1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 *
4 * Manages the free list, the system allocates free pages here.
5 * Note that kmalloc() lives in slab.c
6 *
7 * Copyright (C) 1991, 1992, 1993, 1994 Linus Torvalds
8 * Swap reorganised 29.12.95, Stephen Tweedie
9 * Support of BIGMEM added by Gerhard Wichert, Siemens AG, July 1999
10 * Reshaped it to be a zoned allocator, Ingo Molnar, Red Hat, 1999
11 * Discontiguous memory support, Kanoj Sarcar, SGI, Nov 1999
12 * Zone balancing, Kanoj Sarcar, SGI, Jan 2000
13 * Per cpu hot/cold page lists, bulk allocation, Martin J. Bligh, Sept 2002
14 * (lots of bits borrowed from Ingo Molnar & Andrew Morton)
15 */
16
17 #include <linux/stddef.h>
18 #include <linux/mm.h>
19 #include <linux/highmem.h>
20 #include <linux/interrupt.h>
21 #include <linux/jiffies.h>
22 #include <linux/compiler.h>
23 #include <linux/kernel.h>
24 #include <linux/kasan.h>
25 #include <linux/kmsan.h>
26 #include <linux/module.h>
27 #include <linux/suspend.h>
28 #include <linux/ratelimit.h>
29 #include <linux/oom.h>
30 #include <linux/topology.h>
31 #include <linux/sysctl.h>
32 #include <linux/cpu.h>
33 #include <linux/cpuset.h>
34 #include <linux/folio_batch.h>
35 #include <linux/memory_hotplug.h>
36 #include <linux/nodemask.h>
37 #include <linux/vmstat.h>
38 #include <linux/fault-inject.h>
39 #include <linux/compaction.h>
40 #include <trace/events/kmem.h>
41 #include <trace/events/oom.h>
42 #include <linux/prefetch.h>
43 #include <linux/mm_inline.h>
44 #include <linux/mmu_notifier.h>
45 #include <linux/migrate.h>
46 #include <linux/sched/mm.h>
47 #include <linux/page_owner.h>
48 #include <linux/page_table_check.h>
49 #include <linux/memcontrol.h>
50 #include <linux/ftrace.h>
51 #include <linux/lockdep.h>
52 #include <linux/psi.h>
53 #include <linux/khugepaged.h>
54 #include <linux/delayacct.h>
55 #include <linux/cacheinfo.h>
56 #include <linux/pgalloc_tag.h>
57 #include <asm/div64.h>
58 #include "internal.h"
59 #include "mm_init.h"
60 #include "page_alloc.h"
61 #include "shuffle.h"
62 #include "page_reporting.h"
63
64 /* Free Page Internal flags: for internal, non-pcp variants of free_pages(). */
65 typedef int __bitwise fpi_t;
66
67 /* No special request */
68 #define FPI_NONE ((__force fpi_t)0)
69
70 /*
71 * Skip free page reporting notification for the (possibly merged) page.
72 * This does not hinder free page reporting from grabbing the page,
73 * reporting it and marking it "reported" - it only skips notifying
74 * the free page reporting infrastructure about a newly freed page. For
75 * example, used when temporarily pulling a page from a freelist and
76 * putting it back unmodified.
77 */
78 #define FPI_SKIP_REPORT_NOTIFY ((__force fpi_t)BIT(0))
79
80 /*
81 * Place the (possibly merged) page to the tail of the freelist. Will ignore
82 * page shuffling (relevant code - e.g., memory onlining - is expected to
83 * shuffle the whole zone).
84 *
85 * Note: No code should rely on this flag for correctness - it's purely
86 * to allow for optimizations when handing back either fresh pages
87 * (memory onlining) or untouched pages (page isolation, free page
88 * reporting).
89 */
90 #define FPI_TO_TAIL ((__force fpi_t)BIT(1))
91
92 /* Free the page without taking locks. Rely on trylock only. */
93 #define FPI_NOLOCK ((__force fpi_t)BIT(2))
94
95 /* free_pages_prepare() has already been called for page(s) being freed. */
96 #define FPI_PREPARED ((__force fpi_t)BIT(3))
97
98 /* prevent >1 _updater_ of zone percpu pageset ->high and ->batch fields */
99 static DEFINE_MUTEX(pcp_batch_high_lock);
100 #define MIN_PERCPU_PAGELIST_HIGH_FRACTION (8)
101
102 /*
103 * Locking a pcp requires a PCP lookup followed by a spinlock. To avoid
104 * a migration causing the wrong PCP to be locked and remote memory being
105 * potentially allocated, pin the task to the CPU for the lookup+lock.
106 * preempt_disable is used on !RT because it is faster than migrate_disable.
107 * migrate_disable is used on RT because otherwise RT spinlock usage is
108 * interfered with and a high priority task cannot preempt the allocator.
109 */
110 #ifndef CONFIG_PREEMPT_RT
111 #define pcpu_task_pin() preempt_disable()
112 #define pcpu_task_unpin() preempt_enable()
113 #else
114 #define pcpu_task_pin() migrate_disable()
115 #define pcpu_task_unpin() migrate_enable()
116 #endif
117
118 /*
119 * A helper to lookup and trylock pcp with embedded spinlock.
120 * The return value should be used with the unlock helper.
121 * NULL return value means the trylock failed.
122 */
123 #ifdef CONFIG_SMP
124 #define pcp_spin_trylock(ptr) \
125 ({ \
126 struct per_cpu_pages *_ret; \
127 pcpu_task_pin(); \
128 _ret = this_cpu_ptr(ptr); \
129 if (!spin_trylock(&_ret->lock)) { \
130 pcpu_task_unpin(); \
131 _ret = NULL; \
132 } \
133 _ret; \
134 })
135
136 #define pcp_spin_unlock(ptr) \
137 ({ \
138 spin_unlock(&ptr->lock); \
139 pcpu_task_unpin(); \
140 })
141
142 /*
143 * On CONFIG_SMP=n the UP implementation of spin_trylock() never fails and thus
144 * is not compatible with our locking scheme. However we do not need pcp for
145 * scalability in the first place, so just make all the trylocks fail and take
146 * the slow path unconditionally.
147 */
148 #else
149 #define pcp_spin_trylock(ptr) \
150 NULL
151
152 #define pcp_spin_unlock(ptr) \
153 BUG_ON(1)
154 #endif
155
156 /*
157 * In some cases we do not need to pin the task to the CPU because we are
158 * already given a specific cpu's pcp pointer.
159 */
160 #define pcp_spin_lock_nopin(ptr) \
161 spin_lock(&(ptr)->lock)
162 #define pcp_spin_unlock_nopin(ptr) \
163 spin_unlock(&(ptr)->lock)
164
165 #ifdef CONFIG_USE_PERCPU_NUMA_NODE_ID
166 DEFINE_PER_CPU(int, numa_node);
167 EXPORT_PER_CPU_SYMBOL(numa_node);
168 #endif
169
170 #ifdef CONFIG_NUMA
171 DEFINE_STATIC_KEY_TRUE(vm_numa_stat_key);
172 #endif
173
174 #ifdef CONFIG_HAVE_MEMORYLESS_NODES
175 /*
176 * N.B., Do NOT reference the '_numa_mem_' per cpu variable directly.
177 * It will not be defined when CONFIG_HAVE_MEMORYLESS_NODES is not defined.
178 * Use the accessor functions set_numa_mem(), numa_mem_id() and cpu_to_mem()
179 * defined in <linux/topology.h>.
180 */
181 DEFINE_PER_CPU(int, _numa_mem_); /* Kernel "local memory" node */
182 EXPORT_PER_CPU_SYMBOL(_numa_mem_);
183 #endif
184
185 static DEFINE_MUTEX(pcpu_drain_mutex);
186
187 #ifdef CONFIG_GCC_PLUGIN_LATENT_ENTROPY
188 volatile unsigned long latent_entropy __latent_entropy;
189 EXPORT_SYMBOL(latent_entropy);
190 #endif
191
192 /*
193 * Array of node states.
194 */
195 nodemask_t node_states[NR_NODE_STATES] __read_mostly = {
196 [N_POSSIBLE] = NODE_MASK_ALL,
197 [N_ONLINE] = { { [0] = 1UL } },
198 #ifndef CONFIG_NUMA
199 [N_NORMAL_MEMORY] = { { [0] = 1UL } },
200 #ifdef CONFIG_HIGHMEM
201 [N_HIGH_MEMORY] = { { [0] = 1UL } },
202 #endif
203 [N_MEMORY] = { { [0] = 1UL } },
204 [N_CPU] = { { [0] = 1UL } },
205 #endif /* NUMA */
206 };
207 EXPORT_SYMBOL(node_states);
208
209 gfp_t gfp_allowed_mask __read_mostly = GFP_BOOT_MASK;
210
211 #ifdef CONFIG_HUGETLB_PAGE_SIZE_VARIABLE
212 unsigned int pageblock_order __read_mostly;
213 #endif
214
215 static void __free_pages_ok(struct page *page, unsigned int order,
216 fpi_t fpi_flags);
217 static void reserve_highatomic_pageblock(struct page *page, int order,
218 struct zone *zone);
219
220 /*
221 * results with 256, 32 in the lowmem_reserve sysctl:
222 * 1G machine -> (16M dma, 800M-16M normal, 1G-800M high)
223 * 1G machine -> (16M dma, 784M normal, 224M high)
224 * NORMAL allocation will leave 784M/256 of ram reserved in the ZONE_DMA
225 * HIGHMEM allocation will leave 224M/32 of ram reserved in ZONE_NORMAL
226 * HIGHMEM allocation will leave (224M+784M)/256 of ram reserved in ZONE_DMA
227 *
228 * TBD: should special case ZONE_DMA32 machines here - in those we normally
229 * don't need any ZONE_NORMAL reservation
230 */
231 static int sysctl_lowmem_reserve_ratio[MAX_NR_ZONES] = {
232 #ifdef CONFIG_ZONE_DMA
233 [ZONE_DMA] = 256,
234 #endif
235 #ifdef CONFIG_ZONE_DMA32
236 [ZONE_DMA32] = 256,
237 #endif
238 [ZONE_NORMAL] = 32,
239 #ifdef CONFIG_HIGHMEM
240 [ZONE_HIGHMEM] = 0,
241 #endif
242 [ZONE_MOVABLE] = 0,
243 };
244
245 char * const zone_names[MAX_NR_ZONES] = {
246 #ifdef CONFIG_ZONE_DMA
247 "DMA",
248 #endif
249 #ifdef CONFIG_ZONE_DMA32
250 "DMA32",
251 #endif
252 "Normal",
253 #ifdef CONFIG_HIGHMEM
254 "HighMem",
255 #endif
256 "Movable",
257 #ifdef CONFIG_ZONE_DEVICE
258 "Device",
259 #endif
260 };
261
262 const char * const migratetype_names[MIGRATE_TYPES] = {
263 "Unmovable",
264 "Movable",
265 "Reclaimable",
266 "HighAtomic",
267 #ifdef CONFIG_CMA
268 "CMA",
269 #endif
270 #ifdef CONFIG_MEMORY_ISOLATION
271 "Isolate",
272 #endif
273 };
274
275 int min_free_kbytes = 1024;
276 int user_min_free_kbytes = -1;
277 static int watermark_boost_factor __read_mostly = 15000;
278 static int watermark_scale_factor = 10;
279 int defrag_mode;
280
281 /* movable_zone is the "real" zone pages in ZONE_MOVABLE are taken from */
282 int movable_zone;
283 EXPORT_SYMBOL(movable_zone);
284
285 #if MAX_NUMNODES > 1
286 unsigned int nr_node_ids __read_mostly = MAX_NUMNODES;
287 unsigned int nr_online_nodes __read_mostly = 1;
288 EXPORT_SYMBOL(nr_node_ids);
289 EXPORT_SYMBOL(nr_online_nodes);
290 #endif
291
292 /*
293 * When page allocations stall for longer than a threshold,
294 * ALLOC_STALL_WARN_MSECS, leave a warning in the kernel log. Only one warning
295 * will be printed during this duration for the entire system.
296 */
297 #define ALLOC_STALL_WARN_MSECS (10 * 1000UL)
298 static unsigned long alloc_stall_warn_jiffies = INITIAL_JIFFIES;
299
300 static bool page_contains_unaccepted(struct page *page, unsigned int order);
301 static bool cond_accept_memory(struct zone *zone, unsigned int order,
302 int alloc_flags);
303 static bool __free_unaccepted(struct page *page);
304
305 int page_group_by_mobility_disabled __read_mostly;
306
307 #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
308 /*
309 * During boot we initialize deferred pages on-demand, as needed, but once
310 * page_alloc_init_late() has finished, the deferred pages are all initialized,
311 * and we can permanently disable that path.
312 */
313 DEFINE_STATIC_KEY_TRUE(deferred_pages);
314
315 /*
316 * deferred_grow_zone() is __init, but it is called from
317 * get_page_from_freelist() during early boot until deferred_pages permanently
318 * disables this call. This is why we have refdata wrapper to avoid warning,
319 * and to ensure that the function body gets unloaded.
320 */
321 static bool __ref
_deferred_grow_zone(struct zone * zone,unsigned int order)322 _deferred_grow_zone(struct zone *zone, unsigned int order)
323 {
324 return deferred_grow_zone(zone, order);
325 }
326 #else
_deferred_grow_zone(struct zone * zone,unsigned int order)327 static inline bool _deferred_grow_zone(struct zone *zone, unsigned int order)
328 {
329 return false;
330 }
331 #endif /* CONFIG_DEFERRED_STRUCT_PAGE_INIT */
332
333 /* Return a pointer to the bitmap storing bits affecting a block of pages */
get_pageblock_bitmap(const struct page * page,unsigned long pfn)334 static inline unsigned long *get_pageblock_bitmap(const struct page *page,
335 unsigned long pfn)
336 {
337 #ifdef CONFIG_SPARSEMEM
338 return section_to_usemap(__pfn_to_section(pfn));
339 #else
340 return page_zone(page)->pageblock_flags;
341 #endif /* CONFIG_SPARSEMEM */
342 }
343
pfn_to_bitidx(const struct page * page,unsigned long pfn)344 static inline int pfn_to_bitidx(const struct page *page, unsigned long pfn)
345 {
346 #ifdef CONFIG_SPARSEMEM
347 pfn &= (PAGES_PER_SECTION-1);
348 #else
349 pfn = pfn - pageblock_start_pfn(page_zone(page)->zone_start_pfn);
350 #endif /* CONFIG_SPARSEMEM */
351 return (pfn >> pageblock_order) * NR_PAGEBLOCK_BITS;
352 }
353
is_standalone_pb_bit(enum pageblock_bits pb_bit)354 static __always_inline bool is_standalone_pb_bit(enum pageblock_bits pb_bit)
355 {
356 return pb_bit >= PB_compact_skip && pb_bit < __NR_PAGEBLOCK_BITS;
357 }
358
359 static __always_inline void
get_pfnblock_bitmap_bitidx(const struct page * page,unsigned long pfn,unsigned long ** bitmap_word,unsigned long * bitidx)360 get_pfnblock_bitmap_bitidx(const struct page *page, unsigned long pfn,
361 unsigned long **bitmap_word, unsigned long *bitidx)
362 {
363 unsigned long *bitmap;
364 unsigned long word_bitidx;
365
366 #ifdef CONFIG_MEMORY_ISOLATION
367 BUILD_BUG_ON(NR_PAGEBLOCK_BITS != 8);
368 #else
369 BUILD_BUG_ON(NR_PAGEBLOCK_BITS != 4);
370 #endif
371 BUILD_BUG_ON(__MIGRATE_TYPE_END > PAGEBLOCK_MIGRATETYPE_MASK);
372 VM_BUG_ON_PAGE(!zone_spans_pfn(page_zone(page), pfn), page);
373
374 bitmap = get_pageblock_bitmap(page, pfn);
375 *bitidx = pfn_to_bitidx(page, pfn);
376 word_bitidx = *bitidx / BITS_PER_LONG;
377 *bitidx &= (BITS_PER_LONG - 1);
378 *bitmap_word = &bitmap[word_bitidx];
379 }
380
381
382 /**
383 * __get_pfnblock_flags_mask - Return the requested group of flags for
384 * a pageblock_nr_pages block of pages
385 * @page: The page within the block of interest
386 * @pfn: The target page frame number
387 * @mask: mask of bits that the caller is interested in
388 *
389 * Return: pageblock_bits flags
390 */
__get_pfnblock_flags_mask(const struct page * page,unsigned long pfn,unsigned long mask)391 static unsigned long __get_pfnblock_flags_mask(const struct page *page,
392 unsigned long pfn,
393 unsigned long mask)
394 {
395 unsigned long *bitmap_word;
396 unsigned long bitidx;
397 unsigned long word;
398
399 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx);
400 /*
401 * This races, without locks, with set_pfnblock_migratetype(). Ensure
402 * a consistent read of the memory array, so that results, even though
403 * racy, are not corrupted.
404 */
405 word = READ_ONCE(*bitmap_word);
406 return (word >> bitidx) & mask;
407 }
408
409 /**
410 * get_pfnblock_bit - Check if a standalone bit of a pageblock is set
411 * @page: The page within the block of interest
412 * @pfn: The target page frame number
413 * @pb_bit: pageblock bit to check
414 *
415 * Return: true if the bit is set, otherwise false
416 */
get_pfnblock_bit(const struct page * page,unsigned long pfn,enum pageblock_bits pb_bit)417 bool get_pfnblock_bit(const struct page *page, unsigned long pfn,
418 enum pageblock_bits pb_bit)
419 {
420 unsigned long *bitmap_word;
421 unsigned long bitidx;
422
423 if (WARN_ON_ONCE(!is_standalone_pb_bit(pb_bit)))
424 return false;
425
426 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx);
427
428 return test_bit(bitidx + pb_bit, bitmap_word);
429 }
430
431 /**
432 * get_pfnblock_migratetype - Return the migratetype of a pageblock
433 * @page: The page within the block of interest
434 * @pfn: The target page frame number
435 *
436 * Return: The migratetype of the pageblock
437 *
438 * Use get_pfnblock_migratetype() if caller already has both @page and @pfn
439 * to save a call to page_to_pfn().
440 */
441 enum migratetype
get_pfnblock_migratetype(const struct page * page,unsigned long pfn)442 get_pfnblock_migratetype(const struct page *page, unsigned long pfn)
443 {
444 unsigned long mask = PAGEBLOCK_MIGRATETYPE_MASK | PAGEBLOCK_ISO_MASK;
445 unsigned long flags;
446
447 flags = __get_pfnblock_flags_mask(page, pfn, mask);
448
449 #ifdef CONFIG_MEMORY_ISOLATION
450 if (flags & BIT(PB_migrate_isolate))
451 return MIGRATE_ISOLATE;
452 #endif
453 return flags & PAGEBLOCK_MIGRATETYPE_MASK;
454 }
455
456 /**
457 * __set_pfnblock_flags_mask - Set the requested group of flags for
458 * a pageblock_nr_pages block of pages
459 * @page: The page within the block of interest
460 * @pfn: The target page frame number
461 * @flags: The flags to set
462 * @mask: mask of bits that the caller is interested in
463 */
__set_pfnblock_flags_mask(struct page * page,unsigned long pfn,unsigned long flags,unsigned long mask)464 static void __set_pfnblock_flags_mask(struct page *page, unsigned long pfn,
465 unsigned long flags, unsigned long mask)
466 {
467 unsigned long *bitmap_word;
468 unsigned long bitidx;
469 unsigned long word;
470
471 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx);
472
473 mask <<= bitidx;
474 flags <<= bitidx;
475
476 word = READ_ONCE(*bitmap_word);
477 do {
478 } while (!try_cmpxchg(bitmap_word, &word, (word & ~mask) | flags));
479 }
480
481 /**
482 * set_pfnblock_bit - Set a standalone bit of a pageblock
483 * @page: The page within the block of interest
484 * @pfn: The target page frame number
485 * @pb_bit: pageblock bit to set
486 */
set_pfnblock_bit(const struct page * page,unsigned long pfn,enum pageblock_bits pb_bit)487 void set_pfnblock_bit(const struct page *page, unsigned long pfn,
488 enum pageblock_bits pb_bit)
489 {
490 unsigned long *bitmap_word;
491 unsigned long bitidx;
492
493 if (WARN_ON_ONCE(!is_standalone_pb_bit(pb_bit)))
494 return;
495
496 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx);
497
498 set_bit(bitidx + pb_bit, bitmap_word);
499 }
500
501 /**
502 * clear_pfnblock_bit - Clear a standalone bit of a pageblock
503 * @page: The page within the block of interest
504 * @pfn: The target page frame number
505 * @pb_bit: pageblock bit to clear
506 */
clear_pfnblock_bit(const struct page * page,unsigned long pfn,enum pageblock_bits pb_bit)507 void clear_pfnblock_bit(const struct page *page, unsigned long pfn,
508 enum pageblock_bits pb_bit)
509 {
510 unsigned long *bitmap_word;
511 unsigned long bitidx;
512
513 if (WARN_ON_ONCE(!is_standalone_pb_bit(pb_bit)))
514 return;
515
516 get_pfnblock_bitmap_bitidx(page, pfn, &bitmap_word, &bitidx);
517
518 clear_bit(bitidx + pb_bit, bitmap_word);
519 }
520
521 /**
522 * set_pageblock_migratetype - Set the migratetype of a pageblock
523 * @page: The page within the block of interest
524 * @migratetype: migratetype to set
525 */
set_pageblock_migratetype(struct page * page,enum migratetype migratetype)526 static void set_pageblock_migratetype(struct page *page,
527 enum migratetype migratetype)
528 {
529 if (unlikely(page_group_by_mobility_disabled &&
530 migratetype < MIGRATE_PCPTYPES))
531 migratetype = MIGRATE_UNMOVABLE;
532
533 #ifdef CONFIG_MEMORY_ISOLATION
534 if (migratetype == MIGRATE_ISOLATE) {
535 VM_WARN_ONCE(1,
536 "Use set_pageblock_isolate() for pageblock isolation");
537 return;
538 }
539 VM_WARN_ONCE(get_pageblock_isolate(page),
540 "Use clear_pageblock_isolate() to unisolate pageblock");
541 /* PAGEBLOCK_ISO_MASK clears PB_migrate_isolate if it is set */
542 #endif
543 __set_pfnblock_flags_mask(page, page_to_pfn(page),
544 (unsigned long)migratetype,
545 PAGEBLOCK_MIGRATETYPE_MASK | PAGEBLOCK_ISO_MASK);
546 }
547
init_pageblock_migratetype(struct page * page,enum migratetype migratetype,bool isolate)548 void __meminit init_pageblock_migratetype(struct page *page,
549 enum migratetype migratetype,
550 bool isolate)
551 {
552 unsigned long flags;
553
554 if (unlikely(page_group_by_mobility_disabled &&
555 migratetype < MIGRATE_PCPTYPES))
556 migratetype = MIGRATE_UNMOVABLE;
557
558 flags = migratetype;
559
560 #ifdef CONFIG_MEMORY_ISOLATION
561 if (migratetype == MIGRATE_ISOLATE) {
562 VM_WARN_ONCE(
563 1,
564 "Set isolate=true to isolate pageblock with a migratetype");
565 return;
566 }
567 if (isolate)
568 flags |= BIT(PB_migrate_isolate);
569 #endif
570 __set_pfnblock_flags_mask(page, page_to_pfn(page), flags,
571 PAGEBLOCK_MIGRATETYPE_MASK | PAGEBLOCK_ISO_MASK);
572 }
573
574 #ifdef CONFIG_DEBUG_VM
page_outside_zone_boundaries(struct zone * zone,struct page * page)575 static int page_outside_zone_boundaries(struct zone *zone, struct page *page)
576 {
577 int ret;
578 unsigned seq;
579 unsigned long pfn = page_to_pfn(page);
580 unsigned long sp, start_pfn;
581
582 do {
583 seq = zone_span_seqbegin(zone);
584 start_pfn = zone->zone_start_pfn;
585 sp = zone->spanned_pages;
586 ret = !zone_spans_pfn(zone, pfn);
587 } while (zone_span_seqretry(zone, seq));
588
589 if (ret)
590 pr_err("page 0x%lx outside node %d zone %s [ 0x%lx - 0x%lx ]\n",
591 pfn, zone_to_nid(zone), zone->name,
592 start_pfn, start_pfn + sp);
593
594 return ret;
595 }
596
597 /*
598 * Temporary debugging check for pages not lying within a given zone.
599 */
bad_range(struct zone * zone,struct page * page)600 static bool __maybe_unused bad_range(struct zone *zone, struct page *page)
601 {
602 if (page_outside_zone_boundaries(zone, page))
603 return true;
604 if (zone != page_zone(page))
605 return true;
606
607 return false;
608 }
609 #else
bad_range(struct zone * zone,struct page * page)610 static inline bool __maybe_unused bad_range(struct zone *zone, struct page *page)
611 {
612 return false;
613 }
614 #endif
615
bad_page(struct page * page,const char * reason)616 static void bad_page(struct page *page, const char *reason)
617 {
618 static unsigned long resume;
619 static unsigned long nr_shown;
620 static unsigned long nr_unshown;
621
622 /*
623 * Allow a burst of 60 reports, then keep quiet for that minute;
624 * or allow a steady drip of one report per second.
625 */
626 if (nr_shown == 60) {
627 if (time_before(jiffies, resume)) {
628 nr_unshown++;
629 goto out;
630 }
631 if (nr_unshown) {
632 pr_alert(
633 "BUG: Bad page state: %lu messages suppressed\n",
634 nr_unshown);
635 nr_unshown = 0;
636 }
637 nr_shown = 0;
638 }
639 if (nr_shown++ == 0)
640 resume = jiffies + 60 * HZ;
641
642 pr_alert("BUG: Bad page state in process %s pfn:%05lx\n",
643 current->comm, page_to_pfn(page));
644 dump_page(page, reason);
645
646 print_modules();
647 dump_stack();
648 out:
649 /* Leave bad fields for debug, except PageBuddy could make trouble */
650 if (PageBuddy(page))
651 __ClearPageBuddy(page);
652 add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE);
653 }
654
order_to_pindex(int migratetype,int order)655 static inline unsigned int order_to_pindex(int migratetype, int order)
656 {
657 if (IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE)) {
658 bool movable = migratetype == MIGRATE_MOVABLE;
659
660 if (order > PAGE_ALLOC_COSTLY_ORDER)
661 return NR_LOWORDER_PCP_LISTS + movable;
662 }
663
664 return (MIGRATE_PCPTYPES * order) + migratetype;
665 }
666
pindex_to_order(unsigned int pindex)667 static inline int pindex_to_order(unsigned int pindex)
668 {
669 int order = pindex / MIGRATE_PCPTYPES;
670
671 if (IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE)) {
672 if (pindex >= NR_LOWORDER_PCP_LISTS)
673 order = HPAGE_PMD_ORDER;
674 }
675
676 return order;
677 }
678
pcp_allowed_order(unsigned int order)679 static inline bool pcp_allowed_order(unsigned int order)
680 {
681 if (order <= PAGE_ALLOC_COSTLY_ORDER)
682 return true;
683 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
684 if (is_pmd_order(order))
685 return true;
686 #endif
687 return false;
688 }
689
690 /*
691 * Higher-order pages are called "compound pages". They are structured thusly:
692 *
693 * The first PAGE_SIZE page is called the "head page" and have PG_head set.
694 *
695 * The remaining PAGE_SIZE pages are called "tail pages". PageTail() is encoded
696 * in bit 0 of page->compound_info. The rest of bits is pointer to head page.
697 *
698 * The first tail page's ->compound_order holds the order of allocation.
699 * This usage means that zero-order pages may not be compound.
700 */
701
prep_compound_page(struct page * page,unsigned int order)702 void prep_compound_page(struct page *page, unsigned int order)
703 {
704 int i;
705 int nr_pages = 1 << order;
706
707 __SetPageHead(page);
708 for (i = 1; i < nr_pages; i++)
709 prep_compound_tail(page + i, page, order);
710
711 prep_compound_head(page, order);
712 }
713
set_buddy_order(struct page * page,unsigned int order)714 static inline void set_buddy_order(struct page *page, unsigned int order)
715 {
716 set_page_private(page, order);
717 __SetPageBuddy(page);
718 }
719
720 #ifdef CONFIG_COMPACTION
task_capc(struct zone * zone)721 static inline struct capture_control *task_capc(struct zone *zone)
722 {
723 struct capture_control *capc = current->capture_control;
724
725 return unlikely(capc) &&
726 !(current->flags & PF_KTHREAD) &&
727 !capc->page &&
728 capc->zone == zone ? capc : NULL;
729 }
730
731 static inline bool
compaction_capture(struct capture_control * capc,struct page * page,int order,int migratetype)732 compaction_capture(struct capture_control *capc, struct page *page,
733 int order, int migratetype)
734 {
735 if (!capc || order != capc->order)
736 return false;
737
738 /* Do not accidentally pollute CMA or isolated regions*/
739 if (is_migrate_cma(migratetype) ||
740 is_migrate_isolate(migratetype))
741 return false;
742
743 /*
744 * Do not let lower order allocations pollute a movable pageblock
745 * unless compaction is also requesting movable pages.
746 * This might let an unmovable request use a reclaimable pageblock
747 * and vice-versa but no more than normal fallback logic which can
748 * have trouble finding a high-order free page.
749 */
750 if (order < pageblock_order && migratetype == MIGRATE_MOVABLE &&
751 capc->migratetype != MIGRATE_MOVABLE)
752 return false;
753
754 if (migratetype != capc->migratetype)
755 trace_mm_page_alloc_extfrag(page, capc->order, order,
756 capc->migratetype, migratetype);
757
758 capc->page = page;
759 return true;
760 }
761
762 #else
task_capc(struct zone * zone)763 static inline struct capture_control *task_capc(struct zone *zone)
764 {
765 return NULL;
766 }
767
768 static inline bool
compaction_capture(struct capture_control * capc,struct page * page,int order,int migratetype)769 compaction_capture(struct capture_control *capc, struct page *page,
770 int order, int migratetype)
771 {
772 return false;
773 }
774 #endif /* CONFIG_COMPACTION */
775
account_freepages(struct zone * zone,int nr_pages,int migratetype)776 static inline void account_freepages(struct zone *zone, int nr_pages,
777 int migratetype)
778 {
779 lockdep_assert_held(&zone->lock);
780
781 if (is_migrate_isolate(migratetype))
782 return;
783
784 __mod_zone_page_state(zone, NR_FREE_PAGES, nr_pages);
785
786 if (is_migrate_cma(migratetype))
787 __mod_zone_page_state(zone, NR_FREE_CMA_PAGES, nr_pages);
788 else if (migratetype == MIGRATE_HIGHATOMIC)
789 WRITE_ONCE(zone->nr_free_highatomic,
790 zone->nr_free_highatomic + nr_pages);
791 }
792
793 /* Used for pages not on another list */
__add_to_free_list(struct page * page,struct zone * zone,unsigned int order,int migratetype,bool tail)794 static inline void __add_to_free_list(struct page *page, struct zone *zone,
795 unsigned int order, int migratetype,
796 bool tail)
797 {
798 struct free_area *area = &zone->free_area[order];
799 int nr_pages = 1 << order;
800
801 VM_WARN_ONCE(get_pageblock_migratetype(page) != migratetype,
802 "page type is %d, passed migratetype is %d (nr=%d)\n",
803 get_pageblock_migratetype(page), migratetype, nr_pages);
804
805 if (tail)
806 list_add_tail(&page->buddy_list, &area->free_list[migratetype]);
807 else
808 list_add(&page->buddy_list, &area->free_list[migratetype]);
809 area->nr_free++;
810
811 if (order >= pageblock_order && !is_migrate_isolate(migratetype))
812 __mod_zone_page_state(zone, NR_FREE_PAGES_BLOCKS, nr_pages);
813 }
814
815 /*
816 * Used for pages which are on another list. Move the pages to the tail
817 * of the list - so the moved pages won't immediately be considered for
818 * allocation again (e.g., optimization for memory onlining).
819 */
move_to_free_list(struct page * page,struct zone * zone,unsigned int order,int old_mt,int new_mt)820 static inline void move_to_free_list(struct page *page, struct zone *zone,
821 unsigned int order, int old_mt, int new_mt)
822 {
823 struct free_area *area = &zone->free_area[order];
824 int nr_pages = 1 << order;
825
826 /* Free page moving can fail, so it happens before the type update */
827 VM_WARN_ONCE(get_pageblock_migratetype(page) != old_mt,
828 "page type is %d, passed migratetype is %d (nr=%d)\n",
829 get_pageblock_migratetype(page), old_mt, nr_pages);
830
831 list_move_tail(&page->buddy_list, &area->free_list[new_mt]);
832
833 account_freepages(zone, -nr_pages, old_mt);
834 account_freepages(zone, nr_pages, new_mt);
835
836 if (order >= pageblock_order &&
837 is_migrate_isolate(old_mt) != is_migrate_isolate(new_mt)) {
838 if (!is_migrate_isolate(old_mt))
839 nr_pages = -nr_pages;
840 __mod_zone_page_state(zone, NR_FREE_PAGES_BLOCKS, nr_pages);
841 }
842 }
843
__del_page_from_free_list(struct page * page,struct zone * zone,unsigned int order,int migratetype)844 static inline void __del_page_from_free_list(struct page *page, struct zone *zone,
845 unsigned int order, int migratetype)
846 {
847 int nr_pages = 1 << order;
848
849 VM_WARN_ONCE(get_pageblock_migratetype(page) != migratetype,
850 "page type is %d, passed migratetype is %d (nr=%d)\n",
851 get_pageblock_migratetype(page), migratetype, nr_pages);
852
853 /* clear reported state and update reported page count */
854 if (page_reported(page))
855 __ClearPageReported(page);
856
857 list_del(&page->buddy_list);
858 __ClearPageBuddy(page);
859 set_page_private(page, 0);
860 zone->free_area[order].nr_free--;
861
862 if (order >= pageblock_order && !is_migrate_isolate(migratetype))
863 __mod_zone_page_state(zone, NR_FREE_PAGES_BLOCKS, -nr_pages);
864 }
865
del_page_from_free_list(struct page * page,struct zone * zone,unsigned int order,int migratetype)866 static inline void del_page_from_free_list(struct page *page, struct zone *zone,
867 unsigned int order, int migratetype)
868 {
869 __del_page_from_free_list(page, zone, order, migratetype);
870 account_freepages(zone, -(1 << order), migratetype);
871 }
872
get_page_from_free_area(struct free_area * area,int migratetype)873 static inline struct page *get_page_from_free_area(struct free_area *area,
874 int migratetype)
875 {
876 return list_first_entry_or_null(&area->free_list[migratetype],
877 struct page, buddy_list);
878 }
879
880 /*
881 * If this is less than the 2nd largest possible page, check if the buddy
882 * of the next-higher order is free. If it is, it's possible
883 * that pages are being freed that will coalesce soon. In case,
884 * that is happening, add the free page to the tail of the list
885 * so it's less likely to be used soon and more likely to be merged
886 * as a 2-level higher order page
887 */
888 static inline bool
buddy_merge_likely(unsigned long pfn,unsigned long buddy_pfn,struct page * page,unsigned int order)889 buddy_merge_likely(unsigned long pfn, unsigned long buddy_pfn,
890 struct page *page, unsigned int order)
891 {
892 unsigned long higher_page_pfn;
893 struct page *higher_page;
894
895 if (order >= MAX_PAGE_ORDER - 1)
896 return false;
897
898 higher_page_pfn = buddy_pfn & pfn;
899 higher_page = page + (higher_page_pfn - pfn);
900
901 return find_buddy_page_pfn(higher_page, higher_page_pfn, order + 1,
902 NULL) != NULL;
903 }
904
change_pageblock_range(struct page * pageblock_page,int start_order,int migratetype)905 static void change_pageblock_range(struct page *pageblock_page,
906 int start_order, int migratetype)
907 {
908 int nr_pageblocks = 1 << (start_order - pageblock_order);
909
910 while (nr_pageblocks--) {
911 set_pageblock_migratetype(pageblock_page, migratetype);
912 pageblock_page += pageblock_nr_pages;
913 }
914 }
915
916 /*
917 * Freeing function for a buddy system allocator.
918 *
919 * The concept of a buddy system is to maintain direct-mapped table
920 * (containing bit values) for memory blocks of various "orders".
921 * The bottom level table contains the map for the smallest allocatable
922 * units of memory (here, pages), and each level above it describes
923 * pairs of units from the levels below, hence, "buddies".
924 * At a high level, all that happens here is marking the table entry
925 * at the bottom level available, and propagating the changes upward
926 * as necessary, plus some accounting needed to play nicely with other
927 * parts of the VM system.
928 * At each level, we keep a list of pages, which are heads of continuous
929 * free pages of length of (1 << order) and marked with PageBuddy.
930 * Page's order is recorded in page_private(page) field.
931 * So when we are allocating or freeing one, we can derive the state of the
932 * other. That is, if we allocate a small block, and both were
933 * free, the remainder of the region must be split into blocks.
934 * If a block is freed, and its buddy is also free, then this
935 * triggers coalescing into a block of larger size.
936 *
937 * -- nyc
938 */
939
__free_one_page(struct page * page,unsigned long pfn,struct zone * zone,unsigned int order,int migratetype,fpi_t fpi_flags)940 static inline void __free_one_page(struct page *page,
941 unsigned long pfn,
942 struct zone *zone, unsigned int order,
943 int migratetype, fpi_t fpi_flags)
944 {
945 struct capture_control *capc = task_capc(zone);
946 unsigned long buddy_pfn = 0;
947 unsigned long combined_pfn;
948 struct page *buddy;
949 bool to_tail;
950
951 VM_BUG_ON(!zone_is_initialized(zone));
952 VM_BUG_ON_PAGE(page->flags.f & PAGE_FLAGS_CHECK_AT_PREP, page);
953
954 VM_BUG_ON(migratetype == -1);
955 VM_BUG_ON_PAGE(pfn & ((1 << order) - 1), page);
956 VM_BUG_ON_PAGE(bad_range(zone, page), page);
957
958 account_freepages(zone, 1 << order, migratetype);
959
960 while (order < MAX_PAGE_ORDER) {
961 int buddy_mt = migratetype;
962
963 if (compaction_capture(capc, page, order, migratetype)) {
964 account_freepages(zone, -(1 << order), migratetype);
965 return;
966 }
967
968 buddy = find_buddy_page_pfn(page, pfn, order, &buddy_pfn);
969 if (!buddy)
970 goto done_merging;
971
972 if (unlikely(order >= pageblock_order)) {
973 /*
974 * We want to prevent merge between freepages on pageblock
975 * without fallbacks and normal pageblock. Without this,
976 * pageblock isolation could cause incorrect freepage or CMA
977 * accounting or HIGHATOMIC accounting.
978 */
979 buddy_mt = get_pfnblock_migratetype(buddy, buddy_pfn);
980
981 if (migratetype != buddy_mt &&
982 (!migratetype_is_mergeable(migratetype) ||
983 !migratetype_is_mergeable(buddy_mt)))
984 goto done_merging;
985 }
986
987 /*
988 * Our buddy is free or it is CONFIG_DEBUG_PAGEALLOC guard page,
989 * merge with it and move up one order.
990 */
991 if (page_is_guard(buddy))
992 clear_page_guard(zone, buddy, order);
993 else
994 __del_page_from_free_list(buddy, zone, order, buddy_mt);
995
996 if (unlikely(buddy_mt != migratetype)) {
997 /*
998 * Match buddy type. This ensures that an
999 * expand() down the line puts the sub-blocks
1000 * on the right freelists.
1001 */
1002 change_pageblock_range(buddy, order, migratetype);
1003 }
1004
1005 combined_pfn = buddy_pfn & pfn;
1006 page = page + (combined_pfn - pfn);
1007 pfn = combined_pfn;
1008 order++;
1009 }
1010
1011 done_merging:
1012 set_buddy_order(page, order);
1013
1014 if (fpi_flags & FPI_TO_TAIL)
1015 to_tail = true;
1016 else if (is_shuffle_order(order))
1017 to_tail = shuffle_pick_tail();
1018 else
1019 to_tail = buddy_merge_likely(pfn, buddy_pfn, page, order);
1020
1021 __add_to_free_list(page, zone, order, migratetype, to_tail);
1022
1023 /* Notify page reporting subsystem of freed page */
1024 if (!(fpi_flags & FPI_SKIP_REPORT_NOTIFY))
1025 page_reporting_notify_free(order);
1026 }
1027
1028 /*
1029 * A bad page could be due to a number of fields. Instead of multiple branches,
1030 * try and check multiple fields with one check. The caller must do a detailed
1031 * check if necessary.
1032 */
page_expected_state(struct page * page,unsigned long check_flags)1033 static inline bool page_expected_state(struct page *page,
1034 unsigned long check_flags)
1035 {
1036 if (unlikely(atomic_read(&page->_mapcount) != -1))
1037 return false;
1038
1039 if (unlikely((unsigned long)page->mapping |
1040 page_ref_count(page) |
1041 #ifdef CONFIG_MEMCG
1042 page->memcg_data |
1043 #endif
1044 page_pool_page_is_pp(page) |
1045 (page->flags.f & check_flags)))
1046 return false;
1047
1048 return true;
1049 }
1050
page_bad_reason(struct page * page,unsigned long flags)1051 static const char *page_bad_reason(struct page *page, unsigned long flags)
1052 {
1053 const char *bad_reason = NULL;
1054
1055 if (unlikely(atomic_read(&page->_mapcount) != -1))
1056 bad_reason = "nonzero mapcount";
1057 if (unlikely(page->mapping != NULL))
1058 bad_reason = "non-NULL mapping";
1059 if (unlikely(page_ref_count(page) != 0))
1060 bad_reason = "nonzero _refcount";
1061 if (unlikely(page->flags.f & flags)) {
1062 if (flags == PAGE_FLAGS_CHECK_AT_PREP)
1063 bad_reason = "PAGE_FLAGS_CHECK_AT_PREP flag(s) set";
1064 else
1065 bad_reason = "PAGE_FLAGS_CHECK_AT_FREE flag(s) set";
1066 }
1067 #ifdef CONFIG_MEMCG
1068 if (unlikely(page->memcg_data))
1069 bad_reason = "page still charged to cgroup";
1070 #endif
1071 if (unlikely(page_pool_page_is_pp(page)))
1072 bad_reason = "page_pool leak";
1073 return bad_reason;
1074 }
1075
free_page_is_bad(struct page * page)1076 static inline bool free_page_is_bad(struct page *page)
1077 {
1078 if (likely(page_expected_state(page, PAGE_FLAGS_CHECK_AT_FREE)))
1079 return false;
1080
1081 /* Something has gone sideways, find it */
1082 bad_page(page, page_bad_reason(page, PAGE_FLAGS_CHECK_AT_FREE));
1083 return true;
1084 }
1085
is_check_pages_enabled(void)1086 static inline bool is_check_pages_enabled(void)
1087 {
1088 return static_branch_unlikely(&check_pages_enabled);
1089 }
1090
free_tail_page_prepare(struct page * head_page,struct page * page)1091 static int free_tail_page_prepare(struct page *head_page, struct page *page)
1092 {
1093 struct folio *folio = (struct folio *)head_page;
1094 int ret = 1;
1095
1096 /*
1097 * We rely page->lru.next never has bit 0 set, unless the page
1098 * is PageTail(). Let's make sure that's true even for poisoned ->lru.
1099 */
1100 BUILD_BUG_ON((unsigned long)LIST_POISON1 & 1);
1101
1102 if (!is_check_pages_enabled()) {
1103 ret = 0;
1104 goto out;
1105 }
1106 switch (page - head_page) {
1107 case 1:
1108 /* the first tail page: these may be in place of ->mapping */
1109 if (unlikely(folio_large_mapcount(folio))) {
1110 bad_page(page, "nonzero large_mapcount");
1111 goto out;
1112 }
1113 if (IS_ENABLED(CONFIG_PAGE_MAPCOUNT) &&
1114 unlikely(atomic_read(&folio->_nr_pages_mapped))) {
1115 bad_page(page, "nonzero nr_pages_mapped");
1116 goto out;
1117 }
1118 if (IS_ENABLED(CONFIG_MM_ID)) {
1119 if (unlikely(folio->_mm_id_mapcount[0] != -1)) {
1120 bad_page(page, "nonzero mm mapcount 0");
1121 goto out;
1122 }
1123 if (unlikely(folio->_mm_id_mapcount[1] != -1)) {
1124 bad_page(page, "nonzero mm mapcount 1");
1125 goto out;
1126 }
1127 }
1128 if (IS_ENABLED(CONFIG_64BIT)) {
1129 if (unlikely(atomic_read(&folio->_entire_mapcount) + 1)) {
1130 bad_page(page, "nonzero entire_mapcount");
1131 goto out;
1132 }
1133 if (unlikely(atomic_read(&folio->_pincount))) {
1134 bad_page(page, "nonzero pincount");
1135 goto out;
1136 }
1137 }
1138 break;
1139 case 2:
1140 /* the second tail page: deferred_list overlaps ->mapping */
1141 if (unlikely(!list_empty(&folio->_deferred_list))) {
1142 bad_page(page, "on deferred list");
1143 goto out;
1144 }
1145 if (!IS_ENABLED(CONFIG_64BIT)) {
1146 if (unlikely(atomic_read(&folio->_entire_mapcount) + 1)) {
1147 bad_page(page, "nonzero entire_mapcount");
1148 goto out;
1149 }
1150 if (unlikely(atomic_read(&folio->_pincount))) {
1151 bad_page(page, "nonzero pincount");
1152 goto out;
1153 }
1154 }
1155 break;
1156 case 3:
1157 /* the third tail page: hugetlb specifics overlap ->mappings */
1158 if (IS_ENABLED(CONFIG_HUGETLB_PAGE))
1159 break;
1160 fallthrough;
1161 default:
1162 if (page->mapping != TAIL_MAPPING) {
1163 bad_page(page, "corrupted mapping in tail page");
1164 goto out;
1165 }
1166 break;
1167 }
1168 if (unlikely(!PageTail(page))) {
1169 bad_page(page, "PageTail not set");
1170 goto out;
1171 }
1172 if (unlikely(compound_head(page) != head_page)) {
1173 bad_page(page, "compound_head not consistent");
1174 goto out;
1175 }
1176 ret = 0;
1177 out:
1178 page->mapping = NULL;
1179 clear_compound_head(page);
1180 return ret;
1181 }
1182
1183 /*
1184 * Skip KASAN memory poisoning when either:
1185 *
1186 * 1. For generic KASAN: deferred memory initialization has not yet completed.
1187 * Tag-based KASAN modes skip pages freed via deferred memory initialization
1188 * using page tags instead (see below).
1189 * 2. For tag-based KASAN modes: the page has a match-all KASAN tag, indicating
1190 * that error detection is disabled for accesses via the page address.
1191 *
1192 * Pages will have match-all tags in the following circumstances:
1193 *
1194 * 1. Pages are being initialized for the first time, including during deferred
1195 * memory init; see the call to page_kasan_tag_reset in __init_single_page.
1196 * 2. The allocation was not unpoisoned due to __GFP_SKIP_KASAN, with the
1197 * exception of pages unpoisoned by kasan_unpoison_vmalloc.
1198 * 3. The allocation was excluded from being checked due to sampling,
1199 * see the call to kasan_unpoison_pages.
1200 *
1201 * Poisoning pages during deferred memory init will greatly lengthen the
1202 * process and cause problem in large memory systems as the deferred pages
1203 * initialization is done with interrupt disabled.
1204 *
1205 * Assuming that there will be no reference to those newly initialized
1206 * pages before they are ever allocated, this should have no effect on
1207 * KASAN memory tracking as the poison will be properly inserted at page
1208 * allocation time. The only corner case is when pages are allocated by
1209 * on-demand allocation and then freed again before the deferred pages
1210 * initialization is done, but this is not likely to happen.
1211 */
should_skip_kasan_poison(struct page * page)1212 static inline bool should_skip_kasan_poison(struct page *page)
1213 {
1214 if (IS_ENABLED(CONFIG_KASAN_GENERIC))
1215 return deferred_pages_enabled();
1216
1217 return page_kasan_tag(page) == KASAN_TAG_KERNEL;
1218 }
1219
clear_highpages_kasan_tagged(struct page * page,int numpages)1220 static void clear_highpages_kasan_tagged(struct page *page, int numpages)
1221 {
1222 /* s390's use of memset() could override KASAN redzones. */
1223 kasan_disable_current();
1224 if (!IS_ENABLED(CONFIG_HIGHMEM)) {
1225 clear_pages(kasan_reset_tag(page_address(page)), numpages);
1226 } else {
1227 int i;
1228
1229 for (i = 0; i < numpages; i++)
1230 clear_highpage_kasan_tagged(page + i);
1231 }
1232 kasan_enable_current();
1233 }
1234
1235 #ifdef CONFIG_MEM_ALLOC_PROFILING
1236
1237 /* Should be called only if mem_alloc_profiling_enabled() */
__clear_page_tag_ref(struct page * page)1238 void __clear_page_tag_ref(struct page *page)
1239 {
1240 union pgtag_ref_handle handle;
1241 union codetag_ref ref;
1242
1243 if (get_page_tag_ref(page, &ref, &handle)) {
1244 set_codetag_empty(&ref);
1245 update_page_tag_ref(handle, &ref);
1246 put_page_tag_ref(handle);
1247 }
1248 }
1249
1250 /* Should be called only if mem_alloc_profiling_enabled() */
1251 static noinline
__pgalloc_tag_add(struct page * page,struct task_struct * task,unsigned int nr,unsigned int alloc_flags)1252 void __pgalloc_tag_add(struct page *page, struct task_struct *task,
1253 unsigned int nr, unsigned int alloc_flags)
1254 {
1255 union pgtag_ref_handle handle;
1256 union codetag_ref ref;
1257
1258 if (likely(get_page_tag_ref(page, &ref, &handle))) {
1259 alloc_tag_add(&ref, task->alloc_tag, PAGE_SIZE * nr);
1260 update_page_tag_ref(handle, &ref);
1261 put_page_tag_ref(handle);
1262 } else {
1263 /*
1264 * page_ext is not available yet, record the pfn so we can
1265 * clear the tag ref later when page_ext is initialized.
1266 */
1267 alloc_tag_add_early_pfn(page_to_pfn(page), alloc_flags);
1268 if (task->alloc_tag)
1269 alloc_tag_set_inaccurate(task->alloc_tag);
1270 }
1271 }
1272
pgalloc_tag_add(struct page * page,struct task_struct * task,unsigned int nr,unsigned int alloc_flags)1273 static inline void pgalloc_tag_add(struct page *page, struct task_struct *task,
1274 unsigned int nr, unsigned int alloc_flags)
1275 {
1276 if (mem_alloc_profiling_enabled())
1277 __pgalloc_tag_add(page, task, nr, alloc_flags);
1278 }
1279
1280 /* Should be called only if mem_alloc_profiling_enabled() */
1281 static noinline
__pgalloc_tag_sub(struct page * page,unsigned int nr)1282 void __pgalloc_tag_sub(struct page *page, unsigned int nr)
1283 {
1284 union pgtag_ref_handle handle;
1285 union codetag_ref ref;
1286
1287 if (get_page_tag_ref(page, &ref, &handle)) {
1288 alloc_tag_sub(&ref, PAGE_SIZE * nr);
1289 update_page_tag_ref(handle, &ref);
1290 put_page_tag_ref(handle);
1291 }
1292 }
1293
pgalloc_tag_sub(struct page * page,unsigned int nr)1294 static inline void pgalloc_tag_sub(struct page *page, unsigned int nr)
1295 {
1296 if (mem_alloc_profiling_enabled())
1297 __pgalloc_tag_sub(page, nr);
1298 }
1299
1300 /* When tag is not NULL, assuming mem_alloc_profiling_enabled */
pgalloc_tag_sub_pages(struct alloc_tag * tag,unsigned int nr)1301 static inline void pgalloc_tag_sub_pages(struct alloc_tag *tag, unsigned int nr)
1302 {
1303 if (tag)
1304 this_cpu_sub(tag->counters->bytes, PAGE_SIZE * nr);
1305 }
1306
1307 #else /* CONFIG_MEM_ALLOC_PROFILING */
1308
pgalloc_tag_add(struct page * page,struct task_struct * task,unsigned int nr,unsigned int alloc_flags)1309 static inline void pgalloc_tag_add(struct page *page, struct task_struct *task,
1310 unsigned int nr, unsigned int alloc_flags) {}
pgalloc_tag_sub(struct page * page,unsigned int nr)1311 static inline void pgalloc_tag_sub(struct page *page, unsigned int nr) {}
pgalloc_tag_sub_pages(struct alloc_tag * tag,unsigned int nr)1312 static inline void pgalloc_tag_sub_pages(struct alloc_tag *tag, unsigned int nr) {}
1313
1314 #endif /* CONFIG_MEM_ALLOC_PROFILING */
1315
__free_pages_prepare(struct page * page,unsigned int order,fpi_t fpi_flags)1316 static __always_inline bool __free_pages_prepare(struct page *page,
1317 unsigned int order, fpi_t fpi_flags)
1318 {
1319 int bad = 0;
1320 bool skip_kasan_poison = should_skip_kasan_poison(page);
1321 bool init = want_init_on_free();
1322 bool compound = PageCompound(page);
1323 struct folio *folio = page_folio(page);
1324
1325 if (fpi_flags & FPI_PREPARED)
1326 return true;
1327
1328 VM_BUG_ON_PAGE(PageTail(page), page);
1329
1330 trace_mm_page_free(page, order);
1331 kmsan_free_page(page, order);
1332
1333 if (memcg_kmem_online() && PageMemcgKmem(page))
1334 __memcg_kmem_uncharge_page(page, order);
1335
1336 /*
1337 * In rare cases, when truncation or holepunching raced with
1338 * munlock after VM_LOCKED was cleared, Mlocked may still be
1339 * found set here. This does not indicate a problem, unless
1340 * "unevictable_pgs_cleared" appears worryingly large.
1341 */
1342 if (unlikely(folio_test_mlocked(folio))) {
1343 long nr_pages = folio_nr_pages(folio);
1344
1345 __folio_clear_mlocked(folio);
1346 zone_stat_mod_folio(folio, NR_MLOCK, -nr_pages);
1347 count_vm_events(UNEVICTABLE_PGCLEARED, nr_pages);
1348 }
1349
1350 if (unlikely(PageHWPoison(page)) && !order) {
1351 /* Do not let hwpoison pages hit pcplists/buddy */
1352 reset_page_owner(page, order);
1353 page_table_check_free(page, order);
1354 pgalloc_tag_sub(page, 1 << order);
1355
1356 /*
1357 * The page is isolated and accounted for.
1358 * Mark the codetag as empty to avoid accounting error
1359 * when the page is freed by unpoison_memory().
1360 */
1361 clear_page_tag_ref(page);
1362 return false;
1363 }
1364
1365 VM_BUG_ON_PAGE(compound && compound_order(page) != order, page);
1366
1367 /*
1368 * Check tail pages before head page information is cleared to
1369 * avoid checking PageCompound for order-0 pages.
1370 */
1371 if (unlikely(order)) {
1372 int i;
1373
1374 if (compound) {
1375 page[1].flags.f &= ~PAGE_FLAGS_SECOND;
1376 #ifdef NR_PAGES_IN_LARGE_FOLIO
1377 folio->_nr_pages = 0;
1378 #endif
1379 }
1380 for (i = 1; i < (1 << order); i++) {
1381 struct page *tail_page = page + i;
1382
1383 if (compound)
1384 bad += free_tail_page_prepare(page, tail_page);
1385 if (is_check_pages_enabled()) {
1386 if (free_page_is_bad(tail_page)) {
1387 bad++;
1388 continue;
1389 }
1390
1391 if (tail_page->private) {
1392 bad_page(tail_page, "nonzero private");
1393 bad++;
1394 continue;
1395 }
1396 }
1397 tail_page->flags.f &= ~PAGE_FLAGS_CHECK_AT_PREP;
1398 }
1399 }
1400 if (folio_test_anon(folio)) {
1401 mod_mthp_stat(order, MTHP_STAT_NR_ANON, -1);
1402 folio->mapping = NULL;
1403 }
1404 if (unlikely(page_has_type(page)))
1405 /* Reset the page_type (which overlays _mapcount) */
1406 page->page_type = UINT_MAX;
1407
1408 if (is_check_pages_enabled()) {
1409 if (free_page_is_bad(page))
1410 bad++;
1411 if (bad)
1412 return false;
1413 }
1414
1415 page_cpupid_reset_last(page);
1416 page->flags.f &= ~PAGE_FLAGS_CHECK_AT_PREP;
1417 page->private = 0;
1418 reset_page_owner(page, order);
1419 page_table_check_free(page, order);
1420 pgalloc_tag_sub(page, 1 << order);
1421
1422 if (!PageHighMem(page) && !(fpi_flags & FPI_NOLOCK)) {
1423 debug_check_no_locks_freed(page_address(page),
1424 PAGE_SIZE << order);
1425 debug_check_no_obj_freed(page_address(page),
1426 PAGE_SIZE << order);
1427 }
1428
1429 kernel_poison_pages(page, 1 << order);
1430
1431 /*
1432 * As memory initialization might be integrated into KASAN,
1433 * KASAN poisoning and memory initialization code must be
1434 * kept together to avoid discrepancies in behavior.
1435 *
1436 * With hardware tag-based KASAN, memory tags must be set before the
1437 * page becomes unavailable via debug_pagealloc or arch_free_page.
1438 */
1439 if (!skip_kasan_poison) {
1440 kasan_poison_pages(page, order, init);
1441
1442 /* Memory is already initialized if KASAN did it internally. */
1443 if (kasan_has_integrated_init())
1444 init = false;
1445 }
1446 if (init)
1447 clear_highpages_kasan_tagged(page, 1 << order);
1448
1449 /*
1450 * arch_free_page() can make the page's contents inaccessible. s390
1451 * does this. So nothing which can access the page's contents should
1452 * happen after this.
1453 */
1454 arch_free_page(page, order);
1455
1456 debug_pagealloc_unmap_pages(page, 1 << order);
1457
1458 return true;
1459 }
1460
free_pages_prepare(struct page * page,unsigned int order)1461 bool free_pages_prepare(struct page *page, unsigned int order)
1462 {
1463 return __free_pages_prepare(page, order, FPI_NONE);
1464 }
1465
1466 /*
1467 * Frees a number of pages from the PCP lists
1468 * Assumes all pages on list are in same zone.
1469 * count is the number of pages to free.
1470 */
free_pcppages_bulk(struct zone * zone,int count,struct per_cpu_pages * pcp,int pindex)1471 static void free_pcppages_bulk(struct zone *zone, int count,
1472 struct per_cpu_pages *pcp,
1473 int pindex)
1474 {
1475 unsigned int order;
1476 struct page *page;
1477
1478 /*
1479 * Ensure proper count is passed which otherwise would stuck in the
1480 * below while (list_empty(list)) loop.
1481 */
1482 count = min(pcp->count, count);
1483
1484 /* Ensure requested pindex is drained first. */
1485 pindex = pindex - 1;
1486
1487 guard(spinlock_irqsave)(&zone->lock);
1488
1489 while (count > 0) {
1490 struct list_head *list;
1491 int nr_pages;
1492
1493 /* Remove pages from lists in a round-robin fashion. */
1494 do {
1495 if (++pindex > NR_PCP_LISTS - 1)
1496 pindex = 0;
1497 list = &pcp->lists[pindex];
1498 } while (list_empty(list));
1499
1500 order = pindex_to_order(pindex);
1501 nr_pages = 1 << order;
1502 do {
1503 unsigned long pfn;
1504 int mt;
1505
1506 page = list_last_entry(list, struct page, pcp_list);
1507 pfn = page_to_pfn(page);
1508 mt = get_pfnblock_migratetype(page, pfn);
1509
1510 /* must delete to avoid corrupting pcp list */
1511 list_del(&page->pcp_list);
1512 count -= nr_pages;
1513 pcp->count -= nr_pages;
1514
1515 __free_one_page(page, pfn, zone, order, mt, FPI_NONE);
1516 trace_mm_page_pcpu_drain(page, order, mt);
1517 } while (count > 0 && !list_empty(list));
1518 }
1519 }
1520
1521 /* Split a multi-block free page into its individual pageblocks. */
split_large_buddy(struct zone * zone,struct page * page,unsigned long pfn,int order,fpi_t fpi)1522 static void split_large_buddy(struct zone *zone, struct page *page,
1523 unsigned long pfn, int order, fpi_t fpi)
1524 {
1525 unsigned long end = pfn + (1 << order);
1526
1527 VM_WARN_ON_ONCE(!IS_ALIGNED(pfn, 1 << order));
1528 /* Caller removed page from freelist, buddy info cleared! */
1529 VM_WARN_ON_ONCE(PageBuddy(page));
1530
1531 if (order > pageblock_order)
1532 order = pageblock_order;
1533
1534 do {
1535 int mt = get_pfnblock_migratetype(page, pfn);
1536
1537 __free_one_page(page, pfn, zone, order, mt, fpi);
1538 pfn += 1 << order;
1539 if (pfn == end)
1540 break;
1541 page = pfn_to_page(pfn);
1542 } while (1);
1543 }
1544
add_page_to_zone_llist(struct zone * zone,struct page * page,unsigned int order)1545 static void add_page_to_zone_llist(struct zone *zone, struct page *page,
1546 unsigned int order)
1547 {
1548 /* Remember the order */
1549 page->private = order;
1550 /* Add the page to the free list */
1551 llist_add(&page->pcp_llist, &zone->trylock_free_pages);
1552 }
1553
free_one_page(struct zone * zone,struct page * page,unsigned long pfn,unsigned int order,fpi_t fpi_flags)1554 static void free_one_page(struct zone *zone, struct page *page,
1555 unsigned long pfn, unsigned int order,
1556 fpi_t fpi_flags)
1557 {
1558 struct llist_head *llhead;
1559 unsigned long flags;
1560
1561 if (unlikely(fpi_flags & FPI_NOLOCK)) {
1562 if (!can_spin_trylock() || !spin_trylock_irqsave(&zone->lock, flags)) {
1563 add_page_to_zone_llist(zone, page, order);
1564 return;
1565 }
1566 } else {
1567 spin_lock_irqsave(&zone->lock, flags);
1568 }
1569
1570 /* The lock succeeded. Process deferred pages. */
1571 llhead = &zone->trylock_free_pages;
1572 if (unlikely(!llist_empty(llhead) && !(fpi_flags & FPI_NOLOCK))) {
1573 struct llist_node *llnode;
1574 struct page *p, *tmp;
1575
1576 llnode = llist_del_all(llhead);
1577 llist_for_each_entry_safe(p, tmp, llnode, pcp_llist) {
1578 unsigned int p_order = p->private;
1579
1580 split_large_buddy(zone, p, page_to_pfn(p), p_order, fpi_flags);
1581 __count_vm_events(PGFREE, 1 << p_order);
1582 }
1583 }
1584 split_large_buddy(zone, page, pfn, order, fpi_flags);
1585 spin_unlock_irqrestore(&zone->lock, flags);
1586
1587 __count_vm_events(PGFREE, 1 << order);
1588 }
1589
__free_pages_ok(struct page * page,unsigned int order,fpi_t fpi_flags)1590 static void __free_pages_ok(struct page *page, unsigned int order,
1591 fpi_t fpi_flags)
1592 {
1593 unsigned long pfn = page_to_pfn(page);
1594 struct zone *zone = page_zone(page);
1595
1596 if (__free_pages_prepare(page, order, fpi_flags))
1597 free_one_page(zone, page, pfn, order, fpi_flags);
1598 }
1599
__free_pages_core(struct page * page,unsigned int order,enum meminit_context context)1600 void __meminit __free_pages_core(struct page *page, unsigned int order,
1601 enum meminit_context context)
1602 {
1603 unsigned int nr_pages = 1 << order;
1604 struct page *p = page;
1605 unsigned int loop;
1606
1607 /*
1608 * When initializing the memmap, __init_single_page() sets the refcount
1609 * of all pages to 1 ("allocated"/"not free"). We have to set the
1610 * refcount of all involved pages to 0.
1611 *
1612 * Note that hotplugged memory pages are initialized to PageOffline().
1613 * Pages freed from memblock might be marked as reserved.
1614 */
1615 if (IS_ENABLED(CONFIG_MEMORY_HOTPLUG) &&
1616 unlikely(context == MEMINIT_HOTPLUG)) {
1617 for (loop = 0; loop < nr_pages; loop++, p++) {
1618 VM_WARN_ON_ONCE(PageReserved(p));
1619 __ClearPageOffline(p);
1620 set_page_count(p, 0);
1621 }
1622
1623 adjust_managed_page_count(page, nr_pages);
1624 } else {
1625 for (loop = 0; loop < nr_pages; loop++, p++) {
1626 __ClearPageReserved(p);
1627 set_page_count(p, 0);
1628 }
1629
1630 /* memblock adjusts totalram_pages() manually. */
1631 atomic_long_add(nr_pages, &page_zone(page)->managed_pages);
1632 }
1633
1634 if (page_contains_unaccepted(page, order)) {
1635 if (order == MAX_PAGE_ORDER && __free_unaccepted(page))
1636 return;
1637
1638 accept_memory(page_to_phys(page), PAGE_SIZE << order);
1639 }
1640
1641 /*
1642 * Bypass PCP and place fresh pages right to the tail, primarily
1643 * relevant for memory onlining.
1644 */
1645 __free_pages_ok(page, order, FPI_TO_TAIL);
1646 }
1647
1648 /*
1649 * Check that the whole (or subset of) a pageblock given by the interval of
1650 * [start_pfn, end_pfn) is valid and within the same zone, before scanning it
1651 * with the migration of free compaction scanner.
1652 *
1653 * Return struct page pointer of start_pfn, or NULL if checks were not passed.
1654 *
1655 * It's possible on some configurations to have a setup like node0 node1 node0
1656 * i.e. it's possible that all pages within a zones range of pages do not
1657 * belong to a single zone. We assume that a border between node0 and node1
1658 * can occur within a single pageblock, but not a node0 node1 node0
1659 * interleaving within a single pageblock. It is therefore sufficient to check
1660 * the first and last page of a pageblock and avoid checking each individual
1661 * page in a pageblock.
1662 *
1663 * Note: the function may return non-NULL struct page even for a page block
1664 * which contains a memory hole (i.e. there is no physical memory for a subset
1665 * of the pfn range). For example, if the pageblock order is MAX_PAGE_ORDER, which
1666 * will fall into 2 sub-sections, and the end pfn of the pageblock may be hole
1667 * even though the start pfn is online and valid. This should be safe most of
1668 * the time because struct pages are still initialized via init_unavailable_range()
1669 * and pfn walkers shouldn't touch any physical memory range for which they do
1670 * not recognize any specific metadata in struct pages.
1671 */
__pageblock_pfn_to_page(unsigned long start_pfn,unsigned long end_pfn,struct zone * zone)1672 struct page *__pageblock_pfn_to_page(unsigned long start_pfn,
1673 unsigned long end_pfn, struct zone *zone)
1674 {
1675 struct page *start_page;
1676 struct page *end_page;
1677
1678 /* end_pfn is one past the range we are checking */
1679 end_pfn--;
1680
1681 if (!pfn_valid(end_pfn))
1682 return NULL;
1683
1684 start_page = pfn_to_online_page(start_pfn);
1685 if (!start_page)
1686 return NULL;
1687
1688 if (page_zone(start_page) != zone)
1689 return NULL;
1690
1691 end_page = pfn_to_page(end_pfn);
1692
1693 /* This gives a shorter code than deriving page_zone(end_page) */
1694 if (page_zone_id(start_page) != page_zone_id(end_page))
1695 return NULL;
1696
1697 return start_page;
1698 }
1699
1700 /*
1701 * The order of subdivision here is critical for the IO subsystem.
1702 * Please do not alter this order without good reasons and regression
1703 * testing. Specifically, as large blocks of memory are subdivided,
1704 * the order in which smaller blocks are delivered depends on the order
1705 * they're subdivided in this function. This is the primary factor
1706 * influencing the order in which pages are delivered to the IO
1707 * subsystem according to empirical testing, and this is also justified
1708 * by considering the behavior of a buddy system containing a single
1709 * large block of memory acted on by a series of small allocations.
1710 * This behavior is a critical factor in sglist merging's success.
1711 *
1712 * -- nyc
1713 */
expand(struct zone * zone,struct page * page,int low,int high,int migratetype)1714 static inline unsigned int expand(struct zone *zone, struct page *page, int low,
1715 int high, int migratetype)
1716 {
1717 unsigned int size = 1 << high;
1718 unsigned int nr_added = 0;
1719
1720 while (high > low) {
1721 high--;
1722 size >>= 1;
1723 VM_BUG_ON_PAGE(bad_range(zone, &page[size]), &page[size]);
1724
1725 /*
1726 * Mark as guard pages (or page), that will allow to
1727 * merge back to allocator when buddy will be freed.
1728 * Corresponding page table entries will not be touched,
1729 * pages will stay not present in virtual address space
1730 */
1731 if (set_page_guard(zone, &page[size], high))
1732 continue;
1733
1734 __add_to_free_list(&page[size], zone, high, migratetype, false);
1735 set_buddy_order(&page[size], high);
1736 nr_added += size;
1737 }
1738
1739 return nr_added;
1740 }
1741
page_del_and_expand(struct zone * zone,struct page * page,int low,int high,int migratetype)1742 static __always_inline void page_del_and_expand(struct zone *zone,
1743 struct page *page, int low,
1744 int high, int migratetype)
1745 {
1746 int nr_pages = 1 << high;
1747
1748 __del_page_from_free_list(page, zone, high, migratetype);
1749 nr_pages -= expand(zone, page, low, high, migratetype);
1750 account_freepages(zone, -nr_pages, migratetype);
1751 }
1752
check_new_page_bad(struct page * page)1753 static void check_new_page_bad(struct page *page)
1754 {
1755 if (unlikely(PageHWPoison(page))) {
1756 /* Don't complain about hwpoisoned pages */
1757 if (PageBuddy(page))
1758 __ClearPageBuddy(page);
1759 return;
1760 }
1761
1762 bad_page(page,
1763 page_bad_reason(page, PAGE_FLAGS_CHECK_AT_PREP));
1764 }
1765
1766 /*
1767 * This page is about to be returned from the page allocator
1768 */
check_new_page(struct page * page)1769 static bool check_new_page(struct page *page)
1770 {
1771 if (likely(page_expected_state(page,
1772 PAGE_FLAGS_CHECK_AT_PREP|__PG_HWPOISON)))
1773 return false;
1774
1775 check_new_page_bad(page);
1776 return true;
1777 }
1778
check_new_pages(struct page * page,unsigned int order)1779 static inline bool check_new_pages(struct page *page, unsigned int order)
1780 {
1781 if (is_check_pages_enabled()) {
1782 for (int i = 0; i < (1 << order); i++) {
1783 struct page *p = page + i;
1784
1785 if (check_new_page(p))
1786 return true;
1787 }
1788 }
1789
1790 return false;
1791 }
1792
should_skip_kasan_unpoison(gfp_t flags)1793 static inline bool should_skip_kasan_unpoison(gfp_t flags)
1794 {
1795 /* Don't skip if a software KASAN mode is enabled. */
1796 if (IS_ENABLED(CONFIG_KASAN_GENERIC) ||
1797 IS_ENABLED(CONFIG_KASAN_SW_TAGS))
1798 return false;
1799
1800 /* Skip, if hardware tag-based KASAN is not enabled. */
1801 if (!kasan_hw_tags_enabled())
1802 return true;
1803
1804 /*
1805 * With hardware tag-based KASAN enabled, skip if this has been
1806 * requested via __GFP_SKIP_KASAN.
1807 */
1808 return flags & __GFP_SKIP_KASAN;
1809 }
1810
should_skip_init(gfp_t flags)1811 static inline bool should_skip_init(gfp_t flags)
1812 {
1813 /* Don't skip, if hardware tag-based KASAN is not enabled. */
1814 if (!kasan_hw_tags_enabled())
1815 return false;
1816
1817 /* For hardware tag-based KASAN, skip if requested. */
1818 return (flags & __GFP_SKIP_ZERO);
1819 }
1820
post_alloc_hook(struct page * page,unsigned int order,gfp_t gfp_flags,unsigned int alloc_flags)1821 inline void post_alloc_hook(struct page *page, unsigned int order,
1822 gfp_t gfp_flags, unsigned int alloc_flags)
1823 {
1824 const bool zero_tags = gfp_flags & __GFP_ZEROTAGS;
1825 bool init = !want_init_on_free() && want_init_on_alloc(gfp_flags) &&
1826 !should_skip_init(gfp_flags);
1827 int i;
1828
1829 set_page_private(page, 0);
1830
1831 arch_alloc_page(page, order);
1832 debug_pagealloc_map_pages(page, 1 << order);
1833
1834 /*
1835 * Page unpoisoning must happen before memory initialization.
1836 * Otherwise, the poison pattern will be overwritten for __GFP_ZERO
1837 * allocations and the page unpoisoning code will complain.
1838 */
1839 kernel_unpoison_pages(page, 1 << order);
1840
1841 /*
1842 * As memory initialization might be integrated into KASAN,
1843 * KASAN unpoisoning and memory initialization code must be
1844 * kept together to avoid discrepancies in behavior.
1845 */
1846
1847 /*
1848 * Clearing tags can efficiently clear the memory for us as well, if
1849 * required.
1850 */
1851 if (zero_tags)
1852 init = tag_clear_highpages(page, 1 << order, /* clear_pages= */init);
1853
1854 if (!should_skip_kasan_unpoison(gfp_flags) &&
1855 kasan_unpoison_pages(page, order, init)) {
1856 /* Take note that memory was initialized by KASAN. */
1857 if (kasan_has_integrated_init())
1858 init = false;
1859 } else {
1860 /*
1861 * If memory tags have not been set by KASAN, reset the page
1862 * tags to ensure page_address() dereferencing does not fault.
1863 */
1864 for (i = 0; i != 1 << order; ++i)
1865 page_kasan_tag_reset(page + i);
1866 }
1867 /* If memory is still not initialized, initialize it now. */
1868 if (init)
1869 clear_highpages_kasan_tagged(page, 1 << order);
1870
1871 set_page_owner(page, order, gfp_flags);
1872 page_table_check_alloc(page, order);
1873 pgalloc_tag_add(page, current, 1 << order, alloc_flags);
1874 }
1875
prep_new_page(struct page * page,unsigned int order,gfp_t gfp_flags,unsigned int alloc_flags)1876 static void prep_new_page(struct page *page, unsigned int order, gfp_t gfp_flags,
1877 unsigned int alloc_flags)
1878 {
1879 post_alloc_hook(page, order, gfp_flags, alloc_flags);
1880
1881 if (order && (gfp_flags & __GFP_COMP))
1882 prep_compound_page(page, order);
1883
1884 /*
1885 * page is set pfmemalloc when ALLOC_NO_WATERMARKS was necessary to
1886 * allocate the page. The expectation is that the caller is taking
1887 * steps that will free more memory. The caller should avoid the page
1888 * being used for !PFMEMALLOC purposes.
1889 */
1890 if (alloc_flags & ALLOC_NO_WATERMARKS)
1891 set_page_pfmemalloc(page);
1892 else
1893 clear_page_pfmemalloc(page);
1894 }
1895
1896 /*
1897 * Go through the free lists for the given migratetype and remove
1898 * the smallest available page from the freelists
1899 */
1900 static __always_inline
__rmqueue_smallest(struct zone * zone,unsigned int order,int migratetype)1901 struct page *__rmqueue_smallest(struct zone *zone, unsigned int order,
1902 int migratetype)
1903 {
1904 unsigned int current_order;
1905 struct free_area *area;
1906 struct page *page;
1907
1908 /* Find a page of the appropriate size in the preferred list */
1909 for (current_order = order; current_order < NR_PAGE_ORDERS; ++current_order) {
1910 area = &(zone->free_area[current_order]);
1911 page = get_page_from_free_area(area, migratetype);
1912 if (!page)
1913 continue;
1914
1915 page_del_and_expand(zone, page, order, current_order,
1916 migratetype);
1917 trace_mm_page_alloc_zone_locked(page, order, migratetype,
1918 pcp_allowed_order(order) &&
1919 migratetype < MIGRATE_PCPTYPES);
1920 return page;
1921 }
1922
1923 return NULL;
1924 }
1925
1926
1927 /*
1928 * This array describes the order lists are fallen back to when
1929 * the free lists for the desirable migrate type are depleted
1930 *
1931 * The other migratetypes do not have fallbacks.
1932 */
1933 static int fallbacks[MIGRATE_PCPTYPES][MIGRATE_PCPTYPES - 1] = {
1934 [MIGRATE_UNMOVABLE] = { MIGRATE_RECLAIMABLE, MIGRATE_MOVABLE },
1935 [MIGRATE_MOVABLE] = { MIGRATE_RECLAIMABLE, MIGRATE_UNMOVABLE },
1936 [MIGRATE_RECLAIMABLE] = { MIGRATE_UNMOVABLE, MIGRATE_MOVABLE },
1937 };
1938
1939 #ifdef CONFIG_CMA
__rmqueue_cma_fallback(struct zone * zone,unsigned int order)1940 static __always_inline struct page *__rmqueue_cma_fallback(struct zone *zone,
1941 unsigned int order)
1942 {
1943 return __rmqueue_smallest(zone, order, MIGRATE_CMA);
1944 }
1945 #else
__rmqueue_cma_fallback(struct zone * zone,unsigned int order)1946 static inline struct page *__rmqueue_cma_fallback(struct zone *zone,
1947 unsigned int order) { return NULL; }
1948 #endif
1949
1950 /*
1951 * Move all free pages of a block to new type's freelist. Caller needs to
1952 * change the block type.
1953 */
__move_freepages_block(struct zone * zone,unsigned long start_pfn,int old_mt,int new_mt)1954 static int __move_freepages_block(struct zone *zone, unsigned long start_pfn,
1955 int old_mt, int new_mt)
1956 {
1957 struct page *page;
1958 unsigned long pfn, end_pfn;
1959 unsigned int order;
1960 int pages_moved = 0;
1961
1962 VM_WARN_ON(start_pfn & (pageblock_nr_pages - 1));
1963 end_pfn = pageblock_end_pfn(start_pfn);
1964
1965 for (pfn = start_pfn; pfn < end_pfn;) {
1966 page = pfn_to_page(pfn);
1967 if (!PageBuddy(page)) {
1968 pfn++;
1969 continue;
1970 }
1971
1972 /* Make sure we are not inadvertently changing nodes */
1973 VM_BUG_ON_PAGE(page_to_nid(page) != zone_to_nid(zone), page);
1974 VM_BUG_ON_PAGE(page_zone(page) != zone, page);
1975
1976 order = buddy_order(page);
1977
1978 move_to_free_list(page, zone, order, old_mt, new_mt);
1979
1980 pfn += 1 << order;
1981 pages_moved += 1 << order;
1982 }
1983
1984 return pages_moved;
1985 }
1986
prep_move_freepages_block(struct zone * zone,struct page * page,unsigned long * start_pfn,int * num_free,int * num_movable)1987 static bool prep_move_freepages_block(struct zone *zone, struct page *page,
1988 unsigned long *start_pfn,
1989 int *num_free, int *num_movable)
1990 {
1991 unsigned long pfn, start, end;
1992
1993 pfn = page_to_pfn(page);
1994 start = pageblock_start_pfn(pfn);
1995 end = pageblock_end_pfn(pfn);
1996
1997 /*
1998 * The caller only has the lock for @zone, don't touch ranges
1999 * that straddle into other zones. While we could move part of
2000 * the range that's inside the zone, this call is usually
2001 * accompanied by other operations such as migratetype updates
2002 * which also should be locked.
2003 */
2004 if (!zone_spans_pfn(zone, start))
2005 return false;
2006 if (!zone_spans_pfn(zone, end - 1))
2007 return false;
2008
2009 *start_pfn = start;
2010
2011 if (num_free) {
2012 *num_free = 0;
2013 *num_movable = 0;
2014 for (pfn = start; pfn < end;) {
2015 page = pfn_to_page(pfn);
2016 if (PageBuddy(page)) {
2017 int nr = 1 << buddy_order(page);
2018
2019 *num_free += nr;
2020 pfn += nr;
2021 continue;
2022 }
2023 /*
2024 * We assume that pages that could be isolated for
2025 * migration are movable. But we don't actually try
2026 * isolating, as that would be expensive.
2027 */
2028 if (PageLRU(page) || page_has_movable_ops(page))
2029 (*num_movable)++;
2030 pfn++;
2031 }
2032 }
2033
2034 return true;
2035 }
2036
move_freepages_block(struct zone * zone,struct page * page,int old_mt,int new_mt)2037 static int move_freepages_block(struct zone *zone, struct page *page,
2038 int old_mt, int new_mt)
2039 {
2040 unsigned long start_pfn;
2041 int res;
2042
2043 if (!prep_move_freepages_block(zone, page, &start_pfn, NULL, NULL))
2044 return -1;
2045
2046 res = __move_freepages_block(zone, start_pfn, old_mt, new_mt);
2047 set_pageblock_migratetype(pfn_to_page(start_pfn), new_mt);
2048
2049 return res;
2050
2051 }
2052
2053 #ifdef CONFIG_MEMORY_ISOLATION
2054 /* Look for a buddy that straddles start_pfn */
find_large_buddy(unsigned long start_pfn)2055 static unsigned long find_large_buddy(unsigned long start_pfn)
2056 {
2057 /*
2058 * If start_pfn is not an order-0 PageBuddy, next PageBuddy containing
2059 * start_pfn has minimal order of __ffs(start_pfn) + 1. Start checking
2060 * the order with __ffs(start_pfn). If start_pfn is order-0 PageBuddy,
2061 * the starting order does not matter.
2062 */
2063 int order = start_pfn ? __ffs(start_pfn) : MAX_PAGE_ORDER;
2064 struct page *page;
2065 unsigned long pfn = start_pfn;
2066
2067 while (!PageBuddy(page = pfn_to_page(pfn))) {
2068 /* Nothing found */
2069 if (++order > MAX_PAGE_ORDER)
2070 return start_pfn;
2071 pfn &= ~0UL << order;
2072 }
2073
2074 /*
2075 * Found a preceding buddy, but does it straddle?
2076 */
2077 if (pfn + (1 << buddy_order(page)) > start_pfn)
2078 return pfn;
2079
2080 /* Nothing found */
2081 return start_pfn;
2082 }
2083
toggle_pageblock_isolate(struct page * page,bool isolate)2084 static inline void toggle_pageblock_isolate(struct page *page, bool isolate)
2085 {
2086 if (isolate)
2087 set_pageblock_isolate(page);
2088 else
2089 clear_pageblock_isolate(page);
2090 }
2091
2092 /**
2093 * __move_freepages_block_isolate - move free pages in block for page isolation
2094 * @zone: the zone
2095 * @page: the pageblock page
2096 * @isolate: to isolate the given pageblock or unisolate it
2097 *
2098 * This is similar to move_freepages_block(), but handles the special
2099 * case encountered in page isolation, where the block of interest
2100 * might be part of a larger buddy spanning multiple pageblocks.
2101 *
2102 * Unlike the regular page allocator path, which moves pages while
2103 * stealing buddies off the freelist, page isolation is interested in
2104 * arbitrary pfn ranges that may have overlapping buddies on both ends.
2105 *
2106 * This function handles that. Straddling buddies are split into
2107 * individual pageblocks. Only the block of interest is moved.
2108 *
2109 * Returns %true if pages could be moved, %false otherwise.
2110 */
__move_freepages_block_isolate(struct zone * zone,struct page * page,bool isolate)2111 static bool __move_freepages_block_isolate(struct zone *zone,
2112 struct page *page, bool isolate)
2113 {
2114 unsigned long start_pfn, buddy_pfn;
2115 int from_mt;
2116 int to_mt;
2117 struct page *buddy;
2118
2119 if (isolate == get_pageblock_isolate(page)) {
2120 VM_WARN_ONCE(1, "%s a pageblock that is already in that state",
2121 isolate ? "Isolate" : "Unisolate");
2122 return false;
2123 }
2124
2125 if (!prep_move_freepages_block(zone, page, &start_pfn, NULL, NULL))
2126 return false;
2127
2128 /* No splits needed if buddies can't span multiple blocks */
2129 if (pageblock_order == MAX_PAGE_ORDER)
2130 goto move;
2131
2132 buddy_pfn = find_large_buddy(start_pfn);
2133 buddy = pfn_to_page(buddy_pfn);
2134 /* We're a part of a larger buddy */
2135 if (PageBuddy(buddy) && buddy_order(buddy) > pageblock_order) {
2136 int order = buddy_order(buddy);
2137
2138 del_page_from_free_list(buddy, zone, order,
2139 get_pfnblock_migratetype(buddy, buddy_pfn));
2140 toggle_pageblock_isolate(page, isolate);
2141 split_large_buddy(zone, buddy, buddy_pfn, order, FPI_NONE);
2142 return true;
2143 }
2144
2145 move:
2146 /* Use PAGEBLOCK_MIGRATETYPE_MASK to get non-isolate migratetype */
2147 if (isolate) {
2148 from_mt = __get_pfnblock_flags_mask(page, page_to_pfn(page),
2149 PAGEBLOCK_MIGRATETYPE_MASK);
2150 to_mt = MIGRATE_ISOLATE;
2151 } else {
2152 from_mt = MIGRATE_ISOLATE;
2153 to_mt = __get_pfnblock_flags_mask(page, page_to_pfn(page),
2154 PAGEBLOCK_MIGRATETYPE_MASK);
2155 }
2156
2157 __move_freepages_block(zone, start_pfn, from_mt, to_mt);
2158 toggle_pageblock_isolate(pfn_to_page(start_pfn), isolate);
2159
2160 return true;
2161 }
2162
pageblock_isolate_and_move_free_pages(struct zone * zone,struct page * page)2163 bool pageblock_isolate_and_move_free_pages(struct zone *zone, struct page *page)
2164 {
2165 return __move_freepages_block_isolate(zone, page, true);
2166 }
2167
pageblock_unisolate_and_move_free_pages(struct zone * zone,struct page * page)2168 bool pageblock_unisolate_and_move_free_pages(struct zone *zone, struct page *page)
2169 {
2170 return __move_freepages_block_isolate(zone, page, false);
2171 }
2172
2173 #endif /* CONFIG_MEMORY_ISOLATION */
2174
boost_watermark(struct zone * zone)2175 static inline bool boost_watermark(struct zone *zone)
2176 {
2177 unsigned long max_boost;
2178
2179 if (!watermark_boost_factor)
2180 return false;
2181 /*
2182 * Don't bother in zones that are unlikely to produce results.
2183 * On small machines, including kdump capture kernels running
2184 * in a small area, boosting the watermark can cause an out of
2185 * memory situation immediately.
2186 */
2187 if ((pageblock_nr_pages * 4) > zone_managed_pages(zone))
2188 return false;
2189
2190 max_boost = mult_frac(zone->_watermark[WMARK_HIGH],
2191 watermark_boost_factor, 10000);
2192
2193 /*
2194 * high watermark may be uninitialised if fragmentation occurs
2195 * very early in boot so do not boost. We do not fall
2196 * through and boost by pageblock_nr_pages as failing
2197 * allocations that early means that reclaim is not going
2198 * to help and it may even be impossible to reclaim the
2199 * boosted watermark resulting in a hang.
2200 */
2201 if (!max_boost)
2202 return false;
2203
2204 max_boost = max(pageblock_nr_pages, max_boost);
2205
2206 zone->watermark_boost = min(zone->watermark_boost + pageblock_nr_pages,
2207 max_boost);
2208
2209 return true;
2210 }
2211
2212 /*
2213 * When we are falling back to another migratetype during allocation, should we
2214 * try to claim an entire block to satisfy further allocations, instead of
2215 * polluting multiple pageblocks?
2216 */
should_try_claim_block(unsigned int order,int start_mt)2217 static bool should_try_claim_block(unsigned int order, int start_mt)
2218 {
2219 /*
2220 * Leaving this order check is intended, although there is
2221 * relaxed order check in next check. The reason is that
2222 * we can actually claim the whole pageblock if this condition met,
2223 * but, below check doesn't guarantee it and that is just heuristic
2224 * so could be changed anytime.
2225 */
2226 if (order >= pageblock_order)
2227 return true;
2228
2229 /*
2230 * Above a certain threshold, always try to claim, as it's likely there
2231 * will be more free pages in the pageblock.
2232 */
2233 if (order >= pageblock_order / 2)
2234 return true;
2235
2236 /*
2237 * Unmovable/reclaimable allocations would cause permanent
2238 * fragmentations if they fell back to allocating from a movable block
2239 * (polluting it), so we try to claim the whole block regardless of the
2240 * allocation size. Later movable allocations can always steal from this
2241 * block, which is less problematic.
2242 */
2243 if (start_mt == MIGRATE_RECLAIMABLE || start_mt == MIGRATE_UNMOVABLE)
2244 return true;
2245
2246 if (page_group_by_mobility_disabled)
2247 return true;
2248
2249 /*
2250 * Movable pages won't cause permanent fragmentation, so when you alloc
2251 * small pages, we just need to temporarily steal unmovable or
2252 * reclaimable pages that are closest to the request size. After a
2253 * while, memory compaction may occur to form large contiguous pages,
2254 * and the next movable allocation may not need to steal.
2255 */
2256 return false;
2257 }
2258
2259 /*
2260 * Check whether there is a suitable fallback freepage with requested order.
2261 * If claimable is true, this function returns fallback_mt only if
2262 * we would do this whole-block claiming. This would help to reduce
2263 * fragmentation due to mixed migratetype pages in one pageblock.
2264 */
2265 enum fallback_result
find_suitable_fallback(struct free_area * area,unsigned int order,int migratetype,bool claimable,int * mt_out)2266 find_suitable_fallback(struct free_area *area, unsigned int order,
2267 int migratetype, bool claimable, int *mt_out)
2268 {
2269 int i;
2270
2271 if (claimable && !should_try_claim_block(order, migratetype))
2272 return FALLBACK_NOCLAIM;
2273
2274 if (area->nr_free == 0)
2275 return FALLBACK_EMPTY;
2276
2277 for (i = 0; i < MIGRATE_PCPTYPES - 1 ; i++) {
2278 int fallback_mt = fallbacks[migratetype][i];
2279
2280 if (!free_area_empty(area, fallback_mt)) {
2281 if (mt_out)
2282 *mt_out = fallback_mt;
2283 return FALLBACK_FOUND;
2284 }
2285 }
2286
2287 return FALLBACK_EMPTY;
2288 }
2289
2290 /*
2291 * This function implements actual block claiming behaviour. If order is large
2292 * enough, we can claim the whole pageblock for the requested migratetype. If
2293 * not, we check the pageblock for constituent pages; if at least half of the
2294 * pages are free or compatible, we can still claim the whole block, so pages
2295 * freed in the future will be put on the correct free list.
2296 */
2297 static struct page *
try_to_claim_block(struct zone * zone,struct page * page,int current_order,int order,int start_type,int block_type,unsigned int alloc_flags)2298 try_to_claim_block(struct zone *zone, struct page *page,
2299 int current_order, int order, int start_type,
2300 int block_type, unsigned int alloc_flags)
2301 {
2302 int free_pages, movable_pages, alike_pages;
2303 unsigned long start_pfn;
2304
2305 /* Take ownership for orders >= pageblock_order */
2306 if (current_order >= pageblock_order) {
2307 unsigned int nr_added;
2308
2309 del_page_from_free_list(page, zone, current_order, block_type);
2310 change_pageblock_range(page, current_order, start_type);
2311 nr_added = expand(zone, page, order, current_order, start_type);
2312 account_freepages(zone, nr_added, start_type);
2313 return page;
2314 }
2315
2316 /*
2317 * Boost watermarks to increase reclaim pressure to reduce the
2318 * likelihood of future fallbacks. Wake kswapd now as the node
2319 * may be balanced overall and kswapd will not wake naturally.
2320 */
2321 if (boost_watermark(zone) && (alloc_flags & ALLOC_KSWAPD))
2322 set_bit(ZONE_BOOSTED_WATERMARK, &zone->flags);
2323
2324 /* moving whole block can fail due to zone boundary conditions */
2325 if (!prep_move_freepages_block(zone, page, &start_pfn, &free_pages,
2326 &movable_pages))
2327 return NULL;
2328
2329 /*
2330 * Determine how many pages are compatible with our allocation.
2331 * For movable allocation, it's the number of movable pages which
2332 * we just obtained. For other types it's a bit more tricky.
2333 */
2334 if (start_type == MIGRATE_MOVABLE) {
2335 alike_pages = movable_pages;
2336 } else {
2337 /*
2338 * If we are falling back a RECLAIMABLE or UNMOVABLE allocation
2339 * to MOVABLE pageblock, consider all non-movable pages as
2340 * compatible. If it's UNMOVABLE falling back to RECLAIMABLE or
2341 * vice versa, be conservative since we can't distinguish the
2342 * exact migratetype of non-movable pages.
2343 */
2344 if (block_type == MIGRATE_MOVABLE)
2345 alike_pages = pageblock_nr_pages
2346 - (free_pages + movable_pages);
2347 else
2348 alike_pages = 0;
2349 }
2350 /*
2351 * If a sufficient number of pages in the block are either free or of
2352 * compatible migratability as our allocation, claim the whole block.
2353 */
2354 if (free_pages + alike_pages >= (1 << (pageblock_order-1)) ||
2355 page_group_by_mobility_disabled) {
2356 __move_freepages_block(zone, start_pfn, block_type, start_type);
2357 set_pageblock_migratetype(pfn_to_page(start_pfn), start_type);
2358 return __rmqueue_smallest(zone, order, start_type);
2359 }
2360
2361 return NULL;
2362 }
2363
2364 /*
2365 * Try to allocate from some fallback migratetype by claiming the entire block,
2366 * i.e. converting it to the allocation's start migratetype.
2367 *
2368 * The use of signed ints for order and current_order is a deliberate
2369 * deviation from the rest of this file, to make the for loop
2370 * condition simpler.
2371 */
2372 static __always_inline struct page *
__rmqueue_claim(struct zone * zone,int order,int start_migratetype,unsigned int alloc_flags)2373 __rmqueue_claim(struct zone *zone, int order, int start_migratetype,
2374 unsigned int alloc_flags)
2375 {
2376 struct free_area *area;
2377 int current_order;
2378 int min_order = order;
2379 struct page *page;
2380 int fallback_mt;
2381
2382 /*
2383 * Do not steal pages from freelists belonging to other pageblocks
2384 * i.e. orders < pageblock_order. If there are no local zones free,
2385 * the zonelists will be reiterated without ALLOC_NOFRAGMENT.
2386 */
2387 if (order < pageblock_order && alloc_flags & ALLOC_NOFRAGMENT)
2388 min_order = pageblock_order;
2389
2390 /*
2391 * Find the largest available free page in the other list. This roughly
2392 * approximates finding the pageblock with the most free pages, which
2393 * would be too costly to do exactly.
2394 */
2395 for (current_order = MAX_PAGE_ORDER; current_order >= min_order;
2396 --current_order) {
2397 enum fallback_result result;
2398
2399 area = &(zone->free_area[current_order]);
2400 result = find_suitable_fallback(area, current_order,
2401 start_migratetype, true, &fallback_mt);
2402
2403 if (result == FALLBACK_EMPTY)
2404 continue;
2405
2406 if (result == FALLBACK_NOCLAIM)
2407 break;
2408
2409 page = get_page_from_free_area(area, fallback_mt);
2410 page = try_to_claim_block(zone, page, current_order, order,
2411 start_migratetype, fallback_mt,
2412 alloc_flags);
2413 if (page) {
2414 trace_mm_page_alloc_extfrag(page, order, current_order,
2415 start_migratetype, fallback_mt);
2416 return page;
2417 }
2418 }
2419
2420 return NULL;
2421 }
2422
2423 /*
2424 * Try to steal a single page from some fallback migratetype. Leave the rest of
2425 * the block as its current migratetype, potentially causing fragmentation.
2426 */
2427 static __always_inline struct page *
__rmqueue_steal(struct zone * zone,int order,int start_migratetype)2428 __rmqueue_steal(struct zone *zone, int order, int start_migratetype)
2429 {
2430 struct free_area *area;
2431 int current_order;
2432 struct page *page;
2433 int fallback_mt;
2434
2435 for (current_order = order; current_order < NR_PAGE_ORDERS; current_order++) {
2436 enum fallback_result result;
2437
2438 area = &(zone->free_area[current_order]);
2439 result = find_suitable_fallback(area, current_order, start_migratetype,
2440 false, &fallback_mt);
2441 if (result == FALLBACK_EMPTY)
2442 continue;
2443
2444 page = get_page_from_free_area(area, fallback_mt);
2445 page_del_and_expand(zone, page, order, current_order, fallback_mt);
2446 trace_mm_page_alloc_extfrag(page, order, current_order,
2447 start_migratetype, fallback_mt);
2448 return page;
2449 }
2450
2451 return NULL;
2452 }
2453
2454 enum rmqueue_mode {
2455 RMQUEUE_NORMAL,
2456 RMQUEUE_CMA,
2457 RMQUEUE_CLAIM,
2458 RMQUEUE_STEAL,
2459 };
2460
2461 /*
2462 * Do the hard work of removing an element from the buddy allocator.
2463 * Call me with the zone->lock already held.
2464 */
2465 static __always_inline struct page *
__rmqueue(struct zone * zone,unsigned int order,int migratetype,unsigned int alloc_flags,enum rmqueue_mode * mode)2466 __rmqueue(struct zone *zone, unsigned int order, int migratetype,
2467 unsigned int alloc_flags, enum rmqueue_mode *mode)
2468 {
2469 struct page *page;
2470
2471 if (IS_ENABLED(CONFIG_CMA)) {
2472 /*
2473 * Balance movable allocations between regular and CMA areas by
2474 * allocating from CMA when over half of the zone's free memory
2475 * is in the CMA area.
2476 */
2477 if (alloc_flags & ALLOC_CMA &&
2478 zone_page_state(zone, NR_FREE_CMA_PAGES) >
2479 zone_page_state(zone, NR_FREE_PAGES) / 2) {
2480 page = __rmqueue_cma_fallback(zone, order);
2481 if (page)
2482 return page;
2483 }
2484 }
2485
2486 /*
2487 * First try the freelists of the requested migratetype, then try
2488 * fallbacks modes with increasing levels of fragmentation risk.
2489 *
2490 * The fallback logic is expensive and rmqueue_bulk() calls in
2491 * a loop with the zone->lock held, meaning the freelists are
2492 * not subject to any outside changes. Remember in *mode where
2493 * we found pay dirt, to save us the search on the next call.
2494 */
2495 switch (*mode) {
2496 case RMQUEUE_NORMAL:
2497 page = __rmqueue_smallest(zone, order, migratetype);
2498 if (page)
2499 return page;
2500 fallthrough;
2501 case RMQUEUE_CMA:
2502 if (alloc_flags & ALLOC_CMA) {
2503 page = __rmqueue_cma_fallback(zone, order);
2504 if (page) {
2505 *mode = RMQUEUE_CMA;
2506 return page;
2507 }
2508 }
2509 fallthrough;
2510 case RMQUEUE_CLAIM:
2511 page = __rmqueue_claim(zone, order, migratetype, alloc_flags);
2512 if (page) {
2513 /* Replenished preferred freelist, back to normal mode. */
2514 *mode = RMQUEUE_NORMAL;
2515 return page;
2516 }
2517 fallthrough;
2518 case RMQUEUE_STEAL:
2519 if (!(alloc_flags & ALLOC_NOFRAGMENT)) {
2520 page = __rmqueue_steal(zone, order, migratetype);
2521 if (page) {
2522 *mode = RMQUEUE_STEAL;
2523 return page;
2524 }
2525 }
2526 }
2527 return NULL;
2528 }
2529
2530 /*
2531 * Obtain a specified number of elements from the buddy allocator, all under
2532 * a single hold of the lock, for efficiency. Add them to the supplied list.
2533 * Returns the number of new pages which were placed at *list.
2534 */
rmqueue_bulk(struct zone * zone,unsigned int order,unsigned long count,struct list_head * list,int migratetype,unsigned int alloc_flags)2535 static int rmqueue_bulk(struct zone *zone, unsigned int order,
2536 unsigned long count, struct list_head *list,
2537 int migratetype, unsigned int alloc_flags)
2538 {
2539 enum rmqueue_mode rmqm = RMQUEUE_NORMAL;
2540 unsigned long flags;
2541 int i;
2542
2543 if (unlikely(alloc_flags & ALLOC_NOLOCK)) {
2544 if (!spin_trylock_irqsave(&zone->lock, flags))
2545 return 0;
2546 } else {
2547 spin_lock_irqsave(&zone->lock, flags);
2548 }
2549 for (i = 0; i < count; ++i) {
2550 struct page *page = __rmqueue(zone, order, migratetype,
2551 alloc_flags, &rmqm);
2552 if (unlikely(page == NULL))
2553 break;
2554
2555 /*
2556 * Split buddy pages returned by expand() are received here in
2557 * physical page order. The page is added to the tail of
2558 * caller's list. From the callers perspective, the linked list
2559 * is ordered by page number under some conditions. This is
2560 * useful for IO devices that can forward direction from the
2561 * head, thus also in the physical page order. This is useful
2562 * for IO devices that can merge IO requests if the physical
2563 * pages are ordered properly.
2564 */
2565 list_add_tail(&page->pcp_list, list);
2566 }
2567 spin_unlock_irqrestore(&zone->lock, flags);
2568
2569 return i;
2570 }
2571
2572 /*
2573 * Called from the vmstat counter updater to decay the PCP high.
2574 * Return whether there are addition works to do.
2575 */
decay_pcp_high(struct zone * zone,struct per_cpu_pages * pcp)2576 bool decay_pcp_high(struct zone *zone, struct per_cpu_pages *pcp)
2577 {
2578 int high_min, to_drain, to_drain_batched, batch;
2579 bool todo = false;
2580
2581 high_min = READ_ONCE(pcp->high_min);
2582 batch = READ_ONCE(pcp->batch);
2583 /*
2584 * Decrease pcp->high periodically to try to free possible
2585 * idle PCP pages. And, avoid to free too many pages to
2586 * control latency. This caps pcp->high decrement too.
2587 */
2588 if (pcp->high > high_min) {
2589 pcp->high = max3(pcp->count - (batch << CONFIG_PCP_BATCH_SCALE_MAX),
2590 pcp->high - (pcp->high >> 3), high_min);
2591 if (pcp->high > high_min)
2592 todo = true;
2593 }
2594
2595 to_drain = pcp->count - pcp->high;
2596 while (to_drain > 0) {
2597 to_drain_batched = min(to_drain, batch);
2598 pcp_spin_lock_nopin(pcp);
2599 free_pcppages_bulk(zone, to_drain_batched, pcp, 0);
2600 pcp_spin_unlock_nopin(pcp);
2601 todo = true;
2602
2603 to_drain -= to_drain_batched;
2604 }
2605
2606 return todo;
2607 }
2608
2609 #ifdef CONFIG_NUMA
2610 /*
2611 * Called from the vmstat counter updater to drain pagesets of this
2612 * currently executing processor on remote nodes after they have
2613 * expired.
2614 */
drain_zone_pages(struct zone * zone,struct per_cpu_pages * pcp)2615 void drain_zone_pages(struct zone *zone, struct per_cpu_pages *pcp)
2616 {
2617 int to_drain, batch;
2618
2619 batch = READ_ONCE(pcp->batch);
2620 to_drain = min(pcp->count, batch);
2621 if (to_drain > 0) {
2622 pcp_spin_lock_nopin(pcp);
2623 free_pcppages_bulk(zone, to_drain, pcp, 0);
2624 pcp_spin_unlock_nopin(pcp);
2625 }
2626 }
2627 #endif
2628
2629 /*
2630 * Drain pcplists of the indicated processor and zone.
2631 */
drain_pages_zone(unsigned int cpu,struct zone * zone)2632 static void drain_pages_zone(unsigned int cpu, struct zone *zone)
2633 {
2634 struct per_cpu_pages *pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu);
2635 int count;
2636
2637 do {
2638 pcp_spin_lock_nopin(pcp);
2639 count = pcp->count;
2640 if (count) {
2641 int to_drain = min(count,
2642 pcp->batch << CONFIG_PCP_BATCH_SCALE_MAX);
2643
2644 free_pcppages_bulk(zone, to_drain, pcp, 0);
2645 count -= to_drain;
2646 }
2647 pcp_spin_unlock_nopin(pcp);
2648 } while (count);
2649 }
2650
2651 /*
2652 * Drain pcplists of all zones on the indicated processor.
2653 */
drain_pages(unsigned int cpu)2654 static void drain_pages(unsigned int cpu)
2655 {
2656 struct zone *zone;
2657
2658 for_each_populated_zone(zone) {
2659 drain_pages_zone(cpu, zone);
2660 }
2661 }
2662
2663 /*
2664 * Spill all of this CPU's per-cpu pages back into the buddy allocator.
2665 */
drain_local_pages(struct zone * zone)2666 void drain_local_pages(struct zone *zone)
2667 {
2668 int cpu = smp_processor_id();
2669
2670 if (zone)
2671 drain_pages_zone(cpu, zone);
2672 else
2673 drain_pages(cpu);
2674 }
2675
2676 /*
2677 * The implementation of drain_all_pages(), exposing an extra parameter to
2678 * drain on all cpus.
2679 *
2680 * drain_all_pages() is optimized to only execute on cpus where pcplists are
2681 * not empty. The check for non-emptiness can however race with a free to
2682 * pcplist that has not yet increased the pcp->count from 0 to 1. Callers
2683 * that need the guarantee that every CPU has drained can disable the
2684 * optimizing racy check.
2685 */
__drain_all_pages(struct zone * zone,bool force_all_cpus)2686 static void __drain_all_pages(struct zone *zone, bool force_all_cpus)
2687 {
2688 int cpu;
2689
2690 /*
2691 * Allocate in the BSS so we won't require allocation in
2692 * direct reclaim path for CONFIG_CPUMASK_OFFSTACK=y
2693 */
2694 static cpumask_t cpus_with_pcps;
2695
2696 /*
2697 * Do not drain if one is already in progress unless it's specific to
2698 * a zone. Such callers are primarily CMA and memory hotplug and need
2699 * the drain to be complete when the call returns.
2700 */
2701 if (unlikely(!mutex_trylock(&pcpu_drain_mutex))) {
2702 if (!zone)
2703 return;
2704 mutex_lock(&pcpu_drain_mutex);
2705 }
2706
2707 /*
2708 * We don't care about racing with CPU hotplug event
2709 * as offline notification will cause the notified
2710 * cpu to drain that CPU pcps and on_each_cpu_mask
2711 * disables preemption as part of its processing
2712 */
2713 for_each_online_cpu(cpu) {
2714 struct per_cpu_pages *pcp;
2715 struct zone *z;
2716 bool has_pcps = false;
2717
2718 if (force_all_cpus) {
2719 /*
2720 * The pcp.count check is racy, some callers need a
2721 * guarantee that no cpu is missed.
2722 */
2723 has_pcps = true;
2724 } else if (zone) {
2725 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu);
2726 if (pcp->count)
2727 has_pcps = true;
2728 } else {
2729 for_each_populated_zone(z) {
2730 pcp = per_cpu_ptr(z->per_cpu_pageset, cpu);
2731 if (pcp->count) {
2732 has_pcps = true;
2733 break;
2734 }
2735 }
2736 }
2737
2738 if (has_pcps)
2739 cpumask_set_cpu(cpu, &cpus_with_pcps);
2740 else
2741 cpumask_clear_cpu(cpu, &cpus_with_pcps);
2742 }
2743
2744 for_each_cpu(cpu, &cpus_with_pcps) {
2745 if (zone)
2746 drain_pages_zone(cpu, zone);
2747 else
2748 drain_pages(cpu);
2749 }
2750
2751 mutex_unlock(&pcpu_drain_mutex);
2752 }
2753
2754 /*
2755 * Spill all the per-cpu pages from all CPUs back into the buddy allocator.
2756 *
2757 * When zone parameter is non-NULL, spill just the single zone's pages.
2758 */
drain_all_pages(struct zone * zone)2759 void drain_all_pages(struct zone *zone)
2760 {
2761 __drain_all_pages(zone, false);
2762 }
2763
nr_pcp_free(struct per_cpu_pages * pcp,int batch,int high,bool free_high)2764 static int nr_pcp_free(struct per_cpu_pages *pcp, int batch, int high, bool free_high)
2765 {
2766 int min_nr_free, max_nr_free;
2767
2768 /* Free as much as possible if batch freeing high-order pages. */
2769 if (unlikely(free_high))
2770 return min(pcp->count, batch << CONFIG_PCP_BATCH_SCALE_MAX);
2771
2772 /* Check for PCP disabled or boot pageset */
2773 if (unlikely(high < batch))
2774 return 1;
2775
2776 /* Leave at least pcp->batch pages on the list */
2777 min_nr_free = batch;
2778 max_nr_free = high - batch;
2779
2780 /*
2781 * Increase the batch number to the number of the consecutive
2782 * freed pages to reduce zone lock contention.
2783 */
2784 batch = clamp_t(int, pcp->free_count, min_nr_free, max_nr_free);
2785
2786 return batch;
2787 }
2788
nr_pcp_high(struct per_cpu_pages * pcp,struct zone * zone,int batch,bool free_high)2789 static int nr_pcp_high(struct per_cpu_pages *pcp, struct zone *zone,
2790 int batch, bool free_high)
2791 {
2792 int high, high_min, high_max;
2793
2794 high_min = READ_ONCE(pcp->high_min);
2795 high_max = READ_ONCE(pcp->high_max);
2796 high = pcp->high = clamp(pcp->high, high_min, high_max);
2797
2798 if (unlikely(!high))
2799 return 0;
2800
2801 if (unlikely(free_high)) {
2802 pcp->high = max(high - (batch << CONFIG_PCP_BATCH_SCALE_MAX),
2803 high_min);
2804 return 0;
2805 }
2806
2807 /*
2808 * If reclaim is active, limit the number of pages that can be
2809 * stored on pcp lists
2810 */
2811 if (test_bit(ZONE_RECLAIM_ACTIVE, &zone->flags)) {
2812 int free_count = max_t(int, pcp->free_count, batch);
2813
2814 pcp->high = max(high - free_count, high_min);
2815 return min(batch << 2, pcp->high);
2816 }
2817
2818 if (high_min == high_max)
2819 return high;
2820
2821 if (test_bit(ZONE_BELOW_HIGH, &zone->flags)) {
2822 int free_count = max_t(int, pcp->free_count, batch);
2823
2824 pcp->high = max(high - free_count, high_min);
2825 high = max(pcp->count, high_min);
2826 } else if (pcp->count >= high) {
2827 int need_high = pcp->free_count + batch;
2828
2829 /* pcp->high should be large enough to hold batch freed pages */
2830 if (pcp->high < need_high)
2831 pcp->high = clamp(need_high, high_min, high_max);
2832 }
2833
2834 return high;
2835 }
2836
2837 /*
2838 * Tune pcp alloc factor and adjust count & free_count. Free pages to bring the
2839 * pcp's watermarks below high.
2840 *
2841 * May return a freed pcp, if during page freeing the pcp spinlock cannot be
2842 * reacquired. Return true if pcp is locked, false otherwise.
2843 */
free_frozen_page_commit(struct zone * zone,struct per_cpu_pages * pcp,struct page * page,int migratetype,unsigned int order,fpi_t fpi_flags)2844 static bool free_frozen_page_commit(struct zone *zone,
2845 struct per_cpu_pages *pcp, struct page *page, int migratetype,
2846 unsigned int order, fpi_t fpi_flags)
2847 {
2848 int high, batch;
2849 int to_free, to_free_batched;
2850 int pindex;
2851 int cpu = smp_processor_id();
2852 int ret = true;
2853 bool free_high = false;
2854
2855 /*
2856 * On freeing, reduce the number of pages that are batch allocated.
2857 * See nr_pcp_alloc() where alloc_factor is increased for subsequent
2858 * allocations.
2859 */
2860 pcp->alloc_factor >>= 1;
2861 __count_vm_events(PGFREE, 1 << order);
2862 pindex = order_to_pindex(migratetype, order);
2863 list_add(&page->pcp_list, &pcp->lists[pindex]);
2864 pcp->count += 1 << order;
2865
2866 batch = READ_ONCE(pcp->batch);
2867 /*
2868 * As high-order pages other than THP's stored on PCP can contribute
2869 * to fragmentation, limit the number stored when PCP is heavily
2870 * freeing without allocation. The remainder after bulk freeing
2871 * stops will be drained from vmstat refresh context.
2872 */
2873 if (order && order <= PAGE_ALLOC_COSTLY_ORDER) {
2874 free_high = (pcp->free_count >= (batch + pcp->high_min / 2) &&
2875 (pcp->flags & PCPF_PREV_FREE_HIGH_ORDER) &&
2876 (!(pcp->flags & PCPF_FREE_HIGH_BATCH) ||
2877 pcp->count >= batch));
2878 pcp->flags |= PCPF_PREV_FREE_HIGH_ORDER;
2879 } else if (pcp->flags & PCPF_PREV_FREE_HIGH_ORDER) {
2880 pcp->flags &= ~PCPF_PREV_FREE_HIGH_ORDER;
2881 }
2882 if (pcp->free_count < (batch << CONFIG_PCP_BATCH_SCALE_MAX))
2883 pcp->free_count += (1 << order);
2884
2885 if (unlikely(fpi_flags & FPI_NOLOCK)) {
2886 /*
2887 * Do not attempt to take a zone lock. Let pcp->count get
2888 * over high mark temporarily.
2889 */
2890 return true;
2891 }
2892
2893 high = nr_pcp_high(pcp, zone, batch, free_high);
2894 if (pcp->count < high)
2895 return true;
2896
2897 to_free = nr_pcp_free(pcp, batch, high, free_high);
2898 while (to_free > 0 && pcp->count > 0) {
2899 to_free_batched = min(to_free, batch);
2900 free_pcppages_bulk(zone, to_free_batched, pcp, pindex);
2901 to_free -= to_free_batched;
2902
2903 if (to_free == 0 || pcp->count == 0)
2904 break;
2905
2906 pcp_spin_unlock(pcp);
2907
2908 pcp = pcp_spin_trylock(zone->per_cpu_pageset);
2909 if (!pcp) {
2910 ret = false;
2911 break;
2912 }
2913
2914 /*
2915 * Check if this thread has been migrated to a different CPU.
2916 * If that is the case, give up and indicate that the pcp is
2917 * returned in an unlocked state.
2918 */
2919 if (smp_processor_id() != cpu) {
2920 pcp_spin_unlock(pcp);
2921 ret = false;
2922 break;
2923 }
2924 }
2925
2926 if (test_bit(ZONE_BELOW_HIGH, &zone->flags) &&
2927 zone_watermark_ok(zone, 0, high_wmark_pages(zone),
2928 ZONE_MOVABLE, 0)) {
2929 struct pglist_data *pgdat = zone->zone_pgdat;
2930 clear_bit(ZONE_BELOW_HIGH, &zone->flags);
2931
2932 /*
2933 * Assume that memory pressure on this node is gone and may be
2934 * in a reclaimable state. If a memory fallback node exists,
2935 * direct reclaim may not have been triggered, causing a
2936 * 'hopeless node' to stay in that state for a while. Let
2937 * kswapd work again by resetting kswapd_failures.
2938 */
2939 if (kswapd_test_hopeless(pgdat) &&
2940 next_memory_node(pgdat->node_id) < MAX_NUMNODES)
2941 kswapd_clear_hopeless(pgdat, KSWAPD_CLEAR_HOPELESS_PCP);
2942 }
2943 return ret;
2944 }
2945
2946 /*
2947 * Free a pcp page
2948 */
__free_frozen_pages(struct page * page,unsigned int order,fpi_t fpi_flags)2949 static void __free_frozen_pages(struct page *page, unsigned int order,
2950 fpi_t fpi_flags)
2951 {
2952 struct per_cpu_pages *pcp;
2953 struct zone *zone;
2954 unsigned long pfn = page_to_pfn(page);
2955 int migratetype;
2956
2957 if (!pcp_allowed_order(order)) {
2958 __free_pages_ok(page, order, fpi_flags);
2959 return;
2960 }
2961
2962 if (!__free_pages_prepare(page, order, fpi_flags))
2963 return;
2964
2965 /*
2966 * We only track unmovable, reclaimable and movable on pcp lists.
2967 * Place ISOLATE pages on the isolated list because they are being
2968 * offlined but treat HIGHATOMIC and CMA as movable pages so we can
2969 * get those areas back if necessary. Otherwise, we may have to free
2970 * excessively into the page allocator
2971 */
2972 zone = page_zone(page);
2973 migratetype = get_pfnblock_migratetype(page, pfn);
2974 if (unlikely(migratetype >= MIGRATE_PCPTYPES)) {
2975 if (unlikely(is_migrate_isolate(migratetype))) {
2976 free_one_page(zone, page, pfn, order, fpi_flags);
2977 return;
2978 }
2979 migratetype = MIGRATE_MOVABLE;
2980 }
2981
2982 if (unlikely((fpi_flags & FPI_NOLOCK) && !can_spin_trylock())) {
2983 add_page_to_zone_llist(zone, page, order);
2984 return;
2985 }
2986 pcp = pcp_spin_trylock(zone->per_cpu_pageset);
2987 if (pcp) {
2988 if (!free_frozen_page_commit(zone, pcp, page, migratetype,
2989 order, fpi_flags))
2990 return;
2991 pcp_spin_unlock(pcp);
2992 } else {
2993 free_one_page(zone, page, pfn, order, fpi_flags);
2994 }
2995 }
2996
free_frozen_pages(struct page * page,unsigned int order)2997 void free_frozen_pages(struct page *page, unsigned int order)
2998 {
2999 __free_frozen_pages(page, order, FPI_NONE);
3000 }
3001
free_frozen_pages_nolock(struct page * page,unsigned int order)3002 void free_frozen_pages_nolock(struct page *page, unsigned int order)
3003 {
3004 __free_frozen_pages(page, order, FPI_NOLOCK);
3005 }
3006
3007 /*
3008 * Free a batch of folios
3009 */
free_unref_folios(struct folio_batch * folios)3010 void free_unref_folios(struct folio_batch *folios)
3011 {
3012 struct per_cpu_pages *pcp = NULL;
3013 struct zone *locked_zone = NULL;
3014 int i, j;
3015
3016 /* Prepare folios for freeing */
3017 for (i = 0, j = 0; i < folios->nr; i++) {
3018 struct folio *folio = folios->folios[i];
3019 unsigned long pfn = folio_pfn(folio);
3020 unsigned int order = folio_order(folio);
3021
3022 if (!__free_pages_prepare(&folio->page, order, FPI_NONE))
3023 continue;
3024 /*
3025 * Free orders not handled on the PCP directly to the
3026 * allocator.
3027 */
3028 if (!pcp_allowed_order(order)) {
3029 free_one_page(folio_zone(folio), &folio->page,
3030 pfn, order, FPI_NONE);
3031 continue;
3032 }
3033 folio->private = (void *)(unsigned long)order;
3034 if (j != i)
3035 folios->folios[j] = folio;
3036 j++;
3037 }
3038 folios->nr = j;
3039
3040 for (i = 0; i < folios->nr; i++) {
3041 struct folio *folio = folios->folios[i];
3042 struct zone *zone = folio_zone(folio);
3043 unsigned long pfn = folio_pfn(folio);
3044 unsigned int order = (unsigned long)folio->private;
3045 int migratetype;
3046
3047 folio->private = NULL;
3048 migratetype = get_pfnblock_migratetype(&folio->page, pfn);
3049
3050 /* Different zone requires a different pcp lock */
3051 if (zone != locked_zone ||
3052 is_migrate_isolate(migratetype)) {
3053 if (pcp) {
3054 pcp_spin_unlock(pcp);
3055 locked_zone = NULL;
3056 pcp = NULL;
3057 }
3058
3059 /*
3060 * Free isolated pages directly to the
3061 * allocator, see comment in free_frozen_pages.
3062 */
3063 if (is_migrate_isolate(migratetype)) {
3064 free_one_page(zone, &folio->page, pfn,
3065 order, FPI_NONE);
3066 continue;
3067 }
3068
3069 /*
3070 * trylock is necessary as folios may be getting freed
3071 * from IRQ or SoftIRQ context after an IO completion.
3072 */
3073 pcp = pcp_spin_trylock(zone->per_cpu_pageset);
3074 if (unlikely(!pcp)) {
3075 free_one_page(zone, &folio->page, pfn,
3076 order, FPI_NONE);
3077 continue;
3078 }
3079 locked_zone = zone;
3080 }
3081
3082 /*
3083 * Non-isolated types over MIGRATE_PCPTYPES get added
3084 * to the MIGRATE_MOVABLE pcp list.
3085 */
3086 if (unlikely(migratetype >= MIGRATE_PCPTYPES))
3087 migratetype = MIGRATE_MOVABLE;
3088
3089 trace_mm_page_free_batched(&folio->page);
3090 if (!free_frozen_page_commit(zone, pcp, &folio->page,
3091 migratetype, order, FPI_NONE)) {
3092 pcp = NULL;
3093 locked_zone = NULL;
3094 }
3095 }
3096
3097 if (pcp)
3098 pcp_spin_unlock(pcp);
3099 folio_batch_reinit(folios);
3100 }
3101
__split_page(struct page * page,unsigned int order)3102 static void __split_page(struct page *page, unsigned int order)
3103 {
3104 VM_WARN_ON_PAGE(PageCompound(page), page);
3105
3106 split_page_owner(page, order, 0);
3107 pgalloc_tag_split(page_folio(page), order, 0);
3108 split_page_memcg(page, order);
3109 }
3110
3111 /*
3112 * split_page takes a non-compound higher-order page, and splits it into
3113 * n (1<<order) sub-pages: page[0..n]
3114 * Each sub-page must be freed individually.
3115 *
3116 * Note: this is probably too low level an operation for use in drivers.
3117 * Please consult with lkml before using this in your driver.
3118 */
split_page(struct page * page,unsigned int order)3119 void split_page(struct page *page, unsigned int order)
3120 {
3121 int i;
3122
3123 VM_WARN_ON_PAGE(!page_count(page), page);
3124
3125 for (i = 1; i < (1 << order); i++)
3126 set_page_refcounted(page + i);
3127
3128 __split_page(page, order);
3129 }
3130 EXPORT_SYMBOL_GPL(split_page);
3131
__isolate_free_page(struct page * page,unsigned int order)3132 int __isolate_free_page(struct page *page, unsigned int order)
3133 {
3134 struct zone *zone = page_zone(page);
3135 int mt = get_pageblock_migratetype(page);
3136
3137 if (!is_migrate_isolate(mt)) {
3138 unsigned long watermark;
3139 /*
3140 * Obey watermarks as if the page was being allocated. We can
3141 * emulate a high-order watermark check with a raised order-0
3142 * watermark, because we already know our high-order page
3143 * exists.
3144 */
3145 watermark = zone->_watermark[WMARK_MIN] + (1UL << order);
3146 if (!zone_watermark_ok(zone, 0, watermark, 0, ALLOC_CMA))
3147 return 0;
3148 }
3149
3150 del_page_from_free_list(page, zone, order, mt);
3151
3152 /*
3153 * Set the pageblock if the isolated page is at least half of a
3154 * pageblock
3155 */
3156 if (order >= pageblock_order - 1) {
3157 struct page *endpage = page + (1 << order) - 1;
3158 for (; page < endpage; page += pageblock_nr_pages) {
3159 int mt = get_pageblock_migratetype(page);
3160 /*
3161 * Only change normal pageblocks (i.e., they can merge
3162 * with others)
3163 */
3164 if (migratetype_is_mergeable(mt))
3165 move_freepages_block(zone, page, mt,
3166 MIGRATE_MOVABLE);
3167 }
3168 }
3169
3170 return 1UL << order;
3171 }
3172
3173 /**
3174 * __putback_isolated_page - Return a now-isolated page back where we got it
3175 * @page: Page that was isolated
3176 * @order: Order of the isolated page
3177 * @mt: The page's pageblock's migratetype
3178 *
3179 * This function is meant to return a page pulled from the free lists via
3180 * __isolate_free_page back to the free lists they were pulled from.
3181 */
__putback_isolated_page(struct page * page,unsigned int order,int mt)3182 void __putback_isolated_page(struct page *page, unsigned int order, int mt)
3183 {
3184 struct zone *zone = page_zone(page);
3185
3186 /* zone lock should be held when this function is called */
3187 lockdep_assert_held(&zone->lock);
3188
3189 /* Return isolated page to tail of freelist. */
3190 __free_one_page(page, page_to_pfn(page), zone, order, mt,
3191 FPI_SKIP_REPORT_NOTIFY | FPI_TO_TAIL);
3192 }
3193
3194 /*
3195 * Update NUMA hit/miss statistics
3196 */
zone_statistics(struct zone * preferred_zone,struct zone * z,long nr_account)3197 static inline void zone_statistics(struct zone *preferred_zone, struct zone *z,
3198 long nr_account)
3199 {
3200 #ifdef CONFIG_NUMA
3201 enum numa_stat_item local_stat = NUMA_LOCAL;
3202
3203 /* skip numa counters update if numa stats is disabled */
3204 if (!static_branch_likely(&vm_numa_stat_key))
3205 return;
3206
3207 if (zone_to_nid(z) != numa_node_id())
3208 local_stat = NUMA_OTHER;
3209
3210 if (zone_to_nid(z) == zone_to_nid(preferred_zone))
3211 __count_numa_events(z, NUMA_HIT, nr_account);
3212 else {
3213 __count_numa_events(z, NUMA_MISS, nr_account);
3214 __count_numa_events(preferred_zone, NUMA_FOREIGN, nr_account);
3215 }
3216 __count_numa_events(z, local_stat, nr_account);
3217 #endif
3218 }
3219
3220 static __always_inline
rmqueue_buddy(struct zone * preferred_zone,struct zone * zone,unsigned int order,unsigned int alloc_flags,int migratetype)3221 struct page *rmqueue_buddy(struct zone *preferred_zone, struct zone *zone,
3222 unsigned int order, unsigned int alloc_flags,
3223 int migratetype)
3224 {
3225 struct page *page;
3226 unsigned long flags;
3227
3228 do {
3229 page = NULL;
3230 if (unlikely(alloc_flags & ALLOC_NOLOCK)) {
3231 if (!spin_trylock_irqsave(&zone->lock, flags))
3232 return NULL;
3233 } else {
3234 spin_lock_irqsave(&zone->lock, flags);
3235 }
3236 if (alloc_flags & ALLOC_HIGHATOMIC)
3237 page = __rmqueue_smallest(zone, order, MIGRATE_HIGHATOMIC);
3238 if (!page) {
3239 enum rmqueue_mode rmqm = RMQUEUE_NORMAL;
3240
3241 page = __rmqueue(zone, order, migratetype, alloc_flags, &rmqm);
3242
3243 /*
3244 * If the allocation fails, allow OOM handling and
3245 * order-0 (atomic) allocs access to HIGHATOMIC
3246 * reserves as failing now is worse than failing a
3247 * high-order atomic allocation in the future.
3248 */
3249 if (!page && (alloc_flags & (ALLOC_OOM|ALLOC_NON_BLOCK)))
3250 page = __rmqueue_smallest(zone, order, MIGRATE_HIGHATOMIC);
3251
3252 if (!page) {
3253 spin_unlock_irqrestore(&zone->lock, flags);
3254 return NULL;
3255 }
3256 }
3257 spin_unlock_irqrestore(&zone->lock, flags);
3258 } while (check_new_pages(page, order));
3259
3260 /*
3261 * Slowpath (precarious) high-atomic allocations may reserve
3262 * a pageblock for future use.
3263 */
3264 if (unlikely((alloc_flags & ALLOC_HIGHATOMIC) &&
3265 ((alloc_flags & ALLOC_WMARK_MASK) == ALLOC_WMARK_MIN)))
3266 reserve_highatomic_pageblock(page, order, zone);
3267
3268 __count_zid_vm_events(PGALLOC, page_zonenum(page), 1 << order);
3269 zone_statistics(preferred_zone, zone, 1);
3270
3271 return page;
3272 }
3273
nr_pcp_alloc(struct per_cpu_pages * pcp,struct zone * zone,int order)3274 static int nr_pcp_alloc(struct per_cpu_pages *pcp, struct zone *zone, int order)
3275 {
3276 int high, base_batch, batch, max_nr_alloc;
3277 int high_max, high_min;
3278
3279 base_batch = READ_ONCE(pcp->batch);
3280 high_min = READ_ONCE(pcp->high_min);
3281 high_max = READ_ONCE(pcp->high_max);
3282 high = pcp->high = clamp(pcp->high, high_min, high_max);
3283
3284 /* Check for PCP disabled or boot pageset */
3285 if (unlikely(high < base_batch))
3286 return 1;
3287
3288 if (order)
3289 batch = base_batch;
3290 else
3291 batch = (base_batch << pcp->alloc_factor);
3292
3293 /*
3294 * If we had larger pcp->high, we could avoid to allocate from
3295 * zone.
3296 */
3297 if (high_min != high_max && !test_bit(ZONE_BELOW_HIGH, &zone->flags))
3298 high = pcp->high = min(high + batch, high_max);
3299
3300 if (!order) {
3301 max_nr_alloc = max(high - pcp->count - base_batch, base_batch);
3302 /*
3303 * Double the number of pages allocated each time there is
3304 * subsequent allocation of order-0 pages without any freeing.
3305 */
3306 if (batch <= max_nr_alloc &&
3307 pcp->alloc_factor < CONFIG_PCP_BATCH_SCALE_MAX)
3308 pcp->alloc_factor++;
3309 batch = min(batch, max_nr_alloc);
3310 }
3311
3312 /*
3313 * Scale batch relative to order if batch implies free pages
3314 * can be stored on the PCP. Batch can be 1 for small zones or
3315 * for boot pagesets which should never store free pages as
3316 * the pages may belong to arbitrary zones.
3317 */
3318 if (batch > 1)
3319 batch = max(batch >> order, 2);
3320
3321 return batch;
3322 }
3323
3324 /* Remove page from the per-cpu list, caller must protect the list */
3325 static inline
__rmqueue_pcplist(struct zone * zone,unsigned int order,int migratetype,unsigned int alloc_flags,struct per_cpu_pages * pcp,struct list_head * list)3326 struct page *__rmqueue_pcplist(struct zone *zone, unsigned int order,
3327 int migratetype,
3328 unsigned int alloc_flags,
3329 struct per_cpu_pages *pcp,
3330 struct list_head *list)
3331 {
3332 struct page *page;
3333
3334 do {
3335 if (list_empty(list)) {
3336 int batch = nr_pcp_alloc(pcp, zone, order);
3337 int alloced;
3338
3339 /*
3340 * Don't refill the list for a higher order atomic
3341 * allocation under memory pressure, as this would
3342 * not build up any HIGHATOMIC reserves, which
3343 * might be needed soon.
3344 *
3345 * Instead, direct it towards the reserves by
3346 * returning NULL, which will make the caller fall
3347 * back to rmqueue_buddy. This will try to use the
3348 * reserves first and grow them if needed.
3349 */
3350 if (alloc_flags & ALLOC_HIGHATOMIC)
3351 return NULL;
3352
3353 alloced = rmqueue_bulk(zone, order,
3354 batch, list,
3355 migratetype, alloc_flags);
3356
3357 pcp->count += alloced << order;
3358 if (unlikely(list_empty(list)))
3359 return NULL;
3360 }
3361
3362 page = list_first_entry(list, struct page, pcp_list);
3363 list_del(&page->pcp_list);
3364 pcp->count -= 1 << order;
3365 } while (check_new_pages(page, order));
3366
3367 return page;
3368 }
3369
3370 /* Lock and remove page from the per-cpu list */
rmqueue_pcplist(struct zone * preferred_zone,struct zone * zone,unsigned int order,int migratetype,unsigned int alloc_flags)3371 static struct page *rmqueue_pcplist(struct zone *preferred_zone,
3372 struct zone *zone, unsigned int order,
3373 int migratetype, unsigned int alloc_flags)
3374 {
3375 struct per_cpu_pages *pcp;
3376 struct list_head *list;
3377 struct page *page;
3378
3379 /* spin_trylock may fail due to a parallel drain or IRQ reentrancy. */
3380 pcp = pcp_spin_trylock(zone->per_cpu_pageset);
3381 if (!pcp)
3382 return NULL;
3383
3384 /*
3385 * On allocation, reduce the number of pages that are batch freed.
3386 * See nr_pcp_free() where free_factor is increased for subsequent
3387 * frees.
3388 */
3389 pcp->free_count >>= 1;
3390 list = &pcp->lists[order_to_pindex(migratetype, order)];
3391 page = __rmqueue_pcplist(zone, order, migratetype, alloc_flags, pcp, list);
3392 pcp_spin_unlock(pcp);
3393 if (page) {
3394 __count_zid_vm_events(PGALLOC, page_zonenum(page), 1 << order);
3395 zone_statistics(preferred_zone, zone, 1);
3396 }
3397 return page;
3398 }
3399
3400 /*
3401 * Allocate a page from the given zone.
3402 * Use pcplists for THP or "cheap" high-order allocations.
3403 */
3404
3405 /*
3406 * Do not instrument rmqueue() with KMSAN. This function may call
3407 * __msan_poison_alloca() through a call to set_pfnblock_migratetype().
3408 * If __msan_poison_alloca() attempts to allocate pages for the stack depot, it
3409 * may call rmqueue() again, which will result in a deadlock.
3410 */
3411 __no_sanitize_memory
3412 static inline
rmqueue(struct zone * preferred_zone,struct zone * zone,unsigned int order,gfp_t gfp_flags,unsigned int alloc_flags,int migratetype)3413 struct page *rmqueue(struct zone *preferred_zone,
3414 struct zone *zone, unsigned int order,
3415 gfp_t gfp_flags, unsigned int alloc_flags,
3416 int migratetype)
3417 {
3418 struct page *page;
3419
3420 if (likely(pcp_allowed_order(order))) {
3421 page = rmqueue_pcplist(preferred_zone, zone, order,
3422 migratetype, alloc_flags);
3423 if (likely(page))
3424 goto out;
3425 }
3426
3427 page = rmqueue_buddy(preferred_zone, zone, order, alloc_flags,
3428 migratetype);
3429
3430 out:
3431 /* Separate test+clear to avoid unnecessary atomics */
3432 if ((alloc_flags & ALLOC_KSWAPD) &&
3433 unlikely(test_bit(ZONE_BOOSTED_WATERMARK, &zone->flags))) {
3434 clear_bit(ZONE_BOOSTED_WATERMARK, &zone->flags);
3435 wakeup_kswapd(zone, 0, 0, zone_idx(zone));
3436 }
3437
3438 VM_BUG_ON_PAGE(page && bad_range(zone, page), page);
3439 return page;
3440 }
3441
3442 /*
3443 * Reserve the pageblock(s) surrounding an allocation request for
3444 * exclusive use of high-order atomic allocations if there are no
3445 * empty page blocks that contain a page with a suitable order
3446 */
reserve_highatomic_pageblock(struct page * page,int order,struct zone * zone)3447 static void reserve_highatomic_pageblock(struct page *page, int order,
3448 struct zone *zone)
3449 {
3450 int mt;
3451 unsigned long max_managed;
3452
3453 /*
3454 * The number reserved as: minimum is 1 pageblock, maximum is
3455 * roughly 1% of a zone. But if 1% of a zone falls below a
3456 * pageblock size, then don't reserve any pageblocks.
3457 * Check is race-prone but harmless.
3458 */
3459 if ((zone_managed_pages(zone) / 100) < pageblock_nr_pages)
3460 return;
3461 max_managed = ALIGN((zone_managed_pages(zone) / 100), pageblock_nr_pages);
3462 if (zone->nr_reserved_highatomic >= max_managed)
3463 return;
3464
3465 guard(spinlock_irqsave)(&zone->lock);
3466
3467 /* Recheck the nr_reserved_highatomic limit under the lock */
3468 if (zone->nr_reserved_highatomic >= max_managed)
3469 return;
3470
3471 /* Yoink! */
3472 mt = get_pageblock_migratetype(page);
3473 /* Only reserve normal pageblocks (i.e., they can merge with others) */
3474 if (!migratetype_is_mergeable(mt))
3475 return;
3476
3477 if (order < pageblock_order) {
3478 if (move_freepages_block(zone, page, mt, MIGRATE_HIGHATOMIC) == -1)
3479 return;
3480 zone->nr_reserved_highatomic += pageblock_nr_pages;
3481 } else {
3482 change_pageblock_range(page, order, MIGRATE_HIGHATOMIC);
3483 zone->nr_reserved_highatomic += 1 << order;
3484 }
3485 }
3486
3487 /*
3488 * Used when an allocation is about to fail under memory pressure. This
3489 * potentially hurts the reliability of high-order allocations when under
3490 * intense memory pressure but failed atomic allocations should be easier
3491 * to recover from than an OOM.
3492 *
3493 * If @force is true, try to unreserve pageblocks even though highatomic
3494 * pageblock is exhausted.
3495 */
unreserve_highatomic_pageblock(const struct alloc_context * ac,bool force)3496 static bool unreserve_highatomic_pageblock(const struct alloc_context *ac,
3497 bool force)
3498 {
3499 struct zonelist *zonelist = ac->zonelist;
3500 struct zoneref *z;
3501 struct zone *zone;
3502 struct page *page;
3503 int order;
3504 int ret;
3505
3506 for_each_zone_zonelist_nodemask(zone, z, zonelist, ac->highest_zoneidx,
3507 ac->nodemask) {
3508 /*
3509 * Preserve at least one pageblock unless memory pressure
3510 * is really high.
3511 */
3512 if (!force && zone->nr_reserved_highatomic <=
3513 pageblock_nr_pages)
3514 continue;
3515
3516 guard(spinlock_irqsave)(&zone->lock);
3517 for (order = 0; order < NR_PAGE_ORDERS; order++) {
3518 struct free_area *area = &(zone->free_area[order]);
3519 unsigned long size;
3520
3521 page = get_page_from_free_area(area, MIGRATE_HIGHATOMIC);
3522 if (!page)
3523 continue;
3524
3525 size = max(pageblock_nr_pages, 1UL << order);
3526 /*
3527 * It should never happen but changes to
3528 * locking could inadvertently allow a per-cpu
3529 * drain to add pages to MIGRATE_HIGHATOMIC
3530 * while unreserving so be safe and watch for
3531 * underflows.
3532 */
3533 if (WARN_ON_ONCE(size > zone->nr_reserved_highatomic))
3534 size = zone->nr_reserved_highatomic;
3535 zone->nr_reserved_highatomic -= size;
3536
3537 /*
3538 * Convert to ac->migratetype and avoid the normal
3539 * pageblock stealing heuristics. Minimally, the caller
3540 * is doing the work and needs the pages. More
3541 * importantly, if the block was always converted to
3542 * MIGRATE_UNMOVABLE or another type then the number
3543 * of pageblocks that cannot be completely freed
3544 * may increase.
3545 */
3546 if (order < pageblock_order)
3547 ret = move_freepages_block(zone, page,
3548 MIGRATE_HIGHATOMIC,
3549 ac->migratetype);
3550 else {
3551 move_to_free_list(page, zone, order,
3552 MIGRATE_HIGHATOMIC,
3553 ac->migratetype);
3554 change_pageblock_range(page, order,
3555 ac->migratetype);
3556 ret = 1;
3557 }
3558 /*
3559 * Reserving the block(s) already succeeded,
3560 * so this should not fail on zone boundaries.
3561 */
3562 WARN_ON_ONCE(ret == -1);
3563 if (ret > 0)
3564 return ret;
3565 }
3566 }
3567
3568 return false;
3569 }
3570
__zone_watermark_unusable_free(struct zone * z,unsigned int order,unsigned int alloc_flags)3571 static inline long __zone_watermark_unusable_free(struct zone *z,
3572 unsigned int order, unsigned int alloc_flags)
3573 {
3574 long unusable_free = (1 << order) - 1;
3575
3576 /*
3577 * If the caller does not have rights to reserves below the min
3578 * watermark then subtract the free pages reserved for highatomic.
3579 */
3580 if (likely(!(alloc_flags & ALLOC_RESERVES)))
3581 unusable_free += READ_ONCE(z->nr_free_highatomic);
3582
3583 #ifdef CONFIG_CMA
3584 /* If allocation can't use CMA areas don't use free CMA pages */
3585 if (!(alloc_flags & ALLOC_CMA))
3586 unusable_free += zone_page_state(z, NR_FREE_CMA_PAGES);
3587 #endif
3588
3589 return unusable_free;
3590 }
3591
3592 /*
3593 * Return true if free base pages are above 'mark'. For high-order checks it
3594 * will return true of the order-0 watermark is reached and there is at least
3595 * one free page of a suitable size. Checking now avoids taking the zone lock
3596 * to check in the allocation paths if no pages are free.
3597 */
__zone_watermark_ok(struct zone * z,unsigned int order,unsigned long mark,int highest_zoneidx,unsigned int alloc_flags,long free_pages)3598 bool __zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark,
3599 int highest_zoneidx, unsigned int alloc_flags,
3600 long free_pages)
3601 {
3602 long min = mark;
3603 int o;
3604
3605 /* free_pages may go negative - that's OK */
3606 free_pages -= __zone_watermark_unusable_free(z, order, alloc_flags);
3607
3608 if (unlikely(alloc_flags & ALLOC_RESERVES)) {
3609 /*
3610 * __GFP_HIGH allows access to 50% of the min reserve as well
3611 * as OOM.
3612 */
3613 if (alloc_flags & ALLOC_MIN_RESERVE) {
3614 min -= min / 2;
3615
3616 /*
3617 * Non-blocking allocations (e.g. GFP_ATOMIC) can
3618 * access more reserves than just __GFP_HIGH. Other
3619 * non-blocking allocations requests such as GFP_NOWAIT
3620 * or (GFP_KERNEL & ~__GFP_DIRECT_RECLAIM) do not get
3621 * access to the min reserve.
3622 */
3623 if (alloc_flags & ALLOC_NON_BLOCK)
3624 min -= min / 4;
3625 }
3626
3627 /*
3628 * OOM victims can try even harder than the normal reserve
3629 * users on the grounds that it's definitely going to be in
3630 * the exit path shortly and free memory. Any allocation it
3631 * makes during the free path will be small and short-lived.
3632 */
3633 if (alloc_flags & ALLOC_OOM)
3634 min -= min / 2;
3635 }
3636
3637 /*
3638 * Check watermarks for an order-0 allocation request. If these
3639 * are not met, then a high-order request also cannot go ahead
3640 * even if a suitable page happened to be free.
3641 */
3642 if (free_pages <= min + z->lowmem_reserve[highest_zoneidx])
3643 return false;
3644
3645 /* If this is an order-0 request then the watermark is fine */
3646 if (!order)
3647 return true;
3648
3649 /* For a high-order request, check at least one suitable page is free */
3650 for (o = order; o < NR_PAGE_ORDERS; o++) {
3651 struct free_area *area = &z->free_area[o];
3652 int mt;
3653
3654 if (!area->nr_free)
3655 continue;
3656
3657 for (mt = 0; mt < MIGRATE_PCPTYPES; mt++) {
3658 if (!free_area_empty(area, mt))
3659 return true;
3660 }
3661
3662 #ifdef CONFIG_CMA
3663 if ((alloc_flags & ALLOC_CMA) &&
3664 !free_area_empty(area, MIGRATE_CMA)) {
3665 return true;
3666 }
3667 #endif
3668 if ((alloc_flags & (ALLOC_HIGHATOMIC|ALLOC_OOM)) &&
3669 !free_area_empty(area, MIGRATE_HIGHATOMIC)) {
3670 return true;
3671 }
3672 }
3673 return false;
3674 }
3675
zone_watermark_ok(struct zone * z,unsigned int order,unsigned long mark,int highest_zoneidx,unsigned int alloc_flags)3676 bool zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark,
3677 int highest_zoneidx, unsigned int alloc_flags)
3678 {
3679 return __zone_watermark_ok(z, order, mark, highest_zoneidx, alloc_flags,
3680 zone_page_state(z, NR_FREE_PAGES));
3681 }
3682
zone_watermark_fast(struct zone * z,unsigned int order,unsigned long mark,int highest_zoneidx,unsigned int alloc_flags,gfp_t gfp_mask)3683 static inline bool zone_watermark_fast(struct zone *z, unsigned int order,
3684 unsigned long mark, int highest_zoneidx,
3685 unsigned int alloc_flags, gfp_t gfp_mask)
3686 {
3687 long free_pages;
3688
3689 free_pages = zone_page_state(z, NR_FREE_PAGES);
3690
3691 /*
3692 * Fast check for order-0 only. If this fails then the reserves
3693 * need to be calculated.
3694 */
3695 if (!order) {
3696 long usable_free;
3697 long reserved;
3698
3699 usable_free = free_pages;
3700 reserved = __zone_watermark_unusable_free(z, 0, alloc_flags);
3701
3702 /* reserved may over estimate high-atomic reserves. */
3703 usable_free -= min(usable_free, reserved);
3704 if (usable_free > mark + z->lowmem_reserve[highest_zoneidx])
3705 return true;
3706 }
3707
3708 if (__zone_watermark_ok(z, order, mark, highest_zoneidx, alloc_flags,
3709 free_pages))
3710 return true;
3711
3712 /*
3713 * Ignore watermark boosting for __GFP_HIGH order-0 allocations
3714 * when checking the min watermark. The min watermark is the
3715 * point where boosting is ignored so that kswapd is woken up
3716 * when below the low watermark.
3717 */
3718 if (unlikely(!order && (alloc_flags & ALLOC_MIN_RESERVE) && z->watermark_boost
3719 && ((alloc_flags & ALLOC_WMARK_MASK) == WMARK_MIN))) {
3720 mark = z->_watermark[WMARK_MIN];
3721 return __zone_watermark_ok(z, order, mark, highest_zoneidx,
3722 alloc_flags, free_pages);
3723 }
3724
3725 return false;
3726 }
3727
3728 #ifdef CONFIG_NUMA
3729 int __read_mostly node_reclaim_distance = RECLAIM_DISTANCE;
3730
zone_allows_reclaim(struct zone * local_zone,struct zone * zone)3731 static bool zone_allows_reclaim(struct zone *local_zone, struct zone *zone)
3732 {
3733 return node_distance(zone_to_nid(local_zone), zone_to_nid(zone)) <=
3734 node_reclaim_distance;
3735 }
3736 #else /* CONFIG_NUMA */
zone_allows_reclaim(struct zone * local_zone,struct zone * zone)3737 static bool zone_allows_reclaim(struct zone *local_zone, struct zone *zone)
3738 {
3739 return true;
3740 }
3741 #endif /* CONFIG_NUMA */
3742
3743 /*
3744 * The restriction on ZONE_DMA32 as being a suitable zone to use to avoid
3745 * fragmentation is subtle. If the preferred zone was HIGHMEM then
3746 * premature use of a lower zone may cause lowmem pressure problems that
3747 * are worse than fragmentation. If the next zone is ZONE_DMA then it is
3748 * probably too small. It only makes sense to spread allocations to avoid
3749 * fragmentation between the Normal and DMA32 zones.
3750 */
3751 static inline unsigned int
alloc_flags_nofragment(struct zone * zone,gfp_t gfp_mask)3752 alloc_flags_nofragment(struct zone *zone, gfp_t gfp_mask)
3753 {
3754 unsigned int alloc_flags = 0;
3755
3756 if (gfp_mask & __GFP_KSWAPD_RECLAIM)
3757 alloc_flags |= ALLOC_KSWAPD;
3758
3759 if (defrag_mode) {
3760 alloc_flags |= ALLOC_NOFRAGMENT;
3761 return alloc_flags;
3762 }
3763
3764 #ifdef CONFIG_ZONE_DMA32
3765 if (!zone)
3766 return alloc_flags;
3767
3768 if (zone_idx(zone) != ZONE_NORMAL)
3769 return alloc_flags;
3770
3771 /*
3772 * If ZONE_DMA32 exists, assume it is the one after ZONE_NORMAL and
3773 * the pointer is within zone->zone_pgdat->node_zones[]. Also assume
3774 * on UMA that if Normal is populated then so is DMA32.
3775 */
3776 BUILD_BUG_ON(ZONE_NORMAL - ZONE_DMA32 != 1);
3777 if (nr_online_nodes > 1 && !populated_zone(--zone))
3778 return alloc_flags;
3779
3780 alloc_flags |= ALLOC_NOFRAGMENT;
3781 #endif /* CONFIG_ZONE_DMA32 */
3782 return alloc_flags;
3783 }
3784
3785 /* Must be called after current_gfp_context() which can change gfp_mask */
alloc_flags_cma(gfp_t gfp_mask)3786 static inline unsigned int alloc_flags_cma(gfp_t gfp_mask)
3787 {
3788 #ifdef CONFIG_CMA
3789 if (gfp_migratetype(gfp_mask) == MIGRATE_MOVABLE)
3790 return ALLOC_CMA;
3791 #endif
3792 return ALLOC_DEFAULT;
3793 }
3794
3795 /*
3796 * get_page_from_freelist goes through the zonelist trying to allocate
3797 * a page.
3798 */
3799 static struct page *
get_page_from_freelist(gfp_t gfp_mask,unsigned int order,int alloc_flags,const struct alloc_context * ac)3800 get_page_from_freelist(gfp_t gfp_mask, unsigned int order, int alloc_flags,
3801 const struct alloc_context *ac)
3802 {
3803 struct zoneref *z;
3804 struct zone *zone;
3805 struct pglist_data *last_pgdat = NULL;
3806 bool last_pgdat_dirty_ok = false;
3807 bool no_fallback;
3808 bool skip_kswapd_nodes = nr_online_nodes > 1;
3809 bool skipped_kswapd_nodes = false;
3810
3811 retry:
3812 /*
3813 * Scan zonelist, looking for a zone with enough free.
3814 * See also cpuset_current_node_allowed() comment in kernel/cgroup/cpuset.c.
3815 */
3816 no_fallback = alloc_flags & ALLOC_NOFRAGMENT;
3817 z = ac->preferred_zoneref;
3818 for_next_zone_zonelist_nodemask(zone, z, ac->highest_zoneidx,
3819 ac->nodemask) {
3820 struct page *page;
3821 unsigned long mark;
3822
3823 if (cpusets_enabled() &&
3824 (alloc_flags & ALLOC_CPUSET) &&
3825 !__cpuset_zone_allowed(zone, gfp_mask))
3826 continue;
3827 /*
3828 * When allocating a page cache page for writing, we
3829 * want to get it from a node that is within its dirty
3830 * limit, such that no single node holds more than its
3831 * proportional share of globally allowed dirty pages.
3832 * The dirty limits take into account the node's
3833 * lowmem reserves and high watermark so that kswapd
3834 * should be able to balance it without having to
3835 * write pages from its LRU list.
3836 *
3837 * XXX: For now, allow allocations to potentially
3838 * exceed the per-node dirty limit in the slowpath
3839 * (spread_dirty_pages unset) before going into reclaim,
3840 * which is important when on a NUMA setup the allowed
3841 * nodes are together not big enough to reach the
3842 * global limit. The proper fix for these situations
3843 * will require awareness of nodes in the
3844 * dirty-throttling and the flusher threads.
3845 */
3846 if (ac->spread_dirty_pages) {
3847 if (last_pgdat != zone->zone_pgdat) {
3848 last_pgdat = zone->zone_pgdat;
3849 last_pgdat_dirty_ok = node_dirty_ok(zone->zone_pgdat);
3850 }
3851
3852 if (!last_pgdat_dirty_ok)
3853 continue;
3854 }
3855
3856 if (no_fallback && !defrag_mode && nr_online_nodes > 1 &&
3857 zone != zonelist_zone(ac->preferred_zoneref)) {
3858 int local_nid;
3859
3860 /*
3861 * If moving to a remote node, retry but allow
3862 * fragmenting fallbacks. Locality is more important
3863 * than fragmentation avoidance.
3864 */
3865 local_nid = zonelist_node_idx(ac->preferred_zoneref);
3866 if (zone_to_nid(zone) != local_nid) {
3867 alloc_flags &= ~ALLOC_NOFRAGMENT;
3868 goto retry;
3869 }
3870 }
3871
3872 /*
3873 * If kswapd is already active on a node, keep looking
3874 * for other nodes that might be idle. This can happen
3875 * if another process has NUMA bindings and is causing
3876 * kswapd wakeups on only some nodes. Avoid accidental
3877 * "node_reclaim_mode"-like behavior in this case.
3878 */
3879 if (skip_kswapd_nodes &&
3880 !waitqueue_active(&zone->zone_pgdat->kswapd_wait)) {
3881 skipped_kswapd_nodes = true;
3882 continue;
3883 }
3884
3885 cond_accept_memory(zone, order, alloc_flags);
3886
3887 /*
3888 * Detect whether the number of free pages is below high
3889 * watermark. If so, we will decrease pcp->high and free
3890 * PCP pages in free path to reduce the possibility of
3891 * premature page reclaiming. Detection is done here to
3892 * avoid to do that in hotter free path.
3893 */
3894 if (test_bit(ZONE_BELOW_HIGH, &zone->flags))
3895 goto check_alloc_wmark;
3896
3897 mark = high_wmark_pages(zone);
3898 if (zone_watermark_fast(zone, order, mark,
3899 ac->highest_zoneidx, alloc_flags,
3900 gfp_mask))
3901 goto try_this_zone;
3902 else
3903 set_bit(ZONE_BELOW_HIGH, &zone->flags);
3904
3905 check_alloc_wmark:
3906 mark = wmark_pages(zone, alloc_flags & ALLOC_WMARK_MASK);
3907 if (!zone_watermark_fast(zone, order, mark,
3908 ac->highest_zoneidx, alloc_flags,
3909 gfp_mask)) {
3910 if (cond_accept_memory(zone, order, alloc_flags))
3911 goto try_this_zone;
3912
3913 /*
3914 * Watermark failed for this zone, but see if we can
3915 * grow this zone if it contains deferred pages.
3916 */
3917 if (deferred_pages_enabled()) {
3918 if (_deferred_grow_zone(zone, order))
3919 goto try_this_zone;
3920 }
3921 /* Checked here to keep the fast path fast */
3922 BUILD_BUG_ON(ALLOC_NO_WATERMARKS < NR_WMARK);
3923 if (alloc_flags & ALLOC_NO_WATERMARKS)
3924 goto try_this_zone;
3925
3926 if (!node_reclaim_enabled() ||
3927 !zone_allows_reclaim(zonelist_zone(ac->preferred_zoneref), zone))
3928 continue;
3929
3930 if (!node_reclaim(zone->zone_pgdat, gfp_mask, order))
3931 continue;
3932
3933 /* did we reclaim enough */
3934 if (!zone_watermark_ok(zone, order, mark,
3935 ac->highest_zoneidx, alloc_flags))
3936 continue;
3937 }
3938
3939 try_this_zone:
3940 page = rmqueue(zonelist_zone(ac->preferred_zoneref), zone, order,
3941 gfp_mask, alloc_flags, ac->migratetype);
3942 if (page) {
3943 prep_new_page(page, order, gfp_mask, alloc_flags);
3944
3945 return page;
3946 } else {
3947 if (cond_accept_memory(zone, order, alloc_flags))
3948 goto try_this_zone;
3949
3950 /* Try again if zone has deferred pages */
3951 if (deferred_pages_enabled()) {
3952 if (_deferred_grow_zone(zone, order))
3953 goto try_this_zone;
3954 }
3955 }
3956 }
3957
3958 /*
3959 * If we skipped over nodes with active kswapds and found no
3960 * idle nodes, retry and place anywhere the watermarks permit.
3961 */
3962 if (skip_kswapd_nodes && skipped_kswapd_nodes) {
3963 skip_kswapd_nodes = false;
3964 goto retry;
3965 }
3966
3967 /*
3968 * It's possible on a UMA machine to get through all zones that are
3969 * fragmented. If avoiding fragmentation, reset and try again.
3970 */
3971 if (no_fallback && !defrag_mode) {
3972 alloc_flags &= ~ALLOC_NOFRAGMENT;
3973 goto retry;
3974 }
3975
3976 return NULL;
3977 }
3978
warn_alloc_show_mem(gfp_t gfp_mask,const nodemask_t * nodemask)3979 static void warn_alloc_show_mem(gfp_t gfp_mask, const nodemask_t *nodemask)
3980 {
3981 unsigned int filter = SHOW_MEM_FILTER_NODES;
3982
3983 /*
3984 * This documents exceptions given to allocations in certain
3985 * contexts that are allowed to allocate outside current's set
3986 * of allowed nodes.
3987 */
3988 if (!(gfp_mask & __GFP_NOMEMALLOC))
3989 if (tsk_is_oom_victim(current) ||
3990 (current->flags & (PF_MEMALLOC | PF_EXITING)))
3991 filter &= ~SHOW_MEM_FILTER_NODES;
3992 if (!in_task() || !(gfp_mask & __GFP_DIRECT_RECLAIM))
3993 filter &= ~SHOW_MEM_FILTER_NODES;
3994
3995 __show_mem(filter, nodemask, gfp_zone(gfp_mask));
3996 mem_cgroup_show_protected_memory(NULL);
3997 }
3998
warn_alloc(gfp_t gfp_mask,const nodemask_t * nodemask,const char * fmt,...)3999 void warn_alloc(gfp_t gfp_mask, const nodemask_t *nodemask, const char *fmt, ...)
4000 {
4001 struct va_format vaf;
4002 va_list args;
4003 static DEFINE_RATELIMIT_STATE(nopage_rs, 10*HZ, 1);
4004
4005 if ((gfp_mask & __GFP_NOWARN) ||
4006 !__ratelimit(&nopage_rs) ||
4007 ((gfp_mask & __GFP_DMA) && !has_managed_dma()))
4008 return;
4009
4010 va_start(args, fmt);
4011 vaf.fmt = fmt;
4012 vaf.va = &args;
4013 pr_warn("%s: %pV, mode:%#x(%pGg), nodemask=%*pbl",
4014 current->comm, &vaf, gfp_mask, &gfp_mask,
4015 nodemask_pr_args(nodemask));
4016 va_end(args);
4017
4018 cpuset_print_current_mems_allowed();
4019 pr_cont("\n");
4020 dump_stack();
4021 warn_alloc_show_mem(gfp_mask, nodemask);
4022 }
4023
4024 static inline struct page *
__alloc_pages_cpuset_fallback(gfp_t gfp_mask,unsigned int order,unsigned int alloc_flags,const struct alloc_context * ac)4025 __alloc_pages_cpuset_fallback(gfp_t gfp_mask, unsigned int order,
4026 unsigned int alloc_flags,
4027 const struct alloc_context *ac)
4028 {
4029 struct page *page;
4030
4031 page = get_page_from_freelist(gfp_mask, order,
4032 alloc_flags|ALLOC_CPUSET, ac);
4033 /*
4034 * fallback to ignore cpuset restriction if our nodes
4035 * are depleted
4036 */
4037 if (!page)
4038 page = get_page_from_freelist(gfp_mask, order,
4039 alloc_flags, ac);
4040 return page;
4041 }
4042
4043 static inline struct page *
__alloc_pages_may_oom(gfp_t gfp_mask,unsigned int order,const struct alloc_context * ac,unsigned long * did_some_progress)4044 __alloc_pages_may_oom(gfp_t gfp_mask, unsigned int order,
4045 const struct alloc_context *ac, unsigned long *did_some_progress)
4046 {
4047 struct oom_control oc = {
4048 .zonelist = ac->zonelist,
4049 .nodemask = ac->nodemask,
4050 .memcg = NULL,
4051 .gfp_mask = gfp_mask,
4052 .order = order,
4053 };
4054 struct page *page;
4055
4056 *did_some_progress = 0;
4057
4058 /*
4059 * Acquire the oom lock. If that fails, somebody else is
4060 * making progress for us.
4061 */
4062 if (!mutex_trylock(&oom_lock)) {
4063 *did_some_progress = 1;
4064 schedule_timeout_uninterruptible(1);
4065 return NULL;
4066 }
4067
4068 /*
4069 * Go through the zonelist yet one more time, keep very high watermark
4070 * here, this is only to catch a parallel oom killing, we must fail if
4071 * we're still under heavy pressure. But make sure that this reclaim
4072 * attempt shall not depend on __GFP_DIRECT_RECLAIM && !__GFP_NORETRY
4073 * allocation which will never fail due to oom_lock already held.
4074 */
4075 page = get_page_from_freelist((gfp_mask | __GFP_HARDWALL) &
4076 ~__GFP_DIRECT_RECLAIM, order,
4077 ac->alloc_flags|ALLOC_WMARK_HIGH|ALLOC_CPUSET, ac);
4078 if (page)
4079 goto out;
4080
4081 /* Coredumps can quickly deplete all memory reserves */
4082 if (current->flags & PF_DUMPCORE)
4083 goto out;
4084 /* The OOM killer will not help higher order allocs */
4085 if (order > PAGE_ALLOC_COSTLY_ORDER)
4086 goto out;
4087 /*
4088 * We have already exhausted all our reclaim opportunities without any
4089 * success so it is time to admit defeat. We will skip the OOM killer
4090 * because it is very likely that the caller has a more reasonable
4091 * fallback than shooting a random task.
4092 *
4093 * The OOM killer may not free memory on a specific node.
4094 */
4095 if (gfp_mask & (__GFP_RETRY_MAYFAIL | __GFP_THISNODE))
4096 goto out;
4097 /* The OOM killer does not needlessly kill tasks for lowmem */
4098 if (ac->highest_zoneidx < ZONE_NORMAL)
4099 goto out;
4100 if (pm_suspended_storage())
4101 goto out;
4102 /*
4103 * XXX: GFP_NOFS allocations should rather fail than rely on
4104 * other request to make a forward progress.
4105 * We are in an unfortunate situation where out_of_memory cannot
4106 * do much for this context but let's try it to at least get
4107 * access to memory reserved if the current task is killed (see
4108 * out_of_memory). Once filesystems are ready to handle allocation
4109 * failures more gracefully we should just bail out here.
4110 */
4111
4112 /* Exhausted what can be done so it's blame time */
4113 if (out_of_memory(&oc) ||
4114 WARN_ON_ONCE_GFP(gfp_mask & __GFP_NOFAIL, gfp_mask)) {
4115 *did_some_progress = 1;
4116
4117 /*
4118 * Help non-failing allocations by giving them access to memory
4119 * reserves
4120 */
4121 if (gfp_mask & __GFP_NOFAIL)
4122 page = __alloc_pages_cpuset_fallback(gfp_mask, order,
4123 ac->alloc_flags|ALLOC_NO_WATERMARKS, ac);
4124 }
4125 out:
4126 mutex_unlock(&oom_lock);
4127 return page;
4128 }
4129
4130 /*
4131 * Maximum number of compaction retries with a progress before OOM
4132 * killer is consider as the only way to move forward.
4133 */
4134 #define MAX_COMPACT_RETRIES 16
4135
4136 #ifdef CONFIG_COMPACTION
4137 /* Try memory compaction for high-order allocations before reclaim */
4138 static struct page *
__alloc_pages_direct_compact(gfp_t gfp_mask,unsigned int order,unsigned int alloc_flags,const struct alloc_context * ac,enum compact_priority prio,enum compact_result * compact_result)4139 __alloc_pages_direct_compact(gfp_t gfp_mask, unsigned int order,
4140 unsigned int alloc_flags, const struct alloc_context *ac,
4141 enum compact_priority prio, enum compact_result *compact_result)
4142 {
4143 struct page *page = NULL;
4144 unsigned long pflags;
4145 unsigned int noreclaim_flag;
4146 struct capture_control capc = {
4147 .zone = NULL,
4148 .migratetype = ac->migratetype,
4149 .order = order,
4150 .page = NULL,
4151 };
4152 int compact_order = order;
4153
4154 /*
4155 * If fallbacks are not permitted (defrag_mode), we either
4156 * need to reclaim space in a block of matching type, or clear
4157 * out an entire block to allow __rmqueue_claim() to convert.
4158 *
4159 * Reclaim by itself is primarily freeing space in movable
4160 * blocks, since that's where the LRU pages live. So this
4161 * works for movable requests, but not for others.
4162 *
4163 * For those, promote the order to help make blocks, instead
4164 * of spinning in reclaim alone unproductively.
4165 */
4166 if ((alloc_flags & ALLOC_NOFRAGMENT) && ac->migratetype != MIGRATE_MOVABLE)
4167 compact_order = max(order, pageblock_order);
4168
4169 if (!compact_order)
4170 return NULL;
4171
4172 psi_memstall_enter(&pflags);
4173 delayacct_compact_start();
4174 fs_reclaim_acquire(gfp_mask);
4175 noreclaim_flag = memalloc_noreclaim_save();
4176
4177 /*
4178 * Make sure the structs are really initialized before we expose the
4179 * capture control, in case we are interrupted and the interrupt handler
4180 * frees a page.
4181 */
4182 barrier();
4183 WRITE_ONCE(current->capture_control, &capc);
4184
4185 *compact_result = try_to_compact_pages(gfp_mask, compact_order,
4186 alloc_flags, ac, prio, &capc);
4187
4188 /*
4189 * Make sure we hide capture control first before we read the captured
4190 * page pointer, otherwise an interrupt could free and capture a page
4191 * and we would leak it.
4192 */
4193 WRITE_ONCE(current->capture_control, NULL);
4194 page = READ_ONCE(capc.page);
4195
4196 /*
4197 * Technically, it is also possible that compaction is skipped but
4198 * the page is still captured out of luck(IRQ came and freed the page).
4199 * Returning COMPACT_SUCCESS in such cases helps in properly accounting
4200 * the COMPACT[STALL|FAIL] when compaction is skipped.
4201 */
4202 if (page)
4203 *compact_result = COMPACT_SUCCESS;
4204
4205 memalloc_noreclaim_restore(noreclaim_flag);
4206 fs_reclaim_release(gfp_mask);
4207 psi_memstall_leave(&pflags);
4208 delayacct_compact_end();
4209
4210 if (*compact_result == COMPACT_SKIPPED ||
4211 *compact_result == COMPACT_DEFERRED)
4212 return NULL;
4213 /*
4214 * At least in one zone compaction wasn't deferred or skipped, so let's
4215 * count a compaction stall
4216 */
4217 count_vm_event(COMPACTSTALL);
4218
4219 /* Prep a captured page if available */
4220 if (page)
4221 prep_new_page(page, order, gfp_mask, alloc_flags);
4222
4223 /* Try get a page from the freelist if available */
4224 if (!page)
4225 page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
4226
4227 if (page) {
4228 struct zone *zone = page_zone(page);
4229
4230 zone->compact_blockskip_flush = false;
4231 compaction_defer_reset(zone, compact_order, true);
4232 count_vm_event(COMPACTSUCCESS);
4233 return page;
4234 }
4235
4236 /*
4237 * It's bad if compaction run occurs and fails. The most likely reason
4238 * is that pages exist, but not enough to satisfy watermarks.
4239 */
4240 count_vm_event(COMPACTFAIL);
4241
4242 cond_resched();
4243
4244 return NULL;
4245 }
4246
4247 static inline bool
should_compact_retry(gfp_t gfp_mask,struct alloc_context * ac,int order,int alloc_flags,enum compact_result compact_result,enum compact_priority * compact_priority,int * compaction_retries)4248 should_compact_retry(gfp_t gfp_mask, struct alloc_context *ac, int order,
4249 int alloc_flags,
4250 enum compact_result compact_result,
4251 enum compact_priority *compact_priority,
4252 int *compaction_retries)
4253 {
4254 int max_retries = MAX_COMPACT_RETRIES;
4255 int min_priority;
4256 bool ret = false;
4257 int retries = *compaction_retries;
4258 enum compact_priority priority = *compact_priority;
4259
4260 if (!order)
4261 return false;
4262
4263 if (fatal_signal_pending(current))
4264 return false;
4265
4266 /*
4267 * Compaction was skipped due to a lack of free order-0
4268 * migration targets. Continue if reclaim can help.
4269 */
4270 if (compact_result == COMPACT_SKIPPED) {
4271 ret = compaction_zonelist_suitable(ac, order, alloc_flags,
4272 gfp_mask);
4273 goto out;
4274 }
4275
4276 /*
4277 * Compaction managed to coalesce some page blocks, but the
4278 * allocation failed presumably due to a race. Retry some.
4279 */
4280 if (compact_result == COMPACT_SUCCESS) {
4281 /*
4282 * !costly requests are much more important than
4283 * __GFP_RETRY_MAYFAIL costly ones because they are de
4284 * facto nofail and invoke OOM killer to move on while
4285 * costly can fail and users are ready to cope with
4286 * that. 1/4 retries is rather arbitrary but we would
4287 * need much more detailed feedback from compaction to
4288 * make a better decision.
4289 */
4290 if (order > PAGE_ALLOC_COSTLY_ORDER)
4291 max_retries /= 4;
4292
4293 if (++(*compaction_retries) <= max_retries) {
4294 ret = true;
4295 goto out;
4296 }
4297 }
4298
4299 /*
4300 * Compaction failed. Retry with increasing priority.
4301 */
4302 min_priority = (order > PAGE_ALLOC_COSTLY_ORDER) ?
4303 MIN_COMPACT_COSTLY_PRIORITY : MIN_COMPACT_PRIORITY;
4304
4305 if (*compact_priority > min_priority) {
4306 (*compact_priority)--;
4307 *compaction_retries = 0;
4308 ret = true;
4309 }
4310 out:
4311 trace_compact_retry(order, priority, compact_result, retries, max_retries, ret);
4312 return ret;
4313 }
4314 #else
4315 static inline struct page *
__alloc_pages_direct_compact(gfp_t gfp_mask,unsigned int order,unsigned int alloc_flags,const struct alloc_context * ac,enum compact_priority prio,enum compact_result * compact_result)4316 __alloc_pages_direct_compact(gfp_t gfp_mask, unsigned int order,
4317 unsigned int alloc_flags, const struct alloc_context *ac,
4318 enum compact_priority prio, enum compact_result *compact_result)
4319 {
4320 *compact_result = COMPACT_SKIPPED;
4321 return NULL;
4322 }
4323
4324 static inline bool
should_compact_retry(gfp_t gfp_mask,struct alloc_context * ac,int order,int alloc_flags,enum compact_result compact_result,enum compact_priority * compact_priority,int * compaction_retries)4325 should_compact_retry(gfp_t gfp_mask, struct alloc_context *ac, int order,
4326 int alloc_flags,
4327 enum compact_result compact_result,
4328 enum compact_priority *compact_priority,
4329 int *compaction_retries)
4330 {
4331 struct zone *zone;
4332 struct zoneref *z;
4333
4334 if (!order || order > PAGE_ALLOC_COSTLY_ORDER)
4335 return false;
4336
4337 /*
4338 * There are setups with compaction disabled which would prefer to loop
4339 * inside the allocator rather than hit the oom killer prematurely.
4340 * Let's give them a good hope and keep retrying while the order-0
4341 * watermarks are OK.
4342 */
4343 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist,
4344 ac->highest_zoneidx, ac->nodemask) {
4345 if (zone_watermark_ok(zone, 0, min_wmark_pages(zone),
4346 ac->highest_zoneidx, alloc_flags))
4347 return true;
4348 }
4349 return false;
4350 }
4351 #endif /* CONFIG_COMPACTION */
4352
4353 #ifdef CONFIG_LOCKDEP
4354 static struct lockdep_map __fs_reclaim_map =
4355 STATIC_LOCKDEP_MAP_INIT("fs_reclaim", &__fs_reclaim_map);
4356
__need_reclaim(gfp_t gfp_mask)4357 static bool __need_reclaim(gfp_t gfp_mask)
4358 {
4359 /* no reclaim without waiting on it */
4360 if (!(gfp_mask & __GFP_DIRECT_RECLAIM))
4361 return false;
4362
4363 /* this guy won't enter reclaim */
4364 if (current->flags & PF_MEMALLOC)
4365 return false;
4366
4367 if (gfp_mask & __GFP_NOLOCKDEP)
4368 return false;
4369
4370 return true;
4371 }
4372
__fs_reclaim_acquire(unsigned long ip)4373 void __fs_reclaim_acquire(unsigned long ip)
4374 {
4375 lock_acquire_exclusive(&__fs_reclaim_map, 0, 0, NULL, ip);
4376 }
4377
__fs_reclaim_release(unsigned long ip)4378 void __fs_reclaim_release(unsigned long ip)
4379 {
4380 lock_release(&__fs_reclaim_map, ip);
4381 }
4382
fs_reclaim_acquire(gfp_t gfp_mask)4383 void fs_reclaim_acquire(gfp_t gfp_mask)
4384 {
4385 gfp_mask = current_gfp_context(gfp_mask);
4386
4387 if (__need_reclaim(gfp_mask)) {
4388 if (gfp_mask & __GFP_FS)
4389 __fs_reclaim_acquire(_RET_IP_);
4390
4391 #ifdef CONFIG_MMU_NOTIFIER
4392 lock_map_acquire(&__mmu_notifier_invalidate_range_start_map);
4393 lock_map_release(&__mmu_notifier_invalidate_range_start_map);
4394 #endif
4395
4396 }
4397 }
4398 EXPORT_SYMBOL_GPL(fs_reclaim_acquire);
4399
fs_reclaim_release(gfp_t gfp_mask)4400 void fs_reclaim_release(gfp_t gfp_mask)
4401 {
4402 gfp_mask = current_gfp_context(gfp_mask);
4403
4404 if (__need_reclaim(gfp_mask)) {
4405 if (gfp_mask & __GFP_FS)
4406 __fs_reclaim_release(_RET_IP_);
4407 }
4408 }
4409 EXPORT_SYMBOL_GPL(fs_reclaim_release);
4410 #endif
4411
4412 /*
4413 * Zonelists may change due to hotplug during allocation. Detect when zonelists
4414 * have been rebuilt so allocation retries. Reader side does not lock and
4415 * retries the allocation if zonelist changes. Writer side is protected by the
4416 * embedded spin_lock.
4417 */
4418 static DEFINE_SEQLOCK(zonelist_update_seq);
4419
zonelist_iter_begin(void)4420 static unsigned int zonelist_iter_begin(void)
4421 {
4422 if (IS_ENABLED(CONFIG_MEMORY_HOTREMOVE))
4423 return read_seqbegin(&zonelist_update_seq);
4424
4425 return 0;
4426 }
4427
check_retry_zonelist(unsigned int seq)4428 static unsigned int check_retry_zonelist(unsigned int seq)
4429 {
4430 if (IS_ENABLED(CONFIG_MEMORY_HOTREMOVE))
4431 return read_seqretry(&zonelist_update_seq, seq);
4432
4433 return seq;
4434 }
4435
4436 /* Perform direct synchronous page reclaim */
4437 static unsigned long
__perform_reclaim(gfp_t gfp_mask,unsigned int order,const struct alloc_context * ac)4438 __perform_reclaim(gfp_t gfp_mask, unsigned int order,
4439 const struct alloc_context *ac)
4440 {
4441 unsigned int noreclaim_flag;
4442 unsigned long progress;
4443
4444 cond_resched();
4445
4446 /* We now go into synchronous reclaim */
4447 cpuset_memory_pressure_bump();
4448 fs_reclaim_acquire(gfp_mask);
4449 noreclaim_flag = memalloc_noreclaim_save();
4450
4451 progress = try_to_free_pages(ac->zonelist, order, gfp_mask,
4452 ac->nodemask);
4453
4454 memalloc_noreclaim_restore(noreclaim_flag);
4455 fs_reclaim_release(gfp_mask);
4456
4457 cond_resched();
4458
4459 return progress;
4460 }
4461
4462 /* The really slow allocator path where we enter direct reclaim */
4463 static inline struct page *
__alloc_pages_direct_reclaim(gfp_t gfp_mask,unsigned int order,unsigned int alloc_flags,const struct alloc_context * ac,unsigned long * did_some_progress)4464 __alloc_pages_direct_reclaim(gfp_t gfp_mask, unsigned int order,
4465 unsigned int alloc_flags, const struct alloc_context *ac,
4466 unsigned long *did_some_progress)
4467 {
4468 struct page *page = NULL;
4469 unsigned long pflags;
4470 bool drained = false;
4471 int reclaim_order = order;
4472
4473 /* Match the slowpath compaction promotion in __alloc_pages_direct_compact */
4474 if ((alloc_flags & ALLOC_NOFRAGMENT) && ac->migratetype != MIGRATE_MOVABLE)
4475 reclaim_order = max(order, pageblock_order);
4476
4477 psi_memstall_enter(&pflags);
4478 *did_some_progress = __perform_reclaim(gfp_mask, reclaim_order, ac);
4479 if (unlikely(!(*did_some_progress)))
4480 goto out;
4481
4482 retry:
4483 page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
4484
4485 /*
4486 * If an allocation failed after direct reclaim, it could be because
4487 * pages are pinned on the per-cpu lists or in high alloc reserves.
4488 * Shrink them and try again
4489 */
4490 if (!page && !drained) {
4491 unreserve_highatomic_pageblock(ac, false);
4492 drain_all_pages(NULL);
4493 drained = true;
4494 goto retry;
4495 }
4496 out:
4497 psi_memstall_leave(&pflags);
4498
4499 return page;
4500 }
4501
wake_all_kswapds(unsigned int order,gfp_t gfp_mask,const struct alloc_context * ac)4502 static void wake_all_kswapds(unsigned int order, gfp_t gfp_mask,
4503 const struct alloc_context *ac)
4504 {
4505 struct zoneref *z;
4506 struct zone *zone;
4507 pg_data_t *last_pgdat = NULL;
4508 enum zone_type highest_zoneidx = ac->highest_zoneidx;
4509 unsigned int reclaim_order;
4510
4511 if (defrag_mode)
4512 reclaim_order = max(order, pageblock_order);
4513 else
4514 reclaim_order = order;
4515
4516 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, highest_zoneidx,
4517 ac->nodemask) {
4518 if (!managed_zone(zone))
4519 continue;
4520 if (last_pgdat == zone->zone_pgdat)
4521 continue;
4522 wakeup_kswapd(zone, gfp_mask, reclaim_order, highest_zoneidx);
4523 last_pgdat = zone->zone_pgdat;
4524 }
4525 }
4526
4527 static inline unsigned int
alloc_flags_nonblocking(gfp_t gfp_mask,unsigned int order)4528 alloc_flags_nonblocking(gfp_t gfp_mask, unsigned int order)
4529 {
4530 unsigned int alloc_flags = 0;
4531
4532 if (gfp_mask & __GFP_DIRECT_RECLAIM)
4533 return 0;
4534
4535 /*
4536 * Not worth trying to allocate harder for __GFP_NOMEMALLOC even
4537 * if it can't schedule.
4538 */
4539 if (gfp_mask & __GFP_NOMEMALLOC)
4540 return 0;
4541
4542 alloc_flags |= ALLOC_NON_BLOCK;
4543
4544 if (order > 0 && (gfp_mask & __GFP_HIGH))
4545 alloc_flags |= ALLOC_HIGHATOMIC;
4546
4547 return alloc_flags;
4548 }
4549
4550 static inline unsigned int
alloc_flags_slowpath(gfp_t gfp_mask,unsigned int order)4551 alloc_flags_slowpath(gfp_t gfp_mask, unsigned int order)
4552 {
4553 unsigned int alloc_flags = ALLOC_WMARK_MIN | ALLOC_CPUSET;
4554
4555 /*
4556 * The caller may dip into page reserves a bit more if the caller
4557 * cannot run direct reclaim, or if the caller has realtime scheduling
4558 * policy or is asking for __GFP_HIGH memory. GFP_ATOMIC requests will
4559 * set both ALLOC_NON_BLOCK and ALLOC_MIN_RESERVE(__GFP_HIGH).
4560 */
4561 if (gfp_mask & __GFP_HIGH)
4562 alloc_flags |= ALLOC_MIN_RESERVE;
4563 if (gfp_mask & __GFP_KSWAPD_RECLAIM)
4564 alloc_flags |= ALLOC_KSWAPD;
4565
4566 alloc_flags |= alloc_flags_nonblocking(gfp_mask, order);
4567
4568 if (!(gfp_mask & __GFP_DIRECT_RECLAIM)) {
4569 /*
4570 * Ignore cpuset mems for non-blocking __GFP_HIGH (probably
4571 * GFP_ATOMIC) rather than fail, see the comment for
4572 * cpuset_current_node_allowed().
4573 */
4574 if (alloc_flags & ALLOC_MIN_RESERVE)
4575 alloc_flags &= ~ALLOC_CPUSET;
4576 } else if (unlikely(rt_or_dl_task(current)) && in_task())
4577 alloc_flags |= ALLOC_MIN_RESERVE;
4578
4579 alloc_flags |= alloc_flags_cma(gfp_mask);
4580
4581 if (defrag_mode)
4582 alloc_flags |= ALLOC_NOFRAGMENT;
4583
4584 return alloc_flags;
4585 }
4586
oom_reserves_allowed(struct task_struct * tsk)4587 static bool oom_reserves_allowed(struct task_struct *tsk)
4588 {
4589 if (!tsk_is_oom_victim(tsk))
4590 return false;
4591
4592 /*
4593 * !MMU doesn't have oom reaper so give access to memory reserves
4594 * only to the thread with TIF_MEMDIE set
4595 */
4596 if (!IS_ENABLED(CONFIG_MMU) && !test_thread_flag(TIF_MEMDIE))
4597 return false;
4598
4599 return true;
4600 }
4601
4602 /*
4603 * Distinguish requests which really need access to full memory
4604 * reserves from oom victims which can live with a portion of it
4605 */
__gfp_pfmemalloc_flags(gfp_t gfp_mask)4606 static inline int __gfp_pfmemalloc_flags(gfp_t gfp_mask)
4607 {
4608 if (unlikely(gfp_mask & __GFP_NOMEMALLOC))
4609 return 0;
4610 if (gfp_mask & __GFP_MEMALLOC)
4611 return ALLOC_NO_WATERMARKS;
4612 if (in_serving_softirq() && (current->flags & PF_MEMALLOC))
4613 return ALLOC_NO_WATERMARKS;
4614 if (!in_interrupt()) {
4615 if (current->flags & PF_MEMALLOC)
4616 return ALLOC_NO_WATERMARKS;
4617 else if (oom_reserves_allowed(current))
4618 return ALLOC_OOM;
4619 }
4620
4621 return 0;
4622 }
4623
gfp_pfmemalloc_allowed(gfp_t gfp_mask)4624 bool gfp_pfmemalloc_allowed(gfp_t gfp_mask)
4625 {
4626 return !!__gfp_pfmemalloc_flags(gfp_mask);
4627 }
4628
4629 /*
4630 * Checks whether it makes sense to retry the reclaim to make a forward progress
4631 * for the given allocation request.
4632 *
4633 * We give up when we either have tried MAX_RECLAIM_RETRIES in a row
4634 * without success, or when we couldn't even meet the watermark if we
4635 * reclaimed all remaining pages on the LRU lists.
4636 *
4637 * Returns true if a retry is viable or false to enter the oom path.
4638 */
4639 static inline bool
should_reclaim_retry(gfp_t gfp_mask,unsigned order,struct alloc_context * ac,int alloc_flags,bool did_some_progress,int * no_progress_loops)4640 should_reclaim_retry(gfp_t gfp_mask, unsigned order,
4641 struct alloc_context *ac, int alloc_flags,
4642 bool did_some_progress, int *no_progress_loops)
4643 {
4644 struct zone *zone;
4645 struct zoneref *z;
4646 bool ret = false;
4647
4648 /*
4649 * Costly allocations might have made a progress but this doesn't mean
4650 * their order will become available due to high fragmentation so
4651 * always increment the no progress counter for them
4652 */
4653 if (did_some_progress && order <= PAGE_ALLOC_COSTLY_ORDER)
4654 *no_progress_loops = 0;
4655 else
4656 (*no_progress_loops)++;
4657
4658 if (*no_progress_loops > MAX_RECLAIM_RETRIES)
4659 goto out;
4660
4661
4662 /*
4663 * Keep reclaiming pages while there is a chance this will lead
4664 * somewhere. If none of the target zones can satisfy our allocation
4665 * request even if all reclaimable pages are considered then we are
4666 * screwed and have to go OOM.
4667 */
4668 for_each_zone_zonelist_nodemask(zone, z, ac->zonelist,
4669 ac->highest_zoneidx, ac->nodemask) {
4670 unsigned long available;
4671 unsigned long reclaimable;
4672 unsigned long min_wmark = min_wmark_pages(zone);
4673 bool wmark;
4674
4675 if (cpusets_enabled() &&
4676 (alloc_flags & ALLOC_CPUSET) &&
4677 !__cpuset_zone_allowed(zone, gfp_mask))
4678 continue;
4679
4680 available = reclaimable = zone_reclaimable_pages(zone);
4681 available += zone_page_state_snapshot(zone, NR_FREE_PAGES);
4682
4683 /*
4684 * Would the allocation succeed if we reclaimed all
4685 * reclaimable pages?
4686 */
4687 wmark = __zone_watermark_ok(zone, order, min_wmark,
4688 ac->highest_zoneidx, alloc_flags, available);
4689 trace_reclaim_retry_zone(z, order, reclaimable,
4690 available, min_wmark, *no_progress_loops, wmark);
4691 if (wmark) {
4692 ret = true;
4693 break;
4694 }
4695 }
4696
4697 /*
4698 * Memory allocation/reclaim might be called from a WQ context and the
4699 * current implementation of the WQ concurrency control doesn't
4700 * recognize that a particular WQ is congested if the worker thread is
4701 * looping without ever sleeping. Therefore we have to do a short sleep
4702 * here rather than calling cond_resched().
4703 */
4704 if (current->flags & PF_WQ_WORKER)
4705 schedule_timeout_uninterruptible(1);
4706 else
4707 cond_resched();
4708 out:
4709 /* Before OOM, exhaust highatomic_reserve */
4710 if (!ret)
4711 return unreserve_highatomic_pageblock(ac, true);
4712
4713 return ret;
4714 }
4715
4716 static inline bool
check_retry_cpuset(int cpuset_mems_cookie,struct alloc_context * ac)4717 check_retry_cpuset(int cpuset_mems_cookie, struct alloc_context *ac)
4718 {
4719 /*
4720 * It's possible that cpuset's mems_allowed and the nodemask from
4721 * mempolicy don't intersect. This should be normally dealt with by
4722 * policy_nodemask(), but it's possible to race with cpuset update in
4723 * such a way the check therein was true, and then it became false
4724 * before we got our cpuset_mems_cookie here.
4725 * This assumes that for all allocations, ac->nodemask can come only
4726 * from MPOL_BIND mempolicy (whose documented semantics is to be ignored
4727 * when it does not intersect with the cpuset restrictions) or the
4728 * caller can deal with a violated nodemask.
4729 */
4730 if (cpusets_enabled() && ac->nodemask &&
4731 !cpuset_nodemask_valid_mems_allowed(ac->nodemask)) {
4732 ac->nodemask = NULL;
4733 return true;
4734 }
4735
4736 /*
4737 * When updating a task's mems_allowed or mempolicy nodemask, it is
4738 * possible to race with parallel threads in such a way that our
4739 * allocation can fail while the mask is being updated. If we are about
4740 * to fail, check if the cpuset changed during allocation and if so,
4741 * retry.
4742 */
4743 if (read_mems_allowed_retry(cpuset_mems_cookie))
4744 return true;
4745
4746 return false;
4747 }
4748
check_alloc_stall_warn(gfp_t gfp_mask,const nodemask_t * nodemask,unsigned int order,unsigned long alloc_start_time)4749 static void check_alloc_stall_warn(gfp_t gfp_mask, const nodemask_t *nodemask,
4750 unsigned int order, unsigned long alloc_start_time)
4751 {
4752 static DEFINE_SPINLOCK(alloc_stall_lock);
4753 unsigned long stall_msecs = jiffies_to_msecs(jiffies - alloc_start_time);
4754
4755 if (likely(stall_msecs < ALLOC_STALL_WARN_MSECS))
4756 return;
4757 if (time_is_after_jiffies(READ_ONCE(alloc_stall_warn_jiffies)))
4758 return;
4759 if (gfp_mask & __GFP_NOWARN)
4760 return;
4761
4762 if (!spin_trylock(&alloc_stall_lock))
4763 return;
4764
4765 /* Check again, this time under the lock */
4766 if (time_is_after_jiffies(alloc_stall_warn_jiffies)) {
4767 spin_unlock(&alloc_stall_lock);
4768 return;
4769 }
4770
4771 WRITE_ONCE(alloc_stall_warn_jiffies, jiffies + msecs_to_jiffies(ALLOC_STALL_WARN_MSECS));
4772 spin_unlock(&alloc_stall_lock);
4773
4774 pr_warn("%s: page allocation stall for %lu secs: order:%d, mode:%#x(%pGg) nodemask=%*pbl",
4775 current->comm, stall_msecs / MSEC_PER_SEC, order, gfp_mask, &gfp_mask,
4776 nodemask_pr_args(nodemask));
4777 cpuset_print_current_mems_allowed();
4778 pr_cont("\n");
4779 dump_stack();
4780 warn_alloc_show_mem(gfp_mask, nodemask);
4781 }
4782
4783 static inline struct page *
__alloc_pages_slowpath(gfp_t gfp_mask,unsigned int order,struct alloc_context * ac)4784 __alloc_pages_slowpath(gfp_t gfp_mask, unsigned int order,
4785 struct alloc_context *ac)
4786 {
4787 bool can_direct_reclaim = gfp_mask & __GFP_DIRECT_RECLAIM;
4788 bool can_compact = can_direct_reclaim && gfp_compaction_allowed(gfp_mask);
4789 bool nofail = gfp_mask & __GFP_NOFAIL;
4790 const bool costly_order = order > PAGE_ALLOC_COSTLY_ORDER;
4791 struct page *page = NULL;
4792 unsigned int alloc_flags;
4793 unsigned long did_some_progress;
4794 enum compact_priority compact_priority;
4795 enum compact_result compact_result;
4796 int compaction_retries;
4797 int no_progress_loops;
4798 unsigned int cpuset_mems_cookie;
4799 unsigned int zonelist_iter_cookie;
4800 int reserve_flags;
4801 bool compact_first = false;
4802 bool can_retry_reserves = true;
4803 unsigned long alloc_start_time = jiffies;
4804
4805 if (unlikely(nofail)) {
4806 /*
4807 * Also we don't support __GFP_NOFAIL without __GFP_DIRECT_RECLAIM,
4808 * otherwise, we may result in lockup.
4809 */
4810 WARN_ON_ONCE(!can_direct_reclaim);
4811 /*
4812 * PF_MEMALLOC request from this context is rather bizarre
4813 * because we cannot reclaim anything and only can loop waiting
4814 * for somebody to do a work for us.
4815 */
4816 WARN_ON_ONCE(current->flags & PF_MEMALLOC);
4817 }
4818
4819 restart:
4820 compaction_retries = 0;
4821 no_progress_loops = 0;
4822 compact_result = COMPACT_SKIPPED;
4823 compact_priority = DEF_COMPACT_PRIORITY;
4824 cpuset_mems_cookie = read_mems_allowed_begin();
4825 zonelist_iter_cookie = zonelist_iter_begin();
4826
4827 /*
4828 * For costly allocations, try direct compaction first, as it's likely
4829 * that we have enough base pages and don't need to reclaim. For non-
4830 * movable high-order allocations, do that as well, as compaction will
4831 * try prevent permanent fragmentation by migrating from blocks of the
4832 * same migratetype.
4833 */
4834 if (can_compact && (costly_order || (order > 0 &&
4835 ac->migratetype != MIGRATE_MOVABLE))) {
4836 compact_first = true;
4837 compact_priority = INIT_COMPACT_PRIORITY;
4838 }
4839
4840 /*
4841 * The fast path uses conservative alloc_flags to succeed only until
4842 * kswapd needs to be woken up, and to avoid the cost of setting up
4843 * alloc_flags precisely. So we do that now.
4844 *
4845 * Can't just or alloc_flags if it contains WMARK bits, but those flags
4846 * shouldn't be set in ac->alloc_flags.
4847 */
4848 VM_WARN_ON(ac->alloc_flags & ALLOC_WMARK_MASK);
4849 alloc_flags = ac->alloc_flags | alloc_flags_slowpath(gfp_mask, order);
4850
4851 /*
4852 * We need to recalculate the starting point for the zonelist iterator
4853 * because we might have used different nodemask in the fast path, or
4854 * there was a cpuset modification and we are retrying - otherwise we
4855 * could end up iterating over non-eligible zones endlessly.
4856 */
4857 ac->preferred_zoneref = first_zones_zonelist(ac->zonelist,
4858 ac->highest_zoneidx, ac->nodemask);
4859 if (!zonelist_zone(ac->preferred_zoneref))
4860 goto nopage;
4861
4862 /*
4863 * Check for insane configurations where the cpuset doesn't contain
4864 * any suitable zone to satisfy the request - e.g. non-movable
4865 * GFP_HIGHUSER allocations from MOVABLE nodes only.
4866 */
4867 if (cpusets_insane_config() && (gfp_mask & __GFP_HARDWALL)) {
4868 struct zoneref *z = first_zones_zonelist(ac->zonelist,
4869 ac->highest_zoneidx,
4870 &cpuset_current_mems_allowed);
4871 if (!zonelist_zone(z))
4872 goto nopage;
4873 }
4874
4875 retry:
4876 /* Ensure kswapd doesn't accidentally go to sleep as long as we loop */
4877 if (alloc_flags & ALLOC_KSWAPD)
4878 wake_all_kswapds(order, gfp_mask, ac);
4879
4880 /*
4881 * The adjusted alloc_flags might result in immediate success, so try
4882 * that first
4883 */
4884 page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
4885 if (page)
4886 goto got_pg;
4887
4888 reserve_flags = __gfp_pfmemalloc_flags(gfp_mask);
4889 if (reserve_flags)
4890 alloc_flags = alloc_flags_cma(gfp_mask) | reserve_flags |
4891 ac->alloc_flags | (alloc_flags & ALLOC_KSWAPD);
4892
4893 /*
4894 * Reset the nodemask and zonelist iterators if memory policies can be
4895 * ignored. These allocations are high priority and system rather than
4896 * user oriented.
4897 */
4898 if (!(alloc_flags & ALLOC_CPUSET) || reserve_flags) {
4899 ac->nodemask = NULL;
4900 ac->preferred_zoneref = first_zones_zonelist(ac->zonelist,
4901 ac->highest_zoneidx, ac->nodemask);
4902
4903 /*
4904 * The first time we adjust anything due to being allowed to
4905 * ignore memory policies or watermarks, retry immediately. This
4906 * allows us to keep the first allocation attempt optimistic so
4907 * it can succeed in a zone that is still above watermarks.
4908 */
4909 if (can_retry_reserves) {
4910 can_retry_reserves = false;
4911 goto retry;
4912 }
4913 }
4914
4915 /* Caller is not willing to reclaim, we can't balance anything */
4916 if (!can_direct_reclaim) {
4917 /*
4918 * Reclaim/compaction cannot run, so defrag_mode's strategy
4919 * of enforcing ALLOC_NOFRAGMENT cannot be fulfilled. Allow
4920 * fallbacks rather than failing the allocation outright.
4921 */
4922 if (defrag_mode && (alloc_flags & ALLOC_NOFRAGMENT) &&
4923 (gfp_mask & __GFP_KSWAPD_RECLAIM)) {
4924 alloc_flags &= ~ALLOC_NOFRAGMENT;
4925 goto retry;
4926 }
4927 goto nopage;
4928 }
4929
4930 /* Avoid recursion of direct reclaim */
4931 if (current->flags & PF_MEMALLOC)
4932 goto nopage;
4933
4934 /* If allocation has taken excessively long, warn about it */
4935 check_alloc_stall_warn(gfp_mask, ac->nodemask, order, alloc_start_time);
4936
4937 /* Try direct reclaim and then allocating */
4938 if (!compact_first) {
4939 page = __alloc_pages_direct_reclaim(gfp_mask, order, alloc_flags,
4940 ac, &did_some_progress);
4941 if (page)
4942 goto got_pg;
4943 }
4944
4945 /* Try direct compaction and then allocating */
4946 page = __alloc_pages_direct_compact(gfp_mask, order, alloc_flags, ac,
4947 compact_priority, &compact_result);
4948 if (page)
4949 goto got_pg;
4950
4951 if (compact_first) {
4952 /*
4953 * THP page faults may attempt local node only first, but are
4954 * then allowed to only compact, not reclaim, see
4955 * alloc_pages_mpol().
4956 *
4957 * Compaction has failed above and we don't want such THP
4958 * allocations to put reclaim pressure on a single node in a
4959 * situation where other nodes might have plenty of available
4960 * memory.
4961 */
4962 if (gfp_has_flags(gfp_mask, __GFP_NORETRY | __GFP_THISNODE))
4963 goto nopage;
4964
4965 /*
4966 * For the initial compaction attempt we have lowered its
4967 * priority. Restore it for further retries, if those are
4968 * allowed. With __GFP_NORETRY there will be a single round of
4969 * reclaim and compaction with the lowered priority.
4970 */
4971 if (!(gfp_mask & __GFP_NORETRY))
4972 compact_priority = DEF_COMPACT_PRIORITY;
4973
4974 compact_first = false;
4975 goto retry;
4976 }
4977
4978 /* Do not loop if specifically requested */
4979 if (gfp_mask & __GFP_NORETRY)
4980 goto nopage;
4981
4982 /*
4983 * Do not retry costly high order allocations unless they are
4984 * __GFP_RETRY_MAYFAIL and we can compact
4985 */
4986 if (costly_order && (!can_compact ||
4987 !(gfp_mask & __GFP_RETRY_MAYFAIL)))
4988 goto nopage;
4989
4990 /*
4991 * Deal with possible cpuset update races or zonelist updates to avoid
4992 * infinite retries. No "goto retry;" can be placed above this check
4993 * unless it can execute just once.
4994 */
4995 if (check_retry_cpuset(cpuset_mems_cookie, ac) ||
4996 check_retry_zonelist(zonelist_iter_cookie))
4997 goto restart;
4998
4999 if (should_reclaim_retry(gfp_mask, order, ac, alloc_flags,
5000 did_some_progress > 0, &no_progress_loops))
5001 goto retry;
5002
5003 /*
5004 * It doesn't make any sense to retry for the compaction if the order-0
5005 * reclaim is not able to make any progress because the current
5006 * implementation of the compaction depends on the sufficient amount
5007 * of free memory (see __compaction_suitable)
5008 */
5009 if (did_some_progress > 0 && can_compact &&
5010 should_compact_retry(gfp_mask, ac, order, alloc_flags,
5011 compact_result, &compact_priority,
5012 &compaction_retries))
5013 goto retry;
5014
5015 /* Reclaim/compaction failed to prevent the fallback */
5016 if (defrag_mode && (alloc_flags & ALLOC_NOFRAGMENT)) {
5017 alloc_flags &= ~ALLOC_NOFRAGMENT;
5018 goto retry;
5019 }
5020
5021 /*
5022 * Deal with possible cpuset update races or zonelist updates to avoid
5023 * a unnecessary OOM kill.
5024 */
5025 if (check_retry_cpuset(cpuset_mems_cookie, ac) ||
5026 check_retry_zonelist(zonelist_iter_cookie))
5027 goto restart;
5028
5029 /* Reclaim has failed us, start killing things */
5030 page = __alloc_pages_may_oom(gfp_mask, order, ac, &did_some_progress);
5031 if (page)
5032 goto got_pg;
5033
5034 /* Avoid allocations with no watermarks from looping endlessly */
5035 if (tsk_is_oom_victim(current) &&
5036 (alloc_flags & ALLOC_OOM ||
5037 (gfp_mask & __GFP_NOMEMALLOC)))
5038 goto nopage;
5039
5040 /* Retry as long as the OOM killer is making progress */
5041 if (did_some_progress) {
5042 no_progress_loops = 0;
5043 goto retry;
5044 }
5045
5046 nopage:
5047 /*
5048 * Deal with possible cpuset update races or zonelist updates to avoid
5049 * a unnecessary OOM kill.
5050 */
5051 if (check_retry_cpuset(cpuset_mems_cookie, ac) ||
5052 check_retry_zonelist(zonelist_iter_cookie))
5053 goto restart;
5054
5055 /*
5056 * Make sure that __GFP_NOFAIL request doesn't leak out and make sure
5057 * we always retry
5058 */
5059 if (unlikely(nofail)) {
5060 unsigned int alloc_flags = ac->alloc_flags | ALLOC_MIN_RESERVE;
5061
5062 /*
5063 * Lacking direct_reclaim we can't do anything to reclaim memory,
5064 * we disregard these unreasonable nofail requests and still
5065 * return NULL
5066 */
5067 if (!can_direct_reclaim)
5068 goto fail;
5069
5070 /*
5071 * Help non-failing allocations by giving some access to memory
5072 * reserves normally used for high priority non-blocking
5073 * allocations but do not use ALLOC_NO_WATERMARKS because this
5074 * could deplete whole memory reserves which would just make
5075 * the situation worse.
5076 */
5077 page = __alloc_pages_cpuset_fallback(gfp_mask, order, alloc_flags, ac);
5078 if (page)
5079 goto got_pg;
5080
5081 cond_resched();
5082 goto retry;
5083 }
5084 fail:
5085 warn_alloc(gfp_mask, ac->nodemask,
5086 "page allocation failure: order:%u", order);
5087 got_pg:
5088 return page;
5089 }
5090
prepare_alloc_pages(gfp_t gfp_mask,unsigned int order,int preferred_nid,nodemask_t * nodemask,struct alloc_context * ac,gfp_t * alloc_gfp,unsigned int * alloc_flags)5091 static inline bool prepare_alloc_pages(gfp_t gfp_mask, unsigned int order,
5092 int preferred_nid, nodemask_t *nodemask,
5093 struct alloc_context *ac, gfp_t *alloc_gfp,
5094 unsigned int *alloc_flags)
5095 {
5096 ac->highest_zoneidx = gfp_zone(gfp_mask);
5097 ac->zonelist = node_zonelist(preferred_nid, gfp_mask);
5098 ac->nodemask = nodemask;
5099 ac->migratetype = gfp_migratetype(gfp_mask);
5100
5101 if (cpusets_enabled()) {
5102 *alloc_gfp |= __GFP_HARDWALL;
5103 /*
5104 * When we are in the interrupt context, it is irrelevant
5105 * to the current task context. It means that any node ok.
5106 */
5107 if (in_task() && !ac->nodemask)
5108 ac->nodemask = &cpuset_current_mems_allowed;
5109 else
5110 *alloc_flags |= ALLOC_CPUSET;
5111 }
5112
5113 might_alloc(gfp_mask);
5114
5115 /*
5116 * Don't invoke should_fail logic, since it may call
5117 * get_random_u32() and printk() which need to spin_lock.
5118 */
5119 if (!(*alloc_flags & ALLOC_NOLOCK) &&
5120 should_fail_alloc_page(gfp_mask, order))
5121 return false;
5122
5123 *alloc_flags |= alloc_flags_cma(gfp_mask);
5124
5125 /* Dirty zone balancing only done in the fast path */
5126 ac->spread_dirty_pages = (gfp_mask & __GFP_WRITE);
5127
5128 /*
5129 * The preferred zone is used for statistics but crucially it is
5130 * also used as the starting point for the zonelist iterator. It
5131 * may get reset for allocations that ignore memory policies.
5132 */
5133 ac->preferred_zoneref = first_zones_zonelist(ac->zonelist,
5134 ac->highest_zoneidx, ac->nodemask);
5135
5136 return true;
5137 }
5138
5139 /*
5140 * __alloc_pages_bulk - Allocate a number of order-0 pages to an array
5141 * @gfp: GFP flags for the allocation
5142 * @preferred_nid: The preferred NUMA node ID to allocate from
5143 * @nodemask: Set of nodes to allocate from, may be NULL
5144 * @nr_pages: The number of pages desired in the array
5145 * @page_array: Array to store the pages
5146 *
5147 * This is a batched version of the page allocator that attempts to allocate
5148 * @nr_pages quickly. Pages are added to @page_array.
5149 *
5150 * Note that only the elements in @page_array that were cleared to %NULL on
5151 * entry are populated with newly allocated pages. @nr_pages is the maximum
5152 * number of pages that will be stored in the array.
5153 *
5154 * Returns the number of pages in @page_array, including ones already
5155 * allocated on entry. This can be less than the number requested in @nr_pages,
5156 * but all empty slots are filled from the beginning. I.e., if all slots in
5157 * @page_array were set to %NULL on entry, the slots from 0 to the return value
5158 * - 1 will be filled.
5159 */
alloc_pages_bulk_noprof(gfp_t gfp,int preferred_nid,nodemask_t * nodemask,int nr_pages,struct page ** page_array)5160 unsigned long alloc_pages_bulk_noprof(gfp_t gfp, int preferred_nid,
5161 nodemask_t *nodemask, int nr_pages,
5162 struct page **page_array)
5163 {
5164 struct page *page;
5165 struct zone *zone;
5166 struct zoneref *z;
5167 struct per_cpu_pages *pcp;
5168 struct list_head *pcp_list;
5169 struct alloc_context ac;
5170 unsigned int alloc_flags = ALLOC_WMARK_LOW;
5171 int nr_populated = 0, nr_account = 0;
5172
5173 /*
5174 * Skip populated array elements to determine if any pages need
5175 * to be allocated before disabling IRQs.
5176 */
5177 while (nr_populated < nr_pages && page_array[nr_populated])
5178 nr_populated++;
5179
5180 /* No pages requested? */
5181 if (unlikely(nr_pages <= 0))
5182 goto out;
5183
5184 /* Already populated array? */
5185 if (unlikely(nr_pages - nr_populated == 0))
5186 goto out;
5187
5188 /* Bulk allocator does not support memcg accounting. */
5189 if (memcg_kmem_online() && (gfp & __GFP_ACCOUNT))
5190 goto failed;
5191
5192 /* Use the single page allocator for one page. */
5193 if (nr_pages - nr_populated == 1)
5194 goto failed;
5195
5196 #ifdef CONFIG_PAGE_OWNER
5197 /*
5198 * PAGE_OWNER may recurse into the allocator to allocate space to
5199 * save the stack with pagesets.lock held. Releasing/reacquiring
5200 * removes much of the performance benefit of bulk allocation so
5201 * force the caller to allocate one page at a time as it'll have
5202 * similar performance to added complexity to the bulk allocator.
5203 */
5204 if (static_branch_unlikely(&page_owner_inited))
5205 goto failed;
5206 #endif
5207
5208 /* May set ALLOC_NOFRAGMENT, fragmentation will return 1 page. */
5209 gfp &= gfp_allowed_mask;
5210 if (!prepare_alloc_pages(gfp, 0, preferred_nid, nodemask, &ac, &gfp, &alloc_flags))
5211 goto out;
5212
5213 /* Find an allowed local zone that meets the low watermark. */
5214 z = ac.preferred_zoneref;
5215 for_next_zone_zonelist_nodemask(zone, z, ac.highest_zoneidx, ac.nodemask) {
5216 unsigned long mark;
5217
5218 if (cpusets_enabled() && (alloc_flags & ALLOC_CPUSET) &&
5219 !__cpuset_zone_allowed(zone, gfp)) {
5220 continue;
5221 }
5222
5223 if (nr_online_nodes > 1 && zone != zonelist_zone(ac.preferred_zoneref) &&
5224 zone_to_nid(zone) != zonelist_node_idx(ac.preferred_zoneref)) {
5225 goto failed;
5226 }
5227
5228 cond_accept_memory(zone, 0, alloc_flags);
5229 retry_this_zone:
5230 mark = wmark_pages(zone, alloc_flags & ALLOC_WMARK_MASK) + nr_pages - nr_populated;
5231 if (zone_watermark_fast(zone, 0, mark,
5232 zonelist_zone_idx(ac.preferred_zoneref),
5233 alloc_flags, gfp)) {
5234 break;
5235 }
5236
5237 if (cond_accept_memory(zone, 0, alloc_flags))
5238 goto retry_this_zone;
5239
5240 /* Try again if zone has deferred pages */
5241 if (deferred_pages_enabled()) {
5242 if (_deferred_grow_zone(zone, 0))
5243 goto retry_this_zone;
5244 }
5245 }
5246
5247 /*
5248 * If there are no allowed local zones that meets the watermarks then
5249 * try to allocate a single page and reclaim if necessary.
5250 */
5251 if (unlikely(!zone))
5252 goto failed;
5253
5254 /* spin_trylock may fail due to a parallel drain or IRQ reentrancy. */
5255 pcp = pcp_spin_trylock(zone->per_cpu_pageset);
5256 if (!pcp)
5257 goto failed;
5258
5259 /* Attempt the batch allocation */
5260 pcp_list = &pcp->lists[order_to_pindex(ac.migratetype, 0)];
5261 while (nr_populated < nr_pages) {
5262
5263 /* Skip existing pages */
5264 if (page_array[nr_populated]) {
5265 nr_populated++;
5266 continue;
5267 }
5268
5269 page = __rmqueue_pcplist(zone, 0, ac.migratetype, alloc_flags,
5270 pcp, pcp_list);
5271 if (unlikely(!page)) {
5272 /* Try and allocate at least one page */
5273 if (!nr_account) {
5274 pcp_spin_unlock(pcp);
5275 goto failed;
5276 }
5277 break;
5278 }
5279 nr_account++;
5280
5281 prep_new_page(page, 0, gfp, ALLOC_DEFAULT);
5282 set_page_refcounted(page);
5283 page_array[nr_populated++] = page;
5284 }
5285
5286 pcp_spin_unlock(pcp);
5287
5288 __count_zid_vm_events(PGALLOC, zone_idx(zone), nr_account);
5289 zone_statistics(zonelist_zone(ac.preferred_zoneref), zone, nr_account);
5290
5291 out:
5292 return nr_populated;
5293
5294 failed:
5295 page = __alloc_pages_noprof(gfp, 0, preferred_nid, nodemask, ALLOC_DEFAULT);
5296 if (page)
5297 page_array[nr_populated++] = page;
5298 goto out;
5299 }
5300 EXPORT_SYMBOL_GPL(alloc_pages_bulk_noprof);
5301
5302 /*
5303 * free_pages_bulk - Free an array of order-0 pages
5304 * @page_array: Array of pages to free
5305 * @nr_pages: The number of pages in the array
5306 *
5307 * Free the order-0 pages. Adjacent entries whose PFNs form a contiguous
5308 * run are released with a single __free_contig_range() call.
5309 *
5310 * This assumes page_array is sorted in ascending PFN order. Without that,
5311 * the function still frees all pages, but contiguous runs may not be
5312 * detected and the freeing pattern can degrade to freeing one page at a
5313 * time.
5314 *
5315 * Context: Sleepable process context only; calls cond_resched()
5316 */
free_pages_bulk(struct page ** page_array,unsigned long nr_pages)5317 void free_pages_bulk(struct page **page_array, unsigned long nr_pages)
5318 {
5319 while (nr_pages) {
5320 unsigned long nr_contig = num_pages_contiguous(page_array, nr_pages);
5321
5322 __free_contig_range(page_to_pfn(*page_array), nr_contig);
5323
5324 nr_pages -= nr_contig;
5325 page_array += nr_contig;
5326 cond_resched();
5327 }
5328 }
5329
alloc_order_allowed(gfp_t gfp,unsigned int order,unsigned int alloc_flags)5330 static inline bool alloc_order_allowed(gfp_t gfp, unsigned int order,
5331 unsigned int alloc_flags)
5332 {
5333 if (alloc_flags & ALLOC_NOLOCK)
5334 return pcp_allowed_order(order);
5335
5336 /*
5337 * There are several places where we assume that the order value is sane
5338 * so bail out early if the request is out of bound.
5339 */
5340 return !(WARN_ON_ONCE_GFP(order > MAX_PAGE_ORDER, gfp));
5341 }
5342
alloc_nolock_allowed(void)5343 static inline bool alloc_nolock_allowed(void)
5344 {
5345 if (!can_spin_trylock())
5346 return false;
5347
5348 /* Bailout, since _deferred_grow_zone() needs to take a lock */
5349 if (deferred_pages_enabled())
5350 return false;
5351
5352 return true;
5353 }
5354
5355 /*
5356 * GFP flags to set for ALLOC_NOLOCK i.e. alloc_pages_nolock().
5357 *
5358 * Do not specify __GFP_DIRECT_RECLAIM, since direct claim is not allowed.
5359 * Do not specify __GFP_KSWAPD_RECLAIM either, since wake up of kswapd
5360 * is not safe in arbitrary context.
5361 *
5362 * These two are the conditions for gfpflags_allow_spinning() being true.
5363 *
5364 * Specify __GFP_NOWARN since failing alloc_pages_nolock() is not a reason
5365 * to warn. Also warn would trigger printk() which is unsafe from
5366 * various contexts. We cannot use printk_deferred_enter() to mitigate,
5367 * since the running context is unknown.
5368 *
5369 * Specify __GFP_ZERO to make sure that call to kmsan_alloc_page() below
5370 * is safe in any context. Also zeroing the page is mandatory for
5371 * BPF use cases.
5372 *
5373 * Though __GFP_NOMEMALLOC is not checked in the code path below,
5374 * specify it here to highlight that alloc_pages_nolock()
5375 * doesn't want to deplete reserves.
5376 */
5377 static const gfp_t gfp_nolock = __GFP_NOWARN | __GFP_ZERO | __GFP_NOMEMALLOC |
5378 __GFP_COMP;
5379
5380 /*
5381 * This is the 'heart' of the zoned buddy allocator.
5382 */
__alloc_frozen_pages_noprof(gfp_t gfp,unsigned int order,int preferred_nid,nodemask_t * nodemask,unsigned int alloc_flags)5383 struct page *__alloc_frozen_pages_noprof(gfp_t gfp, unsigned int order,
5384 int preferred_nid, nodemask_t *nodemask, unsigned int alloc_flags)
5385 {
5386 struct page *page;
5387 gfp_t alloc_gfp; /* The gfp_t that was actually used for allocation */
5388 struct alloc_context ac = {
5389 .alloc_flags = alloc_flags,
5390 };
5391 unsigned int fastpath_alloc_flags = alloc_flags;
5392
5393 /* Other flags could be supported later if needed. */
5394 if (WARN_ON(alloc_flags & ~(ALLOC_NOLOCK | ALLOC_NO_CODETAG)))
5395 return NULL;
5396
5397 if (!alloc_order_allowed(gfp, order, alloc_flags))
5398 return NULL;
5399
5400 if (alloc_flags & ALLOC_NOLOCK) {
5401 /* Certain other flags could be supported later if needed. */
5402 VM_WARN_ON_ONCE(gfp & ~(__GFP_ACCOUNT | gfp_nolock));
5403 if (!alloc_nolock_allowed())
5404 return NULL;
5405 gfp |= gfp_nolock;
5406 fastpath_alloc_flags |= ALLOC_WMARK_MIN;
5407 } else {
5408 fastpath_alloc_flags |= ALLOC_WMARK_LOW;
5409 }
5410
5411 gfp &= gfp_allowed_mask;
5412 /*
5413 * Apply scoped allocation constraints. This is mainly about GFP_NOFS
5414 * resp. GFP_NOIO which has to be inherited for all allocation requests
5415 * from a particular context which has been marked by
5416 * memalloc_no{fs,io}_{save,restore}. And PF_MEMALLOC_PIN which ensures
5417 * movable zones are not used during allocation.
5418 */
5419 gfp = current_gfp_context(gfp);
5420 alloc_gfp = gfp;
5421 if (!prepare_alloc_pages(gfp, order, preferred_nid, nodemask, &ac,
5422 &alloc_gfp, &fastpath_alloc_flags))
5423 return NULL;
5424
5425 if (!(alloc_flags & ALLOC_NOLOCK)) {
5426 /*
5427 * Forbid the first pass from falling back to types that
5428 * fragment memory until all local zones are considered.
5429 */
5430 fastpath_alloc_flags |= alloc_flags_nofragment(
5431 zonelist_zone(ac.preferred_zoneref), gfp);
5432 }
5433 fastpath_alloc_flags |= alloc_flags_nonblocking(gfp, order) & ALLOC_HIGHATOMIC;
5434
5435 /* First allocation attempt (or, for nolock, only attempt) */
5436 page = get_page_from_freelist(alloc_gfp, order, fastpath_alloc_flags, &ac);
5437 if (likely(page) || (alloc_flags & ALLOC_NOLOCK))
5438 goto out;
5439
5440 alloc_gfp = gfp;
5441 ac.spread_dirty_pages = false;
5442
5443 /*
5444 * Restore the original nodemask if it was potentially replaced with
5445 * &cpuset_current_mems_allowed to optimize the fast-path attempt.
5446 */
5447 ac.nodemask = nodemask;
5448
5449 page = __alloc_pages_slowpath(alloc_gfp, order, &ac);
5450
5451 out:
5452 if (memcg_kmem_online() && (gfp & __GFP_ACCOUNT) && page &&
5453 unlikely(__memcg_kmem_charge_page(page, gfp, order) != 0)) {
5454 __free_frozen_pages(page, order,
5455 alloc_flags & ALLOC_NOLOCK ? FPI_NOLOCK : 0);
5456 page = NULL;
5457 }
5458
5459 trace_mm_page_alloc(page, order, alloc_gfp, ac.migratetype);
5460 kmsan_alloc_page(page, order, alloc_gfp);
5461
5462 return page;
5463 }
5464 EXPORT_SYMBOL(__alloc_frozen_pages_noprof);
5465
__alloc_pages_noprof(gfp_t gfp,unsigned int order,int preferred_nid,nodemask_t * nodemask,unsigned int alloc_flags)5466 struct page *__alloc_pages_noprof(gfp_t gfp, unsigned int order,
5467 int preferred_nid, nodemask_t *nodemask, unsigned int alloc_flags)
5468 {
5469 struct page *page;
5470
5471 page = __alloc_frozen_pages_noprof(gfp, order, preferred_nid, nodemask,
5472 alloc_flags);
5473 if (page)
5474 set_page_refcounted(page);
5475 return page;
5476 }
5477
alloc_pages_node_noprof(int nid,gfp_t gfp_mask,unsigned int order)5478 struct page *alloc_pages_node_noprof(int nid, gfp_t gfp_mask, unsigned int order)
5479 {
5480 if (nid == NUMA_NO_NODE)
5481 nid = numa_mem_id();
5482
5483 warn_if_node_offline(nid, gfp_mask);
5484
5485 return __alloc_pages_noprof(gfp_mask, order, nid, NULL, ALLOC_DEFAULT);
5486 }
5487 EXPORT_SYMBOL(alloc_pages_node_noprof);
5488
__folio_alloc_noprof(gfp_t gfp,unsigned int order,int preferred_nid,nodemask_t * nodemask)5489 struct folio *__folio_alloc_noprof(gfp_t gfp, unsigned int order, int preferred_nid,
5490 nodemask_t *nodemask)
5491 {
5492 struct page *page = __alloc_pages_noprof(gfp | __GFP_COMP, order,
5493 preferred_nid, nodemask, ALLOC_DEFAULT);
5494 return page_rmappable_folio(page);
5495 }
5496 EXPORT_SYMBOL(__folio_alloc_noprof);
5497
5498 /*
5499 * Common helper functions. Never use with __GFP_HIGHMEM because the returned
5500 * address cannot represent highmem pages. Use alloc_pages and then kmap if
5501 * you need to access high mem.
5502 */
get_free_pages_noprof(gfp_t gfp_mask,unsigned int order)5503 unsigned long get_free_pages_noprof(gfp_t gfp_mask, unsigned int order)
5504 {
5505 struct page *page;
5506
5507 page = alloc_pages_noprof(gfp_mask & ~__GFP_HIGHMEM, order);
5508 if (!page)
5509 return 0;
5510 return (unsigned long) page_address(page);
5511 }
5512 EXPORT_SYMBOL(get_free_pages_noprof);
5513
get_zeroed_page_noprof(gfp_t gfp_mask)5514 unsigned long get_zeroed_page_noprof(gfp_t gfp_mask)
5515 {
5516 return get_free_pages_noprof(gfp_mask | __GFP_ZERO, 0);
5517 }
5518 EXPORT_SYMBOL(get_zeroed_page_noprof);
5519
___free_pages(struct page * page,unsigned int order,fpi_t fpi_flags)5520 static void ___free_pages(struct page *page, unsigned int order,
5521 fpi_t fpi_flags)
5522 {
5523 /* get PageHead before we drop reference */
5524 int head = PageHead(page);
5525 /* get alloc tag in case the page is released by others */
5526 struct alloc_tag *tag = pgalloc_tag_get(page);
5527
5528 if (put_page_testzero(page))
5529 __free_frozen_pages(page, order, fpi_flags);
5530 else if (!head) {
5531 pgalloc_tag_sub_pages(tag, (1 << order) - 1);
5532 while (order-- > 0) {
5533 /*
5534 * The "tail" pages of this non-compound high-order
5535 * page will have no code tags, so to avoid warnings
5536 * mark them as empty.
5537 */
5538 clear_page_tag_ref(page + (1 << order));
5539 __free_frozen_pages(page + (1 << order), order,
5540 fpi_flags);
5541 }
5542 }
5543 }
5544
5545 /**
5546 * __free_pages - Free pages allocated with alloc_pages().
5547 * @page: The page pointer returned from alloc_pages().
5548 * @order: The order of the allocation.
5549 *
5550 * This function can free multi-page allocations that are not compound
5551 * pages. It does not check that the @order passed in matches that of
5552 * the allocation, so it is easy to leak memory. Freeing more memory
5553 * than was allocated will probably emit a warning.
5554 *
5555 * If the last reference to this page is speculative, it will be released
5556 * by put_page() which only frees the first page of a non-compound
5557 * allocation. To prevent the remaining pages from being leaked, we free
5558 * the subsequent pages here. If you want to use the page's reference
5559 * count to decide when to free the allocation, you should allocate a
5560 * compound page, and use put_page() instead of __free_pages().
5561 *
5562 * Context: May be called in interrupt context or while holding a normal
5563 * spinlock, but not in NMI context or while holding a raw spinlock.
5564 */
__free_pages(struct page * page,unsigned int order)5565 void __free_pages(struct page *page, unsigned int order)
5566 {
5567 ___free_pages(page, order, FPI_NONE);
5568 }
5569 EXPORT_SYMBOL(__free_pages);
5570
5571 /*
5572 * Can be called while holding raw_spin_lock or from IRQ and NMI for any
5573 * page type (not only those that came from alloc_pages_nolock)
5574 */
free_pages_nolock(struct page * page,unsigned int order)5575 void free_pages_nolock(struct page *page, unsigned int order)
5576 {
5577 ___free_pages(page, order, FPI_NOLOCK);
5578 }
5579
5580 /**
5581 * free_pages - Free pages allocated with __get_free_pages().
5582 * @addr: The virtual address tied to a page returned from __get_free_pages().
5583 * @order: The order of the allocation.
5584 *
5585 * This function behaves the same as __free_pages(). Use this function
5586 * to free pages when you only have a valid virtual address. If you have
5587 * the page, call __free_pages() instead.
5588 */
free_pages(unsigned long addr,unsigned int order)5589 void free_pages(unsigned long addr, unsigned int order)
5590 {
5591 if (addr != 0) {
5592 VM_BUG_ON(!virt_addr_valid((void *)addr));
5593 __free_pages(virt_to_page((void *)addr), order);
5594 }
5595 }
5596
5597 EXPORT_SYMBOL(free_pages);
5598
make_alloc_exact(unsigned long addr,unsigned int order,size_t size)5599 static void *make_alloc_exact(unsigned long addr, unsigned int order,
5600 size_t size)
5601 {
5602 if (addr) {
5603 unsigned long nr = DIV_ROUND_UP(size, PAGE_SIZE);
5604 struct page *page = virt_to_page((void *)addr);
5605 struct page *last = page + nr;
5606
5607 __split_page(page, order);
5608 while (page < --last)
5609 set_page_refcounted(last);
5610
5611 last = page + (1UL << order);
5612 for (page += nr; page < last; page++)
5613 __free_pages_ok(page, 0, FPI_TO_TAIL);
5614 }
5615 return (void *)addr;
5616 }
5617
5618 /**
5619 * alloc_pages_exact - allocate an exact number physically-contiguous pages.
5620 * @size: the number of bytes to allocate
5621 * @gfp_mask: GFP flags for the allocation, must not contain __GFP_COMP
5622 *
5623 * This function is similar to alloc_pages(), except that it allocates the
5624 * minimum number of pages to satisfy the request. alloc_pages() can only
5625 * allocate memory in power-of-two pages.
5626 *
5627 * This function is also limited by MAX_PAGE_ORDER.
5628 *
5629 * Memory allocated by this function must be released by free_pages_exact().
5630 *
5631 * Return: pointer to the allocated area or %NULL in case of error.
5632 */
alloc_pages_exact_noprof(size_t size,gfp_t gfp_mask)5633 void *alloc_pages_exact_noprof(size_t size, gfp_t gfp_mask)
5634 {
5635 unsigned int order = get_order(size);
5636 unsigned long addr;
5637
5638 if (WARN_ON_ONCE(gfp_mask & (__GFP_COMP | __GFP_HIGHMEM)))
5639 gfp_mask &= ~(__GFP_COMP | __GFP_HIGHMEM);
5640
5641 addr = get_free_pages_noprof(gfp_mask, order);
5642 return make_alloc_exact(addr, order, size);
5643 }
5644 EXPORT_SYMBOL(alloc_pages_exact_noprof);
5645
5646 /**
5647 * alloc_pages_exact_nid - allocate an exact number of physically-contiguous
5648 * pages on a node.
5649 * @nid: the preferred node ID where memory should be allocated
5650 * @size: the number of bytes to allocate
5651 * @gfp_mask: GFP flags for the allocation, must not contain __GFP_COMP
5652 *
5653 * Like alloc_pages_exact(), but try to allocate on node nid first before falling
5654 * back.
5655 *
5656 * Return: pointer to the allocated area or %NULL in case of error.
5657 */
alloc_pages_exact_nid_noprof(int nid,size_t size,gfp_t gfp_mask)5658 void * __meminit alloc_pages_exact_nid_noprof(int nid, size_t size, gfp_t gfp_mask)
5659 {
5660 unsigned int order = get_order(size);
5661 struct page *p;
5662
5663 if (WARN_ON_ONCE(gfp_mask & (__GFP_COMP | __GFP_HIGHMEM)))
5664 gfp_mask &= ~(__GFP_COMP | __GFP_HIGHMEM);
5665
5666 p = alloc_pages_node_noprof(nid, gfp_mask, order);
5667 if (!p)
5668 return NULL;
5669 return make_alloc_exact((unsigned long)page_address(p), order, size);
5670 }
5671
5672 /**
5673 * free_pages_exact - release memory allocated via alloc_pages_exact()
5674 * @virt: the value returned by alloc_pages_exact.
5675 * @size: size of allocation, same value as passed to alloc_pages_exact().
5676 *
5677 * Release the memory allocated by a previous call to alloc_pages_exact.
5678 */
free_pages_exact(void * virt,size_t size)5679 void free_pages_exact(void *virt, size_t size)
5680 {
5681 unsigned long addr = (unsigned long)virt;
5682 unsigned long end = addr + PAGE_ALIGN(size);
5683
5684 while (addr < end) {
5685 free_page(addr);
5686 addr += PAGE_SIZE;
5687 }
5688 }
5689 EXPORT_SYMBOL(free_pages_exact);
5690
5691 /**
5692 * nr_free_zone_pages - count number of pages beyond high watermark
5693 * @offset: The zone index of the highest zone
5694 *
5695 * nr_free_zone_pages() counts the number of pages which are beyond the
5696 * high watermark within all zones at or below a given zone index. For each
5697 * zone, the number of pages is calculated as:
5698 *
5699 * nr_free_zone_pages = managed_pages - high_pages
5700 *
5701 * Return: number of pages beyond high watermark.
5702 */
nr_free_zone_pages(int offset)5703 static unsigned long nr_free_zone_pages(int offset)
5704 {
5705 struct zoneref *z;
5706 struct zone *zone;
5707
5708 /* Just pick one node, since fallback list is circular */
5709 unsigned long sum = 0;
5710
5711 struct zonelist *zonelist = node_zonelist(numa_node_id(), GFP_KERNEL);
5712
5713 for_each_zone_zonelist(zone, z, zonelist, offset) {
5714 unsigned long size = zone_managed_pages(zone);
5715 unsigned long high = high_wmark_pages(zone);
5716 if (size > high)
5717 sum += size - high;
5718 }
5719
5720 return sum;
5721 }
5722
5723 /**
5724 * nr_free_buffer_pages - count number of pages beyond high watermark
5725 *
5726 * nr_free_buffer_pages() counts the number of pages which are beyond the high
5727 * watermark within ZONE_DMA and ZONE_NORMAL.
5728 *
5729 * Return: number of pages beyond high watermark within ZONE_DMA and
5730 * ZONE_NORMAL.
5731 */
nr_free_buffer_pages(void)5732 unsigned long nr_free_buffer_pages(void)
5733 {
5734 return nr_free_zone_pages(gfp_zone(GFP_USER));
5735 }
5736 EXPORT_SYMBOL_GPL(nr_free_buffer_pages);
5737
zoneref_set_zone(struct zone * zone,struct zoneref * zoneref)5738 static void zoneref_set_zone(struct zone *zone, struct zoneref *zoneref)
5739 {
5740 zoneref->zone = zone;
5741 zoneref->zone_idx = zone_idx(zone);
5742 }
5743
5744 /*
5745 * Builds allocation fallback zone lists.
5746 *
5747 * Add all populated zones of a node to the zonelist.
5748 */
build_zonerefs_node(pg_data_t * pgdat,struct zoneref * zonerefs)5749 static int build_zonerefs_node(pg_data_t *pgdat, struct zoneref *zonerefs)
5750 {
5751 struct zone *zone;
5752 enum zone_type zone_type = MAX_NR_ZONES;
5753 int nr_zones = 0;
5754
5755 do {
5756 zone_type--;
5757 zone = pgdat->node_zones + zone_type;
5758 if (populated_zone(zone)) {
5759 zoneref_set_zone(zone, &zonerefs[nr_zones++]);
5760 check_highest_zone(zone_type);
5761 }
5762 } while (zone_type);
5763
5764 return nr_zones;
5765 }
5766
5767 #ifdef CONFIG_NUMA
5768
__parse_numa_zonelist_order(char * s)5769 static int __parse_numa_zonelist_order(char *s)
5770 {
5771 /*
5772 * We used to support different zonelists modes but they turned
5773 * out to be just not useful. Let's keep the warning in place
5774 * if somebody still use the cmd line parameter so that we do
5775 * not fail it silently
5776 */
5777 if (!(*s == 'd' || *s == 'D' || *s == 'n' || *s == 'N')) {
5778 pr_warn("Ignoring unsupported numa_zonelist_order value: %s\n", s);
5779 return -EINVAL;
5780 }
5781 return 0;
5782 }
5783
5784 static char numa_zonelist_order[] = "Node";
5785 #define NUMA_ZONELIST_ORDER_LEN 16
5786 /*
5787 * sysctl handler for numa_zonelist_order
5788 */
numa_zonelist_order_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)5789 static int numa_zonelist_order_handler(const struct ctl_table *table, int write,
5790 void *buffer, size_t *length, loff_t *ppos)
5791 {
5792 if (write)
5793 return __parse_numa_zonelist_order(buffer);
5794 return proc_dostring(table, write, buffer, length, ppos);
5795 }
5796
5797 static int node_load[MAX_NUMNODES];
5798
5799 /**
5800 * find_next_best_node - find the next node that should appear in a given node's fallback list
5801 * @node: node whose fallback list we're appending
5802 * @used_node_mask: nodemask_t of already used nodes
5803 *
5804 * We use a number of factors to determine which is the next node that should
5805 * appear on a given node's fallback list. The node should not have appeared
5806 * already in @node's fallback list, and it should be the next closest node
5807 * according to the distance array (which contains arbitrary distance values
5808 * from each node to each node in the system), and should also prefer nodes
5809 * with no CPUs, since presumably they'll have very little allocation pressure
5810 * on them otherwise.
5811 *
5812 * Return: node id of the found node or %NUMA_NO_NODE if no node is found.
5813 */
find_next_best_node(int node,nodemask_t * used_node_mask)5814 int find_next_best_node(int node, nodemask_t *used_node_mask)
5815 {
5816 int n, val;
5817 int min_val = INT_MAX;
5818 int best_node = NUMA_NO_NODE;
5819
5820 /*
5821 * Use the local node if we haven't already, but for memoryless local
5822 * node, we should skip it and fall back to other nodes.
5823 */
5824 if (!node_isset(node, *used_node_mask) && node_state(node, N_MEMORY)) {
5825 node_set(node, *used_node_mask);
5826 return node;
5827 }
5828
5829 for_each_node_state(n, N_MEMORY) {
5830
5831 /* Don't want a node to appear more than once */
5832 if (node_isset(n, *used_node_mask))
5833 continue;
5834
5835 /* Use the distance array to find the distance */
5836 val = node_distance(node, n);
5837
5838 /* Penalize nodes under us ("prefer the next node") */
5839 val += (n < node);
5840
5841 /* Give preference to headless and unused nodes */
5842 if (!cpumask_empty(cpumask_of_node(n)))
5843 val += PENALTY_FOR_NODE_WITH_CPUS;
5844
5845 /* Slight preference for less loaded node */
5846 val *= MAX_NUMNODES;
5847 val += node_load[n];
5848
5849 if (val < min_val) {
5850 min_val = val;
5851 best_node = n;
5852 }
5853 }
5854
5855 if (best_node >= 0)
5856 node_set(best_node, *used_node_mask);
5857
5858 return best_node;
5859 }
5860
5861
5862 /*
5863 * Build zonelists ordered by node and zones within node.
5864 * This results in maximum locality--normal zone overflows into local
5865 * DMA zone, if any--but risks exhausting DMA zone.
5866 */
build_zonelists_in_node_order(pg_data_t * pgdat,int * node_order,unsigned nr_nodes)5867 static void build_zonelists_in_node_order(pg_data_t *pgdat, int *node_order,
5868 unsigned nr_nodes)
5869 {
5870 struct zoneref *zonerefs;
5871 int i;
5872
5873 zonerefs = pgdat->node_zonelists[ZONELIST_FALLBACK]._zonerefs;
5874
5875 for (i = 0; i < nr_nodes; i++) {
5876 int nr_zones;
5877
5878 pg_data_t *node = NODE_DATA(node_order[i]);
5879
5880 nr_zones = build_zonerefs_node(node, zonerefs);
5881 zonerefs += nr_zones;
5882 }
5883 zonerefs->zone = NULL;
5884 zonerefs->zone_idx = 0;
5885 }
5886
5887 /*
5888 * Build __GFP_THISNODE zonelists
5889 */
build_thisnode_zonelists(pg_data_t * pgdat)5890 static void build_thisnode_zonelists(pg_data_t *pgdat)
5891 {
5892 struct zoneref *zonerefs;
5893 int nr_zones;
5894
5895 zonerefs = pgdat->node_zonelists[ZONELIST_NOFALLBACK]._zonerefs;
5896 nr_zones = build_zonerefs_node(pgdat, zonerefs);
5897 zonerefs += nr_zones;
5898 zonerefs->zone = NULL;
5899 zonerefs->zone_idx = 0;
5900 }
5901
build_zonelists(pg_data_t * pgdat)5902 static void build_zonelists(pg_data_t *pgdat)
5903 {
5904 static int node_order[MAX_NUMNODES];
5905 int node, nr_nodes = 0;
5906 nodemask_t used_mask = NODE_MASK_NONE;
5907 int local_node, prev_node;
5908
5909 /* NUMA-aware ordering of nodes */
5910 local_node = pgdat->node_id;
5911 prev_node = local_node;
5912
5913 memset(node_order, 0, sizeof(node_order));
5914 while ((node = find_next_best_node(local_node, &used_mask)) >= 0) {
5915 /*
5916 * We don't want to pressure a particular node.
5917 * So adding penalty to the first node in same
5918 * distance group to make it round-robin.
5919 */
5920 if (node_distance(local_node, node) !=
5921 node_distance(local_node, prev_node))
5922 node_load[node] += 1;
5923
5924 node_order[nr_nodes++] = node;
5925 prev_node = node;
5926 }
5927
5928 build_zonelists_in_node_order(pgdat, node_order, nr_nodes);
5929 build_thisnode_zonelists(pgdat);
5930 pr_info("Fallback order for Node %d: ", local_node);
5931 for (node = 0; node < nr_nodes; node++)
5932 pr_cont("%d ", node_order[node]);
5933 pr_cont("\n");
5934 }
5935
5936 #ifdef CONFIG_HAVE_MEMORYLESS_NODES
5937 /*
5938 * Return node id of node used for "local" allocations.
5939 * I.e., first node id of first zone in arg node's generic zonelist.
5940 * Used for initializing percpu 'numa_mem', which is used primarily
5941 * for kernel allocations, so use GFP_KERNEL flags to locate zonelist.
5942 */
local_memory_node(int node)5943 int local_memory_node(int node)
5944 {
5945 struct zoneref *z;
5946
5947 z = first_zones_zonelist(node_zonelist(node, GFP_KERNEL),
5948 gfp_zone(GFP_KERNEL),
5949 NULL);
5950 return zonelist_node_idx(z);
5951 }
5952 #endif
5953
5954 static void setup_min_unmapped_ratio(void);
5955 static void setup_min_slab_ratio(void);
5956 #else /* CONFIG_NUMA */
5957
build_zonelists(pg_data_t * pgdat)5958 static void build_zonelists(pg_data_t *pgdat)
5959 {
5960 struct zoneref *zonerefs;
5961 int nr_zones;
5962
5963 zonerefs = pgdat->node_zonelists[ZONELIST_FALLBACK]._zonerefs;
5964 nr_zones = build_zonerefs_node(pgdat, zonerefs);
5965 zonerefs += nr_zones;
5966
5967 zonerefs->zone = NULL;
5968 zonerefs->zone_idx = 0;
5969 }
5970
5971 #endif /* CONFIG_NUMA */
5972
5973 /*
5974 * Boot pageset table. One per cpu which is going to be used for all
5975 * zones and all nodes. The parameters will be set in such a way
5976 * that an item put on a list will immediately be handed over to
5977 * the buddy list. This is safe since pageset manipulation is done
5978 * with interrupts disabled.
5979 *
5980 * The boot_pagesets must be kept even after bootup is complete for
5981 * unused processors and/or zones. They do play a role for bootstrapping
5982 * hotplugged processors.
5983 *
5984 * zoneinfo_show() and maybe other functions do
5985 * not check if the processor is online before following the pageset pointer.
5986 * Other parts of the kernel may not check if the zone is available.
5987 */
5988 static void per_cpu_pages_init(struct per_cpu_pages *pcp, struct per_cpu_zonestat *pzstats);
5989 /* These effectively disable the pcplists in the boot pageset completely */
5990 #define BOOT_PAGESET_HIGH 0
5991 #define BOOT_PAGESET_BATCH 1
5992 static DEFINE_PER_CPU(struct per_cpu_pages, boot_pageset);
5993 static DEFINE_PER_CPU(struct per_cpu_zonestat, boot_zonestats);
5994
__build_all_zonelists(void * data)5995 static void __build_all_zonelists(void *data)
5996 {
5997 int nid;
5998 int __maybe_unused cpu;
5999 pg_data_t *self = data;
6000 unsigned long flags;
6001
6002 /*
6003 * The zonelist_update_seq must be acquired with irqsave because the
6004 * reader can be invoked from IRQ with GFP_ATOMIC.
6005 */
6006 write_seqlock_irqsave(&zonelist_update_seq, flags);
6007 /*
6008 * Also disable synchronous printk() to prevent any printk() from
6009 * trying to hold port->lock, for
6010 * tty_insert_flip_string_and_push_buffer() on other CPU might be
6011 * calling kmalloc(GFP_ATOMIC | __GFP_NOWARN) with port->lock held.
6012 */
6013 printk_deferred_enter();
6014
6015 #ifdef CONFIG_NUMA
6016 memset(node_load, 0, sizeof(node_load));
6017 #endif
6018
6019 /*
6020 * This node is hotadded and no memory is yet present. So just
6021 * building zonelists is fine - no need to touch other nodes.
6022 */
6023 if (self && !node_online(self->node_id)) {
6024 build_zonelists(self);
6025 } else {
6026 /*
6027 * All possible nodes have pgdat preallocated
6028 * in free_area_init
6029 */
6030 for_each_node(nid) {
6031 pg_data_t *pgdat = NODE_DATA(nid);
6032
6033 build_zonelists(pgdat);
6034 }
6035
6036 #ifdef CONFIG_HAVE_MEMORYLESS_NODES
6037 /*
6038 * We now know the "local memory node" for each node--
6039 * i.e., the node of the first zone in the generic zonelist.
6040 * Set up numa_mem percpu variable for on-line cpus. During
6041 * boot, only the boot cpu should be on-line; we'll init the
6042 * secondary cpus' numa_mem as they come on-line. During
6043 * node/memory hotplug, we'll fixup all on-line cpus.
6044 */
6045 for_each_online_cpu(cpu)
6046 set_cpu_numa_mem(cpu, local_memory_node(cpu_to_node(cpu)));
6047 #endif
6048 }
6049
6050 printk_deferred_exit();
6051 write_sequnlock_irqrestore(&zonelist_update_seq, flags);
6052 }
6053
6054 static noinline void __init
build_all_zonelists_init(void)6055 build_all_zonelists_init(void)
6056 {
6057 int cpu;
6058
6059 __build_all_zonelists(NULL);
6060
6061 /*
6062 * Initialize the boot_pagesets that are going to be used
6063 * for bootstrapping processors. The real pagesets for
6064 * each zone will be allocated later when the per cpu
6065 * allocator is available.
6066 *
6067 * boot_pagesets are used also for bootstrapping offline
6068 * cpus if the system is already booted because the pagesets
6069 * are needed to initialize allocators on a specific cpu too.
6070 * F.e. the percpu allocator needs the page allocator which
6071 * needs the percpu allocator in order to allocate its pagesets
6072 * (a chicken-egg dilemma).
6073 */
6074 for_each_possible_cpu(cpu)
6075 per_cpu_pages_init(&per_cpu(boot_pageset, cpu), &per_cpu(boot_zonestats, cpu));
6076
6077 mminit_verify_zonelist();
6078 cpuset_init_current_mems_allowed();
6079 }
6080
6081 /*
6082 * unless system_state == SYSTEM_BOOTING.
6083 *
6084 * __ref due to call of __init annotated helper build_all_zonelists_init
6085 * [protected by SYSTEM_BOOTING].
6086 */
build_all_zonelists(pg_data_t * pgdat)6087 void __ref build_all_zonelists(pg_data_t *pgdat)
6088 {
6089 unsigned long vm_total_pages;
6090
6091 if (system_state == SYSTEM_BOOTING) {
6092 build_all_zonelists_init();
6093 } else {
6094 __build_all_zonelists(pgdat);
6095 /* cpuset refresh routine should be here */
6096 }
6097 /* Get the number of free pages beyond high watermark in all zones. */
6098 vm_total_pages = nr_free_zone_pages(gfp_zone(GFP_HIGHUSER_MOVABLE));
6099 /*
6100 * Disable grouping by mobility if the number of pages in the
6101 * system is too low to allow the mechanism to work. It would be
6102 * more accurate, but expensive to check per-zone. This check is
6103 * made on memory-hotadd so a system can start with mobility
6104 * disabled and enable it later
6105 */
6106 if (vm_total_pages < (pageblock_nr_pages * MIGRATE_TYPES))
6107 page_group_by_mobility_disabled = 1;
6108 else
6109 page_group_by_mobility_disabled = 0;
6110
6111 pr_info("Built %u zonelists, mobility grouping %s. Total pages: %ld\n",
6112 nr_online_nodes,
6113 str_off_on(page_group_by_mobility_disabled),
6114 vm_total_pages);
6115 #ifdef CONFIG_NUMA
6116 pr_info("Policy zone: %s\n", zone_names[policy_zone]);
6117 #endif
6118 }
6119
zone_batchsize(struct zone * zone)6120 static int zone_batchsize(struct zone *zone)
6121 {
6122 #ifdef CONFIG_MMU
6123 int batch;
6124
6125 /*
6126 * The number of pages to batch allocate is either ~0.025%
6127 * of the zone or 256KB, whichever is smaller. The batch
6128 * size is striking a balance between allocation latency
6129 * and zone lock contention.
6130 */
6131 batch = min(zone_managed_pages(zone) >> 12, SZ_256K / PAGE_SIZE);
6132 if (batch <= 1)
6133 return 1;
6134
6135 /*
6136 * Clamp the batch to a 2^n - 1 value. Having a power
6137 * of 2 value was found to be more likely to have
6138 * suboptimal cache aliasing properties in some cases.
6139 *
6140 * For example if 2 tasks are alternately allocating
6141 * batches of pages, one task can end up with a lot
6142 * of pages of one half of the possible page colors
6143 * and the other with pages of the other colors.
6144 */
6145 batch = rounddown_pow_of_two(batch + batch/2) - 1;
6146
6147 return batch;
6148
6149 #else
6150 /* The deferral and batching of frees should be suppressed under NOMMU
6151 * conditions.
6152 *
6153 * The problem is that NOMMU needs to be able to allocate large chunks
6154 * of contiguous memory as there's no hardware page translation to
6155 * assemble apparent contiguous memory from discontiguous pages.
6156 *
6157 * Queueing large contiguous runs of pages for batching, however,
6158 * causes the pages to actually be freed in smaller chunks. As there
6159 * can be a significant delay between the individual batches being
6160 * recycled, this leads to the once large chunks of space being
6161 * fragmented and becoming unavailable for high-order allocations.
6162 */
6163 return 1;
6164 #endif
6165 }
6166
6167 static int percpu_pagelist_high_fraction;
zone_highsize(struct zone * zone,int batch,int cpu_online,int high_fraction)6168 static int zone_highsize(struct zone *zone, int batch, int cpu_online,
6169 int high_fraction)
6170 {
6171 #ifdef CONFIG_MMU
6172 int high;
6173 int nr_split_cpus;
6174 unsigned long total_pages;
6175
6176 if (!high_fraction) {
6177 /*
6178 * By default, the high value of the pcp is based on the zone
6179 * low watermark so that if they are full then background
6180 * reclaim will not be started prematurely.
6181 */
6182 total_pages = low_wmark_pages(zone);
6183 } else {
6184 /*
6185 * If percpu_pagelist_high_fraction is configured, the high
6186 * value is based on a fraction of the managed pages in the
6187 * zone.
6188 */
6189 total_pages = zone_managed_pages(zone) / high_fraction;
6190 }
6191
6192 /*
6193 * Split the high value across all online CPUs local to the zone. Note
6194 * that early in boot that CPUs may not be online yet and that during
6195 * CPU hotplug that the cpumask is not yet updated when a CPU is being
6196 * onlined. For memory nodes that have no CPUs, split the high value
6197 * across all online CPUs to mitigate the risk that reclaim is triggered
6198 * prematurely due to pages stored on pcp lists.
6199 */
6200 nr_split_cpus = cpumask_weight(cpumask_of_node(zone_to_nid(zone))) + cpu_online;
6201 if (!nr_split_cpus)
6202 nr_split_cpus = num_online_cpus();
6203 high = total_pages / nr_split_cpus;
6204
6205 /*
6206 * Ensure high is at least batch*4. The multiple is based on the
6207 * historical relationship between high and batch.
6208 */
6209 high = max(high, batch << 2);
6210
6211 return high;
6212 #else
6213 return 0;
6214 #endif
6215 }
6216
6217 /*
6218 * pcp->high and pcp->batch values are related and generally batch is lower
6219 * than high. They are also related to pcp->count such that count is lower
6220 * than high, and as soon as it reaches high, the pcplist is flushed.
6221 *
6222 * However, guaranteeing these relations at all times would require e.g. write
6223 * barriers here but also careful usage of read barriers at the read side, and
6224 * thus be prone to error and bad for performance. Thus the update only prevents
6225 * store tearing. Any new users of pcp->batch, pcp->high_min and pcp->high_max
6226 * should ensure they can cope with those fields changing asynchronously, and
6227 * fully trust only the pcp->count field on the local CPU with interrupts
6228 * disabled.
6229 *
6230 * mutex_is_locked(&pcp_batch_high_lock) required when calling this function
6231 * outside of boot time (or some other assurance that no concurrent updaters
6232 * exist).
6233 */
pageset_update(struct per_cpu_pages * pcp,unsigned long high_min,unsigned long high_max,unsigned long batch)6234 static void pageset_update(struct per_cpu_pages *pcp, unsigned long high_min,
6235 unsigned long high_max, unsigned long batch)
6236 {
6237 WRITE_ONCE(pcp->batch, batch);
6238 WRITE_ONCE(pcp->high_min, high_min);
6239 WRITE_ONCE(pcp->high_max, high_max);
6240 }
6241
per_cpu_pages_init(struct per_cpu_pages * pcp,struct per_cpu_zonestat * pzstats)6242 static void per_cpu_pages_init(struct per_cpu_pages *pcp, struct per_cpu_zonestat *pzstats)
6243 {
6244 int pindex;
6245
6246 memset(pcp, 0, sizeof(*pcp));
6247 memset(pzstats, 0, sizeof(*pzstats));
6248
6249 spin_lock_init(&pcp->lock);
6250 for (pindex = 0; pindex < NR_PCP_LISTS; pindex++)
6251 INIT_LIST_HEAD(&pcp->lists[pindex]);
6252
6253 /*
6254 * Set batch and high values safe for a boot pageset. A true percpu
6255 * pageset's initialization will update them subsequently. Here we don't
6256 * need to be as careful as pageset_update() as nobody can access the
6257 * pageset yet.
6258 */
6259 pcp->high_min = BOOT_PAGESET_HIGH;
6260 pcp->high_max = BOOT_PAGESET_HIGH;
6261 pcp->batch = BOOT_PAGESET_BATCH;
6262 }
6263
__zone_set_pageset_high_and_batch(struct zone * zone,unsigned long high_min,unsigned long high_max,unsigned long batch)6264 static void __zone_set_pageset_high_and_batch(struct zone *zone, unsigned long high_min,
6265 unsigned long high_max, unsigned long batch)
6266 {
6267 struct per_cpu_pages *pcp;
6268 int cpu;
6269
6270 for_each_possible_cpu(cpu) {
6271 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu);
6272 pageset_update(pcp, high_min, high_max, batch);
6273 }
6274 }
6275
6276 /*
6277 * Calculate and set new high and batch values for all per-cpu pagesets of a
6278 * zone based on the zone's size.
6279 */
zone_set_pageset_high_and_batch(struct zone * zone,int cpu_online)6280 static void zone_set_pageset_high_and_batch(struct zone *zone, int cpu_online)
6281 {
6282 int new_high_min, new_high_max, new_batch;
6283
6284 new_batch = zone_batchsize(zone);
6285 if (percpu_pagelist_high_fraction) {
6286 new_high_min = zone_highsize(zone, new_batch, cpu_online,
6287 percpu_pagelist_high_fraction);
6288 /*
6289 * PCP high is tuned manually, disable auto-tuning via
6290 * setting high_min and high_max to the manual value.
6291 */
6292 new_high_max = new_high_min;
6293 } else {
6294 new_high_min = zone_highsize(zone, new_batch, cpu_online, 0);
6295 new_high_max = zone_highsize(zone, new_batch, cpu_online,
6296 MIN_PERCPU_PAGELIST_HIGH_FRACTION);
6297 }
6298
6299 if (zone->pageset_high_min == new_high_min &&
6300 zone->pageset_high_max == new_high_max &&
6301 zone->pageset_batch == new_batch)
6302 return;
6303
6304 zone->pageset_high_min = new_high_min;
6305 zone->pageset_high_max = new_high_max;
6306 zone->pageset_batch = new_batch;
6307
6308 __zone_set_pageset_high_and_batch(zone, new_high_min, new_high_max,
6309 new_batch);
6310 }
6311
setup_zone_pageset(struct zone * zone)6312 void __meminit setup_zone_pageset(struct zone *zone)
6313 {
6314 int cpu;
6315
6316 /* Size may be 0 on !SMP && !NUMA */
6317 if (sizeof(struct per_cpu_zonestat) > 0)
6318 zone->per_cpu_zonestats = alloc_percpu(struct per_cpu_zonestat);
6319
6320 zone->per_cpu_pageset = alloc_percpu(struct per_cpu_pages);
6321 for_each_possible_cpu(cpu) {
6322 struct per_cpu_pages *pcp;
6323 struct per_cpu_zonestat *pzstats;
6324
6325 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu);
6326 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu);
6327 per_cpu_pages_init(pcp, pzstats);
6328 }
6329
6330 zone_set_pageset_high_and_batch(zone, 0);
6331 }
6332
6333 /*
6334 * The zone indicated has a new number of managed_pages; batch sizes and percpu
6335 * page high values need to be recalculated.
6336 */
zone_pcp_update(struct zone * zone,int cpu_online)6337 static void zone_pcp_update(struct zone *zone, int cpu_online)
6338 {
6339 mutex_lock(&pcp_batch_high_lock);
6340 zone_set_pageset_high_and_batch(zone, cpu_online);
6341 mutex_unlock(&pcp_batch_high_lock);
6342 }
6343
zone_pcp_update_cacheinfo(struct zone * zone,unsigned int cpu)6344 static void zone_pcp_update_cacheinfo(struct zone *zone, unsigned int cpu)
6345 {
6346 struct per_cpu_pages *pcp;
6347 struct cpu_cacheinfo *cci;
6348
6349 pcp = per_cpu_ptr(zone->per_cpu_pageset, cpu);
6350 cci = get_cpu_cacheinfo(cpu);
6351 /*
6352 * If data cache slice of CPU is large enough, "pcp->batch"
6353 * pages can be preserved in PCP before draining PCP for
6354 * consecutive high-order pages freeing without allocation.
6355 * This can reduce zone lock contention without hurting
6356 * cache-hot pages sharing.
6357 */
6358 pcp_spin_lock_nopin(pcp);
6359 if ((cci->per_cpu_data_slice_size >> PAGE_SHIFT) > 3 * pcp->batch)
6360 pcp->flags |= PCPF_FREE_HIGH_BATCH;
6361 else
6362 pcp->flags &= ~PCPF_FREE_HIGH_BATCH;
6363 pcp_spin_unlock_nopin(pcp);
6364 }
6365
setup_pcp_cacheinfo(unsigned int cpu)6366 void setup_pcp_cacheinfo(unsigned int cpu)
6367 {
6368 struct zone *zone;
6369
6370 for_each_populated_zone(zone)
6371 zone_pcp_update_cacheinfo(zone, cpu);
6372 }
6373
6374 /*
6375 * Allocate per cpu pagesets and initialize them.
6376 * Before this call only boot pagesets were available.
6377 */
setup_per_cpu_pageset(void)6378 void __init setup_per_cpu_pageset(void)
6379 {
6380 struct pglist_data *pgdat;
6381 struct zone *zone;
6382 int __maybe_unused cpu;
6383
6384 for_each_populated_zone(zone)
6385 setup_zone_pageset(zone);
6386
6387 #ifdef CONFIG_NUMA
6388 /*
6389 * Unpopulated zones continue using the boot pagesets.
6390 * The numa stats for these pagesets need to be reset.
6391 * Otherwise, they will end up skewing the stats of
6392 * the nodes these zones are associated with.
6393 */
6394 for_each_possible_cpu(cpu) {
6395 struct per_cpu_zonestat *pzstats = &per_cpu(boot_zonestats, cpu);
6396 memset(pzstats->vm_numa_event, 0,
6397 sizeof(pzstats->vm_numa_event));
6398 }
6399 #endif
6400
6401 for_each_online_pgdat(pgdat)
6402 pgdat->per_cpu_nodestats =
6403 alloc_percpu(struct per_cpu_nodestat);
6404 }
6405
zone_pcp_init(struct zone * zone)6406 __meminit void zone_pcp_init(struct zone *zone)
6407 {
6408 /*
6409 * per cpu subsystem is not up at this point. The following code
6410 * relies on the ability of the linker to provide the
6411 * offset of a (static) per cpu variable into the per cpu area.
6412 */
6413 zone->per_cpu_pageset = &boot_pageset;
6414 zone->per_cpu_zonestats = &boot_zonestats;
6415 zone->pageset_high_min = BOOT_PAGESET_HIGH;
6416 zone->pageset_high_max = BOOT_PAGESET_HIGH;
6417 zone->pageset_batch = BOOT_PAGESET_BATCH;
6418
6419 if (populated_zone(zone))
6420 pr_debug(" %s zone: %lu pages, LIFO batch:%u\n", zone->name,
6421 zone->present_pages, zone_batchsize(zone));
6422 }
6423
6424 static void setup_per_zone_lowmem_reserve(void);
6425
adjust_managed_page_count(struct page * page,long count)6426 void adjust_managed_page_count(struct page *page, long count)
6427 {
6428 atomic_long_add(count, &page_zone(page)->managed_pages);
6429 totalram_pages_add(count);
6430 setup_per_zone_lowmem_reserve();
6431 }
6432 EXPORT_SYMBOL(adjust_managed_page_count);
6433
6434 /**
6435 * free_reserved_pages - free reserved pages
6436 * @page: First page to free.
6437 * @order: The page order to free.
6438 *
6439 * Free pages allocated through memblock during boot, letting the buddy
6440 * manage them from now on.
6441 *
6442 * @page must be naturally aligned to the order and the order must not
6443 * exceed MAX_PAGE_ORDER. All pages must be reserved.
6444 */
free_reserved_pages(struct page * page,unsigned int order)6445 void free_reserved_pages(struct page *page, unsigned int order)
6446 {
6447 const unsigned long nr_pages = 1UL << order;
6448 int i;
6449
6450 VM_WARN_ON_ONCE(!IS_ALIGNED(page_to_pfn(page), nr_pages));
6451 VM_WARN_ON_ONCE(order > MAX_PAGE_ORDER);
6452
6453 for (i = 0; i < nr_pages; i++) {
6454 clear_page_tag_ref(page + i);
6455 set_page_count(page + i, 0);
6456 ClearPageReserved(page + i);
6457 }
6458 adjust_managed_page_count(page, nr_pages);
6459 __free_frozen_pages(page, order, FPI_NONE);
6460 }
6461 EXPORT_SYMBOL(free_reserved_pages);
6462
page_alloc_cpu_dead(unsigned int cpu)6463 static int page_alloc_cpu_dead(unsigned int cpu)
6464 {
6465 struct zone *zone;
6466
6467 lru_add_drain_cpu(cpu);
6468 mlock_drain_remote(cpu);
6469 drain_pages(cpu);
6470
6471 /*
6472 * Spill the event counters of the dead processor
6473 * into the current processors event counters.
6474 * This artificially elevates the count of the current
6475 * processor.
6476 */
6477 vm_events_fold_cpu(cpu);
6478
6479 /*
6480 * Zero the differential counters of the dead processor
6481 * so that the vm statistics are consistent.
6482 *
6483 * This is only okay since the processor is dead and cannot
6484 * race with what we are doing.
6485 */
6486 cpu_vm_stats_fold(cpu);
6487
6488 for_each_populated_zone(zone)
6489 zone_pcp_update(zone, 0);
6490
6491 return 0;
6492 }
6493
page_alloc_cpu_online(unsigned int cpu)6494 static int page_alloc_cpu_online(unsigned int cpu)
6495 {
6496 struct zone *zone;
6497
6498 for_each_populated_zone(zone)
6499 zone_pcp_update(zone, 1);
6500 return 0;
6501 }
6502
page_alloc_init_cpuhp(void)6503 void __init page_alloc_init_cpuhp(void)
6504 {
6505 int ret;
6506
6507 ret = cpuhp_setup_state_nocalls(CPUHP_PAGE_ALLOC,
6508 "mm/page_alloc:pcp",
6509 page_alloc_cpu_online,
6510 page_alloc_cpu_dead);
6511 WARN_ON(ret < 0);
6512 }
6513
6514 /*
6515 * calculate_totalreserve_pages - called when sysctl_lowmem_reserve_ratio
6516 * or min_free_kbytes changes.
6517 */
calculate_totalreserve_pages(void)6518 static void calculate_totalreserve_pages(void)
6519 {
6520 struct pglist_data *pgdat;
6521 unsigned long reserve_pages = 0;
6522 enum zone_type i, j;
6523
6524 for_each_online_pgdat(pgdat) {
6525
6526 pgdat->totalreserve_pages = 0;
6527
6528 for (i = 0; i < MAX_NR_ZONES; i++) {
6529 struct zone *zone = pgdat->node_zones + i;
6530 long max = 0;
6531 unsigned long managed_pages = zone_managed_pages(zone);
6532
6533 /*
6534 * lowmem_reserve[j] is monotonically non-decreasing
6535 * in j for a given zone (see
6536 * setup_per_zone_lowmem_reserve()). The maximum
6537 * valid reserve lives at the highest index with a
6538 * non-zero value, so scan backwards and stop at the
6539 * first hit.
6540 */
6541 for (j = MAX_NR_ZONES - 1; j > i; j--) {
6542 if (!zone->lowmem_reserve[j])
6543 continue;
6544
6545 max = zone->lowmem_reserve[j];
6546 break;
6547 }
6548 /* we treat the high watermark as reserved pages. */
6549 max += high_wmark_pages(zone);
6550
6551 max = min_t(unsigned long, max, managed_pages);
6552
6553 pgdat->totalreserve_pages += max;
6554
6555 reserve_pages += max;
6556 }
6557 }
6558 totalreserve_pages = reserve_pages;
6559 trace_mm_calculate_totalreserve_pages(totalreserve_pages);
6560 }
6561
6562 /*
6563 * setup_per_zone_lowmem_reserve - called whenever
6564 * sysctl_lowmem_reserve_ratio changes. Ensures that each zone
6565 * has a correct pages reserved value, so an adequate number of
6566 * pages are left in the zone after a successful __alloc_pages().
6567 */
setup_per_zone_lowmem_reserve(void)6568 static void setup_per_zone_lowmem_reserve(void)
6569 {
6570 struct pglist_data *pgdat;
6571 enum zone_type i, j;
6572 /*
6573 * For a given zone node_zones[i], lowmem_reserve[j] (j > i)
6574 * represents how many pages in zone i must effectively be kept
6575 * in reserve when deciding whether an allocation class that is
6576 * allowed to allocate from zones up to j may fall back into
6577 * zone i.
6578 *
6579 * As j increases, the allocation class can use a strictly larger
6580 * set of fallback zones and therefore must not be allowed to
6581 * deplete low zones more aggressively than a less flexible one.
6582 * As a result, lowmem_reserve[j] is required to be monotonically
6583 * non-decreasing in j for each zone i. Callers such as
6584 * calculate_totalreserve_pages() rely on this monotonicity when
6585 * selecting the maximum reserve entry.
6586 */
6587 for_each_online_pgdat(pgdat) {
6588 for (i = 0; i < MAX_NR_ZONES - 1; i++) {
6589 struct zone *zone = &pgdat->node_zones[i];
6590 int ratio = sysctl_lowmem_reserve_ratio[i];
6591 bool clear = !ratio || !zone_managed_pages(zone);
6592 unsigned long managed_pages = 0;
6593
6594 for (j = i + 1; j < MAX_NR_ZONES; j++) {
6595 struct zone *upper_zone = &pgdat->node_zones[j];
6596
6597 managed_pages += zone_managed_pages(upper_zone);
6598
6599 if (clear)
6600 zone->lowmem_reserve[j] = 0;
6601 else
6602 zone->lowmem_reserve[j] = managed_pages / ratio;
6603 trace_mm_setup_per_zone_lowmem_reserve(zone, upper_zone,
6604 zone->lowmem_reserve[j]);
6605 }
6606 }
6607 }
6608
6609 /* update totalreserve_pages */
6610 calculate_totalreserve_pages();
6611 }
6612
__setup_per_zone_wmarks(void)6613 static void __setup_per_zone_wmarks(void)
6614 {
6615 unsigned long pages_min = min_free_kbytes >> (PAGE_SHIFT - 10);
6616 unsigned long lowmem_pages = 0;
6617 struct zone *zone;
6618 unsigned long flags;
6619
6620 /* Calculate total number of !ZONE_HIGHMEM and !ZONE_MOVABLE pages */
6621 for_each_zone(zone) {
6622 if (!is_highmem(zone) && zone_idx(zone) != ZONE_MOVABLE)
6623 lowmem_pages += zone_managed_pages(zone);
6624 }
6625
6626 for_each_zone(zone) {
6627 u64 tmp;
6628
6629 spin_lock_irqsave(&zone->lock, flags);
6630 tmp = (u64)pages_min * zone_managed_pages(zone);
6631 tmp = div64_ul(tmp, lowmem_pages);
6632 if (is_highmem(zone) || zone_idx(zone) == ZONE_MOVABLE) {
6633 /*
6634 * __GFP_HIGH and PF_MEMALLOC allocations usually don't
6635 * need highmem and movable zones pages, so cap pages_min
6636 * to a small value here.
6637 *
6638 * The WMARK_HIGH-WMARK_LOW and (WMARK_LOW-WMARK_MIN)
6639 * deltas control async page reclaim, and so should
6640 * not be capped for highmem and movable zones.
6641 */
6642 unsigned long min_pages;
6643
6644 min_pages = zone_managed_pages(zone) / 1024;
6645 min_pages = clamp(min_pages, SWAP_CLUSTER_MAX, 128UL);
6646 zone->_watermark[WMARK_MIN] = min_pages;
6647 } else {
6648 /*
6649 * If it's a lowmem zone, reserve a number of pages
6650 * proportionate to the zone's size.
6651 */
6652 zone->_watermark[WMARK_MIN] = tmp;
6653 }
6654
6655 /*
6656 * Set the kswapd watermarks distance according to the
6657 * scale factor in proportion to available memory, but
6658 * ensure a minimum size on small systems.
6659 */
6660 tmp = max_t(u64, tmp >> 2,
6661 mult_frac(zone_managed_pages(zone),
6662 watermark_scale_factor, 10000));
6663
6664 zone->watermark_boost = 0;
6665 zone->_watermark[WMARK_LOW] = min_wmark_pages(zone) + tmp;
6666 zone->_watermark[WMARK_HIGH] = low_wmark_pages(zone) + tmp;
6667 zone->_watermark[WMARK_PROMO] = high_wmark_pages(zone) + tmp;
6668 trace_mm_setup_per_zone_wmarks(zone);
6669
6670 spin_unlock_irqrestore(&zone->lock, flags);
6671 }
6672
6673 /* update totalreserve_pages */
6674 calculate_totalreserve_pages();
6675 }
6676
6677 /**
6678 * setup_per_zone_wmarks - called when min_free_kbytes changes
6679 * or when memory is hot-{added|removed}
6680 *
6681 * Ensures that the watermark[min,low,high] values for each zone are set
6682 * correctly with respect to min_free_kbytes.
6683 */
setup_per_zone_wmarks(void)6684 void setup_per_zone_wmarks(void)
6685 {
6686 struct zone *zone;
6687 static DEFINE_SPINLOCK(lock);
6688
6689 spin_lock(&lock);
6690 __setup_per_zone_wmarks();
6691 spin_unlock(&lock);
6692
6693 /*
6694 * The watermark size have changed so update the pcpu batch
6695 * and high limits or the limits may be inappropriate.
6696 */
6697 for_each_zone(zone)
6698 zone_pcp_update(zone, 0);
6699 }
6700
6701 /*
6702 * Initialise min_free_kbytes.
6703 *
6704 * For small machines we want it small (128k min). For large machines
6705 * we want it large (256MB max). But it is not linear, because network
6706 * bandwidth does not increase linearly with machine size. We use
6707 *
6708 * min_free_kbytes = 4 * sqrt(lowmem_kbytes), for better accuracy:
6709 * min_free_kbytes = sqrt(lowmem_kbytes * 16)
6710 *
6711 * which yields
6712 *
6713 * 16MB: 512k
6714 * 32MB: 724k
6715 * 64MB: 1024k
6716 * 128MB: 1448k
6717 * 256MB: 2048k
6718 * 512MB: 2896k
6719 * 1024MB: 4096k
6720 * 2048MB: 5792k
6721 * 4096MB: 8192k
6722 * 8192MB: 11584k
6723 * 16384MB: 16384k
6724 */
calculate_min_free_kbytes(void)6725 void calculate_min_free_kbytes(void)
6726 {
6727 unsigned long lowmem_kbytes;
6728 int new_min_free_kbytes;
6729
6730 lowmem_kbytes = nr_free_buffer_pages() * (PAGE_SIZE >> 10);
6731 new_min_free_kbytes = int_sqrt(lowmem_kbytes * 16);
6732
6733 if (new_min_free_kbytes > user_min_free_kbytes)
6734 min_free_kbytes = clamp(new_min_free_kbytes, 128, 262144);
6735 else
6736 pr_warn_ratelimited("min_free_kbytes is not updated to %d because user defined value %d is preferred\n",
6737 new_min_free_kbytes, user_min_free_kbytes);
6738
6739 }
6740
init_per_zone_wmark_min(void)6741 int __meminit init_per_zone_wmark_min(void)
6742 {
6743 calculate_min_free_kbytes();
6744 setup_per_zone_wmarks();
6745 refresh_zone_stat_thresholds();
6746 setup_per_zone_lowmem_reserve();
6747
6748 #ifdef CONFIG_NUMA
6749 setup_min_unmapped_ratio();
6750 setup_min_slab_ratio();
6751 #endif
6752
6753 khugepaged_min_free_kbytes_update();
6754
6755 return 0;
6756 }
postcore_initcall(init_per_zone_wmark_min)6757 postcore_initcall(init_per_zone_wmark_min)
6758
6759 /*
6760 * min_free_kbytes_sysctl_handler - just a wrapper around proc_dointvec() so
6761 * that we can call two helper functions whenever min_free_kbytes
6762 * changes.
6763 */
6764 static int min_free_kbytes_sysctl_handler(const struct ctl_table *table, int write,
6765 void *buffer, size_t *length, loff_t *ppos)
6766 {
6767 int rc;
6768
6769 rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
6770 if (rc)
6771 return rc;
6772
6773 if (write) {
6774 user_min_free_kbytes = min_free_kbytes;
6775 setup_per_zone_wmarks();
6776 }
6777 return 0;
6778 }
6779
watermark_scale_factor_sysctl_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)6780 static int watermark_scale_factor_sysctl_handler(const struct ctl_table *table, int write,
6781 void *buffer, size_t *length, loff_t *ppos)
6782 {
6783 int rc;
6784
6785 rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
6786 if (rc)
6787 return rc;
6788
6789 if (write)
6790 setup_per_zone_wmarks();
6791
6792 return 0;
6793 }
6794
6795 #ifdef CONFIG_NUMA
setup_min_unmapped_ratio(void)6796 static void setup_min_unmapped_ratio(void)
6797 {
6798 pg_data_t *pgdat;
6799 struct zone *zone;
6800
6801 for_each_online_pgdat(pgdat)
6802 pgdat->min_unmapped_pages = 0;
6803
6804 for_each_zone(zone)
6805 zone->zone_pgdat->min_unmapped_pages += (zone_managed_pages(zone) *
6806 sysctl_min_unmapped_ratio) / 100;
6807 }
6808
6809
sysctl_min_unmapped_ratio_sysctl_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)6810 static int sysctl_min_unmapped_ratio_sysctl_handler(const struct ctl_table *table, int write,
6811 void *buffer, size_t *length, loff_t *ppos)
6812 {
6813 int rc;
6814
6815 rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
6816 if (rc)
6817 return rc;
6818
6819 if (write)
6820 setup_min_unmapped_ratio();
6821
6822 return 0;
6823 }
6824
setup_min_slab_ratio(void)6825 static void setup_min_slab_ratio(void)
6826 {
6827 pg_data_t *pgdat;
6828 struct zone *zone;
6829
6830 for_each_online_pgdat(pgdat)
6831 pgdat->min_slab_pages = 0;
6832
6833 for_each_zone(zone)
6834 zone->zone_pgdat->min_slab_pages += (zone_managed_pages(zone) *
6835 sysctl_min_slab_ratio) / 100;
6836 }
6837
sysctl_min_slab_ratio_sysctl_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)6838 static int sysctl_min_slab_ratio_sysctl_handler(const struct ctl_table *table, int write,
6839 void *buffer, size_t *length, loff_t *ppos)
6840 {
6841 int rc;
6842
6843 rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
6844 if (rc)
6845 return rc;
6846
6847 if (write)
6848 setup_min_slab_ratio();
6849
6850 return 0;
6851 }
6852 #endif
6853
6854 /*
6855 * lowmem_reserve_ratio_sysctl_handler - just a wrapper around
6856 * proc_dointvec_minmax() so that we can call
6857 * setup_per_zone_lowmem_reserve() when the sysctl is written.
6858 *
6859 * The reserve ratio obviously has absolutely no relation with the
6860 * minimum watermarks. The lowmem reserve ratio can only make sense
6861 * if in function of the boot time zone sizes.
6862 */
lowmem_reserve_ratio_sysctl_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)6863 static int lowmem_reserve_ratio_sysctl_handler(const struct ctl_table *table,
6864 int write, void *buffer, size_t *length, loff_t *ppos)
6865 {
6866 struct ctl_table tmp = *table;
6867 int ratio[ARRAY_SIZE(sysctl_lowmem_reserve_ratio)];
6868 int rc;
6869
6870 if (!write)
6871 return proc_dointvec_minmax(table, write, buffer, length, ppos);
6872
6873 /*
6874 * proc_dointvec_max() works incrementally. Use a buffer and only set
6875 * the values if all of them parse cleanly.
6876 */
6877 memcpy(ratio, sysctl_lowmem_reserve_ratio, sizeof(ratio));
6878 tmp.data = ratio;
6879
6880 rc = proc_dointvec_minmax(&tmp, write, buffer, length, ppos);
6881 if (rc)
6882 return rc;
6883
6884 memcpy(sysctl_lowmem_reserve_ratio, ratio, sizeof(ratio));
6885 setup_per_zone_lowmem_reserve();
6886
6887 return 0;
6888 }
6889
6890 /*
6891 * percpu_pagelist_high_fraction - changes the pcp->high for each zone on each
6892 * cpu. It is the fraction of total pages in each zone that a hot per cpu
6893 * pagelist can have before it gets flushed back to buddy allocator.
6894 */
percpu_pagelist_high_fraction_sysctl_handler(const struct ctl_table * table,int write,void * buffer,size_t * length,loff_t * ppos)6895 static int percpu_pagelist_high_fraction_sysctl_handler(const struct ctl_table *table,
6896 int write, void *buffer, size_t *length, loff_t *ppos)
6897 {
6898 struct zone *zone;
6899 int old_percpu_pagelist_high_fraction;
6900 int ret;
6901
6902 /*
6903 * Avoid using pcp_batch_high_lock for reads as the value is read
6904 * atomically and a race with offlining is harmless.
6905 */
6906
6907 if (!write)
6908 return proc_dointvec_minmax(table, write, buffer, length, ppos);
6909
6910 mutex_lock(&pcp_batch_high_lock);
6911 old_percpu_pagelist_high_fraction = percpu_pagelist_high_fraction;
6912
6913 ret = proc_dointvec_minmax(table, write, buffer, length, ppos);
6914 if (ret < 0)
6915 goto out;
6916
6917 /* Sanity checking to avoid pcp imbalance */
6918 if (percpu_pagelist_high_fraction &&
6919 percpu_pagelist_high_fraction < MIN_PERCPU_PAGELIST_HIGH_FRACTION) {
6920 percpu_pagelist_high_fraction = old_percpu_pagelist_high_fraction;
6921 ret = -EINVAL;
6922 goto out;
6923 }
6924
6925 /* No change? */
6926 if (percpu_pagelist_high_fraction == old_percpu_pagelist_high_fraction)
6927 goto out;
6928
6929 for_each_populated_zone(zone)
6930 zone_set_pageset_high_and_batch(zone, 0);
6931 out:
6932 mutex_unlock(&pcp_batch_high_lock);
6933 return ret;
6934 }
6935
6936 static const struct ctl_table page_alloc_sysctl_table[] = {
6937 {
6938 .procname = "min_free_kbytes",
6939 .data = &min_free_kbytes,
6940 .maxlen = sizeof(min_free_kbytes),
6941 .mode = 0644,
6942 .proc_handler = min_free_kbytes_sysctl_handler,
6943 .extra1 = SYSCTL_ZERO,
6944 },
6945 {
6946 .procname = "watermark_boost_factor",
6947 .data = &watermark_boost_factor,
6948 .maxlen = sizeof(watermark_boost_factor),
6949 .mode = 0644,
6950 .proc_handler = proc_dointvec_minmax,
6951 .extra1 = SYSCTL_ZERO,
6952 },
6953 {
6954 .procname = "watermark_scale_factor",
6955 .data = &watermark_scale_factor,
6956 .maxlen = sizeof(watermark_scale_factor),
6957 .mode = 0644,
6958 .proc_handler = watermark_scale_factor_sysctl_handler,
6959 .extra1 = SYSCTL_ONE,
6960 .extra2 = SYSCTL_THREE_THOUSAND,
6961 },
6962 {
6963 .procname = "defrag_mode",
6964 .data = &defrag_mode,
6965 .maxlen = sizeof(defrag_mode),
6966 .mode = 0644,
6967 .proc_handler = proc_dointvec_minmax,
6968 .extra1 = SYSCTL_ZERO,
6969 .extra2 = SYSCTL_ONE,
6970 },
6971 {
6972 .procname = "percpu_pagelist_high_fraction",
6973 .data = &percpu_pagelist_high_fraction,
6974 .maxlen = sizeof(percpu_pagelist_high_fraction),
6975 .mode = 0644,
6976 .proc_handler = percpu_pagelist_high_fraction_sysctl_handler,
6977 .extra1 = SYSCTL_ZERO,
6978 },
6979 {
6980 .procname = "lowmem_reserve_ratio",
6981 .data = &sysctl_lowmem_reserve_ratio,
6982 .maxlen = sizeof(sysctl_lowmem_reserve_ratio),
6983 .mode = 0644,
6984 .proc_handler = lowmem_reserve_ratio_sysctl_handler,
6985 .extra1 = SYSCTL_ZERO,
6986 },
6987 #ifdef CONFIG_NUMA
6988 {
6989 .procname = "numa_zonelist_order",
6990 .data = &numa_zonelist_order,
6991 .maxlen = NUMA_ZONELIST_ORDER_LEN,
6992 .mode = 0644,
6993 .proc_handler = numa_zonelist_order_handler,
6994 },
6995 {
6996 .procname = "min_unmapped_ratio",
6997 .data = &sysctl_min_unmapped_ratio,
6998 .maxlen = sizeof(sysctl_min_unmapped_ratio),
6999 .mode = 0644,
7000 .proc_handler = sysctl_min_unmapped_ratio_sysctl_handler,
7001 .extra1 = SYSCTL_ZERO,
7002 .extra2 = SYSCTL_ONE_HUNDRED,
7003 },
7004 {
7005 .procname = "min_slab_ratio",
7006 .data = &sysctl_min_slab_ratio,
7007 .maxlen = sizeof(sysctl_min_slab_ratio),
7008 .mode = 0644,
7009 .proc_handler = sysctl_min_slab_ratio_sysctl_handler,
7010 .extra1 = SYSCTL_ZERO,
7011 .extra2 = SYSCTL_ONE_HUNDRED,
7012 },
7013 #endif
7014 };
7015
page_alloc_sysctl_init(void)7016 void __init page_alloc_sysctl_init(void)
7017 {
7018 register_sysctl_init("vm", page_alloc_sysctl_table);
7019 }
7020
free_prepared_contig_range(struct page * page,unsigned long nr_pages)7021 static void free_prepared_contig_range(struct page *page,
7022 unsigned long nr_pages)
7023 {
7024 unsigned long pfn = page_to_pfn(page);
7025
7026 while (nr_pages) {
7027 unsigned int order;
7028
7029 /* We are limited by the largest buddy order. */
7030 order = pfn ? __ffs(pfn) : MAX_PAGE_ORDER;
7031 /* Don't exceed the number of pages to free. */
7032 order = min_t(unsigned int, order, ilog2(nr_pages));
7033 order = min_t(unsigned int, order, MAX_PAGE_ORDER);
7034
7035 /*
7036 * Free the chunk as a single block. Our caller has already
7037 * called free_pages_prepare() for each order-0 page.
7038 */
7039 __free_frozen_pages(page, order, FPI_PREPARED);
7040
7041 pfn += 1UL << order;
7042 page += 1UL << order;
7043 nr_pages -= 1UL << order;
7044 }
7045 }
7046
__free_contig_range_common(unsigned long pfn,unsigned long nr_pages,bool is_frozen)7047 static void __free_contig_range_common(unsigned long pfn, unsigned long nr_pages,
7048 bool is_frozen)
7049 {
7050 struct page *page, *start = NULL;
7051 unsigned long nr_start = 0;
7052 unsigned long start_sec;
7053 unsigned long i;
7054
7055 for (i = 0; i < nr_pages; i++) {
7056 bool can_free = true;
7057
7058 /*
7059 * Contiguous PFNs might not have contiguous "struct pages"
7060 * in some kernel configs: page++ across a section boundary
7061 * is undefined. Use pfn_to_page() for each PFN.
7062 */
7063 page = pfn_to_page(pfn + i);
7064
7065 VM_WARN_ON_ONCE(PageHead(page));
7066 VM_WARN_ON_ONCE(PageTail(page));
7067
7068 if (!is_frozen)
7069 can_free = put_page_testzero(page);
7070
7071 if (can_free)
7072 can_free = free_pages_prepare(page, 0);
7073
7074 if (!can_free) {
7075 if (start) {
7076 free_prepared_contig_range(start, i - nr_start);
7077 start = NULL;
7078 }
7079 continue;
7080 }
7081
7082 if (start && memdesc_section(&page->flags) != start_sec) {
7083 free_prepared_contig_range(start, i - nr_start);
7084 start = page;
7085 nr_start = i;
7086 start_sec = memdesc_section(&page->flags);
7087 } else if (!start) {
7088 start = page;
7089 nr_start = i;
7090 start_sec = memdesc_section(&page->flags);
7091 }
7092 }
7093
7094 if (start)
7095 free_prepared_contig_range(start, nr_pages - nr_start);
7096 }
7097
7098 /**
7099 * __free_contig_range - Free contiguous range of order-0 pages.
7100 * @pfn: Page frame number of the first page in the range.
7101 * @nr_pages: Number of pages to free.
7102 *
7103 * For each order-0 struct page in the physically contiguous range, put a
7104 * reference. Free any page who's reference count falls to zero. The
7105 * implementation is functionally equivalent to, but significantly faster than
7106 * calling __free_page() for each struct page in a loop.
7107 *
7108 * Memory allocated with alloc_pages(order>=1) then subsequently split to
7109 * order-0 with split_page() is an example of appropriate contiguous pages that
7110 * can be freed with this API.
7111 *
7112 * Context: May be called in interrupt context or while holding a normal
7113 * spinlock, but not in NMI context or while holding a raw spinlock.
7114 */
__free_contig_range(unsigned long pfn,unsigned long nr_pages)7115 void __free_contig_range(unsigned long pfn, unsigned long nr_pages)
7116 {
7117 __free_contig_range_common(pfn, nr_pages, /* is_frozen= */ false);
7118 }
7119
7120 #ifdef CONFIG_CONTIG_ALLOC
7121 /* Usage: See admin-guide/dynamic-debug-howto.rst */
alloc_contig_dump_pages(struct list_head * page_list)7122 static void alloc_contig_dump_pages(struct list_head *page_list)
7123 {
7124 DEFINE_DYNAMIC_DEBUG_METADATA(descriptor, "migrate failure");
7125
7126 if (DYNAMIC_DEBUG_BRANCH(descriptor)) {
7127 struct page *page;
7128
7129 dump_stack();
7130 list_for_each_entry(page, page_list, lru)
7131 dump_page(page, "migration failure");
7132 }
7133 }
7134
7135 /* [start, end) must belong to a single zone. */
__alloc_contig_migrate_range(struct compact_control * cc,unsigned long start,unsigned long end)7136 static int __alloc_contig_migrate_range(struct compact_control *cc,
7137 unsigned long start, unsigned long end)
7138 {
7139 /* This function is based on compact_zone() from compaction.c. */
7140 unsigned int nr_reclaimed;
7141 unsigned long pfn = start;
7142 unsigned int tries = 0;
7143 int ret = 0;
7144 struct migration_target_control mtc = {
7145 .nid = zone_to_nid(cc->zone),
7146 .gfp_mask = cc->gfp_mask,
7147 .reason = MR_CONTIG_RANGE,
7148 };
7149
7150 lru_cache_disable();
7151
7152 while (pfn < end || !list_empty(&cc->migratepages)) {
7153 if (fatal_signal_pending(current)) {
7154 ret = -EINTR;
7155 break;
7156 }
7157
7158 if (list_empty(&cc->migratepages)) {
7159 cc->nr_migratepages = 0;
7160 ret = isolate_migratepages_range(cc, pfn, end);
7161 if (ret && ret != -EAGAIN)
7162 break;
7163 pfn = cc->migrate_pfn;
7164 tries = 0;
7165 } else if (++tries == 5) {
7166 ret = -EBUSY;
7167 break;
7168 }
7169
7170 nr_reclaimed = reclaim_clean_pages_from_list(cc->zone,
7171 &cc->migratepages);
7172 cc->nr_migratepages -= nr_reclaimed;
7173
7174 ret = migrate_pages(&cc->migratepages, alloc_migration_target,
7175 NULL, (unsigned long)&mtc, cc->mode, MR_CONTIG_RANGE, NULL);
7176
7177 /*
7178 * On -ENOMEM, migrate_pages() bails out right away. It is pointless
7179 * to retry again over this error, so do the same here.
7180 */
7181 if (ret == -ENOMEM)
7182 break;
7183 }
7184
7185 lru_cache_enable();
7186 if (ret < 0) {
7187 if (!(cc->gfp_mask & __GFP_NOWARN) && ret == -EBUSY)
7188 alloc_contig_dump_pages(&cc->migratepages);
7189 putback_movable_pages(&cc->migratepages);
7190 }
7191
7192 return (ret < 0) ? ret : 0;
7193 }
7194
split_free_frozen_pages(struct list_head * list,gfp_t gfp_mask)7195 static void split_free_frozen_pages(struct list_head *list, gfp_t gfp_mask)
7196 {
7197 int order;
7198
7199 for (order = 0; order < NR_PAGE_ORDERS; order++) {
7200 struct page *page, *next;
7201 int nr_pages = 1 << order;
7202
7203 list_for_each_entry_safe(page, next, &list[order], lru) {
7204 int i;
7205
7206 post_alloc_hook(page, order, gfp_mask, ALLOC_DEFAULT);
7207 if (!order)
7208 continue;
7209
7210 __split_page(page, order);
7211
7212 /* Add all subpages to the order-0 head, in sequence. */
7213 list_del(&page->lru);
7214 for (i = 0; i < nr_pages; i++)
7215 list_add_tail(&page[i].lru, &list[0]);
7216 }
7217 }
7218 }
7219
__alloc_contig_verify_gfp_mask(gfp_t gfp_mask,gfp_t * gfp_cc_mask)7220 static int __alloc_contig_verify_gfp_mask(gfp_t gfp_mask, gfp_t *gfp_cc_mask)
7221 {
7222 const gfp_t reclaim_mask = __GFP_IO | __GFP_FS | __GFP_RECLAIM;
7223 const gfp_t action_mask = __GFP_COMP | __GFP_RETRY_MAYFAIL | __GFP_NOWARN |
7224 __GFP_ZERO | __GFP_ZEROTAGS | __GFP_SKIP_ZERO |
7225 __GFP_SKIP_KASAN;
7226 const gfp_t cc_action_mask = __GFP_RETRY_MAYFAIL | __GFP_NOWARN;
7227
7228 /*
7229 * We are given the range to allocate; node, mobility and placement
7230 * hints are irrelevant at this point. We'll simply ignore them.
7231 */
7232 gfp_mask &= ~(GFP_ZONEMASK | __GFP_RECLAIMABLE | __GFP_WRITE |
7233 __GFP_HARDWALL | __GFP_THISNODE | __GFP_MOVABLE);
7234
7235 /*
7236 * We only support most reclaim flags (but not NOFAIL/NORETRY), and
7237 * selected action flags.
7238 */
7239 if (gfp_mask & ~(reclaim_mask | action_mask))
7240 return -EINVAL;
7241
7242 /*
7243 * Flags to control page compaction/migration/reclaim, to free up our
7244 * page range. Migratable pages are movable, __GFP_MOVABLE is implied
7245 * for them.
7246 *
7247 * Traditionally we always had __GFP_RETRY_MAYFAIL set, keep doing that
7248 * to not degrade callers.
7249 */
7250 *gfp_cc_mask = (gfp_mask & (reclaim_mask | cc_action_mask)) |
7251 __GFP_MOVABLE | __GFP_RETRY_MAYFAIL;
7252 return 0;
7253 }
7254
__free_contig_frozen_range(unsigned long pfn,unsigned long nr_pages)7255 static void __free_contig_frozen_range(unsigned long pfn, unsigned long nr_pages)
7256 {
7257 __free_contig_range_common(pfn, nr_pages, /* is_frozen= */ true);
7258 }
7259
7260 /**
7261 * alloc_contig_frozen_range() -- tries to allocate given range of frozen pages
7262 * @start: start PFN to allocate
7263 * @end: one-past-the-last PFN to allocate
7264 * @alloc_flags: allocation information
7265 * @gfp_mask: GFP mask. Node/zone/placement hints are ignored; only some
7266 * action and reclaim modifiers are supported. Reclaim modifiers
7267 * control allocation behavior during compaction/migration/reclaim.
7268 *
7269 * The PFN range does not have to be pageblock aligned. The PFN range must
7270 * belong to a single zone.
7271 *
7272 * The first thing this routine does is attempt to MIGRATE_ISOLATE all
7273 * pageblocks in the range. Once isolated, the pageblocks should not
7274 * be modified by others.
7275 *
7276 * All frozen pages which PFN is in [start, end) are allocated for the
7277 * caller, and they could be freed with free_contig_frozen_range(),
7278 * free_frozen_pages() also could be used to free compound frozen pages
7279 * directly.
7280 *
7281 * Return: zero on success or negative error code.
7282 */
alloc_contig_frozen_range_noprof(unsigned long start,unsigned long end,acr_flags_t alloc_flags,gfp_t gfp_mask)7283 int alloc_contig_frozen_range_noprof(unsigned long start, unsigned long end,
7284 acr_flags_t alloc_flags, gfp_t gfp_mask)
7285 {
7286 const unsigned int order = ilog2(end - start);
7287 unsigned long outer_start, outer_end;
7288 int ret = 0;
7289
7290 struct compact_control cc = {
7291 .nr_migratepages = 0,
7292 .order = -1,
7293 .zone = page_zone(pfn_to_page(start)),
7294 .mode = MIGRATE_SYNC,
7295 .ignore_skip_hint = true,
7296 .no_set_skip_hint = true,
7297 .alloc_contig = true,
7298 };
7299 INIT_LIST_HEAD(&cc.migratepages);
7300 enum pb_isolate_mode mode = (alloc_flags & ACR_FLAGS_CMA) ?
7301 PB_ISOLATE_MODE_CMA_ALLOC :
7302 PB_ISOLATE_MODE_OTHER;
7303
7304 /*
7305 * In contrast to the buddy, we allow for orders here that exceed
7306 * MAX_PAGE_ORDER, so we must manually make sure that we are not
7307 * exceeding the maximum folio order.
7308 */
7309 if (WARN_ON_ONCE((gfp_mask & __GFP_COMP) && order > MAX_FOLIO_ORDER))
7310 return -EINVAL;
7311
7312 gfp_mask = current_gfp_context(gfp_mask);
7313 if (__alloc_contig_verify_gfp_mask(gfp_mask, (gfp_t *)&cc.gfp_mask))
7314 return -EINVAL;
7315
7316 /*
7317 * What we do here is we mark all pageblocks in range as
7318 * MIGRATE_ISOLATE. Because pageblock and max order pages may
7319 * have different sizes, and due to the way page allocator
7320 * work, start_isolate_page_range() has special handlings for this.
7321 *
7322 * Once the pageblocks are marked as MIGRATE_ISOLATE, we
7323 * migrate the pages from an unaligned range (ie. pages that
7324 * we are interested in). This will put all the pages in
7325 * range back to page allocator as MIGRATE_ISOLATE.
7326 *
7327 * When this is done, we take the pages in range from page
7328 * allocator removing them from the buddy system. This way
7329 * page allocator will never consider using them.
7330 *
7331 * This lets us mark the pageblocks back as
7332 * MIGRATE_CMA/MIGRATE_MOVABLE so that free pages in the
7333 * aligned range but not in the unaligned, original range are
7334 * put back to page allocator so that buddy can use them.
7335 */
7336
7337 ret = start_isolate_page_range(start, end, mode);
7338 if (ret)
7339 goto done;
7340
7341 drain_all_pages(cc.zone);
7342
7343 /*
7344 * In case of -EBUSY, we'd like to know which page causes problem.
7345 * So, just fall through. test_pages_isolated() has a tracepoint
7346 * which will report the busy page.
7347 *
7348 * It is possible that busy pages could become available before
7349 * the call to test_pages_isolated, and the range will actually be
7350 * allocated. So, if we fall through be sure to clear ret so that
7351 * -EBUSY is not accidentally used or returned to caller.
7352 */
7353 ret = __alloc_contig_migrate_range(&cc, start, end);
7354 if (ret && ret != -EBUSY)
7355 goto done;
7356
7357 /*
7358 * When in-use hugetlb pages are migrated, they may simply be released
7359 * back into the free hugepage pool instead of being returned to the
7360 * buddy system. After the migration of in-use huge pages is completed,
7361 * we will invoke replace_free_hugepage_folios() to ensure that these
7362 * hugepages are properly released to the buddy system.
7363 */
7364 ret = replace_free_hugepage_folios(start, end);
7365 if (ret)
7366 goto done;
7367
7368 /*
7369 * Pages from [start, end) are within a pageblock_nr_pages
7370 * aligned blocks that are marked as MIGRATE_ISOLATE. What's
7371 * more, all pages in [start, end) are free in page allocator.
7372 * What we are going to do is to allocate all pages from
7373 * [start, end) (that is remove them from page allocator).
7374 *
7375 * The only problem is that pages at the beginning and at the
7376 * end of interesting range may be not aligned with pages that
7377 * page allocator holds, ie. they can be part of higher order
7378 * pages. Because of this, we reserve the bigger range and
7379 * once this is done free the pages we are not interested in.
7380 *
7381 * We don't have to hold zone->lock here because the pages are
7382 * isolated thus they won't get removed from buddy.
7383 */
7384 outer_start = find_large_buddy(start);
7385
7386 /* Make sure the range is really isolated. */
7387 if (test_pages_isolated(outer_start, end, mode)) {
7388 ret = -EBUSY;
7389 goto done;
7390 }
7391
7392 /* Grab isolated pages from freelists. */
7393 outer_end = isolate_freepages_range(&cc, outer_start, end);
7394 if (!outer_end) {
7395 ret = -EBUSY;
7396 goto done;
7397 }
7398
7399 if (!(gfp_mask & __GFP_COMP)) {
7400 split_free_frozen_pages(cc.freepages, gfp_mask);
7401
7402 /* Free head and tail (if any) */
7403 if (start != outer_start)
7404 __free_contig_frozen_range(outer_start, start - outer_start);
7405 if (end != outer_end)
7406 __free_contig_frozen_range(end, outer_end - end);
7407 } else if (start == outer_start && end == outer_end && is_power_of_2(end - start)) {
7408 struct page *head = pfn_to_page(start);
7409
7410 check_new_pages(head, order);
7411 prep_new_page(head, order, gfp_mask, ALLOC_DEFAULT);
7412 } else {
7413 ret = -EINVAL;
7414 WARN(true, "PFN range: requested [%lu, %lu), allocated [%lu, %lu)\n",
7415 start, end, outer_start, outer_end);
7416 }
7417 done:
7418 undo_isolate_page_range(start, end);
7419 return ret;
7420 }
7421 EXPORT_SYMBOL(alloc_contig_frozen_range_noprof);
7422
7423 /**
7424 * alloc_contig_range() -- tries to allocate given range of pages
7425 * @start: start PFN to allocate
7426 * @end: one-past-the-last PFN to allocate
7427 * @alloc_flags: allocation information
7428 * @gfp_mask: GFP mask.
7429 *
7430 * This routine is a wrapper around alloc_contig_frozen_range(), it can't
7431 * be used to allocate compound pages, the refcount of each allocated page
7432 * will be set to one.
7433 *
7434 * All pages which PFN is in [start, end) are allocated for the caller,
7435 * and should be freed with free_contig_range() or by manually calling
7436 * __free_page() on each allocated page.
7437 *
7438 * Return: zero on success or negative error code.
7439 */
alloc_contig_range_noprof(unsigned long start,unsigned long end,acr_flags_t alloc_flags,gfp_t gfp_mask)7440 int alloc_contig_range_noprof(unsigned long start, unsigned long end,
7441 acr_flags_t alloc_flags, gfp_t gfp_mask)
7442 {
7443 int ret;
7444
7445 if (WARN_ON(gfp_mask & __GFP_COMP))
7446 return -EINVAL;
7447
7448 ret = alloc_contig_frozen_range_noprof(start, end, alloc_flags, gfp_mask);
7449 if (!ret)
7450 set_pages_refcounted(pfn_to_page(start), end - start);
7451
7452 return ret;
7453 }
7454 EXPORT_SYMBOL(alloc_contig_range_noprof);
7455
pfn_range_valid_contig(struct zone * z,unsigned long start_pfn,unsigned long nr_pages,bool skip_hugetlb,bool * skipped_hugetlb)7456 static bool pfn_range_valid_contig(struct zone *z, unsigned long start_pfn,
7457 unsigned long nr_pages, bool skip_hugetlb,
7458 bool *skipped_hugetlb)
7459 {
7460 unsigned long end_pfn = start_pfn + nr_pages;
7461 struct page *page;
7462
7463 while (start_pfn < end_pfn) {
7464 unsigned long step = 1;
7465
7466 page = pfn_to_online_page(start_pfn);
7467 if (!page)
7468 return false;
7469
7470 if (page_zone(page) != z)
7471 return false;
7472
7473 if (page_is_unmovable(z, page, PB_ISOLATE_MODE_OTHER, &step))
7474 return false;
7475
7476 /*
7477 * Only consider ranges containing hugepages if those pages are
7478 * smaller than the requested contiguous region. e.g.:
7479 * Move 2MB pages to free up a 1GB range.
7480 * Don't move 1GB pages to free up a 2MB range.
7481 *
7482 * This makes contiguous allocation more reliable if multiple
7483 * hugepage sizes are used without causing needless movement.
7484 */
7485 if (PageHuge(page)) {
7486 unsigned int order;
7487
7488 if (skip_hugetlb) {
7489 *skipped_hugetlb = true;
7490 return false;
7491 }
7492
7493 page = compound_head(page);
7494 order = compound_order(page);
7495 if ((order >= MAX_FOLIO_ORDER) ||
7496 (nr_pages <= (1 << order)))
7497 return false;
7498 }
7499
7500 start_pfn += step;
7501 }
7502 return true;
7503 }
7504
zone_spans_last_pfn(const struct zone * zone,unsigned long start_pfn,unsigned long nr_pages)7505 static bool zone_spans_last_pfn(const struct zone *zone,
7506 unsigned long start_pfn, unsigned long nr_pages)
7507 {
7508 unsigned long last_pfn = start_pfn + nr_pages - 1;
7509
7510 return zone_spans_pfn(zone, last_pfn);
7511 }
7512
7513 /**
7514 * alloc_contig_frozen_pages() -- tries to find and allocate contiguous range of frozen pages
7515 * @nr_pages: Number of contiguous pages to allocate
7516 * @gfp_mask: GFP mask. Node/zone/placement hints limit the search; only some
7517 * action and reclaim modifiers are supported. Reclaim modifiers
7518 * control allocation behavior during compaction/migration/reclaim.
7519 * @nid: Target node
7520 * @nodemask: Mask for other possible nodes
7521 *
7522 * This routine is a wrapper around alloc_contig_frozen_range(). It scans over
7523 * zones on an applicable zonelist to find a contiguous pfn range which can then
7524 * be tried for allocation with alloc_contig_frozen_range(). This routine is
7525 * intended for allocation requests which can not be fulfilled with the buddy
7526 * allocator.
7527 *
7528 * The allocated memory is always aligned to a page boundary. If nr_pages is a
7529 * power of two, then allocated range is also guaranteed to be aligned to same
7530 * nr_pages (e.g. 1GB request would be aligned to 1GB).
7531 *
7532 * Allocated frozen pages need be freed with free_contig_frozen_range(),
7533 * or by manually calling free_frozen_pages() on each allocated frozen
7534 * non-compound page, for compound frozen pages could be freed with
7535 * free_frozen_pages() directly.
7536 *
7537 * Return: pointer to contiguous frozen pages on success, or NULL if not successful.
7538 */
alloc_contig_frozen_pages_noprof(unsigned long nr_pages,gfp_t gfp_mask,int nid,nodemask_t * nodemask)7539 struct page *alloc_contig_frozen_pages_noprof(unsigned long nr_pages,
7540 gfp_t gfp_mask, int nid, nodemask_t *nodemask)
7541 {
7542 unsigned long ret, pfn, flags;
7543 struct zonelist *zonelist;
7544 struct zone *zone;
7545 struct zoneref *z;
7546 bool skip_hugetlb = true;
7547 bool skipped_hugetlb = false;
7548
7549 retry:
7550 zonelist = node_zonelist(nid, gfp_mask);
7551 for_each_zone_zonelist_nodemask(zone, z, zonelist,
7552 gfp_zone(gfp_mask), nodemask) {
7553 spin_lock_irqsave(&zone->lock, flags);
7554
7555 pfn = ALIGN(zone->zone_start_pfn, nr_pages);
7556 while (zone_spans_last_pfn(zone, pfn, nr_pages)) {
7557 if (pfn_range_valid_contig(zone, pfn, nr_pages,
7558 skip_hugetlb,
7559 &skipped_hugetlb)) {
7560 /*
7561 * We release the zone lock here because
7562 * alloc_contig_frozen_range() will also lock
7563 * the zone at some point. If there's an
7564 * allocation spinning on this lock, it may
7565 * win the race and cause allocation to fail.
7566 */
7567 spin_unlock_irqrestore(&zone->lock, flags);
7568 ret = alloc_contig_frozen_range_noprof(pfn,
7569 pfn + nr_pages,
7570 ACR_FLAGS_NONE,
7571 gfp_mask);
7572 if (!ret)
7573 return pfn_to_page(pfn);
7574 spin_lock_irqsave(&zone->lock, flags);
7575 }
7576 pfn += nr_pages;
7577 }
7578 spin_unlock_irqrestore(&zone->lock, flags);
7579 }
7580 /*
7581 * If we failed, retry the search, but treat regions with HugeTLB pages
7582 * as valid targets. This retains fast-allocations on first pass
7583 * without trying to migrate HugeTLB pages (which may fail). On the
7584 * second pass, we will try moving HugeTLB pages when those pages are
7585 * smaller than the requested contiguous region size.
7586 */
7587 if (skip_hugetlb && skipped_hugetlb) {
7588 skip_hugetlb = false;
7589 goto retry;
7590 }
7591 return NULL;
7592 }
7593 EXPORT_SYMBOL(alloc_contig_frozen_pages_noprof);
7594
7595 /**
7596 * alloc_contig_pages() -- tries to find and allocate contiguous range of pages
7597 * @nr_pages: Number of contiguous pages to allocate
7598 * @gfp_mask: GFP mask.
7599 * @nid: Target node
7600 * @nodemask: Mask for other possible nodes
7601 *
7602 * This routine is a wrapper around alloc_contig_frozen_pages(), it can't
7603 * be used to allocate compound pages, the refcount of each allocated page
7604 * will be set to one.
7605 *
7606 * Allocated pages can be freed with free_contig_range() or by manually
7607 * calling __free_page() on each allocated page.
7608 *
7609 * Return: pointer to contiguous pages on success, or NULL if not successful.
7610 */
alloc_contig_pages_noprof(unsigned long nr_pages,gfp_t gfp_mask,int nid,nodemask_t * nodemask)7611 struct page *alloc_contig_pages_noprof(unsigned long nr_pages, gfp_t gfp_mask,
7612 int nid, nodemask_t *nodemask)
7613 {
7614 struct page *page;
7615
7616 if (WARN_ON(gfp_mask & __GFP_COMP))
7617 return NULL;
7618
7619 page = alloc_contig_frozen_pages_noprof(nr_pages, gfp_mask, nid,
7620 nodemask);
7621 if (page)
7622 set_pages_refcounted(page, nr_pages);
7623
7624 return page;
7625 }
7626 EXPORT_SYMBOL(alloc_contig_pages_noprof);
7627
7628 /**
7629 * free_contig_frozen_range() -- free the contiguous range of frozen pages
7630 * @pfn: start PFN to free
7631 * @nr_pages: Number of contiguous frozen pages to free
7632 *
7633 * This can be used to free the allocated compound/non-compound frozen pages.
7634 */
free_contig_frozen_range(unsigned long pfn,unsigned long nr_pages)7635 void free_contig_frozen_range(unsigned long pfn, unsigned long nr_pages)
7636 {
7637 struct page *first_page = pfn_to_page(pfn);
7638 const unsigned int order = ilog2(nr_pages);
7639
7640 if (WARN_ON_ONCE(first_page != compound_head(first_page)))
7641 return;
7642
7643 if (PageHead(first_page)) {
7644 WARN_ON_ONCE(order != compound_order(first_page));
7645 free_frozen_pages(first_page, order);
7646 return;
7647 }
7648
7649 __free_contig_frozen_range(pfn, nr_pages);
7650 }
7651 EXPORT_SYMBOL(free_contig_frozen_range);
7652
7653 /**
7654 * free_contig_range() -- free the contiguous range of pages
7655 * @pfn: start PFN to free
7656 * @nr_pages: Number of contiguous pages to free
7657 *
7658 * This can be only used to free the allocated non-compound pages.
7659 */
free_contig_range(unsigned long pfn,unsigned long nr_pages)7660 void free_contig_range(unsigned long pfn, unsigned long nr_pages)
7661 {
7662 if (WARN_ON_ONCE(PageHead(pfn_to_page(pfn))))
7663 return;
7664
7665 __free_contig_range(pfn, nr_pages);
7666 }
7667 EXPORT_SYMBOL(free_contig_range);
7668 #endif /* CONFIG_CONTIG_ALLOC */
7669
7670 /*
7671 * Effectively disable pcplists for the zone by setting the high limit to 0
7672 * and draining all cpus. A concurrent page freeing on another CPU that's about
7673 * to put the page on pcplist will either finish before the drain and the page
7674 * will be drained, or observe the new high limit and skip the pcplist.
7675 *
7676 * Must be paired with a call to zone_pcp_enable().
7677 */
zone_pcp_disable(struct zone * zone)7678 void zone_pcp_disable(struct zone *zone)
7679 {
7680 mutex_lock(&pcp_batch_high_lock);
7681 __zone_set_pageset_high_and_batch(zone, 0, 0, 1);
7682 __drain_all_pages(zone, true);
7683 }
7684
zone_pcp_enable(struct zone * zone)7685 void zone_pcp_enable(struct zone *zone)
7686 {
7687 __zone_set_pageset_high_and_batch(zone, zone->pageset_high_min,
7688 zone->pageset_high_max, zone->pageset_batch);
7689 mutex_unlock(&pcp_batch_high_lock);
7690 }
7691
zone_pcp_reset(struct zone * zone)7692 void zone_pcp_reset(struct zone *zone)
7693 {
7694 int cpu;
7695 struct per_cpu_zonestat *pzstats;
7696
7697 if (zone->per_cpu_pageset != &boot_pageset) {
7698 for_each_online_cpu(cpu) {
7699 pzstats = per_cpu_ptr(zone->per_cpu_zonestats, cpu);
7700 drain_zonestat(zone, pzstats);
7701 }
7702 free_percpu(zone->per_cpu_pageset);
7703 zone->per_cpu_pageset = &boot_pageset;
7704 if (zone->per_cpu_zonestats != &boot_zonestats) {
7705 free_percpu(zone->per_cpu_zonestats);
7706 zone->per_cpu_zonestats = &boot_zonestats;
7707 }
7708 }
7709 }
7710
7711 #ifdef CONFIG_MEMORY_HOTREMOVE
7712 /*
7713 * All pages in the range must be in a single zone, must not contain holes,
7714 * must span full sections, and must be isolated before calling this function.
7715 *
7716 * Returns the number of managed (non-PageOffline()) pages in the range: the
7717 * number of pages for which memory offlining code must adjust managed page
7718 * counters using adjust_managed_page_count().
7719 */
__offline_isolated_pages(unsigned long start_pfn,unsigned long end_pfn)7720 unsigned long __offline_isolated_pages(unsigned long start_pfn,
7721 unsigned long end_pfn)
7722 {
7723 unsigned long already_offline = 0;
7724 unsigned long pfn = start_pfn;
7725 struct page *page;
7726 struct zone *zone;
7727 unsigned int order;
7728
7729 offline_mem_sections(pfn, end_pfn);
7730 zone = page_zone(pfn_to_page(pfn));
7731 guard(spinlock_irqsave)(&zone->lock);
7732 while (pfn < end_pfn) {
7733 page = pfn_to_page(pfn);
7734 /*
7735 * The HWPoisoned page may be not in buddy system, and
7736 * page_count() is not 0.
7737 */
7738 if (unlikely(!PageBuddy(page) && PageHWPoison(page))) {
7739 pfn++;
7740 continue;
7741 }
7742 /*
7743 * At this point all remaining PageOffline() pages have a
7744 * reference count of 0 and can simply be skipped.
7745 */
7746 if (PageOffline(page)) {
7747 BUG_ON(page_count(page));
7748 BUG_ON(PageBuddy(page));
7749 already_offline++;
7750 pfn++;
7751 continue;
7752 }
7753
7754 BUG_ON(page_count(page));
7755 BUG_ON(!PageBuddy(page));
7756 VM_WARN_ON(get_pageblock_migratetype(page) != MIGRATE_ISOLATE);
7757 order = buddy_order(page);
7758 del_page_from_free_list(page, zone, order, MIGRATE_ISOLATE);
7759 pfn += (1 << order);
7760 }
7761
7762 return end_pfn - start_pfn - already_offline;
7763 }
7764 #endif
7765
7766 /*
7767 * This function returns a stable result only if called under zone lock.
7768 */
is_free_buddy_page(const struct page * page)7769 bool is_free_buddy_page(const struct page *page)
7770 {
7771 unsigned long pfn = page_to_pfn(page);
7772 unsigned int order;
7773
7774 for (order = 0; order < NR_PAGE_ORDERS; order++) {
7775 const struct page *head = page - (pfn & ((1 << order) - 1));
7776
7777 if (PageBuddy(head) &&
7778 buddy_order_unsafe(head) >= order)
7779 break;
7780 }
7781
7782 return order <= MAX_PAGE_ORDER;
7783 }
7784 EXPORT_SYMBOL(is_free_buddy_page);
7785
7786 #ifdef CONFIG_MEMORY_FAILURE
add_to_free_list(struct page * page,struct zone * zone,unsigned int order,int migratetype,bool tail)7787 static inline void add_to_free_list(struct page *page, struct zone *zone,
7788 unsigned int order, int migratetype,
7789 bool tail)
7790 {
7791 __add_to_free_list(page, zone, order, migratetype, tail);
7792 account_freepages(zone, 1 << order, migratetype);
7793 }
7794
7795 /*
7796 * Break down a higher-order page in sub-pages, and keep our target out of
7797 * buddy allocator.
7798 */
break_down_buddy_pages(struct zone * zone,struct page * page,struct page * target,int low,int high,int migratetype)7799 static void break_down_buddy_pages(struct zone *zone, struct page *page,
7800 struct page *target, int low, int high,
7801 int migratetype)
7802 {
7803 unsigned long size = 1 << high;
7804 struct page *current_buddy;
7805
7806 while (high > low) {
7807 high--;
7808 size >>= 1;
7809
7810 if (target >= &page[size]) {
7811 current_buddy = page;
7812 page = page + size;
7813 } else {
7814 current_buddy = page + size;
7815 }
7816
7817 if (set_page_guard(zone, current_buddy, high))
7818 continue;
7819
7820 add_to_free_list(current_buddy, zone, high, migratetype, false);
7821 set_buddy_order(current_buddy, high);
7822 }
7823 }
7824
7825 /*
7826 * Take a page that will be marked as poisoned off the buddy allocator.
7827 */
take_page_off_buddy(struct page * page)7828 bool take_page_off_buddy(struct page *page)
7829 {
7830 struct zone *zone = page_zone(page);
7831 unsigned long pfn = page_to_pfn(page);
7832 unsigned int order;
7833
7834 guard(spinlock_irqsave)(&zone->lock);
7835 for (order = 0; order < NR_PAGE_ORDERS; order++) {
7836 struct page *page_head = page - (pfn & ((1 << order) - 1));
7837 int page_order = buddy_order(page_head);
7838
7839 if (PageBuddy(page_head) && page_order >= order) {
7840 unsigned long pfn_head = page_to_pfn(page_head);
7841 int migratetype = get_pfnblock_migratetype(page_head,
7842 pfn_head);
7843
7844 del_page_from_free_list(page_head, zone, page_order,
7845 migratetype);
7846 break_down_buddy_pages(zone, page_head, page, 0,
7847 page_order, migratetype);
7848 SetPageHWPoisonTakenOff(page);
7849 return true;
7850 }
7851 if (page_count(page_head) > 0)
7852 break;
7853 }
7854 return false;
7855 }
7856
7857 /*
7858 * Cancel takeoff done by take_page_off_buddy().
7859 */
put_page_back_buddy(struct page * page)7860 bool put_page_back_buddy(struct page *page)
7861 {
7862 struct zone *zone = page_zone(page);
7863
7864 guard(spinlock_irqsave)(&zone->lock);
7865 if (put_page_testzero(page)) {
7866 unsigned long pfn = page_to_pfn(page);
7867 int migratetype = get_pfnblock_migratetype(page, pfn);
7868
7869 ClearPageHWPoisonTakenOff(page);
7870 __free_one_page(page, pfn, zone, 0, migratetype, FPI_NONE);
7871 if (TestClearPageHWPoison(page))
7872 return true;
7873 }
7874
7875 return false;
7876 }
7877 #endif
7878
has_managed_zone(enum zone_type zone)7879 bool has_managed_zone(enum zone_type zone)
7880 {
7881 struct pglist_data *pgdat;
7882
7883 for_each_online_pgdat(pgdat) {
7884 if (managed_zone(&pgdat->node_zones[zone]))
7885 return true;
7886 }
7887 return false;
7888 }
7889
7890 #ifdef CONFIG_UNACCEPTED_MEMORY
7891
7892 static bool lazy_accept = true;
7893
accept_memory_parse(char * p)7894 static int __init accept_memory_parse(char *p)
7895 {
7896 if (!strcmp(p, "lazy")) {
7897 lazy_accept = true;
7898 return 0;
7899 } else if (!strcmp(p, "eager")) {
7900 lazy_accept = false;
7901 return 0;
7902 } else {
7903 return -EINVAL;
7904 }
7905 }
7906 early_param("accept_memory", accept_memory_parse);
7907
page_contains_unaccepted(struct page * page,unsigned int order)7908 static bool page_contains_unaccepted(struct page *page, unsigned int order)
7909 {
7910 phys_addr_t start = page_to_phys(page);
7911
7912 return range_contains_unaccepted_memory(start, PAGE_SIZE << order);
7913 }
7914
__accept_page(struct zone * zone,unsigned long * flags,struct page * page)7915 static void __accept_page(struct zone *zone, unsigned long *flags,
7916 struct page *page)
7917 {
7918 list_del(&page->lru);
7919 account_freepages(zone, -MAX_ORDER_NR_PAGES, MIGRATE_MOVABLE);
7920 __mod_zone_page_state(zone, NR_UNACCEPTED, -MAX_ORDER_NR_PAGES);
7921 __ClearPageUnaccepted(page);
7922 spin_unlock_irqrestore(&zone->lock, *flags);
7923
7924 accept_memory(page_to_phys(page), PAGE_SIZE << MAX_PAGE_ORDER);
7925
7926 __free_pages_ok(page, MAX_PAGE_ORDER, FPI_TO_TAIL);
7927 }
7928
accept_page(struct page * page)7929 void accept_page(struct page *page)
7930 {
7931 struct zone *zone = page_zone(page);
7932 unsigned long flags;
7933
7934 spin_lock_irqsave(&zone->lock, flags);
7935 if (!PageUnaccepted(page)) {
7936 spin_unlock_irqrestore(&zone->lock, flags);
7937 return;
7938 }
7939
7940 /* Unlocks zone->lock */
7941 __accept_page(zone, &flags, page);
7942 }
7943
try_to_accept_memory_one(struct zone * zone)7944 static bool try_to_accept_memory_one(struct zone *zone)
7945 {
7946 unsigned long flags;
7947 struct page *page;
7948
7949 spin_lock_irqsave(&zone->lock, flags);
7950 page = list_first_entry_or_null(&zone->unaccepted_pages,
7951 struct page, lru);
7952 if (!page) {
7953 spin_unlock_irqrestore(&zone->lock, flags);
7954 return false;
7955 }
7956
7957 /* Unlocks zone->lock */
7958 __accept_page(zone, &flags, page);
7959
7960 return true;
7961 }
7962
cond_accept_memory(struct zone * zone,unsigned int order,int alloc_flags)7963 static bool cond_accept_memory(struct zone *zone, unsigned int order,
7964 int alloc_flags)
7965 {
7966 long to_accept, wmark;
7967 bool ret = false;
7968
7969 if (list_empty(&zone->unaccepted_pages))
7970 return false;
7971
7972 /* Bailout, since try_to_accept_memory_one() needs to take a lock */
7973 if (alloc_flags & ALLOC_NOLOCK)
7974 return false;
7975
7976 wmark = promo_wmark_pages(zone);
7977
7978 /*
7979 * Watermarks have not been initialized yet.
7980 *
7981 * Accepting one MAX_ORDER page to ensure progress.
7982 */
7983 if (!wmark)
7984 return try_to_accept_memory_one(zone);
7985
7986 /* How much to accept to get to promo watermark? */
7987 to_accept = wmark -
7988 (zone_page_state(zone, NR_FREE_PAGES) -
7989 __zone_watermark_unusable_free(zone, order, 0) -
7990 zone_page_state(zone, NR_UNACCEPTED));
7991
7992 while (to_accept > 0) {
7993 if (!try_to_accept_memory_one(zone))
7994 break;
7995 ret = true;
7996 to_accept -= MAX_ORDER_NR_PAGES;
7997 }
7998
7999 return ret;
8000 }
8001
__free_unaccepted(struct page * page)8002 static bool __free_unaccepted(struct page *page)
8003 {
8004 struct zone *zone = page_zone(page);
8005 unsigned long flags;
8006
8007 if (!lazy_accept)
8008 return false;
8009
8010 spin_lock_irqsave(&zone->lock, flags);
8011 list_add_tail(&page->lru, &zone->unaccepted_pages);
8012 account_freepages(zone, MAX_ORDER_NR_PAGES, MIGRATE_MOVABLE);
8013 __mod_zone_page_state(zone, NR_UNACCEPTED, MAX_ORDER_NR_PAGES);
8014 __SetPageUnaccepted(page);
8015 spin_unlock_irqrestore(&zone->lock, flags);
8016
8017 return true;
8018 }
8019
8020 #else
8021
page_contains_unaccepted(struct page * page,unsigned int order)8022 static bool page_contains_unaccepted(struct page *page, unsigned int order)
8023 {
8024 return false;
8025 }
8026
cond_accept_memory(struct zone * zone,unsigned int order,int alloc_flags)8027 static bool cond_accept_memory(struct zone *zone, unsigned int order,
8028 int alloc_flags)
8029 {
8030 return false;
8031 }
8032
__free_unaccepted(struct page * page)8033 static bool __free_unaccepted(struct page *page)
8034 {
8035 BUILD_BUG();
8036 return false;
8037 }
8038
8039 #endif /* CONFIG_UNACCEPTED_MEMORY */
8040
alloc_frozen_pages_nolock_noprof(gfp_t gfp_flags,int nid,unsigned int order)8041 struct page *alloc_frozen_pages_nolock_noprof(gfp_t gfp_flags, int nid, unsigned int order)
8042 {
8043 if (nid == NUMA_NO_NODE)
8044 nid = numa_node_id();
8045
8046 return __alloc_frozen_pages_noprof(gfp_flags, order, nid, NULL, ALLOC_NOLOCK);
8047 }
8048 /**
8049 * alloc_pages_nolock - opportunistic reentrant allocation from any context
8050 * @gfp_flags: GFP flags. Only __GFP_ACCOUNT, plus some flags that get set
8051 * internally regardless (see %gfp_nolock) are allowed.
8052 * @nid: node to allocate from
8053 * @order: allocation order size
8054 *
8055 * Allocates pages of a given order from the given node. This is safe to
8056 * call from any context where RCU is watching (from atomic, NMI, and also
8057 * reentrant allocator -> tracepoint -> alloc_pages_nolock_noprof).
8058 * Allocation is best effort and to be expected to fail easily so nobody should
8059 * rely on the success. Failures are not reported via warn_alloc().
8060 * See always fail conditions below.
8061 *
8062 * Return: allocated page or NULL on failure. NULL does not mean EBUSY or EAGAIN.
8063 * It means ENOMEM. There is no reason to call it again and expect !NULL.
8064 */
alloc_pages_nolock_noprof(gfp_t gfp_flags,int nid,unsigned int order)8065 struct page *alloc_pages_nolock_noprof(gfp_t gfp_flags, int nid, unsigned int order)
8066 {
8067 struct page *page;
8068
8069 page = alloc_frozen_pages_nolock_noprof(gfp_flags, nid, order);
8070 if (page)
8071 set_page_refcounted(page);
8072 return page;
8073 }
8074 EXPORT_SYMBOL_GPL(alloc_pages_nolock_noprof);
8075