ksm.c 63 KB

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  1. /*
  2. * Memory merging support.
  3. *
  4. * This code enables dynamic sharing of identical pages found in different
  5. * memory areas, even if they are not shared by fork()
  6. *
  7. * Copyright (C) 2008-2009 Red Hat, Inc.
  8. * Authors:
  9. * Izik Eidus
  10. * Andrea Arcangeli
  11. * Chris Wright
  12. * Hugh Dickins
  13. *
  14. * This work is licensed under the terms of the GNU GPL, version 2.
  15. */
  16. #include <linux/errno.h>
  17. #include <linux/mm.h>
  18. #include <linux/fs.h>
  19. #include <linux/mman.h>
  20. #include <linux/sched.h>
  21. #include <linux/rwsem.h>
  22. #include <linux/pagemap.h>
  23. #include <linux/rmap.h>
  24. #include <linux/spinlock.h>
  25. #include <linux/jhash.h>
  26. #include <linux/delay.h>
  27. #include <linux/kthread.h>
  28. #include <linux/wait.h>
  29. #include <linux/slab.h>
  30. #include <linux/rbtree.h>
  31. #include <linux/memory.h>
  32. #include <linux/mmu_notifier.h>
  33. #include <linux/swap.h>
  34. #include <linux/ksm.h>
  35. #include <linux/hashtable.h>
  36. #include <linux/freezer.h>
  37. #include <linux/oom.h>
  38. #include <linux/numa.h>
  39. #include <asm/tlbflush.h>
  40. #include "internal.h"
  41. #ifdef CONFIG_NUMA
  42. #define NUMA(x) (x)
  43. #define DO_NUMA(x) do { (x); } while (0)
  44. #else
  45. #define NUMA(x) (0)
  46. #define DO_NUMA(x) do { } while (0)
  47. #endif
  48. /*
  49. * A few notes about the KSM scanning process,
  50. * to make it easier to understand the data structures below:
  51. *
  52. * In order to reduce excessive scanning, KSM sorts the memory pages by their
  53. * contents into a data structure that holds pointers to the pages' locations.
  54. *
  55. * Since the contents of the pages may change at any moment, KSM cannot just
  56. * insert the pages into a normal sorted tree and expect it to find anything.
  57. * Therefore KSM uses two data structures - the stable and the unstable tree.
  58. *
  59. * The stable tree holds pointers to all the merged pages (ksm pages), sorted
  60. * by their contents. Because each such page is write-protected, searching on
  61. * this tree is fully assured to be working (except when pages are unmapped),
  62. * and therefore this tree is called the stable tree.
  63. *
  64. * In addition to the stable tree, KSM uses a second data structure called the
  65. * unstable tree: this tree holds pointers to pages which have been found to
  66. * be "unchanged for a period of time". The unstable tree sorts these pages
  67. * by their contents, but since they are not write-protected, KSM cannot rely
  68. * upon the unstable tree to work correctly - the unstable tree is liable to
  69. * be corrupted as its contents are modified, and so it is called unstable.
  70. *
  71. * KSM solves this problem by several techniques:
  72. *
  73. * 1) The unstable tree is flushed every time KSM completes scanning all
  74. * memory areas, and then the tree is rebuilt again from the beginning.
  75. * 2) KSM will only insert into the unstable tree, pages whose hash value
  76. * has not changed since the previous scan of all memory areas.
  77. * 3) The unstable tree is a RedBlack Tree - so its balancing is based on the
  78. * colors of the nodes and not on their contents, assuring that even when
  79. * the tree gets "corrupted" it won't get out of balance, so scanning time
  80. * remains the same (also, searching and inserting nodes in an rbtree uses
  81. * the same algorithm, so we have no overhead when we flush and rebuild).
  82. * 4) KSM never flushes the stable tree, which means that even if it were to
  83. * take 10 attempts to find a page in the unstable tree, once it is found,
  84. * it is secured in the stable tree. (When we scan a new page, we first
  85. * compare it against the stable tree, and then against the unstable tree.)
  86. *
  87. * If the merge_across_nodes tunable is unset, then KSM maintains multiple
  88. * stable trees and multiple unstable trees: one of each for each NUMA node.
  89. */
  90. /**
  91. * struct mm_slot - ksm information per mm that is being scanned
  92. * @link: link to the mm_slots hash list
  93. * @mm_list: link into the mm_slots list, rooted in ksm_mm_head
  94. * @rmap_list: head for this mm_slot's singly-linked list of rmap_items
  95. * @mm: the mm that this information is valid for
  96. */
  97. struct mm_slot {
  98. struct hlist_node link;
  99. struct list_head mm_list;
  100. struct rmap_item *rmap_list;
  101. struct mm_struct *mm;
  102. };
  103. /**
  104. * struct ksm_scan - cursor for scanning
  105. * @mm_slot: the current mm_slot we are scanning
  106. * @address: the next address inside that to be scanned
  107. * @rmap_list: link to the next rmap to be scanned in the rmap_list
  108. * @seqnr: count of completed full scans (needed when removing unstable node)
  109. *
  110. * There is only the one ksm_scan instance of this cursor structure.
  111. */
  112. struct ksm_scan {
  113. struct mm_slot *mm_slot;
  114. unsigned long address;
  115. struct rmap_item **rmap_list;
  116. unsigned long seqnr;
  117. };
  118. /**
  119. * struct stable_node - node of the stable rbtree
  120. * @node: rb node of this ksm page in the stable tree
  121. * @head: (overlaying parent) &migrate_nodes indicates temporarily on that list
  122. * @list: linked into migrate_nodes, pending placement in the proper node tree
  123. * @hlist: hlist head of rmap_items using this ksm page
  124. * @kpfn: page frame number of this ksm page (perhaps temporarily on wrong nid)
  125. * @nid: NUMA node id of stable tree in which linked (may not match kpfn)
  126. */
  127. struct stable_node {
  128. union {
  129. struct rb_node node; /* when node of stable tree */
  130. struct { /* when listed for migration */
  131. struct list_head *head;
  132. struct list_head list;
  133. };
  134. };
  135. struct hlist_head hlist;
  136. unsigned long kpfn;
  137. #ifdef CONFIG_NUMA
  138. int nid;
  139. #endif
  140. };
  141. /**
  142. * struct rmap_item - reverse mapping item for virtual addresses
  143. * @rmap_list: next rmap_item in mm_slot's singly-linked rmap_list
  144. * @anon_vma: pointer to anon_vma for this mm,address, when in stable tree
  145. * @nid: NUMA node id of unstable tree in which linked (may not match page)
  146. * @mm: the memory structure this rmap_item is pointing into
  147. * @address: the virtual address this rmap_item tracks (+ flags in low bits)
  148. * @oldchecksum: previous checksum of the page at that virtual address
  149. * @node: rb node of this rmap_item in the unstable tree
  150. * @head: pointer to stable_node heading this list in the stable tree
  151. * @hlist: link into hlist of rmap_items hanging off that stable_node
  152. */
  153. struct rmap_item {
  154. struct rmap_item *rmap_list;
  155. union {
  156. struct anon_vma *anon_vma; /* when stable */
  157. #ifdef CONFIG_NUMA
  158. int nid; /* when node of unstable tree */
  159. #endif
  160. };
  161. struct mm_struct *mm;
  162. unsigned long address; /* + low bits used for flags below */
  163. unsigned int oldchecksum; /* when unstable */
  164. union {
  165. struct rb_node node; /* when node of unstable tree */
  166. struct { /* when listed from stable tree */
  167. struct stable_node *head;
  168. struct hlist_node hlist;
  169. };
  170. };
  171. };
  172. #define SEQNR_MASK 0x0ff /* low bits of unstable tree seqnr */
  173. #define UNSTABLE_FLAG 0x100 /* is a node of the unstable tree */
  174. #define STABLE_FLAG 0x200 /* is listed from the stable tree */
  175. /* The stable and unstable tree heads */
  176. static struct rb_root one_stable_tree[1] = { RB_ROOT };
  177. static struct rb_root one_unstable_tree[1] = { RB_ROOT };
  178. static struct rb_root *root_stable_tree = one_stable_tree;
  179. static struct rb_root *root_unstable_tree = one_unstable_tree;
  180. /* Recently migrated nodes of stable tree, pending proper placement */
  181. static LIST_HEAD(migrate_nodes);
  182. #define MM_SLOTS_HASH_BITS 10
  183. static DEFINE_HASHTABLE(mm_slots_hash, MM_SLOTS_HASH_BITS);
  184. static struct mm_slot ksm_mm_head = {
  185. .mm_list = LIST_HEAD_INIT(ksm_mm_head.mm_list),
  186. };
  187. static struct ksm_scan ksm_scan = {
  188. .mm_slot = &ksm_mm_head,
  189. };
  190. static struct kmem_cache *rmap_item_cache;
  191. static struct kmem_cache *stable_node_cache;
  192. static struct kmem_cache *mm_slot_cache;
  193. /* The number of nodes in the stable tree */
  194. static unsigned long ksm_pages_shared;
  195. /* The number of page slots additionally sharing those nodes */
  196. static unsigned long ksm_pages_sharing;
  197. /* The number of nodes in the unstable tree */
  198. static unsigned long ksm_pages_unshared;
  199. /* The number of rmap_items in use: to calculate pages_volatile */
  200. static unsigned long ksm_rmap_items;
  201. /* Number of pages ksmd should scan in one batch */
  202. static unsigned int ksm_thread_pages_to_scan = 100;
  203. /* Milliseconds ksmd should sleep between batches */
  204. static unsigned int ksm_thread_sleep_millisecs = 20;
  205. #ifdef CONFIG_NUMA
  206. /* Zeroed when merging across nodes is not allowed */
  207. static unsigned int ksm_merge_across_nodes = 1;
  208. static int ksm_nr_node_ids = 1;
  209. #else
  210. #define ksm_merge_across_nodes 1U
  211. #define ksm_nr_node_ids 1
  212. #endif
  213. #define KSM_RUN_STOP 0
  214. #define KSM_RUN_MERGE 1
  215. #define KSM_RUN_UNMERGE 2
  216. #define KSM_RUN_OFFLINE 4
  217. static unsigned long ksm_run = KSM_RUN_STOP;
  218. static void wait_while_offlining(void);
  219. static DECLARE_WAIT_QUEUE_HEAD(ksm_thread_wait);
  220. static DEFINE_MUTEX(ksm_thread_mutex);
  221. static DEFINE_SPINLOCK(ksm_mmlist_lock);
  222. #define KSM_KMEM_CACHE(__struct, __flags) kmem_cache_create("ksm_"#__struct,\
  223. sizeof(struct __struct), __alignof__(struct __struct),\
  224. (__flags), NULL)
  225. static int __init ksm_slab_init(void)
  226. {
  227. rmap_item_cache = KSM_KMEM_CACHE(rmap_item, 0);
  228. if (!rmap_item_cache)
  229. goto out;
  230. stable_node_cache = KSM_KMEM_CACHE(stable_node, 0);
  231. if (!stable_node_cache)
  232. goto out_free1;
  233. mm_slot_cache = KSM_KMEM_CACHE(mm_slot, 0);
  234. if (!mm_slot_cache)
  235. goto out_free2;
  236. return 0;
  237. out_free2:
  238. kmem_cache_destroy(stable_node_cache);
  239. out_free1:
  240. kmem_cache_destroy(rmap_item_cache);
  241. out:
  242. return -ENOMEM;
  243. }
  244. static void __init ksm_slab_free(void)
  245. {
  246. kmem_cache_destroy(mm_slot_cache);
  247. kmem_cache_destroy(stable_node_cache);
  248. kmem_cache_destroy(rmap_item_cache);
  249. mm_slot_cache = NULL;
  250. }
  251. static inline struct rmap_item *alloc_rmap_item(void)
  252. {
  253. struct rmap_item *rmap_item;
  254. rmap_item = kmem_cache_zalloc(rmap_item_cache, GFP_KERNEL);
  255. if (rmap_item)
  256. ksm_rmap_items++;
  257. return rmap_item;
  258. }
  259. static inline void free_rmap_item(struct rmap_item *rmap_item)
  260. {
  261. ksm_rmap_items--;
  262. rmap_item->mm = NULL; /* debug safety */
  263. kmem_cache_free(rmap_item_cache, rmap_item);
  264. }
  265. static inline struct stable_node *alloc_stable_node(void)
  266. {
  267. return kmem_cache_alloc(stable_node_cache, GFP_KERNEL);
  268. }
  269. static inline void free_stable_node(struct stable_node *stable_node)
  270. {
  271. kmem_cache_free(stable_node_cache, stable_node);
  272. }
  273. static inline struct mm_slot *alloc_mm_slot(void)
  274. {
  275. if (!mm_slot_cache) /* initialization failed */
  276. return NULL;
  277. return kmem_cache_zalloc(mm_slot_cache, GFP_KERNEL);
  278. }
  279. static inline void free_mm_slot(struct mm_slot *mm_slot)
  280. {
  281. kmem_cache_free(mm_slot_cache, mm_slot);
  282. }
  283. static struct mm_slot *get_mm_slot(struct mm_struct *mm)
  284. {
  285. struct mm_slot *slot;
  286. hash_for_each_possible(mm_slots_hash, slot, link, (unsigned long)mm)
  287. if (slot->mm == mm)
  288. return slot;
  289. return NULL;
  290. }
  291. static void insert_to_mm_slots_hash(struct mm_struct *mm,
  292. struct mm_slot *mm_slot)
  293. {
  294. mm_slot->mm = mm;
  295. hash_add(mm_slots_hash, &mm_slot->link, (unsigned long)mm);
  296. }
  297. /*
  298. * ksmd, and unmerge_and_remove_all_rmap_items(), must not touch an mm's
  299. * page tables after it has passed through ksm_exit() - which, if necessary,
  300. * takes mmap_sem briefly to serialize against them. ksm_exit() does not set
  301. * a special flag: they can just back out as soon as mm_users goes to zero.
  302. * ksm_test_exit() is used throughout to make this test for exit: in some
  303. * places for correctness, in some places just to avoid unnecessary work.
  304. */
  305. static inline bool ksm_test_exit(struct mm_struct *mm)
  306. {
  307. return atomic_read(&mm->mm_users) == 0;
  308. }
  309. /*
  310. * We use break_ksm to break COW on a ksm page: it's a stripped down
  311. *
  312. * if (get_user_pages(current, mm, addr, 1, 1, 1, &page, NULL) == 1)
  313. * put_page(page);
  314. *
  315. * but taking great care only to touch a ksm page, in a VM_MERGEABLE vma,
  316. * in case the application has unmapped and remapped mm,addr meanwhile.
  317. * Could a ksm page appear anywhere else? Actually yes, in a VM_PFNMAP
  318. * mmap of /dev/mem or /dev/kmem, where we would not want to touch it.
  319. */
  320. static int break_ksm(struct vm_area_struct *vma, unsigned long addr)
  321. {
  322. struct page *page;
  323. int ret = 0;
  324. do {
  325. cond_resched();
  326. page = follow_page(vma, addr, FOLL_GET | FOLL_MIGRATION);
  327. if (IS_ERR_OR_NULL(page))
  328. break;
  329. if (PageKsm(page))
  330. ret = handle_mm_fault(vma->vm_mm, vma, addr,
  331. FAULT_FLAG_WRITE);
  332. else
  333. ret = VM_FAULT_WRITE;
  334. put_page(page);
  335. } while (!(ret & (VM_FAULT_WRITE | VM_FAULT_SIGBUS | VM_FAULT_SIGSEGV | VM_FAULT_OOM)));
  336. /*
  337. * We must loop because handle_mm_fault() may back out if there's
  338. * any difficulty e.g. if pte accessed bit gets updated concurrently.
  339. *
  340. * VM_FAULT_WRITE is what we have been hoping for: it indicates that
  341. * COW has been broken, even if the vma does not permit VM_WRITE;
  342. * but note that a concurrent fault might break PageKsm for us.
  343. *
  344. * VM_FAULT_SIGBUS could occur if we race with truncation of the
  345. * backing file, which also invalidates anonymous pages: that's
  346. * okay, that truncation will have unmapped the PageKsm for us.
  347. *
  348. * VM_FAULT_OOM: at the time of writing (late July 2009), setting
  349. * aside mem_cgroup limits, VM_FAULT_OOM would only be set if the
  350. * current task has TIF_MEMDIE set, and will be OOM killed on return
  351. * to user; and ksmd, having no mm, would never be chosen for that.
  352. *
  353. * But if the mm is in a limited mem_cgroup, then the fault may fail
  354. * with VM_FAULT_OOM even if the current task is not TIF_MEMDIE; and
  355. * even ksmd can fail in this way - though it's usually breaking ksm
  356. * just to undo a merge it made a moment before, so unlikely to oom.
  357. *
  358. * That's a pity: we might therefore have more kernel pages allocated
  359. * than we're counting as nodes in the stable tree; but ksm_do_scan
  360. * will retry to break_cow on each pass, so should recover the page
  361. * in due course. The important thing is to not let VM_MERGEABLE
  362. * be cleared while any such pages might remain in the area.
  363. */
  364. return (ret & VM_FAULT_OOM) ? -ENOMEM : 0;
  365. }
  366. static struct vm_area_struct *find_mergeable_vma(struct mm_struct *mm,
  367. unsigned long addr)
  368. {
  369. struct vm_area_struct *vma;
  370. if (ksm_test_exit(mm))
  371. return NULL;
  372. vma = find_vma(mm, addr);
  373. if (!vma || vma->vm_start > addr)
  374. return NULL;
  375. if (!(vma->vm_flags & VM_MERGEABLE) || !vma->anon_vma)
  376. return NULL;
  377. return vma;
  378. }
  379. static void break_cow(struct rmap_item *rmap_item)
  380. {
  381. struct mm_struct *mm = rmap_item->mm;
  382. unsigned long addr = rmap_item->address;
  383. struct vm_area_struct *vma;
  384. /*
  385. * It is not an accident that whenever we want to break COW
  386. * to undo, we also need to drop a reference to the anon_vma.
  387. */
  388. put_anon_vma(rmap_item->anon_vma);
  389. down_read(&mm->mmap_sem);
  390. vma = find_mergeable_vma(mm, addr);
  391. if (vma)
  392. break_ksm(vma, addr);
  393. up_read(&mm->mmap_sem);
  394. }
  395. static struct page *get_mergeable_page(struct rmap_item *rmap_item)
  396. {
  397. struct mm_struct *mm = rmap_item->mm;
  398. unsigned long addr = rmap_item->address;
  399. struct vm_area_struct *vma;
  400. struct page *page;
  401. down_read(&mm->mmap_sem);
  402. vma = find_mergeable_vma(mm, addr);
  403. if (!vma)
  404. goto out;
  405. page = follow_page(vma, addr, FOLL_GET);
  406. if (IS_ERR_OR_NULL(page))
  407. goto out;
  408. if (PageAnon(page)) {
  409. flush_anon_page(vma, page, addr);
  410. flush_dcache_page(page);
  411. } else {
  412. put_page(page);
  413. out:
  414. page = NULL;
  415. }
  416. up_read(&mm->mmap_sem);
  417. return page;
  418. }
  419. /*
  420. * This helper is used for getting right index into array of tree roots.
  421. * When merge_across_nodes knob is set to 1, there are only two rb-trees for
  422. * stable and unstable pages from all nodes with roots in index 0. Otherwise,
  423. * every node has its own stable and unstable tree.
  424. */
  425. static inline int get_kpfn_nid(unsigned long kpfn)
  426. {
  427. return ksm_merge_across_nodes ? 0 : NUMA(pfn_to_nid(kpfn));
  428. }
  429. static void remove_node_from_stable_tree(struct stable_node *stable_node)
  430. {
  431. struct rmap_item *rmap_item;
  432. hlist_for_each_entry(rmap_item, &stable_node->hlist, hlist) {
  433. if (rmap_item->hlist.next)
  434. ksm_pages_sharing--;
  435. else
  436. ksm_pages_shared--;
  437. put_anon_vma(rmap_item->anon_vma);
  438. rmap_item->address &= PAGE_MASK;
  439. cond_resched();
  440. }
  441. if (stable_node->head == &migrate_nodes)
  442. list_del(&stable_node->list);
  443. else
  444. rb_erase(&stable_node->node,
  445. root_stable_tree + NUMA(stable_node->nid));
  446. free_stable_node(stable_node);
  447. }
  448. /*
  449. * get_ksm_page: checks if the page indicated by the stable node
  450. * is still its ksm page, despite having held no reference to it.
  451. * In which case we can trust the content of the page, and it
  452. * returns the gotten page; but if the page has now been zapped,
  453. * remove the stale node from the stable tree and return NULL.
  454. * But beware, the stable node's page might be being migrated.
  455. *
  456. * You would expect the stable_node to hold a reference to the ksm page.
  457. * But if it increments the page's count, swapping out has to wait for
  458. * ksmd to come around again before it can free the page, which may take
  459. * seconds or even minutes: much too unresponsive. So instead we use a
  460. * "keyhole reference": access to the ksm page from the stable node peeps
  461. * out through its keyhole to see if that page still holds the right key,
  462. * pointing back to this stable node. This relies on freeing a PageAnon
  463. * page to reset its page->mapping to NULL, and relies on no other use of
  464. * a page to put something that might look like our key in page->mapping.
  465. * is on its way to being freed; but it is an anomaly to bear in mind.
  466. */
  467. static struct page *get_ksm_page(struct stable_node *stable_node, bool lock_it)
  468. {
  469. struct page *page;
  470. void *expected_mapping;
  471. unsigned long kpfn;
  472. expected_mapping = (void *)stable_node +
  473. (PAGE_MAPPING_ANON | PAGE_MAPPING_KSM);
  474. again:
  475. kpfn = READ_ONCE(stable_node->kpfn);
  476. page = pfn_to_page(kpfn);
  477. /*
  478. * page is computed from kpfn, so on most architectures reading
  479. * page->mapping is naturally ordered after reading node->kpfn,
  480. * but on Alpha we need to be more careful.
  481. */
  482. smp_read_barrier_depends();
  483. if (READ_ONCE(page->mapping) != expected_mapping)
  484. goto stale;
  485. /*
  486. * We cannot do anything with the page while its refcount is 0.
  487. * Usually 0 means free, or tail of a higher-order page: in which
  488. * case this node is no longer referenced, and should be freed;
  489. * however, it might mean that the page is under page_freeze_refs().
  490. * The __remove_mapping() case is easy, again the node is now stale;
  491. * but if page is swapcache in migrate_page_move_mapping(), it might
  492. * still be our page, in which case it's essential to keep the node.
  493. */
  494. while (!get_page_unless_zero(page)) {
  495. /*
  496. * Another check for page->mapping != expected_mapping would
  497. * work here too. We have chosen the !PageSwapCache test to
  498. * optimize the common case, when the page is or is about to
  499. * be freed: PageSwapCache is cleared (under spin_lock_irq)
  500. * in the freeze_refs section of __remove_mapping(); but Anon
  501. * page->mapping reset to NULL later, in free_pages_prepare().
  502. */
  503. if (!PageSwapCache(page))
  504. goto stale;
  505. cpu_relax();
  506. }
  507. if (READ_ONCE(page->mapping) != expected_mapping) {
  508. put_page(page);
  509. goto stale;
  510. }
  511. if (lock_it) {
  512. lock_page(page);
  513. if (READ_ONCE(page->mapping) != expected_mapping) {
  514. unlock_page(page);
  515. put_page(page);
  516. goto stale;
  517. }
  518. }
  519. return page;
  520. stale:
  521. /*
  522. * We come here from above when page->mapping or !PageSwapCache
  523. * suggests that the node is stale; but it might be under migration.
  524. * We need smp_rmb(), matching the smp_wmb() in ksm_migrate_page(),
  525. * before checking whether node->kpfn has been changed.
  526. */
  527. smp_rmb();
  528. if (READ_ONCE(stable_node->kpfn) != kpfn)
  529. goto again;
  530. remove_node_from_stable_tree(stable_node);
  531. return NULL;
  532. }
  533. /*
  534. * Removing rmap_item from stable or unstable tree.
  535. * This function will clean the information from the stable/unstable tree.
  536. */
  537. static void remove_rmap_item_from_tree(struct rmap_item *rmap_item)
  538. {
  539. if (rmap_item->address & STABLE_FLAG) {
  540. struct stable_node *stable_node;
  541. struct page *page;
  542. stable_node = rmap_item->head;
  543. page = get_ksm_page(stable_node, true);
  544. if (!page)
  545. goto out;
  546. hlist_del(&rmap_item->hlist);
  547. unlock_page(page);
  548. put_page(page);
  549. if (!hlist_empty(&stable_node->hlist))
  550. ksm_pages_sharing--;
  551. else
  552. ksm_pages_shared--;
  553. put_anon_vma(rmap_item->anon_vma);
  554. rmap_item->address &= PAGE_MASK;
  555. } else if (rmap_item->address & UNSTABLE_FLAG) {
  556. unsigned char age;
  557. /*
  558. * Usually ksmd can and must skip the rb_erase, because
  559. * root_unstable_tree was already reset to RB_ROOT.
  560. * But be careful when an mm is exiting: do the rb_erase
  561. * if this rmap_item was inserted by this scan, rather
  562. * than left over from before.
  563. */
  564. age = (unsigned char)(ksm_scan.seqnr - rmap_item->address);
  565. BUG_ON(age > 1);
  566. if (!age)
  567. rb_erase(&rmap_item->node,
  568. root_unstable_tree + NUMA(rmap_item->nid));
  569. ksm_pages_unshared--;
  570. rmap_item->address &= PAGE_MASK;
  571. }
  572. out:
  573. cond_resched(); /* we're called from many long loops */
  574. }
  575. static void remove_trailing_rmap_items(struct mm_slot *mm_slot,
  576. struct rmap_item **rmap_list)
  577. {
  578. while (*rmap_list) {
  579. struct rmap_item *rmap_item = *rmap_list;
  580. *rmap_list = rmap_item->rmap_list;
  581. remove_rmap_item_from_tree(rmap_item);
  582. free_rmap_item(rmap_item);
  583. }
  584. }
  585. /*
  586. * Though it's very tempting to unmerge rmap_items from stable tree rather
  587. * than check every pte of a given vma, the locking doesn't quite work for
  588. * that - an rmap_item is assigned to the stable tree after inserting ksm
  589. * page and upping mmap_sem. Nor does it fit with the way we skip dup'ing
  590. * rmap_items from parent to child at fork time (so as not to waste time
  591. * if exit comes before the next scan reaches it).
  592. *
  593. * Similarly, although we'd like to remove rmap_items (so updating counts
  594. * and freeing memory) when unmerging an area, it's easier to leave that
  595. * to the next pass of ksmd - consider, for example, how ksmd might be
  596. * in cmp_and_merge_page on one of the rmap_items we would be removing.
  597. */
  598. static int unmerge_ksm_pages(struct vm_area_struct *vma,
  599. unsigned long start, unsigned long end)
  600. {
  601. unsigned long addr;
  602. int err = 0;
  603. for (addr = start; addr < end && !err; addr += PAGE_SIZE) {
  604. if (ksm_test_exit(vma->vm_mm))
  605. break;
  606. if (signal_pending(current))
  607. err = -ERESTARTSYS;
  608. else
  609. err = break_ksm(vma, addr);
  610. }
  611. return err;
  612. }
  613. #ifdef CONFIG_SYSFS
  614. /*
  615. * Only called through the sysfs control interface:
  616. */
  617. static int remove_stable_node(struct stable_node *stable_node)
  618. {
  619. struct page *page;
  620. int err;
  621. page = get_ksm_page(stable_node, true);
  622. if (!page) {
  623. /*
  624. * get_ksm_page did remove_node_from_stable_tree itself.
  625. */
  626. return 0;
  627. }
  628. if (WARN_ON_ONCE(page_mapped(page))) {
  629. /*
  630. * This should not happen: but if it does, just refuse to let
  631. * merge_across_nodes be switched - there is no need to panic.
  632. */
  633. err = -EBUSY;
  634. } else {
  635. /*
  636. * The stable node did not yet appear stale to get_ksm_page(),
  637. * since that allows for an unmapped ksm page to be recognized
  638. * right up until it is freed; but the node is safe to remove.
  639. * This page might be in a pagevec waiting to be freed,
  640. * or it might be PageSwapCache (perhaps under writeback),
  641. * or it might have been removed from swapcache a moment ago.
  642. */
  643. set_page_stable_node(page, NULL);
  644. remove_node_from_stable_tree(stable_node);
  645. err = 0;
  646. }
  647. unlock_page(page);
  648. put_page(page);
  649. return err;
  650. }
  651. static int remove_all_stable_nodes(void)
  652. {
  653. struct stable_node *stable_node, *next;
  654. int nid;
  655. int err = 0;
  656. for (nid = 0; nid < ksm_nr_node_ids; nid++) {
  657. while (root_stable_tree[nid].rb_node) {
  658. stable_node = rb_entry(root_stable_tree[nid].rb_node,
  659. struct stable_node, node);
  660. if (remove_stable_node(stable_node)) {
  661. err = -EBUSY;
  662. break; /* proceed to next nid */
  663. }
  664. cond_resched();
  665. }
  666. }
  667. list_for_each_entry_safe(stable_node, next, &migrate_nodes, list) {
  668. if (remove_stable_node(stable_node))
  669. err = -EBUSY;
  670. cond_resched();
  671. }
  672. return err;
  673. }
  674. static int unmerge_and_remove_all_rmap_items(void)
  675. {
  676. struct mm_slot *mm_slot;
  677. struct mm_struct *mm;
  678. struct vm_area_struct *vma;
  679. int err = 0;
  680. spin_lock(&ksm_mmlist_lock);
  681. ksm_scan.mm_slot = list_entry(ksm_mm_head.mm_list.next,
  682. struct mm_slot, mm_list);
  683. spin_unlock(&ksm_mmlist_lock);
  684. for (mm_slot = ksm_scan.mm_slot;
  685. mm_slot != &ksm_mm_head; mm_slot = ksm_scan.mm_slot) {
  686. mm = mm_slot->mm;
  687. down_read(&mm->mmap_sem);
  688. for (vma = mm->mmap; vma; vma = vma->vm_next) {
  689. if (ksm_test_exit(mm))
  690. break;
  691. if (!(vma->vm_flags & VM_MERGEABLE) || !vma->anon_vma)
  692. continue;
  693. err = unmerge_ksm_pages(vma,
  694. vma->vm_start, vma->vm_end);
  695. if (err)
  696. goto error;
  697. }
  698. remove_trailing_rmap_items(mm_slot, &mm_slot->rmap_list);
  699. spin_lock(&ksm_mmlist_lock);
  700. ksm_scan.mm_slot = list_entry(mm_slot->mm_list.next,
  701. struct mm_slot, mm_list);
  702. if (ksm_test_exit(mm)) {
  703. hash_del(&mm_slot->link);
  704. list_del(&mm_slot->mm_list);
  705. spin_unlock(&ksm_mmlist_lock);
  706. free_mm_slot(mm_slot);
  707. clear_bit(MMF_VM_MERGEABLE, &mm->flags);
  708. up_read(&mm->mmap_sem);
  709. mmdrop(mm);
  710. } else {
  711. spin_unlock(&ksm_mmlist_lock);
  712. up_read(&mm->mmap_sem);
  713. }
  714. }
  715. /* Clean up stable nodes, but don't worry if some are still busy */
  716. remove_all_stable_nodes();
  717. ksm_scan.seqnr = 0;
  718. return 0;
  719. error:
  720. up_read(&mm->mmap_sem);
  721. spin_lock(&ksm_mmlist_lock);
  722. ksm_scan.mm_slot = &ksm_mm_head;
  723. spin_unlock(&ksm_mmlist_lock);
  724. return err;
  725. }
  726. #endif /* CONFIG_SYSFS */
  727. static u32 calc_checksum(struct page *page)
  728. {
  729. u32 checksum;
  730. void *addr = kmap_atomic(page);
  731. checksum = jhash2(addr, PAGE_SIZE / 4, 17);
  732. kunmap_atomic(addr);
  733. return checksum;
  734. }
  735. static int memcmp_pages(struct page *page1, struct page *page2)
  736. {
  737. char *addr1, *addr2;
  738. int ret;
  739. addr1 = kmap_atomic(page1);
  740. addr2 = kmap_atomic(page2);
  741. ret = memcmp(addr1, addr2, PAGE_SIZE);
  742. kunmap_atomic(addr2);
  743. kunmap_atomic(addr1);
  744. return ret;
  745. }
  746. static inline int pages_identical(struct page *page1, struct page *page2)
  747. {
  748. return !memcmp_pages(page1, page2);
  749. }
  750. static int write_protect_page(struct vm_area_struct *vma, struct page *page,
  751. pte_t *orig_pte)
  752. {
  753. struct mm_struct *mm = vma->vm_mm;
  754. unsigned long addr;
  755. pte_t *ptep;
  756. spinlock_t *ptl;
  757. int swapped;
  758. int err = -EFAULT;
  759. unsigned long mmun_start; /* For mmu_notifiers */
  760. unsigned long mmun_end; /* For mmu_notifiers */
  761. addr = page_address_in_vma(page, vma);
  762. if (addr == -EFAULT)
  763. goto out;
  764. BUG_ON(PageTransCompound(page));
  765. mmun_start = addr;
  766. mmun_end = addr + PAGE_SIZE;
  767. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  768. ptep = page_check_address(page, mm, addr, &ptl, 0);
  769. if (!ptep)
  770. goto out_mn;
  771. if (pte_write(*ptep) || pte_dirty(*ptep)) {
  772. pte_t entry;
  773. swapped = PageSwapCache(page);
  774. flush_cache_page(vma, addr, page_to_pfn(page));
  775. /*
  776. * Ok this is tricky, when get_user_pages_fast() run it doesn't
  777. * take any lock, therefore the check that we are going to make
  778. * with the pagecount against the mapcount is racey and
  779. * O_DIRECT can happen right after the check.
  780. * So we clear the pte and flush the tlb before the check
  781. * this assure us that no O_DIRECT can happen after the check
  782. * or in the middle of the check.
  783. */
  784. entry = ptep_clear_flush_notify(vma, addr, ptep);
  785. /*
  786. * Check that no O_DIRECT or similar I/O is in progress on the
  787. * page
  788. */
  789. if (page_mapcount(page) + 1 + swapped != page_count(page)) {
  790. set_pte_at(mm, addr, ptep, entry);
  791. goto out_unlock;
  792. }
  793. if (pte_dirty(entry))
  794. set_page_dirty(page);
  795. entry = pte_mkclean(pte_wrprotect(entry));
  796. set_pte_at_notify(mm, addr, ptep, entry);
  797. }
  798. *orig_pte = *ptep;
  799. err = 0;
  800. out_unlock:
  801. pte_unmap_unlock(ptep, ptl);
  802. out_mn:
  803. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  804. out:
  805. return err;
  806. }
  807. /**
  808. * replace_page - replace page in vma by new ksm page
  809. * @vma: vma that holds the pte pointing to page
  810. * @page: the page we are replacing by kpage
  811. * @kpage: the ksm page we replace page by
  812. * @orig_pte: the original value of the pte
  813. *
  814. * Returns 0 on success, -EFAULT on failure.
  815. */
  816. static int replace_page(struct vm_area_struct *vma, struct page *page,
  817. struct page *kpage, pte_t orig_pte)
  818. {
  819. struct mm_struct *mm = vma->vm_mm;
  820. pmd_t *pmd;
  821. pte_t *ptep;
  822. spinlock_t *ptl;
  823. unsigned long addr;
  824. int err = -EFAULT;
  825. unsigned long mmun_start; /* For mmu_notifiers */
  826. unsigned long mmun_end; /* For mmu_notifiers */
  827. addr = page_address_in_vma(page, vma);
  828. if (addr == -EFAULT)
  829. goto out;
  830. pmd = mm_find_pmd(mm, addr);
  831. if (!pmd)
  832. goto out;
  833. mmun_start = addr;
  834. mmun_end = addr + PAGE_SIZE;
  835. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  836. ptep = pte_offset_map_lock(mm, pmd, addr, &ptl);
  837. if (!pte_same(*ptep, orig_pte)) {
  838. pte_unmap_unlock(ptep, ptl);
  839. goto out_mn;
  840. }
  841. get_page(kpage);
  842. page_add_anon_rmap(kpage, vma, addr, false);
  843. flush_cache_page(vma, addr, pte_pfn(*ptep));
  844. ptep_clear_flush_notify(vma, addr, ptep);
  845. set_pte_at_notify(mm, addr, ptep, mk_pte(kpage, vma->vm_page_prot));
  846. page_remove_rmap(page, false);
  847. if (!page_mapped(page))
  848. try_to_free_swap(page);
  849. put_page(page);
  850. pte_unmap_unlock(ptep, ptl);
  851. err = 0;
  852. out_mn:
  853. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  854. out:
  855. return err;
  856. }
  857. /*
  858. * try_to_merge_one_page - take two pages and merge them into one
  859. * @vma: the vma that holds the pte pointing to page
  860. * @page: the PageAnon page that we want to replace with kpage
  861. * @kpage: the PageKsm page that we want to map instead of page,
  862. * or NULL the first time when we want to use page as kpage.
  863. *
  864. * This function returns 0 if the pages were merged, -EFAULT otherwise.
  865. */
  866. static int try_to_merge_one_page(struct vm_area_struct *vma,
  867. struct page *page, struct page *kpage)
  868. {
  869. pte_t orig_pte = __pte(0);
  870. int err = -EFAULT;
  871. if (page == kpage) /* ksm page forked */
  872. return 0;
  873. if (!PageAnon(page))
  874. goto out;
  875. /*
  876. * We need the page lock to read a stable PageSwapCache in
  877. * write_protect_page(). We use trylock_page() instead of
  878. * lock_page() because we don't want to wait here - we
  879. * prefer to continue scanning and merging different pages,
  880. * then come back to this page when it is unlocked.
  881. */
  882. if (!trylock_page(page))
  883. goto out;
  884. if (PageTransCompound(page)) {
  885. err = split_huge_page(page);
  886. if (err)
  887. goto out_unlock;
  888. }
  889. /*
  890. * If this anonymous page is mapped only here, its pte may need
  891. * to be write-protected. If it's mapped elsewhere, all of its
  892. * ptes are necessarily already write-protected. But in either
  893. * case, we need to lock and check page_count is not raised.
  894. */
  895. if (write_protect_page(vma, page, &orig_pte) == 0) {
  896. if (!kpage) {
  897. /*
  898. * While we hold page lock, upgrade page from
  899. * PageAnon+anon_vma to PageKsm+NULL stable_node:
  900. * stable_tree_insert() will update stable_node.
  901. */
  902. set_page_stable_node(page, NULL);
  903. mark_page_accessed(page);
  904. /*
  905. * Page reclaim just frees a clean page with no dirty
  906. * ptes: make sure that the ksm page would be swapped.
  907. */
  908. if (!PageDirty(page))
  909. SetPageDirty(page);
  910. err = 0;
  911. } else if (pages_identical(page, kpage))
  912. err = replace_page(vma, page, kpage, orig_pte);
  913. }
  914. if ((vma->vm_flags & VM_LOCKED) && kpage && !err) {
  915. munlock_vma_page(page);
  916. if (!PageMlocked(kpage)) {
  917. unlock_page(page);
  918. lock_page(kpage);
  919. mlock_vma_page(kpage);
  920. page = kpage; /* for final unlock */
  921. }
  922. }
  923. out_unlock:
  924. unlock_page(page);
  925. out:
  926. return err;
  927. }
  928. /*
  929. * try_to_merge_with_ksm_page - like try_to_merge_two_pages,
  930. * but no new kernel page is allocated: kpage must already be a ksm page.
  931. *
  932. * This function returns 0 if the pages were merged, -EFAULT otherwise.
  933. */
  934. static int try_to_merge_with_ksm_page(struct rmap_item *rmap_item,
  935. struct page *page, struct page *kpage)
  936. {
  937. struct mm_struct *mm = rmap_item->mm;
  938. struct vm_area_struct *vma;
  939. int err = -EFAULT;
  940. down_read(&mm->mmap_sem);
  941. vma = find_mergeable_vma(mm, rmap_item->address);
  942. if (!vma)
  943. goto out;
  944. err = try_to_merge_one_page(vma, page, kpage);
  945. if (err)
  946. goto out;
  947. /* Unstable nid is in union with stable anon_vma: remove first */
  948. remove_rmap_item_from_tree(rmap_item);
  949. /* Must get reference to anon_vma while still holding mmap_sem */
  950. rmap_item->anon_vma = vma->anon_vma;
  951. get_anon_vma(vma->anon_vma);
  952. out:
  953. up_read(&mm->mmap_sem);
  954. return err;
  955. }
  956. /*
  957. * try_to_merge_two_pages - take two identical pages and prepare them
  958. * to be merged into one page.
  959. *
  960. * This function returns the kpage if we successfully merged two identical
  961. * pages into one ksm page, NULL otherwise.
  962. *
  963. * Note that this function upgrades page to ksm page: if one of the pages
  964. * is already a ksm page, try_to_merge_with_ksm_page should be used.
  965. */
  966. static struct page *try_to_merge_two_pages(struct rmap_item *rmap_item,
  967. struct page *page,
  968. struct rmap_item *tree_rmap_item,
  969. struct page *tree_page)
  970. {
  971. int err;
  972. err = try_to_merge_with_ksm_page(rmap_item, page, NULL);
  973. if (!err) {
  974. err = try_to_merge_with_ksm_page(tree_rmap_item,
  975. tree_page, page);
  976. /*
  977. * If that fails, we have a ksm page with only one pte
  978. * pointing to it: so break it.
  979. */
  980. if (err)
  981. break_cow(rmap_item);
  982. }
  983. return err ? NULL : page;
  984. }
  985. /*
  986. * stable_tree_search - search for page inside the stable tree
  987. *
  988. * This function checks if there is a page inside the stable tree
  989. * with identical content to the page that we are scanning right now.
  990. *
  991. * This function returns the stable tree node of identical content if found,
  992. * NULL otherwise.
  993. */
  994. static struct page *stable_tree_search(struct page *page)
  995. {
  996. int nid;
  997. struct rb_root *root;
  998. struct rb_node **new;
  999. struct rb_node *parent;
  1000. struct stable_node *stable_node;
  1001. struct stable_node *page_node;
  1002. page_node = page_stable_node(page);
  1003. if (page_node && page_node->head != &migrate_nodes) {
  1004. /* ksm page forked */
  1005. get_page(page);
  1006. return page;
  1007. }
  1008. nid = get_kpfn_nid(page_to_pfn(page));
  1009. root = root_stable_tree + nid;
  1010. again:
  1011. new = &root->rb_node;
  1012. parent = NULL;
  1013. while (*new) {
  1014. struct page *tree_page;
  1015. int ret;
  1016. cond_resched();
  1017. stable_node = rb_entry(*new, struct stable_node, node);
  1018. tree_page = get_ksm_page(stable_node, false);
  1019. if (!tree_page) {
  1020. /*
  1021. * If we walked over a stale stable_node,
  1022. * get_ksm_page() will call rb_erase() and it
  1023. * may rebalance the tree from under us. So
  1024. * restart the search from scratch. Returning
  1025. * NULL would be safe too, but we'd generate
  1026. * false negative insertions just because some
  1027. * stable_node was stale.
  1028. */
  1029. goto again;
  1030. }
  1031. ret = memcmp_pages(page, tree_page);
  1032. put_page(tree_page);
  1033. parent = *new;
  1034. if (ret < 0)
  1035. new = &parent->rb_left;
  1036. else if (ret > 0)
  1037. new = &parent->rb_right;
  1038. else {
  1039. /*
  1040. * Lock and unlock the stable_node's page (which
  1041. * might already have been migrated) so that page
  1042. * migration is sure to notice its raised count.
  1043. * It would be more elegant to return stable_node
  1044. * than kpage, but that involves more changes.
  1045. */
  1046. tree_page = get_ksm_page(stable_node, true);
  1047. if (tree_page) {
  1048. unlock_page(tree_page);
  1049. if (get_kpfn_nid(stable_node->kpfn) !=
  1050. NUMA(stable_node->nid)) {
  1051. put_page(tree_page);
  1052. goto replace;
  1053. }
  1054. return tree_page;
  1055. }
  1056. /*
  1057. * There is now a place for page_node, but the tree may
  1058. * have been rebalanced, so re-evaluate parent and new.
  1059. */
  1060. if (page_node)
  1061. goto again;
  1062. return NULL;
  1063. }
  1064. }
  1065. if (!page_node)
  1066. return NULL;
  1067. list_del(&page_node->list);
  1068. DO_NUMA(page_node->nid = nid);
  1069. rb_link_node(&page_node->node, parent, new);
  1070. rb_insert_color(&page_node->node, root);
  1071. get_page(page);
  1072. return page;
  1073. replace:
  1074. if (page_node) {
  1075. list_del(&page_node->list);
  1076. DO_NUMA(page_node->nid = nid);
  1077. rb_replace_node(&stable_node->node, &page_node->node, root);
  1078. get_page(page);
  1079. } else {
  1080. rb_erase(&stable_node->node, root);
  1081. page = NULL;
  1082. }
  1083. stable_node->head = &migrate_nodes;
  1084. list_add(&stable_node->list, stable_node->head);
  1085. return page;
  1086. }
  1087. /*
  1088. * stable_tree_insert - insert stable tree node pointing to new ksm page
  1089. * into the stable tree.
  1090. *
  1091. * This function returns the stable tree node just allocated on success,
  1092. * NULL otherwise.
  1093. */
  1094. static struct stable_node *stable_tree_insert(struct page *kpage)
  1095. {
  1096. int nid;
  1097. unsigned long kpfn;
  1098. struct rb_root *root;
  1099. struct rb_node **new;
  1100. struct rb_node *parent;
  1101. struct stable_node *stable_node;
  1102. kpfn = page_to_pfn(kpage);
  1103. nid = get_kpfn_nid(kpfn);
  1104. root = root_stable_tree + nid;
  1105. again:
  1106. parent = NULL;
  1107. new = &root->rb_node;
  1108. while (*new) {
  1109. struct page *tree_page;
  1110. int ret;
  1111. cond_resched();
  1112. stable_node = rb_entry(*new, struct stable_node, node);
  1113. tree_page = get_ksm_page(stable_node, false);
  1114. if (!tree_page) {
  1115. /*
  1116. * If we walked over a stale stable_node,
  1117. * get_ksm_page() will call rb_erase() and it
  1118. * may rebalance the tree from under us. So
  1119. * restart the search from scratch. Returning
  1120. * NULL would be safe too, but we'd generate
  1121. * false negative insertions just because some
  1122. * stable_node was stale.
  1123. */
  1124. goto again;
  1125. }
  1126. ret = memcmp_pages(kpage, tree_page);
  1127. put_page(tree_page);
  1128. parent = *new;
  1129. if (ret < 0)
  1130. new = &parent->rb_left;
  1131. else if (ret > 0)
  1132. new = &parent->rb_right;
  1133. else {
  1134. /*
  1135. * It is not a bug that stable_tree_search() didn't
  1136. * find this node: because at that time our page was
  1137. * not yet write-protected, so may have changed since.
  1138. */
  1139. return NULL;
  1140. }
  1141. }
  1142. stable_node = alloc_stable_node();
  1143. if (!stable_node)
  1144. return NULL;
  1145. INIT_HLIST_HEAD(&stable_node->hlist);
  1146. stable_node->kpfn = kpfn;
  1147. set_page_stable_node(kpage, stable_node);
  1148. DO_NUMA(stable_node->nid = nid);
  1149. rb_link_node(&stable_node->node, parent, new);
  1150. rb_insert_color(&stable_node->node, root);
  1151. return stable_node;
  1152. }
  1153. /*
  1154. * unstable_tree_search_insert - search for identical page,
  1155. * else insert rmap_item into the unstable tree.
  1156. *
  1157. * This function searches for a page in the unstable tree identical to the
  1158. * page currently being scanned; and if no identical page is found in the
  1159. * tree, we insert rmap_item as a new object into the unstable tree.
  1160. *
  1161. * This function returns pointer to rmap_item found to be identical
  1162. * to the currently scanned page, NULL otherwise.
  1163. *
  1164. * This function does both searching and inserting, because they share
  1165. * the same walking algorithm in an rbtree.
  1166. */
  1167. static
  1168. struct rmap_item *unstable_tree_search_insert(struct rmap_item *rmap_item,
  1169. struct page *page,
  1170. struct page **tree_pagep)
  1171. {
  1172. struct rb_node **new;
  1173. struct rb_root *root;
  1174. struct rb_node *parent = NULL;
  1175. int nid;
  1176. nid = get_kpfn_nid(page_to_pfn(page));
  1177. root = root_unstable_tree + nid;
  1178. new = &root->rb_node;
  1179. while (*new) {
  1180. struct rmap_item *tree_rmap_item;
  1181. struct page *tree_page;
  1182. int ret;
  1183. cond_resched();
  1184. tree_rmap_item = rb_entry(*new, struct rmap_item, node);
  1185. tree_page = get_mergeable_page(tree_rmap_item);
  1186. if (!tree_page)
  1187. return NULL;
  1188. /*
  1189. * Don't substitute a ksm page for a forked page.
  1190. */
  1191. if (page == tree_page) {
  1192. put_page(tree_page);
  1193. return NULL;
  1194. }
  1195. ret = memcmp_pages(page, tree_page);
  1196. parent = *new;
  1197. if (ret < 0) {
  1198. put_page(tree_page);
  1199. new = &parent->rb_left;
  1200. } else if (ret > 0) {
  1201. put_page(tree_page);
  1202. new = &parent->rb_right;
  1203. } else if (!ksm_merge_across_nodes &&
  1204. page_to_nid(tree_page) != nid) {
  1205. /*
  1206. * If tree_page has been migrated to another NUMA node,
  1207. * it will be flushed out and put in the right unstable
  1208. * tree next time: only merge with it when across_nodes.
  1209. */
  1210. put_page(tree_page);
  1211. return NULL;
  1212. } else {
  1213. *tree_pagep = tree_page;
  1214. return tree_rmap_item;
  1215. }
  1216. }
  1217. rmap_item->address |= UNSTABLE_FLAG;
  1218. rmap_item->address |= (ksm_scan.seqnr & SEQNR_MASK);
  1219. DO_NUMA(rmap_item->nid = nid);
  1220. rb_link_node(&rmap_item->node, parent, new);
  1221. rb_insert_color(&rmap_item->node, root);
  1222. ksm_pages_unshared++;
  1223. return NULL;
  1224. }
  1225. /*
  1226. * stable_tree_append - add another rmap_item to the linked list of
  1227. * rmap_items hanging off a given node of the stable tree, all sharing
  1228. * the same ksm page.
  1229. */
  1230. static void stable_tree_append(struct rmap_item *rmap_item,
  1231. struct stable_node *stable_node)
  1232. {
  1233. rmap_item->head = stable_node;
  1234. rmap_item->address |= STABLE_FLAG;
  1235. hlist_add_head(&rmap_item->hlist, &stable_node->hlist);
  1236. if (rmap_item->hlist.next)
  1237. ksm_pages_sharing++;
  1238. else
  1239. ksm_pages_shared++;
  1240. }
  1241. /*
  1242. * cmp_and_merge_page - first see if page can be merged into the stable tree;
  1243. * if not, compare checksum to previous and if it's the same, see if page can
  1244. * be inserted into the unstable tree, or merged with a page already there and
  1245. * both transferred to the stable tree.
  1246. *
  1247. * @page: the page that we are searching identical page to.
  1248. * @rmap_item: the reverse mapping into the virtual address of this page
  1249. */
  1250. static void cmp_and_merge_page(struct page *page, struct rmap_item *rmap_item)
  1251. {
  1252. struct rmap_item *tree_rmap_item;
  1253. struct page *tree_page = NULL;
  1254. struct stable_node *stable_node;
  1255. struct page *kpage;
  1256. unsigned int checksum;
  1257. int err;
  1258. stable_node = page_stable_node(page);
  1259. if (stable_node) {
  1260. if (stable_node->head != &migrate_nodes &&
  1261. get_kpfn_nid(stable_node->kpfn) != NUMA(stable_node->nid)) {
  1262. rb_erase(&stable_node->node,
  1263. root_stable_tree + NUMA(stable_node->nid));
  1264. stable_node->head = &migrate_nodes;
  1265. list_add(&stable_node->list, stable_node->head);
  1266. }
  1267. if (stable_node->head != &migrate_nodes &&
  1268. rmap_item->head == stable_node)
  1269. return;
  1270. }
  1271. /* We first start with searching the page inside the stable tree */
  1272. kpage = stable_tree_search(page);
  1273. if (kpage == page && rmap_item->head == stable_node) {
  1274. put_page(kpage);
  1275. return;
  1276. }
  1277. remove_rmap_item_from_tree(rmap_item);
  1278. if (kpage) {
  1279. err = try_to_merge_with_ksm_page(rmap_item, page, kpage);
  1280. if (!err) {
  1281. /*
  1282. * The page was successfully merged:
  1283. * add its rmap_item to the stable tree.
  1284. */
  1285. lock_page(kpage);
  1286. stable_tree_append(rmap_item, page_stable_node(kpage));
  1287. unlock_page(kpage);
  1288. }
  1289. put_page(kpage);
  1290. return;
  1291. }
  1292. /*
  1293. * If the hash value of the page has changed from the last time
  1294. * we calculated it, this page is changing frequently: therefore we
  1295. * don't want to insert it in the unstable tree, and we don't want
  1296. * to waste our time searching for something identical to it there.
  1297. */
  1298. checksum = calc_checksum(page);
  1299. if (rmap_item->oldchecksum != checksum) {
  1300. rmap_item->oldchecksum = checksum;
  1301. return;
  1302. }
  1303. tree_rmap_item =
  1304. unstable_tree_search_insert(rmap_item, page, &tree_page);
  1305. if (tree_rmap_item) {
  1306. kpage = try_to_merge_two_pages(rmap_item, page,
  1307. tree_rmap_item, tree_page);
  1308. put_page(tree_page);
  1309. if (kpage) {
  1310. /*
  1311. * The pages were successfully merged: insert new
  1312. * node in the stable tree and add both rmap_items.
  1313. */
  1314. lock_page(kpage);
  1315. stable_node = stable_tree_insert(kpage);
  1316. if (stable_node) {
  1317. stable_tree_append(tree_rmap_item, stable_node);
  1318. stable_tree_append(rmap_item, stable_node);
  1319. }
  1320. unlock_page(kpage);
  1321. /*
  1322. * If we fail to insert the page into the stable tree,
  1323. * we will have 2 virtual addresses that are pointing
  1324. * to a ksm page left outside the stable tree,
  1325. * in which case we need to break_cow on both.
  1326. */
  1327. if (!stable_node) {
  1328. break_cow(tree_rmap_item);
  1329. break_cow(rmap_item);
  1330. }
  1331. }
  1332. }
  1333. }
  1334. static struct rmap_item *get_next_rmap_item(struct mm_slot *mm_slot,
  1335. struct rmap_item **rmap_list,
  1336. unsigned long addr)
  1337. {
  1338. struct rmap_item *rmap_item;
  1339. while (*rmap_list) {
  1340. rmap_item = *rmap_list;
  1341. if ((rmap_item->address & PAGE_MASK) == addr)
  1342. return rmap_item;
  1343. if (rmap_item->address > addr)
  1344. break;
  1345. *rmap_list = rmap_item->rmap_list;
  1346. remove_rmap_item_from_tree(rmap_item);
  1347. free_rmap_item(rmap_item);
  1348. }
  1349. rmap_item = alloc_rmap_item();
  1350. if (rmap_item) {
  1351. /* It has already been zeroed */
  1352. rmap_item->mm = mm_slot->mm;
  1353. rmap_item->address = addr;
  1354. rmap_item->rmap_list = *rmap_list;
  1355. *rmap_list = rmap_item;
  1356. }
  1357. return rmap_item;
  1358. }
  1359. static struct rmap_item *scan_get_next_rmap_item(struct page **page)
  1360. {
  1361. struct mm_struct *mm;
  1362. struct mm_slot *slot;
  1363. struct vm_area_struct *vma;
  1364. struct rmap_item *rmap_item;
  1365. int nid;
  1366. if (list_empty(&ksm_mm_head.mm_list))
  1367. return NULL;
  1368. slot = ksm_scan.mm_slot;
  1369. if (slot == &ksm_mm_head) {
  1370. /*
  1371. * A number of pages can hang around indefinitely on per-cpu
  1372. * pagevecs, raised page count preventing write_protect_page
  1373. * from merging them. Though it doesn't really matter much,
  1374. * it is puzzling to see some stuck in pages_volatile until
  1375. * other activity jostles them out, and they also prevented
  1376. * LTP's KSM test from succeeding deterministically; so drain
  1377. * them here (here rather than on entry to ksm_do_scan(),
  1378. * so we don't IPI too often when pages_to_scan is set low).
  1379. */
  1380. lru_add_drain_all();
  1381. /*
  1382. * Whereas stale stable_nodes on the stable_tree itself
  1383. * get pruned in the regular course of stable_tree_search(),
  1384. * those moved out to the migrate_nodes list can accumulate:
  1385. * so prune them once before each full scan.
  1386. */
  1387. if (!ksm_merge_across_nodes) {
  1388. struct stable_node *stable_node, *next;
  1389. struct page *page;
  1390. list_for_each_entry_safe(stable_node, next,
  1391. &migrate_nodes, list) {
  1392. page = get_ksm_page(stable_node, false);
  1393. if (page)
  1394. put_page(page);
  1395. cond_resched();
  1396. }
  1397. }
  1398. for (nid = 0; nid < ksm_nr_node_ids; nid++)
  1399. root_unstable_tree[nid] = RB_ROOT;
  1400. spin_lock(&ksm_mmlist_lock);
  1401. slot = list_entry(slot->mm_list.next, struct mm_slot, mm_list);
  1402. ksm_scan.mm_slot = slot;
  1403. spin_unlock(&ksm_mmlist_lock);
  1404. /*
  1405. * Although we tested list_empty() above, a racing __ksm_exit
  1406. * of the last mm on the list may have removed it since then.
  1407. */
  1408. if (slot == &ksm_mm_head)
  1409. return NULL;
  1410. next_mm:
  1411. ksm_scan.address = 0;
  1412. ksm_scan.rmap_list = &slot->rmap_list;
  1413. }
  1414. mm = slot->mm;
  1415. down_read(&mm->mmap_sem);
  1416. if (ksm_test_exit(mm))
  1417. vma = NULL;
  1418. else
  1419. vma = find_vma(mm, ksm_scan.address);
  1420. for (; vma; vma = vma->vm_next) {
  1421. if (!(vma->vm_flags & VM_MERGEABLE))
  1422. continue;
  1423. if (ksm_scan.address < vma->vm_start)
  1424. ksm_scan.address = vma->vm_start;
  1425. if (!vma->anon_vma)
  1426. ksm_scan.address = vma->vm_end;
  1427. while (ksm_scan.address < vma->vm_end) {
  1428. if (ksm_test_exit(mm))
  1429. break;
  1430. *page = follow_page(vma, ksm_scan.address, FOLL_GET);
  1431. if (IS_ERR_OR_NULL(*page)) {
  1432. ksm_scan.address += PAGE_SIZE;
  1433. cond_resched();
  1434. continue;
  1435. }
  1436. if (PageAnon(*page)) {
  1437. flush_anon_page(vma, *page, ksm_scan.address);
  1438. flush_dcache_page(*page);
  1439. rmap_item = get_next_rmap_item(slot,
  1440. ksm_scan.rmap_list, ksm_scan.address);
  1441. if (rmap_item) {
  1442. ksm_scan.rmap_list =
  1443. &rmap_item->rmap_list;
  1444. ksm_scan.address += PAGE_SIZE;
  1445. } else
  1446. put_page(*page);
  1447. up_read(&mm->mmap_sem);
  1448. return rmap_item;
  1449. }
  1450. put_page(*page);
  1451. ksm_scan.address += PAGE_SIZE;
  1452. cond_resched();
  1453. }
  1454. }
  1455. if (ksm_test_exit(mm)) {
  1456. ksm_scan.address = 0;
  1457. ksm_scan.rmap_list = &slot->rmap_list;
  1458. }
  1459. /*
  1460. * Nuke all the rmap_items that are above this current rmap:
  1461. * because there were no VM_MERGEABLE vmas with such addresses.
  1462. */
  1463. remove_trailing_rmap_items(slot, ksm_scan.rmap_list);
  1464. spin_lock(&ksm_mmlist_lock);
  1465. ksm_scan.mm_slot = list_entry(slot->mm_list.next,
  1466. struct mm_slot, mm_list);
  1467. if (ksm_scan.address == 0) {
  1468. /*
  1469. * We've completed a full scan of all vmas, holding mmap_sem
  1470. * throughout, and found no VM_MERGEABLE: so do the same as
  1471. * __ksm_exit does to remove this mm from all our lists now.
  1472. * This applies either when cleaning up after __ksm_exit
  1473. * (but beware: we can reach here even before __ksm_exit),
  1474. * or when all VM_MERGEABLE areas have been unmapped (and
  1475. * mmap_sem then protects against race with MADV_MERGEABLE).
  1476. */
  1477. hash_del(&slot->link);
  1478. list_del(&slot->mm_list);
  1479. spin_unlock(&ksm_mmlist_lock);
  1480. free_mm_slot(slot);
  1481. clear_bit(MMF_VM_MERGEABLE, &mm->flags);
  1482. up_read(&mm->mmap_sem);
  1483. mmdrop(mm);
  1484. } else {
  1485. spin_unlock(&ksm_mmlist_lock);
  1486. up_read(&mm->mmap_sem);
  1487. }
  1488. /* Repeat until we've completed scanning the whole list */
  1489. slot = ksm_scan.mm_slot;
  1490. if (slot != &ksm_mm_head)
  1491. goto next_mm;
  1492. ksm_scan.seqnr++;
  1493. return NULL;
  1494. }
  1495. /**
  1496. * ksm_do_scan - the ksm scanner main worker function.
  1497. * @scan_npages - number of pages we want to scan before we return.
  1498. */
  1499. static void ksm_do_scan(unsigned int scan_npages)
  1500. {
  1501. struct rmap_item *rmap_item;
  1502. struct page *uninitialized_var(page);
  1503. while (scan_npages-- && likely(!freezing(current))) {
  1504. cond_resched();
  1505. rmap_item = scan_get_next_rmap_item(&page);
  1506. if (!rmap_item)
  1507. return;
  1508. cmp_and_merge_page(page, rmap_item);
  1509. put_page(page);
  1510. }
  1511. }
  1512. static int ksmd_should_run(void)
  1513. {
  1514. return (ksm_run & KSM_RUN_MERGE) && !list_empty(&ksm_mm_head.mm_list);
  1515. }
  1516. static int ksm_scan_thread(void *nothing)
  1517. {
  1518. set_freezable();
  1519. set_user_nice(current, 5);
  1520. while (!kthread_should_stop()) {
  1521. mutex_lock(&ksm_thread_mutex);
  1522. wait_while_offlining();
  1523. if (ksmd_should_run())
  1524. ksm_do_scan(ksm_thread_pages_to_scan);
  1525. mutex_unlock(&ksm_thread_mutex);
  1526. try_to_freeze();
  1527. if (ksmd_should_run()) {
  1528. schedule_timeout_interruptible(
  1529. msecs_to_jiffies(ksm_thread_sleep_millisecs));
  1530. } else {
  1531. wait_event_freezable(ksm_thread_wait,
  1532. ksmd_should_run() || kthread_should_stop());
  1533. }
  1534. }
  1535. return 0;
  1536. }
  1537. int ksm_madvise(struct vm_area_struct *vma, unsigned long start,
  1538. unsigned long end, int advice, unsigned long *vm_flags)
  1539. {
  1540. struct mm_struct *mm = vma->vm_mm;
  1541. int err;
  1542. switch (advice) {
  1543. case MADV_MERGEABLE:
  1544. /*
  1545. * Be somewhat over-protective for now!
  1546. */
  1547. if (*vm_flags & (VM_MERGEABLE | VM_SHARED | VM_MAYSHARE |
  1548. VM_PFNMAP | VM_IO | VM_DONTEXPAND |
  1549. VM_HUGETLB | VM_MIXEDMAP))
  1550. return 0; /* just ignore the advice */
  1551. #ifdef VM_SAO
  1552. if (*vm_flags & VM_SAO)
  1553. return 0;
  1554. #endif
  1555. if (!test_bit(MMF_VM_MERGEABLE, &mm->flags)) {
  1556. err = __ksm_enter(mm);
  1557. if (err)
  1558. return err;
  1559. }
  1560. *vm_flags |= VM_MERGEABLE;
  1561. break;
  1562. case MADV_UNMERGEABLE:
  1563. if (!(*vm_flags & VM_MERGEABLE))
  1564. return 0; /* just ignore the advice */
  1565. if (vma->anon_vma) {
  1566. err = unmerge_ksm_pages(vma, start, end);
  1567. if (err)
  1568. return err;
  1569. }
  1570. *vm_flags &= ~VM_MERGEABLE;
  1571. break;
  1572. }
  1573. return 0;
  1574. }
  1575. int __ksm_enter(struct mm_struct *mm)
  1576. {
  1577. struct mm_slot *mm_slot;
  1578. int needs_wakeup;
  1579. mm_slot = alloc_mm_slot();
  1580. if (!mm_slot)
  1581. return -ENOMEM;
  1582. /* Check ksm_run too? Would need tighter locking */
  1583. needs_wakeup = list_empty(&ksm_mm_head.mm_list);
  1584. spin_lock(&ksm_mmlist_lock);
  1585. insert_to_mm_slots_hash(mm, mm_slot);
  1586. /*
  1587. * When KSM_RUN_MERGE (or KSM_RUN_STOP),
  1588. * insert just behind the scanning cursor, to let the area settle
  1589. * down a little; when fork is followed by immediate exec, we don't
  1590. * want ksmd to waste time setting up and tearing down an rmap_list.
  1591. *
  1592. * But when KSM_RUN_UNMERGE, it's important to insert ahead of its
  1593. * scanning cursor, otherwise KSM pages in newly forked mms will be
  1594. * missed: then we might as well insert at the end of the list.
  1595. */
  1596. if (ksm_run & KSM_RUN_UNMERGE)
  1597. list_add_tail(&mm_slot->mm_list, &ksm_mm_head.mm_list);
  1598. else
  1599. list_add_tail(&mm_slot->mm_list, &ksm_scan.mm_slot->mm_list);
  1600. spin_unlock(&ksm_mmlist_lock);
  1601. set_bit(MMF_VM_MERGEABLE, &mm->flags);
  1602. atomic_inc(&mm->mm_count);
  1603. if (needs_wakeup)
  1604. wake_up_interruptible(&ksm_thread_wait);
  1605. return 0;
  1606. }
  1607. void __ksm_exit(struct mm_struct *mm)
  1608. {
  1609. struct mm_slot *mm_slot;
  1610. int easy_to_free = 0;
  1611. /*
  1612. * This process is exiting: if it's straightforward (as is the
  1613. * case when ksmd was never running), free mm_slot immediately.
  1614. * But if it's at the cursor or has rmap_items linked to it, use
  1615. * mmap_sem to synchronize with any break_cows before pagetables
  1616. * are freed, and leave the mm_slot on the list for ksmd to free.
  1617. * Beware: ksm may already have noticed it exiting and freed the slot.
  1618. */
  1619. spin_lock(&ksm_mmlist_lock);
  1620. mm_slot = get_mm_slot(mm);
  1621. if (mm_slot && ksm_scan.mm_slot != mm_slot) {
  1622. if (!mm_slot->rmap_list) {
  1623. hash_del(&mm_slot->link);
  1624. list_del(&mm_slot->mm_list);
  1625. easy_to_free = 1;
  1626. } else {
  1627. list_move(&mm_slot->mm_list,
  1628. &ksm_scan.mm_slot->mm_list);
  1629. }
  1630. }
  1631. spin_unlock(&ksm_mmlist_lock);
  1632. if (easy_to_free) {
  1633. free_mm_slot(mm_slot);
  1634. clear_bit(MMF_VM_MERGEABLE, &mm->flags);
  1635. mmdrop(mm);
  1636. } else if (mm_slot) {
  1637. down_write(&mm->mmap_sem);
  1638. up_write(&mm->mmap_sem);
  1639. }
  1640. }
  1641. struct page *ksm_might_need_to_copy(struct page *page,
  1642. struct vm_area_struct *vma, unsigned long address)
  1643. {
  1644. struct anon_vma *anon_vma = page_anon_vma(page);
  1645. struct page *new_page;
  1646. if (PageKsm(page)) {
  1647. if (page_stable_node(page) &&
  1648. !(ksm_run & KSM_RUN_UNMERGE))
  1649. return page; /* no need to copy it */
  1650. } else if (!anon_vma) {
  1651. return page; /* no need to copy it */
  1652. } else if (anon_vma->root == vma->anon_vma->root &&
  1653. page->index == linear_page_index(vma, address)) {
  1654. return page; /* still no need to copy it */
  1655. }
  1656. if (!PageUptodate(page))
  1657. return page; /* let do_swap_page report the error */
  1658. new_page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, address);
  1659. if (new_page) {
  1660. copy_user_highpage(new_page, page, address, vma);
  1661. SetPageDirty(new_page);
  1662. __SetPageUptodate(new_page);
  1663. __SetPageLocked(new_page);
  1664. }
  1665. return new_page;
  1666. }
  1667. int rmap_walk_ksm(struct page *page, struct rmap_walk_control *rwc)
  1668. {
  1669. struct stable_node *stable_node;
  1670. struct rmap_item *rmap_item;
  1671. int ret = SWAP_AGAIN;
  1672. int search_new_forks = 0;
  1673. VM_BUG_ON_PAGE(!PageKsm(page), page);
  1674. /*
  1675. * Rely on the page lock to protect against concurrent modifications
  1676. * to that page's node of the stable tree.
  1677. */
  1678. VM_BUG_ON_PAGE(!PageLocked(page), page);
  1679. stable_node = page_stable_node(page);
  1680. if (!stable_node)
  1681. return ret;
  1682. again:
  1683. hlist_for_each_entry(rmap_item, &stable_node->hlist, hlist) {
  1684. struct anon_vma *anon_vma = rmap_item->anon_vma;
  1685. struct anon_vma_chain *vmac;
  1686. struct vm_area_struct *vma;
  1687. cond_resched();
  1688. anon_vma_lock_read(anon_vma);
  1689. anon_vma_interval_tree_foreach(vmac, &anon_vma->rb_root,
  1690. 0, ULONG_MAX) {
  1691. cond_resched();
  1692. vma = vmac->vma;
  1693. if (rmap_item->address < vma->vm_start ||
  1694. rmap_item->address >= vma->vm_end)
  1695. continue;
  1696. /*
  1697. * Initially we examine only the vma which covers this
  1698. * rmap_item; but later, if there is still work to do,
  1699. * we examine covering vmas in other mms: in case they
  1700. * were forked from the original since ksmd passed.
  1701. */
  1702. if ((rmap_item->mm == vma->vm_mm) == search_new_forks)
  1703. continue;
  1704. if (rwc->invalid_vma && rwc->invalid_vma(vma, rwc->arg))
  1705. continue;
  1706. ret = rwc->rmap_one(page, vma,
  1707. rmap_item->address, rwc->arg);
  1708. if (ret != SWAP_AGAIN) {
  1709. anon_vma_unlock_read(anon_vma);
  1710. goto out;
  1711. }
  1712. if (rwc->done && rwc->done(page)) {
  1713. anon_vma_unlock_read(anon_vma);
  1714. goto out;
  1715. }
  1716. }
  1717. anon_vma_unlock_read(anon_vma);
  1718. }
  1719. if (!search_new_forks++)
  1720. goto again;
  1721. out:
  1722. return ret;
  1723. }
  1724. #ifdef CONFIG_MIGRATION
  1725. void ksm_migrate_page(struct page *newpage, struct page *oldpage)
  1726. {
  1727. struct stable_node *stable_node;
  1728. VM_BUG_ON_PAGE(!PageLocked(oldpage), oldpage);
  1729. VM_BUG_ON_PAGE(!PageLocked(newpage), newpage);
  1730. VM_BUG_ON_PAGE(newpage->mapping != oldpage->mapping, newpage);
  1731. stable_node = page_stable_node(newpage);
  1732. if (stable_node) {
  1733. VM_BUG_ON_PAGE(stable_node->kpfn != page_to_pfn(oldpage), oldpage);
  1734. stable_node->kpfn = page_to_pfn(newpage);
  1735. /*
  1736. * newpage->mapping was set in advance; now we need smp_wmb()
  1737. * to make sure that the new stable_node->kpfn is visible
  1738. * to get_ksm_page() before it can see that oldpage->mapping
  1739. * has gone stale (or that PageSwapCache has been cleared).
  1740. */
  1741. smp_wmb();
  1742. set_page_stable_node(oldpage, NULL);
  1743. }
  1744. }
  1745. #endif /* CONFIG_MIGRATION */
  1746. #ifdef CONFIG_MEMORY_HOTREMOVE
  1747. static void wait_while_offlining(void)
  1748. {
  1749. while (ksm_run & KSM_RUN_OFFLINE) {
  1750. mutex_unlock(&ksm_thread_mutex);
  1751. wait_on_bit(&ksm_run, ilog2(KSM_RUN_OFFLINE),
  1752. TASK_UNINTERRUPTIBLE);
  1753. mutex_lock(&ksm_thread_mutex);
  1754. }
  1755. }
  1756. static void ksm_check_stable_tree(unsigned long start_pfn,
  1757. unsigned long end_pfn)
  1758. {
  1759. struct stable_node *stable_node, *next;
  1760. struct rb_node *node;
  1761. int nid;
  1762. for (nid = 0; nid < ksm_nr_node_ids; nid++) {
  1763. node = rb_first(root_stable_tree + nid);
  1764. while (node) {
  1765. stable_node = rb_entry(node, struct stable_node, node);
  1766. if (stable_node->kpfn >= start_pfn &&
  1767. stable_node->kpfn < end_pfn) {
  1768. /*
  1769. * Don't get_ksm_page, page has already gone:
  1770. * which is why we keep kpfn instead of page*
  1771. */
  1772. remove_node_from_stable_tree(stable_node);
  1773. node = rb_first(root_stable_tree + nid);
  1774. } else
  1775. node = rb_next(node);
  1776. cond_resched();
  1777. }
  1778. }
  1779. list_for_each_entry_safe(stable_node, next, &migrate_nodes, list) {
  1780. if (stable_node->kpfn >= start_pfn &&
  1781. stable_node->kpfn < end_pfn)
  1782. remove_node_from_stable_tree(stable_node);
  1783. cond_resched();
  1784. }
  1785. }
  1786. static int ksm_memory_callback(struct notifier_block *self,
  1787. unsigned long action, void *arg)
  1788. {
  1789. struct memory_notify *mn = arg;
  1790. switch (action) {
  1791. case MEM_GOING_OFFLINE:
  1792. /*
  1793. * Prevent ksm_do_scan(), unmerge_and_remove_all_rmap_items()
  1794. * and remove_all_stable_nodes() while memory is going offline:
  1795. * it is unsafe for them to touch the stable tree at this time.
  1796. * But unmerge_ksm_pages(), rmap lookups and other entry points
  1797. * which do not need the ksm_thread_mutex are all safe.
  1798. */
  1799. mutex_lock(&ksm_thread_mutex);
  1800. ksm_run |= KSM_RUN_OFFLINE;
  1801. mutex_unlock(&ksm_thread_mutex);
  1802. break;
  1803. case MEM_OFFLINE:
  1804. /*
  1805. * Most of the work is done by page migration; but there might
  1806. * be a few stable_nodes left over, still pointing to struct
  1807. * pages which have been offlined: prune those from the tree,
  1808. * otherwise get_ksm_page() might later try to access a
  1809. * non-existent struct page.
  1810. */
  1811. ksm_check_stable_tree(mn->start_pfn,
  1812. mn->start_pfn + mn->nr_pages);
  1813. /* fallthrough */
  1814. case MEM_CANCEL_OFFLINE:
  1815. mutex_lock(&ksm_thread_mutex);
  1816. ksm_run &= ~KSM_RUN_OFFLINE;
  1817. mutex_unlock(&ksm_thread_mutex);
  1818. smp_mb(); /* wake_up_bit advises this */
  1819. wake_up_bit(&ksm_run, ilog2(KSM_RUN_OFFLINE));
  1820. break;
  1821. }
  1822. return NOTIFY_OK;
  1823. }
  1824. #else
  1825. static void wait_while_offlining(void)
  1826. {
  1827. }
  1828. #endif /* CONFIG_MEMORY_HOTREMOVE */
  1829. #ifdef CONFIG_SYSFS
  1830. /*
  1831. * This all compiles without CONFIG_SYSFS, but is a waste of space.
  1832. */
  1833. #define KSM_ATTR_RO(_name) \
  1834. static struct kobj_attribute _name##_attr = __ATTR_RO(_name)
  1835. #define KSM_ATTR(_name) \
  1836. static struct kobj_attribute _name##_attr = \
  1837. __ATTR(_name, 0644, _name##_show, _name##_store)
  1838. static ssize_t sleep_millisecs_show(struct kobject *kobj,
  1839. struct kobj_attribute *attr, char *buf)
  1840. {
  1841. return sprintf(buf, "%u\n", ksm_thread_sleep_millisecs);
  1842. }
  1843. static ssize_t sleep_millisecs_store(struct kobject *kobj,
  1844. struct kobj_attribute *attr,
  1845. const char *buf, size_t count)
  1846. {
  1847. unsigned long msecs;
  1848. int err;
  1849. err = kstrtoul(buf, 10, &msecs);
  1850. if (err || msecs > UINT_MAX)
  1851. return -EINVAL;
  1852. ksm_thread_sleep_millisecs = msecs;
  1853. return count;
  1854. }
  1855. KSM_ATTR(sleep_millisecs);
  1856. static ssize_t pages_to_scan_show(struct kobject *kobj,
  1857. struct kobj_attribute *attr, char *buf)
  1858. {
  1859. return sprintf(buf, "%u\n", ksm_thread_pages_to_scan);
  1860. }
  1861. static ssize_t pages_to_scan_store(struct kobject *kobj,
  1862. struct kobj_attribute *attr,
  1863. const char *buf, size_t count)
  1864. {
  1865. int err;
  1866. unsigned long nr_pages;
  1867. err = kstrtoul(buf, 10, &nr_pages);
  1868. if (err || nr_pages > UINT_MAX)
  1869. return -EINVAL;
  1870. ksm_thread_pages_to_scan = nr_pages;
  1871. return count;
  1872. }
  1873. KSM_ATTR(pages_to_scan);
  1874. static ssize_t run_show(struct kobject *kobj, struct kobj_attribute *attr,
  1875. char *buf)
  1876. {
  1877. return sprintf(buf, "%lu\n", ksm_run);
  1878. }
  1879. static ssize_t run_store(struct kobject *kobj, struct kobj_attribute *attr,
  1880. const char *buf, size_t count)
  1881. {
  1882. int err;
  1883. unsigned long flags;
  1884. err = kstrtoul(buf, 10, &flags);
  1885. if (err || flags > UINT_MAX)
  1886. return -EINVAL;
  1887. if (flags > KSM_RUN_UNMERGE)
  1888. return -EINVAL;
  1889. /*
  1890. * KSM_RUN_MERGE sets ksmd running, and 0 stops it running.
  1891. * KSM_RUN_UNMERGE stops it running and unmerges all rmap_items,
  1892. * breaking COW to free the pages_shared (but leaves mm_slots
  1893. * on the list for when ksmd may be set running again).
  1894. */
  1895. mutex_lock(&ksm_thread_mutex);
  1896. wait_while_offlining();
  1897. if (ksm_run != flags) {
  1898. ksm_run = flags;
  1899. if (flags & KSM_RUN_UNMERGE) {
  1900. set_current_oom_origin();
  1901. err = unmerge_and_remove_all_rmap_items();
  1902. clear_current_oom_origin();
  1903. if (err) {
  1904. ksm_run = KSM_RUN_STOP;
  1905. count = err;
  1906. }
  1907. }
  1908. }
  1909. mutex_unlock(&ksm_thread_mutex);
  1910. if (flags & KSM_RUN_MERGE)
  1911. wake_up_interruptible(&ksm_thread_wait);
  1912. return count;
  1913. }
  1914. KSM_ATTR(run);
  1915. #ifdef CONFIG_NUMA
  1916. static ssize_t merge_across_nodes_show(struct kobject *kobj,
  1917. struct kobj_attribute *attr, char *buf)
  1918. {
  1919. return sprintf(buf, "%u\n", ksm_merge_across_nodes);
  1920. }
  1921. static ssize_t merge_across_nodes_store(struct kobject *kobj,
  1922. struct kobj_attribute *attr,
  1923. const char *buf, size_t count)
  1924. {
  1925. int err;
  1926. unsigned long knob;
  1927. err = kstrtoul(buf, 10, &knob);
  1928. if (err)
  1929. return err;
  1930. if (knob > 1)
  1931. return -EINVAL;
  1932. mutex_lock(&ksm_thread_mutex);
  1933. wait_while_offlining();
  1934. if (ksm_merge_across_nodes != knob) {
  1935. if (ksm_pages_shared || remove_all_stable_nodes())
  1936. err = -EBUSY;
  1937. else if (root_stable_tree == one_stable_tree) {
  1938. struct rb_root *buf;
  1939. /*
  1940. * This is the first time that we switch away from the
  1941. * default of merging across nodes: must now allocate
  1942. * a buffer to hold as many roots as may be needed.
  1943. * Allocate stable and unstable together:
  1944. * MAXSMP NODES_SHIFT 10 will use 16kB.
  1945. */
  1946. buf = kcalloc(nr_node_ids + nr_node_ids, sizeof(*buf),
  1947. GFP_KERNEL);
  1948. /* Let us assume that RB_ROOT is NULL is zero */
  1949. if (!buf)
  1950. err = -ENOMEM;
  1951. else {
  1952. root_stable_tree = buf;
  1953. root_unstable_tree = buf + nr_node_ids;
  1954. /* Stable tree is empty but not the unstable */
  1955. root_unstable_tree[0] = one_unstable_tree[0];
  1956. }
  1957. }
  1958. if (!err) {
  1959. ksm_merge_across_nodes = knob;
  1960. ksm_nr_node_ids = knob ? 1 : nr_node_ids;
  1961. }
  1962. }
  1963. mutex_unlock(&ksm_thread_mutex);
  1964. return err ? err : count;
  1965. }
  1966. KSM_ATTR(merge_across_nodes);
  1967. #endif
  1968. static ssize_t pages_shared_show(struct kobject *kobj,
  1969. struct kobj_attribute *attr, char *buf)
  1970. {
  1971. return sprintf(buf, "%lu\n", ksm_pages_shared);
  1972. }
  1973. KSM_ATTR_RO(pages_shared);
  1974. static ssize_t pages_sharing_show(struct kobject *kobj,
  1975. struct kobj_attribute *attr, char *buf)
  1976. {
  1977. return sprintf(buf, "%lu\n", ksm_pages_sharing);
  1978. }
  1979. KSM_ATTR_RO(pages_sharing);
  1980. static ssize_t pages_unshared_show(struct kobject *kobj,
  1981. struct kobj_attribute *attr, char *buf)
  1982. {
  1983. return sprintf(buf, "%lu\n", ksm_pages_unshared);
  1984. }
  1985. KSM_ATTR_RO(pages_unshared);
  1986. static ssize_t pages_volatile_show(struct kobject *kobj,
  1987. struct kobj_attribute *attr, char *buf)
  1988. {
  1989. long ksm_pages_volatile;
  1990. ksm_pages_volatile = ksm_rmap_items - ksm_pages_shared
  1991. - ksm_pages_sharing - ksm_pages_unshared;
  1992. /*
  1993. * It was not worth any locking to calculate that statistic,
  1994. * but it might therefore sometimes be negative: conceal that.
  1995. */
  1996. if (ksm_pages_volatile < 0)
  1997. ksm_pages_volatile = 0;
  1998. return sprintf(buf, "%ld\n", ksm_pages_volatile);
  1999. }
  2000. KSM_ATTR_RO(pages_volatile);
  2001. static ssize_t full_scans_show(struct kobject *kobj,
  2002. struct kobj_attribute *attr, char *buf)
  2003. {
  2004. return sprintf(buf, "%lu\n", ksm_scan.seqnr);
  2005. }
  2006. KSM_ATTR_RO(full_scans);
  2007. static struct attribute *ksm_attrs[] = {
  2008. &sleep_millisecs_attr.attr,
  2009. &pages_to_scan_attr.attr,
  2010. &run_attr.attr,
  2011. &pages_shared_attr.attr,
  2012. &pages_sharing_attr.attr,
  2013. &pages_unshared_attr.attr,
  2014. &pages_volatile_attr.attr,
  2015. &full_scans_attr.attr,
  2016. #ifdef CONFIG_NUMA
  2017. &merge_across_nodes_attr.attr,
  2018. #endif
  2019. NULL,
  2020. };
  2021. static struct attribute_group ksm_attr_group = {
  2022. .attrs = ksm_attrs,
  2023. .name = "ksm",
  2024. };
  2025. #endif /* CONFIG_SYSFS */
  2026. static int __init ksm_init(void)
  2027. {
  2028. struct task_struct *ksm_thread;
  2029. int err;
  2030. err = ksm_slab_init();
  2031. if (err)
  2032. goto out;
  2033. ksm_thread = kthread_run(ksm_scan_thread, NULL, "ksmd");
  2034. if (IS_ERR(ksm_thread)) {
  2035. pr_err("ksm: creating kthread failed\n");
  2036. err = PTR_ERR(ksm_thread);
  2037. goto out_free;
  2038. }
  2039. #ifdef CONFIG_SYSFS
  2040. err = sysfs_create_group(mm_kobj, &ksm_attr_group);
  2041. if (err) {
  2042. pr_err("ksm: register sysfs failed\n");
  2043. kthread_stop(ksm_thread);
  2044. goto out_free;
  2045. }
  2046. #else
  2047. ksm_run = KSM_RUN_MERGE; /* no way for user to start it */
  2048. #endif /* CONFIG_SYSFS */
  2049. #ifdef CONFIG_MEMORY_HOTREMOVE
  2050. /* There is no significance to this priority 100 */
  2051. hotplug_memory_notifier(ksm_memory_callback, 100);
  2052. #endif
  2053. return 0;
  2054. out_free:
  2055. ksm_slab_free();
  2056. out:
  2057. return err;
  2058. }
  2059. subsys_initcall(ksm_init);