1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * 4 * Manages the free list, the system allocates free pages here. 5 * Note that kmalloc() lives in slab.c 6 * 7 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds 8 * Swap reorganised 29.12.95, Stephen Tweedie 9 * Support of BIGMEM added by Gerhard Wichert, Siemens AG, July 1999 10 * Reshaped it to be a zoned allocator, Ingo Molnar, Red Hat, 1999 11 * Discontiguous memory support, Kanoj Sarcar, SGI, Nov 1999 12 * Zone balancing, Kanoj Sarcar, SGI, Jan 2000 13 * Per cpu hot/cold page lists, bulk allocation, Martin J. Bligh, Sept 2002 14 * (lots of bits borrowed from Ingo Molnar & Andrew Morton) 15 */ 16 17 #include <linux/stddef.h> 18 #include <linux/mm.h> 19 #include <linux/highmem.h> 20 #include <linux/interrupt.h> 21 #include <linux/jiffies.h> 22 #include <linux/compiler.h> 23 #include <linux/kernel.h> 24 #include <linux/kasan.h> 25 #include <linux/kmsan.h> 26 #include <linux/module.h> 27 #include <linux/suspend.h> 28 #include <linux/ratelimit.h> 29 #include <linux/oom.h> 30 #include <linux/topology.h> 31 #include <linux/sysctl.h> 32 #include <linux/cpu.h> 33 #include <linux/cpuset.h> 34 #include <linux/folio_batch.h> 35 #include <linux/memory_hotplug.h> 36 #include <linux/nodemask.h> 37 #include <linux/vmstat.h> 38 #include <linux/fault-inject.h> 39 #include <linux/compaction.h> 40 #include <trace/events/kmem.h> 41 #include <trace/events/oom.h> 42 #include <linux/prefetch.h> 43 #include <linux/mm_inline.h> 44 #include <linux/mmu_notifier.h> 45 #include <linux/migrate.h> 46 #include <linux/sched/mm.h> 47 #include <linux/page_owner.h> 48 #include <linux/page_table_check.h> 49 #include <linux/memcontrol.h> 50 #include <linux/ftrace.h> 51 #include <linux/lockdep.h> 52 #include <linux/psi.h> 53 #include <linux/khugepaged.h> 54 #include <linux/delayacct.h> 55 #include <linux/cacheinfo.h> 56 #include <linux/pgalloc_tag.h> 57 #include <asm/div64.h> 58 #include "internal.h" 59 #include "shuffle.h" 60 #include "page_reporting.h" 61 62 /* Free Page Internal flags: for internal, non-pcp variants of free_pages(). */ 63 typedef int __bitwise fpi_t; 64 65 /* No special request */ 66 #define FPI_NONE ((__force fpi_t)0) 67 68 /* 69 * Skip free page reporting notification for the (possibly merged) page. 70 * This does not hinder free page reporting from grabbing the page, 71 * reporting it and marking it "reported" - it only skips notifying 72 * the free page reporting infrastructure about a newly freed page. For 73 * example, used when temporarily pulling a page from a freelist and 74 * putting it back unmodified. 75 */ 76 #define FPI_SKIP_REPORT_NOTIFY ((__force fpi_t)BIT(0)) 77 78 /* 79 * Place the (possibly merged) page to the tail of the freelist. Will ignore 80 * page shuffling (relevant code - e.g., memory onlining - is expected to 81 * shuffle the whole zone). 82 * 83 * Note: No code should rely on this flag for correctness - it's purely 84 * to allow for optimizations when handing back either fresh pages 85 * (memory onlining) or untouched pages (page isolation, free page 86 * reporting). 87 */ 88 #define FPI_TO_TAIL ((__force fpi_t)BIT(1)) 89 90 /* Free the page without taking locks. Rely on trylock only. */ 91 #define FPI_TRYLOCK ((__force fpi_t)BIT(2)) 92 93 /* prevent >1 _updater_ of zone percpu pageset ->high and ->batch fields */ 94 static DEFINE_MUTEX(pcp_batch_high_lock); 95 #define MIN_PERCPU_PAGELIST_HIGH_FRACTION (8) 96 97 /* 98 * Locking a pcp requires a PCP lookup followed by a spinlock. To avoid 99 * a migration causing the wrong PCP to be locked and remote memory being 100 * potentially allocated, pin the task to the CPU for the lookup+lock. 101 * preempt_disable is used on !RT because it is faster than migrate_disable. 102 * migrate_disable is used on RT because otherwise RT spinlock usage is 103 * interfered with and a high priority task cannot preempt the allocator. 104 */ 105 #ifndef CONFIG_PREEMPT_RT 106 #define pcpu_task_pin() preempt_disable() 107 #define pcpu_task_unpin() preempt_enable() 108 #else 109 #define pcpu_task_pin() migrate_disable() 110 #define pcpu_task_unpin() migrate_enable() 111 #endif 112 113 /* 114 * A helper to lookup and trylock pcp with embedded spinlock. 115 * The return value should be used with the unlock helper. 116 * NULL return value means the trylock failed. 117 */ 118 #ifdef CONFIG_SMP 119 #define pcp_spin_trylock(ptr) \ 120 ({ \ 121 struct per_cpu_pages *_ret; \ 122 pcpu_task_pin(); \ 123 _ret = this_cpu_ptr(ptr); \ 124 if (!spin_trylock(&_ret->lock)) { \ 125 pcpu_task_unpin(); \ 126 _ret = NULL; \ 127 } \ 128 _ret; \ 129 }) 130 131 #define pcp_spin_unlock(ptr) \ 132 ({ \ 133 spin_unlock(&ptr->lock); \ 134 pcpu_task_unpin(); \ 135 }) 136 137 /* 138 * On CONFIG_SMP=n the UP implementation of spin_trylock() never fails and thus 139 * is not compatible with our locking scheme. However we do not need pcp for 140 * scalability in the first place, so just make all the trylocks fail and take 141 * the slow path unconditionally. 142 */ 143 #else 144 #define pcp_spin_trylock(ptr) \ 145 NULL 146 147 #define pcp_spin_unlock(ptr) \ 148 BUG_ON(1) 149 #endif 150 151 /* 152 * In some cases we do not need to pin the task to the CPU because we are 153 * already given a specific cpu's pcp pointer. 154 */ 155 #define pcp_spin_lock_nopin(ptr) \ 156 spin_lock(&(ptr)->lock) 157 #define pcp_spin_unlock_nopin(ptr) \ 158 spin_unlock(&(ptr)->lock) 159 160 #ifdef CONFIG_USE_PERCPU_NUMA_NODE_ID 161 DEFINE_PER_CPU(int, numa_node); 162 EXPORT_PER_CPU_SYMBOL(numa_node); 163 #endif 164 165 DEFINE_STATIC_KEY_TRUE(vm_numa_stat_key); 166 167 #ifdef CONFIG_HAVE_MEMORYLESS_NODES 168 /* 169 * N.B., Do NOT reference the '_numa_mem_' per cpu variable directly. 170 * It will not be defined when CONFIG_HAVE_MEMORYLESS_NODES is not defined. 171 * Use the accessor functions set_numa_mem(), numa_mem_id() and cpu_to_mem() 172 * defined in <linux/topology.h>. 173 */ 174 DEFINE_PER_CPU(int, _numa_mem_); /* Kernel "local memory" node */ 175 EXPORT_PER_CPU_SYMBOL(_numa_mem_); 176 #endif 177 178 static DEFINE_MUTEX(pcpu_drain_mutex); 179 180 #ifdef CONFIG_GCC_PLUGIN_LATENT_ENTROPY 181 volatile unsigned long latent_entropy __latent_entropy; 182 EXPORT_SYMBOL(latent_entropy); 183 #endif 184 185 /* 186 * Array of node states. 187 */ 188 nodemask_t node_states[NR_NODE_STATES] __read_mostly = { 189 [N_POSSIBLE] = NODE_MASK_ALL, 190 [N_ONLINE] = { { [0] = 1UL } }, 191 #ifndef CONFIG_NUMA 192 [N_NORMAL_MEMORY] = { { [0] = 1UL } }, 193 #ifdef CONFIG_HIGHMEM 194 [N_HIGH_MEMORY] = { { [0] = 1UL } }, 195 #endif 196 [N_MEMORY] = { { [0] = 1UL } }, 197 [N_CPU] = { { [0] = 1UL } }, 198 #endif /* NUMA */ 199 }; 200 EXPORT_SYMBOL(node_states); 201 202 gfp_t gfp_allowed_mask __read_mostly = GFP_BOOT_MASK; 203 204 #ifdef CONFIG_HUGETLB_PAGE_SIZE_VARIABLE 205 unsigned int pageblock_order __read_mostly; 206 #endif 207 208 static void __free_pages_ok(struct page *page, unsigned int order, 209 fpi_t fpi_flags); 210 static void reserve_highatomic_pageblock(struct page *page, int order, 211 struct zone *zone); 212 213 /* 214 * results with 256, 32 in the lowmem_reserve sysctl: 215 * 1G machine -> (16M dma, 800M-16M normal, 1G-800M high) 216 * 1G machine -> (16M dma, 784M normal, 224M high) 217 * NORMAL allocation will leave 784M/256 of ram reserved in the ZONE_DMA 218 * HIGHMEM allocation will leave 224M/32 of ram reserved in ZONE_NORMAL 219 * HIGHMEM allocation will leave (224M+784M)/256 of ram reserved in ZONE_DMA 220 * 221 * TBD: should special case ZONE_DMA32 machines here - in those we normally 222 * don't need any ZONE_NORMAL reservation 223 */ 224 static int sysctl_lowmem_reserve_ratio[MAX_NR_ZONES] = { 225 #ifdef CONFIG_ZONE_DMA 226 [ZONE_DMA] = 256, 227 #endif 228 #ifdef CONFIG_ZONE_DMA32 229 [ZONE_DMA32] = 256, 230 #endif 231 [ZONE_NORMAL] = 32, 232 #ifdef CONFIG_HIGHMEM 233 [ZONE_HIGHMEM] = 0, 234 #endif 235 [ZONE_MOVABLE] = 0, 236 }; 237 238 char * const zone_names[MAX_NR_ZONES] = { 239 #ifdef CONFIG_ZONE_DMA 240 "DMA", 241 #endif 242 #ifdef CONFIG_ZONE_DMA32 243 "DMA32", 244 #endif 245 "Normal", 246 #ifdef CONFIG_HIGHMEM 247 "HighMem", 248 #endif 249 "Movable", 250 #ifdef CONFIG_ZONE_DEVICE 251 "Device", 252 #endif 253 }; 254 255 const char * const migratetype_names[MIGRATE_TYPES] = { 256 "Unmovable", 257 "Movable", 258 "Reclaimable", 259 "HighAtomic", 260 #ifdef CONFIG_CMA 261 "CMA", 262 #endif 263 #ifdef CONFIG_MEMORY_ISOLATION 264 "Isolate", 265 #endif 266 }; 267 268 int min_free_kbytes = 1024; 269 int user_min_free_kbytes = -1; 270 static int watermark_boost_factor __read_mostly = 15000; 271 static int watermark_scale_factor = 10; 272 int defrag_mode; 273 274 /* movable_zone is the "real" zone pages in ZONE_MOVABLE are taken from */ 275 int movable_zone; 276 EXPORT_SYMBOL(movable_zone); 277 278 #if MAX_NUMNODES > 1 279 unsigned int nr_node_ids __read_mostly = MAX_NUMNODES; 280 unsigned int nr_online_nodes __read_mostly = 1; 281 EXPORT_SYMBOL(nr_node_ids); 282 EXPORT_SYMBOL(nr_online_nodes); 283 #endif 284 285 static bool page_contains_unaccepted(struct page *page, unsigned int order); 286 static bool cond_accept_memory(struct zone *zone, unsigned int order, 287 int alloc_flags); 288 static bool __free_unaccepted(struct page *page); 289 290 int page_group_by_mobility_disabled __read_mostly; 291 292 #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT 293 /* 294 * During boot we initialize deferred pages on-demand, as needed, but once 295 * page_alloc_init_late() has finished, the deferred pages are all initialized, 296 * and we can permanently disable that path. 297 */ 298 DEFINE_STATIC_KEY_TRUE(deferred_pages); 299 300 /* 301 * deferred_grow_zone() is __init, but it is called from 302 * get_page_from_freelist() during early boot until deferred_pages permanently 303 * disables this call. This is why we have refdata wrapper to avoid warning, 304 * and to ensure that the function body gets unloaded. 305 */ 306 static bool __ref 307 _deferred_grow_zone(struct zone *zone, unsigned int order) 308 { 309 return deferred_grow_zone(zone, order); 310 } 311 #else 312 static inline bool _deferred_grow_zone(struct zone *zone, unsigned int order) 313 { 314 return false; 315 } 316 #endif /* CONFIG_DEFERRED_STRUCT_PAGE_INIT */ 317 318 /* Return a pointer to the bitmap storing bits affecting a block of pages */ 319 static inline unsigned long *get_pageblock_bitmap(const struct page *page, 320 unsigned long pfn) 321 { 322 #ifdef CONFIG_SPARSEMEM 323 return section_to_usemap(__pfn_to_section(pfn)); 324 #else 325 return page_zone(page)->pageblock_flags; 326 #endif /* CONFIG_SPARSEMEM */ 327 } 328 329 static inline int pfn_to_bitidx(const struct page *page, unsigned long pfn) 330 { 331 #ifdef CONFIG_SPARSEMEM 332 pfn &= (PAGES_PER_SECTION-1); 333 #else 334 pfn = pfn - pageblock_start_pfn(page_zone(page)->zone_start_pfn); 335 #endif /* CONFIG_SPARSEMEM */ 336 return (pfn >> pageblock_order) * NR_PAGEBLOCK_BITS; 337 } 338 339 static __always_inline bool is_standalone_pb_bit(enum pageblock_bits pb_bit) 340 { 341 return pb_bit >= PB_compact_skip && pb_bit < __NR_PAGEBLOCK_BITS; 342 } 343 344 static __always_inline void 345 get_pfnblock_bitmap_bitidx(const struct page *page, unsigned long pfn, 346 unsigned long **bitmap_word, unsigned long *bitidx) 347 { 348 unsigned long *bitmap; 349 unsigned long word_bitidx; 350 351 #ifdef CONFIG_MEMORY_ISOLATION 352 BUILD_BUG_ON(NR_PAGEBLOCK_BITS != 8); 353 #else 354 BUILD_BUG_ON(NR_PAGEBLOCK_BITS != 4); 355 #endif 356 BUILD_BUG_ON(__MIGRATE_TYPE_END > MIGRATETYPE_MASK); 357 VM_BUG_ON_PAGE(!zone_spans_pfn(page_zone(page), pfn), page); 358 359 bitmap = get_pageblock_bitmap(page, pfn); 360 *bitidx = pfn_to_bitidx(page, pfn); 361 word_bitidx = *bitidx / BITS_PER_LONG; 362 *bitidx &= (BITS_PER_LONG - 1); 363 *bitmap_word = &bitmap[word_bitidx]; 364 } 365 366 367 /** 368 * __get_pfnblock_flags_mask - Return the requested group of flags for 369 * a pageblock_nr_pages block of pages 370 * @page: The page within the block of interest 371 * @pfn: The target page frame number 372 * @mask: mask of bits that the caller is interested in 373 * 374 * Return: pageblock_bits flags 375 */ 376 static unsigned long __get_pfnblock_flags_mask(const struct page *page, 377 unsigned long pfn, 378 unsigned long mask) 379 { 380 unsigned long *bitmap_word; 381 unsigned long bitidx; 382 unsigned long word; 383 384 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx); 385 /* 386 * This races, without locks, with set_pfnblock_migratetype(). Ensure 387 * a consistent read of the memory array, so that results, even though 388 * racy, are not corrupted. 389 */ 390 word = READ_ONCE(*bitmap_word); 391 return (word >> bitidx) & mask; 392 } 393 394 /** 395 * get_pfnblock_bit - Check if a standalone bit of a pageblock is set 396 * @page: The page within the block of interest 397 * @pfn: The target page frame number 398 * @pb_bit: pageblock bit to check 399 * 400 * Return: true if the bit is set, otherwise false 401 */ 402 bool get_pfnblock_bit(const struct page *page, unsigned long pfn, 403 enum pageblock_bits pb_bit) 404 { 405 unsigned long *bitmap_word; 406 unsigned long bitidx; 407 408 if (WARN_ON_ONCE(!is_standalone_pb_bit(pb_bit))) 409 return false; 410 411 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx); 412 413 return test_bit(bitidx + pb_bit, bitmap_word); 414 } 415 416 /** 417 * get_pfnblock_migratetype - Return the migratetype of a pageblock 418 * @page: The page within the block of interest 419 * @pfn: The target page frame number 420 * 421 * Return: The migratetype of the pageblock 422 * 423 * Use get_pfnblock_migratetype() if caller already has both @page and @pfn 424 * to save a call to page_to_pfn(). 425 */ 426 __always_inline enum migratetype 427 get_pfnblock_migratetype(const struct page *page, unsigned long pfn) 428 { 429 unsigned long mask = MIGRATETYPE_AND_ISO_MASK; 430 unsigned long flags; 431 432 flags = __get_pfnblock_flags_mask(page, pfn, mask); 433 434 #ifdef CONFIG_MEMORY_ISOLATION 435 if (flags & BIT(PB_migrate_isolate)) 436 return MIGRATE_ISOLATE; 437 #endif 438 return flags & MIGRATETYPE_MASK; 439 } 440 441 /** 442 * __set_pfnblock_flags_mask - Set the requested group of flags for 443 * a pageblock_nr_pages block of pages 444 * @page: The page within the block of interest 445 * @pfn: The target page frame number 446 * @flags: The flags to set 447 * @mask: mask of bits that the caller is interested in 448 */ 449 static void __set_pfnblock_flags_mask(struct page *page, unsigned long pfn, 450 unsigned long flags, unsigned long mask) 451 { 452 unsigned long *bitmap_word; 453 unsigned long bitidx; 454 unsigned long word; 455 456 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx); 457 458 mask <<= bitidx; 459 flags <<= bitidx; 460 461 word = READ_ONCE(*bitmap_word); 462 do { 463 } while (!try_cmpxchg(bitmap_word, &word, (word & ~mask) | flags)); 464 } 465 466 /** 467 * set_pfnblock_bit - Set a standalone bit of a pageblock 468 * @page: The page within the block of interest 469 * @pfn: The target page frame number 470 * @pb_bit: pageblock bit to set 471 */ 472 void set_pfnblock_bit(const struct page *page, unsigned long pfn, 473 enum pageblock_bits pb_bit) 474 { 475 unsigned long *bitmap_word; 476 unsigned long bitidx; 477 478 if (WARN_ON_ONCE(!is_standalone_pb_bit(pb_bit))) 479 return; 480 481 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx); 482 483 set_bit(bitidx + pb_bit, bitmap_word); 484 } 485 486 /** 487 * clear_pfnblock_bit - Clear a standalone bit of a pageblock 488 * @page: The page within the block of interest 489 * @pfn: The target page frame number 490 * @pb_bit: pageblock bit to clear 491 */ 492 void clear_pfnblock_bit(const struct page *page, unsigned long pfn, 493 enum pageblock_bits pb_bit) 494 { 495 unsigned long *bitmap_word; 496 unsigned long bitidx; 497 498 if (WARN_ON_ONCE(!is_standalone_pb_bit(pb_bit))) 499 return; 500 501 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx); 502 503 clear_bit(bitidx + pb_bit, bitmap_word); 504 } 505 506 /** 507 * set_pageblock_migratetype - Set the migratetype of a pageblock 508 * @page: The page within the block of interest 509 * @migratetype: migratetype to set 510 */ 511 static void set_pageblock_migratetype(struct page *page, 512 enum migratetype migratetype) 513 { 514 if (unlikely(page_group_by_mobility_disabled && 515 migratetype < MIGRATE_PCPTYPES)) 516 migratetype = MIGRATE_UNMOVABLE; 517 518 #ifdef CONFIG_MEMORY_ISOLATION 519 if (migratetype == MIGRATE_ISOLATE) { 520 VM_WARN_ONCE(1, 521 "Use set_pageblock_isolate() for pageblock isolation"); 522 return; 523 } 524 VM_WARN_ONCE(get_pageblock_isolate(page), 525 "Use clear_pageblock_isolate() to unisolate pageblock"); 526 /* MIGRATETYPE_AND_ISO_MASK clears PB_migrate_isolate if it is set */ 527 #endif 528 __set_pfnblock_flags_mask(page, page_to_pfn(page), 529 (unsigned long)migratetype, 530 MIGRATETYPE_AND_ISO_MASK); 531 } 532 533 void __meminit init_pageblock_migratetype(struct page *page, 534 enum migratetype migratetype, 535 bool isolate) 536 { 537 unsigned long flags; 538 539 if (unlikely(page_group_by_mobility_disabled && 540 migratetype < MIGRATE_PCPTYPES)) 541 migratetype = MIGRATE_UNMOVABLE; 542 543 flags = migratetype; 544 545 #ifdef CONFIG_MEMORY_ISOLATION 546 if (migratetype == MIGRATE_ISOLATE) { 547 VM_WARN_ONCE( 548 1, 549 "Set isolate=true to isolate pageblock with a migratetype"); 550 return; 551 } 552 if (isolate) 553 flags |= BIT(PB_migrate_isolate); 554 #endif 555 __set_pfnblock_flags_mask(page, page_to_pfn(page), flags, 556 MIGRATETYPE_AND_ISO_MASK); 557 } 558 559 #ifdef CONFIG_DEBUG_VM 560 static int page_outside_zone_boundaries(struct zone *zone, struct page *page) 561 { 562 int ret; 563 unsigned seq; 564 unsigned long pfn = page_to_pfn(page); 565 unsigned long sp, start_pfn; 566 567 do { 568 seq = zone_span_seqbegin(zone); 569 start_pfn = zone->zone_start_pfn; 570 sp = zone->spanned_pages; 571 ret = !zone_spans_pfn(zone, pfn); 572 } while (zone_span_seqretry(zone, seq)); 573 574 if (ret) 575 pr_err("page 0x%lx outside node %d zone %s [ 0x%lx - 0x%lx ]\n", 576 pfn, zone_to_nid(zone), zone->name, 577 start_pfn, start_pfn + sp); 578 579 return ret; 580 } 581 582 /* 583 * Temporary debugging check for pages not lying within a given zone. 584 */ 585 static bool __maybe_unused bad_range(struct zone *zone, struct page *page) 586 { 587 if (page_outside_zone_boundaries(zone, page)) 588 return true; 589 if (zone != page_zone(page)) 590 return true; 591 592 return false; 593 } 594 #else 595 static inline bool __maybe_unused bad_range(struct zone *zone, struct page *page) 596 { 597 return false; 598 } 599 #endif 600 601 static void bad_page(struct page *page, const char *reason) 602 { 603 static unsigned long resume; 604 static unsigned long nr_shown; 605 static unsigned long nr_unshown; 606 607 /* 608 * Allow a burst of 60 reports, then keep quiet for that minute; 609 * or allow a steady drip of one report per second. 610 */ 611 if (nr_shown == 60) { 612 if (time_before(jiffies, resume)) { 613 nr_unshown++; 614 goto out; 615 } 616 if (nr_unshown) { 617 pr_alert( 618 "BUG: Bad page state: %lu messages suppressed\n", 619 nr_unshown); 620 nr_unshown = 0; 621 } 622 nr_shown = 0; 623 } 624 if (nr_shown++ == 0) 625 resume = jiffies + 60 * HZ; 626 627 pr_alert("BUG: Bad page state in process %s pfn:%05lx\n", 628 current->comm, page_to_pfn(page)); 629 dump_page(page, reason); 630 631 print_modules(); 632 dump_stack(); 633 out: 634 /* Leave bad fields for debug, except PageBuddy could make trouble */ 635 if (PageBuddy(page)) 636 __ClearPageBuddy(page); 637 add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE); 638 } 639 640 static inline unsigned int order_to_pindex(int migratetype, int order) 641 { 642 643 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 644 bool movable; 645 if (order > PAGE_ALLOC_COSTLY_ORDER) { 646 VM_BUG_ON(!is_pmd_order(order)); 647 648 movable = migratetype == MIGRATE_MOVABLE; 649 650 return NR_LOWORDER_PCP_LISTS + movable; 651 } 652 #else 653 VM_BUG_ON(order > PAGE_ALLOC_COSTLY_ORDER); 654 #endif 655 656 return (MIGRATE_PCPTYPES * order) + migratetype; 657 } 658 659 static inline int pindex_to_order(unsigned int pindex) 660 { 661 int order = pindex / MIGRATE_PCPTYPES; 662 663 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 664 if (pindex >= NR_LOWORDER_PCP_LISTS) 665 order = HPAGE_PMD_ORDER; 666 #else 667 VM_BUG_ON(order > PAGE_ALLOC_COSTLY_ORDER); 668 #endif 669 670 return order; 671 } 672 673 static inline bool pcp_allowed_order(unsigned int order) 674 { 675 if (order <= PAGE_ALLOC_COSTLY_ORDER) 676 return true; 677 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 678 if (is_pmd_order(order)) 679 return true; 680 #endif 681 return false; 682 } 683 684 /* 685 * Higher-order pages are called "compound pages". They are structured thusly: 686 * 687 * The first PAGE_SIZE page is called the "head page" and have PG_head set. 688 * 689 * The remaining PAGE_SIZE pages are called "tail pages". PageTail() is encoded 690 * in bit 0 of page->compound_info. The rest of bits is pointer to head page. 691 * 692 * The first tail page's ->compound_order holds the order of allocation. 693 * This usage means that zero-order pages may not be compound. 694 */ 695 696 void prep_compound_page(struct page *page, unsigned int order) 697 { 698 int i; 699 int nr_pages = 1 << order; 700 701 __SetPageHead(page); 702 for (i = 1; i < nr_pages; i++) 703 prep_compound_tail(page + i, page, order); 704 705 prep_compound_head(page, order); 706 } 707 708 static inline void set_buddy_order(struct page *page, unsigned int order) 709 { 710 set_page_private(page, order); 711 __SetPageBuddy(page); 712 } 713 714 #ifdef CONFIG_COMPACTION 715 static inline struct capture_control *task_capc(struct zone *zone) 716 { 717 struct capture_control *capc = current->capture_control; 718 719 return unlikely(capc) && 720 !(current->flags & PF_KTHREAD) && 721 !capc->page && 722 capc->cc->zone == zone ? capc : NULL; 723 } 724 725 static inline bool 726 compaction_capture(struct capture_control *capc, struct page *page, 727 int order, int migratetype) 728 { 729 if (!capc || order != capc->cc->order) 730 return false; 731 732 /* Do not accidentally pollute CMA or isolated regions*/ 733 if (is_migrate_cma(migratetype) || 734 is_migrate_isolate(migratetype)) 735 return false; 736 737 /* 738 * Do not let lower order allocations pollute a movable pageblock 739 * unless compaction is also requesting movable pages. 740 * This might let an unmovable request use a reclaimable pageblock 741 * and vice-versa but no more than normal fallback logic which can 742 * have trouble finding a high-order free page. 743 */ 744 if (order < pageblock_order && migratetype == MIGRATE_MOVABLE && 745 capc->cc->migratetype != MIGRATE_MOVABLE) 746 return false; 747 748 if (migratetype != capc->cc->migratetype) 749 trace_mm_page_alloc_extfrag(page, capc->cc->order, order, 750 capc->cc->migratetype, migratetype); 751 752 capc->page = page; 753 return true; 754 } 755 756 #else 757 static inline struct capture_control *task_capc(struct zone *zone) 758 { 759 return NULL; 760 } 761 762 static inline bool 763 compaction_capture(struct capture_control *capc, struct page *page, 764 int order, int migratetype) 765 { 766 return false; 767 } 768 #endif /* CONFIG_COMPACTION */ 769 770 static inline void account_freepages(struct zone *zone, int nr_pages, 771 int migratetype) 772 { 773 lockdep_assert_held(&zone->lock); 774 775 if (is_migrate_isolate(migratetype)) 776 return; 777 778 __mod_zone_page_state(zone, NR_FREE_PAGES, nr_pages); 779 780 if (is_migrate_cma(migratetype)) 781 __mod_zone_page_state(zone, NR_FREE_CMA_PAGES, nr_pages); 782 else if (migratetype == MIGRATE_HIGHATOMIC) 783 WRITE_ONCE(zone->nr_free_highatomic, 784 zone->nr_free_highatomic + nr_pages); 785 } 786 787 /* Used for pages not on another list */ 788 static inline void __add_to_free_list(struct page *page, struct zone *zone, 789 unsigned int order, int migratetype, 790 bool tail) 791 { 792 struct free_area *area = &zone->free_area[order]; 793 int nr_pages = 1 << order; 794 795 VM_WARN_ONCE(get_pageblock_migratetype(page) != migratetype, 796 "page type is %d, passed migratetype is %d (nr=%d)\n", 797 get_pageblock_migratetype(page), migratetype, nr_pages); 798 799 if (tail) 800 list_add_tail(&page->buddy_list, &area->free_list[migratetype]); 801 else 802 list_add(&page->buddy_list, &area->free_list[migratetype]); 803 area->nr_free++; 804 805 if (order >= pageblock_order && !is_migrate_isolate(migratetype)) 806 __mod_zone_page_state(zone, NR_FREE_PAGES_BLOCKS, nr_pages); 807 } 808 809 /* 810 * Used for pages which are on another list. Move the pages to the tail 811 * of the list - so the moved pages won't immediately be considered for 812 * allocation again (e.g., optimization for memory onlining). 813 */ 814 static inline void move_to_free_list(struct page *page, struct zone *zone, 815 unsigned int order, int old_mt, int new_mt) 816 { 817 struct free_area *area = &zone->free_area[order]; 818 int nr_pages = 1 << order; 819 820 /* Free page moving can fail, so it happens before the type update */ 821 VM_WARN_ONCE(get_pageblock_migratetype(page) != old_mt, 822 "page type is %d, passed migratetype is %d (nr=%d)\n", 823 get_pageblock_migratetype(page), old_mt, nr_pages); 824 825 list_move_tail(&page->buddy_list, &area->free_list[new_mt]); 826 827 account_freepages(zone, -nr_pages, old_mt); 828 account_freepages(zone, nr_pages, new_mt); 829 830 if (order >= pageblock_order && 831 is_migrate_isolate(old_mt) != is_migrate_isolate(new_mt)) { 832 if (!is_migrate_isolate(old_mt)) 833 nr_pages = -nr_pages; 834 __mod_zone_page_state(zone, NR_FREE_PAGES_BLOCKS, nr_pages); 835 } 836 } 837 838 static inline void __del_page_from_free_list(struct page *page, struct zone *zone, 839 unsigned int order, int migratetype) 840 { 841 int nr_pages = 1 << order; 842 843 VM_WARN_ONCE(get_pageblock_migratetype(page) != migratetype, 844 "page type is %d, passed migratetype is %d (nr=%d)\n", 845 get_pageblock_migratetype(page), migratetype, nr_pages); 846 847 /* clear reported state and update reported page count */ 848 if (page_reported(page)) 849 __ClearPageReported(page); 850 851 list_del(&page->buddy_list); 852 __ClearPageBuddy(page); 853 set_page_private(page, 0); 854 zone->free_area[order].nr_free--; 855 856 if (order >= pageblock_order && !is_migrate_isolate(migratetype)) 857 __mod_zone_page_state(zone, NR_FREE_PAGES_BLOCKS, -nr_pages); 858 } 859 860 static inline void del_page_from_free_list(struct page *page, struct zone *zone, 861 unsigned int order, int migratetype) 862 { 863 __del_page_from_free_list(page, zone, order, migratetype); 864 account_freepages(zone, -(1 << order), migratetype); 865 } 866 867 static inline struct page *get_page_from_free_area(struct free_area *area, 868 int migratetype) 869 { 870 return list_first_entry_or_null(&area->free_list[migratetype], 871 struct page, buddy_list); 872 } 873 874 /* 875 * If this is less than the 2nd largest possible page, check if the buddy 876 * of the next-higher order is free. If it is, it's possible 877 * that pages are being freed that will coalesce soon. In case, 878 * that is happening, add the free page to the tail of the list 879 * so it's less likely to be used soon and more likely to be merged 880 * as a 2-level higher order page 881 */ 882 static inline bool 883 buddy_merge_likely(unsigned long pfn, unsigned long buddy_pfn, 884 struct page *page, unsigned int order) 885 { 886 unsigned long higher_page_pfn; 887 struct page *higher_page; 888 889 if (order >= MAX_PAGE_ORDER - 1) 890 return false; 891 892 higher_page_pfn = buddy_pfn & pfn; 893 higher_page = page + (higher_page_pfn - pfn); 894 895 return find_buddy_page_pfn(higher_page, higher_page_pfn, order + 1, 896 NULL) != NULL; 897 } 898 899 static void change_pageblock_range(struct page *pageblock_page, 900 int start_order, int migratetype) 901 { 902 int nr_pageblocks = 1 << (start_order - pageblock_order); 903 904 while (nr_pageblocks--) { 905 set_pageblock_migratetype(pageblock_page, migratetype); 906 pageblock_page += pageblock_nr_pages; 907 } 908 } 909 910 /* 911 * Freeing function for a buddy system allocator. 912 * 913 * The concept of a buddy system is to maintain direct-mapped table 914 * (containing bit values) for memory blocks of various "orders". 915 * The bottom level table contains the map for the smallest allocatable 916 * units of memory (here, pages), and each level above it describes 917 * pairs of units from the levels below, hence, "buddies". 918 * At a high level, all that happens here is marking the table entry 919 * at the bottom level available, and propagating the changes upward 920 * as necessary, plus some accounting needed to play nicely with other 921 * parts of the VM system. 922 * At each level, we keep a list of pages, which are heads of continuous 923 * free pages of length of (1 << order) and marked with PageBuddy. 924 * Page's order is recorded in page_private(page) field. 925 * So when we are allocating or freeing one, we can derive the state of the 926 * other. That is, if we allocate a small block, and both were 927 * free, the remainder of the region must be split into blocks. 928 * If a block is freed, and its buddy is also free, then this 929 * triggers coalescing into a block of larger size. 930 * 931 * -- nyc 932 */ 933 934 static inline void __free_one_page(struct page *page, 935 unsigned long pfn, 936 struct zone *zone, unsigned int order, 937 int migratetype, fpi_t fpi_flags) 938 { 939 struct capture_control *capc = task_capc(zone); 940 unsigned long buddy_pfn = 0; 941 unsigned long combined_pfn; 942 struct page *buddy; 943 bool to_tail; 944 945 VM_BUG_ON(!zone_is_initialized(zone)); 946 VM_BUG_ON_PAGE(page->flags.f & PAGE_FLAGS_CHECK_AT_PREP, page); 947 948 VM_BUG_ON(migratetype == -1); 949 VM_BUG_ON_PAGE(pfn & ((1 << order) - 1), page); 950 VM_BUG_ON_PAGE(bad_range(zone, page), page); 951 952 account_freepages(zone, 1 << order, migratetype); 953 954 while (order < MAX_PAGE_ORDER) { 955 int buddy_mt = migratetype; 956 957 if (compaction_capture(capc, page, order, migratetype)) { 958 account_freepages(zone, -(1 << order), migratetype); 959 return; 960 } 961 962 buddy = find_buddy_page_pfn(page, pfn, order, &buddy_pfn); 963 if (!buddy) 964 goto done_merging; 965 966 if (unlikely(order >= pageblock_order)) { 967 /* 968 * We want to prevent merge between freepages on pageblock 969 * without fallbacks and normal pageblock. Without this, 970 * pageblock isolation could cause incorrect freepage or CMA 971 * accounting or HIGHATOMIC accounting. 972 */ 973 buddy_mt = get_pfnblock_migratetype(buddy, buddy_pfn); 974 975 if (migratetype != buddy_mt && 976 (!migratetype_is_mergeable(migratetype) || 977 !migratetype_is_mergeable(buddy_mt))) 978 goto done_merging; 979 } 980 981 /* 982 * Our buddy is free or it is CONFIG_DEBUG_PAGEALLOC guard page, 983 * merge with it and move up one order. 984 */ 985 if (page_is_guard(buddy)) 986 clear_page_guard(zone, buddy, order); 987 else 988 __del_page_from_free_list(buddy, zone, order, buddy_mt); 989 990 if (unlikely(buddy_mt != migratetype)) { 991 /* 992 * Match buddy type. This ensures that an 993 * expand() down the line puts the sub-blocks 994 * on the right freelists. 995 */ 996 change_pageblock_range(buddy, order, migratetype); 997 } 998 999 combined_pfn = buddy_pfn & pfn; 1000 page = page + (combined_pfn - pfn); 1001 pfn = combined_pfn; 1002 order++; 1003 } 1004 1005 done_merging: 1006 set_buddy_order(page, order); 1007 1008 if (fpi_flags & FPI_TO_TAIL) 1009 to_tail = true; 1010 else if (is_shuffle_order(order)) 1011 to_tail = shuffle_pick_tail(); 1012 else 1013 to_tail = buddy_merge_likely(pfn, buddy_pfn, page, order); 1014 1015 __add_to_free_list(page, zone, order, migratetype, to_tail); 1016 1017 /* Notify page reporting subsystem of freed page */ 1018 if (!(fpi_flags & FPI_SKIP_REPORT_NOTIFY)) 1019 page_reporting_notify_free(order); 1020 } 1021 1022 /* 1023 * A bad page could be due to a number of fields. Instead of multiple branches, 1024 * try and check multiple fields with one check. The caller must do a detailed 1025 * check if necessary. 1026 */ 1027 static inline bool page_expected_state(struct page *page, 1028 unsigned long check_flags) 1029 { 1030 if (unlikely(atomic_read(&page->_mapcount) != -1)) 1031 return false; 1032 1033 if (unlikely((unsigned long)page->mapping | 1034 page_ref_count(page) | 1035 #ifdef CONFIG_MEMCG 1036 page->memcg_data | 1037 #endif 1038 page_pool_page_is_pp(page) | 1039 (page->flags.f & check_flags))) 1040 return false; 1041 1042 return true; 1043 } 1044 1045 static const char *page_bad_reason(struct page *page, unsigned long flags) 1046 { 1047 const char *bad_reason = NULL; 1048 1049 if (unlikely(atomic_read(&page->_mapcount) != -1)) 1050 bad_reason = "nonzero mapcount"; 1051 if (unlikely(page->mapping != NULL)) 1052 bad_reason = "non-NULL mapping"; 1053 if (unlikely(page_ref_count(page) != 0)) 1054 bad_reason = "nonzero _refcount"; 1055 if (unlikely(page->flags.f & flags)) { 1056 if (flags == PAGE_FLAGS_CHECK_AT_PREP) 1057 bad_reason = "PAGE_FLAGS_CHECK_AT_PREP flag(s) set"; 1058 else 1059 bad_reason = "PAGE_FLAGS_CHECK_AT_FREE flag(s) set"; 1060 } 1061 #ifdef CONFIG_MEMCG 1062 if (unlikely(page->memcg_data)) 1063 bad_reason = "page still charged to cgroup"; 1064 #endif 1065 if (unlikely(page_pool_page_is_pp(page))) 1066 bad_reason = "page_pool leak"; 1067 return bad_reason; 1068 } 1069 1070 static inline bool free_page_is_bad(struct page *page) 1071 { 1072 if (likely(page_expected_state(page, PAGE_FLAGS_CHECK_AT_FREE))) 1073 return false; 1074 1075 /* Something has gone sideways, find it */ 1076 bad_page(page, page_bad_reason(page, PAGE_FLAGS_CHECK_AT_FREE)); 1077 return true; 1078 } 1079 1080 static inline bool is_check_pages_enabled(void) 1081 { 1082 return static_branch_unlikely(&check_pages_enabled); 1083 } 1084 1085 static int free_tail_page_prepare(struct page *head_page, struct page *page) 1086 { 1087 struct folio *folio = (struct folio *)head_page; 1088 int ret = 1; 1089 1090 /* 1091 * We rely page->lru.next never has bit 0 set, unless the page 1092 * is PageTail(). Let's make sure that's true even for poisoned ->lru. 1093 */ 1094 BUILD_BUG_ON((unsigned long)LIST_POISON1 & 1); 1095 1096 if (!is_check_pages_enabled()) { 1097 ret = 0; 1098 goto out; 1099 } 1100 switch (page - head_page) { 1101 case 1: 1102 /* the first tail page: these may be in place of ->mapping */ 1103 if (unlikely(folio_large_mapcount(folio))) { 1104 bad_page(page, "nonzero large_mapcount"); 1105 goto out; 1106 } 1107 if (IS_ENABLED(CONFIG_PAGE_MAPCOUNT) && 1108 unlikely(atomic_read(&folio->_nr_pages_mapped))) { 1109 bad_page(page, "nonzero nr_pages_mapped"); 1110 goto out; 1111 } 1112 if (IS_ENABLED(CONFIG_MM_ID)) { 1113 if (unlikely(folio->_mm_id_mapcount[0] != -1)) { 1114 bad_page(page, "nonzero mm mapcount 0"); 1115 goto out; 1116 } 1117 if (unlikely(folio->_mm_id_mapcount[1] != -1)) { 1118 bad_page(page, "nonzero mm mapcount 1"); 1119 goto out; 1120 } 1121 } 1122 if (IS_ENABLED(CONFIG_64BIT)) { 1123 if (unlikely(atomic_read(&folio->_entire_mapcount) + 1)) { 1124 bad_page(page, "nonzero entire_mapcount"); 1125 goto out; 1126 } 1127 if (unlikely(atomic_read(&folio->_pincount))) { 1128 bad_page(page, "nonzero pincount"); 1129 goto out; 1130 } 1131 } 1132 break; 1133 case 2: 1134 /* the second tail page: deferred_list overlaps ->mapping */ 1135 if (unlikely(!list_empty(&folio->_deferred_list))) { 1136 bad_page(page, "on deferred list"); 1137 goto out; 1138 } 1139 if (!IS_ENABLED(CONFIG_64BIT)) { 1140 if (unlikely(atomic_read(&folio->_entire_mapcount) + 1)) { 1141 bad_page(page, "nonzero entire_mapcount"); 1142 goto out; 1143 } 1144 if (unlikely(atomic_read(&folio->_pincount))) { 1145 bad_page(page, "nonzero pincount"); 1146 goto out; 1147 } 1148 } 1149 break; 1150 case 3: 1151 /* the third tail page: hugetlb specifics overlap ->mappings */ 1152 if (IS_ENABLED(CONFIG_HUGETLB_PAGE)) 1153 break; 1154 fallthrough; 1155 default: 1156 if (page->mapping != TAIL_MAPPING) { 1157 bad_page(page, "corrupted mapping in tail page"); 1158 goto out; 1159 } 1160 break; 1161 } 1162 if (unlikely(!PageTail(page))) { 1163 bad_page(page, "PageTail not set"); 1164 goto out; 1165 } 1166 if (unlikely(compound_head(page) != head_page)) { 1167 bad_page(page, "compound_head not consistent"); 1168 goto out; 1169 } 1170 ret = 0; 1171 out: 1172 page->mapping = NULL; 1173 clear_compound_head(page); 1174 return ret; 1175 } 1176 1177 /* 1178 * Skip KASAN memory poisoning when either: 1179 * 1180 * 1. For generic KASAN: deferred memory initialization has not yet completed. 1181 * Tag-based KASAN modes skip pages freed via deferred memory initialization 1182 * using page tags instead (see below). 1183 * 2. For tag-based KASAN modes: the page has a match-all KASAN tag, indicating 1184 * that error detection is disabled for accesses via the page address. 1185 * 1186 * Pages will have match-all tags in the following circumstances: 1187 * 1188 * 1. Pages are being initialized for the first time, including during deferred 1189 * memory init; see the call to page_kasan_tag_reset in __init_single_page. 1190 * 2. The allocation was not unpoisoned due to __GFP_SKIP_KASAN, with the 1191 * exception of pages unpoisoned by kasan_unpoison_vmalloc. 1192 * 3. The allocation was excluded from being checked due to sampling, 1193 * see the call to kasan_unpoison_pages. 1194 * 1195 * Poisoning pages during deferred memory init will greatly lengthen the 1196 * process and cause problem in large memory systems as the deferred pages 1197 * initialization is done with interrupt disabled. 1198 * 1199 * Assuming that there will be no reference to those newly initialized 1200 * pages before they are ever allocated, this should have no effect on 1201 * KASAN memory tracking as the poison will be properly inserted at page 1202 * allocation time. The only corner case is when pages are allocated by 1203 * on-demand allocation and then freed again before the deferred pages 1204 * initialization is done, but this is not likely to happen. 1205 */ 1206 static inline bool should_skip_kasan_poison(struct page *page) 1207 { 1208 if (IS_ENABLED(CONFIG_KASAN_GENERIC)) 1209 return deferred_pages_enabled(); 1210 1211 return page_kasan_tag(page) == KASAN_TAG_KERNEL; 1212 } 1213 1214 static void kernel_init_pages(struct page *page, int numpages) 1215 { 1216 int i; 1217 1218 /* s390's use of memset() could override KASAN redzones. */ 1219 kasan_disable_current(); 1220 for (i = 0; i < numpages; i++) 1221 clear_highpage_kasan_tagged(page + i); 1222 kasan_enable_current(); 1223 } 1224 1225 #ifdef CONFIG_MEM_ALLOC_PROFILING 1226 1227 /* Should be called only if mem_alloc_profiling_enabled() */ 1228 void __clear_page_tag_ref(struct page *page) 1229 { 1230 union pgtag_ref_handle handle; 1231 union codetag_ref ref; 1232 1233 if (get_page_tag_ref(page, &ref, &handle)) { 1234 set_codetag_empty(&ref); 1235 update_page_tag_ref(handle, &ref); 1236 put_page_tag_ref(handle); 1237 } 1238 } 1239 1240 /* Should be called only if mem_alloc_profiling_enabled() */ 1241 static noinline 1242 void __pgalloc_tag_add(struct page *page, struct task_struct *task, 1243 unsigned int nr) 1244 { 1245 union pgtag_ref_handle handle; 1246 union codetag_ref ref; 1247 1248 if (likely(get_page_tag_ref(page, &ref, &handle))) { 1249 alloc_tag_add(&ref, task->alloc_tag, PAGE_SIZE * nr); 1250 update_page_tag_ref(handle, &ref); 1251 put_page_tag_ref(handle); 1252 } else { 1253 /* 1254 * page_ext is not available yet, record the pfn so we can 1255 * clear the tag ref later when page_ext is initialized. 1256 */ 1257 alloc_tag_add_early_pfn(page_to_pfn(page)); 1258 if (task->alloc_tag) 1259 alloc_tag_set_inaccurate(task->alloc_tag); 1260 } 1261 } 1262 1263 static inline void pgalloc_tag_add(struct page *page, struct task_struct *task, 1264 unsigned int nr) 1265 { 1266 if (mem_alloc_profiling_enabled()) 1267 __pgalloc_tag_add(page, task, nr); 1268 } 1269 1270 /* Should be called only if mem_alloc_profiling_enabled() */ 1271 static noinline 1272 void __pgalloc_tag_sub(struct page *page, unsigned int nr) 1273 { 1274 union pgtag_ref_handle handle; 1275 union codetag_ref ref; 1276 1277 if (get_page_tag_ref(page, &ref, &handle)) { 1278 alloc_tag_sub(&ref, PAGE_SIZE * nr); 1279 update_page_tag_ref(handle, &ref); 1280 put_page_tag_ref(handle); 1281 } 1282 } 1283 1284 static inline void pgalloc_tag_sub(struct page *page, unsigned int nr) 1285 { 1286 if (mem_alloc_profiling_enabled()) 1287 __pgalloc_tag_sub(page, nr); 1288 } 1289 1290 /* When tag is not NULL, assuming mem_alloc_profiling_enabled */ 1291 static inline void pgalloc_tag_sub_pages(struct alloc_tag *tag, unsigned int nr) 1292 { 1293 if (tag) 1294 this_cpu_sub(tag->counters->bytes, PAGE_SIZE * nr); 1295 } 1296 1297 #else /* CONFIG_MEM_ALLOC_PROFILING */ 1298 1299 static inline void pgalloc_tag_add(struct page *page, struct task_struct *task, 1300 unsigned int nr) {} 1301 static inline void pgalloc_tag_sub(struct page *page, unsigned int nr) {} 1302 static inline void pgalloc_tag_sub_pages(struct alloc_tag *tag, unsigned int nr) {} 1303 1304 #endif /* CONFIG_MEM_ALLOC_PROFILING */ 1305 1306 __always_inline bool __free_pages_prepare(struct page *page, 1307 unsigned int order, fpi_t fpi_flags) 1308 { 1309 int bad = 0; 1310 bool skip_kasan_poison = should_skip_kasan_poison(page); 1311 bool init = want_init_on_free(); 1312 bool compound = PageCompound(page); 1313 struct folio *folio = page_folio(page); 1314 1315 VM_BUG_ON_PAGE(PageTail(page), page); 1316 1317 trace_mm_page_free(page, order); 1318 kmsan_free_page(page, order); 1319 1320 if (memcg_kmem_online() && PageMemcgKmem(page)) 1321 __memcg_kmem_uncharge_page(page, order); 1322 1323 /* 1324 * In rare cases, when truncation or holepunching raced with 1325 * munlock after VM_LOCKED was cleared, Mlocked may still be 1326 * found set here. This does not indicate a problem, unless 1327 * "unevictable_pgs_cleared" appears worryingly large. 1328 */ 1329 if (unlikely(folio_test_mlocked(folio))) { 1330 long nr_pages = folio_nr_pages(folio); 1331 1332 __folio_clear_mlocked(folio); 1333 zone_stat_mod_folio(folio, NR_MLOCK, -nr_pages); 1334 count_vm_events(UNEVICTABLE_PGCLEARED, nr_pages); 1335 } 1336 1337 if (unlikely(PageHWPoison(page)) && !order) { 1338 /* Do not let hwpoison pages hit pcplists/buddy */ 1339 reset_page_owner(page, order); 1340 page_table_check_free(page, order); 1341 pgalloc_tag_sub(page, 1 << order); 1342 1343 /* 1344 * The page is isolated and accounted for. 1345 * Mark the codetag as empty to avoid accounting error 1346 * when the page is freed by unpoison_memory(). 1347 */ 1348 clear_page_tag_ref(page); 1349 return false; 1350 } 1351 1352 VM_BUG_ON_PAGE(compound && compound_order(page) != order, page); 1353 1354 /* 1355 * Check tail pages before head page information is cleared to 1356 * avoid checking PageCompound for order-0 pages. 1357 */ 1358 if (unlikely(order)) { 1359 int i; 1360 1361 if (compound) { 1362 page[1].flags.f &= ~PAGE_FLAGS_SECOND; 1363 #ifdef NR_PAGES_IN_LARGE_FOLIO 1364 folio->_nr_pages = 0; 1365 #endif 1366 } 1367 for (i = 1; i < (1 << order); i++) { 1368 if (compound) 1369 bad += free_tail_page_prepare(page, page + i); 1370 if (is_check_pages_enabled()) { 1371 if (free_page_is_bad(page + i)) { 1372 bad++; 1373 continue; 1374 } 1375 } 1376 (page + i)->flags.f &= ~PAGE_FLAGS_CHECK_AT_PREP; 1377 } 1378 } 1379 if (folio_test_anon(folio)) { 1380 mod_mthp_stat(order, MTHP_STAT_NR_ANON, -1); 1381 folio->mapping = NULL; 1382 } 1383 if (unlikely(page_has_type(page))) 1384 /* Reset the page_type (which overlays _mapcount) */ 1385 page->page_type = UINT_MAX; 1386 1387 if (is_check_pages_enabled()) { 1388 if (free_page_is_bad(page)) 1389 bad++; 1390 if (bad) 1391 return false; 1392 } 1393 1394 page_cpupid_reset_last(page); 1395 page->flags.f &= ~PAGE_FLAGS_CHECK_AT_PREP; 1396 page->private = 0; 1397 reset_page_owner(page, order); 1398 page_table_check_free(page, order); 1399 pgalloc_tag_sub(page, 1 << order); 1400 1401 if (!PageHighMem(page) && !(fpi_flags & FPI_TRYLOCK)) { 1402 debug_check_no_locks_freed(page_address(page), 1403 PAGE_SIZE << order); 1404 debug_check_no_obj_freed(page_address(page), 1405 PAGE_SIZE << order); 1406 } 1407 1408 kernel_poison_pages(page, 1 << order); 1409 1410 /* 1411 * As memory initialization might be integrated into KASAN, 1412 * KASAN poisoning and memory initialization code must be 1413 * kept together to avoid discrepancies in behavior. 1414 * 1415 * With hardware tag-based KASAN, memory tags must be set before the 1416 * page becomes unavailable via debug_pagealloc or arch_free_page. 1417 */ 1418 if (!skip_kasan_poison) { 1419 kasan_poison_pages(page, order, init); 1420 1421 /* Memory is already initialized if KASAN did it internally. */ 1422 if (kasan_has_integrated_init()) 1423 init = false; 1424 } 1425 if (init) 1426 kernel_init_pages(page, 1 << order); 1427 1428 /* 1429 * arch_free_page() can make the page's contents inaccessible. s390 1430 * does this. So nothing which can access the page's contents should 1431 * happen after this. 1432 */ 1433 arch_free_page(page, order); 1434 1435 debug_pagealloc_unmap_pages(page, 1 << order); 1436 1437 return true; 1438 } 1439 1440 bool free_pages_prepare(struct page *page, unsigned int order) 1441 { 1442 return __free_pages_prepare(page, order, FPI_NONE); 1443 } 1444 1445 /* 1446 * Frees a number of pages from the PCP lists 1447 * Assumes all pages on list are in same zone. 1448 * count is the number of pages to free. 1449 */ 1450 static void free_pcppages_bulk(struct zone *zone, int count, 1451 struct per_cpu_pages *pcp, 1452 int pindex) 1453 { 1454 unsigned long flags; 1455 unsigned int order; 1456 struct page *page; 1457 1458 /* 1459 * Ensure proper count is passed which otherwise would stuck in the 1460 * below while (list_empty(list)) loop. 1461 */ 1462 count = min(pcp->count, count); 1463 1464 /* Ensure requested pindex is drained first. */ 1465 pindex = pindex - 1; 1466 1467 spin_lock_irqsave(&zone->lock, flags); 1468 1469 while (count > 0) { 1470 struct list_head *list; 1471 int nr_pages; 1472 1473 /* Remove pages from lists in a round-robin fashion. */ 1474 do { 1475 if (++pindex > NR_PCP_LISTS - 1) 1476 pindex = 0; 1477 list = &pcp->lists[pindex]; 1478 } while (list_empty(list)); 1479 1480 order = pindex_to_order(pindex); 1481 nr_pages = 1 << order; 1482 do { 1483 unsigned long pfn; 1484 int mt; 1485 1486 page = list_last_entry(list, struct page, pcp_list); 1487 pfn = page_to_pfn(page); 1488 mt = get_pfnblock_migratetype(page, pfn); 1489 1490 /* must delete to avoid corrupting pcp list */ 1491 list_del(&page->pcp_list); 1492 count -= nr_pages; 1493 pcp->count -= nr_pages; 1494 1495 __free_one_page(page, pfn, zone, order, mt, FPI_NONE); 1496 trace_mm_page_pcpu_drain(page, order, mt); 1497 } while (count > 0 && !list_empty(list)); 1498 } 1499 1500 spin_unlock_irqrestore(&zone->lock, flags); 1501 } 1502 1503 /* Split a multi-block free page into its individual pageblocks. */ 1504 static void split_large_buddy(struct zone *zone, struct page *page, 1505 unsigned long pfn, int order, fpi_t fpi) 1506 { 1507 unsigned long end = pfn + (1 << order); 1508 1509 VM_WARN_ON_ONCE(!IS_ALIGNED(pfn, 1 << order)); 1510 /* Caller removed page from freelist, buddy info cleared! */ 1511 VM_WARN_ON_ONCE(PageBuddy(page)); 1512 1513 if (order > pageblock_order) 1514 order = pageblock_order; 1515 1516 do { 1517 int mt = get_pfnblock_migratetype(page, pfn); 1518 1519 __free_one_page(page, pfn, zone, order, mt, fpi); 1520 pfn += 1 << order; 1521 if (pfn == end) 1522 break; 1523 page = pfn_to_page(pfn); 1524 } while (1); 1525 } 1526 1527 static void add_page_to_zone_llist(struct zone *zone, struct page *page, 1528 unsigned int order) 1529 { 1530 /* Remember the order */ 1531 page->private = order; 1532 /* Add the page to the free list */ 1533 llist_add(&page->pcp_llist, &zone->trylock_free_pages); 1534 } 1535 1536 static void free_one_page(struct zone *zone, struct page *page, 1537 unsigned long pfn, unsigned int order, 1538 fpi_t fpi_flags) 1539 { 1540 struct llist_head *llhead; 1541 unsigned long flags; 1542 1543 if (unlikely(fpi_flags & FPI_TRYLOCK)) { 1544 if (!spin_trylock_irqsave(&zone->lock, flags)) { 1545 add_page_to_zone_llist(zone, page, order); 1546 return; 1547 } 1548 } else { 1549 spin_lock_irqsave(&zone->lock, flags); 1550 } 1551 1552 /* The lock succeeded. Process deferred pages. */ 1553 llhead = &zone->trylock_free_pages; 1554 if (unlikely(!llist_empty(llhead) && !(fpi_flags & FPI_TRYLOCK))) { 1555 struct llist_node *llnode; 1556 struct page *p, *tmp; 1557 1558 llnode = llist_del_all(llhead); 1559 llist_for_each_entry_safe(p, tmp, llnode, pcp_llist) { 1560 unsigned int p_order = p->private; 1561 1562 split_large_buddy(zone, p, page_to_pfn(p), p_order, fpi_flags); 1563 __count_vm_events(PGFREE, 1 << p_order); 1564 } 1565 } 1566 split_large_buddy(zone, page, pfn, order, fpi_flags); 1567 spin_unlock_irqrestore(&zone->lock, flags); 1568 1569 __count_vm_events(PGFREE, 1 << order); 1570 } 1571 1572 static void __free_pages_ok(struct page *page, unsigned int order, 1573 fpi_t fpi_flags) 1574 { 1575 unsigned long pfn = page_to_pfn(page); 1576 struct zone *zone = page_zone(page); 1577 1578 if (__free_pages_prepare(page, order, fpi_flags)) 1579 free_one_page(zone, page, pfn, order, fpi_flags); 1580 } 1581 1582 void __meminit __free_pages_core(struct page *page, unsigned int order, 1583 enum meminit_context context) 1584 { 1585 unsigned int nr_pages = 1 << order; 1586 struct page *p = page; 1587 unsigned int loop; 1588 1589 /* 1590 * When initializing the memmap, __init_single_page() sets the refcount 1591 * of all pages to 1 ("allocated"/"not free"). We have to set the 1592 * refcount of all involved pages to 0. 1593 * 1594 * Note that hotplugged memory pages are initialized to PageOffline(). 1595 * Pages freed from memblock might be marked as reserved. 1596 */ 1597 if (IS_ENABLED(CONFIG_MEMORY_HOTPLUG) && 1598 unlikely(context == MEMINIT_HOTPLUG)) { 1599 for (loop = 0; loop < nr_pages; loop++, p++) { 1600 VM_WARN_ON_ONCE(PageReserved(p)); 1601 __ClearPageOffline(p); 1602 set_page_count(p, 0); 1603 } 1604 1605 adjust_managed_page_count(page, nr_pages); 1606 } else { 1607 for (loop = 0; loop < nr_pages; loop++, p++) { 1608 __ClearPageReserved(p); 1609 set_page_count(p, 0); 1610 } 1611 1612 /* memblock adjusts totalram_pages() manually. */ 1613 atomic_long_add(nr_pages, &page_zone(page)->managed_pages); 1614 } 1615 1616 if (page_contains_unaccepted(page, order)) { 1617 if (order == MAX_PAGE_ORDER && __free_unaccepted(page)) 1618 return; 1619 1620 accept_memory(page_to_phys(page), PAGE_SIZE << order); 1621 } 1622 1623 /* 1624 * Bypass PCP and place fresh pages right to the tail, primarily 1625 * relevant for memory onlining. 1626 */ 1627 __free_pages_ok(page, order, FPI_TO_TAIL); 1628 } 1629 1630 /* 1631 * Check that the whole (or subset of) a pageblock given by the interval of 1632 * [start_pfn, end_pfn) is valid and within the same zone, before scanning it 1633 * with the migration of free compaction scanner. 1634 * 1635 * Return struct page pointer of start_pfn, or NULL if checks were not passed. 1636 * 1637 * It's possible on some configurations to have a setup like node0 node1 node0 1638 * i.e. it's possible that all pages within a zones range of pages do not 1639 * belong to a single zone. We assume that a border between node0 and node1 1640 * can occur within a single pageblock, but not a node0 node1 node0 1641 * interleaving within a single pageblock. It is therefore sufficient to check 1642 * the first and last page of a pageblock and avoid checking each individual 1643 * page in a pageblock. 1644 * 1645 * Note: the function may return non-NULL struct page even for a page block 1646 * which contains a memory hole (i.e. there is no physical memory for a subset 1647 * of the pfn range). For example, if the pageblock order is MAX_PAGE_ORDER, which 1648 * will fall into 2 sub-sections, and the end pfn of the pageblock may be hole 1649 * even though the start pfn is online and valid. This should be safe most of 1650 * the time because struct pages are still initialized via init_unavailable_range() 1651 * and pfn walkers shouldn't touch any physical memory range for which they do 1652 * not recognize any specific metadata in struct pages. 1653 */ 1654 struct page *__pageblock_pfn_to_page(unsigned long start_pfn, 1655 unsigned long end_pfn, struct zone *zone) 1656 { 1657 struct page *start_page; 1658 struct page *end_page; 1659 1660 /* end_pfn is one past the range we are checking */ 1661 end_pfn--; 1662 1663 if (!pfn_valid(end_pfn)) 1664 return NULL; 1665 1666 start_page = pfn_to_online_page(start_pfn); 1667 if (!start_page) 1668 return NULL; 1669 1670 if (page_zone(start_page) != zone) 1671 return NULL; 1672 1673 end_page = pfn_to_page(end_pfn); 1674 1675 /* This gives a shorter code than deriving page_zone(end_page) */ 1676 if (page_zone_id(start_page) != page_zone_id(end_page)) 1677 return NULL; 1678 1679 return start_page; 1680 } 1681 1682 /* 1683 * The order of subdivision here is critical for the IO subsystem. 1684 * Please do not alter this order without good reasons and regression 1685 * testing. Specifically, as large blocks of memory are subdivided, 1686 * the order in which smaller blocks are delivered depends on the order 1687 * they're subdivided in this function. This is the primary factor 1688 * influencing the order in which pages are delivered to the IO 1689 * subsystem according to empirical testing, and this is also justified 1690 * by considering the behavior of a buddy system containing a single 1691 * large block of memory acted on by a series of small allocations. 1692 * This behavior is a critical factor in sglist merging's success. 1693 * 1694 * -- nyc 1695 */ 1696 static inline unsigned int expand(struct zone *zone, struct page *page, int low, 1697 int high, int migratetype) 1698 { 1699 unsigned int size = 1 << high; 1700 unsigned int nr_added = 0; 1701 1702 while (high > low) { 1703 high--; 1704 size >>= 1; 1705 VM_BUG_ON_PAGE(bad_range(zone, &page[size]), &page[size]); 1706 1707 /* 1708 * Mark as guard pages (or page), that will allow to 1709 * merge back to allocator when buddy will be freed. 1710 * Corresponding page table entries will not be touched, 1711 * pages will stay not present in virtual address space 1712 */ 1713 if (set_page_guard(zone, &page[size], high)) 1714 continue; 1715 1716 __add_to_free_list(&page[size], zone, high, migratetype, false); 1717 set_buddy_order(&page[size], high); 1718 nr_added += size; 1719 } 1720 1721 return nr_added; 1722 } 1723 1724 static __always_inline void page_del_and_expand(struct zone *zone, 1725 struct page *page, int low, 1726 int high, int migratetype) 1727 { 1728 int nr_pages = 1 << high; 1729 1730 __del_page_from_free_list(page, zone, high, migratetype); 1731 nr_pages -= expand(zone, page, low, high, migratetype); 1732 account_freepages(zone, -nr_pages, migratetype); 1733 } 1734 1735 static void check_new_page_bad(struct page *page) 1736 { 1737 if (unlikely(PageHWPoison(page))) { 1738 /* Don't complain about hwpoisoned pages */ 1739 if (PageBuddy(page)) 1740 __ClearPageBuddy(page); 1741 return; 1742 } 1743 1744 bad_page(page, 1745 page_bad_reason(page, PAGE_FLAGS_CHECK_AT_PREP)); 1746 } 1747 1748 /* 1749 * This page is about to be returned from the page allocator 1750 */ 1751 static bool check_new_page(struct page *page) 1752 { 1753 if (likely(page_expected_state(page, 1754 PAGE_FLAGS_CHECK_AT_PREP|__PG_HWPOISON))) 1755 return false; 1756 1757 check_new_page_bad(page); 1758 return true; 1759 } 1760 1761 static inline bool check_new_pages(struct page *page, unsigned int order) 1762 { 1763 if (is_check_pages_enabled()) { 1764 for (int i = 0; i < (1 << order); i++) { 1765 struct page *p = page + i; 1766 1767 if (check_new_page(p)) 1768 return true; 1769 } 1770 } 1771 1772 return false; 1773 } 1774 1775 static inline bool should_skip_kasan_unpoison(gfp_t flags) 1776 { 1777 /* Don't skip if a software KASAN mode is enabled. */ 1778 if (IS_ENABLED(CONFIG_KASAN_GENERIC) || 1779 IS_ENABLED(CONFIG_KASAN_SW_TAGS)) 1780 return false; 1781 1782 /* Skip, if hardware tag-based KASAN is not enabled. */ 1783 if (!kasan_hw_tags_enabled()) 1784 return true; 1785 1786 /* 1787 * With hardware tag-based KASAN enabled, skip if this has been 1788 * requested via __GFP_SKIP_KASAN. 1789 */ 1790 return flags & __GFP_SKIP_KASAN; 1791 } 1792 1793 static inline bool should_skip_init(gfp_t flags) 1794 { 1795 /* Don't skip, if hardware tag-based KASAN is not enabled. */ 1796 if (!kasan_hw_tags_enabled()) 1797 return false; 1798 1799 /* For hardware tag-based KASAN, skip if requested. */ 1800 return (flags & __GFP_SKIP_ZERO); 1801 } 1802 1803 inline void post_alloc_hook(struct page *page, unsigned int order, 1804 gfp_t gfp_flags) 1805 { 1806 const bool zero_tags = gfp_flags & __GFP_ZEROTAGS; 1807 bool init = !want_init_on_free() && want_init_on_alloc(gfp_flags) && 1808 !should_skip_init(gfp_flags); 1809 int i; 1810 1811 set_page_private(page, 0); 1812 1813 arch_alloc_page(page, order); 1814 debug_pagealloc_map_pages(page, 1 << order); 1815 1816 /* 1817 * Page unpoisoning must happen before memory initialization. 1818 * Otherwise, the poison pattern will be overwritten for __GFP_ZERO 1819 * allocations and the page unpoisoning code will complain. 1820 */ 1821 kernel_unpoison_pages(page, 1 << order); 1822 1823 /* 1824 * As memory initialization might be integrated into KASAN, 1825 * KASAN unpoisoning and memory initialization code must be 1826 * kept together to avoid discrepancies in behavior. 1827 */ 1828 1829 /* 1830 * Clearing tags can efficiently clear the memory for us as well, if 1831 * required. 1832 */ 1833 if (zero_tags) 1834 init = tag_clear_highpages(page, 1 << order, /* clear_pages= */init); 1835 1836 if (!should_skip_kasan_unpoison(gfp_flags) && 1837 kasan_unpoison_pages(page, order, init)) { 1838 /* Take note that memory was initialized by KASAN. */ 1839 if (kasan_has_integrated_init()) 1840 init = false; 1841 } else { 1842 /* 1843 * If memory tags have not been set by KASAN, reset the page 1844 * tags to ensure page_address() dereferencing does not fault. 1845 */ 1846 for (i = 0; i != 1 << order; ++i) 1847 page_kasan_tag_reset(page + i); 1848 } 1849 /* If memory is still not initialized, initialize it now. */ 1850 if (init) 1851 kernel_init_pages(page, 1 << order); 1852 1853 set_page_owner(page, order, gfp_flags); 1854 page_table_check_alloc(page, order); 1855 pgalloc_tag_add(page, current, 1 << order); 1856 } 1857 1858 static void prep_new_page(struct page *page, unsigned int order, gfp_t gfp_flags, 1859 unsigned int alloc_flags) 1860 { 1861 post_alloc_hook(page, order, gfp_flags); 1862 1863 if (order && (gfp_flags & __GFP_COMP)) 1864 prep_compound_page(page, order); 1865 1866 /* 1867 * page is set pfmemalloc when ALLOC_NO_WATERMARKS was necessary to 1868 * allocate the page. The expectation is that the caller is taking 1869 * steps that will free more memory. The caller should avoid the page 1870 * being used for !PFMEMALLOC purposes. 1871 */ 1872 if (alloc_flags & ALLOC_NO_WATERMARKS) 1873 set_page_pfmemalloc(page); 1874 else 1875 clear_page_pfmemalloc(page); 1876 } 1877 1878 /* 1879 * Go through the free lists for the given migratetype and remove 1880 * the smallest available page from the freelists 1881 */ 1882 static __always_inline 1883 struct page *__rmqueue_smallest(struct zone *zone, unsigned int order, 1884 int migratetype) 1885 { 1886 unsigned int current_order; 1887 struct free_area *area; 1888 struct page *page; 1889 1890 /* Find a page of the appropriate size in the preferred list */ 1891 for (current_order = order; current_order < NR_PAGE_ORDERS; ++current_order) { 1892 area = &(zone->free_area[current_order]); 1893 page = get_page_from_free_area(area, migratetype); 1894 if (!page) 1895 continue; 1896 1897 page_del_and_expand(zone, page, order, current_order, 1898 migratetype); 1899 trace_mm_page_alloc_zone_locked(page, order, migratetype, 1900 pcp_allowed_order(order) && 1901 migratetype < MIGRATE_PCPTYPES); 1902 return page; 1903 } 1904 1905 return NULL; 1906 } 1907 1908 1909 /* 1910 * This array describes the order lists are fallen back to when 1911 * the free lists for the desirable migrate type are depleted 1912 * 1913 * The other migratetypes do not have fallbacks. 1914 */ 1915 static int fallbacks[MIGRATE_PCPTYPES][MIGRATE_PCPTYPES - 1] = { 1916 [MIGRATE_UNMOVABLE] = { MIGRATE_RECLAIMABLE, MIGRATE_MOVABLE }, 1917 [MIGRATE_MOVABLE] = { MIGRATE_RECLAIMABLE, MIGRATE_UNMOVABLE }, 1918 [MIGRATE_RECLAIMABLE] = { MIGRATE_UNMOVABLE, MIGRATE_MOVABLE }, 1919 }; 1920 1921 #ifdef CONFIG_CMA 1922 static __always_inline struct page *__rmqueue_cma_fallback(struct zone *zone, 1923 unsigned int order) 1924 { 1925 return __rmqueue_smallest(zone, order, MIGRATE_CMA); 1926 } 1927 #else 1928 static inline struct page *__rmqueue_cma_fallback(struct zone *zone, 1929 unsigned int order) { return NULL; } 1930 #endif 1931 1932 /* 1933 * Move all free pages of a block to new type's freelist. Caller needs to 1934 * change the block type. 1935 */ 1936 static int __move_freepages_block(struct zone *zone, unsigned long start_pfn, 1937 int old_mt, int new_mt) 1938 { 1939 struct page *page; 1940 unsigned long pfn, end_pfn; 1941 unsigned int order; 1942 int pages_moved = 0; 1943 1944 VM_WARN_ON(start_pfn & (pageblock_nr_pages - 1)); 1945 end_pfn = pageblock_end_pfn(start_pfn); 1946 1947 for (pfn = start_pfn; pfn < end_pfn;) { 1948 page = pfn_to_page(pfn); 1949 if (!PageBuddy(page)) { 1950 pfn++; 1951 continue; 1952 } 1953 1954 /* Make sure we are not inadvertently changing nodes */ 1955 VM_BUG_ON_PAGE(page_to_nid(page) != zone_to_nid(zone), page); 1956 VM_BUG_ON_PAGE(page_zone(page) != zone, page); 1957 1958 order = buddy_order(page); 1959 1960 move_to_free_list(page, zone, order, old_mt, new_mt); 1961 1962 pfn += 1 << order; 1963 pages_moved += 1 << order; 1964 } 1965 1966 return pages_moved; 1967 } 1968 1969 static bool prep_move_freepages_block(struct zone *zone, struct page *page, 1970 unsigned long *start_pfn, 1971 int *num_free, int *num_movable) 1972 { 1973 unsigned long pfn, start, end; 1974 1975 pfn = page_to_pfn(page); 1976 start = pageblock_start_pfn(pfn); 1977 end = pageblock_end_pfn(pfn); 1978 1979 /* 1980 * The caller only has the lock for @zone, don't touch ranges 1981 * that straddle into other zones. While we could move part of 1982 * the range that's inside the zone, this call is usually 1983 * accompanied by other operations such as migratetype updates 1984 * which also should be locked. 1985 */ 1986 if (!zone_spans_pfn(zone, start)) 1987 return false; 1988 if (!zone_spans_pfn(zone, end - 1)) 1989 return false; 1990 1991 *start_pfn = start; 1992 1993 if (num_free) { 1994 *num_free = 0; 1995 *num_movable = 0; 1996 for (pfn = start; pfn < end;) { 1997 page = pfn_to_page(pfn); 1998 if (PageBuddy(page)) { 1999 int nr = 1 << buddy_order(page); 2000 2001 *num_free += nr; 2002 pfn += nr; 2003 continue; 2004 } 2005 /* 2006 * We assume that pages that could be isolated for 2007 * migration are movable. But we don't actually try 2008 * isolating, as that would be expensive. 2009 */ 2010 if (PageLRU(page) || page_has_movable_ops(page)) 2011 (*num_movable)++; 2012 pfn++; 2013 } 2014 } 2015 2016 return true; 2017 } 2018 2019 static int move_freepages_block(struct zone *zone, struct page *page, 2020 int old_mt, int new_mt) 2021 { 2022 unsigned long start_pfn; 2023 int res; 2024 2025 if (!prep_move_freepages_block(zone, page, &start_pfn, NULL, NULL)) 2026 return -1; 2027 2028 res = __move_freepages_block(zone, start_pfn, old_mt, new_mt); 2029 set_pageblock_migratetype(pfn_to_page(start_pfn), new_mt); 2030 2031 return res; 2032 2033 } 2034 2035 #ifdef CONFIG_MEMORY_ISOLATION 2036 /* Look for a buddy that straddles start_pfn */ 2037 static unsigned long find_large_buddy(unsigned long start_pfn) 2038 { 2039 /* 2040 * If start_pfn is not an order-0 PageBuddy, next PageBuddy containing 2041 * start_pfn has minimal order of __ffs(start_pfn) + 1. Start checking 2042 * the order with __ffs(start_pfn). If start_pfn is order-0 PageBuddy, 2043 * the starting order does not matter. 2044 */ 2045 int order = start_pfn ? __ffs(start_pfn) : MAX_PAGE_ORDER; 2046 struct page *page; 2047 unsigned long pfn = start_pfn; 2048 2049 while (!PageBuddy(page = pfn_to_page(pfn))) { 2050 /* Nothing found */ 2051 if (++order > MAX_PAGE_ORDER) 2052 return start_pfn; 2053 pfn &= ~0UL << order; 2054 } 2055 2056 /* 2057 * Found a preceding buddy, but does it straddle? 2058 */ 2059 if (pfn + (1 << buddy_order(page)) > start_pfn) 2060 return pfn; 2061 2062 /* Nothing found */ 2063 return start_pfn; 2064 } 2065 2066 static inline void toggle_pageblock_isolate(struct page *page, bool isolate) 2067 { 2068 if (isolate) 2069 set_pageblock_isolate(page); 2070 else 2071 clear_pageblock_isolate(page); 2072 } 2073 2074 /** 2075 * __move_freepages_block_isolate - move free pages in block for page isolation 2076 * @zone: the zone 2077 * @page: the pageblock page 2078 * @isolate: to isolate the given pageblock or unisolate it 2079 * 2080 * This is similar to move_freepages_block(), but handles the special 2081 * case encountered in page isolation, where the block of interest 2082 * might be part of a larger buddy spanning multiple pageblocks. 2083 * 2084 * Unlike the regular page allocator path, which moves pages while 2085 * stealing buddies off the freelist, page isolation is interested in 2086 * arbitrary pfn ranges that may have overlapping buddies on both ends. 2087 * 2088 * This function handles that. Straddling buddies are split into 2089 * individual pageblocks. Only the block of interest is moved. 2090 * 2091 * Returns %true if pages could be moved, %false otherwise. 2092 */ 2093 static bool __move_freepages_block_isolate(struct zone *zone, 2094 struct page *page, bool isolate) 2095 { 2096 unsigned long start_pfn, buddy_pfn; 2097 int from_mt; 2098 int to_mt; 2099 struct page *buddy; 2100 2101 if (isolate == get_pageblock_isolate(page)) { 2102 VM_WARN_ONCE(1, "%s a pageblock that is already in that state", 2103 isolate ? "Isolate" : "Unisolate"); 2104 return false; 2105 } 2106 2107 if (!prep_move_freepages_block(zone, page, &start_pfn, NULL, NULL)) 2108 return false; 2109 2110 /* No splits needed if buddies can't span multiple blocks */ 2111 if (pageblock_order == MAX_PAGE_ORDER) 2112 goto move; 2113 2114 buddy_pfn = find_large_buddy(start_pfn); 2115 buddy = pfn_to_page(buddy_pfn); 2116 /* We're a part of a larger buddy */ 2117 if (PageBuddy(buddy) && buddy_order(buddy) > pageblock_order) { 2118 int order = buddy_order(buddy); 2119 2120 del_page_from_free_list(buddy, zone, order, 2121 get_pfnblock_migratetype(buddy, buddy_pfn)); 2122 toggle_pageblock_isolate(page, isolate); 2123 split_large_buddy(zone, buddy, buddy_pfn, order, FPI_NONE); 2124 return true; 2125 } 2126 2127 move: 2128 /* Use MIGRATETYPE_MASK to get non-isolate migratetype */ 2129 if (isolate) { 2130 from_mt = __get_pfnblock_flags_mask(page, page_to_pfn(page), 2131 MIGRATETYPE_MASK); 2132 to_mt = MIGRATE_ISOLATE; 2133 } else { 2134 from_mt = MIGRATE_ISOLATE; 2135 to_mt = __get_pfnblock_flags_mask(page, page_to_pfn(page), 2136 MIGRATETYPE_MASK); 2137 } 2138 2139 __move_freepages_block(zone, start_pfn, from_mt, to_mt); 2140 toggle_pageblock_isolate(pfn_to_page(start_pfn), isolate); 2141 2142 return true; 2143 } 2144 2145 bool pageblock_isolate_and_move_free_pages(struct zone *zone, struct page *page) 2146 { 2147 return __move_freepages_block_isolate(zone, page, true); 2148 } 2149 2150 bool pageblock_unisolate_and_move_free_pages(struct zone *zone, struct page *page) 2151 { 2152 return __move_freepages_block_isolate(zone, page, false); 2153 } 2154 2155 #endif /* CONFIG_MEMORY_ISOLATION */ 2156 2157 static inline bool boost_watermark(struct zone *zone) 2158 { 2159 unsigned long max_boost; 2160 2161 if (!watermark_boost_factor) 2162 return false; 2163 /* 2164 * Don't bother in zones that are unlikely to produce results. 2165 * On small machines, including kdump capture kernels running 2166 * in a small area, boosting the watermark can cause an out of 2167 * memory situation immediately. 2168 */ 2169 if ((pageblock_nr_pages * 4) > zone_managed_pages(zone)) 2170 return false; 2171 2172 max_boost = mult_frac(zone->_watermark[WMARK_HIGH], 2173 watermark_boost_factor, 10000); 2174 2175 /* 2176 * high watermark may be uninitialised if fragmentation occurs 2177 * very early in boot so do not boost. We do not fall 2178 * through and boost by pageblock_nr_pages as failing 2179 * allocations that early means that reclaim is not going 2180 * to help and it may even be impossible to reclaim the 2181 * boosted watermark resulting in a hang. 2182 */ 2183 if (!max_boost) 2184 return false; 2185 2186 max_boost = max(pageblock_nr_pages, max_boost); 2187 2188 zone->watermark_boost = min(zone->watermark_boost + pageblock_nr_pages, 2189 max_boost); 2190 2191 return true; 2192 } 2193 2194 /* 2195 * When we are falling back to another migratetype during allocation, should we 2196 * try to claim an entire block to satisfy further allocations, instead of 2197 * polluting multiple pageblocks? 2198 */ 2199 static bool should_try_claim_block(unsigned int order, int start_mt) 2200 { 2201 /* 2202 * Leaving this order check is intended, although there is 2203 * relaxed order check in next check. The reason is that 2204 * we can actually claim the whole pageblock if this condition met, 2205 * but, below check doesn't guarantee it and that is just heuristic 2206 * so could be changed anytime. 2207 */ 2208 if (order >= pageblock_order) 2209 return true; 2210 2211 /* 2212 * Above a certain threshold, always try to claim, as it's likely there 2213 * will be more free pages in the pageblock. 2214 */ 2215 if (order >= pageblock_order / 2) 2216 return true; 2217 2218 /* 2219 * Unmovable/reclaimable allocations would cause permanent 2220 * fragmentations if they fell back to allocating from a movable block 2221 * (polluting it), so we try to claim the whole block regardless of the 2222 * allocation size. Later movable allocations can always steal from this 2223 * block, which is less problematic. 2224 */ 2225 if (start_mt == MIGRATE_RECLAIMABLE || start_mt == MIGRATE_UNMOVABLE) 2226 return true; 2227 2228 if (page_group_by_mobility_disabled) 2229 return true; 2230 2231 /* 2232 * Movable pages won't cause permanent fragmentation, so when you alloc 2233 * small pages, we just need to temporarily steal unmovable or 2234 * reclaimable pages that are closest to the request size. After a 2235 * while, memory compaction may occur to form large contiguous pages, 2236 * and the next movable allocation may not need to steal. 2237 */ 2238 return false; 2239 } 2240 2241 /* 2242 * Check whether there is a suitable fallback freepage with requested order. 2243 * If claimable is true, this function returns fallback_mt only if 2244 * we would do this whole-block claiming. This would help to reduce 2245 * fragmentation due to mixed migratetype pages in one pageblock. 2246 */ 2247 int find_suitable_fallback(struct free_area *area, unsigned int order, 2248 int migratetype, bool claimable) 2249 { 2250 int i; 2251 2252 if (claimable && !should_try_claim_block(order, migratetype)) 2253 return -2; 2254 2255 if (area->nr_free == 0) 2256 return -1; 2257 2258 for (i = 0; i < MIGRATE_PCPTYPES - 1 ; i++) { 2259 int fallback_mt = fallbacks[migratetype][i]; 2260 2261 if (!free_area_empty(area, fallback_mt)) 2262 return fallback_mt; 2263 } 2264 2265 return -1; 2266 } 2267 2268 /* 2269 * This function implements actual block claiming behaviour. If order is large 2270 * enough, we can claim the whole pageblock for the requested migratetype. If 2271 * not, we check the pageblock for constituent pages; if at least half of the 2272 * pages are free or compatible, we can still claim the whole block, so pages 2273 * freed in the future will be put on the correct free list. 2274 */ 2275 static struct page * 2276 try_to_claim_block(struct zone *zone, struct page *page, 2277 int current_order, int order, int start_type, 2278 int block_type, unsigned int alloc_flags) 2279 { 2280 int free_pages, movable_pages, alike_pages; 2281 unsigned long start_pfn; 2282 2283 /* Take ownership for orders >= pageblock_order */ 2284 if (current_order >= pageblock_order) { 2285 unsigned int nr_added; 2286 2287 del_page_from_free_list(page, zone, current_order, block_type); 2288 change_pageblock_range(page, current_order, start_type); 2289 nr_added = expand(zone, page, order, current_order, start_type); 2290 account_freepages(zone, nr_added, start_type); 2291 return page; 2292 } 2293 2294 /* 2295 * Boost watermarks to increase reclaim pressure to reduce the 2296 * likelihood of future fallbacks. Wake kswapd now as the node 2297 * may be balanced overall and kswapd will not wake naturally. 2298 */ 2299 if (boost_watermark(zone) && (alloc_flags & ALLOC_KSWAPD)) 2300 set_bit(ZONE_BOOSTED_WATERMARK, &zone->flags); 2301 2302 /* moving whole block can fail due to zone boundary conditions */ 2303 if (!prep_move_freepages_block(zone, page, &start_pfn, &free_pages, 2304 &movable_pages)) 2305 return NULL; 2306 2307 /* 2308 * Determine how many pages are compatible with our allocation. 2309 * For movable allocation, it's the number of movable pages which 2310 * we just obtained. For other types it's a bit more tricky. 2311 */ 2312 if (start_type == MIGRATE_MOVABLE) { 2313 alike_pages = movable_pages; 2314 } else { 2315 /* 2316 * If we are falling back a RECLAIMABLE or UNMOVABLE allocation 2317 * to MOVABLE pageblock, consider all non-movable pages as 2318 * compatible. If it's UNMOVABLE falling back to RECLAIMABLE or 2319 * vice versa, be conservative since we can't distinguish the 2320 * exact migratetype of non-movable pages. 2321 */ 2322 if (block_type == MIGRATE_MOVABLE) 2323 alike_pages = pageblock_nr_pages 2324 - (free_pages + movable_pages); 2325 else 2326 alike_pages = 0; 2327 } 2328 /* 2329 * If a sufficient number of pages in the block are either free or of 2330 * compatible migratability as our allocation, claim the whole block. 2331 */ 2332 if (free_pages + alike_pages >= (1 << (pageblock_order-1)) || 2333 page_group_by_mobility_disabled) { 2334 __move_freepages_block(zone, start_pfn, block_type, start_type); 2335 set_pageblock_migratetype(pfn_to_page(start_pfn), start_type); 2336 return __rmqueue_smallest(zone, order, start_type); 2337 } 2338 2339 return NULL; 2340 } 2341 2342 /* 2343 * Try to allocate from some fallback migratetype by claiming the entire block, 2344 * i.e. converting it to the allocation's start migratetype. 2345 * 2346 * The use of signed ints for order and current_order is a deliberate 2347 * deviation from the rest of this file, to make the for loop 2348 * condition simpler. 2349 */ 2350 static __always_inline struct page * 2351 __rmqueue_claim(struct zone *zone, int order, int start_migratetype, 2352 unsigned int alloc_flags) 2353 { 2354 struct free_area *area; 2355 int current_order; 2356 int min_order = order; 2357 struct page *page; 2358 int fallback_mt; 2359 2360 /* 2361 * Do not steal pages from freelists belonging to other pageblocks 2362 * i.e. orders < pageblock_order. If there are no local zones free, 2363 * the zonelists will be reiterated without ALLOC_NOFRAGMENT. 2364 */ 2365 if (order < pageblock_order && alloc_flags & ALLOC_NOFRAGMENT) 2366 min_order = pageblock_order; 2367 2368 /* 2369 * Find the largest available free page in the other list. This roughly 2370 * approximates finding the pageblock with the most free pages, which 2371 * would be too costly to do exactly. 2372 */ 2373 for (current_order = MAX_PAGE_ORDER; current_order >= min_order; 2374 --current_order) { 2375 area = &(zone->free_area[current_order]); 2376 fallback_mt = find_suitable_fallback(area, current_order, 2377 start_migratetype, true); 2378 2379 /* No block in that order */ 2380 if (fallback_mt == -1) 2381 continue; 2382 2383 /* Advanced into orders too low to claim, abort */ 2384 if (fallback_mt == -2) 2385 break; 2386 2387 page = get_page_from_free_area(area, fallback_mt); 2388 page = try_to_claim_block(zone, page, current_order, order, 2389 start_migratetype, fallback_mt, 2390 alloc_flags); 2391 if (page) { 2392 trace_mm_page_alloc_extfrag(page, order, current_order, 2393 start_migratetype, fallback_mt); 2394 return page; 2395 } 2396 } 2397 2398 return NULL; 2399 } 2400 2401 /* 2402 * Try to steal a single page from some fallback migratetype. Leave the rest of 2403 * the block as its current migratetype, potentially causing fragmentation. 2404 */ 2405 static __always_inline struct page * 2406 __rmqueue_steal(struct zone *zone, int order, int start_migratetype) 2407 { 2408 struct free_area *area; 2409 int current_order; 2410 struct page *page; 2411 int fallback_mt; 2412 2413 for (current_order = order; current_order < NR_PAGE_ORDERS; current_order++) { 2414 area = &(zone->free_area[current_order]); 2415 fallback_mt = find_suitable_fallback(area, current_order, 2416 start_migratetype, false); 2417 if (fallback_mt == -1) 2418 continue; 2419 2420 page = get_page_from_free_area(area, fallback_mt); 2421 page_del_and_expand(zone, page, order, current_order, fallback_mt); 2422 trace_mm_page_alloc_extfrag(page, order, current_order, 2423 start_migratetype, fallback_mt); 2424 return page; 2425 } 2426 2427 return NULL; 2428 } 2429 2430 enum rmqueue_mode { 2431 RMQUEUE_NORMAL, 2432 RMQUEUE_CMA, 2433 RMQUEUE_CLAIM, 2434 RMQUEUE_STEAL, 2435 }; 2436 2437 /* 2438 * Do the hard work of removing an element from the buddy allocator. 2439 * Call me with the zone->lock already held. 2440 */ 2441 static __always_inline struct page * 2442 __rmqueue(struct zone *zone, unsigned int order, int migratetype, 2443 unsigned int alloc_flags, enum rmqueue_mode *mode) 2444 { 2445 struct page *page; 2446 2447 if (IS_ENABLED(CONFIG_CMA)) { 2448 /* 2449 * Balance movable allocations between regular and CMA areas by 2450 * allocating from CMA when over half of the zone's free memory 2451 * is in the CMA area. 2452 */ 2453 if (alloc_flags & ALLOC_CMA && 2454 zone_page_state(zone, NR_FREE_CMA_PAGES) > 2455 zone_page_state(zone, NR_FREE_PAGES) / 2) { 2456 page = __rmqueue_cma_fallback(zone, order); 2457 if (page) 2458 return page; 2459 } 2460 } 2461 2462 /* 2463 * First try the freelists of the requested migratetype, then try 2464 * fallbacks modes with increasing levels of fragmentation risk. 2465 * 2466 * The fallback logic is expensive and rmqueue_bulk() calls in 2467 * a loop with the zone->lock held, meaning the freelists are 2468 * not subject to any outside changes. Remember in *mode where 2469 * we found pay dirt, to save us the search on the next call. 2470 */ 2471 switch (*mode) { 2472 case RMQUEUE_NORMAL: 2473 page = __rmqueue_smallest(zone, order, migratetype); 2474 if (page) 2475 return page; 2476 fallthrough; 2477 case RMQUEUE_CMA: 2478 if (alloc_flags & ALLOC_CMA) { 2479 page = __rmqueue_cma_fallback(zone, order); 2480 if (page) { 2481 *mode = RMQUEUE_CMA; 2482 return page; 2483 } 2484 } 2485 fallthrough; 2486 case RMQUEUE_CLAIM: 2487 page = __rmqueue_claim(zone, order, migratetype, alloc_flags); 2488 if (page) { 2489 /* Replenished preferred freelist, back to normal mode. */ 2490 *mode = RMQUEUE_NORMAL; 2491 return page; 2492 } 2493 fallthrough; 2494 case RMQUEUE_STEAL: 2495 if (!(alloc_flags & ALLOC_NOFRAGMENT)) { 2496 page = __rmqueue_steal(zone, order, migratetype); 2497 if (page) { 2498 *mode = RMQUEUE_STEAL; 2499 return page; 2500 } 2501 } 2502 } 2503 return NULL; 2504 } 2505 2506 /* 2507 * Obtain a specified number of elements from the buddy allocator, all under 2508 * a single hold of the lock, for efficiency. Add them to the supplied list. 2509 * Returns the number of new pages which were placed at *list. 2510 */ 2511 static int rmqueue_bulk(struct zone *zone, unsigned int order, 2512 unsigned long count, struct list_head *list, 2513 int migratetype, unsigned int alloc_flags) 2514 { 2515 enum rmqueue_mode rmqm = RMQUEUE_NORMAL; 2516 unsigned long flags; 2517 int i; 2518 2519 if (unlikely(alloc_flags & ALLOC_TRYLOCK)) { 2520 if (!spin_trylock_irqsave(&zone->lock, flags)) 2521 return 0; 2522 } else { 2523 spin_lock_irqsave(&zone->lock, flags); 2524 } 2525 for (i = 0; i < count; ++i) { 2526 struct page *page = __rmqueue(zone, order, migratetype, 2527 alloc_flags, &rmqm); 2528 if (unlikely(page == NULL)) 2529 break; 2530 2531 /* 2532 * Split buddy pages returned by expand() are received here in 2533 * physical page order. The page is added to the tail of 2534 * caller's list. From the callers perspective, the linked list 2535 * is ordered by page number under some conditions. This is 2536 * useful for IO devices that can forward direction from the 2537 * head, thus also in the physical page order. This is useful 2538 * for IO devices that can merge IO requests if the physical 2539 * pages are ordered properly. 2540 */ 2541 list_add_tail(&page->pcp_list, list); 2542 } 2543 spin_unlock_irqrestore(&zone->lock, flags); 2544 2545 return i; 2546 } 2547 2548 /* 2549 * Called from the vmstat counter updater to decay the PCP high. 2550 * Return whether there are addition works to do. 2551 */ 2552 bool decay_pcp_high(struct zone *zone, struct per_cpu_pages *pcp) 2553 { 2554 int high_min, to_drain, to_drain_batched, batch; 2555 bool todo = false; 2556 2557 high_min = READ_ONCE(pcp->high_min); 2558 batch = READ_ONCE(pcp->batch); 2559 /* 2560 * Decrease pcp->high periodically to try to free possible 2561 * idle PCP pages. And, avoid to free too many pages to 2562 * control latency. This caps pcp->high decrement too. 2563 */ 2564 if (pcp->high > high_min) { 2565 pcp->high = max3(pcp->count - (batch << CONFIG_PCP_BATCH_SCALE_MAX), 2566 pcp->high - (pcp->high >> 3), high_min); 2567 if (pcp->high > high_min) 2568 todo = true; 2569 } 2570 2571 to_drain = pcp->count - pcp->high; 2572 while (to_drain > 0) { 2573 to_drain_batched = min(to_drain, batch); 2574 pcp_spin_lock_nopin(pcp); 2575 free_pcppages_bulk(zone, to_drain_batched, pcp, 0); 2576 pcp_spin_unlock_nopin(pcp); 2577 todo = true; 2578 2579 to_drain -= to_drain_batched; 2580 } 2581 2582 return todo; 2583 } 2584 2585 #ifdef CONFIG_NUMA 2586 /* 2587 * Called from the vmstat counter updater to drain pagesets of this 2588 * currently executing processor on remote nodes after they have 2589 * expired. 2590 */ 2591 void drain_zone_pages(struct zone *zone, struct per_cpu_pages *pcp) 2592 { 2593 int to_drain, batch; 2594 2595 batch = READ_ONCE(pcp->batch); 2596 to_drain = min(pcp->count, batch); 2597 if (to_drain > 0) { 2598 pcp_spin_lock_nopin(pcp); 2599 free_pcppages_bulk(zone, to_drain, pcp, 0); 2600 pcp_spin_unlock_nopin(pcp); 2601 } 2602 } 2603 #endif 2604 2605 /* 2606 * Drain pcplists of the indicated processor and zone. 2607 */ 2608 static void drain_pages_zone(unsigned int cpu, struct zone *zone) 2609 { 2610 struct per_cpu_pages *pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu); 2611 int count; 2612 2613 do { 2614 pcp_spin_lock_nopin(pcp); 2615 count = pcp->count; 2616 if (count) { 2617 int to_drain = min(count, 2618 pcp->batch << CONFIG_PCP_BATCH_SCALE_MAX); 2619 2620 free_pcppages_bulk(zone, to_drain, pcp, 0); 2621 count -= to_drain; 2622 } 2623 pcp_spin_unlock_nopin(pcp); 2624 } while (count); 2625 } 2626 2627 /* 2628 * Drain pcplists of all zones on the indicated processor. 2629 */ 2630 static void drain_pages(unsigned int cpu) 2631 { 2632 struct zone *zone; 2633 2634 for_each_populated_zone(zone) { 2635 drain_pages_zone(cpu, zone); 2636 } 2637 } 2638 2639 /* 2640 * Spill all of this CPU's per-cpu pages back into the buddy allocator. 2641 */ 2642 void drain_local_pages(struct zone *zone) 2643 { 2644 int cpu = smp_processor_id(); 2645 2646 if (zone) 2647 drain_pages_zone(cpu, zone); 2648 else 2649 drain_pages(cpu); 2650 } 2651 2652 /* 2653 * The implementation of drain_all_pages(), exposing an extra parameter to 2654 * drain on all cpus. 2655 * 2656 * drain_all_pages() is optimized to only execute on cpus where pcplists are 2657 * not empty. The check for non-emptiness can however race with a free to 2658 * pcplist that has not yet increased the pcp->count from 0 to 1. Callers 2659 * that need the guarantee that every CPU has drained can disable the 2660 * optimizing racy check. 2661 */ 2662 static void __drain_all_pages(struct zone *zone, bool force_all_cpus) 2663 { 2664 int cpu; 2665 2666 /* 2667 * Allocate in the BSS so we won't require allocation in 2668 * direct reclaim path for CONFIG_CPUMASK_OFFSTACK=y 2669 */ 2670 static cpumask_t cpus_with_pcps; 2671 2672 /* 2673 * Do not drain if one is already in progress unless it's specific to 2674 * a zone. Such callers are primarily CMA and memory hotplug and need 2675 * the drain to be complete when the call returns. 2676 */ 2677 if (unlikely(!mutex_trylock(&pcpu_drain_mutex))) { 2678 if (!zone) 2679 return; 2680 mutex_lock(&pcpu_drain_mutex); 2681 } 2682 2683 /* 2684 * We don't care about racing with CPU hotplug event 2685 * as offline notification will cause the notified 2686 * cpu to drain that CPU pcps and on_each_cpu_mask 2687 * disables preemption as part of its processing 2688 */ 2689 for_each_online_cpu(cpu) { 2690 struct per_cpu_pages *pcp; 2691 struct zone *z; 2692 bool has_pcps = false; 2693 2694 if (force_all_cpus) { 2695 /* 2696 * The pcp.count check is racy, some callers need a 2697 * guarantee that no cpu is missed. 2698 */ 2699 has_pcps = true; 2700 } else if (zone) { 2701 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu); 2702 if (pcp->count) 2703 has_pcps = true; 2704 } else { 2705 for_each_populated_zone(z) { 2706 pcp = per_cpu_ptr(z->per_cpu_pageset, cpu); 2707 if (pcp->count) { 2708 has_pcps = true; 2709 break; 2710 } 2711 } 2712 } 2713 2714 if (has_pcps) 2715 cpumask_set_cpu(cpu, &cpus_with_pcps); 2716 else 2717 cpumask_clear_cpu(cpu, &cpus_with_pcps); 2718 } 2719 2720 for_each_cpu(cpu, &cpus_with_pcps) { 2721 if (zone) 2722 drain_pages_zone(cpu, zone); 2723 else 2724 drain_pages(cpu); 2725 } 2726 2727 mutex_unlock(&pcpu_drain_mutex); 2728 } 2729 2730 /* 2731 * Spill all the per-cpu pages from all CPUs back into the buddy allocator. 2732 * 2733 * When zone parameter is non-NULL, spill just the single zone's pages. 2734 */ 2735 void drain_all_pages(struct zone *zone) 2736 { 2737 __drain_all_pages(zone, false); 2738 } 2739 2740 static int nr_pcp_free(struct per_cpu_pages *pcp, int batch, int high, bool free_high) 2741 { 2742 int min_nr_free, max_nr_free; 2743 2744 /* Free as much as possible if batch freeing high-order pages. */ 2745 if (unlikely(free_high)) 2746 return min(pcp->count, batch << CONFIG_PCP_BATCH_SCALE_MAX); 2747 2748 /* Check for PCP disabled or boot pageset */ 2749 if (unlikely(high < batch)) 2750 return 1; 2751 2752 /* Leave at least pcp->batch pages on the list */ 2753 min_nr_free = batch; 2754 max_nr_free = high - batch; 2755 2756 /* 2757 * Increase the batch number to the number of the consecutive 2758 * freed pages to reduce zone lock contention. 2759 */ 2760 batch = clamp_t(int, pcp->free_count, min_nr_free, max_nr_free); 2761 2762 return batch; 2763 } 2764 2765 static int nr_pcp_high(struct per_cpu_pages *pcp, struct zone *zone, 2766 int batch, bool free_high) 2767 { 2768 int high, high_min, high_max; 2769 2770 high_min = READ_ONCE(pcp->high_min); 2771 high_max = READ_ONCE(pcp->high_max); 2772 high = pcp->high = clamp(pcp->high, high_min, high_max); 2773 2774 if (unlikely(!high)) 2775 return 0; 2776 2777 if (unlikely(free_high)) { 2778 pcp->high = max(high - (batch << CONFIG_PCP_BATCH_SCALE_MAX), 2779 high_min); 2780 return 0; 2781 } 2782 2783 /* 2784 * If reclaim is active, limit the number of pages that can be 2785 * stored on pcp lists 2786 */ 2787 if (test_bit(ZONE_RECLAIM_ACTIVE, &zone->flags)) { 2788 int free_count = max_t(int, pcp->free_count, batch); 2789 2790 pcp->high = max(high - free_count, high_min); 2791 return min(batch << 2, pcp->high); 2792 } 2793 2794 if (high_min == high_max) 2795 return high; 2796 2797 if (test_bit(ZONE_BELOW_HIGH, &zone->flags)) { 2798 int free_count = max_t(int, pcp->free_count, batch); 2799 2800 pcp->high = max(high - free_count, high_min); 2801 high = max(pcp->count, high_min); 2802 } else if (pcp->count >= high) { 2803 int need_high = pcp->free_count + batch; 2804 2805 /* pcp->high should be large enough to hold batch freed pages */ 2806 if (pcp->high < need_high) 2807 pcp->high = clamp(need_high, high_min, high_max); 2808 } 2809 2810 return high; 2811 } 2812 2813 /* 2814 * Tune pcp alloc factor and adjust count & free_count. Free pages to bring the 2815 * pcp's watermarks below high. 2816 * 2817 * May return a freed pcp, if during page freeing the pcp spinlock cannot be 2818 * reacquired. Return true if pcp is locked, false otherwise. 2819 */ 2820 static bool free_frozen_page_commit(struct zone *zone, 2821 struct per_cpu_pages *pcp, struct page *page, int migratetype, 2822 unsigned int order, fpi_t fpi_flags) 2823 { 2824 int high, batch; 2825 int to_free, to_free_batched; 2826 int pindex; 2827 int cpu = smp_processor_id(); 2828 int ret = true; 2829 bool free_high = false; 2830 2831 /* 2832 * On freeing, reduce the number of pages that are batch allocated. 2833 * See nr_pcp_alloc() where alloc_factor is increased for subsequent 2834 * allocations. 2835 */ 2836 pcp->alloc_factor >>= 1; 2837 __count_vm_events(PGFREE, 1 << order); 2838 pindex = order_to_pindex(migratetype, order); 2839 list_add(&page->pcp_list, &pcp->lists[pindex]); 2840 pcp->count += 1 << order; 2841 2842 batch = READ_ONCE(pcp->batch); 2843 /* 2844 * As high-order pages other than THP's stored on PCP can contribute 2845 * to fragmentation, limit the number stored when PCP is heavily 2846 * freeing without allocation. The remainder after bulk freeing 2847 * stops will be drained from vmstat refresh context. 2848 */ 2849 if (order && order <= PAGE_ALLOC_COSTLY_ORDER) { 2850 free_high = (pcp->free_count >= (batch + pcp->high_min / 2) && 2851 (pcp->flags & PCPF_PREV_FREE_HIGH_ORDER) && 2852 (!(pcp->flags & PCPF_FREE_HIGH_BATCH) || 2853 pcp->count >= batch)); 2854 pcp->flags |= PCPF_PREV_FREE_HIGH_ORDER; 2855 } else if (pcp->flags & PCPF_PREV_FREE_HIGH_ORDER) { 2856 pcp->flags &= ~PCPF_PREV_FREE_HIGH_ORDER; 2857 } 2858 if (pcp->free_count < (batch << CONFIG_PCP_BATCH_SCALE_MAX)) 2859 pcp->free_count += (1 << order); 2860 2861 if (unlikely(fpi_flags & FPI_TRYLOCK)) { 2862 /* 2863 * Do not attempt to take a zone lock. Let pcp->count get 2864 * over high mark temporarily. 2865 */ 2866 return true; 2867 } 2868 2869 high = nr_pcp_high(pcp, zone, batch, free_high); 2870 if (pcp->count < high) 2871 return true; 2872 2873 to_free = nr_pcp_free(pcp, batch, high, free_high); 2874 while (to_free > 0 && pcp->count > 0) { 2875 to_free_batched = min(to_free, batch); 2876 free_pcppages_bulk(zone, to_free_batched, pcp, pindex); 2877 to_free -= to_free_batched; 2878 2879 if (to_free == 0 || pcp->count == 0) 2880 break; 2881 2882 pcp_spin_unlock(pcp); 2883 2884 pcp = pcp_spin_trylock(zone->per_cpu_pageset); 2885 if (!pcp) { 2886 ret = false; 2887 break; 2888 } 2889 2890 /* 2891 * Check if this thread has been migrated to a different CPU. 2892 * If that is the case, give up and indicate that the pcp is 2893 * returned in an unlocked state. 2894 */ 2895 if (smp_processor_id() != cpu) { 2896 pcp_spin_unlock(pcp); 2897 ret = false; 2898 break; 2899 } 2900 } 2901 2902 if (test_bit(ZONE_BELOW_HIGH, &zone->flags) && 2903 zone_watermark_ok(zone, 0, high_wmark_pages(zone), 2904 ZONE_MOVABLE, 0)) { 2905 struct pglist_data *pgdat = zone->zone_pgdat; 2906 clear_bit(ZONE_BELOW_HIGH, &zone->flags); 2907 2908 /* 2909 * Assume that memory pressure on this node is gone and may be 2910 * in a reclaimable state. If a memory fallback node exists, 2911 * direct reclaim may not have been triggered, causing a 2912 * 'hopeless node' to stay in that state for a while. Let 2913 * kswapd work again by resetting kswapd_failures. 2914 */ 2915 if (kswapd_test_hopeless(pgdat) && 2916 next_memory_node(pgdat->node_id) < MAX_NUMNODES) 2917 kswapd_clear_hopeless(pgdat, KSWAPD_CLEAR_HOPELESS_PCP); 2918 } 2919 return ret; 2920 } 2921 2922 /* 2923 * Free a pcp page 2924 */ 2925 static void __free_frozen_pages(struct page *page, unsigned int order, 2926 fpi_t fpi_flags) 2927 { 2928 struct per_cpu_pages *pcp; 2929 struct zone *zone; 2930 unsigned long pfn = page_to_pfn(page); 2931 int migratetype; 2932 2933 if (!pcp_allowed_order(order)) { 2934 __free_pages_ok(page, order, fpi_flags); 2935 return; 2936 } 2937 2938 if (!__free_pages_prepare(page, order, fpi_flags)) 2939 return; 2940 2941 /* 2942 * We only track unmovable, reclaimable and movable on pcp lists. 2943 * Place ISOLATE pages on the isolated list because they are being 2944 * offlined but treat HIGHATOMIC and CMA as movable pages so we can 2945 * get those areas back if necessary. Otherwise, we may have to free 2946 * excessively into the page allocator 2947 */ 2948 zone = page_zone(page); 2949 migratetype = get_pfnblock_migratetype(page, pfn); 2950 if (unlikely(migratetype >= MIGRATE_PCPTYPES)) { 2951 if (unlikely(is_migrate_isolate(migratetype))) { 2952 free_one_page(zone, page, pfn, order, fpi_flags); 2953 return; 2954 } 2955 migratetype = MIGRATE_MOVABLE; 2956 } 2957 2958 if (unlikely((fpi_flags & FPI_TRYLOCK) && IS_ENABLED(CONFIG_PREEMPT_RT) 2959 && (in_nmi() || in_hardirq()))) { 2960 add_page_to_zone_llist(zone, page, order); 2961 return; 2962 } 2963 pcp = pcp_spin_trylock(zone->per_cpu_pageset); 2964 if (pcp) { 2965 if (!free_frozen_page_commit(zone, pcp, page, migratetype, 2966 order, fpi_flags)) 2967 return; 2968 pcp_spin_unlock(pcp); 2969 } else { 2970 free_one_page(zone, page, pfn, order, fpi_flags); 2971 } 2972 } 2973 2974 void free_frozen_pages(struct page *page, unsigned int order) 2975 { 2976 __free_frozen_pages(page, order, FPI_NONE); 2977 } 2978 2979 void free_frozen_pages_nolock(struct page *page, unsigned int order) 2980 { 2981 __free_frozen_pages(page, order, FPI_TRYLOCK); 2982 } 2983 2984 /* 2985 * Free a batch of folios 2986 */ 2987 void free_unref_folios(struct folio_batch *folios) 2988 { 2989 struct per_cpu_pages *pcp = NULL; 2990 struct zone *locked_zone = NULL; 2991 int i, j; 2992 2993 /* Prepare folios for freeing */ 2994 for (i = 0, j = 0; i < folios->nr; i++) { 2995 struct folio *folio = folios->folios[i]; 2996 unsigned long pfn = folio_pfn(folio); 2997 unsigned int order = folio_order(folio); 2998 2999 if (!__free_pages_prepare(&folio->page, order, FPI_NONE)) 3000 continue; 3001 /* 3002 * Free orders not handled on the PCP directly to the 3003 * allocator. 3004 */ 3005 if (!pcp_allowed_order(order)) { 3006 free_one_page(folio_zone(folio), &folio->page, 3007 pfn, order, FPI_NONE); 3008 continue; 3009 } 3010 folio->private = (void *)(unsigned long)order; 3011 if (j != i) 3012 folios->folios[j] = folio; 3013 j++; 3014 } 3015 folios->nr = j; 3016 3017 for (i = 0; i < folios->nr; i++) { 3018 struct folio *folio = folios->folios[i]; 3019 struct zone *zone = folio_zone(folio); 3020 unsigned long pfn = folio_pfn(folio); 3021 unsigned int order = (unsigned long)folio->private; 3022 int migratetype; 3023 3024 folio->private = NULL; 3025 migratetype = get_pfnblock_migratetype(&folio->page, pfn); 3026 3027 /* Different zone requires a different pcp lock */ 3028 if (zone != locked_zone || 3029 is_migrate_isolate(migratetype)) { 3030 if (pcp) { 3031 pcp_spin_unlock(pcp); 3032 locked_zone = NULL; 3033 pcp = NULL; 3034 } 3035 3036 /* 3037 * Free isolated pages directly to the 3038 * allocator, see comment in free_frozen_pages. 3039 */ 3040 if (is_migrate_isolate(migratetype)) { 3041 free_one_page(zone, &folio->page, pfn, 3042 order, FPI_NONE); 3043 continue; 3044 } 3045 3046 /* 3047 * trylock is necessary as folios may be getting freed 3048 * from IRQ or SoftIRQ context after an IO completion. 3049 */ 3050 pcp = pcp_spin_trylock(zone->per_cpu_pageset); 3051 if (unlikely(!pcp)) { 3052 free_one_page(zone, &folio->page, pfn, 3053 order, FPI_NONE); 3054 continue; 3055 } 3056 locked_zone = zone; 3057 } 3058 3059 /* 3060 * Non-isolated types over MIGRATE_PCPTYPES get added 3061 * to the MIGRATE_MOVABLE pcp list. 3062 */ 3063 if (unlikely(migratetype >= MIGRATE_PCPTYPES)) 3064 migratetype = MIGRATE_MOVABLE; 3065 3066 trace_mm_page_free_batched(&folio->page); 3067 if (!free_frozen_page_commit(zone, pcp, &folio->page, 3068 migratetype, order, FPI_NONE)) { 3069 pcp = NULL; 3070 locked_zone = NULL; 3071 } 3072 } 3073 3074 if (pcp) 3075 pcp_spin_unlock(pcp); 3076 folio_batch_reinit(folios); 3077 } 3078 3079 static void __split_page(struct page *page, unsigned int order) 3080 { 3081 VM_WARN_ON_PAGE(PageCompound(page), page); 3082 3083 split_page_owner(page, order, 0); 3084 pgalloc_tag_split(page_folio(page), order, 0); 3085 split_page_memcg(page, order); 3086 } 3087 3088 /* 3089 * split_page takes a non-compound higher-order page, and splits it into 3090 * n (1<<order) sub-pages: page[0..n] 3091 * Each sub-page must be freed individually. 3092 * 3093 * Note: this is probably too low level an operation for use in drivers. 3094 * Please consult with lkml before using this in your driver. 3095 */ 3096 void split_page(struct page *page, unsigned int order) 3097 { 3098 int i; 3099 3100 VM_WARN_ON_PAGE(!page_count(page), page); 3101 3102 for (i = 1; i < (1 << order); i++) 3103 set_page_refcounted(page + i); 3104 3105 __split_page(page, order); 3106 } 3107 EXPORT_SYMBOL_GPL(split_page); 3108 3109 int __isolate_free_page(struct page *page, unsigned int order) 3110 { 3111 struct zone *zone = page_zone(page); 3112 int mt = get_pageblock_migratetype(page); 3113 3114 if (!is_migrate_isolate(mt)) { 3115 unsigned long watermark; 3116 /* 3117 * Obey watermarks as if the page was being allocated. We can 3118 * emulate a high-order watermark check with a raised order-0 3119 * watermark, because we already know our high-order page 3120 * exists. 3121 */ 3122 watermark = zone->_watermark[WMARK_MIN] + (1UL << order); 3123 if (!zone_watermark_ok(zone, 0, watermark, 0, ALLOC_CMA)) 3124 return 0; 3125 } 3126 3127 del_page_from_free_list(page, zone, order, mt); 3128 3129 /* 3130 * Set the pageblock if the isolated page is at least half of a 3131 * pageblock 3132 */ 3133 if (order >= pageblock_order - 1) { 3134 struct page *endpage = page + (1 << order) - 1; 3135 for (; page < endpage; page += pageblock_nr_pages) { 3136 int mt = get_pageblock_migratetype(page); 3137 /* 3138 * Only change normal pageblocks (i.e., they can merge 3139 * with others) 3140 */ 3141 if (migratetype_is_mergeable(mt)) 3142 move_freepages_block(zone, page, mt, 3143 MIGRATE_MOVABLE); 3144 } 3145 } 3146 3147 return 1UL << order; 3148 } 3149 3150 /** 3151 * __putback_isolated_page - Return a now-isolated page back where we got it 3152 * @page: Page that was isolated 3153 * @order: Order of the isolated page 3154 * @mt: The page's pageblock's migratetype 3155 * 3156 * This function is meant to return a page pulled from the free lists via 3157 * __isolate_free_page back to the free lists they were pulled from. 3158 */ 3159 void __putback_isolated_page(struct page *page, unsigned int order, int mt) 3160 { 3161 struct zone *zone = page_zone(page); 3162 3163 /* zone lock should be held when this function is called */ 3164 lockdep_assert_held(&zone->lock); 3165 3166 /* Return isolated page to tail of freelist. */ 3167 __free_one_page(page, page_to_pfn(page), zone, order, mt, 3168 FPI_SKIP_REPORT_NOTIFY | FPI_TO_TAIL); 3169 } 3170 3171 /* 3172 * Update NUMA hit/miss statistics 3173 */ 3174 static inline void zone_statistics(struct zone *preferred_zone, struct zone *z, 3175 long nr_account) 3176 { 3177 #ifdef CONFIG_NUMA 3178 enum numa_stat_item local_stat = NUMA_LOCAL; 3179 3180 /* skip numa counters update if numa stats is disabled */ 3181 if (!static_branch_likely(&vm_numa_stat_key)) 3182 return; 3183 3184 if (zone_to_nid(z) != numa_node_id()) 3185 local_stat = NUMA_OTHER; 3186 3187 if (zone_to_nid(z) == zone_to_nid(preferred_zone)) 3188 __count_numa_events(z, NUMA_HIT, nr_account); 3189 else { 3190 __count_numa_events(z, NUMA_MISS, nr_account); 3191 __count_numa_events(preferred_zone, NUMA_FOREIGN, nr_account); 3192 } 3193 __count_numa_events(z, local_stat, nr_account); 3194 #endif 3195 } 3196 3197 static __always_inline 3198 struct page *rmqueue_buddy(struct zone *preferred_zone, struct zone *zone, 3199 unsigned int order, unsigned int alloc_flags, 3200 int migratetype) 3201 { 3202 struct page *page; 3203 unsigned long flags; 3204 3205 do { 3206 page = NULL; 3207 if (unlikely(alloc_flags & ALLOC_TRYLOCK)) { 3208 if (!spin_trylock_irqsave(&zone->lock, flags)) 3209 return NULL; 3210 } else { 3211 spin_lock_irqsave(&zone->lock, flags); 3212 } 3213 if (alloc_flags & ALLOC_HIGHATOMIC) 3214 page = __rmqueue_smallest(zone, order, MIGRATE_HIGHATOMIC); 3215 if (!page) { 3216 enum rmqueue_mode rmqm = RMQUEUE_NORMAL; 3217 3218 page = __rmqueue(zone, order, migratetype, alloc_flags, &rmqm); 3219 3220 /* 3221 * If the allocation fails, allow OOM handling and 3222 * order-0 (atomic) allocs access to HIGHATOMIC 3223 * reserves as failing now is worse than failing a 3224 * high-order atomic allocation in the future. 3225 */ 3226 if (!page && (alloc_flags & (ALLOC_OOM|ALLOC_NON_BLOCK))) 3227 page = __rmqueue_smallest(zone, order, MIGRATE_HIGHATOMIC); 3228 3229 if (!page) { 3230 spin_unlock_irqrestore(&zone->lock, flags); 3231 return NULL; 3232 } 3233 } 3234 spin_unlock_irqrestore(&zone->lock, flags); 3235 } while (check_new_pages(page, order)); 3236 3237 /* 3238 * If this is a high-order atomic allocation then check 3239 * if the pageblock should be reserved for the future 3240 */ 3241 if (unlikely(alloc_flags & ALLOC_HIGHATOMIC)) 3242 reserve_highatomic_pageblock(page, order, zone); 3243 3244 __count_zid_vm_events(PGALLOC, page_zonenum(page), 1 << order); 3245 zone_statistics(preferred_zone, zone, 1); 3246 3247 return page; 3248 } 3249 3250 static int nr_pcp_alloc(struct per_cpu_pages *pcp, struct zone *zone, int order) 3251 { 3252 int high, base_batch, batch, max_nr_alloc; 3253 int high_max, high_min; 3254 3255 base_batch = READ_ONCE(pcp->batch); 3256 high_min = READ_ONCE(pcp->high_min); 3257 high_max = READ_ONCE(pcp->high_max); 3258 high = pcp->high = clamp(pcp->high, high_min, high_max); 3259 3260 /* Check for PCP disabled or boot pageset */ 3261 if (unlikely(high < base_batch)) 3262 return 1; 3263 3264 if (order) 3265 batch = base_batch; 3266 else 3267 batch = (base_batch << pcp->alloc_factor); 3268 3269 /* 3270 * If we had larger pcp->high, we could avoid to allocate from 3271 * zone. 3272 */ 3273 if (high_min != high_max && !test_bit(ZONE_BELOW_HIGH, &zone->flags)) 3274 high = pcp->high = min(high + batch, high_max); 3275 3276 if (!order) { 3277 max_nr_alloc = max(high - pcp->count - base_batch, base_batch); 3278 /* 3279 * Double the number of pages allocated each time there is 3280 * subsequent allocation of order-0 pages without any freeing. 3281 */ 3282 if (batch <= max_nr_alloc && 3283 pcp->alloc_factor < CONFIG_PCP_BATCH_SCALE_MAX) 3284 pcp->alloc_factor++; 3285 batch = min(batch, max_nr_alloc); 3286 } 3287 3288 /* 3289 * Scale batch relative to order if batch implies free pages 3290 * can be stored on the PCP. Batch can be 1 for small zones or 3291 * for boot pagesets which should never store free pages as 3292 * the pages may belong to arbitrary zones. 3293 */ 3294 if (batch > 1) 3295 batch = max(batch >> order, 2); 3296 3297 return batch; 3298 } 3299 3300 /* Remove page from the per-cpu list, caller must protect the list */ 3301 static inline 3302 struct page *__rmqueue_pcplist(struct zone *zone, unsigned int order, 3303 int migratetype, 3304 unsigned int alloc_flags, 3305 struct per_cpu_pages *pcp, 3306 struct list_head *list) 3307 { 3308 struct page *page; 3309 3310 do { 3311 if (list_empty(list)) { 3312 int batch = nr_pcp_alloc(pcp, zone, order); 3313 int alloced; 3314 3315 /* 3316 * Don't refill the list for a higher order atomic 3317 * allocation under memory pressure, as this would 3318 * not build up any HIGHATOMIC reserves, which 3319 * might be needed soon. 3320 * 3321 * Instead, direct it towards the reserves by 3322 * returning NULL, which will make the caller fall 3323 * back to rmqueue_buddy. This will try to use the 3324 * reserves first and grow them if needed. 3325 */ 3326 if (alloc_flags & ALLOC_HIGHATOMIC) 3327 return NULL; 3328 3329 alloced = rmqueue_bulk(zone, order, 3330 batch, list, 3331 migratetype, alloc_flags); 3332 3333 pcp->count += alloced << order; 3334 if (unlikely(list_empty(list))) 3335 return NULL; 3336 } 3337 3338 page = list_first_entry(list, struct page, pcp_list); 3339 list_del(&page->pcp_list); 3340 pcp->count -= 1 << order; 3341 } while (check_new_pages(page, order)); 3342 3343 return page; 3344 } 3345 3346 /* Lock and remove page from the per-cpu list */ 3347 static struct page *rmqueue_pcplist(struct zone *preferred_zone, 3348 struct zone *zone, unsigned int order, 3349 int migratetype, unsigned int alloc_flags) 3350 { 3351 struct per_cpu_pages *pcp; 3352 struct list_head *list; 3353 struct page *page; 3354 3355 /* spin_trylock may fail due to a parallel drain or IRQ reentrancy. */ 3356 pcp = pcp_spin_trylock(zone->per_cpu_pageset); 3357 if (!pcp) 3358 return NULL; 3359 3360 /* 3361 * On allocation, reduce the number of pages that are batch freed. 3362 * See nr_pcp_free() where free_factor is increased for subsequent 3363 * frees. 3364 */ 3365 pcp->free_count >>= 1; 3366 list = &pcp->lists[order_to_pindex(migratetype, order)]; 3367 page = __rmqueue_pcplist(zone, order, migratetype, alloc_flags, pcp, list); 3368 pcp_spin_unlock(pcp); 3369 if (page) { 3370 __count_zid_vm_events(PGALLOC, page_zonenum(page), 1 << order); 3371 zone_statistics(preferred_zone, zone, 1); 3372 } 3373 return page; 3374 } 3375 3376 /* 3377 * Allocate a page from the given zone. 3378 * Use pcplists for THP or "cheap" high-order allocations. 3379 */ 3380 3381 /* 3382 * Do not instrument rmqueue() with KMSAN. This function may call 3383 * __msan_poison_alloca() through a call to set_pfnblock_migratetype(). 3384 * If __msan_poison_alloca() attempts to allocate pages for the stack depot, it 3385 * may call rmqueue() again, which will result in a deadlock. 3386 */ 3387 __no_sanitize_memory 3388 static inline 3389 struct page *rmqueue(struct zone *preferred_zone, 3390 struct zone *zone, unsigned int order, 3391 gfp_t gfp_flags, unsigned int alloc_flags, 3392 int migratetype) 3393 { 3394 struct page *page; 3395 3396 if (likely(pcp_allowed_order(order))) { 3397 page = rmqueue_pcplist(preferred_zone, zone, order, 3398 migratetype, alloc_flags); 3399 if (likely(page)) 3400 goto out; 3401 } 3402 3403 page = rmqueue_buddy(preferred_zone, zone, order, alloc_flags, 3404 migratetype); 3405 3406 out: 3407 /* Separate test+clear to avoid unnecessary atomics */ 3408 if ((alloc_flags & ALLOC_KSWAPD) && 3409 unlikely(test_bit(ZONE_BOOSTED_WATERMARK, &zone->flags))) { 3410 clear_bit(ZONE_BOOSTED_WATERMARK, &zone->flags); 3411 wakeup_kswapd(zone, 0, 0, zone_idx(zone)); 3412 } 3413 3414 VM_BUG_ON_PAGE(page && bad_range(zone, page), page); 3415 return page; 3416 } 3417 3418 /* 3419 * Reserve the pageblock(s) surrounding an allocation request for 3420 * exclusive use of high-order atomic allocations if there are no 3421 * empty page blocks that contain a page with a suitable order 3422 */ 3423 static void reserve_highatomic_pageblock(struct page *page, int order, 3424 struct zone *zone) 3425 { 3426 int mt; 3427 unsigned long max_managed, flags; 3428 3429 /* 3430 * The number reserved as: minimum is 1 pageblock, maximum is 3431 * roughly 1% of a zone. But if 1% of a zone falls below a 3432 * pageblock size, then don't reserve any pageblocks. 3433 * Check is race-prone but harmless. 3434 */ 3435 if ((zone_managed_pages(zone) / 100) < pageblock_nr_pages) 3436 return; 3437 max_managed = ALIGN((zone_managed_pages(zone) / 100), pageblock_nr_pages); 3438 if (zone->nr_reserved_highatomic >= max_managed) 3439 return; 3440 3441 spin_lock_irqsave(&zone->lock, flags); 3442 3443 /* Recheck the nr_reserved_highatomic limit under the lock */ 3444 if (zone->nr_reserved_highatomic >= max_managed) 3445 goto out_unlock; 3446 3447 /* Yoink! */ 3448 mt = get_pageblock_migratetype(page); 3449 /* Only reserve normal pageblocks (i.e., they can merge with others) */ 3450 if (!migratetype_is_mergeable(mt)) 3451 goto out_unlock; 3452 3453 if (order < pageblock_order) { 3454 if (move_freepages_block(zone, page, mt, MIGRATE_HIGHATOMIC) == -1) 3455 goto out_unlock; 3456 zone->nr_reserved_highatomic += pageblock_nr_pages; 3457 } else { 3458 change_pageblock_range(page, order, MIGRATE_HIGHATOMIC); 3459 zone->nr_reserved_highatomic += 1 << order; 3460 } 3461 3462 out_unlock: 3463 spin_unlock_irqrestore(&zone->lock, flags); 3464 } 3465 3466 /* 3467 * Used when an allocation is about to fail under memory pressure. This 3468 * potentially hurts the reliability of high-order allocations when under 3469 * intense memory pressure but failed atomic allocations should be easier 3470 * to recover from than an OOM. 3471 * 3472 * If @force is true, try to unreserve pageblocks even though highatomic 3473 * pageblock is exhausted. 3474 */ 3475 static bool unreserve_highatomic_pageblock(const struct alloc_context *ac, 3476 bool force) 3477 { 3478 struct zonelist *zonelist = ac->zonelist; 3479 unsigned long flags; 3480 struct zoneref *z; 3481 struct zone *zone; 3482 struct page *page; 3483 int order; 3484 int ret; 3485 3486 for_each_zone_zonelist_nodemask(zone, z, zonelist, ac->highest_zoneidx, 3487 ac->nodemask) { 3488 /* 3489 * Preserve at least one pageblock unless memory pressure 3490 * is really high. 3491 */ 3492 if (!force && zone->nr_reserved_highatomic <= 3493 pageblock_nr_pages) 3494 continue; 3495 3496 spin_lock_irqsave(&zone->lock, flags); 3497 for (order = 0; order < NR_PAGE_ORDERS; order++) { 3498 struct free_area *area = &(zone->free_area[order]); 3499 unsigned long size; 3500 3501 page = get_page_from_free_area(area, MIGRATE_HIGHATOMIC); 3502 if (!page) 3503 continue; 3504 3505 size = max(pageblock_nr_pages, 1UL << order); 3506 /* 3507 * It should never happen but changes to 3508 * locking could inadvertently allow a per-cpu 3509 * drain to add pages to MIGRATE_HIGHATOMIC 3510 * while unreserving so be safe and watch for 3511 * underflows. 3512 */ 3513 if (WARN_ON_ONCE(size > zone->nr_reserved_highatomic)) 3514 size = zone->nr_reserved_highatomic; 3515 zone->nr_reserved_highatomic -= size; 3516 3517 /* 3518 * Convert to ac->migratetype and avoid the normal 3519 * pageblock stealing heuristics. Minimally, the caller 3520 * is doing the work and needs the pages. More 3521 * importantly, if the block was always converted to 3522 * MIGRATE_UNMOVABLE or another type then the number 3523 * of pageblocks that cannot be completely freed 3524 * may increase. 3525 */ 3526 if (order < pageblock_order) 3527 ret = move_freepages_block(zone, page, 3528 MIGRATE_HIGHATOMIC, 3529 ac->migratetype); 3530 else { 3531 move_to_free_list(page, zone, order, 3532 MIGRATE_HIGHATOMIC, 3533 ac->migratetype); 3534 change_pageblock_range(page, order, 3535 ac->migratetype); 3536 ret = 1; 3537 } 3538 /* 3539 * Reserving the block(s) already succeeded, 3540 * so this should not fail on zone boundaries. 3541 */ 3542 WARN_ON_ONCE(ret == -1); 3543 if (ret > 0) { 3544 spin_unlock_irqrestore(&zone->lock, flags); 3545 return ret; 3546 } 3547 } 3548 spin_unlock_irqrestore(&zone->lock, flags); 3549 } 3550 3551 return false; 3552 } 3553 3554 static inline long __zone_watermark_unusable_free(struct zone *z, 3555 unsigned int order, unsigned int alloc_flags) 3556 { 3557 long unusable_free = (1 << order) - 1; 3558 3559 /* 3560 * If the caller does not have rights to reserves below the min 3561 * watermark then subtract the free pages reserved for highatomic. 3562 */ 3563 if (likely(!(alloc_flags & ALLOC_RESERVES))) 3564 unusable_free += READ_ONCE(z->nr_free_highatomic); 3565 3566 #ifdef CONFIG_CMA 3567 /* If allocation can't use CMA areas don't use free CMA pages */ 3568 if (!(alloc_flags & ALLOC_CMA)) 3569 unusable_free += zone_page_state(z, NR_FREE_CMA_PAGES); 3570 #endif 3571 3572 return unusable_free; 3573 } 3574 3575 /* 3576 * Return true if free base pages are above 'mark'. For high-order checks it 3577 * will return true of the order-0 watermark is reached and there is at least 3578 * one free page of a suitable size. Checking now avoids taking the zone lock 3579 * to check in the allocation paths if no pages are free. 3580 */ 3581 bool __zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark, 3582 int highest_zoneidx, unsigned int alloc_flags, 3583 long free_pages) 3584 { 3585 long min = mark; 3586 int o; 3587 3588 /* free_pages may go negative - that's OK */ 3589 free_pages -= __zone_watermark_unusable_free(z, order, alloc_flags); 3590 3591 if (unlikely(alloc_flags & ALLOC_RESERVES)) { 3592 /* 3593 * __GFP_HIGH allows access to 50% of the min reserve as well 3594 * as OOM. 3595 */ 3596 if (alloc_flags & ALLOC_MIN_RESERVE) { 3597 min -= min / 2; 3598 3599 /* 3600 * Non-blocking allocations (e.g. GFP_ATOMIC) can 3601 * access more reserves than just __GFP_HIGH. Other 3602 * non-blocking allocations requests such as GFP_NOWAIT 3603 * or (GFP_KERNEL & ~__GFP_DIRECT_RECLAIM) do not get 3604 * access to the min reserve. 3605 */ 3606 if (alloc_flags & ALLOC_NON_BLOCK) 3607 min -= min / 4; 3608 } 3609 3610 /* 3611 * OOM victims can try even harder than the normal reserve 3612 * users on the grounds that it's definitely going to be in 3613 * the exit path shortly and free memory. Any allocation it 3614 * makes during the free path will be small and short-lived. 3615 */ 3616 if (alloc_flags & ALLOC_OOM) 3617 min -= min / 2; 3618 } 3619 3620 /* 3621 * Check watermarks for an order-0 allocation request. If these 3622 * are not met, then a high-order request also cannot go ahead 3623 * even if a suitable page happened to be free. 3624 */ 3625 if (free_pages <= min + z->lowmem_reserve[highest_zoneidx]) 3626 return false; 3627 3628 /* If this is an order-0 request then the watermark is fine */ 3629 if (!order) 3630 return true; 3631 3632 /* For a high-order request, check at least one suitable page is free */ 3633 for (o = order; o < NR_PAGE_ORDERS; o++) { 3634 struct free_area *area = &z->free_area[o]; 3635 int mt; 3636 3637 if (!area->nr_free) 3638 continue; 3639 3640 for (mt = 0; mt < MIGRATE_PCPTYPES; mt++) { 3641 if (!free_area_empty(area, mt)) 3642 return true; 3643 } 3644 3645 #ifdef CONFIG_CMA 3646 if ((alloc_flags & ALLOC_CMA) && 3647 !free_area_empty(area, MIGRATE_CMA)) { 3648 return true; 3649 } 3650 #endif 3651 if ((alloc_flags & (ALLOC_HIGHATOMIC|ALLOC_OOM)) && 3652 !free_area_empty(area, MIGRATE_HIGHATOMIC)) { 3653 return true; 3654 } 3655 } 3656 return false; 3657 } 3658 3659 bool zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark, 3660 int highest_zoneidx, unsigned int alloc_flags) 3661 { 3662 return __zone_watermark_ok(z, order, mark, highest_zoneidx, alloc_flags, 3663 zone_page_state(z, NR_FREE_PAGES)); 3664 } 3665 3666 static inline bool zone_watermark_fast(struct zone *z, unsigned int order, 3667 unsigned long mark, int highest_zoneidx, 3668 unsigned int alloc_flags, gfp_t gfp_mask) 3669 { 3670 long free_pages; 3671 3672 free_pages = zone_page_state(z, NR_FREE_PAGES); 3673 3674 /* 3675 * Fast check for order-0 only. If this fails then the reserves 3676 * need to be calculated. 3677 */ 3678 if (!order) { 3679 long usable_free; 3680 long reserved; 3681 3682 usable_free = free_pages; 3683 reserved = __zone_watermark_unusable_free(z, 0, alloc_flags); 3684 3685 /* reserved may over estimate high-atomic reserves. */ 3686 usable_free -= min(usable_free, reserved); 3687 if (usable_free > mark + z->lowmem_reserve[highest_zoneidx]) 3688 return true; 3689 } 3690 3691 if (__zone_watermark_ok(z, order, mark, highest_zoneidx, alloc_flags, 3692 free_pages)) 3693 return true; 3694 3695 /* 3696 * Ignore watermark boosting for __GFP_HIGH order-0 allocations 3697 * when checking the min watermark. The min watermark is the 3698 * point where boosting is ignored so that kswapd is woken up 3699 * when below the low watermark. 3700 */ 3701 if (unlikely(!order && (alloc_flags & ALLOC_MIN_RESERVE) && z->watermark_boost 3702 && ((alloc_flags & ALLOC_WMARK_MASK) == WMARK_MIN))) { 3703 mark = z->_watermark[WMARK_MIN]; 3704 return __zone_watermark_ok(z, order, mark, highest_zoneidx, 3705 alloc_flags, free_pages); 3706 } 3707 3708 return false; 3709 } 3710 3711 #ifdef CONFIG_NUMA 3712 int __read_mostly node_reclaim_distance = RECLAIM_DISTANCE; 3713 3714 static bool zone_allows_reclaim(struct zone *local_zone, struct zone *zone) 3715 { 3716 return node_distance(zone_to_nid(local_zone), zone_to_nid(zone)) <= 3717 node_reclaim_distance; 3718 } 3719 #else /* CONFIG_NUMA */ 3720 static bool zone_allows_reclaim(struct zone *local_zone, struct zone *zone) 3721 { 3722 return true; 3723 } 3724 #endif /* CONFIG_NUMA */ 3725 3726 /* 3727 * The restriction on ZONE_DMA32 as being a suitable zone to use to avoid 3728 * fragmentation is subtle. If the preferred zone was HIGHMEM then 3729 * premature use of a lower zone may cause lowmem pressure problems that 3730 * are worse than fragmentation. If the next zone is ZONE_DMA then it is 3731 * probably too small. It only makes sense to spread allocations to avoid 3732 * fragmentation between the Normal and DMA32 zones. 3733 */ 3734 static inline unsigned int 3735 alloc_flags_nofragment(struct zone *zone, gfp_t gfp_mask) 3736 { 3737 unsigned int alloc_flags; 3738 3739 /* 3740 * __GFP_KSWAPD_RECLAIM is assumed to be the same as ALLOC_KSWAPD 3741 * to save a branch. 3742 */ 3743 alloc_flags = (__force int) (gfp_mask & __GFP_KSWAPD_RECLAIM); 3744 3745 if (defrag_mode) { 3746 alloc_flags |= ALLOC_NOFRAGMENT; 3747 return alloc_flags; 3748 } 3749 3750 #ifdef CONFIG_ZONE_DMA32 3751 if (!zone) 3752 return alloc_flags; 3753 3754 if (zone_idx(zone) != ZONE_NORMAL) 3755 return alloc_flags; 3756 3757 /* 3758 * If ZONE_DMA32 exists, assume it is the one after ZONE_NORMAL and 3759 * the pointer is within zone->zone_pgdat->node_zones[]. Also assume 3760 * on UMA that if Normal is populated then so is DMA32. 3761 */ 3762 BUILD_BUG_ON(ZONE_NORMAL - ZONE_DMA32 != 1); 3763 if (nr_online_nodes > 1 && !populated_zone(--zone)) 3764 return alloc_flags; 3765 3766 alloc_flags |= ALLOC_NOFRAGMENT; 3767 #endif /* CONFIG_ZONE_DMA32 */ 3768 return alloc_flags; 3769 } 3770 3771 /* Must be called after current_gfp_context() which can change gfp_mask */ 3772 static inline unsigned int gfp_to_alloc_flags_cma(gfp_t gfp_mask, 3773 unsigned int alloc_flags) 3774 { 3775 #ifdef CONFIG_CMA 3776 if (gfp_migratetype(gfp_mask) == MIGRATE_MOVABLE) 3777 alloc_flags |= ALLOC_CMA; 3778 #endif 3779 return alloc_flags; 3780 } 3781 3782 /* 3783 * get_page_from_freelist goes through the zonelist trying to allocate 3784 * a page. 3785 */ 3786 static struct page * 3787 get_page_from_freelist(gfp_t gfp_mask, unsigned int order, int alloc_flags, 3788 const struct alloc_context *ac) 3789 { 3790 struct zoneref *z; 3791 struct zone *zone; 3792 struct pglist_data *last_pgdat = NULL; 3793 bool last_pgdat_dirty_ok = false; 3794 bool no_fallback; 3795 bool skip_kswapd_nodes = nr_online_nodes > 1; 3796 bool skipped_kswapd_nodes = false; 3797 3798 retry: 3799 /* 3800 * Scan zonelist, looking for a zone with enough free. 3801 * See also cpuset_current_node_allowed() comment in kernel/cgroup/cpuset.c. 3802 */ 3803 no_fallback = alloc_flags & ALLOC_NOFRAGMENT; 3804 z = ac->preferred_zoneref; 3805 for_next_zone_zonelist_nodemask(zone, z, ac->highest_zoneidx, 3806 ac->nodemask) { 3807 struct page *page; 3808 unsigned long mark; 3809 3810 if (cpusets_enabled() && 3811 (alloc_flags & ALLOC_CPUSET) && 3812 !__cpuset_zone_allowed(zone, gfp_mask)) 3813 continue; 3814 /* 3815 * When allocating a page cache page for writing, we 3816 * want to get it from a node that is within its dirty 3817 * limit, such that no single node holds more than its 3818 * proportional share of globally allowed dirty pages. 3819 * The dirty limits take into account the node's 3820 * lowmem reserves and high watermark so that kswapd 3821 * should be able to balance it without having to 3822 * write pages from its LRU list. 3823 * 3824 * XXX: For now, allow allocations to potentially 3825 * exceed the per-node dirty limit in the slowpath 3826 * (spread_dirty_pages unset) before going into reclaim, 3827 * which is important when on a NUMA setup the allowed 3828 * nodes are together not big enough to reach the 3829 * global limit. The proper fix for these situations 3830 * will require awareness of nodes in the 3831 * dirty-throttling and the flusher threads. 3832 */ 3833 if (ac->spread_dirty_pages) { 3834 if (last_pgdat != zone->zone_pgdat) { 3835 last_pgdat = zone->zone_pgdat; 3836 last_pgdat_dirty_ok = node_dirty_ok(zone->zone_pgdat); 3837 } 3838 3839 if (!last_pgdat_dirty_ok) 3840 continue; 3841 } 3842 3843 if (no_fallback && !defrag_mode && nr_online_nodes > 1 && 3844 zone != zonelist_zone(ac->preferred_zoneref)) { 3845 int local_nid; 3846 3847 /* 3848 * If moving to a remote node, retry but allow 3849 * fragmenting fallbacks. Locality is more important 3850 * than fragmentation avoidance. 3851 */ 3852 local_nid = zonelist_node_idx(ac->preferred_zoneref); 3853 if (zone_to_nid(zone) != local_nid) { 3854 alloc_flags &= ~ALLOC_NOFRAGMENT; 3855 goto retry; 3856 } 3857 } 3858 3859 /* 3860 * If kswapd is already active on a node, keep looking 3861 * for other nodes that might be idle. This can happen 3862 * if another process has NUMA bindings and is causing 3863 * kswapd wakeups on only some nodes. Avoid accidental 3864 * "node_reclaim_mode"-like behavior in this case. 3865 */ 3866 if (skip_kswapd_nodes && 3867 !waitqueue_active(&zone->zone_pgdat->kswapd_wait)) { 3868 skipped_kswapd_nodes = true; 3869 continue; 3870 } 3871 3872 cond_accept_memory(zone, order, alloc_flags); 3873 3874 /* 3875 * Detect whether the number of free pages is below high 3876 * watermark. If so, we will decrease pcp->high and free 3877 * PCP pages in free path to reduce the possibility of 3878 * premature page reclaiming. Detection is done here to 3879 * avoid to do that in hotter free path. 3880 */ 3881 if (test_bit(ZONE_BELOW_HIGH, &zone->flags)) 3882 goto check_alloc_wmark; 3883 3884 mark = high_wmark_pages(zone); 3885 if (zone_watermark_fast(zone, order, mark, 3886 ac->highest_zoneidx, alloc_flags, 3887 gfp_mask)) 3888 goto try_this_zone; 3889 else 3890 set_bit(ZONE_BELOW_HIGH, &zone->flags); 3891 3892 check_alloc_wmark: 3893 mark = wmark_pages(zone, alloc_flags & ALLOC_WMARK_MASK); 3894 if (!zone_watermark_fast(zone, order, mark, 3895 ac->highest_zoneidx, alloc_flags, 3896 gfp_mask)) { 3897 int ret; 3898 3899 if (cond_accept_memory(zone, order, alloc_flags)) 3900 goto try_this_zone; 3901 3902 /* 3903 * Watermark failed for this zone, but see if we can 3904 * grow this zone if it contains deferred pages. 3905 */ 3906 if (deferred_pages_enabled()) { 3907 if (_deferred_grow_zone(zone, order)) 3908 goto try_this_zone; 3909 } 3910 /* Checked here to keep the fast path fast */ 3911 BUILD_BUG_ON(ALLOC_NO_WATERMARKS < NR_WMARK); 3912 if (alloc_flags & ALLOC_NO_WATERMARKS) 3913 goto try_this_zone; 3914 3915 if (!node_reclaim_enabled() || 3916 !zone_allows_reclaim(zonelist_zone(ac->preferred_zoneref), zone)) 3917 continue; 3918 3919 ret = node_reclaim(zone->zone_pgdat, gfp_mask, order); 3920 switch (ret) { 3921 case NODE_RECLAIM_NOSCAN: 3922 /* did not scan */ 3923 continue; 3924 case NODE_RECLAIM_FULL: 3925 /* scanned but unreclaimable */ 3926 continue; 3927 default: 3928 /* did we reclaim enough */ 3929 if (zone_watermark_ok(zone, order, mark, 3930 ac->highest_zoneidx, alloc_flags)) 3931 goto try_this_zone; 3932 3933 continue; 3934 } 3935 } 3936 3937 try_this_zone: 3938 page = rmqueue(zonelist_zone(ac->preferred_zoneref), zone, order, 3939 gfp_mask, alloc_flags, ac->migratetype); 3940 if (page) { 3941 prep_new_page(page, order, gfp_mask, alloc_flags); 3942 3943 return page; 3944 } else { 3945 if (cond_accept_memory(zone, order, alloc_flags)) 3946 goto try_this_zone; 3947 3948 /* Try again if zone has deferred pages */ 3949 if (deferred_pages_enabled()) { 3950 if (_deferred_grow_zone(zone, order)) 3951 goto try_this_zone; 3952 } 3953 } 3954 } 3955 3956 /* 3957 * If we skipped over nodes with active kswapds and found no 3958 * idle nodes, retry and place anywhere the watermarks permit. 3959 */ 3960 if (skip_kswapd_nodes && skipped_kswapd_nodes) { 3961 skip_kswapd_nodes = false; 3962 goto retry; 3963 } 3964 3965 /* 3966 * It's possible on a UMA machine to get through all zones that are 3967 * fragmented. If avoiding fragmentation, reset and try again. 3968 */ 3969 if (no_fallback && !defrag_mode) { 3970 alloc_flags &= ~ALLOC_NOFRAGMENT; 3971 goto retry; 3972 } 3973 3974 return NULL; 3975 } 3976 3977 static void warn_alloc_show_mem(gfp_t gfp_mask, nodemask_t *nodemask) 3978 { 3979 unsigned int filter = SHOW_MEM_FILTER_NODES; 3980 3981 /* 3982 * This documents exceptions given to allocations in certain 3983 * contexts that are allowed to allocate outside current's set 3984 * of allowed nodes. 3985 */ 3986 if (!(gfp_mask & __GFP_NOMEMALLOC)) 3987 if (tsk_is_oom_victim(current) || 3988 (current->flags & (PF_MEMALLOC | PF_EXITING))) 3989 filter &= ~SHOW_MEM_FILTER_NODES; 3990 if (!in_task() || !(gfp_mask & __GFP_DIRECT_RECLAIM)) 3991 filter &= ~SHOW_MEM_FILTER_NODES; 3992 3993 __show_mem(filter, nodemask, gfp_zone(gfp_mask)); 3994 mem_cgroup_show_protected_memory(NULL); 3995 } 3996 3997 void warn_alloc(gfp_t gfp_mask, nodemask_t *nodemask, const char *fmt, ...) 3998 { 3999 struct va_format vaf; 4000 va_list args; 4001 static DEFINE_RATELIMIT_STATE(nopage_rs, 10*HZ, 1); 4002 4003 if ((gfp_mask & __GFP_NOWARN) || 4004 !__ratelimit(&nopage_rs) || 4005 ((gfp_mask & __GFP_DMA) && !has_managed_dma())) 4006 return; 4007 4008 va_start(args, fmt); 4009 vaf.fmt = fmt; 4010 vaf.va = &args; 4011 pr_warn("%s: %pV, mode:%#x(%pGg), nodemask=%*pbl", 4012 current->comm, &vaf, gfp_mask, &gfp_mask, 4013 nodemask_pr_args(nodemask)); 4014 va_end(args); 4015 4016 cpuset_print_current_mems_allowed(); 4017 pr_cont("\n"); 4018 dump_stack(); 4019 warn_alloc_show_mem(gfp_mask, nodemask); 4020 } 4021 4022 static inline struct page * 4023 __alloc_pages_cpuset_fallback(gfp_t gfp_mask, unsigned int order, 4024 unsigned int alloc_flags, 4025 const struct alloc_context *ac) 4026 { 4027 struct page *page; 4028 4029 page = get_page_from_freelist(gfp_mask, order, 4030 alloc_flags|ALLOC_CPUSET, ac); 4031 /* 4032 * fallback to ignore cpuset restriction if our nodes 4033 * are depleted 4034 */ 4035 if (!page) 4036 page = get_page_from_freelist(gfp_mask, order, 4037 alloc_flags, ac); 4038 return page; 4039 } 4040 4041 static inline struct page * 4042 __alloc_pages_may_oom(gfp_t gfp_mask, unsigned int order, 4043 const struct alloc_context *ac, unsigned long *did_some_progress) 4044 { 4045 struct oom_control oc = { 4046 .zonelist = ac->zonelist, 4047 .nodemask = ac->nodemask, 4048 .memcg = NULL, 4049 .gfp_mask = gfp_mask, 4050 .order = order, 4051 }; 4052 struct page *page; 4053 4054 *did_some_progress = 0; 4055 4056 /* 4057 * Acquire the oom lock. If that fails, somebody else is 4058 * making progress for us. 4059 */ 4060 if (!mutex_trylock(&oom_lock)) { 4061 *did_some_progress = 1; 4062 schedule_timeout_uninterruptible(1); 4063 return NULL; 4064 } 4065 4066 /* 4067 * Go through the zonelist yet one more time, keep very high watermark 4068 * here, this is only to catch a parallel oom killing, we must fail if 4069 * we're still under heavy pressure. But make sure that this reclaim 4070 * attempt shall not depend on __GFP_DIRECT_RECLAIM && !__GFP_NORETRY 4071 * allocation which will never fail due to oom_lock already held. 4072 */ 4073 page = get_page_from_freelist((gfp_mask | __GFP_HARDWALL) & 4074 ~__GFP_DIRECT_RECLAIM, order, 4075 ALLOC_WMARK_HIGH|ALLOC_CPUSET, ac); 4076 if (page) 4077 goto out; 4078 4079 /* Coredumps can quickly deplete all memory reserves */ 4080 if (current->flags & PF_DUMPCORE) 4081 goto out; 4082 /* The OOM killer will not help higher order allocs */ 4083 if (order > PAGE_ALLOC_COSTLY_ORDER) 4084 goto out; 4085 /* 4086 * We have already exhausted all our reclaim opportunities without any 4087 * success so it is time to admit defeat. We will skip the OOM killer 4088 * because it is very likely that the caller has a more reasonable 4089 * fallback than shooting a random task. 4090 * 4091 * The OOM killer may not free memory on a specific node. 4092 */ 4093 if (gfp_mask & (__GFP_RETRY_MAYFAIL | __GFP_THISNODE)) 4094 goto out; 4095 /* The OOM killer does not needlessly kill tasks for lowmem */ 4096 if (ac->highest_zoneidx < ZONE_NORMAL) 4097 goto out; 4098 if (pm_suspended_storage()) 4099 goto out; 4100 /* 4101 * XXX: GFP_NOFS allocations should rather fail than rely on 4102 * other request to make a forward progress. 4103 * We are in an unfortunate situation where out_of_memory cannot 4104 * do much for this context but let's try it to at least get 4105 * access to memory reserved if the current task is killed (see 4106 * out_of_memory). Once filesystems are ready to handle allocation 4107 * failures more gracefully we should just bail out here. 4108 */ 4109 4110 /* Exhausted what can be done so it's blame time */ 4111 if (out_of_memory(&oc) || 4112 WARN_ON_ONCE_GFP(gfp_mask & __GFP_NOFAIL, gfp_mask)) { 4113 *did_some_progress = 1; 4114 4115 /* 4116 * Help non-failing allocations by giving them access to memory 4117 * reserves 4118 */ 4119 if (gfp_mask & __GFP_NOFAIL) 4120 page = __alloc_pages_cpuset_fallback(gfp_mask, order, 4121 ALLOC_NO_WATERMARKS, ac); 4122 } 4123 out: 4124 mutex_unlock(&oom_lock); 4125 return page; 4126 } 4127 4128 /* 4129 * Maximum number of compaction retries with a progress before OOM 4130 * killer is consider as the only way to move forward. 4131 */ 4132 #define MAX_COMPACT_RETRIES 16 4133 4134 #ifdef CONFIG_COMPACTION 4135 /* Try memory compaction for high-order allocations before reclaim */ 4136 static struct page * 4137 __alloc_pages_direct_compact(gfp_t gfp_mask, unsigned int order, 4138 unsigned int alloc_flags, const struct alloc_context *ac, 4139 enum compact_priority prio, enum compact_result *compact_result) 4140 { 4141 struct page *page = NULL; 4142 unsigned long pflags; 4143 unsigned int noreclaim_flag; 4144 4145 if (!order) 4146 return NULL; 4147 4148 psi_memstall_enter(&pflags); 4149 delayacct_compact_start(); 4150 noreclaim_flag = memalloc_noreclaim_save(); 4151 4152 *compact_result = try_to_compact_pages(gfp_mask, order, alloc_flags, ac, 4153 prio, &page); 4154 4155 memalloc_noreclaim_restore(noreclaim_flag); 4156 psi_memstall_leave(&pflags); 4157 delayacct_compact_end(); 4158 4159 if (*compact_result == COMPACT_SKIPPED) 4160 return NULL; 4161 /* 4162 * At least in one zone compaction wasn't deferred or skipped, so let's 4163 * count a compaction stall 4164 */ 4165 count_vm_event(COMPACTSTALL); 4166 4167 /* Prep a captured page if available */ 4168 if (page) 4169 prep_new_page(page, order, gfp_mask, alloc_flags); 4170 4171 /* Try get a page from the freelist if available */ 4172 if (!page) 4173 page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac); 4174 4175 if (page) { 4176 struct zone *zone = page_zone(page); 4177 4178 zone->compact_blockskip_flush = false; 4179 compaction_defer_reset(zone, order, true); 4180 count_vm_event(COMPACTSUCCESS); 4181 return page; 4182 } 4183 4184 /* 4185 * It's bad if compaction run occurs and fails. The most likely reason 4186 * is that pages exist, but not enough to satisfy watermarks. 4187 */ 4188 count_vm_event(COMPACTFAIL); 4189 4190 cond_resched(); 4191 4192 return NULL; 4193 } 4194 4195 static inline bool 4196 should_compact_retry(struct alloc_context *ac, int order, int alloc_flags, 4197 enum compact_result compact_result, 4198 enum compact_priority *compact_priority, 4199 int *compaction_retries) 4200 { 4201 int max_retries = MAX_COMPACT_RETRIES; 4202 int min_priority; 4203 bool ret = false; 4204 int retries = *compaction_retries; 4205 enum compact_priority priority = *compact_priority; 4206 4207 if (!order) 4208 return false; 4209 4210 if (fatal_signal_pending(current)) 4211 return false; 4212 4213 /* 4214 * Compaction was skipped due to a lack of free order-0 4215 * migration targets. Continue if reclaim can help. 4216 */ 4217 if (compact_result == COMPACT_SKIPPED) { 4218 ret = compaction_zonelist_suitable(ac, order, alloc_flags); 4219 goto out; 4220 } 4221 4222 /* 4223 * Compaction managed to coalesce some page blocks, but the 4224 * allocation failed presumably due to a race. Retry some. 4225 */ 4226 if (compact_result == COMPACT_SUCCESS) { 4227 /* 4228 * !costly requests are much more important than 4229 * __GFP_RETRY_MAYFAIL costly ones because they are de 4230 * facto nofail and invoke OOM killer to move on while 4231 * costly can fail and users are ready to cope with 4232 * that. 1/4 retries is rather arbitrary but we would 4233 * need much more detailed feedback from compaction to 4234 * make a better decision. 4235 */ 4236 if (order > PAGE_ALLOC_COSTLY_ORDER) 4237 max_retries /= 4; 4238 4239 if (++(*compaction_retries) <= max_retries) { 4240 ret = true; 4241 goto out; 4242 } 4243 } 4244 4245 /* 4246 * Compaction failed. Retry with increasing priority. 4247 */ 4248 min_priority = (order > PAGE_ALLOC_COSTLY_ORDER) ? 4249 MIN_COMPACT_COSTLY_PRIORITY : MIN_COMPACT_PRIORITY; 4250 4251 if (*compact_priority > min_priority) { 4252 (*compact_priority)--; 4253 *compaction_retries = 0; 4254 ret = true; 4255 } 4256 out: 4257 trace_compact_retry(order, priority, compact_result, retries, max_retries, ret); 4258 return ret; 4259 } 4260 #else 4261 static inline struct page * 4262 __alloc_pages_direct_compact(gfp_t gfp_mask, unsigned int order, 4263 unsigned int alloc_flags, const struct alloc_context *ac, 4264 enum compact_priority prio, enum compact_result *compact_result) 4265 { 4266 *compact_result = COMPACT_SKIPPED; 4267 return NULL; 4268 } 4269 4270 static inline bool 4271 should_compact_retry(struct alloc_context *ac, int order, int alloc_flags, 4272 enum compact_result compact_result, 4273 enum compact_priority *compact_priority, 4274 int *compaction_retries) 4275 { 4276 struct zone *zone; 4277 struct zoneref *z; 4278 4279 if (!order || order > PAGE_ALLOC_COSTLY_ORDER) 4280 return false; 4281 4282 /* 4283 * There are setups with compaction disabled which would prefer to loop 4284 * inside the allocator rather than hit the oom killer prematurely. 4285 * Let's give them a good hope and keep retrying while the order-0 4286 * watermarks are OK. 4287 */ 4288 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, 4289 ac->highest_zoneidx, ac->nodemask) { 4290 if (zone_watermark_ok(zone, 0, min_wmark_pages(zone), 4291 ac->highest_zoneidx, alloc_flags)) 4292 return true; 4293 } 4294 return false; 4295 } 4296 #endif /* CONFIG_COMPACTION */ 4297 4298 #ifdef CONFIG_LOCKDEP 4299 static struct lockdep_map __fs_reclaim_map = 4300 STATIC_LOCKDEP_MAP_INIT("fs_reclaim", &__fs_reclaim_map); 4301 4302 static bool __need_reclaim(gfp_t gfp_mask) 4303 { 4304 /* no reclaim without waiting on it */ 4305 if (!(gfp_mask & __GFP_DIRECT_RECLAIM)) 4306 return false; 4307 4308 /* this guy won't enter reclaim */ 4309 if (current->flags & PF_MEMALLOC) 4310 return false; 4311 4312 if (gfp_mask & __GFP_NOLOCKDEP) 4313 return false; 4314 4315 return true; 4316 } 4317 4318 void __fs_reclaim_acquire(unsigned long ip) 4319 { 4320 lock_acquire_exclusive(&__fs_reclaim_map, 0, 0, NULL, ip); 4321 } 4322 4323 void __fs_reclaim_release(unsigned long ip) 4324 { 4325 lock_release(&__fs_reclaim_map, ip); 4326 } 4327 4328 void fs_reclaim_acquire(gfp_t gfp_mask) 4329 { 4330 gfp_mask = current_gfp_context(gfp_mask); 4331 4332 if (__need_reclaim(gfp_mask)) { 4333 if (gfp_mask & __GFP_FS) 4334 __fs_reclaim_acquire(_RET_IP_); 4335 4336 #ifdef CONFIG_MMU_NOTIFIER 4337 lock_map_acquire(&__mmu_notifier_invalidate_range_start_map); 4338 lock_map_release(&__mmu_notifier_invalidate_range_start_map); 4339 #endif 4340 4341 } 4342 } 4343 EXPORT_SYMBOL_GPL(fs_reclaim_acquire); 4344 4345 void fs_reclaim_release(gfp_t gfp_mask) 4346 { 4347 gfp_mask = current_gfp_context(gfp_mask); 4348 4349 if (__need_reclaim(gfp_mask)) { 4350 if (gfp_mask & __GFP_FS) 4351 __fs_reclaim_release(_RET_IP_); 4352 } 4353 } 4354 EXPORT_SYMBOL_GPL(fs_reclaim_release); 4355 #endif 4356 4357 /* 4358 * Zonelists may change due to hotplug during allocation. Detect when zonelists 4359 * have been rebuilt so allocation retries. Reader side does not lock and 4360 * retries the allocation if zonelist changes. Writer side is protected by the 4361 * embedded spin_lock. 4362 */ 4363 static DEFINE_SEQLOCK(zonelist_update_seq); 4364 4365 static unsigned int zonelist_iter_begin(void) 4366 { 4367 if (IS_ENABLED(CONFIG_MEMORY_HOTREMOVE)) 4368 return read_seqbegin(&zonelist_update_seq); 4369 4370 return 0; 4371 } 4372 4373 static unsigned int check_retry_zonelist(unsigned int seq) 4374 { 4375 if (IS_ENABLED(CONFIG_MEMORY_HOTREMOVE)) 4376 return read_seqretry(&zonelist_update_seq, seq); 4377 4378 return seq; 4379 } 4380 4381 /* Perform direct synchronous page reclaim */ 4382 static unsigned long 4383 __perform_reclaim(gfp_t gfp_mask, unsigned int order, 4384 const struct alloc_context *ac) 4385 { 4386 unsigned int noreclaim_flag; 4387 unsigned long progress; 4388 4389 cond_resched(); 4390 4391 /* We now go into synchronous reclaim */ 4392 cpuset_memory_pressure_bump(); 4393 fs_reclaim_acquire(gfp_mask); 4394 noreclaim_flag = memalloc_noreclaim_save(); 4395 4396 progress = try_to_free_pages(ac->zonelist, order, gfp_mask, 4397 ac->nodemask); 4398 4399 memalloc_noreclaim_restore(noreclaim_flag); 4400 fs_reclaim_release(gfp_mask); 4401 4402 cond_resched(); 4403 4404 return progress; 4405 } 4406 4407 /* The really slow allocator path where we enter direct reclaim */ 4408 static inline struct page * 4409 __alloc_pages_direct_reclaim(gfp_t gfp_mask, unsigned int order, 4410 unsigned int alloc_flags, const struct alloc_context *ac, 4411 unsigned long *did_some_progress) 4412 { 4413 struct page *page = NULL; 4414 unsigned long pflags; 4415 bool drained = false; 4416 4417 psi_memstall_enter(&pflags); 4418 *did_some_progress = __perform_reclaim(gfp_mask, order, ac); 4419 if (unlikely(!(*did_some_progress))) 4420 goto out; 4421 4422 retry: 4423 page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac); 4424 4425 /* 4426 * If an allocation failed after direct reclaim, it could be because 4427 * pages are pinned on the per-cpu lists or in high alloc reserves. 4428 * Shrink them and try again 4429 */ 4430 if (!page && !drained) { 4431 unreserve_highatomic_pageblock(ac, false); 4432 drain_all_pages(NULL); 4433 drained = true; 4434 goto retry; 4435 } 4436 out: 4437 psi_memstall_leave(&pflags); 4438 4439 return page; 4440 } 4441 4442 static void wake_all_kswapds(unsigned int order, gfp_t gfp_mask, 4443 const struct alloc_context *ac) 4444 { 4445 struct zoneref *z; 4446 struct zone *zone; 4447 pg_data_t *last_pgdat = NULL; 4448 enum zone_type highest_zoneidx = ac->highest_zoneidx; 4449 unsigned int reclaim_order; 4450 4451 if (defrag_mode) 4452 reclaim_order = max(order, pageblock_order); 4453 else 4454 reclaim_order = order; 4455 4456 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, highest_zoneidx, 4457 ac->nodemask) { 4458 if (!managed_zone(zone)) 4459 continue; 4460 if (last_pgdat == zone->zone_pgdat) 4461 continue; 4462 wakeup_kswapd(zone, gfp_mask, reclaim_order, highest_zoneidx); 4463 last_pgdat = zone->zone_pgdat; 4464 } 4465 } 4466 4467 static inline unsigned int 4468 gfp_to_alloc_flags(gfp_t gfp_mask, unsigned int order) 4469 { 4470 unsigned int alloc_flags = ALLOC_WMARK_MIN | ALLOC_CPUSET; 4471 4472 /* 4473 * __GFP_HIGH is assumed to be the same as ALLOC_MIN_RESERVE 4474 * and __GFP_KSWAPD_RECLAIM is assumed to be the same as ALLOC_KSWAPD 4475 * to save two branches. 4476 */ 4477 BUILD_BUG_ON(__GFP_HIGH != (__force gfp_t) ALLOC_MIN_RESERVE); 4478 BUILD_BUG_ON(__GFP_KSWAPD_RECLAIM != (__force gfp_t) ALLOC_KSWAPD); 4479 4480 /* 4481 * The caller may dip into page reserves a bit more if the caller 4482 * cannot run direct reclaim, or if the caller has realtime scheduling 4483 * policy or is asking for __GFP_HIGH memory. GFP_ATOMIC requests will 4484 * set both ALLOC_NON_BLOCK and ALLOC_MIN_RESERVE(__GFP_HIGH). 4485 */ 4486 alloc_flags |= (__force int) 4487 (gfp_mask & (__GFP_HIGH | __GFP_KSWAPD_RECLAIM)); 4488 4489 if (!(gfp_mask & __GFP_DIRECT_RECLAIM)) { 4490 /* 4491 * Not worth trying to allocate harder for __GFP_NOMEMALLOC even 4492 * if it can't schedule. 4493 */ 4494 if (!(gfp_mask & __GFP_NOMEMALLOC)) { 4495 alloc_flags |= ALLOC_NON_BLOCK; 4496 4497 if (order > 0 && (alloc_flags & ALLOC_MIN_RESERVE)) 4498 alloc_flags |= ALLOC_HIGHATOMIC; 4499 } 4500 4501 /* 4502 * Ignore cpuset mems for non-blocking __GFP_HIGH (probably 4503 * GFP_ATOMIC) rather than fail, see the comment for 4504 * cpuset_current_node_allowed(). 4505 */ 4506 if (alloc_flags & ALLOC_MIN_RESERVE) 4507 alloc_flags &= ~ALLOC_CPUSET; 4508 } else if (unlikely(rt_or_dl_task(current)) && in_task()) 4509 alloc_flags |= ALLOC_MIN_RESERVE; 4510 4511 alloc_flags = gfp_to_alloc_flags_cma(gfp_mask, alloc_flags); 4512 4513 if (defrag_mode) 4514 alloc_flags |= ALLOC_NOFRAGMENT; 4515 4516 return alloc_flags; 4517 } 4518 4519 static bool oom_reserves_allowed(struct task_struct *tsk) 4520 { 4521 if (!tsk_is_oom_victim(tsk)) 4522 return false; 4523 4524 /* 4525 * !MMU doesn't have oom reaper so give access to memory reserves 4526 * only to the thread with TIF_MEMDIE set 4527 */ 4528 if (!IS_ENABLED(CONFIG_MMU) && !test_thread_flag(TIF_MEMDIE)) 4529 return false; 4530 4531 return true; 4532 } 4533 4534 /* 4535 * Distinguish requests which really need access to full memory 4536 * reserves from oom victims which can live with a portion of it 4537 */ 4538 static inline int __gfp_pfmemalloc_flags(gfp_t gfp_mask) 4539 { 4540 if (unlikely(gfp_mask & __GFP_NOMEMALLOC)) 4541 return 0; 4542 if (gfp_mask & __GFP_MEMALLOC) 4543 return ALLOC_NO_WATERMARKS; 4544 if (in_serving_softirq() && (current->flags & PF_MEMALLOC)) 4545 return ALLOC_NO_WATERMARKS; 4546 if (!in_interrupt()) { 4547 if (current->flags & PF_MEMALLOC) 4548 return ALLOC_NO_WATERMARKS; 4549 else if (oom_reserves_allowed(current)) 4550 return ALLOC_OOM; 4551 } 4552 4553 return 0; 4554 } 4555 4556 bool gfp_pfmemalloc_allowed(gfp_t gfp_mask) 4557 { 4558 return !!__gfp_pfmemalloc_flags(gfp_mask); 4559 } 4560 4561 /* 4562 * Checks whether it makes sense to retry the reclaim to make a forward progress 4563 * for the given allocation request. 4564 * 4565 * We give up when we either have tried MAX_RECLAIM_RETRIES in a row 4566 * without success, or when we couldn't even meet the watermark if we 4567 * reclaimed all remaining pages on the LRU lists. 4568 * 4569 * Returns true if a retry is viable or false to enter the oom path. 4570 */ 4571 static inline bool 4572 should_reclaim_retry(gfp_t gfp_mask, unsigned order, 4573 struct alloc_context *ac, int alloc_flags, 4574 bool did_some_progress, int *no_progress_loops) 4575 { 4576 struct zone *zone; 4577 struct zoneref *z; 4578 bool ret = false; 4579 4580 /* 4581 * Costly allocations might have made a progress but this doesn't mean 4582 * their order will become available due to high fragmentation so 4583 * always increment the no progress counter for them 4584 */ 4585 if (did_some_progress && order <= PAGE_ALLOC_COSTLY_ORDER) 4586 *no_progress_loops = 0; 4587 else 4588 (*no_progress_loops)++; 4589 4590 if (*no_progress_loops > MAX_RECLAIM_RETRIES) 4591 goto out; 4592 4593 4594 /* 4595 * Keep reclaiming pages while there is a chance this will lead 4596 * somewhere. If none of the target zones can satisfy our allocation 4597 * request even if all reclaimable pages are considered then we are 4598 * screwed and have to go OOM. 4599 */ 4600 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, 4601 ac->highest_zoneidx, ac->nodemask) { 4602 unsigned long available; 4603 unsigned long reclaimable; 4604 unsigned long min_wmark = min_wmark_pages(zone); 4605 bool wmark; 4606 4607 if (cpusets_enabled() && 4608 (alloc_flags & ALLOC_CPUSET) && 4609 !__cpuset_zone_allowed(zone, gfp_mask)) 4610 continue; 4611 4612 available = reclaimable = zone_reclaimable_pages(zone); 4613 available += zone_page_state_snapshot(zone, NR_FREE_PAGES); 4614 4615 /* 4616 * Would the allocation succeed if we reclaimed all 4617 * reclaimable pages? 4618 */ 4619 wmark = __zone_watermark_ok(zone, order, min_wmark, 4620 ac->highest_zoneidx, alloc_flags, available); 4621 trace_reclaim_retry_zone(z, order, reclaimable, 4622 available, min_wmark, *no_progress_loops, wmark); 4623 if (wmark) { 4624 ret = true; 4625 break; 4626 } 4627 } 4628 4629 /* 4630 * Memory allocation/reclaim might be called from a WQ context and the 4631 * current implementation of the WQ concurrency control doesn't 4632 * recognize that a particular WQ is congested if the worker thread is 4633 * looping without ever sleeping. Therefore we have to do a short sleep 4634 * here rather than calling cond_resched(). 4635 */ 4636 if (current->flags & PF_WQ_WORKER) 4637 schedule_timeout_uninterruptible(1); 4638 else 4639 cond_resched(); 4640 out: 4641 /* Before OOM, exhaust highatomic_reserve */ 4642 if (!ret) 4643 return unreserve_highatomic_pageblock(ac, true); 4644 4645 return ret; 4646 } 4647 4648 static inline bool 4649 check_retry_cpuset(int cpuset_mems_cookie, struct alloc_context *ac) 4650 { 4651 /* 4652 * It's possible that cpuset's mems_allowed and the nodemask from 4653 * mempolicy don't intersect. This should be normally dealt with by 4654 * policy_nodemask(), but it's possible to race with cpuset update in 4655 * such a way the check therein was true, and then it became false 4656 * before we got our cpuset_mems_cookie here. 4657 * This assumes that for all allocations, ac->nodemask can come only 4658 * from MPOL_BIND mempolicy (whose documented semantics is to be ignored 4659 * when it does not intersect with the cpuset restrictions) or the 4660 * caller can deal with a violated nodemask. 4661 */ 4662 if (cpusets_enabled() && ac->nodemask && 4663 !cpuset_nodemask_valid_mems_allowed(ac->nodemask)) { 4664 ac->nodemask = NULL; 4665 return true; 4666 } 4667 4668 /* 4669 * When updating a task's mems_allowed or mempolicy nodemask, it is 4670 * possible to race with parallel threads in such a way that our 4671 * allocation can fail while the mask is being updated. If we are about 4672 * to fail, check if the cpuset changed during allocation and if so, 4673 * retry. 4674 */ 4675 if (read_mems_allowed_retry(cpuset_mems_cookie)) 4676 return true; 4677 4678 return false; 4679 } 4680 4681 static inline struct page * 4682 __alloc_pages_slowpath(gfp_t gfp_mask, unsigned int order, 4683 struct alloc_context *ac) 4684 { 4685 bool can_direct_reclaim = gfp_mask & __GFP_DIRECT_RECLAIM; 4686 bool can_compact = can_direct_reclaim && gfp_compaction_allowed(gfp_mask); 4687 bool nofail = gfp_mask & __GFP_NOFAIL; 4688 const bool costly_order = order > PAGE_ALLOC_COSTLY_ORDER; 4689 struct page *page = NULL; 4690 unsigned int alloc_flags; 4691 unsigned long did_some_progress; 4692 enum compact_priority compact_priority; 4693 enum compact_result compact_result; 4694 int compaction_retries; 4695 int no_progress_loops; 4696 unsigned int cpuset_mems_cookie; 4697 unsigned int zonelist_iter_cookie; 4698 int reserve_flags; 4699 bool compact_first = false; 4700 bool can_retry_reserves = true; 4701 4702 if (unlikely(nofail)) { 4703 /* 4704 * Also we don't support __GFP_NOFAIL without __GFP_DIRECT_RECLAIM, 4705 * otherwise, we may result in lockup. 4706 */ 4707 WARN_ON_ONCE(!can_direct_reclaim); 4708 /* 4709 * PF_MEMALLOC request from this context is rather bizarre 4710 * because we cannot reclaim anything and only can loop waiting 4711 * for somebody to do a work for us. 4712 */ 4713 WARN_ON_ONCE(current->flags & PF_MEMALLOC); 4714 } 4715 4716 restart: 4717 compaction_retries = 0; 4718 no_progress_loops = 0; 4719 compact_result = COMPACT_SKIPPED; 4720 compact_priority = DEF_COMPACT_PRIORITY; 4721 cpuset_mems_cookie = read_mems_allowed_begin(); 4722 zonelist_iter_cookie = zonelist_iter_begin(); 4723 4724 /* 4725 * For costly allocations, try direct compaction first, as it's likely 4726 * that we have enough base pages and don't need to reclaim. For non- 4727 * movable high-order allocations, do that as well, as compaction will 4728 * try prevent permanent fragmentation by migrating from blocks of the 4729 * same migratetype. 4730 */ 4731 if (can_compact && (costly_order || (order > 0 && 4732 ac->migratetype != MIGRATE_MOVABLE))) { 4733 compact_first = true; 4734 compact_priority = INIT_COMPACT_PRIORITY; 4735 } 4736 4737 /* 4738 * The fast path uses conservative alloc_flags to succeed only until 4739 * kswapd needs to be woken up, and to avoid the cost of setting up 4740 * alloc_flags precisely. So we do that now. 4741 */ 4742 alloc_flags = gfp_to_alloc_flags(gfp_mask, order); 4743 4744 /* 4745 * We need to recalculate the starting point for the zonelist iterator 4746 * because we might have used different nodemask in the fast path, or 4747 * there was a cpuset modification and we are retrying - otherwise we 4748 * could end up iterating over non-eligible zones endlessly. 4749 */ 4750 ac->preferred_zoneref = first_zones_zonelist(ac->zonelist, 4751 ac->highest_zoneidx, ac->nodemask); 4752 if (!zonelist_zone(ac->preferred_zoneref)) 4753 goto nopage; 4754 4755 /* 4756 * Check for insane configurations where the cpuset doesn't contain 4757 * any suitable zone to satisfy the request - e.g. non-movable 4758 * GFP_HIGHUSER allocations from MOVABLE nodes only. 4759 */ 4760 if (cpusets_insane_config() && (gfp_mask & __GFP_HARDWALL)) { 4761 struct zoneref *z = first_zones_zonelist(ac->zonelist, 4762 ac->highest_zoneidx, 4763 &cpuset_current_mems_allowed); 4764 if (!zonelist_zone(z)) 4765 goto nopage; 4766 } 4767 4768 retry: 4769 /* Ensure kswapd doesn't accidentally go to sleep as long as we loop */ 4770 if (alloc_flags & ALLOC_KSWAPD) 4771 wake_all_kswapds(order, gfp_mask, ac); 4772 4773 /* 4774 * The adjusted alloc_flags might result in immediate success, so try 4775 * that first 4776 */ 4777 page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac); 4778 if (page) 4779 goto got_pg; 4780 4781 reserve_flags = __gfp_pfmemalloc_flags(gfp_mask); 4782 if (reserve_flags) 4783 alloc_flags = gfp_to_alloc_flags_cma(gfp_mask, reserve_flags) | 4784 (alloc_flags & ALLOC_KSWAPD); 4785 4786 /* 4787 * Reset the nodemask and zonelist iterators if memory policies can be 4788 * ignored. These allocations are high priority and system rather than 4789 * user oriented. 4790 */ 4791 if (!(alloc_flags & ALLOC_CPUSET) || reserve_flags) { 4792 ac->nodemask = NULL; 4793 ac->preferred_zoneref = first_zones_zonelist(ac->zonelist, 4794 ac->highest_zoneidx, ac->nodemask); 4795 4796 /* 4797 * The first time we adjust anything due to being allowed to 4798 * ignore memory policies or watermarks, retry immediately. This 4799 * allows us to keep the first allocation attempt optimistic so 4800 * it can succeed in a zone that is still above watermarks. 4801 */ 4802 if (can_retry_reserves) { 4803 can_retry_reserves = false; 4804 goto retry; 4805 } 4806 } 4807 4808 /* Caller is not willing to reclaim, we can't balance anything */ 4809 if (!can_direct_reclaim) 4810 goto nopage; 4811 4812 /* Avoid recursion of direct reclaim */ 4813 if (current->flags & PF_MEMALLOC) 4814 goto nopage; 4815 4816 /* Try direct reclaim and then allocating */ 4817 if (!compact_first) { 4818 page = __alloc_pages_direct_reclaim(gfp_mask, order, alloc_flags, 4819 ac, &did_some_progress); 4820 if (page) 4821 goto got_pg; 4822 } 4823 4824 /* Try direct compaction and then allocating */ 4825 page = __alloc_pages_direct_compact(gfp_mask, order, alloc_flags, ac, 4826 compact_priority, &compact_result); 4827 if (page) 4828 goto got_pg; 4829 4830 if (compact_first) { 4831 /* 4832 * THP page faults may attempt local node only first, but are 4833 * then allowed to only compact, not reclaim, see 4834 * alloc_pages_mpol(). 4835 * 4836 * Compaction has failed above and we don't want such THP 4837 * allocations to put reclaim pressure on a single node in a 4838 * situation where other nodes might have plenty of available 4839 * memory. 4840 */ 4841 if (gfp_has_flags(gfp_mask, __GFP_NORETRY | __GFP_THISNODE)) 4842 goto nopage; 4843 4844 /* 4845 * For the initial compaction attempt we have lowered its 4846 * priority. Restore it for further retries, if those are 4847 * allowed. With __GFP_NORETRY there will be a single round of 4848 * reclaim and compaction with the lowered priority. 4849 */ 4850 if (!(gfp_mask & __GFP_NORETRY)) 4851 compact_priority = DEF_COMPACT_PRIORITY; 4852 4853 compact_first = false; 4854 goto retry; 4855 } 4856 4857 /* Do not loop if specifically requested */ 4858 if (gfp_mask & __GFP_NORETRY) 4859 goto nopage; 4860 4861 /* 4862 * Do not retry costly high order allocations unless they are 4863 * __GFP_RETRY_MAYFAIL and we can compact 4864 */ 4865 if (costly_order && (!can_compact || 4866 !(gfp_mask & __GFP_RETRY_MAYFAIL))) 4867 goto nopage; 4868 4869 /* 4870 * Deal with possible cpuset update races or zonelist updates to avoid 4871 * infinite retries. No "goto retry;" can be placed above this check 4872 * unless it can execute just once. 4873 */ 4874 if (check_retry_cpuset(cpuset_mems_cookie, ac) || 4875 check_retry_zonelist(zonelist_iter_cookie)) 4876 goto restart; 4877 4878 if (should_reclaim_retry(gfp_mask, order, ac, alloc_flags, 4879 did_some_progress > 0, &no_progress_loops)) 4880 goto retry; 4881 4882 /* 4883 * It doesn't make any sense to retry for the compaction if the order-0 4884 * reclaim is not able to make any progress because the current 4885 * implementation of the compaction depends on the sufficient amount 4886 * of free memory (see __compaction_suitable) 4887 */ 4888 if (did_some_progress > 0 && can_compact && 4889 should_compact_retry(ac, order, alloc_flags, 4890 compact_result, &compact_priority, 4891 &compaction_retries)) 4892 goto retry; 4893 4894 /* Reclaim/compaction failed to prevent the fallback */ 4895 if (defrag_mode && (alloc_flags & ALLOC_NOFRAGMENT)) { 4896 alloc_flags &= ~ALLOC_NOFRAGMENT; 4897 goto retry; 4898 } 4899 4900 /* 4901 * Deal with possible cpuset update races or zonelist updates to avoid 4902 * a unnecessary OOM kill. 4903 */ 4904 if (check_retry_cpuset(cpuset_mems_cookie, ac) || 4905 check_retry_zonelist(zonelist_iter_cookie)) 4906 goto restart; 4907 4908 /* Reclaim has failed us, start killing things */ 4909 page = __alloc_pages_may_oom(gfp_mask, order, ac, &did_some_progress); 4910 if (page) 4911 goto got_pg; 4912 4913 /* Avoid allocations with no watermarks from looping endlessly */ 4914 if (tsk_is_oom_victim(current) && 4915 (alloc_flags & ALLOC_OOM || 4916 (gfp_mask & __GFP_NOMEMALLOC))) 4917 goto nopage; 4918 4919 /* Retry as long as the OOM killer is making progress */ 4920 if (did_some_progress) { 4921 no_progress_loops = 0; 4922 goto retry; 4923 } 4924 4925 nopage: 4926 /* 4927 * Deal with possible cpuset update races or zonelist updates to avoid 4928 * a unnecessary OOM kill. 4929 */ 4930 if (check_retry_cpuset(cpuset_mems_cookie, ac) || 4931 check_retry_zonelist(zonelist_iter_cookie)) 4932 goto restart; 4933 4934 /* 4935 * Make sure that __GFP_NOFAIL request doesn't leak out and make sure 4936 * we always retry 4937 */ 4938 if (unlikely(nofail)) { 4939 /* 4940 * Lacking direct_reclaim we can't do anything to reclaim memory, 4941 * we disregard these unreasonable nofail requests and still 4942 * return NULL 4943 */ 4944 if (!can_direct_reclaim) 4945 goto fail; 4946 4947 /* 4948 * Help non-failing allocations by giving some access to memory 4949 * reserves normally used for high priority non-blocking 4950 * allocations but do not use ALLOC_NO_WATERMARKS because this 4951 * could deplete whole memory reserves which would just make 4952 * the situation worse. 4953 */ 4954 page = __alloc_pages_cpuset_fallback(gfp_mask, order, ALLOC_MIN_RESERVE, ac); 4955 if (page) 4956 goto got_pg; 4957 4958 cond_resched(); 4959 goto retry; 4960 } 4961 fail: 4962 warn_alloc(gfp_mask, ac->nodemask, 4963 "page allocation failure: order:%u", order); 4964 got_pg: 4965 return page; 4966 } 4967 4968 static inline bool prepare_alloc_pages(gfp_t gfp_mask, unsigned int order, 4969 int preferred_nid, nodemask_t *nodemask, 4970 struct alloc_context *ac, gfp_t *alloc_gfp, 4971 unsigned int *alloc_flags) 4972 { 4973 ac->highest_zoneidx = gfp_zone(gfp_mask); 4974 ac->zonelist = node_zonelist(preferred_nid, gfp_mask); 4975 ac->nodemask = nodemask; 4976 ac->migratetype = gfp_migratetype(gfp_mask); 4977 4978 if (cpusets_enabled()) { 4979 *alloc_gfp |= __GFP_HARDWALL; 4980 /* 4981 * When we are in the interrupt context, it is irrelevant 4982 * to the current task context. It means that any node ok. 4983 */ 4984 if (in_task() && !ac->nodemask) 4985 ac->nodemask = &cpuset_current_mems_allowed; 4986 else 4987 *alloc_flags |= ALLOC_CPUSET; 4988 } 4989 4990 might_alloc(gfp_mask); 4991 4992 /* 4993 * Don't invoke should_fail logic, since it may call 4994 * get_random_u32() and printk() which need to spin_lock. 4995 */ 4996 if (!(*alloc_flags & ALLOC_TRYLOCK) && 4997 should_fail_alloc_page(gfp_mask, order)) 4998 return false; 4999 5000 *alloc_flags = gfp_to_alloc_flags_cma(gfp_mask, *alloc_flags); 5001 5002 /* Dirty zone balancing only done in the fast path */ 5003 ac->spread_dirty_pages = (gfp_mask & __GFP_WRITE); 5004 5005 /* 5006 * The preferred zone is used for statistics but crucially it is 5007 * also used as the starting point for the zonelist iterator. It 5008 * may get reset for allocations that ignore memory policies. 5009 */ 5010 ac->preferred_zoneref = first_zones_zonelist(ac->zonelist, 5011 ac->highest_zoneidx, ac->nodemask); 5012 5013 return true; 5014 } 5015 5016 /* 5017 * __alloc_pages_bulk - Allocate a number of order-0 pages to an array 5018 * @gfp: GFP flags for the allocation 5019 * @preferred_nid: The preferred NUMA node ID to allocate from 5020 * @nodemask: Set of nodes to allocate from, may be NULL 5021 * @nr_pages: The number of pages desired in the array 5022 * @page_array: Array to store the pages 5023 * 5024 * This is a batched version of the page allocator that attempts to allocate 5025 * @nr_pages quickly. Pages are added to @page_array. 5026 * 5027 * Note that only the elements in @page_array that were cleared to %NULL on 5028 * entry are populated with newly allocated pages. @nr_pages is the maximum 5029 * number of pages that will be stored in the array. 5030 * 5031 * Returns the number of pages in @page_array, including ones already 5032 * allocated on entry. This can be less than the number requested in @nr_pages, 5033 * but all empty slots are filled from the beginning. I.e., if all slots in 5034 * @page_array were set to %NULL on entry, the slots from 0 to the return value 5035 * - 1 will be filled. 5036 */ 5037 unsigned long alloc_pages_bulk_noprof(gfp_t gfp, int preferred_nid, 5038 nodemask_t *nodemask, int nr_pages, 5039 struct page **page_array) 5040 { 5041 struct page *page; 5042 struct zone *zone; 5043 struct zoneref *z; 5044 struct per_cpu_pages *pcp; 5045 struct list_head *pcp_list; 5046 struct alloc_context ac; 5047 gfp_t alloc_gfp; 5048 unsigned int alloc_flags = ALLOC_WMARK_LOW; 5049 int nr_populated = 0, nr_account = 0; 5050 5051 /* 5052 * Skip populated array elements to determine if any pages need 5053 * to be allocated before disabling IRQs. 5054 */ 5055 while (nr_populated < nr_pages && page_array[nr_populated]) 5056 nr_populated++; 5057 5058 /* No pages requested? */ 5059 if (unlikely(nr_pages <= 0)) 5060 goto out; 5061 5062 /* Already populated array? */ 5063 if (unlikely(nr_pages - nr_populated == 0)) 5064 goto out; 5065 5066 /* Bulk allocator does not support memcg accounting. */ 5067 if (memcg_kmem_online() && (gfp & __GFP_ACCOUNT)) 5068 goto failed; 5069 5070 /* Use the single page allocator for one page. */ 5071 if (nr_pages - nr_populated == 1) 5072 goto failed; 5073 5074 #ifdef CONFIG_PAGE_OWNER 5075 /* 5076 * PAGE_OWNER may recurse into the allocator to allocate space to 5077 * save the stack with pagesets.lock held. Releasing/reacquiring 5078 * removes much of the performance benefit of bulk allocation so 5079 * force the caller to allocate one page at a time as it'll have 5080 * similar performance to added complexity to the bulk allocator. 5081 */ 5082 if (static_branch_unlikely(&page_owner_inited)) 5083 goto failed; 5084 #endif 5085 5086 /* May set ALLOC_NOFRAGMENT, fragmentation will return 1 page. */ 5087 gfp &= gfp_allowed_mask; 5088 alloc_gfp = gfp; 5089 if (!prepare_alloc_pages(gfp, 0, preferred_nid, nodemask, &ac, &alloc_gfp, &alloc_flags)) 5090 goto out; 5091 gfp = alloc_gfp; 5092 5093 /* Find an allowed local zone that meets the low watermark. */ 5094 z = ac.preferred_zoneref; 5095 for_next_zone_zonelist_nodemask(zone, z, ac.highest_zoneidx, ac.nodemask) { 5096 unsigned long mark; 5097 5098 if (cpusets_enabled() && (alloc_flags & ALLOC_CPUSET) && 5099 !__cpuset_zone_allowed(zone, gfp)) { 5100 continue; 5101 } 5102 5103 if (nr_online_nodes > 1 && zone != zonelist_zone(ac.preferred_zoneref) && 5104 zone_to_nid(zone) != zonelist_node_idx(ac.preferred_zoneref)) { 5105 goto failed; 5106 } 5107 5108 cond_accept_memory(zone, 0, alloc_flags); 5109 retry_this_zone: 5110 mark = wmark_pages(zone, alloc_flags & ALLOC_WMARK_MASK) + nr_pages - nr_populated; 5111 if (zone_watermark_fast(zone, 0, mark, 5112 zonelist_zone_idx(ac.preferred_zoneref), 5113 alloc_flags, gfp)) { 5114 break; 5115 } 5116 5117 if (cond_accept_memory(zone, 0, alloc_flags)) 5118 goto retry_this_zone; 5119 5120 /* Try again if zone has deferred pages */ 5121 if (deferred_pages_enabled()) { 5122 if (_deferred_grow_zone(zone, 0)) 5123 goto retry_this_zone; 5124 } 5125 } 5126 5127 /* 5128 * If there are no allowed local zones that meets the watermarks then 5129 * try to allocate a single page and reclaim if necessary. 5130 */ 5131 if (unlikely(!zone)) 5132 goto failed; 5133 5134 /* spin_trylock may fail due to a parallel drain or IRQ reentrancy. */ 5135 pcp = pcp_spin_trylock(zone->per_cpu_pageset); 5136 if (!pcp) 5137 goto failed; 5138 5139 /* Attempt the batch allocation */ 5140 pcp_list = &pcp->lists[order_to_pindex(ac.migratetype, 0)]; 5141 while (nr_populated < nr_pages) { 5142 5143 /* Skip existing pages */ 5144 if (page_array[nr_populated]) { 5145 nr_populated++; 5146 continue; 5147 } 5148 5149 page = __rmqueue_pcplist(zone, 0, ac.migratetype, alloc_flags, 5150 pcp, pcp_list); 5151 if (unlikely(!page)) { 5152 /* Try and allocate at least one page */ 5153 if (!nr_account) { 5154 pcp_spin_unlock(pcp); 5155 goto failed; 5156 } 5157 break; 5158 } 5159 nr_account++; 5160 5161 prep_new_page(page, 0, gfp, 0); 5162 set_page_refcounted(page); 5163 page_array[nr_populated++] = page; 5164 } 5165 5166 pcp_spin_unlock(pcp); 5167 5168 __count_zid_vm_events(PGALLOC, zone_idx(zone), nr_account); 5169 zone_statistics(zonelist_zone(ac.preferred_zoneref), zone, nr_account); 5170 5171 out: 5172 return nr_populated; 5173 5174 failed: 5175 page = __alloc_pages_noprof(gfp, 0, preferred_nid, nodemask); 5176 if (page) 5177 page_array[nr_populated++] = page; 5178 goto out; 5179 } 5180 EXPORT_SYMBOL_GPL(alloc_pages_bulk_noprof); 5181 5182 /* 5183 * This is the 'heart' of the zoned buddy allocator. 5184 */ 5185 struct page *__alloc_frozen_pages_noprof(gfp_t gfp, unsigned int order, 5186 int preferred_nid, nodemask_t *nodemask) 5187 { 5188 struct page *page; 5189 unsigned int alloc_flags = ALLOC_WMARK_LOW; 5190 gfp_t alloc_gfp; /* The gfp_t that was actually used for allocation */ 5191 struct alloc_context ac = { }; 5192 5193 /* 5194 * There are several places where we assume that the order value is sane 5195 * so bail out early if the request is out of bound. 5196 */ 5197 if (WARN_ON_ONCE_GFP(order > MAX_PAGE_ORDER, gfp)) 5198 return NULL; 5199 5200 gfp &= gfp_allowed_mask; 5201 /* 5202 * Apply scoped allocation constraints. This is mainly about GFP_NOFS 5203 * resp. GFP_NOIO which has to be inherited for all allocation requests 5204 * from a particular context which has been marked by 5205 * memalloc_no{fs,io}_{save,restore}. And PF_MEMALLOC_PIN which ensures 5206 * movable zones are not used during allocation. 5207 */ 5208 gfp = current_gfp_context(gfp); 5209 alloc_gfp = gfp; 5210 if (!prepare_alloc_pages(gfp, order, preferred_nid, nodemask, &ac, 5211 &alloc_gfp, &alloc_flags)) 5212 return NULL; 5213 5214 /* 5215 * Forbid the first pass from falling back to types that fragment 5216 * memory until all local zones are considered. 5217 */ 5218 alloc_flags |= alloc_flags_nofragment(zonelist_zone(ac.preferred_zoneref), gfp); 5219 5220 /* First allocation attempt */ 5221 page = get_page_from_freelist(alloc_gfp, order, alloc_flags, &ac); 5222 if (likely(page)) 5223 goto out; 5224 5225 alloc_gfp = gfp; 5226 ac.spread_dirty_pages = false; 5227 5228 /* 5229 * Restore the original nodemask if it was potentially replaced with 5230 * &cpuset_current_mems_allowed to optimize the fast-path attempt. 5231 */ 5232 ac.nodemask = nodemask; 5233 5234 page = __alloc_pages_slowpath(alloc_gfp, order, &ac); 5235 5236 out: 5237 if (memcg_kmem_online() && (gfp & __GFP_ACCOUNT) && page && 5238 unlikely(__memcg_kmem_charge_page(page, gfp, order) != 0)) { 5239 free_frozen_pages(page, order); 5240 page = NULL; 5241 } 5242 5243 trace_mm_page_alloc(page, order, alloc_gfp, ac.migratetype); 5244 kmsan_alloc_page(page, order, alloc_gfp); 5245 5246 return page; 5247 } 5248 EXPORT_SYMBOL(__alloc_frozen_pages_noprof); 5249 5250 struct page *__alloc_pages_noprof(gfp_t gfp, unsigned int order, 5251 int preferred_nid, nodemask_t *nodemask) 5252 { 5253 struct page *page; 5254 5255 page = __alloc_frozen_pages_noprof(gfp, order, preferred_nid, nodemask); 5256 if (page) 5257 set_page_refcounted(page); 5258 return page; 5259 } 5260 EXPORT_SYMBOL(__alloc_pages_noprof); 5261 5262 struct folio *__folio_alloc_noprof(gfp_t gfp, unsigned int order, int preferred_nid, 5263 nodemask_t *nodemask) 5264 { 5265 struct page *page = __alloc_pages_noprof(gfp | __GFP_COMP, order, 5266 preferred_nid, nodemask); 5267 return page_rmappable_folio(page); 5268 } 5269 EXPORT_SYMBOL(__folio_alloc_noprof); 5270 5271 /* 5272 * Common helper functions. Never use with __GFP_HIGHMEM because the returned 5273 * address cannot represent highmem pages. Use alloc_pages and then kmap if 5274 * you need to access high mem. 5275 */ 5276 unsigned long get_free_pages_noprof(gfp_t gfp_mask, unsigned int order) 5277 { 5278 struct page *page; 5279 5280 page = alloc_pages_noprof(gfp_mask & ~__GFP_HIGHMEM, order); 5281 if (!page) 5282 return 0; 5283 return (unsigned long) page_address(page); 5284 } 5285 EXPORT_SYMBOL(get_free_pages_noprof); 5286 5287 unsigned long get_zeroed_page_noprof(gfp_t gfp_mask) 5288 { 5289 return get_free_pages_noprof(gfp_mask | __GFP_ZERO, 0); 5290 } 5291 EXPORT_SYMBOL(get_zeroed_page_noprof); 5292 5293 static void ___free_pages(struct page *page, unsigned int order, 5294 fpi_t fpi_flags) 5295 { 5296 /* get PageHead before we drop reference */ 5297 int head = PageHead(page); 5298 /* get alloc tag in case the page is released by others */ 5299 struct alloc_tag *tag = pgalloc_tag_get(page); 5300 5301 if (put_page_testzero(page)) 5302 __free_frozen_pages(page, order, fpi_flags); 5303 else if (!head) { 5304 pgalloc_tag_sub_pages(tag, (1 << order) - 1); 5305 while (order-- > 0) { 5306 /* 5307 * The "tail" pages of this non-compound high-order 5308 * page will have no code tags, so to avoid warnings 5309 * mark them as empty. 5310 */ 5311 clear_page_tag_ref(page + (1 << order)); 5312 __free_frozen_pages(page + (1 << order), order, 5313 fpi_flags); 5314 } 5315 } 5316 } 5317 5318 /** 5319 * __free_pages - Free pages allocated with alloc_pages(). 5320 * @page: The page pointer returned from alloc_pages(). 5321 * @order: The order of the allocation. 5322 * 5323 * This function can free multi-page allocations that are not compound 5324 * pages. It does not check that the @order passed in matches that of 5325 * the allocation, so it is easy to leak memory. Freeing more memory 5326 * than was allocated will probably emit a warning. 5327 * 5328 * If the last reference to this page is speculative, it will be released 5329 * by put_page() which only frees the first page of a non-compound 5330 * allocation. To prevent the remaining pages from being leaked, we free 5331 * the subsequent pages here. If you want to use the page's reference 5332 * count to decide when to free the allocation, you should allocate a 5333 * compound page, and use put_page() instead of __free_pages(). 5334 * 5335 * Context: May be called in interrupt context or while holding a normal 5336 * spinlock, but not in NMI context or while holding a raw spinlock. 5337 */ 5338 void __free_pages(struct page *page, unsigned int order) 5339 { 5340 ___free_pages(page, order, FPI_NONE); 5341 } 5342 EXPORT_SYMBOL(__free_pages); 5343 5344 /* 5345 * Can be called while holding raw_spin_lock or from IRQ and NMI for any 5346 * page type (not only those that came from alloc_pages_nolock) 5347 */ 5348 void free_pages_nolock(struct page *page, unsigned int order) 5349 { 5350 ___free_pages(page, order, FPI_TRYLOCK); 5351 } 5352 5353 /** 5354 * free_pages - Free pages allocated with __get_free_pages(). 5355 * @addr: The virtual address tied to a page returned from __get_free_pages(). 5356 * @order: The order of the allocation. 5357 * 5358 * This function behaves the same as __free_pages(). Use this function 5359 * to free pages when you only have a valid virtual address. If you have 5360 * the page, call __free_pages() instead. 5361 */ 5362 void free_pages(unsigned long addr, unsigned int order) 5363 { 5364 if (addr != 0) { 5365 VM_BUG_ON(!virt_addr_valid((void *)addr)); 5366 __free_pages(virt_to_page((void *)addr), order); 5367 } 5368 } 5369 5370 EXPORT_SYMBOL(free_pages); 5371 5372 static void *make_alloc_exact(unsigned long addr, unsigned int order, 5373 size_t size) 5374 { 5375 if (addr) { 5376 unsigned long nr = DIV_ROUND_UP(size, PAGE_SIZE); 5377 struct page *page = virt_to_page((void *)addr); 5378 struct page *last = page + nr; 5379 5380 __split_page(page, order); 5381 while (page < --last) 5382 set_page_refcounted(last); 5383 5384 last = page + (1UL << order); 5385 for (page += nr; page < last; page++) 5386 __free_pages_ok(page, 0, FPI_TO_TAIL); 5387 } 5388 return (void *)addr; 5389 } 5390 5391 /** 5392 * alloc_pages_exact - allocate an exact number physically-contiguous pages. 5393 * @size: the number of bytes to allocate 5394 * @gfp_mask: GFP flags for the allocation, must not contain __GFP_COMP 5395 * 5396 * This function is similar to alloc_pages(), except that it allocates the 5397 * minimum number of pages to satisfy the request. alloc_pages() can only 5398 * allocate memory in power-of-two pages. 5399 * 5400 * This function is also limited by MAX_PAGE_ORDER. 5401 * 5402 * Memory allocated by this function must be released by free_pages_exact(). 5403 * 5404 * Return: pointer to the allocated area or %NULL in case of error. 5405 */ 5406 void *alloc_pages_exact_noprof(size_t size, gfp_t gfp_mask) 5407 { 5408 unsigned int order = get_order(size); 5409 unsigned long addr; 5410 5411 if (WARN_ON_ONCE(gfp_mask & (__GFP_COMP | __GFP_HIGHMEM))) 5412 gfp_mask &= ~(__GFP_COMP | __GFP_HIGHMEM); 5413 5414 addr = get_free_pages_noprof(gfp_mask, order); 5415 return make_alloc_exact(addr, order, size); 5416 } 5417 EXPORT_SYMBOL(alloc_pages_exact_noprof); 5418 5419 /** 5420 * alloc_pages_exact_nid - allocate an exact number of physically-contiguous 5421 * pages on a node. 5422 * @nid: the preferred node ID where memory should be allocated 5423 * @size: the number of bytes to allocate 5424 * @gfp_mask: GFP flags for the allocation, must not contain __GFP_COMP 5425 * 5426 * Like alloc_pages_exact(), but try to allocate on node nid first before falling 5427 * back. 5428 * 5429 * Return: pointer to the allocated area or %NULL in case of error. 5430 */ 5431 void * __meminit alloc_pages_exact_nid_noprof(int nid, size_t size, gfp_t gfp_mask) 5432 { 5433 unsigned int order = get_order(size); 5434 struct page *p; 5435 5436 if (WARN_ON_ONCE(gfp_mask & (__GFP_COMP | __GFP_HIGHMEM))) 5437 gfp_mask &= ~(__GFP_COMP | __GFP_HIGHMEM); 5438 5439 p = alloc_pages_node_noprof(nid, gfp_mask, order); 5440 if (!p) 5441 return NULL; 5442 return make_alloc_exact((unsigned long)page_address(p), order, size); 5443 } 5444 5445 /** 5446 * free_pages_exact - release memory allocated via alloc_pages_exact() 5447 * @virt: the value returned by alloc_pages_exact. 5448 * @size: size of allocation, same value as passed to alloc_pages_exact(). 5449 * 5450 * Release the memory allocated by a previous call to alloc_pages_exact. 5451 */ 5452 void free_pages_exact(void *virt, size_t size) 5453 { 5454 unsigned long addr = (unsigned long)virt; 5455 unsigned long end = addr + PAGE_ALIGN(size); 5456 5457 while (addr < end) { 5458 free_page(addr); 5459 addr += PAGE_SIZE; 5460 } 5461 } 5462 EXPORT_SYMBOL(free_pages_exact); 5463 5464 /** 5465 * nr_free_zone_pages - count number of pages beyond high watermark 5466 * @offset: The zone index of the highest zone 5467 * 5468 * nr_free_zone_pages() counts the number of pages which are beyond the 5469 * high watermark within all zones at or below a given zone index. For each 5470 * zone, the number of pages is calculated as: 5471 * 5472 * nr_free_zone_pages = managed_pages - high_pages 5473 * 5474 * Return: number of pages beyond high watermark. 5475 */ 5476 static unsigned long nr_free_zone_pages(int offset) 5477 { 5478 struct zoneref *z; 5479 struct zone *zone; 5480 5481 /* Just pick one node, since fallback list is circular */ 5482 unsigned long sum = 0; 5483 5484 struct zonelist *zonelist = node_zonelist(numa_node_id(), GFP_KERNEL); 5485 5486 for_each_zone_zonelist(zone, z, zonelist, offset) { 5487 unsigned long size = zone_managed_pages(zone); 5488 unsigned long high = high_wmark_pages(zone); 5489 if (size > high) 5490 sum += size - high; 5491 } 5492 5493 return sum; 5494 } 5495 5496 /** 5497 * nr_free_buffer_pages - count number of pages beyond high watermark 5498 * 5499 * nr_free_buffer_pages() counts the number of pages which are beyond the high 5500 * watermark within ZONE_DMA and ZONE_NORMAL. 5501 * 5502 * Return: number of pages beyond high watermark within ZONE_DMA and 5503 * ZONE_NORMAL. 5504 */ 5505 unsigned long nr_free_buffer_pages(void) 5506 { 5507 return nr_free_zone_pages(gfp_zone(GFP_USER)); 5508 } 5509 EXPORT_SYMBOL_GPL(nr_free_buffer_pages); 5510 5511 static void zoneref_set_zone(struct zone *zone, struct zoneref *zoneref) 5512 { 5513 zoneref->zone = zone; 5514 zoneref->zone_idx = zone_idx(zone); 5515 } 5516 5517 /* 5518 * Builds allocation fallback zone lists. 5519 * 5520 * Add all populated zones of a node to the zonelist. 5521 */ 5522 static int build_zonerefs_node(pg_data_t *pgdat, struct zoneref *zonerefs) 5523 { 5524 struct zone *zone; 5525 enum zone_type zone_type = MAX_NR_ZONES; 5526 int nr_zones = 0; 5527 5528 do { 5529 zone_type--; 5530 zone = pgdat->node_zones + zone_type; 5531 if (populated_zone(zone)) { 5532 zoneref_set_zone(zone, &zonerefs[nr_zones++]); 5533 check_highest_zone(zone_type); 5534 } 5535 } while (zone_type); 5536 5537 return nr_zones; 5538 } 5539 5540 #ifdef CONFIG_NUMA 5541 5542 static int __parse_numa_zonelist_order(char *s) 5543 { 5544 /* 5545 * We used to support different zonelists modes but they turned 5546 * out to be just not useful. Let's keep the warning in place 5547 * if somebody still use the cmd line parameter so that we do 5548 * not fail it silently 5549 */ 5550 if (!(*s == 'd' || *s == 'D' || *s == 'n' || *s == 'N')) { 5551 pr_warn("Ignoring unsupported numa_zonelist_order value: %s\n", s); 5552 return -EINVAL; 5553 } 5554 return 0; 5555 } 5556 5557 static char numa_zonelist_order[] = "Node"; 5558 #define NUMA_ZONELIST_ORDER_LEN 16 5559 /* 5560 * sysctl handler for numa_zonelist_order 5561 */ 5562 static int numa_zonelist_order_handler(const struct ctl_table *table, int write, 5563 void *buffer, size_t *length, loff_t *ppos) 5564 { 5565 if (write) 5566 return __parse_numa_zonelist_order(buffer); 5567 return proc_dostring(table, write, buffer, length, ppos); 5568 } 5569 5570 static int node_load[MAX_NUMNODES]; 5571 5572 /** 5573 * find_next_best_node - find the next node that should appear in a given node's fallback list 5574 * @node: node whose fallback list we're appending 5575 * @used_node_mask: nodemask_t of already used nodes 5576 * 5577 * We use a number of factors to determine which is the next node that should 5578 * appear on a given node's fallback list. The node should not have appeared 5579 * already in @node's fallback list, and it should be the next closest node 5580 * according to the distance array (which contains arbitrary distance values 5581 * from each node to each node in the system), and should also prefer nodes 5582 * with no CPUs, since presumably they'll have very little allocation pressure 5583 * on them otherwise. 5584 * 5585 * Return: node id of the found node or %NUMA_NO_NODE if no node is found. 5586 */ 5587 int find_next_best_node(int node, nodemask_t *used_node_mask) 5588 { 5589 int n, val; 5590 int min_val = INT_MAX; 5591 int best_node = NUMA_NO_NODE; 5592 5593 /* 5594 * Use the local node if we haven't already, but for memoryless local 5595 * node, we should skip it and fall back to other nodes. 5596 */ 5597 if (!node_isset(node, *used_node_mask) && node_state(node, N_MEMORY)) { 5598 node_set(node, *used_node_mask); 5599 return node; 5600 } 5601 5602 for_each_node_state(n, N_MEMORY) { 5603 5604 /* Don't want a node to appear more than once */ 5605 if (node_isset(n, *used_node_mask)) 5606 continue; 5607 5608 /* Use the distance array to find the distance */ 5609 val = node_distance(node, n); 5610 5611 /* Penalize nodes under us ("prefer the next node") */ 5612 val += (n < node); 5613 5614 /* Give preference to headless and unused nodes */ 5615 if (!cpumask_empty(cpumask_of_node(n))) 5616 val += PENALTY_FOR_NODE_WITH_CPUS; 5617 5618 /* Slight preference for less loaded node */ 5619 val *= MAX_NUMNODES; 5620 val += node_load[n]; 5621 5622 if (val < min_val) { 5623 min_val = val; 5624 best_node = n; 5625 } 5626 } 5627 5628 if (best_node >= 0) 5629 node_set(best_node, *used_node_mask); 5630 5631 return best_node; 5632 } 5633 5634 5635 /* 5636 * Build zonelists ordered by node and zones within node. 5637 * This results in maximum locality--normal zone overflows into local 5638 * DMA zone, if any--but risks exhausting DMA zone. 5639 */ 5640 static void build_zonelists_in_node_order(pg_data_t *pgdat, int *node_order, 5641 unsigned nr_nodes) 5642 { 5643 struct zoneref *zonerefs; 5644 int i; 5645 5646 zonerefs = pgdat->node_zonelists[ZONELIST_FALLBACK]._zonerefs; 5647 5648 for (i = 0; i < nr_nodes; i++) { 5649 int nr_zones; 5650 5651 pg_data_t *node = NODE_DATA(node_order[i]); 5652 5653 nr_zones = build_zonerefs_node(node, zonerefs); 5654 zonerefs += nr_zones; 5655 } 5656 zonerefs->zone = NULL; 5657 zonerefs->zone_idx = 0; 5658 } 5659 5660 /* 5661 * Build __GFP_THISNODE zonelists 5662 */ 5663 static void build_thisnode_zonelists(pg_data_t *pgdat) 5664 { 5665 struct zoneref *zonerefs; 5666 int nr_zones; 5667 5668 zonerefs = pgdat->node_zonelists[ZONELIST_NOFALLBACK]._zonerefs; 5669 nr_zones = build_zonerefs_node(pgdat, zonerefs); 5670 zonerefs += nr_zones; 5671 zonerefs->zone = NULL; 5672 zonerefs->zone_idx = 0; 5673 } 5674 5675 static void build_zonelists(pg_data_t *pgdat) 5676 { 5677 static int node_order[MAX_NUMNODES]; 5678 int node, nr_nodes = 0; 5679 nodemask_t used_mask = NODE_MASK_NONE; 5680 int local_node, prev_node; 5681 5682 /* NUMA-aware ordering of nodes */ 5683 local_node = pgdat->node_id; 5684 prev_node = local_node; 5685 5686 memset(node_order, 0, sizeof(node_order)); 5687 while ((node = find_next_best_node(local_node, &used_mask)) >= 0) { 5688 /* 5689 * We don't want to pressure a particular node. 5690 * So adding penalty to the first node in same 5691 * distance group to make it round-robin. 5692 */ 5693 if (node_distance(local_node, node) != 5694 node_distance(local_node, prev_node)) 5695 node_load[node] += 1; 5696 5697 node_order[nr_nodes++] = node; 5698 prev_node = node; 5699 } 5700 5701 build_zonelists_in_node_order(pgdat, node_order, nr_nodes); 5702 build_thisnode_zonelists(pgdat); 5703 pr_info("Fallback order for Node %d: ", local_node); 5704 for (node = 0; node < nr_nodes; node++) 5705 pr_cont("%d ", node_order[node]); 5706 pr_cont("\n"); 5707 } 5708 5709 #ifdef CONFIG_HAVE_MEMORYLESS_NODES 5710 /* 5711 * Return node id of node used for "local" allocations. 5712 * I.e., first node id of first zone in arg node's generic zonelist. 5713 * Used for initializing percpu 'numa_mem', which is used primarily 5714 * for kernel allocations, so use GFP_KERNEL flags to locate zonelist. 5715 */ 5716 int local_memory_node(int node) 5717 { 5718 struct zoneref *z; 5719 5720 z = first_zones_zonelist(node_zonelist(node, GFP_KERNEL), 5721 gfp_zone(GFP_KERNEL), 5722 NULL); 5723 return zonelist_node_idx(z); 5724 } 5725 #endif 5726 5727 static void setup_min_unmapped_ratio(void); 5728 static void setup_min_slab_ratio(void); 5729 #else /* CONFIG_NUMA */ 5730 5731 static void build_zonelists(pg_data_t *pgdat) 5732 { 5733 struct zoneref *zonerefs; 5734 int nr_zones; 5735 5736 zonerefs = pgdat->node_zonelists[ZONELIST_FALLBACK]._zonerefs; 5737 nr_zones = build_zonerefs_node(pgdat, zonerefs); 5738 zonerefs += nr_zones; 5739 5740 zonerefs->zone = NULL; 5741 zonerefs->zone_idx = 0; 5742 } 5743 5744 #endif /* CONFIG_NUMA */ 5745 5746 /* 5747 * Boot pageset table. One per cpu which is going to be used for all 5748 * zones and all nodes. The parameters will be set in such a way 5749 * that an item put on a list will immediately be handed over to 5750 * the buddy list. This is safe since pageset manipulation is done 5751 * with interrupts disabled. 5752 * 5753 * The boot_pagesets must be kept even after bootup is complete for 5754 * unused processors and/or zones. They do play a role for bootstrapping 5755 * hotplugged processors. 5756 * 5757 * zoneinfo_show() and maybe other functions do 5758 * not check if the processor is online before following the pageset pointer. 5759 * Other parts of the kernel may not check if the zone is available. 5760 */ 5761 static void per_cpu_pages_init(struct per_cpu_pages *pcp, struct per_cpu_zonestat *pzstats); 5762 /* These effectively disable the pcplists in the boot pageset completely */ 5763 #define BOOT_PAGESET_HIGH 0 5764 #define BOOT_PAGESET_BATCH 1 5765 static DEFINE_PER_CPU(struct per_cpu_pages, boot_pageset); 5766 static DEFINE_PER_CPU(struct per_cpu_zonestat, boot_zonestats); 5767 5768 static void __build_all_zonelists(void *data) 5769 { 5770 int nid; 5771 int __maybe_unused cpu; 5772 pg_data_t *self = data; 5773 unsigned long flags; 5774 5775 /* 5776 * The zonelist_update_seq must be acquired with irqsave because the 5777 * reader can be invoked from IRQ with GFP_ATOMIC. 5778 */ 5779 write_seqlock_irqsave(&zonelist_update_seq, flags); 5780 /* 5781 * Also disable synchronous printk() to prevent any printk() from 5782 * trying to hold port->lock, for 5783 * tty_insert_flip_string_and_push_buffer() on other CPU might be 5784 * calling kmalloc(GFP_ATOMIC | __GFP_NOWARN) with port->lock held. 5785 */ 5786 printk_deferred_enter(); 5787 5788 #ifdef CONFIG_NUMA 5789 memset(node_load, 0, sizeof(node_load)); 5790 #endif 5791 5792 /* 5793 * This node is hotadded and no memory is yet present. So just 5794 * building zonelists is fine - no need to touch other nodes. 5795 */ 5796 if (self && !node_online(self->node_id)) { 5797 build_zonelists(self); 5798 } else { 5799 /* 5800 * All possible nodes have pgdat preallocated 5801 * in free_area_init 5802 */ 5803 for_each_node(nid) { 5804 pg_data_t *pgdat = NODE_DATA(nid); 5805 5806 build_zonelists(pgdat); 5807 } 5808 5809 #ifdef CONFIG_HAVE_MEMORYLESS_NODES 5810 /* 5811 * We now know the "local memory node" for each node-- 5812 * i.e., the node of the first zone in the generic zonelist. 5813 * Set up numa_mem percpu variable for on-line cpus. During 5814 * boot, only the boot cpu should be on-line; we'll init the 5815 * secondary cpus' numa_mem as they come on-line. During 5816 * node/memory hotplug, we'll fixup all on-line cpus. 5817 */ 5818 for_each_online_cpu(cpu) 5819 set_cpu_numa_mem(cpu, local_memory_node(cpu_to_node(cpu))); 5820 #endif 5821 } 5822 5823 printk_deferred_exit(); 5824 write_sequnlock_irqrestore(&zonelist_update_seq, flags); 5825 } 5826 5827 static noinline void __init 5828 build_all_zonelists_init(void) 5829 { 5830 int cpu; 5831 5832 __build_all_zonelists(NULL); 5833 5834 /* 5835 * Initialize the boot_pagesets that are going to be used 5836 * for bootstrapping processors. The real pagesets for 5837 * each zone will be allocated later when the per cpu 5838 * allocator is available. 5839 * 5840 * boot_pagesets are used also for bootstrapping offline 5841 * cpus if the system is already booted because the pagesets 5842 * are needed to initialize allocators on a specific cpu too. 5843 * F.e. the percpu allocator needs the page allocator which 5844 * needs the percpu allocator in order to allocate its pagesets 5845 * (a chicken-egg dilemma). 5846 */ 5847 for_each_possible_cpu(cpu) 5848 per_cpu_pages_init(&per_cpu(boot_pageset, cpu), &per_cpu(boot_zonestats, cpu)); 5849 5850 mminit_verify_zonelist(); 5851 cpuset_init_current_mems_allowed(); 5852 } 5853 5854 /* 5855 * unless system_state == SYSTEM_BOOTING. 5856 * 5857 * __ref due to call of __init annotated helper build_all_zonelists_init 5858 * [protected by SYSTEM_BOOTING]. 5859 */ 5860 void __ref build_all_zonelists(pg_data_t *pgdat) 5861 { 5862 unsigned long vm_total_pages; 5863 5864 if (system_state == SYSTEM_BOOTING) { 5865 build_all_zonelists_init(); 5866 } else { 5867 __build_all_zonelists(pgdat); 5868 /* cpuset refresh routine should be here */ 5869 } 5870 /* Get the number of free pages beyond high watermark in all zones. */ 5871 vm_total_pages = nr_free_zone_pages(gfp_zone(GFP_HIGHUSER_MOVABLE)); 5872 /* 5873 * Disable grouping by mobility if the number of pages in the 5874 * system is too low to allow the mechanism to work. It would be 5875 * more accurate, but expensive to check per-zone. This check is 5876 * made on memory-hotadd so a system can start with mobility 5877 * disabled and enable it later 5878 */ 5879 if (vm_total_pages < (pageblock_nr_pages * MIGRATE_TYPES)) 5880 page_group_by_mobility_disabled = 1; 5881 else 5882 page_group_by_mobility_disabled = 0; 5883 5884 pr_info("Built %u zonelists, mobility grouping %s. Total pages: %ld\n", 5885 nr_online_nodes, 5886 str_off_on(page_group_by_mobility_disabled), 5887 vm_total_pages); 5888 #ifdef CONFIG_NUMA 5889 pr_info("Policy zone: %s\n", zone_names[policy_zone]); 5890 #endif 5891 } 5892 5893 static int zone_batchsize(struct zone *zone) 5894 { 5895 #ifdef CONFIG_MMU 5896 int batch; 5897 5898 /* 5899 * The number of pages to batch allocate is either ~0.025% 5900 * of the zone or 256KB, whichever is smaller. The batch 5901 * size is striking a balance between allocation latency 5902 * and zone lock contention. 5903 */ 5904 batch = min(zone_managed_pages(zone) >> 12, SZ_256K / PAGE_SIZE); 5905 if (batch <= 1) 5906 return 1; 5907 5908 /* 5909 * Clamp the batch to a 2^n - 1 value. Having a power 5910 * of 2 value was found to be more likely to have 5911 * suboptimal cache aliasing properties in some cases. 5912 * 5913 * For example if 2 tasks are alternately allocating 5914 * batches of pages, one task can end up with a lot 5915 * of pages of one half of the possible page colors 5916 * and the other with pages of the other colors. 5917 */ 5918 batch = rounddown_pow_of_two(batch + batch/2) - 1; 5919 5920 return batch; 5921 5922 #else 5923 /* The deferral and batching of frees should be suppressed under NOMMU 5924 * conditions. 5925 * 5926 * The problem is that NOMMU needs to be able to allocate large chunks 5927 * of contiguous memory as there's no hardware page translation to 5928 * assemble apparent contiguous memory from discontiguous pages. 5929 * 5930 * Queueing large contiguous runs of pages for batching, however, 5931 * causes the pages to actually be freed in smaller chunks. As there 5932 * can be a significant delay between the individual batches being 5933 * recycled, this leads to the once large chunks of space being 5934 * fragmented and becoming unavailable for high-order allocations. 5935 */ 5936 return 1; 5937 #endif 5938 } 5939 5940 static int percpu_pagelist_high_fraction; 5941 static int zone_highsize(struct zone *zone, int batch, int cpu_online, 5942 int high_fraction) 5943 { 5944 #ifdef CONFIG_MMU 5945 int high; 5946 int nr_split_cpus; 5947 unsigned long total_pages; 5948 5949 if (!high_fraction) { 5950 /* 5951 * By default, the high value of the pcp is based on the zone 5952 * low watermark so that if they are full then background 5953 * reclaim will not be started prematurely. 5954 */ 5955 total_pages = low_wmark_pages(zone); 5956 } else { 5957 /* 5958 * If percpu_pagelist_high_fraction is configured, the high 5959 * value is based on a fraction of the managed pages in the 5960 * zone. 5961 */ 5962 total_pages = zone_managed_pages(zone) / high_fraction; 5963 } 5964 5965 /* 5966 * Split the high value across all online CPUs local to the zone. Note 5967 * that early in boot that CPUs may not be online yet and that during 5968 * CPU hotplug that the cpumask is not yet updated when a CPU is being 5969 * onlined. For memory nodes that have no CPUs, split the high value 5970 * across all online CPUs to mitigate the risk that reclaim is triggered 5971 * prematurely due to pages stored on pcp lists. 5972 */ 5973 nr_split_cpus = cpumask_weight(cpumask_of_node(zone_to_nid(zone))) + cpu_online; 5974 if (!nr_split_cpus) 5975 nr_split_cpus = num_online_cpus(); 5976 high = total_pages / nr_split_cpus; 5977 5978 /* 5979 * Ensure high is at least batch*4. The multiple is based on the 5980 * historical relationship between high and batch. 5981 */ 5982 high = max(high, batch << 2); 5983 5984 return high; 5985 #else 5986 return 0; 5987 #endif 5988 } 5989 5990 /* 5991 * pcp->high and pcp->batch values are related and generally batch is lower 5992 * than high. They are also related to pcp->count such that count is lower 5993 * than high, and as soon as it reaches high, the pcplist is flushed. 5994 * 5995 * However, guaranteeing these relations at all times would require e.g. write 5996 * barriers here but also careful usage of read barriers at the read side, and 5997 * thus be prone to error and bad for performance. Thus the update only prevents 5998 * store tearing. Any new users of pcp->batch, pcp->high_min and pcp->high_max 5999 * should ensure they can cope with those fields changing asynchronously, and 6000 * fully trust only the pcp->count field on the local CPU with interrupts 6001 * disabled. 6002 * 6003 * mutex_is_locked(&pcp_batch_high_lock) required when calling this function 6004 * outside of boot time (or some other assurance that no concurrent updaters 6005 * exist). 6006 */ 6007 static void pageset_update(struct per_cpu_pages *pcp, unsigned long high_min, 6008 unsigned long high_max, unsigned long batch) 6009 { 6010 WRITE_ONCE(pcp->batch, batch); 6011 WRITE_ONCE(pcp->high_min, high_min); 6012 WRITE_ONCE(pcp->high_max, high_max); 6013 } 6014 6015 static void per_cpu_pages_init(struct per_cpu_pages *pcp, struct per_cpu_zonestat *pzstats) 6016 { 6017 int pindex; 6018 6019 memset(pcp, 0, sizeof(*pcp)); 6020 memset(pzstats, 0, sizeof(*pzstats)); 6021 6022 spin_lock_init(&pcp->lock); 6023 for (pindex = 0; pindex < NR_PCP_LISTS; pindex++) 6024 INIT_LIST_HEAD(&pcp->lists[pindex]); 6025 6026 /* 6027 * Set batch and high values safe for a boot pageset. A true percpu 6028 * pageset's initialization will update them subsequently. Here we don't 6029 * need to be as careful as pageset_update() as nobody can access the 6030 * pageset yet. 6031 */ 6032 pcp->high_min = BOOT_PAGESET_HIGH; 6033 pcp->high_max = BOOT_PAGESET_HIGH; 6034 pcp->batch = BOOT_PAGESET_BATCH; 6035 } 6036 6037 static void __zone_set_pageset_high_and_batch(struct zone *zone, unsigned long high_min, 6038 unsigned long high_max, unsigned long batch) 6039 { 6040 struct per_cpu_pages *pcp; 6041 int cpu; 6042 6043 for_each_possible_cpu(cpu) { 6044 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu); 6045 pageset_update(pcp, high_min, high_max, batch); 6046 } 6047 } 6048 6049 /* 6050 * Calculate and set new high and batch values for all per-cpu pagesets of a 6051 * zone based on the zone's size. 6052 */ 6053 static void zone_set_pageset_high_and_batch(struct zone *zone, int cpu_online) 6054 { 6055 int new_high_min, new_high_max, new_batch; 6056 6057 new_batch = zone_batchsize(zone); 6058 if (percpu_pagelist_high_fraction) { 6059 new_high_min = zone_highsize(zone, new_batch, cpu_online, 6060 percpu_pagelist_high_fraction); 6061 /* 6062 * PCP high is tuned manually, disable auto-tuning via 6063 * setting high_min and high_max to the manual value. 6064 */ 6065 new_high_max = new_high_min; 6066 } else { 6067 new_high_min = zone_highsize(zone, new_batch, cpu_online, 0); 6068 new_high_max = zone_highsize(zone, new_batch, cpu_online, 6069 MIN_PERCPU_PAGELIST_HIGH_FRACTION); 6070 } 6071 6072 if (zone->pageset_high_min == new_high_min && 6073 zone->pageset_high_max == new_high_max && 6074 zone->pageset_batch == new_batch) 6075 return; 6076 6077 zone->pageset_high_min = new_high_min; 6078 zone->pageset_high_max = new_high_max; 6079 zone->pageset_batch = new_batch; 6080 6081 __zone_set_pageset_high_and_batch(zone, new_high_min, new_high_max, 6082 new_batch); 6083 } 6084 6085 void __meminit setup_zone_pageset(struct zone *zone) 6086 { 6087 int cpu; 6088 6089 /* Size may be 0 on !SMP && !NUMA */ 6090 if (sizeof(struct per_cpu_zonestat) > 0) 6091 zone->per_cpu_zonestats = alloc_percpu(struct per_cpu_zonestat); 6092 6093 zone->per_cpu_pageset = alloc_percpu(struct per_cpu_pages); 6094 for_each_possible_cpu(cpu) { 6095 struct per_cpu_pages *pcp; 6096 struct per_cpu_zonestat *pzstats; 6097 6098 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu); 6099 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu); 6100 per_cpu_pages_init(pcp, pzstats); 6101 } 6102 6103 zone_set_pageset_high_and_batch(zone, 0); 6104 } 6105 6106 /* 6107 * The zone indicated has a new number of managed_pages; batch sizes and percpu 6108 * page high values need to be recalculated. 6109 */ 6110 static void zone_pcp_update(struct zone *zone, int cpu_online) 6111 { 6112 mutex_lock(&pcp_batch_high_lock); 6113 zone_set_pageset_high_and_batch(zone, cpu_online); 6114 mutex_unlock(&pcp_batch_high_lock); 6115 } 6116 6117 static void zone_pcp_update_cacheinfo(struct zone *zone, unsigned int cpu) 6118 { 6119 struct per_cpu_pages *pcp; 6120 struct cpu_cacheinfo *cci; 6121 6122 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu); 6123 cci = get_cpu_cacheinfo(cpu); 6124 /* 6125 * If data cache slice of CPU is large enough, "pcp->batch" 6126 * pages can be preserved in PCP before draining PCP for 6127 * consecutive high-order pages freeing without allocation. 6128 * This can reduce zone lock contention without hurting 6129 * cache-hot pages sharing. 6130 */ 6131 pcp_spin_lock_nopin(pcp); 6132 if ((cci->per_cpu_data_slice_size >> PAGE_SHIFT) > 3 * pcp->batch) 6133 pcp->flags |= PCPF_FREE_HIGH_BATCH; 6134 else 6135 pcp->flags &= ~PCPF_FREE_HIGH_BATCH; 6136 pcp_spin_unlock_nopin(pcp); 6137 } 6138 6139 void setup_pcp_cacheinfo(unsigned int cpu) 6140 { 6141 struct zone *zone; 6142 6143 for_each_populated_zone(zone) 6144 zone_pcp_update_cacheinfo(zone, cpu); 6145 } 6146 6147 /* 6148 * Allocate per cpu pagesets and initialize them. 6149 * Before this call only boot pagesets were available. 6150 */ 6151 void __init setup_per_cpu_pageset(void) 6152 { 6153 struct pglist_data *pgdat; 6154 struct zone *zone; 6155 int __maybe_unused cpu; 6156 6157 for_each_populated_zone(zone) 6158 setup_zone_pageset(zone); 6159 6160 #ifdef CONFIG_NUMA 6161 /* 6162 * Unpopulated zones continue using the boot pagesets. 6163 * The numa stats for these pagesets need to be reset. 6164 * Otherwise, they will end up skewing the stats of 6165 * the nodes these zones are associated with. 6166 */ 6167 for_each_possible_cpu(cpu) { 6168 struct per_cpu_zonestat *pzstats = &per_cpu(boot_zonestats, cpu); 6169 memset(pzstats->vm_numa_event, 0, 6170 sizeof(pzstats->vm_numa_event)); 6171 } 6172 #endif 6173 6174 for_each_online_pgdat(pgdat) 6175 pgdat->per_cpu_nodestats = 6176 alloc_percpu(struct per_cpu_nodestat); 6177 } 6178 6179 __meminit void zone_pcp_init(struct zone *zone) 6180 { 6181 /* 6182 * per cpu subsystem is not up at this point. The following code 6183 * relies on the ability of the linker to provide the 6184 * offset of a (static) per cpu variable into the per cpu area. 6185 */ 6186 zone->per_cpu_pageset = &boot_pageset; 6187 zone->per_cpu_zonestats = &boot_zonestats; 6188 zone->pageset_high_min = BOOT_PAGESET_HIGH; 6189 zone->pageset_high_max = BOOT_PAGESET_HIGH; 6190 zone->pageset_batch = BOOT_PAGESET_BATCH; 6191 6192 if (populated_zone(zone)) 6193 pr_debug(" %s zone: %lu pages, LIFO batch:%u\n", zone->name, 6194 zone->present_pages, zone_batchsize(zone)); 6195 } 6196 6197 static void setup_per_zone_lowmem_reserve(void); 6198 6199 void adjust_managed_page_count(struct page *page, long count) 6200 { 6201 atomic_long_add(count, &page_zone(page)->managed_pages); 6202 totalram_pages_add(count); 6203 setup_per_zone_lowmem_reserve(); 6204 } 6205 EXPORT_SYMBOL(adjust_managed_page_count); 6206 6207 void free_reserved_page(struct page *page) 6208 { 6209 clear_page_tag_ref(page); 6210 ClearPageReserved(page); 6211 init_page_count(page); 6212 __free_page(page); 6213 adjust_managed_page_count(page, 1); 6214 } 6215 EXPORT_SYMBOL(free_reserved_page); 6216 6217 static int page_alloc_cpu_dead(unsigned int cpu) 6218 { 6219 struct zone *zone; 6220 6221 lru_add_drain_cpu(cpu); 6222 mlock_drain_remote(cpu); 6223 drain_pages(cpu); 6224 6225 /* 6226 * Spill the event counters of the dead processor 6227 * into the current processors event counters. 6228 * This artificially elevates the count of the current 6229 * processor. 6230 */ 6231 vm_events_fold_cpu(cpu); 6232 6233 /* 6234 * Zero the differential counters of the dead processor 6235 * so that the vm statistics are consistent. 6236 * 6237 * This is only okay since the processor is dead and cannot 6238 * race with what we are doing. 6239 */ 6240 cpu_vm_stats_fold(cpu); 6241 6242 for_each_populated_zone(zone) 6243 zone_pcp_update(zone, 0); 6244 6245 return 0; 6246 } 6247 6248 static int page_alloc_cpu_online(unsigned int cpu) 6249 { 6250 struct zone *zone; 6251 6252 for_each_populated_zone(zone) 6253 zone_pcp_update(zone, 1); 6254 return 0; 6255 } 6256 6257 void __init page_alloc_init_cpuhp(void) 6258 { 6259 int ret; 6260 6261 ret = cpuhp_setup_state_nocalls(CPUHP_PAGE_ALLOC, 6262 "mm/page_alloc:pcp", 6263 page_alloc_cpu_online, 6264 page_alloc_cpu_dead); 6265 WARN_ON(ret < 0); 6266 } 6267 6268 /* 6269 * calculate_totalreserve_pages - called when sysctl_lowmem_reserve_ratio 6270 * or min_free_kbytes changes. 6271 */ 6272 static void calculate_totalreserve_pages(void) 6273 { 6274 struct pglist_data *pgdat; 6275 unsigned long reserve_pages = 0; 6276 enum zone_type i, j; 6277 6278 for_each_online_pgdat(pgdat) { 6279 6280 pgdat->totalreserve_pages = 0; 6281 6282 for (i = 0; i < MAX_NR_ZONES; i++) { 6283 struct zone *zone = pgdat->node_zones + i; 6284 long max = 0; 6285 unsigned long managed_pages = zone_managed_pages(zone); 6286 6287 /* 6288 * lowmem_reserve[j] is monotonically non-decreasing 6289 * in j for a given zone (see 6290 * setup_per_zone_lowmem_reserve()). The maximum 6291 * valid reserve lives at the highest index with a 6292 * non-zero value, so scan backwards and stop at the 6293 * first hit. 6294 */ 6295 for (j = MAX_NR_ZONES - 1; j > i; j--) { 6296 if (!zone->lowmem_reserve[j]) 6297 continue; 6298 6299 max = zone->lowmem_reserve[j]; 6300 break; 6301 } 6302 /* we treat the high watermark as reserved pages. */ 6303 max += high_wmark_pages(zone); 6304 6305 max = min_t(unsigned long, max, managed_pages); 6306 6307 pgdat->totalreserve_pages += max; 6308 6309 reserve_pages += max; 6310 } 6311 } 6312 totalreserve_pages = reserve_pages; 6313 trace_mm_calculate_totalreserve_pages(totalreserve_pages); 6314 } 6315 6316 /* 6317 * setup_per_zone_lowmem_reserve - called whenever 6318 * sysctl_lowmem_reserve_ratio changes. Ensures that each zone 6319 * has a correct pages reserved value, so an adequate number of 6320 * pages are left in the zone after a successful __alloc_pages(). 6321 */ 6322 static void setup_per_zone_lowmem_reserve(void) 6323 { 6324 struct pglist_data *pgdat; 6325 enum zone_type i, j; 6326 /* 6327 * For a given zone node_zones[i], lowmem_reserve[j] (j > i) 6328 * represents how many pages in zone i must effectively be kept 6329 * in reserve when deciding whether an allocation class that is 6330 * allowed to allocate from zones up to j may fall back into 6331 * zone i. 6332 * 6333 * As j increases, the allocation class can use a strictly larger 6334 * set of fallback zones and therefore must not be allowed to 6335 * deplete low zones more aggressively than a less flexible one. 6336 * As a result, lowmem_reserve[j] is required to be monotonically 6337 * non-decreasing in j for each zone i. Callers such as 6338 * calculate_totalreserve_pages() rely on this monotonicity when 6339 * selecting the maximum reserve entry. 6340 */ 6341 for_each_online_pgdat(pgdat) { 6342 for (i = 0; i < MAX_NR_ZONES - 1; i++) { 6343 struct zone *zone = &pgdat->node_zones[i]; 6344 int ratio = sysctl_lowmem_reserve_ratio[i]; 6345 bool clear = !ratio || !zone_managed_pages(zone); 6346 unsigned long managed_pages = 0; 6347 6348 for (j = i + 1; j < MAX_NR_ZONES; j++) { 6349 struct zone *upper_zone = &pgdat->node_zones[j]; 6350 6351 managed_pages += zone_managed_pages(upper_zone); 6352 6353 if (clear) 6354 zone->lowmem_reserve[j] = 0; 6355 else 6356 zone->lowmem_reserve[j] = managed_pages / ratio; 6357 trace_mm_setup_per_zone_lowmem_reserve(zone, upper_zone, 6358 zone->lowmem_reserve[j]); 6359 } 6360 } 6361 } 6362 6363 /* update totalreserve_pages */ 6364 calculate_totalreserve_pages(); 6365 } 6366 6367 static void __setup_per_zone_wmarks(void) 6368 { 6369 unsigned long pages_min = min_free_kbytes >> (PAGE_SHIFT - 10); 6370 unsigned long lowmem_pages = 0; 6371 struct zone *zone; 6372 unsigned long flags; 6373 6374 /* Calculate total number of !ZONE_HIGHMEM and !ZONE_MOVABLE pages */ 6375 for_each_zone(zone) { 6376 if (!is_highmem(zone) && zone_idx(zone) != ZONE_MOVABLE) 6377 lowmem_pages += zone_managed_pages(zone); 6378 } 6379 6380 for_each_zone(zone) { 6381 u64 tmp; 6382 6383 spin_lock_irqsave(&zone->lock, flags); 6384 tmp = (u64)pages_min * zone_managed_pages(zone); 6385 tmp = div64_ul(tmp, lowmem_pages); 6386 if (is_highmem(zone) || zone_idx(zone) == ZONE_MOVABLE) { 6387 /* 6388 * __GFP_HIGH and PF_MEMALLOC allocations usually don't 6389 * need highmem and movable zones pages, so cap pages_min 6390 * to a small value here. 6391 * 6392 * The WMARK_HIGH-WMARK_LOW and (WMARK_LOW-WMARK_MIN) 6393 * deltas control async page reclaim, and so should 6394 * not be capped for highmem and movable zones. 6395 */ 6396 unsigned long min_pages; 6397 6398 min_pages = zone_managed_pages(zone) / 1024; 6399 min_pages = clamp(min_pages, SWAP_CLUSTER_MAX, 128UL); 6400 zone->_watermark[WMARK_MIN] = min_pages; 6401 } else { 6402 /* 6403 * If it's a lowmem zone, reserve a number of pages 6404 * proportionate to the zone's size. 6405 */ 6406 zone->_watermark[WMARK_MIN] = tmp; 6407 } 6408 6409 /* 6410 * Set the kswapd watermarks distance according to the 6411 * scale factor in proportion to available memory, but 6412 * ensure a minimum size on small systems. 6413 */ 6414 tmp = max_t(u64, tmp >> 2, 6415 mult_frac(zone_managed_pages(zone), 6416 watermark_scale_factor, 10000)); 6417 6418 zone->watermark_boost = 0; 6419 zone->_watermark[WMARK_LOW] = min_wmark_pages(zone) + tmp; 6420 zone->_watermark[WMARK_HIGH] = low_wmark_pages(zone) + tmp; 6421 zone->_watermark[WMARK_PROMO] = high_wmark_pages(zone) + tmp; 6422 trace_mm_setup_per_zone_wmarks(zone); 6423 6424 spin_unlock_irqrestore(&zone->lock, flags); 6425 } 6426 6427 /* update totalreserve_pages */ 6428 calculate_totalreserve_pages(); 6429 } 6430 6431 /** 6432 * setup_per_zone_wmarks - called when min_free_kbytes changes 6433 * or when memory is hot-{added|removed} 6434 * 6435 * Ensures that the watermark[min,low,high] values for each zone are set 6436 * correctly with respect to min_free_kbytes. 6437 */ 6438 void setup_per_zone_wmarks(void) 6439 { 6440 struct zone *zone; 6441 static DEFINE_SPINLOCK(lock); 6442 6443 spin_lock(&lock); 6444 __setup_per_zone_wmarks(); 6445 spin_unlock(&lock); 6446 6447 /* 6448 * The watermark size have changed so update the pcpu batch 6449 * and high limits or the limits may be inappropriate. 6450 */ 6451 for_each_zone(zone) 6452 zone_pcp_update(zone, 0); 6453 } 6454 6455 /* 6456 * Initialise min_free_kbytes. 6457 * 6458 * For small machines we want it small (128k min). For large machines 6459 * we want it large (256MB max). But it is not linear, because network 6460 * bandwidth does not increase linearly with machine size. We use 6461 * 6462 * min_free_kbytes = 4 * sqrt(lowmem_kbytes), for better accuracy: 6463 * min_free_kbytes = sqrt(lowmem_kbytes * 16) 6464 * 6465 * which yields 6466 * 6467 * 16MB: 512k 6468 * 32MB: 724k 6469 * 64MB: 1024k 6470 * 128MB: 1448k 6471 * 256MB: 2048k 6472 * 512MB: 2896k 6473 * 1024MB: 4096k 6474 * 2048MB: 5792k 6475 * 4096MB: 8192k 6476 * 8192MB: 11584k 6477 * 16384MB: 16384k 6478 */ 6479 void calculate_min_free_kbytes(void) 6480 { 6481 unsigned long lowmem_kbytes; 6482 int new_min_free_kbytes; 6483 6484 lowmem_kbytes = nr_free_buffer_pages() * (PAGE_SIZE >> 10); 6485 new_min_free_kbytes = int_sqrt(lowmem_kbytes * 16); 6486 6487 if (new_min_free_kbytes > user_min_free_kbytes) 6488 min_free_kbytes = clamp(new_min_free_kbytes, 128, 262144); 6489 else 6490 pr_warn_ratelimited("min_free_kbytes is not updated to %d because user defined value %d is preferred\n", 6491 new_min_free_kbytes, user_min_free_kbytes); 6492 6493 } 6494 6495 int __meminit init_per_zone_wmark_min(void) 6496 { 6497 calculate_min_free_kbytes(); 6498 setup_per_zone_wmarks(); 6499 refresh_zone_stat_thresholds(); 6500 setup_per_zone_lowmem_reserve(); 6501 6502 #ifdef CONFIG_NUMA 6503 setup_min_unmapped_ratio(); 6504 setup_min_slab_ratio(); 6505 #endif 6506 6507 khugepaged_min_free_kbytes_update(); 6508 6509 return 0; 6510 } 6511 postcore_initcall(init_per_zone_wmark_min) 6512 6513 /* 6514 * min_free_kbytes_sysctl_handler - just a wrapper around proc_dointvec() so 6515 * that we can call two helper functions whenever min_free_kbytes 6516 * changes. 6517 */ 6518 static int min_free_kbytes_sysctl_handler(const struct ctl_table *table, int write, 6519 void *buffer, size_t *length, loff_t *ppos) 6520 { 6521 int rc; 6522 6523 rc = proc_dointvec_minmax(table, write, buffer, length, ppos); 6524 if (rc) 6525 return rc; 6526 6527 if (write) { 6528 user_min_free_kbytes = min_free_kbytes; 6529 setup_per_zone_wmarks(); 6530 } 6531 return 0; 6532 } 6533 6534 static int watermark_scale_factor_sysctl_handler(const struct ctl_table *table, int write, 6535 void *buffer, size_t *length, loff_t *ppos) 6536 { 6537 int rc; 6538 6539 rc = proc_dointvec_minmax(table, write, buffer, length, ppos); 6540 if (rc) 6541 return rc; 6542 6543 if (write) 6544 setup_per_zone_wmarks(); 6545 6546 return 0; 6547 } 6548 6549 #ifdef CONFIG_NUMA 6550 static void setup_min_unmapped_ratio(void) 6551 { 6552 pg_data_t *pgdat; 6553 struct zone *zone; 6554 6555 for_each_online_pgdat(pgdat) 6556 pgdat->min_unmapped_pages = 0; 6557 6558 for_each_zone(zone) 6559 zone->zone_pgdat->min_unmapped_pages += (zone_managed_pages(zone) * 6560 sysctl_min_unmapped_ratio) / 100; 6561 } 6562 6563 6564 static int sysctl_min_unmapped_ratio_sysctl_handler(const struct ctl_table *table, int write, 6565 void *buffer, size_t *length, loff_t *ppos) 6566 { 6567 int rc; 6568 6569 rc = proc_dointvec_minmax(table, write, buffer, length, ppos); 6570 if (rc) 6571 return rc; 6572 6573 setup_min_unmapped_ratio(); 6574 6575 return 0; 6576 } 6577 6578 static void setup_min_slab_ratio(void) 6579 { 6580 pg_data_t *pgdat; 6581 struct zone *zone; 6582 6583 for_each_online_pgdat(pgdat) 6584 pgdat->min_slab_pages = 0; 6585 6586 for_each_zone(zone) 6587 zone->zone_pgdat->min_slab_pages += (zone_managed_pages(zone) * 6588 sysctl_min_slab_ratio) / 100; 6589 } 6590 6591 static int sysctl_min_slab_ratio_sysctl_handler(const struct ctl_table *table, int write, 6592 void *buffer, size_t *length, loff_t *ppos) 6593 { 6594 int rc; 6595 6596 rc = proc_dointvec_minmax(table, write, buffer, length, ppos); 6597 if (rc) 6598 return rc; 6599 6600 setup_min_slab_ratio(); 6601 6602 return 0; 6603 } 6604 #endif 6605 6606 /* 6607 * lowmem_reserve_ratio_sysctl_handler - just a wrapper around 6608 * proc_dointvec() so that we can call setup_per_zone_lowmem_reserve() 6609 * whenever sysctl_lowmem_reserve_ratio changes. 6610 * 6611 * The reserve ratio obviously has absolutely no relation with the 6612 * minimum watermarks. The lowmem reserve ratio can only make sense 6613 * if in function of the boot time zone sizes. 6614 */ 6615 static int lowmem_reserve_ratio_sysctl_handler(const struct ctl_table *table, 6616 int write, void *buffer, size_t *length, loff_t *ppos) 6617 { 6618 int i; 6619 6620 proc_dointvec_minmax(table, write, buffer, length, ppos); 6621 6622 for (i = 0; i < MAX_NR_ZONES; i++) { 6623 if (sysctl_lowmem_reserve_ratio[i] < 1) 6624 sysctl_lowmem_reserve_ratio[i] = 0; 6625 } 6626 6627 setup_per_zone_lowmem_reserve(); 6628 return 0; 6629 } 6630 6631 /* 6632 * percpu_pagelist_high_fraction - changes the pcp->high for each zone on each 6633 * cpu. It is the fraction of total pages in each zone that a hot per cpu 6634 * pagelist can have before it gets flushed back to buddy allocator. 6635 */ 6636 static int percpu_pagelist_high_fraction_sysctl_handler(const struct ctl_table *table, 6637 int write, void *buffer, size_t *length, loff_t *ppos) 6638 { 6639 struct zone *zone; 6640 int old_percpu_pagelist_high_fraction; 6641 int ret; 6642 6643 /* 6644 * Avoid using pcp_batch_high_lock for reads as the value is read 6645 * atomically and a race with offlining is harmless. 6646 */ 6647 6648 if (!write) 6649 return proc_dointvec_minmax(table, write, buffer, length, ppos); 6650 6651 mutex_lock(&pcp_batch_high_lock); 6652 old_percpu_pagelist_high_fraction = percpu_pagelist_high_fraction; 6653 6654 ret = proc_dointvec_minmax(table, write, buffer, length, ppos); 6655 if (ret < 0) 6656 goto out; 6657 6658 /* Sanity checking to avoid pcp imbalance */ 6659 if (percpu_pagelist_high_fraction && 6660 percpu_pagelist_high_fraction < MIN_PERCPU_PAGELIST_HIGH_FRACTION) { 6661 percpu_pagelist_high_fraction = old_percpu_pagelist_high_fraction; 6662 ret = -EINVAL; 6663 goto out; 6664 } 6665 6666 /* No change? */ 6667 if (percpu_pagelist_high_fraction == old_percpu_pagelist_high_fraction) 6668 goto out; 6669 6670 for_each_populated_zone(zone) 6671 zone_set_pageset_high_and_batch(zone, 0); 6672 out: 6673 mutex_unlock(&pcp_batch_high_lock); 6674 return ret; 6675 } 6676 6677 static const struct ctl_table page_alloc_sysctl_table[] = { 6678 { 6679 .procname = "min_free_kbytes", 6680 .data = &min_free_kbytes, 6681 .maxlen = sizeof(min_free_kbytes), 6682 .mode = 0644, 6683 .proc_handler = min_free_kbytes_sysctl_handler, 6684 .extra1 = SYSCTL_ZERO, 6685 }, 6686 { 6687 .procname = "watermark_boost_factor", 6688 .data = &watermark_boost_factor, 6689 .maxlen = sizeof(watermark_boost_factor), 6690 .mode = 0644, 6691 .proc_handler = proc_dointvec_minmax, 6692 .extra1 = SYSCTL_ZERO, 6693 }, 6694 { 6695 .procname = "watermark_scale_factor", 6696 .data = &watermark_scale_factor, 6697 .maxlen = sizeof(watermark_scale_factor), 6698 .mode = 0644, 6699 .proc_handler = watermark_scale_factor_sysctl_handler, 6700 .extra1 = SYSCTL_ONE, 6701 .extra2 = SYSCTL_THREE_THOUSAND, 6702 }, 6703 { 6704 .procname = "defrag_mode", 6705 .data = &defrag_mode, 6706 .maxlen = sizeof(defrag_mode), 6707 .mode = 0644, 6708 .proc_handler = proc_dointvec_minmax, 6709 .extra1 = SYSCTL_ZERO, 6710 .extra2 = SYSCTL_ONE, 6711 }, 6712 { 6713 .procname = "percpu_pagelist_high_fraction", 6714 .data = &percpu_pagelist_high_fraction, 6715 .maxlen = sizeof(percpu_pagelist_high_fraction), 6716 .mode = 0644, 6717 .proc_handler = percpu_pagelist_high_fraction_sysctl_handler, 6718 .extra1 = SYSCTL_ZERO, 6719 }, 6720 { 6721 .procname = "lowmem_reserve_ratio", 6722 .data = &sysctl_lowmem_reserve_ratio, 6723 .maxlen = sizeof(sysctl_lowmem_reserve_ratio), 6724 .mode = 0644, 6725 .proc_handler = lowmem_reserve_ratio_sysctl_handler, 6726 }, 6727 #ifdef CONFIG_NUMA 6728 { 6729 .procname = "numa_zonelist_order", 6730 .data = &numa_zonelist_order, 6731 .maxlen = NUMA_ZONELIST_ORDER_LEN, 6732 .mode = 0644, 6733 .proc_handler = numa_zonelist_order_handler, 6734 }, 6735 { 6736 .procname = "min_unmapped_ratio", 6737 .data = &sysctl_min_unmapped_ratio, 6738 .maxlen = sizeof(sysctl_min_unmapped_ratio), 6739 .mode = 0644, 6740 .proc_handler = sysctl_min_unmapped_ratio_sysctl_handler, 6741 .extra1 = SYSCTL_ZERO, 6742 .extra2 = SYSCTL_ONE_HUNDRED, 6743 }, 6744 { 6745 .procname = "min_slab_ratio", 6746 .data = &sysctl_min_slab_ratio, 6747 .maxlen = sizeof(sysctl_min_slab_ratio), 6748 .mode = 0644, 6749 .proc_handler = sysctl_min_slab_ratio_sysctl_handler, 6750 .extra1 = SYSCTL_ZERO, 6751 .extra2 = SYSCTL_ONE_HUNDRED, 6752 }, 6753 #endif 6754 }; 6755 6756 void __init page_alloc_sysctl_init(void) 6757 { 6758 register_sysctl_init("vm", page_alloc_sysctl_table); 6759 } 6760 6761 #ifdef CONFIG_CONTIG_ALLOC 6762 /* Usage: See admin-guide/dynamic-debug-howto.rst */ 6763 static void alloc_contig_dump_pages(struct list_head *page_list) 6764 { 6765 DEFINE_DYNAMIC_DEBUG_METADATA(descriptor, "migrate failure"); 6766 6767 if (DYNAMIC_DEBUG_BRANCH(descriptor)) { 6768 struct page *page; 6769 6770 dump_stack(); 6771 list_for_each_entry(page, page_list, lru) 6772 dump_page(page, "migration failure"); 6773 } 6774 } 6775 6776 /* [start, end) must belong to a single zone. */ 6777 static int __alloc_contig_migrate_range(struct compact_control *cc, 6778 unsigned long start, unsigned long end) 6779 { 6780 /* This function is based on compact_zone() from compaction.c. */ 6781 unsigned int nr_reclaimed; 6782 unsigned long pfn = start; 6783 unsigned int tries = 0; 6784 int ret = 0; 6785 struct migration_target_control mtc = { 6786 .nid = zone_to_nid(cc->zone), 6787 .gfp_mask = cc->gfp_mask, 6788 .reason = MR_CONTIG_RANGE, 6789 }; 6790 6791 lru_cache_disable(); 6792 6793 while (pfn < end || !list_empty(&cc->migratepages)) { 6794 if (fatal_signal_pending(current)) { 6795 ret = -EINTR; 6796 break; 6797 } 6798 6799 if (list_empty(&cc->migratepages)) { 6800 cc->nr_migratepages = 0; 6801 ret = isolate_migratepages_range(cc, pfn, end); 6802 if (ret && ret != -EAGAIN) 6803 break; 6804 pfn = cc->migrate_pfn; 6805 tries = 0; 6806 } else if (++tries == 5) { 6807 ret = -EBUSY; 6808 break; 6809 } 6810 6811 nr_reclaimed = reclaim_clean_pages_from_list(cc->zone, 6812 &cc->migratepages); 6813 cc->nr_migratepages -= nr_reclaimed; 6814 6815 ret = migrate_pages(&cc->migratepages, alloc_migration_target, 6816 NULL, (unsigned long)&mtc, cc->mode, MR_CONTIG_RANGE, NULL); 6817 6818 /* 6819 * On -ENOMEM, migrate_pages() bails out right away. It is pointless 6820 * to retry again over this error, so do the same here. 6821 */ 6822 if (ret == -ENOMEM) 6823 break; 6824 } 6825 6826 lru_cache_enable(); 6827 if (ret < 0) { 6828 if (!(cc->gfp_mask & __GFP_NOWARN) && ret == -EBUSY) 6829 alloc_contig_dump_pages(&cc->migratepages); 6830 putback_movable_pages(&cc->migratepages); 6831 } 6832 6833 return (ret < 0) ? ret : 0; 6834 } 6835 6836 static void split_free_frozen_pages(struct list_head *list, gfp_t gfp_mask) 6837 { 6838 int order; 6839 6840 for (order = 0; order < NR_PAGE_ORDERS; order++) { 6841 struct page *page, *next; 6842 int nr_pages = 1 << order; 6843 6844 list_for_each_entry_safe(page, next, &list[order], lru) { 6845 int i; 6846 6847 post_alloc_hook(page, order, gfp_mask); 6848 if (!order) 6849 continue; 6850 6851 __split_page(page, order); 6852 6853 /* Add all subpages to the order-0 head, in sequence. */ 6854 list_del(&page->lru); 6855 for (i = 0; i < nr_pages; i++) 6856 list_add_tail(&page[i].lru, &list[0]); 6857 } 6858 } 6859 } 6860 6861 static int __alloc_contig_verify_gfp_mask(gfp_t gfp_mask, gfp_t *gfp_cc_mask) 6862 { 6863 const gfp_t reclaim_mask = __GFP_IO | __GFP_FS | __GFP_RECLAIM; 6864 const gfp_t action_mask = __GFP_COMP | __GFP_RETRY_MAYFAIL | __GFP_NOWARN | 6865 __GFP_ZERO | __GFP_ZEROTAGS | __GFP_SKIP_ZERO | 6866 __GFP_SKIP_KASAN; 6867 const gfp_t cc_action_mask = __GFP_RETRY_MAYFAIL | __GFP_NOWARN; 6868 6869 /* 6870 * We are given the range to allocate; node, mobility and placement 6871 * hints are irrelevant at this point. We'll simply ignore them. 6872 */ 6873 gfp_mask &= ~(GFP_ZONEMASK | __GFP_RECLAIMABLE | __GFP_WRITE | 6874 __GFP_HARDWALL | __GFP_THISNODE | __GFP_MOVABLE); 6875 6876 /* 6877 * We only support most reclaim flags (but not NOFAIL/NORETRY), and 6878 * selected action flags. 6879 */ 6880 if (gfp_mask & ~(reclaim_mask | action_mask)) 6881 return -EINVAL; 6882 6883 /* 6884 * Flags to control page compaction/migration/reclaim, to free up our 6885 * page range. Migratable pages are movable, __GFP_MOVABLE is implied 6886 * for them. 6887 * 6888 * Traditionally we always had __GFP_RETRY_MAYFAIL set, keep doing that 6889 * to not degrade callers. 6890 */ 6891 *gfp_cc_mask = (gfp_mask & (reclaim_mask | cc_action_mask)) | 6892 __GFP_MOVABLE | __GFP_RETRY_MAYFAIL; 6893 return 0; 6894 } 6895 6896 static void __free_contig_frozen_range(unsigned long pfn, unsigned long nr_pages) 6897 { 6898 for (; nr_pages--; pfn++) 6899 free_frozen_pages(pfn_to_page(pfn), 0); 6900 } 6901 6902 /** 6903 * alloc_contig_frozen_range() -- tries to allocate given range of frozen pages 6904 * @start: start PFN to allocate 6905 * @end: one-past-the-last PFN to allocate 6906 * @alloc_flags: allocation information 6907 * @gfp_mask: GFP mask. Node/zone/placement hints are ignored; only some 6908 * action and reclaim modifiers are supported. Reclaim modifiers 6909 * control allocation behavior during compaction/migration/reclaim. 6910 * 6911 * The PFN range does not have to be pageblock aligned. The PFN range must 6912 * belong to a single zone. 6913 * 6914 * The first thing this routine does is attempt to MIGRATE_ISOLATE all 6915 * pageblocks in the range. Once isolated, the pageblocks should not 6916 * be modified by others. 6917 * 6918 * All frozen pages which PFN is in [start, end) are allocated for the 6919 * caller, and they could be freed with free_contig_frozen_range(), 6920 * free_frozen_pages() also could be used to free compound frozen pages 6921 * directly. 6922 * 6923 * Return: zero on success or negative error code. 6924 */ 6925 int alloc_contig_frozen_range_noprof(unsigned long start, unsigned long end, 6926 acr_flags_t alloc_flags, gfp_t gfp_mask) 6927 { 6928 const unsigned int order = ilog2(end - start); 6929 unsigned long outer_start, outer_end; 6930 int ret = 0; 6931 6932 struct compact_control cc = { 6933 .nr_migratepages = 0, 6934 .order = -1, 6935 .zone = page_zone(pfn_to_page(start)), 6936 .mode = MIGRATE_SYNC, 6937 .ignore_skip_hint = true, 6938 .no_set_skip_hint = true, 6939 .alloc_contig = true, 6940 }; 6941 INIT_LIST_HEAD(&cc.migratepages); 6942 enum pb_isolate_mode mode = (alloc_flags & ACR_FLAGS_CMA) ? 6943 PB_ISOLATE_MODE_CMA_ALLOC : 6944 PB_ISOLATE_MODE_OTHER; 6945 6946 /* 6947 * In contrast to the buddy, we allow for orders here that exceed 6948 * MAX_PAGE_ORDER, so we must manually make sure that we are not 6949 * exceeding the maximum folio order. 6950 */ 6951 if (WARN_ON_ONCE((gfp_mask & __GFP_COMP) && order > MAX_FOLIO_ORDER)) 6952 return -EINVAL; 6953 6954 gfp_mask = current_gfp_context(gfp_mask); 6955 if (__alloc_contig_verify_gfp_mask(gfp_mask, (gfp_t *)&cc.gfp_mask)) 6956 return -EINVAL; 6957 6958 /* 6959 * What we do here is we mark all pageblocks in range as 6960 * MIGRATE_ISOLATE. Because pageblock and max order pages may 6961 * have different sizes, and due to the way page allocator 6962 * work, start_isolate_page_range() has special handlings for this. 6963 * 6964 * Once the pageblocks are marked as MIGRATE_ISOLATE, we 6965 * migrate the pages from an unaligned range (ie. pages that 6966 * we are interested in). This will put all the pages in 6967 * range back to page allocator as MIGRATE_ISOLATE. 6968 * 6969 * When this is done, we take the pages in range from page 6970 * allocator removing them from the buddy system. This way 6971 * page allocator will never consider using them. 6972 * 6973 * This lets us mark the pageblocks back as 6974 * MIGRATE_CMA/MIGRATE_MOVABLE so that free pages in the 6975 * aligned range but not in the unaligned, original range are 6976 * put back to page allocator so that buddy can use them. 6977 */ 6978 6979 ret = start_isolate_page_range(start, end, mode); 6980 if (ret) 6981 goto done; 6982 6983 drain_all_pages(cc.zone); 6984 6985 /* 6986 * In case of -EBUSY, we'd like to know which page causes problem. 6987 * So, just fall through. test_pages_isolated() has a tracepoint 6988 * which will report the busy page. 6989 * 6990 * It is possible that busy pages could become available before 6991 * the call to test_pages_isolated, and the range will actually be 6992 * allocated. So, if we fall through be sure to clear ret so that 6993 * -EBUSY is not accidentally used or returned to caller. 6994 */ 6995 ret = __alloc_contig_migrate_range(&cc, start, end); 6996 if (ret && ret != -EBUSY) 6997 goto done; 6998 6999 /* 7000 * When in-use hugetlb pages are migrated, they may simply be released 7001 * back into the free hugepage pool instead of being returned to the 7002 * buddy system. After the migration of in-use huge pages is completed, 7003 * we will invoke replace_free_hugepage_folios() to ensure that these 7004 * hugepages are properly released to the buddy system. 7005 */ 7006 ret = replace_free_hugepage_folios(start, end); 7007 if (ret) 7008 goto done; 7009 7010 /* 7011 * Pages from [start, end) are within a pageblock_nr_pages 7012 * aligned blocks that are marked as MIGRATE_ISOLATE. What's 7013 * more, all pages in [start, end) are free in page allocator. 7014 * What we are going to do is to allocate all pages from 7015 * [start, end) (that is remove them from page allocator). 7016 * 7017 * The only problem is that pages at the beginning and at the 7018 * end of interesting range may be not aligned with pages that 7019 * page allocator holds, ie. they can be part of higher order 7020 * pages. Because of this, we reserve the bigger range and 7021 * once this is done free the pages we are not interested in. 7022 * 7023 * We don't have to hold zone->lock here because the pages are 7024 * isolated thus they won't get removed from buddy. 7025 */ 7026 outer_start = find_large_buddy(start); 7027 7028 /* Make sure the range is really isolated. */ 7029 if (test_pages_isolated(outer_start, end, mode)) { 7030 ret = -EBUSY; 7031 goto done; 7032 } 7033 7034 /* Grab isolated pages from freelists. */ 7035 outer_end = isolate_freepages_range(&cc, outer_start, end); 7036 if (!outer_end) { 7037 ret = -EBUSY; 7038 goto done; 7039 } 7040 7041 if (!(gfp_mask & __GFP_COMP)) { 7042 split_free_frozen_pages(cc.freepages, gfp_mask); 7043 7044 /* Free head and tail (if any) */ 7045 if (start != outer_start) 7046 __free_contig_frozen_range(outer_start, start - outer_start); 7047 if (end != outer_end) 7048 __free_contig_frozen_range(end, outer_end - end); 7049 } else if (start == outer_start && end == outer_end && is_power_of_2(end - start)) { 7050 struct page *head = pfn_to_page(start); 7051 7052 check_new_pages(head, order); 7053 prep_new_page(head, order, gfp_mask, 0); 7054 } else { 7055 ret = -EINVAL; 7056 WARN(true, "PFN range: requested [%lu, %lu), allocated [%lu, %lu)\n", 7057 start, end, outer_start, outer_end); 7058 } 7059 done: 7060 undo_isolate_page_range(start, end); 7061 return ret; 7062 } 7063 EXPORT_SYMBOL(alloc_contig_frozen_range_noprof); 7064 7065 /** 7066 * alloc_contig_range() -- tries to allocate given range of pages 7067 * @start: start PFN to allocate 7068 * @end: one-past-the-last PFN to allocate 7069 * @alloc_flags: allocation information 7070 * @gfp_mask: GFP mask. 7071 * 7072 * This routine is a wrapper around alloc_contig_frozen_range(), it can't 7073 * be used to allocate compound pages, the refcount of each allocated page 7074 * will be set to one. 7075 * 7076 * All pages which PFN is in [start, end) are allocated for the caller, 7077 * and should be freed with free_contig_range() or by manually calling 7078 * __free_page() on each allocated page. 7079 * 7080 * Return: zero on success or negative error code. 7081 */ 7082 int alloc_contig_range_noprof(unsigned long start, unsigned long end, 7083 acr_flags_t alloc_flags, gfp_t gfp_mask) 7084 { 7085 int ret; 7086 7087 if (WARN_ON(gfp_mask & __GFP_COMP)) 7088 return -EINVAL; 7089 7090 ret = alloc_contig_frozen_range_noprof(start, end, alloc_flags, gfp_mask); 7091 if (!ret) 7092 set_pages_refcounted(pfn_to_page(start), end - start); 7093 7094 return ret; 7095 } 7096 EXPORT_SYMBOL(alloc_contig_range_noprof); 7097 7098 static bool pfn_range_valid_contig(struct zone *z, unsigned long start_pfn, 7099 unsigned long nr_pages, bool skip_hugetlb, 7100 bool *skipped_hugetlb) 7101 { 7102 unsigned long end_pfn = start_pfn + nr_pages; 7103 struct page *page; 7104 7105 while (start_pfn < end_pfn) { 7106 unsigned long step = 1; 7107 7108 page = pfn_to_online_page(start_pfn); 7109 if (!page) 7110 return false; 7111 7112 if (page_zone(page) != z) 7113 return false; 7114 7115 if (page_is_unmovable(z, page, PB_ISOLATE_MODE_OTHER, &step)) 7116 return false; 7117 7118 /* 7119 * Only consider ranges containing hugepages if those pages are 7120 * smaller than the requested contiguous region. e.g.: 7121 * Move 2MB pages to free up a 1GB range. 7122 * Don't move 1GB pages to free up a 2MB range. 7123 * 7124 * This makes contiguous allocation more reliable if multiple 7125 * hugepage sizes are used without causing needless movement. 7126 */ 7127 if (PageHuge(page)) { 7128 unsigned int order; 7129 7130 if (skip_hugetlb) { 7131 *skipped_hugetlb = true; 7132 return false; 7133 } 7134 7135 page = compound_head(page); 7136 order = compound_order(page); 7137 if ((order >= MAX_FOLIO_ORDER) || 7138 (nr_pages <= (1 << order))) 7139 return false; 7140 } 7141 7142 start_pfn += step; 7143 } 7144 return true; 7145 } 7146 7147 static bool zone_spans_last_pfn(const struct zone *zone, 7148 unsigned long start_pfn, unsigned long nr_pages) 7149 { 7150 unsigned long last_pfn = start_pfn + nr_pages - 1; 7151 7152 return zone_spans_pfn(zone, last_pfn); 7153 } 7154 7155 /** 7156 * alloc_contig_frozen_pages() -- tries to find and allocate contiguous range of frozen pages 7157 * @nr_pages: Number of contiguous pages to allocate 7158 * @gfp_mask: GFP mask. Node/zone/placement hints limit the search; only some 7159 * action and reclaim modifiers are supported. Reclaim modifiers 7160 * control allocation behavior during compaction/migration/reclaim. 7161 * @nid: Target node 7162 * @nodemask: Mask for other possible nodes 7163 * 7164 * This routine is a wrapper around alloc_contig_frozen_range(). It scans over 7165 * zones on an applicable zonelist to find a contiguous pfn range which can then 7166 * be tried for allocation with alloc_contig_frozen_range(). This routine is 7167 * intended for allocation requests which can not be fulfilled with the buddy 7168 * allocator. 7169 * 7170 * The allocated memory is always aligned to a page boundary. If nr_pages is a 7171 * power of two, then allocated range is also guaranteed to be aligned to same 7172 * nr_pages (e.g. 1GB request would be aligned to 1GB). 7173 * 7174 * Allocated frozen pages need be freed with free_contig_frozen_range(), 7175 * or by manually calling free_frozen_pages() on each allocated frozen 7176 * non-compound page, for compound frozen pages could be freed with 7177 * free_frozen_pages() directly. 7178 * 7179 * Return: pointer to contiguous frozen pages on success, or NULL if not successful. 7180 */ 7181 struct page *alloc_contig_frozen_pages_noprof(unsigned long nr_pages, 7182 gfp_t gfp_mask, int nid, nodemask_t *nodemask) 7183 { 7184 unsigned long ret, pfn, flags; 7185 struct zonelist *zonelist; 7186 struct zone *zone; 7187 struct zoneref *z; 7188 bool skip_hugetlb = true; 7189 bool skipped_hugetlb = false; 7190 7191 retry: 7192 zonelist = node_zonelist(nid, gfp_mask); 7193 for_each_zone_zonelist_nodemask(zone, z, zonelist, 7194 gfp_zone(gfp_mask), nodemask) { 7195 spin_lock_irqsave(&zone->lock, flags); 7196 7197 pfn = ALIGN(zone->zone_start_pfn, nr_pages); 7198 while (zone_spans_last_pfn(zone, pfn, nr_pages)) { 7199 if (pfn_range_valid_contig(zone, pfn, nr_pages, 7200 skip_hugetlb, 7201 &skipped_hugetlb)) { 7202 /* 7203 * We release the zone lock here because 7204 * alloc_contig_frozen_range() will also lock 7205 * the zone at some point. If there's an 7206 * allocation spinning on this lock, it may 7207 * win the race and cause allocation to fail. 7208 */ 7209 spin_unlock_irqrestore(&zone->lock, flags); 7210 ret = alloc_contig_frozen_range_noprof(pfn, 7211 pfn + nr_pages, 7212 ACR_FLAGS_NONE, 7213 gfp_mask); 7214 if (!ret) 7215 return pfn_to_page(pfn); 7216 spin_lock_irqsave(&zone->lock, flags); 7217 } 7218 pfn += nr_pages; 7219 } 7220 spin_unlock_irqrestore(&zone->lock, flags); 7221 } 7222 /* 7223 * If we failed, retry the search, but treat regions with HugeTLB pages 7224 * as valid targets. This retains fast-allocations on first pass 7225 * without trying to migrate HugeTLB pages (which may fail). On the 7226 * second pass, we will try moving HugeTLB pages when those pages are 7227 * smaller than the requested contiguous region size. 7228 */ 7229 if (skip_hugetlb && skipped_hugetlb) { 7230 skip_hugetlb = false; 7231 goto retry; 7232 } 7233 return NULL; 7234 } 7235 EXPORT_SYMBOL(alloc_contig_frozen_pages_noprof); 7236 7237 /** 7238 * alloc_contig_pages() -- tries to find and allocate contiguous range of pages 7239 * @nr_pages: Number of contiguous pages to allocate 7240 * @gfp_mask: GFP mask. 7241 * @nid: Target node 7242 * @nodemask: Mask for other possible nodes 7243 * 7244 * This routine is a wrapper around alloc_contig_frozen_pages(), it can't 7245 * be used to allocate compound pages, the refcount of each allocated page 7246 * will be set to one. 7247 * 7248 * Allocated pages can be freed with free_contig_range() or by manually 7249 * calling __free_page() on each allocated page. 7250 * 7251 * Return: pointer to contiguous pages on success, or NULL if not successful. 7252 */ 7253 struct page *alloc_contig_pages_noprof(unsigned long nr_pages, gfp_t gfp_mask, 7254 int nid, nodemask_t *nodemask) 7255 { 7256 struct page *page; 7257 7258 if (WARN_ON(gfp_mask & __GFP_COMP)) 7259 return NULL; 7260 7261 page = alloc_contig_frozen_pages_noprof(nr_pages, gfp_mask, nid, 7262 nodemask); 7263 if (page) 7264 set_pages_refcounted(page, nr_pages); 7265 7266 return page; 7267 } 7268 EXPORT_SYMBOL(alloc_contig_pages_noprof); 7269 7270 /** 7271 * free_contig_frozen_range() -- free the contiguous range of frozen pages 7272 * @pfn: start PFN to free 7273 * @nr_pages: Number of contiguous frozen pages to free 7274 * 7275 * This can be used to free the allocated compound/non-compound frozen pages. 7276 */ 7277 void free_contig_frozen_range(unsigned long pfn, unsigned long nr_pages) 7278 { 7279 struct page *first_page = pfn_to_page(pfn); 7280 const unsigned int order = ilog2(nr_pages); 7281 7282 if (WARN_ON_ONCE(first_page != compound_head(first_page))) 7283 return; 7284 7285 if (PageHead(first_page)) { 7286 WARN_ON_ONCE(order != compound_order(first_page)); 7287 free_frozen_pages(first_page, order); 7288 return; 7289 } 7290 7291 __free_contig_frozen_range(pfn, nr_pages); 7292 } 7293 EXPORT_SYMBOL(free_contig_frozen_range); 7294 7295 /** 7296 * free_contig_range() -- free the contiguous range of pages 7297 * @pfn: start PFN to free 7298 * @nr_pages: Number of contiguous pages to free 7299 * 7300 * This can be only used to free the allocated non-compound pages. 7301 */ 7302 void free_contig_range(unsigned long pfn, unsigned long nr_pages) 7303 { 7304 if (WARN_ON_ONCE(PageHead(pfn_to_page(pfn)))) 7305 return; 7306 7307 for (; nr_pages--; pfn++) 7308 __free_page(pfn_to_page(pfn)); 7309 } 7310 EXPORT_SYMBOL(free_contig_range); 7311 #endif /* CONFIG_CONTIG_ALLOC */ 7312 7313 /* 7314 * Effectively disable pcplists for the zone by setting the high limit to 0 7315 * and draining all cpus. A concurrent page freeing on another CPU that's about 7316 * to put the page on pcplist will either finish before the drain and the page 7317 * will be drained, or observe the new high limit and skip the pcplist. 7318 * 7319 * Must be paired with a call to zone_pcp_enable(). 7320 */ 7321 void zone_pcp_disable(struct zone *zone) 7322 { 7323 mutex_lock(&pcp_batch_high_lock); 7324 __zone_set_pageset_high_and_batch(zone, 0, 0, 1); 7325 __drain_all_pages(zone, true); 7326 } 7327 7328 void zone_pcp_enable(struct zone *zone) 7329 { 7330 __zone_set_pageset_high_and_batch(zone, zone->pageset_high_min, 7331 zone->pageset_high_max, zone->pageset_batch); 7332 mutex_unlock(&pcp_batch_high_lock); 7333 } 7334 7335 void zone_pcp_reset(struct zone *zone) 7336 { 7337 int cpu; 7338 struct per_cpu_zonestat *pzstats; 7339 7340 if (zone->per_cpu_pageset != &boot_pageset) { 7341 for_each_online_cpu(cpu) { 7342 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu); 7343 drain_zonestat(zone, pzstats); 7344 } 7345 free_percpu(zone->per_cpu_pageset); 7346 zone->per_cpu_pageset = &boot_pageset; 7347 if (zone->per_cpu_zonestats != &boot_zonestats) { 7348 free_percpu(zone->per_cpu_zonestats); 7349 zone->per_cpu_zonestats = &boot_zonestats; 7350 } 7351 } 7352 } 7353 7354 #ifdef CONFIG_MEMORY_HOTREMOVE 7355 /* 7356 * All pages in the range must be in a single zone, must not contain holes, 7357 * must span full sections, and must be isolated before calling this function. 7358 * 7359 * Returns the number of managed (non-PageOffline()) pages in the range: the 7360 * number of pages for which memory offlining code must adjust managed page 7361 * counters using adjust_managed_page_count(). 7362 */ 7363 unsigned long __offline_isolated_pages(unsigned long start_pfn, 7364 unsigned long end_pfn) 7365 { 7366 unsigned long already_offline = 0, flags; 7367 unsigned long pfn = start_pfn; 7368 struct page *page; 7369 struct zone *zone; 7370 unsigned int order; 7371 7372 offline_mem_sections(pfn, end_pfn); 7373 zone = page_zone(pfn_to_page(pfn)); 7374 spin_lock_irqsave(&zone->lock, flags); 7375 while (pfn < end_pfn) { 7376 page = pfn_to_page(pfn); 7377 /* 7378 * The HWPoisoned page may be not in buddy system, and 7379 * page_count() is not 0. 7380 */ 7381 if (unlikely(!PageBuddy(page) && PageHWPoison(page))) { 7382 pfn++; 7383 continue; 7384 } 7385 /* 7386 * At this point all remaining PageOffline() pages have a 7387 * reference count of 0 and can simply be skipped. 7388 */ 7389 if (PageOffline(page)) { 7390 BUG_ON(page_count(page)); 7391 BUG_ON(PageBuddy(page)); 7392 already_offline++; 7393 pfn++; 7394 continue; 7395 } 7396 7397 BUG_ON(page_count(page)); 7398 BUG_ON(!PageBuddy(page)); 7399 VM_WARN_ON(get_pageblock_migratetype(page) != MIGRATE_ISOLATE); 7400 order = buddy_order(page); 7401 del_page_from_free_list(page, zone, order, MIGRATE_ISOLATE); 7402 pfn += (1 << order); 7403 } 7404 spin_unlock_irqrestore(&zone->lock, flags); 7405 7406 return end_pfn - start_pfn - already_offline; 7407 } 7408 #endif 7409 7410 /* 7411 * This function returns a stable result only if called under zone lock. 7412 */ 7413 bool is_free_buddy_page(const struct page *page) 7414 { 7415 unsigned long pfn = page_to_pfn(page); 7416 unsigned int order; 7417 7418 for (order = 0; order < NR_PAGE_ORDERS; order++) { 7419 const struct page *head = page - (pfn & ((1 << order) - 1)); 7420 7421 if (PageBuddy(head) && 7422 buddy_order_unsafe(head) >= order) 7423 break; 7424 } 7425 7426 return order <= MAX_PAGE_ORDER; 7427 } 7428 EXPORT_SYMBOL(is_free_buddy_page); 7429 7430 #ifdef CONFIG_MEMORY_FAILURE 7431 static inline void add_to_free_list(struct page *page, struct zone *zone, 7432 unsigned int order, int migratetype, 7433 bool tail) 7434 { 7435 __add_to_free_list(page, zone, order, migratetype, tail); 7436 account_freepages(zone, 1 << order, migratetype); 7437 } 7438 7439 /* 7440 * Break down a higher-order page in sub-pages, and keep our target out of 7441 * buddy allocator. 7442 */ 7443 static void break_down_buddy_pages(struct zone *zone, struct page *page, 7444 struct page *target, int low, int high, 7445 int migratetype) 7446 { 7447 unsigned long size = 1 << high; 7448 struct page *current_buddy; 7449 7450 while (high > low) { 7451 high--; 7452 size >>= 1; 7453 7454 if (target >= &page[size]) { 7455 current_buddy = page; 7456 page = page + size; 7457 } else { 7458 current_buddy = page + size; 7459 } 7460 7461 if (set_page_guard(zone, current_buddy, high)) 7462 continue; 7463 7464 add_to_free_list(current_buddy, zone, high, migratetype, false); 7465 set_buddy_order(current_buddy, high); 7466 } 7467 } 7468 7469 /* 7470 * Take a page that will be marked as poisoned off the buddy allocator. 7471 */ 7472 bool take_page_off_buddy(struct page *page) 7473 { 7474 struct zone *zone = page_zone(page); 7475 unsigned long pfn = page_to_pfn(page); 7476 unsigned long flags; 7477 unsigned int order; 7478 bool ret = false; 7479 7480 spin_lock_irqsave(&zone->lock, flags); 7481 for (order = 0; order < NR_PAGE_ORDERS; order++) { 7482 struct page *page_head = page - (pfn & ((1 << order) - 1)); 7483 int page_order = buddy_order(page_head); 7484 7485 if (PageBuddy(page_head) && page_order >= order) { 7486 unsigned long pfn_head = page_to_pfn(page_head); 7487 int migratetype = get_pfnblock_migratetype(page_head, 7488 pfn_head); 7489 7490 del_page_from_free_list(page_head, zone, page_order, 7491 migratetype); 7492 break_down_buddy_pages(zone, page_head, page, 0, 7493 page_order, migratetype); 7494 SetPageHWPoisonTakenOff(page); 7495 ret = true; 7496 break; 7497 } 7498 if (page_count(page_head) > 0) 7499 break; 7500 } 7501 spin_unlock_irqrestore(&zone->lock, flags); 7502 return ret; 7503 } 7504 7505 /* 7506 * Cancel takeoff done by take_page_off_buddy(). 7507 */ 7508 bool put_page_back_buddy(struct page *page) 7509 { 7510 struct zone *zone = page_zone(page); 7511 unsigned long flags; 7512 bool ret = false; 7513 7514 spin_lock_irqsave(&zone->lock, flags); 7515 if (put_page_testzero(page)) { 7516 unsigned long pfn = page_to_pfn(page); 7517 int migratetype = get_pfnblock_migratetype(page, pfn); 7518 7519 ClearPageHWPoisonTakenOff(page); 7520 __free_one_page(page, pfn, zone, 0, migratetype, FPI_NONE); 7521 if (TestClearPageHWPoison(page)) { 7522 ret = true; 7523 } 7524 } 7525 spin_unlock_irqrestore(&zone->lock, flags); 7526 7527 return ret; 7528 } 7529 #endif 7530 7531 bool has_managed_zone(enum zone_type zone) 7532 { 7533 struct pglist_data *pgdat; 7534 7535 for_each_online_pgdat(pgdat) { 7536 if (managed_zone(&pgdat->node_zones[zone])) 7537 return true; 7538 } 7539 return false; 7540 } 7541 7542 #ifdef CONFIG_UNACCEPTED_MEMORY 7543 7544 static bool lazy_accept = true; 7545 7546 static int __init accept_memory_parse(char *p) 7547 { 7548 if (!strcmp(p, "lazy")) { 7549 lazy_accept = true; 7550 return 0; 7551 } else if (!strcmp(p, "eager")) { 7552 lazy_accept = false; 7553 return 0; 7554 } else { 7555 return -EINVAL; 7556 } 7557 } 7558 early_param("accept_memory", accept_memory_parse); 7559 7560 static bool page_contains_unaccepted(struct page *page, unsigned int order) 7561 { 7562 phys_addr_t start = page_to_phys(page); 7563 7564 return range_contains_unaccepted_memory(start, PAGE_SIZE << order); 7565 } 7566 7567 static void __accept_page(struct zone *zone, unsigned long *flags, 7568 struct page *page) 7569 { 7570 list_del(&page->lru); 7571 account_freepages(zone, -MAX_ORDER_NR_PAGES, MIGRATE_MOVABLE); 7572 __mod_zone_page_state(zone, NR_UNACCEPTED, -MAX_ORDER_NR_PAGES); 7573 __ClearPageUnaccepted(page); 7574 spin_unlock_irqrestore(&zone->lock, *flags); 7575 7576 accept_memory(page_to_phys(page), PAGE_SIZE << MAX_PAGE_ORDER); 7577 7578 __free_pages_ok(page, MAX_PAGE_ORDER, FPI_TO_TAIL); 7579 } 7580 7581 void accept_page(struct page *page) 7582 { 7583 struct zone *zone = page_zone(page); 7584 unsigned long flags; 7585 7586 spin_lock_irqsave(&zone->lock, flags); 7587 if (!PageUnaccepted(page)) { 7588 spin_unlock_irqrestore(&zone->lock, flags); 7589 return; 7590 } 7591 7592 /* Unlocks zone->lock */ 7593 __accept_page(zone, &flags, page); 7594 } 7595 7596 static bool try_to_accept_memory_one(struct zone *zone) 7597 { 7598 unsigned long flags; 7599 struct page *page; 7600 7601 spin_lock_irqsave(&zone->lock, flags); 7602 page = list_first_entry_or_null(&zone->unaccepted_pages, 7603 struct page, lru); 7604 if (!page) { 7605 spin_unlock_irqrestore(&zone->lock, flags); 7606 return false; 7607 } 7608 7609 /* Unlocks zone->lock */ 7610 __accept_page(zone, &flags, page); 7611 7612 return true; 7613 } 7614 7615 static bool cond_accept_memory(struct zone *zone, unsigned int order, 7616 int alloc_flags) 7617 { 7618 long to_accept, wmark; 7619 bool ret = false; 7620 7621 if (list_empty(&zone->unaccepted_pages)) 7622 return false; 7623 7624 /* Bailout, since try_to_accept_memory_one() needs to take a lock */ 7625 if (alloc_flags & ALLOC_TRYLOCK) 7626 return false; 7627 7628 wmark = promo_wmark_pages(zone); 7629 7630 /* 7631 * Watermarks have not been initialized yet. 7632 * 7633 * Accepting one MAX_ORDER page to ensure progress. 7634 */ 7635 if (!wmark) 7636 return try_to_accept_memory_one(zone); 7637 7638 /* How much to accept to get to promo watermark? */ 7639 to_accept = wmark - 7640 (zone_page_state(zone, NR_FREE_PAGES) - 7641 __zone_watermark_unusable_free(zone, order, 0) - 7642 zone_page_state(zone, NR_UNACCEPTED)); 7643 7644 while (to_accept > 0) { 7645 if (!try_to_accept_memory_one(zone)) 7646 break; 7647 ret = true; 7648 to_accept -= MAX_ORDER_NR_PAGES; 7649 } 7650 7651 return ret; 7652 } 7653 7654 static bool __free_unaccepted(struct page *page) 7655 { 7656 struct zone *zone = page_zone(page); 7657 unsigned long flags; 7658 7659 if (!lazy_accept) 7660 return false; 7661 7662 spin_lock_irqsave(&zone->lock, flags); 7663 list_add_tail(&page->lru, &zone->unaccepted_pages); 7664 account_freepages(zone, MAX_ORDER_NR_PAGES, MIGRATE_MOVABLE); 7665 __mod_zone_page_state(zone, NR_UNACCEPTED, MAX_ORDER_NR_PAGES); 7666 __SetPageUnaccepted(page); 7667 spin_unlock_irqrestore(&zone->lock, flags); 7668 7669 return true; 7670 } 7671 7672 #else 7673 7674 static bool page_contains_unaccepted(struct page *page, unsigned int order) 7675 { 7676 return false; 7677 } 7678 7679 static bool cond_accept_memory(struct zone *zone, unsigned int order, 7680 int alloc_flags) 7681 { 7682 return false; 7683 } 7684 7685 static bool __free_unaccepted(struct page *page) 7686 { 7687 BUILD_BUG(); 7688 return false; 7689 } 7690 7691 #endif /* CONFIG_UNACCEPTED_MEMORY */ 7692 7693 struct page *alloc_frozen_pages_nolock_noprof(gfp_t gfp_flags, int nid, unsigned int order) 7694 { 7695 /* 7696 * Do not specify __GFP_DIRECT_RECLAIM, since direct claim is not allowed. 7697 * Do not specify __GFP_KSWAPD_RECLAIM either, since wake up of kswapd 7698 * is not safe in arbitrary context. 7699 * 7700 * These two are the conditions for gfpflags_allow_spinning() being true. 7701 * 7702 * Specify __GFP_NOWARN since failing alloc_pages_nolock() is not a reason 7703 * to warn. Also warn would trigger printk() which is unsafe from 7704 * various contexts. We cannot use printk_deferred_enter() to mitigate, 7705 * since the running context is unknown. 7706 * 7707 * Specify __GFP_ZERO to make sure that call to kmsan_alloc_page() below 7708 * is safe in any context. Also zeroing the page is mandatory for 7709 * BPF use cases. 7710 * 7711 * Though __GFP_NOMEMALLOC is not checked in the code path below, 7712 * specify it here to highlight that alloc_pages_nolock() 7713 * doesn't want to deplete reserves. 7714 */ 7715 gfp_t alloc_gfp = __GFP_NOWARN | __GFP_ZERO | __GFP_NOMEMALLOC | __GFP_COMP 7716 | gfp_flags; 7717 unsigned int alloc_flags = ALLOC_TRYLOCK; 7718 struct alloc_context ac = { }; 7719 struct page *page; 7720 7721 VM_WARN_ON_ONCE(gfp_flags & ~__GFP_ACCOUNT); 7722 /* 7723 * In PREEMPT_RT spin_trylock() will call raw_spin_lock() which is 7724 * unsafe in NMI. If spin_trylock() is called from hard IRQ the current 7725 * task may be waiting for one rt_spin_lock, but rt_spin_trylock() will 7726 * mark the task as the owner of another rt_spin_lock which will 7727 * confuse PI logic, so return immediately if called from hard IRQ or 7728 * NMI. 7729 * 7730 * Note, irqs_disabled() case is ok. This function can be called 7731 * from raw_spin_lock_irqsave region. 7732 */ 7733 if (IS_ENABLED(CONFIG_PREEMPT_RT) && (in_nmi() || in_hardirq())) 7734 return NULL; 7735 7736 /* On UP, spin_trylock() always succeeds even when it is locked */ 7737 if (!IS_ENABLED(CONFIG_SMP) && in_nmi()) 7738 return NULL; 7739 7740 if (!pcp_allowed_order(order)) 7741 return NULL; 7742 7743 /* Bailout, since _deferred_grow_zone() needs to take a lock */ 7744 if (deferred_pages_enabled()) 7745 return NULL; 7746 7747 if (nid == NUMA_NO_NODE) 7748 nid = numa_node_id(); 7749 7750 prepare_alloc_pages(alloc_gfp, order, nid, NULL, &ac, 7751 &alloc_gfp, &alloc_flags); 7752 7753 /* 7754 * Best effort allocation from percpu free list. 7755 * If it's empty attempt to spin_trylock zone->lock. 7756 */ 7757 page = get_page_from_freelist(alloc_gfp, order, alloc_flags, &ac); 7758 7759 /* Unlike regular alloc_pages() there is no __alloc_pages_slowpath(). */ 7760 7761 if (memcg_kmem_online() && page && (gfp_flags & __GFP_ACCOUNT) && 7762 unlikely(__memcg_kmem_charge_page(page, alloc_gfp, order) != 0)) { 7763 __free_frozen_pages(page, order, FPI_TRYLOCK); 7764 page = NULL; 7765 } 7766 trace_mm_page_alloc(page, order, alloc_gfp, ac.migratetype); 7767 kmsan_alloc_page(page, order, alloc_gfp); 7768 return page; 7769 } 7770 /** 7771 * alloc_pages_nolock - opportunistic reentrant allocation from any context 7772 * @gfp_flags: GFP flags. Only __GFP_ACCOUNT allowed. 7773 * @nid: node to allocate from 7774 * @order: allocation order size 7775 * 7776 * Allocates pages of a given order from the given node. This is safe to 7777 * call from any context (from atomic, NMI, and also reentrant 7778 * allocator -> tracepoint -> alloc_pages_nolock_noprof). 7779 * Allocation is best effort and to be expected to fail easily so nobody should 7780 * rely on the success. Failures are not reported via warn_alloc(). 7781 * See always fail conditions below. 7782 * 7783 * Return: allocated page or NULL on failure. NULL does not mean EBUSY or EAGAIN. 7784 * It means ENOMEM. There is no reason to call it again and expect !NULL. 7785 */ 7786 struct page *alloc_pages_nolock_noprof(gfp_t gfp_flags, int nid, unsigned int order) 7787 { 7788 struct page *page; 7789 7790 page = alloc_frozen_pages_nolock_noprof(gfp_flags, nid, order); 7791 if (page) 7792 set_page_refcounted(page); 7793 return page; 7794 } 7795 EXPORT_SYMBOL_GPL(alloc_pages_nolock_noprof); 7796