xref: /linux/mm/readahead.c (revision bba2c3615bd6cfee7456d1130f2e6b01b3f4e9ba)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * mm/readahead.c - address_space-level file readahead.
4  *
5  * Copyright (C) 2002, Linus Torvalds
6  *
7  * 09Apr2002	Andrew Morton
8  *		Initial version.
9  */
10 
11 /**
12  * DOC: Readahead Overview
13  *
14  * Readahead is used to read content into the page cache before it is
15  * explicitly requested by the application.  Readahead only ever
16  * attempts to read folios that are not yet in the page cache.  If a
17  * folio is present but not up-to-date, readahead will not try to read
18  * it. In that case a simple ->read_folio() will be requested.
19  *
20  * Readahead is triggered when an application read request (whether a
21  * system call or a page fault) finds that the requested folio is not in
22  * the page cache, or that it is in the page cache and has the
23  * readahead flag set.  This flag indicates that the folio was read
24  * as part of a previous readahead request and now that it has been
25  * accessed, it is time for the next readahead.
26  *
27  * Each readahead request is partly synchronous read, and partly async
28  * readahead.  This is reflected in the struct file_ra_state which
29  * contains ->size being the total number of pages, and ->async_size
30  * which is the number of pages in the async section.  The readahead
31  * flag will be set on the first folio in this async section to trigger
32  * a subsequent readahead.  Once a series of sequential reads has been
33  * established, there should be no need for a synchronous component and
34  * all readahead request will be fully asynchronous.
35  *
36  * When either of the triggers causes a readahead, three numbers need
37  * to be determined: the start of the region to read, the size of the
38  * region, and the size of the async tail.
39  *
40  * The start of the region is simply the first page address at or after
41  * the accessed address, which is not currently populated in the page
42  * cache.  This is found with a simple search in the page cache.
43  *
44  * The size of the async tail is determined by subtracting the size that
45  * was explicitly requested from the determined request size, unless
46  * this would be less than zero - then zero is used.  NOTE THIS
47  * CALCULATION IS WRONG WHEN THE START OF THE REGION IS NOT THE ACCESSED
48  * PAGE.  ALSO THIS CALCULATION IS NOT USED CONSISTENTLY.
49  *
50  * The size of the region is normally determined from the size of the
51  * previous readahead which loaded the preceding pages.  This may be
52  * discovered from the struct file_ra_state for simple sequential reads,
53  * or from examining the state of the page cache when multiple
54  * sequential reads are interleaved.  Specifically: where the readahead
55  * was triggered by the readahead flag, the size of the previous
56  * readahead is assumed to be the number of pages from the triggering
57  * page to the start of the new readahead.  In these cases, the size of
58  * the previous readahead is scaled, often doubled, for the new
59  * readahead, though see get_next_ra_size() for details.
60  *
61  * If the size of the previous read cannot be determined, the number of
62  * preceding pages in the page cache is used to estimate the size of
63  * a previous read.  This estimate could easily be misled by random
64  * reads being coincidentally adjacent, so it is ignored unless it is
65  * larger than the current request, and it is not scaled up, unless it
66  * is at the start of file.
67  *
68  * In general readahead is accelerated at the start of the file, as
69  * reads from there are often sequential.  There are other minor
70  * adjustments to the readahead size in various special cases and these
71  * are best discovered by reading the code.
72  *
73  * The above calculation, based on the previous readahead size,
74  * determines the size of the readahead, to which any requested read
75  * size may be added.
76  *
77  * Readahead requests are sent to the filesystem using the ->readahead()
78  * address space operation, for which mpage_readahead() is a canonical
79  * implementation.  ->readahead() should normally initiate reads on all
80  * folios, but may fail to read any or all folios without causing an I/O
81  * error.  The page cache reading code will issue a ->read_folio() request
82  * for any folio which ->readahead() did not read, and only an error
83  * from this will be final.
84  *
85  * ->readahead() will generally call readahead_folio() repeatedly to get
86  * each folio from those prepared for readahead.  It may fail to read a
87  * folio by:
88  *
89  * * not calling readahead_folio() sufficiently many times, effectively
90  *   ignoring some folios, as might be appropriate if the path to
91  *   storage is congested.
92  *
93  * * failing to actually submit a read request for a given folio,
94  *   possibly due to insufficient resources, or
95  *
96  * * getting an error during subsequent processing of a request.
97  *
98  * In the last two cases, the folio should be unlocked by the filesystem
99  * to indicate that the read attempt has failed.  In the first case the
100  * folio will be unlocked by the VFS.
101  *
102  * Those folios not in the final ``async_size`` of the request should be
103  * considered to be important and ->readahead() should not fail them due
104  * to congestion or temporary resource unavailability, but should wait
105  * for necessary resources (e.g.  memory or indexing information) to
106  * become available.  Folios in the final ``async_size`` may be
107  * considered less urgent and failure to read them is more acceptable.
108  * In this case it is best to use filemap_remove_folio() to remove the
109  * folios from the page cache as is automatically done for folios that
110  * were not fetched with readahead_folio().  This will allow a
111  * subsequent synchronous readahead request to try them again.  If they
112  * are left in the page cache, then they will be read individually using
113  * ->read_folio() which may be less efficient.
114  */
115 
116 #include <linux/blkdev.h>
117 #include <linux/kernel.h>
118 #include <linux/dax.h>
119 #include <linux/gfp.h>
120 #include <linux/export.h>
121 #include <linux/backing-dev.h>
122 #include <linux/task_io_accounting_ops.h>
123 #include <linux/pagemap.h>
124 #include <linux/psi.h>
125 #include <linux/syscalls.h>
126 #include <linux/file.h>
127 #include <linux/mm_inline.h>
128 #include <linux/blk-cgroup.h>
129 #include <linux/fadvise.h>
130 #include <linux/sched/mm.h>
131 
132 #define CREATE_TRACE_POINTS
133 #include <trace/events/readahead.h>
134 
135 #include "internal.h"
136 
137 /*
138  * Initialise a struct file's readahead state.  Assumes that the caller has
139  * memset *ra to zero.
140  */
141 void
142 file_ra_state_init(struct file_ra_state *ra, struct address_space *mapping)
143 {
144 	ra->ra_pages = inode_to_bdi(mapping->host)->ra_pages;
145 	ra->prev_pos = -1;
146 }
147 EXPORT_SYMBOL_GPL(file_ra_state_init);
148 
149 /**
150  * read_pages() - Start IO for a contiguous range of allocated folios in the
151  *                page cache.
152  * @rac: Readahead control.
153  *
154  * When read_pages() returns, it is guaranteed that all of the folios will have
155  * been processed or removed so that ``readahead_count(rac) == 0``. However,
156  * that does not imply that ``readahead_index(rac)`` will be updated to point
157  * to the end of the originally requested range because, for example, the
158  * filesystem may expand the range upwards.
159  */
160 static void read_pages(struct readahead_control *rac)
161 {
162 	const struct address_space_operations *aops = rac->mapping->a_ops;
163 	struct folio *folio;
164 	struct blk_plug plug;
165 
166 	if (!readahead_count(rac))
167 		return;
168 
169 	if (unlikely(rac->_workingset))
170 		psi_memstall_enter(&rac->_pflags);
171 	blk_start_plug(&plug);
172 
173 	if (aops->readahead) {
174 		aops->readahead(rac);
175 		/* Clean up the remaining folios. */
176 		while ((folio = readahead_folio(rac)) != NULL) {
177 			folio_get(folio);
178 			filemap_remove_folio(folio);
179 			folio_unlock(folio);
180 			folio_put(folio);
181 		}
182 	} else {
183 		while ((folio = readahead_folio(rac)) != NULL)
184 			aops->read_folio(rac->file, folio);
185 	}
186 
187 	blk_finish_plug(&plug);
188 	if (unlikely(rac->_workingset))
189 		psi_memstall_leave(&rac->_pflags);
190 	rac->_workingset = false;
191 
192 	BUG_ON(readahead_count(rac));
193 }
194 
195 static struct folio *ractl_alloc_folio(struct readahead_control *ractl,
196 				       gfp_t gfp_mask, unsigned int order)
197 {
198 	struct folio *folio;
199 
200 	folio = filemap_alloc_folio(gfp_mask, order, NULL);
201 	if (folio && ractl->dropbehind)
202 		__folio_set_dropbehind(folio);
203 
204 	return folio;
205 }
206 
207 /**
208  * page_cache_ra_unbounded - Start unchecked readahead.
209  * @ractl: Readahead control.
210  * @nr_to_read: The number of pages to read.
211  * @lookahead_size: Where to start the next readahead.
212  *
213  * This function is for filesystems to call when they want to start
214  * readahead beyond a file's stated i_size.  This is almost certainly
215  * not the function you want to call.  Use page_cache_async_readahead()
216  * or page_cache_sync_readahead() instead.
217  *
218  * Context: File is referenced by caller, and ractl->mapping->invalidate_lock
219  * must be held by the caller at least in shared mode.  Mutexes may be held by
220  * caller.  May sleep, but will not reenter filesystem to reclaim memory.
221  */
222 void page_cache_ra_unbounded(struct readahead_control *ractl,
223 		unsigned long nr_to_read, unsigned long lookahead_size)
224 {
225 	struct address_space *mapping = ractl->mapping;
226 	unsigned long index = readahead_index(ractl);
227 	gfp_t gfp_mask = readahead_gfp_mask(mapping);
228 	unsigned long mark = ULONG_MAX, i = 0;
229 	unsigned int min_nrpages = mapping_min_folio_nrpages(mapping);
230 
231 	/*
232 	 * Partway through the readahead operation, we will have added
233 	 * locked pages to the page cache, but will not yet have submitted
234 	 * them for I/O.  Adding another page may need to allocate memory,
235 	 * which can trigger memory reclaim.  Telling the VM we're in
236 	 * the middle of a filesystem operation will cause it to not
237 	 * touch file-backed pages, preventing a deadlock.  Most (all?)
238 	 * filesystems already specify __GFP_NOFS in their mapping's
239 	 * gfp_mask, but let's be explicit here.
240 	 */
241 	unsigned int nofs = memalloc_nofs_save();
242 
243 	lockdep_assert_held(&mapping->invalidate_lock);
244 
245 	trace_page_cache_ra_unbounded(mapping->host, index, nr_to_read,
246 				      lookahead_size);
247 	index = mapping_align_index(mapping, index);
248 
249 	/*
250 	 * As iterator `i` is aligned to min_nrpages, round_up the
251 	 * difference between nr_to_read and lookahead_size to mark the
252 	 * index that only has lookahead or "async_region" to set the
253 	 * readahead flag.
254 	 */
255 	if (lookahead_size <= nr_to_read) {
256 		unsigned long ra_folio_index;
257 
258 		ra_folio_index = round_up(readahead_index(ractl) +
259 					  nr_to_read - lookahead_size,
260 					  min_nrpages);
261 		mark = ra_folio_index - index;
262 	}
263 	nr_to_read += readahead_index(ractl) - index;
264 	ractl->_index = index;
265 
266 	/*
267 	 * Preallocate as many pages as we will need.
268 	 */
269 	while (i < nr_to_read) {
270 		struct folio *folio = xa_load(&mapping->i_pages, index + i);
271 		int ret;
272 
273 		if (folio && !xa_is_value(folio)) {
274 			/*
275 			 * Page already present?  Kick off the current batch
276 			 * of contiguous pages before continuing with the
277 			 * next batch.  This page may be the one we would
278 			 * have intended to mark as Readahead, but we don't
279 			 * have a stable reference to this page, and it's
280 			 * not worth getting one just for that.
281 			 */
282 			read_pages(ractl);
283 			ractl->_index += min_nrpages;
284 			i = ractl->_index - index;
285 			continue;
286 		}
287 
288 		folio = ractl_alloc_folio(ractl, gfp_mask,
289 					mapping_min_folio_order(mapping));
290 		if (!folio)
291 			break;
292 
293 		ret = filemap_add_folio(mapping, folio, index + i, gfp_mask);
294 		if (ret < 0) {
295 			folio_put(folio);
296 			if (ret == -ENOMEM)
297 				break;
298 			read_pages(ractl);
299 			ractl->_index += min_nrpages;
300 			i = ractl->_index - index;
301 			continue;
302 		}
303 		if (i == mark)
304 			folio_set_readahead(folio);
305 		ractl->_workingset |= folio_test_workingset(folio);
306 		ractl->_nr_pages += min_nrpages;
307 		i += min_nrpages;
308 	}
309 
310 	/*
311 	 * Now start the IO.  We ignore I/O errors - if the folio is not
312 	 * uptodate then the caller will launch read_folio again, and
313 	 * will then handle the error.
314 	 */
315 	read_pages(ractl);
316 	memalloc_nofs_restore(nofs);
317 }
318 EXPORT_SYMBOL_GPL(page_cache_ra_unbounded);
319 
320 /*
321  * do_page_cache_ra() actually reads a chunk of disk.  It allocates
322  * the pages first, then submits them for I/O. This avoids the very bad
323  * behaviour which would occur if page allocations are causing VM writeback.
324  * We really don't want to intermingle reads and writes like that.
325  */
326 static void do_page_cache_ra(struct readahead_control *ractl,
327 		unsigned long nr_to_read, unsigned long lookahead_size)
328 {
329 	struct address_space *mapping = ractl->mapping;
330 	unsigned long index = readahead_index(ractl);
331 	loff_t isize = i_size_read(mapping->host);
332 	pgoff_t end_index;	/* The last page we want to read */
333 
334 	if (isize == 0)
335 		return;
336 
337 	end_index = (isize - 1) >> PAGE_SHIFT;
338 	if (end_index > ractl->_max_index)
339 		end_index = ractl->_max_index;
340 	if (index > end_index)
341 		return;
342 	/* Don't read past the page containing the last byte of the file */
343 	if (nr_to_read > end_index - index) {
344 		nr_to_read = end_index - index + 1;
345 		/* We've reached the end, so don't set a readahead marker. */
346 		lookahead_size = 0;
347 	}
348 
349 	filemap_invalidate_lock_shared(mapping);
350 	page_cache_ra_unbounded(ractl, nr_to_read, lookahead_size);
351 	filemap_invalidate_unlock_shared(mapping);
352 }
353 
354 /*
355  * Chunk the readahead into 2 megabyte units, so that we don't pin too much
356  * memory at once.
357  */
358 void force_page_cache_ra(struct readahead_control *ractl,
359 		unsigned long nr_to_read)
360 {
361 	struct address_space *mapping = ractl->mapping;
362 	struct file_ra_state *ra = ractl->ra;
363 	struct backing_dev_info *bdi = inode_to_bdi(mapping->host);
364 	unsigned long max_pages;
365 
366 	if (unlikely(!mapping->a_ops->read_folio && !mapping->a_ops->readahead))
367 		return;
368 
369 	/*
370 	 * If the request exceeds the readahead window, allow the read to
371 	 * be up to the optimal hardware IO size
372 	 */
373 	max_pages = max_t(unsigned long, bdi->io_pages, ra->ra_pages);
374 	nr_to_read = min_t(unsigned long, nr_to_read, max_pages);
375 	while (nr_to_read) {
376 		unsigned long this_chunk = (2 * 1024 * 1024) / PAGE_SIZE;
377 
378 		if (this_chunk > nr_to_read)
379 			this_chunk = nr_to_read;
380 		do_page_cache_ra(ractl, this_chunk, 0);
381 
382 		nr_to_read -= this_chunk;
383 	}
384 }
385 
386 /*
387  * Set the initial window size, round to next power of 2 and square
388  * for small size, x 4 for medium, and x 2 for large
389  * for 128k (32 page) max ra
390  * 1-2 page = 16k, 3-4 page 32k, 5-8 page = 64k, > 8 page = 128k initial
391  */
392 static unsigned long get_init_ra_size(unsigned long size, unsigned long max)
393 {
394 	unsigned long newsize = roundup_pow_of_two(size);
395 
396 	if (newsize <= max / 32)
397 		newsize = newsize * 4;
398 	else if (newsize <= max / 4)
399 		newsize = newsize * 2;
400 	else
401 		newsize = max;
402 
403 	return newsize;
404 }
405 
406 /*
407  *  Get the previous window size, ramp it up, and
408  *  return it as the new window size.
409  */
410 static unsigned long get_next_ra_size(struct file_ra_state *ra,
411 				      unsigned long max)
412 {
413 	unsigned long cur = ra->size;
414 
415 	if (cur < max / 16)
416 		return 4 * cur;
417 	if (cur <= max / 2)
418 		return 2 * cur;
419 	return max;
420 }
421 
422 /*
423  * On-demand readahead design.
424  *
425  * The fields in struct file_ra_state represent the most-recently-executed
426  * readahead attempt:
427  *
428  *                        |<----- async_size ---------|
429  *     |------------------- size -------------------->|
430  *     |==================#===========================|
431  *     ^start             ^page marked with PG_readahead
432  *
433  * To overlap application thinking time and disk I/O time, we do
434  * `readahead pipelining': Do not wait until the application consumed all
435  * readahead pages and stalled on the missing page at readahead_index;
436  * Instead, submit an asynchronous readahead I/O as soon as there are
437  * only async_size pages left in the readahead window. Normally async_size
438  * will be equal to size, for maximum pipelining.
439  *
440  * In interleaved sequential reads, concurrent streams on the same fd can
441  * be invalidating each other's readahead state. So we flag the new readahead
442  * page at (start+size-async_size) with PG_readahead, and use it as readahead
443  * indicator. The flag won't be set on already cached pages, to avoid the
444  * readahead-for-nothing fuss, saving pointless page cache lookups.
445  *
446  * prev_pos tracks the last visited byte in the _previous_ read request.
447  * It should be maintained by the caller, and will be used for detecting
448  * small random reads. Note that the readahead algorithm checks loosely
449  * for sequential patterns. Hence interleaved reads might be served as
450  * sequential ones.
451  *
452  * There is a special-case: if the first page which the application tries to
453  * read happens to be the first page of the file, it is assumed that a linear
454  * read is about to happen and the window is immediately set to the initial size
455  * based on I/O request size and the max_readahead.
456  *
457  * The code ramps up the readahead size aggressively at first, but slow down as
458  * it approaches max_readahead.
459  */
460 
461 static inline int ra_alloc_folio(struct readahead_control *ractl, pgoff_t index,
462 		pgoff_t mark, unsigned int order, gfp_t gfp)
463 {
464 	int err;
465 	struct folio *folio = ractl_alloc_folio(ractl, gfp, order);
466 
467 	if (!folio)
468 		return -ENOMEM;
469 	mark = round_down(mark, 1UL << order);
470 	if (index == mark)
471 		folio_set_readahead(folio);
472 	err = filemap_add_folio(ractl->mapping, folio, index, gfp);
473 	if (err) {
474 		folio_put(folio);
475 		return err;
476 	}
477 
478 	ractl->_nr_pages += 1UL << order;
479 	ractl->_workingset |= folio_test_workingset(folio);
480 	return 0;
481 }
482 
483 void page_cache_ra_order(struct readahead_control *ractl,
484 		struct file_ra_state *ra)
485 {
486 	struct address_space *mapping = ractl->mapping;
487 	pgoff_t start = readahead_index(ractl);
488 	pgoff_t index = start;
489 	unsigned int min_order = mapping_min_folio_order(mapping);
490 	pgoff_t limit;
491 	pgoff_t mark;
492 	unsigned int nofs;
493 	int err = 0;
494 	gfp_t gfp = readahead_gfp_mask(mapping);
495 	unsigned int new_order = ra->order;
496 
497 	trace_page_cache_ra_order(mapping->host, start, ra);
498 	if (!mapping_large_folio_support(mapping)) {
499 		ra->order = 0;
500 		goto fallback;
501 	}
502 
503 	limit = (i_size_read(mapping->host) - 1) >> PAGE_SHIFT;
504 	limit = min(limit, ractl->_max_index);
505 	if (limit > index + ra->size - 1) {
506 		limit = index + ra->size - 1;
507 		mark = index + ra->size - ra->async_size;
508 	} else {
509 		/* We've reached the end, so don't set a readahead marker. */
510 		mark = ULONG_MAX;
511 	}
512 
513 	new_order = min(mapping_max_folio_order(mapping), new_order);
514 	new_order = min_t(unsigned int, new_order, ilog2(ra->size));
515 	new_order = max(new_order, min_order);
516 
517 	ra->order = new_order;
518 
519 	/* See comment in page_cache_ra_unbounded() */
520 	nofs = memalloc_nofs_save();
521 	filemap_invalidate_lock_shared(mapping);
522 	/*
523 	 * If the new_order is greater than min_order and index is
524 	 * already aligned to new_order, then this will be noop as index
525 	 * aligned to new_order should also be aligned to min_order.
526 	 */
527 	ractl->_index = mapping_align_index(mapping, index);
528 	index = readahead_index(ractl);
529 
530 	while (index <= limit) {
531 		unsigned int order = new_order;
532 
533 		/* Align with smaller pages if needed */
534 		if (index & ((1UL << order) - 1))
535 			order = __ffs(index);
536 		/* Don't allocate pages past EOF */
537 		while (order > min_order && index + (1UL << order) - 1 > limit)
538 			order--;
539 		err = ra_alloc_folio(ractl, index, mark, order, gfp);
540 		if (err)
541 			break;
542 		index += 1UL << order;
543 	}
544 
545 	read_pages(ractl);
546 	filemap_invalidate_unlock_shared(mapping);
547 	memalloc_nofs_restore(nofs);
548 
549 	/*
550 	 * If there were already pages in the page cache, then we may have
551 	 * left some gaps.  Let the regular readahead code take care of this
552 	 * situation below.
553 	 */
554 	if (!err)
555 		return;
556 fallback:
557 	/*
558 	 * ->readahead() may have updated readahead window size so we have to
559 	 * check there's still something to read.
560 	 */
561 	if (ra->size > index - start)
562 		do_page_cache_ra(ractl, ra->size - (index - start),
563 				 ra->async_size);
564 }
565 
566 static unsigned long ractl_max_pages(struct readahead_control *ractl,
567 		unsigned long req_size)
568 {
569 	struct backing_dev_info *bdi = inode_to_bdi(ractl->mapping->host);
570 	unsigned long max_pages = ractl->ra->ra_pages;
571 
572 	/*
573 	 * If the request exceeds the readahead window, allow the read to
574 	 * be up to the optimal hardware IO size
575 	 */
576 	if (req_size > max_pages && bdi->io_pages > max_pages)
577 		max_pages = min(req_size, bdi->io_pages);
578 	return max_pages;
579 }
580 
581 void page_cache_sync_ra(struct readahead_control *ractl,
582 		unsigned long req_count)
583 {
584 	pgoff_t index = readahead_index(ractl);
585 	bool do_forced_ra = ractl->file && (ractl->file->f_mode & FMODE_RANDOM);
586 	struct file_ra_state *ra = ractl->ra;
587 	unsigned long max_pages, contig_count;
588 	pgoff_t prev_index, miss;
589 
590 	trace_page_cache_sync_ra(ractl->mapping->host, index, ra, req_count);
591 	/*
592 	 * Even if readahead is disabled, issue this request as readahead
593 	 * as we'll need it to satisfy the requested range. The forced
594 	 * readahead will do the right thing and limit the read to just the
595 	 * requested range, which we'll set to 1 page for this case.
596 	 */
597 	if (!ra->ra_pages || blk_cgroup_congested()) {
598 		if (!ractl->file)
599 			return;
600 		req_count = 1;
601 		do_forced_ra = true;
602 	}
603 
604 	/* be dumb */
605 	if (do_forced_ra) {
606 		force_page_cache_ra(ractl, req_count);
607 		return;
608 	}
609 
610 	max_pages = ractl_max_pages(ractl, req_count);
611 	prev_index = (unsigned long long)ra->prev_pos >> PAGE_SHIFT;
612 	/*
613 	 * A start of file, oversized read, or sequential cache miss:
614 	 * trivial case: (index - prev_index) == 1
615 	 * unaligned reads: (index - prev_index) == 0
616 	 */
617 	if (!index || req_count > max_pages || index - prev_index <= 1UL) {
618 		ra->start = index;
619 		ra->size = get_init_ra_size(req_count, max_pages);
620 		ra->async_size = ra->size > req_count ? ra->size - req_count :
621 							ra->size >> 1;
622 		goto readit;
623 	}
624 
625 	/*
626 	 * Query the page cache and look for the traces(cached history pages)
627 	 * that a sequential stream would leave behind.
628 	 */
629 	rcu_read_lock();
630 	miss = page_cache_prev_miss(ractl->mapping, index - 1, max_pages);
631 	rcu_read_unlock();
632 	contig_count = index - miss - 1;
633 	/*
634 	 * Standalone, small random read. Read as is, and do not pollute the
635 	 * readahead state.
636 	 */
637 	if (contig_count <= req_count) {
638 		do_page_cache_ra(ractl, req_count, 0);
639 		return;
640 	}
641 	/*
642 	 * File cached from the beginning:
643 	 * it is a strong indication of long-run stream (or whole-file-read)
644 	 */
645 	if (miss == ULONG_MAX)
646 		contig_count *= 2;
647 	ra->start = index;
648 	ra->size = min(contig_count + req_count, max_pages);
649 	ra->async_size = 1;
650 readit:
651 	ra->order = 0;
652 	ractl->_index = ra->start;
653 	page_cache_ra_order(ractl, ra);
654 }
655 EXPORT_SYMBOL_GPL(page_cache_sync_ra);
656 
657 void page_cache_async_ra(struct readahead_control *ractl,
658 		struct folio *folio, unsigned long req_count)
659 {
660 	unsigned long max_pages;
661 	struct file_ra_state *ra = ractl->ra;
662 	pgoff_t index = readahead_index(ractl);
663 	pgoff_t expected, start, end, aligned_end, align;
664 
665 	/* no readahead */
666 	if (!ra->ra_pages)
667 		return;
668 
669 	/*
670 	 * Same bit is used for PG_readahead and PG_reclaim.
671 	 */
672 	if (folio_test_writeback(folio))
673 		return;
674 
675 	trace_page_cache_async_ra(ractl->mapping->host, index, ra, req_count);
676 	folio_clear_readahead(folio);
677 
678 	if (blk_cgroup_congested())
679 		return;
680 
681 	max_pages = ractl_max_pages(ractl, req_count);
682 	/*
683 	 * It's the expected callback index, assume sequential access.
684 	 * Ramp up sizes, and push forward the readahead window.
685 	 */
686 	expected = round_down(ra->start + ra->size - ra->async_size,
687 			folio_nr_pages(folio));
688 	if (index == expected) {
689 		ra->start += ra->size;
690 		/*
691 		 * In the case of MADV_HUGEPAGE, the actual size might exceed
692 		 * the readahead window.
693 		 */
694 		ra->size = max(ra->size, get_next_ra_size(ra, max_pages));
695 		goto readit;
696 	}
697 
698 	/*
699 	 * Hit a marked folio without valid readahead state.
700 	 * E.g. interleaved reads.
701 	 * Query the pagecache for async_size, which normally equals to
702 	 * readahead size. Ramp it up and use it as the new readahead size.
703 	 */
704 	rcu_read_lock();
705 	start = page_cache_next_miss(ractl->mapping, index + 1, max_pages);
706 	rcu_read_unlock();
707 
708 	if (!start || start - index > max_pages)
709 		return;
710 
711 	ra->start = start;
712 	ra->size = start - index;	/* old async_size */
713 	ra->size += req_count;
714 	ra->size = get_next_ra_size(ra, max_pages);
715 readit:
716 	ra->order += 2;
717 	align = 1UL << min(ra->order, ffs(max_pages) - 1);
718 	end = ra->start + ra->size;
719 	aligned_end = round_down(end, align);
720 	if (aligned_end > ra->start)
721 		ra->size -= end - aligned_end;
722 	ra->async_size = ra->size;
723 	ractl->_index = ra->start;
724 	page_cache_ra_order(ractl, ra);
725 }
726 EXPORT_SYMBOL_GPL(page_cache_async_ra);
727 
728 ssize_t ksys_readahead(int fd, loff_t offset, size_t count)
729 {
730 	struct file *file;
731 	const struct inode *inode;
732 
733 	CLASS(fd, f)(fd);
734 	if (fd_empty(f))
735 		return -EBADF;
736 
737 	file = fd_file(f);
738 	if (!(file->f_mode & FMODE_READ))
739 		return -EBADF;
740 
741 	/*
742 	 * The readahead() syscall is intended to run only on files
743 	 * that can execute readahead. If readahead is not possible
744 	 * on this file, then we must return -EINVAL.
745 	 */
746 	if (!file->f_mapping)
747 		return -EINVAL;
748 	if (!file->f_mapping->a_ops)
749 		return -EINVAL;
750 
751 	inode = file_inode(file);
752 	if (!S_ISREG(inode->i_mode) && !S_ISBLK(inode->i_mode))
753 		return -EINVAL;
754 	if (IS_ANON_FILE(inode))
755 		return -EINVAL;
756 
757 	return vfs_fadvise(fd_file(f), offset, count, POSIX_FADV_WILLNEED);
758 }
759 
760 SYSCALL_DEFINE3(readahead, int, fd, loff_t, offset, size_t, count)
761 {
762 	return ksys_readahead(fd, offset, count);
763 }
764 
765 #if defined(CONFIG_COMPAT) && defined(__ARCH_WANT_COMPAT_READAHEAD)
766 COMPAT_SYSCALL_DEFINE4(readahead, int, fd, compat_arg_u64_dual(offset), size_t, count)
767 {
768 	return ksys_readahead(fd, compat_arg_u64_glue(offset), count);
769 }
770 #endif
771 
772 /**
773  * readahead_expand - Expand a readahead request
774  * @ractl: The request to be expanded
775  * @new_start: The revised start
776  * @new_len: The revised size of the request
777  *
778  * Attempt to expand a readahead request outwards from the current size to the
779  * specified size by inserting locked pages before and after the current window
780  * to increase the size to the new window.  This may involve the insertion of
781  * THPs, in which case the window may get expanded even beyond what was
782  * requested.
783  *
784  * The algorithm will stop if it encounters a conflicting page already in the
785  * pagecache and leave a smaller expansion than requested.
786  *
787  * The caller must check for this by examining the revised @ractl object for a
788  * different expansion than was requested.
789  */
790 void readahead_expand(struct readahead_control *ractl,
791 		      loff_t new_start, size_t new_len)
792 {
793 	struct address_space *mapping = ractl->mapping;
794 	struct file_ra_state *ra = ractl->ra;
795 	pgoff_t new_index, new_nr_pages;
796 	gfp_t gfp_mask = readahead_gfp_mask(mapping);
797 	unsigned long min_nrpages = mapping_min_folio_nrpages(mapping);
798 	unsigned int min_order = mapping_min_folio_order(mapping);
799 
800 	new_index = new_start / PAGE_SIZE;
801 	/*
802 	 * Readahead code should have aligned the ractl->_index to
803 	 * min_nrpages before calling readahead aops.
804 	 */
805 	VM_BUG_ON(!IS_ALIGNED(ractl->_index, min_nrpages));
806 
807 	/* Expand the leading edge downwards */
808 	while (ractl->_index > new_index) {
809 		unsigned long index = ractl->_index - 1;
810 		struct folio *folio = xa_load(&mapping->i_pages, index);
811 
812 		if (folio && !xa_is_value(folio))
813 			return; /* Folio apparently present */
814 
815 		folio = ractl_alloc_folio(ractl, gfp_mask, min_order);
816 		if (!folio)
817 			return;
818 
819 		index = mapping_align_index(mapping, index);
820 		if (filemap_add_folio(mapping, folio, index, gfp_mask) < 0) {
821 			folio_put(folio);
822 			return;
823 		}
824 		if (unlikely(folio_test_workingset(folio)) &&
825 				!ractl->_workingset) {
826 			ractl->_workingset = true;
827 			psi_memstall_enter(&ractl->_pflags);
828 		}
829 		ractl->_nr_pages += min_nrpages;
830 		ractl->_index = folio->index;
831 	}
832 
833 	new_len += new_start - readahead_pos(ractl);
834 	new_nr_pages = DIV_ROUND_UP(new_len, PAGE_SIZE);
835 
836 	/* Expand the trailing edge upwards */
837 	while (ractl->_nr_pages < new_nr_pages) {
838 		unsigned long index = ractl->_index + ractl->_nr_pages;
839 		struct folio *folio = xa_load(&mapping->i_pages, index);
840 
841 		if (folio && !xa_is_value(folio))
842 			return; /* Folio apparently present */
843 
844 		folio = ractl_alloc_folio(ractl, gfp_mask, min_order);
845 		if (!folio)
846 			return;
847 
848 		index = mapping_align_index(mapping, index);
849 		if (filemap_add_folio(mapping, folio, index, gfp_mask) < 0) {
850 			folio_put(folio);
851 			return;
852 		}
853 		if (unlikely(folio_test_workingset(folio)) &&
854 				!ractl->_workingset) {
855 			ractl->_workingset = true;
856 			psi_memstall_enter(&ractl->_pflags);
857 		}
858 		ractl->_nr_pages += min_nrpages;
859 		if (ra) {
860 			ra->size += min_nrpages;
861 			ra->async_size += min_nrpages;
862 		}
863 	}
864 }
865 EXPORT_SYMBOL(readahead_expand);
866