page_alloc.c 225 KB

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  1. /*
  2. * linux/mm/page_alloc.c
  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. #include <linux/stddef.h>
  17. #include <linux/mm.h>
  18. #include <linux/swap.h>
  19. #include <linux/interrupt.h>
  20. #include <linux/pagemap.h>
  21. #include <linux/jiffies.h>
  22. #include <linux/bootmem.h>
  23. #include <linux/memblock.h>
  24. #include <linux/compiler.h>
  25. #include <linux/kernel.h>
  26. #include <linux/kasan.h>
  27. #include <linux/module.h>
  28. #include <linux/suspend.h>
  29. #include <linux/pagevec.h>
  30. #include <linux/blkdev.h>
  31. #include <linux/slab.h>
  32. #include <linux/ratelimit.h>
  33. #include <linux/oom.h>
  34. #include <linux/topology.h>
  35. #include <linux/sysctl.h>
  36. #include <linux/cpu.h>
  37. #include <linux/cpuset.h>
  38. #include <linux/memory_hotplug.h>
  39. #include <linux/nodemask.h>
  40. #include <linux/vmalloc.h>
  41. #include <linux/vmstat.h>
  42. #include <linux/mempolicy.h>
  43. #include <linux/memremap.h>
  44. #include <linux/stop_machine.h>
  45. #include <linux/sort.h>
  46. #include <linux/pfn.h>
  47. #include <linux/backing-dev.h>
  48. #include <linux/fault-inject.h>
  49. #include <linux/page-isolation.h>
  50. #include <linux/page_ext.h>
  51. #include <linux/debugobjects.h>
  52. #include <linux/kmemleak.h>
  53. #include <linux/compaction.h>
  54. #include <trace/events/kmem.h>
  55. #include <trace/events/oom.h>
  56. #include <linux/prefetch.h>
  57. #include <linux/mm_inline.h>
  58. #include <linux/migrate.h>
  59. #include <linux/hugetlb.h>
  60. #include <linux/sched/rt.h>
  61. #include <linux/sched/mm.h>
  62. #include <linux/page_owner.h>
  63. #include <linux/kthread.h>
  64. #include <linux/memcontrol.h>
  65. #include <linux/ftrace.h>
  66. #include <linux/lockdep.h>
  67. #include <linux/nmi.h>
  68. #include <linux/psi.h>
  69. #include <asm/sections.h>
  70. #include <asm/tlbflush.h>
  71. #include <asm/div64.h>
  72. #include "internal.h"
  73. /* prevent >1 _updater_ of zone percpu pageset ->high and ->batch fields */
  74. static DEFINE_MUTEX(pcp_batch_high_lock);
  75. #define MIN_PERCPU_PAGELIST_FRACTION (8)
  76. #ifdef CONFIG_USE_PERCPU_NUMA_NODE_ID
  77. DEFINE_PER_CPU(int, numa_node);
  78. EXPORT_PER_CPU_SYMBOL(numa_node);
  79. #endif
  80. DEFINE_STATIC_KEY_TRUE(vm_numa_stat_key);
  81. #ifdef CONFIG_HAVE_MEMORYLESS_NODES
  82. /*
  83. * N.B., Do NOT reference the '_numa_mem_' per cpu variable directly.
  84. * It will not be defined when CONFIG_HAVE_MEMORYLESS_NODES is not defined.
  85. * Use the accessor functions set_numa_mem(), numa_mem_id() and cpu_to_mem()
  86. * defined in <linux/topology.h>.
  87. */
  88. DEFINE_PER_CPU(int, _numa_mem_); /* Kernel "local memory" node */
  89. EXPORT_PER_CPU_SYMBOL(_numa_mem_);
  90. int _node_numa_mem_[MAX_NUMNODES];
  91. #endif
  92. /* work_structs for global per-cpu drains */
  93. DEFINE_MUTEX(pcpu_drain_mutex);
  94. DEFINE_PER_CPU(struct work_struct, pcpu_drain);
  95. #ifdef CONFIG_GCC_PLUGIN_LATENT_ENTROPY
  96. volatile unsigned long latent_entropy __latent_entropy;
  97. EXPORT_SYMBOL(latent_entropy);
  98. #endif
  99. /*
  100. * Array of node states.
  101. */
  102. nodemask_t node_states[NR_NODE_STATES] __read_mostly = {
  103. [N_POSSIBLE] = NODE_MASK_ALL,
  104. [N_ONLINE] = { { [0] = 1UL } },
  105. #ifndef CONFIG_NUMA
  106. [N_NORMAL_MEMORY] = { { [0] = 1UL } },
  107. #ifdef CONFIG_HIGHMEM
  108. [N_HIGH_MEMORY] = { { [0] = 1UL } },
  109. #endif
  110. [N_MEMORY] = { { [0] = 1UL } },
  111. [N_CPU] = { { [0] = 1UL } },
  112. #endif /* NUMA */
  113. };
  114. EXPORT_SYMBOL(node_states);
  115. /* Protect totalram_pages and zone->managed_pages */
  116. static DEFINE_SPINLOCK(managed_page_count_lock);
  117. unsigned long totalram_pages __read_mostly;
  118. unsigned long totalreserve_pages __read_mostly;
  119. unsigned long totalcma_pages __read_mostly;
  120. int percpu_pagelist_fraction;
  121. gfp_t gfp_allowed_mask __read_mostly = GFP_BOOT_MASK;
  122. /*
  123. * A cached value of the page's pageblock's migratetype, used when the page is
  124. * put on a pcplist. Used to avoid the pageblock migratetype lookup when
  125. * freeing from pcplists in most cases, at the cost of possibly becoming stale.
  126. * Also the migratetype set in the page does not necessarily match the pcplist
  127. * index, e.g. page might have MIGRATE_CMA set but be on a pcplist with any
  128. * other index - this ensures that it will be put on the correct CMA freelist.
  129. */
  130. static inline int get_pcppage_migratetype(struct page *page)
  131. {
  132. return page->index;
  133. }
  134. static inline void set_pcppage_migratetype(struct page *page, int migratetype)
  135. {
  136. page->index = migratetype;
  137. }
  138. #ifdef CONFIG_PM_SLEEP
  139. /*
  140. * The following functions are used by the suspend/hibernate code to temporarily
  141. * change gfp_allowed_mask in order to avoid using I/O during memory allocations
  142. * while devices are suspended. To avoid races with the suspend/hibernate code,
  143. * they should always be called with system_transition_mutex held
  144. * (gfp_allowed_mask also should only be modified with system_transition_mutex
  145. * held, unless the suspend/hibernate code is guaranteed not to run in parallel
  146. * with that modification).
  147. */
  148. static gfp_t saved_gfp_mask;
  149. void pm_restore_gfp_mask(void)
  150. {
  151. WARN_ON(!mutex_is_locked(&system_transition_mutex));
  152. if (saved_gfp_mask) {
  153. gfp_allowed_mask = saved_gfp_mask;
  154. saved_gfp_mask = 0;
  155. }
  156. }
  157. void pm_restrict_gfp_mask(void)
  158. {
  159. WARN_ON(!mutex_is_locked(&system_transition_mutex));
  160. WARN_ON(saved_gfp_mask);
  161. saved_gfp_mask = gfp_allowed_mask;
  162. gfp_allowed_mask &= ~(__GFP_IO | __GFP_FS);
  163. }
  164. bool pm_suspended_storage(void)
  165. {
  166. if ((gfp_allowed_mask & (__GFP_IO | __GFP_FS)) == (__GFP_IO | __GFP_FS))
  167. return false;
  168. return true;
  169. }
  170. #endif /* CONFIG_PM_SLEEP */
  171. #ifdef CONFIG_HUGETLB_PAGE_SIZE_VARIABLE
  172. unsigned int pageblock_order __read_mostly;
  173. #endif
  174. static void __free_pages_ok(struct page *page, unsigned int order);
  175. /*
  176. * results with 256, 32 in the lowmem_reserve sysctl:
  177. * 1G machine -> (16M dma, 800M-16M normal, 1G-800M high)
  178. * 1G machine -> (16M dma, 784M normal, 224M high)
  179. * NORMAL allocation will leave 784M/256 of ram reserved in the ZONE_DMA
  180. * HIGHMEM allocation will leave 224M/32 of ram reserved in ZONE_NORMAL
  181. * HIGHMEM allocation will leave (224M+784M)/256 of ram reserved in ZONE_DMA
  182. *
  183. * TBD: should special case ZONE_DMA32 machines here - in those we normally
  184. * don't need any ZONE_NORMAL reservation
  185. */
  186. int sysctl_lowmem_reserve_ratio[MAX_NR_ZONES] = {
  187. #ifdef CONFIG_ZONE_DMA
  188. [ZONE_DMA] = 256,
  189. #endif
  190. #ifdef CONFIG_ZONE_DMA32
  191. [ZONE_DMA32] = 256,
  192. #endif
  193. [ZONE_NORMAL] = 32,
  194. #ifdef CONFIG_HIGHMEM
  195. [ZONE_HIGHMEM] = 0,
  196. #endif
  197. [ZONE_MOVABLE] = 0,
  198. };
  199. EXPORT_SYMBOL(totalram_pages);
  200. static char * const zone_names[MAX_NR_ZONES] = {
  201. #ifdef CONFIG_ZONE_DMA
  202. "DMA",
  203. #endif
  204. #ifdef CONFIG_ZONE_DMA32
  205. "DMA32",
  206. #endif
  207. "Normal",
  208. #ifdef CONFIG_HIGHMEM
  209. "HighMem",
  210. #endif
  211. "Movable",
  212. #ifdef CONFIG_ZONE_DEVICE
  213. "Device",
  214. #endif
  215. };
  216. char * const migratetype_names[MIGRATE_TYPES] = {
  217. "Unmovable",
  218. "Movable",
  219. "Reclaimable",
  220. "HighAtomic",
  221. #ifdef CONFIG_CMA
  222. "CMA",
  223. #endif
  224. #ifdef CONFIG_MEMORY_ISOLATION
  225. "Isolate",
  226. #endif
  227. };
  228. compound_page_dtor * const compound_page_dtors[] = {
  229. NULL,
  230. free_compound_page,
  231. #ifdef CONFIG_HUGETLB_PAGE
  232. free_huge_page,
  233. #endif
  234. #ifdef CONFIG_TRANSPARENT_HUGEPAGE
  235. free_transhuge_page,
  236. #endif
  237. };
  238. int min_free_kbytes = 1024;
  239. int user_min_free_kbytes = -1;
  240. int watermark_scale_factor = 10;
  241. static unsigned long nr_kernel_pages __meminitdata;
  242. static unsigned long nr_all_pages __meminitdata;
  243. static unsigned long dma_reserve __meminitdata;
  244. #ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP
  245. static unsigned long arch_zone_lowest_possible_pfn[MAX_NR_ZONES] __meminitdata;
  246. static unsigned long arch_zone_highest_possible_pfn[MAX_NR_ZONES] __meminitdata;
  247. static unsigned long required_kernelcore __initdata;
  248. static unsigned long required_kernelcore_percent __initdata;
  249. static unsigned long required_movablecore __initdata;
  250. static unsigned long required_movablecore_percent __initdata;
  251. static unsigned long zone_movable_pfn[MAX_NUMNODES] __meminitdata;
  252. static bool mirrored_kernelcore __meminitdata;
  253. /* movable_zone is the "real" zone pages in ZONE_MOVABLE are taken from */
  254. int movable_zone;
  255. EXPORT_SYMBOL(movable_zone);
  256. #endif /* CONFIG_HAVE_MEMBLOCK_NODE_MAP */
  257. #if MAX_NUMNODES > 1
  258. int nr_node_ids __read_mostly = MAX_NUMNODES;
  259. int nr_online_nodes __read_mostly = 1;
  260. EXPORT_SYMBOL(nr_node_ids);
  261. EXPORT_SYMBOL(nr_online_nodes);
  262. #endif
  263. int page_group_by_mobility_disabled __read_mostly;
  264. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  265. /* Returns true if the struct page for the pfn is uninitialised */
  266. static inline bool __meminit early_page_uninitialised(unsigned long pfn)
  267. {
  268. int nid = early_pfn_to_nid(pfn);
  269. if (node_online(nid) && pfn >= NODE_DATA(nid)->first_deferred_pfn)
  270. return true;
  271. return false;
  272. }
  273. /*
  274. * Returns true when the remaining initialisation should be deferred until
  275. * later in the boot cycle when it can be parallelised.
  276. */
  277. static bool __meminit
  278. defer_init(int nid, unsigned long pfn, unsigned long end_pfn)
  279. {
  280. static unsigned long prev_end_pfn, nr_initialised;
  281. /*
  282. * prev_end_pfn static that contains the end of previous zone
  283. * No need to protect because called very early in boot before smp_init.
  284. */
  285. if (prev_end_pfn != end_pfn) {
  286. prev_end_pfn = end_pfn;
  287. nr_initialised = 0;
  288. }
  289. /* Always populate low zones for address-constrained allocations */
  290. if (end_pfn < pgdat_end_pfn(NODE_DATA(nid)))
  291. return false;
  292. nr_initialised++;
  293. if ((nr_initialised > NODE_DATA(nid)->static_init_pgcnt) &&
  294. (pfn & (PAGES_PER_SECTION - 1)) == 0) {
  295. NODE_DATA(nid)->first_deferred_pfn = pfn;
  296. return true;
  297. }
  298. return false;
  299. }
  300. #else
  301. static inline bool early_page_uninitialised(unsigned long pfn)
  302. {
  303. return false;
  304. }
  305. static inline bool defer_init(int nid, unsigned long pfn, unsigned long end_pfn)
  306. {
  307. return false;
  308. }
  309. #endif
  310. /* Return a pointer to the bitmap storing bits affecting a block of pages */
  311. static inline unsigned long *get_pageblock_bitmap(struct page *page,
  312. unsigned long pfn)
  313. {
  314. #ifdef CONFIG_SPARSEMEM
  315. return __pfn_to_section(pfn)->pageblock_flags;
  316. #else
  317. return page_zone(page)->pageblock_flags;
  318. #endif /* CONFIG_SPARSEMEM */
  319. }
  320. static inline int pfn_to_bitidx(struct page *page, unsigned long pfn)
  321. {
  322. #ifdef CONFIG_SPARSEMEM
  323. pfn &= (PAGES_PER_SECTION-1);
  324. return (pfn >> pageblock_order) * NR_PAGEBLOCK_BITS;
  325. #else
  326. pfn = pfn - round_down(page_zone(page)->zone_start_pfn, pageblock_nr_pages);
  327. return (pfn >> pageblock_order) * NR_PAGEBLOCK_BITS;
  328. #endif /* CONFIG_SPARSEMEM */
  329. }
  330. /**
  331. * get_pfnblock_flags_mask - Return the requested group of flags for the pageblock_nr_pages block of pages
  332. * @page: The page within the block of interest
  333. * @pfn: The target page frame number
  334. * @end_bitidx: The last bit of interest to retrieve
  335. * @mask: mask of bits that the caller is interested in
  336. *
  337. * Return: pageblock_bits flags
  338. */
  339. static __always_inline unsigned long __get_pfnblock_flags_mask(struct page *page,
  340. unsigned long pfn,
  341. unsigned long end_bitidx,
  342. unsigned long mask)
  343. {
  344. unsigned long *bitmap;
  345. unsigned long bitidx, word_bitidx;
  346. unsigned long word;
  347. bitmap = get_pageblock_bitmap(page, pfn);
  348. bitidx = pfn_to_bitidx(page, pfn);
  349. word_bitidx = bitidx / BITS_PER_LONG;
  350. bitidx &= (BITS_PER_LONG-1);
  351. word = bitmap[word_bitidx];
  352. bitidx += end_bitidx;
  353. return (word >> (BITS_PER_LONG - bitidx - 1)) & mask;
  354. }
  355. unsigned long get_pfnblock_flags_mask(struct page *page, unsigned long pfn,
  356. unsigned long end_bitidx,
  357. unsigned long mask)
  358. {
  359. return __get_pfnblock_flags_mask(page, pfn, end_bitidx, mask);
  360. }
  361. static __always_inline int get_pfnblock_migratetype(struct page *page, unsigned long pfn)
  362. {
  363. return __get_pfnblock_flags_mask(page, pfn, PB_migrate_end, MIGRATETYPE_MASK);
  364. }
  365. /**
  366. * set_pfnblock_flags_mask - Set the requested group of flags for a pageblock_nr_pages block of pages
  367. * @page: The page within the block of interest
  368. * @flags: The flags to set
  369. * @pfn: The target page frame number
  370. * @end_bitidx: The last bit of interest
  371. * @mask: mask of bits that the caller is interested in
  372. */
  373. void set_pfnblock_flags_mask(struct page *page, unsigned long flags,
  374. unsigned long pfn,
  375. unsigned long end_bitidx,
  376. unsigned long mask)
  377. {
  378. unsigned long *bitmap;
  379. unsigned long bitidx, word_bitidx;
  380. unsigned long old_word, word;
  381. BUILD_BUG_ON(NR_PAGEBLOCK_BITS != 4);
  382. bitmap = get_pageblock_bitmap(page, pfn);
  383. bitidx = pfn_to_bitidx(page, pfn);
  384. word_bitidx = bitidx / BITS_PER_LONG;
  385. bitidx &= (BITS_PER_LONG-1);
  386. VM_BUG_ON_PAGE(!zone_spans_pfn(page_zone(page), pfn), page);
  387. bitidx += end_bitidx;
  388. mask <<= (BITS_PER_LONG - bitidx - 1);
  389. flags <<= (BITS_PER_LONG - bitidx - 1);
  390. word = READ_ONCE(bitmap[word_bitidx]);
  391. for (;;) {
  392. old_word = cmpxchg(&bitmap[word_bitidx], word, (word & ~mask) | flags);
  393. if (word == old_word)
  394. break;
  395. word = old_word;
  396. }
  397. }
  398. void set_pageblock_migratetype(struct page *page, int migratetype)
  399. {
  400. if (unlikely(page_group_by_mobility_disabled &&
  401. migratetype < MIGRATE_PCPTYPES))
  402. migratetype = MIGRATE_UNMOVABLE;
  403. set_pageblock_flags_group(page, (unsigned long)migratetype,
  404. PB_migrate, PB_migrate_end);
  405. }
  406. #ifdef CONFIG_DEBUG_VM
  407. static int page_outside_zone_boundaries(struct zone *zone, struct page *page)
  408. {
  409. int ret = 0;
  410. unsigned seq;
  411. unsigned long pfn = page_to_pfn(page);
  412. unsigned long sp, start_pfn;
  413. do {
  414. seq = zone_span_seqbegin(zone);
  415. start_pfn = zone->zone_start_pfn;
  416. sp = zone->spanned_pages;
  417. if (!zone_spans_pfn(zone, pfn))
  418. ret = 1;
  419. } while (zone_span_seqretry(zone, seq));
  420. if (ret)
  421. pr_err("page 0x%lx outside node %d zone %s [ 0x%lx - 0x%lx ]\n",
  422. pfn, zone_to_nid(zone), zone->name,
  423. start_pfn, start_pfn + sp);
  424. return ret;
  425. }
  426. static int page_is_consistent(struct zone *zone, struct page *page)
  427. {
  428. if (!pfn_valid_within(page_to_pfn(page)))
  429. return 0;
  430. if (zone != page_zone(page))
  431. return 0;
  432. return 1;
  433. }
  434. /*
  435. * Temporary debugging check for pages not lying within a given zone.
  436. */
  437. static int __maybe_unused bad_range(struct zone *zone, struct page *page)
  438. {
  439. if (page_outside_zone_boundaries(zone, page))
  440. return 1;
  441. if (!page_is_consistent(zone, page))
  442. return 1;
  443. return 0;
  444. }
  445. #else
  446. static inline int __maybe_unused bad_range(struct zone *zone, struct page *page)
  447. {
  448. return 0;
  449. }
  450. #endif
  451. static void bad_page(struct page *page, const char *reason,
  452. unsigned long bad_flags)
  453. {
  454. static unsigned long resume;
  455. static unsigned long nr_shown;
  456. static unsigned long nr_unshown;
  457. /*
  458. * Allow a burst of 60 reports, then keep quiet for that minute;
  459. * or allow a steady drip of one report per second.
  460. */
  461. if (nr_shown == 60) {
  462. if (time_before(jiffies, resume)) {
  463. nr_unshown++;
  464. goto out;
  465. }
  466. if (nr_unshown) {
  467. pr_alert(
  468. "BUG: Bad page state: %lu messages suppressed\n",
  469. nr_unshown);
  470. nr_unshown = 0;
  471. }
  472. nr_shown = 0;
  473. }
  474. if (nr_shown++ == 0)
  475. resume = jiffies + 60 * HZ;
  476. pr_alert("BUG: Bad page state in process %s pfn:%05lx\n",
  477. current->comm, page_to_pfn(page));
  478. __dump_page(page, reason);
  479. bad_flags &= page->flags;
  480. if (bad_flags)
  481. pr_alert("bad because of flags: %#lx(%pGp)\n",
  482. bad_flags, &bad_flags);
  483. dump_page_owner(page);
  484. print_modules();
  485. dump_stack();
  486. out:
  487. /* Leave bad fields for debug, except PageBuddy could make trouble */
  488. page_mapcount_reset(page); /* remove PageBuddy */
  489. add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE);
  490. }
  491. /*
  492. * Higher-order pages are called "compound pages". They are structured thusly:
  493. *
  494. * The first PAGE_SIZE page is called the "head page" and have PG_head set.
  495. *
  496. * The remaining PAGE_SIZE pages are called "tail pages". PageTail() is encoded
  497. * in bit 0 of page->compound_head. The rest of bits is pointer to head page.
  498. *
  499. * The first tail page's ->compound_dtor holds the offset in array of compound
  500. * page destructors. See compound_page_dtors.
  501. *
  502. * The first tail page's ->compound_order holds the order of allocation.
  503. * This usage means that zero-order pages may not be compound.
  504. */
  505. void free_compound_page(struct page *page)
  506. {
  507. __free_pages_ok(page, compound_order(page));
  508. }
  509. void prep_compound_page(struct page *page, unsigned int order)
  510. {
  511. int i;
  512. int nr_pages = 1 << order;
  513. set_compound_page_dtor(page, COMPOUND_PAGE_DTOR);
  514. set_compound_order(page, order);
  515. __SetPageHead(page);
  516. for (i = 1; i < nr_pages; i++) {
  517. struct page *p = page + i;
  518. set_page_count(p, 0);
  519. p->mapping = TAIL_MAPPING;
  520. set_compound_head(p, page);
  521. }
  522. atomic_set(compound_mapcount_ptr(page), -1);
  523. }
  524. #ifdef CONFIG_DEBUG_PAGEALLOC
  525. unsigned int _debug_guardpage_minorder;
  526. bool _debug_pagealloc_enabled __read_mostly
  527. = IS_ENABLED(CONFIG_DEBUG_PAGEALLOC_ENABLE_DEFAULT);
  528. EXPORT_SYMBOL(_debug_pagealloc_enabled);
  529. bool _debug_guardpage_enabled __read_mostly;
  530. static int __init early_debug_pagealloc(char *buf)
  531. {
  532. if (!buf)
  533. return -EINVAL;
  534. return kstrtobool(buf, &_debug_pagealloc_enabled);
  535. }
  536. early_param("debug_pagealloc", early_debug_pagealloc);
  537. static bool need_debug_guardpage(void)
  538. {
  539. /* If we don't use debug_pagealloc, we don't need guard page */
  540. if (!debug_pagealloc_enabled())
  541. return false;
  542. if (!debug_guardpage_minorder())
  543. return false;
  544. return true;
  545. }
  546. static void init_debug_guardpage(void)
  547. {
  548. if (!debug_pagealloc_enabled())
  549. return;
  550. if (!debug_guardpage_minorder())
  551. return;
  552. _debug_guardpage_enabled = true;
  553. }
  554. struct page_ext_operations debug_guardpage_ops = {
  555. .need = need_debug_guardpage,
  556. .init = init_debug_guardpage,
  557. };
  558. static int __init debug_guardpage_minorder_setup(char *buf)
  559. {
  560. unsigned long res;
  561. if (kstrtoul(buf, 10, &res) < 0 || res > MAX_ORDER / 2) {
  562. pr_err("Bad debug_guardpage_minorder value\n");
  563. return 0;
  564. }
  565. _debug_guardpage_minorder = res;
  566. pr_info("Setting debug_guardpage_minorder to %lu\n", res);
  567. return 0;
  568. }
  569. early_param("debug_guardpage_minorder", debug_guardpage_minorder_setup);
  570. static inline bool set_page_guard(struct zone *zone, struct page *page,
  571. unsigned int order, int migratetype)
  572. {
  573. struct page_ext *page_ext;
  574. if (!debug_guardpage_enabled())
  575. return false;
  576. if (order >= debug_guardpage_minorder())
  577. return false;
  578. page_ext = lookup_page_ext(page);
  579. if (unlikely(!page_ext))
  580. return false;
  581. __set_bit(PAGE_EXT_DEBUG_GUARD, &page_ext->flags);
  582. INIT_LIST_HEAD(&page->lru);
  583. set_page_private(page, order);
  584. /* Guard pages are not available for any usage */
  585. __mod_zone_freepage_state(zone, -(1 << order), migratetype);
  586. return true;
  587. }
  588. static inline void clear_page_guard(struct zone *zone, struct page *page,
  589. unsigned int order, int migratetype)
  590. {
  591. struct page_ext *page_ext;
  592. if (!debug_guardpage_enabled())
  593. return;
  594. page_ext = lookup_page_ext(page);
  595. if (unlikely(!page_ext))
  596. return;
  597. __clear_bit(PAGE_EXT_DEBUG_GUARD, &page_ext->flags);
  598. set_page_private(page, 0);
  599. if (!is_migrate_isolate(migratetype))
  600. __mod_zone_freepage_state(zone, (1 << order), migratetype);
  601. }
  602. #else
  603. struct page_ext_operations debug_guardpage_ops;
  604. static inline bool set_page_guard(struct zone *zone, struct page *page,
  605. unsigned int order, int migratetype) { return false; }
  606. static inline void clear_page_guard(struct zone *zone, struct page *page,
  607. unsigned int order, int migratetype) {}
  608. #endif
  609. static inline void set_page_order(struct page *page, unsigned int order)
  610. {
  611. set_page_private(page, order);
  612. __SetPageBuddy(page);
  613. }
  614. static inline void rmv_page_order(struct page *page)
  615. {
  616. __ClearPageBuddy(page);
  617. set_page_private(page, 0);
  618. }
  619. /*
  620. * This function checks whether a page is free && is the buddy
  621. * we can coalesce a page and its buddy if
  622. * (a) the buddy is not in a hole (check before calling!) &&
  623. * (b) the buddy is in the buddy system &&
  624. * (c) a page and its buddy have the same order &&
  625. * (d) a page and its buddy are in the same zone.
  626. *
  627. * For recording whether a page is in the buddy system, we set PageBuddy.
  628. * Setting, clearing, and testing PageBuddy is serialized by zone->lock.
  629. *
  630. * For recording page's order, we use page_private(page).
  631. */
  632. static inline int page_is_buddy(struct page *page, struct page *buddy,
  633. unsigned int order)
  634. {
  635. if (page_is_guard(buddy) && page_order(buddy) == order) {
  636. if (page_zone_id(page) != page_zone_id(buddy))
  637. return 0;
  638. VM_BUG_ON_PAGE(page_count(buddy) != 0, buddy);
  639. return 1;
  640. }
  641. if (PageBuddy(buddy) && page_order(buddy) == order) {
  642. /*
  643. * zone check is done late to avoid uselessly
  644. * calculating zone/node ids for pages that could
  645. * never merge.
  646. */
  647. if (page_zone_id(page) != page_zone_id(buddy))
  648. return 0;
  649. VM_BUG_ON_PAGE(page_count(buddy) != 0, buddy);
  650. return 1;
  651. }
  652. return 0;
  653. }
  654. /*
  655. * Freeing function for a buddy system allocator.
  656. *
  657. * The concept of a buddy system is to maintain direct-mapped table
  658. * (containing bit values) for memory blocks of various "orders".
  659. * The bottom level table contains the map for the smallest allocatable
  660. * units of memory (here, pages), and each level above it describes
  661. * pairs of units from the levels below, hence, "buddies".
  662. * At a high level, all that happens here is marking the table entry
  663. * at the bottom level available, and propagating the changes upward
  664. * as necessary, plus some accounting needed to play nicely with other
  665. * parts of the VM system.
  666. * At each level, we keep a list of pages, which are heads of continuous
  667. * free pages of length of (1 << order) and marked with PageBuddy.
  668. * Page's order is recorded in page_private(page) field.
  669. * So when we are allocating or freeing one, we can derive the state of the
  670. * other. That is, if we allocate a small block, and both were
  671. * free, the remainder of the region must be split into blocks.
  672. * If a block is freed, and its buddy is also free, then this
  673. * triggers coalescing into a block of larger size.
  674. *
  675. * -- nyc
  676. */
  677. static inline void __free_one_page(struct page *page,
  678. unsigned long pfn,
  679. struct zone *zone, unsigned int order,
  680. int migratetype)
  681. {
  682. unsigned long combined_pfn;
  683. unsigned long uninitialized_var(buddy_pfn);
  684. struct page *buddy;
  685. unsigned int max_order;
  686. max_order = min_t(unsigned int, MAX_ORDER, pageblock_order + 1);
  687. VM_BUG_ON(!zone_is_initialized(zone));
  688. VM_BUG_ON_PAGE(page->flags & PAGE_FLAGS_CHECK_AT_PREP, page);
  689. VM_BUG_ON(migratetype == -1);
  690. if (likely(!is_migrate_isolate(migratetype)))
  691. __mod_zone_freepage_state(zone, 1 << order, migratetype);
  692. VM_BUG_ON_PAGE(pfn & ((1 << order) - 1), page);
  693. VM_BUG_ON_PAGE(bad_range(zone, page), page);
  694. continue_merging:
  695. while (order < max_order - 1) {
  696. buddy_pfn = __find_buddy_pfn(pfn, order);
  697. buddy = page + (buddy_pfn - pfn);
  698. if (!pfn_valid_within(buddy_pfn))
  699. goto done_merging;
  700. if (!page_is_buddy(page, buddy, order))
  701. goto done_merging;
  702. /*
  703. * Our buddy is free or it is CONFIG_DEBUG_PAGEALLOC guard page,
  704. * merge with it and move up one order.
  705. */
  706. if (page_is_guard(buddy)) {
  707. clear_page_guard(zone, buddy, order, migratetype);
  708. } else {
  709. list_del(&buddy->lru);
  710. zone->free_area[order].nr_free--;
  711. rmv_page_order(buddy);
  712. }
  713. combined_pfn = buddy_pfn & pfn;
  714. page = page + (combined_pfn - pfn);
  715. pfn = combined_pfn;
  716. order++;
  717. }
  718. if (max_order < MAX_ORDER) {
  719. /* If we are here, it means order is >= pageblock_order.
  720. * We want to prevent merge between freepages on isolate
  721. * pageblock and normal pageblock. Without this, pageblock
  722. * isolation could cause incorrect freepage or CMA accounting.
  723. *
  724. * We don't want to hit this code for the more frequent
  725. * low-order merging.
  726. */
  727. if (unlikely(has_isolate_pageblock(zone))) {
  728. int buddy_mt;
  729. buddy_pfn = __find_buddy_pfn(pfn, order);
  730. buddy = page + (buddy_pfn - pfn);
  731. buddy_mt = get_pageblock_migratetype(buddy);
  732. if (migratetype != buddy_mt
  733. && (is_migrate_isolate(migratetype) ||
  734. is_migrate_isolate(buddy_mt)))
  735. goto done_merging;
  736. }
  737. max_order++;
  738. goto continue_merging;
  739. }
  740. done_merging:
  741. set_page_order(page, order);
  742. /*
  743. * If this is not the largest possible page, check if the buddy
  744. * of the next-highest order is free. If it is, it's possible
  745. * that pages are being freed that will coalesce soon. In case,
  746. * that is happening, add the free page to the tail of the list
  747. * so it's less likely to be used soon and more likely to be merged
  748. * as a higher order page
  749. */
  750. if ((order < MAX_ORDER-2) && pfn_valid_within(buddy_pfn)) {
  751. struct page *higher_page, *higher_buddy;
  752. combined_pfn = buddy_pfn & pfn;
  753. higher_page = page + (combined_pfn - pfn);
  754. buddy_pfn = __find_buddy_pfn(combined_pfn, order + 1);
  755. higher_buddy = higher_page + (buddy_pfn - combined_pfn);
  756. if (pfn_valid_within(buddy_pfn) &&
  757. page_is_buddy(higher_page, higher_buddy, order + 1)) {
  758. list_add_tail(&page->lru,
  759. &zone->free_area[order].free_list[migratetype]);
  760. goto out;
  761. }
  762. }
  763. list_add(&page->lru, &zone->free_area[order].free_list[migratetype]);
  764. out:
  765. zone->free_area[order].nr_free++;
  766. }
  767. /*
  768. * A bad page could be due to a number of fields. Instead of multiple branches,
  769. * try and check multiple fields with one check. The caller must do a detailed
  770. * check if necessary.
  771. */
  772. static inline bool page_expected_state(struct page *page,
  773. unsigned long check_flags)
  774. {
  775. if (unlikely(atomic_read(&page->_mapcount) != -1))
  776. return false;
  777. if (unlikely((unsigned long)page->mapping |
  778. page_ref_count(page) |
  779. #ifdef CONFIG_MEMCG
  780. (unsigned long)page->mem_cgroup |
  781. #endif
  782. (page->flags & check_flags)))
  783. return false;
  784. return true;
  785. }
  786. static void free_pages_check_bad(struct page *page)
  787. {
  788. const char *bad_reason;
  789. unsigned long bad_flags;
  790. bad_reason = NULL;
  791. bad_flags = 0;
  792. if (unlikely(atomic_read(&page->_mapcount) != -1))
  793. bad_reason = "nonzero mapcount";
  794. if (unlikely(page->mapping != NULL))
  795. bad_reason = "non-NULL mapping";
  796. if (unlikely(page_ref_count(page) != 0))
  797. bad_reason = "nonzero _refcount";
  798. if (unlikely(page->flags & PAGE_FLAGS_CHECK_AT_FREE)) {
  799. bad_reason = "PAGE_FLAGS_CHECK_AT_FREE flag(s) set";
  800. bad_flags = PAGE_FLAGS_CHECK_AT_FREE;
  801. }
  802. #ifdef CONFIG_MEMCG
  803. if (unlikely(page->mem_cgroup))
  804. bad_reason = "page still charged to cgroup";
  805. #endif
  806. bad_page(page, bad_reason, bad_flags);
  807. }
  808. static inline int free_pages_check(struct page *page)
  809. {
  810. if (likely(page_expected_state(page, PAGE_FLAGS_CHECK_AT_FREE)))
  811. return 0;
  812. /* Something has gone sideways, find it */
  813. free_pages_check_bad(page);
  814. return 1;
  815. }
  816. static int free_tail_pages_check(struct page *head_page, struct page *page)
  817. {
  818. int ret = 1;
  819. /*
  820. * We rely page->lru.next never has bit 0 set, unless the page
  821. * is PageTail(). Let's make sure that's true even for poisoned ->lru.
  822. */
  823. BUILD_BUG_ON((unsigned long)LIST_POISON1 & 1);
  824. if (!IS_ENABLED(CONFIG_DEBUG_VM)) {
  825. ret = 0;
  826. goto out;
  827. }
  828. switch (page - head_page) {
  829. case 1:
  830. /* the first tail page: ->mapping may be compound_mapcount() */
  831. if (unlikely(compound_mapcount(page))) {
  832. bad_page(page, "nonzero compound_mapcount", 0);
  833. goto out;
  834. }
  835. break;
  836. case 2:
  837. /*
  838. * the second tail page: ->mapping is
  839. * deferred_list.next -- ignore value.
  840. */
  841. break;
  842. default:
  843. if (page->mapping != TAIL_MAPPING) {
  844. bad_page(page, "corrupted mapping in tail page", 0);
  845. goto out;
  846. }
  847. break;
  848. }
  849. if (unlikely(!PageTail(page))) {
  850. bad_page(page, "PageTail not set", 0);
  851. goto out;
  852. }
  853. if (unlikely(compound_head(page) != head_page)) {
  854. bad_page(page, "compound_head not consistent", 0);
  855. goto out;
  856. }
  857. ret = 0;
  858. out:
  859. page->mapping = NULL;
  860. clear_compound_head(page);
  861. return ret;
  862. }
  863. static __always_inline bool free_pages_prepare(struct page *page,
  864. unsigned int order, bool check_free)
  865. {
  866. int bad = 0;
  867. VM_BUG_ON_PAGE(PageTail(page), page);
  868. trace_mm_page_free(page, order);
  869. /*
  870. * Check tail pages before head page information is cleared to
  871. * avoid checking PageCompound for order-0 pages.
  872. */
  873. if (unlikely(order)) {
  874. bool compound = PageCompound(page);
  875. int i;
  876. VM_BUG_ON_PAGE(compound && compound_order(page) != order, page);
  877. if (compound)
  878. ClearPageDoubleMap(page);
  879. for (i = 1; i < (1 << order); i++) {
  880. if (compound)
  881. bad += free_tail_pages_check(page, page + i);
  882. if (unlikely(free_pages_check(page + i))) {
  883. bad++;
  884. continue;
  885. }
  886. (page + i)->flags &= ~PAGE_FLAGS_CHECK_AT_PREP;
  887. }
  888. }
  889. if (PageMappingFlags(page))
  890. page->mapping = NULL;
  891. if (memcg_kmem_enabled() && PageKmemcg(page))
  892. memcg_kmem_uncharge(page, order);
  893. if (check_free)
  894. bad += free_pages_check(page);
  895. if (bad)
  896. return false;
  897. page_cpupid_reset_last(page);
  898. page->flags &= ~PAGE_FLAGS_CHECK_AT_PREP;
  899. reset_page_owner(page, order);
  900. if (!PageHighMem(page)) {
  901. debug_check_no_locks_freed(page_address(page),
  902. PAGE_SIZE << order);
  903. debug_check_no_obj_freed(page_address(page),
  904. PAGE_SIZE << order);
  905. }
  906. arch_free_page(page, order);
  907. kernel_poison_pages(page, 1 << order, 0);
  908. kernel_map_pages(page, 1 << order, 0);
  909. kasan_free_pages(page, order);
  910. return true;
  911. }
  912. #ifdef CONFIG_DEBUG_VM
  913. static inline bool free_pcp_prepare(struct page *page)
  914. {
  915. return free_pages_prepare(page, 0, true);
  916. }
  917. static inline bool bulkfree_pcp_prepare(struct page *page)
  918. {
  919. return false;
  920. }
  921. #else
  922. static bool free_pcp_prepare(struct page *page)
  923. {
  924. return free_pages_prepare(page, 0, false);
  925. }
  926. static bool bulkfree_pcp_prepare(struct page *page)
  927. {
  928. return free_pages_check(page);
  929. }
  930. #endif /* CONFIG_DEBUG_VM */
  931. static inline void prefetch_buddy(struct page *page)
  932. {
  933. unsigned long pfn = page_to_pfn(page);
  934. unsigned long buddy_pfn = __find_buddy_pfn(pfn, 0);
  935. struct page *buddy = page + (buddy_pfn - pfn);
  936. prefetch(buddy);
  937. }
  938. /*
  939. * Frees a number of pages from the PCP lists
  940. * Assumes all pages on list are in same zone, and of same order.
  941. * count is the number of pages to free.
  942. *
  943. * If the zone was previously in an "all pages pinned" state then look to
  944. * see if this freeing clears that state.
  945. *
  946. * And clear the zone's pages_scanned counter, to hold off the "all pages are
  947. * pinned" detection logic.
  948. */
  949. static void free_pcppages_bulk(struct zone *zone, int count,
  950. struct per_cpu_pages *pcp)
  951. {
  952. int migratetype = 0;
  953. int batch_free = 0;
  954. int prefetch_nr = 0;
  955. bool isolated_pageblocks;
  956. struct page *page, *tmp;
  957. LIST_HEAD(head);
  958. while (count) {
  959. struct list_head *list;
  960. /*
  961. * Remove pages from lists in a round-robin fashion. A
  962. * batch_free count is maintained that is incremented when an
  963. * empty list is encountered. This is so more pages are freed
  964. * off fuller lists instead of spinning excessively around empty
  965. * lists
  966. */
  967. do {
  968. batch_free++;
  969. if (++migratetype == MIGRATE_PCPTYPES)
  970. migratetype = 0;
  971. list = &pcp->lists[migratetype];
  972. } while (list_empty(list));
  973. /* This is the only non-empty list. Free them all. */
  974. if (batch_free == MIGRATE_PCPTYPES)
  975. batch_free = count;
  976. do {
  977. page = list_last_entry(list, struct page, lru);
  978. /* must delete to avoid corrupting pcp list */
  979. list_del(&page->lru);
  980. pcp->count--;
  981. if (bulkfree_pcp_prepare(page))
  982. continue;
  983. list_add_tail(&page->lru, &head);
  984. /*
  985. * We are going to put the page back to the global
  986. * pool, prefetch its buddy to speed up later access
  987. * under zone->lock. It is believed the overhead of
  988. * an additional test and calculating buddy_pfn here
  989. * can be offset by reduced memory latency later. To
  990. * avoid excessive prefetching due to large count, only
  991. * prefetch buddy for the first pcp->batch nr of pages.
  992. */
  993. if (prefetch_nr++ < pcp->batch)
  994. prefetch_buddy(page);
  995. } while (--count && --batch_free && !list_empty(list));
  996. }
  997. spin_lock(&zone->lock);
  998. isolated_pageblocks = has_isolate_pageblock(zone);
  999. /*
  1000. * Use safe version since after __free_one_page(),
  1001. * page->lru.next will not point to original list.
  1002. */
  1003. list_for_each_entry_safe(page, tmp, &head, lru) {
  1004. int mt = get_pcppage_migratetype(page);
  1005. /* MIGRATE_ISOLATE page should not go to pcplists */
  1006. VM_BUG_ON_PAGE(is_migrate_isolate(mt), page);
  1007. /* Pageblock could have been isolated meanwhile */
  1008. if (unlikely(isolated_pageblocks))
  1009. mt = get_pageblock_migratetype(page);
  1010. __free_one_page(page, page_to_pfn(page), zone, 0, mt);
  1011. trace_mm_page_pcpu_drain(page, 0, mt);
  1012. }
  1013. spin_unlock(&zone->lock);
  1014. }
  1015. static void free_one_page(struct zone *zone,
  1016. struct page *page, unsigned long pfn,
  1017. unsigned int order,
  1018. int migratetype)
  1019. {
  1020. spin_lock(&zone->lock);
  1021. if (unlikely(has_isolate_pageblock(zone) ||
  1022. is_migrate_isolate(migratetype))) {
  1023. migratetype = get_pfnblock_migratetype(page, pfn);
  1024. }
  1025. __free_one_page(page, pfn, zone, order, migratetype);
  1026. spin_unlock(&zone->lock);
  1027. }
  1028. static void __meminit __init_single_page(struct page *page, unsigned long pfn,
  1029. unsigned long zone, int nid)
  1030. {
  1031. mm_zero_struct_page(page);
  1032. set_page_links(page, zone, nid, pfn);
  1033. init_page_count(page);
  1034. page_mapcount_reset(page);
  1035. page_cpupid_reset_last(page);
  1036. INIT_LIST_HEAD(&page->lru);
  1037. #ifdef WANT_PAGE_VIRTUAL
  1038. /* The shift won't overflow because ZONE_NORMAL is below 4G. */
  1039. if (!is_highmem_idx(zone))
  1040. set_page_address(page, __va(pfn << PAGE_SHIFT));
  1041. #endif
  1042. }
  1043. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  1044. static void __meminit init_reserved_page(unsigned long pfn)
  1045. {
  1046. pg_data_t *pgdat;
  1047. int nid, zid;
  1048. if (!early_page_uninitialised(pfn))
  1049. return;
  1050. nid = early_pfn_to_nid(pfn);
  1051. pgdat = NODE_DATA(nid);
  1052. for (zid = 0; zid < MAX_NR_ZONES; zid++) {
  1053. struct zone *zone = &pgdat->node_zones[zid];
  1054. if (pfn >= zone->zone_start_pfn && pfn < zone_end_pfn(zone))
  1055. break;
  1056. }
  1057. __init_single_page(pfn_to_page(pfn), pfn, zid, nid);
  1058. }
  1059. #else
  1060. static inline void init_reserved_page(unsigned long pfn)
  1061. {
  1062. }
  1063. #endif /* CONFIG_DEFERRED_STRUCT_PAGE_INIT */
  1064. /*
  1065. * Initialised pages do not have PageReserved set. This function is
  1066. * called for each range allocated by the bootmem allocator and
  1067. * marks the pages PageReserved. The remaining valid pages are later
  1068. * sent to the buddy page allocator.
  1069. */
  1070. void __meminit reserve_bootmem_region(phys_addr_t start, phys_addr_t end)
  1071. {
  1072. unsigned long start_pfn = PFN_DOWN(start);
  1073. unsigned long end_pfn = PFN_UP(end);
  1074. for (; start_pfn < end_pfn; start_pfn++) {
  1075. if (pfn_valid(start_pfn)) {
  1076. struct page *page = pfn_to_page(start_pfn);
  1077. init_reserved_page(start_pfn);
  1078. /* Avoid false-positive PageTail() */
  1079. INIT_LIST_HEAD(&page->lru);
  1080. /*
  1081. * no need for atomic set_bit because the struct
  1082. * page is not visible yet so nobody should
  1083. * access it yet.
  1084. */
  1085. __SetPageReserved(page);
  1086. }
  1087. }
  1088. }
  1089. static void __free_pages_ok(struct page *page, unsigned int order)
  1090. {
  1091. unsigned long flags;
  1092. int migratetype;
  1093. unsigned long pfn = page_to_pfn(page);
  1094. if (!free_pages_prepare(page, order, true))
  1095. return;
  1096. migratetype = get_pfnblock_migratetype(page, pfn);
  1097. local_irq_save(flags);
  1098. __count_vm_events(PGFREE, 1 << order);
  1099. free_one_page(page_zone(page), page, pfn, order, migratetype);
  1100. local_irq_restore(flags);
  1101. }
  1102. static void __init __free_pages_boot_core(struct page *page, unsigned int order)
  1103. {
  1104. unsigned int nr_pages = 1 << order;
  1105. struct page *p = page;
  1106. unsigned int loop;
  1107. prefetchw(p);
  1108. for (loop = 0; loop < (nr_pages - 1); loop++, p++) {
  1109. prefetchw(p + 1);
  1110. __ClearPageReserved(p);
  1111. set_page_count(p, 0);
  1112. }
  1113. __ClearPageReserved(p);
  1114. set_page_count(p, 0);
  1115. page_zone(page)->managed_pages += nr_pages;
  1116. set_page_refcounted(page);
  1117. __free_pages(page, order);
  1118. }
  1119. #if defined(CONFIG_HAVE_ARCH_EARLY_PFN_TO_NID) || \
  1120. defined(CONFIG_HAVE_MEMBLOCK_NODE_MAP)
  1121. static struct mminit_pfnnid_cache early_pfnnid_cache __meminitdata;
  1122. int __meminit early_pfn_to_nid(unsigned long pfn)
  1123. {
  1124. static DEFINE_SPINLOCK(early_pfn_lock);
  1125. int nid;
  1126. spin_lock(&early_pfn_lock);
  1127. nid = __early_pfn_to_nid(pfn, &early_pfnnid_cache);
  1128. if (nid < 0)
  1129. nid = first_online_node;
  1130. spin_unlock(&early_pfn_lock);
  1131. return nid;
  1132. }
  1133. #endif
  1134. #ifdef CONFIG_NODES_SPAN_OTHER_NODES
  1135. static inline bool __meminit __maybe_unused
  1136. meminit_pfn_in_nid(unsigned long pfn, int node,
  1137. struct mminit_pfnnid_cache *state)
  1138. {
  1139. int nid;
  1140. nid = __early_pfn_to_nid(pfn, state);
  1141. if (nid >= 0 && nid != node)
  1142. return false;
  1143. return true;
  1144. }
  1145. /* Only safe to use early in boot when initialisation is single-threaded */
  1146. static inline bool __meminit early_pfn_in_nid(unsigned long pfn, int node)
  1147. {
  1148. return meminit_pfn_in_nid(pfn, node, &early_pfnnid_cache);
  1149. }
  1150. #else
  1151. static inline bool __meminit early_pfn_in_nid(unsigned long pfn, int node)
  1152. {
  1153. return true;
  1154. }
  1155. static inline bool __meminit __maybe_unused
  1156. meminit_pfn_in_nid(unsigned long pfn, int node,
  1157. struct mminit_pfnnid_cache *state)
  1158. {
  1159. return true;
  1160. }
  1161. #endif
  1162. void __init __free_pages_bootmem(struct page *page, unsigned long pfn,
  1163. unsigned int order)
  1164. {
  1165. if (early_page_uninitialised(pfn))
  1166. return;
  1167. return __free_pages_boot_core(page, order);
  1168. }
  1169. /*
  1170. * Check that the whole (or subset of) a pageblock given by the interval of
  1171. * [start_pfn, end_pfn) is valid and within the same zone, before scanning it
  1172. * with the migration of free compaction scanner. The scanners then need to
  1173. * use only pfn_valid_within() check for arches that allow holes within
  1174. * pageblocks.
  1175. *
  1176. * Return struct page pointer of start_pfn, or NULL if checks were not passed.
  1177. *
  1178. * It's possible on some configurations to have a setup like node0 node1 node0
  1179. * i.e. it's possible that all pages within a zones range of pages do not
  1180. * belong to a single zone. We assume that a border between node0 and node1
  1181. * can occur within a single pageblock, but not a node0 node1 node0
  1182. * interleaving within a single pageblock. It is therefore sufficient to check
  1183. * the first and last page of a pageblock and avoid checking each individual
  1184. * page in a pageblock.
  1185. */
  1186. struct page *__pageblock_pfn_to_page(unsigned long start_pfn,
  1187. unsigned long end_pfn, struct zone *zone)
  1188. {
  1189. struct page *start_page;
  1190. struct page *end_page;
  1191. /* end_pfn is one past the range we are checking */
  1192. end_pfn--;
  1193. if (!pfn_valid(start_pfn) || !pfn_valid(end_pfn))
  1194. return NULL;
  1195. start_page = pfn_to_online_page(start_pfn);
  1196. if (!start_page)
  1197. return NULL;
  1198. if (page_zone(start_page) != zone)
  1199. return NULL;
  1200. end_page = pfn_to_page(end_pfn);
  1201. /* This gives a shorter code than deriving page_zone(end_page) */
  1202. if (page_zone_id(start_page) != page_zone_id(end_page))
  1203. return NULL;
  1204. return start_page;
  1205. }
  1206. void set_zone_contiguous(struct zone *zone)
  1207. {
  1208. unsigned long block_start_pfn = zone->zone_start_pfn;
  1209. unsigned long block_end_pfn;
  1210. block_end_pfn = ALIGN(block_start_pfn + 1, pageblock_nr_pages);
  1211. for (; block_start_pfn < zone_end_pfn(zone);
  1212. block_start_pfn = block_end_pfn,
  1213. block_end_pfn += pageblock_nr_pages) {
  1214. block_end_pfn = min(block_end_pfn, zone_end_pfn(zone));
  1215. if (!__pageblock_pfn_to_page(block_start_pfn,
  1216. block_end_pfn, zone))
  1217. return;
  1218. }
  1219. /* We confirm that there is no hole */
  1220. zone->contiguous = true;
  1221. }
  1222. void clear_zone_contiguous(struct zone *zone)
  1223. {
  1224. zone->contiguous = false;
  1225. }
  1226. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  1227. static void __init deferred_free_range(unsigned long pfn,
  1228. unsigned long nr_pages)
  1229. {
  1230. struct page *page;
  1231. unsigned long i;
  1232. if (!nr_pages)
  1233. return;
  1234. page = pfn_to_page(pfn);
  1235. /* Free a large naturally-aligned chunk if possible */
  1236. if (nr_pages == pageblock_nr_pages &&
  1237. (pfn & (pageblock_nr_pages - 1)) == 0) {
  1238. set_pageblock_migratetype(page, MIGRATE_MOVABLE);
  1239. __free_pages_boot_core(page, pageblock_order);
  1240. return;
  1241. }
  1242. for (i = 0; i < nr_pages; i++, page++, pfn++) {
  1243. if ((pfn & (pageblock_nr_pages - 1)) == 0)
  1244. set_pageblock_migratetype(page, MIGRATE_MOVABLE);
  1245. __free_pages_boot_core(page, 0);
  1246. }
  1247. }
  1248. /* Completion tracking for deferred_init_memmap() threads */
  1249. static atomic_t pgdat_init_n_undone __initdata;
  1250. static __initdata DECLARE_COMPLETION(pgdat_init_all_done_comp);
  1251. static inline void __init pgdat_init_report_one_done(void)
  1252. {
  1253. if (atomic_dec_and_test(&pgdat_init_n_undone))
  1254. complete(&pgdat_init_all_done_comp);
  1255. }
  1256. /*
  1257. * Returns true if page needs to be initialized or freed to buddy allocator.
  1258. *
  1259. * First we check if pfn is valid on architectures where it is possible to have
  1260. * holes within pageblock_nr_pages. On systems where it is not possible, this
  1261. * function is optimized out.
  1262. *
  1263. * Then, we check if a current large page is valid by only checking the validity
  1264. * of the head pfn.
  1265. *
  1266. * Finally, meminit_pfn_in_nid is checked on systems where pfns can interleave
  1267. * within a node: a pfn is between start and end of a node, but does not belong
  1268. * to this memory node.
  1269. */
  1270. static inline bool __init
  1271. deferred_pfn_valid(int nid, unsigned long pfn,
  1272. struct mminit_pfnnid_cache *nid_init_state)
  1273. {
  1274. if (!pfn_valid_within(pfn))
  1275. return false;
  1276. if (!(pfn & (pageblock_nr_pages - 1)) && !pfn_valid(pfn))
  1277. return false;
  1278. if (!meminit_pfn_in_nid(pfn, nid, nid_init_state))
  1279. return false;
  1280. return true;
  1281. }
  1282. /*
  1283. * Free pages to buddy allocator. Try to free aligned pages in
  1284. * pageblock_nr_pages sizes.
  1285. */
  1286. static void __init deferred_free_pages(int nid, int zid, unsigned long pfn,
  1287. unsigned long end_pfn)
  1288. {
  1289. struct mminit_pfnnid_cache nid_init_state = { };
  1290. unsigned long nr_pgmask = pageblock_nr_pages - 1;
  1291. unsigned long nr_free = 0;
  1292. for (; pfn < end_pfn; pfn++) {
  1293. if (!deferred_pfn_valid(nid, pfn, &nid_init_state)) {
  1294. deferred_free_range(pfn - nr_free, nr_free);
  1295. nr_free = 0;
  1296. } else if (!(pfn & nr_pgmask)) {
  1297. deferred_free_range(pfn - nr_free, nr_free);
  1298. nr_free = 1;
  1299. touch_nmi_watchdog();
  1300. } else {
  1301. nr_free++;
  1302. }
  1303. }
  1304. /* Free the last block of pages to allocator */
  1305. deferred_free_range(pfn - nr_free, nr_free);
  1306. }
  1307. /*
  1308. * Initialize struct pages. We minimize pfn page lookups and scheduler checks
  1309. * by performing it only once every pageblock_nr_pages.
  1310. * Return number of pages initialized.
  1311. */
  1312. static unsigned long __init deferred_init_pages(int nid, int zid,
  1313. unsigned long pfn,
  1314. unsigned long end_pfn)
  1315. {
  1316. struct mminit_pfnnid_cache nid_init_state = { };
  1317. unsigned long nr_pgmask = pageblock_nr_pages - 1;
  1318. unsigned long nr_pages = 0;
  1319. struct page *page = NULL;
  1320. for (; pfn < end_pfn; pfn++) {
  1321. if (!deferred_pfn_valid(nid, pfn, &nid_init_state)) {
  1322. page = NULL;
  1323. continue;
  1324. } else if (!page || !(pfn & nr_pgmask)) {
  1325. page = pfn_to_page(pfn);
  1326. touch_nmi_watchdog();
  1327. } else {
  1328. page++;
  1329. }
  1330. __init_single_page(page, pfn, zid, nid);
  1331. nr_pages++;
  1332. }
  1333. return (nr_pages);
  1334. }
  1335. /* Initialise remaining memory on a node */
  1336. static int __init deferred_init_memmap(void *data)
  1337. {
  1338. pg_data_t *pgdat = data;
  1339. int nid = pgdat->node_id;
  1340. unsigned long start = jiffies;
  1341. unsigned long nr_pages = 0;
  1342. unsigned long spfn, epfn, first_init_pfn, flags;
  1343. phys_addr_t spa, epa;
  1344. int zid;
  1345. struct zone *zone;
  1346. const struct cpumask *cpumask = cpumask_of_node(pgdat->node_id);
  1347. u64 i;
  1348. /* Bind memory initialisation thread to a local node if possible */
  1349. if (!cpumask_empty(cpumask))
  1350. set_cpus_allowed_ptr(current, cpumask);
  1351. pgdat_resize_lock(pgdat, &flags);
  1352. first_init_pfn = pgdat->first_deferred_pfn;
  1353. if (first_init_pfn == ULONG_MAX) {
  1354. pgdat_resize_unlock(pgdat, &flags);
  1355. pgdat_init_report_one_done();
  1356. return 0;
  1357. }
  1358. /* Sanity check boundaries */
  1359. BUG_ON(pgdat->first_deferred_pfn < pgdat->node_start_pfn);
  1360. BUG_ON(pgdat->first_deferred_pfn > pgdat_end_pfn(pgdat));
  1361. pgdat->first_deferred_pfn = ULONG_MAX;
  1362. /* Only the highest zone is deferred so find it */
  1363. for (zid = 0; zid < MAX_NR_ZONES; zid++) {
  1364. zone = pgdat->node_zones + zid;
  1365. if (first_init_pfn < zone_end_pfn(zone))
  1366. break;
  1367. }
  1368. first_init_pfn = max(zone->zone_start_pfn, first_init_pfn);
  1369. /*
  1370. * Initialize and free pages. We do it in two loops: first we initialize
  1371. * struct page, than free to buddy allocator, because while we are
  1372. * freeing pages we can access pages that are ahead (computing buddy
  1373. * page in __free_one_page()).
  1374. */
  1375. for_each_free_mem_range(i, nid, MEMBLOCK_NONE, &spa, &epa, NULL) {
  1376. spfn = max_t(unsigned long, first_init_pfn, PFN_UP(spa));
  1377. epfn = min_t(unsigned long, zone_end_pfn(zone), PFN_DOWN(epa));
  1378. nr_pages += deferred_init_pages(nid, zid, spfn, epfn);
  1379. }
  1380. for_each_free_mem_range(i, nid, MEMBLOCK_NONE, &spa, &epa, NULL) {
  1381. spfn = max_t(unsigned long, first_init_pfn, PFN_UP(spa));
  1382. epfn = min_t(unsigned long, zone_end_pfn(zone), PFN_DOWN(epa));
  1383. deferred_free_pages(nid, zid, spfn, epfn);
  1384. }
  1385. pgdat_resize_unlock(pgdat, &flags);
  1386. /* Sanity check that the next zone really is unpopulated */
  1387. WARN_ON(++zid < MAX_NR_ZONES && populated_zone(++zone));
  1388. pr_info("node %d initialised, %lu pages in %ums\n", nid, nr_pages,
  1389. jiffies_to_msecs(jiffies - start));
  1390. pgdat_init_report_one_done();
  1391. return 0;
  1392. }
  1393. /*
  1394. * During boot we initialize deferred pages on-demand, as needed, but once
  1395. * page_alloc_init_late() has finished, the deferred pages are all initialized,
  1396. * and we can permanently disable that path.
  1397. */
  1398. static DEFINE_STATIC_KEY_TRUE(deferred_pages);
  1399. /*
  1400. * If this zone has deferred pages, try to grow it by initializing enough
  1401. * deferred pages to satisfy the allocation specified by order, rounded up to
  1402. * the nearest PAGES_PER_SECTION boundary. So we're adding memory in increments
  1403. * of SECTION_SIZE bytes by initializing struct pages in increments of
  1404. * PAGES_PER_SECTION * sizeof(struct page) bytes.
  1405. *
  1406. * Return true when zone was grown, otherwise return false. We return true even
  1407. * when we grow less than requested, to let the caller decide if there are
  1408. * enough pages to satisfy the allocation.
  1409. *
  1410. * Note: We use noinline because this function is needed only during boot, and
  1411. * it is called from a __ref function _deferred_grow_zone. This way we are
  1412. * making sure that it is not inlined into permanent text section.
  1413. */
  1414. static noinline bool __init
  1415. deferred_grow_zone(struct zone *zone, unsigned int order)
  1416. {
  1417. int zid = zone_idx(zone);
  1418. int nid = zone_to_nid(zone);
  1419. pg_data_t *pgdat = NODE_DATA(nid);
  1420. unsigned long nr_pages_needed = ALIGN(1 << order, PAGES_PER_SECTION);
  1421. unsigned long nr_pages = 0;
  1422. unsigned long first_init_pfn, spfn, epfn, t, flags;
  1423. unsigned long first_deferred_pfn = pgdat->first_deferred_pfn;
  1424. phys_addr_t spa, epa;
  1425. u64 i;
  1426. /* Only the last zone may have deferred pages */
  1427. if (zone_end_pfn(zone) != pgdat_end_pfn(pgdat))
  1428. return false;
  1429. pgdat_resize_lock(pgdat, &flags);
  1430. /*
  1431. * If deferred pages have been initialized while we were waiting for
  1432. * the lock, return true, as the zone was grown. The caller will retry
  1433. * this zone. We won't return to this function since the caller also
  1434. * has this static branch.
  1435. */
  1436. if (!static_branch_unlikely(&deferred_pages)) {
  1437. pgdat_resize_unlock(pgdat, &flags);
  1438. return true;
  1439. }
  1440. /*
  1441. * If someone grew this zone while we were waiting for spinlock, return
  1442. * true, as there might be enough pages already.
  1443. */
  1444. if (first_deferred_pfn != pgdat->first_deferred_pfn) {
  1445. pgdat_resize_unlock(pgdat, &flags);
  1446. return true;
  1447. }
  1448. first_init_pfn = max(zone->zone_start_pfn, first_deferred_pfn);
  1449. if (first_init_pfn >= pgdat_end_pfn(pgdat)) {
  1450. pgdat_resize_unlock(pgdat, &flags);
  1451. return false;
  1452. }
  1453. for_each_free_mem_range(i, nid, MEMBLOCK_NONE, &spa, &epa, NULL) {
  1454. spfn = max_t(unsigned long, first_init_pfn, PFN_UP(spa));
  1455. epfn = min_t(unsigned long, zone_end_pfn(zone), PFN_DOWN(epa));
  1456. while (spfn < epfn && nr_pages < nr_pages_needed) {
  1457. t = ALIGN(spfn + PAGES_PER_SECTION, PAGES_PER_SECTION);
  1458. first_deferred_pfn = min(t, epfn);
  1459. nr_pages += deferred_init_pages(nid, zid, spfn,
  1460. first_deferred_pfn);
  1461. spfn = first_deferred_pfn;
  1462. }
  1463. if (nr_pages >= nr_pages_needed)
  1464. break;
  1465. }
  1466. for_each_free_mem_range(i, nid, MEMBLOCK_NONE, &spa, &epa, NULL) {
  1467. spfn = max_t(unsigned long, first_init_pfn, PFN_UP(spa));
  1468. epfn = min_t(unsigned long, first_deferred_pfn, PFN_DOWN(epa));
  1469. deferred_free_pages(nid, zid, spfn, epfn);
  1470. if (first_deferred_pfn == epfn)
  1471. break;
  1472. }
  1473. pgdat->first_deferred_pfn = first_deferred_pfn;
  1474. pgdat_resize_unlock(pgdat, &flags);
  1475. return nr_pages > 0;
  1476. }
  1477. /*
  1478. * deferred_grow_zone() is __init, but it is called from
  1479. * get_page_from_freelist() during early boot until deferred_pages permanently
  1480. * disables this call. This is why we have refdata wrapper to avoid warning,
  1481. * and to ensure that the function body gets unloaded.
  1482. */
  1483. static bool __ref
  1484. _deferred_grow_zone(struct zone *zone, unsigned int order)
  1485. {
  1486. return deferred_grow_zone(zone, order);
  1487. }
  1488. #endif /* CONFIG_DEFERRED_STRUCT_PAGE_INIT */
  1489. void __init page_alloc_init_late(void)
  1490. {
  1491. struct zone *zone;
  1492. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  1493. int nid;
  1494. /* There will be num_node_state(N_MEMORY) threads */
  1495. atomic_set(&pgdat_init_n_undone, num_node_state(N_MEMORY));
  1496. for_each_node_state(nid, N_MEMORY) {
  1497. kthread_run(deferred_init_memmap, NODE_DATA(nid), "pgdatinit%d", nid);
  1498. }
  1499. /* Block until all are initialised */
  1500. wait_for_completion(&pgdat_init_all_done_comp);
  1501. /*
  1502. * We initialized the rest of the deferred pages. Permanently disable
  1503. * on-demand struct page initialization.
  1504. */
  1505. static_branch_disable(&deferred_pages);
  1506. /* Reinit limits that are based on free pages after the kernel is up */
  1507. files_maxfiles_init();
  1508. #endif
  1509. #ifdef CONFIG_ARCH_DISCARD_MEMBLOCK
  1510. /* Discard memblock private memory */
  1511. memblock_discard();
  1512. #endif
  1513. for_each_populated_zone(zone)
  1514. set_zone_contiguous(zone);
  1515. }
  1516. #ifdef CONFIG_CMA
  1517. /* Free whole pageblock and set its migration type to MIGRATE_CMA. */
  1518. void __init init_cma_reserved_pageblock(struct page *page)
  1519. {
  1520. unsigned i = pageblock_nr_pages;
  1521. struct page *p = page;
  1522. do {
  1523. __ClearPageReserved(p);
  1524. set_page_count(p, 0);
  1525. } while (++p, --i);
  1526. set_pageblock_migratetype(page, MIGRATE_CMA);
  1527. if (pageblock_order >= MAX_ORDER) {
  1528. i = pageblock_nr_pages;
  1529. p = page;
  1530. do {
  1531. set_page_refcounted(p);
  1532. __free_pages(p, MAX_ORDER - 1);
  1533. p += MAX_ORDER_NR_PAGES;
  1534. } while (i -= MAX_ORDER_NR_PAGES);
  1535. } else {
  1536. set_page_refcounted(page);
  1537. __free_pages(page, pageblock_order);
  1538. }
  1539. adjust_managed_page_count(page, pageblock_nr_pages);
  1540. }
  1541. #endif
  1542. /*
  1543. * The order of subdivision here is critical for the IO subsystem.
  1544. * Please do not alter this order without good reasons and regression
  1545. * testing. Specifically, as large blocks of memory are subdivided,
  1546. * the order in which smaller blocks are delivered depends on the order
  1547. * they're subdivided in this function. This is the primary factor
  1548. * influencing the order in which pages are delivered to the IO
  1549. * subsystem according to empirical testing, and this is also justified
  1550. * by considering the behavior of a buddy system containing a single
  1551. * large block of memory acted on by a series of small allocations.
  1552. * This behavior is a critical factor in sglist merging's success.
  1553. *
  1554. * -- nyc
  1555. */
  1556. static inline void expand(struct zone *zone, struct page *page,
  1557. int low, int high, struct free_area *area,
  1558. int migratetype)
  1559. {
  1560. unsigned long size = 1 << high;
  1561. while (high > low) {
  1562. area--;
  1563. high--;
  1564. size >>= 1;
  1565. VM_BUG_ON_PAGE(bad_range(zone, &page[size]), &page[size]);
  1566. /*
  1567. * Mark as guard pages (or page), that will allow to
  1568. * merge back to allocator when buddy will be freed.
  1569. * Corresponding page table entries will not be touched,
  1570. * pages will stay not present in virtual address space
  1571. */
  1572. if (set_page_guard(zone, &page[size], high, migratetype))
  1573. continue;
  1574. list_add(&page[size].lru, &area->free_list[migratetype]);
  1575. area->nr_free++;
  1576. set_page_order(&page[size], high);
  1577. }
  1578. }
  1579. static void check_new_page_bad(struct page *page)
  1580. {
  1581. const char *bad_reason = NULL;
  1582. unsigned long bad_flags = 0;
  1583. if (unlikely(atomic_read(&page->_mapcount) != -1))
  1584. bad_reason = "nonzero mapcount";
  1585. if (unlikely(page->mapping != NULL))
  1586. bad_reason = "non-NULL mapping";
  1587. if (unlikely(page_ref_count(page) != 0))
  1588. bad_reason = "nonzero _count";
  1589. if (unlikely(page->flags & __PG_HWPOISON)) {
  1590. bad_reason = "HWPoisoned (hardware-corrupted)";
  1591. bad_flags = __PG_HWPOISON;
  1592. /* Don't complain about hwpoisoned pages */
  1593. page_mapcount_reset(page); /* remove PageBuddy */
  1594. return;
  1595. }
  1596. if (unlikely(page->flags & PAGE_FLAGS_CHECK_AT_PREP)) {
  1597. bad_reason = "PAGE_FLAGS_CHECK_AT_PREP flag set";
  1598. bad_flags = PAGE_FLAGS_CHECK_AT_PREP;
  1599. }
  1600. #ifdef CONFIG_MEMCG
  1601. if (unlikely(page->mem_cgroup))
  1602. bad_reason = "page still charged to cgroup";
  1603. #endif
  1604. bad_page(page, bad_reason, bad_flags);
  1605. }
  1606. /*
  1607. * This page is about to be returned from the page allocator
  1608. */
  1609. static inline int check_new_page(struct page *page)
  1610. {
  1611. if (likely(page_expected_state(page,
  1612. PAGE_FLAGS_CHECK_AT_PREP|__PG_HWPOISON)))
  1613. return 0;
  1614. check_new_page_bad(page);
  1615. return 1;
  1616. }
  1617. static inline bool free_pages_prezeroed(void)
  1618. {
  1619. return IS_ENABLED(CONFIG_PAGE_POISONING_ZERO) &&
  1620. page_poisoning_enabled();
  1621. }
  1622. #ifdef CONFIG_DEBUG_VM
  1623. static bool check_pcp_refill(struct page *page)
  1624. {
  1625. return false;
  1626. }
  1627. static bool check_new_pcp(struct page *page)
  1628. {
  1629. return check_new_page(page);
  1630. }
  1631. #else
  1632. static bool check_pcp_refill(struct page *page)
  1633. {
  1634. return check_new_page(page);
  1635. }
  1636. static bool check_new_pcp(struct page *page)
  1637. {
  1638. return false;
  1639. }
  1640. #endif /* CONFIG_DEBUG_VM */
  1641. static bool check_new_pages(struct page *page, unsigned int order)
  1642. {
  1643. int i;
  1644. for (i = 0; i < (1 << order); i++) {
  1645. struct page *p = page + i;
  1646. if (unlikely(check_new_page(p)))
  1647. return true;
  1648. }
  1649. return false;
  1650. }
  1651. inline void post_alloc_hook(struct page *page, unsigned int order,
  1652. gfp_t gfp_flags)
  1653. {
  1654. set_page_private(page, 0);
  1655. set_page_refcounted(page);
  1656. arch_alloc_page(page, order);
  1657. kernel_map_pages(page, 1 << order, 1);
  1658. kernel_poison_pages(page, 1 << order, 1);
  1659. kasan_alloc_pages(page, order);
  1660. set_page_owner(page, order, gfp_flags);
  1661. }
  1662. static void prep_new_page(struct page *page, unsigned int order, gfp_t gfp_flags,
  1663. unsigned int alloc_flags)
  1664. {
  1665. int i;
  1666. post_alloc_hook(page, order, gfp_flags);
  1667. if (!free_pages_prezeroed() && (gfp_flags & __GFP_ZERO))
  1668. for (i = 0; i < (1 << order); i++)
  1669. clear_highpage(page + i);
  1670. if (order && (gfp_flags & __GFP_COMP))
  1671. prep_compound_page(page, order);
  1672. /*
  1673. * page is set pfmemalloc when ALLOC_NO_WATERMARKS was necessary to
  1674. * allocate the page. The expectation is that the caller is taking
  1675. * steps that will free more memory. The caller should avoid the page
  1676. * being used for !PFMEMALLOC purposes.
  1677. */
  1678. if (alloc_flags & ALLOC_NO_WATERMARKS)
  1679. set_page_pfmemalloc(page);
  1680. else
  1681. clear_page_pfmemalloc(page);
  1682. }
  1683. /*
  1684. * Go through the free lists for the given migratetype and remove
  1685. * the smallest available page from the freelists
  1686. */
  1687. static __always_inline
  1688. struct page *__rmqueue_smallest(struct zone *zone, unsigned int order,
  1689. int migratetype)
  1690. {
  1691. unsigned int current_order;
  1692. struct free_area *area;
  1693. struct page *page;
  1694. /* Find a page of the appropriate size in the preferred list */
  1695. for (current_order = order; current_order < MAX_ORDER; ++current_order) {
  1696. area = &(zone->free_area[current_order]);
  1697. page = list_first_entry_or_null(&area->free_list[migratetype],
  1698. struct page, lru);
  1699. if (!page)
  1700. continue;
  1701. list_del(&page->lru);
  1702. rmv_page_order(page);
  1703. area->nr_free--;
  1704. expand(zone, page, order, current_order, area, migratetype);
  1705. set_pcppage_migratetype(page, migratetype);
  1706. return page;
  1707. }
  1708. return NULL;
  1709. }
  1710. /*
  1711. * This array describes the order lists are fallen back to when
  1712. * the free lists for the desirable migrate type are depleted
  1713. */
  1714. static int fallbacks[MIGRATE_TYPES][4] = {
  1715. [MIGRATE_UNMOVABLE] = { MIGRATE_RECLAIMABLE, MIGRATE_MOVABLE, MIGRATE_TYPES },
  1716. [MIGRATE_RECLAIMABLE] = { MIGRATE_UNMOVABLE, MIGRATE_MOVABLE, MIGRATE_TYPES },
  1717. [MIGRATE_MOVABLE] = { MIGRATE_RECLAIMABLE, MIGRATE_UNMOVABLE, MIGRATE_TYPES },
  1718. #ifdef CONFIG_CMA
  1719. [MIGRATE_CMA] = { MIGRATE_TYPES }, /* Never used */
  1720. #endif
  1721. #ifdef CONFIG_MEMORY_ISOLATION
  1722. [MIGRATE_ISOLATE] = { MIGRATE_TYPES }, /* Never used */
  1723. #endif
  1724. };
  1725. #ifdef CONFIG_CMA
  1726. static __always_inline struct page *__rmqueue_cma_fallback(struct zone *zone,
  1727. unsigned int order)
  1728. {
  1729. return __rmqueue_smallest(zone, order, MIGRATE_CMA);
  1730. }
  1731. #else
  1732. static inline struct page *__rmqueue_cma_fallback(struct zone *zone,
  1733. unsigned int order) { return NULL; }
  1734. #endif
  1735. /*
  1736. * Move the free pages in a range to the free lists of the requested type.
  1737. * Note that start_page and end_pages are not aligned on a pageblock
  1738. * boundary. If alignment is required, use move_freepages_block()
  1739. */
  1740. static int move_freepages(struct zone *zone,
  1741. struct page *start_page, struct page *end_page,
  1742. int migratetype, int *num_movable)
  1743. {
  1744. struct page *page;
  1745. unsigned int order;
  1746. int pages_moved = 0;
  1747. #ifndef CONFIG_HOLES_IN_ZONE
  1748. /*
  1749. * page_zone is not safe to call in this context when
  1750. * CONFIG_HOLES_IN_ZONE is set. This bug check is probably redundant
  1751. * anyway as we check zone boundaries in move_freepages_block().
  1752. * Remove at a later date when no bug reports exist related to
  1753. * grouping pages by mobility
  1754. */
  1755. VM_BUG_ON(pfn_valid(page_to_pfn(start_page)) &&
  1756. pfn_valid(page_to_pfn(end_page)) &&
  1757. page_zone(start_page) != page_zone(end_page));
  1758. #endif
  1759. for (page = start_page; page <= end_page;) {
  1760. if (!pfn_valid_within(page_to_pfn(page))) {
  1761. page++;
  1762. continue;
  1763. }
  1764. /* Make sure we are not inadvertently changing nodes */
  1765. VM_BUG_ON_PAGE(page_to_nid(page) != zone_to_nid(zone), page);
  1766. if (!PageBuddy(page)) {
  1767. /*
  1768. * We assume that pages that could be isolated for
  1769. * migration are movable. But we don't actually try
  1770. * isolating, as that would be expensive.
  1771. */
  1772. if (num_movable &&
  1773. (PageLRU(page) || __PageMovable(page)))
  1774. (*num_movable)++;
  1775. page++;
  1776. continue;
  1777. }
  1778. order = page_order(page);
  1779. list_move(&page->lru,
  1780. &zone->free_area[order].free_list[migratetype]);
  1781. page += 1 << order;
  1782. pages_moved += 1 << order;
  1783. }
  1784. return pages_moved;
  1785. }
  1786. int move_freepages_block(struct zone *zone, struct page *page,
  1787. int migratetype, int *num_movable)
  1788. {
  1789. unsigned long start_pfn, end_pfn;
  1790. struct page *start_page, *end_page;
  1791. if (num_movable)
  1792. *num_movable = 0;
  1793. start_pfn = page_to_pfn(page);
  1794. start_pfn = start_pfn & ~(pageblock_nr_pages-1);
  1795. start_page = pfn_to_page(start_pfn);
  1796. end_page = start_page + pageblock_nr_pages - 1;
  1797. end_pfn = start_pfn + pageblock_nr_pages - 1;
  1798. /* Do not cross zone boundaries */
  1799. if (!zone_spans_pfn(zone, start_pfn))
  1800. start_page = page;
  1801. if (!zone_spans_pfn(zone, end_pfn))
  1802. return 0;
  1803. return move_freepages(zone, start_page, end_page, migratetype,
  1804. num_movable);
  1805. }
  1806. static void change_pageblock_range(struct page *pageblock_page,
  1807. int start_order, int migratetype)
  1808. {
  1809. int nr_pageblocks = 1 << (start_order - pageblock_order);
  1810. while (nr_pageblocks--) {
  1811. set_pageblock_migratetype(pageblock_page, migratetype);
  1812. pageblock_page += pageblock_nr_pages;
  1813. }
  1814. }
  1815. /*
  1816. * When we are falling back to another migratetype during allocation, try to
  1817. * steal extra free pages from the same pageblocks to satisfy further
  1818. * allocations, instead of polluting multiple pageblocks.
  1819. *
  1820. * If we are stealing a relatively large buddy page, it is likely there will
  1821. * be more free pages in the pageblock, so try to steal them all. For
  1822. * reclaimable and unmovable allocations, we steal regardless of page size,
  1823. * as fragmentation caused by those allocations polluting movable pageblocks
  1824. * is worse than movable allocations stealing from unmovable and reclaimable
  1825. * pageblocks.
  1826. */
  1827. static bool can_steal_fallback(unsigned int order, int start_mt)
  1828. {
  1829. /*
  1830. * Leaving this order check is intended, although there is
  1831. * relaxed order check in next check. The reason is that
  1832. * we can actually steal whole pageblock if this condition met,
  1833. * but, below check doesn't guarantee it and that is just heuristic
  1834. * so could be changed anytime.
  1835. */
  1836. if (order >= pageblock_order)
  1837. return true;
  1838. if (order >= pageblock_order / 2 ||
  1839. start_mt == MIGRATE_RECLAIMABLE ||
  1840. start_mt == MIGRATE_UNMOVABLE ||
  1841. page_group_by_mobility_disabled)
  1842. return true;
  1843. return false;
  1844. }
  1845. /*
  1846. * This function implements actual steal behaviour. If order is large enough,
  1847. * we can steal whole pageblock. If not, we first move freepages in this
  1848. * pageblock to our migratetype and determine how many already-allocated pages
  1849. * are there in the pageblock with a compatible migratetype. If at least half
  1850. * of pages are free or compatible, we can change migratetype of the pageblock
  1851. * itself, so pages freed in the future will be put on the correct free list.
  1852. */
  1853. static void steal_suitable_fallback(struct zone *zone, struct page *page,
  1854. int start_type, bool whole_block)
  1855. {
  1856. unsigned int current_order = page_order(page);
  1857. struct free_area *area;
  1858. int free_pages, movable_pages, alike_pages;
  1859. int old_block_type;
  1860. old_block_type = get_pageblock_migratetype(page);
  1861. /*
  1862. * This can happen due to races and we want to prevent broken
  1863. * highatomic accounting.
  1864. */
  1865. if (is_migrate_highatomic(old_block_type))
  1866. goto single_page;
  1867. /* Take ownership for orders >= pageblock_order */
  1868. if (current_order >= pageblock_order) {
  1869. change_pageblock_range(page, current_order, start_type);
  1870. goto single_page;
  1871. }
  1872. /* We are not allowed to try stealing from the whole block */
  1873. if (!whole_block)
  1874. goto single_page;
  1875. free_pages = move_freepages_block(zone, page, start_type,
  1876. &movable_pages);
  1877. /*
  1878. * Determine how many pages are compatible with our allocation.
  1879. * For movable allocation, it's the number of movable pages which
  1880. * we just obtained. For other types it's a bit more tricky.
  1881. */
  1882. if (start_type == MIGRATE_MOVABLE) {
  1883. alike_pages = movable_pages;
  1884. } else {
  1885. /*
  1886. * If we are falling back a RECLAIMABLE or UNMOVABLE allocation
  1887. * to MOVABLE pageblock, consider all non-movable pages as
  1888. * compatible. If it's UNMOVABLE falling back to RECLAIMABLE or
  1889. * vice versa, be conservative since we can't distinguish the
  1890. * exact migratetype of non-movable pages.
  1891. */
  1892. if (old_block_type == MIGRATE_MOVABLE)
  1893. alike_pages = pageblock_nr_pages
  1894. - (free_pages + movable_pages);
  1895. else
  1896. alike_pages = 0;
  1897. }
  1898. /* moving whole block can fail due to zone boundary conditions */
  1899. if (!free_pages)
  1900. goto single_page;
  1901. /*
  1902. * If a sufficient number of pages in the block are either free or of
  1903. * comparable migratability as our allocation, claim the whole block.
  1904. */
  1905. if (free_pages + alike_pages >= (1 << (pageblock_order-1)) ||
  1906. page_group_by_mobility_disabled)
  1907. set_pageblock_migratetype(page, start_type);
  1908. return;
  1909. single_page:
  1910. area = &zone->free_area[current_order];
  1911. list_move(&page->lru, &area->free_list[start_type]);
  1912. }
  1913. /*
  1914. * Check whether there is a suitable fallback freepage with requested order.
  1915. * If only_stealable is true, this function returns fallback_mt only if
  1916. * we can steal other freepages all together. This would help to reduce
  1917. * fragmentation due to mixed migratetype pages in one pageblock.
  1918. */
  1919. int find_suitable_fallback(struct free_area *area, unsigned int order,
  1920. int migratetype, bool only_stealable, bool *can_steal)
  1921. {
  1922. int i;
  1923. int fallback_mt;
  1924. if (area->nr_free == 0)
  1925. return -1;
  1926. *can_steal = false;
  1927. for (i = 0;; i++) {
  1928. fallback_mt = fallbacks[migratetype][i];
  1929. if (fallback_mt == MIGRATE_TYPES)
  1930. break;
  1931. if (list_empty(&area->free_list[fallback_mt]))
  1932. continue;
  1933. if (can_steal_fallback(order, migratetype))
  1934. *can_steal = true;
  1935. if (!only_stealable)
  1936. return fallback_mt;
  1937. if (*can_steal)
  1938. return fallback_mt;
  1939. }
  1940. return -1;
  1941. }
  1942. /*
  1943. * Reserve a pageblock for exclusive use of high-order atomic allocations if
  1944. * there are no empty page blocks that contain a page with a suitable order
  1945. */
  1946. static void reserve_highatomic_pageblock(struct page *page, struct zone *zone,
  1947. unsigned int alloc_order)
  1948. {
  1949. int mt;
  1950. unsigned long max_managed, flags;
  1951. /*
  1952. * Limit the number reserved to 1 pageblock or roughly 1% of a zone.
  1953. * Check is race-prone but harmless.
  1954. */
  1955. max_managed = (zone->managed_pages / 100) + pageblock_nr_pages;
  1956. if (zone->nr_reserved_highatomic >= max_managed)
  1957. return;
  1958. spin_lock_irqsave(&zone->lock, flags);
  1959. /* Recheck the nr_reserved_highatomic limit under the lock */
  1960. if (zone->nr_reserved_highatomic >= max_managed)
  1961. goto out_unlock;
  1962. /* Yoink! */
  1963. mt = get_pageblock_migratetype(page);
  1964. if (!is_migrate_highatomic(mt) && !is_migrate_isolate(mt)
  1965. && !is_migrate_cma(mt)) {
  1966. zone->nr_reserved_highatomic += pageblock_nr_pages;
  1967. set_pageblock_migratetype(page, MIGRATE_HIGHATOMIC);
  1968. move_freepages_block(zone, page, MIGRATE_HIGHATOMIC, NULL);
  1969. }
  1970. out_unlock:
  1971. spin_unlock_irqrestore(&zone->lock, flags);
  1972. }
  1973. /*
  1974. * Used when an allocation is about to fail under memory pressure. This
  1975. * potentially hurts the reliability of high-order allocations when under
  1976. * intense memory pressure but failed atomic allocations should be easier
  1977. * to recover from than an OOM.
  1978. *
  1979. * If @force is true, try to unreserve a pageblock even though highatomic
  1980. * pageblock is exhausted.
  1981. */
  1982. static bool unreserve_highatomic_pageblock(const struct alloc_context *ac,
  1983. bool force)
  1984. {
  1985. struct zonelist *zonelist = ac->zonelist;
  1986. unsigned long flags;
  1987. struct zoneref *z;
  1988. struct zone *zone;
  1989. struct page *page;
  1990. int order;
  1991. bool ret;
  1992. for_each_zone_zonelist_nodemask(zone, z, zonelist, ac->high_zoneidx,
  1993. ac->nodemask) {
  1994. /*
  1995. * Preserve at least one pageblock unless memory pressure
  1996. * is really high.
  1997. */
  1998. if (!force && zone->nr_reserved_highatomic <=
  1999. pageblock_nr_pages)
  2000. continue;
  2001. spin_lock_irqsave(&zone->lock, flags);
  2002. for (order = 0; order < MAX_ORDER; order++) {
  2003. struct free_area *area = &(zone->free_area[order]);
  2004. page = list_first_entry_or_null(
  2005. &area->free_list[MIGRATE_HIGHATOMIC],
  2006. struct page, lru);
  2007. if (!page)
  2008. continue;
  2009. /*
  2010. * In page freeing path, migratetype change is racy so
  2011. * we can counter several free pages in a pageblock
  2012. * in this loop althoug we changed the pageblock type
  2013. * from highatomic to ac->migratetype. So we should
  2014. * adjust the count once.
  2015. */
  2016. if (is_migrate_highatomic_page(page)) {
  2017. /*
  2018. * It should never happen but changes to
  2019. * locking could inadvertently allow a per-cpu
  2020. * drain to add pages to MIGRATE_HIGHATOMIC
  2021. * while unreserving so be safe and watch for
  2022. * underflows.
  2023. */
  2024. zone->nr_reserved_highatomic -= min(
  2025. pageblock_nr_pages,
  2026. zone->nr_reserved_highatomic);
  2027. }
  2028. /*
  2029. * Convert to ac->migratetype and avoid the normal
  2030. * pageblock stealing heuristics. Minimally, the caller
  2031. * is doing the work and needs the pages. More
  2032. * importantly, if the block was always converted to
  2033. * MIGRATE_UNMOVABLE or another type then the number
  2034. * of pageblocks that cannot be completely freed
  2035. * may increase.
  2036. */
  2037. set_pageblock_migratetype(page, ac->migratetype);
  2038. ret = move_freepages_block(zone, page, ac->migratetype,
  2039. NULL);
  2040. if (ret) {
  2041. spin_unlock_irqrestore(&zone->lock, flags);
  2042. return ret;
  2043. }
  2044. }
  2045. spin_unlock_irqrestore(&zone->lock, flags);
  2046. }
  2047. return false;
  2048. }
  2049. /*
  2050. * Try finding a free buddy page on the fallback list and put it on the free
  2051. * list of requested migratetype, possibly along with other pages from the same
  2052. * block, depending on fragmentation avoidance heuristics. Returns true if
  2053. * fallback was found so that __rmqueue_smallest() can grab it.
  2054. *
  2055. * The use of signed ints for order and current_order is a deliberate
  2056. * deviation from the rest of this file, to make the for loop
  2057. * condition simpler.
  2058. */
  2059. static __always_inline bool
  2060. __rmqueue_fallback(struct zone *zone, int order, int start_migratetype)
  2061. {
  2062. struct free_area *area;
  2063. int current_order;
  2064. struct page *page;
  2065. int fallback_mt;
  2066. bool can_steal;
  2067. /*
  2068. * Find the largest available free page in the other list. This roughly
  2069. * approximates finding the pageblock with the most free pages, which
  2070. * would be too costly to do exactly.
  2071. */
  2072. for (current_order = MAX_ORDER - 1; current_order >= order;
  2073. --current_order) {
  2074. area = &(zone->free_area[current_order]);
  2075. fallback_mt = find_suitable_fallback(area, current_order,
  2076. start_migratetype, false, &can_steal);
  2077. if (fallback_mt == -1)
  2078. continue;
  2079. /*
  2080. * We cannot steal all free pages from the pageblock and the
  2081. * requested migratetype is movable. In that case it's better to
  2082. * steal and split the smallest available page instead of the
  2083. * largest available page, because even if the next movable
  2084. * allocation falls back into a different pageblock than this
  2085. * one, it won't cause permanent fragmentation.
  2086. */
  2087. if (!can_steal && start_migratetype == MIGRATE_MOVABLE
  2088. && current_order > order)
  2089. goto find_smallest;
  2090. goto do_steal;
  2091. }
  2092. return false;
  2093. find_smallest:
  2094. for (current_order = order; current_order < MAX_ORDER;
  2095. current_order++) {
  2096. area = &(zone->free_area[current_order]);
  2097. fallback_mt = find_suitable_fallback(area, current_order,
  2098. start_migratetype, false, &can_steal);
  2099. if (fallback_mt != -1)
  2100. break;
  2101. }
  2102. /*
  2103. * This should not happen - we already found a suitable fallback
  2104. * when looking for the largest page.
  2105. */
  2106. VM_BUG_ON(current_order == MAX_ORDER);
  2107. do_steal:
  2108. page = list_first_entry(&area->free_list[fallback_mt],
  2109. struct page, lru);
  2110. steal_suitable_fallback(zone, page, start_migratetype, can_steal);
  2111. trace_mm_page_alloc_extfrag(page, order, current_order,
  2112. start_migratetype, fallback_mt);
  2113. return true;
  2114. }
  2115. /*
  2116. * Do the hard work of removing an element from the buddy allocator.
  2117. * Call me with the zone->lock already held.
  2118. */
  2119. static __always_inline struct page *
  2120. __rmqueue(struct zone *zone, unsigned int order, int migratetype)
  2121. {
  2122. struct page *page;
  2123. retry:
  2124. page = __rmqueue_smallest(zone, order, migratetype);
  2125. if (unlikely(!page)) {
  2126. if (migratetype == MIGRATE_MOVABLE)
  2127. page = __rmqueue_cma_fallback(zone, order);
  2128. if (!page && __rmqueue_fallback(zone, order, migratetype))
  2129. goto retry;
  2130. }
  2131. trace_mm_page_alloc_zone_locked(page, order, migratetype);
  2132. return page;
  2133. }
  2134. /*
  2135. * Obtain a specified number of elements from the buddy allocator, all under
  2136. * a single hold of the lock, for efficiency. Add them to the supplied list.
  2137. * Returns the number of new pages which were placed at *list.
  2138. */
  2139. static int rmqueue_bulk(struct zone *zone, unsigned int order,
  2140. unsigned long count, struct list_head *list,
  2141. int migratetype)
  2142. {
  2143. int i, alloced = 0;
  2144. spin_lock(&zone->lock);
  2145. for (i = 0; i < count; ++i) {
  2146. struct page *page = __rmqueue(zone, order, migratetype);
  2147. if (unlikely(page == NULL))
  2148. break;
  2149. if (unlikely(check_pcp_refill(page)))
  2150. continue;
  2151. /*
  2152. * Split buddy pages returned by expand() are received here in
  2153. * physical page order. The page is added to the tail of
  2154. * caller's list. From the callers perspective, the linked list
  2155. * is ordered by page number under some conditions. This is
  2156. * useful for IO devices that can forward direction from the
  2157. * head, thus also in the physical page order. This is useful
  2158. * for IO devices that can merge IO requests if the physical
  2159. * pages are ordered properly.
  2160. */
  2161. list_add_tail(&page->lru, list);
  2162. alloced++;
  2163. if (is_migrate_cma(get_pcppage_migratetype(page)))
  2164. __mod_zone_page_state(zone, NR_FREE_CMA_PAGES,
  2165. -(1 << order));
  2166. }
  2167. /*
  2168. * i pages were removed from the buddy list even if some leak due
  2169. * to check_pcp_refill failing so adjust NR_FREE_PAGES based
  2170. * on i. Do not confuse with 'alloced' which is the number of
  2171. * pages added to the pcp list.
  2172. */
  2173. __mod_zone_page_state(zone, NR_FREE_PAGES, -(i << order));
  2174. spin_unlock(&zone->lock);
  2175. return alloced;
  2176. }
  2177. #ifdef CONFIG_NUMA
  2178. /*
  2179. * Called from the vmstat counter updater to drain pagesets of this
  2180. * currently executing processor on remote nodes after they have
  2181. * expired.
  2182. *
  2183. * Note that this function must be called with the thread pinned to
  2184. * a single processor.
  2185. */
  2186. void drain_zone_pages(struct zone *zone, struct per_cpu_pages *pcp)
  2187. {
  2188. unsigned long flags;
  2189. int to_drain, batch;
  2190. local_irq_save(flags);
  2191. batch = READ_ONCE(pcp->batch);
  2192. to_drain = min(pcp->count, batch);
  2193. if (to_drain > 0)
  2194. free_pcppages_bulk(zone, to_drain, pcp);
  2195. local_irq_restore(flags);
  2196. }
  2197. #endif
  2198. /*
  2199. * Drain pcplists of the indicated processor and zone.
  2200. *
  2201. * The processor must either be the current processor and the
  2202. * thread pinned to the current processor or a processor that
  2203. * is not online.
  2204. */
  2205. static void drain_pages_zone(unsigned int cpu, struct zone *zone)
  2206. {
  2207. unsigned long flags;
  2208. struct per_cpu_pageset *pset;
  2209. struct per_cpu_pages *pcp;
  2210. local_irq_save(flags);
  2211. pset = per_cpu_ptr(zone->pageset, cpu);
  2212. pcp = &pset->pcp;
  2213. if (pcp->count)
  2214. free_pcppages_bulk(zone, pcp->count, pcp);
  2215. local_irq_restore(flags);
  2216. }
  2217. /*
  2218. * Drain pcplists of all zones on the indicated processor.
  2219. *
  2220. * The processor must either be the current processor and the
  2221. * thread pinned to the current processor or a processor that
  2222. * is not online.
  2223. */
  2224. static void drain_pages(unsigned int cpu)
  2225. {
  2226. struct zone *zone;
  2227. for_each_populated_zone(zone) {
  2228. drain_pages_zone(cpu, zone);
  2229. }
  2230. }
  2231. /*
  2232. * Spill all of this CPU's per-cpu pages back into the buddy allocator.
  2233. *
  2234. * The CPU has to be pinned. When zone parameter is non-NULL, spill just
  2235. * the single zone's pages.
  2236. */
  2237. void drain_local_pages(struct zone *zone)
  2238. {
  2239. int cpu = smp_processor_id();
  2240. if (zone)
  2241. drain_pages_zone(cpu, zone);
  2242. else
  2243. drain_pages(cpu);
  2244. }
  2245. static void drain_local_pages_wq(struct work_struct *work)
  2246. {
  2247. /*
  2248. * drain_all_pages doesn't use proper cpu hotplug protection so
  2249. * we can race with cpu offline when the WQ can move this from
  2250. * a cpu pinned worker to an unbound one. We can operate on a different
  2251. * cpu which is allright but we also have to make sure to not move to
  2252. * a different one.
  2253. */
  2254. preempt_disable();
  2255. drain_local_pages(NULL);
  2256. preempt_enable();
  2257. }
  2258. /*
  2259. * Spill all the per-cpu pages from all CPUs back into the buddy allocator.
  2260. *
  2261. * When zone parameter is non-NULL, spill just the single zone's pages.
  2262. *
  2263. * Note that this can be extremely slow as the draining happens in a workqueue.
  2264. */
  2265. void drain_all_pages(struct zone *zone)
  2266. {
  2267. int cpu;
  2268. /*
  2269. * Allocate in the BSS so we wont require allocation in
  2270. * direct reclaim path for CONFIG_CPUMASK_OFFSTACK=y
  2271. */
  2272. static cpumask_t cpus_with_pcps;
  2273. /*
  2274. * Make sure nobody triggers this path before mm_percpu_wq is fully
  2275. * initialized.
  2276. */
  2277. if (WARN_ON_ONCE(!mm_percpu_wq))
  2278. return;
  2279. /*
  2280. * Do not drain if one is already in progress unless it's specific to
  2281. * a zone. Such callers are primarily CMA and memory hotplug and need
  2282. * the drain to be complete when the call returns.
  2283. */
  2284. if (unlikely(!mutex_trylock(&pcpu_drain_mutex))) {
  2285. if (!zone)
  2286. return;
  2287. mutex_lock(&pcpu_drain_mutex);
  2288. }
  2289. /*
  2290. * We don't care about racing with CPU hotplug event
  2291. * as offline notification will cause the notified
  2292. * cpu to drain that CPU pcps and on_each_cpu_mask
  2293. * disables preemption as part of its processing
  2294. */
  2295. for_each_online_cpu(cpu) {
  2296. struct per_cpu_pageset *pcp;
  2297. struct zone *z;
  2298. bool has_pcps = false;
  2299. if (zone) {
  2300. pcp = per_cpu_ptr(zone->pageset, cpu);
  2301. if (pcp->pcp.count)
  2302. has_pcps = true;
  2303. } else {
  2304. for_each_populated_zone(z) {
  2305. pcp = per_cpu_ptr(z->pageset, cpu);
  2306. if (pcp->pcp.count) {
  2307. has_pcps = true;
  2308. break;
  2309. }
  2310. }
  2311. }
  2312. if (has_pcps)
  2313. cpumask_set_cpu(cpu, &cpus_with_pcps);
  2314. else
  2315. cpumask_clear_cpu(cpu, &cpus_with_pcps);
  2316. }
  2317. for_each_cpu(cpu, &cpus_with_pcps) {
  2318. struct work_struct *work = per_cpu_ptr(&pcpu_drain, cpu);
  2319. INIT_WORK(work, drain_local_pages_wq);
  2320. queue_work_on(cpu, mm_percpu_wq, work);
  2321. }
  2322. for_each_cpu(cpu, &cpus_with_pcps)
  2323. flush_work(per_cpu_ptr(&pcpu_drain, cpu));
  2324. mutex_unlock(&pcpu_drain_mutex);
  2325. }
  2326. #ifdef CONFIG_HIBERNATION
  2327. /*
  2328. * Touch the watchdog for every WD_PAGE_COUNT pages.
  2329. */
  2330. #define WD_PAGE_COUNT (128*1024)
  2331. void mark_free_pages(struct zone *zone)
  2332. {
  2333. unsigned long pfn, max_zone_pfn, page_count = WD_PAGE_COUNT;
  2334. unsigned long flags;
  2335. unsigned int order, t;
  2336. struct page *page;
  2337. if (zone_is_empty(zone))
  2338. return;
  2339. spin_lock_irqsave(&zone->lock, flags);
  2340. max_zone_pfn = zone_end_pfn(zone);
  2341. for (pfn = zone->zone_start_pfn; pfn < max_zone_pfn; pfn++)
  2342. if (pfn_valid(pfn)) {
  2343. page = pfn_to_page(pfn);
  2344. if (!--page_count) {
  2345. touch_nmi_watchdog();
  2346. page_count = WD_PAGE_COUNT;
  2347. }
  2348. if (page_zone(page) != zone)
  2349. continue;
  2350. if (!swsusp_page_is_forbidden(page))
  2351. swsusp_unset_page_free(page);
  2352. }
  2353. for_each_migratetype_order(order, t) {
  2354. list_for_each_entry(page,
  2355. &zone->free_area[order].free_list[t], lru) {
  2356. unsigned long i;
  2357. pfn = page_to_pfn(page);
  2358. for (i = 0; i < (1UL << order); i++) {
  2359. if (!--page_count) {
  2360. touch_nmi_watchdog();
  2361. page_count = WD_PAGE_COUNT;
  2362. }
  2363. swsusp_set_page_free(pfn_to_page(pfn + i));
  2364. }
  2365. }
  2366. }
  2367. spin_unlock_irqrestore(&zone->lock, flags);
  2368. }
  2369. #endif /* CONFIG_PM */
  2370. static bool free_unref_page_prepare(struct page *page, unsigned long pfn)
  2371. {
  2372. int migratetype;
  2373. if (!free_pcp_prepare(page))
  2374. return false;
  2375. migratetype = get_pfnblock_migratetype(page, pfn);
  2376. set_pcppage_migratetype(page, migratetype);
  2377. return true;
  2378. }
  2379. static void free_unref_page_commit(struct page *page, unsigned long pfn)
  2380. {
  2381. struct zone *zone = page_zone(page);
  2382. struct per_cpu_pages *pcp;
  2383. int migratetype;
  2384. migratetype = get_pcppage_migratetype(page);
  2385. __count_vm_event(PGFREE);
  2386. /*
  2387. * We only track unmovable, reclaimable and movable on pcp lists.
  2388. * Free ISOLATE pages back to the allocator because they are being
  2389. * offlined but treat HIGHATOMIC as movable pages so we can get those
  2390. * areas back if necessary. Otherwise, we may have to free
  2391. * excessively into the page allocator
  2392. */
  2393. if (migratetype >= MIGRATE_PCPTYPES) {
  2394. if (unlikely(is_migrate_isolate(migratetype))) {
  2395. free_one_page(zone, page, pfn, 0, migratetype);
  2396. return;
  2397. }
  2398. migratetype = MIGRATE_MOVABLE;
  2399. }
  2400. pcp = &this_cpu_ptr(zone->pageset)->pcp;
  2401. list_add(&page->lru, &pcp->lists[migratetype]);
  2402. pcp->count++;
  2403. if (pcp->count >= pcp->high) {
  2404. unsigned long batch = READ_ONCE(pcp->batch);
  2405. free_pcppages_bulk(zone, batch, pcp);
  2406. }
  2407. }
  2408. /*
  2409. * Free a 0-order page
  2410. */
  2411. void free_unref_page(struct page *page)
  2412. {
  2413. unsigned long flags;
  2414. unsigned long pfn = page_to_pfn(page);
  2415. if (!free_unref_page_prepare(page, pfn))
  2416. return;
  2417. local_irq_save(flags);
  2418. free_unref_page_commit(page, pfn);
  2419. local_irq_restore(flags);
  2420. }
  2421. /*
  2422. * Free a list of 0-order pages
  2423. */
  2424. void free_unref_page_list(struct list_head *list)
  2425. {
  2426. struct page *page, *next;
  2427. unsigned long flags, pfn;
  2428. int batch_count = 0;
  2429. /* Prepare pages for freeing */
  2430. list_for_each_entry_safe(page, next, list, lru) {
  2431. pfn = page_to_pfn(page);
  2432. if (!free_unref_page_prepare(page, pfn))
  2433. list_del(&page->lru);
  2434. set_page_private(page, pfn);
  2435. }
  2436. local_irq_save(flags);
  2437. list_for_each_entry_safe(page, next, list, lru) {
  2438. unsigned long pfn = page_private(page);
  2439. set_page_private(page, 0);
  2440. trace_mm_page_free_batched(page);
  2441. free_unref_page_commit(page, pfn);
  2442. /*
  2443. * Guard against excessive IRQ disabled times when we get
  2444. * a large list of pages to free.
  2445. */
  2446. if (++batch_count == SWAP_CLUSTER_MAX) {
  2447. local_irq_restore(flags);
  2448. batch_count = 0;
  2449. local_irq_save(flags);
  2450. }
  2451. }
  2452. local_irq_restore(flags);
  2453. }
  2454. /*
  2455. * split_page takes a non-compound higher-order page, and splits it into
  2456. * n (1<<order) sub-pages: page[0..n]
  2457. * Each sub-page must be freed individually.
  2458. *
  2459. * Note: this is probably too low level an operation for use in drivers.
  2460. * Please consult with lkml before using this in your driver.
  2461. */
  2462. void split_page(struct page *page, unsigned int order)
  2463. {
  2464. int i;
  2465. VM_BUG_ON_PAGE(PageCompound(page), page);
  2466. VM_BUG_ON_PAGE(!page_count(page), page);
  2467. for (i = 1; i < (1 << order); i++)
  2468. set_page_refcounted(page + i);
  2469. split_page_owner(page, order);
  2470. }
  2471. EXPORT_SYMBOL_GPL(split_page);
  2472. int __isolate_free_page(struct page *page, unsigned int order)
  2473. {
  2474. unsigned long watermark;
  2475. struct zone *zone;
  2476. int mt;
  2477. BUG_ON(!PageBuddy(page));
  2478. zone = page_zone(page);
  2479. mt = get_pageblock_migratetype(page);
  2480. if (!is_migrate_isolate(mt)) {
  2481. /*
  2482. * Obey watermarks as if the page was being allocated. We can
  2483. * emulate a high-order watermark check with a raised order-0
  2484. * watermark, because we already know our high-order page
  2485. * exists.
  2486. */
  2487. watermark = min_wmark_pages(zone) + (1UL << order);
  2488. if (!zone_watermark_ok(zone, 0, watermark, 0, ALLOC_CMA))
  2489. return 0;
  2490. __mod_zone_freepage_state(zone, -(1UL << order), mt);
  2491. }
  2492. /* Remove page from free list */
  2493. list_del(&page->lru);
  2494. zone->free_area[order].nr_free--;
  2495. rmv_page_order(page);
  2496. /*
  2497. * Set the pageblock if the isolated page is at least half of a
  2498. * pageblock
  2499. */
  2500. if (order >= pageblock_order - 1) {
  2501. struct page *endpage = page + (1 << order) - 1;
  2502. for (; page < endpage; page += pageblock_nr_pages) {
  2503. int mt = get_pageblock_migratetype(page);
  2504. if (!is_migrate_isolate(mt) && !is_migrate_cma(mt)
  2505. && !is_migrate_highatomic(mt))
  2506. set_pageblock_migratetype(page,
  2507. MIGRATE_MOVABLE);
  2508. }
  2509. }
  2510. return 1UL << order;
  2511. }
  2512. /*
  2513. * Update NUMA hit/miss statistics
  2514. *
  2515. * Must be called with interrupts disabled.
  2516. */
  2517. static inline void zone_statistics(struct zone *preferred_zone, struct zone *z)
  2518. {
  2519. #ifdef CONFIG_NUMA
  2520. enum numa_stat_item local_stat = NUMA_LOCAL;
  2521. /* skip numa counters update if numa stats is disabled */
  2522. if (!static_branch_likely(&vm_numa_stat_key))
  2523. return;
  2524. if (zone_to_nid(z) != numa_node_id())
  2525. local_stat = NUMA_OTHER;
  2526. if (zone_to_nid(z) == zone_to_nid(preferred_zone))
  2527. __inc_numa_state(z, NUMA_HIT);
  2528. else {
  2529. __inc_numa_state(z, NUMA_MISS);
  2530. __inc_numa_state(preferred_zone, NUMA_FOREIGN);
  2531. }
  2532. __inc_numa_state(z, local_stat);
  2533. #endif
  2534. }
  2535. /* Remove page from the per-cpu list, caller must protect the list */
  2536. static struct page *__rmqueue_pcplist(struct zone *zone, int migratetype,
  2537. struct per_cpu_pages *pcp,
  2538. struct list_head *list)
  2539. {
  2540. struct page *page;
  2541. do {
  2542. if (list_empty(list)) {
  2543. pcp->count += rmqueue_bulk(zone, 0,
  2544. pcp->batch, list,
  2545. migratetype);
  2546. if (unlikely(list_empty(list)))
  2547. return NULL;
  2548. }
  2549. page = list_first_entry(list, struct page, lru);
  2550. list_del(&page->lru);
  2551. pcp->count--;
  2552. } while (check_new_pcp(page));
  2553. return page;
  2554. }
  2555. /* Lock and remove page from the per-cpu list */
  2556. static struct page *rmqueue_pcplist(struct zone *preferred_zone,
  2557. struct zone *zone, unsigned int order,
  2558. gfp_t gfp_flags, int migratetype)
  2559. {
  2560. struct per_cpu_pages *pcp;
  2561. struct list_head *list;
  2562. struct page *page;
  2563. unsigned long flags;
  2564. local_irq_save(flags);
  2565. pcp = &this_cpu_ptr(zone->pageset)->pcp;
  2566. list = &pcp->lists[migratetype];
  2567. page = __rmqueue_pcplist(zone, migratetype, pcp, list);
  2568. if (page) {
  2569. __count_zid_vm_events(PGALLOC, page_zonenum(page), 1 << order);
  2570. zone_statistics(preferred_zone, zone);
  2571. }
  2572. local_irq_restore(flags);
  2573. return page;
  2574. }
  2575. /*
  2576. * Allocate a page from the given zone. Use pcplists for order-0 allocations.
  2577. */
  2578. static inline
  2579. struct page *rmqueue(struct zone *preferred_zone,
  2580. struct zone *zone, unsigned int order,
  2581. gfp_t gfp_flags, unsigned int alloc_flags,
  2582. int migratetype)
  2583. {
  2584. unsigned long flags;
  2585. struct page *page;
  2586. if (likely(order == 0)) {
  2587. page = rmqueue_pcplist(preferred_zone, zone, order,
  2588. gfp_flags, migratetype);
  2589. goto out;
  2590. }
  2591. /*
  2592. * We most definitely don't want callers attempting to
  2593. * allocate greater than order-1 page units with __GFP_NOFAIL.
  2594. */
  2595. WARN_ON_ONCE((gfp_flags & __GFP_NOFAIL) && (order > 1));
  2596. spin_lock_irqsave(&zone->lock, flags);
  2597. do {
  2598. page = NULL;
  2599. if (alloc_flags & ALLOC_HARDER) {
  2600. page = __rmqueue_smallest(zone, order, MIGRATE_HIGHATOMIC);
  2601. if (page)
  2602. trace_mm_page_alloc_zone_locked(page, order, migratetype);
  2603. }
  2604. if (!page)
  2605. page = __rmqueue(zone, order, migratetype);
  2606. } while (page && check_new_pages(page, order));
  2607. spin_unlock(&zone->lock);
  2608. if (!page)
  2609. goto failed;
  2610. __mod_zone_freepage_state(zone, -(1 << order),
  2611. get_pcppage_migratetype(page));
  2612. __count_zid_vm_events(PGALLOC, page_zonenum(page), 1 << order);
  2613. zone_statistics(preferred_zone, zone);
  2614. local_irq_restore(flags);
  2615. out:
  2616. VM_BUG_ON_PAGE(page && bad_range(zone, page), page);
  2617. return page;
  2618. failed:
  2619. local_irq_restore(flags);
  2620. return NULL;
  2621. }
  2622. #ifdef CONFIG_FAIL_PAGE_ALLOC
  2623. static struct {
  2624. struct fault_attr attr;
  2625. bool ignore_gfp_highmem;
  2626. bool ignore_gfp_reclaim;
  2627. u32 min_order;
  2628. } fail_page_alloc = {
  2629. .attr = FAULT_ATTR_INITIALIZER,
  2630. .ignore_gfp_reclaim = true,
  2631. .ignore_gfp_highmem = true,
  2632. .min_order = 1,
  2633. };
  2634. static int __init setup_fail_page_alloc(char *str)
  2635. {
  2636. return setup_fault_attr(&fail_page_alloc.attr, str);
  2637. }
  2638. __setup("fail_page_alloc=", setup_fail_page_alloc);
  2639. static bool should_fail_alloc_page(gfp_t gfp_mask, unsigned int order)
  2640. {
  2641. if (order < fail_page_alloc.min_order)
  2642. return false;
  2643. if (gfp_mask & __GFP_NOFAIL)
  2644. return false;
  2645. if (fail_page_alloc.ignore_gfp_highmem && (gfp_mask & __GFP_HIGHMEM))
  2646. return false;
  2647. if (fail_page_alloc.ignore_gfp_reclaim &&
  2648. (gfp_mask & __GFP_DIRECT_RECLAIM))
  2649. return false;
  2650. return should_fail(&fail_page_alloc.attr, 1 << order);
  2651. }
  2652. #ifdef CONFIG_FAULT_INJECTION_DEBUG_FS
  2653. static int __init fail_page_alloc_debugfs(void)
  2654. {
  2655. umode_t mode = S_IFREG | 0600;
  2656. struct dentry *dir;
  2657. dir = fault_create_debugfs_attr("fail_page_alloc", NULL,
  2658. &fail_page_alloc.attr);
  2659. if (IS_ERR(dir))
  2660. return PTR_ERR(dir);
  2661. if (!debugfs_create_bool("ignore-gfp-wait", mode, dir,
  2662. &fail_page_alloc.ignore_gfp_reclaim))
  2663. goto fail;
  2664. if (!debugfs_create_bool("ignore-gfp-highmem", mode, dir,
  2665. &fail_page_alloc.ignore_gfp_highmem))
  2666. goto fail;
  2667. if (!debugfs_create_u32("min-order", mode, dir,
  2668. &fail_page_alloc.min_order))
  2669. goto fail;
  2670. return 0;
  2671. fail:
  2672. debugfs_remove_recursive(dir);
  2673. return -ENOMEM;
  2674. }
  2675. late_initcall(fail_page_alloc_debugfs);
  2676. #endif /* CONFIG_FAULT_INJECTION_DEBUG_FS */
  2677. #else /* CONFIG_FAIL_PAGE_ALLOC */
  2678. static inline bool should_fail_alloc_page(gfp_t gfp_mask, unsigned int order)
  2679. {
  2680. return false;
  2681. }
  2682. #endif /* CONFIG_FAIL_PAGE_ALLOC */
  2683. /*
  2684. * Return true if free base pages are above 'mark'. For high-order checks it
  2685. * will return true of the order-0 watermark is reached and there is at least
  2686. * one free page of a suitable size. Checking now avoids taking the zone lock
  2687. * to check in the allocation paths if no pages are free.
  2688. */
  2689. bool __zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark,
  2690. int classzone_idx, unsigned int alloc_flags,
  2691. long free_pages)
  2692. {
  2693. long min = mark;
  2694. int o;
  2695. const bool alloc_harder = (alloc_flags & (ALLOC_HARDER|ALLOC_OOM));
  2696. /* free_pages may go negative - that's OK */
  2697. free_pages -= (1 << order) - 1;
  2698. if (alloc_flags & ALLOC_HIGH)
  2699. min -= min / 2;
  2700. /*
  2701. * If the caller does not have rights to ALLOC_HARDER then subtract
  2702. * the high-atomic reserves. This will over-estimate the size of the
  2703. * atomic reserve but it avoids a search.
  2704. */
  2705. if (likely(!alloc_harder)) {
  2706. free_pages -= z->nr_reserved_highatomic;
  2707. } else {
  2708. /*
  2709. * OOM victims can try even harder than normal ALLOC_HARDER
  2710. * users on the grounds that it's definitely going to be in
  2711. * the exit path shortly and free memory. Any allocation it
  2712. * makes during the free path will be small and short-lived.
  2713. */
  2714. if (alloc_flags & ALLOC_OOM)
  2715. min -= min / 2;
  2716. else
  2717. min -= min / 4;
  2718. }
  2719. #ifdef CONFIG_CMA
  2720. /* If allocation can't use CMA areas don't use free CMA pages */
  2721. if (!(alloc_flags & ALLOC_CMA))
  2722. free_pages -= zone_page_state(z, NR_FREE_CMA_PAGES);
  2723. #endif
  2724. /*
  2725. * Check watermarks for an order-0 allocation request. If these
  2726. * are not met, then a high-order request also cannot go ahead
  2727. * even if a suitable page happened to be free.
  2728. */
  2729. if (free_pages <= min + z->lowmem_reserve[classzone_idx])
  2730. return false;
  2731. /* If this is an order-0 request then the watermark is fine */
  2732. if (!order)
  2733. return true;
  2734. /* For a high-order request, check at least one suitable page is free */
  2735. for (o = order; o < MAX_ORDER; o++) {
  2736. struct free_area *area = &z->free_area[o];
  2737. int mt;
  2738. if (!area->nr_free)
  2739. continue;
  2740. for (mt = 0; mt < MIGRATE_PCPTYPES; mt++) {
  2741. if (!list_empty(&area->free_list[mt]))
  2742. return true;
  2743. }
  2744. #ifdef CONFIG_CMA
  2745. if ((alloc_flags & ALLOC_CMA) &&
  2746. !list_empty(&area->free_list[MIGRATE_CMA])) {
  2747. return true;
  2748. }
  2749. #endif
  2750. if (alloc_harder &&
  2751. !list_empty(&area->free_list[MIGRATE_HIGHATOMIC]))
  2752. return true;
  2753. }
  2754. return false;
  2755. }
  2756. bool zone_watermark_ok(struct zone *z, unsigned int order, unsigned long mark,
  2757. int classzone_idx, unsigned int alloc_flags)
  2758. {
  2759. return __zone_watermark_ok(z, order, mark, classzone_idx, alloc_flags,
  2760. zone_page_state(z, NR_FREE_PAGES));
  2761. }
  2762. static inline bool zone_watermark_fast(struct zone *z, unsigned int order,
  2763. unsigned long mark, int classzone_idx, unsigned int alloc_flags)
  2764. {
  2765. long free_pages = zone_page_state(z, NR_FREE_PAGES);
  2766. long cma_pages = 0;
  2767. #ifdef CONFIG_CMA
  2768. /* If allocation can't use CMA areas don't use free CMA pages */
  2769. if (!(alloc_flags & ALLOC_CMA))
  2770. cma_pages = zone_page_state(z, NR_FREE_CMA_PAGES);
  2771. #endif
  2772. /*
  2773. * Fast check for order-0 only. If this fails then the reserves
  2774. * need to be calculated. There is a corner case where the check
  2775. * passes but only the high-order atomic reserve are free. If
  2776. * the caller is !atomic then it'll uselessly search the free
  2777. * list. That corner case is then slower but it is harmless.
  2778. */
  2779. if (!order && (free_pages - cma_pages) > mark + z->lowmem_reserve[classzone_idx])
  2780. return true;
  2781. return __zone_watermark_ok(z, order, mark, classzone_idx, alloc_flags,
  2782. free_pages);
  2783. }
  2784. bool zone_watermark_ok_safe(struct zone *z, unsigned int order,
  2785. unsigned long mark, int classzone_idx)
  2786. {
  2787. long free_pages = zone_page_state(z, NR_FREE_PAGES);
  2788. if (z->percpu_drift_mark && free_pages < z->percpu_drift_mark)
  2789. free_pages = zone_page_state_snapshot(z, NR_FREE_PAGES);
  2790. return __zone_watermark_ok(z, order, mark, classzone_idx, 0,
  2791. free_pages);
  2792. }
  2793. #ifdef CONFIG_NUMA
  2794. static bool zone_allows_reclaim(struct zone *local_zone, struct zone *zone)
  2795. {
  2796. return node_distance(zone_to_nid(local_zone), zone_to_nid(zone)) <=
  2797. RECLAIM_DISTANCE;
  2798. }
  2799. #else /* CONFIG_NUMA */
  2800. static bool zone_allows_reclaim(struct zone *local_zone, struct zone *zone)
  2801. {
  2802. return true;
  2803. }
  2804. #endif /* CONFIG_NUMA */
  2805. /*
  2806. * get_page_from_freelist goes through the zonelist trying to allocate
  2807. * a page.
  2808. */
  2809. static struct page *
  2810. get_page_from_freelist(gfp_t gfp_mask, unsigned int order, int alloc_flags,
  2811. const struct alloc_context *ac)
  2812. {
  2813. struct zoneref *z = ac->preferred_zoneref;
  2814. struct zone *zone;
  2815. struct pglist_data *last_pgdat_dirty_limit = NULL;
  2816. /*
  2817. * Scan zonelist, looking for a zone with enough free.
  2818. * See also __cpuset_node_allowed() comment in kernel/cpuset.c.
  2819. */
  2820. for_next_zone_zonelist_nodemask(zone, z, ac->zonelist, ac->high_zoneidx,
  2821. ac->nodemask) {
  2822. struct page *page;
  2823. unsigned long mark;
  2824. if (cpusets_enabled() &&
  2825. (alloc_flags & ALLOC_CPUSET) &&
  2826. !__cpuset_zone_allowed(zone, gfp_mask))
  2827. continue;
  2828. /*
  2829. * When allocating a page cache page for writing, we
  2830. * want to get it from a node that is within its dirty
  2831. * limit, such that no single node holds more than its
  2832. * proportional share of globally allowed dirty pages.
  2833. * The dirty limits take into account the node's
  2834. * lowmem reserves and high watermark so that kswapd
  2835. * should be able to balance it without having to
  2836. * write pages from its LRU list.
  2837. *
  2838. * XXX: For now, allow allocations to potentially
  2839. * exceed the per-node dirty limit in the slowpath
  2840. * (spread_dirty_pages unset) before going into reclaim,
  2841. * which is important when on a NUMA setup the allowed
  2842. * nodes are together not big enough to reach the
  2843. * global limit. The proper fix for these situations
  2844. * will require awareness of nodes in the
  2845. * dirty-throttling and the flusher threads.
  2846. */
  2847. if (ac->spread_dirty_pages) {
  2848. if (last_pgdat_dirty_limit == zone->zone_pgdat)
  2849. continue;
  2850. if (!node_dirty_ok(zone->zone_pgdat)) {
  2851. last_pgdat_dirty_limit = zone->zone_pgdat;
  2852. continue;
  2853. }
  2854. }
  2855. mark = zone->watermark[alloc_flags & ALLOC_WMARK_MASK];
  2856. if (!zone_watermark_fast(zone, order, mark,
  2857. ac_classzone_idx(ac), alloc_flags)) {
  2858. int ret;
  2859. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  2860. /*
  2861. * Watermark failed for this zone, but see if we can
  2862. * grow this zone if it contains deferred pages.
  2863. */
  2864. if (static_branch_unlikely(&deferred_pages)) {
  2865. if (_deferred_grow_zone(zone, order))
  2866. goto try_this_zone;
  2867. }
  2868. #endif
  2869. /* Checked here to keep the fast path fast */
  2870. BUILD_BUG_ON(ALLOC_NO_WATERMARKS < NR_WMARK);
  2871. if (alloc_flags & ALLOC_NO_WATERMARKS)
  2872. goto try_this_zone;
  2873. if (node_reclaim_mode == 0 ||
  2874. !zone_allows_reclaim(ac->preferred_zoneref->zone, zone))
  2875. continue;
  2876. ret = node_reclaim(zone->zone_pgdat, gfp_mask, order);
  2877. switch (ret) {
  2878. case NODE_RECLAIM_NOSCAN:
  2879. /* did not scan */
  2880. continue;
  2881. case NODE_RECLAIM_FULL:
  2882. /* scanned but unreclaimable */
  2883. continue;
  2884. default:
  2885. /* did we reclaim enough */
  2886. if (zone_watermark_ok(zone, order, mark,
  2887. ac_classzone_idx(ac), alloc_flags))
  2888. goto try_this_zone;
  2889. continue;
  2890. }
  2891. }
  2892. try_this_zone:
  2893. page = rmqueue(ac->preferred_zoneref->zone, zone, order,
  2894. gfp_mask, alloc_flags, ac->migratetype);
  2895. if (page) {
  2896. prep_new_page(page, order, gfp_mask, alloc_flags);
  2897. /*
  2898. * If this is a high-order atomic allocation then check
  2899. * if the pageblock should be reserved for the future
  2900. */
  2901. if (unlikely(order && (alloc_flags & ALLOC_HARDER)))
  2902. reserve_highatomic_pageblock(page, zone, order);
  2903. return page;
  2904. } else {
  2905. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  2906. /* Try again if zone has deferred pages */
  2907. if (static_branch_unlikely(&deferred_pages)) {
  2908. if (_deferred_grow_zone(zone, order))
  2909. goto try_this_zone;
  2910. }
  2911. #endif
  2912. }
  2913. }
  2914. return NULL;
  2915. }
  2916. static void warn_alloc_show_mem(gfp_t gfp_mask, nodemask_t *nodemask)
  2917. {
  2918. unsigned int filter = SHOW_MEM_FILTER_NODES;
  2919. static DEFINE_RATELIMIT_STATE(show_mem_rs, HZ, 1);
  2920. if (!__ratelimit(&show_mem_rs))
  2921. return;
  2922. /*
  2923. * This documents exceptions given to allocations in certain
  2924. * contexts that are allowed to allocate outside current's set
  2925. * of allowed nodes.
  2926. */
  2927. if (!(gfp_mask & __GFP_NOMEMALLOC))
  2928. if (tsk_is_oom_victim(current) ||
  2929. (current->flags & (PF_MEMALLOC | PF_EXITING)))
  2930. filter &= ~SHOW_MEM_FILTER_NODES;
  2931. if (in_interrupt() || !(gfp_mask & __GFP_DIRECT_RECLAIM))
  2932. filter &= ~SHOW_MEM_FILTER_NODES;
  2933. show_mem(filter, nodemask);
  2934. }
  2935. void warn_alloc(gfp_t gfp_mask, nodemask_t *nodemask, const char *fmt, ...)
  2936. {
  2937. struct va_format vaf;
  2938. va_list args;
  2939. static DEFINE_RATELIMIT_STATE(nopage_rs, DEFAULT_RATELIMIT_INTERVAL,
  2940. DEFAULT_RATELIMIT_BURST);
  2941. if ((gfp_mask & __GFP_NOWARN) || !__ratelimit(&nopage_rs))
  2942. return;
  2943. va_start(args, fmt);
  2944. vaf.fmt = fmt;
  2945. vaf.va = &args;
  2946. pr_warn("%s: %pV, mode:%#x(%pGg), nodemask=%*pbl\n",
  2947. current->comm, &vaf, gfp_mask, &gfp_mask,
  2948. nodemask_pr_args(nodemask));
  2949. va_end(args);
  2950. cpuset_print_current_mems_allowed();
  2951. dump_stack();
  2952. warn_alloc_show_mem(gfp_mask, nodemask);
  2953. }
  2954. static inline struct page *
  2955. __alloc_pages_cpuset_fallback(gfp_t gfp_mask, unsigned int order,
  2956. unsigned int alloc_flags,
  2957. const struct alloc_context *ac)
  2958. {
  2959. struct page *page;
  2960. page = get_page_from_freelist(gfp_mask, order,
  2961. alloc_flags|ALLOC_CPUSET, ac);
  2962. /*
  2963. * fallback to ignore cpuset restriction if our nodes
  2964. * are depleted
  2965. */
  2966. if (!page)
  2967. page = get_page_from_freelist(gfp_mask, order,
  2968. alloc_flags, ac);
  2969. return page;
  2970. }
  2971. static inline struct page *
  2972. __alloc_pages_may_oom(gfp_t gfp_mask, unsigned int order,
  2973. const struct alloc_context *ac, unsigned long *did_some_progress)
  2974. {
  2975. struct oom_control oc = {
  2976. .zonelist = ac->zonelist,
  2977. .nodemask = ac->nodemask,
  2978. .memcg = NULL,
  2979. .gfp_mask = gfp_mask,
  2980. .order = order,
  2981. };
  2982. struct page *page;
  2983. *did_some_progress = 0;
  2984. /*
  2985. * Acquire the oom lock. If that fails, somebody else is
  2986. * making progress for us.
  2987. */
  2988. if (!mutex_trylock(&oom_lock)) {
  2989. *did_some_progress = 1;
  2990. schedule_timeout_uninterruptible(1);
  2991. return NULL;
  2992. }
  2993. /*
  2994. * Go through the zonelist yet one more time, keep very high watermark
  2995. * here, this is only to catch a parallel oom killing, we must fail if
  2996. * we're still under heavy pressure. But make sure that this reclaim
  2997. * attempt shall not depend on __GFP_DIRECT_RECLAIM && !__GFP_NORETRY
  2998. * allocation which will never fail due to oom_lock already held.
  2999. */
  3000. page = get_page_from_freelist((gfp_mask | __GFP_HARDWALL) &
  3001. ~__GFP_DIRECT_RECLAIM, order,
  3002. ALLOC_WMARK_HIGH|ALLOC_CPUSET, ac);
  3003. if (page)
  3004. goto out;
  3005. /* Coredumps can quickly deplete all memory reserves */
  3006. if (current->flags & PF_DUMPCORE)
  3007. goto out;
  3008. /* The OOM killer will not help higher order allocs */
  3009. if (order > PAGE_ALLOC_COSTLY_ORDER)
  3010. goto out;
  3011. /*
  3012. * We have already exhausted all our reclaim opportunities without any
  3013. * success so it is time to admit defeat. We will skip the OOM killer
  3014. * because it is very likely that the caller has a more reasonable
  3015. * fallback than shooting a random task.
  3016. */
  3017. if (gfp_mask & __GFP_RETRY_MAYFAIL)
  3018. goto out;
  3019. /* The OOM killer does not needlessly kill tasks for lowmem */
  3020. if (ac->high_zoneidx < ZONE_NORMAL)
  3021. goto out;
  3022. if (pm_suspended_storage())
  3023. goto out;
  3024. /*
  3025. * XXX: GFP_NOFS allocations should rather fail than rely on
  3026. * other request to make a forward progress.
  3027. * We are in an unfortunate situation where out_of_memory cannot
  3028. * do much for this context but let's try it to at least get
  3029. * access to memory reserved if the current task is killed (see
  3030. * out_of_memory). Once filesystems are ready to handle allocation
  3031. * failures more gracefully we should just bail out here.
  3032. */
  3033. /* The OOM killer may not free memory on a specific node */
  3034. if (gfp_mask & __GFP_THISNODE)
  3035. goto out;
  3036. /* Exhausted what can be done so it's blame time */
  3037. if (out_of_memory(&oc) || WARN_ON_ONCE(gfp_mask & __GFP_NOFAIL)) {
  3038. *did_some_progress = 1;
  3039. /*
  3040. * Help non-failing allocations by giving them access to memory
  3041. * reserves
  3042. */
  3043. if (gfp_mask & __GFP_NOFAIL)
  3044. page = __alloc_pages_cpuset_fallback(gfp_mask, order,
  3045. ALLOC_NO_WATERMARKS, ac);
  3046. }
  3047. out:
  3048. mutex_unlock(&oom_lock);
  3049. return page;
  3050. }
  3051. /*
  3052. * Maximum number of compaction retries wit a progress before OOM
  3053. * killer is consider as the only way to move forward.
  3054. */
  3055. #define MAX_COMPACT_RETRIES 16
  3056. #ifdef CONFIG_COMPACTION
  3057. /* Try memory compaction for high-order allocations before reclaim */
  3058. static struct page *
  3059. __alloc_pages_direct_compact(gfp_t gfp_mask, unsigned int order,
  3060. unsigned int alloc_flags, const struct alloc_context *ac,
  3061. enum compact_priority prio, enum compact_result *compact_result)
  3062. {
  3063. struct page *page;
  3064. unsigned long pflags;
  3065. unsigned int noreclaim_flag;
  3066. if (!order)
  3067. return NULL;
  3068. psi_memstall_enter(&pflags);
  3069. noreclaim_flag = memalloc_noreclaim_save();
  3070. *compact_result = try_to_compact_pages(gfp_mask, order, alloc_flags, ac,
  3071. prio);
  3072. memalloc_noreclaim_restore(noreclaim_flag);
  3073. psi_memstall_leave(&pflags);
  3074. if (*compact_result <= COMPACT_INACTIVE)
  3075. return NULL;
  3076. /*
  3077. * At least in one zone compaction wasn't deferred or skipped, so let's
  3078. * count a compaction stall
  3079. */
  3080. count_vm_event(COMPACTSTALL);
  3081. page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
  3082. if (page) {
  3083. struct zone *zone = page_zone(page);
  3084. zone->compact_blockskip_flush = false;
  3085. compaction_defer_reset(zone, order, true);
  3086. count_vm_event(COMPACTSUCCESS);
  3087. return page;
  3088. }
  3089. /*
  3090. * It's bad if compaction run occurs and fails. The most likely reason
  3091. * is that pages exist, but not enough to satisfy watermarks.
  3092. */
  3093. count_vm_event(COMPACTFAIL);
  3094. cond_resched();
  3095. return NULL;
  3096. }
  3097. static inline bool
  3098. should_compact_retry(struct alloc_context *ac, int order, int alloc_flags,
  3099. enum compact_result compact_result,
  3100. enum compact_priority *compact_priority,
  3101. int *compaction_retries)
  3102. {
  3103. int max_retries = MAX_COMPACT_RETRIES;
  3104. int min_priority;
  3105. bool ret = false;
  3106. int retries = *compaction_retries;
  3107. enum compact_priority priority = *compact_priority;
  3108. if (!order)
  3109. return false;
  3110. if (compaction_made_progress(compact_result))
  3111. (*compaction_retries)++;
  3112. /*
  3113. * compaction considers all the zone as desperately out of memory
  3114. * so it doesn't really make much sense to retry except when the
  3115. * failure could be caused by insufficient priority
  3116. */
  3117. if (compaction_failed(compact_result))
  3118. goto check_priority;
  3119. /*
  3120. * make sure the compaction wasn't deferred or didn't bail out early
  3121. * due to locks contention before we declare that we should give up.
  3122. * But do not retry if the given zonelist is not suitable for
  3123. * compaction.
  3124. */
  3125. if (compaction_withdrawn(compact_result)) {
  3126. ret = compaction_zonelist_suitable(ac, order, alloc_flags);
  3127. goto out;
  3128. }
  3129. /*
  3130. * !costly requests are much more important than __GFP_RETRY_MAYFAIL
  3131. * costly ones because they are de facto nofail and invoke OOM
  3132. * killer to move on while costly can fail and users are ready
  3133. * to cope with that. 1/4 retries is rather arbitrary but we
  3134. * would need much more detailed feedback from compaction to
  3135. * make a better decision.
  3136. */
  3137. if (order > PAGE_ALLOC_COSTLY_ORDER)
  3138. max_retries /= 4;
  3139. if (*compaction_retries <= max_retries) {
  3140. ret = true;
  3141. goto out;
  3142. }
  3143. /*
  3144. * Make sure there are attempts at the highest priority if we exhausted
  3145. * all retries or failed at the lower priorities.
  3146. */
  3147. check_priority:
  3148. min_priority = (order > PAGE_ALLOC_COSTLY_ORDER) ?
  3149. MIN_COMPACT_COSTLY_PRIORITY : MIN_COMPACT_PRIORITY;
  3150. if (*compact_priority > min_priority) {
  3151. (*compact_priority)--;
  3152. *compaction_retries = 0;
  3153. ret = true;
  3154. }
  3155. out:
  3156. trace_compact_retry(order, priority, compact_result, retries, max_retries, ret);
  3157. return ret;
  3158. }
  3159. #else
  3160. static inline struct page *
  3161. __alloc_pages_direct_compact(gfp_t gfp_mask, unsigned int order,
  3162. unsigned int alloc_flags, const struct alloc_context *ac,
  3163. enum compact_priority prio, enum compact_result *compact_result)
  3164. {
  3165. *compact_result = COMPACT_SKIPPED;
  3166. return NULL;
  3167. }
  3168. static inline bool
  3169. should_compact_retry(struct alloc_context *ac, unsigned int order, int alloc_flags,
  3170. enum compact_result compact_result,
  3171. enum compact_priority *compact_priority,
  3172. int *compaction_retries)
  3173. {
  3174. struct zone *zone;
  3175. struct zoneref *z;
  3176. if (!order || order > PAGE_ALLOC_COSTLY_ORDER)
  3177. return false;
  3178. /*
  3179. * There are setups with compaction disabled which would prefer to loop
  3180. * inside the allocator rather than hit the oom killer prematurely.
  3181. * Let's give them a good hope and keep retrying while the order-0
  3182. * watermarks are OK.
  3183. */
  3184. for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, ac->high_zoneidx,
  3185. ac->nodemask) {
  3186. if (zone_watermark_ok(zone, 0, min_wmark_pages(zone),
  3187. ac_classzone_idx(ac), alloc_flags))
  3188. return true;
  3189. }
  3190. return false;
  3191. }
  3192. #endif /* CONFIG_COMPACTION */
  3193. #ifdef CONFIG_LOCKDEP
  3194. static struct lockdep_map __fs_reclaim_map =
  3195. STATIC_LOCKDEP_MAP_INIT("fs_reclaim", &__fs_reclaim_map);
  3196. static bool __need_fs_reclaim(gfp_t gfp_mask)
  3197. {
  3198. gfp_mask = current_gfp_context(gfp_mask);
  3199. /* no reclaim without waiting on it */
  3200. if (!(gfp_mask & __GFP_DIRECT_RECLAIM))
  3201. return false;
  3202. /* this guy won't enter reclaim */
  3203. if (current->flags & PF_MEMALLOC)
  3204. return false;
  3205. /* We're only interested __GFP_FS allocations for now */
  3206. if (!(gfp_mask & __GFP_FS))
  3207. return false;
  3208. if (gfp_mask & __GFP_NOLOCKDEP)
  3209. return false;
  3210. return true;
  3211. }
  3212. void __fs_reclaim_acquire(void)
  3213. {
  3214. lock_map_acquire(&__fs_reclaim_map);
  3215. }
  3216. void __fs_reclaim_release(void)
  3217. {
  3218. lock_map_release(&__fs_reclaim_map);
  3219. }
  3220. void fs_reclaim_acquire(gfp_t gfp_mask)
  3221. {
  3222. if (__need_fs_reclaim(gfp_mask))
  3223. __fs_reclaim_acquire();
  3224. }
  3225. EXPORT_SYMBOL_GPL(fs_reclaim_acquire);
  3226. void fs_reclaim_release(gfp_t gfp_mask)
  3227. {
  3228. if (__need_fs_reclaim(gfp_mask))
  3229. __fs_reclaim_release();
  3230. }
  3231. EXPORT_SYMBOL_GPL(fs_reclaim_release);
  3232. #endif
  3233. /* Perform direct synchronous page reclaim */
  3234. static int
  3235. __perform_reclaim(gfp_t gfp_mask, unsigned int order,
  3236. const struct alloc_context *ac)
  3237. {
  3238. struct reclaim_state reclaim_state;
  3239. int progress;
  3240. unsigned int noreclaim_flag;
  3241. unsigned long pflags;
  3242. cond_resched();
  3243. /* We now go into synchronous reclaim */
  3244. cpuset_memory_pressure_bump();
  3245. psi_memstall_enter(&pflags);
  3246. fs_reclaim_acquire(gfp_mask);
  3247. noreclaim_flag = memalloc_noreclaim_save();
  3248. reclaim_state.reclaimed_slab = 0;
  3249. current->reclaim_state = &reclaim_state;
  3250. progress = try_to_free_pages(ac->zonelist, order, gfp_mask,
  3251. ac->nodemask);
  3252. current->reclaim_state = NULL;
  3253. memalloc_noreclaim_restore(noreclaim_flag);
  3254. fs_reclaim_release(gfp_mask);
  3255. psi_memstall_leave(&pflags);
  3256. cond_resched();
  3257. return progress;
  3258. }
  3259. /* The really slow allocator path where we enter direct reclaim */
  3260. static inline struct page *
  3261. __alloc_pages_direct_reclaim(gfp_t gfp_mask, unsigned int order,
  3262. unsigned int alloc_flags, const struct alloc_context *ac,
  3263. unsigned long *did_some_progress)
  3264. {
  3265. struct page *page = NULL;
  3266. bool drained = false;
  3267. *did_some_progress = __perform_reclaim(gfp_mask, order, ac);
  3268. if (unlikely(!(*did_some_progress)))
  3269. return NULL;
  3270. retry:
  3271. page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
  3272. /*
  3273. * If an allocation failed after direct reclaim, it could be because
  3274. * pages are pinned on the per-cpu lists or in high alloc reserves.
  3275. * Shrink them them and try again
  3276. */
  3277. if (!page && !drained) {
  3278. unreserve_highatomic_pageblock(ac, false);
  3279. drain_all_pages(NULL);
  3280. drained = true;
  3281. goto retry;
  3282. }
  3283. return page;
  3284. }
  3285. static void wake_all_kswapds(unsigned int order, gfp_t gfp_mask,
  3286. const struct alloc_context *ac)
  3287. {
  3288. struct zoneref *z;
  3289. struct zone *zone;
  3290. pg_data_t *last_pgdat = NULL;
  3291. enum zone_type high_zoneidx = ac->high_zoneidx;
  3292. for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, high_zoneidx,
  3293. ac->nodemask) {
  3294. if (last_pgdat != zone->zone_pgdat)
  3295. wakeup_kswapd(zone, gfp_mask, order, high_zoneidx);
  3296. last_pgdat = zone->zone_pgdat;
  3297. }
  3298. }
  3299. static inline unsigned int
  3300. gfp_to_alloc_flags(gfp_t gfp_mask)
  3301. {
  3302. unsigned int alloc_flags = ALLOC_WMARK_MIN | ALLOC_CPUSET;
  3303. /* __GFP_HIGH is assumed to be the same as ALLOC_HIGH to save a branch. */
  3304. BUILD_BUG_ON(__GFP_HIGH != (__force gfp_t) ALLOC_HIGH);
  3305. /*
  3306. * The caller may dip into page reserves a bit more if the caller
  3307. * cannot run direct reclaim, or if the caller has realtime scheduling
  3308. * policy or is asking for __GFP_HIGH memory. GFP_ATOMIC requests will
  3309. * set both ALLOC_HARDER (__GFP_ATOMIC) and ALLOC_HIGH (__GFP_HIGH).
  3310. */
  3311. alloc_flags |= (__force int) (gfp_mask & __GFP_HIGH);
  3312. if (gfp_mask & __GFP_ATOMIC) {
  3313. /*
  3314. * Not worth trying to allocate harder for __GFP_NOMEMALLOC even
  3315. * if it can't schedule.
  3316. */
  3317. if (!(gfp_mask & __GFP_NOMEMALLOC))
  3318. alloc_flags |= ALLOC_HARDER;
  3319. /*
  3320. * Ignore cpuset mems for GFP_ATOMIC rather than fail, see the
  3321. * comment for __cpuset_node_allowed().
  3322. */
  3323. alloc_flags &= ~ALLOC_CPUSET;
  3324. } else if (unlikely(rt_task(current)) && !in_interrupt())
  3325. alloc_flags |= ALLOC_HARDER;
  3326. #ifdef CONFIG_CMA
  3327. if (gfpflags_to_migratetype(gfp_mask) == MIGRATE_MOVABLE)
  3328. alloc_flags |= ALLOC_CMA;
  3329. #endif
  3330. return alloc_flags;
  3331. }
  3332. static bool oom_reserves_allowed(struct task_struct *tsk)
  3333. {
  3334. if (!tsk_is_oom_victim(tsk))
  3335. return false;
  3336. /*
  3337. * !MMU doesn't have oom reaper so give access to memory reserves
  3338. * only to the thread with TIF_MEMDIE set
  3339. */
  3340. if (!IS_ENABLED(CONFIG_MMU) && !test_thread_flag(TIF_MEMDIE))
  3341. return false;
  3342. return true;
  3343. }
  3344. /*
  3345. * Distinguish requests which really need access to full memory
  3346. * reserves from oom victims which can live with a portion of it
  3347. */
  3348. static inline int __gfp_pfmemalloc_flags(gfp_t gfp_mask)
  3349. {
  3350. if (unlikely(gfp_mask & __GFP_NOMEMALLOC))
  3351. return 0;
  3352. if (gfp_mask & __GFP_MEMALLOC)
  3353. return ALLOC_NO_WATERMARKS;
  3354. if (in_serving_softirq() && (current->flags & PF_MEMALLOC))
  3355. return ALLOC_NO_WATERMARKS;
  3356. if (!in_interrupt()) {
  3357. if (current->flags & PF_MEMALLOC)
  3358. return ALLOC_NO_WATERMARKS;
  3359. else if (oom_reserves_allowed(current))
  3360. return ALLOC_OOM;
  3361. }
  3362. return 0;
  3363. }
  3364. bool gfp_pfmemalloc_allowed(gfp_t gfp_mask)
  3365. {
  3366. return !!__gfp_pfmemalloc_flags(gfp_mask);
  3367. }
  3368. /*
  3369. * Checks whether it makes sense to retry the reclaim to make a forward progress
  3370. * for the given allocation request.
  3371. *
  3372. * We give up when we either have tried MAX_RECLAIM_RETRIES in a row
  3373. * without success, or when we couldn't even meet the watermark if we
  3374. * reclaimed all remaining pages on the LRU lists.
  3375. *
  3376. * Returns true if a retry is viable or false to enter the oom path.
  3377. */
  3378. static inline bool
  3379. should_reclaim_retry(gfp_t gfp_mask, unsigned order,
  3380. struct alloc_context *ac, int alloc_flags,
  3381. bool did_some_progress, int *no_progress_loops)
  3382. {
  3383. struct zone *zone;
  3384. struct zoneref *z;
  3385. bool ret = false;
  3386. /*
  3387. * Costly allocations might have made a progress but this doesn't mean
  3388. * their order will become available due to high fragmentation so
  3389. * always increment the no progress counter for them
  3390. */
  3391. if (did_some_progress && order <= PAGE_ALLOC_COSTLY_ORDER)
  3392. *no_progress_loops = 0;
  3393. else
  3394. (*no_progress_loops)++;
  3395. /*
  3396. * Make sure we converge to OOM if we cannot make any progress
  3397. * several times in the row.
  3398. */
  3399. if (*no_progress_loops > MAX_RECLAIM_RETRIES) {
  3400. /* Before OOM, exhaust highatomic_reserve */
  3401. return unreserve_highatomic_pageblock(ac, true);
  3402. }
  3403. /*
  3404. * Keep reclaiming pages while there is a chance this will lead
  3405. * somewhere. If none of the target zones can satisfy our allocation
  3406. * request even if all reclaimable pages are considered then we are
  3407. * screwed and have to go OOM.
  3408. */
  3409. for_each_zone_zonelist_nodemask(zone, z, ac->zonelist, ac->high_zoneidx,
  3410. ac->nodemask) {
  3411. unsigned long available;
  3412. unsigned long reclaimable;
  3413. unsigned long min_wmark = min_wmark_pages(zone);
  3414. bool wmark;
  3415. available = reclaimable = zone_reclaimable_pages(zone);
  3416. available += zone_page_state_snapshot(zone, NR_FREE_PAGES);
  3417. /*
  3418. * Would the allocation succeed if we reclaimed all
  3419. * reclaimable pages?
  3420. */
  3421. wmark = __zone_watermark_ok(zone, order, min_wmark,
  3422. ac_classzone_idx(ac), alloc_flags, available);
  3423. trace_reclaim_retry_zone(z, order, reclaimable,
  3424. available, min_wmark, *no_progress_loops, wmark);
  3425. if (wmark) {
  3426. /*
  3427. * If we didn't make any progress and have a lot of
  3428. * dirty + writeback pages then we should wait for
  3429. * an IO to complete to slow down the reclaim and
  3430. * prevent from pre mature OOM
  3431. */
  3432. if (!did_some_progress) {
  3433. unsigned long write_pending;
  3434. write_pending = zone_page_state_snapshot(zone,
  3435. NR_ZONE_WRITE_PENDING);
  3436. if (2 * write_pending > reclaimable) {
  3437. congestion_wait(BLK_RW_ASYNC, HZ/10);
  3438. return true;
  3439. }
  3440. }
  3441. ret = true;
  3442. goto out;
  3443. }
  3444. }
  3445. out:
  3446. /*
  3447. * Memory allocation/reclaim might be called from a WQ context and the
  3448. * current implementation of the WQ concurrency control doesn't
  3449. * recognize that a particular WQ is congested if the worker thread is
  3450. * looping without ever sleeping. Therefore we have to do a short sleep
  3451. * here rather than calling cond_resched().
  3452. */
  3453. if (current->flags & PF_WQ_WORKER)
  3454. schedule_timeout_uninterruptible(1);
  3455. else
  3456. cond_resched();
  3457. return ret;
  3458. }
  3459. static inline bool
  3460. check_retry_cpuset(int cpuset_mems_cookie, struct alloc_context *ac)
  3461. {
  3462. /*
  3463. * It's possible that cpuset's mems_allowed and the nodemask from
  3464. * mempolicy don't intersect. This should be normally dealt with by
  3465. * policy_nodemask(), but it's possible to race with cpuset update in
  3466. * such a way the check therein was true, and then it became false
  3467. * before we got our cpuset_mems_cookie here.
  3468. * This assumes that for all allocations, ac->nodemask can come only
  3469. * from MPOL_BIND mempolicy (whose documented semantics is to be ignored
  3470. * when it does not intersect with the cpuset restrictions) or the
  3471. * caller can deal with a violated nodemask.
  3472. */
  3473. if (cpusets_enabled() && ac->nodemask &&
  3474. !cpuset_nodemask_valid_mems_allowed(ac->nodemask)) {
  3475. ac->nodemask = NULL;
  3476. return true;
  3477. }
  3478. /*
  3479. * When updating a task's mems_allowed or mempolicy nodemask, it is
  3480. * possible to race with parallel threads in such a way that our
  3481. * allocation can fail while the mask is being updated. If we are about
  3482. * to fail, check if the cpuset changed during allocation and if so,
  3483. * retry.
  3484. */
  3485. if (read_mems_allowed_retry(cpuset_mems_cookie))
  3486. return true;
  3487. return false;
  3488. }
  3489. static inline struct page *
  3490. __alloc_pages_slowpath(gfp_t gfp_mask, unsigned int order,
  3491. struct alloc_context *ac)
  3492. {
  3493. bool can_direct_reclaim = gfp_mask & __GFP_DIRECT_RECLAIM;
  3494. const bool costly_order = order > PAGE_ALLOC_COSTLY_ORDER;
  3495. struct page *page = NULL;
  3496. unsigned int alloc_flags;
  3497. unsigned long did_some_progress;
  3498. enum compact_priority compact_priority;
  3499. enum compact_result compact_result;
  3500. int compaction_retries;
  3501. int no_progress_loops;
  3502. unsigned int cpuset_mems_cookie;
  3503. int reserve_flags;
  3504. /*
  3505. * In the slowpath, we sanity check order to avoid ever trying to
  3506. * reclaim >= MAX_ORDER areas which will never succeed. Callers may
  3507. * be using allocators in order of preference for an area that is
  3508. * too large.
  3509. */
  3510. if (order >= MAX_ORDER) {
  3511. WARN_ON_ONCE(!(gfp_mask & __GFP_NOWARN));
  3512. return NULL;
  3513. }
  3514. /*
  3515. * We also sanity check to catch abuse of atomic reserves being used by
  3516. * callers that are not in atomic context.
  3517. */
  3518. if (WARN_ON_ONCE((gfp_mask & (__GFP_ATOMIC|__GFP_DIRECT_RECLAIM)) ==
  3519. (__GFP_ATOMIC|__GFP_DIRECT_RECLAIM)))
  3520. gfp_mask &= ~__GFP_ATOMIC;
  3521. retry_cpuset:
  3522. compaction_retries = 0;
  3523. no_progress_loops = 0;
  3524. compact_priority = DEF_COMPACT_PRIORITY;
  3525. cpuset_mems_cookie = read_mems_allowed_begin();
  3526. /*
  3527. * The fast path uses conservative alloc_flags to succeed only until
  3528. * kswapd needs to be woken up, and to avoid the cost of setting up
  3529. * alloc_flags precisely. So we do that now.
  3530. */
  3531. alloc_flags = gfp_to_alloc_flags(gfp_mask);
  3532. /*
  3533. * We need to recalculate the starting point for the zonelist iterator
  3534. * because we might have used different nodemask in the fast path, or
  3535. * there was a cpuset modification and we are retrying - otherwise we
  3536. * could end up iterating over non-eligible zones endlessly.
  3537. */
  3538. ac->preferred_zoneref = first_zones_zonelist(ac->zonelist,
  3539. ac->high_zoneidx, ac->nodemask);
  3540. if (!ac->preferred_zoneref->zone)
  3541. goto nopage;
  3542. if (gfp_mask & __GFP_KSWAPD_RECLAIM)
  3543. wake_all_kswapds(order, gfp_mask, ac);
  3544. /*
  3545. * The adjusted alloc_flags might result in immediate success, so try
  3546. * that first
  3547. */
  3548. page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
  3549. if (page)
  3550. goto got_pg;
  3551. /*
  3552. * For costly allocations, try direct compaction first, as it's likely
  3553. * that we have enough base pages and don't need to reclaim. For non-
  3554. * movable high-order allocations, do that as well, as compaction will
  3555. * try prevent permanent fragmentation by migrating from blocks of the
  3556. * same migratetype.
  3557. * Don't try this for allocations that are allowed to ignore
  3558. * watermarks, as the ALLOC_NO_WATERMARKS attempt didn't yet happen.
  3559. */
  3560. if (can_direct_reclaim &&
  3561. (costly_order ||
  3562. (order > 0 && ac->migratetype != MIGRATE_MOVABLE))
  3563. && !gfp_pfmemalloc_allowed(gfp_mask)) {
  3564. page = __alloc_pages_direct_compact(gfp_mask, order,
  3565. alloc_flags, ac,
  3566. INIT_COMPACT_PRIORITY,
  3567. &compact_result);
  3568. if (page)
  3569. goto got_pg;
  3570. /*
  3571. * Checks for costly allocations with __GFP_NORETRY, which
  3572. * includes THP page fault allocations
  3573. */
  3574. if (costly_order && (gfp_mask & __GFP_NORETRY)) {
  3575. /*
  3576. * If compaction is deferred for high-order allocations,
  3577. * it is because sync compaction recently failed. If
  3578. * this is the case and the caller requested a THP
  3579. * allocation, we do not want to heavily disrupt the
  3580. * system, so we fail the allocation instead of entering
  3581. * direct reclaim.
  3582. */
  3583. if (compact_result == COMPACT_DEFERRED)
  3584. goto nopage;
  3585. /*
  3586. * Looks like reclaim/compaction is worth trying, but
  3587. * sync compaction could be very expensive, so keep
  3588. * using async compaction.
  3589. */
  3590. compact_priority = INIT_COMPACT_PRIORITY;
  3591. }
  3592. }
  3593. retry:
  3594. /* Ensure kswapd doesn't accidentally go to sleep as long as we loop */
  3595. if (gfp_mask & __GFP_KSWAPD_RECLAIM)
  3596. wake_all_kswapds(order, gfp_mask, ac);
  3597. reserve_flags = __gfp_pfmemalloc_flags(gfp_mask);
  3598. if (reserve_flags)
  3599. alloc_flags = reserve_flags;
  3600. /*
  3601. * Reset the nodemask and zonelist iterators if memory policies can be
  3602. * ignored. These allocations are high priority and system rather than
  3603. * user oriented.
  3604. */
  3605. if (!(alloc_flags & ALLOC_CPUSET) || reserve_flags) {
  3606. ac->nodemask = NULL;
  3607. ac->preferred_zoneref = first_zones_zonelist(ac->zonelist,
  3608. ac->high_zoneidx, ac->nodemask);
  3609. }
  3610. /* Attempt with potentially adjusted zonelist and alloc_flags */
  3611. page = get_page_from_freelist(gfp_mask, order, alloc_flags, ac);
  3612. if (page)
  3613. goto got_pg;
  3614. /* Caller is not willing to reclaim, we can't balance anything */
  3615. if (!can_direct_reclaim)
  3616. goto nopage;
  3617. /* Avoid recursion of direct reclaim */
  3618. if (current->flags & PF_MEMALLOC)
  3619. goto nopage;
  3620. /* Try direct reclaim and then allocating */
  3621. page = __alloc_pages_direct_reclaim(gfp_mask, order, alloc_flags, ac,
  3622. &did_some_progress);
  3623. if (page)
  3624. goto got_pg;
  3625. /* Try direct compaction and then allocating */
  3626. page = __alloc_pages_direct_compact(gfp_mask, order, alloc_flags, ac,
  3627. compact_priority, &compact_result);
  3628. if (page)
  3629. goto got_pg;
  3630. /* Do not loop if specifically requested */
  3631. if (gfp_mask & __GFP_NORETRY)
  3632. goto nopage;
  3633. /*
  3634. * Do not retry costly high order allocations unless they are
  3635. * __GFP_RETRY_MAYFAIL
  3636. */
  3637. if (costly_order && !(gfp_mask & __GFP_RETRY_MAYFAIL))
  3638. goto nopage;
  3639. if (should_reclaim_retry(gfp_mask, order, ac, alloc_flags,
  3640. did_some_progress > 0, &no_progress_loops))
  3641. goto retry;
  3642. /*
  3643. * It doesn't make any sense to retry for the compaction if the order-0
  3644. * reclaim is not able to make any progress because the current
  3645. * implementation of the compaction depends on the sufficient amount
  3646. * of free memory (see __compaction_suitable)
  3647. */
  3648. if (did_some_progress > 0 &&
  3649. should_compact_retry(ac, order, alloc_flags,
  3650. compact_result, &compact_priority,
  3651. &compaction_retries))
  3652. goto retry;
  3653. /* Deal with possible cpuset update races before we start OOM killing */
  3654. if (check_retry_cpuset(cpuset_mems_cookie, ac))
  3655. goto retry_cpuset;
  3656. /* Reclaim has failed us, start killing things */
  3657. page = __alloc_pages_may_oom(gfp_mask, order, ac, &did_some_progress);
  3658. if (page)
  3659. goto got_pg;
  3660. /* Avoid allocations with no watermarks from looping endlessly */
  3661. if (tsk_is_oom_victim(current) &&
  3662. (alloc_flags == ALLOC_OOM ||
  3663. (gfp_mask & __GFP_NOMEMALLOC)))
  3664. goto nopage;
  3665. /* Retry as long as the OOM killer is making progress */
  3666. if (did_some_progress) {
  3667. no_progress_loops = 0;
  3668. goto retry;
  3669. }
  3670. nopage:
  3671. /* Deal with possible cpuset update races before we fail */
  3672. if (check_retry_cpuset(cpuset_mems_cookie, ac))
  3673. goto retry_cpuset;
  3674. /*
  3675. * Make sure that __GFP_NOFAIL request doesn't leak out and make sure
  3676. * we always retry
  3677. */
  3678. if (gfp_mask & __GFP_NOFAIL) {
  3679. /*
  3680. * All existing users of the __GFP_NOFAIL are blockable, so warn
  3681. * of any new users that actually require GFP_NOWAIT
  3682. */
  3683. if (WARN_ON_ONCE(!can_direct_reclaim))
  3684. goto fail;
  3685. /*
  3686. * PF_MEMALLOC request from this context is rather bizarre
  3687. * because we cannot reclaim anything and only can loop waiting
  3688. * for somebody to do a work for us
  3689. */
  3690. WARN_ON_ONCE(current->flags & PF_MEMALLOC);
  3691. /*
  3692. * non failing costly orders are a hard requirement which we
  3693. * are not prepared for much so let's warn about these users
  3694. * so that we can identify them and convert them to something
  3695. * else.
  3696. */
  3697. WARN_ON_ONCE(order > PAGE_ALLOC_COSTLY_ORDER);
  3698. /*
  3699. * Help non-failing allocations by giving them access to memory
  3700. * reserves but do not use ALLOC_NO_WATERMARKS because this
  3701. * could deplete whole memory reserves which would just make
  3702. * the situation worse
  3703. */
  3704. page = __alloc_pages_cpuset_fallback(gfp_mask, order, ALLOC_HARDER, ac);
  3705. if (page)
  3706. goto got_pg;
  3707. cond_resched();
  3708. goto retry;
  3709. }
  3710. fail:
  3711. warn_alloc(gfp_mask, ac->nodemask,
  3712. "page allocation failure: order:%u", order);
  3713. got_pg:
  3714. return page;
  3715. }
  3716. static inline bool prepare_alloc_pages(gfp_t gfp_mask, unsigned int order,
  3717. int preferred_nid, nodemask_t *nodemask,
  3718. struct alloc_context *ac, gfp_t *alloc_mask,
  3719. unsigned int *alloc_flags)
  3720. {
  3721. ac->high_zoneidx = gfp_zone(gfp_mask);
  3722. ac->zonelist = node_zonelist(preferred_nid, gfp_mask);
  3723. ac->nodemask = nodemask;
  3724. ac->migratetype = gfpflags_to_migratetype(gfp_mask);
  3725. if (cpusets_enabled()) {
  3726. *alloc_mask |= __GFP_HARDWALL;
  3727. if (!ac->nodemask)
  3728. ac->nodemask = &cpuset_current_mems_allowed;
  3729. else
  3730. *alloc_flags |= ALLOC_CPUSET;
  3731. }
  3732. fs_reclaim_acquire(gfp_mask);
  3733. fs_reclaim_release(gfp_mask);
  3734. might_sleep_if(gfp_mask & __GFP_DIRECT_RECLAIM);
  3735. if (should_fail_alloc_page(gfp_mask, order))
  3736. return false;
  3737. if (IS_ENABLED(CONFIG_CMA) && ac->migratetype == MIGRATE_MOVABLE)
  3738. *alloc_flags |= ALLOC_CMA;
  3739. return true;
  3740. }
  3741. /* Determine whether to spread dirty pages and what the first usable zone */
  3742. static inline void finalise_ac(gfp_t gfp_mask, struct alloc_context *ac)
  3743. {
  3744. /* Dirty zone balancing only done in the fast path */
  3745. ac->spread_dirty_pages = (gfp_mask & __GFP_WRITE);
  3746. /*
  3747. * The preferred zone is used for statistics but crucially it is
  3748. * also used as the starting point for the zonelist iterator. It
  3749. * may get reset for allocations that ignore memory policies.
  3750. */
  3751. ac->preferred_zoneref = first_zones_zonelist(ac->zonelist,
  3752. ac->high_zoneidx, ac->nodemask);
  3753. }
  3754. /*
  3755. * This is the 'heart' of the zoned buddy allocator.
  3756. */
  3757. struct page *
  3758. __alloc_pages_nodemask(gfp_t gfp_mask, unsigned int order, int preferred_nid,
  3759. nodemask_t *nodemask)
  3760. {
  3761. struct page *page;
  3762. unsigned int alloc_flags = ALLOC_WMARK_LOW;
  3763. gfp_t alloc_mask; /* The gfp_t that was actually used for allocation */
  3764. struct alloc_context ac = { };
  3765. gfp_mask &= gfp_allowed_mask;
  3766. alloc_mask = gfp_mask;
  3767. if (!prepare_alloc_pages(gfp_mask, order, preferred_nid, nodemask, &ac, &alloc_mask, &alloc_flags))
  3768. return NULL;
  3769. finalise_ac(gfp_mask, &ac);
  3770. /* First allocation attempt */
  3771. page = get_page_from_freelist(alloc_mask, order, alloc_flags, &ac);
  3772. if (likely(page))
  3773. goto out;
  3774. /*
  3775. * Apply scoped allocation constraints. This is mainly about GFP_NOFS
  3776. * resp. GFP_NOIO which has to be inherited for all allocation requests
  3777. * from a particular context which has been marked by
  3778. * memalloc_no{fs,io}_{save,restore}.
  3779. */
  3780. alloc_mask = current_gfp_context(gfp_mask);
  3781. ac.spread_dirty_pages = false;
  3782. /*
  3783. * Restore the original nodemask if it was potentially replaced with
  3784. * &cpuset_current_mems_allowed to optimize the fast-path attempt.
  3785. */
  3786. if (unlikely(ac.nodemask != nodemask))
  3787. ac.nodemask = nodemask;
  3788. page = __alloc_pages_slowpath(alloc_mask, order, &ac);
  3789. out:
  3790. if (memcg_kmem_enabled() && (gfp_mask & __GFP_ACCOUNT) && page &&
  3791. unlikely(memcg_kmem_charge(page, gfp_mask, order) != 0)) {
  3792. __free_pages(page, order);
  3793. page = NULL;
  3794. }
  3795. trace_mm_page_alloc(page, order, alloc_mask, ac.migratetype);
  3796. return page;
  3797. }
  3798. EXPORT_SYMBOL(__alloc_pages_nodemask);
  3799. /*
  3800. * Common helper functions. Never use with __GFP_HIGHMEM because the returned
  3801. * address cannot represent highmem pages. Use alloc_pages and then kmap if
  3802. * you need to access high mem.
  3803. */
  3804. unsigned long __get_free_pages(gfp_t gfp_mask, unsigned int order)
  3805. {
  3806. struct page *page;
  3807. page = alloc_pages(gfp_mask & ~__GFP_HIGHMEM, order);
  3808. if (!page)
  3809. return 0;
  3810. return (unsigned long) page_address(page);
  3811. }
  3812. EXPORT_SYMBOL(__get_free_pages);
  3813. unsigned long get_zeroed_page(gfp_t gfp_mask)
  3814. {
  3815. return __get_free_pages(gfp_mask | __GFP_ZERO, 0);
  3816. }
  3817. EXPORT_SYMBOL(get_zeroed_page);
  3818. void __free_pages(struct page *page, unsigned int order)
  3819. {
  3820. if (put_page_testzero(page)) {
  3821. if (order == 0)
  3822. free_unref_page(page);
  3823. else
  3824. __free_pages_ok(page, order);
  3825. }
  3826. }
  3827. EXPORT_SYMBOL(__free_pages);
  3828. void free_pages(unsigned long addr, unsigned int order)
  3829. {
  3830. if (addr != 0) {
  3831. VM_BUG_ON(!virt_addr_valid((void *)addr));
  3832. __free_pages(virt_to_page((void *)addr), order);
  3833. }
  3834. }
  3835. EXPORT_SYMBOL(free_pages);
  3836. /*
  3837. * Page Fragment:
  3838. * An arbitrary-length arbitrary-offset area of memory which resides
  3839. * within a 0 or higher order page. Multiple fragments within that page
  3840. * are individually refcounted, in the page's reference counter.
  3841. *
  3842. * The page_frag functions below provide a simple allocation framework for
  3843. * page fragments. This is used by the network stack and network device
  3844. * drivers to provide a backing region of memory for use as either an
  3845. * sk_buff->head, or to be used in the "frags" portion of skb_shared_info.
  3846. */
  3847. static struct page *__page_frag_cache_refill(struct page_frag_cache *nc,
  3848. gfp_t gfp_mask)
  3849. {
  3850. struct page *page = NULL;
  3851. gfp_t gfp = gfp_mask;
  3852. #if (PAGE_SIZE < PAGE_FRAG_CACHE_MAX_SIZE)
  3853. gfp_mask |= __GFP_COMP | __GFP_NOWARN | __GFP_NORETRY |
  3854. __GFP_NOMEMALLOC;
  3855. page = alloc_pages_node(NUMA_NO_NODE, gfp_mask,
  3856. PAGE_FRAG_CACHE_MAX_ORDER);
  3857. nc->size = page ? PAGE_FRAG_CACHE_MAX_SIZE : PAGE_SIZE;
  3858. #endif
  3859. if (unlikely(!page))
  3860. page = alloc_pages_node(NUMA_NO_NODE, gfp, 0);
  3861. nc->va = page ? page_address(page) : NULL;
  3862. return page;
  3863. }
  3864. void __page_frag_cache_drain(struct page *page, unsigned int count)
  3865. {
  3866. VM_BUG_ON_PAGE(page_ref_count(page) == 0, page);
  3867. if (page_ref_sub_and_test(page, count)) {
  3868. unsigned int order = compound_order(page);
  3869. if (order == 0)
  3870. free_unref_page(page);
  3871. else
  3872. __free_pages_ok(page, order);
  3873. }
  3874. }
  3875. EXPORT_SYMBOL(__page_frag_cache_drain);
  3876. void *page_frag_alloc(struct page_frag_cache *nc,
  3877. unsigned int fragsz, gfp_t gfp_mask)
  3878. {
  3879. unsigned int size = PAGE_SIZE;
  3880. struct page *page;
  3881. int offset;
  3882. if (unlikely(!nc->va)) {
  3883. refill:
  3884. page = __page_frag_cache_refill(nc, gfp_mask);
  3885. if (!page)
  3886. return NULL;
  3887. #if (PAGE_SIZE < PAGE_FRAG_CACHE_MAX_SIZE)
  3888. /* if size can vary use size else just use PAGE_SIZE */
  3889. size = nc->size;
  3890. #endif
  3891. /* Even if we own the page, we do not use atomic_set().
  3892. * This would break get_page_unless_zero() users.
  3893. */
  3894. page_ref_add(page, size - 1);
  3895. /* reset page count bias and offset to start of new frag */
  3896. nc->pfmemalloc = page_is_pfmemalloc(page);
  3897. nc->pagecnt_bias = size;
  3898. nc->offset = size;
  3899. }
  3900. offset = nc->offset - fragsz;
  3901. if (unlikely(offset < 0)) {
  3902. page = virt_to_page(nc->va);
  3903. if (!page_ref_sub_and_test(page, nc->pagecnt_bias))
  3904. goto refill;
  3905. #if (PAGE_SIZE < PAGE_FRAG_CACHE_MAX_SIZE)
  3906. /* if size can vary use size else just use PAGE_SIZE */
  3907. size = nc->size;
  3908. #endif
  3909. /* OK, page count is 0, we can safely set it */
  3910. set_page_count(page, size);
  3911. /* reset page count bias and offset to start of new frag */
  3912. nc->pagecnt_bias = size;
  3913. offset = size - fragsz;
  3914. }
  3915. nc->pagecnt_bias--;
  3916. nc->offset = offset;
  3917. return nc->va + offset;
  3918. }
  3919. EXPORT_SYMBOL(page_frag_alloc);
  3920. /*
  3921. * Frees a page fragment allocated out of either a compound or order 0 page.
  3922. */
  3923. void page_frag_free(void *addr)
  3924. {
  3925. struct page *page = virt_to_head_page(addr);
  3926. if (unlikely(put_page_testzero(page)))
  3927. __free_pages_ok(page, compound_order(page));
  3928. }
  3929. EXPORT_SYMBOL(page_frag_free);
  3930. static void *make_alloc_exact(unsigned long addr, unsigned int order,
  3931. size_t size)
  3932. {
  3933. if (addr) {
  3934. unsigned long alloc_end = addr + (PAGE_SIZE << order);
  3935. unsigned long used = addr + PAGE_ALIGN(size);
  3936. split_page(virt_to_page((void *)addr), order);
  3937. while (used < alloc_end) {
  3938. free_page(used);
  3939. used += PAGE_SIZE;
  3940. }
  3941. }
  3942. return (void *)addr;
  3943. }
  3944. /**
  3945. * alloc_pages_exact - allocate an exact number physically-contiguous pages.
  3946. * @size: the number of bytes to allocate
  3947. * @gfp_mask: GFP flags for the allocation
  3948. *
  3949. * This function is similar to alloc_pages(), except that it allocates the
  3950. * minimum number of pages to satisfy the request. alloc_pages() can only
  3951. * allocate memory in power-of-two pages.
  3952. *
  3953. * This function is also limited by MAX_ORDER.
  3954. *
  3955. * Memory allocated by this function must be released by free_pages_exact().
  3956. */
  3957. void *alloc_pages_exact(size_t size, gfp_t gfp_mask)
  3958. {
  3959. unsigned int order = get_order(size);
  3960. unsigned long addr;
  3961. addr = __get_free_pages(gfp_mask, order);
  3962. return make_alloc_exact(addr, order, size);
  3963. }
  3964. EXPORT_SYMBOL(alloc_pages_exact);
  3965. /**
  3966. * alloc_pages_exact_nid - allocate an exact number of physically-contiguous
  3967. * pages on a node.
  3968. * @nid: the preferred node ID where memory should be allocated
  3969. * @size: the number of bytes to allocate
  3970. * @gfp_mask: GFP flags for the allocation
  3971. *
  3972. * Like alloc_pages_exact(), but try to allocate on node nid first before falling
  3973. * back.
  3974. */
  3975. void * __meminit alloc_pages_exact_nid(int nid, size_t size, gfp_t gfp_mask)
  3976. {
  3977. unsigned int order = get_order(size);
  3978. struct page *p = alloc_pages_node(nid, gfp_mask, order);
  3979. if (!p)
  3980. return NULL;
  3981. return make_alloc_exact((unsigned long)page_address(p), order, size);
  3982. }
  3983. /**
  3984. * free_pages_exact - release memory allocated via alloc_pages_exact()
  3985. * @virt: the value returned by alloc_pages_exact.
  3986. * @size: size of allocation, same value as passed to alloc_pages_exact().
  3987. *
  3988. * Release the memory allocated by a previous call to alloc_pages_exact.
  3989. */
  3990. void free_pages_exact(void *virt, size_t size)
  3991. {
  3992. unsigned long addr = (unsigned long)virt;
  3993. unsigned long end = addr + PAGE_ALIGN(size);
  3994. while (addr < end) {
  3995. free_page(addr);
  3996. addr += PAGE_SIZE;
  3997. }
  3998. }
  3999. EXPORT_SYMBOL(free_pages_exact);
  4000. /**
  4001. * nr_free_zone_pages - count number of pages beyond high watermark
  4002. * @offset: The zone index of the highest zone
  4003. *
  4004. * nr_free_zone_pages() counts the number of counts pages which are beyond the
  4005. * high watermark within all zones at or below a given zone index. For each
  4006. * zone, the number of pages is calculated as:
  4007. *
  4008. * nr_free_zone_pages = managed_pages - high_pages
  4009. */
  4010. static unsigned long nr_free_zone_pages(int offset)
  4011. {
  4012. struct zoneref *z;
  4013. struct zone *zone;
  4014. /* Just pick one node, since fallback list is circular */
  4015. unsigned long sum = 0;
  4016. struct zonelist *zonelist = node_zonelist(numa_node_id(), GFP_KERNEL);
  4017. for_each_zone_zonelist(zone, z, zonelist, offset) {
  4018. unsigned long size = zone->managed_pages;
  4019. unsigned long high = high_wmark_pages(zone);
  4020. if (size > high)
  4021. sum += size - high;
  4022. }
  4023. return sum;
  4024. }
  4025. /**
  4026. * nr_free_buffer_pages - count number of pages beyond high watermark
  4027. *
  4028. * nr_free_buffer_pages() counts the number of pages which are beyond the high
  4029. * watermark within ZONE_DMA and ZONE_NORMAL.
  4030. */
  4031. unsigned long nr_free_buffer_pages(void)
  4032. {
  4033. return nr_free_zone_pages(gfp_zone(GFP_USER));
  4034. }
  4035. EXPORT_SYMBOL_GPL(nr_free_buffer_pages);
  4036. /**
  4037. * nr_free_pagecache_pages - count number of pages beyond high watermark
  4038. *
  4039. * nr_free_pagecache_pages() counts the number of pages which are beyond the
  4040. * high watermark within all zones.
  4041. */
  4042. unsigned long nr_free_pagecache_pages(void)
  4043. {
  4044. return nr_free_zone_pages(gfp_zone(GFP_HIGHUSER_MOVABLE));
  4045. }
  4046. static inline void show_node(struct zone *zone)
  4047. {
  4048. if (IS_ENABLED(CONFIG_NUMA))
  4049. printk("Node %d ", zone_to_nid(zone));
  4050. }
  4051. long si_mem_available(void)
  4052. {
  4053. long available;
  4054. unsigned long pagecache;
  4055. unsigned long wmark_low = 0;
  4056. unsigned long pages[NR_LRU_LISTS];
  4057. unsigned long reclaimable;
  4058. struct zone *zone;
  4059. int lru;
  4060. for (lru = LRU_BASE; lru < NR_LRU_LISTS; lru++)
  4061. pages[lru] = global_node_page_state(NR_LRU_BASE + lru);
  4062. for_each_zone(zone)
  4063. wmark_low += zone->watermark[WMARK_LOW];
  4064. /*
  4065. * Estimate the amount of memory available for userspace allocations,
  4066. * without causing swapping.
  4067. */
  4068. available = global_zone_page_state(NR_FREE_PAGES) - totalreserve_pages;
  4069. /*
  4070. * Not all the page cache can be freed, otherwise the system will
  4071. * start swapping. Assume at least half of the page cache, or the
  4072. * low watermark worth of cache, needs to stay.
  4073. */
  4074. pagecache = pages[LRU_ACTIVE_FILE] + pages[LRU_INACTIVE_FILE];
  4075. pagecache -= min(pagecache / 2, wmark_low);
  4076. available += pagecache;
  4077. /*
  4078. * Part of the reclaimable slab and other kernel memory consists of
  4079. * items that are in use, and cannot be freed. Cap this estimate at the
  4080. * low watermark.
  4081. */
  4082. reclaimable = global_node_page_state(NR_SLAB_RECLAIMABLE) +
  4083. global_node_page_state(NR_KERNEL_MISC_RECLAIMABLE);
  4084. available += reclaimable - min(reclaimable / 2, wmark_low);
  4085. if (available < 0)
  4086. available = 0;
  4087. return available;
  4088. }
  4089. EXPORT_SYMBOL_GPL(si_mem_available);
  4090. void si_meminfo(struct sysinfo *val)
  4091. {
  4092. val->totalram = totalram_pages;
  4093. val->sharedram = global_node_page_state(NR_SHMEM);
  4094. val->freeram = global_zone_page_state(NR_FREE_PAGES);
  4095. val->bufferram = nr_blockdev_pages();
  4096. val->totalhigh = totalhigh_pages;
  4097. val->freehigh = nr_free_highpages();
  4098. val->mem_unit = PAGE_SIZE;
  4099. }
  4100. EXPORT_SYMBOL(si_meminfo);
  4101. #ifdef CONFIG_NUMA
  4102. void si_meminfo_node(struct sysinfo *val, int nid)
  4103. {
  4104. int zone_type; /* needs to be signed */
  4105. unsigned long managed_pages = 0;
  4106. unsigned long managed_highpages = 0;
  4107. unsigned long free_highpages = 0;
  4108. pg_data_t *pgdat = NODE_DATA(nid);
  4109. for (zone_type = 0; zone_type < MAX_NR_ZONES; zone_type++)
  4110. managed_pages += pgdat->node_zones[zone_type].managed_pages;
  4111. val->totalram = managed_pages;
  4112. val->sharedram = node_page_state(pgdat, NR_SHMEM);
  4113. val->freeram = sum_zone_node_page_state(nid, NR_FREE_PAGES);
  4114. #ifdef CONFIG_HIGHMEM
  4115. for (zone_type = 0; zone_type < MAX_NR_ZONES; zone_type++) {
  4116. struct zone *zone = &pgdat->node_zones[zone_type];
  4117. if (is_highmem(zone)) {
  4118. managed_highpages += zone->managed_pages;
  4119. free_highpages += zone_page_state(zone, NR_FREE_PAGES);
  4120. }
  4121. }
  4122. val->totalhigh = managed_highpages;
  4123. val->freehigh = free_highpages;
  4124. #else
  4125. val->totalhigh = managed_highpages;
  4126. val->freehigh = free_highpages;
  4127. #endif
  4128. val->mem_unit = PAGE_SIZE;
  4129. }
  4130. #endif
  4131. /*
  4132. * Determine whether the node should be displayed or not, depending on whether
  4133. * SHOW_MEM_FILTER_NODES was passed to show_free_areas().
  4134. */
  4135. static bool show_mem_node_skip(unsigned int flags, int nid, nodemask_t *nodemask)
  4136. {
  4137. if (!(flags & SHOW_MEM_FILTER_NODES))
  4138. return false;
  4139. /*
  4140. * no node mask - aka implicit memory numa policy. Do not bother with
  4141. * the synchronization - read_mems_allowed_begin - because we do not
  4142. * have to be precise here.
  4143. */
  4144. if (!nodemask)
  4145. nodemask = &cpuset_current_mems_allowed;
  4146. return !node_isset(nid, *nodemask);
  4147. }
  4148. #define K(x) ((x) << (PAGE_SHIFT-10))
  4149. static void show_migration_types(unsigned char type)
  4150. {
  4151. static const char types[MIGRATE_TYPES] = {
  4152. [MIGRATE_UNMOVABLE] = 'U',
  4153. [MIGRATE_MOVABLE] = 'M',
  4154. [MIGRATE_RECLAIMABLE] = 'E',
  4155. [MIGRATE_HIGHATOMIC] = 'H',
  4156. #ifdef CONFIG_CMA
  4157. [MIGRATE_CMA] = 'C',
  4158. #endif
  4159. #ifdef CONFIG_MEMORY_ISOLATION
  4160. [MIGRATE_ISOLATE] = 'I',
  4161. #endif
  4162. };
  4163. char tmp[MIGRATE_TYPES + 1];
  4164. char *p = tmp;
  4165. int i;
  4166. for (i = 0; i < MIGRATE_TYPES; i++) {
  4167. if (type & (1 << i))
  4168. *p++ = types[i];
  4169. }
  4170. *p = '\0';
  4171. printk(KERN_CONT "(%s) ", tmp);
  4172. }
  4173. /*
  4174. * Show free area list (used inside shift_scroll-lock stuff)
  4175. * We also calculate the percentage fragmentation. We do this by counting the
  4176. * memory on each free list with the exception of the first item on the list.
  4177. *
  4178. * Bits in @filter:
  4179. * SHOW_MEM_FILTER_NODES: suppress nodes that are not allowed by current's
  4180. * cpuset.
  4181. */
  4182. void show_free_areas(unsigned int filter, nodemask_t *nodemask)
  4183. {
  4184. unsigned long free_pcp = 0;
  4185. int cpu;
  4186. struct zone *zone;
  4187. pg_data_t *pgdat;
  4188. for_each_populated_zone(zone) {
  4189. if (show_mem_node_skip(filter, zone_to_nid(zone), nodemask))
  4190. continue;
  4191. for_each_online_cpu(cpu)
  4192. free_pcp += per_cpu_ptr(zone->pageset, cpu)->pcp.count;
  4193. }
  4194. printk("active_anon:%lu inactive_anon:%lu isolated_anon:%lu\n"
  4195. " active_file:%lu inactive_file:%lu isolated_file:%lu\n"
  4196. " unevictable:%lu dirty:%lu writeback:%lu unstable:%lu\n"
  4197. " slab_reclaimable:%lu slab_unreclaimable:%lu\n"
  4198. " mapped:%lu shmem:%lu pagetables:%lu bounce:%lu\n"
  4199. " free:%lu free_pcp:%lu free_cma:%lu\n",
  4200. global_node_page_state(NR_ACTIVE_ANON),
  4201. global_node_page_state(NR_INACTIVE_ANON),
  4202. global_node_page_state(NR_ISOLATED_ANON),
  4203. global_node_page_state(NR_ACTIVE_FILE),
  4204. global_node_page_state(NR_INACTIVE_FILE),
  4205. global_node_page_state(NR_ISOLATED_FILE),
  4206. global_node_page_state(NR_UNEVICTABLE),
  4207. global_node_page_state(NR_FILE_DIRTY),
  4208. global_node_page_state(NR_WRITEBACK),
  4209. global_node_page_state(NR_UNSTABLE_NFS),
  4210. global_node_page_state(NR_SLAB_RECLAIMABLE),
  4211. global_node_page_state(NR_SLAB_UNRECLAIMABLE),
  4212. global_node_page_state(NR_FILE_MAPPED),
  4213. global_node_page_state(NR_SHMEM),
  4214. global_zone_page_state(NR_PAGETABLE),
  4215. global_zone_page_state(NR_BOUNCE),
  4216. global_zone_page_state(NR_FREE_PAGES),
  4217. free_pcp,
  4218. global_zone_page_state(NR_FREE_CMA_PAGES));
  4219. for_each_online_pgdat(pgdat) {
  4220. if (show_mem_node_skip(filter, pgdat->node_id, nodemask))
  4221. continue;
  4222. printk("Node %d"
  4223. " active_anon:%lukB"
  4224. " inactive_anon:%lukB"
  4225. " active_file:%lukB"
  4226. " inactive_file:%lukB"
  4227. " unevictable:%lukB"
  4228. " isolated(anon):%lukB"
  4229. " isolated(file):%lukB"
  4230. " mapped:%lukB"
  4231. " dirty:%lukB"
  4232. " writeback:%lukB"
  4233. " shmem:%lukB"
  4234. #ifdef CONFIG_TRANSPARENT_HUGEPAGE
  4235. " shmem_thp: %lukB"
  4236. " shmem_pmdmapped: %lukB"
  4237. " anon_thp: %lukB"
  4238. #endif
  4239. " writeback_tmp:%lukB"
  4240. " unstable:%lukB"
  4241. " all_unreclaimable? %s"
  4242. "\n",
  4243. pgdat->node_id,
  4244. K(node_page_state(pgdat, NR_ACTIVE_ANON)),
  4245. K(node_page_state(pgdat, NR_INACTIVE_ANON)),
  4246. K(node_page_state(pgdat, NR_ACTIVE_FILE)),
  4247. K(node_page_state(pgdat, NR_INACTIVE_FILE)),
  4248. K(node_page_state(pgdat, NR_UNEVICTABLE)),
  4249. K(node_page_state(pgdat, NR_ISOLATED_ANON)),
  4250. K(node_page_state(pgdat, NR_ISOLATED_FILE)),
  4251. K(node_page_state(pgdat, NR_FILE_MAPPED)),
  4252. K(node_page_state(pgdat, NR_FILE_DIRTY)),
  4253. K(node_page_state(pgdat, NR_WRITEBACK)),
  4254. K(node_page_state(pgdat, NR_SHMEM)),
  4255. #ifdef CONFIG_TRANSPARENT_HUGEPAGE
  4256. K(node_page_state(pgdat, NR_SHMEM_THPS) * HPAGE_PMD_NR),
  4257. K(node_page_state(pgdat, NR_SHMEM_PMDMAPPED)
  4258. * HPAGE_PMD_NR),
  4259. K(node_page_state(pgdat, NR_ANON_THPS) * HPAGE_PMD_NR),
  4260. #endif
  4261. K(node_page_state(pgdat, NR_WRITEBACK_TEMP)),
  4262. K(node_page_state(pgdat, NR_UNSTABLE_NFS)),
  4263. pgdat->kswapd_failures >= MAX_RECLAIM_RETRIES ?
  4264. "yes" : "no");
  4265. }
  4266. for_each_populated_zone(zone) {
  4267. int i;
  4268. if (show_mem_node_skip(filter, zone_to_nid(zone), nodemask))
  4269. continue;
  4270. free_pcp = 0;
  4271. for_each_online_cpu(cpu)
  4272. free_pcp += per_cpu_ptr(zone->pageset, cpu)->pcp.count;
  4273. show_node(zone);
  4274. printk(KERN_CONT
  4275. "%s"
  4276. " free:%lukB"
  4277. " min:%lukB"
  4278. " low:%lukB"
  4279. " high:%lukB"
  4280. " active_anon:%lukB"
  4281. " inactive_anon:%lukB"
  4282. " active_file:%lukB"
  4283. " inactive_file:%lukB"
  4284. " unevictable:%lukB"
  4285. " writepending:%lukB"
  4286. " present:%lukB"
  4287. " managed:%lukB"
  4288. " mlocked:%lukB"
  4289. " kernel_stack:%lukB"
  4290. " pagetables:%lukB"
  4291. " bounce:%lukB"
  4292. " free_pcp:%lukB"
  4293. " local_pcp:%ukB"
  4294. " free_cma:%lukB"
  4295. "\n",
  4296. zone->name,
  4297. K(zone_page_state(zone, NR_FREE_PAGES)),
  4298. K(min_wmark_pages(zone)),
  4299. K(low_wmark_pages(zone)),
  4300. K(high_wmark_pages(zone)),
  4301. K(zone_page_state(zone, NR_ZONE_ACTIVE_ANON)),
  4302. K(zone_page_state(zone, NR_ZONE_INACTIVE_ANON)),
  4303. K(zone_page_state(zone, NR_ZONE_ACTIVE_FILE)),
  4304. K(zone_page_state(zone, NR_ZONE_INACTIVE_FILE)),
  4305. K(zone_page_state(zone, NR_ZONE_UNEVICTABLE)),
  4306. K(zone_page_state(zone, NR_ZONE_WRITE_PENDING)),
  4307. K(zone->present_pages),
  4308. K(zone->managed_pages),
  4309. K(zone_page_state(zone, NR_MLOCK)),
  4310. zone_page_state(zone, NR_KERNEL_STACK_KB),
  4311. K(zone_page_state(zone, NR_PAGETABLE)),
  4312. K(zone_page_state(zone, NR_BOUNCE)),
  4313. K(free_pcp),
  4314. K(this_cpu_read(zone->pageset->pcp.count)),
  4315. K(zone_page_state(zone, NR_FREE_CMA_PAGES)));
  4316. printk("lowmem_reserve[]:");
  4317. for (i = 0; i < MAX_NR_ZONES; i++)
  4318. printk(KERN_CONT " %ld", zone->lowmem_reserve[i]);
  4319. printk(KERN_CONT "\n");
  4320. }
  4321. for_each_populated_zone(zone) {
  4322. unsigned int order;
  4323. unsigned long nr[MAX_ORDER], flags, total = 0;
  4324. unsigned char types[MAX_ORDER];
  4325. if (show_mem_node_skip(filter, zone_to_nid(zone), nodemask))
  4326. continue;
  4327. show_node(zone);
  4328. printk(KERN_CONT "%s: ", zone->name);
  4329. spin_lock_irqsave(&zone->lock, flags);
  4330. for (order = 0; order < MAX_ORDER; order++) {
  4331. struct free_area *area = &zone->free_area[order];
  4332. int type;
  4333. nr[order] = area->nr_free;
  4334. total += nr[order] << order;
  4335. types[order] = 0;
  4336. for (type = 0; type < MIGRATE_TYPES; type++) {
  4337. if (!list_empty(&area->free_list[type]))
  4338. types[order] |= 1 << type;
  4339. }
  4340. }
  4341. spin_unlock_irqrestore(&zone->lock, flags);
  4342. for (order = 0; order < MAX_ORDER; order++) {
  4343. printk(KERN_CONT "%lu*%lukB ",
  4344. nr[order], K(1UL) << order);
  4345. if (nr[order])
  4346. show_migration_types(types[order]);
  4347. }
  4348. printk(KERN_CONT "= %lukB\n", K(total));
  4349. }
  4350. hugetlb_show_meminfo();
  4351. printk("%ld total pagecache pages\n", global_node_page_state(NR_FILE_PAGES));
  4352. show_swap_cache_info();
  4353. }
  4354. static void zoneref_set_zone(struct zone *zone, struct zoneref *zoneref)
  4355. {
  4356. zoneref->zone = zone;
  4357. zoneref->zone_idx = zone_idx(zone);
  4358. }
  4359. /*
  4360. * Builds allocation fallback zone lists.
  4361. *
  4362. * Add all populated zones of a node to the zonelist.
  4363. */
  4364. static int build_zonerefs_node(pg_data_t *pgdat, struct zoneref *zonerefs)
  4365. {
  4366. struct zone *zone;
  4367. enum zone_type zone_type = MAX_NR_ZONES;
  4368. int nr_zones = 0;
  4369. do {
  4370. zone_type--;
  4371. zone = pgdat->node_zones + zone_type;
  4372. if (managed_zone(zone)) {
  4373. zoneref_set_zone(zone, &zonerefs[nr_zones++]);
  4374. check_highest_zone(zone_type);
  4375. }
  4376. } while (zone_type);
  4377. return nr_zones;
  4378. }
  4379. #ifdef CONFIG_NUMA
  4380. static int __parse_numa_zonelist_order(char *s)
  4381. {
  4382. /*
  4383. * We used to support different zonlists modes but they turned
  4384. * out to be just not useful. Let's keep the warning in place
  4385. * if somebody still use the cmd line parameter so that we do
  4386. * not fail it silently
  4387. */
  4388. if (!(*s == 'd' || *s == 'D' || *s == 'n' || *s == 'N')) {
  4389. pr_warn("Ignoring unsupported numa_zonelist_order value: %s\n", s);
  4390. return -EINVAL;
  4391. }
  4392. return 0;
  4393. }
  4394. static __init int setup_numa_zonelist_order(char *s)
  4395. {
  4396. if (!s)
  4397. return 0;
  4398. return __parse_numa_zonelist_order(s);
  4399. }
  4400. early_param("numa_zonelist_order", setup_numa_zonelist_order);
  4401. char numa_zonelist_order[] = "Node";
  4402. /*
  4403. * sysctl handler for numa_zonelist_order
  4404. */
  4405. int numa_zonelist_order_handler(struct ctl_table *table, int write,
  4406. void __user *buffer, size_t *length,
  4407. loff_t *ppos)
  4408. {
  4409. char *str;
  4410. int ret;
  4411. if (!write)
  4412. return proc_dostring(table, write, buffer, length, ppos);
  4413. str = memdup_user_nul(buffer, 16);
  4414. if (IS_ERR(str))
  4415. return PTR_ERR(str);
  4416. ret = __parse_numa_zonelist_order(str);
  4417. kfree(str);
  4418. return ret;
  4419. }
  4420. #define MAX_NODE_LOAD (nr_online_nodes)
  4421. static int node_load[MAX_NUMNODES];
  4422. /**
  4423. * find_next_best_node - find the next node that should appear in a given node's fallback list
  4424. * @node: node whose fallback list we're appending
  4425. * @used_node_mask: nodemask_t of already used nodes
  4426. *
  4427. * We use a number of factors to determine which is the next node that should
  4428. * appear on a given node's fallback list. The node should not have appeared
  4429. * already in @node's fallback list, and it should be the next closest node
  4430. * according to the distance array (which contains arbitrary distance values
  4431. * from each node to each node in the system), and should also prefer nodes
  4432. * with no CPUs, since presumably they'll have very little allocation pressure
  4433. * on them otherwise.
  4434. * It returns -1 if no node is found.
  4435. */
  4436. static int find_next_best_node(int node, nodemask_t *used_node_mask)
  4437. {
  4438. int n, val;
  4439. int min_val = INT_MAX;
  4440. int best_node = NUMA_NO_NODE;
  4441. const struct cpumask *tmp = cpumask_of_node(0);
  4442. /* Use the local node if we haven't already */
  4443. if (!node_isset(node, *used_node_mask)) {
  4444. node_set(node, *used_node_mask);
  4445. return node;
  4446. }
  4447. for_each_node_state(n, N_MEMORY) {
  4448. /* Don't want a node to appear more than once */
  4449. if (node_isset(n, *used_node_mask))
  4450. continue;
  4451. /* Use the distance array to find the distance */
  4452. val = node_distance(node, n);
  4453. /* Penalize nodes under us ("prefer the next node") */
  4454. val += (n < node);
  4455. /* Give preference to headless and unused nodes */
  4456. tmp = cpumask_of_node(n);
  4457. if (!cpumask_empty(tmp))
  4458. val += PENALTY_FOR_NODE_WITH_CPUS;
  4459. /* Slight preference for less loaded node */
  4460. val *= (MAX_NODE_LOAD*MAX_NUMNODES);
  4461. val += node_load[n];
  4462. if (val < min_val) {
  4463. min_val = val;
  4464. best_node = n;
  4465. }
  4466. }
  4467. if (best_node >= 0)
  4468. node_set(best_node, *used_node_mask);
  4469. return best_node;
  4470. }
  4471. /*
  4472. * Build zonelists ordered by node and zones within node.
  4473. * This results in maximum locality--normal zone overflows into local
  4474. * DMA zone, if any--but risks exhausting DMA zone.
  4475. */
  4476. static void build_zonelists_in_node_order(pg_data_t *pgdat, int *node_order,
  4477. unsigned nr_nodes)
  4478. {
  4479. struct zoneref *zonerefs;
  4480. int i;
  4481. zonerefs = pgdat->node_zonelists[ZONELIST_FALLBACK]._zonerefs;
  4482. for (i = 0; i < nr_nodes; i++) {
  4483. int nr_zones;
  4484. pg_data_t *node = NODE_DATA(node_order[i]);
  4485. nr_zones = build_zonerefs_node(node, zonerefs);
  4486. zonerefs += nr_zones;
  4487. }
  4488. zonerefs->zone = NULL;
  4489. zonerefs->zone_idx = 0;
  4490. }
  4491. /*
  4492. * Build gfp_thisnode zonelists
  4493. */
  4494. static void build_thisnode_zonelists(pg_data_t *pgdat)
  4495. {
  4496. struct zoneref *zonerefs;
  4497. int nr_zones;
  4498. zonerefs = pgdat->node_zonelists[ZONELIST_NOFALLBACK]._zonerefs;
  4499. nr_zones = build_zonerefs_node(pgdat, zonerefs);
  4500. zonerefs += nr_zones;
  4501. zonerefs->zone = NULL;
  4502. zonerefs->zone_idx = 0;
  4503. }
  4504. /*
  4505. * Build zonelists ordered by zone and nodes within zones.
  4506. * This results in conserving DMA zone[s] until all Normal memory is
  4507. * exhausted, but results in overflowing to remote node while memory
  4508. * may still exist in local DMA zone.
  4509. */
  4510. static void build_zonelists(pg_data_t *pgdat)
  4511. {
  4512. static int node_order[MAX_NUMNODES];
  4513. int node, load, nr_nodes = 0;
  4514. nodemask_t used_mask;
  4515. int local_node, prev_node;
  4516. /* NUMA-aware ordering of nodes */
  4517. local_node = pgdat->node_id;
  4518. load = nr_online_nodes;
  4519. prev_node = local_node;
  4520. nodes_clear(used_mask);
  4521. memset(node_order, 0, sizeof(node_order));
  4522. while ((node = find_next_best_node(local_node, &used_mask)) >= 0) {
  4523. /*
  4524. * We don't want to pressure a particular node.
  4525. * So adding penalty to the first node in same
  4526. * distance group to make it round-robin.
  4527. */
  4528. if (node_distance(local_node, node) !=
  4529. node_distance(local_node, prev_node))
  4530. node_load[node] = load;
  4531. node_order[nr_nodes++] = node;
  4532. prev_node = node;
  4533. load--;
  4534. }
  4535. build_zonelists_in_node_order(pgdat, node_order, nr_nodes);
  4536. build_thisnode_zonelists(pgdat);
  4537. }
  4538. #ifdef CONFIG_HAVE_MEMORYLESS_NODES
  4539. /*
  4540. * Return node id of node used for "local" allocations.
  4541. * I.e., first node id of first zone in arg node's generic zonelist.
  4542. * Used for initializing percpu 'numa_mem', which is used primarily
  4543. * for kernel allocations, so use GFP_KERNEL flags to locate zonelist.
  4544. */
  4545. int local_memory_node(int node)
  4546. {
  4547. struct zoneref *z;
  4548. z = first_zones_zonelist(node_zonelist(node, GFP_KERNEL),
  4549. gfp_zone(GFP_KERNEL),
  4550. NULL);
  4551. return zone_to_nid(z->zone);
  4552. }
  4553. #endif
  4554. static void setup_min_unmapped_ratio(void);
  4555. static void setup_min_slab_ratio(void);
  4556. #else /* CONFIG_NUMA */
  4557. static void build_zonelists(pg_data_t *pgdat)
  4558. {
  4559. int node, local_node;
  4560. struct zoneref *zonerefs;
  4561. int nr_zones;
  4562. local_node = pgdat->node_id;
  4563. zonerefs = pgdat->node_zonelists[ZONELIST_FALLBACK]._zonerefs;
  4564. nr_zones = build_zonerefs_node(pgdat, zonerefs);
  4565. zonerefs += nr_zones;
  4566. /*
  4567. * Now we build the zonelist so that it contains the zones
  4568. * of all the other nodes.
  4569. * We don't want to pressure a particular node, so when
  4570. * building the zones for node N, we make sure that the
  4571. * zones coming right after the local ones are those from
  4572. * node N+1 (modulo N)
  4573. */
  4574. for (node = local_node + 1; node < MAX_NUMNODES; node++) {
  4575. if (!node_online(node))
  4576. continue;
  4577. nr_zones = build_zonerefs_node(NODE_DATA(node), zonerefs);
  4578. zonerefs += nr_zones;
  4579. }
  4580. for (node = 0; node < local_node; node++) {
  4581. if (!node_online(node))
  4582. continue;
  4583. nr_zones = build_zonerefs_node(NODE_DATA(node), zonerefs);
  4584. zonerefs += nr_zones;
  4585. }
  4586. zonerefs->zone = NULL;
  4587. zonerefs->zone_idx = 0;
  4588. }
  4589. #endif /* CONFIG_NUMA */
  4590. /*
  4591. * Boot pageset table. One per cpu which is going to be used for all
  4592. * zones and all nodes. The parameters will be set in such a way
  4593. * that an item put on a list will immediately be handed over to
  4594. * the buddy list. This is safe since pageset manipulation is done
  4595. * with interrupts disabled.
  4596. *
  4597. * The boot_pagesets must be kept even after bootup is complete for
  4598. * unused processors and/or zones. They do play a role for bootstrapping
  4599. * hotplugged processors.
  4600. *
  4601. * zoneinfo_show() and maybe other functions do
  4602. * not check if the processor is online before following the pageset pointer.
  4603. * Other parts of the kernel may not check if the zone is available.
  4604. */
  4605. static void setup_pageset(struct per_cpu_pageset *p, unsigned long batch);
  4606. static DEFINE_PER_CPU(struct per_cpu_pageset, boot_pageset);
  4607. static DEFINE_PER_CPU(struct per_cpu_nodestat, boot_nodestats);
  4608. static void __build_all_zonelists(void *data)
  4609. {
  4610. int nid;
  4611. int __maybe_unused cpu;
  4612. pg_data_t *self = data;
  4613. static DEFINE_SPINLOCK(lock);
  4614. spin_lock(&lock);
  4615. #ifdef CONFIG_NUMA
  4616. memset(node_load, 0, sizeof(node_load));
  4617. #endif
  4618. /*
  4619. * This node is hotadded and no memory is yet present. So just
  4620. * building zonelists is fine - no need to touch other nodes.
  4621. */
  4622. if (self && !node_online(self->node_id)) {
  4623. build_zonelists(self);
  4624. } else {
  4625. for_each_online_node(nid) {
  4626. pg_data_t *pgdat = NODE_DATA(nid);
  4627. build_zonelists(pgdat);
  4628. }
  4629. #ifdef CONFIG_HAVE_MEMORYLESS_NODES
  4630. /*
  4631. * We now know the "local memory node" for each node--
  4632. * i.e., the node of the first zone in the generic zonelist.
  4633. * Set up numa_mem percpu variable for on-line cpus. During
  4634. * boot, only the boot cpu should be on-line; we'll init the
  4635. * secondary cpus' numa_mem as they come on-line. During
  4636. * node/memory hotplug, we'll fixup all on-line cpus.
  4637. */
  4638. for_each_online_cpu(cpu)
  4639. set_cpu_numa_mem(cpu, local_memory_node(cpu_to_node(cpu)));
  4640. #endif
  4641. }
  4642. spin_unlock(&lock);
  4643. }
  4644. static noinline void __init
  4645. build_all_zonelists_init(void)
  4646. {
  4647. int cpu;
  4648. __build_all_zonelists(NULL);
  4649. /*
  4650. * Initialize the boot_pagesets that are going to be used
  4651. * for bootstrapping processors. The real pagesets for
  4652. * each zone will be allocated later when the per cpu
  4653. * allocator is available.
  4654. *
  4655. * boot_pagesets are used also for bootstrapping offline
  4656. * cpus if the system is already booted because the pagesets
  4657. * are needed to initialize allocators on a specific cpu too.
  4658. * F.e. the percpu allocator needs the page allocator which
  4659. * needs the percpu allocator in order to allocate its pagesets
  4660. * (a chicken-egg dilemma).
  4661. */
  4662. for_each_possible_cpu(cpu)
  4663. setup_pageset(&per_cpu(boot_pageset, cpu), 0);
  4664. mminit_verify_zonelist();
  4665. cpuset_init_current_mems_allowed();
  4666. }
  4667. /*
  4668. * unless system_state == SYSTEM_BOOTING.
  4669. *
  4670. * __ref due to call of __init annotated helper build_all_zonelists_init
  4671. * [protected by SYSTEM_BOOTING].
  4672. */
  4673. void __ref build_all_zonelists(pg_data_t *pgdat)
  4674. {
  4675. if (system_state == SYSTEM_BOOTING) {
  4676. build_all_zonelists_init();
  4677. } else {
  4678. __build_all_zonelists(pgdat);
  4679. /* cpuset refresh routine should be here */
  4680. }
  4681. vm_total_pages = nr_free_pagecache_pages();
  4682. /*
  4683. * Disable grouping by mobility if the number of pages in the
  4684. * system is too low to allow the mechanism to work. It would be
  4685. * more accurate, but expensive to check per-zone. This check is
  4686. * made on memory-hotadd so a system can start with mobility
  4687. * disabled and enable it later
  4688. */
  4689. if (vm_total_pages < (pageblock_nr_pages * MIGRATE_TYPES))
  4690. page_group_by_mobility_disabled = 1;
  4691. else
  4692. page_group_by_mobility_disabled = 0;
  4693. pr_info("Built %i zonelists, mobility grouping %s. Total pages: %ld\n",
  4694. nr_online_nodes,
  4695. page_group_by_mobility_disabled ? "off" : "on",
  4696. vm_total_pages);
  4697. #ifdef CONFIG_NUMA
  4698. pr_info("Policy zone: %s\n", zone_names[policy_zone]);
  4699. #endif
  4700. }
  4701. /* If zone is ZONE_MOVABLE but memory is mirrored, it is an overlapped init */
  4702. static bool __meminit
  4703. overlap_memmap_init(unsigned long zone, unsigned long *pfn)
  4704. {
  4705. #ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP
  4706. static struct memblock_region *r;
  4707. if (mirrored_kernelcore && zone == ZONE_MOVABLE) {
  4708. if (!r || *pfn >= memblock_region_memory_end_pfn(r)) {
  4709. for_each_memblock(memory, r) {
  4710. if (*pfn < memblock_region_memory_end_pfn(r))
  4711. break;
  4712. }
  4713. }
  4714. if (*pfn >= memblock_region_memory_base_pfn(r) &&
  4715. memblock_is_mirror(r)) {
  4716. *pfn = memblock_region_memory_end_pfn(r);
  4717. return true;
  4718. }
  4719. }
  4720. #endif
  4721. return false;
  4722. }
  4723. /*
  4724. * Initially all pages are reserved - free ones are freed
  4725. * up by memblock_free_all() once the early boot process is
  4726. * done. Non-atomic initialization, single-pass.
  4727. */
  4728. void __meminit memmap_init_zone(unsigned long size, int nid, unsigned long zone,
  4729. unsigned long start_pfn, enum memmap_context context,
  4730. struct vmem_altmap *altmap)
  4731. {
  4732. unsigned long pfn, end_pfn = start_pfn + size;
  4733. struct page *page;
  4734. if (highest_memmap_pfn < end_pfn - 1)
  4735. highest_memmap_pfn = end_pfn - 1;
  4736. #ifdef CONFIG_ZONE_DEVICE
  4737. /*
  4738. * Honor reservation requested by the driver for this ZONE_DEVICE
  4739. * memory. We limit the total number of pages to initialize to just
  4740. * those that might contain the memory mapping. We will defer the
  4741. * ZONE_DEVICE page initialization until after we have released
  4742. * the hotplug lock.
  4743. */
  4744. if (zone == ZONE_DEVICE) {
  4745. if (!altmap)
  4746. return;
  4747. if (start_pfn == altmap->base_pfn)
  4748. start_pfn += altmap->reserve;
  4749. end_pfn = altmap->base_pfn + vmem_altmap_offset(altmap);
  4750. }
  4751. #endif
  4752. for (pfn = start_pfn; pfn < end_pfn; pfn++) {
  4753. /*
  4754. * There can be holes in boot-time mem_map[]s handed to this
  4755. * function. They do not exist on hotplugged memory.
  4756. */
  4757. if (context == MEMMAP_EARLY) {
  4758. if (!early_pfn_valid(pfn))
  4759. continue;
  4760. if (!early_pfn_in_nid(pfn, nid))
  4761. continue;
  4762. if (overlap_memmap_init(zone, &pfn))
  4763. continue;
  4764. if (defer_init(nid, pfn, end_pfn))
  4765. break;
  4766. }
  4767. page = pfn_to_page(pfn);
  4768. __init_single_page(page, pfn, zone, nid);
  4769. if (context == MEMMAP_HOTPLUG)
  4770. __SetPageReserved(page);
  4771. /*
  4772. * Mark the block movable so that blocks are reserved for
  4773. * movable at startup. This will force kernel allocations
  4774. * to reserve their blocks rather than leaking throughout
  4775. * the address space during boot when many long-lived
  4776. * kernel allocations are made.
  4777. *
  4778. * bitmap is created for zone's valid pfn range. but memmap
  4779. * can be created for invalid pages (for alignment)
  4780. * check here not to call set_pageblock_migratetype() against
  4781. * pfn out of zone.
  4782. */
  4783. if (!(pfn & (pageblock_nr_pages - 1))) {
  4784. set_pageblock_migratetype(page, MIGRATE_MOVABLE);
  4785. cond_resched();
  4786. }
  4787. }
  4788. }
  4789. #ifdef CONFIG_ZONE_DEVICE
  4790. void __ref memmap_init_zone_device(struct zone *zone,
  4791. unsigned long start_pfn,
  4792. unsigned long size,
  4793. struct dev_pagemap *pgmap)
  4794. {
  4795. unsigned long pfn, end_pfn = start_pfn + size;
  4796. struct pglist_data *pgdat = zone->zone_pgdat;
  4797. unsigned long zone_idx = zone_idx(zone);
  4798. unsigned long start = jiffies;
  4799. int nid = pgdat->node_id;
  4800. if (WARN_ON_ONCE(!pgmap || !is_dev_zone(zone)))
  4801. return;
  4802. /*
  4803. * The call to memmap_init_zone should have already taken care
  4804. * of the pages reserved for the memmap, so we can just jump to
  4805. * the end of that region and start processing the device pages.
  4806. */
  4807. if (pgmap->altmap_valid) {
  4808. struct vmem_altmap *altmap = &pgmap->altmap;
  4809. start_pfn = altmap->base_pfn + vmem_altmap_offset(altmap);
  4810. size = end_pfn - start_pfn;
  4811. }
  4812. for (pfn = start_pfn; pfn < end_pfn; pfn++) {
  4813. struct page *page = pfn_to_page(pfn);
  4814. __init_single_page(page, pfn, zone_idx, nid);
  4815. /*
  4816. * Mark page reserved as it will need to wait for onlining
  4817. * phase for it to be fully associated with a zone.
  4818. *
  4819. * We can use the non-atomic __set_bit operation for setting
  4820. * the flag as we are still initializing the pages.
  4821. */
  4822. __SetPageReserved(page);
  4823. /*
  4824. * ZONE_DEVICE pages union ->lru with a ->pgmap back
  4825. * pointer and hmm_data. It is a bug if a ZONE_DEVICE
  4826. * page is ever freed or placed on a driver-private list.
  4827. */
  4828. page->pgmap = pgmap;
  4829. page->hmm_data = 0;
  4830. /*
  4831. * Mark the block movable so that blocks are reserved for
  4832. * movable at startup. This will force kernel allocations
  4833. * to reserve their blocks rather than leaking throughout
  4834. * the address space during boot when many long-lived
  4835. * kernel allocations are made.
  4836. *
  4837. * bitmap is created for zone's valid pfn range. but memmap
  4838. * can be created for invalid pages (for alignment)
  4839. * check here not to call set_pageblock_migratetype() against
  4840. * pfn out of zone.
  4841. *
  4842. * Please note that MEMMAP_HOTPLUG path doesn't clear memmap
  4843. * because this is done early in sparse_add_one_section
  4844. */
  4845. if (!(pfn & (pageblock_nr_pages - 1))) {
  4846. set_pageblock_migratetype(page, MIGRATE_MOVABLE);
  4847. cond_resched();
  4848. }
  4849. }
  4850. pr_info("%s initialised, %lu pages in %ums\n", dev_name(pgmap->dev),
  4851. size, jiffies_to_msecs(jiffies - start));
  4852. }
  4853. #endif
  4854. static void __meminit zone_init_free_lists(struct zone *zone)
  4855. {
  4856. unsigned int order, t;
  4857. for_each_migratetype_order(order, t) {
  4858. INIT_LIST_HEAD(&zone->free_area[order].free_list[t]);
  4859. zone->free_area[order].nr_free = 0;
  4860. }
  4861. }
  4862. void __meminit __weak memmap_init(unsigned long size, int nid,
  4863. unsigned long zone, unsigned long start_pfn)
  4864. {
  4865. memmap_init_zone(size, nid, zone, start_pfn, MEMMAP_EARLY, NULL);
  4866. }
  4867. static int zone_batchsize(struct zone *zone)
  4868. {
  4869. #ifdef CONFIG_MMU
  4870. int batch;
  4871. /*
  4872. * The per-cpu-pages pools are set to around 1000th of the
  4873. * size of the zone.
  4874. */
  4875. batch = zone->managed_pages / 1024;
  4876. /* But no more than a meg. */
  4877. if (batch * PAGE_SIZE > 1024 * 1024)
  4878. batch = (1024 * 1024) / PAGE_SIZE;
  4879. batch /= 4; /* We effectively *= 4 below */
  4880. if (batch < 1)
  4881. batch = 1;
  4882. /*
  4883. * Clamp the batch to a 2^n - 1 value. Having a power
  4884. * of 2 value was found to be more likely to have
  4885. * suboptimal cache aliasing properties in some cases.
  4886. *
  4887. * For example if 2 tasks are alternately allocating
  4888. * batches of pages, one task can end up with a lot
  4889. * of pages of one half of the possible page colors
  4890. * and the other with pages of the other colors.
  4891. */
  4892. batch = rounddown_pow_of_two(batch + batch/2) - 1;
  4893. return batch;
  4894. #else
  4895. /* The deferral and batching of frees should be suppressed under NOMMU
  4896. * conditions.
  4897. *
  4898. * The problem is that NOMMU needs to be able to allocate large chunks
  4899. * of contiguous memory as there's no hardware page translation to
  4900. * assemble apparent contiguous memory from discontiguous pages.
  4901. *
  4902. * Queueing large contiguous runs of pages for batching, however,
  4903. * causes the pages to actually be freed in smaller chunks. As there
  4904. * can be a significant delay between the individual batches being
  4905. * recycled, this leads to the once large chunks of space being
  4906. * fragmented and becoming unavailable for high-order allocations.
  4907. */
  4908. return 0;
  4909. #endif
  4910. }
  4911. /*
  4912. * pcp->high and pcp->batch values are related and dependent on one another:
  4913. * ->batch must never be higher then ->high.
  4914. * The following function updates them in a safe manner without read side
  4915. * locking.
  4916. *
  4917. * Any new users of pcp->batch and pcp->high should ensure they can cope with
  4918. * those fields changing asynchronously (acording the the above rule).
  4919. *
  4920. * mutex_is_locked(&pcp_batch_high_lock) required when calling this function
  4921. * outside of boot time (or some other assurance that no concurrent updaters
  4922. * exist).
  4923. */
  4924. static void pageset_update(struct per_cpu_pages *pcp, unsigned long high,
  4925. unsigned long batch)
  4926. {
  4927. /* start with a fail safe value for batch */
  4928. pcp->batch = 1;
  4929. smp_wmb();
  4930. /* Update high, then batch, in order */
  4931. pcp->high = high;
  4932. smp_wmb();
  4933. pcp->batch = batch;
  4934. }
  4935. /* a companion to pageset_set_high() */
  4936. static void pageset_set_batch(struct per_cpu_pageset *p, unsigned long batch)
  4937. {
  4938. pageset_update(&p->pcp, 6 * batch, max(1UL, 1 * batch));
  4939. }
  4940. static void pageset_init(struct per_cpu_pageset *p)
  4941. {
  4942. struct per_cpu_pages *pcp;
  4943. int migratetype;
  4944. memset(p, 0, sizeof(*p));
  4945. pcp = &p->pcp;
  4946. pcp->count = 0;
  4947. for (migratetype = 0; migratetype < MIGRATE_PCPTYPES; migratetype++)
  4948. INIT_LIST_HEAD(&pcp->lists[migratetype]);
  4949. }
  4950. static void setup_pageset(struct per_cpu_pageset *p, unsigned long batch)
  4951. {
  4952. pageset_init(p);
  4953. pageset_set_batch(p, batch);
  4954. }
  4955. /*
  4956. * pageset_set_high() sets the high water mark for hot per_cpu_pagelist
  4957. * to the value high for the pageset p.
  4958. */
  4959. static void pageset_set_high(struct per_cpu_pageset *p,
  4960. unsigned long high)
  4961. {
  4962. unsigned long batch = max(1UL, high / 4);
  4963. if ((high / 4) > (PAGE_SHIFT * 8))
  4964. batch = PAGE_SHIFT * 8;
  4965. pageset_update(&p->pcp, high, batch);
  4966. }
  4967. static void pageset_set_high_and_batch(struct zone *zone,
  4968. struct per_cpu_pageset *pcp)
  4969. {
  4970. if (percpu_pagelist_fraction)
  4971. pageset_set_high(pcp,
  4972. (zone->managed_pages /
  4973. percpu_pagelist_fraction));
  4974. else
  4975. pageset_set_batch(pcp, zone_batchsize(zone));
  4976. }
  4977. static void __meminit zone_pageset_init(struct zone *zone, int cpu)
  4978. {
  4979. struct per_cpu_pageset *pcp = per_cpu_ptr(zone->pageset, cpu);
  4980. pageset_init(pcp);
  4981. pageset_set_high_and_batch(zone, pcp);
  4982. }
  4983. void __meminit setup_zone_pageset(struct zone *zone)
  4984. {
  4985. int cpu;
  4986. zone->pageset = alloc_percpu(struct per_cpu_pageset);
  4987. for_each_possible_cpu(cpu)
  4988. zone_pageset_init(zone, cpu);
  4989. }
  4990. /*
  4991. * Allocate per cpu pagesets and initialize them.
  4992. * Before this call only boot pagesets were available.
  4993. */
  4994. void __init setup_per_cpu_pageset(void)
  4995. {
  4996. struct pglist_data *pgdat;
  4997. struct zone *zone;
  4998. for_each_populated_zone(zone)
  4999. setup_zone_pageset(zone);
  5000. for_each_online_pgdat(pgdat)
  5001. pgdat->per_cpu_nodestats =
  5002. alloc_percpu(struct per_cpu_nodestat);
  5003. }
  5004. static __meminit void zone_pcp_init(struct zone *zone)
  5005. {
  5006. /*
  5007. * per cpu subsystem is not up at this point. The following code
  5008. * relies on the ability of the linker to provide the
  5009. * offset of a (static) per cpu variable into the per cpu area.
  5010. */
  5011. zone->pageset = &boot_pageset;
  5012. if (populated_zone(zone))
  5013. printk(KERN_DEBUG " %s zone: %lu pages, LIFO batch:%u\n",
  5014. zone->name, zone->present_pages,
  5015. zone_batchsize(zone));
  5016. }
  5017. void __meminit init_currently_empty_zone(struct zone *zone,
  5018. unsigned long zone_start_pfn,
  5019. unsigned long size)
  5020. {
  5021. struct pglist_data *pgdat = zone->zone_pgdat;
  5022. pgdat->nr_zones = zone_idx(zone) + 1;
  5023. zone->zone_start_pfn = zone_start_pfn;
  5024. mminit_dprintk(MMINIT_TRACE, "memmap_init",
  5025. "Initialising map node %d zone %lu pfns %lu -> %lu\n",
  5026. pgdat->node_id,
  5027. (unsigned long)zone_idx(zone),
  5028. zone_start_pfn, (zone_start_pfn + size));
  5029. zone_init_free_lists(zone);
  5030. zone->initialized = 1;
  5031. }
  5032. #ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP
  5033. #ifndef CONFIG_HAVE_ARCH_EARLY_PFN_TO_NID
  5034. /*
  5035. * Required by SPARSEMEM. Given a PFN, return what node the PFN is on.
  5036. */
  5037. int __meminit __early_pfn_to_nid(unsigned long pfn,
  5038. struct mminit_pfnnid_cache *state)
  5039. {
  5040. unsigned long start_pfn, end_pfn;
  5041. int nid;
  5042. if (state->last_start <= pfn && pfn < state->last_end)
  5043. return state->last_nid;
  5044. nid = memblock_search_pfn_nid(pfn, &start_pfn, &end_pfn);
  5045. if (nid != -1) {
  5046. state->last_start = start_pfn;
  5047. state->last_end = end_pfn;
  5048. state->last_nid = nid;
  5049. }
  5050. return nid;
  5051. }
  5052. #endif /* CONFIG_HAVE_ARCH_EARLY_PFN_TO_NID */
  5053. /**
  5054. * free_bootmem_with_active_regions - Call memblock_free_early_nid for each active range
  5055. * @nid: The node to free memory on. If MAX_NUMNODES, all nodes are freed.
  5056. * @max_low_pfn: The highest PFN that will be passed to memblock_free_early_nid
  5057. *
  5058. * If an architecture guarantees that all ranges registered contain no holes
  5059. * and may be freed, this this function may be used instead of calling
  5060. * memblock_free_early_nid() manually.
  5061. */
  5062. void __init free_bootmem_with_active_regions(int nid, unsigned long max_low_pfn)
  5063. {
  5064. unsigned long start_pfn, end_pfn;
  5065. int i, this_nid;
  5066. for_each_mem_pfn_range(i, nid, &start_pfn, &end_pfn, &this_nid) {
  5067. start_pfn = min(start_pfn, max_low_pfn);
  5068. end_pfn = min(end_pfn, max_low_pfn);
  5069. if (start_pfn < end_pfn)
  5070. memblock_free_early_nid(PFN_PHYS(start_pfn),
  5071. (end_pfn - start_pfn) << PAGE_SHIFT,
  5072. this_nid);
  5073. }
  5074. }
  5075. /**
  5076. * sparse_memory_present_with_active_regions - Call memory_present for each active range
  5077. * @nid: The node to call memory_present for. If MAX_NUMNODES, all nodes will be used.
  5078. *
  5079. * If an architecture guarantees that all ranges registered contain no holes and may
  5080. * be freed, this function may be used instead of calling memory_present() manually.
  5081. */
  5082. void __init sparse_memory_present_with_active_regions(int nid)
  5083. {
  5084. unsigned long start_pfn, end_pfn;
  5085. int i, this_nid;
  5086. for_each_mem_pfn_range(i, nid, &start_pfn, &end_pfn, &this_nid)
  5087. memory_present(this_nid, start_pfn, end_pfn);
  5088. }
  5089. /**
  5090. * get_pfn_range_for_nid - Return the start and end page frames for a node
  5091. * @nid: The nid to return the range for. If MAX_NUMNODES, the min and max PFN are returned.
  5092. * @start_pfn: Passed by reference. On return, it will have the node start_pfn.
  5093. * @end_pfn: Passed by reference. On return, it will have the node end_pfn.
  5094. *
  5095. * It returns the start and end page frame of a node based on information
  5096. * provided by memblock_set_node(). If called for a node
  5097. * with no available memory, a warning is printed and the start and end
  5098. * PFNs will be 0.
  5099. */
  5100. void __meminit get_pfn_range_for_nid(unsigned int nid,
  5101. unsigned long *start_pfn, unsigned long *end_pfn)
  5102. {
  5103. unsigned long this_start_pfn, this_end_pfn;
  5104. int i;
  5105. *start_pfn = -1UL;
  5106. *end_pfn = 0;
  5107. for_each_mem_pfn_range(i, nid, &this_start_pfn, &this_end_pfn, NULL) {
  5108. *start_pfn = min(*start_pfn, this_start_pfn);
  5109. *end_pfn = max(*end_pfn, this_end_pfn);
  5110. }
  5111. if (*start_pfn == -1UL)
  5112. *start_pfn = 0;
  5113. }
  5114. /*
  5115. * This finds a zone that can be used for ZONE_MOVABLE pages. The
  5116. * assumption is made that zones within a node are ordered in monotonic
  5117. * increasing memory addresses so that the "highest" populated zone is used
  5118. */
  5119. static void __init find_usable_zone_for_movable(void)
  5120. {
  5121. int zone_index;
  5122. for (zone_index = MAX_NR_ZONES - 1; zone_index >= 0; zone_index--) {
  5123. if (zone_index == ZONE_MOVABLE)
  5124. continue;
  5125. if (arch_zone_highest_possible_pfn[zone_index] >
  5126. arch_zone_lowest_possible_pfn[zone_index])
  5127. break;
  5128. }
  5129. VM_BUG_ON(zone_index == -1);
  5130. movable_zone = zone_index;
  5131. }
  5132. /*
  5133. * The zone ranges provided by the architecture do not include ZONE_MOVABLE
  5134. * because it is sized independent of architecture. Unlike the other zones,
  5135. * the starting point for ZONE_MOVABLE is not fixed. It may be different
  5136. * in each node depending on the size of each node and how evenly kernelcore
  5137. * is distributed. This helper function adjusts the zone ranges
  5138. * provided by the architecture for a given node by using the end of the
  5139. * highest usable zone for ZONE_MOVABLE. This preserves the assumption that
  5140. * zones within a node are in order of monotonic increases memory addresses
  5141. */
  5142. static void __meminit adjust_zone_range_for_zone_movable(int nid,
  5143. unsigned long zone_type,
  5144. unsigned long node_start_pfn,
  5145. unsigned long node_end_pfn,
  5146. unsigned long *zone_start_pfn,
  5147. unsigned long *zone_end_pfn)
  5148. {
  5149. /* Only adjust if ZONE_MOVABLE is on this node */
  5150. if (zone_movable_pfn[nid]) {
  5151. /* Size ZONE_MOVABLE */
  5152. if (zone_type == ZONE_MOVABLE) {
  5153. *zone_start_pfn = zone_movable_pfn[nid];
  5154. *zone_end_pfn = min(node_end_pfn,
  5155. arch_zone_highest_possible_pfn[movable_zone]);
  5156. /* Adjust for ZONE_MOVABLE starting within this range */
  5157. } else if (!mirrored_kernelcore &&
  5158. *zone_start_pfn < zone_movable_pfn[nid] &&
  5159. *zone_end_pfn > zone_movable_pfn[nid]) {
  5160. *zone_end_pfn = zone_movable_pfn[nid];
  5161. /* Check if this whole range is within ZONE_MOVABLE */
  5162. } else if (*zone_start_pfn >= zone_movable_pfn[nid])
  5163. *zone_start_pfn = *zone_end_pfn;
  5164. }
  5165. }
  5166. /*
  5167. * Return the number of pages a zone spans in a node, including holes
  5168. * present_pages = zone_spanned_pages_in_node() - zone_absent_pages_in_node()
  5169. */
  5170. static unsigned long __meminit zone_spanned_pages_in_node(int nid,
  5171. unsigned long zone_type,
  5172. unsigned long node_start_pfn,
  5173. unsigned long node_end_pfn,
  5174. unsigned long *zone_start_pfn,
  5175. unsigned long *zone_end_pfn,
  5176. unsigned long *ignored)
  5177. {
  5178. /* When hotadd a new node from cpu_up(), the node should be empty */
  5179. if (!node_start_pfn && !node_end_pfn)
  5180. return 0;
  5181. /* Get the start and end of the zone */
  5182. *zone_start_pfn = arch_zone_lowest_possible_pfn[zone_type];
  5183. *zone_end_pfn = arch_zone_highest_possible_pfn[zone_type];
  5184. adjust_zone_range_for_zone_movable(nid, zone_type,
  5185. node_start_pfn, node_end_pfn,
  5186. zone_start_pfn, zone_end_pfn);
  5187. /* Check that this node has pages within the zone's required range */
  5188. if (*zone_end_pfn < node_start_pfn || *zone_start_pfn > node_end_pfn)
  5189. return 0;
  5190. /* Move the zone boundaries inside the node if necessary */
  5191. *zone_end_pfn = min(*zone_end_pfn, node_end_pfn);
  5192. *zone_start_pfn = max(*zone_start_pfn, node_start_pfn);
  5193. /* Return the spanned pages */
  5194. return *zone_end_pfn - *zone_start_pfn;
  5195. }
  5196. /*
  5197. * Return the number of holes in a range on a node. If nid is MAX_NUMNODES,
  5198. * then all holes in the requested range will be accounted for.
  5199. */
  5200. unsigned long __meminit __absent_pages_in_range(int nid,
  5201. unsigned long range_start_pfn,
  5202. unsigned long range_end_pfn)
  5203. {
  5204. unsigned long nr_absent = range_end_pfn - range_start_pfn;
  5205. unsigned long start_pfn, end_pfn;
  5206. int i;
  5207. for_each_mem_pfn_range(i, nid, &start_pfn, &end_pfn, NULL) {
  5208. start_pfn = clamp(start_pfn, range_start_pfn, range_end_pfn);
  5209. end_pfn = clamp(end_pfn, range_start_pfn, range_end_pfn);
  5210. nr_absent -= end_pfn - start_pfn;
  5211. }
  5212. return nr_absent;
  5213. }
  5214. /**
  5215. * absent_pages_in_range - Return number of page frames in holes within a range
  5216. * @start_pfn: The start PFN to start searching for holes
  5217. * @end_pfn: The end PFN to stop searching for holes
  5218. *
  5219. * It returns the number of pages frames in memory holes within a range.
  5220. */
  5221. unsigned long __init absent_pages_in_range(unsigned long start_pfn,
  5222. unsigned long end_pfn)
  5223. {
  5224. return __absent_pages_in_range(MAX_NUMNODES, start_pfn, end_pfn);
  5225. }
  5226. /* Return the number of page frames in holes in a zone on a node */
  5227. static unsigned long __meminit zone_absent_pages_in_node(int nid,
  5228. unsigned long zone_type,
  5229. unsigned long node_start_pfn,
  5230. unsigned long node_end_pfn,
  5231. unsigned long *ignored)
  5232. {
  5233. unsigned long zone_low = arch_zone_lowest_possible_pfn[zone_type];
  5234. unsigned long zone_high = arch_zone_highest_possible_pfn[zone_type];
  5235. unsigned long zone_start_pfn, zone_end_pfn;
  5236. unsigned long nr_absent;
  5237. /* When hotadd a new node from cpu_up(), the node should be empty */
  5238. if (!node_start_pfn && !node_end_pfn)
  5239. return 0;
  5240. zone_start_pfn = clamp(node_start_pfn, zone_low, zone_high);
  5241. zone_end_pfn = clamp(node_end_pfn, zone_low, zone_high);
  5242. adjust_zone_range_for_zone_movable(nid, zone_type,
  5243. node_start_pfn, node_end_pfn,
  5244. &zone_start_pfn, &zone_end_pfn);
  5245. nr_absent = __absent_pages_in_range(nid, zone_start_pfn, zone_end_pfn);
  5246. /*
  5247. * ZONE_MOVABLE handling.
  5248. * Treat pages to be ZONE_MOVABLE in ZONE_NORMAL as absent pages
  5249. * and vice versa.
  5250. */
  5251. if (mirrored_kernelcore && zone_movable_pfn[nid]) {
  5252. unsigned long start_pfn, end_pfn;
  5253. struct memblock_region *r;
  5254. for_each_memblock(memory, r) {
  5255. start_pfn = clamp(memblock_region_memory_base_pfn(r),
  5256. zone_start_pfn, zone_end_pfn);
  5257. end_pfn = clamp(memblock_region_memory_end_pfn(r),
  5258. zone_start_pfn, zone_end_pfn);
  5259. if (zone_type == ZONE_MOVABLE &&
  5260. memblock_is_mirror(r))
  5261. nr_absent += end_pfn - start_pfn;
  5262. if (zone_type == ZONE_NORMAL &&
  5263. !memblock_is_mirror(r))
  5264. nr_absent += end_pfn - start_pfn;
  5265. }
  5266. }
  5267. return nr_absent;
  5268. }
  5269. #else /* CONFIG_HAVE_MEMBLOCK_NODE_MAP */
  5270. static inline unsigned long __meminit zone_spanned_pages_in_node(int nid,
  5271. unsigned long zone_type,
  5272. unsigned long node_start_pfn,
  5273. unsigned long node_end_pfn,
  5274. unsigned long *zone_start_pfn,
  5275. unsigned long *zone_end_pfn,
  5276. unsigned long *zones_size)
  5277. {
  5278. unsigned int zone;
  5279. *zone_start_pfn = node_start_pfn;
  5280. for (zone = 0; zone < zone_type; zone++)
  5281. *zone_start_pfn += zones_size[zone];
  5282. *zone_end_pfn = *zone_start_pfn + zones_size[zone_type];
  5283. return zones_size[zone_type];
  5284. }
  5285. static inline unsigned long __meminit zone_absent_pages_in_node(int nid,
  5286. unsigned long zone_type,
  5287. unsigned long node_start_pfn,
  5288. unsigned long node_end_pfn,
  5289. unsigned long *zholes_size)
  5290. {
  5291. if (!zholes_size)
  5292. return 0;
  5293. return zholes_size[zone_type];
  5294. }
  5295. #endif /* CONFIG_HAVE_MEMBLOCK_NODE_MAP */
  5296. static void __meminit calculate_node_totalpages(struct pglist_data *pgdat,
  5297. unsigned long node_start_pfn,
  5298. unsigned long node_end_pfn,
  5299. unsigned long *zones_size,
  5300. unsigned long *zholes_size)
  5301. {
  5302. unsigned long realtotalpages = 0, totalpages = 0;
  5303. enum zone_type i;
  5304. for (i = 0; i < MAX_NR_ZONES; i++) {
  5305. struct zone *zone = pgdat->node_zones + i;
  5306. unsigned long zone_start_pfn, zone_end_pfn;
  5307. unsigned long size, real_size;
  5308. size = zone_spanned_pages_in_node(pgdat->node_id, i,
  5309. node_start_pfn,
  5310. node_end_pfn,
  5311. &zone_start_pfn,
  5312. &zone_end_pfn,
  5313. zones_size);
  5314. real_size = size - zone_absent_pages_in_node(pgdat->node_id, i,
  5315. node_start_pfn, node_end_pfn,
  5316. zholes_size);
  5317. if (size)
  5318. zone->zone_start_pfn = zone_start_pfn;
  5319. else
  5320. zone->zone_start_pfn = 0;
  5321. zone->spanned_pages = size;
  5322. zone->present_pages = real_size;
  5323. totalpages += size;
  5324. realtotalpages += real_size;
  5325. }
  5326. pgdat->node_spanned_pages = totalpages;
  5327. pgdat->node_present_pages = realtotalpages;
  5328. printk(KERN_DEBUG "On node %d totalpages: %lu\n", pgdat->node_id,
  5329. realtotalpages);
  5330. }
  5331. #ifndef CONFIG_SPARSEMEM
  5332. /*
  5333. * Calculate the size of the zone->blockflags rounded to an unsigned long
  5334. * Start by making sure zonesize is a multiple of pageblock_order by rounding
  5335. * up. Then use 1 NR_PAGEBLOCK_BITS worth of bits per pageblock, finally
  5336. * round what is now in bits to nearest long in bits, then return it in
  5337. * bytes.
  5338. */
  5339. static unsigned long __init usemap_size(unsigned long zone_start_pfn, unsigned long zonesize)
  5340. {
  5341. unsigned long usemapsize;
  5342. zonesize += zone_start_pfn & (pageblock_nr_pages-1);
  5343. usemapsize = roundup(zonesize, pageblock_nr_pages);
  5344. usemapsize = usemapsize >> pageblock_order;
  5345. usemapsize *= NR_PAGEBLOCK_BITS;
  5346. usemapsize = roundup(usemapsize, 8 * sizeof(unsigned long));
  5347. return usemapsize / 8;
  5348. }
  5349. static void __ref setup_usemap(struct pglist_data *pgdat,
  5350. struct zone *zone,
  5351. unsigned long zone_start_pfn,
  5352. unsigned long zonesize)
  5353. {
  5354. unsigned long usemapsize = usemap_size(zone_start_pfn, zonesize);
  5355. zone->pageblock_flags = NULL;
  5356. if (usemapsize)
  5357. zone->pageblock_flags =
  5358. memblock_alloc_node_nopanic(usemapsize,
  5359. pgdat->node_id);
  5360. }
  5361. #else
  5362. static inline void setup_usemap(struct pglist_data *pgdat, struct zone *zone,
  5363. unsigned long zone_start_pfn, unsigned long zonesize) {}
  5364. #endif /* CONFIG_SPARSEMEM */
  5365. #ifdef CONFIG_HUGETLB_PAGE_SIZE_VARIABLE
  5366. /* Initialise the number of pages represented by NR_PAGEBLOCK_BITS */
  5367. void __init set_pageblock_order(void)
  5368. {
  5369. unsigned int order;
  5370. /* Check that pageblock_nr_pages has not already been setup */
  5371. if (pageblock_order)
  5372. return;
  5373. if (HPAGE_SHIFT > PAGE_SHIFT)
  5374. order = HUGETLB_PAGE_ORDER;
  5375. else
  5376. order = MAX_ORDER - 1;
  5377. /*
  5378. * Assume the largest contiguous order of interest is a huge page.
  5379. * This value may be variable depending on boot parameters on IA64 and
  5380. * powerpc.
  5381. */
  5382. pageblock_order = order;
  5383. }
  5384. #else /* CONFIG_HUGETLB_PAGE_SIZE_VARIABLE */
  5385. /*
  5386. * When CONFIG_HUGETLB_PAGE_SIZE_VARIABLE is not set, set_pageblock_order()
  5387. * is unused as pageblock_order is set at compile-time. See
  5388. * include/linux/pageblock-flags.h for the values of pageblock_order based on
  5389. * the kernel config
  5390. */
  5391. void __init set_pageblock_order(void)
  5392. {
  5393. }
  5394. #endif /* CONFIG_HUGETLB_PAGE_SIZE_VARIABLE */
  5395. static unsigned long __init calc_memmap_size(unsigned long spanned_pages,
  5396. unsigned long present_pages)
  5397. {
  5398. unsigned long pages = spanned_pages;
  5399. /*
  5400. * Provide a more accurate estimation if there are holes within
  5401. * the zone and SPARSEMEM is in use. If there are holes within the
  5402. * zone, each populated memory region may cost us one or two extra
  5403. * memmap pages due to alignment because memmap pages for each
  5404. * populated regions may not be naturally aligned on page boundary.
  5405. * So the (present_pages >> 4) heuristic is a tradeoff for that.
  5406. */
  5407. if (spanned_pages > present_pages + (present_pages >> 4) &&
  5408. IS_ENABLED(CONFIG_SPARSEMEM))
  5409. pages = present_pages;
  5410. return PAGE_ALIGN(pages * sizeof(struct page)) >> PAGE_SHIFT;
  5411. }
  5412. #ifdef CONFIG_TRANSPARENT_HUGEPAGE
  5413. static void pgdat_init_split_queue(struct pglist_data *pgdat)
  5414. {
  5415. spin_lock_init(&pgdat->split_queue_lock);
  5416. INIT_LIST_HEAD(&pgdat->split_queue);
  5417. pgdat->split_queue_len = 0;
  5418. }
  5419. #else
  5420. static void pgdat_init_split_queue(struct pglist_data *pgdat) {}
  5421. #endif
  5422. #ifdef CONFIG_COMPACTION
  5423. static void pgdat_init_kcompactd(struct pglist_data *pgdat)
  5424. {
  5425. init_waitqueue_head(&pgdat->kcompactd_wait);
  5426. }
  5427. #else
  5428. static void pgdat_init_kcompactd(struct pglist_data *pgdat) {}
  5429. #endif
  5430. static void __meminit pgdat_init_internals(struct pglist_data *pgdat)
  5431. {
  5432. pgdat_resize_init(pgdat);
  5433. pgdat_init_split_queue(pgdat);
  5434. pgdat_init_kcompactd(pgdat);
  5435. init_waitqueue_head(&pgdat->kswapd_wait);
  5436. init_waitqueue_head(&pgdat->pfmemalloc_wait);
  5437. pgdat_page_ext_init(pgdat);
  5438. spin_lock_init(&pgdat->lru_lock);
  5439. lruvec_init(node_lruvec(pgdat));
  5440. }
  5441. static void __meminit zone_init_internals(struct zone *zone, enum zone_type idx, int nid,
  5442. unsigned long remaining_pages)
  5443. {
  5444. zone->managed_pages = remaining_pages;
  5445. zone_set_nid(zone, nid);
  5446. zone->name = zone_names[idx];
  5447. zone->zone_pgdat = NODE_DATA(nid);
  5448. spin_lock_init(&zone->lock);
  5449. zone_seqlock_init(zone);
  5450. zone_pcp_init(zone);
  5451. }
  5452. /*
  5453. * Set up the zone data structures
  5454. * - init pgdat internals
  5455. * - init all zones belonging to this node
  5456. *
  5457. * NOTE: this function is only called during memory hotplug
  5458. */
  5459. #ifdef CONFIG_MEMORY_HOTPLUG
  5460. void __ref free_area_init_core_hotplug(int nid)
  5461. {
  5462. enum zone_type z;
  5463. pg_data_t *pgdat = NODE_DATA(nid);
  5464. pgdat_init_internals(pgdat);
  5465. for (z = 0; z < MAX_NR_ZONES; z++)
  5466. zone_init_internals(&pgdat->node_zones[z], z, nid, 0);
  5467. }
  5468. #endif
  5469. /*
  5470. * Set up the zone data structures:
  5471. * - mark all pages reserved
  5472. * - mark all memory queues empty
  5473. * - clear the memory bitmaps
  5474. *
  5475. * NOTE: pgdat should get zeroed by caller.
  5476. * NOTE: this function is only called during early init.
  5477. */
  5478. static void __init free_area_init_core(struct pglist_data *pgdat)
  5479. {
  5480. enum zone_type j;
  5481. int nid = pgdat->node_id;
  5482. pgdat_init_internals(pgdat);
  5483. pgdat->per_cpu_nodestats = &boot_nodestats;
  5484. for (j = 0; j < MAX_NR_ZONES; j++) {
  5485. struct zone *zone = pgdat->node_zones + j;
  5486. unsigned long size, freesize, memmap_pages;
  5487. unsigned long zone_start_pfn = zone->zone_start_pfn;
  5488. size = zone->spanned_pages;
  5489. freesize = zone->present_pages;
  5490. /*
  5491. * Adjust freesize so that it accounts for how much memory
  5492. * is used by this zone for memmap. This affects the watermark
  5493. * and per-cpu initialisations
  5494. */
  5495. memmap_pages = calc_memmap_size(size, freesize);
  5496. if (!is_highmem_idx(j)) {
  5497. if (freesize >= memmap_pages) {
  5498. freesize -= memmap_pages;
  5499. if (memmap_pages)
  5500. printk(KERN_DEBUG
  5501. " %s zone: %lu pages used for memmap\n",
  5502. zone_names[j], memmap_pages);
  5503. } else
  5504. pr_warn(" %s zone: %lu pages exceeds freesize %lu\n",
  5505. zone_names[j], memmap_pages, freesize);
  5506. }
  5507. /* Account for reserved pages */
  5508. if (j == 0 && freesize > dma_reserve) {
  5509. freesize -= dma_reserve;
  5510. printk(KERN_DEBUG " %s zone: %lu pages reserved\n",
  5511. zone_names[0], dma_reserve);
  5512. }
  5513. if (!is_highmem_idx(j))
  5514. nr_kernel_pages += freesize;
  5515. /* Charge for highmem memmap if there are enough kernel pages */
  5516. else if (nr_kernel_pages > memmap_pages * 2)
  5517. nr_kernel_pages -= memmap_pages;
  5518. nr_all_pages += freesize;
  5519. /*
  5520. * Set an approximate value for lowmem here, it will be adjusted
  5521. * when the bootmem allocator frees pages into the buddy system.
  5522. * And all highmem pages will be managed by the buddy system.
  5523. */
  5524. zone_init_internals(zone, j, nid, freesize);
  5525. if (!size)
  5526. continue;
  5527. set_pageblock_order();
  5528. setup_usemap(pgdat, zone, zone_start_pfn, size);
  5529. init_currently_empty_zone(zone, zone_start_pfn, size);
  5530. memmap_init(size, nid, j, zone_start_pfn);
  5531. }
  5532. }
  5533. #ifdef CONFIG_FLAT_NODE_MEM_MAP
  5534. static void __ref alloc_node_mem_map(struct pglist_data *pgdat)
  5535. {
  5536. unsigned long __maybe_unused start = 0;
  5537. unsigned long __maybe_unused offset = 0;
  5538. /* Skip empty nodes */
  5539. if (!pgdat->node_spanned_pages)
  5540. return;
  5541. start = pgdat->node_start_pfn & ~(MAX_ORDER_NR_PAGES - 1);
  5542. offset = pgdat->node_start_pfn - start;
  5543. /* ia64 gets its own node_mem_map, before this, without bootmem */
  5544. if (!pgdat->node_mem_map) {
  5545. unsigned long size, end;
  5546. struct page *map;
  5547. /*
  5548. * The zone's endpoints aren't required to be MAX_ORDER
  5549. * aligned but the node_mem_map endpoints must be in order
  5550. * for the buddy allocator to function correctly.
  5551. */
  5552. end = pgdat_end_pfn(pgdat);
  5553. end = ALIGN(end, MAX_ORDER_NR_PAGES);
  5554. size = (end - start) * sizeof(struct page);
  5555. map = memblock_alloc_node_nopanic(size, pgdat->node_id);
  5556. pgdat->node_mem_map = map + offset;
  5557. }
  5558. pr_debug("%s: node %d, pgdat %08lx, node_mem_map %08lx\n",
  5559. __func__, pgdat->node_id, (unsigned long)pgdat,
  5560. (unsigned long)pgdat->node_mem_map);
  5561. #ifndef CONFIG_NEED_MULTIPLE_NODES
  5562. /*
  5563. * With no DISCONTIG, the global mem_map is just set as node 0's
  5564. */
  5565. if (pgdat == NODE_DATA(0)) {
  5566. mem_map = NODE_DATA(0)->node_mem_map;
  5567. #if defined(CONFIG_HAVE_MEMBLOCK_NODE_MAP) || defined(CONFIG_FLATMEM)
  5568. if (page_to_pfn(mem_map) != pgdat->node_start_pfn)
  5569. mem_map -= offset;
  5570. #endif /* CONFIG_HAVE_MEMBLOCK_NODE_MAP */
  5571. }
  5572. #endif
  5573. }
  5574. #else
  5575. static void __ref alloc_node_mem_map(struct pglist_data *pgdat) { }
  5576. #endif /* CONFIG_FLAT_NODE_MEM_MAP */
  5577. #ifdef CONFIG_DEFERRED_STRUCT_PAGE_INIT
  5578. static inline void pgdat_set_deferred_range(pg_data_t *pgdat)
  5579. {
  5580. /*
  5581. * We start only with one section of pages, more pages are added as
  5582. * needed until the rest of deferred pages are initialized.
  5583. */
  5584. pgdat->static_init_pgcnt = min_t(unsigned long, PAGES_PER_SECTION,
  5585. pgdat->node_spanned_pages);
  5586. pgdat->first_deferred_pfn = ULONG_MAX;
  5587. }
  5588. #else
  5589. static inline void pgdat_set_deferred_range(pg_data_t *pgdat) {}
  5590. #endif
  5591. void __init free_area_init_node(int nid, unsigned long *zones_size,
  5592. unsigned long node_start_pfn,
  5593. unsigned long *zholes_size)
  5594. {
  5595. pg_data_t *pgdat = NODE_DATA(nid);
  5596. unsigned long start_pfn = 0;
  5597. unsigned long end_pfn = 0;
  5598. /* pg_data_t should be reset to zero when it's allocated */
  5599. WARN_ON(pgdat->nr_zones || pgdat->kswapd_classzone_idx);
  5600. pgdat->node_id = nid;
  5601. pgdat->node_start_pfn = node_start_pfn;
  5602. pgdat->per_cpu_nodestats = NULL;
  5603. #ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP
  5604. get_pfn_range_for_nid(nid, &start_pfn, &end_pfn);
  5605. pr_info("Initmem setup node %d [mem %#018Lx-%#018Lx]\n", nid,
  5606. (u64)start_pfn << PAGE_SHIFT,
  5607. end_pfn ? ((u64)end_pfn << PAGE_SHIFT) - 1 : 0);
  5608. #else
  5609. start_pfn = node_start_pfn;
  5610. #endif
  5611. calculate_node_totalpages(pgdat, start_pfn, end_pfn,
  5612. zones_size, zholes_size);
  5613. alloc_node_mem_map(pgdat);
  5614. pgdat_set_deferred_range(pgdat);
  5615. free_area_init_core(pgdat);
  5616. }
  5617. #if !defined(CONFIG_FLAT_NODE_MEM_MAP)
  5618. /*
  5619. * Zero all valid struct pages in range [spfn, epfn), return number of struct
  5620. * pages zeroed
  5621. */
  5622. static u64 zero_pfn_range(unsigned long spfn, unsigned long epfn)
  5623. {
  5624. unsigned long pfn;
  5625. u64 pgcnt = 0;
  5626. for (pfn = spfn; pfn < epfn; pfn++) {
  5627. if (!pfn_valid(ALIGN_DOWN(pfn, pageblock_nr_pages))) {
  5628. pfn = ALIGN_DOWN(pfn, pageblock_nr_pages)
  5629. + pageblock_nr_pages - 1;
  5630. continue;
  5631. }
  5632. mm_zero_struct_page(pfn_to_page(pfn));
  5633. pgcnt++;
  5634. }
  5635. return pgcnt;
  5636. }
  5637. /*
  5638. * Only struct pages that are backed by physical memory are zeroed and
  5639. * initialized by going through __init_single_page(). But, there are some
  5640. * struct pages which are reserved in memblock allocator and their fields
  5641. * may be accessed (for example page_to_pfn() on some configuration accesses
  5642. * flags). We must explicitly zero those struct pages.
  5643. *
  5644. * This function also addresses a similar issue where struct pages are left
  5645. * uninitialized because the physical address range is not covered by
  5646. * memblock.memory or memblock.reserved. That could happen when memblock
  5647. * layout is manually configured via memmap=.
  5648. */
  5649. void __init zero_resv_unavail(void)
  5650. {
  5651. phys_addr_t start, end;
  5652. u64 i, pgcnt;
  5653. phys_addr_t next = 0;
  5654. /*
  5655. * Loop through unavailable ranges not covered by memblock.memory.
  5656. */
  5657. pgcnt = 0;
  5658. for_each_mem_range(i, &memblock.memory, NULL,
  5659. NUMA_NO_NODE, MEMBLOCK_NONE, &start, &end, NULL) {
  5660. if (next < start)
  5661. pgcnt += zero_pfn_range(PFN_DOWN(next), PFN_UP(start));
  5662. next = end;
  5663. }
  5664. pgcnt += zero_pfn_range(PFN_DOWN(next), max_pfn);
  5665. /*
  5666. * Struct pages that do not have backing memory. This could be because
  5667. * firmware is using some of this memory, or for some other reasons.
  5668. */
  5669. if (pgcnt)
  5670. pr_info("Zeroed struct page in unavailable ranges: %lld pages", pgcnt);
  5671. }
  5672. #endif /* !CONFIG_FLAT_NODE_MEM_MAP */
  5673. #ifdef CONFIG_HAVE_MEMBLOCK_NODE_MAP
  5674. #if MAX_NUMNODES > 1
  5675. /*
  5676. * Figure out the number of possible node ids.
  5677. */
  5678. void __init setup_nr_node_ids(void)
  5679. {
  5680. unsigned int highest;
  5681. highest = find_last_bit(node_possible_map.bits, MAX_NUMNODES);
  5682. nr_node_ids = highest + 1;
  5683. }
  5684. #endif
  5685. /**
  5686. * node_map_pfn_alignment - determine the maximum internode alignment
  5687. *
  5688. * This function should be called after node map is populated and sorted.
  5689. * It calculates the maximum power of two alignment which can distinguish
  5690. * all the nodes.
  5691. *
  5692. * For example, if all nodes are 1GiB and aligned to 1GiB, the return value
  5693. * would indicate 1GiB alignment with (1 << (30 - PAGE_SHIFT)). If the
  5694. * nodes are shifted by 256MiB, 256MiB. Note that if only the last node is
  5695. * shifted, 1GiB is enough and this function will indicate so.
  5696. *
  5697. * This is used to test whether pfn -> nid mapping of the chosen memory
  5698. * model has fine enough granularity to avoid incorrect mapping for the
  5699. * populated node map.
  5700. *
  5701. * Returns the determined alignment in pfn's. 0 if there is no alignment
  5702. * requirement (single node).
  5703. */
  5704. unsigned long __init node_map_pfn_alignment(void)
  5705. {
  5706. unsigned long accl_mask = 0, last_end = 0;
  5707. unsigned long start, end, mask;
  5708. int last_nid = -1;
  5709. int i, nid;
  5710. for_each_mem_pfn_range(i, MAX_NUMNODES, &start, &end, &nid) {
  5711. if (!start || last_nid < 0 || last_nid == nid) {
  5712. last_nid = nid;
  5713. last_end = end;
  5714. continue;
  5715. }
  5716. /*
  5717. * Start with a mask granular enough to pin-point to the
  5718. * start pfn and tick off bits one-by-one until it becomes
  5719. * too coarse to separate the current node from the last.
  5720. */
  5721. mask = ~((1 << __ffs(start)) - 1);
  5722. while (mask && last_end <= (start & (mask << 1)))
  5723. mask <<= 1;
  5724. /* accumulate all internode masks */
  5725. accl_mask |= mask;
  5726. }
  5727. /* convert mask to number of pages */
  5728. return ~accl_mask + 1;
  5729. }
  5730. /* Find the lowest pfn for a node */
  5731. static unsigned long __init find_min_pfn_for_node(int nid)
  5732. {
  5733. unsigned long min_pfn = ULONG_MAX;
  5734. unsigned long start_pfn;
  5735. int i;
  5736. for_each_mem_pfn_range(i, nid, &start_pfn, NULL, NULL)
  5737. min_pfn = min(min_pfn, start_pfn);
  5738. if (min_pfn == ULONG_MAX) {
  5739. pr_warn("Could not find start_pfn for node %d\n", nid);
  5740. return 0;
  5741. }
  5742. return min_pfn;
  5743. }
  5744. /**
  5745. * find_min_pfn_with_active_regions - Find the minimum PFN registered
  5746. *
  5747. * It returns the minimum PFN based on information provided via
  5748. * memblock_set_node().
  5749. */
  5750. unsigned long __init find_min_pfn_with_active_regions(void)
  5751. {
  5752. return find_min_pfn_for_node(MAX_NUMNODES);
  5753. }
  5754. /*
  5755. * early_calculate_totalpages()
  5756. * Sum pages in active regions for movable zone.
  5757. * Populate N_MEMORY for calculating usable_nodes.
  5758. */
  5759. static unsigned long __init early_calculate_totalpages(void)
  5760. {
  5761. unsigned long totalpages = 0;
  5762. unsigned long start_pfn, end_pfn;
  5763. int i, nid;
  5764. for_each_mem_pfn_range(i, MAX_NUMNODES, &start_pfn, &end_pfn, &nid) {
  5765. unsigned long pages = end_pfn - start_pfn;
  5766. totalpages += pages;
  5767. if (pages)
  5768. node_set_state(nid, N_MEMORY);
  5769. }
  5770. return totalpages;
  5771. }
  5772. /*
  5773. * Find the PFN the Movable zone begins in each node. Kernel memory
  5774. * is spread evenly between nodes as long as the nodes have enough
  5775. * memory. When they don't, some nodes will have more kernelcore than
  5776. * others
  5777. */
  5778. static void __init find_zone_movable_pfns_for_nodes(void)
  5779. {
  5780. int i, nid;
  5781. unsigned long usable_startpfn;
  5782. unsigned long kernelcore_node, kernelcore_remaining;
  5783. /* save the state before borrow the nodemask */
  5784. nodemask_t saved_node_state = node_states[N_MEMORY];
  5785. unsigned long totalpages = early_calculate_totalpages();
  5786. int usable_nodes = nodes_weight(node_states[N_MEMORY]);
  5787. struct memblock_region *r;
  5788. /* Need to find movable_zone earlier when movable_node is specified. */
  5789. find_usable_zone_for_movable();
  5790. /*
  5791. * If movable_node is specified, ignore kernelcore and movablecore
  5792. * options.
  5793. */
  5794. if (movable_node_is_enabled()) {
  5795. for_each_memblock(memory, r) {
  5796. if (!memblock_is_hotpluggable(r))
  5797. continue;
  5798. nid = r->nid;
  5799. usable_startpfn = PFN_DOWN(r->base);
  5800. zone_movable_pfn[nid] = zone_movable_pfn[nid] ?
  5801. min(usable_startpfn, zone_movable_pfn[nid]) :
  5802. usable_startpfn;
  5803. }
  5804. goto out2;
  5805. }
  5806. /*
  5807. * If kernelcore=mirror is specified, ignore movablecore option
  5808. */
  5809. if (mirrored_kernelcore) {
  5810. bool mem_below_4gb_not_mirrored = false;
  5811. for_each_memblock(memory, r) {
  5812. if (memblock_is_mirror(r))
  5813. continue;
  5814. nid = r->nid;
  5815. usable_startpfn = memblock_region_memory_base_pfn(r);
  5816. if (usable_startpfn < 0x100000) {
  5817. mem_below_4gb_not_mirrored = true;
  5818. continue;
  5819. }
  5820. zone_movable_pfn[nid] = zone_movable_pfn[nid] ?
  5821. min(usable_startpfn, zone_movable_pfn[nid]) :
  5822. usable_startpfn;
  5823. }
  5824. if (mem_below_4gb_not_mirrored)
  5825. pr_warn("This configuration results in unmirrored kernel memory.");
  5826. goto out2;
  5827. }
  5828. /*
  5829. * If kernelcore=nn% or movablecore=nn% was specified, calculate the
  5830. * amount of necessary memory.
  5831. */
  5832. if (required_kernelcore_percent)
  5833. required_kernelcore = (totalpages * 100 * required_kernelcore_percent) /
  5834. 10000UL;
  5835. if (required_movablecore_percent)
  5836. required_movablecore = (totalpages * 100 * required_movablecore_percent) /
  5837. 10000UL;
  5838. /*
  5839. * If movablecore= was specified, calculate what size of
  5840. * kernelcore that corresponds so that memory usable for
  5841. * any allocation type is evenly spread. If both kernelcore
  5842. * and movablecore are specified, then the value of kernelcore
  5843. * will be used for required_kernelcore if it's greater than
  5844. * what movablecore would have allowed.
  5845. */
  5846. if (required_movablecore) {
  5847. unsigned long corepages;
  5848. /*
  5849. * Round-up so that ZONE_MOVABLE is at least as large as what
  5850. * was requested by the user
  5851. */
  5852. required_movablecore =
  5853. roundup(required_movablecore, MAX_ORDER_NR_PAGES);
  5854. required_movablecore = min(totalpages, required_movablecore);
  5855. corepages = totalpages - required_movablecore;
  5856. required_kernelcore = max(required_kernelcore, corepages);
  5857. }
  5858. /*
  5859. * If kernelcore was not specified or kernelcore size is larger
  5860. * than totalpages, there is no ZONE_MOVABLE.
  5861. */
  5862. if (!required_kernelcore || required_kernelcore >= totalpages)
  5863. goto out;
  5864. /* usable_startpfn is the lowest possible pfn ZONE_MOVABLE can be at */
  5865. usable_startpfn = arch_zone_lowest_possible_pfn[movable_zone];
  5866. restart:
  5867. /* Spread kernelcore memory as evenly as possible throughout nodes */
  5868. kernelcore_node = required_kernelcore / usable_nodes;
  5869. for_each_node_state(nid, N_MEMORY) {
  5870. unsigned long start_pfn, end_pfn;
  5871. /*
  5872. * Recalculate kernelcore_node if the division per node
  5873. * now exceeds what is necessary to satisfy the requested
  5874. * amount of memory for the kernel
  5875. */
  5876. if (required_kernelcore < kernelcore_node)
  5877. kernelcore_node = required_kernelcore / usable_nodes;
  5878. /*
  5879. * As the map is walked, we track how much memory is usable
  5880. * by the kernel using kernelcore_remaining. When it is
  5881. * 0, the rest of the node is usable by ZONE_MOVABLE
  5882. */
  5883. kernelcore_remaining = kernelcore_node;
  5884. /* Go through each range of PFNs within this node */
  5885. for_each_mem_pfn_range(i, nid, &start_pfn, &end_pfn, NULL) {
  5886. unsigned long size_pages;
  5887. start_pfn = max(start_pfn, zone_movable_pfn[nid]);
  5888. if (start_pfn >= end_pfn)
  5889. continue;
  5890. /* Account for what is only usable for kernelcore */
  5891. if (start_pfn < usable_startpfn) {
  5892. unsigned long kernel_pages;
  5893. kernel_pages = min(end_pfn, usable_startpfn)
  5894. - start_pfn;
  5895. kernelcore_remaining -= min(kernel_pages,
  5896. kernelcore_remaining);
  5897. required_kernelcore -= min(kernel_pages,
  5898. required_kernelcore);
  5899. /* Continue if range is now fully accounted */
  5900. if (end_pfn <= usable_startpfn) {
  5901. /*
  5902. * Push zone_movable_pfn to the end so
  5903. * that if we have to rebalance
  5904. * kernelcore across nodes, we will
  5905. * not double account here
  5906. */
  5907. zone_movable_pfn[nid] = end_pfn;
  5908. continue;
  5909. }
  5910. start_pfn = usable_startpfn;
  5911. }
  5912. /*
  5913. * The usable PFN range for ZONE_MOVABLE is from
  5914. * start_pfn->end_pfn. Calculate size_pages as the
  5915. * number of pages used as kernelcore
  5916. */
  5917. size_pages = end_pfn - start_pfn;
  5918. if (size_pages > kernelcore_remaining)
  5919. size_pages = kernelcore_remaining;
  5920. zone_movable_pfn[nid] = start_pfn + size_pages;
  5921. /*
  5922. * Some kernelcore has been met, update counts and
  5923. * break if the kernelcore for this node has been
  5924. * satisfied
  5925. */
  5926. required_kernelcore -= min(required_kernelcore,
  5927. size_pages);
  5928. kernelcore_remaining -= size_pages;
  5929. if (!kernelcore_remaining)
  5930. break;
  5931. }
  5932. }
  5933. /*
  5934. * If there is still required_kernelcore, we do another pass with one
  5935. * less node in the count. This will push zone_movable_pfn[nid] further
  5936. * along on the nodes that still have memory until kernelcore is
  5937. * satisfied
  5938. */
  5939. usable_nodes--;
  5940. if (usable_nodes && required_kernelcore > usable_nodes)
  5941. goto restart;
  5942. out2:
  5943. /* Align start of ZONE_MOVABLE on all nids to MAX_ORDER_NR_PAGES */
  5944. for (nid = 0; nid < MAX_NUMNODES; nid++)
  5945. zone_movable_pfn[nid] =
  5946. roundup(zone_movable_pfn[nid], MAX_ORDER_NR_PAGES);
  5947. out:
  5948. /* restore the node_state */
  5949. node_states[N_MEMORY] = saved_node_state;
  5950. }
  5951. /* Any regular or high memory on that node ? */
  5952. static void check_for_memory(pg_data_t *pgdat, int nid)
  5953. {
  5954. enum zone_type zone_type;
  5955. for (zone_type = 0; zone_type <= ZONE_MOVABLE - 1; zone_type++) {
  5956. struct zone *zone = &pgdat->node_zones[zone_type];
  5957. if (populated_zone(zone)) {
  5958. if (IS_ENABLED(CONFIG_HIGHMEM))
  5959. node_set_state(nid, N_HIGH_MEMORY);
  5960. if (zone_type <= ZONE_NORMAL)
  5961. node_set_state(nid, N_NORMAL_MEMORY);
  5962. break;
  5963. }
  5964. }
  5965. }
  5966. /**
  5967. * free_area_init_nodes - Initialise all pg_data_t and zone data
  5968. * @max_zone_pfn: an array of max PFNs for each zone
  5969. *
  5970. * This will call free_area_init_node() for each active node in the system.
  5971. * Using the page ranges provided by memblock_set_node(), the size of each
  5972. * zone in each node and their holes is calculated. If the maximum PFN
  5973. * between two adjacent zones match, it is assumed that the zone is empty.
  5974. * For example, if arch_max_dma_pfn == arch_max_dma32_pfn, it is assumed
  5975. * that arch_max_dma32_pfn has no pages. It is also assumed that a zone
  5976. * starts where the previous one ended. For example, ZONE_DMA32 starts
  5977. * at arch_max_dma_pfn.
  5978. */
  5979. void __init free_area_init_nodes(unsigned long *max_zone_pfn)
  5980. {
  5981. unsigned long start_pfn, end_pfn;
  5982. int i, nid;
  5983. /* Record where the zone boundaries are */
  5984. memset(arch_zone_lowest_possible_pfn, 0,
  5985. sizeof(arch_zone_lowest_possible_pfn));
  5986. memset(arch_zone_highest_possible_pfn, 0,
  5987. sizeof(arch_zone_highest_possible_pfn));
  5988. start_pfn = find_min_pfn_with_active_regions();
  5989. for (i = 0; i < MAX_NR_ZONES; i++) {
  5990. if (i == ZONE_MOVABLE)
  5991. continue;
  5992. end_pfn = max(max_zone_pfn[i], start_pfn);
  5993. arch_zone_lowest_possible_pfn[i] = start_pfn;
  5994. arch_zone_highest_possible_pfn[i] = end_pfn;
  5995. start_pfn = end_pfn;
  5996. }
  5997. /* Find the PFNs that ZONE_MOVABLE begins at in each node */
  5998. memset(zone_movable_pfn, 0, sizeof(zone_movable_pfn));
  5999. find_zone_movable_pfns_for_nodes();
  6000. /* Print out the zone ranges */
  6001. pr_info("Zone ranges:\n");
  6002. for (i = 0; i < MAX_NR_ZONES; i++) {
  6003. if (i == ZONE_MOVABLE)
  6004. continue;
  6005. pr_info(" %-8s ", zone_names[i]);
  6006. if (arch_zone_lowest_possible_pfn[i] ==
  6007. arch_zone_highest_possible_pfn[i])
  6008. pr_cont("empty\n");
  6009. else
  6010. pr_cont("[mem %#018Lx-%#018Lx]\n",
  6011. (u64)arch_zone_lowest_possible_pfn[i]
  6012. << PAGE_SHIFT,
  6013. ((u64)arch_zone_highest_possible_pfn[i]
  6014. << PAGE_SHIFT) - 1);
  6015. }
  6016. /* Print out the PFNs ZONE_MOVABLE begins at in each node */
  6017. pr_info("Movable zone start for each node\n");
  6018. for (i = 0; i < MAX_NUMNODES; i++) {
  6019. if (zone_movable_pfn[i])
  6020. pr_info(" Node %d: %#018Lx\n", i,
  6021. (u64)zone_movable_pfn[i] << PAGE_SHIFT);
  6022. }
  6023. /* Print out the early node map */
  6024. pr_info("Early memory node ranges\n");
  6025. for_each_mem_pfn_range(i, MAX_NUMNODES, &start_pfn, &end_pfn, &nid)
  6026. pr_info(" node %3d: [mem %#018Lx-%#018Lx]\n", nid,
  6027. (u64)start_pfn << PAGE_SHIFT,
  6028. ((u64)end_pfn << PAGE_SHIFT) - 1);
  6029. /* Initialise every node */
  6030. mminit_verify_pageflags_layout();
  6031. setup_nr_node_ids();
  6032. zero_resv_unavail();
  6033. for_each_online_node(nid) {
  6034. pg_data_t *pgdat = NODE_DATA(nid);
  6035. free_area_init_node(nid, NULL,
  6036. find_min_pfn_for_node(nid), NULL);
  6037. /* Any memory on that node */
  6038. if (pgdat->node_present_pages)
  6039. node_set_state(nid, N_MEMORY);
  6040. check_for_memory(pgdat, nid);
  6041. }
  6042. }
  6043. static int __init cmdline_parse_core(char *p, unsigned long *core,
  6044. unsigned long *percent)
  6045. {
  6046. unsigned long long coremem;
  6047. char *endptr;
  6048. if (!p)
  6049. return -EINVAL;
  6050. /* Value may be a percentage of total memory, otherwise bytes */
  6051. coremem = simple_strtoull(p, &endptr, 0);
  6052. if (*endptr == '%') {
  6053. /* Paranoid check for percent values greater than 100 */
  6054. WARN_ON(coremem > 100);
  6055. *percent = coremem;
  6056. } else {
  6057. coremem = memparse(p, &p);
  6058. /* Paranoid check that UL is enough for the coremem value */
  6059. WARN_ON((coremem >> PAGE_SHIFT) > ULONG_MAX);
  6060. *core = coremem >> PAGE_SHIFT;
  6061. *percent = 0UL;
  6062. }
  6063. return 0;
  6064. }
  6065. /*
  6066. * kernelcore=size sets the amount of memory for use for allocations that
  6067. * cannot be reclaimed or migrated.
  6068. */
  6069. static int __init cmdline_parse_kernelcore(char *p)
  6070. {
  6071. /* parse kernelcore=mirror */
  6072. if (parse_option_str(p, "mirror")) {
  6073. mirrored_kernelcore = true;
  6074. return 0;
  6075. }
  6076. return cmdline_parse_core(p, &required_kernelcore,
  6077. &required_kernelcore_percent);
  6078. }
  6079. /*
  6080. * movablecore=size sets the amount of memory for use for allocations that
  6081. * can be reclaimed or migrated.
  6082. */
  6083. static int __init cmdline_parse_movablecore(char *p)
  6084. {
  6085. return cmdline_parse_core(p, &required_movablecore,
  6086. &required_movablecore_percent);
  6087. }
  6088. early_param("kernelcore", cmdline_parse_kernelcore);
  6089. early_param("movablecore", cmdline_parse_movablecore);
  6090. #endif /* CONFIG_HAVE_MEMBLOCK_NODE_MAP */
  6091. void adjust_managed_page_count(struct page *page, long count)
  6092. {
  6093. spin_lock(&managed_page_count_lock);
  6094. page_zone(page)->managed_pages += count;
  6095. totalram_pages += count;
  6096. #ifdef CONFIG_HIGHMEM
  6097. if (PageHighMem(page))
  6098. totalhigh_pages += count;
  6099. #endif
  6100. spin_unlock(&managed_page_count_lock);
  6101. }
  6102. EXPORT_SYMBOL(adjust_managed_page_count);
  6103. unsigned long free_reserved_area(void *start, void *end, int poison, char *s)
  6104. {
  6105. void *pos;
  6106. unsigned long pages = 0;
  6107. start = (void *)PAGE_ALIGN((unsigned long)start);
  6108. end = (void *)((unsigned long)end & PAGE_MASK);
  6109. for (pos = start; pos < end; pos += PAGE_SIZE, pages++) {
  6110. struct page *page = virt_to_page(pos);
  6111. void *direct_map_addr;
  6112. /*
  6113. * 'direct_map_addr' might be different from 'pos'
  6114. * because some architectures' virt_to_page()
  6115. * work with aliases. Getting the direct map
  6116. * address ensures that we get a _writeable_
  6117. * alias for the memset().
  6118. */
  6119. direct_map_addr = page_address(page);
  6120. if ((unsigned int)poison <= 0xFF)
  6121. memset(direct_map_addr, poison, PAGE_SIZE);
  6122. free_reserved_page(page);
  6123. }
  6124. if (pages && s)
  6125. pr_info("Freeing %s memory: %ldK\n",
  6126. s, pages << (PAGE_SHIFT - 10));
  6127. return pages;
  6128. }
  6129. EXPORT_SYMBOL(free_reserved_area);
  6130. #ifdef CONFIG_HIGHMEM
  6131. void free_highmem_page(struct page *page)
  6132. {
  6133. __free_reserved_page(page);
  6134. totalram_pages++;
  6135. page_zone(page)->managed_pages++;
  6136. totalhigh_pages++;
  6137. }
  6138. #endif
  6139. void __init mem_init_print_info(const char *str)
  6140. {
  6141. unsigned long physpages, codesize, datasize, rosize, bss_size;
  6142. unsigned long init_code_size, init_data_size;
  6143. physpages = get_num_physpages();
  6144. codesize = _etext - _stext;
  6145. datasize = _edata - _sdata;
  6146. rosize = __end_rodata - __start_rodata;
  6147. bss_size = __bss_stop - __bss_start;
  6148. init_data_size = __init_end - __init_begin;
  6149. init_code_size = _einittext - _sinittext;
  6150. /*
  6151. * Detect special cases and adjust section sizes accordingly:
  6152. * 1) .init.* may be embedded into .data sections
  6153. * 2) .init.text.* may be out of [__init_begin, __init_end],
  6154. * please refer to arch/tile/kernel/vmlinux.lds.S.
  6155. * 3) .rodata.* may be embedded into .text or .data sections.
  6156. */
  6157. #define adj_init_size(start, end, size, pos, adj) \
  6158. do { \
  6159. if (start <= pos && pos < end && size > adj) \
  6160. size -= adj; \
  6161. } while (0)
  6162. adj_init_size(__init_begin, __init_end, init_data_size,
  6163. _sinittext, init_code_size);
  6164. adj_init_size(_stext, _etext, codesize, _sinittext, init_code_size);
  6165. adj_init_size(_sdata, _edata, datasize, __init_begin, init_data_size);
  6166. adj_init_size(_stext, _etext, codesize, __start_rodata, rosize);
  6167. adj_init_size(_sdata, _edata, datasize, __start_rodata, rosize);
  6168. #undef adj_init_size
  6169. pr_info("Memory: %luK/%luK available (%luK kernel code, %luK rwdata, %luK rodata, %luK init, %luK bss, %luK reserved, %luK cma-reserved"
  6170. #ifdef CONFIG_HIGHMEM
  6171. ", %luK highmem"
  6172. #endif
  6173. "%s%s)\n",
  6174. nr_free_pages() << (PAGE_SHIFT - 10),
  6175. physpages << (PAGE_SHIFT - 10),
  6176. codesize >> 10, datasize >> 10, rosize >> 10,
  6177. (init_data_size + init_code_size) >> 10, bss_size >> 10,
  6178. (physpages - totalram_pages - totalcma_pages) << (PAGE_SHIFT - 10),
  6179. totalcma_pages << (PAGE_SHIFT - 10),
  6180. #ifdef CONFIG_HIGHMEM
  6181. totalhigh_pages << (PAGE_SHIFT - 10),
  6182. #endif
  6183. str ? ", " : "", str ? str : "");
  6184. }
  6185. /**
  6186. * set_dma_reserve - set the specified number of pages reserved in the first zone
  6187. * @new_dma_reserve: The number of pages to mark reserved
  6188. *
  6189. * The per-cpu batchsize and zone watermarks are determined by managed_pages.
  6190. * In the DMA zone, a significant percentage may be consumed by kernel image
  6191. * and other unfreeable allocations which can skew the watermarks badly. This
  6192. * function may optionally be used to account for unfreeable pages in the
  6193. * first zone (e.g., ZONE_DMA). The effect will be lower watermarks and
  6194. * smaller per-cpu batchsize.
  6195. */
  6196. void __init set_dma_reserve(unsigned long new_dma_reserve)
  6197. {
  6198. dma_reserve = new_dma_reserve;
  6199. }
  6200. void __init free_area_init(unsigned long *zones_size)
  6201. {
  6202. zero_resv_unavail();
  6203. free_area_init_node(0, zones_size,
  6204. __pa(PAGE_OFFSET) >> PAGE_SHIFT, NULL);
  6205. }
  6206. static int page_alloc_cpu_dead(unsigned int cpu)
  6207. {
  6208. lru_add_drain_cpu(cpu);
  6209. drain_pages(cpu);
  6210. /*
  6211. * Spill the event counters of the dead processor
  6212. * into the current processors event counters.
  6213. * This artificially elevates the count of the current
  6214. * processor.
  6215. */
  6216. vm_events_fold_cpu(cpu);
  6217. /*
  6218. * Zero the differential counters of the dead processor
  6219. * so that the vm statistics are consistent.
  6220. *
  6221. * This is only okay since the processor is dead and cannot
  6222. * race with what we are doing.
  6223. */
  6224. cpu_vm_stats_fold(cpu);
  6225. return 0;
  6226. }
  6227. void __init page_alloc_init(void)
  6228. {
  6229. int ret;
  6230. ret = cpuhp_setup_state_nocalls(CPUHP_PAGE_ALLOC_DEAD,
  6231. "mm/page_alloc:dead", NULL,
  6232. page_alloc_cpu_dead);
  6233. WARN_ON(ret < 0);
  6234. }
  6235. /*
  6236. * calculate_totalreserve_pages - called when sysctl_lowmem_reserve_ratio
  6237. * or min_free_kbytes changes.
  6238. */
  6239. static void calculate_totalreserve_pages(void)
  6240. {
  6241. struct pglist_data *pgdat;
  6242. unsigned long reserve_pages = 0;
  6243. enum zone_type i, j;
  6244. for_each_online_pgdat(pgdat) {
  6245. pgdat->totalreserve_pages = 0;
  6246. for (i = 0; i < MAX_NR_ZONES; i++) {
  6247. struct zone *zone = pgdat->node_zones + i;
  6248. long max = 0;
  6249. /* Find valid and maximum lowmem_reserve in the zone */
  6250. for (j = i; j < MAX_NR_ZONES; j++) {
  6251. if (zone->lowmem_reserve[j] > max)
  6252. max = zone->lowmem_reserve[j];
  6253. }
  6254. /* we treat the high watermark as reserved pages. */
  6255. max += high_wmark_pages(zone);
  6256. if (max > zone->managed_pages)
  6257. max = zone->managed_pages;
  6258. pgdat->totalreserve_pages += max;
  6259. reserve_pages += max;
  6260. }
  6261. }
  6262. totalreserve_pages = reserve_pages;
  6263. }
  6264. /*
  6265. * setup_per_zone_lowmem_reserve - called whenever
  6266. * sysctl_lowmem_reserve_ratio changes. Ensures that each zone
  6267. * has a correct pages reserved value, so an adequate number of
  6268. * pages are left in the zone after a successful __alloc_pages().
  6269. */
  6270. static void setup_per_zone_lowmem_reserve(void)
  6271. {
  6272. struct pglist_data *pgdat;
  6273. enum zone_type j, idx;
  6274. for_each_online_pgdat(pgdat) {
  6275. for (j = 0; j < MAX_NR_ZONES; j++) {
  6276. struct zone *zone = pgdat->node_zones + j;
  6277. unsigned long managed_pages = zone->managed_pages;
  6278. zone->lowmem_reserve[j] = 0;
  6279. idx = j;
  6280. while (idx) {
  6281. struct zone *lower_zone;
  6282. idx--;
  6283. lower_zone = pgdat->node_zones + idx;
  6284. if (sysctl_lowmem_reserve_ratio[idx] < 1) {
  6285. sysctl_lowmem_reserve_ratio[idx] = 0;
  6286. lower_zone->lowmem_reserve[j] = 0;
  6287. } else {
  6288. lower_zone->lowmem_reserve[j] =
  6289. managed_pages / sysctl_lowmem_reserve_ratio[idx];
  6290. }
  6291. managed_pages += lower_zone->managed_pages;
  6292. }
  6293. }
  6294. }
  6295. /* update totalreserve_pages */
  6296. calculate_totalreserve_pages();
  6297. }
  6298. static void __setup_per_zone_wmarks(void)
  6299. {
  6300. unsigned long pages_min = min_free_kbytes >> (PAGE_SHIFT - 10);
  6301. unsigned long lowmem_pages = 0;
  6302. struct zone *zone;
  6303. unsigned long flags;
  6304. /* Calculate total number of !ZONE_HIGHMEM pages */
  6305. for_each_zone(zone) {
  6306. if (!is_highmem(zone))
  6307. lowmem_pages += zone->managed_pages;
  6308. }
  6309. for_each_zone(zone) {
  6310. u64 tmp;
  6311. spin_lock_irqsave(&zone->lock, flags);
  6312. tmp = (u64)pages_min * zone->managed_pages;
  6313. do_div(tmp, lowmem_pages);
  6314. if (is_highmem(zone)) {
  6315. /*
  6316. * __GFP_HIGH and PF_MEMALLOC allocations usually don't
  6317. * need highmem pages, so cap pages_min to a small
  6318. * value here.
  6319. *
  6320. * The WMARK_HIGH-WMARK_LOW and (WMARK_LOW-WMARK_MIN)
  6321. * deltas control asynch page reclaim, and so should
  6322. * not be capped for highmem.
  6323. */
  6324. unsigned long min_pages;
  6325. min_pages = zone->managed_pages / 1024;
  6326. min_pages = clamp(min_pages, SWAP_CLUSTER_MAX, 128UL);
  6327. zone->watermark[WMARK_MIN] = min_pages;
  6328. } else {
  6329. /*
  6330. * If it's a lowmem zone, reserve a number of pages
  6331. * proportionate to the zone's size.
  6332. */
  6333. zone->watermark[WMARK_MIN] = tmp;
  6334. }
  6335. /*
  6336. * Set the kswapd watermarks distance according to the
  6337. * scale factor in proportion to available memory, but
  6338. * ensure a minimum size on small systems.
  6339. */
  6340. tmp = max_t(u64, tmp >> 2,
  6341. mult_frac(zone->managed_pages,
  6342. watermark_scale_factor, 10000));
  6343. zone->watermark[WMARK_LOW] = min_wmark_pages(zone) + tmp;
  6344. zone->watermark[WMARK_HIGH] = min_wmark_pages(zone) + tmp * 2;
  6345. spin_unlock_irqrestore(&zone->lock, flags);
  6346. }
  6347. /* update totalreserve_pages */
  6348. calculate_totalreserve_pages();
  6349. }
  6350. /**
  6351. * setup_per_zone_wmarks - called when min_free_kbytes changes
  6352. * or when memory is hot-{added|removed}
  6353. *
  6354. * Ensures that the watermark[min,low,high] values for each zone are set
  6355. * correctly with respect to min_free_kbytes.
  6356. */
  6357. void setup_per_zone_wmarks(void)
  6358. {
  6359. static DEFINE_SPINLOCK(lock);
  6360. spin_lock(&lock);
  6361. __setup_per_zone_wmarks();
  6362. spin_unlock(&lock);
  6363. }
  6364. /*
  6365. * Initialise min_free_kbytes.
  6366. *
  6367. * For small machines we want it small (128k min). For large machines
  6368. * we want it large (64MB max). But it is not linear, because network
  6369. * bandwidth does not increase linearly with machine size. We use
  6370. *
  6371. * min_free_kbytes = 4 * sqrt(lowmem_kbytes), for better accuracy:
  6372. * min_free_kbytes = sqrt(lowmem_kbytes * 16)
  6373. *
  6374. * which yields
  6375. *
  6376. * 16MB: 512k
  6377. * 32MB: 724k
  6378. * 64MB: 1024k
  6379. * 128MB: 1448k
  6380. * 256MB: 2048k
  6381. * 512MB: 2896k
  6382. * 1024MB: 4096k
  6383. * 2048MB: 5792k
  6384. * 4096MB: 8192k
  6385. * 8192MB: 11584k
  6386. * 16384MB: 16384k
  6387. */
  6388. int __meminit init_per_zone_wmark_min(void)
  6389. {
  6390. unsigned long lowmem_kbytes;
  6391. int new_min_free_kbytes;
  6392. lowmem_kbytes = nr_free_buffer_pages() * (PAGE_SIZE >> 10);
  6393. new_min_free_kbytes = int_sqrt(lowmem_kbytes * 16);
  6394. if (new_min_free_kbytes > user_min_free_kbytes) {
  6395. min_free_kbytes = new_min_free_kbytes;
  6396. if (min_free_kbytes < 128)
  6397. min_free_kbytes = 128;
  6398. if (min_free_kbytes > 65536)
  6399. min_free_kbytes = 65536;
  6400. } else {
  6401. pr_warn("min_free_kbytes is not updated to %d because user defined value %d is preferred\n",
  6402. new_min_free_kbytes, user_min_free_kbytes);
  6403. }
  6404. setup_per_zone_wmarks();
  6405. refresh_zone_stat_thresholds();
  6406. setup_per_zone_lowmem_reserve();
  6407. #ifdef CONFIG_NUMA
  6408. setup_min_unmapped_ratio();
  6409. setup_min_slab_ratio();
  6410. #endif
  6411. return 0;
  6412. }
  6413. core_initcall(init_per_zone_wmark_min)
  6414. /*
  6415. * min_free_kbytes_sysctl_handler - just a wrapper around proc_dointvec() so
  6416. * that we can call two helper functions whenever min_free_kbytes
  6417. * changes.
  6418. */
  6419. int min_free_kbytes_sysctl_handler(struct ctl_table *table, int write,
  6420. void __user *buffer, size_t *length, loff_t *ppos)
  6421. {
  6422. int rc;
  6423. rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
  6424. if (rc)
  6425. return rc;
  6426. if (write) {
  6427. user_min_free_kbytes = min_free_kbytes;
  6428. setup_per_zone_wmarks();
  6429. }
  6430. return 0;
  6431. }
  6432. int watermark_scale_factor_sysctl_handler(struct ctl_table *table, int write,
  6433. void __user *buffer, size_t *length, loff_t *ppos)
  6434. {
  6435. int rc;
  6436. rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
  6437. if (rc)
  6438. return rc;
  6439. if (write)
  6440. setup_per_zone_wmarks();
  6441. return 0;
  6442. }
  6443. #ifdef CONFIG_NUMA
  6444. static void setup_min_unmapped_ratio(void)
  6445. {
  6446. pg_data_t *pgdat;
  6447. struct zone *zone;
  6448. for_each_online_pgdat(pgdat)
  6449. pgdat->min_unmapped_pages = 0;
  6450. for_each_zone(zone)
  6451. zone->zone_pgdat->min_unmapped_pages += (zone->managed_pages *
  6452. sysctl_min_unmapped_ratio) / 100;
  6453. }
  6454. int sysctl_min_unmapped_ratio_sysctl_handler(struct ctl_table *table, int write,
  6455. void __user *buffer, size_t *length, loff_t *ppos)
  6456. {
  6457. int rc;
  6458. rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
  6459. if (rc)
  6460. return rc;
  6461. setup_min_unmapped_ratio();
  6462. return 0;
  6463. }
  6464. static void setup_min_slab_ratio(void)
  6465. {
  6466. pg_data_t *pgdat;
  6467. struct zone *zone;
  6468. for_each_online_pgdat(pgdat)
  6469. pgdat->min_slab_pages = 0;
  6470. for_each_zone(zone)
  6471. zone->zone_pgdat->min_slab_pages += (zone->managed_pages *
  6472. sysctl_min_slab_ratio) / 100;
  6473. }
  6474. int sysctl_min_slab_ratio_sysctl_handler(struct ctl_table *table, int write,
  6475. void __user *buffer, size_t *length, loff_t *ppos)
  6476. {
  6477. int rc;
  6478. rc = proc_dointvec_minmax(table, write, buffer, length, ppos);
  6479. if (rc)
  6480. return rc;
  6481. setup_min_slab_ratio();
  6482. return 0;
  6483. }
  6484. #endif
  6485. /*
  6486. * lowmem_reserve_ratio_sysctl_handler - just a wrapper around
  6487. * proc_dointvec() so that we can call setup_per_zone_lowmem_reserve()
  6488. * whenever sysctl_lowmem_reserve_ratio changes.
  6489. *
  6490. * The reserve ratio obviously has absolutely no relation with the
  6491. * minimum watermarks. The lowmem reserve ratio can only make sense
  6492. * if in function of the boot time zone sizes.
  6493. */
  6494. int lowmem_reserve_ratio_sysctl_handler(struct ctl_table *table, int write,
  6495. void __user *buffer, size_t *length, loff_t *ppos)
  6496. {
  6497. proc_dointvec_minmax(table, write, buffer, length, ppos);
  6498. setup_per_zone_lowmem_reserve();
  6499. return 0;
  6500. }
  6501. /*
  6502. * percpu_pagelist_fraction - changes the pcp->high for each zone on each
  6503. * cpu. It is the fraction of total pages in each zone that a hot per cpu
  6504. * pagelist can have before it gets flushed back to buddy allocator.
  6505. */
  6506. int percpu_pagelist_fraction_sysctl_handler(struct ctl_table *table, int write,
  6507. void __user *buffer, size_t *length, loff_t *ppos)
  6508. {
  6509. struct zone *zone;
  6510. int old_percpu_pagelist_fraction;
  6511. int ret;
  6512. mutex_lock(&pcp_batch_high_lock);
  6513. old_percpu_pagelist_fraction = percpu_pagelist_fraction;
  6514. ret = proc_dointvec_minmax(table, write, buffer, length, ppos);
  6515. if (!write || ret < 0)
  6516. goto out;
  6517. /* Sanity checking to avoid pcp imbalance */
  6518. if (percpu_pagelist_fraction &&
  6519. percpu_pagelist_fraction < MIN_PERCPU_PAGELIST_FRACTION) {
  6520. percpu_pagelist_fraction = old_percpu_pagelist_fraction;
  6521. ret = -EINVAL;
  6522. goto out;
  6523. }
  6524. /* No change? */
  6525. if (percpu_pagelist_fraction == old_percpu_pagelist_fraction)
  6526. goto out;
  6527. for_each_populated_zone(zone) {
  6528. unsigned int cpu;
  6529. for_each_possible_cpu(cpu)
  6530. pageset_set_high_and_batch(zone,
  6531. per_cpu_ptr(zone->pageset, cpu));
  6532. }
  6533. out:
  6534. mutex_unlock(&pcp_batch_high_lock);
  6535. return ret;
  6536. }
  6537. #ifdef CONFIG_NUMA
  6538. int hashdist = HASHDIST_DEFAULT;
  6539. static int __init set_hashdist(char *str)
  6540. {
  6541. if (!str)
  6542. return 0;
  6543. hashdist = simple_strtoul(str, &str, 0);
  6544. return 1;
  6545. }
  6546. __setup("hashdist=", set_hashdist);
  6547. #endif
  6548. #ifndef __HAVE_ARCH_RESERVED_KERNEL_PAGES
  6549. /*
  6550. * Returns the number of pages that arch has reserved but
  6551. * is not known to alloc_large_system_hash().
  6552. */
  6553. static unsigned long __init arch_reserved_kernel_pages(void)
  6554. {
  6555. return 0;
  6556. }
  6557. #endif
  6558. /*
  6559. * Adaptive scale is meant to reduce sizes of hash tables on large memory
  6560. * machines. As memory size is increased the scale is also increased but at
  6561. * slower pace. Starting from ADAPT_SCALE_BASE (64G), every time memory
  6562. * quadruples the scale is increased by one, which means the size of hash table
  6563. * only doubles, instead of quadrupling as well.
  6564. * Because 32-bit systems cannot have large physical memory, where this scaling
  6565. * makes sense, it is disabled on such platforms.
  6566. */
  6567. #if __BITS_PER_LONG > 32
  6568. #define ADAPT_SCALE_BASE (64ul << 30)
  6569. #define ADAPT_SCALE_SHIFT 2
  6570. #define ADAPT_SCALE_NPAGES (ADAPT_SCALE_BASE >> PAGE_SHIFT)
  6571. #endif
  6572. /*
  6573. * allocate a large system hash table from bootmem
  6574. * - it is assumed that the hash table must contain an exact power-of-2
  6575. * quantity of entries
  6576. * - limit is the number of hash buckets, not the total allocation size
  6577. */
  6578. void *__init alloc_large_system_hash(const char *tablename,
  6579. unsigned long bucketsize,
  6580. unsigned long numentries,
  6581. int scale,
  6582. int flags,
  6583. unsigned int *_hash_shift,
  6584. unsigned int *_hash_mask,
  6585. unsigned long low_limit,
  6586. unsigned long high_limit)
  6587. {
  6588. unsigned long long max = high_limit;
  6589. unsigned long log2qty, size;
  6590. void *table = NULL;
  6591. gfp_t gfp_flags;
  6592. /* allow the kernel cmdline to have a say */
  6593. if (!numentries) {
  6594. /* round applicable memory size up to nearest megabyte */
  6595. numentries = nr_kernel_pages;
  6596. numentries -= arch_reserved_kernel_pages();
  6597. /* It isn't necessary when PAGE_SIZE >= 1MB */
  6598. if (PAGE_SHIFT < 20)
  6599. numentries = round_up(numentries, (1<<20)/PAGE_SIZE);
  6600. #if __BITS_PER_LONG > 32
  6601. if (!high_limit) {
  6602. unsigned long adapt;
  6603. for (adapt = ADAPT_SCALE_NPAGES; adapt < numentries;
  6604. adapt <<= ADAPT_SCALE_SHIFT)
  6605. scale++;
  6606. }
  6607. #endif
  6608. /* limit to 1 bucket per 2^scale bytes of low memory */
  6609. if (scale > PAGE_SHIFT)
  6610. numentries >>= (scale - PAGE_SHIFT);
  6611. else
  6612. numentries <<= (PAGE_SHIFT - scale);
  6613. /* Make sure we've got at least a 0-order allocation.. */
  6614. if (unlikely(flags & HASH_SMALL)) {
  6615. /* Makes no sense without HASH_EARLY */
  6616. WARN_ON(!(flags & HASH_EARLY));
  6617. if (!(numentries >> *_hash_shift)) {
  6618. numentries = 1UL << *_hash_shift;
  6619. BUG_ON(!numentries);
  6620. }
  6621. } else if (unlikely((numentries * bucketsize) < PAGE_SIZE))
  6622. numentries = PAGE_SIZE / bucketsize;
  6623. }
  6624. numentries = roundup_pow_of_two(numentries);
  6625. /* limit allocation size to 1/16 total memory by default */
  6626. if (max == 0) {
  6627. max = ((unsigned long long)nr_all_pages << PAGE_SHIFT) >> 4;
  6628. do_div(max, bucketsize);
  6629. }
  6630. max = min(max, 0x80000000ULL);
  6631. if (numentries < low_limit)
  6632. numentries = low_limit;
  6633. if (numentries > max)
  6634. numentries = max;
  6635. log2qty = ilog2(numentries);
  6636. gfp_flags = (flags & HASH_ZERO) ? GFP_ATOMIC | __GFP_ZERO : GFP_ATOMIC;
  6637. do {
  6638. size = bucketsize << log2qty;
  6639. if (flags & HASH_EARLY) {
  6640. if (flags & HASH_ZERO)
  6641. table = memblock_alloc_nopanic(size, 0);
  6642. else
  6643. table = memblock_alloc_raw(size, 0);
  6644. } else if (hashdist) {
  6645. table = __vmalloc(size, gfp_flags, PAGE_KERNEL);
  6646. } else {
  6647. /*
  6648. * If bucketsize is not a power-of-two, we may free
  6649. * some pages at the end of hash table which
  6650. * alloc_pages_exact() automatically does
  6651. */
  6652. if (get_order(size) < MAX_ORDER) {
  6653. table = alloc_pages_exact(size, gfp_flags);
  6654. kmemleak_alloc(table, size, 1, gfp_flags);
  6655. }
  6656. }
  6657. } while (!table && size > PAGE_SIZE && --log2qty);
  6658. if (!table)
  6659. panic("Failed to allocate %s hash table\n", tablename);
  6660. pr_info("%s hash table entries: %ld (order: %d, %lu bytes)\n",
  6661. tablename, 1UL << log2qty, ilog2(size) - PAGE_SHIFT, size);
  6662. if (_hash_shift)
  6663. *_hash_shift = log2qty;
  6664. if (_hash_mask)
  6665. *_hash_mask = (1 << log2qty) - 1;
  6666. return table;
  6667. }
  6668. /*
  6669. * This function checks whether pageblock includes unmovable pages or not.
  6670. * If @count is not zero, it is okay to include less @count unmovable pages
  6671. *
  6672. * PageLRU check without isolation or lru_lock could race so that
  6673. * MIGRATE_MOVABLE block might include unmovable pages. And __PageMovable
  6674. * check without lock_page also may miss some movable non-lru pages at
  6675. * race condition. So you can't expect this function should be exact.
  6676. */
  6677. bool has_unmovable_pages(struct zone *zone, struct page *page, int count,
  6678. int migratetype,
  6679. bool skip_hwpoisoned_pages)
  6680. {
  6681. unsigned long pfn, iter, found;
  6682. /*
  6683. * TODO we could make this much more efficient by not checking every
  6684. * page in the range if we know all of them are in MOVABLE_ZONE and
  6685. * that the movable zone guarantees that pages are migratable but
  6686. * the later is not the case right now unfortunatelly. E.g. movablecore
  6687. * can still lead to having bootmem allocations in zone_movable.
  6688. */
  6689. /*
  6690. * CMA allocations (alloc_contig_range) really need to mark isolate
  6691. * CMA pageblocks even when they are not movable in fact so consider
  6692. * them movable here.
  6693. */
  6694. if (is_migrate_cma(migratetype) &&
  6695. is_migrate_cma(get_pageblock_migratetype(page)))
  6696. return false;
  6697. pfn = page_to_pfn(page);
  6698. for (found = 0, iter = 0; iter < pageblock_nr_pages; iter++) {
  6699. unsigned long check = pfn + iter;
  6700. if (!pfn_valid_within(check))
  6701. continue;
  6702. page = pfn_to_page(check);
  6703. if (PageReserved(page))
  6704. goto unmovable;
  6705. /*
  6706. * Hugepages are not in LRU lists, but they're movable.
  6707. * We need not scan over tail pages bacause we don't
  6708. * handle each tail page individually in migration.
  6709. */
  6710. if (PageHuge(page)) {
  6711. if (!hugepage_migration_supported(page_hstate(page)))
  6712. goto unmovable;
  6713. iter = round_up(iter + 1, 1<<compound_order(page)) - 1;
  6714. continue;
  6715. }
  6716. /*
  6717. * We can't use page_count without pin a page
  6718. * because another CPU can free compound page.
  6719. * This check already skips compound tails of THP
  6720. * because their page->_refcount is zero at all time.
  6721. */
  6722. if (!page_ref_count(page)) {
  6723. if (PageBuddy(page))
  6724. iter += (1 << page_order(page)) - 1;
  6725. continue;
  6726. }
  6727. /*
  6728. * The HWPoisoned page may be not in buddy system, and
  6729. * page_count() is not 0.
  6730. */
  6731. if (skip_hwpoisoned_pages && PageHWPoison(page))
  6732. continue;
  6733. if (__PageMovable(page))
  6734. continue;
  6735. if (!PageLRU(page))
  6736. found++;
  6737. /*
  6738. * If there are RECLAIMABLE pages, we need to check
  6739. * it. But now, memory offline itself doesn't call
  6740. * shrink_node_slabs() and it still to be fixed.
  6741. */
  6742. /*
  6743. * If the page is not RAM, page_count()should be 0.
  6744. * we don't need more check. This is an _used_ not-movable page.
  6745. *
  6746. * The problematic thing here is PG_reserved pages. PG_reserved
  6747. * is set to both of a memory hole page and a _used_ kernel
  6748. * page at boot.
  6749. */
  6750. if (found > count)
  6751. goto unmovable;
  6752. }
  6753. return false;
  6754. unmovable:
  6755. WARN_ON_ONCE(zone_idx(zone) == ZONE_MOVABLE);
  6756. return true;
  6757. }
  6758. #if (defined(CONFIG_MEMORY_ISOLATION) && defined(CONFIG_COMPACTION)) || defined(CONFIG_CMA)
  6759. static unsigned long pfn_max_align_down(unsigned long pfn)
  6760. {
  6761. return pfn & ~(max_t(unsigned long, MAX_ORDER_NR_PAGES,
  6762. pageblock_nr_pages) - 1);
  6763. }
  6764. static unsigned long pfn_max_align_up(unsigned long pfn)
  6765. {
  6766. return ALIGN(pfn, max_t(unsigned long, MAX_ORDER_NR_PAGES,
  6767. pageblock_nr_pages));
  6768. }
  6769. /* [start, end) must belong to a single zone. */
  6770. static int __alloc_contig_migrate_range(struct compact_control *cc,
  6771. unsigned long start, unsigned long end)
  6772. {
  6773. /* This function is based on compact_zone() from compaction.c. */
  6774. unsigned long nr_reclaimed;
  6775. unsigned long pfn = start;
  6776. unsigned int tries = 0;
  6777. int ret = 0;
  6778. migrate_prep();
  6779. while (pfn < end || !list_empty(&cc->migratepages)) {
  6780. if (fatal_signal_pending(current)) {
  6781. ret = -EINTR;
  6782. break;
  6783. }
  6784. if (list_empty(&cc->migratepages)) {
  6785. cc->nr_migratepages = 0;
  6786. pfn = isolate_migratepages_range(cc, pfn, end);
  6787. if (!pfn) {
  6788. ret = -EINTR;
  6789. break;
  6790. }
  6791. tries = 0;
  6792. } else if (++tries == 5) {
  6793. ret = ret < 0 ? ret : -EBUSY;
  6794. break;
  6795. }
  6796. nr_reclaimed = reclaim_clean_pages_from_list(cc->zone,
  6797. &cc->migratepages);
  6798. cc->nr_migratepages -= nr_reclaimed;
  6799. ret = migrate_pages(&cc->migratepages, alloc_migrate_target,
  6800. NULL, 0, cc->mode, MR_CONTIG_RANGE);
  6801. }
  6802. if (ret < 0) {
  6803. putback_movable_pages(&cc->migratepages);
  6804. return ret;
  6805. }
  6806. return 0;
  6807. }
  6808. /**
  6809. * alloc_contig_range() -- tries to allocate given range of pages
  6810. * @start: start PFN to allocate
  6811. * @end: one-past-the-last PFN to allocate
  6812. * @migratetype: migratetype of the underlaying pageblocks (either
  6813. * #MIGRATE_MOVABLE or #MIGRATE_CMA). All pageblocks
  6814. * in range must have the same migratetype and it must
  6815. * be either of the two.
  6816. * @gfp_mask: GFP mask to use during compaction
  6817. *
  6818. * The PFN range does not have to be pageblock or MAX_ORDER_NR_PAGES
  6819. * aligned. The PFN range must belong to a single zone.
  6820. *
  6821. * The first thing this routine does is attempt to MIGRATE_ISOLATE all
  6822. * pageblocks in the range. Once isolated, the pageblocks should not
  6823. * be modified by others.
  6824. *
  6825. * Returns zero on success or negative error code. On success all
  6826. * pages which PFN is in [start, end) are allocated for the caller and
  6827. * need to be freed with free_contig_range().
  6828. */
  6829. int alloc_contig_range(unsigned long start, unsigned long end,
  6830. unsigned migratetype, gfp_t gfp_mask)
  6831. {
  6832. unsigned long outer_start, outer_end;
  6833. unsigned int order;
  6834. int ret = 0;
  6835. struct compact_control cc = {
  6836. .nr_migratepages = 0,
  6837. .order = -1,
  6838. .zone = page_zone(pfn_to_page(start)),
  6839. .mode = MIGRATE_SYNC,
  6840. .ignore_skip_hint = true,
  6841. .no_set_skip_hint = true,
  6842. .gfp_mask = current_gfp_context(gfp_mask),
  6843. };
  6844. INIT_LIST_HEAD(&cc.migratepages);
  6845. /*
  6846. * What we do here is we mark all pageblocks in range as
  6847. * MIGRATE_ISOLATE. Because pageblock and max order pages may
  6848. * have different sizes, and due to the way page allocator
  6849. * work, we align the range to biggest of the two pages so
  6850. * that page allocator won't try to merge buddies from
  6851. * different pageblocks and change MIGRATE_ISOLATE to some
  6852. * other migration type.
  6853. *
  6854. * Once the pageblocks are marked as MIGRATE_ISOLATE, we
  6855. * migrate the pages from an unaligned range (ie. pages that
  6856. * we are interested in). This will put all the pages in
  6857. * range back to page allocator as MIGRATE_ISOLATE.
  6858. *
  6859. * When this is done, we take the pages in range from page
  6860. * allocator removing them from the buddy system. This way
  6861. * page allocator will never consider using them.
  6862. *
  6863. * This lets us mark the pageblocks back as
  6864. * MIGRATE_CMA/MIGRATE_MOVABLE so that free pages in the
  6865. * aligned range but not in the unaligned, original range are
  6866. * put back to page allocator so that buddy can use them.
  6867. */
  6868. ret = start_isolate_page_range(pfn_max_align_down(start),
  6869. pfn_max_align_up(end), migratetype,
  6870. false);
  6871. if (ret)
  6872. return ret;
  6873. /*
  6874. * In case of -EBUSY, we'd like to know which page causes problem.
  6875. * So, just fall through. test_pages_isolated() has a tracepoint
  6876. * which will report the busy page.
  6877. *
  6878. * It is possible that busy pages could become available before
  6879. * the call to test_pages_isolated, and the range will actually be
  6880. * allocated. So, if we fall through be sure to clear ret so that
  6881. * -EBUSY is not accidentally used or returned to caller.
  6882. */
  6883. ret = __alloc_contig_migrate_range(&cc, start, end);
  6884. if (ret && ret != -EBUSY)
  6885. goto done;
  6886. ret =0;
  6887. /*
  6888. * Pages from [start, end) are within a MAX_ORDER_NR_PAGES
  6889. * aligned blocks that are marked as MIGRATE_ISOLATE. What's
  6890. * more, all pages in [start, end) are free in page allocator.
  6891. * What we are going to do is to allocate all pages from
  6892. * [start, end) (that is remove them from page allocator).
  6893. *
  6894. * The only problem is that pages at the beginning and at the
  6895. * end of interesting range may be not aligned with pages that
  6896. * page allocator holds, ie. they can be part of higher order
  6897. * pages. Because of this, we reserve the bigger range and
  6898. * once this is done free the pages we are not interested in.
  6899. *
  6900. * We don't have to hold zone->lock here because the pages are
  6901. * isolated thus they won't get removed from buddy.
  6902. */
  6903. lru_add_drain_all();
  6904. drain_all_pages(cc.zone);
  6905. order = 0;
  6906. outer_start = start;
  6907. while (!PageBuddy(pfn_to_page(outer_start))) {
  6908. if (++order >= MAX_ORDER) {
  6909. outer_start = start;
  6910. break;
  6911. }
  6912. outer_start &= ~0UL << order;
  6913. }
  6914. if (outer_start != start) {
  6915. order = page_order(pfn_to_page(outer_start));
  6916. /*
  6917. * outer_start page could be small order buddy page and
  6918. * it doesn't include start page. Adjust outer_start
  6919. * in this case to report failed page properly
  6920. * on tracepoint in test_pages_isolated()
  6921. */
  6922. if (outer_start + (1UL << order) <= start)
  6923. outer_start = start;
  6924. }
  6925. /* Make sure the range is really isolated. */
  6926. if (test_pages_isolated(outer_start, end, false)) {
  6927. pr_info_ratelimited("%s: [%lx, %lx) PFNs busy\n",
  6928. __func__, outer_start, end);
  6929. ret = -EBUSY;
  6930. goto done;
  6931. }
  6932. /* Grab isolated pages from freelists. */
  6933. outer_end = isolate_freepages_range(&cc, outer_start, end);
  6934. if (!outer_end) {
  6935. ret = -EBUSY;
  6936. goto done;
  6937. }
  6938. /* Free head and tail (if any) */
  6939. if (start != outer_start)
  6940. free_contig_range(outer_start, start - outer_start);
  6941. if (end != outer_end)
  6942. free_contig_range(end, outer_end - end);
  6943. done:
  6944. undo_isolate_page_range(pfn_max_align_down(start),
  6945. pfn_max_align_up(end), migratetype);
  6946. return ret;
  6947. }
  6948. void free_contig_range(unsigned long pfn, unsigned nr_pages)
  6949. {
  6950. unsigned int count = 0;
  6951. for (; nr_pages--; pfn++) {
  6952. struct page *page = pfn_to_page(pfn);
  6953. count += page_count(page) != 1;
  6954. __free_page(page);
  6955. }
  6956. WARN(count != 0, "%d pages are still in use!\n", count);
  6957. }
  6958. #endif
  6959. #ifdef CONFIG_MEMORY_HOTPLUG
  6960. /*
  6961. * The zone indicated has a new number of managed_pages; batch sizes and percpu
  6962. * page high values need to be recalulated.
  6963. */
  6964. void __meminit zone_pcp_update(struct zone *zone)
  6965. {
  6966. unsigned cpu;
  6967. mutex_lock(&pcp_batch_high_lock);
  6968. for_each_possible_cpu(cpu)
  6969. pageset_set_high_and_batch(zone,
  6970. per_cpu_ptr(zone->pageset, cpu));
  6971. mutex_unlock(&pcp_batch_high_lock);
  6972. }
  6973. #endif
  6974. void zone_pcp_reset(struct zone *zone)
  6975. {
  6976. unsigned long flags;
  6977. int cpu;
  6978. struct per_cpu_pageset *pset;
  6979. /* avoid races with drain_pages() */
  6980. local_irq_save(flags);
  6981. if (zone->pageset != &boot_pageset) {
  6982. for_each_online_cpu(cpu) {
  6983. pset = per_cpu_ptr(zone->pageset, cpu);
  6984. drain_zonestat(zone, pset);
  6985. }
  6986. free_percpu(zone->pageset);
  6987. zone->pageset = &boot_pageset;
  6988. }
  6989. local_irq_restore(flags);
  6990. }
  6991. #ifdef CONFIG_MEMORY_HOTREMOVE
  6992. /*
  6993. * All pages in the range must be in a single zone and isolated
  6994. * before calling this.
  6995. */
  6996. void
  6997. __offline_isolated_pages(unsigned long start_pfn, unsigned long end_pfn)
  6998. {
  6999. struct page *page;
  7000. struct zone *zone;
  7001. unsigned int order, i;
  7002. unsigned long pfn;
  7003. unsigned long flags;
  7004. /* find the first valid pfn */
  7005. for (pfn = start_pfn; pfn < end_pfn; pfn++)
  7006. if (pfn_valid(pfn))
  7007. break;
  7008. if (pfn == end_pfn)
  7009. return;
  7010. offline_mem_sections(pfn, end_pfn);
  7011. zone = page_zone(pfn_to_page(pfn));
  7012. spin_lock_irqsave(&zone->lock, flags);
  7013. pfn = start_pfn;
  7014. while (pfn < end_pfn) {
  7015. if (!pfn_valid(pfn)) {
  7016. pfn++;
  7017. continue;
  7018. }
  7019. page = pfn_to_page(pfn);
  7020. /*
  7021. * The HWPoisoned page may be not in buddy system, and
  7022. * page_count() is not 0.
  7023. */
  7024. if (unlikely(!PageBuddy(page) && PageHWPoison(page))) {
  7025. pfn++;
  7026. SetPageReserved(page);
  7027. continue;
  7028. }
  7029. BUG_ON(page_count(page));
  7030. BUG_ON(!PageBuddy(page));
  7031. order = page_order(page);
  7032. #ifdef CONFIG_DEBUG_VM
  7033. pr_info("remove from free list %lx %d %lx\n",
  7034. pfn, 1 << order, end_pfn);
  7035. #endif
  7036. list_del(&page->lru);
  7037. rmv_page_order(page);
  7038. zone->free_area[order].nr_free--;
  7039. for (i = 0; i < (1 << order); i++)
  7040. SetPageReserved((page+i));
  7041. pfn += (1 << order);
  7042. }
  7043. spin_unlock_irqrestore(&zone->lock, flags);
  7044. }
  7045. #endif
  7046. bool is_free_buddy_page(struct page *page)
  7047. {
  7048. struct zone *zone = page_zone(page);
  7049. unsigned long pfn = page_to_pfn(page);
  7050. unsigned long flags;
  7051. unsigned int order;
  7052. spin_lock_irqsave(&zone->lock, flags);
  7053. for (order = 0; order < MAX_ORDER; order++) {
  7054. struct page *page_head = page - (pfn & ((1 << order) - 1));
  7055. if (PageBuddy(page_head) && page_order(page_head) >= order)
  7056. break;
  7057. }
  7058. spin_unlock_irqrestore(&zone->lock, flags);
  7059. return order < MAX_ORDER;
  7060. }
  7061. #ifdef CONFIG_MEMORY_FAILURE
  7062. /*
  7063. * Set PG_hwpoison flag if a given page is confirmed to be a free page. This
  7064. * test is performed under the zone lock to prevent a race against page
  7065. * allocation.
  7066. */
  7067. bool set_hwpoison_free_buddy_page(struct page *page)
  7068. {
  7069. struct zone *zone = page_zone(page);
  7070. unsigned long pfn = page_to_pfn(page);
  7071. unsigned long flags;
  7072. unsigned int order;
  7073. bool hwpoisoned = false;
  7074. spin_lock_irqsave(&zone->lock, flags);
  7075. for (order = 0; order < MAX_ORDER; order++) {
  7076. struct page *page_head = page - (pfn & ((1 << order) - 1));
  7077. if (PageBuddy(page_head) && page_order(page_head) >= order) {
  7078. if (!TestSetPageHWPoison(page))
  7079. hwpoisoned = true;
  7080. break;
  7081. }
  7082. }
  7083. spin_unlock_irqrestore(&zone->lock, flags);
  7084. return hwpoisoned;
  7085. }
  7086. #endif