1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * linux/mm/madvise.c
4 *
5 * Copyright (C) 1999 Linus Torvalds
6 * Copyright (C) 2002 Christoph Hellwig
7 */
8
9 #include <linux/mman.h>
10 #include <linux/pagemap.h>
11 #include <linux/syscalls.h>
12 #include <linux/mempolicy.h>
13 #include <linux/page-isolation.h>
14 #include <linux/page_idle.h>
15 #include <linux/userfaultfd_k.h>
16 #include <linux/hugetlb.h>
17 #include <linux/falloc.h>
18 #include <linux/fadvise.h>
19 #include <linux/sched.h>
20 #include <linux/sched/mm.h>
21 #include <linux/mm_inline.h>
22 #include <linux/mmu_context.h>
23 #include <linux/string.h>
24 #include <linux/uio.h>
25 #include <linux/ksm.h>
26 #include <linux/fs.h>
27 #include <linux/file.h>
28 #include <linux/blkdev.h>
29 #include <linux/backing-dev.h>
30 #include <linux/pagewalk.h>
31 #include <linux/swap.h>
32 #include <linux/leafops.h>
33 #include <linux/shmem_fs.h>
34 #include <linux/mmu_notifier.h>
35
36 #include <asm/tlb.h>
37
38 #include "internal.h"
39 #include "swap.h"
40
41 #define __MADV_SET_ANON_VMA_NAME (-1)
42
43 /*
44 * Maximum number of attempts we make to install guard pages before we give up
45 * and return -ERESTARTNOINTR to have userspace try again.
46 */
47 #define MAX_MADVISE_GUARD_RETRIES 3
48
49 struct madvise_walk_private {
50 struct mmu_gather *tlb;
51 bool pageout;
52 };
53
54 enum madvise_lock_mode {
55 MADVISE_NO_LOCK,
56 MADVISE_MMAP_READ_LOCK,
57 MADVISE_MMAP_WRITE_LOCK,
58 MADVISE_VMA_READ_LOCK,
59 };
60
61 struct madvise_behavior_range {
62 unsigned long start;
63 unsigned long end;
64 };
65
66 struct madvise_behavior {
67 struct mm_struct *mm;
68 int behavior;
69 struct mmu_gather *tlb;
70 enum madvise_lock_mode lock_mode;
71 struct anon_vma_name *anon_name;
72
73 /*
74 * The range over which the behaviour is currently being applied. If
75 * traversing multiple VMAs, this is updated for each.
76 */
77 struct madvise_behavior_range range;
78 /* The VMA and VMA preceding it (if applicable) currently targeted. */
79 struct vm_area_struct *prev;
80 struct vm_area_struct *vma;
81 bool lock_dropped;
82 };
83
84 #ifdef CONFIG_ANON_VMA_NAME
85 static int madvise_walk_vmas(struct madvise_behavior *madv_behavior);
86
anon_vma_name_alloc(const char * name)87 struct anon_vma_name *anon_vma_name_alloc(const char *name)
88 {
89 struct anon_vma_name *anon_name;
90 size_t count;
91
92 /* Add 1 for NUL terminator at the end of the anon_name->name */
93 count = strlen(name) + 1;
94 anon_name = kmalloc_flex(*anon_name, name, count);
95 if (anon_name) {
96 kref_init(&anon_name->kref);
97 memcpy(anon_name->name, name, count);
98 }
99
100 return anon_name;
101 }
102
anon_vma_name_free(struct kref * kref)103 void anon_vma_name_free(struct kref *kref)
104 {
105 struct anon_vma_name *anon_name =
106 container_of(kref, struct anon_vma_name, kref);
107 kfree(anon_name);
108 }
109
anon_vma_name(struct vm_area_struct * vma)110 struct anon_vma_name *anon_vma_name(struct vm_area_struct *vma)
111 {
112 vma_assert_stabilised(vma);
113 return vma->anon_name;
114 }
115
116 /* mmap_lock should be write-locked */
replace_anon_vma_name(struct vm_area_struct * vma,struct anon_vma_name * anon_name)117 static int replace_anon_vma_name(struct vm_area_struct *vma,
118 struct anon_vma_name *anon_name)
119 {
120 struct anon_vma_name *orig_name = anon_vma_name(vma);
121
122 if (!anon_name) {
123 vma->anon_name = NULL;
124 anon_vma_name_put(orig_name);
125 return 0;
126 }
127
128 if (anon_vma_name_eq(orig_name, anon_name))
129 return 0;
130
131 vma->anon_name = anon_vma_name_reuse(anon_name);
132 anon_vma_name_put(orig_name);
133
134 return 0;
135 }
136 #else /* CONFIG_ANON_VMA_NAME */
replace_anon_vma_name(struct vm_area_struct * vma,struct anon_vma_name * anon_name)137 static int replace_anon_vma_name(struct vm_area_struct *vma,
138 struct anon_vma_name *anon_name)
139 {
140 if (anon_name)
141 return -EINVAL;
142
143 return 0;
144 }
145 #endif /* CONFIG_ANON_VMA_NAME */
146 /*
147 * Update the vm_flags or anon_name on region of a vma, splitting it or merging
148 * it as necessary. Must be called with mmap_lock held for writing.
149 */
madvise_update_vma(vm_flags_t new_flags,struct madvise_behavior * madv_behavior)150 static int madvise_update_vma(vm_flags_t new_flags,
151 struct madvise_behavior *madv_behavior)
152 {
153 struct vm_area_struct *vma = madv_behavior->vma;
154 struct madvise_behavior_range *range = &madv_behavior->range;
155 struct anon_vma_name *anon_name = madv_behavior->anon_name;
156 bool set_new_anon_name = madv_behavior->behavior == __MADV_SET_ANON_VMA_NAME;
157 VMA_ITERATOR(vmi, madv_behavior->mm, range->start);
158
159 if (new_flags == vma->vm_flags && (!set_new_anon_name ||
160 anon_vma_name_eq(anon_vma_name(vma), anon_name)))
161 return 0;
162
163 if (set_new_anon_name)
164 vma = vma_modify_name(&vmi, madv_behavior->prev, vma,
165 range->start, range->end, anon_name);
166 else
167 vma = vma_modify_flags(&vmi, madv_behavior->prev, vma,
168 range->start, range->end, &new_flags);
169
170 if (IS_ERR(vma))
171 return PTR_ERR(vma);
172
173 madv_behavior->vma = vma;
174
175 /* vm_flags is protected by the mmap_lock held in write mode. */
176 vma_start_write(vma);
177 vm_flags_reset(vma, new_flags);
178 if (set_new_anon_name)
179 return replace_anon_vma_name(vma, anon_name);
180
181 return 0;
182 }
183
184 #ifdef CONFIG_SWAP
swapin_walk_pmd_entry(pmd_t * pmd,unsigned long start,unsigned long end,struct mm_walk * walk)185 static int swapin_walk_pmd_entry(pmd_t *pmd, unsigned long start,
186 unsigned long end, struct mm_walk *walk)
187 {
188 struct vm_area_struct *vma = walk->private;
189 struct swap_iocb *splug = NULL;
190 pte_t *ptep = NULL;
191 spinlock_t *ptl;
192 unsigned long addr;
193
194 for (addr = start; addr < end; addr += PAGE_SIZE) {
195 pte_t pte;
196 softleaf_t entry;
197 struct folio *folio;
198
199 if (!ptep++) {
200 ptep = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
201 if (!ptep)
202 break;
203 }
204
205 pte = ptep_get(ptep);
206 entry = softleaf_from_pte(pte);
207 if (unlikely(!softleaf_is_swap(entry)))
208 continue;
209
210 pte_unmap_unlock(ptep, ptl);
211 ptep = NULL;
212
213 folio = read_swap_cache_async(entry, GFP_HIGHUSER_MOVABLE,
214 vma, addr, &splug);
215 if (folio)
216 folio_put(folio);
217 }
218
219 if (ptep)
220 pte_unmap_unlock(ptep, ptl);
221 swap_read_unplug(splug);
222 cond_resched();
223
224 return 0;
225 }
226
227 static const struct mm_walk_ops swapin_walk_ops = {
228 .pmd_entry = swapin_walk_pmd_entry,
229 .walk_lock = PGWALK_RDLOCK,
230 };
231
shmem_swapin_range(struct vm_area_struct * vma,unsigned long start,unsigned long end,struct address_space * mapping)232 static void shmem_swapin_range(struct vm_area_struct *vma,
233 unsigned long start, unsigned long end,
234 struct address_space *mapping)
235 {
236 XA_STATE(xas, &mapping->i_pages, linear_page_index(vma, start));
237 pgoff_t end_index = linear_page_index(vma, end) - 1;
238 struct folio *folio;
239 struct swap_iocb *splug = NULL;
240
241 rcu_read_lock();
242 xas_for_each(&xas, folio, end_index) {
243 unsigned long addr;
244 swp_entry_t entry;
245
246 if (!xa_is_value(folio))
247 continue;
248 entry = radix_to_swp_entry(folio);
249 /* There might be swapin error entries in shmem mapping. */
250 if (!softleaf_is_swap(entry))
251 continue;
252
253 addr = vma->vm_start +
254 ((xas.xa_index - vma->vm_pgoff) << PAGE_SHIFT);
255 xas_pause(&xas);
256 rcu_read_unlock();
257
258 folio = read_swap_cache_async(entry, mapping_gfp_mask(mapping),
259 vma, addr, &splug);
260 if (folio)
261 folio_put(folio);
262
263 rcu_read_lock();
264 }
265 rcu_read_unlock();
266 swap_read_unplug(splug);
267 }
268 #endif /* CONFIG_SWAP */
269
mark_mmap_lock_dropped(struct madvise_behavior * madv_behavior)270 static void mark_mmap_lock_dropped(struct madvise_behavior *madv_behavior)
271 {
272 VM_WARN_ON_ONCE(madv_behavior->lock_mode == MADVISE_VMA_READ_LOCK);
273 madv_behavior->lock_dropped = true;
274 }
275
276 /*
277 * Schedule all required I/O operations. Do not wait for completion.
278 */
madvise_willneed(struct madvise_behavior * madv_behavior)279 static long madvise_willneed(struct madvise_behavior *madv_behavior)
280 {
281 struct vm_area_struct *vma = madv_behavior->vma;
282 struct mm_struct *mm = madv_behavior->mm;
283 struct file *file = vma->vm_file;
284 unsigned long start = madv_behavior->range.start;
285 unsigned long end = madv_behavior->range.end;
286 loff_t offset;
287
288 #ifdef CONFIG_SWAP
289 if (!file) {
290 walk_page_range_vma(vma, start, end, &swapin_walk_ops, vma);
291 lru_add_drain(); /* Push any new pages onto the LRU now */
292 return 0;
293 }
294
295 if (shmem_mapping(file->f_mapping)) {
296 shmem_swapin_range(vma, start, end, file->f_mapping);
297 lru_add_drain(); /* Push any new pages onto the LRU now */
298 return 0;
299 }
300 #else
301 if (!file)
302 return -EBADF;
303 #endif
304
305 if (IS_DAX(file_inode(file))) {
306 /* no bad return value, but ignore advice */
307 return 0;
308 }
309
310 /*
311 * Filesystem's fadvise may need to take various locks. We need to
312 * explicitly grab a reference because the vma (and hence the
313 * vma's reference to the file) can go away as soon as we drop
314 * mmap_lock.
315 */
316 mark_mmap_lock_dropped(madv_behavior);
317 get_file(file);
318 offset = (loff_t)(start - vma->vm_start)
319 + ((loff_t)vma->vm_pgoff << PAGE_SHIFT);
320 mmap_read_unlock(mm);
321 vfs_fadvise(file, offset, end - start, POSIX_FADV_WILLNEED);
322 fput(file);
323 mmap_read_lock(mm);
324 return 0;
325 }
326
can_do_file_pageout(struct vm_area_struct * vma)327 static inline bool can_do_file_pageout(struct vm_area_struct *vma)
328 {
329 if (!vma->vm_file)
330 return false;
331 /*
332 * paging out pagecache only for non-anonymous mappings that correspond
333 * to the files the calling process could (if tried) open for writing;
334 * otherwise we'd be including shared non-exclusive mappings, which
335 * opens a side channel.
336 */
337 return inode_owner_or_capable(&nop_mnt_idmap,
338 file_inode(vma->vm_file)) ||
339 file_permission(vma->vm_file, MAY_WRITE) == 0;
340 }
341
madvise_folio_pte_batch(unsigned long addr,unsigned long end,struct folio * folio,pte_t * ptep,pte_t * ptentp)342 static inline int madvise_folio_pte_batch(unsigned long addr, unsigned long end,
343 struct folio *folio, pte_t *ptep,
344 pte_t *ptentp)
345 {
346 int max_nr = (end - addr) / PAGE_SIZE;
347
348 return folio_pte_batch_flags(folio, NULL, ptep, ptentp, max_nr,
349 FPB_MERGE_YOUNG_DIRTY);
350 }
351
madvise_cold_or_pageout_pte_range(pmd_t * pmd,unsigned long addr,unsigned long end,struct mm_walk * walk)352 static int madvise_cold_or_pageout_pte_range(pmd_t *pmd,
353 unsigned long addr, unsigned long end,
354 struct mm_walk *walk)
355 {
356 struct madvise_walk_private *private = walk->private;
357 struct mmu_gather *tlb = private->tlb;
358 bool pageout = private->pageout;
359 struct mm_struct *mm = tlb->mm;
360 struct vm_area_struct *vma = walk->vma;
361 pte_t *start_pte, *pte, ptent;
362 spinlock_t *ptl;
363 struct folio *folio = NULL;
364 LIST_HEAD(folio_list);
365 bool pageout_anon_only_filter;
366 unsigned int batch_count = 0;
367 int nr;
368
369 if (fatal_signal_pending(current))
370 return -EINTR;
371
372 pageout_anon_only_filter = pageout && !vma_is_anonymous(vma) &&
373 !can_do_file_pageout(vma);
374
375 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
376 if (pmd_trans_huge(*pmd)) {
377 pmd_t orig_pmd;
378 unsigned long next = pmd_addr_end(addr, end);
379
380 tlb_change_page_size(tlb, HPAGE_PMD_SIZE);
381 ptl = pmd_trans_huge_lock(pmd, vma);
382 if (!ptl)
383 return 0;
384
385 orig_pmd = *pmd;
386 if (is_huge_zero_pmd(orig_pmd))
387 goto huge_unlock;
388
389 if (unlikely(!pmd_present(orig_pmd))) {
390 VM_BUG_ON(thp_migration_supported() &&
391 !pmd_is_migration_entry(orig_pmd));
392 goto huge_unlock;
393 }
394
395 folio = pmd_folio(orig_pmd);
396
397 /* Do not interfere with other mappings of this folio */
398 if (folio_maybe_mapped_shared(folio))
399 goto huge_unlock;
400
401 if (pageout_anon_only_filter && !folio_test_anon(folio))
402 goto huge_unlock;
403
404 if (next - addr != HPAGE_PMD_SIZE) {
405 int err;
406
407 folio_get(folio);
408 spin_unlock(ptl);
409 folio_lock(folio);
410 err = split_folio(folio);
411 folio_unlock(folio);
412 folio_put(folio);
413 if (!err)
414 goto regular_folio;
415 return 0;
416 }
417
418 if (!pageout && pmd_young(orig_pmd)) {
419 pmdp_invalidate(vma, addr, pmd);
420 orig_pmd = pmd_mkold(orig_pmd);
421
422 set_pmd_at(mm, addr, pmd, orig_pmd);
423 tlb_remove_pmd_tlb_entry(tlb, pmd, addr);
424 }
425
426 folio_clear_referenced(folio);
427 folio_test_clear_young(folio);
428 if (folio_test_active(folio))
429 folio_set_workingset(folio);
430 if (pageout) {
431 if (folio_isolate_lru(folio)) {
432 if (folio_test_unevictable(folio))
433 folio_putback_lru(folio);
434 else
435 list_add(&folio->lru, &folio_list);
436 }
437 } else
438 folio_deactivate(folio);
439 huge_unlock:
440 spin_unlock(ptl);
441 if (pageout)
442 reclaim_pages(&folio_list);
443 return 0;
444 }
445
446 regular_folio:
447 #endif
448 tlb_change_page_size(tlb, PAGE_SIZE);
449 restart:
450 start_pte = pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl);
451 if (!start_pte)
452 return 0;
453 flush_tlb_batched_pending(mm);
454 lazy_mmu_mode_enable();
455 for (; addr < end; pte += nr, addr += nr * PAGE_SIZE) {
456 nr = 1;
457 ptent = ptep_get(pte);
458
459 if (++batch_count == SWAP_CLUSTER_MAX) {
460 batch_count = 0;
461 if (need_resched()) {
462 lazy_mmu_mode_disable();
463 pte_unmap_unlock(start_pte, ptl);
464 cond_resched();
465 goto restart;
466 }
467 }
468
469 if (pte_none(ptent))
470 continue;
471
472 if (!pte_present(ptent))
473 continue;
474
475 folio = vm_normal_folio(vma, addr, ptent);
476 if (!folio || folio_is_zone_device(folio))
477 continue;
478
479 /*
480 * If we encounter a large folio, only split it if it is not
481 * fully mapped within the range we are operating on. Otherwise
482 * leave it as is so that it can be swapped out whole. If we
483 * fail to split a folio, leave it in place and advance to the
484 * next pte in the range.
485 */
486 if (folio_test_large(folio)) {
487 nr = madvise_folio_pte_batch(addr, end, folio, pte, &ptent);
488 if (nr < folio_nr_pages(folio)) {
489 int err;
490
491 if (folio_maybe_mapped_shared(folio))
492 continue;
493 if (pageout_anon_only_filter && !folio_test_anon(folio))
494 continue;
495 if (!folio_trylock(folio))
496 continue;
497 folio_get(folio);
498 lazy_mmu_mode_disable();
499 pte_unmap_unlock(start_pte, ptl);
500 start_pte = NULL;
501 err = split_folio(folio);
502 folio_unlock(folio);
503 folio_put(folio);
504 start_pte = pte =
505 pte_offset_map_lock(mm, pmd, addr, &ptl);
506 if (!start_pte)
507 break;
508 flush_tlb_batched_pending(mm);
509 lazy_mmu_mode_enable();
510 if (!err)
511 nr = 0;
512 continue;
513 }
514 }
515
516 /*
517 * Do not interfere with other mappings of this folio and
518 * non-LRU folio. If we have a large folio at this point, we
519 * know it is fully mapped so if its mapcount is the same as its
520 * number of pages, it must be exclusive.
521 */
522 if (!folio_test_lru(folio) ||
523 folio_mapcount(folio) != folio_nr_pages(folio))
524 continue;
525
526 if (pageout_anon_only_filter && !folio_test_anon(folio))
527 continue;
528
529 if (!pageout && pte_young(ptent)) {
530 clear_young_dirty_ptes(vma, addr, pte, nr,
531 CYDP_CLEAR_YOUNG);
532 tlb_remove_tlb_entries(tlb, pte, nr, addr);
533 }
534
535 /*
536 * We are deactivating a folio for accelerating reclaiming.
537 * VM couldn't reclaim the folio unless we clear PG_young.
538 * As a side effect, it makes confuse idle-page tracking
539 * because they will miss recent referenced history.
540 */
541 folio_clear_referenced(folio);
542 folio_test_clear_young(folio);
543 if (folio_test_active(folio))
544 folio_set_workingset(folio);
545 if (pageout) {
546 if (folio_isolate_lru(folio)) {
547 if (folio_test_unevictable(folio))
548 folio_putback_lru(folio);
549 else
550 list_add(&folio->lru, &folio_list);
551 }
552 } else
553 folio_deactivate(folio);
554 }
555
556 if (start_pte) {
557 lazy_mmu_mode_disable();
558 pte_unmap_unlock(start_pte, ptl);
559 }
560 if (pageout)
561 reclaim_pages(&folio_list);
562 cond_resched();
563
564 return 0;
565 }
566
567 static const struct mm_walk_ops cold_walk_ops = {
568 .pmd_entry = madvise_cold_or_pageout_pte_range,
569 .walk_lock = PGWALK_RDLOCK,
570 };
571
madvise_cold_page_range(struct mmu_gather * tlb,struct madvise_behavior * madv_behavior)572 static void madvise_cold_page_range(struct mmu_gather *tlb,
573 struct madvise_behavior *madv_behavior)
574
575 {
576 struct vm_area_struct *vma = madv_behavior->vma;
577 struct madvise_behavior_range *range = &madv_behavior->range;
578 struct madvise_walk_private walk_private = {
579 .pageout = false,
580 .tlb = tlb,
581 };
582
583 tlb_start_vma(tlb, vma);
584 walk_page_range_vma(vma, range->start, range->end, &cold_walk_ops,
585 &walk_private);
586 tlb_end_vma(tlb, vma);
587 }
588
can_madv_lru_vma(struct vm_area_struct * vma)589 static inline bool can_madv_lru_vma(struct vm_area_struct *vma)
590 {
591 return !(vma->vm_flags & (VM_LOCKED|VM_PFNMAP|VM_HUGETLB));
592 }
593
madvise_cold(struct madvise_behavior * madv_behavior)594 static long madvise_cold(struct madvise_behavior *madv_behavior)
595 {
596 struct vm_area_struct *vma = madv_behavior->vma;
597 struct mmu_gather tlb;
598
599 if (!can_madv_lru_vma(vma))
600 return -EINVAL;
601
602 lru_add_drain();
603 tlb_gather_mmu(&tlb, madv_behavior->mm);
604 madvise_cold_page_range(&tlb, madv_behavior);
605 tlb_finish_mmu(&tlb);
606
607 return 0;
608 }
609
madvise_pageout_page_range(struct mmu_gather * tlb,struct vm_area_struct * vma,struct madvise_behavior_range * range)610 static void madvise_pageout_page_range(struct mmu_gather *tlb,
611 struct vm_area_struct *vma,
612 struct madvise_behavior_range *range)
613 {
614 struct madvise_walk_private walk_private = {
615 .pageout = true,
616 .tlb = tlb,
617 };
618
619 tlb_start_vma(tlb, vma);
620 walk_page_range_vma(vma, range->start, range->end, &cold_walk_ops,
621 &walk_private);
622 tlb_end_vma(tlb, vma);
623 }
624
madvise_pageout(struct madvise_behavior * madv_behavior)625 static long madvise_pageout(struct madvise_behavior *madv_behavior)
626 {
627 struct mmu_gather tlb;
628 struct vm_area_struct *vma = madv_behavior->vma;
629
630 if (!can_madv_lru_vma(vma))
631 return -EINVAL;
632
633 /*
634 * If the VMA belongs to a private file mapping, there can be private
635 * dirty pages which can be paged out if even this process is neither
636 * owner nor write capable of the file. We allow private file mappings
637 * further to pageout dirty anon pages.
638 */
639 if (!vma_is_anonymous(vma) && (!can_do_file_pageout(vma) &&
640 (vma->vm_flags & VM_MAYSHARE)))
641 return 0;
642
643 lru_add_drain();
644 tlb_gather_mmu(&tlb, madv_behavior->mm);
645 madvise_pageout_page_range(&tlb, vma, &madv_behavior->range);
646 tlb_finish_mmu(&tlb);
647
648 return 0;
649 }
650
madvise_free_pte_range(pmd_t * pmd,unsigned long addr,unsigned long end,struct mm_walk * walk)651 static int madvise_free_pte_range(pmd_t *pmd, unsigned long addr,
652 unsigned long end, struct mm_walk *walk)
653
654 {
655 const cydp_t cydp_flags = CYDP_CLEAR_YOUNG | CYDP_CLEAR_DIRTY;
656 struct mmu_gather *tlb = walk->private;
657 struct mm_struct *mm = tlb->mm;
658 struct vm_area_struct *vma = walk->vma;
659 spinlock_t *ptl;
660 pte_t *start_pte, *pte, ptent;
661 struct folio *folio;
662 int nr_swap = 0;
663 unsigned long next;
664 int nr, max_nr;
665
666 next = pmd_addr_end(addr, end);
667 if (pmd_trans_huge(*pmd))
668 if (madvise_free_huge_pmd(tlb, vma, pmd, addr, next))
669 return 0;
670
671 tlb_change_page_size(tlb, PAGE_SIZE);
672 start_pte = pte = pte_offset_map_lock(mm, pmd, addr, &ptl);
673 if (!start_pte)
674 return 0;
675 flush_tlb_batched_pending(mm);
676 lazy_mmu_mode_enable();
677 for (; addr != end; pte += nr, addr += PAGE_SIZE * nr) {
678 nr = 1;
679 ptent = ptep_get(pte);
680
681 if (pte_none(ptent))
682 continue;
683 /*
684 * If the pte has swp_entry, just clear page table to
685 * prevent swap-in which is more expensive rather than
686 * (page allocation + zeroing).
687 */
688 if (!pte_present(ptent)) {
689 softleaf_t entry = softleaf_from_pte(ptent);
690
691 if (softleaf_is_swap(entry)) {
692 max_nr = (end - addr) / PAGE_SIZE;
693 nr = swap_pte_batch(pte, max_nr, ptent);
694 nr_swap -= nr;
695 swap_put_entries_direct(entry, nr);
696 clear_not_present_full_ptes(mm, addr, pte, nr, tlb->fullmm);
697 } else if (softleaf_is_hwpoison(entry) ||
698 softleaf_is_poison_marker(entry)) {
699 pte_clear_not_present_full(mm, addr, pte, tlb->fullmm);
700 }
701 continue;
702 }
703
704 folio = vm_normal_folio(vma, addr, ptent);
705 if (!folio || folio_is_zone_device(folio))
706 continue;
707
708 /*
709 * If we encounter a large folio, only split it if it is not
710 * fully mapped within the range we are operating on. Otherwise
711 * leave it as is so that it can be marked as lazyfree. If we
712 * fail to split a folio, leave it in place and advance to the
713 * next pte in the range.
714 */
715 if (folio_test_large(folio)) {
716 nr = madvise_folio_pte_batch(addr, end, folio, pte, &ptent);
717 if (nr < folio_nr_pages(folio)) {
718 int err;
719
720 if (folio_maybe_mapped_shared(folio))
721 continue;
722 if (!folio_trylock(folio))
723 continue;
724 folio_get(folio);
725 lazy_mmu_mode_disable();
726 pte_unmap_unlock(start_pte, ptl);
727 start_pte = NULL;
728 err = split_folio(folio);
729 folio_unlock(folio);
730 folio_put(folio);
731 pte = pte_offset_map_lock(mm, pmd, addr, &ptl);
732 start_pte = pte;
733 if (!start_pte)
734 break;
735 flush_tlb_batched_pending(mm);
736 lazy_mmu_mode_enable();
737 if (!err)
738 nr = 0;
739 continue;
740 }
741 }
742
743 if (folio_test_swapcache(folio) || folio_test_dirty(folio)) {
744 if (!folio_trylock(folio))
745 continue;
746 /*
747 * If we have a large folio at this point, we know it is
748 * fully mapped so if its mapcount is the same as its
749 * number of pages, it must be exclusive.
750 */
751 if (folio_mapcount(folio) != folio_nr_pages(folio)) {
752 folio_unlock(folio);
753 continue;
754 }
755
756 if (folio_test_swapcache(folio) &&
757 !folio_free_swap(folio)) {
758 folio_unlock(folio);
759 continue;
760 }
761
762 folio_clear_dirty(folio);
763 folio_unlock(folio);
764 }
765
766 if (pte_young(ptent) || pte_dirty(ptent)) {
767 clear_young_dirty_ptes(vma, addr, pte, nr, cydp_flags);
768 tlb_remove_tlb_entries(tlb, pte, nr, addr);
769 }
770 folio_mark_lazyfree(folio);
771 }
772
773 if (nr_swap)
774 add_mm_counter(mm, MM_SWAPENTS, nr_swap);
775 if (start_pte) {
776 lazy_mmu_mode_disable();
777 pte_unmap_unlock(start_pte, ptl);
778 }
779 cond_resched();
780
781 return 0;
782 }
783
get_walk_lock(enum madvise_lock_mode mode)784 static inline enum page_walk_lock get_walk_lock(enum madvise_lock_mode mode)
785 {
786 switch (mode) {
787 case MADVISE_VMA_READ_LOCK:
788 return PGWALK_VMA_RDLOCK_VERIFY;
789 case MADVISE_MMAP_READ_LOCK:
790 return PGWALK_RDLOCK;
791 default:
792 /* Other modes don't require fixing up the walk_lock */
793 WARN_ON_ONCE(1);
794 return PGWALK_RDLOCK;
795 }
796 }
797
madvise_free_single_vma(struct madvise_behavior * madv_behavior)798 static int madvise_free_single_vma(struct madvise_behavior *madv_behavior)
799 {
800 struct mm_struct *mm = madv_behavior->mm;
801 struct vm_area_struct *vma = madv_behavior->vma;
802 unsigned long start_addr = madv_behavior->range.start;
803 unsigned long end_addr = madv_behavior->range.end;
804 struct mmu_notifier_range range;
805 struct mmu_gather *tlb = madv_behavior->tlb;
806 struct mm_walk_ops walk_ops = {
807 .pmd_entry = madvise_free_pte_range,
808 };
809
810 /* MADV_FREE works for only anon vma at the moment */
811 if (!vma_is_anonymous(vma))
812 return -EINVAL;
813
814 range.start = max(vma->vm_start, start_addr);
815 if (range.start >= vma->vm_end)
816 return -EINVAL;
817 range.end = min(vma->vm_end, end_addr);
818 if (range.end <= vma->vm_start)
819 return -EINVAL;
820 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm,
821 range.start, range.end);
822
823 lru_add_drain();
824 update_hiwater_rss(mm);
825
826 mmu_notifier_invalidate_range_start(&range);
827 tlb_start_vma(tlb, vma);
828 walk_ops.walk_lock = get_walk_lock(madv_behavior->lock_mode);
829 walk_page_range_vma(vma, range.start, range.end,
830 &walk_ops, tlb);
831 tlb_end_vma(tlb, vma);
832 mmu_notifier_invalidate_range_end(&range);
833 return 0;
834 }
835
836 /*
837 * Application no longer needs these pages. If the pages are dirty,
838 * it's OK to just throw them away. The app will be more careful about
839 * data it wants to keep. Be sure to free swap resources too. The
840 * zap_page_range_single call sets things up for shrink_active_list to actually
841 * free these pages later if no one else has touched them in the meantime,
842 * although we could add these pages to a global reuse list for
843 * shrink_active_list to pick up before reclaiming other pages.
844 *
845 * NB: This interface discards data rather than pushes it out to swap,
846 * as some implementations do. This has performance implications for
847 * applications like large transactional databases which want to discard
848 * pages in anonymous maps after committing to backing store the data
849 * that was kept in them. There is no reason to write this data out to
850 * the swap area if the application is discarding it.
851 *
852 * An interface that causes the system to free clean pages and flush
853 * dirty pages is already available as msync(MS_INVALIDATE).
854 */
madvise_dontneed_single_vma(struct madvise_behavior * madv_behavior)855 static long madvise_dontneed_single_vma(struct madvise_behavior *madv_behavior)
856
857 {
858 struct madvise_behavior_range *range = &madv_behavior->range;
859 struct zap_details details = {
860 .reclaim_pt = true,
861 .even_cows = true,
862 };
863
864 zap_page_range_single_batched(
865 madv_behavior->tlb, madv_behavior->vma, range->start,
866 range->end - range->start, &details);
867 return 0;
868 }
869
870 static
madvise_dontneed_free_valid_vma(struct madvise_behavior * madv_behavior)871 bool madvise_dontneed_free_valid_vma(struct madvise_behavior *madv_behavior)
872 {
873 struct vm_area_struct *vma = madv_behavior->vma;
874 int behavior = madv_behavior->behavior;
875 struct madvise_behavior_range *range = &madv_behavior->range;
876
877 if (!is_vm_hugetlb_page(vma)) {
878 unsigned int forbidden = VM_PFNMAP;
879
880 if (behavior != MADV_DONTNEED_LOCKED)
881 forbidden |= VM_LOCKED;
882
883 return !(vma->vm_flags & forbidden);
884 }
885
886 if (behavior != MADV_DONTNEED && behavior != MADV_DONTNEED_LOCKED)
887 return false;
888 if (range->start & ~huge_page_mask(hstate_vma(vma)))
889 return false;
890
891 /*
892 * Madvise callers expect the length to be rounded up to PAGE_SIZE
893 * boundaries, and may be unaware that this VMA uses huge pages.
894 * Avoid unexpected data loss by rounding down the number of
895 * huge pages freed.
896 */
897 range->end = ALIGN_DOWN(range->end, huge_page_size(hstate_vma(vma)));
898
899 return true;
900 }
901
madvise_dontneed_free(struct madvise_behavior * madv_behavior)902 static long madvise_dontneed_free(struct madvise_behavior *madv_behavior)
903 {
904 struct mm_struct *mm = madv_behavior->mm;
905 struct madvise_behavior_range *range = &madv_behavior->range;
906 int behavior = madv_behavior->behavior;
907
908 if (!madvise_dontneed_free_valid_vma(madv_behavior))
909 return -EINVAL;
910
911 if (range->start == range->end)
912 return 0;
913
914 if (!userfaultfd_remove(madv_behavior->vma, range->start, range->end)) {
915 struct vm_area_struct *vma;
916
917 mark_mmap_lock_dropped(madv_behavior);
918 mmap_read_lock(mm);
919 madv_behavior->vma = vma = vma_lookup(mm, range->start);
920 if (!vma)
921 return -ENOMEM;
922 /*
923 * Potential end adjustment for hugetlb vma is OK as
924 * the check below keeps end within vma.
925 */
926 if (!madvise_dontneed_free_valid_vma(madv_behavior))
927 return -EINVAL;
928 if (range->end > vma->vm_end) {
929 /*
930 * Don't fail if end > vma->vm_end. If the old
931 * vma was split while the mmap_lock was
932 * released the effect of the concurrent
933 * operation may not cause madvise() to
934 * have an undefined result. There may be an
935 * adjacent next vma that we'll walk
936 * next. userfaultfd_remove() will generate an
937 * UFFD_EVENT_REMOVE repetition on the
938 * end-vma->vm_end range, but the manager can
939 * handle a repetition fine.
940 */
941 range->end = vma->vm_end;
942 }
943 /*
944 * If the memory region between start and end was
945 * originally backed by 4kB pages and then remapped to
946 * be backed by hugepages while mmap_lock was dropped,
947 * the adjustment for hugetlb vma above may have rounded
948 * end down to the start address.
949 */
950 if (range->start == range->end)
951 return 0;
952 VM_WARN_ON(range->start > range->end);
953 }
954
955 if (behavior == MADV_DONTNEED || behavior == MADV_DONTNEED_LOCKED)
956 return madvise_dontneed_single_vma(madv_behavior);
957 else if (behavior == MADV_FREE)
958 return madvise_free_single_vma(madv_behavior);
959 else
960 return -EINVAL;
961 }
962
madvise_populate(struct madvise_behavior * madv_behavior)963 static long madvise_populate(struct madvise_behavior *madv_behavior)
964 {
965 struct mm_struct *mm = madv_behavior->mm;
966 const bool write = madv_behavior->behavior == MADV_POPULATE_WRITE;
967 int locked = 1;
968 unsigned long start = madv_behavior->range.start;
969 unsigned long end = madv_behavior->range.end;
970 long pages;
971
972 while (start < end) {
973 /* Populate (prefault) page tables readable/writable. */
974 pages = faultin_page_range(mm, start, end, write, &locked);
975 if (!locked) {
976 mmap_read_lock(mm);
977 locked = 1;
978 }
979 if (pages < 0) {
980 switch (pages) {
981 case -EINTR:
982 return -EINTR;
983 case -EINVAL: /* Incompatible mappings / permissions. */
984 return -EINVAL;
985 case -EHWPOISON:
986 return -EHWPOISON;
987 case -EFAULT: /* VM_FAULT_SIGBUS or VM_FAULT_SIGSEGV */
988 return -EFAULT;
989 default:
990 pr_warn_once("%s: unhandled return value: %ld\n",
991 __func__, pages);
992 fallthrough;
993 case -ENOMEM: /* No VMA or out of memory. */
994 return -ENOMEM;
995 }
996 }
997 start += pages * PAGE_SIZE;
998 }
999 return 0;
1000 }
1001
1002 /*
1003 * Application wants to free up the pages and associated backing store.
1004 * This is effectively punching a hole into the middle of a file.
1005 */
madvise_remove(struct madvise_behavior * madv_behavior)1006 static long madvise_remove(struct madvise_behavior *madv_behavior)
1007 {
1008 loff_t offset;
1009 int error;
1010 struct file *f;
1011 struct mm_struct *mm = madv_behavior->mm;
1012 struct vm_area_struct *vma = madv_behavior->vma;
1013 unsigned long start = madv_behavior->range.start;
1014 unsigned long end = madv_behavior->range.end;
1015
1016 mark_mmap_lock_dropped(madv_behavior);
1017
1018 if (vma->vm_flags & VM_LOCKED)
1019 return -EINVAL;
1020
1021 f = vma->vm_file;
1022
1023 if (!f || !f->f_mapping || !f->f_mapping->host) {
1024 return -EINVAL;
1025 }
1026
1027 if (!vma_is_shared_maywrite(vma))
1028 return -EACCES;
1029
1030 offset = (loff_t)(start - vma->vm_start)
1031 + ((loff_t)vma->vm_pgoff << PAGE_SHIFT);
1032
1033 /*
1034 * Filesystem's fallocate may need to take i_rwsem. We need to
1035 * explicitly grab a reference because the vma (and hence the
1036 * vma's reference to the file) can go away as soon as we drop
1037 * mmap_lock.
1038 */
1039 get_file(f);
1040 if (userfaultfd_remove(vma, start, end)) {
1041 /* mmap_lock was not released by userfaultfd_remove() */
1042 mmap_read_unlock(mm);
1043 }
1044 error = vfs_fallocate(f,
1045 FALLOC_FL_PUNCH_HOLE | FALLOC_FL_KEEP_SIZE,
1046 offset, end - start);
1047 fput(f);
1048 mmap_read_lock(mm);
1049 return error;
1050 }
1051
is_valid_guard_vma(struct vm_area_struct * vma,bool allow_locked)1052 static bool is_valid_guard_vma(struct vm_area_struct *vma, bool allow_locked)
1053 {
1054 vm_flags_t disallowed = VM_SPECIAL | VM_HUGETLB;
1055
1056 /*
1057 * A user could lock after setting a guard range but that's fine, as
1058 * they'd not be able to fault in. The issue arises when we try to zap
1059 * existing locked VMAs. We don't want to do that.
1060 */
1061 if (!allow_locked)
1062 disallowed |= VM_LOCKED;
1063
1064 return !(vma->vm_flags & disallowed);
1065 }
1066
is_guard_pte_marker(pte_t ptent)1067 static bool is_guard_pte_marker(pte_t ptent)
1068 {
1069 const softleaf_t entry = softleaf_from_pte(ptent);
1070
1071 return softleaf_is_guard_marker(entry);
1072 }
1073
guard_install_pud_entry(pud_t * pud,unsigned long addr,unsigned long next,struct mm_walk * walk)1074 static int guard_install_pud_entry(pud_t *pud, unsigned long addr,
1075 unsigned long next, struct mm_walk *walk)
1076 {
1077 pud_t pudval = pudp_get(pud);
1078
1079 /* If huge return >0 so we abort the operation + zap. */
1080 return pud_trans_huge(pudval);
1081 }
1082
guard_install_pmd_entry(pmd_t * pmd,unsigned long addr,unsigned long next,struct mm_walk * walk)1083 static int guard_install_pmd_entry(pmd_t *pmd, unsigned long addr,
1084 unsigned long next, struct mm_walk *walk)
1085 {
1086 pmd_t pmdval = pmdp_get(pmd);
1087
1088 /* If huge return >0 so we abort the operation + zap. */
1089 return pmd_trans_huge(pmdval);
1090 }
1091
guard_install_pte_entry(pte_t * pte,unsigned long addr,unsigned long next,struct mm_walk * walk)1092 static int guard_install_pte_entry(pte_t *pte, unsigned long addr,
1093 unsigned long next, struct mm_walk *walk)
1094 {
1095 pte_t pteval = ptep_get(pte);
1096 unsigned long *nr_pages = (unsigned long *)walk->private;
1097
1098 /* If there is already a guard page marker, we have nothing to do. */
1099 if (is_guard_pte_marker(pteval)) {
1100 (*nr_pages)++;
1101
1102 return 0;
1103 }
1104
1105 /* If populated return >0 so we abort the operation + zap. */
1106 return 1;
1107 }
1108
guard_install_set_pte(unsigned long addr,unsigned long next,pte_t * ptep,struct mm_walk * walk)1109 static int guard_install_set_pte(unsigned long addr, unsigned long next,
1110 pte_t *ptep, struct mm_walk *walk)
1111 {
1112 unsigned long *nr_pages = (unsigned long *)walk->private;
1113
1114 /* Simply install a PTE marker, this causes segfault on access. */
1115 *ptep = make_pte_marker(PTE_MARKER_GUARD);
1116 (*nr_pages)++;
1117
1118 return 0;
1119 }
1120
madvise_guard_install(struct madvise_behavior * madv_behavior)1121 static long madvise_guard_install(struct madvise_behavior *madv_behavior)
1122 {
1123 struct vm_area_struct *vma = madv_behavior->vma;
1124 struct madvise_behavior_range *range = &madv_behavior->range;
1125 struct mm_walk_ops walk_ops = {
1126 .pud_entry = guard_install_pud_entry,
1127 .pmd_entry = guard_install_pmd_entry,
1128 .pte_entry = guard_install_pte_entry,
1129 .install_pte = guard_install_set_pte,
1130 .walk_lock = get_walk_lock(madv_behavior->lock_mode),
1131 };
1132 long err;
1133 int i;
1134
1135 if (!is_valid_guard_vma(vma, /* allow_locked = */false))
1136 return -EINVAL;
1137
1138 /*
1139 * Set atomically under read lock. All pertinent readers will need to
1140 * acquire an mmap/VMA write lock to read it. All remaining readers may
1141 * or may not see the flag set, but we don't care.
1142 */
1143 vma_set_atomic_flag(vma, VMA_MAYBE_GUARD_BIT);
1144
1145 /*
1146 * If anonymous and we are establishing page tables the VMA ought to
1147 * have an anon_vma associated with it.
1148 *
1149 * We will hold an mmap read lock if this is necessary, this is checked
1150 * as part of the VMA lock logic.
1151 */
1152 if (vma_is_anonymous(vma)) {
1153 VM_WARN_ON_ONCE(!vma->anon_vma &&
1154 madv_behavior->lock_mode != MADVISE_MMAP_READ_LOCK);
1155
1156 err = anon_vma_prepare(vma);
1157 if (err)
1158 return err;
1159 }
1160
1161 /*
1162 * Optimistically try to install the guard marker pages first. If any
1163 * non-guard pages or THP huge pages are encountered, give up and zap
1164 * the range before trying again.
1165 *
1166 * We try a few times before giving up and releasing back to userland to
1167 * loop around, releasing locks in the process to avoid contention.
1168 *
1169 * This would only happen due to races with e.g. page faults or
1170 * khugepaged.
1171 *
1172 * In most cases we should simply install the guard markers immediately
1173 * with no zap or looping.
1174 */
1175 for (i = 0; i < MAX_MADVISE_GUARD_RETRIES; i++) {
1176 unsigned long nr_pages = 0;
1177
1178 /* Returns < 0 on error, == 0 if success, > 0 if zap needed. */
1179 if (madv_behavior->lock_mode == MADVISE_VMA_READ_LOCK)
1180 err = walk_page_range_vma_unsafe(madv_behavior->vma,
1181 range->start, range->end, &walk_ops,
1182 &nr_pages);
1183 else
1184 err = walk_page_range_mm_unsafe(vma->vm_mm, range->start,
1185 range->end, &walk_ops, &nr_pages);
1186 if (err < 0)
1187 return err;
1188
1189 if (err == 0) {
1190 unsigned long nr_expected_pages =
1191 PHYS_PFN(range->end - range->start);
1192
1193 VM_WARN_ON(nr_pages != nr_expected_pages);
1194 return 0;
1195 }
1196
1197 /*
1198 * OK some of the range have non-guard pages mapped, zap
1199 * them. This leaves existing guard pages in place.
1200 */
1201 zap_page_range_single(vma, range->start,
1202 range->end - range->start, NULL);
1203 }
1204
1205 /*
1206 * We were unable to install the guard pages, return to userspace and
1207 * immediately retry, relieving lock contention.
1208 */
1209 return restart_syscall();
1210 }
1211
guard_remove_pud_entry(pud_t * pud,unsigned long addr,unsigned long next,struct mm_walk * walk)1212 static int guard_remove_pud_entry(pud_t *pud, unsigned long addr,
1213 unsigned long next, struct mm_walk *walk)
1214 {
1215 pud_t pudval = pudp_get(pud);
1216
1217 /* If huge, cannot have guard pages present, so no-op - skip. */
1218 if (pud_trans_huge(pudval))
1219 walk->action = ACTION_CONTINUE;
1220
1221 return 0;
1222 }
1223
guard_remove_pmd_entry(pmd_t * pmd,unsigned long addr,unsigned long next,struct mm_walk * walk)1224 static int guard_remove_pmd_entry(pmd_t *pmd, unsigned long addr,
1225 unsigned long next, struct mm_walk *walk)
1226 {
1227 pmd_t pmdval = pmdp_get(pmd);
1228
1229 /* If huge, cannot have guard pages present, so no-op - skip. */
1230 if (pmd_trans_huge(pmdval))
1231 walk->action = ACTION_CONTINUE;
1232
1233 return 0;
1234 }
1235
guard_remove_pte_entry(pte_t * pte,unsigned long addr,unsigned long next,struct mm_walk * walk)1236 static int guard_remove_pte_entry(pte_t *pte, unsigned long addr,
1237 unsigned long next, struct mm_walk *walk)
1238 {
1239 pte_t ptent = ptep_get(pte);
1240
1241 if (is_guard_pte_marker(ptent)) {
1242 /* Simply clear the PTE marker. */
1243 pte_clear_not_present_full(walk->mm, addr, pte, false);
1244 update_mmu_cache(walk->vma, addr, pte);
1245 }
1246
1247 return 0;
1248 }
1249
madvise_guard_remove(struct madvise_behavior * madv_behavior)1250 static long madvise_guard_remove(struct madvise_behavior *madv_behavior)
1251 {
1252 struct vm_area_struct *vma = madv_behavior->vma;
1253 struct madvise_behavior_range *range = &madv_behavior->range;
1254 struct mm_walk_ops wallk_ops = {
1255 .pud_entry = guard_remove_pud_entry,
1256 .pmd_entry = guard_remove_pmd_entry,
1257 .pte_entry = guard_remove_pte_entry,
1258 .walk_lock = get_walk_lock(madv_behavior->lock_mode),
1259 };
1260
1261 /*
1262 * We're ok with removing guards in mlock()'d ranges, as this is a
1263 * non-destructive action.
1264 */
1265 if (!is_valid_guard_vma(vma, /* allow_locked = */true))
1266 return -EINVAL;
1267
1268 return walk_page_range_vma(vma, range->start, range->end,
1269 &wallk_ops, NULL);
1270 }
1271
1272 #ifdef CONFIG_64BIT
1273 /* Does the madvise operation result in discarding of mapped data? */
is_discard(int behavior)1274 static bool is_discard(int behavior)
1275 {
1276 switch (behavior) {
1277 case MADV_FREE:
1278 case MADV_DONTNEED:
1279 case MADV_DONTNEED_LOCKED:
1280 case MADV_REMOVE:
1281 case MADV_DONTFORK:
1282 case MADV_WIPEONFORK:
1283 case MADV_GUARD_INSTALL:
1284 return true;
1285 }
1286
1287 return false;
1288 }
1289
1290 /*
1291 * We are restricted from madvise()'ing mseal()'d VMAs only in very particular
1292 * circumstances - discarding of data from read-only anonymous SEALED mappings.
1293 *
1294 * This is because users cannot trivally discard data from these VMAs, and may
1295 * only do so via an appropriate madvise() call.
1296 */
can_madvise_modify(struct madvise_behavior * madv_behavior)1297 static bool can_madvise_modify(struct madvise_behavior *madv_behavior)
1298 {
1299 struct vm_area_struct *vma = madv_behavior->vma;
1300
1301 /* If the VMA isn't sealed we're good. */
1302 if (!vma_is_sealed(vma))
1303 return true;
1304
1305 /* For a sealed VMA, we only care about discard operations. */
1306 if (!is_discard(madv_behavior->behavior))
1307 return true;
1308
1309 /*
1310 * We explicitly permit all file-backed mappings, whether MAP_SHARED or
1311 * MAP_PRIVATE.
1312 *
1313 * The latter causes some complications. Because now, one can mmap()
1314 * read/write a MAP_PRIVATE mapping, write to it, then mprotect()
1315 * read-only, mseal() and a discard will be permitted.
1316 *
1317 * However, in order to avoid issues with potential use of madvise(...,
1318 * MADV_DONTNEED) of mseal()'d .text mappings we, for the time being,
1319 * permit this.
1320 */
1321 if (!vma_is_anonymous(vma))
1322 return true;
1323
1324 /* If the user could write to the mapping anyway, then this is fine. */
1325 if ((vma->vm_flags & VM_WRITE) &&
1326 arch_vma_access_permitted(vma, /* write= */ true,
1327 /* execute= */ false, /* foreign= */ false))
1328 return true;
1329
1330 /* Otherwise, we are not permitted to perform this operation. */
1331 return false;
1332 }
1333 #else
can_madvise_modify(struct madvise_behavior * madv_behavior)1334 static bool can_madvise_modify(struct madvise_behavior *madv_behavior)
1335 {
1336 return true;
1337 }
1338 #endif
1339
1340 /*
1341 * Apply an madvise behavior to a region of a vma. madvise_update_vma
1342 * will handle splitting a vm area into separate areas, each area with its own
1343 * behavior.
1344 */
madvise_vma_behavior(struct madvise_behavior * madv_behavior)1345 static int madvise_vma_behavior(struct madvise_behavior *madv_behavior)
1346 {
1347 int behavior = madv_behavior->behavior;
1348 struct vm_area_struct *vma = madv_behavior->vma;
1349 vm_flags_t new_flags = vma->vm_flags;
1350 struct madvise_behavior_range *range = &madv_behavior->range;
1351 int error;
1352
1353 if (unlikely(!can_madvise_modify(madv_behavior)))
1354 return -EPERM;
1355
1356 switch (behavior) {
1357 case MADV_REMOVE:
1358 return madvise_remove(madv_behavior);
1359 case MADV_WILLNEED:
1360 return madvise_willneed(madv_behavior);
1361 case MADV_COLD:
1362 return madvise_cold(madv_behavior);
1363 case MADV_PAGEOUT:
1364 return madvise_pageout(madv_behavior);
1365 case MADV_FREE:
1366 case MADV_DONTNEED:
1367 case MADV_DONTNEED_LOCKED:
1368 return madvise_dontneed_free(madv_behavior);
1369 case MADV_COLLAPSE:
1370 return madvise_collapse(vma, range->start, range->end,
1371 &madv_behavior->lock_dropped);
1372 case MADV_GUARD_INSTALL:
1373 return madvise_guard_install(madv_behavior);
1374 case MADV_GUARD_REMOVE:
1375 return madvise_guard_remove(madv_behavior);
1376
1377 /* The below behaviours update VMAs via madvise_update_vma(). */
1378
1379 case MADV_NORMAL:
1380 new_flags = new_flags & ~VM_RAND_READ & ~VM_SEQ_READ;
1381 break;
1382 case MADV_SEQUENTIAL:
1383 new_flags = (new_flags & ~VM_RAND_READ) | VM_SEQ_READ;
1384 break;
1385 case MADV_RANDOM:
1386 new_flags = (new_flags & ~VM_SEQ_READ) | VM_RAND_READ;
1387 break;
1388 case MADV_DONTFORK:
1389 new_flags |= VM_DONTCOPY;
1390 break;
1391 case MADV_DOFORK:
1392 if (new_flags & VM_SPECIAL)
1393 return -EINVAL;
1394 new_flags &= ~VM_DONTCOPY;
1395 break;
1396 case MADV_WIPEONFORK:
1397 /* MADV_WIPEONFORK is only supported on anonymous memory. */
1398 if (vma->vm_file || new_flags & VM_SHARED)
1399 return -EINVAL;
1400 new_flags |= VM_WIPEONFORK;
1401 break;
1402 case MADV_KEEPONFORK:
1403 if (new_flags & VM_DROPPABLE)
1404 return -EINVAL;
1405 new_flags &= ~VM_WIPEONFORK;
1406 break;
1407 case MADV_DONTDUMP:
1408 new_flags |= VM_DONTDUMP;
1409 break;
1410 case MADV_DODUMP:
1411 if ((!is_vm_hugetlb_page(vma) && (new_flags & VM_SPECIAL)) ||
1412 (new_flags & VM_DROPPABLE))
1413 return -EINVAL;
1414 new_flags &= ~VM_DONTDUMP;
1415 break;
1416 case MADV_MERGEABLE:
1417 case MADV_UNMERGEABLE:
1418 error = ksm_madvise(vma, range->start, range->end,
1419 behavior, &new_flags);
1420 if (error)
1421 goto out;
1422 break;
1423 case MADV_HUGEPAGE:
1424 case MADV_NOHUGEPAGE:
1425 error = hugepage_madvise(vma, &new_flags, behavior);
1426 if (error)
1427 goto out;
1428 break;
1429 case __MADV_SET_ANON_VMA_NAME:
1430 /* Only anonymous mappings can be named */
1431 if (vma->vm_file && !vma_is_anon_shmem(vma))
1432 return -EBADF;
1433 break;
1434 }
1435
1436 /* This is a write operation.*/
1437 VM_WARN_ON_ONCE(madv_behavior->lock_mode != MADVISE_MMAP_WRITE_LOCK);
1438
1439 error = madvise_update_vma(new_flags, madv_behavior);
1440 out:
1441 /*
1442 * madvise() returns EAGAIN if kernel resources, such as
1443 * slab, are temporarily unavailable.
1444 */
1445 if (error == -ENOMEM)
1446 error = -EAGAIN;
1447 return error;
1448 }
1449
1450 #ifdef CONFIG_MEMORY_FAILURE
1451 /*
1452 * Error injection support for memory error handling.
1453 */
madvise_inject_error(struct madvise_behavior * madv_behavior)1454 static int madvise_inject_error(struct madvise_behavior *madv_behavior)
1455 {
1456 unsigned long size;
1457 unsigned long start = madv_behavior->range.start;
1458 unsigned long end = madv_behavior->range.end;
1459
1460 if (!capable(CAP_SYS_ADMIN))
1461 return -EPERM;
1462
1463 for (; start < end; start += size) {
1464 unsigned long pfn;
1465 struct page *page;
1466 int ret;
1467
1468 ret = get_user_pages_fast(start, 1, 0, &page);
1469 if (ret != 1)
1470 return ret;
1471 pfn = page_to_pfn(page);
1472
1473 /*
1474 * When soft offlining hugepages, after migrating the page
1475 * we dissolve it, therefore in the second loop "page" will
1476 * no longer be a compound page.
1477 */
1478 size = page_size(compound_head(page));
1479
1480 if (madv_behavior->behavior == MADV_SOFT_OFFLINE) {
1481 pr_info("Soft offlining pfn %#lx at process virtual address %#lx\n",
1482 pfn, start);
1483 ret = soft_offline_page(pfn, MF_COUNT_INCREASED);
1484 } else {
1485 pr_info("Injecting memory failure for pfn %#lx at process virtual address %#lx\n",
1486 pfn, start);
1487 ret = memory_failure(pfn, MF_ACTION_REQUIRED | MF_COUNT_INCREASED | MF_SW_SIMULATED);
1488 if (ret == -EOPNOTSUPP)
1489 ret = 0;
1490 }
1491
1492 if (ret)
1493 return ret;
1494 }
1495
1496 return 0;
1497 }
1498
is_memory_failure(struct madvise_behavior * madv_behavior)1499 static bool is_memory_failure(struct madvise_behavior *madv_behavior)
1500 {
1501 switch (madv_behavior->behavior) {
1502 case MADV_HWPOISON:
1503 case MADV_SOFT_OFFLINE:
1504 return true;
1505 default:
1506 return false;
1507 }
1508 }
1509
1510 #else
1511
madvise_inject_error(struct madvise_behavior * madv_behavior)1512 static int madvise_inject_error(struct madvise_behavior *madv_behavior)
1513 {
1514 return 0;
1515 }
1516
is_memory_failure(struct madvise_behavior * madv_behavior)1517 static bool is_memory_failure(struct madvise_behavior *madv_behavior)
1518 {
1519 return false;
1520 }
1521
1522 #endif /* CONFIG_MEMORY_FAILURE */
1523
1524 static bool
madvise_behavior_valid(int behavior)1525 madvise_behavior_valid(int behavior)
1526 {
1527 switch (behavior) {
1528 case MADV_DOFORK:
1529 case MADV_DONTFORK:
1530 case MADV_NORMAL:
1531 case MADV_SEQUENTIAL:
1532 case MADV_RANDOM:
1533 case MADV_REMOVE:
1534 case MADV_WILLNEED:
1535 case MADV_DONTNEED:
1536 case MADV_DONTNEED_LOCKED:
1537 case MADV_FREE:
1538 case MADV_COLD:
1539 case MADV_PAGEOUT:
1540 case MADV_POPULATE_READ:
1541 case MADV_POPULATE_WRITE:
1542 #ifdef CONFIG_KSM
1543 case MADV_MERGEABLE:
1544 case MADV_UNMERGEABLE:
1545 #endif
1546 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
1547 case MADV_HUGEPAGE:
1548 case MADV_NOHUGEPAGE:
1549 case MADV_COLLAPSE:
1550 #endif
1551 case MADV_DONTDUMP:
1552 case MADV_DODUMP:
1553 case MADV_WIPEONFORK:
1554 case MADV_KEEPONFORK:
1555 case MADV_GUARD_INSTALL:
1556 case MADV_GUARD_REMOVE:
1557 #ifdef CONFIG_MEMORY_FAILURE
1558 case MADV_SOFT_OFFLINE:
1559 case MADV_HWPOISON:
1560 #endif
1561 return true;
1562
1563 default:
1564 return false;
1565 }
1566 }
1567
1568 /* Can we invoke process_madvise() on a remote mm for the specified behavior? */
process_madvise_remote_valid(int behavior)1569 static bool process_madvise_remote_valid(int behavior)
1570 {
1571 switch (behavior) {
1572 case MADV_COLD:
1573 case MADV_PAGEOUT:
1574 case MADV_WILLNEED:
1575 case MADV_COLLAPSE:
1576 return true;
1577 default:
1578 return false;
1579 }
1580 }
1581
1582 /* Does this operation invoke anon_vma_prepare()? */
prepares_anon_vma(int behavior)1583 static bool prepares_anon_vma(int behavior)
1584 {
1585 switch (behavior) {
1586 case MADV_GUARD_INSTALL:
1587 return true;
1588 default:
1589 return false;
1590 }
1591 }
1592
1593 /*
1594 * We have acquired a VMA read lock, is the VMA valid to be madvise'd under VMA
1595 * read lock only now we have a VMA to examine?
1596 */
is_vma_lock_sufficient(struct vm_area_struct * vma,struct madvise_behavior * madv_behavior)1597 static bool is_vma_lock_sufficient(struct vm_area_struct *vma,
1598 struct madvise_behavior *madv_behavior)
1599 {
1600 /* Must span only a single VMA.*/
1601 if (madv_behavior->range.end > vma->vm_end)
1602 return false;
1603 /* Remote processes unsupported. */
1604 if (current->mm != vma->vm_mm)
1605 return false;
1606 /* Userfaultfd unsupported. */
1607 if (userfaultfd_armed(vma))
1608 return false;
1609 /*
1610 * anon_vma_prepare() explicitly requires an mmap lock for
1611 * serialisation, so we cannot use a VMA lock in this case.
1612 *
1613 * Note we might race with anon_vma being set, however this makes this
1614 * check overly paranoid which is safe.
1615 */
1616 if (vma_is_anonymous(vma) &&
1617 prepares_anon_vma(madv_behavior->behavior) && !vma->anon_vma)
1618 return false;
1619
1620 return true;
1621 }
1622
1623 /*
1624 * Try to acquire a VMA read lock if possible.
1625 *
1626 * We only support this lock over a single VMA, which the input range must
1627 * span either partially or fully.
1628 *
1629 * This function always returns with an appropriate lock held. If a VMA read
1630 * lock could be acquired, we return true and set madv_behavior state
1631 * accordingly.
1632 *
1633 * If a VMA read lock could not be acquired, we return false and expect caller to
1634 * fallback to mmap lock behaviour.
1635 */
try_vma_read_lock(struct madvise_behavior * madv_behavior)1636 static bool try_vma_read_lock(struct madvise_behavior *madv_behavior)
1637 {
1638 struct mm_struct *mm = madv_behavior->mm;
1639 struct vm_area_struct *vma;
1640
1641 vma = lock_vma_under_rcu(mm, madv_behavior->range.start);
1642 if (!vma)
1643 goto take_mmap_read_lock;
1644
1645 if (!is_vma_lock_sufficient(vma, madv_behavior)) {
1646 vma_end_read(vma);
1647 goto take_mmap_read_lock;
1648 }
1649
1650 madv_behavior->vma = vma;
1651 return true;
1652
1653 take_mmap_read_lock:
1654 mmap_read_lock(mm);
1655 madv_behavior->lock_mode = MADVISE_MMAP_READ_LOCK;
1656 return false;
1657 }
1658
1659 /*
1660 * Walk the vmas in range [start,end), and call the madvise_vma_behavior
1661 * function on each one. The function will get start and end parameters that
1662 * cover the overlap between the current vma and the original range. Any
1663 * unmapped regions in the original range will result in this function returning
1664 * -ENOMEM while still calling the madvise_vma_behavior function on all of the
1665 * existing vmas in the range. Must be called with the mmap_lock held for
1666 * reading or writing.
1667 */
1668 static
madvise_walk_vmas(struct madvise_behavior * madv_behavior)1669 int madvise_walk_vmas(struct madvise_behavior *madv_behavior)
1670 {
1671 struct mm_struct *mm = madv_behavior->mm;
1672 struct madvise_behavior_range *range = &madv_behavior->range;
1673 /* range is updated to span each VMA, so store end of entire range. */
1674 unsigned long last_end = range->end;
1675 int unmapped_error = 0;
1676 int error;
1677 struct vm_area_struct *prev, *vma;
1678
1679 /*
1680 * If VMA read lock is supported, apply madvise to a single VMA
1681 * tentatively, avoiding walking VMAs.
1682 */
1683 if (madv_behavior->lock_mode == MADVISE_VMA_READ_LOCK &&
1684 try_vma_read_lock(madv_behavior)) {
1685 error = madvise_vma_behavior(madv_behavior);
1686 vma_end_read(madv_behavior->vma);
1687 return error;
1688 }
1689
1690 vma = find_vma_prev(mm, range->start, &prev);
1691 if (vma && range->start > vma->vm_start)
1692 prev = vma;
1693
1694 for (;;) {
1695 /* Still start < end. */
1696 if (!vma)
1697 return -ENOMEM;
1698
1699 /* Here start < (last_end|vma->vm_end). */
1700 if (range->start < vma->vm_start) {
1701 /*
1702 * This indicates a gap between VMAs in the input
1703 * range. This does not cause the operation to abort,
1704 * rather we simply return -ENOMEM to indicate that this
1705 * has happened, but carry on.
1706 */
1707 unmapped_error = -ENOMEM;
1708 range->start = vma->vm_start;
1709 if (range->start >= last_end)
1710 break;
1711 }
1712
1713 /* Here vma->vm_start <= range->start < (last_end|vma->vm_end) */
1714 range->end = min(vma->vm_end, last_end);
1715
1716 /* Here vma->vm_start <= range->start < range->end <= (last_end|vma->vm_end). */
1717 madv_behavior->prev = prev;
1718 madv_behavior->vma = vma;
1719 error = madvise_vma_behavior(madv_behavior);
1720 if (error)
1721 return error;
1722 if (madv_behavior->lock_dropped) {
1723 /* We dropped the mmap lock, we can't ref the VMA. */
1724 prev = NULL;
1725 vma = NULL;
1726 madv_behavior->lock_dropped = false;
1727 } else {
1728 vma = madv_behavior->vma;
1729 prev = vma;
1730 }
1731
1732 if (vma && range->end < vma->vm_end)
1733 range->end = vma->vm_end;
1734 if (range->end >= last_end)
1735 break;
1736
1737 vma = find_vma(mm, vma ? vma->vm_end : range->end);
1738 range->start = range->end;
1739 }
1740
1741 return unmapped_error;
1742 }
1743
1744 /*
1745 * Any behaviour which results in changes to the vma->vm_flags needs to
1746 * take mmap_lock for writing. Others, which simply traverse vmas, need
1747 * to only take it for reading.
1748 */
get_lock_mode(struct madvise_behavior * madv_behavior)1749 static enum madvise_lock_mode get_lock_mode(struct madvise_behavior *madv_behavior)
1750 {
1751 if (is_memory_failure(madv_behavior))
1752 return MADVISE_NO_LOCK;
1753
1754 switch (madv_behavior->behavior) {
1755 case MADV_REMOVE:
1756 case MADV_WILLNEED:
1757 case MADV_COLD:
1758 case MADV_PAGEOUT:
1759 case MADV_POPULATE_READ:
1760 case MADV_POPULATE_WRITE:
1761 case MADV_COLLAPSE:
1762 return MADVISE_MMAP_READ_LOCK;
1763 case MADV_GUARD_INSTALL:
1764 case MADV_GUARD_REMOVE:
1765 case MADV_DONTNEED:
1766 case MADV_DONTNEED_LOCKED:
1767 case MADV_FREE:
1768 return MADVISE_VMA_READ_LOCK;
1769 default:
1770 return MADVISE_MMAP_WRITE_LOCK;
1771 }
1772 }
1773
madvise_lock(struct madvise_behavior * madv_behavior)1774 static int madvise_lock(struct madvise_behavior *madv_behavior)
1775 {
1776 struct mm_struct *mm = madv_behavior->mm;
1777 enum madvise_lock_mode lock_mode = get_lock_mode(madv_behavior);
1778
1779 switch (lock_mode) {
1780 case MADVISE_NO_LOCK:
1781 break;
1782 case MADVISE_MMAP_WRITE_LOCK:
1783 if (mmap_write_lock_killable(mm))
1784 return -EINTR;
1785 break;
1786 case MADVISE_MMAP_READ_LOCK:
1787 mmap_read_lock(mm);
1788 break;
1789 case MADVISE_VMA_READ_LOCK:
1790 /* We will acquire the lock per-VMA in madvise_walk_vmas(). */
1791 break;
1792 }
1793
1794 madv_behavior->lock_mode = lock_mode;
1795 return 0;
1796 }
1797
madvise_unlock(struct madvise_behavior * madv_behavior)1798 static void madvise_unlock(struct madvise_behavior *madv_behavior)
1799 {
1800 struct mm_struct *mm = madv_behavior->mm;
1801
1802 switch (madv_behavior->lock_mode) {
1803 case MADVISE_NO_LOCK:
1804 return;
1805 case MADVISE_MMAP_WRITE_LOCK:
1806 mmap_write_unlock(mm);
1807 break;
1808 case MADVISE_MMAP_READ_LOCK:
1809 mmap_read_unlock(mm);
1810 break;
1811 case MADVISE_VMA_READ_LOCK:
1812 /* We will drop the lock per-VMA in madvise_walk_vmas(). */
1813 break;
1814 }
1815
1816 madv_behavior->lock_mode = MADVISE_NO_LOCK;
1817 }
1818
madvise_batch_tlb_flush(int behavior)1819 static bool madvise_batch_tlb_flush(int behavior)
1820 {
1821 switch (behavior) {
1822 case MADV_DONTNEED:
1823 case MADV_DONTNEED_LOCKED:
1824 case MADV_FREE:
1825 return true;
1826 default:
1827 return false;
1828 }
1829 }
1830
madvise_init_tlb(struct madvise_behavior * madv_behavior)1831 static void madvise_init_tlb(struct madvise_behavior *madv_behavior)
1832 {
1833 if (madvise_batch_tlb_flush(madv_behavior->behavior))
1834 tlb_gather_mmu(madv_behavior->tlb, madv_behavior->mm);
1835 }
1836
madvise_finish_tlb(struct madvise_behavior * madv_behavior)1837 static void madvise_finish_tlb(struct madvise_behavior *madv_behavior)
1838 {
1839 if (madvise_batch_tlb_flush(madv_behavior->behavior))
1840 tlb_finish_mmu(madv_behavior->tlb);
1841 }
1842
is_valid_madvise(unsigned long start,size_t len_in,int behavior)1843 static bool is_valid_madvise(unsigned long start, size_t len_in, int behavior)
1844 {
1845 size_t len;
1846
1847 if (!madvise_behavior_valid(behavior))
1848 return false;
1849
1850 if (!PAGE_ALIGNED(start))
1851 return false;
1852 len = PAGE_ALIGN(len_in);
1853
1854 /* Check to see whether len was rounded up from small -ve to zero */
1855 if (len_in && !len)
1856 return false;
1857
1858 if (start + len < start)
1859 return false;
1860
1861 return true;
1862 }
1863
1864 /*
1865 * madvise_should_skip() - Return if the request is invalid or nothing.
1866 * @start: Start address of madvise-requested address range.
1867 * @len_in: Length of madvise-requested address range.
1868 * @behavior: Requested madvise behavior.
1869 * @err: Pointer to store an error code from the check.
1870 *
1871 * If the specified behaviour is invalid or nothing would occur, we skip the
1872 * operation. This function returns true in the cases, otherwise false. In
1873 * the former case we store an error on @err.
1874 */
madvise_should_skip(unsigned long start,size_t len_in,int behavior,int * err)1875 static bool madvise_should_skip(unsigned long start, size_t len_in,
1876 int behavior, int *err)
1877 {
1878 if (!is_valid_madvise(start, len_in, behavior)) {
1879 *err = -EINVAL;
1880 return true;
1881 }
1882 if (start + PAGE_ALIGN(len_in) == start) {
1883 *err = 0;
1884 return true;
1885 }
1886 return false;
1887 }
1888
is_madvise_populate(struct madvise_behavior * madv_behavior)1889 static bool is_madvise_populate(struct madvise_behavior *madv_behavior)
1890 {
1891 switch (madv_behavior->behavior) {
1892 case MADV_POPULATE_READ:
1893 case MADV_POPULATE_WRITE:
1894 return true;
1895 default:
1896 return false;
1897 }
1898 }
1899
1900 /*
1901 * untagged_addr_remote() assumes mmap_lock is already held. On
1902 * architectures like x86 and RISC-V, tagging is tricky because each
1903 * mm may have a different tagging mask. However, we might only hold
1904 * the per-VMA lock (currently only local processes are supported),
1905 * so untagged_addr is used to avoid the mmap_lock assertion for
1906 * local processes.
1907 */
get_untagged_addr(struct mm_struct * mm,unsigned long start)1908 static inline unsigned long get_untagged_addr(struct mm_struct *mm,
1909 unsigned long start)
1910 {
1911 return current->mm == mm ? untagged_addr(start) :
1912 untagged_addr_remote(mm, start);
1913 }
1914
madvise_do_behavior(unsigned long start,size_t len_in,struct madvise_behavior * madv_behavior)1915 static int madvise_do_behavior(unsigned long start, size_t len_in,
1916 struct madvise_behavior *madv_behavior)
1917 {
1918 struct blk_plug plug;
1919 int error;
1920 struct madvise_behavior_range *range = &madv_behavior->range;
1921
1922 if (is_memory_failure(madv_behavior)) {
1923 range->start = start;
1924 range->end = start + len_in;
1925 return madvise_inject_error(madv_behavior);
1926 }
1927
1928 range->start = get_untagged_addr(madv_behavior->mm, start);
1929 range->end = range->start + PAGE_ALIGN(len_in);
1930
1931 blk_start_plug(&plug);
1932 if (is_madvise_populate(madv_behavior))
1933 error = madvise_populate(madv_behavior);
1934 else
1935 error = madvise_walk_vmas(madv_behavior);
1936 blk_finish_plug(&plug);
1937 return error;
1938 }
1939
1940 /*
1941 * The madvise(2) system call.
1942 *
1943 * Applications can use madvise() to advise the kernel how it should
1944 * handle paging I/O in this VM area. The idea is to help the kernel
1945 * use appropriate read-ahead and caching techniques. The information
1946 * provided is advisory only, and can be safely disregarded by the
1947 * kernel without affecting the correct operation of the application.
1948 *
1949 * behavior values:
1950 * MADV_NORMAL - the default behavior is to read clusters. This
1951 * results in some read-ahead and read-behind.
1952 * MADV_RANDOM - the system should read the minimum amount of data
1953 * on any access, since it is unlikely that the appli-
1954 * cation will need more than what it asks for.
1955 * MADV_SEQUENTIAL - pages in the given range will probably be accessed
1956 * once, so they can be aggressively read ahead, and
1957 * can be freed soon after they are accessed.
1958 * MADV_WILLNEED - the application is notifying the system to read
1959 * some pages ahead.
1960 * MADV_DONTNEED - the application is finished with the given range,
1961 * so the kernel can free resources associated with it.
1962 * MADV_FREE - the application marks pages in the given range as lazy free,
1963 * where actual purges are postponed until memory pressure happens.
1964 * MADV_REMOVE - the application wants to free up the given range of
1965 * pages and associated backing store.
1966 * MADV_DONTFORK - omit this area from child's address space when forking:
1967 * typically, to avoid COWing pages pinned by get_user_pages().
1968 * MADV_DOFORK - cancel MADV_DONTFORK: no longer omit this area when forking.
1969 * MADV_WIPEONFORK - present the child process with zero-filled memory in this
1970 * range after a fork.
1971 * MADV_KEEPONFORK - undo the effect of MADV_WIPEONFORK
1972 * MADV_HWPOISON - trigger memory error handler as if the given memory range
1973 * were corrupted by unrecoverable hardware memory failure.
1974 * MADV_SOFT_OFFLINE - try to soft-offline the given range of memory.
1975 * MADV_MERGEABLE - the application recommends that KSM try to merge pages in
1976 * this area with pages of identical content from other such areas.
1977 * MADV_UNMERGEABLE- cancel MADV_MERGEABLE: no longer merge pages with others.
1978 * MADV_HUGEPAGE - the application wants to back the given range by transparent
1979 * huge pages in the future. Existing pages might be coalesced and
1980 * new pages might be allocated as THP.
1981 * MADV_NOHUGEPAGE - mark the given range as not worth being backed by
1982 * transparent huge pages so the existing pages will not be
1983 * coalesced into THP and new pages will not be allocated as THP.
1984 * MADV_COLLAPSE - synchronously coalesce pages into new THP.
1985 * MADV_DONTDUMP - the application wants to prevent pages in the given range
1986 * from being included in its core dump.
1987 * MADV_DODUMP - cancel MADV_DONTDUMP: no longer exclude from core dump.
1988 * MADV_COLD - the application is not expected to use this memory soon,
1989 * deactivate pages in this range so that they can be reclaimed
1990 * easily if memory pressure happens.
1991 * MADV_PAGEOUT - the application is not expected to use this memory soon,
1992 * page out the pages in this range immediately.
1993 * MADV_POPULATE_READ - populate (prefault) page tables readable by
1994 * triggering read faults if required
1995 * MADV_POPULATE_WRITE - populate (prefault) page tables writable by
1996 * triggering write faults if required
1997 *
1998 * return values:
1999 * zero - success
2000 * -EINVAL - start + len < 0, start is not page-aligned,
2001 * "behavior" is not a valid value, or application
2002 * is attempting to release locked or shared pages,
2003 * or the specified address range includes file, Huge TLB,
2004 * MAP_SHARED or VMPFNMAP range.
2005 * -ENOMEM - addresses in the specified range are not currently
2006 * mapped, or are outside the AS of the process.
2007 * -EIO - an I/O error occurred while paging in data.
2008 * -EBADF - map exists, but area maps something that isn't a file.
2009 * -EAGAIN - a kernel resource was temporarily unavailable.
2010 * -EPERM - memory is sealed.
2011 */
do_madvise(struct mm_struct * mm,unsigned long start,size_t len_in,int behavior)2012 int do_madvise(struct mm_struct *mm, unsigned long start, size_t len_in, int behavior)
2013 {
2014 int error;
2015 struct mmu_gather tlb;
2016 struct madvise_behavior madv_behavior = {
2017 .mm = mm,
2018 .behavior = behavior,
2019 .tlb = &tlb,
2020 };
2021
2022 if (madvise_should_skip(start, len_in, behavior, &error))
2023 return error;
2024 error = madvise_lock(&madv_behavior);
2025 if (error)
2026 return error;
2027 madvise_init_tlb(&madv_behavior);
2028 error = madvise_do_behavior(start, len_in, &madv_behavior);
2029 madvise_finish_tlb(&madv_behavior);
2030 madvise_unlock(&madv_behavior);
2031
2032 return error;
2033 }
2034
SYSCALL_DEFINE3(madvise,unsigned long,start,size_t,len_in,int,behavior)2035 SYSCALL_DEFINE3(madvise, unsigned long, start, size_t, len_in, int, behavior)
2036 {
2037 return do_madvise(current->mm, start, len_in, behavior);
2038 }
2039
2040 /* Perform an madvise operation over a vector of addresses and lengths. */
vector_madvise(struct mm_struct * mm,struct iov_iter * iter,int behavior)2041 static ssize_t vector_madvise(struct mm_struct *mm, struct iov_iter *iter,
2042 int behavior)
2043 {
2044 ssize_t ret = 0;
2045 size_t total_len;
2046 struct mmu_gather tlb;
2047 struct madvise_behavior madv_behavior = {
2048 .mm = mm,
2049 .behavior = behavior,
2050 .tlb = &tlb,
2051 };
2052
2053 total_len = iov_iter_count(iter);
2054
2055 ret = madvise_lock(&madv_behavior);
2056 if (ret)
2057 return ret;
2058 madvise_init_tlb(&madv_behavior);
2059
2060 while (iov_iter_count(iter)) {
2061 unsigned long start = (unsigned long)iter_iov_addr(iter);
2062 size_t len_in = iter_iov_len(iter);
2063 int error;
2064
2065 if (madvise_should_skip(start, len_in, behavior, &error))
2066 ret = error;
2067 else
2068 ret = madvise_do_behavior(start, len_in, &madv_behavior);
2069 /*
2070 * An madvise operation is attempting to restart the syscall,
2071 * but we cannot proceed as it would not be correct to repeat
2072 * the operation in aggregate, and would be surprising to the
2073 * user.
2074 *
2075 * We drop and reacquire locks so it is safe to just loop and
2076 * try again. We check for fatal signals in case we need exit
2077 * early anyway.
2078 */
2079 if (ret == -ERESTARTNOINTR) {
2080 if (fatal_signal_pending(current)) {
2081 ret = -EINTR;
2082 break;
2083 }
2084
2085 /* Drop and reacquire lock to unwind race. */
2086 madvise_finish_tlb(&madv_behavior);
2087 madvise_unlock(&madv_behavior);
2088 ret = madvise_lock(&madv_behavior);
2089 if (ret)
2090 goto out;
2091 madvise_init_tlb(&madv_behavior);
2092 continue;
2093 }
2094 if (ret < 0)
2095 break;
2096 iov_iter_advance(iter, iter_iov_len(iter));
2097 }
2098 madvise_finish_tlb(&madv_behavior);
2099 madvise_unlock(&madv_behavior);
2100
2101 out:
2102 ret = (total_len - iov_iter_count(iter)) ? : ret;
2103
2104 return ret;
2105 }
2106
SYSCALL_DEFINE5(process_madvise,int,pidfd,const struct iovec __user *,vec,size_t,vlen,int,behavior,unsigned int,flags)2107 SYSCALL_DEFINE5(process_madvise, int, pidfd, const struct iovec __user *, vec,
2108 size_t, vlen, int, behavior, unsigned int, flags)
2109 {
2110 ssize_t ret;
2111 struct iovec iovstack[UIO_FASTIOV];
2112 struct iovec *iov = iovstack;
2113 struct iov_iter iter;
2114 struct task_struct *task;
2115 struct mm_struct *mm;
2116 unsigned int f_flags;
2117
2118 if (flags != 0) {
2119 ret = -EINVAL;
2120 goto out;
2121 }
2122
2123 ret = import_iovec(ITER_DEST, vec, vlen, ARRAY_SIZE(iovstack), &iov, &iter);
2124 if (ret < 0)
2125 goto out;
2126
2127 task = pidfd_get_task(pidfd, &f_flags);
2128 if (IS_ERR(task)) {
2129 ret = PTR_ERR(task);
2130 goto free_iov;
2131 }
2132
2133 /* Require PTRACE_MODE_READ to avoid leaking ASLR metadata. */
2134 mm = mm_access(task, PTRACE_MODE_READ_FSCREDS);
2135 if (IS_ERR(mm)) {
2136 ret = PTR_ERR(mm);
2137 goto release_task;
2138 }
2139
2140 /*
2141 * We need only perform this check if we are attempting to manipulate a
2142 * remote process's address space.
2143 */
2144 if (mm != current->mm && !process_madvise_remote_valid(behavior)) {
2145 ret = -EINVAL;
2146 goto release_mm;
2147 }
2148
2149 /*
2150 * Require CAP_SYS_NICE for influencing process performance. Note that
2151 * only non-destructive hints are currently supported for remote
2152 * processes.
2153 */
2154 if (mm != current->mm && !capable(CAP_SYS_NICE)) {
2155 ret = -EPERM;
2156 goto release_mm;
2157 }
2158
2159 ret = vector_madvise(mm, &iter, behavior);
2160
2161 release_mm:
2162 mmput(mm);
2163 release_task:
2164 put_task_struct(task);
2165 free_iov:
2166 kfree(iov);
2167 out:
2168 return ret;
2169 }
2170
2171 #ifdef CONFIG_ANON_VMA_NAME
2172
2173 #define ANON_VMA_NAME_MAX_LEN 80
2174 #define ANON_VMA_NAME_INVALID_CHARS "\\`$[]"
2175
is_valid_name_char(char ch)2176 static inline bool is_valid_name_char(char ch)
2177 {
2178 /* printable ascii characters, excluding ANON_VMA_NAME_INVALID_CHARS */
2179 return ch > 0x1f && ch < 0x7f &&
2180 !strchr(ANON_VMA_NAME_INVALID_CHARS, ch);
2181 }
2182
madvise_set_anon_name(struct mm_struct * mm,unsigned long start,unsigned long len_in,struct anon_vma_name * anon_name)2183 static int madvise_set_anon_name(struct mm_struct *mm, unsigned long start,
2184 unsigned long len_in, struct anon_vma_name *anon_name)
2185 {
2186 unsigned long end;
2187 unsigned long len;
2188 int error;
2189 struct madvise_behavior madv_behavior = {
2190 .mm = mm,
2191 .behavior = __MADV_SET_ANON_VMA_NAME,
2192 .anon_name = anon_name,
2193 };
2194
2195 if (start & ~PAGE_MASK)
2196 return -EINVAL;
2197 len = (len_in + ~PAGE_MASK) & PAGE_MASK;
2198
2199 /* Check to see whether len was rounded up from small -ve to zero */
2200 if (len_in && !len)
2201 return -EINVAL;
2202
2203 end = start + len;
2204 if (end < start)
2205 return -EINVAL;
2206
2207 if (end == start)
2208 return 0;
2209
2210 madv_behavior.range.start = start;
2211 madv_behavior.range.end = end;
2212
2213 error = madvise_lock(&madv_behavior);
2214 if (error)
2215 return error;
2216 error = madvise_walk_vmas(&madv_behavior);
2217 madvise_unlock(&madv_behavior);
2218
2219 return error;
2220 }
2221
set_anon_vma_name(unsigned long addr,unsigned long size,const char __user * uname)2222 int set_anon_vma_name(unsigned long addr, unsigned long size,
2223 const char __user *uname)
2224 {
2225 struct anon_vma_name *anon_name = NULL;
2226 struct mm_struct *mm = current->mm;
2227 int error;
2228
2229 if (uname) {
2230 char *name, *pch;
2231
2232 name = strndup_user(uname, ANON_VMA_NAME_MAX_LEN);
2233 if (IS_ERR(name))
2234 return PTR_ERR(name);
2235
2236 for (pch = name; *pch != '\0'; pch++) {
2237 if (!is_valid_name_char(*pch)) {
2238 kfree(name);
2239 return -EINVAL;
2240 }
2241 }
2242 /* anon_vma has its own copy */
2243 anon_name = anon_vma_name_alloc(name);
2244 kfree(name);
2245 if (!anon_name)
2246 return -ENOMEM;
2247 }
2248
2249 error = madvise_set_anon_name(mm, addr, size, anon_name);
2250 anon_vma_name_put(anon_name);
2251
2252 return error;
2253 }
2254 #endif
2255