1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * linux/mm/swap_state.c 4 * 5 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds 6 * Swap reorganised 29.12.95, Stephen Tweedie 7 * 8 * Rewritten to use page cache, (C) 1998 Stephen Tweedie 9 */ 10 #include <linux/mm.h> 11 #include <linux/gfp.h> 12 #include <linux/kernel_stat.h> 13 #include <linux/mempolicy.h> 14 #include <linux/swap.h> 15 #include <linux/leafops.h> 16 #include <linux/init.h> 17 #include <linux/pagemap.h> 18 #include <linux/folio_batch.h> 19 #include <linux/backing-dev.h> 20 #include <linux/blkdev.h> 21 #include <linux/migrate.h> 22 #include <linux/vmalloc.h> 23 #include <linux/huge_mm.h> 24 #include <linux/shmem_fs.h> 25 #include "internal.h" 26 #include "swap_table.h" 27 #include "swap.h" 28 29 /* 30 * swapper_space is a fiction, retained to simplify the path through 31 * vmscan's shrink_folio_list. 32 */ 33 static const struct address_space_operations swap_aops = { 34 .dirty_folio = noop_dirty_folio, 35 #ifdef CONFIG_MIGRATION 36 .migrate_folio = migrate_folio, 37 #endif 38 }; 39 40 struct address_space swap_space __read_mostly = { 41 .a_ops = &swap_aops, 42 }; 43 44 static bool enable_vma_readahead __read_mostly = true; 45 46 #define SWAP_RA_ORDER_CEILING 5 47 48 #define SWAP_RA_WIN_SHIFT (PAGE_SHIFT / 2) 49 #define SWAP_RA_HITS_MASK ((1UL << SWAP_RA_WIN_SHIFT) - 1) 50 #define SWAP_RA_HITS_MAX SWAP_RA_HITS_MASK 51 #define SWAP_RA_WIN_MASK (~PAGE_MASK & ~SWAP_RA_HITS_MASK) 52 53 #define SWAP_RA_HITS(v) ((v) & SWAP_RA_HITS_MASK) 54 #define SWAP_RA_WIN(v) (((v) & SWAP_RA_WIN_MASK) >> SWAP_RA_WIN_SHIFT) 55 #define SWAP_RA_ADDR(v) ((v) & PAGE_MASK) 56 57 #define SWAP_RA_VAL(addr, win, hits) \ 58 (((addr) & PAGE_MASK) | \ 59 (((win) << SWAP_RA_WIN_SHIFT) & SWAP_RA_WIN_MASK) | \ 60 ((hits) & SWAP_RA_HITS_MASK)) 61 62 /* Initial readahead hits is 4 to start up with a small window */ 63 #define GET_SWAP_RA_VAL(vma) \ 64 (atomic_long_read(&(vma)->swap_readahead_info) ? : 4) 65 66 static atomic_t swapin_readahead_hits = ATOMIC_INIT(4); 67 68 void show_swap_cache_info(void) 69 { 70 printk("%lu pages in swap cache\n", total_swapcache_pages()); 71 printk("Free swap = %ldkB\n", K(get_nr_swap_pages())); 72 printk("Total swap = %lukB\n", K(total_swap_pages)); 73 } 74 75 /** 76 * swap_cache_get_folio - Looks up a folio in the swap cache. 77 * @entry: swap entry used for the lookup. 78 * 79 * A found folio will be returned unlocked and with its refcount increased. 80 * 81 * Context: Caller must ensure @entry is valid and protect the swap device 82 * with reference count or locks. 83 * Return: Returns the found folio on success, NULL otherwise. The caller 84 * must lock and check if the folio still matches the swap entry before 85 * use (e.g., folio_matches_swap_entry). 86 */ 87 struct folio *swap_cache_get_folio(swp_entry_t entry) 88 { 89 unsigned long swp_tb; 90 struct folio *folio; 91 92 for (;;) { 93 swp_tb = swap_table_get(__swap_entry_to_cluster(entry), 94 swp_cluster_offset(entry)); 95 if (!swp_tb_is_folio(swp_tb)) 96 return NULL; 97 folio = swp_tb_to_folio(swp_tb); 98 if (likely(folio_try_get(folio))) 99 return folio; 100 } 101 102 return NULL; 103 } 104 105 /** 106 * swap_cache_has_folio - Check if a swap slot has cache. 107 * @entry: swap entry indicating the slot. 108 * 109 * Context: Caller must ensure @entry is valid and protect the swap 110 * device with reference count or locks. 111 */ 112 bool swap_cache_has_folio(swp_entry_t entry) 113 { 114 unsigned long swp_tb; 115 116 swp_tb = swap_table_get(__swap_entry_to_cluster(entry), 117 swp_cluster_offset(entry)); 118 return swp_tb_is_folio(swp_tb); 119 } 120 121 /** 122 * swap_cache_get_shadow - Looks up a shadow in the swap cache. 123 * @entry: swap entry used for the lookup. 124 * 125 * Context: Caller must ensure @entry is valid and protect the swap device 126 * with reference count or locks. 127 * Return: Returns either NULL or an XA_VALUE (shadow). 128 */ 129 void *swap_cache_get_shadow(swp_entry_t entry) 130 { 131 unsigned long swp_tb; 132 133 swp_tb = swap_table_get(__swap_entry_to_cluster(entry), 134 swp_cluster_offset(entry)); 135 if (swp_tb_is_shadow(swp_tb)) 136 return swp_tb_to_shadow(swp_tb); 137 return NULL; 138 } 139 140 /** 141 * __swap_cache_add_check - Check if a range is suitable for adding a folio. 142 * @ci: The locked swap cluster 143 * @targ_entry: The target swap entry to check, will be rounded down by @nr 144 * @nr: Number of slots to check, must be a power of 2 145 * @shadowp: Returns the shadow value if one exists in the range 146 * @memcg_id: Returns the memory cgroup id, NULL to ignore cgroup check 147 * 148 * Check if all slots covered by given range have a swap count >= 1. 149 * Retrieves the shadow if there is one. If @memcg_id is not NULL, also 150 * checks if all slots belong to the same cgroup and return the cgroup 151 * private id. 152 * 153 * Context: Caller must lock the cluster. 154 * Return: 0 if success, error code if failed. 155 */ 156 static int __swap_cache_add_check(struct swap_cluster_info *ci, 157 swp_entry_t targ_entry, 158 unsigned long nr, void **shadowp, 159 unsigned short *memcg_id) 160 { 161 unsigned int ci_off, ci_end; 162 unsigned long old_tb; 163 bool is_zero; 164 165 lockdep_assert_held(&ci->lock); 166 167 /* 168 * If the target slot is not swapped out or already cached, return 169 * -ENOENT or -EEXIST. If the batch is not suitable, could be a 170 * race with concurrent free or cache add, return -EBUSY. 171 */ 172 if (unlikely(!ci->table)) 173 return -ENOENT; 174 ci_off = swp_cluster_offset(targ_entry); 175 old_tb = __swap_table_get(ci, ci_off); 176 if (swp_tb_is_folio(old_tb)) 177 return -EEXIST; 178 if (!__swp_tb_get_count(old_tb)) 179 return -ENOENT; 180 if (shadowp && swp_tb_is_shadow(old_tb)) 181 *shadowp = swp_tb_to_shadow(old_tb); 182 if (memcg_id) 183 *memcg_id = __swap_cgroup_get(ci, ci_off); 184 185 if (nr == 1) 186 return 0; 187 188 is_zero = __swap_table_test_zero(ci, ci_off); 189 ci_off = round_down(ci_off, nr); 190 ci_end = ci_off + nr; 191 do { 192 old_tb = __swap_table_get(ci, ci_off); 193 if (unlikely(swp_tb_is_folio(old_tb) || 194 !__swp_tb_get_count(old_tb) || 195 is_zero != __swap_table_test_zero(ci, ci_off) || 196 (memcg_id && *memcg_id != __swap_cgroup_get(ci, ci_off)))) 197 return -EBUSY; 198 } while (++ci_off < ci_end); 199 200 return 0; 201 } 202 203 static void __swap_cache_do_add_folio(struct swap_cluster_info *ci, 204 struct folio *folio, swp_entry_t entry) 205 { 206 unsigned int ci_off = swp_cluster_offset(entry), ci_end; 207 unsigned long nr_pages = folio_nr_pages(folio); 208 unsigned long pfn = folio_pfn(folio); 209 unsigned long old_tb; 210 211 VM_WARN_ON_ONCE_FOLIO(!folio_test_locked(folio), folio); 212 VM_WARN_ON_ONCE_FOLIO(folio_test_swapcache(folio), folio); 213 VM_WARN_ON_ONCE_FOLIO(!folio_test_swapbacked(folio), folio); 214 215 ci_end = ci_off + nr_pages; 216 do { 217 old_tb = __swap_table_get(ci, ci_off); 218 VM_WARN_ON_ONCE(swp_tb_is_folio(old_tb)); 219 __swap_table_set(ci, ci_off, pfn_to_swp_tb(pfn, __swp_tb_get_flags(old_tb))); 220 } while (++ci_off < ci_end); 221 222 folio_ref_add(folio, nr_pages); 223 folio_set_swapcache(folio); 224 folio->swap = entry; 225 } 226 227 /** 228 * __swap_cache_add_folio - Add a folio to the swap cache and update stats. 229 * @ci: The locked swap cluster. 230 * @folio: The folio to be added. 231 * @entry: The swap entry corresponding to the folio. 232 * 233 * Unconditionally add a folio to the swap cache. The caller must ensure 234 * all slots are usable and have no conflicts. This assigns entry to 235 * @folio->swap, increases folio refcount by the number of pages, and 236 * updates swap cache stats. 237 * 238 * Context: Caller must ensure the folio is locked and lock the cluster 239 * that holds the entries. 240 */ 241 void __swap_cache_add_folio(struct swap_cluster_info *ci, 242 struct folio *folio, swp_entry_t entry) 243 { 244 unsigned long nr_pages = folio_nr_pages(folio); 245 246 __swap_cache_do_add_folio(ci, folio, entry); 247 node_stat_mod_folio(folio, NR_FILE_PAGES, nr_pages); 248 lruvec_stat_mod_folio(folio, NR_SWAPCACHE, nr_pages); 249 } 250 251 static void __swap_cache_do_del_folio(struct swap_cluster_info *ci, 252 struct folio *folio, 253 swp_entry_t entry, void *shadow) 254 { 255 unsigned long old_tb; 256 struct swap_info_struct *si; 257 unsigned int ci_start, ci_off, ci_end; 258 bool folio_swapped = false, need_free = false; 259 unsigned long nr_pages = folio_nr_pages(folio); 260 261 VM_WARN_ON_ONCE(__swap_entry_to_cluster(entry) != ci); 262 VM_WARN_ON_ONCE_FOLIO(!folio_test_locked(folio), folio); 263 VM_WARN_ON_ONCE_FOLIO(!folio_test_swapcache(folio), folio); 264 VM_WARN_ON_ONCE_FOLIO(folio_test_writeback(folio), folio); 265 266 si = __swap_entry_to_info(entry); 267 ci_start = swp_cluster_offset(entry); 268 ci_end = ci_start + nr_pages; 269 ci_off = ci_start; 270 do { 271 old_tb = __swap_table_get(ci, ci_off); 272 WARN_ON_ONCE(!swp_tb_is_folio(old_tb) || 273 swp_tb_to_folio(old_tb) != folio); 274 if (__swp_tb_get_count(old_tb)) 275 folio_swapped = true; 276 else 277 need_free = true; 278 /* If shadow is NULL, we set an empty shadow. */ 279 __swap_table_set(ci, ci_off, shadow_to_swp_tb(shadow, 280 __swp_tb_get_flags(old_tb))); 281 } while (++ci_off < ci_end); 282 283 folio->swap.val = 0; 284 folio_clear_swapcache(folio); 285 286 if (!folio_swapped) { 287 __swap_cluster_free_entries(si, ci, ci_start, nr_pages); 288 } else if (need_free) { 289 ci_off = ci_start; 290 do { 291 if (!__swp_tb_get_count(__swap_table_get(ci, ci_off))) 292 __swap_cluster_free_entries(si, ci, ci_off, 1); 293 } while (++ci_off < ci_end); 294 } 295 } 296 297 /** 298 * __swap_cache_del_folio - Removes a folio from the swap cache. 299 * @ci: The locked swap cluster. 300 * @folio: The folio. 301 * @entry: The first swap entry that the folio corresponds to. 302 * @shadow: shadow value to be filled in the swap cache. 303 * 304 * Removes a folio from the swap cache and fills a shadow in place. 305 * This won't put the folio's refcount. The caller has to do that. 306 * 307 * Context: Caller must ensure the folio is locked and in the swap cache 308 * using the index of @entry, and lock the cluster that holds the entries. 309 */ 310 void __swap_cache_del_folio(struct swap_cluster_info *ci, struct folio *folio, 311 swp_entry_t entry, void *shadow) 312 { 313 unsigned long nr_pages = folio_nr_pages(folio); 314 315 __swap_cache_do_del_folio(ci, folio, entry, shadow); 316 node_stat_mod_folio(folio, NR_FILE_PAGES, -nr_pages); 317 lruvec_stat_mod_folio(folio, NR_SWAPCACHE, -nr_pages); 318 } 319 320 /** 321 * swap_cache_del_folio - Removes a folio from the swap cache. 322 * @folio: The folio. 323 * 324 * Same as __swap_cache_del_folio, but handles lock and refcount. The 325 * caller must ensure the folio is either clean or has a swap count 326 * equal to zero, or it may cause data loss. 327 * 328 * Context: Caller must ensure the folio is locked and in the swap cache. 329 */ 330 void swap_cache_del_folio(struct folio *folio) 331 { 332 struct swap_cluster_info *ci; 333 swp_entry_t entry = folio->swap; 334 335 ci = swap_cluster_lock(__swap_entry_to_info(entry), swp_offset(entry)); 336 __swap_cache_del_folio(ci, folio, entry, NULL); 337 swap_cluster_unlock(ci); 338 339 folio_ref_sub(folio, folio_nr_pages(folio)); 340 } 341 342 /** 343 * __swap_cache_replace_folio - Replace a folio in the swap cache. 344 * @ci: The locked swap cluster. 345 * @old: The old folio to be replaced. 346 * @new: The new folio. 347 * 348 * Replace an existing folio in the swap cache with a new folio. The 349 * caller is responsible for setting up the new folio's flag and swap 350 * entries. Replacement will take the new folio's swap entry value as 351 * the starting offset to override all slots covered by the new folio. 352 * 353 * Context: Caller must ensure both folios are locked, and lock the 354 * cluster that holds the old folio to be replaced. 355 */ 356 void __swap_cache_replace_folio(struct swap_cluster_info *ci, 357 struct folio *old, struct folio *new) 358 { 359 swp_entry_t entry = new->swap; 360 unsigned long nr_pages = folio_nr_pages(new); 361 unsigned int ci_off = swp_cluster_offset(entry); 362 unsigned int ci_end = ci_off + nr_pages; 363 unsigned long pfn = folio_pfn(new); 364 unsigned long old_tb; 365 366 VM_WARN_ON_ONCE(!folio_test_swapcache(old) || !folio_test_swapcache(new)); 367 VM_WARN_ON_ONCE(!folio_test_locked(old) || !folio_test_locked(new)); 368 VM_WARN_ON_ONCE(!entry.val); 369 370 /* Swap cache still stores N entries instead of a high-order entry */ 371 do { 372 old_tb = __swap_table_get(ci, ci_off); 373 WARN_ON_ONCE(!swp_tb_is_folio(old_tb) || swp_tb_to_folio(old_tb) != old); 374 __swap_table_set(ci, ci_off, pfn_to_swp_tb(pfn, __swp_tb_get_flags(old_tb))); 375 } while (++ci_off < ci_end); 376 377 /* 378 * If the old folio is partially replaced (e.g., splitting a large 379 * folio, the old folio is shrunk, and new split sub folios replace 380 * the shrunk part), ensure the new folio doesn't overlap it. 381 */ 382 if (IS_ENABLED(CONFIG_DEBUG_VM) && 383 folio_order(old) != folio_order(new)) { 384 ci_off = swp_cluster_offset(old->swap); 385 ci_end = ci_off + folio_nr_pages(old); 386 while (ci_off++ < ci_end) 387 WARN_ON_ONCE(swp_tb_to_folio(__swap_table_get(ci, ci_off)) != old); 388 } 389 } 390 391 /* 392 * Try to allocate a folio of given order in the swap cache. 393 * 394 * This helper resolves the potential races of swap allocation 395 * and prepares a folio to be used for swap IO. May return following 396 * value: 397 * 398 * -ENOMEM / -EBUSY: Order is too large or in conflict with sub slot, 399 * caller should shrink the order and retry 400 * -ENOENT / -EEXIST: Target swap entry is unavailable or cached, the caller 401 * should abort or try to use the cached folio instead 402 */ 403 static struct folio *__swap_cache_alloc(struct swap_cluster_info *ci, 404 swp_entry_t targ_entry, gfp_t gfp, 405 unsigned int order, struct vm_fault *vmf, 406 struct mempolicy *mpol, pgoff_t ilx) 407 { 408 int err; 409 swp_entry_t entry; 410 struct folio *folio; 411 void *shadow = NULL; 412 unsigned short memcg_id; 413 unsigned long address, nr_pages = 1UL << order; 414 struct vm_area_struct *vma = vmf ? vmf->vma : NULL; 415 416 VM_WARN_ON_ONCE(nr_pages > SWAPFILE_CLUSTER); 417 entry.val = round_down(targ_entry.val, nr_pages); 418 419 /* Check if the slot and range are available, skip allocation if not */ 420 spin_lock(&ci->lock); 421 err = __swap_cache_add_check(ci, targ_entry, nr_pages, NULL, NULL); 422 spin_unlock(&ci->lock); 423 if (unlikely(err)) 424 return ERR_PTR(err); 425 426 /* 427 * Limit THP gfp. The limitation is a no-op for typical 428 * GFP_HIGHUSER_MOVABLE but matters for shmem. 429 */ 430 if (order) 431 gfp = thp_shmem_limit_gfp_mask(vma_thp_gfp_mask(vma), gfp); 432 433 if (mpol || !vmf) { 434 folio = folio_alloc_mpol(gfp, order, mpol, ilx, numa_node_id()); 435 } else { 436 address = round_down(vmf->address, PAGE_SIZE << order); 437 folio = vma_alloc_folio(gfp, order, vmf->vma, address); 438 } 439 if (unlikely(!folio)) 440 return ERR_PTR(-ENOMEM); 441 442 /* Double check the range is still not in conflict */ 443 spin_lock(&ci->lock); 444 err = __swap_cache_add_check(ci, targ_entry, nr_pages, &shadow, &memcg_id); 445 if (unlikely(err)) { 446 spin_unlock(&ci->lock); 447 folio_put(folio); 448 return ERR_PTR(err); 449 } 450 451 __folio_set_locked(folio); 452 __folio_set_swapbacked(folio); 453 __swap_cache_do_add_folio(ci, folio, entry); 454 spin_unlock(&ci->lock); 455 456 if (mem_cgroup_swapin_charge_folio(folio, memcg_id, 457 vmf ? vmf->vma->vm_mm : NULL, gfp)) { 458 spin_lock(&ci->lock); 459 __swap_cache_do_del_folio(ci, folio, entry, shadow); 460 spin_unlock(&ci->lock); 461 folio_unlock(folio); 462 /* nr_pages refs from swap cache, 1 from allocation */ 463 folio_put_refs(folio, nr_pages + 1); 464 count_mthp_stat(order, MTHP_STAT_SWPIN_FALLBACK_CHARGE); 465 return ERR_PTR(-ENOMEM); 466 } 467 468 if (order > 1 && folio_memcg_alloc_deferred(folio)) { 469 spin_lock(&ci->lock); 470 __swap_cache_do_del_folio(ci, folio, entry, shadow); 471 spin_unlock(&ci->lock); 472 folio_unlock(folio); 473 /* nr_pages refs from swap cache, 1 from allocation */ 474 folio_put_refs(folio, nr_pages + 1); 475 return ERR_PTR(-ENOMEM); 476 } 477 478 /* memsw uncharges swap when folio is added to swap cache */ 479 memcg1_swapin(folio); 480 if (shadow) 481 workingset_refault(folio, shadow); 482 483 node_stat_mod_folio(folio, NR_FILE_PAGES, nr_pages); 484 lruvec_stat_mod_folio(folio, NR_SWAPCACHE, nr_pages); 485 486 /* Caller will initiate read into locked new_folio */ 487 folio_add_lru(folio); 488 return folio; 489 } 490 491 /** 492 * swap_cache_alloc_folio - Allocate folio for swapped out slot in swap cache. 493 * @targ_entry: swap entry indicating the target slot 494 * @gfp: memory allocation flags 495 * @orders: allocation orders, must be non zero 496 * @vmf: fault information 497 * @mpol: NUMA memory allocation policy to be applied 498 * @ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE 499 * 500 * Allocate a folio in the swap cache for one swap slot, typically before 501 * doing IO (e.g. swap in or zswap writeback). The swap slot indicated by 502 * @targ_entry must have a non-zero swap count (swapped out). 503 * 504 * Context: Caller must protect the swap device with reference count or locks. 505 * Return: Returns the folio if allocation succeeded and folio is in the swap 506 * cache. Returns error code if failed due to race, OOM or invalid arguments. 507 */ 508 struct folio *swap_cache_alloc_folio(swp_entry_t targ_entry, gfp_t gfp, 509 unsigned long orders, struct vm_fault *vmf, 510 struct mempolicy *mpol, pgoff_t ilx) 511 { 512 int order, err; 513 struct folio *ret; 514 struct swap_cluster_info *ci; 515 516 ci = __swap_entry_to_cluster(targ_entry); 517 order = highest_order(orders); 518 519 /* orders must be non-zero, and must not exceed cluster size. */ 520 if (WARN_ON_ONCE(!orders || (1UL << order) > SWAPFILE_CLUSTER)) 521 return ERR_PTR(-EINVAL); 522 523 do { 524 ret = __swap_cache_alloc(ci, targ_entry, gfp, order, 525 vmf, mpol, ilx); 526 if (!IS_ERR(ret)) 527 break; 528 err = PTR_ERR(ret); 529 if (!order || (err && err != -EBUSY && err != -ENOMEM)) 530 break; 531 count_mthp_stat(order, MTHP_STAT_SWPIN_FALLBACK); 532 order = next_order(&orders, order); 533 } while (orders); 534 535 return ret; 536 } 537 538 /* 539 * If we are the only user, then try to free up the swap cache. 540 * 541 * Its ok to check the swapcache flag without the folio lock 542 * here because we are going to recheck again inside 543 * folio_free_swap() _with_ the lock. 544 * - Marcelo 545 */ 546 void free_swap_cache(struct folio *folio) 547 { 548 if (folio_test_swapcache(folio) && !folio_mapped(folio) && 549 folio_trylock(folio)) { 550 folio_free_swap(folio); 551 folio_unlock(folio); 552 } 553 } 554 555 /* 556 * Freeing a folio and also freeing any swap cache associated with 557 * this folio if it is the last user. 558 */ 559 void free_folio_and_swap_cache(struct folio *folio) 560 { 561 free_swap_cache(folio); 562 if (!is_huge_zero_folio(folio)) 563 folio_put(folio); 564 } 565 566 /* 567 * Passed an array of pages, drop them all from swapcache and then release 568 * them. They are removed from the LRU and freed if this is their last use. 569 */ 570 void free_pages_and_swap_cache(struct encoded_page **pages, int nr) 571 { 572 struct folio_batch folios; 573 unsigned int refs[FOLIO_BATCH_SIZE]; 574 575 folio_batch_init(&folios); 576 for (int i = 0; i < nr; i++) { 577 struct folio *folio = page_folio(encoded_page_ptr(pages[i])); 578 579 free_swap_cache(folio); 580 refs[folios.nr] = 1; 581 if (unlikely(encoded_page_flags(pages[i]) & 582 ENCODED_PAGE_BIT_NR_PAGES_NEXT)) 583 refs[folios.nr] = encoded_nr_pages(pages[++i]); 584 585 if (folio_batch_add(&folios, folio) == 0) 586 folios_put_refs(&folios, refs); 587 } 588 if (folios.nr) 589 folios_put_refs(&folios, refs); 590 } 591 592 static inline bool swap_use_vma_readahead(void) 593 { 594 return READ_ONCE(enable_vma_readahead) && !atomic_read(&nr_rotate_swap); 595 } 596 597 /** 598 * swap_update_readahead - Update the readahead statistics of VMA or globally. 599 * @folio: the swap cache folio that just got hit. 600 * @vma: the VMA that should be updated, could be NULL for global update. 601 * @addr: the addr that triggered the swapin, ignored if @vma is NULL. 602 */ 603 void swap_update_readahead(struct folio *folio, struct vm_area_struct *vma, 604 unsigned long addr) 605 { 606 bool readahead, vma_ra = swap_use_vma_readahead(); 607 608 /* 609 * At the moment, we don't support PG_readahead for anon THP 610 * so let's bail out rather than confusing the readahead stat. 611 */ 612 if (unlikely(folio_test_large(folio))) 613 return; 614 615 readahead = folio_test_clear_readahead(folio); 616 if (vma && vma_ra) { 617 unsigned long ra_val; 618 int win, hits; 619 620 ra_val = GET_SWAP_RA_VAL(vma); 621 win = SWAP_RA_WIN(ra_val); 622 hits = SWAP_RA_HITS(ra_val); 623 if (readahead) 624 hits = min_t(int, hits + 1, SWAP_RA_HITS_MAX); 625 atomic_long_set(&vma->swap_readahead_info, 626 SWAP_RA_VAL(addr, win, hits)); 627 } 628 629 if (readahead) { 630 count_vm_event(SWAP_RA_HIT); 631 if (!vma || !vma_ra) 632 atomic_inc(&swapin_readahead_hits); 633 } 634 } 635 636 static struct folio *swap_cache_read_folio(swp_entry_t entry, gfp_t gfp, 637 struct mempolicy *mpol, pgoff_t ilx, 638 struct swap_iocb **plug, bool readahead) 639 { 640 struct folio *folio; 641 642 do { 643 folio = swap_cache_get_folio(entry); 644 if (folio) 645 return folio; 646 folio = swap_cache_alloc_folio(entry, gfp, BIT(0), NULL, mpol, ilx); 647 } while (PTR_ERR(folio) == -EEXIST); 648 649 if (IS_ERR_OR_NULL(folio)) 650 return NULL; 651 652 swap_read_folio(folio, plug); 653 if (readahead) { 654 folio_set_readahead(folio); 655 count_vm_event(SWAP_RA); 656 } 657 658 return folio; 659 } 660 661 /** 662 * swapin_sync - swap-in one or multiple entries skipping readahead. 663 * @entry: swap entry indicating the target slot 664 * @gfp: memory allocation flags 665 * @orders: allocation orders 666 * @vmf: fault information 667 * @mpol: NUMA memory allocation policy to be applied 668 * @ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE 669 * 670 * This allocates a folio suitable for given @orders, or returns the 671 * existing folio in the swap cache for @entry. This initiates the IO, too, 672 * if needed. @entry is rounded down if @orders allow large allocation. 673 * 674 * Context: Caller must ensure @entry is valid and pin the swap device with refcount. 675 * Return: Returns the folio on success, error code if failed. 676 */ 677 struct folio *swapin_sync(swp_entry_t entry, gfp_t gfp, unsigned long orders, 678 struct vm_fault *vmf, struct mempolicy *mpol, pgoff_t ilx) 679 { 680 struct folio *folio; 681 682 do { 683 folio = swap_cache_get_folio(entry); 684 if (folio) 685 return folio; 686 folio = swap_cache_alloc_folio(entry, gfp, orders, vmf, mpol, ilx); 687 } while (PTR_ERR(folio) == -EEXIST); 688 689 if (IS_ERR(folio)) 690 return folio; 691 692 swap_read_folio(folio, NULL); 693 return folio; 694 } 695 696 /* 697 * Locate a page of swap in physical memory, reserving swap cache space 698 * and reading the disk if it is not already cached. 699 * A failure return means that either the page allocation failed or that 700 * the swap entry is no longer in use. 701 */ 702 struct folio *read_swap_cache_async(swp_entry_t entry, gfp_t gfp_mask, 703 struct vm_area_struct *vma, unsigned long addr, 704 struct swap_iocb **plug) 705 { 706 struct swap_info_struct *si; 707 struct mempolicy *mpol; 708 pgoff_t ilx; 709 struct folio *folio; 710 711 si = get_swap_device(entry); 712 if (!si) 713 return NULL; 714 715 mpol = get_vma_policy(vma, addr, 0, &ilx); 716 folio = swap_cache_read_folio(entry, gfp_mask, mpol, ilx, plug, false); 717 mpol_cond_put(mpol); 718 719 put_swap_device(si); 720 return folio; 721 } 722 723 static unsigned int __swapin_nr_pages(unsigned long prev_offset, 724 unsigned long offset, 725 int hits, 726 int max_pages, 727 int prev_win) 728 { 729 unsigned int pages, last_ra; 730 731 /* 732 * This heuristic has been found to work well on both sequential and 733 * random loads, swapping to hard disk or to SSD: please don't ask 734 * what the "+ 2" means, it just happens to work well, that's all. 735 */ 736 pages = hits + 2; 737 if (pages == 2) { 738 /* 739 * We can have no readahead hits to judge by: but must not get 740 * stuck here forever, so check for an adjacent offset instead 741 * (and don't even bother to check whether swap type is same). 742 */ 743 if (offset != prev_offset + 1 && offset != prev_offset - 1) 744 pages = 1; 745 } else { 746 unsigned int roundup = 4; 747 while (roundup < pages) 748 roundup <<= 1; 749 pages = roundup; 750 } 751 752 if (pages > max_pages) 753 pages = max_pages; 754 755 /* Don't shrink readahead too fast */ 756 last_ra = prev_win / 2; 757 if (pages < last_ra) 758 pages = last_ra; 759 760 return pages; 761 } 762 763 static unsigned long swapin_nr_pages(unsigned long offset) 764 { 765 static unsigned long prev_offset; 766 unsigned int hits, pages, max_pages; 767 static atomic_t last_readahead_pages; 768 769 max_pages = 1 << READ_ONCE(page_cluster); 770 if (max_pages <= 1) 771 return 1; 772 773 hits = atomic_xchg(&swapin_readahead_hits, 0); 774 pages = __swapin_nr_pages(READ_ONCE(prev_offset), offset, hits, 775 max_pages, 776 atomic_read(&last_readahead_pages)); 777 if (!hits) 778 WRITE_ONCE(prev_offset, offset); 779 atomic_set(&last_readahead_pages, pages); 780 781 return pages; 782 } 783 784 /** 785 * swap_cluster_readahead - swap in pages in hope we need them soon 786 * @entry: swap entry of this memory 787 * @gfp_mask: memory allocation flags 788 * @mpol: NUMA memory allocation policy to be applied 789 * @ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE 790 * 791 * Returns the struct folio for entry and addr, after queueing swapin. 792 * 793 * Primitive swap readahead code. We simply read an aligned block of 794 * (1 << page_cluster) entries in the swap area. This method is chosen 795 * because it doesn't cost us any seek time. We also make sure to queue 796 * the 'original' request together with the readahead ones... 797 * 798 * Note: it is intentional that the same NUMA policy and interleave index 799 * are used for every page of the readahead: neighbouring pages on swap 800 * are fairly likely to have been swapped out from the same node. 801 */ 802 struct folio *swap_cluster_readahead(swp_entry_t entry, gfp_t gfp_mask, 803 struct mempolicy *mpol, pgoff_t ilx) 804 { 805 struct folio *folio; 806 unsigned long entry_offset = swp_offset(entry); 807 unsigned long offset = entry_offset; 808 unsigned long start_offset, end_offset; 809 unsigned long mask; 810 struct swap_info_struct *si = __swap_entry_to_info(entry); 811 struct blk_plug plug; 812 struct swap_iocb *splug = NULL; 813 swp_entry_t ra_entry; 814 815 mask = swapin_nr_pages(offset) - 1; 816 if (!mask) 817 goto skip; 818 819 /* Read a page_cluster sized and aligned cluster around offset. */ 820 start_offset = offset & ~mask; 821 end_offset = offset | mask; 822 if (!start_offset) /* First page is swap header. */ 823 start_offset++; 824 if (end_offset >= si->max) 825 end_offset = si->max - 1; 826 827 blk_start_plug(&plug); 828 for (offset = start_offset; offset <= end_offset ; offset++) { 829 /* Ok, do the async read-ahead now */ 830 ra_entry = swp_entry(swp_type(entry), offset); 831 folio = swap_cache_read_folio(ra_entry, gfp_mask, mpol, ilx, 832 &splug, offset != entry_offset); 833 if (!folio) 834 continue; 835 folio_put(folio); 836 } 837 blk_finish_plug(&plug); 838 swap_read_unplug(splug); 839 lru_add_drain(); /* Push any new pages onto the LRU now */ 840 skip: 841 /* The page was likely read above, so no need for plugging here */ 842 return swap_cache_read_folio(entry, gfp_mask, mpol, ilx, NULL, false); 843 } 844 845 static int swap_vma_ra_win(struct vm_fault *vmf, unsigned long *start, 846 unsigned long *end) 847 { 848 struct vm_area_struct *vma = vmf->vma; 849 unsigned long ra_val; 850 unsigned long faddr, prev_faddr, left, right; 851 unsigned int max_win, hits, prev_win, win; 852 853 max_win = 1 << min(READ_ONCE(page_cluster), SWAP_RA_ORDER_CEILING); 854 if (max_win == 1) 855 return 1; 856 857 faddr = vmf->address; 858 ra_val = GET_SWAP_RA_VAL(vma); 859 prev_faddr = SWAP_RA_ADDR(ra_val); 860 prev_win = SWAP_RA_WIN(ra_val); 861 hits = SWAP_RA_HITS(ra_val); 862 win = __swapin_nr_pages(PFN_DOWN(prev_faddr), PFN_DOWN(faddr), hits, 863 max_win, prev_win); 864 atomic_long_set(&vma->swap_readahead_info, SWAP_RA_VAL(faddr, win, 0)); 865 if (win == 1) 866 return 1; 867 868 if (faddr == prev_faddr + PAGE_SIZE) 869 left = faddr; 870 else if (prev_faddr == faddr + PAGE_SIZE) 871 left = faddr - (win << PAGE_SHIFT) + PAGE_SIZE; 872 else 873 left = faddr - (((win - 1) / 2) << PAGE_SHIFT); 874 right = left + (win << PAGE_SHIFT); 875 if ((long)left < 0) 876 left = 0; 877 *start = max3(left, vma->vm_start, faddr & PMD_MASK); 878 *end = min3(right, vma->vm_end, (faddr & PMD_MASK) + PMD_SIZE); 879 880 return win; 881 } 882 883 /** 884 * swap_vma_readahead - swap in pages in hope we need them soon 885 * @targ_entry: swap entry of the targeted memory 886 * @gfp_mask: memory allocation flags 887 * @mpol: NUMA memory allocation policy to be applied 888 * @targ_ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE 889 * @vmf: fault information 890 * 891 * Returns the struct folio for entry and addr, after queueing swapin. 892 * 893 * Primitive swap readahead code. We simply read in a few pages whose 894 * virtual addresses are around the fault address in the same vma. 895 * 896 * Caller must hold read mmap_lock if vmf->vma is not NULL. 897 * 898 */ 899 static struct folio *swap_vma_readahead(swp_entry_t targ_entry, gfp_t gfp_mask, 900 struct mempolicy *mpol, pgoff_t targ_ilx, struct vm_fault *vmf) 901 { 902 struct blk_plug plug; 903 struct swap_iocb *splug = NULL; 904 struct folio *folio; 905 pte_t *pte = NULL, pentry; 906 int win; 907 unsigned long start, end, addr; 908 pgoff_t ilx = targ_ilx; 909 910 win = swap_vma_ra_win(vmf, &start, &end); 911 if (win == 1) 912 goto skip; 913 914 ilx = targ_ilx - PFN_DOWN(vmf->address - start); 915 916 blk_start_plug(&plug); 917 for (addr = start; addr < end; ilx++, addr += PAGE_SIZE) { 918 struct swap_info_struct *si = NULL; 919 softleaf_t entry; 920 921 if (!pte++) { 922 pte = pte_offset_map(vmf->pmd, addr); 923 if (!pte) 924 break; 925 } 926 pentry = ptep_get_lockless(pte); 927 entry = softleaf_from_pte(pentry); 928 929 if (!softleaf_is_swap(entry)) 930 continue; 931 pte_unmap(pte); 932 pte = NULL; 933 /* 934 * Readahead entry may come from a device that we are not 935 * holding a reference to, try to grab a reference, or skip. 936 */ 937 if (swp_type(entry) != swp_type(targ_entry)) { 938 si = get_swap_device(entry); 939 if (!si) 940 continue; 941 } 942 folio = swap_cache_read_folio(entry, gfp_mask, mpol, ilx, 943 &splug, addr != vmf->address); 944 if (si) 945 put_swap_device(si); 946 if (!folio) 947 continue; 948 folio_put(folio); 949 } 950 if (pte) 951 pte_unmap(pte); 952 blk_finish_plug(&plug); 953 swap_read_unplug(splug); 954 lru_add_drain(); 955 skip: 956 /* The folio was likely read above, so no need for plugging here */ 957 folio = swap_cache_read_folio(targ_entry, gfp_mask, mpol, targ_ilx, 958 NULL, false); 959 return folio; 960 } 961 962 /** 963 * swapin_readahead - swap in pages in hope we need them soon 964 * @entry: swap entry of this memory 965 * @gfp_mask: memory allocation flags 966 * @vmf: fault information 967 * 968 * Returns the struct folio for entry and addr, after queueing swapin. 969 * 970 * It's a main entry function for swap readahead. By the configuration, 971 * it will read ahead blocks by cluster-based(ie, physical disk based) 972 * or vma-based(ie, virtual address based on faulty address) readahead. 973 */ 974 struct folio *swapin_readahead(swp_entry_t entry, gfp_t gfp_mask, 975 struct vm_fault *vmf) 976 { 977 struct mempolicy *mpol; 978 pgoff_t ilx; 979 struct folio *folio; 980 981 mpol = get_vma_policy(vmf->vma, vmf->address, 0, &ilx); 982 folio = swap_use_vma_readahead() ? 983 swap_vma_readahead(entry, gfp_mask, mpol, ilx, vmf) : 984 swap_cluster_readahead(entry, gfp_mask, mpol, ilx); 985 mpol_cond_put(mpol); 986 987 return folio; 988 } 989 990 #ifdef CONFIG_SYSFS 991 static ssize_t vma_ra_enabled_show(struct kobject *kobj, 992 struct kobj_attribute *attr, char *buf) 993 { 994 return sysfs_emit(buf, "%s\n", str_true_false(enable_vma_readahead)); 995 } 996 static ssize_t vma_ra_enabled_store(struct kobject *kobj, 997 struct kobj_attribute *attr, 998 const char *buf, size_t count) 999 { 1000 ssize_t ret; 1001 1002 ret = kstrtobool(buf, &enable_vma_readahead); 1003 if (ret) 1004 return ret; 1005 1006 return count; 1007 } 1008 static struct kobj_attribute vma_ra_enabled_attr = __ATTR_RW(vma_ra_enabled); 1009 1010 static struct attribute *swap_attrs[] = { 1011 &vma_ra_enabled_attr.attr, 1012 NULL, 1013 }; 1014 1015 static const struct attribute_group swap_attr_group = { 1016 .attrs = swap_attrs, 1017 }; 1018 1019 static int __init swap_init(void) 1020 { 1021 int err; 1022 struct kobject *swap_kobj; 1023 1024 swap_kobj = kobject_create_and_add("swap", mm_kobj); 1025 if (!swap_kobj) { 1026 pr_err("failed to create swap kobject\n"); 1027 return -ENOMEM; 1028 } 1029 err = sysfs_create_group(swap_kobj, &swap_attr_group); 1030 if (err) { 1031 pr_err("failed to register swap group\n"); 1032 goto delete_obj; 1033 } 1034 /* Swap cache writeback is LRU based, no tags for it */ 1035 mapping_set_no_writeback_tags(&swap_space); 1036 return 0; 1037 1038 delete_obj: 1039 kobject_put(swap_kobj); 1040 return err; 1041 } 1042 subsys_initcall(swap_init); 1043 #endif 1044