xref: /openbmc/linux/fs/afs/write.c (revision 21db2cdc)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /* handling of writes to regular files and writing back to the server
3  *
4  * Copyright (C) 2007 Red Hat, Inc. All Rights Reserved.
5  * Written by David Howells (dhowells@redhat.com)
6  */
7 
8 #include <linux/backing-dev.h>
9 #include <linux/slab.h>
10 #include <linux/fs.h>
11 #include <linux/pagemap.h>
12 #include <linux/writeback.h>
13 #include <linux/pagevec.h>
14 #include "internal.h"
15 
16 /*
17  * mark a page as having been made dirty and thus needing writeback
18  */
19 int afs_set_page_dirty(struct page *page)
20 {
21 	_enter("");
22 	return __set_page_dirty_nobuffers(page);
23 }
24 
25 /*
26  * partly or wholly fill a page that's under preparation for writing
27  */
28 static int afs_fill_page(struct afs_vnode *vnode, struct key *key,
29 			 loff_t pos, unsigned int len, struct page *page)
30 {
31 	struct afs_read *req;
32 	size_t p;
33 	void *data;
34 	int ret;
35 
36 	_enter(",,%llu", (unsigned long long)pos);
37 
38 	if (pos >= vnode->vfs_inode.i_size) {
39 		p = pos & ~PAGE_MASK;
40 		ASSERTCMP(p + len, <=, PAGE_SIZE);
41 		data = kmap(page);
42 		memset(data + p, 0, len);
43 		kunmap(page);
44 		return 0;
45 	}
46 
47 	req = kzalloc(struct_size(req, array, 1), GFP_KERNEL);
48 	if (!req)
49 		return -ENOMEM;
50 
51 	refcount_set(&req->usage, 1);
52 	req->pos = pos;
53 	req->len = len;
54 	req->nr_pages = 1;
55 	req->pages = req->array;
56 	req->pages[0] = page;
57 	get_page(page);
58 
59 	ret = afs_fetch_data(vnode, key, req);
60 	afs_put_read(req);
61 	if (ret < 0) {
62 		if (ret == -ENOENT) {
63 			_debug("got NOENT from server"
64 			       " - marking file deleted and stale");
65 			set_bit(AFS_VNODE_DELETED, &vnode->flags);
66 			ret = -ESTALE;
67 		}
68 	}
69 
70 	_leave(" = %d", ret);
71 	return ret;
72 }
73 
74 /*
75  * prepare to perform part of a write to a page
76  */
77 int afs_write_begin(struct file *file, struct address_space *mapping,
78 		    loff_t pos, unsigned len, unsigned flags,
79 		    struct page **_page, void **fsdata)
80 {
81 	struct afs_vnode *vnode = AFS_FS_I(file_inode(file));
82 	struct page *page;
83 	struct key *key = afs_file_key(file);
84 	unsigned long priv;
85 	unsigned f, from = pos & (PAGE_SIZE - 1);
86 	unsigned t, to = from + len;
87 	pgoff_t index = pos >> PAGE_SHIFT;
88 	int ret;
89 
90 	_enter("{%llx:%llu},{%lx},%u,%u",
91 	       vnode->fid.vid, vnode->fid.vnode, index, from, to);
92 
93 	/* We want to store information about how much of a page is altered in
94 	 * page->private.
95 	 */
96 	BUILD_BUG_ON(PAGE_SIZE > 32768 && sizeof(page->private) < 8);
97 
98 	page = grab_cache_page_write_begin(mapping, index, flags);
99 	if (!page)
100 		return -ENOMEM;
101 
102 	if (!PageUptodate(page) && len != PAGE_SIZE) {
103 		ret = afs_fill_page(vnode, key, pos & PAGE_MASK, PAGE_SIZE, page);
104 		if (ret < 0) {
105 			unlock_page(page);
106 			put_page(page);
107 			_leave(" = %d [prep]", ret);
108 			return ret;
109 		}
110 		SetPageUptodate(page);
111 	}
112 
113 try_again:
114 	/* See if this page is already partially written in a way that we can
115 	 * merge the new write with.
116 	 */
117 	t = f = 0;
118 	if (PagePrivate(page)) {
119 		priv = page_private(page);
120 		f = priv & AFS_PRIV_MAX;
121 		t = priv >> AFS_PRIV_SHIFT;
122 		ASSERTCMP(f, <=, t);
123 	}
124 
125 	if (f != t) {
126 		if (PageWriteback(page)) {
127 			trace_afs_page_dirty(vnode, tracepoint_string("alrdy"),
128 					     page->index, priv);
129 			goto flush_conflicting_write;
130 		}
131 		/* If the file is being filled locally, allow inter-write
132 		 * spaces to be merged into writes.  If it's not, only write
133 		 * back what the user gives us.
134 		 */
135 		if (!test_bit(AFS_VNODE_NEW_CONTENT, &vnode->flags) &&
136 		    (to < f || from > t))
137 			goto flush_conflicting_write;
138 		if (from < f)
139 			f = from;
140 		if (to > t)
141 			t = to;
142 	} else {
143 		f = from;
144 		t = to;
145 	}
146 
147 	priv = (unsigned long)t << AFS_PRIV_SHIFT;
148 	priv |= f;
149 	trace_afs_page_dirty(vnode, tracepoint_string("begin"),
150 			     page->index, priv);
151 	if (PagePrivate(page))
152 		set_page_private(page, priv);
153 	else
154 		attach_page_private(page, (void *)priv);
155 	*_page = page;
156 	_leave(" = 0");
157 	return 0;
158 
159 	/* The previous write and this write aren't adjacent or overlapping, so
160 	 * flush the page out.
161 	 */
162 flush_conflicting_write:
163 	_debug("flush conflict");
164 	ret = write_one_page(page);
165 	if (ret < 0)
166 		goto error;
167 
168 	ret = lock_page_killable(page);
169 	if (ret < 0)
170 		goto error;
171 	goto try_again;
172 
173 error:
174 	put_page(page);
175 	_leave(" = %d", ret);
176 	return ret;
177 }
178 
179 /*
180  * finalise part of a write to a page
181  */
182 int afs_write_end(struct file *file, struct address_space *mapping,
183 		  loff_t pos, unsigned len, unsigned copied,
184 		  struct page *page, void *fsdata)
185 {
186 	struct afs_vnode *vnode = AFS_FS_I(file_inode(file));
187 	struct key *key = afs_file_key(file);
188 	loff_t i_size, maybe_i_size;
189 	int ret;
190 
191 	_enter("{%llx:%llu},{%lx}",
192 	       vnode->fid.vid, vnode->fid.vnode, page->index);
193 
194 	maybe_i_size = pos + copied;
195 
196 	i_size = i_size_read(&vnode->vfs_inode);
197 	if (maybe_i_size > i_size) {
198 		write_seqlock(&vnode->cb_lock);
199 		i_size = i_size_read(&vnode->vfs_inode);
200 		if (maybe_i_size > i_size)
201 			i_size_write(&vnode->vfs_inode, maybe_i_size);
202 		write_sequnlock(&vnode->cb_lock);
203 	}
204 
205 	if (!PageUptodate(page)) {
206 		if (copied < len) {
207 			/* Try and load any missing data from the server.  The
208 			 * unmarshalling routine will take care of clearing any
209 			 * bits that are beyond the EOF.
210 			 */
211 			ret = afs_fill_page(vnode, key, pos + copied,
212 					    len - copied, page);
213 			if (ret < 0)
214 				goto out;
215 		}
216 		SetPageUptodate(page);
217 	}
218 
219 	set_page_dirty(page);
220 	if (PageDirty(page))
221 		_debug("dirtied");
222 	ret = copied;
223 
224 out:
225 	unlock_page(page);
226 	put_page(page);
227 	return ret;
228 }
229 
230 /*
231  * kill all the pages in the given range
232  */
233 static void afs_kill_pages(struct address_space *mapping,
234 			   pgoff_t first, pgoff_t last)
235 {
236 	struct afs_vnode *vnode = AFS_FS_I(mapping->host);
237 	struct pagevec pv;
238 	unsigned count, loop;
239 
240 	_enter("{%llx:%llu},%lx-%lx",
241 	       vnode->fid.vid, vnode->fid.vnode, first, last);
242 
243 	pagevec_init(&pv);
244 
245 	do {
246 		_debug("kill %lx-%lx", first, last);
247 
248 		count = last - first + 1;
249 		if (count > PAGEVEC_SIZE)
250 			count = PAGEVEC_SIZE;
251 		pv.nr = find_get_pages_contig(mapping, first, count, pv.pages);
252 		ASSERTCMP(pv.nr, ==, count);
253 
254 		for (loop = 0; loop < count; loop++) {
255 			struct page *page = pv.pages[loop];
256 			ClearPageUptodate(page);
257 			SetPageError(page);
258 			end_page_writeback(page);
259 			if (page->index >= first)
260 				first = page->index + 1;
261 			lock_page(page);
262 			generic_error_remove_page(mapping, page);
263 			unlock_page(page);
264 		}
265 
266 		__pagevec_release(&pv);
267 	} while (first <= last);
268 
269 	_leave("");
270 }
271 
272 /*
273  * Redirty all the pages in a given range.
274  */
275 static void afs_redirty_pages(struct writeback_control *wbc,
276 			      struct address_space *mapping,
277 			      pgoff_t first, pgoff_t last)
278 {
279 	struct afs_vnode *vnode = AFS_FS_I(mapping->host);
280 	struct pagevec pv;
281 	unsigned count, loop;
282 
283 	_enter("{%llx:%llu},%lx-%lx",
284 	       vnode->fid.vid, vnode->fid.vnode, first, last);
285 
286 	pagevec_init(&pv);
287 
288 	do {
289 		_debug("redirty %lx-%lx", first, last);
290 
291 		count = last - first + 1;
292 		if (count > PAGEVEC_SIZE)
293 			count = PAGEVEC_SIZE;
294 		pv.nr = find_get_pages_contig(mapping, first, count, pv.pages);
295 		ASSERTCMP(pv.nr, ==, count);
296 
297 		for (loop = 0; loop < count; loop++) {
298 			struct page *page = pv.pages[loop];
299 
300 			redirty_page_for_writepage(wbc, page);
301 			end_page_writeback(page);
302 			if (page->index >= first)
303 				first = page->index + 1;
304 		}
305 
306 		__pagevec_release(&pv);
307 	} while (first <= last);
308 
309 	_leave("");
310 }
311 
312 /*
313  * completion of write to server
314  */
315 static void afs_pages_written_back(struct afs_vnode *vnode,
316 				   pgoff_t first, pgoff_t last)
317 {
318 	struct pagevec pv;
319 	unsigned long priv;
320 	unsigned count, loop;
321 
322 	_enter("{%llx:%llu},{%lx-%lx}",
323 	       vnode->fid.vid, vnode->fid.vnode, first, last);
324 
325 	pagevec_init(&pv);
326 
327 	do {
328 		_debug("done %lx-%lx", first, last);
329 
330 		count = last - first + 1;
331 		if (count > PAGEVEC_SIZE)
332 			count = PAGEVEC_SIZE;
333 		pv.nr = find_get_pages_contig(vnode->vfs_inode.i_mapping,
334 					      first, count, pv.pages);
335 		ASSERTCMP(pv.nr, ==, count);
336 
337 		for (loop = 0; loop < count; loop++) {
338 			priv = (unsigned long)detach_page_private(pv.pages[loop]);
339 			trace_afs_page_dirty(vnode, tracepoint_string("clear"),
340 					     pv.pages[loop]->index, priv);
341 			end_page_writeback(pv.pages[loop]);
342 		}
343 		first += count;
344 		__pagevec_release(&pv);
345 	} while (first <= last);
346 
347 	afs_prune_wb_keys(vnode);
348 	_leave("");
349 }
350 
351 /*
352  * Find a key to use for the writeback.  We cached the keys used to author the
353  * writes on the vnode.  *_wbk will contain the last writeback key used or NULL
354  * and we need to start from there if it's set.
355  */
356 static int afs_get_writeback_key(struct afs_vnode *vnode,
357 				 struct afs_wb_key **_wbk)
358 {
359 	struct afs_wb_key *wbk = NULL;
360 	struct list_head *p;
361 	int ret = -ENOKEY, ret2;
362 
363 	spin_lock(&vnode->wb_lock);
364 	if (*_wbk)
365 		p = (*_wbk)->vnode_link.next;
366 	else
367 		p = vnode->wb_keys.next;
368 
369 	while (p != &vnode->wb_keys) {
370 		wbk = list_entry(p, struct afs_wb_key, vnode_link);
371 		_debug("wbk %u", key_serial(wbk->key));
372 		ret2 = key_validate(wbk->key);
373 		if (ret2 == 0) {
374 			refcount_inc(&wbk->usage);
375 			_debug("USE WB KEY %u", key_serial(wbk->key));
376 			break;
377 		}
378 
379 		wbk = NULL;
380 		if (ret == -ENOKEY)
381 			ret = ret2;
382 		p = p->next;
383 	}
384 
385 	spin_unlock(&vnode->wb_lock);
386 	if (*_wbk)
387 		afs_put_wb_key(*_wbk);
388 	*_wbk = wbk;
389 	return 0;
390 }
391 
392 static void afs_store_data_success(struct afs_operation *op)
393 {
394 	struct afs_vnode *vnode = op->file[0].vnode;
395 
396 	op->ctime = op->file[0].scb.status.mtime_client;
397 	afs_vnode_commit_status(op, &op->file[0]);
398 	if (op->error == 0) {
399 		if (!op->store.laundering)
400 			afs_pages_written_back(vnode, op->store.first, op->store.last);
401 		afs_stat_v(vnode, n_stores);
402 		atomic_long_add((op->store.last * PAGE_SIZE + op->store.last_to) -
403 				(op->store.first * PAGE_SIZE + op->store.first_offset),
404 				&afs_v2net(vnode)->n_store_bytes);
405 	}
406 }
407 
408 static const struct afs_operation_ops afs_store_data_operation = {
409 	.issue_afs_rpc	= afs_fs_store_data,
410 	.issue_yfs_rpc	= yfs_fs_store_data,
411 	.success	= afs_store_data_success,
412 };
413 
414 /*
415  * write to a file
416  */
417 static int afs_store_data(struct address_space *mapping,
418 			  pgoff_t first, pgoff_t last,
419 			  unsigned offset, unsigned to, bool laundering)
420 {
421 	struct afs_vnode *vnode = AFS_FS_I(mapping->host);
422 	struct afs_operation *op;
423 	struct afs_wb_key *wbk = NULL;
424 	int ret;
425 
426 	_enter("%s{%llx:%llu.%u},%lx,%lx,%x,%x",
427 	       vnode->volume->name,
428 	       vnode->fid.vid,
429 	       vnode->fid.vnode,
430 	       vnode->fid.unique,
431 	       first, last, offset, to);
432 
433 	ret = afs_get_writeback_key(vnode, &wbk);
434 	if (ret) {
435 		_leave(" = %d [no keys]", ret);
436 		return ret;
437 	}
438 
439 	op = afs_alloc_operation(wbk->key, vnode->volume);
440 	if (IS_ERR(op)) {
441 		afs_put_wb_key(wbk);
442 		return -ENOMEM;
443 	}
444 
445 	afs_op_set_vnode(op, 0, vnode);
446 	op->file[0].dv_delta = 1;
447 	op->store.mapping = mapping;
448 	op->store.first = first;
449 	op->store.last = last;
450 	op->store.first_offset = offset;
451 	op->store.last_to = to;
452 	op->store.laundering = laundering;
453 	op->mtime = vnode->vfs_inode.i_mtime;
454 	op->flags |= AFS_OPERATION_UNINTR;
455 	op->ops = &afs_store_data_operation;
456 
457 try_next_key:
458 	afs_begin_vnode_operation(op);
459 	afs_wait_for_operation(op);
460 
461 	switch (op->error) {
462 	case -EACCES:
463 	case -EPERM:
464 	case -ENOKEY:
465 	case -EKEYEXPIRED:
466 	case -EKEYREJECTED:
467 	case -EKEYREVOKED:
468 		_debug("next");
469 
470 		ret = afs_get_writeback_key(vnode, &wbk);
471 		if (ret == 0) {
472 			key_put(op->key);
473 			op->key = key_get(wbk->key);
474 			goto try_next_key;
475 		}
476 		break;
477 	}
478 
479 	afs_put_wb_key(wbk);
480 	_leave(" = %d", op->error);
481 	return afs_put_operation(op);
482 }
483 
484 /*
485  * Synchronously write back the locked page and any subsequent non-locked dirty
486  * pages.
487  */
488 static int afs_write_back_from_locked_page(struct address_space *mapping,
489 					   struct writeback_control *wbc,
490 					   struct page *primary_page,
491 					   pgoff_t final_page)
492 {
493 	struct afs_vnode *vnode = AFS_FS_I(mapping->host);
494 	struct page *pages[8], *page;
495 	unsigned long count, priv;
496 	unsigned n, offset, to, f, t;
497 	pgoff_t start, first, last;
498 	loff_t i_size, end;
499 	int loop, ret;
500 
501 	_enter(",%lx", primary_page->index);
502 
503 	count = 1;
504 	if (test_set_page_writeback(primary_page))
505 		BUG();
506 
507 	/* Find all consecutive lockable dirty pages that have contiguous
508 	 * written regions, stopping when we find a page that is not
509 	 * immediately lockable, is not dirty or is missing, or we reach the
510 	 * end of the range.
511 	 */
512 	start = primary_page->index;
513 	priv = page_private(primary_page);
514 	offset = priv & AFS_PRIV_MAX;
515 	to = priv >> AFS_PRIV_SHIFT;
516 	trace_afs_page_dirty(vnode, tracepoint_string("store"),
517 			     primary_page->index, priv);
518 
519 	WARN_ON(offset == to);
520 	if (offset == to)
521 		trace_afs_page_dirty(vnode, tracepoint_string("WARN"),
522 				     primary_page->index, priv);
523 
524 	if (start >= final_page ||
525 	    (to < PAGE_SIZE && !test_bit(AFS_VNODE_NEW_CONTENT, &vnode->flags)))
526 		goto no_more;
527 
528 	start++;
529 	do {
530 		_debug("more %lx [%lx]", start, count);
531 		n = final_page - start + 1;
532 		if (n > ARRAY_SIZE(pages))
533 			n = ARRAY_SIZE(pages);
534 		n = find_get_pages_contig(mapping, start, ARRAY_SIZE(pages), pages);
535 		_debug("fgpc %u", n);
536 		if (n == 0)
537 			goto no_more;
538 		if (pages[0]->index != start) {
539 			do {
540 				put_page(pages[--n]);
541 			} while (n > 0);
542 			goto no_more;
543 		}
544 
545 		for (loop = 0; loop < n; loop++) {
546 			page = pages[loop];
547 			if (to != PAGE_SIZE &&
548 			    !test_bit(AFS_VNODE_NEW_CONTENT, &vnode->flags))
549 				break;
550 			if (page->index > final_page)
551 				break;
552 			if (!trylock_page(page))
553 				break;
554 			if (!PageDirty(page) || PageWriteback(page)) {
555 				unlock_page(page);
556 				break;
557 			}
558 
559 			priv = page_private(page);
560 			f = priv & AFS_PRIV_MAX;
561 			t = priv >> AFS_PRIV_SHIFT;
562 			if (f != 0 &&
563 			    !test_bit(AFS_VNODE_NEW_CONTENT, &vnode->flags)) {
564 				unlock_page(page);
565 				break;
566 			}
567 			to = t;
568 
569 			trace_afs_page_dirty(vnode, tracepoint_string("store+"),
570 					     page->index, priv);
571 
572 			if (!clear_page_dirty_for_io(page))
573 				BUG();
574 			if (test_set_page_writeback(page))
575 				BUG();
576 			unlock_page(page);
577 			put_page(page);
578 		}
579 		count += loop;
580 		if (loop < n) {
581 			for (; loop < n; loop++)
582 				put_page(pages[loop]);
583 			goto no_more;
584 		}
585 
586 		start += loop;
587 	} while (start <= final_page && count < 65536);
588 
589 no_more:
590 	/* We now have a contiguous set of dirty pages, each with writeback
591 	 * set; the first page is still locked at this point, but all the rest
592 	 * have been unlocked.
593 	 */
594 	unlock_page(primary_page);
595 
596 	first = primary_page->index;
597 	last = first + count - 1;
598 
599 	end = (loff_t)last * PAGE_SIZE + to;
600 	i_size = i_size_read(&vnode->vfs_inode);
601 
602 	_debug("write back %lx[%u..] to %lx[..%u]", first, offset, last, to);
603 	if (end > i_size)
604 		to = i_size & ~PAGE_MASK;
605 
606 	ret = afs_store_data(mapping, first, last, offset, to, false);
607 	switch (ret) {
608 	case 0:
609 		ret = count;
610 		break;
611 
612 	default:
613 		pr_notice("kAFS: Unexpected error from FS.StoreData %d\n", ret);
614 		fallthrough;
615 	case -EACCES:
616 	case -EPERM:
617 	case -ENOKEY:
618 	case -EKEYEXPIRED:
619 	case -EKEYREJECTED:
620 	case -EKEYREVOKED:
621 		afs_redirty_pages(wbc, mapping, first, last);
622 		mapping_set_error(mapping, ret);
623 		break;
624 
625 	case -EDQUOT:
626 	case -ENOSPC:
627 		afs_redirty_pages(wbc, mapping, first, last);
628 		mapping_set_error(mapping, -ENOSPC);
629 		break;
630 
631 	case -EROFS:
632 	case -EIO:
633 	case -EREMOTEIO:
634 	case -EFBIG:
635 	case -ENOENT:
636 	case -ENOMEDIUM:
637 	case -ENXIO:
638 		trace_afs_file_error(vnode, ret, afs_file_error_writeback_fail);
639 		afs_kill_pages(mapping, first, last);
640 		mapping_set_error(mapping, ret);
641 		break;
642 	}
643 
644 	_leave(" = %d", ret);
645 	return ret;
646 }
647 
648 /*
649  * write a page back to the server
650  * - the caller locked the page for us
651  */
652 int afs_writepage(struct page *page, struct writeback_control *wbc)
653 {
654 	int ret;
655 
656 	_enter("{%lx},", page->index);
657 
658 	ret = afs_write_back_from_locked_page(page->mapping, wbc, page,
659 					      wbc->range_end >> PAGE_SHIFT);
660 	if (ret < 0) {
661 		_leave(" = %d", ret);
662 		return 0;
663 	}
664 
665 	wbc->nr_to_write -= ret;
666 
667 	_leave(" = 0");
668 	return 0;
669 }
670 
671 /*
672  * write a region of pages back to the server
673  */
674 static int afs_writepages_region(struct address_space *mapping,
675 				 struct writeback_control *wbc,
676 				 pgoff_t index, pgoff_t end, pgoff_t *_next)
677 {
678 	struct page *page;
679 	int ret, n;
680 
681 	_enter(",,%lx,%lx,", index, end);
682 
683 	do {
684 		n = find_get_pages_range_tag(mapping, &index, end,
685 					PAGECACHE_TAG_DIRTY, 1, &page);
686 		if (!n)
687 			break;
688 
689 		_debug("wback %lx", page->index);
690 
691 		/*
692 		 * at this point we hold neither the i_pages lock nor the
693 		 * page lock: the page may be truncated or invalidated
694 		 * (changing page->mapping to NULL), or even swizzled
695 		 * back from swapper_space to tmpfs file mapping
696 		 */
697 		ret = lock_page_killable(page);
698 		if (ret < 0) {
699 			put_page(page);
700 			_leave(" = %d", ret);
701 			return ret;
702 		}
703 
704 		if (page->mapping != mapping || !PageDirty(page)) {
705 			unlock_page(page);
706 			put_page(page);
707 			continue;
708 		}
709 
710 		if (PageWriteback(page)) {
711 			unlock_page(page);
712 			if (wbc->sync_mode != WB_SYNC_NONE)
713 				wait_on_page_writeback(page);
714 			put_page(page);
715 			continue;
716 		}
717 
718 		if (!clear_page_dirty_for_io(page))
719 			BUG();
720 		ret = afs_write_back_from_locked_page(mapping, wbc, page, end);
721 		put_page(page);
722 		if (ret < 0) {
723 			_leave(" = %d", ret);
724 			return ret;
725 		}
726 
727 		wbc->nr_to_write -= ret;
728 
729 		cond_resched();
730 	} while (index < end && wbc->nr_to_write > 0);
731 
732 	*_next = index;
733 	_leave(" = 0 [%lx]", *_next);
734 	return 0;
735 }
736 
737 /*
738  * write some of the pending data back to the server
739  */
740 int afs_writepages(struct address_space *mapping,
741 		   struct writeback_control *wbc)
742 {
743 	struct afs_vnode *vnode = AFS_FS_I(mapping->host);
744 	pgoff_t start, end, next;
745 	int ret;
746 
747 	_enter("");
748 
749 	/* We have to be careful as we can end up racing with setattr()
750 	 * truncating the pagecache since the caller doesn't take a lock here
751 	 * to prevent it.
752 	 */
753 	if (wbc->sync_mode == WB_SYNC_ALL)
754 		down_read(&vnode->validate_lock);
755 	else if (!down_read_trylock(&vnode->validate_lock))
756 		return 0;
757 
758 	if (wbc->range_cyclic) {
759 		start = mapping->writeback_index;
760 		end = -1;
761 		ret = afs_writepages_region(mapping, wbc, start, end, &next);
762 		if (start > 0 && wbc->nr_to_write > 0 && ret == 0)
763 			ret = afs_writepages_region(mapping, wbc, 0, start,
764 						    &next);
765 		mapping->writeback_index = next;
766 	} else if (wbc->range_start == 0 && wbc->range_end == LLONG_MAX) {
767 		end = (pgoff_t)(LLONG_MAX >> PAGE_SHIFT);
768 		ret = afs_writepages_region(mapping, wbc, 0, end, &next);
769 		if (wbc->nr_to_write > 0)
770 			mapping->writeback_index = next;
771 	} else {
772 		start = wbc->range_start >> PAGE_SHIFT;
773 		end = wbc->range_end >> PAGE_SHIFT;
774 		ret = afs_writepages_region(mapping, wbc, start, end, &next);
775 	}
776 
777 	up_read(&vnode->validate_lock);
778 	_leave(" = %d", ret);
779 	return ret;
780 }
781 
782 /*
783  * write to an AFS file
784  */
785 ssize_t afs_file_write(struct kiocb *iocb, struct iov_iter *from)
786 {
787 	struct afs_vnode *vnode = AFS_FS_I(file_inode(iocb->ki_filp));
788 	ssize_t result;
789 	size_t count = iov_iter_count(from);
790 
791 	_enter("{%llx:%llu},{%zu},",
792 	       vnode->fid.vid, vnode->fid.vnode, count);
793 
794 	if (IS_SWAPFILE(&vnode->vfs_inode)) {
795 		printk(KERN_INFO
796 		       "AFS: Attempt to write to active swap file!\n");
797 		return -EBUSY;
798 	}
799 
800 	if (!count)
801 		return 0;
802 
803 	result = generic_file_write_iter(iocb, from);
804 
805 	_leave(" = %zd", result);
806 	return result;
807 }
808 
809 /*
810  * flush any dirty pages for this process, and check for write errors.
811  * - the return status from this call provides a reliable indication of
812  *   whether any write errors occurred for this process.
813  */
814 int afs_fsync(struct file *file, loff_t start, loff_t end, int datasync)
815 {
816 	struct inode *inode = file_inode(file);
817 	struct afs_vnode *vnode = AFS_FS_I(inode);
818 
819 	_enter("{%llx:%llu},{n=%pD},%d",
820 	       vnode->fid.vid, vnode->fid.vnode, file,
821 	       datasync);
822 
823 	return file_write_and_wait_range(file, start, end);
824 }
825 
826 /*
827  * notification that a previously read-only page is about to become writable
828  * - if it returns an error, the caller will deliver a bus error signal
829  */
830 vm_fault_t afs_page_mkwrite(struct vm_fault *vmf)
831 {
832 	struct file *file = vmf->vma->vm_file;
833 	struct inode *inode = file_inode(file);
834 	struct afs_vnode *vnode = AFS_FS_I(inode);
835 	unsigned long priv;
836 
837 	_enter("{{%llx:%llu}},{%lx}",
838 	       vnode->fid.vid, vnode->fid.vnode, vmf->page->index);
839 
840 	sb_start_pagefault(inode->i_sb);
841 
842 	/* Wait for the page to be written to the cache before we allow it to
843 	 * be modified.  We then assume the entire page will need writing back.
844 	 */
845 #ifdef CONFIG_AFS_FSCACHE
846 	fscache_wait_on_page_write(vnode->cache, vmf->page);
847 #endif
848 
849 	if (PageWriteback(vmf->page) &&
850 	    wait_on_page_bit_killable(vmf->page, PG_writeback) < 0)
851 		return VM_FAULT_RETRY;
852 
853 	if (lock_page_killable(vmf->page) < 0)
854 		return VM_FAULT_RETRY;
855 
856 	/* We mustn't change page->private until writeback is complete as that
857 	 * details the portion of the page we need to write back and we might
858 	 * need to redirty the page if there's a problem.
859 	 */
860 	wait_on_page_writeback(vmf->page);
861 
862 	priv = (unsigned long)PAGE_SIZE << AFS_PRIV_SHIFT; /* To */
863 	priv |= 0; /* From */
864 	trace_afs_page_dirty(vnode, tracepoint_string("mkwrite"),
865 			     vmf->page->index, priv);
866 	if (PagePrivate(vmf->page))
867 		set_page_private(vmf->page, priv);
868 	else
869 		attach_page_private(vmf->page, (void *)priv);
870 	file_update_time(file);
871 
872 	sb_end_pagefault(inode->i_sb);
873 	return VM_FAULT_LOCKED;
874 }
875 
876 /*
877  * Prune the keys cached for writeback.  The caller must hold vnode->wb_lock.
878  */
879 void afs_prune_wb_keys(struct afs_vnode *vnode)
880 {
881 	LIST_HEAD(graveyard);
882 	struct afs_wb_key *wbk, *tmp;
883 
884 	/* Discard unused keys */
885 	spin_lock(&vnode->wb_lock);
886 
887 	if (!mapping_tagged(&vnode->vfs_inode.i_data, PAGECACHE_TAG_WRITEBACK) &&
888 	    !mapping_tagged(&vnode->vfs_inode.i_data, PAGECACHE_TAG_DIRTY)) {
889 		list_for_each_entry_safe(wbk, tmp, &vnode->wb_keys, vnode_link) {
890 			if (refcount_read(&wbk->usage) == 1)
891 				list_move(&wbk->vnode_link, &graveyard);
892 		}
893 	}
894 
895 	spin_unlock(&vnode->wb_lock);
896 
897 	while (!list_empty(&graveyard)) {
898 		wbk = list_entry(graveyard.next, struct afs_wb_key, vnode_link);
899 		list_del(&wbk->vnode_link);
900 		afs_put_wb_key(wbk);
901 	}
902 }
903 
904 /*
905  * Clean up a page during invalidation.
906  */
907 int afs_launder_page(struct page *page)
908 {
909 	struct address_space *mapping = page->mapping;
910 	struct afs_vnode *vnode = AFS_FS_I(mapping->host);
911 	unsigned long priv;
912 	unsigned int f, t;
913 	int ret = 0;
914 
915 	_enter("{%lx}", page->index);
916 
917 	priv = page_private(page);
918 	if (clear_page_dirty_for_io(page)) {
919 		f = 0;
920 		t = PAGE_SIZE;
921 		if (PagePrivate(page)) {
922 			f = priv & AFS_PRIV_MAX;
923 			t = priv >> AFS_PRIV_SHIFT;
924 		}
925 
926 		trace_afs_page_dirty(vnode, tracepoint_string("launder"),
927 				     page->index, priv);
928 		ret = afs_store_data(mapping, page->index, page->index, t, f, true);
929 	}
930 
931 	priv = (unsigned long)detach_page_private(page);
932 	trace_afs_page_dirty(vnode, tracepoint_string("laundered"),
933 			     page->index, priv);
934 
935 #ifdef CONFIG_AFS_FSCACHE
936 	if (PageFsCache(page)) {
937 		fscache_wait_on_page_write(vnode->cache, page);
938 		fscache_uncache_page(vnode->cache, page);
939 	}
940 #endif
941 	return ret;
942 }
943