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b2441318 | 1 | // SPDX-License-Identifier: GPL-2.0 |
1da177e4 LT |
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> | |
05b74384 | 12 | #include <linux/mempolicy.h> |
afcf938e | 13 | #include <linux/page-isolation.h> |
9c276cc6 | 14 | #include <linux/page_idle.h> |
05ce7724 | 15 | #include <linux/userfaultfd_k.h> |
1da177e4 | 16 | #include <linux/hugetlb.h> |
3f31d075 | 17 | #include <linux/falloc.h> |
692fe624 | 18 | #include <linux/fadvise.h> |
e8edc6e0 | 19 | #include <linux/sched.h> |
ecb8ac8b | 20 | #include <linux/sched/mm.h> |
17fca131 | 21 | #include <linux/mm_inline.h> |
9a10064f | 22 | #include <linux/string.h> |
ecb8ac8b | 23 | #include <linux/uio.h> |
f8af4da3 | 24 | #include <linux/ksm.h> |
3f31d075 | 25 | #include <linux/fs.h> |
9ab4233d | 26 | #include <linux/file.h> |
1998cc04 | 27 | #include <linux/blkdev.h> |
66114cad | 28 | #include <linux/backing-dev.h> |
a520110e | 29 | #include <linux/pagewalk.h> |
1998cc04 SL |
30 | #include <linux/swap.h> |
31 | #include <linux/swapops.h> | |
3a4f8a0b | 32 | #include <linux/shmem_fs.h> |
854e9ed0 MK |
33 | #include <linux/mmu_notifier.h> |
34 | ||
35 | #include <asm/tlb.h> | |
1da177e4 | 36 | |
23519073 | 37 | #include "internal.h" |
014bb1de | 38 | #include "swap.h" |
23519073 | 39 | |
d616d512 MK |
40 | struct madvise_walk_private { |
41 | struct mmu_gather *tlb; | |
42 | bool pageout; | |
43 | }; | |
44 | ||
0a27a14a NP |
45 | /* |
46 | * Any behaviour which results in changes to the vma->vm_flags needs to | |
c1e8d7c6 | 47 | * take mmap_lock for writing. Others, which simply traverse vmas, need |
0a27a14a NP |
48 | * to only take it for reading. |
49 | */ | |
50 | static int madvise_need_mmap_write(int behavior) | |
51 | { | |
52 | switch (behavior) { | |
53 | case MADV_REMOVE: | |
54 | case MADV_WILLNEED: | |
55 | case MADV_DONTNEED: | |
9457056a | 56 | case MADV_DONTNEED_LOCKED: |
9c276cc6 | 57 | case MADV_COLD: |
1a4e58cc | 58 | case MADV_PAGEOUT: |
854e9ed0 | 59 | case MADV_FREE: |
4ca9b385 DH |
60 | case MADV_POPULATE_READ: |
61 | case MADV_POPULATE_WRITE: | |
7d8faaf1 | 62 | case MADV_COLLAPSE: |
0a27a14a NP |
63 | return 0; |
64 | default: | |
65 | /* be safe, default to 1. list exceptions explicitly */ | |
66 | return 1; | |
67 | } | |
68 | } | |
69 | ||
9a10064f | 70 | #ifdef CONFIG_ANON_VMA_NAME |
5c26f6ac | 71 | struct anon_vma_name *anon_vma_name_alloc(const char *name) |
78db3412 SB |
72 | { |
73 | struct anon_vma_name *anon_name; | |
74 | size_t count; | |
75 | ||
76 | /* Add 1 for NUL terminator at the end of the anon_name->name */ | |
77 | count = strlen(name) + 1; | |
78 | anon_name = kmalloc(struct_size(anon_name, name, count), GFP_KERNEL); | |
79 | if (anon_name) { | |
80 | kref_init(&anon_name->kref); | |
81 | memcpy(anon_name->name, name, count); | |
82 | } | |
83 | ||
84 | return anon_name; | |
85 | } | |
86 | ||
5c26f6ac | 87 | void anon_vma_name_free(struct kref *kref) |
78db3412 SB |
88 | { |
89 | struct anon_vma_name *anon_name = | |
90 | container_of(kref, struct anon_vma_name, kref); | |
91 | kfree(anon_name); | |
92 | } | |
93 | ||
5c26f6ac | 94 | struct anon_vma_name *anon_vma_name(struct vm_area_struct *vma) |
9a10064f | 95 | { |
9a10064f CC |
96 | mmap_assert_locked(vma->vm_mm); |
97 | ||
5c26f6ac | 98 | return vma->anon_name; |
9a10064f CC |
99 | } |
100 | ||
101 | /* mmap_lock should be write-locked */ | |
5c26f6ac SB |
102 | static int replace_anon_vma_name(struct vm_area_struct *vma, |
103 | struct anon_vma_name *anon_name) | |
9a10064f | 104 | { |
5c26f6ac | 105 | struct anon_vma_name *orig_name = anon_vma_name(vma); |
78db3412 | 106 | |
5c26f6ac SB |
107 | if (!anon_name) { |
108 | vma->anon_name = NULL; | |
109 | anon_vma_name_put(orig_name); | |
9a10064f CC |
110 | return 0; |
111 | } | |
112 | ||
5c26f6ac SB |
113 | if (anon_vma_name_eq(orig_name, anon_name)) |
114 | return 0; | |
9a10064f | 115 | |
96403e11 | 116 | vma->anon_name = anon_vma_name_reuse(anon_name); |
5c26f6ac | 117 | anon_vma_name_put(orig_name); |
9a10064f CC |
118 | |
119 | return 0; | |
120 | } | |
121 | #else /* CONFIG_ANON_VMA_NAME */ | |
5c26f6ac SB |
122 | static int replace_anon_vma_name(struct vm_area_struct *vma, |
123 | struct anon_vma_name *anon_name) | |
9a10064f | 124 | { |
5c26f6ac | 125 | if (anon_name) |
9a10064f CC |
126 | return -EINVAL; |
127 | ||
128 | return 0; | |
129 | } | |
130 | #endif /* CONFIG_ANON_VMA_NAME */ | |
1da177e4 | 131 | /* |
ac1e9acc | 132 | * Update the vm_flags on region of a vma, splitting it or merging it as |
8651a137 | 133 | * necessary. Must be called with mmap_lock held for writing; |
942341dc SB |
134 | * Caller should ensure anon_name stability by raising its refcount even when |
135 | * anon_name belongs to a valid vma because this function might free that vma. | |
1da177e4 | 136 | */ |
ac1e9acc CC |
137 | static int madvise_update_vma(struct vm_area_struct *vma, |
138 | struct vm_area_struct **prev, unsigned long start, | |
9a10064f | 139 | unsigned long end, unsigned long new_flags, |
5c26f6ac | 140 | struct anon_vma_name *anon_name) |
1da177e4 | 141 | { |
ec9bed9d | 142 | struct mm_struct *mm = vma->vm_mm; |
ac1e9acc | 143 | int error; |
05b74384 | 144 | pgoff_t pgoff; |
85ab779e | 145 | VMA_ITERATOR(vmi, mm, start); |
e798c6e8 | 146 | |
5c26f6ac | 147 | if (new_flags == vma->vm_flags && anon_vma_name_eq(anon_vma_name(vma), anon_name)) { |
05b74384 | 148 | *prev = vma; |
ac1e9acc | 149 | return 0; |
05b74384 PM |
150 | } |
151 | ||
152 | pgoff = vma->vm_pgoff + ((start - vma->vm_start) >> PAGE_SHIFT); | |
9760ebff | 153 | *prev = vma_merge(&vmi, mm, *prev, start, end, new_flags, |
178e22ac | 154 | vma->anon_vma, vma->vm_file, pgoff, vma_policy(vma), |
5c26f6ac | 155 | vma->vm_userfaultfd_ctx, anon_name); |
05b74384 PM |
156 | if (*prev) { |
157 | vma = *prev; | |
158 | goto success; | |
159 | } | |
160 | ||
161 | *prev = vma; | |
1da177e4 LT |
162 | |
163 | if (start != vma->vm_start) { | |
85ab779e | 164 | error = split_vma(&vmi, vma, start, 1); |
f3bc0dba | 165 | if (error) |
ac1e9acc | 166 | return error; |
1da177e4 LT |
167 | } |
168 | ||
169 | if (end != vma->vm_end) { | |
85ab779e | 170 | error = split_vma(&vmi, vma, end, 0); |
f3bc0dba | 171 | if (error) |
ac1e9acc | 172 | return error; |
1da177e4 LT |
173 | } |
174 | ||
836d5ffd | 175 | success: |
60081bf1 SB |
176 | /* vm_flags is protected by the mmap_lock held in write mode. */ |
177 | vma_start_write(vma); | |
1c71222e | 178 | vm_flags_reset(vma, new_flags); |
d09e8ca6 | 179 | if (!vma->vm_file || vma_is_anon_shmem(vma)) { |
5c26f6ac | 180 | error = replace_anon_vma_name(vma, anon_name); |
9a10064f CC |
181 | if (error) |
182 | return error; | |
183 | } | |
f3bc0dba | 184 | |
ac1e9acc | 185 | return 0; |
1da177e4 LT |
186 | } |
187 | ||
1998cc04 SL |
188 | #ifdef CONFIG_SWAP |
189 | static int swapin_walk_pmd_entry(pmd_t *pmd, unsigned long start, | |
f3cd4ab0 | 190 | unsigned long end, struct mm_walk *walk) |
1998cc04 | 191 | { |
1998cc04 | 192 | struct vm_area_struct *vma = walk->private; |
5169b844 | 193 | struct swap_iocb *splug = NULL; |
f3cd4ab0 HD |
194 | pte_t *ptep = NULL; |
195 | spinlock_t *ptl; | |
196 | unsigned long addr; | |
1998cc04 | 197 | |
f3cd4ab0 | 198 | for (addr = start; addr < end; addr += PAGE_SIZE) { |
1998cc04 SL |
199 | pte_t pte; |
200 | swp_entry_t entry; | |
201 | struct page *page; | |
1998cc04 | 202 | |
f3cd4ab0 HD |
203 | if (!ptep++) { |
204 | ptep = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl); | |
205 | if (!ptep) | |
206 | break; | |
207 | } | |
1998cc04 | 208 | |
c33c7948 | 209 | pte = ptep_get(ptep); |
f7cc67ae | 210 | if (!is_swap_pte(pte)) |
1998cc04 SL |
211 | continue; |
212 | entry = pte_to_swp_entry(pte); | |
213 | if (unlikely(non_swap_entry(entry))) | |
214 | continue; | |
215 | ||
f3cd4ab0 HD |
216 | pte_unmap_unlock(ptep, ptl); |
217 | ptep = NULL; | |
218 | ||
1998cc04 | 219 | page = read_swap_cache_async(entry, GFP_HIGHUSER_MOVABLE, |
b243dcbf | 220 | vma, addr, &splug); |
1998cc04 | 221 | if (page) |
09cbfeaf | 222 | put_page(page); |
1998cc04 | 223 | } |
f3cd4ab0 HD |
224 | |
225 | if (ptep) | |
226 | pte_unmap_unlock(ptep, ptl); | |
5169b844 | 227 | swap_read_unplug(splug); |
de2e5171 | 228 | cond_resched(); |
1998cc04 SL |
229 | |
230 | return 0; | |
231 | } | |
232 | ||
7b86ac33 CH |
233 | static const struct mm_walk_ops swapin_walk_ops = { |
234 | .pmd_entry = swapin_walk_pmd_entry, | |
49b06385 | 235 | .walk_lock = PGWALK_RDLOCK, |
7b86ac33 | 236 | }; |
1998cc04 | 237 | |
179d3e4f | 238 | static void shmem_swapin_range(struct vm_area_struct *vma, |
1998cc04 SL |
239 | unsigned long start, unsigned long end, |
240 | struct address_space *mapping) | |
241 | { | |
e6e88712 | 242 | XA_STATE(xas, &mapping->i_pages, linear_page_index(vma, start)); |
179d3e4f | 243 | pgoff_t end_index = linear_page_index(vma, end) - 1; |
1998cc04 | 244 | struct page *page; |
5169b844 | 245 | struct swap_iocb *splug = NULL; |
1998cc04 | 246 | |
e6e88712 MWO |
247 | rcu_read_lock(); |
248 | xas_for_each(&xas, page, end_index) { | |
179d3e4f HD |
249 | unsigned long addr; |
250 | swp_entry_t entry; | |
1998cc04 | 251 | |
e6e88712 | 252 | if (!xa_is_value(page)) |
1998cc04 | 253 | continue; |
179d3e4f | 254 | entry = radix_to_swp_entry(page); |
ba6851b4 | 255 | /* There might be swapin error entries in shmem mapping. */ |
179d3e4f | 256 | if (non_swap_entry(entry)) |
ba6851b4 | 257 | continue; |
179d3e4f HD |
258 | |
259 | addr = vma->vm_start + | |
260 | ((xas.xa_index - vma->vm_pgoff) << PAGE_SHIFT); | |
e6e88712 MWO |
261 | xas_pause(&xas); |
262 | rcu_read_unlock(); | |
263 | ||
179d3e4f | 264 | page = read_swap_cache_async(entry, mapping_gfp_mask(mapping), |
b243dcbf | 265 | vma, addr, &splug); |
1998cc04 | 266 | if (page) |
09cbfeaf | 267 | put_page(page); |
e6e88712 MWO |
268 | |
269 | rcu_read_lock(); | |
1998cc04 | 270 | } |
e6e88712 | 271 | rcu_read_unlock(); |
5169b844 | 272 | swap_read_unplug(splug); |
1998cc04 SL |
273 | } |
274 | #endif /* CONFIG_SWAP */ | |
275 | ||
1da177e4 LT |
276 | /* |
277 | * Schedule all required I/O operations. Do not wait for completion. | |
278 | */ | |
ec9bed9d VC |
279 | static long madvise_willneed(struct vm_area_struct *vma, |
280 | struct vm_area_struct **prev, | |
1da177e4 LT |
281 | unsigned long start, unsigned long end) |
282 | { | |
0726b01e | 283 | struct mm_struct *mm = vma->vm_mm; |
1da177e4 | 284 | struct file *file = vma->vm_file; |
692fe624 | 285 | loff_t offset; |
1da177e4 | 286 | |
6ea8d958 | 287 | *prev = vma; |
1998cc04 | 288 | #ifdef CONFIG_SWAP |
97b713ba | 289 | if (!file) { |
7b86ac33 CH |
290 | walk_page_range(vma->vm_mm, start, end, &swapin_walk_ops, vma); |
291 | lru_add_drain(); /* Push any new pages onto the LRU now */ | |
1998cc04 SL |
292 | return 0; |
293 | } | |
1998cc04 | 294 | |
97b713ba | 295 | if (shmem_mapping(file->f_mapping)) { |
179d3e4f HD |
296 | shmem_swapin_range(vma, start, end, file->f_mapping); |
297 | lru_add_drain(); /* Push any new pages onto the LRU now */ | |
97b713ba CH |
298 | return 0; |
299 | } | |
300 | #else | |
1bef4003 S |
301 | if (!file) |
302 | return -EBADF; | |
97b713ba | 303 | #endif |
1bef4003 | 304 | |
e748dcd0 | 305 | if (IS_DAX(file_inode(file))) { |
fe77ba6f CO |
306 | /* no bad return value, but ignore advice */ |
307 | return 0; | |
308 | } | |
309 | ||
692fe624 JK |
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 | |
c1e8d7c6 | 314 | * mmap_lock. |
692fe624 | 315 | */ |
c1e8d7c6 | 316 | *prev = NULL; /* tell sys_madvise we drop mmap_lock */ |
692fe624 | 317 | get_file(file); |
692fe624 JK |
318 | offset = (loff_t)(start - vma->vm_start) |
319 | + ((loff_t)vma->vm_pgoff << PAGE_SHIFT); | |
0726b01e | 320 | mmap_read_unlock(mm); |
692fe624 JK |
321 | vfs_fadvise(file, offset, end - start, POSIX_FADV_WILLNEED); |
322 | fput(file); | |
0726b01e | 323 | mmap_read_lock(mm); |
1da177e4 LT |
324 | return 0; |
325 | } | |
326 | ||
fd3b1bc3 PK |
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 | */ | |
01beba79 | 337 | return inode_owner_or_capable(&nop_mnt_idmap, |
fd3b1bc3 PK |
338 | file_inode(vma->vm_file)) || |
339 | file_permission(vma->vm_file, MAY_WRITE) == 0; | |
340 | } | |
341 | ||
d616d512 MK |
342 | static int madvise_cold_or_pageout_pte_range(pmd_t *pmd, |
343 | unsigned long addr, unsigned long end, | |
344 | struct mm_walk *walk) | |
9c276cc6 | 345 | { |
d616d512 MK |
346 | struct madvise_walk_private *private = walk->private; |
347 | struct mmu_gather *tlb = private->tlb; | |
348 | bool pageout = private->pageout; | |
9c276cc6 MK |
349 | struct mm_struct *mm = tlb->mm; |
350 | struct vm_area_struct *vma = walk->vma; | |
f3cd4ab0 | 351 | pte_t *start_pte, *pte, ptent; |
9c276cc6 | 352 | spinlock_t *ptl; |
07e8c82b VMO |
353 | struct folio *folio = NULL; |
354 | LIST_HEAD(folio_list); | |
fd3b1bc3 | 355 | bool pageout_anon_only_filter; |
d616d512 MK |
356 | |
357 | if (fatal_signal_pending(current)) | |
358 | return -EINTR; | |
9c276cc6 | 359 | |
fd3b1bc3 PK |
360 | pageout_anon_only_filter = pageout && !vma_is_anonymous(vma) && |
361 | !can_do_file_pageout(vma); | |
362 | ||
9c276cc6 MK |
363 | #ifdef CONFIG_TRANSPARENT_HUGEPAGE |
364 | if (pmd_trans_huge(*pmd)) { | |
365 | pmd_t orig_pmd; | |
366 | unsigned long next = pmd_addr_end(addr, end); | |
367 | ||
368 | tlb_change_page_size(tlb, HPAGE_PMD_SIZE); | |
369 | ptl = pmd_trans_huge_lock(pmd, vma); | |
370 | if (!ptl) | |
371 | return 0; | |
372 | ||
373 | orig_pmd = *pmd; | |
374 | if (is_huge_zero_pmd(orig_pmd)) | |
375 | goto huge_unlock; | |
376 | ||
377 | if (unlikely(!pmd_present(orig_pmd))) { | |
378 | VM_BUG_ON(thp_migration_supported() && | |
379 | !is_pmd_migration_entry(orig_pmd)); | |
380 | goto huge_unlock; | |
381 | } | |
382 | ||
07e8c82b | 383 | folio = pfn_folio(pmd_pfn(orig_pmd)); |
12e967fd | 384 | |
07e8c82b | 385 | /* Do not interfere with other mappings of this folio */ |
2f406263 | 386 | if (folio_estimated_sharers(folio) != 1) |
12e967fd MH |
387 | goto huge_unlock; |
388 | ||
07e8c82b | 389 | if (pageout_anon_only_filter && !folio_test_anon(folio)) |
fd3b1bc3 PK |
390 | goto huge_unlock; |
391 | ||
9c276cc6 MK |
392 | if (next - addr != HPAGE_PMD_SIZE) { |
393 | int err; | |
394 | ||
07e8c82b | 395 | folio_get(folio); |
9c276cc6 | 396 | spin_unlock(ptl); |
07e8c82b VMO |
397 | folio_lock(folio); |
398 | err = split_folio(folio); | |
399 | folio_unlock(folio); | |
400 | folio_put(folio); | |
9c276cc6 | 401 | if (!err) |
07e8c82b | 402 | goto regular_folio; |
9c276cc6 MK |
403 | return 0; |
404 | } | |
405 | ||
406 | if (pmd_young(orig_pmd)) { | |
407 | pmdp_invalidate(vma, addr, pmd); | |
408 | orig_pmd = pmd_mkold(orig_pmd); | |
409 | ||
410 | set_pmd_at(mm, addr, pmd, orig_pmd); | |
411 | tlb_remove_pmd_tlb_entry(tlb, pmd, addr); | |
412 | } | |
413 | ||
07e8c82b VMO |
414 | folio_clear_referenced(folio); |
415 | folio_test_clear_young(folio); | |
20c897ea CTK |
416 | if (folio_test_active(folio)) |
417 | folio_set_workingset(folio); | |
d616d512 | 418 | if (pageout) { |
be2d5756 | 419 | if (folio_isolate_lru(folio)) { |
07e8c82b VMO |
420 | if (folio_test_unevictable(folio)) |
421 | folio_putback_lru(folio); | |
82072962 | 422 | else |
07e8c82b | 423 | list_add(&folio->lru, &folio_list); |
82072962 | 424 | } |
d616d512 | 425 | } else |
5a9e3474 | 426 | folio_deactivate(folio); |
9c276cc6 MK |
427 | huge_unlock: |
428 | spin_unlock(ptl); | |
d616d512 | 429 | if (pageout) |
07e8c82b | 430 | reclaim_pages(&folio_list); |
9c276cc6 MK |
431 | return 0; |
432 | } | |
433 | ||
07e8c82b | 434 | regular_folio: |
9c276cc6 MK |
435 | #endif |
436 | tlb_change_page_size(tlb, PAGE_SIZE); | |
f3cd4ab0 HD |
437 | start_pte = pte = pte_offset_map_lock(vma->vm_mm, pmd, addr, &ptl); |
438 | if (!start_pte) | |
439 | return 0; | |
9c276cc6 MK |
440 | flush_tlb_batched_pending(mm); |
441 | arch_enter_lazy_mmu_mode(); | |
442 | for (; addr < end; pte++, addr += PAGE_SIZE) { | |
c33c7948 | 443 | ptent = ptep_get(pte); |
9c276cc6 MK |
444 | |
445 | if (pte_none(ptent)) | |
446 | continue; | |
447 | ||
448 | if (!pte_present(ptent)) | |
449 | continue; | |
450 | ||
07e8c82b VMO |
451 | folio = vm_normal_folio(vma, addr, ptent); |
452 | if (!folio || folio_is_zone_device(folio)) | |
9c276cc6 MK |
453 | continue; |
454 | ||
455 | /* | |
456 | * Creating a THP page is expensive so split it only if we | |
457 | * are sure it's worth. Split it if we are only owner. | |
458 | */ | |
07e8c82b | 459 | if (folio_test_large(folio)) { |
f3cd4ab0 HD |
460 | int err; |
461 | ||
2f406263 | 462 | if (folio_estimated_sharers(folio) != 1) |
9c276cc6 | 463 | break; |
07e8c82b | 464 | if (pageout_anon_only_filter && !folio_test_anon(folio)) |
fd3b1bc3 | 465 | break; |
f3cd4ab0 | 466 | if (!folio_trylock(folio)) |
9c276cc6 | 467 | break; |
f3cd4ab0 HD |
468 | folio_get(folio); |
469 | arch_leave_lazy_mmu_mode(); | |
470 | pte_unmap_unlock(start_pte, ptl); | |
471 | start_pte = NULL; | |
472 | err = split_folio(folio); | |
07e8c82b VMO |
473 | folio_unlock(folio); |
474 | folio_put(folio); | |
f3cd4ab0 HD |
475 | if (err) |
476 | break; | |
477 | start_pte = pte = | |
478 | pte_offset_map_lock(mm, pmd, addr, &ptl); | |
479 | if (!start_pte) | |
480 | break; | |
481 | arch_enter_lazy_mmu_mode(); | |
9c276cc6 MK |
482 | pte--; |
483 | addr -= PAGE_SIZE; | |
484 | continue; | |
485 | } | |
486 | ||
58d426a7 | 487 | /* |
07e8c82b VMO |
488 | * Do not interfere with other mappings of this folio and |
489 | * non-LRU folio. | |
58d426a7 | 490 | */ |
07e8c82b | 491 | if (!folio_test_lru(folio) || folio_mapcount(folio) != 1) |
12e967fd MH |
492 | continue; |
493 | ||
07e8c82b | 494 | if (pageout_anon_only_filter && !folio_test_anon(folio)) |
fd3b1bc3 PK |
495 | continue; |
496 | ||
07e8c82b | 497 | VM_BUG_ON_FOLIO(folio_test_large(folio), folio); |
9c276cc6 MK |
498 | |
499 | if (pte_young(ptent)) { | |
500 | ptent = ptep_get_and_clear_full(mm, addr, pte, | |
501 | tlb->fullmm); | |
502 | ptent = pte_mkold(ptent); | |
503 | set_pte_at(mm, addr, pte, ptent); | |
504 | tlb_remove_tlb_entry(tlb, pte, addr); | |
505 | } | |
506 | ||
507 | /* | |
07e8c82b VMO |
508 | * We are deactivating a folio for accelerating reclaiming. |
509 | * VM couldn't reclaim the folio unless we clear PG_young. | |
9c276cc6 MK |
510 | * As a side effect, it makes confuse idle-page tracking |
511 | * because they will miss recent referenced history. | |
512 | */ | |
07e8c82b VMO |
513 | folio_clear_referenced(folio); |
514 | folio_test_clear_young(folio); | |
20c897ea CTK |
515 | if (folio_test_active(folio)) |
516 | folio_set_workingset(folio); | |
d616d512 | 517 | if (pageout) { |
be2d5756 | 518 | if (folio_isolate_lru(folio)) { |
07e8c82b VMO |
519 | if (folio_test_unevictable(folio)) |
520 | folio_putback_lru(folio); | |
82072962 | 521 | else |
07e8c82b | 522 | list_add(&folio->lru, &folio_list); |
82072962 | 523 | } |
d616d512 | 524 | } else |
5a9e3474 | 525 | folio_deactivate(folio); |
9c276cc6 MK |
526 | } |
527 | ||
f3cd4ab0 HD |
528 | if (start_pte) { |
529 | arch_leave_lazy_mmu_mode(); | |
530 | pte_unmap_unlock(start_pte, ptl); | |
531 | } | |
d616d512 | 532 | if (pageout) |
07e8c82b | 533 | reclaim_pages(&folio_list); |
9c276cc6 MK |
534 | cond_resched(); |
535 | ||
536 | return 0; | |
537 | } | |
538 | ||
539 | static const struct mm_walk_ops cold_walk_ops = { | |
d616d512 | 540 | .pmd_entry = madvise_cold_or_pageout_pte_range, |
49b06385 | 541 | .walk_lock = PGWALK_RDLOCK, |
9c276cc6 MK |
542 | }; |
543 | ||
544 | static void madvise_cold_page_range(struct mmu_gather *tlb, | |
545 | struct vm_area_struct *vma, | |
546 | unsigned long addr, unsigned long end) | |
547 | { | |
d616d512 MK |
548 | struct madvise_walk_private walk_private = { |
549 | .pageout = false, | |
550 | .tlb = tlb, | |
551 | }; | |
552 | ||
9c276cc6 | 553 | tlb_start_vma(tlb, vma); |
d616d512 | 554 | walk_page_range(vma->vm_mm, addr, end, &cold_walk_ops, &walk_private); |
9c276cc6 MK |
555 | tlb_end_vma(tlb, vma); |
556 | } | |
557 | ||
a213e5cf HD |
558 | static inline bool can_madv_lru_vma(struct vm_area_struct *vma) |
559 | { | |
9457056a | 560 | return !(vma->vm_flags & (VM_LOCKED|VM_PFNMAP|VM_HUGETLB)); |
a213e5cf HD |
561 | } |
562 | ||
9c276cc6 MK |
563 | static long madvise_cold(struct vm_area_struct *vma, |
564 | struct vm_area_struct **prev, | |
565 | unsigned long start_addr, unsigned long end_addr) | |
566 | { | |
567 | struct mm_struct *mm = vma->vm_mm; | |
568 | struct mmu_gather tlb; | |
569 | ||
570 | *prev = vma; | |
571 | if (!can_madv_lru_vma(vma)) | |
572 | return -EINVAL; | |
573 | ||
574 | lru_add_drain(); | |
a72afd87 | 575 | tlb_gather_mmu(&tlb, mm); |
9c276cc6 | 576 | madvise_cold_page_range(&tlb, vma, start_addr, end_addr); |
ae8eba8b | 577 | tlb_finish_mmu(&tlb); |
9c276cc6 MK |
578 | |
579 | return 0; | |
580 | } | |
581 | ||
1a4e58cc MK |
582 | static void madvise_pageout_page_range(struct mmu_gather *tlb, |
583 | struct vm_area_struct *vma, | |
584 | unsigned long addr, unsigned long end) | |
585 | { | |
d616d512 MK |
586 | struct madvise_walk_private walk_private = { |
587 | .pageout = true, | |
588 | .tlb = tlb, | |
589 | }; | |
590 | ||
1a4e58cc | 591 | tlb_start_vma(tlb, vma); |
d616d512 | 592 | walk_page_range(vma->vm_mm, addr, end, &cold_walk_ops, &walk_private); |
1a4e58cc MK |
593 | tlb_end_vma(tlb, vma); |
594 | } | |
595 | ||
1a4e58cc MK |
596 | static long madvise_pageout(struct vm_area_struct *vma, |
597 | struct vm_area_struct **prev, | |
598 | unsigned long start_addr, unsigned long end_addr) | |
599 | { | |
600 | struct mm_struct *mm = vma->vm_mm; | |
601 | struct mmu_gather tlb; | |
602 | ||
603 | *prev = vma; | |
604 | if (!can_madv_lru_vma(vma)) | |
605 | return -EINVAL; | |
606 | ||
fd3b1bc3 PK |
607 | /* |
608 | * If the VMA belongs to a private file mapping, there can be private | |
609 | * dirty pages which can be paged out if even this process is neither | |
610 | * owner nor write capable of the file. We allow private file mappings | |
611 | * further to pageout dirty anon pages. | |
612 | */ | |
613 | if (!vma_is_anonymous(vma) && (!can_do_file_pageout(vma) && | |
614 | (vma->vm_flags & VM_MAYSHARE))) | |
1a4e58cc MK |
615 | return 0; |
616 | ||
617 | lru_add_drain(); | |
a72afd87 | 618 | tlb_gather_mmu(&tlb, mm); |
1a4e58cc | 619 | madvise_pageout_page_range(&tlb, vma, start_addr, end_addr); |
ae8eba8b | 620 | tlb_finish_mmu(&tlb); |
1a4e58cc MK |
621 | |
622 | return 0; | |
623 | } | |
624 | ||
854e9ed0 MK |
625 | static int madvise_free_pte_range(pmd_t *pmd, unsigned long addr, |
626 | unsigned long end, struct mm_walk *walk) | |
627 | ||
628 | { | |
629 | struct mmu_gather *tlb = walk->private; | |
630 | struct mm_struct *mm = tlb->mm; | |
631 | struct vm_area_struct *vma = walk->vma; | |
632 | spinlock_t *ptl; | |
f3cd4ab0 | 633 | pte_t *start_pte, *pte, ptent; |
98b211d6 | 634 | struct folio *folio; |
64b42bc1 | 635 | int nr_swap = 0; |
b8d3c4c3 MK |
636 | unsigned long next; |
637 | ||
638 | next = pmd_addr_end(addr, end); | |
639 | if (pmd_trans_huge(*pmd)) | |
640 | if (madvise_free_huge_pmd(tlb, vma, pmd, addr, next)) | |
f3cd4ab0 | 641 | return 0; |
854e9ed0 | 642 | |
ed6a7935 | 643 | tlb_change_page_size(tlb, PAGE_SIZE); |
f3cd4ab0 HD |
644 | start_pte = pte = pte_offset_map_lock(mm, pmd, addr, &ptl); |
645 | if (!start_pte) | |
646 | return 0; | |
3ea27719 | 647 | flush_tlb_batched_pending(mm); |
854e9ed0 MK |
648 | arch_enter_lazy_mmu_mode(); |
649 | for (; addr != end; pte++, addr += PAGE_SIZE) { | |
c33c7948 | 650 | ptent = ptep_get(pte); |
854e9ed0 | 651 | |
64b42bc1 | 652 | if (pte_none(ptent)) |
854e9ed0 | 653 | continue; |
64b42bc1 MK |
654 | /* |
655 | * If the pte has swp_entry, just clear page table to | |
656 | * prevent swap-in which is more expensive rather than | |
657 | * (page allocation + zeroing). | |
658 | */ | |
659 | if (!pte_present(ptent)) { | |
660 | swp_entry_t entry; | |
661 | ||
662 | entry = pte_to_swp_entry(ptent); | |
7b49514f ML |
663 | if (!non_swap_entry(entry)) { |
664 | nr_swap--; | |
665 | free_swap_and_cache(entry); | |
666 | pte_clear_not_present_full(mm, addr, pte, tlb->fullmm); | |
667 | } else if (is_hwpoison_entry(entry) || | |
af19487f | 668 | is_poisoned_swp_entry(entry)) { |
7b49514f ML |
669 | pte_clear_not_present_full(mm, addr, pte, tlb->fullmm); |
670 | } | |
64b42bc1 MK |
671 | continue; |
672 | } | |
854e9ed0 | 673 | |
4947ed93 KW |
674 | folio = vm_normal_folio(vma, addr, ptent); |
675 | if (!folio || folio_is_zone_device(folio)) | |
854e9ed0 MK |
676 | continue; |
677 | ||
678 | /* | |
98b211d6 | 679 | * If pmd isn't transhuge but the folio is large and |
854e9ed0 MK |
680 | * is owned by only this process, split it and |
681 | * deactivate all pages. | |
682 | */ | |
98b211d6 | 683 | if (folio_test_large(folio)) { |
f3cd4ab0 HD |
684 | int err; |
685 | ||
0e0e9bd5 | 686 | if (folio_estimated_sharers(folio) != 1) |
f3cd4ab0 HD |
687 | break; |
688 | if (!folio_trylock(folio)) | |
689 | break; | |
98b211d6 | 690 | folio_get(folio); |
f3cd4ab0 HD |
691 | arch_leave_lazy_mmu_mode(); |
692 | pte_unmap_unlock(start_pte, ptl); | |
693 | start_pte = NULL; | |
694 | err = split_folio(folio); | |
98b211d6 MWO |
695 | folio_unlock(folio); |
696 | folio_put(folio); | |
f3cd4ab0 HD |
697 | if (err) |
698 | break; | |
699 | start_pte = pte = | |
700 | pte_offset_map_lock(mm, pmd, addr, &ptl); | |
701 | if (!start_pte) | |
702 | break; | |
703 | arch_enter_lazy_mmu_mode(); | |
854e9ed0 MK |
704 | pte--; |
705 | addr -= PAGE_SIZE; | |
706 | continue; | |
707 | } | |
708 | ||
98b211d6 MWO |
709 | if (folio_test_swapcache(folio) || folio_test_dirty(folio)) { |
710 | if (!folio_trylock(folio)) | |
854e9ed0 MK |
711 | continue; |
712 | /* | |
98b211d6 MWO |
713 | * If folio is shared with others, we mustn't clear |
714 | * the folio's dirty flag. | |
854e9ed0 | 715 | */ |
98b211d6 MWO |
716 | if (folio_mapcount(folio) != 1) { |
717 | folio_unlock(folio); | |
854e9ed0 MK |
718 | continue; |
719 | } | |
720 | ||
98b211d6 MWO |
721 | if (folio_test_swapcache(folio) && |
722 | !folio_free_swap(folio)) { | |
723 | folio_unlock(folio); | |
854e9ed0 MK |
724 | continue; |
725 | } | |
726 | ||
98b211d6 MWO |
727 | folio_clear_dirty(folio); |
728 | folio_unlock(folio); | |
854e9ed0 MK |
729 | } |
730 | ||
731 | if (pte_young(ptent) || pte_dirty(ptent)) { | |
732 | /* | |
733 | * Some of architecture(ex, PPC) don't update TLB | |
734 | * with set_pte_at and tlb_remove_tlb_entry so for | |
735 | * the portability, remap the pte with old|clean | |
736 | * after pte clearing. | |
737 | */ | |
738 | ptent = ptep_get_and_clear_full(mm, addr, pte, | |
739 | tlb->fullmm); | |
740 | ||
741 | ptent = pte_mkold(ptent); | |
742 | ptent = pte_mkclean(ptent); | |
743 | set_pte_at(mm, addr, pte, ptent); | |
744 | tlb_remove_tlb_entry(tlb, pte, addr); | |
745 | } | |
6a6fe9eb | 746 | folio_mark_lazyfree(folio); |
854e9ed0 | 747 | } |
f3cd4ab0 | 748 | |
64b42bc1 MK |
749 | if (nr_swap) { |
750 | if (current->mm == mm) | |
751 | sync_mm_rss(mm); | |
64b42bc1 MK |
752 | add_mm_counter(mm, MM_SWAPENTS, nr_swap); |
753 | } | |
f3cd4ab0 HD |
754 | if (start_pte) { |
755 | arch_leave_lazy_mmu_mode(); | |
756 | pte_unmap_unlock(start_pte, ptl); | |
757 | } | |
854e9ed0 | 758 | cond_resched(); |
f3cd4ab0 | 759 | |
854e9ed0 MK |
760 | return 0; |
761 | } | |
762 | ||
7b86ac33 CH |
763 | static const struct mm_walk_ops madvise_free_walk_ops = { |
764 | .pmd_entry = madvise_free_pte_range, | |
49b06385 | 765 | .walk_lock = PGWALK_RDLOCK, |
7b86ac33 | 766 | }; |
854e9ed0 MK |
767 | |
768 | static int madvise_free_single_vma(struct vm_area_struct *vma, | |
769 | unsigned long start_addr, unsigned long end_addr) | |
770 | { | |
854e9ed0 | 771 | struct mm_struct *mm = vma->vm_mm; |
ac46d4f3 | 772 | struct mmu_notifier_range range; |
854e9ed0 MK |
773 | struct mmu_gather tlb; |
774 | ||
854e9ed0 MK |
775 | /* MADV_FREE works for only anon vma at the moment */ |
776 | if (!vma_is_anonymous(vma)) | |
777 | return -EINVAL; | |
778 | ||
ac46d4f3 JG |
779 | range.start = max(vma->vm_start, start_addr); |
780 | if (range.start >= vma->vm_end) | |
854e9ed0 | 781 | return -EINVAL; |
ac46d4f3 JG |
782 | range.end = min(vma->vm_end, end_addr); |
783 | if (range.end <= vma->vm_start) | |
854e9ed0 | 784 | return -EINVAL; |
7d4a8be0 | 785 | mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm, |
6f4f13e8 | 786 | range.start, range.end); |
854e9ed0 MK |
787 | |
788 | lru_add_drain(); | |
a72afd87 | 789 | tlb_gather_mmu(&tlb, mm); |
854e9ed0 MK |
790 | update_hiwater_rss(mm); |
791 | ||
ac46d4f3 | 792 | mmu_notifier_invalidate_range_start(&range); |
7b86ac33 CH |
793 | tlb_start_vma(&tlb, vma); |
794 | walk_page_range(vma->vm_mm, range.start, range.end, | |
795 | &madvise_free_walk_ops, &tlb); | |
796 | tlb_end_vma(&tlb, vma); | |
ac46d4f3 | 797 | mmu_notifier_invalidate_range_end(&range); |
ae8eba8b | 798 | tlb_finish_mmu(&tlb); |
854e9ed0 MK |
799 | |
800 | return 0; | |
801 | } | |
802 | ||
1da177e4 LT |
803 | /* |
804 | * Application no longer needs these pages. If the pages are dirty, | |
805 | * it's OK to just throw them away. The app will be more careful about | |
806 | * data it wants to keep. Be sure to free swap resources too. The | |
21b85b09 MK |
807 | * zap_page_range_single call sets things up for shrink_active_list to actually |
808 | * free these pages later if no one else has touched them in the meantime, | |
1da177e4 | 809 | * although we could add these pages to a global reuse list for |
7e6cbea3 | 810 | * shrink_active_list to pick up before reclaiming other pages. |
1da177e4 LT |
811 | * |
812 | * NB: This interface discards data rather than pushes it out to swap, | |
813 | * as some implementations do. This has performance implications for | |
814 | * applications like large transactional databases which want to discard | |
815 | * pages in anonymous maps after committing to backing store the data | |
816 | * that was kept in them. There is no reason to write this data out to | |
817 | * the swap area if the application is discarding it. | |
818 | * | |
819 | * An interface that causes the system to free clean pages and flush | |
820 | * dirty pages is already available as msync(MS_INVALIDATE). | |
821 | */ | |
230ca982 MR |
822 | static long madvise_dontneed_single_vma(struct vm_area_struct *vma, |
823 | unsigned long start, unsigned long end) | |
824 | { | |
21b85b09 | 825 | zap_page_range_single(vma, start, end - start, NULL); |
230ca982 MR |
826 | return 0; |
827 | } | |
828 | ||
90e7e7f5 MK |
829 | static bool madvise_dontneed_free_valid_vma(struct vm_area_struct *vma, |
830 | unsigned long start, | |
831 | unsigned long *end, | |
832 | int behavior) | |
833 | { | |
9457056a JW |
834 | if (!is_vm_hugetlb_page(vma)) { |
835 | unsigned int forbidden = VM_PFNMAP; | |
836 | ||
837 | if (behavior != MADV_DONTNEED_LOCKED) | |
838 | forbidden |= VM_LOCKED; | |
839 | ||
840 | return !(vma->vm_flags & forbidden); | |
841 | } | |
90e7e7f5 | 842 | |
9457056a | 843 | if (behavior != MADV_DONTNEED && behavior != MADV_DONTNEED_LOCKED) |
90e7e7f5 MK |
844 | return false; |
845 | if (start & ~huge_page_mask(hstate_vma(vma))) | |
846 | return false; | |
847 | ||
8ebe0a5e RR |
848 | /* |
849 | * Madvise callers expect the length to be rounded up to PAGE_SIZE | |
850 | * boundaries, and may be unaware that this VMA uses huge pages. | |
851 | * Avoid unexpected data loss by rounding down the number of | |
852 | * huge pages freed. | |
853 | */ | |
854 | *end = ALIGN_DOWN(*end, huge_page_size(hstate_vma(vma))); | |
855 | ||
90e7e7f5 MK |
856 | return true; |
857 | } | |
858 | ||
230ca982 MR |
859 | static long madvise_dontneed_free(struct vm_area_struct *vma, |
860 | struct vm_area_struct **prev, | |
861 | unsigned long start, unsigned long end, | |
862 | int behavior) | |
1da177e4 | 863 | { |
0726b01e MK |
864 | struct mm_struct *mm = vma->vm_mm; |
865 | ||
05b74384 | 866 | *prev = vma; |
90e7e7f5 | 867 | if (!madvise_dontneed_free_valid_vma(vma, start, &end, behavior)) |
1da177e4 LT |
868 | return -EINVAL; |
869 | ||
8ebe0a5e RR |
870 | if (start == end) |
871 | return 0; | |
872 | ||
70ccb92f | 873 | if (!userfaultfd_remove(vma, start, end)) { |
c1e8d7c6 | 874 | *prev = NULL; /* mmap_lock has been dropped, prev is stale */ |
70ccb92f | 875 | |
0726b01e | 876 | mmap_read_lock(mm); |
92d5df38 | 877 | vma = vma_lookup(mm, start); |
70ccb92f AA |
878 | if (!vma) |
879 | return -ENOMEM; | |
90e7e7f5 MK |
880 | /* |
881 | * Potential end adjustment for hugetlb vma is OK as | |
882 | * the check below keeps end within vma. | |
883 | */ | |
884 | if (!madvise_dontneed_free_valid_vma(vma, start, &end, | |
885 | behavior)) | |
70ccb92f AA |
886 | return -EINVAL; |
887 | if (end > vma->vm_end) { | |
888 | /* | |
889 | * Don't fail if end > vma->vm_end. If the old | |
f0953a1b | 890 | * vma was split while the mmap_lock was |
70ccb92f | 891 | * released the effect of the concurrent |
230ca982 | 892 | * operation may not cause madvise() to |
70ccb92f AA |
893 | * have an undefined result. There may be an |
894 | * adjacent next vma that we'll walk | |
895 | * next. userfaultfd_remove() will generate an | |
896 | * UFFD_EVENT_REMOVE repetition on the | |
897 | * end-vma->vm_end range, but the manager can | |
898 | * handle a repetition fine. | |
899 | */ | |
900 | end = vma->vm_end; | |
901 | } | |
902 | VM_WARN_ON(start >= end); | |
903 | } | |
230ca982 | 904 | |
9457056a | 905 | if (behavior == MADV_DONTNEED || behavior == MADV_DONTNEED_LOCKED) |
230ca982 MR |
906 | return madvise_dontneed_single_vma(vma, start, end); |
907 | else if (behavior == MADV_FREE) | |
908 | return madvise_free_single_vma(vma, start, end); | |
909 | else | |
910 | return -EINVAL; | |
1da177e4 LT |
911 | } |
912 | ||
4ca9b385 DH |
913 | static long madvise_populate(struct vm_area_struct *vma, |
914 | struct vm_area_struct **prev, | |
915 | unsigned long start, unsigned long end, | |
916 | int behavior) | |
917 | { | |
918 | const bool write = behavior == MADV_POPULATE_WRITE; | |
919 | struct mm_struct *mm = vma->vm_mm; | |
920 | unsigned long tmp_end; | |
921 | int locked = 1; | |
922 | long pages; | |
923 | ||
924 | *prev = vma; | |
925 | ||
926 | while (start < end) { | |
927 | /* | |
928 | * We might have temporarily dropped the lock. For example, | |
929 | * our VMA might have been split. | |
930 | */ | |
931 | if (!vma || start >= vma->vm_end) { | |
531037a0 ML |
932 | vma = vma_lookup(mm, start); |
933 | if (!vma) | |
4ca9b385 DH |
934 | return -ENOMEM; |
935 | } | |
936 | ||
937 | tmp_end = min_t(unsigned long, end, vma->vm_end); | |
938 | /* Populate (prefault) page tables readable/writable. */ | |
939 | pages = faultin_vma_page_range(vma, start, tmp_end, write, | |
940 | &locked); | |
941 | if (!locked) { | |
942 | mmap_read_lock(mm); | |
943 | locked = 1; | |
944 | *prev = NULL; | |
945 | vma = NULL; | |
946 | } | |
947 | if (pages < 0) { | |
948 | switch (pages) { | |
949 | case -EINTR: | |
950 | return -EINTR; | |
eb2faa51 | 951 | case -EINVAL: /* Incompatible mappings / permissions. */ |
4ca9b385 DH |
952 | return -EINVAL; |
953 | case -EHWPOISON: | |
954 | return -EHWPOISON; | |
eb2faa51 DH |
955 | case -EFAULT: /* VM_FAULT_SIGBUS or VM_FAULT_SIGSEGV */ |
956 | return -EFAULT; | |
4ca9b385 DH |
957 | default: |
958 | pr_warn_once("%s: unhandled return value: %ld\n", | |
959 | __func__, pages); | |
960 | fallthrough; | |
961 | case -ENOMEM: | |
962 | return -ENOMEM; | |
963 | } | |
964 | } | |
965 | start += pages * PAGE_SIZE; | |
966 | } | |
967 | return 0; | |
968 | } | |
969 | ||
f6b3ec23 BP |
970 | /* |
971 | * Application wants to free up the pages and associated backing store. | |
972 | * This is effectively punching a hole into the middle of a file. | |
f6b3ec23 BP |
973 | */ |
974 | static long madvise_remove(struct vm_area_struct *vma, | |
00e9fa2d | 975 | struct vm_area_struct **prev, |
f6b3ec23 BP |
976 | unsigned long start, unsigned long end) |
977 | { | |
3f31d075 | 978 | loff_t offset; |
90ed52eb | 979 | int error; |
9ab4233d | 980 | struct file *f; |
0726b01e | 981 | struct mm_struct *mm = vma->vm_mm; |
f6b3ec23 | 982 | |
c1e8d7c6 | 983 | *prev = NULL; /* tell sys_madvise we drop mmap_lock */ |
00e9fa2d | 984 | |
72079ba0 | 985 | if (vma->vm_flags & VM_LOCKED) |
f6b3ec23 BP |
986 | return -EINVAL; |
987 | ||
9ab4233d AL |
988 | f = vma->vm_file; |
989 | ||
990 | if (!f || !f->f_mapping || !f->f_mapping->host) { | |
f6b3ec23 BP |
991 | return -EINVAL; |
992 | } | |
993 | ||
69cf0fac HD |
994 | if ((vma->vm_flags & (VM_SHARED|VM_WRITE)) != (VM_SHARED|VM_WRITE)) |
995 | return -EACCES; | |
996 | ||
f6b3ec23 BP |
997 | offset = (loff_t)(start - vma->vm_start) |
998 | + ((loff_t)vma->vm_pgoff << PAGE_SHIFT); | |
90ed52eb | 999 | |
9ab4233d | 1000 | /* |
9608703e | 1001 | * Filesystem's fallocate may need to take i_rwsem. We need to |
9ab4233d AL |
1002 | * explicitly grab a reference because the vma (and hence the |
1003 | * vma's reference to the file) can go away as soon as we drop | |
c1e8d7c6 | 1004 | * mmap_lock. |
9ab4233d AL |
1005 | */ |
1006 | get_file(f); | |
70ccb92f | 1007 | if (userfaultfd_remove(vma, start, end)) { |
c1e8d7c6 | 1008 | /* mmap_lock was not released by userfaultfd_remove() */ |
0726b01e | 1009 | mmap_read_unlock(mm); |
70ccb92f | 1010 | } |
72c72bdf | 1011 | error = vfs_fallocate(f, |
3f31d075 HD |
1012 | FALLOC_FL_PUNCH_HOLE | FALLOC_FL_KEEP_SIZE, |
1013 | offset, end - start); | |
9ab4233d | 1014 | fput(f); |
0726b01e | 1015 | mmap_read_lock(mm); |
90ed52eb | 1016 | return error; |
f6b3ec23 BP |
1017 | } |
1018 | ||
ac1e9acc CC |
1019 | /* |
1020 | * Apply an madvise behavior to a region of a vma. madvise_update_vma | |
1021 | * will handle splitting a vm area into separate areas, each area with its own | |
1022 | * behavior. | |
1023 | */ | |
1024 | static int madvise_vma_behavior(struct vm_area_struct *vma, | |
1025 | struct vm_area_struct **prev, | |
1026 | unsigned long start, unsigned long end, | |
1027 | unsigned long behavior) | |
1028 | { | |
1029 | int error; | |
942341dc | 1030 | struct anon_vma_name *anon_name; |
ac1e9acc CC |
1031 | unsigned long new_flags = vma->vm_flags; |
1032 | ||
1033 | switch (behavior) { | |
1034 | case MADV_REMOVE: | |
1035 | return madvise_remove(vma, prev, start, end); | |
1036 | case MADV_WILLNEED: | |
1037 | return madvise_willneed(vma, prev, start, end); | |
1038 | case MADV_COLD: | |
1039 | return madvise_cold(vma, prev, start, end); | |
1040 | case MADV_PAGEOUT: | |
1041 | return madvise_pageout(vma, prev, start, end); | |
1042 | case MADV_FREE: | |
1043 | case MADV_DONTNEED: | |
9457056a | 1044 | case MADV_DONTNEED_LOCKED: |
ac1e9acc CC |
1045 | return madvise_dontneed_free(vma, prev, start, end, behavior); |
1046 | case MADV_POPULATE_READ: | |
1047 | case MADV_POPULATE_WRITE: | |
1048 | return madvise_populate(vma, prev, start, end, behavior); | |
1049 | case MADV_NORMAL: | |
1050 | new_flags = new_flags & ~VM_RAND_READ & ~VM_SEQ_READ; | |
1051 | break; | |
1052 | case MADV_SEQUENTIAL: | |
1053 | new_flags = (new_flags & ~VM_RAND_READ) | VM_SEQ_READ; | |
1054 | break; | |
1055 | case MADV_RANDOM: | |
1056 | new_flags = (new_flags & ~VM_SEQ_READ) | VM_RAND_READ; | |
1057 | break; | |
1058 | case MADV_DONTFORK: | |
1059 | new_flags |= VM_DONTCOPY; | |
1060 | break; | |
1061 | case MADV_DOFORK: | |
1062 | if (vma->vm_flags & VM_IO) | |
1063 | return -EINVAL; | |
1064 | new_flags &= ~VM_DONTCOPY; | |
1065 | break; | |
1066 | case MADV_WIPEONFORK: | |
1067 | /* MADV_WIPEONFORK is only supported on anonymous memory. */ | |
1068 | if (vma->vm_file || vma->vm_flags & VM_SHARED) | |
1069 | return -EINVAL; | |
1070 | new_flags |= VM_WIPEONFORK; | |
1071 | break; | |
1072 | case MADV_KEEPONFORK: | |
1073 | new_flags &= ~VM_WIPEONFORK; | |
1074 | break; | |
1075 | case MADV_DONTDUMP: | |
1076 | new_flags |= VM_DONTDUMP; | |
1077 | break; | |
1078 | case MADV_DODUMP: | |
1079 | if (!is_vm_hugetlb_page(vma) && new_flags & VM_SPECIAL) | |
1080 | return -EINVAL; | |
1081 | new_flags &= ~VM_DONTDUMP; | |
1082 | break; | |
1083 | case MADV_MERGEABLE: | |
1084 | case MADV_UNMERGEABLE: | |
1085 | error = ksm_madvise(vma, start, end, behavior, &new_flags); | |
1086 | if (error) | |
1087 | goto out; | |
1088 | break; | |
1089 | case MADV_HUGEPAGE: | |
1090 | case MADV_NOHUGEPAGE: | |
1091 | error = hugepage_madvise(vma, &new_flags, behavior); | |
1092 | if (error) | |
1093 | goto out; | |
1094 | break; | |
7d8faaf1 ZK |
1095 | case MADV_COLLAPSE: |
1096 | return madvise_collapse(vma, prev, start, end); | |
ac1e9acc CC |
1097 | } |
1098 | ||
942341dc SB |
1099 | anon_name = anon_vma_name(vma); |
1100 | anon_vma_name_get(anon_name); | |
9a10064f | 1101 | error = madvise_update_vma(vma, prev, start, end, new_flags, |
942341dc SB |
1102 | anon_name); |
1103 | anon_vma_name_put(anon_name); | |
ac1e9acc CC |
1104 | |
1105 | out: | |
1106 | /* | |
1107 | * madvise() returns EAGAIN if kernel resources, such as | |
1108 | * slab, are temporarily unavailable. | |
1109 | */ | |
1110 | if (error == -ENOMEM) | |
1111 | error = -EAGAIN; | |
1112 | return error; | |
1113 | } | |
1114 | ||
9893e49d AK |
1115 | #ifdef CONFIG_MEMORY_FAILURE |
1116 | /* | |
1117 | * Error injection support for memory error handling. | |
1118 | */ | |
97167a76 AK |
1119 | static int madvise_inject_error(int behavior, |
1120 | unsigned long start, unsigned long end) | |
9893e49d | 1121 | { |
d3cd257c | 1122 | unsigned long size; |
97167a76 | 1123 | |
9893e49d AK |
1124 | if (!capable(CAP_SYS_ADMIN)) |
1125 | return -EPERM; | |
97167a76 | 1126 | |
19bfbe22 | 1127 | |
d3cd257c | 1128 | for (; start < end; start += size) { |
23e7b5c2 | 1129 | unsigned long pfn; |
dc7560b4 | 1130 | struct page *page; |
325c4ef5 AM |
1131 | int ret; |
1132 | ||
97167a76 | 1133 | ret = get_user_pages_fast(start, 1, 0, &page); |
9893e49d AK |
1134 | if (ret != 1) |
1135 | return ret; | |
23e7b5c2 | 1136 | pfn = page_to_pfn(page); |
325c4ef5 | 1137 | |
19bfbe22 AM |
1138 | /* |
1139 | * When soft offlining hugepages, after migrating the page | |
1140 | * we dissolve it, therefore in the second loop "page" will | |
d3cd257c | 1141 | * no longer be a compound page. |
19bfbe22 | 1142 | */ |
d3cd257c | 1143 | size = page_size(compound_head(page)); |
19bfbe22 | 1144 | |
97167a76 AK |
1145 | if (behavior == MADV_SOFT_OFFLINE) { |
1146 | pr_info("Soft offlining pfn %#lx at process virtual address %#lx\n", | |
dc7560b4 | 1147 | pfn, start); |
feec24a6 | 1148 | ret = soft_offline_page(pfn, MF_COUNT_INCREASED); |
dc7560b4 OS |
1149 | } else { |
1150 | pr_info("Injecting memory failure for pfn %#lx at process virtual address %#lx\n", | |
1151 | pfn, start); | |
67f22ba7 | 1152 | ret = memory_failure(pfn, MF_COUNT_INCREASED | MF_SW_SIMULATED); |
d1fe111f | 1153 | if (ret == -EOPNOTSUPP) |
1154 | ret = 0; | |
afcf938e | 1155 | } |
23e7b5c2 | 1156 | |
23a003bf NH |
1157 | if (ret) |
1158 | return ret; | |
9893e49d | 1159 | } |
c461ad6a | 1160 | |
325c4ef5 | 1161 | return 0; |
9893e49d AK |
1162 | } |
1163 | #endif | |
1164 | ||
1ecef9ed | 1165 | static bool |
75927af8 NP |
1166 | madvise_behavior_valid(int behavior) |
1167 | { | |
1168 | switch (behavior) { | |
1169 | case MADV_DOFORK: | |
1170 | case MADV_DONTFORK: | |
1171 | case MADV_NORMAL: | |
1172 | case MADV_SEQUENTIAL: | |
1173 | case MADV_RANDOM: | |
1174 | case MADV_REMOVE: | |
1175 | case MADV_WILLNEED: | |
1176 | case MADV_DONTNEED: | |
9457056a | 1177 | case MADV_DONTNEED_LOCKED: |
854e9ed0 | 1178 | case MADV_FREE: |
9c276cc6 | 1179 | case MADV_COLD: |
1a4e58cc | 1180 | case MADV_PAGEOUT: |
4ca9b385 DH |
1181 | case MADV_POPULATE_READ: |
1182 | case MADV_POPULATE_WRITE: | |
f8af4da3 HD |
1183 | #ifdef CONFIG_KSM |
1184 | case MADV_MERGEABLE: | |
1185 | case MADV_UNMERGEABLE: | |
0af4e98b AA |
1186 | #endif |
1187 | #ifdef CONFIG_TRANSPARENT_HUGEPAGE | |
1188 | case MADV_HUGEPAGE: | |
a664b2d8 | 1189 | case MADV_NOHUGEPAGE: |
7d8faaf1 | 1190 | case MADV_COLLAPSE: |
f8af4da3 | 1191 | #endif |
accb61fe JB |
1192 | case MADV_DONTDUMP: |
1193 | case MADV_DODUMP: | |
d2cd9ede RR |
1194 | case MADV_WIPEONFORK: |
1195 | case MADV_KEEPONFORK: | |
5e451be7 AK |
1196 | #ifdef CONFIG_MEMORY_FAILURE |
1197 | case MADV_SOFT_OFFLINE: | |
1198 | case MADV_HWPOISON: | |
1199 | #endif | |
1ecef9ed | 1200 | return true; |
75927af8 NP |
1201 | |
1202 | default: | |
1ecef9ed | 1203 | return false; |
75927af8 NP |
1204 | } |
1205 | } | |
3866ea90 | 1206 | |
876b4a18 | 1207 | static bool process_madvise_behavior_valid(int behavior) |
ecb8ac8b MK |
1208 | { |
1209 | switch (behavior) { | |
1210 | case MADV_COLD: | |
1211 | case MADV_PAGEOUT: | |
d5fffc5a | 1212 | case MADV_WILLNEED: |
876b4a18 | 1213 | case MADV_COLLAPSE: |
ecb8ac8b MK |
1214 | return true; |
1215 | default: | |
1216 | return false; | |
1217 | } | |
1218 | } | |
1219 | ||
ac1e9acc CC |
1220 | /* |
1221 | * Walk the vmas in range [start,end), and call the visit function on each one. | |
1222 | * The visit function will get start and end parameters that cover the overlap | |
1223 | * between the current vma and the original range. Any unmapped regions in the | |
1224 | * original range will result in this function returning -ENOMEM while still | |
1225 | * calling the visit function on all of the existing vmas in the range. | |
1226 | * Must be called with the mmap_lock held for reading or writing. | |
1227 | */ | |
1228 | static | |
1229 | int madvise_walk_vmas(struct mm_struct *mm, unsigned long start, | |
1230 | unsigned long end, unsigned long arg, | |
1231 | int (*visit)(struct vm_area_struct *vma, | |
1232 | struct vm_area_struct **prev, unsigned long start, | |
1233 | unsigned long end, unsigned long arg)) | |
1234 | { | |
1235 | struct vm_area_struct *vma; | |
1236 | struct vm_area_struct *prev; | |
1237 | unsigned long tmp; | |
1238 | int unmapped_error = 0; | |
1239 | ||
1240 | /* | |
1241 | * If the interval [start,end) covers some unmapped address | |
1242 | * ranges, just ignore them, but return -ENOMEM at the end. | |
1243 | * - different from the way of handling in mlock etc. | |
1244 | */ | |
1245 | vma = find_vma_prev(mm, start, &prev); | |
1246 | if (vma && start > vma->vm_start) | |
1247 | prev = vma; | |
1248 | ||
1249 | for (;;) { | |
1250 | int error; | |
1251 | ||
1252 | /* Still start < end. */ | |
1253 | if (!vma) | |
1254 | return -ENOMEM; | |
1255 | ||
1256 | /* Here start < (end|vma->vm_end). */ | |
1257 | if (start < vma->vm_start) { | |
1258 | unmapped_error = -ENOMEM; | |
1259 | start = vma->vm_start; | |
1260 | if (start >= end) | |
1261 | break; | |
1262 | } | |
1263 | ||
1264 | /* Here vma->vm_start <= start < (end|vma->vm_end) */ | |
1265 | tmp = vma->vm_end; | |
1266 | if (end < tmp) | |
1267 | tmp = end; | |
1268 | ||
1269 | /* Here vma->vm_start <= start < tmp <= (end|vma->vm_end). */ | |
1270 | error = visit(vma, &prev, start, tmp, arg); | |
1271 | if (error) | |
1272 | return error; | |
1273 | start = tmp; | |
1274 | if (prev && start < prev->vm_end) | |
1275 | start = prev->vm_end; | |
1276 | if (start >= end) | |
1277 | break; | |
1278 | if (prev) | |
35474818 | 1279 | vma = find_vma(mm, prev->vm_end); |
ac1e9acc CC |
1280 | else /* madvise_remove dropped mmap_lock */ |
1281 | vma = find_vma(mm, start); | |
1282 | } | |
1283 | ||
1284 | return unmapped_error; | |
1285 | } | |
1286 | ||
9a10064f CC |
1287 | #ifdef CONFIG_ANON_VMA_NAME |
1288 | static int madvise_vma_anon_name(struct vm_area_struct *vma, | |
1289 | struct vm_area_struct **prev, | |
1290 | unsigned long start, unsigned long end, | |
5c26f6ac | 1291 | unsigned long anon_name) |
9a10064f CC |
1292 | { |
1293 | int error; | |
1294 | ||
1295 | /* Only anonymous mappings can be named */ | |
d09e8ca6 | 1296 | if (vma->vm_file && !vma_is_anon_shmem(vma)) |
9a10064f CC |
1297 | return -EBADF; |
1298 | ||
1299 | error = madvise_update_vma(vma, prev, start, end, vma->vm_flags, | |
5c26f6ac | 1300 | (struct anon_vma_name *)anon_name); |
9a10064f CC |
1301 | |
1302 | /* | |
1303 | * madvise() returns EAGAIN if kernel resources, such as | |
1304 | * slab, are temporarily unavailable. | |
1305 | */ | |
1306 | if (error == -ENOMEM) | |
1307 | error = -EAGAIN; | |
1308 | return error; | |
1309 | } | |
1310 | ||
1311 | int madvise_set_anon_name(struct mm_struct *mm, unsigned long start, | |
5c26f6ac | 1312 | unsigned long len_in, struct anon_vma_name *anon_name) |
9a10064f CC |
1313 | { |
1314 | unsigned long end; | |
1315 | unsigned long len; | |
1316 | ||
1317 | if (start & ~PAGE_MASK) | |
1318 | return -EINVAL; | |
1319 | len = (len_in + ~PAGE_MASK) & PAGE_MASK; | |
1320 | ||
1321 | /* Check to see whether len was rounded up from small -ve to zero */ | |
1322 | if (len_in && !len) | |
1323 | return -EINVAL; | |
1324 | ||
1325 | end = start + len; | |
1326 | if (end < start) | |
1327 | return -EINVAL; | |
1328 | ||
1329 | if (end == start) | |
1330 | return 0; | |
1331 | ||
5c26f6ac | 1332 | return madvise_walk_vmas(mm, start, end, (unsigned long)anon_name, |
9a10064f CC |
1333 | madvise_vma_anon_name); |
1334 | } | |
1335 | #endif /* CONFIG_ANON_VMA_NAME */ | |
1da177e4 LT |
1336 | /* |
1337 | * The madvise(2) system call. | |
1338 | * | |
1339 | * Applications can use madvise() to advise the kernel how it should | |
1340 | * handle paging I/O in this VM area. The idea is to help the kernel | |
1341 | * use appropriate read-ahead and caching techniques. The information | |
1342 | * provided is advisory only, and can be safely disregarded by the | |
1343 | * kernel without affecting the correct operation of the application. | |
1344 | * | |
1345 | * behavior values: | |
1346 | * MADV_NORMAL - the default behavior is to read clusters. This | |
1347 | * results in some read-ahead and read-behind. | |
1348 | * MADV_RANDOM - the system should read the minimum amount of data | |
1349 | * on any access, since it is unlikely that the appli- | |
1350 | * cation will need more than what it asks for. | |
1351 | * MADV_SEQUENTIAL - pages in the given range will probably be accessed | |
1352 | * once, so they can be aggressively read ahead, and | |
1353 | * can be freed soon after they are accessed. | |
1354 | * MADV_WILLNEED - the application is notifying the system to read | |
1355 | * some pages ahead. | |
1356 | * MADV_DONTNEED - the application is finished with the given range, | |
1357 | * so the kernel can free resources associated with it. | |
d7206a70 NH |
1358 | * MADV_FREE - the application marks pages in the given range as lazy free, |
1359 | * where actual purges are postponed until memory pressure happens. | |
f6b3ec23 BP |
1360 | * MADV_REMOVE - the application wants to free up the given range of |
1361 | * pages and associated backing store. | |
3866ea90 HD |
1362 | * MADV_DONTFORK - omit this area from child's address space when forking: |
1363 | * typically, to avoid COWing pages pinned by get_user_pages(). | |
1364 | * MADV_DOFORK - cancel MADV_DONTFORK: no longer omit this area when forking. | |
c02c3009 YS |
1365 | * MADV_WIPEONFORK - present the child process with zero-filled memory in this |
1366 | * range after a fork. | |
1367 | * MADV_KEEPONFORK - undo the effect of MADV_WIPEONFORK | |
d7206a70 NH |
1368 | * MADV_HWPOISON - trigger memory error handler as if the given memory range |
1369 | * were corrupted by unrecoverable hardware memory failure. | |
1370 | * MADV_SOFT_OFFLINE - try to soft-offline the given range of memory. | |
f8af4da3 HD |
1371 | * MADV_MERGEABLE - the application recommends that KSM try to merge pages in |
1372 | * this area with pages of identical content from other such areas. | |
1373 | * MADV_UNMERGEABLE- cancel MADV_MERGEABLE: no longer merge pages with others. | |
d7206a70 NH |
1374 | * MADV_HUGEPAGE - the application wants to back the given range by transparent |
1375 | * huge pages in the future. Existing pages might be coalesced and | |
1376 | * new pages might be allocated as THP. | |
1377 | * MADV_NOHUGEPAGE - mark the given range as not worth being backed by | |
1378 | * transparent huge pages so the existing pages will not be | |
1379 | * coalesced into THP and new pages will not be allocated as THP. | |
7d8faaf1 | 1380 | * MADV_COLLAPSE - synchronously coalesce pages into new THP. |
d7206a70 NH |
1381 | * MADV_DONTDUMP - the application wants to prevent pages in the given range |
1382 | * from being included in its core dump. | |
1383 | * MADV_DODUMP - cancel MADV_DONTDUMP: no longer exclude from core dump. | |
ecb8ac8b MK |
1384 | * MADV_COLD - the application is not expected to use this memory soon, |
1385 | * deactivate pages in this range so that they can be reclaimed | |
f0953a1b | 1386 | * easily if memory pressure happens. |
ecb8ac8b MK |
1387 | * MADV_PAGEOUT - the application is not expected to use this memory soon, |
1388 | * page out the pages in this range immediately. | |
4ca9b385 DH |
1389 | * MADV_POPULATE_READ - populate (prefault) page tables readable by |
1390 | * triggering read faults if required | |
1391 | * MADV_POPULATE_WRITE - populate (prefault) page tables writable by | |
1392 | * triggering write faults if required | |
1da177e4 LT |
1393 | * |
1394 | * return values: | |
1395 | * zero - success | |
1396 | * -EINVAL - start + len < 0, start is not page-aligned, | |
1397 | * "behavior" is not a valid value, or application | |
c02c3009 YS |
1398 | * is attempting to release locked or shared pages, |
1399 | * or the specified address range includes file, Huge TLB, | |
1400 | * MAP_SHARED or VMPFNMAP range. | |
1da177e4 LT |
1401 | * -ENOMEM - addresses in the specified range are not currently |
1402 | * mapped, or are outside the AS of the process. | |
1403 | * -EIO - an I/O error occurred while paging in data. | |
1404 | * -EBADF - map exists, but area maps something that isn't a file. | |
1405 | * -EAGAIN - a kernel resource was temporarily unavailable. | |
1406 | */ | |
0726b01e | 1407 | int do_madvise(struct mm_struct *mm, unsigned long start, size_t len_in, int behavior) |
1da177e4 | 1408 | { |
ac1e9acc CC |
1409 | unsigned long end; |
1410 | int error; | |
f7977793 | 1411 | int write; |
1da177e4 | 1412 | size_t len; |
1998cc04 | 1413 | struct blk_plug plug; |
1da177e4 | 1414 | |
75927af8 | 1415 | if (!madvise_behavior_valid(behavior)) |
ac1e9acc | 1416 | return -EINVAL; |
75927af8 | 1417 | |
df6c6500 | 1418 | if (!PAGE_ALIGNED(start)) |
ac1e9acc | 1419 | return -EINVAL; |
df6c6500 | 1420 | len = PAGE_ALIGN(len_in); |
1da177e4 LT |
1421 | |
1422 | /* Check to see whether len was rounded up from small -ve to zero */ | |
1423 | if (len_in && !len) | |
ac1e9acc | 1424 | return -EINVAL; |
1da177e4 LT |
1425 | |
1426 | end = start + len; | |
1427 | if (end < start) | |
ac1e9acc | 1428 | return -EINVAL; |
1da177e4 | 1429 | |
1da177e4 | 1430 | if (end == start) |
ac1e9acc | 1431 | return 0; |
84d96d89 | 1432 | |
5e451be7 AK |
1433 | #ifdef CONFIG_MEMORY_FAILURE |
1434 | if (behavior == MADV_HWPOISON || behavior == MADV_SOFT_OFFLINE) | |
1435 | return madvise_inject_error(behavior, start, start + len_in); | |
1436 | #endif | |
1437 | ||
84d96d89 | 1438 | write = madvise_need_mmap_write(behavior); |
dc0ef0df | 1439 | if (write) { |
0726b01e | 1440 | if (mmap_write_lock_killable(mm)) |
dc0ef0df MH |
1441 | return -EINTR; |
1442 | } else { | |
0726b01e | 1443 | mmap_read_lock(mm); |
dc0ef0df | 1444 | } |
1da177e4 | 1445 | |
428e106a KS |
1446 | start = untagged_addr_remote(mm, start); |
1447 | end = start + len; | |
1448 | ||
1998cc04 | 1449 | blk_start_plug(&plug); |
ac1e9acc CC |
1450 | error = madvise_walk_vmas(mm, start, end, behavior, |
1451 | madvise_vma_behavior); | |
84d96d89 | 1452 | blk_finish_plug(&plug); |
f7977793 | 1453 | if (write) |
0726b01e | 1454 | mmap_write_unlock(mm); |
0a27a14a | 1455 | else |
0726b01e | 1456 | mmap_read_unlock(mm); |
0a27a14a | 1457 | |
1da177e4 LT |
1458 | return error; |
1459 | } | |
db08ca25 JA |
1460 | |
1461 | SYSCALL_DEFINE3(madvise, unsigned long, start, size_t, len_in, int, behavior) | |
1462 | { | |
0726b01e | 1463 | return do_madvise(current->mm, start, len_in, behavior); |
db08ca25 | 1464 | } |
ecb8ac8b MK |
1465 | |
1466 | SYSCALL_DEFINE5(process_madvise, int, pidfd, const struct iovec __user *, vec, | |
1467 | size_t, vlen, int, behavior, unsigned int, flags) | |
1468 | { | |
1469 | ssize_t ret; | |
95e49cf8 | 1470 | struct iovec iovstack[UIO_FASTIOV]; |
ecb8ac8b MK |
1471 | struct iovec *iov = iovstack; |
1472 | struct iov_iter iter; | |
ecb8ac8b MK |
1473 | struct task_struct *task; |
1474 | struct mm_struct *mm; | |
1475 | size_t total_len; | |
1476 | unsigned int f_flags; | |
1477 | ||
1478 | if (flags != 0) { | |
1479 | ret = -EINVAL; | |
1480 | goto out; | |
1481 | } | |
1482 | ||
de4eda9d | 1483 | ret = import_iovec(ITER_DEST, vec, vlen, ARRAY_SIZE(iovstack), &iov, &iter); |
ecb8ac8b MK |
1484 | if (ret < 0) |
1485 | goto out; | |
1486 | ||
ee9955d6 CB |
1487 | task = pidfd_get_task(pidfd, &f_flags); |
1488 | if (IS_ERR(task)) { | |
1489 | ret = PTR_ERR(task); | |
ecb8ac8b MK |
1490 | goto free_iov; |
1491 | } | |
1492 | ||
a68a0262 | 1493 | if (!process_madvise_behavior_valid(behavior)) { |
ecb8ac8b MK |
1494 | ret = -EINVAL; |
1495 | goto release_task; | |
1496 | } | |
1497 | ||
96cfe2c0 SB |
1498 | /* Require PTRACE_MODE_READ to avoid leaking ASLR metadata. */ |
1499 | mm = mm_access(task, PTRACE_MODE_READ_FSCREDS); | |
ecb8ac8b MK |
1500 | if (IS_ERR_OR_NULL(mm)) { |
1501 | ret = IS_ERR(mm) ? PTR_ERR(mm) : -ESRCH; | |
1502 | goto release_task; | |
1503 | } | |
1504 | ||
96cfe2c0 SB |
1505 | /* |
1506 | * Require CAP_SYS_NICE for influencing process performance. Note that | |
1507 | * only non-destructive hints are currently supported. | |
1508 | */ | |
1509 | if (!capable(CAP_SYS_NICE)) { | |
1510 | ret = -EPERM; | |
1511 | goto release_mm; | |
1512 | } | |
1513 | ||
ecb8ac8b MK |
1514 | total_len = iov_iter_count(&iter); |
1515 | ||
1516 | while (iov_iter_count(&iter)) { | |
95e49cf8 JA |
1517 | ret = do_madvise(mm, (unsigned long)iter_iov_addr(&iter), |
1518 | iter_iov_len(&iter), behavior); | |
e6b0a7b3 | 1519 | if (ret < 0) |
ecb8ac8b | 1520 | break; |
95e49cf8 | 1521 | iov_iter_advance(&iter, iter_iov_len(&iter)); |
ecb8ac8b MK |
1522 | } |
1523 | ||
5bd009c7 | 1524 | ret = (total_len - iov_iter_count(&iter)) ? : ret; |
ecb8ac8b | 1525 | |
96cfe2c0 | 1526 | release_mm: |
ecb8ac8b | 1527 | mmput(mm); |
ecb8ac8b MK |
1528 | release_task: |
1529 | put_task_struct(task); | |
ecb8ac8b MK |
1530 | free_iov: |
1531 | kfree(iov); | |
1532 | out: | |
1533 | return ret; | |
1534 | } |