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alsa: pass SND_PCM_NONBLOCK when opening device during unsuspend, the same way we...
[pulseaudio] / src / modules / alsa / alsa-source.c
1 /***
2 This file is part of PulseAudio.
3
4 Copyright 2004-2008 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
29 #include <asoundlib.h>
30
31 #include <pulse/i18n.h>
32 #include <pulse/rtclock.h>
33 #include <pulse/timeval.h>
34 #include <pulse/util.h>
35 #include <pulse/xmalloc.h>
36
37 #include <pulsecore/core-error.h>
38 #include <pulsecore/core.h>
39 #include <pulsecore/module.h>
40 #include <pulsecore/memchunk.h>
41 #include <pulsecore/sink.h>
42 #include <pulsecore/modargs.h>
43 #include <pulsecore/core-rtclock.h>
44 #include <pulsecore/core-util.h>
45 #include <pulsecore/sample-util.h>
46 #include <pulsecore/log.h>
47 #include <pulsecore/macro.h>
48 #include <pulsecore/thread.h>
49 #include <pulsecore/core-error.h>
50 #include <pulsecore/thread-mq.h>
51 #include <pulsecore/rtpoll.h>
52 #include <pulsecore/time-smoother.h>
53
54 #include <modules/reserve-wrap.h>
55
56 #include "alsa-util.h"
57 #include "alsa-source.h"
58
59 /* #define DEBUG_TIMING */
60
61 #define DEFAULT_DEVICE "default"
62
63 #define DEFAULT_TSCHED_BUFFER_USEC (2*PA_USEC_PER_SEC) /* 2s */
64 #define DEFAULT_TSCHED_WATERMARK_USEC (20*PA_USEC_PER_MSEC) /* 20ms */
65
66 #define TSCHED_WATERMARK_INC_STEP_USEC (10*PA_USEC_PER_MSEC) /* 10ms */
67 #define TSCHED_WATERMARK_DEC_STEP_USEC (5*PA_USEC_PER_MSEC) /* 5ms */
68 #define TSCHED_WATERMARK_VERIFY_AFTER_USEC (20*PA_USEC_PER_SEC) /* 20s */
69 #define TSCHED_WATERMARK_INC_THRESHOLD_USEC (0*PA_USEC_PER_MSEC) /* 0ms */
70 #define TSCHED_WATERMARK_DEC_THRESHOLD_USEC (100*PA_USEC_PER_MSEC) /* 100ms */
71 #define TSCHED_WATERMARK_STEP_USEC (10*PA_USEC_PER_MSEC) /* 10ms */
72
73 #define TSCHED_MIN_SLEEP_USEC (10*PA_USEC_PER_MSEC) /* 10ms */
74 #define TSCHED_MIN_WAKEUP_USEC (4*PA_USEC_PER_MSEC) /* 4ms */
75
76 #define SMOOTHER_MIN_INTERVAL (2*PA_USEC_PER_MSEC) /* 2ms */
77 #define SMOOTHER_MAX_INTERVAL (200*PA_USEC_PER_MSEC) /* 200ms */
78
79 #define VOLUME_ACCURACY (PA_VOLUME_NORM/100)
80
81 struct userdata {
82 pa_core *core;
83 pa_module *module;
84 pa_source *source;
85
86 pa_thread *thread;
87 pa_thread_mq thread_mq;
88 pa_rtpoll *rtpoll;
89
90 snd_pcm_t *pcm_handle;
91
92 pa_alsa_fdlist *mixer_fdl;
93 snd_mixer_t *mixer_handle;
94 pa_alsa_path_set *mixer_path_set;
95 pa_alsa_path *mixer_path;
96
97 pa_cvolume hardware_volume;
98
99 size_t
100 frame_size,
101 fragment_size,
102 hwbuf_size,
103 tsched_watermark,
104 hwbuf_unused,
105 min_sleep,
106 min_wakeup,
107 watermark_inc_step,
108 watermark_dec_step,
109 watermark_inc_threshold,
110 watermark_dec_threshold;
111
112 pa_usec_t watermark_dec_not_before;
113
114 char *device_name;
115 char *control_device;
116
117 pa_bool_t use_mmap:1, use_tsched:1;
118
119 pa_rtpoll_item *alsa_rtpoll_item;
120
121 snd_mixer_selem_channel_id_t mixer_map[SND_MIXER_SCHN_LAST];
122
123 pa_smoother *smoother;
124 uint64_t read_count;
125 pa_usec_t smoother_interval;
126 pa_usec_t last_smoother_update;
127
128 pa_reserve_wrapper *reserve;
129 pa_hook_slot *reserve_slot;
130 pa_reserve_monitor_wrapper *monitor;
131 pa_hook_slot *monitor_slot;
132 };
133
134 static void userdata_free(struct userdata *u);
135
136 static pa_hook_result_t reserve_cb(pa_reserve_wrapper *r, void *forced, struct userdata *u) {
137 pa_assert(r);
138 pa_assert(u);
139
140 if (pa_source_suspend(u->source, TRUE, PA_SUSPEND_APPLICATION) < 0)
141 return PA_HOOK_CANCEL;
142
143 return PA_HOOK_OK;
144 }
145
146 static void reserve_done(struct userdata *u) {
147 pa_assert(u);
148
149 if (u->reserve_slot) {
150 pa_hook_slot_free(u->reserve_slot);
151 u->reserve_slot = NULL;
152 }
153
154 if (u->reserve) {
155 pa_reserve_wrapper_unref(u->reserve);
156 u->reserve = NULL;
157 }
158 }
159
160 static void reserve_update(struct userdata *u) {
161 const char *description;
162 pa_assert(u);
163
164 if (!u->source || !u->reserve)
165 return;
166
167 if ((description = pa_proplist_gets(u->source->proplist, PA_PROP_DEVICE_DESCRIPTION)))
168 pa_reserve_wrapper_set_application_device_name(u->reserve, description);
169 }
170
171 static int reserve_init(struct userdata *u, const char *dname) {
172 char *rname;
173
174 pa_assert(u);
175 pa_assert(dname);
176
177 if (u->reserve)
178 return 0;
179
180 if (pa_in_system_mode())
181 return 0;
182
183 /* We are resuming, try to lock the device */
184 if (!(rname = pa_alsa_get_reserve_name(dname)))
185 return 0;
186
187 u->reserve = pa_reserve_wrapper_get(u->core, rname);
188 pa_xfree(rname);
189
190 if (!(u->reserve))
191 return -1;
192
193 reserve_update(u);
194
195 pa_assert(!u->reserve_slot);
196 u->reserve_slot = pa_hook_connect(pa_reserve_wrapper_hook(u->reserve), PA_HOOK_NORMAL, (pa_hook_cb_t) reserve_cb, u);
197
198 return 0;
199 }
200
201 static pa_hook_result_t monitor_cb(pa_reserve_monitor_wrapper *w, void* busy, struct userdata *u) {
202 pa_bool_t b;
203
204 pa_assert(w);
205 pa_assert(u);
206
207 b = PA_PTR_TO_UINT(busy) && !u->reserve;
208
209 pa_source_suspend(u->source, b, PA_SUSPEND_APPLICATION);
210 return PA_HOOK_OK;
211 }
212
213 static void monitor_done(struct userdata *u) {
214 pa_assert(u);
215
216 if (u->monitor_slot) {
217 pa_hook_slot_free(u->monitor_slot);
218 u->monitor_slot = NULL;
219 }
220
221 if (u->monitor) {
222 pa_reserve_monitor_wrapper_unref(u->monitor);
223 u->monitor = NULL;
224 }
225 }
226
227 static int reserve_monitor_init(struct userdata *u, const char *dname) {
228 char *rname;
229
230 pa_assert(u);
231 pa_assert(dname);
232
233 if (pa_in_system_mode())
234 return 0;
235
236 /* We are resuming, try to lock the device */
237 if (!(rname = pa_alsa_get_reserve_name(dname)))
238 return 0;
239
240 u->monitor = pa_reserve_monitor_wrapper_get(u->core, rname);
241 pa_xfree(rname);
242
243 if (!(u->monitor))
244 return -1;
245
246 pa_assert(!u->monitor_slot);
247 u->monitor_slot = pa_hook_connect(pa_reserve_monitor_wrapper_hook(u->monitor), PA_HOOK_NORMAL, (pa_hook_cb_t) monitor_cb, u);
248
249 return 0;
250 }
251
252 static void fix_min_sleep_wakeup(struct userdata *u) {
253 size_t max_use, max_use_2;
254 pa_assert(u);
255 pa_assert(u->use_tsched);
256
257 max_use = u->hwbuf_size - u->hwbuf_unused;
258 max_use_2 = pa_frame_align(max_use/2, &u->source->sample_spec);
259
260 u->min_sleep = pa_usec_to_bytes(TSCHED_MIN_SLEEP_USEC, &u->source->sample_spec);
261 u->min_sleep = PA_CLAMP(u->min_sleep, u->frame_size, max_use_2);
262
263 u->min_wakeup = pa_usec_to_bytes(TSCHED_MIN_WAKEUP_USEC, &u->source->sample_spec);
264 u->min_wakeup = PA_CLAMP(u->min_wakeup, u->frame_size, max_use_2);
265 }
266
267 static void fix_tsched_watermark(struct userdata *u) {
268 size_t max_use;
269 pa_assert(u);
270 pa_assert(u->use_tsched);
271
272 max_use = u->hwbuf_size - u->hwbuf_unused;
273
274 if (u->tsched_watermark > max_use - u->min_sleep)
275 u->tsched_watermark = max_use - u->min_sleep;
276
277 if (u->tsched_watermark < u->min_wakeup)
278 u->tsched_watermark = u->min_wakeup;
279 }
280
281 static void increase_watermark(struct userdata *u) {
282 size_t old_watermark;
283 pa_usec_t old_min_latency, new_min_latency;
284
285 pa_assert(u);
286 pa_assert(u->use_tsched);
287
288 /* First, just try to increase the watermark */
289 old_watermark = u->tsched_watermark;
290 u->tsched_watermark = PA_MIN(u->tsched_watermark * 2, u->tsched_watermark + u->watermark_inc_step);
291 fix_tsched_watermark(u);
292
293 if (old_watermark != u->tsched_watermark) {
294 pa_log_info("Increasing wakeup watermark to %0.2f ms",
295 (double) pa_bytes_to_usec(u->tsched_watermark, &u->source->sample_spec) / PA_USEC_PER_MSEC);
296 return;
297 }
298
299 /* Hmm, we cannot increase the watermark any further, hence let's raise the latency */
300 old_min_latency = u->source->thread_info.min_latency;
301 new_min_latency = PA_MIN(old_min_latency * 2, old_min_latency + TSCHED_WATERMARK_INC_STEP_USEC);
302 new_min_latency = PA_MIN(new_min_latency, u->source->thread_info.max_latency);
303
304 if (old_min_latency != new_min_latency) {
305 pa_log_info("Increasing minimal latency to %0.2f ms",
306 (double) new_min_latency / PA_USEC_PER_MSEC);
307
308 pa_source_set_latency_range_within_thread(u->source, new_min_latency, u->source->thread_info.max_latency);
309 }
310
311 /* When we reach this we're officialy fucked! */
312 }
313
314 static void decrease_watermark(struct userdata *u) {
315 size_t old_watermark;
316 pa_usec_t now;
317
318 pa_assert(u);
319 pa_assert(u->use_tsched);
320
321 now = pa_rtclock_now();
322
323 if (u->watermark_dec_not_before <= 0)
324 goto restart;
325
326 if (u->watermark_dec_not_before > now)
327 return;
328
329 old_watermark = u->tsched_watermark;
330
331 if (u->tsched_watermark < u->watermark_dec_step)
332 u->tsched_watermark = u->tsched_watermark / 2;
333 else
334 u->tsched_watermark = PA_MAX(u->tsched_watermark / 2, u->tsched_watermark - u->watermark_dec_step);
335
336 fix_tsched_watermark(u);
337
338 if (old_watermark != u->tsched_watermark)
339 pa_log_info("Decreasing wakeup watermark to %0.2f ms",
340 (double) pa_bytes_to_usec(u->tsched_watermark, &u->source->sample_spec) / PA_USEC_PER_MSEC);
341
342 /* We don't change the latency range*/
343
344 restart:
345 u->watermark_dec_not_before = now + TSCHED_WATERMARK_VERIFY_AFTER_USEC;
346 }
347
348 static pa_usec_t hw_sleep_time(struct userdata *u, pa_usec_t *sleep_usec, pa_usec_t*process_usec) {
349 pa_usec_t wm, usec;
350
351 pa_assert(sleep_usec);
352 pa_assert(process_usec);
353
354 pa_assert(u);
355 pa_assert(u->use_tsched);
356
357 usec = pa_source_get_requested_latency_within_thread(u->source);
358
359 if (usec == (pa_usec_t) -1)
360 usec = pa_bytes_to_usec(u->hwbuf_size, &u->source->sample_spec);
361
362 wm = pa_bytes_to_usec(u->tsched_watermark, &u->source->sample_spec);
363
364 if (wm > usec)
365 wm = usec/2;
366
367 *sleep_usec = usec - wm;
368 *process_usec = wm;
369
370 #ifdef DEBUG_TIMING
371 pa_log_debug("Buffer time: %lu ms; Sleep time: %lu ms; Process time: %lu ms",
372 (unsigned long) (usec / PA_USEC_PER_MSEC),
373 (unsigned long) (*sleep_usec / PA_USEC_PER_MSEC),
374 (unsigned long) (*process_usec / PA_USEC_PER_MSEC));
375 #endif
376
377 return usec;
378 }
379
380 static int try_recover(struct userdata *u, const char *call, int err) {
381 pa_assert(u);
382 pa_assert(call);
383 pa_assert(err < 0);
384
385 pa_log_debug("%s: %s", call, pa_alsa_strerror(err));
386
387 pa_assert(err != -EAGAIN);
388
389 if (err == -EPIPE)
390 pa_log_debug("%s: Buffer overrun!", call);
391
392 if (err == -ESTRPIPE)
393 pa_log_debug("%s: System suspended!", call);
394
395 if ((err = snd_pcm_recover(u->pcm_handle, err, 1)) < 0) {
396 pa_log("%s: %s", call, pa_alsa_strerror(err));
397 return -1;
398 }
399
400 snd_pcm_start(u->pcm_handle);
401 return 0;
402 }
403
404 static size_t check_left_to_record(struct userdata *u, size_t n_bytes, pa_bool_t on_timeout) {
405 size_t left_to_record;
406 size_t rec_space = u->hwbuf_size - u->hwbuf_unused;
407 pa_bool_t overrun = FALSE;
408
409 /* We use <= instead of < for this check here because an overrun
410 * only happens after the last sample was processed, not already when
411 * it is removed from the buffer. This is particularly important
412 * when block transfer is used. */
413
414 if (n_bytes <= rec_space)
415 left_to_record = rec_space - n_bytes;
416 else {
417
418 /* We got a dropout. What a mess! */
419 left_to_record = 0;
420 overrun = TRUE;
421
422 #ifdef DEBUG_TIMING
423 PA_DEBUG_TRAP;
424 #endif
425
426 if (pa_log_ratelimit())
427 pa_log_info("Overrun!");
428 }
429
430 #ifdef DEBUG_TIMING
431 pa_log_debug("%0.2f ms left to record", (double) pa_bytes_to_usec(left_to_record, &u->source->sample_spec) / PA_USEC_PER_MSEC);
432 #endif
433
434 if (u->use_tsched) {
435 pa_bool_t reset_not_before = TRUE;
436
437 if (overrun || left_to_record < u->watermark_inc_threshold)
438 increase_watermark(u);
439 else if (left_to_record > u->watermark_dec_threshold) {
440 reset_not_before = FALSE;
441
442 /* We decrease the watermark only if have actually been
443 * woken up by a timeout. If something else woke us up
444 * it's too easy to fulfill the deadlines... */
445
446 if (on_timeout)
447 decrease_watermark(u);
448 }
449
450 if (reset_not_before)
451 u->watermark_dec_not_before = 0;
452 }
453
454 return left_to_record;
455 }
456
457 static int mmap_read(struct userdata *u, pa_usec_t *sleep_usec, pa_bool_t polled, pa_bool_t on_timeout) {
458 pa_bool_t work_done = FALSE;
459 pa_usec_t max_sleep_usec = 0, process_usec = 0;
460 size_t left_to_record;
461 unsigned j = 0;
462
463 pa_assert(u);
464 pa_source_assert_ref(u->source);
465
466 if (u->use_tsched)
467 hw_sleep_time(u, &max_sleep_usec, &process_usec);
468
469 for (;;) {
470 snd_pcm_sframes_t n;
471 size_t n_bytes;
472 int r;
473 pa_bool_t after_avail = TRUE;
474
475 if (PA_UNLIKELY((n = pa_alsa_safe_avail(u->pcm_handle, u->hwbuf_size, &u->source->sample_spec)) < 0)) {
476
477 if ((r = try_recover(u, "snd_pcm_avail", (int) n)) == 0)
478 continue;
479
480 return r;
481 }
482
483 n_bytes = (size_t) n * u->frame_size;
484
485 #ifdef DEBUG_TIMING
486 pa_log_debug("avail: %lu", (unsigned long) n_bytes);
487 #endif
488
489 left_to_record = check_left_to_record(u, n_bytes, on_timeout);
490 on_timeout = FALSE;
491
492 if (u->use_tsched)
493 if (!polled &&
494 pa_bytes_to_usec(left_to_record, &u->source->sample_spec) > process_usec+max_sleep_usec/2) {
495 #ifdef DEBUG_TIMING
496 pa_log_debug("Not reading, because too early.");
497 #endif
498 break;
499 }
500
501 if (PA_UNLIKELY(n_bytes <= 0)) {
502
503 if (polled)
504 PA_ONCE_BEGIN {
505 char *dn = pa_alsa_get_driver_name_by_pcm(u->pcm_handle);
506 pa_log(_("ALSA woke us up to read new data from the device, but there was actually nothing to read!\n"
507 "Most likely this is a bug in the ALSA driver '%s'. Please report this issue to the ALSA developers.\n"
508 "We were woken up with POLLIN set -- however a subsequent snd_pcm_avail() returned 0 or another value < min_avail."),
509 pa_strnull(dn));
510 pa_xfree(dn);
511 } PA_ONCE_END;
512
513 #ifdef DEBUG_TIMING
514 pa_log_debug("Not reading, because not necessary.");
515 #endif
516 break;
517 }
518
519 if (++j > 10) {
520 #ifdef DEBUG_TIMING
521 pa_log_debug("Not filling up, because already too many iterations.");
522 #endif
523
524 break;
525 }
526
527 polled = FALSE;
528
529 #ifdef DEBUG_TIMING
530 pa_log_debug("Reading");
531 #endif
532
533 for (;;) {
534 int err;
535 const snd_pcm_channel_area_t *areas;
536 snd_pcm_uframes_t offset, frames;
537 pa_memchunk chunk;
538 void *p;
539 snd_pcm_sframes_t sframes;
540
541 frames = (snd_pcm_uframes_t) (n_bytes / u->frame_size);
542
543 /* pa_log_debug("%lu frames to read", (unsigned long) frames); */
544
545 if (PA_UNLIKELY((err = pa_alsa_safe_mmap_begin(u->pcm_handle, &areas, &offset, &frames, u->hwbuf_size, &u->source->sample_spec)) < 0)) {
546
547 if (!after_avail && err == -EAGAIN)
548 break;
549
550 if ((r = try_recover(u, "snd_pcm_mmap_begin", err)) == 0)
551 continue;
552
553 return r;
554 }
555
556 /* Make sure that if these memblocks need to be copied they will fit into one slot */
557 if (frames > pa_mempool_block_size_max(u->source->core->mempool)/u->frame_size)
558 frames = pa_mempool_block_size_max(u->source->core->mempool)/u->frame_size;
559
560 if (!after_avail && frames == 0)
561 break;
562
563 pa_assert(frames > 0);
564 after_avail = FALSE;
565
566 /* Check these are multiples of 8 bit */
567 pa_assert((areas[0].first & 7) == 0);
568 pa_assert((areas[0].step & 7)== 0);
569
570 /* We assume a single interleaved memory buffer */
571 pa_assert((areas[0].first >> 3) == 0);
572 pa_assert((areas[0].step >> 3) == u->frame_size);
573
574 p = (uint8_t*) areas[0].addr + (offset * u->frame_size);
575
576 chunk.memblock = pa_memblock_new_fixed(u->core->mempool, p, frames * u->frame_size, TRUE);
577 chunk.length = pa_memblock_get_length(chunk.memblock);
578 chunk.index = 0;
579
580 pa_source_post(u->source, &chunk);
581 pa_memblock_unref_fixed(chunk.memblock);
582
583 if (PA_UNLIKELY((sframes = snd_pcm_mmap_commit(u->pcm_handle, offset, frames)) < 0)) {
584
585 if ((r = try_recover(u, "snd_pcm_mmap_commit", (int) sframes)) == 0)
586 continue;
587
588 return r;
589 }
590
591 work_done = TRUE;
592
593 u->read_count += frames * u->frame_size;
594
595 #ifdef DEBUG_TIMING
596 pa_log_debug("Read %lu bytes (of possible %lu bytes)", (unsigned long) (frames * u->frame_size), (unsigned long) n_bytes);
597 #endif
598
599 if ((size_t) frames * u->frame_size >= n_bytes)
600 break;
601
602 n_bytes -= (size_t) frames * u->frame_size;
603 }
604 }
605
606 *sleep_usec = pa_bytes_to_usec(left_to_record, &u->source->sample_spec);
607
608 if (*sleep_usec > process_usec)
609 *sleep_usec -= process_usec;
610 else
611 *sleep_usec = 0;
612
613 return work_done ? 1 : 0;
614 }
615
616 static int unix_read(struct userdata *u, pa_usec_t *sleep_usec, pa_bool_t polled, pa_bool_t on_timeout) {
617 int work_done = FALSE;
618 pa_usec_t max_sleep_usec = 0, process_usec = 0;
619 size_t left_to_record;
620 unsigned j = 0;
621
622 pa_assert(u);
623 pa_source_assert_ref(u->source);
624
625 if (u->use_tsched)
626 hw_sleep_time(u, &max_sleep_usec, &process_usec);
627
628 for (;;) {
629 snd_pcm_sframes_t n;
630 size_t n_bytes;
631 int r;
632 pa_bool_t after_avail = TRUE;
633
634 if (PA_UNLIKELY((n = pa_alsa_safe_avail(u->pcm_handle, u->hwbuf_size, &u->source->sample_spec)) < 0)) {
635
636 if ((r = try_recover(u, "snd_pcm_avail", (int) n)) == 0)
637 continue;
638
639 return r;
640 }
641
642 n_bytes = (size_t) n * u->frame_size;
643 left_to_record = check_left_to_record(u, n_bytes, on_timeout);
644 on_timeout = FALSE;
645
646 if (u->use_tsched)
647 if (!polled &&
648 pa_bytes_to_usec(left_to_record, &u->source->sample_spec) > process_usec+max_sleep_usec/2)
649 break;
650
651 if (PA_UNLIKELY(n_bytes <= 0)) {
652
653 if (polled)
654 PA_ONCE_BEGIN {
655 char *dn = pa_alsa_get_driver_name_by_pcm(u->pcm_handle);
656 pa_log(_("ALSA woke us up to read new data from the device, but there was actually nothing to read!\n"
657 "Most likely this is a bug in the ALSA driver '%s'. Please report this issue to the ALSA developers.\n"
658 "We were woken up with POLLIN set -- however a subsequent snd_pcm_avail() returned 0 or another value < min_avail."),
659 pa_strnull(dn));
660 pa_xfree(dn);
661 } PA_ONCE_END;
662
663 break;
664 }
665
666 if (++j > 10) {
667 #ifdef DEBUG_TIMING
668 pa_log_debug("Not filling up, because already too many iterations.");
669 #endif
670
671 break;
672 }
673
674 polled = FALSE;
675
676 for (;;) {
677 void *p;
678 snd_pcm_sframes_t frames;
679 pa_memchunk chunk;
680
681 chunk.memblock = pa_memblock_new(u->core->mempool, (size_t) -1);
682
683 frames = (snd_pcm_sframes_t) (pa_memblock_get_length(chunk.memblock) / u->frame_size);
684
685 if (frames > (snd_pcm_sframes_t) (n_bytes/u->frame_size))
686 frames = (snd_pcm_sframes_t) (n_bytes/u->frame_size);
687
688 /* pa_log_debug("%lu frames to read", (unsigned long) n); */
689
690 p = pa_memblock_acquire(chunk.memblock);
691 frames = snd_pcm_readi(u->pcm_handle, (uint8_t*) p, (snd_pcm_uframes_t) frames);
692 pa_memblock_release(chunk.memblock);
693
694 if (PA_UNLIKELY(frames < 0)) {
695 pa_memblock_unref(chunk.memblock);
696
697 if (!after_avail && (int) frames == -EAGAIN)
698 break;
699
700 if ((r = try_recover(u, "snd_pcm_readi", (int) frames)) == 0)
701 continue;
702
703 return r;
704 }
705
706 if (!after_avail && frames == 0) {
707 pa_memblock_unref(chunk.memblock);
708 break;
709 }
710
711 pa_assert(frames > 0);
712 after_avail = FALSE;
713
714 chunk.index = 0;
715 chunk.length = (size_t) frames * u->frame_size;
716
717 pa_source_post(u->source, &chunk);
718 pa_memblock_unref(chunk.memblock);
719
720 work_done = TRUE;
721
722 u->read_count += frames * u->frame_size;
723
724 /* pa_log_debug("read %lu frames", (unsigned long) frames); */
725
726 if ((size_t) frames * u->frame_size >= n_bytes)
727 break;
728
729 n_bytes -= (size_t) frames * u->frame_size;
730 }
731 }
732
733 *sleep_usec = pa_bytes_to_usec(left_to_record, &u->source->sample_spec);
734
735 if (*sleep_usec > process_usec)
736 *sleep_usec -= process_usec;
737 else
738 *sleep_usec = 0;
739
740 return work_done ? 1 : 0;
741 }
742
743 static void update_smoother(struct userdata *u) {
744 snd_pcm_sframes_t delay = 0;
745 uint64_t position;
746 int err;
747 pa_usec_t now1 = 0, now2;
748 snd_pcm_status_t *status;
749
750 snd_pcm_status_alloca(&status);
751
752 pa_assert(u);
753 pa_assert(u->pcm_handle);
754
755 /* Let's update the time smoother */
756
757 if (PA_UNLIKELY((err = pa_alsa_safe_delay(u->pcm_handle, &delay, u->hwbuf_size, &u->source->sample_spec)) < 0)) {
758 pa_log_warn("Failed to get delay: %s", pa_alsa_strerror(err));
759 return;
760 }
761
762 if (PA_UNLIKELY((err = snd_pcm_status(u->pcm_handle, status)) < 0))
763 pa_log_warn("Failed to get timestamp: %s", pa_alsa_strerror(err));
764 else {
765 snd_htimestamp_t htstamp = { 0, 0 };
766 snd_pcm_status_get_htstamp(status, &htstamp);
767 now1 = pa_timespec_load(&htstamp);
768 }
769
770 /* Hmm, if the timestamp is 0, then it wasn't set and we take the current time */
771 if (now1 <= 0)
772 now1 = pa_rtclock_now();
773
774 /* check if the time since the last update is bigger than the interval */
775 if (u->last_smoother_update > 0)
776 if (u->last_smoother_update + u->smoother_interval > now1)
777 return;
778
779 position = u->read_count + ((uint64_t) delay * (uint64_t) u->frame_size);
780 now2 = pa_bytes_to_usec(position, &u->source->sample_spec);
781
782 pa_smoother_put(u->smoother, now1, now2);
783
784 u->last_smoother_update = now1;
785 /* exponentially increase the update interval up to the MAX limit */
786 u->smoother_interval = PA_MIN (u->smoother_interval * 2, SMOOTHER_MAX_INTERVAL);
787 }
788
789 static pa_usec_t source_get_latency(struct userdata *u) {
790 int64_t delay;
791 pa_usec_t now1, now2;
792
793 pa_assert(u);
794
795 now1 = pa_rtclock_now();
796 now2 = pa_smoother_get(u->smoother, now1);
797
798 delay = (int64_t) now2 - (int64_t) pa_bytes_to_usec(u->read_count, &u->source->sample_spec);
799
800 return delay >= 0 ? (pa_usec_t) delay : 0;
801 }
802
803 static int build_pollfd(struct userdata *u) {
804 pa_assert(u);
805 pa_assert(u->pcm_handle);
806
807 if (u->alsa_rtpoll_item)
808 pa_rtpoll_item_free(u->alsa_rtpoll_item);
809
810 if (!(u->alsa_rtpoll_item = pa_alsa_build_pollfd(u->pcm_handle, u->rtpoll)))
811 return -1;
812
813 return 0;
814 }
815
816 static int suspend(struct userdata *u) {
817 pa_assert(u);
818 pa_assert(u->pcm_handle);
819
820 pa_smoother_pause(u->smoother, pa_rtclock_now());
821
822 /* Let's suspend */
823 snd_pcm_close(u->pcm_handle);
824 u->pcm_handle = NULL;
825
826 if (u->alsa_rtpoll_item) {
827 pa_rtpoll_item_free(u->alsa_rtpoll_item);
828 u->alsa_rtpoll_item = NULL;
829 }
830
831 pa_log_info("Device suspended...");
832
833 return 0;
834 }
835
836 static int update_sw_params(struct userdata *u) {
837 snd_pcm_uframes_t avail_min;
838 int err;
839
840 pa_assert(u);
841
842 /* Use the full buffer if noone asked us for anything specific */
843 u->hwbuf_unused = 0;
844
845 if (u->use_tsched) {
846 pa_usec_t latency;
847
848 if ((latency = pa_source_get_requested_latency_within_thread(u->source)) != (pa_usec_t) -1) {
849 size_t b;
850
851 pa_log_debug("latency set to %0.2fms", (double) latency / PA_USEC_PER_MSEC);
852
853 b = pa_usec_to_bytes(latency, &u->source->sample_spec);
854
855 /* We need at least one sample in our buffer */
856
857 if (PA_UNLIKELY(b < u->frame_size))
858 b = u->frame_size;
859
860 u->hwbuf_unused = PA_LIKELY(b < u->hwbuf_size) ? (u->hwbuf_size - b) : 0;
861 }
862
863 fix_min_sleep_wakeup(u);
864 fix_tsched_watermark(u);
865 }
866
867 pa_log_debug("hwbuf_unused=%lu", (unsigned long) u->hwbuf_unused);
868
869 avail_min = 1;
870
871 if (u->use_tsched) {
872 pa_usec_t sleep_usec, process_usec;
873
874 hw_sleep_time(u, &sleep_usec, &process_usec);
875 avail_min += pa_usec_to_bytes(sleep_usec, &u->source->sample_spec) / u->frame_size;
876 }
877
878 pa_log_debug("setting avail_min=%lu", (unsigned long) avail_min);
879
880 if ((err = pa_alsa_set_sw_params(u->pcm_handle, avail_min)) < 0) {
881 pa_log("Failed to set software parameters: %s", pa_alsa_strerror(err));
882 return err;
883 }
884
885 return 0;
886 }
887
888 static int unsuspend(struct userdata *u) {
889 pa_sample_spec ss;
890 int err;
891 pa_bool_t b, d;
892 snd_pcm_uframes_t period_size, buffer_size;
893
894 pa_assert(u);
895 pa_assert(!u->pcm_handle);
896
897 pa_log_info("Trying resume...");
898
899 if ((err = snd_pcm_open(&u->pcm_handle, u->device_name, SND_PCM_STREAM_CAPTURE,
900 SND_PCM_NONBLOCK|
901 SND_PCM_NO_AUTO_RESAMPLE|
902 SND_PCM_NO_AUTO_CHANNELS|
903 SND_PCM_NO_AUTO_FORMAT)) < 0) {
904 pa_log("Error opening PCM device %s: %s", u->device_name, pa_alsa_strerror(err));
905 goto fail;
906 }
907
908 ss = u->source->sample_spec;
909 period_size = u->fragment_size / u->frame_size;
910 buffer_size = u->hwbuf_size / u->frame_size;
911 b = u->use_mmap;
912 d = u->use_tsched;
913
914 if ((err = pa_alsa_set_hw_params(u->pcm_handle, &ss, &period_size, &buffer_size, 0, &b, &d, TRUE)) < 0) {
915 pa_log("Failed to set hardware parameters: %s", pa_alsa_strerror(err));
916 goto fail;
917 }
918
919 if (b != u->use_mmap || d != u->use_tsched) {
920 pa_log_warn("Resume failed, couldn't get original access mode.");
921 goto fail;
922 }
923
924 if (!pa_sample_spec_equal(&ss, &u->source->sample_spec)) {
925 pa_log_warn("Resume failed, couldn't restore original sample settings.");
926 goto fail;
927 }
928
929 if (period_size*u->frame_size != u->fragment_size ||
930 buffer_size*u->frame_size != u->hwbuf_size) {
931 pa_log_warn("Resume failed, couldn't restore original fragment settings. (Old: %lu/%lu, New %lu/%lu)",
932 (unsigned long) u->hwbuf_size, (unsigned long) u->fragment_size,
933 (unsigned long) (buffer_size*u->fragment_size), (unsigned long) (period_size*u->frame_size));
934 goto fail;
935 }
936
937 if (update_sw_params(u) < 0)
938 goto fail;
939
940 if (build_pollfd(u) < 0)
941 goto fail;
942
943 /* FIXME: We need to reload the volume somehow */
944
945 snd_pcm_start(u->pcm_handle);
946
947 u->read_count = 0;
948 pa_smoother_reset(u->smoother, pa_rtclock_now(), TRUE);
949 u->smoother_interval = SMOOTHER_MIN_INTERVAL;
950 u->last_smoother_update = 0;
951
952 pa_log_info("Resumed successfully...");
953
954 return 0;
955
956 fail:
957 if (u->pcm_handle) {
958 snd_pcm_close(u->pcm_handle);
959 u->pcm_handle = NULL;
960 }
961
962 return -1;
963 }
964
965 static int source_process_msg(pa_msgobject *o, int code, void *data, int64_t offset, pa_memchunk *chunk) {
966 struct userdata *u = PA_SOURCE(o)->userdata;
967
968 switch (code) {
969
970 case PA_SOURCE_MESSAGE_GET_LATENCY: {
971 pa_usec_t r = 0;
972
973 if (u->pcm_handle)
974 r = source_get_latency(u);
975
976 *((pa_usec_t*) data) = r;
977
978 return 0;
979 }
980
981 case PA_SOURCE_MESSAGE_SET_STATE:
982
983 switch ((pa_source_state_t) PA_PTR_TO_UINT(data)) {
984
985 case PA_SOURCE_SUSPENDED:
986 pa_assert(PA_SOURCE_IS_OPENED(u->source->thread_info.state));
987
988 if (suspend(u) < 0)
989 return -1;
990
991 break;
992
993 case PA_SOURCE_IDLE:
994 case PA_SOURCE_RUNNING:
995
996 if (u->source->thread_info.state == PA_SOURCE_INIT) {
997 if (build_pollfd(u) < 0)
998 return -1;
999
1000 snd_pcm_start(u->pcm_handle);
1001 }
1002
1003 if (u->source->thread_info.state == PA_SOURCE_SUSPENDED) {
1004 if (unsuspend(u) < 0)
1005 return -1;
1006 }
1007
1008 break;
1009
1010 case PA_SOURCE_UNLINKED:
1011 case PA_SOURCE_INIT:
1012 case PA_SOURCE_INVALID_STATE:
1013 ;
1014 }
1015
1016 break;
1017 }
1018
1019 return pa_source_process_msg(o, code, data, offset, chunk);
1020 }
1021
1022 /* Called from main context */
1023 static int source_set_state_cb(pa_source *s, pa_source_state_t new_state) {
1024 pa_source_state_t old_state;
1025 struct userdata *u;
1026
1027 pa_source_assert_ref(s);
1028 pa_assert_se(u = s->userdata);
1029
1030 old_state = pa_source_get_state(u->source);
1031
1032 if (PA_SINK_IS_OPENED(old_state) && new_state == PA_SINK_SUSPENDED)
1033 reserve_done(u);
1034 else if (old_state == PA_SINK_SUSPENDED && PA_SINK_IS_OPENED(new_state))
1035 if (reserve_init(u, u->device_name) < 0)
1036 return -1;
1037
1038 return 0;
1039 }
1040
1041 static int mixer_callback(snd_mixer_elem_t *elem, unsigned int mask) {
1042 struct userdata *u = snd_mixer_elem_get_callback_private(elem);
1043
1044 pa_assert(u);
1045 pa_assert(u->mixer_handle);
1046
1047 if (mask == SND_CTL_EVENT_MASK_REMOVE)
1048 return 0;
1049
1050 if (mask & SND_CTL_EVENT_MASK_VALUE) {
1051 pa_source_get_volume(u->source, TRUE);
1052 pa_source_get_mute(u->source, TRUE);
1053 }
1054
1055 return 0;
1056 }
1057
1058 static void source_get_volume_cb(pa_source *s) {
1059 struct userdata *u = s->userdata;
1060 pa_cvolume r;
1061 char t[PA_CVOLUME_SNPRINT_MAX];
1062
1063 pa_assert(u);
1064 pa_assert(u->mixer_path);
1065 pa_assert(u->mixer_handle);
1066
1067 if (pa_alsa_path_get_volume(u->mixer_path, u->mixer_handle, &s->channel_map, &r) < 0)
1068 return;
1069
1070 /* Shift down by the base volume, so that 0dB becomes maximum volume */
1071 pa_sw_cvolume_multiply_scalar(&r, &r, s->base_volume);
1072
1073 pa_log_debug("Read hardware volume: %s", pa_cvolume_snprint(t, sizeof(t), &r));
1074
1075 if (pa_cvolume_equal(&u->hardware_volume, &r))
1076 return;
1077
1078 s->volume = u->hardware_volume = r;
1079
1080 /* Hmm, so the hardware volume changed, let's reset our software volume */
1081 if (u->mixer_path->has_dB)
1082 pa_source_set_soft_volume(s, NULL);
1083 }
1084
1085 static void source_set_volume_cb(pa_source *s) {
1086 struct userdata *u = s->userdata;
1087 pa_cvolume r;
1088 char t[PA_CVOLUME_SNPRINT_MAX];
1089
1090 pa_assert(u);
1091 pa_assert(u->mixer_path);
1092 pa_assert(u->mixer_handle);
1093
1094 /* Shift up by the base volume */
1095 pa_sw_cvolume_divide_scalar(&r, &s->volume, s->base_volume);
1096
1097 if (pa_alsa_path_set_volume(u->mixer_path, u->mixer_handle, &s->channel_map, &r) < 0)
1098 return;
1099
1100 /* Shift down by the base volume, so that 0dB becomes maximum volume */
1101 pa_sw_cvolume_multiply_scalar(&r, &r, s->base_volume);
1102
1103 u->hardware_volume = r;
1104
1105 if (u->mixer_path->has_dB) {
1106 pa_cvolume new_soft_volume;
1107 pa_bool_t accurate_enough;
1108
1109 /* Match exactly what the user requested by software */
1110 pa_sw_cvolume_divide(&new_soft_volume, &s->volume, &u->hardware_volume);
1111
1112 /* If the adjustment to do in software is only minimal we
1113 * can skip it. That saves us CPU at the expense of a bit of
1114 * accuracy */
1115 accurate_enough =
1116 (pa_cvolume_min(&new_soft_volume) >= (PA_VOLUME_NORM - VOLUME_ACCURACY)) &&
1117 (pa_cvolume_max(&new_soft_volume) <= (PA_VOLUME_NORM + VOLUME_ACCURACY));
1118
1119 pa_log_debug("Requested volume: %s", pa_cvolume_snprint(t, sizeof(t), &s->volume));
1120 pa_log_debug("Got hardware volume: %s", pa_cvolume_snprint(t, sizeof(t), &u->hardware_volume));
1121 pa_log_debug("Calculated software volume: %s (accurate-enough=%s)", pa_cvolume_snprint(t, sizeof(t), &new_soft_volume),
1122 pa_yes_no(accurate_enough));
1123
1124 if (!accurate_enough)
1125 s->soft_volume = new_soft_volume;
1126
1127 } else {
1128 pa_log_debug("Wrote hardware volume: %s", pa_cvolume_snprint(t, sizeof(t), &r));
1129
1130 /* We can't match exactly what the user requested, hence let's
1131 * at least tell the user about it */
1132
1133 s->volume = r;
1134 }
1135 }
1136
1137 static void source_get_mute_cb(pa_source *s) {
1138 struct userdata *u = s->userdata;
1139 pa_bool_t b;
1140
1141 pa_assert(u);
1142 pa_assert(u->mixer_path);
1143 pa_assert(u->mixer_handle);
1144
1145 if (pa_alsa_path_get_mute(u->mixer_path, u->mixer_handle, &b) < 0)
1146 return;
1147
1148 s->muted = b;
1149 }
1150
1151 static void source_set_mute_cb(pa_source *s) {
1152 struct userdata *u = s->userdata;
1153
1154 pa_assert(u);
1155 pa_assert(u->mixer_path);
1156 pa_assert(u->mixer_handle);
1157
1158 pa_alsa_path_set_mute(u->mixer_path, u->mixer_handle, s->muted);
1159 }
1160
1161 static int source_set_port_cb(pa_source *s, pa_device_port *p) {
1162 struct userdata *u = s->userdata;
1163 pa_alsa_port_data *data;
1164
1165 pa_assert(u);
1166 pa_assert(p);
1167 pa_assert(u->mixer_handle);
1168
1169 data = PA_DEVICE_PORT_DATA(p);
1170
1171 pa_assert_se(u->mixer_path = data->path);
1172 pa_alsa_path_select(u->mixer_path, u->mixer_handle);
1173
1174 if (u->mixer_path->has_volume && u->mixer_path->has_dB) {
1175 s->base_volume = pa_sw_volume_from_dB(-u->mixer_path->max_dB);
1176 s->n_volume_steps = PA_VOLUME_NORM+1;
1177
1178 if (u->mixer_path->max_dB > 0.0)
1179 pa_log_info("Fixing base volume to %0.2f dB", pa_sw_volume_to_dB(s->base_volume));
1180 else
1181 pa_log_info("No particular base volume set, fixing to 0 dB");
1182 } else {
1183 s->base_volume = PA_VOLUME_NORM;
1184 s->n_volume_steps = u->mixer_path->max_volume - u->mixer_path->min_volume + 1;
1185 }
1186
1187 if (data->setting)
1188 pa_alsa_setting_select(data->setting, u->mixer_handle);
1189
1190 if (s->set_mute)
1191 s->set_mute(s);
1192 if (s->set_volume)
1193 s->set_volume(s);
1194
1195 return 0;
1196 }
1197
1198 static void source_update_requested_latency_cb(pa_source *s) {
1199 struct userdata *u = s->userdata;
1200 pa_assert(u);
1201
1202 if (!u->pcm_handle)
1203 return;
1204
1205 update_sw_params(u);
1206 }
1207
1208 static void thread_func(void *userdata) {
1209 struct userdata *u = userdata;
1210 unsigned short revents = 0;
1211
1212 pa_assert(u);
1213
1214 pa_log_debug("Thread starting up");
1215
1216 if (u->core->realtime_scheduling)
1217 pa_make_realtime(u->core->realtime_priority);
1218
1219 pa_thread_mq_install(&u->thread_mq);
1220
1221 for (;;) {
1222 int ret;
1223
1224 #ifdef DEBUG_TIMING
1225 pa_log_debug("Loop");
1226 #endif
1227
1228 /* Read some data and pass it to the sources */
1229 if (PA_SOURCE_IS_OPENED(u->source->thread_info.state)) {
1230 int work_done;
1231 pa_usec_t sleep_usec = 0;
1232 pa_bool_t on_timeout = pa_rtpoll_timer_elapsed(u->rtpoll);
1233
1234 if (u->use_mmap)
1235 work_done = mmap_read(u, &sleep_usec, revents & POLLIN, on_timeout);
1236 else
1237 work_done = unix_read(u, &sleep_usec, revents & POLLIN, on_timeout);
1238
1239 if (work_done < 0)
1240 goto fail;
1241
1242 /* pa_log_debug("work_done = %i", work_done); */
1243
1244 if (work_done)
1245 update_smoother(u);
1246
1247 if (u->use_tsched) {
1248 pa_usec_t cusec;
1249
1250 /* OK, the capture buffer is now empty, let's
1251 * calculate when to wake up next */
1252
1253 /* pa_log_debug("Waking up in %0.2fms (sound card clock).", (double) sleep_usec / PA_USEC_PER_MSEC); */
1254
1255 /* Convert from the sound card time domain to the
1256 * system time domain */
1257 cusec = pa_smoother_translate(u->smoother, pa_rtclock_now(), sleep_usec);
1258
1259 /* pa_log_debug("Waking up in %0.2fms (system clock).", (double) cusec / PA_USEC_PER_MSEC); */
1260
1261 /* We don't trust the conversion, so we wake up whatever comes first */
1262 pa_rtpoll_set_timer_relative(u->rtpoll, PA_MIN(sleep_usec, cusec));
1263 }
1264 } else if (u->use_tsched)
1265
1266 /* OK, we're in an invalid state, let's disable our timers */
1267 pa_rtpoll_set_timer_disabled(u->rtpoll);
1268
1269 /* Hmm, nothing to do. Let's sleep */
1270 if ((ret = pa_rtpoll_run(u->rtpoll, TRUE)) < 0)
1271 goto fail;
1272
1273 if (ret == 0)
1274 goto finish;
1275
1276 /* Tell ALSA about this and process its response */
1277 if (PA_SOURCE_IS_OPENED(u->source->thread_info.state)) {
1278 struct pollfd *pollfd;
1279 int err;
1280 unsigned n;
1281
1282 pollfd = pa_rtpoll_item_get_pollfd(u->alsa_rtpoll_item, &n);
1283
1284 if ((err = snd_pcm_poll_descriptors_revents(u->pcm_handle, pollfd, n, &revents)) < 0) {
1285 pa_log("snd_pcm_poll_descriptors_revents() failed: %s", pa_alsa_strerror(err));
1286 goto fail;
1287 }
1288
1289 if (revents & ~POLLIN) {
1290 if (pa_alsa_recover_from_poll(u->pcm_handle, revents) < 0)
1291 goto fail;
1292
1293 snd_pcm_start(u->pcm_handle);
1294 } else if (revents && u->use_tsched && pa_log_ratelimit())
1295 pa_log_debug("Wakeup from ALSA!");
1296
1297 } else
1298 revents = 0;
1299 }
1300
1301 fail:
1302 /* If this was no regular exit from the loop we have to continue
1303 * processing messages until we received PA_MESSAGE_SHUTDOWN */
1304 pa_asyncmsgq_post(u->thread_mq.outq, PA_MSGOBJECT(u->core), PA_CORE_MESSAGE_UNLOAD_MODULE, u->module, 0, NULL, NULL);
1305 pa_asyncmsgq_wait_for(u->thread_mq.inq, PA_MESSAGE_SHUTDOWN);
1306
1307 finish:
1308 pa_log_debug("Thread shutting down");
1309 }
1310
1311 static void set_source_name(pa_source_new_data *data, pa_modargs *ma, const char *device_id, const char *device_name, pa_alsa_mapping *mapping) {
1312 const char *n;
1313 char *t;
1314
1315 pa_assert(data);
1316 pa_assert(ma);
1317 pa_assert(device_name);
1318
1319 if ((n = pa_modargs_get_value(ma, "source_name", NULL))) {
1320 pa_source_new_data_set_name(data, n);
1321 data->namereg_fail = TRUE;
1322 return;
1323 }
1324
1325 if ((n = pa_modargs_get_value(ma, "name", NULL)))
1326 data->namereg_fail = TRUE;
1327 else {
1328 n = device_id ? device_id : device_name;
1329 data->namereg_fail = FALSE;
1330 }
1331
1332 if (mapping)
1333 t = pa_sprintf_malloc("alsa_input.%s.%s", n, mapping->name);
1334 else
1335 t = pa_sprintf_malloc("alsa_input.%s", n);
1336
1337 pa_source_new_data_set_name(data, t);
1338 pa_xfree(t);
1339 }
1340
1341 static void find_mixer(struct userdata *u, pa_alsa_mapping *mapping, const char *element, pa_bool_t ignore_dB) {
1342
1343 if (!mapping && !element)
1344 return;
1345
1346 if (!(u->mixer_handle = pa_alsa_open_mixer_for_pcm(u->pcm_handle, &u->control_device))) {
1347 pa_log_info("Failed to find a working mixer device.");
1348 return;
1349 }
1350
1351 if (element) {
1352
1353 if (!(u->mixer_path = pa_alsa_path_synthesize(element, PA_ALSA_DIRECTION_INPUT)))
1354 goto fail;
1355
1356 if (pa_alsa_path_probe(u->mixer_path, u->mixer_handle, ignore_dB) < 0)
1357 goto fail;
1358
1359 pa_log_debug("Probed mixer path %s:", u->mixer_path->name);
1360 pa_alsa_path_dump(u->mixer_path);
1361 } else {
1362
1363 if (!(u->mixer_path_set = pa_alsa_path_set_new(mapping, PA_ALSA_DIRECTION_INPUT)))
1364 goto fail;
1365
1366 pa_alsa_path_set_probe(u->mixer_path_set, u->mixer_handle, ignore_dB);
1367
1368 pa_log_debug("Probed mixer paths:");
1369 pa_alsa_path_set_dump(u->mixer_path_set);
1370 }
1371
1372 return;
1373
1374 fail:
1375
1376 if (u->mixer_path_set) {
1377 pa_alsa_path_set_free(u->mixer_path_set);
1378 u->mixer_path_set = NULL;
1379 } else if (u->mixer_path) {
1380 pa_alsa_path_free(u->mixer_path);
1381 u->mixer_path = NULL;
1382 }
1383
1384 if (u->mixer_handle) {
1385 snd_mixer_close(u->mixer_handle);
1386 u->mixer_handle = NULL;
1387 }
1388 }
1389
1390 static int setup_mixer(struct userdata *u, pa_bool_t ignore_dB) {
1391 pa_assert(u);
1392
1393 if (!u->mixer_handle)
1394 return 0;
1395
1396 if (u->source->active_port) {
1397 pa_alsa_port_data *data;
1398
1399 /* We have a list of supported paths, so let's activate the
1400 * one that has been chosen as active */
1401
1402 data = PA_DEVICE_PORT_DATA(u->source->active_port);
1403 u->mixer_path = data->path;
1404
1405 pa_alsa_path_select(data->path, u->mixer_handle);
1406
1407 if (data->setting)
1408 pa_alsa_setting_select(data->setting, u->mixer_handle);
1409
1410 } else {
1411
1412 if (!u->mixer_path && u->mixer_path_set)
1413 u->mixer_path = u->mixer_path_set->paths;
1414
1415 if (u->mixer_path) {
1416 /* Hmm, we have only a single path, then let's activate it */
1417
1418 pa_alsa_path_select(u->mixer_path, u->mixer_handle);
1419
1420 if (u->mixer_path->settings)
1421 pa_alsa_setting_select(u->mixer_path->settings, u->mixer_handle);
1422 } else
1423 return 0;
1424 }
1425
1426 if (!u->mixer_path->has_volume)
1427 pa_log_info("Driver does not support hardware volume control, falling back to software volume control.");
1428 else {
1429
1430 if (u->mixer_path->has_dB) {
1431 pa_log_info("Hardware volume ranges from %0.2f dB to %0.2f dB.", u->mixer_path->min_dB, u->mixer_path->max_dB);
1432
1433 u->source->base_volume = pa_sw_volume_from_dB(-u->mixer_path->max_dB);
1434 u->source->n_volume_steps = PA_VOLUME_NORM+1;
1435
1436 if (u->mixer_path->max_dB > 0.0)
1437 pa_log_info("Fixing base volume to %0.2f dB", pa_sw_volume_to_dB(u->source->base_volume));
1438 else
1439 pa_log_info("No particular base volume set, fixing to 0 dB");
1440
1441 } else {
1442 pa_log_info("Hardware volume ranges from %li to %li.", u->mixer_path->min_volume, u->mixer_path->max_volume);
1443 u->source->base_volume = PA_VOLUME_NORM;
1444 u->source->n_volume_steps = u->mixer_path->max_volume - u->mixer_path->min_volume + 1;
1445 }
1446
1447 u->source->get_volume = source_get_volume_cb;
1448 u->source->set_volume = source_set_volume_cb;
1449
1450 u->source->flags |= PA_SOURCE_HW_VOLUME_CTRL | (u->mixer_path->has_dB ? PA_SOURCE_DECIBEL_VOLUME : 0);
1451 pa_log_info("Using hardware volume control. Hardware dB scale %s.", u->mixer_path->has_dB ? "supported" : "not supported");
1452 }
1453
1454 if (!u->mixer_path->has_mute) {
1455 pa_log_info("Driver does not support hardware mute control, falling back to software mute control.");
1456 } else {
1457 u->source->get_mute = source_get_mute_cb;
1458 u->source->set_mute = source_set_mute_cb;
1459 u->source->flags |= PA_SOURCE_HW_MUTE_CTRL;
1460 pa_log_info("Using hardware mute control.");
1461 }
1462
1463 u->mixer_fdl = pa_alsa_fdlist_new();
1464
1465 if (pa_alsa_fdlist_set_mixer(u->mixer_fdl, u->mixer_handle, u->core->mainloop) < 0) {
1466 pa_log("Failed to initialize file descriptor monitoring");
1467 return -1;
1468 }
1469
1470 if (u->mixer_path_set)
1471 pa_alsa_path_set_set_callback(u->mixer_path_set, u->mixer_handle, mixer_callback, u);
1472 else
1473 pa_alsa_path_set_callback(u->mixer_path, u->mixer_handle, mixer_callback, u);
1474
1475 return 0;
1476 }
1477
1478 pa_source *pa_alsa_source_new(pa_module *m, pa_modargs *ma, const char*driver, pa_card *card, pa_alsa_mapping *mapping) {
1479
1480 struct userdata *u = NULL;
1481 const char *dev_id = NULL;
1482 pa_sample_spec ss, requested_ss;
1483 pa_channel_map map;
1484 uint32_t nfrags, frag_size, buffer_size, tsched_size, tsched_watermark;
1485 snd_pcm_uframes_t period_frames, buffer_frames, tsched_frames;
1486 size_t frame_size;
1487 pa_bool_t use_mmap = TRUE, b, use_tsched = TRUE, d, ignore_dB = FALSE;
1488 pa_source_new_data data;
1489 pa_alsa_profile_set *profile_set = NULL;
1490
1491 pa_assert(m);
1492 pa_assert(ma);
1493
1494 ss = m->core->default_sample_spec;
1495 map = m->core->default_channel_map;
1496 if (pa_modargs_get_sample_spec_and_channel_map(ma, &ss, &map, PA_CHANNEL_MAP_ALSA) < 0) {
1497 pa_log("Failed to parse sample specification");
1498 goto fail;
1499 }
1500
1501 requested_ss = ss;
1502 frame_size = pa_frame_size(&ss);
1503
1504 nfrags = m->core->default_n_fragments;
1505 frag_size = (uint32_t) pa_usec_to_bytes(m->core->default_fragment_size_msec*PA_USEC_PER_MSEC, &ss);
1506 if (frag_size <= 0)
1507 frag_size = (uint32_t) frame_size;
1508 tsched_size = (uint32_t) pa_usec_to_bytes(DEFAULT_TSCHED_BUFFER_USEC, &ss);
1509 tsched_watermark = (uint32_t) pa_usec_to_bytes(DEFAULT_TSCHED_WATERMARK_USEC, &ss);
1510
1511 if (pa_modargs_get_value_u32(ma, "fragments", &nfrags) < 0 ||
1512 pa_modargs_get_value_u32(ma, "fragment_size", &frag_size) < 0 ||
1513 pa_modargs_get_value_u32(ma, "tsched_buffer_size", &tsched_size) < 0 ||
1514 pa_modargs_get_value_u32(ma, "tsched_buffer_watermark", &tsched_watermark) < 0) {
1515 pa_log("Failed to parse buffer metrics");
1516 goto fail;
1517 }
1518
1519 buffer_size = nfrags * frag_size;
1520
1521 period_frames = frag_size/frame_size;
1522 buffer_frames = buffer_size/frame_size;
1523 tsched_frames = tsched_size/frame_size;
1524
1525 if (pa_modargs_get_value_boolean(ma, "mmap", &use_mmap) < 0) {
1526 pa_log("Failed to parse mmap argument.");
1527 goto fail;
1528 }
1529
1530 if (pa_modargs_get_value_boolean(ma, "tsched", &use_tsched) < 0) {
1531 pa_log("Failed to parse timer_scheduling argument.");
1532 goto fail;
1533 }
1534
1535 if (pa_modargs_get_value_boolean(ma, "ignore_dB", &ignore_dB) < 0) {
1536 pa_log("Failed to parse ignore_dB argument.");
1537 goto fail;
1538 }
1539
1540 if (use_tsched && !pa_rtclock_hrtimer()) {
1541 pa_log_notice("Disabling timer-based scheduling because high-resolution timers are not available from the kernel.");
1542 use_tsched = FALSE;
1543 }
1544
1545 u = pa_xnew0(struct userdata, 1);
1546 u->core = m->core;
1547 u->module = m;
1548 u->use_mmap = use_mmap;
1549 u->use_tsched = use_tsched;
1550 u->rtpoll = pa_rtpoll_new();
1551 pa_thread_mq_init(&u->thread_mq, m->core->mainloop, u->rtpoll);
1552
1553 u->smoother = pa_smoother_new(
1554 DEFAULT_TSCHED_WATERMARK_USEC*2,
1555 DEFAULT_TSCHED_WATERMARK_USEC*2,
1556 TRUE,
1557 TRUE,
1558 5,
1559 pa_rtclock_now(),
1560 FALSE);
1561 u->smoother_interval = SMOOTHER_MIN_INTERVAL;
1562
1563 dev_id = pa_modargs_get_value(
1564 ma, "device_id",
1565 pa_modargs_get_value(ma, "device", DEFAULT_DEVICE));
1566
1567 if (reserve_init(u, dev_id) < 0)
1568 goto fail;
1569
1570 if (reserve_monitor_init(u, dev_id) < 0)
1571 goto fail;
1572
1573 b = use_mmap;
1574 d = use_tsched;
1575
1576 if (mapping) {
1577
1578 if (!(dev_id = pa_modargs_get_value(ma, "device_id", NULL))) {
1579 pa_log("device_id= not set");
1580 goto fail;
1581 }
1582
1583 if (!(u->pcm_handle = pa_alsa_open_by_device_id_mapping(
1584 dev_id,
1585 &u->device_name,
1586 &ss, &map,
1587 SND_PCM_STREAM_CAPTURE,
1588 &period_frames, &buffer_frames, tsched_frames,
1589 &b, &d, mapping)))
1590 goto fail;
1591
1592 } else if ((dev_id = pa_modargs_get_value(ma, "device_id", NULL))) {
1593
1594 if (!(profile_set = pa_alsa_profile_set_new(NULL, &map)))
1595 goto fail;
1596
1597 if (!(u->pcm_handle = pa_alsa_open_by_device_id_auto(
1598 dev_id,
1599 &u->device_name,
1600 &ss, &map,
1601 SND_PCM_STREAM_CAPTURE,
1602 &period_frames, &buffer_frames, tsched_frames,
1603 &b, &d, profile_set, &mapping)))
1604 goto fail;
1605
1606 } else {
1607
1608 if (!(u->pcm_handle = pa_alsa_open_by_device_string(
1609 pa_modargs_get_value(ma, "device", DEFAULT_DEVICE),
1610 &u->device_name,
1611 &ss, &map,
1612 SND_PCM_STREAM_CAPTURE,
1613 &period_frames, &buffer_frames, tsched_frames,
1614 &b, &d, FALSE)))
1615 goto fail;
1616 }
1617
1618 pa_assert(u->device_name);
1619 pa_log_info("Successfully opened device %s.", u->device_name);
1620
1621 if (pa_alsa_pcm_is_modem(u->pcm_handle)) {
1622 pa_log_notice("Device %s is modem, refusing further initialization.", u->device_name);
1623 goto fail;
1624 }
1625
1626 if (mapping)
1627 pa_log_info("Selected mapping '%s' (%s).", mapping->description, mapping->name);
1628
1629 if (use_mmap && !b) {
1630 pa_log_info("Device doesn't support mmap(), falling back to UNIX read/write mode.");
1631 u->use_mmap = use_mmap = FALSE;
1632 }
1633
1634 if (use_tsched && (!b || !d)) {
1635 pa_log_info("Cannot enable timer-based scheduling, falling back to sound IRQ scheduling.");
1636 u->use_tsched = use_tsched = FALSE;
1637 }
1638
1639 if (use_tsched && !pa_alsa_pcm_is_hw(u->pcm_handle)) {
1640 pa_log_info("Device is not a hardware device, disabling timer-based scheduling.");
1641 u->use_tsched = use_tsched = FALSE;
1642 }
1643
1644 if (u->use_mmap)
1645 pa_log_info("Successfully enabled mmap() mode.");
1646
1647 if (u->use_tsched)
1648 pa_log_info("Successfully enabled timer-based scheduling mode.");
1649
1650 /* ALSA might tweak the sample spec, so recalculate the frame size */
1651 frame_size = pa_frame_size(&ss);
1652
1653 find_mixer(u, mapping, pa_modargs_get_value(ma, "control", NULL), ignore_dB);
1654
1655 pa_source_new_data_init(&data);
1656 data.driver = driver;
1657 data.module = m;
1658 data.card = card;
1659 set_source_name(&data, ma, dev_id, u->device_name, mapping);
1660 pa_source_new_data_set_sample_spec(&data, &ss);
1661 pa_source_new_data_set_channel_map(&data, &map);
1662
1663 pa_alsa_init_proplist_pcm(m->core, data.proplist, u->pcm_handle);
1664 pa_proplist_sets(data.proplist, PA_PROP_DEVICE_STRING, u->device_name);
1665 pa_proplist_setf(data.proplist, PA_PROP_DEVICE_BUFFERING_BUFFER_SIZE, "%lu", (unsigned long) (buffer_frames * frame_size));
1666 pa_proplist_setf(data.proplist, PA_PROP_DEVICE_BUFFERING_FRAGMENT_SIZE, "%lu", (unsigned long) (period_frames * frame_size));
1667 pa_proplist_sets(data.proplist, PA_PROP_DEVICE_ACCESS_MODE, u->use_tsched ? "mmap+timer" : (u->use_mmap ? "mmap" : "serial"));
1668
1669 if (mapping) {
1670 pa_proplist_sets(data.proplist, PA_PROP_DEVICE_PROFILE_NAME, mapping->name);
1671 pa_proplist_sets(data.proplist, PA_PROP_DEVICE_PROFILE_DESCRIPTION, mapping->description);
1672 }
1673
1674 pa_alsa_init_description(data.proplist);
1675
1676 if (u->control_device)
1677 pa_alsa_init_proplist_ctl(data.proplist, u->control_device);
1678
1679 if (pa_modargs_get_proplist(ma, "source_properties", data.proplist, PA_UPDATE_REPLACE) < 0) {
1680 pa_log("Invalid properties");
1681 pa_source_new_data_done(&data);
1682 goto fail;
1683 }
1684
1685 if (u->mixer_path_set)
1686 pa_alsa_add_ports(&data.ports, u->mixer_path_set);
1687
1688 u->source = pa_source_new(m->core, &data, PA_SOURCE_HARDWARE|PA_SOURCE_LATENCY|(u->use_tsched ? PA_SOURCE_DYNAMIC_LATENCY : 0));
1689 pa_source_new_data_done(&data);
1690
1691 if (!u->source) {
1692 pa_log("Failed to create source object");
1693 goto fail;
1694 }
1695
1696 u->source->parent.process_msg = source_process_msg;
1697 u->source->update_requested_latency = source_update_requested_latency_cb;
1698 u->source->set_state = source_set_state_cb;
1699 u->source->set_port = source_set_port_cb;
1700 u->source->userdata = u;
1701
1702 pa_source_set_asyncmsgq(u->source, u->thread_mq.inq);
1703 pa_source_set_rtpoll(u->source, u->rtpoll);
1704
1705 u->frame_size = frame_size;
1706 u->fragment_size = frag_size = (size_t) (period_frames * frame_size);
1707 u->hwbuf_size = buffer_size = (size_t) (buffer_frames * frame_size);
1708 pa_cvolume_mute(&u->hardware_volume, u->source->sample_spec.channels);
1709
1710 pa_log_info("Using %0.1f fragments of size %lu bytes (%0.2fms), buffer size is %lu bytes (%0.2fms)",
1711 (double) u->hwbuf_size / (double) u->fragment_size,
1712 (long unsigned) u->fragment_size,
1713 (double) pa_bytes_to_usec(u->fragment_size, &ss) / PA_USEC_PER_MSEC,
1714 (long unsigned) u->hwbuf_size,
1715 (double) pa_bytes_to_usec(u->hwbuf_size, &ss) / PA_USEC_PER_MSEC);
1716
1717 if (u->use_tsched) {
1718 u->tsched_watermark = pa_usec_to_bytes_round_up(pa_bytes_to_usec_round_up(tsched_watermark, &requested_ss), &u->source->sample_spec);
1719
1720 u->watermark_inc_step = pa_usec_to_bytes(TSCHED_WATERMARK_INC_STEP_USEC, &u->source->sample_spec);
1721 u->watermark_dec_step = pa_usec_to_bytes(TSCHED_WATERMARK_DEC_STEP_USEC, &u->source->sample_spec);
1722
1723 u->watermark_inc_threshold = pa_usec_to_bytes_round_up(TSCHED_WATERMARK_INC_THRESHOLD_USEC, &u->source->sample_spec);
1724 u->watermark_dec_threshold = pa_usec_to_bytes_round_up(TSCHED_WATERMARK_DEC_THRESHOLD_USEC, &u->source->sample_spec);
1725
1726 fix_min_sleep_wakeup(u);
1727 fix_tsched_watermark(u);
1728
1729 pa_source_set_latency_range(u->source,
1730 0,
1731 pa_bytes_to_usec(u->hwbuf_size, &ss));
1732
1733 pa_log_info("Time scheduling watermark is %0.2fms",
1734 (double) pa_bytes_to_usec(u->tsched_watermark, &ss) / PA_USEC_PER_MSEC);
1735 } else
1736 pa_source_set_fixed_latency(u->source, pa_bytes_to_usec(u->hwbuf_size, &ss));
1737
1738 reserve_update(u);
1739
1740 if (update_sw_params(u) < 0)
1741 goto fail;
1742
1743 if (setup_mixer(u, ignore_dB) < 0)
1744 goto fail;
1745
1746 pa_alsa_dump(PA_LOG_DEBUG, u->pcm_handle);
1747
1748 if (!(u->thread = pa_thread_new(thread_func, u))) {
1749 pa_log("Failed to create thread.");
1750 goto fail;
1751 }
1752 /* Get initial mixer settings */
1753 if (data.volume_is_set) {
1754 if (u->source->set_volume)
1755 u->source->set_volume(u->source);
1756 } else {
1757 if (u->source->get_volume)
1758 u->source->get_volume(u->source);
1759 }
1760
1761 if (data.muted_is_set) {
1762 if (u->source->set_mute)
1763 u->source->set_mute(u->source);
1764 } else {
1765 if (u->source->get_mute)
1766 u->source->get_mute(u->source);
1767 }
1768
1769 pa_source_put(u->source);
1770
1771 if (profile_set)
1772 pa_alsa_profile_set_free(profile_set);
1773
1774 return u->source;
1775
1776 fail:
1777
1778 if (u)
1779 userdata_free(u);
1780
1781 if (profile_set)
1782 pa_alsa_profile_set_free(profile_set);
1783
1784 return NULL;
1785 }
1786
1787 static void userdata_free(struct userdata *u) {
1788 pa_assert(u);
1789
1790 if (u->source)
1791 pa_source_unlink(u->source);
1792
1793 if (u->thread) {
1794 pa_asyncmsgq_send(u->thread_mq.inq, NULL, PA_MESSAGE_SHUTDOWN, NULL, 0, NULL);
1795 pa_thread_free(u->thread);
1796 }
1797
1798 pa_thread_mq_done(&u->thread_mq);
1799
1800 if (u->source)
1801 pa_source_unref(u->source);
1802
1803 if (u->alsa_rtpoll_item)
1804 pa_rtpoll_item_free(u->alsa_rtpoll_item);
1805
1806 if (u->rtpoll)
1807 pa_rtpoll_free(u->rtpoll);
1808
1809 if (u->pcm_handle) {
1810 snd_pcm_drop(u->pcm_handle);
1811 snd_pcm_close(u->pcm_handle);
1812 }
1813
1814 if (u->mixer_fdl)
1815 pa_alsa_fdlist_free(u->mixer_fdl);
1816
1817 if (u->mixer_path_set)
1818 pa_alsa_path_set_free(u->mixer_path_set);
1819 else if (u->mixer_path)
1820 pa_alsa_path_free(u->mixer_path);
1821
1822 if (u->mixer_handle)
1823 snd_mixer_close(u->mixer_handle);
1824
1825 if (u->smoother)
1826 pa_smoother_free(u->smoother);
1827
1828 reserve_done(u);
1829 monitor_done(u);
1830
1831 pa_xfree(u->device_name);
1832 pa_xfree(u->control_device);
1833 pa_xfree(u);
1834 }
1835
1836 void pa_alsa_source_free(pa_source *s) {
1837 struct userdata *u;
1838
1839 pa_source_assert_ref(s);
1840 pa_assert_se(u = s->userdata);
1841
1842 userdata_free(u);
1843 }