xref: /linux/mm/swap_state.c (revision 0bcb517f0a70ae4fc59ce87bd27573043416aa94)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  *  linux/mm/swap_state.c
4  *
5  *  Copyright (C) 1991, 1992, 1993, 1994  Linus Torvalds
6  *  Swap reorganised 29.12.95, Stephen Tweedie
7  *
8  *  Rewritten to use page cache, (C) 1998 Stephen Tweedie
9  */
10 #include <linux/mm.h>
11 #include <linux/gfp.h>
12 #include <linux/kernel_stat.h>
13 #include <linux/mempolicy.h>
14 #include <linux/swap.h>
15 #include <linux/leafops.h>
16 #include <linux/init.h>
17 #include <linux/pagemap.h>
18 #include <linux/pagevec.h>
19 #include <linux/backing-dev.h>
20 #include <linux/blkdev.h>
21 #include <linux/migrate.h>
22 #include <linux/vmalloc.h>
23 #include <linux/huge_mm.h>
24 #include <linux/shmem_fs.h>
25 #include "internal.h"
26 #include "swap_table.h"
27 #include "swap.h"
28 
29 /*
30  * swapper_space is a fiction, retained to simplify the path through
31  * vmscan's shrink_folio_list.
32  */
33 static const struct address_space_operations swap_aops = {
34 	.dirty_folio	= noop_dirty_folio,
35 #ifdef CONFIG_MIGRATION
36 	.migrate_folio	= migrate_folio,
37 #endif
38 };
39 
40 struct address_space swap_space __read_mostly = {
41 	.a_ops = &swap_aops,
42 };
43 
44 static bool enable_vma_readahead __read_mostly = true;
45 
46 #define SWAP_RA_ORDER_CEILING	5
47 
48 #define SWAP_RA_WIN_SHIFT	(PAGE_SHIFT / 2)
49 #define SWAP_RA_HITS_MASK	((1UL << SWAP_RA_WIN_SHIFT) - 1)
50 #define SWAP_RA_HITS_MAX	SWAP_RA_HITS_MASK
51 #define SWAP_RA_WIN_MASK	(~PAGE_MASK & ~SWAP_RA_HITS_MASK)
52 
53 #define SWAP_RA_HITS(v)		((v) & SWAP_RA_HITS_MASK)
54 #define SWAP_RA_WIN(v)		(((v) & SWAP_RA_WIN_MASK) >> SWAP_RA_WIN_SHIFT)
55 #define SWAP_RA_ADDR(v)		((v) & PAGE_MASK)
56 
57 #define SWAP_RA_VAL(addr, win, hits)				\
58 	(((addr) & PAGE_MASK) |					\
59 	 (((win) << SWAP_RA_WIN_SHIFT) & SWAP_RA_WIN_MASK) |	\
60 	 ((hits) & SWAP_RA_HITS_MASK))
61 
62 /* Initial readahead hits is 4 to start up with a small window */
63 #define GET_SWAP_RA_VAL(vma)					\
64 	(atomic_long_read(&(vma)->swap_readahead_info) ? : 4)
65 
66 static atomic_t swapin_readahead_hits = ATOMIC_INIT(4);
67 
show_swap_cache_info(void)68 void show_swap_cache_info(void)
69 {
70 	printk("%lu pages in swap cache\n", total_swapcache_pages());
71 	printk("Free swap  = %ldkB\n", K(get_nr_swap_pages()));
72 	printk("Total swap = %lukB\n", K(total_swap_pages));
73 }
74 
75 /**
76  * swap_cache_get_folio - Looks up a folio in the swap cache.
77  * @entry: swap entry used for the lookup.
78  *
79  * A found folio will be returned unlocked and with its refcount increased.
80  *
81  * Context: Caller must ensure @entry is valid and protect the swap device
82  * with reference count or locks.
83  * Return: Returns the found folio on success, NULL otherwise. The caller
84  * must lock and check if the folio still matches the swap entry before
85  * use (e.g., folio_matches_swap_entry).
86  */
swap_cache_get_folio(swp_entry_t entry)87 struct folio *swap_cache_get_folio(swp_entry_t entry)
88 {
89 	unsigned long swp_tb;
90 	struct folio *folio;
91 
92 	for (;;) {
93 		swp_tb = swap_table_get(__swap_entry_to_cluster(entry),
94 					swp_cluster_offset(entry));
95 		if (!swp_tb_is_folio(swp_tb))
96 			return NULL;
97 		folio = swp_tb_to_folio(swp_tb);
98 		if (likely(folio_try_get(folio)))
99 			return folio;
100 	}
101 
102 	return NULL;
103 }
104 
105 /**
106  * swap_cache_has_folio - Check if a swap slot has cache.
107  * @entry: swap entry indicating the slot.
108  *
109  * Context: Caller must ensure @entry is valid and protect the swap
110  * device with reference count or locks.
111  */
swap_cache_has_folio(swp_entry_t entry)112 bool swap_cache_has_folio(swp_entry_t entry)
113 {
114 	unsigned long swp_tb;
115 
116 	swp_tb = swap_table_get(__swap_entry_to_cluster(entry),
117 				swp_cluster_offset(entry));
118 	return swp_tb_is_folio(swp_tb);
119 }
120 
121 /**
122  * swap_cache_get_shadow - Looks up a shadow in the swap cache.
123  * @entry: swap entry used for the lookup.
124  *
125  * Context: Caller must ensure @entry is valid and protect the swap device
126  * with reference count or locks.
127  * Return: Returns either NULL or an XA_VALUE (shadow).
128  */
swap_cache_get_shadow(swp_entry_t entry)129 void *swap_cache_get_shadow(swp_entry_t entry)
130 {
131 	unsigned long swp_tb;
132 
133 	swp_tb = swap_table_get(__swap_entry_to_cluster(entry),
134 				swp_cluster_offset(entry));
135 	if (swp_tb_is_shadow(swp_tb))
136 		return swp_tb_to_shadow(swp_tb);
137 	return NULL;
138 }
139 
__swap_cache_add_folio(struct swap_cluster_info * ci,struct folio * folio,swp_entry_t entry)140 void __swap_cache_add_folio(struct swap_cluster_info *ci,
141 			    struct folio *folio, swp_entry_t entry)
142 {
143 	unsigned long new_tb;
144 	unsigned int ci_start, ci_off, ci_end;
145 	unsigned long nr_pages = folio_nr_pages(folio);
146 
147 	VM_WARN_ON_ONCE_FOLIO(!folio_test_locked(folio), folio);
148 	VM_WARN_ON_ONCE_FOLIO(folio_test_swapcache(folio), folio);
149 	VM_WARN_ON_ONCE_FOLIO(!folio_test_swapbacked(folio), folio);
150 
151 	new_tb = folio_to_swp_tb(folio);
152 	ci_start = swp_cluster_offset(entry);
153 	ci_off = ci_start;
154 	ci_end = ci_start + nr_pages;
155 	do {
156 		VM_WARN_ON_ONCE(swp_tb_is_folio(__swap_table_get(ci, ci_off)));
157 		__swap_table_set(ci, ci_off, new_tb);
158 	} while (++ci_off < ci_end);
159 
160 	folio_ref_add(folio, nr_pages);
161 	folio_set_swapcache(folio);
162 	folio->swap = entry;
163 
164 	node_stat_mod_folio(folio, NR_FILE_PAGES, nr_pages);
165 	lruvec_stat_mod_folio(folio, NR_SWAPCACHE, nr_pages);
166 }
167 
168 /**
169  * swap_cache_add_folio - Add a folio into the swap cache.
170  * @folio: The folio to be added.
171  * @entry: The swap entry corresponding to the folio.
172  * @gfp: gfp_mask for XArray node allocation.
173  * @shadowp: If a shadow is found, return the shadow.
174  *
175  * Context: Caller must ensure @entry is valid and protect the swap device
176  * with reference count or locks.
177  */
swap_cache_add_folio(struct folio * folio,swp_entry_t entry,void ** shadowp)178 static int swap_cache_add_folio(struct folio *folio, swp_entry_t entry,
179 				void **shadowp)
180 {
181 	int err;
182 	void *shadow = NULL;
183 	unsigned long old_tb;
184 	struct swap_info_struct *si;
185 	struct swap_cluster_info *ci;
186 	unsigned int ci_start, ci_off, ci_end, offset;
187 	unsigned long nr_pages = folio_nr_pages(folio);
188 
189 	si = __swap_entry_to_info(entry);
190 	ci_start = swp_cluster_offset(entry);
191 	ci_end = ci_start + nr_pages;
192 	ci_off = ci_start;
193 	offset = swp_offset(entry);
194 	ci = swap_cluster_lock(si, swp_offset(entry));
195 	if (unlikely(!ci->table)) {
196 		err = -ENOENT;
197 		goto failed;
198 	}
199 	do {
200 		old_tb = __swap_table_get(ci, ci_off);
201 		if (unlikely(swp_tb_is_folio(old_tb))) {
202 			err = -EEXIST;
203 			goto failed;
204 		}
205 		if (unlikely(!__swap_count(swp_entry(swp_type(entry), offset)))) {
206 			err = -ENOENT;
207 			goto failed;
208 		}
209 		if (swp_tb_is_shadow(old_tb))
210 			shadow = swp_tb_to_shadow(old_tb);
211 		offset++;
212 	} while (++ci_off < ci_end);
213 	__swap_cache_add_folio(ci, folio, entry);
214 	swap_cluster_unlock(ci);
215 	if (shadowp)
216 		*shadowp = shadow;
217 	return 0;
218 
219 failed:
220 	swap_cluster_unlock(ci);
221 	return err;
222 }
223 
224 /**
225  * __swap_cache_del_folio - Removes a folio from the swap cache.
226  * @ci: The locked swap cluster.
227  * @folio: The folio.
228  * @entry: The first swap entry that the folio corresponds to.
229  * @shadow: shadow value to be filled in the swap cache.
230  *
231  * Removes a folio from the swap cache and fills a shadow in place.
232  * This won't put the folio's refcount. The caller has to do that.
233  *
234  * Context: Caller must ensure the folio is locked and in the swap cache
235  * using the index of @entry, and lock the cluster that holds the entries.
236  */
__swap_cache_del_folio(struct swap_cluster_info * ci,struct folio * folio,swp_entry_t entry,void * shadow)237 void __swap_cache_del_folio(struct swap_cluster_info *ci, struct folio *folio,
238 			    swp_entry_t entry, void *shadow)
239 {
240 	struct swap_info_struct *si;
241 	unsigned long old_tb, new_tb;
242 	unsigned int ci_start, ci_off, ci_end;
243 	bool folio_swapped = false, need_free = false;
244 	unsigned long nr_pages = folio_nr_pages(folio);
245 
246 	VM_WARN_ON_ONCE(__swap_entry_to_cluster(entry) != ci);
247 	VM_WARN_ON_ONCE_FOLIO(!folio_test_locked(folio), folio);
248 	VM_WARN_ON_ONCE_FOLIO(!folio_test_swapcache(folio), folio);
249 	VM_WARN_ON_ONCE_FOLIO(folio_test_writeback(folio), folio);
250 
251 	si = __swap_entry_to_info(entry);
252 	new_tb = shadow_swp_to_tb(shadow);
253 	ci_start = swp_cluster_offset(entry);
254 	ci_end = ci_start + nr_pages;
255 	ci_off = ci_start;
256 	do {
257 		/* If shadow is NULL, we sets an empty shadow */
258 		old_tb = __swap_table_xchg(ci, ci_off, new_tb);
259 		WARN_ON_ONCE(!swp_tb_is_folio(old_tb) ||
260 			     swp_tb_to_folio(old_tb) != folio);
261 		if (__swap_count(swp_entry(si->type,
262 				 swp_offset(entry) + ci_off - ci_start)))
263 			folio_swapped = true;
264 		else
265 			need_free = true;
266 	} while (++ci_off < ci_end);
267 
268 	folio->swap.val = 0;
269 	folio_clear_swapcache(folio);
270 	node_stat_mod_folio(folio, NR_FILE_PAGES, -nr_pages);
271 	lruvec_stat_mod_folio(folio, NR_SWAPCACHE, -nr_pages);
272 
273 	if (!folio_swapped) {
274 		swap_entries_free(si, ci, swp_offset(entry), nr_pages);
275 	} else if (need_free) {
276 		do {
277 			if (!__swap_count(entry))
278 				swap_entries_free(si, ci, swp_offset(entry), 1);
279 			entry.val++;
280 		} while (--nr_pages);
281 	}
282 }
283 
284 /**
285  * swap_cache_del_folio - Removes a folio from the swap cache.
286  * @folio: The folio.
287  *
288  * Same as __swap_cache_del_folio, but handles lock and refcount. The
289  * caller must ensure the folio is either clean or has a swap count
290  * equal to zero, or it may cause data loss.
291  *
292  * Context: Caller must ensure the folio is locked and in the swap cache.
293  */
swap_cache_del_folio(struct folio * folio)294 void swap_cache_del_folio(struct folio *folio)
295 {
296 	struct swap_cluster_info *ci;
297 	swp_entry_t entry = folio->swap;
298 
299 	ci = swap_cluster_lock(__swap_entry_to_info(entry), swp_offset(entry));
300 	__swap_cache_del_folio(ci, folio, entry, NULL);
301 	swap_cluster_unlock(ci);
302 
303 	folio_ref_sub(folio, folio_nr_pages(folio));
304 }
305 
306 /**
307  * __swap_cache_replace_folio - Replace a folio in the swap cache.
308  * @ci: The locked swap cluster.
309  * @old: The old folio to be replaced.
310  * @new: The new folio.
311  *
312  * Replace an existing folio in the swap cache with a new folio. The
313  * caller is responsible for setting up the new folio's flag and swap
314  * entries. Replacement will take the new folio's swap entry value as
315  * the starting offset to override all slots covered by the new folio.
316  *
317  * Context: Caller must ensure both folios are locked, and lock the
318  * cluster that holds the old folio to be replaced.
319  */
__swap_cache_replace_folio(struct swap_cluster_info * ci,struct folio * old,struct folio * new)320 void __swap_cache_replace_folio(struct swap_cluster_info *ci,
321 				struct folio *old, struct folio *new)
322 {
323 	swp_entry_t entry = new->swap;
324 	unsigned long nr_pages = folio_nr_pages(new);
325 	unsigned int ci_off = swp_cluster_offset(entry);
326 	unsigned int ci_end = ci_off + nr_pages;
327 	unsigned long old_tb, new_tb;
328 
329 	VM_WARN_ON_ONCE(!folio_test_swapcache(old) || !folio_test_swapcache(new));
330 	VM_WARN_ON_ONCE(!folio_test_locked(old) || !folio_test_locked(new));
331 	VM_WARN_ON_ONCE(!entry.val);
332 
333 	/* Swap cache still stores N entries instead of a high-order entry */
334 	new_tb = folio_to_swp_tb(new);
335 	do {
336 		old_tb = __swap_table_xchg(ci, ci_off, new_tb);
337 		WARN_ON_ONCE(!swp_tb_is_folio(old_tb) || swp_tb_to_folio(old_tb) != old);
338 	} while (++ci_off < ci_end);
339 
340 	/*
341 	 * If the old folio is partially replaced (e.g., splitting a large
342 	 * folio, the old folio is shrunk, and new split sub folios replace
343 	 * the shrunk part), ensure the new folio doesn't overlap it.
344 	 */
345 	if (IS_ENABLED(CONFIG_DEBUG_VM) &&
346 	    folio_order(old) != folio_order(new)) {
347 		ci_off = swp_cluster_offset(old->swap);
348 		ci_end = ci_off + folio_nr_pages(old);
349 		while (ci_off++ < ci_end)
350 			WARN_ON_ONCE(swp_tb_to_folio(__swap_table_get(ci, ci_off)) != old);
351 	}
352 }
353 
354 /**
355  * __swap_cache_clear_shadow - Clears a set of shadows in the swap cache.
356  * @entry: The starting index entry.
357  * @nr_ents: How many slots need to be cleared.
358  *
359  * Context: Caller must ensure the range is valid, all in one single cluster,
360  * not occupied by any folio, and lock the cluster.
361  */
__swap_cache_clear_shadow(swp_entry_t entry,int nr_ents)362 void __swap_cache_clear_shadow(swp_entry_t entry, int nr_ents)
363 {
364 	struct swap_cluster_info *ci = __swap_entry_to_cluster(entry);
365 	unsigned int ci_off = swp_cluster_offset(entry), ci_end;
366 	unsigned long old;
367 
368 	ci_end = ci_off + nr_ents;
369 	do {
370 		old = __swap_table_xchg(ci, ci_off, null_to_swp_tb());
371 		WARN_ON_ONCE(swp_tb_is_folio(old));
372 	} while (++ci_off < ci_end);
373 }
374 
375 /*
376  * If we are the only user, then try to free up the swap cache.
377  *
378  * Its ok to check the swapcache flag without the folio lock
379  * here because we are going to recheck again inside
380  * folio_free_swap() _with_ the lock.
381  * 					- Marcelo
382  */
free_swap_cache(struct folio * folio)383 void free_swap_cache(struct folio *folio)
384 {
385 	if (folio_test_swapcache(folio) && !folio_mapped(folio) &&
386 	    folio_trylock(folio)) {
387 		folio_free_swap(folio);
388 		folio_unlock(folio);
389 	}
390 }
391 
392 /*
393  * Freeing a folio and also freeing any swap cache associated with
394  * this folio if it is the last user.
395  */
free_folio_and_swap_cache(struct folio * folio)396 void free_folio_and_swap_cache(struct folio *folio)
397 {
398 	free_swap_cache(folio);
399 	if (!is_huge_zero_folio(folio))
400 		folio_put(folio);
401 }
402 
403 /*
404  * Passed an array of pages, drop them all from swapcache and then release
405  * them.  They are removed from the LRU and freed if this is their last use.
406  */
free_pages_and_swap_cache(struct encoded_page ** pages,int nr)407 void free_pages_and_swap_cache(struct encoded_page **pages, int nr)
408 {
409 	struct folio_batch folios;
410 	unsigned int refs[PAGEVEC_SIZE];
411 
412 	folio_batch_init(&folios);
413 	for (int i = 0; i < nr; i++) {
414 		struct folio *folio = page_folio(encoded_page_ptr(pages[i]));
415 
416 		free_swap_cache(folio);
417 		refs[folios.nr] = 1;
418 		if (unlikely(encoded_page_flags(pages[i]) &
419 			     ENCODED_PAGE_BIT_NR_PAGES_NEXT))
420 			refs[folios.nr] = encoded_nr_pages(pages[++i]);
421 
422 		if (folio_batch_add(&folios, folio) == 0)
423 			folios_put_refs(&folios, refs);
424 	}
425 	if (folios.nr)
426 		folios_put_refs(&folios, refs);
427 }
428 
swap_use_vma_readahead(void)429 static inline bool swap_use_vma_readahead(void)
430 {
431 	return READ_ONCE(enable_vma_readahead) && !atomic_read(&nr_rotate_swap);
432 }
433 
434 /**
435  * swap_update_readahead - Update the readahead statistics of VMA or globally.
436  * @folio: the swap cache folio that just got hit.
437  * @vma: the VMA that should be updated, could be NULL for global update.
438  * @addr: the addr that triggered the swapin, ignored if @vma is NULL.
439  */
swap_update_readahead(struct folio * folio,struct vm_area_struct * vma,unsigned long addr)440 void swap_update_readahead(struct folio *folio, struct vm_area_struct *vma,
441 			   unsigned long addr)
442 {
443 	bool readahead, vma_ra = swap_use_vma_readahead();
444 
445 	/*
446 	 * At the moment, we don't support PG_readahead for anon THP
447 	 * so let's bail out rather than confusing the readahead stat.
448 	 */
449 	if (unlikely(folio_test_large(folio)))
450 		return;
451 
452 	readahead = folio_test_clear_readahead(folio);
453 	if (vma && vma_ra) {
454 		unsigned long ra_val;
455 		int win, hits;
456 
457 		ra_val = GET_SWAP_RA_VAL(vma);
458 		win = SWAP_RA_WIN(ra_val);
459 		hits = SWAP_RA_HITS(ra_val);
460 		if (readahead)
461 			hits = min_t(int, hits + 1, SWAP_RA_HITS_MAX);
462 		atomic_long_set(&vma->swap_readahead_info,
463 				SWAP_RA_VAL(addr, win, hits));
464 	}
465 
466 	if (readahead) {
467 		count_vm_event(SWAP_RA_HIT);
468 		if (!vma || !vma_ra)
469 			atomic_inc(&swapin_readahead_hits);
470 	}
471 }
472 
473 /**
474  * __swap_cache_prepare_and_add - Prepare the folio and add it to swap cache.
475  * @entry: swap entry to be bound to the folio.
476  * @folio: folio to be added.
477  * @gfp: memory allocation flags for charge, can be 0 if @charged if true.
478  * @charged: if the folio is already charged.
479  *
480  * Update the swap_map and add folio as swap cache, typically before swapin.
481  * All swap slots covered by the folio must have a non-zero swap count.
482  *
483  * Context: Caller must protect the swap device with reference count or locks.
484  * Return: Returns the folio being added on success. Returns the existing folio
485  * if @entry is already cached. Returns NULL if raced with swapin or swapoff.
486  */
__swap_cache_prepare_and_add(swp_entry_t entry,struct folio * folio,gfp_t gfp,bool charged)487 static struct folio *__swap_cache_prepare_and_add(swp_entry_t entry,
488 						  struct folio *folio,
489 						  gfp_t gfp, bool charged)
490 {
491 	struct folio *swapcache = NULL;
492 	void *shadow;
493 	int ret;
494 
495 	__folio_set_locked(folio);
496 	__folio_set_swapbacked(folio);
497 
498 	if (!charged && mem_cgroup_swapin_charge_folio(folio, NULL, gfp, entry))
499 		goto failed;
500 
501 	for (;;) {
502 		ret = swap_cache_add_folio(folio, entry, &shadow);
503 		if (!ret)
504 			break;
505 
506 		/*
507 		 * Large order allocation needs special handling on
508 		 * race: if a smaller folio exists in cache, swapin needs
509 		 * to fallback to order 0, and doing a swap cache lookup
510 		 * might return a folio that is irrelevant to the faulting
511 		 * entry because @entry is aligned down. Just return NULL.
512 		 */
513 		if (ret != -EEXIST || folio_test_large(folio))
514 			goto failed;
515 
516 		swapcache = swap_cache_get_folio(entry);
517 		if (swapcache)
518 			goto failed;
519 	}
520 
521 	memcg1_swapin(entry, folio_nr_pages(folio));
522 	if (shadow)
523 		workingset_refault(folio, shadow);
524 
525 	/* Caller will initiate read into locked folio */
526 	folio_add_lru(folio);
527 	return folio;
528 
529 failed:
530 	folio_unlock(folio);
531 	return swapcache;
532 }
533 
534 /**
535  * swap_cache_alloc_folio - Allocate folio for swapped out slot in swap cache.
536  * @entry: the swapped out swap entry to be binded to the folio.
537  * @gfp_mask: memory allocation flags
538  * @mpol: NUMA memory allocation policy to be applied
539  * @ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE
540  * @new_page_allocated: sets true if allocation happened, false otherwise
541  *
542  * Allocate a folio in the swap cache for one swap slot, typically before
543  * doing IO (e.g. swap in or zswap writeback). The swap slot indicated by
544  * @entry must have a non-zero swap count (swapped out).
545  * Currently only supports order 0.
546  *
547  * Context: Caller must protect the swap device with reference count or locks.
548  * Return: Returns the existing folio if @entry is cached already. Returns
549  * NULL if failed due to -ENOMEM or @entry have a swap count < 1.
550  */
swap_cache_alloc_folio(swp_entry_t entry,gfp_t gfp_mask,struct mempolicy * mpol,pgoff_t ilx,bool * new_page_allocated)551 struct folio *swap_cache_alloc_folio(swp_entry_t entry, gfp_t gfp_mask,
552 				     struct mempolicy *mpol, pgoff_t ilx,
553 				     bool *new_page_allocated)
554 {
555 	struct swap_info_struct *si = __swap_entry_to_info(entry);
556 	struct folio *folio;
557 	struct folio *result = NULL;
558 
559 	*new_page_allocated = false;
560 	/* Check the swap cache again for readahead path. */
561 	folio = swap_cache_get_folio(entry);
562 	if (folio)
563 		return folio;
564 
565 	/* Skip allocation for unused and bad swap slot for readahead. */
566 	if (!swap_entry_swapped(si, entry))
567 		return NULL;
568 
569 	/* Allocate a new folio to be added into the swap cache. */
570 	folio = folio_alloc_mpol(gfp_mask, 0, mpol, ilx, numa_node_id());
571 	if (!folio)
572 		return NULL;
573 	/* Try add the new folio, returns existing folio or NULL on failure. */
574 	result = __swap_cache_prepare_and_add(entry, folio, gfp_mask, false);
575 	if (result == folio)
576 		*new_page_allocated = true;
577 	else
578 		folio_put(folio);
579 	return result;
580 }
581 
582 /**
583  * swapin_folio - swap-in one or multiple entries skipping readahead.
584  * @entry: starting swap entry to swap in
585  * @folio: a new allocated and charged folio
586  *
587  * Reads @entry into @folio, @folio will be added to the swap cache.
588  * If @folio is a large folio, the @entry will be rounded down to align
589  * with the folio size.
590  *
591  * Return: returns pointer to @folio on success. If folio is a large folio
592  * and this raced with another swapin, NULL will be returned to allow fallback
593  * to order 0. Else, if another folio was already added to the swap cache,
594  * return that swap cache folio instead.
595  */
swapin_folio(swp_entry_t entry,struct folio * folio)596 struct folio *swapin_folio(swp_entry_t entry, struct folio *folio)
597 {
598 	struct folio *swapcache;
599 	pgoff_t offset = swp_offset(entry);
600 	unsigned long nr_pages = folio_nr_pages(folio);
601 
602 	entry = swp_entry(swp_type(entry), round_down(offset, nr_pages));
603 	swapcache = __swap_cache_prepare_and_add(entry, folio, 0, true);
604 	if (swapcache == folio)
605 		swap_read_folio(folio, NULL);
606 	return swapcache;
607 }
608 
609 /*
610  * Locate a page of swap in physical memory, reserving swap cache space
611  * and reading the disk if it is not already cached.
612  * A failure return means that either the page allocation failed or that
613  * the swap entry is no longer in use.
614  */
read_swap_cache_async(swp_entry_t entry,gfp_t gfp_mask,struct vm_area_struct * vma,unsigned long addr,struct swap_iocb ** plug)615 struct folio *read_swap_cache_async(swp_entry_t entry, gfp_t gfp_mask,
616 		struct vm_area_struct *vma, unsigned long addr,
617 		struct swap_iocb **plug)
618 {
619 	struct swap_info_struct *si;
620 	bool page_allocated;
621 	struct mempolicy *mpol;
622 	pgoff_t ilx;
623 	struct folio *folio;
624 
625 	si = get_swap_device(entry);
626 	if (!si)
627 		return NULL;
628 
629 	mpol = get_vma_policy(vma, addr, 0, &ilx);
630 	folio = swap_cache_alloc_folio(entry, gfp_mask, mpol, ilx,
631 				       &page_allocated);
632 	mpol_cond_put(mpol);
633 
634 	if (page_allocated)
635 		swap_read_folio(folio, plug);
636 
637 	put_swap_device(si);
638 	return folio;
639 }
640 
__swapin_nr_pages(unsigned long prev_offset,unsigned long offset,int hits,int max_pages,int prev_win)641 static unsigned int __swapin_nr_pages(unsigned long prev_offset,
642 				      unsigned long offset,
643 				      int hits,
644 				      int max_pages,
645 				      int prev_win)
646 {
647 	unsigned int pages, last_ra;
648 
649 	/*
650 	 * This heuristic has been found to work well on both sequential and
651 	 * random loads, swapping to hard disk or to SSD: please don't ask
652 	 * what the "+ 2" means, it just happens to work well, that's all.
653 	 */
654 	pages = hits + 2;
655 	if (pages == 2) {
656 		/*
657 		 * We can have no readahead hits to judge by: but must not get
658 		 * stuck here forever, so check for an adjacent offset instead
659 		 * (and don't even bother to check whether swap type is same).
660 		 */
661 		if (offset != prev_offset + 1 && offset != prev_offset - 1)
662 			pages = 1;
663 	} else {
664 		unsigned int roundup = 4;
665 		while (roundup < pages)
666 			roundup <<= 1;
667 		pages = roundup;
668 	}
669 
670 	if (pages > max_pages)
671 		pages = max_pages;
672 
673 	/* Don't shrink readahead too fast */
674 	last_ra = prev_win / 2;
675 	if (pages < last_ra)
676 		pages = last_ra;
677 
678 	return pages;
679 }
680 
swapin_nr_pages(unsigned long offset)681 static unsigned long swapin_nr_pages(unsigned long offset)
682 {
683 	static unsigned long prev_offset;
684 	unsigned int hits, pages, max_pages;
685 	static atomic_t last_readahead_pages;
686 
687 	max_pages = 1 << READ_ONCE(page_cluster);
688 	if (max_pages <= 1)
689 		return 1;
690 
691 	hits = atomic_xchg(&swapin_readahead_hits, 0);
692 	pages = __swapin_nr_pages(READ_ONCE(prev_offset), offset, hits,
693 				  max_pages,
694 				  atomic_read(&last_readahead_pages));
695 	if (!hits)
696 		WRITE_ONCE(prev_offset, offset);
697 	atomic_set(&last_readahead_pages, pages);
698 
699 	return pages;
700 }
701 
702 /**
703  * swap_cluster_readahead - swap in pages in hope we need them soon
704  * @entry: swap entry of this memory
705  * @gfp_mask: memory allocation flags
706  * @mpol: NUMA memory allocation policy to be applied
707  * @ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE
708  *
709  * Returns the struct folio for entry and addr, after queueing swapin.
710  *
711  * Primitive swap readahead code. We simply read an aligned block of
712  * (1 << page_cluster) entries in the swap area. This method is chosen
713  * because it doesn't cost us any seek time.  We also make sure to queue
714  * the 'original' request together with the readahead ones...
715  *
716  * Note: it is intentional that the same NUMA policy and interleave index
717  * are used for every page of the readahead: neighbouring pages on swap
718  * are fairly likely to have been swapped out from the same node.
719  */
swap_cluster_readahead(swp_entry_t entry,gfp_t gfp_mask,struct mempolicy * mpol,pgoff_t ilx)720 struct folio *swap_cluster_readahead(swp_entry_t entry, gfp_t gfp_mask,
721 				    struct mempolicy *mpol, pgoff_t ilx)
722 {
723 	struct folio *folio;
724 	unsigned long entry_offset = swp_offset(entry);
725 	unsigned long offset = entry_offset;
726 	unsigned long start_offset, end_offset;
727 	unsigned long mask;
728 	struct swap_info_struct *si = __swap_entry_to_info(entry);
729 	struct blk_plug plug;
730 	struct swap_iocb *splug = NULL;
731 	bool page_allocated;
732 
733 	mask = swapin_nr_pages(offset) - 1;
734 	if (!mask)
735 		goto skip;
736 
737 	/* Read a page_cluster sized and aligned cluster around offset. */
738 	start_offset = offset & ~mask;
739 	end_offset = offset | mask;
740 	if (!start_offset)	/* First page is swap header. */
741 		start_offset++;
742 	if (end_offset >= si->max)
743 		end_offset = si->max - 1;
744 
745 	blk_start_plug(&plug);
746 	for (offset = start_offset; offset <= end_offset ; offset++) {
747 		/* Ok, do the async read-ahead now */
748 		folio = swap_cache_alloc_folio(
749 			swp_entry(swp_type(entry), offset), gfp_mask, mpol, ilx,
750 			&page_allocated);
751 		if (!folio)
752 			continue;
753 		if (page_allocated) {
754 			swap_read_folio(folio, &splug);
755 			if (offset != entry_offset) {
756 				folio_set_readahead(folio);
757 				count_vm_event(SWAP_RA);
758 			}
759 		}
760 		folio_put(folio);
761 	}
762 	blk_finish_plug(&plug);
763 	swap_read_unplug(splug);
764 	lru_add_drain();	/* Push any new pages onto the LRU now */
765 skip:
766 	/* The page was likely read above, so no need for plugging here */
767 	folio = swap_cache_alloc_folio(entry, gfp_mask, mpol, ilx,
768 				       &page_allocated);
769 	if (unlikely(page_allocated))
770 		swap_read_folio(folio, NULL);
771 	return folio;
772 }
773 
swap_vma_ra_win(struct vm_fault * vmf,unsigned long * start,unsigned long * end)774 static int swap_vma_ra_win(struct vm_fault *vmf, unsigned long *start,
775 			   unsigned long *end)
776 {
777 	struct vm_area_struct *vma = vmf->vma;
778 	unsigned long ra_val;
779 	unsigned long faddr, prev_faddr, left, right;
780 	unsigned int max_win, hits, prev_win, win;
781 
782 	max_win = 1 << min(READ_ONCE(page_cluster), SWAP_RA_ORDER_CEILING);
783 	if (max_win == 1)
784 		return 1;
785 
786 	faddr = vmf->address;
787 	ra_val = GET_SWAP_RA_VAL(vma);
788 	prev_faddr = SWAP_RA_ADDR(ra_val);
789 	prev_win = SWAP_RA_WIN(ra_val);
790 	hits = SWAP_RA_HITS(ra_val);
791 	win = __swapin_nr_pages(PFN_DOWN(prev_faddr), PFN_DOWN(faddr), hits,
792 				max_win, prev_win);
793 	atomic_long_set(&vma->swap_readahead_info, SWAP_RA_VAL(faddr, win, 0));
794 	if (win == 1)
795 		return 1;
796 
797 	if (faddr == prev_faddr + PAGE_SIZE)
798 		left = faddr;
799 	else if (prev_faddr == faddr + PAGE_SIZE)
800 		left = faddr - (win << PAGE_SHIFT) + PAGE_SIZE;
801 	else
802 		left = faddr - (((win - 1) / 2) << PAGE_SHIFT);
803 	right = left + (win << PAGE_SHIFT);
804 	if ((long)left < 0)
805 		left = 0;
806 	*start = max3(left, vma->vm_start, faddr & PMD_MASK);
807 	*end = min3(right, vma->vm_end, (faddr & PMD_MASK) + PMD_SIZE);
808 
809 	return win;
810 }
811 
812 /**
813  * swap_vma_readahead - swap in pages in hope we need them soon
814  * @targ_entry: swap entry of the targeted memory
815  * @gfp_mask: memory allocation flags
816  * @mpol: NUMA memory allocation policy to be applied
817  * @targ_ilx: NUMA interleave index, for use only when MPOL_INTERLEAVE
818  * @vmf: fault information
819  *
820  * Returns the struct folio for entry and addr, after queueing swapin.
821  *
822  * Primitive swap readahead code. We simply read in a few pages whose
823  * virtual addresses are around the fault address in the same vma.
824  *
825  * Caller must hold read mmap_lock if vmf->vma is not NULL.
826  *
827  */
swap_vma_readahead(swp_entry_t targ_entry,gfp_t gfp_mask,struct mempolicy * mpol,pgoff_t targ_ilx,struct vm_fault * vmf)828 static struct folio *swap_vma_readahead(swp_entry_t targ_entry, gfp_t gfp_mask,
829 		struct mempolicy *mpol, pgoff_t targ_ilx, struct vm_fault *vmf)
830 {
831 	struct blk_plug plug;
832 	struct swap_iocb *splug = NULL;
833 	struct folio *folio;
834 	pte_t *pte = NULL, pentry;
835 	int win;
836 	unsigned long start, end, addr;
837 	pgoff_t ilx;
838 	bool page_allocated;
839 
840 	win = swap_vma_ra_win(vmf, &start, &end);
841 	if (win == 1)
842 		goto skip;
843 
844 	ilx = targ_ilx - PFN_DOWN(vmf->address - start);
845 
846 	blk_start_plug(&plug);
847 	for (addr = start; addr < end; ilx++, addr += PAGE_SIZE) {
848 		struct swap_info_struct *si = NULL;
849 		softleaf_t entry;
850 
851 		if (!pte++) {
852 			pte = pte_offset_map(vmf->pmd, addr);
853 			if (!pte)
854 				break;
855 		}
856 		pentry = ptep_get_lockless(pte);
857 		entry = softleaf_from_pte(pentry);
858 
859 		if (!softleaf_is_swap(entry))
860 			continue;
861 		pte_unmap(pte);
862 		pte = NULL;
863 		/*
864 		 * Readahead entry may come from a device that we are not
865 		 * holding a reference to, try to grab a reference, or skip.
866 		 */
867 		if (swp_type(entry) != swp_type(targ_entry)) {
868 			si = get_swap_device(entry);
869 			if (!si)
870 				continue;
871 		}
872 		folio = swap_cache_alloc_folio(entry, gfp_mask, mpol, ilx,
873 					       &page_allocated);
874 		if (si)
875 			put_swap_device(si);
876 		if (!folio)
877 			continue;
878 		if (page_allocated) {
879 			swap_read_folio(folio, &splug);
880 			if (addr != vmf->address) {
881 				folio_set_readahead(folio);
882 				count_vm_event(SWAP_RA);
883 			}
884 		}
885 		folio_put(folio);
886 	}
887 	if (pte)
888 		pte_unmap(pte);
889 	blk_finish_plug(&plug);
890 	swap_read_unplug(splug);
891 	lru_add_drain();
892 skip:
893 	/* The folio was likely read above, so no need for plugging here */
894 	folio = swap_cache_alloc_folio(targ_entry, gfp_mask, mpol, targ_ilx,
895 				       &page_allocated);
896 	if (unlikely(page_allocated))
897 		swap_read_folio(folio, NULL);
898 	return folio;
899 }
900 
901 /**
902  * swapin_readahead - swap in pages in hope we need them soon
903  * @entry: swap entry of this memory
904  * @gfp_mask: memory allocation flags
905  * @vmf: fault information
906  *
907  * Returns the struct folio for entry and addr, after queueing swapin.
908  *
909  * It's a main entry function for swap readahead. By the configuration,
910  * it will read ahead blocks by cluster-based(ie, physical disk based)
911  * or vma-based(ie, virtual address based on faulty address) readahead.
912  */
swapin_readahead(swp_entry_t entry,gfp_t gfp_mask,struct vm_fault * vmf)913 struct folio *swapin_readahead(swp_entry_t entry, gfp_t gfp_mask,
914 				struct vm_fault *vmf)
915 {
916 	struct mempolicy *mpol;
917 	pgoff_t ilx;
918 	struct folio *folio;
919 
920 	mpol = get_vma_policy(vmf->vma, vmf->address, 0, &ilx);
921 	folio = swap_use_vma_readahead() ?
922 		swap_vma_readahead(entry, gfp_mask, mpol, ilx, vmf) :
923 		swap_cluster_readahead(entry, gfp_mask, mpol, ilx);
924 	mpol_cond_put(mpol);
925 
926 	return folio;
927 }
928 
929 #ifdef CONFIG_SYSFS
vma_ra_enabled_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)930 static ssize_t vma_ra_enabled_show(struct kobject *kobj,
931 				     struct kobj_attribute *attr, char *buf)
932 {
933 	return sysfs_emit(buf, "%s\n", str_true_false(enable_vma_readahead));
934 }
vma_ra_enabled_store(struct kobject * kobj,struct kobj_attribute * attr,const char * buf,size_t count)935 static ssize_t vma_ra_enabled_store(struct kobject *kobj,
936 				      struct kobj_attribute *attr,
937 				      const char *buf, size_t count)
938 {
939 	ssize_t ret;
940 
941 	ret = kstrtobool(buf, &enable_vma_readahead);
942 	if (ret)
943 		return ret;
944 
945 	return count;
946 }
947 static struct kobj_attribute vma_ra_enabled_attr = __ATTR_RW(vma_ra_enabled);
948 
949 static struct attribute *swap_attrs[] = {
950 	&vma_ra_enabled_attr.attr,
951 	NULL,
952 };
953 
954 static const struct attribute_group swap_attr_group = {
955 	.attrs = swap_attrs,
956 };
957 
swap_init(void)958 static int __init swap_init(void)
959 {
960 	int err;
961 	struct kobject *swap_kobj;
962 
963 	swap_kobj = kobject_create_and_add("swap", mm_kobj);
964 	if (!swap_kobj) {
965 		pr_err("failed to create swap kobject\n");
966 		return -ENOMEM;
967 	}
968 	err = sysfs_create_group(swap_kobj, &swap_attr_group);
969 	if (err) {
970 		pr_err("failed to register swap group\n");
971 		goto delete_obj;
972 	}
973 	/* Swap cache writeback is LRU based, no tags for it */
974 	mapping_set_no_writeback_tags(&swap_space);
975 	return 0;
976 
977 delete_obj:
978 	kobject_put(swap_kobj);
979 	return err;
980 }
981 subsys_initcall(swap_init);
982 #endif
983