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1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * fs/dax.c - Direct Access filesystem code
4 * Copyright (c) 2013-2014 Intel Corporation
5 * Author: Matthew Wilcox <matthew.r.wilcox@intel.com>
6 * Author: Ross Zwisler <ross.zwisler@linux.intel.com>
7 */
8
9 #include <linux/atomic.h>
10 #include <linux/blkdev.h>
11 #include <linux/buffer_head.h>
12 #include <linux/dax.h>
13 #include <linux/fs.h>
14 #include <linux/genhd.h>
15 #include <linux/highmem.h>
16 #include <linux/memcontrol.h>
17 #include <linux/mm.h>
18 #include <linux/mutex.h>
19 #include <linux/pagevec.h>
20 #include <linux/sched.h>
21 #include <linux/sched/signal.h>
22 #include <linux/uio.h>
23 #include <linux/vmstat.h>
24 #include <linux/pfn_t.h>
25 #include <linux/sizes.h>
26 #include <linux/mmu_notifier.h>
27 #include <linux/iomap.h>
28 #include <asm/pgalloc.h>
29
30 #define CREATE_TRACE_POINTS
31 #include <trace/events/fs_dax.h>
32
33 static inline unsigned int pe_order(enum page_entry_size pe_size)
34 {
35 if (pe_size == PE_SIZE_PTE)
36 return PAGE_SHIFT - PAGE_SHIFT;
37 if (pe_size == PE_SIZE_PMD)
38 return PMD_SHIFT - PAGE_SHIFT;
39 if (pe_size == PE_SIZE_PUD)
40 return PUD_SHIFT - PAGE_SHIFT;
41 return ~0;
42 }
43
44 /* We choose 4096 entries - same as per-zone page wait tables */
45 #define DAX_WAIT_TABLE_BITS 12
46 #define DAX_WAIT_TABLE_ENTRIES (1 << DAX_WAIT_TABLE_BITS)
47
48 /* The 'colour' (ie low bits) within a PMD of a page offset. */
49 #define PG_PMD_COLOUR ((PMD_SIZE >> PAGE_SHIFT) - 1)
50 #define PG_PMD_NR (PMD_SIZE >> PAGE_SHIFT)
51
52 /* The order of a PMD entry */
53 #define PMD_ORDER (PMD_SHIFT - PAGE_SHIFT)
54
55 static wait_queue_head_t wait_table[DAX_WAIT_TABLE_ENTRIES];
56
57 static int __init init_dax_wait_table(void)
58 {
59 int i;
60
61 for (i = 0; i < DAX_WAIT_TABLE_ENTRIES; i++)
62 init_waitqueue_head(wait_table + i);
63 return 0;
64 }
65 fs_initcall(init_dax_wait_table);
66
67 /*
68 * DAX pagecache entries use XArray value entries so they can't be mistaken
69 * for pages. We use one bit for locking, one bit for the entry size (PMD)
70 * and two more to tell us if the entry is a zero page or an empty entry that
71 * is just used for locking. In total four special bits.
72 *
73 * If the PMD bit isn't set the entry has size PAGE_SIZE, and if the ZERO_PAGE
74 * and EMPTY bits aren't set the entry is a normal DAX entry with a filesystem
75 * block allocation.
76 */
77 #define DAX_SHIFT (4)
78 #define DAX_LOCKED (1UL << 0)
79 #define DAX_PMD (1UL << 1)
80 #define DAX_ZERO_PAGE (1UL << 2)
81 #define DAX_EMPTY (1UL << 3)
82
83 static unsigned long dax_to_pfn(void *entry)
84 {
85 return xa_to_value(entry) >> DAX_SHIFT;
86 }
87
88 static void *dax_make_entry(pfn_t pfn, unsigned long flags)
89 {
90 return xa_mk_value(flags | (pfn_t_to_pfn(pfn) << DAX_SHIFT));
91 }
92
93 static bool dax_is_locked(void *entry)
94 {
95 return xa_to_value(entry) & DAX_LOCKED;
96 }
97
98 static unsigned int dax_entry_order(void *entry)
99 {
100 if (xa_to_value(entry) & DAX_PMD)
101 return PMD_ORDER;
102 return 0;
103 }
104
105 static unsigned long dax_is_pmd_entry(void *entry)
106 {
107 return xa_to_value(entry) & DAX_PMD;
108 }
109
110 static bool dax_is_pte_entry(void *entry)
111 {
112 return !(xa_to_value(entry) & DAX_PMD);
113 }
114
115 static int dax_is_zero_entry(void *entry)
116 {
117 return xa_to_value(entry) & DAX_ZERO_PAGE;
118 }
119
120 static int dax_is_empty_entry(void *entry)
121 {
122 return xa_to_value(entry) & DAX_EMPTY;
123 }
124
125 /*
126 * true if the entry that was found is of a smaller order than the entry
127 * we were looking for
128 */
129 static bool dax_is_conflict(void *entry)
130 {
131 return entry == XA_RETRY_ENTRY;
132 }
133
134 /*
135 * DAX page cache entry locking
136 */
137 struct exceptional_entry_key {
138 struct xarray *xa;
139 pgoff_t entry_start;
140 };
141
142 struct wait_exceptional_entry_queue {
143 wait_queue_entry_t wait;
144 struct exceptional_entry_key key;
145 };
146
147 static wait_queue_head_t *dax_entry_waitqueue(struct xa_state *xas,
148 void *entry, struct exceptional_entry_key *key)
149 {
150 unsigned long hash;
151 unsigned long index = xas->xa_index;
152
153 /*
154 * If 'entry' is a PMD, align the 'index' that we use for the wait
155 * queue to the start of that PMD. This ensures that all offsets in
156 * the range covered by the PMD map to the same bit lock.
157 */
158 if (dax_is_pmd_entry(entry))
159 index &= ~PG_PMD_COLOUR;
160 key->xa = xas->xa;
161 key->entry_start = index;
162
163 hash = hash_long((unsigned long)xas->xa ^ index, DAX_WAIT_TABLE_BITS);
164 return wait_table + hash;
165 }
166
167 static int wake_exceptional_entry_func(wait_queue_entry_t *wait,
168 unsigned int mode, int sync, void *keyp)
169 {
170 struct exceptional_entry_key *key = keyp;
171 struct wait_exceptional_entry_queue *ewait =
172 container_of(wait, struct wait_exceptional_entry_queue, wait);
173
174 if (key->xa != ewait->key.xa ||
175 key->entry_start != ewait->key.entry_start)
176 return 0;
177 return autoremove_wake_function(wait, mode, sync, NULL);
178 }
179
180 /*
181 * @entry may no longer be the entry at the index in the mapping.
182 * The important information it's conveying is whether the entry at
183 * this index used to be a PMD entry.
184 */
185 static void dax_wake_entry(struct xa_state *xas, void *entry, bool wake_all)
186 {
187 struct exceptional_entry_key key;
188 wait_queue_head_t *wq;
189
190 wq = dax_entry_waitqueue(xas, entry, &key);
191
192 /*
193 * Checking for locked entry and prepare_to_wait_exclusive() happens
194 * under the i_pages lock, ditto for entry handling in our callers.
195 * So at this point all tasks that could have seen our entry locked
196 * must be in the waitqueue and the following check will see them.
197 */
198 if (waitqueue_active(wq))
199 __wake_up(wq, TASK_NORMAL, wake_all ? 0 : 1, &key);
200 }
201
202 /*
203 * Look up entry in page cache, wait for it to become unlocked if it
204 * is a DAX entry and return it. The caller must subsequently call
205 * put_unlocked_entry() if it did not lock the entry or dax_unlock_entry()
206 * if it did. The entry returned may have a larger order than @order.
207 * If @order is larger than the order of the entry found in i_pages, this
208 * function returns a dax_is_conflict entry.
209 *
210 * Must be called with the i_pages lock held.
211 */
212 static void *get_unlocked_entry(struct xa_state *xas, unsigned int order)
213 {
214 void *entry;
215 struct wait_exceptional_entry_queue ewait;
216 wait_queue_head_t *wq;
217
218 init_wait(&ewait.wait);
219 ewait.wait.func = wake_exceptional_entry_func;
220
221 for (;;) {
222 entry = xas_find_conflict(xas);
223 if (!entry || WARN_ON_ONCE(!xa_is_value(entry)))
224 return entry;
225 if (dax_entry_order(entry) < order)
226 return XA_RETRY_ENTRY;
227 if (!dax_is_locked(entry))
228 return entry;
229
230 wq = dax_entry_waitqueue(xas, entry, &ewait.key);
231 prepare_to_wait_exclusive(wq, &ewait.wait,
232 TASK_UNINTERRUPTIBLE);
233 xas_unlock_irq(xas);
234 xas_reset(xas);
235 schedule();
236 finish_wait(wq, &ewait.wait);
237 xas_lock_irq(xas);
238 }
239 }
240
241 /*
242 * The only thing keeping the address space around is the i_pages lock
243 * (it's cycled in clear_inode() after removing the entries from i_pages)
244 * After we call xas_unlock_irq(), we cannot touch xas->xa.
245 */
246 static void wait_entry_unlocked(struct xa_state *xas, void *entry)
247 {
248 struct wait_exceptional_entry_queue ewait;
249 wait_queue_head_t *wq;
250
251 init_wait(&ewait.wait);
252 ewait.wait.func = wake_exceptional_entry_func;
253
254 wq = dax_entry_waitqueue(xas, entry, &ewait.key);
255 /*
256 * Unlike get_unlocked_entry() there is no guarantee that this
257 * path ever successfully retrieves an unlocked entry before an
258 * inode dies. Perform a non-exclusive wait in case this path
259 * never successfully performs its own wake up.
260 */
261 prepare_to_wait(wq, &ewait.wait, TASK_UNINTERRUPTIBLE);
262 xas_unlock_irq(xas);
263 schedule();
264 finish_wait(wq, &ewait.wait);
265 }
266
267 static void put_unlocked_entry(struct xa_state *xas, void *entry)
268 {
269 /* If we were the only waiter woken, wake the next one */
270 if (entry && !dax_is_conflict(entry))
271 dax_wake_entry(xas, entry, false);
272 }
273
274 /*
275 * We used the xa_state to get the entry, but then we locked the entry and
276 * dropped the xa_lock, so we know the xa_state is stale and must be reset
277 * before use.
278 */
279 static void dax_unlock_entry(struct xa_state *xas, void *entry)
280 {
281 void *old;
282
283 BUG_ON(dax_is_locked(entry));
284 xas_reset(xas);
285 xas_lock_irq(xas);
286 old = xas_store(xas, entry);
287 xas_unlock_irq(xas);
288 BUG_ON(!dax_is_locked(old));
289 dax_wake_entry(xas, entry, false);
290 }
291
292 /*
293 * Return: The entry stored at this location before it was locked.
294 */
295 static void *dax_lock_entry(struct xa_state *xas, void *entry)
296 {
297 unsigned long v = xa_to_value(entry);
298 return xas_store(xas, xa_mk_value(v | DAX_LOCKED));
299 }
300
301 static unsigned long dax_entry_size(void *entry)
302 {
303 if (dax_is_zero_entry(entry))
304 return 0;
305 else if (dax_is_empty_entry(entry))
306 return 0;
307 else if (dax_is_pmd_entry(entry))
308 return PMD_SIZE;
309 else
310 return PAGE_SIZE;
311 }
312
313 static unsigned long dax_end_pfn(void *entry)
314 {
315 return dax_to_pfn(entry) + dax_entry_size(entry) / PAGE_SIZE;
316 }
317
318 /*
319 * Iterate through all mapped pfns represented by an entry, i.e. skip
320 * 'empty' and 'zero' entries.
321 */
322 #define for_each_mapped_pfn(entry, pfn) \
323 for (pfn = dax_to_pfn(entry); \
324 pfn < dax_end_pfn(entry); pfn++)
325
326 /*
327 * TODO: for reflink+dax we need a way to associate a single page with
328 * multiple address_space instances at different linear_page_index()
329 * offsets.
330 */
331 static void dax_associate_entry(void *entry, struct address_space *mapping,
332 struct vm_area_struct *vma, unsigned long address)
333 {
334 unsigned long size = dax_entry_size(entry), pfn, index;
335 int i = 0;
336
337 if (IS_ENABLED(CONFIG_FS_DAX_LIMITED))
338 return;
339
340 index = linear_page_index(vma, address & ~(size - 1));
341 for_each_mapped_pfn(entry, pfn) {
342 struct page *page = pfn_to_page(pfn);
343
344 WARN_ON_ONCE(page->mapping);
345 page->mapping = mapping;
346 page->index = index + i++;
347 }
348 }
349
350 static void dax_disassociate_entry(void *entry, struct address_space *mapping,
351 bool trunc)
352 {
353 unsigned long pfn;
354
355 if (IS_ENABLED(CONFIG_FS_DAX_LIMITED))
356 return;
357
358 for_each_mapped_pfn(entry, pfn) {
359 struct page *page = pfn_to_page(pfn);
360
361 WARN_ON_ONCE(trunc && page_ref_count(page) > 1);
362 WARN_ON_ONCE(page->mapping && page->mapping != mapping);
363 page->mapping = NULL;
364 page->index = 0;
365 }
366 }
367
368 static struct page *dax_busy_page(void *entry)
369 {
370 unsigned long pfn;
371
372 for_each_mapped_pfn(entry, pfn) {
373 struct page *page = pfn_to_page(pfn);
374
375 if (page_ref_count(page) > 1)
376 return page;
377 }
378 return NULL;
379 }
380
381 /*
382 * dax_lock_mapping_entry - Lock the DAX entry corresponding to a page
383 * @page: The page whose entry we want to lock
384 *
385 * Context: Process context.
386 * Return: A cookie to pass to dax_unlock_page() or 0 if the entry could
387 * not be locked.
388 */
389 dax_entry_t dax_lock_page(struct page *page)
390 {
391 XA_STATE(xas, NULL, 0);
392 void *entry;
393
394 /* Ensure page->mapping isn't freed while we look at it */
395 rcu_read_lock();
396 for (;;) {
397 struct address_space *mapping = READ_ONCE(page->mapping);
398
399 entry = NULL;
400 if (!mapping || !dax_mapping(mapping))
401 break;
402
403 /*
404 * In the device-dax case there's no need to lock, a
405 * struct dev_pagemap pin is sufficient to keep the
406 * inode alive, and we assume we have dev_pagemap pin
407 * otherwise we would not have a valid pfn_to_page()
408 * translation.
409 */
410 entry = (void *)~0UL;
411 if (S_ISCHR(mapping->host->i_mode))
412 break;
413
414 xas.xa = &mapping->i_pages;
415 xas_lock_irq(&xas);
416 if (mapping != page->mapping) {
417 xas_unlock_irq(&xas);
418 continue;
419 }
420 xas_set(&xas, page->index);
421 entry = xas_load(&xas);
422 if (dax_is_locked(entry)) {
423 rcu_read_unlock();
424 wait_entry_unlocked(&xas, entry);
425 rcu_read_lock();
426 continue;
427 }
428 dax_lock_entry(&xas, entry);
429 xas_unlock_irq(&xas);
430 break;
431 }
432 rcu_read_unlock();
433 return (dax_entry_t)entry;
434 }
435
436 void dax_unlock_page(struct page *page, dax_entry_t cookie)
437 {
438 struct address_space *mapping = page->mapping;
439 XA_STATE(xas, &mapping->i_pages, page->index);
440
441 if (S_ISCHR(mapping->host->i_mode))
442 return;
443
444 dax_unlock_entry(&xas, (void *)cookie);
445 }
446
447 /*
448 * Find page cache entry at given index. If it is a DAX entry, return it
449 * with the entry locked. If the page cache doesn't contain an entry at
450 * that index, add a locked empty entry.
451 *
452 * When requesting an entry with size DAX_PMD, grab_mapping_entry() will
453 * either return that locked entry or will return VM_FAULT_FALLBACK.
454 * This will happen if there are any PTE entries within the PMD range
455 * that we are requesting.
456 *
457 * We always favor PTE entries over PMD entries. There isn't a flow where we
458 * evict PTE entries in order to 'upgrade' them to a PMD entry. A PMD
459 * insertion will fail if it finds any PTE entries already in the tree, and a
460 * PTE insertion will cause an existing PMD entry to be unmapped and
461 * downgraded to PTE entries. This happens for both PMD zero pages as
462 * well as PMD empty entries.
463 *
464 * The exception to this downgrade path is for PMD entries that have
465 * real storage backing them. We will leave these real PMD entries in
466 * the tree, and PTE writes will simply dirty the entire PMD entry.
467 *
468 * Note: Unlike filemap_fault() we don't honor FAULT_FLAG_RETRY flags. For
469 * persistent memory the benefit is doubtful. We can add that later if we can
470 * show it helps.
471 *
472 * On error, this function does not return an ERR_PTR. Instead it returns
473 * a VM_FAULT code, encoded as an xarray internal entry. The ERR_PTR values
474 * overlap with xarray value entries.
475 */
476 static void *grab_mapping_entry(struct xa_state *xas,
477 struct address_space *mapping, unsigned int order)
478 {
479 unsigned long index = xas->xa_index;
480 bool pmd_downgrade = false; /* splitting PMD entry into PTE entries? */
481 void *entry;
482
483 retry:
484 xas_lock_irq(xas);
485 entry = get_unlocked_entry(xas, order);
486
487 if (entry) {
488 if (dax_is_conflict(entry))
489 goto fallback;
490 if (!xa_is_value(entry)) {
491 xas_set_err(xas, -EIO);
492 goto out_unlock;
493 }
494
495 if (order == 0) {
496 if (dax_is_pmd_entry(entry) &&
497 (dax_is_zero_entry(entry) ||
498 dax_is_empty_entry(entry))) {
499 pmd_downgrade = true;
500 }
501 }
502 }
503
504 if (pmd_downgrade) {
505 /*
506 * Make sure 'entry' remains valid while we drop
507 * the i_pages lock.
508 */
509 dax_lock_entry(xas, entry);
510
511 /*
512 * Besides huge zero pages the only other thing that gets
513 * downgraded are empty entries which don't need to be
514 * unmapped.
515 */
516 if (dax_is_zero_entry(entry)) {
517 xas_unlock_irq(xas);
518 unmap_mapping_pages(mapping,
519 xas->xa_index & ~PG_PMD_COLOUR,
520 PG_PMD_NR, false);
521 xas_reset(xas);
522 xas_lock_irq(xas);
523 }
524
525 dax_disassociate_entry(entry, mapping, false);
526 xas_store(xas, NULL); /* undo the PMD join */
527 dax_wake_entry(xas, entry, true);
528 mapping->nrexceptional--;
529 entry = NULL;
530 xas_set(xas, index);
531 }
532
533 if (entry) {
534 dax_lock_entry(xas, entry);
535 } else {
536 unsigned long flags = DAX_EMPTY;
537
538 if (order > 0)
539 flags |= DAX_PMD;
540 entry = dax_make_entry(pfn_to_pfn_t(0), flags);
541 dax_lock_entry(xas, entry);
542 if (xas_error(xas))
543 goto out_unlock;
544 mapping->nrexceptional++;
545 }
546
547 out_unlock:
548 xas_unlock_irq(xas);
549 if (xas_nomem(xas, mapping_gfp_mask(mapping) & ~__GFP_HIGHMEM))
550 goto retry;
551 if (xas->xa_node == XA_ERROR(-ENOMEM))
552 return xa_mk_internal(VM_FAULT_OOM);
553 if (xas_error(xas))
554 return xa_mk_internal(VM_FAULT_SIGBUS);
555 return entry;
556 fallback:
557 xas_unlock_irq(xas);
558 return xa_mk_internal(VM_FAULT_FALLBACK);
559 }
560
561 /**
562 * dax_layout_busy_page - find first pinned page in @mapping
563 * @mapping: address space to scan for a page with ref count > 1
564 *
565 * DAX requires ZONE_DEVICE mapped pages. These pages are never
566 * 'onlined' to the page allocator so they are considered idle when
567 * page->count == 1. A filesystem uses this interface to determine if
568 * any page in the mapping is busy, i.e. for DMA, or other
569 * get_user_pages() usages.
570 *
571 * It is expected that the filesystem is holding locks to block the
572 * establishment of new mappings in this address_space. I.e. it expects
573 * to be able to run unmap_mapping_range() and subsequently not race
574 * mapping_mapped() becoming true.
575 */
576 struct page *dax_layout_busy_page(struct address_space *mapping)
577 {
578 XA_STATE(xas, &mapping->i_pages, 0);
579 void *entry;
580 unsigned int scanned = 0;
581 struct page *page = NULL;
582
583 /*
584 * In the 'limited' case get_user_pages() for dax is disabled.
585 */
586 if (IS_ENABLED(CONFIG_FS_DAX_LIMITED))
587 return NULL;
588
589 if (!dax_mapping(mapping) || !mapping_mapped(mapping))
590 return NULL;
591
592 /*
593 * If we race get_user_pages_fast() here either we'll see the
594 * elevated page count in the iteration and wait, or
595 * get_user_pages_fast() will see that the page it took a reference
596 * against is no longer mapped in the page tables and bail to the
597 * get_user_pages() slow path. The slow path is protected by
598 * pte_lock() and pmd_lock(). New references are not taken without
599 * holding those locks, and unmap_mapping_range() will not zero the
600 * pte or pmd without holding the respective lock, so we are
601 * guaranteed to either see new references or prevent new
602 * references from being established.
603 */
604 unmap_mapping_range(mapping, 0, 0, 0);
605
606 xas_lock_irq(&xas);
607 xas_for_each(&xas, entry, ULONG_MAX) {
608 if (WARN_ON_ONCE(!xa_is_value(entry)))
609 continue;
610 if (unlikely(dax_is_locked(entry)))
611 entry = get_unlocked_entry(&xas, 0);
612 if (entry)
613 page = dax_busy_page(entry);
614 put_unlocked_entry(&xas, entry);
615 if (page)
616 break;
617 if (++scanned % XA_CHECK_SCHED)
618 continue;
619
620 xas_pause(&xas);
621 xas_unlock_irq(&xas);
622 cond_resched();
623 xas_lock_irq(&xas);
624 }
625 xas_unlock_irq(&xas);
626 return page;
627 }
628 EXPORT_SYMBOL_GPL(dax_layout_busy_page);
629
630 static int __dax_invalidate_entry(struct address_space *mapping,
631 pgoff_t index, bool trunc)
632 {
633 XA_STATE(xas, &mapping->i_pages, index);
634 int ret = 0;
635 void *entry;
636
637 xas_lock_irq(&xas);
638 entry = get_unlocked_entry(&xas, 0);
639 if (!entry || WARN_ON_ONCE(!xa_is_value(entry)))
640 goto out;
641 if (!trunc &&
642 (xas_get_mark(&xas, PAGECACHE_TAG_DIRTY) ||
643 xas_get_mark(&xas, PAGECACHE_TAG_TOWRITE)))
644 goto out;
645 dax_disassociate_entry(entry, mapping, trunc);
646 xas_store(&xas, NULL);
647 mapping->nrexceptional--;
648 ret = 1;
649 out:
650 put_unlocked_entry(&xas, entry);
651 xas_unlock_irq(&xas);
652 return ret;
653 }
654
655 /*
656 * Delete DAX entry at @index from @mapping. Wait for it
657 * to be unlocked before deleting it.
658 */
659 int dax_delete_mapping_entry(struct address_space *mapping, pgoff_t index)
660 {
661 int ret = __dax_invalidate_entry(mapping, index, true);
662
663 /*
664 * This gets called from truncate / punch_hole path. As such, the caller
665 * must hold locks protecting against concurrent modifications of the
666 * page cache (usually fs-private i_mmap_sem for writing). Since the
667 * caller has seen a DAX entry for this index, we better find it
668 * at that index as well...
669 */
670 WARN_ON_ONCE(!ret);
671 return ret;
672 }
673
674 /*
675 * Invalidate DAX entry if it is clean.
676 */
677 int dax_invalidate_mapping_entry_sync(struct address_space *mapping,
678 pgoff_t index)
679 {
680 return __dax_invalidate_entry(mapping, index, false);
681 }
682
683 static int copy_cow_page_dax(struct block_device *bdev, struct dax_device *dax_dev,
684 sector_t sector, struct page *to, unsigned long vaddr)
685 {
686 void *vto, *kaddr;
687 pgoff_t pgoff;
688 long rc;
689 int id;
690
691 rc = bdev_dax_pgoff(bdev, sector, PAGE_SIZE, &pgoff);
692 if (rc)
693 return rc;
694
695 id = dax_read_lock();
696 rc = dax_direct_access(dax_dev, pgoff, PHYS_PFN(PAGE_SIZE), &kaddr, NULL);
697 if (rc < 0) {
698 dax_read_unlock(id);
699 return rc;
700 }
701 vto = kmap_atomic(to);
702 copy_user_page(vto, (void __force *)kaddr, vaddr, to);
703 kunmap_atomic(vto);
704 dax_read_unlock(id);
705 return 0;
706 }
707
708 /*
709 * By this point grab_mapping_entry() has ensured that we have a locked entry
710 * of the appropriate size so we don't have to worry about downgrading PMDs to
711 * PTEs. If we happen to be trying to insert a PTE and there is a PMD
712 * already in the tree, we will skip the insertion and just dirty the PMD as
713 * appropriate.
714 */
715 static void *dax_insert_entry(struct xa_state *xas,
716 struct address_space *mapping, struct vm_fault *vmf,
717 void *entry, pfn_t pfn, unsigned long flags, bool dirty)
718 {
719 void *new_entry = dax_make_entry(pfn, flags);
720
721 if (dirty)
722 __mark_inode_dirty(mapping->host, I_DIRTY_PAGES);
723
724 if (dax_is_zero_entry(entry) && !(flags & DAX_ZERO_PAGE)) {
725 unsigned long index = xas->xa_index;
726 /* we are replacing a zero page with block mapping */
727 if (dax_is_pmd_entry(entry))
728 unmap_mapping_pages(mapping, index & ~PG_PMD_COLOUR,
729 PG_PMD_NR, false);
730 else /* pte entry */
731 unmap_mapping_pages(mapping, index, 1, false);
732 }
733
734 xas_reset(xas);
735 xas_lock_irq(xas);
736 if (dax_is_zero_entry(entry) || dax_is_empty_entry(entry)) {
737 void *old;
738
739 dax_disassociate_entry(entry, mapping, false);
740 dax_associate_entry(new_entry, mapping, vmf->vma, vmf->address);
741 /*
742 * Only swap our new entry into the page cache if the current
743 * entry is a zero page or an empty entry. If a normal PTE or
744 * PMD entry is already in the cache, we leave it alone. This
745 * means that if we are trying to insert a PTE and the
746 * existing entry is a PMD, we will just leave the PMD in the
747 * tree and dirty it if necessary.
748 */
749 old = dax_lock_entry(xas, new_entry);
750 WARN_ON_ONCE(old != xa_mk_value(xa_to_value(entry) |
751 DAX_LOCKED));
752 entry = new_entry;
753 } else {
754 xas_load(xas); /* Walk the xa_state */
755 }
756
757 if (dirty)
758 xas_set_mark(xas, PAGECACHE_TAG_DIRTY);
759
760 xas_unlock_irq(xas);
761 return entry;
762 }
763
764 static inline
765 unsigned long pgoff_address(pgoff_t pgoff, struct vm_area_struct *vma)
766 {
767 unsigned long address;
768
769 address = vma->vm_start + ((pgoff - vma->vm_pgoff) << PAGE_SHIFT);
770 VM_BUG_ON_VMA(address < vma->vm_start || address >= vma->vm_end, vma);
771 return address;
772 }
773
774 /* Walk all mappings of a given index of a file and writeprotect them */
775 static void dax_entry_mkclean(struct address_space *mapping, pgoff_t index,
776 unsigned long pfn)
777 {
778 struct vm_area_struct *vma;
779 pte_t pte, *ptep = NULL;
780 pmd_t *pmdp = NULL;
781 spinlock_t *ptl;
782
783 i_mmap_lock_read(mapping);
784 vma_interval_tree_foreach(vma, &mapping->i_mmap, index, index) {
785 struct mmu_notifier_range range;
786 unsigned long address;
787
788 cond_resched();
789
790 if (!(vma->vm_flags & VM_SHARED))
791 continue;
792
793 address = pgoff_address(index, vma);
794
795 /*
796 * Note because we provide range to follow_pte_pmd it will
797 * call mmu_notifier_invalidate_range_start() on our behalf
798 * before taking any lock.
799 */
800 if (follow_pte_pmd(vma->vm_mm, address, &range,
801 &ptep, &pmdp, &ptl))
802 continue;
803
804 /*
805 * No need to call mmu_notifier_invalidate_range() as we are
806 * downgrading page table protection not changing it to point
807 * to a new page.
808 *
809 * See Documentation/vm/mmu_notifier.rst
810 */
811 if (pmdp) {
812 #ifdef CONFIG_FS_DAX_PMD
813 pmd_t pmd;
814
815 if (pfn != pmd_pfn(*pmdp))
816 goto unlock_pmd;
817 if (!pmd_dirty(*pmdp) && !pmd_write(*pmdp))
818 goto unlock_pmd;
819
820 flush_cache_page(vma, address, pfn);
821 pmd = pmdp_invalidate(vma, address, pmdp);
822 pmd = pmd_wrprotect(pmd);
823 pmd = pmd_mkclean(pmd);
824 set_pmd_at(vma->vm_mm, address, pmdp, pmd);
825 unlock_pmd:
826 #endif
827 spin_unlock(ptl);
828 } else {
829 if (pfn != pte_pfn(*ptep))
830 goto unlock_pte;
831 if (!pte_dirty(*ptep) && !pte_write(*ptep))
832 goto unlock_pte;
833
834 flush_cache_page(vma, address, pfn);
835 pte = ptep_clear_flush(vma, address, ptep);
836 pte = pte_wrprotect(pte);
837 pte = pte_mkclean(pte);
838 set_pte_at(vma->vm_mm, address, ptep, pte);
839 unlock_pte:
840 pte_unmap_unlock(ptep, ptl);
841 }
842
843 mmu_notifier_invalidate_range_end(&range);
844 }
845 i_mmap_unlock_read(mapping);
846 }
847
848 static int dax_writeback_one(struct xa_state *xas, struct dax_device *dax_dev,
849 struct address_space *mapping, void *entry)
850 {
851 unsigned long pfn, index, count;
852 long ret = 0;
853
854 /*
855 * A page got tagged dirty in DAX mapping? Something is seriously
856 * wrong.
857 */
858 if (WARN_ON(!xa_is_value(entry)))
859 return -EIO;
860
861 if (unlikely(dax_is_locked(entry))) {
862 void *old_entry = entry;
863
864 entry = get_unlocked_entry(xas, 0);
865
866 /* Entry got punched out / reallocated? */
867 if (!entry || WARN_ON_ONCE(!xa_is_value(entry)))
868 goto put_unlocked;
869 /*
870 * Entry got reallocated elsewhere? No need to writeback.
871 * We have to compare pfns as we must not bail out due to
872 * difference in lockbit or entry type.
873 */
874 if (dax_to_pfn(old_entry) != dax_to_pfn(entry))
875 goto put_unlocked;
876 if (WARN_ON_ONCE(dax_is_empty_entry(entry) ||
877 dax_is_zero_entry(entry))) {
878 ret = -EIO;
879 goto put_unlocked;
880 }
881
882 /* Another fsync thread may have already done this entry */
883 if (!xas_get_mark(xas, PAGECACHE_TAG_TOWRITE))
884 goto put_unlocked;
885 }
886
887 /* Lock the entry to serialize with page faults */
888 dax_lock_entry(xas, entry);
889
890 /*
891 * We can clear the tag now but we have to be careful so that concurrent
892 * dax_writeback_one() calls for the same index cannot finish before we
893 * actually flush the caches. This is achieved as the calls will look
894 * at the entry only under the i_pages lock and once they do that
895 * they will see the entry locked and wait for it to unlock.
896 */
897 xas_clear_mark(xas, PAGECACHE_TAG_TOWRITE);
898 xas_unlock_irq(xas);
899
900 /*
901 * If dax_writeback_mapping_range() was given a wbc->range_start
902 * in the middle of a PMD, the 'index' we use needs to be
903 * aligned to the start of the PMD.
904 * This allows us to flush for PMD_SIZE and not have to worry about
905 * partial PMD writebacks.
906 */
907 pfn = dax_to_pfn(entry);
908 count = 1UL << dax_entry_order(entry);
909 index = xas->xa_index & ~(count - 1);
910
911 dax_entry_mkclean(mapping, index, pfn);
912 dax_flush(dax_dev, page_address(pfn_to_page(pfn)), count * PAGE_SIZE);
913 /*
914 * After we have flushed the cache, we can clear the dirty tag. There
915 * cannot be new dirty data in the pfn after the flush has completed as
916 * the pfn mappings are writeprotected and fault waits for mapping
917 * entry lock.
918 */
919 xas_reset(xas);
920 xas_lock_irq(xas);
921 xas_store(xas, entry);
922 xas_clear_mark(xas, PAGECACHE_TAG_DIRTY);
923 dax_wake_entry(xas, entry, false);
924
925 trace_dax_writeback_one(mapping->host, index, count);
926 return ret;
927
928 put_unlocked:
929 put_unlocked_entry(xas, entry);
930 return ret;
931 }
932
933 /*
934 * Flush the mapping to the persistent domain within the byte range of [start,
935 * end]. This is required by data integrity operations to ensure file data is
936 * on persistent storage prior to completion of the operation.
937 */
938 int dax_writeback_mapping_range(struct address_space *mapping,
939 struct dax_device *dax_dev, struct writeback_control *wbc)
940 {
941 XA_STATE(xas, &mapping->i_pages, wbc->range_start >> PAGE_SHIFT);
942 struct inode *inode = mapping->host;
943 pgoff_t end_index = wbc->range_end >> PAGE_SHIFT;
944 void *entry;
945 int ret = 0;
946 unsigned int scanned = 0;
947
948 if (WARN_ON_ONCE(inode->i_blkbits != PAGE_SHIFT))
949 return -EIO;
950
951 if (!mapping->nrexceptional || wbc->sync_mode != WB_SYNC_ALL)
952 return 0;
953
954 trace_dax_writeback_range(inode, xas.xa_index, end_index);
955
956 tag_pages_for_writeback(mapping, xas.xa_index, end_index);
957
958 xas_lock_irq(&xas);
959 xas_for_each_marked(&xas, entry, end_index, PAGECACHE_TAG_TOWRITE) {
960 ret = dax_writeback_one(&xas, dax_dev, mapping, entry);
961 if (ret < 0) {
962 mapping_set_error(mapping, ret);
963 break;
964 }
965 if (++scanned % XA_CHECK_SCHED)
966 continue;
967
968 xas_pause(&xas);
969 xas_unlock_irq(&xas);
970 cond_resched();
971 xas_lock_irq(&xas);
972 }
973 xas_unlock_irq(&xas);
974 trace_dax_writeback_range_done(inode, xas.xa_index, end_index);
975 return ret;
976 }
977 EXPORT_SYMBOL_GPL(dax_writeback_mapping_range);
978
979 static sector_t dax_iomap_sector(struct iomap *iomap, loff_t pos)
980 {
981 return (iomap->addr + (pos & PAGE_MASK) - iomap->offset) >> 9;
982 }
983
984 static int dax_iomap_pfn(struct iomap *iomap, loff_t pos, size_t size,
985 pfn_t *pfnp)
986 {
987 const sector_t sector = dax_iomap_sector(iomap, pos);
988 pgoff_t pgoff;
989 int id, rc;
990 long length;
991
992 rc = bdev_dax_pgoff(iomap->bdev, sector, size, &pgoff);
993 if (rc)
994 return rc;
995 id = dax_read_lock();
996 length = dax_direct_access(iomap->dax_dev, pgoff, PHYS_PFN(size),
997 NULL, pfnp);
998 if (length < 0) {
999 rc = length;
1000 goto out;
1001 }
1002 rc = -EINVAL;
1003 if (PFN_PHYS(length) < size)
1004 goto out;
1005 if (pfn_t_to_pfn(*pfnp) & (PHYS_PFN(size)-1))
1006 goto out;
1007 /* For larger pages we need devmap */
1008 if (length > 1 && !pfn_t_devmap(*pfnp))
1009 goto out;
1010 rc = 0;
1011 out:
1012 dax_read_unlock(id);
1013 return rc;
1014 }
1015
1016 /*
1017 * The user has performed a load from a hole in the file. Allocating a new
1018 * page in the file would cause excessive storage usage for workloads with
1019 * sparse files. Instead we insert a read-only mapping of the 4k zero page.
1020 * If this page is ever written to we will re-fault and change the mapping to
1021 * point to real DAX storage instead.
1022 */
1023 static vm_fault_t dax_load_hole(struct xa_state *xas,
1024 struct address_space *mapping, void **entry,
1025 struct vm_fault *vmf)
1026 {
1027 struct inode *inode = mapping->host;
1028 unsigned long vaddr = vmf->address;
1029 pfn_t pfn = pfn_to_pfn_t(my_zero_pfn(vaddr));
1030 vm_fault_t ret;
1031
1032 *entry = dax_insert_entry(xas, mapping, vmf, *entry, pfn,
1033 DAX_ZERO_PAGE, false);
1034
1035 ret = vmf_insert_mixed(vmf->vma, vaddr, pfn);
1036 trace_dax_load_hole(inode, vmf, ret);
1037 return ret;
1038 }
1039
1040 s64 dax_iomap_zero(loff_t pos, u64 length, struct iomap *iomap)
1041 {
1042 sector_t sector = iomap_sector(iomap, pos & PAGE_MASK);
1043 pgoff_t pgoff;
1044 long rc, id;
1045 void *kaddr;
1046 bool page_aligned = false;
1047 unsigned offset = offset_in_page(pos);
1048 unsigned size = min_t(u64, PAGE_SIZE - offset, length);
1049
1050 if (IS_ALIGNED(sector << SECTOR_SHIFT, PAGE_SIZE) &&
1051 (size == PAGE_SIZE))
1052 page_aligned = true;
1053
1054 rc = bdev_dax_pgoff(iomap->bdev, sector, PAGE_SIZE, &pgoff);
1055 if (rc)
1056 return rc;
1057
1058 id = dax_read_lock();
1059
1060 if (page_aligned)
1061 rc = dax_zero_page_range(iomap->dax_dev, pgoff, 1);
1062 else
1063 rc = dax_direct_access(iomap->dax_dev, pgoff, 1, &kaddr, NULL);
1064 if (rc < 0) {
1065 dax_read_unlock(id);
1066 return rc;
1067 }
1068
1069 if (!page_aligned) {
1070 memset(kaddr + offset, 0, size);
1071 dax_flush(iomap->dax_dev, kaddr + offset, size);
1072 }
1073 dax_read_unlock(id);
1074 return size;
1075 }
1076
1077 static loff_t
1078 dax_iomap_actor(struct inode *inode, loff_t pos, loff_t length, void *data,
1079 struct iomap *iomap, struct iomap *srcmap)
1080 {
1081 struct block_device *bdev = iomap->bdev;
1082 struct dax_device *dax_dev = iomap->dax_dev;
1083 struct iov_iter *iter = data;
1084 loff_t end = pos + length, done = 0;
1085 ssize_t ret = 0;
1086 size_t xfer;
1087 int id;
1088
1089 if (iov_iter_rw(iter) == READ) {
1090 end = min(end, i_size_read(inode));
1091 if (pos >= end)
1092 return 0;
1093
1094 if (iomap->type == IOMAP_HOLE || iomap->type == IOMAP_UNWRITTEN)
1095 return iov_iter_zero(min(length, end - pos), iter);
1096 }
1097
1098 if (WARN_ON_ONCE(iomap->type != IOMAP_MAPPED))
1099 return -EIO;
1100
1101 /*
1102 * Write can allocate block for an area which has a hole page mapped
1103 * into page tables. We have to tear down these mappings so that data
1104 * written by write(2) is visible in mmap.
1105 */
1106 if (iomap->flags & IOMAP_F_NEW) {
1107 invalidate_inode_pages2_range(inode->i_mapping,
1108 pos >> PAGE_SHIFT,
1109 (end - 1) >> PAGE_SHIFT);
1110 }
1111
1112 id = dax_read_lock();
1113 while (pos < end) {
1114 unsigned offset = pos & (PAGE_SIZE - 1);
1115 const size_t size = ALIGN(length + offset, PAGE_SIZE);
1116 const sector_t sector = dax_iomap_sector(iomap, pos);
1117 ssize_t map_len;
1118 pgoff_t pgoff;
1119 void *kaddr;
1120
1121 if (fatal_signal_pending(current)) {
1122 ret = -EINTR;
1123 break;
1124 }
1125
1126 ret = bdev_dax_pgoff(bdev, sector, size, &pgoff);
1127 if (ret)
1128 break;
1129
1130 map_len = dax_direct_access(dax_dev, pgoff, PHYS_PFN(size),
1131 &kaddr, NULL);
1132 if (map_len < 0) {
1133 ret = map_len;
1134 break;
1135 }
1136
1137 map_len = PFN_PHYS(map_len);
1138 kaddr += offset;
1139 map_len -= offset;
1140 if (map_len > end - pos)
1141 map_len = end - pos;
1142
1143 /*
1144 * The userspace address for the memory copy has already been
1145 * validated via access_ok() in either vfs_read() or
1146 * vfs_write(), depending on which operation we are doing.
1147 */
1148 if (iov_iter_rw(iter) == WRITE)
1149 xfer = dax_copy_from_iter(dax_dev, pgoff, kaddr,
1150 map_len, iter);
1151 else
1152 xfer = dax_copy_to_iter(dax_dev, pgoff, kaddr,
1153 map_len, iter);
1154
1155 pos += xfer;
1156 length -= xfer;
1157 done += xfer;
1158
1159 if (xfer == 0)
1160 ret = -EFAULT;
1161 if (xfer < map_len)
1162 break;
1163 }
1164 dax_read_unlock(id);
1165
1166 return done ? done : ret;
1167 }
1168
1169 /**
1170 * dax_iomap_rw - Perform I/O to a DAX file
1171 * @iocb: The control block for this I/O
1172 * @iter: The addresses to do I/O from or to
1173 * @ops: iomap ops passed from the file system
1174 *
1175 * This function performs read and write operations to directly mapped
1176 * persistent memory. The callers needs to take care of read/write exclusion
1177 * and evicting any page cache pages in the region under I/O.
1178 */
1179 ssize_t
1180 dax_iomap_rw(struct kiocb *iocb, struct iov_iter *iter,
1181 const struct iomap_ops *ops)
1182 {
1183 struct address_space *mapping = iocb->ki_filp->f_mapping;
1184 struct inode *inode = mapping->host;
1185 loff_t pos = iocb->ki_pos, ret = 0, done = 0;
1186 unsigned flags = 0;
1187
1188 if (iov_iter_rw(iter) == WRITE) {
1189 lockdep_assert_held_write(&inode->i_rwsem);
1190 flags |= IOMAP_WRITE;
1191 } else {
1192 lockdep_assert_held(&inode->i_rwsem);
1193 }
1194
1195 if (iocb->ki_flags & IOCB_NOWAIT)
1196 flags |= IOMAP_NOWAIT;
1197
1198 while (iov_iter_count(iter)) {
1199 ret = iomap_apply(inode, pos, iov_iter_count(iter), flags, ops,
1200 iter, dax_iomap_actor);
1201 if (ret <= 0)
1202 break;
1203 pos += ret;
1204 done += ret;
1205 }
1206
1207 iocb->ki_pos += done;
1208 return done ? done : ret;
1209 }
1210 EXPORT_SYMBOL_GPL(dax_iomap_rw);
1211
1212 static vm_fault_t dax_fault_return(int error)
1213 {
1214 if (error == 0)
1215 return VM_FAULT_NOPAGE;
1216 return vmf_error(error);
1217 }
1218
1219 /*
1220 * MAP_SYNC on a dax mapping guarantees dirty metadata is
1221 * flushed on write-faults (non-cow), but not read-faults.
1222 */
1223 static bool dax_fault_is_synchronous(unsigned long flags,
1224 struct vm_area_struct *vma, struct iomap *iomap)
1225 {
1226 return (flags & IOMAP_WRITE) && (vma->vm_flags & VM_SYNC)
1227 && (iomap->flags & IOMAP_F_DIRTY);
1228 }
1229
1230 static vm_fault_t dax_iomap_pte_fault(struct vm_fault *vmf, pfn_t *pfnp,
1231 int *iomap_errp, const struct iomap_ops *ops)
1232 {
1233 struct vm_area_struct *vma = vmf->vma;
1234 struct address_space *mapping = vma->vm_file->f_mapping;
1235 XA_STATE(xas, &mapping->i_pages, vmf->pgoff);
1236 struct inode *inode = mapping->host;
1237 unsigned long vaddr = vmf->address;
1238 loff_t pos = (loff_t)vmf->pgoff << PAGE_SHIFT;
1239 struct iomap iomap = { .type = IOMAP_HOLE };
1240 struct iomap srcmap = { .type = IOMAP_HOLE };
1241 unsigned flags = IOMAP_FAULT;
1242 int error, major = 0;
1243 bool write = vmf->flags & FAULT_FLAG_WRITE;
1244 bool sync;
1245 vm_fault_t ret = 0;
1246 void *entry;
1247 pfn_t pfn;
1248
1249 trace_dax_pte_fault(inode, vmf, ret);
1250 /*
1251 * Check whether offset isn't beyond end of file now. Caller is supposed
1252 * to hold locks serializing us with truncate / punch hole so this is
1253 * a reliable test.
1254 */
1255 if (pos >= i_size_read(inode)) {
1256 ret = VM_FAULT_SIGBUS;
1257 goto out;
1258 }
1259
1260 if (write && !vmf->cow_page)
1261 flags |= IOMAP_WRITE;
1262
1263 entry = grab_mapping_entry(&xas, mapping, 0);
1264 if (xa_is_internal(entry)) {
1265 ret = xa_to_internal(entry);
1266 goto out;
1267 }
1268
1269 /*
1270 * It is possible, particularly with mixed reads & writes to private
1271 * mappings, that we have raced with a PMD fault that overlaps with
1272 * the PTE we need to set up. If so just return and the fault will be
1273 * retried.
1274 */
1275 if (pmd_trans_huge(*vmf->pmd) || pmd_devmap(*vmf->pmd)) {
1276 ret = VM_FAULT_NOPAGE;
1277 goto unlock_entry;
1278 }
1279
1280 /*
1281 * Note that we don't bother to use iomap_apply here: DAX required
1282 * the file system block size to be equal the page size, which means
1283 * that we never have to deal with more than a single extent here.
1284 */
1285 error = ops->iomap_begin(inode, pos, PAGE_SIZE, flags, &iomap, &srcmap);
1286 if (iomap_errp)
1287 *iomap_errp = error;
1288 if (error) {
1289 ret = dax_fault_return(error);
1290 goto unlock_entry;
1291 }
1292 if (WARN_ON_ONCE(iomap.offset + iomap.length < pos + PAGE_SIZE)) {
1293 error = -EIO; /* fs corruption? */
1294 goto error_finish_iomap;
1295 }
1296
1297 if (vmf->cow_page) {
1298 sector_t sector = dax_iomap_sector(&iomap, pos);
1299
1300 switch (iomap.type) {
1301 case IOMAP_HOLE:
1302 case IOMAP_UNWRITTEN:
1303 clear_user_highpage(vmf->cow_page, vaddr);
1304 break;
1305 case IOMAP_MAPPED:
1306 error = copy_cow_page_dax(iomap.bdev, iomap.dax_dev,
1307 sector, vmf->cow_page, vaddr);
1308 break;
1309 default:
1310 WARN_ON_ONCE(1);
1311 error = -EIO;
1312 break;
1313 }
1314
1315 if (error)
1316 goto error_finish_iomap;
1317
1318 __SetPageUptodate(vmf->cow_page);
1319 ret = finish_fault(vmf);
1320 if (!ret)
1321 ret = VM_FAULT_DONE_COW;
1322 goto finish_iomap;
1323 }
1324
1325 sync = dax_fault_is_synchronous(flags, vma, &iomap);
1326
1327 switch (iomap.type) {
1328 case IOMAP_MAPPED:
1329 if (iomap.flags & IOMAP_F_NEW) {
1330 count_vm_event(PGMAJFAULT);
1331 count_memcg_event_mm(vma->vm_mm, PGMAJFAULT);
1332 major = VM_FAULT_MAJOR;
1333 }
1334 error = dax_iomap_pfn(&iomap, pos, PAGE_SIZE, &pfn);
1335 if (error < 0)
1336 goto error_finish_iomap;
1337
1338 entry = dax_insert_entry(&xas, mapping, vmf, entry, pfn,
1339 0, write && !sync);
1340
1341 /*
1342 * If we are doing synchronous page fault and inode needs fsync,
1343 * we can insert PTE into page tables only after that happens.
1344 * Skip insertion for now and return the pfn so that caller can
1345 * insert it after fsync is done.
1346 */
1347 if (sync) {
1348 if (WARN_ON_ONCE(!pfnp)) {
1349 error = -EIO;
1350 goto error_finish_iomap;
1351 }
1352 *pfnp = pfn;
1353 ret = VM_FAULT_NEEDDSYNC | major;
1354 goto finish_iomap;
1355 }
1356 trace_dax_insert_mapping(inode, vmf, entry);
1357 if (write)
1358 ret = vmf_insert_mixed_mkwrite(vma, vaddr, pfn);
1359 else
1360 ret = vmf_insert_mixed(vma, vaddr, pfn);
1361
1362 goto finish_iomap;
1363 case IOMAP_UNWRITTEN:
1364 case IOMAP_HOLE:
1365 if (!write) {
1366 ret = dax_load_hole(&xas, mapping, &entry, vmf);
1367 goto finish_iomap;
1368 }
1369 fallthrough;
1370 default:
1371 WARN_ON_ONCE(1);
1372 error = -EIO;
1373 break;
1374 }
1375
1376 error_finish_iomap:
1377 ret = dax_fault_return(error);
1378 finish_iomap:
1379 if (ops->iomap_end) {
1380 int copied = PAGE_SIZE;
1381
1382 if (ret & VM_FAULT_ERROR)
1383 copied = 0;
1384 /*
1385 * The fault is done by now and there's no way back (other
1386 * thread may be already happily using PTE we have installed).
1387 * Just ignore error from ->iomap_end since we cannot do much
1388 * with it.
1389 */
1390 ops->iomap_end(inode, pos, PAGE_SIZE, copied, flags, &iomap);
1391 }
1392 unlock_entry:
1393 dax_unlock_entry(&xas, entry);
1394 out:
1395 trace_dax_pte_fault_done(inode, vmf, ret);
1396 return ret | major;
1397 }
1398
1399 #ifdef CONFIG_FS_DAX_PMD
1400 static vm_fault_t dax_pmd_load_hole(struct xa_state *xas, struct vm_fault *vmf,
1401 struct iomap *iomap, void **entry)
1402 {
1403 struct address_space *mapping = vmf->vma->vm_file->f_mapping;
1404 unsigned long pmd_addr = vmf->address & PMD_MASK;
1405 struct vm_area_struct *vma = vmf->vma;
1406 struct inode *inode = mapping->host;
1407 pgtable_t pgtable = NULL;
1408 struct page *zero_page;
1409 spinlock_t *ptl;
1410 pmd_t pmd_entry;
1411 pfn_t pfn;
1412
1413 zero_page = mm_get_huge_zero_page(vmf->vma->vm_mm);
1414
1415 if (unlikely(!zero_page))
1416 goto fallback;
1417
1418 pfn = page_to_pfn_t(zero_page);
1419 *entry = dax_insert_entry(xas, mapping, vmf, *entry, pfn,
1420 DAX_PMD | DAX_ZERO_PAGE, false);
1421
1422 if (arch_needs_pgtable_deposit()) {
1423 pgtable = pte_alloc_one(vma->vm_mm);
1424 if (!pgtable)
1425 return VM_FAULT_OOM;
1426 }
1427
1428 ptl = pmd_lock(vmf->vma->vm_mm, vmf->pmd);
1429 if (!pmd_none(*(vmf->pmd))) {
1430 spin_unlock(ptl);
1431 goto fallback;
1432 }
1433
1434 if (pgtable) {
1435 pgtable_trans_huge_deposit(vma->vm_mm, vmf->pmd, pgtable);
1436 mm_inc_nr_ptes(vma->vm_mm);
1437 }
1438 pmd_entry = mk_pmd(zero_page, vmf->vma->vm_page_prot);
1439 pmd_entry = pmd_mkhuge(pmd_entry);
1440 set_pmd_at(vmf->vma->vm_mm, pmd_addr, vmf->pmd, pmd_entry);
1441 spin_unlock(ptl);
1442 trace_dax_pmd_load_hole(inode, vmf, zero_page, *entry);
1443 return VM_FAULT_NOPAGE;
1444
1445 fallback:
1446 if (pgtable)
1447 pte_free(vma->vm_mm, pgtable);
1448 trace_dax_pmd_load_hole_fallback(inode, vmf, zero_page, *entry);
1449 return VM_FAULT_FALLBACK;
1450 }
1451
1452 static vm_fault_t dax_iomap_pmd_fault(struct vm_fault *vmf, pfn_t *pfnp,
1453 const struct iomap_ops *ops)
1454 {
1455 struct vm_area_struct *vma = vmf->vma;
1456 struct address_space *mapping = vma->vm_file->f_mapping;
1457 XA_STATE_ORDER(xas, &mapping->i_pages, vmf->pgoff, PMD_ORDER);
1458 unsigned long pmd_addr = vmf->address & PMD_MASK;
1459 bool write = vmf->flags & FAULT_FLAG_WRITE;
1460 bool sync;
1461 unsigned int iomap_flags = (write ? IOMAP_WRITE : 0) | IOMAP_FAULT;
1462 struct inode *inode = mapping->host;
1463 vm_fault_t result = VM_FAULT_FALLBACK;
1464 struct iomap iomap = { .type = IOMAP_HOLE };
1465 struct iomap srcmap = { .type = IOMAP_HOLE };
1466 pgoff_t max_pgoff;
1467 void *entry;
1468 loff_t pos;
1469 int error;
1470 pfn_t pfn;
1471
1472 /*
1473 * Check whether offset isn't beyond end of file now. Caller is
1474 * supposed to hold locks serializing us with truncate / punch hole so
1475 * this is a reliable test.
1476 */
1477 max_pgoff = DIV_ROUND_UP(i_size_read(inode), PAGE_SIZE);
1478
1479 trace_dax_pmd_fault(inode, vmf, max_pgoff, 0);
1480
1481 /*
1482 * Make sure that the faulting address's PMD offset (color) matches
1483 * the PMD offset from the start of the file. This is necessary so
1484 * that a PMD range in the page table overlaps exactly with a PMD
1485 * range in the page cache.
1486 */
1487 if ((vmf->pgoff & PG_PMD_COLOUR) !=
1488 ((vmf->address >> PAGE_SHIFT) & PG_PMD_COLOUR))
1489 goto fallback;
1490
1491 /* Fall back to PTEs if we're going to COW */
1492 if (write && !(vma->vm_flags & VM_SHARED))
1493 goto fallback;
1494
1495 /* If the PMD would extend outside the VMA */
1496 if (pmd_addr < vma->vm_start)
1497 goto fallback;
1498 if ((pmd_addr + PMD_SIZE) > vma->vm_end)
1499 goto fallback;
1500
1501 if (xas.xa_index >= max_pgoff) {
1502 result = VM_FAULT_SIGBUS;
1503 goto out;
1504 }
1505
1506 /* If the PMD would extend beyond the file size */
1507 if ((xas.xa_index | PG_PMD_COLOUR) >= max_pgoff)
1508 goto fallback;
1509
1510 /*
1511 * grab_mapping_entry() will make sure we get an empty PMD entry,
1512 * a zero PMD entry or a DAX PMD. If it can't (because a PTE
1513 * entry is already in the array, for instance), it will return
1514 * VM_FAULT_FALLBACK.
1515 */
1516 entry = grab_mapping_entry(&xas, mapping, PMD_ORDER);
1517 if (xa_is_internal(entry)) {
1518 result = xa_to_internal(entry);
1519 goto fallback;
1520 }
1521
1522 /*
1523 * It is possible, particularly with mixed reads & writes to private
1524 * mappings, that we have raced with a PTE fault that overlaps with
1525 * the PMD we need to set up. If so just return and the fault will be
1526 * retried.
1527 */
1528 if (!pmd_none(*vmf->pmd) && !pmd_trans_huge(*vmf->pmd) &&
1529 !pmd_devmap(*vmf->pmd)) {
1530 result = 0;
1531 goto unlock_entry;
1532 }
1533
1534 /*
1535 * Note that we don't use iomap_apply here. We aren't doing I/O, only
1536 * setting up a mapping, so really we're using iomap_begin() as a way
1537 * to look up our filesystem block.
1538 */
1539 pos = (loff_t)xas.xa_index << PAGE_SHIFT;
1540 error = ops->iomap_begin(inode, pos, PMD_SIZE, iomap_flags, &iomap,
1541 &srcmap);
1542 if (error)
1543 goto unlock_entry;
1544
1545 if (iomap.offset + iomap.length < pos + PMD_SIZE)
1546 goto finish_iomap;
1547
1548 sync = dax_fault_is_synchronous(iomap_flags, vma, &iomap);
1549
1550 switch (iomap.type) {
1551 case IOMAP_MAPPED:
1552 error = dax_iomap_pfn(&iomap, pos, PMD_SIZE, &pfn);
1553 if (error < 0)
1554 goto finish_iomap;
1555
1556 entry = dax_insert_entry(&xas, mapping, vmf, entry, pfn,
1557 DAX_PMD, write && !sync);
1558
1559 /*
1560 * If we are doing synchronous page fault and inode needs fsync,
1561 * we can insert PMD into page tables only after that happens.
1562 * Skip insertion for now and return the pfn so that caller can
1563 * insert it after fsync is done.
1564 */
1565 if (sync) {
1566 if (WARN_ON_ONCE(!pfnp))
1567 goto finish_iomap;
1568 *pfnp = pfn;
1569 result = VM_FAULT_NEEDDSYNC;
1570 goto finish_iomap;
1571 }
1572
1573 trace_dax_pmd_insert_mapping(inode, vmf, PMD_SIZE, pfn, entry);
1574 result = vmf_insert_pfn_pmd(vmf, pfn, write);
1575 break;
1576 case IOMAP_UNWRITTEN:
1577 case IOMAP_HOLE:
1578 if (WARN_ON_ONCE(write))
1579 break;
1580 result = dax_pmd_load_hole(&xas, vmf, &iomap, &entry);
1581 break;
1582 default:
1583 WARN_ON_ONCE(1);
1584 break;
1585 }
1586
1587 finish_iomap:
1588 if (ops->iomap_end) {
1589 int copied = PMD_SIZE;
1590
1591 if (result == VM_FAULT_FALLBACK)
1592 copied = 0;
1593 /*
1594 * The fault is done by now and there's no way back (other
1595 * thread may be already happily using PMD we have installed).
1596 * Just ignore error from ->iomap_end since we cannot do much
1597 * with it.
1598 */
1599 ops->iomap_end(inode, pos, PMD_SIZE, copied, iomap_flags,
1600 &iomap);
1601 }
1602 unlock_entry:
1603 dax_unlock_entry(&xas, entry);
1604 fallback:
1605 if (result == VM_FAULT_FALLBACK) {
1606 split_huge_pmd(vma, vmf->pmd, vmf->address);
1607 count_vm_event(THP_FAULT_FALLBACK);
1608 }
1609 out:
1610 trace_dax_pmd_fault_done(inode, vmf, max_pgoff, result);
1611 return result;
1612 }
1613 #else
1614 static vm_fault_t dax_iomap_pmd_fault(struct vm_fault *vmf, pfn_t *pfnp,
1615 const struct iomap_ops *ops)
1616 {
1617 return VM_FAULT_FALLBACK;
1618 }
1619 #endif /* CONFIG_FS_DAX_PMD */
1620
1621 /**
1622 * dax_iomap_fault - handle a page fault on a DAX file
1623 * @vmf: The description of the fault
1624 * @pe_size: Size of the page to fault in
1625 * @pfnp: PFN to insert for synchronous faults if fsync is required
1626 * @iomap_errp: Storage for detailed error code in case of error
1627 * @ops: Iomap ops passed from the file system
1628 *
1629 * When a page fault occurs, filesystems may call this helper in
1630 * their fault handler for DAX files. dax_iomap_fault() assumes the caller
1631 * has done all the necessary locking for page fault to proceed
1632 * successfully.
1633 */
1634 vm_fault_t dax_iomap_fault(struct vm_fault *vmf, enum page_entry_size pe_size,
1635 pfn_t *pfnp, int *iomap_errp, const struct iomap_ops *ops)
1636 {
1637 switch (pe_size) {
1638 case PE_SIZE_PTE:
1639 return dax_iomap_pte_fault(vmf, pfnp, iomap_errp, ops);
1640 case PE_SIZE_PMD:
1641 return dax_iomap_pmd_fault(vmf, pfnp, ops);
1642 default:
1643 return VM_FAULT_FALLBACK;
1644 }
1645 }
1646 EXPORT_SYMBOL_GPL(dax_iomap_fault);
1647
1648 /*
1649 * dax_insert_pfn_mkwrite - insert PTE or PMD entry into page tables
1650 * @vmf: The description of the fault
1651 * @pfn: PFN to insert
1652 * @order: Order of entry to insert.
1653 *
1654 * This function inserts a writeable PTE or PMD entry into the page tables
1655 * for an mmaped DAX file. It also marks the page cache entry as dirty.
1656 */
1657 static vm_fault_t
1658 dax_insert_pfn_mkwrite(struct vm_fault *vmf, pfn_t pfn, unsigned int order)
1659 {
1660 struct address_space *mapping = vmf->vma->vm_file->f_mapping;
1661 XA_STATE_ORDER(xas, &mapping->i_pages, vmf->pgoff, order);
1662 void *entry;
1663 vm_fault_t ret;
1664
1665 xas_lock_irq(&xas);
1666 entry = get_unlocked_entry(&xas, order);
1667 /* Did we race with someone splitting entry or so? */
1668 if (!entry || dax_is_conflict(entry) ||
1669 (order == 0 && !dax_is_pte_entry(entry))) {
1670 put_unlocked_entry(&xas, entry);
1671 xas_unlock_irq(&xas);
1672 trace_dax_insert_pfn_mkwrite_no_entry(mapping->host, vmf,
1673 VM_FAULT_NOPAGE);
1674 return VM_FAULT_NOPAGE;
1675 }
1676 xas_set_mark(&xas, PAGECACHE_TAG_DIRTY);
1677 dax_lock_entry(&xas, entry);
1678 xas_unlock_irq(&xas);
1679 if (order == 0)
1680 ret = vmf_insert_mixed_mkwrite(vmf->vma, vmf->address, pfn);
1681 #ifdef CONFIG_FS_DAX_PMD
1682 else if (order == PMD_ORDER)
1683 ret = vmf_insert_pfn_pmd(vmf, pfn, FAULT_FLAG_WRITE);
1684 #endif
1685 else
1686 ret = VM_FAULT_FALLBACK;
1687 dax_unlock_entry(&xas, entry);
1688 trace_dax_insert_pfn_mkwrite(mapping->host, vmf, ret);
1689 return ret;
1690 }
1691
1692 /**
1693 * dax_finish_sync_fault - finish synchronous page fault
1694 * @vmf: The description of the fault
1695 * @pe_size: Size of entry to be inserted
1696 * @pfn: PFN to insert
1697 *
1698 * This function ensures that the file range touched by the page fault is
1699 * stored persistently on the media and handles inserting of appropriate page
1700 * table entry.
1701 */
1702 vm_fault_t dax_finish_sync_fault(struct vm_fault *vmf,
1703 enum page_entry_size pe_size, pfn_t pfn)
1704 {
1705 int err;
1706 loff_t start = ((loff_t)vmf->pgoff) << PAGE_SHIFT;
1707 unsigned int order = pe_order(pe_size);
1708 size_t len = PAGE_SIZE << order;
1709
1710 err = vfs_fsync_range(vmf->vma->vm_file, start, start + len - 1, 1);
1711 if (err)
1712 return VM_FAULT_SIGBUS;
1713 return dax_insert_pfn_mkwrite(vmf, pfn, order);
1714 }
1715 EXPORT_SYMBOL_GPL(dax_finish_sync_fault);