hwpoison: fix hugetlbfs/thp precheck in hwpoison_user_mappings()
[deliverable/linux.git] / mm / memory-failure.c
CommitLineData
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1/*
2 * Copyright (C) 2008, 2009 Intel Corporation
3 * Authors: Andi Kleen, Fengguang Wu
4 *
5 * This software may be redistributed and/or modified under the terms of
6 * the GNU General Public License ("GPL") version 2 only as published by the
7 * Free Software Foundation.
8 *
9 * High level machine check handler. Handles pages reported by the
1c80b990 10 * hardware as being corrupted usually due to a multi-bit ECC memory or cache
6a46079c 11 * failure.
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12 *
13 * In addition there is a "soft offline" entry point that allows stop using
14 * not-yet-corrupted-by-suspicious pages without killing anything.
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15 *
16 * Handles page cache pages in various states. The tricky part
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17 * here is that we can access any page asynchronously in respect to
18 * other VM users, because memory failures could happen anytime and
19 * anywhere. This could violate some of their assumptions. This is why
20 * this code has to be extremely careful. Generally it tries to use
21 * normal locking rules, as in get the standard locks, even if that means
22 * the error handling takes potentially a long time.
23 *
24 * There are several operations here with exponential complexity because
25 * of unsuitable VM data structures. For example the operation to map back
26 * from RMAP chains to processes has to walk the complete process list and
27 * has non linear complexity with the number. But since memory corruptions
28 * are rare we hope to get away with this. This avoids impacting the core
29 * VM.
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30 */
31
32/*
33 * Notebook:
34 * - hugetlb needs more code
35 * - kcore/oldmem/vmcore/mem/kmem check for hwpoison pages
36 * - pass bad pages to kdump next kernel
37 */
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38#include <linux/kernel.h>
39#include <linux/mm.h>
40#include <linux/page-flags.h>
478c5ffc 41#include <linux/kernel-page-flags.h>
6a46079c 42#include <linux/sched.h>
01e00f88 43#include <linux/ksm.h>
6a46079c 44#include <linux/rmap.h>
b9e15baf 45#include <linux/export.h>
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46#include <linux/pagemap.h>
47#include <linux/swap.h>
48#include <linux/backing-dev.h>
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49#include <linux/migrate.h>
50#include <linux/page-isolation.h>
51#include <linux/suspend.h>
5a0e3ad6 52#include <linux/slab.h>
bf998156 53#include <linux/swapops.h>
7af446a8 54#include <linux/hugetlb.h>
20d6c96b 55#include <linux/memory_hotplug.h>
5db8a73a 56#include <linux/mm_inline.h>
ea8f5fb8 57#include <linux/kfifo.h>
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58#include "internal.h"
59
60int sysctl_memory_failure_early_kill __read_mostly = 0;
61
62int sysctl_memory_failure_recovery __read_mostly = 1;
63
293c07e3 64atomic_long_t num_poisoned_pages __read_mostly = ATOMIC_LONG_INIT(0);
6a46079c 65
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66#if defined(CONFIG_HWPOISON_INJECT) || defined(CONFIG_HWPOISON_INJECT_MODULE)
67
1bfe5feb 68u32 hwpoison_filter_enable = 0;
7c116f2b
WF
69u32 hwpoison_filter_dev_major = ~0U;
70u32 hwpoison_filter_dev_minor = ~0U;
478c5ffc
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71u64 hwpoison_filter_flags_mask;
72u64 hwpoison_filter_flags_value;
1bfe5feb 73EXPORT_SYMBOL_GPL(hwpoison_filter_enable);
7c116f2b
WF
74EXPORT_SYMBOL_GPL(hwpoison_filter_dev_major);
75EXPORT_SYMBOL_GPL(hwpoison_filter_dev_minor);
478c5ffc
WF
76EXPORT_SYMBOL_GPL(hwpoison_filter_flags_mask);
77EXPORT_SYMBOL_GPL(hwpoison_filter_flags_value);
7c116f2b
WF
78
79static int hwpoison_filter_dev(struct page *p)
80{
81 struct address_space *mapping;
82 dev_t dev;
83
84 if (hwpoison_filter_dev_major == ~0U &&
85 hwpoison_filter_dev_minor == ~0U)
86 return 0;
87
88 /*
1c80b990 89 * page_mapping() does not accept slab pages.
7c116f2b
WF
90 */
91 if (PageSlab(p))
92 return -EINVAL;
93
94 mapping = page_mapping(p);
95 if (mapping == NULL || mapping->host == NULL)
96 return -EINVAL;
97
98 dev = mapping->host->i_sb->s_dev;
99 if (hwpoison_filter_dev_major != ~0U &&
100 hwpoison_filter_dev_major != MAJOR(dev))
101 return -EINVAL;
102 if (hwpoison_filter_dev_minor != ~0U &&
103 hwpoison_filter_dev_minor != MINOR(dev))
104 return -EINVAL;
105
106 return 0;
107}
108
478c5ffc
WF
109static int hwpoison_filter_flags(struct page *p)
110{
111 if (!hwpoison_filter_flags_mask)
112 return 0;
113
114 if ((stable_page_flags(p) & hwpoison_filter_flags_mask) ==
115 hwpoison_filter_flags_value)
116 return 0;
117 else
118 return -EINVAL;
119}
120
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121/*
122 * This allows stress tests to limit test scope to a collection of tasks
123 * by putting them under some memcg. This prevents killing unrelated/important
124 * processes such as /sbin/init. Note that the target task may share clean
125 * pages with init (eg. libc text), which is harmless. If the target task
126 * share _dirty_ pages with another task B, the test scheme must make sure B
127 * is also included in the memcg. At last, due to race conditions this filter
128 * can only guarantee that the page either belongs to the memcg tasks, or is
129 * a freed page.
130 */
c255a458 131#ifdef CONFIG_MEMCG_SWAP
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132u64 hwpoison_filter_memcg;
133EXPORT_SYMBOL_GPL(hwpoison_filter_memcg);
134static int hwpoison_filter_task(struct page *p)
135{
136 struct mem_cgroup *mem;
137 struct cgroup_subsys_state *css;
138 unsigned long ino;
139
140 if (!hwpoison_filter_memcg)
141 return 0;
142
143 mem = try_get_mem_cgroup_from_page(p);
144 if (!mem)
145 return -EINVAL;
146
147 css = mem_cgroup_css(mem);
b1664924 148 ino = cgroup_ino(css->cgroup);
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149 css_put(css);
150
b1664924 151 if (!ino || ino != hwpoison_filter_memcg)
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152 return -EINVAL;
153
154 return 0;
155}
156#else
157static int hwpoison_filter_task(struct page *p) { return 0; }
158#endif
159
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WF
160int hwpoison_filter(struct page *p)
161{
1bfe5feb
HL
162 if (!hwpoison_filter_enable)
163 return 0;
164
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165 if (hwpoison_filter_dev(p))
166 return -EINVAL;
167
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168 if (hwpoison_filter_flags(p))
169 return -EINVAL;
170
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171 if (hwpoison_filter_task(p))
172 return -EINVAL;
173
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174 return 0;
175}
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176#else
177int hwpoison_filter(struct page *p)
178{
179 return 0;
180}
181#endif
182
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183EXPORT_SYMBOL_GPL(hwpoison_filter);
184
6a46079c 185/*
7329bbeb
TL
186 * Send all the processes who have the page mapped a signal.
187 * ``action optional'' if they are not immediately affected by the error
188 * ``action required'' if error happened in current execution context
6a46079c 189 */
7329bbeb
TL
190static int kill_proc(struct task_struct *t, unsigned long addr, int trapno,
191 unsigned long pfn, struct page *page, int flags)
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192{
193 struct siginfo si;
194 int ret;
195
196 printk(KERN_ERR
7329bbeb 197 "MCE %#lx: Killing %s:%d due to hardware memory corruption\n",
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198 pfn, t->comm, t->pid);
199 si.si_signo = SIGBUS;
200 si.si_errno = 0;
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201 si.si_addr = (void *)addr;
202#ifdef __ARCH_SI_TRAPNO
203 si.si_trapno = trapno;
204#endif
f9121153 205 si.si_addr_lsb = compound_order(compound_head(page)) + PAGE_SHIFT;
7329bbeb 206
a70ffcac 207 if ((flags & MF_ACTION_REQUIRED) && t->mm == current->mm) {
7329bbeb 208 si.si_code = BUS_MCEERR_AR;
a70ffcac 209 ret = force_sig_info(SIGBUS, &si, current);
7329bbeb
TL
210 } else {
211 /*
212 * Don't use force here, it's convenient if the signal
213 * can be temporarily blocked.
214 * This could cause a loop when the user sets SIGBUS
215 * to SIG_IGN, but hopefully no one will do that?
216 */
217 si.si_code = BUS_MCEERR_AO;
218 ret = send_sig_info(SIGBUS, &si, t); /* synchronous? */
219 }
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220 if (ret < 0)
221 printk(KERN_INFO "MCE: Error sending signal to %s:%d: %d\n",
222 t->comm, t->pid, ret);
223 return ret;
224}
225
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226/*
227 * When a unknown page type is encountered drain as many buffers as possible
228 * in the hope to turn the page into a LRU or free page, which we can handle.
229 */
facb6011 230void shake_page(struct page *p, int access)
588f9ce6
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231{
232 if (!PageSlab(p)) {
233 lru_add_drain_all();
234 if (PageLRU(p))
235 return;
236 drain_all_pages();
237 if (PageLRU(p) || is_free_buddy_page(p))
238 return;
239 }
facb6011 240
588f9ce6 241 /*
af241a08
JD
242 * Only call shrink_slab here (which would also shrink other caches) if
243 * access is not potentially fatal.
588f9ce6 244 */
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245 if (access) {
246 int nr;
0ce3d744 247 int nid = page_to_nid(p);
facb6011 248 do {
a09ed5e0
YH
249 struct shrink_control shrink = {
250 .gfp_mask = GFP_KERNEL,
a09ed5e0 251 };
0ce3d744 252 node_set(nid, shrink.nodes_to_scan);
a09ed5e0 253
1495f230 254 nr = shrink_slab(&shrink, 1000, 1000);
47f43e7e 255 if (page_count(p) == 1)
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256 break;
257 } while (nr > 10);
258 }
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259}
260EXPORT_SYMBOL_GPL(shake_page);
261
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262/*
263 * Kill all processes that have a poisoned page mapped and then isolate
264 * the page.
265 *
266 * General strategy:
267 * Find all processes having the page mapped and kill them.
268 * But we keep a page reference around so that the page is not
269 * actually freed yet.
270 * Then stash the page away
271 *
272 * There's no convenient way to get back to mapped processes
273 * from the VMAs. So do a brute-force search over all
274 * running processes.
275 *
276 * Remember that machine checks are not common (or rather
277 * if they are common you have other problems), so this shouldn't
278 * be a performance issue.
279 *
280 * Also there are some races possible while we get from the
281 * error detection to actually handle it.
282 */
283
284struct to_kill {
285 struct list_head nd;
286 struct task_struct *tsk;
287 unsigned long addr;
9033ae16 288 char addr_valid;
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289};
290
291/*
292 * Failure handling: if we can't find or can't kill a process there's
293 * not much we can do. We just print a message and ignore otherwise.
294 */
295
296/*
297 * Schedule a process for later kill.
298 * Uses GFP_ATOMIC allocations to avoid potential recursions in the VM.
299 * TBD would GFP_NOIO be enough?
300 */
301static void add_to_kill(struct task_struct *tsk, struct page *p,
302 struct vm_area_struct *vma,
303 struct list_head *to_kill,
304 struct to_kill **tkc)
305{
306 struct to_kill *tk;
307
308 if (*tkc) {
309 tk = *tkc;
310 *tkc = NULL;
311 } else {
312 tk = kmalloc(sizeof(struct to_kill), GFP_ATOMIC);
313 if (!tk) {
314 printk(KERN_ERR
315 "MCE: Out of memory while machine check handling\n");
316 return;
317 }
318 }
319 tk->addr = page_address_in_vma(p, vma);
320 tk->addr_valid = 1;
321
322 /*
323 * In theory we don't have to kill when the page was
324 * munmaped. But it could be also a mremap. Since that's
325 * likely very rare kill anyways just out of paranoia, but use
326 * a SIGKILL because the error is not contained anymore.
327 */
328 if (tk->addr == -EFAULT) {
fb46e735 329 pr_info("MCE: Unable to find user space address %lx in %s\n",
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330 page_to_pfn(p), tsk->comm);
331 tk->addr_valid = 0;
332 }
333 get_task_struct(tsk);
334 tk->tsk = tsk;
335 list_add_tail(&tk->nd, to_kill);
336}
337
338/*
339 * Kill the processes that have been collected earlier.
340 *
341 * Only do anything when DOIT is set, otherwise just free the list
342 * (this is used for clean pages which do not need killing)
343 * Also when FAIL is set do a force kill because something went
344 * wrong earlier.
345 */
6751ed65 346static void kill_procs(struct list_head *to_kill, int forcekill, int trapno,
7329bbeb
TL
347 int fail, struct page *page, unsigned long pfn,
348 int flags)
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349{
350 struct to_kill *tk, *next;
351
352 list_for_each_entry_safe (tk, next, to_kill, nd) {
6751ed65 353 if (forcekill) {
6a46079c 354 /*
af901ca1 355 * In case something went wrong with munmapping
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356 * make sure the process doesn't catch the
357 * signal and then access the memory. Just kill it.
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358 */
359 if (fail || tk->addr_valid == 0) {
360 printk(KERN_ERR
361 "MCE %#lx: forcibly killing %s:%d because of failure to unmap corrupted page\n",
362 pfn, tk->tsk->comm, tk->tsk->pid);
363 force_sig(SIGKILL, tk->tsk);
364 }
365
366 /*
367 * In theory the process could have mapped
368 * something else on the address in-between. We could
369 * check for that, but we need to tell the
370 * process anyways.
371 */
7329bbeb
TL
372 else if (kill_proc(tk->tsk, tk->addr, trapno,
373 pfn, page, flags) < 0)
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374 printk(KERN_ERR
375 "MCE %#lx: Cannot send advisory machine check signal to %s:%d\n",
376 pfn, tk->tsk->comm, tk->tsk->pid);
377 }
378 put_task_struct(tk->tsk);
379 kfree(tk);
380 }
381}
382
3ba08129
NH
383/*
384 * Find a dedicated thread which is supposed to handle SIGBUS(BUS_MCEERR_AO)
385 * on behalf of the thread group. Return task_struct of the (first found)
386 * dedicated thread if found, and return NULL otherwise.
387 *
388 * We already hold read_lock(&tasklist_lock) in the caller, so we don't
389 * have to call rcu_read_lock/unlock() in this function.
390 */
391static struct task_struct *find_early_kill_thread(struct task_struct *tsk)
6a46079c 392{
3ba08129
NH
393 struct task_struct *t;
394
395 for_each_thread(tsk, t)
396 if ((t->flags & PF_MCE_PROCESS) && (t->flags & PF_MCE_EARLY))
397 return t;
398 return NULL;
399}
400
401/*
402 * Determine whether a given process is "early kill" process which expects
403 * to be signaled when some page under the process is hwpoisoned.
404 * Return task_struct of the dedicated thread (main thread unless explicitly
405 * specified) if the process is "early kill," and otherwise returns NULL.
406 */
407static struct task_struct *task_early_kill(struct task_struct *tsk,
408 int force_early)
409{
410 struct task_struct *t;
6a46079c 411 if (!tsk->mm)
3ba08129 412 return NULL;
74614de1 413 if (force_early)
3ba08129
NH
414 return tsk;
415 t = find_early_kill_thread(tsk);
416 if (t)
417 return t;
418 if (sysctl_memory_failure_early_kill)
419 return tsk;
420 return NULL;
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421}
422
423/*
424 * Collect processes when the error hit an anonymous page.
425 */
426static void collect_procs_anon(struct page *page, struct list_head *to_kill,
74614de1 427 struct to_kill **tkc, int force_early)
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428{
429 struct vm_area_struct *vma;
430 struct task_struct *tsk;
431 struct anon_vma *av;
bf181b9f 432 pgoff_t pgoff;
6a46079c 433
4fc3f1d6 434 av = page_lock_anon_vma_read(page);
6a46079c 435 if (av == NULL) /* Not actually mapped anymore */
9b679320
PZ
436 return;
437
a0f7a756 438 pgoff = page_to_pgoff(page);
9b679320 439 read_lock(&tasklist_lock);
6a46079c 440 for_each_process (tsk) {
5beb4930 441 struct anon_vma_chain *vmac;
3ba08129 442 struct task_struct *t = task_early_kill(tsk, force_early);
5beb4930 443
3ba08129 444 if (!t)
6a46079c 445 continue;
bf181b9f
ML
446 anon_vma_interval_tree_foreach(vmac, &av->rb_root,
447 pgoff, pgoff) {
5beb4930 448 vma = vmac->vma;
6a46079c
AK
449 if (!page_mapped_in_vma(page, vma))
450 continue;
3ba08129
NH
451 if (vma->vm_mm == t->mm)
452 add_to_kill(t, page, vma, to_kill, tkc);
6a46079c
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453 }
454 }
6a46079c 455 read_unlock(&tasklist_lock);
4fc3f1d6 456 page_unlock_anon_vma_read(av);
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457}
458
459/*
460 * Collect processes when the error hit a file mapped page.
461 */
462static void collect_procs_file(struct page *page, struct list_head *to_kill,
74614de1 463 struct to_kill **tkc, int force_early)
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464{
465 struct vm_area_struct *vma;
466 struct task_struct *tsk;
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467 struct address_space *mapping = page->mapping;
468
3d48ae45 469 mutex_lock(&mapping->i_mmap_mutex);
9b679320 470 read_lock(&tasklist_lock);
6a46079c 471 for_each_process(tsk) {
a0f7a756 472 pgoff_t pgoff = page_to_pgoff(page);
3ba08129 473 struct task_struct *t = task_early_kill(tsk, force_early);
6a46079c 474
3ba08129 475 if (!t)
6a46079c 476 continue;
6b2dbba8 477 vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff,
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478 pgoff) {
479 /*
480 * Send early kill signal to tasks where a vma covers
481 * the page but the corrupted page is not necessarily
482 * mapped it in its pte.
483 * Assume applications who requested early kill want
484 * to be informed of all such data corruptions.
485 */
3ba08129
NH
486 if (vma->vm_mm == t->mm)
487 add_to_kill(t, page, vma, to_kill, tkc);
6a46079c
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488 }
489 }
6a46079c 490 read_unlock(&tasklist_lock);
9b679320 491 mutex_unlock(&mapping->i_mmap_mutex);
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492}
493
494/*
495 * Collect the processes who have the corrupted page mapped to kill.
496 * This is done in two steps for locking reasons.
497 * First preallocate one tokill structure outside the spin locks,
498 * so that we can kill at least one process reasonably reliable.
499 */
74614de1
TL
500static void collect_procs(struct page *page, struct list_head *tokill,
501 int force_early)
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AK
502{
503 struct to_kill *tk;
504
505 if (!page->mapping)
506 return;
507
508 tk = kmalloc(sizeof(struct to_kill), GFP_NOIO);
509 if (!tk)
510 return;
511 if (PageAnon(page))
74614de1 512 collect_procs_anon(page, tokill, &tk, force_early);
6a46079c 513 else
74614de1 514 collect_procs_file(page, tokill, &tk, force_early);
6a46079c
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515 kfree(tk);
516}
517
518/*
519 * Error handlers for various types of pages.
520 */
521
522enum outcome {
d95ea51e
WF
523 IGNORED, /* Error: cannot be handled */
524 FAILED, /* Error: handling failed */
6a46079c 525 DELAYED, /* Will be handled later */
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526 RECOVERED, /* Successfully recovered */
527};
528
529static const char *action_name[] = {
d95ea51e 530 [IGNORED] = "Ignored",
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531 [FAILED] = "Failed",
532 [DELAYED] = "Delayed",
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533 [RECOVERED] = "Recovered",
534};
535
dc2a1cbf
WF
536/*
537 * XXX: It is possible that a page is isolated from LRU cache,
538 * and then kept in swap cache or failed to remove from page cache.
539 * The page count will stop it from being freed by unpoison.
540 * Stress tests should be aware of this memory leak problem.
541 */
542static int delete_from_lru_cache(struct page *p)
543{
544 if (!isolate_lru_page(p)) {
545 /*
546 * Clear sensible page flags, so that the buddy system won't
547 * complain when the page is unpoison-and-freed.
548 */
549 ClearPageActive(p);
550 ClearPageUnevictable(p);
551 /*
552 * drop the page count elevated by isolate_lru_page()
553 */
554 page_cache_release(p);
555 return 0;
556 }
557 return -EIO;
558}
559
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560/*
561 * Error hit kernel page.
562 * Do nothing, try to be lucky and not touch this instead. For a few cases we
563 * could be more sophisticated.
564 */
565static int me_kernel(struct page *p, unsigned long pfn)
6a46079c
AK
566{
567 return IGNORED;
568}
569
570/*
571 * Page in unknown state. Do nothing.
572 */
573static int me_unknown(struct page *p, unsigned long pfn)
574{
575 printk(KERN_ERR "MCE %#lx: Unknown page state\n", pfn);
576 return FAILED;
577}
578
6a46079c
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579/*
580 * Clean (or cleaned) page cache page.
581 */
582static int me_pagecache_clean(struct page *p, unsigned long pfn)
583{
584 int err;
585 int ret = FAILED;
586 struct address_space *mapping;
587
dc2a1cbf
WF
588 delete_from_lru_cache(p);
589
6a46079c
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590 /*
591 * For anonymous pages we're done the only reference left
592 * should be the one m_f() holds.
593 */
594 if (PageAnon(p))
595 return RECOVERED;
596
597 /*
598 * Now truncate the page in the page cache. This is really
599 * more like a "temporary hole punch"
600 * Don't do this for block devices when someone else
601 * has a reference, because it could be file system metadata
602 * and that's not safe to truncate.
603 */
604 mapping = page_mapping(p);
605 if (!mapping) {
606 /*
607 * Page has been teared down in the meanwhile
608 */
609 return FAILED;
610 }
611
612 /*
613 * Truncation is a bit tricky. Enable it per file system for now.
614 *
615 * Open: to take i_mutex or not for this? Right now we don't.
616 */
617 if (mapping->a_ops->error_remove_page) {
618 err = mapping->a_ops->error_remove_page(mapping, p);
619 if (err != 0) {
620 printk(KERN_INFO "MCE %#lx: Failed to punch page: %d\n",
621 pfn, err);
622 } else if (page_has_private(p) &&
623 !try_to_release_page(p, GFP_NOIO)) {
fb46e735 624 pr_info("MCE %#lx: failed to release buffers\n", pfn);
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AK
625 } else {
626 ret = RECOVERED;
627 }
628 } else {
629 /*
630 * If the file system doesn't support it just invalidate
631 * This fails on dirty or anything with private pages
632 */
633 if (invalidate_inode_page(p))
634 ret = RECOVERED;
635 else
636 printk(KERN_INFO "MCE %#lx: Failed to invalidate\n",
637 pfn);
638 }
639 return ret;
640}
641
642/*
549543df 643 * Dirty pagecache page
6a46079c
AK
644 * Issues: when the error hit a hole page the error is not properly
645 * propagated.
646 */
647static int me_pagecache_dirty(struct page *p, unsigned long pfn)
648{
649 struct address_space *mapping = page_mapping(p);
650
651 SetPageError(p);
652 /* TBD: print more information about the file. */
653 if (mapping) {
654 /*
655 * IO error will be reported by write(), fsync(), etc.
656 * who check the mapping.
657 * This way the application knows that something went
658 * wrong with its dirty file data.
659 *
660 * There's one open issue:
661 *
662 * The EIO will be only reported on the next IO
663 * operation and then cleared through the IO map.
664 * Normally Linux has two mechanisms to pass IO error
665 * first through the AS_EIO flag in the address space
666 * and then through the PageError flag in the page.
667 * Since we drop pages on memory failure handling the
668 * only mechanism open to use is through AS_AIO.
669 *
670 * This has the disadvantage that it gets cleared on
671 * the first operation that returns an error, while
672 * the PageError bit is more sticky and only cleared
673 * when the page is reread or dropped. If an
674 * application assumes it will always get error on
675 * fsync, but does other operations on the fd before
25985edc 676 * and the page is dropped between then the error
6a46079c
AK
677 * will not be properly reported.
678 *
679 * This can already happen even without hwpoisoned
680 * pages: first on metadata IO errors (which only
681 * report through AS_EIO) or when the page is dropped
682 * at the wrong time.
683 *
684 * So right now we assume that the application DTRT on
685 * the first EIO, but we're not worse than other parts
686 * of the kernel.
687 */
688 mapping_set_error(mapping, EIO);
689 }
690
691 return me_pagecache_clean(p, pfn);
692}
693
694/*
695 * Clean and dirty swap cache.
696 *
697 * Dirty swap cache page is tricky to handle. The page could live both in page
698 * cache and swap cache(ie. page is freshly swapped in). So it could be
699 * referenced concurrently by 2 types of PTEs:
700 * normal PTEs and swap PTEs. We try to handle them consistently by calling
701 * try_to_unmap(TTU_IGNORE_HWPOISON) to convert the normal PTEs to swap PTEs,
702 * and then
703 * - clear dirty bit to prevent IO
704 * - remove from LRU
705 * - but keep in the swap cache, so that when we return to it on
706 * a later page fault, we know the application is accessing
707 * corrupted data and shall be killed (we installed simple
708 * interception code in do_swap_page to catch it).
709 *
710 * Clean swap cache pages can be directly isolated. A later page fault will
711 * bring in the known good data from disk.
712 */
713static int me_swapcache_dirty(struct page *p, unsigned long pfn)
714{
6a46079c
AK
715 ClearPageDirty(p);
716 /* Trigger EIO in shmem: */
717 ClearPageUptodate(p);
718
dc2a1cbf
WF
719 if (!delete_from_lru_cache(p))
720 return DELAYED;
721 else
722 return FAILED;
6a46079c
AK
723}
724
725static int me_swapcache_clean(struct page *p, unsigned long pfn)
726{
6a46079c 727 delete_from_swap_cache(p);
e43c3afb 728
dc2a1cbf
WF
729 if (!delete_from_lru_cache(p))
730 return RECOVERED;
731 else
732 return FAILED;
6a46079c
AK
733}
734
735/*
736 * Huge pages. Needs work.
737 * Issues:
93f70f90
NH
738 * - Error on hugepage is contained in hugepage unit (not in raw page unit.)
739 * To narrow down kill region to one page, we need to break up pmd.
6a46079c
AK
740 */
741static int me_huge_page(struct page *p, unsigned long pfn)
742{
6de2b1aa 743 int res = 0;
93f70f90
NH
744 struct page *hpage = compound_head(p);
745 /*
746 * We can safely recover from error on free or reserved (i.e.
747 * not in-use) hugepage by dequeuing it from freelist.
748 * To check whether a hugepage is in-use or not, we can't use
749 * page->lru because it can be used in other hugepage operations,
750 * such as __unmap_hugepage_range() and gather_surplus_pages().
751 * So instead we use page_mapping() and PageAnon().
752 * We assume that this function is called with page lock held,
753 * so there is no race between isolation and mapping/unmapping.
754 */
755 if (!(page_mapping(hpage) || PageAnon(hpage))) {
6de2b1aa
NH
756 res = dequeue_hwpoisoned_huge_page(hpage);
757 if (!res)
758 return RECOVERED;
93f70f90
NH
759 }
760 return DELAYED;
6a46079c
AK
761}
762
763/*
764 * Various page states we can handle.
765 *
766 * A page state is defined by its current page->flags bits.
767 * The table matches them in order and calls the right handler.
768 *
769 * This is quite tricky because we can access page at any time
25985edc 770 * in its live cycle, so all accesses have to be extremely careful.
6a46079c
AK
771 *
772 * This is not complete. More states could be added.
773 * For any missing state don't attempt recovery.
774 */
775
776#define dirty (1UL << PG_dirty)
777#define sc (1UL << PG_swapcache)
778#define unevict (1UL << PG_unevictable)
779#define mlock (1UL << PG_mlocked)
780#define writeback (1UL << PG_writeback)
781#define lru (1UL << PG_lru)
782#define swapbacked (1UL << PG_swapbacked)
783#define head (1UL << PG_head)
784#define tail (1UL << PG_tail)
785#define compound (1UL << PG_compound)
786#define slab (1UL << PG_slab)
6a46079c
AK
787#define reserved (1UL << PG_reserved)
788
789static struct page_state {
790 unsigned long mask;
791 unsigned long res;
792 char *msg;
793 int (*action)(struct page *p, unsigned long pfn);
794} error_states[] = {
d95ea51e 795 { reserved, reserved, "reserved kernel", me_kernel },
95d01fc6
WF
796 /*
797 * free pages are specially detected outside this table:
798 * PG_buddy pages only make a small fraction of all free pages.
799 */
6a46079c
AK
800
801 /*
802 * Could in theory check if slab page is free or if we can drop
803 * currently unused objects without touching them. But just
804 * treat it as standard kernel for now.
805 */
806 { slab, slab, "kernel slab", me_kernel },
807
808#ifdef CONFIG_PAGEFLAGS_EXTENDED
809 { head, head, "huge", me_huge_page },
810 { tail, tail, "huge", me_huge_page },
811#else
812 { compound, compound, "huge", me_huge_page },
813#endif
814
ff604cf6
NH
815 { sc|dirty, sc|dirty, "dirty swapcache", me_swapcache_dirty },
816 { sc|dirty, sc, "clean swapcache", me_swapcache_clean },
6a46079c 817
ff604cf6 818 { mlock|dirty, mlock|dirty, "dirty mlocked LRU", me_pagecache_dirty },
e3986295 819 { mlock|dirty, mlock, "clean mlocked LRU", me_pagecache_clean },
6a46079c 820
5f4b9fc5 821 { unevict|dirty, unevict|dirty, "dirty unevictable LRU", me_pagecache_dirty },
e3986295 822 { unevict|dirty, unevict, "clean unevictable LRU", me_pagecache_clean },
5f4b9fc5 823
ff604cf6 824 { lru|dirty, lru|dirty, "dirty LRU", me_pagecache_dirty },
6a46079c 825 { lru|dirty, lru, "clean LRU", me_pagecache_clean },
6a46079c
AK
826
827 /*
828 * Catchall entry: must be at end.
829 */
830 { 0, 0, "unknown page state", me_unknown },
831};
832
2326c467
AK
833#undef dirty
834#undef sc
835#undef unevict
836#undef mlock
837#undef writeback
838#undef lru
839#undef swapbacked
840#undef head
841#undef tail
842#undef compound
843#undef slab
844#undef reserved
845
ff604cf6
NH
846/*
847 * "Dirty/Clean" indication is not 100% accurate due to the possibility of
848 * setting PG_dirty outside page lock. See also comment above set_page_dirty().
849 */
6a46079c
AK
850static void action_result(unsigned long pfn, char *msg, int result)
851{
ff604cf6
NH
852 pr_err("MCE %#lx: %s page recovery: %s\n",
853 pfn, msg, action_name[result]);
6a46079c
AK
854}
855
856static int page_action(struct page_state *ps, struct page *p,
bd1ce5f9 857 unsigned long pfn)
6a46079c
AK
858{
859 int result;
7456b040 860 int count;
6a46079c
AK
861
862 result = ps->action(p, pfn);
863 action_result(pfn, ps->msg, result);
7456b040 864
bd1ce5f9 865 count = page_count(p) - 1;
138ce286
WF
866 if (ps->action == me_swapcache_dirty && result == DELAYED)
867 count--;
868 if (count != 0) {
6a46079c
AK
869 printk(KERN_ERR
870 "MCE %#lx: %s page still referenced by %d users\n",
7456b040 871 pfn, ps->msg, count);
138ce286
WF
872 result = FAILED;
873 }
6a46079c
AK
874
875 /* Could do more checks here if page looks ok */
876 /*
877 * Could adjust zone counters here to correct for the missing page.
878 */
879
138ce286 880 return (result == RECOVERED || result == DELAYED) ? 0 : -EBUSY;
6a46079c
AK
881}
882
6a46079c
AK
883/*
884 * Do all that is necessary to remove user space mappings. Unmap
885 * the pages and send SIGBUS to the processes if the data was dirty.
886 */
1668bfd5 887static int hwpoison_user_mappings(struct page *p, unsigned long pfn,
54b9dd14 888 int trapno, int flags, struct page **hpagep)
6a46079c
AK
889{
890 enum ttu_flags ttu = TTU_UNMAP | TTU_IGNORE_MLOCK | TTU_IGNORE_ACCESS;
891 struct address_space *mapping;
892 LIST_HEAD(tokill);
893 int ret;
6751ed65 894 int kill = 1, forcekill;
54b9dd14 895 struct page *hpage = *hpagep;
a6d30ddd 896 struct page *ppage;
6a46079c 897
93a9eb39
NH
898 /*
899 * Here we are interested only in user-mapped pages, so skip any
900 * other types of pages.
901 */
902 if (PageReserved(p) || PageSlab(p))
903 return SWAP_SUCCESS;
904 if (!(PageLRU(hpage) || PageHuge(p)))
1668bfd5 905 return SWAP_SUCCESS;
6a46079c 906
6a46079c
AK
907 /*
908 * This check implies we don't kill processes if their pages
909 * are in the swap cache early. Those are always late kills.
910 */
7af446a8 911 if (!page_mapped(hpage))
1668bfd5
WF
912 return SWAP_SUCCESS;
913
7af446a8 914 if (PageKsm(p))
1668bfd5 915 return SWAP_FAIL;
6a46079c
AK
916
917 if (PageSwapCache(p)) {
918 printk(KERN_ERR
919 "MCE %#lx: keeping poisoned page in swap cache\n", pfn);
920 ttu |= TTU_IGNORE_HWPOISON;
921 }
922
923 /*
924 * Propagate the dirty bit from PTEs to struct page first, because we
925 * need this to decide if we should kill or just drop the page.
db0480b3
WF
926 * XXX: the dirty test could be racy: set_page_dirty() may not always
927 * be called inside page lock (it's recommended but not enforced).
6a46079c 928 */
7af446a8 929 mapping = page_mapping(hpage);
6751ed65 930 if (!(flags & MF_MUST_KILL) && !PageDirty(hpage) && mapping &&
7af446a8
NH
931 mapping_cap_writeback_dirty(mapping)) {
932 if (page_mkclean(hpage)) {
933 SetPageDirty(hpage);
6a46079c
AK
934 } else {
935 kill = 0;
936 ttu |= TTU_IGNORE_HWPOISON;
937 printk(KERN_INFO
938 "MCE %#lx: corrupted page was clean: dropped without side effects\n",
939 pfn);
940 }
941 }
942
a6d30ddd
JD
943 /*
944 * ppage: poisoned page
945 * if p is regular page(4k page)
946 * ppage == real poisoned page;
947 * else p is hugetlb or THP, ppage == head page.
948 */
949 ppage = hpage;
950
efeda7a4
JD
951 if (PageTransHuge(hpage)) {
952 /*
953 * Verify that this isn't a hugetlbfs head page, the check for
954 * PageAnon is just for avoid tripping a split_huge_page
955 * internal debug check, as split_huge_page refuses to deal with
956 * anything that isn't an anon page. PageAnon can't go away fro
957 * under us because we hold a refcount on the hpage, without a
958 * refcount on the hpage. split_huge_page can't be safely called
959 * in the first place, having a refcount on the tail isn't
960 * enough * to be safe.
961 */
962 if (!PageHuge(hpage) && PageAnon(hpage)) {
963 if (unlikely(split_huge_page(hpage))) {
964 /*
965 * FIXME: if splitting THP is failed, it is
966 * better to stop the following operation rather
967 * than causing panic by unmapping. System might
968 * survive if the page is freed later.
969 */
970 printk(KERN_INFO
971 "MCE %#lx: failed to split THP\n", pfn);
972
973 BUG_ON(!PageHWPoison(p));
974 return SWAP_FAIL;
975 }
a3e0f9e4
NH
976 /*
977 * We pinned the head page for hwpoison handling,
978 * now we split the thp and we are interested in
979 * the hwpoisoned raw page, so move the refcount
54b9dd14 980 * to it. Similarly, page lock is shifted.
a3e0f9e4
NH
981 */
982 if (hpage != p) {
8d547ff4
NH
983 if (!(flags & MF_COUNT_INCREASED)) {
984 put_page(hpage);
985 get_page(p);
986 }
54b9dd14
NH
987 lock_page(p);
988 unlock_page(hpage);
989 *hpagep = p;
a3e0f9e4 990 }
a6d30ddd
JD
991 /* THP is split, so ppage should be the real poisoned page. */
992 ppage = p;
efeda7a4
JD
993 }
994 }
995
6a46079c
AK
996 /*
997 * First collect all the processes that have the page
998 * mapped in dirty form. This has to be done before try_to_unmap,
999 * because ttu takes the rmap data structures down.
1000 *
1001 * Error handling: We ignore errors here because
1002 * there's nothing that can be done.
1003 */
1004 if (kill)
74614de1 1005 collect_procs(ppage, &tokill, flags & MF_ACTION_REQUIRED);
6a46079c 1006
a6d30ddd 1007 ret = try_to_unmap(ppage, ttu);
6a46079c
AK
1008 if (ret != SWAP_SUCCESS)
1009 printk(KERN_ERR "MCE %#lx: failed to unmap page (mapcount=%d)\n",
a6d30ddd
JD
1010 pfn, page_mapcount(ppage));
1011
6a46079c
AK
1012 /*
1013 * Now that the dirty bit has been propagated to the
1014 * struct page and all unmaps done we can decide if
1015 * killing is needed or not. Only kill when the page
6751ed65
TL
1016 * was dirty or the process is not restartable,
1017 * otherwise the tokill list is merely
6a46079c
AK
1018 * freed. When there was a problem unmapping earlier
1019 * use a more force-full uncatchable kill to prevent
1020 * any accesses to the poisoned memory.
1021 */
6751ed65
TL
1022 forcekill = PageDirty(ppage) || (flags & MF_MUST_KILL);
1023 kill_procs(&tokill, forcekill, trapno,
7329bbeb 1024 ret != SWAP_SUCCESS, p, pfn, flags);
1668bfd5
WF
1025
1026 return ret;
6a46079c
AK
1027}
1028
7013febc
NH
1029static void set_page_hwpoison_huge_page(struct page *hpage)
1030{
1031 int i;
f9121153 1032 int nr_pages = 1 << compound_order(hpage);
7013febc
NH
1033 for (i = 0; i < nr_pages; i++)
1034 SetPageHWPoison(hpage + i);
1035}
1036
1037static void clear_page_hwpoison_huge_page(struct page *hpage)
1038{
1039 int i;
f9121153 1040 int nr_pages = 1 << compound_order(hpage);
7013febc
NH
1041 for (i = 0; i < nr_pages; i++)
1042 ClearPageHWPoison(hpage + i);
1043}
1044
cd42f4a3
TL
1045/**
1046 * memory_failure - Handle memory failure of a page.
1047 * @pfn: Page Number of the corrupted page
1048 * @trapno: Trap number reported in the signal to user space.
1049 * @flags: fine tune action taken
1050 *
1051 * This function is called by the low level machine check code
1052 * of an architecture when it detects hardware memory corruption
1053 * of a page. It tries its best to recover, which includes
1054 * dropping pages, killing processes etc.
1055 *
1056 * The function is primarily of use for corruptions that
1057 * happen outside the current execution context (e.g. when
1058 * detected by a background scrubber)
1059 *
1060 * Must run in process context (e.g. a work queue) with interrupts
1061 * enabled and no spinlocks hold.
1062 */
1063int memory_failure(unsigned long pfn, int trapno, int flags)
6a46079c
AK
1064{
1065 struct page_state *ps;
1066 struct page *p;
7af446a8 1067 struct page *hpage;
6a46079c 1068 int res;
c9fbdd5f 1069 unsigned int nr_pages;
524fca1e 1070 unsigned long page_flags;
6a46079c
AK
1071
1072 if (!sysctl_memory_failure_recovery)
1073 panic("Memory failure from trap %d on page %lx", trapno, pfn);
1074
1075 if (!pfn_valid(pfn)) {
a7560fc8
WF
1076 printk(KERN_ERR
1077 "MCE %#lx: memory outside kernel control\n",
1078 pfn);
1079 return -ENXIO;
6a46079c
AK
1080 }
1081
1082 p = pfn_to_page(pfn);
7af446a8 1083 hpage = compound_head(p);
6a46079c 1084 if (TestSetPageHWPoison(p)) {
d95ea51e 1085 printk(KERN_ERR "MCE %#lx: already hardware poisoned\n", pfn);
6a46079c
AK
1086 return 0;
1087 }
1088
4db0e950
NH
1089 /*
1090 * Currently errors on hugetlbfs pages are measured in hugepage units,
1091 * so nr_pages should be 1 << compound_order. OTOH when errors are on
1092 * transparent hugepages, they are supposed to be split and error
1093 * measurement is done in normal page units. So nr_pages should be one
1094 * in this case.
1095 */
1096 if (PageHuge(p))
1097 nr_pages = 1 << compound_order(hpage);
1098 else /* normal page or thp */
1099 nr_pages = 1;
293c07e3 1100 atomic_long_add(nr_pages, &num_poisoned_pages);
6a46079c
AK
1101
1102 /*
1103 * We need/can do nothing about count=0 pages.
1104 * 1) it's a free page, and therefore in safe hand:
1105 * prep_new_page() will be the gate keeper.
8c6c2ecb
NH
1106 * 2) it's a free hugepage, which is also safe:
1107 * an affected hugepage will be dequeued from hugepage freelist,
1108 * so there's no concern about reusing it ever after.
1109 * 3) it's part of a non-compound high order page.
6a46079c
AK
1110 * Implies some kernel user: cannot stop them from
1111 * R/W the page; let's pray that the page has been
1112 * used and will be freed some time later.
1113 * In fact it's dangerous to directly bump up page count from 0,
1114 * that may make page_freeze_refs()/page_unfreeze_refs() mismatch.
1115 */
82ba011b 1116 if (!(flags & MF_COUNT_INCREASED) &&
7af446a8 1117 !get_page_unless_zero(hpage)) {
8d22ba1b
WF
1118 if (is_free_buddy_page(p)) {
1119 action_result(pfn, "free buddy", DELAYED);
1120 return 0;
8c6c2ecb
NH
1121 } else if (PageHuge(hpage)) {
1122 /*
b985194c 1123 * Check "filter hit" and "race with other subpage."
8c6c2ecb 1124 */
7eaceacc 1125 lock_page(hpage);
b985194c
CY
1126 if (PageHWPoison(hpage)) {
1127 if ((hwpoison_filter(p) && TestClearPageHWPoison(p))
1128 || (p != hpage && TestSetPageHWPoison(hpage))) {
1129 atomic_long_sub(nr_pages, &num_poisoned_pages);
1130 unlock_page(hpage);
1131 return 0;
1132 }
8c6c2ecb
NH
1133 }
1134 set_page_hwpoison_huge_page(hpage);
1135 res = dequeue_hwpoisoned_huge_page(hpage);
1136 action_result(pfn, "free huge",
1137 res ? IGNORED : DELAYED);
1138 unlock_page(hpage);
1139 return res;
8d22ba1b
WF
1140 } else {
1141 action_result(pfn, "high order kernel", IGNORED);
1142 return -EBUSY;
1143 }
6a46079c
AK
1144 }
1145
e43c3afb
WF
1146 /*
1147 * We ignore non-LRU pages for good reasons.
1148 * - PG_locked is only well defined for LRU pages and a few others
1149 * - to avoid races with __set_page_locked()
1150 * - to avoid races with __SetPageSlab*() (and more non-atomic ops)
1151 * The check (unnecessarily) ignores LRU pages being isolated and
1152 * walked by the page reclaim code, however that's not a big loss.
1153 */
385de357 1154 if (!PageHuge(p) && !PageTransTail(p)) {
af241a08
JD
1155 if (!PageLRU(p))
1156 shake_page(p, 0);
1157 if (!PageLRU(p)) {
1158 /*
1159 * shake_page could have turned it free.
1160 */
1161 if (is_free_buddy_page(p)) {
2d421acd
WL
1162 if (flags & MF_COUNT_INCREASED)
1163 action_result(pfn, "free buddy", DELAYED);
1164 else
1165 action_result(pfn, "free buddy, 2nd try", DELAYED);
af241a08
JD
1166 return 0;
1167 }
0474a60e 1168 }
e43c3afb 1169 }
e43c3afb 1170
7eaceacc 1171 lock_page(hpage);
847ce401 1172
524fca1e
NH
1173 /*
1174 * We use page flags to determine what action should be taken, but
1175 * the flags can be modified by the error containment action. One
1176 * example is an mlocked page, where PG_mlocked is cleared by
1177 * page_remove_rmap() in try_to_unmap_one(). So to determine page status
1178 * correctly, we save a copy of the page flags at this time.
1179 */
1180 page_flags = p->flags;
1181
847ce401
WF
1182 /*
1183 * unpoison always clear PG_hwpoison inside page lock
1184 */
1185 if (!PageHWPoison(p)) {
d95ea51e 1186 printk(KERN_ERR "MCE %#lx: just unpoisoned\n", pfn);
3e030ecc
NH
1187 atomic_long_sub(nr_pages, &num_poisoned_pages);
1188 put_page(hpage);
847ce401
WF
1189 res = 0;
1190 goto out;
1191 }
7c116f2b
WF
1192 if (hwpoison_filter(p)) {
1193 if (TestClearPageHWPoison(p))
293c07e3 1194 atomic_long_sub(nr_pages, &num_poisoned_pages);
7af446a8
NH
1195 unlock_page(hpage);
1196 put_page(hpage);
7c116f2b
WF
1197 return 0;
1198 }
847ce401 1199
0bc1f8b0
CY
1200 if (!PageHuge(p) && !PageTransTail(p) && !PageLRU(p))
1201 goto identify_page_state;
1202
7013febc
NH
1203 /*
1204 * For error on the tail page, we should set PG_hwpoison
1205 * on the head page to show that the hugepage is hwpoisoned
1206 */
a6d30ddd 1207 if (PageHuge(p) && PageTail(p) && TestSetPageHWPoison(hpage)) {
7013febc
NH
1208 action_result(pfn, "hugepage already hardware poisoned",
1209 IGNORED);
1210 unlock_page(hpage);
1211 put_page(hpage);
1212 return 0;
1213 }
1214 /*
1215 * Set PG_hwpoison on all pages in an error hugepage,
1216 * because containment is done in hugepage unit for now.
1217 * Since we have done TestSetPageHWPoison() for the head page with
1218 * page lock held, we can safely set PG_hwpoison bits on tail pages.
1219 */
1220 if (PageHuge(p))
1221 set_page_hwpoison_huge_page(hpage);
1222
6edd6cc6
NH
1223 /*
1224 * It's very difficult to mess with pages currently under IO
1225 * and in many cases impossible, so we just avoid it here.
1226 */
6a46079c
AK
1227 wait_on_page_writeback(p);
1228
1229 /*
1230 * Now take care of user space mappings.
e64a782f 1231 * Abort on fail: __delete_from_page_cache() assumes unmapped page.
54b9dd14
NH
1232 *
1233 * When the raw error page is thp tail page, hpage points to the raw
1234 * page after thp split.
6a46079c 1235 */
54b9dd14
NH
1236 if (hwpoison_user_mappings(p, pfn, trapno, flags, &hpage)
1237 != SWAP_SUCCESS) {
1668bfd5
WF
1238 printk(KERN_ERR "MCE %#lx: cannot unmap page, give up\n", pfn);
1239 res = -EBUSY;
1240 goto out;
1241 }
6a46079c
AK
1242
1243 /*
1244 * Torn down by someone else?
1245 */
dc2a1cbf 1246 if (PageLRU(p) && !PageSwapCache(p) && p->mapping == NULL) {
6a46079c 1247 action_result(pfn, "already truncated LRU", IGNORED);
d95ea51e 1248 res = -EBUSY;
6a46079c
AK
1249 goto out;
1250 }
1251
0bc1f8b0 1252identify_page_state:
6a46079c 1253 res = -EBUSY;
524fca1e
NH
1254 /*
1255 * The first check uses the current page flags which may not have any
1256 * relevant information. The second check with the saved page flagss is
1257 * carried out only if the first check can't determine the page status.
1258 */
1259 for (ps = error_states;; ps++)
1260 if ((p->flags & ps->mask) == ps->res)
6a46079c 1261 break;
841fcc58
WL
1262
1263 page_flags |= (p->flags & (1UL << PG_dirty));
1264
524fca1e
NH
1265 if (!ps->mask)
1266 for (ps = error_states;; ps++)
1267 if ((page_flags & ps->mask) == ps->res)
1268 break;
1269 res = page_action(ps, p, pfn);
6a46079c 1270out:
7af446a8 1271 unlock_page(hpage);
6a46079c
AK
1272 return res;
1273}
cd42f4a3 1274EXPORT_SYMBOL_GPL(memory_failure);
847ce401 1275
ea8f5fb8
HY
1276#define MEMORY_FAILURE_FIFO_ORDER 4
1277#define MEMORY_FAILURE_FIFO_SIZE (1 << MEMORY_FAILURE_FIFO_ORDER)
1278
1279struct memory_failure_entry {
1280 unsigned long pfn;
1281 int trapno;
1282 int flags;
1283};
1284
1285struct memory_failure_cpu {
1286 DECLARE_KFIFO(fifo, struct memory_failure_entry,
1287 MEMORY_FAILURE_FIFO_SIZE);
1288 spinlock_t lock;
1289 struct work_struct work;
1290};
1291
1292static DEFINE_PER_CPU(struct memory_failure_cpu, memory_failure_cpu);
1293
1294/**
1295 * memory_failure_queue - Schedule handling memory failure of a page.
1296 * @pfn: Page Number of the corrupted page
1297 * @trapno: Trap number reported in the signal to user space.
1298 * @flags: Flags for memory failure handling
1299 *
1300 * This function is called by the low level hardware error handler
1301 * when it detects hardware memory corruption of a page. It schedules
1302 * the recovering of error page, including dropping pages, killing
1303 * processes etc.
1304 *
1305 * The function is primarily of use for corruptions that
1306 * happen outside the current execution context (e.g. when
1307 * detected by a background scrubber)
1308 *
1309 * Can run in IRQ context.
1310 */
1311void memory_failure_queue(unsigned long pfn, int trapno, int flags)
1312{
1313 struct memory_failure_cpu *mf_cpu;
1314 unsigned long proc_flags;
1315 struct memory_failure_entry entry = {
1316 .pfn = pfn,
1317 .trapno = trapno,
1318 .flags = flags,
1319 };
1320
1321 mf_cpu = &get_cpu_var(memory_failure_cpu);
1322 spin_lock_irqsave(&mf_cpu->lock, proc_flags);
498d319b 1323 if (kfifo_put(&mf_cpu->fifo, entry))
ea8f5fb8
HY
1324 schedule_work_on(smp_processor_id(), &mf_cpu->work);
1325 else
8e33a52f 1326 pr_err("Memory failure: buffer overflow when queuing memory failure at %#lx\n",
ea8f5fb8
HY
1327 pfn);
1328 spin_unlock_irqrestore(&mf_cpu->lock, proc_flags);
1329 put_cpu_var(memory_failure_cpu);
1330}
1331EXPORT_SYMBOL_GPL(memory_failure_queue);
1332
1333static void memory_failure_work_func(struct work_struct *work)
1334{
1335 struct memory_failure_cpu *mf_cpu;
1336 struct memory_failure_entry entry = { 0, };
1337 unsigned long proc_flags;
1338 int gotten;
1339
7c8e0181 1340 mf_cpu = this_cpu_ptr(&memory_failure_cpu);
ea8f5fb8
HY
1341 for (;;) {
1342 spin_lock_irqsave(&mf_cpu->lock, proc_flags);
1343 gotten = kfifo_get(&mf_cpu->fifo, &entry);
1344 spin_unlock_irqrestore(&mf_cpu->lock, proc_flags);
1345 if (!gotten)
1346 break;
cf870c70
NR
1347 if (entry.flags & MF_SOFT_OFFLINE)
1348 soft_offline_page(pfn_to_page(entry.pfn), entry.flags);
1349 else
1350 memory_failure(entry.pfn, entry.trapno, entry.flags);
ea8f5fb8
HY
1351 }
1352}
1353
1354static int __init memory_failure_init(void)
1355{
1356 struct memory_failure_cpu *mf_cpu;
1357 int cpu;
1358
1359 for_each_possible_cpu(cpu) {
1360 mf_cpu = &per_cpu(memory_failure_cpu, cpu);
1361 spin_lock_init(&mf_cpu->lock);
1362 INIT_KFIFO(mf_cpu->fifo);
1363 INIT_WORK(&mf_cpu->work, memory_failure_work_func);
1364 }
1365
1366 return 0;
1367}
1368core_initcall(memory_failure_init);
1369
847ce401
WF
1370/**
1371 * unpoison_memory - Unpoison a previously poisoned page
1372 * @pfn: Page number of the to be unpoisoned page
1373 *
1374 * Software-unpoison a page that has been poisoned by
1375 * memory_failure() earlier.
1376 *
1377 * This is only done on the software-level, so it only works
1378 * for linux injected failures, not real hardware failures
1379 *
1380 * Returns 0 for success, otherwise -errno.
1381 */
1382int unpoison_memory(unsigned long pfn)
1383{
1384 struct page *page;
1385 struct page *p;
1386 int freeit = 0;
c9fbdd5f 1387 unsigned int nr_pages;
847ce401
WF
1388
1389 if (!pfn_valid(pfn))
1390 return -ENXIO;
1391
1392 p = pfn_to_page(pfn);
1393 page = compound_head(p);
1394
1395 if (!PageHWPoison(p)) {
fb46e735 1396 pr_info("MCE: Page was already unpoisoned %#lx\n", pfn);
847ce401
WF
1397 return 0;
1398 }
1399
0cea3fdc
WL
1400 /*
1401 * unpoison_memory() can encounter thp only when the thp is being
1402 * worked by memory_failure() and the page lock is not held yet.
1403 * In such case, we yield to memory_failure() and make unpoison fail.
1404 */
e76d30e2 1405 if (!PageHuge(page) && PageTransHuge(page)) {
0cea3fdc
WL
1406 pr_info("MCE: Memory failure is now running on %#lx\n", pfn);
1407 return 0;
1408 }
1409
f9121153 1410 nr_pages = 1 << compound_order(page);
c9fbdd5f 1411
847ce401 1412 if (!get_page_unless_zero(page)) {
8c6c2ecb
NH
1413 /*
1414 * Since HWPoisoned hugepage should have non-zero refcount,
1415 * race between memory failure and unpoison seems to happen.
1416 * In such case unpoison fails and memory failure runs
1417 * to the end.
1418 */
1419 if (PageHuge(page)) {
dd73e85f 1420 pr_info("MCE: Memory failure is now running on free hugepage %#lx\n", pfn);
8c6c2ecb
NH
1421 return 0;
1422 }
847ce401 1423 if (TestClearPageHWPoison(p))
dd9538a5 1424 atomic_long_dec(&num_poisoned_pages);
fb46e735 1425 pr_info("MCE: Software-unpoisoned free page %#lx\n", pfn);
847ce401
WF
1426 return 0;
1427 }
1428
7eaceacc 1429 lock_page(page);
847ce401
WF
1430 /*
1431 * This test is racy because PG_hwpoison is set outside of page lock.
1432 * That's acceptable because that won't trigger kernel panic. Instead,
1433 * the PG_hwpoison page will be caught and isolated on the entrance to
1434 * the free buddy page pool.
1435 */
c9fbdd5f 1436 if (TestClearPageHWPoison(page)) {
fb46e735 1437 pr_info("MCE: Software-unpoisoned page %#lx\n", pfn);
293c07e3 1438 atomic_long_sub(nr_pages, &num_poisoned_pages);
847ce401 1439 freeit = 1;
6a90181c
NH
1440 if (PageHuge(page))
1441 clear_page_hwpoison_huge_page(page);
847ce401
WF
1442 }
1443 unlock_page(page);
1444
1445 put_page(page);
3ba5eebc 1446 if (freeit && !(pfn == my_zero_pfn(0) && page_count(p) == 1))
847ce401
WF
1447 put_page(page);
1448
1449 return 0;
1450}
1451EXPORT_SYMBOL(unpoison_memory);
facb6011
AK
1452
1453static struct page *new_page(struct page *p, unsigned long private, int **x)
1454{
12686d15 1455 int nid = page_to_nid(p);
d950b958
NH
1456 if (PageHuge(p))
1457 return alloc_huge_page_node(page_hstate(compound_head(p)),
1458 nid);
1459 else
1460 return alloc_pages_exact_node(nid, GFP_HIGHUSER_MOVABLE, 0);
facb6011
AK
1461}
1462
1463/*
1464 * Safely get reference count of an arbitrary page.
1465 * Returns 0 for a free page, -EIO for a zero refcount page
1466 * that is not free, and 1 for any other page type.
1467 * For 1 the page is returned with increased page count, otherwise not.
1468 */
af8fae7c 1469static int __get_any_page(struct page *p, unsigned long pfn, int flags)
facb6011
AK
1470{
1471 int ret;
1472
1473 if (flags & MF_COUNT_INCREASED)
1474 return 1;
1475
d950b958
NH
1476 /*
1477 * When the target page is a free hugepage, just remove it
1478 * from free hugepage list.
1479 */
facb6011 1480 if (!get_page_unless_zero(compound_head(p))) {
d950b958 1481 if (PageHuge(p)) {
71dd0b8a 1482 pr_info("%s: %#lx free huge page\n", __func__, pfn);
af8fae7c 1483 ret = 0;
d950b958 1484 } else if (is_free_buddy_page(p)) {
71dd0b8a 1485 pr_info("%s: %#lx free buddy page\n", __func__, pfn);
facb6011
AK
1486 ret = 0;
1487 } else {
71dd0b8a
BP
1488 pr_info("%s: %#lx: unknown zero refcount page type %lx\n",
1489 __func__, pfn, p->flags);
facb6011
AK
1490 ret = -EIO;
1491 }
1492 } else {
1493 /* Not a free page */
1494 ret = 1;
1495 }
facb6011
AK
1496 return ret;
1497}
1498
af8fae7c
NH
1499static int get_any_page(struct page *page, unsigned long pfn, int flags)
1500{
1501 int ret = __get_any_page(page, pfn, flags);
1502
1503 if (ret == 1 && !PageHuge(page) && !PageLRU(page)) {
1504 /*
1505 * Try to free it.
1506 */
1507 put_page(page);
1508 shake_page(page, 1);
1509
1510 /*
1511 * Did it turn free?
1512 */
1513 ret = __get_any_page(page, pfn, 0);
1514 if (!PageLRU(page)) {
1515 pr_info("soft_offline: %#lx: unknown non LRU page type %lx\n",
1516 pfn, page->flags);
1517 return -EIO;
1518 }
1519 }
1520 return ret;
1521}
1522
d950b958
NH
1523static int soft_offline_huge_page(struct page *page, int flags)
1524{
1525 int ret;
1526 unsigned long pfn = page_to_pfn(page);
1527 struct page *hpage = compound_head(page);
b8ec1cee 1528 LIST_HEAD(pagelist);
d950b958 1529
af8fae7c
NH
1530 /*
1531 * This double-check of PageHWPoison is to avoid the race with
1532 * memory_failure(). See also comment in __soft_offline_page().
1533 */
1534 lock_page(hpage);
0ebff32c 1535 if (PageHWPoison(hpage)) {
af8fae7c
NH
1536 unlock_page(hpage);
1537 put_page(hpage);
0ebff32c 1538 pr_info("soft offline: %#lx hugepage already poisoned\n", pfn);
af8fae7c 1539 return -EBUSY;
0ebff32c 1540 }
af8fae7c 1541 unlock_page(hpage);
d950b958 1542
d950b958 1543 /* Keep page count to indicate a given hugepage is isolated. */
b8ec1cee 1544 list_move(&hpage->lru, &pagelist);
68711a74 1545 ret = migrate_pages(&pagelist, new_page, NULL, MPOL_MF_MOVE_ALL,
b8ec1cee 1546 MIGRATE_SYNC, MR_MEMORY_FAILURE);
d950b958 1547 if (ret) {
dd73e85f
DN
1548 pr_info("soft offline: %#lx: migration failed %d, type %lx\n",
1549 pfn, ret, page->flags);
b8ec1cee
NH
1550 /*
1551 * We know that soft_offline_huge_page() tries to migrate
1552 * only one hugepage pointed to by hpage, so we need not
1553 * run through the pagelist here.
1554 */
1555 putback_active_hugepage(hpage);
1556 if (ret > 0)
1557 ret = -EIO;
af8fae7c 1558 } else {
a49ecbcd
JW
1559 /* overcommit hugetlb page will be freed to buddy */
1560 if (PageHuge(page)) {
1561 set_page_hwpoison_huge_page(hpage);
1562 dequeue_hwpoisoned_huge_page(hpage);
1563 atomic_long_add(1 << compound_order(hpage),
1564 &num_poisoned_pages);
1565 } else {
1566 SetPageHWPoison(page);
1567 atomic_long_inc(&num_poisoned_pages);
1568 }
d950b958 1569 }
d950b958
NH
1570 return ret;
1571}
1572
af8fae7c
NH
1573static int __soft_offline_page(struct page *page, int flags)
1574{
1575 int ret;
1576 unsigned long pfn = page_to_pfn(page);
facb6011 1577
facb6011 1578 /*
af8fae7c
NH
1579 * Check PageHWPoison again inside page lock because PageHWPoison
1580 * is set by memory_failure() outside page lock. Note that
1581 * memory_failure() also double-checks PageHWPoison inside page lock,
1582 * so there's no race between soft_offline_page() and memory_failure().
facb6011 1583 */
0ebff32c
XQ
1584 lock_page(page);
1585 wait_on_page_writeback(page);
af8fae7c
NH
1586 if (PageHWPoison(page)) {
1587 unlock_page(page);
1588 put_page(page);
1589 pr_info("soft offline: %#lx page already poisoned\n", pfn);
1590 return -EBUSY;
1591 }
facb6011
AK
1592 /*
1593 * Try to invalidate first. This should work for
1594 * non dirty unmapped page cache pages.
1595 */
1596 ret = invalidate_inode_page(page);
1597 unlock_page(page);
facb6011 1598 /*
facb6011
AK
1599 * RED-PEN would be better to keep it isolated here, but we
1600 * would need to fix isolation locking first.
1601 */
facb6011 1602 if (ret == 1) {
bd486285 1603 put_page(page);
fb46e735 1604 pr_info("soft_offline: %#lx: invalidated\n", pfn);
af8fae7c
NH
1605 SetPageHWPoison(page);
1606 atomic_long_inc(&num_poisoned_pages);
1607 return 0;
facb6011
AK
1608 }
1609
1610 /*
1611 * Simple invalidation didn't work.
1612 * Try to migrate to a new page instead. migrate.c
1613 * handles a large number of cases for us.
1614 */
1615 ret = isolate_lru_page(page);
bd486285
KK
1616 /*
1617 * Drop page reference which is came from get_any_page()
1618 * successful isolate_lru_page() already took another one.
1619 */
1620 put_page(page);
facb6011
AK
1621 if (!ret) {
1622 LIST_HEAD(pagelist);
5db8a73a 1623 inc_zone_page_state(page, NR_ISOLATED_ANON +
9c620e2b 1624 page_is_file_cache(page));
facb6011 1625 list_add(&page->lru, &pagelist);
68711a74 1626 ret = migrate_pages(&pagelist, new_page, NULL, MPOL_MF_MOVE_ALL,
9c620e2b 1627 MIGRATE_SYNC, MR_MEMORY_FAILURE);
facb6011 1628 if (ret) {
59c82b70
JK
1629 if (!list_empty(&pagelist)) {
1630 list_del(&page->lru);
1631 dec_zone_page_state(page, NR_ISOLATED_ANON +
1632 page_is_file_cache(page));
1633 putback_lru_page(page);
1634 }
1635
fb46e735 1636 pr_info("soft offline: %#lx: migration failed %d, type %lx\n",
facb6011
AK
1637 pfn, ret, page->flags);
1638 if (ret > 0)
1639 ret = -EIO;
af8fae7c 1640 } else {
f15bdfa8
NH
1641 /*
1642 * After page migration succeeds, the source page can
1643 * be trapped in pagevec and actual freeing is delayed.
1644 * Freeing code works differently based on PG_hwpoison,
1645 * so there's a race. We need to make sure that the
1646 * source page should be freed back to buddy before
1647 * setting PG_hwpoison.
1648 */
1649 if (!is_free_buddy_page(page))
1650 lru_add_drain_all();
1651 if (!is_free_buddy_page(page))
1652 drain_all_pages();
af8fae7c 1653 SetPageHWPoison(page);
f15bdfa8
NH
1654 if (!is_free_buddy_page(page))
1655 pr_info("soft offline: %#lx: page leaked\n",
1656 pfn);
af8fae7c 1657 atomic_long_inc(&num_poisoned_pages);
facb6011
AK
1658 }
1659 } else {
fb46e735 1660 pr_info("soft offline: %#lx: isolation failed: %d, page count %d, type %lx\n",
dd73e85f 1661 pfn, ret, page_count(page), page->flags);
facb6011 1662 }
facb6011
AK
1663 return ret;
1664}
86e05773
WL
1665
1666/**
1667 * soft_offline_page - Soft offline a page.
1668 * @page: page to offline
1669 * @flags: flags. Same as memory_failure().
1670 *
1671 * Returns 0 on success, otherwise negated errno.
1672 *
1673 * Soft offline a page, by migration or invalidation,
1674 * without killing anything. This is for the case when
1675 * a page is not corrupted yet (so it's still valid to access),
1676 * but has had a number of corrected errors and is better taken
1677 * out.
1678 *
1679 * The actual policy on when to do that is maintained by
1680 * user space.
1681 *
1682 * This should never impact any application or cause data loss,
1683 * however it might take some time.
1684 *
1685 * This is not a 100% solution for all memory, but tries to be
1686 * ``good enough'' for the majority of memory.
1687 */
1688int soft_offline_page(struct page *page, int flags)
1689{
1690 int ret;
1691 unsigned long pfn = page_to_pfn(page);
668f9abb 1692 struct page *hpage = compound_head(page);
86e05773
WL
1693
1694 if (PageHWPoison(page)) {
1695 pr_info("soft offline: %#lx page already poisoned\n", pfn);
1696 return -EBUSY;
1697 }
1698 if (!PageHuge(page) && PageTransHuge(hpage)) {
1699 if (PageAnon(hpage) && unlikely(split_huge_page(hpage))) {
1700 pr_info("soft offline: %#lx: failed to split THP\n",
1701 pfn);
1702 return -EBUSY;
1703 }
1704 }
1705
bfc8c901 1706 get_online_mems();
03b61ff3
NH
1707
1708 /*
1709 * Isolate the page, so that it doesn't get reallocated if it
1710 * was free. This flag should be kept set until the source page
1711 * is freed and PG_hwpoison on it is set.
1712 */
1713 if (get_pageblock_migratetype(page) != MIGRATE_ISOLATE)
1714 set_migratetype_isolate(page, true);
1715
86e05773 1716 ret = get_any_page(page, pfn, flags);
bfc8c901 1717 put_online_mems();
03b61ff3 1718 if (ret > 0) { /* for in-use pages */
86e05773
WL
1719 if (PageHuge(page))
1720 ret = soft_offline_huge_page(page, flags);
1721 else
1722 ret = __soft_offline_page(page, flags);
03b61ff3 1723 } else if (ret == 0) { /* for free pages */
86e05773
WL
1724 if (PageHuge(page)) {
1725 set_page_hwpoison_huge_page(hpage);
1726 dequeue_hwpoisoned_huge_page(hpage);
1727 atomic_long_add(1 << compound_order(hpage),
1728 &num_poisoned_pages);
1729 } else {
1730 SetPageHWPoison(page);
1731 atomic_long_inc(&num_poisoned_pages);
1732 }
1733 }
86e05773
WL
1734 unset_migratetype_isolate(page, MIGRATE_MOVABLE);
1735 return ret;
1736}
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