mm: page_alloc: abort fair zone allocation policy when remotes nodes are encountered
[deliverable/linux.git] / include / linux / mmzone.h
CommitLineData
1da177e4
LT
1#ifndef _LINUX_MMZONE_H
2#define _LINUX_MMZONE_H
3
1da177e4 4#ifndef __ASSEMBLY__
97965478 5#ifndef __GENERATING_BOUNDS_H
1da177e4 6
1da177e4
LT
7#include <linux/spinlock.h>
8#include <linux/list.h>
9#include <linux/wait.h>
e815af95 10#include <linux/bitops.h>
1da177e4
LT
11#include <linux/cache.h>
12#include <linux/threads.h>
13#include <linux/numa.h>
14#include <linux/init.h>
bdc8cb98 15#include <linux/seqlock.h>
8357f869 16#include <linux/nodemask.h>
835c134e 17#include <linux/pageblock-flags.h>
bbeae5b0 18#include <linux/page-flags-layout.h>
60063497 19#include <linux/atomic.h>
93ff66bf 20#include <asm/page.h>
1da177e4
LT
21
22/* Free memory management - zoned buddy allocator. */
23#ifndef CONFIG_FORCE_MAX_ZONEORDER
24#define MAX_ORDER 11
25#else
26#define MAX_ORDER CONFIG_FORCE_MAX_ZONEORDER
27#endif
e984bb43 28#define MAX_ORDER_NR_PAGES (1 << (MAX_ORDER - 1))
1da177e4 29
5ad333eb
AW
30/*
31 * PAGE_ALLOC_COSTLY_ORDER is the order at which allocations are deemed
32 * costly to service. That is between allocation orders which should
35fca53e 33 * coalesce naturally under reasonable reclaim pressure and those which
5ad333eb
AW
34 * will not.
35 */
36#define PAGE_ALLOC_COSTLY_ORDER 3
37
47118af0
MN
38enum {
39 MIGRATE_UNMOVABLE,
40 MIGRATE_RECLAIMABLE,
41 MIGRATE_MOVABLE,
42 MIGRATE_PCPTYPES, /* the number of types on the pcp lists */
43 MIGRATE_RESERVE = MIGRATE_PCPTYPES,
44#ifdef CONFIG_CMA
45 /*
46 * MIGRATE_CMA migration type is designed to mimic the way
47 * ZONE_MOVABLE works. Only movable pages can be allocated
48 * from MIGRATE_CMA pageblocks and page allocator never
49 * implicitly change migration type of MIGRATE_CMA pageblock.
50 *
51 * The way to use it is to change migratetype of a range of
52 * pageblocks to MIGRATE_CMA which can be done by
53 * __free_pageblock_cma() function. What is important though
54 * is that a range of pageblocks must be aligned to
55 * MAX_ORDER_NR_PAGES should biggest page be bigger then
56 * a single pageblock.
57 */
58 MIGRATE_CMA,
59#endif
194159fb 60#ifdef CONFIG_MEMORY_ISOLATION
47118af0 61 MIGRATE_ISOLATE, /* can't allocate from here */
194159fb 62#endif
47118af0
MN
63 MIGRATE_TYPES
64};
65
66#ifdef CONFIG_CMA
67# define is_migrate_cma(migratetype) unlikely((migratetype) == MIGRATE_CMA)
68#else
69# define is_migrate_cma(migratetype) false
70#endif
b2a0ac88
MG
71
72#define for_each_migratetype_order(order, type) \
73 for (order = 0; order < MAX_ORDER; order++) \
74 for (type = 0; type < MIGRATE_TYPES; type++)
75
467c996c
MG
76extern int page_group_by_mobility_disabled;
77
e58469ba
MG
78#define NR_MIGRATETYPE_BITS (PB_migrate_end - PB_migrate + 1)
79#define MIGRATETYPE_MASK ((1UL << NR_MIGRATETYPE_BITS) - 1)
80
dc4b0caf
MG
81#define get_pageblock_migratetype(page) \
82 get_pfnblock_flags_mask(page, page_to_pfn(page), \
83 PB_migrate_end, MIGRATETYPE_MASK)
84
85static inline int get_pfnblock_migratetype(struct page *page, unsigned long pfn)
467c996c 86{
e58469ba 87 BUILD_BUG_ON(PB_migrate_end - PB_migrate != 2);
dc4b0caf
MG
88 return get_pfnblock_flags_mask(page, pfn, PB_migrate_end,
89 MIGRATETYPE_MASK);
467c996c
MG
90}
91
1da177e4 92struct free_area {
b2a0ac88 93 struct list_head free_list[MIGRATE_TYPES];
1da177e4
LT
94 unsigned long nr_free;
95};
96
97struct pglist_data;
98
99/*
100 * zone->lock and zone->lru_lock are two of the hottest locks in the kernel.
101 * So add a wild amount of padding here to ensure that they fall into separate
102 * cachelines. There are very few zone structures in the machine, so space
103 * consumption is not a concern here.
104 */
105#if defined(CONFIG_SMP)
106struct zone_padding {
107 char x[0];
22fc6ecc 108} ____cacheline_internodealigned_in_smp;
1da177e4
LT
109#define ZONE_PADDING(name) struct zone_padding name;
110#else
111#define ZONE_PADDING(name)
112#endif
113
2244b95a 114enum zone_stat_item {
51ed4491 115 /* First 128 byte cacheline (assuming 64 bit words) */
d23ad423 116 NR_FREE_PAGES,
81c0a2bb 117 NR_ALLOC_BATCH,
b69408e8 118 NR_LRU_BASE,
4f98a2fe
RR
119 NR_INACTIVE_ANON = NR_LRU_BASE, /* must match order of LRU_[IN]ACTIVE */
120 NR_ACTIVE_ANON, /* " " " " " */
121 NR_INACTIVE_FILE, /* " " " " " */
122 NR_ACTIVE_FILE, /* " " " " " */
894bc310 123 NR_UNEVICTABLE, /* " " " " " */
5344b7e6 124 NR_MLOCK, /* mlock()ed pages found and moved off LRU */
f3dbd344
CL
125 NR_ANON_PAGES, /* Mapped anonymous pages */
126 NR_FILE_MAPPED, /* pagecache pages mapped into pagetables.
65ba55f5 127 only modified from process context */
347ce434 128 NR_FILE_PAGES,
b1e7a8fd 129 NR_FILE_DIRTY,
ce866b34 130 NR_WRITEBACK,
51ed4491
CL
131 NR_SLAB_RECLAIMABLE,
132 NR_SLAB_UNRECLAIMABLE,
133 NR_PAGETABLE, /* used for pagetables */
c6a7f572
KM
134 NR_KERNEL_STACK,
135 /* Second 128 byte cacheline */
fd39fc85 136 NR_UNSTABLE_NFS, /* NFS unstable pages */
d2c5e30c 137 NR_BOUNCE,
e129b5c2 138 NR_VMSCAN_WRITE,
49ea7eb6 139 NR_VMSCAN_IMMEDIATE, /* Prioritise for reclaim when writeback ends */
fc3ba692 140 NR_WRITEBACK_TEMP, /* Writeback using temporary buffers */
a731286d
KM
141 NR_ISOLATED_ANON, /* Temporary isolated pages from anon lru */
142 NR_ISOLATED_FILE, /* Temporary isolated pages from file lru */
4b02108a 143 NR_SHMEM, /* shmem pages (included tmpfs/GEM pages) */
ea941f0e
MR
144 NR_DIRTIED, /* page dirtyings since bootup */
145 NR_WRITTEN, /* page writings since bootup */
0d5d823a 146 NR_PAGES_SCANNED, /* pages scanned since last reclaim */
ca889e6c
CL
147#ifdef CONFIG_NUMA
148 NUMA_HIT, /* allocated in intended node */
149 NUMA_MISS, /* allocated in non intended node */
150 NUMA_FOREIGN, /* was intended here, hit elsewhere */
151 NUMA_INTERLEAVE_HIT, /* interleaver preferred this zone */
152 NUMA_LOCAL, /* allocation from local node */
153 NUMA_OTHER, /* allocation from other node */
154#endif
a528910e
JW
155 WORKINGSET_REFAULT,
156 WORKINGSET_ACTIVATE,
449dd698 157 WORKINGSET_NODERECLAIM,
79134171 158 NR_ANON_TRANSPARENT_HUGEPAGES,
d1ce749a 159 NR_FREE_CMA_PAGES,
2244b95a
CL
160 NR_VM_ZONE_STAT_ITEMS };
161
4f98a2fe
RR
162/*
163 * We do arithmetic on the LRU lists in various places in the code,
164 * so it is important to keep the active lists LRU_ACTIVE higher in
165 * the array than the corresponding inactive lists, and to keep
166 * the *_FILE lists LRU_FILE higher than the corresponding _ANON lists.
167 *
168 * This has to be kept in sync with the statistics in zone_stat_item
169 * above and the descriptions in vmstat_text in mm/vmstat.c
170 */
171#define LRU_BASE 0
172#define LRU_ACTIVE 1
173#define LRU_FILE 2
174
b69408e8 175enum lru_list {
4f98a2fe
RR
176 LRU_INACTIVE_ANON = LRU_BASE,
177 LRU_ACTIVE_ANON = LRU_BASE + LRU_ACTIVE,
178 LRU_INACTIVE_FILE = LRU_BASE + LRU_FILE,
179 LRU_ACTIVE_FILE = LRU_BASE + LRU_FILE + LRU_ACTIVE,
894bc310 180 LRU_UNEVICTABLE,
894bc310
LS
181 NR_LRU_LISTS
182};
b69408e8 183
4111304d 184#define for_each_lru(lru) for (lru = 0; lru < NR_LRU_LISTS; lru++)
b69408e8 185
4111304d 186#define for_each_evictable_lru(lru) for (lru = 0; lru <= LRU_ACTIVE_FILE; lru++)
894bc310 187
4111304d 188static inline int is_file_lru(enum lru_list lru)
4f98a2fe 189{
4111304d 190 return (lru == LRU_INACTIVE_FILE || lru == LRU_ACTIVE_FILE);
4f98a2fe
RR
191}
192
4111304d 193static inline int is_active_lru(enum lru_list lru)
b69408e8 194{
4111304d 195 return (lru == LRU_ACTIVE_ANON || lru == LRU_ACTIVE_FILE);
b69408e8
CL
196}
197
4111304d 198static inline int is_unevictable_lru(enum lru_list lru)
894bc310 199{
4111304d 200 return (lru == LRU_UNEVICTABLE);
894bc310
LS
201}
202
89abfab1
HD
203struct zone_reclaim_stat {
204 /*
205 * The pageout code in vmscan.c keeps track of how many of the
59f91e5d 206 * mem/swap backed and file backed pages are referenced.
89abfab1
HD
207 * The higher the rotated/scanned ratio, the more valuable
208 * that cache is.
209 *
210 * The anon LRU stats live in [0], file LRU stats in [1]
211 */
212 unsigned long recent_rotated[2];
213 unsigned long recent_scanned[2];
214};
215
6290df54
JW
216struct lruvec {
217 struct list_head lists[NR_LRU_LISTS];
89abfab1 218 struct zone_reclaim_stat reclaim_stat;
c255a458 219#ifdef CONFIG_MEMCG
7f5e86c2
KK
220 struct zone *zone;
221#endif
6290df54
JW
222};
223
bb2a0de9
KH
224/* Mask used at gathering information at once (see memcontrol.c) */
225#define LRU_ALL_FILE (BIT(LRU_INACTIVE_FILE) | BIT(LRU_ACTIVE_FILE))
226#define LRU_ALL_ANON (BIT(LRU_INACTIVE_ANON) | BIT(LRU_ACTIVE_ANON))
bb2a0de9
KH
227#define LRU_ALL ((1 << NR_LRU_LISTS) - 1)
228
39deaf85 229/* Isolate clean file */
f3fd4a61 230#define ISOLATE_CLEAN ((__force isolate_mode_t)0x1)
f80c0673 231/* Isolate unmapped file */
f3fd4a61 232#define ISOLATE_UNMAPPED ((__force isolate_mode_t)0x2)
c8244935 233/* Isolate for asynchronous migration */
f3fd4a61 234#define ISOLATE_ASYNC_MIGRATE ((__force isolate_mode_t)0x4)
e46a2879
MK
235/* Isolate unevictable pages */
236#define ISOLATE_UNEVICTABLE ((__force isolate_mode_t)0x8)
4356f21d
MK
237
238/* LRU Isolation modes. */
239typedef unsigned __bitwise__ isolate_mode_t;
240
41858966
MG
241enum zone_watermarks {
242 WMARK_MIN,
243 WMARK_LOW,
244 WMARK_HIGH,
245 NR_WMARK
246};
247
248#define min_wmark_pages(z) (z->watermark[WMARK_MIN])
249#define low_wmark_pages(z) (z->watermark[WMARK_LOW])
250#define high_wmark_pages(z) (z->watermark[WMARK_HIGH])
251
1da177e4
LT
252struct per_cpu_pages {
253 int count; /* number of pages in the list */
1da177e4
LT
254 int high; /* high watermark, emptying needed */
255 int batch; /* chunk size for buddy add/remove */
5f8dcc21
MG
256
257 /* Lists of pages, one per migrate type stored on the pcp-lists */
258 struct list_head lists[MIGRATE_PCPTYPES];
1da177e4
LT
259};
260
261struct per_cpu_pageset {
3dfa5721 262 struct per_cpu_pages pcp;
4037d452
CL
263#ifdef CONFIG_NUMA
264 s8 expire;
265#endif
2244b95a 266#ifdef CONFIG_SMP
df9ecaba 267 s8 stat_threshold;
2244b95a
CL
268 s8 vm_stat_diff[NR_VM_ZONE_STAT_ITEMS];
269#endif
99dcc3e5 270};
e7c8d5c9 271
97965478
CL
272#endif /* !__GENERATING_BOUNDS.H */
273
2f1b6248 274enum zone_type {
4b51d669 275#ifdef CONFIG_ZONE_DMA
2f1b6248
CL
276 /*
277 * ZONE_DMA is used when there are devices that are not able
278 * to do DMA to all of addressable memory (ZONE_NORMAL). Then we
279 * carve out the portion of memory that is needed for these devices.
280 * The range is arch specific.
281 *
282 * Some examples
283 *
284 * Architecture Limit
285 * ---------------------------
286 * parisc, ia64, sparc <4G
287 * s390 <2G
2f1b6248
CL
288 * arm Various
289 * alpha Unlimited or 0-16MB.
290 *
291 * i386, x86_64 and multiple other arches
292 * <16M.
293 */
294 ZONE_DMA,
4b51d669 295#endif
fb0e7942 296#ifdef CONFIG_ZONE_DMA32
2f1b6248
CL
297 /*
298 * x86_64 needs two ZONE_DMAs because it supports devices that are
299 * only able to do DMA to the lower 16M but also 32 bit devices that
300 * can only do DMA areas below 4G.
301 */
302 ZONE_DMA32,
fb0e7942 303#endif
2f1b6248
CL
304 /*
305 * Normal addressable memory is in ZONE_NORMAL. DMA operations can be
306 * performed on pages in ZONE_NORMAL if the DMA devices support
307 * transfers to all addressable memory.
308 */
309 ZONE_NORMAL,
e53ef38d 310#ifdef CONFIG_HIGHMEM
2f1b6248
CL
311 /*
312 * A memory area that is only addressable by the kernel through
313 * mapping portions into its own address space. This is for example
314 * used by i386 to allow the kernel to address the memory beyond
315 * 900MB. The kernel will set up special mappings (page
316 * table entries on i386) for each page that the kernel needs to
317 * access.
318 */
319 ZONE_HIGHMEM,
e53ef38d 320#endif
2a1e274a 321 ZONE_MOVABLE,
97965478 322 __MAX_NR_ZONES
2f1b6248 323};
1da177e4 324
97965478
CL
325#ifndef __GENERATING_BOUNDS_H
326
1da177e4 327struct zone {
3484b2de 328 /* Read-mostly fields */
41858966
MG
329
330 /* zone watermarks, access with *_wmark_pages(zone) macros */
331 unsigned long watermark[NR_WMARK];
332
1da177e4
LT
333 /*
334 * We don't know if the memory that we're going to allocate will be freeable
335 * or/and it will be released eventually, so to avoid totally wasting several
336 * GB of ram we must reserve some of the lower zone memory (otherwise we risk
337 * to run OOM on the lower zones despite there's tons of freeable ram
338 * on the higher zones). This array is recalculated at runtime if the
339 * sysctl_lowmem_reserve_ratio sysctl changes.
340 */
3484b2de 341 long lowmem_reserve[MAX_NR_ZONES];
ab8fabd4 342
e7c8d5c9 343#ifdef CONFIG_NUMA
d5f541ed 344 int node;
3484b2de
MG
345#endif
346
9614634f 347 /*
3484b2de
MG
348 * The target ratio of ACTIVE_ANON to INACTIVE_ANON pages on
349 * this zone's LRU. Maintained by the pageout code.
9614634f 350 */
3484b2de
MG
351 unsigned int inactive_ratio;
352
353 struct pglist_data *zone_pgdat;
43cf38eb 354 struct per_cpu_pageset __percpu *pageset;
3484b2de 355
1da177e4 356 /*
3484b2de
MG
357 * This is a per-zone reserve of pages that should not be
358 * considered dirtyable memory.
1da177e4 359 */
3484b2de 360 unsigned long dirty_balance_reserve;
1da177e4 361
835c134e
MG
362#ifndef CONFIG_SPARSEMEM
363 /*
d9c23400 364 * Flags for a pageblock_nr_pages block. See pageblock-flags.h.
835c134e
MG
365 * In SPARSEMEM, this map is stored in struct mem_section
366 */
367 unsigned long *pageblock_flags;
368#endif /* CONFIG_SPARSEMEM */
369
3484b2de 370#ifdef CONFIG_NUMA
1da177e4 371 /*
3484b2de 372 * zone reclaim becomes active if more unmapped pages exist.
1da177e4 373 */
3484b2de
MG
374 unsigned long min_unmapped_pages;
375 unsigned long min_slab_pages;
376#endif /* CONFIG_NUMA */
1da177e4 377
1da177e4
LT
378 /* zone_start_pfn == zone_start_paddr >> PAGE_SHIFT */
379 unsigned long zone_start_pfn;
380
bdc8cb98 381 /*
9feedc9d
JL
382 * spanned_pages is the total pages spanned by the zone, including
383 * holes, which is calculated as:
384 * spanned_pages = zone_end_pfn - zone_start_pfn;
bdc8cb98 385 *
9feedc9d
JL
386 * present_pages is physical pages existing within the zone, which
387 * is calculated as:
8761e31c 388 * present_pages = spanned_pages - absent_pages(pages in holes);
9feedc9d
JL
389 *
390 * managed_pages is present pages managed by the buddy system, which
391 * is calculated as (reserved_pages includes pages allocated by the
392 * bootmem allocator):
393 * managed_pages = present_pages - reserved_pages;
394 *
395 * So present_pages may be used by memory hotplug or memory power
396 * management logic to figure out unmanaged pages by checking
397 * (present_pages - managed_pages). And managed_pages should be used
398 * by page allocator and vm scanner to calculate all kinds of watermarks
399 * and thresholds.
400 *
401 * Locking rules:
402 *
403 * zone_start_pfn and spanned_pages are protected by span_seqlock.
404 * It is a seqlock because it has to be read outside of zone->lock,
405 * and it is done in the main allocator path. But, it is written
406 * quite infrequently.
407 *
408 * The span_seq lock is declared along with zone->lock because it is
bdc8cb98
DH
409 * frequently read in proximity to zone->lock. It's good to
410 * give them a chance of being in the same cacheline.
9feedc9d 411 *
c3d5f5f0 412 * Write access to present_pages at runtime should be protected by
bfc8c901
VD
413 * mem_hotplug_begin/end(). Any reader who can't tolerant drift of
414 * present_pages should get_online_mems() to get a stable value.
c3d5f5f0
JL
415 *
416 * Read access to managed_pages should be safe because it's unsigned
417 * long. Write access to zone->managed_pages and totalram_pages are
418 * protected by managed_page_count_lock at runtime. Idealy only
419 * adjust_managed_page_count() should be used instead of directly
420 * touching zone->managed_pages and totalram_pages.
bdc8cb98 421 */
3484b2de 422 unsigned long managed_pages;
9feedc9d
JL
423 unsigned long spanned_pages;
424 unsigned long present_pages;
3484b2de
MG
425
426 const char *name;
1da177e4 427
943dca1a
YI
428 /*
429 * Number of MIGRATE_RESEVE page block. To maintain for just
430 * optimization. Protected by zone->lock.
431 */
432 int nr_migrate_reserve_block;
433
3484b2de
MG
434#ifdef CONFIG_MEMORY_HOTPLUG
435 /* see spanned/present_pages for more description */
436 seqlock_t span_seqlock;
437#endif
438
1da177e4 439 /*
3484b2de
MG
440 * wait_table -- the array holding the hash table
441 * wait_table_hash_nr_entries -- the size of the hash table array
442 * wait_table_bits -- wait_table_size == (1 << wait_table_bits)
443 *
444 * The purpose of all these is to keep track of the people
445 * waiting for a page to become available and make them
446 * runnable again when possible. The trouble is that this
447 * consumes a lot of space, especially when so few things
448 * wait on pages at a given time. So instead of using
449 * per-page waitqueues, we use a waitqueue hash table.
450 *
451 * The bucket discipline is to sleep on the same queue when
452 * colliding and wake all in that wait queue when removing.
453 * When something wakes, it must check to be sure its page is
454 * truly available, a la thundering herd. The cost of a
455 * collision is great, but given the expected load of the
456 * table, they should be so rare as to be outweighed by the
457 * benefits from the saved space.
458 *
459 * __wait_on_page_locked() and unlock_page() in mm/filemap.c, are the
460 * primary users of these fields, and in mm/page_alloc.c
461 * free_area_init_core() performs the initialization of them.
1da177e4 462 */
3484b2de
MG
463 wait_queue_head_t *wait_table;
464 unsigned long wait_table_hash_nr_entries;
465 unsigned long wait_table_bits;
466
467 ZONE_PADDING(_pad1_)
468
469 /* Write-intensive fields used from the page allocator */
470 spinlock_t lock;
471
472 /* free areas of different sizes */
473 struct free_area free_area[MAX_ORDER];
474
475 /* zone flags, see below */
476 unsigned long flags;
477
478 ZONE_PADDING(_pad2_)
479
480 /* Write-intensive fields used by page reclaim */
481
482 /* Fields commonly accessed by the page reclaim scanner */
483 spinlock_t lru_lock;
3484b2de
MG
484 struct lruvec lruvec;
485
486 /* Evictions & activations on the inactive file list */
487 atomic_long_t inactive_age;
488
489 /*
490 * When free pages are below this point, additional steps are taken
491 * when reading the number of free pages to avoid per-cpu counter
492 * drift allowing watermarks to be breached
493 */
494 unsigned long percpu_drift_mark;
495
496#if defined CONFIG_COMPACTION || defined CONFIG_CMA
497 /* pfn where compaction free scanner should start */
498 unsigned long compact_cached_free_pfn;
499 /* pfn where async and sync compaction migration scanner should start */
500 unsigned long compact_cached_migrate_pfn[2];
501#endif
502
503#ifdef CONFIG_COMPACTION
504 /*
505 * On compaction failure, 1<<compact_defer_shift compactions
506 * are skipped before trying again. The number attempted since
507 * last failure is tracked with compact_considered.
508 */
509 unsigned int compact_considered;
510 unsigned int compact_defer_shift;
511 int compact_order_failed;
512#endif
513
514#if defined CONFIG_COMPACTION || defined CONFIG_CMA
515 /* Set to true when the PG_migrate_skip bits should be cleared */
516 bool compact_blockskip_flush;
517#endif
518
519 ZONE_PADDING(_pad3_)
520 /* Zone statistics */
521 atomic_long_t vm_stat[NR_VM_ZONE_STAT_ITEMS];
22fc6ecc 522} ____cacheline_internodealigned_in_smp;
1da177e4 523
e815af95 524typedef enum {
e815af95 525 ZONE_RECLAIM_LOCKED, /* prevents concurrent reclaim */
098d7f12 526 ZONE_OOM_LOCKED, /* zone is in OOM killer zonelist */
0e093d99
MG
527 ZONE_CONGESTED, /* zone has many dirty pages backed by
528 * a congested BDI
529 */
d43006d5
MG
530 ZONE_TAIL_LRU_DIRTY, /* reclaim scanning has recently found
531 * many dirty file pages at the tail
532 * of the LRU.
533 */
283aba9f
MG
534 ZONE_WRITEBACK, /* reclaim scanning has recently found
535 * many pages under writeback
536 */
e815af95
DR
537} zone_flags_t;
538
539static inline void zone_set_flag(struct zone *zone, zone_flags_t flag)
540{
541 set_bit(flag, &zone->flags);
542}
d773ed6b
DR
543
544static inline int zone_test_and_set_flag(struct zone *zone, zone_flags_t flag)
545{
546 return test_and_set_bit(flag, &zone->flags);
547}
548
e815af95
DR
549static inline void zone_clear_flag(struct zone *zone, zone_flags_t flag)
550{
551 clear_bit(flag, &zone->flags);
552}
553
0e093d99
MG
554static inline int zone_is_reclaim_congested(const struct zone *zone)
555{
556 return test_bit(ZONE_CONGESTED, &zone->flags);
557}
558
d43006d5
MG
559static inline int zone_is_reclaim_dirty(const struct zone *zone)
560{
561 return test_bit(ZONE_TAIL_LRU_DIRTY, &zone->flags);
562}
563
283aba9f
MG
564static inline int zone_is_reclaim_writeback(const struct zone *zone)
565{
566 return test_bit(ZONE_WRITEBACK, &zone->flags);
567}
568
e815af95
DR
569static inline int zone_is_reclaim_locked(const struct zone *zone)
570{
571 return test_bit(ZONE_RECLAIM_LOCKED, &zone->flags);
572}
d773ed6b 573
098d7f12
DR
574static inline int zone_is_oom_locked(const struct zone *zone)
575{
576 return test_bit(ZONE_OOM_LOCKED, &zone->flags);
577}
e815af95 578
f9228b20 579static inline unsigned long zone_end_pfn(const struct zone *zone)
108bcc96
CS
580{
581 return zone->zone_start_pfn + zone->spanned_pages;
582}
583
584static inline bool zone_spans_pfn(const struct zone *zone, unsigned long pfn)
585{
586 return zone->zone_start_pfn <= pfn && pfn < zone_end_pfn(zone);
587}
588
2a6e3ebe
CS
589static inline bool zone_is_initialized(struct zone *zone)
590{
591 return !!zone->wait_table;
592}
593
594static inline bool zone_is_empty(struct zone *zone)
595{
596 return zone->spanned_pages == 0;
597}
598
1da177e4
LT
599/*
600 * The "priority" of VM scanning is how much of the queues we will scan in one
601 * go. A value of 12 for DEF_PRIORITY implies that we will scan 1/4096th of the
602 * queues ("queue_length >> 12") during an aging round.
603 */
604#define DEF_PRIORITY 12
605
9276b1bc
PJ
606/* Maximum number of zones on a zonelist */
607#define MAX_ZONES_PER_ZONELIST (MAX_NUMNODES * MAX_NR_ZONES)
608
609#ifdef CONFIG_NUMA
523b9458
CL
610
611/*
25a64ec1 612 * The NUMA zonelists are doubled because we need zonelists that restrict the
e97ca8e5 613 * allocations to a single node for __GFP_THISNODE.
523b9458 614 *
54a6eb5c 615 * [0] : Zonelist with fallback
e97ca8e5 616 * [1] : No fallback (__GFP_THISNODE)
523b9458 617 */
54a6eb5c 618#define MAX_ZONELISTS 2
523b9458
CL
619
620
9276b1bc
PJ
621/*
622 * We cache key information from each zonelist for smaller cache
623 * footprint when scanning for free pages in get_page_from_freelist().
624 *
625 * 1) The BITMAP fullzones tracks which zones in a zonelist have come
626 * up short of free memory since the last time (last_fullzone_zap)
627 * we zero'd fullzones.
628 * 2) The array z_to_n[] maps each zone in the zonelist to its node
629 * id, so that we can efficiently evaluate whether that node is
630 * set in the current tasks mems_allowed.
631 *
632 * Both fullzones and z_to_n[] are one-to-one with the zonelist,
633 * indexed by a zones offset in the zonelist zones[] array.
634 *
635 * The get_page_from_freelist() routine does two scans. During the
636 * first scan, we skip zones whose corresponding bit in 'fullzones'
637 * is set or whose corresponding node in current->mems_allowed (which
638 * comes from cpusets) is not set. During the second scan, we bypass
639 * this zonelist_cache, to ensure we look methodically at each zone.
640 *
641 * Once per second, we zero out (zap) fullzones, forcing us to
642 * reconsider nodes that might have regained more free memory.
643 * The field last_full_zap is the time we last zapped fullzones.
644 *
645 * This mechanism reduces the amount of time we waste repeatedly
646 * reexaming zones for free memory when they just came up low on
647 * memory momentarilly ago.
648 *
649 * The zonelist_cache struct members logically belong in struct
650 * zonelist. However, the mempolicy zonelists constructed for
651 * MPOL_BIND are intentionally variable length (and usually much
652 * shorter). A general purpose mechanism for handling structs with
653 * multiple variable length members is more mechanism than we want
654 * here. We resort to some special case hackery instead.
655 *
656 * The MPOL_BIND zonelists don't need this zonelist_cache (in good
657 * part because they are shorter), so we put the fixed length stuff
658 * at the front of the zonelist struct, ending in a variable length
659 * zones[], as is needed by MPOL_BIND.
660 *
661 * Then we put the optional zonelist cache on the end of the zonelist
662 * struct. This optional stuff is found by a 'zlcache_ptr' pointer in
663 * the fixed length portion at the front of the struct. This pointer
664 * both enables us to find the zonelist cache, and in the case of
665 * MPOL_BIND zonelists, (which will just set the zlcache_ptr to NULL)
666 * to know that the zonelist cache is not there.
667 *
668 * The end result is that struct zonelists come in two flavors:
669 * 1) The full, fixed length version, shown below, and
670 * 2) The custom zonelists for MPOL_BIND.
671 * The custom MPOL_BIND zonelists have a NULL zlcache_ptr and no zlcache.
672 *
673 * Even though there may be multiple CPU cores on a node modifying
674 * fullzones or last_full_zap in the same zonelist_cache at the same
675 * time, we don't lock it. This is just hint data - if it is wrong now
676 * and then, the allocator will still function, perhaps a bit slower.
677 */
678
679
680struct zonelist_cache {
9276b1bc 681 unsigned short z_to_n[MAX_ZONES_PER_ZONELIST]; /* zone->nid */
7253f4ef 682 DECLARE_BITMAP(fullzones, MAX_ZONES_PER_ZONELIST); /* zone full? */
9276b1bc
PJ
683 unsigned long last_full_zap; /* when last zap'd (jiffies) */
684};
685#else
54a6eb5c 686#define MAX_ZONELISTS 1
9276b1bc
PJ
687struct zonelist_cache;
688#endif
689
dd1a239f
MG
690/*
691 * This struct contains information about a zone in a zonelist. It is stored
692 * here to avoid dereferences into large structures and lookups of tables
693 */
694struct zoneref {
695 struct zone *zone; /* Pointer to actual zone */
696 int zone_idx; /* zone_idx(zoneref->zone) */
697};
698
1da177e4
LT
699/*
700 * One allocation request operates on a zonelist. A zonelist
701 * is a list of zones, the first one is the 'goal' of the
702 * allocation, the other zones are fallback zones, in decreasing
703 * priority.
704 *
9276b1bc
PJ
705 * If zlcache_ptr is not NULL, then it is just the address of zlcache,
706 * as explained above. If zlcache_ptr is NULL, there is no zlcache.
dd1a239f
MG
707 * *
708 * To speed the reading of the zonelist, the zonerefs contain the zone index
709 * of the entry being read. Helper functions to access information given
710 * a struct zoneref are
711 *
712 * zonelist_zone() - Return the struct zone * for an entry in _zonerefs
713 * zonelist_zone_idx() - Return the index of the zone for an entry
714 * zonelist_node_idx() - Return the index of the node for an entry
1da177e4
LT
715 */
716struct zonelist {
9276b1bc 717 struct zonelist_cache *zlcache_ptr; // NULL or &zlcache
dd1a239f 718 struct zoneref _zonerefs[MAX_ZONES_PER_ZONELIST + 1];
9276b1bc
PJ
719#ifdef CONFIG_NUMA
720 struct zonelist_cache zlcache; // optional ...
721#endif
1da177e4
LT
722};
723
0ee332c1 724#ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP
c713216d
MG
725struct node_active_region {
726 unsigned long start_pfn;
727 unsigned long end_pfn;
728 int nid;
729};
0ee332c1 730#endif /* CONFIG_HAVE_MEMBLOCK_NODE_MAP */
1da177e4 731
5b99cd0e
HC
732#ifndef CONFIG_DISCONTIGMEM
733/* The array of struct pages - for discontigmem use pgdat->lmem_map */
734extern struct page *mem_map;
735#endif
736
1da177e4
LT
737/*
738 * The pg_data_t structure is used in machines with CONFIG_DISCONTIGMEM
739 * (mostly NUMA machines?) to denote a higher-level memory zone than the
740 * zone denotes.
741 *
742 * On NUMA machines, each NUMA node would have a pg_data_t to describe
743 * it's memory layout.
744 *
745 * Memory statistics and page replacement data structures are maintained on a
746 * per-zone basis.
747 */
748struct bootmem_data;
749typedef struct pglist_data {
750 struct zone node_zones[MAX_NR_ZONES];
523b9458 751 struct zonelist node_zonelists[MAX_ZONELISTS];
1da177e4 752 int nr_zones;
52d4b9ac 753#ifdef CONFIG_FLAT_NODE_MEM_MAP /* means !SPARSEMEM */
1da177e4 754 struct page *node_mem_map;
c255a458 755#ifdef CONFIG_MEMCG
52d4b9ac
KH
756 struct page_cgroup *node_page_cgroup;
757#endif
d41dee36 758#endif
08677214 759#ifndef CONFIG_NO_BOOTMEM
1da177e4 760 struct bootmem_data *bdata;
08677214 761#endif
208d54e5
DH
762#ifdef CONFIG_MEMORY_HOTPLUG
763 /*
764 * Must be held any time you expect node_start_pfn, node_present_pages
765 * or node_spanned_pages stay constant. Holding this will also
766 * guarantee that any pfn_valid() stays that way.
767 *
114d4b79
CS
768 * pgdat_resize_lock() and pgdat_resize_unlock() are provided to
769 * manipulate node_size_lock without checking for CONFIG_MEMORY_HOTPLUG.
770 *
72c3b51b 771 * Nests above zone->lock and zone->span_seqlock
208d54e5
DH
772 */
773 spinlock_t node_size_lock;
774#endif
1da177e4
LT
775 unsigned long node_start_pfn;
776 unsigned long node_present_pages; /* total number of physical pages */
777 unsigned long node_spanned_pages; /* total size of physical page
778 range, including holes */
779 int node_id;
1da177e4 780 wait_queue_head_t kswapd_wait;
5515061d 781 wait_queue_head_t pfmemalloc_wait;
bfc8c901
VD
782 struct task_struct *kswapd; /* Protected by
783 mem_hotplug_begin/end() */
1da177e4 784 int kswapd_max_order;
99504748 785 enum zone_type classzone_idx;
8177a420 786#ifdef CONFIG_NUMA_BALANCING
1c5e9c27 787 /* Lock serializing the migrate rate limiting window */
8177a420
AA
788 spinlock_t numabalancing_migrate_lock;
789
790 /* Rate limiting time interval */
791 unsigned long numabalancing_migrate_next_window;
792
793 /* Number of pages migrated during the rate limiting time interval */
794 unsigned long numabalancing_migrate_nr_pages;
795#endif
1da177e4
LT
796} pg_data_t;
797
798#define node_present_pages(nid) (NODE_DATA(nid)->node_present_pages)
799#define node_spanned_pages(nid) (NODE_DATA(nid)->node_spanned_pages)
d41dee36 800#ifdef CONFIG_FLAT_NODE_MEM_MAP
408fde81 801#define pgdat_page_nr(pgdat, pagenr) ((pgdat)->node_mem_map + (pagenr))
d41dee36
AW
802#else
803#define pgdat_page_nr(pgdat, pagenr) pfn_to_page((pgdat)->node_start_pfn + (pagenr))
804#endif
408fde81 805#define nid_page_nr(nid, pagenr) pgdat_page_nr(NODE_DATA(nid),(pagenr))
1da177e4 806
c6830c22 807#define node_start_pfn(nid) (NODE_DATA(nid)->node_start_pfn)
da3649e1 808#define node_end_pfn(nid) pgdat_end_pfn(NODE_DATA(nid))
c6830c22 809
da3649e1
CS
810static inline unsigned long pgdat_end_pfn(pg_data_t *pgdat)
811{
812 return pgdat->node_start_pfn + pgdat->node_spanned_pages;
813}
814
815static inline bool pgdat_is_empty(pg_data_t *pgdat)
816{
817 return !pgdat->node_start_pfn && !pgdat->node_spanned_pages;
818}
c6830c22 819
208d54e5
DH
820#include <linux/memory_hotplug.h>
821
4eaf3f64 822extern struct mutex zonelists_mutex;
9adb62a5 823void build_all_zonelists(pg_data_t *pgdat, struct zone *zone);
99504748 824void wakeup_kswapd(struct zone *zone, int order, enum zone_type classzone_idx);
7aeb09f9
MG
825bool zone_watermark_ok(struct zone *z, unsigned int order,
826 unsigned long mark, int classzone_idx, int alloc_flags);
827bool zone_watermark_ok_safe(struct zone *z, unsigned int order,
828 unsigned long mark, int classzone_idx, int alloc_flags);
a2f3aa02
DH
829enum memmap_context {
830 MEMMAP_EARLY,
831 MEMMAP_HOTPLUG,
832};
718127cc 833extern int init_currently_empty_zone(struct zone *zone, unsigned long start_pfn,
a2f3aa02
DH
834 unsigned long size,
835 enum memmap_context context);
718127cc 836
bea8c150 837extern void lruvec_init(struct lruvec *lruvec);
7f5e86c2
KK
838
839static inline struct zone *lruvec_zone(struct lruvec *lruvec)
840{
c255a458 841#ifdef CONFIG_MEMCG
7f5e86c2
KK
842 return lruvec->zone;
843#else
844 return container_of(lruvec, struct zone, lruvec);
845#endif
846}
847
1da177e4
LT
848#ifdef CONFIG_HAVE_MEMORY_PRESENT
849void memory_present(int nid, unsigned long start, unsigned long end);
850#else
851static inline void memory_present(int nid, unsigned long start, unsigned long end) {}
852#endif
853
7aac7898
LS
854#ifdef CONFIG_HAVE_MEMORYLESS_NODES
855int local_memory_node(int node_id);
856#else
857static inline int local_memory_node(int node_id) { return node_id; };
858#endif
859
1da177e4
LT
860#ifdef CONFIG_NEED_NODE_MEMMAP_SIZE
861unsigned long __init node_memmap_size_bytes(int, unsigned long, unsigned long);
862#endif
863
864/*
865 * zone_idx() returns 0 for the ZONE_DMA zone, 1 for the ZONE_NORMAL zone, etc.
866 */
867#define zone_idx(zone) ((zone) - (zone)->zone_pgdat->node_zones)
868
f3fe6512
CK
869static inline int populated_zone(struct zone *zone)
870{
871 return (!!zone->present_pages);
872}
873
2a1e274a
MG
874extern int movable_zone;
875
876static inline int zone_movable_is_highmem(void)
877{
fe03025d 878#if defined(CONFIG_HIGHMEM) && defined(CONFIG_HAVE_MEMBLOCK_NODE_MAP)
2a1e274a 879 return movable_zone == ZONE_HIGHMEM;
1a4dc5bc
WN
880#elif defined(CONFIG_HIGHMEM)
881 return (ZONE_MOVABLE - 1) == ZONE_HIGHMEM;
2a1e274a
MG
882#else
883 return 0;
884#endif
885}
886
2f1b6248 887static inline int is_highmem_idx(enum zone_type idx)
1da177e4 888{
e53ef38d 889#ifdef CONFIG_HIGHMEM
2a1e274a
MG
890 return (idx == ZONE_HIGHMEM ||
891 (idx == ZONE_MOVABLE && zone_movable_is_highmem()));
e53ef38d
CL
892#else
893 return 0;
894#endif
1da177e4
LT
895}
896
1da177e4
LT
897/**
898 * is_highmem - helper function to quickly check if a struct zone is a
899 * highmem zone or not. This is an attempt to keep references
900 * to ZONE_{DMA/NORMAL/HIGHMEM/etc} in general code to a minimum.
901 * @zone - pointer to struct zone variable
902 */
903static inline int is_highmem(struct zone *zone)
904{
e53ef38d 905#ifdef CONFIG_HIGHMEM
ddc81ed2
HH
906 int zone_off = (char *)zone - (char *)zone->zone_pgdat->node_zones;
907 return zone_off == ZONE_HIGHMEM * sizeof(*zone) ||
908 (zone_off == ZONE_MOVABLE * sizeof(*zone) &&
909 zone_movable_is_highmem());
e53ef38d
CL
910#else
911 return 0;
912#endif
1da177e4
LT
913}
914
1da177e4
LT
915/* These two functions are used to setup the per zone pages min values */
916struct ctl_table;
8d65af78 917int min_free_kbytes_sysctl_handler(struct ctl_table *, int,
1da177e4
LT
918 void __user *, size_t *, loff_t *);
919extern int sysctl_lowmem_reserve_ratio[MAX_NR_ZONES-1];
8d65af78 920int lowmem_reserve_ratio_sysctl_handler(struct ctl_table *, int,
1da177e4 921 void __user *, size_t *, loff_t *);
8d65af78 922int percpu_pagelist_fraction_sysctl_handler(struct ctl_table *, int,
8ad4b1fb 923 void __user *, size_t *, loff_t *);
9614634f 924int sysctl_min_unmapped_ratio_sysctl_handler(struct ctl_table *, int,
8d65af78 925 void __user *, size_t *, loff_t *);
0ff38490 926int sysctl_min_slab_ratio_sysctl_handler(struct ctl_table *, int,
8d65af78 927 void __user *, size_t *, loff_t *);
1da177e4 928
f0c0b2b8 929extern int numa_zonelist_order_handler(struct ctl_table *, int,
8d65af78 930 void __user *, size_t *, loff_t *);
f0c0b2b8
KH
931extern char numa_zonelist_order[];
932#define NUMA_ZONELIST_ORDER_LEN 16 /* string buffer size */
933
93b7504e 934#ifndef CONFIG_NEED_MULTIPLE_NODES
1da177e4
LT
935
936extern struct pglist_data contig_page_data;
937#define NODE_DATA(nid) (&contig_page_data)
938#define NODE_MEM_MAP(nid) mem_map
1da177e4 939
93b7504e 940#else /* CONFIG_NEED_MULTIPLE_NODES */
1da177e4
LT
941
942#include <asm/mmzone.h>
943
93b7504e 944#endif /* !CONFIG_NEED_MULTIPLE_NODES */
348f8b6c 945
95144c78
KH
946extern struct pglist_data *first_online_pgdat(void);
947extern struct pglist_data *next_online_pgdat(struct pglist_data *pgdat);
948extern struct zone *next_zone(struct zone *zone);
8357f869
KH
949
950/**
12d15f0d 951 * for_each_online_pgdat - helper macro to iterate over all online nodes
8357f869
KH
952 * @pgdat - pointer to a pg_data_t variable
953 */
954#define for_each_online_pgdat(pgdat) \
955 for (pgdat = first_online_pgdat(); \
956 pgdat; \
957 pgdat = next_online_pgdat(pgdat))
8357f869
KH
958/**
959 * for_each_zone - helper macro to iterate over all memory zones
960 * @zone - pointer to struct zone variable
961 *
962 * The user only needs to declare the zone variable, for_each_zone
963 * fills it in.
964 */
965#define for_each_zone(zone) \
966 for (zone = (first_online_pgdat())->node_zones; \
967 zone; \
968 zone = next_zone(zone))
969
ee99c71c
KM
970#define for_each_populated_zone(zone) \
971 for (zone = (first_online_pgdat())->node_zones; \
972 zone; \
973 zone = next_zone(zone)) \
974 if (!populated_zone(zone)) \
975 ; /* do nothing */ \
976 else
977
dd1a239f
MG
978static inline struct zone *zonelist_zone(struct zoneref *zoneref)
979{
980 return zoneref->zone;
981}
982
983static inline int zonelist_zone_idx(struct zoneref *zoneref)
984{
985 return zoneref->zone_idx;
986}
987
988static inline int zonelist_node_idx(struct zoneref *zoneref)
989{
990#ifdef CONFIG_NUMA
991 /* zone_to_nid not available in this context */
992 return zoneref->zone->node;
993#else
994 return 0;
995#endif /* CONFIG_NUMA */
996}
997
19770b32
MG
998/**
999 * 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
1000 * @z - The cursor used as a starting point for the search
1001 * @highest_zoneidx - The zone index of the highest zone to return
1002 * @nodes - An optional nodemask to filter the zonelist with
1003 * @zone - The first suitable zone found is returned via this parameter
1004 *
1005 * This function returns the next zone at or below a given zone index that is
1006 * within the allowed nodemask using a cursor as the starting point for the
5bead2a0
MG
1007 * search. The zoneref returned is a cursor that represents the current zone
1008 * being examined. It should be advanced by one before calling
1009 * next_zones_zonelist again.
19770b32
MG
1010 */
1011struct zoneref *next_zones_zonelist(struct zoneref *z,
1012 enum zone_type highest_zoneidx,
1013 nodemask_t *nodes,
1014 struct zone **zone);
dd1a239f 1015
19770b32
MG
1016/**
1017 * first_zones_zonelist - Returns the first zone at or below highest_zoneidx within the allowed nodemask in a zonelist
1018 * @zonelist - The zonelist to search for a suitable zone
1019 * @highest_zoneidx - The zone index of the highest zone to return
1020 * @nodes - An optional nodemask to filter the zonelist with
1021 * @zone - The first suitable zone found is returned via this parameter
1022 *
1023 * This function returns the first zone at or below a given zone index that is
1024 * within the allowed nodemask. The zoneref returned is a cursor that can be
5bead2a0
MG
1025 * used to iterate the zonelist with next_zones_zonelist by advancing it by
1026 * one before calling.
19770b32 1027 */
dd1a239f 1028static inline struct zoneref *first_zones_zonelist(struct zonelist *zonelist,
19770b32
MG
1029 enum zone_type highest_zoneidx,
1030 nodemask_t *nodes,
1031 struct zone **zone)
54a6eb5c 1032{
19770b32
MG
1033 return next_zones_zonelist(zonelist->_zonerefs, highest_zoneidx, nodes,
1034 zone);
54a6eb5c
MG
1035}
1036
19770b32
MG
1037/**
1038 * 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
1039 * @zone - The current zone in the iterator
1040 * @z - The current pointer within zonelist->zones being iterated
1041 * @zlist - The zonelist being iterated
1042 * @highidx - The zone index of the highest zone to return
1043 * @nodemask - Nodemask allowed by the allocator
1044 *
1045 * This iterator iterates though all zones at or below a given zone index and
1046 * within a given nodemask
1047 */
1048#define for_each_zone_zonelist_nodemask(zone, z, zlist, highidx, nodemask) \
1049 for (z = first_zones_zonelist(zlist, highidx, nodemask, &zone); \
1050 zone; \
5bead2a0 1051 z = next_zones_zonelist(++z, highidx, nodemask, &zone)) \
54a6eb5c
MG
1052
1053/**
1054 * for_each_zone_zonelist - helper macro to iterate over valid zones in a zonelist at or below a given zone index
1055 * @zone - The current zone in the iterator
1056 * @z - The current pointer within zonelist->zones being iterated
1057 * @zlist - The zonelist being iterated
1058 * @highidx - The zone index of the highest zone to return
1059 *
1060 * This iterator iterates though all zones at or below a given zone index.
1061 */
1062#define for_each_zone_zonelist(zone, z, zlist, highidx) \
19770b32 1063 for_each_zone_zonelist_nodemask(zone, z, zlist, highidx, NULL)
54a6eb5c 1064
d41dee36
AW
1065#ifdef CONFIG_SPARSEMEM
1066#include <asm/sparsemem.h>
1067#endif
1068
c713216d 1069#if !defined(CONFIG_HAVE_ARCH_EARLY_PFN_TO_NID) && \
0ee332c1 1070 !defined(CONFIG_HAVE_MEMBLOCK_NODE_MAP)
b4544568
AM
1071static inline unsigned long early_pfn_to_nid(unsigned long pfn)
1072{
1073 return 0;
1074}
b159d43f
AW
1075#endif
1076
2bdaf115
AW
1077#ifdef CONFIG_FLATMEM
1078#define pfn_to_nid(pfn) (0)
1079#endif
1080
d41dee36
AW
1081#ifdef CONFIG_SPARSEMEM
1082
1083/*
1084 * SECTION_SHIFT #bits space required to store a section #
1085 *
1086 * PA_SECTION_SHIFT physical address to/from section number
1087 * PFN_SECTION_SHIFT pfn to/from section number
1088 */
d41dee36
AW
1089#define PA_SECTION_SHIFT (SECTION_SIZE_BITS)
1090#define PFN_SECTION_SHIFT (SECTION_SIZE_BITS - PAGE_SHIFT)
1091
1092#define NR_MEM_SECTIONS (1UL << SECTIONS_SHIFT)
1093
1094#define PAGES_PER_SECTION (1UL << PFN_SECTION_SHIFT)
1095#define PAGE_SECTION_MASK (~(PAGES_PER_SECTION-1))
1096
835c134e 1097#define SECTION_BLOCKFLAGS_BITS \
d9c23400 1098 ((1UL << (PFN_SECTION_SHIFT - pageblock_order)) * NR_PAGEBLOCK_BITS)
835c134e 1099
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1100#if (MAX_ORDER - 1 + PAGE_SHIFT) > SECTION_SIZE_BITS
1101#error Allocator MAX_ORDER exceeds SECTION_SIZE
1102#endif
1103
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1104#define pfn_to_section_nr(pfn) ((pfn) >> PFN_SECTION_SHIFT)
1105#define section_nr_to_pfn(sec) ((sec) << PFN_SECTION_SHIFT)
1106
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1107#define SECTION_ALIGN_UP(pfn) (((pfn) + PAGES_PER_SECTION - 1) & PAGE_SECTION_MASK)
1108#define SECTION_ALIGN_DOWN(pfn) ((pfn) & PAGE_SECTION_MASK)
1109
d41dee36 1110struct page;
52d4b9ac 1111struct page_cgroup;
d41dee36 1112struct mem_section {
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1113 /*
1114 * This is, logically, a pointer to an array of struct
1115 * pages. However, it is stored with some other magic.
1116 * (see sparse.c::sparse_init_one_section())
1117 *
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1118 * Additionally during early boot we encode node id of
1119 * the location of the section here to guide allocation.
1120 * (see sparse.c::memory_present())
1121 *
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1122 * Making it a UL at least makes someone do a cast
1123 * before using it wrong.
1124 */
1125 unsigned long section_mem_map;
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1126
1127 /* See declaration of similar field in struct zone */
1128 unsigned long *pageblock_flags;
c255a458 1129#ifdef CONFIG_MEMCG
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1130 /*
1131 * If !SPARSEMEM, pgdat doesn't have page_cgroup pointer. We use
1132 * section. (see memcontrol.h/page_cgroup.h about this.)
1133 */
1134 struct page_cgroup *page_cgroup;
1135 unsigned long pad;
1136#endif
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1137 /*
1138 * WARNING: mem_section must be a power-of-2 in size for the
1139 * calculation and use of SECTION_ROOT_MASK to make sense.
1140 */
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1141};
1142
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1143#ifdef CONFIG_SPARSEMEM_EXTREME
1144#define SECTIONS_PER_ROOT (PAGE_SIZE / sizeof (struct mem_section))
1145#else
1146#define SECTIONS_PER_ROOT 1
1147#endif
802f192e 1148
3e347261 1149#define SECTION_NR_TO_ROOT(sec) ((sec) / SECTIONS_PER_ROOT)
0faa5638 1150#define NR_SECTION_ROOTS DIV_ROUND_UP(NR_MEM_SECTIONS, SECTIONS_PER_ROOT)
3e347261 1151#define SECTION_ROOT_MASK (SECTIONS_PER_ROOT - 1)
802f192e 1152
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1153#ifdef CONFIG_SPARSEMEM_EXTREME
1154extern struct mem_section *mem_section[NR_SECTION_ROOTS];
802f192e 1155#else
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1156extern struct mem_section mem_section[NR_SECTION_ROOTS][SECTIONS_PER_ROOT];
1157#endif
d41dee36 1158
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1159static inline struct mem_section *__nr_to_section(unsigned long nr)
1160{
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1161 if (!mem_section[SECTION_NR_TO_ROOT(nr)])
1162 return NULL;
1163 return &mem_section[SECTION_NR_TO_ROOT(nr)][nr & SECTION_ROOT_MASK];
29751f69 1164}
4ca644d9 1165extern int __section_nr(struct mem_section* ms);
04753278 1166extern unsigned long usemap_size(void);
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1167
1168/*
1169 * We use the lower bits of the mem_map pointer to store
1170 * a little bit of information. There should be at least
1171 * 3 bits here due to 32-bit alignment.
1172 */
1173#define SECTION_MARKED_PRESENT (1UL<<0)
1174#define SECTION_HAS_MEM_MAP (1UL<<1)
1175#define SECTION_MAP_LAST_BIT (1UL<<2)
1176#define SECTION_MAP_MASK (~(SECTION_MAP_LAST_BIT-1))
30c253e6 1177#define SECTION_NID_SHIFT 2
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1178
1179static inline struct page *__section_mem_map_addr(struct mem_section *section)
1180{
1181 unsigned long map = section->section_mem_map;
1182 map &= SECTION_MAP_MASK;
1183 return (struct page *)map;
1184}
1185
540557b9 1186static inline int present_section(struct mem_section *section)
29751f69 1187{
802f192e 1188 return (section && (section->section_mem_map & SECTION_MARKED_PRESENT));
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1189}
1190
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1191static inline int present_section_nr(unsigned long nr)
1192{
1193 return present_section(__nr_to_section(nr));
1194}
1195
1196static inline int valid_section(struct mem_section *section)
29751f69 1197{
802f192e 1198 return (section && (section->section_mem_map & SECTION_HAS_MEM_MAP));
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1199}
1200
1201static inline int valid_section_nr(unsigned long nr)
1202{
1203 return valid_section(__nr_to_section(nr));
1204}
1205
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1206static inline struct mem_section *__pfn_to_section(unsigned long pfn)
1207{
29751f69 1208 return __nr_to_section(pfn_to_section_nr(pfn));
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1209}
1210
7b7bf499 1211#ifndef CONFIG_HAVE_ARCH_PFN_VALID
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1212static inline int pfn_valid(unsigned long pfn)
1213{
1214 if (pfn_to_section_nr(pfn) >= NR_MEM_SECTIONS)
1215 return 0;
29751f69 1216 return valid_section(__nr_to_section(pfn_to_section_nr(pfn)));
d41dee36 1217}
7b7bf499 1218#endif
d41dee36 1219
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1220static inline int pfn_present(unsigned long pfn)
1221{
1222 if (pfn_to_section_nr(pfn) >= NR_MEM_SECTIONS)
1223 return 0;
1224 return present_section(__nr_to_section(pfn_to_section_nr(pfn)));
1225}
1226
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1227/*
1228 * These are _only_ used during initialisation, therefore they
1229 * can use __initdata ... They could have names to indicate
1230 * this restriction.
1231 */
1232#ifdef CONFIG_NUMA
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1233#define pfn_to_nid(pfn) \
1234({ \
1235 unsigned long __pfn_to_nid_pfn = (pfn); \
1236 page_to_nid(pfn_to_page(__pfn_to_nid_pfn)); \
1237})
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1238#else
1239#define pfn_to_nid(pfn) (0)
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1240#endif
1241
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1242#define early_pfn_valid(pfn) pfn_valid(pfn)
1243void sparse_init(void);
1244#else
1245#define sparse_init() do {} while (0)
28ae55c9 1246#define sparse_index_init(_sec, _nid) do {} while (0)
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1247#endif /* CONFIG_SPARSEMEM */
1248
75167957 1249#ifdef CONFIG_NODES_SPAN_OTHER_NODES
cc2559bc 1250bool early_pfn_in_nid(unsigned long pfn, int nid);
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1251#else
1252#define early_pfn_in_nid(pfn, nid) (1)
1253#endif
1254
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1255#ifndef early_pfn_valid
1256#define early_pfn_valid(pfn) (1)
1257#endif
1258
1259void memory_present(int nid, unsigned long start, unsigned long end);
1260unsigned long __init node_memmap_size_bytes(int, unsigned long, unsigned long);
1261
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1262/*
1263 * If it is possible to have holes within a MAX_ORDER_NR_PAGES, then we
1264 * need to check pfn validility within that MAX_ORDER_NR_PAGES block.
1265 * pfn_valid_within() should be used in this case; we optimise this away
1266 * when we have no holes within a MAX_ORDER_NR_PAGES block.
1267 */
1268#ifdef CONFIG_HOLES_IN_ZONE
1269#define pfn_valid_within(pfn) pfn_valid(pfn)
1270#else
1271#define pfn_valid_within(pfn) (1)
1272#endif
1273
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1274#ifdef CONFIG_ARCH_HAS_HOLES_MEMORYMODEL
1275/*
1276 * pfn_valid() is meant to be able to tell if a given PFN has valid memmap
1277 * associated with it or not. In FLATMEM, it is expected that holes always
1278 * have valid memmap as long as there is valid PFNs either side of the hole.
1279 * In SPARSEMEM, it is assumed that a valid section has a memmap for the
1280 * entire section.
1281 *
1282 * However, an ARM, and maybe other embedded architectures in the future
1283 * free memmap backing holes to save memory on the assumption the memmap is
1284 * never used. The page_zone linkages are then broken even though pfn_valid()
1285 * returns true. A walker of the full memmap must then do this additional
1286 * check to ensure the memmap they are looking at is sane by making sure
1287 * the zone and PFN linkages are still valid. This is expensive, but walkers
1288 * of the full memmap are extremely rare.
1289 */
1290int memmap_valid_within(unsigned long pfn,
1291 struct page *page, struct zone *zone);
1292#else
1293static inline int memmap_valid_within(unsigned long pfn,
1294 struct page *page, struct zone *zone)
1295{
1296 return 1;
1297}
1298#endif /* CONFIG_ARCH_HAS_HOLES_MEMORYMODEL */
1299
97965478 1300#endif /* !__GENERATING_BOUNDS.H */
1da177e4 1301#endif /* !__ASSEMBLY__ */
1da177e4 1302#endif /* _LINUX_MMZONE_H */
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