mm: optimize put_mems_allowed() usage
[linux-2.6-block.git] / mm / hugetlb.c
CommitLineData
1da177e4
LT
1/*
2 * Generic hugetlb support.
6d49e352 3 * (C) Nadia Yvette Chambers, April 2004
1da177e4 4 */
1da177e4
LT
5#include <linux/list.h>
6#include <linux/init.h>
7#include <linux/module.h>
8#include <linux/mm.h>
e1759c21 9#include <linux/seq_file.h>
1da177e4
LT
10#include <linux/sysctl.h>
11#include <linux/highmem.h>
cddb8a5c 12#include <linux/mmu_notifier.h>
1da177e4 13#include <linux/nodemask.h>
63551ae0 14#include <linux/pagemap.h>
5da7ca86 15#include <linux/mempolicy.h>
aea47ff3 16#include <linux/cpuset.h>
3935baa9 17#include <linux/mutex.h>
aa888a74 18#include <linux/bootmem.h>
a3437870 19#include <linux/sysfs.h>
5a0e3ad6 20#include <linux/slab.h>
0fe6e20b 21#include <linux/rmap.h>
fd6a03ed
NH
22#include <linux/swap.h>
23#include <linux/swapops.h>
c8721bbb 24#include <linux/page-isolation.h>
d6606683 25
63551ae0
DG
26#include <asm/page.h>
27#include <asm/pgtable.h>
24669e58 28#include <asm/tlb.h>
63551ae0 29
24669e58 30#include <linux/io.h>
63551ae0 31#include <linux/hugetlb.h>
9dd540e2 32#include <linux/hugetlb_cgroup.h>
9a305230 33#include <linux/node.h>
7835e98b 34#include "internal.h"
1da177e4
LT
35
36const unsigned long hugetlb_zero = 0, hugetlb_infinity = ~0UL;
396faf03 37unsigned long hugepages_treat_as_movable;
a5516438 38
c3f38a38 39int hugetlb_max_hstate __read_mostly;
e5ff2159
AK
40unsigned int default_hstate_idx;
41struct hstate hstates[HUGE_MAX_HSTATE];
42
53ba51d2
JT
43__initdata LIST_HEAD(huge_boot_pages);
44
e5ff2159
AK
45/* for command line parsing */
46static struct hstate * __initdata parsed_hstate;
47static unsigned long __initdata default_hstate_max_huge_pages;
e11bfbfc 48static unsigned long __initdata default_hstate_size;
e5ff2159 49
3935baa9 50/*
31caf665
NH
51 * Protects updates to hugepage_freelists, hugepage_activelist, nr_huge_pages,
52 * free_huge_pages, and surplus_huge_pages.
3935baa9 53 */
c3f38a38 54DEFINE_SPINLOCK(hugetlb_lock);
0bd0f9fb 55
90481622
DG
56static inline void unlock_or_release_subpool(struct hugepage_subpool *spool)
57{
58 bool free = (spool->count == 0) && (spool->used_hpages == 0);
59
60 spin_unlock(&spool->lock);
61
62 /* If no pages are used, and no other handles to the subpool
63 * remain, free the subpool the subpool remain */
64 if (free)
65 kfree(spool);
66}
67
68struct hugepage_subpool *hugepage_new_subpool(long nr_blocks)
69{
70 struct hugepage_subpool *spool;
71
72 spool = kmalloc(sizeof(*spool), GFP_KERNEL);
73 if (!spool)
74 return NULL;
75
76 spin_lock_init(&spool->lock);
77 spool->count = 1;
78 spool->max_hpages = nr_blocks;
79 spool->used_hpages = 0;
80
81 return spool;
82}
83
84void hugepage_put_subpool(struct hugepage_subpool *spool)
85{
86 spin_lock(&spool->lock);
87 BUG_ON(!spool->count);
88 spool->count--;
89 unlock_or_release_subpool(spool);
90}
91
92static int hugepage_subpool_get_pages(struct hugepage_subpool *spool,
93 long delta)
94{
95 int ret = 0;
96
97 if (!spool)
98 return 0;
99
100 spin_lock(&spool->lock);
101 if ((spool->used_hpages + delta) <= spool->max_hpages) {
102 spool->used_hpages += delta;
103 } else {
104 ret = -ENOMEM;
105 }
106 spin_unlock(&spool->lock);
107
108 return ret;
109}
110
111static void hugepage_subpool_put_pages(struct hugepage_subpool *spool,
112 long delta)
113{
114 if (!spool)
115 return;
116
117 spin_lock(&spool->lock);
118 spool->used_hpages -= delta;
119 /* If hugetlbfs_put_super couldn't free spool due to
120 * an outstanding quota reference, free it now. */
121 unlock_or_release_subpool(spool);
122}
123
124static inline struct hugepage_subpool *subpool_inode(struct inode *inode)
125{
126 return HUGETLBFS_SB(inode->i_sb)->spool;
127}
128
129static inline struct hugepage_subpool *subpool_vma(struct vm_area_struct *vma)
130{
496ad9aa 131 return subpool_inode(file_inode(vma->vm_file));
90481622
DG
132}
133
96822904
AW
134/*
135 * Region tracking -- allows tracking of reservations and instantiated pages
136 * across the pages in a mapping.
84afd99b
AW
137 *
138 * The region data structures are protected by a combination of the mmap_sem
c748c262 139 * and the hugetlb_instantiation_mutex. To access or modify a region the caller
84afd99b 140 * must either hold the mmap_sem for write, or the mmap_sem for read and
c748c262 141 * the hugetlb_instantiation_mutex:
84afd99b 142 *
32f84528 143 * down_write(&mm->mmap_sem);
84afd99b 144 * or
32f84528
CF
145 * down_read(&mm->mmap_sem);
146 * mutex_lock(&hugetlb_instantiation_mutex);
96822904
AW
147 */
148struct file_region {
149 struct list_head link;
150 long from;
151 long to;
152};
153
154static long region_add(struct list_head *head, long f, long t)
155{
156 struct file_region *rg, *nrg, *trg;
157
158 /* Locate the region we are either in or before. */
159 list_for_each_entry(rg, head, link)
160 if (f <= rg->to)
161 break;
162
163 /* Round our left edge to the current segment if it encloses us. */
164 if (f > rg->from)
165 f = rg->from;
166
167 /* Check for and consume any regions we now overlap with. */
168 nrg = rg;
169 list_for_each_entry_safe(rg, trg, rg->link.prev, link) {
170 if (&rg->link == head)
171 break;
172 if (rg->from > t)
173 break;
174
175 /* If this area reaches higher then extend our area to
176 * include it completely. If this is not the first area
177 * which we intend to reuse, free it. */
178 if (rg->to > t)
179 t = rg->to;
180 if (rg != nrg) {
181 list_del(&rg->link);
182 kfree(rg);
183 }
184 }
185 nrg->from = f;
186 nrg->to = t;
187 return 0;
188}
189
190static long region_chg(struct list_head *head, long f, long t)
191{
192 struct file_region *rg, *nrg;
193 long chg = 0;
194
195 /* Locate the region we are before or in. */
196 list_for_each_entry(rg, head, link)
197 if (f <= rg->to)
198 break;
199
200 /* If we are below the current region then a new region is required.
201 * Subtle, allocate a new region at the position but make it zero
202 * size such that we can guarantee to record the reservation. */
203 if (&rg->link == head || t < rg->from) {
204 nrg = kmalloc(sizeof(*nrg), GFP_KERNEL);
205 if (!nrg)
206 return -ENOMEM;
207 nrg->from = f;
208 nrg->to = f;
209 INIT_LIST_HEAD(&nrg->link);
210 list_add(&nrg->link, rg->link.prev);
211
212 return t - f;
213 }
214
215 /* Round our left edge to the current segment if it encloses us. */
216 if (f > rg->from)
217 f = rg->from;
218 chg = t - f;
219
220 /* Check for and consume any regions we now overlap with. */
221 list_for_each_entry(rg, rg->link.prev, link) {
222 if (&rg->link == head)
223 break;
224 if (rg->from > t)
225 return chg;
226
25985edc 227 /* We overlap with this area, if it extends further than
96822904
AW
228 * us then we must extend ourselves. Account for its
229 * existing reservation. */
230 if (rg->to > t) {
231 chg += rg->to - t;
232 t = rg->to;
233 }
234 chg -= rg->to - rg->from;
235 }
236 return chg;
237}
238
239static long region_truncate(struct list_head *head, long end)
240{
241 struct file_region *rg, *trg;
242 long chg = 0;
243
244 /* Locate the region we are either in or before. */
245 list_for_each_entry(rg, head, link)
246 if (end <= rg->to)
247 break;
248 if (&rg->link == head)
249 return 0;
250
251 /* If we are in the middle of a region then adjust it. */
252 if (end > rg->from) {
253 chg = rg->to - end;
254 rg->to = end;
255 rg = list_entry(rg->link.next, typeof(*rg), link);
256 }
257
258 /* Drop any remaining regions. */
259 list_for_each_entry_safe(rg, trg, rg->link.prev, link) {
260 if (&rg->link == head)
261 break;
262 chg += rg->to - rg->from;
263 list_del(&rg->link);
264 kfree(rg);
265 }
266 return chg;
267}
268
84afd99b
AW
269static long region_count(struct list_head *head, long f, long t)
270{
271 struct file_region *rg;
272 long chg = 0;
273
274 /* Locate each segment we overlap with, and count that overlap. */
275 list_for_each_entry(rg, head, link) {
f2135a4a
WSH
276 long seg_from;
277 long seg_to;
84afd99b
AW
278
279 if (rg->to <= f)
280 continue;
281 if (rg->from >= t)
282 break;
283
284 seg_from = max(rg->from, f);
285 seg_to = min(rg->to, t);
286
287 chg += seg_to - seg_from;
288 }
289
290 return chg;
291}
292
e7c4b0bf
AW
293/*
294 * Convert the address within this vma to the page offset within
295 * the mapping, in pagecache page units; huge pages here.
296 */
a5516438
AK
297static pgoff_t vma_hugecache_offset(struct hstate *h,
298 struct vm_area_struct *vma, unsigned long address)
e7c4b0bf 299{
a5516438
AK
300 return ((address - vma->vm_start) >> huge_page_shift(h)) +
301 (vma->vm_pgoff >> huge_page_order(h));
e7c4b0bf
AW
302}
303
0fe6e20b
NH
304pgoff_t linear_hugepage_index(struct vm_area_struct *vma,
305 unsigned long address)
306{
307 return vma_hugecache_offset(hstate_vma(vma), vma, address);
308}
309
08fba699
MG
310/*
311 * Return the size of the pages allocated when backing a VMA. In the majority
312 * cases this will be same size as used by the page table entries.
313 */
314unsigned long vma_kernel_pagesize(struct vm_area_struct *vma)
315{
316 struct hstate *hstate;
317
318 if (!is_vm_hugetlb_page(vma))
319 return PAGE_SIZE;
320
321 hstate = hstate_vma(vma);
322
2415cf12 323 return 1UL << huge_page_shift(hstate);
08fba699 324}
f340ca0f 325EXPORT_SYMBOL_GPL(vma_kernel_pagesize);
08fba699 326
3340289d
MG
327/*
328 * Return the page size being used by the MMU to back a VMA. In the majority
329 * of cases, the page size used by the kernel matches the MMU size. On
330 * architectures where it differs, an architecture-specific version of this
331 * function is required.
332 */
333#ifndef vma_mmu_pagesize
334unsigned long vma_mmu_pagesize(struct vm_area_struct *vma)
335{
336 return vma_kernel_pagesize(vma);
337}
338#endif
339
84afd99b
AW
340/*
341 * Flags for MAP_PRIVATE reservations. These are stored in the bottom
342 * bits of the reservation map pointer, which are always clear due to
343 * alignment.
344 */
345#define HPAGE_RESV_OWNER (1UL << 0)
346#define HPAGE_RESV_UNMAPPED (1UL << 1)
04f2cbe3 347#define HPAGE_RESV_MASK (HPAGE_RESV_OWNER | HPAGE_RESV_UNMAPPED)
84afd99b 348
a1e78772
MG
349/*
350 * These helpers are used to track how many pages are reserved for
351 * faults in a MAP_PRIVATE mapping. Only the process that called mmap()
352 * is guaranteed to have their future faults succeed.
353 *
354 * With the exception of reset_vma_resv_huge_pages() which is called at fork(),
355 * the reserve counters are updated with the hugetlb_lock held. It is safe
356 * to reset the VMA at fork() time as it is not in use yet and there is no
357 * chance of the global counters getting corrupted as a result of the values.
84afd99b
AW
358 *
359 * The private mapping reservation is represented in a subtly different
360 * manner to a shared mapping. A shared mapping has a region map associated
361 * with the underlying file, this region map represents the backing file
362 * pages which have ever had a reservation assigned which this persists even
363 * after the page is instantiated. A private mapping has a region map
364 * associated with the original mmap which is attached to all VMAs which
365 * reference it, this region map represents those offsets which have consumed
366 * reservation ie. where pages have been instantiated.
a1e78772 367 */
e7c4b0bf
AW
368static unsigned long get_vma_private_data(struct vm_area_struct *vma)
369{
370 return (unsigned long)vma->vm_private_data;
371}
372
373static void set_vma_private_data(struct vm_area_struct *vma,
374 unsigned long value)
375{
376 vma->vm_private_data = (void *)value;
377}
378
84afd99b
AW
379struct resv_map {
380 struct kref refs;
381 struct list_head regions;
382};
383
2a4b3ded 384static struct resv_map *resv_map_alloc(void)
84afd99b
AW
385{
386 struct resv_map *resv_map = kmalloc(sizeof(*resv_map), GFP_KERNEL);
387 if (!resv_map)
388 return NULL;
389
390 kref_init(&resv_map->refs);
391 INIT_LIST_HEAD(&resv_map->regions);
392
393 return resv_map;
394}
395
2a4b3ded 396static void resv_map_release(struct kref *ref)
84afd99b
AW
397{
398 struct resv_map *resv_map = container_of(ref, struct resv_map, refs);
399
400 /* Clear out any active regions before we release the map. */
401 region_truncate(&resv_map->regions, 0);
402 kfree(resv_map);
403}
404
405static struct resv_map *vma_resv_map(struct vm_area_struct *vma)
a1e78772
MG
406{
407 VM_BUG_ON(!is_vm_hugetlb_page(vma));
f83a275d 408 if (!(vma->vm_flags & VM_MAYSHARE))
84afd99b
AW
409 return (struct resv_map *)(get_vma_private_data(vma) &
410 ~HPAGE_RESV_MASK);
2a4b3ded 411 return NULL;
a1e78772
MG
412}
413
84afd99b 414static void set_vma_resv_map(struct vm_area_struct *vma, struct resv_map *map)
a1e78772
MG
415{
416 VM_BUG_ON(!is_vm_hugetlb_page(vma));
f83a275d 417 VM_BUG_ON(vma->vm_flags & VM_MAYSHARE);
a1e78772 418
84afd99b
AW
419 set_vma_private_data(vma, (get_vma_private_data(vma) &
420 HPAGE_RESV_MASK) | (unsigned long)map);
04f2cbe3
MG
421}
422
423static void set_vma_resv_flags(struct vm_area_struct *vma, unsigned long flags)
424{
04f2cbe3 425 VM_BUG_ON(!is_vm_hugetlb_page(vma));
f83a275d 426 VM_BUG_ON(vma->vm_flags & VM_MAYSHARE);
e7c4b0bf
AW
427
428 set_vma_private_data(vma, get_vma_private_data(vma) | flags);
04f2cbe3
MG
429}
430
431static int is_vma_resv_set(struct vm_area_struct *vma, unsigned long flag)
432{
433 VM_BUG_ON(!is_vm_hugetlb_page(vma));
e7c4b0bf
AW
434
435 return (get_vma_private_data(vma) & flag) != 0;
a1e78772
MG
436}
437
04f2cbe3 438/* Reset counters to 0 and clear all HPAGE_RESV_* flags */
a1e78772
MG
439void reset_vma_resv_huge_pages(struct vm_area_struct *vma)
440{
441 VM_BUG_ON(!is_vm_hugetlb_page(vma));
f83a275d 442 if (!(vma->vm_flags & VM_MAYSHARE))
a1e78772
MG
443 vma->vm_private_data = (void *)0;
444}
445
446/* Returns true if the VMA has associated reserve pages */
af0ed73e 447static int vma_has_reserves(struct vm_area_struct *vma, long chg)
a1e78772 448{
af0ed73e
JK
449 if (vma->vm_flags & VM_NORESERVE) {
450 /*
451 * This address is already reserved by other process(chg == 0),
452 * so, we should decrement reserved count. Without decrementing,
453 * reserve count remains after releasing inode, because this
454 * allocated page will go into page cache and is regarded as
455 * coming from reserved pool in releasing step. Currently, we
456 * don't have any other solution to deal with this situation
457 * properly, so add work-around here.
458 */
459 if (vma->vm_flags & VM_MAYSHARE && chg == 0)
460 return 1;
461 else
462 return 0;
463 }
a63884e9
JK
464
465 /* Shared mappings always use reserves */
f83a275d 466 if (vma->vm_flags & VM_MAYSHARE)
7f09ca51 467 return 1;
a63884e9
JK
468
469 /*
470 * Only the process that called mmap() has reserves for
471 * private mappings.
472 */
7f09ca51
MG
473 if (is_vma_resv_set(vma, HPAGE_RESV_OWNER))
474 return 1;
a63884e9 475
7f09ca51 476 return 0;
a1e78772
MG
477}
478
a5516438 479static void enqueue_huge_page(struct hstate *h, struct page *page)
1da177e4
LT
480{
481 int nid = page_to_nid(page);
0edaecfa 482 list_move(&page->lru, &h->hugepage_freelists[nid]);
a5516438
AK
483 h->free_huge_pages++;
484 h->free_huge_pages_node[nid]++;
1da177e4
LT
485}
486
bf50bab2
NH
487static struct page *dequeue_huge_page_node(struct hstate *h, int nid)
488{
489 struct page *page;
490
c8721bbb
NH
491 list_for_each_entry(page, &h->hugepage_freelists[nid], lru)
492 if (!is_migrate_isolate_page(page))
493 break;
494 /*
495 * if 'non-isolated free hugepage' not found on the list,
496 * the allocation fails.
497 */
498 if (&h->hugepage_freelists[nid] == &page->lru)
bf50bab2 499 return NULL;
0edaecfa 500 list_move(&page->lru, &h->hugepage_activelist);
a9869b83 501 set_page_refcounted(page);
bf50bab2
NH
502 h->free_huge_pages--;
503 h->free_huge_pages_node[nid]--;
504 return page;
505}
506
86cdb465
NH
507/* Movability of hugepages depends on migration support. */
508static inline gfp_t htlb_alloc_mask(struct hstate *h)
509{
510 if (hugepages_treat_as_movable || hugepage_migration_support(h))
511 return GFP_HIGHUSER_MOVABLE;
512 else
513 return GFP_HIGHUSER;
514}
515
a5516438
AK
516static struct page *dequeue_huge_page_vma(struct hstate *h,
517 struct vm_area_struct *vma,
af0ed73e
JK
518 unsigned long address, int avoid_reserve,
519 long chg)
1da177e4 520{
b1c12cbc 521 struct page *page = NULL;
480eccf9 522 struct mempolicy *mpol;
19770b32 523 nodemask_t *nodemask;
c0ff7453 524 struct zonelist *zonelist;
dd1a239f
MG
525 struct zone *zone;
526 struct zoneref *z;
cc9a6c87 527 unsigned int cpuset_mems_cookie;
1da177e4 528
a1e78772
MG
529 /*
530 * A child process with MAP_PRIVATE mappings created by their parent
531 * have no page reserves. This check ensures that reservations are
532 * not "stolen". The child may still get SIGKILLed
533 */
af0ed73e 534 if (!vma_has_reserves(vma, chg) &&
a5516438 535 h->free_huge_pages - h->resv_huge_pages == 0)
c0ff7453 536 goto err;
a1e78772 537
04f2cbe3 538 /* If reserves cannot be used, ensure enough pages are in the pool */
a5516438 539 if (avoid_reserve && h->free_huge_pages - h->resv_huge_pages == 0)
6eab04a8 540 goto err;
04f2cbe3 541
9966c4bb 542retry_cpuset:
d26914d1 543 cpuset_mems_cookie = read_mems_allowed_begin();
9966c4bb 544 zonelist = huge_zonelist(vma, address,
86cdb465 545 htlb_alloc_mask(h), &mpol, &nodemask);
9966c4bb 546
19770b32
MG
547 for_each_zone_zonelist_nodemask(zone, z, zonelist,
548 MAX_NR_ZONES - 1, nodemask) {
86cdb465 549 if (cpuset_zone_allowed_softwall(zone, htlb_alloc_mask(h))) {
bf50bab2
NH
550 page = dequeue_huge_page_node(h, zone_to_nid(zone));
551 if (page) {
af0ed73e
JK
552 if (avoid_reserve)
553 break;
554 if (!vma_has_reserves(vma, chg))
555 break;
556
07443a85 557 SetPagePrivate(page);
af0ed73e 558 h->resv_huge_pages--;
bf50bab2
NH
559 break;
560 }
3abf7afd 561 }
1da177e4 562 }
cc9a6c87 563
52cd3b07 564 mpol_cond_put(mpol);
d26914d1 565 if (unlikely(!page && read_mems_allowed_retry(cpuset_mems_cookie)))
cc9a6c87 566 goto retry_cpuset;
1da177e4 567 return page;
cc9a6c87
MG
568
569err:
cc9a6c87 570 return NULL;
1da177e4
LT
571}
572
a5516438 573static void update_and_free_page(struct hstate *h, struct page *page)
6af2acb6
AL
574{
575 int i;
a5516438 576
18229df5
AW
577 VM_BUG_ON(h->order >= MAX_ORDER);
578
a5516438
AK
579 h->nr_huge_pages--;
580 h->nr_huge_pages_node[page_to_nid(page)]--;
581 for (i = 0; i < pages_per_huge_page(h); i++) {
32f84528
CF
582 page[i].flags &= ~(1 << PG_locked | 1 << PG_error |
583 1 << PG_referenced | 1 << PG_dirty |
584 1 << PG_active | 1 << PG_reserved |
585 1 << PG_private | 1 << PG_writeback);
6af2acb6 586 }
309381fe 587 VM_BUG_ON_PAGE(hugetlb_cgroup_from_page(page), page);
6af2acb6
AL
588 set_compound_page_dtor(page, NULL);
589 set_page_refcounted(page);
7f2e9525 590 arch_release_hugepage(page);
a5516438 591 __free_pages(page, huge_page_order(h));
6af2acb6
AL
592}
593
e5ff2159
AK
594struct hstate *size_to_hstate(unsigned long size)
595{
596 struct hstate *h;
597
598 for_each_hstate(h) {
599 if (huge_page_size(h) == size)
600 return h;
601 }
602 return NULL;
603}
604
27a85ef1
DG
605static void free_huge_page(struct page *page)
606{
a5516438
AK
607 /*
608 * Can't pass hstate in here because it is called from the
609 * compound page destructor.
610 */
e5ff2159 611 struct hstate *h = page_hstate(page);
7893d1d5 612 int nid = page_to_nid(page);
90481622
DG
613 struct hugepage_subpool *spool =
614 (struct hugepage_subpool *)page_private(page);
07443a85 615 bool restore_reserve;
27a85ef1 616
e5df70ab 617 set_page_private(page, 0);
23be7468 618 page->mapping = NULL;
7893d1d5 619 BUG_ON(page_count(page));
0fe6e20b 620 BUG_ON(page_mapcount(page));
07443a85 621 restore_reserve = PagePrivate(page);
16c794b4 622 ClearPagePrivate(page);
27a85ef1
DG
623
624 spin_lock(&hugetlb_lock);
6d76dcf4
AK
625 hugetlb_cgroup_uncharge_page(hstate_index(h),
626 pages_per_huge_page(h), page);
07443a85
JK
627 if (restore_reserve)
628 h->resv_huge_pages++;
629
aa888a74 630 if (h->surplus_huge_pages_node[nid] && huge_page_order(h) < MAX_ORDER) {
0edaecfa
AK
631 /* remove the page from active list */
632 list_del(&page->lru);
a5516438
AK
633 update_and_free_page(h, page);
634 h->surplus_huge_pages--;
635 h->surplus_huge_pages_node[nid]--;
7893d1d5 636 } else {
5d3a551c 637 arch_clear_hugepage_flags(page);
a5516438 638 enqueue_huge_page(h, page);
7893d1d5 639 }
27a85ef1 640 spin_unlock(&hugetlb_lock);
90481622 641 hugepage_subpool_put_pages(spool, 1);
27a85ef1
DG
642}
643
a5516438 644static void prep_new_huge_page(struct hstate *h, struct page *page, int nid)
b7ba30c6 645{
0edaecfa 646 INIT_LIST_HEAD(&page->lru);
b7ba30c6
AK
647 set_compound_page_dtor(page, free_huge_page);
648 spin_lock(&hugetlb_lock);
9dd540e2 649 set_hugetlb_cgroup(page, NULL);
a5516438
AK
650 h->nr_huge_pages++;
651 h->nr_huge_pages_node[nid]++;
b7ba30c6
AK
652 spin_unlock(&hugetlb_lock);
653 put_page(page); /* free it into the hugepage allocator */
654}
655
20a0307c
WF
656static void prep_compound_gigantic_page(struct page *page, unsigned long order)
657{
658 int i;
659 int nr_pages = 1 << order;
660 struct page *p = page + 1;
661
662 /* we rely on prep_new_huge_page to set the destructor */
663 set_compound_order(page, order);
664 __SetPageHead(page);
ef5a22be 665 __ClearPageReserved(page);
20a0307c
WF
666 for (i = 1; i < nr_pages; i++, p = mem_map_next(p, page, i)) {
667 __SetPageTail(p);
ef5a22be
AA
668 /*
669 * For gigantic hugepages allocated through bootmem at
670 * boot, it's safer to be consistent with the not-gigantic
671 * hugepages and clear the PG_reserved bit from all tail pages
672 * too. Otherwse drivers using get_user_pages() to access tail
673 * pages may get the reference counting wrong if they see
674 * PG_reserved set on a tail page (despite the head page not
675 * having PG_reserved set). Enforcing this consistency between
676 * head and tail pages allows drivers to optimize away a check
677 * on the head page when they need know if put_page() is needed
678 * after get_user_pages().
679 */
680 __ClearPageReserved(p);
58a84aa9 681 set_page_count(p, 0);
20a0307c
WF
682 p->first_page = page;
683 }
684}
685
7795912c
AM
686/*
687 * PageHuge() only returns true for hugetlbfs pages, but not for normal or
688 * transparent huge pages. See the PageTransHuge() documentation for more
689 * details.
690 */
20a0307c
WF
691int PageHuge(struct page *page)
692{
20a0307c
WF
693 if (!PageCompound(page))
694 return 0;
695
696 page = compound_head(page);
758f66a2 697 return get_compound_page_dtor(page) == free_huge_page;
20a0307c 698}
43131e14
NH
699EXPORT_SYMBOL_GPL(PageHuge);
700
27c73ae7
AA
701/*
702 * PageHeadHuge() only returns true for hugetlbfs head page, but not for
703 * normal or transparent huge pages.
704 */
705int PageHeadHuge(struct page *page_head)
706{
27c73ae7
AA
707 if (!PageHead(page_head))
708 return 0;
709
758f66a2 710 return get_compound_page_dtor(page_head) == free_huge_page;
27c73ae7 711}
27c73ae7 712
13d60f4b
ZY
713pgoff_t __basepage_index(struct page *page)
714{
715 struct page *page_head = compound_head(page);
716 pgoff_t index = page_index(page_head);
717 unsigned long compound_idx;
718
719 if (!PageHuge(page_head))
720 return page_index(page);
721
722 if (compound_order(page_head) >= MAX_ORDER)
723 compound_idx = page_to_pfn(page) - page_to_pfn(page_head);
724 else
725 compound_idx = page - page_head;
726
727 return (index << compound_order(page_head)) + compound_idx;
728}
729
a5516438 730static struct page *alloc_fresh_huge_page_node(struct hstate *h, int nid)
1da177e4 731{
1da177e4 732 struct page *page;
f96efd58 733
aa888a74
AK
734 if (h->order >= MAX_ORDER)
735 return NULL;
736
6484eb3e 737 page = alloc_pages_exact_node(nid,
86cdb465 738 htlb_alloc_mask(h)|__GFP_COMP|__GFP_THISNODE|
551883ae 739 __GFP_REPEAT|__GFP_NOWARN,
a5516438 740 huge_page_order(h));
1da177e4 741 if (page) {
7f2e9525 742 if (arch_prepare_hugepage(page)) {
caff3a2c 743 __free_pages(page, huge_page_order(h));
7b8ee84d 744 return NULL;
7f2e9525 745 }
a5516438 746 prep_new_huge_page(h, page, nid);
1da177e4 747 }
63b4613c
NA
748
749 return page;
750}
751
9a76db09 752/*
6ae11b27
LS
753 * common helper functions for hstate_next_node_to_{alloc|free}.
754 * We may have allocated or freed a huge page based on a different
755 * nodes_allowed previously, so h->next_node_to_{alloc|free} might
756 * be outside of *nodes_allowed. Ensure that we use an allowed
757 * node for alloc or free.
9a76db09 758 */
6ae11b27 759static int next_node_allowed(int nid, nodemask_t *nodes_allowed)
9a76db09 760{
6ae11b27 761 nid = next_node(nid, *nodes_allowed);
9a76db09 762 if (nid == MAX_NUMNODES)
6ae11b27 763 nid = first_node(*nodes_allowed);
9a76db09
LS
764 VM_BUG_ON(nid >= MAX_NUMNODES);
765
766 return nid;
767}
768
6ae11b27
LS
769static int get_valid_node_allowed(int nid, nodemask_t *nodes_allowed)
770{
771 if (!node_isset(nid, *nodes_allowed))
772 nid = next_node_allowed(nid, nodes_allowed);
773 return nid;
774}
775
5ced66c9 776/*
6ae11b27
LS
777 * returns the previously saved node ["this node"] from which to
778 * allocate a persistent huge page for the pool and advance the
779 * next node from which to allocate, handling wrap at end of node
780 * mask.
5ced66c9 781 */
6ae11b27
LS
782static int hstate_next_node_to_alloc(struct hstate *h,
783 nodemask_t *nodes_allowed)
5ced66c9 784{
6ae11b27
LS
785 int nid;
786
787 VM_BUG_ON(!nodes_allowed);
788
789 nid = get_valid_node_allowed(h->next_nid_to_alloc, nodes_allowed);
790 h->next_nid_to_alloc = next_node_allowed(nid, nodes_allowed);
9a76db09 791
9a76db09 792 return nid;
5ced66c9
AK
793}
794
e8c5c824 795/*
6ae11b27
LS
796 * helper for free_pool_huge_page() - return the previously saved
797 * node ["this node"] from which to free a huge page. Advance the
798 * next node id whether or not we find a free huge page to free so
799 * that the next attempt to free addresses the next node.
e8c5c824 800 */
6ae11b27 801static int hstate_next_node_to_free(struct hstate *h, nodemask_t *nodes_allowed)
e8c5c824 802{
6ae11b27
LS
803 int nid;
804
805 VM_BUG_ON(!nodes_allowed);
806
807 nid = get_valid_node_allowed(h->next_nid_to_free, nodes_allowed);
808 h->next_nid_to_free = next_node_allowed(nid, nodes_allowed);
9a76db09 809
9a76db09 810 return nid;
e8c5c824
LS
811}
812
b2261026
JK
813#define for_each_node_mask_to_alloc(hs, nr_nodes, node, mask) \
814 for (nr_nodes = nodes_weight(*mask); \
815 nr_nodes > 0 && \
816 ((node = hstate_next_node_to_alloc(hs, mask)) || 1); \
817 nr_nodes--)
818
819#define for_each_node_mask_to_free(hs, nr_nodes, node, mask) \
820 for (nr_nodes = nodes_weight(*mask); \
821 nr_nodes > 0 && \
822 ((node = hstate_next_node_to_free(hs, mask)) || 1); \
823 nr_nodes--)
824
825static int alloc_fresh_huge_page(struct hstate *h, nodemask_t *nodes_allowed)
826{
827 struct page *page;
828 int nr_nodes, node;
829 int ret = 0;
830
831 for_each_node_mask_to_alloc(h, nr_nodes, node, nodes_allowed) {
832 page = alloc_fresh_huge_page_node(h, node);
833 if (page) {
834 ret = 1;
835 break;
836 }
837 }
838
839 if (ret)
840 count_vm_event(HTLB_BUDDY_PGALLOC);
841 else
842 count_vm_event(HTLB_BUDDY_PGALLOC_FAIL);
843
844 return ret;
845}
846
e8c5c824
LS
847/*
848 * Free huge page from pool from next node to free.
849 * Attempt to keep persistent huge pages more or less
850 * balanced over allowed nodes.
851 * Called with hugetlb_lock locked.
852 */
6ae11b27
LS
853static int free_pool_huge_page(struct hstate *h, nodemask_t *nodes_allowed,
854 bool acct_surplus)
e8c5c824 855{
b2261026 856 int nr_nodes, node;
e8c5c824
LS
857 int ret = 0;
858
b2261026 859 for_each_node_mask_to_free(h, nr_nodes, node, nodes_allowed) {
685f3457
LS
860 /*
861 * If we're returning unused surplus pages, only examine
862 * nodes with surplus pages.
863 */
b2261026
JK
864 if ((!acct_surplus || h->surplus_huge_pages_node[node]) &&
865 !list_empty(&h->hugepage_freelists[node])) {
e8c5c824 866 struct page *page =
b2261026 867 list_entry(h->hugepage_freelists[node].next,
e8c5c824
LS
868 struct page, lru);
869 list_del(&page->lru);
870 h->free_huge_pages--;
b2261026 871 h->free_huge_pages_node[node]--;
685f3457
LS
872 if (acct_surplus) {
873 h->surplus_huge_pages--;
b2261026 874 h->surplus_huge_pages_node[node]--;
685f3457 875 }
e8c5c824
LS
876 update_and_free_page(h, page);
877 ret = 1;
9a76db09 878 break;
e8c5c824 879 }
b2261026 880 }
e8c5c824
LS
881
882 return ret;
883}
884
c8721bbb
NH
885/*
886 * Dissolve a given free hugepage into free buddy pages. This function does
887 * nothing for in-use (including surplus) hugepages.
888 */
889static void dissolve_free_huge_page(struct page *page)
890{
891 spin_lock(&hugetlb_lock);
892 if (PageHuge(page) && !page_count(page)) {
893 struct hstate *h = page_hstate(page);
894 int nid = page_to_nid(page);
895 list_del(&page->lru);
896 h->free_huge_pages--;
897 h->free_huge_pages_node[nid]--;
898 update_and_free_page(h, page);
899 }
900 spin_unlock(&hugetlb_lock);
901}
902
903/*
904 * Dissolve free hugepages in a given pfn range. Used by memory hotplug to
905 * make specified memory blocks removable from the system.
906 * Note that start_pfn should aligned with (minimum) hugepage size.
907 */
908void dissolve_free_huge_pages(unsigned long start_pfn, unsigned long end_pfn)
909{
910 unsigned int order = 8 * sizeof(void *);
911 unsigned long pfn;
912 struct hstate *h;
913
914 /* Set scan step to minimum hugepage size */
915 for_each_hstate(h)
916 if (order > huge_page_order(h))
917 order = huge_page_order(h);
918 VM_BUG_ON(!IS_ALIGNED(start_pfn, 1 << order));
919 for (pfn = start_pfn; pfn < end_pfn; pfn += 1 << order)
920 dissolve_free_huge_page(pfn_to_page(pfn));
921}
922
bf50bab2 923static struct page *alloc_buddy_huge_page(struct hstate *h, int nid)
7893d1d5
AL
924{
925 struct page *page;
bf50bab2 926 unsigned int r_nid;
7893d1d5 927
aa888a74
AK
928 if (h->order >= MAX_ORDER)
929 return NULL;
930
d1c3fb1f
NA
931 /*
932 * Assume we will successfully allocate the surplus page to
933 * prevent racing processes from causing the surplus to exceed
934 * overcommit
935 *
936 * This however introduces a different race, where a process B
937 * tries to grow the static hugepage pool while alloc_pages() is
938 * called by process A. B will only examine the per-node
939 * counters in determining if surplus huge pages can be
940 * converted to normal huge pages in adjust_pool_surplus(). A
941 * won't be able to increment the per-node counter, until the
942 * lock is dropped by B, but B doesn't drop hugetlb_lock until
943 * no more huge pages can be converted from surplus to normal
944 * state (and doesn't try to convert again). Thus, we have a
945 * case where a surplus huge page exists, the pool is grown, and
946 * the surplus huge page still exists after, even though it
947 * should just have been converted to a normal huge page. This
948 * does not leak memory, though, as the hugepage will be freed
949 * once it is out of use. It also does not allow the counters to
950 * go out of whack in adjust_pool_surplus() as we don't modify
951 * the node values until we've gotten the hugepage and only the
952 * per-node value is checked there.
953 */
954 spin_lock(&hugetlb_lock);
a5516438 955 if (h->surplus_huge_pages >= h->nr_overcommit_huge_pages) {
d1c3fb1f
NA
956 spin_unlock(&hugetlb_lock);
957 return NULL;
958 } else {
a5516438
AK
959 h->nr_huge_pages++;
960 h->surplus_huge_pages++;
d1c3fb1f
NA
961 }
962 spin_unlock(&hugetlb_lock);
963
bf50bab2 964 if (nid == NUMA_NO_NODE)
86cdb465 965 page = alloc_pages(htlb_alloc_mask(h)|__GFP_COMP|
bf50bab2
NH
966 __GFP_REPEAT|__GFP_NOWARN,
967 huge_page_order(h));
968 else
969 page = alloc_pages_exact_node(nid,
86cdb465 970 htlb_alloc_mask(h)|__GFP_COMP|__GFP_THISNODE|
bf50bab2 971 __GFP_REPEAT|__GFP_NOWARN, huge_page_order(h));
d1c3fb1f 972
caff3a2c
GS
973 if (page && arch_prepare_hugepage(page)) {
974 __free_pages(page, huge_page_order(h));
ea5768c7 975 page = NULL;
caff3a2c
GS
976 }
977
d1c3fb1f 978 spin_lock(&hugetlb_lock);
7893d1d5 979 if (page) {
0edaecfa 980 INIT_LIST_HEAD(&page->lru);
bf50bab2 981 r_nid = page_to_nid(page);
7893d1d5 982 set_compound_page_dtor(page, free_huge_page);
9dd540e2 983 set_hugetlb_cgroup(page, NULL);
d1c3fb1f
NA
984 /*
985 * We incremented the global counters already
986 */
bf50bab2
NH
987 h->nr_huge_pages_node[r_nid]++;
988 h->surplus_huge_pages_node[r_nid]++;
3b116300 989 __count_vm_event(HTLB_BUDDY_PGALLOC);
d1c3fb1f 990 } else {
a5516438
AK
991 h->nr_huge_pages--;
992 h->surplus_huge_pages--;
3b116300 993 __count_vm_event(HTLB_BUDDY_PGALLOC_FAIL);
7893d1d5 994 }
d1c3fb1f 995 spin_unlock(&hugetlb_lock);
7893d1d5
AL
996
997 return page;
998}
999
bf50bab2
NH
1000/*
1001 * This allocation function is useful in the context where vma is irrelevant.
1002 * E.g. soft-offlining uses this function because it only cares physical
1003 * address of error page.
1004 */
1005struct page *alloc_huge_page_node(struct hstate *h, int nid)
1006{
4ef91848 1007 struct page *page = NULL;
bf50bab2
NH
1008
1009 spin_lock(&hugetlb_lock);
4ef91848
JK
1010 if (h->free_huge_pages - h->resv_huge_pages > 0)
1011 page = dequeue_huge_page_node(h, nid);
bf50bab2
NH
1012 spin_unlock(&hugetlb_lock);
1013
94ae8ba7 1014 if (!page)
bf50bab2
NH
1015 page = alloc_buddy_huge_page(h, nid);
1016
1017 return page;
1018}
1019
e4e574b7 1020/*
25985edc 1021 * Increase the hugetlb pool such that it can accommodate a reservation
e4e574b7
AL
1022 * of size 'delta'.
1023 */
a5516438 1024static int gather_surplus_pages(struct hstate *h, int delta)
e4e574b7
AL
1025{
1026 struct list_head surplus_list;
1027 struct page *page, *tmp;
1028 int ret, i;
1029 int needed, allocated;
28073b02 1030 bool alloc_ok = true;
e4e574b7 1031
a5516438 1032 needed = (h->resv_huge_pages + delta) - h->free_huge_pages;
ac09b3a1 1033 if (needed <= 0) {
a5516438 1034 h->resv_huge_pages += delta;
e4e574b7 1035 return 0;
ac09b3a1 1036 }
e4e574b7
AL
1037
1038 allocated = 0;
1039 INIT_LIST_HEAD(&surplus_list);
1040
1041 ret = -ENOMEM;
1042retry:
1043 spin_unlock(&hugetlb_lock);
1044 for (i = 0; i < needed; i++) {
bf50bab2 1045 page = alloc_buddy_huge_page(h, NUMA_NO_NODE);
28073b02
HD
1046 if (!page) {
1047 alloc_ok = false;
1048 break;
1049 }
e4e574b7
AL
1050 list_add(&page->lru, &surplus_list);
1051 }
28073b02 1052 allocated += i;
e4e574b7
AL
1053
1054 /*
1055 * After retaking hugetlb_lock, we need to recalculate 'needed'
1056 * because either resv_huge_pages or free_huge_pages may have changed.
1057 */
1058 spin_lock(&hugetlb_lock);
a5516438
AK
1059 needed = (h->resv_huge_pages + delta) -
1060 (h->free_huge_pages + allocated);
28073b02
HD
1061 if (needed > 0) {
1062 if (alloc_ok)
1063 goto retry;
1064 /*
1065 * We were not able to allocate enough pages to
1066 * satisfy the entire reservation so we free what
1067 * we've allocated so far.
1068 */
1069 goto free;
1070 }
e4e574b7
AL
1071 /*
1072 * The surplus_list now contains _at_least_ the number of extra pages
25985edc 1073 * needed to accommodate the reservation. Add the appropriate number
e4e574b7 1074 * of pages to the hugetlb pool and free the extras back to the buddy
ac09b3a1
AL
1075 * allocator. Commit the entire reservation here to prevent another
1076 * process from stealing the pages as they are added to the pool but
1077 * before they are reserved.
e4e574b7
AL
1078 */
1079 needed += allocated;
a5516438 1080 h->resv_huge_pages += delta;
e4e574b7 1081 ret = 0;
a9869b83 1082
19fc3f0a 1083 /* Free the needed pages to the hugetlb pool */
e4e574b7 1084 list_for_each_entry_safe(page, tmp, &surplus_list, lru) {
19fc3f0a
AL
1085 if ((--needed) < 0)
1086 break;
a9869b83
NH
1087 /*
1088 * This page is now managed by the hugetlb allocator and has
1089 * no users -- drop the buddy allocator's reference.
1090 */
1091 put_page_testzero(page);
309381fe 1092 VM_BUG_ON_PAGE(page_count(page), page);
a5516438 1093 enqueue_huge_page(h, page);
19fc3f0a 1094 }
28073b02 1095free:
b0365c8d 1096 spin_unlock(&hugetlb_lock);
19fc3f0a
AL
1097
1098 /* Free unnecessary surplus pages to the buddy allocator */
c0d934ba
JK
1099 list_for_each_entry_safe(page, tmp, &surplus_list, lru)
1100 put_page(page);
a9869b83 1101 spin_lock(&hugetlb_lock);
e4e574b7
AL
1102
1103 return ret;
1104}
1105
1106/*
1107 * When releasing a hugetlb pool reservation, any surplus pages that were
1108 * allocated to satisfy the reservation must be explicitly freed if they were
1109 * never used.
685f3457 1110 * Called with hugetlb_lock held.
e4e574b7 1111 */
a5516438
AK
1112static void return_unused_surplus_pages(struct hstate *h,
1113 unsigned long unused_resv_pages)
e4e574b7 1114{
e4e574b7
AL
1115 unsigned long nr_pages;
1116
ac09b3a1 1117 /* Uncommit the reservation */
a5516438 1118 h->resv_huge_pages -= unused_resv_pages;
ac09b3a1 1119
aa888a74
AK
1120 /* Cannot return gigantic pages currently */
1121 if (h->order >= MAX_ORDER)
1122 return;
1123
a5516438 1124 nr_pages = min(unused_resv_pages, h->surplus_huge_pages);
e4e574b7 1125
685f3457
LS
1126 /*
1127 * We want to release as many surplus pages as possible, spread
9b5e5d0f
LS
1128 * evenly across all nodes with memory. Iterate across these nodes
1129 * until we can no longer free unreserved surplus pages. This occurs
1130 * when the nodes with surplus pages have no free pages.
1131 * free_pool_huge_page() will balance the the freed pages across the
1132 * on-line nodes with memory and will handle the hstate accounting.
685f3457
LS
1133 */
1134 while (nr_pages--) {
8cebfcd0 1135 if (!free_pool_huge_page(h, &node_states[N_MEMORY], 1))
685f3457 1136 break;
e4e574b7
AL
1137 }
1138}
1139
c37f9fb1
AW
1140/*
1141 * Determine if the huge page at addr within the vma has an associated
1142 * reservation. Where it does not we will need to logically increase
90481622
DG
1143 * reservation and actually increase subpool usage before an allocation
1144 * can occur. Where any new reservation would be required the
1145 * reservation change is prepared, but not committed. Once the page
1146 * has been allocated from the subpool and instantiated the change should
1147 * be committed via vma_commit_reservation. No action is required on
1148 * failure.
c37f9fb1 1149 */
e2f17d94 1150static long vma_needs_reservation(struct hstate *h,
a5516438 1151 struct vm_area_struct *vma, unsigned long addr)
c37f9fb1
AW
1152{
1153 struct address_space *mapping = vma->vm_file->f_mapping;
1154 struct inode *inode = mapping->host;
1155
f83a275d 1156 if (vma->vm_flags & VM_MAYSHARE) {
a5516438 1157 pgoff_t idx = vma_hugecache_offset(h, vma, addr);
c37f9fb1
AW
1158 return region_chg(&inode->i_mapping->private_list,
1159 idx, idx + 1);
1160
84afd99b
AW
1161 } else if (!is_vma_resv_set(vma, HPAGE_RESV_OWNER)) {
1162 return 1;
c37f9fb1 1163
84afd99b 1164 } else {
e2f17d94 1165 long err;
a5516438 1166 pgoff_t idx = vma_hugecache_offset(h, vma, addr);
f522c3ac 1167 struct resv_map *resv = vma_resv_map(vma);
84afd99b 1168
f522c3ac 1169 err = region_chg(&resv->regions, idx, idx + 1);
84afd99b
AW
1170 if (err < 0)
1171 return err;
1172 return 0;
1173 }
c37f9fb1 1174}
a5516438
AK
1175static void vma_commit_reservation(struct hstate *h,
1176 struct vm_area_struct *vma, unsigned long addr)
c37f9fb1
AW
1177{
1178 struct address_space *mapping = vma->vm_file->f_mapping;
1179 struct inode *inode = mapping->host;
1180
f83a275d 1181 if (vma->vm_flags & VM_MAYSHARE) {
a5516438 1182 pgoff_t idx = vma_hugecache_offset(h, vma, addr);
c37f9fb1 1183 region_add(&inode->i_mapping->private_list, idx, idx + 1);
84afd99b
AW
1184
1185 } else if (is_vma_resv_set(vma, HPAGE_RESV_OWNER)) {
a5516438 1186 pgoff_t idx = vma_hugecache_offset(h, vma, addr);
f522c3ac 1187 struct resv_map *resv = vma_resv_map(vma);
84afd99b
AW
1188
1189 /* Mark this page used in the map. */
f522c3ac 1190 region_add(&resv->regions, idx, idx + 1);
c37f9fb1
AW
1191 }
1192}
1193
a1e78772 1194static struct page *alloc_huge_page(struct vm_area_struct *vma,
04f2cbe3 1195 unsigned long addr, int avoid_reserve)
1da177e4 1196{
90481622 1197 struct hugepage_subpool *spool = subpool_vma(vma);
a5516438 1198 struct hstate *h = hstate_vma(vma);
348ea204 1199 struct page *page;
e2f17d94 1200 long chg;
6d76dcf4
AK
1201 int ret, idx;
1202 struct hugetlb_cgroup *h_cg;
a1e78772 1203
6d76dcf4 1204 idx = hstate_index(h);
a1e78772 1205 /*
90481622
DG
1206 * Processes that did not create the mapping will have no
1207 * reserves and will not have accounted against subpool
1208 * limit. Check that the subpool limit can be made before
1209 * satisfying the allocation MAP_NORESERVE mappings may also
1210 * need pages and subpool limit allocated allocated if no reserve
1211 * mapping overlaps.
a1e78772 1212 */
a5516438 1213 chg = vma_needs_reservation(h, vma, addr);
c37f9fb1 1214 if (chg < 0)
76dcee75 1215 return ERR_PTR(-ENOMEM);
8bb3f12e
JK
1216 if (chg || avoid_reserve)
1217 if (hugepage_subpool_get_pages(spool, 1))
76dcee75 1218 return ERR_PTR(-ENOSPC);
1da177e4 1219
6d76dcf4
AK
1220 ret = hugetlb_cgroup_charge_cgroup(idx, pages_per_huge_page(h), &h_cg);
1221 if (ret) {
8bb3f12e
JK
1222 if (chg || avoid_reserve)
1223 hugepage_subpool_put_pages(spool, 1);
6d76dcf4
AK
1224 return ERR_PTR(-ENOSPC);
1225 }
1da177e4 1226 spin_lock(&hugetlb_lock);
af0ed73e 1227 page = dequeue_huge_page_vma(h, vma, addr, avoid_reserve, chg);
81a6fcae 1228 if (!page) {
94ae8ba7 1229 spin_unlock(&hugetlb_lock);
bf50bab2 1230 page = alloc_buddy_huge_page(h, NUMA_NO_NODE);
68842c9b 1231 if (!page) {
6d76dcf4
AK
1232 hugetlb_cgroup_uncharge_cgroup(idx,
1233 pages_per_huge_page(h),
1234 h_cg);
8bb3f12e
JK
1235 if (chg || avoid_reserve)
1236 hugepage_subpool_put_pages(spool, 1);
76dcee75 1237 return ERR_PTR(-ENOSPC);
68842c9b 1238 }
79dbb236
AK
1239 spin_lock(&hugetlb_lock);
1240 list_move(&page->lru, &h->hugepage_activelist);
81a6fcae 1241 /* Fall through */
68842c9b 1242 }
81a6fcae
JK
1243 hugetlb_cgroup_commit_charge(idx, pages_per_huge_page(h), h_cg, page);
1244 spin_unlock(&hugetlb_lock);
348ea204 1245
90481622 1246 set_page_private(page, (unsigned long)spool);
90d8b7e6 1247
a5516438 1248 vma_commit_reservation(h, vma, addr);
90d8b7e6 1249 return page;
b45b5bd6
DG
1250}
1251
74060e4d
NH
1252/*
1253 * alloc_huge_page()'s wrapper which simply returns the page if allocation
1254 * succeeds, otherwise NULL. This function is called from new_vma_page(),
1255 * where no ERR_VALUE is expected to be returned.
1256 */
1257struct page *alloc_huge_page_noerr(struct vm_area_struct *vma,
1258 unsigned long addr, int avoid_reserve)
1259{
1260 struct page *page = alloc_huge_page(vma, addr, avoid_reserve);
1261 if (IS_ERR(page))
1262 page = NULL;
1263 return page;
1264}
1265
91f47662 1266int __weak alloc_bootmem_huge_page(struct hstate *h)
aa888a74
AK
1267{
1268 struct huge_bootmem_page *m;
b2261026 1269 int nr_nodes, node;
aa888a74 1270
b2261026 1271 for_each_node_mask_to_alloc(h, nr_nodes, node, &node_states[N_MEMORY]) {
aa888a74
AK
1272 void *addr;
1273
8b89a116
GS
1274 addr = memblock_virt_alloc_try_nid_nopanic(
1275 huge_page_size(h), huge_page_size(h),
1276 0, BOOTMEM_ALLOC_ACCESSIBLE, node);
aa888a74
AK
1277 if (addr) {
1278 /*
1279 * Use the beginning of the huge page to store the
1280 * huge_bootmem_page struct (until gather_bootmem
1281 * puts them into the mem_map).
1282 */
1283 m = addr;
91f47662 1284 goto found;
aa888a74 1285 }
aa888a74
AK
1286 }
1287 return 0;
1288
1289found:
1290 BUG_ON((unsigned long)virt_to_phys(m) & (huge_page_size(h) - 1));
1291 /* Put them into a private list first because mem_map is not up yet */
1292 list_add(&m->list, &huge_boot_pages);
1293 m->hstate = h;
1294 return 1;
1295}
1296
18229df5
AW
1297static void prep_compound_huge_page(struct page *page, int order)
1298{
1299 if (unlikely(order > (MAX_ORDER - 1)))
1300 prep_compound_gigantic_page(page, order);
1301 else
1302 prep_compound_page(page, order);
1303}
1304
aa888a74
AK
1305/* Put bootmem huge pages into the standard lists after mem_map is up */
1306static void __init gather_bootmem_prealloc(void)
1307{
1308 struct huge_bootmem_page *m;
1309
1310 list_for_each_entry(m, &huge_boot_pages, list) {
aa888a74 1311 struct hstate *h = m->hstate;
ee8f248d
BB
1312 struct page *page;
1313
1314#ifdef CONFIG_HIGHMEM
1315 page = pfn_to_page(m->phys >> PAGE_SHIFT);
8b89a116
GS
1316 memblock_free_late(__pa(m),
1317 sizeof(struct huge_bootmem_page));
ee8f248d
BB
1318#else
1319 page = virt_to_page(m);
1320#endif
aa888a74 1321 WARN_ON(page_count(page) != 1);
18229df5 1322 prep_compound_huge_page(page, h->order);
ef5a22be 1323 WARN_ON(PageReserved(page));
aa888a74 1324 prep_new_huge_page(h, page, page_to_nid(page));
b0320c7b
RA
1325 /*
1326 * If we had gigantic hugepages allocated at boot time, we need
1327 * to restore the 'stolen' pages to totalram_pages in order to
1328 * fix confusing memory reports from free(1) and another
1329 * side-effects, like CommitLimit going negative.
1330 */
1331 if (h->order > (MAX_ORDER - 1))
3dcc0571 1332 adjust_managed_page_count(page, 1 << h->order);
aa888a74
AK
1333 }
1334}
1335
8faa8b07 1336static void __init hugetlb_hstate_alloc_pages(struct hstate *h)
1da177e4
LT
1337{
1338 unsigned long i;
a5516438 1339
e5ff2159 1340 for (i = 0; i < h->max_huge_pages; ++i) {
aa888a74
AK
1341 if (h->order >= MAX_ORDER) {
1342 if (!alloc_bootmem_huge_page(h))
1343 break;
9b5e5d0f 1344 } else if (!alloc_fresh_huge_page(h,
8cebfcd0 1345 &node_states[N_MEMORY]))
1da177e4 1346 break;
1da177e4 1347 }
8faa8b07 1348 h->max_huge_pages = i;
e5ff2159
AK
1349}
1350
1351static void __init hugetlb_init_hstates(void)
1352{
1353 struct hstate *h;
1354
1355 for_each_hstate(h) {
8faa8b07
AK
1356 /* oversize hugepages were init'ed in early boot */
1357 if (h->order < MAX_ORDER)
1358 hugetlb_hstate_alloc_pages(h);
e5ff2159
AK
1359 }
1360}
1361
4abd32db
AK
1362static char * __init memfmt(char *buf, unsigned long n)
1363{
1364 if (n >= (1UL << 30))
1365 sprintf(buf, "%lu GB", n >> 30);
1366 else if (n >= (1UL << 20))
1367 sprintf(buf, "%lu MB", n >> 20);
1368 else
1369 sprintf(buf, "%lu KB", n >> 10);
1370 return buf;
1371}
1372
e5ff2159
AK
1373static void __init report_hugepages(void)
1374{
1375 struct hstate *h;
1376
1377 for_each_hstate(h) {
4abd32db 1378 char buf[32];
ffb22af5 1379 pr_info("HugeTLB registered %s page size, pre-allocated %ld pages\n",
4abd32db
AK
1380 memfmt(buf, huge_page_size(h)),
1381 h->free_huge_pages);
e5ff2159
AK
1382 }
1383}
1384
1da177e4 1385#ifdef CONFIG_HIGHMEM
6ae11b27
LS
1386static void try_to_free_low(struct hstate *h, unsigned long count,
1387 nodemask_t *nodes_allowed)
1da177e4 1388{
4415cc8d
CL
1389 int i;
1390
aa888a74
AK
1391 if (h->order >= MAX_ORDER)
1392 return;
1393
6ae11b27 1394 for_each_node_mask(i, *nodes_allowed) {
1da177e4 1395 struct page *page, *next;
a5516438
AK
1396 struct list_head *freel = &h->hugepage_freelists[i];
1397 list_for_each_entry_safe(page, next, freel, lru) {
1398 if (count >= h->nr_huge_pages)
6b0c880d 1399 return;
1da177e4
LT
1400 if (PageHighMem(page))
1401 continue;
1402 list_del(&page->lru);
e5ff2159 1403 update_and_free_page(h, page);
a5516438
AK
1404 h->free_huge_pages--;
1405 h->free_huge_pages_node[page_to_nid(page)]--;
1da177e4
LT
1406 }
1407 }
1408}
1409#else
6ae11b27
LS
1410static inline void try_to_free_low(struct hstate *h, unsigned long count,
1411 nodemask_t *nodes_allowed)
1da177e4
LT
1412{
1413}
1414#endif
1415
20a0307c
WF
1416/*
1417 * Increment or decrement surplus_huge_pages. Keep node-specific counters
1418 * balanced by operating on them in a round-robin fashion.
1419 * Returns 1 if an adjustment was made.
1420 */
6ae11b27
LS
1421static int adjust_pool_surplus(struct hstate *h, nodemask_t *nodes_allowed,
1422 int delta)
20a0307c 1423{
b2261026 1424 int nr_nodes, node;
20a0307c
WF
1425
1426 VM_BUG_ON(delta != -1 && delta != 1);
20a0307c 1427
b2261026
JK
1428 if (delta < 0) {
1429 for_each_node_mask_to_alloc(h, nr_nodes, node, nodes_allowed) {
1430 if (h->surplus_huge_pages_node[node])
1431 goto found;
e8c5c824 1432 }
b2261026
JK
1433 } else {
1434 for_each_node_mask_to_free(h, nr_nodes, node, nodes_allowed) {
1435 if (h->surplus_huge_pages_node[node] <
1436 h->nr_huge_pages_node[node])
1437 goto found;
e8c5c824 1438 }
b2261026
JK
1439 }
1440 return 0;
20a0307c 1441
b2261026
JK
1442found:
1443 h->surplus_huge_pages += delta;
1444 h->surplus_huge_pages_node[node] += delta;
1445 return 1;
20a0307c
WF
1446}
1447
a5516438 1448#define persistent_huge_pages(h) (h->nr_huge_pages - h->surplus_huge_pages)
6ae11b27
LS
1449static unsigned long set_max_huge_pages(struct hstate *h, unsigned long count,
1450 nodemask_t *nodes_allowed)
1da177e4 1451{
7893d1d5 1452 unsigned long min_count, ret;
1da177e4 1453
aa888a74
AK
1454 if (h->order >= MAX_ORDER)
1455 return h->max_huge_pages;
1456
7893d1d5
AL
1457 /*
1458 * Increase the pool size
1459 * First take pages out of surplus state. Then make up the
1460 * remaining difference by allocating fresh huge pages.
d1c3fb1f
NA
1461 *
1462 * We might race with alloc_buddy_huge_page() here and be unable
1463 * to convert a surplus huge page to a normal huge page. That is
1464 * not critical, though, it just means the overall size of the
1465 * pool might be one hugepage larger than it needs to be, but
1466 * within all the constraints specified by the sysctls.
7893d1d5 1467 */
1da177e4 1468 spin_lock(&hugetlb_lock);
a5516438 1469 while (h->surplus_huge_pages && count > persistent_huge_pages(h)) {
6ae11b27 1470 if (!adjust_pool_surplus(h, nodes_allowed, -1))
7893d1d5
AL
1471 break;
1472 }
1473
a5516438 1474 while (count > persistent_huge_pages(h)) {
7893d1d5
AL
1475 /*
1476 * If this allocation races such that we no longer need the
1477 * page, free_huge_page will handle it by freeing the page
1478 * and reducing the surplus.
1479 */
1480 spin_unlock(&hugetlb_lock);
6ae11b27 1481 ret = alloc_fresh_huge_page(h, nodes_allowed);
7893d1d5
AL
1482 spin_lock(&hugetlb_lock);
1483 if (!ret)
1484 goto out;
1485
536240f2
MG
1486 /* Bail for signals. Probably ctrl-c from user */
1487 if (signal_pending(current))
1488 goto out;
7893d1d5 1489 }
7893d1d5
AL
1490
1491 /*
1492 * Decrease the pool size
1493 * First return free pages to the buddy allocator (being careful
1494 * to keep enough around to satisfy reservations). Then place
1495 * pages into surplus state as needed so the pool will shrink
1496 * to the desired size as pages become free.
d1c3fb1f
NA
1497 *
1498 * By placing pages into the surplus state independent of the
1499 * overcommit value, we are allowing the surplus pool size to
1500 * exceed overcommit. There are few sane options here. Since
1501 * alloc_buddy_huge_page() is checking the global counter,
1502 * though, we'll note that we're not allowed to exceed surplus
1503 * and won't grow the pool anywhere else. Not until one of the
1504 * sysctls are changed, or the surplus pages go out of use.
7893d1d5 1505 */
a5516438 1506 min_count = h->resv_huge_pages + h->nr_huge_pages - h->free_huge_pages;
6b0c880d 1507 min_count = max(count, min_count);
6ae11b27 1508 try_to_free_low(h, min_count, nodes_allowed);
a5516438 1509 while (min_count < persistent_huge_pages(h)) {
6ae11b27 1510 if (!free_pool_huge_page(h, nodes_allowed, 0))
1da177e4 1511 break;
1da177e4 1512 }
a5516438 1513 while (count < persistent_huge_pages(h)) {
6ae11b27 1514 if (!adjust_pool_surplus(h, nodes_allowed, 1))
7893d1d5
AL
1515 break;
1516 }
1517out:
a5516438 1518 ret = persistent_huge_pages(h);
1da177e4 1519 spin_unlock(&hugetlb_lock);
7893d1d5 1520 return ret;
1da177e4
LT
1521}
1522
a3437870
NA
1523#define HSTATE_ATTR_RO(_name) \
1524 static struct kobj_attribute _name##_attr = __ATTR_RO(_name)
1525
1526#define HSTATE_ATTR(_name) \
1527 static struct kobj_attribute _name##_attr = \
1528 __ATTR(_name, 0644, _name##_show, _name##_store)
1529
1530static struct kobject *hugepages_kobj;
1531static struct kobject *hstate_kobjs[HUGE_MAX_HSTATE];
1532
9a305230
LS
1533static struct hstate *kobj_to_node_hstate(struct kobject *kobj, int *nidp);
1534
1535static struct hstate *kobj_to_hstate(struct kobject *kobj, int *nidp)
a3437870
NA
1536{
1537 int i;
9a305230 1538
a3437870 1539 for (i = 0; i < HUGE_MAX_HSTATE; i++)
9a305230
LS
1540 if (hstate_kobjs[i] == kobj) {
1541 if (nidp)
1542 *nidp = NUMA_NO_NODE;
a3437870 1543 return &hstates[i];
9a305230
LS
1544 }
1545
1546 return kobj_to_node_hstate(kobj, nidp);
a3437870
NA
1547}
1548
06808b08 1549static ssize_t nr_hugepages_show_common(struct kobject *kobj,
a3437870
NA
1550 struct kobj_attribute *attr, char *buf)
1551{
9a305230
LS
1552 struct hstate *h;
1553 unsigned long nr_huge_pages;
1554 int nid;
1555
1556 h = kobj_to_hstate(kobj, &nid);
1557 if (nid == NUMA_NO_NODE)
1558 nr_huge_pages = h->nr_huge_pages;
1559 else
1560 nr_huge_pages = h->nr_huge_pages_node[nid];
1561
1562 return sprintf(buf, "%lu\n", nr_huge_pages);
a3437870 1563}
adbe8726 1564
06808b08
LS
1565static ssize_t nr_hugepages_store_common(bool obey_mempolicy,
1566 struct kobject *kobj, struct kobj_attribute *attr,
1567 const char *buf, size_t len)
a3437870
NA
1568{
1569 int err;
9a305230 1570 int nid;
06808b08 1571 unsigned long count;
9a305230 1572 struct hstate *h;
bad44b5b 1573 NODEMASK_ALLOC(nodemask_t, nodes_allowed, GFP_KERNEL | __GFP_NORETRY);
a3437870 1574
3dbb95f7 1575 err = kstrtoul(buf, 10, &count);
73ae31e5 1576 if (err)
adbe8726 1577 goto out;
a3437870 1578
9a305230 1579 h = kobj_to_hstate(kobj, &nid);
adbe8726
EM
1580 if (h->order >= MAX_ORDER) {
1581 err = -EINVAL;
1582 goto out;
1583 }
1584
9a305230
LS
1585 if (nid == NUMA_NO_NODE) {
1586 /*
1587 * global hstate attribute
1588 */
1589 if (!(obey_mempolicy &&
1590 init_nodemask_of_mempolicy(nodes_allowed))) {
1591 NODEMASK_FREE(nodes_allowed);
8cebfcd0 1592 nodes_allowed = &node_states[N_MEMORY];
9a305230
LS
1593 }
1594 } else if (nodes_allowed) {
1595 /*
1596 * per node hstate attribute: adjust count to global,
1597 * but restrict alloc/free to the specified node.
1598 */
1599 count += h->nr_huge_pages - h->nr_huge_pages_node[nid];
1600 init_nodemask_of_node(nodes_allowed, nid);
1601 } else
8cebfcd0 1602 nodes_allowed = &node_states[N_MEMORY];
9a305230 1603
06808b08 1604 h->max_huge_pages = set_max_huge_pages(h, count, nodes_allowed);
a3437870 1605
8cebfcd0 1606 if (nodes_allowed != &node_states[N_MEMORY])
06808b08
LS
1607 NODEMASK_FREE(nodes_allowed);
1608
1609 return len;
adbe8726
EM
1610out:
1611 NODEMASK_FREE(nodes_allowed);
1612 return err;
06808b08
LS
1613}
1614
1615static ssize_t nr_hugepages_show(struct kobject *kobj,
1616 struct kobj_attribute *attr, char *buf)
1617{
1618 return nr_hugepages_show_common(kobj, attr, buf);
1619}
1620
1621static ssize_t nr_hugepages_store(struct kobject *kobj,
1622 struct kobj_attribute *attr, const char *buf, size_t len)
1623{
1624 return nr_hugepages_store_common(false, kobj, attr, buf, len);
a3437870
NA
1625}
1626HSTATE_ATTR(nr_hugepages);
1627
06808b08
LS
1628#ifdef CONFIG_NUMA
1629
1630/*
1631 * hstate attribute for optionally mempolicy-based constraint on persistent
1632 * huge page alloc/free.
1633 */
1634static ssize_t nr_hugepages_mempolicy_show(struct kobject *kobj,
1635 struct kobj_attribute *attr, char *buf)
1636{
1637 return nr_hugepages_show_common(kobj, attr, buf);
1638}
1639
1640static ssize_t nr_hugepages_mempolicy_store(struct kobject *kobj,
1641 struct kobj_attribute *attr, const char *buf, size_t len)
1642{
1643 return nr_hugepages_store_common(true, kobj, attr, buf, len);
1644}
1645HSTATE_ATTR(nr_hugepages_mempolicy);
1646#endif
1647
1648
a3437870
NA
1649static ssize_t nr_overcommit_hugepages_show(struct kobject *kobj,
1650 struct kobj_attribute *attr, char *buf)
1651{
9a305230 1652 struct hstate *h = kobj_to_hstate(kobj, NULL);
a3437870
NA
1653 return sprintf(buf, "%lu\n", h->nr_overcommit_huge_pages);
1654}
adbe8726 1655
a3437870
NA
1656static ssize_t nr_overcommit_hugepages_store(struct kobject *kobj,
1657 struct kobj_attribute *attr, const char *buf, size_t count)
1658{
1659 int err;
1660 unsigned long input;
9a305230 1661 struct hstate *h = kobj_to_hstate(kobj, NULL);
a3437870 1662
adbe8726
EM
1663 if (h->order >= MAX_ORDER)
1664 return -EINVAL;
1665
3dbb95f7 1666 err = kstrtoul(buf, 10, &input);
a3437870 1667 if (err)
73ae31e5 1668 return err;
a3437870
NA
1669
1670 spin_lock(&hugetlb_lock);
1671 h->nr_overcommit_huge_pages = input;
1672 spin_unlock(&hugetlb_lock);
1673
1674 return count;
1675}
1676HSTATE_ATTR(nr_overcommit_hugepages);
1677
1678static ssize_t free_hugepages_show(struct kobject *kobj,
1679 struct kobj_attribute *attr, char *buf)
1680{
9a305230
LS
1681 struct hstate *h;
1682 unsigned long free_huge_pages;
1683 int nid;
1684
1685 h = kobj_to_hstate(kobj, &nid);
1686 if (nid == NUMA_NO_NODE)
1687 free_huge_pages = h->free_huge_pages;
1688 else
1689 free_huge_pages = h->free_huge_pages_node[nid];
1690
1691 return sprintf(buf, "%lu\n", free_huge_pages);
a3437870
NA
1692}
1693HSTATE_ATTR_RO(free_hugepages);
1694
1695static ssize_t resv_hugepages_show(struct kobject *kobj,
1696 struct kobj_attribute *attr, char *buf)
1697{
9a305230 1698 struct hstate *h = kobj_to_hstate(kobj, NULL);
a3437870
NA
1699 return sprintf(buf, "%lu\n", h->resv_huge_pages);
1700}
1701HSTATE_ATTR_RO(resv_hugepages);
1702
1703static ssize_t surplus_hugepages_show(struct kobject *kobj,
1704 struct kobj_attribute *attr, char *buf)
1705{
9a305230
LS
1706 struct hstate *h;
1707 unsigned long surplus_huge_pages;
1708 int nid;
1709
1710 h = kobj_to_hstate(kobj, &nid);
1711 if (nid == NUMA_NO_NODE)
1712 surplus_huge_pages = h->surplus_huge_pages;
1713 else
1714 surplus_huge_pages = h->surplus_huge_pages_node[nid];
1715
1716 return sprintf(buf, "%lu\n", surplus_huge_pages);
a3437870
NA
1717}
1718HSTATE_ATTR_RO(surplus_hugepages);
1719
1720static struct attribute *hstate_attrs[] = {
1721 &nr_hugepages_attr.attr,
1722 &nr_overcommit_hugepages_attr.attr,
1723 &free_hugepages_attr.attr,
1724 &resv_hugepages_attr.attr,
1725 &surplus_hugepages_attr.attr,
06808b08
LS
1726#ifdef CONFIG_NUMA
1727 &nr_hugepages_mempolicy_attr.attr,
1728#endif
a3437870
NA
1729 NULL,
1730};
1731
1732static struct attribute_group hstate_attr_group = {
1733 .attrs = hstate_attrs,
1734};
1735
094e9539
JM
1736static int hugetlb_sysfs_add_hstate(struct hstate *h, struct kobject *parent,
1737 struct kobject **hstate_kobjs,
1738 struct attribute_group *hstate_attr_group)
a3437870
NA
1739{
1740 int retval;
972dc4de 1741 int hi = hstate_index(h);
a3437870 1742
9a305230
LS
1743 hstate_kobjs[hi] = kobject_create_and_add(h->name, parent);
1744 if (!hstate_kobjs[hi])
a3437870
NA
1745 return -ENOMEM;
1746
9a305230 1747 retval = sysfs_create_group(hstate_kobjs[hi], hstate_attr_group);
a3437870 1748 if (retval)
9a305230 1749 kobject_put(hstate_kobjs[hi]);
a3437870
NA
1750
1751 return retval;
1752}
1753
1754static void __init hugetlb_sysfs_init(void)
1755{
1756 struct hstate *h;
1757 int err;
1758
1759 hugepages_kobj = kobject_create_and_add("hugepages", mm_kobj);
1760 if (!hugepages_kobj)
1761 return;
1762
1763 for_each_hstate(h) {
9a305230
LS
1764 err = hugetlb_sysfs_add_hstate(h, hugepages_kobj,
1765 hstate_kobjs, &hstate_attr_group);
a3437870 1766 if (err)
ffb22af5 1767 pr_err("Hugetlb: Unable to add hstate %s", h->name);
a3437870
NA
1768 }
1769}
1770
9a305230
LS
1771#ifdef CONFIG_NUMA
1772
1773/*
1774 * node_hstate/s - associate per node hstate attributes, via their kobjects,
10fbcf4c
KS
1775 * with node devices in node_devices[] using a parallel array. The array
1776 * index of a node device or _hstate == node id.
1777 * This is here to avoid any static dependency of the node device driver, in
9a305230
LS
1778 * the base kernel, on the hugetlb module.
1779 */
1780struct node_hstate {
1781 struct kobject *hugepages_kobj;
1782 struct kobject *hstate_kobjs[HUGE_MAX_HSTATE];
1783};
1784struct node_hstate node_hstates[MAX_NUMNODES];
1785
1786/*
10fbcf4c 1787 * A subset of global hstate attributes for node devices
9a305230
LS
1788 */
1789static struct attribute *per_node_hstate_attrs[] = {
1790 &nr_hugepages_attr.attr,
1791 &free_hugepages_attr.attr,
1792 &surplus_hugepages_attr.attr,
1793 NULL,
1794};
1795
1796static struct attribute_group per_node_hstate_attr_group = {
1797 .attrs = per_node_hstate_attrs,
1798};
1799
1800/*
10fbcf4c 1801 * kobj_to_node_hstate - lookup global hstate for node device hstate attr kobj.
9a305230
LS
1802 * Returns node id via non-NULL nidp.
1803 */
1804static struct hstate *kobj_to_node_hstate(struct kobject *kobj, int *nidp)
1805{
1806 int nid;
1807
1808 for (nid = 0; nid < nr_node_ids; nid++) {
1809 struct node_hstate *nhs = &node_hstates[nid];
1810 int i;
1811 for (i = 0; i < HUGE_MAX_HSTATE; i++)
1812 if (nhs->hstate_kobjs[i] == kobj) {
1813 if (nidp)
1814 *nidp = nid;
1815 return &hstates[i];
1816 }
1817 }
1818
1819 BUG();
1820 return NULL;
1821}
1822
1823/*
10fbcf4c 1824 * Unregister hstate attributes from a single node device.
9a305230
LS
1825 * No-op if no hstate attributes attached.
1826 */
3cd8b44f 1827static void hugetlb_unregister_node(struct node *node)
9a305230
LS
1828{
1829 struct hstate *h;
10fbcf4c 1830 struct node_hstate *nhs = &node_hstates[node->dev.id];
9a305230
LS
1831
1832 if (!nhs->hugepages_kobj)
9b5e5d0f 1833 return; /* no hstate attributes */
9a305230 1834
972dc4de
AK
1835 for_each_hstate(h) {
1836 int idx = hstate_index(h);
1837 if (nhs->hstate_kobjs[idx]) {
1838 kobject_put(nhs->hstate_kobjs[idx]);
1839 nhs->hstate_kobjs[idx] = NULL;
9a305230 1840 }
972dc4de 1841 }
9a305230
LS
1842
1843 kobject_put(nhs->hugepages_kobj);
1844 nhs->hugepages_kobj = NULL;
1845}
1846
1847/*
10fbcf4c 1848 * hugetlb module exit: unregister hstate attributes from node devices
9a305230
LS
1849 * that have them.
1850 */
1851static void hugetlb_unregister_all_nodes(void)
1852{
1853 int nid;
1854
1855 /*
10fbcf4c 1856 * disable node device registrations.
9a305230
LS
1857 */
1858 register_hugetlbfs_with_node(NULL, NULL);
1859
1860 /*
1861 * remove hstate attributes from any nodes that have them.
1862 */
1863 for (nid = 0; nid < nr_node_ids; nid++)
8732794b 1864 hugetlb_unregister_node(node_devices[nid]);
9a305230
LS
1865}
1866
1867/*
10fbcf4c 1868 * Register hstate attributes for a single node device.
9a305230
LS
1869 * No-op if attributes already registered.
1870 */
3cd8b44f 1871static void hugetlb_register_node(struct node *node)
9a305230
LS
1872{
1873 struct hstate *h;
10fbcf4c 1874 struct node_hstate *nhs = &node_hstates[node->dev.id];
9a305230
LS
1875 int err;
1876
1877 if (nhs->hugepages_kobj)
1878 return; /* already allocated */
1879
1880 nhs->hugepages_kobj = kobject_create_and_add("hugepages",
10fbcf4c 1881 &node->dev.kobj);
9a305230
LS
1882 if (!nhs->hugepages_kobj)
1883 return;
1884
1885 for_each_hstate(h) {
1886 err = hugetlb_sysfs_add_hstate(h, nhs->hugepages_kobj,
1887 nhs->hstate_kobjs,
1888 &per_node_hstate_attr_group);
1889 if (err) {
ffb22af5
AM
1890 pr_err("Hugetlb: Unable to add hstate %s for node %d\n",
1891 h->name, node->dev.id);
9a305230
LS
1892 hugetlb_unregister_node(node);
1893 break;
1894 }
1895 }
1896}
1897
1898/*
9b5e5d0f 1899 * hugetlb init time: register hstate attributes for all registered node
10fbcf4c
KS
1900 * devices of nodes that have memory. All on-line nodes should have
1901 * registered their associated device by this time.
9a305230
LS
1902 */
1903static void hugetlb_register_all_nodes(void)
1904{
1905 int nid;
1906
8cebfcd0 1907 for_each_node_state(nid, N_MEMORY) {
8732794b 1908 struct node *node = node_devices[nid];
10fbcf4c 1909 if (node->dev.id == nid)
9a305230
LS
1910 hugetlb_register_node(node);
1911 }
1912
1913 /*
10fbcf4c 1914 * Let the node device driver know we're here so it can
9a305230
LS
1915 * [un]register hstate attributes on node hotplug.
1916 */
1917 register_hugetlbfs_with_node(hugetlb_register_node,
1918 hugetlb_unregister_node);
1919}
1920#else /* !CONFIG_NUMA */
1921
1922static struct hstate *kobj_to_node_hstate(struct kobject *kobj, int *nidp)
1923{
1924 BUG();
1925 if (nidp)
1926 *nidp = -1;
1927 return NULL;
1928}
1929
1930static void hugetlb_unregister_all_nodes(void) { }
1931
1932static void hugetlb_register_all_nodes(void) { }
1933
1934#endif
1935
a3437870
NA
1936static void __exit hugetlb_exit(void)
1937{
1938 struct hstate *h;
1939
9a305230
LS
1940 hugetlb_unregister_all_nodes();
1941
a3437870 1942 for_each_hstate(h) {
972dc4de 1943 kobject_put(hstate_kobjs[hstate_index(h)]);
a3437870
NA
1944 }
1945
1946 kobject_put(hugepages_kobj);
1947}
1948module_exit(hugetlb_exit);
1949
1950static int __init hugetlb_init(void)
1951{
0ef89d25
BH
1952 /* Some platform decide whether they support huge pages at boot
1953 * time. On these, such as powerpc, HPAGE_SHIFT is set to 0 when
1954 * there is no such support
1955 */
1956 if (HPAGE_SHIFT == 0)
1957 return 0;
a3437870 1958
e11bfbfc
NP
1959 if (!size_to_hstate(default_hstate_size)) {
1960 default_hstate_size = HPAGE_SIZE;
1961 if (!size_to_hstate(default_hstate_size))
1962 hugetlb_add_hstate(HUGETLB_PAGE_ORDER);
a3437870 1963 }
972dc4de 1964 default_hstate_idx = hstate_index(size_to_hstate(default_hstate_size));
e11bfbfc
NP
1965 if (default_hstate_max_huge_pages)
1966 default_hstate.max_huge_pages = default_hstate_max_huge_pages;
a3437870
NA
1967
1968 hugetlb_init_hstates();
aa888a74 1969 gather_bootmem_prealloc();
a3437870
NA
1970 report_hugepages();
1971
1972 hugetlb_sysfs_init();
9a305230 1973 hugetlb_register_all_nodes();
7179e7bf 1974 hugetlb_cgroup_file_init();
9a305230 1975
a3437870
NA
1976 return 0;
1977}
1978module_init(hugetlb_init);
1979
1980/* Should be called on processing a hugepagesz=... option */
1981void __init hugetlb_add_hstate(unsigned order)
1982{
1983 struct hstate *h;
8faa8b07
AK
1984 unsigned long i;
1985
a3437870 1986 if (size_to_hstate(PAGE_SIZE << order)) {
ffb22af5 1987 pr_warning("hugepagesz= specified twice, ignoring\n");
a3437870
NA
1988 return;
1989 }
47d38344 1990 BUG_ON(hugetlb_max_hstate >= HUGE_MAX_HSTATE);
a3437870 1991 BUG_ON(order == 0);
47d38344 1992 h = &hstates[hugetlb_max_hstate++];
a3437870
NA
1993 h->order = order;
1994 h->mask = ~((1ULL << (order + PAGE_SHIFT)) - 1);
8faa8b07
AK
1995 h->nr_huge_pages = 0;
1996 h->free_huge_pages = 0;
1997 for (i = 0; i < MAX_NUMNODES; ++i)
1998 INIT_LIST_HEAD(&h->hugepage_freelists[i]);
0edaecfa 1999 INIT_LIST_HEAD(&h->hugepage_activelist);
8cebfcd0
LJ
2000 h->next_nid_to_alloc = first_node(node_states[N_MEMORY]);
2001 h->next_nid_to_free = first_node(node_states[N_MEMORY]);
a3437870
NA
2002 snprintf(h->name, HSTATE_NAME_LEN, "hugepages-%lukB",
2003 huge_page_size(h)/1024);
8faa8b07 2004
a3437870
NA
2005 parsed_hstate = h;
2006}
2007
e11bfbfc 2008static int __init hugetlb_nrpages_setup(char *s)
a3437870
NA
2009{
2010 unsigned long *mhp;
8faa8b07 2011 static unsigned long *last_mhp;
a3437870
NA
2012
2013 /*
47d38344 2014 * !hugetlb_max_hstate means we haven't parsed a hugepagesz= parameter yet,
a3437870
NA
2015 * so this hugepages= parameter goes to the "default hstate".
2016 */
47d38344 2017 if (!hugetlb_max_hstate)
a3437870
NA
2018 mhp = &default_hstate_max_huge_pages;
2019 else
2020 mhp = &parsed_hstate->max_huge_pages;
2021
8faa8b07 2022 if (mhp == last_mhp) {
ffb22af5
AM
2023 pr_warning("hugepages= specified twice without "
2024 "interleaving hugepagesz=, ignoring\n");
8faa8b07
AK
2025 return 1;
2026 }
2027
a3437870
NA
2028 if (sscanf(s, "%lu", mhp) <= 0)
2029 *mhp = 0;
2030
8faa8b07
AK
2031 /*
2032 * Global state is always initialized later in hugetlb_init.
2033 * But we need to allocate >= MAX_ORDER hstates here early to still
2034 * use the bootmem allocator.
2035 */
47d38344 2036 if (hugetlb_max_hstate && parsed_hstate->order >= MAX_ORDER)
8faa8b07
AK
2037 hugetlb_hstate_alloc_pages(parsed_hstate);
2038
2039 last_mhp = mhp;
2040
a3437870
NA
2041 return 1;
2042}
e11bfbfc
NP
2043__setup("hugepages=", hugetlb_nrpages_setup);
2044
2045static int __init hugetlb_default_setup(char *s)
2046{
2047 default_hstate_size = memparse(s, &s);
2048 return 1;
2049}
2050__setup("default_hugepagesz=", hugetlb_default_setup);
a3437870 2051
8a213460
NA
2052static unsigned int cpuset_mems_nr(unsigned int *array)
2053{
2054 int node;
2055 unsigned int nr = 0;
2056
2057 for_each_node_mask(node, cpuset_current_mems_allowed)
2058 nr += array[node];
2059
2060 return nr;
2061}
2062
2063#ifdef CONFIG_SYSCTL
06808b08
LS
2064static int hugetlb_sysctl_handler_common(bool obey_mempolicy,
2065 struct ctl_table *table, int write,
2066 void __user *buffer, size_t *length, loff_t *ppos)
1da177e4 2067{
e5ff2159
AK
2068 struct hstate *h = &default_hstate;
2069 unsigned long tmp;
08d4a246 2070 int ret;
e5ff2159 2071
c033a93c 2072 tmp = h->max_huge_pages;
e5ff2159 2073
adbe8726
EM
2074 if (write && h->order >= MAX_ORDER)
2075 return -EINVAL;
2076
e5ff2159
AK
2077 table->data = &tmp;
2078 table->maxlen = sizeof(unsigned long);
08d4a246
MH
2079 ret = proc_doulongvec_minmax(table, write, buffer, length, ppos);
2080 if (ret)
2081 goto out;
e5ff2159 2082
06808b08 2083 if (write) {
bad44b5b
DR
2084 NODEMASK_ALLOC(nodemask_t, nodes_allowed,
2085 GFP_KERNEL | __GFP_NORETRY);
06808b08
LS
2086 if (!(obey_mempolicy &&
2087 init_nodemask_of_mempolicy(nodes_allowed))) {
2088 NODEMASK_FREE(nodes_allowed);
8cebfcd0 2089 nodes_allowed = &node_states[N_MEMORY];
06808b08
LS
2090 }
2091 h->max_huge_pages = set_max_huge_pages(h, tmp, nodes_allowed);
2092
8cebfcd0 2093 if (nodes_allowed != &node_states[N_MEMORY])
06808b08
LS
2094 NODEMASK_FREE(nodes_allowed);
2095 }
08d4a246
MH
2096out:
2097 return ret;
1da177e4 2098}
396faf03 2099
06808b08
LS
2100int hugetlb_sysctl_handler(struct ctl_table *table, int write,
2101 void __user *buffer, size_t *length, loff_t *ppos)
2102{
2103
2104 return hugetlb_sysctl_handler_common(false, table, write,
2105 buffer, length, ppos);
2106}
2107
2108#ifdef CONFIG_NUMA
2109int hugetlb_mempolicy_sysctl_handler(struct ctl_table *table, int write,
2110 void __user *buffer, size_t *length, loff_t *ppos)
2111{
2112 return hugetlb_sysctl_handler_common(true, table, write,
2113 buffer, length, ppos);
2114}
2115#endif /* CONFIG_NUMA */
2116
a3d0c6aa 2117int hugetlb_overcommit_handler(struct ctl_table *table, int write,
8d65af78 2118 void __user *buffer,
a3d0c6aa
NA
2119 size_t *length, loff_t *ppos)
2120{
a5516438 2121 struct hstate *h = &default_hstate;
e5ff2159 2122 unsigned long tmp;
08d4a246 2123 int ret;
e5ff2159 2124
c033a93c 2125 tmp = h->nr_overcommit_huge_pages;
e5ff2159 2126
adbe8726
EM
2127 if (write && h->order >= MAX_ORDER)
2128 return -EINVAL;
2129
e5ff2159
AK
2130 table->data = &tmp;
2131 table->maxlen = sizeof(unsigned long);
08d4a246
MH
2132 ret = proc_doulongvec_minmax(table, write, buffer, length, ppos);
2133 if (ret)
2134 goto out;
e5ff2159
AK
2135
2136 if (write) {
2137 spin_lock(&hugetlb_lock);
2138 h->nr_overcommit_huge_pages = tmp;
2139 spin_unlock(&hugetlb_lock);
2140 }
08d4a246
MH
2141out:
2142 return ret;
a3d0c6aa
NA
2143}
2144
1da177e4
LT
2145#endif /* CONFIG_SYSCTL */
2146
e1759c21 2147void hugetlb_report_meminfo(struct seq_file *m)
1da177e4 2148{
a5516438 2149 struct hstate *h = &default_hstate;
e1759c21 2150 seq_printf(m,
4f98a2fe
RR
2151 "HugePages_Total: %5lu\n"
2152 "HugePages_Free: %5lu\n"
2153 "HugePages_Rsvd: %5lu\n"
2154 "HugePages_Surp: %5lu\n"
2155 "Hugepagesize: %8lu kB\n",
a5516438
AK
2156 h->nr_huge_pages,
2157 h->free_huge_pages,
2158 h->resv_huge_pages,
2159 h->surplus_huge_pages,
2160 1UL << (huge_page_order(h) + PAGE_SHIFT - 10));
1da177e4
LT
2161}
2162
2163int hugetlb_report_node_meminfo(int nid, char *buf)
2164{
a5516438 2165 struct hstate *h = &default_hstate;
1da177e4
LT
2166 return sprintf(buf,
2167 "Node %d HugePages_Total: %5u\n"
a1de0919
NA
2168 "Node %d HugePages_Free: %5u\n"
2169 "Node %d HugePages_Surp: %5u\n",
a5516438
AK
2170 nid, h->nr_huge_pages_node[nid],
2171 nid, h->free_huge_pages_node[nid],
2172 nid, h->surplus_huge_pages_node[nid]);
1da177e4
LT
2173}
2174
949f7ec5
DR
2175void hugetlb_show_meminfo(void)
2176{
2177 struct hstate *h;
2178 int nid;
2179
2180 for_each_node_state(nid, N_MEMORY)
2181 for_each_hstate(h)
2182 pr_info("Node %d hugepages_total=%u hugepages_free=%u hugepages_surp=%u hugepages_size=%lukB\n",
2183 nid,
2184 h->nr_huge_pages_node[nid],
2185 h->free_huge_pages_node[nid],
2186 h->surplus_huge_pages_node[nid],
2187 1UL << (huge_page_order(h) + PAGE_SHIFT - 10));
2188}
2189
1da177e4
LT
2190/* Return the number pages of memory we physically have, in PAGE_SIZE units. */
2191unsigned long hugetlb_total_pages(void)
2192{
d0028588
WL
2193 struct hstate *h;
2194 unsigned long nr_total_pages = 0;
2195
2196 for_each_hstate(h)
2197 nr_total_pages += h->nr_huge_pages * pages_per_huge_page(h);
2198 return nr_total_pages;
1da177e4 2199}
1da177e4 2200
a5516438 2201static int hugetlb_acct_memory(struct hstate *h, long delta)
fc1b8a73
MG
2202{
2203 int ret = -ENOMEM;
2204
2205 spin_lock(&hugetlb_lock);
2206 /*
2207 * When cpuset is configured, it breaks the strict hugetlb page
2208 * reservation as the accounting is done on a global variable. Such
2209 * reservation is completely rubbish in the presence of cpuset because
2210 * the reservation is not checked against page availability for the
2211 * current cpuset. Application can still potentially OOM'ed by kernel
2212 * with lack of free htlb page in cpuset that the task is in.
2213 * Attempt to enforce strict accounting with cpuset is almost
2214 * impossible (or too ugly) because cpuset is too fluid that
2215 * task or memory node can be dynamically moved between cpusets.
2216 *
2217 * The change of semantics for shared hugetlb mapping with cpuset is
2218 * undesirable. However, in order to preserve some of the semantics,
2219 * we fall back to check against current free page availability as
2220 * a best attempt and hopefully to minimize the impact of changing
2221 * semantics that cpuset has.
2222 */
2223 if (delta > 0) {
a5516438 2224 if (gather_surplus_pages(h, delta) < 0)
fc1b8a73
MG
2225 goto out;
2226
a5516438
AK
2227 if (delta > cpuset_mems_nr(h->free_huge_pages_node)) {
2228 return_unused_surplus_pages(h, delta);
fc1b8a73
MG
2229 goto out;
2230 }
2231 }
2232
2233 ret = 0;
2234 if (delta < 0)
a5516438 2235 return_unused_surplus_pages(h, (unsigned long) -delta);
fc1b8a73
MG
2236
2237out:
2238 spin_unlock(&hugetlb_lock);
2239 return ret;
2240}
2241
84afd99b
AW
2242static void hugetlb_vm_op_open(struct vm_area_struct *vma)
2243{
f522c3ac 2244 struct resv_map *resv = vma_resv_map(vma);
84afd99b
AW
2245
2246 /*
2247 * This new VMA should share its siblings reservation map if present.
2248 * The VMA will only ever have a valid reservation map pointer where
2249 * it is being copied for another still existing VMA. As that VMA
25985edc 2250 * has a reference to the reservation map it cannot disappear until
84afd99b
AW
2251 * after this open call completes. It is therefore safe to take a
2252 * new reference here without additional locking.
2253 */
f522c3ac
JK
2254 if (resv)
2255 kref_get(&resv->refs);
84afd99b
AW
2256}
2257
c50ac050
DH
2258static void resv_map_put(struct vm_area_struct *vma)
2259{
f522c3ac 2260 struct resv_map *resv = vma_resv_map(vma);
c50ac050 2261
f522c3ac 2262 if (!resv)
c50ac050 2263 return;
f522c3ac 2264 kref_put(&resv->refs, resv_map_release);
c50ac050
DH
2265}
2266
a1e78772
MG
2267static void hugetlb_vm_op_close(struct vm_area_struct *vma)
2268{
a5516438 2269 struct hstate *h = hstate_vma(vma);
f522c3ac 2270 struct resv_map *resv = vma_resv_map(vma);
90481622 2271 struct hugepage_subpool *spool = subpool_vma(vma);
84afd99b
AW
2272 unsigned long reserve;
2273 unsigned long start;
2274 unsigned long end;
2275
f522c3ac 2276 if (resv) {
a5516438
AK
2277 start = vma_hugecache_offset(h, vma, vma->vm_start);
2278 end = vma_hugecache_offset(h, vma, vma->vm_end);
84afd99b
AW
2279
2280 reserve = (end - start) -
f522c3ac 2281 region_count(&resv->regions, start, end);
84afd99b 2282
c50ac050 2283 resv_map_put(vma);
84afd99b 2284
7251ff78 2285 if (reserve) {
a5516438 2286 hugetlb_acct_memory(h, -reserve);
90481622 2287 hugepage_subpool_put_pages(spool, reserve);
7251ff78 2288 }
84afd99b 2289 }
a1e78772
MG
2290}
2291
1da177e4
LT
2292/*
2293 * We cannot handle pagefaults against hugetlb pages at all. They cause
2294 * handle_mm_fault() to try to instantiate regular-sized pages in the
2295 * hugegpage VMA. do_page_fault() is supposed to trap this, so BUG is we get
2296 * this far.
2297 */
d0217ac0 2298static int hugetlb_vm_op_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
1da177e4
LT
2299{
2300 BUG();
d0217ac0 2301 return 0;
1da177e4
LT
2302}
2303
f0f37e2f 2304const struct vm_operations_struct hugetlb_vm_ops = {
d0217ac0 2305 .fault = hugetlb_vm_op_fault,
84afd99b 2306 .open = hugetlb_vm_op_open,
a1e78772 2307 .close = hugetlb_vm_op_close,
1da177e4
LT
2308};
2309
1e8f889b
DG
2310static pte_t make_huge_pte(struct vm_area_struct *vma, struct page *page,
2311 int writable)
63551ae0
DG
2312{
2313 pte_t entry;
2314
1e8f889b 2315 if (writable) {
106c992a
GS
2316 entry = huge_pte_mkwrite(huge_pte_mkdirty(mk_huge_pte(page,
2317 vma->vm_page_prot)));
63551ae0 2318 } else {
106c992a
GS
2319 entry = huge_pte_wrprotect(mk_huge_pte(page,
2320 vma->vm_page_prot));
63551ae0
DG
2321 }
2322 entry = pte_mkyoung(entry);
2323 entry = pte_mkhuge(entry);
d9ed9faa 2324 entry = arch_make_huge_pte(entry, vma, page, writable);
63551ae0
DG
2325
2326 return entry;
2327}
2328
1e8f889b
DG
2329static void set_huge_ptep_writable(struct vm_area_struct *vma,
2330 unsigned long address, pte_t *ptep)
2331{
2332 pte_t entry;
2333
106c992a 2334 entry = huge_pte_mkwrite(huge_pte_mkdirty(huge_ptep_get(ptep)));
32f84528 2335 if (huge_ptep_set_access_flags(vma, address, ptep, entry, 1))
4b3073e1 2336 update_mmu_cache(vma, address, ptep);
1e8f889b
DG
2337}
2338
2339
63551ae0
DG
2340int copy_hugetlb_page_range(struct mm_struct *dst, struct mm_struct *src,
2341 struct vm_area_struct *vma)
2342{
2343 pte_t *src_pte, *dst_pte, entry;
2344 struct page *ptepage;
1c59827d 2345 unsigned long addr;
1e8f889b 2346 int cow;
a5516438
AK
2347 struct hstate *h = hstate_vma(vma);
2348 unsigned long sz = huge_page_size(h);
e8569dd2
AS
2349 unsigned long mmun_start; /* For mmu_notifiers */
2350 unsigned long mmun_end; /* For mmu_notifiers */
2351 int ret = 0;
1e8f889b
DG
2352
2353 cow = (vma->vm_flags & (VM_SHARED | VM_MAYWRITE)) == VM_MAYWRITE;
63551ae0 2354
e8569dd2
AS
2355 mmun_start = vma->vm_start;
2356 mmun_end = vma->vm_end;
2357 if (cow)
2358 mmu_notifier_invalidate_range_start(src, mmun_start, mmun_end);
2359
a5516438 2360 for (addr = vma->vm_start; addr < vma->vm_end; addr += sz) {
cb900f41 2361 spinlock_t *src_ptl, *dst_ptl;
c74df32c
HD
2362 src_pte = huge_pte_offset(src, addr);
2363 if (!src_pte)
2364 continue;
a5516438 2365 dst_pte = huge_pte_alloc(dst, addr, sz);
e8569dd2
AS
2366 if (!dst_pte) {
2367 ret = -ENOMEM;
2368 break;
2369 }
c5c99429
LW
2370
2371 /* If the pagetables are shared don't copy or take references */
2372 if (dst_pte == src_pte)
2373 continue;
2374
cb900f41
KS
2375 dst_ptl = huge_pte_lock(h, dst, dst_pte);
2376 src_ptl = huge_pte_lockptr(h, src, src_pte);
2377 spin_lock_nested(src_ptl, SINGLE_DEPTH_NESTING);
7f2e9525 2378 if (!huge_pte_none(huge_ptep_get(src_pte))) {
1e8f889b 2379 if (cow)
7f2e9525
GS
2380 huge_ptep_set_wrprotect(src, addr, src_pte);
2381 entry = huge_ptep_get(src_pte);
1c59827d
HD
2382 ptepage = pte_page(entry);
2383 get_page(ptepage);
0fe6e20b 2384 page_dup_rmap(ptepage);
1c59827d
HD
2385 set_huge_pte_at(dst, addr, dst_pte, entry);
2386 }
cb900f41
KS
2387 spin_unlock(src_ptl);
2388 spin_unlock(dst_ptl);
63551ae0 2389 }
63551ae0 2390
e8569dd2
AS
2391 if (cow)
2392 mmu_notifier_invalidate_range_end(src, mmun_start, mmun_end);
2393
2394 return ret;
63551ae0
DG
2395}
2396
290408d4
NH
2397static int is_hugetlb_entry_migration(pte_t pte)
2398{
2399 swp_entry_t swp;
2400
2401 if (huge_pte_none(pte) || pte_present(pte))
2402 return 0;
2403 swp = pte_to_swp_entry(pte);
32f84528 2404 if (non_swap_entry(swp) && is_migration_entry(swp))
290408d4 2405 return 1;
32f84528 2406 else
290408d4
NH
2407 return 0;
2408}
2409
fd6a03ed
NH
2410static int is_hugetlb_entry_hwpoisoned(pte_t pte)
2411{
2412 swp_entry_t swp;
2413
2414 if (huge_pte_none(pte) || pte_present(pte))
2415 return 0;
2416 swp = pte_to_swp_entry(pte);
32f84528 2417 if (non_swap_entry(swp) && is_hwpoison_entry(swp))
fd6a03ed 2418 return 1;
32f84528 2419 else
fd6a03ed
NH
2420 return 0;
2421}
2422
24669e58
AK
2423void __unmap_hugepage_range(struct mmu_gather *tlb, struct vm_area_struct *vma,
2424 unsigned long start, unsigned long end,
2425 struct page *ref_page)
63551ae0 2426{
24669e58 2427 int force_flush = 0;
63551ae0
DG
2428 struct mm_struct *mm = vma->vm_mm;
2429 unsigned long address;
c7546f8f 2430 pte_t *ptep;
63551ae0 2431 pte_t pte;
cb900f41 2432 spinlock_t *ptl;
63551ae0 2433 struct page *page;
a5516438
AK
2434 struct hstate *h = hstate_vma(vma);
2435 unsigned long sz = huge_page_size(h);
2ec74c3e
SG
2436 const unsigned long mmun_start = start; /* For mmu_notifiers */
2437 const unsigned long mmun_end = end; /* For mmu_notifiers */
a5516438 2438
63551ae0 2439 WARN_ON(!is_vm_hugetlb_page(vma));
a5516438
AK
2440 BUG_ON(start & ~huge_page_mask(h));
2441 BUG_ON(end & ~huge_page_mask(h));
63551ae0 2442
24669e58 2443 tlb_start_vma(tlb, vma);
2ec74c3e 2444 mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
24669e58 2445again:
a5516438 2446 for (address = start; address < end; address += sz) {
c7546f8f 2447 ptep = huge_pte_offset(mm, address);
4c887265 2448 if (!ptep)
c7546f8f
DG
2449 continue;
2450
cb900f41 2451 ptl = huge_pte_lock(h, mm, ptep);
39dde65c 2452 if (huge_pmd_unshare(mm, &address, ptep))
cb900f41 2453 goto unlock;
39dde65c 2454
6629326b
HD
2455 pte = huge_ptep_get(ptep);
2456 if (huge_pte_none(pte))
cb900f41 2457 goto unlock;
6629326b
HD
2458
2459 /*
2460 * HWPoisoned hugepage is already unmapped and dropped reference
2461 */
8c4894c6 2462 if (unlikely(is_hugetlb_entry_hwpoisoned(pte))) {
106c992a 2463 huge_pte_clear(mm, address, ptep);
cb900f41 2464 goto unlock;
8c4894c6 2465 }
6629326b
HD
2466
2467 page = pte_page(pte);
04f2cbe3
MG
2468 /*
2469 * If a reference page is supplied, it is because a specific
2470 * page is being unmapped, not a range. Ensure the page we
2471 * are about to unmap is the actual page of interest.
2472 */
2473 if (ref_page) {
04f2cbe3 2474 if (page != ref_page)
cb900f41 2475 goto unlock;
04f2cbe3
MG
2476
2477 /*
2478 * Mark the VMA as having unmapped its page so that
2479 * future faults in this VMA will fail rather than
2480 * looking like data was lost
2481 */
2482 set_vma_resv_flags(vma, HPAGE_RESV_UNMAPPED);
2483 }
2484
c7546f8f 2485 pte = huge_ptep_get_and_clear(mm, address, ptep);
24669e58 2486 tlb_remove_tlb_entry(tlb, ptep, address);
106c992a 2487 if (huge_pte_dirty(pte))
6649a386 2488 set_page_dirty(page);
9e81130b 2489
24669e58
AK
2490 page_remove_rmap(page);
2491 force_flush = !__tlb_remove_page(tlb, page);
cb900f41
KS
2492 if (force_flush) {
2493 spin_unlock(ptl);
24669e58 2494 break;
cb900f41 2495 }
9e81130b 2496 /* Bail out after unmapping reference page if supplied */
cb900f41
KS
2497 if (ref_page) {
2498 spin_unlock(ptl);
9e81130b 2499 break;
cb900f41
KS
2500 }
2501unlock:
2502 spin_unlock(ptl);
63551ae0 2503 }
24669e58
AK
2504 /*
2505 * mmu_gather ran out of room to batch pages, we break out of
2506 * the PTE lock to avoid doing the potential expensive TLB invalidate
2507 * and page-free while holding it.
2508 */
2509 if (force_flush) {
2510 force_flush = 0;
2511 tlb_flush_mmu(tlb);
2512 if (address < end && !ref_page)
2513 goto again;
fe1668ae 2514 }
2ec74c3e 2515 mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
24669e58 2516 tlb_end_vma(tlb, vma);
1da177e4 2517}
63551ae0 2518
d833352a
MG
2519void __unmap_hugepage_range_final(struct mmu_gather *tlb,
2520 struct vm_area_struct *vma, unsigned long start,
2521 unsigned long end, struct page *ref_page)
2522{
2523 __unmap_hugepage_range(tlb, vma, start, end, ref_page);
2524
2525 /*
2526 * Clear this flag so that x86's huge_pmd_share page_table_shareable
2527 * test will fail on a vma being torn down, and not grab a page table
2528 * on its way out. We're lucky that the flag has such an appropriate
2529 * name, and can in fact be safely cleared here. We could clear it
2530 * before the __unmap_hugepage_range above, but all that's necessary
2531 * is to clear it before releasing the i_mmap_mutex. This works
2532 * because in the context this is called, the VMA is about to be
2533 * destroyed and the i_mmap_mutex is held.
2534 */
2535 vma->vm_flags &= ~VM_MAYSHARE;
2536}
2537
502717f4 2538void unmap_hugepage_range(struct vm_area_struct *vma, unsigned long start,
04f2cbe3 2539 unsigned long end, struct page *ref_page)
502717f4 2540{
24669e58
AK
2541 struct mm_struct *mm;
2542 struct mmu_gather tlb;
2543
2544 mm = vma->vm_mm;
2545
2b047252 2546 tlb_gather_mmu(&tlb, mm, start, end);
24669e58
AK
2547 __unmap_hugepage_range(&tlb, vma, start, end, ref_page);
2548 tlb_finish_mmu(&tlb, start, end);
502717f4
CK
2549}
2550
04f2cbe3
MG
2551/*
2552 * This is called when the original mapper is failing to COW a MAP_PRIVATE
2553 * mappping it owns the reserve page for. The intention is to unmap the page
2554 * from other VMAs and let the children be SIGKILLed if they are faulting the
2555 * same region.
2556 */
2a4b3ded
HH
2557static int unmap_ref_private(struct mm_struct *mm, struct vm_area_struct *vma,
2558 struct page *page, unsigned long address)
04f2cbe3 2559{
7526674d 2560 struct hstate *h = hstate_vma(vma);
04f2cbe3
MG
2561 struct vm_area_struct *iter_vma;
2562 struct address_space *mapping;
04f2cbe3
MG
2563 pgoff_t pgoff;
2564
2565 /*
2566 * vm_pgoff is in PAGE_SIZE units, hence the different calculation
2567 * from page cache lookup which is in HPAGE_SIZE units.
2568 */
7526674d 2569 address = address & huge_page_mask(h);
36e4f20a
MH
2570 pgoff = ((address - vma->vm_start) >> PAGE_SHIFT) +
2571 vma->vm_pgoff;
496ad9aa 2572 mapping = file_inode(vma->vm_file)->i_mapping;
04f2cbe3 2573
4eb2b1dc
MG
2574 /*
2575 * Take the mapping lock for the duration of the table walk. As
2576 * this mapping should be shared between all the VMAs,
2577 * __unmap_hugepage_range() is called as the lock is already held
2578 */
3d48ae45 2579 mutex_lock(&mapping->i_mmap_mutex);
6b2dbba8 2580 vma_interval_tree_foreach(iter_vma, &mapping->i_mmap, pgoff, pgoff) {
04f2cbe3
MG
2581 /* Do not unmap the current VMA */
2582 if (iter_vma == vma)
2583 continue;
2584
2585 /*
2586 * Unmap the page from other VMAs without their own reserves.
2587 * They get marked to be SIGKILLed if they fault in these
2588 * areas. This is because a future no-page fault on this VMA
2589 * could insert a zeroed page instead of the data existing
2590 * from the time of fork. This would look like data corruption
2591 */
2592 if (!is_vma_resv_set(iter_vma, HPAGE_RESV_OWNER))
24669e58
AK
2593 unmap_hugepage_range(iter_vma, address,
2594 address + huge_page_size(h), page);
04f2cbe3 2595 }
3d48ae45 2596 mutex_unlock(&mapping->i_mmap_mutex);
04f2cbe3
MG
2597
2598 return 1;
2599}
2600
0fe6e20b
NH
2601/*
2602 * Hugetlb_cow() should be called with page lock of the original hugepage held.
ef009b25
MH
2603 * Called with hugetlb_instantiation_mutex held and pte_page locked so we
2604 * cannot race with other handlers or page migration.
2605 * Keep the pte_same checks anyway to make transition from the mutex easier.
0fe6e20b 2606 */
1e8f889b 2607static int hugetlb_cow(struct mm_struct *mm, struct vm_area_struct *vma,
04f2cbe3 2608 unsigned long address, pte_t *ptep, pte_t pte,
cb900f41 2609 struct page *pagecache_page, spinlock_t *ptl)
1e8f889b 2610{
a5516438 2611 struct hstate *h = hstate_vma(vma);
1e8f889b 2612 struct page *old_page, *new_page;
04f2cbe3 2613 int outside_reserve = 0;
2ec74c3e
SG
2614 unsigned long mmun_start; /* For mmu_notifiers */
2615 unsigned long mmun_end; /* For mmu_notifiers */
1e8f889b
DG
2616
2617 old_page = pte_page(pte);
2618
04f2cbe3 2619retry_avoidcopy:
1e8f889b
DG
2620 /* If no-one else is actually using this page, avoid the copy
2621 * and just make the page writable */
37a2140d
JK
2622 if (page_mapcount(old_page) == 1 && PageAnon(old_page)) {
2623 page_move_anon_rmap(old_page, vma, address);
1e8f889b 2624 set_huge_ptep_writable(vma, address, ptep);
83c54070 2625 return 0;
1e8f889b
DG
2626 }
2627
04f2cbe3
MG
2628 /*
2629 * If the process that created a MAP_PRIVATE mapping is about to
2630 * perform a COW due to a shared page count, attempt to satisfy
2631 * the allocation without using the existing reserves. The pagecache
2632 * page is used to determine if the reserve at this address was
2633 * consumed or not. If reserves were used, a partial faulted mapping
2634 * at the time of fork() could consume its reserves on COW instead
2635 * of the full address range.
2636 */
5944d011 2637 if (is_vma_resv_set(vma, HPAGE_RESV_OWNER) &&
04f2cbe3
MG
2638 old_page != pagecache_page)
2639 outside_reserve = 1;
2640
1e8f889b 2641 page_cache_get(old_page);
b76c8cfb 2642
cb900f41
KS
2643 /* Drop page table lock as buddy allocator may be called */
2644 spin_unlock(ptl);
04f2cbe3 2645 new_page = alloc_huge_page(vma, address, outside_reserve);
1e8f889b 2646
2fc39cec 2647 if (IS_ERR(new_page)) {
76dcee75 2648 long err = PTR_ERR(new_page);
1e8f889b 2649 page_cache_release(old_page);
04f2cbe3
MG
2650
2651 /*
2652 * If a process owning a MAP_PRIVATE mapping fails to COW,
2653 * it is due to references held by a child and an insufficient
2654 * huge page pool. To guarantee the original mappers
2655 * reliability, unmap the page from child processes. The child
2656 * may get SIGKILLed if it later faults.
2657 */
2658 if (outside_reserve) {
2659 BUG_ON(huge_pte_none(pte));
2660 if (unmap_ref_private(mm, vma, old_page, address)) {
04f2cbe3 2661 BUG_ON(huge_pte_none(pte));
cb900f41 2662 spin_lock(ptl);
a734bcc8
HD
2663 ptep = huge_pte_offset(mm, address & huge_page_mask(h));
2664 if (likely(pte_same(huge_ptep_get(ptep), pte)))
2665 goto retry_avoidcopy;
2666 /*
cb900f41
KS
2667 * race occurs while re-acquiring page table
2668 * lock, and our job is done.
a734bcc8
HD
2669 */
2670 return 0;
04f2cbe3
MG
2671 }
2672 WARN_ON_ONCE(1);
2673 }
2674
b76c8cfb 2675 /* Caller expects lock to be held */
cb900f41 2676 spin_lock(ptl);
76dcee75
AK
2677 if (err == -ENOMEM)
2678 return VM_FAULT_OOM;
2679 else
2680 return VM_FAULT_SIGBUS;
1e8f889b
DG
2681 }
2682
0fe6e20b
NH
2683 /*
2684 * When the original hugepage is shared one, it does not have
2685 * anon_vma prepared.
2686 */
44e2aa93 2687 if (unlikely(anon_vma_prepare(vma))) {
ea4039a3
HD
2688 page_cache_release(new_page);
2689 page_cache_release(old_page);
44e2aa93 2690 /* Caller expects lock to be held */
cb900f41 2691 spin_lock(ptl);
0fe6e20b 2692 return VM_FAULT_OOM;
44e2aa93 2693 }
0fe6e20b 2694
47ad8475
AA
2695 copy_user_huge_page(new_page, old_page, address, vma,
2696 pages_per_huge_page(h));
0ed361de 2697 __SetPageUptodate(new_page);
1e8f889b 2698
2ec74c3e
SG
2699 mmun_start = address & huge_page_mask(h);
2700 mmun_end = mmun_start + huge_page_size(h);
2701 mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end);
b76c8cfb 2702 /*
cb900f41 2703 * Retake the page table lock to check for racing updates
b76c8cfb
LW
2704 * before the page tables are altered
2705 */
cb900f41 2706 spin_lock(ptl);
a5516438 2707 ptep = huge_pte_offset(mm, address & huge_page_mask(h));
7f2e9525 2708 if (likely(pte_same(huge_ptep_get(ptep), pte))) {
07443a85
JK
2709 ClearPagePrivate(new_page);
2710
1e8f889b 2711 /* Break COW */
8fe627ec 2712 huge_ptep_clear_flush(vma, address, ptep);
1e8f889b
DG
2713 set_huge_pte_at(mm, address, ptep,
2714 make_huge_pte(vma, new_page, 1));
0fe6e20b 2715 page_remove_rmap(old_page);
cd67f0d2 2716 hugepage_add_new_anon_rmap(new_page, vma, address);
1e8f889b
DG
2717 /* Make the old page be freed below */
2718 new_page = old_page;
2719 }
cb900f41 2720 spin_unlock(ptl);
2ec74c3e 2721 mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end);
1e8f889b
DG
2722 page_cache_release(new_page);
2723 page_cache_release(old_page);
8312034f
JK
2724
2725 /* Caller expects lock to be held */
cb900f41 2726 spin_lock(ptl);
83c54070 2727 return 0;
1e8f889b
DG
2728}
2729
04f2cbe3 2730/* Return the pagecache page at a given address within a VMA */
a5516438
AK
2731static struct page *hugetlbfs_pagecache_page(struct hstate *h,
2732 struct vm_area_struct *vma, unsigned long address)
04f2cbe3
MG
2733{
2734 struct address_space *mapping;
e7c4b0bf 2735 pgoff_t idx;
04f2cbe3
MG
2736
2737 mapping = vma->vm_file->f_mapping;
a5516438 2738 idx = vma_hugecache_offset(h, vma, address);
04f2cbe3
MG
2739
2740 return find_lock_page(mapping, idx);
2741}
2742
3ae77f43
HD
2743/*
2744 * Return whether there is a pagecache page to back given address within VMA.
2745 * Caller follow_hugetlb_page() holds page_table_lock so we cannot lock_page.
2746 */
2747static bool hugetlbfs_pagecache_present(struct hstate *h,
2a15efc9
HD
2748 struct vm_area_struct *vma, unsigned long address)
2749{
2750 struct address_space *mapping;
2751 pgoff_t idx;
2752 struct page *page;
2753
2754 mapping = vma->vm_file->f_mapping;
2755 idx = vma_hugecache_offset(h, vma, address);
2756
2757 page = find_get_page(mapping, idx);
2758 if (page)
2759 put_page(page);
2760 return page != NULL;
2761}
2762
a1ed3dda 2763static int hugetlb_no_page(struct mm_struct *mm, struct vm_area_struct *vma,
788c7df4 2764 unsigned long address, pte_t *ptep, unsigned int flags)
ac9b9c66 2765{
a5516438 2766 struct hstate *h = hstate_vma(vma);
ac9b9c66 2767 int ret = VM_FAULT_SIGBUS;
409eb8c2 2768 int anon_rmap = 0;
e7c4b0bf 2769 pgoff_t idx;
4c887265 2770 unsigned long size;
4c887265
AL
2771 struct page *page;
2772 struct address_space *mapping;
1e8f889b 2773 pte_t new_pte;
cb900f41 2774 spinlock_t *ptl;
4c887265 2775
04f2cbe3
MG
2776 /*
2777 * Currently, we are forced to kill the process in the event the
2778 * original mapper has unmapped pages from the child due to a failed
25985edc 2779 * COW. Warn that such a situation has occurred as it may not be obvious
04f2cbe3
MG
2780 */
2781 if (is_vma_resv_set(vma, HPAGE_RESV_UNMAPPED)) {
ffb22af5
AM
2782 pr_warning("PID %d killed due to inadequate hugepage pool\n",
2783 current->pid);
04f2cbe3
MG
2784 return ret;
2785 }
2786
4c887265 2787 mapping = vma->vm_file->f_mapping;
a5516438 2788 idx = vma_hugecache_offset(h, vma, address);
4c887265
AL
2789
2790 /*
2791 * Use page lock to guard against racing truncation
2792 * before we get page_table_lock.
2793 */
6bda666a
CL
2794retry:
2795 page = find_lock_page(mapping, idx);
2796 if (!page) {
a5516438 2797 size = i_size_read(mapping->host) >> huge_page_shift(h);
ebed4bfc
HD
2798 if (idx >= size)
2799 goto out;
04f2cbe3 2800 page = alloc_huge_page(vma, address, 0);
2fc39cec 2801 if (IS_ERR(page)) {
76dcee75
AK
2802 ret = PTR_ERR(page);
2803 if (ret == -ENOMEM)
2804 ret = VM_FAULT_OOM;
2805 else
2806 ret = VM_FAULT_SIGBUS;
6bda666a
CL
2807 goto out;
2808 }
47ad8475 2809 clear_huge_page(page, address, pages_per_huge_page(h));
0ed361de 2810 __SetPageUptodate(page);
ac9b9c66 2811
f83a275d 2812 if (vma->vm_flags & VM_MAYSHARE) {
6bda666a 2813 int err;
45c682a6 2814 struct inode *inode = mapping->host;
6bda666a
CL
2815
2816 err = add_to_page_cache(page, mapping, idx, GFP_KERNEL);
2817 if (err) {
2818 put_page(page);
6bda666a
CL
2819 if (err == -EEXIST)
2820 goto retry;
2821 goto out;
2822 }
07443a85 2823 ClearPagePrivate(page);
45c682a6
KC
2824
2825 spin_lock(&inode->i_lock);
a5516438 2826 inode->i_blocks += blocks_per_huge_page(h);
45c682a6 2827 spin_unlock(&inode->i_lock);
23be7468 2828 } else {
6bda666a 2829 lock_page(page);
0fe6e20b
NH
2830 if (unlikely(anon_vma_prepare(vma))) {
2831 ret = VM_FAULT_OOM;
2832 goto backout_unlocked;
2833 }
409eb8c2 2834 anon_rmap = 1;
23be7468 2835 }
0fe6e20b 2836 } else {
998b4382
NH
2837 /*
2838 * If memory error occurs between mmap() and fault, some process
2839 * don't have hwpoisoned swap entry for errored virtual address.
2840 * So we need to block hugepage fault by PG_hwpoison bit check.
2841 */
2842 if (unlikely(PageHWPoison(page))) {
32f84528 2843 ret = VM_FAULT_HWPOISON |
972dc4de 2844 VM_FAULT_SET_HINDEX(hstate_index(h));
998b4382
NH
2845 goto backout_unlocked;
2846 }
6bda666a 2847 }
1e8f889b 2848
57303d80
AW
2849 /*
2850 * If we are going to COW a private mapping later, we examine the
2851 * pending reservations for this page now. This will ensure that
2852 * any allocations necessary to record that reservation occur outside
2853 * the spinlock.
2854 */
788c7df4 2855 if ((flags & FAULT_FLAG_WRITE) && !(vma->vm_flags & VM_SHARED))
2b26736c
AW
2856 if (vma_needs_reservation(h, vma, address) < 0) {
2857 ret = VM_FAULT_OOM;
2858 goto backout_unlocked;
2859 }
57303d80 2860
cb900f41
KS
2861 ptl = huge_pte_lockptr(h, mm, ptep);
2862 spin_lock(ptl);
a5516438 2863 size = i_size_read(mapping->host) >> huge_page_shift(h);
4c887265
AL
2864 if (idx >= size)
2865 goto backout;
2866
83c54070 2867 ret = 0;
7f2e9525 2868 if (!huge_pte_none(huge_ptep_get(ptep)))
4c887265
AL
2869 goto backout;
2870
07443a85
JK
2871 if (anon_rmap) {
2872 ClearPagePrivate(page);
409eb8c2 2873 hugepage_add_new_anon_rmap(page, vma, address);
07443a85 2874 }
409eb8c2
HD
2875 else
2876 page_dup_rmap(page);
1e8f889b
DG
2877 new_pte = make_huge_pte(vma, page, ((vma->vm_flags & VM_WRITE)
2878 && (vma->vm_flags & VM_SHARED)));
2879 set_huge_pte_at(mm, address, ptep, new_pte);
2880
788c7df4 2881 if ((flags & FAULT_FLAG_WRITE) && !(vma->vm_flags & VM_SHARED)) {
1e8f889b 2882 /* Optimization, do the COW without a second fault */
cb900f41 2883 ret = hugetlb_cow(mm, vma, address, ptep, new_pte, page, ptl);
1e8f889b
DG
2884 }
2885
cb900f41 2886 spin_unlock(ptl);
4c887265
AL
2887 unlock_page(page);
2888out:
ac9b9c66 2889 return ret;
4c887265
AL
2890
2891backout:
cb900f41 2892 spin_unlock(ptl);
2b26736c 2893backout_unlocked:
4c887265
AL
2894 unlock_page(page);
2895 put_page(page);
2896 goto out;
ac9b9c66
HD
2897}
2898
86e5216f 2899int hugetlb_fault(struct mm_struct *mm, struct vm_area_struct *vma,
788c7df4 2900 unsigned long address, unsigned int flags)
86e5216f
AL
2901{
2902 pte_t *ptep;
2903 pte_t entry;
cb900f41 2904 spinlock_t *ptl;
1e8f889b 2905 int ret;
0fe6e20b 2906 struct page *page = NULL;
57303d80 2907 struct page *pagecache_page = NULL;
3935baa9 2908 static DEFINE_MUTEX(hugetlb_instantiation_mutex);
a5516438 2909 struct hstate *h = hstate_vma(vma);
86e5216f 2910
1e16a539
KH
2911 address &= huge_page_mask(h);
2912
fd6a03ed
NH
2913 ptep = huge_pte_offset(mm, address);
2914 if (ptep) {
2915 entry = huge_ptep_get(ptep);
290408d4 2916 if (unlikely(is_hugetlb_entry_migration(entry))) {
cb900f41 2917 migration_entry_wait_huge(vma, mm, ptep);
290408d4
NH
2918 return 0;
2919 } else if (unlikely(is_hugetlb_entry_hwpoisoned(entry)))
32f84528 2920 return VM_FAULT_HWPOISON_LARGE |
972dc4de 2921 VM_FAULT_SET_HINDEX(hstate_index(h));
fd6a03ed
NH
2922 }
2923
a5516438 2924 ptep = huge_pte_alloc(mm, address, huge_page_size(h));
86e5216f
AL
2925 if (!ptep)
2926 return VM_FAULT_OOM;
2927
3935baa9
DG
2928 /*
2929 * Serialize hugepage allocation and instantiation, so that we don't
2930 * get spurious allocation failures if two CPUs race to instantiate
2931 * the same page in the page cache.
2932 */
2933 mutex_lock(&hugetlb_instantiation_mutex);
7f2e9525
GS
2934 entry = huge_ptep_get(ptep);
2935 if (huge_pte_none(entry)) {
788c7df4 2936 ret = hugetlb_no_page(mm, vma, address, ptep, flags);
b4d1d99f 2937 goto out_mutex;
3935baa9 2938 }
86e5216f 2939
83c54070 2940 ret = 0;
1e8f889b 2941
57303d80
AW
2942 /*
2943 * If we are going to COW the mapping later, we examine the pending
2944 * reservations for this page now. This will ensure that any
2945 * allocations necessary to record that reservation occur outside the
2946 * spinlock. For private mappings, we also lookup the pagecache
2947 * page now as it is used to determine if a reservation has been
2948 * consumed.
2949 */
106c992a 2950 if ((flags & FAULT_FLAG_WRITE) && !huge_pte_write(entry)) {
2b26736c
AW
2951 if (vma_needs_reservation(h, vma, address) < 0) {
2952 ret = VM_FAULT_OOM;
b4d1d99f 2953 goto out_mutex;
2b26736c 2954 }
57303d80 2955
f83a275d 2956 if (!(vma->vm_flags & VM_MAYSHARE))
57303d80
AW
2957 pagecache_page = hugetlbfs_pagecache_page(h,
2958 vma, address);
2959 }
2960
56c9cfb1
NH
2961 /*
2962 * hugetlb_cow() requires page locks of pte_page(entry) and
2963 * pagecache_page, so here we need take the former one
2964 * when page != pagecache_page or !pagecache_page.
2965 * Note that locking order is always pagecache_page -> page,
2966 * so no worry about deadlock.
2967 */
2968 page = pte_page(entry);
66aebce7 2969 get_page(page);
56c9cfb1 2970 if (page != pagecache_page)
0fe6e20b 2971 lock_page(page);
0fe6e20b 2972
cb900f41
KS
2973 ptl = huge_pte_lockptr(h, mm, ptep);
2974 spin_lock(ptl);
1e8f889b 2975 /* Check for a racing update before calling hugetlb_cow */
b4d1d99f 2976 if (unlikely(!pte_same(entry, huge_ptep_get(ptep))))
cb900f41 2977 goto out_ptl;
b4d1d99f
DG
2978
2979
788c7df4 2980 if (flags & FAULT_FLAG_WRITE) {
106c992a 2981 if (!huge_pte_write(entry)) {
57303d80 2982 ret = hugetlb_cow(mm, vma, address, ptep, entry,
cb900f41
KS
2983 pagecache_page, ptl);
2984 goto out_ptl;
b4d1d99f 2985 }
106c992a 2986 entry = huge_pte_mkdirty(entry);
b4d1d99f
DG
2987 }
2988 entry = pte_mkyoung(entry);
788c7df4
HD
2989 if (huge_ptep_set_access_flags(vma, address, ptep, entry,
2990 flags & FAULT_FLAG_WRITE))
4b3073e1 2991 update_mmu_cache(vma, address, ptep);
b4d1d99f 2992
cb900f41
KS
2993out_ptl:
2994 spin_unlock(ptl);
57303d80
AW
2995
2996 if (pagecache_page) {
2997 unlock_page(pagecache_page);
2998 put_page(pagecache_page);
2999 }
1f64d69c
DN
3000 if (page != pagecache_page)
3001 unlock_page(page);
66aebce7 3002 put_page(page);
57303d80 3003
b4d1d99f 3004out_mutex:
3935baa9 3005 mutex_unlock(&hugetlb_instantiation_mutex);
1e8f889b
DG
3006
3007 return ret;
86e5216f
AL
3008}
3009
28a35716
ML
3010long follow_hugetlb_page(struct mm_struct *mm, struct vm_area_struct *vma,
3011 struct page **pages, struct vm_area_struct **vmas,
3012 unsigned long *position, unsigned long *nr_pages,
3013 long i, unsigned int flags)
63551ae0 3014{
d5d4b0aa
CK
3015 unsigned long pfn_offset;
3016 unsigned long vaddr = *position;
28a35716 3017 unsigned long remainder = *nr_pages;
a5516438 3018 struct hstate *h = hstate_vma(vma);
63551ae0 3019
63551ae0 3020 while (vaddr < vma->vm_end && remainder) {
4c887265 3021 pte_t *pte;
cb900f41 3022 spinlock_t *ptl = NULL;
2a15efc9 3023 int absent;
4c887265 3024 struct page *page;
63551ae0 3025
4c887265
AL
3026 /*
3027 * Some archs (sparc64, sh*) have multiple pte_ts to
2a15efc9 3028 * each hugepage. We have to make sure we get the
4c887265 3029 * first, for the page indexing below to work.
cb900f41
KS
3030 *
3031 * Note that page table lock is not held when pte is null.
4c887265 3032 */
a5516438 3033 pte = huge_pte_offset(mm, vaddr & huge_page_mask(h));
cb900f41
KS
3034 if (pte)
3035 ptl = huge_pte_lock(h, mm, pte);
2a15efc9
HD
3036 absent = !pte || huge_pte_none(huge_ptep_get(pte));
3037
3038 /*
3039 * When coredumping, it suits get_dump_page if we just return
3ae77f43
HD
3040 * an error where there's an empty slot with no huge pagecache
3041 * to back it. This way, we avoid allocating a hugepage, and
3042 * the sparse dumpfile avoids allocating disk blocks, but its
3043 * huge holes still show up with zeroes where they need to be.
2a15efc9 3044 */
3ae77f43
HD
3045 if (absent && (flags & FOLL_DUMP) &&
3046 !hugetlbfs_pagecache_present(h, vma, vaddr)) {
cb900f41
KS
3047 if (pte)
3048 spin_unlock(ptl);
2a15efc9
HD
3049 remainder = 0;
3050 break;
3051 }
63551ae0 3052
9cc3a5bd
NH
3053 /*
3054 * We need call hugetlb_fault for both hugepages under migration
3055 * (in which case hugetlb_fault waits for the migration,) and
3056 * hwpoisoned hugepages (in which case we need to prevent the
3057 * caller from accessing to them.) In order to do this, we use
3058 * here is_swap_pte instead of is_hugetlb_entry_migration and
3059 * is_hugetlb_entry_hwpoisoned. This is because it simply covers
3060 * both cases, and because we can't follow correct pages
3061 * directly from any kind of swap entries.
3062 */
3063 if (absent || is_swap_pte(huge_ptep_get(pte)) ||
106c992a
GS
3064 ((flags & FOLL_WRITE) &&
3065 !huge_pte_write(huge_ptep_get(pte)))) {
4c887265 3066 int ret;
63551ae0 3067
cb900f41
KS
3068 if (pte)
3069 spin_unlock(ptl);
2a15efc9
HD
3070 ret = hugetlb_fault(mm, vma, vaddr,
3071 (flags & FOLL_WRITE) ? FAULT_FLAG_WRITE : 0);
a89182c7 3072 if (!(ret & VM_FAULT_ERROR))
4c887265 3073 continue;
63551ae0 3074
4c887265 3075 remainder = 0;
4c887265
AL
3076 break;
3077 }
3078
a5516438 3079 pfn_offset = (vaddr & ~huge_page_mask(h)) >> PAGE_SHIFT;
7f2e9525 3080 page = pte_page(huge_ptep_get(pte));
d5d4b0aa 3081same_page:
d6692183 3082 if (pages) {
2a15efc9 3083 pages[i] = mem_map_offset(page, pfn_offset);
a0368d4e 3084 get_page_foll(pages[i]);
d6692183 3085 }
63551ae0
DG
3086
3087 if (vmas)
3088 vmas[i] = vma;
3089
3090 vaddr += PAGE_SIZE;
d5d4b0aa 3091 ++pfn_offset;
63551ae0
DG
3092 --remainder;
3093 ++i;
d5d4b0aa 3094 if (vaddr < vma->vm_end && remainder &&
a5516438 3095 pfn_offset < pages_per_huge_page(h)) {
d5d4b0aa
CK
3096 /*
3097 * We use pfn_offset to avoid touching the pageframes
3098 * of this compound page.
3099 */
3100 goto same_page;
3101 }
cb900f41 3102 spin_unlock(ptl);
63551ae0 3103 }
28a35716 3104 *nr_pages = remainder;
63551ae0
DG
3105 *position = vaddr;
3106
2a15efc9 3107 return i ? i : -EFAULT;
63551ae0 3108}
8f860591 3109
7da4d641 3110unsigned long hugetlb_change_protection(struct vm_area_struct *vma,
8f860591
ZY
3111 unsigned long address, unsigned long end, pgprot_t newprot)
3112{
3113 struct mm_struct *mm = vma->vm_mm;
3114 unsigned long start = address;
3115 pte_t *ptep;
3116 pte_t pte;
a5516438 3117 struct hstate *h = hstate_vma(vma);
7da4d641 3118 unsigned long pages = 0;
8f860591
ZY
3119
3120 BUG_ON(address >= end);
3121 flush_cache_range(vma, address, end);
3122
3d48ae45 3123 mutex_lock(&vma->vm_file->f_mapping->i_mmap_mutex);
a5516438 3124 for (; address < end; address += huge_page_size(h)) {
cb900f41 3125 spinlock_t *ptl;
8f860591
ZY
3126 ptep = huge_pte_offset(mm, address);
3127 if (!ptep)
3128 continue;
cb900f41 3129 ptl = huge_pte_lock(h, mm, ptep);
7da4d641
PZ
3130 if (huge_pmd_unshare(mm, &address, ptep)) {
3131 pages++;
cb900f41 3132 spin_unlock(ptl);
39dde65c 3133 continue;
7da4d641 3134 }
7f2e9525 3135 if (!huge_pte_none(huge_ptep_get(ptep))) {
8f860591 3136 pte = huge_ptep_get_and_clear(mm, address, ptep);
106c992a 3137 pte = pte_mkhuge(huge_pte_modify(pte, newprot));
be7517d6 3138 pte = arch_make_huge_pte(pte, vma, NULL, 0);
8f860591 3139 set_huge_pte_at(mm, address, ptep, pte);
7da4d641 3140 pages++;
8f860591 3141 }
cb900f41 3142 spin_unlock(ptl);
8f860591 3143 }
d833352a
MG
3144 /*
3145 * Must flush TLB before releasing i_mmap_mutex: x86's huge_pmd_unshare
3146 * may have cleared our pud entry and done put_page on the page table:
3147 * once we release i_mmap_mutex, another task can do the final put_page
3148 * and that page table be reused and filled with junk.
3149 */
8f860591 3150 flush_tlb_range(vma, start, end);
d833352a 3151 mutex_unlock(&vma->vm_file->f_mapping->i_mmap_mutex);
7da4d641
PZ
3152
3153 return pages << h->order;
8f860591
ZY
3154}
3155
a1e78772
MG
3156int hugetlb_reserve_pages(struct inode *inode,
3157 long from, long to,
5a6fe125 3158 struct vm_area_struct *vma,
ca16d140 3159 vm_flags_t vm_flags)
e4e574b7 3160{
17c9d12e 3161 long ret, chg;
a5516438 3162 struct hstate *h = hstate_inode(inode);
90481622 3163 struct hugepage_subpool *spool = subpool_inode(inode);
e4e574b7 3164
17c9d12e
MG
3165 /*
3166 * Only apply hugepage reservation if asked. At fault time, an
3167 * attempt will be made for VM_NORESERVE to allocate a page
90481622 3168 * without using reserves
17c9d12e 3169 */
ca16d140 3170 if (vm_flags & VM_NORESERVE)
17c9d12e
MG
3171 return 0;
3172
a1e78772
MG
3173 /*
3174 * Shared mappings base their reservation on the number of pages that
3175 * are already allocated on behalf of the file. Private mappings need
3176 * to reserve the full area even if read-only as mprotect() may be
3177 * called to make the mapping read-write. Assume !vma is a shm mapping
3178 */
f83a275d 3179 if (!vma || vma->vm_flags & VM_MAYSHARE)
a1e78772 3180 chg = region_chg(&inode->i_mapping->private_list, from, to);
17c9d12e
MG
3181 else {
3182 struct resv_map *resv_map = resv_map_alloc();
3183 if (!resv_map)
3184 return -ENOMEM;
3185
a1e78772 3186 chg = to - from;
84afd99b 3187
17c9d12e
MG
3188 set_vma_resv_map(vma, resv_map);
3189 set_vma_resv_flags(vma, HPAGE_RESV_OWNER);
3190 }
3191
c50ac050
DH
3192 if (chg < 0) {
3193 ret = chg;
3194 goto out_err;
3195 }
8a630112 3196
90481622 3197 /* There must be enough pages in the subpool for the mapping */
c50ac050
DH
3198 if (hugepage_subpool_get_pages(spool, chg)) {
3199 ret = -ENOSPC;
3200 goto out_err;
3201 }
5a6fe125
MG
3202
3203 /*
17c9d12e 3204 * Check enough hugepages are available for the reservation.
90481622 3205 * Hand the pages back to the subpool if there are not
5a6fe125 3206 */
a5516438 3207 ret = hugetlb_acct_memory(h, chg);
68842c9b 3208 if (ret < 0) {
90481622 3209 hugepage_subpool_put_pages(spool, chg);
c50ac050 3210 goto out_err;
68842c9b 3211 }
17c9d12e
MG
3212
3213 /*
3214 * Account for the reservations made. Shared mappings record regions
3215 * that have reservations as they are shared by multiple VMAs.
3216 * When the last VMA disappears, the region map says how much
3217 * the reservation was and the page cache tells how much of
3218 * the reservation was consumed. Private mappings are per-VMA and
3219 * only the consumed reservations are tracked. When the VMA
3220 * disappears, the original reservation is the VMA size and the
3221 * consumed reservations are stored in the map. Hence, nothing
3222 * else has to be done for private mappings here
3223 */
f83a275d 3224 if (!vma || vma->vm_flags & VM_MAYSHARE)
a1e78772 3225 region_add(&inode->i_mapping->private_list, from, to);
a43a8c39 3226 return 0;
c50ac050 3227out_err:
4523e145
DH
3228 if (vma)
3229 resv_map_put(vma);
c50ac050 3230 return ret;
a43a8c39
CK
3231}
3232
3233void hugetlb_unreserve_pages(struct inode *inode, long offset, long freed)
3234{
a5516438 3235 struct hstate *h = hstate_inode(inode);
a43a8c39 3236 long chg = region_truncate(&inode->i_mapping->private_list, offset);
90481622 3237 struct hugepage_subpool *spool = subpool_inode(inode);
45c682a6
KC
3238
3239 spin_lock(&inode->i_lock);
e4c6f8be 3240 inode->i_blocks -= (blocks_per_huge_page(h) * freed);
45c682a6
KC
3241 spin_unlock(&inode->i_lock);
3242
90481622 3243 hugepage_subpool_put_pages(spool, (chg - freed));
a5516438 3244 hugetlb_acct_memory(h, -(chg - freed));
a43a8c39 3245}
93f70f90 3246
3212b535
SC
3247#ifdef CONFIG_ARCH_WANT_HUGE_PMD_SHARE
3248static unsigned long page_table_shareable(struct vm_area_struct *svma,
3249 struct vm_area_struct *vma,
3250 unsigned long addr, pgoff_t idx)
3251{
3252 unsigned long saddr = ((idx - svma->vm_pgoff) << PAGE_SHIFT) +
3253 svma->vm_start;
3254 unsigned long sbase = saddr & PUD_MASK;
3255 unsigned long s_end = sbase + PUD_SIZE;
3256
3257 /* Allow segments to share if only one is marked locked */
3258 unsigned long vm_flags = vma->vm_flags & ~VM_LOCKED;
3259 unsigned long svm_flags = svma->vm_flags & ~VM_LOCKED;
3260
3261 /*
3262 * match the virtual addresses, permission and the alignment of the
3263 * page table page.
3264 */
3265 if (pmd_index(addr) != pmd_index(saddr) ||
3266 vm_flags != svm_flags ||
3267 sbase < svma->vm_start || svma->vm_end < s_end)
3268 return 0;
3269
3270 return saddr;
3271}
3272
3273static int vma_shareable(struct vm_area_struct *vma, unsigned long addr)
3274{
3275 unsigned long base = addr & PUD_MASK;
3276 unsigned long end = base + PUD_SIZE;
3277
3278 /*
3279 * check on proper vm_flags and page table alignment
3280 */
3281 if (vma->vm_flags & VM_MAYSHARE &&
3282 vma->vm_start <= base && end <= vma->vm_end)
3283 return 1;
3284 return 0;
3285}
3286
3287/*
3288 * Search for a shareable pmd page for hugetlb. In any case calls pmd_alloc()
3289 * and returns the corresponding pte. While this is not necessary for the
3290 * !shared pmd case because we can allocate the pmd later as well, it makes the
3291 * code much cleaner. pmd allocation is essential for the shared case because
3292 * pud has to be populated inside the same i_mmap_mutex section - otherwise
3293 * racing tasks could either miss the sharing (see huge_pte_offset) or select a
3294 * bad pmd for sharing.
3295 */
3296pte_t *huge_pmd_share(struct mm_struct *mm, unsigned long addr, pud_t *pud)
3297{
3298 struct vm_area_struct *vma = find_vma(mm, addr);
3299 struct address_space *mapping = vma->vm_file->f_mapping;
3300 pgoff_t idx = ((addr - vma->vm_start) >> PAGE_SHIFT) +
3301 vma->vm_pgoff;
3302 struct vm_area_struct *svma;
3303 unsigned long saddr;
3304 pte_t *spte = NULL;
3305 pte_t *pte;
cb900f41 3306 spinlock_t *ptl;
3212b535
SC
3307
3308 if (!vma_shareable(vma, addr))
3309 return (pte_t *)pmd_alloc(mm, pud, addr);
3310
3311 mutex_lock(&mapping->i_mmap_mutex);
3312 vma_interval_tree_foreach(svma, &mapping->i_mmap, idx, idx) {
3313 if (svma == vma)
3314 continue;
3315
3316 saddr = page_table_shareable(svma, vma, addr, idx);
3317 if (saddr) {
3318 spte = huge_pte_offset(svma->vm_mm, saddr);
3319 if (spte) {
3320 get_page(virt_to_page(spte));
3321 break;
3322 }
3323 }
3324 }
3325
3326 if (!spte)
3327 goto out;
3328
cb900f41
KS
3329 ptl = huge_pte_lockptr(hstate_vma(vma), mm, spte);
3330 spin_lock(ptl);
3212b535
SC
3331 if (pud_none(*pud))
3332 pud_populate(mm, pud,
3333 (pmd_t *)((unsigned long)spte & PAGE_MASK));
3334 else
3335 put_page(virt_to_page(spte));
cb900f41 3336 spin_unlock(ptl);
3212b535
SC
3337out:
3338 pte = (pte_t *)pmd_alloc(mm, pud, addr);
3339 mutex_unlock(&mapping->i_mmap_mutex);
3340 return pte;
3341}
3342
3343/*
3344 * unmap huge page backed by shared pte.
3345 *
3346 * Hugetlb pte page is ref counted at the time of mapping. If pte is shared
3347 * indicated by page_count > 1, unmap is achieved by clearing pud and
3348 * decrementing the ref count. If count == 1, the pte page is not shared.
3349 *
cb900f41 3350 * called with page table lock held.
3212b535
SC
3351 *
3352 * returns: 1 successfully unmapped a shared pte page
3353 * 0 the underlying pte page is not shared, or it is the last user
3354 */
3355int huge_pmd_unshare(struct mm_struct *mm, unsigned long *addr, pte_t *ptep)
3356{
3357 pgd_t *pgd = pgd_offset(mm, *addr);
3358 pud_t *pud = pud_offset(pgd, *addr);
3359
3360 BUG_ON(page_count(virt_to_page(ptep)) == 0);
3361 if (page_count(virt_to_page(ptep)) == 1)
3362 return 0;
3363
3364 pud_clear(pud);
3365 put_page(virt_to_page(ptep));
3366 *addr = ALIGN(*addr, HPAGE_SIZE * PTRS_PER_PTE) - HPAGE_SIZE;
3367 return 1;
3368}
9e5fc74c
SC
3369#define want_pmd_share() (1)
3370#else /* !CONFIG_ARCH_WANT_HUGE_PMD_SHARE */
3371pte_t *huge_pmd_share(struct mm_struct *mm, unsigned long addr, pud_t *pud)
3372{
3373 return NULL;
3374}
3375#define want_pmd_share() (0)
3212b535
SC
3376#endif /* CONFIG_ARCH_WANT_HUGE_PMD_SHARE */
3377
9e5fc74c
SC
3378#ifdef CONFIG_ARCH_WANT_GENERAL_HUGETLB
3379pte_t *huge_pte_alloc(struct mm_struct *mm,
3380 unsigned long addr, unsigned long sz)
3381{
3382 pgd_t *pgd;
3383 pud_t *pud;
3384 pte_t *pte = NULL;
3385
3386 pgd = pgd_offset(mm, addr);
3387 pud = pud_alloc(mm, pgd, addr);
3388 if (pud) {
3389 if (sz == PUD_SIZE) {
3390 pte = (pte_t *)pud;
3391 } else {
3392 BUG_ON(sz != PMD_SIZE);
3393 if (want_pmd_share() && pud_none(*pud))
3394 pte = huge_pmd_share(mm, addr, pud);
3395 else
3396 pte = (pte_t *)pmd_alloc(mm, pud, addr);
3397 }
3398 }
3399 BUG_ON(pte && !pte_none(*pte) && !pte_huge(*pte));
3400
3401 return pte;
3402}
3403
3404pte_t *huge_pte_offset(struct mm_struct *mm, unsigned long addr)
3405{
3406 pgd_t *pgd;
3407 pud_t *pud;
3408 pmd_t *pmd = NULL;
3409
3410 pgd = pgd_offset(mm, addr);
3411 if (pgd_present(*pgd)) {
3412 pud = pud_offset(pgd, addr);
3413 if (pud_present(*pud)) {
3414 if (pud_huge(*pud))
3415 return (pte_t *)pud;
3416 pmd = pmd_offset(pud, addr);
3417 }
3418 }
3419 return (pte_t *) pmd;
3420}
3421
3422struct page *
3423follow_huge_pmd(struct mm_struct *mm, unsigned long address,
3424 pmd_t *pmd, int write)
3425{
3426 struct page *page;
3427
3428 page = pte_page(*(pte_t *)pmd);
3429 if (page)
3430 page += ((address & ~PMD_MASK) >> PAGE_SHIFT);
3431 return page;
3432}
3433
3434struct page *
3435follow_huge_pud(struct mm_struct *mm, unsigned long address,
3436 pud_t *pud, int write)
3437{
3438 struct page *page;
3439
3440 page = pte_page(*(pte_t *)pud);
3441 if (page)
3442 page += ((address & ~PUD_MASK) >> PAGE_SHIFT);
3443 return page;
3444}
3445
3446#else /* !CONFIG_ARCH_WANT_GENERAL_HUGETLB */
3447
3448/* Can be overriden by architectures */
3449__attribute__((weak)) struct page *
3450follow_huge_pud(struct mm_struct *mm, unsigned long address,
3451 pud_t *pud, int write)
3452{
3453 BUG();
3454 return NULL;
3455}
3456
3457#endif /* CONFIG_ARCH_WANT_GENERAL_HUGETLB */
3458
d5bd9106
AK
3459#ifdef CONFIG_MEMORY_FAILURE
3460
6de2b1aa
NH
3461/* Should be called in hugetlb_lock */
3462static int is_hugepage_on_freelist(struct page *hpage)
3463{
3464 struct page *page;
3465 struct page *tmp;
3466 struct hstate *h = page_hstate(hpage);
3467 int nid = page_to_nid(hpage);
3468
3469 list_for_each_entry_safe(page, tmp, &h->hugepage_freelists[nid], lru)
3470 if (page == hpage)
3471 return 1;
3472 return 0;
3473}
3474
93f70f90
NH
3475/*
3476 * This function is called from memory failure code.
3477 * Assume the caller holds page lock of the head page.
3478 */
6de2b1aa 3479int dequeue_hwpoisoned_huge_page(struct page *hpage)
93f70f90
NH
3480{
3481 struct hstate *h = page_hstate(hpage);
3482 int nid = page_to_nid(hpage);
6de2b1aa 3483 int ret = -EBUSY;
93f70f90
NH
3484
3485 spin_lock(&hugetlb_lock);
6de2b1aa 3486 if (is_hugepage_on_freelist(hpage)) {
56f2fb14
NH
3487 /*
3488 * Hwpoisoned hugepage isn't linked to activelist or freelist,
3489 * but dangling hpage->lru can trigger list-debug warnings
3490 * (this happens when we call unpoison_memory() on it),
3491 * so let it point to itself with list_del_init().
3492 */
3493 list_del_init(&hpage->lru);
8c6c2ecb 3494 set_page_refcounted(hpage);
6de2b1aa
NH
3495 h->free_huge_pages--;
3496 h->free_huge_pages_node[nid]--;
3497 ret = 0;
3498 }
93f70f90 3499 spin_unlock(&hugetlb_lock);
6de2b1aa 3500 return ret;
93f70f90 3501}
6de2b1aa 3502#endif
31caf665
NH
3503
3504bool isolate_huge_page(struct page *page, struct list_head *list)
3505{
309381fe 3506 VM_BUG_ON_PAGE(!PageHead(page), page);
31caf665
NH
3507 if (!get_page_unless_zero(page))
3508 return false;
3509 spin_lock(&hugetlb_lock);
3510 list_move_tail(&page->lru, list);
3511 spin_unlock(&hugetlb_lock);
3512 return true;
3513}
3514
3515void putback_active_hugepage(struct page *page)
3516{
309381fe 3517 VM_BUG_ON_PAGE(!PageHead(page), page);
31caf665
NH
3518 spin_lock(&hugetlb_lock);
3519 list_move_tail(&page->lru, &(page_hstate(page))->hugepage_activelist);
3520 spin_unlock(&hugetlb_lock);
3521 put_page(page);
3522}
c8721bbb
NH
3523
3524bool is_hugepage_active(struct page *page)
3525{
309381fe 3526 VM_BUG_ON_PAGE(!PageHuge(page), page);
c8721bbb
NH
3527 /*
3528 * This function can be called for a tail page because the caller,
3529 * scan_movable_pages, scans through a given pfn-range which typically
3530 * covers one memory block. In systems using gigantic hugepage (1GB
3531 * for x86_64,) a hugepage is larger than a memory block, and we don't
3532 * support migrating such large hugepages for now, so return false
3533 * when called for tail pages.
3534 */
3535 if (PageTail(page))
3536 return false;
3537 /*
3538 * Refcount of a hwpoisoned hugepages is 1, but they are not active,
3539 * so we should return false for them.
3540 */
3541 if (unlikely(PageHWPoison(page)))
3542 return false;
3543 return page_count(page) > 0;
3544}