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00089 #include "libavutil/intfloat.h"
00090 #include "libavutil/intreadwrite.h"
00091 #include "avcodec.h"
00092 #include "internal.h"
00093 #include "get_bits.h"
00094 #include "put_bits.h"
00095 #include "wmaprodata.h"
00096 #include "dsputil.h"
00097 #include "fmtconvert.h"
00098 #include "sinewin.h"
00099 #include "wma.h"
00100 #include "wma_common.h"
00101
00103 #define WMAPRO_MAX_CHANNELS 8
00104 #define MAX_SUBFRAMES 32
00105 #define MAX_BANDS 29
00106 #define MAX_FRAMESIZE 32768
00107
00108 #define WMAPRO_BLOCK_MIN_BITS 6
00109 #define WMAPRO_BLOCK_MAX_BITS 13
00110 #define WMAPRO_BLOCK_MAX_SIZE (1 << WMAPRO_BLOCK_MAX_BITS)
00111 #define WMAPRO_BLOCK_SIZES (WMAPRO_BLOCK_MAX_BITS - WMAPRO_BLOCK_MIN_BITS + 1)
00112
00113
00114 #define VLCBITS 9
00115 #define SCALEVLCBITS 8
00116 #define VEC4MAXDEPTH ((HUFF_VEC4_MAXBITS+VLCBITS-1)/VLCBITS)
00117 #define VEC2MAXDEPTH ((HUFF_VEC2_MAXBITS+VLCBITS-1)/VLCBITS)
00118 #define VEC1MAXDEPTH ((HUFF_VEC1_MAXBITS+VLCBITS-1)/VLCBITS)
00119 #define SCALEMAXDEPTH ((HUFF_SCALE_MAXBITS+SCALEVLCBITS-1)/SCALEVLCBITS)
00120 #define SCALERLMAXDEPTH ((HUFF_SCALE_RL_MAXBITS+VLCBITS-1)/VLCBITS)
00121
00122 static VLC sf_vlc;
00123 static VLC sf_rl_vlc;
00124 static VLC vec4_vlc;
00125 static VLC vec2_vlc;
00126 static VLC vec1_vlc;
00127 static VLC coef_vlc[2];
00128 static float sin64[33];
00129
00133 typedef struct {
00134 int16_t prev_block_len;
00135 uint8_t transmit_coefs;
00136 uint8_t num_subframes;
00137 uint16_t subframe_len[MAX_SUBFRAMES];
00138 uint16_t subframe_offset[MAX_SUBFRAMES];
00139 uint8_t cur_subframe;
00140 uint16_t decoded_samples;
00141 uint8_t grouped;
00142 int quant_step;
00143 int8_t reuse_sf;
00144 int8_t scale_factor_step;
00145 int max_scale_factor;
00146 int saved_scale_factors[2][MAX_BANDS];
00147 int8_t scale_factor_idx;
00148 int* scale_factors;
00149 uint8_t table_idx;
00150 float* coeffs;
00151 uint16_t num_vec_coeffs;
00152 DECLARE_ALIGNED(32, float, out)[WMAPRO_BLOCK_MAX_SIZE + WMAPRO_BLOCK_MAX_SIZE / 2];
00153 } WMAProChannelCtx;
00154
00158 typedef struct {
00159 uint8_t num_channels;
00160 int8_t transform;
00161 int8_t transform_band[MAX_BANDS];
00162 float decorrelation_matrix[WMAPRO_MAX_CHANNELS*WMAPRO_MAX_CHANNELS];
00163 float* channel_data[WMAPRO_MAX_CHANNELS];
00164 } WMAProChannelGrp;
00165
00169 typedef struct WMAProDecodeCtx {
00170
00171 AVCodecContext* avctx;
00172 AVFrame frame;
00173 DSPContext dsp;
00174 FmtConvertContext fmt_conv;
00175 uint8_t frame_data[MAX_FRAMESIZE +
00176 FF_INPUT_BUFFER_PADDING_SIZE];
00177 PutBitContext pb;
00178 FFTContext mdct_ctx[WMAPRO_BLOCK_SIZES];
00179 DECLARE_ALIGNED(32, float, tmp)[WMAPRO_BLOCK_MAX_SIZE];
00180 float* windows[WMAPRO_BLOCK_SIZES];
00181
00182
00183 uint32_t decode_flags;
00184 uint8_t len_prefix;
00185 uint8_t dynamic_range_compression;
00186 uint8_t bits_per_sample;
00187 uint16_t samples_per_frame;
00188 uint16_t log2_frame_size;
00189 int8_t num_channels;
00190 int8_t lfe_channel;
00191 uint8_t max_num_subframes;
00192 uint8_t subframe_len_bits;
00193 uint8_t max_subframe_len_bit;
00194 uint16_t min_samples_per_subframe;
00195 int8_t num_sfb[WMAPRO_BLOCK_SIZES];
00196 int16_t sfb_offsets[WMAPRO_BLOCK_SIZES][MAX_BANDS];
00197 int8_t sf_offsets[WMAPRO_BLOCK_SIZES][WMAPRO_BLOCK_SIZES][MAX_BANDS];
00198 int16_t subwoofer_cutoffs[WMAPRO_BLOCK_SIZES];
00199
00200
00201 GetBitContext pgb;
00202 int next_packet_start;
00203 uint8_t packet_offset;
00204 uint8_t packet_sequence_number;
00205 int num_saved_bits;
00206 int frame_offset;
00207 int subframe_offset;
00208 uint8_t packet_loss;
00209 uint8_t packet_done;
00210
00211
00212 uint32_t frame_num;
00213 GetBitContext gb;
00214 int buf_bit_size;
00215 uint8_t drc_gain;
00216 int8_t skip_frame;
00217 int8_t parsed_all_subframes;
00218
00219
00220 int16_t subframe_len;
00221 int8_t channels_for_cur_subframe;
00222 int8_t channel_indexes_for_cur_subframe[WMAPRO_MAX_CHANNELS];
00223 int8_t num_bands;
00224 int8_t transmit_num_vec_coeffs;
00225 int16_t* cur_sfb_offsets;
00226 uint8_t table_idx;
00227 int8_t esc_len;
00228
00229 uint8_t num_chgroups;
00230 WMAProChannelGrp chgroup[WMAPRO_MAX_CHANNELS];
00231
00232 WMAProChannelCtx channel[WMAPRO_MAX_CHANNELS];
00233 } WMAProDecodeCtx;
00234
00235
00240 static av_cold void dump_context(WMAProDecodeCtx *s)
00241 {
00242 #define PRINT(a, b) av_log(s->avctx, AV_LOG_DEBUG, " %s = %d\n", a, b);
00243 #define PRINT_HEX(a, b) av_log(s->avctx, AV_LOG_DEBUG, " %s = %x\n", a, b);
00244
00245 PRINT("ed sample bit depth", s->bits_per_sample);
00246 PRINT_HEX("ed decode flags", s->decode_flags);
00247 PRINT("samples per frame", s->samples_per_frame);
00248 PRINT("log2 frame size", s->log2_frame_size);
00249 PRINT("max num subframes", s->max_num_subframes);
00250 PRINT("len prefix", s->len_prefix);
00251 PRINT("num channels", s->num_channels);
00252 }
00253
00259 static av_cold int decode_end(AVCodecContext *avctx)
00260 {
00261 WMAProDecodeCtx *s = avctx->priv_data;
00262 int i;
00263
00264 for (i = 0; i < WMAPRO_BLOCK_SIZES; i++)
00265 ff_mdct_end(&s->mdct_ctx[i]);
00266
00267 return 0;
00268 }
00269
00275 static av_cold int decode_init(AVCodecContext *avctx)
00276 {
00277 WMAProDecodeCtx *s = avctx->priv_data;
00278 uint8_t *edata_ptr = avctx->extradata;
00279 unsigned int channel_mask;
00280 int i, bits;
00281 int log2_max_num_subframes;
00282 int num_possible_block_sizes;
00283
00284 s->avctx = avctx;
00285 ff_dsputil_init(&s->dsp, avctx);
00286 ff_fmt_convert_init(&s->fmt_conv, avctx);
00287 init_put_bits(&s->pb, s->frame_data, MAX_FRAMESIZE);
00288
00289 avctx->sample_fmt = AV_SAMPLE_FMT_FLT;
00290
00291 if (avctx->extradata_size >= 18) {
00292 s->decode_flags = AV_RL16(edata_ptr+14);
00293 channel_mask = AV_RL32(edata_ptr+2);
00294 s->bits_per_sample = AV_RL16(edata_ptr);
00296 for (i = 0; i < avctx->extradata_size; i++)
00297 av_dlog(avctx, "[%x] ", avctx->extradata[i]);
00298 av_dlog(avctx, "\n");
00299
00300 } else {
00301 av_log_ask_for_sample(avctx, "Unknown extradata size\n");
00302 return AVERROR_INVALIDDATA;
00303 }
00304
00306 s->log2_frame_size = av_log2(avctx->block_align) + 4;
00307
00309 s->skip_frame = 1;
00310 s->packet_loss = 1;
00311 s->len_prefix = (s->decode_flags & 0x40);
00312
00314 bits = ff_wma_get_frame_len_bits(avctx->sample_rate, 3, s->decode_flags);
00315 if (bits > WMAPRO_BLOCK_MAX_BITS) {
00316 av_log_missing_feature(avctx, "14-bits block sizes", 1);
00317 return AVERROR_INVALIDDATA;
00318 }
00319 s->samples_per_frame = 1 << bits;
00320
00322 log2_max_num_subframes = ((s->decode_flags & 0x38) >> 3);
00323 s->max_num_subframes = 1 << log2_max_num_subframes;
00324 if (s->max_num_subframes == 16 || s->max_num_subframes == 4)
00325 s->max_subframe_len_bit = 1;
00326 s->subframe_len_bits = av_log2(log2_max_num_subframes) + 1;
00327
00328 num_possible_block_sizes = log2_max_num_subframes + 1;
00329 s->min_samples_per_subframe = s->samples_per_frame / s->max_num_subframes;
00330 s->dynamic_range_compression = (s->decode_flags & 0x80);
00331
00332 if (s->max_num_subframes > MAX_SUBFRAMES) {
00333 av_log(avctx, AV_LOG_ERROR, "invalid number of subframes %i\n",
00334 s->max_num_subframes);
00335 return AVERROR_INVALIDDATA;
00336 }
00337
00338 if (s->min_samples_per_subframe < (1<<WMAPRO_BLOCK_MIN_BITS)) {
00339 av_log(avctx, AV_LOG_ERROR, "min_samples_per_subframe of %d too small\n",
00340 s->min_samples_per_subframe);
00341 return AVERROR_INVALIDDATA;
00342 }
00343
00344 s->num_channels = avctx->channels;
00345
00346 if (s->num_channels < 0) {
00347 av_log(avctx, AV_LOG_ERROR, "invalid number of channels %d\n", s->num_channels);
00348 return AVERROR_INVALIDDATA;
00349 } else if (s->num_channels > WMAPRO_MAX_CHANNELS) {
00350 av_log_ask_for_sample(avctx, "unsupported number of channels\n");
00351 return AVERROR_PATCHWELCOME;
00352 }
00353
00355 for (i = 0; i < s->num_channels; i++)
00356 s->channel[i].prev_block_len = s->samples_per_frame;
00357
00359 s->lfe_channel = -1;
00360
00361 if (channel_mask & 8) {
00362 unsigned int mask;
00363 for (mask = 1; mask < 16; mask <<= 1) {
00364 if (channel_mask & mask)
00365 ++s->lfe_channel;
00366 }
00367 }
00368
00369 INIT_VLC_STATIC(&sf_vlc, SCALEVLCBITS, HUFF_SCALE_SIZE,
00370 scale_huffbits, 1, 1,
00371 scale_huffcodes, 2, 2, 616);
00372
00373 INIT_VLC_STATIC(&sf_rl_vlc, VLCBITS, HUFF_SCALE_RL_SIZE,
00374 scale_rl_huffbits, 1, 1,
00375 scale_rl_huffcodes, 4, 4, 1406);
00376
00377 INIT_VLC_STATIC(&coef_vlc[0], VLCBITS, HUFF_COEF0_SIZE,
00378 coef0_huffbits, 1, 1,
00379 coef0_huffcodes, 4, 4, 2108);
00380
00381 INIT_VLC_STATIC(&coef_vlc[1], VLCBITS, HUFF_COEF1_SIZE,
00382 coef1_huffbits, 1, 1,
00383 coef1_huffcodes, 4, 4, 3912);
00384
00385 INIT_VLC_STATIC(&vec4_vlc, VLCBITS, HUFF_VEC4_SIZE,
00386 vec4_huffbits, 1, 1,
00387 vec4_huffcodes, 2, 2, 604);
00388
00389 INIT_VLC_STATIC(&vec2_vlc, VLCBITS, HUFF_VEC2_SIZE,
00390 vec2_huffbits, 1, 1,
00391 vec2_huffcodes, 2, 2, 562);
00392
00393 INIT_VLC_STATIC(&vec1_vlc, VLCBITS, HUFF_VEC1_SIZE,
00394 vec1_huffbits, 1, 1,
00395 vec1_huffcodes, 2, 2, 562);
00396
00399 for (i = 0; i < num_possible_block_sizes; i++) {
00400 int subframe_len = s->samples_per_frame >> i;
00401 int x;
00402 int band = 1;
00403
00404 s->sfb_offsets[i][0] = 0;
00405
00406 for (x = 0; x < MAX_BANDS-1 && s->sfb_offsets[i][band - 1] < subframe_len; x++) {
00407 int offset = (subframe_len * 2 * critical_freq[x])
00408 / s->avctx->sample_rate + 2;
00409 offset &= ~3;
00410 if (offset > s->sfb_offsets[i][band - 1])
00411 s->sfb_offsets[i][band++] = offset;
00412 }
00413 s->sfb_offsets[i][band - 1] = subframe_len;
00414 s->num_sfb[i] = band - 1;
00415 }
00416
00417
00423 for (i = 0; i < num_possible_block_sizes; i++) {
00424 int b;
00425 for (b = 0; b < s->num_sfb[i]; b++) {
00426 int x;
00427 int offset = ((s->sfb_offsets[i][b]
00428 + s->sfb_offsets[i][b + 1] - 1) << i) >> 1;
00429 for (x = 0; x < num_possible_block_sizes; x++) {
00430 int v = 0;
00431 while (s->sfb_offsets[x][v + 1] << x < offset)
00432 ++v;
00433 s->sf_offsets[i][x][b] = v;
00434 }
00435 }
00436 }
00437
00439 for (i = 0; i < WMAPRO_BLOCK_SIZES; i++)
00440 ff_mdct_init(&s->mdct_ctx[i], WMAPRO_BLOCK_MIN_BITS+1+i, 1,
00441 1.0 / (1 << (WMAPRO_BLOCK_MIN_BITS + i - 1))
00442 / (1 << (s->bits_per_sample - 1)));
00443
00445 for (i = 0; i < WMAPRO_BLOCK_SIZES; i++) {
00446 const int win_idx = WMAPRO_BLOCK_MAX_BITS - i;
00447 ff_init_ff_sine_windows(win_idx);
00448 s->windows[WMAPRO_BLOCK_SIZES - i - 1] = ff_sine_windows[win_idx];
00449 }
00450
00452 for (i = 0; i < num_possible_block_sizes; i++) {
00453 int block_size = s->samples_per_frame >> i;
00454 int cutoff = (440*block_size + 3 * (s->avctx->sample_rate >> 1) - 1)
00455 / s->avctx->sample_rate;
00456 s->subwoofer_cutoffs[i] = av_clip(cutoff, 4, block_size);
00457 }
00458
00460 for (i = 0; i < 33; i++)
00461 sin64[i] = sin(i*M_PI / 64.0);
00462
00463 if (avctx->debug & FF_DEBUG_BITSTREAM)
00464 dump_context(s);
00465
00466 avctx->channel_layout = channel_mask;
00467
00468 avcodec_get_frame_defaults(&s->frame);
00469 avctx->coded_frame = &s->frame;
00470
00471 return 0;
00472 }
00473
00480 static int decode_subframe_length(WMAProDecodeCtx *s, int offset)
00481 {
00482 int frame_len_shift = 0;
00483 int subframe_len;
00484
00486 if (offset == s->samples_per_frame - s->min_samples_per_subframe)
00487 return s->min_samples_per_subframe;
00488
00490 if (s->max_subframe_len_bit) {
00491 if (get_bits1(&s->gb))
00492 frame_len_shift = 1 + get_bits(&s->gb, s->subframe_len_bits-1);
00493 } else
00494 frame_len_shift = get_bits(&s->gb, s->subframe_len_bits);
00495
00496 subframe_len = s->samples_per_frame >> frame_len_shift;
00497
00499 if (subframe_len < s->min_samples_per_subframe ||
00500 subframe_len > s->samples_per_frame) {
00501 av_log(s->avctx, AV_LOG_ERROR, "broken frame: subframe_len %i\n",
00502 subframe_len);
00503 return AVERROR_INVALIDDATA;
00504 }
00505 return subframe_len;
00506 }
00507
00528 static int decode_tilehdr(WMAProDecodeCtx *s)
00529 {
00530 uint16_t num_samples[WMAPRO_MAX_CHANNELS] = { 0 };
00531 uint8_t contains_subframe[WMAPRO_MAX_CHANNELS];
00532 int channels_for_cur_subframe = s->num_channels;
00533 int fixed_channel_layout = 0;
00534 int min_channel_len = 0;
00535 int c;
00536
00537
00538
00539
00540
00541
00542
00544 for (c = 0; c < s->num_channels; c++)
00545 s->channel[c].num_subframes = 0;
00546
00547 if (s->max_num_subframes == 1 || get_bits1(&s->gb))
00548 fixed_channel_layout = 1;
00549
00551 do {
00552 int subframe_len;
00553
00555 for (c = 0; c < s->num_channels; c++) {
00556 if (num_samples[c] == min_channel_len) {
00557 if (fixed_channel_layout || channels_for_cur_subframe == 1 ||
00558 (min_channel_len == s->samples_per_frame - s->min_samples_per_subframe))
00559 contains_subframe[c] = 1;
00560 else
00561 contains_subframe[c] = get_bits1(&s->gb);
00562 } else
00563 contains_subframe[c] = 0;
00564 }
00565
00567 if ((subframe_len = decode_subframe_length(s, min_channel_len)) <= 0)
00568 return AVERROR_INVALIDDATA;
00569
00571 min_channel_len += subframe_len;
00572 for (c = 0; c < s->num_channels; c++) {
00573 WMAProChannelCtx* chan = &s->channel[c];
00574
00575 if (contains_subframe[c]) {
00576 if (chan->num_subframes >= MAX_SUBFRAMES) {
00577 av_log(s->avctx, AV_LOG_ERROR,
00578 "broken frame: num subframes > 31\n");
00579 return AVERROR_INVALIDDATA;
00580 }
00581 chan->subframe_len[chan->num_subframes] = subframe_len;
00582 num_samples[c] += subframe_len;
00583 ++chan->num_subframes;
00584 if (num_samples[c] > s->samples_per_frame) {
00585 av_log(s->avctx, AV_LOG_ERROR, "broken frame: "
00586 "channel len > samples_per_frame\n");
00587 return AVERROR_INVALIDDATA;
00588 }
00589 } else if (num_samples[c] <= min_channel_len) {
00590 if (num_samples[c] < min_channel_len) {
00591 channels_for_cur_subframe = 0;
00592 min_channel_len = num_samples[c];
00593 }
00594 ++channels_for_cur_subframe;
00595 }
00596 }
00597 } while (min_channel_len < s->samples_per_frame);
00598
00599 for (c = 0; c < s->num_channels; c++) {
00600 int i;
00601 int offset = 0;
00602 for (i = 0; i < s->channel[c].num_subframes; i++) {
00603 av_dlog(s->avctx, "frame[%i] channel[%i] subframe[%i]"
00604 " len %i\n", s->frame_num, c, i,
00605 s->channel[c].subframe_len[i]);
00606 s->channel[c].subframe_offset[i] = offset;
00607 offset += s->channel[c].subframe_len[i];
00608 }
00609 }
00610
00611 return 0;
00612 }
00613
00619 static void decode_decorrelation_matrix(WMAProDecodeCtx *s,
00620 WMAProChannelGrp *chgroup)
00621 {
00622 int i;
00623 int offset = 0;
00624 int8_t rotation_offset[WMAPRO_MAX_CHANNELS * WMAPRO_MAX_CHANNELS];
00625 memset(chgroup->decorrelation_matrix, 0, s->num_channels *
00626 s->num_channels * sizeof(*chgroup->decorrelation_matrix));
00627
00628 for (i = 0; i < chgroup->num_channels * (chgroup->num_channels - 1) >> 1; i++)
00629 rotation_offset[i] = get_bits(&s->gb, 6);
00630
00631 for (i = 0; i < chgroup->num_channels; i++)
00632 chgroup->decorrelation_matrix[chgroup->num_channels * i + i] =
00633 get_bits1(&s->gb) ? 1.0 : -1.0;
00634
00635 for (i = 1; i < chgroup->num_channels; i++) {
00636 int x;
00637 for (x = 0; x < i; x++) {
00638 int y;
00639 for (y = 0; y < i + 1; y++) {
00640 float v1 = chgroup->decorrelation_matrix[x * chgroup->num_channels + y];
00641 float v2 = chgroup->decorrelation_matrix[i * chgroup->num_channels + y];
00642 int n = rotation_offset[offset + x];
00643 float sinv;
00644 float cosv;
00645
00646 if (n < 32) {
00647 sinv = sin64[n];
00648 cosv = sin64[32 - n];
00649 } else {
00650 sinv = sin64[64 - n];
00651 cosv = -sin64[n - 32];
00652 }
00653
00654 chgroup->decorrelation_matrix[y + x * chgroup->num_channels] =
00655 (v1 * sinv) - (v2 * cosv);
00656 chgroup->decorrelation_matrix[y + i * chgroup->num_channels] =
00657 (v1 * cosv) + (v2 * sinv);
00658 }
00659 }
00660 offset += i;
00661 }
00662 }
00663
00669 static int decode_channel_transform(WMAProDecodeCtx* s)
00670 {
00671 int i;
00672
00673
00674
00675
00676
00678 s->num_chgroups = 0;
00679 if (s->num_channels > 1) {
00680 int remaining_channels = s->channels_for_cur_subframe;
00681
00682 if (get_bits1(&s->gb)) {
00683 av_log_ask_for_sample(s->avctx,
00684 "unsupported channel transform bit\n");
00685 return AVERROR_INVALIDDATA;
00686 }
00687
00688 for (s->num_chgroups = 0; remaining_channels &&
00689 s->num_chgroups < s->channels_for_cur_subframe; s->num_chgroups++) {
00690 WMAProChannelGrp* chgroup = &s->chgroup[s->num_chgroups];
00691 float** channel_data = chgroup->channel_data;
00692 chgroup->num_channels = 0;
00693 chgroup->transform = 0;
00694
00696 if (remaining_channels > 2) {
00697 for (i = 0; i < s->channels_for_cur_subframe; i++) {
00698 int channel_idx = s->channel_indexes_for_cur_subframe[i];
00699 if (!s->channel[channel_idx].grouped
00700 && get_bits1(&s->gb)) {
00701 ++chgroup->num_channels;
00702 s->channel[channel_idx].grouped = 1;
00703 *channel_data++ = s->channel[channel_idx].coeffs;
00704 }
00705 }
00706 } else {
00707 chgroup->num_channels = remaining_channels;
00708 for (i = 0; i < s->channels_for_cur_subframe; i++) {
00709 int channel_idx = s->channel_indexes_for_cur_subframe[i];
00710 if (!s->channel[channel_idx].grouped)
00711 *channel_data++ = s->channel[channel_idx].coeffs;
00712 s->channel[channel_idx].grouped = 1;
00713 }
00714 }
00715
00717 if (chgroup->num_channels == 2) {
00718 if (get_bits1(&s->gb)) {
00719 if (get_bits1(&s->gb)) {
00720 av_log_ask_for_sample(s->avctx,
00721 "unsupported channel transform type\n");
00722 }
00723 } else {
00724 chgroup->transform = 1;
00725 if (s->num_channels == 2) {
00726 chgroup->decorrelation_matrix[0] = 1.0;
00727 chgroup->decorrelation_matrix[1] = -1.0;
00728 chgroup->decorrelation_matrix[2] = 1.0;
00729 chgroup->decorrelation_matrix[3] = 1.0;
00730 } else {
00732 chgroup->decorrelation_matrix[0] = 0.70703125;
00733 chgroup->decorrelation_matrix[1] = -0.70703125;
00734 chgroup->decorrelation_matrix[2] = 0.70703125;
00735 chgroup->decorrelation_matrix[3] = 0.70703125;
00736 }
00737 }
00738 } else if (chgroup->num_channels > 2) {
00739 if (get_bits1(&s->gb)) {
00740 chgroup->transform = 1;
00741 if (get_bits1(&s->gb)) {
00742 decode_decorrelation_matrix(s, chgroup);
00743 } else {
00745 if (chgroup->num_channels > 6) {
00746 av_log_ask_for_sample(s->avctx,
00747 "coupled channels > 6\n");
00748 } else {
00749 memcpy(chgroup->decorrelation_matrix,
00750 default_decorrelation[chgroup->num_channels],
00751 chgroup->num_channels * chgroup->num_channels *
00752 sizeof(*chgroup->decorrelation_matrix));
00753 }
00754 }
00755 }
00756 }
00757
00759 if (chgroup->transform) {
00760 if (!get_bits1(&s->gb)) {
00761 int i;
00763 for (i = 0; i < s->num_bands; i++) {
00764 chgroup->transform_band[i] = get_bits1(&s->gb);
00765 }
00766 } else {
00767 memset(chgroup->transform_band, 1, s->num_bands);
00768 }
00769 }
00770 remaining_channels -= chgroup->num_channels;
00771 }
00772 }
00773 return 0;
00774 }
00775
00782 static int decode_coeffs(WMAProDecodeCtx *s, int c)
00783 {
00784
00785
00786
00787 static const uint32_t fval_tab[16] = {
00788 0x00000000, 0x3f800000, 0x40000000, 0x40400000,
00789 0x40800000, 0x40a00000, 0x40c00000, 0x40e00000,
00790 0x41000000, 0x41100000, 0x41200000, 0x41300000,
00791 0x41400000, 0x41500000, 0x41600000, 0x41700000,
00792 };
00793 int vlctable;
00794 VLC* vlc;
00795 WMAProChannelCtx* ci = &s->channel[c];
00796 int rl_mode = 0;
00797 int cur_coeff = 0;
00798 int num_zeros = 0;
00799 const uint16_t* run;
00800 const float* level;
00801
00802 av_dlog(s->avctx, "decode coefficients for channel %i\n", c);
00803
00804 vlctable = get_bits1(&s->gb);
00805 vlc = &coef_vlc[vlctable];
00806
00807 if (vlctable) {
00808 run = coef1_run;
00809 level = coef1_level;
00810 } else {
00811 run = coef0_run;
00812 level = coef0_level;
00813 }
00814
00817 while ((s->transmit_num_vec_coeffs || !rl_mode) &&
00818 (cur_coeff + 3 < ci->num_vec_coeffs)) {
00819 uint32_t vals[4];
00820 int i;
00821 unsigned int idx;
00822
00823 idx = get_vlc2(&s->gb, vec4_vlc.table, VLCBITS, VEC4MAXDEPTH);
00824
00825 if (idx == HUFF_VEC4_SIZE - 1) {
00826 for (i = 0; i < 4; i += 2) {
00827 idx = get_vlc2(&s->gb, vec2_vlc.table, VLCBITS, VEC2MAXDEPTH);
00828 if (idx == HUFF_VEC2_SIZE - 1) {
00829 uint32_t v0, v1;
00830 v0 = get_vlc2(&s->gb, vec1_vlc.table, VLCBITS, VEC1MAXDEPTH);
00831 if (v0 == HUFF_VEC1_SIZE - 1)
00832 v0 += ff_wma_get_large_val(&s->gb);
00833 v1 = get_vlc2(&s->gb, vec1_vlc.table, VLCBITS, VEC1MAXDEPTH);
00834 if (v1 == HUFF_VEC1_SIZE - 1)
00835 v1 += ff_wma_get_large_val(&s->gb);
00836 vals[i ] = av_float2int(v0);
00837 vals[i+1] = av_float2int(v1);
00838 } else {
00839 vals[i] = fval_tab[symbol_to_vec2[idx] >> 4 ];
00840 vals[i+1] = fval_tab[symbol_to_vec2[idx] & 0xF];
00841 }
00842 }
00843 } else {
00844 vals[0] = fval_tab[ symbol_to_vec4[idx] >> 12 ];
00845 vals[1] = fval_tab[(symbol_to_vec4[idx] >> 8) & 0xF];
00846 vals[2] = fval_tab[(symbol_to_vec4[idx] >> 4) & 0xF];
00847 vals[3] = fval_tab[ symbol_to_vec4[idx] & 0xF];
00848 }
00849
00851 for (i = 0; i < 4; i++) {
00852 if (vals[i]) {
00853 uint32_t sign = get_bits1(&s->gb) - 1;
00854 AV_WN32A(&ci->coeffs[cur_coeff], vals[i] ^ sign << 31);
00855 num_zeros = 0;
00856 } else {
00857 ci->coeffs[cur_coeff] = 0;
00860 rl_mode |= (++num_zeros > s->subframe_len >> 8);
00861 }
00862 ++cur_coeff;
00863 }
00864 }
00865
00867 if (cur_coeff < s->subframe_len) {
00868 memset(&ci->coeffs[cur_coeff], 0,
00869 sizeof(*ci->coeffs) * (s->subframe_len - cur_coeff));
00870 if (ff_wma_run_level_decode(s->avctx, &s->gb, vlc,
00871 level, run, 1, ci->coeffs,
00872 cur_coeff, s->subframe_len,
00873 s->subframe_len, s->esc_len, 0))
00874 return AVERROR_INVALIDDATA;
00875 }
00876
00877 return 0;
00878 }
00879
00885 static int decode_scale_factors(WMAProDecodeCtx* s)
00886 {
00887 int i;
00888
00893 for (i = 0; i < s->channels_for_cur_subframe; i++) {
00894 int c = s->channel_indexes_for_cur_subframe[i];
00895 int* sf;
00896 int* sf_end;
00897 s->channel[c].scale_factors = s->channel[c].saved_scale_factors[!s->channel[c].scale_factor_idx];
00898 sf_end = s->channel[c].scale_factors + s->num_bands;
00899
00905 if (s->channel[c].reuse_sf) {
00906 const int8_t* sf_offsets = s->sf_offsets[s->table_idx][s->channel[c].table_idx];
00907 int b;
00908 for (b = 0; b < s->num_bands; b++)
00909 s->channel[c].scale_factors[b] =
00910 s->channel[c].saved_scale_factors[s->channel[c].scale_factor_idx][*sf_offsets++];
00911 }
00912
00913 if (!s->channel[c].cur_subframe || get_bits1(&s->gb)) {
00914
00915 if (!s->channel[c].reuse_sf) {
00916 int val;
00918 s->channel[c].scale_factor_step = get_bits(&s->gb, 2) + 1;
00919 val = 45 / s->channel[c].scale_factor_step;
00920 for (sf = s->channel[c].scale_factors; sf < sf_end; sf++) {
00921 val += get_vlc2(&s->gb, sf_vlc.table, SCALEVLCBITS, SCALEMAXDEPTH) - 60;
00922 *sf = val;
00923 }
00924 } else {
00925 int i;
00927 for (i = 0; i < s->num_bands; i++) {
00928 int idx;
00929 int skip;
00930 int val;
00931 int sign;
00932
00933 idx = get_vlc2(&s->gb, sf_rl_vlc.table, VLCBITS, SCALERLMAXDEPTH);
00934
00935 if (!idx) {
00936 uint32_t code = get_bits(&s->gb, 14);
00937 val = code >> 6;
00938 sign = (code & 1) - 1;
00939 skip = (code & 0x3f) >> 1;
00940 } else if (idx == 1) {
00941 break;
00942 } else {
00943 skip = scale_rl_run[idx];
00944 val = scale_rl_level[idx];
00945 sign = get_bits1(&s->gb)-1;
00946 }
00947
00948 i += skip;
00949 if (i >= s->num_bands) {
00950 av_log(s->avctx, AV_LOG_ERROR,
00951 "invalid scale factor coding\n");
00952 return AVERROR_INVALIDDATA;
00953 }
00954 s->channel[c].scale_factors[i] += (val ^ sign) - sign;
00955 }
00956 }
00958 s->channel[c].scale_factor_idx = !s->channel[c].scale_factor_idx;
00959 s->channel[c].table_idx = s->table_idx;
00960 s->channel[c].reuse_sf = 1;
00961 }
00962
00964 s->channel[c].max_scale_factor = s->channel[c].scale_factors[0];
00965 for (sf = s->channel[c].scale_factors + 1; sf < sf_end; sf++) {
00966 s->channel[c].max_scale_factor =
00967 FFMAX(s->channel[c].max_scale_factor, *sf);
00968 }
00969
00970 }
00971 return 0;
00972 }
00973
00978 static void inverse_channel_transform(WMAProDecodeCtx *s)
00979 {
00980 int i;
00981
00982 for (i = 0; i < s->num_chgroups; i++) {
00983 if (s->chgroup[i].transform) {
00984 float data[WMAPRO_MAX_CHANNELS];
00985 const int num_channels = s->chgroup[i].num_channels;
00986 float** ch_data = s->chgroup[i].channel_data;
00987 float** ch_end = ch_data + num_channels;
00988 const int8_t* tb = s->chgroup[i].transform_band;
00989 int16_t* sfb;
00990
00992 for (sfb = s->cur_sfb_offsets;
00993 sfb < s->cur_sfb_offsets + s->num_bands; sfb++) {
00994 int y;
00995 if (*tb++ == 1) {
00997 for (y = sfb[0]; y < FFMIN(sfb[1], s->subframe_len); y++) {
00998 const float* mat = s->chgroup[i].decorrelation_matrix;
00999 const float* data_end = data + num_channels;
01000 float* data_ptr = data;
01001 float** ch;
01002
01003 for (ch = ch_data; ch < ch_end; ch++)
01004 *data_ptr++ = (*ch)[y];
01005
01006 for (ch = ch_data; ch < ch_end; ch++) {
01007 float sum = 0;
01008 data_ptr = data;
01009 while (data_ptr < data_end)
01010 sum += *data_ptr++ * *mat++;
01011
01012 (*ch)[y] = sum;
01013 }
01014 }
01015 } else if (s->num_channels == 2) {
01016 int len = FFMIN(sfb[1], s->subframe_len) - sfb[0];
01017 s->dsp.vector_fmul_scalar(ch_data[0] + sfb[0],
01018 ch_data[0] + sfb[0],
01019 181.0 / 128, len);
01020 s->dsp.vector_fmul_scalar(ch_data[1] + sfb[0],
01021 ch_data[1] + sfb[0],
01022 181.0 / 128, len);
01023 }
01024 }
01025 }
01026 }
01027 }
01028
01033 static void wmapro_window(WMAProDecodeCtx *s)
01034 {
01035 int i;
01036 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01037 int c = s->channel_indexes_for_cur_subframe[i];
01038 float* window;
01039 int winlen = s->channel[c].prev_block_len;
01040 float* start = s->channel[c].coeffs - (winlen >> 1);
01041
01042 if (s->subframe_len < winlen) {
01043 start += (winlen - s->subframe_len) >> 1;
01044 winlen = s->subframe_len;
01045 }
01046
01047 window = s->windows[av_log2(winlen) - WMAPRO_BLOCK_MIN_BITS];
01048
01049 winlen >>= 1;
01050
01051 s->dsp.vector_fmul_window(start, start, start + winlen,
01052 window, winlen);
01053
01054 s->channel[c].prev_block_len = s->subframe_len;
01055 }
01056 }
01057
01063 static int decode_subframe(WMAProDecodeCtx *s)
01064 {
01065 int offset = s->samples_per_frame;
01066 int subframe_len = s->samples_per_frame;
01067 int i;
01068 int total_samples = s->samples_per_frame * s->num_channels;
01069 int transmit_coeffs = 0;
01070 int cur_subwoofer_cutoff;
01071
01072 s->subframe_offset = get_bits_count(&s->gb);
01073
01078 for (i = 0; i < s->num_channels; i++) {
01079 s->channel[i].grouped = 0;
01080 if (offset > s->channel[i].decoded_samples) {
01081 offset = s->channel[i].decoded_samples;
01082 subframe_len =
01083 s->channel[i].subframe_len[s->channel[i].cur_subframe];
01084 }
01085 }
01086
01087 av_dlog(s->avctx,
01088 "processing subframe with offset %i len %i\n", offset, subframe_len);
01089
01091 s->channels_for_cur_subframe = 0;
01092 for (i = 0; i < s->num_channels; i++) {
01093 const int cur_subframe = s->channel[i].cur_subframe;
01095 total_samples -= s->channel[i].decoded_samples;
01096
01098 if (offset == s->channel[i].decoded_samples &&
01099 subframe_len == s->channel[i].subframe_len[cur_subframe]) {
01100 total_samples -= s->channel[i].subframe_len[cur_subframe];
01101 s->channel[i].decoded_samples +=
01102 s->channel[i].subframe_len[cur_subframe];
01103 s->channel_indexes_for_cur_subframe[s->channels_for_cur_subframe] = i;
01104 ++s->channels_for_cur_subframe;
01105 }
01106 }
01107
01110 if (!total_samples)
01111 s->parsed_all_subframes = 1;
01112
01113
01114 av_dlog(s->avctx, "subframe is part of %i channels\n",
01115 s->channels_for_cur_subframe);
01116
01118 s->table_idx = av_log2(s->samples_per_frame/subframe_len);
01119 s->num_bands = s->num_sfb[s->table_idx];
01120 s->cur_sfb_offsets = s->sfb_offsets[s->table_idx];
01121 cur_subwoofer_cutoff = s->subwoofer_cutoffs[s->table_idx];
01122
01124 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01125 int c = s->channel_indexes_for_cur_subframe[i];
01126
01127 s->channel[c].coeffs = &s->channel[c].out[(s->samples_per_frame >> 1)
01128 + offset];
01129 }
01130
01131 s->subframe_len = subframe_len;
01132 s->esc_len = av_log2(s->subframe_len - 1) + 1;
01133
01135 if (get_bits1(&s->gb)) {
01136 int num_fill_bits;
01137 if (!(num_fill_bits = get_bits(&s->gb, 2))) {
01138 int len = get_bits(&s->gb, 4);
01139 num_fill_bits = (len ? get_bits(&s->gb, len) : 0) + 1;
01140 }
01141
01142 if (num_fill_bits >= 0) {
01143 if (get_bits_count(&s->gb) + num_fill_bits > s->num_saved_bits) {
01144 av_log(s->avctx, AV_LOG_ERROR, "invalid number of fill bits\n");
01145 return AVERROR_INVALIDDATA;
01146 }
01147
01148 skip_bits_long(&s->gb, num_fill_bits);
01149 }
01150 }
01151
01153 if (get_bits1(&s->gb)) {
01154 av_log_ask_for_sample(s->avctx, "reserved bit set\n");
01155 return AVERROR_INVALIDDATA;
01156 }
01157
01158
01159 if (decode_channel_transform(s) < 0)
01160 return AVERROR_INVALIDDATA;
01161
01162
01163 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01164 int c = s->channel_indexes_for_cur_subframe[i];
01165 if ((s->channel[c].transmit_coefs = get_bits1(&s->gb)))
01166 transmit_coeffs = 1;
01167 }
01168
01169 av_assert0(s->subframe_len <= WMAPRO_BLOCK_MAX_SIZE);
01170 if (transmit_coeffs) {
01171 int step;
01172 int quant_step = 90 * s->bits_per_sample >> 4;
01173
01175 if ((s->transmit_num_vec_coeffs = get_bits1(&s->gb))) {
01176 int num_bits = av_log2((s->subframe_len + 3)/4) + 1;
01177 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01178 int c = s->channel_indexes_for_cur_subframe[i];
01179 int num_vec_coeffs = get_bits(&s->gb, num_bits) << 2;
01180 if (num_vec_coeffs > s->subframe_len) {
01181 av_log(s->avctx, AV_LOG_ERROR, "num_vec_coeffs %d is too large\n", num_vec_coeffs);
01182 return AVERROR_INVALIDDATA;
01183 }
01184 s->channel[c].num_vec_coeffs = num_vec_coeffs;
01185 }
01186 } else {
01187 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01188 int c = s->channel_indexes_for_cur_subframe[i];
01189 s->channel[c].num_vec_coeffs = s->subframe_len;
01190 }
01191 }
01193 step = get_sbits(&s->gb, 6);
01194 quant_step += step;
01195 if (step == -32 || step == 31) {
01196 const int sign = (step == 31) - 1;
01197 int quant = 0;
01198 while (get_bits_count(&s->gb) + 5 < s->num_saved_bits &&
01199 (step = get_bits(&s->gb, 5)) == 31) {
01200 quant += 31;
01201 }
01202 quant_step += ((quant + step) ^ sign) - sign;
01203 }
01204 if (quant_step < 0) {
01205 av_log(s->avctx, AV_LOG_DEBUG, "negative quant step\n");
01206 }
01207
01210 if (s->channels_for_cur_subframe == 1) {
01211 s->channel[s->channel_indexes_for_cur_subframe[0]].quant_step = quant_step;
01212 } else {
01213 int modifier_len = get_bits(&s->gb, 3);
01214 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01215 int c = s->channel_indexes_for_cur_subframe[i];
01216 s->channel[c].quant_step = quant_step;
01217 if (get_bits1(&s->gb)) {
01218 if (modifier_len) {
01219 s->channel[c].quant_step += get_bits(&s->gb, modifier_len) + 1;
01220 } else
01221 ++s->channel[c].quant_step;
01222 }
01223 }
01224 }
01225
01227 if (decode_scale_factors(s) < 0)
01228 return AVERROR_INVALIDDATA;
01229 }
01230
01231 av_dlog(s->avctx, "BITSTREAM: subframe header length was %i\n",
01232 get_bits_count(&s->gb) - s->subframe_offset);
01233
01235 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01236 int c = s->channel_indexes_for_cur_subframe[i];
01237 if (s->channel[c].transmit_coefs &&
01238 get_bits_count(&s->gb) < s->num_saved_bits) {
01239 decode_coeffs(s, c);
01240 } else
01241 memset(s->channel[c].coeffs, 0,
01242 sizeof(*s->channel[c].coeffs) * subframe_len);
01243 }
01244
01245 av_dlog(s->avctx, "BITSTREAM: subframe length was %i\n",
01246 get_bits_count(&s->gb) - s->subframe_offset);
01247
01248 if (transmit_coeffs) {
01249 FFTContext *mdct = &s->mdct_ctx[av_log2(subframe_len) - WMAPRO_BLOCK_MIN_BITS];
01251 inverse_channel_transform(s);
01252 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01253 int c = s->channel_indexes_for_cur_subframe[i];
01254 const int* sf = s->channel[c].scale_factors;
01255 int b;
01256
01257 if (c == s->lfe_channel)
01258 memset(&s->tmp[cur_subwoofer_cutoff], 0, sizeof(*s->tmp) *
01259 (subframe_len - cur_subwoofer_cutoff));
01260
01262 for (b = 0; b < s->num_bands; b++) {
01263 const int end = FFMIN(s->cur_sfb_offsets[b+1], s->subframe_len);
01264 const int exp = s->channel[c].quant_step -
01265 (s->channel[c].max_scale_factor - *sf++) *
01266 s->channel[c].scale_factor_step;
01267 const float quant = pow(10.0, exp / 20.0);
01268 int start = s->cur_sfb_offsets[b];
01269 s->dsp.vector_fmul_scalar(s->tmp + start,
01270 s->channel[c].coeffs + start,
01271 quant, end - start);
01272 }
01273
01275 mdct->imdct_half(mdct, s->channel[c].coeffs, s->tmp);
01276 }
01277 }
01278
01280 wmapro_window(s);
01281
01283 for (i = 0; i < s->channels_for_cur_subframe; i++) {
01284 int c = s->channel_indexes_for_cur_subframe[i];
01285 if (s->channel[c].cur_subframe >= s->channel[c].num_subframes) {
01286 av_log(s->avctx, AV_LOG_ERROR, "broken subframe\n");
01287 return AVERROR_INVALIDDATA;
01288 }
01289 ++s->channel[c].cur_subframe;
01290 }
01291
01292 return 0;
01293 }
01294
01301 static int decode_frame(WMAProDecodeCtx *s, int *got_frame_ptr)
01302 {
01303 AVCodecContext *avctx = s->avctx;
01304 GetBitContext* gb = &s->gb;
01305 int more_frames = 0;
01306 int len = 0;
01307 int i, ret;
01308 const float *out_ptr[WMAPRO_MAX_CHANNELS];
01309 float *samples;
01310
01312 if (s->len_prefix)
01313 len = get_bits(gb, s->log2_frame_size);
01314
01315 av_dlog(s->avctx, "decoding frame with length %x\n", len);
01316
01318 if (decode_tilehdr(s)) {
01319 s->packet_loss = 1;
01320 return 0;
01321 }
01322
01324 if (s->num_channels > 1 && get_bits1(gb)) {
01325 if (get_bits1(gb)) {
01326 for (i = 0; i < s->num_channels * s->num_channels; i++)
01327 skip_bits(gb, 4);
01328 }
01329 }
01330
01332 if (s->dynamic_range_compression) {
01333 s->drc_gain = get_bits(gb, 8);
01334 av_dlog(s->avctx, "drc_gain %i\n", s->drc_gain);
01335 }
01336
01339 if (get_bits1(gb)) {
01340 int av_unused skip;
01341
01343 if (get_bits1(gb)) {
01344 skip = get_bits(gb, av_log2(s->samples_per_frame * 2));
01345 av_dlog(s->avctx, "start skip: %i\n", skip);
01346 }
01347
01349 if (get_bits1(gb)) {
01350 skip = get_bits(gb, av_log2(s->samples_per_frame * 2));
01351 av_dlog(s->avctx, "end skip: %i\n", skip);
01352 }
01353
01354 }
01355
01356 av_dlog(s->avctx, "BITSTREAM: frame header length was %i\n",
01357 get_bits_count(gb) - s->frame_offset);
01358
01360 s->parsed_all_subframes = 0;
01361 for (i = 0; i < s->num_channels; i++) {
01362 s->channel[i].decoded_samples = 0;
01363 s->channel[i].cur_subframe = 0;
01364 s->channel[i].reuse_sf = 0;
01365 }
01366
01368 while (!s->parsed_all_subframes) {
01369 if (decode_subframe(s) < 0) {
01370 s->packet_loss = 1;
01371 return 0;
01372 }
01373 }
01374
01375
01376 s->frame.nb_samples = s->samples_per_frame;
01377 if ((ret = avctx->get_buffer(avctx, &s->frame)) < 0) {
01378 av_log(avctx, AV_LOG_ERROR, "get_buffer() failed\n");
01379 s->packet_loss = 1;
01380 return 0;
01381 }
01382 samples = (float *)s->frame.data[0];
01383
01385 for (i = 0; i < s->num_channels; i++)
01386 out_ptr[i] = s->channel[i].out;
01387 s->fmt_conv.float_interleave(samples, out_ptr, s->samples_per_frame,
01388 s->num_channels);
01389
01390 for (i = 0; i < s->num_channels; i++) {
01392 memcpy(&s->channel[i].out[0],
01393 &s->channel[i].out[s->samples_per_frame],
01394 s->samples_per_frame * sizeof(*s->channel[i].out) >> 1);
01395 }
01396
01397 if (s->skip_frame) {
01398 s->skip_frame = 0;
01399 *got_frame_ptr = 0;
01400 } else {
01401 *got_frame_ptr = 1;
01402 }
01403
01404 if (s->len_prefix) {
01405 if (len != (get_bits_count(gb) - s->frame_offset) + 2) {
01407 av_log(s->avctx, AV_LOG_ERROR,
01408 "frame[%i] would have to skip %i bits\n", s->frame_num,
01409 len - (get_bits_count(gb) - s->frame_offset) - 1);
01410 s->packet_loss = 1;
01411 return 0;
01412 }
01413
01415 skip_bits_long(gb, len - (get_bits_count(gb) - s->frame_offset) - 1);
01416 } else {
01417 while (get_bits_count(gb) < s->num_saved_bits && get_bits1(gb) == 0) {
01418 }
01419 }
01420
01422 more_frames = get_bits1(gb);
01423
01424 ++s->frame_num;
01425 return more_frames;
01426 }
01427
01434 static int remaining_bits(WMAProDecodeCtx *s, GetBitContext *gb)
01435 {
01436 return s->buf_bit_size - get_bits_count(gb);
01437 }
01438
01446 static void save_bits(WMAProDecodeCtx *s, GetBitContext* gb, int len,
01447 int append)
01448 {
01449 int buflen;
01450
01455 if (!append) {
01456 s->frame_offset = get_bits_count(gb) & 7;
01457 s->num_saved_bits = s->frame_offset;
01458 init_put_bits(&s->pb, s->frame_data, MAX_FRAMESIZE);
01459 }
01460
01461 buflen = (put_bits_count(&s->pb) + len + 8) >> 3;
01462
01463 if (len <= 0 || buflen > MAX_FRAMESIZE) {
01464 av_log_ask_for_sample(s->avctx, "input buffer too small\n");
01465 s->packet_loss = 1;
01466 return;
01467 }
01468
01469 s->num_saved_bits += len;
01470 if (!append) {
01471 avpriv_copy_bits(&s->pb, gb->buffer + (get_bits_count(gb) >> 3),
01472 s->num_saved_bits);
01473 } else {
01474 int align = 8 - (get_bits_count(gb) & 7);
01475 align = FFMIN(align, len);
01476 put_bits(&s->pb, align, get_bits(gb, align));
01477 len -= align;
01478 avpriv_copy_bits(&s->pb, gb->buffer + (get_bits_count(gb) >> 3), len);
01479 }
01480 skip_bits_long(gb, len);
01481
01482 {
01483 PutBitContext tmp = s->pb;
01484 flush_put_bits(&tmp);
01485 }
01486
01487 init_get_bits(&s->gb, s->frame_data, s->num_saved_bits);
01488 skip_bits(&s->gb, s->frame_offset);
01489 }
01490
01498 static int decode_packet(AVCodecContext *avctx, void *data,
01499 int *got_frame_ptr, AVPacket* avpkt)
01500 {
01501 WMAProDecodeCtx *s = avctx->priv_data;
01502 GetBitContext* gb = &s->pgb;
01503 const uint8_t* buf = avpkt->data;
01504 int buf_size = avpkt->size;
01505 int num_bits_prev_frame;
01506 int packet_sequence_number;
01507
01508 *got_frame_ptr = 0;
01509
01510 if (s->packet_done || s->packet_loss) {
01511 s->packet_done = 0;
01512
01514 if (buf_size < avctx->block_align)
01515 return 0;
01516
01517 s->next_packet_start = buf_size - avctx->block_align;
01518 buf_size = avctx->block_align;
01519 s->buf_bit_size = buf_size << 3;
01520
01522 init_get_bits(gb, buf, s->buf_bit_size);
01523 packet_sequence_number = get_bits(gb, 4);
01524 skip_bits(gb, 2);
01525
01527 num_bits_prev_frame = get_bits(gb, s->log2_frame_size);
01528 av_dlog(avctx, "packet[%d]: nbpf %x\n", avctx->frame_number,
01529 num_bits_prev_frame);
01530
01532 if (!s->packet_loss &&
01533 ((s->packet_sequence_number + 1) & 0xF) != packet_sequence_number) {
01534 s->packet_loss = 1;
01535 av_log(avctx, AV_LOG_ERROR, "Packet loss detected! seq %x vs %x\n",
01536 s->packet_sequence_number, packet_sequence_number);
01537 }
01538 s->packet_sequence_number = packet_sequence_number;
01539
01540 if (num_bits_prev_frame > 0) {
01541 int remaining_packet_bits = s->buf_bit_size - get_bits_count(gb);
01542 if (num_bits_prev_frame >= remaining_packet_bits) {
01543 num_bits_prev_frame = remaining_packet_bits;
01544 s->packet_done = 1;
01545 }
01546
01549 save_bits(s, gb, num_bits_prev_frame, 1);
01550 av_dlog(avctx, "accumulated %x bits of frame data\n",
01551 s->num_saved_bits - s->frame_offset);
01552
01554 if (!s->packet_loss)
01555 decode_frame(s, got_frame_ptr);
01556 } else if (s->num_saved_bits - s->frame_offset) {
01557 av_dlog(avctx, "ignoring %x previously saved bits\n",
01558 s->num_saved_bits - s->frame_offset);
01559 }
01560
01561 if (s->packet_loss) {
01565 s->num_saved_bits = 0;
01566 s->packet_loss = 0;
01567 }
01568
01569 } else {
01570 int frame_size;
01571 s->buf_bit_size = (avpkt->size - s->next_packet_start) << 3;
01572 init_get_bits(gb, avpkt->data, s->buf_bit_size);
01573 skip_bits(gb, s->packet_offset);
01574 if (s->len_prefix && remaining_bits(s, gb) > s->log2_frame_size &&
01575 (frame_size = show_bits(gb, s->log2_frame_size)) &&
01576 frame_size <= remaining_bits(s, gb)) {
01577 save_bits(s, gb, frame_size, 0);
01578 s->packet_done = !decode_frame(s, got_frame_ptr);
01579 } else if (!s->len_prefix
01580 && s->num_saved_bits > get_bits_count(&s->gb)) {
01588 s->packet_done = !decode_frame(s, got_frame_ptr);
01589 } else
01590 s->packet_done = 1;
01591 }
01592
01593 if (s->packet_done && !s->packet_loss &&
01594 remaining_bits(s, gb) > 0) {
01597 save_bits(s, gb, remaining_bits(s, gb), 0);
01598 }
01599
01600 s->packet_offset = get_bits_count(gb) & 7;
01601 if (s->packet_loss)
01602 return AVERROR_INVALIDDATA;
01603
01604 if (*got_frame_ptr)
01605 *(AVFrame *)data = s->frame;
01606
01607 return get_bits_count(gb) >> 3;
01608 }
01609
01614 static void flush(AVCodecContext *avctx)
01615 {
01616 WMAProDecodeCtx *s = avctx->priv_data;
01617 int i;
01620 for (i = 0; i < s->num_channels; i++)
01621 memset(s->channel[i].out, 0, s->samples_per_frame *
01622 sizeof(*s->channel[i].out));
01623 s->packet_loss = 1;
01624 }
01625
01626
01630 AVCodec ff_wmapro_decoder = {
01631 .name = "wmapro",
01632 .type = AVMEDIA_TYPE_AUDIO,
01633 .id = CODEC_ID_WMAPRO,
01634 .priv_data_size = sizeof(WMAProDecodeCtx),
01635 .init = decode_init,
01636 .close = decode_end,
01637 .decode = decode_packet,
01638 .capabilities = CODEC_CAP_SUBFRAMES | CODEC_CAP_DR1,
01639 .flush = flush,
01640 .long_name = NULL_IF_CONFIG_SMALL("Windows Media Audio 9 Professional"),
01641 };