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00022 #include "avcodec.h"
00023 #include "sinewin.h"
00024 #include "wma.h"
00025 #include "wma_common.h"
00026 #include "wmadata.h"
00027
00028 #undef NDEBUG
00029 #include <assert.h>
00030
00031
00032
00033 static void init_coef_vlc(VLC *vlc, uint16_t **prun_table,
00034 float **plevel_table, uint16_t **pint_table,
00035 const CoefVLCTable *vlc_table)
00036 {
00037 int n = vlc_table->n;
00038 const uint8_t *table_bits = vlc_table->huffbits;
00039 const uint32_t *table_codes = vlc_table->huffcodes;
00040 const uint16_t *levels_table = vlc_table->levels;
00041 uint16_t *run_table, *level_table, *int_table;
00042 float *flevel_table;
00043 int i, l, j, k, level;
00044
00045 init_vlc(vlc, VLCBITS, n, table_bits, 1, 1, table_codes, 4, 4, 0);
00046
00047 run_table = av_malloc(n * sizeof(uint16_t));
00048 level_table = av_malloc(n * sizeof(uint16_t));
00049 flevel_table= av_malloc(n * sizeof(*flevel_table));
00050 int_table = av_malloc(n * sizeof(uint16_t));
00051 i = 2;
00052 level = 1;
00053 k = 0;
00054 while (i < n) {
00055 int_table[k] = i;
00056 l = levels_table[k++];
00057 for (j = 0; j < l; j++) {
00058 run_table[i] = j;
00059 level_table[i] = level;
00060 flevel_table[i]= level;
00061 i++;
00062 }
00063 level++;
00064 }
00065 *prun_table = run_table;
00066 *plevel_table = flevel_table;
00067 *pint_table = int_table;
00068 av_free(level_table);
00069 }
00070
00071 int ff_wma_init(AVCodecContext *avctx, int flags2)
00072 {
00073 WMACodecContext *s = avctx->priv_data;
00074 int i;
00075 float bps1, high_freq;
00076 volatile float bps;
00077 int sample_rate1;
00078 int coef_vlc_table;
00079
00080 if ( avctx->sample_rate <= 0 || avctx->sample_rate > 50000
00081 || avctx->channels <= 0 || avctx->channels > 2
00082 || avctx->bit_rate <= 0)
00083 return -1;
00084
00085 ff_dsputil_init(&s->dsp, avctx);
00086 ff_fmt_convert_init(&s->fmt_conv, avctx);
00087 avpriv_float_dsp_init(&s->fdsp, avctx->flags & CODEC_FLAG_BITEXACT);
00088
00089 if (avctx->codec->id == AV_CODEC_ID_WMAV1) {
00090 s->version = 1;
00091 } else {
00092 s->version = 2;
00093 }
00094
00095
00096 s->frame_len_bits = ff_wma_get_frame_len_bits(avctx->sample_rate,
00097 s->version, 0);
00098 s->next_block_len_bits = s->frame_len_bits;
00099 s->prev_block_len_bits = s->frame_len_bits;
00100 s->block_len_bits = s->frame_len_bits;
00101
00102 s->frame_len = 1 << s->frame_len_bits;
00103 if (s->use_variable_block_len) {
00104 int nb_max, nb;
00105 nb = ((flags2 >> 3) & 3) + 1;
00106 if ((avctx->bit_rate / avctx->channels) >= 32000)
00107 nb += 2;
00108 nb_max = s->frame_len_bits - BLOCK_MIN_BITS;
00109 if (nb > nb_max)
00110 nb = nb_max;
00111 s->nb_block_sizes = nb + 1;
00112 } else {
00113 s->nb_block_sizes = 1;
00114 }
00115
00116
00117 s->use_noise_coding = 1;
00118 high_freq = avctx->sample_rate * 0.5;
00119
00120
00121 sample_rate1 = avctx->sample_rate;
00122 if (s->version == 2) {
00123 if (sample_rate1 >= 44100) {
00124 sample_rate1 = 44100;
00125 } else if (sample_rate1 >= 22050) {
00126 sample_rate1 = 22050;
00127 } else if (sample_rate1 >= 16000) {
00128 sample_rate1 = 16000;
00129 } else if (sample_rate1 >= 11025) {
00130 sample_rate1 = 11025;
00131 } else if (sample_rate1 >= 8000) {
00132 sample_rate1 = 8000;
00133 }
00134 }
00135
00136 bps = (float)avctx->bit_rate / (float)(avctx->channels * avctx->sample_rate);
00137 s->byte_offset_bits = av_log2((int)(bps * s->frame_len / 8.0 + 0.5)) + 2;
00138
00139
00140
00141 bps1 = bps;
00142 if (avctx->channels == 2)
00143 bps1 = bps * 1.6;
00144 if (sample_rate1 == 44100) {
00145 if (bps1 >= 0.61) {
00146 s->use_noise_coding = 0;
00147 } else {
00148 high_freq = high_freq * 0.4;
00149 }
00150 } else if (sample_rate1 == 22050) {
00151 if (bps1 >= 1.16) {
00152 s->use_noise_coding = 0;
00153 } else if (bps1 >= 0.72) {
00154 high_freq = high_freq * 0.7;
00155 } else {
00156 high_freq = high_freq * 0.6;
00157 }
00158 } else if (sample_rate1 == 16000) {
00159 if (bps > 0.5) {
00160 high_freq = high_freq * 0.5;
00161 } else {
00162 high_freq = high_freq * 0.3;
00163 }
00164 } else if (sample_rate1 == 11025) {
00165 high_freq = high_freq * 0.7;
00166 } else if (sample_rate1 == 8000) {
00167 if (bps <= 0.625) {
00168 high_freq = high_freq * 0.5;
00169 } else if (bps > 0.75) {
00170 s->use_noise_coding = 0;
00171 } else {
00172 high_freq = high_freq * 0.65;
00173 }
00174 } else {
00175 if (bps >= 0.8) {
00176 high_freq = high_freq * 0.75;
00177 } else if (bps >= 0.6) {
00178 high_freq = high_freq * 0.6;
00179 } else {
00180 high_freq = high_freq * 0.5;
00181 }
00182 }
00183 av_dlog(s->avctx, "flags2=0x%x\n", flags2);
00184 av_dlog(s->avctx, "version=%d channels=%d sample_rate=%d bitrate=%d block_align=%d\n",
00185 s->version, avctx->channels, avctx->sample_rate, avctx->bit_rate,
00186 avctx->block_align);
00187 av_dlog(s->avctx, "bps=%f bps1=%f high_freq=%f bitoffset=%d\n",
00188 bps, bps1, high_freq, s->byte_offset_bits);
00189 av_dlog(s->avctx, "use_noise_coding=%d use_exp_vlc=%d nb_block_sizes=%d\n",
00190 s->use_noise_coding, s->use_exp_vlc, s->nb_block_sizes);
00191
00192
00193 {
00194 int a, b, pos, lpos, k, block_len, i, j, n;
00195 const uint8_t *table;
00196
00197 if (s->version == 1) {
00198 s->coefs_start = 3;
00199 } else {
00200 s->coefs_start = 0;
00201 }
00202 for (k = 0; k < s->nb_block_sizes; k++) {
00203 block_len = s->frame_len >> k;
00204
00205 if (s->version == 1) {
00206 lpos = 0;
00207 for (i = 0; i < 25; i++) {
00208 a = ff_wma_critical_freqs[i];
00209 b = avctx->sample_rate;
00210 pos = ((block_len * 2 * a) + (b >> 1)) / b;
00211 if (pos > block_len)
00212 pos = block_len;
00213 s->exponent_bands[0][i] = pos - lpos;
00214 if (pos >= block_len) {
00215 i++;
00216 break;
00217 }
00218 lpos = pos;
00219 }
00220 s->exponent_sizes[0] = i;
00221 } else {
00222
00223 table = NULL;
00224 a = s->frame_len_bits - BLOCK_MIN_BITS - k;
00225 if (a < 3) {
00226 if (avctx->sample_rate >= 44100) {
00227 table = exponent_band_44100[a];
00228 } else if (avctx->sample_rate >= 32000) {
00229 table = exponent_band_32000[a];
00230 } else if (avctx->sample_rate >= 22050) {
00231 table = exponent_band_22050[a];
00232 }
00233 }
00234 if (table) {
00235 n = *table++;
00236 for (i = 0; i < n; i++)
00237 s->exponent_bands[k][i] = table[i];
00238 s->exponent_sizes[k] = n;
00239 } else {
00240 j = 0;
00241 lpos = 0;
00242 for (i = 0; i < 25; i++) {
00243 a = ff_wma_critical_freqs[i];
00244 b = avctx->sample_rate;
00245 pos = ((block_len * 2 * a) + (b << 1)) / (4 * b);
00246 pos <<= 2;
00247 if (pos > block_len)
00248 pos = block_len;
00249 if (pos > lpos)
00250 s->exponent_bands[k][j++] = pos - lpos;
00251 if (pos >= block_len)
00252 break;
00253 lpos = pos;
00254 }
00255 s->exponent_sizes[k] = j;
00256 }
00257 }
00258
00259
00260 s->coefs_end[k] = (s->frame_len - ((s->frame_len * 9) / 100)) >> k;
00261
00262 s->high_band_start[k] = (int)((block_len * 2 * high_freq) /
00263 avctx->sample_rate + 0.5);
00264 n = s->exponent_sizes[k];
00265 j = 0;
00266 pos = 0;
00267 for (i = 0; i < n; i++) {
00268 int start, end;
00269 start = pos;
00270 pos += s->exponent_bands[k][i];
00271 end = pos;
00272 if (start < s->high_band_start[k])
00273 start = s->high_band_start[k];
00274 if (end > s->coefs_end[k])
00275 end = s->coefs_end[k];
00276 if (end > start)
00277 s->exponent_high_bands[k][j++] = end - start;
00278 }
00279 s->exponent_high_sizes[k] = j;
00280 #if 0
00281 tprintf(s->avctx, "%5d: coefs_end=%d high_band_start=%d nb_high_bands=%d: ",
00282 s->frame_len >> k,
00283 s->coefs_end[k],
00284 s->high_band_start[k],
00285 s->exponent_high_sizes[k]);
00286 for (j = 0; j < s->exponent_high_sizes[k]; j++)
00287 tprintf(s->avctx, " %d", s->exponent_high_bands[k][j]);
00288 tprintf(s->avctx, "\n");
00289 #endif
00290 }
00291 }
00292
00293 #ifdef TRACE
00294 {
00295 int i, j;
00296 for (i = 0; i < s->nb_block_sizes; i++) {
00297 tprintf(s->avctx, "%5d: n=%2d:",
00298 s->frame_len >> i,
00299 s->exponent_sizes[i]);
00300 for (j = 0; j < s->exponent_sizes[i]; j++)
00301 tprintf(s->avctx, " %d", s->exponent_bands[i][j]);
00302 tprintf(s->avctx, "\n");
00303 }
00304 }
00305 #endif
00306
00307
00308 for (i = 0; i < s->nb_block_sizes; i++) {
00309 ff_init_ff_sine_windows(s->frame_len_bits - i);
00310 s->windows[i] = ff_sine_windows[s->frame_len_bits - i];
00311 }
00312
00313 s->reset_block_lengths = 1;
00314
00315 if (s->use_noise_coding) {
00316
00317
00318 if (s->use_exp_vlc) {
00319 s->noise_mult = 0.02;
00320 } else {
00321 s->noise_mult = 0.04;
00322 }
00323
00324 #ifdef TRACE
00325 for (i = 0; i < NOISE_TAB_SIZE; i++)
00326 s->noise_table[i] = 1.0 * s->noise_mult;
00327 #else
00328 {
00329 unsigned int seed;
00330 float norm;
00331 seed = 1;
00332 norm = (1.0 / (float)(1LL << 31)) * sqrt(3) * s->noise_mult;
00333 for (i = 0; i < NOISE_TAB_SIZE; i++) {
00334 seed = seed * 314159 + 1;
00335 s->noise_table[i] = (float)((int)seed) * norm;
00336 }
00337 }
00338 #endif
00339 }
00340
00341
00342 coef_vlc_table = 2;
00343 if (avctx->sample_rate >= 32000) {
00344 if (bps1 < 0.72) {
00345 coef_vlc_table = 0;
00346 } else if (bps1 < 1.16) {
00347 coef_vlc_table = 1;
00348 }
00349 }
00350 s->coef_vlcs[0]= &coef_vlcs[coef_vlc_table * 2 ];
00351 s->coef_vlcs[1]= &coef_vlcs[coef_vlc_table * 2 + 1];
00352 init_coef_vlc(&s->coef_vlc[0], &s->run_table[0], &s->level_table[0], &s->int_table[0],
00353 s->coef_vlcs[0]);
00354 init_coef_vlc(&s->coef_vlc[1], &s->run_table[1], &s->level_table[1], &s->int_table[1],
00355 s->coef_vlcs[1]);
00356
00357 return 0;
00358 }
00359
00360 int ff_wma_total_gain_to_bits(int total_gain)
00361 {
00362 if (total_gain < 15) return 13;
00363 else if (total_gain < 32) return 12;
00364 else if (total_gain < 40) return 11;
00365 else if (total_gain < 45) return 10;
00366 else return 9;
00367 }
00368
00369 int ff_wma_end(AVCodecContext *avctx)
00370 {
00371 WMACodecContext *s = avctx->priv_data;
00372 int i;
00373
00374 for (i = 0; i < s->nb_block_sizes; i++)
00375 ff_mdct_end(&s->mdct_ctx[i]);
00376
00377 if (s->use_exp_vlc) {
00378 ff_free_vlc(&s->exp_vlc);
00379 }
00380 if (s->use_noise_coding) {
00381 ff_free_vlc(&s->hgain_vlc);
00382 }
00383 for (i = 0; i < 2; i++) {
00384 ff_free_vlc(&s->coef_vlc[i]);
00385 av_free(s->run_table[i]);
00386 av_free(s->level_table[i]);
00387 av_free(s->int_table[i]);
00388 }
00389
00390 return 0;
00391 }
00392
00398 unsigned int ff_wma_get_large_val(GetBitContext* gb)
00399 {
00401 int n_bits = 8;
00403 if (get_bits1(gb)) {
00404 n_bits += 8;
00405 if (get_bits1(gb)) {
00406 n_bits += 8;
00407 if (get_bits1(gb)) {
00408 n_bits += 7;
00409 }
00410 }
00411 }
00412 return get_bits_long(gb, n_bits);
00413 }
00414
00431 int ff_wma_run_level_decode(AVCodecContext* avctx, GetBitContext* gb,
00432 VLC *vlc,
00433 const float *level_table, const uint16_t *run_table,
00434 int version, WMACoef *ptr, int offset,
00435 int num_coefs, int block_len, int frame_len_bits,
00436 int coef_nb_bits)
00437 {
00438 int code, level, sign;
00439 const uint32_t *ilvl = (const uint32_t*)level_table;
00440 uint32_t *iptr = (uint32_t*)ptr;
00441 const unsigned int coef_mask = block_len - 1;
00442 for (; offset < num_coefs; offset++) {
00443 code = get_vlc2(gb, vlc->table, VLCBITS, VLCMAX);
00444 if (code > 1) {
00446 offset += run_table[code];
00447 sign = get_bits1(gb) - 1;
00448 iptr[offset & coef_mask] = ilvl[code] ^ sign<<31;
00449 } else if (code == 1) {
00451 break;
00452 } else {
00454 if (!version) {
00455 level = get_bits(gb, coef_nb_bits);
00458 offset += get_bits(gb, frame_len_bits);
00459 } else {
00460 level = ff_wma_get_large_val(gb);
00462 if (get_bits1(gb)) {
00463 if (get_bits1(gb)) {
00464 if (get_bits1(gb)) {
00465 av_log(avctx,AV_LOG_ERROR,
00466 "broken escape sequence\n");
00467 return -1;
00468 } else
00469 offset += get_bits(gb, frame_len_bits) + 4;
00470 } else
00471 offset += get_bits(gb, 2) + 1;
00472 }
00473 }
00474 sign = get_bits1(gb) - 1;
00475 ptr[offset & coef_mask] = (level^sign) - sign;
00476 }
00477 }
00479 if (offset > num_coefs) {
00480 av_log(avctx, AV_LOG_ERROR, "overflow in spectral RLE, ignoring\n");
00481 return -1;
00482 }
00483
00484 return 0;
00485 }