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sink, source: Return early from set_mute()
[pulseaudio] / src / pulsecore / sink.c
1 /***
2 This file is part of PulseAudio.
3
4 Copyright 2004-2006 Lennart Poettering
5 Copyright 2006 Pierre Ossman <ossman@cendio.se> for Cendio AB
6
7 PulseAudio is free software; you can redistribute it and/or modify
8 it under the terms of the GNU Lesser General Public License as published
9 by the Free Software Foundation; either version 2.1 of the License,
10 or (at your option) any later version.
11
12 PulseAudio is distributed in the hope that it will be useful, but
13 WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
15 General Public License for more details.
16
17 You should have received a copy of the GNU Lesser General Public License
18 along with PulseAudio; if not, write to the Free Software
19 Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307
20 USA.
21 ***/
22
23 #ifdef HAVE_CONFIG_H
24 #include <config.h>
25 #endif
26
27 #include <stdio.h>
28 #include <stdlib.h>
29 #include <string.h>
30
31 #include <pulse/introspect.h>
32 #include <pulse/format.h>
33 #include <pulse/utf8.h>
34 #include <pulse/xmalloc.h>
35 #include <pulse/timeval.h>
36 #include <pulse/util.h>
37 #include <pulse/rtclock.h>
38 #include <pulse/internal.h>
39
40 #include <pulsecore/i18n.h>
41 #include <pulsecore/sink-input.h>
42 #include <pulsecore/namereg.h>
43 #include <pulsecore/core-util.h>
44 #include <pulsecore/sample-util.h>
45 #include <pulsecore/mix.h>
46 #include <pulsecore/core-subscribe.h>
47 #include <pulsecore/log.h>
48 #include <pulsecore/macro.h>
49 #include <pulsecore/play-memblockq.h>
50 #include <pulsecore/flist.h>
51
52 #include "sink.h"
53
54 #define MAX_MIX_CHANNELS 32
55 #define MIX_BUFFER_LENGTH (PA_PAGE_SIZE)
56 #define ABSOLUTE_MIN_LATENCY (500)
57 #define ABSOLUTE_MAX_LATENCY (10*PA_USEC_PER_SEC)
58 #define DEFAULT_FIXED_LATENCY (250*PA_USEC_PER_MSEC)
59
60 PA_DEFINE_PUBLIC_CLASS(pa_sink, pa_msgobject);
61
62 struct pa_sink_volume_change {
63 pa_usec_t at;
64 pa_cvolume hw_volume;
65
66 PA_LLIST_FIELDS(pa_sink_volume_change);
67 };
68
69 struct sink_message_set_port {
70 pa_device_port *port;
71 int ret;
72 };
73
74 static void sink_free(pa_object *s);
75
76 static void pa_sink_volume_change_push(pa_sink *s);
77 static void pa_sink_volume_change_flush(pa_sink *s);
78 static void pa_sink_volume_change_rewind(pa_sink *s, size_t nbytes);
79
80 pa_sink_new_data* pa_sink_new_data_init(pa_sink_new_data *data) {
81 pa_assert(data);
82
83 pa_zero(*data);
84 data->proplist = pa_proplist_new();
85 data->ports = pa_hashmap_new_full(pa_idxset_string_hash_func, pa_idxset_string_compare_func, NULL, (pa_free_cb_t) pa_device_port_unref);
86
87 return data;
88 }
89
90 void pa_sink_new_data_set_name(pa_sink_new_data *data, const char *name) {
91 pa_assert(data);
92
93 pa_xfree(data->name);
94 data->name = pa_xstrdup(name);
95 }
96
97 void pa_sink_new_data_set_sample_spec(pa_sink_new_data *data, const pa_sample_spec *spec) {
98 pa_assert(data);
99
100 if ((data->sample_spec_is_set = !!spec))
101 data->sample_spec = *spec;
102 }
103
104 void pa_sink_new_data_set_channel_map(pa_sink_new_data *data, const pa_channel_map *map) {
105 pa_assert(data);
106
107 if ((data->channel_map_is_set = !!map))
108 data->channel_map = *map;
109 }
110
111 void pa_sink_new_data_set_alternate_sample_rate(pa_sink_new_data *data, const uint32_t alternate_sample_rate) {
112 pa_assert(data);
113
114 data->alternate_sample_rate_is_set = true;
115 data->alternate_sample_rate = alternate_sample_rate;
116 }
117
118 void pa_sink_new_data_set_volume(pa_sink_new_data *data, const pa_cvolume *volume) {
119 pa_assert(data);
120
121 if ((data->volume_is_set = !!volume))
122 data->volume = *volume;
123 }
124
125 void pa_sink_new_data_set_muted(pa_sink_new_data *data, bool mute) {
126 pa_assert(data);
127
128 data->muted_is_set = true;
129 data->muted = !!mute;
130 }
131
132 void pa_sink_new_data_set_port(pa_sink_new_data *data, const char *port) {
133 pa_assert(data);
134
135 pa_xfree(data->active_port);
136 data->active_port = pa_xstrdup(port);
137 }
138
139 void pa_sink_new_data_done(pa_sink_new_data *data) {
140 pa_assert(data);
141
142 pa_proplist_free(data->proplist);
143
144 if (data->ports)
145 pa_hashmap_free(data->ports);
146
147 pa_xfree(data->name);
148 pa_xfree(data->active_port);
149 }
150
151 /* Called from main context */
152 static void reset_callbacks(pa_sink *s) {
153 pa_assert(s);
154
155 s->set_state = NULL;
156 s->get_volume = NULL;
157 s->set_volume = NULL;
158 s->write_volume = NULL;
159 s->get_mute = NULL;
160 s->set_mute = NULL;
161 s->request_rewind = NULL;
162 s->update_requested_latency = NULL;
163 s->set_port = NULL;
164 s->get_formats = NULL;
165 s->set_formats = NULL;
166 s->update_rate = NULL;
167 }
168
169 /* Called from main context */
170 pa_sink* pa_sink_new(
171 pa_core *core,
172 pa_sink_new_data *data,
173 pa_sink_flags_t flags) {
174
175 pa_sink *s;
176 const char *name;
177 char st[PA_SAMPLE_SPEC_SNPRINT_MAX], cm[PA_CHANNEL_MAP_SNPRINT_MAX];
178 pa_source_new_data source_data;
179 const char *dn;
180 char *pt;
181
182 pa_assert(core);
183 pa_assert(data);
184 pa_assert(data->name);
185 pa_assert_ctl_context();
186
187 s = pa_msgobject_new(pa_sink);
188
189 if (!(name = pa_namereg_register(core, data->name, PA_NAMEREG_SINK, s, data->namereg_fail))) {
190 pa_log_debug("Failed to register name %s.", data->name);
191 pa_xfree(s);
192 return NULL;
193 }
194
195 pa_sink_new_data_set_name(data, name);
196
197 if (pa_hook_fire(&core->hooks[PA_CORE_HOOK_SINK_NEW], data) < 0) {
198 pa_xfree(s);
199 pa_namereg_unregister(core, name);
200 return NULL;
201 }
202
203 /* FIXME, need to free s here on failure */
204
205 pa_return_null_if_fail(!data->driver || pa_utf8_valid(data->driver));
206 pa_return_null_if_fail(data->name && pa_utf8_valid(data->name) && data->name[0]);
207
208 pa_return_null_if_fail(data->sample_spec_is_set && pa_sample_spec_valid(&data->sample_spec));
209
210 if (!data->channel_map_is_set)
211 pa_return_null_if_fail(pa_channel_map_init_auto(&data->channel_map, data->sample_spec.channels, PA_CHANNEL_MAP_DEFAULT));
212
213 pa_return_null_if_fail(pa_channel_map_valid(&data->channel_map));
214 pa_return_null_if_fail(data->channel_map.channels == data->sample_spec.channels);
215
216 /* FIXME: There should probably be a general function for checking whether
217 * the sink volume is allowed to be set, like there is for sink inputs. */
218 pa_assert(!data->volume_is_set || !(flags & PA_SINK_SHARE_VOLUME_WITH_MASTER));
219
220 if (!data->volume_is_set) {
221 pa_cvolume_reset(&data->volume, data->sample_spec.channels);
222 data->save_volume = false;
223 }
224
225 pa_return_null_if_fail(pa_cvolume_valid(&data->volume));
226 pa_return_null_if_fail(pa_cvolume_compatible(&data->volume, &data->sample_spec));
227
228 if (!data->muted_is_set)
229 data->muted = false;
230
231 if (data->card)
232 pa_proplist_update(data->proplist, PA_UPDATE_MERGE, data->card->proplist);
233
234 pa_device_init_description(data->proplist, data->card);
235 pa_device_init_icon(data->proplist, true);
236 pa_device_init_intended_roles(data->proplist);
237
238 if (!data->active_port) {
239 pa_device_port *p = pa_device_port_find_best(data->ports);
240 if (p)
241 pa_sink_new_data_set_port(data, p->name);
242 }
243
244 if (pa_hook_fire(&core->hooks[PA_CORE_HOOK_SINK_FIXATE], data) < 0) {
245 pa_xfree(s);
246 pa_namereg_unregister(core, name);
247 return NULL;
248 }
249
250 s->parent.parent.free = sink_free;
251 s->parent.process_msg = pa_sink_process_msg;
252
253 s->core = core;
254 s->state = PA_SINK_INIT;
255 s->flags = flags;
256 s->priority = 0;
257 s->suspend_cause = data->suspend_cause;
258 pa_sink_set_mixer_dirty(s, false);
259 s->name = pa_xstrdup(name);
260 s->proplist = pa_proplist_copy(data->proplist);
261 s->driver = pa_xstrdup(pa_path_get_filename(data->driver));
262 s->module = data->module;
263 s->card = data->card;
264
265 s->priority = pa_device_init_priority(s->proplist);
266
267 s->sample_spec = data->sample_spec;
268 s->channel_map = data->channel_map;
269 s->default_sample_rate = s->sample_spec.rate;
270
271 if (data->alternate_sample_rate_is_set)
272 s->alternate_sample_rate = data->alternate_sample_rate;
273 else
274 s->alternate_sample_rate = s->core->alternate_sample_rate;
275
276 if (s->sample_spec.rate == s->alternate_sample_rate) {
277 pa_log_warn("Default and alternate sample rates are the same.");
278 s->alternate_sample_rate = 0;
279 }
280
281 s->inputs = pa_idxset_new(NULL, NULL);
282 s->n_corked = 0;
283 s->input_to_master = NULL;
284
285 s->reference_volume = s->real_volume = data->volume;
286 pa_cvolume_reset(&s->soft_volume, s->sample_spec.channels);
287 s->base_volume = PA_VOLUME_NORM;
288 s->n_volume_steps = PA_VOLUME_NORM+1;
289 s->muted = data->muted;
290 s->refresh_volume = s->refresh_muted = false;
291
292 reset_callbacks(s);
293 s->userdata = NULL;
294
295 s->asyncmsgq = NULL;
296
297 /* As a minor optimization we just steal the list instead of
298 * copying it here */
299 s->ports = data->ports;
300 data->ports = NULL;
301
302 s->active_port = NULL;
303 s->save_port = false;
304
305 if (data->active_port)
306 if ((s->active_port = pa_hashmap_get(s->ports, data->active_port)))
307 s->save_port = data->save_port;
308
309 /* Hopefully the active port has already been assigned in the previous call
310 to pa_device_port_find_best, but better safe than sorry */
311 if (!s->active_port)
312 s->active_port = pa_device_port_find_best(s->ports);
313
314 if (s->active_port)
315 s->latency_offset = s->active_port->latency_offset;
316 else
317 s->latency_offset = 0;
318
319 s->save_volume = data->save_volume;
320 s->save_muted = data->save_muted;
321
322 pa_silence_memchunk_get(
323 &core->silence_cache,
324 core->mempool,
325 &s->silence,
326 &s->sample_spec,
327 0);
328
329 s->thread_info.rtpoll = NULL;
330 s->thread_info.inputs = pa_hashmap_new_full(pa_idxset_trivial_hash_func, pa_idxset_trivial_compare_func, NULL,
331 (pa_free_cb_t) pa_sink_input_unref);
332 s->thread_info.soft_volume = s->soft_volume;
333 s->thread_info.soft_muted = s->muted;
334 s->thread_info.state = s->state;
335 s->thread_info.rewind_nbytes = 0;
336 s->thread_info.rewind_requested = false;
337 s->thread_info.max_rewind = 0;
338 s->thread_info.max_request = 0;
339 s->thread_info.requested_latency_valid = false;
340 s->thread_info.requested_latency = 0;
341 s->thread_info.min_latency = ABSOLUTE_MIN_LATENCY;
342 s->thread_info.max_latency = ABSOLUTE_MAX_LATENCY;
343 s->thread_info.fixed_latency = flags & PA_SINK_DYNAMIC_LATENCY ? 0 : DEFAULT_FIXED_LATENCY;
344
345 PA_LLIST_HEAD_INIT(pa_sink_volume_change, s->thread_info.volume_changes);
346 s->thread_info.volume_changes_tail = NULL;
347 pa_sw_cvolume_multiply(&s->thread_info.current_hw_volume, &s->soft_volume, &s->real_volume);
348 s->thread_info.volume_change_safety_margin = core->deferred_volume_safety_margin_usec;
349 s->thread_info.volume_change_extra_delay = core->deferred_volume_extra_delay_usec;
350 s->thread_info.latency_offset = s->latency_offset;
351
352 /* FIXME: This should probably be moved to pa_sink_put() */
353 pa_assert_se(pa_idxset_put(core->sinks, s, &s->index) >= 0);
354
355 if (s->card)
356 pa_assert_se(pa_idxset_put(s->card->sinks, s, NULL) >= 0);
357
358 pt = pa_proplist_to_string_sep(s->proplist, "\n ");
359 pa_log_info("Created sink %u \"%s\" with sample spec %s and channel map %s\n %s",
360 s->index,
361 s->name,
362 pa_sample_spec_snprint(st, sizeof(st), &s->sample_spec),
363 pa_channel_map_snprint(cm, sizeof(cm), &s->channel_map),
364 pt);
365 pa_xfree(pt);
366
367 pa_source_new_data_init(&source_data);
368 pa_source_new_data_set_sample_spec(&source_data, &s->sample_spec);
369 pa_source_new_data_set_channel_map(&source_data, &s->channel_map);
370 pa_source_new_data_set_alternate_sample_rate(&source_data, s->alternate_sample_rate);
371 source_data.name = pa_sprintf_malloc("%s.monitor", name);
372 source_data.driver = data->driver;
373 source_data.module = data->module;
374 source_data.card = data->card;
375
376 dn = pa_proplist_gets(s->proplist, PA_PROP_DEVICE_DESCRIPTION);
377 pa_proplist_setf(source_data.proplist, PA_PROP_DEVICE_DESCRIPTION, "Monitor of %s", dn ? dn : s->name);
378 pa_proplist_sets(source_data.proplist, PA_PROP_DEVICE_CLASS, "monitor");
379
380 s->monitor_source = pa_source_new(core, &source_data,
381 ((flags & PA_SINK_LATENCY) ? PA_SOURCE_LATENCY : 0) |
382 ((flags & PA_SINK_DYNAMIC_LATENCY) ? PA_SOURCE_DYNAMIC_LATENCY : 0));
383
384 pa_source_new_data_done(&source_data);
385
386 if (!s->monitor_source) {
387 pa_sink_unlink(s);
388 pa_sink_unref(s);
389 return NULL;
390 }
391
392 s->monitor_source->monitor_of = s;
393
394 pa_source_set_latency_range(s->monitor_source, s->thread_info.min_latency, s->thread_info.max_latency);
395 pa_source_set_fixed_latency(s->monitor_source, s->thread_info.fixed_latency);
396 pa_source_set_max_rewind(s->monitor_source, s->thread_info.max_rewind);
397
398 return s;
399 }
400
401 /* Called from main context */
402 static int sink_set_state(pa_sink *s, pa_sink_state_t state) {
403 int ret;
404 bool suspend_change;
405 pa_sink_state_t original_state;
406
407 pa_assert(s);
408 pa_assert_ctl_context();
409
410 if (s->state == state)
411 return 0;
412
413 original_state = s->state;
414
415 suspend_change =
416 (original_state == PA_SINK_SUSPENDED && PA_SINK_IS_OPENED(state)) ||
417 (PA_SINK_IS_OPENED(original_state) && state == PA_SINK_SUSPENDED);
418
419 if (s->set_state)
420 if ((ret = s->set_state(s, state)) < 0)
421 return ret;
422
423 if (s->asyncmsgq)
424 if ((ret = pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_STATE, PA_UINT_TO_PTR(state), 0, NULL)) < 0) {
425
426 if (s->set_state)
427 s->set_state(s, original_state);
428
429 return ret;
430 }
431
432 s->state = state;
433
434 if (state != PA_SINK_UNLINKED) { /* if we enter UNLINKED state pa_sink_unlink() will fire the appropriate events */
435 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_STATE_CHANGED], s);
436 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK | PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
437 }
438
439 if (suspend_change) {
440 pa_sink_input *i;
441 uint32_t idx;
442
443 /* We're suspending or resuming, tell everyone about it */
444
445 PA_IDXSET_FOREACH(i, s->inputs, idx)
446 if (s->state == PA_SINK_SUSPENDED &&
447 (i->flags & PA_SINK_INPUT_KILL_ON_SUSPEND))
448 pa_sink_input_kill(i);
449 else if (i->suspend)
450 i->suspend(i, state == PA_SINK_SUSPENDED);
451
452 if (s->monitor_source)
453 pa_source_sync_suspend(s->monitor_source);
454 }
455
456 return 0;
457 }
458
459 void pa_sink_set_get_volume_callback(pa_sink *s, pa_sink_cb_t cb) {
460 pa_assert(s);
461
462 s->get_volume = cb;
463 }
464
465 void pa_sink_set_set_volume_callback(pa_sink *s, pa_sink_cb_t cb) {
466 pa_sink_flags_t flags;
467
468 pa_assert(s);
469 pa_assert(!s->write_volume || cb);
470
471 s->set_volume = cb;
472
473 /* Save the current flags so we can tell if they've changed */
474 flags = s->flags;
475
476 if (cb) {
477 /* The sink implementor is responsible for setting decibel volume support */
478 s->flags |= PA_SINK_HW_VOLUME_CTRL;
479 } else {
480 s->flags &= ~PA_SINK_HW_VOLUME_CTRL;
481 /* See note below in pa_sink_put() about volume sharing and decibel volumes */
482 pa_sink_enable_decibel_volume(s, !(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER));
483 }
484
485 /* If the flags have changed after init, let any clients know via a change event */
486 if (s->state != PA_SINK_INIT && flags != s->flags)
487 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
488 }
489
490 void pa_sink_set_write_volume_callback(pa_sink *s, pa_sink_cb_t cb) {
491 pa_sink_flags_t flags;
492
493 pa_assert(s);
494 pa_assert(!cb || s->set_volume);
495
496 s->write_volume = cb;
497
498 /* Save the current flags so we can tell if they've changed */
499 flags = s->flags;
500
501 if (cb)
502 s->flags |= PA_SINK_DEFERRED_VOLUME;
503 else
504 s->flags &= ~PA_SINK_DEFERRED_VOLUME;
505
506 /* If the flags have changed after init, let any clients know via a change event */
507 if (s->state != PA_SINK_INIT && flags != s->flags)
508 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
509 }
510
511 void pa_sink_set_get_mute_callback(pa_sink *s, pa_sink_cb_t cb) {
512 pa_assert(s);
513
514 s->get_mute = cb;
515 }
516
517 void pa_sink_set_set_mute_callback(pa_sink *s, pa_sink_cb_t cb) {
518 pa_sink_flags_t flags;
519
520 pa_assert(s);
521
522 s->set_mute = cb;
523
524 /* Save the current flags so we can tell if they've changed */
525 flags = s->flags;
526
527 if (cb)
528 s->flags |= PA_SINK_HW_MUTE_CTRL;
529 else
530 s->flags &= ~PA_SINK_HW_MUTE_CTRL;
531
532 /* If the flags have changed after init, let any clients know via a change event */
533 if (s->state != PA_SINK_INIT && flags != s->flags)
534 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
535 }
536
537 static void enable_flat_volume(pa_sink *s, bool enable) {
538 pa_sink_flags_t flags;
539
540 pa_assert(s);
541
542 /* Always follow the overall user preference here */
543 enable = enable && s->core->flat_volumes;
544
545 /* Save the current flags so we can tell if they've changed */
546 flags = s->flags;
547
548 if (enable)
549 s->flags |= PA_SINK_FLAT_VOLUME;
550 else
551 s->flags &= ~PA_SINK_FLAT_VOLUME;
552
553 /* If the flags have changed after init, let any clients know via a change event */
554 if (s->state != PA_SINK_INIT && flags != s->flags)
555 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
556 }
557
558 void pa_sink_enable_decibel_volume(pa_sink *s, bool enable) {
559 pa_sink_flags_t flags;
560
561 pa_assert(s);
562
563 /* Save the current flags so we can tell if they've changed */
564 flags = s->flags;
565
566 if (enable) {
567 s->flags |= PA_SINK_DECIBEL_VOLUME;
568 enable_flat_volume(s, true);
569 } else {
570 s->flags &= ~PA_SINK_DECIBEL_VOLUME;
571 enable_flat_volume(s, false);
572 }
573
574 /* If the flags have changed after init, let any clients know via a change event */
575 if (s->state != PA_SINK_INIT && flags != s->flags)
576 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
577 }
578
579 /* Called from main context */
580 void pa_sink_put(pa_sink* s) {
581 pa_sink_assert_ref(s);
582 pa_assert_ctl_context();
583
584 pa_assert(s->state == PA_SINK_INIT);
585 pa_assert(!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER) || s->input_to_master);
586
587 /* The following fields must be initialized properly when calling _put() */
588 pa_assert(s->asyncmsgq);
589 pa_assert(s->thread_info.min_latency <= s->thread_info.max_latency);
590
591 /* Generally, flags should be initialized via pa_sink_new(). As a
592 * special exception we allow some volume related flags to be set
593 * between _new() and _put() by the callback setter functions above.
594 *
595 * Thus we implement a couple safeguards here which ensure the above
596 * setters were used (or at least the implementor made manual changes
597 * in a compatible way).
598 *
599 * Note: All of these flags set here can change over the life time
600 * of the sink. */
601 pa_assert(!(s->flags & PA_SINK_HW_VOLUME_CTRL) || s->set_volume);
602 pa_assert(!(s->flags & PA_SINK_DEFERRED_VOLUME) || s->write_volume);
603 pa_assert(!(s->flags & PA_SINK_HW_MUTE_CTRL) || s->set_mute);
604
605 /* XXX: Currently decibel volume is disabled for all sinks that use volume
606 * sharing. When the master sink supports decibel volume, it would be good
607 * to have the flag also in the filter sink, but currently we don't do that
608 * so that the flags of the filter sink never change when it's moved from
609 * a master sink to another. One solution for this problem would be to
610 * remove user-visible volume altogether from filter sinks when volume
611 * sharing is used, but the current approach was easier to implement... */
612 /* We always support decibel volumes in software, otherwise we leave it to
613 * the sink implementor to set this flag as needed.
614 *
615 * Note: This flag can also change over the life time of the sink. */
616 if (!(s->flags & PA_SINK_HW_VOLUME_CTRL) && !(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
617 pa_sink_enable_decibel_volume(s, true);
618
619 /* If the sink implementor support DB volumes by itself, we should always
620 * try and enable flat volumes too */
621 if ((s->flags & PA_SINK_DECIBEL_VOLUME))
622 enable_flat_volume(s, true);
623
624 if (s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER) {
625 pa_sink *root_sink = pa_sink_get_master(s);
626
627 pa_assert(root_sink);
628
629 s->reference_volume = root_sink->reference_volume;
630 pa_cvolume_remap(&s->reference_volume, &root_sink->channel_map, &s->channel_map);
631
632 s->real_volume = root_sink->real_volume;
633 pa_cvolume_remap(&s->real_volume, &root_sink->channel_map, &s->channel_map);
634 } else
635 /* We assume that if the sink implementor changed the default
636 * volume he did so in real_volume, because that is the usual
637 * place where he is supposed to place his changes. */
638 s->reference_volume = s->real_volume;
639
640 s->thread_info.soft_volume = s->soft_volume;
641 s->thread_info.soft_muted = s->muted;
642 pa_sw_cvolume_multiply(&s->thread_info.current_hw_volume, &s->soft_volume, &s->real_volume);
643
644 pa_assert((s->flags & PA_SINK_HW_VOLUME_CTRL)
645 || (s->base_volume == PA_VOLUME_NORM
646 && ((s->flags & PA_SINK_DECIBEL_VOLUME || (s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)))));
647 pa_assert(!(s->flags & PA_SINK_DECIBEL_VOLUME) || s->n_volume_steps == PA_VOLUME_NORM+1);
648 pa_assert(!(s->flags & PA_SINK_DYNAMIC_LATENCY) == (s->thread_info.fixed_latency != 0));
649 pa_assert(!(s->flags & PA_SINK_LATENCY) == !(s->monitor_source->flags & PA_SOURCE_LATENCY));
650 pa_assert(!(s->flags & PA_SINK_DYNAMIC_LATENCY) == !(s->monitor_source->flags & PA_SOURCE_DYNAMIC_LATENCY));
651
652 pa_assert(s->monitor_source->thread_info.fixed_latency == s->thread_info.fixed_latency);
653 pa_assert(s->monitor_source->thread_info.min_latency == s->thread_info.min_latency);
654 pa_assert(s->monitor_source->thread_info.max_latency == s->thread_info.max_latency);
655
656 if (s->suspend_cause)
657 pa_assert_se(sink_set_state(s, PA_SINK_SUSPENDED) == 0);
658 else
659 pa_assert_se(sink_set_state(s, PA_SINK_IDLE) == 0);
660
661 pa_source_put(s->monitor_source);
662
663 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK | PA_SUBSCRIPTION_EVENT_NEW, s->index);
664 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_PUT], s);
665 }
666
667 /* Called from main context */
668 void pa_sink_unlink(pa_sink* s) {
669 bool linked;
670 pa_sink_input *i, *j = NULL;
671
672 pa_assert(s);
673 pa_assert_ctl_context();
674
675 /* Please note that pa_sink_unlink() does more than simply
676 * reversing pa_sink_put(). It also undoes the registrations
677 * already done in pa_sink_new()! */
678
679 /* All operations here shall be idempotent, i.e. pa_sink_unlink()
680 * may be called multiple times on the same sink without bad
681 * effects. */
682
683 linked = PA_SINK_IS_LINKED(s->state);
684
685 if (linked)
686 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_UNLINK], s);
687
688 if (s->state != PA_SINK_UNLINKED)
689 pa_namereg_unregister(s->core, s->name);
690 pa_idxset_remove_by_data(s->core->sinks, s, NULL);
691
692 if (s->card)
693 pa_idxset_remove_by_data(s->card->sinks, s, NULL);
694
695 while ((i = pa_idxset_first(s->inputs, NULL))) {
696 pa_assert(i != j);
697 pa_sink_input_kill(i);
698 j = i;
699 }
700
701 if (linked)
702 sink_set_state(s, PA_SINK_UNLINKED);
703 else
704 s->state = PA_SINK_UNLINKED;
705
706 reset_callbacks(s);
707
708 if (s->monitor_source)
709 pa_source_unlink(s->monitor_source);
710
711 if (linked) {
712 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK | PA_SUBSCRIPTION_EVENT_REMOVE, s->index);
713 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_UNLINK_POST], s);
714 }
715 }
716
717 /* Called from main context */
718 static void sink_free(pa_object *o) {
719 pa_sink *s = PA_SINK(o);
720
721 pa_assert(s);
722 pa_assert_ctl_context();
723 pa_assert(pa_sink_refcnt(s) == 0);
724
725 if (PA_SINK_IS_LINKED(s->state))
726 pa_sink_unlink(s);
727
728 pa_log_info("Freeing sink %u \"%s\"", s->index, s->name);
729
730 if (s->monitor_source) {
731 pa_source_unref(s->monitor_source);
732 s->monitor_source = NULL;
733 }
734
735 pa_idxset_free(s->inputs, NULL);
736 pa_hashmap_free(s->thread_info.inputs);
737
738 if (s->silence.memblock)
739 pa_memblock_unref(s->silence.memblock);
740
741 pa_xfree(s->name);
742 pa_xfree(s->driver);
743
744 if (s->proplist)
745 pa_proplist_free(s->proplist);
746
747 if (s->ports)
748 pa_hashmap_free(s->ports);
749
750 pa_xfree(s);
751 }
752
753 /* Called from main context, and not while the IO thread is active, please */
754 void pa_sink_set_asyncmsgq(pa_sink *s, pa_asyncmsgq *q) {
755 pa_sink_assert_ref(s);
756 pa_assert_ctl_context();
757
758 s->asyncmsgq = q;
759
760 if (s->monitor_source)
761 pa_source_set_asyncmsgq(s->monitor_source, q);
762 }
763
764 /* Called from main context, and not while the IO thread is active, please */
765 void pa_sink_update_flags(pa_sink *s, pa_sink_flags_t mask, pa_sink_flags_t value) {
766 pa_sink_flags_t old_flags;
767 pa_sink_input *input;
768 uint32_t idx;
769
770 pa_sink_assert_ref(s);
771 pa_assert_ctl_context();
772
773 /* For now, allow only a minimal set of flags to be changed. */
774 pa_assert((mask & ~(PA_SINK_DYNAMIC_LATENCY|PA_SINK_LATENCY)) == 0);
775
776 old_flags = s->flags;
777 s->flags = (s->flags & ~mask) | (value & mask);
778
779 if (s->flags == old_flags)
780 return;
781
782 if ((s->flags & PA_SINK_LATENCY) != (old_flags & PA_SINK_LATENCY))
783 pa_log_debug("Sink %s: LATENCY flag %s.", s->name, (s->flags & PA_SINK_LATENCY) ? "enabled" : "disabled");
784
785 if ((s->flags & PA_SINK_DYNAMIC_LATENCY) != (old_flags & PA_SINK_DYNAMIC_LATENCY))
786 pa_log_debug("Sink %s: DYNAMIC_LATENCY flag %s.",
787 s->name, (s->flags & PA_SINK_DYNAMIC_LATENCY) ? "enabled" : "disabled");
788
789 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK | PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
790 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_FLAGS_CHANGED], s);
791
792 if (s->monitor_source)
793 pa_source_update_flags(s->monitor_source,
794 ((mask & PA_SINK_LATENCY) ? PA_SOURCE_LATENCY : 0) |
795 ((mask & PA_SINK_DYNAMIC_LATENCY) ? PA_SOURCE_DYNAMIC_LATENCY : 0),
796 ((value & PA_SINK_LATENCY) ? PA_SOURCE_LATENCY : 0) |
797 ((value & PA_SINK_DYNAMIC_LATENCY) ? PA_SOURCE_DYNAMIC_LATENCY : 0));
798
799 PA_IDXSET_FOREACH(input, s->inputs, idx) {
800 if (input->origin_sink)
801 pa_sink_update_flags(input->origin_sink, mask, value);
802 }
803 }
804
805 /* Called from IO context, or before _put() from main context */
806 void pa_sink_set_rtpoll(pa_sink *s, pa_rtpoll *p) {
807 pa_sink_assert_ref(s);
808 pa_sink_assert_io_context(s);
809
810 s->thread_info.rtpoll = p;
811
812 if (s->monitor_source)
813 pa_source_set_rtpoll(s->monitor_source, p);
814 }
815
816 /* Called from main context */
817 int pa_sink_update_status(pa_sink*s) {
818 pa_sink_assert_ref(s);
819 pa_assert_ctl_context();
820 pa_assert(PA_SINK_IS_LINKED(s->state));
821
822 if (s->state == PA_SINK_SUSPENDED)
823 return 0;
824
825 return sink_set_state(s, pa_sink_used_by(s) ? PA_SINK_RUNNING : PA_SINK_IDLE);
826 }
827
828 /* Called from any context - must be threadsafe */
829 void pa_sink_set_mixer_dirty(pa_sink *s, bool is_dirty) {
830 pa_atomic_store(&s->mixer_dirty, is_dirty ? 1 : 0);
831 }
832
833 /* Called from main context */
834 int pa_sink_suspend(pa_sink *s, bool suspend, pa_suspend_cause_t cause) {
835 pa_sink_assert_ref(s);
836 pa_assert_ctl_context();
837 pa_assert(PA_SINK_IS_LINKED(s->state));
838 pa_assert(cause != 0);
839
840 if (suspend) {
841 s->suspend_cause |= cause;
842 s->monitor_source->suspend_cause |= cause;
843 } else {
844 s->suspend_cause &= ~cause;
845 s->monitor_source->suspend_cause &= ~cause;
846 }
847
848 if (!(s->suspend_cause & PA_SUSPEND_SESSION) && (pa_atomic_load(&s->mixer_dirty) != 0)) {
849 /* This might look racy but isn't: If somebody sets mixer_dirty exactly here,
850 it'll be handled just fine. */
851 pa_sink_set_mixer_dirty(s, false);
852 pa_log_debug("Mixer is now accessible. Updating alsa mixer settings.");
853 if (s->active_port && s->set_port) {
854 if (s->flags & PA_SINK_DEFERRED_VOLUME) {
855 struct sink_message_set_port msg = { .port = s->active_port, .ret = 0 };
856 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_PORT, &msg, 0, NULL) == 0);
857 }
858 else
859 s->set_port(s, s->active_port);
860 }
861 else {
862 if (s->set_mute)
863 s->set_mute(s);
864 if (s->set_volume)
865 s->set_volume(s);
866 }
867 }
868
869 if ((pa_sink_get_state(s) == PA_SINK_SUSPENDED) == !!s->suspend_cause)
870 return 0;
871
872 pa_log_debug("Suspend cause of sink %s is 0x%04x, %s", s->name, s->suspend_cause, s->suspend_cause ? "suspending" : "resuming");
873
874 if (s->suspend_cause)
875 return sink_set_state(s, PA_SINK_SUSPENDED);
876 else
877 return sink_set_state(s, pa_sink_used_by(s) ? PA_SINK_RUNNING : PA_SINK_IDLE);
878 }
879
880 /* Called from main context */
881 pa_queue *pa_sink_move_all_start(pa_sink *s, pa_queue *q) {
882 pa_sink_input *i, *n;
883 uint32_t idx;
884
885 pa_sink_assert_ref(s);
886 pa_assert_ctl_context();
887 pa_assert(PA_SINK_IS_LINKED(s->state));
888
889 if (!q)
890 q = pa_queue_new();
891
892 for (i = PA_SINK_INPUT(pa_idxset_first(s->inputs, &idx)); i; i = n) {
893 n = PA_SINK_INPUT(pa_idxset_next(s->inputs, &idx));
894
895 pa_sink_input_ref(i);
896
897 if (pa_sink_input_start_move(i) >= 0)
898 pa_queue_push(q, i);
899 else
900 pa_sink_input_unref(i);
901 }
902
903 return q;
904 }
905
906 /* Called from main context */
907 void pa_sink_move_all_finish(pa_sink *s, pa_queue *q, bool save) {
908 pa_sink_input *i;
909
910 pa_sink_assert_ref(s);
911 pa_assert_ctl_context();
912 pa_assert(PA_SINK_IS_LINKED(s->state));
913 pa_assert(q);
914
915 while ((i = PA_SINK_INPUT(pa_queue_pop(q)))) {
916 if (pa_sink_input_finish_move(i, s, save) < 0)
917 pa_sink_input_fail_move(i);
918
919 pa_sink_input_unref(i);
920 }
921
922 pa_queue_free(q, NULL);
923 }
924
925 /* Called from main context */
926 void pa_sink_move_all_fail(pa_queue *q) {
927 pa_sink_input *i;
928
929 pa_assert_ctl_context();
930 pa_assert(q);
931
932 while ((i = PA_SINK_INPUT(pa_queue_pop(q)))) {
933 pa_sink_input_fail_move(i);
934 pa_sink_input_unref(i);
935 }
936
937 pa_queue_free(q, NULL);
938 }
939
940 /* Called from IO thread context */
941 size_t pa_sink_process_input_underruns(pa_sink *s, size_t left_to_play) {
942 pa_sink_input *i;
943 void *state = NULL;
944 size_t result = 0;
945
946 pa_sink_assert_ref(s);
947 pa_sink_assert_io_context(s);
948
949 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state) {
950 size_t uf = i->thread_info.underrun_for_sink;
951 if (uf == 0)
952 continue;
953 if (uf >= left_to_play) {
954 if (pa_sink_input_process_underrun(i))
955 continue;
956 }
957 else if (uf > result)
958 result = uf;
959 }
960
961 if (result > 0)
962 pa_log_debug("Found underrun %ld bytes ago (%ld bytes ahead in playback buffer)", (long) result, (long) left_to_play - result);
963 return left_to_play - result;
964 }
965
966 /* Called from IO thread context */
967 void pa_sink_process_rewind(pa_sink *s, size_t nbytes) {
968 pa_sink_input *i;
969 void *state = NULL;
970
971 pa_sink_assert_ref(s);
972 pa_sink_assert_io_context(s);
973 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
974
975 /* If nobody requested this and this is actually no real rewind
976 * then we can short cut this. Please note that this means that
977 * not all rewind requests triggered upstream will always be
978 * translated in actual requests! */
979 if (!s->thread_info.rewind_requested && nbytes <= 0)
980 return;
981
982 s->thread_info.rewind_nbytes = 0;
983 s->thread_info.rewind_requested = false;
984
985 if (nbytes > 0) {
986 pa_log_debug("Processing rewind...");
987 if (s->flags & PA_SINK_DEFERRED_VOLUME)
988 pa_sink_volume_change_rewind(s, nbytes);
989 }
990
991 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state) {
992 pa_sink_input_assert_ref(i);
993 pa_sink_input_process_rewind(i, nbytes);
994 }
995
996 if (nbytes > 0) {
997 if (s->monitor_source && PA_SOURCE_IS_LINKED(s->monitor_source->thread_info.state))
998 pa_source_process_rewind(s->monitor_source, nbytes);
999 }
1000 }
1001
1002 /* Called from IO thread context */
1003 static unsigned fill_mix_info(pa_sink *s, size_t *length, pa_mix_info *info, unsigned maxinfo) {
1004 pa_sink_input *i;
1005 unsigned n = 0;
1006 void *state = NULL;
1007 size_t mixlength = *length;
1008
1009 pa_sink_assert_ref(s);
1010 pa_sink_assert_io_context(s);
1011 pa_assert(info);
1012
1013 while ((i = pa_hashmap_iterate(s->thread_info.inputs, &state, NULL)) && maxinfo > 0) {
1014 pa_sink_input_assert_ref(i);
1015
1016 pa_sink_input_peek(i, *length, &info->chunk, &info->volume);
1017
1018 if (mixlength == 0 || info->chunk.length < mixlength)
1019 mixlength = info->chunk.length;
1020
1021 if (pa_memblock_is_silence(info->chunk.memblock)) {
1022 pa_memblock_unref(info->chunk.memblock);
1023 continue;
1024 }
1025
1026 info->userdata = pa_sink_input_ref(i);
1027
1028 pa_assert(info->chunk.memblock);
1029 pa_assert(info->chunk.length > 0);
1030
1031 info++;
1032 n++;
1033 maxinfo--;
1034 }
1035
1036 if (mixlength > 0)
1037 *length = mixlength;
1038
1039 return n;
1040 }
1041
1042 /* Called from IO thread context */
1043 static void inputs_drop(pa_sink *s, pa_mix_info *info, unsigned n, pa_memchunk *result) {
1044 pa_sink_input *i;
1045 void *state;
1046 unsigned p = 0;
1047 unsigned n_unreffed = 0;
1048
1049 pa_sink_assert_ref(s);
1050 pa_sink_assert_io_context(s);
1051 pa_assert(result);
1052 pa_assert(result->memblock);
1053 pa_assert(result->length > 0);
1054
1055 /* We optimize for the case where the order of the inputs has not changed */
1056
1057 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state) {
1058 unsigned j;
1059 pa_mix_info* m = NULL;
1060
1061 pa_sink_input_assert_ref(i);
1062
1063 /* Let's try to find the matching entry info the pa_mix_info array */
1064 for (j = 0; j < n; j ++) {
1065
1066 if (info[p].userdata == i) {
1067 m = info + p;
1068 break;
1069 }
1070
1071 p++;
1072 if (p >= n)
1073 p = 0;
1074 }
1075
1076 /* Drop read data */
1077 pa_sink_input_drop(i, result->length);
1078
1079 if (s->monitor_source && PA_SOURCE_IS_LINKED(s->monitor_source->thread_info.state)) {
1080
1081 if (pa_hashmap_size(i->thread_info.direct_outputs) > 0) {
1082 void *ostate = NULL;
1083 pa_source_output *o;
1084 pa_memchunk c;
1085
1086 if (m && m->chunk.memblock) {
1087 c = m->chunk;
1088 pa_memblock_ref(c.memblock);
1089 pa_assert(result->length <= c.length);
1090 c.length = result->length;
1091
1092 pa_memchunk_make_writable(&c, 0);
1093 pa_volume_memchunk(&c, &s->sample_spec, &m->volume);
1094 } else {
1095 c = s->silence;
1096 pa_memblock_ref(c.memblock);
1097 pa_assert(result->length <= c.length);
1098 c.length = result->length;
1099 }
1100
1101 while ((o = pa_hashmap_iterate(i->thread_info.direct_outputs, &ostate, NULL))) {
1102 pa_source_output_assert_ref(o);
1103 pa_assert(o->direct_on_input == i);
1104 pa_source_post_direct(s->monitor_source, o, &c);
1105 }
1106
1107 pa_memblock_unref(c.memblock);
1108 }
1109 }
1110
1111 if (m) {
1112 if (m->chunk.memblock) {
1113 pa_memblock_unref(m->chunk.memblock);
1114 pa_memchunk_reset(&m->chunk);
1115 }
1116
1117 pa_sink_input_unref(m->userdata);
1118 m->userdata = NULL;
1119
1120 n_unreffed += 1;
1121 }
1122 }
1123
1124 /* Now drop references to entries that are included in the
1125 * pa_mix_info array but don't exist anymore */
1126
1127 if (n_unreffed < n) {
1128 for (; n > 0; info++, n--) {
1129 if (info->userdata)
1130 pa_sink_input_unref(info->userdata);
1131 if (info->chunk.memblock)
1132 pa_memblock_unref(info->chunk.memblock);
1133 }
1134 }
1135
1136 if (s->monitor_source && PA_SOURCE_IS_LINKED(s->monitor_source->thread_info.state))
1137 pa_source_post(s->monitor_source, result);
1138 }
1139
1140 /* Called from IO thread context */
1141 void pa_sink_render(pa_sink*s, size_t length, pa_memchunk *result) {
1142 pa_mix_info info[MAX_MIX_CHANNELS];
1143 unsigned n;
1144 size_t block_size_max;
1145
1146 pa_sink_assert_ref(s);
1147 pa_sink_assert_io_context(s);
1148 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
1149 pa_assert(pa_frame_aligned(length, &s->sample_spec));
1150 pa_assert(result);
1151
1152 pa_assert(!s->thread_info.rewind_requested);
1153 pa_assert(s->thread_info.rewind_nbytes == 0);
1154
1155 if (s->thread_info.state == PA_SINK_SUSPENDED) {
1156 result->memblock = pa_memblock_ref(s->silence.memblock);
1157 result->index = s->silence.index;
1158 result->length = PA_MIN(s->silence.length, length);
1159 return;
1160 }
1161
1162 pa_sink_ref(s);
1163
1164 if (length <= 0)
1165 length = pa_frame_align(MIX_BUFFER_LENGTH, &s->sample_spec);
1166
1167 block_size_max = pa_mempool_block_size_max(s->core->mempool);
1168 if (length > block_size_max)
1169 length = pa_frame_align(block_size_max, &s->sample_spec);
1170
1171 pa_assert(length > 0);
1172
1173 n = fill_mix_info(s, &length, info, MAX_MIX_CHANNELS);
1174
1175 if (n == 0) {
1176
1177 *result = s->silence;
1178 pa_memblock_ref(result->memblock);
1179
1180 if (result->length > length)
1181 result->length = length;
1182
1183 } else if (n == 1) {
1184 pa_cvolume volume;
1185
1186 *result = info[0].chunk;
1187 pa_memblock_ref(result->memblock);
1188
1189 if (result->length > length)
1190 result->length = length;
1191
1192 pa_sw_cvolume_multiply(&volume, &s->thread_info.soft_volume, &info[0].volume);
1193
1194 if (s->thread_info.soft_muted || pa_cvolume_is_muted(&volume)) {
1195 pa_memblock_unref(result->memblock);
1196 pa_silence_memchunk_get(&s->core->silence_cache,
1197 s->core->mempool,
1198 result,
1199 &s->sample_spec,
1200 result->length);
1201 } else if (!pa_cvolume_is_norm(&volume)) {
1202 pa_memchunk_make_writable(result, 0);
1203 pa_volume_memchunk(result, &s->sample_spec, &volume);
1204 }
1205 } else {
1206 void *ptr;
1207 result->memblock = pa_memblock_new(s->core->mempool, length);
1208
1209 ptr = pa_memblock_acquire(result->memblock);
1210 result->length = pa_mix(info, n,
1211 ptr, length,
1212 &s->sample_spec,
1213 &s->thread_info.soft_volume,
1214 s->thread_info.soft_muted);
1215 pa_memblock_release(result->memblock);
1216
1217 result->index = 0;
1218 }
1219
1220 inputs_drop(s, info, n, result);
1221
1222 pa_sink_unref(s);
1223 }
1224
1225 /* Called from IO thread context */
1226 void pa_sink_render_into(pa_sink*s, pa_memchunk *target) {
1227 pa_mix_info info[MAX_MIX_CHANNELS];
1228 unsigned n;
1229 size_t length, block_size_max;
1230
1231 pa_sink_assert_ref(s);
1232 pa_sink_assert_io_context(s);
1233 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
1234 pa_assert(target);
1235 pa_assert(target->memblock);
1236 pa_assert(target->length > 0);
1237 pa_assert(pa_frame_aligned(target->length, &s->sample_spec));
1238
1239 pa_assert(!s->thread_info.rewind_requested);
1240 pa_assert(s->thread_info.rewind_nbytes == 0);
1241
1242 if (s->thread_info.state == PA_SINK_SUSPENDED) {
1243 pa_silence_memchunk(target, &s->sample_spec);
1244 return;
1245 }
1246
1247 pa_sink_ref(s);
1248
1249 length = target->length;
1250 block_size_max = pa_mempool_block_size_max(s->core->mempool);
1251 if (length > block_size_max)
1252 length = pa_frame_align(block_size_max, &s->sample_spec);
1253
1254 pa_assert(length > 0);
1255
1256 n = fill_mix_info(s, &length, info, MAX_MIX_CHANNELS);
1257
1258 if (n == 0) {
1259 if (target->length > length)
1260 target->length = length;
1261
1262 pa_silence_memchunk(target, &s->sample_spec);
1263 } else if (n == 1) {
1264 pa_cvolume volume;
1265
1266 if (target->length > length)
1267 target->length = length;
1268
1269 pa_sw_cvolume_multiply(&volume, &s->thread_info.soft_volume, &info[0].volume);
1270
1271 if (s->thread_info.soft_muted || pa_cvolume_is_muted(&volume))
1272 pa_silence_memchunk(target, &s->sample_spec);
1273 else {
1274 pa_memchunk vchunk;
1275
1276 vchunk = info[0].chunk;
1277 pa_memblock_ref(vchunk.memblock);
1278
1279 if (vchunk.length > length)
1280 vchunk.length = length;
1281
1282 if (!pa_cvolume_is_norm(&volume)) {
1283 pa_memchunk_make_writable(&vchunk, 0);
1284 pa_volume_memchunk(&vchunk, &s->sample_spec, &volume);
1285 }
1286
1287 pa_memchunk_memcpy(target, &vchunk);
1288 pa_memblock_unref(vchunk.memblock);
1289 }
1290
1291 } else {
1292 void *ptr;
1293
1294 ptr = pa_memblock_acquire(target->memblock);
1295
1296 target->length = pa_mix(info, n,
1297 (uint8_t*) ptr + target->index, length,
1298 &s->sample_spec,
1299 &s->thread_info.soft_volume,
1300 s->thread_info.soft_muted);
1301
1302 pa_memblock_release(target->memblock);
1303 }
1304
1305 inputs_drop(s, info, n, target);
1306
1307 pa_sink_unref(s);
1308 }
1309
1310 /* Called from IO thread context */
1311 void pa_sink_render_into_full(pa_sink *s, pa_memchunk *target) {
1312 pa_memchunk chunk;
1313 size_t l, d;
1314
1315 pa_sink_assert_ref(s);
1316 pa_sink_assert_io_context(s);
1317 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
1318 pa_assert(target);
1319 pa_assert(target->memblock);
1320 pa_assert(target->length > 0);
1321 pa_assert(pa_frame_aligned(target->length, &s->sample_spec));
1322
1323 pa_assert(!s->thread_info.rewind_requested);
1324 pa_assert(s->thread_info.rewind_nbytes == 0);
1325
1326 if (s->thread_info.state == PA_SINK_SUSPENDED) {
1327 pa_silence_memchunk(target, &s->sample_spec);
1328 return;
1329 }
1330
1331 pa_sink_ref(s);
1332
1333 l = target->length;
1334 d = 0;
1335 while (l > 0) {
1336 chunk = *target;
1337 chunk.index += d;
1338 chunk.length -= d;
1339
1340 pa_sink_render_into(s, &chunk);
1341
1342 d += chunk.length;
1343 l -= chunk.length;
1344 }
1345
1346 pa_sink_unref(s);
1347 }
1348
1349 /* Called from IO thread context */
1350 void pa_sink_render_full(pa_sink *s, size_t length, pa_memchunk *result) {
1351 pa_sink_assert_ref(s);
1352 pa_sink_assert_io_context(s);
1353 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
1354 pa_assert(length > 0);
1355 pa_assert(pa_frame_aligned(length, &s->sample_spec));
1356 pa_assert(result);
1357
1358 pa_assert(!s->thread_info.rewind_requested);
1359 pa_assert(s->thread_info.rewind_nbytes == 0);
1360
1361 pa_sink_ref(s);
1362
1363 pa_sink_render(s, length, result);
1364
1365 if (result->length < length) {
1366 pa_memchunk chunk;
1367
1368 pa_memchunk_make_writable(result, length);
1369
1370 chunk.memblock = result->memblock;
1371 chunk.index = result->index + result->length;
1372 chunk.length = length - result->length;
1373
1374 pa_sink_render_into_full(s, &chunk);
1375
1376 result->length = length;
1377 }
1378
1379 pa_sink_unref(s);
1380 }
1381
1382 /* Called from main thread */
1383 int pa_sink_update_rate(pa_sink *s, uint32_t rate, bool passthrough) {
1384 int ret = -1;
1385 uint32_t desired_rate = rate;
1386 uint32_t default_rate = s->default_sample_rate;
1387 uint32_t alternate_rate = s->alternate_sample_rate;
1388 uint32_t idx;
1389 pa_sink_input *i;
1390 bool use_alternate = false;
1391
1392 if (rate == s->sample_spec.rate)
1393 return 0;
1394
1395 if (!s->update_rate)
1396 return -1;
1397
1398 if (PA_UNLIKELY(default_rate == alternate_rate && !passthrough)) {
1399 pa_log_debug("Default and alternate sample rates are the same.");
1400 return -1;
1401 }
1402
1403 if (PA_SINK_IS_RUNNING(s->state)) {
1404 pa_log_info("Cannot update rate, SINK_IS_RUNNING, will keep using %u Hz",
1405 s->sample_spec.rate);
1406 return -1;
1407 }
1408
1409 if (s->monitor_source) {
1410 if (PA_SOURCE_IS_RUNNING(s->monitor_source->state) == true) {
1411 pa_log_info("Cannot update rate, monitor source is RUNNING");
1412 return -1;
1413 }
1414 }
1415
1416 if (PA_UNLIKELY(!pa_sample_rate_valid(desired_rate)))
1417 return -1;
1418
1419 if (!passthrough) {
1420 pa_assert((default_rate % 4000 == 0) || (default_rate % 11025 == 0));
1421 pa_assert((alternate_rate % 4000 == 0) || (alternate_rate % 11025 == 0));
1422
1423 if (default_rate % 11025 == 0) {
1424 if ((alternate_rate % 4000 == 0) && (desired_rate % 4000 == 0))
1425 use_alternate=true;
1426 } else {
1427 /* default is 4000 multiple */
1428 if ((alternate_rate % 11025 == 0) && (desired_rate % 11025 == 0))
1429 use_alternate=true;
1430 }
1431
1432 if (use_alternate)
1433 desired_rate = alternate_rate;
1434 else
1435 desired_rate = default_rate;
1436 } else {
1437 desired_rate = rate; /* use stream sampling rate, discard default/alternate settings */
1438 }
1439
1440 if (desired_rate == s->sample_spec.rate)
1441 return -1;
1442
1443 if (!passthrough && pa_sink_used_by(s) > 0)
1444 return -1;
1445
1446 pa_log_debug("Suspending sink %s due to changing the sample rate.", s->name);
1447 pa_sink_suspend(s, true, PA_SUSPEND_INTERNAL);
1448
1449 if (s->update_rate(s, desired_rate) >= 0) {
1450 /* update monitor source as well */
1451 if (s->monitor_source && !passthrough)
1452 pa_source_update_rate(s->monitor_source, desired_rate, false);
1453 pa_log_info("Changed sampling rate successfully");
1454
1455 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1456 if (i->state == PA_SINK_INPUT_CORKED)
1457 pa_sink_input_update_rate(i);
1458 }
1459
1460 ret = 0;
1461 }
1462
1463 pa_sink_suspend(s, false, PA_SUSPEND_INTERNAL);
1464
1465 return ret;
1466 }
1467
1468 /* Called from main thread */
1469 pa_usec_t pa_sink_get_latency(pa_sink *s) {
1470 pa_usec_t usec = 0;
1471
1472 pa_sink_assert_ref(s);
1473 pa_assert_ctl_context();
1474 pa_assert(PA_SINK_IS_LINKED(s->state));
1475
1476 /* The returned value is supposed to be in the time domain of the sound card! */
1477
1478 if (s->state == PA_SINK_SUSPENDED)
1479 return 0;
1480
1481 if (!(s->flags & PA_SINK_LATENCY))
1482 return 0;
1483
1484 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_LATENCY, &usec, 0, NULL) == 0);
1485
1486 /* usec is unsigned, so check that the offset can be added to usec without
1487 * underflowing. */
1488 if (-s->latency_offset <= (int64_t) usec)
1489 usec += s->latency_offset;
1490 else
1491 usec = 0;
1492
1493 return usec;
1494 }
1495
1496 /* Called from IO thread */
1497 pa_usec_t pa_sink_get_latency_within_thread(pa_sink *s) {
1498 pa_usec_t usec = 0;
1499 pa_msgobject *o;
1500
1501 pa_sink_assert_ref(s);
1502 pa_sink_assert_io_context(s);
1503 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
1504
1505 /* The returned value is supposed to be in the time domain of the sound card! */
1506
1507 if (s->thread_info.state == PA_SINK_SUSPENDED)
1508 return 0;
1509
1510 if (!(s->flags & PA_SINK_LATENCY))
1511 return 0;
1512
1513 o = PA_MSGOBJECT(s);
1514
1515 /* FIXME: We probably should make this a proper vtable callback instead of going through process_msg() */
1516
1517 if (o->process_msg(o, PA_SINK_MESSAGE_GET_LATENCY, &usec, 0, NULL) < 0)
1518 return -1;
1519
1520 /* usec is unsigned, so check that the offset can be added to usec without
1521 * underflowing. */
1522 if (-s->thread_info.latency_offset <= (int64_t) usec)
1523 usec += s->thread_info.latency_offset;
1524 else
1525 usec = 0;
1526
1527 return usec;
1528 }
1529
1530 /* Called from the main thread (and also from the IO thread while the main
1531 * thread is waiting).
1532 *
1533 * When a sink uses volume sharing, it never has the PA_SINK_FLAT_VOLUME flag
1534 * set. Instead, flat volume mode is detected by checking whether the root sink
1535 * has the flag set. */
1536 bool pa_sink_flat_volume_enabled(pa_sink *s) {
1537 pa_sink_assert_ref(s);
1538
1539 s = pa_sink_get_master(s);
1540
1541 if (PA_LIKELY(s))
1542 return (s->flags & PA_SINK_FLAT_VOLUME);
1543 else
1544 return false;
1545 }
1546
1547 /* Called from the main thread (and also from the IO thread while the main
1548 * thread is waiting). */
1549 pa_sink *pa_sink_get_master(pa_sink *s) {
1550 pa_sink_assert_ref(s);
1551
1552 while (s && (s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)) {
1553 if (PA_UNLIKELY(!s->input_to_master))
1554 return NULL;
1555
1556 s = s->input_to_master->sink;
1557 }
1558
1559 return s;
1560 }
1561
1562 /* Called from main context */
1563 bool pa_sink_is_passthrough(pa_sink *s) {
1564 pa_sink_input *alt_i;
1565 uint32_t idx;
1566
1567 pa_sink_assert_ref(s);
1568
1569 /* one and only one PASSTHROUGH input can possibly be connected */
1570 if (pa_idxset_size(s->inputs) == 1) {
1571 alt_i = pa_idxset_first(s->inputs, &idx);
1572
1573 if (pa_sink_input_is_passthrough(alt_i))
1574 return true;
1575 }
1576
1577 return false;
1578 }
1579
1580 /* Called from main context */
1581 void pa_sink_enter_passthrough(pa_sink *s) {
1582 pa_cvolume volume;
1583
1584 /* disable the monitor in passthrough mode */
1585 if (s->monitor_source) {
1586 pa_log_debug("Suspending monitor source %s, because the sink is entering the passthrough mode.", s->monitor_source->name);
1587 pa_source_suspend(s->monitor_source, true, PA_SUSPEND_PASSTHROUGH);
1588 }
1589
1590 /* set the volume to NORM */
1591 s->saved_volume = *pa_sink_get_volume(s, true);
1592 s->saved_save_volume = s->save_volume;
1593
1594 pa_cvolume_set(&volume, s->sample_spec.channels, PA_MIN(s->base_volume, PA_VOLUME_NORM));
1595 pa_sink_set_volume(s, &volume, true, false);
1596 }
1597
1598 /* Called from main context */
1599 void pa_sink_leave_passthrough(pa_sink *s) {
1600 /* Unsuspend monitor */
1601 if (s->monitor_source) {
1602 pa_log_debug("Resuming monitor source %s, because the sink is leaving the passthrough mode.", s->monitor_source->name);
1603 pa_source_suspend(s->monitor_source, false, PA_SUSPEND_PASSTHROUGH);
1604 }
1605
1606 /* Restore sink volume to what it was before we entered passthrough mode */
1607 pa_sink_set_volume(s, &s->saved_volume, true, s->saved_save_volume);
1608
1609 pa_cvolume_init(&s->saved_volume);
1610 s->saved_save_volume = false;
1611 }
1612
1613 /* Called from main context. */
1614 static void compute_reference_ratio(pa_sink_input *i) {
1615 unsigned c = 0;
1616 pa_cvolume remapped;
1617
1618 pa_assert(i);
1619 pa_assert(pa_sink_flat_volume_enabled(i->sink));
1620
1621 /*
1622 * Calculates the reference ratio from the sink's reference
1623 * volume. This basically calculates:
1624 *
1625 * i->reference_ratio = i->volume / i->sink->reference_volume
1626 */
1627
1628 remapped = i->sink->reference_volume;
1629 pa_cvolume_remap(&remapped, &i->sink->channel_map, &i->channel_map);
1630
1631 i->reference_ratio.channels = i->sample_spec.channels;
1632
1633 for (c = 0; c < i->sample_spec.channels; c++) {
1634
1635 /* We don't update when the sink volume is 0 anyway */
1636 if (remapped.values[c] <= PA_VOLUME_MUTED)
1637 continue;
1638
1639 /* Don't update the reference ratio unless necessary */
1640 if (pa_sw_volume_multiply(
1641 i->reference_ratio.values[c],
1642 remapped.values[c]) == i->volume.values[c])
1643 continue;
1644
1645 i->reference_ratio.values[c] = pa_sw_volume_divide(
1646 i->volume.values[c],
1647 remapped.values[c]);
1648 }
1649 }
1650
1651 /* Called from main context. Only called for the root sink in volume sharing
1652 * cases, except for internal recursive calls. */
1653 static void compute_reference_ratios(pa_sink *s) {
1654 uint32_t idx;
1655 pa_sink_input *i;
1656
1657 pa_sink_assert_ref(s);
1658 pa_assert_ctl_context();
1659 pa_assert(PA_SINK_IS_LINKED(s->state));
1660 pa_assert(pa_sink_flat_volume_enabled(s));
1661
1662 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1663 compute_reference_ratio(i);
1664
1665 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
1666 compute_reference_ratios(i->origin_sink);
1667 }
1668 }
1669
1670 /* Called from main context. Only called for the root sink in volume sharing
1671 * cases, except for internal recursive calls. */
1672 static void compute_real_ratios(pa_sink *s) {
1673 pa_sink_input *i;
1674 uint32_t idx;
1675
1676 pa_sink_assert_ref(s);
1677 pa_assert_ctl_context();
1678 pa_assert(PA_SINK_IS_LINKED(s->state));
1679 pa_assert(pa_sink_flat_volume_enabled(s));
1680
1681 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1682 unsigned c;
1683 pa_cvolume remapped;
1684
1685 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)) {
1686 /* The origin sink uses volume sharing, so this input's real ratio
1687 * is handled as a special case - the real ratio must be 0 dB, and
1688 * as a result i->soft_volume must equal i->volume_factor. */
1689 pa_cvolume_reset(&i->real_ratio, i->real_ratio.channels);
1690 i->soft_volume = i->volume_factor;
1691
1692 compute_real_ratios(i->origin_sink);
1693
1694 continue;
1695 }
1696
1697 /*
1698 * This basically calculates:
1699 *
1700 * i->real_ratio := i->volume / s->real_volume
1701 * i->soft_volume := i->real_ratio * i->volume_factor
1702 */
1703
1704 remapped = s->real_volume;
1705 pa_cvolume_remap(&remapped, &s->channel_map, &i->channel_map);
1706
1707 i->real_ratio.channels = i->sample_spec.channels;
1708 i->soft_volume.channels = i->sample_spec.channels;
1709
1710 for (c = 0; c < i->sample_spec.channels; c++) {
1711
1712 if (remapped.values[c] <= PA_VOLUME_MUTED) {
1713 /* We leave i->real_ratio untouched */
1714 i->soft_volume.values[c] = PA_VOLUME_MUTED;
1715 continue;
1716 }
1717
1718 /* Don't lose accuracy unless necessary */
1719 if (pa_sw_volume_multiply(
1720 i->real_ratio.values[c],
1721 remapped.values[c]) != i->volume.values[c])
1722
1723 i->real_ratio.values[c] = pa_sw_volume_divide(
1724 i->volume.values[c],
1725 remapped.values[c]);
1726
1727 i->soft_volume.values[c] = pa_sw_volume_multiply(
1728 i->real_ratio.values[c],
1729 i->volume_factor.values[c]);
1730 }
1731
1732 /* We don't copy the soft_volume to the thread_info data
1733 * here. That must be done by the caller */
1734 }
1735 }
1736
1737 static pa_cvolume *cvolume_remap_minimal_impact(
1738 pa_cvolume *v,
1739 const pa_cvolume *template,
1740 const pa_channel_map *from,
1741 const pa_channel_map *to) {
1742
1743 pa_cvolume t;
1744
1745 pa_assert(v);
1746 pa_assert(template);
1747 pa_assert(from);
1748 pa_assert(to);
1749 pa_assert(pa_cvolume_compatible_with_channel_map(v, from));
1750 pa_assert(pa_cvolume_compatible_with_channel_map(template, to));
1751
1752 /* Much like pa_cvolume_remap(), but tries to minimize impact when
1753 * mapping from sink input to sink volumes:
1754 *
1755 * If template is a possible remapping from v it is used instead
1756 * of remapping anew.
1757 *
1758 * If the channel maps don't match we set an all-channel volume on
1759 * the sink to ensure that changing a volume on one stream has no
1760 * effect that cannot be compensated for in another stream that
1761 * does not have the same channel map as the sink. */
1762
1763 if (pa_channel_map_equal(from, to))
1764 return v;
1765
1766 t = *template;
1767 if (pa_cvolume_equal(pa_cvolume_remap(&t, to, from), v)) {
1768 *v = *template;
1769 return v;
1770 }
1771
1772 pa_cvolume_set(v, to->channels, pa_cvolume_max(v));
1773 return v;
1774 }
1775
1776 /* Called from main thread. Only called for the root sink in volume sharing
1777 * cases, except for internal recursive calls. */
1778 static void get_maximum_input_volume(pa_sink *s, pa_cvolume *max_volume, const pa_channel_map *channel_map) {
1779 pa_sink_input *i;
1780 uint32_t idx;
1781
1782 pa_sink_assert_ref(s);
1783 pa_assert(max_volume);
1784 pa_assert(channel_map);
1785 pa_assert(pa_sink_flat_volume_enabled(s));
1786
1787 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1788 pa_cvolume remapped;
1789
1790 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)) {
1791 get_maximum_input_volume(i->origin_sink, max_volume, channel_map);
1792
1793 /* Ignore this input. The origin sink uses volume sharing, so this
1794 * input's volume will be set to be equal to the root sink's real
1795 * volume. Obviously this input's current volume must not then
1796 * affect what the root sink's real volume will be. */
1797 continue;
1798 }
1799
1800 remapped = i->volume;
1801 cvolume_remap_minimal_impact(&remapped, max_volume, &i->channel_map, channel_map);
1802 pa_cvolume_merge(max_volume, max_volume, &remapped);
1803 }
1804 }
1805
1806 /* Called from main thread. Only called for the root sink in volume sharing
1807 * cases, except for internal recursive calls. */
1808 static bool has_inputs(pa_sink *s) {
1809 pa_sink_input *i;
1810 uint32_t idx;
1811
1812 pa_sink_assert_ref(s);
1813
1814 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1815 if (!i->origin_sink || !(i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER) || has_inputs(i->origin_sink))
1816 return true;
1817 }
1818
1819 return false;
1820 }
1821
1822 /* Called from main thread. Only called for the root sink in volume sharing
1823 * cases, except for internal recursive calls. */
1824 static void update_real_volume(pa_sink *s, const pa_cvolume *new_volume, pa_channel_map *channel_map) {
1825 pa_sink_input *i;
1826 uint32_t idx;
1827
1828 pa_sink_assert_ref(s);
1829 pa_assert(new_volume);
1830 pa_assert(channel_map);
1831
1832 s->real_volume = *new_volume;
1833 pa_cvolume_remap(&s->real_volume, channel_map, &s->channel_map);
1834
1835 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1836 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)) {
1837 if (pa_sink_flat_volume_enabled(s)) {
1838 pa_cvolume new_input_volume;
1839
1840 /* Follow the root sink's real volume. */
1841 new_input_volume = *new_volume;
1842 pa_cvolume_remap(&new_input_volume, channel_map, &i->channel_map);
1843 pa_sink_input_set_volume_direct(i, &new_input_volume);
1844 compute_reference_ratio(i);
1845 }
1846
1847 update_real_volume(i->origin_sink, new_volume, channel_map);
1848 }
1849 }
1850 }
1851
1852 /* Called from main thread. Only called for the root sink in shared volume
1853 * cases. */
1854 static void compute_real_volume(pa_sink *s) {
1855 pa_sink_assert_ref(s);
1856 pa_assert_ctl_context();
1857 pa_assert(PA_SINK_IS_LINKED(s->state));
1858 pa_assert(pa_sink_flat_volume_enabled(s));
1859 pa_assert(!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER));
1860
1861 /* This determines the maximum volume of all streams and sets
1862 * s->real_volume accordingly. */
1863
1864 if (!has_inputs(s)) {
1865 /* In the special case that we have no sink inputs we leave the
1866 * volume unmodified. */
1867 update_real_volume(s, &s->reference_volume, &s->channel_map);
1868 return;
1869 }
1870
1871 pa_cvolume_mute(&s->real_volume, s->channel_map.channels);
1872
1873 /* First let's determine the new maximum volume of all inputs
1874 * connected to this sink */
1875 get_maximum_input_volume(s, &s->real_volume, &s->channel_map);
1876 update_real_volume(s, &s->real_volume, &s->channel_map);
1877
1878 /* Then, let's update the real ratios/soft volumes of all inputs
1879 * connected to this sink */
1880 compute_real_ratios(s);
1881 }
1882
1883 /* Called from main thread. Only called for the root sink in shared volume
1884 * cases, except for internal recursive calls. */
1885 static void propagate_reference_volume(pa_sink *s) {
1886 pa_sink_input *i;
1887 uint32_t idx;
1888
1889 pa_sink_assert_ref(s);
1890 pa_assert_ctl_context();
1891 pa_assert(PA_SINK_IS_LINKED(s->state));
1892 pa_assert(pa_sink_flat_volume_enabled(s));
1893
1894 /* This is called whenever the sink volume changes that is not
1895 * caused by a sink input volume change. We need to fix up the
1896 * sink input volumes accordingly */
1897
1898 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1899 pa_cvolume new_volume;
1900
1901 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)) {
1902 propagate_reference_volume(i->origin_sink);
1903
1904 /* Since the origin sink uses volume sharing, this input's volume
1905 * needs to be updated to match the root sink's real volume, but
1906 * that will be done later in update_shared_real_volume(). */
1907 continue;
1908 }
1909
1910 /* This basically calculates:
1911 *
1912 * i->volume := s->reference_volume * i->reference_ratio */
1913
1914 new_volume = s->reference_volume;
1915 pa_cvolume_remap(&new_volume, &s->channel_map, &i->channel_map);
1916 pa_sw_cvolume_multiply(&new_volume, &new_volume, &i->reference_ratio);
1917 pa_sink_input_set_volume_direct(i, &new_volume);
1918 }
1919 }
1920
1921 /* Called from main thread. Only called for the root sink in volume sharing
1922 * cases, except for internal recursive calls. The return value indicates
1923 * whether any reference volume actually changed. */
1924 static bool update_reference_volume(pa_sink *s, const pa_cvolume *v, const pa_channel_map *channel_map, bool save) {
1925 pa_cvolume volume;
1926 bool reference_volume_changed;
1927 pa_sink_input *i;
1928 uint32_t idx;
1929
1930 pa_sink_assert_ref(s);
1931 pa_assert(PA_SINK_IS_LINKED(s->state));
1932 pa_assert(v);
1933 pa_assert(channel_map);
1934 pa_assert(pa_cvolume_valid(v));
1935
1936 volume = *v;
1937 pa_cvolume_remap(&volume, channel_map, &s->channel_map);
1938
1939 reference_volume_changed = !pa_cvolume_equal(&volume, &s->reference_volume);
1940 pa_sink_set_reference_volume_direct(s, &volume);
1941
1942 s->save_volume = (!reference_volume_changed && s->save_volume) || save;
1943
1944 if (!reference_volume_changed && !(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
1945 /* If the root sink's volume doesn't change, then there can't be any
1946 * changes in the other sinks in the sink tree either.
1947 *
1948 * It's probably theoretically possible that even if the root sink's
1949 * volume changes slightly, some filter sink doesn't change its volume
1950 * due to rounding errors. If that happens, we still want to propagate
1951 * the changed root sink volume to the sinks connected to the
1952 * intermediate sink that didn't change its volume. This theoretical
1953 * possibility is the reason why we have that !(s->flags &
1954 * PA_SINK_SHARE_VOLUME_WITH_MASTER) condition. Probably nobody would
1955 * notice even if we returned here false always if
1956 * reference_volume_changed is false. */
1957 return false;
1958
1959 PA_IDXSET_FOREACH(i, s->inputs, idx) {
1960 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
1961 update_reference_volume(i->origin_sink, v, channel_map, false);
1962 }
1963
1964 return true;
1965 }
1966
1967 /* Called from main thread */
1968 void pa_sink_set_volume(
1969 pa_sink *s,
1970 const pa_cvolume *volume,
1971 bool send_msg,
1972 bool save) {
1973
1974 pa_cvolume new_reference_volume;
1975 pa_sink *root_sink;
1976
1977 pa_sink_assert_ref(s);
1978 pa_assert_ctl_context();
1979 pa_assert(PA_SINK_IS_LINKED(s->state));
1980 pa_assert(!volume || pa_cvolume_valid(volume));
1981 pa_assert(volume || pa_sink_flat_volume_enabled(s));
1982 pa_assert(!volume || volume->channels == 1 || pa_cvolume_compatible(volume, &s->sample_spec));
1983
1984 /* make sure we don't change the volume when a PASSTHROUGH input is connected ...
1985 * ... *except* if we're being invoked to reset the volume to ensure 0 dB gain */
1986 if (pa_sink_is_passthrough(s) && (!volume || !pa_cvolume_is_norm(volume))) {
1987 pa_log_warn("Cannot change volume, Sink is connected to PASSTHROUGH input");
1988 return;
1989 }
1990
1991 /* In case of volume sharing, the volume is set for the root sink first,
1992 * from which it's then propagated to the sharing sinks. */
1993 root_sink = pa_sink_get_master(s);
1994
1995 if (PA_UNLIKELY(!root_sink))
1996 return;
1997
1998 /* As a special exception we accept mono volumes on all sinks --
1999 * even on those with more complex channel maps */
2000
2001 if (volume) {
2002 if (pa_cvolume_compatible(volume, &s->sample_spec))
2003 new_reference_volume = *volume;
2004 else {
2005 new_reference_volume = s->reference_volume;
2006 pa_cvolume_scale(&new_reference_volume, pa_cvolume_max(volume));
2007 }
2008
2009 pa_cvolume_remap(&new_reference_volume, &s->channel_map, &root_sink->channel_map);
2010
2011 if (update_reference_volume(root_sink, &new_reference_volume, &root_sink->channel_map, save)) {
2012 if (pa_sink_flat_volume_enabled(root_sink)) {
2013 /* OK, propagate this volume change back to the inputs */
2014 propagate_reference_volume(root_sink);
2015
2016 /* And now recalculate the real volume */
2017 compute_real_volume(root_sink);
2018 } else
2019 update_real_volume(root_sink, &root_sink->reference_volume, &root_sink->channel_map);
2020 }
2021
2022 } else {
2023 /* If volume is NULL we synchronize the sink's real and
2024 * reference volumes with the stream volumes. */
2025
2026 pa_assert(pa_sink_flat_volume_enabled(root_sink));
2027
2028 /* Ok, let's determine the new real volume */
2029 compute_real_volume(root_sink);
2030
2031 /* Let's 'push' the reference volume if necessary */
2032 pa_cvolume_merge(&new_reference_volume, &s->reference_volume, &root_sink->real_volume);
2033 /* If the sink and its root don't have the same number of channels, we need to remap */
2034 if (s != root_sink && !pa_channel_map_equal(&s->channel_map, &root_sink->channel_map))
2035 pa_cvolume_remap(&new_reference_volume, &s->channel_map, &root_sink->channel_map);
2036 update_reference_volume(root_sink, &new_reference_volume, &root_sink->channel_map, save);
2037
2038 /* Now that the reference volume is updated, we can update the streams'
2039 * reference ratios. */
2040 compute_reference_ratios(root_sink);
2041 }
2042
2043 if (root_sink->set_volume) {
2044 /* If we have a function set_volume(), then we do not apply a
2045 * soft volume by default. However, set_volume() is free to
2046 * apply one to root_sink->soft_volume */
2047
2048 pa_cvolume_reset(&root_sink->soft_volume, root_sink->sample_spec.channels);
2049 if (!(root_sink->flags & PA_SINK_DEFERRED_VOLUME))
2050 root_sink->set_volume(root_sink);
2051
2052 } else
2053 /* If we have no function set_volume(), then the soft volume
2054 * becomes the real volume */
2055 root_sink->soft_volume = root_sink->real_volume;
2056
2057 /* This tells the sink that soft volume and/or real volume changed */
2058 if (send_msg)
2059 pa_assert_se(pa_asyncmsgq_send(root_sink->asyncmsgq, PA_MSGOBJECT(root_sink), PA_SINK_MESSAGE_SET_SHARED_VOLUME, NULL, 0, NULL) == 0);
2060 }
2061
2062 /* Called from the io thread if sync volume is used, otherwise from the main thread.
2063 * Only to be called by sink implementor */
2064 void pa_sink_set_soft_volume(pa_sink *s, const pa_cvolume *volume) {
2065
2066 pa_sink_assert_ref(s);
2067 pa_assert(!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER));
2068
2069 if (s->flags & PA_SINK_DEFERRED_VOLUME)
2070 pa_sink_assert_io_context(s);
2071 else
2072 pa_assert_ctl_context();
2073
2074 if (!volume)
2075 pa_cvolume_reset(&s->soft_volume, s->sample_spec.channels);
2076 else
2077 s->soft_volume = *volume;
2078
2079 if (PA_SINK_IS_LINKED(s->state) && !(s->flags & PA_SINK_DEFERRED_VOLUME))
2080 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_VOLUME, NULL, 0, NULL) == 0);
2081 else
2082 s->thread_info.soft_volume = s->soft_volume;
2083 }
2084
2085 /* Called from the main thread. Only called for the root sink in volume sharing
2086 * cases, except for internal recursive calls. */
2087 static void propagate_real_volume(pa_sink *s, const pa_cvolume *old_real_volume) {
2088 pa_sink_input *i;
2089 uint32_t idx;
2090
2091 pa_sink_assert_ref(s);
2092 pa_assert(old_real_volume);
2093 pa_assert_ctl_context();
2094 pa_assert(PA_SINK_IS_LINKED(s->state));
2095
2096 /* This is called when the hardware's real volume changes due to
2097 * some external event. We copy the real volume into our
2098 * reference volume and then rebuild the stream volumes based on
2099 * i->real_ratio which should stay fixed. */
2100
2101 if (!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER)) {
2102 if (pa_cvolume_equal(old_real_volume, &s->real_volume))
2103 return;
2104
2105 /* 1. Make the real volume the reference volume */
2106 update_reference_volume(s, &s->real_volume, &s->channel_map, true);
2107 }
2108
2109 if (pa_sink_flat_volume_enabled(s)) {
2110
2111 PA_IDXSET_FOREACH(i, s->inputs, idx) {
2112 pa_cvolume new_volume;
2113
2114 /* 2. Since the sink's reference and real volumes are equal
2115 * now our ratios should be too. */
2116 i->reference_ratio = i->real_ratio;
2117
2118 /* 3. Recalculate the new stream reference volume based on the
2119 * reference ratio and the sink's reference volume.
2120 *
2121 * This basically calculates:
2122 *
2123 * i->volume = s->reference_volume * i->reference_ratio
2124 *
2125 * This is identical to propagate_reference_volume() */
2126 new_volume = s->reference_volume;
2127 pa_cvolume_remap(&new_volume, &s->channel_map, &i->channel_map);
2128 pa_sw_cvolume_multiply(&new_volume, &new_volume, &i->reference_ratio);
2129 pa_sink_input_set_volume_direct(i, &new_volume);
2130
2131 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
2132 propagate_real_volume(i->origin_sink, old_real_volume);
2133 }
2134 }
2135
2136 /* Something got changed in the hardware. It probably makes sense
2137 * to save changed hw settings given that hw volume changes not
2138 * triggered by PA are almost certainly done by the user. */
2139 if (!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
2140 s->save_volume = true;
2141 }
2142
2143 /* Called from io thread */
2144 void pa_sink_update_volume_and_mute(pa_sink *s) {
2145 pa_assert(s);
2146 pa_sink_assert_io_context(s);
2147
2148 pa_asyncmsgq_post(pa_thread_mq_get()->outq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_UPDATE_VOLUME_AND_MUTE, NULL, 0, NULL, NULL);
2149 }
2150
2151 /* Called from main thread */
2152 const pa_cvolume *pa_sink_get_volume(pa_sink *s, bool force_refresh) {
2153 pa_sink_assert_ref(s);
2154 pa_assert_ctl_context();
2155 pa_assert(PA_SINK_IS_LINKED(s->state));
2156
2157 if (s->refresh_volume || force_refresh) {
2158 struct pa_cvolume old_real_volume;
2159
2160 pa_assert(!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER));
2161
2162 old_real_volume = s->real_volume;
2163
2164 if (!(s->flags & PA_SINK_DEFERRED_VOLUME) && s->get_volume)
2165 s->get_volume(s);
2166
2167 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_VOLUME, NULL, 0, NULL) == 0);
2168
2169 update_real_volume(s, &s->real_volume, &s->channel_map);
2170 propagate_real_volume(s, &old_real_volume);
2171 }
2172
2173 return &s->reference_volume;
2174 }
2175
2176 /* Called from main thread. In volume sharing cases, only the root sink may
2177 * call this. */
2178 void pa_sink_volume_changed(pa_sink *s, const pa_cvolume *new_real_volume) {
2179 pa_cvolume old_real_volume;
2180
2181 pa_sink_assert_ref(s);
2182 pa_assert_ctl_context();
2183 pa_assert(PA_SINK_IS_LINKED(s->state));
2184 pa_assert(!(s->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER));
2185
2186 /* The sink implementor may call this if the volume changed to make sure everyone is notified */
2187
2188 old_real_volume = s->real_volume;
2189 update_real_volume(s, new_real_volume, &s->channel_map);
2190 propagate_real_volume(s, &old_real_volume);
2191 }
2192
2193 /* Called from main thread */
2194 void pa_sink_set_mute(pa_sink *s, bool mute, bool save) {
2195 bool old_muted;
2196
2197 pa_sink_assert_ref(s);
2198 pa_assert_ctl_context();
2199 pa_assert(PA_SINK_IS_LINKED(s->state));
2200
2201 old_muted = s->muted;
2202
2203 if (mute == old_muted) {
2204 s->save_muted |= save;
2205 return;
2206 }
2207
2208 s->muted = mute;
2209 s->save_muted = save;
2210
2211 if (!(s->flags & PA_SINK_DEFERRED_VOLUME) && s->set_mute)
2212 s->set_mute(s);
2213
2214 pa_log_debug("The mute of sink %s changed from %s to %s.", s->name, pa_yes_no(old_muted), pa_yes_no(mute));
2215 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_MUTE, NULL, 0, NULL) == 0);
2216 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
2217 }
2218
2219 /* Called from main thread */
2220 bool pa_sink_get_mute(pa_sink *s, bool force_refresh) {
2221
2222 pa_sink_assert_ref(s);
2223 pa_assert_ctl_context();
2224 pa_assert(PA_SINK_IS_LINKED(s->state));
2225
2226 if (s->refresh_muted || force_refresh) {
2227 bool old_muted = s->muted;
2228
2229 if (!(s->flags & PA_SINK_DEFERRED_VOLUME) && s->get_mute)
2230 s->get_mute(s);
2231
2232 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_MUTE, NULL, 0, NULL) == 0);
2233
2234 if (old_muted != s->muted) {
2235 s->save_muted = true;
2236
2237 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
2238
2239 /* Make sure the soft mute status stays in sync */
2240 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_MUTE, NULL, 0, NULL) == 0);
2241 }
2242 }
2243
2244 return s->muted;
2245 }
2246
2247 /* Called from main thread */
2248 void pa_sink_mute_changed(pa_sink *s, bool new_muted) {
2249 pa_sink_assert_ref(s);
2250 pa_assert_ctl_context();
2251 pa_assert(PA_SINK_IS_LINKED(s->state));
2252
2253 /* The sink implementor may call this if the volume changed to make sure everyone is notified */
2254
2255 if (s->muted == new_muted)
2256 return;
2257
2258 s->muted = new_muted;
2259 s->save_muted = true;
2260
2261 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
2262 }
2263
2264 /* Called from main thread */
2265 bool pa_sink_update_proplist(pa_sink *s, pa_update_mode_t mode, pa_proplist *p) {
2266 pa_sink_assert_ref(s);
2267 pa_assert_ctl_context();
2268
2269 if (p)
2270 pa_proplist_update(s->proplist, mode, p);
2271
2272 if (PA_SINK_IS_LINKED(s->state)) {
2273 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_PROPLIST_CHANGED], s);
2274 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
2275 }
2276
2277 return true;
2278 }
2279
2280 /* Called from main thread */
2281 /* FIXME -- this should be dropped and be merged into pa_sink_update_proplist() */
2282 void pa_sink_set_description(pa_sink *s, const char *description) {
2283 const char *old;
2284 pa_sink_assert_ref(s);
2285 pa_assert_ctl_context();
2286
2287 if (!description && !pa_proplist_contains(s->proplist, PA_PROP_DEVICE_DESCRIPTION))
2288 return;
2289
2290 old = pa_proplist_gets(s->proplist, PA_PROP_DEVICE_DESCRIPTION);
2291
2292 if (old && description && pa_streq(old, description))
2293 return;
2294
2295 if (description)
2296 pa_proplist_sets(s->proplist, PA_PROP_DEVICE_DESCRIPTION, description);
2297 else
2298 pa_proplist_unset(s->proplist, PA_PROP_DEVICE_DESCRIPTION);
2299
2300 if (s->monitor_source) {
2301 char *n;
2302
2303 n = pa_sprintf_malloc("Monitor Source of %s", description ? description : s->name);
2304 pa_source_set_description(s->monitor_source, n);
2305 pa_xfree(n);
2306 }
2307
2308 if (PA_SINK_IS_LINKED(s->state)) {
2309 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
2310 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_PROPLIST_CHANGED], s);
2311 }
2312 }
2313
2314 /* Called from main thread */
2315 unsigned pa_sink_linked_by(pa_sink *s) {
2316 unsigned ret;
2317
2318 pa_sink_assert_ref(s);
2319 pa_assert_ctl_context();
2320 pa_assert(PA_SINK_IS_LINKED(s->state));
2321
2322 ret = pa_idxset_size(s->inputs);
2323
2324 /* We add in the number of streams connected to us here. Please
2325 * note the asymmetry to pa_sink_used_by()! */
2326
2327 if (s->monitor_source)
2328 ret += pa_source_linked_by(s->monitor_source);
2329
2330 return ret;
2331 }
2332
2333 /* Called from main thread */
2334 unsigned pa_sink_used_by(pa_sink *s) {
2335 unsigned ret;
2336
2337 pa_sink_assert_ref(s);
2338 pa_assert_ctl_context();
2339 pa_assert(PA_SINK_IS_LINKED(s->state));
2340
2341 ret = pa_idxset_size(s->inputs);
2342 pa_assert(ret >= s->n_corked);
2343
2344 /* Streams connected to our monitor source do not matter for
2345 * pa_sink_used_by()!.*/
2346
2347 return ret - s->n_corked;
2348 }
2349
2350 /* Called from main thread */
2351 unsigned pa_sink_check_suspend(pa_sink *s) {
2352 unsigned ret;
2353 pa_sink_input *i;
2354 uint32_t idx;
2355
2356 pa_sink_assert_ref(s);
2357 pa_assert_ctl_context();
2358
2359 if (!PA_SINK_IS_LINKED(s->state))
2360 return 0;
2361
2362 ret = 0;
2363
2364 PA_IDXSET_FOREACH(i, s->inputs, idx) {
2365 pa_sink_input_state_t st;
2366
2367 st = pa_sink_input_get_state(i);
2368
2369 /* We do not assert here. It is perfectly valid for a sink input to
2370 * be in the INIT state (i.e. created, marked done but not yet put)
2371 * and we should not care if it's unlinked as it won't contribute
2372 * towards our busy status.
2373 */
2374 if (!PA_SINK_INPUT_IS_LINKED(st))
2375 continue;
2376
2377 if (st == PA_SINK_INPUT_CORKED)
2378 continue;
2379
2380 if (i->flags & PA_SINK_INPUT_DONT_INHIBIT_AUTO_SUSPEND)
2381 continue;
2382
2383 ret ++;
2384 }
2385
2386 if (s->monitor_source)
2387 ret += pa_source_check_suspend(s->monitor_source);
2388
2389 return ret;
2390 }
2391
2392 /* Called from the IO thread */
2393 static void sync_input_volumes_within_thread(pa_sink *s) {
2394 pa_sink_input *i;
2395 void *state = NULL;
2396
2397 pa_sink_assert_ref(s);
2398 pa_sink_assert_io_context(s);
2399
2400 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state) {
2401 if (pa_cvolume_equal(&i->thread_info.soft_volume, &i->soft_volume))
2402 continue;
2403
2404 i->thread_info.soft_volume = i->soft_volume;
2405 pa_sink_input_request_rewind(i, 0, true, false, false);
2406 }
2407 }
2408
2409 /* Called from the IO thread. Only called for the root sink in volume sharing
2410 * cases, except for internal recursive calls. */
2411 static void set_shared_volume_within_thread(pa_sink *s) {
2412 pa_sink_input *i = NULL;
2413 void *state = NULL;
2414
2415 pa_sink_assert_ref(s);
2416
2417 PA_MSGOBJECT(s)->process_msg(PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_VOLUME_SYNCED, NULL, 0, NULL);
2418
2419 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state) {
2420 if (i->origin_sink && (i->origin_sink->flags & PA_SINK_SHARE_VOLUME_WITH_MASTER))
2421 set_shared_volume_within_thread(i->origin_sink);
2422 }
2423 }
2424
2425 /* Called from IO thread, except when it is not */
2426 int pa_sink_process_msg(pa_msgobject *o, int code, void *userdata, int64_t offset, pa_memchunk *chunk) {
2427 pa_sink *s = PA_SINK(o);
2428 pa_sink_assert_ref(s);
2429
2430 switch ((pa_sink_message_t) code) {
2431
2432 case PA_SINK_MESSAGE_ADD_INPUT: {
2433 pa_sink_input *i = PA_SINK_INPUT(userdata);
2434
2435 /* If you change anything here, make sure to change the
2436 * sink input handling a few lines down at
2437 * PA_SINK_MESSAGE_FINISH_MOVE, too. */
2438
2439 pa_hashmap_put(s->thread_info.inputs, PA_UINT32_TO_PTR(i->index), pa_sink_input_ref(i));
2440
2441 /* Since the caller sleeps in pa_sink_input_put(), we can
2442 * safely access data outside of thread_info even though
2443 * it is mutable */
2444
2445 if ((i->thread_info.sync_prev = i->sync_prev)) {
2446 pa_assert(i->sink == i->thread_info.sync_prev->sink);
2447 pa_assert(i->sync_prev->sync_next == i);
2448 i->thread_info.sync_prev->thread_info.sync_next = i;
2449 }
2450
2451 if ((i->thread_info.sync_next = i->sync_next)) {
2452 pa_assert(i->sink == i->thread_info.sync_next->sink);
2453 pa_assert(i->sync_next->sync_prev == i);
2454 i->thread_info.sync_next->thread_info.sync_prev = i;
2455 }
2456
2457 pa_assert(!i->thread_info.attached);
2458 i->thread_info.attached = true;
2459
2460 if (i->attach)
2461 i->attach(i);
2462
2463 pa_sink_input_set_state_within_thread(i, i->state);
2464
2465 /* The requested latency of the sink input needs to be fixed up and
2466 * then configured on the sink. If this causes the sink latency to
2467 * go down, the sink implementor is responsible for doing a rewind
2468 * in the update_requested_latency() callback to ensure that the
2469 * sink buffer doesn't contain more data than what the new latency
2470 * allows.
2471 *
2472 * XXX: Does it really make sense to push this responsibility to
2473 * the sink implementors? Wouldn't it be better to do it once in
2474 * the core than many times in the modules? */
2475
2476 if (i->thread_info.requested_sink_latency != (pa_usec_t) -1)
2477 pa_sink_input_set_requested_latency_within_thread(i, i->thread_info.requested_sink_latency);
2478
2479 pa_sink_input_update_max_rewind(i, s->thread_info.max_rewind);
2480 pa_sink_input_update_max_request(i, s->thread_info.max_request);
2481
2482 /* We don't rewind here automatically. This is left to the
2483 * sink input implementor because some sink inputs need a
2484 * slow start, i.e. need some time to buffer client
2485 * samples before beginning streaming.
2486 *
2487 * XXX: Does it really make sense to push this functionality to
2488 * the sink implementors? Wouldn't it be better to do it once in
2489 * the core than many times in the modules? */
2490
2491 /* In flat volume mode we need to update the volume as
2492 * well */
2493 return o->process_msg(o, PA_SINK_MESSAGE_SET_SHARED_VOLUME, NULL, 0, NULL);
2494 }
2495
2496 case PA_SINK_MESSAGE_REMOVE_INPUT: {
2497 pa_sink_input *i = PA_SINK_INPUT(userdata);
2498
2499 /* If you change anything here, make sure to change the
2500 * sink input handling a few lines down at
2501 * PA_SINK_MESSAGE_START_MOVE, too. */
2502
2503 if (i->detach)
2504 i->detach(i);
2505
2506 pa_sink_input_set_state_within_thread(i, i->state);
2507
2508 pa_assert(i->thread_info.attached);
2509 i->thread_info.attached = false;
2510
2511 /* Since the caller sleeps in pa_sink_input_unlink(),
2512 * we can safely access data outside of thread_info even
2513 * though it is mutable */
2514
2515 pa_assert(!i->sync_prev);
2516 pa_assert(!i->sync_next);
2517
2518 if (i->thread_info.sync_prev) {
2519 i->thread_info.sync_prev->thread_info.sync_next = i->thread_info.sync_prev->sync_next;
2520 i->thread_info.sync_prev = NULL;
2521 }
2522
2523 if (i->thread_info.sync_next) {
2524 i->thread_info.sync_next->thread_info.sync_prev = i->thread_info.sync_next->sync_prev;
2525 i->thread_info.sync_next = NULL;
2526 }
2527
2528 pa_hashmap_remove_and_free(s->thread_info.inputs, PA_UINT32_TO_PTR(i->index));
2529 pa_sink_invalidate_requested_latency(s, true);
2530 pa_sink_request_rewind(s, (size_t) -1);
2531
2532 /* In flat volume mode we need to update the volume as
2533 * well */
2534 return o->process_msg(o, PA_SINK_MESSAGE_SET_SHARED_VOLUME, NULL, 0, NULL);
2535 }
2536
2537 case PA_SINK_MESSAGE_START_MOVE: {
2538 pa_sink_input *i = PA_SINK_INPUT(userdata);
2539
2540 /* We don't support moving synchronized streams. */
2541 pa_assert(!i->sync_prev);
2542 pa_assert(!i->sync_next);
2543 pa_assert(!i->thread_info.sync_next);
2544 pa_assert(!i->thread_info.sync_prev);
2545
2546 if (i->thread_info.state != PA_SINK_INPUT_CORKED) {
2547 pa_usec_t usec = 0;
2548 size_t sink_nbytes, total_nbytes;
2549
2550 /* The old sink probably has some audio from this
2551 * stream in its buffer. We want to "take it back" as
2552 * much as possible and play it to the new sink. We
2553 * don't know at this point how much the old sink can
2554 * rewind. We have to pick something, and that
2555 * something is the full latency of the old sink here.
2556 * So we rewind the stream buffer by the sink latency
2557 * amount, which may be more than what we should
2558 * rewind. This can result in a chunk of audio being
2559 * played both to the old sink and the new sink.
2560 *
2561 * FIXME: Fix this code so that we don't have to make
2562 * guesses about how much the sink will actually be
2563 * able to rewind. If someone comes up with a solution
2564 * for this, something to note is that the part of the
2565 * latency that the old sink couldn't rewind should
2566 * ideally be compensated after the stream has moved
2567 * to the new sink by adding silence. The new sink
2568 * most likely can't start playing the moved stream
2569 * immediately, and that gap should be removed from
2570 * the "compensation silence" (at least at the time of
2571 * writing this, the move finish code will actually
2572 * already take care of dropping the new sink's
2573 * unrewindable latency, so taking into account the
2574 * unrewindable latency of the old sink is the only
2575 * problem).
2576 *
2577 * The render_memblockq contents are discarded,
2578 * because when the sink changes, the format of the
2579 * audio stored in the render_memblockq may change
2580 * too, making the stored audio invalid. FIXME:
2581 * However, the read and write indices are moved back
2582 * the same amount, so if they are not the same now,
2583 * they won't be the same after the rewind either. If
2584 * the write index of the render_memblockq is ahead of
2585 * the read index, then the render_memblockq will feed
2586 * the new sink some silence first, which it shouldn't
2587 * do. The write index should be flushed to be the
2588 * same as the read index. */
2589
2590 /* Get the latency of the sink */
2591 usec = pa_sink_get_latency_within_thread(s);
2592 sink_nbytes = pa_usec_to_bytes(usec, &s->sample_spec);
2593 total_nbytes = sink_nbytes + pa_memblockq_get_length(i->thread_info.render_memblockq);
2594
2595 if (total_nbytes > 0) {
2596 i->thread_info.rewrite_nbytes = i->thread_info.resampler ? pa_resampler_request(i->thread_info.resampler, total_nbytes) : total_nbytes;
2597 i->thread_info.rewrite_flush = true;
2598 pa_sink_input_process_rewind(i, sink_nbytes);
2599 }
2600 }
2601
2602 if (i->detach)
2603 i->detach(i);
2604
2605 pa_assert(i->thread_info.attached);
2606 i->thread_info.attached = false;
2607
2608 /* Let's remove the sink input ...*/
2609 pa_hashmap_remove_and_free(s->thread_info.inputs, PA_UINT32_TO_PTR(i->index));
2610
2611 pa_sink_invalidate_requested_latency(s, true);
2612
2613 pa_log_debug("Requesting rewind due to started move");
2614 pa_sink_request_rewind(s, (size_t) -1);
2615
2616 /* In flat volume mode we need to update the volume as
2617 * well */
2618 return o->process_msg(o, PA_SINK_MESSAGE_SET_SHARED_VOLUME, NULL, 0, NULL);
2619 }
2620
2621 case PA_SINK_MESSAGE_FINISH_MOVE: {
2622 pa_sink_input *i = PA_SINK_INPUT(userdata);
2623
2624 /* We don't support moving synchronized streams. */
2625 pa_assert(!i->sync_prev);
2626 pa_assert(!i->sync_next);
2627 pa_assert(!i->thread_info.sync_next);
2628 pa_assert(!i->thread_info.sync_prev);
2629
2630 pa_hashmap_put(s->thread_info.inputs, PA_UINT32_TO_PTR(i->index), pa_sink_input_ref(i));
2631
2632 pa_assert(!i->thread_info.attached);
2633 i->thread_info.attached = true;
2634
2635 if (i->attach)
2636 i->attach(i);
2637
2638 if (i->thread_info.state != PA_SINK_INPUT_CORKED) {
2639 pa_usec_t usec = 0;
2640 size_t nbytes;
2641
2642 /* In the ideal case the new sink would start playing
2643 * the stream immediately. That requires the sink to
2644 * be able to rewind all of its latency, which usually
2645 * isn't possible, so there will probably be some gap
2646 * before the moved stream becomes audible. We then
2647 * have two possibilities: 1) start playing the stream
2648 * from where it is now, or 2) drop the unrewindable
2649 * latency of the sink from the stream. With option 1
2650 * we won't lose any audio but the stream will have a
2651 * pause. With option 2 we may lose some audio but the
2652 * stream time will be somewhat in sync with the wall
2653 * clock. Lennart seems to have chosen option 2 (one
2654 * of the reasons might have been that option 1 is
2655 * actually much harder to implement), so we drop the
2656 * latency of the new sink from the moved stream and
2657 * hope that the sink will undo most of that in the
2658 * rewind. */
2659
2660 /* Get the latency of the sink */
2661 usec = pa_sink_get_latency_within_thread(s);
2662 nbytes = pa_usec_to_bytes(usec, &s->sample_spec);
2663
2664 if (nbytes > 0)
2665 pa_sink_input_drop(i, nbytes);
2666
2667 pa_log_debug("Requesting rewind due to finished move");
2668 pa_sink_request_rewind(s, nbytes);
2669 }
2670
2671 /* Updating the requested sink latency has to be done
2672 * after the sink rewind request, not before, because
2673 * otherwise the sink may limit the rewind amount
2674 * needlessly. */
2675
2676 if (i->thread_info.requested_sink_latency != (pa_usec_t) -1)
2677 pa_sink_input_set_requested_latency_within_thread(i, i->thread_info.requested_sink_latency);
2678
2679 pa_sink_input_update_max_rewind(i, s->thread_info.max_rewind);
2680 pa_sink_input_update_max_request(i, s->thread_info.max_request);
2681
2682 return o->process_msg(o, PA_SINK_MESSAGE_SET_SHARED_VOLUME, NULL, 0, NULL);
2683 }
2684
2685 case PA_SINK_MESSAGE_SET_SHARED_VOLUME: {
2686 pa_sink *root_sink = pa_sink_get_master(s);
2687
2688 if (PA_LIKELY(root_sink))
2689 set_shared_volume_within_thread(root_sink);
2690
2691 return 0;
2692 }
2693
2694 case PA_SINK_MESSAGE_SET_VOLUME_SYNCED:
2695
2696 if (s->flags & PA_SINK_DEFERRED_VOLUME) {
2697 s->set_volume(s);
2698 pa_sink_volume_change_push(s);
2699 }
2700 /* Fall through ... */
2701
2702 case PA_SINK_MESSAGE_SET_VOLUME:
2703
2704 if (!pa_cvolume_equal(&s->thread_info.soft_volume, &s->soft_volume)) {
2705 s->thread_info.soft_volume = s->soft_volume;
2706 pa_sink_request_rewind(s, (size_t) -1);
2707 }
2708
2709 /* Fall through ... */
2710
2711 case PA_SINK_MESSAGE_SYNC_VOLUMES:
2712 sync_input_volumes_within_thread(s);
2713 return 0;
2714
2715 case PA_SINK_MESSAGE_GET_VOLUME:
2716
2717 if ((s->flags & PA_SINK_DEFERRED_VOLUME) && s->get_volume) {
2718 s->get_volume(s);
2719 pa_sink_volume_change_flush(s);
2720 pa_sw_cvolume_divide(&s->thread_info.current_hw_volume, &s->real_volume, &s->soft_volume);
2721 }
2722
2723 /* In case sink implementor reset SW volume. */
2724 if (!pa_cvolume_equal(&s->thread_info.soft_volume, &s->soft_volume)) {
2725 s->thread_info.soft_volume = s->soft_volume;
2726 pa_sink_request_rewind(s, (size_t) -1);
2727 }
2728
2729 return 0;
2730
2731 case PA_SINK_MESSAGE_SET_MUTE:
2732
2733 if (s->thread_info.soft_muted != s->muted) {
2734 s->thread_info.soft_muted = s->muted;
2735 pa_sink_request_rewind(s, (size_t) -1);
2736 }
2737
2738 if (s->flags & PA_SINK_DEFERRED_VOLUME && s->set_mute)
2739 s->set_mute(s);
2740
2741 return 0;
2742
2743 case PA_SINK_MESSAGE_GET_MUTE:
2744
2745 if (s->flags & PA_SINK_DEFERRED_VOLUME && s->get_mute)
2746 s->get_mute(s);
2747
2748 return 0;
2749
2750 case PA_SINK_MESSAGE_SET_STATE: {
2751
2752 bool suspend_change =
2753 (s->thread_info.state == PA_SINK_SUSPENDED && PA_SINK_IS_OPENED(PA_PTR_TO_UINT(userdata))) ||
2754 (PA_SINK_IS_OPENED(s->thread_info.state) && PA_PTR_TO_UINT(userdata) == PA_SINK_SUSPENDED);
2755
2756 s->thread_info.state = PA_PTR_TO_UINT(userdata);
2757
2758 if (s->thread_info.state == PA_SINK_SUSPENDED) {
2759 s->thread_info.rewind_nbytes = 0;
2760 s->thread_info.rewind_requested = false;
2761 }
2762
2763 if (suspend_change) {
2764 pa_sink_input *i;
2765 void *state = NULL;
2766
2767 while ((i = pa_hashmap_iterate(s->thread_info.inputs, &state, NULL)))
2768 if (i->suspend_within_thread)
2769 i->suspend_within_thread(i, s->thread_info.state == PA_SINK_SUSPENDED);
2770 }
2771
2772 return 0;
2773 }
2774
2775 case PA_SINK_MESSAGE_GET_REQUESTED_LATENCY: {
2776
2777 pa_usec_t *usec = userdata;
2778 *usec = pa_sink_get_requested_latency_within_thread(s);
2779
2780 /* Yes, that's right, the IO thread will see -1 when no
2781 * explicit requested latency is configured, the main
2782 * thread will see max_latency */
2783 if (*usec == (pa_usec_t) -1)
2784 *usec = s->thread_info.max_latency;
2785
2786 return 0;
2787 }
2788
2789 case PA_SINK_MESSAGE_SET_LATENCY_RANGE: {
2790 pa_usec_t *r = userdata;
2791
2792 pa_sink_set_latency_range_within_thread(s, r[0], r[1]);
2793
2794 return 0;
2795 }
2796
2797 case PA_SINK_MESSAGE_GET_LATENCY_RANGE: {
2798 pa_usec_t *r = userdata;
2799
2800 r[0] = s->thread_info.min_latency;
2801 r[1] = s->thread_info.max_latency;
2802
2803 return 0;
2804 }
2805
2806 case PA_SINK_MESSAGE_GET_FIXED_LATENCY:
2807
2808 *((pa_usec_t*) userdata) = s->thread_info.fixed_latency;
2809 return 0;
2810
2811 case PA_SINK_MESSAGE_SET_FIXED_LATENCY:
2812
2813 pa_sink_set_fixed_latency_within_thread(s, (pa_usec_t) offset);
2814 return 0;
2815
2816 case PA_SINK_MESSAGE_GET_MAX_REWIND:
2817
2818 *((size_t*) userdata) = s->thread_info.max_rewind;
2819 return 0;
2820
2821 case PA_SINK_MESSAGE_GET_MAX_REQUEST:
2822
2823 *((size_t*) userdata) = s->thread_info.max_request;
2824 return 0;
2825
2826 case PA_SINK_MESSAGE_SET_MAX_REWIND:
2827
2828 pa_sink_set_max_rewind_within_thread(s, (size_t) offset);
2829 return 0;
2830
2831 case PA_SINK_MESSAGE_SET_MAX_REQUEST:
2832
2833 pa_sink_set_max_request_within_thread(s, (size_t) offset);
2834 return 0;
2835
2836 case PA_SINK_MESSAGE_SET_PORT:
2837
2838 pa_assert(userdata);
2839 if (s->set_port) {
2840 struct sink_message_set_port *msg_data = userdata;
2841 msg_data->ret = s->set_port(s, msg_data->port);
2842 }
2843 return 0;
2844
2845 case PA_SINK_MESSAGE_UPDATE_VOLUME_AND_MUTE:
2846 /* This message is sent from IO-thread and handled in main thread. */
2847 pa_assert_ctl_context();
2848
2849 /* Make sure we're not messing with main thread when no longer linked */
2850 if (!PA_SINK_IS_LINKED(s->state))
2851 return 0;
2852
2853 pa_sink_get_volume(s, true);
2854 pa_sink_get_mute(s, true);
2855 return 0;
2856
2857 case PA_SINK_MESSAGE_SET_LATENCY_OFFSET:
2858 s->thread_info.latency_offset = offset;
2859 return 0;
2860
2861 case PA_SINK_MESSAGE_GET_LATENCY:
2862 case PA_SINK_MESSAGE_MAX:
2863 ;
2864 }
2865
2866 return -1;
2867 }
2868
2869 /* Called from main thread */
2870 int pa_sink_suspend_all(pa_core *c, bool suspend, pa_suspend_cause_t cause) {
2871 pa_sink *sink;
2872 uint32_t idx;
2873 int ret = 0;
2874
2875 pa_core_assert_ref(c);
2876 pa_assert_ctl_context();
2877 pa_assert(cause != 0);
2878
2879 PA_IDXSET_FOREACH(sink, c->sinks, idx) {
2880 int r;
2881
2882 if ((r = pa_sink_suspend(sink, suspend, cause)) < 0)
2883 ret = r;
2884 }
2885
2886 return ret;
2887 }
2888
2889 /* Called from IO thread */
2890 void pa_sink_detach_within_thread(pa_sink *s) {
2891 pa_sink_input *i;
2892 void *state = NULL;
2893
2894 pa_sink_assert_ref(s);
2895 pa_sink_assert_io_context(s);
2896 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
2897
2898 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
2899 if (i->detach)
2900 i->detach(i);
2901
2902 if (s->monitor_source)
2903 pa_source_detach_within_thread(s->monitor_source);
2904 }
2905
2906 /* Called from IO thread */
2907 void pa_sink_attach_within_thread(pa_sink *s) {
2908 pa_sink_input *i;
2909 void *state = NULL;
2910
2911 pa_sink_assert_ref(s);
2912 pa_sink_assert_io_context(s);
2913 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
2914
2915 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
2916 if (i->attach)
2917 i->attach(i);
2918
2919 if (s->monitor_source)
2920 pa_source_attach_within_thread(s->monitor_source);
2921 }
2922
2923 /* Called from IO thread */
2924 void pa_sink_request_rewind(pa_sink*s, size_t nbytes) {
2925 pa_sink_assert_ref(s);
2926 pa_sink_assert_io_context(s);
2927 pa_assert(PA_SINK_IS_LINKED(s->thread_info.state));
2928
2929 if (nbytes == (size_t) -1)
2930 nbytes = s->thread_info.max_rewind;
2931
2932 nbytes = PA_MIN(nbytes, s->thread_info.max_rewind);
2933
2934 if (s->thread_info.rewind_requested &&
2935 nbytes <= s->thread_info.rewind_nbytes)
2936 return;
2937
2938 s->thread_info.rewind_nbytes = nbytes;
2939 s->thread_info.rewind_requested = true;
2940
2941 if (s->request_rewind)
2942 s->request_rewind(s);
2943 }
2944
2945 /* Called from IO thread */
2946 pa_usec_t pa_sink_get_requested_latency_within_thread(pa_sink *s) {
2947 pa_usec_t result = (pa_usec_t) -1;
2948 pa_sink_input *i;
2949 void *state = NULL;
2950 pa_usec_t monitor_latency;
2951
2952 pa_sink_assert_ref(s);
2953 pa_sink_assert_io_context(s);
2954
2955 if (!(s->flags & PA_SINK_DYNAMIC_LATENCY))
2956 return PA_CLAMP(s->thread_info.fixed_latency, s->thread_info.min_latency, s->thread_info.max_latency);
2957
2958 if (s->thread_info.requested_latency_valid)
2959 return s->thread_info.requested_latency;
2960
2961 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
2962 if (i->thread_info.requested_sink_latency != (pa_usec_t) -1 &&
2963 (result == (pa_usec_t) -1 || result > i->thread_info.requested_sink_latency))
2964 result = i->thread_info.requested_sink_latency;
2965
2966 monitor_latency = pa_source_get_requested_latency_within_thread(s->monitor_source);
2967
2968 if (monitor_latency != (pa_usec_t) -1 &&
2969 (result == (pa_usec_t) -1 || result > monitor_latency))
2970 result = monitor_latency;
2971
2972 if (result != (pa_usec_t) -1)
2973 result = PA_CLAMP(result, s->thread_info.min_latency, s->thread_info.max_latency);
2974
2975 if (PA_SINK_IS_LINKED(s->thread_info.state)) {
2976 /* Only cache if properly initialized */
2977 s->thread_info.requested_latency = result;
2978 s->thread_info.requested_latency_valid = true;
2979 }
2980
2981 return result;
2982 }
2983
2984 /* Called from main thread */
2985 pa_usec_t pa_sink_get_requested_latency(pa_sink *s) {
2986 pa_usec_t usec = 0;
2987
2988 pa_sink_assert_ref(s);
2989 pa_assert_ctl_context();
2990 pa_assert(PA_SINK_IS_LINKED(s->state));
2991
2992 if (s->state == PA_SINK_SUSPENDED)
2993 return 0;
2994
2995 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_REQUESTED_LATENCY, &usec, 0, NULL) == 0);
2996
2997 return usec;
2998 }
2999
3000 /* Called from IO as well as the main thread -- the latter only before the IO thread started up */
3001 void pa_sink_set_max_rewind_within_thread(pa_sink *s, size_t max_rewind) {
3002 pa_sink_input *i;
3003 void *state = NULL;
3004
3005 pa_sink_assert_ref(s);
3006 pa_sink_assert_io_context(s);
3007
3008 if (max_rewind == s->thread_info.max_rewind)
3009 return;
3010
3011 s->thread_info.max_rewind = max_rewind;
3012
3013 if (PA_SINK_IS_LINKED(s->thread_info.state))
3014 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
3015 pa_sink_input_update_max_rewind(i, s->thread_info.max_rewind);
3016
3017 if (s->monitor_source)
3018 pa_source_set_max_rewind_within_thread(s->monitor_source, s->thread_info.max_rewind);
3019 }
3020
3021 /* Called from main thread */
3022 void pa_sink_set_max_rewind(pa_sink *s, size_t max_rewind) {
3023 pa_sink_assert_ref(s);
3024 pa_assert_ctl_context();
3025
3026 if (PA_SINK_IS_LINKED(s->state))
3027 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_MAX_REWIND, NULL, max_rewind, NULL) == 0);
3028 else
3029 pa_sink_set_max_rewind_within_thread(s, max_rewind);
3030 }
3031
3032 /* Called from IO as well as the main thread -- the latter only before the IO thread started up */
3033 void pa_sink_set_max_request_within_thread(pa_sink *s, size_t max_request) {
3034 void *state = NULL;
3035
3036 pa_sink_assert_ref(s);
3037 pa_sink_assert_io_context(s);
3038
3039 if (max_request == s->thread_info.max_request)
3040 return;
3041
3042 s->thread_info.max_request = max_request;
3043
3044 if (PA_SINK_IS_LINKED(s->thread_info.state)) {
3045 pa_sink_input *i;
3046
3047 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
3048 pa_sink_input_update_max_request(i, s->thread_info.max_request);
3049 }
3050 }
3051
3052 /* Called from main thread */
3053 void pa_sink_set_max_request(pa_sink *s, size_t max_request) {
3054 pa_sink_assert_ref(s);
3055 pa_assert_ctl_context();
3056
3057 if (PA_SINK_IS_LINKED(s->state))
3058 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_MAX_REQUEST, NULL, max_request, NULL) == 0);
3059 else
3060 pa_sink_set_max_request_within_thread(s, max_request);
3061 }
3062
3063 /* Called from IO thread */
3064 void pa_sink_invalidate_requested_latency(pa_sink *s, bool dynamic) {
3065 pa_sink_input *i;
3066 void *state = NULL;
3067
3068 pa_sink_assert_ref(s);
3069 pa_sink_assert_io_context(s);
3070
3071 if ((s->flags & PA_SINK_DYNAMIC_LATENCY))
3072 s->thread_info.requested_latency_valid = false;
3073 else if (dynamic)
3074 return;
3075
3076 if (PA_SINK_IS_LINKED(s->thread_info.state)) {
3077
3078 if (s->update_requested_latency)
3079 s->update_requested_latency(s);
3080
3081 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
3082 if (i->update_sink_requested_latency)
3083 i->update_sink_requested_latency(i);
3084 }
3085 }
3086
3087 /* Called from main thread */
3088 void pa_sink_set_latency_range(pa_sink *s, pa_usec_t min_latency, pa_usec_t max_latency) {
3089 pa_sink_assert_ref(s);
3090 pa_assert_ctl_context();
3091
3092 /* min_latency == 0: no limit
3093 * min_latency anything else: specified limit
3094 *
3095 * Similar for max_latency */
3096
3097 if (min_latency < ABSOLUTE_MIN_LATENCY)
3098 min_latency = ABSOLUTE_MIN_LATENCY;
3099
3100 if (max_latency <= 0 ||
3101 max_latency > ABSOLUTE_MAX_LATENCY)
3102 max_latency = ABSOLUTE_MAX_LATENCY;
3103
3104 pa_assert(min_latency <= max_latency);
3105
3106 /* Hmm, let's see if someone forgot to set PA_SINK_DYNAMIC_LATENCY here... */
3107 pa_assert((min_latency == ABSOLUTE_MIN_LATENCY &&
3108 max_latency == ABSOLUTE_MAX_LATENCY) ||
3109 (s->flags & PA_SINK_DYNAMIC_LATENCY));
3110
3111 if (PA_SINK_IS_LINKED(s->state)) {
3112 pa_usec_t r[2];
3113
3114 r[0] = min_latency;
3115 r[1] = max_latency;
3116
3117 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_LATENCY_RANGE, r, 0, NULL) == 0);
3118 } else
3119 pa_sink_set_latency_range_within_thread(s, min_latency, max_latency);
3120 }
3121
3122 /* Called from main thread */
3123 void pa_sink_get_latency_range(pa_sink *s, pa_usec_t *min_latency, pa_usec_t *max_latency) {
3124 pa_sink_assert_ref(s);
3125 pa_assert_ctl_context();
3126 pa_assert(min_latency);
3127 pa_assert(max_latency);
3128
3129 if (PA_SINK_IS_LINKED(s->state)) {
3130 pa_usec_t r[2] = { 0, 0 };
3131
3132 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_LATENCY_RANGE, r, 0, NULL) == 0);
3133
3134 *min_latency = r[0];
3135 *max_latency = r[1];
3136 } else {
3137 *min_latency = s->thread_info.min_latency;
3138 *max_latency = s->thread_info.max_latency;
3139 }
3140 }
3141
3142 /* Called from IO thread */
3143 void pa_sink_set_latency_range_within_thread(pa_sink *s, pa_usec_t min_latency, pa_usec_t max_latency) {
3144 pa_sink_assert_ref(s);
3145 pa_sink_assert_io_context(s);
3146
3147 pa_assert(min_latency >= ABSOLUTE_MIN_LATENCY);
3148 pa_assert(max_latency <= ABSOLUTE_MAX_LATENCY);
3149 pa_assert(min_latency <= max_latency);
3150
3151 /* Hmm, let's see if someone forgot to set PA_SINK_DYNAMIC_LATENCY here... */
3152 pa_assert((min_latency == ABSOLUTE_MIN_LATENCY &&
3153 max_latency == ABSOLUTE_MAX_LATENCY) ||
3154 (s->flags & PA_SINK_DYNAMIC_LATENCY));
3155
3156 if (s->thread_info.min_latency == min_latency &&
3157 s->thread_info.max_latency == max_latency)
3158 return;
3159
3160 s->thread_info.min_latency = min_latency;
3161 s->thread_info.max_latency = max_latency;
3162
3163 if (PA_SINK_IS_LINKED(s->thread_info.state)) {
3164 pa_sink_input *i;
3165 void *state = NULL;
3166
3167 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
3168 if (i->update_sink_latency_range)
3169 i->update_sink_latency_range(i);
3170 }
3171
3172 pa_sink_invalidate_requested_latency(s, false);
3173
3174 pa_source_set_latency_range_within_thread(s->monitor_source, min_latency, max_latency);
3175 }
3176
3177 /* Called from main thread */
3178 void pa_sink_set_fixed_latency(pa_sink *s, pa_usec_t latency) {
3179 pa_sink_assert_ref(s);
3180 pa_assert_ctl_context();
3181
3182 if (s->flags & PA_SINK_DYNAMIC_LATENCY) {
3183 pa_assert(latency == 0);
3184 return;
3185 }
3186
3187 if (latency < ABSOLUTE_MIN_LATENCY)
3188 latency = ABSOLUTE_MIN_LATENCY;
3189
3190 if (latency > ABSOLUTE_MAX_LATENCY)
3191 latency = ABSOLUTE_MAX_LATENCY;
3192
3193 if (PA_SINK_IS_LINKED(s->state))
3194 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_FIXED_LATENCY, NULL, (int64_t) latency, NULL) == 0);
3195 else
3196 s->thread_info.fixed_latency = latency;
3197
3198 pa_source_set_fixed_latency(s->monitor_source, latency);
3199 }
3200
3201 /* Called from main thread */
3202 pa_usec_t pa_sink_get_fixed_latency(pa_sink *s) {
3203 pa_usec_t latency;
3204
3205 pa_sink_assert_ref(s);
3206 pa_assert_ctl_context();
3207
3208 if (s->flags & PA_SINK_DYNAMIC_LATENCY)
3209 return 0;
3210
3211 if (PA_SINK_IS_LINKED(s->state))
3212 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_FIXED_LATENCY, &latency, 0, NULL) == 0);
3213 else
3214 latency = s->thread_info.fixed_latency;
3215
3216 return latency;
3217 }
3218
3219 /* Called from IO thread */
3220 void pa_sink_set_fixed_latency_within_thread(pa_sink *s, pa_usec_t latency) {
3221 pa_sink_assert_ref(s);
3222 pa_sink_assert_io_context(s);
3223
3224 if (s->flags & PA_SINK_DYNAMIC_LATENCY) {
3225 pa_assert(latency == 0);
3226 s->thread_info.fixed_latency = 0;
3227
3228 if (s->monitor_source)
3229 pa_source_set_fixed_latency_within_thread(s->monitor_source, 0);
3230
3231 return;
3232 }
3233
3234 pa_assert(latency >= ABSOLUTE_MIN_LATENCY);
3235 pa_assert(latency <= ABSOLUTE_MAX_LATENCY);
3236
3237 if (s->thread_info.fixed_latency == latency)
3238 return;
3239
3240 s->thread_info.fixed_latency = latency;
3241
3242 if (PA_SINK_IS_LINKED(s->thread_info.state)) {
3243 pa_sink_input *i;
3244 void *state = NULL;
3245
3246 PA_HASHMAP_FOREACH(i, s->thread_info.inputs, state)
3247 if (i->update_sink_fixed_latency)
3248 i->update_sink_fixed_latency(i);
3249 }
3250
3251 pa_sink_invalidate_requested_latency(s, false);
3252
3253 pa_source_set_fixed_latency_within_thread(s->monitor_source, latency);
3254 }
3255
3256 /* Called from main context */
3257 void pa_sink_set_latency_offset(pa_sink *s, int64_t offset) {
3258 pa_sink_assert_ref(s);
3259
3260 s->latency_offset = offset;
3261
3262 if (PA_SINK_IS_LINKED(s->state))
3263 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_LATENCY_OFFSET, NULL, offset, NULL) == 0);
3264 else
3265 s->thread_info.latency_offset = offset;
3266 }
3267
3268 /* Called from main context */
3269 size_t pa_sink_get_max_rewind(pa_sink *s) {
3270 size_t r;
3271 pa_assert_ctl_context();
3272 pa_sink_assert_ref(s);
3273
3274 if (!PA_SINK_IS_LINKED(s->state))
3275 return s->thread_info.max_rewind;
3276
3277 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_MAX_REWIND, &r, 0, NULL) == 0);
3278
3279 return r;
3280 }
3281
3282 /* Called from main context */
3283 size_t pa_sink_get_max_request(pa_sink *s) {
3284 size_t r;
3285 pa_sink_assert_ref(s);
3286 pa_assert_ctl_context();
3287
3288 if (!PA_SINK_IS_LINKED(s->state))
3289 return s->thread_info.max_request;
3290
3291 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_GET_MAX_REQUEST, &r, 0, NULL) == 0);
3292
3293 return r;
3294 }
3295
3296 /* Called from main context */
3297 int pa_sink_set_port(pa_sink *s, const char *name, bool save) {
3298 pa_device_port *port;
3299 int ret;
3300
3301 pa_sink_assert_ref(s);
3302 pa_assert_ctl_context();
3303
3304 if (!s->set_port) {
3305 pa_log_debug("set_port() operation not implemented for sink %u \"%s\"", s->index, s->name);
3306 return -PA_ERR_NOTIMPLEMENTED;
3307 }
3308
3309 if (!name)
3310 return -PA_ERR_NOENTITY;
3311
3312 if (!(port = pa_hashmap_get(s->ports, name)))
3313 return -PA_ERR_NOENTITY;
3314
3315 if (s->active_port == port) {
3316 s->save_port = s->save_port || save;
3317 return 0;
3318 }
3319
3320 if (s->flags & PA_SINK_DEFERRED_VOLUME) {
3321 struct sink_message_set_port msg = { .port = port, .ret = 0 };
3322 pa_assert_se(pa_asyncmsgq_send(s->asyncmsgq, PA_MSGOBJECT(s), PA_SINK_MESSAGE_SET_PORT, &msg, 0, NULL) == 0);
3323 ret = msg.ret;
3324 }
3325 else
3326 ret = s->set_port(s, port);
3327
3328 if (ret < 0)
3329 return -PA_ERR_NOENTITY;
3330
3331 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
3332
3333 pa_log_info("Changed port of sink %u \"%s\" to %s", s->index, s->name, port->name);
3334
3335 s->active_port = port;
3336 s->save_port = save;
3337
3338 pa_sink_set_latency_offset(s, s->active_port->latency_offset);
3339
3340 pa_hook_fire(&s->core->hooks[PA_CORE_HOOK_SINK_PORT_CHANGED], s);
3341
3342 return 0;
3343 }
3344
3345 bool pa_device_init_icon(pa_proplist *p, bool is_sink) {
3346 const char *ff, *c, *t = NULL, *s = "", *profile, *bus;
3347
3348 pa_assert(p);
3349
3350 if (pa_proplist_contains(p, PA_PROP_DEVICE_ICON_NAME))
3351 return true;
3352
3353 if ((ff = pa_proplist_gets(p, PA_PROP_DEVICE_FORM_FACTOR))) {
3354
3355 if (pa_streq(ff, "microphone"))
3356 t = "audio-input-microphone";
3357 else if (pa_streq(ff, "webcam"))
3358 t = "camera-web";
3359 else if (pa_streq(ff, "computer"))
3360 t = "computer";
3361 else if (pa_streq(ff, "handset"))
3362 t = "phone";
3363 else if (pa_streq(ff, "portable"))
3364 t = "multimedia-player";
3365 else if (pa_streq(ff, "tv"))
3366 t = "video-display";
3367
3368 /*
3369 * The following icons are not part of the icon naming spec,
3370 * because Rodney Dawes sucks as the maintainer of that spec.
3371 *
3372 * http://lists.freedesktop.org/archives/xdg/2009-May/010397.html
3373 */
3374 else if (pa_streq(ff, "headset"))
3375 t = "audio-headset";
3376 else if (pa_streq(ff, "headphone"))
3377 t = "audio-headphones";
3378 else if (pa_streq(ff, "speaker"))
3379 t = "audio-speakers";
3380 else if (pa_streq(ff, "hands-free"))
3381 t = "audio-handsfree";
3382 }
3383
3384 if (!t)
3385 if ((c = pa_proplist_gets(p, PA_PROP_DEVICE_CLASS)))
3386 if (pa_streq(c, "modem"))
3387 t = "modem";
3388
3389 if (!t) {
3390 if (is_sink)
3391 t = "audio-card";
3392 else
3393 t = "audio-input-microphone";
3394 }
3395
3396 if ((profile = pa_proplist_gets(p, PA_PROP_DEVICE_PROFILE_NAME))) {
3397 if (strstr(profile, "analog"))
3398 s = "-analog";
3399 else if (strstr(profile, "iec958"))
3400 s = "-iec958";
3401 else if (strstr(profile, "hdmi"))
3402 s = "-hdmi";
3403 }
3404
3405 bus = pa_proplist_gets(p, PA_PROP_DEVICE_BUS);
3406
3407 pa_proplist_setf(p, PA_PROP_DEVICE_ICON_NAME, "%s%s%s%s", t, pa_strempty(s), bus ? "-" : "", pa_strempty(bus));
3408
3409 return true;
3410 }
3411
3412 bool pa_device_init_description(pa_proplist *p, pa_card *card) {
3413 const char *s, *d = NULL, *k;
3414 pa_assert(p);
3415
3416 if (pa_proplist_contains(p, PA_PROP_DEVICE_DESCRIPTION))
3417 return true;
3418
3419 if (card)
3420 if ((s = pa_proplist_gets(card->proplist, PA_PROP_DEVICE_DESCRIPTION)))
3421 d = s;
3422
3423 if (!d)
3424 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_FORM_FACTOR)))
3425 if (pa_streq(s, "internal"))
3426 d = _("Built-in Audio");
3427
3428 if (!d)
3429 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_CLASS)))
3430 if (pa_streq(s, "modem"))
3431 d = _("Modem");
3432
3433 if (!d)
3434 d = pa_proplist_gets(p, PA_PROP_DEVICE_PRODUCT_NAME);
3435
3436 if (!d)
3437 return false;
3438
3439 k = pa_proplist_gets(p, PA_PROP_DEVICE_PROFILE_DESCRIPTION);
3440
3441 if (d && k)
3442 pa_proplist_setf(p, PA_PROP_DEVICE_DESCRIPTION, "%s %s", d, k);
3443 else if (d)
3444 pa_proplist_sets(p, PA_PROP_DEVICE_DESCRIPTION, d);
3445
3446 return true;
3447 }
3448
3449 bool pa_device_init_intended_roles(pa_proplist *p) {
3450 const char *s;
3451 pa_assert(p);
3452
3453 if (pa_proplist_contains(p, PA_PROP_DEVICE_INTENDED_ROLES))
3454 return true;
3455
3456 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_FORM_FACTOR)))
3457 if (pa_streq(s, "handset") || pa_streq(s, "hands-free")
3458 || pa_streq(s, "headset")) {
3459 pa_proplist_sets(p, PA_PROP_DEVICE_INTENDED_ROLES, "phone");
3460 return true;
3461 }
3462
3463 return false;
3464 }
3465
3466 unsigned pa_device_init_priority(pa_proplist *p) {
3467 const char *s;
3468 unsigned priority = 0;
3469
3470 pa_assert(p);
3471
3472 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_CLASS))) {
3473
3474 if (pa_streq(s, "sound"))
3475 priority += 9000;
3476 else if (!pa_streq(s, "modem"))
3477 priority += 1000;
3478 }
3479
3480 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_FORM_FACTOR))) {
3481
3482 if (pa_streq(s, "internal"))
3483 priority += 900;
3484 else if (pa_streq(s, "speaker"))
3485 priority += 500;
3486 else if (pa_streq(s, "headphone"))
3487 priority += 400;
3488 }
3489
3490 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_BUS))) {
3491
3492 if (pa_streq(s, "pci"))
3493 priority += 50;
3494 else if (pa_streq(s, "usb"))
3495 priority += 40;
3496 else if (pa_streq(s, "bluetooth"))
3497 priority += 30;
3498 }
3499
3500 if ((s = pa_proplist_gets(p, PA_PROP_DEVICE_PROFILE_NAME))) {
3501
3502 if (pa_startswith(s, "analog-"))
3503 priority += 9;
3504 else if (pa_startswith(s, "iec958-"))
3505 priority += 8;
3506 }
3507
3508 return priority;
3509 }
3510
3511 PA_STATIC_FLIST_DECLARE(pa_sink_volume_change, 0, pa_xfree);
3512
3513 /* Called from the IO thread. */
3514 static pa_sink_volume_change *pa_sink_volume_change_new(pa_sink *s) {
3515 pa_sink_volume_change *c;
3516 if (!(c = pa_flist_pop(PA_STATIC_FLIST_GET(pa_sink_volume_change))))
3517 c = pa_xnew(pa_sink_volume_change, 1);
3518
3519 PA_LLIST_INIT(pa_sink_volume_change, c);
3520 c->at = 0;
3521 pa_cvolume_reset(&c->hw_volume, s->sample_spec.channels);
3522 return c;
3523 }
3524
3525 /* Called from the IO thread. */
3526 static void pa_sink_volume_change_free(pa_sink_volume_change *c) {
3527 pa_assert(c);
3528 if (pa_flist_push(PA_STATIC_FLIST_GET(pa_sink_volume_change), c) < 0)
3529 pa_xfree(c);
3530 }
3531
3532 /* Called from the IO thread. */
3533 void pa_sink_volume_change_push(pa_sink *s) {
3534 pa_sink_volume_change *c = NULL;
3535 pa_sink_volume_change *nc = NULL;
3536 uint32_t safety_margin = s->thread_info.volume_change_safety_margin;
3537
3538 const char *direction = NULL;
3539
3540 pa_assert(s);
3541 nc = pa_sink_volume_change_new(s);
3542
3543 /* NOTE: There is already more different volumes in pa_sink that I can remember.
3544 * Adding one more volume for HW would get us rid of this, but I am trying
3545 * to survive with the ones we already have. */
3546 pa_sw_cvolume_divide(&nc->hw_volume, &s->real_volume, &s->soft_volume);
3547
3548 if (!s->thread_info.volume_changes && pa_cvolume_equal(&nc->hw_volume, &s->thread_info.current_hw_volume)) {
3549 pa_log_debug("Volume not changing");
3550 pa_sink_volume_change_free(nc);
3551 return;
3552 }
3553
3554 nc->at = pa_sink_get_latency_within_thread(s);
3555 nc->at += pa_rtclock_now() + s->thread_info.volume_change_extra_delay;
3556
3557 if (s->thread_info.volume_changes_tail) {
3558 for (c = s->thread_info.volume_changes_tail; c; c = c->prev) {
3559 /* If volume is going up let's do it a bit late. If it is going
3560 * down let's do it a bit early. */
3561 if (pa_cvolume_avg(&nc->hw_volume) > pa_cvolume_avg(&c->hw_volume)) {
3562 if (nc->at + safety_margin > c->at) {
3563 nc->at += safety_margin;
3564 direction = "up";
3565 break;
3566 }
3567 }
3568 else if (nc->at - safety_margin > c->at) {
3569 nc->at -= safety_margin;
3570 direction = "down";
3571 break;
3572 }
3573 }
3574 }
3575
3576 if (c == NULL) {
3577 if (pa_cvolume_avg(&nc->hw_volume) > pa_cvolume_avg(&s->thread_info.current_hw_volume)) {
3578 nc->at += safety_margin;
3579 direction = "up";
3580 } else {
3581 nc->at -= safety_margin;
3582 direction = "down";
3583 }
3584 PA_LLIST_PREPEND(pa_sink_volume_change, s->thread_info.volume_changes, nc);
3585 }
3586 else {
3587 PA_LLIST_INSERT_AFTER(pa_sink_volume_change, s->thread_info.volume_changes, c, nc);
3588 }
3589
3590 pa_log_debug("Volume going %s to %d at %llu", direction, pa_cvolume_avg(&nc->hw_volume), (long long unsigned) nc->at);
3591
3592 /* We can ignore volume events that came earlier but should happen later than this. */
3593 PA_LLIST_FOREACH(c, nc->next) {
3594 pa_log_debug("Volume change to %d at %llu was dropped", pa_cvolume_avg(&c->hw_volume), (long long unsigned) c->at);
3595 pa_sink_volume_change_free(c);
3596 }
3597 nc->next = NULL;
3598 s->thread_info.volume_changes_tail = nc;
3599 }
3600
3601 /* Called from the IO thread. */
3602 static void pa_sink_volume_change_flush(pa_sink *s) {
3603 pa_sink_volume_change *c = s->thread_info.volume_changes;
3604 pa_assert(s);
3605 s->thread_info.volume_changes = NULL;
3606 s->thread_info.volume_changes_tail = NULL;
3607 while (c) {
3608 pa_sink_volume_change *next = c->next;
3609 pa_sink_volume_change_free(c);
3610 c = next;
3611 }
3612 }
3613
3614 /* Called from the IO thread. */
3615 bool pa_sink_volume_change_apply(pa_sink *s, pa_usec_t *usec_to_next) {
3616 pa_usec_t now;
3617 bool ret = false;
3618
3619 pa_assert(s);
3620
3621 if (!s->thread_info.volume_changes || !PA_SINK_IS_LINKED(s->state)) {
3622 if (usec_to_next)
3623 *usec_to_next = 0;
3624 return ret;
3625 }
3626
3627 pa_assert(s->write_volume);
3628
3629 now = pa_rtclock_now();
3630
3631 while (s->thread_info.volume_changes && now >= s->thread_info.volume_changes->at) {
3632 pa_sink_volume_change *c = s->thread_info.volume_changes;
3633 PA_LLIST_REMOVE(pa_sink_volume_change, s->thread_info.volume_changes, c);
3634 pa_log_debug("Volume change to %d at %llu was written %llu usec late",
3635 pa_cvolume_avg(&c->hw_volume), (long long unsigned) c->at, (long long unsigned) (now - c->at));
3636 ret = true;
3637 s->thread_info.current_hw_volume = c->hw_volume;
3638 pa_sink_volume_change_free(c);
3639 }
3640
3641 if (ret)
3642 s->write_volume(s);
3643
3644 if (s->thread_info.volume_changes) {
3645 if (usec_to_next)
3646 *usec_to_next = s->thread_info.volume_changes->at - now;
3647 if (pa_log_ratelimit(PA_LOG_DEBUG))
3648 pa_log_debug("Next volume change in %lld usec", (long long) (s->thread_info.volume_changes->at - now));
3649 }
3650 else {
3651 if (usec_to_next)
3652 *usec_to_next = 0;
3653 s->thread_info.volume_changes_tail = NULL;
3654 }
3655 return ret;
3656 }
3657
3658 /* Called from the IO thread. */
3659 static void pa_sink_volume_change_rewind(pa_sink *s, size_t nbytes) {
3660 /* All the queued volume events later than current latency are shifted to happen earlier. */
3661 pa_sink_volume_change *c;
3662 pa_volume_t prev_vol = pa_cvolume_avg(&s->thread_info.current_hw_volume);
3663 pa_usec_t rewound = pa_bytes_to_usec(nbytes, &s->sample_spec);
3664 pa_usec_t limit = pa_sink_get_latency_within_thread(s);
3665
3666 pa_log_debug("latency = %lld", (long long) limit);
3667 limit += pa_rtclock_now() + s->thread_info.volume_change_extra_delay;
3668
3669 PA_LLIST_FOREACH(c, s->thread_info.volume_changes) {
3670 pa_usec_t modified_limit = limit;
3671 if (prev_vol > pa_cvolume_avg(&c->hw_volume))
3672 modified_limit -= s->thread_info.volume_change_safety_margin;
3673 else
3674 modified_limit += s->thread_info.volume_change_safety_margin;
3675 if (c->at > modified_limit) {
3676 c->at -= rewound;
3677 if (c->at < modified_limit)
3678 c->at = modified_limit;
3679 }
3680 prev_vol = pa_cvolume_avg(&c->hw_volume);
3681 }
3682 pa_sink_volume_change_apply(s, NULL);
3683 }
3684
3685 /* Called from the main thread */
3686 /* Gets the list of formats supported by the sink. The members and idxset must
3687 * be freed by the caller. */
3688 pa_idxset* pa_sink_get_formats(pa_sink *s) {
3689 pa_idxset *ret;
3690
3691 pa_assert(s);
3692
3693 if (s->get_formats) {
3694 /* Sink supports format query, all is good */
3695 ret = s->get_formats(s);
3696 } else {
3697 /* Sink doesn't support format query, so assume it does PCM */
3698 pa_format_info *f = pa_format_info_new();
3699 f->encoding = PA_ENCODING_PCM;
3700
3701 ret = pa_idxset_new(NULL, NULL);
3702 pa_idxset_put(ret, f, NULL);
3703 }
3704
3705 return ret;
3706 }
3707
3708 /* Called from the main thread */
3709 /* Allows an external source to set what formats a sink supports if the sink
3710 * permits this. The function makes a copy of the formats on success. */
3711 bool pa_sink_set_formats(pa_sink *s, pa_idxset *formats) {
3712 pa_assert(s);
3713 pa_assert(formats);
3714
3715 if (s->set_formats)
3716 /* Sink supports setting formats -- let's give it a shot */
3717 return s->set_formats(s, formats);
3718 else
3719 /* Sink doesn't support setting this -- bail out */
3720 return false;
3721 }
3722
3723 /* Called from the main thread */
3724 /* Checks if the sink can accept this format */
3725 bool pa_sink_check_format(pa_sink *s, pa_format_info *f) {
3726 pa_idxset *formats = NULL;
3727 bool ret = false;
3728
3729 pa_assert(s);
3730 pa_assert(f);
3731
3732 formats = pa_sink_get_formats(s);
3733
3734 if (formats) {
3735 pa_format_info *finfo_device;
3736 uint32_t i;
3737
3738 PA_IDXSET_FOREACH(finfo_device, formats, i) {
3739 if (pa_format_info_is_compatible(finfo_device, f)) {
3740 ret = true;
3741 break;
3742 }
3743 }
3744
3745 pa_idxset_free(formats, (pa_free_cb_t) pa_format_info_free);
3746 }
3747
3748 return ret;
3749 }
3750
3751 /* Called from the main thread */
3752 /* Calculates the intersection between formats supported by the sink and
3753 * in_formats, and returns these, in the order of the sink's formats. */
3754 pa_idxset* pa_sink_check_formats(pa_sink *s, pa_idxset *in_formats) {
3755 pa_idxset *out_formats = pa_idxset_new(NULL, NULL), *sink_formats = NULL;
3756 pa_format_info *f_sink, *f_in;
3757 uint32_t i, j;
3758
3759 pa_assert(s);
3760
3761 if (!in_formats || pa_idxset_isempty(in_formats))
3762 goto done;
3763
3764 sink_formats = pa_sink_get_formats(s);
3765
3766 PA_IDXSET_FOREACH(f_sink, sink_formats, i) {
3767 PA_IDXSET_FOREACH(f_in, in_formats, j) {
3768 if (pa_format_info_is_compatible(f_sink, f_in))
3769 pa_idxset_put(out_formats, pa_format_info_copy(f_in), NULL);
3770 }
3771 }
3772
3773 done:
3774 if (sink_formats)
3775 pa_idxset_free(sink_formats, (pa_free_cb_t) pa_format_info_free);
3776
3777 return out_formats;
3778 }
3779
3780 /* Called from the main thread. */
3781 void pa_sink_set_reference_volume_direct(pa_sink *s, const pa_cvolume *volume) {
3782 pa_cvolume old_volume;
3783 char old_volume_str[PA_CVOLUME_SNPRINT_VERBOSE_MAX];
3784 char new_volume_str[PA_CVOLUME_SNPRINT_VERBOSE_MAX];
3785
3786 pa_assert(s);
3787 pa_assert(volume);
3788
3789 old_volume = s->reference_volume;
3790
3791 if (pa_cvolume_equal(volume, &old_volume))
3792 return;
3793
3794 s->reference_volume = *volume;
3795 pa_log_debug("The reference volume of sink %s changed from %s to %s.", s->name,
3796 pa_cvolume_snprint_verbose(old_volume_str, sizeof(old_volume_str), &old_volume, &s->channel_map,
3797 s->flags & PA_SINK_DECIBEL_VOLUME),
3798 pa_cvolume_snprint_verbose(new_volume_str, sizeof(new_volume_str), volume, &s->channel_map,
3799 s->flags & PA_SINK_DECIBEL_VOLUME));
3800
3801 pa_subscription_post(s->core, PA_SUBSCRIPTION_EVENT_SINK|PA_SUBSCRIPTION_EVENT_CHANGE, s->index);
3802 }