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[net-next-2.6.git] / mm / migrate.c
CommitLineData
b20a3503
CL
1/*
2 * Memory Migration functionality - linux/mm/migration.c
3 *
4 * Copyright (C) 2006 Silicon Graphics, Inc., Christoph Lameter
5 *
6 * Page migration was first developed in the context of the memory hotplug
7 * project. The main authors of the migration code are:
8 *
9 * IWAMOTO Toshihiro <iwamoto@valinux.co.jp>
10 * Hirokazu Takahashi <taka@valinux.co.jp>
11 * Dave Hansen <haveblue@us.ibm.com>
cde53535 12 * Christoph Lameter
b20a3503
CL
13 */
14
15#include <linux/migrate.h>
16#include <linux/module.h>
17#include <linux/swap.h>
0697212a 18#include <linux/swapops.h>
b20a3503 19#include <linux/pagemap.h>
e23ca00b 20#include <linux/buffer_head.h>
b20a3503 21#include <linux/mm_inline.h>
b488893a 22#include <linux/nsproxy.h>
b20a3503 23#include <linux/pagevec.h>
e9995ef9 24#include <linux/ksm.h>
b20a3503
CL
25#include <linux/rmap.h>
26#include <linux/topology.h>
27#include <linux/cpu.h>
28#include <linux/cpuset.h>
04e62a29 29#include <linux/writeback.h>
742755a1
CL
30#include <linux/mempolicy.h>
31#include <linux/vmalloc.h>
86c3a764 32#include <linux/security.h>
8a9f3ccd 33#include <linux/memcontrol.h>
4f5ca265 34#include <linux/syscalls.h>
290408d4 35#include <linux/hugetlb.h>
5a0e3ad6 36#include <linux/gfp.h>
b20a3503
CL
37
38#include "internal.h"
39
b20a3503
CL
40#define lru_to_page(_head) (list_entry((_head)->prev, struct page, lru))
41
b20a3503 42/*
742755a1 43 * migrate_prep() needs to be called before we start compiling a list of pages
748446bb
MG
44 * to be migrated using isolate_lru_page(). If scheduling work on other CPUs is
45 * undesirable, use migrate_prep_local()
b20a3503
CL
46 */
47int migrate_prep(void)
48{
b20a3503
CL
49 /*
50 * Clear the LRU lists so pages can be isolated.
51 * Note that pages may be moved off the LRU after we have
52 * drained them. Those pages will fail to migrate like other
53 * pages that may be busy.
54 */
55 lru_add_drain_all();
56
57 return 0;
58}
59
748446bb
MG
60/* Do the necessary work of migrate_prep but not if it involves other CPUs */
61int migrate_prep_local(void)
62{
63 lru_add_drain();
64
65 return 0;
66}
67
b20a3503 68/*
894bc310
LS
69 * Add isolated pages on the list back to the LRU under page lock
70 * to avoid leaking evictable pages back onto unevictable list.
b20a3503 71 */
e13861d8 72void putback_lru_pages(struct list_head *l)
b20a3503
CL
73{
74 struct page *page;
75 struct page *page2;
b20a3503
CL
76
77 list_for_each_entry_safe(page, page2, l, lru) {
e24f0b8f 78 list_del(&page->lru);
a731286d 79 dec_zone_page_state(page, NR_ISOLATED_ANON +
6c0b1351 80 page_is_file_cache(page));
894bc310 81 putback_lru_page(page);
b20a3503 82 }
b20a3503
CL
83}
84
0697212a
CL
85/*
86 * Restore a potential migration pte to a working pte entry
87 */
e9995ef9
HD
88static int remove_migration_pte(struct page *new, struct vm_area_struct *vma,
89 unsigned long addr, void *old)
0697212a
CL
90{
91 struct mm_struct *mm = vma->vm_mm;
92 swp_entry_t entry;
93 pgd_t *pgd;
94 pud_t *pud;
95 pmd_t *pmd;
96 pte_t *ptep, pte;
97 spinlock_t *ptl;
98
290408d4
NH
99 if (unlikely(PageHuge(new))) {
100 ptep = huge_pte_offset(mm, addr);
101 if (!ptep)
102 goto out;
103 ptl = &mm->page_table_lock;
104 } else {
105 pgd = pgd_offset(mm, addr);
106 if (!pgd_present(*pgd))
107 goto out;
0697212a 108
290408d4
NH
109 pud = pud_offset(pgd, addr);
110 if (!pud_present(*pud))
111 goto out;
0697212a 112
290408d4
NH
113 pmd = pmd_offset(pud, addr);
114 if (!pmd_present(*pmd))
115 goto out;
0697212a 116
290408d4 117 ptep = pte_offset_map(pmd, addr);
0697212a 118
290408d4
NH
119 if (!is_swap_pte(*ptep)) {
120 pte_unmap(ptep);
121 goto out;
122 }
123
124 ptl = pte_lockptr(mm, pmd);
125 }
0697212a 126
0697212a
CL
127 spin_lock(ptl);
128 pte = *ptep;
129 if (!is_swap_pte(pte))
e9995ef9 130 goto unlock;
0697212a
CL
131
132 entry = pte_to_swp_entry(pte);
133
e9995ef9
HD
134 if (!is_migration_entry(entry) ||
135 migration_entry_to_page(entry) != old)
136 goto unlock;
0697212a 137
0697212a
CL
138 get_page(new);
139 pte = pte_mkold(mk_pte(new, vma->vm_page_prot));
140 if (is_write_migration_entry(entry))
141 pte = pte_mkwrite(pte);
3ef8fd7f 142#ifdef CONFIG_HUGETLB_PAGE
290408d4
NH
143 if (PageHuge(new))
144 pte = pte_mkhuge(pte);
3ef8fd7f 145#endif
97ee0524 146 flush_cache_page(vma, addr, pte_pfn(pte));
0697212a 147 set_pte_at(mm, addr, ptep, pte);
04e62a29 148
290408d4
NH
149 if (PageHuge(new)) {
150 if (PageAnon(new))
151 hugepage_add_anon_rmap(new, vma, addr);
152 else
153 page_dup_rmap(new);
154 } else if (PageAnon(new))
04e62a29
CL
155 page_add_anon_rmap(new, vma, addr);
156 else
157 page_add_file_rmap(new);
158
159 /* No need to invalidate - it was non-present before */
4b3073e1 160 update_mmu_cache(vma, addr, ptep);
e9995ef9 161unlock:
0697212a 162 pte_unmap_unlock(ptep, ptl);
e9995ef9
HD
163out:
164 return SWAP_AGAIN;
0697212a
CL
165}
166
04e62a29
CL
167/*
168 * Get rid of all migration entries and replace them by
169 * references to the indicated page.
170 */
171static void remove_migration_ptes(struct page *old, struct page *new)
172{
e9995ef9 173 rmap_walk(new, remove_migration_pte, old);
04e62a29
CL
174}
175
0697212a
CL
176/*
177 * Something used the pte of a page under migration. We need to
178 * get to the page and wait until migration is finished.
179 * When we return from this function the fault will be retried.
180 *
181 * This function is called from do_swap_page().
182 */
183void migration_entry_wait(struct mm_struct *mm, pmd_t *pmd,
184 unsigned long address)
185{
186 pte_t *ptep, pte;
187 spinlock_t *ptl;
188 swp_entry_t entry;
189 struct page *page;
190
191 ptep = pte_offset_map_lock(mm, pmd, address, &ptl);
192 pte = *ptep;
193 if (!is_swap_pte(pte))
194 goto out;
195
196 entry = pte_to_swp_entry(pte);
197 if (!is_migration_entry(entry))
198 goto out;
199
200 page = migration_entry_to_page(entry);
201
e286781d
NP
202 /*
203 * Once radix-tree replacement of page migration started, page_count
204 * *must* be zero. And, we don't want to call wait_on_page_locked()
205 * against a page without get_page().
206 * So, we use get_page_unless_zero(), here. Even failed, page fault
207 * will occur again.
208 */
209 if (!get_page_unless_zero(page))
210 goto out;
0697212a
CL
211 pte_unmap_unlock(ptep, ptl);
212 wait_on_page_locked(page);
213 put_page(page);
214 return;
215out:
216 pte_unmap_unlock(ptep, ptl);
217}
218
b20a3503 219/*
c3fcf8a5 220 * Replace the page in the mapping.
5b5c7120
CL
221 *
222 * The number of remaining references must be:
223 * 1 for anonymous pages without a mapping
224 * 2 for pages with a mapping
266cf658 225 * 3 for pages with a mapping and PagePrivate/PagePrivate2 set.
b20a3503 226 */
2d1db3b1
CL
227static int migrate_page_move_mapping(struct address_space *mapping,
228 struct page *newpage, struct page *page)
b20a3503 229{
e286781d 230 int expected_count;
7cf9c2c7 231 void **pslot;
b20a3503 232
6c5240ae 233 if (!mapping) {
0e8c7d0f 234 /* Anonymous page without mapping */
6c5240ae
CL
235 if (page_count(page) != 1)
236 return -EAGAIN;
237 return 0;
238 }
239
19fd6231 240 spin_lock_irq(&mapping->tree_lock);
b20a3503 241
7cf9c2c7
NP
242 pslot = radix_tree_lookup_slot(&mapping->page_tree,
243 page_index(page));
b20a3503 244
edcf4748 245 expected_count = 2 + page_has_private(page);
e286781d 246 if (page_count(page) != expected_count ||
7cf9c2c7 247 (struct page *)radix_tree_deref_slot(pslot) != page) {
19fd6231 248 spin_unlock_irq(&mapping->tree_lock);
e23ca00b 249 return -EAGAIN;
b20a3503
CL
250 }
251
e286781d 252 if (!page_freeze_refs(page, expected_count)) {
19fd6231 253 spin_unlock_irq(&mapping->tree_lock);
e286781d
NP
254 return -EAGAIN;
255 }
256
b20a3503
CL
257 /*
258 * Now we know that no one else is looking at the page.
b20a3503 259 */
7cf9c2c7 260 get_page(newpage); /* add cache reference */
b20a3503
CL
261 if (PageSwapCache(page)) {
262 SetPageSwapCache(newpage);
263 set_page_private(newpage, page_private(page));
264 }
265
7cf9c2c7
NP
266 radix_tree_replace_slot(pslot, newpage);
267
e286781d 268 page_unfreeze_refs(page, expected_count);
7cf9c2c7
NP
269 /*
270 * Drop cache reference from old page.
271 * We know this isn't the last reference.
272 */
b20a3503 273 __put_page(page);
7cf9c2c7 274
0e8c7d0f
CL
275 /*
276 * If moved to a different zone then also account
277 * the page for that zone. Other VM counters will be
278 * taken care of when we establish references to the
279 * new page and drop references to the old page.
280 *
281 * Note that anonymous pages are accounted for
282 * via NR_FILE_PAGES and NR_ANON_PAGES if they
283 * are mapped to swap space.
284 */
285 __dec_zone_page_state(page, NR_FILE_PAGES);
286 __inc_zone_page_state(newpage, NR_FILE_PAGES);
4b02108a
KM
287 if (PageSwapBacked(page)) {
288 __dec_zone_page_state(page, NR_SHMEM);
289 __inc_zone_page_state(newpage, NR_SHMEM);
290 }
19fd6231 291 spin_unlock_irq(&mapping->tree_lock);
b20a3503
CL
292
293 return 0;
294}
b20a3503 295
290408d4
NH
296/*
297 * The expected number of remaining references is the same as that
298 * of migrate_page_move_mapping().
299 */
300int migrate_huge_page_move_mapping(struct address_space *mapping,
301 struct page *newpage, struct page *page)
302{
303 int expected_count;
304 void **pslot;
305
306 if (!mapping) {
307 if (page_count(page) != 1)
308 return -EAGAIN;
309 return 0;
310 }
311
312 spin_lock_irq(&mapping->tree_lock);
313
314 pslot = radix_tree_lookup_slot(&mapping->page_tree,
315 page_index(page));
316
317 expected_count = 2 + page_has_private(page);
318 if (page_count(page) != expected_count ||
319 (struct page *)radix_tree_deref_slot(pslot) != page) {
320 spin_unlock_irq(&mapping->tree_lock);
321 return -EAGAIN;
322 }
323
324 if (!page_freeze_refs(page, expected_count)) {
325 spin_unlock_irq(&mapping->tree_lock);
326 return -EAGAIN;
327 }
328
329 get_page(newpage);
330
331 radix_tree_replace_slot(pslot, newpage);
332
333 page_unfreeze_refs(page, expected_count);
334
335 __put_page(page);
336
337 spin_unlock_irq(&mapping->tree_lock);
338 return 0;
339}
340
b20a3503
CL
341/*
342 * Copy the page to its new location
343 */
290408d4 344void migrate_page_copy(struct page *newpage, struct page *page)
b20a3503 345{
290408d4
NH
346 if (PageHuge(page))
347 copy_huge_page(newpage, page);
348 else
349 copy_highpage(newpage, page);
b20a3503
CL
350
351 if (PageError(page))
352 SetPageError(newpage);
353 if (PageReferenced(page))
354 SetPageReferenced(newpage);
355 if (PageUptodate(page))
356 SetPageUptodate(newpage);
894bc310
LS
357 if (TestClearPageActive(page)) {
358 VM_BUG_ON(PageUnevictable(page));
b20a3503 359 SetPageActive(newpage);
418b27ef
LS
360 } else if (TestClearPageUnevictable(page))
361 SetPageUnevictable(newpage);
b20a3503
CL
362 if (PageChecked(page))
363 SetPageChecked(newpage);
364 if (PageMappedToDisk(page))
365 SetPageMappedToDisk(newpage);
366
367 if (PageDirty(page)) {
368 clear_page_dirty_for_io(page);
3a902c5f
NP
369 /*
370 * Want to mark the page and the radix tree as dirty, and
371 * redo the accounting that clear_page_dirty_for_io undid,
372 * but we can't use set_page_dirty because that function
373 * is actually a signal that all of the page has become dirty.
374 * Wheras only part of our page may be dirty.
375 */
376 __set_page_dirty_nobuffers(newpage);
b20a3503
CL
377 }
378
b291f000 379 mlock_migrate_page(newpage, page);
e9995ef9 380 ksm_migrate_page(newpage, page);
b291f000 381
b20a3503 382 ClearPageSwapCache(page);
b20a3503
CL
383 ClearPagePrivate(page);
384 set_page_private(page, 0);
385 page->mapping = NULL;
386
387 /*
388 * If any waiters have accumulated on the new page then
389 * wake them up.
390 */
391 if (PageWriteback(newpage))
392 end_page_writeback(newpage);
393}
b20a3503 394
1d8b85cc
CL
395/************************************************************
396 * Migration functions
397 ***********************************************************/
398
399/* Always fail migration. Used for mappings that are not movable */
2d1db3b1
CL
400int fail_migrate_page(struct address_space *mapping,
401 struct page *newpage, struct page *page)
1d8b85cc
CL
402{
403 return -EIO;
404}
405EXPORT_SYMBOL(fail_migrate_page);
406
b20a3503
CL
407/*
408 * Common logic to directly migrate a single page suitable for
266cf658 409 * pages that do not use PagePrivate/PagePrivate2.
b20a3503
CL
410 *
411 * Pages are locked upon entry and exit.
412 */
2d1db3b1
CL
413int migrate_page(struct address_space *mapping,
414 struct page *newpage, struct page *page)
b20a3503
CL
415{
416 int rc;
417
418 BUG_ON(PageWriteback(page)); /* Writeback must be complete */
419
2d1db3b1 420 rc = migrate_page_move_mapping(mapping, newpage, page);
b20a3503
CL
421
422 if (rc)
423 return rc;
424
425 migrate_page_copy(newpage, page);
b20a3503
CL
426 return 0;
427}
428EXPORT_SYMBOL(migrate_page);
429
9361401e 430#ifdef CONFIG_BLOCK
1d8b85cc
CL
431/*
432 * Migration function for pages with buffers. This function can only be used
433 * if the underlying filesystem guarantees that no other references to "page"
434 * exist.
435 */
2d1db3b1
CL
436int buffer_migrate_page(struct address_space *mapping,
437 struct page *newpage, struct page *page)
1d8b85cc 438{
1d8b85cc
CL
439 struct buffer_head *bh, *head;
440 int rc;
441
1d8b85cc 442 if (!page_has_buffers(page))
2d1db3b1 443 return migrate_page(mapping, newpage, page);
1d8b85cc
CL
444
445 head = page_buffers(page);
446
2d1db3b1 447 rc = migrate_page_move_mapping(mapping, newpage, page);
1d8b85cc
CL
448
449 if (rc)
450 return rc;
451
452 bh = head;
453 do {
454 get_bh(bh);
455 lock_buffer(bh);
456 bh = bh->b_this_page;
457
458 } while (bh != head);
459
460 ClearPagePrivate(page);
461 set_page_private(newpage, page_private(page));
462 set_page_private(page, 0);
463 put_page(page);
464 get_page(newpage);
465
466 bh = head;
467 do {
468 set_bh_page(bh, newpage, bh_offset(bh));
469 bh = bh->b_this_page;
470
471 } while (bh != head);
472
473 SetPagePrivate(newpage);
474
475 migrate_page_copy(newpage, page);
476
477 bh = head;
478 do {
479 unlock_buffer(bh);
480 put_bh(bh);
481 bh = bh->b_this_page;
482
483 } while (bh != head);
484
485 return 0;
486}
487EXPORT_SYMBOL(buffer_migrate_page);
9361401e 488#endif
1d8b85cc 489
04e62a29
CL
490/*
491 * Writeback a page to clean the dirty state
492 */
493static int writeout(struct address_space *mapping, struct page *page)
8351a6e4 494{
04e62a29
CL
495 struct writeback_control wbc = {
496 .sync_mode = WB_SYNC_NONE,
497 .nr_to_write = 1,
498 .range_start = 0,
499 .range_end = LLONG_MAX,
04e62a29
CL
500 .for_reclaim = 1
501 };
502 int rc;
503
504 if (!mapping->a_ops->writepage)
505 /* No write method for the address space */
506 return -EINVAL;
507
508 if (!clear_page_dirty_for_io(page))
509 /* Someone else already triggered a write */
510 return -EAGAIN;
511
8351a6e4 512 /*
04e62a29
CL
513 * A dirty page may imply that the underlying filesystem has
514 * the page on some queue. So the page must be clean for
515 * migration. Writeout may mean we loose the lock and the
516 * page state is no longer what we checked for earlier.
517 * At this point we know that the migration attempt cannot
518 * be successful.
8351a6e4 519 */
04e62a29 520 remove_migration_ptes(page, page);
8351a6e4 521
04e62a29 522 rc = mapping->a_ops->writepage(page, &wbc);
8351a6e4 523
04e62a29
CL
524 if (rc != AOP_WRITEPAGE_ACTIVATE)
525 /* unlocked. Relock */
526 lock_page(page);
527
bda8550d 528 return (rc < 0) ? -EIO : -EAGAIN;
04e62a29
CL
529}
530
531/*
532 * Default handling if a filesystem does not provide a migration function.
533 */
534static int fallback_migrate_page(struct address_space *mapping,
535 struct page *newpage, struct page *page)
536{
537 if (PageDirty(page))
538 return writeout(mapping, page);
8351a6e4
CL
539
540 /*
541 * Buffers may be managed in a filesystem specific way.
542 * We must have no buffers or drop them.
543 */
266cf658 544 if (page_has_private(page) &&
8351a6e4
CL
545 !try_to_release_page(page, GFP_KERNEL))
546 return -EAGAIN;
547
548 return migrate_page(mapping, newpage, page);
549}
550
e24f0b8f
CL
551/*
552 * Move a page to a newly allocated page
553 * The page is locked and all ptes have been successfully removed.
554 *
555 * The new page will have replaced the old page if this function
556 * is successful.
894bc310
LS
557 *
558 * Return value:
559 * < 0 - error code
560 * == 0 - success
e24f0b8f 561 */
3fe2011f
MG
562static int move_to_new_page(struct page *newpage, struct page *page,
563 int remap_swapcache)
e24f0b8f
CL
564{
565 struct address_space *mapping;
566 int rc;
567
568 /*
569 * Block others from accessing the page when we get around to
570 * establishing additional references. We are the only one
571 * holding a reference to the new page at this point.
572 */
529ae9aa 573 if (!trylock_page(newpage))
e24f0b8f
CL
574 BUG();
575
576 /* Prepare mapping for the new page.*/
577 newpage->index = page->index;
578 newpage->mapping = page->mapping;
b2e18538
RR
579 if (PageSwapBacked(page))
580 SetPageSwapBacked(newpage);
e24f0b8f
CL
581
582 mapping = page_mapping(page);
583 if (!mapping)
584 rc = migrate_page(mapping, newpage, page);
585 else if (mapping->a_ops->migratepage)
586 /*
587 * Most pages have a mapping and most filesystems
588 * should provide a migration function. Anonymous
589 * pages are part of swap space which also has its
590 * own migration function. This is the most common
591 * path for page migration.
592 */
593 rc = mapping->a_ops->migratepage(mapping,
594 newpage, page);
595 else
596 rc = fallback_migrate_page(mapping, newpage, page);
597
3fe2011f 598 if (rc) {
e24f0b8f 599 newpage->mapping = NULL;
3fe2011f
MG
600 } else {
601 if (remap_swapcache)
602 remove_migration_ptes(page, newpage);
603 }
e24f0b8f
CL
604
605 unlock_page(newpage);
606
607 return rc;
608}
609
610/*
611 * Obtain the lock on page, remove all ptes and migrate the page
612 * to the newly allocated page in newpage.
613 */
95a402c3 614static int unmap_and_move(new_page_t get_new_page, unsigned long private,
62b61f61 615 struct page *page, int force, int offlining)
e24f0b8f
CL
616{
617 int rc = 0;
742755a1
CL
618 int *result = NULL;
619 struct page *newpage = get_new_page(page, private, &result);
3fe2011f 620 int remap_swapcache = 1;
989f89c5 621 int rcu_locked = 0;
ae41be37 622 int charge = 0;
e00e4316 623 struct mem_cgroup *mem = NULL;
3f6c8272 624 struct anon_vma *anon_vma = NULL;
95a402c3
CL
625
626 if (!newpage)
627 return -ENOMEM;
e24f0b8f 628
894bc310 629 if (page_count(page) == 1) {
e24f0b8f 630 /* page was freed from under us. So we are done. */
95a402c3 631 goto move_newpage;
894bc310 632 }
e24f0b8f 633
e8589cc1 634 /* prepare cgroup just returns 0 or -ENOMEM */
e24f0b8f 635 rc = -EAGAIN;
01b1ae63 636
529ae9aa 637 if (!trylock_page(page)) {
e24f0b8f 638 if (!force)
95a402c3 639 goto move_newpage;
e24f0b8f
CL
640 lock_page(page);
641 }
642
62b61f61
HD
643 /*
644 * Only memory hotplug's offline_pages() caller has locked out KSM,
645 * and can safely migrate a KSM page. The other cases have skipped
646 * PageKsm along with PageReserved - but it is only now when we have
647 * the page lock that we can be certain it will not go KSM beneath us
648 * (KSM will not upgrade a page from PageAnon to PageKsm when it sees
649 * its pagecount raised, but only here do we take the page lock which
650 * serializes that).
651 */
652 if (PageKsm(page) && !offlining) {
653 rc = -EBUSY;
654 goto unlock;
655 }
656
01b1ae63 657 /* charge against new page */
ac39cf8c 658 charge = mem_cgroup_prepare_migration(page, newpage, &mem);
01b1ae63
KH
659 if (charge == -ENOMEM) {
660 rc = -ENOMEM;
661 goto unlock;
662 }
663 BUG_ON(charge);
664
e24f0b8f
CL
665 if (PageWriteback(page)) {
666 if (!force)
01b1ae63 667 goto uncharge;
e24f0b8f
CL
668 wait_on_page_writeback(page);
669 }
e24f0b8f 670 /*
dc386d4d
KH
671 * By try_to_unmap(), page->mapcount goes down to 0 here. In this case,
672 * we cannot notice that anon_vma is freed while we migrates a page.
673 * This rcu_read_lock() delays freeing anon_vma pointer until the end
674 * of migration. File cache pages are no problem because of page_lock()
989f89c5
KH
675 * File Caches may use write_page() or lock_page() in migration, then,
676 * just care Anon page here.
dc386d4d 677 */
989f89c5
KH
678 if (PageAnon(page)) {
679 rcu_read_lock();
680 rcu_locked = 1;
67b9509b 681
3fe2011f
MG
682 /* Determine how to safely use anon_vma */
683 if (!page_mapped(page)) {
684 if (!PageSwapCache(page))
685 goto rcu_unlock;
67b9509b 686
3fe2011f
MG
687 /*
688 * We cannot be sure that the anon_vma of an unmapped
689 * swapcache page is safe to use because we don't
690 * know in advance if the VMA that this page belonged
691 * to still exists. If the VMA and others sharing the
692 * data have been freed, then the anon_vma could
693 * already be invalid.
694 *
695 * To avoid this possibility, swapcache pages get
696 * migrated but are not remapped when migration
697 * completes
698 */
699 remap_swapcache = 0;
700 } else {
701 /*
702 * Take a reference count on the anon_vma if the
703 * page is mapped so that it is guaranteed to
704 * exist when the page is remapped later
705 */
706 anon_vma = page_anon_vma(page);
76545066 707 get_anon_vma(anon_vma);
3fe2011f 708 }
989f89c5 709 }
62e1c553 710
dc386d4d 711 /*
62e1c553
SL
712 * Corner case handling:
713 * 1. When a new swap-cache page is read into, it is added to the LRU
714 * and treated as swapcache but it has no rmap yet.
715 * Calling try_to_unmap() against a page->mapping==NULL page will
716 * trigger a BUG. So handle it here.
717 * 2. An orphaned page (see truncate_complete_page) might have
718 * fs-private metadata. The page can be picked up due to memory
719 * offlining. Everywhere else except page reclaim, the page is
720 * invisible to the vm, so the page can not be migrated. So try to
721 * free the metadata, so the page can be freed.
e24f0b8f 722 */
62e1c553 723 if (!page->mapping) {
266cf658 724 if (!PageAnon(page) && page_has_private(page)) {
62e1c553
SL
725 /*
726 * Go direct to try_to_free_buffers() here because
727 * a) that's what try_to_release_page() would do anyway
728 * b) we may be under rcu_read_lock() here, so we can't
729 * use GFP_KERNEL which is what try_to_release_page()
730 * needs to be effective.
731 */
732 try_to_free_buffers(page);
abfc3488 733 goto rcu_unlock;
62e1c553 734 }
abfc3488 735 goto skip_unmap;
62e1c553
SL
736 }
737
dc386d4d 738 /* Establish migration ptes or remove ptes */
14fa31b8 739 try_to_unmap(page, TTU_MIGRATION|TTU_IGNORE_MLOCK|TTU_IGNORE_ACCESS);
dc386d4d 740
abfc3488 741skip_unmap:
e6a1530d 742 if (!page_mapped(page))
3fe2011f 743 rc = move_to_new_page(newpage, page, remap_swapcache);
e24f0b8f 744
3fe2011f 745 if (rc && remap_swapcache)
e24f0b8f 746 remove_migration_ptes(page, page);
dc386d4d 747rcu_unlock:
3f6c8272
MG
748
749 /* Drop an anon_vma reference if we took one */
76545066
RR
750 if (anon_vma)
751 drop_anon_vma(anon_vma);
3f6c8272 752
989f89c5
KH
753 if (rcu_locked)
754 rcu_read_unlock();
01b1ae63
KH
755uncharge:
756 if (!charge)
757 mem_cgroup_end_migration(mem, page, newpage);
e24f0b8f
CL
758unlock:
759 unlock_page(page);
95a402c3 760
e24f0b8f 761 if (rc != -EAGAIN) {
aaa994b3
CL
762 /*
763 * A page that has been migrated has all references
764 * removed and will be freed. A page that has not been
765 * migrated will have kepts its references and be
766 * restored.
767 */
768 list_del(&page->lru);
a731286d 769 dec_zone_page_state(page, NR_ISOLATED_ANON +
6c0b1351 770 page_is_file_cache(page));
894bc310 771 putback_lru_page(page);
e24f0b8f 772 }
95a402c3
CL
773
774move_newpage:
894bc310 775
95a402c3
CL
776 /*
777 * Move the new page to the LRU. If migration was not successful
778 * then this will free the page.
779 */
894bc310
LS
780 putback_lru_page(newpage);
781
742755a1
CL
782 if (result) {
783 if (rc)
784 *result = rc;
785 else
786 *result = page_to_nid(newpage);
787 }
e24f0b8f
CL
788 return rc;
789}
790
290408d4
NH
791/*
792 * Counterpart of unmap_and_move_page() for hugepage migration.
793 *
794 * This function doesn't wait the completion of hugepage I/O
795 * because there is no race between I/O and migration for hugepage.
796 * Note that currently hugepage I/O occurs only in direct I/O
797 * where no lock is held and PG_writeback is irrelevant,
798 * and writeback status of all subpages are counted in the reference
799 * count of the head page (i.e. if all subpages of a 2MB hugepage are
800 * under direct I/O, the reference of the head page is 512 and a bit more.)
801 * This means that when we try to migrate hugepage whose subpages are
802 * doing direct I/O, some references remain after try_to_unmap() and
803 * hugepage migration fails without data corruption.
804 *
805 * There is also no race when direct I/O is issued on the page under migration,
806 * because then pte is replaced with migration swap entry and direct I/O code
807 * will wait in the page fault for migration to complete.
808 */
809static int unmap_and_move_huge_page(new_page_t get_new_page,
810 unsigned long private, struct page *hpage,
811 int force, int offlining)
812{
813 int rc = 0;
814 int *result = NULL;
815 struct page *new_hpage = get_new_page(hpage, private, &result);
816 int rcu_locked = 0;
817 struct anon_vma *anon_vma = NULL;
818
819 if (!new_hpage)
820 return -ENOMEM;
821
822 rc = -EAGAIN;
823
824 if (!trylock_page(hpage)) {
825 if (!force)
826 goto out;
827 lock_page(hpage);
828 }
829
830 if (PageAnon(hpage)) {
831 rcu_read_lock();
832 rcu_locked = 1;
833
834 if (page_mapped(hpage)) {
835 anon_vma = page_anon_vma(hpage);
836 atomic_inc(&anon_vma->external_refcount);
837 }
838 }
839
840 try_to_unmap(hpage, TTU_MIGRATION|TTU_IGNORE_MLOCK|TTU_IGNORE_ACCESS);
841
842 if (!page_mapped(hpage))
843 rc = move_to_new_page(new_hpage, hpage, 1);
844
845 if (rc)
846 remove_migration_ptes(hpage, hpage);
847
848 if (anon_vma && atomic_dec_and_lock(&anon_vma->external_refcount,
849 &anon_vma->lock)) {
850 int empty = list_empty(&anon_vma->head);
851 spin_unlock(&anon_vma->lock);
852 if (empty)
853 anon_vma_free(anon_vma);
854 }
855
856 if (rcu_locked)
857 rcu_read_unlock();
858out:
859 unlock_page(hpage);
860
861 if (rc != -EAGAIN) {
862 list_del(&hpage->lru);
863 put_page(hpage);
864 }
865
866 put_page(new_hpage);
867
868 if (result) {
869 if (rc)
870 *result = rc;
871 else
872 *result = page_to_nid(new_hpage);
873 }
874 return rc;
875}
876
b20a3503
CL
877/*
878 * migrate_pages
879 *
95a402c3
CL
880 * The function takes one list of pages to migrate and a function
881 * that determines from the page to be migrated and the private data
882 * the target of the move and allocates the page.
b20a3503
CL
883 *
884 * The function returns after 10 attempts or if no pages
885 * are movable anymore because to has become empty
aaa994b3 886 * or no retryable pages exist anymore. All pages will be
e9534b3f 887 * returned to the LRU or freed.
b20a3503 888 *
95a402c3 889 * Return: Number of pages not migrated or error code.
b20a3503 890 */
95a402c3 891int migrate_pages(struct list_head *from,
62b61f61 892 new_page_t get_new_page, unsigned long private, int offlining)
b20a3503 893{
e24f0b8f 894 int retry = 1;
b20a3503
CL
895 int nr_failed = 0;
896 int pass = 0;
897 struct page *page;
898 struct page *page2;
899 int swapwrite = current->flags & PF_SWAPWRITE;
900 int rc;
901
902 if (!swapwrite)
903 current->flags |= PF_SWAPWRITE;
904
e24f0b8f
CL
905 for(pass = 0; pass < 10 && retry; pass++) {
906 retry = 0;
b20a3503 907
e24f0b8f 908 list_for_each_entry_safe(page, page2, from, lru) {
e24f0b8f 909 cond_resched();
2d1db3b1 910
95a402c3 911 rc = unmap_and_move(get_new_page, private,
62b61f61 912 page, pass > 2, offlining);
2d1db3b1 913
e24f0b8f 914 switch(rc) {
95a402c3
CL
915 case -ENOMEM:
916 goto out;
e24f0b8f 917 case -EAGAIN:
2d1db3b1 918 retry++;
e24f0b8f
CL
919 break;
920 case 0:
e24f0b8f
CL
921 break;
922 default:
2d1db3b1 923 /* Permanent failure */
2d1db3b1 924 nr_failed++;
e24f0b8f 925 break;
2d1db3b1 926 }
b20a3503
CL
927 }
928 }
95a402c3
CL
929 rc = 0;
930out:
b20a3503
CL
931 if (!swapwrite)
932 current->flags &= ~PF_SWAPWRITE;
933
aaa994b3 934 putback_lru_pages(from);
b20a3503 935
95a402c3
CL
936 if (rc)
937 return rc;
b20a3503 938
95a402c3 939 return nr_failed + retry;
b20a3503 940}
95a402c3 941
290408d4
NH
942int migrate_huge_pages(struct list_head *from,
943 new_page_t get_new_page, unsigned long private, int offlining)
944{
945 int retry = 1;
946 int nr_failed = 0;
947 int pass = 0;
948 struct page *page;
949 struct page *page2;
950 int rc;
951
952 for (pass = 0; pass < 10 && retry; pass++) {
953 retry = 0;
954
955 list_for_each_entry_safe(page, page2, from, lru) {
956 cond_resched();
957
958 rc = unmap_and_move_huge_page(get_new_page,
959 private, page, pass > 2, offlining);
960
961 switch(rc) {
962 case -ENOMEM:
963 goto out;
964 case -EAGAIN:
965 retry++;
966 break;
967 case 0:
968 break;
969 default:
970 /* Permanent failure */
971 nr_failed++;
972 break;
973 }
974 }
975 }
976 rc = 0;
977out:
978
979 list_for_each_entry_safe(page, page2, from, lru)
980 put_page(page);
981
982 if (rc)
983 return rc;
984
985 return nr_failed + retry;
986}
987
742755a1
CL
988#ifdef CONFIG_NUMA
989/*
990 * Move a list of individual pages
991 */
992struct page_to_node {
993 unsigned long addr;
994 struct page *page;
995 int node;
996 int status;
997};
998
999static struct page *new_page_node(struct page *p, unsigned long private,
1000 int **result)
1001{
1002 struct page_to_node *pm = (struct page_to_node *)private;
1003
1004 while (pm->node != MAX_NUMNODES && pm->page != p)
1005 pm++;
1006
1007 if (pm->node == MAX_NUMNODES)
1008 return NULL;
1009
1010 *result = &pm->status;
1011
6484eb3e 1012 return alloc_pages_exact_node(pm->node,
769848c0 1013 GFP_HIGHUSER_MOVABLE | GFP_THISNODE, 0);
742755a1
CL
1014}
1015
1016/*
1017 * Move a set of pages as indicated in the pm array. The addr
1018 * field must be set to the virtual address of the page to be moved
1019 * and the node number must contain a valid target node.
5e9a0f02 1020 * The pm array ends with node = MAX_NUMNODES.
742755a1 1021 */
5e9a0f02
BG
1022static int do_move_page_to_node_array(struct mm_struct *mm,
1023 struct page_to_node *pm,
1024 int migrate_all)
742755a1
CL
1025{
1026 int err;
1027 struct page_to_node *pp;
1028 LIST_HEAD(pagelist);
1029
1030 down_read(&mm->mmap_sem);
1031
1032 /*
1033 * Build a list of pages to migrate
1034 */
742755a1
CL
1035 for (pp = pm; pp->node != MAX_NUMNODES; pp++) {
1036 struct vm_area_struct *vma;
1037 struct page *page;
1038
742755a1
CL
1039 err = -EFAULT;
1040 vma = find_vma(mm, pp->addr);
0dc952dc 1041 if (!vma || !vma_migratable(vma))
742755a1
CL
1042 goto set_status;
1043
1044 page = follow_page(vma, pp->addr, FOLL_GET);
89f5b7da
LT
1045
1046 err = PTR_ERR(page);
1047 if (IS_ERR(page))
1048 goto set_status;
1049
742755a1
CL
1050 err = -ENOENT;
1051 if (!page)
1052 goto set_status;
1053
62b61f61
HD
1054 /* Use PageReserved to check for zero page */
1055 if (PageReserved(page) || PageKsm(page))
742755a1
CL
1056 goto put_and_set;
1057
1058 pp->page = page;
1059 err = page_to_nid(page);
1060
1061 if (err == pp->node)
1062 /*
1063 * Node already in the right place
1064 */
1065 goto put_and_set;
1066
1067 err = -EACCES;
1068 if (page_mapcount(page) > 1 &&
1069 !migrate_all)
1070 goto put_and_set;
1071
62695a84 1072 err = isolate_lru_page(page);
6d9c285a 1073 if (!err) {
62695a84 1074 list_add_tail(&page->lru, &pagelist);
6d9c285a
KM
1075 inc_zone_page_state(page, NR_ISOLATED_ANON +
1076 page_is_file_cache(page));
1077 }
742755a1
CL
1078put_and_set:
1079 /*
1080 * Either remove the duplicate refcount from
1081 * isolate_lru_page() or drop the page ref if it was
1082 * not isolated.
1083 */
1084 put_page(page);
1085set_status:
1086 pp->status = err;
1087 }
1088
e78bbfa8 1089 err = 0;
742755a1
CL
1090 if (!list_empty(&pagelist))
1091 err = migrate_pages(&pagelist, new_page_node,
62b61f61 1092 (unsigned long)pm, 0);
742755a1
CL
1093
1094 up_read(&mm->mmap_sem);
1095 return err;
1096}
1097
5e9a0f02
BG
1098/*
1099 * Migrate an array of page address onto an array of nodes and fill
1100 * the corresponding array of status.
1101 */
1102static int do_pages_move(struct mm_struct *mm, struct task_struct *task,
1103 unsigned long nr_pages,
1104 const void __user * __user *pages,
1105 const int __user *nodes,
1106 int __user *status, int flags)
1107{
3140a227 1108 struct page_to_node *pm;
5e9a0f02 1109 nodemask_t task_nodes;
3140a227
BG
1110 unsigned long chunk_nr_pages;
1111 unsigned long chunk_start;
1112 int err;
5e9a0f02
BG
1113
1114 task_nodes = cpuset_mems_allowed(task);
1115
3140a227
BG
1116 err = -ENOMEM;
1117 pm = (struct page_to_node *)__get_free_page(GFP_KERNEL);
1118 if (!pm)
5e9a0f02 1119 goto out;
35282a2d
BG
1120
1121 migrate_prep();
1122
5e9a0f02 1123 /*
3140a227
BG
1124 * Store a chunk of page_to_node array in a page,
1125 * but keep the last one as a marker
5e9a0f02 1126 */
3140a227 1127 chunk_nr_pages = (PAGE_SIZE / sizeof(struct page_to_node)) - 1;
5e9a0f02 1128
3140a227
BG
1129 for (chunk_start = 0;
1130 chunk_start < nr_pages;
1131 chunk_start += chunk_nr_pages) {
1132 int j;
5e9a0f02 1133
3140a227
BG
1134 if (chunk_start + chunk_nr_pages > nr_pages)
1135 chunk_nr_pages = nr_pages - chunk_start;
1136
1137 /* fill the chunk pm with addrs and nodes from user-space */
1138 for (j = 0; j < chunk_nr_pages; j++) {
1139 const void __user *p;
5e9a0f02
BG
1140 int node;
1141
3140a227
BG
1142 err = -EFAULT;
1143 if (get_user(p, pages + j + chunk_start))
1144 goto out_pm;
1145 pm[j].addr = (unsigned long) p;
1146
1147 if (get_user(node, nodes + j + chunk_start))
5e9a0f02
BG
1148 goto out_pm;
1149
1150 err = -ENODEV;
6f5a55f1
LT
1151 if (node < 0 || node >= MAX_NUMNODES)
1152 goto out_pm;
1153
5e9a0f02
BG
1154 if (!node_state(node, N_HIGH_MEMORY))
1155 goto out_pm;
1156
1157 err = -EACCES;
1158 if (!node_isset(node, task_nodes))
1159 goto out_pm;
1160
3140a227
BG
1161 pm[j].node = node;
1162 }
1163
1164 /* End marker for this chunk */
1165 pm[chunk_nr_pages].node = MAX_NUMNODES;
1166
1167 /* Migrate this chunk */
1168 err = do_move_page_to_node_array(mm, pm,
1169 flags & MPOL_MF_MOVE_ALL);
1170 if (err < 0)
1171 goto out_pm;
5e9a0f02 1172
5e9a0f02 1173 /* Return status information */
3140a227
BG
1174 for (j = 0; j < chunk_nr_pages; j++)
1175 if (put_user(pm[j].status, status + j + chunk_start)) {
5e9a0f02 1176 err = -EFAULT;
3140a227
BG
1177 goto out_pm;
1178 }
1179 }
1180 err = 0;
5e9a0f02
BG
1181
1182out_pm:
3140a227 1183 free_page((unsigned long)pm);
5e9a0f02
BG
1184out:
1185 return err;
1186}
1187
742755a1 1188/*
2f007e74 1189 * Determine the nodes of an array of pages and store it in an array of status.
742755a1 1190 */
80bba129
BG
1191static void do_pages_stat_array(struct mm_struct *mm, unsigned long nr_pages,
1192 const void __user **pages, int *status)
742755a1 1193{
2f007e74 1194 unsigned long i;
2f007e74 1195
742755a1
CL
1196 down_read(&mm->mmap_sem);
1197
2f007e74 1198 for (i = 0; i < nr_pages; i++) {
80bba129 1199 unsigned long addr = (unsigned long)(*pages);
742755a1
CL
1200 struct vm_area_struct *vma;
1201 struct page *page;
c095adbc 1202 int err = -EFAULT;
2f007e74
BG
1203
1204 vma = find_vma(mm, addr);
742755a1
CL
1205 if (!vma)
1206 goto set_status;
1207
2f007e74 1208 page = follow_page(vma, addr, 0);
89f5b7da
LT
1209
1210 err = PTR_ERR(page);
1211 if (IS_ERR(page))
1212 goto set_status;
1213
742755a1
CL
1214 err = -ENOENT;
1215 /* Use PageReserved to check for zero page */
62b61f61 1216 if (!page || PageReserved(page) || PageKsm(page))
742755a1
CL
1217 goto set_status;
1218
1219 err = page_to_nid(page);
1220set_status:
80bba129
BG
1221 *status = err;
1222
1223 pages++;
1224 status++;
1225 }
1226
1227 up_read(&mm->mmap_sem);
1228}
1229
1230/*
1231 * Determine the nodes of a user array of pages and store it in
1232 * a user array of status.
1233 */
1234static int do_pages_stat(struct mm_struct *mm, unsigned long nr_pages,
1235 const void __user * __user *pages,
1236 int __user *status)
1237{
1238#define DO_PAGES_STAT_CHUNK_NR 16
1239 const void __user *chunk_pages[DO_PAGES_STAT_CHUNK_NR];
1240 int chunk_status[DO_PAGES_STAT_CHUNK_NR];
80bba129 1241
87b8d1ad
PA
1242 while (nr_pages) {
1243 unsigned long chunk_nr;
80bba129 1244
87b8d1ad
PA
1245 chunk_nr = nr_pages;
1246 if (chunk_nr > DO_PAGES_STAT_CHUNK_NR)
1247 chunk_nr = DO_PAGES_STAT_CHUNK_NR;
1248
1249 if (copy_from_user(chunk_pages, pages, chunk_nr * sizeof(*chunk_pages)))
1250 break;
80bba129
BG
1251
1252 do_pages_stat_array(mm, chunk_nr, chunk_pages, chunk_status);
1253
87b8d1ad
PA
1254 if (copy_to_user(status, chunk_status, chunk_nr * sizeof(*status)))
1255 break;
742755a1 1256
87b8d1ad
PA
1257 pages += chunk_nr;
1258 status += chunk_nr;
1259 nr_pages -= chunk_nr;
1260 }
1261 return nr_pages ? -EFAULT : 0;
742755a1
CL
1262}
1263
1264/*
1265 * Move a list of pages in the address space of the currently executing
1266 * process.
1267 */
938bb9f5
HC
1268SYSCALL_DEFINE6(move_pages, pid_t, pid, unsigned long, nr_pages,
1269 const void __user * __user *, pages,
1270 const int __user *, nodes,
1271 int __user *, status, int, flags)
742755a1 1272{
c69e8d9c 1273 const struct cred *cred = current_cred(), *tcred;
742755a1 1274 struct task_struct *task;
742755a1 1275 struct mm_struct *mm;
5e9a0f02 1276 int err;
742755a1
CL
1277
1278 /* Check flags */
1279 if (flags & ~(MPOL_MF_MOVE|MPOL_MF_MOVE_ALL))
1280 return -EINVAL;
1281
1282 if ((flags & MPOL_MF_MOVE_ALL) && !capable(CAP_SYS_NICE))
1283 return -EPERM;
1284
1285 /* Find the mm_struct */
1286 read_lock(&tasklist_lock);
228ebcbe 1287 task = pid ? find_task_by_vpid(pid) : current;
742755a1
CL
1288 if (!task) {
1289 read_unlock(&tasklist_lock);
1290 return -ESRCH;
1291 }
1292 mm = get_task_mm(task);
1293 read_unlock(&tasklist_lock);
1294
1295 if (!mm)
1296 return -EINVAL;
1297
1298 /*
1299 * Check if this process has the right to modify the specified
1300 * process. The right exists if the process has administrative
1301 * capabilities, superuser privileges or the same
1302 * userid as the target process.
1303 */
c69e8d9c
DH
1304 rcu_read_lock();
1305 tcred = __task_cred(task);
b6dff3ec
DH
1306 if (cred->euid != tcred->suid && cred->euid != tcred->uid &&
1307 cred->uid != tcred->suid && cred->uid != tcred->uid &&
742755a1 1308 !capable(CAP_SYS_NICE)) {
c69e8d9c 1309 rcu_read_unlock();
742755a1 1310 err = -EPERM;
5e9a0f02 1311 goto out;
742755a1 1312 }
c69e8d9c 1313 rcu_read_unlock();
742755a1 1314
86c3a764
DQ
1315 err = security_task_movememory(task);
1316 if (err)
5e9a0f02 1317 goto out;
86c3a764 1318
5e9a0f02
BG
1319 if (nodes) {
1320 err = do_pages_move(mm, task, nr_pages, pages, nodes, status,
1321 flags);
1322 } else {
2f007e74 1323 err = do_pages_stat(mm, nr_pages, pages, status);
742755a1
CL
1324 }
1325
742755a1 1326out:
742755a1
CL
1327 mmput(mm);
1328 return err;
1329}
742755a1 1330
7b2259b3
CL
1331/*
1332 * Call migration functions in the vma_ops that may prepare
1333 * memory in a vm for migration. migration functions may perform
1334 * the migration for vmas that do not have an underlying page struct.
1335 */
1336int migrate_vmas(struct mm_struct *mm, const nodemask_t *to,
1337 const nodemask_t *from, unsigned long flags)
1338{
1339 struct vm_area_struct *vma;
1340 int err = 0;
1341
1001c9fb 1342 for (vma = mm->mmap; vma && !err; vma = vma->vm_next) {
7b2259b3
CL
1343 if (vma->vm_ops && vma->vm_ops->migrate) {
1344 err = vma->vm_ops->migrate(vma, to, from, flags);
1345 if (err)
1346 break;
1347 }
1348 }
1349 return err;
1350}
83d1674a 1351#endif