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1/*
2 * downmix.c
3 * Copyright (C) 2000-2003 Michel Lespinasse <walken@zoy.org>
4 * Copyright (C) 1999-2000 Aaron Holtzman <aholtzma@ess.engr.uvic.ca>
5 *
6 * This file is part of a52dec, a free ATSC A-52 stream decoder.
7 * See http://liba52.sourceforge.net/ for updates.
8 *
9 * a52dec is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License as published by
11 * the Free Software Foundation; either version 2 of the License, or
12 * (at your option) any later version.
13 *
14 * a52dec is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
22 */
23
24#include "config.h"
25
26#include <string.h>
27#include <inttypes.h>
28
29#include "a52.h"
30#include "a52_internal.h"
31
32#define CONVERT(acmod,output) (((output) << 3) + (acmod))
33
34int a52_downmix_init (int input, int flags, level_t * level,
35 level_t clev, level_t slev)
36{
37 static uint8_t table[11][8] = {
38 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_STEREO,
39 A52_STEREO, A52_STEREO, A52_STEREO, A52_STEREO},
40 {A52_MONO, A52_MONO, A52_MONO, A52_MONO,
41 A52_MONO, A52_MONO, A52_MONO, A52_MONO},
42 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_STEREO,
43 A52_STEREO, A52_STEREO, A52_STEREO, A52_STEREO},
44 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_3F,
45 A52_STEREO, A52_3F, A52_STEREO, A52_3F},
46 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_STEREO,
47 A52_2F1R, A52_2F1R, A52_2F1R, A52_2F1R},
48 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_STEREO,
49 A52_2F1R, A52_3F1R, A52_2F1R, A52_3F1R},
50 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_3F,
51 A52_2F2R, A52_2F2R, A52_2F2R, A52_2F2R},
52 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_3F,
53 A52_2F2R, A52_3F2R, A52_2F2R, A52_3F2R},
54 {A52_CHANNEL1, A52_MONO, A52_MONO, A52_MONO,
55 A52_MONO, A52_MONO, A52_MONO, A52_MONO},
56 {A52_CHANNEL2, A52_MONO, A52_MONO, A52_MONO,
57 A52_MONO, A52_MONO, A52_MONO, A52_MONO},
58 {A52_CHANNEL, A52_DOLBY, A52_STEREO, A52_DOLBY,
59 A52_DOLBY, A52_DOLBY, A52_DOLBY, A52_DOLBY}
60 };
61 int output;
62
63 output = flags & A52_CHANNEL_MASK;
64 if (output > A52_DOLBY)
65 return -1;
66
67 output = table[output][input & 7];
68
69 if (output == A52_STEREO &&
70 (input == A52_DOLBY || (input == A52_3F && clev == LEVEL (LEVEL_3DB))))
71 output = A52_DOLBY;
72
73 if (flags & A52_ADJUST_LEVEL) {
74 level_t adjust;
75
76 switch (CONVERT (input & 7, output)) {
77
78 case CONVERT (A52_3F, A52_MONO):
79 adjust = DIV (LEVEL_3DB, LEVEL (1) + clev);
80 break;
81
82 case CONVERT (A52_STEREO, A52_MONO):
83 case CONVERT (A52_2F2R, A52_2F1R):
84 case CONVERT (A52_3F2R, A52_3F1R):
85 level_3db:
86 adjust = LEVEL (LEVEL_3DB);
87 break;
88
89 case CONVERT (A52_3F2R, A52_2F1R):
90 if (clev < LEVEL (LEVEL_PLUS3DB - 1))
91 goto level_3db;
92 /* break thru */
93 case CONVERT (A52_3F, A52_STEREO):
94 case CONVERT (A52_3F1R, A52_2F1R):
95 case CONVERT (A52_3F1R, A52_2F2R):
96 case CONVERT (A52_3F2R, A52_2F2R):
97 adjust = DIV (1, LEVEL (1) + clev);
98 break;
99
100 case CONVERT (A52_2F1R, A52_MONO):
101 adjust = DIV (LEVEL_PLUS3DB, LEVEL (2) + slev);
102 break;
103
104 case CONVERT (A52_2F1R, A52_STEREO):
105 case CONVERT (A52_3F1R, A52_3F):
106 adjust = DIV (1, LEVEL (1) + MUL_C (slev, LEVEL_3DB));
107 break;
108
109 case CONVERT (A52_3F1R, A52_MONO):
110 adjust = DIV (LEVEL_3DB, LEVEL (1) + clev + MUL_C (slev, 0.5));
111 break;
112
113 case CONVERT (A52_3F1R, A52_STEREO):
114 adjust = DIV (1, LEVEL (1) + clev + MUL_C (slev, LEVEL_3DB));
115 break;
116
117 case CONVERT (A52_2F2R, A52_MONO):
118 adjust = DIV (LEVEL_3DB, LEVEL (1) + slev);
119 break;
120
121 case CONVERT (A52_2F2R, A52_STEREO):
122 case CONVERT (A52_3F2R, A52_3F):
123 adjust = DIV (1, LEVEL (1) + slev);
124 break;
125
126 case CONVERT (A52_3F2R, A52_MONO):
127 adjust = DIV (LEVEL_3DB, LEVEL (1) + clev + slev);
128 break;
129
130 case CONVERT (A52_3F2R, A52_STEREO):
131 adjust = DIV (1, LEVEL (1) + clev + slev);
132 break;
133
134 case CONVERT (A52_MONO, A52_DOLBY):
135 adjust = LEVEL (LEVEL_PLUS3DB);
136 break;
137
138 case CONVERT (A52_3F, A52_DOLBY):
139 case CONVERT (A52_2F1R, A52_DOLBY):
140 adjust = LEVEL (1 / (1 + LEVEL_3DB));
141 break;
142
143 case CONVERT (A52_3F1R, A52_DOLBY):
144 case CONVERT (A52_2F2R, A52_DOLBY):
145 adjust = LEVEL (1 / (1 + 2 * LEVEL_3DB));
146 break;
147
148 case CONVERT (A52_3F2R, A52_DOLBY):
149 adjust = LEVEL (1 / (1 + 3 * LEVEL_3DB));
150 break;
151
152 default:
153 return output;
154 }
155
156 *level = MUL_L (*level, adjust);
157 }
158
159 return output;
160}
161
162int a52_downmix_coeff (level_t * coeff, int acmod, int output, level_t level,
163 level_t clev, level_t slev)
164{
165 level_t level_3db;
166
167 level_3db = MUL_C (level, LEVEL_3DB);
168
169 switch (CONVERT (acmod, output & A52_CHANNEL_MASK)) {
170
171 case CONVERT (A52_CHANNEL, A52_CHANNEL):
172 case CONVERT (A52_MONO, A52_MONO):
173 case CONVERT (A52_STEREO, A52_STEREO):
174 case CONVERT (A52_3F, A52_3F):
175 case CONVERT (A52_2F1R, A52_2F1R):
176 case CONVERT (A52_3F1R, A52_3F1R):
177 case CONVERT (A52_2F2R, A52_2F2R):
178 case CONVERT (A52_3F2R, A52_3F2R):
179 case CONVERT (A52_STEREO, A52_DOLBY):
180 coeff[0] = coeff[1] = coeff[2] = coeff[3] = coeff[4] = level;
181 return 0;
182
183 case CONVERT (A52_CHANNEL, A52_MONO):
184 coeff[0] = coeff[1] = MUL_C (level, LEVEL_6DB);
185 return 3;
186
187 case CONVERT (A52_STEREO, A52_MONO):
188 coeff[0] = coeff[1] = level_3db;
189 return 3;
190
191 case CONVERT (A52_3F, A52_MONO):
192 coeff[0] = coeff[2] = level_3db;
193 coeff[1] = MUL_C (MUL_L (level_3db, clev), LEVEL_PLUS6DB);
194 return 7;
195
196 case CONVERT (A52_2F1R, A52_MONO):
197 coeff[0] = coeff[1] = level_3db;
198 coeff[2] = MUL_L (level_3db, slev);
199 return 7;
200
201 case CONVERT (A52_2F2R, A52_MONO):
202 coeff[0] = coeff[1] = level_3db;
203 coeff[2] = coeff[3] = MUL_L (level_3db, slev);
204 return 15;
205
206 case CONVERT (A52_3F1R, A52_MONO):
207 coeff[0] = coeff[2] = level_3db;
208 coeff[1] = MUL_C (MUL_L (level_3db, clev), LEVEL_PLUS6DB);
209 coeff[3] = MUL_L (level_3db, slev);
210 return 15;
211
212 case CONVERT (A52_3F2R, A52_MONO):
213 coeff[0] = coeff[2] = level_3db;
214 coeff[1] = MUL_C (MUL_L (level_3db, clev), LEVEL_PLUS6DB);
215 coeff[3] = coeff[4] = MUL_L (level_3db, slev);
216 return 31;
217
218 case CONVERT (A52_MONO, A52_DOLBY):
219 coeff[0] = level_3db;
220 return 0;
221
222 case CONVERT (A52_3F, A52_DOLBY):
223 coeff[0] = coeff[2] = coeff[3] = coeff[4] = level;
224 coeff[1] = level_3db;
225 return 7;
226
227 case CONVERT (A52_3F, A52_STEREO):
228 case CONVERT (A52_3F1R, A52_2F1R):
229 case CONVERT (A52_3F2R, A52_2F2R):
230 coeff[0] = coeff[2] = coeff[3] = coeff[4] = level;
231 coeff[1] = MUL_L (level, clev);
232 return 7;
233
234 case CONVERT (A52_2F1R, A52_DOLBY):
235 coeff[0] = coeff[1] = level;
236 coeff[2] = level_3db;
237 return 7;
238
239 case CONVERT (A52_2F1R, A52_STEREO):
240 coeff[0] = coeff[1] = level;
241 coeff[2] = MUL_L (level_3db, slev);
242 return 7;
243
244 case CONVERT (A52_3F1R, A52_DOLBY):
245 coeff[0] = coeff[2] = level;
246 coeff[1] = coeff[3] = level_3db;
247 return 15;
248
249 case CONVERT (A52_3F1R, A52_STEREO):
250 coeff[0] = coeff[2] = level;
251 coeff[1] = MUL_L (level, clev);
252 coeff[3] = MUL_L (level_3db, slev);
253 return 15;
254
255 case CONVERT (A52_2F2R, A52_DOLBY):
256 coeff[0] = coeff[1] = level;
257 coeff[2] = coeff[3] = level_3db;
258 return 15;
259
260 case CONVERT (A52_2F2R, A52_STEREO):
261 coeff[0] = coeff[1] = level;
262 coeff[2] = coeff[3] = MUL_L (level, slev);
263 return 15;
264
265 case CONVERT (A52_3F2R, A52_DOLBY):
266 coeff[0] = coeff[2] = level;
267 coeff[1] = coeff[3] = coeff[4] = level_3db;
268 return 31;
269
270 case CONVERT (A52_3F2R, A52_2F1R):
271 coeff[0] = coeff[2] = level;
272 coeff[1] = MUL_L (level, clev);
273 coeff[3] = coeff[4] = level_3db;
274 return 31;
275
276 case CONVERT (A52_3F2R, A52_STEREO):
277 coeff[0] = coeff[2] = level;
278 coeff[1] = MUL_L (level, clev);
279 coeff[3] = coeff[4] = MUL_L (level, slev);
280 return 31;
281
282 case CONVERT (A52_3F1R, A52_3F):
283 coeff[0] = coeff[1] = coeff[2] = level;
284 coeff[3] = MUL_L (level_3db, slev);
285 return 13;
286
287 case CONVERT (A52_3F2R, A52_3F):
288 coeff[0] = coeff[1] = coeff[2] = level;
289 coeff[3] = coeff[4] = MUL_L (level, slev);
290 return 29;
291
292 case CONVERT (A52_2F2R, A52_2F1R):
293 coeff[0] = coeff[1] = level;
294 coeff[2] = coeff[3] = level_3db;
295 return 12;
296
297 case CONVERT (A52_3F2R, A52_3F1R):
298 coeff[0] = coeff[1] = coeff[2] = level;
299 coeff[3] = coeff[4] = level_3db;
300 return 24;
301
302 case CONVERT (A52_2F1R, A52_2F2R):
303 coeff[0] = coeff[1] = level;
304 coeff[2] = level_3db;
305 return 0;
306
307 case CONVERT (A52_3F1R, A52_2F2R):
308 coeff[0] = coeff[2] = level;
309 coeff[1] = MUL_L (level, clev);
310 coeff[3] = level_3db;
311 return 7;
312
313 case CONVERT (A52_3F1R, A52_3F2R):
314 coeff[0] = coeff[1] = coeff[2] = level;
315 coeff[3] = level_3db;
316 return 0;
317
318 case CONVERT (A52_CHANNEL, A52_CHANNEL1):
319 coeff[0] = level;
320 coeff[1] = 0;
321 return 0;
322
323 case CONVERT (A52_CHANNEL, A52_CHANNEL2):
324 coeff[0] = 0;
325 coeff[1] = level;
326 return 0;
327 }
328
329 return -1; /* NOTREACHED */
330}
331
332static void mix2to1 (sample_t * dest, sample_t * src, sample_t bias)
333{
334 int i;
335
336 for (i = 0; i < 256; i++)
337 dest[i] += BIAS (src[i]);
338}
339
340static void mix3to1 (sample_t * samples, sample_t bias)
341{
342 int i;
343
344 for (i = 0; i < 256; i++)
345 samples[i] += BIAS (samples[i + 256] + samples[i + 512]);
346}
347
348static void mix4to1 (sample_t * samples, sample_t bias)
349{
350 int i;
351
352 for (i = 0; i < 256; i++)
353 samples[i] += BIAS (samples[i + 256] + samples[i + 512] +
354 samples[i + 768]);
355}
356
357static void mix5to1 (sample_t * samples, sample_t bias)
358{
359 int i;
360
361 for (i = 0; i < 256; i++)
362 samples[i] += BIAS (samples[i + 256] + samples[i + 512] +
363 samples[i + 768] + samples[i + 1024]);
364}
365
366static void mix3to2 (sample_t * samples, sample_t bias)
367{
368 int i;
369 sample_t common;
370
371 for (i = 0; i < 256; i++) {
372 common = BIAS (samples[i + 256]);
373 samples[i] += common;
374 samples[i + 256] = samples[i + 512] + common;
375 }
376}
377
378static void mix21to2 (sample_t * left, sample_t * right, sample_t bias)
379{
380 int i;
381 sample_t common;
382
383 for (i = 0; i < 256; i++) {
384 common = BIAS (right[i + 256]);
385 left[i] += common;
386 right[i] += common;
387 }
388}
389
390static void mix21toS (sample_t * samples, sample_t bias)
391{
392 int i;
393 sample_t surround;
394
395 for (i = 0; i < 256; i++) {
396 surround = samples[i + 512];
397 samples[i] += BIAS (-surround);
398 samples[i + 256] += BIAS (surround);
399 }
400}
401
402static void mix31to2 (sample_t * samples, sample_t bias)
403{
404 int i;
405 sample_t common;
406
407 for (i = 0; i < 256; i++) {
408 common = BIAS (samples[i + 256] + samples[i + 768]);
409 samples[i] += common;
410 samples[i + 256] = samples[i + 512] + common;
411 }
412}
413
414static void mix31toS (sample_t * samples, sample_t bias)
415{
416 int i;
417 sample_t common, surround;
418
419 for (i = 0; i < 256; i++) {
420 common = BIAS (samples[i + 256]);
421 surround = samples[i + 768];
422 samples[i] += common - surround;
423 samples[i + 256] = samples[i + 512] + common + surround;
424 }
425}
426
427static void mix22toS (sample_t * samples, sample_t bias)
428{
429 int i;
430 sample_t surround;
431
432 for (i = 0; i < 256; i++) {
433 surround = samples[i + 512] + samples[i + 768];
434 samples[i] += BIAS (-surround);
435 samples[i + 256] += BIAS (surround);
436 }
437}
438
439static void mix32to2 (sample_t * samples, sample_t bias)
440{
441 int i;
442 sample_t common;
443
444 for (i = 0; i < 256; i++) {
445 common = BIAS (samples[i + 256]);
446 samples[i] += common + samples[i + 768];
447 samples[i + 256] = common + samples[i + 512] + samples[i + 1024];
448 }
449}
450
451static void mix32toS (sample_t * samples, sample_t bias)
452{
453 int i;
454 sample_t common, surround;
455
456 for (i = 0; i < 256; i++) {
457 common = BIAS (samples[i + 256]);
458 surround = samples[i + 768] + samples[i + 1024];
459 samples[i] += common - surround;
460 samples[i + 256] = samples[i + 512] + common + surround;
461 }
462}
463
464static void move2to1 (sample_t * src, sample_t * dest, sample_t bias)
465{
466 int i;
467
468 for (i = 0; i < 256; i++)
469 dest[i] = BIAS (src[i] + src[i + 256]);
470}
471
472static void zero (sample_t * samples)
473{
474 int i;
475
476 for (i = 0; i < 256; i++)
477 samples[i] = 0;
478}
479
480void a52_downmix (sample_t * samples, int acmod, int output, sample_t bias,
481 level_t clev, level_t slev)
482{
483 switch (CONVERT (acmod, output & A52_CHANNEL_MASK)) {
484
485 case CONVERT (A52_CHANNEL, A52_CHANNEL2):
486 memcpy (samples, samples + 256, 256 * sizeof (sample_t));
487 break;
488
489 case CONVERT (A52_CHANNEL, A52_MONO):
490 case CONVERT (A52_STEREO, A52_MONO):
491 mix_2to1:
492 mix2to1 (samples, samples + 256, bias);
493 break;
494
495 case CONVERT (A52_2F1R, A52_MONO):
496 if (slev == 0)
497 goto mix_2to1;
498 case CONVERT (A52_3F, A52_MONO):
499 mix_3to1:
500 mix3to1 (samples, bias);
501 break;
502
503 case CONVERT (A52_3F1R, A52_MONO):
504 if (slev == 0)
505 goto mix_3to1;
506 case CONVERT (A52_2F2R, A52_MONO):
507 if (slev == 0)
508 goto mix_2to1;
509 mix4to1 (samples, bias);
510 break;
511
512 case CONVERT (A52_3F2R, A52_MONO):
513 if (slev == 0)
514 goto mix_3to1;
515 mix5to1 (samples, bias);
516 break;
517
518 case CONVERT (A52_MONO, A52_DOLBY):
519 memcpy (samples + 256, samples, 256 * sizeof (sample_t));
520 break;
521
522 case CONVERT (A52_3F, A52_STEREO):
523 case CONVERT (A52_3F, A52_DOLBY):
524 mix_3to2:
525 mix3to2 (samples, bias);
526 break;
527
528 case CONVERT (A52_2F1R, A52_STEREO):
529 if (slev == 0)
530 break;
531 mix21to2 (samples, samples + 256, bias);
532 break;
533
534 case CONVERT (A52_2F1R, A52_DOLBY):
535 mix21toS (samples, bias);
536 break;
537
538 case CONVERT (A52_3F1R, A52_STEREO):
539 if (slev == 0)
540 goto mix_3to2;
541 mix31to2 (samples, bias);
542 break;
543
544 case CONVERT (A52_3F1R, A52_DOLBY):
545 mix31toS (samples, bias);
546 break;
547
548 case CONVERT (A52_2F2R, A52_STEREO):
549 if (slev == 0)
550 break;
551 mix2to1 (samples, samples + 512, bias);
552 mix2to1 (samples + 256, samples + 768, bias);
553 break;
554
555 case CONVERT (A52_2F2R, A52_DOLBY):
556 mix22toS (samples, bias);
557 break;
558
559 case CONVERT (A52_3F2R, A52_STEREO):
560 if (slev == 0)
561 goto mix_3to2;
562 mix32to2 (samples, bias);
563 break;
564
565 case CONVERT (A52_3F2R, A52_DOLBY):
566 mix32toS (samples, bias);
567 break;
568
569 case CONVERT (A52_3F1R, A52_3F):
570 if (slev == 0)
571 break;
572 mix21to2 (samples, samples + 512, bias);
573 break;
574
575 case CONVERT (A52_3F2R, A52_3F):
576 if (slev == 0)
577 break;
578 mix2to1 (samples, samples + 768, bias);
579 mix2to1 (samples + 512, samples + 1024, bias);
580 break;
581
582 case CONVERT (A52_3F1R, A52_2F1R):
583 mix3to2 (samples, bias);
584 memcpy (samples + 512, samples + 768, 256 * sizeof (sample_t));
585 break;
586
587 case CONVERT (A52_2F2R, A52_2F1R):
588 mix2to1 (samples + 512, samples + 768, bias);
589 break;
590
591 case CONVERT (A52_3F2R, A52_2F1R):
592 mix3to2 (samples, bias);
593 move2to1 (samples + 768, samples + 512, bias);
594 break;
595
596 case CONVERT (A52_3F2R, A52_3F1R):
597 mix2to1 (samples + 768, samples + 1024, bias);
598 break;
599
600 case CONVERT (A52_2F1R, A52_2F2R):
601 memcpy (samples + 768, samples + 512, 256 * sizeof (sample_t));
602 break;
603
604 case CONVERT (A52_3F1R, A52_2F2R):
605 mix3to2 (samples, bias);
606 memcpy (samples + 512, samples + 768, 256 * sizeof (sample_t));
607 break;
608
609 case CONVERT (A52_3F2R, A52_2F2R):
610 mix3to2 (samples, bias);
611 memcpy (samples + 512, samples + 768, 256 * sizeof (sample_t));
612 memcpy (samples + 768, samples + 1024, 256 * sizeof (sample_t));
613 break;
614
615 case CONVERT (A52_3F1R, A52_3F2R):
616 memcpy (samples + 1024, samples + 768, 256 * sizeof (sample_t));
617 break;
618 }
619}
620
621void a52_upmix (sample_t * samples, int acmod, int output)
622{
623 switch (CONVERT (acmod, output & A52_CHANNEL_MASK)) {
624
625 case CONVERT (A52_CHANNEL, A52_CHANNEL2):
626 memcpy (samples + 256, samples, 256 * sizeof (sample_t));
627 break;
628
629 case CONVERT (A52_3F2R, A52_MONO):
630 zero (samples + 1024);
631 case CONVERT (A52_3F1R, A52_MONO):
632 case CONVERT (A52_2F2R, A52_MONO):
633 zero (samples + 768);
634 case CONVERT (A52_3F, A52_MONO):
635 case CONVERT (A52_2F1R, A52_MONO):
636 zero (samples + 512);
637 case CONVERT (A52_CHANNEL, A52_MONO):
638 case CONVERT (A52_STEREO, A52_MONO):
639 zero (samples + 256);
640 break;
641
642 case CONVERT (A52_3F2R, A52_STEREO):
643 case CONVERT (A52_3F2R, A52_DOLBY):
644 zero (samples + 1024);
645 case CONVERT (A52_3F1R, A52_STEREO):
646 case CONVERT (A52_3F1R, A52_DOLBY):
647 zero (samples + 768);
648 case CONVERT (A52_3F, A52_STEREO):
649 case CONVERT (A52_3F, A52_DOLBY):
650 mix_3to2:
651 memcpy (samples + 512, samples + 256, 256 * sizeof (sample_t));
652 zero (samples + 256);
653 break;
654
655 case CONVERT (A52_2F2R, A52_STEREO):
656 case CONVERT (A52_2F2R, A52_DOLBY):
657 zero (samples + 768);
658 case CONVERT (A52_2F1R, A52_STEREO):
659 case CONVERT (A52_2F1R, A52_DOLBY):
660 zero (samples + 512);
661 break;
662
663 case CONVERT (A52_3F2R, A52_3F):
664 zero (samples + 1024);
665 case CONVERT (A52_3F1R, A52_3F):
666 case CONVERT (A52_2F2R, A52_2F1R):
667 zero (samples + 768);
668 break;
669
670 case CONVERT (A52_3F2R, A52_3F1R):
671 zero (samples + 1024);
672 break;
673
674 case CONVERT (A52_3F2R, A52_2F1R):
675 zero (samples + 1024);
676 case CONVERT (A52_3F1R, A52_2F1R):
677 mix_31to21:
678 memcpy (samples + 768, samples + 512, 256 * sizeof (sample_t));
679 goto mix_3to2;
680
681 case CONVERT (A52_3F2R, A52_2F2R):
682 memcpy (samples + 1024, samples + 768, 256 * sizeof (sample_t));
683 goto mix_31to21;
684 }
685}