1 /* SPDX-License-Identifier: GPL-2.0 */ 2 #ifndef _LINUX_MMZONE_H 3 #define _LINUX_MMZONE_H 4 5 #ifndef __ASSEMBLY__ 6 #ifndef __GENERATING_BOUNDS_H 7 8 #include <linux/spinlock.h> 9 #include <linux/list.h> 10 #include <linux/wait.h> 11 #include <linux/bitops.h> 12 #include <linux/cache.h> 13 #include <linux/threads.h> 14 #include <linux/numa.h> 15 #include <linux/init.h> 16 #include <linux/seqlock.h> 17 #include <linux/nodemask.h> 18 #include <linux/pageblock-flags.h> 19 #include <linux/page-flags-layout.h> 20 #include <linux/atomic.h> 21 #include <linux/mm_types.h> 22 #include <linux/page-flags.h> 23 #include <asm/page.h> 24 25 /* Free memory management - zoned buddy allocator. */ 26 #ifndef CONFIG_FORCE_MAX_ZONEORDER 27 #define MAX_ORDER 11 28 #else 29 #define MAX_ORDER CONFIG_FORCE_MAX_ZONEORDER 30 #endif 31 #define MAX_ORDER_NR_PAGES (1 << (MAX_ORDER - 1)) 32 33 /* 34 * PAGE_ALLOC_COSTLY_ORDER is the order at which allocations are deemed 35 * costly to service. That is between allocation orders which should 36 * coalesce naturally under reasonable reclaim pressure and those which 37 * will not. 38 */ 39 #define PAGE_ALLOC_COSTLY_ORDER 3 40 41 enum migratetype { 42 MIGRATE_UNMOVABLE, 43 MIGRATE_MOVABLE, 44 MIGRATE_RECLAIMABLE, 45 MIGRATE_PCPTYPES, /* the number of types on the pcp lists */ 46 MIGRATE_HIGHATOMIC = MIGRATE_PCPTYPES, 47 #ifdef CONFIG_CMA 48 /* 49 * MIGRATE_CMA migration type is designed to mimic the way 50 * ZONE_MOVABLE works. Only movable pages can be allocated 51 * from MIGRATE_CMA pageblocks and page allocator never 52 * implicitly change migration type of MIGRATE_CMA pageblock. 53 * 54 * The way to use it is to change migratetype of a range of 55 * pageblocks to MIGRATE_CMA which can be done by 56 * __free_pageblock_cma() function. What is important though 57 * is that a range of pageblocks must be aligned to 58 * MAX_ORDER_NR_PAGES should biggest page be bigger then 59 * a single pageblock. 60 */ 61 MIGRATE_CMA, 62 #endif 63 #ifdef CONFIG_MEMORY_ISOLATION 64 MIGRATE_ISOLATE, /* can't allocate from here */ 65 #endif 66 MIGRATE_TYPES 67 }; 68 69 /* In mm/page_alloc.c; keep in sync also with show_migration_types() there */ 70 extern const char * const migratetype_names[MIGRATE_TYPES]; 71 72 #ifdef CONFIG_CMA 73 # define is_migrate_cma(migratetype) unlikely((migratetype) == MIGRATE_CMA) 74 # define is_migrate_cma_page(_page) (get_pageblock_migratetype(_page) == MIGRATE_CMA) 75 #else 76 # define is_migrate_cma(migratetype) false 77 # define is_migrate_cma_page(_page) false 78 #endif 79 80 static inline bool is_migrate_movable(int mt) 81 { 82 return is_migrate_cma(mt) || mt == MIGRATE_MOVABLE; 83 } 84 85 #define for_each_migratetype_order(order, type) \ 86 for (order = 0; order < MAX_ORDER; order++) \ 87 for (type = 0; type < MIGRATE_TYPES; type++) 88 89 extern int page_group_by_mobility_disabled; 90 91 #define NR_MIGRATETYPE_BITS (PB_migrate_end - PB_migrate + 1) 92 #define MIGRATETYPE_MASK ((1UL << NR_MIGRATETYPE_BITS) - 1) 93 94 #define get_pageblock_migratetype(page) \ 95 get_pfnblock_flags_mask(page, page_to_pfn(page), \ 96 PB_migrate_end, MIGRATETYPE_MASK) 97 98 struct free_area { 99 struct list_head free_list[MIGRATE_TYPES]; 100 unsigned long nr_free; 101 }; 102 103 /* Used for pages not on another list */ 104 static inline void add_to_free_area(struct page *page, struct free_area *area, 105 int migratetype) 106 { 107 list_add(&page->lru, &area->free_list[migratetype]); 108 area->nr_free++; 109 } 110 111 /* Used for pages not on another list */ 112 static inline void add_to_free_area_tail(struct page *page, struct free_area *area, 113 int migratetype) 114 { 115 list_add_tail(&page->lru, &area->free_list[migratetype]); 116 area->nr_free++; 117 } 118 119 #ifdef CONFIG_SHUFFLE_PAGE_ALLOCATOR 120 /* Used to preserve page allocation order entropy */ 121 void add_to_free_area_random(struct page *page, struct free_area *area, 122 int migratetype); 123 #else 124 static inline void add_to_free_area_random(struct page *page, 125 struct free_area *area, int migratetype) 126 { 127 add_to_free_area(page, area, migratetype); 128 } 129 #endif 130 131 /* Used for pages which are on another list */ 132 static inline void move_to_free_area(struct page *page, struct free_area *area, 133 int migratetype) 134 { 135 list_move(&page->lru, &area->free_list[migratetype]); 136 } 137 138 static inline struct page *get_page_from_free_area(struct free_area *area, 139 int migratetype) 140 { 141 return list_first_entry_or_null(&area->free_list[migratetype], 142 struct page, lru); 143 } 144 145 static inline void del_page_from_free_area(struct page *page, 146 struct free_area *area) 147 { 148 list_del(&page->lru); 149 __ClearPageBuddy(page); 150 set_page_private(page, 0); 151 area->nr_free--; 152 } 153 154 static inline bool free_area_empty(struct free_area *area, int migratetype) 155 { 156 return list_empty(&area->free_list[migratetype]); 157 } 158 159 struct pglist_data; 160 161 /* 162 * zone->lock and the zone lru_lock are two of the hottest locks in the kernel. 163 * So add a wild amount of padding here to ensure that they fall into separate 164 * cachelines. There are very few zone structures in the machine, so space 165 * consumption is not a concern here. 166 */ 167 #if defined(CONFIG_SMP) 168 struct zone_padding { 169 char x[0]; 170 } ____cacheline_internodealigned_in_smp; 171 #define ZONE_PADDING(name) struct zone_padding name; 172 #else 173 #define ZONE_PADDING(name) 174 #endif 175 176 #ifdef CONFIG_NUMA 177 enum numa_stat_item { 178 NUMA_HIT, /* allocated in intended node */ 179 NUMA_MISS, /* allocated in non intended node */ 180 NUMA_FOREIGN, /* was intended here, hit elsewhere */ 181 NUMA_INTERLEAVE_HIT, /* interleaver preferred this zone */ 182 NUMA_LOCAL, /* allocation from local node */ 183 NUMA_OTHER, /* allocation from other node */ 184 NR_VM_NUMA_STAT_ITEMS 185 }; 186 #else 187 #define NR_VM_NUMA_STAT_ITEMS 0 188 #endif 189 190 enum zone_stat_item { 191 /* First 128 byte cacheline (assuming 64 bit words) */ 192 NR_FREE_PAGES, 193 NR_ZONE_LRU_BASE, /* Used only for compaction and reclaim retry */ 194 NR_ZONE_INACTIVE_ANON = NR_ZONE_LRU_BASE, 195 NR_ZONE_ACTIVE_ANON, 196 NR_ZONE_INACTIVE_FILE, 197 NR_ZONE_ACTIVE_FILE, 198 NR_ZONE_UNEVICTABLE, 199 NR_ZONE_WRITE_PENDING, /* Count of dirty, writeback and unstable pages */ 200 NR_MLOCK, /* mlock()ed pages found and moved off LRU */ 201 NR_PAGETABLE, /* used for pagetables */ 202 NR_KERNEL_STACK_KB, /* measured in KiB */ 203 /* Second 128 byte cacheline */ 204 NR_BOUNCE, 205 #if IS_ENABLED(CONFIG_ZSMALLOC) 206 NR_ZSPAGES, /* allocated in zsmalloc */ 207 #endif 208 NR_FREE_CMA_PAGES, 209 NR_VM_ZONE_STAT_ITEMS }; 210 211 enum node_stat_item { 212 NR_LRU_BASE, 213 NR_INACTIVE_ANON = NR_LRU_BASE, /* must match order of LRU_[IN]ACTIVE */ 214 NR_ACTIVE_ANON, /* " " " " " */ 215 NR_INACTIVE_FILE, /* " " " " " */ 216 NR_ACTIVE_FILE, /* " " " " " */ 217 NR_UNEVICTABLE, /* " " " " " */ 218 NR_SLAB_RECLAIMABLE, 219 NR_SLAB_UNRECLAIMABLE, 220 NR_ISOLATED_ANON, /* Temporary isolated pages from anon lru */ 221 NR_ISOLATED_FILE, /* Temporary isolated pages from file lru */ 222 WORKINGSET_NODES, 223 WORKINGSET_REFAULT, 224 WORKINGSET_ACTIVATE, 225 WORKINGSET_RESTORE, 226 WORKINGSET_NODERECLAIM, 227 NR_ANON_MAPPED, /* Mapped anonymous pages */ 228 NR_FILE_MAPPED, /* pagecache pages mapped into pagetables. 229 only modified from process context */ 230 NR_FILE_PAGES, 231 NR_FILE_DIRTY, 232 NR_WRITEBACK, 233 NR_WRITEBACK_TEMP, /* Writeback using temporary buffers */ 234 NR_SHMEM, /* shmem pages (included tmpfs/GEM pages) */ 235 NR_SHMEM_THPS, 236 NR_SHMEM_PMDMAPPED, 237 NR_FILE_THPS, 238 NR_FILE_PMDMAPPED, 239 NR_ANON_THPS, 240 NR_UNSTABLE_NFS, /* NFS unstable pages */ 241 NR_VMSCAN_WRITE, 242 NR_VMSCAN_IMMEDIATE, /* Prioritise for reclaim when writeback ends */ 243 NR_DIRTIED, /* page dirtyings since bootup */ 244 NR_WRITTEN, /* page writings since bootup */ 245 NR_KERNEL_MISC_RECLAIMABLE, /* reclaimable non-slab kernel pages */ 246 NR_FOLL_PIN_ACQUIRED, /* via: pin_user_page(), gup flag: FOLL_PIN */ 247 NR_FOLL_PIN_RELEASED, /* pages returned via unpin_user_page() */ 248 NR_VM_NODE_STAT_ITEMS 249 }; 250 251 /* 252 * We do arithmetic on the LRU lists in various places in the code, 253 * so it is important to keep the active lists LRU_ACTIVE higher in 254 * the array than the corresponding inactive lists, and to keep 255 * the *_FILE lists LRU_FILE higher than the corresponding _ANON lists. 256 * 257 * This has to be kept in sync with the statistics in zone_stat_item 258 * above and the descriptions in vmstat_text in mm/vmstat.c 259 */ 260 #define LRU_BASE 0 261 #define LRU_ACTIVE 1 262 #define LRU_FILE 2 263 264 enum lru_list { 265 LRU_INACTIVE_ANON = LRU_BASE, 266 LRU_ACTIVE_ANON = LRU_BASE + LRU_ACTIVE, 267 LRU_INACTIVE_FILE = LRU_BASE + LRU_FILE, 268 LRU_ACTIVE_FILE = LRU_BASE + LRU_FILE + LRU_ACTIVE, 269 LRU_UNEVICTABLE, 270 NR_LRU_LISTS 271 }; 272 273 #define for_each_lru(lru) for (lru = 0; lru < NR_LRU_LISTS; lru++) 274 275 #define for_each_evictable_lru(lru) for (lru = 0; lru <= LRU_ACTIVE_FILE; lru++) 276 277 static inline bool is_file_lru(enum lru_list lru) 278 { 279 return (lru == LRU_INACTIVE_FILE || lru == LRU_ACTIVE_FILE); 280 } 281 282 static inline bool is_active_lru(enum lru_list lru) 283 { 284 return (lru == LRU_ACTIVE_ANON || lru == LRU_ACTIVE_FILE); 285 } 286 287 struct zone_reclaim_stat { 288 /* 289 * The pageout code in vmscan.c keeps track of how many of the 290 * mem/swap backed and file backed pages are referenced. 291 * The higher the rotated/scanned ratio, the more valuable 292 * that cache is. 293 * 294 * The anon LRU stats live in [0], file LRU stats in [1] 295 */ 296 unsigned long recent_rotated[2]; 297 unsigned long recent_scanned[2]; 298 }; 299 300 enum lruvec_flags { 301 LRUVEC_CONGESTED, /* lruvec has many dirty pages 302 * backed by a congested BDI 303 */ 304 }; 305 306 struct lruvec { 307 struct list_head lists[NR_LRU_LISTS]; 308 struct zone_reclaim_stat reclaim_stat; 309 /* Evictions & activations on the inactive file list */ 310 atomic_long_t inactive_age; 311 /* Refaults at the time of last reclaim cycle */ 312 unsigned long refaults; 313 /* Various lruvec state flags (enum lruvec_flags) */ 314 unsigned long flags; 315 #ifdef CONFIG_MEMCG 316 struct pglist_data *pgdat; 317 #endif 318 }; 319 320 /* Isolate unmapped pages */ 321 #define ISOLATE_UNMAPPED ((__force isolate_mode_t)0x2) 322 /* Isolate for asynchronous migration */ 323 #define ISOLATE_ASYNC_MIGRATE ((__force isolate_mode_t)0x4) 324 /* Isolate unevictable pages */ 325 #define ISOLATE_UNEVICTABLE ((__force isolate_mode_t)0x8) 326 327 /* LRU Isolation modes. */ 328 typedef unsigned __bitwise isolate_mode_t; 329 330 enum zone_watermarks { 331 WMARK_MIN, 332 WMARK_LOW, 333 WMARK_HIGH, 334 NR_WMARK 335 }; 336 337 #define min_wmark_pages(z) (z->_watermark[WMARK_MIN] + z->watermark_boost) 338 #define low_wmark_pages(z) (z->_watermark[WMARK_LOW] + z->watermark_boost) 339 #define high_wmark_pages(z) (z->_watermark[WMARK_HIGH] + z->watermark_boost) 340 #define wmark_pages(z, i) (z->_watermark[i] + z->watermark_boost) 341 342 struct per_cpu_pages { 343 int count; /* number of pages in the list */ 344 int high; /* high watermark, emptying needed */ 345 int batch; /* chunk size for buddy add/remove */ 346 347 /* Lists of pages, one per migrate type stored on the pcp-lists */ 348 struct list_head lists[MIGRATE_PCPTYPES]; 349 }; 350 351 struct per_cpu_pageset { 352 struct per_cpu_pages pcp; 353 #ifdef CONFIG_NUMA 354 s8 expire; 355 u16 vm_numa_stat_diff[NR_VM_NUMA_STAT_ITEMS]; 356 #endif 357 #ifdef CONFIG_SMP 358 s8 stat_threshold; 359 s8 vm_stat_diff[NR_VM_ZONE_STAT_ITEMS]; 360 #endif 361 }; 362 363 struct per_cpu_nodestat { 364 s8 stat_threshold; 365 s8 vm_node_stat_diff[NR_VM_NODE_STAT_ITEMS]; 366 }; 367 368 #endif /* !__GENERATING_BOUNDS.H */ 369 370 enum zone_type { 371 /* 372 * ZONE_DMA and ZONE_DMA32 are used when there are peripherals not able 373 * to DMA to all of the addressable memory (ZONE_NORMAL). 374 * On architectures where this area covers the whole 32 bit address 375 * space ZONE_DMA32 is used. ZONE_DMA is left for the ones with smaller 376 * DMA addressing constraints. This distinction is important as a 32bit 377 * DMA mask is assumed when ZONE_DMA32 is defined. Some 64-bit 378 * platforms may need both zones as they support peripherals with 379 * different DMA addressing limitations. 380 * 381 * Some examples: 382 * 383 * - i386 and x86_64 have a fixed 16M ZONE_DMA and ZONE_DMA32 for the 384 * rest of the lower 4G. 385 * 386 * - arm only uses ZONE_DMA, the size, up to 4G, may vary depending on 387 * the specific device. 388 * 389 * - arm64 has a fixed 1G ZONE_DMA and ZONE_DMA32 for the rest of the 390 * lower 4G. 391 * 392 * - powerpc only uses ZONE_DMA, the size, up to 2G, may vary 393 * depending on the specific device. 394 * 395 * - s390 uses ZONE_DMA fixed to the lower 2G. 396 * 397 * - ia64 and riscv only use ZONE_DMA32. 398 * 399 * - parisc uses neither. 400 */ 401 #ifdef CONFIG_ZONE_DMA 402 ZONE_DMA, 403 #endif 404 #ifdef CONFIG_ZONE_DMA32 405 ZONE_DMA32, 406 #endif 407 /* 408 * Normal addressable memory is in ZONE_NORMAL. DMA operations can be 409 * performed on pages in ZONE_NORMAL if the DMA devices support 410 * transfers to all addressable memory. 411 */ 412 ZONE_NORMAL, 413 #ifdef CONFIG_HIGHMEM 414 /* 415 * A memory area that is only addressable by the kernel through 416 * mapping portions into its own address space. This is for example 417 * used by i386 to allow the kernel to address the memory beyond 418 * 900MB. The kernel will set up special mappings (page 419 * table entries on i386) for each page that the kernel needs to 420 * access. 421 */ 422 ZONE_HIGHMEM, 423 #endif 424 ZONE_MOVABLE, 425 #ifdef CONFIG_ZONE_DEVICE 426 ZONE_DEVICE, 427 #endif 428 __MAX_NR_ZONES 429 430 }; 431 432 #ifndef __GENERATING_BOUNDS_H 433 434 struct zone { 435 /* Read-mostly fields */ 436 437 /* zone watermarks, access with *_wmark_pages(zone) macros */ 438 unsigned long _watermark[NR_WMARK]; 439 unsigned long watermark_boost; 440 441 unsigned long nr_reserved_highatomic; 442 443 /* 444 * We don't know if the memory that we're going to allocate will be 445 * freeable or/and it will be released eventually, so to avoid totally 446 * wasting several GB of ram we must reserve some of the lower zone 447 * memory (otherwise we risk to run OOM on the lower zones despite 448 * there being tons of freeable ram on the higher zones). This array is 449 * recalculated at runtime if the sysctl_lowmem_reserve_ratio sysctl 450 * changes. 451 */ 452 long lowmem_reserve[MAX_NR_ZONES]; 453 454 #ifdef CONFIG_NUMA 455 int node; 456 #endif 457 struct pglist_data *zone_pgdat; 458 struct per_cpu_pageset __percpu *pageset; 459 460 #ifndef CONFIG_SPARSEMEM 461 /* 462 * Flags for a pageblock_nr_pages block. See pageblock-flags.h. 463 * In SPARSEMEM, this map is stored in struct mem_section 464 */ 465 unsigned long *pageblock_flags; 466 #endif /* CONFIG_SPARSEMEM */ 467 468 /* zone_start_pfn == zone_start_paddr >> PAGE_SHIFT */ 469 unsigned long zone_start_pfn; 470 471 /* 472 * spanned_pages is the total pages spanned by the zone, including 473 * holes, which is calculated as: 474 * spanned_pages = zone_end_pfn - zone_start_pfn; 475 * 476 * present_pages is physical pages existing within the zone, which 477 * is calculated as: 478 * present_pages = spanned_pages - absent_pages(pages in holes); 479 * 480 * managed_pages is present pages managed by the buddy system, which 481 * is calculated as (reserved_pages includes pages allocated by the 482 * bootmem allocator): 483 * managed_pages = present_pages - reserved_pages; 484 * 485 * So present_pages may be used by memory hotplug or memory power 486 * management logic to figure out unmanaged pages by checking 487 * (present_pages - managed_pages). And managed_pages should be used 488 * by page allocator and vm scanner to calculate all kinds of watermarks 489 * and thresholds. 490 * 491 * Locking rules: 492 * 493 * zone_start_pfn and spanned_pages are protected by span_seqlock. 494 * It is a seqlock because it has to be read outside of zone->lock, 495 * and it is done in the main allocator path. But, it is written 496 * quite infrequently. 497 * 498 * The span_seq lock is declared along with zone->lock because it is 499 * frequently read in proximity to zone->lock. It's good to 500 * give them a chance of being in the same cacheline. 501 * 502 * Write access to present_pages at runtime should be protected by 503 * mem_hotplug_begin/end(). Any reader who can't tolerant drift of 504 * present_pages should get_online_mems() to get a stable value. 505 */ 506 atomic_long_t managed_pages; 507 unsigned long spanned_pages; 508 unsigned long present_pages; 509 510 const char *name; 511 512 #ifdef CONFIG_MEMORY_ISOLATION 513 /* 514 * Number of isolated pageblock. It is used to solve incorrect 515 * freepage counting problem due to racy retrieving migratetype 516 * of pageblock. Protected by zone->lock. 517 */ 518 unsigned long nr_isolate_pageblock; 519 #endif 520 521 #ifdef CONFIG_MEMORY_HOTPLUG 522 /* see spanned/present_pages for more description */ 523 seqlock_t span_seqlock; 524 #endif 525 526 int initialized; 527 528 /* Write-intensive fields used from the page allocator */ 529 ZONE_PADDING(_pad1_) 530 531 /* free areas of different sizes */ 532 struct free_area free_area[MAX_ORDER]; 533 534 /* zone flags, see below */ 535 unsigned long flags; 536 537 /* Primarily protects free_area */ 538 spinlock_t lock; 539 540 /* Write-intensive fields used by compaction and vmstats. */ 541 ZONE_PADDING(_pad2_) 542 543 /* 544 * When free pages are below this point, additional steps are taken 545 * when reading the number of free pages to avoid per-cpu counter 546 * drift allowing watermarks to be breached 547 */ 548 unsigned long percpu_drift_mark; 549 550 #if defined CONFIG_COMPACTION || defined CONFIG_CMA 551 /* pfn where compaction free scanner should start */ 552 unsigned long compact_cached_free_pfn; 553 /* pfn where async and sync compaction migration scanner should start */ 554 unsigned long compact_cached_migrate_pfn[2]; 555 unsigned long compact_init_migrate_pfn; 556 unsigned long compact_init_free_pfn; 557 #endif 558 559 #ifdef CONFIG_COMPACTION 560 /* 561 * On compaction failure, 1<<compact_defer_shift compactions 562 * are skipped before trying again. The number attempted since 563 * last failure is tracked with compact_considered. 564 */ 565 unsigned int compact_considered; 566 unsigned int compact_defer_shift; 567 int compact_order_failed; 568 #endif 569 570 #if defined CONFIG_COMPACTION || defined CONFIG_CMA 571 /* Set to true when the PG_migrate_skip bits should be cleared */ 572 bool compact_blockskip_flush; 573 #endif 574 575 bool contiguous; 576 577 ZONE_PADDING(_pad3_) 578 /* Zone statistics */ 579 atomic_long_t vm_stat[NR_VM_ZONE_STAT_ITEMS]; 580 atomic_long_t vm_numa_stat[NR_VM_NUMA_STAT_ITEMS]; 581 } ____cacheline_internodealigned_in_smp; 582 583 enum pgdat_flags { 584 PGDAT_DIRTY, /* reclaim scanning has recently found 585 * many dirty file pages at the tail 586 * of the LRU. 587 */ 588 PGDAT_WRITEBACK, /* reclaim scanning has recently found 589 * many pages under writeback 590 */ 591 PGDAT_RECLAIM_LOCKED, /* prevents concurrent reclaim */ 592 }; 593 594 enum zone_flags { 595 ZONE_BOOSTED_WATERMARK, /* zone recently boosted watermarks. 596 * Cleared when kswapd is woken. 597 */ 598 }; 599 600 static inline unsigned long zone_managed_pages(struct zone *zone) 601 { 602 return (unsigned long)atomic_long_read(&zone->managed_pages); 603 } 604 605 static inline unsigned long zone_end_pfn(const struct zone *zone) 606 { 607 return zone->zone_start_pfn + zone->spanned_pages; 608 } 609 610 static inline bool zone_spans_pfn(const struct zone *zone, unsigned long pfn) 611 { 612 return zone->zone_start_pfn <= pfn && pfn < zone_end_pfn(zone); 613 } 614 615 static inline bool zone_is_initialized(struct zone *zone) 616 { 617 return zone->initialized; 618 } 619 620 static inline bool zone_is_empty(struct zone *zone) 621 { 622 return zone->spanned_pages == 0; 623 } 624 625 /* 626 * Return true if [start_pfn, start_pfn + nr_pages) range has a non-empty 627 * intersection with the given zone 628 */ 629 static inline bool zone_intersects(struct zone *zone, 630 unsigned long start_pfn, unsigned long nr_pages) 631 { 632 if (zone_is_empty(zone)) 633 return false; 634 if (start_pfn >= zone_end_pfn(zone) || 635 start_pfn + nr_pages <= zone->zone_start_pfn) 636 return false; 637 638 return true; 639 } 640 641 /* 642 * The "priority" of VM scanning is how much of the queues we will scan in one 643 * go. A value of 12 for DEF_PRIORITY implies that we will scan 1/4096th of the 644 * queues ("queue_length >> 12") during an aging round. 645 */ 646 #define DEF_PRIORITY 12 647 648 /* Maximum number of zones on a zonelist */ 649 #define MAX_ZONES_PER_ZONELIST (MAX_NUMNODES * MAX_NR_ZONES) 650 651 enum { 652 ZONELIST_FALLBACK, /* zonelist with fallback */ 653 #ifdef CONFIG_NUMA 654 /* 655 * The NUMA zonelists are doubled because we need zonelists that 656 * restrict the allocations to a single node for __GFP_THISNODE. 657 */ 658 ZONELIST_NOFALLBACK, /* zonelist without fallback (__GFP_THISNODE) */ 659 #endif 660 MAX_ZONELISTS 661 }; 662 663 /* 664 * This struct contains information about a zone in a zonelist. It is stored 665 * here to avoid dereferences into large structures and lookups of tables 666 */ 667 struct zoneref { 668 struct zone *zone; /* Pointer to actual zone */ 669 int zone_idx; /* zone_idx(zoneref->zone) */ 670 }; 671 672 /* 673 * One allocation request operates on a zonelist. A zonelist 674 * is a list of zones, the first one is the 'goal' of the 675 * allocation, the other zones are fallback zones, in decreasing 676 * priority. 677 * 678 * To speed the reading of the zonelist, the zonerefs contain the zone index 679 * of the entry being read. Helper functions to access information given 680 * a struct zoneref are 681 * 682 * zonelist_zone() - Return the struct zone * for an entry in _zonerefs 683 * zonelist_zone_idx() - Return the index of the zone for an entry 684 * zonelist_node_idx() - Return the index of the node for an entry 685 */ 686 struct zonelist { 687 struct zoneref _zonerefs[MAX_ZONES_PER_ZONELIST + 1]; 688 }; 689 690 #ifndef CONFIG_DISCONTIGMEM 691 /* The array of struct pages - for discontigmem use pgdat->lmem_map */ 692 extern struct page *mem_map; 693 #endif 694 695 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 696 struct deferred_split { 697 spinlock_t split_queue_lock; 698 struct list_head split_queue; 699 unsigned long split_queue_len; 700 }; 701 #endif 702 703 /* 704 * On NUMA machines, each NUMA node would have a pg_data_t to describe 705 * it's memory layout. On UMA machines there is a single pglist_data which 706 * describes the whole memory. 707 * 708 * Memory statistics and page replacement data structures are maintained on a 709 * per-zone basis. 710 */ 711 struct bootmem_data; 712 typedef struct pglist_data { 713 struct zone node_zones[MAX_NR_ZONES]; 714 struct zonelist node_zonelists[MAX_ZONELISTS]; 715 int nr_zones; 716 #ifdef CONFIG_FLAT_NODE_MEM_MAP /* means !SPARSEMEM */ 717 struct page *node_mem_map; 718 #ifdef CONFIG_PAGE_EXTENSION 719 struct page_ext *node_page_ext; 720 #endif 721 #endif 722 #if defined(CONFIG_MEMORY_HOTPLUG) || defined(CONFIG_DEFERRED_STRUCT_PAGE_INIT) 723 /* 724 * Must be held any time you expect node_start_pfn, 725 * node_present_pages, node_spanned_pages or nr_zones to stay constant. 726 * 727 * pgdat_resize_lock() and pgdat_resize_unlock() are provided to 728 * manipulate node_size_lock without checking for CONFIG_MEMORY_HOTPLUG 729 * or CONFIG_DEFERRED_STRUCT_PAGE_INIT. 730 * 731 * Nests above zone->lock and zone->span_seqlock 732 */ 733 spinlock_t node_size_lock; 734 #endif 735 unsigned long node_start_pfn; 736 unsigned long node_present_pages; /* total number of physical pages */ 737 unsigned long node_spanned_pages; /* total size of physical page 738 range, including holes */ 739 int node_id; 740 wait_queue_head_t kswapd_wait; 741 wait_queue_head_t pfmemalloc_wait; 742 struct task_struct *kswapd; /* Protected by 743 mem_hotplug_begin/end() */ 744 int kswapd_order; 745 enum zone_type kswapd_classzone_idx; 746 747 int kswapd_failures; /* Number of 'reclaimed == 0' runs */ 748 749 #ifdef CONFIG_COMPACTION 750 int kcompactd_max_order; 751 enum zone_type kcompactd_classzone_idx; 752 wait_queue_head_t kcompactd_wait; 753 struct task_struct *kcompactd; 754 #endif 755 /* 756 * This is a per-node reserve of pages that are not available 757 * to userspace allocations. 758 */ 759 unsigned long totalreserve_pages; 760 761 #ifdef CONFIG_NUMA 762 /* 763 * node reclaim becomes active if more unmapped pages exist. 764 */ 765 unsigned long min_unmapped_pages; 766 unsigned long min_slab_pages; 767 #endif /* CONFIG_NUMA */ 768 769 /* Write-intensive fields used by page reclaim */ 770 ZONE_PADDING(_pad1_) 771 spinlock_t lru_lock; 772 773 #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT 774 /* 775 * If memory initialisation on large machines is deferred then this 776 * is the first PFN that needs to be initialised. 777 */ 778 unsigned long first_deferred_pfn; 779 #endif /* CONFIG_DEFERRED_STRUCT_PAGE_INIT */ 780 781 #ifdef CONFIG_TRANSPARENT_HUGEPAGE 782 struct deferred_split deferred_split_queue; 783 #endif 784 785 /* Fields commonly accessed by the page reclaim scanner */ 786 787 /* 788 * NOTE: THIS IS UNUSED IF MEMCG IS ENABLED. 789 * 790 * Use mem_cgroup_lruvec() to look up lruvecs. 791 */ 792 struct lruvec __lruvec; 793 794 unsigned long flags; 795 796 ZONE_PADDING(_pad2_) 797 798 /* Per-node vmstats */ 799 struct per_cpu_nodestat __percpu *per_cpu_nodestats; 800 atomic_long_t vm_stat[NR_VM_NODE_STAT_ITEMS]; 801 } pg_data_t; 802 803 #define node_present_pages(nid) (NODE_DATA(nid)->node_present_pages) 804 #define node_spanned_pages(nid) (NODE_DATA(nid)->node_spanned_pages) 805 #ifdef CONFIG_FLAT_NODE_MEM_MAP 806 #define pgdat_page_nr(pgdat, pagenr) ((pgdat)->node_mem_map + (pagenr)) 807 #else 808 #define pgdat_page_nr(pgdat, pagenr) pfn_to_page((pgdat)->node_start_pfn + (pagenr)) 809 #endif 810 #define nid_page_nr(nid, pagenr) pgdat_page_nr(NODE_DATA(nid),(pagenr)) 811 812 #define node_start_pfn(nid) (NODE_DATA(nid)->node_start_pfn) 813 #define node_end_pfn(nid) pgdat_end_pfn(NODE_DATA(nid)) 814 815 static inline unsigned long pgdat_end_pfn(pg_data_t *pgdat) 816 { 817 return pgdat->node_start_pfn + pgdat->node_spanned_pages; 818 } 819 820 static inline bool pgdat_is_empty(pg_data_t *pgdat) 821 { 822 return !pgdat->node_start_pfn && !pgdat->node_spanned_pages; 823 } 824 825 #include <linux/memory_hotplug.h> 826 827 void build_all_zonelists(pg_data_t *pgdat); 828 void wakeup_kswapd(struct zone *zone, gfp_t gfp_mask, int order, 829 enum zone_type classzone_idx); 830 bool __zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark, 831 int classzone_idx, unsigned int alloc_flags, 832 long free_pages); 833 bool zone_watermark_ok(struct zone *z, unsigned int order, 834 unsigned long mark, int classzone_idx, 835 unsigned int alloc_flags); 836 bool zone_watermark_ok_safe(struct zone *z, unsigned int order, 837 unsigned long mark, int classzone_idx); 838 enum memmap_context { 839 MEMMAP_EARLY, 840 MEMMAP_HOTPLUG, 841 }; 842 extern void init_currently_empty_zone(struct zone *zone, unsigned long start_pfn, 843 unsigned long size); 844 845 extern void lruvec_init(struct lruvec *lruvec); 846 847 static inline struct pglist_data *lruvec_pgdat(struct lruvec *lruvec) 848 { 849 #ifdef CONFIG_MEMCG 850 return lruvec->pgdat; 851 #else 852 return container_of(lruvec, struct pglist_data, __lruvec); 853 #endif 854 } 855 856 extern unsigned long lruvec_lru_size(struct lruvec *lruvec, enum lru_list lru, int zone_idx); 857 858 #ifdef CONFIG_HAVE_MEMORY_PRESENT 859 void memory_present(int nid, unsigned long start, unsigned long end); 860 #else 861 static inline void memory_present(int nid, unsigned long start, unsigned long end) {} 862 #endif 863 864 #if defined(CONFIG_SPARSEMEM) 865 void memblocks_present(void); 866 #else 867 static inline void memblocks_present(void) {} 868 #endif 869 870 #ifdef CONFIG_HAVE_MEMORYLESS_NODES 871 int local_memory_node(int node_id); 872 #else 873 static inline int local_memory_node(int node_id) { return node_id; }; 874 #endif 875 876 /* 877 * zone_idx() returns 0 for the ZONE_DMA zone, 1 for the ZONE_NORMAL zone, etc. 878 */ 879 #define zone_idx(zone) ((zone) - (zone)->zone_pgdat->node_zones) 880 881 /* 882 * Returns true if a zone has pages managed by the buddy allocator. 883 * All the reclaim decisions have to use this function rather than 884 * populated_zone(). If the whole zone is reserved then we can easily 885 * end up with populated_zone() && !managed_zone(). 886 */ 887 static inline bool managed_zone(struct zone *zone) 888 { 889 return zone_managed_pages(zone); 890 } 891 892 /* Returns true if a zone has memory */ 893 static inline bool populated_zone(struct zone *zone) 894 { 895 return zone->present_pages; 896 } 897 898 #ifdef CONFIG_NUMA 899 static inline int zone_to_nid(struct zone *zone) 900 { 901 return zone->node; 902 } 903 904 static inline void zone_set_nid(struct zone *zone, int nid) 905 { 906 zone->node = nid; 907 } 908 #else 909 static inline int zone_to_nid(struct zone *zone) 910 { 911 return 0; 912 } 913 914 static inline void zone_set_nid(struct zone *zone, int nid) {} 915 #endif 916 917 extern int movable_zone; 918 919 #ifdef CONFIG_HIGHMEM 920 static inline int zone_movable_is_highmem(void) 921 { 922 #ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP 923 return movable_zone == ZONE_HIGHMEM; 924 #else 925 return (ZONE_MOVABLE - 1) == ZONE_HIGHMEM; 926 #endif 927 } 928 #endif 929 930 static inline int is_highmem_idx(enum zone_type idx) 931 { 932 #ifdef CONFIG_HIGHMEM 933 return (idx == ZONE_HIGHMEM || 934 (idx == ZONE_MOVABLE && zone_movable_is_highmem())); 935 #else 936 return 0; 937 #endif 938 } 939 940 /** 941 * is_highmem - helper function to quickly check if a struct zone is a 942 * highmem zone or not. This is an attempt to keep references 943 * to ZONE_{DMA/NORMAL/HIGHMEM/etc} in general code to a minimum. 944 * @zone - pointer to struct zone variable 945 */ 946 static inline int is_highmem(struct zone *zone) 947 { 948 #ifdef CONFIG_HIGHMEM 949 return is_highmem_idx(zone_idx(zone)); 950 #else 951 return 0; 952 #endif 953 } 954 955 /* These two functions are used to setup the per zone pages min values */ 956 struct ctl_table; 957 int min_free_kbytes_sysctl_handler(struct ctl_table *, int, 958 void __user *, size_t *, loff_t *); 959 int watermark_boost_factor_sysctl_handler(struct ctl_table *, int, 960 void __user *, size_t *, loff_t *); 961 int watermark_scale_factor_sysctl_handler(struct ctl_table *, int, 962 void __user *, size_t *, loff_t *); 963 extern int sysctl_lowmem_reserve_ratio[MAX_NR_ZONES]; 964 int lowmem_reserve_ratio_sysctl_handler(struct ctl_table *, int, 965 void __user *, size_t *, loff_t *); 966 int percpu_pagelist_fraction_sysctl_handler(struct ctl_table *, int, 967 void __user *, size_t *, loff_t *); 968 int sysctl_min_unmapped_ratio_sysctl_handler(struct ctl_table *, int, 969 void __user *, size_t *, loff_t *); 970 int sysctl_min_slab_ratio_sysctl_handler(struct ctl_table *, int, 971 void __user *, size_t *, loff_t *); 972 973 extern int numa_zonelist_order_handler(struct ctl_table *, int, 974 void __user *, size_t *, loff_t *); 975 extern char numa_zonelist_order[]; 976 #define NUMA_ZONELIST_ORDER_LEN 16 977 978 #ifndef CONFIG_NEED_MULTIPLE_NODES 979 980 extern struct pglist_data contig_page_data; 981 #define NODE_DATA(nid) (&contig_page_data) 982 #define NODE_MEM_MAP(nid) mem_map 983 984 #else /* CONFIG_NEED_MULTIPLE_NODES */ 985 986 #include <asm/mmzone.h> 987 988 #endif /* !CONFIG_NEED_MULTIPLE_NODES */ 989 990 extern struct pglist_data *first_online_pgdat(void); 991 extern struct pglist_data *next_online_pgdat(struct pglist_data *pgdat); 992 extern struct zone *next_zone(struct zone *zone); 993 994 /** 995 * for_each_online_pgdat - helper macro to iterate over all online nodes 996 * @pgdat - pointer to a pg_data_t variable 997 */ 998 #define for_each_online_pgdat(pgdat) \ 999 for (pgdat = first_online_pgdat(); \ 1000 pgdat; \ 1001 pgdat = next_online_pgdat(pgdat)) 1002 /** 1003 * for_each_zone - helper macro to iterate over all memory zones 1004 * @zone - pointer to struct zone variable 1005 * 1006 * The user only needs to declare the zone variable, for_each_zone 1007 * fills it in. 1008 */ 1009 #define for_each_zone(zone) \ 1010 for (zone = (first_online_pgdat())->node_zones; \ 1011 zone; \ 1012 zone = next_zone(zone)) 1013 1014 #define for_each_populated_zone(zone) \ 1015 for (zone = (first_online_pgdat())->node_zones; \ 1016 zone; \ 1017 zone = next_zone(zone)) \ 1018 if (!populated_zone(zone)) \ 1019 ; /* do nothing */ \ 1020 else 1021 1022 static inline struct zone *zonelist_zone(struct zoneref *zoneref) 1023 { 1024 return zoneref->zone; 1025 } 1026 1027 static inline int zonelist_zone_idx(struct zoneref *zoneref) 1028 { 1029 return zoneref->zone_idx; 1030 } 1031 1032 static inline int zonelist_node_idx(struct zoneref *zoneref) 1033 { 1034 return zone_to_nid(zoneref->zone); 1035 } 1036 1037 struct zoneref *__next_zones_zonelist(struct zoneref *z, 1038 enum zone_type highest_zoneidx, 1039 nodemask_t *nodes); 1040 1041 /** 1042 * next_zones_zonelist - Returns the next zone at or below highest_zoneidx within the allowed nodemask using a cursor within a zonelist as a starting point 1043 * @z - The cursor used as a starting point for the search 1044 * @highest_zoneidx - The zone index of the highest zone to return 1045 * @nodes - An optional nodemask to filter the zonelist with 1046 * 1047 * This function returns the next zone at or below a given zone index that is 1048 * within the allowed nodemask using a cursor as the starting point for the 1049 * search. The zoneref returned is a cursor that represents the current zone 1050 * being examined. It should be advanced by one before calling 1051 * next_zones_zonelist again. 1052 */ 1053 static __always_inline struct zoneref *next_zones_zonelist(struct zoneref *z, 1054 enum zone_type highest_zoneidx, 1055 nodemask_t *nodes) 1056 { 1057 if (likely(!nodes && zonelist_zone_idx(z) <= highest_zoneidx)) 1058 return z; 1059 return __next_zones_zonelist(z, highest_zoneidx, nodes); 1060 } 1061 1062 /** 1063 * first_zones_zonelist - Returns the first zone at or below highest_zoneidx within the allowed nodemask in a zonelist 1064 * @zonelist - The zonelist to search for a suitable zone 1065 * @highest_zoneidx - The zone index of the highest zone to return 1066 * @nodes - An optional nodemask to filter the zonelist with 1067 * @return - Zoneref pointer for the first suitable zone found (see below) 1068 * 1069 * This function returns the first zone at or below a given zone index that is 1070 * within the allowed nodemask. The zoneref returned is a cursor that can be 1071 * used to iterate the zonelist with next_zones_zonelist by advancing it by 1072 * one before calling. 1073 * 1074 * When no eligible zone is found, zoneref->zone is NULL (zoneref itself is 1075 * never NULL). This may happen either genuinely, or due to concurrent nodemask 1076 * update due to cpuset modification. 1077 */ 1078 static inline struct zoneref *first_zones_zonelist(struct zonelist *zonelist, 1079 enum zone_type highest_zoneidx, 1080 nodemask_t *nodes) 1081 { 1082 return next_zones_zonelist(zonelist->_zonerefs, 1083 highest_zoneidx, nodes); 1084 } 1085 1086 /** 1087 * for_each_zone_zonelist_nodemask - helper macro to iterate over valid zones in a zonelist at or below a given zone index and within a nodemask 1088 * @zone - The current zone in the iterator 1089 * @z - The current pointer within zonelist->_zonerefs being iterated 1090 * @zlist - The zonelist being iterated 1091 * @highidx - The zone index of the highest zone to return 1092 * @nodemask - Nodemask allowed by the allocator 1093 * 1094 * This iterator iterates though all zones at or below a given zone index and 1095 * within a given nodemask 1096 */ 1097 #define for_each_zone_zonelist_nodemask(zone, z, zlist, highidx, nodemask) \ 1098 for (z = first_zones_zonelist(zlist, highidx, nodemask), zone = zonelist_zone(z); \ 1099 zone; \ 1100 z = next_zones_zonelist(++z, highidx, nodemask), \ 1101 zone = zonelist_zone(z)) 1102 1103 #define for_next_zone_zonelist_nodemask(zone, z, zlist, highidx, nodemask) \ 1104 for (zone = z->zone; \ 1105 zone; \ 1106 z = next_zones_zonelist(++z, highidx, nodemask), \ 1107 zone = zonelist_zone(z)) 1108 1109 1110 /** 1111 * for_each_zone_zonelist - helper macro to iterate over valid zones in a zonelist at or below a given zone index 1112 * @zone - The current zone in the iterator 1113 * @z - The current pointer within zonelist->zones being iterated 1114 * @zlist - The zonelist being iterated 1115 * @highidx - The zone index of the highest zone to return 1116 * 1117 * This iterator iterates though all zones at or below a given zone index. 1118 */ 1119 #define for_each_zone_zonelist(zone, z, zlist, highidx) \ 1120 for_each_zone_zonelist_nodemask(zone, z, zlist, highidx, NULL) 1121 1122 #ifdef CONFIG_SPARSEMEM 1123 #include <asm/sparsemem.h> 1124 #endif 1125 1126 #if !defined(CONFIG_HAVE_ARCH_EARLY_PFN_TO_NID) && \ 1127 !defined(CONFIG_HAVE_MEMBLOCK_NODE_MAP) 1128 static inline unsigned long early_pfn_to_nid(unsigned long pfn) 1129 { 1130 BUILD_BUG_ON(IS_ENABLED(CONFIG_NUMA)); 1131 return 0; 1132 } 1133 #endif 1134 1135 #ifdef CONFIG_FLATMEM 1136 #define pfn_to_nid(pfn) (0) 1137 #endif 1138 1139 #ifdef CONFIG_SPARSEMEM 1140 1141 /* 1142 * SECTION_SHIFT #bits space required to store a section # 1143 * 1144 * PA_SECTION_SHIFT physical address to/from section number 1145 * PFN_SECTION_SHIFT pfn to/from section number 1146 */ 1147 #define PA_SECTION_SHIFT (SECTION_SIZE_BITS) 1148 #define PFN_SECTION_SHIFT (SECTION_SIZE_BITS - PAGE_SHIFT) 1149 1150 #define NR_MEM_SECTIONS (1UL << SECTIONS_SHIFT) 1151 1152 #define PAGES_PER_SECTION (1UL << PFN_SECTION_SHIFT) 1153 #define PAGE_SECTION_MASK (~(PAGES_PER_SECTION-1)) 1154 1155 #define SECTION_BLOCKFLAGS_BITS \ 1156 ((1UL << (PFN_SECTION_SHIFT - pageblock_order)) * NR_PAGEBLOCK_BITS) 1157 1158 #if (MAX_ORDER - 1 + PAGE_SHIFT) > SECTION_SIZE_BITS 1159 #error Allocator MAX_ORDER exceeds SECTION_SIZE 1160 #endif 1161 1162 static inline unsigned long pfn_to_section_nr(unsigned long pfn) 1163 { 1164 return pfn >> PFN_SECTION_SHIFT; 1165 } 1166 static inline unsigned long section_nr_to_pfn(unsigned long sec) 1167 { 1168 return sec << PFN_SECTION_SHIFT; 1169 } 1170 1171 #define SECTION_ALIGN_UP(pfn) (((pfn) + PAGES_PER_SECTION - 1) & PAGE_SECTION_MASK) 1172 #define SECTION_ALIGN_DOWN(pfn) ((pfn) & PAGE_SECTION_MASK) 1173 1174 #define SUBSECTION_SHIFT 21 1175 1176 #define PFN_SUBSECTION_SHIFT (SUBSECTION_SHIFT - PAGE_SHIFT) 1177 #define PAGES_PER_SUBSECTION (1UL << PFN_SUBSECTION_SHIFT) 1178 #define PAGE_SUBSECTION_MASK (~(PAGES_PER_SUBSECTION-1)) 1179 1180 #if SUBSECTION_SHIFT > SECTION_SIZE_BITS 1181 #error Subsection size exceeds section size 1182 #else 1183 #define SUBSECTIONS_PER_SECTION (1UL << (SECTION_SIZE_BITS - SUBSECTION_SHIFT)) 1184 #endif 1185 1186 #define SUBSECTION_ALIGN_UP(pfn) ALIGN((pfn), PAGES_PER_SUBSECTION) 1187 #define SUBSECTION_ALIGN_DOWN(pfn) ((pfn) & PAGE_SUBSECTION_MASK) 1188 1189 struct mem_section_usage { 1190 DECLARE_BITMAP(subsection_map, SUBSECTIONS_PER_SECTION); 1191 /* See declaration of similar field in struct zone */ 1192 unsigned long pageblock_flags[0]; 1193 }; 1194 1195 void subsection_map_init(unsigned long pfn, unsigned long nr_pages); 1196 1197 struct page; 1198 struct page_ext; 1199 struct mem_section { 1200 /* 1201 * This is, logically, a pointer to an array of struct 1202 * pages. However, it is stored with some other magic. 1203 * (see sparse.c::sparse_init_one_section()) 1204 * 1205 * Additionally during early boot we encode node id of 1206 * the location of the section here to guide allocation. 1207 * (see sparse.c::memory_present()) 1208 * 1209 * Making it a UL at least makes someone do a cast 1210 * before using it wrong. 1211 */ 1212 unsigned long section_mem_map; 1213 1214 struct mem_section_usage *usage; 1215 #ifdef CONFIG_PAGE_EXTENSION 1216 /* 1217 * If SPARSEMEM, pgdat doesn't have page_ext pointer. We use 1218 * section. (see page_ext.h about this.) 1219 */ 1220 struct page_ext *page_ext; 1221 unsigned long pad; 1222 #endif 1223 /* 1224 * WARNING: mem_section must be a power-of-2 in size for the 1225 * calculation and use of SECTION_ROOT_MASK to make sense. 1226 */ 1227 }; 1228 1229 #ifdef CONFIG_SPARSEMEM_EXTREME 1230 #define SECTIONS_PER_ROOT (PAGE_SIZE / sizeof (struct mem_section)) 1231 #else 1232 #define SECTIONS_PER_ROOT 1 1233 #endif 1234 1235 #define SECTION_NR_TO_ROOT(sec) ((sec) / SECTIONS_PER_ROOT) 1236 #define NR_SECTION_ROOTS DIV_ROUND_UP(NR_MEM_SECTIONS, SECTIONS_PER_ROOT) 1237 #define SECTION_ROOT_MASK (SECTIONS_PER_ROOT - 1) 1238 1239 #ifdef CONFIG_SPARSEMEM_EXTREME 1240 extern struct mem_section **mem_section; 1241 #else 1242 extern struct mem_section mem_section[NR_SECTION_ROOTS][SECTIONS_PER_ROOT]; 1243 #endif 1244 1245 static inline unsigned long *section_to_usemap(struct mem_section *ms) 1246 { 1247 return ms->usage->pageblock_flags; 1248 } 1249 1250 static inline struct mem_section *__nr_to_section(unsigned long nr) 1251 { 1252 #ifdef CONFIG_SPARSEMEM_EXTREME 1253 if (!mem_section) 1254 return NULL; 1255 #endif 1256 if (!mem_section[SECTION_NR_TO_ROOT(nr)]) 1257 return NULL; 1258 return &mem_section[SECTION_NR_TO_ROOT(nr)][nr & SECTION_ROOT_MASK]; 1259 } 1260 extern unsigned long __section_nr(struct mem_section *ms); 1261 extern size_t mem_section_usage_size(void); 1262 1263 /* 1264 * We use the lower bits of the mem_map pointer to store 1265 * a little bit of information. The pointer is calculated 1266 * as mem_map - section_nr_to_pfn(pnum). The result is 1267 * aligned to the minimum alignment of the two values: 1268 * 1. All mem_map arrays are page-aligned. 1269 * 2. section_nr_to_pfn() always clears PFN_SECTION_SHIFT 1270 * lowest bits. PFN_SECTION_SHIFT is arch-specific 1271 * (equal SECTION_SIZE_BITS - PAGE_SHIFT), and the 1272 * worst combination is powerpc with 256k pages, 1273 * which results in PFN_SECTION_SHIFT equal 6. 1274 * To sum it up, at least 6 bits are available. 1275 */ 1276 #define SECTION_MARKED_PRESENT (1UL<<0) 1277 #define SECTION_HAS_MEM_MAP (1UL<<1) 1278 #define SECTION_IS_ONLINE (1UL<<2) 1279 #define SECTION_IS_EARLY (1UL<<3) 1280 #define SECTION_MAP_LAST_BIT (1UL<<4) 1281 #define SECTION_MAP_MASK (~(SECTION_MAP_LAST_BIT-1)) 1282 #define SECTION_NID_SHIFT 3 1283 1284 static inline struct page *__section_mem_map_addr(struct mem_section *section) 1285 { 1286 unsigned long map = section->section_mem_map; 1287 map &= SECTION_MAP_MASK; 1288 return (struct page *)map; 1289 } 1290 1291 static inline int present_section(struct mem_section *section) 1292 { 1293 return (section && (section->section_mem_map & SECTION_MARKED_PRESENT)); 1294 } 1295 1296 static inline int present_section_nr(unsigned long nr) 1297 { 1298 return present_section(__nr_to_section(nr)); 1299 } 1300 1301 static inline int valid_section(struct mem_section *section) 1302 { 1303 return (section && (section->section_mem_map & SECTION_HAS_MEM_MAP)); 1304 } 1305 1306 static inline int early_section(struct mem_section *section) 1307 { 1308 return (section && (section->section_mem_map & SECTION_IS_EARLY)); 1309 } 1310 1311 static inline int valid_section_nr(unsigned long nr) 1312 { 1313 return valid_section(__nr_to_section(nr)); 1314 } 1315 1316 static inline int online_section(struct mem_section *section) 1317 { 1318 return (section && (section->section_mem_map & SECTION_IS_ONLINE)); 1319 } 1320 1321 static inline int online_section_nr(unsigned long nr) 1322 { 1323 return online_section(__nr_to_section(nr)); 1324 } 1325 1326 #ifdef CONFIG_MEMORY_HOTPLUG 1327 void online_mem_sections(unsigned long start_pfn, unsigned long end_pfn); 1328 #ifdef CONFIG_MEMORY_HOTREMOVE 1329 void offline_mem_sections(unsigned long start_pfn, unsigned long end_pfn); 1330 #endif 1331 #endif 1332 1333 static inline struct mem_section *__pfn_to_section(unsigned long pfn) 1334 { 1335 return __nr_to_section(pfn_to_section_nr(pfn)); 1336 } 1337 1338 extern unsigned long __highest_present_section_nr; 1339 1340 static inline int subsection_map_index(unsigned long pfn) 1341 { 1342 return (pfn & ~(PAGE_SECTION_MASK)) / PAGES_PER_SUBSECTION; 1343 } 1344 1345 #ifdef CONFIG_SPARSEMEM_VMEMMAP 1346 static inline int pfn_section_valid(struct mem_section *ms, unsigned long pfn) 1347 { 1348 int idx = subsection_map_index(pfn); 1349 1350 return test_bit(idx, ms->usage->subsection_map); 1351 } 1352 #else 1353 static inline int pfn_section_valid(struct mem_section *ms, unsigned long pfn) 1354 { 1355 return 1; 1356 } 1357 #endif 1358 1359 #ifndef CONFIG_HAVE_ARCH_PFN_VALID 1360 static inline int pfn_valid(unsigned long pfn) 1361 { 1362 struct mem_section *ms; 1363 1364 if (pfn_to_section_nr(pfn) >= NR_MEM_SECTIONS) 1365 return 0; 1366 ms = __nr_to_section(pfn_to_section_nr(pfn)); 1367 if (!valid_section(ms)) 1368 return 0; 1369 /* 1370 * Traditionally early sections always returned pfn_valid() for 1371 * the entire section-sized span. 1372 */ 1373 return early_section(ms) || pfn_section_valid(ms, pfn); 1374 } 1375 #endif 1376 1377 static inline int pfn_in_present_section(unsigned long pfn) 1378 { 1379 if (pfn_to_section_nr(pfn) >= NR_MEM_SECTIONS) 1380 return 0; 1381 return present_section(__nr_to_section(pfn_to_section_nr(pfn))); 1382 } 1383 1384 static inline unsigned long next_present_section_nr(unsigned long section_nr) 1385 { 1386 while (++section_nr <= __highest_present_section_nr) { 1387 if (present_section_nr(section_nr)) 1388 return section_nr; 1389 } 1390 1391 return -1; 1392 } 1393 1394 /* 1395 * These are _only_ used during initialisation, therefore they 1396 * can use __initdata ... They could have names to indicate 1397 * this restriction. 1398 */ 1399 #ifdef CONFIG_NUMA 1400 #define pfn_to_nid(pfn) \ 1401 ({ \ 1402 unsigned long __pfn_to_nid_pfn = (pfn); \ 1403 page_to_nid(pfn_to_page(__pfn_to_nid_pfn)); \ 1404 }) 1405 #else 1406 #define pfn_to_nid(pfn) (0) 1407 #endif 1408 1409 #define early_pfn_valid(pfn) pfn_valid(pfn) 1410 void sparse_init(void); 1411 #else 1412 #define sparse_init() do {} while (0) 1413 #define sparse_index_init(_sec, _nid) do {} while (0) 1414 #define pfn_in_present_section pfn_valid 1415 #define subsection_map_init(_pfn, _nr_pages) do {} while (0) 1416 #endif /* CONFIG_SPARSEMEM */ 1417 1418 /* 1419 * During memory init memblocks map pfns to nids. The search is expensive and 1420 * this caches recent lookups. The implementation of __early_pfn_to_nid 1421 * may treat start/end as pfns or sections. 1422 */ 1423 struct mminit_pfnnid_cache { 1424 unsigned long last_start; 1425 unsigned long last_end; 1426 int last_nid; 1427 }; 1428 1429 #ifndef early_pfn_valid 1430 #define early_pfn_valid(pfn) (1) 1431 #endif 1432 1433 void memory_present(int nid, unsigned long start, unsigned long end); 1434 1435 /* 1436 * If it is possible to have holes within a MAX_ORDER_NR_PAGES, then we 1437 * need to check pfn validity within that MAX_ORDER_NR_PAGES block. 1438 * pfn_valid_within() should be used in this case; we optimise this away 1439 * when we have no holes within a MAX_ORDER_NR_PAGES block. 1440 */ 1441 #ifdef CONFIG_HOLES_IN_ZONE 1442 #define pfn_valid_within(pfn) pfn_valid(pfn) 1443 #else 1444 #define pfn_valid_within(pfn) (1) 1445 #endif 1446 1447 #ifdef CONFIG_ARCH_HAS_HOLES_MEMORYMODEL 1448 /* 1449 * pfn_valid() is meant to be able to tell if a given PFN has valid memmap 1450 * associated with it or not. This means that a struct page exists for this 1451 * pfn. The caller cannot assume the page is fully initialized in general. 1452 * Hotplugable pages might not have been onlined yet. pfn_to_online_page() 1453 * will ensure the struct page is fully online and initialized. Special pages 1454 * (e.g. ZONE_DEVICE) are never onlined and should be treated accordingly. 1455 * 1456 * In FLATMEM, it is expected that holes always have valid memmap as long as 1457 * there is valid PFNs either side of the hole. In SPARSEMEM, it is assumed 1458 * that a valid section has a memmap for the entire section. 1459 * 1460 * However, an ARM, and maybe other embedded architectures in the future 1461 * free memmap backing holes to save memory on the assumption the memmap is 1462 * never used. The page_zone linkages are then broken even though pfn_valid() 1463 * returns true. A walker of the full memmap must then do this additional 1464 * check to ensure the memmap they are looking at is sane by making sure 1465 * the zone and PFN linkages are still valid. This is expensive, but walkers 1466 * of the full memmap are extremely rare. 1467 */ 1468 bool memmap_valid_within(unsigned long pfn, 1469 struct page *page, struct zone *zone); 1470 #else 1471 static inline bool memmap_valid_within(unsigned long pfn, 1472 struct page *page, struct zone *zone) 1473 { 1474 return true; 1475 } 1476 #endif /* CONFIG_ARCH_HAS_HOLES_MEMORYMODEL */ 1477 1478 #endif /* !__GENERATING_BOUNDS.H */ 1479 #endif /* !__ASSEMBLY__ */ 1480 #endif /* _LINUX_MMZONE_H */ 1481