00001
00002
00003
00004
00005
00006
00007
00008
00009
00010
00011
00012
00013
00014
00015
00016
00017
00018
00019
00020
00021
00022
00023
00024
00025
00026
00027 #include <stdio.h>
00028 #include <stddef.h>
00029 #include <math.h>
00030 #include <string.h>
00031
00032 #include "libavutil/crc.h"
00033 #include "libavutil/opt.h"
00034 #include "internal.h"
00035 #include "aac_ac3_parser.h"
00036 #include "ac3_parser.h"
00037 #include "ac3dec.h"
00038 #include "ac3dec_data.h"
00039 #include "kbdwin.h"
00040
00045 static uint8_t ungroup_3_in_7_bits_tab[128][3];
00046
00048 static int b1_mantissas[32][3];
00049 static int b2_mantissas[128][3];
00050 static int b3_mantissas[8];
00051 static int b4_mantissas[128][2];
00052 static int b5_mantissas[16];
00053
00058 static const uint8_t quantization_tab[16] = {
00059 0, 3, 5, 7, 11, 15,
00060 5, 6, 7, 8, 9, 10, 11, 12, 14, 16
00061 };
00062
00064 static float dynamic_range_tab[256];
00065
00067 static const float gain_levels[9] = {
00068 LEVEL_PLUS_3DB,
00069 LEVEL_PLUS_1POINT5DB,
00070 LEVEL_ONE,
00071 LEVEL_MINUS_1POINT5DB,
00072 LEVEL_MINUS_3DB,
00073 LEVEL_MINUS_4POINT5DB,
00074 LEVEL_MINUS_6DB,
00075 LEVEL_ZERO,
00076 LEVEL_MINUS_9DB
00077 };
00078
00083 static const uint8_t ac3_default_coeffs[8][5][2] = {
00084 { { 2, 7 }, { 7, 2 }, },
00085 { { 4, 4 }, },
00086 { { 2, 7 }, { 7, 2 }, },
00087 { { 2, 7 }, { 5, 5 }, { 7, 2 }, },
00088 { { 2, 7 }, { 7, 2 }, { 6, 6 }, },
00089 { { 2, 7 }, { 5, 5 }, { 7, 2 }, { 8, 8 }, },
00090 { { 2, 7 }, { 7, 2 }, { 6, 7 }, { 7, 6 }, },
00091 { { 2, 7 }, { 5, 5 }, { 7, 2 }, { 6, 7 }, { 7, 6 }, },
00092 };
00093
00099 static inline int
00100 symmetric_dequant(int code, int levels)
00101 {
00102 return ((code - (levels >> 1)) << 24) / levels;
00103 }
00104
00105
00106
00107
00108 static av_cold void ac3_tables_init(void)
00109 {
00110 int i;
00111
00112
00113
00114 for (i = 0; i < 128; i++) {
00115 ungroup_3_in_7_bits_tab[i][0] = i / 25;
00116 ungroup_3_in_7_bits_tab[i][1] = (i % 25) / 5;
00117 ungroup_3_in_7_bits_tab[i][2] = (i % 25) % 5;
00118 }
00119
00120
00121
00122 for (i = 0; i < 32; i++) {
00123
00124 b1_mantissas[i][0] = symmetric_dequant(ff_ac3_ungroup_3_in_5_bits_tab[i][0], 3);
00125 b1_mantissas[i][1] = symmetric_dequant(ff_ac3_ungroup_3_in_5_bits_tab[i][1], 3);
00126 b1_mantissas[i][2] = symmetric_dequant(ff_ac3_ungroup_3_in_5_bits_tab[i][2], 3);
00127 }
00128 for (i = 0; i < 128; i++) {
00129
00130 b2_mantissas[i][0] = symmetric_dequant(ungroup_3_in_7_bits_tab[i][0], 5);
00131 b2_mantissas[i][1] = symmetric_dequant(ungroup_3_in_7_bits_tab[i][1], 5);
00132 b2_mantissas[i][2] = symmetric_dequant(ungroup_3_in_7_bits_tab[i][2], 5);
00133
00134
00135 b4_mantissas[i][0] = symmetric_dequant(i / 11, 11);
00136 b4_mantissas[i][1] = symmetric_dequant(i % 11, 11);
00137 }
00138
00139
00140 for (i = 0; i < 7; i++) {
00141
00142 b3_mantissas[i] = symmetric_dequant(i, 7);
00143 }
00144 for (i = 0; i < 15; i++) {
00145
00146 b5_mantissas[i] = symmetric_dequant(i, 15);
00147 }
00148
00149
00150
00151 for (i = 0; i < 256; i++) {
00152 int v = (i >> 5) - ((i >> 7) << 3) - 5;
00153 dynamic_range_tab[i] = powf(2.0f, v) * ((i & 0x1F) | 0x20);
00154 }
00155 }
00156
00160 static av_cold int ac3_decode_init(AVCodecContext *avctx)
00161 {
00162 AC3DecodeContext *s = avctx->priv_data;
00163 s->avctx = avctx;
00164
00165 ff_ac3_common_init();
00166 ac3_tables_init();
00167 ff_mdct_init(&s->imdct_256, 8, 1, 1.0);
00168 ff_mdct_init(&s->imdct_512, 9, 1, 1.0);
00169 ff_kbd_window_init(s->window, 5.0, 256);
00170 ff_dsputil_init(&s->dsp, avctx);
00171 ff_ac3dsp_init(&s->ac3dsp, avctx->flags & CODEC_FLAG_BITEXACT);
00172 ff_fmt_convert_init(&s->fmt_conv, avctx);
00173 av_lfg_init(&s->dith_state, 0);
00174
00175
00176 if (avctx->request_sample_fmt == AV_SAMPLE_FMT_FLT) {
00177 s->mul_bias = 1.0f;
00178 avctx->sample_fmt = AV_SAMPLE_FMT_FLT;
00179 } else {
00180 s->mul_bias = 32767.0f;
00181 avctx->sample_fmt = AV_SAMPLE_FMT_S16;
00182 }
00183
00184
00185 if (avctx->channels > 0 && avctx->request_channels > 0 &&
00186 avctx->request_channels < avctx->channels &&
00187 avctx->request_channels <= 2) {
00188 avctx->channels = avctx->request_channels;
00189 }
00190 s->downmixed = 1;
00191
00192 avcodec_get_frame_defaults(&s->frame);
00193 avctx->coded_frame = &s->frame;
00194
00195 return 0;
00196 }
00197
00203 static int ac3_parse_header(AC3DecodeContext *s)
00204 {
00205 GetBitContext *gbc = &s->gbc;
00206 int i;
00207
00208
00209 i = !s->channel_mode;
00210 do {
00211 skip_bits(gbc, 5);
00212 if (get_bits1(gbc))
00213 skip_bits(gbc, 8);
00214 if (get_bits1(gbc))
00215 skip_bits(gbc, 8);
00216 if (get_bits1(gbc))
00217 skip_bits(gbc, 7);
00218 } while (i--);
00219
00220 skip_bits(gbc, 2);
00221
00222
00223
00224 if (get_bits1(gbc))
00225 skip_bits(gbc, 14);
00226 if (get_bits1(gbc))
00227 skip_bits(gbc, 14);
00228
00229
00230 if (get_bits1(gbc)) {
00231 i = get_bits(gbc, 6);
00232 do {
00233 skip_bits(gbc, 8);
00234 } while (i--);
00235 }
00236
00237 return 0;
00238 }
00239
00243 static int parse_frame_header(AC3DecodeContext *s)
00244 {
00245 AC3HeaderInfo hdr;
00246 int err;
00247
00248 err = avpriv_ac3_parse_header(&s->gbc, &hdr);
00249 if (err)
00250 return err;
00251
00252
00253 s->bit_alloc_params.sr_code = hdr.sr_code;
00254 s->bitstream_mode = hdr.bitstream_mode;
00255 s->channel_mode = hdr.channel_mode;
00256 s->channel_layout = hdr.channel_layout;
00257 s->lfe_on = hdr.lfe_on;
00258 s->bit_alloc_params.sr_shift = hdr.sr_shift;
00259 s->sample_rate = hdr.sample_rate;
00260 s->bit_rate = hdr.bit_rate;
00261 s->channels = hdr.channels;
00262 s->fbw_channels = s->channels - s->lfe_on;
00263 s->lfe_ch = s->fbw_channels + 1;
00264 s->frame_size = hdr.frame_size;
00265 s->center_mix_level = hdr.center_mix_level;
00266 s->surround_mix_level = hdr.surround_mix_level;
00267 s->num_blocks = hdr.num_blocks;
00268 s->frame_type = hdr.frame_type;
00269 s->substreamid = hdr.substreamid;
00270
00271 if (s->lfe_on) {
00272 s->start_freq[s->lfe_ch] = 0;
00273 s->end_freq[s->lfe_ch] = 7;
00274 s->num_exp_groups[s->lfe_ch] = 2;
00275 s->channel_in_cpl[s->lfe_ch] = 0;
00276 }
00277
00278 if (hdr.bitstream_id <= 10) {
00279 s->eac3 = 0;
00280 s->snr_offset_strategy = 2;
00281 s->block_switch_syntax = 1;
00282 s->dither_flag_syntax = 1;
00283 s->bit_allocation_syntax = 1;
00284 s->fast_gain_syntax = 0;
00285 s->first_cpl_leak = 0;
00286 s->dba_syntax = 1;
00287 s->skip_syntax = 1;
00288 memset(s->channel_uses_aht, 0, sizeof(s->channel_uses_aht));
00289 return ac3_parse_header(s);
00290 } else if (CONFIG_EAC3_DECODER) {
00291 s->eac3 = 1;
00292 return ff_eac3_parse_header(s);
00293 } else {
00294 av_log(s->avctx, AV_LOG_ERROR, "E-AC-3 support not compiled in\n");
00295 return -1;
00296 }
00297 }
00298
00303 static void set_downmix_coeffs(AC3DecodeContext *s)
00304 {
00305 int i;
00306 float cmix = gain_levels[s-> center_mix_level];
00307 float smix = gain_levels[s->surround_mix_level];
00308 float norm0, norm1;
00309
00310 for (i = 0; i < s->fbw_channels; i++) {
00311 s->downmix_coeffs[i][0] = gain_levels[ac3_default_coeffs[s->channel_mode][i][0]];
00312 s->downmix_coeffs[i][1] = gain_levels[ac3_default_coeffs[s->channel_mode][i][1]];
00313 }
00314 if (s->channel_mode > 1 && s->channel_mode & 1) {
00315 s->downmix_coeffs[1][0] = s->downmix_coeffs[1][1] = cmix;
00316 }
00317 if (s->channel_mode == AC3_CHMODE_2F1R || s->channel_mode == AC3_CHMODE_3F1R) {
00318 int nf = s->channel_mode - 2;
00319 s->downmix_coeffs[nf][0] = s->downmix_coeffs[nf][1] = smix * LEVEL_MINUS_3DB;
00320 }
00321 if (s->channel_mode == AC3_CHMODE_2F2R || s->channel_mode == AC3_CHMODE_3F2R) {
00322 int nf = s->channel_mode - 4;
00323 s->downmix_coeffs[nf][0] = s->downmix_coeffs[nf+1][1] = smix;
00324 }
00325
00326
00327 norm0 = norm1 = 0.0;
00328 for (i = 0; i < s->fbw_channels; i++) {
00329 norm0 += s->downmix_coeffs[i][0];
00330 norm1 += s->downmix_coeffs[i][1];
00331 }
00332 norm0 = 1.0f / norm0;
00333 norm1 = 1.0f / norm1;
00334 for (i = 0; i < s->fbw_channels; i++) {
00335 s->downmix_coeffs[i][0] *= norm0;
00336 s->downmix_coeffs[i][1] *= norm1;
00337 }
00338
00339 if (s->output_mode == AC3_CHMODE_MONO) {
00340 for (i = 0; i < s->fbw_channels; i++)
00341 s->downmix_coeffs[i][0] = (s->downmix_coeffs[i][0] +
00342 s->downmix_coeffs[i][1]) * LEVEL_MINUS_3DB;
00343 }
00344 }
00345
00350 static int decode_exponents(GetBitContext *gbc, int exp_strategy, int ngrps,
00351 uint8_t absexp, int8_t *dexps)
00352 {
00353 int i, j, grp, group_size;
00354 int dexp[256];
00355 int expacc, prevexp;
00356
00357
00358 group_size = exp_strategy + (exp_strategy == EXP_D45);
00359 for (grp = 0, i = 0; grp < ngrps; grp++) {
00360 expacc = get_bits(gbc, 7);
00361 dexp[i++] = ungroup_3_in_7_bits_tab[expacc][0];
00362 dexp[i++] = ungroup_3_in_7_bits_tab[expacc][1];
00363 dexp[i++] = ungroup_3_in_7_bits_tab[expacc][2];
00364 }
00365
00366
00367 prevexp = absexp;
00368 for (i = 0, j = 0; i < ngrps * 3; i++) {
00369 prevexp += dexp[i] - 2;
00370 if (prevexp > 24U)
00371 return -1;
00372 switch (group_size) {
00373 case 4: dexps[j++] = prevexp;
00374 dexps[j++] = prevexp;
00375 case 2: dexps[j++] = prevexp;
00376 case 1: dexps[j++] = prevexp;
00377 }
00378 }
00379 return 0;
00380 }
00381
00387 static void calc_transform_coeffs_cpl(AC3DecodeContext *s)
00388 {
00389 int bin, band, ch;
00390
00391 bin = s->start_freq[CPL_CH];
00392 for (band = 0; band < s->num_cpl_bands; band++) {
00393 int band_start = bin;
00394 int band_end = bin + s->cpl_band_sizes[band];
00395 for (ch = 1; ch <= s->fbw_channels; ch++) {
00396 if (s->channel_in_cpl[ch]) {
00397 int cpl_coord = s->cpl_coords[ch][band] << 5;
00398 for (bin = band_start; bin < band_end; bin++) {
00399 s->fixed_coeffs[ch][bin] =
00400 MULH(s->fixed_coeffs[CPL_CH][bin] << 4, cpl_coord);
00401 }
00402 if (ch == 2 && s->phase_flags[band]) {
00403 for (bin = band_start; bin < band_end; bin++)
00404 s->fixed_coeffs[2][bin] = -s->fixed_coeffs[2][bin];
00405 }
00406 }
00407 }
00408 bin = band_end;
00409 }
00410 }
00411
00415 typedef struct {
00416 int b1_mant[2];
00417 int b2_mant[2];
00418 int b4_mant;
00419 int b1;
00420 int b2;
00421 int b4;
00422 } mant_groups;
00423
00428 static void ac3_decode_transform_coeffs_ch(AC3DecodeContext *s, int ch_index, mant_groups *m)
00429 {
00430 int start_freq = s->start_freq[ch_index];
00431 int end_freq = s->end_freq[ch_index];
00432 uint8_t *baps = s->bap[ch_index];
00433 int8_t *exps = s->dexps[ch_index];
00434 int *coeffs = s->fixed_coeffs[ch_index];
00435 int dither = (ch_index == CPL_CH) || s->dither_flag[ch_index];
00436 GetBitContext *gbc = &s->gbc;
00437 int freq;
00438
00439 for (freq = start_freq; freq < end_freq; freq++) {
00440 int bap = baps[freq];
00441 int mantissa;
00442 switch (bap) {
00443 case 0:
00444 if (dither)
00445 mantissa = (av_lfg_get(&s->dith_state) & 0x7FFFFF) - 0x400000;
00446 else
00447 mantissa = 0;
00448 break;
00449 case 1:
00450 if (m->b1) {
00451 m->b1--;
00452 mantissa = m->b1_mant[m->b1];
00453 } else {
00454 int bits = get_bits(gbc, 5);
00455 mantissa = b1_mantissas[bits][0];
00456 m->b1_mant[1] = b1_mantissas[bits][1];
00457 m->b1_mant[0] = b1_mantissas[bits][2];
00458 m->b1 = 2;
00459 }
00460 break;
00461 case 2:
00462 if (m->b2) {
00463 m->b2--;
00464 mantissa = m->b2_mant[m->b2];
00465 } else {
00466 int bits = get_bits(gbc, 7);
00467 mantissa = b2_mantissas[bits][0];
00468 m->b2_mant[1] = b2_mantissas[bits][1];
00469 m->b2_mant[0] = b2_mantissas[bits][2];
00470 m->b2 = 2;
00471 }
00472 break;
00473 case 3:
00474 mantissa = b3_mantissas[get_bits(gbc, 3)];
00475 break;
00476 case 4:
00477 if (m->b4) {
00478 m->b4 = 0;
00479 mantissa = m->b4_mant;
00480 } else {
00481 int bits = get_bits(gbc, 7);
00482 mantissa = b4_mantissas[bits][0];
00483 m->b4_mant = b4_mantissas[bits][1];
00484 m->b4 = 1;
00485 }
00486 break;
00487 case 5:
00488 mantissa = b5_mantissas[get_bits(gbc, 4)];
00489 break;
00490 default:
00491
00492 mantissa = get_sbits(gbc, quantization_tab[bap]);
00493 mantissa <<= 24 - quantization_tab[bap];
00494 break;
00495 }
00496 coeffs[freq] = mantissa >> exps[freq];
00497 }
00498 }
00499
00505 static void remove_dithering(AC3DecodeContext *s) {
00506 int ch, i;
00507
00508 for (ch = 1; ch <= s->fbw_channels; ch++) {
00509 if (!s->dither_flag[ch] && s->channel_in_cpl[ch]) {
00510 for (i = s->start_freq[CPL_CH]; i < s->end_freq[CPL_CH]; i++) {
00511 if (!s->bap[CPL_CH][i])
00512 s->fixed_coeffs[ch][i] = 0;
00513 }
00514 }
00515 }
00516 }
00517
00518 static void decode_transform_coeffs_ch(AC3DecodeContext *s, int blk, int ch,
00519 mant_groups *m)
00520 {
00521 if (!s->channel_uses_aht[ch]) {
00522 ac3_decode_transform_coeffs_ch(s, ch, m);
00523 } else {
00524
00525
00526 int bin;
00527 if (!blk && CONFIG_EAC3_DECODER)
00528 ff_eac3_decode_transform_coeffs_aht_ch(s, ch);
00529 for (bin = s->start_freq[ch]; bin < s->end_freq[ch]; bin++) {
00530 s->fixed_coeffs[ch][bin] = s->pre_mantissa[ch][bin][blk] >> s->dexps[ch][bin];
00531 }
00532 }
00533 }
00534
00538 static void decode_transform_coeffs(AC3DecodeContext *s, int blk)
00539 {
00540 int ch, end;
00541 int got_cplchan = 0;
00542 mant_groups m;
00543
00544 m.b1 = m.b2 = m.b4 = 0;
00545
00546 for (ch = 1; ch <= s->channels; ch++) {
00547
00548 decode_transform_coeffs_ch(s, blk, ch, &m);
00549
00550
00551 if (s->channel_in_cpl[ch]) {
00552 if (!got_cplchan) {
00553 decode_transform_coeffs_ch(s, blk, CPL_CH, &m);
00554 calc_transform_coeffs_cpl(s);
00555 got_cplchan = 1;
00556 }
00557 end = s->end_freq[CPL_CH];
00558 } else {
00559 end = s->end_freq[ch];
00560 }
00561 do
00562 s->fixed_coeffs[ch][end] = 0;
00563 while (++end < 256);
00564 }
00565
00566
00567 remove_dithering(s);
00568 }
00569
00574 static void do_rematrixing(AC3DecodeContext *s)
00575 {
00576 int bnd, i;
00577 int end, bndend;
00578
00579 end = FFMIN(s->end_freq[1], s->end_freq[2]);
00580
00581 for (bnd = 0; bnd < s->num_rematrixing_bands; bnd++) {
00582 if (s->rematrixing_flags[bnd]) {
00583 bndend = FFMIN(end, ff_ac3_rematrix_band_tab[bnd + 1]);
00584 for (i = ff_ac3_rematrix_band_tab[bnd]; i < bndend; i++) {
00585 int tmp0 = s->fixed_coeffs[1][i];
00586 s->fixed_coeffs[1][i] += s->fixed_coeffs[2][i];
00587 s->fixed_coeffs[2][i] = tmp0 - s->fixed_coeffs[2][i];
00588 }
00589 }
00590 }
00591 }
00592
00598 static inline void do_imdct(AC3DecodeContext *s, int channels)
00599 {
00600 int ch;
00601
00602 for (ch = 1; ch <= channels; ch++) {
00603 if (s->block_switch[ch]) {
00604 int i;
00605 float *x = s->tmp_output + 128;
00606 for (i = 0; i < 128; i++)
00607 x[i] = s->transform_coeffs[ch][2 * i];
00608 s->imdct_256.imdct_half(&s->imdct_256, s->tmp_output, x);
00609 s->dsp.vector_fmul_window(s->output[ch - 1], s->delay[ch - 1],
00610 s->tmp_output, s->window, 128);
00611 for (i = 0; i < 128; i++)
00612 x[i] = s->transform_coeffs[ch][2 * i + 1];
00613 s->imdct_256.imdct_half(&s->imdct_256, s->delay[ch - 1], x);
00614 } else {
00615 s->imdct_512.imdct_half(&s->imdct_512, s->tmp_output, s->transform_coeffs[ch]);
00616 s->dsp.vector_fmul_window(s->output[ch - 1], s->delay[ch - 1],
00617 s->tmp_output, s->window, 128);
00618 memcpy(s->delay[ch - 1], s->tmp_output + 128, 128 * sizeof(float));
00619 }
00620 }
00621 }
00622
00626 void ff_ac3_downmix_c(float (*samples)[256], float (*matrix)[2],
00627 int out_ch, int in_ch, int len)
00628 {
00629 int i, j;
00630 float v0, v1;
00631 if (out_ch == 2) {
00632 for (i = 0; i < len; i++) {
00633 v0 = v1 = 0.0f;
00634 for (j = 0; j < in_ch; j++) {
00635 v0 += samples[j][i] * matrix[j][0];
00636 v1 += samples[j][i] * matrix[j][1];
00637 }
00638 samples[0][i] = v0;
00639 samples[1][i] = v1;
00640 }
00641 } else if (out_ch == 1) {
00642 for (i = 0; i < len; i++) {
00643 v0 = 0.0f;
00644 for (j = 0; j < in_ch; j++)
00645 v0 += samples[j][i] * matrix[j][0];
00646 samples[0][i] = v0;
00647 }
00648 }
00649 }
00650
00654 static void ac3_upmix_delay(AC3DecodeContext *s)
00655 {
00656 int channel_data_size = sizeof(s->delay[0]);
00657 switch (s->channel_mode) {
00658 case AC3_CHMODE_DUALMONO:
00659 case AC3_CHMODE_STEREO:
00660
00661 memcpy(s->delay[1], s->delay[0], channel_data_size);
00662 break;
00663 case AC3_CHMODE_2F2R:
00664 memset(s->delay[3], 0, channel_data_size);
00665 case AC3_CHMODE_2F1R:
00666 memset(s->delay[2], 0, channel_data_size);
00667 break;
00668 case AC3_CHMODE_3F2R:
00669 memset(s->delay[4], 0, channel_data_size);
00670 case AC3_CHMODE_3F1R:
00671 memset(s->delay[3], 0, channel_data_size);
00672 case AC3_CHMODE_3F:
00673 memcpy(s->delay[2], s->delay[1], channel_data_size);
00674 memset(s->delay[1], 0, channel_data_size);
00675 break;
00676 }
00677 }
00678
00695 static void decode_band_structure(GetBitContext *gbc, int blk, int eac3,
00696 int ecpl, int start_subband, int end_subband,
00697 const uint8_t *default_band_struct,
00698 int *num_bands, uint8_t *band_sizes)
00699 {
00700 int subbnd, bnd, n_subbands, n_bands=0;
00701 uint8_t bnd_sz[22];
00702 uint8_t coded_band_struct[22];
00703 const uint8_t *band_struct;
00704
00705 n_subbands = end_subband - start_subband;
00706
00707
00708 if (!eac3 || get_bits1(gbc)) {
00709 for (subbnd = 0; subbnd < n_subbands - 1; subbnd++) {
00710 coded_band_struct[subbnd] = get_bits1(gbc);
00711 }
00712 band_struct = coded_band_struct;
00713 } else if (!blk) {
00714 band_struct = &default_band_struct[start_subband+1];
00715 } else {
00716
00717 return;
00718 }
00719
00720
00721
00722
00723 if (num_bands || band_sizes ) {
00724 n_bands = n_subbands;
00725 bnd_sz[0] = ecpl ? 6 : 12;
00726 for (bnd = 0, subbnd = 1; subbnd < n_subbands; subbnd++) {
00727 int subbnd_size = (ecpl && subbnd < 4) ? 6 : 12;
00728 if (band_struct[subbnd - 1]) {
00729 n_bands--;
00730 bnd_sz[bnd] += subbnd_size;
00731 } else {
00732 bnd_sz[++bnd] = subbnd_size;
00733 }
00734 }
00735 }
00736
00737
00738 if (num_bands)
00739 *num_bands = n_bands;
00740 if (band_sizes)
00741 memcpy(band_sizes, bnd_sz, n_bands);
00742 }
00743
00747 static int decode_audio_block(AC3DecodeContext *s, int blk)
00748 {
00749 int fbw_channels = s->fbw_channels;
00750 int channel_mode = s->channel_mode;
00751 int i, bnd, seg, ch;
00752 int different_transforms;
00753 int downmix_output;
00754 int cpl_in_use;
00755 GetBitContext *gbc = &s->gbc;
00756 uint8_t bit_alloc_stages[AC3_MAX_CHANNELS] = { 0 };
00757
00758
00759 different_transforms = 0;
00760 if (s->block_switch_syntax) {
00761 for (ch = 1; ch <= fbw_channels; ch++) {
00762 s->block_switch[ch] = get_bits1(gbc);
00763 if (ch > 1 && s->block_switch[ch] != s->block_switch[1])
00764 different_transforms = 1;
00765 }
00766 }
00767
00768
00769 if (s->dither_flag_syntax) {
00770 for (ch = 1; ch <= fbw_channels; ch++) {
00771 s->dither_flag[ch] = get_bits1(gbc);
00772 }
00773 }
00774
00775
00776 i = !s->channel_mode;
00777 do {
00778 if (get_bits1(gbc)) {
00779 s->dynamic_range[i] = ((dynamic_range_tab[get_bits(gbc, 8)] - 1.0) *
00780 s->drc_scale) + 1.0;
00781 } else if (blk == 0) {
00782 s->dynamic_range[i] = 1.0f;
00783 }
00784 } while (i--);
00785
00786
00787 if (s->eac3 && (!blk || get_bits1(gbc))) {
00788 s->spx_in_use = get_bits1(gbc);
00789 if (s->spx_in_use) {
00790 int dst_start_freq, dst_end_freq, src_start_freq,
00791 start_subband, end_subband;
00792
00793
00794 if (s->channel_mode == AC3_CHMODE_MONO) {
00795 s->channel_uses_spx[1] = 1;
00796 } else {
00797 for (ch = 1; ch <= fbw_channels; ch++)
00798 s->channel_uses_spx[ch] = get_bits1(gbc);
00799 }
00800
00801
00802
00803 dst_start_freq = get_bits(gbc, 2);
00804 start_subband = get_bits(gbc, 3) + 2;
00805 if (start_subband > 7)
00806 start_subband += start_subband - 7;
00807 end_subband = get_bits(gbc, 3) + 5;
00808 if (end_subband > 7)
00809 end_subband += end_subband - 7;
00810 dst_start_freq = dst_start_freq * 12 + 25;
00811 src_start_freq = start_subband * 12 + 25;
00812 dst_end_freq = end_subband * 12 + 25;
00813
00814
00815 if (start_subband >= end_subband) {
00816 av_log(s->avctx, AV_LOG_ERROR, "invalid spectral extension "
00817 "range (%d >= %d)\n", start_subband, end_subband);
00818 return -1;
00819 }
00820 if (dst_start_freq >= src_start_freq) {
00821 av_log(s->avctx, AV_LOG_ERROR, "invalid spectral extension "
00822 "copy start bin (%d >= %d)\n", dst_start_freq, src_start_freq);
00823 return -1;
00824 }
00825
00826 s->spx_dst_start_freq = dst_start_freq;
00827 s->spx_src_start_freq = src_start_freq;
00828 s->spx_dst_end_freq = dst_end_freq;
00829
00830 decode_band_structure(gbc, blk, s->eac3, 0,
00831 start_subband, end_subband,
00832 ff_eac3_default_spx_band_struct,
00833 &s->num_spx_bands,
00834 s->spx_band_sizes);
00835 } else {
00836 for (ch = 1; ch <= fbw_channels; ch++) {
00837 s->channel_uses_spx[ch] = 0;
00838 s->first_spx_coords[ch] = 1;
00839 }
00840 }
00841 }
00842
00843
00844 if (s->spx_in_use) {
00845 for (ch = 1; ch <= fbw_channels; ch++) {
00846 if (s->channel_uses_spx[ch]) {
00847 if (s->first_spx_coords[ch] || get_bits1(gbc)) {
00848 float spx_blend;
00849 int bin, master_spx_coord;
00850
00851 s->first_spx_coords[ch] = 0;
00852 spx_blend = get_bits(gbc, 5) * (1.0f/32);
00853 master_spx_coord = get_bits(gbc, 2) * 3;
00854
00855 bin = s->spx_src_start_freq;
00856 for (bnd = 0; bnd < s->num_spx_bands; bnd++) {
00857 int bandsize;
00858 int spx_coord_exp, spx_coord_mant;
00859 float nratio, sblend, nblend, spx_coord;
00860
00861
00862 bandsize = s->spx_band_sizes[bnd];
00863 nratio = ((float)((bin + (bandsize >> 1))) / s->spx_dst_end_freq) - spx_blend;
00864 nratio = av_clipf(nratio, 0.0f, 1.0f);
00865 nblend = sqrtf(3.0f * nratio);
00866
00867 sblend = sqrtf(1.0f - nratio);
00868 bin += bandsize;
00869
00870
00871 spx_coord_exp = get_bits(gbc, 4);
00872 spx_coord_mant = get_bits(gbc, 2);
00873 if (spx_coord_exp == 15) spx_coord_mant <<= 1;
00874 else spx_coord_mant += 4;
00875 spx_coord_mant <<= (25 - spx_coord_exp - master_spx_coord);
00876 spx_coord = spx_coord_mant * (1.0f / (1 << 23));
00877
00878
00879 s->spx_noise_blend [ch][bnd] = nblend * spx_coord;
00880 s->spx_signal_blend[ch][bnd] = sblend * spx_coord;
00881 }
00882 }
00883 } else {
00884 s->first_spx_coords[ch] = 1;
00885 }
00886 }
00887 }
00888
00889
00890 if (s->eac3 ? s->cpl_strategy_exists[blk] : get_bits1(gbc)) {
00891 memset(bit_alloc_stages, 3, AC3_MAX_CHANNELS);
00892 if (!s->eac3)
00893 s->cpl_in_use[blk] = get_bits1(gbc);
00894 if (s->cpl_in_use[blk]) {
00895
00896 int cpl_start_subband, cpl_end_subband;
00897
00898 if (channel_mode < AC3_CHMODE_STEREO) {
00899 av_log(s->avctx, AV_LOG_ERROR, "coupling not allowed in mono or dual-mono\n");
00900 return -1;
00901 }
00902
00903
00904 if (s->eac3 && get_bits1(gbc)) {
00905
00906 av_log_missing_feature(s->avctx, "Enhanced coupling", 1);
00907 return -1;
00908 }
00909
00910
00911 if (s->eac3 && s->channel_mode == AC3_CHMODE_STEREO) {
00912 s->channel_in_cpl[1] = 1;
00913 s->channel_in_cpl[2] = 1;
00914 } else {
00915 for (ch = 1; ch <= fbw_channels; ch++)
00916 s->channel_in_cpl[ch] = get_bits1(gbc);
00917 }
00918
00919
00920 if (channel_mode == AC3_CHMODE_STEREO)
00921 s->phase_flags_in_use = get_bits1(gbc);
00922
00923
00924 cpl_start_subband = get_bits(gbc, 4);
00925 cpl_end_subband = s->spx_in_use ? (s->spx_src_start_freq - 37) / 12 :
00926 get_bits(gbc, 4) + 3;
00927 if (cpl_start_subband >= cpl_end_subband) {
00928 av_log(s->avctx, AV_LOG_ERROR, "invalid coupling range (%d >= %d)\n",
00929 cpl_start_subband, cpl_end_subband);
00930 return -1;
00931 }
00932 s->start_freq[CPL_CH] = cpl_start_subband * 12 + 37;
00933 s->end_freq[CPL_CH] = cpl_end_subband * 12 + 37;
00934
00935 decode_band_structure(gbc, blk, s->eac3, 0, cpl_start_subband,
00936 cpl_end_subband,
00937 ff_eac3_default_cpl_band_struct,
00938 &s->num_cpl_bands, s->cpl_band_sizes);
00939 } else {
00940
00941 for (ch = 1; ch <= fbw_channels; ch++) {
00942 s->channel_in_cpl[ch] = 0;
00943 s->first_cpl_coords[ch] = 1;
00944 }
00945 s->first_cpl_leak = s->eac3;
00946 s->phase_flags_in_use = 0;
00947 }
00948 } else if (!s->eac3) {
00949 if (!blk) {
00950 av_log(s->avctx, AV_LOG_ERROR, "new coupling strategy must "
00951 "be present in block 0\n");
00952 return -1;
00953 } else {
00954 s->cpl_in_use[blk] = s->cpl_in_use[blk-1];
00955 }
00956 }
00957 cpl_in_use = s->cpl_in_use[blk];
00958
00959
00960 if (cpl_in_use) {
00961 int cpl_coords_exist = 0;
00962
00963 for (ch = 1; ch <= fbw_channels; ch++) {
00964 if (s->channel_in_cpl[ch]) {
00965 if ((s->eac3 && s->first_cpl_coords[ch]) || get_bits1(gbc)) {
00966 int master_cpl_coord, cpl_coord_exp, cpl_coord_mant;
00967 s->first_cpl_coords[ch] = 0;
00968 cpl_coords_exist = 1;
00969 master_cpl_coord = 3 * get_bits(gbc, 2);
00970 for (bnd = 0; bnd < s->num_cpl_bands; bnd++) {
00971 cpl_coord_exp = get_bits(gbc, 4);
00972 cpl_coord_mant = get_bits(gbc, 4);
00973 if (cpl_coord_exp == 15)
00974 s->cpl_coords[ch][bnd] = cpl_coord_mant << 22;
00975 else
00976 s->cpl_coords[ch][bnd] = (cpl_coord_mant + 16) << 21;
00977 s->cpl_coords[ch][bnd] >>= (cpl_coord_exp + master_cpl_coord);
00978 }
00979 } else if (!blk) {
00980 av_log(s->avctx, AV_LOG_ERROR, "new coupling coordinates must "
00981 "be present in block 0\n");
00982 return -1;
00983 }
00984 } else {
00985
00986 s->first_cpl_coords[ch] = 1;
00987 }
00988 }
00989
00990 if (channel_mode == AC3_CHMODE_STEREO && cpl_coords_exist) {
00991 for (bnd = 0; bnd < s->num_cpl_bands; bnd++) {
00992 s->phase_flags[bnd] = s->phase_flags_in_use? get_bits1(gbc) : 0;
00993 }
00994 }
00995 }
00996
00997
00998 if (channel_mode == AC3_CHMODE_STEREO) {
00999 if ((s->eac3 && !blk) || get_bits1(gbc)) {
01000 s->num_rematrixing_bands = 4;
01001 if (cpl_in_use && s->start_freq[CPL_CH] <= 61) {
01002 s->num_rematrixing_bands -= 1 + (s->start_freq[CPL_CH] == 37);
01003 } else if (s->spx_in_use && s->spx_src_start_freq <= 61) {
01004 s->num_rematrixing_bands--;
01005 }
01006 for (bnd = 0; bnd < s->num_rematrixing_bands; bnd++)
01007 s->rematrixing_flags[bnd] = get_bits1(gbc);
01008 } else if (!blk) {
01009 av_log(s->avctx, AV_LOG_WARNING, "Warning: "
01010 "new rematrixing strategy not present in block 0\n");
01011 s->num_rematrixing_bands = 0;
01012 }
01013 }
01014
01015
01016 for (ch = !cpl_in_use; ch <= s->channels; ch++) {
01017 if (!s->eac3)
01018 s->exp_strategy[blk][ch] = get_bits(gbc, 2 - (ch == s->lfe_ch));
01019 if (s->exp_strategy[blk][ch] != EXP_REUSE)
01020 bit_alloc_stages[ch] = 3;
01021 }
01022
01023
01024 for (ch = 1; ch <= fbw_channels; ch++) {
01025 s->start_freq[ch] = 0;
01026 if (s->exp_strategy[blk][ch] != EXP_REUSE) {
01027 int group_size;
01028 int prev = s->end_freq[ch];
01029 if (s->channel_in_cpl[ch])
01030 s->end_freq[ch] = s->start_freq[CPL_CH];
01031 else if (s->channel_uses_spx[ch])
01032 s->end_freq[ch] = s->spx_src_start_freq;
01033 else {
01034 int bandwidth_code = get_bits(gbc, 6);
01035 if (bandwidth_code > 60) {
01036 av_log(s->avctx, AV_LOG_ERROR, "bandwidth code = %d > 60\n", bandwidth_code);
01037 return -1;
01038 }
01039 s->end_freq[ch] = bandwidth_code * 3 + 73;
01040 }
01041 group_size = 3 << (s->exp_strategy[blk][ch] - 1);
01042 s->num_exp_groups[ch] = (s->end_freq[ch] + group_size-4) / group_size;
01043 if (blk > 0 && s->end_freq[ch] != prev)
01044 memset(bit_alloc_stages, 3, AC3_MAX_CHANNELS);
01045 }
01046 }
01047 if (cpl_in_use && s->exp_strategy[blk][CPL_CH] != EXP_REUSE) {
01048 s->num_exp_groups[CPL_CH] = (s->end_freq[CPL_CH] - s->start_freq[CPL_CH]) /
01049 (3 << (s->exp_strategy[blk][CPL_CH] - 1));
01050 }
01051
01052
01053 for (ch = !cpl_in_use; ch <= s->channels; ch++) {
01054 if (s->exp_strategy[blk][ch] != EXP_REUSE) {
01055 s->dexps[ch][0] = get_bits(gbc, 4) << !ch;
01056 if (decode_exponents(gbc, s->exp_strategy[blk][ch],
01057 s->num_exp_groups[ch], s->dexps[ch][0],
01058 &s->dexps[ch][s->start_freq[ch]+!!ch])) {
01059 av_log(s->avctx, AV_LOG_ERROR, "exponent out-of-range\n");
01060 return -1;
01061 }
01062 if (ch != CPL_CH && ch != s->lfe_ch)
01063 skip_bits(gbc, 2);
01064 }
01065 }
01066
01067
01068 if (s->bit_allocation_syntax) {
01069 if (get_bits1(gbc)) {
01070 s->bit_alloc_params.slow_decay = ff_ac3_slow_decay_tab[get_bits(gbc, 2)] >> s->bit_alloc_params.sr_shift;
01071 s->bit_alloc_params.fast_decay = ff_ac3_fast_decay_tab[get_bits(gbc, 2)] >> s->bit_alloc_params.sr_shift;
01072 s->bit_alloc_params.slow_gain = ff_ac3_slow_gain_tab[get_bits(gbc, 2)];
01073 s->bit_alloc_params.db_per_bit = ff_ac3_db_per_bit_tab[get_bits(gbc, 2)];
01074 s->bit_alloc_params.floor = ff_ac3_floor_tab[get_bits(gbc, 3)];
01075 for (ch = !cpl_in_use; ch <= s->channels; ch++)
01076 bit_alloc_stages[ch] = FFMAX(bit_alloc_stages[ch], 2);
01077 } else if (!blk) {
01078 av_log(s->avctx, AV_LOG_ERROR, "new bit allocation info must "
01079 "be present in block 0\n");
01080 return -1;
01081 }
01082 }
01083
01084
01085 if (!s->eac3 || !blk) {
01086 if (s->snr_offset_strategy && get_bits1(gbc)) {
01087 int snr = 0;
01088 int csnr;
01089 csnr = (get_bits(gbc, 6) - 15) << 4;
01090 for (i = ch = !cpl_in_use; ch <= s->channels; ch++) {
01091
01092 if (ch == i || s->snr_offset_strategy == 2)
01093 snr = (csnr + get_bits(gbc, 4)) << 2;
01094
01095 if (blk && s->snr_offset[ch] != snr) {
01096 bit_alloc_stages[ch] = FFMAX(bit_alloc_stages[ch], 1);
01097 }
01098 s->snr_offset[ch] = snr;
01099
01100
01101 if (!s->eac3) {
01102 int prev = s->fast_gain[ch];
01103 s->fast_gain[ch] = ff_ac3_fast_gain_tab[get_bits(gbc, 3)];
01104
01105 if (blk && prev != s->fast_gain[ch])
01106 bit_alloc_stages[ch] = FFMAX(bit_alloc_stages[ch], 2);
01107 }
01108 }
01109 } else if (!s->eac3 && !blk) {
01110 av_log(s->avctx, AV_LOG_ERROR, "new snr offsets must be present in block 0\n");
01111 return -1;
01112 }
01113 }
01114
01115
01116 if (s->fast_gain_syntax && get_bits1(gbc)) {
01117 for (ch = !cpl_in_use; ch <= s->channels; ch++) {
01118 int prev = s->fast_gain[ch];
01119 s->fast_gain[ch] = ff_ac3_fast_gain_tab[get_bits(gbc, 3)];
01120
01121 if (blk && prev != s->fast_gain[ch])
01122 bit_alloc_stages[ch] = FFMAX(bit_alloc_stages[ch], 2);
01123 }
01124 } else if (s->eac3 && !blk) {
01125 for (ch = !cpl_in_use; ch <= s->channels; ch++)
01126 s->fast_gain[ch] = ff_ac3_fast_gain_tab[4];
01127 }
01128
01129
01130 if (s->frame_type == EAC3_FRAME_TYPE_INDEPENDENT && get_bits1(gbc)) {
01131 skip_bits(gbc, 10);
01132 }
01133
01134
01135 if (cpl_in_use) {
01136 if (s->first_cpl_leak || get_bits1(gbc)) {
01137 int fl = get_bits(gbc, 3);
01138 int sl = get_bits(gbc, 3);
01139
01140
01141 if (blk && (fl != s->bit_alloc_params.cpl_fast_leak ||
01142 sl != s->bit_alloc_params.cpl_slow_leak)) {
01143 bit_alloc_stages[CPL_CH] = FFMAX(bit_alloc_stages[CPL_CH], 2);
01144 }
01145 s->bit_alloc_params.cpl_fast_leak = fl;
01146 s->bit_alloc_params.cpl_slow_leak = sl;
01147 } else if (!s->eac3 && !blk) {
01148 av_log(s->avctx, AV_LOG_ERROR, "new coupling leak info must "
01149 "be present in block 0\n");
01150 return -1;
01151 }
01152 s->first_cpl_leak = 0;
01153 }
01154
01155
01156 if (s->dba_syntax && get_bits1(gbc)) {
01157
01158 for (ch = !cpl_in_use; ch <= fbw_channels; ch++) {
01159 s->dba_mode[ch] = get_bits(gbc, 2);
01160 if (s->dba_mode[ch] == DBA_RESERVED) {
01161 av_log(s->avctx, AV_LOG_ERROR, "delta bit allocation strategy reserved\n");
01162 return -1;
01163 }
01164 bit_alloc_stages[ch] = FFMAX(bit_alloc_stages[ch], 2);
01165 }
01166
01167 for (ch = !cpl_in_use; ch <= fbw_channels; ch++) {
01168 if (s->dba_mode[ch] == DBA_NEW) {
01169 s->dba_nsegs[ch] = get_bits(gbc, 3) + 1;
01170 for (seg = 0; seg < s->dba_nsegs[ch]; seg++) {
01171 s->dba_offsets[ch][seg] = get_bits(gbc, 5);
01172 s->dba_lengths[ch][seg] = get_bits(gbc, 4);
01173 s->dba_values[ch][seg] = get_bits(gbc, 3);
01174 }
01175
01176 bit_alloc_stages[ch] = FFMAX(bit_alloc_stages[ch], 2);
01177 }
01178 }
01179 } else if (blk == 0) {
01180 for (ch = 0; ch <= s->channels; ch++) {
01181 s->dba_mode[ch] = DBA_NONE;
01182 }
01183 }
01184
01185
01186 for (ch = !cpl_in_use; ch <= s->channels; ch++) {
01187 if (bit_alloc_stages[ch] > 2) {
01188
01189 ff_ac3_bit_alloc_calc_psd(s->dexps[ch],
01190 s->start_freq[ch], s->end_freq[ch],
01191 s->psd[ch], s->band_psd[ch]);
01192 }
01193 if (bit_alloc_stages[ch] > 1) {
01194
01195
01196 if (ff_ac3_bit_alloc_calc_mask(&s->bit_alloc_params, s->band_psd[ch],
01197 s->start_freq[ch], s->end_freq[ch],
01198 s->fast_gain[ch], (ch == s->lfe_ch),
01199 s->dba_mode[ch], s->dba_nsegs[ch],
01200 s->dba_offsets[ch], s->dba_lengths[ch],
01201 s->dba_values[ch], s->mask[ch])) {
01202 av_log(s->avctx, AV_LOG_ERROR, "error in bit allocation\n");
01203 return -1;
01204 }
01205 }
01206 if (bit_alloc_stages[ch] > 0) {
01207
01208 const uint8_t *bap_tab = s->channel_uses_aht[ch] ?
01209 ff_eac3_hebap_tab : ff_ac3_bap_tab;
01210 s->ac3dsp.bit_alloc_calc_bap(s->mask[ch], s->psd[ch],
01211 s->start_freq[ch], s->end_freq[ch],
01212 s->snr_offset[ch],
01213 s->bit_alloc_params.floor,
01214 bap_tab, s->bap[ch]);
01215 }
01216 }
01217
01218
01219 if (s->skip_syntax && get_bits1(gbc)) {
01220 int skipl = get_bits(gbc, 9);
01221 while (skipl--)
01222 skip_bits(gbc, 8);
01223 }
01224
01225
01226
01227 decode_transform_coeffs(s, blk);
01228
01229
01230
01231
01232 if (s->channel_mode == AC3_CHMODE_STEREO)
01233 do_rematrixing(s);
01234
01235
01236 for (ch = 1; ch <= s->channels; ch++) {
01237 float gain = s->mul_bias / 4194304.0f;
01238 if (s->channel_mode == AC3_CHMODE_DUALMONO) {
01239 gain *= s->dynamic_range[2 - ch];
01240 } else {
01241 gain *= s->dynamic_range[0];
01242 }
01243 s->fmt_conv.int32_to_float_fmul_scalar(s->transform_coeffs[ch],
01244 s->fixed_coeffs[ch], gain, 256);
01245 }
01246
01247
01248 if (s->spx_in_use && CONFIG_EAC3_DECODER) {
01249 ff_eac3_apply_spectral_extension(s);
01250 }
01251
01252
01253
01254
01255 downmix_output = s->channels != s->out_channels &&
01256 !((s->output_mode & AC3_OUTPUT_LFEON) &&
01257 s->fbw_channels == s->out_channels);
01258 if (different_transforms) {
01259
01260
01261 if (s->downmixed) {
01262 s->downmixed = 0;
01263 ac3_upmix_delay(s);
01264 }
01265
01266 do_imdct(s, s->channels);
01267
01268 if (downmix_output) {
01269 s->dsp.ac3_downmix(s->output, s->downmix_coeffs,
01270 s->out_channels, s->fbw_channels, 256);
01271 }
01272 } else {
01273 if (downmix_output) {
01274 s->dsp.ac3_downmix(s->transform_coeffs + 1, s->downmix_coeffs,
01275 s->out_channels, s->fbw_channels, 256);
01276 }
01277
01278 if (downmix_output && !s->downmixed) {
01279 s->downmixed = 1;
01280 s->dsp.ac3_downmix(s->delay, s->downmix_coeffs, s->out_channels,
01281 s->fbw_channels, 128);
01282 }
01283
01284 do_imdct(s, s->out_channels);
01285 }
01286
01287 return 0;
01288 }
01289
01293 static int ac3_decode_frame(AVCodecContext * avctx, void *data,
01294 int *got_frame_ptr, AVPacket *avpkt)
01295 {
01296 const uint8_t *buf = avpkt->data;
01297 int buf_size = avpkt->size;
01298 AC3DecodeContext *s = avctx->priv_data;
01299 float *out_samples_flt;
01300 int16_t *out_samples_s16;
01301 int blk, ch, err, ret;
01302 const uint8_t *channel_map;
01303 const float *output[AC3_MAX_CHANNELS];
01304
01305
01306
01307 if (buf_size >= 2 && AV_RB16(buf) == 0x770B) {
01308
01309 int cnt = FFMIN(buf_size, AC3_FRAME_BUFFER_SIZE) >> 1;
01310 s->dsp.bswap16_buf((uint16_t *)s->input_buffer, (const uint16_t *)buf, cnt);
01311 } else
01312 memcpy(s->input_buffer, buf, FFMIN(buf_size, AC3_FRAME_BUFFER_SIZE));
01313 buf = s->input_buffer;
01314
01315 init_get_bits(&s->gbc, buf, buf_size * 8);
01316
01317
01318 err = parse_frame_header(s);
01319
01320 if (err) {
01321 switch (err) {
01322 case AAC_AC3_PARSE_ERROR_SYNC:
01323 av_log(avctx, AV_LOG_ERROR, "frame sync error\n");
01324 return -1;
01325 case AAC_AC3_PARSE_ERROR_BSID:
01326 av_log(avctx, AV_LOG_ERROR, "invalid bitstream id\n");
01327 break;
01328 case AAC_AC3_PARSE_ERROR_SAMPLE_RATE:
01329 av_log(avctx, AV_LOG_ERROR, "invalid sample rate\n");
01330 break;
01331 case AAC_AC3_PARSE_ERROR_FRAME_SIZE:
01332 av_log(avctx, AV_LOG_ERROR, "invalid frame size\n");
01333 break;
01334 case AAC_AC3_PARSE_ERROR_FRAME_TYPE:
01335
01336
01337 if (s->frame_type == EAC3_FRAME_TYPE_DEPENDENT || s->substreamid) {
01338 av_log(avctx, AV_LOG_ERROR, "unsupported frame type : "
01339 "skipping frame\n");
01340 *got_frame_ptr = 0;
01341 return s->frame_size;
01342 } else {
01343 av_log(avctx, AV_LOG_ERROR, "invalid frame type\n");
01344 }
01345 break;
01346 default:
01347 av_log(avctx, AV_LOG_ERROR, "invalid header\n");
01348 break;
01349 }
01350 } else {
01351
01352 if (s->frame_size > buf_size) {
01353 av_log(avctx, AV_LOG_ERROR, "incomplete frame\n");
01354 err = AAC_AC3_PARSE_ERROR_FRAME_SIZE;
01355 } else if (avctx->err_recognition & (AV_EF_CRCCHECK|AV_EF_CAREFUL)) {
01356
01357 if (av_crc(av_crc_get_table(AV_CRC_16_ANSI), 0, &buf[2],
01358 s->frame_size - 2)) {
01359 av_log(avctx, AV_LOG_ERROR, "frame CRC mismatch\n");
01360 err = AAC_AC3_PARSE_ERROR_CRC;
01361 }
01362 }
01363 }
01364
01365
01366 if (!err) {
01367 avctx->sample_rate = s->sample_rate;
01368 avctx->bit_rate = s->bit_rate;
01369
01370
01371 s->out_channels = s->channels;
01372 s->output_mode = s->channel_mode;
01373 if (s->lfe_on)
01374 s->output_mode |= AC3_OUTPUT_LFEON;
01375 if (avctx->request_channels > 0 && avctx->request_channels <= 2 &&
01376 avctx->request_channels < s->channels) {
01377 s->out_channels = avctx->request_channels;
01378 s->output_mode = avctx->request_channels == 1 ? AC3_CHMODE_MONO : AC3_CHMODE_STEREO;
01379 s->channel_layout = avpriv_ac3_channel_layout_tab[s->output_mode];
01380 }
01381 avctx->channels = s->out_channels;
01382 avctx->channel_layout = s->channel_layout;
01383
01384 s->loro_center_mix_level = gain_levels[s-> center_mix_level];
01385 s->loro_surround_mix_level = gain_levels[s->surround_mix_level];
01386 s->ltrt_center_mix_level = LEVEL_MINUS_3DB;
01387 s->ltrt_surround_mix_level = LEVEL_MINUS_3DB;
01388
01389 if (s->channels != s->out_channels && !((s->output_mode & AC3_OUTPUT_LFEON) &&
01390 s->fbw_channels == s->out_channels)) {
01391 set_downmix_coeffs(s);
01392 }
01393 } else if (!s->out_channels) {
01394 s->out_channels = avctx->channels;
01395 if (s->out_channels < s->channels)
01396 s->output_mode = s->out_channels == 1 ? AC3_CHMODE_MONO : AC3_CHMODE_STEREO;
01397 }
01398 if (avctx->channels != s->out_channels) {
01399 av_log(avctx, AV_LOG_ERROR, "channel number mismatching on damaged frame\n");
01400 return AVERROR_INVALIDDATA;
01401 }
01402
01403 avctx->audio_service_type = s->bitstream_mode;
01404 if (s->bitstream_mode == 0x7 && s->channels > 1)
01405 avctx->audio_service_type = AV_AUDIO_SERVICE_TYPE_KARAOKE;
01406
01407
01408 s->frame.nb_samples = s->num_blocks * 256;
01409 if ((ret = avctx->get_buffer(avctx, &s->frame)) < 0) {
01410 av_log(avctx, AV_LOG_ERROR, "get_buffer() failed\n");
01411 return ret;
01412 }
01413 out_samples_flt = (float *)s->frame.data[0];
01414 out_samples_s16 = (int16_t *)s->frame.data[0];
01415
01416
01417 channel_map = ff_ac3_dec_channel_map[s->output_mode & ~AC3_OUTPUT_LFEON][s->lfe_on];
01418 for (ch = 0; ch < s->out_channels; ch++)
01419 output[ch] = s->output[channel_map[ch]];
01420 for (blk = 0; blk < s->num_blocks; blk++) {
01421 if (!err && decode_audio_block(s, blk)) {
01422 av_log(avctx, AV_LOG_ERROR, "error decoding the audio block\n");
01423 err = 1;
01424 }
01425 if (avctx->sample_fmt == AV_SAMPLE_FMT_FLT) {
01426 s->fmt_conv.float_interleave(out_samples_flt, output, 256,
01427 s->out_channels);
01428 out_samples_flt += 256 * s->out_channels;
01429 } else {
01430 s->fmt_conv.float_to_int16_interleave(out_samples_s16, output, 256,
01431 s->out_channels);
01432 out_samples_s16 += 256 * s->out_channels;
01433 }
01434 }
01435
01436 *got_frame_ptr = 1;
01437 *(AVFrame *)data = s->frame;
01438
01439 return FFMIN(buf_size, s->frame_size);
01440 }
01441
01445 static av_cold int ac3_decode_end(AVCodecContext *avctx)
01446 {
01447 AC3DecodeContext *s = avctx->priv_data;
01448 ff_mdct_end(&s->imdct_512);
01449 ff_mdct_end(&s->imdct_256);
01450
01451 return 0;
01452 }
01453
01454 #define OFFSET(x) offsetof(AC3DecodeContext, x)
01455 #define PAR (AV_OPT_FLAG_DECODING_PARAM | AV_OPT_FLAG_AUDIO_PARAM)
01456 static const AVOption options[] = {
01457 { "drc_scale", "percentage of dynamic range compression to apply", OFFSET(drc_scale), AV_OPT_TYPE_FLOAT, {1.0}, 0.0, 1.0, PAR },
01458
01459 {"dmix_mode", "Preferred Stereo Downmix Mode", OFFSET(preferred_stereo_downmix), AV_OPT_TYPE_INT, {.dbl = -1 }, -1, 2, 0, "dmix_mode"},
01460 {"ltrt_cmixlev", "Lt/Rt Center Mix Level", OFFSET(ltrt_center_mix_level), AV_OPT_TYPE_FLOAT, {.dbl = -1.0 }, -1.0, 2.0, 0},
01461 {"ltrt_surmixlev", "Lt/Rt Surround Mix Level", OFFSET(ltrt_surround_mix_level), AV_OPT_TYPE_FLOAT, {.dbl = -1.0 }, -1.0, 2.0, 0},
01462 {"loro_cmixlev", "Lo/Ro Center Mix Level", OFFSET(loro_center_mix_level), AV_OPT_TYPE_FLOAT, {.dbl = -1.0 }, -1.0, 2.0, 0},
01463 {"loro_surmixlev", "Lo/Ro Surround Mix Level", OFFSET(loro_surround_mix_level), AV_OPT_TYPE_FLOAT, {.dbl = -1.0 }, -1.0, 2.0, 0},
01464
01465 { NULL},
01466 };
01467
01468 static const AVClass ac3_decoder_class = {
01469 .class_name = "AC3 decoder",
01470 .item_name = av_default_item_name,
01471 .option = options,
01472 .version = LIBAVUTIL_VERSION_INT,
01473 };
01474
01475 AVCodec ff_ac3_decoder = {
01476 .name = "ac3",
01477 .type = AVMEDIA_TYPE_AUDIO,
01478 .id = CODEC_ID_AC3,
01479 .priv_data_size = sizeof (AC3DecodeContext),
01480 .init = ac3_decode_init,
01481 .close = ac3_decode_end,
01482 .decode = ac3_decode_frame,
01483 .capabilities = CODEC_CAP_DR1,
01484 .long_name = NULL_IF_CONFIG_SMALL("ATSC A/52A (AC-3)"),
01485 .sample_fmts = (const enum AVSampleFormat[]) { AV_SAMPLE_FMT_FLT,
01486 AV_SAMPLE_FMT_S16,
01487 AV_SAMPLE_FMT_NONE },
01488 .priv_class = &ac3_decoder_class,
01489 };
01490
01491 #if CONFIG_EAC3_DECODER
01492 static const AVClass eac3_decoder_class = {
01493 .class_name = "E-AC3 decoder",
01494 .item_name = av_default_item_name,
01495 .option = options,
01496 .version = LIBAVUTIL_VERSION_INT,
01497 };
01498
01499 AVCodec ff_eac3_decoder = {
01500 .name = "eac3",
01501 .type = AVMEDIA_TYPE_AUDIO,
01502 .id = CODEC_ID_EAC3,
01503 .priv_data_size = sizeof (AC3DecodeContext),
01504 .init = ac3_decode_init,
01505 .close = ac3_decode_end,
01506 .decode = ac3_decode_frame,
01507 .capabilities = CODEC_CAP_DR1,
01508 .long_name = NULL_IF_CONFIG_SMALL("ATSC A/52B (AC-3, E-AC-3)"),
01509 .sample_fmts = (const enum AVSampleFormat[]) { AV_SAMPLE_FMT_FLT,
01510 AV_SAMPLE_FMT_S16,
01511 AV_SAMPLE_FMT_NONE },
01512 .priv_class = &eac3_decoder_class,
01513 };
01514 #endif