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Commit | Line | Data |
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1da177e4 LT |
1 | /* |
2 | * mm/rmap.c - physical to virtual reverse mappings | |
3 | * | |
4 | * Copyright 2001, Rik van Riel <[email protected]> | |
5 | * Released under the General Public License (GPL). | |
6 | * | |
7 | * Simple, low overhead reverse mapping scheme. | |
8 | * Please try to keep this thing as modular as possible. | |
9 | * | |
10 | * Provides methods for unmapping each kind of mapped page: | |
11 | * the anon methods track anonymous pages, and | |
12 | * the file methods track pages belonging to an inode. | |
13 | * | |
14 | * Original design by Rik van Riel <[email protected]> 2001 | |
15 | * File methods by Dave McCracken <[email protected]> 2003, 2004 | |
16 | * Anonymous methods by Andrea Arcangeli <[email protected]> 2004 | |
98f32602 | 17 | * Contributions by Hugh Dickins 2003, 2004 |
1da177e4 LT |
18 | */ |
19 | ||
20 | /* | |
21 | * Lock ordering in mm: | |
22 | * | |
1b1dcc1b | 23 | * inode->i_mutex (while writing or truncating, not reading or faulting) |
82591e6e NP |
24 | * mm->mmap_sem |
25 | * page->flags PG_locked (lock_page) | |
3d48ae45 | 26 | * mapping->i_mmap_mutex |
2b575eb6 | 27 | * anon_vma->mutex |
82591e6e NP |
28 | * mm->page_table_lock or pte_lock |
29 | * zone->lru_lock (in mark_page_accessed, isolate_lru_page) | |
30 | * swap_lock (in swap_duplicate, swap_info_get) | |
31 | * mmlist_lock (in mmput, drain_mmlist and others) | |
32 | * mapping->private_lock (in __set_page_dirty_buffers) | |
250df6ed | 33 | * inode->i_lock (in set_page_dirty's __mark_inode_dirty) |
f758eeab | 34 | * bdi.wb->list_lock (in set_page_dirty's __mark_inode_dirty) |
82591e6e NP |
35 | * sb_lock (within inode_lock in fs/fs-writeback.c) |
36 | * mapping->tree_lock (widely used, in set_page_dirty, | |
37 | * in arch-dependent flush_dcache_mmap_lock, | |
f758eeab | 38 | * within bdi.wb->list_lock in __sync_single_inode) |
6a46079c | 39 | * |
9b679320 PZ |
40 | * anon_vma->mutex,mapping->i_mutex (memory_failure, collect_procs_anon) |
41 | * ->tasklist_lock | |
6a46079c | 42 | * pte map lock |
1da177e4 LT |
43 | */ |
44 | ||
45 | #include <linux/mm.h> | |
46 | #include <linux/pagemap.h> | |
47 | #include <linux/swap.h> | |
48 | #include <linux/swapops.h> | |
49 | #include <linux/slab.h> | |
50 | #include <linux/init.h> | |
5ad64688 | 51 | #include <linux/ksm.h> |
1da177e4 LT |
52 | #include <linux/rmap.h> |
53 | #include <linux/rcupdate.h> | |
b95f1b31 | 54 | #include <linux/export.h> |
8a9f3ccd | 55 | #include <linux/memcontrol.h> |
cddb8a5c | 56 | #include <linux/mmu_notifier.h> |
64cdd548 | 57 | #include <linux/migrate.h> |
0fe6e20b | 58 | #include <linux/hugetlb.h> |
1da177e4 LT |
59 | |
60 | #include <asm/tlbflush.h> | |
61 | ||
b291f000 NP |
62 | #include "internal.h" |
63 | ||
fdd2e5f8 | 64 | static struct kmem_cache *anon_vma_cachep; |
5beb4930 | 65 | static struct kmem_cache *anon_vma_chain_cachep; |
fdd2e5f8 AB |
66 | |
67 | static inline struct anon_vma *anon_vma_alloc(void) | |
68 | { | |
01d8b20d PZ |
69 | struct anon_vma *anon_vma; |
70 | ||
71 | anon_vma = kmem_cache_alloc(anon_vma_cachep, GFP_KERNEL); | |
72 | if (anon_vma) { | |
73 | atomic_set(&anon_vma->refcount, 1); | |
74 | /* | |
75 | * Initialise the anon_vma root to point to itself. If called | |
76 | * from fork, the root will be reset to the parents anon_vma. | |
77 | */ | |
78 | anon_vma->root = anon_vma; | |
79 | } | |
80 | ||
81 | return anon_vma; | |
fdd2e5f8 AB |
82 | } |
83 | ||
01d8b20d | 84 | static inline void anon_vma_free(struct anon_vma *anon_vma) |
fdd2e5f8 | 85 | { |
01d8b20d | 86 | VM_BUG_ON(atomic_read(&anon_vma->refcount)); |
88c22088 PZ |
87 | |
88 | /* | |
89 | * Synchronize against page_lock_anon_vma() such that | |
90 | * we can safely hold the lock without the anon_vma getting | |
91 | * freed. | |
92 | * | |
93 | * Relies on the full mb implied by the atomic_dec_and_test() from | |
94 | * put_anon_vma() against the acquire barrier implied by | |
95 | * mutex_trylock() from page_lock_anon_vma(). This orders: | |
96 | * | |
97 | * page_lock_anon_vma() VS put_anon_vma() | |
98 | * mutex_trylock() atomic_dec_and_test() | |
99 | * LOCK MB | |
100 | * atomic_read() mutex_is_locked() | |
101 | * | |
102 | * LOCK should suffice since the actual taking of the lock must | |
103 | * happen _before_ what follows. | |
104 | */ | |
105 | if (mutex_is_locked(&anon_vma->root->mutex)) { | |
106 | anon_vma_lock(anon_vma); | |
107 | anon_vma_unlock(anon_vma); | |
108 | } | |
109 | ||
fdd2e5f8 AB |
110 | kmem_cache_free(anon_vma_cachep, anon_vma); |
111 | } | |
1da177e4 | 112 | |
dd34739c | 113 | static inline struct anon_vma_chain *anon_vma_chain_alloc(gfp_t gfp) |
5beb4930 | 114 | { |
dd34739c | 115 | return kmem_cache_alloc(anon_vma_chain_cachep, gfp); |
5beb4930 RR |
116 | } |
117 | ||
e574b5fd | 118 | static void anon_vma_chain_free(struct anon_vma_chain *anon_vma_chain) |
5beb4930 RR |
119 | { |
120 | kmem_cache_free(anon_vma_chain_cachep, anon_vma_chain); | |
121 | } | |
122 | ||
6583a843 KC |
123 | static void anon_vma_chain_link(struct vm_area_struct *vma, |
124 | struct anon_vma_chain *avc, | |
125 | struct anon_vma *anon_vma) | |
126 | { | |
127 | avc->vma = vma; | |
128 | avc->anon_vma = anon_vma; | |
129 | list_add(&avc->same_vma, &vma->anon_vma_chain); | |
bf181b9f | 130 | anon_vma_interval_tree_insert(avc, &anon_vma->rb_root); |
6583a843 KC |
131 | } |
132 | ||
d9d332e0 LT |
133 | /** |
134 | * anon_vma_prepare - attach an anon_vma to a memory region | |
135 | * @vma: the memory region in question | |
136 | * | |
137 | * This makes sure the memory mapping described by 'vma' has | |
138 | * an 'anon_vma' attached to it, so that we can associate the | |
139 | * anonymous pages mapped into it with that anon_vma. | |
140 | * | |
141 | * The common case will be that we already have one, but if | |
23a0790a | 142 | * not we either need to find an adjacent mapping that we |
d9d332e0 LT |
143 | * can re-use the anon_vma from (very common when the only |
144 | * reason for splitting a vma has been mprotect()), or we | |
145 | * allocate a new one. | |
146 | * | |
147 | * Anon-vma allocations are very subtle, because we may have | |
148 | * optimistically looked up an anon_vma in page_lock_anon_vma() | |
149 | * and that may actually touch the spinlock even in the newly | |
150 | * allocated vma (it depends on RCU to make sure that the | |
151 | * anon_vma isn't actually destroyed). | |
152 | * | |
153 | * As a result, we need to do proper anon_vma locking even | |
154 | * for the new allocation. At the same time, we do not want | |
155 | * to do any locking for the common case of already having | |
156 | * an anon_vma. | |
157 | * | |
158 | * This must be called with the mmap_sem held for reading. | |
159 | */ | |
1da177e4 LT |
160 | int anon_vma_prepare(struct vm_area_struct *vma) |
161 | { | |
162 | struct anon_vma *anon_vma = vma->anon_vma; | |
5beb4930 | 163 | struct anon_vma_chain *avc; |
1da177e4 LT |
164 | |
165 | might_sleep(); | |
166 | if (unlikely(!anon_vma)) { | |
167 | struct mm_struct *mm = vma->vm_mm; | |
d9d332e0 | 168 | struct anon_vma *allocated; |
1da177e4 | 169 | |
dd34739c | 170 | avc = anon_vma_chain_alloc(GFP_KERNEL); |
5beb4930 RR |
171 | if (!avc) |
172 | goto out_enomem; | |
173 | ||
1da177e4 | 174 | anon_vma = find_mergeable_anon_vma(vma); |
d9d332e0 LT |
175 | allocated = NULL; |
176 | if (!anon_vma) { | |
1da177e4 LT |
177 | anon_vma = anon_vma_alloc(); |
178 | if (unlikely(!anon_vma)) | |
5beb4930 | 179 | goto out_enomem_free_avc; |
1da177e4 | 180 | allocated = anon_vma; |
1da177e4 LT |
181 | } |
182 | ||
cba48b98 | 183 | anon_vma_lock(anon_vma); |
1da177e4 LT |
184 | /* page_table_lock to protect against threads */ |
185 | spin_lock(&mm->page_table_lock); | |
186 | if (likely(!vma->anon_vma)) { | |
187 | vma->anon_vma = anon_vma; | |
6583a843 | 188 | anon_vma_chain_link(vma, avc, anon_vma); |
1da177e4 | 189 | allocated = NULL; |
31f2b0eb | 190 | avc = NULL; |
1da177e4 LT |
191 | } |
192 | spin_unlock(&mm->page_table_lock); | |
cba48b98 | 193 | anon_vma_unlock(anon_vma); |
31f2b0eb ON |
194 | |
195 | if (unlikely(allocated)) | |
01d8b20d | 196 | put_anon_vma(allocated); |
31f2b0eb | 197 | if (unlikely(avc)) |
5beb4930 | 198 | anon_vma_chain_free(avc); |
1da177e4 LT |
199 | } |
200 | return 0; | |
5beb4930 RR |
201 | |
202 | out_enomem_free_avc: | |
203 | anon_vma_chain_free(avc); | |
204 | out_enomem: | |
205 | return -ENOMEM; | |
1da177e4 LT |
206 | } |
207 | ||
bb4aa396 LT |
208 | /* |
209 | * This is a useful helper function for locking the anon_vma root as | |
210 | * we traverse the vma->anon_vma_chain, looping over anon_vma's that | |
211 | * have the same vma. | |
212 | * | |
213 | * Such anon_vma's should have the same root, so you'd expect to see | |
214 | * just a single mutex_lock for the whole traversal. | |
215 | */ | |
216 | static inline struct anon_vma *lock_anon_vma_root(struct anon_vma *root, struct anon_vma *anon_vma) | |
217 | { | |
218 | struct anon_vma *new_root = anon_vma->root; | |
219 | if (new_root != root) { | |
220 | if (WARN_ON_ONCE(root)) | |
221 | mutex_unlock(&root->mutex); | |
222 | root = new_root; | |
223 | mutex_lock(&root->mutex); | |
224 | } | |
225 | return root; | |
226 | } | |
227 | ||
228 | static inline void unlock_anon_vma_root(struct anon_vma *root) | |
229 | { | |
230 | if (root) | |
231 | mutex_unlock(&root->mutex); | |
232 | } | |
233 | ||
5beb4930 RR |
234 | /* |
235 | * Attach the anon_vmas from src to dst. | |
236 | * Returns 0 on success, -ENOMEM on failure. | |
237 | */ | |
238 | int anon_vma_clone(struct vm_area_struct *dst, struct vm_area_struct *src) | |
1da177e4 | 239 | { |
5beb4930 | 240 | struct anon_vma_chain *avc, *pavc; |
bb4aa396 | 241 | struct anon_vma *root = NULL; |
5beb4930 | 242 | |
646d87b4 | 243 | list_for_each_entry_reverse(pavc, &src->anon_vma_chain, same_vma) { |
bb4aa396 LT |
244 | struct anon_vma *anon_vma; |
245 | ||
dd34739c LT |
246 | avc = anon_vma_chain_alloc(GFP_NOWAIT | __GFP_NOWARN); |
247 | if (unlikely(!avc)) { | |
248 | unlock_anon_vma_root(root); | |
249 | root = NULL; | |
250 | avc = anon_vma_chain_alloc(GFP_KERNEL); | |
251 | if (!avc) | |
252 | goto enomem_failure; | |
253 | } | |
bb4aa396 LT |
254 | anon_vma = pavc->anon_vma; |
255 | root = lock_anon_vma_root(root, anon_vma); | |
256 | anon_vma_chain_link(dst, avc, anon_vma); | |
5beb4930 | 257 | } |
bb4aa396 | 258 | unlock_anon_vma_root(root); |
5beb4930 | 259 | return 0; |
1da177e4 | 260 | |
5beb4930 RR |
261 | enomem_failure: |
262 | unlink_anon_vmas(dst); | |
263 | return -ENOMEM; | |
1da177e4 LT |
264 | } |
265 | ||
5beb4930 RR |
266 | /* |
267 | * Attach vma to its own anon_vma, as well as to the anon_vmas that | |
268 | * the corresponding VMA in the parent process is attached to. | |
269 | * Returns 0 on success, non-zero on failure. | |
270 | */ | |
271 | int anon_vma_fork(struct vm_area_struct *vma, struct vm_area_struct *pvma) | |
1da177e4 | 272 | { |
5beb4930 RR |
273 | struct anon_vma_chain *avc; |
274 | struct anon_vma *anon_vma; | |
1da177e4 | 275 | |
5beb4930 RR |
276 | /* Don't bother if the parent process has no anon_vma here. */ |
277 | if (!pvma->anon_vma) | |
278 | return 0; | |
279 | ||
280 | /* | |
281 | * First, attach the new VMA to the parent VMA's anon_vmas, | |
282 | * so rmap can find non-COWed pages in child processes. | |
283 | */ | |
284 | if (anon_vma_clone(vma, pvma)) | |
285 | return -ENOMEM; | |
286 | ||
287 | /* Then add our own anon_vma. */ | |
288 | anon_vma = anon_vma_alloc(); | |
289 | if (!anon_vma) | |
290 | goto out_error; | |
dd34739c | 291 | avc = anon_vma_chain_alloc(GFP_KERNEL); |
5beb4930 RR |
292 | if (!avc) |
293 | goto out_error_free_anon_vma; | |
5c341ee1 RR |
294 | |
295 | /* | |
296 | * The root anon_vma's spinlock is the lock actually used when we | |
297 | * lock any of the anon_vmas in this anon_vma tree. | |
298 | */ | |
299 | anon_vma->root = pvma->anon_vma->root; | |
76545066 | 300 | /* |
01d8b20d PZ |
301 | * With refcounts, an anon_vma can stay around longer than the |
302 | * process it belongs to. The root anon_vma needs to be pinned until | |
303 | * this anon_vma is freed, because the lock lives in the root. | |
76545066 RR |
304 | */ |
305 | get_anon_vma(anon_vma->root); | |
5beb4930 RR |
306 | /* Mark this anon_vma as the one where our new (COWed) pages go. */ |
307 | vma->anon_vma = anon_vma; | |
bb4aa396 | 308 | anon_vma_lock(anon_vma); |
5c341ee1 | 309 | anon_vma_chain_link(vma, avc, anon_vma); |
bb4aa396 | 310 | anon_vma_unlock(anon_vma); |
5beb4930 RR |
311 | |
312 | return 0; | |
313 | ||
314 | out_error_free_anon_vma: | |
01d8b20d | 315 | put_anon_vma(anon_vma); |
5beb4930 | 316 | out_error: |
4946d54c | 317 | unlink_anon_vmas(vma); |
5beb4930 | 318 | return -ENOMEM; |
1da177e4 LT |
319 | } |
320 | ||
5beb4930 RR |
321 | void unlink_anon_vmas(struct vm_area_struct *vma) |
322 | { | |
323 | struct anon_vma_chain *avc, *next; | |
eee2acba | 324 | struct anon_vma *root = NULL; |
5beb4930 | 325 | |
5c341ee1 RR |
326 | /* |
327 | * Unlink each anon_vma chained to the VMA. This list is ordered | |
328 | * from newest to oldest, ensuring the root anon_vma gets freed last. | |
329 | */ | |
5beb4930 | 330 | list_for_each_entry_safe(avc, next, &vma->anon_vma_chain, same_vma) { |
eee2acba PZ |
331 | struct anon_vma *anon_vma = avc->anon_vma; |
332 | ||
333 | root = lock_anon_vma_root(root, anon_vma); | |
bf181b9f | 334 | anon_vma_interval_tree_remove(avc, &anon_vma->rb_root); |
eee2acba PZ |
335 | |
336 | /* | |
337 | * Leave empty anon_vmas on the list - we'll need | |
338 | * to free them outside the lock. | |
339 | */ | |
bf181b9f | 340 | if (RB_EMPTY_ROOT(&anon_vma->rb_root)) |
eee2acba PZ |
341 | continue; |
342 | ||
343 | list_del(&avc->same_vma); | |
344 | anon_vma_chain_free(avc); | |
345 | } | |
346 | unlock_anon_vma_root(root); | |
347 | ||
348 | /* | |
349 | * Iterate the list once more, it now only contains empty and unlinked | |
350 | * anon_vmas, destroy them. Could not do before due to __put_anon_vma() | |
351 | * needing to acquire the anon_vma->root->mutex. | |
352 | */ | |
353 | list_for_each_entry_safe(avc, next, &vma->anon_vma_chain, same_vma) { | |
354 | struct anon_vma *anon_vma = avc->anon_vma; | |
355 | ||
356 | put_anon_vma(anon_vma); | |
357 | ||
5beb4930 RR |
358 | list_del(&avc->same_vma); |
359 | anon_vma_chain_free(avc); | |
360 | } | |
361 | } | |
362 | ||
51cc5068 | 363 | static void anon_vma_ctor(void *data) |
1da177e4 | 364 | { |
a35afb83 | 365 | struct anon_vma *anon_vma = data; |
1da177e4 | 366 | |
2b575eb6 | 367 | mutex_init(&anon_vma->mutex); |
83813267 | 368 | atomic_set(&anon_vma->refcount, 0); |
bf181b9f | 369 | anon_vma->rb_root = RB_ROOT; |
1da177e4 LT |
370 | } |
371 | ||
372 | void __init anon_vma_init(void) | |
373 | { | |
374 | anon_vma_cachep = kmem_cache_create("anon_vma", sizeof(struct anon_vma), | |
20c2df83 | 375 | 0, SLAB_DESTROY_BY_RCU|SLAB_PANIC, anon_vma_ctor); |
5beb4930 | 376 | anon_vma_chain_cachep = KMEM_CACHE(anon_vma_chain, SLAB_PANIC); |
1da177e4 LT |
377 | } |
378 | ||
379 | /* | |
6111e4ca PZ |
380 | * Getting a lock on a stable anon_vma from a page off the LRU is tricky! |
381 | * | |
382 | * Since there is no serialization what so ever against page_remove_rmap() | |
383 | * the best this function can do is return a locked anon_vma that might | |
384 | * have been relevant to this page. | |
385 | * | |
386 | * The page might have been remapped to a different anon_vma or the anon_vma | |
387 | * returned may already be freed (and even reused). | |
388 | * | |
bc658c96 PZ |
389 | * In case it was remapped to a different anon_vma, the new anon_vma will be a |
390 | * child of the old anon_vma, and the anon_vma lifetime rules will therefore | |
391 | * ensure that any anon_vma obtained from the page will still be valid for as | |
392 | * long as we observe page_mapped() [ hence all those page_mapped() tests ]. | |
393 | * | |
6111e4ca PZ |
394 | * All users of this function must be very careful when walking the anon_vma |
395 | * chain and verify that the page in question is indeed mapped in it | |
396 | * [ something equivalent to page_mapped_in_vma() ]. | |
397 | * | |
398 | * Since anon_vma's slab is DESTROY_BY_RCU and we know from page_remove_rmap() | |
399 | * that the anon_vma pointer from page->mapping is valid if there is a | |
400 | * mapcount, we can dereference the anon_vma after observing those. | |
1da177e4 | 401 | */ |
746b18d4 | 402 | struct anon_vma *page_get_anon_vma(struct page *page) |
1da177e4 | 403 | { |
746b18d4 | 404 | struct anon_vma *anon_vma = NULL; |
1da177e4 LT |
405 | unsigned long anon_mapping; |
406 | ||
407 | rcu_read_lock(); | |
80e14822 | 408 | anon_mapping = (unsigned long) ACCESS_ONCE(page->mapping); |
3ca7b3c5 | 409 | if ((anon_mapping & PAGE_MAPPING_FLAGS) != PAGE_MAPPING_ANON) |
1da177e4 LT |
410 | goto out; |
411 | if (!page_mapped(page)) | |
412 | goto out; | |
413 | ||
414 | anon_vma = (struct anon_vma *) (anon_mapping - PAGE_MAPPING_ANON); | |
746b18d4 PZ |
415 | if (!atomic_inc_not_zero(&anon_vma->refcount)) { |
416 | anon_vma = NULL; | |
417 | goto out; | |
418 | } | |
f1819427 HD |
419 | |
420 | /* | |
421 | * If this page is still mapped, then its anon_vma cannot have been | |
746b18d4 PZ |
422 | * freed. But if it has been unmapped, we have no security against the |
423 | * anon_vma structure being freed and reused (for another anon_vma: | |
424 | * SLAB_DESTROY_BY_RCU guarantees that - so the atomic_inc_not_zero() | |
425 | * above cannot corrupt). | |
f1819427 | 426 | */ |
746b18d4 PZ |
427 | if (!page_mapped(page)) { |
428 | put_anon_vma(anon_vma); | |
429 | anon_vma = NULL; | |
430 | } | |
1da177e4 LT |
431 | out: |
432 | rcu_read_unlock(); | |
746b18d4 PZ |
433 | |
434 | return anon_vma; | |
435 | } | |
436 | ||
88c22088 PZ |
437 | /* |
438 | * Similar to page_get_anon_vma() except it locks the anon_vma. | |
439 | * | |
440 | * Its a little more complex as it tries to keep the fast path to a single | |
441 | * atomic op -- the trylock. If we fail the trylock, we fall back to getting a | |
442 | * reference like with page_get_anon_vma() and then block on the mutex. | |
443 | */ | |
746b18d4 PZ |
444 | struct anon_vma *page_lock_anon_vma(struct page *page) |
445 | { | |
88c22088 | 446 | struct anon_vma *anon_vma = NULL; |
eee0f252 | 447 | struct anon_vma *root_anon_vma; |
88c22088 | 448 | unsigned long anon_mapping; |
746b18d4 | 449 | |
88c22088 PZ |
450 | rcu_read_lock(); |
451 | anon_mapping = (unsigned long) ACCESS_ONCE(page->mapping); | |
452 | if ((anon_mapping & PAGE_MAPPING_FLAGS) != PAGE_MAPPING_ANON) | |
453 | goto out; | |
454 | if (!page_mapped(page)) | |
455 | goto out; | |
456 | ||
457 | anon_vma = (struct anon_vma *) (anon_mapping - PAGE_MAPPING_ANON); | |
eee0f252 HD |
458 | root_anon_vma = ACCESS_ONCE(anon_vma->root); |
459 | if (mutex_trylock(&root_anon_vma->mutex)) { | |
88c22088 | 460 | /* |
eee0f252 HD |
461 | * If the page is still mapped, then this anon_vma is still |
462 | * its anon_vma, and holding the mutex ensures that it will | |
bc658c96 | 463 | * not go away, see anon_vma_free(). |
88c22088 | 464 | */ |
eee0f252 HD |
465 | if (!page_mapped(page)) { |
466 | mutex_unlock(&root_anon_vma->mutex); | |
88c22088 PZ |
467 | anon_vma = NULL; |
468 | } | |
469 | goto out; | |
470 | } | |
746b18d4 | 471 | |
88c22088 PZ |
472 | /* trylock failed, we got to sleep */ |
473 | if (!atomic_inc_not_zero(&anon_vma->refcount)) { | |
474 | anon_vma = NULL; | |
475 | goto out; | |
476 | } | |
477 | ||
478 | if (!page_mapped(page)) { | |
479 | put_anon_vma(anon_vma); | |
480 | anon_vma = NULL; | |
481 | goto out; | |
482 | } | |
483 | ||
484 | /* we pinned the anon_vma, its safe to sleep */ | |
485 | rcu_read_unlock(); | |
486 | anon_vma_lock(anon_vma); | |
487 | ||
488 | if (atomic_dec_and_test(&anon_vma->refcount)) { | |
489 | /* | |
490 | * Oops, we held the last refcount, release the lock | |
491 | * and bail -- can't simply use put_anon_vma() because | |
492 | * we'll deadlock on the anon_vma_lock() recursion. | |
493 | */ | |
494 | anon_vma_unlock(anon_vma); | |
495 | __put_anon_vma(anon_vma); | |
496 | anon_vma = NULL; | |
497 | } | |
498 | ||
499 | return anon_vma; | |
500 | ||
501 | out: | |
502 | rcu_read_unlock(); | |
746b18d4 | 503 | return anon_vma; |
34bbd704 ON |
504 | } |
505 | ||
10be22df | 506 | void page_unlock_anon_vma(struct anon_vma *anon_vma) |
34bbd704 | 507 | { |
cba48b98 | 508 | anon_vma_unlock(anon_vma); |
1da177e4 LT |
509 | } |
510 | ||
511 | /* | |
3ad33b24 | 512 | * At what user virtual address is page expected in @vma? |
1da177e4 | 513 | */ |
86c2ad19 ML |
514 | static inline unsigned long |
515 | __vma_address(struct page *page, struct vm_area_struct *vma) | |
1da177e4 LT |
516 | { |
517 | pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); | |
1da177e4 | 518 | |
0fe6e20b NH |
519 | if (unlikely(is_vm_hugetlb_page(vma))) |
520 | pgoff = page->index << huge_page_order(page_hstate(page)); | |
86c2ad19 ML |
521 | |
522 | return vma->vm_start + ((pgoff - vma->vm_pgoff) << PAGE_SHIFT); | |
523 | } | |
524 | ||
525 | inline unsigned long | |
526 | vma_address(struct page *page, struct vm_area_struct *vma) | |
527 | { | |
528 | unsigned long address = __vma_address(page, vma); | |
529 | ||
530 | /* page should be within @vma mapping range */ | |
531 | VM_BUG_ON(address < vma->vm_start || address >= vma->vm_end); | |
532 | ||
1da177e4 LT |
533 | return address; |
534 | } | |
535 | ||
536 | /* | |
bf89c8c8 | 537 | * At what user virtual address is page expected in vma? |
ab941e0f | 538 | * Caller should check the page is actually part of the vma. |
1da177e4 LT |
539 | */ |
540 | unsigned long page_address_in_vma(struct page *page, struct vm_area_struct *vma) | |
541 | { | |
86c2ad19 | 542 | unsigned long address; |
21d0d443 | 543 | if (PageAnon(page)) { |
4829b906 HD |
544 | struct anon_vma *page__anon_vma = page_anon_vma(page); |
545 | /* | |
546 | * Note: swapoff's unuse_vma() is more efficient with this | |
547 | * check, and needs it to match anon_vma when KSM is active. | |
548 | */ | |
549 | if (!vma->anon_vma || !page__anon_vma || | |
550 | vma->anon_vma->root != page__anon_vma->root) | |
21d0d443 AA |
551 | return -EFAULT; |
552 | } else if (page->mapping && !(vma->vm_flags & VM_NONLINEAR)) { | |
ee498ed7 HD |
553 | if (!vma->vm_file || |
554 | vma->vm_file->f_mapping != page->mapping) | |
1da177e4 LT |
555 | return -EFAULT; |
556 | } else | |
557 | return -EFAULT; | |
86c2ad19 ML |
558 | address = __vma_address(page, vma); |
559 | if (unlikely(address < vma->vm_start || address >= vma->vm_end)) | |
560 | return -EFAULT; | |
561 | return address; | |
1da177e4 LT |
562 | } |
563 | ||
81b4082d ND |
564 | /* |
565 | * Check that @page is mapped at @address into @mm. | |
566 | * | |
479db0bf NP |
567 | * If @sync is false, page_check_address may perform a racy check to avoid |
568 | * the page table lock when the pte is not present (helpful when reclaiming | |
569 | * highly shared pages). | |
570 | * | |
b8072f09 | 571 | * On success returns with pte mapped and locked. |
81b4082d | 572 | */ |
e9a81a82 | 573 | pte_t *__page_check_address(struct page *page, struct mm_struct *mm, |
479db0bf | 574 | unsigned long address, spinlock_t **ptlp, int sync) |
81b4082d ND |
575 | { |
576 | pgd_t *pgd; | |
577 | pud_t *pud; | |
578 | pmd_t *pmd; | |
579 | pte_t *pte; | |
c0718806 | 580 | spinlock_t *ptl; |
81b4082d | 581 | |
0fe6e20b NH |
582 | if (unlikely(PageHuge(page))) { |
583 | pte = huge_pte_offset(mm, address); | |
584 | ptl = &mm->page_table_lock; | |
585 | goto check; | |
586 | } | |
587 | ||
81b4082d | 588 | pgd = pgd_offset(mm, address); |
c0718806 HD |
589 | if (!pgd_present(*pgd)) |
590 | return NULL; | |
591 | ||
592 | pud = pud_offset(pgd, address); | |
593 | if (!pud_present(*pud)) | |
594 | return NULL; | |
595 | ||
596 | pmd = pmd_offset(pud, address); | |
597 | if (!pmd_present(*pmd)) | |
598 | return NULL; | |
71e3aac0 AA |
599 | if (pmd_trans_huge(*pmd)) |
600 | return NULL; | |
c0718806 HD |
601 | |
602 | pte = pte_offset_map(pmd, address); | |
603 | /* Make a quick check before getting the lock */ | |
479db0bf | 604 | if (!sync && !pte_present(*pte)) { |
c0718806 HD |
605 | pte_unmap(pte); |
606 | return NULL; | |
607 | } | |
608 | ||
4c21e2f2 | 609 | ptl = pte_lockptr(mm, pmd); |
0fe6e20b | 610 | check: |
c0718806 HD |
611 | spin_lock(ptl); |
612 | if (pte_present(*pte) && page_to_pfn(page) == pte_pfn(*pte)) { | |
613 | *ptlp = ptl; | |
614 | return pte; | |
81b4082d | 615 | } |
c0718806 HD |
616 | pte_unmap_unlock(pte, ptl); |
617 | return NULL; | |
81b4082d ND |
618 | } |
619 | ||
b291f000 NP |
620 | /** |
621 | * page_mapped_in_vma - check whether a page is really mapped in a VMA | |
622 | * @page: the page to test | |
623 | * @vma: the VMA to test | |
624 | * | |
625 | * Returns 1 if the page is mapped into the page tables of the VMA, 0 | |
626 | * if the page is not mapped into the page tables of this VMA. Only | |
627 | * valid for normal file or anonymous VMAs. | |
628 | */ | |
6a46079c | 629 | int page_mapped_in_vma(struct page *page, struct vm_area_struct *vma) |
b291f000 NP |
630 | { |
631 | unsigned long address; | |
632 | pte_t *pte; | |
633 | spinlock_t *ptl; | |
634 | ||
86c2ad19 ML |
635 | address = __vma_address(page, vma); |
636 | if (unlikely(address < vma->vm_start || address >= vma->vm_end)) | |
b291f000 NP |
637 | return 0; |
638 | pte = page_check_address(page, vma->vm_mm, address, &ptl, 1); | |
639 | if (!pte) /* the page is not in this mm */ | |
640 | return 0; | |
641 | pte_unmap_unlock(pte, ptl); | |
642 | ||
643 | return 1; | |
644 | } | |
645 | ||
1da177e4 LT |
646 | /* |
647 | * Subfunctions of page_referenced: page_referenced_one called | |
648 | * repeatedly from either page_referenced_anon or page_referenced_file. | |
649 | */ | |
5ad64688 HD |
650 | int page_referenced_one(struct page *page, struct vm_area_struct *vma, |
651 | unsigned long address, unsigned int *mapcount, | |
652 | unsigned long *vm_flags) | |
1da177e4 LT |
653 | { |
654 | struct mm_struct *mm = vma->vm_mm; | |
1da177e4 LT |
655 | int referenced = 0; |
656 | ||
71e3aac0 AA |
657 | if (unlikely(PageTransHuge(page))) { |
658 | pmd_t *pmd; | |
659 | ||
660 | spin_lock(&mm->page_table_lock); | |
2da28bfd AA |
661 | /* |
662 | * rmap might return false positives; we must filter | |
663 | * these out using page_check_address_pmd(). | |
664 | */ | |
71e3aac0 AA |
665 | pmd = page_check_address_pmd(page, mm, address, |
666 | PAGE_CHECK_ADDRESS_PMD_FLAG); | |
2da28bfd AA |
667 | if (!pmd) { |
668 | spin_unlock(&mm->page_table_lock); | |
669 | goto out; | |
670 | } | |
671 | ||
672 | if (vma->vm_flags & VM_LOCKED) { | |
673 | spin_unlock(&mm->page_table_lock); | |
674 | *mapcount = 0; /* break early from loop */ | |
675 | *vm_flags |= VM_LOCKED; | |
676 | goto out; | |
677 | } | |
678 | ||
679 | /* go ahead even if the pmd is pmd_trans_splitting() */ | |
680 | if (pmdp_clear_flush_young_notify(vma, address, pmd)) | |
71e3aac0 AA |
681 | referenced++; |
682 | spin_unlock(&mm->page_table_lock); | |
683 | } else { | |
684 | pte_t *pte; | |
685 | spinlock_t *ptl; | |
686 | ||
2da28bfd AA |
687 | /* |
688 | * rmap might return false positives; we must filter | |
689 | * these out using page_check_address(). | |
690 | */ | |
71e3aac0 AA |
691 | pte = page_check_address(page, mm, address, &ptl, 0); |
692 | if (!pte) | |
693 | goto out; | |
694 | ||
2da28bfd AA |
695 | if (vma->vm_flags & VM_LOCKED) { |
696 | pte_unmap_unlock(pte, ptl); | |
697 | *mapcount = 0; /* break early from loop */ | |
698 | *vm_flags |= VM_LOCKED; | |
699 | goto out; | |
700 | } | |
701 | ||
71e3aac0 AA |
702 | if (ptep_clear_flush_young_notify(vma, address, pte)) { |
703 | /* | |
704 | * Don't treat a reference through a sequentially read | |
705 | * mapping as such. If the page has been used in | |
706 | * another mapping, we will catch it; if this other | |
707 | * mapping is already gone, the unmap path will have | |
708 | * set PG_referenced or activated the page. | |
709 | */ | |
710 | if (likely(!VM_SequentialReadHint(vma))) | |
711 | referenced++; | |
712 | } | |
713 | pte_unmap_unlock(pte, ptl); | |
714 | } | |
715 | ||
c0718806 | 716 | (*mapcount)--; |
273f047e | 717 | |
6fe6b7e3 WF |
718 | if (referenced) |
719 | *vm_flags |= vma->vm_flags; | |
273f047e | 720 | out: |
1da177e4 LT |
721 | return referenced; |
722 | } | |
723 | ||
bed7161a | 724 | static int page_referenced_anon(struct page *page, |
72835c86 | 725 | struct mem_cgroup *memcg, |
6fe6b7e3 | 726 | unsigned long *vm_flags) |
1da177e4 LT |
727 | { |
728 | unsigned int mapcount; | |
729 | struct anon_vma *anon_vma; | |
bf181b9f | 730 | pgoff_t pgoff; |
5beb4930 | 731 | struct anon_vma_chain *avc; |
1da177e4 LT |
732 | int referenced = 0; |
733 | ||
734 | anon_vma = page_lock_anon_vma(page); | |
735 | if (!anon_vma) | |
736 | return referenced; | |
737 | ||
738 | mapcount = page_mapcount(page); | |
bf181b9f ML |
739 | pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); |
740 | anon_vma_interval_tree_foreach(avc, &anon_vma->rb_root, pgoff, pgoff) { | |
5beb4930 | 741 | struct vm_area_struct *vma = avc->vma; |
1cb1729b | 742 | unsigned long address = vma_address(page, vma); |
bed7161a BS |
743 | /* |
744 | * If we are reclaiming on behalf of a cgroup, skip | |
745 | * counting on behalf of references from different | |
746 | * cgroups | |
747 | */ | |
72835c86 | 748 | if (memcg && !mm_match_cgroup(vma->vm_mm, memcg)) |
bed7161a | 749 | continue; |
1cb1729b | 750 | referenced += page_referenced_one(page, vma, address, |
6fe6b7e3 | 751 | &mapcount, vm_flags); |
1da177e4 LT |
752 | if (!mapcount) |
753 | break; | |
754 | } | |
34bbd704 ON |
755 | |
756 | page_unlock_anon_vma(anon_vma); | |
1da177e4 LT |
757 | return referenced; |
758 | } | |
759 | ||
760 | /** | |
761 | * page_referenced_file - referenced check for object-based rmap | |
762 | * @page: the page we're checking references on. | |
72835c86 | 763 | * @memcg: target memory control group |
6fe6b7e3 | 764 | * @vm_flags: collect encountered vma->vm_flags who actually referenced the page |
1da177e4 LT |
765 | * |
766 | * For an object-based mapped page, find all the places it is mapped and | |
767 | * check/clear the referenced flag. This is done by following the page->mapping | |
768 | * pointer, then walking the chain of vmas it holds. It returns the number | |
769 | * of references it found. | |
770 | * | |
771 | * This function is only called from page_referenced for object-based pages. | |
772 | */ | |
bed7161a | 773 | static int page_referenced_file(struct page *page, |
72835c86 | 774 | struct mem_cgroup *memcg, |
6fe6b7e3 | 775 | unsigned long *vm_flags) |
1da177e4 LT |
776 | { |
777 | unsigned int mapcount; | |
778 | struct address_space *mapping = page->mapping; | |
779 | pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); | |
780 | struct vm_area_struct *vma; | |
1da177e4 LT |
781 | int referenced = 0; |
782 | ||
783 | /* | |
784 | * The caller's checks on page->mapping and !PageAnon have made | |
785 | * sure that this is a file page: the check for page->mapping | |
786 | * excludes the case just before it gets set on an anon page. | |
787 | */ | |
788 | BUG_ON(PageAnon(page)); | |
789 | ||
790 | /* | |
791 | * The page lock not only makes sure that page->mapping cannot | |
792 | * suddenly be NULLified by truncation, it makes sure that the | |
793 | * structure at mapping cannot be freed and reused yet, | |
3d48ae45 | 794 | * so we can safely take mapping->i_mmap_mutex. |
1da177e4 LT |
795 | */ |
796 | BUG_ON(!PageLocked(page)); | |
797 | ||
3d48ae45 | 798 | mutex_lock(&mapping->i_mmap_mutex); |
1da177e4 LT |
799 | |
800 | /* | |
3d48ae45 | 801 | * i_mmap_mutex does not stabilize mapcount at all, but mapcount |
1da177e4 LT |
802 | * is more likely to be accurate if we note it after spinning. |
803 | */ | |
804 | mapcount = page_mapcount(page); | |
805 | ||
6b2dbba8 | 806 | vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) { |
1cb1729b | 807 | unsigned long address = vma_address(page, vma); |
bed7161a BS |
808 | /* |
809 | * If we are reclaiming on behalf of a cgroup, skip | |
810 | * counting on behalf of references from different | |
811 | * cgroups | |
812 | */ | |
72835c86 | 813 | if (memcg && !mm_match_cgroup(vma->vm_mm, memcg)) |
bed7161a | 814 | continue; |
1cb1729b | 815 | referenced += page_referenced_one(page, vma, address, |
6fe6b7e3 | 816 | &mapcount, vm_flags); |
1da177e4 LT |
817 | if (!mapcount) |
818 | break; | |
819 | } | |
820 | ||
3d48ae45 | 821 | mutex_unlock(&mapping->i_mmap_mutex); |
1da177e4 LT |
822 | return referenced; |
823 | } | |
824 | ||
825 | /** | |
826 | * page_referenced - test if the page was referenced | |
827 | * @page: the page to test | |
828 | * @is_locked: caller holds lock on the page | |
72835c86 | 829 | * @memcg: target memory cgroup |
6fe6b7e3 | 830 | * @vm_flags: collect encountered vma->vm_flags who actually referenced the page |
1da177e4 LT |
831 | * |
832 | * Quick test_and_clear_referenced for all mappings to a page, | |
833 | * returns the number of ptes which referenced the page. | |
834 | */ | |
6fe6b7e3 WF |
835 | int page_referenced(struct page *page, |
836 | int is_locked, | |
72835c86 | 837 | struct mem_cgroup *memcg, |
6fe6b7e3 | 838 | unsigned long *vm_flags) |
1da177e4 LT |
839 | { |
840 | int referenced = 0; | |
5ad64688 | 841 | int we_locked = 0; |
1da177e4 | 842 | |
6fe6b7e3 | 843 | *vm_flags = 0; |
3ca7b3c5 | 844 | if (page_mapped(page) && page_rmapping(page)) { |
5ad64688 HD |
845 | if (!is_locked && (!PageAnon(page) || PageKsm(page))) { |
846 | we_locked = trylock_page(page); | |
847 | if (!we_locked) { | |
848 | referenced++; | |
849 | goto out; | |
850 | } | |
851 | } | |
852 | if (unlikely(PageKsm(page))) | |
72835c86 | 853 | referenced += page_referenced_ksm(page, memcg, |
5ad64688 HD |
854 | vm_flags); |
855 | else if (PageAnon(page)) | |
72835c86 | 856 | referenced += page_referenced_anon(page, memcg, |
6fe6b7e3 | 857 | vm_flags); |
5ad64688 | 858 | else if (page->mapping) |
72835c86 | 859 | referenced += page_referenced_file(page, memcg, |
6fe6b7e3 | 860 | vm_flags); |
5ad64688 | 861 | if (we_locked) |
1da177e4 | 862 | unlock_page(page); |
50a15981 MS |
863 | |
864 | if (page_test_and_clear_young(page_to_pfn(page))) | |
865 | referenced++; | |
1da177e4 | 866 | } |
5ad64688 | 867 | out: |
1da177e4 LT |
868 | return referenced; |
869 | } | |
870 | ||
1cb1729b HD |
871 | static int page_mkclean_one(struct page *page, struct vm_area_struct *vma, |
872 | unsigned long address) | |
d08b3851 PZ |
873 | { |
874 | struct mm_struct *mm = vma->vm_mm; | |
c2fda5fe | 875 | pte_t *pte; |
d08b3851 PZ |
876 | spinlock_t *ptl; |
877 | int ret = 0; | |
878 | ||
479db0bf | 879 | pte = page_check_address(page, mm, address, &ptl, 1); |
d08b3851 PZ |
880 | if (!pte) |
881 | goto out; | |
882 | ||
c2fda5fe PZ |
883 | if (pte_dirty(*pte) || pte_write(*pte)) { |
884 | pte_t entry; | |
d08b3851 | 885 | |
c2fda5fe | 886 | flush_cache_page(vma, address, pte_pfn(*pte)); |
2ec74c3e | 887 | entry = ptep_clear_flush(vma, address, pte); |
c2fda5fe PZ |
888 | entry = pte_wrprotect(entry); |
889 | entry = pte_mkclean(entry); | |
d6e88e67 | 890 | set_pte_at(mm, address, pte, entry); |
c2fda5fe PZ |
891 | ret = 1; |
892 | } | |
d08b3851 | 893 | |
d08b3851 | 894 | pte_unmap_unlock(pte, ptl); |
2ec74c3e SG |
895 | |
896 | if (ret) | |
897 | mmu_notifier_invalidate_page(mm, address); | |
d08b3851 PZ |
898 | out: |
899 | return ret; | |
900 | } | |
901 | ||
902 | static int page_mkclean_file(struct address_space *mapping, struct page *page) | |
903 | { | |
904 | pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); | |
905 | struct vm_area_struct *vma; | |
d08b3851 PZ |
906 | int ret = 0; |
907 | ||
908 | BUG_ON(PageAnon(page)); | |
909 | ||
3d48ae45 | 910 | mutex_lock(&mapping->i_mmap_mutex); |
6b2dbba8 | 911 | vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) { |
1cb1729b HD |
912 | if (vma->vm_flags & VM_SHARED) { |
913 | unsigned long address = vma_address(page, vma); | |
1cb1729b HD |
914 | ret += page_mkclean_one(page, vma, address); |
915 | } | |
d08b3851 | 916 | } |
3d48ae45 | 917 | mutex_unlock(&mapping->i_mmap_mutex); |
d08b3851 PZ |
918 | return ret; |
919 | } | |
920 | ||
921 | int page_mkclean(struct page *page) | |
922 | { | |
923 | int ret = 0; | |
924 | ||
925 | BUG_ON(!PageLocked(page)); | |
926 | ||
927 | if (page_mapped(page)) { | |
928 | struct address_space *mapping = page_mapping(page); | |
ce7e9fae | 929 | if (mapping) { |
d08b3851 | 930 | ret = page_mkclean_file(mapping, page); |
2d42552d | 931 | if (page_test_and_clear_dirty(page_to_pfn(page), 1)) |
ce7e9fae | 932 | ret = 1; |
6c210482 | 933 | } |
d08b3851 PZ |
934 | } |
935 | ||
936 | return ret; | |
937 | } | |
60b59bea | 938 | EXPORT_SYMBOL_GPL(page_mkclean); |
d08b3851 | 939 | |
c44b6743 RR |
940 | /** |
941 | * page_move_anon_rmap - move a page to our anon_vma | |
942 | * @page: the page to move to our anon_vma | |
943 | * @vma: the vma the page belongs to | |
944 | * @address: the user virtual address mapped | |
945 | * | |
946 | * When a page belongs exclusively to one process after a COW event, | |
947 | * that page can be moved into the anon_vma that belongs to just that | |
948 | * process, so the rmap code will not search the parent or sibling | |
949 | * processes. | |
950 | */ | |
951 | void page_move_anon_rmap(struct page *page, | |
952 | struct vm_area_struct *vma, unsigned long address) | |
953 | { | |
954 | struct anon_vma *anon_vma = vma->anon_vma; | |
955 | ||
956 | VM_BUG_ON(!PageLocked(page)); | |
957 | VM_BUG_ON(!anon_vma); | |
958 | VM_BUG_ON(page->index != linear_page_index(vma, address)); | |
959 | ||
960 | anon_vma = (void *) anon_vma + PAGE_MAPPING_ANON; | |
961 | page->mapping = (struct address_space *) anon_vma; | |
962 | } | |
963 | ||
9617d95e | 964 | /** |
4e1c1975 AK |
965 | * __page_set_anon_rmap - set up new anonymous rmap |
966 | * @page: Page to add to rmap | |
967 | * @vma: VM area to add page to. | |
968 | * @address: User virtual address of the mapping | |
e8a03feb | 969 | * @exclusive: the page is exclusively owned by the current process |
9617d95e NP |
970 | */ |
971 | static void __page_set_anon_rmap(struct page *page, | |
e8a03feb | 972 | struct vm_area_struct *vma, unsigned long address, int exclusive) |
9617d95e | 973 | { |
e8a03feb | 974 | struct anon_vma *anon_vma = vma->anon_vma; |
ea90002b | 975 | |
e8a03feb | 976 | BUG_ON(!anon_vma); |
ea90002b | 977 | |
4e1c1975 AK |
978 | if (PageAnon(page)) |
979 | return; | |
980 | ||
ea90002b | 981 | /* |
e8a03feb RR |
982 | * If the page isn't exclusively mapped into this vma, |
983 | * we must use the _oldest_ possible anon_vma for the | |
984 | * page mapping! | |
ea90002b | 985 | */ |
4e1c1975 | 986 | if (!exclusive) |
288468c3 | 987 | anon_vma = anon_vma->root; |
9617d95e | 988 | |
9617d95e NP |
989 | anon_vma = (void *) anon_vma + PAGE_MAPPING_ANON; |
990 | page->mapping = (struct address_space *) anon_vma; | |
9617d95e | 991 | page->index = linear_page_index(vma, address); |
9617d95e NP |
992 | } |
993 | ||
c97a9e10 | 994 | /** |
43d8eac4 | 995 | * __page_check_anon_rmap - sanity check anonymous rmap addition |
c97a9e10 NP |
996 | * @page: the page to add the mapping to |
997 | * @vma: the vm area in which the mapping is added | |
998 | * @address: the user virtual address mapped | |
999 | */ | |
1000 | static void __page_check_anon_rmap(struct page *page, | |
1001 | struct vm_area_struct *vma, unsigned long address) | |
1002 | { | |
1003 | #ifdef CONFIG_DEBUG_VM | |
1004 | /* | |
1005 | * The page's anon-rmap details (mapping and index) are guaranteed to | |
1006 | * be set up correctly at this point. | |
1007 | * | |
1008 | * We have exclusion against page_add_anon_rmap because the caller | |
1009 | * always holds the page locked, except if called from page_dup_rmap, | |
1010 | * in which case the page is already known to be setup. | |
1011 | * | |
1012 | * We have exclusion against page_add_new_anon_rmap because those pages | |
1013 | * are initially only visible via the pagetables, and the pte is locked | |
1014 | * over the call to page_add_new_anon_rmap. | |
1015 | */ | |
44ab57a0 | 1016 | BUG_ON(page_anon_vma(page)->root != vma->anon_vma->root); |
c97a9e10 NP |
1017 | BUG_ON(page->index != linear_page_index(vma, address)); |
1018 | #endif | |
1019 | } | |
1020 | ||
1da177e4 LT |
1021 | /** |
1022 | * page_add_anon_rmap - add pte mapping to an anonymous page | |
1023 | * @page: the page to add the mapping to | |
1024 | * @vma: the vm area in which the mapping is added | |
1025 | * @address: the user virtual address mapped | |
1026 | * | |
5ad64688 | 1027 | * The caller needs to hold the pte lock, and the page must be locked in |
80e14822 HD |
1028 | * the anon_vma case: to serialize mapping,index checking after setting, |
1029 | * and to ensure that PageAnon is not being upgraded racily to PageKsm | |
1030 | * (but PageKsm is never downgraded to PageAnon). | |
1da177e4 LT |
1031 | */ |
1032 | void page_add_anon_rmap(struct page *page, | |
1033 | struct vm_area_struct *vma, unsigned long address) | |
ad8c2ee8 RR |
1034 | { |
1035 | do_page_add_anon_rmap(page, vma, address, 0); | |
1036 | } | |
1037 | ||
1038 | /* | |
1039 | * Special version of the above for do_swap_page, which often runs | |
1040 | * into pages that are exclusively owned by the current process. | |
1041 | * Everybody else should continue to use page_add_anon_rmap above. | |
1042 | */ | |
1043 | void do_page_add_anon_rmap(struct page *page, | |
1044 | struct vm_area_struct *vma, unsigned long address, int exclusive) | |
1da177e4 | 1045 | { |
5ad64688 | 1046 | int first = atomic_inc_and_test(&page->_mapcount); |
79134171 AA |
1047 | if (first) { |
1048 | if (!PageTransHuge(page)) | |
1049 | __inc_zone_page_state(page, NR_ANON_PAGES); | |
1050 | else | |
1051 | __inc_zone_page_state(page, | |
1052 | NR_ANON_TRANSPARENT_HUGEPAGES); | |
1053 | } | |
5ad64688 HD |
1054 | if (unlikely(PageKsm(page))) |
1055 | return; | |
1056 | ||
c97a9e10 | 1057 | VM_BUG_ON(!PageLocked(page)); |
5dbe0af4 | 1058 | /* address might be in next vma when migration races vma_adjust */ |
5ad64688 | 1059 | if (first) |
ad8c2ee8 | 1060 | __page_set_anon_rmap(page, vma, address, exclusive); |
69029cd5 | 1061 | else |
c97a9e10 | 1062 | __page_check_anon_rmap(page, vma, address); |
1da177e4 LT |
1063 | } |
1064 | ||
43d8eac4 | 1065 | /** |
9617d95e NP |
1066 | * page_add_new_anon_rmap - add pte mapping to a new anonymous page |
1067 | * @page: the page to add the mapping to | |
1068 | * @vma: the vm area in which the mapping is added | |
1069 | * @address: the user virtual address mapped | |
1070 | * | |
1071 | * Same as page_add_anon_rmap but must only be called on *new* pages. | |
1072 | * This means the inc-and-test can be bypassed. | |
c97a9e10 | 1073 | * Page does not have to be locked. |
9617d95e NP |
1074 | */ |
1075 | void page_add_new_anon_rmap(struct page *page, | |
1076 | struct vm_area_struct *vma, unsigned long address) | |
1077 | { | |
b5934c53 | 1078 | VM_BUG_ON(address < vma->vm_start || address >= vma->vm_end); |
cbf84b7a HD |
1079 | SetPageSwapBacked(page); |
1080 | atomic_set(&page->_mapcount, 0); /* increment count (starts at -1) */ | |
79134171 AA |
1081 | if (!PageTransHuge(page)) |
1082 | __inc_zone_page_state(page, NR_ANON_PAGES); | |
1083 | else | |
1084 | __inc_zone_page_state(page, NR_ANON_TRANSPARENT_HUGEPAGES); | |
e8a03feb | 1085 | __page_set_anon_rmap(page, vma, address, 1); |
39b5f29a | 1086 | if (!mlocked_vma_newpage(vma, page)) |
cbf84b7a | 1087 | lru_cache_add_lru(page, LRU_ACTIVE_ANON); |
b5934c53 HD |
1088 | else |
1089 | add_page_to_unevictable_list(page); | |
9617d95e NP |
1090 | } |
1091 | ||
1da177e4 LT |
1092 | /** |
1093 | * page_add_file_rmap - add pte mapping to a file page | |
1094 | * @page: the page to add the mapping to | |
1095 | * | |
b8072f09 | 1096 | * The caller needs to hold the pte lock. |
1da177e4 LT |
1097 | */ |
1098 | void page_add_file_rmap(struct page *page) | |
1099 | { | |
89c06bd5 KH |
1100 | bool locked; |
1101 | unsigned long flags; | |
1102 | ||
1103 | mem_cgroup_begin_update_page_stat(page, &locked, &flags); | |
d69b042f | 1104 | if (atomic_inc_and_test(&page->_mapcount)) { |
65ba55f5 | 1105 | __inc_zone_page_state(page, NR_FILE_MAPPED); |
2a7106f2 | 1106 | mem_cgroup_inc_page_stat(page, MEMCG_NR_FILE_MAPPED); |
d69b042f | 1107 | } |
89c06bd5 | 1108 | mem_cgroup_end_update_page_stat(page, &locked, &flags); |
1da177e4 LT |
1109 | } |
1110 | ||
1111 | /** | |
1112 | * page_remove_rmap - take down pte mapping from a page | |
1113 | * @page: page to remove mapping from | |
1114 | * | |
b8072f09 | 1115 | * The caller needs to hold the pte lock. |
1da177e4 | 1116 | */ |
edc315fd | 1117 | void page_remove_rmap(struct page *page) |
1da177e4 | 1118 | { |
89c06bd5 KH |
1119 | bool anon = PageAnon(page); |
1120 | bool locked; | |
1121 | unsigned long flags; | |
1122 | ||
1123 | /* | |
1124 | * The anon case has no mem_cgroup page_stat to update; but may | |
1125 | * uncharge_page() below, where the lock ordering can deadlock if | |
1126 | * we hold the lock against page_stat move: so avoid it on anon. | |
1127 | */ | |
1128 | if (!anon) | |
1129 | mem_cgroup_begin_update_page_stat(page, &locked, &flags); | |
1130 | ||
b904dcfe KM |
1131 | /* page still mapped by someone else? */ |
1132 | if (!atomic_add_negative(-1, &page->_mapcount)) | |
89c06bd5 | 1133 | goto out; |
b904dcfe KM |
1134 | |
1135 | /* | |
1136 | * Now that the last pte has gone, s390 must transfer dirty | |
1137 | * flag from storage key to struct page. We can usually skip | |
1138 | * this if the page is anon, so about to be freed; but perhaps | |
1139 | * not if it's in swapcache - there might be another pte slot | |
1140 | * containing the swap entry, but page not yet written to swap. | |
1141 | */ | |
89c06bd5 | 1142 | if ((!anon || PageSwapCache(page)) && |
2d42552d | 1143 | page_test_and_clear_dirty(page_to_pfn(page), 1)) |
b904dcfe | 1144 | set_page_dirty(page); |
0fe6e20b NH |
1145 | /* |
1146 | * Hugepages are not counted in NR_ANON_PAGES nor NR_FILE_MAPPED | |
1147 | * and not charged by memcg for now. | |
1148 | */ | |
1149 | if (unlikely(PageHuge(page))) | |
89c06bd5 KH |
1150 | goto out; |
1151 | if (anon) { | |
b904dcfe | 1152 | mem_cgroup_uncharge_page(page); |
79134171 AA |
1153 | if (!PageTransHuge(page)) |
1154 | __dec_zone_page_state(page, NR_ANON_PAGES); | |
1155 | else | |
1156 | __dec_zone_page_state(page, | |
1157 | NR_ANON_TRANSPARENT_HUGEPAGES); | |
b904dcfe KM |
1158 | } else { |
1159 | __dec_zone_page_state(page, NR_FILE_MAPPED); | |
2a7106f2 | 1160 | mem_cgroup_dec_page_stat(page, MEMCG_NR_FILE_MAPPED); |
e6c509f8 | 1161 | mem_cgroup_end_update_page_stat(page, &locked, &flags); |
b904dcfe | 1162 | } |
e6c509f8 HD |
1163 | if (unlikely(PageMlocked(page))) |
1164 | clear_page_mlock(page); | |
b904dcfe KM |
1165 | /* |
1166 | * It would be tidy to reset the PageAnon mapping here, | |
1167 | * but that might overwrite a racing page_add_anon_rmap | |
1168 | * which increments mapcount after us but sets mapping | |
1169 | * before us: so leave the reset to free_hot_cold_page, | |
1170 | * and remember that it's only reliable while mapped. | |
1171 | * Leaving it set also helps swapoff to reinstate ptes | |
1172 | * faster for those pages still in swapcache. | |
1173 | */ | |
e6c509f8 | 1174 | return; |
89c06bd5 KH |
1175 | out: |
1176 | if (!anon) | |
1177 | mem_cgroup_end_update_page_stat(page, &locked, &flags); | |
1da177e4 LT |
1178 | } |
1179 | ||
1180 | /* | |
1181 | * Subfunctions of try_to_unmap: try_to_unmap_one called | |
99ef0315 | 1182 | * repeatedly from try_to_unmap_ksm, try_to_unmap_anon or try_to_unmap_file. |
1da177e4 | 1183 | */ |
5ad64688 HD |
1184 | int try_to_unmap_one(struct page *page, struct vm_area_struct *vma, |
1185 | unsigned long address, enum ttu_flags flags) | |
1da177e4 LT |
1186 | { |
1187 | struct mm_struct *mm = vma->vm_mm; | |
1da177e4 LT |
1188 | pte_t *pte; |
1189 | pte_t pteval; | |
c0718806 | 1190 | spinlock_t *ptl; |
1da177e4 LT |
1191 | int ret = SWAP_AGAIN; |
1192 | ||
479db0bf | 1193 | pte = page_check_address(page, mm, address, &ptl, 0); |
c0718806 | 1194 | if (!pte) |
81b4082d | 1195 | goto out; |
1da177e4 LT |
1196 | |
1197 | /* | |
1198 | * If the page is mlock()d, we cannot swap it out. | |
1199 | * If it's recently referenced (perhaps page_referenced | |
1200 | * skipped over this mm) then we should reactivate it. | |
1201 | */ | |
14fa31b8 | 1202 | if (!(flags & TTU_IGNORE_MLOCK)) { |
caed0f48 KM |
1203 | if (vma->vm_flags & VM_LOCKED) |
1204 | goto out_mlock; | |
1205 | ||
af8e3354 | 1206 | if (TTU_ACTION(flags) == TTU_MUNLOCK) |
53f79acb | 1207 | goto out_unmap; |
14fa31b8 AK |
1208 | } |
1209 | if (!(flags & TTU_IGNORE_ACCESS)) { | |
b291f000 NP |
1210 | if (ptep_clear_flush_young_notify(vma, address, pte)) { |
1211 | ret = SWAP_FAIL; | |
1212 | goto out_unmap; | |
1213 | } | |
1214 | } | |
1da177e4 | 1215 | |
1da177e4 LT |
1216 | /* Nuke the page table entry. */ |
1217 | flush_cache_page(vma, address, page_to_pfn(page)); | |
2ec74c3e | 1218 | pteval = ptep_clear_flush(vma, address, pte); |
1da177e4 LT |
1219 | |
1220 | /* Move the dirty bit to the physical page now the pte is gone. */ | |
1221 | if (pte_dirty(pteval)) | |
1222 | set_page_dirty(page); | |
1223 | ||
365e9c87 HD |
1224 | /* Update high watermark before we lower rss */ |
1225 | update_hiwater_rss(mm); | |
1226 | ||
888b9f7c AK |
1227 | if (PageHWPoison(page) && !(flags & TTU_IGNORE_HWPOISON)) { |
1228 | if (PageAnon(page)) | |
d559db08 | 1229 | dec_mm_counter(mm, MM_ANONPAGES); |
888b9f7c | 1230 | else |
d559db08 | 1231 | dec_mm_counter(mm, MM_FILEPAGES); |
888b9f7c AK |
1232 | set_pte_at(mm, address, pte, |
1233 | swp_entry_to_pte(make_hwpoison_entry(page))); | |
1234 | } else if (PageAnon(page)) { | |
4c21e2f2 | 1235 | swp_entry_t entry = { .val = page_private(page) }; |
0697212a CL |
1236 | |
1237 | if (PageSwapCache(page)) { | |
1238 | /* | |
1239 | * Store the swap location in the pte. | |
1240 | * See handle_pte_fault() ... | |
1241 | */ | |
570a335b HD |
1242 | if (swap_duplicate(entry) < 0) { |
1243 | set_pte_at(mm, address, pte, pteval); | |
1244 | ret = SWAP_FAIL; | |
1245 | goto out_unmap; | |
1246 | } | |
0697212a CL |
1247 | if (list_empty(&mm->mmlist)) { |
1248 | spin_lock(&mmlist_lock); | |
1249 | if (list_empty(&mm->mmlist)) | |
1250 | list_add(&mm->mmlist, &init_mm.mmlist); | |
1251 | spin_unlock(&mmlist_lock); | |
1252 | } | |
d559db08 | 1253 | dec_mm_counter(mm, MM_ANONPAGES); |
b084d435 | 1254 | inc_mm_counter(mm, MM_SWAPENTS); |
ce1744f4 | 1255 | } else if (IS_ENABLED(CONFIG_MIGRATION)) { |
0697212a CL |
1256 | /* |
1257 | * Store the pfn of the page in a special migration | |
1258 | * pte. do_swap_page() will wait until the migration | |
1259 | * pte is removed and then restart fault handling. | |
1260 | */ | |
14fa31b8 | 1261 | BUG_ON(TTU_ACTION(flags) != TTU_MIGRATION); |
0697212a | 1262 | entry = make_migration_entry(page, pte_write(pteval)); |
1da177e4 LT |
1263 | } |
1264 | set_pte_at(mm, address, pte, swp_entry_to_pte(entry)); | |
1265 | BUG_ON(pte_file(*pte)); | |
ce1744f4 KK |
1266 | } else if (IS_ENABLED(CONFIG_MIGRATION) && |
1267 | (TTU_ACTION(flags) == TTU_MIGRATION)) { | |
04e62a29 CL |
1268 | /* Establish migration entry for a file page */ |
1269 | swp_entry_t entry; | |
1270 | entry = make_migration_entry(page, pte_write(pteval)); | |
1271 | set_pte_at(mm, address, pte, swp_entry_to_pte(entry)); | |
1272 | } else | |
d559db08 | 1273 | dec_mm_counter(mm, MM_FILEPAGES); |
1da177e4 | 1274 | |
edc315fd | 1275 | page_remove_rmap(page); |
1da177e4 LT |
1276 | page_cache_release(page); |
1277 | ||
1278 | out_unmap: | |
c0718806 | 1279 | pte_unmap_unlock(pte, ptl); |
2ec74c3e SG |
1280 | if (ret != SWAP_FAIL) |
1281 | mmu_notifier_invalidate_page(mm, address); | |
caed0f48 KM |
1282 | out: |
1283 | return ret; | |
53f79acb | 1284 | |
caed0f48 KM |
1285 | out_mlock: |
1286 | pte_unmap_unlock(pte, ptl); | |
1287 | ||
1288 | ||
1289 | /* | |
1290 | * We need mmap_sem locking, Otherwise VM_LOCKED check makes | |
1291 | * unstable result and race. Plus, We can't wait here because | |
2b575eb6 | 1292 | * we now hold anon_vma->mutex or mapping->i_mmap_mutex. |
caed0f48 KM |
1293 | * if trylock failed, the page remain in evictable lru and later |
1294 | * vmscan could retry to move the page to unevictable lru if the | |
1295 | * page is actually mlocked. | |
1296 | */ | |
1297 | if (down_read_trylock(&vma->vm_mm->mmap_sem)) { | |
1298 | if (vma->vm_flags & VM_LOCKED) { | |
1299 | mlock_vma_page(page); | |
1300 | ret = SWAP_MLOCK; | |
53f79acb | 1301 | } |
caed0f48 | 1302 | up_read(&vma->vm_mm->mmap_sem); |
53f79acb | 1303 | } |
1da177e4 LT |
1304 | return ret; |
1305 | } | |
1306 | ||
1307 | /* | |
1308 | * objrmap doesn't work for nonlinear VMAs because the assumption that | |
1309 | * offset-into-file correlates with offset-into-virtual-addresses does not hold. | |
1310 | * Consequently, given a particular page and its ->index, we cannot locate the | |
1311 | * ptes which are mapping that page without an exhaustive linear search. | |
1312 | * | |
1313 | * So what this code does is a mini "virtual scan" of each nonlinear VMA which | |
1314 | * maps the file to which the target page belongs. The ->vm_private_data field | |
1315 | * holds the current cursor into that scan. Successive searches will circulate | |
1316 | * around the vma's virtual address space. | |
1317 | * | |
1318 | * So as more replacement pressure is applied to the pages in a nonlinear VMA, | |
1319 | * more scanning pressure is placed against them as well. Eventually pages | |
1320 | * will become fully unmapped and are eligible for eviction. | |
1321 | * | |
1322 | * For very sparsely populated VMAs this is a little inefficient - chances are | |
1323 | * there there won't be many ptes located within the scan cluster. In this case | |
1324 | * maybe we could scan further - to the end of the pte page, perhaps. | |
b291f000 NP |
1325 | * |
1326 | * Mlocked pages: check VM_LOCKED under mmap_sem held for read, if we can | |
1327 | * acquire it without blocking. If vma locked, mlock the pages in the cluster, | |
1328 | * rather than unmapping them. If we encounter the "check_page" that vmscan is | |
1329 | * trying to unmap, return SWAP_MLOCK, else default SWAP_AGAIN. | |
1da177e4 LT |
1330 | */ |
1331 | #define CLUSTER_SIZE min(32*PAGE_SIZE, PMD_SIZE) | |
1332 | #define CLUSTER_MASK (~(CLUSTER_SIZE - 1)) | |
1333 | ||
b291f000 NP |
1334 | static int try_to_unmap_cluster(unsigned long cursor, unsigned int *mapcount, |
1335 | struct vm_area_struct *vma, struct page *check_page) | |
1da177e4 LT |
1336 | { |
1337 | struct mm_struct *mm = vma->vm_mm; | |
1338 | pgd_t *pgd; | |
1339 | pud_t *pud; | |
1340 | pmd_t *pmd; | |
c0718806 | 1341 | pte_t *pte; |
1da177e4 | 1342 | pte_t pteval; |
c0718806 | 1343 | spinlock_t *ptl; |
1da177e4 LT |
1344 | struct page *page; |
1345 | unsigned long address; | |
2ec74c3e SG |
1346 | unsigned long mmun_start; /* For mmu_notifiers */ |
1347 | unsigned long mmun_end; /* For mmu_notifiers */ | |
1da177e4 | 1348 | unsigned long end; |
b291f000 NP |
1349 | int ret = SWAP_AGAIN; |
1350 | int locked_vma = 0; | |
1da177e4 | 1351 | |
1da177e4 LT |
1352 | address = (vma->vm_start + cursor) & CLUSTER_MASK; |
1353 | end = address + CLUSTER_SIZE; | |
1354 | if (address < vma->vm_start) | |
1355 | address = vma->vm_start; | |
1356 | if (end > vma->vm_end) | |
1357 | end = vma->vm_end; | |
1358 | ||
1359 | pgd = pgd_offset(mm, address); | |
1360 | if (!pgd_present(*pgd)) | |
b291f000 | 1361 | return ret; |
1da177e4 LT |
1362 | |
1363 | pud = pud_offset(pgd, address); | |
1364 | if (!pud_present(*pud)) | |
b291f000 | 1365 | return ret; |
1da177e4 LT |
1366 | |
1367 | pmd = pmd_offset(pud, address); | |
1368 | if (!pmd_present(*pmd)) | |
b291f000 NP |
1369 | return ret; |
1370 | ||
2ec74c3e SG |
1371 | mmun_start = address; |
1372 | mmun_end = end; | |
1373 | mmu_notifier_invalidate_range_start(mm, mmun_start, mmun_end); | |
1374 | ||
b291f000 | 1375 | /* |
af8e3354 | 1376 | * If we can acquire the mmap_sem for read, and vma is VM_LOCKED, |
b291f000 NP |
1377 | * keep the sem while scanning the cluster for mlocking pages. |
1378 | */ | |
af8e3354 | 1379 | if (down_read_trylock(&vma->vm_mm->mmap_sem)) { |
b291f000 NP |
1380 | locked_vma = (vma->vm_flags & VM_LOCKED); |
1381 | if (!locked_vma) | |
1382 | up_read(&vma->vm_mm->mmap_sem); /* don't need it */ | |
1383 | } | |
c0718806 HD |
1384 | |
1385 | pte = pte_offset_map_lock(mm, pmd, address, &ptl); | |
1da177e4 | 1386 | |
365e9c87 HD |
1387 | /* Update high watermark before we lower rss */ |
1388 | update_hiwater_rss(mm); | |
1389 | ||
c0718806 | 1390 | for (; address < end; pte++, address += PAGE_SIZE) { |
1da177e4 LT |
1391 | if (!pte_present(*pte)) |
1392 | continue; | |
6aab341e LT |
1393 | page = vm_normal_page(vma, address, *pte); |
1394 | BUG_ON(!page || PageAnon(page)); | |
1da177e4 | 1395 | |
b291f000 NP |
1396 | if (locked_vma) { |
1397 | mlock_vma_page(page); /* no-op if already mlocked */ | |
1398 | if (page == check_page) | |
1399 | ret = SWAP_MLOCK; | |
1400 | continue; /* don't unmap */ | |
1401 | } | |
1402 | ||
cddb8a5c | 1403 | if (ptep_clear_flush_young_notify(vma, address, pte)) |
1da177e4 LT |
1404 | continue; |
1405 | ||
1406 | /* Nuke the page table entry. */ | |
eca35133 | 1407 | flush_cache_page(vma, address, pte_pfn(*pte)); |
2ec74c3e | 1408 | pteval = ptep_clear_flush(vma, address, pte); |
1da177e4 LT |
1409 | |
1410 | /* If nonlinear, store the file page offset in the pte. */ | |
1411 | if (page->index != linear_page_index(vma, address)) | |
1412 | set_pte_at(mm, address, pte, pgoff_to_pte(page->index)); | |
1413 | ||
1414 | /* Move the dirty bit to the physical page now the pte is gone. */ | |
1415 | if (pte_dirty(pteval)) | |
1416 | set_page_dirty(page); | |
1417 | ||
edc315fd | 1418 | page_remove_rmap(page); |
1da177e4 | 1419 | page_cache_release(page); |
d559db08 | 1420 | dec_mm_counter(mm, MM_FILEPAGES); |
1da177e4 LT |
1421 | (*mapcount)--; |
1422 | } | |
c0718806 | 1423 | pte_unmap_unlock(pte - 1, ptl); |
2ec74c3e | 1424 | mmu_notifier_invalidate_range_end(mm, mmun_start, mmun_end); |
b291f000 NP |
1425 | if (locked_vma) |
1426 | up_read(&vma->vm_mm->mmap_sem); | |
1427 | return ret; | |
1da177e4 LT |
1428 | } |
1429 | ||
71e3aac0 | 1430 | bool is_vma_temporary_stack(struct vm_area_struct *vma) |
a8bef8ff MG |
1431 | { |
1432 | int maybe_stack = vma->vm_flags & (VM_GROWSDOWN | VM_GROWSUP); | |
1433 | ||
1434 | if (!maybe_stack) | |
1435 | return false; | |
1436 | ||
1437 | if ((vma->vm_flags & VM_STACK_INCOMPLETE_SETUP) == | |
1438 | VM_STACK_INCOMPLETE_SETUP) | |
1439 | return true; | |
1440 | ||
1441 | return false; | |
1442 | } | |
1443 | ||
b291f000 NP |
1444 | /** |
1445 | * try_to_unmap_anon - unmap or unlock anonymous page using the object-based | |
1446 | * rmap method | |
1447 | * @page: the page to unmap/unlock | |
8051be5e | 1448 | * @flags: action and flags |
b291f000 NP |
1449 | * |
1450 | * Find all the mappings of a page using the mapping pointer and the vma chains | |
1451 | * contained in the anon_vma struct it points to. | |
1452 | * | |
1453 | * This function is only called from try_to_unmap/try_to_munlock for | |
1454 | * anonymous pages. | |
1455 | * When called from try_to_munlock(), the mmap_sem of the mm containing the vma | |
1456 | * where the page was found will be held for write. So, we won't recheck | |
1457 | * vm_flags for that VMA. That should be OK, because that vma shouldn't be | |
1458 | * 'LOCKED. | |
1459 | */ | |
14fa31b8 | 1460 | static int try_to_unmap_anon(struct page *page, enum ttu_flags flags) |
1da177e4 LT |
1461 | { |
1462 | struct anon_vma *anon_vma; | |
bf181b9f | 1463 | pgoff_t pgoff; |
5beb4930 | 1464 | struct anon_vma_chain *avc; |
1da177e4 | 1465 | int ret = SWAP_AGAIN; |
b291f000 | 1466 | |
1da177e4 LT |
1467 | anon_vma = page_lock_anon_vma(page); |
1468 | if (!anon_vma) | |
1469 | return ret; | |
1470 | ||
bf181b9f ML |
1471 | pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); |
1472 | anon_vma_interval_tree_foreach(avc, &anon_vma->rb_root, pgoff, pgoff) { | |
5beb4930 | 1473 | struct vm_area_struct *vma = avc->vma; |
a8bef8ff MG |
1474 | unsigned long address; |
1475 | ||
1476 | /* | |
1477 | * During exec, a temporary VMA is setup and later moved. | |
1478 | * The VMA is moved under the anon_vma lock but not the | |
1479 | * page tables leading to a race where migration cannot | |
1480 | * find the migration ptes. Rather than increasing the | |
1481 | * locking requirements of exec(), migration skips | |
1482 | * temporary VMAs until after exec() completes. | |
1483 | */ | |
ce1744f4 | 1484 | if (IS_ENABLED(CONFIG_MIGRATION) && (flags & TTU_MIGRATION) && |
a8bef8ff MG |
1485 | is_vma_temporary_stack(vma)) |
1486 | continue; | |
1487 | ||
1488 | address = vma_address(page, vma); | |
1cb1729b | 1489 | ret = try_to_unmap_one(page, vma, address, flags); |
53f79acb HD |
1490 | if (ret != SWAP_AGAIN || !page_mapped(page)) |
1491 | break; | |
1da177e4 | 1492 | } |
34bbd704 ON |
1493 | |
1494 | page_unlock_anon_vma(anon_vma); | |
1da177e4 LT |
1495 | return ret; |
1496 | } | |
1497 | ||
1498 | /** | |
b291f000 NP |
1499 | * try_to_unmap_file - unmap/unlock file page using the object-based rmap method |
1500 | * @page: the page to unmap/unlock | |
14fa31b8 | 1501 | * @flags: action and flags |
1da177e4 LT |
1502 | * |
1503 | * Find all the mappings of a page using the mapping pointer and the vma chains | |
1504 | * contained in the address_space struct it points to. | |
1505 | * | |
b291f000 NP |
1506 | * This function is only called from try_to_unmap/try_to_munlock for |
1507 | * object-based pages. | |
1508 | * When called from try_to_munlock(), the mmap_sem of the mm containing the vma | |
1509 | * where the page was found will be held for write. So, we won't recheck | |
1510 | * vm_flags for that VMA. That should be OK, because that vma shouldn't be | |
1511 | * 'LOCKED. | |
1da177e4 | 1512 | */ |
14fa31b8 | 1513 | static int try_to_unmap_file(struct page *page, enum ttu_flags flags) |
1da177e4 LT |
1514 | { |
1515 | struct address_space *mapping = page->mapping; | |
1516 | pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); | |
1517 | struct vm_area_struct *vma; | |
1da177e4 LT |
1518 | int ret = SWAP_AGAIN; |
1519 | unsigned long cursor; | |
1520 | unsigned long max_nl_cursor = 0; | |
1521 | unsigned long max_nl_size = 0; | |
1522 | unsigned int mapcount; | |
1523 | ||
3d48ae45 | 1524 | mutex_lock(&mapping->i_mmap_mutex); |
6b2dbba8 | 1525 | vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) { |
1cb1729b | 1526 | unsigned long address = vma_address(page, vma); |
1cb1729b | 1527 | ret = try_to_unmap_one(page, vma, address, flags); |
53f79acb HD |
1528 | if (ret != SWAP_AGAIN || !page_mapped(page)) |
1529 | goto out; | |
1da177e4 LT |
1530 | } |
1531 | ||
1532 | if (list_empty(&mapping->i_mmap_nonlinear)) | |
1533 | goto out; | |
1534 | ||
53f79acb HD |
1535 | /* |
1536 | * We don't bother to try to find the munlocked page in nonlinears. | |
1537 | * It's costly. Instead, later, page reclaim logic may call | |
1538 | * try_to_unmap(TTU_MUNLOCK) and recover PG_mlocked lazily. | |
1539 | */ | |
1540 | if (TTU_ACTION(flags) == TTU_MUNLOCK) | |
1541 | goto out; | |
1542 | ||
1da177e4 | 1543 | list_for_each_entry(vma, &mapping->i_mmap_nonlinear, |
6b2dbba8 | 1544 | shared.nonlinear) { |
1da177e4 LT |
1545 | cursor = (unsigned long) vma->vm_private_data; |
1546 | if (cursor > max_nl_cursor) | |
1547 | max_nl_cursor = cursor; | |
1548 | cursor = vma->vm_end - vma->vm_start; | |
1549 | if (cursor > max_nl_size) | |
1550 | max_nl_size = cursor; | |
1551 | } | |
1552 | ||
b291f000 | 1553 | if (max_nl_size == 0) { /* all nonlinears locked or reserved ? */ |
1da177e4 LT |
1554 | ret = SWAP_FAIL; |
1555 | goto out; | |
1556 | } | |
1557 | ||
1558 | /* | |
1559 | * We don't try to search for this page in the nonlinear vmas, | |
1560 | * and page_referenced wouldn't have found it anyway. Instead | |
1561 | * just walk the nonlinear vmas trying to age and unmap some. | |
1562 | * The mapcount of the page we came in with is irrelevant, | |
1563 | * but even so use it as a guide to how hard we should try? | |
1564 | */ | |
1565 | mapcount = page_mapcount(page); | |
1566 | if (!mapcount) | |
1567 | goto out; | |
3d48ae45 | 1568 | cond_resched(); |
1da177e4 LT |
1569 | |
1570 | max_nl_size = (max_nl_size + CLUSTER_SIZE - 1) & CLUSTER_MASK; | |
1571 | if (max_nl_cursor == 0) | |
1572 | max_nl_cursor = CLUSTER_SIZE; | |
1573 | ||
1574 | do { | |
1575 | list_for_each_entry(vma, &mapping->i_mmap_nonlinear, | |
6b2dbba8 | 1576 | shared.nonlinear) { |
1da177e4 | 1577 | cursor = (unsigned long) vma->vm_private_data; |
839b9685 | 1578 | while ( cursor < max_nl_cursor && |
1da177e4 | 1579 | cursor < vma->vm_end - vma->vm_start) { |
53f79acb HD |
1580 | if (try_to_unmap_cluster(cursor, &mapcount, |
1581 | vma, page) == SWAP_MLOCK) | |
1582 | ret = SWAP_MLOCK; | |
1da177e4 LT |
1583 | cursor += CLUSTER_SIZE; |
1584 | vma->vm_private_data = (void *) cursor; | |
1585 | if ((int)mapcount <= 0) | |
1586 | goto out; | |
1587 | } | |
1588 | vma->vm_private_data = (void *) max_nl_cursor; | |
1589 | } | |
3d48ae45 | 1590 | cond_resched(); |
1da177e4 LT |
1591 | max_nl_cursor += CLUSTER_SIZE; |
1592 | } while (max_nl_cursor <= max_nl_size); | |
1593 | ||
1594 | /* | |
1595 | * Don't loop forever (perhaps all the remaining pages are | |
1596 | * in locked vmas). Reset cursor on all unreserved nonlinear | |
1597 | * vmas, now forgetting on which ones it had fallen behind. | |
1598 | */ | |
6b2dbba8 | 1599 | list_for_each_entry(vma, &mapping->i_mmap_nonlinear, shared.nonlinear) |
101d2be7 | 1600 | vma->vm_private_data = NULL; |
1da177e4 | 1601 | out: |
3d48ae45 | 1602 | mutex_unlock(&mapping->i_mmap_mutex); |
1da177e4 LT |
1603 | return ret; |
1604 | } | |
1605 | ||
1606 | /** | |
1607 | * try_to_unmap - try to remove all page table mappings to a page | |
1608 | * @page: the page to get unmapped | |
14fa31b8 | 1609 | * @flags: action and flags |
1da177e4 LT |
1610 | * |
1611 | * Tries to remove all the page table entries which are mapping this | |
1612 | * page, used in the pageout path. Caller must hold the page lock. | |
1613 | * Return values are: | |
1614 | * | |
1615 | * SWAP_SUCCESS - we succeeded in removing all mappings | |
1616 | * SWAP_AGAIN - we missed a mapping, try again later | |
1617 | * SWAP_FAIL - the page is unswappable | |
b291f000 | 1618 | * SWAP_MLOCK - page is mlocked. |
1da177e4 | 1619 | */ |
14fa31b8 | 1620 | int try_to_unmap(struct page *page, enum ttu_flags flags) |
1da177e4 LT |
1621 | { |
1622 | int ret; | |
1623 | ||
1da177e4 | 1624 | BUG_ON(!PageLocked(page)); |
91600e9e | 1625 | VM_BUG_ON(!PageHuge(page) && PageTransHuge(page)); |
1da177e4 | 1626 | |
5ad64688 HD |
1627 | if (unlikely(PageKsm(page))) |
1628 | ret = try_to_unmap_ksm(page, flags); | |
1629 | else if (PageAnon(page)) | |
14fa31b8 | 1630 | ret = try_to_unmap_anon(page, flags); |
1da177e4 | 1631 | else |
14fa31b8 | 1632 | ret = try_to_unmap_file(page, flags); |
b291f000 | 1633 | if (ret != SWAP_MLOCK && !page_mapped(page)) |
1da177e4 LT |
1634 | ret = SWAP_SUCCESS; |
1635 | return ret; | |
1636 | } | |
81b4082d | 1637 | |
b291f000 NP |
1638 | /** |
1639 | * try_to_munlock - try to munlock a page | |
1640 | * @page: the page to be munlocked | |
1641 | * | |
1642 | * Called from munlock code. Checks all of the VMAs mapping the page | |
1643 | * to make sure nobody else has this page mlocked. The page will be | |
1644 | * returned with PG_mlocked cleared if no other vmas have it mlocked. | |
1645 | * | |
1646 | * Return values are: | |
1647 | * | |
53f79acb | 1648 | * SWAP_AGAIN - no vma is holding page mlocked, or, |
b291f000 | 1649 | * SWAP_AGAIN - page mapped in mlocked vma -- couldn't acquire mmap sem |
5ad64688 | 1650 | * SWAP_FAIL - page cannot be located at present |
b291f000 NP |
1651 | * SWAP_MLOCK - page is now mlocked. |
1652 | */ | |
1653 | int try_to_munlock(struct page *page) | |
1654 | { | |
1655 | VM_BUG_ON(!PageLocked(page) || PageLRU(page)); | |
1656 | ||
5ad64688 HD |
1657 | if (unlikely(PageKsm(page))) |
1658 | return try_to_unmap_ksm(page, TTU_MUNLOCK); | |
1659 | else if (PageAnon(page)) | |
14fa31b8 | 1660 | return try_to_unmap_anon(page, TTU_MUNLOCK); |
b291f000 | 1661 | else |
14fa31b8 | 1662 | return try_to_unmap_file(page, TTU_MUNLOCK); |
b291f000 | 1663 | } |
e9995ef9 | 1664 | |
01d8b20d | 1665 | void __put_anon_vma(struct anon_vma *anon_vma) |
76545066 | 1666 | { |
01d8b20d | 1667 | struct anon_vma *root = anon_vma->root; |
76545066 | 1668 | |
01d8b20d PZ |
1669 | if (root != anon_vma && atomic_dec_and_test(&root->refcount)) |
1670 | anon_vma_free(root); | |
76545066 | 1671 | |
01d8b20d | 1672 | anon_vma_free(anon_vma); |
76545066 | 1673 | } |
76545066 | 1674 | |
e9995ef9 HD |
1675 | #ifdef CONFIG_MIGRATION |
1676 | /* | |
1677 | * rmap_walk() and its helpers rmap_walk_anon() and rmap_walk_file(): | |
1678 | * Called by migrate.c to remove migration ptes, but might be used more later. | |
1679 | */ | |
1680 | static int rmap_walk_anon(struct page *page, int (*rmap_one)(struct page *, | |
1681 | struct vm_area_struct *, unsigned long, void *), void *arg) | |
1682 | { | |
1683 | struct anon_vma *anon_vma; | |
bf181b9f | 1684 | pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); |
5beb4930 | 1685 | struct anon_vma_chain *avc; |
e9995ef9 HD |
1686 | int ret = SWAP_AGAIN; |
1687 | ||
1688 | /* | |
1689 | * Note: remove_migration_ptes() cannot use page_lock_anon_vma() | |
1690 | * because that depends on page_mapped(); but not all its usages | |
3f6c8272 MG |
1691 | * are holding mmap_sem. Users without mmap_sem are required to |
1692 | * take a reference count to prevent the anon_vma disappearing | |
e9995ef9 HD |
1693 | */ |
1694 | anon_vma = page_anon_vma(page); | |
1695 | if (!anon_vma) | |
1696 | return ret; | |
cba48b98 | 1697 | anon_vma_lock(anon_vma); |
bf181b9f | 1698 | anon_vma_interval_tree_foreach(avc, &anon_vma->rb_root, pgoff, pgoff) { |
5beb4930 | 1699 | struct vm_area_struct *vma = avc->vma; |
e9995ef9 | 1700 | unsigned long address = vma_address(page, vma); |
e9995ef9 HD |
1701 | ret = rmap_one(page, vma, address, arg); |
1702 | if (ret != SWAP_AGAIN) | |
1703 | break; | |
1704 | } | |
cba48b98 | 1705 | anon_vma_unlock(anon_vma); |
e9995ef9 HD |
1706 | return ret; |
1707 | } | |
1708 | ||
1709 | static int rmap_walk_file(struct page *page, int (*rmap_one)(struct page *, | |
1710 | struct vm_area_struct *, unsigned long, void *), void *arg) | |
1711 | { | |
1712 | struct address_space *mapping = page->mapping; | |
1713 | pgoff_t pgoff = page->index << (PAGE_CACHE_SHIFT - PAGE_SHIFT); | |
1714 | struct vm_area_struct *vma; | |
e9995ef9 HD |
1715 | int ret = SWAP_AGAIN; |
1716 | ||
1717 | if (!mapping) | |
1718 | return ret; | |
3d48ae45 | 1719 | mutex_lock(&mapping->i_mmap_mutex); |
6b2dbba8 | 1720 | vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff, pgoff) { |
e9995ef9 | 1721 | unsigned long address = vma_address(page, vma); |
e9995ef9 HD |
1722 | ret = rmap_one(page, vma, address, arg); |
1723 | if (ret != SWAP_AGAIN) | |
1724 | break; | |
1725 | } | |
1726 | /* | |
1727 | * No nonlinear handling: being always shared, nonlinear vmas | |
1728 | * never contain migration ptes. Decide what to do about this | |
1729 | * limitation to linear when we need rmap_walk() on nonlinear. | |
1730 | */ | |
3d48ae45 | 1731 | mutex_unlock(&mapping->i_mmap_mutex); |
e9995ef9 HD |
1732 | return ret; |
1733 | } | |
1734 | ||
1735 | int rmap_walk(struct page *page, int (*rmap_one)(struct page *, | |
1736 | struct vm_area_struct *, unsigned long, void *), void *arg) | |
1737 | { | |
1738 | VM_BUG_ON(!PageLocked(page)); | |
1739 | ||
1740 | if (unlikely(PageKsm(page))) | |
1741 | return rmap_walk_ksm(page, rmap_one, arg); | |
1742 | else if (PageAnon(page)) | |
1743 | return rmap_walk_anon(page, rmap_one, arg); | |
1744 | else | |
1745 | return rmap_walk_file(page, rmap_one, arg); | |
1746 | } | |
1747 | #endif /* CONFIG_MIGRATION */ | |
0fe6e20b | 1748 | |
e3390f67 | 1749 | #ifdef CONFIG_HUGETLB_PAGE |
0fe6e20b NH |
1750 | /* |
1751 | * The following three functions are for anonymous (private mapped) hugepages. | |
1752 | * Unlike common anonymous pages, anonymous hugepages have no accounting code | |
1753 | * and no lru code, because we handle hugepages differently from common pages. | |
1754 | */ | |
1755 | static void __hugepage_set_anon_rmap(struct page *page, | |
1756 | struct vm_area_struct *vma, unsigned long address, int exclusive) | |
1757 | { | |
1758 | struct anon_vma *anon_vma = vma->anon_vma; | |
433abed6 | 1759 | |
0fe6e20b | 1760 | BUG_ON(!anon_vma); |
433abed6 NH |
1761 | |
1762 | if (PageAnon(page)) | |
1763 | return; | |
1764 | if (!exclusive) | |
1765 | anon_vma = anon_vma->root; | |
1766 | ||
0fe6e20b NH |
1767 | anon_vma = (void *) anon_vma + PAGE_MAPPING_ANON; |
1768 | page->mapping = (struct address_space *) anon_vma; | |
1769 | page->index = linear_page_index(vma, address); | |
1770 | } | |
1771 | ||
1772 | void hugepage_add_anon_rmap(struct page *page, | |
1773 | struct vm_area_struct *vma, unsigned long address) | |
1774 | { | |
1775 | struct anon_vma *anon_vma = vma->anon_vma; | |
1776 | int first; | |
a850ea30 NH |
1777 | |
1778 | BUG_ON(!PageLocked(page)); | |
0fe6e20b | 1779 | BUG_ON(!anon_vma); |
5dbe0af4 | 1780 | /* address might be in next vma when migration races vma_adjust */ |
0fe6e20b NH |
1781 | first = atomic_inc_and_test(&page->_mapcount); |
1782 | if (first) | |
1783 | __hugepage_set_anon_rmap(page, vma, address, 0); | |
1784 | } | |
1785 | ||
1786 | void hugepage_add_new_anon_rmap(struct page *page, | |
1787 | struct vm_area_struct *vma, unsigned long address) | |
1788 | { | |
1789 | BUG_ON(address < vma->vm_start || address >= vma->vm_end); | |
1790 | atomic_set(&page->_mapcount, 0); | |
1791 | __hugepage_set_anon_rmap(page, vma, address, 1); | |
1792 | } | |
e3390f67 | 1793 | #endif /* CONFIG_HUGETLB_PAGE */ |