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[pulseaudio] / src / pulse / volume.c
1 /***
2 This file is part of PulseAudio.
3
4 Copyright 2004-2006 Lennart Poettering
5
6 PulseAudio is free software; you can redistribute it and/or modify
7 it under the terms of the GNU Lesser General Public License as published
8 by the Free Software Foundation; either version 2.1 of the License,
9 or (at your option) any later version.
10
11 PulseAudio is distributed in the hope that it will be useful, but
12 WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 General Public License for more details.
15
16 You should have received a copy of the GNU Lesser General Public License
17 along with PulseAudio; if not, write to the Free Software
18 Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307
19 USA.
20 ***/
21
22 #ifdef HAVE_CONFIG_H
23 #include <config.h>
24 #endif
25
26 #include <stdio.h>
27 #include <string.h>
28
29 #include <pulse/i18n.h>
30
31 #include <pulsecore/core-util.h>
32 #include <pulsecore/macro.h>
33 #include <pulsecore/sample-util.h>
34
35 #include "volume.h"
36
37 int pa_cvolume_equal(const pa_cvolume *a, const pa_cvolume *b) {
38 int i;
39 pa_assert(a);
40 pa_assert(b);
41
42 pa_return_val_if_fail(pa_cvolume_valid(a), 0);
43
44 if (PA_UNLIKELY(a == b))
45 return 1;
46
47 pa_return_val_if_fail(pa_cvolume_valid(b), 0);
48
49 if (a->channels != b->channels)
50 return 0;
51
52 for (i = 0; i < a->channels; i++)
53 if (a->values[i] != b->values[i])
54 return 0;
55
56 return 1;
57 }
58
59 pa_cvolume* pa_cvolume_init(pa_cvolume *a) {
60 unsigned c;
61
62 pa_assert(a);
63
64 a->channels = 0;
65
66 for (c = 0; c < PA_CHANNELS_MAX; c++)
67 a->values[c] = PA_VOLUME_INVALID;
68
69 return a;
70 }
71
72 pa_cvolume* pa_cvolume_set(pa_cvolume *a, unsigned channels, pa_volume_t v) {
73 int i;
74
75 pa_assert(a);
76 pa_assert(channels > 0);
77 pa_assert(channels <= PA_CHANNELS_MAX);
78
79 a->channels = (uint8_t) channels;
80
81 for (i = 0; i < a->channels; i++)
82 a->values[i] = v;
83
84 return a;
85 }
86
87 pa_volume_t pa_cvolume_avg(const pa_cvolume *a) {
88 uint64_t sum = 0;
89 unsigned c;
90
91 pa_assert(a);
92 pa_return_val_if_fail(pa_cvolume_valid(a), PA_VOLUME_MUTED);
93
94 for (c = 0; c < a->channels; c++)
95 sum += a->values[c];
96
97 sum /= a->channels;
98
99 return (pa_volume_t) sum;
100 }
101
102 pa_volume_t pa_cvolume_avg_mask(const pa_cvolume *a, const pa_channel_map *cm, pa_channel_position_mask_t mask) {
103 uint64_t sum = 0;
104 unsigned c, n;
105
106 pa_assert(a);
107
108 if (!cm)
109 return pa_cvolume_avg(a);
110
111 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(a, cm), PA_VOLUME_MUTED);
112
113 for (c = n = 0; c < a->channels; c++) {
114
115 if (!(PA_CHANNEL_POSITION_MASK(cm->map[c]) & mask))
116 continue;
117
118 sum += a->values[c];
119 n ++;
120 }
121
122 if (n > 0)
123 sum /= n;
124
125 return (pa_volume_t) sum;
126 }
127
128 pa_volume_t pa_cvolume_max(const pa_cvolume *a) {
129 pa_volume_t m = PA_VOLUME_MUTED;
130 unsigned c;
131
132 pa_assert(a);
133 pa_return_val_if_fail(pa_cvolume_valid(a), PA_VOLUME_MUTED);
134
135 for (c = 0; c < a->channels; c++)
136 if (a->values[c] > m)
137 m = a->values[c];
138
139 return m;
140 }
141
142 pa_volume_t pa_cvolume_min(const pa_cvolume *a) {
143 pa_volume_t m = PA_VOLUME_MAX;
144 unsigned c;
145
146 pa_assert(a);
147 pa_return_val_if_fail(pa_cvolume_valid(a), PA_VOLUME_MUTED);
148
149 for (c = 0; c < a->channels; c++)
150 if (a->values[c] < m)
151 m = a->values[c];
152
153 return m;
154 }
155
156 pa_volume_t pa_cvolume_max_mask(const pa_cvolume *a, const pa_channel_map *cm, pa_channel_position_mask_t mask) {
157 pa_volume_t m = PA_VOLUME_MUTED;
158 unsigned c, n;
159
160 pa_assert(a);
161
162 if (!cm)
163 return pa_cvolume_max(a);
164
165 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(a, cm), PA_VOLUME_MUTED);
166
167 for (c = n = 0; c < a->channels; c++) {
168
169 if (!(PA_CHANNEL_POSITION_MASK(cm->map[c]) & mask))
170 continue;
171
172 if (a->values[c] > m)
173 m = a->values[c];
174 }
175
176 return m;
177 }
178
179 pa_volume_t pa_cvolume_min_mask(const pa_cvolume *a, const pa_channel_map *cm, pa_channel_position_mask_t mask) {
180 pa_volume_t m = PA_VOLUME_MAX;
181 unsigned c, n;
182
183 pa_assert(a);
184
185 if (!cm)
186 return pa_cvolume_min(a);
187
188 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(a, cm), PA_VOLUME_MUTED);
189
190 for (c = n = 0; c < a->channels; c++) {
191
192 if (!(PA_CHANNEL_POSITION_MASK(cm->map[c]) & mask))
193 continue;
194
195 if (a->values[c] < m)
196 m = a->values[c];
197 }
198
199 return m;
200 }
201
202 pa_volume_t pa_sw_volume_multiply(pa_volume_t a, pa_volume_t b) {
203
204 pa_return_val_if_fail(a != PA_VOLUME_INVALID, PA_VOLUME_INVALID);
205 pa_return_val_if_fail(b != PA_VOLUME_INVALID, PA_VOLUME_INVALID);
206
207 /* cbrt((a/PA_VOLUME_NORM)^3*(b/PA_VOLUME_NORM)^3)*PA_VOLUME_NORM = a*b/PA_VOLUME_NORM */
208
209 return (pa_volume_t) (((uint64_t) a * (uint64_t) b + (uint64_t) PA_VOLUME_NORM / 2ULL) / (uint64_t) PA_VOLUME_NORM);
210 }
211
212 pa_volume_t pa_sw_volume_divide(pa_volume_t a, pa_volume_t b) {
213
214 pa_return_val_if_fail(a != PA_VOLUME_INVALID, PA_VOLUME_INVALID);
215 pa_return_val_if_fail(b != PA_VOLUME_INVALID, PA_VOLUME_INVALID);
216
217 if (b <= PA_VOLUME_MUTED)
218 return 0;
219
220 return (pa_volume_t) (((uint64_t) a * (uint64_t) PA_VOLUME_NORM + (uint64_t) b / 2ULL) / (uint64_t) b);
221 }
222
223 /* Amplitude, not power */
224 static double linear_to_dB(double v) {
225 return 20.0 * log10(v);
226 }
227
228 static double dB_to_linear(double v) {
229 return pow(10.0, v / 20.0);
230 }
231
232 pa_volume_t pa_sw_volume_from_dB(double dB) {
233 if (isinf(dB) < 0 || dB <= PA_DECIBEL_MININFTY)
234 return PA_VOLUME_MUTED;
235
236 return pa_sw_volume_from_linear(dB_to_linear(dB));
237 }
238
239 double pa_sw_volume_to_dB(pa_volume_t v) {
240
241 pa_return_val_if_fail(v != PA_VOLUME_INVALID, PA_DECIBEL_MININFTY);
242
243 if (v <= PA_VOLUME_MUTED)
244 return PA_DECIBEL_MININFTY;
245
246 return linear_to_dB(pa_sw_volume_to_linear(v));
247 }
248
249 pa_volume_t pa_sw_volume_from_linear(double v) {
250
251 if (v <= 0.0)
252 return PA_VOLUME_MUTED;
253
254 /*
255 * We use a cubic mapping here, as suggested and discussed here:
256 *
257 * http://www.robotplanet.dk/audio/audio_gui_design/
258 * http://lists.linuxaudio.org/pipermail/linux-audio-dev/2009-May/thread.html#23151
259 *
260 * We make sure that the conversion to linear and back yields the
261 * same volume value! That's why we need the lround() below!
262 */
263
264 return (pa_volume_t) lround(cbrt(v) * PA_VOLUME_NORM);
265 }
266
267 double pa_sw_volume_to_linear(pa_volume_t v) {
268 double f;
269
270 pa_return_val_if_fail(v != PA_VOLUME_INVALID, 0.0);
271
272 if (v <= PA_VOLUME_MUTED)
273 return 0.0;
274
275 if (v == PA_VOLUME_NORM)
276 return 1.0;
277
278 f = ((double) v / PA_VOLUME_NORM);
279
280 return f*f*f;
281 }
282
283 char *pa_cvolume_snprint(char *s, size_t l, const pa_cvolume *c) {
284 unsigned channel;
285 pa_bool_t first = TRUE;
286 char *e;
287
288 pa_assert(s);
289 pa_assert(l > 0);
290 pa_assert(c);
291
292 pa_init_i18n();
293
294 if (!pa_cvolume_valid(c)) {
295 pa_snprintf(s, l, _("(invalid)"));
296 return s;
297 }
298
299 *(e = s) = 0;
300
301 for (channel = 0; channel < c->channels && l > 1; channel++) {
302 l -= pa_snprintf(e, l, "%s%u: %3u%%",
303 first ? "" : " ",
304 channel,
305 (c->values[channel]*100+PA_VOLUME_NORM/2)/PA_VOLUME_NORM);
306
307 e = strchr(e, 0);
308 first = FALSE;
309 }
310
311 return s;
312 }
313
314 char *pa_volume_snprint(char *s, size_t l, pa_volume_t v) {
315 pa_assert(s);
316 pa_assert(l > 0);
317
318 pa_init_i18n();
319
320 if (v == PA_VOLUME_INVALID) {
321 pa_snprintf(s, l, _("(invalid)"));
322 return s;
323 }
324
325 pa_snprintf(s, l, "%3u%%", (v*100+PA_VOLUME_NORM/2)/PA_VOLUME_NORM);
326 return s;
327 }
328
329 char *pa_sw_cvolume_snprint_dB(char *s, size_t l, const pa_cvolume *c) {
330 unsigned channel;
331 pa_bool_t first = TRUE;
332 char *e;
333
334 pa_assert(s);
335 pa_assert(l > 0);
336 pa_assert(c);
337
338 pa_init_i18n();
339
340 if (!pa_cvolume_valid(c)) {
341 pa_snprintf(s, l, _("(invalid)"));
342 return s;
343 }
344
345 *(e = s) = 0;
346
347 for (channel = 0; channel < c->channels && l > 1; channel++) {
348 double f = pa_sw_volume_to_dB(c->values[channel]);
349
350 l -= pa_snprintf(e, l, "%s%u: %0.2f dB",
351 first ? "" : " ",
352 channel,
353 isinf(f) < 0 || f <= PA_DECIBEL_MININFTY ? -INFINITY : f);
354
355 e = strchr(e, 0);
356 first = FALSE;
357 }
358
359 return s;
360 }
361
362 char *pa_sw_volume_snprint_dB(char *s, size_t l, pa_volume_t v) {
363 double f;
364
365 pa_assert(s);
366 pa_assert(l > 0);
367
368 pa_init_i18n();
369
370 if (v == PA_VOLUME_INVALID) {
371 pa_snprintf(s, l, _("(invalid)"));
372 return s;
373 }
374
375 f = pa_sw_volume_to_dB(v);
376 pa_snprintf(s, l, "%0.2f dB",
377 isinf(f) < 0 || f <= PA_DECIBEL_MININFTY ? -INFINITY : f);
378
379 return s;
380 }
381
382 int pa_cvolume_channels_equal_to(const pa_cvolume *a, pa_volume_t v) {
383 unsigned c;
384 pa_assert(a);
385
386 pa_return_val_if_fail(pa_cvolume_valid(a), 0);
387 pa_return_val_if_fail(v != PA_VOLUME_INVALID, 0);
388
389 for (c = 0; c < a->channels; c++)
390 if (a->values[c] != v)
391 return 0;
392
393 return 1;
394 }
395
396 pa_cvolume *pa_sw_cvolume_multiply(pa_cvolume *dest, const pa_cvolume *a, const pa_cvolume *b) {
397 unsigned i;
398
399 pa_assert(dest);
400 pa_assert(a);
401 pa_assert(b);
402
403 pa_return_val_if_fail(pa_cvolume_valid(a), NULL);
404 pa_return_val_if_fail(pa_cvolume_valid(b), NULL);
405
406 for (i = 0; i < a->channels && i < b->channels; i++)
407 dest->values[i] = pa_sw_volume_multiply(a->values[i], b->values[i]);
408
409 dest->channels = (uint8_t) i;
410
411 return dest;
412 }
413
414 pa_cvolume *pa_sw_cvolume_multiply_scalar(pa_cvolume *dest, const pa_cvolume *a, pa_volume_t b) {
415 unsigned i;
416
417 pa_assert(dest);
418 pa_assert(a);
419
420 pa_return_val_if_fail(pa_cvolume_valid(a), NULL);
421 pa_return_val_if_fail(b != PA_VOLUME_INVALID, NULL);
422
423 for (i = 0; i < a->channels; i++)
424 dest->values[i] = pa_sw_volume_multiply(a->values[i], b);
425
426 dest->channels = (uint8_t) i;
427
428 return dest;
429 }
430
431 pa_cvolume *pa_sw_cvolume_divide(pa_cvolume *dest, const pa_cvolume *a, const pa_cvolume *b) {
432 unsigned i;
433
434 pa_assert(dest);
435 pa_assert(a);
436 pa_assert(b);
437
438 pa_return_val_if_fail(pa_cvolume_valid(a), NULL);
439 pa_return_val_if_fail(pa_cvolume_valid(b), NULL);
440
441 for (i = 0; i < a->channels && i < b->channels; i++)
442 dest->values[i] = pa_sw_volume_divide(a->values[i], b->values[i]);
443
444 dest->channels = (uint8_t) i;
445
446 return dest;
447 }
448
449 pa_cvolume *pa_sw_cvolume_divide_scalar(pa_cvolume *dest, const pa_cvolume *a, pa_volume_t b) {
450 unsigned i;
451
452 pa_assert(dest);
453 pa_assert(a);
454
455 pa_return_val_if_fail(pa_cvolume_valid(a), NULL);
456 pa_return_val_if_fail(b != PA_VOLUME_INVALID, NULL);
457
458 for (i = 0; i < a->channels; i++)
459 dest->values[i] = pa_sw_volume_divide(a->values[i], b);
460
461 dest->channels = (uint8_t) i;
462
463 return dest;
464 }
465
466 int pa_cvolume_valid(const pa_cvolume *v) {
467 unsigned c;
468
469 pa_assert(v);
470
471 if (v->channels <= 0 || v->channels > PA_CHANNELS_MAX)
472 return 0;
473
474 for (c = 0; c < v->channels; c++)
475 if (v->values[c] == PA_VOLUME_INVALID)
476 return 0;
477
478 return 1;
479 }
480
481 static pa_bool_t on_left(pa_channel_position_t p) {
482 return !!(PA_CHANNEL_POSITION_MASK(p) & PA_CHANNEL_POSITION_MASK_LEFT);
483 }
484
485 static pa_bool_t on_right(pa_channel_position_t p) {
486 return !!(PA_CHANNEL_POSITION_MASK(p) & PA_CHANNEL_POSITION_MASK_RIGHT);
487 }
488
489 static pa_bool_t on_center(pa_channel_position_t p) {
490 return !!(PA_CHANNEL_POSITION_MASK(p) & PA_CHANNEL_POSITION_MASK_CENTER);
491 }
492
493 static pa_bool_t on_lfe(pa_channel_position_t p) {
494 return p == PA_CHANNEL_POSITION_LFE;
495 }
496
497 static pa_bool_t on_front(pa_channel_position_t p) {
498 return !!(PA_CHANNEL_POSITION_MASK(p) & PA_CHANNEL_POSITION_MASK_FRONT);
499 }
500
501 static pa_bool_t on_rear(pa_channel_position_t p) {
502 return !!(PA_CHANNEL_POSITION_MASK(p) & PA_CHANNEL_POSITION_MASK_REAR);
503 }
504
505 pa_cvolume *pa_cvolume_remap(pa_cvolume *v, const pa_channel_map *from, const pa_channel_map *to) {
506 int a, b;
507 pa_cvolume result;
508
509 pa_assert(v);
510 pa_assert(from);
511 pa_assert(to);
512
513 pa_return_val_if_fail(pa_channel_map_valid(to), NULL);
514 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(v, from), NULL);
515
516 if (pa_channel_map_equal(from, to))
517 return v;
518
519 result.channels = to->channels;
520
521 for (b = 0; b < to->channels; b++) {
522 pa_volume_t k = 0;
523 int n = 0;
524
525 for (a = 0; a < from->channels; a++)
526 if (from->map[a] == to->map[b]) {
527 k += v->values[a];
528 n ++;
529 }
530
531 if (n <= 0) {
532 for (a = 0; a < from->channels; a++)
533 if ((on_left(from->map[a]) && on_left(to->map[b])) ||
534 (on_right(from->map[a]) && on_right(to->map[b])) ||
535 (on_center(from->map[a]) && on_center(to->map[b])) ||
536 (on_lfe(from->map[a]) && on_lfe(to->map[b]))) {
537
538 k += v->values[a];
539 n ++;
540 }
541 }
542
543 if (n <= 0)
544 k = pa_cvolume_avg(v);
545 else
546 k /= n;
547
548 result.values[b] = k;
549 }
550
551 *v = result;
552 return v;
553 }
554
555 int pa_cvolume_compatible(const pa_cvolume *v, const pa_sample_spec *ss) {
556
557 pa_assert(v);
558 pa_assert(ss);
559
560 pa_return_val_if_fail(pa_cvolume_valid(v), 0);
561 pa_return_val_if_fail(pa_sample_spec_valid(ss), 0);
562
563 return v->channels == ss->channels;
564 }
565
566 int pa_cvolume_compatible_with_channel_map(const pa_cvolume *v, const pa_channel_map *cm) {
567 pa_assert(v);
568 pa_assert(cm);
569
570 pa_return_val_if_fail(pa_cvolume_valid(v), 0);
571 pa_return_val_if_fail(pa_channel_map_valid(cm), 0);
572
573 return v->channels == cm->channels;
574 }
575
576 static void get_avg_lr(const pa_channel_map *map, const pa_cvolume *v, pa_volume_t *l, pa_volume_t *r) {
577 int c;
578 pa_volume_t left = 0, right = 0;
579 unsigned n_left = 0, n_right = 0;
580
581 pa_assert(v);
582 pa_assert(map);
583 pa_assert(map->channels == v->channels);
584 pa_assert(l);
585 pa_assert(r);
586
587 for (c = 0; c < map->channels; c++) {
588 if (on_left(map->map[c])) {
589 left += v->values[c];
590 n_left++;
591 } else if (on_right(map->map[c])) {
592 right += v->values[c];
593 n_right++;
594 }
595 }
596
597 if (n_left <= 0)
598 *l = PA_VOLUME_NORM;
599 else
600 *l = left / n_left;
601
602 if (n_right <= 0)
603 *r = PA_VOLUME_NORM;
604 else
605 *r = right / n_right;
606 }
607
608 float pa_cvolume_get_balance(const pa_cvolume *v, const pa_channel_map *map) {
609 pa_volume_t left, right;
610
611 pa_assert(v);
612 pa_assert(map);
613
614 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(v, map), 0.0f);
615
616 if (!pa_channel_map_can_balance(map))
617 return 0.0f;
618
619 get_avg_lr(map, v, &left, &right);
620
621 if (left == right)
622 return 0.0f;
623
624 /* 1.0, 0.0 => -1.0
625 0.0, 1.0 => 1.0
626 0.0, 0.0 => 0.0
627 0.5, 0.5 => 0.0
628 1.0, 0.5 => -0.5
629 1.0, 0.25 => -0.75
630 0.75, 0.25 => -0.66
631 0.5, 0.25 => -0.5 */
632
633 if (left > right)
634 return -1.0f + ((float) right / (float) left);
635 else
636 return 1.0f - ((float) left / (float) right);
637 }
638
639 pa_cvolume* pa_cvolume_set_balance(pa_cvolume *v, const pa_channel_map *map, float new_balance) {
640 pa_volume_t left, nleft, right, nright, m;
641 unsigned c;
642
643 pa_assert(map);
644 pa_assert(v);
645
646 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(v, map), NULL);
647 pa_return_val_if_fail(new_balance >= -1.0f, NULL);
648 pa_return_val_if_fail(new_balance <= 1.0f, NULL);
649
650 if (!pa_channel_map_can_balance(map))
651 return v;
652
653 get_avg_lr(map, v, &left, &right);
654
655 m = PA_MAX(left, right);
656
657 if (new_balance <= 0) {
658 nright = (new_balance + 1.0f) * m;
659 nleft = m;
660 } else {
661 nleft = (1.0f - new_balance) * m;
662 nright = m;
663 }
664
665 for (c = 0; c < map->channels; c++) {
666 if (on_left(map->map[c])) {
667 if (left == 0)
668 v->values[c] = nleft;
669 else
670 v->values[c] = (pa_volume_t) (((uint64_t) v->values[c] * (uint64_t) nleft) / (uint64_t) left);
671 } else if (on_right(map->map[c])) {
672 if (right == 0)
673 v->values[c] = nright;
674 else
675 v->values[c] = (pa_volume_t) (((uint64_t) v->values[c] * (uint64_t) nright) / (uint64_t) right);
676 }
677 }
678
679 return v;
680 }
681
682 pa_cvolume* pa_cvolume_scale(pa_cvolume *v, pa_volume_t max) {
683 unsigned c;
684 pa_volume_t t = 0;
685
686 pa_assert(v);
687
688 pa_return_val_if_fail(pa_cvolume_valid(v), NULL);
689 pa_return_val_if_fail(max != PA_VOLUME_INVALID, NULL);
690
691 t = pa_cvolume_max(v);
692
693 if (t <= PA_VOLUME_MUTED)
694 return pa_cvolume_set(v, v->channels, max);
695
696 for (c = 0; c < v->channels; c++)
697 v->values[c] = (pa_volume_t) (((uint64_t) v->values[c] * (uint64_t) max) / (uint64_t) t);
698
699 return v;
700 }
701
702 pa_cvolume* pa_cvolume_scale_mask(pa_cvolume *v, pa_volume_t max, pa_channel_map *cm, pa_channel_position_mask_t mask) {
703 unsigned c;
704 pa_volume_t t = 0;
705
706 pa_assert(v);
707
708 pa_return_val_if_fail(max != PA_VOLUME_INVALID, NULL);
709
710 if (!cm)
711 return pa_cvolume_scale(v, max);
712
713 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(v, cm), NULL);
714
715 t = pa_cvolume_max_mask(v, cm, mask);
716
717 if (t <= PA_VOLUME_MUTED)
718 return pa_cvolume_set(v, v->channels, max);
719
720 for (c = 0; c < v->channels; c++)
721 v->values[c] = (pa_volume_t) (((uint64_t) v->values[c] * (uint64_t) max) / (uint64_t) t);
722
723 return v;
724 }
725
726 static void get_avg_fr(const pa_channel_map *map, const pa_cvolume *v, pa_volume_t *f, pa_volume_t *r) {
727 int c;
728 pa_volume_t front = 0, rear = 0;
729 unsigned n_front = 0, n_rear = 0;
730
731 pa_assert(v);
732 pa_assert(map);
733 pa_assert(map->channels == v->channels);
734 pa_assert(f);
735 pa_assert(r);
736
737 for (c = 0; c < map->channels; c++) {
738 if (on_front(map->map[c])) {
739 front += v->values[c];
740 n_front++;
741 } else if (on_rear(map->map[c])) {
742 rear += v->values[c];
743 n_rear++;
744 }
745 }
746
747 if (n_front <= 0)
748 *f = PA_VOLUME_NORM;
749 else
750 *f = front / n_front;
751
752 if (n_rear <= 0)
753 *r = PA_VOLUME_NORM;
754 else
755 *r = rear / n_rear;
756 }
757
758 float pa_cvolume_get_fade(const pa_cvolume *v, const pa_channel_map *map) {
759 pa_volume_t front, rear;
760
761 pa_assert(v);
762 pa_assert(map);
763
764 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(v, map), 0.0f);
765
766 if (!pa_channel_map_can_fade(map))
767 return 0.0f;
768
769 get_avg_fr(map, v, &front, &rear);
770
771 if (front == rear)
772 return 0.0f;
773
774 if (rear > front)
775 return -1.0f + ((float) front / (float) rear);
776 else
777 return 1.0f - ((float) rear / (float) front);
778 }
779
780 pa_cvolume* pa_cvolume_set_fade(pa_cvolume *v, const pa_channel_map *map, float new_fade) {
781 pa_volume_t front, nfront, rear, nrear, m;
782 unsigned c;
783
784 pa_assert(map);
785 pa_assert(v);
786
787 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(v, map), NULL);
788 pa_return_val_if_fail(new_fade >= -1.0f, NULL);
789 pa_return_val_if_fail(new_fade <= 1.0f, NULL);
790
791 if (!pa_channel_map_can_fade(map))
792 return v;
793
794 get_avg_fr(map, v, &front, &rear);
795
796 m = PA_MAX(front, rear);
797
798 if (new_fade <= 0) {
799 nfront = (new_fade + 1.0f) * m;
800 nrear = m;
801 } else {
802 nrear = (1.0f - new_fade) * m;
803 nfront = m;
804 }
805
806 for (c = 0; c < map->channels; c++) {
807 if (on_front(map->map[c])) {
808 if (front == 0)
809 v->values[c] = nfront;
810 else
811 v->values[c] = (pa_volume_t) (((uint64_t) v->values[c] * (uint64_t) nfront) / (uint64_t) front);
812 } else if (on_rear(map->map[c])) {
813 if (rear == 0)
814 v->values[c] = nrear;
815 else
816 v->values[c] = (pa_volume_t) (((uint64_t) v->values[c] * (uint64_t) nrear) / (uint64_t) rear);
817 }
818 }
819
820 return v;
821 }
822
823 pa_cvolume* pa_cvolume_set_position(
824 pa_cvolume *cv,
825 const pa_channel_map *map,
826 pa_channel_position_t t,
827 pa_volume_t v) {
828
829 unsigned c;
830 pa_bool_t good = FALSE;
831
832 pa_assert(cv);
833 pa_assert(map);
834
835 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(cv, map), NULL);
836 pa_return_val_if_fail(t < PA_CHANNEL_POSITION_MAX, NULL);
837 pa_return_val_if_fail(v != PA_VOLUME_INVALID, NULL);
838
839 for (c = 0; c < map->channels; c++)
840 if (map->map[c] == t) {
841 cv->values[c] = v;
842 good = TRUE;
843 }
844
845 return good ? cv : NULL;
846 }
847
848 pa_volume_t pa_cvolume_get_position(
849 pa_cvolume *cv,
850 const pa_channel_map *map,
851 pa_channel_position_t t) {
852
853 unsigned c;
854 pa_volume_t v = PA_VOLUME_MUTED;
855
856 pa_assert(cv);
857 pa_assert(map);
858
859 pa_return_val_if_fail(pa_cvolume_compatible_with_channel_map(cv, map), PA_VOLUME_MUTED);
860 pa_return_val_if_fail(t < PA_CHANNEL_POSITION_MAX, PA_VOLUME_MUTED);
861
862 for (c = 0; c < map->channels; c++)
863 if (map->map[c] == t)
864 if (cv->values[c] > v)
865 v = cv->values[c];
866
867 return v;
868 }
869
870 pa_cvolume* pa_cvolume_merge(pa_cvolume *dest, const pa_cvolume *a, const pa_cvolume *b) {
871 unsigned i;
872
873 pa_assert(dest);
874 pa_assert(a);
875 pa_assert(b);
876
877 pa_return_val_if_fail(pa_cvolume_valid(a), NULL);
878 pa_return_val_if_fail(pa_cvolume_valid(b), NULL);
879
880 for (i = 0; i < a->channels && i < b->channels; i++)
881 dest->values[i] = PA_MAX(a->values[i], b->values[i]);
882
883 dest->channels = (uint8_t) i;
884
885 return dest;
886 }
887
888 pa_cvolume* pa_cvolume_inc(pa_cvolume *v, pa_volume_t inc) {
889 pa_volume_t m;
890
891 pa_assert(v);
892
893 pa_return_val_if_fail(pa_cvolume_valid(v), NULL);
894 pa_return_val_if_fail(inc != PA_VOLUME_INVALID, NULL);
895
896 m = pa_cvolume_max(v);
897
898 if (m >= PA_VOLUME_MAX - inc)
899 m = PA_VOLUME_MAX;
900 else
901 m += inc;
902
903 return pa_cvolume_scale(v, m);
904 }
905
906 pa_cvolume* pa_cvolume_dec(pa_cvolume *v, pa_volume_t dec) {
907 pa_volume_t m;
908
909 pa_assert(v);
910
911 pa_return_val_if_fail(pa_cvolume_valid(v), NULL);
912 pa_return_val_if_fail(dec != PA_VOLUME_INVALID, NULL);
913
914 m = pa_cvolume_max(v);
915
916 if (m <= PA_VOLUME_MUTED + dec)
917 m = PA_VOLUME_MUTED;
918 else
919 m -= dec;
920
921 return pa_cvolume_scale(v, m);
922 }