relay: remove unused buf_mapped and buf_unmapped callbacks
[linux-block.git] / kernel / relay.c
CommitLineData
b86ff981
JA
1/*
2 * Public API and common code for kernel->userspace relay file support.
3 *
0c1bc6b8 4 * See Documentation/filesystems/relay.rst for an overview.
b86ff981
JA
5 *
6 * Copyright (C) 2002-2005 - Tom Zanussi (zanussi@us.ibm.com), IBM Corp
7 * Copyright (C) 1999-2005 - Karim Yaghmour (karim@opersys.com)
8 *
9 * Moved to kernel/relay.c by Paul Mundt, 2006.
23c88752
MD
10 * November 2006 - CPU hotplug support by Mathieu Desnoyers
11 * (mathieu.desnoyers@polymtl.ca)
b86ff981
JA
12 *
13 * This file is released under the GPL.
14 */
15#include <linux/errno.h>
16#include <linux/stddef.h>
17#include <linux/slab.h>
9984de1a 18#include <linux/export.h>
b86ff981
JA
19#include <linux/string.h>
20#include <linux/relay.h>
21#include <linux/vmalloc.h>
22#include <linux/mm.h>
23c88752 23#include <linux/cpu.h>
d6b29d7c 24#include <linux/splice.h>
23c88752
MD
25
26/* list of open channels, for cpu hotplug */
27static DEFINE_MUTEX(relay_channels_mutex);
28static LIST_HEAD(relay_channels);
b86ff981 29
b86ff981 30/*
a1e09612 31 * fault() vm_op implementation for relay file mapping.
b86ff981 32 */
3fb3894b 33static vm_fault_t relay_buf_fault(struct vm_fault *vmf)
b86ff981
JA
34{
35 struct page *page;
11bac800 36 struct rchan_buf *buf = vmf->vma->vm_private_data;
a1e09612 37 pgoff_t pgoff = vmf->pgoff;
b86ff981 38
b86ff981 39 if (!buf)
a1e09612 40 return VM_FAULT_OOM;
b86ff981 41
a1e09612 42 page = vmalloc_to_page(buf->start + (pgoff << PAGE_SHIFT));
b86ff981 43 if (!page)
a1e09612 44 return VM_FAULT_SIGBUS;
b86ff981 45 get_page(page);
a1e09612 46 vmf->page = page;
b86ff981 47
a1e09612 48 return 0;
b86ff981
JA
49}
50
51/*
52 * vm_ops for relay file mappings.
53 */
f0f37e2f 54static const struct vm_operations_struct relay_file_mmap_ops = {
a1e09612 55 .fault = relay_buf_fault,
b86ff981
JA
56};
57
68ab3d88
MH
58/*
59 * allocate an array of pointers of struct page
60 */
61static struct page **relay_alloc_page_array(unsigned int n_pages)
62{
408af87a
JJ
63 const size_t pa_size = n_pages * sizeof(struct page *);
64 if (pa_size > PAGE_SIZE)
65 return vzalloc(pa_size);
66 return kzalloc(pa_size, GFP_KERNEL);
68ab3d88
MH
67}
68
69/*
70 * free an array of pointers of struct page
71 */
72static void relay_free_page_array(struct page **array)
73{
200f1ce3 74 kvfree(array);
68ab3d88
MH
75}
76
b86ff981
JA
77/**
78 * relay_mmap_buf: - mmap channel buffer to process address space
79 * @buf: relay channel buffer
80 * @vma: vm_area_struct describing memory to be mapped
81 *
82 * Returns 0 if ok, negative on error
83 *
c1e8d7c6 84 * Caller should already have grabbed mmap_lock.
b86ff981 85 */
01c55ed3 86static int relay_mmap_buf(struct rchan_buf *buf, struct vm_area_struct *vma)
b86ff981
JA
87{
88 unsigned long length = vma->vm_end - vma->vm_start;
b86ff981
JA
89
90 if (!buf)
91 return -EBADF;
92
93 if (length != (unsigned long)buf->chan->alloc_size)
94 return -EINVAL;
95
96 vma->vm_ops = &relay_file_mmap_ops;
2f98735c 97 vma->vm_flags |= VM_DONTEXPAND;
b86ff981 98 vma->vm_private_data = buf;
b86ff981
JA
99
100 return 0;
101}
102
103/**
104 * relay_alloc_buf - allocate a channel buffer
105 * @buf: the buffer struct
106 * @size: total size of the buffer
107 *
4c78a663 108 * Returns a pointer to the resulting buffer, %NULL if unsuccessful. The
221415d7 109 * passed in size will get page aligned, if it isn't already.
b86ff981 110 */
221415d7 111static void *relay_alloc_buf(struct rchan_buf *buf, size_t *size)
b86ff981
JA
112{
113 void *mem;
114 unsigned int i, j, n_pages;
115
221415d7
JA
116 *size = PAGE_ALIGN(*size);
117 n_pages = *size >> PAGE_SHIFT;
b86ff981 118
68ab3d88 119 buf->page_array = relay_alloc_page_array(n_pages);
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JA
120 if (!buf->page_array)
121 return NULL;
122
123 for (i = 0; i < n_pages; i++) {
124 buf->page_array[i] = alloc_page(GFP_KERNEL);
125 if (unlikely(!buf->page_array[i]))
126 goto depopulate;
ebf99093 127 set_page_private(buf->page_array[i], (unsigned long)buf);
b86ff981
JA
128 }
129 mem = vmap(buf->page_array, n_pages, VM_MAP, PAGE_KERNEL);
130 if (!mem)
131 goto depopulate;
132
221415d7 133 memset(mem, 0, *size);
b86ff981
JA
134 buf->page_count = n_pages;
135 return mem;
136
137depopulate:
138 for (j = 0; j < i; j++)
139 __free_page(buf->page_array[j]);
68ab3d88 140 relay_free_page_array(buf->page_array);
b86ff981
JA
141 return NULL;
142}
143
144/**
145 * relay_create_buf - allocate and initialize a channel buffer
4c78a663 146 * @chan: the relay channel
b86ff981 147 *
4c78a663 148 * Returns channel buffer if successful, %NULL otherwise.
b86ff981 149 */
01c55ed3 150static struct rchan_buf *relay_create_buf(struct rchan *chan)
b86ff981 151{
f6302f1b
DC
152 struct rchan_buf *buf;
153
88913bd8 154 if (chan->n_subbufs > KMALLOC_MAX_SIZE / sizeof(size_t *))
b86ff981
JA
155 return NULL;
156
f6302f1b
DC
157 buf = kzalloc(sizeof(struct rchan_buf), GFP_KERNEL);
158 if (!buf)
159 return NULL;
6da2ec56
KC
160 buf->padding = kmalloc_array(chan->n_subbufs, sizeof(size_t *),
161 GFP_KERNEL);
b86ff981
JA
162 if (!buf->padding)
163 goto free_buf;
164
221415d7 165 buf->start = relay_alloc_buf(buf, &chan->alloc_size);
b86ff981
JA
166 if (!buf->start)
167 goto free_buf;
168
169 buf->chan = chan;
170 kref_get(&buf->chan->kref);
171 return buf;
172
173free_buf:
174 kfree(buf->padding);
175 kfree(buf);
176 return NULL;
177}
178
179/**
180 * relay_destroy_channel - free the channel struct
4c78a663 181 * @kref: target kernel reference that contains the relay channel
b86ff981
JA
182 *
183 * Should only be called from kref_put().
184 */
01c55ed3 185static void relay_destroy_channel(struct kref *kref)
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JA
186{
187 struct rchan *chan = container_of(kref, struct rchan, kref);
71e84329 188 free_percpu(chan->buf);
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189 kfree(chan);
190}
191
192/**
193 * relay_destroy_buf - destroy an rchan_buf struct and associated buffer
194 * @buf: the buffer struct
195 */
01c55ed3 196static void relay_destroy_buf(struct rchan_buf *buf)
b86ff981
JA
197{
198 struct rchan *chan = buf->chan;
199 unsigned int i;
200
201 if (likely(buf->start)) {
202 vunmap(buf->start);
203 for (i = 0; i < buf->page_count; i++)
204 __free_page(buf->page_array[i]);
68ab3d88 205 relay_free_page_array(buf->page_array);
b86ff981 206 }
017c59c0 207 *per_cpu_ptr(chan->buf, buf->cpu) = NULL;
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JA
208 kfree(buf->padding);
209 kfree(buf);
210 kref_put(&chan->kref, relay_destroy_channel);
211}
212
213/**
214 * relay_remove_buf - remove a channel buffer
4c78a663 215 * @kref: target kernel reference that contains the relay buffer
b86ff981 216 *
e227867f 217 * Removes the file from the filesystem, which also frees the
b86ff981
JA
218 * rchan_buf_struct and the channel buffer. Should only be called from
219 * kref_put().
220 */
01c55ed3 221static void relay_remove_buf(struct kref *kref)
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JA
222{
223 struct rchan_buf *buf = container_of(kref, struct rchan_buf, kref);
b86ff981
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224 relay_destroy_buf(buf);
225}
226
227/**
228 * relay_buf_empty - boolean, is the channel buffer empty?
229 * @buf: channel buffer
230 *
231 * Returns 1 if the buffer is empty, 0 otherwise.
232 */
01c55ed3 233static int relay_buf_empty(struct rchan_buf *buf)
b86ff981
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234{
235 return (buf->subbufs_produced - buf->subbufs_consumed) ? 0 : 1;
236}
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237
238/**
239 * relay_buf_full - boolean, is the channel buffer full?
240 * @buf: channel buffer
241 *
242 * Returns 1 if the buffer is full, 0 otherwise.
243 */
244int relay_buf_full(struct rchan_buf *buf)
245{
246 size_t ready = buf->subbufs_produced - buf->subbufs_consumed;
247 return (ready >= buf->chan->n_subbufs) ? 1 : 0;
248}
249EXPORT_SYMBOL_GPL(relay_buf_full);
250
251/*
252 * High-level relay kernel API and associated functions.
253 */
254
255/*
256 * rchan_callback implementations defining default channel behavior. Used
257 * in place of corresponding NULL values in client callback struct.
258 */
259
260/*
261 * subbuf_start() default callback. Does nothing.
262 */
263static int subbuf_start_default_callback (struct rchan_buf *buf,
264 void *subbuf,
265 void *prev_subbuf,
266 size_t prev_padding)
267{
268 if (relay_buf_full(buf))
269 return 0;
270
271 return 1;
272}
273
b86ff981
JA
274/*
275 * create_buf_file_create() default callback. Does nothing.
276 */
277static struct dentry *create_buf_file_default_callback(const char *filename,
278 struct dentry *parent,
f4ae40a6 279 umode_t mode,
b86ff981
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280 struct rchan_buf *buf,
281 int *is_global)
282{
283 return NULL;
284}
285
286/*
287 * remove_buf_file() default callback. Does nothing.
288 */
289static int remove_buf_file_default_callback(struct dentry *dentry)
290{
291 return -EINVAL;
292}
293
294/* relay channel default callbacks */
295static struct rchan_callbacks default_channel_callbacks = {
296 .subbuf_start = subbuf_start_default_callback,
b86ff981
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297 .create_buf_file = create_buf_file_default_callback,
298 .remove_buf_file = remove_buf_file_default_callback,
299};
300
301/**
302 * wakeup_readers - wake up readers waiting on a channel
26b5679e 303 * @work: contains the channel buffer
b86ff981 304 *
26b5679e 305 * This is the function used to defer reader waking
b86ff981 306 */
26b5679e 307static void wakeup_readers(struct irq_work *work)
b86ff981 308{
26b5679e
PZ
309 struct rchan_buf *buf;
310
311 buf = container_of(work, struct rchan_buf, wakeup_work);
b86ff981
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312 wake_up_interruptible(&buf->read_wait);
313}
314
315/**
316 * __relay_reset - reset a channel buffer
317 * @buf: the channel buffer
318 * @init: 1 if this is a first-time initialization
319 *
72fd4a35 320 * See relay_reset() for description of effect.
b86ff981 321 */
192636ad 322static void __relay_reset(struct rchan_buf *buf, unsigned int init)
b86ff981
JA
323{
324 size_t i;
325
326 if (init) {
327 init_waitqueue_head(&buf->read_wait);
328 kref_init(&buf->kref);
26b5679e
PZ
329 init_irq_work(&buf->wakeup_work, wakeup_readers);
330 } else {
331 irq_work_sync(&buf->wakeup_work);
332 }
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333
334 buf->subbufs_produced = 0;
335 buf->subbufs_consumed = 0;
336 buf->bytes_consumed = 0;
337 buf->finalized = 0;
338 buf->data = buf->start;
339 buf->offset = 0;
340
341 for (i = 0; i < buf->chan->n_subbufs; i++)
342 buf->padding[i] = 0;
343
344 buf->chan->cb->subbuf_start(buf, buf->data, NULL, 0);
345}
346
347/**
348 * relay_reset - reset the channel
349 * @chan: the channel
350 *
351 * This has the effect of erasing all data from all channel buffers
352 * and restarting the channel in its initial state. The buffers
353 * are not freed, so any mappings are still in effect.
354 *
72fd4a35 355 * NOTE. Care should be taken that the channel isn't actually
b86ff981
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356 * being used by anything when this call is made.
357 */
358void relay_reset(struct rchan *chan)
359{
017c59c0 360 struct rchan_buf *buf;
b86ff981 361 unsigned int i;
b86ff981
JA
362
363 if (!chan)
364 return;
365
017c59c0
AG
366 if (chan->is_global && (buf = *per_cpu_ptr(chan->buf, 0))) {
367 __relay_reset(buf, 0);
23c88752 368 return;
b86ff981 369 }
23c88752
MD
370
371 mutex_lock(&relay_channels_mutex);
98ba4031 372 for_each_possible_cpu(i)
017c59c0
AG
373 if ((buf = *per_cpu_ptr(chan->buf, i)))
374 __relay_reset(buf, 0);
23c88752 375 mutex_unlock(&relay_channels_mutex);
b86ff981
JA
376}
377EXPORT_SYMBOL_GPL(relay_reset);
378
20d8b67c
EGM
379static inline void relay_set_buf_dentry(struct rchan_buf *buf,
380 struct dentry *dentry)
381{
382 buf->dentry = dentry;
7682c918 383 d_inode(buf->dentry)->i_size = buf->early_bytes;
20d8b67c
EGM
384}
385
386static struct dentry *relay_create_buf_file(struct rchan *chan,
387 struct rchan_buf *buf,
388 unsigned int cpu)
389{
390 struct dentry *dentry;
391 char *tmpname;
392
393 tmpname = kzalloc(NAME_MAX + 1, GFP_KERNEL);
394 if (!tmpname)
395 return NULL;
396 snprintf(tmpname, NAME_MAX, "%s%d", chan->base_filename, cpu);
397
398 /* Create file in fs */
399 dentry = chan->cb->create_buf_file(tmpname, chan->parent,
400 S_IRUSR, buf,
401 &chan->is_global);
2c1cf00e
GKH
402 if (IS_ERR(dentry))
403 dentry = NULL;
20d8b67c
EGM
404
405 kfree(tmpname);
406
407 return dentry;
408}
409
4c78a663 410/*
b86ff981
JA
411 * relay_open_buf - create a new relay channel buffer
412 *
23c88752 413 * used by relay_open() and CPU hotplug.
b86ff981 414 */
23c88752 415static struct rchan_buf *relay_open_buf(struct rchan *chan, unsigned int cpu)
b86ff981 416{
23c88752 417 struct rchan_buf *buf = NULL;
b86ff981
JA
418 struct dentry *dentry;
419
23c88752 420 if (chan->is_global)
017c59c0 421 return *per_cpu_ptr(chan->buf, 0);
b86ff981
JA
422
423 buf = relay_create_buf(chan);
424 if (!buf)
20d8b67c
EGM
425 return NULL;
426
427 if (chan->has_base_filename) {
428 dentry = relay_create_buf_file(chan, buf, cpu);
429 if (!dentry)
430 goto free_buf;
431 relay_set_buf_dentry(buf, dentry);
59dbb2a0
AG
432 } else {
433 /* Only retrieve global info, nothing more, nothing less */
434 dentry = chan->cb->create_buf_file(NULL, NULL,
435 S_IRUSR, buf,
436 &chan->is_global);
2c1cf00e 437 if (IS_ERR_OR_NULL(dentry))
59dbb2a0 438 goto free_buf;
20d8b67c 439 }
23c88752
MD
440
441 buf->cpu = cpu;
442 __relay_reset(buf, 1);
b86ff981 443
23c88752 444 if(chan->is_global) {
017c59c0 445 *per_cpu_ptr(chan->buf, 0) = buf;
23c88752
MD
446 buf->cpu = 0;
447 }
448
20d8b67c 449 return buf;
23c88752
MD
450
451free_buf:
452 relay_destroy_buf(buf);
20d8b67c 453 return NULL;
b86ff981
JA
454}
455
456/**
457 * relay_close_buf - close a channel buffer
458 * @buf: channel buffer
459 *
460 * Marks the buffer finalized and restores the default callbacks.
461 * The channel buffer and channel buffer data structure are then freed
462 * automatically when the last reference is given up.
463 */
192636ad 464static void relay_close_buf(struct rchan_buf *buf)
b86ff981
JA
465{
466 buf->finalized = 1;
26b5679e 467 irq_work_sync(&buf->wakeup_work);
b8d4a5bf 468 buf->chan->cb->remove_buf_file(buf->dentry);
b86ff981
JA
469 kref_put(&buf->kref, relay_remove_buf);
470}
471
192636ad 472static void setup_callbacks(struct rchan *chan,
b86ff981
JA
473 struct rchan_callbacks *cb)
474{
475 if (!cb) {
476 chan->cb = &default_channel_callbacks;
477 return;
478 }
479
480 if (!cb->subbuf_start)
481 cb->subbuf_start = subbuf_start_default_callback;
b86ff981
JA
482 if (!cb->create_buf_file)
483 cb->create_buf_file = create_buf_file_default_callback;
484 if (!cb->remove_buf_file)
485 cb->remove_buf_file = remove_buf_file_default_callback;
486 chan->cb = cb;
487}
488
e6d4989a 489int relay_prepare_cpu(unsigned int cpu)
23c88752 490{
23c88752 491 struct rchan *chan;
017c59c0 492 struct rchan_buf *buf;
23c88752 493
e6d4989a
RW
494 mutex_lock(&relay_channels_mutex);
495 list_for_each_entry(chan, &relay_channels, list) {
496 if ((buf = *per_cpu_ptr(chan->buf, cpu)))
497 continue;
498 buf = relay_open_buf(chan, cpu);
499 if (!buf) {
500 pr_err("relay: cpu %d buffer creation failed\n", cpu);
501 mutex_unlock(&relay_channels_mutex);
502 return -ENOMEM;
23c88752 503 }
e6d4989a 504 *per_cpu_ptr(chan->buf, cpu) = buf;
23c88752 505 }
e6d4989a
RW
506 mutex_unlock(&relay_channels_mutex);
507 return 0;
23c88752
MD
508}
509
b86ff981
JA
510/**
511 * relay_open - create a new relay channel
20d8b67c
EGM
512 * @base_filename: base name of files to create, %NULL for buffering only
513 * @parent: dentry of parent directory, %NULL for root directory or buffer
b86ff981
JA
514 * @subbuf_size: size of sub-buffers
515 * @n_subbufs: number of sub-buffers
516 * @cb: client callback functions
23c88752 517 * @private_data: user-defined data
b86ff981 518 *
4c78a663 519 * Returns channel pointer if successful, %NULL otherwise.
b86ff981
JA
520 *
521 * Creates a channel buffer for each cpu using the sizes and
522 * attributes specified. The created channel buffer files
523 * will be named base_filename0...base_filenameN-1. File
72fd4a35 524 * permissions will be %S_IRUSR.
59dbb2a0
AG
525 *
526 * If opening a buffer (@parent = NULL) that you later wish to register
527 * in a filesystem, call relay_late_setup_files() once the @parent dentry
528 * is available.
b86ff981
JA
529 */
530struct rchan *relay_open(const char *base_filename,
531 struct dentry *parent,
532 size_t subbuf_size,
533 size_t n_subbufs,
23c88752
MD
534 struct rchan_callbacks *cb,
535 void *private_data)
b86ff981
JA
536{
537 unsigned int i;
538 struct rchan *chan;
017c59c0 539 struct rchan_buf *buf;
b86ff981
JA
540
541 if (!(subbuf_size && n_subbufs))
542 return NULL;
f6302f1b
DC
543 if (subbuf_size > UINT_MAX / n_subbufs)
544 return NULL;
b86ff981 545
cd861280 546 chan = kzalloc(sizeof(struct rchan), GFP_KERNEL);
b86ff981
JA
547 if (!chan)
548 return NULL;
549
017c59c0 550 chan->buf = alloc_percpu(struct rchan_buf *);
54e200ab
DA
551 if (!chan->buf) {
552 kfree(chan);
553 return NULL;
554 }
555
b86ff981
JA
556 chan->version = RELAYFS_CHANNEL_VERSION;
557 chan->n_subbufs = n_subbufs;
558 chan->subbuf_size = subbuf_size;
a05342cb 559 chan->alloc_size = PAGE_ALIGN(subbuf_size * n_subbufs);
23c88752
MD
560 chan->parent = parent;
561 chan->private_data = private_data;
20d8b67c
EGM
562 if (base_filename) {
563 chan->has_base_filename = 1;
564 strlcpy(chan->base_filename, base_filename, NAME_MAX);
565 }
b86ff981
JA
566 setup_callbacks(chan, cb);
567 kref_init(&chan->kref);
568
23c88752 569 mutex_lock(&relay_channels_mutex);
b86ff981 570 for_each_online_cpu(i) {
017c59c0
AG
571 buf = relay_open_buf(chan, i);
572 if (!buf)
b86ff981 573 goto free_bufs;
017c59c0 574 *per_cpu_ptr(chan->buf, i) = buf;
b86ff981 575 }
23c88752
MD
576 list_add(&chan->list, &relay_channels);
577 mutex_unlock(&relay_channels_mutex);
b86ff981 578
b86ff981
JA
579 return chan;
580
581free_bufs:
98ba4031 582 for_each_possible_cpu(i) {
017c59c0
AG
583 if ((buf = *per_cpu_ptr(chan->buf, i)))
584 relay_close_buf(buf);
b86ff981 585 }
b86ff981 586
b86ff981 587 kref_put(&chan->kref, relay_destroy_channel);
23c88752 588 mutex_unlock(&relay_channels_mutex);
b86ff981
JA
589 return NULL;
590}
591EXPORT_SYMBOL_GPL(relay_open);
592
20d8b67c
EGM
593struct rchan_percpu_buf_dispatcher {
594 struct rchan_buf *buf;
595 struct dentry *dentry;
596};
597
598/* Called in atomic context. */
599static void __relay_set_buf_dentry(void *info)
600{
601 struct rchan_percpu_buf_dispatcher *p = info;
602
603 relay_set_buf_dentry(p->buf, p->dentry);
604}
605
606/**
607 * relay_late_setup_files - triggers file creation
608 * @chan: channel to operate on
609 * @base_filename: base name of files to create
610 * @parent: dentry of parent directory, %NULL for root directory
611 *
612 * Returns 0 if successful, non-zero otherwise.
613 *
59dbb2a0
AG
614 * Use to setup files for a previously buffer-only channel created
615 * by relay_open() with a NULL parent dentry.
616 *
617 * For example, this is useful for perfomring early tracing in kernel,
618 * before VFS is up and then exposing the early results once the dentry
619 * is available.
20d8b67c
EGM
620 */
621int relay_late_setup_files(struct rchan *chan,
622 const char *base_filename,
623 struct dentry *parent)
624{
625 int err = 0;
626 unsigned int i, curr_cpu;
627 unsigned long flags;
628 struct dentry *dentry;
017c59c0 629 struct rchan_buf *buf;
20d8b67c
EGM
630 struct rchan_percpu_buf_dispatcher disp;
631
632 if (!chan || !base_filename)
633 return -EINVAL;
634
635 strlcpy(chan->base_filename, base_filename, NAME_MAX);
636
637 mutex_lock(&relay_channels_mutex);
638 /* Is chan already set up? */
b786c6a9
JS
639 if (unlikely(chan->has_base_filename)) {
640 mutex_unlock(&relay_channels_mutex);
20d8b67c 641 return -EEXIST;
b786c6a9 642 }
20d8b67c
EGM
643 chan->has_base_filename = 1;
644 chan->parent = parent;
59dbb2a0
AG
645
646 if (chan->is_global) {
647 err = -EINVAL;
017c59c0
AG
648 buf = *per_cpu_ptr(chan->buf, 0);
649 if (!WARN_ON_ONCE(!buf)) {
650 dentry = relay_create_buf_file(chan, buf, 0);
59dbb2a0 651 if (dentry && !WARN_ON_ONCE(!chan->is_global)) {
017c59c0 652 relay_set_buf_dentry(buf, dentry);
59dbb2a0
AG
653 err = 0;
654 }
655 }
656 mutex_unlock(&relay_channels_mutex);
657 return err;
658 }
659
20d8b67c
EGM
660 curr_cpu = get_cpu();
661 /*
662 * The CPU hotplug notifier ran before us and created buffers with
663 * no files associated. So it's safe to call relay_setup_buf_file()
664 * on all currently online CPUs.
665 */
666 for_each_online_cpu(i) {
017c59c0
AG
667 buf = *per_cpu_ptr(chan->buf, i);
668 if (unlikely(!buf)) {
7a51cffb 669 WARN_ONCE(1, KERN_ERR "CPU has no buffer!\n");
20d8b67c
EGM
670 err = -EINVAL;
671 break;
672 }
673
017c59c0 674 dentry = relay_create_buf_file(chan, buf, i);
20d8b67c
EGM
675 if (unlikely(!dentry)) {
676 err = -EINVAL;
677 break;
678 }
679
680 if (curr_cpu == i) {
681 local_irq_save(flags);
017c59c0 682 relay_set_buf_dentry(buf, dentry);
20d8b67c
EGM
683 local_irq_restore(flags);
684 } else {
017c59c0 685 disp.buf = buf;
20d8b67c
EGM
686 disp.dentry = dentry;
687 smp_mb();
688 /* relay_channels_mutex must be held, so wait. */
689 err = smp_call_function_single(i,
690 __relay_set_buf_dentry,
691 &disp, 1);
692 }
693 if (unlikely(err))
694 break;
695 }
696 put_cpu();
697 mutex_unlock(&relay_channels_mutex);
698
699 return err;
700}
59dbb2a0 701EXPORT_SYMBOL_GPL(relay_late_setup_files);
20d8b67c 702
b86ff981
JA
703/**
704 * relay_switch_subbuf - switch to a new sub-buffer
705 * @buf: channel buffer
706 * @length: size of current event
707 *
708 * Returns either the length passed in or 0 if full.
709 *
710 * Performs sub-buffer-switch tasks such as invoking callbacks,
711 * updating padding counts, waking up readers, etc.
712 */
713size_t relay_switch_subbuf(struct rchan_buf *buf, size_t length)
714{
715 void *old, *new;
716 size_t old_subbuf, new_subbuf;
717
718 if (unlikely(length > buf->chan->subbuf_size))
719 goto toobig;
720
721 if (buf->offset != buf->chan->subbuf_size + 1) {
722 buf->prev_padding = buf->chan->subbuf_size - buf->offset;
723 old_subbuf = buf->subbufs_produced % buf->chan->n_subbufs;
724 buf->padding[old_subbuf] = buf->prev_padding;
725 buf->subbufs_produced++;
20d8b67c 726 if (buf->dentry)
7682c918 727 d_inode(buf->dentry)->i_size +=
20d8b67c
EGM
728 buf->chan->subbuf_size -
729 buf->padding[old_subbuf];
730 else
731 buf->early_bytes += buf->chan->subbuf_size -
732 buf->padding[old_subbuf];
221415d7 733 smp_mb();
26b5679e 734 if (waitqueue_active(&buf->read_wait)) {
7c9cb383
TZ
735 /*
736 * Calling wake_up_interruptible() from here
737 * will deadlock if we happen to be logging
738 * from the scheduler (trying to re-grab
739 * rq->lock), so defer it.
740 */
26b5679e
PZ
741 irq_work_queue(&buf->wakeup_work);
742 }
b86ff981
JA
743 }
744
745 old = buf->data;
746 new_subbuf = buf->subbufs_produced % buf->chan->n_subbufs;
747 new = buf->start + new_subbuf * buf->chan->subbuf_size;
748 buf->offset = 0;
749 if (!buf->chan->cb->subbuf_start(buf, new, old, buf->prev_padding)) {
750 buf->offset = buf->chan->subbuf_size + 1;
751 return 0;
752 }
753 buf->data = new;
754 buf->padding[new_subbuf] = 0;
755
756 if (unlikely(length + buf->offset > buf->chan->subbuf_size))
757 goto toobig;
758
759 return length;
760
761toobig:
762 buf->chan->last_toobig = length;
763 return 0;
764}
765EXPORT_SYMBOL_GPL(relay_switch_subbuf);
766
767/**
768 * relay_subbufs_consumed - update the buffer's sub-buffers-consumed count
769 * @chan: the channel
770 * @cpu: the cpu associated with the channel buffer to update
771 * @subbufs_consumed: number of sub-buffers to add to current buf's count
772 *
773 * Adds to the channel buffer's consumed sub-buffer count.
774 * subbufs_consumed should be the number of sub-buffers newly consumed,
775 * not the total consumed.
776 *
72fd4a35 777 * NOTE. Kernel clients don't need to call this function if the channel
b86ff981
JA
778 * mode is 'overwrite'.
779 */
780void relay_subbufs_consumed(struct rchan *chan,
781 unsigned int cpu,
782 size_t subbufs_consumed)
783{
784 struct rchan_buf *buf;
785
9a29d0fb 786 if (!chan || cpu >= NR_CPUS)
b86ff981
JA
787 return;
788
017c59c0 789 buf = *per_cpu_ptr(chan->buf, cpu);
9a29d0fb 790 if (!buf || subbufs_consumed > chan->n_subbufs)
b86ff981
JA
791 return;
792
2c53d910 793 if (subbufs_consumed > buf->subbufs_produced - buf->subbufs_consumed)
b86ff981 794 buf->subbufs_consumed = buf->subbufs_produced;
2c53d910
AS
795 else
796 buf->subbufs_consumed += subbufs_consumed;
b86ff981
JA
797}
798EXPORT_SYMBOL_GPL(relay_subbufs_consumed);
799
800/**
801 * relay_close - close the channel
802 * @chan: the channel
803 *
804 * Closes all channel buffers and frees the channel.
805 */
806void relay_close(struct rchan *chan)
807{
017c59c0 808 struct rchan_buf *buf;
b86ff981 809 unsigned int i;
b86ff981
JA
810
811 if (!chan)
812 return;
813
23c88752 814 mutex_lock(&relay_channels_mutex);
017c59c0
AG
815 if (chan->is_global && (buf = *per_cpu_ptr(chan->buf, 0)))
816 relay_close_buf(buf);
23c88752
MD
817 else
818 for_each_possible_cpu(i)
017c59c0
AG
819 if ((buf = *per_cpu_ptr(chan->buf, i)))
820 relay_close_buf(buf);
b86ff981
JA
821
822 if (chan->last_toobig)
823 printk(KERN_WARNING "relay: one or more items not logged "
5b5e0928 824 "[item size (%zd) > sub-buffer size (%zd)]\n",
b86ff981
JA
825 chan->last_toobig, chan->subbuf_size);
826
23c88752 827 list_del(&chan->list);
b86ff981 828 kref_put(&chan->kref, relay_destroy_channel);
23c88752 829 mutex_unlock(&relay_channels_mutex);
b86ff981
JA
830}
831EXPORT_SYMBOL_GPL(relay_close);
832
833/**
834 * relay_flush - close the channel
835 * @chan: the channel
836 *
4c78a663 837 * Flushes all channel buffers, i.e. forces buffer switch.
b86ff981
JA
838 */
839void relay_flush(struct rchan *chan)
840{
017c59c0 841 struct rchan_buf *buf;
b86ff981 842 unsigned int i;
b86ff981
JA
843
844 if (!chan)
845 return;
846
017c59c0
AG
847 if (chan->is_global && (buf = *per_cpu_ptr(chan->buf, 0))) {
848 relay_switch_subbuf(buf, 0);
23c88752 849 return;
b86ff981 850 }
23c88752
MD
851
852 mutex_lock(&relay_channels_mutex);
853 for_each_possible_cpu(i)
017c59c0
AG
854 if ((buf = *per_cpu_ptr(chan->buf, i)))
855 relay_switch_subbuf(buf, 0);
23c88752 856 mutex_unlock(&relay_channels_mutex);
b86ff981
JA
857}
858EXPORT_SYMBOL_GPL(relay_flush);
859
860/**
861 * relay_file_open - open file op for relay files
862 * @inode: the inode
863 * @filp: the file
864 *
865 * Increments the channel buffer refcount.
866 */
867static int relay_file_open(struct inode *inode, struct file *filp)
868{
8e18e294 869 struct rchan_buf *buf = inode->i_private;
b86ff981
JA
870 kref_get(&buf->kref);
871 filp->private_data = buf;
872
37529fe9 873 return nonseekable_open(inode, filp);
b86ff981
JA
874}
875
876/**
877 * relay_file_mmap - mmap file op for relay files
878 * @filp: the file
879 * @vma: the vma describing what to map
880 *
72fd4a35 881 * Calls upon relay_mmap_buf() to map the file into user space.
b86ff981
JA
882 */
883static int relay_file_mmap(struct file *filp, struct vm_area_struct *vma)
884{
885 struct rchan_buf *buf = filp->private_data;
886 return relay_mmap_buf(buf, vma);
887}
888
889/**
890 * relay_file_poll - poll file op for relay files
891 * @filp: the file
892 * @wait: poll table
893 *
894 * Poll implemention.
895 */
9dd95748 896static __poll_t relay_file_poll(struct file *filp, poll_table *wait)
b86ff981 897{
9dd95748 898 __poll_t mask = 0;
b86ff981
JA
899 struct rchan_buf *buf = filp->private_data;
900
901 if (buf->finalized)
a9a08845 902 return EPOLLERR;
b86ff981
JA
903
904 if (filp->f_mode & FMODE_READ) {
905 poll_wait(filp, &buf->read_wait, wait);
906 if (!relay_buf_empty(buf))
a9a08845 907 mask |= EPOLLIN | EPOLLRDNORM;
b86ff981
JA
908 }
909
910 return mask;
911}
912
913/**
914 * relay_file_release - release file op for relay files
915 * @inode: the inode
916 * @filp: the file
917 *
918 * Decrements the channel refcount, as the filesystem is
919 * no longer using it.
920 */
921static int relay_file_release(struct inode *inode, struct file *filp)
922{
923 struct rchan_buf *buf = filp->private_data;
924 kref_put(&buf->kref, relay_remove_buf);
925
926 return 0;
927}
928
4c78a663 929/*
b86ff981
JA
930 * relay_file_read_consume - update the consumed count for the buffer
931 */
932static void relay_file_read_consume(struct rchan_buf *buf,
933 size_t read_pos,
934 size_t bytes_consumed)
935{
936 size_t subbuf_size = buf->chan->subbuf_size;
937 size_t n_subbufs = buf->chan->n_subbufs;
938 size_t read_subbuf;
939
32194450
TZ
940 if (buf->subbufs_produced == buf->subbufs_consumed &&
941 buf->offset == buf->bytes_consumed)
942 return;
943
b86ff981
JA
944 if (buf->bytes_consumed + bytes_consumed > subbuf_size) {
945 relay_subbufs_consumed(buf->chan, buf->cpu, 1);
946 buf->bytes_consumed = 0;
947 }
948
949 buf->bytes_consumed += bytes_consumed;
a66e356c
MH
950 if (!read_pos)
951 read_subbuf = buf->subbufs_consumed % n_subbufs;
952 else
953 read_subbuf = read_pos / buf->chan->subbuf_size;
b86ff981
JA
954 if (buf->bytes_consumed + buf->padding[read_subbuf] == subbuf_size) {
955 if ((read_subbuf == buf->subbufs_produced % n_subbufs) &&
956 (buf->offset == subbuf_size))
957 return;
958 relay_subbufs_consumed(buf->chan, buf->cpu, 1);
959 buf->bytes_consumed = 0;
960 }
961}
962
4c78a663 963/*
b86ff981
JA
964 * relay_file_read_avail - boolean, are there unconsumed bytes available?
965 */
341a7213 966static int relay_file_read_avail(struct rchan_buf *buf)
b86ff981 967{
b86ff981
JA
968 size_t subbuf_size = buf->chan->subbuf_size;
969 size_t n_subbufs = buf->chan->n_subbufs;
221415d7 970 size_t produced = buf->subbufs_produced;
ac05b7a1 971 size_t consumed;
b86ff981 972
341a7213 973 relay_file_read_consume(buf, 0, 0);
b86ff981 974
32194450
TZ
975 consumed = buf->subbufs_consumed;
976
221415d7
JA
977 if (unlikely(buf->offset > subbuf_size)) {
978 if (produced == consumed)
979 return 0;
980 return 1;
b86ff981
JA
981 }
982
221415d7 983 if (unlikely(produced - consumed >= n_subbufs)) {
a66e356c 984 consumed = produced - n_subbufs + 1;
221415d7 985 buf->subbufs_consumed = consumed;
a66e356c 986 buf->bytes_consumed = 0;
221415d7 987 }
1bfbc608 988
221415d7
JA
989 produced = (produced % n_subbufs) * subbuf_size + buf->offset;
990 consumed = (consumed % n_subbufs) * subbuf_size + buf->bytes_consumed;
991
992 if (consumed > produced)
993 produced += n_subbufs * subbuf_size;
1bfbc608 994
32194450
TZ
995 if (consumed == produced) {
996 if (buf->offset == subbuf_size &&
997 buf->subbufs_produced > buf->subbufs_consumed)
998 return 1;
b86ff981 999 return 0;
32194450 1000 }
b86ff981 1001
b86ff981
JA
1002 return 1;
1003}
1004
1005/**
1006 * relay_file_read_subbuf_avail - return bytes available in sub-buffer
4c78a663
RD
1007 * @read_pos: file read position
1008 * @buf: relay channel buffer
b86ff981
JA
1009 */
1010static size_t relay_file_read_subbuf_avail(size_t read_pos,
1011 struct rchan_buf *buf)
1012{
1013 size_t padding, avail = 0;
1014 size_t read_subbuf, read_offset, write_subbuf, write_offset;
1015 size_t subbuf_size = buf->chan->subbuf_size;
1016
1017 write_subbuf = (buf->data - buf->start) / subbuf_size;
1018 write_offset = buf->offset > subbuf_size ? subbuf_size : buf->offset;
1019 read_subbuf = read_pos / subbuf_size;
1020 read_offset = read_pos % subbuf_size;
1021 padding = buf->padding[read_subbuf];
1022
1023 if (read_subbuf == write_subbuf) {
1024 if (read_offset + padding < write_offset)
1025 avail = write_offset - (read_offset + padding);
1026 } else
1027 avail = (subbuf_size - padding) - read_offset;
1028
1029 return avail;
1030}
1031
1032/**
1033 * relay_file_read_start_pos - find the first available byte to read
4c78a663 1034 * @buf: relay channel buffer
b86ff981 1035 *
341a7213 1036 * If the read_pos is in the middle of padding, return the
b86ff981
JA
1037 * position of the first actually available byte, otherwise
1038 * return the original value.
1039 */
341a7213 1040static size_t relay_file_read_start_pos(struct rchan_buf *buf)
b86ff981
JA
1041{
1042 size_t read_subbuf, padding, padding_start, padding_end;
1043 size_t subbuf_size = buf->chan->subbuf_size;
1044 size_t n_subbufs = buf->chan->n_subbufs;
8d62fdeb 1045 size_t consumed = buf->subbufs_consumed % n_subbufs;
341a7213 1046 size_t read_pos = consumed * subbuf_size + buf->bytes_consumed;
b86ff981
JA
1047
1048 read_subbuf = read_pos / subbuf_size;
1049 padding = buf->padding[read_subbuf];
1050 padding_start = (read_subbuf + 1) * subbuf_size - padding;
1051 padding_end = (read_subbuf + 1) * subbuf_size;
1052 if (read_pos >= padding_start && read_pos < padding_end) {
1053 read_subbuf = (read_subbuf + 1) % n_subbufs;
1054 read_pos = read_subbuf * subbuf_size;
1055 }
1056
1057 return read_pos;
1058}
1059
1060/**
1061 * relay_file_read_end_pos - return the new read position
4c78a663
RD
1062 * @read_pos: file read position
1063 * @buf: relay channel buffer
1064 * @count: number of bytes to be read
b86ff981
JA
1065 */
1066static size_t relay_file_read_end_pos(struct rchan_buf *buf,
1067 size_t read_pos,
1068 size_t count)
1069{
1070 size_t read_subbuf, padding, end_pos;
1071 size_t subbuf_size = buf->chan->subbuf_size;
1072 size_t n_subbufs = buf->chan->n_subbufs;
1073
1074 read_subbuf = read_pos / subbuf_size;
1075 padding = buf->padding[read_subbuf];
1076 if (read_pos % subbuf_size + count + padding == subbuf_size)
1077 end_pos = (read_subbuf + 1) * subbuf_size;
1078 else
1079 end_pos = read_pos + count;
1080 if (end_pos >= subbuf_size * n_subbufs)
1081 end_pos = 0;
1082
1083 return end_pos;
1084}
1085
a7c22421
AV
1086static ssize_t relay_file_read(struct file *filp,
1087 char __user *buffer,
1088 size_t count,
1089 loff_t *ppos)
221415d7 1090{
6dac40a7
TZ
1091 struct rchan_buf *buf = filp->private_data;
1092 size_t read_start, avail;
a7c22421 1093 size_t written = 0;
6dac40a7 1094 int ret;
221415d7 1095
a7c22421 1096 if (!count)
221415d7
JA
1097 return 0;
1098
5955102c 1099 inode_lock(file_inode(filp));
221415d7 1100 do {
a7c22421
AV
1101 void *from;
1102
341a7213 1103 if (!relay_file_read_avail(buf))
6dac40a7
TZ
1104 break;
1105
341a7213 1106 read_start = relay_file_read_start_pos(buf);
6dac40a7
TZ
1107 avail = relay_file_read_subbuf_avail(read_start, buf);
1108 if (!avail)
221415d7 1109 break;
221415d7 1110
a7c22421
AV
1111 avail = min(count, avail);
1112 from = buf->start + read_start;
1113 ret = avail;
1114 if (copy_to_user(buffer, from, avail))
6dac40a7
TZ
1115 break;
1116
a7c22421
AV
1117 buffer += ret;
1118 written += ret;
1119 count -= ret;
6dac40a7 1120
a7c22421
AV
1121 relay_file_read_consume(buf, read_start, ret);
1122 *ppos = relay_file_read_end_pos(buf, read_start, ret);
1123 } while (count);
1124 inode_unlock(file_inode(filp));
6dac40a7 1125
a7c22421 1126 return written;
6dac40a7
TZ
1127}
1128
1db60cf2
JA
1129static void relay_consume_bytes(struct rchan_buf *rbuf, int bytes_consumed)
1130{
1131 rbuf->bytes_consumed += bytes_consumed;
1132
1133 if (rbuf->bytes_consumed >= rbuf->chan->subbuf_size) {
1134 relay_subbufs_consumed(rbuf->chan, rbuf->cpu, 1);
1135 rbuf->bytes_consumed %= rbuf->chan->subbuf_size;
1136 }
1137}
1138
ebf99093
TZ
1139static void relay_pipe_buf_release(struct pipe_inode_info *pipe,
1140 struct pipe_buffer *buf)
6dac40a7 1141{
ebf99093
TZ
1142 struct rchan_buf *rbuf;
1143
1144 rbuf = (struct rchan_buf *)page_private(buf->page);
1db60cf2 1145 relay_consume_bytes(rbuf, buf->private);
ebf99093
TZ
1146}
1147
28dfef8f 1148static const struct pipe_buf_operations relay_pipe_buf_ops = {
c928f642
CH
1149 .release = relay_pipe_buf_release,
1150 .try_steal = generic_pipe_buf_try_steal,
1151 .get = generic_pipe_buf_get,
ebf99093
TZ
1152};
1153
5eb7f9fa
JA
1154static void relay_page_release(struct splice_pipe_desc *spd, unsigned int i)
1155{
1156}
1157
d3f35d98 1158/*
ebf99093
TZ
1159 * subbuf_splice_actor - splice up to one subbuf's worth of data
1160 */
5f1664f9 1161static ssize_t subbuf_splice_actor(struct file *in,
ebf99093
TZ
1162 loff_t *ppos,
1163 struct pipe_inode_info *pipe,
1164 size_t len,
1165 unsigned int flags,
1166 int *nonpad_ret)
1167{
5f1664f9 1168 unsigned int pidx, poff, total_len, subbuf_pages, nr_pages;
ebf99093
TZ
1169 struct rchan_buf *rbuf = in->private_data;
1170 unsigned int subbuf_size = rbuf->chan->subbuf_size;
24da24de
TZ
1171 uint64_t pos = (uint64_t) *ppos;
1172 uint32_t alloc_size = (uint32_t) rbuf->chan->alloc_size;
1173 size_t read_start = (size_t) do_div(pos, alloc_size);
ebf99093
TZ
1174 size_t read_subbuf = read_start / subbuf_size;
1175 size_t padding = rbuf->padding[read_subbuf];
1176 size_t nonpad_end = read_subbuf * subbuf_size + subbuf_size - padding;
35f3d14d
JA
1177 struct page *pages[PIPE_DEF_BUFFERS];
1178 struct partial_page partial[PIPE_DEF_BUFFERS];
1db60cf2
JA
1179 struct splice_pipe_desc spd = {
1180 .pages = pages,
1181 .nr_pages = 0,
047fe360 1182 .nr_pages_max = PIPE_DEF_BUFFERS,
1db60cf2 1183 .partial = partial,
1db60cf2 1184 .ops = &relay_pipe_buf_ops,
5eb7f9fa 1185 .spd_release = relay_page_release,
1db60cf2 1186 };
5f1664f9 1187 ssize_t ret;
ebf99093
TZ
1188
1189 if (rbuf->subbufs_produced == rbuf->subbufs_consumed)
1190 return 0;
35f3d14d
JA
1191 if (splice_grow_spd(pipe, &spd))
1192 return -ENOMEM;
ebf99093 1193
1db60cf2
JA
1194 /*
1195 * Adjust read len, if longer than what is available
1196 */
1197 if (len > (subbuf_size - read_start % subbuf_size))
1198 len = subbuf_size - read_start % subbuf_size;
ebf99093
TZ
1199
1200 subbuf_pages = rbuf->chan->alloc_size >> PAGE_SHIFT;
1201 pidx = (read_start / PAGE_SIZE) % subbuf_pages;
1202 poff = read_start & ~PAGE_MASK;
a786c06d 1203 nr_pages = min_t(unsigned int, subbuf_pages, spd.nr_pages_max);
ebf99093 1204
16d54669 1205 for (total_len = 0; spd.nr_pages < nr_pages; spd.nr_pages++) {
1db60cf2
JA
1206 unsigned int this_len, this_end, private;
1207 unsigned int cur_pos = read_start + total_len;
ebf99093 1208
1db60cf2 1209 if (!len)
ebf99093 1210 break;
ebf99093 1211
1db60cf2
JA
1212 this_len = min_t(unsigned long, len, PAGE_SIZE - poff);
1213 private = this_len;
ebf99093 1214
1db60cf2
JA
1215 spd.pages[spd.nr_pages] = rbuf->page_array[pidx];
1216 spd.partial[spd.nr_pages].offset = poff;
ebf99093 1217
1db60cf2
JA
1218 this_end = cur_pos + this_len;
1219 if (this_end >= nonpad_end) {
1220 this_len = nonpad_end - cur_pos;
1221 private = this_len + padding;
ebf99093 1222 }
1db60cf2
JA
1223 spd.partial[spd.nr_pages].len = this_len;
1224 spd.partial[spd.nr_pages].private = private;
ebf99093 1225
1db60cf2
JA
1226 len -= this_len;
1227 total_len += this_len;
1228 poff = 0;
1229 pidx = (pidx + 1) % subbuf_pages;
ebf99093 1230
1db60cf2
JA
1231 if (this_end >= nonpad_end) {
1232 spd.nr_pages++;
ebf99093
TZ
1233 break;
1234 }
ebf99093
TZ
1235 }
1236
35f3d14d 1237 ret = 0;
1db60cf2 1238 if (!spd.nr_pages)
35f3d14d 1239 goto out;
ebf99093 1240
1db60cf2
JA
1241 ret = *nonpad_ret = splice_to_pipe(pipe, &spd);
1242 if (ret < 0 || ret < total_len)
35f3d14d 1243 goto out;
ebf99093 1244
1db60cf2
JA
1245 if (read_start + ret == nonpad_end)
1246 ret += padding;
1247
35f3d14d 1248out:
047fe360
ED
1249 splice_shrink_spd(&spd);
1250 return ret;
ebf99093
TZ
1251}
1252
1253static ssize_t relay_file_splice_read(struct file *in,
1254 loff_t *ppos,
1255 struct pipe_inode_info *pipe,
1256 size_t len,
1257 unsigned int flags)
1258{
1259 ssize_t spliced;
1260 int ret;
1261 int nonpad_ret = 0;
1262
1263 ret = 0;
1264 spliced = 0;
1265
a82c53a0 1266 while (len && !spliced) {
ebf99093
TZ
1267 ret = subbuf_splice_actor(in, ppos, pipe, len, flags, &nonpad_ret);
1268 if (ret < 0)
1269 break;
1270 else if (!ret) {
fbb5b7ae 1271 if (flags & SPLICE_F_NONBLOCK)
ebf99093 1272 ret = -EAGAIN;
fbb5b7ae 1273 break;
ebf99093
TZ
1274 }
1275
1276 *ppos += ret;
1277 if (ret > len)
1278 len = 0;
1279 else
1280 len -= ret;
1281 spliced += nonpad_ret;
1282 nonpad_ret = 0;
1283 }
1284
1285 if (spliced)
1286 return spliced;
1287
1288 return ret;
221415d7
JA
1289}
1290
15ad7cdc 1291const struct file_operations relay_file_operations = {
b86ff981
JA
1292 .open = relay_file_open,
1293 .poll = relay_file_poll,
1294 .mmap = relay_file_mmap,
1295 .read = relay_file_read,
1296 .llseek = no_llseek,
1297 .release = relay_file_release,
ebf99093 1298 .splice_read = relay_file_splice_read,
b86ff981
JA
1299};
1300EXPORT_SYMBOL_GPL(relay_file_operations);