1 /* 2 * linux/mm/memory.c 3 * 4 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds 5 */ 6 7 /* 8 * demand-loading started 01.12.91 - seems it is high on the list of 9 * things wanted, and it should be easy to implement. - Linus 10 */ 11 12 /* 13 * Ok, demand-loading was easy, shared pages a little bit tricker. Shared 14 * pages started 02.12.91, seems to work. - Linus. 15 * 16 * Tested sharing by executing about 30 /bin/sh: under the old kernel it 17 * would have taken more than the 6M I have free, but it worked well as 18 * far as I could see. 19 * 20 * Also corrected some "invalidate()"s - I wasn't doing enough of them. 21 */ 22 23 /* 24 * Real VM (paging to/from disk) started 18.12.91. Much more work and 25 * thought has to go into this. Oh, well.. 26 * 19.12.91 - works, somewhat. Sometimes I get faults, don't know why. 27 * Found it. Everything seems to work now. 28 * 20.12.91 - Ok, making the swap-device changeable like the root. 29 */ 30 31 /* 32 * 05.04.94 - Multi-page memory management added for v1.1. 33 * Idea by Alex Bligh (alex@cconcepts.co.uk) 34 * 35 * 16.07.99 - Support of BIGMEM added by Gerhard Wichert, Siemens AG 36 * (Gerhard.Wichert@pdb.siemens.de) 37 * 38 * Aug/Sep 2004 Changed to four level page tables (Andi Kleen) 39 */ 40 41 #include <linux/kernel_stat.h> 42 #include <linux/mm.h> 43 #include <linux/hugetlb.h> 44 #include <linux/mman.h> 45 #include <linux/swap.h> 46 #include <linux/highmem.h> 47 #include <linux/pagemap.h> 48 #include <linux/ksm.h> 49 #include <linux/rmap.h> 50 #include <linux/export.h> 51 #include <linux/delayacct.h> 52 #include <linux/init.h> 53 #include <linux/writeback.h> 54 #include <linux/memcontrol.h> 55 #include <linux/mmu_notifier.h> 56 #include <linux/kallsyms.h> 57 #include <linux/swapops.h> 58 #include <linux/elf.h> 59 #include <linux/gfp.h> 60 61 #include <asm/io.h> 62 #include <asm/pgalloc.h> 63 #include <asm/uaccess.h> 64 #include <asm/tlb.h> 65 #include <asm/tlbflush.h> 66 #include <asm/pgtable.h> 67 68 #include "internal.h" 69 70 #ifndef CONFIG_NEED_MULTIPLE_NODES 71 /* use the per-pgdat data instead for discontigmem - mbligh */ 72 unsigned long max_mapnr; 73 struct page *mem_map; 74 75 EXPORT_SYMBOL(max_mapnr); 76 EXPORT_SYMBOL(mem_map); 77 #endif 78 79 unsigned long num_physpages; 80 /* 81 * A number of key systems in x86 including ioremap() rely on the assumption 82 * that high_memory defines the upper bound on direct map memory, then end 83 * of ZONE_NORMAL. Under CONFIG_DISCONTIG this means that max_low_pfn and 84 * highstart_pfn must be the same; there must be no gap between ZONE_NORMAL 85 * and ZONE_HIGHMEM. 86 */ 87 void * high_memory; 88 89 EXPORT_SYMBOL(num_physpages); 90 EXPORT_SYMBOL(high_memory); 91 92 /* 93 * Randomize the address space (stacks, mmaps, brk, etc.). 94 * 95 * ( When CONFIG_COMPAT_BRK=y we exclude brk from randomization, 96 * as ancient (libc5 based) binaries can segfault. ) 97 */ 98 int randomize_va_space __read_mostly = 99 #ifdef CONFIG_COMPAT_BRK 100 1; 101 #else 102 2; 103 #endif 104 105 static int __init disable_randmaps(char *s) 106 { 107 randomize_va_space = 0; 108 return 1; 109 } 110 __setup("norandmaps", disable_randmaps); 111 112 unsigned long zero_pfn __read_mostly; 113 unsigned long highest_memmap_pfn __read_mostly; 114 115 /* 116 * CONFIG_MMU architectures set up ZERO_PAGE in their paging_init() 117 */ 118 static int __init init_zero_pfn(void) 119 { 120 zero_pfn = page_to_pfn(ZERO_PAGE(0)); 121 return 0; 122 } 123 core_initcall(init_zero_pfn); 124 125 126 #if defined(SPLIT_RSS_COUNTING) 127 128 void sync_mm_rss(struct mm_struct *mm) 129 { 130 int i; 131 132 for (i = 0; i < NR_MM_COUNTERS; i++) { 133 if (current->rss_stat.count[i]) { 134 add_mm_counter(mm, i, current->rss_stat.count[i]); 135 current->rss_stat.count[i] = 0; 136 } 137 } 138 current->rss_stat.events = 0; 139 } 140 141 static void add_mm_counter_fast(struct mm_struct *mm, int member, int val) 142 { 143 struct task_struct *task = current; 144 145 if (likely(task->mm == mm)) 146 task->rss_stat.count[member] += val; 147 else 148 add_mm_counter(mm, member, val); 149 } 150 #define inc_mm_counter_fast(mm, member) add_mm_counter_fast(mm, member, 1) 151 #define dec_mm_counter_fast(mm, member) add_mm_counter_fast(mm, member, -1) 152 153 /* sync counter once per 64 page faults */ 154 #define TASK_RSS_EVENTS_THRESH (64) 155 static void check_sync_rss_stat(struct task_struct *task) 156 { 157 if (unlikely(task != current)) 158 return; 159 if (unlikely(task->rss_stat.events++ > TASK_RSS_EVENTS_THRESH)) 160 sync_mm_rss(task->mm); 161 } 162 #else /* SPLIT_RSS_COUNTING */ 163 164 #define inc_mm_counter_fast(mm, member) inc_mm_counter(mm, member) 165 #define dec_mm_counter_fast(mm, member) dec_mm_counter(mm, member) 166 167 static void check_sync_rss_stat(struct task_struct *task) 168 { 169 } 170 171 #endif /* SPLIT_RSS_COUNTING */ 172 173 #ifdef HAVE_GENERIC_MMU_GATHER 174 175 static int tlb_next_batch(struct mmu_gather *tlb) 176 { 177 struct mmu_gather_batch *batch; 178 179 batch = tlb->active; 180 if (batch->next) { 181 tlb->active = batch->next; 182 return 1; 183 } 184 185 batch = (void *)__get_free_pages(GFP_NOWAIT | __GFP_NOWARN, 0); 186 if (!batch) 187 return 0; 188 189 batch->next = NULL; 190 batch->nr = 0; 191 batch->max = MAX_GATHER_BATCH; 192 193 tlb->active->next = batch; 194 tlb->active = batch; 195 196 return 1; 197 } 198 199 /* tlb_gather_mmu 200 * Called to initialize an (on-stack) mmu_gather structure for page-table 201 * tear-down from @mm. The @fullmm argument is used when @mm is without 202 * users and we're going to destroy the full address space (exit/execve). 203 */ 204 void tlb_gather_mmu(struct mmu_gather *tlb, struct mm_struct *mm, bool fullmm) 205 { 206 tlb->mm = mm; 207 208 tlb->fullmm = fullmm; 209 tlb->need_flush = 0; 210 tlb->fast_mode = (num_possible_cpus() == 1); 211 tlb->local.next = NULL; 212 tlb->local.nr = 0; 213 tlb->local.max = ARRAY_SIZE(tlb->__pages); 214 tlb->active = &tlb->local; 215 216 #ifdef CONFIG_HAVE_RCU_TABLE_FREE 217 tlb->batch = NULL; 218 #endif 219 } 220 221 void tlb_flush_mmu(struct mmu_gather *tlb) 222 { 223 struct mmu_gather_batch *batch; 224 225 if (!tlb->need_flush) 226 return; 227 tlb->need_flush = 0; 228 tlb_flush(tlb); 229 #ifdef CONFIG_HAVE_RCU_TABLE_FREE 230 tlb_table_flush(tlb); 231 #endif 232 233 if (tlb_fast_mode(tlb)) 234 return; 235 236 for (batch = &tlb->local; batch; batch = batch->next) { 237 free_pages_and_swap_cache(batch->pages, batch->nr); 238 batch->nr = 0; 239 } 240 tlb->active = &tlb->local; 241 } 242 243 /* tlb_finish_mmu 244 * Called at the end of the shootdown operation to free up any resources 245 * that were required. 246 */ 247 void tlb_finish_mmu(struct mmu_gather *tlb, unsigned long start, unsigned long end) 248 { 249 struct mmu_gather_batch *batch, *next; 250 251 tlb_flush_mmu(tlb); 252 253 /* keep the page table cache within bounds */ 254 check_pgt_cache(); 255 256 for (batch = tlb->local.next; batch; batch = next) { 257 next = batch->next; 258 free_pages((unsigned long)batch, 0); 259 } 260 tlb->local.next = NULL; 261 } 262 263 /* __tlb_remove_page 264 * Must perform the equivalent to __free_pte(pte_get_and_clear(ptep)), while 265 * handling the additional races in SMP caused by other CPUs caching valid 266 * mappings in their TLBs. Returns the number of free page slots left. 267 * When out of page slots we must call tlb_flush_mmu(). 268 */ 269 int __tlb_remove_page(struct mmu_gather *tlb, struct page *page) 270 { 271 struct mmu_gather_batch *batch; 272 273 VM_BUG_ON(!tlb->need_flush); 274 275 if (tlb_fast_mode(tlb)) { 276 free_page_and_swap_cache(page); 277 return 1; /* avoid calling tlb_flush_mmu() */ 278 } 279 280 batch = tlb->active; 281 batch->pages[batch->nr++] = page; 282 if (batch->nr == batch->max) { 283 if (!tlb_next_batch(tlb)) 284 return 0; 285 batch = tlb->active; 286 } 287 VM_BUG_ON(batch->nr > batch->max); 288 289 return batch->max - batch->nr; 290 } 291 292 #endif /* HAVE_GENERIC_MMU_GATHER */ 293 294 #ifdef CONFIG_HAVE_RCU_TABLE_FREE 295 296 /* 297 * See the comment near struct mmu_table_batch. 298 */ 299 300 static void tlb_remove_table_smp_sync(void *arg) 301 { 302 /* Simply deliver the interrupt */ 303 } 304 305 static void tlb_remove_table_one(void *table) 306 { 307 /* 308 * This isn't an RCU grace period and hence the page-tables cannot be 309 * assumed to be actually RCU-freed. 310 * 311 * It is however sufficient for software page-table walkers that rely on 312 * IRQ disabling. See the comment near struct mmu_table_batch. 313 */ 314 smp_call_function(tlb_remove_table_smp_sync, NULL, 1); 315 __tlb_remove_table(table); 316 } 317 318 static void tlb_remove_table_rcu(struct rcu_head *head) 319 { 320 struct mmu_table_batch *batch; 321 int i; 322 323 batch = container_of(head, struct mmu_table_batch, rcu); 324 325 for (i = 0; i < batch->nr; i++) 326 __tlb_remove_table(batch->tables[i]); 327 328 free_page((unsigned long)batch); 329 } 330 331 void tlb_table_flush(struct mmu_gather *tlb) 332 { 333 struct mmu_table_batch **batch = &tlb->batch; 334 335 if (*batch) { 336 call_rcu_sched(&(*batch)->rcu, tlb_remove_table_rcu); 337 *batch = NULL; 338 } 339 } 340 341 void tlb_remove_table(struct mmu_gather *tlb, void *table) 342 { 343 struct mmu_table_batch **batch = &tlb->batch; 344 345 tlb->need_flush = 1; 346 347 /* 348 * When there's less then two users of this mm there cannot be a 349 * concurrent page-table walk. 350 */ 351 if (atomic_read(&tlb->mm->mm_users) < 2) { 352 __tlb_remove_table(table); 353 return; 354 } 355 356 if (*batch == NULL) { 357 *batch = (struct mmu_table_batch *)__get_free_page(GFP_NOWAIT | __GFP_NOWARN); 358 if (*batch == NULL) { 359 tlb_remove_table_one(table); 360 return; 361 } 362 (*batch)->nr = 0; 363 } 364 (*batch)->tables[(*batch)->nr++] = table; 365 if ((*batch)->nr == MAX_TABLE_BATCH) 366 tlb_table_flush(tlb); 367 } 368 369 #endif /* CONFIG_HAVE_RCU_TABLE_FREE */ 370 371 /* 372 * If a p?d_bad entry is found while walking page tables, report 373 * the error, before resetting entry to p?d_none. Usually (but 374 * very seldom) called out from the p?d_none_or_clear_bad macros. 375 */ 376 377 void pgd_clear_bad(pgd_t *pgd) 378 { 379 pgd_ERROR(*pgd); 380 pgd_clear(pgd); 381 } 382 383 void pud_clear_bad(pud_t *pud) 384 { 385 pud_ERROR(*pud); 386 pud_clear(pud); 387 } 388 389 void pmd_clear_bad(pmd_t *pmd) 390 { 391 pmd_ERROR(*pmd); 392 pmd_clear(pmd); 393 } 394 395 /* 396 * Note: this doesn't free the actual pages themselves. That 397 * has been handled earlier when unmapping all the memory regions. 398 */ 399 static void free_pte_range(struct mmu_gather *tlb, pmd_t *pmd, 400 unsigned long addr) 401 { 402 pgtable_t token = pmd_pgtable(*pmd); 403 pmd_clear(pmd); 404 pte_free_tlb(tlb, token, addr); 405 tlb->mm->nr_ptes--; 406 } 407 408 static inline void free_pmd_range(struct mmu_gather *tlb, pud_t *pud, 409 unsigned long addr, unsigned long end, 410 unsigned long floor, unsigned long ceiling) 411 { 412 pmd_t *pmd; 413 unsigned long next; 414 unsigned long start; 415 416 start = addr; 417 pmd = pmd_offset(pud, addr); 418 do { 419 next = pmd_addr_end(addr, end); 420 if (pmd_none_or_clear_bad(pmd)) 421 continue; 422 free_pte_range(tlb, pmd, addr); 423 } while (pmd++, addr = next, addr != end); 424 425 start &= PUD_MASK; 426 if (start < floor) 427 return; 428 if (ceiling) { 429 ceiling &= PUD_MASK; 430 if (!ceiling) 431 return; 432 } 433 if (end - 1 > ceiling - 1) 434 return; 435 436 pmd = pmd_offset(pud, start); 437 pud_clear(pud); 438 pmd_free_tlb(tlb, pmd, start); 439 } 440 441 static inline void free_pud_range(struct mmu_gather *tlb, pgd_t *pgd, 442 unsigned long addr, unsigned long end, 443 unsigned long floor, unsigned long ceiling) 444 { 445 pud_t *pud; 446 unsigned long next; 447 unsigned long start; 448 449 start = addr; 450 pud = pud_offset(pgd, addr); 451 do { 452 next = pud_addr_end(addr, end); 453 if (pud_none_or_clear_bad(pud)) 454 continue; 455 free_pmd_range(tlb, pud, addr, next, floor, ceiling); 456 } while (pud++, addr = next, addr != end); 457 458 start &= PGDIR_MASK; 459 if (start < floor) 460 return; 461 if (ceiling) { 462 ceiling &= PGDIR_MASK; 463 if (!ceiling) 464 return; 465 } 466 if (end - 1 > ceiling - 1) 467 return; 468 469 pud = pud_offset(pgd, start); 470 pgd_clear(pgd); 471 pud_free_tlb(tlb, pud, start); 472 } 473 474 /* 475 * This function frees user-level page tables of a process. 476 * 477 * Must be called with pagetable lock held. 478 */ 479 void free_pgd_range(struct mmu_gather *tlb, 480 unsigned long addr, unsigned long end, 481 unsigned long floor, unsigned long ceiling) 482 { 483 pgd_t *pgd; 484 unsigned long next; 485 486 /* 487 * The next few lines have given us lots of grief... 488 * 489 * Why are we testing PMD* at this top level? Because often 490 * there will be no work to do at all, and we'd prefer not to 491 * go all the way down to the bottom just to discover that. 492 * 493 * Why all these "- 1"s? Because 0 represents both the bottom 494 * of the address space and the top of it (using -1 for the 495 * top wouldn't help much: the masks would do the wrong thing). 496 * The rule is that addr 0 and floor 0 refer to the bottom of 497 * the address space, but end 0 and ceiling 0 refer to the top 498 * Comparisons need to use "end - 1" and "ceiling - 1" (though 499 * that end 0 case should be mythical). 500 * 501 * Wherever addr is brought up or ceiling brought down, we must 502 * be careful to reject "the opposite 0" before it confuses the 503 * subsequent tests. But what about where end is brought down 504 * by PMD_SIZE below? no, end can't go down to 0 there. 505 * 506 * Whereas we round start (addr) and ceiling down, by different 507 * masks at different levels, in order to test whether a table 508 * now has no other vmas using it, so can be freed, we don't 509 * bother to round floor or end up - the tests don't need that. 510 */ 511 512 addr &= PMD_MASK; 513 if (addr < floor) { 514 addr += PMD_SIZE; 515 if (!addr) 516 return; 517 } 518 if (ceiling) { 519 ceiling &= PMD_MASK; 520 if (!ceiling) 521 return; 522 } 523 if (end - 1 > ceiling - 1) 524 end -= PMD_SIZE; 525 if (addr > end - 1) 526 return; 527 528 pgd = pgd_offset(tlb->mm, addr); 529 do { 530 next = pgd_addr_end(addr, end); 531 if (pgd_none_or_clear_bad(pgd)) 532 continue; 533 free_pud_range(tlb, pgd, addr, next, floor, ceiling); 534 } while (pgd++, addr = next, addr != end); 535 } 536 537 void free_pgtables(struct mmu_gather *tlb, struct vm_area_struct *vma, 538 unsigned long floor, unsigned long ceiling) 539 { 540 while (vma) { 541 struct vm_area_struct *next = vma->vm_next; 542 unsigned long addr = vma->vm_start; 543 544 /* 545 * Hide vma from rmap and truncate_pagecache before freeing 546 * pgtables 547 */ 548 unlink_anon_vmas(vma); 549 unlink_file_vma(vma); 550 551 if (is_vm_hugetlb_page(vma)) { 552 hugetlb_free_pgd_range(tlb, addr, vma->vm_end, 553 floor, next? next->vm_start: ceiling); 554 } else { 555 /* 556 * Optimization: gather nearby vmas into one call down 557 */ 558 while (next && next->vm_start <= vma->vm_end + PMD_SIZE 559 && !is_vm_hugetlb_page(next)) { 560 vma = next; 561 next = vma->vm_next; 562 unlink_anon_vmas(vma); 563 unlink_file_vma(vma); 564 } 565 free_pgd_range(tlb, addr, vma->vm_end, 566 floor, next? next->vm_start: ceiling); 567 } 568 vma = next; 569 } 570 } 571 572 int __pte_alloc(struct mm_struct *mm, struct vm_area_struct *vma, 573 pmd_t *pmd, unsigned long address) 574 { 575 pgtable_t new = pte_alloc_one(mm, address); 576 int wait_split_huge_page; 577 if (!new) 578 return -ENOMEM; 579 580 /* 581 * Ensure all pte setup (eg. pte page lock and page clearing) are 582 * visible before the pte is made visible to other CPUs by being 583 * put into page tables. 584 * 585 * The other side of the story is the pointer chasing in the page 586 * table walking code (when walking the page table without locking; 587 * ie. most of the time). Fortunately, these data accesses consist 588 * of a chain of data-dependent loads, meaning most CPUs (alpha 589 * being the notable exception) will already guarantee loads are 590 * seen in-order. See the alpha page table accessors for the 591 * smp_read_barrier_depends() barriers in page table walking code. 592 */ 593 smp_wmb(); /* Could be smp_wmb__xxx(before|after)_spin_lock */ 594 595 spin_lock(&mm->page_table_lock); 596 wait_split_huge_page = 0; 597 if (likely(pmd_none(*pmd))) { /* Has another populated it ? */ 598 mm->nr_ptes++; 599 pmd_populate(mm, pmd, new); 600 new = NULL; 601 } else if (unlikely(pmd_trans_splitting(*pmd))) 602 wait_split_huge_page = 1; 603 spin_unlock(&mm->page_table_lock); 604 if (new) 605 pte_free(mm, new); 606 if (wait_split_huge_page) 607 wait_split_huge_page(vma->anon_vma, pmd); 608 return 0; 609 } 610 611 int __pte_alloc_kernel(pmd_t *pmd, unsigned long address) 612 { 613 pte_t *new = pte_alloc_one_kernel(&init_mm, address); 614 if (!new) 615 return -ENOMEM; 616 617 smp_wmb(); /* See comment in __pte_alloc */ 618 619 spin_lock(&init_mm.page_table_lock); 620 if (likely(pmd_none(*pmd))) { /* Has another populated it ? */ 621 pmd_populate_kernel(&init_mm, pmd, new); 622 new = NULL; 623 } else 624 VM_BUG_ON(pmd_trans_splitting(*pmd)); 625 spin_unlock(&init_mm.page_table_lock); 626 if (new) 627 pte_free_kernel(&init_mm, new); 628 return 0; 629 } 630 631 static inline void init_rss_vec(int *rss) 632 { 633 memset(rss, 0, sizeof(int) * NR_MM_COUNTERS); 634 } 635 636 static inline void add_mm_rss_vec(struct mm_struct *mm, int *rss) 637 { 638 int i; 639 640 if (current->mm == mm) 641 sync_mm_rss(mm); 642 for (i = 0; i < NR_MM_COUNTERS; i++) 643 if (rss[i]) 644 add_mm_counter(mm, i, rss[i]); 645 } 646 647 /* 648 * This function is called to print an error when a bad pte 649 * is found. For example, we might have a PFN-mapped pte in 650 * a region that doesn't allow it. 651 * 652 * The calling function must still handle the error. 653 */ 654 static void print_bad_pte(struct vm_area_struct *vma, unsigned long addr, 655 pte_t pte, struct page *page) 656 { 657 pgd_t *pgd = pgd_offset(vma->vm_mm, addr); 658 pud_t *pud = pud_offset(pgd, addr); 659 pmd_t *pmd = pmd_offset(pud, addr); 660 struct address_space *mapping; 661 pgoff_t index; 662 static unsigned long resume; 663 static unsigned long nr_shown; 664 static unsigned long nr_unshown; 665 666 /* 667 * Allow a burst of 60 reports, then keep quiet for that minute; 668 * or allow a steady drip of one report per second. 669 */ 670 if (nr_shown == 60) { 671 if (time_before(jiffies, resume)) { 672 nr_unshown++; 673 return; 674 } 675 if (nr_unshown) { 676 printk(KERN_ALERT 677 "BUG: Bad page map: %lu messages suppressed\n", 678 nr_unshown); 679 nr_unshown = 0; 680 } 681 nr_shown = 0; 682 } 683 if (nr_shown++ == 0) 684 resume = jiffies + 60 * HZ; 685 686 mapping = vma->vm_file ? vma->vm_file->f_mapping : NULL; 687 index = linear_page_index(vma, addr); 688 689 printk(KERN_ALERT 690 "BUG: Bad page map in process %s pte:%08llx pmd:%08llx\n", 691 current->comm, 692 (long long)pte_val(pte), (long long)pmd_val(*pmd)); 693 if (page) 694 dump_page(page); 695 printk(KERN_ALERT 696 "addr:%p vm_flags:%08lx anon_vma:%p mapping:%p index:%lx\n", 697 (void *)addr, vma->vm_flags, vma->anon_vma, mapping, index); 698 /* 699 * Choose text because data symbols depend on CONFIG_KALLSYMS_ALL=y 700 */ 701 if (vma->vm_ops) 702 print_symbol(KERN_ALERT "vma->vm_ops->fault: %s\n", 703 (unsigned long)vma->vm_ops->fault); 704 if (vma->vm_file && vma->vm_file->f_op) 705 print_symbol(KERN_ALERT "vma->vm_file->f_op->mmap: %s\n", 706 (unsigned long)vma->vm_file->f_op->mmap); 707 dump_stack(); 708 add_taint(TAINT_BAD_PAGE); 709 } 710 711 static inline int is_cow_mapping(vm_flags_t flags) 712 { 713 return (flags & (VM_SHARED | VM_MAYWRITE)) == VM_MAYWRITE; 714 } 715 716 #ifndef is_zero_pfn 717 static inline int is_zero_pfn(unsigned long pfn) 718 { 719 return pfn == zero_pfn; 720 } 721 #endif 722 723 #ifndef my_zero_pfn 724 static inline unsigned long my_zero_pfn(unsigned long addr) 725 { 726 return zero_pfn; 727 } 728 #endif 729 730 /* 731 * vm_normal_page -- This function gets the "struct page" associated with a pte. 732 * 733 * "Special" mappings do not wish to be associated with a "struct page" (either 734 * it doesn't exist, or it exists but they don't want to touch it). In this 735 * case, NULL is returned here. "Normal" mappings do have a struct page. 736 * 737 * There are 2 broad cases. Firstly, an architecture may define a pte_special() 738 * pte bit, in which case this function is trivial. Secondly, an architecture 739 * may not have a spare pte bit, which requires a more complicated scheme, 740 * described below. 741 * 742 * A raw VM_PFNMAP mapping (ie. one that is not COWed) is always considered a 743 * special mapping (even if there are underlying and valid "struct pages"). 744 * COWed pages of a VM_PFNMAP are always normal. 745 * 746 * The way we recognize COWed pages within VM_PFNMAP mappings is through the 747 * rules set up by "remap_pfn_range()": the vma will have the VM_PFNMAP bit 748 * set, and the vm_pgoff will point to the first PFN mapped: thus every special 749 * mapping will always honor the rule 750 * 751 * pfn_of_page == vma->vm_pgoff + ((addr - vma->vm_start) >> PAGE_SHIFT) 752 * 753 * And for normal mappings this is false. 754 * 755 * This restricts such mappings to be a linear translation from virtual address 756 * to pfn. To get around this restriction, we allow arbitrary mappings so long 757 * as the vma is not a COW mapping; in that case, we know that all ptes are 758 * special (because none can have been COWed). 759 * 760 * 761 * In order to support COW of arbitrary special mappings, we have VM_MIXEDMAP. 762 * 763 * VM_MIXEDMAP mappings can likewise contain memory with or without "struct 764 * page" backing, however the difference is that _all_ pages with a struct 765 * page (that is, those where pfn_valid is true) are refcounted and considered 766 * normal pages by the VM. The disadvantage is that pages are refcounted 767 * (which can be slower and simply not an option for some PFNMAP users). The 768 * advantage is that we don't have to follow the strict linearity rule of 769 * PFNMAP mappings in order to support COWable mappings. 770 * 771 */ 772 #ifdef __HAVE_ARCH_PTE_SPECIAL 773 # define HAVE_PTE_SPECIAL 1 774 #else 775 # define HAVE_PTE_SPECIAL 0 776 #endif 777 struct page *vm_normal_page(struct vm_area_struct *vma, unsigned long addr, 778 pte_t pte) 779 { 780 unsigned long pfn = pte_pfn(pte); 781 782 if (HAVE_PTE_SPECIAL) { 783 if (likely(!pte_special(pte))) 784 goto check_pfn; 785 if (vma->vm_flags & (VM_PFNMAP | VM_MIXEDMAP)) 786 return NULL; 787 if (!is_zero_pfn(pfn)) 788 print_bad_pte(vma, addr, pte, NULL); 789 return NULL; 790 } 791 792 /* !HAVE_PTE_SPECIAL case follows: */ 793 794 if (unlikely(vma->vm_flags & (VM_PFNMAP|VM_MIXEDMAP))) { 795 if (vma->vm_flags & VM_MIXEDMAP) { 796 if (!pfn_valid(pfn)) 797 return NULL; 798 goto out; 799 } else { 800 unsigned long off; 801 off = (addr - vma->vm_start) >> PAGE_SHIFT; 802 if (pfn == vma->vm_pgoff + off) 803 return NULL; 804 if (!is_cow_mapping(vma->vm_flags)) 805 return NULL; 806 } 807 } 808 809 if (is_zero_pfn(pfn)) 810 return NULL; 811 check_pfn: 812 if (unlikely(pfn > highest_memmap_pfn)) { 813 print_bad_pte(vma, addr, pte, NULL); 814 return NULL; 815 } 816 817 /* 818 * NOTE! We still have PageReserved() pages in the page tables. 819 * eg. VDSO mappings can cause them to exist. 820 */ 821 out: 822 return pfn_to_page(pfn); 823 } 824 825 /* 826 * copy one vm_area from one task to the other. Assumes the page tables 827 * already present in the new task to be cleared in the whole range 828 * covered by this vma. 829 */ 830 831 static inline unsigned long 832 copy_one_pte(struct mm_struct *dst_mm, struct mm_struct *src_mm, 833 pte_t *dst_pte, pte_t *src_pte, struct vm_area_struct *vma, 834 unsigned long addr, int *rss) 835 { 836 unsigned long vm_flags = vma->vm_flags; 837 pte_t pte = *src_pte; 838 struct page *page; 839 840 /* pte contains position in swap or file, so copy. */ 841 if (unlikely(!pte_present(pte))) { 842 if (!pte_file(pte)) { 843 swp_entry_t entry = pte_to_swp_entry(pte); 844 845 if (swap_duplicate(entry) < 0) 846 return entry.val; 847 848 /* make sure dst_mm is on swapoff's mmlist. */ 849 if (unlikely(list_empty(&dst_mm->mmlist))) { 850 spin_lock(&mmlist_lock); 851 if (list_empty(&dst_mm->mmlist)) 852 list_add(&dst_mm->mmlist, 853 &src_mm->mmlist); 854 spin_unlock(&mmlist_lock); 855 } 856 if (likely(!non_swap_entry(entry))) 857 rss[MM_SWAPENTS]++; 858 else if (is_migration_entry(entry)) { 859 page = migration_entry_to_page(entry); 860 861 if (PageAnon(page)) 862 rss[MM_ANONPAGES]++; 863 else 864 rss[MM_FILEPAGES]++; 865 866 if (is_write_migration_entry(entry) && 867 is_cow_mapping(vm_flags)) { 868 /* 869 * COW mappings require pages in both 870 * parent and child to be set to read. 871 */ 872 make_migration_entry_read(&entry); 873 pte = swp_entry_to_pte(entry); 874 set_pte_at(src_mm, addr, src_pte, pte); 875 } 876 } 877 } 878 goto out_set_pte; 879 } 880 881 /* 882 * If it's a COW mapping, write protect it both 883 * in the parent and the child 884 */ 885 if (is_cow_mapping(vm_flags)) { 886 ptep_set_wrprotect(src_mm, addr, src_pte); 887 pte = pte_wrprotect(pte); 888 } 889 890 /* 891 * If it's a shared mapping, mark it clean in 892 * the child 893 */ 894 if (vm_flags & VM_SHARED) 895 pte = pte_mkclean(pte); 896 pte = pte_mkold(pte); 897 898 page = vm_normal_page(vma, addr, pte); 899 if (page) { 900 get_page(page); 901 page_dup_rmap(page); 902 if (PageAnon(page)) 903 rss[MM_ANONPAGES]++; 904 else 905 rss[MM_FILEPAGES]++; 906 } 907 908 out_set_pte: 909 set_pte_at(dst_mm, addr, dst_pte, pte); 910 return 0; 911 } 912 913 int copy_pte_range(struct mm_struct *dst_mm, struct mm_struct *src_mm, 914 pmd_t *dst_pmd, pmd_t *src_pmd, struct vm_area_struct *vma, 915 unsigned long addr, unsigned long end) 916 { 917 pte_t *orig_src_pte, *orig_dst_pte; 918 pte_t *src_pte, *dst_pte; 919 spinlock_t *src_ptl, *dst_ptl; 920 int progress = 0; 921 int rss[NR_MM_COUNTERS]; 922 swp_entry_t entry = (swp_entry_t){0}; 923 924 again: 925 init_rss_vec(rss); 926 927 dst_pte = pte_alloc_map_lock(dst_mm, dst_pmd, addr, &dst_ptl); 928 if (!dst_pte) 929 return -ENOMEM; 930 src_pte = pte_offset_map(src_pmd, addr); 931 src_ptl = pte_lockptr(src_mm, src_pmd); 932 spin_lock_nested(src_ptl, SINGLE_DEPTH_NESTING); 933 orig_src_pte = src_pte; 934 orig_dst_pte = dst_pte; 935 arch_enter_lazy_mmu_mode(); 936 937 do { 938 /* 939 * We are holding two locks at this point - either of them 940 * could generate latencies in another task on another CPU. 941 */ 942 if (progress >= 32) { 943 progress = 0; 944 if (need_resched() || 945 spin_needbreak(src_ptl) || spin_needbreak(dst_ptl)) 946 break; 947 } 948 if (pte_none(*src_pte)) { 949 progress++; 950 continue; 951 } 952 entry.val = copy_one_pte(dst_mm, src_mm, dst_pte, src_pte, 953 vma, addr, rss); 954 if (entry.val) 955 break; 956 progress += 8; 957 } while (dst_pte++, src_pte++, addr += PAGE_SIZE, addr != end); 958 959 arch_leave_lazy_mmu_mode(); 960 spin_unlock(src_ptl); 961 pte_unmap(orig_src_pte); 962 add_mm_rss_vec(dst_mm, rss); 963 pte_unmap_unlock(orig_dst_pte, dst_ptl); 964 cond_resched(); 965 966 if (entry.val) { 967 if (add_swap_count_continuation(entry, GFP_KERNEL) < 0) 968 return -ENOMEM; 969 progress = 0; 970 } 971 if (addr != end) 972 goto again; 973 return 0; 974 } 975 976 static inline int copy_pmd_range(struct mm_struct *dst_mm, struct mm_struct *src_mm, 977 pud_t *dst_pud, pud_t *src_pud, struct vm_area_struct *vma, 978 unsigned long addr, unsigned long end) 979 { 980 pmd_t *src_pmd, *dst_pmd; 981 unsigned long next; 982 983 dst_pmd = pmd_alloc(dst_mm, dst_pud, addr); 984 if (!dst_pmd) 985 return -ENOMEM; 986 src_pmd = pmd_offset(src_pud, addr); 987 do { 988 next = pmd_addr_end(addr, end); 989 if (pmd_trans_huge(*src_pmd)) { 990 int err; 991 VM_BUG_ON(next-addr != HPAGE_PMD_SIZE); 992 err = copy_huge_pmd(dst_mm, src_mm, 993 dst_pmd, src_pmd, addr, vma); 994 if (err == -ENOMEM) 995 return -ENOMEM; 996 if (!err) 997 continue; 998 /* fall through */ 999 } 1000 if (pmd_none_or_clear_bad(src_pmd)) 1001 continue; 1002 if (copy_pte_range(dst_mm, src_mm, dst_pmd, src_pmd, 1003 vma, addr, next)) 1004 return -ENOMEM; 1005 } while (dst_pmd++, src_pmd++, addr = next, addr != end); 1006 return 0; 1007 } 1008 1009 static inline int copy_pud_range(struct mm_struct *dst_mm, struct mm_struct *src_mm, 1010 pgd_t *dst_pgd, pgd_t *src_pgd, struct vm_area_struct *vma, 1011 unsigned long addr, unsigned long end) 1012 { 1013 pud_t *src_pud, *dst_pud; 1014 unsigned long next; 1015 1016 dst_pud = pud_alloc(dst_mm, dst_pgd, addr); 1017 if (!dst_pud) 1018 return -ENOMEM; 1019 src_pud = pud_offset(src_pgd, addr); 1020 do { 1021 next = pud_addr_end(addr, end); 1022 if (pud_none_or_clear_bad(src_pud)) 1023 continue; 1024 if (copy_pmd_range(dst_mm, src_mm, dst_pud, src_pud, 1025 vma, addr, next)) 1026 return -ENOMEM; 1027 } while (dst_pud++, src_pud++, addr = next, addr != end); 1028 return 0; 1029 } 1030 1031 int copy_page_range(struct mm_struct *dst_mm, struct mm_struct *src_mm, 1032 struct vm_area_struct *vma) 1033 { 1034 pgd_t *src_pgd, *dst_pgd; 1035 unsigned long next; 1036 unsigned long addr = vma->vm_start; 1037 unsigned long end = vma->vm_end; 1038 int ret; 1039 1040 /* 1041 * Don't copy ptes where a page fault will fill them correctly. 1042 * Fork becomes much lighter when there are big shared or private 1043 * readonly mappings. The tradeoff is that copy_page_range is more 1044 * efficient than faulting. 1045 */ 1046 if (!(vma->vm_flags & (VM_HUGETLB|VM_NONLINEAR|VM_PFNMAP|VM_INSERTPAGE))) { 1047 if (!vma->anon_vma) 1048 return 0; 1049 } 1050 1051 if (is_vm_hugetlb_page(vma)) 1052 return copy_hugetlb_page_range(dst_mm, src_mm, vma); 1053 1054 if (unlikely(is_pfn_mapping(vma))) { 1055 /* 1056 * We do not free on error cases below as remove_vma 1057 * gets called on error from higher level routine 1058 */ 1059 ret = track_pfn_vma_copy(vma); 1060 if (ret) 1061 return ret; 1062 } 1063 1064 /* 1065 * We need to invalidate the secondary MMU mappings only when 1066 * there could be a permission downgrade on the ptes of the 1067 * parent mm. And a permission downgrade will only happen if 1068 * is_cow_mapping() returns true. 1069 */ 1070 if (is_cow_mapping(vma->vm_flags)) 1071 mmu_notifier_invalidate_range_start(src_mm, addr, end); 1072 1073 ret = 0; 1074 dst_pgd = pgd_offset(dst_mm, addr); 1075 src_pgd = pgd_offset(src_mm, addr); 1076 do { 1077 next = pgd_addr_end(addr, end); 1078 if (pgd_none_or_clear_bad(src_pgd)) 1079 continue; 1080 if (unlikely(copy_pud_range(dst_mm, src_mm, dst_pgd, src_pgd, 1081 vma, addr, next))) { 1082 ret = -ENOMEM; 1083 break; 1084 } 1085 } while (dst_pgd++, src_pgd++, addr = next, addr != end); 1086 1087 if (is_cow_mapping(vma->vm_flags)) 1088 mmu_notifier_invalidate_range_end(src_mm, 1089 vma->vm_start, end); 1090 return ret; 1091 } 1092 1093 static unsigned long zap_pte_range(struct mmu_gather *tlb, 1094 struct vm_area_struct *vma, pmd_t *pmd, 1095 unsigned long addr, unsigned long end, 1096 struct zap_details *details) 1097 { 1098 struct mm_struct *mm = tlb->mm; 1099 int force_flush = 0; 1100 int rss[NR_MM_COUNTERS]; 1101 spinlock_t *ptl; 1102 pte_t *start_pte; 1103 pte_t *pte; 1104 1105 again: 1106 init_rss_vec(rss); 1107 start_pte = pte_offset_map_lock(mm, pmd, addr, &ptl); 1108 pte = start_pte; 1109 arch_enter_lazy_mmu_mode(); 1110 do { 1111 pte_t ptent = *pte; 1112 if (pte_none(ptent)) { 1113 continue; 1114 } 1115 1116 if (pte_present(ptent)) { 1117 struct page *page; 1118 1119 page = vm_normal_page(vma, addr, ptent); 1120 if (unlikely(details) && page) { 1121 /* 1122 * unmap_shared_mapping_pages() wants to 1123 * invalidate cache without truncating: 1124 * unmap shared but keep private pages. 1125 */ 1126 if (details->check_mapping && 1127 details->check_mapping != page->mapping) 1128 continue; 1129 /* 1130 * Each page->index must be checked when 1131 * invalidating or truncating nonlinear. 1132 */ 1133 if (details->nonlinear_vma && 1134 (page->index < details->first_index || 1135 page->index > details->last_index)) 1136 continue; 1137 } 1138 ptent = ptep_get_and_clear_full(mm, addr, pte, 1139 tlb->fullmm); 1140 tlb_remove_tlb_entry(tlb, pte, addr); 1141 if (unlikely(!page)) 1142 continue; 1143 if (unlikely(details) && details->nonlinear_vma 1144 && linear_page_index(details->nonlinear_vma, 1145 addr) != page->index) 1146 set_pte_at(mm, addr, pte, 1147 pgoff_to_pte(page->index)); 1148 if (PageAnon(page)) 1149 rss[MM_ANONPAGES]--; 1150 else { 1151 if (pte_dirty(ptent)) 1152 set_page_dirty(page); 1153 if (pte_young(ptent) && 1154 likely(!VM_SequentialReadHint(vma))) 1155 mark_page_accessed(page); 1156 rss[MM_FILEPAGES]--; 1157 } 1158 page_remove_rmap(page); 1159 if (unlikely(page_mapcount(page) < 0)) 1160 print_bad_pte(vma, addr, ptent, page); 1161 force_flush = !__tlb_remove_page(tlb, page); 1162 if (force_flush) 1163 break; 1164 continue; 1165 } 1166 /* 1167 * If details->check_mapping, we leave swap entries; 1168 * if details->nonlinear_vma, we leave file entries. 1169 */ 1170 if (unlikely(details)) 1171 continue; 1172 if (pte_file(ptent)) { 1173 if (unlikely(!(vma->vm_flags & VM_NONLINEAR))) 1174 print_bad_pte(vma, addr, ptent, NULL); 1175 } else { 1176 swp_entry_t entry = pte_to_swp_entry(ptent); 1177 1178 if (!non_swap_entry(entry)) 1179 rss[MM_SWAPENTS]--; 1180 else if (is_migration_entry(entry)) { 1181 struct page *page; 1182 1183 page = migration_entry_to_page(entry); 1184 1185 if (PageAnon(page)) 1186 rss[MM_ANONPAGES]--; 1187 else 1188 rss[MM_FILEPAGES]--; 1189 } 1190 if (unlikely(!free_swap_and_cache(entry))) 1191 print_bad_pte(vma, addr, ptent, NULL); 1192 } 1193 pte_clear_not_present_full(mm, addr, pte, tlb->fullmm); 1194 } while (pte++, addr += PAGE_SIZE, addr != end); 1195 1196 add_mm_rss_vec(mm, rss); 1197 arch_leave_lazy_mmu_mode(); 1198 pte_unmap_unlock(start_pte, ptl); 1199 1200 /* 1201 * mmu_gather ran out of room to batch pages, we break out of 1202 * the PTE lock to avoid doing the potential expensive TLB invalidate 1203 * and page-free while holding it. 1204 */ 1205 if (force_flush) { 1206 force_flush = 0; 1207 tlb_flush_mmu(tlb); 1208 if (addr != end) 1209 goto again; 1210 } 1211 1212 return addr; 1213 } 1214 1215 static inline unsigned long zap_pmd_range(struct mmu_gather *tlb, 1216 struct vm_area_struct *vma, pud_t *pud, 1217 unsigned long addr, unsigned long end, 1218 struct zap_details *details) 1219 { 1220 pmd_t *pmd; 1221 unsigned long next; 1222 1223 pmd = pmd_offset(pud, addr); 1224 do { 1225 next = pmd_addr_end(addr, end); 1226 if (pmd_trans_huge(*pmd)) { 1227 if (next - addr != HPAGE_PMD_SIZE) { 1228 VM_BUG_ON(!rwsem_is_locked(&tlb->mm->mmap_sem)); 1229 split_huge_page_pmd(vma->vm_mm, pmd); 1230 } else if (zap_huge_pmd(tlb, vma, pmd, addr)) 1231 goto next; 1232 /* fall through */ 1233 } 1234 /* 1235 * Here there can be other concurrent MADV_DONTNEED or 1236 * trans huge page faults running, and if the pmd is 1237 * none or trans huge it can change under us. This is 1238 * because MADV_DONTNEED holds the mmap_sem in read 1239 * mode. 1240 */ 1241 if (pmd_none_or_trans_huge_or_clear_bad(pmd)) 1242 goto next; 1243 next = zap_pte_range(tlb, vma, pmd, addr, next, details); 1244 next: 1245 cond_resched(); 1246 } while (pmd++, addr = next, addr != end); 1247 1248 return addr; 1249 } 1250 1251 static inline unsigned long zap_pud_range(struct mmu_gather *tlb, 1252 struct vm_area_struct *vma, pgd_t *pgd, 1253 unsigned long addr, unsigned long end, 1254 struct zap_details *details) 1255 { 1256 pud_t *pud; 1257 unsigned long next; 1258 1259 pud = pud_offset(pgd, addr); 1260 do { 1261 next = pud_addr_end(addr, end); 1262 if (pud_none_or_clear_bad(pud)) 1263 continue; 1264 next = zap_pmd_range(tlb, vma, pud, addr, next, details); 1265 } while (pud++, addr = next, addr != end); 1266 1267 return addr; 1268 } 1269 1270 static void unmap_page_range(struct mmu_gather *tlb, 1271 struct vm_area_struct *vma, 1272 unsigned long addr, unsigned long end, 1273 struct zap_details *details) 1274 { 1275 pgd_t *pgd; 1276 unsigned long next; 1277 1278 if (details && !details->check_mapping && !details->nonlinear_vma) 1279 details = NULL; 1280 1281 BUG_ON(addr >= end); 1282 mem_cgroup_uncharge_start(); 1283 tlb_start_vma(tlb, vma); 1284 pgd = pgd_offset(vma->vm_mm, addr); 1285 do { 1286 next = pgd_addr_end(addr, end); 1287 if (pgd_none_or_clear_bad(pgd)) 1288 continue; 1289 next = zap_pud_range(tlb, vma, pgd, addr, next, details); 1290 } while (pgd++, addr = next, addr != end); 1291 tlb_end_vma(tlb, vma); 1292 mem_cgroup_uncharge_end(); 1293 } 1294 1295 1296 static void unmap_single_vma(struct mmu_gather *tlb, 1297 struct vm_area_struct *vma, unsigned long start_addr, 1298 unsigned long end_addr, 1299 struct zap_details *details) 1300 { 1301 unsigned long start = max(vma->vm_start, start_addr); 1302 unsigned long end; 1303 1304 if (start >= vma->vm_end) 1305 return; 1306 end = min(vma->vm_end, end_addr); 1307 if (end <= vma->vm_start) 1308 return; 1309 1310 if (unlikely(is_pfn_mapping(vma))) 1311 untrack_pfn_vma(vma, 0, 0); 1312 1313 if (start != end) { 1314 if (unlikely(is_vm_hugetlb_page(vma))) { 1315 /* 1316 * It is undesirable to test vma->vm_file as it 1317 * should be non-null for valid hugetlb area. 1318 * However, vm_file will be NULL in the error 1319 * cleanup path of do_mmap_pgoff. When 1320 * hugetlbfs ->mmap method fails, 1321 * do_mmap_pgoff() nullifies vma->vm_file 1322 * before calling this function to clean up. 1323 * Since no pte has actually been setup, it is 1324 * safe to do nothing in this case. 1325 */ 1326 if (vma->vm_file) 1327 unmap_hugepage_range(vma, start, end, NULL); 1328 } else 1329 unmap_page_range(tlb, vma, start, end, details); 1330 } 1331 } 1332 1333 /** 1334 * unmap_vmas - unmap a range of memory covered by a list of vma's 1335 * @tlb: address of the caller's struct mmu_gather 1336 * @vma: the starting vma 1337 * @start_addr: virtual address at which to start unmapping 1338 * @end_addr: virtual address at which to end unmapping 1339 * 1340 * Unmap all pages in the vma list. 1341 * 1342 * Only addresses between `start' and `end' will be unmapped. 1343 * 1344 * The VMA list must be sorted in ascending virtual address order. 1345 * 1346 * unmap_vmas() assumes that the caller will flush the whole unmapped address 1347 * range after unmap_vmas() returns. So the only responsibility here is to 1348 * ensure that any thus-far unmapped pages are flushed before unmap_vmas() 1349 * drops the lock and schedules. 1350 */ 1351 void unmap_vmas(struct mmu_gather *tlb, 1352 struct vm_area_struct *vma, unsigned long start_addr, 1353 unsigned long end_addr) 1354 { 1355 struct mm_struct *mm = vma->vm_mm; 1356 1357 mmu_notifier_invalidate_range_start(mm, start_addr, end_addr); 1358 for ( ; vma && vma->vm_start < end_addr; vma = vma->vm_next) 1359 unmap_single_vma(tlb, vma, start_addr, end_addr, NULL); 1360 mmu_notifier_invalidate_range_end(mm, start_addr, end_addr); 1361 } 1362 1363 /** 1364 * zap_page_range - remove user pages in a given range 1365 * @vma: vm_area_struct holding the applicable pages 1366 * @address: starting address of pages to zap 1367 * @size: number of bytes to zap 1368 * @details: details of nonlinear truncation or shared cache invalidation 1369 * 1370 * Caller must protect the VMA list 1371 */ 1372 void zap_page_range(struct vm_area_struct *vma, unsigned long start, 1373 unsigned long size, struct zap_details *details) 1374 { 1375 struct mm_struct *mm = vma->vm_mm; 1376 struct mmu_gather tlb; 1377 unsigned long end = start + size; 1378 1379 lru_add_drain(); 1380 tlb_gather_mmu(&tlb, mm, 0); 1381 update_hiwater_rss(mm); 1382 mmu_notifier_invalidate_range_start(mm, start, end); 1383 for ( ; vma && vma->vm_start < end; vma = vma->vm_next) 1384 unmap_single_vma(&tlb, vma, start, end, details); 1385 mmu_notifier_invalidate_range_end(mm, start, end); 1386 tlb_finish_mmu(&tlb, start, end); 1387 } 1388 1389 /** 1390 * zap_page_range_single - remove user pages in a given range 1391 * @vma: vm_area_struct holding the applicable pages 1392 * @address: starting address of pages to zap 1393 * @size: number of bytes to zap 1394 * @details: details of nonlinear truncation or shared cache invalidation 1395 * 1396 * The range must fit into one VMA. 1397 */ 1398 static void zap_page_range_single(struct vm_area_struct *vma, unsigned long address, 1399 unsigned long size, struct zap_details *details) 1400 { 1401 struct mm_struct *mm = vma->vm_mm; 1402 struct mmu_gather tlb; 1403 unsigned long end = address + size; 1404 1405 lru_add_drain(); 1406 tlb_gather_mmu(&tlb, mm, 0); 1407 update_hiwater_rss(mm); 1408 mmu_notifier_invalidate_range_start(mm, address, end); 1409 unmap_single_vma(&tlb, vma, address, end, details); 1410 mmu_notifier_invalidate_range_end(mm, address, end); 1411 tlb_finish_mmu(&tlb, address, end); 1412 } 1413 1414 /** 1415 * zap_vma_ptes - remove ptes mapping the vma 1416 * @vma: vm_area_struct holding ptes to be zapped 1417 * @address: starting address of pages to zap 1418 * @size: number of bytes to zap 1419 * 1420 * This function only unmaps ptes assigned to VM_PFNMAP vmas. 1421 * 1422 * The entire address range must be fully contained within the vma. 1423 * 1424 * Returns 0 if successful. 1425 */ 1426 int zap_vma_ptes(struct vm_area_struct *vma, unsigned long address, 1427 unsigned long size) 1428 { 1429 if (address < vma->vm_start || address + size > vma->vm_end || 1430 !(vma->vm_flags & VM_PFNMAP)) 1431 return -1; 1432 zap_page_range_single(vma, address, size, NULL); 1433 return 0; 1434 } 1435 EXPORT_SYMBOL_GPL(zap_vma_ptes); 1436 1437 /** 1438 * follow_page - look up a page descriptor from a user-virtual address 1439 * @vma: vm_area_struct mapping @address 1440 * @address: virtual address to look up 1441 * @flags: flags modifying lookup behaviour 1442 * 1443 * @flags can have FOLL_ flags set, defined in <linux/mm.h> 1444 * 1445 * Returns the mapped (struct page *), %NULL if no mapping exists, or 1446 * an error pointer if there is a mapping to something not represented 1447 * by a page descriptor (see also vm_normal_page()). 1448 */ 1449 struct page *follow_page(struct vm_area_struct *vma, unsigned long address, 1450 unsigned int flags) 1451 { 1452 pgd_t *pgd; 1453 pud_t *pud; 1454 pmd_t *pmd; 1455 pte_t *ptep, pte; 1456 spinlock_t *ptl; 1457 struct page *page; 1458 struct mm_struct *mm = vma->vm_mm; 1459 1460 page = follow_huge_addr(mm, address, flags & FOLL_WRITE); 1461 if (!IS_ERR(page)) { 1462 BUG_ON(flags & FOLL_GET); 1463 goto out; 1464 } 1465 1466 page = NULL; 1467 pgd = pgd_offset(mm, address); 1468 if (pgd_none(*pgd) || unlikely(pgd_bad(*pgd))) 1469 goto no_page_table; 1470 1471 pud = pud_offset(pgd, address); 1472 if (pud_none(*pud)) 1473 goto no_page_table; 1474 if (pud_huge(*pud) && vma->vm_flags & VM_HUGETLB) { 1475 BUG_ON(flags & FOLL_GET); 1476 page = follow_huge_pud(mm, address, pud, flags & FOLL_WRITE); 1477 goto out; 1478 } 1479 if (unlikely(pud_bad(*pud))) 1480 goto no_page_table; 1481 1482 pmd = pmd_offset(pud, address); 1483 if (pmd_none(*pmd)) 1484 goto no_page_table; 1485 if (pmd_huge(*pmd) && vma->vm_flags & VM_HUGETLB) { 1486 BUG_ON(flags & FOLL_GET); 1487 page = follow_huge_pmd(mm, address, pmd, flags & FOLL_WRITE); 1488 goto out; 1489 } 1490 if (pmd_trans_huge(*pmd)) { 1491 if (flags & FOLL_SPLIT) { 1492 split_huge_page_pmd(mm, pmd); 1493 goto split_fallthrough; 1494 } 1495 spin_lock(&mm->page_table_lock); 1496 if (likely(pmd_trans_huge(*pmd))) { 1497 if (unlikely(pmd_trans_splitting(*pmd))) { 1498 spin_unlock(&mm->page_table_lock); 1499 wait_split_huge_page(vma->anon_vma, pmd); 1500 } else { 1501 page = follow_trans_huge_pmd(mm, address, 1502 pmd, flags); 1503 spin_unlock(&mm->page_table_lock); 1504 goto out; 1505 } 1506 } else 1507 spin_unlock(&mm->page_table_lock); 1508 /* fall through */ 1509 } 1510 split_fallthrough: 1511 if (unlikely(pmd_bad(*pmd))) 1512 goto no_page_table; 1513 1514 ptep = pte_offset_map_lock(mm, pmd, address, &ptl); 1515 1516 pte = *ptep; 1517 if (!pte_present(pte)) 1518 goto no_page; 1519 if ((flags & FOLL_WRITE) && !pte_write(pte)) 1520 goto unlock; 1521 1522 page = vm_normal_page(vma, address, pte); 1523 if (unlikely(!page)) { 1524 if ((flags & FOLL_DUMP) || 1525 !is_zero_pfn(pte_pfn(pte))) 1526 goto bad_page; 1527 page = pte_page(pte); 1528 } 1529 1530 if (flags & FOLL_GET) 1531 get_page_foll(page); 1532 if (flags & FOLL_TOUCH) { 1533 if ((flags & FOLL_WRITE) && 1534 !pte_dirty(pte) && !PageDirty(page)) 1535 set_page_dirty(page); 1536 /* 1537 * pte_mkyoung() would be more correct here, but atomic care 1538 * is needed to avoid losing the dirty bit: it is easier to use 1539 * mark_page_accessed(). 1540 */ 1541 mark_page_accessed(page); 1542 } 1543 if ((flags & FOLL_MLOCK) && (vma->vm_flags & VM_LOCKED)) { 1544 /* 1545 * The preliminary mapping check is mainly to avoid the 1546 * pointless overhead of lock_page on the ZERO_PAGE 1547 * which might bounce very badly if there is contention. 1548 * 1549 * If the page is already locked, we don't need to 1550 * handle it now - vmscan will handle it later if and 1551 * when it attempts to reclaim the page. 1552 */ 1553 if (page->mapping && trylock_page(page)) { 1554 lru_add_drain(); /* push cached pages to LRU */ 1555 /* 1556 * Because we lock page here and migration is 1557 * blocked by the pte's page reference, we need 1558 * only check for file-cache page truncation. 1559 */ 1560 if (page->mapping) 1561 mlock_vma_page(page); 1562 unlock_page(page); 1563 } 1564 } 1565 unlock: 1566 pte_unmap_unlock(ptep, ptl); 1567 out: 1568 return page; 1569 1570 bad_page: 1571 pte_unmap_unlock(ptep, ptl); 1572 return ERR_PTR(-EFAULT); 1573 1574 no_page: 1575 pte_unmap_unlock(ptep, ptl); 1576 if (!pte_none(pte)) 1577 return page; 1578 1579 no_page_table: 1580 /* 1581 * When core dumping an enormous anonymous area that nobody 1582 * has touched so far, we don't want to allocate unnecessary pages or 1583 * page tables. Return error instead of NULL to skip handle_mm_fault, 1584 * then get_dump_page() will return NULL to leave a hole in the dump. 1585 * But we can only make this optimization where a hole would surely 1586 * be zero-filled if handle_mm_fault() actually did handle it. 1587 */ 1588 if ((flags & FOLL_DUMP) && 1589 (!vma->vm_ops || !vma->vm_ops->fault)) 1590 return ERR_PTR(-EFAULT); 1591 return page; 1592 } 1593 1594 static inline int stack_guard_page(struct vm_area_struct *vma, unsigned long addr) 1595 { 1596 return stack_guard_page_start(vma, addr) || 1597 stack_guard_page_end(vma, addr+PAGE_SIZE); 1598 } 1599 1600 /** 1601 * __get_user_pages() - pin user pages in memory 1602 * @tsk: task_struct of target task 1603 * @mm: mm_struct of target mm 1604 * @start: starting user address 1605 * @nr_pages: number of pages from start to pin 1606 * @gup_flags: flags modifying pin behaviour 1607 * @pages: array that receives pointers to the pages pinned. 1608 * Should be at least nr_pages long. Or NULL, if caller 1609 * only intends to ensure the pages are faulted in. 1610 * @vmas: array of pointers to vmas corresponding to each page. 1611 * Or NULL if the caller does not require them. 1612 * @nonblocking: whether waiting for disk IO or mmap_sem contention 1613 * 1614 * Returns number of pages pinned. This may be fewer than the number 1615 * requested. If nr_pages is 0 or negative, returns 0. If no pages 1616 * were pinned, returns -errno. Each page returned must be released 1617 * with a put_page() call when it is finished with. vmas will only 1618 * remain valid while mmap_sem is held. 1619 * 1620 * Must be called with mmap_sem held for read or write. 1621 * 1622 * __get_user_pages walks a process's page tables and takes a reference to 1623 * each struct page that each user address corresponds to at a given 1624 * instant. That is, it takes the page that would be accessed if a user 1625 * thread accesses the given user virtual address at that instant. 1626 * 1627 * This does not guarantee that the page exists in the user mappings when 1628 * __get_user_pages returns, and there may even be a completely different 1629 * page there in some cases (eg. if mmapped pagecache has been invalidated 1630 * and subsequently re faulted). However it does guarantee that the page 1631 * won't be freed completely. And mostly callers simply care that the page 1632 * contains data that was valid *at some point in time*. Typically, an IO 1633 * or similar operation cannot guarantee anything stronger anyway because 1634 * locks can't be held over the syscall boundary. 1635 * 1636 * If @gup_flags & FOLL_WRITE == 0, the page must not be written to. If 1637 * the page is written to, set_page_dirty (or set_page_dirty_lock, as 1638 * appropriate) must be called after the page is finished with, and 1639 * before put_page is called. 1640 * 1641 * If @nonblocking != NULL, __get_user_pages will not wait for disk IO 1642 * or mmap_sem contention, and if waiting is needed to pin all pages, 1643 * *@nonblocking will be set to 0. 1644 * 1645 * In most cases, get_user_pages or get_user_pages_fast should be used 1646 * instead of __get_user_pages. __get_user_pages should be used only if 1647 * you need some special @gup_flags. 1648 */ 1649 int __get_user_pages(struct task_struct *tsk, struct mm_struct *mm, 1650 unsigned long start, int nr_pages, unsigned int gup_flags, 1651 struct page **pages, struct vm_area_struct **vmas, 1652 int *nonblocking) 1653 { 1654 int i; 1655 unsigned long vm_flags; 1656 1657 if (nr_pages <= 0) 1658 return 0; 1659 1660 VM_BUG_ON(!!pages != !!(gup_flags & FOLL_GET)); 1661 1662 /* 1663 * Require read or write permissions. 1664 * If FOLL_FORCE is set, we only require the "MAY" flags. 1665 */ 1666 vm_flags = (gup_flags & FOLL_WRITE) ? 1667 (VM_WRITE | VM_MAYWRITE) : (VM_READ | VM_MAYREAD); 1668 vm_flags &= (gup_flags & FOLL_FORCE) ? 1669 (VM_MAYREAD | VM_MAYWRITE) : (VM_READ | VM_WRITE); 1670 i = 0; 1671 1672 do { 1673 struct vm_area_struct *vma; 1674 1675 vma = find_extend_vma(mm, start); 1676 if (!vma && in_gate_area(mm, start)) { 1677 unsigned long pg = start & PAGE_MASK; 1678 pgd_t *pgd; 1679 pud_t *pud; 1680 pmd_t *pmd; 1681 pte_t *pte; 1682 1683 /* user gate pages are read-only */ 1684 if (gup_flags & FOLL_WRITE) 1685 return i ? : -EFAULT; 1686 if (pg > TASK_SIZE) 1687 pgd = pgd_offset_k(pg); 1688 else 1689 pgd = pgd_offset_gate(mm, pg); 1690 BUG_ON(pgd_none(*pgd)); 1691 pud = pud_offset(pgd, pg); 1692 BUG_ON(pud_none(*pud)); 1693 pmd = pmd_offset(pud, pg); 1694 if (pmd_none(*pmd)) 1695 return i ? : -EFAULT; 1696 VM_BUG_ON(pmd_trans_huge(*pmd)); 1697 pte = pte_offset_map(pmd, pg); 1698 if (pte_none(*pte)) { 1699 pte_unmap(pte); 1700 return i ? : -EFAULT; 1701 } 1702 vma = get_gate_vma(mm); 1703 if (pages) { 1704 struct page *page; 1705 1706 page = vm_normal_page(vma, start, *pte); 1707 if (!page) { 1708 if (!(gup_flags & FOLL_DUMP) && 1709 is_zero_pfn(pte_pfn(*pte))) 1710 page = pte_page(*pte); 1711 else { 1712 pte_unmap(pte); 1713 return i ? : -EFAULT; 1714 } 1715 } 1716 pages[i] = page; 1717 get_page(page); 1718 } 1719 pte_unmap(pte); 1720 goto next_page; 1721 } 1722 1723 if (!vma || 1724 (vma->vm_flags & (VM_IO | VM_PFNMAP)) || 1725 !(vm_flags & vma->vm_flags)) 1726 return i ? : -EFAULT; 1727 1728 if (is_vm_hugetlb_page(vma)) { 1729 i = follow_hugetlb_page(mm, vma, pages, vmas, 1730 &start, &nr_pages, i, gup_flags); 1731 continue; 1732 } 1733 1734 do { 1735 struct page *page; 1736 unsigned int foll_flags = gup_flags; 1737 1738 /* 1739 * If we have a pending SIGKILL, don't keep faulting 1740 * pages and potentially allocating memory. 1741 */ 1742 if (unlikely(fatal_signal_pending(current))) 1743 return i ? i : -ERESTARTSYS; 1744 1745 cond_resched(); 1746 while (!(page = follow_page(vma, start, foll_flags))) { 1747 int ret; 1748 unsigned int fault_flags = 0; 1749 1750 /* For mlock, just skip the stack guard page. */ 1751 if (foll_flags & FOLL_MLOCK) { 1752 if (stack_guard_page(vma, start)) 1753 goto next_page; 1754 } 1755 if (foll_flags & FOLL_WRITE) 1756 fault_flags |= FAULT_FLAG_WRITE; 1757 if (nonblocking) 1758 fault_flags |= FAULT_FLAG_ALLOW_RETRY; 1759 if (foll_flags & FOLL_NOWAIT) 1760 fault_flags |= (FAULT_FLAG_ALLOW_RETRY | FAULT_FLAG_RETRY_NOWAIT); 1761 1762 ret = handle_mm_fault(mm, vma, start, 1763 fault_flags); 1764 1765 if (ret & VM_FAULT_ERROR) { 1766 if (ret & VM_FAULT_OOM) 1767 return i ? i : -ENOMEM; 1768 if (ret & (VM_FAULT_HWPOISON | 1769 VM_FAULT_HWPOISON_LARGE)) { 1770 if (i) 1771 return i; 1772 else if (gup_flags & FOLL_HWPOISON) 1773 return -EHWPOISON; 1774 else 1775 return -EFAULT; 1776 } 1777 if (ret & VM_FAULT_SIGBUS) 1778 return i ? i : -EFAULT; 1779 BUG(); 1780 } 1781 1782 if (tsk) { 1783 if (ret & VM_FAULT_MAJOR) 1784 tsk->maj_flt++; 1785 else 1786 tsk->min_flt++; 1787 } 1788 1789 if (ret & VM_FAULT_RETRY) { 1790 if (nonblocking) 1791 *nonblocking = 0; 1792 return i; 1793 } 1794 1795 /* 1796 * The VM_FAULT_WRITE bit tells us that 1797 * do_wp_page has broken COW when necessary, 1798 * even if maybe_mkwrite decided not to set 1799 * pte_write. We can thus safely do subsequent 1800 * page lookups as if they were reads. But only 1801 * do so when looping for pte_write is futile: 1802 * in some cases userspace may also be wanting 1803 * to write to the gotten user page, which a 1804 * read fault here might prevent (a readonly 1805 * page might get reCOWed by userspace write). 1806 */ 1807 if ((ret & VM_FAULT_WRITE) && 1808 !(vma->vm_flags & VM_WRITE)) 1809 foll_flags &= ~FOLL_WRITE; 1810 1811 cond_resched(); 1812 } 1813 if (IS_ERR(page)) 1814 return i ? i : PTR_ERR(page); 1815 if (pages) { 1816 pages[i] = page; 1817 1818 flush_anon_page(vma, page, start); 1819 flush_dcache_page(page); 1820 } 1821 next_page: 1822 if (vmas) 1823 vmas[i] = vma; 1824 i++; 1825 start += PAGE_SIZE; 1826 nr_pages--; 1827 } while (nr_pages && start < vma->vm_end); 1828 } while (nr_pages); 1829 return i; 1830 } 1831 EXPORT_SYMBOL(__get_user_pages); 1832 1833 /* 1834 * fixup_user_fault() - manually resolve a user page fault 1835 * @tsk: the task_struct to use for page fault accounting, or 1836 * NULL if faults are not to be recorded. 1837 * @mm: mm_struct of target mm 1838 * @address: user address 1839 * @fault_flags:flags to pass down to handle_mm_fault() 1840 * 1841 * This is meant to be called in the specific scenario where for locking reasons 1842 * we try to access user memory in atomic context (within a pagefault_disable() 1843 * section), this returns -EFAULT, and we want to resolve the user fault before 1844 * trying again. 1845 * 1846 * Typically this is meant to be used by the futex code. 1847 * 1848 * The main difference with get_user_pages() is that this function will 1849 * unconditionally call handle_mm_fault() which will in turn perform all the 1850 * necessary SW fixup of the dirty and young bits in the PTE, while 1851 * handle_mm_fault() only guarantees to update these in the struct page. 1852 * 1853 * This is important for some architectures where those bits also gate the 1854 * access permission to the page because they are maintained in software. On 1855 * such architectures, gup() will not be enough to make a subsequent access 1856 * succeed. 1857 * 1858 * This should be called with the mm_sem held for read. 1859 */ 1860 int fixup_user_fault(struct task_struct *tsk, struct mm_struct *mm, 1861 unsigned long address, unsigned int fault_flags) 1862 { 1863 struct vm_area_struct *vma; 1864 int ret; 1865 1866 vma = find_extend_vma(mm, address); 1867 if (!vma || address < vma->vm_start) 1868 return -EFAULT; 1869 1870 ret = handle_mm_fault(mm, vma, address, fault_flags); 1871 if (ret & VM_FAULT_ERROR) { 1872 if (ret & VM_FAULT_OOM) 1873 return -ENOMEM; 1874 if (ret & (VM_FAULT_HWPOISON | VM_FAULT_HWPOISON_LARGE)) 1875 return -EHWPOISON; 1876 if (ret & VM_FAULT_SIGBUS) 1877 return -EFAULT; 1878 BUG(); 1879 } 1880 if (tsk) { 1881 if (ret & VM_FAULT_MAJOR) 1882 tsk->maj_flt++; 1883 else 1884 tsk->min_flt++; 1885 } 1886 return 0; 1887 } 1888 1889 /* 1890 * get_user_pages() - pin user pages in memory 1891 * @tsk: the task_struct to use for page fault accounting, or 1892 * NULL if faults are not to be recorded. 1893 * @mm: mm_struct of target mm 1894 * @start: starting user address 1895 * @nr_pages: number of pages from start to pin 1896 * @write: whether pages will be written to by the caller 1897 * @force: whether to force write access even if user mapping is 1898 * readonly. This will result in the page being COWed even 1899 * in MAP_SHARED mappings. You do not want this. 1900 * @pages: array that receives pointers to the pages pinned. 1901 * Should be at least nr_pages long. Or NULL, if caller 1902 * only intends to ensure the pages are faulted in. 1903 * @vmas: array of pointers to vmas corresponding to each page. 1904 * Or NULL if the caller does not require them. 1905 * 1906 * Returns number of pages pinned. This may be fewer than the number 1907 * requested. If nr_pages is 0 or negative, returns 0. If no pages 1908 * were pinned, returns -errno. Each page returned must be released 1909 * with a put_page() call when it is finished with. vmas will only 1910 * remain valid while mmap_sem is held. 1911 * 1912 * Must be called with mmap_sem held for read or write. 1913 * 1914 * get_user_pages walks a process's page tables and takes a reference to 1915 * each struct page that each user address corresponds to at a given 1916 * instant. That is, it takes the page that would be accessed if a user 1917 * thread accesses the given user virtual address at that instant. 1918 * 1919 * This does not guarantee that the page exists in the user mappings when 1920 * get_user_pages returns, and there may even be a completely different 1921 * page there in some cases (eg. if mmapped pagecache has been invalidated 1922 * and subsequently re faulted). However it does guarantee that the page 1923 * won't be freed completely. And mostly callers simply care that the page 1924 * contains data that was valid *at some point in time*. Typically, an IO 1925 * or similar operation cannot guarantee anything stronger anyway because 1926 * locks can't be held over the syscall boundary. 1927 * 1928 * If write=0, the page must not be written to. If the page is written to, 1929 * set_page_dirty (or set_page_dirty_lock, as appropriate) must be called 1930 * after the page is finished with, and before put_page is called. 1931 * 1932 * get_user_pages is typically used for fewer-copy IO operations, to get a 1933 * handle on the memory by some means other than accesses via the user virtual 1934 * addresses. The pages may be submitted for DMA to devices or accessed via 1935 * their kernel linear mapping (via the kmap APIs). Care should be taken to 1936 * use the correct cache flushing APIs. 1937 * 1938 * See also get_user_pages_fast, for performance critical applications. 1939 */ 1940 int get_user_pages(struct task_struct *tsk, struct mm_struct *mm, 1941 unsigned long start, int nr_pages, int write, int force, 1942 struct page **pages, struct vm_area_struct **vmas) 1943 { 1944 int flags = FOLL_TOUCH; 1945 1946 if (pages) 1947 flags |= FOLL_GET; 1948 if (write) 1949 flags |= FOLL_WRITE; 1950 if (force) 1951 flags |= FOLL_FORCE; 1952 1953 return __get_user_pages(tsk, mm, start, nr_pages, flags, pages, vmas, 1954 NULL); 1955 } 1956 EXPORT_SYMBOL(get_user_pages); 1957 1958 /** 1959 * get_dump_page() - pin user page in memory while writing it to core dump 1960 * @addr: user address 1961 * 1962 * Returns struct page pointer of user page pinned for dump, 1963 * to be freed afterwards by page_cache_release() or put_page(). 1964 * 1965 * Returns NULL on any kind of failure - a hole must then be inserted into 1966 * the corefile, to preserve alignment with its headers; and also returns 1967 * NULL wherever the ZERO_PAGE, or an anonymous pte_none, has been found - 1968 * allowing a hole to be left in the corefile to save diskspace. 1969 * 1970 * Called without mmap_sem, but after all other threads have been killed. 1971 */ 1972 #ifdef CONFIG_ELF_CORE 1973 struct page *get_dump_page(unsigned long addr) 1974 { 1975 struct vm_area_struct *vma; 1976 struct page *page; 1977 1978 if (__get_user_pages(current, current->mm, addr, 1, 1979 FOLL_FORCE | FOLL_DUMP | FOLL_GET, &page, &vma, 1980 NULL) < 1) 1981 return NULL; 1982 flush_cache_page(vma, addr, page_to_pfn(page)); 1983 return page; 1984 } 1985 #endif /* CONFIG_ELF_CORE */ 1986 1987 pte_t *__get_locked_pte(struct mm_struct *mm, unsigned long addr, 1988 spinlock_t **ptl) 1989 { 1990 pgd_t * pgd = pgd_offset(mm, addr); 1991 pud_t * pud = pud_alloc(mm, pgd, addr); 1992 if (pud) { 1993 pmd_t * pmd = pmd_alloc(mm, pud, addr); 1994 if (pmd) { 1995 VM_BUG_ON(pmd_trans_huge(*pmd)); 1996 return pte_alloc_map_lock(mm, pmd, addr, ptl); 1997 } 1998 } 1999 return NULL; 2000 } 2001 2002 /* 2003 * This is the old fallback for page remapping. 2004 * 2005 * For historical reasons, it only allows reserved pages. Only 2006 * old drivers should use this, and they needed to mark their 2007 * pages reserved for the old functions anyway. 2008 */ 2009 static int insert_page(struct vm_area_struct *vma, unsigned long addr, 2010 struct page *page, pgprot_t prot) 2011 { 2012 struct mm_struct *mm = vma->vm_mm; 2013 int retval; 2014 pte_t *pte; 2015 spinlock_t *ptl; 2016 2017 retval = -EINVAL; 2018 if (PageAnon(page)) 2019 goto out; 2020 retval = -ENOMEM; 2021 flush_dcache_page(page); 2022 pte = get_locked_pte(mm, addr, &ptl); 2023 if (!pte) 2024 goto out; 2025 retval = -EBUSY; 2026 if (!pte_none(*pte)) 2027 goto out_unlock; 2028 2029 /* Ok, finally just insert the thing.. */ 2030 get_page(page); 2031 inc_mm_counter_fast(mm, MM_FILEPAGES); 2032 page_add_file_rmap(page); 2033 set_pte_at(mm, addr, pte, mk_pte(page, prot)); 2034 2035 retval = 0; 2036 pte_unmap_unlock(pte, ptl); 2037 return retval; 2038 out_unlock: 2039 pte_unmap_unlock(pte, ptl); 2040 out: 2041 return retval; 2042 } 2043 2044 /** 2045 * vm_insert_page - insert single page into user vma 2046 * @vma: user vma to map to 2047 * @addr: target user address of this page 2048 * @page: source kernel page 2049 * 2050 * This allows drivers to insert individual pages they've allocated 2051 * into a user vma. 2052 * 2053 * The page has to be a nice clean _individual_ kernel allocation. 2054 * If you allocate a compound page, you need to have marked it as 2055 * such (__GFP_COMP), or manually just split the page up yourself 2056 * (see split_page()). 2057 * 2058 * NOTE! Traditionally this was done with "remap_pfn_range()" which 2059 * took an arbitrary page protection parameter. This doesn't allow 2060 * that. Your vma protection will have to be set up correctly, which 2061 * means that if you want a shared writable mapping, you'd better 2062 * ask for a shared writable mapping! 2063 * 2064 * The page does not need to be reserved. 2065 */ 2066 int vm_insert_page(struct vm_area_struct *vma, unsigned long addr, 2067 struct page *page) 2068 { 2069 if (addr < vma->vm_start || addr >= vma->vm_end) 2070 return -EFAULT; 2071 if (!page_count(page)) 2072 return -EINVAL; 2073 vma->vm_flags |= VM_INSERTPAGE; 2074 return insert_page(vma, addr, page, vma->vm_page_prot); 2075 } 2076 EXPORT_SYMBOL(vm_insert_page); 2077 2078 static int insert_pfn(struct vm_area_struct *vma, unsigned long addr, 2079 unsigned long pfn, pgprot_t prot) 2080 { 2081 struct mm_struct *mm = vma->vm_mm; 2082 int retval; 2083 pte_t *pte, entry; 2084 spinlock_t *ptl; 2085 2086 retval = -ENOMEM; 2087 pte = get_locked_pte(mm, addr, &ptl); 2088 if (!pte) 2089 goto out; 2090 retval = -EBUSY; 2091 if (!pte_none(*pte)) 2092 goto out_unlock; 2093 2094 /* Ok, finally just insert the thing.. */ 2095 entry = pte_mkspecial(pfn_pte(pfn, prot)); 2096 set_pte_at(mm, addr, pte, entry); 2097 update_mmu_cache(vma, addr, pte); /* XXX: why not for insert_page? */ 2098 2099 retval = 0; 2100 out_unlock: 2101 pte_unmap_unlock(pte, ptl); 2102 out: 2103 return retval; 2104 } 2105 2106 /** 2107 * vm_insert_pfn - insert single pfn into user vma 2108 * @vma: user vma to map to 2109 * @addr: target user address of this page 2110 * @pfn: source kernel pfn 2111 * 2112 * Similar to vm_inert_page, this allows drivers to insert individual pages 2113 * they've allocated into a user vma. Same comments apply. 2114 * 2115 * This function should only be called from a vm_ops->fault handler, and 2116 * in that case the handler should return NULL. 2117 * 2118 * vma cannot be a COW mapping. 2119 * 2120 * As this is called only for pages that do not currently exist, we 2121 * do not need to flush old virtual caches or the TLB. 2122 */ 2123 int vm_insert_pfn(struct vm_area_struct *vma, unsigned long addr, 2124 unsigned long pfn) 2125 { 2126 int ret; 2127 pgprot_t pgprot = vma->vm_page_prot; 2128 /* 2129 * Technically, architectures with pte_special can avoid all these 2130 * restrictions (same for remap_pfn_range). However we would like 2131 * consistency in testing and feature parity among all, so we should 2132 * try to keep these invariants in place for everybody. 2133 */ 2134 BUG_ON(!(vma->vm_flags & (VM_PFNMAP|VM_MIXEDMAP))); 2135 BUG_ON((vma->vm_flags & (VM_PFNMAP|VM_MIXEDMAP)) == 2136 (VM_PFNMAP|VM_MIXEDMAP)); 2137 BUG_ON((vma->vm_flags & VM_PFNMAP) && is_cow_mapping(vma->vm_flags)); 2138 BUG_ON((vma->vm_flags & VM_MIXEDMAP) && pfn_valid(pfn)); 2139 2140 if (addr < vma->vm_start || addr >= vma->vm_end) 2141 return -EFAULT; 2142 if (track_pfn_vma_new(vma, &pgprot, pfn, PAGE_SIZE)) 2143 return -EINVAL; 2144 2145 ret = insert_pfn(vma, addr, pfn, pgprot); 2146 2147 if (ret) 2148 untrack_pfn_vma(vma, pfn, PAGE_SIZE); 2149 2150 return ret; 2151 } 2152 EXPORT_SYMBOL(vm_insert_pfn); 2153 2154 int vm_insert_mixed(struct vm_area_struct *vma, unsigned long addr, 2155 unsigned long pfn) 2156 { 2157 BUG_ON(!(vma->vm_flags & VM_MIXEDMAP)); 2158 2159 if (addr < vma->vm_start || addr >= vma->vm_end) 2160 return -EFAULT; 2161 2162 /* 2163 * If we don't have pte special, then we have to use the pfn_valid() 2164 * based VM_MIXEDMAP scheme (see vm_normal_page), and thus we *must* 2165 * refcount the page if pfn_valid is true (hence insert_page rather 2166 * than insert_pfn). If a zero_pfn were inserted into a VM_MIXEDMAP 2167 * without pte special, it would there be refcounted as a normal page. 2168 */ 2169 if (!HAVE_PTE_SPECIAL && pfn_valid(pfn)) { 2170 struct page *page; 2171 2172 page = pfn_to_page(pfn); 2173 return insert_page(vma, addr, page, vma->vm_page_prot); 2174 } 2175 return insert_pfn(vma, addr, pfn, vma->vm_page_prot); 2176 } 2177 EXPORT_SYMBOL(vm_insert_mixed); 2178 2179 /* 2180 * maps a range of physical memory into the requested pages. the old 2181 * mappings are removed. any references to nonexistent pages results 2182 * in null mappings (currently treated as "copy-on-access") 2183 */ 2184 static int remap_pte_range(struct mm_struct *mm, pmd_t *pmd, 2185 unsigned long addr, unsigned long end, 2186 unsigned long pfn, pgprot_t prot) 2187 { 2188 pte_t *pte; 2189 spinlock_t *ptl; 2190 2191 pte = pte_alloc_map_lock(mm, pmd, addr, &ptl); 2192 if (!pte) 2193 return -ENOMEM; 2194 arch_enter_lazy_mmu_mode(); 2195 do { 2196 BUG_ON(!pte_none(*pte)); 2197 set_pte_at(mm, addr, pte, pte_mkspecial(pfn_pte(pfn, prot))); 2198 pfn++; 2199 } while (pte++, addr += PAGE_SIZE, addr != end); 2200 arch_leave_lazy_mmu_mode(); 2201 pte_unmap_unlock(pte - 1, ptl); 2202 return 0; 2203 } 2204 2205 static inline int remap_pmd_range(struct mm_struct *mm, pud_t *pud, 2206 unsigned long addr, unsigned long end, 2207 unsigned long pfn, pgprot_t prot) 2208 { 2209 pmd_t *pmd; 2210 unsigned long next; 2211 2212 pfn -= addr >> PAGE_SHIFT; 2213 pmd = pmd_alloc(mm, pud, addr); 2214 if (!pmd) 2215 return -ENOMEM; 2216 VM_BUG_ON(pmd_trans_huge(*pmd)); 2217 do { 2218 next = pmd_addr_end(addr, end); 2219 if (remap_pte_range(mm, pmd, addr, next, 2220 pfn + (addr >> PAGE_SHIFT), prot)) 2221 return -ENOMEM; 2222 } while (pmd++, addr = next, addr != end); 2223 return 0; 2224 } 2225 2226 static inline int remap_pud_range(struct mm_struct *mm, pgd_t *pgd, 2227 unsigned long addr, unsigned long end, 2228 unsigned long pfn, pgprot_t prot) 2229 { 2230 pud_t *pud; 2231 unsigned long next; 2232 2233 pfn -= addr >> PAGE_SHIFT; 2234 pud = pud_alloc(mm, pgd, addr); 2235 if (!pud) 2236 return -ENOMEM; 2237 do { 2238 next = pud_addr_end(addr, end); 2239 if (remap_pmd_range(mm, pud, addr, next, 2240 pfn + (addr >> PAGE_SHIFT), prot)) 2241 return -ENOMEM; 2242 } while (pud++, addr = next, addr != end); 2243 return 0; 2244 } 2245 2246 /** 2247 * remap_pfn_range - remap kernel memory to userspace 2248 * @vma: user vma to map to 2249 * @addr: target user address to start at 2250 * @pfn: physical address of kernel memory 2251 * @size: size of map area 2252 * @prot: page protection flags for this mapping 2253 * 2254 * Note: this is only safe if the mm semaphore is held when called. 2255 */ 2256 int remap_pfn_range(struct vm_area_struct *vma, unsigned long addr, 2257 unsigned long pfn, unsigned long size, pgprot_t prot) 2258 { 2259 pgd_t *pgd; 2260 unsigned long next; 2261 unsigned long end = addr + PAGE_ALIGN(size); 2262 struct mm_struct *mm = vma->vm_mm; 2263 int err; 2264 2265 /* 2266 * Physically remapped pages are special. Tell the 2267 * rest of the world about it: 2268 * VM_IO tells people not to look at these pages 2269 * (accesses can have side effects). 2270 * VM_RESERVED is specified all over the place, because 2271 * in 2.4 it kept swapout's vma scan off this vma; but 2272 * in 2.6 the LRU scan won't even find its pages, so this 2273 * flag means no more than count its pages in reserved_vm, 2274 * and omit it from core dump, even when VM_IO turned off. 2275 * VM_PFNMAP tells the core MM that the base pages are just 2276 * raw PFN mappings, and do not have a "struct page" associated 2277 * with them. 2278 * 2279 * There's a horrible special case to handle copy-on-write 2280 * behaviour that some programs depend on. We mark the "original" 2281 * un-COW'ed pages by matching them up with "vma->vm_pgoff". 2282 */ 2283 if (addr == vma->vm_start && end == vma->vm_end) { 2284 vma->vm_pgoff = pfn; 2285 vma->vm_flags |= VM_PFN_AT_MMAP; 2286 } else if (is_cow_mapping(vma->vm_flags)) 2287 return -EINVAL; 2288 2289 vma->vm_flags |= VM_IO | VM_RESERVED | VM_PFNMAP; 2290 2291 err = track_pfn_vma_new(vma, &prot, pfn, PAGE_ALIGN(size)); 2292 if (err) { 2293 /* 2294 * To indicate that track_pfn related cleanup is not 2295 * needed from higher level routine calling unmap_vmas 2296 */ 2297 vma->vm_flags &= ~(VM_IO | VM_RESERVED | VM_PFNMAP); 2298 vma->vm_flags &= ~VM_PFN_AT_MMAP; 2299 return -EINVAL; 2300 } 2301 2302 BUG_ON(addr >= end); 2303 pfn -= addr >> PAGE_SHIFT; 2304 pgd = pgd_offset(mm, addr); 2305 flush_cache_range(vma, addr, end); 2306 do { 2307 next = pgd_addr_end(addr, end); 2308 err = remap_pud_range(mm, pgd, addr, next, 2309 pfn + (addr >> PAGE_SHIFT), prot); 2310 if (err) 2311 break; 2312 } while (pgd++, addr = next, addr != end); 2313 2314 if (err) 2315 untrack_pfn_vma(vma, pfn, PAGE_ALIGN(size)); 2316 2317 return err; 2318 } 2319 EXPORT_SYMBOL(remap_pfn_range); 2320 2321 static int apply_to_pte_range(struct mm_struct *mm, pmd_t *pmd, 2322 unsigned long addr, unsigned long end, 2323 pte_fn_t fn, void *data) 2324 { 2325 pte_t *pte; 2326 int err; 2327 pgtable_t token; 2328 spinlock_t *uninitialized_var(ptl); 2329 2330 pte = (mm == &init_mm) ? 2331 pte_alloc_kernel(pmd, addr) : 2332 pte_alloc_map_lock(mm, pmd, addr, &ptl); 2333 if (!pte) 2334 return -ENOMEM; 2335 2336 BUG_ON(pmd_huge(*pmd)); 2337 2338 arch_enter_lazy_mmu_mode(); 2339 2340 token = pmd_pgtable(*pmd); 2341 2342 do { 2343 err = fn(pte++, token, addr, data); 2344 if (err) 2345 break; 2346 } while (addr += PAGE_SIZE, addr != end); 2347 2348 arch_leave_lazy_mmu_mode(); 2349 2350 if (mm != &init_mm) 2351 pte_unmap_unlock(pte-1, ptl); 2352 return err; 2353 } 2354 2355 static int apply_to_pmd_range(struct mm_struct *mm, pud_t *pud, 2356 unsigned long addr, unsigned long end, 2357 pte_fn_t fn, void *data) 2358 { 2359 pmd_t *pmd; 2360 unsigned long next; 2361 int err; 2362 2363 BUG_ON(pud_huge(*pud)); 2364 2365 pmd = pmd_alloc(mm, pud, addr); 2366 if (!pmd) 2367 return -ENOMEM; 2368 do { 2369 next = pmd_addr_end(addr, end); 2370 err = apply_to_pte_range(mm, pmd, addr, next, fn, data); 2371 if (err) 2372 break; 2373 } while (pmd++, addr = next, addr != end); 2374 return err; 2375 } 2376 2377 static int apply_to_pud_range(struct mm_struct *mm, pgd_t *pgd, 2378 unsigned long addr, unsigned long end, 2379 pte_fn_t fn, void *data) 2380 { 2381 pud_t *pud; 2382 unsigned long next; 2383 int err; 2384 2385 pud = pud_alloc(mm, pgd, addr); 2386 if (!pud) 2387 return -ENOMEM; 2388 do { 2389 next = pud_addr_end(addr, end); 2390 err = apply_to_pmd_range(mm, pud, addr, next, fn, data); 2391 if (err) 2392 break; 2393 } while (pud++, addr = next, addr != end); 2394 return err; 2395 } 2396 2397 /* 2398 * Scan a region of virtual memory, filling in page tables as necessary 2399 * and calling a provided function on each leaf page table. 2400 */ 2401 int apply_to_page_range(struct mm_struct *mm, unsigned long addr, 2402 unsigned long size, pte_fn_t fn, void *data) 2403 { 2404 pgd_t *pgd; 2405 unsigned long next; 2406 unsigned long end = addr + size; 2407 int err; 2408 2409 BUG_ON(addr >= end); 2410 pgd = pgd_offset(mm, addr); 2411 do { 2412 next = pgd_addr_end(addr, end); 2413 err = apply_to_pud_range(mm, pgd, addr, next, fn, data); 2414 if (err) 2415 break; 2416 } while (pgd++, addr = next, addr != end); 2417 2418 return err; 2419 } 2420 EXPORT_SYMBOL_GPL(apply_to_page_range); 2421 2422 /* 2423 * handle_pte_fault chooses page fault handler according to an entry 2424 * which was read non-atomically. Before making any commitment, on 2425 * those architectures or configurations (e.g. i386 with PAE) which 2426 * might give a mix of unmatched parts, do_swap_page and do_nonlinear_fault 2427 * must check under lock before unmapping the pte and proceeding 2428 * (but do_wp_page is only called after already making such a check; 2429 * and do_anonymous_page can safely check later on). 2430 */ 2431 static inline int pte_unmap_same(struct mm_struct *mm, pmd_t *pmd, 2432 pte_t *page_table, pte_t orig_pte) 2433 { 2434 int same = 1; 2435 #if defined(CONFIG_SMP) || defined(CONFIG_PREEMPT) 2436 if (sizeof(pte_t) > sizeof(unsigned long)) { 2437 spinlock_t *ptl = pte_lockptr(mm, pmd); 2438 spin_lock(ptl); 2439 same = pte_same(*page_table, orig_pte); 2440 spin_unlock(ptl); 2441 } 2442 #endif 2443 pte_unmap(page_table); 2444 return same; 2445 } 2446 2447 static inline void cow_user_page(struct page *dst, struct page *src, unsigned long va, struct vm_area_struct *vma) 2448 { 2449 /* 2450 * If the source page was a PFN mapping, we don't have 2451 * a "struct page" for it. We do a best-effort copy by 2452 * just copying from the original user address. If that 2453 * fails, we just zero-fill it. Live with it. 2454 */ 2455 if (unlikely(!src)) { 2456 void *kaddr = kmap_atomic(dst); 2457 void __user *uaddr = (void __user *)(va & PAGE_MASK); 2458 2459 /* 2460 * This really shouldn't fail, because the page is there 2461 * in the page tables. But it might just be unreadable, 2462 * in which case we just give up and fill the result with 2463 * zeroes. 2464 */ 2465 if (__copy_from_user_inatomic(kaddr, uaddr, PAGE_SIZE)) 2466 clear_page(kaddr); 2467 kunmap_atomic(kaddr); 2468 flush_dcache_page(dst); 2469 } else 2470 copy_user_highpage(dst, src, va, vma); 2471 } 2472 2473 /* 2474 * This routine handles present pages, when users try to write 2475 * to a shared page. It is done by copying the page to a new address 2476 * and decrementing the shared-page counter for the old page. 2477 * 2478 * Note that this routine assumes that the protection checks have been 2479 * done by the caller (the low-level page fault routine in most cases). 2480 * Thus we can safely just mark it writable once we've done any necessary 2481 * COW. 2482 * 2483 * We also mark the page dirty at this point even though the page will 2484 * change only once the write actually happens. This avoids a few races, 2485 * and potentially makes it more efficient. 2486 * 2487 * We enter with non-exclusive mmap_sem (to exclude vma changes, 2488 * but allow concurrent faults), with pte both mapped and locked. 2489 * We return with mmap_sem still held, but pte unmapped and unlocked. 2490 */ 2491 static int do_wp_page(struct mm_struct *mm, struct vm_area_struct *vma, 2492 unsigned long address, pte_t *page_table, pmd_t *pmd, 2493 spinlock_t *ptl, pte_t orig_pte) 2494 __releases(ptl) 2495 { 2496 struct page *old_page, *new_page; 2497 pte_t entry; 2498 int ret = 0; 2499 int page_mkwrite = 0; 2500 struct page *dirty_page = NULL; 2501 2502 old_page = vm_normal_page(vma, address, orig_pte); 2503 if (!old_page) { 2504 /* 2505 * VM_MIXEDMAP !pfn_valid() case 2506 * 2507 * We should not cow pages in a shared writeable mapping. 2508 * Just mark the pages writable as we can't do any dirty 2509 * accounting on raw pfn maps. 2510 */ 2511 if ((vma->vm_flags & (VM_WRITE|VM_SHARED)) == 2512 (VM_WRITE|VM_SHARED)) 2513 goto reuse; 2514 goto gotten; 2515 } 2516 2517 /* 2518 * Take out anonymous pages first, anonymous shared vmas are 2519 * not dirty accountable. 2520 */ 2521 if (PageAnon(old_page) && !PageKsm(old_page)) { 2522 if (!trylock_page(old_page)) { 2523 page_cache_get(old_page); 2524 pte_unmap_unlock(page_table, ptl); 2525 lock_page(old_page); 2526 page_table = pte_offset_map_lock(mm, pmd, address, 2527 &ptl); 2528 if (!pte_same(*page_table, orig_pte)) { 2529 unlock_page(old_page); 2530 goto unlock; 2531 } 2532 page_cache_release(old_page); 2533 } 2534 if (reuse_swap_page(old_page)) { 2535 /* 2536 * The page is all ours. Move it to our anon_vma so 2537 * the rmap code will not search our parent or siblings. 2538 * Protected against the rmap code by the page lock. 2539 */ 2540 page_move_anon_rmap(old_page, vma, address); 2541 unlock_page(old_page); 2542 goto reuse; 2543 } 2544 unlock_page(old_page); 2545 } else if (unlikely((vma->vm_flags & (VM_WRITE|VM_SHARED)) == 2546 (VM_WRITE|VM_SHARED))) { 2547 /* 2548 * Only catch write-faults on shared writable pages, 2549 * read-only shared pages can get COWed by 2550 * get_user_pages(.write=1, .force=1). 2551 */ 2552 if (vma->vm_ops && vma->vm_ops->page_mkwrite) { 2553 struct vm_fault vmf; 2554 int tmp; 2555 2556 vmf.virtual_address = (void __user *)(address & 2557 PAGE_MASK); 2558 vmf.pgoff = old_page->index; 2559 vmf.flags = FAULT_FLAG_WRITE|FAULT_FLAG_MKWRITE; 2560 vmf.page = old_page; 2561 2562 /* 2563 * Notify the address space that the page is about to 2564 * become writable so that it can prohibit this or wait 2565 * for the page to get into an appropriate state. 2566 * 2567 * We do this without the lock held, so that it can 2568 * sleep if it needs to. 2569 */ 2570 page_cache_get(old_page); 2571 pte_unmap_unlock(page_table, ptl); 2572 2573 tmp = vma->vm_ops->page_mkwrite(vma, &vmf); 2574 if (unlikely(tmp & 2575 (VM_FAULT_ERROR | VM_FAULT_NOPAGE))) { 2576 ret = tmp; 2577 goto unwritable_page; 2578 } 2579 if (unlikely(!(tmp & VM_FAULT_LOCKED))) { 2580 lock_page(old_page); 2581 if (!old_page->mapping) { 2582 ret = 0; /* retry the fault */ 2583 unlock_page(old_page); 2584 goto unwritable_page; 2585 } 2586 } else 2587 VM_BUG_ON(!PageLocked(old_page)); 2588 2589 /* 2590 * Since we dropped the lock we need to revalidate 2591 * the PTE as someone else may have changed it. If 2592 * they did, we just return, as we can count on the 2593 * MMU to tell us if they didn't also make it writable. 2594 */ 2595 page_table = pte_offset_map_lock(mm, pmd, address, 2596 &ptl); 2597 if (!pte_same(*page_table, orig_pte)) { 2598 unlock_page(old_page); 2599 goto unlock; 2600 } 2601 2602 page_mkwrite = 1; 2603 } 2604 dirty_page = old_page; 2605 get_page(dirty_page); 2606 2607 reuse: 2608 flush_cache_page(vma, address, pte_pfn(orig_pte)); 2609 entry = pte_mkyoung(orig_pte); 2610 entry = maybe_mkwrite(pte_mkdirty(entry), vma); 2611 if (ptep_set_access_flags(vma, address, page_table, entry,1)) 2612 update_mmu_cache(vma, address, page_table); 2613 pte_unmap_unlock(page_table, ptl); 2614 ret |= VM_FAULT_WRITE; 2615 2616 if (!dirty_page) 2617 return ret; 2618 2619 /* 2620 * Yes, Virginia, this is actually required to prevent a race 2621 * with clear_page_dirty_for_io() from clearing the page dirty 2622 * bit after it clear all dirty ptes, but before a racing 2623 * do_wp_page installs a dirty pte. 2624 * 2625 * __do_fault is protected similarly. 2626 */ 2627 if (!page_mkwrite) { 2628 wait_on_page_locked(dirty_page); 2629 set_page_dirty_balance(dirty_page, page_mkwrite); 2630 } 2631 put_page(dirty_page); 2632 if (page_mkwrite) { 2633 struct address_space *mapping = dirty_page->mapping; 2634 2635 set_page_dirty(dirty_page); 2636 unlock_page(dirty_page); 2637 page_cache_release(dirty_page); 2638 if (mapping) { 2639 /* 2640 * Some device drivers do not set page.mapping 2641 * but still dirty their pages 2642 */ 2643 balance_dirty_pages_ratelimited(mapping); 2644 } 2645 } 2646 2647 /* file_update_time outside page_lock */ 2648 if (vma->vm_file) 2649 file_update_time(vma->vm_file); 2650 2651 return ret; 2652 } 2653 2654 /* 2655 * Ok, we need to copy. Oh, well.. 2656 */ 2657 page_cache_get(old_page); 2658 gotten: 2659 pte_unmap_unlock(page_table, ptl); 2660 2661 if (unlikely(anon_vma_prepare(vma))) 2662 goto oom; 2663 2664 if (is_zero_pfn(pte_pfn(orig_pte))) { 2665 new_page = alloc_zeroed_user_highpage_movable(vma, address); 2666 if (!new_page) 2667 goto oom; 2668 } else { 2669 new_page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, address); 2670 if (!new_page) 2671 goto oom; 2672 cow_user_page(new_page, old_page, address, vma); 2673 } 2674 __SetPageUptodate(new_page); 2675 2676 if (mem_cgroup_newpage_charge(new_page, mm, GFP_KERNEL)) 2677 goto oom_free_new; 2678 2679 /* 2680 * Re-check the pte - we dropped the lock 2681 */ 2682 page_table = pte_offset_map_lock(mm, pmd, address, &ptl); 2683 if (likely(pte_same(*page_table, orig_pte))) { 2684 if (old_page) { 2685 if (!PageAnon(old_page)) { 2686 dec_mm_counter_fast(mm, MM_FILEPAGES); 2687 inc_mm_counter_fast(mm, MM_ANONPAGES); 2688 } 2689 } else 2690 inc_mm_counter_fast(mm, MM_ANONPAGES); 2691 flush_cache_page(vma, address, pte_pfn(orig_pte)); 2692 entry = mk_pte(new_page, vma->vm_page_prot); 2693 entry = maybe_mkwrite(pte_mkdirty(entry), vma); 2694 /* 2695 * Clear the pte entry and flush it first, before updating the 2696 * pte with the new entry. This will avoid a race condition 2697 * seen in the presence of one thread doing SMC and another 2698 * thread doing COW. 2699 */ 2700 ptep_clear_flush(vma, address, page_table); 2701 page_add_new_anon_rmap(new_page, vma, address); 2702 /* 2703 * We call the notify macro here because, when using secondary 2704 * mmu page tables (such as kvm shadow page tables), we want the 2705 * new page to be mapped directly into the secondary page table. 2706 */ 2707 set_pte_at_notify(mm, address, page_table, entry); 2708 update_mmu_cache(vma, address, page_table); 2709 if (old_page) { 2710 /* 2711 * Only after switching the pte to the new page may 2712 * we remove the mapcount here. Otherwise another 2713 * process may come and find the rmap count decremented 2714 * before the pte is switched to the new page, and 2715 * "reuse" the old page writing into it while our pte 2716 * here still points into it and can be read by other 2717 * threads. 2718 * 2719 * The critical issue is to order this 2720 * page_remove_rmap with the ptp_clear_flush above. 2721 * Those stores are ordered by (if nothing else,) 2722 * the barrier present in the atomic_add_negative 2723 * in page_remove_rmap. 2724 * 2725 * Then the TLB flush in ptep_clear_flush ensures that 2726 * no process can access the old page before the 2727 * decremented mapcount is visible. And the old page 2728 * cannot be reused until after the decremented 2729 * mapcount is visible. So transitively, TLBs to 2730 * old page will be flushed before it can be reused. 2731 */ 2732 page_remove_rmap(old_page); 2733 } 2734 2735 /* Free the old page.. */ 2736 new_page = old_page; 2737 ret |= VM_FAULT_WRITE; 2738 } else 2739 mem_cgroup_uncharge_page(new_page); 2740 2741 if (new_page) 2742 page_cache_release(new_page); 2743 unlock: 2744 pte_unmap_unlock(page_table, ptl); 2745 if (old_page) { 2746 /* 2747 * Don't let another task, with possibly unlocked vma, 2748 * keep the mlocked page. 2749 */ 2750 if ((ret & VM_FAULT_WRITE) && (vma->vm_flags & VM_LOCKED)) { 2751 lock_page(old_page); /* LRU manipulation */ 2752 munlock_vma_page(old_page); 2753 unlock_page(old_page); 2754 } 2755 page_cache_release(old_page); 2756 } 2757 return ret; 2758 oom_free_new: 2759 page_cache_release(new_page); 2760 oom: 2761 if (old_page) { 2762 if (page_mkwrite) { 2763 unlock_page(old_page); 2764 page_cache_release(old_page); 2765 } 2766 page_cache_release(old_page); 2767 } 2768 return VM_FAULT_OOM; 2769 2770 unwritable_page: 2771 page_cache_release(old_page); 2772 return ret; 2773 } 2774 2775 static void unmap_mapping_range_vma(struct vm_area_struct *vma, 2776 unsigned long start_addr, unsigned long end_addr, 2777 struct zap_details *details) 2778 { 2779 zap_page_range_single(vma, start_addr, end_addr - start_addr, details); 2780 } 2781 2782 static inline void unmap_mapping_range_tree(struct prio_tree_root *root, 2783 struct zap_details *details) 2784 { 2785 struct vm_area_struct *vma; 2786 struct prio_tree_iter iter; 2787 pgoff_t vba, vea, zba, zea; 2788 2789 vma_prio_tree_foreach(vma, &iter, root, 2790 details->first_index, details->last_index) { 2791 2792 vba = vma->vm_pgoff; 2793 vea = vba + ((vma->vm_end - vma->vm_start) >> PAGE_SHIFT) - 1; 2794 /* Assume for now that PAGE_CACHE_SHIFT == PAGE_SHIFT */ 2795 zba = details->first_index; 2796 if (zba < vba) 2797 zba = vba; 2798 zea = details->last_index; 2799 if (zea > vea) 2800 zea = vea; 2801 2802 unmap_mapping_range_vma(vma, 2803 ((zba - vba) << PAGE_SHIFT) + vma->vm_start, 2804 ((zea - vba + 1) << PAGE_SHIFT) + vma->vm_start, 2805 details); 2806 } 2807 } 2808 2809 static inline void unmap_mapping_range_list(struct list_head *head, 2810 struct zap_details *details) 2811 { 2812 struct vm_area_struct *vma; 2813 2814 /* 2815 * In nonlinear VMAs there is no correspondence between virtual address 2816 * offset and file offset. So we must perform an exhaustive search 2817 * across *all* the pages in each nonlinear VMA, not just the pages 2818 * whose virtual address lies outside the file truncation point. 2819 */ 2820 list_for_each_entry(vma, head, shared.vm_set.list) { 2821 details->nonlinear_vma = vma; 2822 unmap_mapping_range_vma(vma, vma->vm_start, vma->vm_end, details); 2823 } 2824 } 2825 2826 /** 2827 * unmap_mapping_range - unmap the portion of all mmaps in the specified address_space corresponding to the specified page range in the underlying file. 2828 * @mapping: the address space containing mmaps to be unmapped. 2829 * @holebegin: byte in first page to unmap, relative to the start of 2830 * the underlying file. This will be rounded down to a PAGE_SIZE 2831 * boundary. Note that this is different from truncate_pagecache(), which 2832 * must keep the partial page. In contrast, we must get rid of 2833 * partial pages. 2834 * @holelen: size of prospective hole in bytes. This will be rounded 2835 * up to a PAGE_SIZE boundary. A holelen of zero truncates to the 2836 * end of the file. 2837 * @even_cows: 1 when truncating a file, unmap even private COWed pages; 2838 * but 0 when invalidating pagecache, don't throw away private data. 2839 */ 2840 void unmap_mapping_range(struct address_space *mapping, 2841 loff_t const holebegin, loff_t const holelen, int even_cows) 2842 { 2843 struct zap_details details; 2844 pgoff_t hba = holebegin >> PAGE_SHIFT; 2845 pgoff_t hlen = (holelen + PAGE_SIZE - 1) >> PAGE_SHIFT; 2846 2847 /* Check for overflow. */ 2848 if (sizeof(holelen) > sizeof(hlen)) { 2849 long long holeend = 2850 (holebegin + holelen + PAGE_SIZE - 1) >> PAGE_SHIFT; 2851 if (holeend & ~(long long)ULONG_MAX) 2852 hlen = ULONG_MAX - hba + 1; 2853 } 2854 2855 details.check_mapping = even_cows? NULL: mapping; 2856 details.nonlinear_vma = NULL; 2857 details.first_index = hba; 2858 details.last_index = hba + hlen - 1; 2859 if (details.last_index < details.first_index) 2860 details.last_index = ULONG_MAX; 2861 2862 2863 mutex_lock(&mapping->i_mmap_mutex); 2864 if (unlikely(!prio_tree_empty(&mapping->i_mmap))) 2865 unmap_mapping_range_tree(&mapping->i_mmap, &details); 2866 if (unlikely(!list_empty(&mapping->i_mmap_nonlinear))) 2867 unmap_mapping_range_list(&mapping->i_mmap_nonlinear, &details); 2868 mutex_unlock(&mapping->i_mmap_mutex); 2869 } 2870 EXPORT_SYMBOL(unmap_mapping_range); 2871 2872 /* 2873 * We enter with non-exclusive mmap_sem (to exclude vma changes, 2874 * but allow concurrent faults), and pte mapped but not yet locked. 2875 * We return with mmap_sem still held, but pte unmapped and unlocked. 2876 */ 2877 static int do_swap_page(struct mm_struct *mm, struct vm_area_struct *vma, 2878 unsigned long address, pte_t *page_table, pmd_t *pmd, 2879 unsigned int flags, pte_t orig_pte) 2880 { 2881 spinlock_t *ptl; 2882 struct page *page, *swapcache = NULL; 2883 swp_entry_t entry; 2884 pte_t pte; 2885 int locked; 2886 struct mem_cgroup *ptr; 2887 int exclusive = 0; 2888 int ret = 0; 2889 2890 if (!pte_unmap_same(mm, pmd, page_table, orig_pte)) 2891 goto out; 2892 2893 entry = pte_to_swp_entry(orig_pte); 2894 if (unlikely(non_swap_entry(entry))) { 2895 if (is_migration_entry(entry)) { 2896 migration_entry_wait(mm, pmd, address); 2897 } else if (is_hwpoison_entry(entry)) { 2898 ret = VM_FAULT_HWPOISON; 2899 } else { 2900 print_bad_pte(vma, address, orig_pte, NULL); 2901 ret = VM_FAULT_SIGBUS; 2902 } 2903 goto out; 2904 } 2905 delayacct_set_flag(DELAYACCT_PF_SWAPIN); 2906 page = lookup_swap_cache(entry); 2907 if (!page) { 2908 grab_swap_token(mm); /* Contend for token _before_ read-in */ 2909 page = swapin_readahead(entry, 2910 GFP_HIGHUSER_MOVABLE, vma, address); 2911 if (!page) { 2912 /* 2913 * Back out if somebody else faulted in this pte 2914 * while we released the pte lock. 2915 */ 2916 page_table = pte_offset_map_lock(mm, pmd, address, &ptl); 2917 if (likely(pte_same(*page_table, orig_pte))) 2918 ret = VM_FAULT_OOM; 2919 delayacct_clear_flag(DELAYACCT_PF_SWAPIN); 2920 goto unlock; 2921 } 2922 2923 /* Had to read the page from swap area: Major fault */ 2924 ret = VM_FAULT_MAJOR; 2925 count_vm_event(PGMAJFAULT); 2926 mem_cgroup_count_vm_event(mm, PGMAJFAULT); 2927 } else if (PageHWPoison(page)) { 2928 /* 2929 * hwpoisoned dirty swapcache pages are kept for killing 2930 * owner processes (which may be unknown at hwpoison time) 2931 */ 2932 ret = VM_FAULT_HWPOISON; 2933 delayacct_clear_flag(DELAYACCT_PF_SWAPIN); 2934 goto out_release; 2935 } 2936 2937 locked = lock_page_or_retry(page, mm, flags); 2938 delayacct_clear_flag(DELAYACCT_PF_SWAPIN); 2939 if (!locked) { 2940 ret |= VM_FAULT_RETRY; 2941 goto out_release; 2942 } 2943 2944 /* 2945 * Make sure try_to_free_swap or reuse_swap_page or swapoff did not 2946 * release the swapcache from under us. The page pin, and pte_same 2947 * test below, are not enough to exclude that. Even if it is still 2948 * swapcache, we need to check that the page's swap has not changed. 2949 */ 2950 if (unlikely(!PageSwapCache(page) || page_private(page) != entry.val)) 2951 goto out_page; 2952 2953 if (ksm_might_need_to_copy(page, vma, address)) { 2954 swapcache = page; 2955 page = ksm_does_need_to_copy(page, vma, address); 2956 2957 if (unlikely(!page)) { 2958 ret = VM_FAULT_OOM; 2959 page = swapcache; 2960 swapcache = NULL; 2961 goto out_page; 2962 } 2963 } 2964 2965 if (mem_cgroup_try_charge_swapin(mm, page, GFP_KERNEL, &ptr)) { 2966 ret = VM_FAULT_OOM; 2967 goto out_page; 2968 } 2969 2970 /* 2971 * Back out if somebody else already faulted in this pte. 2972 */ 2973 page_table = pte_offset_map_lock(mm, pmd, address, &ptl); 2974 if (unlikely(!pte_same(*page_table, orig_pte))) 2975 goto out_nomap; 2976 2977 if (unlikely(!PageUptodate(page))) { 2978 ret = VM_FAULT_SIGBUS; 2979 goto out_nomap; 2980 } 2981 2982 /* 2983 * The page isn't present yet, go ahead with the fault. 2984 * 2985 * Be careful about the sequence of operations here. 2986 * To get its accounting right, reuse_swap_page() must be called 2987 * while the page is counted on swap but not yet in mapcount i.e. 2988 * before page_add_anon_rmap() and swap_free(); try_to_free_swap() 2989 * must be called after the swap_free(), or it will never succeed. 2990 * Because delete_from_swap_page() may be called by reuse_swap_page(), 2991 * mem_cgroup_commit_charge_swapin() may not be able to find swp_entry 2992 * in page->private. In this case, a record in swap_cgroup is silently 2993 * discarded at swap_free(). 2994 */ 2995 2996 inc_mm_counter_fast(mm, MM_ANONPAGES); 2997 dec_mm_counter_fast(mm, MM_SWAPENTS); 2998 pte = mk_pte(page, vma->vm_page_prot); 2999 if ((flags & FAULT_FLAG_WRITE) && reuse_swap_page(page)) { 3000 pte = maybe_mkwrite(pte_mkdirty(pte), vma); 3001 flags &= ~FAULT_FLAG_WRITE; 3002 ret |= VM_FAULT_WRITE; 3003 exclusive = 1; 3004 } 3005 flush_icache_page(vma, page); 3006 set_pte_at(mm, address, page_table, pte); 3007 do_page_add_anon_rmap(page, vma, address, exclusive); 3008 /* It's better to call commit-charge after rmap is established */ 3009 mem_cgroup_commit_charge_swapin(page, ptr); 3010 3011 swap_free(entry); 3012 if (vm_swap_full() || (vma->vm_flags & VM_LOCKED) || PageMlocked(page)) 3013 try_to_free_swap(page); 3014 unlock_page(page); 3015 if (swapcache) { 3016 /* 3017 * Hold the lock to avoid the swap entry to be reused 3018 * until we take the PT lock for the pte_same() check 3019 * (to avoid false positives from pte_same). For 3020 * further safety release the lock after the swap_free 3021 * so that the swap count won't change under a 3022 * parallel locked swapcache. 3023 */ 3024 unlock_page(swapcache); 3025 page_cache_release(swapcache); 3026 } 3027 3028 if (flags & FAULT_FLAG_WRITE) { 3029 ret |= do_wp_page(mm, vma, address, page_table, pmd, ptl, pte); 3030 if (ret & VM_FAULT_ERROR) 3031 ret &= VM_FAULT_ERROR; 3032 goto out; 3033 } 3034 3035 /* No need to invalidate - it was non-present before */ 3036 update_mmu_cache(vma, address, page_table); 3037 unlock: 3038 pte_unmap_unlock(page_table, ptl); 3039 out: 3040 return ret; 3041 out_nomap: 3042 mem_cgroup_cancel_charge_swapin(ptr); 3043 pte_unmap_unlock(page_table, ptl); 3044 out_page: 3045 unlock_page(page); 3046 out_release: 3047 page_cache_release(page); 3048 if (swapcache) { 3049 unlock_page(swapcache); 3050 page_cache_release(swapcache); 3051 } 3052 return ret; 3053 } 3054 3055 /* 3056 * This is like a special single-page "expand_{down|up}wards()", 3057 * except we must first make sure that 'address{-|+}PAGE_SIZE' 3058 * doesn't hit another vma. 3059 */ 3060 static inline int check_stack_guard_page(struct vm_area_struct *vma, unsigned long address) 3061 { 3062 address &= PAGE_MASK; 3063 if ((vma->vm_flags & VM_GROWSDOWN) && address == vma->vm_start) { 3064 struct vm_area_struct *prev = vma->vm_prev; 3065 3066 /* 3067 * Is there a mapping abutting this one below? 3068 * 3069 * That's only ok if it's the same stack mapping 3070 * that has gotten split.. 3071 */ 3072 if (prev && prev->vm_end == address) 3073 return prev->vm_flags & VM_GROWSDOWN ? 0 : -ENOMEM; 3074 3075 expand_downwards(vma, address - PAGE_SIZE); 3076 } 3077 if ((vma->vm_flags & VM_GROWSUP) && address + PAGE_SIZE == vma->vm_end) { 3078 struct vm_area_struct *next = vma->vm_next; 3079 3080 /* As VM_GROWSDOWN but s/below/above/ */ 3081 if (next && next->vm_start == address + PAGE_SIZE) 3082 return next->vm_flags & VM_GROWSUP ? 0 : -ENOMEM; 3083 3084 expand_upwards(vma, address + PAGE_SIZE); 3085 } 3086 return 0; 3087 } 3088 3089 /* 3090 * We enter with non-exclusive mmap_sem (to exclude vma changes, 3091 * but allow concurrent faults), and pte mapped but not yet locked. 3092 * We return with mmap_sem still held, but pte unmapped and unlocked. 3093 */ 3094 static int do_anonymous_page(struct mm_struct *mm, struct vm_area_struct *vma, 3095 unsigned long address, pte_t *page_table, pmd_t *pmd, 3096 unsigned int flags) 3097 { 3098 struct page *page; 3099 spinlock_t *ptl; 3100 pte_t entry; 3101 3102 pte_unmap(page_table); 3103 3104 /* Check if we need to add a guard page to the stack */ 3105 if (check_stack_guard_page(vma, address) < 0) 3106 return VM_FAULT_SIGBUS; 3107 3108 /* Use the zero-page for reads */ 3109 if (!(flags & FAULT_FLAG_WRITE)) { 3110 entry = pte_mkspecial(pfn_pte(my_zero_pfn(address), 3111 vma->vm_page_prot)); 3112 page_table = pte_offset_map_lock(mm, pmd, address, &ptl); 3113 if (!pte_none(*page_table)) 3114 goto unlock; 3115 goto setpte; 3116 } 3117 3118 /* Allocate our own private page. */ 3119 if (unlikely(anon_vma_prepare(vma))) 3120 goto oom; 3121 page = alloc_zeroed_user_highpage_movable(vma, address); 3122 if (!page) 3123 goto oom; 3124 __SetPageUptodate(page); 3125 3126 if (mem_cgroup_newpage_charge(page, mm, GFP_KERNEL)) 3127 goto oom_free_page; 3128 3129 entry = mk_pte(page, vma->vm_page_prot); 3130 if (vma->vm_flags & VM_WRITE) 3131 entry = pte_mkwrite(pte_mkdirty(entry)); 3132 3133 page_table = pte_offset_map_lock(mm, pmd, address, &ptl); 3134 if (!pte_none(*page_table)) 3135 goto release; 3136 3137 inc_mm_counter_fast(mm, MM_ANONPAGES); 3138 page_add_new_anon_rmap(page, vma, address); 3139 setpte: 3140 set_pte_at(mm, address, page_table, entry); 3141 3142 /* No need to invalidate - it was non-present before */ 3143 update_mmu_cache(vma, address, page_table); 3144 unlock: 3145 pte_unmap_unlock(page_table, ptl); 3146 return 0; 3147 release: 3148 mem_cgroup_uncharge_page(page); 3149 page_cache_release(page); 3150 goto unlock; 3151 oom_free_page: 3152 page_cache_release(page); 3153 oom: 3154 return VM_FAULT_OOM; 3155 } 3156 3157 /* 3158 * __do_fault() tries to create a new page mapping. It aggressively 3159 * tries to share with existing pages, but makes a separate copy if 3160 * the FAULT_FLAG_WRITE is set in the flags parameter in order to avoid 3161 * the next page fault. 3162 * 3163 * As this is called only for pages that do not currently exist, we 3164 * do not need to flush old virtual caches or the TLB. 3165 * 3166 * We enter with non-exclusive mmap_sem (to exclude vma changes, 3167 * but allow concurrent faults), and pte neither mapped nor locked. 3168 * We return with mmap_sem still held, but pte unmapped and unlocked. 3169 */ 3170 static int __do_fault(struct mm_struct *mm, struct vm_area_struct *vma, 3171 unsigned long address, pmd_t *pmd, 3172 pgoff_t pgoff, unsigned int flags, pte_t orig_pte) 3173 { 3174 pte_t *page_table; 3175 spinlock_t *ptl; 3176 struct page *page; 3177 struct page *cow_page; 3178 pte_t entry; 3179 int anon = 0; 3180 struct page *dirty_page = NULL; 3181 struct vm_fault vmf; 3182 int ret; 3183 int page_mkwrite = 0; 3184 3185 /* 3186 * If we do COW later, allocate page befor taking lock_page() 3187 * on the file cache page. This will reduce lock holding time. 3188 */ 3189 if ((flags & FAULT_FLAG_WRITE) && !(vma->vm_flags & VM_SHARED)) { 3190 3191 if (unlikely(anon_vma_prepare(vma))) 3192 return VM_FAULT_OOM; 3193 3194 cow_page = alloc_page_vma(GFP_HIGHUSER_MOVABLE, vma, address); 3195 if (!cow_page) 3196 return VM_FAULT_OOM; 3197 3198 if (mem_cgroup_newpage_charge(cow_page, mm, GFP_KERNEL)) { 3199 page_cache_release(cow_page); 3200 return VM_FAULT_OOM; 3201 } 3202 } else 3203 cow_page = NULL; 3204 3205 vmf.virtual_address = (void __user *)(address & PAGE_MASK); 3206 vmf.pgoff = pgoff; 3207 vmf.flags = flags; 3208 vmf.page = NULL; 3209 3210 ret = vma->vm_ops->fault(vma, &vmf); 3211 if (unlikely(ret & (VM_FAULT_ERROR | VM_FAULT_NOPAGE | 3212 VM_FAULT_RETRY))) 3213 goto uncharge_out; 3214 3215 if (unlikely(PageHWPoison(vmf.page))) { 3216 if (ret & VM_FAULT_LOCKED) 3217 unlock_page(vmf.page); 3218 ret = VM_FAULT_HWPOISON; 3219 goto uncharge_out; 3220 } 3221 3222 /* 3223 * For consistency in subsequent calls, make the faulted page always 3224 * locked. 3225 */ 3226 if (unlikely(!(ret & VM_FAULT_LOCKED))) 3227 lock_page(vmf.page); 3228 else 3229 VM_BUG_ON(!PageLocked(vmf.page)); 3230 3231 /* 3232 * Should we do an early C-O-W break? 3233 */ 3234 page = vmf.page; 3235 if (flags & FAULT_FLAG_WRITE) { 3236 if (!(vma->vm_flags & VM_SHARED)) { 3237 page = cow_page; 3238 anon = 1; 3239 copy_user_highpage(page, vmf.page, address, vma); 3240 __SetPageUptodate(page); 3241 } else { 3242 /* 3243 * If the page will be shareable, see if the backing 3244 * address space wants to know that the page is about 3245 * to become writable 3246 */ 3247 if (vma->vm_ops->page_mkwrite) { 3248 int tmp; 3249 3250 unlock_page(page); 3251 vmf.flags = FAULT_FLAG_WRITE|FAULT_FLAG_MKWRITE; 3252 tmp = vma->vm_ops->page_mkwrite(vma, &vmf); 3253 if (unlikely(tmp & 3254 (VM_FAULT_ERROR | VM_FAULT_NOPAGE))) { 3255 ret = tmp; 3256 goto unwritable_page; 3257 } 3258 if (unlikely(!(tmp & VM_FAULT_LOCKED))) { 3259 lock_page(page); 3260 if (!page->mapping) { 3261 ret = 0; /* retry the fault */ 3262 unlock_page(page); 3263 goto unwritable_page; 3264 } 3265 } else 3266 VM_BUG_ON(!PageLocked(page)); 3267 page_mkwrite = 1; 3268 } 3269 } 3270 3271 } 3272 3273 page_table = pte_offset_map_lock(mm, pmd, address, &ptl); 3274 3275 /* 3276 * This silly early PAGE_DIRTY setting removes a race 3277 * due to the bad i386 page protection. But it's valid 3278 * for other architectures too. 3279 * 3280 * Note that if FAULT_FLAG_WRITE is set, we either now have 3281 * an exclusive copy of the page, or this is a shared mapping, 3282 * so we can make it writable and dirty to avoid having to 3283 * handle that later. 3284 */ 3285 /* Only go through if we didn't race with anybody else... */ 3286 if (likely(pte_same(*page_table, orig_pte))) { 3287 flush_icache_page(vma, page); 3288 entry = mk_pte(page, vma->vm_page_prot); 3289 if (flags & FAULT_FLAG_WRITE) 3290 entry = maybe_mkwrite(pte_mkdirty(entry), vma); 3291 if (anon) { 3292 inc_mm_counter_fast(mm, MM_ANONPAGES); 3293 page_add_new_anon_rmap(page, vma, address); 3294 } else { 3295 inc_mm_counter_fast(mm, MM_FILEPAGES); 3296 page_add_file_rmap(page); 3297 if (flags & FAULT_FLAG_WRITE) { 3298 dirty_page = page; 3299 get_page(dirty_page); 3300 } 3301 } 3302 set_pte_at(mm, address, page_table, entry); 3303 3304 /* no need to invalidate: a not-present page won't be cached */ 3305 update_mmu_cache(vma, address, page_table); 3306 } else { 3307 if (cow_page) 3308 mem_cgroup_uncharge_page(cow_page); 3309 if (anon) 3310 page_cache_release(page); 3311 else 3312 anon = 1; /* no anon but release faulted_page */ 3313 } 3314 3315 pte_unmap_unlock(page_table, ptl); 3316 3317 if (dirty_page) { 3318 struct address_space *mapping = page->mapping; 3319 3320 if (set_page_dirty(dirty_page)) 3321 page_mkwrite = 1; 3322 unlock_page(dirty_page); 3323 put_page(dirty_page); 3324 if (page_mkwrite && mapping) { 3325 /* 3326 * Some device drivers do not set page.mapping but still 3327 * dirty their pages 3328 */ 3329 balance_dirty_pages_ratelimited(mapping); 3330 } 3331 3332 /* file_update_time outside page_lock */ 3333 if (vma->vm_file) 3334 file_update_time(vma->vm_file); 3335 } else { 3336 unlock_page(vmf.page); 3337 if (anon) 3338 page_cache_release(vmf.page); 3339 } 3340 3341 return ret; 3342 3343 unwritable_page: 3344 page_cache_release(page); 3345 return ret; 3346 uncharge_out: 3347 /* fs's fault handler get error */ 3348 if (cow_page) { 3349 mem_cgroup_uncharge_page(cow_page); 3350 page_cache_release(cow_page); 3351 } 3352 return ret; 3353 } 3354 3355 static int do_linear_fault(struct mm_struct *mm, struct vm_area_struct *vma, 3356 unsigned long address, pte_t *page_table, pmd_t *pmd, 3357 unsigned int flags, pte_t orig_pte) 3358 { 3359 pgoff_t pgoff = (((address & PAGE_MASK) 3360 - vma->vm_start) >> PAGE_SHIFT) + vma->vm_pgoff; 3361 3362 pte_unmap(page_table); 3363 return __do_fault(mm, vma, address, pmd, pgoff, flags, orig_pte); 3364 } 3365 3366 /* 3367 * Fault of a previously existing named mapping. Repopulate the pte 3368 * from the encoded file_pte if possible. This enables swappable 3369 * nonlinear vmas. 3370 * 3371 * We enter with non-exclusive mmap_sem (to exclude vma changes, 3372 * but allow concurrent faults), and pte mapped but not yet locked. 3373 * We return with mmap_sem still held, but pte unmapped and unlocked. 3374 */ 3375 static int do_nonlinear_fault(struct mm_struct *mm, struct vm_area_struct *vma, 3376 unsigned long address, pte_t *page_table, pmd_t *pmd, 3377 unsigned int flags, pte_t orig_pte) 3378 { 3379 pgoff_t pgoff; 3380 3381 flags |= FAULT_FLAG_NONLINEAR; 3382 3383 if (!pte_unmap_same(mm, pmd, page_table, orig_pte)) 3384 return 0; 3385 3386 if (unlikely(!(vma->vm_flags & VM_NONLINEAR))) { 3387 /* 3388 * Page table corrupted: show pte and kill process. 3389 */ 3390 print_bad_pte(vma, address, orig_pte, NULL); 3391 return VM_FAULT_SIGBUS; 3392 } 3393 3394 pgoff = pte_to_pgoff(orig_pte); 3395 return __do_fault(mm, vma, address, pmd, pgoff, flags, orig_pte); 3396 } 3397 3398 /* 3399 * These routines also need to handle stuff like marking pages dirty 3400 * and/or accessed for architectures that don't do it in hardware (most 3401 * RISC architectures). The early dirtying is also good on the i386. 3402 * 3403 * There is also a hook called "update_mmu_cache()" that architectures 3404 * with external mmu caches can use to update those (ie the Sparc or 3405 * PowerPC hashed page tables that act as extended TLBs). 3406 * 3407 * We enter with non-exclusive mmap_sem (to exclude vma changes, 3408 * but allow concurrent faults), and pte mapped but not yet locked. 3409 * We return with mmap_sem still held, but pte unmapped and unlocked. 3410 */ 3411 int handle_pte_fault(struct mm_struct *mm, 3412 struct vm_area_struct *vma, unsigned long address, 3413 pte_t *pte, pmd_t *pmd, unsigned int flags) 3414 { 3415 pte_t entry; 3416 spinlock_t *ptl; 3417 3418 entry = *pte; 3419 if (!pte_present(entry)) { 3420 if (pte_none(entry)) { 3421 if (vma->vm_ops) { 3422 if (likely(vma->vm_ops->fault)) 3423 return do_linear_fault(mm, vma, address, 3424 pte, pmd, flags, entry); 3425 } 3426 return do_anonymous_page(mm, vma, address, 3427 pte, pmd, flags); 3428 } 3429 if (pte_file(entry)) 3430 return do_nonlinear_fault(mm, vma, address, 3431 pte, pmd, flags, entry); 3432 return do_swap_page(mm, vma, address, 3433 pte, pmd, flags, entry); 3434 } 3435 3436 ptl = pte_lockptr(mm, pmd); 3437 spin_lock(ptl); 3438 if (unlikely(!pte_same(*pte, entry))) 3439 goto unlock; 3440 if (flags & FAULT_FLAG_WRITE) { 3441 if (!pte_write(entry)) 3442 return do_wp_page(mm, vma, address, 3443 pte, pmd, ptl, entry); 3444 entry = pte_mkdirty(entry); 3445 } 3446 entry = pte_mkyoung(entry); 3447 if (ptep_set_access_flags(vma, address, pte, entry, flags & FAULT_FLAG_WRITE)) { 3448 update_mmu_cache(vma, address, pte); 3449 } else { 3450 /* 3451 * This is needed only for protection faults but the arch code 3452 * is not yet telling us if this is a protection fault or not. 3453 * This still avoids useless tlb flushes for .text page faults 3454 * with threads. 3455 */ 3456 if (flags & FAULT_FLAG_WRITE) 3457 flush_tlb_fix_spurious_fault(vma, address); 3458 } 3459 unlock: 3460 pte_unmap_unlock(pte, ptl); 3461 return 0; 3462 } 3463 3464 /* 3465 * By the time we get here, we already hold the mm semaphore 3466 */ 3467 int handle_mm_fault(struct mm_struct *mm, struct vm_area_struct *vma, 3468 unsigned long address, unsigned int flags) 3469 { 3470 pgd_t *pgd; 3471 pud_t *pud; 3472 pmd_t *pmd; 3473 pte_t *pte; 3474 3475 __set_current_state(TASK_RUNNING); 3476 3477 count_vm_event(PGFAULT); 3478 mem_cgroup_count_vm_event(mm, PGFAULT); 3479 3480 /* do counter updates before entering really critical section. */ 3481 check_sync_rss_stat(current); 3482 3483 if (unlikely(is_vm_hugetlb_page(vma))) 3484 return hugetlb_fault(mm, vma, address, flags); 3485 3486 pgd = pgd_offset(mm, address); 3487 pud = pud_alloc(mm, pgd, address); 3488 if (!pud) 3489 return VM_FAULT_OOM; 3490 pmd = pmd_alloc(mm, pud, address); 3491 if (!pmd) 3492 return VM_FAULT_OOM; 3493 if (pmd_none(*pmd) && transparent_hugepage_enabled(vma)) { 3494 if (!vma->vm_ops) 3495 return do_huge_pmd_anonymous_page(mm, vma, address, 3496 pmd, flags); 3497 } else { 3498 pmd_t orig_pmd = *pmd; 3499 barrier(); 3500 if (pmd_trans_huge(orig_pmd)) { 3501 if (flags & FAULT_FLAG_WRITE && 3502 !pmd_write(orig_pmd) && 3503 !pmd_trans_splitting(orig_pmd)) 3504 return do_huge_pmd_wp_page(mm, vma, address, 3505 pmd, orig_pmd); 3506 return 0; 3507 } 3508 } 3509 3510 /* 3511 * Use __pte_alloc instead of pte_alloc_map, because we can't 3512 * run pte_offset_map on the pmd, if an huge pmd could 3513 * materialize from under us from a different thread. 3514 */ 3515 if (unlikely(pmd_none(*pmd)) && __pte_alloc(mm, vma, pmd, address)) 3516 return VM_FAULT_OOM; 3517 /* if an huge pmd materialized from under us just retry later */ 3518 if (unlikely(pmd_trans_huge(*pmd))) 3519 return 0; 3520 /* 3521 * A regular pmd is established and it can't morph into a huge pmd 3522 * from under us anymore at this point because we hold the mmap_sem 3523 * read mode and khugepaged takes it in write mode. So now it's 3524 * safe to run pte_offset_map(). 3525 */ 3526 pte = pte_offset_map(pmd, address); 3527 3528 return handle_pte_fault(mm, vma, address, pte, pmd, flags); 3529 } 3530 3531 #ifndef __PAGETABLE_PUD_FOLDED 3532 /* 3533 * Allocate page upper directory. 3534 * We've already handled the fast-path in-line. 3535 */ 3536 int __pud_alloc(struct mm_struct *mm, pgd_t *pgd, unsigned long address) 3537 { 3538 pud_t *new = pud_alloc_one(mm, address); 3539 if (!new) 3540 return -ENOMEM; 3541 3542 smp_wmb(); /* See comment in __pte_alloc */ 3543 3544 spin_lock(&mm->page_table_lock); 3545 if (pgd_present(*pgd)) /* Another has populated it */ 3546 pud_free(mm, new); 3547 else 3548 pgd_populate(mm, pgd, new); 3549 spin_unlock(&mm->page_table_lock); 3550 return 0; 3551 } 3552 #endif /* __PAGETABLE_PUD_FOLDED */ 3553 3554 #ifndef __PAGETABLE_PMD_FOLDED 3555 /* 3556 * Allocate page middle directory. 3557 * We've already handled the fast-path in-line. 3558 */ 3559 int __pmd_alloc(struct mm_struct *mm, pud_t *pud, unsigned long address) 3560 { 3561 pmd_t *new = pmd_alloc_one(mm, address); 3562 if (!new) 3563 return -ENOMEM; 3564 3565 smp_wmb(); /* See comment in __pte_alloc */ 3566 3567 spin_lock(&mm->page_table_lock); 3568 #ifndef __ARCH_HAS_4LEVEL_HACK 3569 if (pud_present(*pud)) /* Another has populated it */ 3570 pmd_free(mm, new); 3571 else 3572 pud_populate(mm, pud, new); 3573 #else 3574 if (pgd_present(*pud)) /* Another has populated it */ 3575 pmd_free(mm, new); 3576 else 3577 pgd_populate(mm, pud, new); 3578 #endif /* __ARCH_HAS_4LEVEL_HACK */ 3579 spin_unlock(&mm->page_table_lock); 3580 return 0; 3581 } 3582 #endif /* __PAGETABLE_PMD_FOLDED */ 3583 3584 int make_pages_present(unsigned long addr, unsigned long end) 3585 { 3586 int ret, len, write; 3587 struct vm_area_struct * vma; 3588 3589 vma = find_vma(current->mm, addr); 3590 if (!vma) 3591 return -ENOMEM; 3592 /* 3593 * We want to touch writable mappings with a write fault in order 3594 * to break COW, except for shared mappings because these don't COW 3595 * and we would not want to dirty them for nothing. 3596 */ 3597 write = (vma->vm_flags & (VM_WRITE | VM_SHARED)) == VM_WRITE; 3598 BUG_ON(addr >= end); 3599 BUG_ON(end > vma->vm_end); 3600 len = DIV_ROUND_UP(end, PAGE_SIZE) - addr/PAGE_SIZE; 3601 ret = get_user_pages(current, current->mm, addr, 3602 len, write, 0, NULL, NULL); 3603 if (ret < 0) 3604 return ret; 3605 return ret == len ? 0 : -EFAULT; 3606 } 3607 3608 #if !defined(__HAVE_ARCH_GATE_AREA) 3609 3610 #if defined(AT_SYSINFO_EHDR) 3611 static struct vm_area_struct gate_vma; 3612 3613 static int __init gate_vma_init(void) 3614 { 3615 gate_vma.vm_mm = NULL; 3616 gate_vma.vm_start = FIXADDR_USER_START; 3617 gate_vma.vm_end = FIXADDR_USER_END; 3618 gate_vma.vm_flags = VM_READ | VM_MAYREAD | VM_EXEC | VM_MAYEXEC; 3619 gate_vma.vm_page_prot = __P101; 3620 3621 return 0; 3622 } 3623 __initcall(gate_vma_init); 3624 #endif 3625 3626 struct vm_area_struct *get_gate_vma(struct mm_struct *mm) 3627 { 3628 #ifdef AT_SYSINFO_EHDR 3629 return &gate_vma; 3630 #else 3631 return NULL; 3632 #endif 3633 } 3634 3635 int in_gate_area_no_mm(unsigned long addr) 3636 { 3637 #ifdef AT_SYSINFO_EHDR 3638 if ((addr >= FIXADDR_USER_START) && (addr < FIXADDR_USER_END)) 3639 return 1; 3640 #endif 3641 return 0; 3642 } 3643 3644 #endif /* __HAVE_ARCH_GATE_AREA */ 3645 3646 static int __follow_pte(struct mm_struct *mm, unsigned long address, 3647 pte_t **ptepp, spinlock_t **ptlp) 3648 { 3649 pgd_t *pgd; 3650 pud_t *pud; 3651 pmd_t *pmd; 3652 pte_t *ptep; 3653 3654 pgd = pgd_offset(mm, address); 3655 if (pgd_none(*pgd) || unlikely(pgd_bad(*pgd))) 3656 goto out; 3657 3658 pud = pud_offset(pgd, address); 3659 if (pud_none(*pud) || unlikely(pud_bad(*pud))) 3660 goto out; 3661 3662 pmd = pmd_offset(pud, address); 3663 VM_BUG_ON(pmd_trans_huge(*pmd)); 3664 if (pmd_none(*pmd) || unlikely(pmd_bad(*pmd))) 3665 goto out; 3666 3667 /* We cannot handle huge page PFN maps. Luckily they don't exist. */ 3668 if (pmd_huge(*pmd)) 3669 goto out; 3670 3671 ptep = pte_offset_map_lock(mm, pmd, address, ptlp); 3672 if (!ptep) 3673 goto out; 3674 if (!pte_present(*ptep)) 3675 goto unlock; 3676 *ptepp = ptep; 3677 return 0; 3678 unlock: 3679 pte_unmap_unlock(ptep, *ptlp); 3680 out: 3681 return -EINVAL; 3682 } 3683 3684 static inline int follow_pte(struct mm_struct *mm, unsigned long address, 3685 pte_t **ptepp, spinlock_t **ptlp) 3686 { 3687 int res; 3688 3689 /* (void) is needed to make gcc happy */ 3690 (void) __cond_lock(*ptlp, 3691 !(res = __follow_pte(mm, address, ptepp, ptlp))); 3692 return res; 3693 } 3694 3695 /** 3696 * follow_pfn - look up PFN at a user virtual address 3697 * @vma: memory mapping 3698 * @address: user virtual address 3699 * @pfn: location to store found PFN 3700 * 3701 * Only IO mappings and raw PFN mappings are allowed. 3702 * 3703 * Returns zero and the pfn at @pfn on success, -ve otherwise. 3704 */ 3705 int follow_pfn(struct vm_area_struct *vma, unsigned long address, 3706 unsigned long *pfn) 3707 { 3708 int ret = -EINVAL; 3709 spinlock_t *ptl; 3710 pte_t *ptep; 3711 3712 if (!(vma->vm_flags & (VM_IO | VM_PFNMAP))) 3713 return ret; 3714 3715 ret = follow_pte(vma->vm_mm, address, &ptep, &ptl); 3716 if (ret) 3717 return ret; 3718 *pfn = pte_pfn(*ptep); 3719 pte_unmap_unlock(ptep, ptl); 3720 return 0; 3721 } 3722 EXPORT_SYMBOL(follow_pfn); 3723 3724 #ifdef CONFIG_HAVE_IOREMAP_PROT 3725 int follow_phys(struct vm_area_struct *vma, 3726 unsigned long address, unsigned int flags, 3727 unsigned long *prot, resource_size_t *phys) 3728 { 3729 int ret = -EINVAL; 3730 pte_t *ptep, pte; 3731 spinlock_t *ptl; 3732 3733 if (!(vma->vm_flags & (VM_IO | VM_PFNMAP))) 3734 goto out; 3735 3736 if (follow_pte(vma->vm_mm, address, &ptep, &ptl)) 3737 goto out; 3738 pte = *ptep; 3739 3740 if ((flags & FOLL_WRITE) && !pte_write(pte)) 3741 goto unlock; 3742 3743 *prot = pgprot_val(pte_pgprot(pte)); 3744 *phys = (resource_size_t)pte_pfn(pte) << PAGE_SHIFT; 3745 3746 ret = 0; 3747 unlock: 3748 pte_unmap_unlock(ptep, ptl); 3749 out: 3750 return ret; 3751 } 3752 3753 int generic_access_phys(struct vm_area_struct *vma, unsigned long addr, 3754 void *buf, int len, int write) 3755 { 3756 resource_size_t phys_addr; 3757 unsigned long prot = 0; 3758 void __iomem *maddr; 3759 int offset = addr & (PAGE_SIZE-1); 3760 3761 if (follow_phys(vma, addr, write, &prot, &phys_addr)) 3762 return -EINVAL; 3763 3764 maddr = ioremap_prot(phys_addr, PAGE_SIZE, prot); 3765 if (write) 3766 memcpy_toio(maddr + offset, buf, len); 3767 else 3768 memcpy_fromio(buf, maddr + offset, len); 3769 iounmap(maddr); 3770 3771 return len; 3772 } 3773 #endif 3774 3775 /* 3776 * Access another process' address space as given in mm. If non-NULL, use the 3777 * given task for page fault accounting. 3778 */ 3779 static int __access_remote_vm(struct task_struct *tsk, struct mm_struct *mm, 3780 unsigned long addr, void *buf, int len, int write) 3781 { 3782 struct vm_area_struct *vma; 3783 void *old_buf = buf; 3784 3785 down_read(&mm->mmap_sem); 3786 /* ignore errors, just check how much was successfully transferred */ 3787 while (len) { 3788 int bytes, ret, offset; 3789 void *maddr; 3790 struct page *page = NULL; 3791 3792 ret = get_user_pages(tsk, mm, addr, 1, 3793 write, 1, &page, &vma); 3794 if (ret <= 0) { 3795 /* 3796 * Check if this is a VM_IO | VM_PFNMAP VMA, which 3797 * we can access using slightly different code. 3798 */ 3799 #ifdef CONFIG_HAVE_IOREMAP_PROT 3800 vma = find_vma(mm, addr); 3801 if (!vma || vma->vm_start > addr) 3802 break; 3803 if (vma->vm_ops && vma->vm_ops->access) 3804 ret = vma->vm_ops->access(vma, addr, buf, 3805 len, write); 3806 if (ret <= 0) 3807 #endif 3808 break; 3809 bytes = ret; 3810 } else { 3811 bytes = len; 3812 offset = addr & (PAGE_SIZE-1); 3813 if (bytes > PAGE_SIZE-offset) 3814 bytes = PAGE_SIZE-offset; 3815 3816 maddr = kmap(page); 3817 if (write) { 3818 copy_to_user_page(vma, page, addr, 3819 maddr + offset, buf, bytes); 3820 set_page_dirty_lock(page); 3821 } else { 3822 copy_from_user_page(vma, page, addr, 3823 buf, maddr + offset, bytes); 3824 } 3825 kunmap(page); 3826 page_cache_release(page); 3827 } 3828 len -= bytes; 3829 buf += bytes; 3830 addr += bytes; 3831 } 3832 up_read(&mm->mmap_sem); 3833 3834 return buf - old_buf; 3835 } 3836 3837 /** 3838 * access_remote_vm - access another process' address space 3839 * @mm: the mm_struct of the target address space 3840 * @addr: start address to access 3841 * @buf: source or destination buffer 3842 * @len: number of bytes to transfer 3843 * @write: whether the access is a write 3844 * 3845 * The caller must hold a reference on @mm. 3846 */ 3847 int access_remote_vm(struct mm_struct *mm, unsigned long addr, 3848 void *buf, int len, int write) 3849 { 3850 return __access_remote_vm(NULL, mm, addr, buf, len, write); 3851 } 3852 3853 /* 3854 * Access another process' address space. 3855 * Source/target buffer must be kernel space, 3856 * Do not walk the page table directly, use get_user_pages 3857 */ 3858 int access_process_vm(struct task_struct *tsk, unsigned long addr, 3859 void *buf, int len, int write) 3860 { 3861 struct mm_struct *mm; 3862 int ret; 3863 3864 mm = get_task_mm(tsk); 3865 if (!mm) 3866 return 0; 3867 3868 ret = __access_remote_vm(tsk, mm, addr, buf, len, write); 3869 mmput(mm); 3870 3871 return ret; 3872 } 3873 3874 /* 3875 * Print the name of a VMA. 3876 */ 3877 void print_vma_addr(char *prefix, unsigned long ip) 3878 { 3879 struct mm_struct *mm = current->mm; 3880 struct vm_area_struct *vma; 3881 3882 /* 3883 * Do not print if we are in atomic 3884 * contexts (in exception stacks, etc.): 3885 */ 3886 if (preempt_count()) 3887 return; 3888 3889 down_read(&mm->mmap_sem); 3890 vma = find_vma(mm, ip); 3891 if (vma && vma->vm_file) { 3892 struct file *f = vma->vm_file; 3893 char *buf = (char *)__get_free_page(GFP_KERNEL); 3894 if (buf) { 3895 char *p, *s; 3896 3897 p = d_path(&f->f_path, buf, PAGE_SIZE); 3898 if (IS_ERR(p)) 3899 p = "?"; 3900 s = strrchr(p, '/'); 3901 if (s) 3902 p = s+1; 3903 printk("%s%s[%lx+%lx]", prefix, p, 3904 vma->vm_start, 3905 vma->vm_end - vma->vm_start); 3906 free_page((unsigned long)buf); 3907 } 3908 } 3909 up_read(¤t->mm->mmap_sem); 3910 } 3911 3912 #ifdef CONFIG_PROVE_LOCKING 3913 void might_fault(void) 3914 { 3915 /* 3916 * Some code (nfs/sunrpc) uses socket ops on kernel memory while 3917 * holding the mmap_sem, this is safe because kernel memory doesn't 3918 * get paged out, therefore we'll never actually fault, and the 3919 * below annotations will generate false positives. 3920 */ 3921 if (segment_eq(get_fs(), KERNEL_DS)) 3922 return; 3923 3924 might_sleep(); 3925 /* 3926 * it would be nicer only to annotate paths which are not under 3927 * pagefault_disable, however that requires a larger audit and 3928 * providing helpers like get_user_atomic. 3929 */ 3930 if (!in_atomic() && current->mm) 3931 might_lock_read(¤t->mm->mmap_sem); 3932 } 3933 EXPORT_SYMBOL(might_fault); 3934 #endif 3935 3936 #if defined(CONFIG_TRANSPARENT_HUGEPAGE) || defined(CONFIG_HUGETLBFS) 3937 static void clear_gigantic_page(struct page *page, 3938 unsigned long addr, 3939 unsigned int pages_per_huge_page) 3940 { 3941 int i; 3942 struct page *p = page; 3943 3944 might_sleep(); 3945 for (i = 0; i < pages_per_huge_page; 3946 i++, p = mem_map_next(p, page, i)) { 3947 cond_resched(); 3948 clear_user_highpage(p, addr + i * PAGE_SIZE); 3949 } 3950 } 3951 void clear_huge_page(struct page *page, 3952 unsigned long addr, unsigned int pages_per_huge_page) 3953 { 3954 int i; 3955 3956 if (unlikely(pages_per_huge_page > MAX_ORDER_NR_PAGES)) { 3957 clear_gigantic_page(page, addr, pages_per_huge_page); 3958 return; 3959 } 3960 3961 might_sleep(); 3962 for (i = 0; i < pages_per_huge_page; i++) { 3963 cond_resched(); 3964 clear_user_highpage(page + i, addr + i * PAGE_SIZE); 3965 } 3966 } 3967 3968 static void copy_user_gigantic_page(struct page *dst, struct page *src, 3969 unsigned long addr, 3970 struct vm_area_struct *vma, 3971 unsigned int pages_per_huge_page) 3972 { 3973 int i; 3974 struct page *dst_base = dst; 3975 struct page *src_base = src; 3976 3977 for (i = 0; i < pages_per_huge_page; ) { 3978 cond_resched(); 3979 copy_user_highpage(dst, src, addr + i*PAGE_SIZE, vma); 3980 3981 i++; 3982 dst = mem_map_next(dst, dst_base, i); 3983 src = mem_map_next(src, src_base, i); 3984 } 3985 } 3986 3987 void copy_user_huge_page(struct page *dst, struct page *src, 3988 unsigned long addr, struct vm_area_struct *vma, 3989 unsigned int pages_per_huge_page) 3990 { 3991 int i; 3992 3993 if (unlikely(pages_per_huge_page > MAX_ORDER_NR_PAGES)) { 3994 copy_user_gigantic_page(dst, src, addr, vma, 3995 pages_per_huge_page); 3996 return; 3997 } 3998 3999 might_sleep(); 4000 for (i = 0; i < pages_per_huge_page; i++) { 4001 cond_resched(); 4002 copy_user_highpage(dst + i, src + i, addr + i*PAGE_SIZE, vma); 4003 } 4004 } 4005 #endif /* CONFIG_TRANSPARENT_HUGEPAGE || CONFIG_HUGETLBFS */ 4006