memory.c 108 KB

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  1. /*
  2. * linux/mm/memory.c
  3. *
  4. * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds
  5. */
  6. /*
  7. * demand-loading started 01.12.91 - seems it is high on the list of
  8. * things wanted, and it should be easy to implement. - Linus
  9. */
  10. /*
  11. * Ok, demand-loading was easy, shared pages a little bit tricker. Shared
  12. * pages started 02.12.91, seems to work. - Linus.
  13. *
  14. * Tested sharing by executing about 30 /bin/sh: under the old kernel it
  15. * would have taken more than the 6M I have free, but it worked well as
  16. * far as I could see.
  17. *
  18. * Also corrected some "invalidate()"s - I wasn't doing enough of them.
  19. */
  20. /*
  21. * Real VM (paging to/from disk) started 18.12.91. Much more work and
  22. * thought has to go into this. Oh, well..
  23. * 19.12.91 - works, somewhat. Sometimes I get faults, don't know why.
  24. * Found it. Everything seems to work now.
  25. * 20.12.91 - Ok, making the swap-device changeable like the root.
  26. */
  27. /*
  28. * 05.04.94 - Multi-page memory management added for v1.1.
  29. * Idea by Alex Bligh (alex@cconcepts.co.uk)
  30. *
  31. * 16.07.99 - Support of BIGMEM added by Gerhard Wichert, Siemens AG
  32. * (Gerhard.Wichert@pdb.siemens.de)
  33. *
  34. * Aug/Sep 2004 Changed to four level page tables (Andi Kleen)
  35. */
  36. #include <linux/kernel_stat.h>
  37. #include <linux/mm.h>
  38. #include <linux/hugetlb.h>
  39. #include <linux/mman.h>
  40. #include <linux/swap.h>
  41. #include <linux/highmem.h>
  42. #include <linux/pagemap.h>
  43. #include <linux/ksm.h>
  44. #include <linux/rmap.h>
  45. #include <linux/export.h>
  46. #include <linux/delayacct.h>
  47. #include <linux/init.h>
  48. #include <linux/writeback.h>
  49. #include <linux/memcontrol.h>
  50. #include <linux/mmu_notifier.h>
  51. #include <linux/kallsyms.h>
  52. #include <linux/swapops.h>
  53. #include <linux/elf.h>
  54. #include <linux/gfp.h>
  55. #include <asm/io.h>
  56. #include <asm/pgalloc.h>
  57. #include <asm/uaccess.h>
  58. #include <asm/tlb.h>
  59. #include <asm/tlbflush.h>
  60. #include <asm/pgtable.h>
  61. #include "internal.h"
  62. #ifndef CONFIG_NEED_MULTIPLE_NODES
  63. /* use the per-pgdat data instead for discontigmem - mbligh */
  64. unsigned long max_mapnr;
  65. struct page *mem_map;
  66. EXPORT_SYMBOL(max_mapnr);
  67. EXPORT_SYMBOL(mem_map);
  68. #endif
  69. unsigned long num_physpages;
  70. /*
  71. * A number of key systems in x86 including ioremap() rely on the assumption
  72. * that high_memory defines the upper bound on direct map memory, then end
  73. * of ZONE_NORMAL. Under CONFIG_DISCONTIG this means that max_low_pfn and
  74. * highstart_pfn must be the same; there must be no gap between ZONE_NORMAL
  75. * and ZONE_HIGHMEM.
  76. */
  77. void * high_memory;
  78. EXPORT_SYMBOL(num_physpages);
  79. EXPORT_SYMBOL(high_memory);
  80. /*
  81. * Randomize the address space (stacks, mmaps, brk, etc.).
  82. *
  83. * ( When CONFIG_COMPAT_BRK=y we exclude brk from randomization,
  84. * as ancient (libc5 based) binaries can segfault. )
  85. */
  86. int randomize_va_space __read_mostly =
  87. #ifdef CONFIG_COMPAT_BRK
  88. 1;
  89. #else
  90. 2;
  91. #endif
  92. static int __init disable_randmaps(char *s)
  93. {
  94. randomize_va_space = 0;
  95. return 1;
  96. }
  97. __setup("norandmaps", disable_randmaps);
  98. unsigned long zero_pfn __read_mostly;
  99. unsigned long highest_memmap_pfn __read_mostly;
  100. /*
  101. * CONFIG_MMU architectures set up ZERO_PAGE in their paging_init()
  102. */
  103. static int __init init_zero_pfn(void)
  104. {
  105. zero_pfn = page_to_pfn(ZERO_PAGE(0));
  106. return 0;
  107. }
  108. core_initcall(init_zero_pfn);
  109. #if defined(SPLIT_RSS_COUNTING)
  110. static void __sync_task_rss_stat(struct task_struct *task, struct mm_struct *mm)
  111. {
  112. int i;
  113. for (i = 0; i < NR_MM_COUNTERS; i++) {
  114. if (task->rss_stat.count[i]) {
  115. add_mm_counter(mm, i, task->rss_stat.count[i]);
  116. task->rss_stat.count[i] = 0;
  117. }
  118. }
  119. task->rss_stat.events = 0;
  120. }
  121. static void add_mm_counter_fast(struct mm_struct *mm, int member, int val)
  122. {
  123. struct task_struct *task = current;
  124. if (likely(task->mm == mm))
  125. task->rss_stat.count[member] += val;
  126. else
  127. add_mm_counter(mm, member, val);
  128. }
  129. #define inc_mm_counter_fast(mm, member) add_mm_counter_fast(mm, member, 1)
  130. #define dec_mm_counter_fast(mm, member) add_mm_counter_fast(mm, member, -1)
  131. /* sync counter once per 64 page faults */
  132. #define TASK_RSS_EVENTS_THRESH (64)
  133. static void check_sync_rss_stat(struct task_struct *task)
  134. {
  135. if (unlikely(task != current))
  136. return;
  137. if (unlikely(task->rss_stat.events++ > TASK_RSS_EVENTS_THRESH))
  138. __sync_task_rss_stat(task, task->mm);
  139. }
  140. unsigned long get_mm_counter(struct mm_struct *mm, int member)
  141. {
  142. long val = 0;
  143. /*
  144. * Don't use task->mm here...for avoiding to use task_get_mm()..
  145. * The caller must guarantee task->mm is not invalid.
  146. */
  147. val = atomic_long_read(&mm->rss_stat.count[member]);
  148. /*
  149. * counter is updated in asynchronous manner and may go to minus.
  150. * But it's never be expected number for users.
  151. */
  152. if (val < 0)
  153. return 0;
  154. return (unsigned long)val;
  155. }
  156. void sync_mm_rss(struct task_struct *task, struct mm_struct *mm)
  157. {
  158. __sync_task_rss_stat(task, mm);
  159. }
  160. #else /* SPLIT_RSS_COUNTING */
  161. #define inc_mm_counter_fast(mm, member) inc_mm_counter(mm, member)
  162. #define dec_mm_counter_fast(mm, member) dec_mm_counter(mm, member)
  163. static void check_sync_rss_stat(struct task_struct *task)
  164. {
  165. }
  166. #endif /* SPLIT_RSS_COUNTING */
  167. #ifdef HAVE_GENERIC_MMU_GATHER
  168. static int tlb_next_batch(struct mmu_gather *tlb)
  169. {
  170. struct mmu_gather_batch *batch;
  171. batch = tlb->active;
  172. if (batch->next) {
  173. tlb->active = batch->next;
  174. return 1;
  175. }
  176. batch = (void *)__get_free_pages(GFP_NOWAIT | __GFP_NOWARN, 0);
  177. if (!batch)
  178. return 0;
  179. batch->next = NULL;
  180. batch->nr = 0;
  181. batch->max = MAX_GATHER_BATCH;
  182. tlb->active->next = batch;
  183. tlb->active = batch;
  184. return 1;
  185. }
  186. /* tlb_gather_mmu
  187. * Called to initialize an (on-stack) mmu_gather structure for page-table
  188. * tear-down from @mm. The @fullmm argument is used when @mm is without
  189. * users and we're going to destroy the full address space (exit/execve).
  190. */
  191. void tlb_gather_mmu(struct mmu_gather *tlb, struct mm_struct *mm, bool fullmm)
  192. {
  193. tlb->mm = mm;
  194. tlb->fullmm = fullmm;
  195. tlb->need_flush = 0;
  196. tlb->fast_mode = (num_possible_cpus() == 1);
  197. tlb->local.next = NULL;
  198. tlb->local.nr = 0;
  199. tlb->local.max = ARRAY_SIZE(tlb->__pages);
  200. tlb->active = &tlb->local;
  201. #ifdef CONFIG_HAVE_RCU_TABLE_FREE
  202. tlb->batch = NULL;
  203. #endif
  204. }
  205. void tlb_flush_mmu(struct mmu_gather *tlb)
  206. {
  207. struct mmu_gather_batch *batch;
  208. if (!tlb->need_flush)
  209. return;
  210. tlb->need_flush = 0;
  211. tlb_flush(tlb);
  212. #ifdef CONFIG_HAVE_RCU_TABLE_FREE
  213. tlb_table_flush(tlb);
  214. #endif
  215. if (tlb_fast_mode(tlb))
  216. return;
  217. for (batch = &tlb->local; batch; batch = batch->next) {
  218. free_pages_and_swap_cache(batch->pages, batch->nr);
  219. batch->nr = 0;
  220. }
  221. tlb->active = &tlb->local;
  222. }
  223. /* tlb_finish_mmu
  224. * Called at the end of the shootdown operation to free up any resources
  225. * that were required.
  226. */
  227. void tlb_finish_mmu(struct mmu_gather *tlb, unsigned long start, unsigned long end)
  228. {
  229. struct mmu_gather_batch *batch, *next;
  230. tlb_flush_mmu(tlb);
  231. /* keep the page table cache within bounds */
  232. check_pgt_cache();
  233. for (batch = tlb->local.next; batch; batch = next) {
  234. next = batch->next;
  235. free_pages((unsigned long)batch, 0);
  236. }
  237. tlb->local.next = NULL;
  238. }
  239. /* __tlb_remove_page
  240. * Must perform the equivalent to __free_pte(pte_get_and_clear(ptep)), while
  241. * handling the additional races in SMP caused by other CPUs caching valid
  242. * mappings in their TLBs. Returns the number of free page slots left.
  243. * When out of page slots we must call tlb_flush_mmu().
  244. */
  245. int __tlb_remove_page(struct mmu_gather *tlb, struct page *page)
  246. {
  247. struct mmu_gather_batch *batch;
  248. VM_BUG_ON(!tlb->need_flush);
  249. if (tlb_fast_mode(tlb)) {
  250. free_page_and_swap_cache(page);
  251. return 1; /* avoid calling tlb_flush_mmu() */
  252. }
  253. batch = tlb->active;
  254. batch->pages[batch->nr++] = page;
  255. if (batch->nr == batch->max) {
  256. if (!tlb_next_batch(tlb))
  257. return 0;
  258. batch = tlb->active;
  259. }
  260. VM_BUG_ON(batch->nr > batch->max);
  261. return batch->max - batch->nr;
  262. }
  263. #endif /* HAVE_GENERIC_MMU_GATHER */
  264. #ifdef CONFIG_HAVE_RCU_TABLE_FREE
  265. /*
  266. * See the comment near struct mmu_table_batch.
  267. */
  268. static void tlb_remove_table_smp_sync(void *arg)
  269. {
  270. /* Simply deliver the interrupt */
  271. }
  272. static void tlb_remove_table_one(void *table)
  273. {
  274. /*
  275. * This isn't an RCU grace period and hence the page-tables cannot be
  276. * assumed to be actually RCU-freed.
  277. *
  278. * It is however sufficient for software page-table walkers that rely on
  279. * IRQ disabling. See the comment near struct mmu_table_batch.
  280. */
  281. smp_call_function(tlb_remove_table_smp_sync, NULL, 1);
  282. __tlb_remove_table(table);
  283. }
  284. static void tlb_remove_table_rcu(struct rcu_head *head)
  285. {
  286. struct mmu_table_batch *batch;
  287. int i;
  288. batch = container_of(head, struct mmu_table_batch, rcu);
  289. for (i = 0; i < batch->nr; i++)
  290. __tlb_remove_table(batch->tables[i]);
  291. free_page((unsigned long)batch);
  292. }
  293. void tlb_table_flush(struct mmu_gather *tlb)
  294. {
  295. struct mmu_table_batch **batch = &tlb->batch;
  296. if (*batch) {
  297. call_rcu_sched(&(*batch)->rcu, tlb_remove_table_rcu);
  298. *batch = NULL;
  299. }
  300. }
  301. void tlb_remove_table(struct mmu_gather *tlb, void *table)
  302. {
  303. struct mmu_table_batch **batch = &tlb->batch;
  304. tlb->need_flush = 1;
  305. /*
  306. * When there's less then two users of this mm there cannot be a
  307. * concurrent page-table walk.
  308. */
  309. if (atomic_read(&tlb->mm->mm_users) < 2) {
  310. __tlb_remove_table(table);
  311. return;
  312. }
  313. if (*batch == NULL) {
  314. *batch = (struct mmu_table_batch *)__get_free_page(GFP_NOWAIT | __GFP_NOWARN);
  315. if (*batch == NULL) {
  316. tlb_remove_table_one(table);
  317. return;
  318. }
  319. (*batch)->nr = 0;
  320. }
  321. (*batch)->tables[(*batch)->nr++] = table;
  322. if ((*batch)->nr == MAX_TABLE_BATCH)
  323. tlb_table_flush(tlb);
  324. }
  325. #endif /* CONFIG_HAVE_RCU_TABLE_FREE */
  326. /*
  327. * If a p?d_bad entry is found while walking page tables, report
  328. * the error, before resetting entry to p?d_none. Usually (but
  329. * very seldom) called out from the p?d_none_or_clear_bad macros.
  330. */
  331. void pgd_clear_bad(pgd_t *pgd)
  332. {
  333. pgd_ERROR(*pgd);
  334. pgd_clear(pgd);
  335. }
  336. void pud_clear_bad(pud_t *pud)
  337. {
  338. pud_ERROR(*pud);
  339. pud_clear(pud);
  340. }
  341. void pmd_clear_bad(pmd_t *pmd)
  342. {
  343. pmd_ERROR(*pmd);
  344. pmd_clear(pmd);
  345. }
  346. /*
  347. * Note: this doesn't free the actual pages themselves. That
  348. * has been handled earlier when unmapping all the memory regions.
  349. */
  350. static void free_pte_range(struct mmu_gather *tlb, pmd_t *pmd,
  351. unsigned long addr)
  352. {
  353. pgtable_t token = pmd_pgtable(*pmd);
  354. pmd_clear(pmd);
  355. pte_free_tlb(tlb, token, addr);
  356. tlb->mm->nr_ptes--;
  357. }
  358. static inline void free_pmd_range(struct mmu_gather *tlb, pud_t *pud,
  359. unsigned long addr, unsigned long end,
  360. unsigned long floor, unsigned long ceiling)
  361. {
  362. pmd_t *pmd;
  363. unsigned long next;
  364. unsigned long start;
  365. start = addr;
  366. pmd = pmd_offset(pud, addr);
  367. do {
  368. next = pmd_addr_end(addr, end);
  369. if (pmd_none_or_clear_bad(pmd))
  370. continue;
  371. free_pte_range(tlb, pmd, addr);
  372. } while (pmd++, addr = next, addr != end);
  373. start &= PUD_MASK;
  374. if (start < floor)
  375. return;
  376. if (ceiling) {
  377. ceiling &= PUD_MASK;
  378. if (!ceiling)
  379. return;
  380. }
  381. if (end - 1 > ceiling - 1)
  382. return;
  383. pmd = pmd_offset(pud, start);
  384. pud_clear(pud);
  385. pmd_free_tlb(tlb, pmd, start);
  386. }
  387. static inline void free_pud_range(struct mmu_gather *tlb, pgd_t *pgd,
  388. unsigned long addr, unsigned long end,
  389. unsigned long floor, unsigned long ceiling)
  390. {
  391. pud_t *pud;
  392. unsigned long next;
  393. unsigned long start;
  394. start = addr;
  395. pud = pud_offset(pgd, addr);
  396. do {
  397. next = pud_addr_end(addr, end);
  398. if (pud_none_or_clear_bad(pud))
  399. continue;
  400. free_pmd_range(tlb, pud, addr, next, floor, ceiling);
  401. } while (pud++, addr = next, addr != end);
  402. start &= PGDIR_MASK;
  403. if (start < floor)
  404. return;
  405. if (ceiling) {
  406. ceiling &= PGDIR_MASK;
  407. if (!ceiling)
  408. return;
  409. }
  410. if (end - 1 > ceiling - 1)
  411. return;
  412. pud = pud_offset(pgd, start);
  413. pgd_clear(pgd);
  414. pud_free_tlb(tlb, pud, start);
  415. }
  416. /*
  417. * This function frees user-level page tables of a process.
  418. *
  419. * Must be called with pagetable lock held.
  420. */
  421. void free_pgd_range(struct mmu_gather *tlb,
  422. unsigned long addr, unsigned long end,
  423. unsigned long floor, unsigned long ceiling)
  424. {
  425. pgd_t *pgd;
  426. unsigned long next;
  427. /*
  428. * The next few lines have given us lots of grief...
  429. *
  430. * Why are we testing PMD* at this top level? Because often
  431. * there will be no work to do at all, and we'd prefer not to
  432. * go all the way down to the bottom just to discover that.
  433. *
  434. * Why all these "- 1"s? Because 0 represents both the bottom
  435. * of the address space and the top of it (using -1 for the
  436. * top wouldn't help much: the masks would do the wrong thing).
  437. * The rule is that addr 0 and floor 0 refer to the bottom of
  438. * the address space, but end 0 and ceiling 0 refer to the top
  439. * Comparisons need to use "end - 1" and "ceiling - 1" (though
  440. * that end 0 case should be mythical).
  441. *
  442. * Wherever addr is brought up or ceiling brought down, we must
  443. * be careful to reject "the opposite 0" before it confuses the
  444. * subsequent tests. But what about where end is brought down
  445. * by PMD_SIZE below? no, end can't go down to 0 there.
  446. *
  447. * Whereas we round start (addr) and ceiling down, by different
  448. * masks at different levels, in order to test whether a table
  449. * now has no other vmas using it, so can be freed, we don't
  450. * bother to round floor or end up - the tests don't need that.
  451. */
  452. addr &= PMD_MASK;
  453. if (addr < floor) {
  454. addr += PMD_SIZE;
  455. if (!addr)
  456. return;
  457. }
  458. if (ceiling) {
  459. ceiling &= PMD_MASK;
  460. if (!ceiling)
  461. return;
  462. }
  463. if (end - 1 > ceiling - 1)
  464. end -= PMD_SIZE;
  465. if (addr > end - 1)
  466. return;
  467. pgd = pgd_offset(tlb->mm, addr);
  468. do {
  469. next = pgd_addr_end(addr, end);
  470. if (pgd_none_or_clear_bad(pgd))
  471. continue;
  472. free_pud_range(tlb, pgd, addr, next, floor, ceiling);
  473. } while (pgd++, addr = next, addr != end);
  474. }
  475. void free_pgtables(struct mmu_gather *tlb, struct vm_area_struct *vma,
  476. unsigned long floor, unsigned long ceiling)
  477. {
  478. while (vma) {
  479. struct vm_area_struct *next = vma->vm_next;
  480. unsigned long addr = vma->vm_start;
  481. /*
  482. * Hide vma from rmap and truncate_pagecache before freeing
  483. * pgtables
  484. */
  485. unlink_anon_vmas(vma);
  486. unlink_file_vma(vma);
  487. if (is_vm_hugetlb_page(vma)) {
  488. hugetlb_free_pgd_range(tlb, addr, vma->vm_end,
  489. floor, next? next->vm_start: ceiling);
  490. } else {
  491. /*
  492. * Optimization: gather nearby vmas into one call down
  493. */
  494. while (next && next->vm_start <= vma->vm_end + PMD_SIZE
  495. && !is_vm_hugetlb_page(next)) {
  496. vma = next;
  497. next = vma->vm_next;
  498. unlink_anon_vmas(vma);
  499. unlink_file_vma(vma);
  500. }
  501. free_pgd_range(tlb, addr, vma->vm_end,
  502. floor, next? next->vm_start: ceiling);
  503. }
  504. vma = next;
  505. }
  506. }
  507. int __pte_alloc(struct mm_struct *mm, struct vm_area_struct *vma,
  508. pmd_t *pmd, unsigned long address)
  509. {
  510. pgtable_t new = pte_alloc_one(mm, address);
  511. int wait_split_huge_page;
  512. if (!new)
  513. return -ENOMEM;
  514. /*
  515. * Ensure all pte setup (eg. pte page lock and page clearing) are
  516. * visible before the pte is made visible to other CPUs by being
  517. * put into page tables.
  518. *
  519. * The other side of the story is the pointer chasing in the page
  520. * table walking code (when walking the page table without locking;
  521. * ie. most of the time). Fortunately, these data accesses consist
  522. * of a chain of data-dependent loads, meaning most CPUs (alpha
  523. * being the notable exception) will already guarantee loads are
  524. * seen in-order. See the alpha page table accessors for the
  525. * smp_read_barrier_depends() barriers in page table walking code.
  526. */
  527. smp_wmb(); /* Could be smp_wmb__xxx(before|after)_spin_lock */
  528. spin_lock(&mm->page_table_lock);
  529. wait_split_huge_page = 0;
  530. if (likely(pmd_none(*pmd))) { /* Has another populated it ? */
  531. mm->nr_ptes++;
  532. pmd_populate(mm, pmd, new);
  533. new = NULL;
  534. } else if (unlikely(pmd_trans_splitting(*pmd)))
  535. wait_split_huge_page = 1;
  536. spin_unlock(&mm->page_table_lock);
  537. if (new)
  538. pte_free(mm, new);
  539. if (wait_split_huge_page)
  540. wait_split_huge_page(vma->anon_vma, pmd);
  541. return 0;
  542. }
  543. int __pte_alloc_kernel(pmd_t *pmd, unsigned long address)
  544. {
  545. pte_t *new = pte_alloc_one_kernel(&init_mm, address);
  546. if (!new)
  547. return -ENOMEM;
  548. smp_wmb(); /* See comment in __pte_alloc */
  549. spin_lock(&init_mm.page_table_lock);
  550. if (likely(pmd_none(*pmd))) { /* Has another populated it ? */
  551. pmd_populate_kernel(&init_mm, pmd, new);
  552. new = NULL;
  553. } else
  554. VM_BUG_ON(pmd_trans_splitting(*pmd));
  555. spin_unlock(&init_mm.page_table_lock);
  556. if (new)
  557. pte_free_kernel(&init_mm, new);
  558. return 0;
  559. }
  560. static inline void init_rss_vec(int *rss)
  561. {
  562. memset(rss, 0, sizeof(int) * NR_MM_COUNTERS);
  563. }
  564. static inline void add_mm_rss_vec(struct mm_struct *mm, int *rss)
  565. {
  566. int i;
  567. if (current->mm == mm)
  568. sync_mm_rss(current, mm);
  569. for (i = 0; i < NR_MM_COUNTERS; i++)
  570. if (rss[i])
  571. add_mm_counter(mm, i, rss[i]);
  572. }
  573. /*
  574. * This function is called to print an error when a bad pte
  575. * is found. For example, we might have a PFN-mapped pte in
  576. * a region that doesn't allow it.
  577. *
  578. * The calling function must still handle the error.
  579. */
  580. static void print_bad_pte(struct vm_area_struct *vma, unsigned long addr,
  581. pte_t pte, struct page *page)
  582. {
  583. pgd_t *pgd = pgd_offset(vma->vm_mm, addr);
  584. pud_t *pud = pud_offset(pgd, addr);
  585. pmd_t *pmd = pmd_offset(pud, addr);
  586. struct address_space *mapping;
  587. pgoff_t index;
  588. static unsigned long resume;
  589. static unsigned long nr_shown;
  590. static unsigned long nr_unshown;
  591. /*
  592. * Allow a burst of 60 reports, then keep quiet for that minute;
  593. * or allow a steady drip of one report per second.
  594. */
  595. if (nr_shown == 60) {
  596. if (time_before(jiffies, resume)) {
  597. nr_unshown++;
  598. return;
  599. }
  600. if (nr_unshown) {
  601. printk(KERN_ALERT
  602. "BUG: Bad page map: %lu messages suppressed\n",
  603. nr_unshown);
  604. nr_unshown = 0;
  605. }
  606. nr_shown = 0;
  607. }
  608. if (nr_shown++ == 0)
  609. resume = jiffies + 60 * HZ;
  610. mapping = vma->vm_file ? vma->vm_file->f_mapping : NULL;
  611. index = linear_page_index(vma, addr);
  612. printk(KERN_ALERT
  613. "BUG: Bad page map in process %s pte:%08llx pmd:%08llx\n",
  614. current->comm,
  615. (long long)pte_val(pte), (long long)pmd_val(*pmd));
  616. if (page)
  617. dump_page(page);
  618. printk(KERN_ALERT
  619. "addr:%p vm_flags:%08lx anon_vma:%p mapping:%p index:%lx\n",
  620. (void *)addr, vma->vm_flags, vma->anon_vma, mapping, index);
  621. /*
  622. * Choose text because data symbols depend on CONFIG_KALLSYMS_ALL=y
  623. */
  624. if (vma->vm_ops)
  625. print_symbol(KERN_ALERT "vma->vm_ops->fault: %s\n",
  626. (unsigned long)vma->vm_ops->fault);
  627. if (vma->vm_file && vma->vm_file->f_op)
  628. print_symbol(KERN_ALERT "vma->vm_file->f_op->mmap: %s\n",
  629. (unsigned long)vma->vm_file->f_op->mmap);
  630. dump_stack();
  631. add_taint(TAINT_BAD_PAGE);
  632. }
  633. static inline int is_cow_mapping(vm_flags_t flags)
  634. {
  635. return (flags & (VM_SHARED | VM_MAYWRITE)) == VM_MAYWRITE;
  636. }
  637. #ifndef is_zero_pfn
  638. static inline int is_zero_pfn(unsigned long pfn)
  639. {
  640. return pfn == zero_pfn;
  641. }
  642. #endif
  643. #ifndef my_zero_pfn
  644. static inline unsigned long my_zero_pfn(unsigned long addr)
  645. {
  646. return zero_pfn;
  647. }
  648. #endif
  649. /*
  650. * vm_normal_page -- This function gets the "struct page" associated with a pte.
  651. *
  652. * "Special" mappings do not wish to be associated with a "struct page" (either
  653. * it doesn't exist, or it exists but they don't want to touch it). In this
  654. * case, NULL is returned here. "Normal" mappings do have a struct page.
  655. *
  656. * There are 2 broad cases. Firstly, an architecture may define a pte_special()
  657. * pte bit, in which case this function is trivial. Secondly, an architecture
  658. * may not have a spare pte bit, which requires a more complicated scheme,
  659. * described below.
  660. *
  661. * A raw VM_PFNMAP mapping (ie. one that is not COWed) is always considered a
  662. * special mapping (even if there are underlying and valid "struct pages").
  663. * COWed pages of a VM_PFNMAP are always normal.
  664. *
  665. * The way we recognize COWed pages within VM_PFNMAP mappings is through the
  666. * rules set up by "remap_pfn_range()": the vma will have the VM_PFNMAP bit
  667. * set, and the vm_pgoff will point to the first PFN mapped: thus every special
  668. * mapping will always honor the rule
  669. *
  670. * pfn_of_page == vma->vm_pgoff + ((addr - vma->vm_start) >> PAGE_SHIFT)
  671. *
  672. * And for normal mappings this is false.
  673. *
  674. * This restricts such mappings to be a linear translation from virtual address
  675. * to pfn. To get around this restriction, we allow arbitrary mappings so long
  676. * as the vma is not a COW mapping; in that case, we know that all ptes are
  677. * special (because none can have been COWed).
  678. *
  679. *
  680. * In order to support COW of arbitrary special mappings, we have VM_MIXEDMAP.
  681. *
  682. * VM_MIXEDMAP mappings can likewise contain memory with or without "struct
  683. * page" backing, however the difference is that _all_ pages with a struct
  684. * page (that is, those where pfn_valid is true) are refcounted and considered
  685. * normal pages by the VM. The disadvantage is that pages are refcounted
  686. * (which can be slower and simply not an option for some PFNMAP users). The
  687. * advantage is that we don't have to follow the strict linearity rule of
  688. * PFNMAP mappings in order to support COWable mappings.
  689. *
  690. */
  691. #ifdef __HAVE_ARCH_PTE_SPECIAL
  692. # define HAVE_PTE_SPECIAL 1
  693. #else
  694. # define HAVE_PTE_SPECIAL 0
  695. #endif
  696. struct page *vm_normal_page(struct vm_area_struct *vma, unsigned long addr,
  697. pte_t pte)
  698. {
  699. unsigned long pfn = pte_pfn(pte);
  700. if (HAVE_PTE_SPECIAL) {
  701. if (likely(!pte_special(pte)))
  702. goto check_pfn;
  703. if (vma->vm_flags & (VM_PFNMAP | VM_MIXEDMAP))
  704. return NULL;
  705. if (!is_zero_pfn(pfn))
  706. print_bad_pte(vma, addr, pte, NULL);
  707. return NULL;
  708. }
  709. /* !HAVE_PTE_SPECIAL case follows: */
  710. if (unlikely(vma->vm_flags & (VM_PFNMAP|VM_MIXEDMAP))) {
  711. if (vma->vm_flags & VM_MIXEDMAP) {
  712. if (!pfn_valid(pfn))
  713. return NULL;
  714. goto out;
  715. } else {
  716. unsigned long off;
  717. off = (addr - vma->vm_start) >> PAGE_SHIFT;
  718. if (pfn == vma->vm_pgoff + off)
  719. return NULL;
  720. if (!is_cow_mapping(vma->vm_flags))
  721. return NULL;
  722. }
  723. }
  724. if (is_zero_pfn(pfn))
  725. return NULL;
  726. check_pfn:
  727. if (unlikely(pfn > highest_memmap_pfn)) {
  728. print_bad_pte(vma, addr, pte, NULL);
  729. return NULL;
  730. }
  731. /*
  732. * NOTE! We still have PageReserved() pages in the page tables.
  733. * eg. VDSO mappings can cause them to exist.
  734. */
  735. out:
  736. return pfn_to_page(pfn);
  737. }
  738. /*
  739. * copy one vm_area from one task to the other. Assumes the page tables
  740. * already present in the new task to be cleared in the whole range
  741. * covered by this vma.
  742. */
  743. static inline unsigned long
  744. copy_one_pte(struct mm_struct *dst_mm, struct mm_struct *src_mm,
  745. pte_t *dst_pte, pte_t *src_pte, struct vm_area_struct *vma,
  746. unsigned long addr, int *rss)
  747. {
  748. unsigned long vm_flags = vma->vm_flags;
  749. pte_t pte = *src_pte;
  750. struct page *page;
  751. /* pte contains position in swap or file, so copy. */
  752. if (unlikely(!pte_present(pte))) {
  753. if (!pte_file(pte)) {
  754. swp_entry_t entry = pte_to_swp_entry(pte);
  755. if (swap_duplicate(entry) < 0)
  756. return entry.val;
  757. /* make sure dst_mm is on swapoff's mmlist. */
  758. if (unlikely(list_empty(&dst_mm->mmlist))) {
  759. spin_lock(&mmlist_lock);
  760. if (list_empty(&dst_mm->mmlist))
  761. list_add(&dst_mm->mmlist,
  762. &src_mm->mmlist);
  763. spin_unlock(&mmlist_lock);
  764. }
  765. if (likely(!non_swap_entry(entry)))
  766. rss[MM_SWAPENTS]++;
  767. else if (is_migration_entry(entry)) {
  768. page = migration_entry_to_page(entry);
  769. if (PageAnon(page))
  770. rss[MM_ANONPAGES]++;
  771. else
  772. rss[MM_FILEPAGES]++;
  773. if (is_write_migration_entry(entry) &&
  774. is_cow_mapping(vm_flags)) {
  775. /*
  776. * COW mappings require pages in both
  777. * parent and child to be set to read.
  778. */
  779. make_migration_entry_read(&entry);
  780. pte = swp_entry_to_pte(entry);
  781. set_pte_at(src_mm, addr, src_pte, pte);
  782. }
  783. }
  784. }
  785. goto out_set_pte;
  786. }
  787. /*
  788. * If it's a COW mapping, write protect it both
  789. * in the parent and the child
  790. */
  791. if (is_cow_mapping(vm_flags)) {
  792. ptep_set_wrprotect(src_mm, addr, src_pte);
  793. pte = pte_wrprotect(pte);
  794. }
  795. /*
  796. * If it's a shared mapping, mark it clean in
  797. * the child
  798. */
  799. if (vm_flags & VM_SHARED)
  800. pte = pte_mkclean(pte);
  801. pte = pte_mkold(pte);
  802. page = vm_normal_page(vma, addr, pte);
  803. if (page) {
  804. get_page(page);
  805. page_dup_rmap(page);
  806. if (PageAnon(page))
  807. rss[MM_ANONPAGES]++;
  808. else
  809. rss[MM_FILEPAGES]++;
  810. }
  811. out_set_pte:
  812. set_pte_at(dst_mm, addr, dst_pte, pte);
  813. return 0;
  814. }
  815. int copy_pte_range(struct mm_struct *dst_mm, struct mm_struct *src_mm,
  816. pmd_t *dst_pmd, pmd_t *src_pmd, struct vm_area_struct *vma,
  817. unsigned long addr, unsigned long end)
  818. {
  819. pte_t *orig_src_pte, *orig_dst_pte;
  820. pte_t *src_pte, *dst_pte;
  821. spinlock_t *src_ptl, *dst_ptl;
  822. int progress = 0;
  823. int rss[NR_MM_COUNTERS];
  824. swp_entry_t entry = (swp_entry_t){0};
  825. again:
  826. init_rss_vec(rss);
  827. dst_pte = pte_alloc_map_lock(dst_mm, dst_pmd, addr, &dst_ptl);
  828. if (!dst_pte)
  829. return -ENOMEM;
  830. src_pte = pte_offset_map(src_pmd, addr);
  831. src_ptl = pte_lockptr(src_mm, src_pmd);
  832. spin_lock_nested(src_ptl, SINGLE_DEPTH_NESTING);
  833. orig_src_pte = src_pte;
  834. orig_dst_pte = dst_pte;
  835. arch_enter_lazy_mmu_mode();
  836. do {
  837. /*
  838. * We are holding two locks at this point - either of them
  839. * could generate latencies in another task on another CPU.
  840. */
  841. if (progress >= 32) {
  842. progress = 0;
  843. if (need_resched() ||
  844. spin_needbreak(src_ptl) || spin_needbreak(dst_ptl))
  845. break;
  846. }
  847. if (pte_none(*src_pte)) {
  848. progress++;
  849. continue;
  850. }
  851. entry.val = copy_one_pte(dst_mm, src_mm, dst_pte, src_pte,
  852. vma, addr, rss);
  853. if (entry.val)
  854. break;
  855. progress += 8;
  856. } while (dst_pte++, src_pte++, addr += PAGE_SIZE, addr != end);
  857. arch_leave_lazy_mmu_mode();
  858. spin_unlock(src_ptl);
  859. pte_unmap(orig_src_pte);
  860. add_mm_rss_vec(dst_mm, rss);
  861. pte_unmap_unlock(orig_dst_pte, dst_ptl);
  862. cond_resched();
  863. if (entry.val) {
  864. if (add_swap_count_continuation(entry, GFP_KERNEL) < 0)
  865. return -ENOMEM;
  866. progress = 0;
  867. }
  868. if (addr != end)
  869. goto again;
  870. return 0;
  871. }
  872. static inline int copy_pmd_range(struct mm_struct *dst_mm, struct mm_struct *src_mm,
  873. pud_t *dst_pud, pud_t *src_pud, struct vm_area_struct *vma,
  874. unsigned long addr, unsigned long end)
  875. {
  876. pmd_t *src_pmd, *dst_pmd;
  877. unsigned long next;
  878. dst_pmd = pmd_alloc(dst_mm, dst_pud, addr);
  879. if (!dst_pmd)
  880. return -ENOMEM;
  881. src_pmd = pmd_offset(src_pud, addr);
  882. do {
  883. next = pmd_addr_end(addr, end);
  884. if (pmd_trans_huge(*src_pmd)) {
  885. int err;
  886. VM_BUG_ON(next-addr != HPAGE_PMD_SIZE);
  887. err = copy_huge_pmd(dst_mm, src_mm,
  888. dst_pmd, src_pmd, addr, vma);
  889. if (err == -ENOMEM)
  890. return -ENOMEM;
  891. if (!err)
  892. continue;
  893. /* fall through */
  894. }
  895. if (pmd_none_or_clear_bad(src_pmd))
  896. continue;
  897. if (copy_pte_range(dst_mm, src_mm, dst_pmd, src_pmd,
  898. vma, addr, next))
  899. return -ENOMEM;
  900. } while (dst_pmd++, src_pmd++, addr = next, addr != end);
  901. return 0;
  902. }
  903. static inline int copy_pud_range(struct mm_struct *dst_mm, struct mm_struct *src_mm,
  904. pgd_t *dst_pgd, pgd_t *src_pgd, struct vm_area_struct *vma,
  905. unsigned long addr, unsigned long end)
  906. {
  907. pud_t *src_pud, *dst_pud;
  908. unsigned long next;
  909. dst_pud = pud_alloc(dst_mm, dst_pgd, addr);
  910. if (!dst_pud)
  911. return -ENOMEM;
  912. src_pud = pud_offset(src_pgd, addr);
  913. do {
  914. next = pud_addr_end(addr, end);
  915. if (pud_none_or_clear_bad(src_pud))
  916. continue;
  917. if (copy_pmd_range(dst_mm, src_mm, dst_pud, src_pud,
  918. vma, addr, next))
  919. return -ENOMEM;
  920. } while (dst_pud++, src_pud++, addr = next, addr != end);
  921. return 0;
  922. }
  923. int copy_page_range(struct mm_struct *dst_mm, struct mm_struct *src_mm,
  924. struct vm_area_struct *vma)
  925. {
  926. pgd_t *src_pgd, *dst_pgd;
  927. unsigned long next;
  928. unsigned long addr = vma->vm_start;
  929. unsigned long end = vma->vm_end;
  930. int ret;
  931. /*
  932. * Don't copy ptes where a page fault will fill them correctly.
  933. * Fork becomes much lighter when there are big shared or private
  934. * readonly mappings. The tradeoff is that copy_page_range is more
  935. * efficient than faulting.
  936. */
  937. if (!(vma->vm_flags & (VM_HUGETLB|VM_NONLINEAR|VM_PFNMAP|VM_INSERTPAGE))) {
  938. if (!vma->anon_vma)
  939. return 0;
  940. }
  941. if (is_vm_hugetlb_page(vma))
  942. return copy_hugetlb_page_range(dst_mm, src_mm, vma);
  943. if (unlikely(is_pfn_mapping(vma))) {
  944. /*
  945. * We do not free on error cases below as remove_vma
  946. * gets called on error from higher level routine
  947. */
  948. ret = track_pfn_vma_copy(vma);
  949. if (ret)
  950. return ret;
  951. }
  952. /*
  953. * We need to invalidate the secondary MMU mappings only when
  954. * there could be a permission downgrade on the ptes of the
  955. * parent mm. And a permission downgrade will only happen if
  956. * is_cow_mapping() returns true.
  957. */
  958. if (is_cow_mapping(vma->vm_flags))
  959. mmu_notifier_invalidate_range_start(src_mm, addr, end);
  960. ret = 0;
  961. dst_pgd = pgd_offset(dst_mm, addr);
  962. src_pgd = pgd_offset(src_mm, addr);
  963. do {
  964. next = pgd_addr_end(addr, end);
  965. if (pgd_none_or_clear_bad(src_pgd))
  966. continue;
  967. if (unlikely(copy_pud_range(dst_mm, src_mm, dst_pgd, src_pgd,
  968. vma, addr, next))) {
  969. ret = -ENOMEM;
  970. break;
  971. }
  972. } while (dst_pgd++, src_pgd++, addr = next, addr != end);
  973. if (is_cow_mapping(vma->vm_flags))
  974. mmu_notifier_invalidate_range_end(src_mm,
  975. vma->vm_start, end);
  976. return ret;
  977. }
  978. static unsigned long zap_pte_range(struct mmu_gather *tlb,
  979. struct vm_area_struct *vma, pmd_t *pmd,
  980. unsigned long addr, unsigned long end,
  981. struct zap_details *details)
  982. {
  983. struct mm_struct *mm = tlb->mm;
  984. int force_flush = 0;
  985. int rss[NR_MM_COUNTERS];
  986. spinlock_t *ptl;
  987. pte_t *start_pte;
  988. pte_t *pte;
  989. again:
  990. init_rss_vec(rss);
  991. start_pte = pte_offset_map_lock(mm, pmd, addr, &ptl);
  992. pte = start_pte;
  993. arch_enter_lazy_mmu_mode();
  994. do {
  995. pte_t ptent = *pte;
  996. if (pte_none(ptent)) {
  997. continue;
  998. }
  999. if (pte_present(ptent)) {
  1000. struct page *page;
  1001. page = vm_normal_page(vma, addr, ptent);
  1002. if (unlikely(details) && page) {
  1003. /*
  1004. * unmap_shared_mapping_pages() wants to
  1005. * invalidate cache without truncating:
  1006. * unmap shared but keep private pages.
  1007. */
  1008. if (details->check_mapping &&
  1009. details->check_mapping != page->mapping)
  1010. continue;
  1011. /*
  1012. * Each page->index must be checked when
  1013. * invalidating or truncating nonlinear.
  1014. */
  1015. if (details->nonlinear_vma &&
  1016. (page->index < details->first_index ||
  1017. page->index > details->last_index))
  1018. continue;
  1019. }
  1020. ptent = ptep_get_and_clear_full(mm, addr, pte,
  1021. tlb->fullmm);
  1022. tlb_remove_tlb_entry(tlb, pte, addr);
  1023. if (unlikely(!page))
  1024. continue;
  1025. if (unlikely(details) && details->nonlinear_vma
  1026. && linear_page_index(details->nonlinear_vma,
  1027. addr) != page->index)
  1028. set_pte_at(mm, addr, pte,
  1029. pgoff_to_pte(page->index));
  1030. if (PageAnon(page))
  1031. rss[MM_ANONPAGES]--;
  1032. else {
  1033. if (pte_dirty(ptent))
  1034. set_page_dirty(page);
  1035. if (pte_young(ptent) &&
  1036. likely(!VM_SequentialReadHint(vma)))
  1037. mark_page_accessed(page);
  1038. rss[MM_FILEPAGES]--;
  1039. }
  1040. page_remove_rmap(page);
  1041. if (unlikely(page_mapcount(page) < 0))
  1042. print_bad_pte(vma, addr, ptent, page);
  1043. force_flush = !__tlb_remove_page(tlb, page);
  1044. if (force_flush)
  1045. break;
  1046. continue;
  1047. }
  1048. /*
  1049. * If details->check_mapping, we leave swap entries;
  1050. * if details->nonlinear_vma, we leave file entries.
  1051. */
  1052. if (unlikely(details))
  1053. continue;
  1054. if (pte_file(ptent)) {
  1055. if (unlikely(!(vma->vm_flags & VM_NONLINEAR)))
  1056. print_bad_pte(vma, addr, ptent, NULL);
  1057. } else {
  1058. swp_entry_t entry = pte_to_swp_entry(ptent);
  1059. if (!non_swap_entry(entry))
  1060. rss[MM_SWAPENTS]--;
  1061. else if (is_migration_entry(entry)) {
  1062. struct page *page;
  1063. page = migration_entry_to_page(entry);
  1064. if (PageAnon(page))
  1065. rss[MM_ANONPAGES]--;
  1066. else
  1067. rss[MM_FILEPAGES]--;
  1068. }
  1069. if (unlikely(!free_swap_and_cache(entry)))
  1070. print_bad_pte(vma, addr, ptent, NULL);
  1071. }
  1072. pte_clear_not_present_full(mm, addr, pte, tlb->fullmm);
  1073. } while (pte++, addr += PAGE_SIZE, addr != end);
  1074. add_mm_rss_vec(mm, rss);
  1075. arch_leave_lazy_mmu_mode();
  1076. pte_unmap_unlock(start_pte, ptl);
  1077. /*
  1078. * mmu_gather ran out of room to batch pages, we break out of
  1079. * the PTE lock to avoid doing the potential expensive TLB invalidate
  1080. * and page-free while holding it.
  1081. */
  1082. if (force_flush) {
  1083. force_flush = 0;
  1084. tlb_flush_mmu(tlb);
  1085. if (addr != end)
  1086. goto again;
  1087. }
  1088. return addr;
  1089. }
  1090. static inline unsigned long zap_pmd_range(struct mmu_gather *tlb,
  1091. struct vm_area_struct *vma, pud_t *pud,
  1092. unsigned long addr, unsigned long end,
  1093. struct zap_details *details)
  1094. {
  1095. pmd_t *pmd;
  1096. unsigned long next;
  1097. pmd = pmd_offset(pud, addr);
  1098. do {
  1099. next = pmd_addr_end(addr, end);
  1100. if (pmd_trans_huge(*pmd)) {
  1101. if (next-addr != HPAGE_PMD_SIZE) {
  1102. VM_BUG_ON(!rwsem_is_locked(&tlb->mm->mmap_sem));
  1103. split_huge_page_pmd(vma->vm_mm, pmd);
  1104. } else if (zap_huge_pmd(tlb, vma, pmd, addr))
  1105. continue;
  1106. /* fall through */
  1107. }
  1108. if (pmd_none_or_clear_bad(pmd))
  1109. continue;
  1110. next = zap_pte_range(tlb, vma, pmd, addr, next, details);
  1111. cond_resched();
  1112. } while (pmd++, addr = next, addr != end);
  1113. return addr;
  1114. }
  1115. static inline unsigned long zap_pud_range(struct mmu_gather *tlb,
  1116. struct vm_area_struct *vma, pgd_t *pgd,
  1117. unsigned long addr, unsigned long end,
  1118. struct zap_details *details)
  1119. {
  1120. pud_t *pud;
  1121. unsigned long next;
  1122. pud = pud_offset(pgd, addr);
  1123. do {
  1124. next = pud_addr_end(addr, end);
  1125. if (pud_none_or_clear_bad(pud))
  1126. continue;
  1127. next = zap_pmd_range(tlb, vma, pud, addr, next, details);
  1128. } while (pud++, addr = next, addr != end);
  1129. return addr;
  1130. }
  1131. static void unmap_page_range(struct mmu_gather *tlb,
  1132. struct vm_area_struct *vma,
  1133. unsigned long addr, unsigned long end,
  1134. struct zap_details *details)
  1135. {
  1136. pgd_t *pgd;
  1137. unsigned long next;
  1138. if (details && !details->check_mapping && !details->nonlinear_vma)
  1139. details = NULL;
  1140. BUG_ON(addr >= end);
  1141. mem_cgroup_uncharge_start();
  1142. tlb_start_vma(tlb, vma);
  1143. pgd = pgd_offset(vma->vm_mm, addr);
  1144. do {
  1145. next = pgd_addr_end(addr, end);
  1146. if (pgd_none_or_clear_bad(pgd))
  1147. continue;
  1148. next = zap_pud_range(tlb, vma, pgd, addr, next, details);
  1149. } while (pgd++, addr = next, addr != end);
  1150. tlb_end_vma(tlb, vma);
  1151. mem_cgroup_uncharge_end();
  1152. }
  1153. /**
  1154. * unmap_vmas - unmap a range of memory covered by a list of vma's
  1155. * @tlb: address of the caller's struct mmu_gather
  1156. * @vma: the starting vma
  1157. * @start_addr: virtual address at which to start unmapping
  1158. * @end_addr: virtual address at which to end unmapping
  1159. * @nr_accounted: Place number of unmapped pages in vm-accountable vma's here
  1160. * @details: details of nonlinear truncation or shared cache invalidation
  1161. *
  1162. * Returns the end address of the unmapping (restart addr if interrupted).
  1163. *
  1164. * Unmap all pages in the vma list.
  1165. *
  1166. * Only addresses between `start' and `end' will be unmapped.
  1167. *
  1168. * The VMA list must be sorted in ascending virtual address order.
  1169. *
  1170. * unmap_vmas() assumes that the caller will flush the whole unmapped address
  1171. * range after unmap_vmas() returns. So the only responsibility here is to
  1172. * ensure that any thus-far unmapped pages are flushed before unmap_vmas()
  1173. * drops the lock and schedules.
  1174. */
  1175. unsigned long unmap_vmas(struct mmu_gather *tlb,
  1176. struct vm_area_struct *vma, unsigned long start_addr,
  1177. unsigned long end_addr, unsigned long *nr_accounted,
  1178. struct zap_details *details)
  1179. {
  1180. unsigned long start = start_addr;
  1181. struct mm_struct *mm = vma->vm_mm;
  1182. mmu_notifier_invalidate_range_start(mm, start_addr, end_addr);
  1183. for ( ; vma && vma->vm_start < end_addr; vma = vma->vm_next) {
  1184. unsigned long end;
  1185. start = max(vma->vm_start, start_addr);
  1186. if (start >= vma->vm_end)
  1187. continue;
  1188. end = min(vma->vm_end, end_addr);
  1189. if (end <= vma->vm_start)
  1190. continue;
  1191. if (vma->vm_flags & VM_ACCOUNT)
  1192. *nr_accounted += (end - start) >> PAGE_SHIFT;
  1193. if (unlikely(is_pfn_mapping(vma)))
  1194. untrack_pfn_vma(vma, 0, 0);
  1195. if (start != end) {
  1196. if (unlikely(is_vm_hugetlb_page(vma))) {
  1197. /*
  1198. * It is undesirable to test vma->vm_file as it
  1199. * should be non-null for valid hugetlb area.
  1200. * However, vm_file will be NULL in the error
  1201. * cleanup path of do_mmap_pgoff. When
  1202. * hugetlbfs ->mmap method fails,
  1203. * do_mmap_pgoff() nullifies vma->vm_file
  1204. * before calling this function to clean up.
  1205. * Since no pte has actually been setup, it is
  1206. * safe to do nothing in this case.
  1207. */
  1208. if (vma->vm_file)
  1209. unmap_hugepage_range(vma, start, end, NULL);
  1210. } else
  1211. unmap_page_range(tlb, vma, start, end, details);
  1212. }
  1213. start = end;
  1214. }
  1215. mmu_notifier_invalidate_range_end(mm, start_addr, end_addr);
  1216. return start; /* which is now the end (or restart) address */
  1217. }
  1218. /**
  1219. * zap_page_range - remove user pages in a given range
  1220. * @vma: vm_area_struct holding the applicable pages
  1221. * @address: starting address of pages to zap
  1222. * @size: number of bytes to zap
  1223. * @details: details of nonlinear truncation or shared cache invalidation
  1224. */
  1225. void zap_page_range(struct vm_area_struct *vma, unsigned long address,
  1226. unsigned long size, struct zap_details *details)
  1227. {
  1228. struct mm_struct *mm = vma->vm_mm;
  1229. struct mmu_gather tlb;
  1230. unsigned long end = address + size;
  1231. unsigned long nr_accounted = 0;
  1232. lru_add_drain();
  1233. tlb_gather_mmu(&tlb, mm, 0);
  1234. update_hiwater_rss(mm);
  1235. unmap_vmas(&tlb, vma, address, end, &nr_accounted, details);
  1236. tlb_finish_mmu(&tlb, address, end);
  1237. }
  1238. /**
  1239. * zap_vma_ptes - remove ptes mapping the vma
  1240. * @vma: vm_area_struct holding ptes to be zapped
  1241. * @address: starting address of pages to zap
  1242. * @size: number of bytes to zap
  1243. *
  1244. * This function only unmaps ptes assigned to VM_PFNMAP vmas.
  1245. *
  1246. * The entire address range must be fully contained within the vma.
  1247. *
  1248. * Returns 0 if successful.
  1249. */
  1250. int zap_vma_ptes(struct vm_area_struct *vma, unsigned long address,
  1251. unsigned long size)
  1252. {
  1253. if (address < vma->vm_start || address + size > vma->vm_end ||
  1254. !(vma->vm_flags & VM_PFNMAP))
  1255. return -1;
  1256. zap_page_range(vma, address, size, NULL);
  1257. return 0;
  1258. }
  1259. EXPORT_SYMBOL_GPL(zap_vma_ptes);
  1260. /**
  1261. * follow_page - look up a page descriptor from a user-virtual address
  1262. * @vma: vm_area_struct mapping @address
  1263. * @address: virtual address to look up
  1264. * @flags: flags modifying lookup behaviour
  1265. *
  1266. * @flags can have FOLL_ flags set, defined in <linux/mm.h>
  1267. *
  1268. * Returns the mapped (struct page *), %NULL if no mapping exists, or
  1269. * an error pointer if there is a mapping to something not represented
  1270. * by a page descriptor (see also vm_normal_page()).
  1271. */
  1272. struct page *follow_page(struct vm_area_struct *vma, unsigned long address,
  1273. unsigned int flags)
  1274. {
  1275. pgd_t *pgd;
  1276. pud_t *pud;
  1277. pmd_t *pmd;
  1278. pte_t *ptep, pte;
  1279. spinlock_t *ptl;
  1280. struct page *page;
  1281. struct mm_struct *mm = vma->vm_mm;
  1282. page = follow_huge_addr(mm, address, flags & FOLL_WRITE);
  1283. if (!IS_ERR(page)) {
  1284. BUG_ON(flags & FOLL_GET);
  1285. goto out;
  1286. }
  1287. page = NULL;
  1288. pgd = pgd_offset(mm, address);
  1289. if (pgd_none(*pgd) || unlikely(pgd_bad(*pgd)))
  1290. goto no_page_table;
  1291. pud = pud_offset(pgd, address);
  1292. if (pud_none(*pud))
  1293. goto no_page_table;
  1294. if (pud_huge(*pud) && vma->vm_flags & VM_HUGETLB) {
  1295. BUG_ON(flags & FOLL_GET);
  1296. page = follow_huge_pud(mm, address, pud, flags & FOLL_WRITE);
  1297. goto out;
  1298. }
  1299. if (unlikely(pud_bad(*pud)))
  1300. goto no_page_table;
  1301. pmd = pmd_offset(pud, address);
  1302. if (pmd_none(*pmd))
  1303. goto no_page_table;
  1304. if (pmd_huge(*pmd) && vma->vm_flags & VM_HUGETLB) {
  1305. BUG_ON(flags & FOLL_GET);
  1306. page = follow_huge_pmd(mm, address, pmd, flags & FOLL_WRITE);
  1307. goto out;
  1308. }
  1309. if (pmd_trans_huge(*pmd)) {
  1310. if (flags & FOLL_SPLIT) {
  1311. split_huge_page_pmd(mm, pmd);
  1312. goto split_fallthrough;
  1313. }
  1314. spin_lock(&mm->page_table_lock);
  1315. if (likely(pmd_trans_huge(*pmd))) {
  1316. if (unlikely(pmd_trans_splitting(*pmd))) {
  1317. spin_unlock(&mm->page_table_lock);
  1318. wait_split_huge_page(vma->anon_vma, pmd);
  1319. } else {
  1320. page = follow_trans_huge_pmd(mm, address,
  1321. pmd, flags);
  1322. spin_unlock(&mm->page_table_lock);
  1323. goto out;
  1324. }
  1325. } else
  1326. spin_unlock(&mm->page_table_lock);
  1327. /* fall through */
  1328. }
  1329. split_fallthrough:
  1330. if (unlikely(pmd_bad(*pmd)))
  1331. goto no_page_table;
  1332. ptep = pte_offset_map_lock(mm, pmd, address, &ptl);
  1333. pte = *ptep;
  1334. if (!pte_present(pte))
  1335. goto no_page;
  1336. if ((flags & FOLL_WRITE) && !pte_write(pte))
  1337. goto unlock;
  1338. page = vm_normal_page(vma, address, pte);
  1339. if (unlikely(!page)) {
  1340. if ((flags & FOLL_DUMP) ||
  1341. !is_zero_pfn(pte_pfn(pte)))
  1342. goto bad_page;
  1343. page = pte_page(pte);
  1344. }
  1345. if (flags & FOLL_GET)
  1346. get_page_foll(page);
  1347. if (flags & FOLL_TOUCH) {
  1348. if ((flags & FOLL_WRITE) &&
  1349. !pte_dirty(pte) && !PageDirty(page))
  1350. set_page_dirty(page);
  1351. /*
  1352. * pte_mkyoung() would be more correct here, but atomic care
  1353. * is needed to avoid losing the dirty bit: it is easier to use
  1354. * mark_page_accessed().
  1355. */
  1356. mark_page_accessed(page);
  1357. }
  1358. if ((flags & FOLL_MLOCK) && (vma->vm_flags & VM_LOCKED)) {
  1359. /*
  1360. * The preliminary mapping check is mainly to avoid the
  1361. * pointless overhead of lock_page on the ZERO_PAGE
  1362. * which might bounce very badly if there is contention.
  1363. *
  1364. * If the page is already locked, we don't need to
  1365. * handle it now - vmscan will handle it later if and
  1366. * when it attempts to reclaim the page.
  1367. */
  1368. if (page->mapping && trylock_page(page)) {
  1369. lru_add_drain(); /* push cached pages to LRU */
  1370. /*
  1371. * Because we lock page here and migration is
  1372. * blocked by the pte's page reference, we need
  1373. * only check for file-cache page truncation.
  1374. */
  1375. if (page->mapping)
  1376. mlock_vma_page(page);
  1377. unlock_page(page);
  1378. }
  1379. }
  1380. unlock:
  1381. pte_unmap_unlock(ptep, ptl);
  1382. out:
  1383. return page;
  1384. bad_page:
  1385. pte_unmap_unlock(ptep, ptl);
  1386. return ERR_PTR(-EFAULT);
  1387. no_page:
  1388. pte_unmap_unlock(ptep, ptl);
  1389. if (!pte_none(pte))
  1390. return page;
  1391. no_page_table:
  1392. /*
  1393. * When core dumping an enormous anonymous area that nobody
  1394. * has touched so far, we don't want to allocate unnecessary pages or
  1395. * page tables. Return error instead of NULL to skip handle_mm_fault,
  1396. * then get_dump_page() will return NULL to leave a hole in the dump.
  1397. * But we can only make this optimization where a hole would surely
  1398. * be zero-filled if handle_mm_fault() actually did handle it.
  1399. */
  1400. if ((flags & FOLL_DUMP) &&
  1401. (!vma->vm_ops || !vma->vm_ops->fault))
  1402. return ERR_PTR(-EFAULT);
  1403. return page;
  1404. }
  1405. static inline int stack_guard_page(struct vm_area_struct *vma, unsigned long addr)
  1406. {
  1407. return stack_guard_page_start(vma, addr) ||
  1408. stack_guard_page_end(vma, addr+PAGE_SIZE);
  1409. }
  1410. /**
  1411. * __get_user_pages() - pin user pages in memory
  1412. * @tsk: task_struct of target task
  1413. * @mm: mm_struct of target mm
  1414. * @start: starting user address
  1415. * @nr_pages: number of pages from start to pin
  1416. * @gup_flags: flags modifying pin behaviour
  1417. * @pages: array that receives pointers to the pages pinned.
  1418. * Should be at least nr_pages long. Or NULL, if caller
  1419. * only intends to ensure the pages are faulted in.
  1420. * @vmas: array of pointers to vmas corresponding to each page.
  1421. * Or NULL if the caller does not require them.
  1422. * @nonblocking: whether waiting for disk IO or mmap_sem contention
  1423. *
  1424. * Returns number of pages pinned. This may be fewer than the number
  1425. * requested. If nr_pages is 0 or negative, returns 0. If no pages
  1426. * were pinned, returns -errno. Each page returned must be released
  1427. * with a put_page() call when it is finished with. vmas will only
  1428. * remain valid while mmap_sem is held.
  1429. *
  1430. * Must be called with mmap_sem held for read or write.
  1431. *
  1432. * __get_user_pages walks a process's page tables and takes a reference to
  1433. * each struct page that each user address corresponds to at a given
  1434. * instant. That is, it takes the page that would be accessed if a user
  1435. * thread accesses the given user virtual address at that instant.
  1436. *
  1437. * This does not guarantee that the page exists in the user mappings when
  1438. * __get_user_pages returns, and there may even be a completely different
  1439. * page there in some cases (eg. if mmapped pagecache has been invalidated
  1440. * and subsequently re faulted). However it does guarantee that the page
  1441. * won't be freed completely. And mostly callers simply care that the page
  1442. * contains data that was valid *at some point in time*. Typically, an IO
  1443. * or similar operation cannot guarantee anything stronger anyway because
  1444. * locks can't be held over the syscall boundary.
  1445. *
  1446. * If @gup_flags & FOLL_WRITE == 0, the page must not be written to. If
  1447. * the page is written to, set_page_dirty (or set_page_dirty_lock, as
  1448. * appropriate) must be called after the page is finished with, and
  1449. * before put_page is called.
  1450. *
  1451. * If @nonblocking != NULL, __get_user_pages will not wait for disk IO
  1452. * or mmap_sem contention, and if waiting is needed to pin all pages,
  1453. * *@nonblocking will be set to 0.
  1454. *
  1455. * In most cases, get_user_pages or get_user_pages_fast should be used
  1456. * instead of __get_user_pages. __get_user_pages should be used only if
  1457. * you need some special @gup_flags.
  1458. */
  1459. int __get_user_pages(struct task_struct *tsk, struct mm_struct *mm,
  1460. unsigned long start, int nr_pages, unsigned int gup_flags,
  1461. struct page **pages, struct vm_area_struct **vmas,
  1462. int *nonblocking)
  1463. {
  1464. int i;
  1465. unsigned long vm_flags;
  1466. if (nr_pages <= 0)
  1467. return 0;
  1468. VM_BUG_ON(!!pages != !!(gup_flags & FOLL_GET));
  1469. /*
  1470. * Require read or write permissions.
  1471. * If FOLL_FORCE is set, we only require the "MAY" flags.
  1472. */
  1473. vm_flags = (gup_flags & FOLL_WRITE) ?
  1474. (VM_WRITE | VM_MAYWRITE) : (VM_READ | VM_MAYREAD);
  1475. vm_flags &= (gup_flags & FOLL_FORCE) ?
  1476. (VM_MAYREAD | VM_MAYWRITE) : (VM_READ | VM_WRITE);
  1477. i = 0;
  1478. do {
  1479. struct vm_area_struct *vma;
  1480. vma = find_extend_vma(mm, start);
  1481. if (!vma && in_gate_area(mm, start)) {
  1482. unsigned long pg = start & PAGE_MASK;
  1483. pgd_t *pgd;
  1484. pud_t *pud;
  1485. pmd_t *pmd;
  1486. pte_t *pte;
  1487. /* user gate pages are read-only */
  1488. if (gup_flags & FOLL_WRITE)
  1489. return i ? : -EFAULT;
  1490. if (pg > TASK_SIZE)
  1491. pgd = pgd_offset_k(pg);
  1492. else
  1493. pgd = pgd_offset_gate(mm, pg);
  1494. BUG_ON(pgd_none(*pgd));
  1495. pud = pud_offset(pgd, pg);
  1496. BUG_ON(pud_none(*pud));
  1497. pmd = pmd_offset(pud, pg);
  1498. if (pmd_none(*pmd))
  1499. return i ? : -EFAULT;
  1500. VM_BUG_ON(pmd_trans_huge(*pmd));
  1501. pte = pte_offset_map(pmd, pg);
  1502. if (pte_none(*pte)) {
  1503. pte_unmap(pte);
  1504. return i ? : -EFAULT;
  1505. }
  1506. vma = get_gate_vma(mm);
  1507. if (pages) {
  1508. struct page *page;
  1509. page = vm_normal_page(vma, start, *pte);
  1510. if (!page) {
  1511. if (!(gup_flags & FOLL_DUMP) &&
  1512. is_zero_pfn(pte_pfn(*pte)))
  1513. page = pte_page(*pte);
  1514. else {
  1515. pte_unmap(pte);
  1516. return i ? : -EFAULT;
  1517. }
  1518. }
  1519. pages[i] = page;
  1520. get_page(page);
  1521. }
  1522. pte_unmap(pte);
  1523. goto next_page;
  1524. }
  1525. if (!vma ||
  1526. (vma->vm_flags & (VM_IO | VM_PFNMAP)) ||
  1527. !(vm_flags & vma->vm_flags))
  1528. return i ? : -EFAULT;
  1529. if (is_vm_hugetlb_page(vma)) {
  1530. i = follow_hugetlb_page(mm, vma, pages, vmas,
  1531. &start, &nr_pages, i, gup_flags);
  1532. continue;
  1533. }
  1534. do {
  1535. struct page *page;
  1536. unsigned int foll_flags = gup_flags;
  1537. /*
  1538. * If we have a pending SIGKILL, don't keep faulting
  1539. * pages and potentially allocating memory.
  1540. */
  1541. if (unlikely(fatal_signal_pending(current)))
  1542. return i ? i : -ERESTARTSYS;
  1543. cond_resched();
  1544. while (!(page = follow_page(vma, start, foll_flags))) {
  1545. int ret;
  1546. unsigned int fault_flags = 0;
  1547. /* For mlock, just skip the stack guard page. */
  1548. if (foll_flags & FOLL_MLOCK) {
  1549. if (stack_guard_page(vma, start))
  1550. goto next_page;
  1551. }
  1552. if (foll_flags & FOLL_WRITE)
  1553. fault_flags |= FAULT_FLAG_WRITE;
  1554. if (nonblocking)
  1555. fault_flags |= FAULT_FLAG_ALLOW_RETRY;
  1556. if (foll_flags & FOLL_NOWAIT)
  1557. fault_flags |= (FAULT_FLAG_ALLOW_RETRY | FAULT_FLAG_RETRY_NOWAIT);
  1558. ret = handle_mm_fault(mm, vma, start,
  1559. fault_flags);
  1560. if (ret & VM_FAULT_ERROR) {
  1561. if (ret & VM_FAULT_OOM)
  1562. return i ? i : -ENOMEM;
  1563. if (ret & (VM_FAULT_HWPOISON |
  1564. VM_FAULT_HWPOISON_LARGE)) {
  1565. if (i)
  1566. return i;
  1567. else if (gup_flags & FOLL_HWPOISON)
  1568. return -EHWPOISON;
  1569. else
  1570. return -EFAULT;
  1571. }
  1572. if (ret & VM_FAULT_SIGBUS)
  1573. return i ? i : -EFAULT;
  1574. BUG();
  1575. }
  1576. if (tsk) {
  1577. if (ret & VM_FAULT_MAJOR)
  1578. tsk->maj_flt++;
  1579. else
  1580. tsk->min_flt++;
  1581. }
  1582. if (ret & VM_FAULT_RETRY) {
  1583. if (nonblocking)
  1584. *nonblocking = 0;
  1585. return i;
  1586. }
  1587. /*
  1588. * The VM_FAULT_WRITE bit tells us that
  1589. * do_wp_page has broken COW when necessary,
  1590. * even if maybe_mkwrite decided not to set
  1591. * pte_write. We can thus safely do subsequent
  1592. * page lookups as if they were reads. But only
  1593. * do so when looping for pte_write is futile:
  1594. * in some cases userspace may also be wanting
  1595. * to write to the gotten user page, which a
  1596. * read fault here might prevent (a readonly
  1597. * page might get reCOWed by userspace write).
  1598. */
  1599. if ((ret & VM_FAULT_WRITE) &&
  1600. !(vma->vm_flags & VM_WRITE))
  1601. foll_flags &= ~FOLL_WRITE;
  1602. cond_resched();
  1603. }
  1604. if (IS_ERR(page))
  1605. return i ? i : PTR_ERR(page);
  1606. if (pages) {
  1607. pages[i] = page;
  1608. flush_anon_page(vma, page, start);
  1609. flush_dcache_page(page);
  1610. }
  1611. next_page:
  1612. if (vmas)
  1613. vmas[i] = vma;
  1614. i++;
  1615. start += PAGE_SIZE;
  1616. nr_pages--;
  1617. } while (nr_pages && start < vma->vm_end);
  1618. } while (nr_pages);
  1619. return i;
  1620. }
  1621. EXPORT_SYMBOL(__get_user_pages);
  1622. /*
  1623. * fixup_user_fault() - manually resolve a user page fault
  1624. * @tsk: the task_struct to use for page fault accounting, or
  1625. * NULL if faults are not to be recorded.
  1626. * @mm: mm_struct of target mm
  1627. * @address: user address
  1628. * @fault_flags:flags to pass down to handle_mm_fault()
  1629. *
  1630. * This is meant to be called in the specific scenario where for locking reasons
  1631. * we try to access user memory in atomic context (within a pagefault_disable()
  1632. * section), this returns -EFAULT, and we want to resolve the user fault before
  1633. * trying again.
  1634. *
  1635. * Typically this is meant to be used by the futex code.
  1636. *
  1637. * The main difference with get_user_pages() is that this function will
  1638. * unconditionally call handle_mm_fault() which will in turn perform all the
  1639. * necessary SW fixup of the dirty and young bits in the PTE, while
  1640. * handle_mm_fault() only guarantees to update these in the struct page.
  1641. *
  1642. * This is important for some architectures where those bits also gate the
  1643. * access permission to the page because they are maintained in software. On
  1644. * such architectures, gup() will not be enough to make a subsequent access
  1645. * succeed.
  1646. *
  1647. * This should be called with the mm_sem held for read.
  1648. */
  1649. int fixup_user_fault(struct task_struct *tsk, struct mm_struct *mm,
  1650. unsigned long address, unsigned int fault_flags)
  1651. {
  1652. struct vm_area_struct *vma;
  1653. int ret;
  1654. vma = find_extend_vma(mm, address);
  1655. if (!vma || address < vma->vm_start)
  1656. return -EFAULT;
  1657. ret = handle_mm_fault(mm, vma, address, fault_flags);
  1658. if (ret & VM_FAULT_ERROR) {
  1659. if (ret & VM_FAULT_OOM)
  1660. return -ENOMEM;
  1661. if (ret & (VM_FAULT_HWPOISON | VM_FAULT_HWPOISON_LARGE))
  1662. return -EHWPOISON;
  1663. if (ret & VM_FAULT_SIGBUS)
  1664. return -EFAULT;
  1665. BUG();
  1666. }
  1667. if (tsk) {
  1668. if (ret & VM_FAULT_MAJOR)
  1669. tsk->maj_flt++;
  1670. else
  1671. tsk->min_flt++;
  1672. }
  1673. return 0;
  1674. }
  1675. /*
  1676. * get_user_pages() - pin user pages in memory
  1677. * @tsk: the task_struct to use for page fault accounting, or
  1678. * NULL if faults are not to be recorded.
  1679. * @mm: mm_struct of target mm
  1680. * @start: starting user address
  1681. * @nr_pages: number of pages from start to pin
  1682. * @write: whether pages will be written to by the caller
  1683. * @force: whether to force write access even if user mapping is
  1684. * readonly. This will result in the page being COWed even
  1685. * in MAP_SHARED mappings. You do not want this.
  1686. * @pages: array that receives pointers to the pages pinned.
  1687. * Should be at least nr_pages long. Or NULL, if caller
  1688. * only intends to ensure the pages are faulted in.
  1689. * @vmas: array of pointers to vmas corresponding to each page.
  1690. * Or NULL if the caller does not require them.
  1691. *
  1692. * Returns number of pages pinned. This may be fewer than the number
  1693. * requested. If nr_pages is 0 or negative, returns 0. If no pages
  1694. * were pinned, returns -errno. Each page returned must be released
  1695. * with a put_page() call when it is finished with. vmas will only
  1696. * remain valid while mmap_sem is held.
  1697. *
  1698. * Must be called with mmap_sem held for read or write.
  1699. *
  1700. * get_user_pages walks a process's page tables and takes a reference to
  1701. * each struct page that each user address corresponds to at a given
  1702. * instant. That is, it takes the page that would be accessed if a user
  1703. * thread accesses the given user virtual address at that instant.
  1704. *
  1705. * This does not guarantee that the page exists in the user mappings when
  1706. * get_user_pages returns, and there may even be a completely different
  1707. * page there in some cases (eg. if mmapped pagecache has been invalidated
  1708. * and subsequently re faulted). However it does guarantee that the page
  1709. * won't be freed completely. And mostly callers simply care that the page
  1710. * contains data that was valid *at some point in time*. Typically, an IO
  1711. * or similar operation cannot guarantee anything stronger anyway because
  1712. * locks can't be held over the syscall boundary.
  1713. *
  1714. * If write=0, the page must not be written to. If the page is written to,
  1715. * set_page_dirty (or set_page_dirty_lock, as appropriate) must be called
  1716. * after the page is finished with, and before put_page is called.
  1717. *
  1718. * get_user_pages is typically used for fewer-copy IO operations, to get a
  1719. * handle on the memory by some means other than accesses via the user virtual
  1720. * addresses. The pages may be submitted for DMA to devices or accessed via
  1721. * their kernel linear mapping (via the kmap APIs). Care should be taken to
  1722. * use the correct cache flushing APIs.
  1723. *
  1724. * See also get_user_pages_fast, for performance critical applications.
  1725. */
  1726. int get_user_pages(struct task_struct *tsk, struct mm_struct *mm,
  1727. unsigned long start, int nr_pages, int write, int force,
  1728. struct page **pages, struct vm_area_struct **vmas)
  1729. {
  1730. int flags = FOLL_TOUCH;
  1731. if (pages)
  1732. flags |= FOLL_GET;
  1733. if (write)
  1734. flags |= FOLL_WRITE;
  1735. if (force)
  1736. flags |= FOLL_FORCE;
  1737. return __get_user_pages(tsk, mm, start, nr_pages, flags, pages, vmas,
  1738. NULL);
  1739. }
  1740. EXPORT_SYMBOL(get_user_pages);
  1741. /**
  1742. * get_dump_page() - pin user page in memory while writing it to core dump
  1743. * @addr: user address
  1744. *
  1745. * Returns struct page pointer of user page pinned for dump,
  1746. * to be freed afterwards by page_cache_release() or put_page().
  1747. *
  1748. * Returns NULL on any kind of failure - a hole must then be inserted into
  1749. * the corefile, to preserve alignment with its headers; and also returns
  1750. * NULL wherever the ZERO_PAGE, or an anonymous pte_none, has been found -
  1751. * allowing a hole to be left in the corefile to save diskspace.
  1752. *
  1753. * Called without mmap_sem, but after all other threads have been killed.
  1754. */
  1755. #ifdef CONFIG_ELF_CORE
  1756. struct page *get_dump_page(unsigned long addr)
  1757. {
  1758. struct vm_area_struct *vma;
  1759. struct page *page;
  1760. if (__get_user_pages(current, current->mm, addr, 1,
  1761. FOLL_FORCE | FOLL_DUMP | FOLL_GET, &page, &vma,
  1762. NULL) < 1)
  1763. return NULL;
  1764. flush_cache_page(vma, addr, page_to_pfn(page));
  1765. return page;
  1766. }
  1767. #endif /* CONFIG_ELF_CORE */
  1768. pte_t *__get_locked_pte(struct mm_struct *mm, unsigned long addr,
  1769. spinlock_t **ptl)
  1770. {
  1771. pgd_t * pgd = pgd_offset(mm, addr);
  1772. pud_t * pud = pud_alloc(mm, pgd, addr);
  1773. if (pud) {
  1774. pmd_t * pmd = pmd_alloc(mm, pud, addr);
  1775. if (pmd) {
  1776. VM_BUG_ON(pmd_trans_huge(*pmd));
  1777. return pte_alloc_map_lock(mm, pmd, addr, ptl);
  1778. }
  1779. }
  1780. return NULL;
  1781. }
  1782. /*
  1783. * This is the old fallback for page remapping.
  1784. *
  1785. * For historical reasons, it only allows reserved pages. Only
  1786. * old drivers should use this, and they needed to mark their
  1787. * pages reserved for the old functions anyway.
  1788. */
  1789. static int insert_page(struct vm_area_struct *vma, unsigned long addr,
  1790. struct page *page, pgprot_t prot)
  1791. {
  1792. struct mm_struct *mm = vma->vm_mm;
  1793. int retval;
  1794. pte_t *pte;
  1795. spinlock_t *ptl;
  1796. retval = -EINVAL;
  1797. if (PageAnon(page))
  1798. goto out;
  1799. retval = -ENOMEM;
  1800. flush_dcache_page(page);
  1801. pte = get_locked_pte(mm, addr, &ptl);
  1802. if (!pte)
  1803. goto out;
  1804. retval = -EBUSY;
  1805. if (!pte_none(*pte))
  1806. goto out_unlock;
  1807. /* Ok, finally just insert the thing.. */
  1808. get_page(page);
  1809. inc_mm_counter_fast(mm, MM_FILEPAGES);
  1810. page_add_file_rmap(page);
  1811. set_pte_at(mm, addr, pte, mk_pte(page, prot));
  1812. retval = 0;
  1813. pte_unmap_unlock(pte, ptl);
  1814. return retval;
  1815. out_unlock:
  1816. pte_unmap_unlock(pte, ptl);
  1817. out:
  1818. return retval;
  1819. }
  1820. /**
  1821. * vm_insert_page - insert single page into user vma
  1822. * @vma: user vma to map to
  1823. * @addr: target user address of this page
  1824. * @page: source kernel page
  1825. *
  1826. * This allows drivers to insert individual pages they've allocated
  1827. * into a user vma.
  1828. *
  1829. * The page has to be a nice clean _individual_ kernel allocation.
  1830. * If you allocate a compound page, you need to have marked it as
  1831. * such (__GFP_COMP), or manually just split the page up yourself
  1832. * (see split_page()).
  1833. *
  1834. * NOTE! Traditionally this was done with "remap_pfn_range()" which
  1835. * took an arbitrary page protection parameter. This doesn't allow
  1836. * that. Your vma protection will have to be set up correctly, which
  1837. * means that if you want a shared writable mapping, you'd better
  1838. * ask for a shared writable mapping!
  1839. *
  1840. * The page does not need to be reserved.
  1841. */
  1842. int vm_insert_page(struct vm_area_struct *vma, unsigned long addr,
  1843. struct page *page)
  1844. {
  1845. if (addr < vma->vm_start || addr >= vma->vm_end)
  1846. return -EFAULT;
  1847. if (!page_count(page))
  1848. return -EINVAL;
  1849. vma->vm_flags |= VM_INSERTPAGE;
  1850. return insert_page(vma, addr, page, vma->vm_page_prot);
  1851. }
  1852. EXPORT_SYMBOL(vm_insert_page);
  1853. static int insert_pfn(struct vm_area_struct *vma, unsigned long addr,
  1854. unsigned long pfn, pgprot_t prot)
  1855. {
  1856. struct mm_struct *mm = vma->vm_mm;
  1857. int retval;
  1858. pte_t *pte, entry;
  1859. spinlock_t *ptl;
  1860. retval = -ENOMEM;
  1861. pte = get_locked_pte(mm, addr, &ptl);
  1862. if (!pte)
  1863. goto out;
  1864. retval = -EBUSY;
  1865. if (!pte_none(*pte))
  1866. goto out_unlock;
  1867. /* Ok, finally just insert the thing.. */
  1868. entry = pte_mkspecial(pfn_pte(pfn, prot));
  1869. set_pte_at(mm, addr, pte, entry);
  1870. update_mmu_cache(vma, addr, pte); /* XXX: why not for insert_page? */
  1871. retval = 0;
  1872. out_unlock:
  1873. pte_unmap_unlock(pte, ptl);
  1874. out:
  1875. return retval;
  1876. }
  1877. /**
  1878. * vm_insert_pfn - insert single pfn into user vma
  1879. * @vma: user vma to map to
  1880. * @addr: target user address of this page
  1881. * @pfn: source kernel pfn
  1882. *
  1883. * Similar to vm_inert_page, this allows drivers to insert individual pages
  1884. * they've allocated into a user vma. Same comments apply.
  1885. *
  1886. * This function should only be called from a vm_ops->fault handler, and
  1887. * in that case the handler should return NULL.
  1888. *
  1889. * vma cannot be a COW mapping.
  1890. *
  1891. * As this is called only for pages that do not currently exist, we
  1892. * do not need to flush old virtual caches or the TLB.
  1893. */
  1894. int vm_insert_pfn(struct vm_area_struct *vma, unsigned long addr,
  1895. unsigned long pfn)
  1896. {
  1897. int ret;
  1898. pgprot_t pgprot = vma->vm_page_prot;
  1899. /*
  1900. * Technically, architectures with pte_special can avoid all these
  1901. * restrictions (same for remap_pfn_range). However we would like
  1902. * consistency in testing and feature parity among all, so we should
  1903. * try to keep these invariants in place for everybody.
  1904. */
  1905. BUG_ON(!(vma->vm_flags & (VM_PFNMAP|VM_MIXEDMAP)));
  1906. BUG_ON((vma->vm_flags & (VM_PFNMAP|VM_MIXEDMAP)) ==
  1907. (VM_PFNMAP|VM_MIXEDMAP));
  1908. BUG_ON((vma->vm_flags & VM_PFNMAP) && is_cow_mapping(vma->vm_flags));
  1909. BUG_ON((vma->vm_flags & VM_MIXEDMAP) && pfn_valid(pfn));
  1910. if (addr < vma->vm_start || addr >= vma->vm_end)
  1911. return -EFAULT;
  1912. if (track_pfn_vma_new(vma, &pgprot, pfn, PAGE_SIZE))
  1913. return -EINVAL;
  1914. ret = insert_pfn(vma, addr, pfn, pgprot);
  1915. if (ret)
  1916. untrack_pfn_vma(vma, pfn, PAGE_SIZE);
  1917. return ret;
  1918. }
  1919. EXPORT_SYMBOL(vm_insert_pfn);
  1920. int vm_insert_mixed(struct vm_area_struct *vma, unsigned long addr,
  1921. unsigned long pfn)
  1922. {
  1923. BUG_ON(!(vma->vm_flags & VM_MIXEDMAP));
  1924. if (addr < vma->vm_start || addr >= vma->vm_end)
  1925. return -EFAULT;
  1926. /*
  1927. * If we don't have pte special, then we have to use the pfn_valid()
  1928. * based VM_MIXEDMAP scheme (see vm_normal_page), and thus we *must*
  1929. * refcount the page if pfn_valid is true (hence insert_page rather
  1930. * than insert_pfn). If a zero_pfn were inserted into a VM_MIXEDMAP
  1931. * without pte special, it would there be refcounted as a normal page.
  1932. */
  1933. if (!HAVE_PTE_SPECIAL && pfn_valid(pfn)) {
  1934. struct page *page;
  1935. page = pfn_to_page(pfn);
  1936. return insert_page(vma, addr, page, vma->vm_page_prot);
  1937. }
  1938. return insert_pfn(vma, addr, pfn, vma->vm_page_prot);
  1939. }
  1940. EXPORT_SYMBOL(vm_insert_mixed);
  1941. /*
  1942. * maps a range of physical memory into the requested pages. the old
  1943. * mappings are removed. any references to nonexistent pages results
  1944. * in null mappings (currently treated as "copy-on-access")
  1945. */
  1946. static int remap_pte_range(struct mm_struct *mm, pmd_t *pmd,
  1947. unsigned long addr, unsigned long end,
  1948. unsigned long pfn, pgprot_t prot)
  1949. {
  1950. pte_t *pte;
  1951. spinlock_t *ptl;
  1952. pte = pte_alloc_map_lock(mm, pmd, addr, &ptl);
  1953. if (!pte)
  1954. return -ENOMEM;
  1955. arch_enter_lazy_mmu_mode();
  1956. do {
  1957. BUG_ON(!pte_none(*pte));
  1958. set_pte_at(mm, addr, pte, pte_mkspecial(pfn_pte(pfn, prot)));
  1959. pfn++;
  1960. } while (pte++, addr += PAGE_SIZE, addr != end);
  1961. arch_leave_lazy_mmu_mode();
  1962. pte_unmap_unlock(pte - 1, ptl);
  1963. return 0;
  1964. }
  1965. static inline int remap_pmd_range(struct mm_struct *mm, pud_t *pud,
  1966. unsigned long addr, unsigned long end,
  1967. unsigned long pfn, pgprot_t prot)
  1968. {
  1969. pmd_t *pmd;
  1970. unsigned long next;
  1971. pfn -= addr >> PAGE_SHIFT;
  1972. pmd = pmd_alloc(mm, pud, addr);
  1973. if (!pmd)
  1974. return -ENOMEM;
  1975. VM_BUG_ON(pmd_trans_huge(*pmd));
  1976. do {
  1977. next = pmd_addr_end(addr, end);
  1978. if (remap_pte_range(mm, pmd, addr, next,
  1979. pfn + (addr >> PAGE_SHIFT), prot))
  1980. return -ENOMEM;
  1981. } while (pmd++, addr = next, addr != end);
  1982. return 0;
  1983. }
  1984. static inline int remap_pud_range(struct mm_struct *mm, pgd_t *pgd,
  1985. unsigned long addr, unsigned long end,
  1986. unsigned long pfn, pgprot_t prot)
  1987. {
  1988. pud_t *pud;
  1989. unsigned long next;
  1990. pfn -= addr >> PAGE_SHIFT;
  1991. pud = pud_alloc(mm, pgd, addr);
  1992. if (!pud)
  1993. return -ENOMEM;
  1994. do {
  1995. next = pud_addr_end(addr, end);
  1996. if (remap_pmd_range(mm, pud, addr, next,
  1997. pfn + (addr >> PAGE_SHIFT), prot))
  1998. return -ENOMEM;
  1999. } while (pud++, addr = next, addr != end);
  2000. return 0;
  2001. }
  2002. /**
  2003. * remap_pfn_range - remap kernel memory to userspace
  2004. * @vma: user vma to map to
  2005. * @addr: target user address to start at
  2006. * @pfn: physical address of kernel memory
  2007. * @size: size of map area
  2008. * @prot: page protection flags for this mapping
  2009. *
  2010. * Note: this is only safe if the mm semaphore is held when called.
  2011. */
  2012. int remap_pfn_range(struct vm_area_struct *vma, unsigned long addr,
  2013. unsigned long pfn, unsigned long size, pgprot_t prot)
  2014. {
  2015. pgd_t *pgd;
  2016. unsigned long next;
  2017. unsigned long end = addr + PAGE_ALIGN(size);
  2018. struct mm_struct *mm = vma->vm_mm;
  2019. int err;
  2020. /*
  2021. * Physically remapped pages are special. Tell the
  2022. * rest of the world about it:
  2023. * VM_IO tells people not to look at these pages
  2024. * (accesses can have side effects).
  2025. * VM_RESERVED is specified all over the place, because
  2026. * in 2.4 it kept swapout's vma scan off this vma; but
  2027. * in 2.6 the LRU scan won't even find its pages, so this
  2028. * flag means no more than count its pages in reserved_vm,
  2029. * and omit it from core dump, even when VM_IO turned off.
  2030. * VM_PFNMAP tells the core MM that the base pages are just
  2031. * raw PFN mappings, and do not have a "struct page" associated
  2032. * with them.
  2033. *
  2034. * There's a horrible special case to handle copy-on-write
  2035. * behaviour that some programs depend on. We mark the "original"
  2036. * un-COW'ed pages by matching them up with "vma->vm_pgoff".
  2037. */
  2038. if (addr == vma->vm_start && end == vma->vm_end) {
  2039. vma->vm_pgoff = pfn;
  2040. vma->vm_flags |= VM_PFN_AT_MMAP;
  2041. } else if (is_cow_mapping(vma->vm_flags))
  2042. return -EINVAL;
  2043. vma->vm_flags |= VM_IO | VM_RESERVED | VM_PFNMAP;
  2044. err = track_pfn_vma_new(vma, &prot, pfn, PAGE_ALIGN(size));
  2045. if (err) {
  2046. /*
  2047. * To indicate that track_pfn related cleanup is not
  2048. * needed from higher level routine calling unmap_vmas
  2049. */
  2050. vma->vm_flags &= ~(VM_IO | VM_RESERVED | VM_PFNMAP);
  2051. vma->vm_flags &= ~VM_PFN_AT_MMAP;
  2052. return -EINVAL;
  2053. }
  2054. BUG_ON(addr >= end);
  2055. pfn -= addr >> PAGE_SHIFT;
  2056. pgd = pgd_offset(mm, addr);
  2057. flush_cache_range(vma, addr, end);
  2058. do {
  2059. next = pgd_addr_end(addr, end);
  2060. err = remap_pud_range(mm, pgd, addr, next,
  2061. pfn + (addr >> PAGE_SHIFT), prot);
  2062. if (err)
  2063. break;
  2064. } while (pgd++, addr = next, addr != end);
  2065. if (err)
  2066. untrack_pfn_vma(vma, pfn, PAGE_ALIGN(size));
  2067. return err;
  2068. }
  2069. EXPORT_SYMBOL(remap_pfn_range);
  2070. static int apply_to_pte_range(struct mm_struct *mm, pmd_t *pmd,
  2071. unsigned long addr, unsigned long end,
  2072. pte_fn_t fn, void *data)
  2073. {
  2074. pte_t *pte;
  2075. int err;
  2076. pgtable_t token;
  2077. spinlock_t *uninitialized_var(ptl);
  2078. pte = (mm == &init_mm) ?
  2079. pte_alloc_kernel(pmd, addr) :
  2080. pte_alloc_map_lock(mm, pmd, addr, &ptl);
  2081. if (!pte)
  2082. return -ENOMEM;
  2083. BUG_ON(pmd_huge(*pmd));
  2084. arch_enter_lazy_mmu_mode();
  2085. token = pmd_pgtable(*pmd);
  2086. do {
  2087. err = fn(pte++, token, addr, data);
  2088. if (err)
  2089. break;
  2090. } while (addr += PAGE_SIZE, addr != end);
  2091. arch_leave_lazy_mmu_mode();
  2092. if (mm != &init_mm)
  2093. pte_unmap_unlock(pte-1, ptl);
  2094. return err;
  2095. }
  2096. static int apply_to_pmd_range(struct mm_struct *mm, pud_t *pud,
  2097. unsigned long addr, unsigned long end,
  2098. pte_fn_t fn, void *data)
  2099. {
  2100. pmd_t *pmd;
  2101. unsigned long next;
  2102. int err;
  2103. BUG_ON(pud_huge(*pud));
  2104. pmd = pmd_alloc(mm, pud, addr);
  2105. if (!pmd)
  2106. return -ENOMEM;
  2107. do {
  2108. next = pmd_addr_end(addr, end);
  2109. err = apply_to_pte_range(mm, pmd, addr, next, fn, data);
  2110. if (err)
  2111. break;
  2112. } while (pmd++, addr = next, addr != end);
  2113. return err;
  2114. }
  2115. static int apply_to_pud_range(struct mm_struct *mm, pgd_t *pgd,
  2116. unsigned long addr, unsigned long end,
  2117. pte_fn_t fn, void *data)
  2118. {
  2119. pud_t *pud;
  2120. unsigned long next;
  2121. int err;
  2122. pud = pud_alloc(mm, pgd, addr);
  2123. if (!pud)
  2124. return -ENOMEM;
  2125. do {
  2126. next = pud_addr_end(addr, end);
  2127. err = apply_to_pmd_range(mm, pud, addr, next, fn, data);
  2128. if (err)
  2129. break;
  2130. } while (pud++, addr = next, addr != end);
  2131. return err;
  2132. }
  2133. /*
  2134. * Scan a region of virtual memory, filling in page tables as necessary
  2135. * and calling a provided function on each leaf page table.
  2136. */
  2137. int apply_to_page_range(struct mm_struct *mm, unsigned long addr,
  2138. unsigned long size, pte_fn_t fn, void *data)
  2139. {
  2140. pgd_t *pgd;
  2141. unsigned long next;
  2142. unsigned long end = addr + size;
  2143. int err;
  2144. BUG_ON(addr >= end);
  2145. pgd = pgd_offset(mm, addr);
  2146. do {
  2147. next = pgd_addr_end(addr, end);
  2148. err = apply_to_pud_range(mm, pgd, addr, next, fn, data);
  2149. if (err)
  2150. break;
  2151. } while (pgd++, addr = next, addr != end);
  2152. return err;
  2153. }
  2154. EXPORT_SYMBOL_GPL(apply_to_page_range);
  2155. /*
  2156. * handle_pte_fault chooses page fault handler according to an entry
  2157. * which was read non-atomically. Before making any commitment, on
  2158. * those architectures or configurations (e.g. i386 with PAE) which
  2159. * might give a mix of unmatched parts, do_swap_page and do_nonlinear_fault
  2160. * must check under lock before unmapping the pte and proceeding
  2161. * (but do_wp_page is only called after already making such a check;
  2162. * and do_anonymous_page can safely check later on).
  2163. */
  2164. static inline int pte_unmap_same(struct mm_struct *mm, pmd_t *pmd,
  2165. pte_t *page_table, pte_t orig_pte)
  2166. {
  2167. int same = 1;
  2168. #if defined(CONFIG_SMP) || defined(CONFIG_PREEMPT)
  2169. if (sizeof(pte_t) > sizeof(unsigned long)) {
  2170. spinlock_t *ptl = pte_lockptr(mm, pmd);
  2171. spin_lock(ptl);
  2172. same = pte_same(*page_table, orig_pte);
  2173. spin_unlock(ptl);
  2174. }
  2175. #endif
  2176. pte_unmap(page_table);
  2177. return same;
  2178. }
  2179. static inline void cow_user_page(struct page *dst, struct page *src, unsigned long va, struct vm_area_struct *vma)
  2180. {
  2181. /*
  2182. * If the source page was a PFN mapping, we don't have
  2183. * a "struct page" for it. We do a best-effort copy by
  2184. * just copying from the original user address. If that
  2185. * fails, we just zero-fill it. Live with it.
  2186. */
  2187. if (unlikely(!src)) {
  2188. void *kaddr = kmap_atomic(dst, KM_USER0);
  2189. void __user *uaddr = (void __user *)(va & PAGE_MASK);
  2190. /*
  2191. * This really shouldn't fail, because the page is there
  2192. * in the page tables. But it might just be unreadable,
  2193. * in which case we just give up and fill the result with
  2194. * zeroes.
  2195. */
  2196. if (__copy_from_user_inatomic(kaddr, uaddr, PAGE_SIZE))
  2197. clear_page(kaddr);
  2198. kunmap_atomic(kaddr, KM_USER0);
  2199. flush_dcache_page(dst);
  2200. } else
  2201. copy_user_highpage(dst, src, va, vma);
  2202. }
  2203. /*
  2204. * This routine handles present pages, when users try to write
  2205. * to a shared page. It is done by copying the page to a new address
  2206. * and decrementing the shared-page counter for the old page.
  2207. *
  2208. * Note that this routine assumes that the protection checks have been
  2209. * done by the caller (the low-level page fault routine in most cases).
  2210. * Thus we can safely just mark it writable once we've done any necessary
  2211. * COW.
  2212. *
  2213. * We also mark the page dirty at this point even though the page will
  2214. * change only once the write actually happens. This avoids a few races,
  2215. * and potentially makes it more efficient.
  2216. *
  2217. * We enter with non-exclusive mmap_sem (to exclude vma changes,
  2218. * but allow concurrent faults), with pte both mapped and locked.
  2219. * We return with mmap_sem still held, but pte unmapped and unlocked.
  2220. */
  2221. static int do_wp_page(struct mm_struct *mm, struct vm_area_struct *vma,
  2222. unsigned long address, pte_t *page_table, pmd_t *pmd,
  2223. spinlock_t *ptl, pte_t orig_pte)
  2224. __releases(ptl)
  2225. {
  2226. struct page *old_page, *new_page;
  2227. pte_t entry;
  2228. int ret = 0;
  2229. int page_mkwrite = 0;
  2230. struct page *dirty_page = NULL;
  2231. old_page = vm_normal_page(vma, address, orig_pte);
  2232. if (!old_page) {
  2233. /*
  2234. * VM_MIXEDMAP !pfn_valid() case
  2235. *
  2236. * We should not cow pages in a shared writeable mapping.
  2237. * Just mark the pages writable as we can't do any dirty
  2238. * accounting on raw pfn maps.
  2239. */
  2240. if ((vma->vm_flags & (VM_WRITE|VM_SHARED)) ==
  2241. (VM_WRITE|VM_SHARED))
  2242. goto reuse;
  2243. goto gotten;
  2244. }
  2245. /*
  2246. * Take out anonymous pages first, anonymous shared vmas are
  2247. * not dirty accountable.
  2248. */
  2249. if (PageAnon(old_page) && !PageKsm(old_page)) {
  2250. if (!trylock_page(old_page)) {
  2251. page_cache_get(old_page);
  2252. pte_unmap_unlock(page_table, ptl);
  2253. lock_page(old_page);
  2254. page_table = pte_offset_map_lock(mm, pmd, address,
  2255. &ptl);
  2256. if (!pte_same(*page_table, orig_pte)) {
  2257. unlock_page(old_page);
  2258. goto unlock;
  2259. }
  2260. page_cache_release(old_page);
  2261. }
  2262. if (reuse_swap_page(old_page)) {
  2263. /*
  2264. * The page is all ours. Move it to our anon_vma so
  2265. * the rmap code will not search our parent or siblings.
  2266. * Protected against the rmap code by the page lock.
  2267. */
  2268. page_move_anon_rmap(old_page, vma, address);
  2269. unlock_page(old_page);
  2270. goto reuse;
  2271. }
  2272. unlock_page(old_page);
  2273. } else if (unlikely((vma->vm_flags & (VM_WRITE|VM_SHARED)) ==
  2274. (VM_WRITE|VM_SHARED))) {
  2275. /*
  2276. * Only catch write-faults on shared writable pages,
  2277. * read-only shared pages can get COWed by
  2278. * get_user_pages(.write=1, .force=1).
  2279. */
  2280. if (vma->vm_ops && vma->vm_ops->page_mkwrite) {
  2281. struct vm_fault vmf;
  2282. int tmp;
  2283. vmf.virtual_address = (void __user *)(address &
  2284. PAGE_MASK);
  2285. vmf.pgoff = old_page->index;
  2286. vmf.flags = FAULT_FLAG_WRITE|FAULT_FLAG_MKWRITE;
  2287. vmf.page = old_page;
  2288. /*
  2289. * Notify the address space that the page is about to
  2290. * become writable so that it can prohibit this or wait
  2291. * for the page to get into an appropriate state.
  2292. *
  2293. * We do this without the lock held, so that it can
  2294. * sleep if it needs to.
  2295. */
  2296. page_cache_get(old_page);
  2297. pte_unmap_unlock(page_table, ptl);
  2298. tmp = vma->vm_ops->page_mkwrite(vma, &vmf);
  2299. if (unlikely(tmp &
  2300. (VM_FAULT_ERROR | VM_FAULT_NOPAGE))) {
  2301. ret = tmp;
  2302. goto unwritable_page;
  2303. }
  2304. if (unlikely(!(tmp & VM_FAULT_LOCKED))) {
  2305. lock_page(old_page);
  2306. if (!old_page->mapping) {
  2307. ret = 0; /* retry the fault */
  2308. unlock_page(old_page);
  2309. goto unwritable_page;
  2310. }
  2311. } else
  2312. VM_BUG_ON(!PageLocked(old_page));
  2313. /*
  2314. * Since we dropped the lock we need to revalidate
  2315. * the PTE as someone else may have changed it. If
  2316. * they did, we just return, as we can count on the
  2317. * MMU to tell us if they didn't also make it writable.
  2318. */
  2319. page_table = pte_offset_map_lock(mm, pmd, address,
  2320. &ptl);
  2321. if (!pte_same(*page_table, orig_pte)) {
  2322. unlock_page(old_page);
  2323. goto unlock;
  2324. }
  2325. page_mkwrite = 1;
  2326. }
  2327. dirty_page = old_page;
  2328. get_page(dirty_page);
  2329. reuse:
  2330. flush_cache_page(vma, address, pte_pfn(orig_pte));
  2331. entry = pte_mkyoung(orig_pte);
  2332. entry = maybe_mkwrite(pte_mkdirty(entry), vma);
  2333. if (ptep_set_access_flags(vma, address, page_table, entry,1))
  2334. update_mmu_cache(vma, address, page_table);
  2335. pte_unmap_unlock(page_table, ptl);
  2336. ret |= VM_FAULT_WRITE;
  2337. if (!dirty_page)
  2338. return ret;
  2339. /*
  2340. * Yes, Virginia, this is actually required to prevent a race
  2341. * with clear_page_dirty_for_io() from clearing the page dirty
  2342. * bit after it clear all dirty ptes, but before a racing
  2343. * do_wp_page installs a dirty pte.
  2344. *
  2345. * __do_fault is protected similarly.
  2346. */
  2347. if (!page_mkwrite) {
  2348. wait_on_page_locked(dirty_page);
  2349. set_page_dirty_balance(dirty_page, page_mkwrite);
  2350. }
  2351. put_page(dirty_page);
  2352. if (page_mkwrite) {
  2353. struct address_space *mapping = dirty_page->mapping;
  2354. set_page_dirty(dirty_page);
  2355. unlock_page(dirty_page);
  2356. page_cache_release(dirty_page);
  2357. if (mapping) {
  2358. /*
  2359. * Some device drivers do not set page.mapping
  2360. * but still dirty their pages
  2361. */
  2362. balance_dirty_pages_ratelimited(mapping);
  2363. }
  2364. }
  2365. /* file_update_time outside page_lock */
  2366. if (vma->vm_file)
  2367. file_update_time(vma->vm_file);
  2368. return ret;
  2369. }
  2370. /*
  2371. * Ok, we need to copy. Oh, well..
  2372. */
  2373. page_cache_get(old_page);
  2374. gotten:
  2375. pte_unmap_unlock(page_table, ptl);
  2376. if (unlikely(anon_vma_prepare(vma)))
  2377. goto oom;
  2378. if (is_zero_pfn(pte_pfn(orig_pte))) {
  2379. new_page = alloc_zeroed_user_highpage_movable(vma, address);
  2380. if (!new_page)
  2381. goto oom;
  2382. } else {
  2383. new_page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, address);
  2384. if (!new_page)
  2385. goto oom;
  2386. cow_user_page(new_page, old_page, address, vma);
  2387. }
  2388. __SetPageUptodate(new_page);
  2389. if (mem_cgroup_newpage_charge(new_page, mm, GFP_KERNEL))
  2390. goto oom_free_new;
  2391. /*
  2392. * Re-check the pte - we dropped the lock
  2393. */
  2394. page_table = pte_offset_map_lock(mm, pmd, address, &ptl);
  2395. if (likely(pte_same(*page_table, orig_pte))) {
  2396. if (old_page) {
  2397. if (!PageAnon(old_page)) {
  2398. dec_mm_counter_fast(mm, MM_FILEPAGES);
  2399. inc_mm_counter_fast(mm, MM_ANONPAGES);
  2400. }
  2401. } else
  2402. inc_mm_counter_fast(mm, MM_ANONPAGES);
  2403. flush_cache_page(vma, address, pte_pfn(orig_pte));
  2404. entry = mk_pte(new_page, vma->vm_page_prot);
  2405. entry = maybe_mkwrite(pte_mkdirty(entry), vma);
  2406. /*
  2407. * Clear the pte entry and flush it first, before updating the
  2408. * pte with the new entry. This will avoid a race condition
  2409. * seen in the presence of one thread doing SMC and another
  2410. * thread doing COW.
  2411. */
  2412. ptep_clear_flush(vma, address, page_table);
  2413. page_add_new_anon_rmap(new_page, vma, address);
  2414. /*
  2415. * We call the notify macro here because, when using secondary
  2416. * mmu page tables (such as kvm shadow page tables), we want the
  2417. * new page to be mapped directly into the secondary page table.
  2418. */
  2419. set_pte_at_notify(mm, address, page_table, entry);
  2420. update_mmu_cache(vma, address, page_table);
  2421. if (old_page) {
  2422. /*
  2423. * Only after switching the pte to the new page may
  2424. * we remove the mapcount here. Otherwise another
  2425. * process may come and find the rmap count decremented
  2426. * before the pte is switched to the new page, and
  2427. * "reuse" the old page writing into it while our pte
  2428. * here still points into it and can be read by other
  2429. * threads.
  2430. *
  2431. * The critical issue is to order this
  2432. * page_remove_rmap with the ptp_clear_flush above.
  2433. * Those stores are ordered by (if nothing else,)
  2434. * the barrier present in the atomic_add_negative
  2435. * in page_remove_rmap.
  2436. *
  2437. * Then the TLB flush in ptep_clear_flush ensures that
  2438. * no process can access the old page before the
  2439. * decremented mapcount is visible. And the old page
  2440. * cannot be reused until after the decremented
  2441. * mapcount is visible. So transitively, TLBs to
  2442. * old page will be flushed before it can be reused.
  2443. */
  2444. page_remove_rmap(old_page);
  2445. }
  2446. /* Free the old page.. */
  2447. new_page = old_page;
  2448. ret |= VM_FAULT_WRITE;
  2449. } else
  2450. mem_cgroup_uncharge_page(new_page);
  2451. if (new_page)
  2452. page_cache_release(new_page);
  2453. unlock:
  2454. pte_unmap_unlock(page_table, ptl);
  2455. if (old_page) {
  2456. /*
  2457. * Don't let another task, with possibly unlocked vma,
  2458. * keep the mlocked page.
  2459. */
  2460. if ((ret & VM_FAULT_WRITE) && (vma->vm_flags & VM_LOCKED)) {
  2461. lock_page(old_page); /* LRU manipulation */
  2462. munlock_vma_page(old_page);
  2463. unlock_page(old_page);
  2464. }
  2465. page_cache_release(old_page);
  2466. }
  2467. return ret;
  2468. oom_free_new:
  2469. page_cache_release(new_page);
  2470. oom:
  2471. if (old_page) {
  2472. if (page_mkwrite) {
  2473. unlock_page(old_page);
  2474. page_cache_release(old_page);
  2475. }
  2476. page_cache_release(old_page);
  2477. }
  2478. return VM_FAULT_OOM;
  2479. unwritable_page:
  2480. page_cache_release(old_page);
  2481. return ret;
  2482. }
  2483. static void unmap_mapping_range_vma(struct vm_area_struct *vma,
  2484. unsigned long start_addr, unsigned long end_addr,
  2485. struct zap_details *details)
  2486. {
  2487. zap_page_range(vma, start_addr, end_addr - start_addr, details);
  2488. }
  2489. static inline void unmap_mapping_range_tree(struct prio_tree_root *root,
  2490. struct zap_details *details)
  2491. {
  2492. struct vm_area_struct *vma;
  2493. struct prio_tree_iter iter;
  2494. pgoff_t vba, vea, zba, zea;
  2495. vma_prio_tree_foreach(vma, &iter, root,
  2496. details->first_index, details->last_index) {
  2497. vba = vma->vm_pgoff;
  2498. vea = vba + ((vma->vm_end - vma->vm_start) >> PAGE_SHIFT) - 1;
  2499. /* Assume for now that PAGE_CACHE_SHIFT == PAGE_SHIFT */
  2500. zba = details->first_index;
  2501. if (zba < vba)
  2502. zba = vba;
  2503. zea = details->last_index;
  2504. if (zea > vea)
  2505. zea = vea;
  2506. unmap_mapping_range_vma(vma,
  2507. ((zba - vba) << PAGE_SHIFT) + vma->vm_start,
  2508. ((zea - vba + 1) << PAGE_SHIFT) + vma->vm_start,
  2509. details);
  2510. }
  2511. }
  2512. static inline void unmap_mapping_range_list(struct list_head *head,
  2513. struct zap_details *details)
  2514. {
  2515. struct vm_area_struct *vma;
  2516. /*
  2517. * In nonlinear VMAs there is no correspondence between virtual address
  2518. * offset and file offset. So we must perform an exhaustive search
  2519. * across *all* the pages in each nonlinear VMA, not just the pages
  2520. * whose virtual address lies outside the file truncation point.
  2521. */
  2522. list_for_each_entry(vma, head, shared.vm_set.list) {
  2523. details->nonlinear_vma = vma;
  2524. unmap_mapping_range_vma(vma, vma->vm_start, vma->vm_end, details);
  2525. }
  2526. }
  2527. /**
  2528. * unmap_mapping_range - unmap the portion of all mmaps in the specified address_space corresponding to the specified page range in the underlying file.
  2529. * @mapping: the address space containing mmaps to be unmapped.
  2530. * @holebegin: byte in first page to unmap, relative to the start of
  2531. * the underlying file. This will be rounded down to a PAGE_SIZE
  2532. * boundary. Note that this is different from truncate_pagecache(), which
  2533. * must keep the partial page. In contrast, we must get rid of
  2534. * partial pages.
  2535. * @holelen: size of prospective hole in bytes. This will be rounded
  2536. * up to a PAGE_SIZE boundary. A holelen of zero truncates to the
  2537. * end of the file.
  2538. * @even_cows: 1 when truncating a file, unmap even private COWed pages;
  2539. * but 0 when invalidating pagecache, don't throw away private data.
  2540. */
  2541. void unmap_mapping_range(struct address_space *mapping,
  2542. loff_t const holebegin, loff_t const holelen, int even_cows)
  2543. {
  2544. struct zap_details details;
  2545. pgoff_t hba = holebegin >> PAGE_SHIFT;
  2546. pgoff_t hlen = (holelen + PAGE_SIZE - 1) >> PAGE_SHIFT;
  2547. /* Check for overflow. */
  2548. if (sizeof(holelen) > sizeof(hlen)) {
  2549. long long holeend =
  2550. (holebegin + holelen + PAGE_SIZE - 1) >> PAGE_SHIFT;
  2551. if (holeend & ~(long long)ULONG_MAX)
  2552. hlen = ULONG_MAX - hba + 1;
  2553. }
  2554. details.check_mapping = even_cows? NULL: mapping;
  2555. details.nonlinear_vma = NULL;
  2556. details.first_index = hba;
  2557. details.last_index = hba + hlen - 1;
  2558. if (details.last_index < details.first_index)
  2559. details.last_index = ULONG_MAX;
  2560. mutex_lock(&mapping->i_mmap_mutex);
  2561. if (unlikely(!prio_tree_empty(&mapping->i_mmap)))
  2562. unmap_mapping_range_tree(&mapping->i_mmap, &details);
  2563. if (unlikely(!list_empty(&mapping->i_mmap_nonlinear)))
  2564. unmap_mapping_range_list(&mapping->i_mmap_nonlinear, &details);
  2565. mutex_unlock(&mapping->i_mmap_mutex);
  2566. }
  2567. EXPORT_SYMBOL(unmap_mapping_range);
  2568. /*
  2569. * We enter with non-exclusive mmap_sem (to exclude vma changes,
  2570. * but allow concurrent faults), and pte mapped but not yet locked.
  2571. * We return with mmap_sem still held, but pte unmapped and unlocked.
  2572. */
  2573. static int do_swap_page(struct mm_struct *mm, struct vm_area_struct *vma,
  2574. unsigned long address, pte_t *page_table, pmd_t *pmd,
  2575. unsigned int flags, pte_t orig_pte)
  2576. {
  2577. spinlock_t *ptl;
  2578. struct page *page, *swapcache = NULL;
  2579. swp_entry_t entry;
  2580. pte_t pte;
  2581. int locked;
  2582. struct mem_cgroup *ptr;
  2583. int exclusive = 0;
  2584. int ret = 0;
  2585. if (!pte_unmap_same(mm, pmd, page_table, orig_pte))
  2586. goto out;
  2587. entry = pte_to_swp_entry(orig_pte);
  2588. if (unlikely(non_swap_entry(entry))) {
  2589. if (is_migration_entry(entry)) {
  2590. migration_entry_wait(mm, pmd, address);
  2591. } else if (is_hwpoison_entry(entry)) {
  2592. ret = VM_FAULT_HWPOISON;
  2593. } else {
  2594. print_bad_pte(vma, address, orig_pte, NULL);
  2595. ret = VM_FAULT_SIGBUS;
  2596. }
  2597. goto out;
  2598. }
  2599. delayacct_set_flag(DELAYACCT_PF_SWAPIN);
  2600. page = lookup_swap_cache(entry);
  2601. if (!page) {
  2602. grab_swap_token(mm); /* Contend for token _before_ read-in */
  2603. page = swapin_readahead(entry,
  2604. GFP_HIGHUSER_MOVABLE, vma, address);
  2605. if (!page) {
  2606. /*
  2607. * Back out if somebody else faulted in this pte
  2608. * while we released the pte lock.
  2609. */
  2610. page_table = pte_offset_map_lock(mm, pmd, address, &ptl);
  2611. if (likely(pte_same(*page_table, orig_pte)))
  2612. ret = VM_FAULT_OOM;
  2613. delayacct_clear_flag(DELAYACCT_PF_SWAPIN);
  2614. goto unlock;
  2615. }
  2616. /* Had to read the page from swap area: Major fault */
  2617. ret = VM_FAULT_MAJOR;
  2618. count_vm_event(PGMAJFAULT);
  2619. mem_cgroup_count_vm_event(mm, PGMAJFAULT);
  2620. } else if (PageHWPoison(page)) {
  2621. /*
  2622. * hwpoisoned dirty swapcache pages are kept for killing
  2623. * owner processes (which may be unknown at hwpoison time)
  2624. */
  2625. ret = VM_FAULT_HWPOISON;
  2626. delayacct_clear_flag(DELAYACCT_PF_SWAPIN);
  2627. goto out_release;
  2628. }
  2629. locked = lock_page_or_retry(page, mm, flags);
  2630. delayacct_clear_flag(DELAYACCT_PF_SWAPIN);
  2631. if (!locked) {
  2632. ret |= VM_FAULT_RETRY;
  2633. goto out_release;
  2634. }
  2635. /*
  2636. * Make sure try_to_free_swap or reuse_swap_page or swapoff did not
  2637. * release the swapcache from under us. The page pin, and pte_same
  2638. * test below, are not enough to exclude that. Even if it is still
  2639. * swapcache, we need to check that the page's swap has not changed.
  2640. */
  2641. if (unlikely(!PageSwapCache(page) || page_private(page) != entry.val))
  2642. goto out_page;
  2643. if (ksm_might_need_to_copy(page, vma, address)) {
  2644. swapcache = page;
  2645. page = ksm_does_need_to_copy(page, vma, address);
  2646. if (unlikely(!page)) {
  2647. ret = VM_FAULT_OOM;
  2648. page = swapcache;
  2649. swapcache = NULL;
  2650. goto out_page;
  2651. }
  2652. }
  2653. if (mem_cgroup_try_charge_swapin(mm, page, GFP_KERNEL, &ptr)) {
  2654. ret = VM_FAULT_OOM;
  2655. goto out_page;
  2656. }
  2657. /*
  2658. * Back out if somebody else already faulted in this pte.
  2659. */
  2660. page_table = pte_offset_map_lock(mm, pmd, address, &ptl);
  2661. if (unlikely(!pte_same(*page_table, orig_pte)))
  2662. goto out_nomap;
  2663. if (unlikely(!PageUptodate(page))) {
  2664. ret = VM_FAULT_SIGBUS;
  2665. goto out_nomap;
  2666. }
  2667. /*
  2668. * The page isn't present yet, go ahead with the fault.
  2669. *
  2670. * Be careful about the sequence of operations here.
  2671. * To get its accounting right, reuse_swap_page() must be called
  2672. * while the page is counted on swap but not yet in mapcount i.e.
  2673. * before page_add_anon_rmap() and swap_free(); try_to_free_swap()
  2674. * must be called after the swap_free(), or it will never succeed.
  2675. * Because delete_from_swap_page() may be called by reuse_swap_page(),
  2676. * mem_cgroup_commit_charge_swapin() may not be able to find swp_entry
  2677. * in page->private. In this case, a record in swap_cgroup is silently
  2678. * discarded at swap_free().
  2679. */
  2680. inc_mm_counter_fast(mm, MM_ANONPAGES);
  2681. dec_mm_counter_fast(mm, MM_SWAPENTS);
  2682. pte = mk_pte(page, vma->vm_page_prot);
  2683. if ((flags & FAULT_FLAG_WRITE) && reuse_swap_page(page)) {
  2684. pte = maybe_mkwrite(pte_mkdirty(pte), vma);
  2685. flags &= ~FAULT_FLAG_WRITE;
  2686. ret |= VM_FAULT_WRITE;
  2687. exclusive = 1;
  2688. }
  2689. flush_icache_page(vma, page);
  2690. set_pte_at(mm, address, page_table, pte);
  2691. do_page_add_anon_rmap(page, vma, address, exclusive);
  2692. /* It's better to call commit-charge after rmap is established */
  2693. mem_cgroup_commit_charge_swapin(page, ptr);
  2694. swap_free(entry);
  2695. if (vm_swap_full() || (vma->vm_flags & VM_LOCKED) || PageMlocked(page))
  2696. try_to_free_swap(page);
  2697. unlock_page(page);
  2698. if (swapcache) {
  2699. /*
  2700. * Hold the lock to avoid the swap entry to be reused
  2701. * until we take the PT lock for the pte_same() check
  2702. * (to avoid false positives from pte_same). For
  2703. * further safety release the lock after the swap_free
  2704. * so that the swap count won't change under a
  2705. * parallel locked swapcache.
  2706. */
  2707. unlock_page(swapcache);
  2708. page_cache_release(swapcache);
  2709. }
  2710. if (flags & FAULT_FLAG_WRITE) {
  2711. ret |= do_wp_page(mm, vma, address, page_table, pmd, ptl, pte);
  2712. if (ret & VM_FAULT_ERROR)
  2713. ret &= VM_FAULT_ERROR;
  2714. goto out;
  2715. }
  2716. /* No need to invalidate - it was non-present before */
  2717. update_mmu_cache(vma, address, page_table);
  2718. unlock:
  2719. pte_unmap_unlock(page_table, ptl);
  2720. out:
  2721. return ret;
  2722. out_nomap:
  2723. mem_cgroup_cancel_charge_swapin(ptr);
  2724. pte_unmap_unlock(page_table, ptl);
  2725. out_page:
  2726. unlock_page(page);
  2727. out_release:
  2728. page_cache_release(page);
  2729. if (swapcache) {
  2730. unlock_page(swapcache);
  2731. page_cache_release(swapcache);
  2732. }
  2733. return ret;
  2734. }
  2735. /*
  2736. * This is like a special single-page "expand_{down|up}wards()",
  2737. * except we must first make sure that 'address{-|+}PAGE_SIZE'
  2738. * doesn't hit another vma.
  2739. */
  2740. static inline int check_stack_guard_page(struct vm_area_struct *vma, unsigned long address)
  2741. {
  2742. address &= PAGE_MASK;
  2743. if ((vma->vm_flags & VM_GROWSDOWN) && address == vma->vm_start) {
  2744. struct vm_area_struct *prev = vma->vm_prev;
  2745. /*
  2746. * Is there a mapping abutting this one below?
  2747. *
  2748. * That's only ok if it's the same stack mapping
  2749. * that has gotten split..
  2750. */
  2751. if (prev && prev->vm_end == address)
  2752. return prev->vm_flags & VM_GROWSDOWN ? 0 : -ENOMEM;
  2753. expand_downwards(vma, address - PAGE_SIZE);
  2754. }
  2755. if ((vma->vm_flags & VM_GROWSUP) && address + PAGE_SIZE == vma->vm_end) {
  2756. struct vm_area_struct *next = vma->vm_next;
  2757. /* As VM_GROWSDOWN but s/below/above/ */
  2758. if (next && next->vm_start == address + PAGE_SIZE)
  2759. return next->vm_flags & VM_GROWSUP ? 0 : -ENOMEM;
  2760. expand_upwards(vma, address + PAGE_SIZE);
  2761. }
  2762. return 0;
  2763. }
  2764. /*
  2765. * We enter with non-exclusive mmap_sem (to exclude vma changes,
  2766. * but allow concurrent faults), and pte mapped but not yet locked.
  2767. * We return with mmap_sem still held, but pte unmapped and unlocked.
  2768. */
  2769. static int do_anonymous_page(struct mm_struct *mm, struct vm_area_struct *vma,
  2770. unsigned long address, pte_t *page_table, pmd_t *pmd,
  2771. unsigned int flags)
  2772. {
  2773. struct page *page;
  2774. spinlock_t *ptl;
  2775. pte_t entry;
  2776. pte_unmap(page_table);
  2777. /* Check if we need to add a guard page to the stack */
  2778. if (check_stack_guard_page(vma, address) < 0)
  2779. return VM_FAULT_SIGBUS;
  2780. /* Use the zero-page for reads */
  2781. if (!(flags & FAULT_FLAG_WRITE)) {
  2782. entry = pte_mkspecial(pfn_pte(my_zero_pfn(address),
  2783. vma->vm_page_prot));
  2784. page_table = pte_offset_map_lock(mm, pmd, address, &ptl);
  2785. if (!pte_none(*page_table))
  2786. goto unlock;
  2787. goto setpte;
  2788. }
  2789. /* Allocate our own private page. */
  2790. if (unlikely(anon_vma_prepare(vma)))
  2791. goto oom;
  2792. page = alloc_zeroed_user_highpage_movable(vma, address);
  2793. if (!page)
  2794. goto oom;
  2795. __SetPageUptodate(page);
  2796. if (mem_cgroup_newpage_charge(page, mm, GFP_KERNEL))
  2797. goto oom_free_page;
  2798. entry = mk_pte(page, vma->vm_page_prot);
  2799. if (vma->vm_flags & VM_WRITE)
  2800. entry = pte_mkwrite(pte_mkdirty(entry));
  2801. page_table = pte_offset_map_lock(mm, pmd, address, &ptl);
  2802. if (!pte_none(*page_table))
  2803. goto release;
  2804. inc_mm_counter_fast(mm, MM_ANONPAGES);
  2805. page_add_new_anon_rmap(page, vma, address);
  2806. setpte:
  2807. set_pte_at(mm, address, page_table, entry);
  2808. /* No need to invalidate - it was non-present before */
  2809. update_mmu_cache(vma, address, page_table);
  2810. unlock:
  2811. pte_unmap_unlock(page_table, ptl);
  2812. return 0;
  2813. release:
  2814. mem_cgroup_uncharge_page(page);
  2815. page_cache_release(page);
  2816. goto unlock;
  2817. oom_free_page:
  2818. page_cache_release(page);
  2819. oom:
  2820. return VM_FAULT_OOM;
  2821. }
  2822. /*
  2823. * __do_fault() tries to create a new page mapping. It aggressively
  2824. * tries to share with existing pages, but makes a separate copy if
  2825. * the FAULT_FLAG_WRITE is set in the flags parameter in order to avoid
  2826. * the next page fault.
  2827. *
  2828. * As this is called only for pages that do not currently exist, we
  2829. * do not need to flush old virtual caches or the TLB.
  2830. *
  2831. * We enter with non-exclusive mmap_sem (to exclude vma changes,
  2832. * but allow concurrent faults), and pte neither mapped nor locked.
  2833. * We return with mmap_sem still held, but pte unmapped and unlocked.
  2834. */
  2835. static int __do_fault(struct mm_struct *mm, struct vm_area_struct *vma,
  2836. unsigned long address, pmd_t *pmd,
  2837. pgoff_t pgoff, unsigned int flags, pte_t orig_pte)
  2838. {
  2839. pte_t *page_table;
  2840. spinlock_t *ptl;
  2841. struct page *page;
  2842. struct page *cow_page;
  2843. pte_t entry;
  2844. int anon = 0;
  2845. struct page *dirty_page = NULL;
  2846. struct vm_fault vmf;
  2847. int ret;
  2848. int page_mkwrite = 0;
  2849. /*
  2850. * If we do COW later, allocate page befor taking lock_page()
  2851. * on the file cache page. This will reduce lock holding time.
  2852. */
  2853. if ((flags & FAULT_FLAG_WRITE) && !(vma->vm_flags & VM_SHARED)) {
  2854. if (unlikely(anon_vma_prepare(vma)))
  2855. return VM_FAULT_OOM;
  2856. cow_page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, address);
  2857. if (!cow_page)
  2858. return VM_FAULT_OOM;
  2859. if (mem_cgroup_newpage_charge(cow_page, mm, GFP_KERNEL)) {
  2860. page_cache_release(cow_page);
  2861. return VM_FAULT_OOM;
  2862. }
  2863. } else
  2864. cow_page = NULL;
  2865. vmf.virtual_address = (void __user *)(address & PAGE_MASK);
  2866. vmf.pgoff = pgoff;
  2867. vmf.flags = flags;
  2868. vmf.page = NULL;
  2869. ret = vma->vm_ops->fault(vma, &vmf);
  2870. if (unlikely(ret & (VM_FAULT_ERROR | VM_FAULT_NOPAGE |
  2871. VM_FAULT_RETRY)))
  2872. goto uncharge_out;
  2873. if (unlikely(PageHWPoison(vmf.page))) {
  2874. if (ret & VM_FAULT_LOCKED)
  2875. unlock_page(vmf.page);
  2876. ret = VM_FAULT_HWPOISON;
  2877. goto uncharge_out;
  2878. }
  2879. /*
  2880. * For consistency in subsequent calls, make the faulted page always
  2881. * locked.
  2882. */
  2883. if (unlikely(!(ret & VM_FAULT_LOCKED)))
  2884. lock_page(vmf.page);
  2885. else
  2886. VM_BUG_ON(!PageLocked(vmf.page));
  2887. /*
  2888. * Should we do an early C-O-W break?
  2889. */
  2890. page = vmf.page;
  2891. if (flags & FAULT_FLAG_WRITE) {
  2892. if (!(vma->vm_flags & VM_SHARED)) {
  2893. page = cow_page;
  2894. anon = 1;
  2895. copy_user_highpage(page, vmf.page, address, vma);
  2896. __SetPageUptodate(page);
  2897. } else {
  2898. /*
  2899. * If the page will be shareable, see if the backing
  2900. * address space wants to know that the page is about
  2901. * to become writable
  2902. */
  2903. if (vma->vm_ops->page_mkwrite) {
  2904. int tmp;
  2905. unlock_page(page);
  2906. vmf.flags = FAULT_FLAG_WRITE|FAULT_FLAG_MKWRITE;
  2907. tmp = vma->vm_ops->page_mkwrite(vma, &vmf);
  2908. if (unlikely(tmp &
  2909. (VM_FAULT_ERROR | VM_FAULT_NOPAGE))) {
  2910. ret = tmp;
  2911. goto unwritable_page;
  2912. }
  2913. if (unlikely(!(tmp & VM_FAULT_LOCKED))) {
  2914. lock_page(page);
  2915. if (!page->mapping) {
  2916. ret = 0; /* retry the fault */
  2917. unlock_page(page);
  2918. goto unwritable_page;
  2919. }
  2920. } else
  2921. VM_BUG_ON(!PageLocked(page));
  2922. page_mkwrite = 1;
  2923. }
  2924. }
  2925. }
  2926. page_table = pte_offset_map_lock(mm, pmd, address, &ptl);
  2927. /*
  2928. * This silly early PAGE_DIRTY setting removes a race
  2929. * due to the bad i386 page protection. But it's valid
  2930. * for other architectures too.
  2931. *
  2932. * Note that if FAULT_FLAG_WRITE is set, we either now have
  2933. * an exclusive copy of the page, or this is a shared mapping,
  2934. * so we can make it writable and dirty to avoid having to
  2935. * handle that later.
  2936. */
  2937. /* Only go through if we didn't race with anybody else... */
  2938. if (likely(pte_same(*page_table, orig_pte))) {
  2939. flush_icache_page(vma, page);
  2940. entry = mk_pte(page, vma->vm_page_prot);
  2941. if (flags & FAULT_FLAG_WRITE)
  2942. entry = maybe_mkwrite(pte_mkdirty(entry), vma);
  2943. if (anon) {
  2944. inc_mm_counter_fast(mm, MM_ANONPAGES);
  2945. page_add_new_anon_rmap(page, vma, address);
  2946. } else {
  2947. inc_mm_counter_fast(mm, MM_FILEPAGES);
  2948. page_add_file_rmap(page);
  2949. if (flags & FAULT_FLAG_WRITE) {
  2950. dirty_page = page;
  2951. get_page(dirty_page);
  2952. }
  2953. }
  2954. set_pte_at(mm, address, page_table, entry);
  2955. /* no need to invalidate: a not-present page won't be cached */
  2956. update_mmu_cache(vma, address, page_table);
  2957. } else {
  2958. if (cow_page)
  2959. mem_cgroup_uncharge_page(cow_page);
  2960. if (anon)
  2961. page_cache_release(page);
  2962. else
  2963. anon = 1; /* no anon but release faulted_page */
  2964. }
  2965. pte_unmap_unlock(page_table, ptl);
  2966. if (dirty_page) {
  2967. struct address_space *mapping = page->mapping;
  2968. if (set_page_dirty(dirty_page))
  2969. page_mkwrite = 1;
  2970. unlock_page(dirty_page);
  2971. put_page(dirty_page);
  2972. if (page_mkwrite && mapping) {
  2973. /*
  2974. * Some device drivers do not set page.mapping but still
  2975. * dirty their pages
  2976. */
  2977. balance_dirty_pages_ratelimited(mapping);
  2978. }
  2979. /* file_update_time outside page_lock */
  2980. if (vma->vm_file)
  2981. file_update_time(vma->vm_file);
  2982. } else {
  2983. unlock_page(vmf.page);
  2984. if (anon)
  2985. page_cache_release(vmf.page);
  2986. }
  2987. return ret;
  2988. unwritable_page:
  2989. page_cache_release(page);
  2990. return ret;
  2991. uncharge_out:
  2992. /* fs's fault handler get error */
  2993. if (cow_page) {
  2994. mem_cgroup_uncharge_page(cow_page);
  2995. page_cache_release(cow_page);
  2996. }
  2997. return ret;
  2998. }
  2999. static int do_linear_fault(struct mm_struct *mm, struct vm_area_struct *vma,
  3000. unsigned long address, pte_t *page_table, pmd_t *pmd,
  3001. unsigned int flags, pte_t orig_pte)
  3002. {
  3003. pgoff_t pgoff = (((address & PAGE_MASK)
  3004. - vma->vm_start) >> PAGE_SHIFT) + vma->vm_pgoff;
  3005. pte_unmap(page_table);
  3006. return __do_fault(mm, vma, address, pmd, pgoff, flags, orig_pte);
  3007. }
  3008. /*
  3009. * Fault of a previously existing named mapping. Repopulate the pte
  3010. * from the encoded file_pte if possible. This enables swappable
  3011. * nonlinear vmas.
  3012. *
  3013. * We enter with non-exclusive mmap_sem (to exclude vma changes,
  3014. * but allow concurrent faults), and pte mapped but not yet locked.
  3015. * We return with mmap_sem still held, but pte unmapped and unlocked.
  3016. */
  3017. static int do_nonlinear_fault(struct mm_struct *mm, struct vm_area_struct *vma,
  3018. unsigned long address, pte_t *page_table, pmd_t *pmd,
  3019. unsigned int flags, pte_t orig_pte)
  3020. {
  3021. pgoff_t pgoff;
  3022. flags |= FAULT_FLAG_NONLINEAR;
  3023. if (!pte_unmap_same(mm, pmd, page_table, orig_pte))
  3024. return 0;
  3025. if (unlikely(!(vma->vm_flags & VM_NONLINEAR))) {
  3026. /*
  3027. * Page table corrupted: show pte and kill process.
  3028. */
  3029. print_bad_pte(vma, address, orig_pte, NULL);
  3030. return VM_FAULT_SIGBUS;
  3031. }
  3032. pgoff = pte_to_pgoff(orig_pte);
  3033. return __do_fault(mm, vma, address, pmd, pgoff, flags, orig_pte);
  3034. }
  3035. /*
  3036. * These routines also need to handle stuff like marking pages dirty
  3037. * and/or accessed for architectures that don't do it in hardware (most
  3038. * RISC architectures). The early dirtying is also good on the i386.
  3039. *
  3040. * There is also a hook called "update_mmu_cache()" that architectures
  3041. * with external mmu caches can use to update those (ie the Sparc or
  3042. * PowerPC hashed page tables that act as extended TLBs).
  3043. *
  3044. * We enter with non-exclusive mmap_sem (to exclude vma changes,
  3045. * but allow concurrent faults), and pte mapped but not yet locked.
  3046. * We return with mmap_sem still held, but pte unmapped and unlocked.
  3047. */
  3048. int handle_pte_fault(struct mm_struct *mm,
  3049. struct vm_area_struct *vma, unsigned long address,
  3050. pte_t *pte, pmd_t *pmd, unsigned int flags)
  3051. {
  3052. pte_t entry;
  3053. spinlock_t *ptl;
  3054. entry = *pte;
  3055. if (!pte_present(entry)) {
  3056. if (pte_none(entry)) {
  3057. if (vma->vm_ops) {
  3058. if (likely(vma->vm_ops->fault))
  3059. return do_linear_fault(mm, vma, address,
  3060. pte, pmd, flags, entry);
  3061. }
  3062. return do_anonymous_page(mm, vma, address,
  3063. pte, pmd, flags);
  3064. }
  3065. if (pte_file(entry))
  3066. return do_nonlinear_fault(mm, vma, address,
  3067. pte, pmd, flags, entry);
  3068. return do_swap_page(mm, vma, address,
  3069. pte, pmd, flags, entry);
  3070. }
  3071. ptl = pte_lockptr(mm, pmd);
  3072. spin_lock(ptl);
  3073. if (unlikely(!pte_same(*pte, entry)))
  3074. goto unlock;
  3075. if (flags & FAULT_FLAG_WRITE) {
  3076. if (!pte_write(entry))
  3077. return do_wp_page(mm, vma, address,
  3078. pte, pmd, ptl, entry);
  3079. entry = pte_mkdirty(entry);
  3080. }
  3081. entry = pte_mkyoung(entry);
  3082. if (ptep_set_access_flags(vma, address, pte, entry, flags & FAULT_FLAG_WRITE)) {
  3083. update_mmu_cache(vma, address, pte);
  3084. } else {
  3085. /*
  3086. * This is needed only for protection faults but the arch code
  3087. * is not yet telling us if this is a protection fault or not.
  3088. * This still avoids useless tlb flushes for .text page faults
  3089. * with threads.
  3090. */
  3091. if (flags & FAULT_FLAG_WRITE)
  3092. flush_tlb_fix_spurious_fault(vma, address);
  3093. }
  3094. unlock:
  3095. pte_unmap_unlock(pte, ptl);
  3096. return 0;
  3097. }
  3098. /*
  3099. * By the time we get here, we already hold the mm semaphore
  3100. */
  3101. int handle_mm_fault(struct mm_struct *mm, struct vm_area_struct *vma,
  3102. unsigned long address, unsigned int flags)
  3103. {
  3104. pgd_t *pgd;
  3105. pud_t *pud;
  3106. pmd_t *pmd;
  3107. pte_t *pte;
  3108. __set_current_state(TASK_RUNNING);
  3109. count_vm_event(PGFAULT);
  3110. mem_cgroup_count_vm_event(mm, PGFAULT);
  3111. /* do counter updates before entering really critical section. */
  3112. check_sync_rss_stat(current);
  3113. if (unlikely(is_vm_hugetlb_page(vma)))
  3114. return hugetlb_fault(mm, vma, address, flags);
  3115. pgd = pgd_offset(mm, address);
  3116. pud = pud_alloc(mm, pgd, address);
  3117. if (!pud)
  3118. return VM_FAULT_OOM;
  3119. pmd = pmd_alloc(mm, pud, address);
  3120. if (!pmd)
  3121. return VM_FAULT_OOM;
  3122. if (pmd_none(*pmd) && transparent_hugepage_enabled(vma)) {
  3123. if (!vma->vm_ops)
  3124. return do_huge_pmd_anonymous_page(mm, vma, address,
  3125. pmd, flags);
  3126. } else {
  3127. pmd_t orig_pmd = *pmd;
  3128. barrier();
  3129. if (pmd_trans_huge(orig_pmd)) {
  3130. if (flags & FAULT_FLAG_WRITE &&
  3131. !pmd_write(orig_pmd) &&
  3132. !pmd_trans_splitting(orig_pmd))
  3133. return do_huge_pmd_wp_page(mm, vma, address,
  3134. pmd, orig_pmd);
  3135. return 0;
  3136. }
  3137. }
  3138. /*
  3139. * Use __pte_alloc instead of pte_alloc_map, because we can't
  3140. * run pte_offset_map on the pmd, if an huge pmd could
  3141. * materialize from under us from a different thread.
  3142. */
  3143. if (unlikely(pmd_none(*pmd)) && __pte_alloc(mm, vma, pmd, address))
  3144. return VM_FAULT_OOM;
  3145. /* if an huge pmd materialized from under us just retry later */
  3146. if (unlikely(pmd_trans_huge(*pmd)))
  3147. return 0;
  3148. /*
  3149. * A regular pmd is established and it can't morph into a huge pmd
  3150. * from under us anymore at this point because we hold the mmap_sem
  3151. * read mode and khugepaged takes it in write mode. So now it's
  3152. * safe to run pte_offset_map().
  3153. */
  3154. pte = pte_offset_map(pmd, address);
  3155. return handle_pte_fault(mm, vma, address, pte, pmd, flags);
  3156. }
  3157. #ifndef __PAGETABLE_PUD_FOLDED
  3158. /*
  3159. * Allocate page upper directory.
  3160. * We've already handled the fast-path in-line.
  3161. */
  3162. int __pud_alloc(struct mm_struct *mm, pgd_t *pgd, unsigned long address)
  3163. {
  3164. pud_t *new = pud_alloc_one(mm, address);
  3165. if (!new)
  3166. return -ENOMEM;
  3167. smp_wmb(); /* See comment in __pte_alloc */
  3168. spin_lock(&mm->page_table_lock);
  3169. if (pgd_present(*pgd)) /* Another has populated it */
  3170. pud_free(mm, new);
  3171. else
  3172. pgd_populate(mm, pgd, new);
  3173. spin_unlock(&mm->page_table_lock);
  3174. return 0;
  3175. }
  3176. #endif /* __PAGETABLE_PUD_FOLDED */
  3177. #ifndef __PAGETABLE_PMD_FOLDED
  3178. /*
  3179. * Allocate page middle directory.
  3180. * We've already handled the fast-path in-line.
  3181. */
  3182. int __pmd_alloc(struct mm_struct *mm, pud_t *pud, unsigned long address)
  3183. {
  3184. pmd_t *new = pmd_alloc_one(mm, address);
  3185. if (!new)
  3186. return -ENOMEM;
  3187. smp_wmb(); /* See comment in __pte_alloc */
  3188. spin_lock(&mm->page_table_lock);
  3189. #ifndef __ARCH_HAS_4LEVEL_HACK
  3190. if (pud_present(*pud)) /* Another has populated it */
  3191. pmd_free(mm, new);
  3192. else
  3193. pud_populate(mm, pud, new);
  3194. #else
  3195. if (pgd_present(*pud)) /* Another has populated it */
  3196. pmd_free(mm, new);
  3197. else
  3198. pgd_populate(mm, pud, new);
  3199. #endif /* __ARCH_HAS_4LEVEL_HACK */
  3200. spin_unlock(&mm->page_table_lock);
  3201. return 0;
  3202. }
  3203. #endif /* __PAGETABLE_PMD_FOLDED */
  3204. int make_pages_present(unsigned long addr, unsigned long end)
  3205. {
  3206. int ret, len, write;
  3207. struct vm_area_struct * vma;
  3208. vma = find_vma(current->mm, addr);
  3209. if (!vma)
  3210. return -ENOMEM;
  3211. /*
  3212. * We want to touch writable mappings with a write fault in order
  3213. * to break COW, except for shared mappings because these don't COW
  3214. * and we would not want to dirty them for nothing.
  3215. */
  3216. write = (vma->vm_flags & (VM_WRITE | VM_SHARED)) == VM_WRITE;
  3217. BUG_ON(addr >= end);
  3218. BUG_ON(end > vma->vm_end);
  3219. len = DIV_ROUND_UP(end, PAGE_SIZE) - addr/PAGE_SIZE;
  3220. ret = get_user_pages(current, current->mm, addr,
  3221. len, write, 0, NULL, NULL);
  3222. if (ret < 0)
  3223. return ret;
  3224. return ret == len ? 0 : -EFAULT;
  3225. }
  3226. #if !defined(__HAVE_ARCH_GATE_AREA)
  3227. #if defined(AT_SYSINFO_EHDR)
  3228. static struct vm_area_struct gate_vma;
  3229. static int __init gate_vma_init(void)
  3230. {
  3231. gate_vma.vm_mm = NULL;
  3232. gate_vma.vm_start = FIXADDR_USER_START;
  3233. gate_vma.vm_end = FIXADDR_USER_END;
  3234. gate_vma.vm_flags = VM_READ | VM_MAYREAD | VM_EXEC | VM_MAYEXEC;
  3235. gate_vma.vm_page_prot = __P101;
  3236. /*
  3237. * Make sure the vDSO gets into every core dump.
  3238. * Dumping its contents makes post-mortem fully interpretable later
  3239. * without matching up the same kernel and hardware config to see
  3240. * what PC values meant.
  3241. */
  3242. gate_vma.vm_flags |= VM_ALWAYSDUMP;
  3243. return 0;
  3244. }
  3245. __initcall(gate_vma_init);
  3246. #endif
  3247. struct vm_area_struct *get_gate_vma(struct mm_struct *mm)
  3248. {
  3249. #ifdef AT_SYSINFO_EHDR
  3250. return &gate_vma;
  3251. #else
  3252. return NULL;
  3253. #endif
  3254. }
  3255. int in_gate_area_no_mm(unsigned long addr)
  3256. {
  3257. #ifdef AT_SYSINFO_EHDR
  3258. if ((addr >= FIXADDR_USER_START) && (addr < FIXADDR_USER_END))
  3259. return 1;
  3260. #endif
  3261. return 0;
  3262. }
  3263. #endif /* __HAVE_ARCH_GATE_AREA */
  3264. static int __follow_pte(struct mm_struct *mm, unsigned long address,
  3265. pte_t **ptepp, spinlock_t **ptlp)
  3266. {
  3267. pgd_t *pgd;
  3268. pud_t *pud;
  3269. pmd_t *pmd;
  3270. pte_t *ptep;
  3271. pgd = pgd_offset(mm, address);
  3272. if (pgd_none(*pgd) || unlikely(pgd_bad(*pgd)))
  3273. goto out;
  3274. pud = pud_offset(pgd, address);
  3275. if (pud_none(*pud) || unlikely(pud_bad(*pud)))
  3276. goto out;
  3277. pmd = pmd_offset(pud, address);
  3278. VM_BUG_ON(pmd_trans_huge(*pmd));
  3279. if (pmd_none(*pmd) || unlikely(pmd_bad(*pmd)))
  3280. goto out;
  3281. /* We cannot handle huge page PFN maps. Luckily they don't exist. */
  3282. if (pmd_huge(*pmd))
  3283. goto out;
  3284. ptep = pte_offset_map_lock(mm, pmd, address, ptlp);
  3285. if (!ptep)
  3286. goto out;
  3287. if (!pte_present(*ptep))
  3288. goto unlock;
  3289. *ptepp = ptep;
  3290. return 0;
  3291. unlock:
  3292. pte_unmap_unlock(ptep, *ptlp);
  3293. out:
  3294. return -EINVAL;
  3295. }
  3296. static inline int follow_pte(struct mm_struct *mm, unsigned long address,
  3297. pte_t **ptepp, spinlock_t **ptlp)
  3298. {
  3299. int res;
  3300. /* (void) is needed to make gcc happy */
  3301. (void) __cond_lock(*ptlp,
  3302. !(res = __follow_pte(mm, address, ptepp, ptlp)));
  3303. return res;
  3304. }
  3305. /**
  3306. * follow_pfn - look up PFN at a user virtual address
  3307. * @vma: memory mapping
  3308. * @address: user virtual address
  3309. * @pfn: location to store found PFN
  3310. *
  3311. * Only IO mappings and raw PFN mappings are allowed.
  3312. *
  3313. * Returns zero and the pfn at @pfn on success, -ve otherwise.
  3314. */
  3315. int follow_pfn(struct vm_area_struct *vma, unsigned long address,
  3316. unsigned long *pfn)
  3317. {
  3318. int ret = -EINVAL;
  3319. spinlock_t *ptl;
  3320. pte_t *ptep;
  3321. if (!(vma->vm_flags & (VM_IO | VM_PFNMAP)))
  3322. return ret;
  3323. ret = follow_pte(vma->vm_mm, address, &ptep, &ptl);
  3324. if (ret)
  3325. return ret;
  3326. *pfn = pte_pfn(*ptep);
  3327. pte_unmap_unlock(ptep, ptl);
  3328. return 0;
  3329. }
  3330. EXPORT_SYMBOL(follow_pfn);
  3331. #ifdef CONFIG_HAVE_IOREMAP_PROT
  3332. int follow_phys(struct vm_area_struct *vma,
  3333. unsigned long address, unsigned int flags,
  3334. unsigned long *prot, resource_size_t *phys)
  3335. {
  3336. int ret = -EINVAL;
  3337. pte_t *ptep, pte;
  3338. spinlock_t *ptl;
  3339. if (!(vma->vm_flags & (VM_IO | VM_PFNMAP)))
  3340. goto out;
  3341. if (follow_pte(vma->vm_mm, address, &ptep, &ptl))
  3342. goto out;
  3343. pte = *ptep;
  3344. if ((flags & FOLL_WRITE) && !pte_write(pte))
  3345. goto unlock;
  3346. *prot = pgprot_val(pte_pgprot(pte));
  3347. *phys = (resource_size_t)pte_pfn(pte) << PAGE_SHIFT;
  3348. ret = 0;
  3349. unlock:
  3350. pte_unmap_unlock(ptep, ptl);
  3351. out:
  3352. return ret;
  3353. }
  3354. int generic_access_phys(struct vm_area_struct *vma, unsigned long addr,
  3355. void *buf, int len, int write)
  3356. {
  3357. resource_size_t phys_addr;
  3358. unsigned long prot = 0;
  3359. void __iomem *maddr;
  3360. int offset = addr & (PAGE_SIZE-1);
  3361. if (follow_phys(vma, addr, write, &prot, &phys_addr))
  3362. return -EINVAL;
  3363. maddr = ioremap_prot(phys_addr, PAGE_SIZE, prot);
  3364. if (write)
  3365. memcpy_toio(maddr + offset, buf, len);
  3366. else
  3367. memcpy_fromio(buf, maddr + offset, len);
  3368. iounmap(maddr);
  3369. return len;
  3370. }
  3371. #endif
  3372. /*
  3373. * Access another process' address space as given in mm. If non-NULL, use the
  3374. * given task for page fault accounting.
  3375. */
  3376. static int __access_remote_vm(struct task_struct *tsk, struct mm_struct *mm,
  3377. unsigned long addr, void *buf, int len, int write)
  3378. {
  3379. struct vm_area_struct *vma;
  3380. void *old_buf = buf;
  3381. down_read(&mm->mmap_sem);
  3382. /* ignore errors, just check how much was successfully transferred */
  3383. while (len) {
  3384. int bytes, ret, offset;
  3385. void *maddr;
  3386. struct page *page = NULL;
  3387. ret = get_user_pages(tsk, mm, addr, 1,
  3388. write, 1, &page, &vma);
  3389. if (ret <= 0) {
  3390. /*
  3391. * Check if this is a VM_IO | VM_PFNMAP VMA, which
  3392. * we can access using slightly different code.
  3393. */
  3394. #ifdef CONFIG_HAVE_IOREMAP_PROT
  3395. vma = find_vma(mm, addr);
  3396. if (!vma || vma->vm_start > addr)
  3397. break;
  3398. if (vma->vm_ops && vma->vm_ops->access)
  3399. ret = vma->vm_ops->access(vma, addr, buf,
  3400. len, write);
  3401. if (ret <= 0)
  3402. #endif
  3403. break;
  3404. bytes = ret;
  3405. } else {
  3406. bytes = len;
  3407. offset = addr & (PAGE_SIZE-1);
  3408. if (bytes > PAGE_SIZE-offset)
  3409. bytes = PAGE_SIZE-offset;
  3410. maddr = kmap(page);
  3411. if (write) {
  3412. copy_to_user_page(vma, page, addr,
  3413. maddr + offset, buf, bytes);
  3414. set_page_dirty_lock(page);
  3415. } else {
  3416. copy_from_user_page(vma, page, addr,
  3417. buf, maddr + offset, bytes);
  3418. }
  3419. kunmap(page);
  3420. page_cache_release(page);
  3421. }
  3422. len -= bytes;
  3423. buf += bytes;
  3424. addr += bytes;
  3425. }
  3426. up_read(&mm->mmap_sem);
  3427. return buf - old_buf;
  3428. }
  3429. /**
  3430. * access_remote_vm - access another process' address space
  3431. * @mm: the mm_struct of the target address space
  3432. * @addr: start address to access
  3433. * @buf: source or destination buffer
  3434. * @len: number of bytes to transfer
  3435. * @write: whether the access is a write
  3436. *
  3437. * The caller must hold a reference on @mm.
  3438. */
  3439. int access_remote_vm(struct mm_struct *mm, unsigned long addr,
  3440. void *buf, int len, int write)
  3441. {
  3442. return __access_remote_vm(NULL, mm, addr, buf, len, write);
  3443. }
  3444. /*
  3445. * Access another process' address space.
  3446. * Source/target buffer must be kernel space,
  3447. * Do not walk the page table directly, use get_user_pages
  3448. */
  3449. int access_process_vm(struct task_struct *tsk, unsigned long addr,
  3450. void *buf, int len, int write)
  3451. {
  3452. struct mm_struct *mm;
  3453. int ret;
  3454. mm = get_task_mm(tsk);
  3455. if (!mm)
  3456. return 0;
  3457. ret = __access_remote_vm(tsk, mm, addr, buf, len, write);
  3458. mmput(mm);
  3459. return ret;
  3460. }
  3461. /*
  3462. * Print the name of a VMA.
  3463. */
  3464. void print_vma_addr(char *prefix, unsigned long ip)
  3465. {
  3466. struct mm_struct *mm = current->mm;
  3467. struct vm_area_struct *vma;
  3468. /*
  3469. * Do not print if we are in atomic
  3470. * contexts (in exception stacks, etc.):
  3471. */
  3472. if (preempt_count())
  3473. return;
  3474. down_read(&mm->mmap_sem);
  3475. vma = find_vma(mm, ip);
  3476. if (vma && vma->vm_file) {
  3477. struct file *f = vma->vm_file;
  3478. char *buf = (char *)__get_free_page(GFP_KERNEL);
  3479. if (buf) {
  3480. char *p, *s;
  3481. p = d_path(&f->f_path, buf, PAGE_SIZE);
  3482. if (IS_ERR(p))
  3483. p = "?";
  3484. s = strrchr(p, '/');
  3485. if (s)
  3486. p = s+1;
  3487. printk("%s%s[%lx+%lx]", prefix, p,
  3488. vma->vm_start,
  3489. vma->vm_end - vma->vm_start);
  3490. free_page((unsigned long)buf);
  3491. }
  3492. }
  3493. up_read(&current->mm->mmap_sem);
  3494. }
  3495. #ifdef CONFIG_PROVE_LOCKING
  3496. void might_fault(void)
  3497. {
  3498. /*
  3499. * Some code (nfs/sunrpc) uses socket ops on kernel memory while
  3500. * holding the mmap_sem, this is safe because kernel memory doesn't
  3501. * get paged out, therefore we'll never actually fault, and the
  3502. * below annotations will generate false positives.
  3503. */
  3504. if (segment_eq(get_fs(), KERNEL_DS))
  3505. return;
  3506. might_sleep();
  3507. /*
  3508. * it would be nicer only to annotate paths which are not under
  3509. * pagefault_disable, however that requires a larger audit and
  3510. * providing helpers like get_user_atomic.
  3511. */
  3512. if (!in_atomic() && current->mm)
  3513. might_lock_read(&current->mm->mmap_sem);
  3514. }
  3515. EXPORT_SYMBOL(might_fault);
  3516. #endif
  3517. #if defined(CONFIG_TRANSPARENT_HUGEPAGE) || defined(CONFIG_HUGETLBFS)
  3518. static void clear_gigantic_page(struct page *page,
  3519. unsigned long addr,
  3520. unsigned int pages_per_huge_page)
  3521. {
  3522. int i;
  3523. struct page *p = page;
  3524. might_sleep();
  3525. for (i = 0; i < pages_per_huge_page;
  3526. i++, p = mem_map_next(p, page, i)) {
  3527. cond_resched();
  3528. clear_user_highpage(p, addr + i * PAGE_SIZE);
  3529. }
  3530. }
  3531. void clear_huge_page(struct page *page,
  3532. unsigned long addr, unsigned int pages_per_huge_page)
  3533. {
  3534. int i;
  3535. if (unlikely(pages_per_huge_page > MAX_ORDER_NR_PAGES)) {
  3536. clear_gigantic_page(page, addr, pages_per_huge_page);
  3537. return;
  3538. }
  3539. might_sleep();
  3540. for (i = 0; i < pages_per_huge_page; i++) {
  3541. cond_resched();
  3542. clear_user_highpage(page + i, addr + i * PAGE_SIZE);
  3543. }
  3544. }
  3545. static void copy_user_gigantic_page(struct page *dst, struct page *src,
  3546. unsigned long addr,
  3547. struct vm_area_struct *vma,
  3548. unsigned int pages_per_huge_page)
  3549. {
  3550. int i;
  3551. struct page *dst_base = dst;
  3552. struct page *src_base = src;
  3553. for (i = 0; i < pages_per_huge_page; ) {
  3554. cond_resched();
  3555. copy_user_highpage(dst, src, addr + i*PAGE_SIZE, vma);
  3556. i++;
  3557. dst = mem_map_next(dst, dst_base, i);
  3558. src = mem_map_next(src, src_base, i);
  3559. }
  3560. }
  3561. void copy_user_huge_page(struct page *dst, struct page *src,
  3562. unsigned long addr, struct vm_area_struct *vma,
  3563. unsigned int pages_per_huge_page)
  3564. {
  3565. int i;
  3566. if (unlikely(pages_per_huge_page > MAX_ORDER_NR_PAGES)) {
  3567. copy_user_gigantic_page(dst, src, addr, vma,
  3568. pages_per_huge_page);
  3569. return;
  3570. }
  3571. might_sleep();
  3572. for (i = 0; i < pages_per_huge_page; i++) {
  3573. cond_resched();
  3574. copy_user_highpage(dst + i, src + i, addr + i*PAGE_SIZE, vma);
  3575. }
  3576. }
  3577. #endif /* CONFIG_TRANSPARENT_HUGEPAGE || CONFIG_HUGETLBFS */