Merge tag 'livepatching-for-5.20' of git://git.kernel.org/pub/scm/linux/kernel/git...
[linux-2.6-microblaze.git] / fs / splice.c
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * "splice": joining two ropes together by interweaving their strands.
4  *
5  * This is the "extended pipe" functionality, where a pipe is used as
6  * an arbitrary in-memory buffer. Think of a pipe as a small kernel
7  * buffer that you can use to transfer data from one end to the other.
8  *
9  * The traditional unix read/write is extended with a "splice()" operation
10  * that transfers data buffers to or from a pipe buffer.
11  *
12  * Named by Larry McVoy, original implementation from Linus, extended by
13  * Jens to support splicing to files, network, direct splicing, etc and
14  * fixing lots of bugs.
15  *
16  * Copyright (C) 2005-2006 Jens Axboe <axboe@kernel.dk>
17  * Copyright (C) 2005-2006 Linus Torvalds <torvalds@osdl.org>
18  * Copyright (C) 2006 Ingo Molnar <mingo@elte.hu>
19  *
20  */
21 #include <linux/bvec.h>
22 #include <linux/fs.h>
23 #include <linux/file.h>
24 #include <linux/pagemap.h>
25 #include <linux/splice.h>
26 #include <linux/memcontrol.h>
27 #include <linux/mm_inline.h>
28 #include <linux/swap.h>
29 #include <linux/writeback.h>
30 #include <linux/export.h>
31 #include <linux/syscalls.h>
32 #include <linux/uio.h>
33 #include <linux/security.h>
34 #include <linux/gfp.h>
35 #include <linux/socket.h>
36 #include <linux/sched/signal.h>
37
38 #include "internal.h"
39
40 /*
41  * Attempt to steal a page from a pipe buffer. This should perhaps go into
42  * a vm helper function, it's already simplified quite a bit by the
43  * addition of remove_mapping(). If success is returned, the caller may
44  * attempt to reuse this page for another destination.
45  */
46 static bool page_cache_pipe_buf_try_steal(struct pipe_inode_info *pipe,
47                 struct pipe_buffer *buf)
48 {
49         struct folio *folio = page_folio(buf->page);
50         struct address_space *mapping;
51
52         folio_lock(folio);
53
54         mapping = folio_mapping(folio);
55         if (mapping) {
56                 WARN_ON(!folio_test_uptodate(folio));
57
58                 /*
59                  * At least for ext2 with nobh option, we need to wait on
60                  * writeback completing on this folio, since we'll remove it
61                  * from the pagecache.  Otherwise truncate wont wait on the
62                  * folio, allowing the disk blocks to be reused by someone else
63                  * before we actually wrote our data to them. fs corruption
64                  * ensues.
65                  */
66                 folio_wait_writeback(folio);
67
68                 if (folio_has_private(folio) &&
69                     !filemap_release_folio(folio, GFP_KERNEL))
70                         goto out_unlock;
71
72                 /*
73                  * If we succeeded in removing the mapping, set LRU flag
74                  * and return good.
75                  */
76                 if (remove_mapping(mapping, folio)) {
77                         buf->flags |= PIPE_BUF_FLAG_LRU;
78                         return true;
79                 }
80         }
81
82         /*
83          * Raced with truncate or failed to remove folio from current
84          * address space, unlock and return failure.
85          */
86 out_unlock:
87         folio_unlock(folio);
88         return false;
89 }
90
91 static void page_cache_pipe_buf_release(struct pipe_inode_info *pipe,
92                                         struct pipe_buffer *buf)
93 {
94         put_page(buf->page);
95         buf->flags &= ~PIPE_BUF_FLAG_LRU;
96 }
97
98 /*
99  * Check whether the contents of buf is OK to access. Since the content
100  * is a page cache page, IO may be in flight.
101  */
102 static int page_cache_pipe_buf_confirm(struct pipe_inode_info *pipe,
103                                        struct pipe_buffer *buf)
104 {
105         struct page *page = buf->page;
106         int err;
107
108         if (!PageUptodate(page)) {
109                 lock_page(page);
110
111                 /*
112                  * Page got truncated/unhashed. This will cause a 0-byte
113                  * splice, if this is the first page.
114                  */
115                 if (!page->mapping) {
116                         err = -ENODATA;
117                         goto error;
118                 }
119
120                 /*
121                  * Uh oh, read-error from disk.
122                  */
123                 if (!PageUptodate(page)) {
124                         err = -EIO;
125                         goto error;
126                 }
127
128                 /*
129                  * Page is ok afterall, we are done.
130                  */
131                 unlock_page(page);
132         }
133
134         return 0;
135 error:
136         unlock_page(page);
137         return err;
138 }
139
140 const struct pipe_buf_operations page_cache_pipe_buf_ops = {
141         .confirm        = page_cache_pipe_buf_confirm,
142         .release        = page_cache_pipe_buf_release,
143         .try_steal      = page_cache_pipe_buf_try_steal,
144         .get            = generic_pipe_buf_get,
145 };
146
147 static bool user_page_pipe_buf_try_steal(struct pipe_inode_info *pipe,
148                 struct pipe_buffer *buf)
149 {
150         if (!(buf->flags & PIPE_BUF_FLAG_GIFT))
151                 return false;
152
153         buf->flags |= PIPE_BUF_FLAG_LRU;
154         return generic_pipe_buf_try_steal(pipe, buf);
155 }
156
157 static const struct pipe_buf_operations user_page_pipe_buf_ops = {
158         .release        = page_cache_pipe_buf_release,
159         .try_steal      = user_page_pipe_buf_try_steal,
160         .get            = generic_pipe_buf_get,
161 };
162
163 static void wakeup_pipe_readers(struct pipe_inode_info *pipe)
164 {
165         smp_mb();
166         if (waitqueue_active(&pipe->rd_wait))
167                 wake_up_interruptible(&pipe->rd_wait);
168         kill_fasync(&pipe->fasync_readers, SIGIO, POLL_IN);
169 }
170
171 /**
172  * splice_to_pipe - fill passed data into a pipe
173  * @pipe:       pipe to fill
174  * @spd:        data to fill
175  *
176  * Description:
177  *    @spd contains a map of pages and len/offset tuples, along with
178  *    the struct pipe_buf_operations associated with these pages. This
179  *    function will link that data to the pipe.
180  *
181  */
182 ssize_t splice_to_pipe(struct pipe_inode_info *pipe,
183                        struct splice_pipe_desc *spd)
184 {
185         unsigned int spd_pages = spd->nr_pages;
186         unsigned int tail = pipe->tail;
187         unsigned int head = pipe->head;
188         unsigned int mask = pipe->ring_size - 1;
189         int ret = 0, page_nr = 0;
190
191         if (!spd_pages)
192                 return 0;
193
194         if (unlikely(!pipe->readers)) {
195                 send_sig(SIGPIPE, current, 0);
196                 ret = -EPIPE;
197                 goto out;
198         }
199
200         while (!pipe_full(head, tail, pipe->max_usage)) {
201                 struct pipe_buffer *buf = &pipe->bufs[head & mask];
202
203                 buf->page = spd->pages[page_nr];
204                 buf->offset = spd->partial[page_nr].offset;
205                 buf->len = spd->partial[page_nr].len;
206                 buf->private = spd->partial[page_nr].private;
207                 buf->ops = spd->ops;
208                 buf->flags = 0;
209
210                 head++;
211                 pipe->head = head;
212                 page_nr++;
213                 ret += buf->len;
214
215                 if (!--spd->nr_pages)
216                         break;
217         }
218
219         if (!ret)
220                 ret = -EAGAIN;
221
222 out:
223         while (page_nr < spd_pages)
224                 spd->spd_release(spd, page_nr++);
225
226         return ret;
227 }
228 EXPORT_SYMBOL_GPL(splice_to_pipe);
229
230 ssize_t add_to_pipe(struct pipe_inode_info *pipe, struct pipe_buffer *buf)
231 {
232         unsigned int head = pipe->head;
233         unsigned int tail = pipe->tail;
234         unsigned int mask = pipe->ring_size - 1;
235         int ret;
236
237         if (unlikely(!pipe->readers)) {
238                 send_sig(SIGPIPE, current, 0);
239                 ret = -EPIPE;
240         } else if (pipe_full(head, tail, pipe->max_usage)) {
241                 ret = -EAGAIN;
242         } else {
243                 pipe->bufs[head & mask] = *buf;
244                 pipe->head = head + 1;
245                 return buf->len;
246         }
247         pipe_buf_release(pipe, buf);
248         return ret;
249 }
250 EXPORT_SYMBOL(add_to_pipe);
251
252 /*
253  * Check if we need to grow the arrays holding pages and partial page
254  * descriptions.
255  */
256 int splice_grow_spd(const struct pipe_inode_info *pipe, struct splice_pipe_desc *spd)
257 {
258         unsigned int max_usage = READ_ONCE(pipe->max_usage);
259
260         spd->nr_pages_max = max_usage;
261         if (max_usage <= PIPE_DEF_BUFFERS)
262                 return 0;
263
264         spd->pages = kmalloc_array(max_usage, sizeof(struct page *), GFP_KERNEL);
265         spd->partial = kmalloc_array(max_usage, sizeof(struct partial_page),
266                                      GFP_KERNEL);
267
268         if (spd->pages && spd->partial)
269                 return 0;
270
271         kfree(spd->pages);
272         kfree(spd->partial);
273         return -ENOMEM;
274 }
275
276 void splice_shrink_spd(struct splice_pipe_desc *spd)
277 {
278         if (spd->nr_pages_max <= PIPE_DEF_BUFFERS)
279                 return;
280
281         kfree(spd->pages);
282         kfree(spd->partial);
283 }
284
285 /**
286  * generic_file_splice_read - splice data from file to a pipe
287  * @in:         file to splice from
288  * @ppos:       position in @in
289  * @pipe:       pipe to splice to
290  * @len:        number of bytes to splice
291  * @flags:      splice modifier flags
292  *
293  * Description:
294  *    Will read pages from given file and fill them into a pipe. Can be
295  *    used as long as it has more or less sane ->read_iter().
296  *
297  */
298 ssize_t generic_file_splice_read(struct file *in, loff_t *ppos,
299                                  struct pipe_inode_info *pipe, size_t len,
300                                  unsigned int flags)
301 {
302         struct iov_iter to;
303         struct kiocb kiocb;
304         unsigned int i_head;
305         int ret;
306
307         iov_iter_pipe(&to, READ, pipe, len);
308         i_head = to.head;
309         init_sync_kiocb(&kiocb, in);
310         kiocb.ki_pos = *ppos;
311         ret = call_read_iter(in, &kiocb, &to);
312         if (ret > 0) {
313                 *ppos = kiocb.ki_pos;
314                 file_accessed(in);
315         } else if (ret < 0) {
316                 to.head = i_head;
317                 to.iov_offset = 0;
318                 iov_iter_advance(&to, 0); /* to free what was emitted */
319                 /*
320                  * callers of ->splice_read() expect -EAGAIN on
321                  * "can't put anything in there", rather than -EFAULT.
322                  */
323                 if (ret == -EFAULT)
324                         ret = -EAGAIN;
325         }
326
327         return ret;
328 }
329 EXPORT_SYMBOL(generic_file_splice_read);
330
331 const struct pipe_buf_operations default_pipe_buf_ops = {
332         .release        = generic_pipe_buf_release,
333         .try_steal      = generic_pipe_buf_try_steal,
334         .get            = generic_pipe_buf_get,
335 };
336
337 /* Pipe buffer operations for a socket and similar. */
338 const struct pipe_buf_operations nosteal_pipe_buf_ops = {
339         .release        = generic_pipe_buf_release,
340         .get            = generic_pipe_buf_get,
341 };
342 EXPORT_SYMBOL(nosteal_pipe_buf_ops);
343
344 /*
345  * Send 'sd->len' bytes to socket from 'sd->file' at position 'sd->pos'
346  * using sendpage(). Return the number of bytes sent.
347  */
348 static int pipe_to_sendpage(struct pipe_inode_info *pipe,
349                             struct pipe_buffer *buf, struct splice_desc *sd)
350 {
351         struct file *file = sd->u.file;
352         loff_t pos = sd->pos;
353         int more;
354
355         if (!likely(file->f_op->sendpage))
356                 return -EINVAL;
357
358         more = (sd->flags & SPLICE_F_MORE) ? MSG_MORE : 0;
359
360         if (sd->len < sd->total_len &&
361             pipe_occupancy(pipe->head, pipe->tail) > 1)
362                 more |= MSG_SENDPAGE_NOTLAST;
363
364         return file->f_op->sendpage(file, buf->page, buf->offset,
365                                     sd->len, &pos, more);
366 }
367
368 static void wakeup_pipe_writers(struct pipe_inode_info *pipe)
369 {
370         smp_mb();
371         if (waitqueue_active(&pipe->wr_wait))
372                 wake_up_interruptible(&pipe->wr_wait);
373         kill_fasync(&pipe->fasync_writers, SIGIO, POLL_OUT);
374 }
375
376 /**
377  * splice_from_pipe_feed - feed available data from a pipe to a file
378  * @pipe:       pipe to splice from
379  * @sd:         information to @actor
380  * @actor:      handler that splices the data
381  *
382  * Description:
383  *    This function loops over the pipe and calls @actor to do the
384  *    actual moving of a single struct pipe_buffer to the desired
385  *    destination.  It returns when there's no more buffers left in
386  *    the pipe or if the requested number of bytes (@sd->total_len)
387  *    have been copied.  It returns a positive number (one) if the
388  *    pipe needs to be filled with more data, zero if the required
389  *    number of bytes have been copied and -errno on error.
390  *
391  *    This, together with splice_from_pipe_{begin,end,next}, may be
392  *    used to implement the functionality of __splice_from_pipe() when
393  *    locking is required around copying the pipe buffers to the
394  *    destination.
395  */
396 static int splice_from_pipe_feed(struct pipe_inode_info *pipe, struct splice_desc *sd,
397                           splice_actor *actor)
398 {
399         unsigned int head = pipe->head;
400         unsigned int tail = pipe->tail;
401         unsigned int mask = pipe->ring_size - 1;
402         int ret;
403
404         while (!pipe_empty(head, tail)) {
405                 struct pipe_buffer *buf = &pipe->bufs[tail & mask];
406
407                 sd->len = buf->len;
408                 if (sd->len > sd->total_len)
409                         sd->len = sd->total_len;
410
411                 ret = pipe_buf_confirm(pipe, buf);
412                 if (unlikely(ret)) {
413                         if (ret == -ENODATA)
414                                 ret = 0;
415                         return ret;
416                 }
417
418                 ret = actor(pipe, buf, sd);
419                 if (ret <= 0)
420                         return ret;
421
422                 buf->offset += ret;
423                 buf->len -= ret;
424
425                 sd->num_spliced += ret;
426                 sd->len -= ret;
427                 sd->pos += ret;
428                 sd->total_len -= ret;
429
430                 if (!buf->len) {
431                         pipe_buf_release(pipe, buf);
432                         tail++;
433                         pipe->tail = tail;
434                         if (pipe->files)
435                                 sd->need_wakeup = true;
436                 }
437
438                 if (!sd->total_len)
439                         return 0;
440         }
441
442         return 1;
443 }
444
445 /* We know we have a pipe buffer, but maybe it's empty? */
446 static inline bool eat_empty_buffer(struct pipe_inode_info *pipe)
447 {
448         unsigned int tail = pipe->tail;
449         unsigned int mask = pipe->ring_size - 1;
450         struct pipe_buffer *buf = &pipe->bufs[tail & mask];
451
452         if (unlikely(!buf->len)) {
453                 pipe_buf_release(pipe, buf);
454                 pipe->tail = tail+1;
455                 return true;
456         }
457
458         return false;
459 }
460
461 /**
462  * splice_from_pipe_next - wait for some data to splice from
463  * @pipe:       pipe to splice from
464  * @sd:         information about the splice operation
465  *
466  * Description:
467  *    This function will wait for some data and return a positive
468  *    value (one) if pipe buffers are available.  It will return zero
469  *    or -errno if no more data needs to be spliced.
470  */
471 static int splice_from_pipe_next(struct pipe_inode_info *pipe, struct splice_desc *sd)
472 {
473         /*
474          * Check for signal early to make process killable when there are
475          * always buffers available
476          */
477         if (signal_pending(current))
478                 return -ERESTARTSYS;
479
480 repeat:
481         while (pipe_empty(pipe->head, pipe->tail)) {
482                 if (!pipe->writers)
483                         return 0;
484
485                 if (sd->num_spliced)
486                         return 0;
487
488                 if (sd->flags & SPLICE_F_NONBLOCK)
489                         return -EAGAIN;
490
491                 if (signal_pending(current))
492                         return -ERESTARTSYS;
493
494                 if (sd->need_wakeup) {
495                         wakeup_pipe_writers(pipe);
496                         sd->need_wakeup = false;
497                 }
498
499                 pipe_wait_readable(pipe);
500         }
501
502         if (eat_empty_buffer(pipe))
503                 goto repeat;
504
505         return 1;
506 }
507
508 /**
509  * splice_from_pipe_begin - start splicing from pipe
510  * @sd:         information about the splice operation
511  *
512  * Description:
513  *    This function should be called before a loop containing
514  *    splice_from_pipe_next() and splice_from_pipe_feed() to
515  *    initialize the necessary fields of @sd.
516  */
517 static void splice_from_pipe_begin(struct splice_desc *sd)
518 {
519         sd->num_spliced = 0;
520         sd->need_wakeup = false;
521 }
522
523 /**
524  * splice_from_pipe_end - finish splicing from pipe
525  * @pipe:       pipe to splice from
526  * @sd:         information about the splice operation
527  *
528  * Description:
529  *    This function will wake up pipe writers if necessary.  It should
530  *    be called after a loop containing splice_from_pipe_next() and
531  *    splice_from_pipe_feed().
532  */
533 static void splice_from_pipe_end(struct pipe_inode_info *pipe, struct splice_desc *sd)
534 {
535         if (sd->need_wakeup)
536                 wakeup_pipe_writers(pipe);
537 }
538
539 /**
540  * __splice_from_pipe - splice data from a pipe to given actor
541  * @pipe:       pipe to splice from
542  * @sd:         information to @actor
543  * @actor:      handler that splices the data
544  *
545  * Description:
546  *    This function does little more than loop over the pipe and call
547  *    @actor to do the actual moving of a single struct pipe_buffer to
548  *    the desired destination. See pipe_to_file, pipe_to_sendpage, or
549  *    pipe_to_user.
550  *
551  */
552 ssize_t __splice_from_pipe(struct pipe_inode_info *pipe, struct splice_desc *sd,
553                            splice_actor *actor)
554 {
555         int ret;
556
557         splice_from_pipe_begin(sd);
558         do {
559                 cond_resched();
560                 ret = splice_from_pipe_next(pipe, sd);
561                 if (ret > 0)
562                         ret = splice_from_pipe_feed(pipe, sd, actor);
563         } while (ret > 0);
564         splice_from_pipe_end(pipe, sd);
565
566         return sd->num_spliced ? sd->num_spliced : ret;
567 }
568 EXPORT_SYMBOL(__splice_from_pipe);
569
570 /**
571  * splice_from_pipe - splice data from a pipe to a file
572  * @pipe:       pipe to splice from
573  * @out:        file to splice to
574  * @ppos:       position in @out
575  * @len:        how many bytes to splice
576  * @flags:      splice modifier flags
577  * @actor:      handler that splices the data
578  *
579  * Description:
580  *    See __splice_from_pipe. This function locks the pipe inode,
581  *    otherwise it's identical to __splice_from_pipe().
582  *
583  */
584 ssize_t splice_from_pipe(struct pipe_inode_info *pipe, struct file *out,
585                          loff_t *ppos, size_t len, unsigned int flags,
586                          splice_actor *actor)
587 {
588         ssize_t ret;
589         struct splice_desc sd = {
590                 .total_len = len,
591                 .flags = flags,
592                 .pos = *ppos,
593                 .u.file = out,
594         };
595
596         pipe_lock(pipe);
597         ret = __splice_from_pipe(pipe, &sd, actor);
598         pipe_unlock(pipe);
599
600         return ret;
601 }
602
603 /**
604  * iter_file_splice_write - splice data from a pipe to a file
605  * @pipe:       pipe info
606  * @out:        file to write to
607  * @ppos:       position in @out
608  * @len:        number of bytes to splice
609  * @flags:      splice modifier flags
610  *
611  * Description:
612  *    Will either move or copy pages (determined by @flags options) from
613  *    the given pipe inode to the given file.
614  *    This one is ->write_iter-based.
615  *
616  */
617 ssize_t
618 iter_file_splice_write(struct pipe_inode_info *pipe, struct file *out,
619                           loff_t *ppos, size_t len, unsigned int flags)
620 {
621         struct splice_desc sd = {
622                 .total_len = len,
623                 .flags = flags,
624                 .pos = *ppos,
625                 .u.file = out,
626         };
627         int nbufs = pipe->max_usage;
628         struct bio_vec *array = kcalloc(nbufs, sizeof(struct bio_vec),
629                                         GFP_KERNEL);
630         ssize_t ret;
631
632         if (unlikely(!array))
633                 return -ENOMEM;
634
635         pipe_lock(pipe);
636
637         splice_from_pipe_begin(&sd);
638         while (sd.total_len) {
639                 struct iov_iter from;
640                 unsigned int head, tail, mask;
641                 size_t left;
642                 int n;
643
644                 ret = splice_from_pipe_next(pipe, &sd);
645                 if (ret <= 0)
646                         break;
647
648                 if (unlikely(nbufs < pipe->max_usage)) {
649                         kfree(array);
650                         nbufs = pipe->max_usage;
651                         array = kcalloc(nbufs, sizeof(struct bio_vec),
652                                         GFP_KERNEL);
653                         if (!array) {
654                                 ret = -ENOMEM;
655                                 break;
656                         }
657                 }
658
659                 head = pipe->head;
660                 tail = pipe->tail;
661                 mask = pipe->ring_size - 1;
662
663                 /* build the vector */
664                 left = sd.total_len;
665                 for (n = 0; !pipe_empty(head, tail) && left && n < nbufs; tail++) {
666                         struct pipe_buffer *buf = &pipe->bufs[tail & mask];
667                         size_t this_len = buf->len;
668
669                         /* zero-length bvecs are not supported, skip them */
670                         if (!this_len)
671                                 continue;
672                         this_len = min(this_len, left);
673
674                         ret = pipe_buf_confirm(pipe, buf);
675                         if (unlikely(ret)) {
676                                 if (ret == -ENODATA)
677                                         ret = 0;
678                                 goto done;
679                         }
680
681                         array[n].bv_page = buf->page;
682                         array[n].bv_len = this_len;
683                         array[n].bv_offset = buf->offset;
684                         left -= this_len;
685                         n++;
686                 }
687
688                 iov_iter_bvec(&from, WRITE, array, n, sd.total_len - left);
689                 ret = vfs_iter_write(out, &from, &sd.pos, 0);
690                 if (ret <= 0)
691                         break;
692
693                 sd.num_spliced += ret;
694                 sd.total_len -= ret;
695                 *ppos = sd.pos;
696
697                 /* dismiss the fully eaten buffers, adjust the partial one */
698                 tail = pipe->tail;
699                 while (ret) {
700                         struct pipe_buffer *buf = &pipe->bufs[tail & mask];
701                         if (ret >= buf->len) {
702                                 ret -= buf->len;
703                                 buf->len = 0;
704                                 pipe_buf_release(pipe, buf);
705                                 tail++;
706                                 pipe->tail = tail;
707                                 if (pipe->files)
708                                         sd.need_wakeup = true;
709                         } else {
710                                 buf->offset += ret;
711                                 buf->len -= ret;
712                                 ret = 0;
713                         }
714                 }
715         }
716 done:
717         kfree(array);
718         splice_from_pipe_end(pipe, &sd);
719
720         pipe_unlock(pipe);
721
722         if (sd.num_spliced)
723                 ret = sd.num_spliced;
724
725         return ret;
726 }
727
728 EXPORT_SYMBOL(iter_file_splice_write);
729
730 /**
731  * generic_splice_sendpage - splice data from a pipe to a socket
732  * @pipe:       pipe to splice from
733  * @out:        socket to write to
734  * @ppos:       position in @out
735  * @len:        number of bytes to splice
736  * @flags:      splice modifier flags
737  *
738  * Description:
739  *    Will send @len bytes from the pipe to a network socket. No data copying
740  *    is involved.
741  *
742  */
743 ssize_t generic_splice_sendpage(struct pipe_inode_info *pipe, struct file *out,
744                                 loff_t *ppos, size_t len, unsigned int flags)
745 {
746         return splice_from_pipe(pipe, out, ppos, len, flags, pipe_to_sendpage);
747 }
748
749 EXPORT_SYMBOL(generic_splice_sendpage);
750
751 static int warn_unsupported(struct file *file, const char *op)
752 {
753         pr_debug_ratelimited(
754                 "splice %s not supported for file %pD4 (pid: %d comm: %.20s)\n",
755                 op, file, current->pid, current->comm);
756         return -EINVAL;
757 }
758
759 /*
760  * Attempt to initiate a splice from pipe to file.
761  */
762 static long do_splice_from(struct pipe_inode_info *pipe, struct file *out,
763                            loff_t *ppos, size_t len, unsigned int flags)
764 {
765         if (unlikely(!out->f_op->splice_write))
766                 return warn_unsupported(out, "write");
767         return out->f_op->splice_write(pipe, out, ppos, len, flags);
768 }
769
770 /*
771  * Attempt to initiate a splice from a file to a pipe.
772  */
773 static long do_splice_to(struct file *in, loff_t *ppos,
774                          struct pipe_inode_info *pipe, size_t len,
775                          unsigned int flags)
776 {
777         unsigned int p_space;
778         int ret;
779
780         if (unlikely(!(in->f_mode & FMODE_READ)))
781                 return -EBADF;
782
783         /* Don't try to read more the pipe has space for. */
784         p_space = pipe->max_usage - pipe_occupancy(pipe->head, pipe->tail);
785         len = min_t(size_t, len, p_space << PAGE_SHIFT);
786
787         ret = rw_verify_area(READ, in, ppos, len);
788         if (unlikely(ret < 0))
789                 return ret;
790
791         if (unlikely(len > MAX_RW_COUNT))
792                 len = MAX_RW_COUNT;
793
794         if (unlikely(!in->f_op->splice_read))
795                 return warn_unsupported(in, "read");
796         return in->f_op->splice_read(in, ppos, pipe, len, flags);
797 }
798
799 /**
800  * splice_direct_to_actor - splices data directly between two non-pipes
801  * @in:         file to splice from
802  * @sd:         actor information on where to splice to
803  * @actor:      handles the data splicing
804  *
805  * Description:
806  *    This is a special case helper to splice directly between two
807  *    points, without requiring an explicit pipe. Internally an allocated
808  *    pipe is cached in the process, and reused during the lifetime of
809  *    that process.
810  *
811  */
812 ssize_t splice_direct_to_actor(struct file *in, struct splice_desc *sd,
813                                splice_direct_actor *actor)
814 {
815         struct pipe_inode_info *pipe;
816         long ret, bytes;
817         size_t len;
818         int i, flags, more;
819
820         /*
821          * We require the input to be seekable, as we don't want to randomly
822          * drop data for eg socket -> socket splicing. Use the piped splicing
823          * for that!
824          */
825         if (unlikely(!(in->f_mode & FMODE_LSEEK)))
826                 return -EINVAL;
827
828         /*
829          * neither in nor out is a pipe, setup an internal pipe attached to
830          * 'out' and transfer the wanted data from 'in' to 'out' through that
831          */
832         pipe = current->splice_pipe;
833         if (unlikely(!pipe)) {
834                 pipe = alloc_pipe_info();
835                 if (!pipe)
836                         return -ENOMEM;
837
838                 /*
839                  * We don't have an immediate reader, but we'll read the stuff
840                  * out of the pipe right after the splice_to_pipe(). So set
841                  * PIPE_READERS appropriately.
842                  */
843                 pipe->readers = 1;
844
845                 current->splice_pipe = pipe;
846         }
847
848         /*
849          * Do the splice.
850          */
851         ret = 0;
852         bytes = 0;
853         len = sd->total_len;
854         flags = sd->flags;
855
856         /*
857          * Don't block on output, we have to drain the direct pipe.
858          */
859         sd->flags &= ~SPLICE_F_NONBLOCK;
860         more = sd->flags & SPLICE_F_MORE;
861
862         WARN_ON_ONCE(!pipe_empty(pipe->head, pipe->tail));
863
864         while (len) {
865                 size_t read_len;
866                 loff_t pos = sd->pos, prev_pos = pos;
867
868                 ret = do_splice_to(in, &pos, pipe, len, flags);
869                 if (unlikely(ret <= 0))
870                         goto out_release;
871
872                 read_len = ret;
873                 sd->total_len = read_len;
874
875                 /*
876                  * If more data is pending, set SPLICE_F_MORE
877                  * If this is the last data and SPLICE_F_MORE was not set
878                  * initially, clears it.
879                  */
880                 if (read_len < len)
881                         sd->flags |= SPLICE_F_MORE;
882                 else if (!more)
883                         sd->flags &= ~SPLICE_F_MORE;
884                 /*
885                  * NOTE: nonblocking mode only applies to the input. We
886                  * must not do the output in nonblocking mode as then we
887                  * could get stuck data in the internal pipe:
888                  */
889                 ret = actor(pipe, sd);
890                 if (unlikely(ret <= 0)) {
891                         sd->pos = prev_pos;
892                         goto out_release;
893                 }
894
895                 bytes += ret;
896                 len -= ret;
897                 sd->pos = pos;
898
899                 if (ret < read_len) {
900                         sd->pos = prev_pos + ret;
901                         goto out_release;
902                 }
903         }
904
905 done:
906         pipe->tail = pipe->head = 0;
907         file_accessed(in);
908         return bytes;
909
910 out_release:
911         /*
912          * If we did an incomplete transfer we must release
913          * the pipe buffers in question:
914          */
915         for (i = 0; i < pipe->ring_size; i++) {
916                 struct pipe_buffer *buf = &pipe->bufs[i];
917
918                 if (buf->ops)
919                         pipe_buf_release(pipe, buf);
920         }
921
922         if (!bytes)
923                 bytes = ret;
924
925         goto done;
926 }
927 EXPORT_SYMBOL(splice_direct_to_actor);
928
929 static int direct_splice_actor(struct pipe_inode_info *pipe,
930                                struct splice_desc *sd)
931 {
932         struct file *file = sd->u.file;
933
934         return do_splice_from(pipe, file, sd->opos, sd->total_len,
935                               sd->flags);
936 }
937
938 /**
939  * do_splice_direct - splices data directly between two files
940  * @in:         file to splice from
941  * @ppos:       input file offset
942  * @out:        file to splice to
943  * @opos:       output file offset
944  * @len:        number of bytes to splice
945  * @flags:      splice modifier flags
946  *
947  * Description:
948  *    For use by do_sendfile(). splice can easily emulate sendfile, but
949  *    doing it in the application would incur an extra system call
950  *    (splice in + splice out, as compared to just sendfile()). So this helper
951  *    can splice directly through a process-private pipe.
952  *
953  */
954 long do_splice_direct(struct file *in, loff_t *ppos, struct file *out,
955                       loff_t *opos, size_t len, unsigned int flags)
956 {
957         struct splice_desc sd = {
958                 .len            = len,
959                 .total_len      = len,
960                 .flags          = flags,
961                 .pos            = *ppos,
962                 .u.file         = out,
963                 .opos           = opos,
964         };
965         long ret;
966
967         if (unlikely(!(out->f_mode & FMODE_WRITE)))
968                 return -EBADF;
969
970         if (unlikely(out->f_flags & O_APPEND))
971                 return -EINVAL;
972
973         ret = rw_verify_area(WRITE, out, opos, len);
974         if (unlikely(ret < 0))
975                 return ret;
976
977         ret = splice_direct_to_actor(in, &sd, direct_splice_actor);
978         if (ret > 0)
979                 *ppos = sd.pos;
980
981         return ret;
982 }
983 EXPORT_SYMBOL(do_splice_direct);
984
985 static int wait_for_space(struct pipe_inode_info *pipe, unsigned flags)
986 {
987         for (;;) {
988                 if (unlikely(!pipe->readers)) {
989                         send_sig(SIGPIPE, current, 0);
990                         return -EPIPE;
991                 }
992                 if (!pipe_full(pipe->head, pipe->tail, pipe->max_usage))
993                         return 0;
994                 if (flags & SPLICE_F_NONBLOCK)
995                         return -EAGAIN;
996                 if (signal_pending(current))
997                         return -ERESTARTSYS;
998                 pipe_wait_writable(pipe);
999         }
1000 }
1001
1002 static int splice_pipe_to_pipe(struct pipe_inode_info *ipipe,
1003                                struct pipe_inode_info *opipe,
1004                                size_t len, unsigned int flags);
1005
1006 long splice_file_to_pipe(struct file *in,
1007                          struct pipe_inode_info *opipe,
1008                          loff_t *offset,
1009                          size_t len, unsigned int flags)
1010 {
1011         long ret;
1012
1013         pipe_lock(opipe);
1014         ret = wait_for_space(opipe, flags);
1015         if (!ret)
1016                 ret = do_splice_to(in, offset, opipe, len, flags);
1017         pipe_unlock(opipe);
1018         if (ret > 0)
1019                 wakeup_pipe_readers(opipe);
1020         return ret;
1021 }
1022
1023 /*
1024  * Determine where to splice to/from.
1025  */
1026 long do_splice(struct file *in, loff_t *off_in, struct file *out,
1027                loff_t *off_out, size_t len, unsigned int flags)
1028 {
1029         struct pipe_inode_info *ipipe;
1030         struct pipe_inode_info *opipe;
1031         loff_t offset;
1032         long ret;
1033
1034         if (unlikely(!(in->f_mode & FMODE_READ) ||
1035                      !(out->f_mode & FMODE_WRITE)))
1036                 return -EBADF;
1037
1038         ipipe = get_pipe_info(in, true);
1039         opipe = get_pipe_info(out, true);
1040
1041         if (ipipe && opipe) {
1042                 if (off_in || off_out)
1043                         return -ESPIPE;
1044
1045                 /* Splicing to self would be fun, but... */
1046                 if (ipipe == opipe)
1047                         return -EINVAL;
1048
1049                 if ((in->f_flags | out->f_flags) & O_NONBLOCK)
1050                         flags |= SPLICE_F_NONBLOCK;
1051
1052                 return splice_pipe_to_pipe(ipipe, opipe, len, flags);
1053         }
1054
1055         if (ipipe) {
1056                 if (off_in)
1057                         return -ESPIPE;
1058                 if (off_out) {
1059                         if (!(out->f_mode & FMODE_PWRITE))
1060                                 return -EINVAL;
1061                         offset = *off_out;
1062                 } else {
1063                         offset = out->f_pos;
1064                 }
1065
1066                 if (unlikely(out->f_flags & O_APPEND))
1067                         return -EINVAL;
1068
1069                 ret = rw_verify_area(WRITE, out, &offset, len);
1070                 if (unlikely(ret < 0))
1071                         return ret;
1072
1073                 if (in->f_flags & O_NONBLOCK)
1074                         flags |= SPLICE_F_NONBLOCK;
1075
1076                 file_start_write(out);
1077                 ret = do_splice_from(ipipe, out, &offset, len, flags);
1078                 file_end_write(out);
1079
1080                 if (!off_out)
1081                         out->f_pos = offset;
1082                 else
1083                         *off_out = offset;
1084
1085                 return ret;
1086         }
1087
1088         if (opipe) {
1089                 if (off_out)
1090                         return -ESPIPE;
1091                 if (off_in) {
1092                         if (!(in->f_mode & FMODE_PREAD))
1093                                 return -EINVAL;
1094                         offset = *off_in;
1095                 } else {
1096                         offset = in->f_pos;
1097                 }
1098
1099                 if (out->f_flags & O_NONBLOCK)
1100                         flags |= SPLICE_F_NONBLOCK;
1101
1102                 ret = splice_file_to_pipe(in, opipe, &offset, len, flags);
1103                 if (!off_in)
1104                         in->f_pos = offset;
1105                 else
1106                         *off_in = offset;
1107
1108                 return ret;
1109         }
1110
1111         return -EINVAL;
1112 }
1113
1114 static long __do_splice(struct file *in, loff_t __user *off_in,
1115                         struct file *out, loff_t __user *off_out,
1116                         size_t len, unsigned int flags)
1117 {
1118         struct pipe_inode_info *ipipe;
1119         struct pipe_inode_info *opipe;
1120         loff_t offset, *__off_in = NULL, *__off_out = NULL;
1121         long ret;
1122
1123         ipipe = get_pipe_info(in, true);
1124         opipe = get_pipe_info(out, true);
1125
1126         if (ipipe && off_in)
1127                 return -ESPIPE;
1128         if (opipe && off_out)
1129                 return -ESPIPE;
1130
1131         if (off_out) {
1132                 if (copy_from_user(&offset, off_out, sizeof(loff_t)))
1133                         return -EFAULT;
1134                 __off_out = &offset;
1135         }
1136         if (off_in) {
1137                 if (copy_from_user(&offset, off_in, sizeof(loff_t)))
1138                         return -EFAULT;
1139                 __off_in = &offset;
1140         }
1141
1142         ret = do_splice(in, __off_in, out, __off_out, len, flags);
1143         if (ret < 0)
1144                 return ret;
1145
1146         if (__off_out && copy_to_user(off_out, __off_out, sizeof(loff_t)))
1147                 return -EFAULT;
1148         if (__off_in && copy_to_user(off_in, __off_in, sizeof(loff_t)))
1149                 return -EFAULT;
1150
1151         return ret;
1152 }
1153
1154 static int iter_to_pipe(struct iov_iter *from,
1155                         struct pipe_inode_info *pipe,
1156                         unsigned flags)
1157 {
1158         struct pipe_buffer buf = {
1159                 .ops = &user_page_pipe_buf_ops,
1160                 .flags = flags
1161         };
1162         size_t total = 0;
1163         int ret = 0;
1164         bool failed = false;
1165
1166         while (iov_iter_count(from) && !failed) {
1167                 struct page *pages[16];
1168                 ssize_t copied;
1169                 size_t start;
1170                 int n;
1171
1172                 copied = iov_iter_get_pages(from, pages, ~0UL, 16, &start);
1173                 if (copied <= 0) {
1174                         ret = copied;
1175                         break;
1176                 }
1177
1178                 for (n = 0; copied; n++, start = 0) {
1179                         int size = min_t(int, copied, PAGE_SIZE - start);
1180                         if (!failed) {
1181                                 buf.page = pages[n];
1182                                 buf.offset = start;
1183                                 buf.len = size;
1184                                 ret = add_to_pipe(pipe, &buf);
1185                                 if (unlikely(ret < 0)) {
1186                                         failed = true;
1187                                 } else {
1188                                         iov_iter_advance(from, ret);
1189                                         total += ret;
1190                                 }
1191                         } else {
1192                                 put_page(pages[n]);
1193                         }
1194                         copied -= size;
1195                 }
1196         }
1197         return total ? total : ret;
1198 }
1199
1200 static int pipe_to_user(struct pipe_inode_info *pipe, struct pipe_buffer *buf,
1201                         struct splice_desc *sd)
1202 {
1203         int n = copy_page_to_iter(buf->page, buf->offset, sd->len, sd->u.data);
1204         return n == sd->len ? n : -EFAULT;
1205 }
1206
1207 /*
1208  * For lack of a better implementation, implement vmsplice() to userspace
1209  * as a simple copy of the pipes pages to the user iov.
1210  */
1211 static long vmsplice_to_user(struct file *file, struct iov_iter *iter,
1212                              unsigned int flags)
1213 {
1214         struct pipe_inode_info *pipe = get_pipe_info(file, true);
1215         struct splice_desc sd = {
1216                 .total_len = iov_iter_count(iter),
1217                 .flags = flags,
1218                 .u.data = iter
1219         };
1220         long ret = 0;
1221
1222         if (!pipe)
1223                 return -EBADF;
1224
1225         if (sd.total_len) {
1226                 pipe_lock(pipe);
1227                 ret = __splice_from_pipe(pipe, &sd, pipe_to_user);
1228                 pipe_unlock(pipe);
1229         }
1230
1231         return ret;
1232 }
1233
1234 /*
1235  * vmsplice splices a user address range into a pipe. It can be thought of
1236  * as splice-from-memory, where the regular splice is splice-from-file (or
1237  * to file). In both cases the output is a pipe, naturally.
1238  */
1239 static long vmsplice_to_pipe(struct file *file, struct iov_iter *iter,
1240                              unsigned int flags)
1241 {
1242         struct pipe_inode_info *pipe;
1243         long ret = 0;
1244         unsigned buf_flag = 0;
1245
1246         if (flags & SPLICE_F_GIFT)
1247                 buf_flag = PIPE_BUF_FLAG_GIFT;
1248
1249         pipe = get_pipe_info(file, true);
1250         if (!pipe)
1251                 return -EBADF;
1252
1253         pipe_lock(pipe);
1254         ret = wait_for_space(pipe, flags);
1255         if (!ret)
1256                 ret = iter_to_pipe(iter, pipe, buf_flag);
1257         pipe_unlock(pipe);
1258         if (ret > 0)
1259                 wakeup_pipe_readers(pipe);
1260         return ret;
1261 }
1262
1263 static int vmsplice_type(struct fd f, int *type)
1264 {
1265         if (!f.file)
1266                 return -EBADF;
1267         if (f.file->f_mode & FMODE_WRITE) {
1268                 *type = WRITE;
1269         } else if (f.file->f_mode & FMODE_READ) {
1270                 *type = READ;
1271         } else {
1272                 fdput(f);
1273                 return -EBADF;
1274         }
1275         return 0;
1276 }
1277
1278 /*
1279  * Note that vmsplice only really supports true splicing _from_ user memory
1280  * to a pipe, not the other way around. Splicing from user memory is a simple
1281  * operation that can be supported without any funky alignment restrictions
1282  * or nasty vm tricks. We simply map in the user memory and fill them into
1283  * a pipe. The reverse isn't quite as easy, though. There are two possible
1284  * solutions for that:
1285  *
1286  *      - memcpy() the data internally, at which point we might as well just
1287  *        do a regular read() on the buffer anyway.
1288  *      - Lots of nasty vm tricks, that are neither fast nor flexible (it
1289  *        has restriction limitations on both ends of the pipe).
1290  *
1291  * Currently we punt and implement it as a normal copy, see pipe_to_user().
1292  *
1293  */
1294 SYSCALL_DEFINE4(vmsplice, int, fd, const struct iovec __user *, uiov,
1295                 unsigned long, nr_segs, unsigned int, flags)
1296 {
1297         struct iovec iovstack[UIO_FASTIOV];
1298         struct iovec *iov = iovstack;
1299         struct iov_iter iter;
1300         ssize_t error;
1301         struct fd f;
1302         int type;
1303
1304         if (unlikely(flags & ~SPLICE_F_ALL))
1305                 return -EINVAL;
1306
1307         f = fdget(fd);
1308         error = vmsplice_type(f, &type);
1309         if (error)
1310                 return error;
1311
1312         error = import_iovec(type, uiov, nr_segs,
1313                              ARRAY_SIZE(iovstack), &iov, &iter);
1314         if (error < 0)
1315                 goto out_fdput;
1316
1317         if (!iov_iter_count(&iter))
1318                 error = 0;
1319         else if (iov_iter_rw(&iter) == WRITE)
1320                 error = vmsplice_to_pipe(f.file, &iter, flags);
1321         else
1322                 error = vmsplice_to_user(f.file, &iter, flags);
1323
1324         kfree(iov);
1325 out_fdput:
1326         fdput(f);
1327         return error;
1328 }
1329
1330 SYSCALL_DEFINE6(splice, int, fd_in, loff_t __user *, off_in,
1331                 int, fd_out, loff_t __user *, off_out,
1332                 size_t, len, unsigned int, flags)
1333 {
1334         struct fd in, out;
1335         long error;
1336
1337         if (unlikely(!len))
1338                 return 0;
1339
1340         if (unlikely(flags & ~SPLICE_F_ALL))
1341                 return -EINVAL;
1342
1343         error = -EBADF;
1344         in = fdget(fd_in);
1345         if (in.file) {
1346                 out = fdget(fd_out);
1347                 if (out.file) {
1348                         error = __do_splice(in.file, off_in, out.file, off_out,
1349                                                 len, flags);
1350                         fdput(out);
1351                 }
1352                 fdput(in);
1353         }
1354         return error;
1355 }
1356
1357 /*
1358  * Make sure there's data to read. Wait for input if we can, otherwise
1359  * return an appropriate error.
1360  */
1361 static int ipipe_prep(struct pipe_inode_info *pipe, unsigned int flags)
1362 {
1363         int ret;
1364
1365         /*
1366          * Check the pipe occupancy without the inode lock first. This function
1367          * is speculative anyways, so missing one is ok.
1368          */
1369         if (!pipe_empty(pipe->head, pipe->tail))
1370                 return 0;
1371
1372         ret = 0;
1373         pipe_lock(pipe);
1374
1375         while (pipe_empty(pipe->head, pipe->tail)) {
1376                 if (signal_pending(current)) {
1377                         ret = -ERESTARTSYS;
1378                         break;
1379                 }
1380                 if (!pipe->writers)
1381                         break;
1382                 if (flags & SPLICE_F_NONBLOCK) {
1383                         ret = -EAGAIN;
1384                         break;
1385                 }
1386                 pipe_wait_readable(pipe);
1387         }
1388
1389         pipe_unlock(pipe);
1390         return ret;
1391 }
1392
1393 /*
1394  * Make sure there's writeable room. Wait for room if we can, otherwise
1395  * return an appropriate error.
1396  */
1397 static int opipe_prep(struct pipe_inode_info *pipe, unsigned int flags)
1398 {
1399         int ret;
1400
1401         /*
1402          * Check pipe occupancy without the inode lock first. This function
1403          * is speculative anyways, so missing one is ok.
1404          */
1405         if (!pipe_full(pipe->head, pipe->tail, pipe->max_usage))
1406                 return 0;
1407
1408         ret = 0;
1409         pipe_lock(pipe);
1410
1411         while (pipe_full(pipe->head, pipe->tail, pipe->max_usage)) {
1412                 if (!pipe->readers) {
1413                         send_sig(SIGPIPE, current, 0);
1414                         ret = -EPIPE;
1415                         break;
1416                 }
1417                 if (flags & SPLICE_F_NONBLOCK) {
1418                         ret = -EAGAIN;
1419                         break;
1420                 }
1421                 if (signal_pending(current)) {
1422                         ret = -ERESTARTSYS;
1423                         break;
1424                 }
1425                 pipe_wait_writable(pipe);
1426         }
1427
1428         pipe_unlock(pipe);
1429         return ret;
1430 }
1431
1432 /*
1433  * Splice contents of ipipe to opipe.
1434  */
1435 static int splice_pipe_to_pipe(struct pipe_inode_info *ipipe,
1436                                struct pipe_inode_info *opipe,
1437                                size_t len, unsigned int flags)
1438 {
1439         struct pipe_buffer *ibuf, *obuf;
1440         unsigned int i_head, o_head;
1441         unsigned int i_tail, o_tail;
1442         unsigned int i_mask, o_mask;
1443         int ret = 0;
1444         bool input_wakeup = false;
1445
1446
1447 retry:
1448         ret = ipipe_prep(ipipe, flags);
1449         if (ret)
1450                 return ret;
1451
1452         ret = opipe_prep(opipe, flags);
1453         if (ret)
1454                 return ret;
1455
1456         /*
1457          * Potential ABBA deadlock, work around it by ordering lock
1458          * grabbing by pipe info address. Otherwise two different processes
1459          * could deadlock (one doing tee from A -> B, the other from B -> A).
1460          */
1461         pipe_double_lock(ipipe, opipe);
1462
1463         i_tail = ipipe->tail;
1464         i_mask = ipipe->ring_size - 1;
1465         o_head = opipe->head;
1466         o_mask = opipe->ring_size - 1;
1467
1468         do {
1469                 size_t o_len;
1470
1471                 if (!opipe->readers) {
1472                         send_sig(SIGPIPE, current, 0);
1473                         if (!ret)
1474                                 ret = -EPIPE;
1475                         break;
1476                 }
1477
1478                 i_head = ipipe->head;
1479                 o_tail = opipe->tail;
1480
1481                 if (pipe_empty(i_head, i_tail) && !ipipe->writers)
1482                         break;
1483
1484                 /*
1485                  * Cannot make any progress, because either the input
1486                  * pipe is empty or the output pipe is full.
1487                  */
1488                 if (pipe_empty(i_head, i_tail) ||
1489                     pipe_full(o_head, o_tail, opipe->max_usage)) {
1490                         /* Already processed some buffers, break */
1491                         if (ret)
1492                                 break;
1493
1494                         if (flags & SPLICE_F_NONBLOCK) {
1495                                 ret = -EAGAIN;
1496                                 break;
1497                         }
1498
1499                         /*
1500                          * We raced with another reader/writer and haven't
1501                          * managed to process any buffers.  A zero return
1502                          * value means EOF, so retry instead.
1503                          */
1504                         pipe_unlock(ipipe);
1505                         pipe_unlock(opipe);
1506                         goto retry;
1507                 }
1508
1509                 ibuf = &ipipe->bufs[i_tail & i_mask];
1510                 obuf = &opipe->bufs[o_head & o_mask];
1511
1512                 if (len >= ibuf->len) {
1513                         /*
1514                          * Simply move the whole buffer from ipipe to opipe
1515                          */
1516                         *obuf = *ibuf;
1517                         ibuf->ops = NULL;
1518                         i_tail++;
1519                         ipipe->tail = i_tail;
1520                         input_wakeup = true;
1521                         o_len = obuf->len;
1522                         o_head++;
1523                         opipe->head = o_head;
1524                 } else {
1525                         /*
1526                          * Get a reference to this pipe buffer,
1527                          * so we can copy the contents over.
1528                          */
1529                         if (!pipe_buf_get(ipipe, ibuf)) {
1530                                 if (ret == 0)
1531                                         ret = -EFAULT;
1532                                 break;
1533                         }
1534                         *obuf = *ibuf;
1535
1536                         /*
1537                          * Don't inherit the gift and merge flags, we need to
1538                          * prevent multiple steals of this page.
1539                          */
1540                         obuf->flags &= ~PIPE_BUF_FLAG_GIFT;
1541                         obuf->flags &= ~PIPE_BUF_FLAG_CAN_MERGE;
1542
1543                         obuf->len = len;
1544                         ibuf->offset += len;
1545                         ibuf->len -= len;
1546                         o_len = len;
1547                         o_head++;
1548                         opipe->head = o_head;
1549                 }
1550                 ret += o_len;
1551                 len -= o_len;
1552         } while (len);
1553
1554         pipe_unlock(ipipe);
1555         pipe_unlock(opipe);
1556
1557         /*
1558          * If we put data in the output pipe, wakeup any potential readers.
1559          */
1560         if (ret > 0)
1561                 wakeup_pipe_readers(opipe);
1562
1563         if (input_wakeup)
1564                 wakeup_pipe_writers(ipipe);
1565
1566         return ret;
1567 }
1568
1569 /*
1570  * Link contents of ipipe to opipe.
1571  */
1572 static int link_pipe(struct pipe_inode_info *ipipe,
1573                      struct pipe_inode_info *opipe,
1574                      size_t len, unsigned int flags)
1575 {
1576         struct pipe_buffer *ibuf, *obuf;
1577         unsigned int i_head, o_head;
1578         unsigned int i_tail, o_tail;
1579         unsigned int i_mask, o_mask;
1580         int ret = 0;
1581
1582         /*
1583          * Potential ABBA deadlock, work around it by ordering lock
1584          * grabbing by pipe info address. Otherwise two different processes
1585          * could deadlock (one doing tee from A -> B, the other from B -> A).
1586          */
1587         pipe_double_lock(ipipe, opipe);
1588
1589         i_tail = ipipe->tail;
1590         i_mask = ipipe->ring_size - 1;
1591         o_head = opipe->head;
1592         o_mask = opipe->ring_size - 1;
1593
1594         do {
1595                 if (!opipe->readers) {
1596                         send_sig(SIGPIPE, current, 0);
1597                         if (!ret)
1598                                 ret = -EPIPE;
1599                         break;
1600                 }
1601
1602                 i_head = ipipe->head;
1603                 o_tail = opipe->tail;
1604
1605                 /*
1606                  * If we have iterated all input buffers or run out of
1607                  * output room, break.
1608                  */
1609                 if (pipe_empty(i_head, i_tail) ||
1610                     pipe_full(o_head, o_tail, opipe->max_usage))
1611                         break;
1612
1613                 ibuf = &ipipe->bufs[i_tail & i_mask];
1614                 obuf = &opipe->bufs[o_head & o_mask];
1615
1616                 /*
1617                  * Get a reference to this pipe buffer,
1618                  * so we can copy the contents over.
1619                  */
1620                 if (!pipe_buf_get(ipipe, ibuf)) {
1621                         if (ret == 0)
1622                                 ret = -EFAULT;
1623                         break;
1624                 }
1625
1626                 *obuf = *ibuf;
1627
1628                 /*
1629                  * Don't inherit the gift and merge flag, we need to prevent
1630                  * multiple steals of this page.
1631                  */
1632                 obuf->flags &= ~PIPE_BUF_FLAG_GIFT;
1633                 obuf->flags &= ~PIPE_BUF_FLAG_CAN_MERGE;
1634
1635                 if (obuf->len > len)
1636                         obuf->len = len;
1637                 ret += obuf->len;
1638                 len -= obuf->len;
1639
1640                 o_head++;
1641                 opipe->head = o_head;
1642                 i_tail++;
1643         } while (len);
1644
1645         pipe_unlock(ipipe);
1646         pipe_unlock(opipe);
1647
1648         /*
1649          * If we put data in the output pipe, wakeup any potential readers.
1650          */
1651         if (ret > 0)
1652                 wakeup_pipe_readers(opipe);
1653
1654         return ret;
1655 }
1656
1657 /*
1658  * This is a tee(1) implementation that works on pipes. It doesn't copy
1659  * any data, it simply references the 'in' pages on the 'out' pipe.
1660  * The 'flags' used are the SPLICE_F_* variants, currently the only
1661  * applicable one is SPLICE_F_NONBLOCK.
1662  */
1663 long do_tee(struct file *in, struct file *out, size_t len, unsigned int flags)
1664 {
1665         struct pipe_inode_info *ipipe = get_pipe_info(in, true);
1666         struct pipe_inode_info *opipe = get_pipe_info(out, true);
1667         int ret = -EINVAL;
1668
1669         if (unlikely(!(in->f_mode & FMODE_READ) ||
1670                      !(out->f_mode & FMODE_WRITE)))
1671                 return -EBADF;
1672
1673         /*
1674          * Duplicate the contents of ipipe to opipe without actually
1675          * copying the data.
1676          */
1677         if (ipipe && opipe && ipipe != opipe) {
1678                 if ((in->f_flags | out->f_flags) & O_NONBLOCK)
1679                         flags |= SPLICE_F_NONBLOCK;
1680
1681                 /*
1682                  * Keep going, unless we encounter an error. The ipipe/opipe
1683                  * ordering doesn't really matter.
1684                  */
1685                 ret = ipipe_prep(ipipe, flags);
1686                 if (!ret) {
1687                         ret = opipe_prep(opipe, flags);
1688                         if (!ret)
1689                                 ret = link_pipe(ipipe, opipe, len, flags);
1690                 }
1691         }
1692
1693         return ret;
1694 }
1695
1696 SYSCALL_DEFINE4(tee, int, fdin, int, fdout, size_t, len, unsigned int, flags)
1697 {
1698         struct fd in, out;
1699         int error;
1700
1701         if (unlikely(flags & ~SPLICE_F_ALL))
1702                 return -EINVAL;
1703
1704         if (unlikely(!len))
1705                 return 0;
1706
1707         error = -EBADF;
1708         in = fdget(fdin);
1709         if (in.file) {
1710                 out = fdget(fdout);
1711                 if (out.file) {
1712                         error = do_tee(in.file, out.file, len, flags);
1713                         fdput(out);
1714                 }
1715                 fdput(in);
1716         }
1717
1718         return error;
1719 }