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[mirror_ubuntu-artful-kernel.git] / mm / rmap.c
1 /*
2 * mm/rmap.c - physical to virtual reverse mappings
3 *
4 * Copyright 2001, Rik van Riel <riel@conectiva.com.br>
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 <riel@conectiva.com.br> 2001
15 * File methods by Dave McCracken <dmccr@us.ibm.com> 2003, 2004
16 * Anonymous methods by Andrea Arcangeli <andrea@suse.de> 2004
17 * Contributions by Hugh Dickins 2003, 2004
18 */
19
20 /*
21 * Lock ordering in mm:
22 *
23 * inode->i_mutex (while writing or truncating, not reading or faulting)
24 * mm->mmap_sem
25 * page->flags PG_locked (lock_page)
26 * hugetlbfs_i_mmap_rwsem_key (in huge_pmd_share)
27 * mapping->i_mmap_rwsem
28 * anon_vma->rwsem
29 * mm->page_table_lock or pte_lock
30 * zone_lru_lock (in mark_page_accessed, isolate_lru_page)
31 * swap_lock (in swap_duplicate, swap_info_get)
32 * mmlist_lock (in mmput, drain_mmlist and others)
33 * mapping->private_lock (in __set_page_dirty_buffers)
34 * mem_cgroup_{begin,end}_page_stat (memcg->move_lock)
35 * mapping->tree_lock (widely used)
36 * inode->i_lock (in set_page_dirty's __mark_inode_dirty)
37 * bdi.wb->list_lock (in set_page_dirty's __mark_inode_dirty)
38 * sb_lock (within inode_lock in fs/fs-writeback.c)
39 * mapping->tree_lock (widely used, in set_page_dirty,
40 * in arch-dependent flush_dcache_mmap_lock,
41 * within bdi.wb->list_lock in __sync_single_inode)
42 *
43 * anon_vma->rwsem,mapping->i_mutex (memory_failure, collect_procs_anon)
44 * ->tasklist_lock
45 * pte map lock
46 */
47
48 #include <linux/mm.h>
49 #include <linux/sched/mm.h>
50 #include <linux/sched/task.h>
51 #include <linux/pagemap.h>
52 #include <linux/swap.h>
53 #include <linux/swapops.h>
54 #include <linux/slab.h>
55 #include <linux/init.h>
56 #include <linux/ksm.h>
57 #include <linux/rmap.h>
58 #include <linux/rcupdate.h>
59 #include <linux/export.h>
60 #include <linux/memcontrol.h>
61 #include <linux/mmu_notifier.h>
62 #include <linux/migrate.h>
63 #include <linux/hugetlb.h>
64 #include <linux/backing-dev.h>
65 #include <linux/page_idle.h>
66
67 #include <asm/tlbflush.h>
68
69 #include <trace/events/tlb.h>
70
71 #include "internal.h"
72
73 static struct kmem_cache *anon_vma_cachep;
74 static struct kmem_cache *anon_vma_chain_cachep;
75
76 static inline struct anon_vma *anon_vma_alloc(void)
77 {
78 struct anon_vma *anon_vma;
79
80 anon_vma = kmem_cache_alloc(anon_vma_cachep, GFP_KERNEL);
81 if (anon_vma) {
82 atomic_set(&anon_vma->refcount, 1);
83 anon_vma->degree = 1; /* Reference for first vma */
84 anon_vma->parent = anon_vma;
85 /*
86 * Initialise the anon_vma root to point to itself. If called
87 * from fork, the root will be reset to the parents anon_vma.
88 */
89 anon_vma->root = anon_vma;
90 }
91
92 return anon_vma;
93 }
94
95 static inline void anon_vma_free(struct anon_vma *anon_vma)
96 {
97 VM_BUG_ON(atomic_read(&anon_vma->refcount));
98
99 /*
100 * Synchronize against page_lock_anon_vma_read() such that
101 * we can safely hold the lock without the anon_vma getting
102 * freed.
103 *
104 * Relies on the full mb implied by the atomic_dec_and_test() from
105 * put_anon_vma() against the acquire barrier implied by
106 * down_read_trylock() from page_lock_anon_vma_read(). This orders:
107 *
108 * page_lock_anon_vma_read() VS put_anon_vma()
109 * down_read_trylock() atomic_dec_and_test()
110 * LOCK MB
111 * atomic_read() rwsem_is_locked()
112 *
113 * LOCK should suffice since the actual taking of the lock must
114 * happen _before_ what follows.
115 */
116 might_sleep();
117 if (rwsem_is_locked(&anon_vma->root->rwsem)) {
118 anon_vma_lock_write(anon_vma);
119 anon_vma_unlock_write(anon_vma);
120 }
121
122 kmem_cache_free(anon_vma_cachep, anon_vma);
123 }
124
125 static inline struct anon_vma_chain *anon_vma_chain_alloc(gfp_t gfp)
126 {
127 return kmem_cache_alloc(anon_vma_chain_cachep, gfp);
128 }
129
130 static void anon_vma_chain_free(struct anon_vma_chain *anon_vma_chain)
131 {
132 kmem_cache_free(anon_vma_chain_cachep, anon_vma_chain);
133 }
134
135 static void anon_vma_chain_link(struct vm_area_struct *vma,
136 struct anon_vma_chain *avc,
137 struct anon_vma *anon_vma)
138 {
139 avc->vma = vma;
140 avc->anon_vma = anon_vma;
141 list_add(&avc->same_vma, &vma->anon_vma_chain);
142 anon_vma_interval_tree_insert(avc, &anon_vma->rb_root);
143 }
144
145 /**
146 * __anon_vma_prepare - attach an anon_vma to a memory region
147 * @vma: the memory region in question
148 *
149 * This makes sure the memory mapping described by 'vma' has
150 * an 'anon_vma' attached to it, so that we can associate the
151 * anonymous pages mapped into it with that anon_vma.
152 *
153 * The common case will be that we already have one, which
154 * is handled inline by anon_vma_prepare(). But if
155 * not we either need to find an adjacent mapping that we
156 * can re-use the anon_vma from (very common when the only
157 * reason for splitting a vma has been mprotect()), or we
158 * allocate a new one.
159 *
160 * Anon-vma allocations are very subtle, because we may have
161 * optimistically looked up an anon_vma in page_lock_anon_vma_read()
162 * and that may actually touch the spinlock even in the newly
163 * allocated vma (it depends on RCU to make sure that the
164 * anon_vma isn't actually destroyed).
165 *
166 * As a result, we need to do proper anon_vma locking even
167 * for the new allocation. At the same time, we do not want
168 * to do any locking for the common case of already having
169 * an anon_vma.
170 *
171 * This must be called with the mmap_sem held for reading.
172 */
173 int __anon_vma_prepare(struct vm_area_struct *vma)
174 {
175 struct mm_struct *mm = vma->vm_mm;
176 struct anon_vma *anon_vma, *allocated;
177 struct anon_vma_chain *avc;
178
179 might_sleep();
180
181 avc = anon_vma_chain_alloc(GFP_KERNEL);
182 if (!avc)
183 goto out_enomem;
184
185 anon_vma = find_mergeable_anon_vma(vma);
186 allocated = NULL;
187 if (!anon_vma) {
188 anon_vma = anon_vma_alloc();
189 if (unlikely(!anon_vma))
190 goto out_enomem_free_avc;
191 allocated = anon_vma;
192 }
193
194 anon_vma_lock_write(anon_vma);
195 /* page_table_lock to protect against threads */
196 spin_lock(&mm->page_table_lock);
197 if (likely(!vma->anon_vma)) {
198 vma->anon_vma = anon_vma;
199 anon_vma_chain_link(vma, avc, anon_vma);
200 /* vma reference or self-parent link for new root */
201 anon_vma->degree++;
202 allocated = NULL;
203 avc = NULL;
204 }
205 spin_unlock(&mm->page_table_lock);
206 anon_vma_unlock_write(anon_vma);
207
208 if (unlikely(allocated))
209 put_anon_vma(allocated);
210 if (unlikely(avc))
211 anon_vma_chain_free(avc);
212
213 return 0;
214
215 out_enomem_free_avc:
216 anon_vma_chain_free(avc);
217 out_enomem:
218 return -ENOMEM;
219 }
220
221 /*
222 * This is a useful helper function for locking the anon_vma root as
223 * we traverse the vma->anon_vma_chain, looping over anon_vma's that
224 * have the same vma.
225 *
226 * Such anon_vma's should have the same root, so you'd expect to see
227 * just a single mutex_lock for the whole traversal.
228 */
229 static inline struct anon_vma *lock_anon_vma_root(struct anon_vma *root, struct anon_vma *anon_vma)
230 {
231 struct anon_vma *new_root = anon_vma->root;
232 if (new_root != root) {
233 if (WARN_ON_ONCE(root))
234 up_write(&root->rwsem);
235 root = new_root;
236 down_write(&root->rwsem);
237 }
238 return root;
239 }
240
241 static inline void unlock_anon_vma_root(struct anon_vma *root)
242 {
243 if (root)
244 up_write(&root->rwsem);
245 }
246
247 /*
248 * Attach the anon_vmas from src to dst.
249 * Returns 0 on success, -ENOMEM on failure.
250 *
251 * If dst->anon_vma is NULL this function tries to find and reuse existing
252 * anon_vma which has no vmas and only one child anon_vma. This prevents
253 * degradation of anon_vma hierarchy to endless linear chain in case of
254 * constantly forking task. On the other hand, an anon_vma with more than one
255 * child isn't reused even if there was no alive vma, thus rmap walker has a
256 * good chance of avoiding scanning the whole hierarchy when it searches where
257 * page is mapped.
258 */
259 int anon_vma_clone(struct vm_area_struct *dst, struct vm_area_struct *src)
260 {
261 struct anon_vma_chain *avc, *pavc;
262 struct anon_vma *root = NULL;
263
264 list_for_each_entry_reverse(pavc, &src->anon_vma_chain, same_vma) {
265 struct anon_vma *anon_vma;
266
267 avc = anon_vma_chain_alloc(GFP_NOWAIT | __GFP_NOWARN);
268 if (unlikely(!avc)) {
269 unlock_anon_vma_root(root);
270 root = NULL;
271 avc = anon_vma_chain_alloc(GFP_KERNEL);
272 if (!avc)
273 goto enomem_failure;
274 }
275 anon_vma = pavc->anon_vma;
276 root = lock_anon_vma_root(root, anon_vma);
277 anon_vma_chain_link(dst, avc, anon_vma);
278
279 /*
280 * Reuse existing anon_vma if its degree lower than two,
281 * that means it has no vma and only one anon_vma child.
282 *
283 * Do not chose parent anon_vma, otherwise first child
284 * will always reuse it. Root anon_vma is never reused:
285 * it has self-parent reference and at least one child.
286 */
287 if (!dst->anon_vma && anon_vma != src->anon_vma &&
288 anon_vma->degree < 2)
289 dst->anon_vma = anon_vma;
290 }
291 if (dst->anon_vma)
292 dst->anon_vma->degree++;
293 unlock_anon_vma_root(root);
294 return 0;
295
296 enomem_failure:
297 /*
298 * dst->anon_vma is dropped here otherwise its degree can be incorrectly
299 * decremented in unlink_anon_vmas().
300 * We can safely do this because callers of anon_vma_clone() don't care
301 * about dst->anon_vma if anon_vma_clone() failed.
302 */
303 dst->anon_vma = NULL;
304 unlink_anon_vmas(dst);
305 return -ENOMEM;
306 }
307
308 /*
309 * Attach vma to its own anon_vma, as well as to the anon_vmas that
310 * the corresponding VMA in the parent process is attached to.
311 * Returns 0 on success, non-zero on failure.
312 */
313 int anon_vma_fork(struct vm_area_struct *vma, struct vm_area_struct *pvma)
314 {
315 struct anon_vma_chain *avc;
316 struct anon_vma *anon_vma;
317 int error;
318
319 /* Don't bother if the parent process has no anon_vma here. */
320 if (!pvma->anon_vma)
321 return 0;
322
323 /* Drop inherited anon_vma, we'll reuse existing or allocate new. */
324 vma->anon_vma = NULL;
325
326 /*
327 * First, attach the new VMA to the parent VMA's anon_vmas,
328 * so rmap can find non-COWed pages in child processes.
329 */
330 error = anon_vma_clone(vma, pvma);
331 if (error)
332 return error;
333
334 /* An existing anon_vma has been reused, all done then. */
335 if (vma->anon_vma)
336 return 0;
337
338 /* Then add our own anon_vma. */
339 anon_vma = anon_vma_alloc();
340 if (!anon_vma)
341 goto out_error;
342 avc = anon_vma_chain_alloc(GFP_KERNEL);
343 if (!avc)
344 goto out_error_free_anon_vma;
345
346 /*
347 * The root anon_vma's spinlock is the lock actually used when we
348 * lock any of the anon_vmas in this anon_vma tree.
349 */
350 anon_vma->root = pvma->anon_vma->root;
351 anon_vma->parent = pvma->anon_vma;
352 /*
353 * With refcounts, an anon_vma can stay around longer than the
354 * process it belongs to. The root anon_vma needs to be pinned until
355 * this anon_vma is freed, because the lock lives in the root.
356 */
357 get_anon_vma(anon_vma->root);
358 /* Mark this anon_vma as the one where our new (COWed) pages go. */
359 vma->anon_vma = anon_vma;
360 anon_vma_lock_write(anon_vma);
361 anon_vma_chain_link(vma, avc, anon_vma);
362 anon_vma->parent->degree++;
363 anon_vma_unlock_write(anon_vma);
364
365 return 0;
366
367 out_error_free_anon_vma:
368 put_anon_vma(anon_vma);
369 out_error:
370 unlink_anon_vmas(vma);
371 return -ENOMEM;
372 }
373
374 void unlink_anon_vmas(struct vm_area_struct *vma)
375 {
376 struct anon_vma_chain *avc, *next;
377 struct anon_vma *root = NULL;
378
379 /*
380 * Unlink each anon_vma chained to the VMA. This list is ordered
381 * from newest to oldest, ensuring the root anon_vma gets freed last.
382 */
383 list_for_each_entry_safe(avc, next, &vma->anon_vma_chain, same_vma) {
384 struct anon_vma *anon_vma = avc->anon_vma;
385
386 root = lock_anon_vma_root(root, anon_vma);
387 anon_vma_interval_tree_remove(avc, &anon_vma->rb_root);
388
389 /*
390 * Leave empty anon_vmas on the list - we'll need
391 * to free them outside the lock.
392 */
393 if (RB_EMPTY_ROOT(&anon_vma->rb_root)) {
394 anon_vma->parent->degree--;
395 continue;
396 }
397
398 list_del(&avc->same_vma);
399 anon_vma_chain_free(avc);
400 }
401 if (vma->anon_vma)
402 vma->anon_vma->degree--;
403 unlock_anon_vma_root(root);
404
405 /*
406 * Iterate the list once more, it now only contains empty and unlinked
407 * anon_vmas, destroy them. Could not do before due to __put_anon_vma()
408 * needing to write-acquire the anon_vma->root->rwsem.
409 */
410 list_for_each_entry_safe(avc, next, &vma->anon_vma_chain, same_vma) {
411 struct anon_vma *anon_vma = avc->anon_vma;
412
413 VM_WARN_ON(anon_vma->degree);
414 put_anon_vma(anon_vma);
415
416 list_del(&avc->same_vma);
417 anon_vma_chain_free(avc);
418 }
419 }
420
421 static void anon_vma_ctor(void *data)
422 {
423 struct anon_vma *anon_vma = data;
424
425 init_rwsem(&anon_vma->rwsem);
426 atomic_set(&anon_vma->refcount, 0);
427 anon_vma->rb_root = RB_ROOT;
428 }
429
430 void __init anon_vma_init(void)
431 {
432 anon_vma_cachep = kmem_cache_create("anon_vma", sizeof(struct anon_vma),
433 0, SLAB_TYPESAFE_BY_RCU|SLAB_PANIC|SLAB_ACCOUNT,
434 anon_vma_ctor);
435 anon_vma_chain_cachep = KMEM_CACHE(anon_vma_chain,
436 SLAB_PANIC|SLAB_ACCOUNT);
437 }
438
439 /*
440 * Getting a lock on a stable anon_vma from a page off the LRU is tricky!
441 *
442 * Since there is no serialization what so ever against page_remove_rmap()
443 * the best this function can do is return a locked anon_vma that might
444 * have been relevant to this page.
445 *
446 * The page might have been remapped to a different anon_vma or the anon_vma
447 * returned may already be freed (and even reused).
448 *
449 * In case it was remapped to a different anon_vma, the new anon_vma will be a
450 * child of the old anon_vma, and the anon_vma lifetime rules will therefore
451 * ensure that any anon_vma obtained from the page will still be valid for as
452 * long as we observe page_mapped() [ hence all those page_mapped() tests ].
453 *
454 * All users of this function must be very careful when walking the anon_vma
455 * chain and verify that the page in question is indeed mapped in it
456 * [ something equivalent to page_mapped_in_vma() ].
457 *
458 * Since anon_vma's slab is DESTROY_BY_RCU and we know from page_remove_rmap()
459 * that the anon_vma pointer from page->mapping is valid if there is a
460 * mapcount, we can dereference the anon_vma after observing those.
461 */
462 struct anon_vma *page_get_anon_vma(struct page *page)
463 {
464 struct anon_vma *anon_vma = NULL;
465 unsigned long anon_mapping;
466
467 rcu_read_lock();
468 anon_mapping = (unsigned long)READ_ONCE(page->mapping);
469 if ((anon_mapping & PAGE_MAPPING_FLAGS) != PAGE_MAPPING_ANON)
470 goto out;
471 if (!page_mapped(page))
472 goto out;
473
474 anon_vma = (struct anon_vma *) (anon_mapping - PAGE_MAPPING_ANON);
475 if (!atomic_inc_not_zero(&anon_vma->refcount)) {
476 anon_vma = NULL;
477 goto out;
478 }
479
480 /*
481 * If this page is still mapped, then its anon_vma cannot have been
482 * freed. But if it has been unmapped, we have no security against the
483 * anon_vma structure being freed and reused (for another anon_vma:
484 * SLAB_TYPESAFE_BY_RCU guarantees that - so the atomic_inc_not_zero()
485 * above cannot corrupt).
486 */
487 if (!page_mapped(page)) {
488 rcu_read_unlock();
489 put_anon_vma(anon_vma);
490 return NULL;
491 }
492 out:
493 rcu_read_unlock();
494
495 return anon_vma;
496 }
497
498 /*
499 * Similar to page_get_anon_vma() except it locks the anon_vma.
500 *
501 * Its a little more complex as it tries to keep the fast path to a single
502 * atomic op -- the trylock. If we fail the trylock, we fall back to getting a
503 * reference like with page_get_anon_vma() and then block on the mutex.
504 */
505 struct anon_vma *page_lock_anon_vma_read(struct page *page)
506 {
507 struct anon_vma *anon_vma = NULL;
508 struct anon_vma *root_anon_vma;
509 unsigned long anon_mapping;
510
511 rcu_read_lock();
512 anon_mapping = (unsigned long)READ_ONCE(page->mapping);
513 if ((anon_mapping & PAGE_MAPPING_FLAGS) != PAGE_MAPPING_ANON)
514 goto out;
515 if (!page_mapped(page))
516 goto out;
517
518 anon_vma = (struct anon_vma *) (anon_mapping - PAGE_MAPPING_ANON);
519 root_anon_vma = READ_ONCE(anon_vma->root);
520 if (down_read_trylock(&root_anon_vma->rwsem)) {
521 /*
522 * If the page is still mapped, then this anon_vma is still
523 * its anon_vma, and holding the mutex ensures that it will
524 * not go away, see anon_vma_free().
525 */
526 if (!page_mapped(page)) {
527 up_read(&root_anon_vma->rwsem);
528 anon_vma = NULL;
529 }
530 goto out;
531 }
532
533 /* trylock failed, we got to sleep */
534 if (!atomic_inc_not_zero(&anon_vma->refcount)) {
535 anon_vma = NULL;
536 goto out;
537 }
538
539 if (!page_mapped(page)) {
540 rcu_read_unlock();
541 put_anon_vma(anon_vma);
542 return NULL;
543 }
544
545 /* we pinned the anon_vma, its safe to sleep */
546 rcu_read_unlock();
547 anon_vma_lock_read(anon_vma);
548
549 if (atomic_dec_and_test(&anon_vma->refcount)) {
550 /*
551 * Oops, we held the last refcount, release the lock
552 * and bail -- can't simply use put_anon_vma() because
553 * we'll deadlock on the anon_vma_lock_write() recursion.
554 */
555 anon_vma_unlock_read(anon_vma);
556 __put_anon_vma(anon_vma);
557 anon_vma = NULL;
558 }
559
560 return anon_vma;
561
562 out:
563 rcu_read_unlock();
564 return anon_vma;
565 }
566
567 void page_unlock_anon_vma_read(struct anon_vma *anon_vma)
568 {
569 anon_vma_unlock_read(anon_vma);
570 }
571
572 #ifdef CONFIG_ARCH_WANT_BATCHED_UNMAP_TLB_FLUSH
573 /*
574 * Flush TLB entries for recently unmapped pages from remote CPUs. It is
575 * important if a PTE was dirty when it was unmapped that it's flushed
576 * before any IO is initiated on the page to prevent lost writes. Similarly,
577 * it must be flushed before freeing to prevent data leakage.
578 */
579 void try_to_unmap_flush(void)
580 {
581 struct tlbflush_unmap_batch *tlb_ubc = &current->tlb_ubc;
582
583 if (!tlb_ubc->flush_required)
584 return;
585
586 arch_tlbbatch_flush(&tlb_ubc->arch);
587 tlb_ubc->flush_required = false;
588 tlb_ubc->writable = false;
589 }
590
591 /* Flush iff there are potentially writable TLB entries that can race with IO */
592 void try_to_unmap_flush_dirty(void)
593 {
594 struct tlbflush_unmap_batch *tlb_ubc = &current->tlb_ubc;
595
596 if (tlb_ubc->writable)
597 try_to_unmap_flush();
598 }
599
600 static void set_tlb_ubc_flush_pending(struct mm_struct *mm, bool writable)
601 {
602 struct tlbflush_unmap_batch *tlb_ubc = &current->tlb_ubc;
603
604 arch_tlbbatch_add_mm(&tlb_ubc->arch, mm);
605 tlb_ubc->flush_required = true;
606
607 /*
608 * If the PTE was dirty then it's best to assume it's writable. The
609 * caller must use try_to_unmap_flush_dirty() or try_to_unmap_flush()
610 * before the page is queued for IO.
611 */
612 if (writable)
613 tlb_ubc->writable = true;
614 }
615
616 /*
617 * Returns true if the TLB flush should be deferred to the end of a batch of
618 * unmap operations to reduce IPIs.
619 */
620 static bool should_defer_flush(struct mm_struct *mm, enum ttu_flags flags)
621 {
622 bool should_defer = false;
623
624 if (!(flags & TTU_BATCH_FLUSH))
625 return false;
626
627 /* If remote CPUs need to be flushed then defer batch the flush */
628 if (cpumask_any_but(mm_cpumask(mm), get_cpu()) < nr_cpu_ids)
629 should_defer = true;
630 put_cpu();
631
632 return should_defer;
633 }
634 #else
635 static void set_tlb_ubc_flush_pending(struct mm_struct *mm, bool writable)
636 {
637 }
638
639 static bool should_defer_flush(struct mm_struct *mm, enum ttu_flags flags)
640 {
641 return false;
642 }
643 #endif /* CONFIG_ARCH_WANT_BATCHED_UNMAP_TLB_FLUSH */
644
645 /*
646 * At what user virtual address is page expected in vma?
647 * Caller should check the page is actually part of the vma.
648 */
649 unsigned long page_address_in_vma(struct page *page, struct vm_area_struct *vma)
650 {
651 unsigned long address;
652 if (PageAnon(page)) {
653 struct anon_vma *page__anon_vma = page_anon_vma(page);
654 /*
655 * Note: swapoff's unuse_vma() is more efficient with this
656 * check, and needs it to match anon_vma when KSM is active.
657 */
658 if (!vma->anon_vma || !page__anon_vma ||
659 vma->anon_vma->root != page__anon_vma->root)
660 return -EFAULT;
661 } else if (page->mapping) {
662 if (!vma->vm_file || vma->vm_file->f_mapping != page->mapping)
663 return -EFAULT;
664 } else
665 return -EFAULT;
666 address = __vma_address(page, vma);
667 if (unlikely(address < vma->vm_start || address >= vma->vm_end))
668 return -EFAULT;
669 return address;
670 }
671
672 pmd_t *mm_find_pmd(struct mm_struct *mm, unsigned long address)
673 {
674 pgd_t *pgd;
675 p4d_t *p4d;
676 pud_t *pud;
677 pmd_t *pmd = NULL;
678 pmd_t pmde;
679
680 pgd = pgd_offset(mm, address);
681 if (!pgd_present(*pgd))
682 goto out;
683
684 p4d = p4d_offset(pgd, address);
685 if (!p4d_present(*p4d))
686 goto out;
687
688 pud = pud_offset(p4d, address);
689 if (!pud_present(*pud))
690 goto out;
691
692 pmd = pmd_offset(pud, address);
693 /*
694 * Some THP functions use the sequence pmdp_huge_clear_flush(), set_pmd_at()
695 * without holding anon_vma lock for write. So when looking for a
696 * genuine pmde (in which to find pte), test present and !THP together.
697 */
698 pmde = *pmd;
699 barrier();
700 if (!pmd_present(pmde) || pmd_trans_huge(pmde))
701 pmd = NULL;
702 out:
703 return pmd;
704 }
705
706 struct page_referenced_arg {
707 int mapcount;
708 int referenced;
709 unsigned long vm_flags;
710 struct mem_cgroup *memcg;
711 };
712 /*
713 * arg: page_referenced_arg will be passed
714 */
715 static bool page_referenced_one(struct page *page, struct vm_area_struct *vma,
716 unsigned long address, void *arg)
717 {
718 struct page_referenced_arg *pra = arg;
719 struct page_vma_mapped_walk pvmw = {
720 .page = page,
721 .vma = vma,
722 .address = address,
723 };
724 int referenced = 0;
725
726 while (page_vma_mapped_walk(&pvmw)) {
727 address = pvmw.address;
728
729 if (vma->vm_flags & VM_LOCKED) {
730 page_vma_mapped_walk_done(&pvmw);
731 pra->vm_flags |= VM_LOCKED;
732 return false; /* To break the loop */
733 }
734
735 if (pvmw.pte) {
736 if (ptep_clear_flush_young_notify(vma, address,
737 pvmw.pte)) {
738 /*
739 * Don't treat a reference through
740 * a sequentially read mapping as such.
741 * If the page has been used in another mapping,
742 * we will catch it; if this other mapping is
743 * already gone, the unmap path will have set
744 * PG_referenced or activated the page.
745 */
746 if (likely(!(vma->vm_flags & VM_SEQ_READ)))
747 referenced++;
748 }
749 } else if (IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE)) {
750 if (pmdp_clear_flush_young_notify(vma, address,
751 pvmw.pmd))
752 referenced++;
753 } else {
754 /* unexpected pmd-mapped page? */
755 WARN_ON_ONCE(1);
756 }
757
758 pra->mapcount--;
759 }
760
761 if (referenced)
762 clear_page_idle(page);
763 if (test_and_clear_page_young(page))
764 referenced++;
765
766 if (referenced) {
767 pra->referenced++;
768 pra->vm_flags |= vma->vm_flags;
769 }
770
771 if (!pra->mapcount)
772 return false; /* To break the loop */
773
774 return true;
775 }
776
777 static bool invalid_page_referenced_vma(struct vm_area_struct *vma, void *arg)
778 {
779 struct page_referenced_arg *pra = arg;
780 struct mem_cgroup *memcg = pra->memcg;
781
782 if (!mm_match_cgroup(vma->vm_mm, memcg))
783 return true;
784
785 return false;
786 }
787
788 /**
789 * page_referenced - test if the page was referenced
790 * @page: the page to test
791 * @is_locked: caller holds lock on the page
792 * @memcg: target memory cgroup
793 * @vm_flags: collect encountered vma->vm_flags who actually referenced the page
794 *
795 * Quick test_and_clear_referenced for all mappings to a page,
796 * returns the number of ptes which referenced the page.
797 */
798 int page_referenced(struct page *page,
799 int is_locked,
800 struct mem_cgroup *memcg,
801 unsigned long *vm_flags)
802 {
803 int we_locked = 0;
804 struct page_referenced_arg pra = {
805 .mapcount = total_mapcount(page),
806 .memcg = memcg,
807 };
808 struct rmap_walk_control rwc = {
809 .rmap_one = page_referenced_one,
810 .arg = (void *)&pra,
811 .anon_lock = page_lock_anon_vma_read,
812 };
813
814 *vm_flags = 0;
815 if (!page_mapped(page))
816 return 0;
817
818 if (!page_rmapping(page))
819 return 0;
820
821 if (!is_locked && (!PageAnon(page) || PageKsm(page))) {
822 we_locked = trylock_page(page);
823 if (!we_locked)
824 return 1;
825 }
826
827 /*
828 * If we are reclaiming on behalf of a cgroup, skip
829 * counting on behalf of references from different
830 * cgroups
831 */
832 if (memcg) {
833 rwc.invalid_vma = invalid_page_referenced_vma;
834 }
835
836 rmap_walk(page, &rwc);
837 *vm_flags = pra.vm_flags;
838
839 if (we_locked)
840 unlock_page(page);
841
842 return pra.referenced;
843 }
844
845 static bool page_mkclean_one(struct page *page, struct vm_area_struct *vma,
846 unsigned long address, void *arg)
847 {
848 struct page_vma_mapped_walk pvmw = {
849 .page = page,
850 .vma = vma,
851 .address = address,
852 .flags = PVMW_SYNC,
853 };
854 int *cleaned = arg;
855
856 while (page_vma_mapped_walk(&pvmw)) {
857 int ret = 0;
858 address = pvmw.address;
859 if (pvmw.pte) {
860 pte_t entry;
861 pte_t *pte = pvmw.pte;
862
863 if (!pte_dirty(*pte) && !pte_write(*pte))
864 continue;
865
866 flush_cache_page(vma, address, pte_pfn(*pte));
867 entry = ptep_clear_flush(vma, address, pte);
868 entry = pte_wrprotect(entry);
869 entry = pte_mkclean(entry);
870 set_pte_at(vma->vm_mm, address, pte, entry);
871 ret = 1;
872 } else {
873 #ifdef CONFIG_TRANSPARENT_HUGE_PAGECACHE
874 pmd_t *pmd = pvmw.pmd;
875 pmd_t entry;
876
877 if (!pmd_dirty(*pmd) && !pmd_write(*pmd))
878 continue;
879
880 flush_cache_page(vma, address, page_to_pfn(page));
881 entry = pmdp_huge_clear_flush(vma, address, pmd);
882 entry = pmd_wrprotect(entry);
883 entry = pmd_mkclean(entry);
884 set_pmd_at(vma->vm_mm, address, pmd, entry);
885 ret = 1;
886 #else
887 /* unexpected pmd-mapped page? */
888 WARN_ON_ONCE(1);
889 #endif
890 }
891
892 if (ret) {
893 mmu_notifier_invalidate_page(vma->vm_mm, address);
894 (*cleaned)++;
895 }
896 }
897
898 return true;
899 }
900
901 static bool invalid_mkclean_vma(struct vm_area_struct *vma, void *arg)
902 {
903 if (vma->vm_flags & VM_SHARED)
904 return false;
905
906 return true;
907 }
908
909 int page_mkclean(struct page *page)
910 {
911 int cleaned = 0;
912 struct address_space *mapping;
913 struct rmap_walk_control rwc = {
914 .arg = (void *)&cleaned,
915 .rmap_one = page_mkclean_one,
916 .invalid_vma = invalid_mkclean_vma,
917 };
918
919 BUG_ON(!PageLocked(page));
920
921 if (!page_mapped(page))
922 return 0;
923
924 mapping = page_mapping(page);
925 if (!mapping)
926 return 0;
927
928 rmap_walk(page, &rwc);
929
930 return cleaned;
931 }
932 EXPORT_SYMBOL_GPL(page_mkclean);
933
934 /**
935 * page_move_anon_rmap - move a page to our anon_vma
936 * @page: the page to move to our anon_vma
937 * @vma: the vma the page belongs to
938 *
939 * When a page belongs exclusively to one process after a COW event,
940 * that page can be moved into the anon_vma that belongs to just that
941 * process, so the rmap code will not search the parent or sibling
942 * processes.
943 */
944 void page_move_anon_rmap(struct page *page, struct vm_area_struct *vma)
945 {
946 struct anon_vma *anon_vma = vma->anon_vma;
947
948 page = compound_head(page);
949
950 VM_BUG_ON_PAGE(!PageLocked(page), page);
951 VM_BUG_ON_VMA(!anon_vma, vma);
952
953 anon_vma = (void *) anon_vma + PAGE_MAPPING_ANON;
954 /*
955 * Ensure that anon_vma and the PAGE_MAPPING_ANON bit are written
956 * simultaneously, so a concurrent reader (eg page_referenced()'s
957 * PageAnon()) will not see one without the other.
958 */
959 WRITE_ONCE(page->mapping, (struct address_space *) anon_vma);
960 }
961
962 /**
963 * __page_set_anon_rmap - set up new anonymous rmap
964 * @page: Page to add to rmap
965 * @vma: VM area to add page to.
966 * @address: User virtual address of the mapping
967 * @exclusive: the page is exclusively owned by the current process
968 */
969 static void __page_set_anon_rmap(struct page *page,
970 struct vm_area_struct *vma, unsigned long address, int exclusive)
971 {
972 struct anon_vma *anon_vma = vma->anon_vma;
973
974 BUG_ON(!anon_vma);
975
976 if (PageAnon(page))
977 return;
978
979 /*
980 * If the page isn't exclusively mapped into this vma,
981 * we must use the _oldest_ possible anon_vma for the
982 * page mapping!
983 */
984 if (!exclusive)
985 anon_vma = anon_vma->root;
986
987 anon_vma = (void *) anon_vma + PAGE_MAPPING_ANON;
988 page->mapping = (struct address_space *) anon_vma;
989 page->index = linear_page_index(vma, address);
990 }
991
992 /**
993 * __page_check_anon_rmap - sanity check anonymous rmap addition
994 * @page: the page to add the mapping to
995 * @vma: the vm area in which the mapping is added
996 * @address: the user virtual address mapped
997 */
998 static void __page_check_anon_rmap(struct page *page,
999 struct vm_area_struct *vma, unsigned long address)
1000 {
1001 #ifdef CONFIG_DEBUG_VM
1002 /*
1003 * The page's anon-rmap details (mapping and index) are guaranteed to
1004 * be set up correctly at this point.
1005 *
1006 * We have exclusion against page_add_anon_rmap because the caller
1007 * always holds the page locked, except if called from page_dup_rmap,
1008 * in which case the page is already known to be setup.
1009 *
1010 * We have exclusion against page_add_new_anon_rmap because those pages
1011 * are initially only visible via the pagetables, and the pte is locked
1012 * over the call to page_add_new_anon_rmap.
1013 */
1014 BUG_ON(page_anon_vma(page)->root != vma->anon_vma->root);
1015 BUG_ON(page_to_pgoff(page) != linear_page_index(vma, address));
1016 #endif
1017 }
1018
1019 /**
1020 * page_add_anon_rmap - add pte mapping to an anonymous page
1021 * @page: the page to add the mapping to
1022 * @vma: the vm area in which the mapping is added
1023 * @address: the user virtual address mapped
1024 * @compound: charge the page as compound or small page
1025 *
1026 * The caller needs to hold the pte lock, and the page must be locked in
1027 * the anon_vma case: to serialize mapping,index checking after setting,
1028 * and to ensure that PageAnon is not being upgraded racily to PageKsm
1029 * (but PageKsm is never downgraded to PageAnon).
1030 */
1031 void page_add_anon_rmap(struct page *page,
1032 struct vm_area_struct *vma, unsigned long address, bool compound)
1033 {
1034 do_page_add_anon_rmap(page, vma, address, compound ? RMAP_COMPOUND : 0);
1035 }
1036
1037 /*
1038 * Special version of the above for do_swap_page, which often runs
1039 * into pages that are exclusively owned by the current process.
1040 * Everybody else should continue to use page_add_anon_rmap above.
1041 */
1042 void do_page_add_anon_rmap(struct page *page,
1043 struct vm_area_struct *vma, unsigned long address, int flags)
1044 {
1045 bool compound = flags & RMAP_COMPOUND;
1046 bool first;
1047
1048 if (compound) {
1049 atomic_t *mapcount;
1050 VM_BUG_ON_PAGE(!PageLocked(page), page);
1051 VM_BUG_ON_PAGE(!PageTransHuge(page), page);
1052 mapcount = compound_mapcount_ptr(page);
1053 first = atomic_inc_and_test(mapcount);
1054 } else {
1055 first = atomic_inc_and_test(&page->_mapcount);
1056 }
1057
1058 if (first) {
1059 int nr = compound ? hpage_nr_pages(page) : 1;
1060 /*
1061 * We use the irq-unsafe __{inc|mod}_zone_page_stat because
1062 * these counters are not modified in interrupt context, and
1063 * pte lock(a spinlock) is held, which implies preemption
1064 * disabled.
1065 */
1066 if (compound)
1067 __inc_node_page_state(page, NR_ANON_THPS);
1068 __mod_node_page_state(page_pgdat(page), NR_ANON_MAPPED, nr);
1069 }
1070 if (unlikely(PageKsm(page)))
1071 return;
1072
1073 VM_BUG_ON_PAGE(!PageLocked(page), page);
1074
1075 /* address might be in next vma when migration races vma_adjust */
1076 if (first)
1077 __page_set_anon_rmap(page, vma, address,
1078 flags & RMAP_EXCLUSIVE);
1079 else
1080 __page_check_anon_rmap(page, vma, address);
1081 }
1082
1083 /**
1084 * page_add_new_anon_rmap - add pte mapping to a new anonymous page
1085 * @page: the page to add the mapping to
1086 * @vma: the vm area in which the mapping is added
1087 * @address: the user virtual address mapped
1088 * @compound: charge the page as compound or small page
1089 *
1090 * Same as page_add_anon_rmap but must only be called on *new* pages.
1091 * This means the inc-and-test can be bypassed.
1092 * Page does not have to be locked.
1093 */
1094 void page_add_new_anon_rmap(struct page *page,
1095 struct vm_area_struct *vma, unsigned long address, bool compound)
1096 {
1097 int nr = compound ? hpage_nr_pages(page) : 1;
1098
1099 VM_BUG_ON_VMA(address < vma->vm_start || address >= vma->vm_end, vma);
1100 __SetPageSwapBacked(page);
1101 if (compound) {
1102 VM_BUG_ON_PAGE(!PageTransHuge(page), page);
1103 /* increment count (starts at -1) */
1104 atomic_set(compound_mapcount_ptr(page), 0);
1105 __inc_node_page_state(page, NR_ANON_THPS);
1106 } else {
1107 /* Anon THP always mapped first with PMD */
1108 VM_BUG_ON_PAGE(PageTransCompound(page), page);
1109 /* increment count (starts at -1) */
1110 atomic_set(&page->_mapcount, 0);
1111 }
1112 __mod_node_page_state(page_pgdat(page), NR_ANON_MAPPED, nr);
1113 __page_set_anon_rmap(page, vma, address, 1);
1114 }
1115
1116 /**
1117 * page_add_file_rmap - add pte mapping to a file page
1118 * @page: the page to add the mapping to
1119 *
1120 * The caller needs to hold the pte lock.
1121 */
1122 void page_add_file_rmap(struct page *page, bool compound)
1123 {
1124 int i, nr = 1;
1125
1126 VM_BUG_ON_PAGE(compound && !PageTransHuge(page), page);
1127 lock_page_memcg(page);
1128 if (compound && PageTransHuge(page)) {
1129 for (i = 0, nr = 0; i < HPAGE_PMD_NR; i++) {
1130 if (atomic_inc_and_test(&page[i]._mapcount))
1131 nr++;
1132 }
1133 if (!atomic_inc_and_test(compound_mapcount_ptr(page)))
1134 goto out;
1135 VM_BUG_ON_PAGE(!PageSwapBacked(page), page);
1136 __inc_node_page_state(page, NR_SHMEM_PMDMAPPED);
1137 } else {
1138 if (PageTransCompound(page) && page_mapping(page)) {
1139 VM_WARN_ON_ONCE(!PageLocked(page));
1140
1141 SetPageDoubleMap(compound_head(page));
1142 if (PageMlocked(page))
1143 clear_page_mlock(compound_head(page));
1144 }
1145 if (!atomic_inc_and_test(&page->_mapcount))
1146 goto out;
1147 }
1148 __mod_node_page_state(page_pgdat(page), NR_FILE_MAPPED, nr);
1149 mod_memcg_page_state(page, NR_FILE_MAPPED, nr);
1150 out:
1151 unlock_page_memcg(page);
1152 }
1153
1154 static void page_remove_file_rmap(struct page *page, bool compound)
1155 {
1156 int i, nr = 1;
1157
1158 VM_BUG_ON_PAGE(compound && !PageHead(page), page);
1159 lock_page_memcg(page);
1160
1161 /* Hugepages are not counted in NR_FILE_MAPPED for now. */
1162 if (unlikely(PageHuge(page))) {
1163 /* hugetlb pages are always mapped with pmds */
1164 atomic_dec(compound_mapcount_ptr(page));
1165 goto out;
1166 }
1167
1168 /* page still mapped by someone else? */
1169 if (compound && PageTransHuge(page)) {
1170 for (i = 0, nr = 0; i < HPAGE_PMD_NR; i++) {
1171 if (atomic_add_negative(-1, &page[i]._mapcount))
1172 nr++;
1173 }
1174 if (!atomic_add_negative(-1, compound_mapcount_ptr(page)))
1175 goto out;
1176 VM_BUG_ON_PAGE(!PageSwapBacked(page), page);
1177 __dec_node_page_state(page, NR_SHMEM_PMDMAPPED);
1178 } else {
1179 if (!atomic_add_negative(-1, &page->_mapcount))
1180 goto out;
1181 }
1182
1183 /*
1184 * We use the irq-unsafe __{inc|mod}_zone_page_state because
1185 * these counters are not modified in interrupt context, and
1186 * pte lock(a spinlock) is held, which implies preemption disabled.
1187 */
1188 __mod_node_page_state(page_pgdat(page), NR_FILE_MAPPED, -nr);
1189 mod_memcg_page_state(page, NR_FILE_MAPPED, -nr);
1190
1191 if (unlikely(PageMlocked(page)))
1192 clear_page_mlock(page);
1193 out:
1194 unlock_page_memcg(page);
1195 }
1196
1197 static void page_remove_anon_compound_rmap(struct page *page)
1198 {
1199 int i, nr;
1200
1201 if (!atomic_add_negative(-1, compound_mapcount_ptr(page)))
1202 return;
1203
1204 /* Hugepages are not counted in NR_ANON_PAGES for now. */
1205 if (unlikely(PageHuge(page)))
1206 return;
1207
1208 if (!IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE))
1209 return;
1210
1211 __dec_node_page_state(page, NR_ANON_THPS);
1212
1213 if (TestClearPageDoubleMap(page)) {
1214 /*
1215 * Subpages can be mapped with PTEs too. Check how many of
1216 * themi are still mapped.
1217 */
1218 for (i = 0, nr = 0; i < HPAGE_PMD_NR; i++) {
1219 if (atomic_add_negative(-1, &page[i]._mapcount))
1220 nr++;
1221 }
1222 } else {
1223 nr = HPAGE_PMD_NR;
1224 }
1225
1226 if (unlikely(PageMlocked(page)))
1227 clear_page_mlock(page);
1228
1229 if (nr) {
1230 __mod_node_page_state(page_pgdat(page), NR_ANON_MAPPED, -nr);
1231 deferred_split_huge_page(page);
1232 }
1233 }
1234
1235 /**
1236 * page_remove_rmap - take down pte mapping from a page
1237 * @page: page to remove mapping from
1238 * @compound: uncharge the page as compound or small page
1239 *
1240 * The caller needs to hold the pte lock.
1241 */
1242 void page_remove_rmap(struct page *page, bool compound)
1243 {
1244 if (!PageAnon(page))
1245 return page_remove_file_rmap(page, compound);
1246
1247 if (compound)
1248 return page_remove_anon_compound_rmap(page);
1249
1250 /* page still mapped by someone else? */
1251 if (!atomic_add_negative(-1, &page->_mapcount))
1252 return;
1253
1254 /*
1255 * We use the irq-unsafe __{inc|mod}_zone_page_stat because
1256 * these counters are not modified in interrupt context, and
1257 * pte lock(a spinlock) is held, which implies preemption disabled.
1258 */
1259 __dec_node_page_state(page, NR_ANON_MAPPED);
1260
1261 if (unlikely(PageMlocked(page)))
1262 clear_page_mlock(page);
1263
1264 if (PageTransCompound(page))
1265 deferred_split_huge_page(compound_head(page));
1266
1267 /*
1268 * It would be tidy to reset the PageAnon mapping here,
1269 * but that might overwrite a racing page_add_anon_rmap
1270 * which increments mapcount after us but sets mapping
1271 * before us: so leave the reset to free_hot_cold_page,
1272 * and remember that it's only reliable while mapped.
1273 * Leaving it set also helps swapoff to reinstate ptes
1274 * faster for those pages still in swapcache.
1275 */
1276 }
1277
1278 /*
1279 * @arg: enum ttu_flags will be passed to this argument
1280 */
1281 static bool try_to_unmap_one(struct page *page, struct vm_area_struct *vma,
1282 unsigned long address, void *arg)
1283 {
1284 struct mm_struct *mm = vma->vm_mm;
1285 struct page_vma_mapped_walk pvmw = {
1286 .page = page,
1287 .vma = vma,
1288 .address = address,
1289 };
1290 pte_t pteval;
1291 struct page *subpage;
1292 bool ret = true;
1293 enum ttu_flags flags = (enum ttu_flags)arg;
1294
1295 /* munlock has nothing to gain from examining un-locked vmas */
1296 if ((flags & TTU_MUNLOCK) && !(vma->vm_flags & VM_LOCKED))
1297 return true;
1298
1299 if (flags & TTU_SPLIT_HUGE_PMD) {
1300 split_huge_pmd_address(vma, address,
1301 flags & TTU_MIGRATION, page);
1302 }
1303
1304 while (page_vma_mapped_walk(&pvmw)) {
1305 /*
1306 * If the page is mlock()d, we cannot swap it out.
1307 * If it's recently referenced (perhaps page_referenced
1308 * skipped over this mm) then we should reactivate it.
1309 */
1310 if (!(flags & TTU_IGNORE_MLOCK)) {
1311 if (vma->vm_flags & VM_LOCKED) {
1312 /* PTE-mapped THP are never mlocked */
1313 if (!PageTransCompound(page)) {
1314 /*
1315 * Holding pte lock, we do *not* need
1316 * mmap_sem here
1317 */
1318 mlock_vma_page(page);
1319 }
1320 ret = false;
1321 page_vma_mapped_walk_done(&pvmw);
1322 break;
1323 }
1324 if (flags & TTU_MUNLOCK)
1325 continue;
1326 }
1327
1328 /* Unexpected PMD-mapped THP? */
1329 VM_BUG_ON_PAGE(!pvmw.pte, page);
1330
1331 subpage = page - page_to_pfn(page) + pte_pfn(*pvmw.pte);
1332 address = pvmw.address;
1333
1334
1335 if (!(flags & TTU_IGNORE_ACCESS)) {
1336 if (ptep_clear_flush_young_notify(vma, address,
1337 pvmw.pte)) {
1338 ret = false;
1339 page_vma_mapped_walk_done(&pvmw);
1340 break;
1341 }
1342 }
1343
1344 /* Nuke the page table entry. */
1345 flush_cache_page(vma, address, pte_pfn(*pvmw.pte));
1346 if (should_defer_flush(mm, flags)) {
1347 /*
1348 * We clear the PTE but do not flush so potentially
1349 * a remote CPU could still be writing to the page.
1350 * If the entry was previously clean then the
1351 * architecture must guarantee that a clear->dirty
1352 * transition on a cached TLB entry is written through
1353 * and traps if the PTE is unmapped.
1354 */
1355 pteval = ptep_get_and_clear(mm, address, pvmw.pte);
1356
1357 set_tlb_ubc_flush_pending(mm, pte_dirty(pteval));
1358 } else {
1359 pteval = ptep_clear_flush(vma, address, pvmw.pte);
1360 }
1361
1362 /* Move the dirty bit to the page. Now the pte is gone. */
1363 if (pte_dirty(pteval))
1364 set_page_dirty(page);
1365
1366 /* Update high watermark before we lower rss */
1367 update_hiwater_rss(mm);
1368
1369 if (PageHWPoison(page) && !(flags & TTU_IGNORE_HWPOISON)) {
1370 if (PageHuge(page)) {
1371 int nr = 1 << compound_order(page);
1372 hugetlb_count_sub(nr, mm);
1373 } else {
1374 dec_mm_counter(mm, mm_counter(page));
1375 }
1376
1377 pteval = swp_entry_to_pte(make_hwpoison_entry(subpage));
1378 set_pte_at(mm, address, pvmw.pte, pteval);
1379 } else if (pte_unused(pteval)) {
1380 /*
1381 * The guest indicated that the page content is of no
1382 * interest anymore. Simply discard the pte, vmscan
1383 * will take care of the rest.
1384 */
1385 dec_mm_counter(mm, mm_counter(page));
1386 } else if (IS_ENABLED(CONFIG_MIGRATION) &&
1387 (flags & TTU_MIGRATION)) {
1388 swp_entry_t entry;
1389 pte_t swp_pte;
1390 /*
1391 * Store the pfn of the page in a special migration
1392 * pte. do_swap_page() will wait until the migration
1393 * pte is removed and then restart fault handling.
1394 */
1395 entry = make_migration_entry(subpage,
1396 pte_write(pteval));
1397 swp_pte = swp_entry_to_pte(entry);
1398 if (pte_soft_dirty(pteval))
1399 swp_pte = pte_swp_mksoft_dirty(swp_pte);
1400 set_pte_at(mm, address, pvmw.pte, swp_pte);
1401 } else if (PageAnon(page)) {
1402 swp_entry_t entry = { .val = page_private(subpage) };
1403 pte_t swp_pte;
1404 /*
1405 * Store the swap location in the pte.
1406 * See handle_pte_fault() ...
1407 */
1408 if (unlikely(PageSwapBacked(page) != PageSwapCache(page))) {
1409 WARN_ON_ONCE(1);
1410 ret = false;
1411 page_vma_mapped_walk_done(&pvmw);
1412 break;
1413 }
1414
1415 /* MADV_FREE page check */
1416 if (!PageSwapBacked(page)) {
1417 if (!PageDirty(page)) {
1418 dec_mm_counter(mm, MM_ANONPAGES);
1419 goto discard;
1420 }
1421
1422 /*
1423 * If the page was redirtied, it cannot be
1424 * discarded. Remap the page to page table.
1425 */
1426 set_pte_at(mm, address, pvmw.pte, pteval);
1427 SetPageSwapBacked(page);
1428 ret = false;
1429 page_vma_mapped_walk_done(&pvmw);
1430 break;
1431 }
1432
1433 if (swap_duplicate(entry) < 0) {
1434 set_pte_at(mm, address, pvmw.pte, pteval);
1435 ret = false;
1436 page_vma_mapped_walk_done(&pvmw);
1437 break;
1438 }
1439 if (list_empty(&mm->mmlist)) {
1440 spin_lock(&mmlist_lock);
1441 if (list_empty(&mm->mmlist))
1442 list_add(&mm->mmlist, &init_mm.mmlist);
1443 spin_unlock(&mmlist_lock);
1444 }
1445 dec_mm_counter(mm, MM_ANONPAGES);
1446 inc_mm_counter(mm, MM_SWAPENTS);
1447 swp_pte = swp_entry_to_pte(entry);
1448 if (pte_soft_dirty(pteval))
1449 swp_pte = pte_swp_mksoft_dirty(swp_pte);
1450 set_pte_at(mm, address, pvmw.pte, swp_pte);
1451 } else
1452 dec_mm_counter(mm, mm_counter_file(page));
1453 discard:
1454 page_remove_rmap(subpage, PageHuge(page));
1455 put_page(page);
1456 mmu_notifier_invalidate_page(mm, address);
1457 }
1458 return ret;
1459 }
1460
1461 bool is_vma_temporary_stack(struct vm_area_struct *vma)
1462 {
1463 int maybe_stack = vma->vm_flags & (VM_GROWSDOWN | VM_GROWSUP);
1464
1465 if (!maybe_stack)
1466 return false;
1467
1468 if ((vma->vm_flags & VM_STACK_INCOMPLETE_SETUP) ==
1469 VM_STACK_INCOMPLETE_SETUP)
1470 return true;
1471
1472 return false;
1473 }
1474
1475 static bool invalid_migration_vma(struct vm_area_struct *vma, void *arg)
1476 {
1477 return is_vma_temporary_stack(vma);
1478 }
1479
1480 static int page_mapcount_is_zero(struct page *page)
1481 {
1482 return !total_mapcount(page);
1483 }
1484
1485 /**
1486 * try_to_unmap - try to remove all page table mappings to a page
1487 * @page: the page to get unmapped
1488 * @flags: action and flags
1489 *
1490 * Tries to remove all the page table entries which are mapping this
1491 * page, used in the pageout path. Caller must hold the page lock.
1492 *
1493 * If unmap is successful, return true. Otherwise, false.
1494 */
1495 bool try_to_unmap(struct page *page, enum ttu_flags flags)
1496 {
1497 struct rmap_walk_control rwc = {
1498 .rmap_one = try_to_unmap_one,
1499 .arg = (void *)flags,
1500 .done = page_mapcount_is_zero,
1501 .anon_lock = page_lock_anon_vma_read,
1502 };
1503
1504 /*
1505 * During exec, a temporary VMA is setup and later moved.
1506 * The VMA is moved under the anon_vma lock but not the
1507 * page tables leading to a race where migration cannot
1508 * find the migration ptes. Rather than increasing the
1509 * locking requirements of exec(), migration skips
1510 * temporary VMAs until after exec() completes.
1511 */
1512 if ((flags & TTU_MIGRATION) && !PageKsm(page) && PageAnon(page))
1513 rwc.invalid_vma = invalid_migration_vma;
1514
1515 if (flags & TTU_RMAP_LOCKED)
1516 rmap_walk_locked(page, &rwc);
1517 else
1518 rmap_walk(page, &rwc);
1519
1520 return !page_mapcount(page) ? true : false;
1521 }
1522
1523 static int page_not_mapped(struct page *page)
1524 {
1525 return !page_mapped(page);
1526 };
1527
1528 /**
1529 * try_to_munlock - try to munlock a page
1530 * @page: the page to be munlocked
1531 *
1532 * Called from munlock code. Checks all of the VMAs mapping the page
1533 * to make sure nobody else has this page mlocked. The page will be
1534 * returned with PG_mlocked cleared if no other vmas have it mlocked.
1535 */
1536
1537 void try_to_munlock(struct page *page)
1538 {
1539 struct rmap_walk_control rwc = {
1540 .rmap_one = try_to_unmap_one,
1541 .arg = (void *)TTU_MUNLOCK,
1542 .done = page_not_mapped,
1543 .anon_lock = page_lock_anon_vma_read,
1544
1545 };
1546
1547 VM_BUG_ON_PAGE(!PageLocked(page) || PageLRU(page), page);
1548 VM_BUG_ON_PAGE(PageCompound(page) && PageDoubleMap(page), page);
1549
1550 rmap_walk(page, &rwc);
1551 }
1552
1553 void __put_anon_vma(struct anon_vma *anon_vma)
1554 {
1555 struct anon_vma *root = anon_vma->root;
1556
1557 anon_vma_free(anon_vma);
1558 if (root != anon_vma && atomic_dec_and_test(&root->refcount))
1559 anon_vma_free(root);
1560 }
1561
1562 static struct anon_vma *rmap_walk_anon_lock(struct page *page,
1563 struct rmap_walk_control *rwc)
1564 {
1565 struct anon_vma *anon_vma;
1566
1567 if (rwc->anon_lock)
1568 return rwc->anon_lock(page);
1569
1570 /*
1571 * Note: remove_migration_ptes() cannot use page_lock_anon_vma_read()
1572 * because that depends on page_mapped(); but not all its usages
1573 * are holding mmap_sem. Users without mmap_sem are required to
1574 * take a reference count to prevent the anon_vma disappearing
1575 */
1576 anon_vma = page_anon_vma(page);
1577 if (!anon_vma)
1578 return NULL;
1579
1580 anon_vma_lock_read(anon_vma);
1581 return anon_vma;
1582 }
1583
1584 /*
1585 * rmap_walk_anon - do something to anonymous page using the object-based
1586 * rmap method
1587 * @page: the page to be handled
1588 * @rwc: control variable according to each walk type
1589 *
1590 * Find all the mappings of a page using the mapping pointer and the vma chains
1591 * contained in the anon_vma struct it points to.
1592 *
1593 * When called from try_to_munlock(), the mmap_sem of the mm containing the vma
1594 * where the page was found will be held for write. So, we won't recheck
1595 * vm_flags for that VMA. That should be OK, because that vma shouldn't be
1596 * LOCKED.
1597 */
1598 static void rmap_walk_anon(struct page *page, struct rmap_walk_control *rwc,
1599 bool locked)
1600 {
1601 struct anon_vma *anon_vma;
1602 pgoff_t pgoff_start, pgoff_end;
1603 struct anon_vma_chain *avc;
1604
1605 if (locked) {
1606 anon_vma = page_anon_vma(page);
1607 /* anon_vma disappear under us? */
1608 VM_BUG_ON_PAGE(!anon_vma, page);
1609 } else {
1610 anon_vma = rmap_walk_anon_lock(page, rwc);
1611 }
1612 if (!anon_vma)
1613 return;
1614
1615 pgoff_start = page_to_pgoff(page);
1616 pgoff_end = pgoff_start + hpage_nr_pages(page) - 1;
1617 anon_vma_interval_tree_foreach(avc, &anon_vma->rb_root,
1618 pgoff_start, pgoff_end) {
1619 struct vm_area_struct *vma = avc->vma;
1620 unsigned long address = vma_address(page, vma);
1621
1622 cond_resched();
1623
1624 if (rwc->invalid_vma && rwc->invalid_vma(vma, rwc->arg))
1625 continue;
1626
1627 if (!rwc->rmap_one(page, vma, address, rwc->arg))
1628 break;
1629 if (rwc->done && rwc->done(page))
1630 break;
1631 }
1632
1633 if (!locked)
1634 anon_vma_unlock_read(anon_vma);
1635 }
1636
1637 /*
1638 * rmap_walk_file - do something to file page using the object-based rmap method
1639 * @page: the page to be handled
1640 * @rwc: control variable according to each walk type
1641 *
1642 * Find all the mappings of a page using the mapping pointer and the vma chains
1643 * contained in the address_space struct it points to.
1644 *
1645 * When called from try_to_munlock(), the mmap_sem of the mm containing the vma
1646 * where the page was found will be held for write. So, we won't recheck
1647 * vm_flags for that VMA. That should be OK, because that vma shouldn't be
1648 * LOCKED.
1649 */
1650 static void rmap_walk_file(struct page *page, struct rmap_walk_control *rwc,
1651 bool locked)
1652 {
1653 struct address_space *mapping = page_mapping(page);
1654 pgoff_t pgoff_start, pgoff_end;
1655 struct vm_area_struct *vma;
1656
1657 /*
1658 * The page lock not only makes sure that page->mapping cannot
1659 * suddenly be NULLified by truncation, it makes sure that the
1660 * structure at mapping cannot be freed and reused yet,
1661 * so we can safely take mapping->i_mmap_rwsem.
1662 */
1663 VM_BUG_ON_PAGE(!PageLocked(page), page);
1664
1665 if (!mapping)
1666 return;
1667
1668 pgoff_start = page_to_pgoff(page);
1669 pgoff_end = pgoff_start + hpage_nr_pages(page) - 1;
1670 if (!locked)
1671 i_mmap_lock_read(mapping);
1672 vma_interval_tree_foreach(vma, &mapping->i_mmap,
1673 pgoff_start, pgoff_end) {
1674 unsigned long address = vma_address(page, vma);
1675
1676 cond_resched();
1677
1678 if (rwc->invalid_vma && rwc->invalid_vma(vma, rwc->arg))
1679 continue;
1680
1681 if (!rwc->rmap_one(page, vma, address, rwc->arg))
1682 goto done;
1683 if (rwc->done && rwc->done(page))
1684 goto done;
1685 }
1686
1687 done:
1688 if (!locked)
1689 i_mmap_unlock_read(mapping);
1690 }
1691
1692 void rmap_walk(struct page *page, struct rmap_walk_control *rwc)
1693 {
1694 if (unlikely(PageKsm(page)))
1695 rmap_walk_ksm(page, rwc);
1696 else if (PageAnon(page))
1697 rmap_walk_anon(page, rwc, false);
1698 else
1699 rmap_walk_file(page, rwc, false);
1700 }
1701
1702 /* Like rmap_walk, but caller holds relevant rmap lock */
1703 void rmap_walk_locked(struct page *page, struct rmap_walk_control *rwc)
1704 {
1705 /* no ksm support for now */
1706 VM_BUG_ON_PAGE(PageKsm(page), page);
1707 if (PageAnon(page))
1708 rmap_walk_anon(page, rwc, true);
1709 else
1710 rmap_walk_file(page, rwc, true);
1711 }
1712
1713 #ifdef CONFIG_HUGETLB_PAGE
1714 /*
1715 * The following three functions are for anonymous (private mapped) hugepages.
1716 * Unlike common anonymous pages, anonymous hugepages have no accounting code
1717 * and no lru code, because we handle hugepages differently from common pages.
1718 */
1719 static void __hugepage_set_anon_rmap(struct page *page,
1720 struct vm_area_struct *vma, unsigned long address, int exclusive)
1721 {
1722 struct anon_vma *anon_vma = vma->anon_vma;
1723
1724 BUG_ON(!anon_vma);
1725
1726 if (PageAnon(page))
1727 return;
1728 if (!exclusive)
1729 anon_vma = anon_vma->root;
1730
1731 anon_vma = (void *) anon_vma + PAGE_MAPPING_ANON;
1732 page->mapping = (struct address_space *) anon_vma;
1733 page->index = linear_page_index(vma, address);
1734 }
1735
1736 void hugepage_add_anon_rmap(struct page *page,
1737 struct vm_area_struct *vma, unsigned long address)
1738 {
1739 struct anon_vma *anon_vma = vma->anon_vma;
1740 int first;
1741
1742 BUG_ON(!PageLocked(page));
1743 BUG_ON(!anon_vma);
1744 /* address might be in next vma when migration races vma_adjust */
1745 first = atomic_inc_and_test(compound_mapcount_ptr(page));
1746 if (first)
1747 __hugepage_set_anon_rmap(page, vma, address, 0);
1748 }
1749
1750 void hugepage_add_new_anon_rmap(struct page *page,
1751 struct vm_area_struct *vma, unsigned long address)
1752 {
1753 BUG_ON(address < vma->vm_start || address >= vma->vm_end);
1754 atomic_set(compound_mapcount_ptr(page), 0);
1755 __hugepage_set_anon_rmap(page, vma, address, 1);
1756 }
1757 #endif /* CONFIG_HUGETLB_PAGE */