huge_memory.c 75 KB

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  1. /*
  2. * Copyright (C) 2009 Red Hat, Inc.
  3. *
  4. * This work is licensed under the terms of the GNU GPL, version 2. See
  5. * the COPYING file in the top-level directory.
  6. */
  7. #include <linux/mm.h>
  8. #include <linux/sched.h>
  9. #include <linux/highmem.h>
  10. #include <linux/hugetlb.h>
  11. #include <linux/mmu_notifier.h>
  12. #include <linux/rmap.h>
  13. #include <linux/swap.h>
  14. #include <linux/shrinker.h>
  15. #include <linux/mm_inline.h>
  16. #include <linux/kthread.h>
  17. #include <linux/khugepaged.h>
  18. #include <linux/freezer.h>
  19. #include <linux/mman.h>
  20. #include <linux/pagemap.h>
  21. #include <linux/migrate.h>
  22. #include <linux/hashtable.h>
  23. #include <asm/tlb.h>
  24. #include <asm/pgalloc.h>
  25. #include "internal.h"
  26. /*
  27. * By default transparent hugepage support is disabled in order that avoid
  28. * to risk increase the memory footprint of applications without a guaranteed
  29. * benefit. When transparent hugepage support is enabled, is for all mappings,
  30. * and khugepaged scans all mappings.
  31. * Defrag is invoked by khugepaged hugepage allocations and by page faults
  32. * for all hugepage allocations.
  33. */
  34. unsigned long transparent_hugepage_flags __read_mostly =
  35. #ifdef CONFIG_TRANSPARENT_HUGEPAGE_ALWAYS
  36. (1<<TRANSPARENT_HUGEPAGE_FLAG)|
  37. #endif
  38. #ifdef CONFIG_TRANSPARENT_HUGEPAGE_MADVISE
  39. (1<<TRANSPARENT_HUGEPAGE_REQ_MADV_FLAG)|
  40. #endif
  41. (1<<TRANSPARENT_HUGEPAGE_DEFRAG_FLAG)|
  42. (1<<TRANSPARENT_HUGEPAGE_DEFRAG_KHUGEPAGED_FLAG)|
  43. (1<<TRANSPARENT_HUGEPAGE_USE_ZERO_PAGE_FLAG);
  44. /* default scan 8*512 pte (or vmas) every 30 second */
  45. static unsigned int khugepaged_pages_to_scan __read_mostly = HPAGE_PMD_NR*8;
  46. static unsigned int khugepaged_pages_collapsed;
  47. static unsigned int khugepaged_full_scans;
  48. static unsigned int khugepaged_scan_sleep_millisecs __read_mostly = 10000;
  49. /* during fragmentation poll the hugepage allocator once every minute */
  50. static unsigned int khugepaged_alloc_sleep_millisecs __read_mostly = 60000;
  51. static struct task_struct *khugepaged_thread __read_mostly;
  52. static DEFINE_MUTEX(khugepaged_mutex);
  53. static DEFINE_SPINLOCK(khugepaged_mm_lock);
  54. static DECLARE_WAIT_QUEUE_HEAD(khugepaged_wait);
  55. /*
  56. * default collapse hugepages if there is at least one pte mapped like
  57. * it would have happened if the vma was large enough during page
  58. * fault.
  59. */
  60. static unsigned int khugepaged_max_ptes_none __read_mostly = HPAGE_PMD_NR-1;
  61. static int khugepaged(void *none);
  62. static int khugepaged_slab_init(void);
  63. #define MM_SLOTS_HASH_BITS 10
  64. static __read_mostly DEFINE_HASHTABLE(mm_slots_hash, MM_SLOTS_HASH_BITS);
  65. static struct kmem_cache *mm_slot_cache __read_mostly;
  66. /**
  67. * struct mm_slot - hash lookup from mm to mm_slot
  68. * @hash: hash collision list
  69. * @mm_node: khugepaged scan list headed in khugepaged_scan.mm_head
  70. * @mm: the mm that this information is valid for
  71. */
  72. struct mm_slot {
  73. struct hlist_node hash;
  74. struct list_head mm_node;
  75. struct mm_struct *mm;
  76. };
  77. /**
  78. * struct khugepaged_scan - cursor for scanning
  79. * @mm_head: the head of the mm list to scan
  80. * @mm_slot: the current mm_slot we are scanning
  81. * @address: the next address inside that to be scanned
  82. *
  83. * There is only the one khugepaged_scan instance of this cursor structure.
  84. */
  85. struct khugepaged_scan {
  86. struct list_head mm_head;
  87. struct mm_slot *mm_slot;
  88. unsigned long address;
  89. };
  90. static struct khugepaged_scan khugepaged_scan = {
  91. .mm_head = LIST_HEAD_INIT(khugepaged_scan.mm_head),
  92. };
  93. static int set_recommended_min_free_kbytes(void)
  94. {
  95. struct zone *zone;
  96. int nr_zones = 0;
  97. unsigned long recommended_min;
  98. if (!khugepaged_enabled())
  99. return 0;
  100. for_each_populated_zone(zone)
  101. nr_zones++;
  102. /* Make sure at least 2 hugepages are free for MIGRATE_RESERVE */
  103. recommended_min = pageblock_nr_pages * nr_zones * 2;
  104. /*
  105. * Make sure that on average at least two pageblocks are almost free
  106. * of another type, one for a migratetype to fall back to and a
  107. * second to avoid subsequent fallbacks of other types There are 3
  108. * MIGRATE_TYPES we care about.
  109. */
  110. recommended_min += pageblock_nr_pages * nr_zones *
  111. MIGRATE_PCPTYPES * MIGRATE_PCPTYPES;
  112. /* don't ever allow to reserve more than 5% of the lowmem */
  113. recommended_min = min(recommended_min,
  114. (unsigned long) nr_free_buffer_pages() / 20);
  115. recommended_min <<= (PAGE_SHIFT-10);
  116. if (recommended_min > min_free_kbytes)
  117. min_free_kbytes = recommended_min;
  118. setup_per_zone_wmarks();
  119. return 0;
  120. }
  121. late_initcall(set_recommended_min_free_kbytes);
  122. static int start_khugepaged(void)
  123. {
  124. int err = 0;
  125. if (khugepaged_enabled()) {
  126. if (!khugepaged_thread)
  127. khugepaged_thread = kthread_run(khugepaged, NULL,
  128. "khugepaged");
  129. if (unlikely(IS_ERR(khugepaged_thread))) {
  130. printk(KERN_ERR
  131. "khugepaged: kthread_run(khugepaged) failed\n");
  132. err = PTR_ERR(khugepaged_thread);
  133. khugepaged_thread = NULL;
  134. }
  135. if (!list_empty(&khugepaged_scan.mm_head))
  136. wake_up_interruptible(&khugepaged_wait);
  137. set_recommended_min_free_kbytes();
  138. } else if (khugepaged_thread) {
  139. kthread_stop(khugepaged_thread);
  140. khugepaged_thread = NULL;
  141. }
  142. return err;
  143. }
  144. static atomic_t huge_zero_refcount;
  145. static struct page *huge_zero_page __read_mostly;
  146. static inline bool is_huge_zero_page(struct page *page)
  147. {
  148. return ACCESS_ONCE(huge_zero_page) == page;
  149. }
  150. static inline bool is_huge_zero_pmd(pmd_t pmd)
  151. {
  152. return is_huge_zero_page(pmd_page(pmd));
  153. }
  154. static struct page *get_huge_zero_page(void)
  155. {
  156. struct page *zero_page;
  157. retry:
  158. if (likely(atomic_inc_not_zero(&huge_zero_refcount)))
  159. return ACCESS_ONCE(huge_zero_page);
  160. zero_page = alloc_pages((GFP_TRANSHUGE | __GFP_ZERO) & ~__GFP_MOVABLE,
  161. HPAGE_PMD_ORDER);
  162. if (!zero_page) {
  163. count_vm_event(THP_ZERO_PAGE_ALLOC_FAILED);
  164. return NULL;
  165. }
  166. count_vm_event(THP_ZERO_PAGE_ALLOC);
  167. preempt_disable();
  168. if (cmpxchg(&huge_zero_page, NULL, zero_page)) {
  169. preempt_enable();
  170. __free_page(zero_page);
  171. goto retry;
  172. }
  173. /* We take additional reference here. It will be put back by shrinker */
  174. atomic_set(&huge_zero_refcount, 2);
  175. preempt_enable();
  176. return ACCESS_ONCE(huge_zero_page);
  177. }
  178. static void put_huge_zero_page(void)
  179. {
  180. /*
  181. * Counter should never go to zero here. Only shrinker can put
  182. * last reference.
  183. */
  184. BUG_ON(atomic_dec_and_test(&huge_zero_refcount));
  185. }
  186. static unsigned long shrink_huge_zero_page_count(struct shrinker *shrink,
  187. struct shrink_control *sc)
  188. {
  189. /* we can free zero page only if last reference remains */
  190. return atomic_read(&huge_zero_refcount) == 1 ? HPAGE_PMD_NR : 0;
  191. }
  192. static unsigned long shrink_huge_zero_page_scan(struct shrinker *shrink,
  193. struct shrink_control *sc)
  194. {
  195. if (atomic_cmpxchg(&huge_zero_refcount, 1, 0) == 1) {
  196. struct page *zero_page = xchg(&huge_zero_page, NULL);
  197. BUG_ON(zero_page == NULL);
  198. __free_page(zero_page);
  199. return HPAGE_PMD_NR;
  200. }
  201. return 0;
  202. }
  203. static struct shrinker huge_zero_page_shrinker = {
  204. .count_objects = shrink_huge_zero_page_count,
  205. .scan_objects = shrink_huge_zero_page_scan,
  206. .seeks = DEFAULT_SEEKS,
  207. };
  208. #ifdef CONFIG_SYSFS
  209. static ssize_t double_flag_show(struct kobject *kobj,
  210. struct kobj_attribute *attr, char *buf,
  211. enum transparent_hugepage_flag enabled,
  212. enum transparent_hugepage_flag req_madv)
  213. {
  214. if (test_bit(enabled, &transparent_hugepage_flags)) {
  215. VM_BUG_ON(test_bit(req_madv, &transparent_hugepage_flags));
  216. return sprintf(buf, "[always] madvise never\n");
  217. } else if (test_bit(req_madv, &transparent_hugepage_flags))
  218. return sprintf(buf, "always [madvise] never\n");
  219. else
  220. return sprintf(buf, "always madvise [never]\n");
  221. }
  222. static ssize_t double_flag_store(struct kobject *kobj,
  223. struct kobj_attribute *attr,
  224. const char *buf, size_t count,
  225. enum transparent_hugepage_flag enabled,
  226. enum transparent_hugepage_flag req_madv)
  227. {
  228. if (!memcmp("always", buf,
  229. min(sizeof("always")-1, count))) {
  230. set_bit(enabled, &transparent_hugepage_flags);
  231. clear_bit(req_madv, &transparent_hugepage_flags);
  232. } else if (!memcmp("madvise", buf,
  233. min(sizeof("madvise")-1, count))) {
  234. clear_bit(enabled, &transparent_hugepage_flags);
  235. set_bit(req_madv, &transparent_hugepage_flags);
  236. } else if (!memcmp("never", buf,
  237. min(sizeof("never")-1, count))) {
  238. clear_bit(enabled, &transparent_hugepage_flags);
  239. clear_bit(req_madv, &transparent_hugepage_flags);
  240. } else
  241. return -EINVAL;
  242. return count;
  243. }
  244. static ssize_t enabled_show(struct kobject *kobj,
  245. struct kobj_attribute *attr, char *buf)
  246. {
  247. return double_flag_show(kobj, attr, buf,
  248. TRANSPARENT_HUGEPAGE_FLAG,
  249. TRANSPARENT_HUGEPAGE_REQ_MADV_FLAG);
  250. }
  251. static ssize_t enabled_store(struct kobject *kobj,
  252. struct kobj_attribute *attr,
  253. const char *buf, size_t count)
  254. {
  255. ssize_t ret;
  256. ret = double_flag_store(kobj, attr, buf, count,
  257. TRANSPARENT_HUGEPAGE_FLAG,
  258. TRANSPARENT_HUGEPAGE_REQ_MADV_FLAG);
  259. if (ret > 0) {
  260. int err;
  261. mutex_lock(&khugepaged_mutex);
  262. err = start_khugepaged();
  263. mutex_unlock(&khugepaged_mutex);
  264. if (err)
  265. ret = err;
  266. }
  267. return ret;
  268. }
  269. static struct kobj_attribute enabled_attr =
  270. __ATTR(enabled, 0644, enabled_show, enabled_store);
  271. static ssize_t single_flag_show(struct kobject *kobj,
  272. struct kobj_attribute *attr, char *buf,
  273. enum transparent_hugepage_flag flag)
  274. {
  275. return sprintf(buf, "%d\n",
  276. !!test_bit(flag, &transparent_hugepage_flags));
  277. }
  278. static ssize_t single_flag_store(struct kobject *kobj,
  279. struct kobj_attribute *attr,
  280. const char *buf, size_t count,
  281. enum transparent_hugepage_flag flag)
  282. {
  283. unsigned long value;
  284. int ret;
  285. ret = kstrtoul(buf, 10, &value);
  286. if (ret < 0)
  287. return ret;
  288. if (value > 1)
  289. return -EINVAL;
  290. if (value)
  291. set_bit(flag, &transparent_hugepage_flags);
  292. else
  293. clear_bit(flag, &transparent_hugepage_flags);
  294. return count;
  295. }
  296. /*
  297. * Currently defrag only disables __GFP_NOWAIT for allocation. A blind
  298. * __GFP_REPEAT is too aggressive, it's never worth swapping tons of
  299. * memory just to allocate one more hugepage.
  300. */
  301. static ssize_t defrag_show(struct kobject *kobj,
  302. struct kobj_attribute *attr, char *buf)
  303. {
  304. return double_flag_show(kobj, attr, buf,
  305. TRANSPARENT_HUGEPAGE_DEFRAG_FLAG,
  306. TRANSPARENT_HUGEPAGE_DEFRAG_REQ_MADV_FLAG);
  307. }
  308. static ssize_t defrag_store(struct kobject *kobj,
  309. struct kobj_attribute *attr,
  310. const char *buf, size_t count)
  311. {
  312. return double_flag_store(kobj, attr, buf, count,
  313. TRANSPARENT_HUGEPAGE_DEFRAG_FLAG,
  314. TRANSPARENT_HUGEPAGE_DEFRAG_REQ_MADV_FLAG);
  315. }
  316. static struct kobj_attribute defrag_attr =
  317. __ATTR(defrag, 0644, defrag_show, defrag_store);
  318. static ssize_t use_zero_page_show(struct kobject *kobj,
  319. struct kobj_attribute *attr, char *buf)
  320. {
  321. return single_flag_show(kobj, attr, buf,
  322. TRANSPARENT_HUGEPAGE_USE_ZERO_PAGE_FLAG);
  323. }
  324. static ssize_t use_zero_page_store(struct kobject *kobj,
  325. struct kobj_attribute *attr, const char *buf, size_t count)
  326. {
  327. return single_flag_store(kobj, attr, buf, count,
  328. TRANSPARENT_HUGEPAGE_USE_ZERO_PAGE_FLAG);
  329. }
  330. static struct kobj_attribute use_zero_page_attr =
  331. __ATTR(use_zero_page, 0644, use_zero_page_show, use_zero_page_store);
  332. #ifdef CONFIG_DEBUG_VM
  333. static ssize_t debug_cow_show(struct kobject *kobj,
  334. struct kobj_attribute *attr, char *buf)
  335. {
  336. return single_flag_show(kobj, attr, buf,
  337. TRANSPARENT_HUGEPAGE_DEBUG_COW_FLAG);
  338. }
  339. static ssize_t debug_cow_store(struct kobject *kobj,
  340. struct kobj_attribute *attr,
  341. const char *buf, size_t count)
  342. {
  343. return single_flag_store(kobj, attr, buf, count,
  344. TRANSPARENT_HUGEPAGE_DEBUG_COW_FLAG);
  345. }
  346. static struct kobj_attribute debug_cow_attr =
  347. __ATTR(debug_cow, 0644, debug_cow_show, debug_cow_store);
  348. #endif /* CONFIG_DEBUG_VM */
  349. static struct attribute *hugepage_attr[] = {
  350. &enabled_attr.attr,
  351. &defrag_attr.attr,
  352. &use_zero_page_attr.attr,
  353. #ifdef CONFIG_DEBUG_VM
  354. &debug_cow_attr.attr,
  355. #endif
  356. NULL,
  357. };
  358. static struct attribute_group hugepage_attr_group = {
  359. .attrs = hugepage_attr,
  360. };
  361. static ssize_t scan_sleep_millisecs_show(struct kobject *kobj,
  362. struct kobj_attribute *attr,
  363. char *buf)
  364. {
  365. return sprintf(buf, "%u\n", khugepaged_scan_sleep_millisecs);
  366. }
  367. static ssize_t scan_sleep_millisecs_store(struct kobject *kobj,
  368. struct kobj_attribute *attr,
  369. const char *buf, size_t count)
  370. {
  371. unsigned long msecs;
  372. int err;
  373. err = kstrtoul(buf, 10, &msecs);
  374. if (err || msecs > UINT_MAX)
  375. return -EINVAL;
  376. khugepaged_scan_sleep_millisecs = msecs;
  377. wake_up_interruptible(&khugepaged_wait);
  378. return count;
  379. }
  380. static struct kobj_attribute scan_sleep_millisecs_attr =
  381. __ATTR(scan_sleep_millisecs, 0644, scan_sleep_millisecs_show,
  382. scan_sleep_millisecs_store);
  383. static ssize_t alloc_sleep_millisecs_show(struct kobject *kobj,
  384. struct kobj_attribute *attr,
  385. char *buf)
  386. {
  387. return sprintf(buf, "%u\n", khugepaged_alloc_sleep_millisecs);
  388. }
  389. static ssize_t alloc_sleep_millisecs_store(struct kobject *kobj,
  390. struct kobj_attribute *attr,
  391. const char *buf, size_t count)
  392. {
  393. unsigned long msecs;
  394. int err;
  395. err = kstrtoul(buf, 10, &msecs);
  396. if (err || msecs > UINT_MAX)
  397. return -EINVAL;
  398. khugepaged_alloc_sleep_millisecs = msecs;
  399. wake_up_interruptible(&khugepaged_wait);
  400. return count;
  401. }
  402. static struct kobj_attribute alloc_sleep_millisecs_attr =
  403. __ATTR(alloc_sleep_millisecs, 0644, alloc_sleep_millisecs_show,
  404. alloc_sleep_millisecs_store);
  405. static ssize_t pages_to_scan_show(struct kobject *kobj,
  406. struct kobj_attribute *attr,
  407. char *buf)
  408. {
  409. return sprintf(buf, "%u\n", khugepaged_pages_to_scan);
  410. }
  411. static ssize_t pages_to_scan_store(struct kobject *kobj,
  412. struct kobj_attribute *attr,
  413. const char *buf, size_t count)
  414. {
  415. int err;
  416. unsigned long pages;
  417. err = kstrtoul(buf, 10, &pages);
  418. if (err || !pages || pages > UINT_MAX)
  419. return -EINVAL;
  420. khugepaged_pages_to_scan = pages;
  421. return count;
  422. }
  423. static struct kobj_attribute pages_to_scan_attr =
  424. __ATTR(pages_to_scan, 0644, pages_to_scan_show,
  425. pages_to_scan_store);
  426. static ssize_t pages_collapsed_show(struct kobject *kobj,
  427. struct kobj_attribute *attr,
  428. char *buf)
  429. {
  430. return sprintf(buf, "%u\n", khugepaged_pages_collapsed);
  431. }
  432. static struct kobj_attribute pages_collapsed_attr =
  433. __ATTR_RO(pages_collapsed);
  434. static ssize_t full_scans_show(struct kobject *kobj,
  435. struct kobj_attribute *attr,
  436. char *buf)
  437. {
  438. return sprintf(buf, "%u\n", khugepaged_full_scans);
  439. }
  440. static struct kobj_attribute full_scans_attr =
  441. __ATTR_RO(full_scans);
  442. static ssize_t khugepaged_defrag_show(struct kobject *kobj,
  443. struct kobj_attribute *attr, char *buf)
  444. {
  445. return single_flag_show(kobj, attr, buf,
  446. TRANSPARENT_HUGEPAGE_DEFRAG_KHUGEPAGED_FLAG);
  447. }
  448. static ssize_t khugepaged_defrag_store(struct kobject *kobj,
  449. struct kobj_attribute *attr,
  450. const char *buf, size_t count)
  451. {
  452. return single_flag_store(kobj, attr, buf, count,
  453. TRANSPARENT_HUGEPAGE_DEFRAG_KHUGEPAGED_FLAG);
  454. }
  455. static struct kobj_attribute khugepaged_defrag_attr =
  456. __ATTR(defrag, 0644, khugepaged_defrag_show,
  457. khugepaged_defrag_store);
  458. /*
  459. * max_ptes_none controls if khugepaged should collapse hugepages over
  460. * any unmapped ptes in turn potentially increasing the memory
  461. * footprint of the vmas. When max_ptes_none is 0 khugepaged will not
  462. * reduce the available free memory in the system as it
  463. * runs. Increasing max_ptes_none will instead potentially reduce the
  464. * free memory in the system during the khugepaged scan.
  465. */
  466. static ssize_t khugepaged_max_ptes_none_show(struct kobject *kobj,
  467. struct kobj_attribute *attr,
  468. char *buf)
  469. {
  470. return sprintf(buf, "%u\n", khugepaged_max_ptes_none);
  471. }
  472. static ssize_t khugepaged_max_ptes_none_store(struct kobject *kobj,
  473. struct kobj_attribute *attr,
  474. const char *buf, size_t count)
  475. {
  476. int err;
  477. unsigned long max_ptes_none;
  478. err = kstrtoul(buf, 10, &max_ptes_none);
  479. if (err || max_ptes_none > HPAGE_PMD_NR-1)
  480. return -EINVAL;
  481. khugepaged_max_ptes_none = max_ptes_none;
  482. return count;
  483. }
  484. static struct kobj_attribute khugepaged_max_ptes_none_attr =
  485. __ATTR(max_ptes_none, 0644, khugepaged_max_ptes_none_show,
  486. khugepaged_max_ptes_none_store);
  487. static struct attribute *khugepaged_attr[] = {
  488. &khugepaged_defrag_attr.attr,
  489. &khugepaged_max_ptes_none_attr.attr,
  490. &pages_to_scan_attr.attr,
  491. &pages_collapsed_attr.attr,
  492. &full_scans_attr.attr,
  493. &scan_sleep_millisecs_attr.attr,
  494. &alloc_sleep_millisecs_attr.attr,
  495. NULL,
  496. };
  497. static struct attribute_group khugepaged_attr_group = {
  498. .attrs = khugepaged_attr,
  499. .name = "khugepaged",
  500. };
  501. static int __init hugepage_init_sysfs(struct kobject **hugepage_kobj)
  502. {
  503. int err;
  504. *hugepage_kobj = kobject_create_and_add("transparent_hugepage", mm_kobj);
  505. if (unlikely(!*hugepage_kobj)) {
  506. printk(KERN_ERR "hugepage: failed to create transparent hugepage kobject\n");
  507. return -ENOMEM;
  508. }
  509. err = sysfs_create_group(*hugepage_kobj, &hugepage_attr_group);
  510. if (err) {
  511. printk(KERN_ERR "hugepage: failed to register transparent hugepage group\n");
  512. goto delete_obj;
  513. }
  514. err = sysfs_create_group(*hugepage_kobj, &khugepaged_attr_group);
  515. if (err) {
  516. printk(KERN_ERR "hugepage: failed to register transparent hugepage group\n");
  517. goto remove_hp_group;
  518. }
  519. return 0;
  520. remove_hp_group:
  521. sysfs_remove_group(*hugepage_kobj, &hugepage_attr_group);
  522. delete_obj:
  523. kobject_put(*hugepage_kobj);
  524. return err;
  525. }
  526. static void __init hugepage_exit_sysfs(struct kobject *hugepage_kobj)
  527. {
  528. sysfs_remove_group(hugepage_kobj, &khugepaged_attr_group);
  529. sysfs_remove_group(hugepage_kobj, &hugepage_attr_group);
  530. kobject_put(hugepage_kobj);
  531. }
  532. #else
  533. static inline int hugepage_init_sysfs(struct kobject **hugepage_kobj)
  534. {
  535. return 0;
  536. }
  537. static inline void hugepage_exit_sysfs(struct kobject *hugepage_kobj)
  538. {
  539. }
  540. #endif /* CONFIG_SYSFS */
  541. static int __init hugepage_init(void)
  542. {
  543. int err;
  544. struct kobject *hugepage_kobj;
  545. if (!has_transparent_hugepage()) {
  546. transparent_hugepage_flags = 0;
  547. return -EINVAL;
  548. }
  549. err = hugepage_init_sysfs(&hugepage_kobj);
  550. if (err)
  551. return err;
  552. err = khugepaged_slab_init();
  553. if (err)
  554. goto out;
  555. register_shrinker(&huge_zero_page_shrinker);
  556. /*
  557. * By default disable transparent hugepages on smaller systems,
  558. * where the extra memory used could hurt more than TLB overhead
  559. * is likely to save. The admin can still enable it through /sys.
  560. */
  561. if (totalram_pages < (512 << (20 - PAGE_SHIFT)))
  562. transparent_hugepage_flags = 0;
  563. start_khugepaged();
  564. return 0;
  565. out:
  566. hugepage_exit_sysfs(hugepage_kobj);
  567. return err;
  568. }
  569. module_init(hugepage_init)
  570. static int __init setup_transparent_hugepage(char *str)
  571. {
  572. int ret = 0;
  573. if (!str)
  574. goto out;
  575. if (!strcmp(str, "always")) {
  576. set_bit(TRANSPARENT_HUGEPAGE_FLAG,
  577. &transparent_hugepage_flags);
  578. clear_bit(TRANSPARENT_HUGEPAGE_REQ_MADV_FLAG,
  579. &transparent_hugepage_flags);
  580. ret = 1;
  581. } else if (!strcmp(str, "madvise")) {
  582. clear_bit(TRANSPARENT_HUGEPAGE_FLAG,
  583. &transparent_hugepage_flags);
  584. set_bit(TRANSPARENT_HUGEPAGE_REQ_MADV_FLAG,
  585. &transparent_hugepage_flags);
  586. ret = 1;
  587. } else if (!strcmp(str, "never")) {
  588. clear_bit(TRANSPARENT_HUGEPAGE_FLAG,
  589. &transparent_hugepage_flags);
  590. clear_bit(TRANSPARENT_HUGEPAGE_REQ_MADV_FLAG,
  591. &transparent_hugepage_flags);
  592. ret = 1;
  593. }
  594. out:
  595. if (!ret)
  596. printk(KERN_WARNING
  597. "transparent_hugepage= cannot parse, ignored\n");
  598. return ret;
  599. }
  600. __setup("transparent_hugepage=", setup_transparent_hugepage);
  601. pmd_t maybe_pmd_mkwrite(pmd_t pmd, struct vm_area_struct *vma)
  602. {
  603. if (likely(vma->vm_flags & VM_WRITE))
  604. pmd = pmd_mkwrite(pmd);
  605. return pmd;
  606. }
  607. static inline pmd_t mk_huge_pmd(struct page *page, pgprot_t prot)
  608. {
  609. pmd_t entry;
  610. entry = mk_pmd(page, prot);
  611. entry = pmd_mkhuge(entry);
  612. return entry;
  613. }
  614. static int __do_huge_pmd_anonymous_page(struct mm_struct *mm,
  615. struct vm_area_struct *vma,
  616. unsigned long haddr, pmd_t *pmd,
  617. struct page *page)
  618. {
  619. pgtable_t pgtable;
  620. VM_BUG_ON(!PageCompound(page));
  621. pgtable = pte_alloc_one(mm, haddr);
  622. if (unlikely(!pgtable))
  623. return VM_FAULT_OOM;
  624. clear_huge_page(page, haddr, HPAGE_PMD_NR);
  625. /*
  626. * The memory barrier inside __SetPageUptodate makes sure that
  627. * clear_huge_page writes become visible before the set_pmd_at()
  628. * write.
  629. */
  630. __SetPageUptodate(page);
  631. spin_lock(&mm->page_table_lock);
  632. if (unlikely(!pmd_none(*pmd))) {
  633. spin_unlock(&mm->page_table_lock);
  634. mem_cgroup_uncharge_page(page);
  635. put_page(page);
  636. pte_free(mm, pgtable);
  637. } else {
  638. pmd_t entry;
  639. entry = mk_huge_pmd(page, vma->vm_page_prot);
  640. entry = maybe_pmd_mkwrite(pmd_mkdirty(entry), vma);
  641. page_add_new_anon_rmap(page, vma, haddr);
  642. pgtable_trans_huge_deposit(mm, pmd, pgtable);
  643. set_pmd_at(mm, haddr, pmd, entry);
  644. add_mm_counter(mm, MM_ANONPAGES, HPAGE_PMD_NR);
  645. mm->nr_ptes++;
  646. spin_unlock(&mm->page_table_lock);
  647. }
  648. return 0;
  649. }
  650. static inline gfp_t alloc_hugepage_gfpmask(int defrag, gfp_t extra_gfp)
  651. {
  652. return (GFP_TRANSHUGE & ~(defrag ? 0 : __GFP_WAIT)) | extra_gfp;
  653. }
  654. static inline struct page *alloc_hugepage_vma(int defrag,
  655. struct vm_area_struct *vma,
  656. unsigned long haddr, int nd,
  657. gfp_t extra_gfp)
  658. {
  659. return alloc_pages_vma(alloc_hugepage_gfpmask(defrag, extra_gfp),
  660. HPAGE_PMD_ORDER, vma, haddr, nd);
  661. }
  662. #ifndef CONFIG_NUMA
  663. static inline struct page *alloc_hugepage(int defrag)
  664. {
  665. return alloc_pages(alloc_hugepage_gfpmask(defrag, 0),
  666. HPAGE_PMD_ORDER);
  667. }
  668. #endif
  669. static bool set_huge_zero_page(pgtable_t pgtable, struct mm_struct *mm,
  670. struct vm_area_struct *vma, unsigned long haddr, pmd_t *pmd,
  671. struct page *zero_page)
  672. {
  673. pmd_t entry;
  674. if (!pmd_none(*pmd))
  675. return false;
  676. entry = mk_pmd(zero_page, vma->vm_page_prot);
  677. entry = pmd_wrprotect(entry);
  678. entry = pmd_mkhuge(entry);
  679. pgtable_trans_huge_deposit(mm, pmd, pgtable);
  680. set_pmd_at(mm, haddr, pmd, entry);
  681. mm->nr_ptes++;
  682. return true;
  683. }
  684. int do_huge_pmd_anonymous_page(struct mm_struct *mm, struct vm_area_struct *vma,
  685. unsigned long address, pmd_t *pmd,
  686. unsigned int flags)
  687. {
  688. struct page *page;
  689. unsigned long haddr = address & HPAGE_PMD_MASK;
  690. if (haddr < vma->vm_start || haddr + HPAGE_PMD_SIZE > vma->vm_end)
  691. return VM_FAULT_FALLBACK;
  692. if (unlikely(anon_vma_prepare(vma)))
  693. return VM_FAULT_OOM;
  694. if (unlikely(khugepaged_enter(vma)))
  695. return VM_FAULT_OOM;
  696. if (!(flags & FAULT_FLAG_WRITE) &&
  697. transparent_hugepage_use_zero_page()) {
  698. pgtable_t pgtable;
  699. struct page *zero_page;
  700. bool set;
  701. pgtable = pte_alloc_one(mm, haddr);
  702. if (unlikely(!pgtable))
  703. return VM_FAULT_OOM;
  704. zero_page = get_huge_zero_page();
  705. if (unlikely(!zero_page)) {
  706. pte_free(mm, pgtable);
  707. count_vm_event(THP_FAULT_FALLBACK);
  708. return VM_FAULT_FALLBACK;
  709. }
  710. spin_lock(&mm->page_table_lock);
  711. set = set_huge_zero_page(pgtable, mm, vma, haddr, pmd,
  712. zero_page);
  713. spin_unlock(&mm->page_table_lock);
  714. if (!set) {
  715. pte_free(mm, pgtable);
  716. put_huge_zero_page();
  717. }
  718. return 0;
  719. }
  720. page = alloc_hugepage_vma(transparent_hugepage_defrag(vma),
  721. vma, haddr, numa_node_id(), 0);
  722. if (unlikely(!page)) {
  723. count_vm_event(THP_FAULT_FALLBACK);
  724. return VM_FAULT_FALLBACK;
  725. }
  726. if (unlikely(mem_cgroup_newpage_charge(page, mm, GFP_KERNEL))) {
  727. put_page(page);
  728. count_vm_event(THP_FAULT_FALLBACK);
  729. return VM_FAULT_FALLBACK;
  730. }
  731. if (unlikely(__do_huge_pmd_anonymous_page(mm, vma, haddr, pmd, page))) {
  732. mem_cgroup_uncharge_page(page);
  733. put_page(page);
  734. count_vm_event(THP_FAULT_FALLBACK);
  735. return VM_FAULT_FALLBACK;
  736. }
  737. count_vm_event(THP_FAULT_ALLOC);
  738. return 0;
  739. }
  740. int copy_huge_pmd(struct mm_struct *dst_mm, struct mm_struct *src_mm,
  741. pmd_t *dst_pmd, pmd_t *src_pmd, unsigned long addr,
  742. struct vm_area_struct *vma)
  743. {
  744. struct page *src_page;
  745. pmd_t pmd;
  746. pgtable_t pgtable;
  747. int ret;
  748. ret = -ENOMEM;
  749. pgtable = pte_alloc_one(dst_mm, addr);
  750. if (unlikely(!pgtable))
  751. goto out;
  752. spin_lock(&dst_mm->page_table_lock);
  753. spin_lock_nested(&src_mm->page_table_lock, SINGLE_DEPTH_NESTING);
  754. ret = -EAGAIN;
  755. pmd = *src_pmd;
  756. if (unlikely(!pmd_trans_huge(pmd))) {
  757. pte_free(dst_mm, pgtable);
  758. goto out_unlock;
  759. }
  760. /*
  761. * mm->page_table_lock is enough to be sure that huge zero pmd is not
  762. * under splitting since we don't split the page itself, only pmd to
  763. * a page table.
  764. */
  765. if (is_huge_zero_pmd(pmd)) {
  766. struct page *zero_page;
  767. bool set;
  768. /*
  769. * get_huge_zero_page() will never allocate a new page here,
  770. * since we already have a zero page to copy. It just takes a
  771. * reference.
  772. */
  773. zero_page = get_huge_zero_page();
  774. set = set_huge_zero_page(pgtable, dst_mm, vma, addr, dst_pmd,
  775. zero_page);
  776. BUG_ON(!set); /* unexpected !pmd_none(dst_pmd) */
  777. ret = 0;
  778. goto out_unlock;
  779. }
  780. if (unlikely(pmd_trans_splitting(pmd))) {
  781. /* split huge page running from under us */
  782. spin_unlock(&src_mm->page_table_lock);
  783. spin_unlock(&dst_mm->page_table_lock);
  784. pte_free(dst_mm, pgtable);
  785. wait_split_huge_page(vma->anon_vma, src_pmd); /* src_vma */
  786. goto out;
  787. }
  788. src_page = pmd_page(pmd);
  789. VM_BUG_ON(!PageHead(src_page));
  790. get_page(src_page);
  791. page_dup_rmap(src_page);
  792. add_mm_counter(dst_mm, MM_ANONPAGES, HPAGE_PMD_NR);
  793. pmdp_set_wrprotect(src_mm, addr, src_pmd);
  794. pmd = pmd_mkold(pmd_wrprotect(pmd));
  795. pgtable_trans_huge_deposit(dst_mm, dst_pmd, pgtable);
  796. set_pmd_at(dst_mm, addr, dst_pmd, pmd);
  797. dst_mm->nr_ptes++;
  798. ret = 0;
  799. out_unlock:
  800. spin_unlock(&src_mm->page_table_lock);
  801. spin_unlock(&dst_mm->page_table_lock);
  802. out:
  803. return ret;
  804. }
  805. void huge_pmd_set_accessed(struct mm_struct *mm,
  806. struct vm_area_struct *vma,
  807. unsigned long address,
  808. pmd_t *pmd, pmd_t orig_pmd,
  809. int dirty)
  810. {
  811. pmd_t entry;
  812. unsigned long haddr;
  813. spin_lock(&mm->page_table_lock);
  814. if (unlikely(!pmd_same(*pmd, orig_pmd)))
  815. goto unlock;
  816. entry = pmd_mkyoung(orig_pmd);
  817. haddr = address & HPAGE_PMD_MASK;
  818. if (pmdp_set_access_flags(vma, haddr, pmd, entry, dirty))
  819. update_mmu_cache_pmd(vma, address, pmd);
  820. unlock:
  821. spin_unlock(&mm->page_table_lock);
  822. }
  823. static int do_huge_pmd_wp_zero_page_fallback(struct mm_struct *mm,
  824. struct vm_area_struct *vma, unsigned long address,
  825. pmd_t *pmd, pmd_t orig_pmd, unsigned long haddr)
  826. {
  827. pgtable_t pgtable;
  828. pmd_t _pmd;
  829. struct page *page;
  830. int i, ret = 0;
  831. unsigned long mmun_start; /* For mmu_notifiers */
  832. unsigned long mmun_end; /* For mmu_notifiers */
  833. page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, address);
  834. if (!page) {
  835. ret |= VM_FAULT_OOM;
  836. goto out;
  837. }
  838. if (mem_cgroup_newpage_charge(page, mm, GFP_KERNEL)) {
  839. put_page(page);
  840. ret |= VM_FAULT_OOM;
  841. goto out;
  842. }
  843. clear_user_highpage(page, address);
  844. __SetPageUptodate(page);
  845. mmun_start = haddr;
  846. mmun_end = haddr + HPAGE_PMD_SIZE;
  847. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  848. spin_lock(&mm->page_table_lock);
  849. if (unlikely(!pmd_same(*pmd, orig_pmd)))
  850. goto out_free_page;
  851. pmdp_clear_flush(vma, haddr, pmd);
  852. /* leave pmd empty until pte is filled */
  853. pgtable = pgtable_trans_huge_withdraw(mm, pmd);
  854. pmd_populate(mm, &_pmd, pgtable);
  855. for (i = 0; i < HPAGE_PMD_NR; i++, haddr += PAGE_SIZE) {
  856. pte_t *pte, entry;
  857. if (haddr == (address & PAGE_MASK)) {
  858. entry = mk_pte(page, vma->vm_page_prot);
  859. entry = maybe_mkwrite(pte_mkdirty(entry), vma);
  860. page_add_new_anon_rmap(page, vma, haddr);
  861. } else {
  862. entry = pfn_pte(my_zero_pfn(haddr), vma->vm_page_prot);
  863. entry = pte_mkspecial(entry);
  864. }
  865. pte = pte_offset_map(&_pmd, haddr);
  866. VM_BUG_ON(!pte_none(*pte));
  867. set_pte_at(mm, haddr, pte, entry);
  868. pte_unmap(pte);
  869. }
  870. smp_wmb(); /* make pte visible before pmd */
  871. pmd_populate(mm, pmd, pgtable);
  872. spin_unlock(&mm->page_table_lock);
  873. put_huge_zero_page();
  874. inc_mm_counter(mm, MM_ANONPAGES);
  875. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  876. ret |= VM_FAULT_WRITE;
  877. out:
  878. return ret;
  879. out_free_page:
  880. spin_unlock(&mm->page_table_lock);
  881. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  882. mem_cgroup_uncharge_page(page);
  883. put_page(page);
  884. goto out;
  885. }
  886. static int do_huge_pmd_wp_page_fallback(struct mm_struct *mm,
  887. struct vm_area_struct *vma,
  888. unsigned long address,
  889. pmd_t *pmd, pmd_t orig_pmd,
  890. struct page *page,
  891. unsigned long haddr)
  892. {
  893. pgtable_t pgtable;
  894. pmd_t _pmd;
  895. int ret = 0, i;
  896. struct page **pages;
  897. unsigned long mmun_start; /* For mmu_notifiers */
  898. unsigned long mmun_end; /* For mmu_notifiers */
  899. pages = kmalloc(sizeof(struct page *) * HPAGE_PMD_NR,
  900. GFP_KERNEL);
  901. if (unlikely(!pages)) {
  902. ret |= VM_FAULT_OOM;
  903. goto out;
  904. }
  905. for (i = 0; i < HPAGE_PMD_NR; i++) {
  906. pages[i] = alloc_page_vma_node(GFP_HIGHUSER_MOVABLE |
  907. __GFP_OTHER_NODE,
  908. vma, address, page_to_nid(page));
  909. if (unlikely(!pages[i] ||
  910. mem_cgroup_newpage_charge(pages[i], mm,
  911. GFP_KERNEL))) {
  912. if (pages[i])
  913. put_page(pages[i]);
  914. mem_cgroup_uncharge_start();
  915. while (--i >= 0) {
  916. mem_cgroup_uncharge_page(pages[i]);
  917. put_page(pages[i]);
  918. }
  919. mem_cgroup_uncharge_end();
  920. kfree(pages);
  921. ret |= VM_FAULT_OOM;
  922. goto out;
  923. }
  924. }
  925. for (i = 0; i < HPAGE_PMD_NR; i++) {
  926. copy_user_highpage(pages[i], page + i,
  927. haddr + PAGE_SIZE * i, vma);
  928. __SetPageUptodate(pages[i]);
  929. cond_resched();
  930. }
  931. mmun_start = haddr;
  932. mmun_end = haddr + HPAGE_PMD_SIZE;
  933. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  934. spin_lock(&mm->page_table_lock);
  935. if (unlikely(!pmd_same(*pmd, orig_pmd)))
  936. goto out_free_pages;
  937. VM_BUG_ON(!PageHead(page));
  938. pmdp_clear_flush(vma, haddr, pmd);
  939. /* leave pmd empty until pte is filled */
  940. pgtable = pgtable_trans_huge_withdraw(mm, pmd);
  941. pmd_populate(mm, &_pmd, pgtable);
  942. for (i = 0; i < HPAGE_PMD_NR; i++, haddr += PAGE_SIZE) {
  943. pte_t *pte, entry;
  944. entry = mk_pte(pages[i], vma->vm_page_prot);
  945. entry = maybe_mkwrite(pte_mkdirty(entry), vma);
  946. page_add_new_anon_rmap(pages[i], vma, haddr);
  947. pte = pte_offset_map(&_pmd, haddr);
  948. VM_BUG_ON(!pte_none(*pte));
  949. set_pte_at(mm, haddr, pte, entry);
  950. pte_unmap(pte);
  951. }
  952. kfree(pages);
  953. smp_wmb(); /* make pte visible before pmd */
  954. pmd_populate(mm, pmd, pgtable);
  955. page_remove_rmap(page);
  956. spin_unlock(&mm->page_table_lock);
  957. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  958. ret |= VM_FAULT_WRITE;
  959. put_page(page);
  960. out:
  961. return ret;
  962. out_free_pages:
  963. spin_unlock(&mm->page_table_lock);
  964. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  965. mem_cgroup_uncharge_start();
  966. for (i = 0; i < HPAGE_PMD_NR; i++) {
  967. mem_cgroup_uncharge_page(pages[i]);
  968. put_page(pages[i]);
  969. }
  970. mem_cgroup_uncharge_end();
  971. kfree(pages);
  972. goto out;
  973. }
  974. int do_huge_pmd_wp_page(struct mm_struct *mm, struct vm_area_struct *vma,
  975. unsigned long address, pmd_t *pmd, pmd_t orig_pmd)
  976. {
  977. int ret = 0;
  978. struct page *page = NULL, *new_page;
  979. unsigned long haddr;
  980. unsigned long mmun_start; /* For mmu_notifiers */
  981. unsigned long mmun_end; /* For mmu_notifiers */
  982. VM_BUG_ON(!vma->anon_vma);
  983. haddr = address & HPAGE_PMD_MASK;
  984. if (is_huge_zero_pmd(orig_pmd))
  985. goto alloc;
  986. spin_lock(&mm->page_table_lock);
  987. if (unlikely(!pmd_same(*pmd, orig_pmd)))
  988. goto out_unlock;
  989. page = pmd_page(orig_pmd);
  990. VM_BUG_ON(!PageCompound(page) || !PageHead(page));
  991. if (page_mapcount(page) == 1) {
  992. pmd_t entry;
  993. entry = pmd_mkyoung(orig_pmd);
  994. entry = maybe_pmd_mkwrite(pmd_mkdirty(entry), vma);
  995. if (pmdp_set_access_flags(vma, haddr, pmd, entry, 1))
  996. update_mmu_cache_pmd(vma, address, pmd);
  997. ret |= VM_FAULT_WRITE;
  998. goto out_unlock;
  999. }
  1000. get_page(page);
  1001. spin_unlock(&mm->page_table_lock);
  1002. alloc:
  1003. if (transparent_hugepage_enabled(vma) &&
  1004. !transparent_hugepage_debug_cow())
  1005. new_page = alloc_hugepage_vma(transparent_hugepage_defrag(vma),
  1006. vma, haddr, numa_node_id(), 0);
  1007. else
  1008. new_page = NULL;
  1009. if (unlikely(!new_page)) {
  1010. if (is_huge_zero_pmd(orig_pmd)) {
  1011. ret = do_huge_pmd_wp_zero_page_fallback(mm, vma,
  1012. address, pmd, orig_pmd, haddr);
  1013. } else {
  1014. ret = do_huge_pmd_wp_page_fallback(mm, vma, address,
  1015. pmd, orig_pmd, page, haddr);
  1016. if (ret & VM_FAULT_OOM)
  1017. split_huge_page(page);
  1018. put_page(page);
  1019. }
  1020. count_vm_event(THP_FAULT_FALLBACK);
  1021. goto out;
  1022. }
  1023. if (unlikely(mem_cgroup_newpage_charge(new_page, mm, GFP_KERNEL))) {
  1024. put_page(new_page);
  1025. if (page) {
  1026. split_huge_page(page);
  1027. put_page(page);
  1028. }
  1029. count_vm_event(THP_FAULT_FALLBACK);
  1030. ret |= VM_FAULT_OOM;
  1031. goto out;
  1032. }
  1033. count_vm_event(THP_FAULT_ALLOC);
  1034. if (is_huge_zero_pmd(orig_pmd))
  1035. clear_huge_page(new_page, haddr, HPAGE_PMD_NR);
  1036. else
  1037. copy_user_huge_page(new_page, page, haddr, vma, HPAGE_PMD_NR);
  1038. __SetPageUptodate(new_page);
  1039. mmun_start = haddr;
  1040. mmun_end = haddr + HPAGE_PMD_SIZE;
  1041. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  1042. spin_lock(&mm->page_table_lock);
  1043. if (page)
  1044. put_page(page);
  1045. if (unlikely(!pmd_same(*pmd, orig_pmd))) {
  1046. spin_unlock(&mm->page_table_lock);
  1047. mem_cgroup_uncharge_page(new_page);
  1048. put_page(new_page);
  1049. goto out_mn;
  1050. } else {
  1051. pmd_t entry;
  1052. entry = mk_huge_pmd(new_page, vma->vm_page_prot);
  1053. entry = maybe_pmd_mkwrite(pmd_mkdirty(entry), vma);
  1054. pmdp_clear_flush(vma, haddr, pmd);
  1055. page_add_new_anon_rmap(new_page, vma, haddr);
  1056. set_pmd_at(mm, haddr, pmd, entry);
  1057. update_mmu_cache_pmd(vma, address, pmd);
  1058. if (is_huge_zero_pmd(orig_pmd)) {
  1059. add_mm_counter(mm, MM_ANONPAGES, HPAGE_PMD_NR);
  1060. put_huge_zero_page();
  1061. } else {
  1062. VM_BUG_ON(!PageHead(page));
  1063. page_remove_rmap(page);
  1064. put_page(page);
  1065. }
  1066. ret |= VM_FAULT_WRITE;
  1067. }
  1068. spin_unlock(&mm->page_table_lock);
  1069. out_mn:
  1070. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  1071. out:
  1072. return ret;
  1073. out_unlock:
  1074. spin_unlock(&mm->page_table_lock);
  1075. return ret;
  1076. }
  1077. struct page *follow_trans_huge_pmd(struct vm_area_struct *vma,
  1078. unsigned long addr,
  1079. pmd_t *pmd,
  1080. unsigned int flags)
  1081. {
  1082. struct mm_struct *mm = vma->vm_mm;
  1083. struct page *page = NULL;
  1084. assert_spin_locked(&mm->page_table_lock);
  1085. if (flags & FOLL_WRITE && !pmd_write(*pmd))
  1086. goto out;
  1087. /* Avoid dumping huge zero page */
  1088. if ((flags & FOLL_DUMP) && is_huge_zero_pmd(*pmd))
  1089. return ERR_PTR(-EFAULT);
  1090. page = pmd_page(*pmd);
  1091. VM_BUG_ON(!PageHead(page));
  1092. if (flags & FOLL_TOUCH) {
  1093. pmd_t _pmd;
  1094. /*
  1095. * We should set the dirty bit only for FOLL_WRITE but
  1096. * for now the dirty bit in the pmd is meaningless.
  1097. * And if the dirty bit will become meaningful and
  1098. * we'll only set it with FOLL_WRITE, an atomic
  1099. * set_bit will be required on the pmd to set the
  1100. * young bit, instead of the current set_pmd_at.
  1101. */
  1102. _pmd = pmd_mkyoung(pmd_mkdirty(*pmd));
  1103. if (pmdp_set_access_flags(vma, addr & HPAGE_PMD_MASK,
  1104. pmd, _pmd, 1))
  1105. update_mmu_cache_pmd(vma, addr, pmd);
  1106. }
  1107. if ((flags & FOLL_MLOCK) && (vma->vm_flags & VM_LOCKED)) {
  1108. if (page->mapping && trylock_page(page)) {
  1109. lru_add_drain();
  1110. if (page->mapping)
  1111. mlock_vma_page(page);
  1112. unlock_page(page);
  1113. }
  1114. }
  1115. page += (addr & ~HPAGE_PMD_MASK) >> PAGE_SHIFT;
  1116. VM_BUG_ON(!PageCompound(page));
  1117. if (flags & FOLL_GET)
  1118. get_page_foll(page);
  1119. out:
  1120. return page;
  1121. }
  1122. /* NUMA hinting page fault entry point for trans huge pmds */
  1123. int do_huge_pmd_numa_page(struct mm_struct *mm, struct vm_area_struct *vma,
  1124. unsigned long addr, pmd_t pmd, pmd_t *pmdp)
  1125. {
  1126. struct anon_vma *anon_vma = NULL;
  1127. struct page *page;
  1128. unsigned long haddr = addr & HPAGE_PMD_MASK;
  1129. int page_nid = -1, this_nid = numa_node_id();
  1130. int target_nid, last_cpupid = -1;
  1131. bool page_locked;
  1132. bool migrated = false;
  1133. int flags = 0;
  1134. spin_lock(&mm->page_table_lock);
  1135. if (unlikely(!pmd_same(pmd, *pmdp)))
  1136. goto out_unlock;
  1137. page = pmd_page(pmd);
  1138. BUG_ON(is_huge_zero_page(page));
  1139. page_nid = page_to_nid(page);
  1140. last_cpupid = page_cpupid_last(page);
  1141. count_vm_numa_event(NUMA_HINT_FAULTS);
  1142. if (page_nid == this_nid) {
  1143. count_vm_numa_event(NUMA_HINT_FAULTS_LOCAL);
  1144. flags |= TNF_FAULT_LOCAL;
  1145. }
  1146. /*
  1147. * Avoid grouping on DSO/COW pages in specific and RO pages
  1148. * in general, RO pages shouldn't hurt as much anyway since
  1149. * they can be in shared cache state.
  1150. */
  1151. if (!pmd_write(pmd))
  1152. flags |= TNF_NO_GROUP;
  1153. /*
  1154. * Acquire the page lock to serialise THP migrations but avoid dropping
  1155. * page_table_lock if at all possible
  1156. */
  1157. page_locked = trylock_page(page);
  1158. target_nid = mpol_misplaced(page, vma, haddr);
  1159. if (target_nid == -1) {
  1160. /* If the page was locked, there are no parallel migrations */
  1161. if (page_locked)
  1162. goto clear_pmdnuma;
  1163. /*
  1164. * Otherwise wait for potential migrations and retry. We do
  1165. * relock and check_same as the page may no longer be mapped.
  1166. * As the fault is being retried, do not account for it.
  1167. */
  1168. spin_unlock(&mm->page_table_lock);
  1169. wait_on_page_locked(page);
  1170. page_nid = -1;
  1171. goto out;
  1172. }
  1173. /* Page is misplaced, serialise migrations and parallel THP splits */
  1174. get_page(page);
  1175. spin_unlock(&mm->page_table_lock);
  1176. if (!page_locked)
  1177. lock_page(page);
  1178. anon_vma = page_lock_anon_vma_read(page);
  1179. /* Confirm the PMD did not change while page_table_lock was released */
  1180. spin_lock(&mm->page_table_lock);
  1181. if (unlikely(!pmd_same(pmd, *pmdp))) {
  1182. unlock_page(page);
  1183. put_page(page);
  1184. page_nid = -1;
  1185. goto out_unlock;
  1186. }
  1187. /*
  1188. * Migrate the THP to the requested node, returns with page unlocked
  1189. * and pmd_numa cleared.
  1190. */
  1191. spin_unlock(&mm->page_table_lock);
  1192. migrated = migrate_misplaced_transhuge_page(mm, vma,
  1193. pmdp, pmd, addr, page, target_nid);
  1194. if (migrated) {
  1195. flags |= TNF_MIGRATED;
  1196. page_nid = target_nid;
  1197. }
  1198. goto out;
  1199. clear_pmdnuma:
  1200. BUG_ON(!PageLocked(page));
  1201. pmd = pmd_mknonnuma(pmd);
  1202. set_pmd_at(mm, haddr, pmdp, pmd);
  1203. VM_BUG_ON(pmd_numa(*pmdp));
  1204. update_mmu_cache_pmd(vma, addr, pmdp);
  1205. unlock_page(page);
  1206. out_unlock:
  1207. spin_unlock(&mm->page_table_lock);
  1208. out:
  1209. if (anon_vma)
  1210. page_unlock_anon_vma_read(anon_vma);
  1211. if (page_nid != -1)
  1212. task_numa_fault(last_cpupid, page_nid, HPAGE_PMD_NR, flags);
  1213. return 0;
  1214. }
  1215. int zap_huge_pmd(struct mmu_gather *tlb, struct vm_area_struct *vma,
  1216. pmd_t *pmd, unsigned long addr)
  1217. {
  1218. int ret = 0;
  1219. if (__pmd_trans_huge_lock(pmd, vma) == 1) {
  1220. struct page *page;
  1221. pgtable_t pgtable;
  1222. pmd_t orig_pmd;
  1223. /*
  1224. * For architectures like ppc64 we look at deposited pgtable
  1225. * when calling pmdp_get_and_clear. So do the
  1226. * pgtable_trans_huge_withdraw after finishing pmdp related
  1227. * operations.
  1228. */
  1229. orig_pmd = pmdp_get_and_clear(tlb->mm, addr, pmd);
  1230. tlb_remove_pmd_tlb_entry(tlb, pmd, addr);
  1231. pgtable = pgtable_trans_huge_withdraw(tlb->mm, pmd);
  1232. if (is_huge_zero_pmd(orig_pmd)) {
  1233. tlb->mm->nr_ptes--;
  1234. spin_unlock(&tlb->mm->page_table_lock);
  1235. put_huge_zero_page();
  1236. } else {
  1237. page = pmd_page(orig_pmd);
  1238. page_remove_rmap(page);
  1239. VM_BUG_ON(page_mapcount(page) < 0);
  1240. add_mm_counter(tlb->mm, MM_ANONPAGES, -HPAGE_PMD_NR);
  1241. VM_BUG_ON(!PageHead(page));
  1242. tlb->mm->nr_ptes--;
  1243. spin_unlock(&tlb->mm->page_table_lock);
  1244. tlb_remove_page(tlb, page);
  1245. }
  1246. pte_free(tlb->mm, pgtable);
  1247. ret = 1;
  1248. }
  1249. return ret;
  1250. }
  1251. int mincore_huge_pmd(struct vm_area_struct *vma, pmd_t *pmd,
  1252. unsigned long addr, unsigned long end,
  1253. unsigned char *vec)
  1254. {
  1255. int ret = 0;
  1256. if (__pmd_trans_huge_lock(pmd, vma) == 1) {
  1257. /*
  1258. * All logical pages in the range are present
  1259. * if backed by a huge page.
  1260. */
  1261. spin_unlock(&vma->vm_mm->page_table_lock);
  1262. memset(vec, 1, (end - addr) >> PAGE_SHIFT);
  1263. ret = 1;
  1264. }
  1265. return ret;
  1266. }
  1267. int move_huge_pmd(struct vm_area_struct *vma, struct vm_area_struct *new_vma,
  1268. unsigned long old_addr,
  1269. unsigned long new_addr, unsigned long old_end,
  1270. pmd_t *old_pmd, pmd_t *new_pmd)
  1271. {
  1272. int ret = 0;
  1273. pmd_t pmd;
  1274. struct mm_struct *mm = vma->vm_mm;
  1275. if ((old_addr & ~HPAGE_PMD_MASK) ||
  1276. (new_addr & ~HPAGE_PMD_MASK) ||
  1277. old_end - old_addr < HPAGE_PMD_SIZE ||
  1278. (new_vma->vm_flags & VM_NOHUGEPAGE))
  1279. goto out;
  1280. /*
  1281. * The destination pmd shouldn't be established, free_pgtables()
  1282. * should have release it.
  1283. */
  1284. if (WARN_ON(!pmd_none(*new_pmd))) {
  1285. VM_BUG_ON(pmd_trans_huge(*new_pmd));
  1286. goto out;
  1287. }
  1288. ret = __pmd_trans_huge_lock(old_pmd, vma);
  1289. if (ret == 1) {
  1290. pmd = pmdp_get_and_clear(mm, old_addr, old_pmd);
  1291. VM_BUG_ON(!pmd_none(*new_pmd));
  1292. set_pmd_at(mm, new_addr, new_pmd, pmd_mksoft_dirty(pmd));
  1293. spin_unlock(&mm->page_table_lock);
  1294. }
  1295. out:
  1296. return ret;
  1297. }
  1298. /*
  1299. * Returns
  1300. * - 0 if PMD could not be locked
  1301. * - 1 if PMD was locked but protections unchange and TLB flush unnecessary
  1302. * - HPAGE_PMD_NR is protections changed and TLB flush necessary
  1303. */
  1304. int change_huge_pmd(struct vm_area_struct *vma, pmd_t *pmd,
  1305. unsigned long addr, pgprot_t newprot, int prot_numa)
  1306. {
  1307. struct mm_struct *mm = vma->vm_mm;
  1308. int ret = 0;
  1309. if (__pmd_trans_huge_lock(pmd, vma) == 1) {
  1310. pmd_t entry;
  1311. ret = 1;
  1312. if (!prot_numa) {
  1313. entry = pmdp_get_and_clear(mm, addr, pmd);
  1314. entry = pmd_modify(entry, newprot);
  1315. ret = HPAGE_PMD_NR;
  1316. BUG_ON(pmd_write(entry));
  1317. } else {
  1318. struct page *page = pmd_page(*pmd);
  1319. /*
  1320. * Do not trap faults against the zero page. The
  1321. * read-only data is likely to be read-cached on the
  1322. * local CPU cache and it is less useful to know about
  1323. * local vs remote hits on the zero page.
  1324. */
  1325. if (!is_huge_zero_page(page) &&
  1326. !pmd_numa(*pmd)) {
  1327. entry = pmdp_get_and_clear(mm, addr, pmd);
  1328. entry = pmd_mknuma(entry);
  1329. ret = HPAGE_PMD_NR;
  1330. }
  1331. }
  1332. /* Set PMD if cleared earlier */
  1333. if (ret == HPAGE_PMD_NR)
  1334. set_pmd_at(mm, addr, pmd, entry);
  1335. spin_unlock(&vma->vm_mm->page_table_lock);
  1336. }
  1337. return ret;
  1338. }
  1339. /*
  1340. * Returns 1 if a given pmd maps a stable (not under splitting) thp.
  1341. * Returns -1 if it maps a thp under splitting. Returns 0 otherwise.
  1342. *
  1343. * Note that if it returns 1, this routine returns without unlocking page
  1344. * table locks. So callers must unlock them.
  1345. */
  1346. int __pmd_trans_huge_lock(pmd_t *pmd, struct vm_area_struct *vma)
  1347. {
  1348. spin_lock(&vma->vm_mm->page_table_lock);
  1349. if (likely(pmd_trans_huge(*pmd))) {
  1350. if (unlikely(pmd_trans_splitting(*pmd))) {
  1351. spin_unlock(&vma->vm_mm->page_table_lock);
  1352. wait_split_huge_page(vma->anon_vma, pmd);
  1353. return -1;
  1354. } else {
  1355. /* Thp mapped by 'pmd' is stable, so we can
  1356. * handle it as it is. */
  1357. return 1;
  1358. }
  1359. }
  1360. spin_unlock(&vma->vm_mm->page_table_lock);
  1361. return 0;
  1362. }
  1363. pmd_t *page_check_address_pmd(struct page *page,
  1364. struct mm_struct *mm,
  1365. unsigned long address,
  1366. enum page_check_address_pmd_flag flag)
  1367. {
  1368. pmd_t *pmd, *ret = NULL;
  1369. if (address & ~HPAGE_PMD_MASK)
  1370. goto out;
  1371. pmd = mm_find_pmd(mm, address);
  1372. if (!pmd)
  1373. goto out;
  1374. if (pmd_none(*pmd))
  1375. goto out;
  1376. if (pmd_page(*pmd) != page)
  1377. goto out;
  1378. /*
  1379. * split_vma() may create temporary aliased mappings. There is
  1380. * no risk as long as all huge pmd are found and have their
  1381. * splitting bit set before __split_huge_page_refcount
  1382. * runs. Finding the same huge pmd more than once during the
  1383. * same rmap walk is not a problem.
  1384. */
  1385. if (flag == PAGE_CHECK_ADDRESS_PMD_NOTSPLITTING_FLAG &&
  1386. pmd_trans_splitting(*pmd))
  1387. goto out;
  1388. if (pmd_trans_huge(*pmd)) {
  1389. VM_BUG_ON(flag == PAGE_CHECK_ADDRESS_PMD_SPLITTING_FLAG &&
  1390. !pmd_trans_splitting(*pmd));
  1391. ret = pmd;
  1392. }
  1393. out:
  1394. return ret;
  1395. }
  1396. static int __split_huge_page_splitting(struct page *page,
  1397. struct vm_area_struct *vma,
  1398. unsigned long address)
  1399. {
  1400. struct mm_struct *mm = vma->vm_mm;
  1401. pmd_t *pmd;
  1402. int ret = 0;
  1403. /* For mmu_notifiers */
  1404. const unsigned long mmun_start = address;
  1405. const unsigned long mmun_end = address + HPAGE_PMD_SIZE;
  1406. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  1407. spin_lock(&mm->page_table_lock);
  1408. pmd = page_check_address_pmd(page, mm, address,
  1409. PAGE_CHECK_ADDRESS_PMD_NOTSPLITTING_FLAG);
  1410. if (pmd) {
  1411. /*
  1412. * We can't temporarily set the pmd to null in order
  1413. * to split it, the pmd must remain marked huge at all
  1414. * times or the VM won't take the pmd_trans_huge paths
  1415. * and it won't wait on the anon_vma->root->rwsem to
  1416. * serialize against split_huge_page*.
  1417. */
  1418. pmdp_splitting_flush(vma, address, pmd);
  1419. ret = 1;
  1420. }
  1421. spin_unlock(&mm->page_table_lock);
  1422. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  1423. return ret;
  1424. }
  1425. static void __split_huge_page_refcount(struct page *page,
  1426. struct list_head *list)
  1427. {
  1428. int i;
  1429. struct zone *zone = page_zone(page);
  1430. struct lruvec *lruvec;
  1431. int tail_count = 0;
  1432. /* prevent PageLRU to go away from under us, and freeze lru stats */
  1433. spin_lock_irq(&zone->lru_lock);
  1434. lruvec = mem_cgroup_page_lruvec(page, zone);
  1435. compound_lock(page);
  1436. /* complete memcg works before add pages to LRU */
  1437. mem_cgroup_split_huge_fixup(page);
  1438. for (i = HPAGE_PMD_NR - 1; i >= 1; i--) {
  1439. struct page *page_tail = page + i;
  1440. /* tail_page->_mapcount cannot change */
  1441. BUG_ON(page_mapcount(page_tail) < 0);
  1442. tail_count += page_mapcount(page_tail);
  1443. /* check for overflow */
  1444. BUG_ON(tail_count < 0);
  1445. BUG_ON(atomic_read(&page_tail->_count) != 0);
  1446. /*
  1447. * tail_page->_count is zero and not changing from
  1448. * under us. But get_page_unless_zero() may be running
  1449. * from under us on the tail_page. If we used
  1450. * atomic_set() below instead of atomic_add(), we
  1451. * would then run atomic_set() concurrently with
  1452. * get_page_unless_zero(), and atomic_set() is
  1453. * implemented in C not using locked ops. spin_unlock
  1454. * on x86 sometime uses locked ops because of PPro
  1455. * errata 66, 92, so unless somebody can guarantee
  1456. * atomic_set() here would be safe on all archs (and
  1457. * not only on x86), it's safer to use atomic_add().
  1458. */
  1459. atomic_add(page_mapcount(page) + page_mapcount(page_tail) + 1,
  1460. &page_tail->_count);
  1461. /* after clearing PageTail the gup refcount can be released */
  1462. smp_mb();
  1463. /*
  1464. * retain hwpoison flag of the poisoned tail page:
  1465. * fix for the unsuitable process killed on Guest Machine(KVM)
  1466. * by the memory-failure.
  1467. */
  1468. page_tail->flags &= ~PAGE_FLAGS_CHECK_AT_PREP | __PG_HWPOISON;
  1469. page_tail->flags |= (page->flags &
  1470. ((1L << PG_referenced) |
  1471. (1L << PG_swapbacked) |
  1472. (1L << PG_mlocked) |
  1473. (1L << PG_uptodate) |
  1474. (1L << PG_active) |
  1475. (1L << PG_unevictable)));
  1476. page_tail->flags |= (1L << PG_dirty);
  1477. /* clear PageTail before overwriting first_page */
  1478. smp_wmb();
  1479. /*
  1480. * __split_huge_page_splitting() already set the
  1481. * splitting bit in all pmd that could map this
  1482. * hugepage, that will ensure no CPU can alter the
  1483. * mapcount on the head page. The mapcount is only
  1484. * accounted in the head page and it has to be
  1485. * transferred to all tail pages in the below code. So
  1486. * for this code to be safe, the split the mapcount
  1487. * can't change. But that doesn't mean userland can't
  1488. * keep changing and reading the page contents while
  1489. * we transfer the mapcount, so the pmd splitting
  1490. * status is achieved setting a reserved bit in the
  1491. * pmd, not by clearing the present bit.
  1492. */
  1493. page_tail->_mapcount = page->_mapcount;
  1494. BUG_ON(page_tail->mapping);
  1495. page_tail->mapping = page->mapping;
  1496. page_tail->index = page->index + i;
  1497. page_cpupid_xchg_last(page_tail, page_cpupid_last(page));
  1498. BUG_ON(!PageAnon(page_tail));
  1499. BUG_ON(!PageUptodate(page_tail));
  1500. BUG_ON(!PageDirty(page_tail));
  1501. BUG_ON(!PageSwapBacked(page_tail));
  1502. lru_add_page_tail(page, page_tail, lruvec, list);
  1503. }
  1504. atomic_sub(tail_count, &page->_count);
  1505. BUG_ON(atomic_read(&page->_count) <= 0);
  1506. __mod_zone_page_state(zone, NR_ANON_TRANSPARENT_HUGEPAGES, -1);
  1507. ClearPageCompound(page);
  1508. compound_unlock(page);
  1509. spin_unlock_irq(&zone->lru_lock);
  1510. for (i = 1; i < HPAGE_PMD_NR; i++) {
  1511. struct page *page_tail = page + i;
  1512. BUG_ON(page_count(page_tail) <= 0);
  1513. /*
  1514. * Tail pages may be freed if there wasn't any mapping
  1515. * like if add_to_swap() is running on a lru page that
  1516. * had its mapping zapped. And freeing these pages
  1517. * requires taking the lru_lock so we do the put_page
  1518. * of the tail pages after the split is complete.
  1519. */
  1520. put_page(page_tail);
  1521. }
  1522. /*
  1523. * Only the head page (now become a regular page) is required
  1524. * to be pinned by the caller.
  1525. */
  1526. BUG_ON(page_count(page) <= 0);
  1527. }
  1528. static int __split_huge_page_map(struct page *page,
  1529. struct vm_area_struct *vma,
  1530. unsigned long address)
  1531. {
  1532. struct mm_struct *mm = vma->vm_mm;
  1533. pmd_t *pmd, _pmd;
  1534. int ret = 0, i;
  1535. pgtable_t pgtable;
  1536. unsigned long haddr;
  1537. spin_lock(&mm->page_table_lock);
  1538. pmd = page_check_address_pmd(page, mm, address,
  1539. PAGE_CHECK_ADDRESS_PMD_SPLITTING_FLAG);
  1540. if (pmd) {
  1541. pgtable = pgtable_trans_huge_withdraw(mm, pmd);
  1542. pmd_populate(mm, &_pmd, pgtable);
  1543. haddr = address;
  1544. for (i = 0; i < HPAGE_PMD_NR; i++, haddr += PAGE_SIZE) {
  1545. pte_t *pte, entry;
  1546. BUG_ON(PageCompound(page+i));
  1547. entry = mk_pte(page + i, vma->vm_page_prot);
  1548. entry = maybe_mkwrite(pte_mkdirty(entry), vma);
  1549. if (!pmd_write(*pmd))
  1550. entry = pte_wrprotect(entry);
  1551. else
  1552. BUG_ON(page_mapcount(page) != 1);
  1553. if (!pmd_young(*pmd))
  1554. entry = pte_mkold(entry);
  1555. if (pmd_numa(*pmd))
  1556. entry = pte_mknuma(entry);
  1557. pte = pte_offset_map(&_pmd, haddr);
  1558. BUG_ON(!pte_none(*pte));
  1559. set_pte_at(mm, haddr, pte, entry);
  1560. pte_unmap(pte);
  1561. }
  1562. smp_wmb(); /* make pte visible before pmd */
  1563. /*
  1564. * Up to this point the pmd is present and huge and
  1565. * userland has the whole access to the hugepage
  1566. * during the split (which happens in place). If we
  1567. * overwrite the pmd with the not-huge version
  1568. * pointing to the pte here (which of course we could
  1569. * if all CPUs were bug free), userland could trigger
  1570. * a small page size TLB miss on the small sized TLB
  1571. * while the hugepage TLB entry is still established
  1572. * in the huge TLB. Some CPU doesn't like that. See
  1573. * http://support.amd.com/us/Processor_TechDocs/41322.pdf,
  1574. * Erratum 383 on page 93. Intel should be safe but is
  1575. * also warns that it's only safe if the permission
  1576. * and cache attributes of the two entries loaded in
  1577. * the two TLB is identical (which should be the case
  1578. * here). But it is generally safer to never allow
  1579. * small and huge TLB entries for the same virtual
  1580. * address to be loaded simultaneously. So instead of
  1581. * doing "pmd_populate(); flush_tlb_range();" we first
  1582. * mark the current pmd notpresent (atomically because
  1583. * here the pmd_trans_huge and pmd_trans_splitting
  1584. * must remain set at all times on the pmd until the
  1585. * split is complete for this pmd), then we flush the
  1586. * SMP TLB and finally we write the non-huge version
  1587. * of the pmd entry with pmd_populate.
  1588. */
  1589. pmdp_invalidate(vma, address, pmd);
  1590. pmd_populate(mm, pmd, pgtable);
  1591. ret = 1;
  1592. }
  1593. spin_unlock(&mm->page_table_lock);
  1594. return ret;
  1595. }
  1596. /* must be called with anon_vma->root->rwsem held */
  1597. static void __split_huge_page(struct page *page,
  1598. struct anon_vma *anon_vma,
  1599. struct list_head *list)
  1600. {
  1601. int mapcount, mapcount2;
  1602. pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT);
  1603. struct anon_vma_chain *avc;
  1604. BUG_ON(!PageHead(page));
  1605. BUG_ON(PageTail(page));
  1606. mapcount = 0;
  1607. anon_vma_interval_tree_foreach(avc, &anon_vma->rb_root, pgoff, pgoff) {
  1608. struct vm_area_struct *vma = avc->vma;
  1609. unsigned long addr = vma_address(page, vma);
  1610. BUG_ON(is_vma_temporary_stack(vma));
  1611. mapcount += __split_huge_page_splitting(page, vma, addr);
  1612. }
  1613. /*
  1614. * It is critical that new vmas are added to the tail of the
  1615. * anon_vma list. This guarantes that if copy_huge_pmd() runs
  1616. * and establishes a child pmd before
  1617. * __split_huge_page_splitting() freezes the parent pmd (so if
  1618. * we fail to prevent copy_huge_pmd() from running until the
  1619. * whole __split_huge_page() is complete), we will still see
  1620. * the newly established pmd of the child later during the
  1621. * walk, to be able to set it as pmd_trans_splitting too.
  1622. */
  1623. if (mapcount != page_mapcount(page))
  1624. printk(KERN_ERR "mapcount %d page_mapcount %d\n",
  1625. mapcount, page_mapcount(page));
  1626. BUG_ON(mapcount != page_mapcount(page));
  1627. __split_huge_page_refcount(page, list);
  1628. mapcount2 = 0;
  1629. anon_vma_interval_tree_foreach(avc, &anon_vma->rb_root, pgoff, pgoff) {
  1630. struct vm_area_struct *vma = avc->vma;
  1631. unsigned long addr = vma_address(page, vma);
  1632. BUG_ON(is_vma_temporary_stack(vma));
  1633. mapcount2 += __split_huge_page_map(page, vma, addr);
  1634. }
  1635. if (mapcount != mapcount2)
  1636. printk(KERN_ERR "mapcount %d mapcount2 %d page_mapcount %d\n",
  1637. mapcount, mapcount2, page_mapcount(page));
  1638. BUG_ON(mapcount != mapcount2);
  1639. }
  1640. /*
  1641. * Split a hugepage into normal pages. This doesn't change the position of head
  1642. * page. If @list is null, tail pages will be added to LRU list, otherwise, to
  1643. * @list. Both head page and tail pages will inherit mapping, flags, and so on
  1644. * from the hugepage.
  1645. * Return 0 if the hugepage is split successfully otherwise return 1.
  1646. */
  1647. int split_huge_page_to_list(struct page *page, struct list_head *list)
  1648. {
  1649. struct anon_vma *anon_vma;
  1650. int ret = 1;
  1651. BUG_ON(is_huge_zero_page(page));
  1652. BUG_ON(!PageAnon(page));
  1653. /*
  1654. * The caller does not necessarily hold an mmap_sem that would prevent
  1655. * the anon_vma disappearing so we first we take a reference to it
  1656. * and then lock the anon_vma for write. This is similar to
  1657. * page_lock_anon_vma_read except the write lock is taken to serialise
  1658. * against parallel split or collapse operations.
  1659. */
  1660. anon_vma = page_get_anon_vma(page);
  1661. if (!anon_vma)
  1662. goto out;
  1663. anon_vma_lock_write(anon_vma);
  1664. ret = 0;
  1665. if (!PageCompound(page))
  1666. goto out_unlock;
  1667. BUG_ON(!PageSwapBacked(page));
  1668. __split_huge_page(page, anon_vma, list);
  1669. count_vm_event(THP_SPLIT);
  1670. BUG_ON(PageCompound(page));
  1671. out_unlock:
  1672. anon_vma_unlock_write(anon_vma);
  1673. put_anon_vma(anon_vma);
  1674. out:
  1675. return ret;
  1676. }
  1677. #define VM_NO_THP (VM_SPECIAL|VM_MIXEDMAP|VM_HUGETLB|VM_SHARED|VM_MAYSHARE)
  1678. int hugepage_madvise(struct vm_area_struct *vma,
  1679. unsigned long *vm_flags, int advice)
  1680. {
  1681. struct mm_struct *mm = vma->vm_mm;
  1682. switch (advice) {
  1683. case MADV_HUGEPAGE:
  1684. /*
  1685. * Be somewhat over-protective like KSM for now!
  1686. */
  1687. if (*vm_flags & (VM_HUGEPAGE | VM_NO_THP))
  1688. return -EINVAL;
  1689. if (mm->def_flags & VM_NOHUGEPAGE)
  1690. return -EINVAL;
  1691. *vm_flags &= ~VM_NOHUGEPAGE;
  1692. *vm_flags |= VM_HUGEPAGE;
  1693. /*
  1694. * If the vma become good for khugepaged to scan,
  1695. * register it here without waiting a page fault that
  1696. * may not happen any time soon.
  1697. */
  1698. if (unlikely(khugepaged_enter_vma_merge(vma)))
  1699. return -ENOMEM;
  1700. break;
  1701. case MADV_NOHUGEPAGE:
  1702. /*
  1703. * Be somewhat over-protective like KSM for now!
  1704. */
  1705. if (*vm_flags & (VM_NOHUGEPAGE | VM_NO_THP))
  1706. return -EINVAL;
  1707. *vm_flags &= ~VM_HUGEPAGE;
  1708. *vm_flags |= VM_NOHUGEPAGE;
  1709. /*
  1710. * Setting VM_NOHUGEPAGE will prevent khugepaged from scanning
  1711. * this vma even if we leave the mm registered in khugepaged if
  1712. * it got registered before VM_NOHUGEPAGE was set.
  1713. */
  1714. break;
  1715. }
  1716. return 0;
  1717. }
  1718. static int __init khugepaged_slab_init(void)
  1719. {
  1720. mm_slot_cache = kmem_cache_create("khugepaged_mm_slot",
  1721. sizeof(struct mm_slot),
  1722. __alignof__(struct mm_slot), 0, NULL);
  1723. if (!mm_slot_cache)
  1724. return -ENOMEM;
  1725. return 0;
  1726. }
  1727. static inline struct mm_slot *alloc_mm_slot(void)
  1728. {
  1729. if (!mm_slot_cache) /* initialization failed */
  1730. return NULL;
  1731. return kmem_cache_zalloc(mm_slot_cache, GFP_KERNEL);
  1732. }
  1733. static inline void free_mm_slot(struct mm_slot *mm_slot)
  1734. {
  1735. kmem_cache_free(mm_slot_cache, mm_slot);
  1736. }
  1737. static struct mm_slot *get_mm_slot(struct mm_struct *mm)
  1738. {
  1739. struct mm_slot *mm_slot;
  1740. hash_for_each_possible(mm_slots_hash, mm_slot, hash, (unsigned long)mm)
  1741. if (mm == mm_slot->mm)
  1742. return mm_slot;
  1743. return NULL;
  1744. }
  1745. static void insert_to_mm_slots_hash(struct mm_struct *mm,
  1746. struct mm_slot *mm_slot)
  1747. {
  1748. mm_slot->mm = mm;
  1749. hash_add(mm_slots_hash, &mm_slot->hash, (long)mm);
  1750. }
  1751. static inline int khugepaged_test_exit(struct mm_struct *mm)
  1752. {
  1753. return atomic_read(&mm->mm_users) == 0;
  1754. }
  1755. int __khugepaged_enter(struct mm_struct *mm)
  1756. {
  1757. struct mm_slot *mm_slot;
  1758. int wakeup;
  1759. mm_slot = alloc_mm_slot();
  1760. if (!mm_slot)
  1761. return -ENOMEM;
  1762. /* __khugepaged_exit() must not run from under us */
  1763. VM_BUG_ON(khugepaged_test_exit(mm));
  1764. if (unlikely(test_and_set_bit(MMF_VM_HUGEPAGE, &mm->flags))) {
  1765. free_mm_slot(mm_slot);
  1766. return 0;
  1767. }
  1768. spin_lock(&khugepaged_mm_lock);
  1769. insert_to_mm_slots_hash(mm, mm_slot);
  1770. /*
  1771. * Insert just behind the scanning cursor, to let the area settle
  1772. * down a little.
  1773. */
  1774. wakeup = list_empty(&khugepaged_scan.mm_head);
  1775. list_add_tail(&mm_slot->mm_node, &khugepaged_scan.mm_head);
  1776. spin_unlock(&khugepaged_mm_lock);
  1777. atomic_inc(&mm->mm_count);
  1778. if (wakeup)
  1779. wake_up_interruptible(&khugepaged_wait);
  1780. return 0;
  1781. }
  1782. int khugepaged_enter_vma_merge(struct vm_area_struct *vma)
  1783. {
  1784. unsigned long hstart, hend;
  1785. if (!vma->anon_vma)
  1786. /*
  1787. * Not yet faulted in so we will register later in the
  1788. * page fault if needed.
  1789. */
  1790. return 0;
  1791. if (vma->vm_ops)
  1792. /* khugepaged not yet working on file or special mappings */
  1793. return 0;
  1794. VM_BUG_ON(vma->vm_flags & VM_NO_THP);
  1795. hstart = (vma->vm_start + ~HPAGE_PMD_MASK) & HPAGE_PMD_MASK;
  1796. hend = vma->vm_end & HPAGE_PMD_MASK;
  1797. if (hstart < hend)
  1798. return khugepaged_enter(vma);
  1799. return 0;
  1800. }
  1801. void __khugepaged_exit(struct mm_struct *mm)
  1802. {
  1803. struct mm_slot *mm_slot;
  1804. int free = 0;
  1805. spin_lock(&khugepaged_mm_lock);
  1806. mm_slot = get_mm_slot(mm);
  1807. if (mm_slot && khugepaged_scan.mm_slot != mm_slot) {
  1808. hash_del(&mm_slot->hash);
  1809. list_del(&mm_slot->mm_node);
  1810. free = 1;
  1811. }
  1812. spin_unlock(&khugepaged_mm_lock);
  1813. if (free) {
  1814. clear_bit(MMF_VM_HUGEPAGE, &mm->flags);
  1815. free_mm_slot(mm_slot);
  1816. mmdrop(mm);
  1817. } else if (mm_slot) {
  1818. /*
  1819. * This is required to serialize against
  1820. * khugepaged_test_exit() (which is guaranteed to run
  1821. * under mmap sem read mode). Stop here (after we
  1822. * return all pagetables will be destroyed) until
  1823. * khugepaged has finished working on the pagetables
  1824. * under the mmap_sem.
  1825. */
  1826. down_write(&mm->mmap_sem);
  1827. up_write(&mm->mmap_sem);
  1828. }
  1829. }
  1830. static void release_pte_page(struct page *page)
  1831. {
  1832. /* 0 stands for page_is_file_cache(page) == false */
  1833. dec_zone_page_state(page, NR_ISOLATED_ANON + 0);
  1834. unlock_page(page);
  1835. putback_lru_page(page);
  1836. }
  1837. static void release_pte_pages(pte_t *pte, pte_t *_pte)
  1838. {
  1839. while (--_pte >= pte) {
  1840. pte_t pteval = *_pte;
  1841. if (!pte_none(pteval))
  1842. release_pte_page(pte_page(pteval));
  1843. }
  1844. }
  1845. static int __collapse_huge_page_isolate(struct vm_area_struct *vma,
  1846. unsigned long address,
  1847. pte_t *pte)
  1848. {
  1849. struct page *page;
  1850. pte_t *_pte;
  1851. int referenced = 0, none = 0;
  1852. for (_pte = pte; _pte < pte+HPAGE_PMD_NR;
  1853. _pte++, address += PAGE_SIZE) {
  1854. pte_t pteval = *_pte;
  1855. if (pte_none(pteval)) {
  1856. if (++none <= khugepaged_max_ptes_none)
  1857. continue;
  1858. else
  1859. goto out;
  1860. }
  1861. if (!pte_present(pteval) || !pte_write(pteval))
  1862. goto out;
  1863. page = vm_normal_page(vma, address, pteval);
  1864. if (unlikely(!page))
  1865. goto out;
  1866. VM_BUG_ON(PageCompound(page));
  1867. BUG_ON(!PageAnon(page));
  1868. VM_BUG_ON(!PageSwapBacked(page));
  1869. /* cannot use mapcount: can't collapse if there's a gup pin */
  1870. if (page_count(page) != 1)
  1871. goto out;
  1872. /*
  1873. * We can do it before isolate_lru_page because the
  1874. * page can't be freed from under us. NOTE: PG_lock
  1875. * is needed to serialize against split_huge_page
  1876. * when invoked from the VM.
  1877. */
  1878. if (!trylock_page(page))
  1879. goto out;
  1880. /*
  1881. * Isolate the page to avoid collapsing an hugepage
  1882. * currently in use by the VM.
  1883. */
  1884. if (isolate_lru_page(page)) {
  1885. unlock_page(page);
  1886. goto out;
  1887. }
  1888. /* 0 stands for page_is_file_cache(page) == false */
  1889. inc_zone_page_state(page, NR_ISOLATED_ANON + 0);
  1890. VM_BUG_ON(!PageLocked(page));
  1891. VM_BUG_ON(PageLRU(page));
  1892. /* If there is no mapped pte young don't collapse the page */
  1893. if (pte_young(pteval) || PageReferenced(page) ||
  1894. mmu_notifier_test_young(vma->vm_mm, address))
  1895. referenced = 1;
  1896. }
  1897. if (likely(referenced))
  1898. return 1;
  1899. out:
  1900. release_pte_pages(pte, _pte);
  1901. return 0;
  1902. }
  1903. static void __collapse_huge_page_copy(pte_t *pte, struct page *page,
  1904. struct vm_area_struct *vma,
  1905. unsigned long address,
  1906. spinlock_t *ptl)
  1907. {
  1908. pte_t *_pte;
  1909. for (_pte = pte; _pte < pte+HPAGE_PMD_NR; _pte++) {
  1910. pte_t pteval = *_pte;
  1911. struct page *src_page;
  1912. if (pte_none(pteval)) {
  1913. clear_user_highpage(page, address);
  1914. add_mm_counter(vma->vm_mm, MM_ANONPAGES, 1);
  1915. } else {
  1916. src_page = pte_page(pteval);
  1917. copy_user_highpage(page, src_page, address, vma);
  1918. VM_BUG_ON(page_mapcount(src_page) != 1);
  1919. release_pte_page(src_page);
  1920. /*
  1921. * ptl mostly unnecessary, but preempt has to
  1922. * be disabled to update the per-cpu stats
  1923. * inside page_remove_rmap().
  1924. */
  1925. spin_lock(ptl);
  1926. /*
  1927. * paravirt calls inside pte_clear here are
  1928. * superfluous.
  1929. */
  1930. pte_clear(vma->vm_mm, address, _pte);
  1931. page_remove_rmap(src_page);
  1932. spin_unlock(ptl);
  1933. free_page_and_swap_cache(src_page);
  1934. }
  1935. address += PAGE_SIZE;
  1936. page++;
  1937. }
  1938. }
  1939. static void khugepaged_alloc_sleep(void)
  1940. {
  1941. wait_event_freezable_timeout(khugepaged_wait, false,
  1942. msecs_to_jiffies(khugepaged_alloc_sleep_millisecs));
  1943. }
  1944. #ifdef CONFIG_NUMA
  1945. static bool khugepaged_prealloc_page(struct page **hpage, bool *wait)
  1946. {
  1947. if (IS_ERR(*hpage)) {
  1948. if (!*wait)
  1949. return false;
  1950. *wait = false;
  1951. *hpage = NULL;
  1952. khugepaged_alloc_sleep();
  1953. } else if (*hpage) {
  1954. put_page(*hpage);
  1955. *hpage = NULL;
  1956. }
  1957. return true;
  1958. }
  1959. static struct page
  1960. *khugepaged_alloc_page(struct page **hpage, struct mm_struct *mm,
  1961. struct vm_area_struct *vma, unsigned long address,
  1962. int node)
  1963. {
  1964. VM_BUG_ON(*hpage);
  1965. /*
  1966. * Allocate the page while the vma is still valid and under
  1967. * the mmap_sem read mode so there is no memory allocation
  1968. * later when we take the mmap_sem in write mode. This is more
  1969. * friendly behavior (OTOH it may actually hide bugs) to
  1970. * filesystems in userland with daemons allocating memory in
  1971. * the userland I/O paths. Allocating memory with the
  1972. * mmap_sem in read mode is good idea also to allow greater
  1973. * scalability.
  1974. */
  1975. *hpage = alloc_hugepage_vma(khugepaged_defrag(), vma, address,
  1976. node, __GFP_OTHER_NODE);
  1977. /*
  1978. * After allocating the hugepage, release the mmap_sem read lock in
  1979. * preparation for taking it in write mode.
  1980. */
  1981. up_read(&mm->mmap_sem);
  1982. if (unlikely(!*hpage)) {
  1983. count_vm_event(THP_COLLAPSE_ALLOC_FAILED);
  1984. *hpage = ERR_PTR(-ENOMEM);
  1985. return NULL;
  1986. }
  1987. count_vm_event(THP_COLLAPSE_ALLOC);
  1988. return *hpage;
  1989. }
  1990. #else
  1991. static struct page *khugepaged_alloc_hugepage(bool *wait)
  1992. {
  1993. struct page *hpage;
  1994. do {
  1995. hpage = alloc_hugepage(khugepaged_defrag());
  1996. if (!hpage) {
  1997. count_vm_event(THP_COLLAPSE_ALLOC_FAILED);
  1998. if (!*wait)
  1999. return NULL;
  2000. *wait = false;
  2001. khugepaged_alloc_sleep();
  2002. } else
  2003. count_vm_event(THP_COLLAPSE_ALLOC);
  2004. } while (unlikely(!hpage) && likely(khugepaged_enabled()));
  2005. return hpage;
  2006. }
  2007. static bool khugepaged_prealloc_page(struct page **hpage, bool *wait)
  2008. {
  2009. if (!*hpage)
  2010. *hpage = khugepaged_alloc_hugepage(wait);
  2011. if (unlikely(!*hpage))
  2012. return false;
  2013. return true;
  2014. }
  2015. static struct page
  2016. *khugepaged_alloc_page(struct page **hpage, struct mm_struct *mm,
  2017. struct vm_area_struct *vma, unsigned long address,
  2018. int node)
  2019. {
  2020. up_read(&mm->mmap_sem);
  2021. VM_BUG_ON(!*hpage);
  2022. return *hpage;
  2023. }
  2024. #endif
  2025. static bool hugepage_vma_check(struct vm_area_struct *vma)
  2026. {
  2027. if ((!(vma->vm_flags & VM_HUGEPAGE) && !khugepaged_always()) ||
  2028. (vma->vm_flags & VM_NOHUGEPAGE))
  2029. return false;
  2030. if (!vma->anon_vma || vma->vm_ops)
  2031. return false;
  2032. if (is_vma_temporary_stack(vma))
  2033. return false;
  2034. VM_BUG_ON(vma->vm_flags & VM_NO_THP);
  2035. return true;
  2036. }
  2037. static void collapse_huge_page(struct mm_struct *mm,
  2038. unsigned long address,
  2039. struct page **hpage,
  2040. struct vm_area_struct *vma,
  2041. int node)
  2042. {
  2043. pmd_t *pmd, _pmd;
  2044. pte_t *pte;
  2045. pgtable_t pgtable;
  2046. struct page *new_page;
  2047. spinlock_t *ptl;
  2048. int isolated;
  2049. unsigned long hstart, hend;
  2050. unsigned long mmun_start; /* For mmu_notifiers */
  2051. unsigned long mmun_end; /* For mmu_notifiers */
  2052. VM_BUG_ON(address & ~HPAGE_PMD_MASK);
  2053. /* release the mmap_sem read lock. */
  2054. new_page = khugepaged_alloc_page(hpage, mm, vma, address, node);
  2055. if (!new_page)
  2056. return;
  2057. if (unlikely(mem_cgroup_newpage_charge(new_page, mm, GFP_KERNEL)))
  2058. return;
  2059. /*
  2060. * Prevent all access to pagetables with the exception of
  2061. * gup_fast later hanlded by the ptep_clear_flush and the VM
  2062. * handled by the anon_vma lock + PG_lock.
  2063. */
  2064. down_write(&mm->mmap_sem);
  2065. if (unlikely(khugepaged_test_exit(mm)))
  2066. goto out;
  2067. vma = find_vma(mm, address);
  2068. if (!vma)
  2069. goto out;
  2070. hstart = (vma->vm_start + ~HPAGE_PMD_MASK) & HPAGE_PMD_MASK;
  2071. hend = vma->vm_end & HPAGE_PMD_MASK;
  2072. if (address < hstart || address + HPAGE_PMD_SIZE > hend)
  2073. goto out;
  2074. if (!hugepage_vma_check(vma))
  2075. goto out;
  2076. pmd = mm_find_pmd(mm, address);
  2077. if (!pmd)
  2078. goto out;
  2079. if (pmd_trans_huge(*pmd))
  2080. goto out;
  2081. anon_vma_lock_write(vma->anon_vma);
  2082. pte = pte_offset_map(pmd, address);
  2083. ptl = pte_lockptr(mm, pmd);
  2084. mmun_start = address;
  2085. mmun_end = address + HPAGE_PMD_SIZE;
  2086. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  2087. spin_lock(&mm->page_table_lock); /* probably unnecessary */
  2088. /*
  2089. * After this gup_fast can't run anymore. This also removes
  2090. * any huge TLB entry from the CPU so we won't allow
  2091. * huge and small TLB entries for the same virtual address
  2092. * to avoid the risk of CPU bugs in that area.
  2093. */
  2094. _pmd = pmdp_clear_flush(vma, address, pmd);
  2095. spin_unlock(&mm->page_table_lock);
  2096. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  2097. spin_lock(ptl);
  2098. isolated = __collapse_huge_page_isolate(vma, address, pte);
  2099. spin_unlock(ptl);
  2100. if (unlikely(!isolated)) {
  2101. pte_unmap(pte);
  2102. spin_lock(&mm->page_table_lock);
  2103. BUG_ON(!pmd_none(*pmd));
  2104. /*
  2105. * We can only use set_pmd_at when establishing
  2106. * hugepmds and never for establishing regular pmds that
  2107. * points to regular pagetables. Use pmd_populate for that
  2108. */
  2109. pmd_populate(mm, pmd, pmd_pgtable(_pmd));
  2110. spin_unlock(&mm->page_table_lock);
  2111. anon_vma_unlock_write(vma->anon_vma);
  2112. goto out;
  2113. }
  2114. /*
  2115. * All pages are isolated and locked so anon_vma rmap
  2116. * can't run anymore.
  2117. */
  2118. anon_vma_unlock_write(vma->anon_vma);
  2119. __collapse_huge_page_copy(pte, new_page, vma, address, ptl);
  2120. pte_unmap(pte);
  2121. __SetPageUptodate(new_page);
  2122. pgtable = pmd_pgtable(_pmd);
  2123. _pmd = mk_huge_pmd(new_page, vma->vm_page_prot);
  2124. _pmd = maybe_pmd_mkwrite(pmd_mkdirty(_pmd), vma);
  2125. /*
  2126. * spin_lock() below is not the equivalent of smp_wmb(), so
  2127. * this is needed to avoid the copy_huge_page writes to become
  2128. * visible after the set_pmd_at() write.
  2129. */
  2130. smp_wmb();
  2131. spin_lock(&mm->page_table_lock);
  2132. BUG_ON(!pmd_none(*pmd));
  2133. page_add_new_anon_rmap(new_page, vma, address);
  2134. pgtable_trans_huge_deposit(mm, pmd, pgtable);
  2135. set_pmd_at(mm, address, pmd, _pmd);
  2136. update_mmu_cache_pmd(vma, address, pmd);
  2137. spin_unlock(&mm->page_table_lock);
  2138. *hpage = NULL;
  2139. khugepaged_pages_collapsed++;
  2140. out_up_write:
  2141. up_write(&mm->mmap_sem);
  2142. return;
  2143. out:
  2144. mem_cgroup_uncharge_page(new_page);
  2145. goto out_up_write;
  2146. }
  2147. static int khugepaged_scan_pmd(struct mm_struct *mm,
  2148. struct vm_area_struct *vma,
  2149. unsigned long address,
  2150. struct page **hpage)
  2151. {
  2152. pmd_t *pmd;
  2153. pte_t *pte, *_pte;
  2154. int ret = 0, referenced = 0, none = 0;
  2155. struct page *page;
  2156. unsigned long _address;
  2157. spinlock_t *ptl;
  2158. int node = NUMA_NO_NODE;
  2159. VM_BUG_ON(address & ~HPAGE_PMD_MASK);
  2160. pmd = mm_find_pmd(mm, address);
  2161. if (!pmd)
  2162. goto out;
  2163. if (pmd_trans_huge(*pmd))
  2164. goto out;
  2165. pte = pte_offset_map_lock(mm, pmd, address, &ptl);
  2166. for (_address = address, _pte = pte; _pte < pte+HPAGE_PMD_NR;
  2167. _pte++, _address += PAGE_SIZE) {
  2168. pte_t pteval = *_pte;
  2169. if (pte_none(pteval)) {
  2170. if (++none <= khugepaged_max_ptes_none)
  2171. continue;
  2172. else
  2173. goto out_unmap;
  2174. }
  2175. if (!pte_present(pteval) || !pte_write(pteval))
  2176. goto out_unmap;
  2177. page = vm_normal_page(vma, _address, pteval);
  2178. if (unlikely(!page))
  2179. goto out_unmap;
  2180. /*
  2181. * Chose the node of the first page. This could
  2182. * be more sophisticated and look at more pages,
  2183. * but isn't for now.
  2184. */
  2185. if (node == NUMA_NO_NODE)
  2186. node = page_to_nid(page);
  2187. VM_BUG_ON(PageCompound(page));
  2188. if (!PageLRU(page) || PageLocked(page) || !PageAnon(page))
  2189. goto out_unmap;
  2190. /* cannot use mapcount: can't collapse if there's a gup pin */
  2191. if (page_count(page) != 1)
  2192. goto out_unmap;
  2193. if (pte_young(pteval) || PageReferenced(page) ||
  2194. mmu_notifier_test_young(vma->vm_mm, address))
  2195. referenced = 1;
  2196. }
  2197. if (referenced)
  2198. ret = 1;
  2199. out_unmap:
  2200. pte_unmap_unlock(pte, ptl);
  2201. if (ret)
  2202. /* collapse_huge_page will return with the mmap_sem released */
  2203. collapse_huge_page(mm, address, hpage, vma, node);
  2204. out:
  2205. return ret;
  2206. }
  2207. static void collect_mm_slot(struct mm_slot *mm_slot)
  2208. {
  2209. struct mm_struct *mm = mm_slot->mm;
  2210. VM_BUG_ON(NR_CPUS != 1 && !spin_is_locked(&khugepaged_mm_lock));
  2211. if (khugepaged_test_exit(mm)) {
  2212. /* free mm_slot */
  2213. hash_del(&mm_slot->hash);
  2214. list_del(&mm_slot->mm_node);
  2215. /*
  2216. * Not strictly needed because the mm exited already.
  2217. *
  2218. * clear_bit(MMF_VM_HUGEPAGE, &mm->flags);
  2219. */
  2220. /* khugepaged_mm_lock actually not necessary for the below */
  2221. free_mm_slot(mm_slot);
  2222. mmdrop(mm);
  2223. }
  2224. }
  2225. static unsigned int khugepaged_scan_mm_slot(unsigned int pages,
  2226. struct page **hpage)
  2227. __releases(&khugepaged_mm_lock)
  2228. __acquires(&khugepaged_mm_lock)
  2229. {
  2230. struct mm_slot *mm_slot;
  2231. struct mm_struct *mm;
  2232. struct vm_area_struct *vma;
  2233. int progress = 0;
  2234. VM_BUG_ON(!pages);
  2235. VM_BUG_ON(NR_CPUS != 1 && !spin_is_locked(&khugepaged_mm_lock));
  2236. if (khugepaged_scan.mm_slot)
  2237. mm_slot = khugepaged_scan.mm_slot;
  2238. else {
  2239. mm_slot = list_entry(khugepaged_scan.mm_head.next,
  2240. struct mm_slot, mm_node);
  2241. khugepaged_scan.address = 0;
  2242. khugepaged_scan.mm_slot = mm_slot;
  2243. }
  2244. spin_unlock(&khugepaged_mm_lock);
  2245. mm = mm_slot->mm;
  2246. down_read(&mm->mmap_sem);
  2247. if (unlikely(khugepaged_test_exit(mm)))
  2248. vma = NULL;
  2249. else
  2250. vma = find_vma(mm, khugepaged_scan.address);
  2251. progress++;
  2252. for (; vma; vma = vma->vm_next) {
  2253. unsigned long hstart, hend;
  2254. cond_resched();
  2255. if (unlikely(khugepaged_test_exit(mm))) {
  2256. progress++;
  2257. break;
  2258. }
  2259. if (!hugepage_vma_check(vma)) {
  2260. skip:
  2261. progress++;
  2262. continue;
  2263. }
  2264. hstart = (vma->vm_start + ~HPAGE_PMD_MASK) & HPAGE_PMD_MASK;
  2265. hend = vma->vm_end & HPAGE_PMD_MASK;
  2266. if (hstart >= hend)
  2267. goto skip;
  2268. if (khugepaged_scan.address > hend)
  2269. goto skip;
  2270. if (khugepaged_scan.address < hstart)
  2271. khugepaged_scan.address = hstart;
  2272. VM_BUG_ON(khugepaged_scan.address & ~HPAGE_PMD_MASK);
  2273. while (khugepaged_scan.address < hend) {
  2274. int ret;
  2275. cond_resched();
  2276. if (unlikely(khugepaged_test_exit(mm)))
  2277. goto breakouterloop;
  2278. VM_BUG_ON(khugepaged_scan.address < hstart ||
  2279. khugepaged_scan.address + HPAGE_PMD_SIZE >
  2280. hend);
  2281. ret = khugepaged_scan_pmd(mm, vma,
  2282. khugepaged_scan.address,
  2283. hpage);
  2284. /* move to next address */
  2285. khugepaged_scan.address += HPAGE_PMD_SIZE;
  2286. progress += HPAGE_PMD_NR;
  2287. if (ret)
  2288. /* we released mmap_sem so break loop */
  2289. goto breakouterloop_mmap_sem;
  2290. if (progress >= pages)
  2291. goto breakouterloop;
  2292. }
  2293. }
  2294. breakouterloop:
  2295. up_read(&mm->mmap_sem); /* exit_mmap will destroy ptes after this */
  2296. breakouterloop_mmap_sem:
  2297. spin_lock(&khugepaged_mm_lock);
  2298. VM_BUG_ON(khugepaged_scan.mm_slot != mm_slot);
  2299. /*
  2300. * Release the current mm_slot if this mm is about to die, or
  2301. * if we scanned all vmas of this mm.
  2302. */
  2303. if (khugepaged_test_exit(mm) || !vma) {
  2304. /*
  2305. * Make sure that if mm_users is reaching zero while
  2306. * khugepaged runs here, khugepaged_exit will find
  2307. * mm_slot not pointing to the exiting mm.
  2308. */
  2309. if (mm_slot->mm_node.next != &khugepaged_scan.mm_head) {
  2310. khugepaged_scan.mm_slot = list_entry(
  2311. mm_slot->mm_node.next,
  2312. struct mm_slot, mm_node);
  2313. khugepaged_scan.address = 0;
  2314. } else {
  2315. khugepaged_scan.mm_slot = NULL;
  2316. khugepaged_full_scans++;
  2317. }
  2318. collect_mm_slot(mm_slot);
  2319. }
  2320. return progress;
  2321. }
  2322. static int khugepaged_has_work(void)
  2323. {
  2324. return !list_empty(&khugepaged_scan.mm_head) &&
  2325. khugepaged_enabled();
  2326. }
  2327. static int khugepaged_wait_event(void)
  2328. {
  2329. return !list_empty(&khugepaged_scan.mm_head) ||
  2330. kthread_should_stop();
  2331. }
  2332. static void khugepaged_do_scan(void)
  2333. {
  2334. struct page *hpage = NULL;
  2335. unsigned int progress = 0, pass_through_head = 0;
  2336. unsigned int pages = khugepaged_pages_to_scan;
  2337. bool wait = true;
  2338. barrier(); /* write khugepaged_pages_to_scan to local stack */
  2339. while (progress < pages) {
  2340. if (!khugepaged_prealloc_page(&hpage, &wait))
  2341. break;
  2342. cond_resched();
  2343. if (unlikely(kthread_should_stop() || freezing(current)))
  2344. break;
  2345. spin_lock(&khugepaged_mm_lock);
  2346. if (!khugepaged_scan.mm_slot)
  2347. pass_through_head++;
  2348. if (khugepaged_has_work() &&
  2349. pass_through_head < 2)
  2350. progress += khugepaged_scan_mm_slot(pages - progress,
  2351. &hpage);
  2352. else
  2353. progress = pages;
  2354. spin_unlock(&khugepaged_mm_lock);
  2355. }
  2356. if (!IS_ERR_OR_NULL(hpage))
  2357. put_page(hpage);
  2358. }
  2359. static void khugepaged_wait_work(void)
  2360. {
  2361. try_to_freeze();
  2362. if (khugepaged_has_work()) {
  2363. if (!khugepaged_scan_sleep_millisecs)
  2364. return;
  2365. wait_event_freezable_timeout(khugepaged_wait,
  2366. kthread_should_stop(),
  2367. msecs_to_jiffies(khugepaged_scan_sleep_millisecs));
  2368. return;
  2369. }
  2370. if (khugepaged_enabled())
  2371. wait_event_freezable(khugepaged_wait, khugepaged_wait_event());
  2372. }
  2373. static int khugepaged(void *none)
  2374. {
  2375. struct mm_slot *mm_slot;
  2376. set_freezable();
  2377. set_user_nice(current, 19);
  2378. while (!kthread_should_stop()) {
  2379. khugepaged_do_scan();
  2380. khugepaged_wait_work();
  2381. }
  2382. spin_lock(&khugepaged_mm_lock);
  2383. mm_slot = khugepaged_scan.mm_slot;
  2384. khugepaged_scan.mm_slot = NULL;
  2385. if (mm_slot)
  2386. collect_mm_slot(mm_slot);
  2387. spin_unlock(&khugepaged_mm_lock);
  2388. return 0;
  2389. }
  2390. static void __split_huge_zero_page_pmd(struct vm_area_struct *vma,
  2391. unsigned long haddr, pmd_t *pmd)
  2392. {
  2393. struct mm_struct *mm = vma->vm_mm;
  2394. pgtable_t pgtable;
  2395. pmd_t _pmd;
  2396. int i;
  2397. pmdp_clear_flush(vma, haddr, pmd);
  2398. /* leave pmd empty until pte is filled */
  2399. pgtable = pgtable_trans_huge_withdraw(mm, pmd);
  2400. pmd_populate(mm, &_pmd, pgtable);
  2401. for (i = 0; i < HPAGE_PMD_NR; i++, haddr += PAGE_SIZE) {
  2402. pte_t *pte, entry;
  2403. entry = pfn_pte(my_zero_pfn(haddr), vma->vm_page_prot);
  2404. entry = pte_mkspecial(entry);
  2405. pte = pte_offset_map(&_pmd, haddr);
  2406. VM_BUG_ON(!pte_none(*pte));
  2407. set_pte_at(mm, haddr, pte, entry);
  2408. pte_unmap(pte);
  2409. }
  2410. smp_wmb(); /* make pte visible before pmd */
  2411. pmd_populate(mm, pmd, pgtable);
  2412. put_huge_zero_page();
  2413. }
  2414. void __split_huge_page_pmd(struct vm_area_struct *vma, unsigned long address,
  2415. pmd_t *pmd)
  2416. {
  2417. struct page *page;
  2418. struct mm_struct *mm = vma->vm_mm;
  2419. unsigned long haddr = address & HPAGE_PMD_MASK;
  2420. unsigned long mmun_start; /* For mmu_notifiers */
  2421. unsigned long mmun_end; /* For mmu_notifiers */
  2422. BUG_ON(vma->vm_start > haddr || vma->vm_end < haddr + HPAGE_PMD_SIZE);
  2423. mmun_start = haddr;
  2424. mmun_end = haddr + HPAGE_PMD_SIZE;
  2425. again:
  2426. mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
  2427. spin_lock(&mm->page_table_lock);
  2428. if (unlikely(!pmd_trans_huge(*pmd))) {
  2429. spin_unlock(&mm->page_table_lock);
  2430. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  2431. return;
  2432. }
  2433. if (is_huge_zero_pmd(*pmd)) {
  2434. __split_huge_zero_page_pmd(vma, haddr, pmd);
  2435. spin_unlock(&mm->page_table_lock);
  2436. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  2437. return;
  2438. }
  2439. page = pmd_page(*pmd);
  2440. VM_BUG_ON(!page_count(page));
  2441. get_page(page);
  2442. spin_unlock(&mm->page_table_lock);
  2443. mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
  2444. split_huge_page(page);
  2445. put_page(page);
  2446. /*
  2447. * We don't always have down_write of mmap_sem here: a racing
  2448. * do_huge_pmd_wp_page() might have copied-on-write to another
  2449. * huge page before our split_huge_page() got the anon_vma lock.
  2450. */
  2451. if (unlikely(pmd_trans_huge(*pmd)))
  2452. goto again;
  2453. }
  2454. void split_huge_page_pmd_mm(struct mm_struct *mm, unsigned long address,
  2455. pmd_t *pmd)
  2456. {
  2457. struct vm_area_struct *vma;
  2458. vma = find_vma(mm, address);
  2459. BUG_ON(vma == NULL);
  2460. split_huge_page_pmd(vma, address, pmd);
  2461. }
  2462. static void split_huge_page_address(struct mm_struct *mm,
  2463. unsigned long address)
  2464. {
  2465. pmd_t *pmd;
  2466. VM_BUG_ON(!(address & ~HPAGE_PMD_MASK));
  2467. pmd = mm_find_pmd(mm, address);
  2468. if (!pmd)
  2469. return;
  2470. /*
  2471. * Caller holds the mmap_sem write mode, so a huge pmd cannot
  2472. * materialize from under us.
  2473. */
  2474. split_huge_page_pmd_mm(mm, address, pmd);
  2475. }
  2476. void __vma_adjust_trans_huge(struct vm_area_struct *vma,
  2477. unsigned long start,
  2478. unsigned long end,
  2479. long adjust_next)
  2480. {
  2481. /*
  2482. * If the new start address isn't hpage aligned and it could
  2483. * previously contain an hugepage: check if we need to split
  2484. * an huge pmd.
  2485. */
  2486. if (start & ~HPAGE_PMD_MASK &&
  2487. (start & HPAGE_PMD_MASK) >= vma->vm_start &&
  2488. (start & HPAGE_PMD_MASK) + HPAGE_PMD_SIZE <= vma->vm_end)
  2489. split_huge_page_address(vma->vm_mm, start);
  2490. /*
  2491. * If the new end address isn't hpage aligned and it could
  2492. * previously contain an hugepage: check if we need to split
  2493. * an huge pmd.
  2494. */
  2495. if (end & ~HPAGE_PMD_MASK &&
  2496. (end & HPAGE_PMD_MASK) >= vma->vm_start &&
  2497. (end & HPAGE_PMD_MASK) + HPAGE_PMD_SIZE <= vma->vm_end)
  2498. split_huge_page_address(vma->vm_mm, end);
  2499. /*
  2500. * If we're also updating the vma->vm_next->vm_start, if the new
  2501. * vm_next->vm_start isn't page aligned and it could previously
  2502. * contain an hugepage: check if we need to split an huge pmd.
  2503. */
  2504. if (adjust_next > 0) {
  2505. struct vm_area_struct *next = vma->vm_next;
  2506. unsigned long nstart = next->vm_start;
  2507. nstart += adjust_next << PAGE_SHIFT;
  2508. if (nstart & ~HPAGE_PMD_MASK &&
  2509. (nstart & HPAGE_PMD_MASK) >= next->vm_start &&
  2510. (nstart & HPAGE_PMD_MASK) + HPAGE_PMD_SIZE <= next->vm_end)
  2511. split_huge_page_address(next->vm_mm, nstart);
  2512. }
  2513. }