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v3.1
 
  1/*
  2 * linux/fs/ext4/page-io.c
  3 *
  4 * This contains the new page_io functions for ext4
  5 *
  6 * Written by Theodore Ts'o, 2010.
  7 */
  8
  9#include <linux/module.h>
 10#include <linux/fs.h>
 11#include <linux/time.h>
 12#include <linux/jbd2.h>
 13#include <linux/highuid.h>
 14#include <linux/pagemap.h>
 15#include <linux/quotaops.h>
 16#include <linux/string.h>
 17#include <linux/buffer_head.h>
 18#include <linux/writeback.h>
 19#include <linux/pagevec.h>
 20#include <linux/mpage.h>
 21#include <linux/namei.h>
 22#include <linux/uio.h>
 23#include <linux/bio.h>
 24#include <linux/workqueue.h>
 25#include <linux/kernel.h>
 26#include <linux/slab.h>
 
 
 27
 28#include "ext4_jbd2.h"
 29#include "xattr.h"
 30#include "acl.h"
 31#include "ext4_extents.h"
 32
 33static struct kmem_cache *io_page_cachep, *io_end_cachep;
 
 34
 35int __init ext4_init_pageio(void)
 36{
 37	io_page_cachep = KMEM_CACHE(ext4_io_page, SLAB_RECLAIM_ACCOUNT);
 38	if (io_page_cachep == NULL)
 39		return -ENOMEM;
 40	io_end_cachep = KMEM_CACHE(ext4_io_end, SLAB_RECLAIM_ACCOUNT);
 41	if (io_end_cachep == NULL) {
 42		kmem_cache_destroy(io_page_cachep);
 
 
 
 
 43		return -ENOMEM;
 44	}
 45	return 0;
 46}
 47
 48void ext4_exit_pageio(void)
 49{
 50	kmem_cache_destroy(io_end_cachep);
 51	kmem_cache_destroy(io_page_cachep);
 52}
 53
 54void ext4_ioend_wait(struct inode *inode)
 55{
 56	wait_queue_head_t *wq = ext4_ioend_wq(inode);
 57
 58	wait_event(*wq, (atomic_read(&EXT4_I(inode)->i_ioend_count) == 0));
 
 
 
 
 
 59}
 60
 61static void put_io_page(struct ext4_io_page *io_page)
 62{
 63	if (atomic_dec_and_test(&io_page->p_count)) {
 64		end_page_writeback(io_page->p_page);
 65		put_page(io_page->p_page);
 66		kmem_cache_free(io_page_cachep, io_page);
 
 
 
 67	}
 68}
 69
 70void ext4_free_io_end(ext4_io_end_t *io)
 71{
 72	int i;
 73	wait_queue_head_t *wq;
 74
 75	BUG_ON(!io);
 76	if (io->page)
 77		put_page(io->page);
 78	for (i = 0; i < io->num_io_pages; i++)
 79		put_io_page(io->pages[i]);
 80	io->num_io_pages = 0;
 81	wq = ext4_ioend_wq(io->inode);
 82	if (atomic_dec_and_test(&EXT4_I(io->inode)->i_ioend_count) &&
 83	    waitqueue_active(wq))
 84		wake_up_all(wq);
 85	kmem_cache_free(io_end_cachep, io);
 86}
 87
 88/*
 89 * check a range of space and convert unwritten extents to written.
 
 
 
 
 90 */
 91int ext4_end_io_nolock(ext4_io_end_t *io)
 92{
 93	struct inode *inode = io->inode;
 94	loff_t offset = io->offset;
 95	ssize_t size = io->size;
 96	wait_queue_head_t *wq;
 97	int ret = 0;
 98
 99	ext4_debug("ext4_end_io_nolock: io 0x%p from inode %lu,list->next 0x%p,"
100		   "list->prev 0x%p\n",
101		   io, inode->i_ino, io->list.next, io->list.prev);
102
103	if (list_empty(&io->list))
104		return ret;
 
105
106	if (!(io->flag & EXT4_IO_END_UNWRITTEN))
107		return ret;
 
 
 
 
 
 
 
 
 
 
 
108
109	ret = ext4_convert_unwritten_extents(inode, offset, size);
110	if (ret < 0) {
111		printk(KERN_EMERG "%s: failed to convert unwritten "
112			"extents to written extents, error is %d "
113			"io is still on inode %lu aio dio list\n",
114		       __func__, ret, inode->i_ino);
115		return ret;
116	}
117
118	if (io->iocb)
119		aio_complete(io->iocb, io->result, 0);
120	/* clear the DIO AIO unwritten flag */
121	if (io->flag & EXT4_IO_END_UNWRITTEN) {
122		io->flag &= ~EXT4_IO_END_UNWRITTEN;
123		/* Wake up anyone waiting on unwritten extent conversion */
124		wq = ext4_ioend_wq(io->inode);
125		if (atomic_dec_and_test(&EXT4_I(inode)->i_aiodio_unwritten) &&
126		    waitqueue_active(wq)) {
127			wake_up_all(wq);
 
 
 
 
 
 
 
 
128		}
129	}
 
130
131	return ret;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
132}
133
134/*
135 * work on completed aio dio IO, to convert unwritten extents to extents
 
 
 
 
 
136 */
137static void ext4_end_io_work(struct work_struct *work)
138{
139	ext4_io_end_t		*io = container_of(work, ext4_io_end_t, work);
140	struct inode		*inode = io->inode;
141	struct ext4_inode_info	*ei = EXT4_I(inode);
142	unsigned long		flags;
143	int			ret;
144
145	if (!mutex_trylock(&inode->i_mutex)) {
146		/*
147		 * Requeue the work instead of waiting so that the work
148		 * items queued after this can be processed.
149		 */
150		queue_work(EXT4_SB(inode->i_sb)->dio_unwritten_wq, &io->work);
151		/*
152		 * To prevent the ext4-dio-unwritten thread from keeping
153		 * requeueing end_io requests and occupying cpu for too long,
154		 * yield the cpu if it sees an end_io request that has already
155		 * been requeued.
156		 */
157		if (io->flag & EXT4_IO_END_QUEUED)
158			yield();
159		io->flag |= EXT4_IO_END_QUEUED;
160		return;
161	}
162	ret = ext4_end_io_nolock(io);
163	if (ret < 0) {
164		mutex_unlock(&inode->i_mutex);
 
 
 
 
 
 
 
 
 
165		return;
 
 
 
 
 
 
 
 
 
 
 
166	}
 
 
167
 
 
 
 
 
 
 
 
 
 
 
168	spin_lock_irqsave(&ei->i_completed_io_lock, flags);
169	if (!list_empty(&io->list))
170		list_del_init(&io->list);
 
 
171	spin_unlock_irqrestore(&ei->i_completed_io_lock, flags);
172	mutex_unlock(&inode->i_mutex);
173	ext4_free_io_end(io);
174}
175
176ext4_io_end_t *ext4_init_io_end(struct inode *inode, gfp_t flags)
 
177{
178	ext4_io_end_t *io = kmem_cache_zalloc(io_end_cachep, flags);
179	if (io) {
180		atomic_inc(&EXT4_I(inode)->i_ioend_count);
181		io->inode = inode;
182		INIT_WORK(&io->work, ext4_end_io_work);
183		INIT_LIST_HEAD(&io->list);
 
 
 
 
 
 
 
 
 
 
 
 
 
184	}
185	return io;
186}
187
188/*
189 * Print an buffer I/O error compatible with the fs/buffer.c.  This
190 * provides compatibility with dmesg scrapers that look for a specific
191 * buffer I/O error message.  We really need a unified error reporting
192 * structure to userspace ala Digital Unix's uerf system, but it's
193 * probably not going to happen in my lifetime, due to LKML politics...
194 */
195static void buffer_io_error(struct buffer_head *bh)
196{
197	char b[BDEVNAME_SIZE];
198	printk(KERN_ERR "Buffer I/O error on device %s, logical block %llu\n",
199			bdevname(bh->b_bdev, b),
200			(unsigned long long)bh->b_blocknr);
201}
202
203static void ext4_end_bio(struct bio *bio, int error)
204{
205	ext4_io_end_t *io_end = bio->bi_private;
206	struct workqueue_struct *wq;
207	struct inode *inode;
208	unsigned long flags;
209	int i;
210	sector_t bi_sector = bio->bi_sector;
211
212	BUG_ON(!io_end);
213	bio->bi_private = NULL;
214	bio->bi_end_io = NULL;
215	if (test_bit(BIO_UPTODATE, &bio->bi_flags))
216		error = 0;
217	bio_put(bio);
 
 
218
219	for (i = 0; i < io_end->num_io_pages; i++) {
220		struct page *page = io_end->pages[i]->p_page;
221		struct buffer_head *bh, *head;
222		loff_t offset;
223		loff_t io_end_offset;
 
 
 
 
 
 
224
225		if (error) {
226			SetPageError(page);
227			set_bit(AS_EIO, &page->mapping->flags);
228			head = page_buffers(page);
229			BUG_ON(!head);
230
231			io_end_offset = io_end->offset + io_end->size;
 
 
 
 
 
 
 
 
 
 
232
233			offset = (sector_t) page->index << PAGE_CACHE_SHIFT;
234			bh = head;
235			do {
236				if ((offset >= io_end->offset) &&
237				    (offset+bh->b_size <= io_end_offset))
238					buffer_io_error(bh);
239
240				offset += bh->b_size;
241				bh = bh->b_this_page;
242			} while (bh != head);
243		}
 
244
245		put_io_page(io_end->pages[i]);
 
 
 
 
 
 
 
246	}
247	io_end->num_io_pages = 0;
248	inode = io_end->inode;
 
 
249
250	if (error) {
251		io_end->flag |= EXT4_IO_END_ERROR;
252		ext4_warning(inode->i_sb, "I/O error writing to inode %lu "
253			     "(offset %llu size %ld starting block %llu)",
254			     inode->i_ino,
255			     (unsigned long long) io_end->offset,
256			     (long) io_end->size,
257			     (unsigned long long)
258			     bi_sector >> (inode->i_blkbits - 9));
 
 
259	}
260
261	if (!(io_end->flag & EXT4_IO_END_UNWRITTEN)) {
262		ext4_free_io_end(io_end);
263		return;
 
 
 
 
 
 
 
 
 
 
 
 
 
264	}
265
266	/* Add the io_end to per-inode completed io list*/
267	spin_lock_irqsave(&EXT4_I(inode)->i_completed_io_lock, flags);
268	list_add_tail(&io_end->list, &EXT4_I(inode)->i_completed_io_list);
269	spin_unlock_irqrestore(&EXT4_I(inode)->i_completed_io_lock, flags);
270
271	wq = EXT4_SB(inode->i_sb)->dio_unwritten_wq;
272	/* queue the work to convert unwritten extents to written */
273	queue_work(wq, &io_end->work);
274}
275
276void ext4_io_submit(struct ext4_io_submit *io)
277{
278	struct bio *bio = io->io_bio;
279
280	if (bio) {
281		bio_get(io->io_bio);
282		submit_bio(io->io_op, io->io_bio);
283		BUG_ON(bio_flagged(io->io_bio, BIO_EOPNOTSUPP));
284		bio_put(io->io_bio);
285	}
286	io->io_bio = NULL;
287	io->io_op = 0;
 
 
 
 
 
 
288	io->io_end = NULL;
289}
290
291static int io_submit_init(struct ext4_io_submit *io,
292			  struct inode *inode,
293			  struct writeback_control *wbc,
294			  struct buffer_head *bh)
295{
296	ext4_io_end_t *io_end;
297	struct page *page = bh->b_page;
298	int nvecs = bio_get_nr_vecs(bh->b_bdev);
299	struct bio *bio;
300
301	io_end = ext4_init_io_end(inode, GFP_NOFS);
302	if (!io_end)
303		return -ENOMEM;
304	bio = bio_alloc(GFP_NOIO, min(nvecs, BIO_MAX_PAGES));
305	bio->bi_sector = bh->b_blocknr * (bh->b_size >> 9);
306	bio->bi_bdev = bh->b_bdev;
307	bio->bi_private = io->io_end = io_end;
308	bio->bi_end_io = ext4_end_bio;
309
310	io_end->offset = (page->index << PAGE_CACHE_SHIFT) + bh_offset(bh);
311
312	io->io_bio = bio;
313	io->io_op = (wbc->sync_mode == WB_SYNC_ALL ?  WRITE_SYNC : WRITE);
314	io->io_next_block = bh->b_blocknr;
315	return 0;
316}
317
318static int io_submit_add_bh(struct ext4_io_submit *io,
319			    struct ext4_io_page *io_page,
320			    struct inode *inode,
321			    struct writeback_control *wbc,
322			    struct buffer_head *bh)
323{
324	ext4_io_end_t *io_end;
325	int ret;
326
327	if (buffer_new(bh)) {
328		clear_buffer_new(bh);
329		unmap_underlying_metadata(bh->b_bdev, bh->b_blocknr);
330	}
331
332	if (!buffer_mapped(bh) || buffer_delay(bh)) {
333		if (!buffer_mapped(bh))
334			clear_buffer_dirty(bh);
335		if (io->io_bio)
336			ext4_io_submit(io);
337		return 0;
338	}
339
340	if (io->io_bio && bh->b_blocknr != io->io_next_block) {
341submit_and_retry:
342		ext4_io_submit(io);
343	}
344	if (io->io_bio == NULL) {
345		ret = io_submit_init(io, inode, wbc, bh);
346		if (ret)
347			return ret;
348	}
349	io_end = io->io_end;
350	if ((io_end->num_io_pages >= MAX_IO_PAGES) &&
351	    (io_end->pages[io_end->num_io_pages-1] != io_page))
352		goto submit_and_retry;
353	if (buffer_uninit(bh) && !(io_end->flag & EXT4_IO_END_UNWRITTEN)) {
354		io_end->flag |= EXT4_IO_END_UNWRITTEN;
355		atomic_inc(&EXT4_I(inode)->i_aiodio_unwritten);
356	}
357	io->io_end->size += bh->b_size;
358	io->io_next_block++;
359	ret = bio_add_page(io->io_bio, bh->b_page, bh->b_size, bh_offset(bh));
360	if (ret != bh->b_size)
361		goto submit_and_retry;
362	if ((io_end->num_io_pages == 0) ||
363	    (io_end->pages[io_end->num_io_pages-1] != io_page)) {
364		io_end->pages[io_end->num_io_pages++] = io_page;
365		atomic_inc(&io_page->p_count);
366	}
367	return 0;
368}
369
370int ext4_bio_write_page(struct ext4_io_submit *io,
371			struct page *page,
372			int len,
373			struct writeback_control *wbc)
374{
375	struct inode *inode = page->mapping->host;
376	unsigned block_start, block_end, blocksize;
377	struct ext4_io_page *io_page;
378	struct buffer_head *bh, *head;
379	int ret = 0;
 
 
 
380
381	blocksize = 1 << inode->i_blkbits;
 
382
383	BUG_ON(!PageLocked(page));
384	BUG_ON(PageWriteback(page));
385
386	io_page = kmem_cache_alloc(io_page_cachep, GFP_NOFS);
387	if (!io_page) {
388		set_page_dirty(page);
389		unlock_page(page);
390		return -ENOMEM;
391	}
392	io_page->p_page = page;
393	atomic_set(&io_page->p_count, 1);
394	get_page(page);
395	set_page_writeback(page);
396	ClearPageError(page);
397
398	for (bh = head = page_buffers(page), block_start = 0;
399	     bh != head || !block_start;
400	     block_start = block_end, bh = bh->b_this_page) {
401
402		block_end = block_start + blocksize;
 
403		if (block_start >= len) {
404			clear_buffer_dirty(bh);
405			set_buffer_uptodate(bh);
406			continue;
407		}
408		clear_buffer_dirty(bh);
409		ret = io_submit_add_bh(io, io_page, inode, wbc, bh);
410		if (ret) {
 
 
411			/*
412			 * We only get here on ENOMEM.  Not much else
413			 * we can do but mark the page as dirty, and
414			 * better luck next time.
 
 
 
415			 */
416			set_page_dirty(page);
417			break;
 
 
 
 
 
418		}
419	}
420	unlock_page(page);
 
 
 
 
 
 
 
 
 
 
 
421	/*
422	 * If the page was truncated before we could do the writeback,
423	 * or we had a memory allocation error while trying to write
424	 * the first buffer head, we won't have submitted any pages for
425	 * I/O.  In that case we need to make sure we've cleared the
426	 * PageWriteback bit from the page to prevent the system from
427	 * wedging later on.
428	 */
429	put_io_page(io_page);
430	return ret;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
431}
v6.13.7
  1// SPDX-License-Identifier: GPL-2.0
  2/*
  3 * linux/fs/ext4/page-io.c
  4 *
  5 * This contains the new page_io functions for ext4
  6 *
  7 * Written by Theodore Ts'o, 2010.
  8 */
  9
 
 10#include <linux/fs.h>
 11#include <linux/time.h>
 
 12#include <linux/highuid.h>
 13#include <linux/pagemap.h>
 14#include <linux/quotaops.h>
 15#include <linux/string.h>
 16#include <linux/buffer_head.h>
 17#include <linux/writeback.h>
 18#include <linux/pagevec.h>
 19#include <linux/mpage.h>
 20#include <linux/namei.h>
 21#include <linux/uio.h>
 22#include <linux/bio.h>
 23#include <linux/workqueue.h>
 24#include <linux/kernel.h>
 25#include <linux/slab.h>
 26#include <linux/mm.h>
 27#include <linux/sched/mm.h>
 28
 29#include "ext4_jbd2.h"
 30#include "xattr.h"
 31#include "acl.h"
 
 32
 33static struct kmem_cache *io_end_cachep;
 34static struct kmem_cache *io_end_vec_cachep;
 35
 36int __init ext4_init_pageio(void)
 37{
 
 
 
 38	io_end_cachep = KMEM_CACHE(ext4_io_end, SLAB_RECLAIM_ACCOUNT);
 39	if (io_end_cachep == NULL)
 40		return -ENOMEM;
 41
 42	io_end_vec_cachep = KMEM_CACHE(ext4_io_end_vec, 0);
 43	if (io_end_vec_cachep == NULL) {
 44		kmem_cache_destroy(io_end_cachep);
 45		return -ENOMEM;
 46	}
 47	return 0;
 48}
 49
 50void ext4_exit_pageio(void)
 51{
 52	kmem_cache_destroy(io_end_cachep);
 53	kmem_cache_destroy(io_end_vec_cachep);
 54}
 55
 56struct ext4_io_end_vec *ext4_alloc_io_end_vec(ext4_io_end_t *io_end)
 57{
 58	struct ext4_io_end_vec *io_end_vec;
 59
 60	io_end_vec = kmem_cache_zalloc(io_end_vec_cachep, GFP_NOFS);
 61	if (!io_end_vec)
 62		return ERR_PTR(-ENOMEM);
 63	INIT_LIST_HEAD(&io_end_vec->list);
 64	list_add_tail(&io_end_vec->list, &io_end->list_vec);
 65	return io_end_vec;
 66}
 67
 68static void ext4_free_io_end_vec(ext4_io_end_t *io_end)
 69{
 70	struct ext4_io_end_vec *io_end_vec, *tmp;
 71
 72	if (list_empty(&io_end->list_vec))
 73		return;
 74	list_for_each_entry_safe(io_end_vec, tmp, &io_end->list_vec, list) {
 75		list_del(&io_end_vec->list);
 76		kmem_cache_free(io_end_vec_cachep, io_end_vec);
 77	}
 78}
 79
 80struct ext4_io_end_vec *ext4_last_io_end_vec(ext4_io_end_t *io_end)
 81{
 82	BUG_ON(list_empty(&io_end->list_vec));
 83	return list_last_entry(&io_end->list_vec, struct ext4_io_end_vec, list);
 
 
 
 
 
 
 
 
 
 
 
 
 84}
 85
 86/*
 87 * Print an buffer I/O error compatible with the fs/buffer.c.  This
 88 * provides compatibility with dmesg scrapers that look for a specific
 89 * buffer I/O error message.  We really need a unified error reporting
 90 * structure to userspace ala Digital Unix's uerf system, but it's
 91 * probably not going to happen in my lifetime, due to LKML politics...
 92 */
 93static void buffer_io_error(struct buffer_head *bh)
 94{
 95	printk_ratelimited(KERN_ERR "Buffer I/O error on device %pg, logical block %llu\n",
 96		       bh->b_bdev,
 97			(unsigned long long)bh->b_blocknr);
 98}
 
 
 
 
 
 99
100static void ext4_finish_bio(struct bio *bio)
101{
102	struct folio_iter fi;
103
104	bio_for_each_folio_all(fi, bio) {
105		struct folio *folio = fi.folio;
106		struct folio *io_folio = NULL;
107		struct buffer_head *bh, *head;
108		size_t bio_start = fi.offset;
109		size_t bio_end = bio_start + fi.length;
110		unsigned under_io = 0;
111		unsigned long flags;
112
113		if (fscrypt_is_bounce_folio(folio)) {
114			io_folio = folio;
115			folio = fscrypt_pagecache_folio(folio);
116		}
117
118		if (bio->bi_status) {
119			int err = blk_status_to_errno(bio->bi_status);
120			mapping_set_error(folio->mapping, err);
121		}
122		bh = head = folio_buffers(folio);
123		/*
124		 * We check all buffers in the folio under b_uptodate_lock
125		 * to avoid races with other end io clearing async_write flags
126		 */
127		spin_lock_irqsave(&head->b_uptodate_lock, flags);
128		do {
129			if (bh_offset(bh) < bio_start ||
130			    bh_offset(bh) + bh->b_size > bio_end) {
131				if (buffer_async_write(bh))
132					under_io++;
133				continue;
134			}
135			clear_buffer_async_write(bh);
136			if (bio->bi_status) {
137				set_buffer_write_io_error(bh);
138				buffer_io_error(bh);
139			}
140		} while ((bh = bh->b_this_page) != head);
141		spin_unlock_irqrestore(&head->b_uptodate_lock, flags);
142		if (!under_io) {
143			fscrypt_free_bounce_page(&io_folio->page);
144			folio_end_writeback(folio);
145		}
146	}
147}
148
149static void ext4_release_io_end(ext4_io_end_t *io_end)
150{
151	struct bio *bio, *next_bio;
152
153	BUG_ON(!list_empty(&io_end->list));
154	BUG_ON(io_end->flag & EXT4_IO_END_UNWRITTEN);
155	WARN_ON(io_end->handle);
156
157	for (bio = io_end->bio; bio; bio = next_bio) {
158		next_bio = bio->bi_private;
159		ext4_finish_bio(bio);
160		bio_put(bio);
161	}
162	ext4_free_io_end_vec(io_end);
163	kmem_cache_free(io_end_cachep, io_end);
164}
165
166/*
167 * Check a range of space and convert unwritten extents to written. Note that
168 * we are protected from truncate touching same part of extent tree by the
169 * fact that truncate code waits for all DIO to finish (thus exclusion from
170 * direct IO is achieved) and also waits for PageWriteback bits. Thus we
171 * cannot get to ext4_ext_truncate() before all IOs overlapping that range are
172 * completed (happens from ext4_free_ioend()).
173 */
174static int ext4_end_io_end(ext4_io_end_t *io_end)
175{
176	struct inode *inode = io_end->inode;
177	handle_t *handle = io_end->handle;
178	int ret = 0;
 
 
179
180	ext4_debug("ext4_end_io_nolock: io_end 0x%p from inode %lu,list->next 0x%p,"
181		   "list->prev 0x%p\n",
182		   io_end, inode->i_ino, io_end->list.next, io_end->list.prev);
183
184	io_end->handle = NULL;	/* Following call will use up the handle */
185	ret = ext4_convert_unwritten_io_end_vec(handle, io_end);
186	if (ret < 0 && !ext4_forced_shutdown(inode->i_sb)) {
187		ext4_msg(inode->i_sb, KERN_EMERG,
188			 "failed to convert unwritten extents to written "
189			 "extents -- potential data loss!  "
190			 "(inode %lu, error %d)", inode->i_ino, ret);
 
 
 
 
 
191	}
192	ext4_clear_io_unwritten_flag(io_end);
193	ext4_release_io_end(io_end);
194	return ret;
195}
196
197static void dump_completed_IO(struct inode *inode, struct list_head *head)
198{
199#ifdef	EXT4FS_DEBUG
200	struct list_head *cur, *before, *after;
201	ext4_io_end_t *io_end, *io_end0, *io_end1;
202
203	if (list_empty(head))
204		return;
205
206	ext4_debug("Dump inode %lu completed io list\n", inode->i_ino);
207	list_for_each_entry(io_end, head, list) {
208		cur = &io_end->list;
209		before = cur->prev;
210		io_end0 = container_of(before, ext4_io_end_t, list);
211		after = cur->next;
212		io_end1 = container_of(after, ext4_io_end_t, list);
213
214		ext4_debug("io 0x%p from inode %lu,prev 0x%p,next 0x%p\n",
215			    io_end, inode->i_ino, io_end0, io_end1);
216	}
217#endif
218}
219
220/* Add the io_end to per-inode completed end_io list. */
221static void ext4_add_complete_io(ext4_io_end_t *io_end)
222{
223	struct ext4_inode_info *ei = EXT4_I(io_end->inode);
224	struct ext4_sb_info *sbi = EXT4_SB(io_end->inode->i_sb);
225	struct workqueue_struct *wq;
226	unsigned long flags;
227
228	/* Only reserved conversions from writeback should enter here */
229	WARN_ON(!(io_end->flag & EXT4_IO_END_UNWRITTEN));
230	WARN_ON(!io_end->handle && sbi->s_journal);
231	spin_lock_irqsave(&ei->i_completed_io_lock, flags);
232	wq = sbi->rsv_conversion_wq;
233	if (list_empty(&ei->i_rsv_conversion_list))
234		queue_work(wq, &ei->i_rsv_conversion_work);
235	list_add_tail(&io_end->list, &ei->i_rsv_conversion_list);
236	spin_unlock_irqrestore(&ei->i_completed_io_lock, flags);
 
 
237}
238
239static int ext4_do_flush_completed_IO(struct inode *inode,
240				      struct list_head *head)
241{
242	ext4_io_end_t *io_end;
243	struct list_head unwritten;
244	unsigned long flags;
245	struct ext4_inode_info *ei = EXT4_I(inode);
246	int err, ret = 0;
247
248	spin_lock_irqsave(&ei->i_completed_io_lock, flags);
249	dump_completed_IO(inode, head);
250	list_replace_init(head, &unwritten);
251	spin_unlock_irqrestore(&ei->i_completed_io_lock, flags);
252
253	while (!list_empty(&unwritten)) {
254		io_end = list_entry(unwritten.next, ext4_io_end_t, list);
255		BUG_ON(!(io_end->flag & EXT4_IO_END_UNWRITTEN));
256		list_del_init(&io_end->list);
257
258		err = ext4_end_io_end(io_end);
259		if (unlikely(!ret && err))
260			ret = err;
261	}
262	return ret;
263}
264
265/*
266 * work on completed IO, to convert unwritten extents to extents
 
 
 
 
267 */
268void ext4_end_io_rsv_work(struct work_struct *work)
269{
270	struct ext4_inode_info *ei = container_of(work, struct ext4_inode_info,
271						  i_rsv_conversion_work);
272	ext4_do_flush_completed_IO(&ei->vfs_inode, &ei->i_rsv_conversion_list);
 
273}
274
275ext4_io_end_t *ext4_init_io_end(struct inode *inode, gfp_t flags)
276{
277	ext4_io_end_t *io_end = kmem_cache_zalloc(io_end_cachep, flags);
 
 
 
 
 
278
279	if (io_end) {
280		io_end->inode = inode;
281		INIT_LIST_HEAD(&io_end->list);
282		INIT_LIST_HEAD(&io_end->list_vec);
283		refcount_set(&io_end->count, 1);
284	}
285	return io_end;
286}
287
288void ext4_put_io_end_defer(ext4_io_end_t *io_end)
289{
290	if (refcount_dec_and_test(&io_end->count)) {
291		if (!(io_end->flag & EXT4_IO_END_UNWRITTEN) ||
292				list_empty(&io_end->list_vec)) {
293			ext4_release_io_end(io_end);
294			return;
295		}
296		ext4_add_complete_io(io_end);
297	}
298}
299
300int ext4_put_io_end(ext4_io_end_t *io_end)
301{
302	int err = 0;
 
 
303
304	if (refcount_dec_and_test(&io_end->count)) {
305		if (io_end->flag & EXT4_IO_END_UNWRITTEN) {
306			err = ext4_convert_unwritten_io_end_vec(io_end->handle,
307								io_end);
308			io_end->handle = NULL;
309			ext4_clear_io_unwritten_flag(io_end);
310		}
311		ext4_release_io_end(io_end);
312	}
313	return err;
314}
315
316ext4_io_end_t *ext4_get_io_end(ext4_io_end_t *io_end)
317{
318	refcount_inc(&io_end->count);
319	return io_end;
320}
 
321
322/* BIO completion function for page writeback */
323static void ext4_end_bio(struct bio *bio)
324{
325	ext4_io_end_t *io_end = bio->bi_private;
326	sector_t bi_sector = bio->bi_iter.bi_sector;
327
328	if (WARN_ONCE(!io_end, "io_end is NULL: %pg: sector %Lu len %u err %d\n",
329		      bio->bi_bdev,
330		      (long long) bio->bi_iter.bi_sector,
331		      (unsigned) bio_sectors(bio),
332		      bio->bi_status)) {
333		ext4_finish_bio(bio);
334		bio_put(bio);
335		return;
336	}
337	bio->bi_end_io = NULL;
338
339	if (bio->bi_status) {
340		struct inode *inode = io_end->inode;
341
342		ext4_warning(inode->i_sb, "I/O error %d writing to inode %lu "
343			     "starting block %llu)",
344			     bio->bi_status, inode->i_ino,
 
 
 
 
345			     (unsigned long long)
346			     bi_sector >> (inode->i_blkbits - 9));
347		mapping_set_error(inode->i_mapping,
348				blk_status_to_errno(bio->bi_status));
349	}
350
351	if (io_end->flag & EXT4_IO_END_UNWRITTEN) {
352		/*
353		 * Link bio into list hanging from io_end. We have to do it
354		 * atomically as bio completions can be racing against each
355		 * other.
356		 */
357		bio->bi_private = xchg(&io_end->bio, bio);
358		ext4_put_io_end_defer(io_end);
359	} else {
360		/*
361		 * Drop io_end reference early. Inode can get freed once
362		 * we finish the bio.
363		 */
364		ext4_put_io_end_defer(io_end);
365		ext4_finish_bio(bio);
366		bio_put(bio);
367	}
 
 
 
 
 
 
 
 
 
368}
369
370void ext4_io_submit(struct ext4_io_submit *io)
371{
372	struct bio *bio = io->io_bio;
373
374	if (bio) {
375		if (io->io_wbc->sync_mode == WB_SYNC_ALL)
376			io->io_bio->bi_opf |= REQ_SYNC;
377		submit_bio(io->io_bio);
 
378	}
379	io->io_bio = NULL;
380}
381
382void ext4_io_submit_init(struct ext4_io_submit *io,
383			 struct writeback_control *wbc)
384{
385	io->io_wbc = wbc;
386	io->io_bio = NULL;
387	io->io_end = NULL;
388}
389
390static void io_submit_init_bio(struct ext4_io_submit *io,
391			       struct buffer_head *bh)
 
 
392{
 
 
 
393	struct bio *bio;
394
395	/*
396	 * bio_alloc will _always_ be able to allocate a bio if
397	 * __GFP_DIRECT_RECLAIM is set, see comments for bio_alloc_bioset().
398	 */
399	bio = bio_alloc(bh->b_bdev, BIO_MAX_VECS, REQ_OP_WRITE, GFP_NOIO);
400	fscrypt_set_bio_crypt_ctx_bh(bio, bh, GFP_NOIO);
401	bio->bi_iter.bi_sector = bh->b_blocknr * (bh->b_size >> 9);
402	bio->bi_end_io = ext4_end_bio;
403	bio->bi_private = ext4_get_io_end(io->io_end);
 
 
404	io->io_bio = bio;
 
405	io->io_next_block = bh->b_blocknr;
406	wbc_init_bio(io->io_wbc, bio);
407}
408
409static void io_submit_add_bh(struct ext4_io_submit *io,
410			     struct inode *inode,
411			     struct folio *folio,
412			     struct folio *io_folio,
413			     struct buffer_head *bh)
414{
415	if (io->io_bio && (bh->b_blocknr != io->io_next_block ||
416			   !fscrypt_mergeable_bio_bh(io->io_bio, bh))) {
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
417submit_and_retry:
418		ext4_io_submit(io);
419	}
420	if (io->io_bio == NULL) {
421		io_submit_init_bio(io, bh);
422		io->io_bio->bi_write_hint = inode->i_write_hint;
 
423	}
424	if (!bio_add_folio(io->io_bio, io_folio, bh->b_size, bh_offset(bh)))
 
 
425		goto submit_and_retry;
426	wbc_account_cgroup_owner(io->io_wbc, folio, bh->b_size);
 
 
 
 
427	io->io_next_block++;
 
 
 
 
 
 
 
 
 
428}
429
430int ext4_bio_write_folio(struct ext4_io_submit *io, struct folio *folio,
431		size_t len)
432{
433	struct folio *io_folio = folio;
434	struct inode *inode = folio->mapping->host;
435	unsigned block_start;
 
 
436	struct buffer_head *bh, *head;
437	int ret = 0;
438	int nr_to_submit = 0;
439	struct writeback_control *wbc = io->io_wbc;
440	bool keep_towrite = false;
441
442	BUG_ON(!folio_test_locked(folio));
443	BUG_ON(folio_test_writeback(folio));
444
445	/*
446	 * Comments copied from block_write_full_folio:
447	 *
448	 * The folio straddles i_size.  It must be zeroed out on each and every
449	 * writepage invocation because it may be mmapped.  "A file is mapped
450	 * in multiples of the page size.  For a file that is not a multiple of
451	 * the page size, the remaining memory is zeroed when mapped, and
452	 * writes to that region are not written out to the file."
453	 */
454	if (len < folio_size(folio))
455		folio_zero_segment(folio, len, folio_size(folio));
456	/*
457	 * In the first loop we prepare and mark buffers to submit. We have to
458	 * mark all buffers in the folio before submitting so that
459	 * folio_end_writeback() cannot be called from ext4_end_bio() when IO
460	 * on the first buffer finishes and we are still working on submitting
461	 * the second buffer.
462	 */
463	bh = head = folio_buffers(folio);
464	do {
465		block_start = bh_offset(bh);
466		if (block_start >= len) {
467			clear_buffer_dirty(bh);
468			set_buffer_uptodate(bh);
469			continue;
470		}
471		if (!buffer_dirty(bh) || buffer_delay(bh) ||
472		    !buffer_mapped(bh) || buffer_unwritten(bh)) {
473			/* A hole? We can safely clear the dirty bit */
474			if (!buffer_mapped(bh))
475				clear_buffer_dirty(bh);
476			/*
477			 * Keeping dirty some buffer we cannot write? Make sure
478			 * to redirty the folio and keep TOWRITE tag so that
479			 * racing WB_SYNC_ALL writeback does not skip the folio.
480			 * This happens e.g. when doing writeout for
481			 * transaction commit or when journalled data is not
482			 * yet committed.
483			 */
484			if (buffer_dirty(bh) ||
485			    (buffer_jbd(bh) && buffer_jbddirty(bh))) {
486				if (!folio_test_dirty(folio))
487					folio_redirty_for_writepage(wbc, folio);
488				keep_towrite = true;
489			}
490			continue;
491		}
492		if (buffer_new(bh))
493			clear_buffer_new(bh);
494		set_buffer_async_write(bh);
495		clear_buffer_dirty(bh);
496		nr_to_submit++;
497	} while ((bh = bh->b_this_page) != head);
498
499	/* Nothing to submit? Just unlock the folio... */
500	if (!nr_to_submit)
501		return 0;
502
503	bh = head = folio_buffers(folio);
504
505	/*
506	 * If any blocks are being written to an encrypted file, encrypt them
507	 * into a bounce page.  For simplicity, just encrypt until the last
508	 * block which might be needed.  This may cause some unneeded blocks
509	 * (e.g. holes) to be unnecessarily encrypted, but this is rare and
510	 * can't happen in the common case of blocksize == PAGE_SIZE.
 
511	 */
512	if (fscrypt_inode_uses_fs_layer_crypto(inode)) {
513		gfp_t gfp_flags = GFP_NOFS;
514		unsigned int enc_bytes = round_up(len, i_blocksize(inode));
515		struct page *bounce_page;
516
517		/*
518		 * Since bounce page allocation uses a mempool, we can only use
519		 * a waiting mask (i.e. request guaranteed allocation) on the
520		 * first page of the bio.  Otherwise it can deadlock.
521		 */
522		if (io->io_bio)
523			gfp_flags = GFP_NOWAIT | __GFP_NOWARN;
524	retry_encrypt:
525		bounce_page = fscrypt_encrypt_pagecache_blocks(&folio->page,
526					enc_bytes, 0, gfp_flags);
527		if (IS_ERR(bounce_page)) {
528			ret = PTR_ERR(bounce_page);
529			if (ret == -ENOMEM &&
530			    (io->io_bio || wbc->sync_mode == WB_SYNC_ALL)) {
531				gfp_t new_gfp_flags = GFP_NOFS;
532				if (io->io_bio)
533					ext4_io_submit(io);
534				else
535					new_gfp_flags |= __GFP_NOFAIL;
536				memalloc_retry_wait(gfp_flags);
537				gfp_flags = new_gfp_flags;
538				goto retry_encrypt;
539			}
540
541			printk_ratelimited(KERN_ERR "%s: ret = %d\n", __func__, ret);
542			folio_redirty_for_writepage(wbc, folio);
543			do {
544				if (buffer_async_write(bh)) {
545					clear_buffer_async_write(bh);
546					set_buffer_dirty(bh);
547				}
548				bh = bh->b_this_page;
549			} while (bh != head);
550
551			return ret;
552		}
553		io_folio = page_folio(bounce_page);
554	}
555
556	__folio_start_writeback(folio, keep_towrite);
557
558	/* Now submit buffers to write */
559	do {
560		if (!buffer_async_write(bh))
561			continue;
562		io_submit_add_bh(io, inode, folio, io_folio, bh);
563	} while ((bh = bh->b_this_page) != head);
564
565	return 0;
566}