1 #ifndef _LINUX_PAGEMAP_H 2 #define _LINUX_PAGEMAP_H 3 4 /* 5 * Copyright 1995 Linus Torvalds 6 */ 7 #include <linux/mm.h> 8 #include <linux/fs.h> 9 #include <linux/list.h> 10 #include <linux/highmem.h> 11 #include <linux/compiler.h> 12 #include <asm/uaccess.h> 13 #include <linux/gfp.h> 14 #include <linux/bitops.h> 15 #include <linux/hardirq.h> /* for in_interrupt() */ 16 #include <linux/hugetlb_inline.h> 17 18 /* 19 * Bits in mapping->flags. The lower __GFP_BITS_SHIFT bits are the page 20 * allocation mode flags. 21 */ 22 enum mapping_flags { 23 AS_EIO = __GFP_BITS_SHIFT + 0, /* IO error on async write */ 24 AS_ENOSPC = __GFP_BITS_SHIFT + 1, /* ENOSPC on async write */ 25 AS_MM_ALL_LOCKS = __GFP_BITS_SHIFT + 2, /* under mm_take_all_locks() */ 26 AS_UNEVICTABLE = __GFP_BITS_SHIFT + 3, /* e.g., ramdisk, SHM_LOCK */ 27 AS_EXITING = __GFP_BITS_SHIFT + 4, /* final truncate in progress */ 28 }; 29 30 static inline void mapping_set_error(struct address_space *mapping, int error) 31 { 32 if (unlikely(error)) { 33 if (error == -ENOSPC) 34 set_bit(AS_ENOSPC, &mapping->flags); 35 else 36 set_bit(AS_EIO, &mapping->flags); 37 } 38 } 39 40 static inline void mapping_set_unevictable(struct address_space *mapping) 41 { 42 set_bit(AS_UNEVICTABLE, &mapping->flags); 43 } 44 45 static inline void mapping_clear_unevictable(struct address_space *mapping) 46 { 47 clear_bit(AS_UNEVICTABLE, &mapping->flags); 48 } 49 50 static inline int mapping_unevictable(struct address_space *mapping) 51 { 52 if (mapping) 53 return test_bit(AS_UNEVICTABLE, &mapping->flags); 54 return !!mapping; 55 } 56 57 static inline void mapping_set_exiting(struct address_space *mapping) 58 { 59 set_bit(AS_EXITING, &mapping->flags); 60 } 61 62 static inline int mapping_exiting(struct address_space *mapping) 63 { 64 return test_bit(AS_EXITING, &mapping->flags); 65 } 66 67 static inline gfp_t mapping_gfp_mask(struct address_space * mapping) 68 { 69 return (__force gfp_t)mapping->flags & __GFP_BITS_MASK; 70 } 71 72 /* Restricts the given gfp_mask to what the mapping allows. */ 73 static inline gfp_t mapping_gfp_constraint(struct address_space *mapping, 74 gfp_t gfp_mask) 75 { 76 return mapping_gfp_mask(mapping) & gfp_mask; 77 } 78 79 /* 80 * This is non-atomic. Only to be used before the mapping is activated. 81 * Probably needs a barrier... 82 */ 83 static inline void mapping_set_gfp_mask(struct address_space *m, gfp_t mask) 84 { 85 m->flags = (m->flags & ~(__force unsigned long)__GFP_BITS_MASK) | 86 (__force unsigned long)mask; 87 } 88 89 /* 90 * The page cache can be done in larger chunks than 91 * one page, because it allows for more efficient 92 * throughput (it can then be mapped into user 93 * space in smaller chunks for same flexibility). 94 * 95 * Or rather, it _will_ be done in larger chunks. 96 */ 97 #define PAGE_CACHE_SHIFT PAGE_SHIFT 98 #define PAGE_CACHE_SIZE PAGE_SIZE 99 #define PAGE_CACHE_MASK PAGE_MASK 100 #define PAGE_CACHE_ALIGN(addr) (((addr)+PAGE_CACHE_SIZE-1)&PAGE_CACHE_MASK) 101 102 #define page_cache_get(page) get_page(page) 103 #define page_cache_release(page) put_page(page) 104 void release_pages(struct page **pages, int nr, bool cold); 105 106 /* 107 * speculatively take a reference to a page. 108 * If the page is free (_count == 0), then _count is untouched, and 0 109 * is returned. Otherwise, _count is incremented by 1 and 1 is returned. 110 * 111 * This function must be called inside the same rcu_read_lock() section as has 112 * been used to lookup the page in the pagecache radix-tree (or page table): 113 * this allows allocators to use a synchronize_rcu() to stabilize _count. 114 * 115 * Unless an RCU grace period has passed, the count of all pages coming out 116 * of the allocator must be considered unstable. page_count may return higher 117 * than expected, and put_page must be able to do the right thing when the 118 * page has been finished with, no matter what it is subsequently allocated 119 * for (because put_page is what is used here to drop an invalid speculative 120 * reference). 121 * 122 * This is the interesting part of the lockless pagecache (and lockless 123 * get_user_pages) locking protocol, where the lookup-side (eg. find_get_page) 124 * has the following pattern: 125 * 1. find page in radix tree 126 * 2. conditionally increment refcount 127 * 3. check the page is still in pagecache (if no, goto 1) 128 * 129 * Remove-side that cares about stability of _count (eg. reclaim) has the 130 * following (with tree_lock held for write): 131 * A. atomically check refcount is correct and set it to 0 (atomic_cmpxchg) 132 * B. remove page from pagecache 133 * C. free the page 134 * 135 * There are 2 critical interleavings that matter: 136 * - 2 runs before A: in this case, A sees elevated refcount and bails out 137 * - A runs before 2: in this case, 2 sees zero refcount and retries; 138 * subsequently, B will complete and 1 will find no page, causing the 139 * lookup to return NULL. 140 * 141 * It is possible that between 1 and 2, the page is removed then the exact same 142 * page is inserted into the same position in pagecache. That's OK: the 143 * old find_get_page using tree_lock could equally have run before or after 144 * such a re-insertion, depending on order that locks are granted. 145 * 146 * Lookups racing against pagecache insertion isn't a big problem: either 1 147 * will find the page or it will not. Likewise, the old find_get_page could run 148 * either before the insertion or afterwards, depending on timing. 149 */ 150 static inline int page_cache_get_speculative(struct page *page) 151 { 152 VM_BUG_ON(in_interrupt()); 153 154 #ifdef CONFIG_TINY_RCU 155 # ifdef CONFIG_PREEMPT_COUNT 156 VM_BUG_ON(!in_atomic()); 157 # endif 158 /* 159 * Preempt must be disabled here - we rely on rcu_read_lock doing 160 * this for us. 161 * 162 * Pagecache won't be truncated from interrupt context, so if we have 163 * found a page in the radix tree here, we have pinned its refcount by 164 * disabling preempt, and hence no need for the "speculative get" that 165 * SMP requires. 166 */ 167 VM_BUG_ON_PAGE(page_count(page) == 0, page); 168 page_ref_inc(page); 169 170 #else 171 if (unlikely(!get_page_unless_zero(page))) { 172 /* 173 * Either the page has been freed, or will be freed. 174 * In either case, retry here and the caller should 175 * do the right thing (see comments above). 176 */ 177 return 0; 178 } 179 #endif 180 VM_BUG_ON_PAGE(PageTail(page), page); 181 182 return 1; 183 } 184 185 /* 186 * Same as above, but add instead of inc (could just be merged) 187 */ 188 static inline int page_cache_add_speculative(struct page *page, int count) 189 { 190 VM_BUG_ON(in_interrupt()); 191 192 #if !defined(CONFIG_SMP) && defined(CONFIG_TREE_RCU) 193 # ifdef CONFIG_PREEMPT_COUNT 194 VM_BUG_ON(!in_atomic()); 195 # endif 196 VM_BUG_ON_PAGE(page_count(page) == 0, page); 197 page_ref_add(page, count); 198 199 #else 200 if (unlikely(!page_ref_add_unless(page, count, 0))) 201 return 0; 202 #endif 203 VM_BUG_ON_PAGE(PageCompound(page) && page != compound_head(page), page); 204 205 return 1; 206 } 207 208 #ifdef CONFIG_NUMA 209 extern struct page *__page_cache_alloc(gfp_t gfp); 210 #else 211 static inline struct page *__page_cache_alloc(gfp_t gfp) 212 { 213 return alloc_pages(gfp, 0); 214 } 215 #endif 216 217 static inline struct page *page_cache_alloc(struct address_space *x) 218 { 219 return __page_cache_alloc(mapping_gfp_mask(x)); 220 } 221 222 static inline struct page *page_cache_alloc_cold(struct address_space *x) 223 { 224 return __page_cache_alloc(mapping_gfp_mask(x)|__GFP_COLD); 225 } 226 227 static inline struct page *page_cache_alloc_readahead(struct address_space *x) 228 { 229 return __page_cache_alloc(mapping_gfp_mask(x) | 230 __GFP_COLD | __GFP_NORETRY | __GFP_NOWARN); 231 } 232 233 typedef int filler_t(void *, struct page *); 234 235 pgoff_t page_cache_next_hole(struct address_space *mapping, 236 pgoff_t index, unsigned long max_scan); 237 pgoff_t page_cache_prev_hole(struct address_space *mapping, 238 pgoff_t index, unsigned long max_scan); 239 240 #define FGP_ACCESSED 0x00000001 241 #define FGP_LOCK 0x00000002 242 #define FGP_CREAT 0x00000004 243 #define FGP_WRITE 0x00000008 244 #define FGP_NOFS 0x00000010 245 #define FGP_NOWAIT 0x00000020 246 247 struct page *pagecache_get_page(struct address_space *mapping, pgoff_t offset, 248 int fgp_flags, gfp_t cache_gfp_mask); 249 250 /** 251 * find_get_page - find and get a page reference 252 * @mapping: the address_space to search 253 * @offset: the page index 254 * 255 * Looks up the page cache slot at @mapping & @offset. If there is a 256 * page cache page, it is returned with an increased refcount. 257 * 258 * Otherwise, %NULL is returned. 259 */ 260 static inline struct page *find_get_page(struct address_space *mapping, 261 pgoff_t offset) 262 { 263 return pagecache_get_page(mapping, offset, 0, 0); 264 } 265 266 static inline struct page *find_get_page_flags(struct address_space *mapping, 267 pgoff_t offset, int fgp_flags) 268 { 269 return pagecache_get_page(mapping, offset, fgp_flags, 0); 270 } 271 272 /** 273 * find_lock_page - locate, pin and lock a pagecache page 274 * pagecache_get_page - find and get a page reference 275 * @mapping: the address_space to search 276 * @offset: the page index 277 * 278 * Looks up the page cache slot at @mapping & @offset. If there is a 279 * page cache page, it is returned locked and with an increased 280 * refcount. 281 * 282 * Otherwise, %NULL is returned. 283 * 284 * find_lock_page() may sleep. 285 */ 286 static inline struct page *find_lock_page(struct address_space *mapping, 287 pgoff_t offset) 288 { 289 return pagecache_get_page(mapping, offset, FGP_LOCK, 0); 290 } 291 292 /** 293 * find_or_create_page - locate or add a pagecache page 294 * @mapping: the page's address_space 295 * @index: the page's index into the mapping 296 * @gfp_mask: page allocation mode 297 * 298 * Looks up the page cache slot at @mapping & @offset. If there is a 299 * page cache page, it is returned locked and with an increased 300 * refcount. 301 * 302 * If the page is not present, a new page is allocated using @gfp_mask 303 * and added to the page cache and the VM's LRU list. The page is 304 * returned locked and with an increased refcount. 305 * 306 * On memory exhaustion, %NULL is returned. 307 * 308 * find_or_create_page() may sleep, even if @gfp_flags specifies an 309 * atomic allocation! 310 */ 311 static inline struct page *find_or_create_page(struct address_space *mapping, 312 pgoff_t offset, gfp_t gfp_mask) 313 { 314 return pagecache_get_page(mapping, offset, 315 FGP_LOCK|FGP_ACCESSED|FGP_CREAT, 316 gfp_mask); 317 } 318 319 /** 320 * grab_cache_page_nowait - returns locked page at given index in given cache 321 * @mapping: target address_space 322 * @index: the page index 323 * 324 * Same as grab_cache_page(), but do not wait if the page is unavailable. 325 * This is intended for speculative data generators, where the data can 326 * be regenerated if the page couldn't be grabbed. This routine should 327 * be safe to call while holding the lock for another page. 328 * 329 * Clear __GFP_FS when allocating the page to avoid recursion into the fs 330 * and deadlock against the caller's locked page. 331 */ 332 static inline struct page *grab_cache_page_nowait(struct address_space *mapping, 333 pgoff_t index) 334 { 335 return pagecache_get_page(mapping, index, 336 FGP_LOCK|FGP_CREAT|FGP_NOFS|FGP_NOWAIT, 337 mapping_gfp_mask(mapping)); 338 } 339 340 struct page *find_get_entry(struct address_space *mapping, pgoff_t offset); 341 struct page *find_lock_entry(struct address_space *mapping, pgoff_t offset); 342 unsigned find_get_entries(struct address_space *mapping, pgoff_t start, 343 unsigned int nr_entries, struct page **entries, 344 pgoff_t *indices); 345 unsigned find_get_pages(struct address_space *mapping, pgoff_t start, 346 unsigned int nr_pages, struct page **pages); 347 unsigned find_get_pages_contig(struct address_space *mapping, pgoff_t start, 348 unsigned int nr_pages, struct page **pages); 349 unsigned find_get_pages_tag(struct address_space *mapping, pgoff_t *index, 350 int tag, unsigned int nr_pages, struct page **pages); 351 unsigned find_get_entries_tag(struct address_space *mapping, pgoff_t start, 352 int tag, unsigned int nr_entries, 353 struct page **entries, pgoff_t *indices); 354 355 struct page *grab_cache_page_write_begin(struct address_space *mapping, 356 pgoff_t index, unsigned flags); 357 358 /* 359 * Returns locked page at given index in given cache, creating it if needed. 360 */ 361 static inline struct page *grab_cache_page(struct address_space *mapping, 362 pgoff_t index) 363 { 364 return find_or_create_page(mapping, index, mapping_gfp_mask(mapping)); 365 } 366 367 extern struct page * read_cache_page(struct address_space *mapping, 368 pgoff_t index, filler_t *filler, void *data); 369 extern struct page * read_cache_page_gfp(struct address_space *mapping, 370 pgoff_t index, gfp_t gfp_mask); 371 extern int read_cache_pages(struct address_space *mapping, 372 struct list_head *pages, filler_t *filler, void *data); 373 374 static inline struct page *read_mapping_page(struct address_space *mapping, 375 pgoff_t index, void *data) 376 { 377 filler_t *filler = (filler_t *)mapping->a_ops->readpage; 378 return read_cache_page(mapping, index, filler, data); 379 } 380 381 /* 382 * Get the offset in PAGE_SIZE. 383 * (TODO: hugepage should have ->index in PAGE_SIZE) 384 */ 385 static inline pgoff_t page_to_pgoff(struct page *page) 386 { 387 pgoff_t pgoff; 388 389 if (unlikely(PageHeadHuge(page))) 390 return page->index << compound_order(page); 391 392 if (likely(!PageTransTail(page))) 393 return page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); 394 395 /* 396 * We don't initialize ->index for tail pages: calculate based on 397 * head page 398 */ 399 pgoff = compound_head(page)->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); 400 pgoff += page - compound_head(page); 401 return pgoff; 402 } 403 404 /* 405 * Return byte-offset into filesystem object for page. 406 */ 407 static inline loff_t page_offset(struct page *page) 408 { 409 return ((loff_t)page->index) << PAGE_CACHE_SHIFT; 410 } 411 412 static inline loff_t page_file_offset(struct page *page) 413 { 414 return ((loff_t)page_file_index(page)) << PAGE_CACHE_SHIFT; 415 } 416 417 extern pgoff_t linear_hugepage_index(struct vm_area_struct *vma, 418 unsigned long address); 419 420 static inline pgoff_t linear_page_index(struct vm_area_struct *vma, 421 unsigned long address) 422 { 423 pgoff_t pgoff; 424 if (unlikely(is_vm_hugetlb_page(vma))) 425 return linear_hugepage_index(vma, address); 426 pgoff = (address - vma->vm_start) >> PAGE_SHIFT; 427 pgoff += vma->vm_pgoff; 428 return pgoff >> (PAGE_CACHE_SHIFT - PAGE_SHIFT); 429 } 430 431 extern void __lock_page(struct page *page); 432 extern int __lock_page_killable(struct page *page); 433 extern int __lock_page_or_retry(struct page *page, struct mm_struct *mm, 434 unsigned int flags); 435 extern void unlock_page(struct page *page); 436 437 static inline int trylock_page(struct page *page) 438 { 439 page = compound_head(page); 440 return (likely(!test_and_set_bit_lock(PG_locked, &page->flags))); 441 } 442 443 /* 444 * lock_page may only be called if we have the page's inode pinned. 445 */ 446 static inline void lock_page(struct page *page) 447 { 448 might_sleep(); 449 if (!trylock_page(page)) 450 __lock_page(page); 451 } 452 453 /* 454 * lock_page_killable is like lock_page but can be interrupted by fatal 455 * signals. It returns 0 if it locked the page and -EINTR if it was 456 * killed while waiting. 457 */ 458 static inline int lock_page_killable(struct page *page) 459 { 460 might_sleep(); 461 if (!trylock_page(page)) 462 return __lock_page_killable(page); 463 return 0; 464 } 465 466 /* 467 * lock_page_or_retry - Lock the page, unless this would block and the 468 * caller indicated that it can handle a retry. 469 * 470 * Return value and mmap_sem implications depend on flags; see 471 * __lock_page_or_retry(). 472 */ 473 static inline int lock_page_or_retry(struct page *page, struct mm_struct *mm, 474 unsigned int flags) 475 { 476 might_sleep(); 477 return trylock_page(page) || __lock_page_or_retry(page, mm, flags); 478 } 479 480 /* 481 * This is exported only for wait_on_page_locked/wait_on_page_writeback, 482 * and for filesystems which need to wait on PG_private. 483 */ 484 extern void wait_on_page_bit(struct page *page, int bit_nr); 485 486 extern int wait_on_page_bit_killable(struct page *page, int bit_nr); 487 extern int wait_on_page_bit_killable_timeout(struct page *page, 488 int bit_nr, unsigned long timeout); 489 490 static inline int wait_on_page_locked_killable(struct page *page) 491 { 492 if (!PageLocked(page)) 493 return 0; 494 return wait_on_page_bit_killable(compound_head(page), PG_locked); 495 } 496 497 extern wait_queue_head_t *page_waitqueue(struct page *page); 498 static inline void wake_up_page(struct page *page, int bit) 499 { 500 __wake_up_bit(page_waitqueue(page), &page->flags, bit); 501 } 502 503 /* 504 * Wait for a page to be unlocked. 505 * 506 * This must be called with the caller "holding" the page, 507 * ie with increased "page->count" so that the page won't 508 * go away during the wait.. 509 */ 510 static inline void wait_on_page_locked(struct page *page) 511 { 512 if (PageLocked(page)) 513 wait_on_page_bit(compound_head(page), PG_locked); 514 } 515 516 /* 517 * Wait for a page to complete writeback 518 */ 519 static inline void wait_on_page_writeback(struct page *page) 520 { 521 if (PageWriteback(page)) 522 wait_on_page_bit(page, PG_writeback); 523 } 524 525 extern void end_page_writeback(struct page *page); 526 void wait_for_stable_page(struct page *page); 527 528 void page_endio(struct page *page, int rw, int err); 529 530 /* 531 * Add an arbitrary waiter to a page's wait queue 532 */ 533 extern void add_page_wait_queue(struct page *page, wait_queue_t *waiter); 534 535 /* 536 * Fault a userspace page into pagetables. Return non-zero on a fault. 537 * 538 * This assumes that two userspace pages are always sufficient. That's 539 * not true if PAGE_CACHE_SIZE > PAGE_SIZE. 540 */ 541 static inline int fault_in_pages_writeable(char __user *uaddr, int size) 542 { 543 int ret; 544 545 if (unlikely(size == 0)) 546 return 0; 547 548 /* 549 * Writing zeroes into userspace here is OK, because we know that if 550 * the zero gets there, we'll be overwriting it. 551 */ 552 ret = __put_user(0, uaddr); 553 if (ret == 0) { 554 char __user *end = uaddr + size - 1; 555 556 /* 557 * If the page was already mapped, this will get a cache miss 558 * for sure, so try to avoid doing it. 559 */ 560 if (((unsigned long)uaddr & PAGE_MASK) != 561 ((unsigned long)end & PAGE_MASK)) 562 ret = __put_user(0, end); 563 } 564 return ret; 565 } 566 567 static inline int fault_in_pages_readable(const char __user *uaddr, int size) 568 { 569 volatile char c; 570 int ret; 571 572 if (unlikely(size == 0)) 573 return 0; 574 575 ret = __get_user(c, uaddr); 576 if (ret == 0) { 577 const char __user *end = uaddr + size - 1; 578 579 if (((unsigned long)uaddr & PAGE_MASK) != 580 ((unsigned long)end & PAGE_MASK)) { 581 ret = __get_user(c, end); 582 (void)c; 583 } 584 } 585 return ret; 586 } 587 588 /* 589 * Multipage variants of the above prefault helpers, useful if more than 590 * PAGE_SIZE of data needs to be prefaulted. These are separate from the above 591 * functions (which only handle up to PAGE_SIZE) to avoid clobbering the 592 * filemap.c hotpaths. 593 */ 594 static inline int fault_in_multipages_writeable(char __user *uaddr, int size) 595 { 596 int ret = 0; 597 char __user *end = uaddr + size - 1; 598 599 if (unlikely(size == 0)) 600 return ret; 601 602 /* 603 * Writing zeroes into userspace here is OK, because we know that if 604 * the zero gets there, we'll be overwriting it. 605 */ 606 while (uaddr <= end) { 607 ret = __put_user(0, uaddr); 608 if (ret != 0) 609 return ret; 610 uaddr += PAGE_SIZE; 611 } 612 613 /* Check whether the range spilled into the next page. */ 614 if (((unsigned long)uaddr & PAGE_MASK) == 615 ((unsigned long)end & PAGE_MASK)) 616 ret = __put_user(0, end); 617 618 return ret; 619 } 620 621 static inline int fault_in_multipages_readable(const char __user *uaddr, 622 int size) 623 { 624 volatile char c; 625 int ret = 0; 626 const char __user *end = uaddr + size - 1; 627 628 if (unlikely(size == 0)) 629 return ret; 630 631 while (uaddr <= end) { 632 ret = __get_user(c, uaddr); 633 if (ret != 0) 634 return ret; 635 uaddr += PAGE_SIZE; 636 } 637 638 /* Check whether the range spilled into the next page. */ 639 if (((unsigned long)uaddr & PAGE_MASK) == 640 ((unsigned long)end & PAGE_MASK)) { 641 ret = __get_user(c, end); 642 (void)c; 643 } 644 645 return ret; 646 } 647 648 int add_to_page_cache_locked(struct page *page, struct address_space *mapping, 649 pgoff_t index, gfp_t gfp_mask); 650 int add_to_page_cache_lru(struct page *page, struct address_space *mapping, 651 pgoff_t index, gfp_t gfp_mask); 652 extern void delete_from_page_cache(struct page *page); 653 extern void __delete_from_page_cache(struct page *page, void *shadow); 654 int replace_page_cache_page(struct page *old, struct page *new, gfp_t gfp_mask); 655 656 /* 657 * Like add_to_page_cache_locked, but used to add newly allocated pages: 658 * the page is new, so we can just run __SetPageLocked() against it. 659 */ 660 static inline int add_to_page_cache(struct page *page, 661 struct address_space *mapping, pgoff_t offset, gfp_t gfp_mask) 662 { 663 int error; 664 665 __SetPageLocked(page); 666 error = add_to_page_cache_locked(page, mapping, offset, gfp_mask); 667 if (unlikely(error)) 668 __ClearPageLocked(page); 669 return error; 670 } 671 672 static inline unsigned long dir_pages(struct inode *inode) 673 { 674 return (unsigned long)(inode->i_size + PAGE_CACHE_SIZE - 1) >> 675 PAGE_CACHE_SHIFT; 676 } 677 678 #endif /* _LINUX_PAGEMAP_H */ 679