1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Memory merging support. 4 * 5 * This code enables dynamic sharing of identical pages found in different 6 * memory areas, even if they are not shared by fork() 7 * 8 * Copyright (C) 2008-2009 Red Hat, Inc. 9 * Authors: 10 * Izik Eidus 11 * Andrea Arcangeli 12 * Chris Wright 13 * Hugh Dickins 14 */ 15 16 #include <linux/errno.h> 17 #include <linux/mm.h> 18 #include <linux/mm_inline.h> 19 #include <linux/fs.h> 20 #include <linux/mman.h> 21 #include <linux/sched.h> 22 #include <linux/sched/mm.h> 23 #include <linux/sched/cputime.h> 24 #include <linux/rwsem.h> 25 #include <linux/pagemap.h> 26 #include <linux/rmap.h> 27 #include <linux/spinlock.h> 28 #include <linux/xxhash.h> 29 #include <linux/delay.h> 30 #include <linux/kthread.h> 31 #include <linux/wait.h> 32 #include <linux/slab.h> 33 #include <linux/rbtree.h> 34 #include <linux/memory.h> 35 #include <linux/mmu_notifier.h> 36 #include <linux/swap.h> 37 #include <linux/ksm.h> 38 #include <linux/hashtable.h> 39 #include <linux/freezer.h> 40 #include <linux/oom.h> 41 #include <linux/numa.h> 42 #include <linux/pagewalk.h> 43 44 #include <asm/tlbflush.h> 45 #include "internal.h" 46 #include "mm_slot.h" 47 48 #define CREATE_TRACE_POINTS 49 #include <trace/events/ksm.h> 50 51 #ifdef CONFIG_NUMA 52 #define NUMA(x) (x) 53 #define DO_NUMA(x) do { (x); } while (0) 54 #else 55 #define NUMA(x) (0) 56 #define DO_NUMA(x) do { } while (0) 57 #endif 58 59 typedef u8 rmap_age_t; 60 61 /** 62 * DOC: Overview 63 * 64 * A few notes about the KSM scanning process, 65 * to make it easier to understand the data structures below: 66 * 67 * In order to reduce excessive scanning, KSM sorts the memory pages by their 68 * contents into a data structure that holds pointers to the pages' locations. 69 * 70 * Since the contents of the pages may change at any moment, KSM cannot just 71 * insert the pages into a normal sorted tree and expect it to find anything. 72 * Therefore KSM uses two data structures - the stable and the unstable tree. 73 * 74 * The stable tree holds pointers to all the merged pages (ksm pages), sorted 75 * by their contents. Because each such page is write-protected, searching on 76 * this tree is fully assured to be working (except when pages are unmapped), 77 * and therefore this tree is called the stable tree. 78 * 79 * The stable tree node includes information required for reverse 80 * mapping from a KSM page to virtual addresses that map this page. 81 * 82 * In order to avoid large latencies of the rmap walks on KSM pages, 83 * KSM maintains two types of nodes in the stable tree: 84 * 85 * * the regular nodes that keep the reverse mapping structures in a 86 * linked list 87 * * the "chains" that link nodes ("dups") that represent the same 88 * write protected memory content, but each "dup" corresponds to a 89 * different KSM page copy of that content 90 * 91 * Internally, the regular nodes, "dups" and "chains" are represented 92 * using the same struct ksm_stable_node structure. 93 * 94 * In addition to the stable tree, KSM uses a second data structure called the 95 * unstable tree: this tree holds pointers to pages which have been found to 96 * be "unchanged for a period of time". The unstable tree sorts these pages 97 * by their contents, but since they are not write-protected, KSM cannot rely 98 * upon the unstable tree to work correctly - the unstable tree is liable to 99 * be corrupted as its contents are modified, and so it is called unstable. 100 * 101 * KSM solves this problem by several techniques: 102 * 103 * 1) The unstable tree is flushed every time KSM completes scanning all 104 * memory areas, and then the tree is rebuilt again from the beginning. 105 * 2) KSM will only insert into the unstable tree, pages whose hash value 106 * has not changed since the previous scan of all memory areas. 107 * 3) The unstable tree is a RedBlack Tree - so its balancing is based on the 108 * colors of the nodes and not on their contents, assuring that even when 109 * the tree gets "corrupted" it won't get out of balance, so scanning time 110 * remains the same (also, searching and inserting nodes in an rbtree uses 111 * the same algorithm, so we have no overhead when we flush and rebuild). 112 * 4) KSM never flushes the stable tree, which means that even if it were to 113 * take 10 attempts to find a page in the unstable tree, once it is found, 114 * it is secured in the stable tree. (When we scan a new page, we first 115 * compare it against the stable tree, and then against the unstable tree.) 116 * 117 * If the merge_across_nodes tunable is unset, then KSM maintains multiple 118 * stable trees and multiple unstable trees: one of each for each NUMA node. 119 */ 120 121 /** 122 * struct ksm_mm_slot - ksm information per mm that is being scanned 123 * @slot: hash lookup from mm to mm_slot 124 * @rmap_list: head for this mm_slot's singly-linked list of rmap_items 125 */ 126 struct ksm_mm_slot { 127 struct mm_slot slot; 128 struct ksm_rmap_item *rmap_list; 129 }; 130 131 /** 132 * struct ksm_scan - cursor for scanning 133 * @mm_slot: the current mm_slot we are scanning 134 * @address: the next address inside that to be scanned 135 * @rmap_list: link to the next rmap to be scanned in the rmap_list 136 * @seqnr: count of completed full scans (needed when removing unstable node) 137 * 138 * There is only the one ksm_scan instance of this cursor structure. 139 */ 140 struct ksm_scan { 141 struct ksm_mm_slot *mm_slot; 142 unsigned long address; 143 struct ksm_rmap_item **rmap_list; 144 unsigned long seqnr; 145 }; 146 147 /** 148 * struct ksm_stable_node - node of the stable rbtree 149 * @node: rb node of this ksm page in the stable tree 150 * @head: (overlaying parent) &migrate_nodes indicates temporarily on that list 151 * @hlist_dup: linked into the stable_node->hlist with a stable_node chain 152 * @list: linked into migrate_nodes, pending placement in the proper node tree 153 * @hlist: hlist head of rmap_items using this ksm page 154 * @kpfn: page frame number of this ksm page (perhaps temporarily on wrong nid) 155 * @chain_prune_time: time of the last full garbage collection 156 * @rmap_hlist_len: number of rmap_item entries in hlist or STABLE_NODE_CHAIN 157 * @nid: NUMA node id of stable tree in which linked (may not match kpfn) 158 */ 159 struct ksm_stable_node { 160 union { 161 struct rb_node node; /* when node of stable tree */ 162 struct { /* when listed for migration */ 163 struct list_head *head; 164 struct { 165 struct hlist_node hlist_dup; 166 struct list_head list; 167 }; 168 }; 169 }; 170 struct hlist_head hlist; 171 union { 172 unsigned long kpfn; 173 unsigned long chain_prune_time; 174 }; 175 /* 176 * STABLE_NODE_CHAIN can be any negative number in 177 * rmap_hlist_len negative range, but better not -1 to be able 178 * to reliably detect underflows. 179 */ 180 #define STABLE_NODE_CHAIN -1024 181 int rmap_hlist_len; 182 #ifdef CONFIG_NUMA 183 int nid; 184 #endif 185 }; 186 187 /** 188 * struct ksm_rmap_item - reverse mapping item for virtual addresses 189 * @rmap_list: next rmap_item in mm_slot's singly-linked rmap_list 190 * @anon_vma: pointer to anon_vma for this mm,address, when in stable tree 191 * @nid: NUMA node id of unstable tree in which linked (may not match page) 192 * @mm: the memory structure this rmap_item is pointing into 193 * @address: the virtual address this rmap_item tracks (+ flags in low bits) 194 * @oldchecksum: previous checksum of the page at that virtual address 195 * @node: rb node of this rmap_item in the unstable tree 196 * @head: pointer to stable_node heading this list in the stable tree 197 * @hlist: link into hlist of rmap_items hanging off that stable_node 198 * @age: number of scan iterations since creation 199 * @remaining_skips: how many scans to skip 200 */ 201 struct ksm_rmap_item { 202 struct ksm_rmap_item *rmap_list; 203 union { 204 struct anon_vma *anon_vma; /* when stable */ 205 #ifdef CONFIG_NUMA 206 int nid; /* when node of unstable tree */ 207 #endif 208 }; 209 struct mm_struct *mm; 210 unsigned long address; /* + low bits used for flags below */ 211 unsigned int oldchecksum; /* when unstable */ 212 rmap_age_t age; 213 rmap_age_t remaining_skips; 214 union { 215 struct rb_node node; /* when node of unstable tree */ 216 struct { /* when listed from stable tree */ 217 struct ksm_stable_node *head; 218 struct hlist_node hlist; 219 }; 220 }; 221 }; 222 223 #define SEQNR_MASK 0x0ff /* low bits of unstable tree seqnr */ 224 #define UNSTABLE_FLAG 0x100 /* is a node of the unstable tree */ 225 #define STABLE_FLAG 0x200 /* is listed from the stable tree */ 226 227 /* The stable and unstable tree heads */ 228 static struct rb_root one_stable_tree[1] = { RB_ROOT }; 229 static struct rb_root one_unstable_tree[1] = { RB_ROOT }; 230 static struct rb_root *root_stable_tree = one_stable_tree; 231 static struct rb_root *root_unstable_tree = one_unstable_tree; 232 233 /* Recently migrated nodes of stable tree, pending proper placement */ 234 static LIST_HEAD(migrate_nodes); 235 #define STABLE_NODE_DUP_HEAD ((struct list_head *)&migrate_nodes.prev) 236 237 #define MM_SLOTS_HASH_BITS 10 238 static DEFINE_HASHTABLE(mm_slots_hash, MM_SLOTS_HASH_BITS); 239 240 static struct ksm_mm_slot ksm_mm_head = { 241 .slot.mm_node = LIST_HEAD_INIT(ksm_mm_head.slot.mm_node), 242 }; 243 static struct ksm_scan ksm_scan = { 244 .mm_slot = &ksm_mm_head, 245 }; 246 247 static struct kmem_cache *rmap_item_cache; 248 static struct kmem_cache *stable_node_cache; 249 static struct kmem_cache *mm_slot_cache; 250 251 /* Default number of pages to scan per batch */ 252 #define DEFAULT_PAGES_TO_SCAN 100 253 254 /* The number of pages scanned */ 255 static unsigned long ksm_pages_scanned; 256 257 /* The number of nodes in the stable tree */ 258 static unsigned long ksm_pages_shared; 259 260 /* The number of page slots additionally sharing those nodes */ 261 static unsigned long ksm_pages_sharing; 262 263 /* The number of nodes in the unstable tree */ 264 static unsigned long ksm_pages_unshared; 265 266 /* The number of rmap_items in use: to calculate pages_volatile */ 267 static unsigned long ksm_rmap_items; 268 269 /* The number of stable_node chains */ 270 static unsigned long ksm_stable_node_chains; 271 272 /* The number of stable_node dups linked to the stable_node chains */ 273 static unsigned long ksm_stable_node_dups; 274 275 /* Delay in pruning stale stable_node_dups in the stable_node_chains */ 276 static unsigned int ksm_stable_node_chains_prune_millisecs = 2000; 277 278 /* Maximum number of page slots sharing a stable node */ 279 static int ksm_max_page_sharing = 256; 280 281 /* Number of pages ksmd should scan in one batch */ 282 static unsigned int ksm_thread_pages_to_scan = DEFAULT_PAGES_TO_SCAN; 283 284 /* Milliseconds ksmd should sleep between batches */ 285 static unsigned int ksm_thread_sleep_millisecs = 20; 286 287 /* Checksum of an empty (zeroed) page */ 288 static unsigned int zero_checksum __read_mostly; 289 290 /* Whether to merge empty (zeroed) pages with actual zero pages */ 291 static bool ksm_use_zero_pages __read_mostly; 292 293 /* Skip pages that couldn't be de-duplicated previously */ 294 /* Default to true at least temporarily, for testing */ 295 static bool ksm_smart_scan = true; 296 297 /* The number of zero pages which is placed by KSM */ 298 atomic_long_t ksm_zero_pages = ATOMIC_LONG_INIT(0); 299 300 /* The number of pages that have been skipped due to "smart scanning" */ 301 static unsigned long ksm_pages_skipped; 302 303 /* Don't scan more than max pages per batch. */ 304 static unsigned long ksm_advisor_max_pages_to_scan = 30000; 305 306 /* Min CPU for scanning pages per scan */ 307 #define KSM_ADVISOR_MIN_CPU 10 308 309 /* Max CPU for scanning pages per scan */ 310 static unsigned int ksm_advisor_max_cpu = 70; 311 312 /* Target scan time in seconds to analyze all KSM candidate pages. */ 313 static unsigned long ksm_advisor_target_scan_time = 200; 314 315 /* Exponentially weighted moving average. */ 316 #define EWMA_WEIGHT 30 317 318 /** 319 * struct advisor_ctx - metadata for KSM advisor 320 * @start_scan: start time of the current scan 321 * @scan_time: scan time of previous scan 322 * @change: change in percent to pages_to_scan parameter 323 * @cpu_time: cpu time consumed by the ksmd thread in the previous scan 324 */ 325 struct advisor_ctx { 326 ktime_t start_scan; 327 unsigned long scan_time; 328 unsigned long change; 329 unsigned long long cpu_time; 330 }; 331 static struct advisor_ctx advisor_ctx; 332 333 /* Define different advisor's */ 334 enum ksm_advisor_type { 335 KSM_ADVISOR_NONE, 336 KSM_ADVISOR_SCAN_TIME, 337 }; 338 static enum ksm_advisor_type ksm_advisor; 339 340 #ifdef CONFIG_SYSFS 341 /* 342 * Only called through the sysfs control interface: 343 */ 344 345 /* At least scan this many pages per batch. */ 346 static unsigned long ksm_advisor_min_pages_to_scan = 500; 347 348 static void set_advisor_defaults(void) 349 { 350 if (ksm_advisor == KSM_ADVISOR_NONE) { 351 ksm_thread_pages_to_scan = DEFAULT_PAGES_TO_SCAN; 352 } else if (ksm_advisor == KSM_ADVISOR_SCAN_TIME) { 353 advisor_ctx = (const struct advisor_ctx){ 0 }; 354 ksm_thread_pages_to_scan = ksm_advisor_min_pages_to_scan; 355 } 356 } 357 #endif /* CONFIG_SYSFS */ 358 359 static inline void advisor_start_scan(void) 360 { 361 if (ksm_advisor == KSM_ADVISOR_SCAN_TIME) 362 advisor_ctx.start_scan = ktime_get(); 363 } 364 365 /* 366 * Use previous scan time if available, otherwise use current scan time as an 367 * approximation for the previous scan time. 368 */ 369 static inline unsigned long prev_scan_time(struct advisor_ctx *ctx, 370 unsigned long scan_time) 371 { 372 return ctx->scan_time ? ctx->scan_time : scan_time; 373 } 374 375 /* Calculate exponential weighted moving average */ 376 static unsigned long ewma(unsigned long prev, unsigned long curr) 377 { 378 return ((100 - EWMA_WEIGHT) * prev + EWMA_WEIGHT * curr) / 100; 379 } 380 381 /* 382 * The scan time advisor is based on the current scan rate and the target 383 * scan rate. 384 * 385 * new_pages_to_scan = pages_to_scan * (scan_time / target_scan_time) 386 * 387 * To avoid perturbations it calculates a change factor of previous changes. 388 * A new change factor is calculated for each iteration and it uses an 389 * exponentially weighted moving average. The new pages_to_scan value is 390 * multiplied with that change factor: 391 * 392 * new_pages_to_scan *= change factor 393 * 394 * The new_pages_to_scan value is limited by the cpu min and max values. It 395 * calculates the cpu percent for the last scan and calculates the new 396 * estimated cpu percent cost for the next scan. That value is capped by the 397 * cpu min and max setting. 398 * 399 * In addition the new pages_to_scan value is capped by the max and min 400 * limits. 401 */ 402 static void scan_time_advisor(void) 403 { 404 unsigned int cpu_percent; 405 unsigned long cpu_time; 406 unsigned long cpu_time_diff; 407 unsigned long cpu_time_diff_ms; 408 unsigned long pages; 409 unsigned long per_page_cost; 410 unsigned long factor; 411 unsigned long change; 412 unsigned long last_scan_time; 413 unsigned long scan_time; 414 415 /* Convert scan time to seconds */ 416 scan_time = div_s64(ktime_ms_delta(ktime_get(), advisor_ctx.start_scan), 417 MSEC_PER_SEC); 418 scan_time = scan_time ? scan_time : 1; 419 420 /* Calculate CPU consumption of ksmd background thread */ 421 cpu_time = task_sched_runtime(current); 422 cpu_time_diff = cpu_time - advisor_ctx.cpu_time; 423 cpu_time_diff_ms = cpu_time_diff / 1000 / 1000; 424 425 cpu_percent = (cpu_time_diff_ms * 100) / (scan_time * 1000); 426 cpu_percent = cpu_percent ? cpu_percent : 1; 427 last_scan_time = prev_scan_time(&advisor_ctx, scan_time); 428 429 /* Calculate scan time as percentage of target scan time */ 430 factor = ksm_advisor_target_scan_time * 100 / scan_time; 431 factor = factor ? factor : 1; 432 433 /* 434 * Calculate scan time as percentage of last scan time and use 435 * exponentially weighted average to smooth it 436 */ 437 change = scan_time * 100 / last_scan_time; 438 change = change ? change : 1; 439 change = ewma(advisor_ctx.change, change); 440 441 /* Calculate new scan rate based on target scan rate. */ 442 pages = ksm_thread_pages_to_scan * 100 / factor; 443 /* Update pages_to_scan by weighted change percentage. */ 444 pages = pages * change / 100; 445 446 /* Cap new pages_to_scan value */ 447 per_page_cost = ksm_thread_pages_to_scan / cpu_percent; 448 per_page_cost = per_page_cost ? per_page_cost : 1; 449 450 pages = min(pages, per_page_cost * ksm_advisor_max_cpu); 451 pages = max(pages, per_page_cost * KSM_ADVISOR_MIN_CPU); 452 pages = min(pages, ksm_advisor_max_pages_to_scan); 453 454 /* Update advisor context */ 455 advisor_ctx.change = change; 456 advisor_ctx.scan_time = scan_time; 457 advisor_ctx.cpu_time = cpu_time; 458 459 ksm_thread_pages_to_scan = pages; 460 trace_ksm_advisor(scan_time, pages, cpu_percent); 461 } 462 463 static void advisor_stop_scan(void) 464 { 465 if (ksm_advisor == KSM_ADVISOR_SCAN_TIME) 466 scan_time_advisor(); 467 } 468 469 #ifdef CONFIG_NUMA 470 /* Zeroed when merging across nodes is not allowed */ 471 static unsigned int ksm_merge_across_nodes = 1; 472 static int ksm_nr_node_ids = 1; 473 #else 474 #define ksm_merge_across_nodes 1U 475 #define ksm_nr_node_ids 1 476 #endif 477 478 #define KSM_RUN_STOP 0 479 #define KSM_RUN_MERGE 1 480 #define KSM_RUN_UNMERGE 2 481 #define KSM_RUN_OFFLINE 4 482 static unsigned long ksm_run = KSM_RUN_STOP; 483 static void wait_while_offlining(void); 484 485 static DECLARE_WAIT_QUEUE_HEAD(ksm_thread_wait); 486 static DECLARE_WAIT_QUEUE_HEAD(ksm_iter_wait); 487 static DEFINE_MUTEX(ksm_thread_mutex); 488 static DEFINE_SPINLOCK(ksm_mmlist_lock); 489 490 static int __init ksm_slab_init(void) 491 { 492 rmap_item_cache = KMEM_CACHE(ksm_rmap_item, 0); 493 if (!rmap_item_cache) 494 goto out; 495 496 stable_node_cache = KMEM_CACHE(ksm_stable_node, 0); 497 if (!stable_node_cache) 498 goto out_free1; 499 500 mm_slot_cache = KMEM_CACHE(ksm_mm_slot, 0); 501 if (!mm_slot_cache) 502 goto out_free2; 503 504 return 0; 505 506 out_free2: 507 kmem_cache_destroy(stable_node_cache); 508 out_free1: 509 kmem_cache_destroy(rmap_item_cache); 510 out: 511 return -ENOMEM; 512 } 513 514 static void __init ksm_slab_free(void) 515 { 516 kmem_cache_destroy(mm_slot_cache); 517 kmem_cache_destroy(stable_node_cache); 518 kmem_cache_destroy(rmap_item_cache); 519 mm_slot_cache = NULL; 520 } 521 522 static __always_inline bool is_stable_node_chain(struct ksm_stable_node *chain) 523 { 524 return chain->rmap_hlist_len == STABLE_NODE_CHAIN; 525 } 526 527 static __always_inline bool is_stable_node_dup(struct ksm_stable_node *dup) 528 { 529 return dup->head == STABLE_NODE_DUP_HEAD; 530 } 531 532 static inline void stable_node_chain_add_dup(struct ksm_stable_node *dup, 533 struct ksm_stable_node *chain) 534 { 535 VM_BUG_ON(is_stable_node_dup(dup)); 536 dup->head = STABLE_NODE_DUP_HEAD; 537 VM_BUG_ON(!is_stable_node_chain(chain)); 538 hlist_add_head(&dup->hlist_dup, &chain->hlist); 539 ksm_stable_node_dups++; 540 } 541 542 static inline void __stable_node_dup_del(struct ksm_stable_node *dup) 543 { 544 VM_BUG_ON(!is_stable_node_dup(dup)); 545 hlist_del(&dup->hlist_dup); 546 ksm_stable_node_dups--; 547 } 548 549 static inline void stable_node_dup_del(struct ksm_stable_node *dup) 550 { 551 VM_BUG_ON(is_stable_node_chain(dup)); 552 if (is_stable_node_dup(dup)) 553 __stable_node_dup_del(dup); 554 else 555 rb_erase(&dup->node, root_stable_tree + NUMA(dup->nid)); 556 #ifdef CONFIG_DEBUG_VM 557 dup->head = NULL; 558 #endif 559 } 560 561 static inline struct ksm_rmap_item *alloc_rmap_item(void) 562 { 563 struct ksm_rmap_item *rmap_item; 564 565 rmap_item = kmem_cache_zalloc(rmap_item_cache, GFP_KERNEL | 566 __GFP_NORETRY | __GFP_NOWARN); 567 if (rmap_item) 568 ksm_rmap_items++; 569 return rmap_item; 570 } 571 572 static inline void free_rmap_item(struct ksm_rmap_item *rmap_item) 573 { 574 ksm_rmap_items--; 575 rmap_item->mm->ksm_rmap_items--; 576 rmap_item->mm = NULL; /* debug safety */ 577 kmem_cache_free(rmap_item_cache, rmap_item); 578 } 579 580 static inline struct ksm_stable_node *alloc_stable_node(void) 581 { 582 /* 583 * The allocation can take too long with GFP_KERNEL when memory is under 584 * pressure, which may lead to hung task warnings. Adding __GFP_HIGH 585 * grants access to memory reserves, helping to avoid this problem. 586 */ 587 return kmem_cache_alloc(stable_node_cache, GFP_KERNEL | __GFP_HIGH); 588 } 589 590 static inline void free_stable_node(struct ksm_stable_node *stable_node) 591 { 592 VM_BUG_ON(stable_node->rmap_hlist_len && 593 !is_stable_node_chain(stable_node)); 594 kmem_cache_free(stable_node_cache, stable_node); 595 } 596 597 /* 598 * ksmd, and unmerge_and_remove_all_rmap_items(), must not touch an mm's 599 * page tables after it has passed through ksm_exit() - which, if necessary, 600 * takes mmap_lock briefly to serialize against them. ksm_exit() does not set 601 * a special flag: they can just back out as soon as mm_users goes to zero. 602 * ksm_test_exit() is used throughout to make this test for exit: in some 603 * places for correctness, in some places just to avoid unnecessary work. 604 */ 605 static inline bool ksm_test_exit(struct mm_struct *mm) 606 { 607 return atomic_read(&mm->mm_users) == 0; 608 } 609 610 static int break_ksm_pmd_entry(pmd_t *pmdp, unsigned long addr, unsigned long end, 611 struct mm_walk *walk) 612 { 613 unsigned long *found_addr = (unsigned long *) walk->private; 614 struct mm_struct *mm = walk->mm; 615 pte_t *start_ptep, *ptep; 616 spinlock_t *ptl; 617 int found = 0; 618 619 if (ksm_test_exit(walk->mm)) 620 return 0; 621 if (signal_pending(current)) 622 return -ERESTARTSYS; 623 624 start_ptep = pte_offset_map_lock(mm, pmdp, addr, &ptl); 625 if (!start_ptep) 626 return 0; 627 628 for (ptep = start_ptep; addr < end; ptep++, addr += PAGE_SIZE) { 629 pte_t pte = ptep_get(ptep); 630 struct folio *folio = NULL; 631 632 if (pte_present(pte)) { 633 folio = vm_normal_folio(walk->vma, addr, pte); 634 } else if (!pte_none(pte)) { 635 const softleaf_t entry = softleaf_from_pte(pte); 636 637 /* 638 * As KSM pages remain KSM pages until freed, no need to wait 639 * here for migration to end. 640 */ 641 if (softleaf_is_migration(entry)) 642 folio = softleaf_to_folio(entry); 643 } 644 /* return 1 if the page is an normal ksm page or KSM-placed zero page */ 645 found = (folio && folio_test_ksm(folio)) || 646 (pte_present(pte) && is_ksm_zero_pte(pte)); 647 if (found) { 648 *found_addr = addr; 649 goto out_unlock; 650 } 651 } 652 out_unlock: 653 pte_unmap_unlock(start_ptep, ptl); 654 return found; 655 } 656 657 static const struct mm_walk_ops break_ksm_ops = { 658 .pmd_entry = break_ksm_pmd_entry, 659 .walk_lock = PGWALK_RDLOCK, 660 }; 661 662 static const struct mm_walk_ops break_ksm_lock_vma_ops = { 663 .pmd_entry = break_ksm_pmd_entry, 664 .walk_lock = PGWALK_WRLOCK, 665 }; 666 667 /* 668 * Though it's very tempting to unmerge rmap_items from stable tree rather 669 * than check every pte of a given vma, the locking doesn't quite work for 670 * that - an rmap_item is assigned to the stable tree after inserting ksm 671 * page and upping mmap_lock. Nor does it fit with the way we skip dup'ing 672 * rmap_items from parent to child at fork time (so as not to waste time 673 * if exit comes before the next scan reaches it). 674 * 675 * Similarly, although we'd like to remove rmap_items (so updating counts 676 * and freeing memory) when unmerging an area, it's easier to leave that 677 * to the next pass of ksmd - consider, for example, how ksmd might be 678 * in cmp_and_merge_page on one of the rmap_items we would be removing. 679 * 680 * We use break_ksm to break COW on a ksm page by triggering unsharing, 681 * such that the ksm page will get replaced by an exclusive anonymous page. 682 * 683 * We take great care only to touch a ksm page, in a VM_MERGEABLE vma, 684 * in case the application has unmapped and remapped mm,addr meanwhile. 685 * Could a ksm page appear anywhere else? Actually yes, in a VM_PFNMAP 686 * mmap of /dev/mem, where we would not want to touch it. 687 * 688 * FAULT_FLAG_REMOTE/FOLL_REMOTE are because we do this outside the context 689 * of the process that owns 'vma'. We also do not want to enforce 690 * protection keys here anyway. 691 */ 692 static int break_ksm(struct vm_area_struct *vma, unsigned long addr, 693 unsigned long end, bool lock_vma) 694 { 695 vm_fault_t ret = 0; 696 const struct mm_walk_ops *ops = lock_vma ? 697 &break_ksm_lock_vma_ops : &break_ksm_ops; 698 699 do { 700 int ksm_page; 701 702 cond_resched(); 703 ksm_page = walk_page_range_vma(vma, addr, end, ops, &addr); 704 if (ksm_page <= 0) 705 return ksm_page; 706 ret = handle_mm_fault(vma, addr, 707 FAULT_FLAG_UNSHARE | FAULT_FLAG_REMOTE, 708 NULL); 709 } while (!(ret & (VM_FAULT_SIGBUS | VM_FAULT_SIGSEGV | VM_FAULT_OOM))); 710 /* 711 * We must loop until we no longer find a KSM page because 712 * handle_mm_fault() may back out if there's any difficulty e.g. if 713 * pte accessed bit gets updated concurrently. 714 * 715 * VM_FAULT_SIGBUS could occur if we race with truncation of the 716 * backing file, which also invalidates anonymous pages: that's 717 * okay, that truncation will have unmapped the KSM page for us. 718 * 719 * VM_FAULT_OOM: at the time of writing (late July 2009), setting 720 * aside mem_cgroup limits, VM_FAULT_OOM would only be set if the 721 * current task has TIF_MEMDIE set, and will be OOM killed on return 722 * to user; and ksmd, having no mm, would never be chosen for that. 723 * 724 * But if the mm is in a limited mem_cgroup, then the fault may fail 725 * with VM_FAULT_OOM even if the current task is not TIF_MEMDIE; and 726 * even ksmd can fail in this way - though it's usually breaking ksm 727 * just to undo a merge it made a moment before, so unlikely to oom. 728 * 729 * That's a pity: we might therefore have more kernel pages allocated 730 * than we're counting as nodes in the stable tree; but ksm_do_scan 731 * will retry to break_cow on each pass, so should recover the page 732 * in due course. The important thing is to not let VM_MERGEABLE 733 * be cleared while any such pages might remain in the area. 734 */ 735 return (ret & VM_FAULT_OOM) ? -ENOMEM : 0; 736 } 737 738 static bool ksm_compatible(const struct file *file, vma_flags_t vma_flags) 739 { 740 /* Just ignore the advice. */ 741 if (vma_flags_test_any(&vma_flags, VMA_SHARED_BIT, VMA_MAYSHARE_BIT, 742 VMA_HUGETLB_BIT)) 743 return false; 744 if (vma_flags_test_single_mask(&vma_flags, VMA_DROPPABLE)) 745 return false; 746 if (vma_flags_test_any_mask(&vma_flags, VMA_SPECIAL_FLAGS)) 747 return false; 748 if (file_is_dax(file)) 749 return false; 750 #ifdef VM_SAO 751 if (vma_flags_test(&vma_flags, VMA_SAO_BIT)) 752 return false; 753 #endif 754 #ifdef VM_SPARC_ADI 755 if (vma_flags_test(&vma_flags, VMA_SPARC_ADI_BIT)) 756 return false; 757 #endif 758 759 return true; 760 } 761 762 static bool vma_ksm_compatible(struct vm_area_struct *vma) 763 { 764 return ksm_compatible(vma->vm_file, vma->flags); 765 } 766 767 static struct vm_area_struct *find_mergeable_vma(struct mm_struct *mm, 768 unsigned long addr) 769 { 770 struct vm_area_struct *vma; 771 if (ksm_test_exit(mm)) 772 return NULL; 773 vma = vma_lookup(mm, addr); 774 if (!vma || !(vma->vm_flags & VM_MERGEABLE) || !vma->anon_vma) 775 return NULL; 776 return vma; 777 } 778 779 static void break_cow(struct ksm_rmap_item *rmap_item) 780 { 781 struct mm_struct *mm = rmap_item->mm; 782 unsigned long addr = rmap_item->address; 783 struct vm_area_struct *vma; 784 785 /* 786 * It is not an accident that whenever we want to break COW 787 * to undo, we also need to drop a reference to the anon_vma. 788 */ 789 put_anon_vma(rmap_item->anon_vma); 790 791 mmap_read_lock(mm); 792 vma = find_mergeable_vma(mm, addr); 793 if (vma) 794 break_ksm(vma, addr, addr + PAGE_SIZE, false); 795 mmap_read_unlock(mm); 796 } 797 798 static struct page *get_mergeable_page(struct ksm_rmap_item *rmap_item) 799 { 800 struct mm_struct *mm = rmap_item->mm; 801 unsigned long addr = rmap_item->address; 802 struct vm_area_struct *vma; 803 struct page *page = NULL; 804 struct folio_walk fw; 805 struct folio *folio; 806 807 mmap_read_lock(mm); 808 vma = find_mergeable_vma(mm, addr); 809 if (!vma) 810 goto out; 811 812 folio = folio_walk_start(&fw, vma, addr, 0); 813 if (folio) { 814 if (!folio_is_zone_device(folio) && 815 folio_test_anon(folio)) { 816 folio_get(folio); 817 page = fw.page; 818 } 819 folio_walk_end(&fw, vma); 820 } 821 out: 822 if (page) { 823 flush_anon_page(vma, page, addr); 824 flush_dcache_page(page); 825 } 826 mmap_read_unlock(mm); 827 return page; 828 } 829 830 /* 831 * This helper is used for getting right index into array of tree roots. 832 * When merge_across_nodes knob is set to 1, there are only two rb-trees for 833 * stable and unstable pages from all nodes with roots in index 0. Otherwise, 834 * every node has its own stable and unstable tree. 835 */ 836 static inline int get_kpfn_nid(unsigned long kpfn) 837 { 838 return ksm_merge_across_nodes ? 0 : NUMA(pfn_to_nid(kpfn)); 839 } 840 841 static struct ksm_stable_node *alloc_stable_node_chain(struct ksm_stable_node *dup, 842 struct rb_root *root) 843 { 844 struct ksm_stable_node *chain = alloc_stable_node(); 845 VM_BUG_ON(is_stable_node_chain(dup)); 846 if (likely(chain)) { 847 INIT_HLIST_HEAD(&chain->hlist); 848 chain->chain_prune_time = jiffies; 849 chain->rmap_hlist_len = STABLE_NODE_CHAIN; 850 #if defined (CONFIG_DEBUG_VM) && defined(CONFIG_NUMA) 851 chain->nid = NUMA_NO_NODE; /* debug */ 852 #endif 853 ksm_stable_node_chains++; 854 855 /* 856 * Put the stable node chain in the first dimension of 857 * the stable tree and at the same time remove the old 858 * stable node. 859 */ 860 rb_replace_node(&dup->node, &chain->node, root); 861 862 /* 863 * Move the old stable node to the second dimension 864 * queued in the hlist_dup. The invariant is that all 865 * dup stable_nodes in the chain->hlist point to pages 866 * that are write protected and have the exact same 867 * content. 868 */ 869 stable_node_chain_add_dup(dup, chain); 870 } 871 return chain; 872 } 873 874 static inline void free_stable_node_chain(struct ksm_stable_node *chain, 875 struct rb_root *root) 876 { 877 rb_erase(&chain->node, root); 878 free_stable_node(chain); 879 ksm_stable_node_chains--; 880 } 881 882 static void remove_node_from_stable_tree(struct ksm_stable_node *stable_node) 883 { 884 struct ksm_rmap_item *rmap_item; 885 886 /* check it's not STABLE_NODE_CHAIN or negative */ 887 BUG_ON(stable_node->rmap_hlist_len < 0); 888 889 hlist_for_each_entry(rmap_item, &stable_node->hlist, hlist) { 890 if (rmap_item->hlist.next) { 891 ksm_pages_sharing--; 892 trace_ksm_remove_rmap_item(stable_node->kpfn, rmap_item, rmap_item->mm); 893 } else { 894 ksm_pages_shared--; 895 } 896 897 rmap_item->mm->ksm_merging_pages--; 898 899 VM_BUG_ON(stable_node->rmap_hlist_len <= 0); 900 stable_node->rmap_hlist_len--; 901 put_anon_vma(rmap_item->anon_vma); 902 rmap_item->address &= PAGE_MASK; 903 cond_resched(); 904 } 905 906 /* 907 * We need the second aligned pointer of the migrate_nodes 908 * list_head to stay clear from the rb_parent_color union 909 * (aligned and different than any node) and also different 910 * from &migrate_nodes. This will verify that future list.h changes 911 * don't break STABLE_NODE_DUP_HEAD. Only recent gcc can handle it. 912 */ 913 BUILD_BUG_ON(STABLE_NODE_DUP_HEAD <= &migrate_nodes); 914 BUILD_BUG_ON(STABLE_NODE_DUP_HEAD >= &migrate_nodes + 1); 915 916 trace_ksm_remove_ksm_page(stable_node->kpfn); 917 if (stable_node->head == &migrate_nodes) 918 list_del(&stable_node->list); 919 else 920 stable_node_dup_del(stable_node); 921 free_stable_node(stable_node); 922 } 923 924 enum ksm_get_folio_flags { 925 KSM_GET_FOLIO_NOLOCK, 926 KSM_GET_FOLIO_LOCK, 927 KSM_GET_FOLIO_TRYLOCK 928 }; 929 930 /* 931 * ksm_get_folio: checks if the page indicated by the stable node 932 * is still its ksm page, despite having held no reference to it. 933 * In which case we can trust the content of the page, and it 934 * returns the gotten page; but if the page has now been zapped, 935 * remove the stale node from the stable tree and return NULL. 936 * But beware, the stable node's page might be being migrated. 937 * 938 * You would expect the stable_node to hold a reference to the ksm page. 939 * But if it increments the page's count, swapping out has to wait for 940 * ksmd to come around again before it can free the page, which may take 941 * seconds or even minutes: much too unresponsive. So instead we use a 942 * "keyhole reference": access to the ksm page from the stable node peeps 943 * out through its keyhole to see if that page still holds the right key, 944 * pointing back to this stable node. This relies on freeing a PageAnon 945 * page to reset its page->mapping to NULL, and relies on no other use of 946 * a page to put something that might look like our key in page->mapping. 947 * is on its way to being freed; but it is an anomaly to bear in mind. 948 */ 949 static struct folio *ksm_get_folio(struct ksm_stable_node *stable_node, 950 enum ksm_get_folio_flags flags) 951 { 952 struct folio *folio; 953 void *expected_mapping; 954 unsigned long kpfn; 955 956 expected_mapping = (void *)((unsigned long)stable_node | 957 FOLIO_MAPPING_KSM); 958 again: 959 kpfn = READ_ONCE(stable_node->kpfn); /* Address dependency. */ 960 folio = pfn_folio(kpfn); 961 if (READ_ONCE(folio->mapping) != expected_mapping) 962 goto stale; 963 964 /* 965 * We cannot do anything with the page while its refcount is 0. 966 * Usually 0 means free, or tail of a higher-order page: in which 967 * case this node is no longer referenced, and should be freed; 968 * however, it might mean that the page is under page_ref_freeze(). 969 * The __remove_mapping() case is easy, again the node is now stale; 970 * the same is in reuse_ksm_page() case; but if page is swapcache 971 * in folio_migrate_mapping(), it might still be our page, 972 * in which case it's essential to keep the node. 973 */ 974 while (!folio_try_get(folio)) { 975 /* 976 * Another check for folio->mapping != expected_mapping 977 * would work here too. We have chosen to test the 978 * swapcache flag to optimize the common case, when the 979 * folio is or is about to be freed: the swapcache flag 980 * is cleared (under spin_lock_irq) in the ref_freeze 981 * section of __remove_mapping(); but anon folio->mapping 982 * is reset to NULL later, in free_pages_prepare(). 983 */ 984 if (!folio_test_swapcache(folio)) 985 goto stale; 986 cpu_relax(); 987 } 988 989 if (READ_ONCE(folio->mapping) != expected_mapping) { 990 folio_put(folio); 991 goto stale; 992 } 993 994 if (flags == KSM_GET_FOLIO_TRYLOCK) { 995 if (!folio_trylock(folio)) { 996 folio_put(folio); 997 return ERR_PTR(-EBUSY); 998 } 999 } else if (flags == KSM_GET_FOLIO_LOCK) 1000 folio_lock(folio); 1001 1002 if (flags != KSM_GET_FOLIO_NOLOCK) { 1003 if (READ_ONCE(folio->mapping) != expected_mapping) { 1004 folio_unlock(folio); 1005 folio_put(folio); 1006 goto stale; 1007 } 1008 } 1009 return folio; 1010 1011 stale: 1012 /* 1013 * We come here from above when folio->mapping or the swapcache flag 1014 * suggests that the node is stale; but it might be under migration. 1015 * We need smp_rmb(), matching the smp_wmb() in folio_migrate_ksm(), 1016 * before checking whether node->kpfn has been changed. 1017 */ 1018 smp_rmb(); 1019 if (READ_ONCE(stable_node->kpfn) != kpfn) 1020 goto again; 1021 remove_node_from_stable_tree(stable_node); 1022 return NULL; 1023 } 1024 1025 /* 1026 * Removing rmap_item from stable or unstable tree. 1027 * This function will clean the information from the stable/unstable tree. 1028 */ 1029 static void remove_rmap_item_from_tree(struct ksm_rmap_item *rmap_item) 1030 { 1031 if (rmap_item->address & STABLE_FLAG) { 1032 struct ksm_stable_node *stable_node; 1033 struct folio *folio; 1034 1035 stable_node = rmap_item->head; 1036 folio = ksm_get_folio(stable_node, KSM_GET_FOLIO_LOCK); 1037 if (!folio) 1038 goto out; 1039 1040 hlist_del(&rmap_item->hlist); 1041 folio_unlock(folio); 1042 folio_put(folio); 1043 1044 if (!hlist_empty(&stable_node->hlist)) 1045 ksm_pages_sharing--; 1046 else 1047 ksm_pages_shared--; 1048 1049 rmap_item->mm->ksm_merging_pages--; 1050 1051 VM_BUG_ON(stable_node->rmap_hlist_len <= 0); 1052 stable_node->rmap_hlist_len--; 1053 1054 put_anon_vma(rmap_item->anon_vma); 1055 rmap_item->head = NULL; 1056 rmap_item->address &= PAGE_MASK; 1057 1058 } else if (rmap_item->address & UNSTABLE_FLAG) { 1059 unsigned char age; 1060 /* 1061 * Usually ksmd can and must skip the rb_erase, because 1062 * root_unstable_tree was already reset to RB_ROOT. 1063 * But be careful when an mm is exiting: do the rb_erase 1064 * if this rmap_item was inserted by this scan, rather 1065 * than left over from before. 1066 */ 1067 age = (unsigned char)(ksm_scan.seqnr - rmap_item->address); 1068 BUG_ON(age > 1); 1069 if (!age) 1070 rb_erase(&rmap_item->node, 1071 root_unstable_tree + NUMA(rmap_item->nid)); 1072 ksm_pages_unshared--; 1073 rmap_item->address &= PAGE_MASK; 1074 } 1075 out: 1076 cond_resched(); /* we're called from many long loops */ 1077 } 1078 1079 static void remove_trailing_rmap_items(struct ksm_rmap_item **rmap_list) 1080 { 1081 while (*rmap_list) { 1082 struct ksm_rmap_item *rmap_item = *rmap_list; 1083 *rmap_list = rmap_item->rmap_list; 1084 remove_rmap_item_from_tree(rmap_item); 1085 free_rmap_item(rmap_item); 1086 } 1087 } 1088 1089 static inline 1090 struct ksm_stable_node *folio_stable_node(const struct folio *folio) 1091 { 1092 return folio_test_ksm(folio) ? folio_raw_mapping(folio) : NULL; 1093 } 1094 1095 static inline void folio_set_stable_node(struct folio *folio, 1096 struct ksm_stable_node *stable_node) 1097 { 1098 VM_WARN_ON_FOLIO(folio_test_anon(folio) && PageAnonExclusive(&folio->page), folio); 1099 folio->mapping = (void *)((unsigned long)stable_node | FOLIO_MAPPING_KSM); 1100 } 1101 1102 #ifdef CONFIG_SYSFS 1103 /* 1104 * Only called through the sysfs control interface: 1105 */ 1106 static int remove_stable_node(struct ksm_stable_node *stable_node) 1107 { 1108 struct folio *folio; 1109 int err; 1110 1111 folio = ksm_get_folio(stable_node, KSM_GET_FOLIO_LOCK); 1112 if (!folio) { 1113 /* 1114 * ksm_get_folio did remove_node_from_stable_tree itself. 1115 */ 1116 return 0; 1117 } 1118 1119 /* 1120 * Page could be still mapped if this races with __mmput() running in 1121 * between ksm_exit() and exit_mmap(). Just refuse to let 1122 * merge_across_nodes/max_page_sharing be switched. 1123 */ 1124 err = -EBUSY; 1125 if (!folio_mapped(folio)) { 1126 /* 1127 * The stable node did not yet appear stale to ksm_get_folio(), 1128 * since that allows for an unmapped ksm folio to be recognized 1129 * right up until it is freed; but the node is safe to remove. 1130 * This folio might be in an LRU cache waiting to be freed, 1131 * or it might be in the swapcache (perhaps under writeback), 1132 * or it might have been removed from swapcache a moment ago. 1133 */ 1134 folio_set_stable_node(folio, NULL); 1135 remove_node_from_stable_tree(stable_node); 1136 err = 0; 1137 } 1138 1139 folio_unlock(folio); 1140 folio_put(folio); 1141 return err; 1142 } 1143 1144 static int remove_stable_node_chain(struct ksm_stable_node *stable_node, 1145 struct rb_root *root) 1146 { 1147 struct ksm_stable_node *dup; 1148 struct hlist_node *hlist_safe; 1149 1150 if (!is_stable_node_chain(stable_node)) { 1151 VM_BUG_ON(is_stable_node_dup(stable_node)); 1152 if (remove_stable_node(stable_node)) 1153 return true; 1154 else 1155 return false; 1156 } 1157 1158 hlist_for_each_entry_safe(dup, hlist_safe, 1159 &stable_node->hlist, hlist_dup) { 1160 VM_BUG_ON(!is_stable_node_dup(dup)); 1161 if (remove_stable_node(dup)) 1162 return true; 1163 } 1164 BUG_ON(!hlist_empty(&stable_node->hlist)); 1165 free_stable_node_chain(stable_node, root); 1166 return false; 1167 } 1168 1169 static int remove_all_stable_nodes(void) 1170 { 1171 struct ksm_stable_node *stable_node, *next; 1172 int nid; 1173 int err = 0; 1174 1175 for (nid = 0; nid < ksm_nr_node_ids; nid++) { 1176 while (root_stable_tree[nid].rb_node) { 1177 stable_node = rb_entry(root_stable_tree[nid].rb_node, 1178 struct ksm_stable_node, node); 1179 if (remove_stable_node_chain(stable_node, 1180 root_stable_tree + nid)) { 1181 err = -EBUSY; 1182 break; /* proceed to next nid */ 1183 } 1184 cond_resched(); 1185 } 1186 } 1187 list_for_each_entry_safe(stable_node, next, &migrate_nodes, list) { 1188 if (remove_stable_node(stable_node)) 1189 err = -EBUSY; 1190 cond_resched(); 1191 } 1192 return err; 1193 } 1194 1195 static int unmerge_and_remove_all_rmap_items(void) 1196 { 1197 struct ksm_mm_slot *mm_slot; 1198 struct mm_slot *slot; 1199 struct mm_struct *mm; 1200 struct vm_area_struct *vma; 1201 int err = 0; 1202 1203 spin_lock(&ksm_mmlist_lock); 1204 slot = list_entry(ksm_mm_head.slot.mm_node.next, 1205 struct mm_slot, mm_node); 1206 ksm_scan.mm_slot = mm_slot_entry(slot, struct ksm_mm_slot, slot); 1207 spin_unlock(&ksm_mmlist_lock); 1208 1209 for (mm_slot = ksm_scan.mm_slot; mm_slot != &ksm_mm_head; 1210 mm_slot = ksm_scan.mm_slot) { 1211 VMA_ITERATOR(vmi, mm_slot->slot.mm, 0); 1212 1213 mm = mm_slot->slot.mm; 1214 mmap_read_lock(mm); 1215 1216 /* 1217 * Exit right away if mm is exiting to avoid lockdep issue in 1218 * the maple tree 1219 */ 1220 if (ksm_test_exit(mm)) 1221 goto mm_exiting; 1222 1223 for_each_vma(vmi, vma) { 1224 if (!(vma->vm_flags & VM_MERGEABLE) || !vma->anon_vma) 1225 continue; 1226 err = break_ksm(vma, vma->vm_start, vma->vm_end, false); 1227 if (err) 1228 goto error; 1229 } 1230 1231 mm_exiting: 1232 remove_trailing_rmap_items(&mm_slot->rmap_list); 1233 mmap_read_unlock(mm); 1234 1235 spin_lock(&ksm_mmlist_lock); 1236 slot = list_entry(mm_slot->slot.mm_node.next, 1237 struct mm_slot, mm_node); 1238 ksm_scan.mm_slot = mm_slot_entry(slot, struct ksm_mm_slot, slot); 1239 if (ksm_test_exit(mm)) { 1240 hash_del(&mm_slot->slot.hash); 1241 list_del(&mm_slot->slot.mm_node); 1242 spin_unlock(&ksm_mmlist_lock); 1243 1244 mm_slot_free(mm_slot_cache, mm_slot); 1245 mm_flags_clear(MMF_VM_MERGEABLE, mm); 1246 mm_flags_clear(MMF_VM_MERGE_ANY, mm); 1247 mmdrop(mm); 1248 } else 1249 spin_unlock(&ksm_mmlist_lock); 1250 } 1251 1252 /* Clean up stable nodes, but don't worry if some are still busy */ 1253 remove_all_stable_nodes(); 1254 ksm_scan.seqnr = 0; 1255 return 0; 1256 1257 error: 1258 mmap_read_unlock(mm); 1259 spin_lock(&ksm_mmlist_lock); 1260 ksm_scan.mm_slot = &ksm_mm_head; 1261 spin_unlock(&ksm_mmlist_lock); 1262 return err; 1263 } 1264 #endif /* CONFIG_SYSFS */ 1265 1266 static u32 calc_checksum(struct page *page) 1267 { 1268 u32 checksum; 1269 void *addr = kmap_local_page(page); 1270 checksum = xxhash(addr, PAGE_SIZE, 0); 1271 kunmap_local(addr); 1272 return checksum; 1273 } 1274 1275 static int write_protect_page(struct vm_area_struct *vma, struct folio *folio, 1276 pte_t *orig_pte) 1277 { 1278 struct mm_struct *mm = vma->vm_mm; 1279 DEFINE_FOLIO_VMA_WALK(pvmw, folio, vma, 0, 0); 1280 int swapped; 1281 int err = -EFAULT; 1282 struct mmu_notifier_range range; 1283 bool anon_exclusive; 1284 pte_t entry; 1285 1286 if (WARN_ON_ONCE(folio_test_large(folio))) 1287 return err; 1288 1289 pvmw.address = page_address_in_vma(folio, folio_page(folio, 0), vma); 1290 if (pvmw.address == -EFAULT) 1291 goto out; 1292 1293 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm, pvmw.address, 1294 pvmw.address + PAGE_SIZE); 1295 mmu_notifier_invalidate_range_start(&range); 1296 1297 if (!page_vma_mapped_walk(&pvmw)) 1298 goto out_mn; 1299 if (WARN_ONCE(!pvmw.pte, "Unexpected PMD mapping?")) 1300 goto out_unlock; 1301 1302 entry = ptep_get(pvmw.pte); 1303 /* 1304 * Handle PFN swap PTEs, such as device-exclusive ones, that actually 1305 * map pages: give up just like the next folio_walk would. 1306 */ 1307 if (unlikely(!pte_present(entry))) 1308 goto out_unlock; 1309 1310 anon_exclusive = PageAnonExclusive(&folio->page); 1311 if (pte_write(entry) || pte_dirty(entry) || 1312 anon_exclusive || mm_tlb_flush_pending(mm)) { 1313 swapped = folio_test_swapcache(folio); 1314 flush_cache_page(vma, pvmw.address, folio_pfn(folio)); 1315 /* 1316 * Ok this is tricky, when get_user_pages_fast() run it doesn't 1317 * take any lock, therefore the check that we are going to make 1318 * with the pagecount against the mapcount is racy and 1319 * O_DIRECT can happen right after the check. 1320 * So we clear the pte and flush the tlb before the check 1321 * this assure us that no O_DIRECT can happen after the check 1322 * or in the middle of the check. 1323 * 1324 * No need to notify as we are downgrading page table to read 1325 * only not changing it to point to a new page. 1326 * 1327 * See Documentation/mm/mmu_notifier.rst 1328 */ 1329 entry = ptep_clear_flush(vma, pvmw.address, pvmw.pte); 1330 /* 1331 * Check that no O_DIRECT or similar I/O is in progress on the 1332 * page 1333 */ 1334 if (folio_mapcount(folio) + 1 + swapped != folio_ref_count(folio)) { 1335 set_pte_at(mm, pvmw.address, pvmw.pte, entry); 1336 goto out_unlock; 1337 } 1338 1339 /* See folio_try_share_anon_rmap_pte(): clear PTE first. */ 1340 if (anon_exclusive && 1341 folio_try_share_anon_rmap_pte(folio, &folio->page)) { 1342 set_pte_at(mm, pvmw.address, pvmw.pte, entry); 1343 goto out_unlock; 1344 } 1345 1346 if (pte_dirty(entry)) 1347 folio_mark_dirty(folio); 1348 entry = pte_mkclean(entry); 1349 1350 if (pte_write(entry)) 1351 entry = pte_wrprotect(entry); 1352 1353 set_pte_at(mm, pvmw.address, pvmw.pte, entry); 1354 } 1355 *orig_pte = entry; 1356 err = 0; 1357 1358 out_unlock: 1359 page_vma_mapped_walk_done(&pvmw); 1360 out_mn: 1361 mmu_notifier_invalidate_range_end(&range); 1362 out: 1363 return err; 1364 } 1365 1366 /** 1367 * replace_page - replace page in vma by new ksm page 1368 * @vma: vma that holds the pte pointing to page 1369 * @page: the page we are replacing by kpage 1370 * @kpage: the ksm page we replace page by 1371 * @orig_pte: the original value of the pte 1372 * 1373 * Returns 0 on success, -EFAULT on failure. 1374 */ 1375 static int replace_page(struct vm_area_struct *vma, struct page *page, 1376 struct page *kpage, pte_t orig_pte) 1377 { 1378 struct folio *kfolio = page_folio(kpage); 1379 struct mm_struct *mm = vma->vm_mm; 1380 struct folio *folio = page_folio(page); 1381 pmd_t *pmd; 1382 pmd_t pmde; 1383 pte_t *ptep; 1384 pte_t newpte; 1385 spinlock_t *ptl; 1386 unsigned long addr; 1387 int err = -EFAULT; 1388 struct mmu_notifier_range range; 1389 1390 addr = page_address_in_vma(folio, page, vma); 1391 if (addr == -EFAULT) 1392 goto out; 1393 1394 pmd = mm_find_pmd(mm, addr); 1395 if (!pmd) 1396 goto out; 1397 /* 1398 * Some THP functions use the sequence pmdp_huge_clear_flush(), set_pmd_at() 1399 * without holding anon_vma lock for write. So when looking for a 1400 * genuine pmde (in which to find pte), test present and !THP together. 1401 */ 1402 pmde = pmdp_get_lockless(pmd); 1403 if (!pmd_present(pmde) || pmd_trans_huge(pmde)) 1404 goto out; 1405 1406 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm, addr, 1407 addr + PAGE_SIZE); 1408 mmu_notifier_invalidate_range_start(&range); 1409 1410 ptep = pte_offset_map_lock(mm, pmd, addr, &ptl); 1411 if (!ptep) 1412 goto out_mn; 1413 if (!pte_same(ptep_get(ptep), orig_pte)) { 1414 pte_unmap_unlock(ptep, ptl); 1415 goto out_mn; 1416 } 1417 VM_BUG_ON_PAGE(PageAnonExclusive(page), page); 1418 VM_BUG_ON_FOLIO(folio_test_anon(kfolio) && PageAnonExclusive(kpage), 1419 kfolio); 1420 1421 /* 1422 * No need to check ksm_use_zero_pages here: we can only have a 1423 * zero_page here if ksm_use_zero_pages was enabled already. 1424 */ 1425 if (!is_zero_pfn(page_to_pfn(kpage))) { 1426 folio_get(kfolio); 1427 folio_add_anon_rmap_pte(kfolio, kpage, vma, addr, RMAP_NONE); 1428 newpte = mk_pte(kpage, vma->vm_page_prot); 1429 } else { 1430 /* 1431 * Use pte_mkdirty to mark the zero page mapped by KSM, and then 1432 * we can easily track all KSM-placed zero pages by checking if 1433 * the dirty bit in zero page's PTE is set. 1434 */ 1435 newpte = pte_mkdirty(pte_mkspecial(pfn_pte(page_to_pfn(kpage), vma->vm_page_prot))); 1436 ksm_map_zero_page(mm); 1437 /* 1438 * We're replacing an anonymous page with a zero page, which is 1439 * not anonymous. We need to do proper accounting otherwise we 1440 * will get wrong values in /proc, and a BUG message in dmesg 1441 * when tearing down the mm. 1442 */ 1443 dec_mm_counter(mm, MM_ANONPAGES); 1444 } 1445 1446 flush_cache_page(vma, addr, pte_pfn(ptep_get(ptep))); 1447 /* 1448 * No need to notify as we are replacing a read only page with another 1449 * read only page with the same content. 1450 * 1451 * See Documentation/mm/mmu_notifier.rst 1452 */ 1453 ptep_clear_flush(vma, addr, ptep); 1454 set_pte_at(mm, addr, ptep, newpte); 1455 1456 folio_remove_rmap_pte(folio, page, vma); 1457 if (!folio_mapped(folio)) 1458 folio_free_swap(folio); 1459 folio_put(folio); 1460 1461 pte_unmap_unlock(ptep, ptl); 1462 err = 0; 1463 out_mn: 1464 mmu_notifier_invalidate_range_end(&range); 1465 out: 1466 return err; 1467 } 1468 1469 /* 1470 * try_to_merge_one_page - take two pages and merge them into one 1471 * @vma: the vma that holds the pte pointing to page 1472 * @page: the PageAnon page that we want to replace with kpage 1473 * @kpage: the KSM page that we want to map instead of page, 1474 * or NULL the first time when we want to use page as kpage. 1475 * 1476 * This function returns 0 if the pages were merged, -EFAULT otherwise. 1477 */ 1478 static int try_to_merge_one_page(struct vm_area_struct *vma, 1479 struct page *page, struct page *kpage) 1480 { 1481 struct folio *folio = page_folio(page); 1482 pte_t orig_pte = __pte(0); 1483 int err = -EFAULT; 1484 1485 if (page == kpage) /* ksm page forked */ 1486 return 0; 1487 1488 if (!folio_test_anon(folio)) 1489 goto out; 1490 1491 /* 1492 * We need the folio lock to read a stable swapcache flag in 1493 * write_protect_page(). We trylock because we don't want to wait 1494 * here - we prefer to continue scanning and merging different 1495 * pages, then come back to this page when it is unlocked. 1496 */ 1497 if (!folio_trylock(folio)) 1498 goto out; 1499 1500 if (folio_test_large(folio)) { 1501 if (split_huge_page(page)) 1502 goto out_unlock; 1503 folio = page_folio(page); 1504 } 1505 1506 /* 1507 * If this anonymous page is mapped only here, its pte may need 1508 * to be write-protected. If it's mapped elsewhere, all of its 1509 * ptes are necessarily already write-protected. But in either 1510 * case, we need to lock and check page_count is not raised. 1511 */ 1512 if (write_protect_page(vma, folio, &orig_pte) == 0) { 1513 if (!kpage) { 1514 /* 1515 * While we hold folio lock, upgrade folio from 1516 * anon to a NULL stable_node with the KSM flag set: 1517 * stable_tree_insert() will update stable_node. 1518 */ 1519 folio_set_stable_node(folio, NULL); 1520 folio_mark_accessed(folio); 1521 /* 1522 * Page reclaim just frees a clean folio with no dirty 1523 * ptes: make sure that the ksm page would be swapped. 1524 */ 1525 if (!folio_test_dirty(folio)) 1526 folio_mark_dirty(folio); 1527 err = 0; 1528 } else if (pages_identical(page, kpage)) 1529 err = replace_page(vma, page, kpage, orig_pte); 1530 } 1531 1532 out_unlock: 1533 folio_unlock(folio); 1534 out: 1535 return err; 1536 } 1537 1538 /* 1539 * This function returns 0 if the pages were merged or if they are 1540 * no longer merging candidates (e.g., VMA stale), -EFAULT otherwise. 1541 */ 1542 static int try_to_merge_with_zero_page(struct ksm_rmap_item *rmap_item, 1543 struct page *page) 1544 { 1545 struct mm_struct *mm = rmap_item->mm; 1546 int err = -EFAULT; 1547 1548 /* 1549 * Same checksum as an empty page. We attempt to merge it with the 1550 * appropriate zero page if the user enabled this via sysfs. 1551 */ 1552 if (ksm_use_zero_pages && (rmap_item->oldchecksum == zero_checksum)) { 1553 struct vm_area_struct *vma; 1554 1555 mmap_read_lock(mm); 1556 vma = find_mergeable_vma(mm, rmap_item->address); 1557 if (vma) { 1558 err = try_to_merge_one_page(vma, page, 1559 ZERO_PAGE(rmap_item->address)); 1560 trace_ksm_merge_one_page( 1561 page_to_pfn(ZERO_PAGE(rmap_item->address)), 1562 rmap_item, mm, err); 1563 } else { 1564 /* 1565 * If the vma is out of date, we do not need to 1566 * continue. 1567 */ 1568 err = 0; 1569 } 1570 mmap_read_unlock(mm); 1571 } 1572 1573 return err; 1574 } 1575 1576 /* 1577 * try_to_merge_with_ksm_page - like try_to_merge_two_pages, 1578 * but no new kernel page is allocated: kpage must already be a ksm page. 1579 * 1580 * This function returns 0 if the pages were merged, -EFAULT otherwise. 1581 */ 1582 static int try_to_merge_with_ksm_page(struct ksm_rmap_item *rmap_item, 1583 struct page *page, struct page *kpage) 1584 { 1585 struct mm_struct *mm = rmap_item->mm; 1586 struct vm_area_struct *vma; 1587 int err = -EFAULT; 1588 1589 mmap_read_lock(mm); 1590 vma = find_mergeable_vma(mm, rmap_item->address); 1591 if (!vma) 1592 goto out; 1593 1594 err = try_to_merge_one_page(vma, page, kpage); 1595 if (err) 1596 goto out; 1597 1598 /* Unstable nid is in union with stable anon_vma: remove first */ 1599 remove_rmap_item_from_tree(rmap_item); 1600 1601 /* Must get reference to anon_vma while still holding mmap_lock */ 1602 rmap_item->anon_vma = vma->anon_vma; 1603 get_anon_vma(vma->anon_vma); 1604 out: 1605 mmap_read_unlock(mm); 1606 trace_ksm_merge_with_ksm_page(kpage, page_to_pfn(kpage ? kpage : page), 1607 rmap_item, mm, err); 1608 return err; 1609 } 1610 1611 /* 1612 * try_to_merge_two_pages - take two identical pages and prepare them 1613 * to be merged into one page. 1614 * 1615 * This function returns the kpage if we successfully merged two identical 1616 * pages into one ksm page, NULL otherwise. 1617 * 1618 * Note that this function upgrades page to ksm page: if one of the pages 1619 * is already a ksm page, try_to_merge_with_ksm_page should be used. 1620 */ 1621 static struct folio *try_to_merge_two_pages(struct ksm_rmap_item *rmap_item, 1622 struct page *page, 1623 struct ksm_rmap_item *tree_rmap_item, 1624 struct page *tree_page) 1625 { 1626 int err; 1627 1628 err = try_to_merge_with_ksm_page(rmap_item, page, NULL); 1629 if (!err) { 1630 err = try_to_merge_with_ksm_page(tree_rmap_item, 1631 tree_page, page); 1632 /* 1633 * If that fails, we have a ksm page with only one pte 1634 * pointing to it: so break it. 1635 */ 1636 if (err) 1637 break_cow(rmap_item); 1638 } 1639 return err ? NULL : page_folio(page); 1640 } 1641 1642 static __always_inline 1643 bool __is_page_sharing_candidate(struct ksm_stable_node *stable_node, int offset) 1644 { 1645 VM_BUG_ON(stable_node->rmap_hlist_len < 0); 1646 /* 1647 * Check that at least one mapping still exists, otherwise 1648 * there's no much point to merge and share with this 1649 * stable_node, as the underlying tree_page of the other 1650 * sharer is going to be freed soon. 1651 */ 1652 return stable_node->rmap_hlist_len && 1653 stable_node->rmap_hlist_len + offset < ksm_max_page_sharing; 1654 } 1655 1656 static __always_inline 1657 bool is_page_sharing_candidate(struct ksm_stable_node *stable_node) 1658 { 1659 return __is_page_sharing_candidate(stable_node, 0); 1660 } 1661 1662 static struct folio *stable_node_dup(struct ksm_stable_node **_stable_node_dup, 1663 struct ksm_stable_node **_stable_node, 1664 struct rb_root *root, 1665 bool prune_stale_stable_nodes) 1666 { 1667 struct ksm_stable_node *dup, *found = NULL, *stable_node = *_stable_node; 1668 struct hlist_node *hlist_safe; 1669 struct folio *folio, *tree_folio = NULL; 1670 int found_rmap_hlist_len; 1671 1672 if (!prune_stale_stable_nodes || 1673 time_before(jiffies, stable_node->chain_prune_time + 1674 msecs_to_jiffies( 1675 ksm_stable_node_chains_prune_millisecs))) 1676 prune_stale_stable_nodes = false; 1677 else 1678 stable_node->chain_prune_time = jiffies; 1679 1680 hlist_for_each_entry_safe(dup, hlist_safe, 1681 &stable_node->hlist, hlist_dup) { 1682 cond_resched(); 1683 /* 1684 * We must walk all stable_node_dup to prune the stale 1685 * stable nodes during lookup. 1686 * 1687 * ksm_get_folio can drop the nodes from the 1688 * stable_node->hlist if they point to freed pages 1689 * (that's why we do a _safe walk). The "dup" 1690 * stable_node parameter itself will be freed from 1691 * under us if it returns NULL. 1692 */ 1693 folio = ksm_get_folio(dup, KSM_GET_FOLIO_NOLOCK); 1694 if (!folio) 1695 continue; 1696 /* Pick the best candidate if possible. */ 1697 if (!found || (is_page_sharing_candidate(dup) && 1698 (!is_page_sharing_candidate(found) || 1699 dup->rmap_hlist_len > found_rmap_hlist_len))) { 1700 if (found) 1701 folio_put(tree_folio); 1702 found = dup; 1703 found_rmap_hlist_len = found->rmap_hlist_len; 1704 tree_folio = folio; 1705 /* skip put_page for found candidate */ 1706 if (!prune_stale_stable_nodes && 1707 is_page_sharing_candidate(found)) 1708 break; 1709 continue; 1710 } 1711 folio_put(folio); 1712 } 1713 1714 if (found) { 1715 if (hlist_is_singular_node(&found->hlist_dup, &stable_node->hlist)) { 1716 /* 1717 * If there's not just one entry it would 1718 * corrupt memory, better BUG_ON. In KSM 1719 * context with no lock held it's not even 1720 * fatal. 1721 */ 1722 BUG_ON(stable_node->hlist.first->next); 1723 1724 /* 1725 * There's just one entry and it is below the 1726 * deduplication limit so drop the chain. 1727 */ 1728 rb_replace_node(&stable_node->node, &found->node, 1729 root); 1730 free_stable_node(stable_node); 1731 ksm_stable_node_chains--; 1732 ksm_stable_node_dups--; 1733 /* 1734 * NOTE: the caller depends on the stable_node 1735 * to be equal to stable_node_dup if the chain 1736 * was collapsed. 1737 */ 1738 *_stable_node = found; 1739 /* 1740 * Just for robustness, as stable_node is 1741 * otherwise left as a stable pointer, the 1742 * compiler shall optimize it away at build 1743 * time. 1744 */ 1745 stable_node = NULL; 1746 } else if (stable_node->hlist.first != &found->hlist_dup && 1747 __is_page_sharing_candidate(found, 1)) { 1748 /* 1749 * If the found stable_node dup can accept one 1750 * more future merge (in addition to the one 1751 * that is underway) and is not at the head of 1752 * the chain, put it there so next search will 1753 * be quicker in the !prune_stale_stable_nodes 1754 * case. 1755 * 1756 * NOTE: it would be inaccurate to use nr > 1 1757 * instead of checking the hlist.first pointer 1758 * directly, because in the 1759 * prune_stale_stable_nodes case "nr" isn't 1760 * the position of the found dup in the chain, 1761 * but the total number of dups in the chain. 1762 */ 1763 hlist_del(&found->hlist_dup); 1764 hlist_add_head(&found->hlist_dup, 1765 &stable_node->hlist); 1766 } 1767 } else { 1768 /* Its hlist must be empty if no one found. */ 1769 free_stable_node_chain(stable_node, root); 1770 } 1771 1772 *_stable_node_dup = found; 1773 return tree_folio; 1774 } 1775 1776 /* 1777 * Like for ksm_get_folio, this function can free the *_stable_node and 1778 * *_stable_node_dup if the returned tree_page is NULL. 1779 * 1780 * It can also free and overwrite *_stable_node with the found 1781 * stable_node_dup if the chain is collapsed (in which case 1782 * *_stable_node will be equal to *_stable_node_dup like if the chain 1783 * never existed). It's up to the caller to verify tree_page is not 1784 * NULL before dereferencing *_stable_node or *_stable_node_dup. 1785 * 1786 * *_stable_node_dup is really a second output parameter of this 1787 * function and will be overwritten in all cases, the caller doesn't 1788 * need to initialize it. 1789 */ 1790 static struct folio *__stable_node_chain(struct ksm_stable_node **_stable_node_dup, 1791 struct ksm_stable_node **_stable_node, 1792 struct rb_root *root, 1793 bool prune_stale_stable_nodes) 1794 { 1795 struct ksm_stable_node *stable_node = *_stable_node; 1796 1797 if (!is_stable_node_chain(stable_node)) { 1798 *_stable_node_dup = stable_node; 1799 return ksm_get_folio(stable_node, KSM_GET_FOLIO_NOLOCK); 1800 } 1801 return stable_node_dup(_stable_node_dup, _stable_node, root, 1802 prune_stale_stable_nodes); 1803 } 1804 1805 static __always_inline struct folio *chain_prune(struct ksm_stable_node **s_n_d, 1806 struct ksm_stable_node **s_n, 1807 struct rb_root *root) 1808 { 1809 return __stable_node_chain(s_n_d, s_n, root, true); 1810 } 1811 1812 static __always_inline struct folio *chain(struct ksm_stable_node **s_n_d, 1813 struct ksm_stable_node **s_n, 1814 struct rb_root *root) 1815 { 1816 return __stable_node_chain(s_n_d, s_n, root, false); 1817 } 1818 1819 /* 1820 * stable_tree_search - search for page inside the stable tree 1821 * 1822 * This function checks if there is a page inside the stable tree 1823 * with identical content to the page that we are scanning right now. 1824 * 1825 * This function returns the stable tree node of identical content if found, 1826 * -EBUSY if the stable node's page is being migrated, NULL otherwise. 1827 */ 1828 static struct folio *stable_tree_search(struct page *page) 1829 { 1830 int nid; 1831 struct rb_root *root; 1832 struct rb_node **new; 1833 struct rb_node *parent; 1834 struct ksm_stable_node *stable_node, *stable_node_dup; 1835 struct ksm_stable_node *page_node; 1836 struct folio *folio; 1837 1838 folio = page_folio(page); 1839 page_node = folio_stable_node(folio); 1840 if (page_node && page_node->head != &migrate_nodes) { 1841 /* ksm page forked */ 1842 folio_get(folio); 1843 return folio; 1844 } 1845 1846 nid = get_kpfn_nid(folio_pfn(folio)); 1847 root = root_stable_tree + nid; 1848 again: 1849 new = &root->rb_node; 1850 parent = NULL; 1851 1852 while (*new) { 1853 struct folio *tree_folio; 1854 int ret; 1855 1856 cond_resched(); 1857 stable_node = rb_entry(*new, struct ksm_stable_node, node); 1858 tree_folio = chain_prune(&stable_node_dup, &stable_node, root); 1859 if (!tree_folio) { 1860 /* 1861 * If we walked over a stale stable_node, 1862 * ksm_get_folio() will call rb_erase() and it 1863 * may rebalance the tree from under us. So 1864 * restart the search from scratch. Returning 1865 * NULL would be safe too, but we'd generate 1866 * false negative insertions just because some 1867 * stable_node was stale. 1868 */ 1869 goto again; 1870 } 1871 1872 ret = memcmp_pages(page, &tree_folio->page); 1873 folio_put(tree_folio); 1874 1875 parent = *new; 1876 if (ret < 0) 1877 new = &parent->rb_left; 1878 else if (ret > 0) 1879 new = &parent->rb_right; 1880 else { 1881 if (page_node) { 1882 VM_BUG_ON(page_node->head != &migrate_nodes); 1883 /* 1884 * If the mapcount of our migrated KSM folio is 1885 * at most 1, we can merge it with another 1886 * KSM folio where we know that we have space 1887 * for one more mapping without exceeding the 1888 * ksm_max_page_sharing limit: see 1889 * chain_prune(). This way, we can avoid adding 1890 * this stable node to the chain. 1891 */ 1892 if (folio_mapcount(folio) > 1) 1893 goto chain_append; 1894 } 1895 1896 if (!is_page_sharing_candidate(stable_node_dup)) { 1897 /* 1898 * If the stable_node is a chain and 1899 * we got a payload match in memcmp 1900 * but we cannot merge the scanned 1901 * page in any of the existing 1902 * stable_node dups because they're 1903 * all full, we need to wait the 1904 * scanned page to find itself a match 1905 * in the unstable tree to create a 1906 * brand new KSM page to add later to 1907 * the dups of this stable_node. 1908 */ 1909 return NULL; 1910 } 1911 1912 /* 1913 * Lock and unlock the stable_node's page (which 1914 * might already have been migrated) so that page 1915 * migration is sure to notice its raised count. 1916 * It would be more elegant to return stable_node 1917 * than kpage, but that involves more changes. 1918 */ 1919 tree_folio = ksm_get_folio(stable_node_dup, 1920 KSM_GET_FOLIO_TRYLOCK); 1921 1922 if (PTR_ERR(tree_folio) == -EBUSY) 1923 return ERR_PTR(-EBUSY); 1924 1925 if (unlikely(!tree_folio)) 1926 /* 1927 * The tree may have been rebalanced, 1928 * so re-evaluate parent and new. 1929 */ 1930 goto again; 1931 folio_unlock(tree_folio); 1932 1933 if (get_kpfn_nid(stable_node_dup->kpfn) != 1934 NUMA(stable_node_dup->nid)) { 1935 folio_put(tree_folio); 1936 goto replace; 1937 } 1938 return tree_folio; 1939 } 1940 } 1941 1942 if (!page_node) 1943 return NULL; 1944 1945 list_del(&page_node->list); 1946 DO_NUMA(page_node->nid = nid); 1947 rb_link_node(&page_node->node, parent, new); 1948 rb_insert_color(&page_node->node, root); 1949 out: 1950 if (is_page_sharing_candidate(page_node)) { 1951 folio_get(folio); 1952 return folio; 1953 } else 1954 return NULL; 1955 1956 replace: 1957 /* 1958 * If stable_node was a chain and chain_prune collapsed it, 1959 * stable_node has been updated to be the new regular 1960 * stable_node. A collapse of the chain is indistinguishable 1961 * from the case there was no chain in the stable 1962 * rbtree. Otherwise stable_node is the chain and 1963 * stable_node_dup is the dup to replace. 1964 */ 1965 if (stable_node_dup == stable_node) { 1966 VM_BUG_ON(is_stable_node_chain(stable_node_dup)); 1967 VM_BUG_ON(is_stable_node_dup(stable_node_dup)); 1968 /* there is no chain */ 1969 if (page_node) { 1970 VM_BUG_ON(page_node->head != &migrate_nodes); 1971 list_del(&page_node->list); 1972 DO_NUMA(page_node->nid = nid); 1973 rb_replace_node(&stable_node_dup->node, 1974 &page_node->node, 1975 root); 1976 if (is_page_sharing_candidate(page_node)) 1977 folio_get(folio); 1978 else 1979 folio = NULL; 1980 } else { 1981 rb_erase(&stable_node_dup->node, root); 1982 folio = NULL; 1983 } 1984 } else { 1985 VM_BUG_ON(!is_stable_node_chain(stable_node)); 1986 __stable_node_dup_del(stable_node_dup); 1987 if (page_node) { 1988 VM_BUG_ON(page_node->head != &migrate_nodes); 1989 list_del(&page_node->list); 1990 DO_NUMA(page_node->nid = nid); 1991 stable_node_chain_add_dup(page_node, stable_node); 1992 if (is_page_sharing_candidate(page_node)) 1993 folio_get(folio); 1994 else 1995 folio = NULL; 1996 } else { 1997 folio = NULL; 1998 } 1999 } 2000 stable_node_dup->head = &migrate_nodes; 2001 list_add(&stable_node_dup->list, stable_node_dup->head); 2002 return folio; 2003 2004 chain_append: 2005 /* 2006 * If stable_node was a chain and chain_prune collapsed it, 2007 * stable_node has been updated to be the new regular 2008 * stable_node. A collapse of the chain is indistinguishable 2009 * from the case there was no chain in the stable 2010 * rbtree. Otherwise stable_node is the chain and 2011 * stable_node_dup is the dup to replace. 2012 */ 2013 if (stable_node_dup == stable_node) { 2014 VM_BUG_ON(is_stable_node_dup(stable_node_dup)); 2015 /* chain is missing so create it */ 2016 stable_node = alloc_stable_node_chain(stable_node_dup, 2017 root); 2018 if (!stable_node) 2019 return NULL; 2020 } 2021 /* 2022 * Add this stable_node dup that was 2023 * migrated to the stable_node chain 2024 * of the current nid for this page 2025 * content. 2026 */ 2027 VM_BUG_ON(!is_stable_node_dup(stable_node_dup)); 2028 VM_BUG_ON(page_node->head != &migrate_nodes); 2029 list_del(&page_node->list); 2030 DO_NUMA(page_node->nid = nid); 2031 stable_node_chain_add_dup(page_node, stable_node); 2032 goto out; 2033 } 2034 2035 /* 2036 * stable_tree_insert - insert stable tree node pointing to new ksm page 2037 * into the stable tree. 2038 * 2039 * This function returns the stable tree node just allocated on success, 2040 * NULL otherwise. 2041 */ 2042 static struct ksm_stable_node *stable_tree_insert(struct folio *kfolio) 2043 { 2044 int nid; 2045 unsigned long kpfn; 2046 struct rb_root *root; 2047 struct rb_node **new; 2048 struct rb_node *parent; 2049 struct ksm_stable_node *stable_node, *stable_node_dup; 2050 bool need_chain = false; 2051 2052 kpfn = folio_pfn(kfolio); 2053 nid = get_kpfn_nid(kpfn); 2054 root = root_stable_tree + nid; 2055 again: 2056 parent = NULL; 2057 new = &root->rb_node; 2058 2059 while (*new) { 2060 struct folio *tree_folio; 2061 int ret; 2062 2063 cond_resched(); 2064 stable_node = rb_entry(*new, struct ksm_stable_node, node); 2065 tree_folio = chain(&stable_node_dup, &stable_node, root); 2066 if (!tree_folio) { 2067 /* 2068 * If we walked over a stale stable_node, 2069 * ksm_get_folio() will call rb_erase() and it 2070 * may rebalance the tree from under us. So 2071 * restart the search from scratch. Returning 2072 * NULL would be safe too, but we'd generate 2073 * false negative insertions just because some 2074 * stable_node was stale. 2075 */ 2076 goto again; 2077 } 2078 2079 ret = memcmp_pages(&kfolio->page, &tree_folio->page); 2080 folio_put(tree_folio); 2081 2082 parent = *new; 2083 if (ret < 0) 2084 new = &parent->rb_left; 2085 else if (ret > 0) 2086 new = &parent->rb_right; 2087 else { 2088 need_chain = true; 2089 break; 2090 } 2091 } 2092 2093 stable_node_dup = alloc_stable_node(); 2094 if (!stable_node_dup) 2095 return NULL; 2096 2097 INIT_HLIST_HEAD(&stable_node_dup->hlist); 2098 stable_node_dup->kpfn = kpfn; 2099 stable_node_dup->rmap_hlist_len = 0; 2100 DO_NUMA(stable_node_dup->nid = nid); 2101 if (!need_chain) { 2102 rb_link_node(&stable_node_dup->node, parent, new); 2103 rb_insert_color(&stable_node_dup->node, root); 2104 } else { 2105 if (!is_stable_node_chain(stable_node)) { 2106 struct ksm_stable_node *orig = stable_node; 2107 /* chain is missing so create it */ 2108 stable_node = alloc_stable_node_chain(orig, root); 2109 if (!stable_node) { 2110 free_stable_node(stable_node_dup); 2111 return NULL; 2112 } 2113 } 2114 stable_node_chain_add_dup(stable_node_dup, stable_node); 2115 } 2116 2117 folio_set_stable_node(kfolio, stable_node_dup); 2118 2119 return stable_node_dup; 2120 } 2121 2122 /* 2123 * unstable_tree_search_insert - search for identical page, 2124 * else insert rmap_item into the unstable tree. 2125 * 2126 * This function searches for a page in the unstable tree identical to the 2127 * page currently being scanned; and if no identical page is found in the 2128 * tree, we insert rmap_item as a new object into the unstable tree. 2129 * 2130 * This function returns pointer to rmap_item found to be identical 2131 * to the currently scanned page, NULL otherwise. 2132 * 2133 * This function does both searching and inserting, because they share 2134 * the same walking algorithm in an rbtree. 2135 */ 2136 static 2137 struct ksm_rmap_item *unstable_tree_search_insert(struct ksm_rmap_item *rmap_item, 2138 struct page *page, 2139 struct page **tree_pagep) 2140 { 2141 struct rb_node **new; 2142 struct rb_root *root; 2143 struct rb_node *parent = NULL; 2144 int nid; 2145 2146 nid = get_kpfn_nid(page_to_pfn(page)); 2147 root = root_unstable_tree + nid; 2148 new = &root->rb_node; 2149 2150 while (*new) { 2151 struct ksm_rmap_item *tree_rmap_item; 2152 struct page *tree_page; 2153 int ret; 2154 2155 cond_resched(); 2156 tree_rmap_item = rb_entry(*new, struct ksm_rmap_item, node); 2157 tree_page = get_mergeable_page(tree_rmap_item); 2158 if (!tree_page) 2159 return NULL; 2160 2161 /* 2162 * Don't substitute a ksm page for a forked page. 2163 */ 2164 if (page == tree_page) { 2165 put_page(tree_page); 2166 return NULL; 2167 } 2168 2169 ret = memcmp_pages(page, tree_page); 2170 2171 parent = *new; 2172 if (ret < 0) { 2173 put_page(tree_page); 2174 new = &parent->rb_left; 2175 } else if (ret > 0) { 2176 put_page(tree_page); 2177 new = &parent->rb_right; 2178 } else if (!ksm_merge_across_nodes && 2179 page_to_nid(tree_page) != nid) { 2180 /* 2181 * If tree_page has been migrated to another NUMA node, 2182 * it will be flushed out and put in the right unstable 2183 * tree next time: only merge with it when across_nodes. 2184 */ 2185 put_page(tree_page); 2186 return NULL; 2187 } else { 2188 *tree_pagep = tree_page; 2189 return tree_rmap_item; 2190 } 2191 } 2192 2193 rmap_item->address |= UNSTABLE_FLAG; 2194 rmap_item->address |= (ksm_scan.seqnr & SEQNR_MASK); 2195 DO_NUMA(rmap_item->nid = nid); 2196 rb_link_node(&rmap_item->node, parent, new); 2197 rb_insert_color(&rmap_item->node, root); 2198 2199 ksm_pages_unshared++; 2200 return NULL; 2201 } 2202 2203 /* 2204 * stable_tree_append - add another rmap_item to the linked list of 2205 * rmap_items hanging off a given node of the stable tree, all sharing 2206 * the same ksm page. 2207 */ 2208 static void stable_tree_append(struct ksm_rmap_item *rmap_item, 2209 struct ksm_stable_node *stable_node, 2210 bool max_page_sharing_bypass) 2211 { 2212 /* 2213 * rmap won't find this mapping if we don't insert the 2214 * rmap_item in the right stable_node 2215 * duplicate. page_migration could break later if rmap breaks, 2216 * so we can as well crash here. We really need to check for 2217 * rmap_hlist_len == STABLE_NODE_CHAIN, but we can as well check 2218 * for other negative values as an underflow if detected here 2219 * for the first time (and not when decreasing rmap_hlist_len) 2220 * would be sign of memory corruption in the stable_node. 2221 */ 2222 BUG_ON(stable_node->rmap_hlist_len < 0); 2223 2224 stable_node->rmap_hlist_len++; 2225 if (!max_page_sharing_bypass) 2226 /* possibly non fatal but unexpected overflow, only warn */ 2227 WARN_ON_ONCE(stable_node->rmap_hlist_len > 2228 ksm_max_page_sharing); 2229 2230 rmap_item->head = stable_node; 2231 rmap_item->address |= STABLE_FLAG; 2232 hlist_add_head(&rmap_item->hlist, &stable_node->hlist); 2233 2234 if (rmap_item->hlist.next) 2235 ksm_pages_sharing++; 2236 else 2237 ksm_pages_shared++; 2238 2239 rmap_item->mm->ksm_merging_pages++; 2240 } 2241 2242 /* 2243 * cmp_and_merge_page - first see if page can be merged into the stable tree; 2244 * if not, compare checksum to previous and if it's the same, see if page can 2245 * be inserted into the unstable tree, or merged with a page already there and 2246 * both transferred to the stable tree. 2247 * 2248 * @page: the page that we are searching identical page to. 2249 * @rmap_item: the reverse mapping into the virtual address of this page 2250 */ 2251 static void cmp_and_merge_page(struct page *page, struct ksm_rmap_item *rmap_item) 2252 { 2253 struct folio *folio = page_folio(page); 2254 struct ksm_rmap_item *tree_rmap_item; 2255 struct page *tree_page = NULL; 2256 struct ksm_stable_node *stable_node; 2257 struct folio *kfolio; 2258 unsigned int checksum; 2259 int err; 2260 bool max_page_sharing_bypass = false; 2261 2262 stable_node = folio_stable_node(folio); 2263 if (stable_node) { 2264 if (stable_node->head != &migrate_nodes && 2265 get_kpfn_nid(READ_ONCE(stable_node->kpfn)) != 2266 NUMA(stable_node->nid)) { 2267 stable_node_dup_del(stable_node); 2268 stable_node->head = &migrate_nodes; 2269 list_add(&stable_node->list, stable_node->head); 2270 } 2271 if (stable_node->head != &migrate_nodes && 2272 rmap_item->head == stable_node) 2273 return; 2274 /* 2275 * If it's a KSM fork, allow it to go over the sharing limit 2276 * without warnings. 2277 */ 2278 if (!is_page_sharing_candidate(stable_node)) 2279 max_page_sharing_bypass = true; 2280 } else { 2281 remove_rmap_item_from_tree(rmap_item); 2282 2283 /* 2284 * If the hash value of the page has changed from the last time 2285 * we calculated it, this page is changing frequently: therefore we 2286 * don't want to insert it in the unstable tree, and we don't want 2287 * to waste our time searching for something identical to it there. 2288 */ 2289 checksum = calc_checksum(page); 2290 if (rmap_item->oldchecksum != checksum) { 2291 rmap_item->oldchecksum = checksum; 2292 return; 2293 } 2294 2295 if (!try_to_merge_with_zero_page(rmap_item, page)) 2296 return; 2297 } 2298 2299 /* Start by searching for the folio in the stable tree */ 2300 kfolio = stable_tree_search(page); 2301 if (kfolio == folio && rmap_item->head == stable_node) { 2302 folio_put(kfolio); 2303 return; 2304 } 2305 2306 remove_rmap_item_from_tree(rmap_item); 2307 2308 if (kfolio) { 2309 if (kfolio == ERR_PTR(-EBUSY)) 2310 return; 2311 2312 err = try_to_merge_with_ksm_page(rmap_item, page, &kfolio->page); 2313 if (!err) { 2314 /* 2315 * The page was successfully merged: 2316 * add its rmap_item to the stable tree. 2317 */ 2318 folio_lock(kfolio); 2319 stable_tree_append(rmap_item, folio_stable_node(kfolio), 2320 max_page_sharing_bypass); 2321 folio_unlock(kfolio); 2322 } 2323 folio_put(kfolio); 2324 return; 2325 } 2326 2327 tree_rmap_item = 2328 unstable_tree_search_insert(rmap_item, page, &tree_page); 2329 if (tree_rmap_item) { 2330 bool split; 2331 2332 kfolio = try_to_merge_two_pages(rmap_item, page, 2333 tree_rmap_item, tree_page); 2334 /* 2335 * If both pages we tried to merge belong to the same compound 2336 * page, then we actually ended up increasing the reference 2337 * count of the same compound page twice, and split_huge_page 2338 * failed. 2339 * Here we set a flag if that happened, and we use it later to 2340 * try split_huge_page again. Since we call put_page right 2341 * afterwards, the reference count will be correct and 2342 * split_huge_page should succeed. 2343 */ 2344 split = PageTransCompound(page) 2345 && compound_head(page) == compound_head(tree_page); 2346 put_page(tree_page); 2347 if (kfolio) { 2348 /* 2349 * The pages were successfully merged: insert new 2350 * node in the stable tree and add both rmap_items. 2351 */ 2352 folio_lock(kfolio); 2353 stable_node = stable_tree_insert(kfolio); 2354 if (stable_node) { 2355 stable_tree_append(tree_rmap_item, stable_node, 2356 false); 2357 stable_tree_append(rmap_item, stable_node, 2358 false); 2359 } 2360 folio_unlock(kfolio); 2361 2362 /* 2363 * If we fail to insert the page into the stable tree, 2364 * we will have 2 virtual addresses that are pointing 2365 * to a ksm page left outside the stable tree, 2366 * in which case we need to break_cow on both. 2367 */ 2368 if (!stable_node) { 2369 break_cow(tree_rmap_item); 2370 break_cow(rmap_item); 2371 } 2372 } else if (split) { 2373 /* 2374 * We are here if we tried to merge two pages and 2375 * failed because they both belonged to the same 2376 * compound page. We will split the page now, but no 2377 * merging will take place. 2378 * We do not want to add the cost of a full lock; if 2379 * the page is locked, it is better to skip it and 2380 * perhaps try again later. 2381 */ 2382 if (!folio_trylock(folio)) 2383 return; 2384 split_huge_page(page); 2385 folio = page_folio(page); 2386 folio_unlock(folio); 2387 } 2388 } 2389 } 2390 2391 static struct ksm_rmap_item *get_next_rmap_item(struct ksm_mm_slot *mm_slot, 2392 struct ksm_rmap_item **rmap_list, 2393 unsigned long addr) 2394 { 2395 struct ksm_rmap_item *rmap_item; 2396 2397 while (*rmap_list) { 2398 rmap_item = *rmap_list; 2399 if ((rmap_item->address & PAGE_MASK) == addr) 2400 return rmap_item; 2401 if (rmap_item->address > addr) 2402 break; 2403 *rmap_list = rmap_item->rmap_list; 2404 remove_rmap_item_from_tree(rmap_item); 2405 free_rmap_item(rmap_item); 2406 } 2407 2408 rmap_item = alloc_rmap_item(); 2409 if (rmap_item) { 2410 /* It has already been zeroed */ 2411 rmap_item->mm = mm_slot->slot.mm; 2412 rmap_item->mm->ksm_rmap_items++; 2413 rmap_item->address = addr; 2414 rmap_item->rmap_list = *rmap_list; 2415 *rmap_list = rmap_item; 2416 } 2417 return rmap_item; 2418 } 2419 2420 /* 2421 * Calculate skip age for the ksm page age. The age determines how often 2422 * de-duplicating has already been tried unsuccessfully. If the age is 2423 * smaller, the scanning of this page is skipped for less scans. 2424 * 2425 * @age: rmap_item age of page 2426 */ 2427 static unsigned int skip_age(rmap_age_t age) 2428 { 2429 if (age <= 3) 2430 return 1; 2431 if (age <= 5) 2432 return 2; 2433 if (age <= 8) 2434 return 4; 2435 2436 return 8; 2437 } 2438 2439 /* 2440 * Determines if a page should be skipped for the current scan. 2441 * 2442 * @folio: folio containing the page to check 2443 * @rmap_item: associated rmap_item of page 2444 */ 2445 static bool should_skip_rmap_item(struct folio *folio, 2446 struct ksm_rmap_item *rmap_item) 2447 { 2448 rmap_age_t age; 2449 2450 if (!ksm_smart_scan) 2451 return false; 2452 2453 /* 2454 * Never skip pages that are already KSM; pages cmp_and_merge_page() 2455 * will essentially ignore them, but we still have to process them 2456 * properly. 2457 */ 2458 if (folio_test_ksm(folio)) 2459 return false; 2460 2461 age = rmap_item->age; 2462 if (age != U8_MAX) 2463 rmap_item->age++; 2464 2465 /* 2466 * Smaller ages are not skipped, they need to get a chance to go 2467 * through the different phases of the KSM merging. 2468 */ 2469 if (age < 3) 2470 return false; 2471 2472 /* 2473 * Are we still allowed to skip? If not, then don't skip it 2474 * and determine how much more often we are allowed to skip next. 2475 */ 2476 if (!rmap_item->remaining_skips) { 2477 rmap_item->remaining_skips = skip_age(age); 2478 return false; 2479 } 2480 2481 /* Skip this page */ 2482 ksm_pages_skipped++; 2483 rmap_item->remaining_skips--; 2484 remove_rmap_item_from_tree(rmap_item); 2485 return true; 2486 } 2487 2488 struct ksm_next_page_arg { 2489 struct folio *folio; 2490 struct page *page; 2491 unsigned long addr; 2492 }; 2493 2494 static int ksm_next_page_pmd_entry(pmd_t *pmdp, unsigned long addr, unsigned long end, 2495 struct mm_walk *walk) 2496 { 2497 struct ksm_next_page_arg *private = walk->private; 2498 struct vm_area_struct *vma = walk->vma; 2499 pte_t *start_ptep = NULL, *ptep, pte; 2500 struct mm_struct *mm = walk->mm; 2501 struct folio *folio; 2502 struct page *page; 2503 spinlock_t *ptl; 2504 pmd_t pmd; 2505 2506 if (ksm_test_exit(mm)) 2507 return 0; 2508 2509 cond_resched(); 2510 2511 pmd = pmdp_get_lockless(pmdp); 2512 if (!pmd_present(pmd)) 2513 return 0; 2514 2515 if (IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE) && pmd_leaf(pmd)) { 2516 ptl = pmd_lock(mm, pmdp); 2517 pmd = pmdp_get(pmdp); 2518 2519 if (!pmd_present(pmd)) { 2520 goto not_found_unlock; 2521 } else if (pmd_leaf(pmd)) { 2522 page = vm_normal_page_pmd(vma, addr, pmd); 2523 if (!page) 2524 goto not_found_unlock; 2525 folio = page_folio(page); 2526 2527 if (folio_is_zone_device(folio) || !folio_test_anon(folio)) 2528 goto not_found_unlock; 2529 2530 page += ((addr & (PMD_SIZE - 1)) >> PAGE_SHIFT); 2531 goto found_unlock; 2532 } 2533 spin_unlock(ptl); 2534 } 2535 2536 start_ptep = pte_offset_map_lock(mm, pmdp, addr, &ptl); 2537 if (!start_ptep) 2538 return 0; 2539 2540 for (ptep = start_ptep; addr < end; ptep++, addr += PAGE_SIZE) { 2541 pte = ptep_get(ptep); 2542 2543 if (!pte_present(pte)) 2544 continue; 2545 2546 page = vm_normal_page(vma, addr, pte); 2547 if (!page) 2548 continue; 2549 folio = page_folio(page); 2550 2551 if (folio_is_zone_device(folio) || !folio_test_anon(folio)) 2552 continue; 2553 goto found_unlock; 2554 } 2555 2556 not_found_unlock: 2557 spin_unlock(ptl); 2558 if (start_ptep) 2559 pte_unmap(start_ptep); 2560 return 0; 2561 found_unlock: 2562 folio_get(folio); 2563 spin_unlock(ptl); 2564 if (start_ptep) 2565 pte_unmap(start_ptep); 2566 private->page = page; 2567 private->folio = folio; 2568 private->addr = addr; 2569 return 1; 2570 } 2571 2572 static struct mm_walk_ops ksm_next_page_ops = { 2573 .pmd_entry = ksm_next_page_pmd_entry, 2574 .walk_lock = PGWALK_RDLOCK, 2575 }; 2576 2577 static struct ksm_rmap_item *scan_get_next_rmap_item(struct page **page) 2578 { 2579 struct mm_struct *mm; 2580 struct ksm_mm_slot *mm_slot; 2581 struct mm_slot *slot; 2582 struct vm_area_struct *vma; 2583 struct ksm_rmap_item *rmap_item; 2584 struct vma_iterator vmi; 2585 int nid; 2586 2587 if (list_empty(&ksm_mm_head.slot.mm_node)) 2588 return NULL; 2589 2590 mm_slot = ksm_scan.mm_slot; 2591 if (mm_slot == &ksm_mm_head) { 2592 advisor_start_scan(); 2593 trace_ksm_start_scan(ksm_scan.seqnr, ksm_rmap_items); 2594 2595 /* 2596 * A number of pages can hang around indefinitely in per-cpu 2597 * LRU cache, raised page count preventing write_protect_page 2598 * from merging them. Though it doesn't really matter much, 2599 * it is puzzling to see some stuck in pages_volatile until 2600 * other activity jostles them out, and they also prevented 2601 * LTP's KSM test from succeeding deterministically; so drain 2602 * them here (here rather than on entry to ksm_do_scan(), 2603 * so we don't IPI too often when pages_to_scan is set low). 2604 */ 2605 lru_add_drain_all(); 2606 2607 /* 2608 * Whereas stale stable_nodes on the stable_tree itself 2609 * get pruned in the regular course of stable_tree_search(), 2610 * those moved out to the migrate_nodes list can accumulate: 2611 * so prune them once before each full scan. 2612 */ 2613 if (!ksm_merge_across_nodes) { 2614 struct ksm_stable_node *stable_node, *next; 2615 struct folio *folio; 2616 2617 list_for_each_entry_safe(stable_node, next, 2618 &migrate_nodes, list) { 2619 folio = ksm_get_folio(stable_node, 2620 KSM_GET_FOLIO_NOLOCK); 2621 if (folio) 2622 folio_put(folio); 2623 cond_resched(); 2624 } 2625 } 2626 2627 for (nid = 0; nid < ksm_nr_node_ids; nid++) 2628 root_unstable_tree[nid] = RB_ROOT; 2629 2630 spin_lock(&ksm_mmlist_lock); 2631 slot = list_entry(mm_slot->slot.mm_node.next, 2632 struct mm_slot, mm_node); 2633 mm_slot = mm_slot_entry(slot, struct ksm_mm_slot, slot); 2634 ksm_scan.mm_slot = mm_slot; 2635 spin_unlock(&ksm_mmlist_lock); 2636 /* 2637 * Although we tested list_empty() above, a racing __ksm_exit 2638 * of the last mm on the list may have removed it since then. 2639 */ 2640 if (mm_slot == &ksm_mm_head) 2641 return NULL; 2642 next_mm: 2643 ksm_scan.address = 0; 2644 ksm_scan.rmap_list = &mm_slot->rmap_list; 2645 } 2646 2647 slot = &mm_slot->slot; 2648 mm = slot->mm; 2649 vma_iter_init(&vmi, mm, ksm_scan.address); 2650 2651 mmap_read_lock(mm); 2652 if (ksm_test_exit(mm)) 2653 goto no_vmas; 2654 2655 for_each_vma(vmi, vma) { 2656 if (!(vma->vm_flags & VM_MERGEABLE)) 2657 continue; 2658 if (ksm_scan.address < vma->vm_start) 2659 ksm_scan.address = vma->vm_start; 2660 if (!vma->anon_vma) 2661 ksm_scan.address = vma->vm_end; 2662 2663 while (ksm_scan.address < vma->vm_end) { 2664 struct ksm_next_page_arg ksm_next_page_arg; 2665 struct page *tmp_page = NULL; 2666 struct folio *folio; 2667 2668 if (ksm_test_exit(mm)) 2669 break; 2670 2671 int found; 2672 2673 found = walk_page_range_vma(vma, ksm_scan.address, 2674 vma->vm_end, 2675 &ksm_next_page_ops, 2676 &ksm_next_page_arg); 2677 2678 if (found > 0) { 2679 folio = ksm_next_page_arg.folio; 2680 tmp_page = ksm_next_page_arg.page; 2681 ksm_scan.address = ksm_next_page_arg.addr; 2682 } else { 2683 VM_WARN_ON_ONCE(found < 0); 2684 ksm_scan.address = vma->vm_end - PAGE_SIZE; 2685 } 2686 2687 if (tmp_page) { 2688 flush_anon_page(vma, tmp_page, ksm_scan.address); 2689 flush_dcache_page(tmp_page); 2690 rmap_item = get_next_rmap_item(mm_slot, 2691 ksm_scan.rmap_list, ksm_scan.address); 2692 if (rmap_item) { 2693 ksm_scan.rmap_list = 2694 &rmap_item->rmap_list; 2695 2696 if (should_skip_rmap_item(folio, rmap_item)) { 2697 folio_put(folio); 2698 goto next_page; 2699 } 2700 2701 ksm_scan.address += PAGE_SIZE; 2702 *page = tmp_page; 2703 } else { 2704 folio_put(folio); 2705 } 2706 mmap_read_unlock(mm); 2707 return rmap_item; 2708 } 2709 next_page: 2710 ksm_scan.address += PAGE_SIZE; 2711 cond_resched(); 2712 } 2713 } 2714 2715 if (ksm_test_exit(mm)) { 2716 no_vmas: 2717 ksm_scan.address = 0; 2718 ksm_scan.rmap_list = &mm_slot->rmap_list; 2719 } 2720 /* 2721 * Nuke all the rmap_items that are above this current rmap: 2722 * because there were no VM_MERGEABLE vmas with such addresses. 2723 */ 2724 remove_trailing_rmap_items(ksm_scan.rmap_list); 2725 2726 spin_lock(&ksm_mmlist_lock); 2727 slot = list_entry(mm_slot->slot.mm_node.next, 2728 struct mm_slot, mm_node); 2729 ksm_scan.mm_slot = mm_slot_entry(slot, struct ksm_mm_slot, slot); 2730 if (ksm_scan.address == 0) { 2731 /* 2732 * We've completed a full scan of all vmas, holding mmap_lock 2733 * throughout, and found no VM_MERGEABLE: so do the same as 2734 * __ksm_exit does to remove this mm from all our lists now. 2735 * This applies either when cleaning up after __ksm_exit 2736 * (but beware: we can reach here even before __ksm_exit), 2737 * or when all VM_MERGEABLE areas have been unmapped (and 2738 * mmap_lock then protects against race with MADV_MERGEABLE). 2739 */ 2740 hash_del(&mm_slot->slot.hash); 2741 list_del(&mm_slot->slot.mm_node); 2742 spin_unlock(&ksm_mmlist_lock); 2743 2744 mm_slot_free(mm_slot_cache, mm_slot); 2745 /* 2746 * Only clear MMF_VM_MERGEABLE. We must not clear 2747 * MMF_VM_MERGE_ANY, because for those MMF_VM_MERGE_ANY process, 2748 * perhaps their mm_struct has just been added to ksm_mm_slot 2749 * list, and its process has not yet officially started running 2750 * or has not yet performed mmap/brk to allocate anonymous VMAS. 2751 */ 2752 mm_flags_clear(MMF_VM_MERGEABLE, mm); 2753 mmap_read_unlock(mm); 2754 mmdrop(mm); 2755 } else { 2756 mmap_read_unlock(mm); 2757 /* 2758 * mmap_read_unlock(mm) first because after 2759 * spin_unlock(&ksm_mmlist_lock) run, the "mm" may 2760 * already have been freed under us by __ksm_exit() 2761 * because the "mm_slot" is still hashed and 2762 * ksm_scan.mm_slot doesn't point to it anymore. 2763 */ 2764 spin_unlock(&ksm_mmlist_lock); 2765 } 2766 2767 /* Repeat until we've completed scanning the whole list */ 2768 mm_slot = ksm_scan.mm_slot; 2769 if (mm_slot != &ksm_mm_head) 2770 goto next_mm; 2771 2772 advisor_stop_scan(); 2773 2774 trace_ksm_stop_scan(ksm_scan.seqnr, ksm_rmap_items); 2775 ksm_scan.seqnr++; 2776 return NULL; 2777 } 2778 2779 /** 2780 * ksm_do_scan - the ksm scanner main worker function. 2781 * @scan_npages: number of pages we want to scan before we return. 2782 */ 2783 static void ksm_do_scan(unsigned int scan_npages) 2784 { 2785 struct ksm_rmap_item *rmap_item; 2786 struct page *page; 2787 2788 while (scan_npages-- && likely(!freezing(current))) { 2789 cond_resched(); 2790 rmap_item = scan_get_next_rmap_item(&page); 2791 if (!rmap_item) 2792 return; 2793 cmp_and_merge_page(page, rmap_item); 2794 put_page(page); 2795 ksm_pages_scanned++; 2796 } 2797 } 2798 2799 static int ksmd_should_run(void) 2800 { 2801 return (ksm_run & KSM_RUN_MERGE) && !list_empty(&ksm_mm_head.slot.mm_node); 2802 } 2803 2804 static int ksm_scan_thread(void *nothing) 2805 { 2806 unsigned int sleep_ms; 2807 2808 set_freezable(); 2809 set_user_nice(current, 5); 2810 2811 while (!kthread_should_stop()) { 2812 mutex_lock(&ksm_thread_mutex); 2813 wait_while_offlining(); 2814 if (ksmd_should_run()) 2815 ksm_do_scan(ksm_thread_pages_to_scan); 2816 mutex_unlock(&ksm_thread_mutex); 2817 2818 if (ksmd_should_run()) { 2819 sleep_ms = READ_ONCE(ksm_thread_sleep_millisecs); 2820 wait_event_freezable_timeout(ksm_iter_wait, 2821 sleep_ms != READ_ONCE(ksm_thread_sleep_millisecs), 2822 msecs_to_jiffies(sleep_ms)); 2823 } else { 2824 wait_event_freezable(ksm_thread_wait, 2825 ksmd_should_run() || kthread_should_stop()); 2826 } 2827 } 2828 return 0; 2829 } 2830 2831 static bool __ksm_should_add_vma(const struct file *file, vma_flags_t vma_flags) 2832 { 2833 if (vma_flags_test(&vma_flags, VMA_MERGEABLE_BIT)) 2834 return false; 2835 2836 return ksm_compatible(file, vma_flags); 2837 } 2838 2839 static void __ksm_add_vma(struct vm_area_struct *vma) 2840 { 2841 if (__ksm_should_add_vma(vma->vm_file, vma->flags)) 2842 vm_flags_set(vma, VM_MERGEABLE); 2843 } 2844 2845 static int __ksm_del_vma(struct vm_area_struct *vma) 2846 { 2847 int err; 2848 2849 if (!(vma->vm_flags & VM_MERGEABLE)) 2850 return 0; 2851 2852 if (vma->anon_vma) { 2853 err = break_ksm(vma, vma->vm_start, vma->vm_end, true); 2854 if (err) 2855 return err; 2856 } 2857 2858 vm_flags_clear(vma, VM_MERGEABLE); 2859 return 0; 2860 } 2861 /** 2862 * ksm_vma_flags - Update VMA flags to mark as mergeable if compatible 2863 * 2864 * @mm: Proposed VMA's mm_struct 2865 * @file: Proposed VMA's file-backed mapping, if any. 2866 * @vma_flags: Proposed VMA"s flags. 2867 * 2868 * Returns: @vma_flags possibly updated to mark mergeable. 2869 */ 2870 vma_flags_t ksm_vma_flags(struct mm_struct *mm, const struct file *file, 2871 vma_flags_t vma_flags) 2872 { 2873 if (mm_flags_test(MMF_VM_MERGE_ANY, mm) && 2874 __ksm_should_add_vma(file, vma_flags)) { 2875 vma_flags_set(&vma_flags, VMA_MERGEABLE_BIT); 2876 /* 2877 * Generally, the flags here always include MMF_VM_MERGEABLE. 2878 * However, in rare cases, this flag may be cleared by ksmd who 2879 * scans a cycle without finding any mergeable vma. 2880 */ 2881 if (unlikely(!mm_flags_test(MMF_VM_MERGEABLE, mm))) 2882 __ksm_enter(mm); 2883 } 2884 2885 return vma_flags; 2886 } 2887 2888 static void ksm_add_vmas(struct mm_struct *mm) 2889 { 2890 struct vm_area_struct *vma; 2891 2892 VMA_ITERATOR(vmi, mm, 0); 2893 for_each_vma(vmi, vma) 2894 __ksm_add_vma(vma); 2895 } 2896 2897 static int ksm_del_vmas(struct mm_struct *mm) 2898 { 2899 struct vm_area_struct *vma; 2900 int err; 2901 2902 VMA_ITERATOR(vmi, mm, 0); 2903 for_each_vma(vmi, vma) { 2904 err = __ksm_del_vma(vma); 2905 if (err) 2906 return err; 2907 } 2908 return 0; 2909 } 2910 2911 /** 2912 * ksm_enable_merge_any - Add mm to mm ksm list and enable merging on all 2913 * compatible VMA's 2914 * 2915 * @mm: Pointer to mm 2916 * 2917 * Returns 0 on success, otherwise error code 2918 */ 2919 int ksm_enable_merge_any(struct mm_struct *mm) 2920 { 2921 int err; 2922 2923 if (mm_flags_test(MMF_VM_MERGE_ANY, mm)) 2924 return 0; 2925 2926 if (!mm_flags_test(MMF_VM_MERGEABLE, mm)) { 2927 err = __ksm_enter(mm); 2928 if (err) 2929 return err; 2930 } 2931 2932 mm_flags_set(MMF_VM_MERGE_ANY, mm); 2933 ksm_add_vmas(mm); 2934 2935 return 0; 2936 } 2937 2938 /** 2939 * ksm_disable_merge_any - Disable merging on all compatible VMA's of the mm, 2940 * previously enabled via ksm_enable_merge_any(). 2941 * 2942 * Disabling merging implies unmerging any merged pages, like setting 2943 * MADV_UNMERGEABLE would. If unmerging fails, the whole operation fails and 2944 * merging on all compatible VMA's remains enabled. 2945 * 2946 * @mm: Pointer to mm 2947 * 2948 * Returns 0 on success, otherwise error code 2949 */ 2950 int ksm_disable_merge_any(struct mm_struct *mm) 2951 { 2952 int err; 2953 2954 if (!mm_flags_test(MMF_VM_MERGE_ANY, mm)) 2955 return 0; 2956 2957 err = ksm_del_vmas(mm); 2958 if (err) { 2959 ksm_add_vmas(mm); 2960 return err; 2961 } 2962 2963 mm_flags_clear(MMF_VM_MERGE_ANY, mm); 2964 return 0; 2965 } 2966 2967 int ksm_disable(struct mm_struct *mm) 2968 { 2969 mmap_assert_write_locked(mm); 2970 2971 if (!mm_flags_test(MMF_VM_MERGEABLE, mm)) 2972 return 0; 2973 if (mm_flags_test(MMF_VM_MERGE_ANY, mm)) 2974 return ksm_disable_merge_any(mm); 2975 return ksm_del_vmas(mm); 2976 } 2977 2978 int ksm_madvise(struct vm_area_struct *vma, unsigned long start, 2979 unsigned long end, int advice, vm_flags_t *vm_flags) 2980 { 2981 struct mm_struct *mm = vma->vm_mm; 2982 int err; 2983 2984 switch (advice) { 2985 case MADV_MERGEABLE: 2986 if (vma->vm_flags & VM_MERGEABLE) 2987 return 0; 2988 if (!vma_ksm_compatible(vma)) 2989 return 0; 2990 2991 if (!mm_flags_test(MMF_VM_MERGEABLE, mm)) { 2992 err = __ksm_enter(mm); 2993 if (err) 2994 return err; 2995 } 2996 2997 *vm_flags |= VM_MERGEABLE; 2998 break; 2999 3000 case MADV_UNMERGEABLE: 3001 if (!(*vm_flags & VM_MERGEABLE)) 3002 return 0; /* just ignore the advice */ 3003 3004 if (vma->anon_vma) { 3005 err = break_ksm(vma, start, end, true); 3006 if (err) 3007 return err; 3008 } 3009 3010 *vm_flags &= ~VM_MERGEABLE; 3011 break; 3012 } 3013 3014 return 0; 3015 } 3016 EXPORT_SYMBOL_GPL(ksm_madvise); 3017 3018 int __ksm_enter(struct mm_struct *mm) 3019 { 3020 struct ksm_mm_slot *mm_slot; 3021 struct mm_slot *slot; 3022 int needs_wakeup; 3023 3024 mm_slot = mm_slot_alloc(mm_slot_cache); 3025 if (!mm_slot) 3026 return -ENOMEM; 3027 3028 slot = &mm_slot->slot; 3029 3030 /* Check ksm_run too? Would need tighter locking */ 3031 needs_wakeup = list_empty(&ksm_mm_head.slot.mm_node); 3032 3033 spin_lock(&ksm_mmlist_lock); 3034 mm_slot_insert(mm_slots_hash, mm, slot); 3035 /* 3036 * When KSM_RUN_MERGE (or KSM_RUN_STOP), 3037 * insert just behind the scanning cursor, to let the area settle 3038 * down a little; when fork is followed by immediate exec, we don't 3039 * want ksmd to waste time setting up and tearing down an rmap_list. 3040 * 3041 * But when KSM_RUN_UNMERGE, it's important to insert ahead of its 3042 * scanning cursor, otherwise KSM pages in newly forked mms will be 3043 * missed: then we might as well insert at the end of the list. 3044 */ 3045 if (ksm_run & KSM_RUN_UNMERGE) 3046 list_add_tail(&slot->mm_node, &ksm_mm_head.slot.mm_node); 3047 else 3048 list_add_tail(&slot->mm_node, &ksm_scan.mm_slot->slot.mm_node); 3049 spin_unlock(&ksm_mmlist_lock); 3050 3051 mm_flags_set(MMF_VM_MERGEABLE, mm); 3052 mmgrab(mm); 3053 3054 if (needs_wakeup) 3055 wake_up_interruptible(&ksm_thread_wait); 3056 3057 trace_ksm_enter(mm); 3058 return 0; 3059 } 3060 3061 void __ksm_exit(struct mm_struct *mm) 3062 { 3063 struct ksm_mm_slot *mm_slot = NULL; 3064 struct mm_slot *slot; 3065 int easy_to_free = 0; 3066 3067 /* 3068 * This process is exiting: if it's straightforward (as is the 3069 * case when ksmd was never running), free mm_slot immediately. 3070 * But if it's at the cursor or has rmap_items linked to it, use 3071 * mmap_lock to synchronize with any break_cows before pagetables 3072 * are freed, and leave the mm_slot on the list for ksmd to free. 3073 * Beware: ksm may already have noticed it exiting and freed the slot. 3074 */ 3075 3076 spin_lock(&ksm_mmlist_lock); 3077 slot = mm_slot_lookup(mm_slots_hash, mm); 3078 if (!slot) 3079 goto unlock; 3080 mm_slot = mm_slot_entry(slot, struct ksm_mm_slot, slot); 3081 if (ksm_scan.mm_slot == mm_slot) 3082 goto unlock; 3083 if (!mm_slot->rmap_list) { 3084 hash_del(&slot->hash); 3085 list_del(&slot->mm_node); 3086 easy_to_free = 1; 3087 } else { 3088 list_move(&slot->mm_node, 3089 &ksm_scan.mm_slot->slot.mm_node); 3090 } 3091 unlock: 3092 spin_unlock(&ksm_mmlist_lock); 3093 3094 if (easy_to_free) { 3095 mm_slot_free(mm_slot_cache, mm_slot); 3096 mm_flags_clear(MMF_VM_MERGE_ANY, mm); 3097 mm_flags_clear(MMF_VM_MERGEABLE, mm); 3098 mmdrop(mm); 3099 } else if (mm_slot) { 3100 mmap_write_lock(mm); 3101 mmap_write_unlock(mm); 3102 } 3103 3104 trace_ksm_exit(mm); 3105 } 3106 3107 struct folio *ksm_might_need_to_copy(struct folio *folio, 3108 struct vm_area_struct *vma, unsigned long addr) 3109 { 3110 struct page *page = folio_page(folio, 0); 3111 struct anon_vma *anon_vma = folio_anon_vma(folio); 3112 struct folio *new_folio; 3113 3114 if (folio_test_large(folio)) 3115 return folio; 3116 3117 if (folio_test_ksm(folio)) { 3118 if (folio_stable_node(folio) && 3119 !(ksm_run & KSM_RUN_UNMERGE)) 3120 return folio; /* no need to copy it */ 3121 } else if (!anon_vma) { 3122 return folio; /* no need to copy it */ 3123 } else if (folio->index == linear_page_index(vma, addr) && 3124 anon_vma->root == vma->anon_vma->root) { 3125 return folio; /* still no need to copy it */ 3126 } 3127 if (PageHWPoison(page)) 3128 return ERR_PTR(-EHWPOISON); 3129 if (!folio_test_uptodate(folio)) 3130 return folio; /* let do_swap_page report the error */ 3131 3132 new_folio = vma_alloc_folio(GFP_HIGHUSER_MOVABLE, 0, vma, addr); 3133 if (new_folio && 3134 mem_cgroup_charge(new_folio, vma->vm_mm, GFP_KERNEL)) { 3135 folio_put(new_folio); 3136 new_folio = NULL; 3137 } 3138 if (new_folio) { 3139 if (copy_mc_user_highpage(folio_page(new_folio, 0), page, 3140 addr, vma)) { 3141 folio_put(new_folio); 3142 return ERR_PTR(-EHWPOISON); 3143 } 3144 folio_set_dirty(new_folio); 3145 __folio_mark_uptodate(new_folio); 3146 __folio_set_locked(new_folio); 3147 #ifdef CONFIG_SWAP 3148 count_vm_event(KSM_SWPIN_COPY); 3149 #endif 3150 } 3151 3152 return new_folio; 3153 } 3154 3155 void rmap_walk_ksm(struct folio *folio, struct rmap_walk_control *rwc) 3156 { 3157 struct ksm_stable_node *stable_node; 3158 struct ksm_rmap_item *rmap_item; 3159 int search_new_forks = 0; 3160 3161 VM_BUG_ON_FOLIO(!folio_test_ksm(folio), folio); 3162 3163 /* 3164 * Rely on the page lock to protect against concurrent modifications 3165 * to that page's node of the stable tree. 3166 */ 3167 VM_BUG_ON_FOLIO(!folio_test_locked(folio), folio); 3168 3169 stable_node = folio_stable_node(folio); 3170 if (!stable_node) 3171 return; 3172 again: 3173 hlist_for_each_entry(rmap_item, &stable_node->hlist, hlist) { 3174 /* Ignore the stable/unstable/sqnr flags */ 3175 const unsigned long addr = rmap_item->address & PAGE_MASK; 3176 struct anon_vma *anon_vma = rmap_item->anon_vma; 3177 struct anon_vma_chain *vmac; 3178 struct vm_area_struct *vma; 3179 3180 cond_resched(); 3181 if (!anon_vma_trylock_read(anon_vma)) { 3182 if (rwc->try_lock) { 3183 rwc->contended = true; 3184 return; 3185 } 3186 anon_vma_lock_read(anon_vma); 3187 } 3188 3189 anon_vma_interval_tree_foreach(vmac, &anon_vma->rb_root, 3190 0, ULONG_MAX) { 3191 3192 cond_resched(); 3193 vma = vmac->vma; 3194 3195 if (addr < vma->vm_start || addr >= vma->vm_end) 3196 continue; 3197 /* 3198 * Initially we examine only the vma which covers this 3199 * rmap_item; but later, if there is still work to do, 3200 * we examine covering vmas in other mms: in case they 3201 * were forked from the original since ksmd passed. 3202 */ 3203 if ((rmap_item->mm == vma->vm_mm) == search_new_forks) 3204 continue; 3205 3206 if (rwc->invalid_vma && rwc->invalid_vma(vma, rwc->arg)) 3207 continue; 3208 3209 if (!rwc->rmap_one(folio, vma, addr, rwc->arg)) { 3210 anon_vma_unlock_read(anon_vma); 3211 return; 3212 } 3213 if (rwc->done && rwc->done(folio)) { 3214 anon_vma_unlock_read(anon_vma); 3215 return; 3216 } 3217 } 3218 anon_vma_unlock_read(anon_vma); 3219 } 3220 if (!search_new_forks++) 3221 goto again; 3222 } 3223 3224 #ifdef CONFIG_MEMORY_FAILURE 3225 /* 3226 * Collect processes when the error hit an ksm page. 3227 */ 3228 void collect_procs_ksm(const struct folio *folio, const struct page *page, 3229 struct list_head *to_kill, int force_early) 3230 { 3231 struct ksm_stable_node *stable_node; 3232 struct ksm_rmap_item *rmap_item; 3233 struct vm_area_struct *vma; 3234 struct task_struct *tsk; 3235 3236 stable_node = folio_stable_node(folio); 3237 if (!stable_node) 3238 return; 3239 hlist_for_each_entry(rmap_item, &stable_node->hlist, hlist) { 3240 struct anon_vma *av = rmap_item->anon_vma; 3241 3242 anon_vma_lock_read(av); 3243 rcu_read_lock(); 3244 for_each_process(tsk) { 3245 struct anon_vma_chain *vmac; 3246 unsigned long addr; 3247 struct task_struct *t = 3248 task_early_kill(tsk, force_early); 3249 if (!t) 3250 continue; 3251 anon_vma_interval_tree_foreach(vmac, &av->rb_root, 0, 3252 ULONG_MAX) 3253 { 3254 vma = vmac->vma; 3255 if (vma->vm_mm == t->mm) { 3256 addr = rmap_item->address & PAGE_MASK; 3257 add_to_kill_ksm(t, page, vma, to_kill, 3258 addr); 3259 } 3260 } 3261 } 3262 rcu_read_unlock(); 3263 anon_vma_unlock_read(av); 3264 } 3265 } 3266 #endif 3267 3268 #ifdef CONFIG_MIGRATION 3269 void folio_migrate_ksm(struct folio *newfolio, struct folio *folio) 3270 { 3271 struct ksm_stable_node *stable_node; 3272 3273 VM_BUG_ON_FOLIO(!folio_test_locked(folio), folio); 3274 VM_BUG_ON_FOLIO(!folio_test_locked(newfolio), newfolio); 3275 VM_BUG_ON_FOLIO(newfolio->mapping != folio->mapping, newfolio); 3276 3277 stable_node = folio_stable_node(folio); 3278 if (stable_node) { 3279 VM_BUG_ON_FOLIO(stable_node->kpfn != folio_pfn(folio), folio); 3280 stable_node->kpfn = folio_pfn(newfolio); 3281 /* 3282 * newfolio->mapping was set in advance; now we need smp_wmb() 3283 * to make sure that the new stable_node->kpfn is visible 3284 * to ksm_get_folio() before it can see that folio->mapping 3285 * has gone stale (or that the swapcache flag has been cleared). 3286 */ 3287 smp_wmb(); 3288 folio_set_stable_node(folio, NULL); 3289 } 3290 } 3291 #endif /* CONFIG_MIGRATION */ 3292 3293 #ifdef CONFIG_MEMORY_HOTREMOVE 3294 static void wait_while_offlining(void) 3295 { 3296 while (ksm_run & KSM_RUN_OFFLINE) { 3297 mutex_unlock(&ksm_thread_mutex); 3298 wait_on_bit(&ksm_run, ilog2(KSM_RUN_OFFLINE), 3299 TASK_UNINTERRUPTIBLE); 3300 mutex_lock(&ksm_thread_mutex); 3301 } 3302 } 3303 3304 static bool stable_node_dup_remove_range(struct ksm_stable_node *stable_node, 3305 unsigned long start_pfn, 3306 unsigned long end_pfn) 3307 { 3308 if (stable_node->kpfn >= start_pfn && 3309 stable_node->kpfn < end_pfn) { 3310 /* 3311 * Don't ksm_get_folio, page has already gone: 3312 * which is why we keep kpfn instead of page* 3313 */ 3314 remove_node_from_stable_tree(stable_node); 3315 return true; 3316 } 3317 return false; 3318 } 3319 3320 static bool stable_node_chain_remove_range(struct ksm_stable_node *stable_node, 3321 unsigned long start_pfn, 3322 unsigned long end_pfn, 3323 struct rb_root *root) 3324 { 3325 struct ksm_stable_node *dup; 3326 struct hlist_node *hlist_safe; 3327 3328 if (!is_stable_node_chain(stable_node)) { 3329 VM_BUG_ON(is_stable_node_dup(stable_node)); 3330 return stable_node_dup_remove_range(stable_node, start_pfn, 3331 end_pfn); 3332 } 3333 3334 hlist_for_each_entry_safe(dup, hlist_safe, 3335 &stable_node->hlist, hlist_dup) { 3336 VM_BUG_ON(!is_stable_node_dup(dup)); 3337 stable_node_dup_remove_range(dup, start_pfn, end_pfn); 3338 } 3339 if (hlist_empty(&stable_node->hlist)) { 3340 free_stable_node_chain(stable_node, root); 3341 return true; /* notify caller that tree was rebalanced */ 3342 } else 3343 return false; 3344 } 3345 3346 static void ksm_check_stable_tree(unsigned long start_pfn, 3347 unsigned long end_pfn) 3348 { 3349 struct ksm_stable_node *stable_node, *next; 3350 struct rb_node *node; 3351 int nid; 3352 3353 for (nid = 0; nid < ksm_nr_node_ids; nid++) { 3354 node = rb_first(root_stable_tree + nid); 3355 while (node) { 3356 stable_node = rb_entry(node, struct ksm_stable_node, node); 3357 if (stable_node_chain_remove_range(stable_node, 3358 start_pfn, end_pfn, 3359 root_stable_tree + 3360 nid)) 3361 node = rb_first(root_stable_tree + nid); 3362 else 3363 node = rb_next(node); 3364 cond_resched(); 3365 } 3366 } 3367 list_for_each_entry_safe(stable_node, next, &migrate_nodes, list) { 3368 if (stable_node->kpfn >= start_pfn && 3369 stable_node->kpfn < end_pfn) 3370 remove_node_from_stable_tree(stable_node); 3371 cond_resched(); 3372 } 3373 } 3374 3375 static int ksm_memory_callback(struct notifier_block *self, 3376 unsigned long action, void *arg) 3377 { 3378 struct memory_notify *mn = arg; 3379 3380 switch (action) { 3381 case MEM_GOING_OFFLINE: 3382 /* 3383 * Prevent ksm_do_scan(), unmerge_and_remove_all_rmap_items() 3384 * and remove_all_stable_nodes() while memory is going offline: 3385 * it is unsafe for them to touch the stable tree at this time. 3386 * But break_ksm(), rmap lookups and other entry points 3387 * which do not need the ksm_thread_mutex are all safe. 3388 */ 3389 mutex_lock(&ksm_thread_mutex); 3390 ksm_run |= KSM_RUN_OFFLINE; 3391 mutex_unlock(&ksm_thread_mutex); 3392 break; 3393 3394 case MEM_OFFLINE: 3395 /* 3396 * Most of the work is done by page migration; but there might 3397 * be a few stable_nodes left over, still pointing to struct 3398 * pages which have been offlined: prune those from the tree, 3399 * otherwise ksm_get_folio() might later try to access a 3400 * non-existent struct page. 3401 */ 3402 ksm_check_stable_tree(mn->start_pfn, 3403 mn->start_pfn + mn->nr_pages); 3404 fallthrough; 3405 case MEM_CANCEL_OFFLINE: 3406 mutex_lock(&ksm_thread_mutex); 3407 ksm_run &= ~KSM_RUN_OFFLINE; 3408 mutex_unlock(&ksm_thread_mutex); 3409 3410 smp_mb(); /* wake_up_bit advises this */ 3411 wake_up_bit(&ksm_run, ilog2(KSM_RUN_OFFLINE)); 3412 break; 3413 } 3414 return NOTIFY_OK; 3415 } 3416 #else 3417 static void wait_while_offlining(void) 3418 { 3419 } 3420 #endif /* CONFIG_MEMORY_HOTREMOVE */ 3421 3422 #ifdef CONFIG_PROC_FS 3423 /* 3424 * The process is mergeable only if any VMA is currently 3425 * applicable to KSM. 3426 * 3427 * The mmap lock must be held in read mode. 3428 */ 3429 bool ksm_process_mergeable(struct mm_struct *mm) 3430 { 3431 struct vm_area_struct *vma; 3432 3433 mmap_assert_locked(mm); 3434 VMA_ITERATOR(vmi, mm, 0); 3435 for_each_vma(vmi, vma) 3436 if (vma->vm_flags & VM_MERGEABLE) 3437 return true; 3438 3439 return false; 3440 } 3441 3442 long ksm_process_profit(struct mm_struct *mm) 3443 { 3444 return (long)(mm->ksm_merging_pages + mm_ksm_zero_pages(mm)) * PAGE_SIZE - 3445 mm->ksm_rmap_items * sizeof(struct ksm_rmap_item); 3446 } 3447 #endif /* CONFIG_PROC_FS */ 3448 3449 #ifdef CONFIG_SYSFS 3450 /* 3451 * This all compiles without CONFIG_SYSFS, but is a waste of space. 3452 */ 3453 3454 #define KSM_ATTR_RO(_name) \ 3455 static struct kobj_attribute _name##_attr = __ATTR_RO(_name) 3456 #define KSM_ATTR(_name) \ 3457 static struct kobj_attribute _name##_attr = __ATTR_RW(_name) 3458 3459 static ssize_t sleep_millisecs_show(struct kobject *kobj, 3460 struct kobj_attribute *attr, char *buf) 3461 { 3462 return sysfs_emit(buf, "%u\n", ksm_thread_sleep_millisecs); 3463 } 3464 3465 static ssize_t sleep_millisecs_store(struct kobject *kobj, 3466 struct kobj_attribute *attr, 3467 const char *buf, size_t count) 3468 { 3469 unsigned int msecs; 3470 int err; 3471 3472 err = kstrtouint(buf, 10, &msecs); 3473 if (err) 3474 return -EINVAL; 3475 3476 ksm_thread_sleep_millisecs = msecs; 3477 wake_up_interruptible(&ksm_iter_wait); 3478 3479 return count; 3480 } 3481 KSM_ATTR(sleep_millisecs); 3482 3483 static ssize_t pages_to_scan_show(struct kobject *kobj, 3484 struct kobj_attribute *attr, char *buf) 3485 { 3486 return sysfs_emit(buf, "%u\n", ksm_thread_pages_to_scan); 3487 } 3488 3489 static ssize_t pages_to_scan_store(struct kobject *kobj, 3490 struct kobj_attribute *attr, 3491 const char *buf, size_t count) 3492 { 3493 unsigned int nr_pages; 3494 int err; 3495 3496 if (ksm_advisor != KSM_ADVISOR_NONE) 3497 return -EINVAL; 3498 3499 err = kstrtouint(buf, 10, &nr_pages); 3500 if (err) 3501 return -EINVAL; 3502 3503 ksm_thread_pages_to_scan = nr_pages; 3504 3505 return count; 3506 } 3507 KSM_ATTR(pages_to_scan); 3508 3509 static ssize_t run_show(struct kobject *kobj, struct kobj_attribute *attr, 3510 char *buf) 3511 { 3512 return sysfs_emit(buf, "%lu\n", ksm_run); 3513 } 3514 3515 static ssize_t run_store(struct kobject *kobj, struct kobj_attribute *attr, 3516 const char *buf, size_t count) 3517 { 3518 unsigned int flags; 3519 int err; 3520 3521 err = kstrtouint(buf, 10, &flags); 3522 if (err) 3523 return -EINVAL; 3524 if (flags > KSM_RUN_UNMERGE) 3525 return -EINVAL; 3526 3527 /* 3528 * KSM_RUN_MERGE sets ksmd running, and 0 stops it running. 3529 * KSM_RUN_UNMERGE stops it running and unmerges all rmap_items, 3530 * breaking COW to free the pages_shared (but leaves mm_slots 3531 * on the list for when ksmd may be set running again). 3532 */ 3533 3534 mutex_lock(&ksm_thread_mutex); 3535 wait_while_offlining(); 3536 if (ksm_run != flags) { 3537 ksm_run = flags; 3538 if (flags & KSM_RUN_UNMERGE) { 3539 set_current_oom_origin(); 3540 err = unmerge_and_remove_all_rmap_items(); 3541 clear_current_oom_origin(); 3542 if (err) { 3543 ksm_run = KSM_RUN_STOP; 3544 count = err; 3545 } 3546 } 3547 } 3548 mutex_unlock(&ksm_thread_mutex); 3549 3550 if (flags & KSM_RUN_MERGE) 3551 wake_up_interruptible(&ksm_thread_wait); 3552 3553 return count; 3554 } 3555 KSM_ATTR(run); 3556 3557 #ifdef CONFIG_NUMA 3558 static ssize_t merge_across_nodes_show(struct kobject *kobj, 3559 struct kobj_attribute *attr, char *buf) 3560 { 3561 return sysfs_emit(buf, "%u\n", ksm_merge_across_nodes); 3562 } 3563 3564 static ssize_t merge_across_nodes_store(struct kobject *kobj, 3565 struct kobj_attribute *attr, 3566 const char *buf, size_t count) 3567 { 3568 int err; 3569 unsigned long knob; 3570 3571 err = kstrtoul(buf, 10, &knob); 3572 if (err) 3573 return err; 3574 if (knob > 1) 3575 return -EINVAL; 3576 3577 mutex_lock(&ksm_thread_mutex); 3578 wait_while_offlining(); 3579 if (ksm_merge_across_nodes != knob) { 3580 if (ksm_pages_shared || remove_all_stable_nodes()) 3581 err = -EBUSY; 3582 else if (root_stable_tree == one_stable_tree) { 3583 struct rb_root *buf; 3584 /* 3585 * This is the first time that we switch away from the 3586 * default of merging across nodes: must now allocate 3587 * a buffer to hold as many roots as may be needed. 3588 * Allocate stable and unstable together: 3589 * MAXSMP NODES_SHIFT 10 will use 16kB. 3590 */ 3591 buf = kzalloc_objs(*buf, nr_node_ids + nr_node_ids); 3592 /* Let us assume that RB_ROOT is NULL is zero */ 3593 if (!buf) 3594 err = -ENOMEM; 3595 else { 3596 root_stable_tree = buf; 3597 root_unstable_tree = buf + nr_node_ids; 3598 /* Stable tree is empty but not the unstable */ 3599 root_unstable_tree[0] = one_unstable_tree[0]; 3600 } 3601 } 3602 if (!err) { 3603 ksm_merge_across_nodes = knob; 3604 ksm_nr_node_ids = knob ? 1 : nr_node_ids; 3605 } 3606 } 3607 mutex_unlock(&ksm_thread_mutex); 3608 3609 return err ? err : count; 3610 } 3611 KSM_ATTR(merge_across_nodes); 3612 #endif 3613 3614 static ssize_t use_zero_pages_show(struct kobject *kobj, 3615 struct kobj_attribute *attr, char *buf) 3616 { 3617 return sysfs_emit(buf, "%u\n", ksm_use_zero_pages); 3618 } 3619 static ssize_t use_zero_pages_store(struct kobject *kobj, 3620 struct kobj_attribute *attr, 3621 const char *buf, size_t count) 3622 { 3623 int err; 3624 bool value; 3625 3626 err = kstrtobool(buf, &value); 3627 if (err) 3628 return -EINVAL; 3629 3630 ksm_use_zero_pages = value; 3631 3632 return count; 3633 } 3634 KSM_ATTR(use_zero_pages); 3635 3636 static ssize_t max_page_sharing_show(struct kobject *kobj, 3637 struct kobj_attribute *attr, char *buf) 3638 { 3639 return sysfs_emit(buf, "%u\n", ksm_max_page_sharing); 3640 } 3641 3642 static ssize_t max_page_sharing_store(struct kobject *kobj, 3643 struct kobj_attribute *attr, 3644 const char *buf, size_t count) 3645 { 3646 int err; 3647 int knob; 3648 3649 err = kstrtoint(buf, 10, &knob); 3650 if (err) 3651 return err; 3652 /* 3653 * When a KSM page is created it is shared by 2 mappings. This 3654 * being a signed comparison, it implicitly verifies it's not 3655 * negative. 3656 */ 3657 if (knob < 2) 3658 return -EINVAL; 3659 3660 if (READ_ONCE(ksm_max_page_sharing) == knob) 3661 return count; 3662 3663 mutex_lock(&ksm_thread_mutex); 3664 wait_while_offlining(); 3665 if (ksm_max_page_sharing != knob) { 3666 if (ksm_pages_shared || remove_all_stable_nodes()) 3667 err = -EBUSY; 3668 else 3669 ksm_max_page_sharing = knob; 3670 } 3671 mutex_unlock(&ksm_thread_mutex); 3672 3673 return err ? err : count; 3674 } 3675 KSM_ATTR(max_page_sharing); 3676 3677 static ssize_t pages_scanned_show(struct kobject *kobj, 3678 struct kobj_attribute *attr, char *buf) 3679 { 3680 return sysfs_emit(buf, "%lu\n", ksm_pages_scanned); 3681 } 3682 KSM_ATTR_RO(pages_scanned); 3683 3684 static ssize_t pages_shared_show(struct kobject *kobj, 3685 struct kobj_attribute *attr, char *buf) 3686 { 3687 return sysfs_emit(buf, "%lu\n", ksm_pages_shared); 3688 } 3689 KSM_ATTR_RO(pages_shared); 3690 3691 static ssize_t pages_sharing_show(struct kobject *kobj, 3692 struct kobj_attribute *attr, char *buf) 3693 { 3694 return sysfs_emit(buf, "%lu\n", ksm_pages_sharing); 3695 } 3696 KSM_ATTR_RO(pages_sharing); 3697 3698 static ssize_t pages_unshared_show(struct kobject *kobj, 3699 struct kobj_attribute *attr, char *buf) 3700 { 3701 return sysfs_emit(buf, "%lu\n", ksm_pages_unshared); 3702 } 3703 KSM_ATTR_RO(pages_unshared); 3704 3705 static ssize_t pages_volatile_show(struct kobject *kobj, 3706 struct kobj_attribute *attr, char *buf) 3707 { 3708 long ksm_pages_volatile; 3709 3710 ksm_pages_volatile = ksm_rmap_items - ksm_pages_shared 3711 - ksm_pages_sharing - ksm_pages_unshared; 3712 /* 3713 * It was not worth any locking to calculate that statistic, 3714 * but it might therefore sometimes be negative: conceal that. 3715 */ 3716 if (ksm_pages_volatile < 0) 3717 ksm_pages_volatile = 0; 3718 return sysfs_emit(buf, "%ld\n", ksm_pages_volatile); 3719 } 3720 KSM_ATTR_RO(pages_volatile); 3721 3722 static ssize_t pages_skipped_show(struct kobject *kobj, 3723 struct kobj_attribute *attr, char *buf) 3724 { 3725 return sysfs_emit(buf, "%lu\n", ksm_pages_skipped); 3726 } 3727 KSM_ATTR_RO(pages_skipped); 3728 3729 static ssize_t ksm_zero_pages_show(struct kobject *kobj, 3730 struct kobj_attribute *attr, char *buf) 3731 { 3732 return sysfs_emit(buf, "%ld\n", atomic_long_read(&ksm_zero_pages)); 3733 } 3734 KSM_ATTR_RO(ksm_zero_pages); 3735 3736 static ssize_t general_profit_show(struct kobject *kobj, 3737 struct kobj_attribute *attr, char *buf) 3738 { 3739 long general_profit; 3740 3741 general_profit = (ksm_pages_sharing + atomic_long_read(&ksm_zero_pages)) * PAGE_SIZE - 3742 ksm_rmap_items * sizeof(struct ksm_rmap_item); 3743 3744 return sysfs_emit(buf, "%ld\n", general_profit); 3745 } 3746 KSM_ATTR_RO(general_profit); 3747 3748 static ssize_t stable_node_dups_show(struct kobject *kobj, 3749 struct kobj_attribute *attr, char *buf) 3750 { 3751 return sysfs_emit(buf, "%lu\n", ksm_stable_node_dups); 3752 } 3753 KSM_ATTR_RO(stable_node_dups); 3754 3755 static ssize_t stable_node_chains_show(struct kobject *kobj, 3756 struct kobj_attribute *attr, char *buf) 3757 { 3758 return sysfs_emit(buf, "%lu\n", ksm_stable_node_chains); 3759 } 3760 KSM_ATTR_RO(stable_node_chains); 3761 3762 static ssize_t 3763 stable_node_chains_prune_millisecs_show(struct kobject *kobj, 3764 struct kobj_attribute *attr, 3765 char *buf) 3766 { 3767 return sysfs_emit(buf, "%u\n", ksm_stable_node_chains_prune_millisecs); 3768 } 3769 3770 static ssize_t 3771 stable_node_chains_prune_millisecs_store(struct kobject *kobj, 3772 struct kobj_attribute *attr, 3773 const char *buf, size_t count) 3774 { 3775 unsigned int msecs; 3776 int err; 3777 3778 err = kstrtouint(buf, 10, &msecs); 3779 if (err) 3780 return -EINVAL; 3781 3782 ksm_stable_node_chains_prune_millisecs = msecs; 3783 3784 return count; 3785 } 3786 KSM_ATTR(stable_node_chains_prune_millisecs); 3787 3788 static ssize_t full_scans_show(struct kobject *kobj, 3789 struct kobj_attribute *attr, char *buf) 3790 { 3791 return sysfs_emit(buf, "%lu\n", ksm_scan.seqnr); 3792 } 3793 KSM_ATTR_RO(full_scans); 3794 3795 static ssize_t smart_scan_show(struct kobject *kobj, 3796 struct kobj_attribute *attr, char *buf) 3797 { 3798 return sysfs_emit(buf, "%u\n", ksm_smart_scan); 3799 } 3800 3801 static ssize_t smart_scan_store(struct kobject *kobj, 3802 struct kobj_attribute *attr, 3803 const char *buf, size_t count) 3804 { 3805 int err; 3806 bool value; 3807 3808 err = kstrtobool(buf, &value); 3809 if (err) 3810 return -EINVAL; 3811 3812 ksm_smart_scan = value; 3813 return count; 3814 } 3815 KSM_ATTR(smart_scan); 3816 3817 static ssize_t advisor_mode_show(struct kobject *kobj, 3818 struct kobj_attribute *attr, char *buf) 3819 { 3820 const char *output; 3821 3822 if (ksm_advisor == KSM_ADVISOR_SCAN_TIME) 3823 output = "none [scan-time]"; 3824 else 3825 output = "[none] scan-time"; 3826 3827 return sysfs_emit(buf, "%s\n", output); 3828 } 3829 3830 static ssize_t advisor_mode_store(struct kobject *kobj, 3831 struct kobj_attribute *attr, const char *buf, 3832 size_t count) 3833 { 3834 enum ksm_advisor_type curr_advisor = ksm_advisor; 3835 3836 if (sysfs_streq("scan-time", buf)) 3837 ksm_advisor = KSM_ADVISOR_SCAN_TIME; 3838 else if (sysfs_streq("none", buf)) 3839 ksm_advisor = KSM_ADVISOR_NONE; 3840 else 3841 return -EINVAL; 3842 3843 /* Set advisor default values */ 3844 if (curr_advisor != ksm_advisor) 3845 set_advisor_defaults(); 3846 3847 return count; 3848 } 3849 KSM_ATTR(advisor_mode); 3850 3851 static ssize_t advisor_max_cpu_show(struct kobject *kobj, 3852 struct kobj_attribute *attr, char *buf) 3853 { 3854 return sysfs_emit(buf, "%u\n", ksm_advisor_max_cpu); 3855 } 3856 3857 static ssize_t advisor_max_cpu_store(struct kobject *kobj, 3858 struct kobj_attribute *attr, 3859 const char *buf, size_t count) 3860 { 3861 int err; 3862 unsigned long value; 3863 3864 err = kstrtoul(buf, 10, &value); 3865 if (err) 3866 return -EINVAL; 3867 3868 ksm_advisor_max_cpu = value; 3869 return count; 3870 } 3871 KSM_ATTR(advisor_max_cpu); 3872 3873 static ssize_t advisor_min_pages_to_scan_show(struct kobject *kobj, 3874 struct kobj_attribute *attr, char *buf) 3875 { 3876 return sysfs_emit(buf, "%lu\n", ksm_advisor_min_pages_to_scan); 3877 } 3878 3879 static ssize_t advisor_min_pages_to_scan_store(struct kobject *kobj, 3880 struct kobj_attribute *attr, 3881 const char *buf, size_t count) 3882 { 3883 int err; 3884 unsigned long value; 3885 3886 err = kstrtoul(buf, 10, &value); 3887 if (err) 3888 return -EINVAL; 3889 3890 ksm_advisor_min_pages_to_scan = value; 3891 return count; 3892 } 3893 KSM_ATTR(advisor_min_pages_to_scan); 3894 3895 static ssize_t advisor_max_pages_to_scan_show(struct kobject *kobj, 3896 struct kobj_attribute *attr, char *buf) 3897 { 3898 return sysfs_emit(buf, "%lu\n", ksm_advisor_max_pages_to_scan); 3899 } 3900 3901 static ssize_t advisor_max_pages_to_scan_store(struct kobject *kobj, 3902 struct kobj_attribute *attr, 3903 const char *buf, size_t count) 3904 { 3905 int err; 3906 unsigned long value; 3907 3908 err = kstrtoul(buf, 10, &value); 3909 if (err) 3910 return -EINVAL; 3911 3912 ksm_advisor_max_pages_to_scan = value; 3913 return count; 3914 } 3915 KSM_ATTR(advisor_max_pages_to_scan); 3916 3917 static ssize_t advisor_target_scan_time_show(struct kobject *kobj, 3918 struct kobj_attribute *attr, char *buf) 3919 { 3920 return sysfs_emit(buf, "%lu\n", ksm_advisor_target_scan_time); 3921 } 3922 3923 static ssize_t advisor_target_scan_time_store(struct kobject *kobj, 3924 struct kobj_attribute *attr, 3925 const char *buf, size_t count) 3926 { 3927 int err; 3928 unsigned long value; 3929 3930 err = kstrtoul(buf, 10, &value); 3931 if (err) 3932 return -EINVAL; 3933 if (value < 1) 3934 return -EINVAL; 3935 3936 ksm_advisor_target_scan_time = value; 3937 return count; 3938 } 3939 KSM_ATTR(advisor_target_scan_time); 3940 3941 static struct attribute *ksm_attrs[] = { 3942 &sleep_millisecs_attr.attr, 3943 &pages_to_scan_attr.attr, 3944 &run_attr.attr, 3945 &pages_scanned_attr.attr, 3946 &pages_shared_attr.attr, 3947 &pages_sharing_attr.attr, 3948 &pages_unshared_attr.attr, 3949 &pages_volatile_attr.attr, 3950 &pages_skipped_attr.attr, 3951 &ksm_zero_pages_attr.attr, 3952 &full_scans_attr.attr, 3953 #ifdef CONFIG_NUMA 3954 &merge_across_nodes_attr.attr, 3955 #endif 3956 &max_page_sharing_attr.attr, 3957 &stable_node_chains_attr.attr, 3958 &stable_node_dups_attr.attr, 3959 &stable_node_chains_prune_millisecs_attr.attr, 3960 &use_zero_pages_attr.attr, 3961 &general_profit_attr.attr, 3962 &smart_scan_attr.attr, 3963 &advisor_mode_attr.attr, 3964 &advisor_max_cpu_attr.attr, 3965 &advisor_min_pages_to_scan_attr.attr, 3966 &advisor_max_pages_to_scan_attr.attr, 3967 &advisor_target_scan_time_attr.attr, 3968 NULL, 3969 }; 3970 3971 static const struct attribute_group ksm_attr_group = { 3972 .attrs = ksm_attrs, 3973 .name = "ksm", 3974 }; 3975 #endif /* CONFIG_SYSFS */ 3976 3977 static int __init ksm_init(void) 3978 { 3979 struct task_struct *ksm_thread; 3980 int err; 3981 3982 /* The correct value depends on page size and endianness */ 3983 zero_checksum = calc_checksum(ZERO_PAGE(0)); 3984 /* Default to false for backwards compatibility */ 3985 ksm_use_zero_pages = false; 3986 3987 err = ksm_slab_init(); 3988 if (err) 3989 goto out; 3990 3991 ksm_thread = kthread_run(ksm_scan_thread, NULL, "ksmd"); 3992 if (IS_ERR(ksm_thread)) { 3993 pr_err("ksm: creating kthread failed\n"); 3994 err = PTR_ERR(ksm_thread); 3995 goto out_free; 3996 } 3997 3998 #ifdef CONFIG_SYSFS 3999 err = sysfs_create_group(mm_kobj, &ksm_attr_group); 4000 if (err) { 4001 pr_err("ksm: register sysfs failed\n"); 4002 kthread_stop(ksm_thread); 4003 goto out_free; 4004 } 4005 #else 4006 ksm_run = KSM_RUN_MERGE; /* no way for user to start it */ 4007 4008 #endif /* CONFIG_SYSFS */ 4009 4010 #ifdef CONFIG_MEMORY_HOTREMOVE 4011 /* There is no significance to this priority 100 */ 4012 hotplug_memory_notifier(ksm_memory_callback, KSM_CALLBACK_PRI); 4013 #endif 4014 return 0; 4015 4016 out_free: 4017 ksm_slab_free(); 4018 out: 4019 return err; 4020 } 4021 subsys_initcall(ksm_init); 4022