xref: /linux-6.15/include/linux/mmzone.h (revision da1fda28)
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