /* CONFIG_NUMA */
495789a5 104
6f48d0eb
DR
105/*
106 * The process p may have detached its own ->mm while exiting or through
107 * use_mm(), but one or more of its subthreads may still have a valid
108 * pointer. Return p, or any of its subthreads with a valid ->mm, with
109 * task_lock() held.
110 */
158e0a2d 111struct task_struct *find_lock_task_mm(struct task_struct *p)
dd8e8f40 112{
1da4db0c 113 struct task_struct *t;
dd8e8f40 114
4d4048be
ON
115 rcu_read_lock();
116
1da4db0c 117 for_each_thread(p, t) {
dd8e8f40
ON
118 task_lock(t);
119 if (likely(t->mm))
4d4048be 120 goto found;
dd8e8f40 121 task_unlock(t);
1da4db0c 122 }
4d4048be
ON
123 t = NULL;
124found:
125 rcu_read_unlock();
dd8e8f40 126
4d4048be 127 return t;
dd8e8f40
ON
128}
129
db2a0dd7
YB
130/*
131 * order == -1 means the oom kill is required by sysrq, otherwise only
132 * for display purposes.
133 */
134static inline bool is_sysrq_oom(struct oom_control *oc)
135{
136 return oc->order == -1;
137}
138
7c5f64f8
VD
139static inline bool is_memcg_oom(struct oom_control *oc)
140{
141 return oc->memcg != NULL;
142}
143
ab290adb 144/* return true if the task is not adequate as candidate victim task. */
e85bfd3a 145static bool oom_unkillable_task(struct task_struct *p,
2314b42d 146 struct mem_cgroup *memcg, const nodemask_t *nodemask)
ab290adb
KM
147{
148 if (is_global_init(p))
149 return true;
150 if (p->flags & PF_KTHREAD)
151 return true;
152
153 /* When mem_cgroup_out_of_memory() and p is not member of the group */
72835c86 154 if (memcg && !task_in_mem_cgroup(p, memcg))
ab290adb
KM
155 return true;
156
157 /* p may not have freeable memory in nodemask */
158 if (!has_intersects_mems_allowed(p, nodemask))
159 return true;
160
161 return false;
162}
163
1da177e4 164/**
a63d83f4 165 * oom_badness - heuristic function to determine which candidate task to kill
1da177e4 166 * @p: task struct of which task we should calculate
a63d83f4 167 * @totalpages: total present RAM allowed for page allocation
1da177e4 168 *
a63d83f4
DR
169 * The heuristic for determining which task to kill is made to be as simple and
170 * predictable as possible. The goal is to return the highest value for the
171 * task consuming the most memory to avoid subsequent oom failures.
1da177e4 172 */
a7f638f9
DR
173unsigned long oom_badness(struct task_struct *p, struct mem_cgroup *memcg,
174 const nodemask_t *nodemask, unsigned long totalpages)
1da177e4 175{
1e11ad8d 176 long points;
61eafb00 177 long adj;
28b83c51 178
72835c86 179 if (oom_unkillable_task(p, memcg, nodemask))
26ebc984 180 return 0;
1da177e4 181
dd8e8f40
ON
182 p = find_lock_task_mm(p);
183 if (!p)
1da177e4
LT
184 return 0;
185
bb8a4b7f
MH
186 /*
187 * Do not even consider tasks which are explicitly marked oom
b18dc5f2
MH
188 * unkillable or have been already oom reaped or the are in
189 * the middle of vfork
bb8a4b7f 190 */
a9c58b90 191 adj = (long)p->signal->oom_score_adj;
bb8a4b7f 192 if (adj == OOM_SCORE_ADJ_MIN ||
862e3073 193 test_bit(MMF_OOM_SKIP, &p->mm->flags) ||
b18dc5f2 194 in_vfork(p)) {
5aecc85a
MH
195 task_unlock(p);
196 return 0;
197 }
198
1da177e4 199 /*
a63d83f4 200 * The baseline for the badness score is the proportion of RAM that each
f755a042 201 * task's rss, pagetable and swap space use.
1da177e4 202 */
dc6c9a35
KS
203 points = get_mm_rss(p->mm) + get_mm_counter(p->mm, MM_SWAPENTS) +
204 atomic_long_read(&p->mm->nr_ptes) + mm_nr_pmds(p->mm);
a63d83f4 205 task_unlock(p);
1da177e4
LT
206
207 /*
a63d83f4
DR
208 * Root processes get 3% bonus, just like the __vm_enough_memory()
209 * implementation used by LSMs.
1da177e4 210 */
a63d83f4 211 if (has_capability_noaudit(p, CAP_SYS_ADMIN))
778c14af 212 points -= (points * 3) / 100;
1da177e4 213
61eafb00
DR
214 /* Normalize to oom_score_adj units */
215 adj *= totalpages / 1000;
216 points += adj;
1da177e4 217
f19e8aa1 218 /*
a7f638f9
DR
219 * Never return 0 for an eligible task regardless of the root bonus and
220 * oom_score_adj (oom_score_adj can't be OOM_SCORE_ADJ_MIN here).
f19e8aa1 221 */
1e11ad8d 222 return points > 0 ? points : 1;
1da177e4
LT
223}
224
7c5f64f8
VD
225enum oom_constraint {
226 CONSTRAINT_NONE,
227 CONSTRAINT_CPUSET,
228 CONSTRAINT_MEMORY_POLICY,
229 CONSTRAINT_MEMCG,
230};
231
9b0f8b04
CL
232/*
233 * Determine the type of allocation constraint.
234 */
7c5f64f8 235static enum oom_constraint constrained_alloc(struct oom_control *oc)
4365a567 236{
54a6eb5c 237 struct zone *zone;
dd1a239f 238 struct zoneref *z;
6e0fc46d 239 enum zone_type high_zoneidx = gfp_zone(oc->gfp_mask);
a63d83f4
DR
240 bool cpuset_limited = false;
241 int nid;
9b0f8b04 242
7c5f64f8
VD
243 if (is_memcg_oom(oc)) {
244 oc->totalpages = mem_cgroup_get_limit(oc->memcg) ?: 1;
245 return CONSTRAINT_MEMCG;
246 }
247
a63d83f4 248 /* Default to all available memory */
7c5f64f8
VD
249 oc->totalpages = totalram_pages + total_swap_pages;
250
251 if (!IS_ENABLED(CONFIG_NUMA))
252 return CONSTRAINT_NONE;
a63d83f4 253
6e0fc46d 254 if (!oc->zonelist)
a63d83f4 255 return CONSTRAINT_NONE;
4365a567
KH
256 /*
257 * Reach here only when __GFP_NOFAIL is used. So, we should avoid
258 * to kill current.We have to random task kill in this case.
259 * Hopefully, CONSTRAINT_THISNODE...but no way to handle it, now.
260 */
6e0fc46d 261 if (oc->gfp_mask & __GFP_THISNODE)
4365a567 262 return CONSTRAINT_NONE;
9b0f8b04 263
4365a567 264 /*
a63d83f4
DR
265 * This is not a __GFP_THISNODE allocation, so a truncated nodemask in
266 * the page allocator means a mempolicy is in effect. Cpuset policy
267 * is enforced in get_page_from_freelist().
4365a567 268 */
6e0fc46d
DR
269 if (oc->nodemask &&
270 !nodes_subset(node_states[N_MEMORY], *oc->nodemask)) {
7c5f64f8 271 oc->totalpages = total_swap_pages;
6e0fc46d 272 for_each_node_mask(nid, *oc->nodemask)
7c5f64f8 273 oc->totalpages += node_spanned_pages(nid);
9b0f8b04 274 return CONSTRAINT_MEMORY_POLICY;
a63d83f4 275 }
4365a567
KH
276
277 /* Check this allocation failure is caused by cpuset's wall function */
6e0fc46d
DR
278 for_each_zone_zonelist_nodemask(zone, z, oc->zonelist,
279 high_zoneidx, oc->nodemask)
280 if (!cpuset_zone_allowed(zone, oc->gfp_mask))
a63d83f4 281 cpuset_limited = true;
9b0f8b04 282
a63d83f4 283 if (cpuset_limited) {
7c5f64f8 284 oc->totalpages = total_swap_pages;
a63d83f4 285 for_each_node_mask(nid, cpuset_current_mems_allowed)
7c5f64f8 286 oc->totalpages += node_spanned_pages(nid);
a63d83f4
DR
287 return CONSTRAINT_CPUSET;
288 }
9b0f8b04
CL
289 return CONSTRAINT_NONE;
290}
291
7c5f64f8 292static int oom_evaluate_task(struct task_struct *task, void *arg)
462607ec 293{
7c5f64f8
VD
294 struct oom_control *oc = arg;
295 unsigned long points;
296
6e0fc46d 297 if (oom_unkillable_task(task, NULL, oc->nodemask))
7c5f64f8 298 goto next;
462607ec
DR
299
300 /*
301 * This task already has access to memory reserves and is being killed.
a373966d 302 * Don't allow any other task to have access to the reserves unless
862e3073 303 * the task has MMF_OOM_SKIP because chances that it would release
a373966d 304 * any memory is quite low.
462607ec 305 */
862e3073
MH
306 if (!is_sysrq_oom(oc) && tsk_is_oom_victim(task)) {
307 if (test_bit(MMF_OOM_SKIP, &task->signal->oom_mm->flags))
7c5f64f8
VD
308 goto next;
309 goto abort;
a373966d 310 }
462607ec 311
e1e12d2f
DR
312 /*
313 * If task is allocating a lot of memory and has been marked to be
314 * killed first if it triggers an oom, then select it.
315 */
7c5f64f8
VD
316 if (oom_task_origin(task)) {
317 points = ULONG_MAX;
318 goto select;
319 }
e1e12d2f 320
7c5f64f8
VD
321 points = oom_badness(task, NULL, oc->nodemask, oc->totalpages);
322 if (!points || points < oc->chosen_points)
323 goto next;
324
325 /* Prefer thread group leaders for display purposes */
326 if (points == oc->chosen_points && thread_group_leader(oc->chosen))
327 goto next;
328select:
329 if (oc->chosen)
330 put_task_struct(oc->chosen);
331 get_task_struct(task);
332 oc->chosen = task;
333 oc->chosen_points = points;
334next:
335 return 0;
336abort:
337 if (oc->chosen)
338 put_task_struct(oc->chosen);
339 oc->chosen = (void *)-1UL;
340 return 1;
462607ec
DR
341}
342
1da177e4 343/*
7c5f64f8
VD
344 * Simple selection loop. We choose the process with the highest number of
345 * 'points'. In case scan was aborted, oc->chosen is set to -1.
1da177e4 346 */
7c5f64f8 347static void select_bad_process(struct oom_control *oc)
1da177e4 348{
7c5f64f8
VD
349 if (is_memcg_oom(oc))
350 mem_cgroup_scan_tasks(oc->memcg, oom_evaluate_task, oc);
351 else {
352 struct task_struct *p;
d49ad935 353
7c5f64f8
VD
354 rcu_read_lock();
355 for_each_process(p)
356 if (oom_evaluate_task(p, oc))
357 break;
358 rcu_read_unlock();
1da4db0c 359 }
972c4ea5 360
7c5f64f8 361 oc->chosen_points = oc->chosen_points * 1000 / oc->totalpages;
1da177e4
LT
362}
363
fef1bdd6 364/**
1b578df0 365 * dump_tasks - dump current memory state of all system tasks
dad7557e 366 * @memcg: current's memory controller, if constrained
e85bfd3a 367 * @nodemask: nodemask passed to page allocator for mempolicy ooms
1b578df0 368 *
e85bfd3a
DR
369 * Dumps the current memory state of all eligible tasks. Tasks not in the same
370 * memcg, not in the same cpuset, or bound to a disjoint set of mempolicy nodes
371 * are not shown.
de34d965
DR
372 * State information includes task's pid, uid, tgid, vm size, rss, nr_ptes,
373 * swapents, oom_score_adj value, and name.
fef1bdd6 374 */
2314b42d 375static void dump_tasks(struct mem_cgroup *memcg, const nodemask_t *nodemask)
fef1bdd6 376{
c55db957
KM
377 struct task_struct *p;
378 struct task_struct *task;
fef1bdd6 379
dc6c9a35 380 pr_info("[ pid ] uid tgid total_vm rss nr_ptes nr_pmds swapents oom_score_adj name\n");
6b0c81b3 381 rcu_read_lock();
c55db957 382 for_each_process(p) {
72835c86 383 if (oom_unkillable_task(p, memcg, nodemask))
b4416d2b 384 continue;
fef1bdd6 385
c55db957
KM
386 task = find_lock_task_mm(p);
387 if (!task) {
6d2661ed 388 /*
74ab7f1d
DR
389 * This is a kthread or all of p's threads have already
390 * detached their mm's. There's no need to report
c55db957 391 * them; they can't be oom killed anyway.
6d2661ed 392 */
6d2661ed
DR
393 continue;
394 }
c55db957 395
dc6c9a35 396 pr_info("[%5d] %5d %5d %8lu %8lu %7ld %7ld %8lu %5hd %s\n",
078de5f7
EB
397 task->pid, from_kuid(&init_user_ns, task_uid(task)),
398 task->tgid, task->mm->total_vm, get_mm_rss(task->mm),
e1f56c89 399 atomic_long_read(&task->mm->nr_ptes),
dc6c9a35 400 mm_nr_pmds(task->mm),
de34d965 401 get_mm_counter(task->mm, MM_SWAPENTS),
a63d83f4 402 task->signal->oom_score_adj, task->comm);
c55db957
KM
403 task_unlock(task);
404 }
6b0c81b3 405 rcu_read_unlock();
fef1bdd6
DR
406}
407
2a966b77 408static void dump_header(struct oom_control *oc, struct task_struct *p)
1b604d75 409{
299c517a
DR
410 pr_warn("%s invoked oom-killer: gfp_mask=%#x(%pGg), nodemask=",
411 current->comm, oc->gfp_mask, &oc->gfp_mask);
412 if (oc->nodemask)
413 pr_cont("%*pbl", nodemask_pr_args(oc->nodemask));
414 else
415 pr_cont("(null)");
416 pr_cont(", order=%d, oom_score_adj=%hd\n",
417 oc->order, current->signal->oom_score_adj);
9254990f
MH
418 if (!IS_ENABLED(CONFIG_COMPACTION) && oc->order)
419 pr_warn("COMPACTION is disabled!!!\n");
a0795cd4 420
da39da3a 421 cpuset_print_current_mems_allowed();
1b604d75 422 dump_stack();
2a966b77
VD
423 if (oc->memcg)
424 mem_cgroup_print_oom_info(oc->memcg, p);
58cf188e 425 else
299c517a 426 show_mem(SHOW_MEM_FILTER_NODES, oc->nodemask);
1b604d75 427 if (sysctl_oom_dump_tasks)
2a966b77 428 dump_tasks(oc->memcg, oc->nodemask);
1b604d75
DR
429}
430
5695be14 431/*
c32b3cbe 432 * Number of OOM victims in flight
5695be14 433 */
c32b3cbe
MH
434static atomic_t oom_victims = ATOMIC_INIT(0);
435static DECLARE_WAIT_QUEUE_HEAD(oom_victims_wait);
5695be14 436
7c5f64f8 437static bool oom_killer_disabled __read_mostly;
5695be14 438
bc448e89
MH
439#define K(x) ((x) << (PAGE_SHIFT-10))
440
3ef22dff
MH
441/*
442 * task->mm can be NULL if the task is the exited group leader. So to
443 * determine whether the task is using a particular mm, we examine all the
444 * task's threads: if one of those is using this mm then this task was also
445 * using it.
446 */
44a70ade 447bool process_shares_mm(struct task_struct *p, struct mm_struct *mm)
3ef22dff
MH
448{
449 struct task_struct *t;
450
451 for_each_thread(p, t) {
452 struct mm_struct *t_mm = READ_ONCE(t->mm);
453 if (t_mm)
454 return t_mm == mm;
455 }
456 return false;
457}
458
459
aac45363
MH
460#ifdef CONFIG_MMU
461/*
462 * OOM Reaper kernel thread which tries to reap the memory used by the OOM
463 * victim (if that is possible) to help the OOM killer to move on.
464 */
465static struct task_struct *oom_reaper_th;
aac45363 466static DECLARE_WAIT_QUEUE_HEAD(oom_reaper_wait);
29c696e1 467static struct task_struct *oom_reaper_list;
03049269
MH
468static DEFINE_SPINLOCK(oom_reaper_lock);
469
7ebffa45 470static bool __oom_reap_task_mm(struct task_struct *tsk, struct mm_struct *mm)
aac45363
MH
471{
472 struct mmu_gather tlb;
473 struct vm_area_struct *vma;
aac45363
MH
474 bool ret = true;
475
e2fe1456
MH
476 /*
477 * We have to make sure to not race with the victim exit path
478 * and cause premature new oom victim selection:
7ebffa45 479 * __oom_reap_task_mm exit_mm
e5e3f4c4 480 * mmget_not_zero
e2fe1456
MH
481 * mmput
482 * atomic_dec_and_test
483 * exit_oom_victim
484 * [...]
485 * out_of_memory
486 * select_bad_process
487 * # no TIF_MEMDIE task selects new victim
488 * unmap_page_range # frees some memory
489 */
490 mutex_lock(&oom_lock);
491
aac45363
MH
492 if (!down_read_trylock(&mm->mmap_sem)) {
493 ret = false;
422580c3 494 trace_skip_task_reaping(tsk->pid);
7ebffa45 495 goto unlock_oom;
e5e3f4c4
MH
496 }
497
5cc96a7b
MH
498 /*
499 * If the mm has notifiers then we would need to invalidate them around
500 * unmap_page_range and that is risky because notifiers can sleep and
501 * what they do is basically undeterministic. So let's have a short
502 * sleep to give the oom victim some more time.
503 * TODO: we really want to get rid of this ugly hack and make sure that
504 * notifiers cannot block for unbounded amount of time and add
505 * mmu_notifier_invalidate_range_{start,end} around unmap_page_range
506 */
507 if (mm_has_notifiers(mm)) {
508 up_read(&mm->mmap_sem);
509 schedule_timeout_idle(HZ);
510 goto unlock_oom;
511 }
512
e5e3f4c4
MH
513 /*
514 * increase mm_users only after we know we will reap something so
515 * that the mmput_async is called only when we have reaped something
516 * and delayed __mmput doesn't matter that much
517 */
518 if (!mmget_not_zero(mm)) {
519 up_read(&mm->mmap_sem);
422580c3 520 trace_skip_task_reaping(tsk->pid);
7ebffa45 521 goto unlock_oom;
aac45363
MH
522 }
523
422580c3
RG
524 trace_start_task_reaping(tsk->pid);
525
3f70dc38
MH
526 /*
527 * Tell all users of get_user/copy_from_user etc... that the content
528 * is no longer stable. No barriers really needed because unmapping
529 * should imply barriers already and the reader would hit a page fault
530 * if it stumbled over a reaped memory.
531 */
532 set_bit(MMF_UNSTABLE, &mm->flags);
533
aac45363
MH
534 tlb_gather_mmu(&tlb, mm, 0, -1);
535 for (vma = mm->mmap ; vma; vma = vma->vm_next) {
23519073 536 if (!can_madv_dontneed_vma(vma))
aac45363
MH
537 continue;
538
539 /*
540 * Only anonymous pages have a good chance to be dropped
541 * without additional steps which we cannot afford as we
542 * are OOM already.
543 *
544 * We do not even care about fs backed pages because all
545 * which are reclaimable have already been reclaimed and
546 * we do not want to block exit_mmap by keeping mm ref
547 * count elevated without a good reason.
548 */
549 if (vma_is_anonymous(vma) || !(vma->vm_flags & VM_SHARED))
550 unmap_page_range(&tlb, vma, vma->vm_start, vma->vm_end,
3e8715fd 551 NULL);
aac45363
MH
552 }
553 tlb_finish_mmu(&tlb, 0, -1);
bc448e89
MH
554 pr_info("oom_reaper: reaped process %d (%s), now anon-rss:%lukB, file-rss:%lukB, shmem-rss:%lukB\n",
555 task_pid_nr(tsk), tsk->comm,
556 K(get_mm_counter(mm, MM_ANONPAGES)),
557 K(get_mm_counter(mm, MM_FILEPAGES)),
558 K(get_mm_counter(mm, MM_SHMEMPAGES)));
aac45363 559 up_read(&mm->mmap_sem);
36324a99 560
ec8d7c14
MH
561 /*
562 * Drop our reference but make sure the mmput slow path is called from a
563 * different context because we shouldn't risk we get stuck there and
564 * put the oom_reaper out of the way.
565 */
e5e3f4c4 566 mmput_async(mm);
422580c3 567 trace_finish_task_reaping(tsk->pid);
e5e3f4c4
MH
568unlock_oom:
569 mutex_unlock(&oom_lock);
aac45363
MH
570 return ret;
571}
572
bc448e89 573#define MAX_OOM_REAP_RETRIES 10
36324a99 574static void oom_reap_task(struct task_struct *tsk)
aac45363
MH
575{
576 int attempts = 0;
26db62f1 577 struct mm_struct *mm = tsk->signal->oom_mm;
aac45363
MH
578
579 /* Retry the down_read_trylock(mmap_sem) a few times */
7ebffa45 580 while (attempts++ < MAX_OOM_REAP_RETRIES && !__oom_reap_task_mm(tsk, mm))
aac45363
MH
581 schedule_timeout_idle(HZ/10);
582
7ebffa45
TH
583 if (attempts <= MAX_OOM_REAP_RETRIES)
584 goto done;
11a410d5 585
8496afab 586
7ebffa45
TH
587 pr_info("oom_reaper: unable to reap pid:%d (%s)\n",
588 task_pid_nr(tsk), tsk->comm);
7ebffa45 589 debug_show_all_locks();
bc448e89 590
7ebffa45 591done:
449d777d 592 tsk->oom_reaper_list = NULL;
449d777d 593
26db62f1
MH
594 /*
595 * Hide this mm from OOM killer because it has been either reaped or
596 * somebody can't call up_write(mmap_sem).
597 */
862e3073 598 set_bit(MMF_OOM_SKIP, &mm->flags);
26db62f1 599
aac45363 600 /* Drop a reference taken by wake_oom_reaper */
36324a99 601 put_task_struct(tsk);
aac45363
MH
602}
603
604static int oom_reaper(void *unused)
605{
606 while (true) {
03049269 607 struct task_struct *tsk = NULL;
aac45363 608
29c696e1 609 wait_event_freezable(oom_reaper_wait, oom_reaper_list != NULL);
03049269 610 spin_lock(&oom_reaper_lock);
29c696e1
VD
611 if (oom_reaper_list != NULL) {
612 tsk = oom_reaper_list;
613 oom_reaper_list = tsk->oom_reaper_list;
03049269
MH
614 }
615 spin_unlock(&oom_reaper_lock);
616
617 if (tsk)
618 oom_reap_task(tsk);
aac45363
MH
619 }
620
621 return 0;
622}
623
7c5f64f8 624static void wake_oom_reaper(struct task_struct *tsk)
aac45363 625{
af8e15cc
MH
626 if (!oom_reaper_th)
627 return;
628
629 /* tsk is already queued? */
630 if (tsk == oom_reaper_list || tsk->oom_reaper_list)
aac45363
MH
631 return;
632
36324a99 633 get_task_struct(tsk);
aac45363 634
03049269 635 spin_lock(&oom_reaper_lock);
29c696e1
VD
636 tsk->oom_reaper_list = oom_reaper_list;
637 oom_reaper_list = tsk;
03049269 638 spin_unlock(&oom_reaper_lock);
422580c3 639 trace_wake_reaper(tsk->pid);
03049269 640 wake_up(&oom_reaper_wait);
aac45363
MH
641}
642
643static int __init oom_init(void)
644{
645 oom_reaper_th = kthread_run(oom_reaper, NULL, "oom_reaper");
646 if (IS_ERR(oom_reaper_th)) {
647 pr_err("Unable to start OOM reaper %ld. Continuing regardless\n",
648 PTR_ERR(oom_reaper_th));
649 oom_reaper_th = NULL;
650 }
651 return 0;
652}
653subsys_initcall(oom_init)
7c5f64f8
VD
654#else
655static inline void wake_oom_reaper(struct task_struct *tsk)
656{
657}
658#endif /* CONFIG_MMU */
aac45363 659
49550b60 660/**
16e95196 661 * mark_oom_victim - mark the given task as OOM victim
49550b60 662 * @tsk: task to mark
c32b3cbe 663 *
dc56401f 664 * Has to be called with oom_lock held and never after
c32b3cbe 665 * oom has been disabled already.
26db62f1
MH
666 *
667 * tsk->mm has to be non NULL and caller has to guarantee it is stable (either
668 * under task_lock or operate on the current).
49550b60 669 */
7c5f64f8 670static void mark_oom_victim(struct task_struct *tsk)
49550b60 671{
26db62f1
MH
672 struct mm_struct *mm = tsk->mm;
673
c32b3cbe
MH
674 WARN_ON(oom_killer_disabled);
675 /* OOM killer might race with memcg OOM */
676 if (test_and_set_tsk_thread_flag(tsk, TIF_MEMDIE))
677 return;
26db62f1 678
26db62f1
MH
679 /* oom_mm is bound to the signal struct life time. */
680 if (!cmpxchg(&tsk->signal->oom_mm, NULL, mm))
f1f10076 681 mmgrab(tsk->signal->oom_mm);
26db62f1 682
63a8ca9b
MH
683 /*
684 * Make sure that the task is woken up from uninterruptible sleep
685 * if it is frozen because OOM killer wouldn't be able to free
686 * any memory and livelock. freezing_slow_path will tell the freezer
687 * that TIF_MEMDIE tasks should be ignored.
688 */
689 __thaw_task(tsk);
c32b3cbe 690 atomic_inc(&oom_victims);
422580c3 691 trace_mark_victim(tsk->pid);
49550b60
MH
692}
693
694/**
16e95196 695 * exit_oom_victim - note the exit of an OOM victim
49550b60 696 */
38531201 697void exit_oom_victim(void)
49550b60 698{
38531201 699 clear_thread_flag(TIF_MEMDIE);
c32b3cbe 700
c38f1025 701 if (!atomic_dec_return(&oom_victims))
c32b3cbe 702 wake_up_all(&oom_victims_wait);
c32b3cbe
MH
703}
704
7d2e7a22
MH
705/**
706 * oom_killer_enable - enable OOM killer
707 */
708void oom_killer_enable(void)
709{
710 oom_killer_disabled = false;
d75da004 711 pr_info("OOM killer enabled.\n");
7d2e7a22
MH
712}
713
c32b3cbe
MH
714/**
715 * oom_killer_disable - disable OOM killer
7d2e7a22 716 * @timeout: maximum timeout to wait for oom victims in jiffies
c32b3cbe
MH
717 *
718 * Forces all page allocations to fail rather than trigger OOM killer.
7d2e7a22
MH
719 * Will block and wait until all OOM victims are killed or the given
720 * timeout expires.
c32b3cbe
MH
721 *
722 * The function cannot be called when there are runnable user tasks because
723 * the userspace would see unexpected allocation failures as a result. Any
724 * new usage of this function should be consulted with MM people.
725 *
726 * Returns true if successful and false if the OOM killer cannot be
727 * disabled.
728 */
7d2e7a22 729bool oom_killer_disable(signed long timeout)
c32b3cbe 730{
7d2e7a22
MH
731 signed long ret;
732
c32b3cbe 733 /*
6afcf289
TH
734 * Make sure to not race with an ongoing OOM killer. Check that the
735 * current is not killed (possibly due to sharing the victim's memory).
c32b3cbe 736 */
6afcf289 737 if (mutex_lock_killable(&oom_lock))
c32b3cbe 738 return false;
c32b3cbe 739 oom_killer_disabled = true;
dc56401f 740 mutex_unlock(&oom_lock);
c32b3cbe 741
7d2e7a22
MH
742 ret = wait_event_interruptible_timeout(oom_victims_wait,
743 !atomic_read(&oom_victims), timeout);
744 if (ret <= 0) {
745 oom_killer_enable();
746 return false;
747 }
d75da004 748 pr_info("OOM killer disabled.\n");
c32b3cbe
MH
749
750 return true;
751}
752
1af8bb43
MH
753static inline bool __task_will_free_mem(struct task_struct *task)
754{
755 struct signal_struct *sig = task->signal;
756
757 /*
758 * A coredumping process may sleep for an extended period in exit_mm(),
759 * so the oom killer cannot assume that the process will promptly exit
760 * and release memory.
761 */
762 if (sig->flags & SIGNAL_GROUP_COREDUMP)
763 return false;
764
765 if (sig->flags & SIGNAL_GROUP_EXIT)
766 return true;
767
768 if (thread_group_empty(task) && (task->flags & PF_EXITING))
769 return true;
770
771 return false;
772}
773
774/*
775 * Checks whether the given task is dying or exiting and likely to
776 * release its address space. This means that all threads and processes
777 * sharing the same mm have to be killed or exiting.
091f362c
MH
778 * Caller has to make sure that task->mm is stable (hold task_lock or
779 * it operates on the current).
1af8bb43 780 */
7c5f64f8 781static bool task_will_free_mem(struct task_struct *task)
1af8bb43 782{
091f362c 783 struct mm_struct *mm = task->mm;
1af8bb43 784 struct task_struct *p;
f33e6f06 785 bool ret = true;
1af8bb43 786
1af8bb43 787 /*
091f362c
MH
788 * Skip tasks without mm because it might have passed its exit_mm and
789 * exit_oom_victim. oom_reaper could have rescued that but do not rely
790 * on that for now. We can consider find_lock_task_mm in future.
1af8bb43 791 */
091f362c 792 if (!mm)
1af8bb43
MH
793 return false;
794
091f362c
MH
795 if (!__task_will_free_mem(task))
796 return false;
696453e6
MH
797
798 /*
799 * This task has already been drained by the oom reaper so there are
800 * only small chances it will free some more
801 */
862e3073 802 if (test_bit(MMF_OOM_SKIP, &mm->flags))
696453e6 803 return false;
696453e6 804
091f362c 805 if (atomic_read(&mm->mm_users) <= 1)
1af8bb43 806 return true;
1af8bb43
MH
807
808 /*
5870c2e1
MH
809 * Make sure that all tasks which share the mm with the given tasks
810 * are dying as well to make sure that a) nobody pins its mm and
811 * b) the task is also reapable by the oom reaper.
1af8bb43
MH
812 */
813 rcu_read_lock();
814 for_each_process(p) {
815 if (!process_shares_mm(p, mm))
816 continue;
817 if (same_thread_group(task, p))
818 continue;
819 ret = __task_will_free_mem(p);
820 if (!ret)
821 break;
822 }
823 rcu_read_unlock();
1af8bb43
MH
824
825 return ret;
826}
827
7c5f64f8 828static void oom_kill_process(struct oom_control *oc, const char *message)
1da177e4 829{
7c5f64f8
VD
830 struct task_struct *p = oc->chosen;
831 unsigned int points = oc->chosen_points;
52d3c036 832 struct task_struct *victim = p;
5e9d834a 833 struct task_struct *child;
1da4db0c 834 struct task_struct *t;
647f2bdf 835 struct mm_struct *mm;
52d3c036 836 unsigned int victim_points = 0;
dc3f21ea
DR
837 static DEFINE_RATELIMIT_STATE(oom_rs, DEFAULT_RATELIMIT_INTERVAL,
838 DEFAULT_RATELIMIT_BURST);
bb29902a 839 bool can_oom_reap = true;
1da177e4 840
50ec3bbf
NP
841 /*
842 * If the task is already exiting, don't alarm the sysadmin or kill
843 * its children or threads, just set TIF_MEMDIE so it can die quickly
844 */
091f362c 845 task_lock(p);
1af8bb43 846 if (task_will_free_mem(p)) {
16e95196 847 mark_oom_victim(p);
1af8bb43 848 wake_oom_reaper(p);
091f362c 849 task_unlock(p);
6b0c81b3 850 put_task_struct(p);
2a1c9b1f 851 return;
50ec3bbf 852 }
091f362c 853 task_unlock(p);
50ec3bbf 854
dc3f21ea 855 if (__ratelimit(&oom_rs))
2a966b77 856 dump_header(oc, p);
8447d950 857
f0d6647e 858 pr_err("%s: Kill process %d (%s) score %u or sacrifice child\n",
5e9d834a 859 message, task_pid_nr(p), p->comm, points);
f3af38d3 860
5e9d834a
DR
861 /*
862 * If any of p's children has a different mm and is eligible for kill,
11239836 863 * the one with the highest oom_badness() score is sacrificed for its
5e9d834a
DR
864 * parent. This attempts to lose the minimal amount of work done while
865 * still freeing memory.
866 */
6b0c81b3 867 read_lock(&tasklist_lock);
1da4db0c 868 for_each_thread(p, t) {
5e9d834a 869 list_for_each_entry(child, &t->children, sibling) {
a63d83f4 870 unsigned int child_points;
5e9d834a 871
4d7b3394 872 if (process_shares_mm(child, p->mm))
edd45544 873 continue;
a63d83f4
DR
874 /*
875 * oom_badness() returns 0 if the thread is unkillable
876 */
2a966b77 877 child_points = oom_badness(child,
7c5f64f8 878 oc->memcg, oc->nodemask, oc->totalpages);
5e9d834a 879 if (child_points > victim_points) {
6b0c81b3 880 put_task_struct(victim);
5e9d834a
DR
881 victim = child;
882 victim_points = child_points;
6b0c81b3 883 get_task_struct(victim);
5e9d834a 884 }
dd8e8f40 885 }
1da4db0c 886 }
6b0c81b3 887 read_unlock(&tasklist_lock);
dd8e8f40 888
6b0c81b3
DR
889 p = find_lock_task_mm(victim);
890 if (!p) {
6b0c81b3 891 put_task_struct(victim);
647f2bdf 892 return;
6b0c81b3
DR
893 } else if (victim != p) {
894 get_task_struct(p);
895 put_task_struct(victim);
896 victim = p;
897 }
647f2bdf 898
880b7689 899 /* Get a reference to safely compare mm after task_unlock(victim) */
647f2bdf 900 mm = victim->mm;
f1f10076 901 mmgrab(mm);
8e675f7a
KK
902
903 /* Raise event before sending signal: task reaper must see this */
904 count_vm_event(OOM_KILL);
905 count_memcg_event_mm(mm, OOM_KILL);
906
426fb5e7
TH
907 /*
908 * We should send SIGKILL before setting TIF_MEMDIE in order to prevent
909 * the OOM victim from depleting the memory reserves from the user
910 * space under its control.
911 */
912 do_send_sig_info(SIGKILL, SEND_SIG_FORCED, victim, true);
16e95196 913 mark_oom_victim(victim);
eca56ff9 914 pr_err("Killed process %d (%s) total-vm:%lukB, anon-rss:%lukB, file-rss:%lukB, shmem-rss:%lukB\n",
647f2bdf
DR
915 task_pid_nr(victim), victim->comm, K(victim->mm->total_vm),
916 K(get_mm_counter(victim->mm, MM_ANONPAGES)),
eca56ff9
JM
917 K(get_mm_counter(victim->mm, MM_FILEPAGES)),
918 K(get_mm_counter(victim->mm, MM_SHMEMPAGES)));
647f2bdf
DR
919 task_unlock(victim);
920
921 /*
922 * Kill all user processes sharing victim->mm in other thread groups, if
923 * any. They don't get access to memory reserves, though, to avoid
924 * depletion of all memory. This prevents mm->mmap_sem livelock when an
925 * oom killed thread cannot exit because it requires the semaphore and
926 * its contended by another thread trying to allocate memory itself.
927 * That thread will now get access to memory reserves since it has a
928 * pending fatal signal.
929 */
4d4048be 930 rcu_read_lock();
c319025a 931 for_each_process(p) {
4d7b3394 932 if (!process_shares_mm(p, mm))
c319025a
ON
933 continue;
934 if (same_thread_group(p, victim))
935 continue;
1b51e65e 936 if (is_global_init(p)) {
aac45363 937 can_oom_reap = false;
862e3073 938 set_bit(MMF_OOM_SKIP, &mm->flags);
a373966d
MH
939 pr_info("oom killer %d (%s) has mm pinned by %d (%s)\n",
940 task_pid_nr(victim), victim->comm,
941 task_pid_nr(p), p->comm);
c319025a 942 continue;
aac45363 943 }
1b51e65e
MH
944 /*
945 * No use_mm() user needs to read from the userspace so we are
946 * ok to reap it.
947 */
948 if (unlikely(p->flags & PF_KTHREAD))
949 continue;
c319025a
ON
950 do_send_sig_info(SIGKILL, SEND_SIG_FORCED, p, true);
951 }
6b0c81b3 952 rcu_read_unlock();
647f2bdf 953
aac45363 954 if (can_oom_reap)
36324a99 955 wake_oom_reaper(victim);
aac45363 956
880b7689 957 mmdrop(mm);
6b0c81b3 958 put_task_struct(victim);
1da177e4 959}
647f2bdf 960#undef K
1da177e4 961
309ed882
DR
962/*
963 * Determines whether the kernel must panic because of the panic_on_oom sysctl.
964 */
7c5f64f8
VD
965static void check_panic_on_oom(struct oom_control *oc,
966 enum oom_constraint constraint)
309ed882
DR
967{
968 if (likely(!sysctl_panic_on_oom))
969 return;
970 if (sysctl_panic_on_oom != 2) {
971 /*
972 * panic_on_oom == 1 only affects CONSTRAINT_NONE, the kernel
973 * does not panic for cpuset, mempolicy, or memcg allocation
974 * failures.
975 */
976 if (constraint != CONSTRAINT_NONE)
977 return;
978 }
071a4bef 979 /* Do not panic for oom kills triggered by sysrq */
db2a0dd7 980 if (is_sysrq_oom(oc))
071a4bef 981 return;
2a966b77 982 dump_header(oc, NULL);
309ed882
DR
983 panic("Out of memory: %s panic_on_oom is enabled\n",
984 sysctl_panic_on_oom == 2 ? "compulsory" : "system-wide");
985}
986
8bc719d3
MS
987static BLOCKING_NOTIFIER_HEAD(oom_notify_list);
988
989int register_oom_notifier(struct notifier_block *nb)
990{
991 return blocking_notifier_chain_register(&oom_notify_list, nb);
992}
993EXPORT_SYMBOL_GPL(register_oom_notifier);
994
995int unregister_oom_notifier(struct notifier_block *nb)
996{
997 return blocking_notifier_chain_unregister(&oom_notify_list, nb);
998}
999EXPORT_SYMBOL_GPL(unregister_oom_notifier);
1000
1da177e4 1001/**
6e0fc46d
DR
1002 * out_of_memory - kill the "best" process when we run out of memory
1003 * @oc: pointer to struct oom_control
1da177e4
LT
1004 *
1005 * If we run out of memory, we have the choice between either
1006 * killing a random task (bad), letting the system crash (worse)
1007 * OR try to be smart about which process to kill. Note that we
1008 * don't have to be perfect here, we just have to be good.
1009 */
6e0fc46d 1010bool out_of_memory(struct oom_control *oc)
1da177e4 1011{
8bc719d3 1012 unsigned long freed = 0;
e3658932 1013 enum oom_constraint constraint = CONSTRAINT_NONE;
8bc719d3 1014
dc56401f
JW
1015 if (oom_killer_disabled)
1016 return false;
1017
7c5f64f8
VD
1018 if (!is_memcg_oom(oc)) {
1019 blocking_notifier_call_chain(&oom_notify_list, 0, &freed);
1020 if (freed > 0)
1021 /* Got some memory back in the last second. */
1022 return true;
1023 }
1da177e4 1024
7b98c2e4 1025 /*
9ff4868e
DR
1026 * If current has a pending SIGKILL or is exiting, then automatically
1027 * select it. The goal is to allow it to allocate so that it may
1028 * quickly exit and free its memory.
7b98c2e4 1029 */
091f362c 1030 if (task_will_free_mem(current)) {
16e95196 1031 mark_oom_victim(current);
1af8bb43 1032 wake_oom_reaper(current);
75e8f8b2 1033 return true;
7b98c2e4
DR
1034 }
1035
3da88fb3
MH
1036 /*
1037 * The OOM killer does not compensate for IO-less reclaim.
1038 * pagefault_out_of_memory lost its gfp context so we have to
1039 * make sure exclude 0 mask - all other users should have at least
1040 * ___GFP_DIRECT_RECLAIM to get here.
1041 */
06ad276a 1042 if (oc->gfp_mask && !(oc->gfp_mask & __GFP_FS))
3da88fb3
MH
1043 return true;
1044
9b0f8b04
CL
1045 /*
1046 * Check if there were limitations on the allocation (only relevant for
7c5f64f8 1047 * NUMA and memcg) that may require different handling.
9b0f8b04 1048 */
7c5f64f8 1049 constraint = constrained_alloc(oc);
6e0fc46d
DR
1050 if (constraint != CONSTRAINT_MEMORY_POLICY)
1051 oc->nodemask = NULL;
2a966b77 1052 check_panic_on_oom(oc, constraint);
0aad4b31 1053
7c5f64f8
VD
1054 if (!is_memcg_oom(oc) && sysctl_oom_kill_allocating_task &&
1055 current->mm && !oom_unkillable_task(current, NULL, oc->nodemask) &&
121d1ba0 1056 current->signal->oom_score_adj != OOM_SCORE_ADJ_MIN) {
6b0c81b3 1057 get_task_struct(current);
7c5f64f8
VD
1058 oc->chosen = current;
1059 oom_kill_process(oc, "Out of memory (oom_kill_allocating_task)");
75e8f8b2 1060 return true;
0aad4b31
DR
1061 }
1062
7c5f64f8 1063 select_bad_process(oc);
0aad4b31 1064 /* Found nothing?!?! Either we hang forever, or we panic. */
7c5f64f8 1065 if (!oc->chosen && !is_sysrq_oom(oc) && !is_memcg_oom(oc)) {
2a966b77 1066 dump_header(oc, NULL);
0aad4b31
DR
1067 panic("Out of memory and no killable processes...\n");
1068 }
7c5f64f8
VD
1069 if (oc->chosen && oc->chosen != (void *)-1UL) {
1070 oom_kill_process(oc, !is_memcg_oom(oc) ? "Out of memory" :
1071 "Memory cgroup out of memory");
75e8f8b2
DR
1072 /*
1073 * Give the killed process a good chance to exit before trying
1074 * to allocate memory again.
1075 */
4f774b91 1076 schedule_timeout_killable(1);
75e8f8b2 1077 }
7c5f64f8 1078 return !!oc->chosen;
c32b3cbe
MH
1079}
1080
e3658932
DR
1081/*
1082 * The pagefault handler calls here because it is out of memory, so kill a
798fd756
VD
1083 * memory-hogging task. If oom_lock is held by somebody else, a parallel oom
1084 * killing is already in progress so do nothing.
e3658932
DR
1085 */
1086void pagefault_out_of_memory(void)
1087{
6e0fc46d
DR
1088 struct oom_control oc = {
1089 .zonelist = NULL,
1090 .nodemask = NULL,
2a966b77 1091 .memcg = NULL,
6e0fc46d
DR
1092 .gfp_mask = 0,
1093 .order = 0,
6e0fc46d
DR
1094 };
1095
49426420 1096 if (mem_cgroup_oom_synchronize(true))
dc56401f 1097 return;
3812c8c8 1098
dc56401f
JW
1099 if (!mutex_trylock(&oom_lock))
1100 return;
a104808e 1101 out_of_memory(&oc);
dc56401f 1102 mutex_unlock(&oom_lock);
e3658932 1103}