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00022 #include "libavutil/float_dsp.h"
00023 #include "avcodec.h"
00024 #include "get_bits.h"
00025 #include "dsputil.h"
00026 #include "fft.h"
00027 #include "lsp.h"
00028 #include "sinewin.h"
00029
00030 #include <math.h>
00031 #include <stdint.h>
00032
00033 #include "twinvq_data.h"
00034
00035 enum FrameType {
00036 FT_SHORT = 0,
00037 FT_MEDIUM,
00038 FT_LONG,
00039 FT_PPC,
00040 };
00041
00045 struct FrameMode {
00046 uint8_t sub;
00047 const uint16_t *bark_tab;
00048
00050 uint8_t bark_env_size;
00051
00052 const int16_t *bark_cb;
00053 uint8_t bark_n_coef;
00054 uint8_t bark_n_bit;
00055
00057
00058 const int16_t *cb0;
00059 const int16_t *cb1;
00061
00062 uint8_t cb_len_read;
00063 };
00064
00069 typedef struct {
00070 struct FrameMode fmode[3];
00071
00072 uint16_t size;
00073 uint8_t n_lsp;
00074 const float *lspcodebook;
00075
00076
00077 uint8_t lsp_bit0;
00078 uint8_t lsp_bit1;
00079 uint8_t lsp_bit2;
00080
00081 uint8_t lsp_split;
00082 const int16_t *ppc_shape_cb;
00083
00085 uint8_t ppc_period_bit;
00086
00087 uint8_t ppc_shape_bit;
00088 uint8_t ppc_shape_len;
00089 uint8_t pgain_bit;
00090
00092 uint16_t peak_per2wid;
00093 } ModeTab;
00094
00095 static const ModeTab mode_08_08 = {
00096 {
00097 { 8, bark_tab_s08_64, 10, tab.fcb08s , 1, 5, tab.cb0808s0, tab.cb0808s1, 18},
00098 { 2, bark_tab_m08_256, 20, tab.fcb08m , 2, 5, tab.cb0808m0, tab.cb0808m1, 16},
00099 { 1, bark_tab_l08_512, 30, tab.fcb08l , 3, 6, tab.cb0808l0, tab.cb0808l1, 17}
00100 },
00101 512 , 12, tab.lsp08, 1, 5, 3, 3, tab.shape08 , 8, 28, 20, 6, 40
00102 };
00103
00104 static const ModeTab mode_11_08 = {
00105 {
00106 { 8, bark_tab_s11_64, 10, tab.fcb11s , 1, 5, tab.cb1108s0, tab.cb1108s1, 29},
00107 { 2, bark_tab_m11_256, 20, tab.fcb11m , 2, 5, tab.cb1108m0, tab.cb1108m1, 24},
00108 { 1, bark_tab_l11_512, 30, tab.fcb11l , 3, 6, tab.cb1108l0, tab.cb1108l1, 27}
00109 },
00110 512 , 16, tab.lsp11, 1, 6, 4, 3, tab.shape11 , 9, 36, 30, 7, 90
00111 };
00112
00113 static const ModeTab mode_11_10 = {
00114 {
00115 { 8, bark_tab_s11_64, 10, tab.fcb11s , 1, 5, tab.cb1110s0, tab.cb1110s1, 21},
00116 { 2, bark_tab_m11_256, 20, tab.fcb11m , 2, 5, tab.cb1110m0, tab.cb1110m1, 18},
00117 { 1, bark_tab_l11_512, 30, tab.fcb11l , 3, 6, tab.cb1110l0, tab.cb1110l1, 20}
00118 },
00119 512 , 16, tab.lsp11, 1, 6, 4, 3, tab.shape11 , 9, 36, 30, 7, 90
00120 };
00121
00122 static const ModeTab mode_16_16 = {
00123 {
00124 { 8, bark_tab_s16_128, 10, tab.fcb16s , 1, 5, tab.cb1616s0, tab.cb1616s1, 16},
00125 { 2, bark_tab_m16_512, 20, tab.fcb16m , 2, 5, tab.cb1616m0, tab.cb1616m1, 15},
00126 { 1, bark_tab_l16_1024,30, tab.fcb16l , 3, 6, tab.cb1616l0, tab.cb1616l1, 16}
00127 },
00128 1024, 16, tab.lsp16, 1, 6, 4, 3, tab.shape16 , 9, 56, 60, 7, 180
00129 };
00130
00131 static const ModeTab mode_22_20 = {
00132 {
00133 { 8, bark_tab_s22_128, 10, tab.fcb22s_1, 1, 6, tab.cb2220s0, tab.cb2220s1, 18},
00134 { 2, bark_tab_m22_512, 20, tab.fcb22m_1, 2, 6, tab.cb2220m0, tab.cb2220m1, 17},
00135 { 1, bark_tab_l22_1024,32, tab.fcb22l_1, 4, 6, tab.cb2220l0, tab.cb2220l1, 18}
00136 },
00137 1024, 16, tab.lsp22_1, 1, 6, 4, 3, tab.shape22_1, 9, 56, 36, 7, 144
00138 };
00139
00140 static const ModeTab mode_22_24 = {
00141 {
00142 { 8, bark_tab_s22_128, 10, tab.fcb22s_1, 1, 6, tab.cb2224s0, tab.cb2224s1, 15},
00143 { 2, bark_tab_m22_512, 20, tab.fcb22m_1, 2, 6, tab.cb2224m0, tab.cb2224m1, 14},
00144 { 1, bark_tab_l22_1024,32, tab.fcb22l_1, 4, 6, tab.cb2224l0, tab.cb2224l1, 15}
00145 },
00146 1024, 16, tab.lsp22_1, 1, 6, 4, 3, tab.shape22_1, 9, 56, 36, 7, 144
00147 };
00148
00149 static const ModeTab mode_22_32 = {
00150 {
00151 { 4, bark_tab_s22_128, 10, tab.fcb22s_2, 1, 6, tab.cb2232s0, tab.cb2232s1, 11},
00152 { 2, bark_tab_m22_256, 20, tab.fcb22m_2, 2, 6, tab.cb2232m0, tab.cb2232m1, 11},
00153 { 1, bark_tab_l22_512, 32, tab.fcb22l_2, 4, 6, tab.cb2232l0, tab.cb2232l1, 12}
00154 },
00155 512 , 16, tab.lsp22_2, 1, 6, 4, 4, tab.shape22_2, 9, 56, 36, 7, 72
00156 };
00157
00158 static const ModeTab mode_44_40 = {
00159 {
00160 {16, bark_tab_s44_128, 10, tab.fcb44s , 1, 6, tab.cb4440s0, tab.cb4440s1, 18},
00161 { 4, bark_tab_m44_512, 20, tab.fcb44m , 2, 6, tab.cb4440m0, tab.cb4440m1, 17},
00162 { 1, bark_tab_l44_2048,40, tab.fcb44l , 4, 6, tab.cb4440l0, tab.cb4440l1, 17}
00163 },
00164 2048, 20, tab.lsp44, 1, 6, 4, 4, tab.shape44 , 9, 84, 54, 7, 432
00165 };
00166
00167 static const ModeTab mode_44_48 = {
00168 {
00169 {16, bark_tab_s44_128, 10, tab.fcb44s , 1, 6, tab.cb4448s0, tab.cb4448s1, 15},
00170 { 4, bark_tab_m44_512, 20, tab.fcb44m , 2, 6, tab.cb4448m0, tab.cb4448m1, 14},
00171 { 1, bark_tab_l44_2048,40, tab.fcb44l , 4, 6, tab.cb4448l0, tab.cb4448l1, 14}
00172 },
00173 2048, 20, tab.lsp44, 1, 6, 4, 4, tab.shape44 , 9, 84, 54, 7, 432
00174 };
00175
00176 typedef struct TwinContext {
00177 AVCodecContext *avctx;
00178 AVFrame frame;
00179 DSPContext dsp;
00180 AVFloatDSPContext fdsp;
00181 FFTContext mdct_ctx[3];
00182
00183 const ModeTab *mtab;
00184
00185
00186 float lsp_hist[2][20];
00187 float bark_hist[3][2][40];
00188
00189
00190 int16_t permut[4][4096];
00191 uint8_t length[4][2];
00192 uint8_t length_change[4];
00193 uint8_t bits_main_spec[2][4][2];
00194 int bits_main_spec_change[4];
00195 int n_div[4];
00196
00197 float *spectrum;
00198 float *curr_frame;
00199 float *prev_frame;
00200 int last_block_pos[2];
00201 int discarded_packets;
00202
00203 float *cos_tabs[3];
00204
00205
00206 float *tmp_buf;
00207 } TwinContext;
00208
00209 #define PPC_SHAPE_CB_SIZE 64
00210 #define PPC_SHAPE_LEN_MAX 60
00211 #define SUB_AMP_MAX 4500.0
00212 #define MULAW_MU 100.0
00213 #define GAIN_BITS 8
00214 #define AMP_MAX 13000.0
00215 #define SUB_GAIN_BITS 5
00216 #define WINDOW_TYPE_BITS 4
00217 #define PGAIN_MU 200
00218 #define LSP_COEFS_MAX 20
00219 #define LSP_SPLIT_MAX 4
00220 #define CHANNELS_MAX 2
00221 #define SUBBLOCKS_MAX 16
00222 #define BARK_N_COEF_MAX 4
00223
00225 static void memset_float(float *buf, float val, int size)
00226 {
00227 while (size--)
00228 *buf++ = val;
00229 }
00230
00243 static float eval_lpc_spectrum(const float *lsp, float cos_val, int order)
00244 {
00245 int j;
00246 float p = 0.5f;
00247 float q = 0.5f;
00248 float two_cos_w = 2.0f*cos_val;
00249
00250 for (j = 0; j + 1 < order; j += 2*2) {
00251
00252 q *= lsp[j ] - two_cos_w;
00253 p *= lsp[j+1] - two_cos_w;
00254
00255 q *= lsp[j+2] - two_cos_w;
00256 p *= lsp[j+3] - two_cos_w;
00257 }
00258
00259 p *= p * (2.0f - two_cos_w);
00260 q *= q * (2.0f + two_cos_w);
00261
00262 return 0.5 / (p + q);
00263 }
00264
00268 static void eval_lpcenv(TwinContext *tctx, const float *cos_vals, float *lpc)
00269 {
00270 int i;
00271 const ModeTab *mtab = tctx->mtab;
00272 int size_s = mtab->size / mtab->fmode[FT_SHORT].sub;
00273
00274 for (i = 0; i < size_s/2; i++) {
00275 float cos_i = tctx->cos_tabs[0][i];
00276 lpc[i] = eval_lpc_spectrum(cos_vals, cos_i, mtab->n_lsp);
00277 lpc[size_s-i-1] = eval_lpc_spectrum(cos_vals, -cos_i, mtab->n_lsp);
00278 }
00279 }
00280
00281 static void interpolate(float *out, float v1, float v2, int size)
00282 {
00283 int i;
00284 float step = (v1 - v2)/(size + 1);
00285
00286 for (i = 0; i < size; i++) {
00287 v2 += step;
00288 out[i] = v2;
00289 }
00290 }
00291
00292 static inline float get_cos(int idx, int part, const float *cos_tab, int size)
00293 {
00294 return part ? -cos_tab[size - idx - 1] :
00295 cos_tab[ idx ];
00296 }
00297
00312 static inline void eval_lpcenv_or_interp(TwinContext *tctx,
00313 enum FrameType ftype,
00314 float *out, const float *in,
00315 int size, int step, int part)
00316 {
00317 int i;
00318 const ModeTab *mtab = tctx->mtab;
00319 const float *cos_tab = tctx->cos_tabs[ftype];
00320
00321
00322 for (i = 0; i < size; i += step)
00323 out[i] =
00324 eval_lpc_spectrum(in,
00325 get_cos(i, part, cos_tab, size),
00326 mtab->n_lsp);
00327
00328
00329 for (i = step; i <= size - 2*step; i += step) {
00330 if (out[i + step] + out[i - step] > 1.95*out[i] ||
00331 out[i + step] >= out[i - step]) {
00332 interpolate(out + i - step + 1, out[i], out[i-step], step - 1);
00333 } else {
00334 out[i - step/2] =
00335 eval_lpc_spectrum(in,
00336 get_cos(i-step/2, part, cos_tab, size),
00337 mtab->n_lsp);
00338 interpolate(out + i - step + 1, out[i-step/2], out[i-step ], step/2 - 1);
00339 interpolate(out + i - step/2 + 1, out[i ], out[i-step/2], step/2 - 1);
00340 }
00341 }
00342
00343 interpolate(out + size - 2*step + 1, out[size-step], out[size - 2*step], step - 1);
00344 }
00345
00346 static void eval_lpcenv_2parts(TwinContext *tctx, enum FrameType ftype,
00347 const float *buf, float *lpc,
00348 int size, int step)
00349 {
00350 eval_lpcenv_or_interp(tctx, ftype, lpc , buf, size/2, step, 0);
00351 eval_lpcenv_or_interp(tctx, ftype, lpc + size/2, buf, size/2, 2*step, 1);
00352
00353 interpolate(lpc+size/2-step+1, lpc[size/2], lpc[size/2-step], step);
00354
00355 memset_float(lpc + size - 2*step + 1, lpc[size - 2*step], 2*step - 1);
00356 }
00357
00363 static void dequant(TwinContext *tctx, GetBitContext *gb, float *out,
00364 enum FrameType ftype,
00365 const int16_t *cb0, const int16_t *cb1, int cb_len)
00366 {
00367 int pos = 0;
00368 int i, j;
00369
00370 for (i = 0; i < tctx->n_div[ftype]; i++) {
00371 int tmp0, tmp1;
00372 int sign0 = 1;
00373 int sign1 = 1;
00374 const int16_t *tab0, *tab1;
00375 int length = tctx->length[ftype][i >= tctx->length_change[ftype]];
00376 int bitstream_second_part = (i >= tctx->bits_main_spec_change[ftype]);
00377
00378 int bits = tctx->bits_main_spec[0][ftype][bitstream_second_part];
00379 if (bits == 7) {
00380 if (get_bits1(gb))
00381 sign0 = -1;
00382 bits = 6;
00383 }
00384 tmp0 = get_bits(gb, bits);
00385
00386 bits = tctx->bits_main_spec[1][ftype][bitstream_second_part];
00387
00388 if (bits == 7) {
00389 if (get_bits1(gb))
00390 sign1 = -1;
00391
00392 bits = 6;
00393 }
00394 tmp1 = get_bits(gb, bits);
00395
00396 tab0 = cb0 + tmp0*cb_len;
00397 tab1 = cb1 + tmp1*cb_len;
00398
00399 for (j = 0; j < length; j++)
00400 out[tctx->permut[ftype][pos+j]] = sign0*tab0[j] + sign1*tab1[j];
00401
00402 pos += length;
00403 }
00404
00405 }
00406
00407 static inline float mulawinv(float y, float clip, float mu)
00408 {
00409 y = av_clipf(y/clip, -1, 1);
00410 return clip * FFSIGN(y) * (exp(log(1+mu) * fabs(y)) - 1) / mu;
00411 }
00412
00433 static int very_broken_op(int a, int b)
00434 {
00435 int x = a*b + 200;
00436 int size;
00437 const uint8_t *rtab;
00438
00439 if (x%400 || b%5)
00440 return x/400;
00441
00442 x /= 400;
00443
00444 size = tabs[b/5].size;
00445 rtab = tabs[b/5].tab;
00446 return x - rtab[size*av_log2(2*(x - 1)/size)+(x - 1)%size];
00447 }
00448
00454 static void add_peak(int period, int width, const float *shape,
00455 float ppc_gain, float *speech, int len)
00456 {
00457 int i, j;
00458
00459 const float *shape_end = shape + len;
00460 int center;
00461
00462
00463 for (i = 0; i < width/2; i++)
00464 speech[i] += ppc_gain * *shape++;
00465
00466 for (i = 1; i < ROUNDED_DIV(len,width) ; i++) {
00467 center = very_broken_op(period, i);
00468 for (j = -width/2; j < (width+1)/2; j++)
00469 speech[j+center] += ppc_gain * *shape++;
00470 }
00471
00472
00473 center = very_broken_op(period, i);
00474 for (j = -width/2; j < (width + 1)/2 && shape < shape_end; j++)
00475 speech[j+center] += ppc_gain * *shape++;
00476 }
00477
00478 static void decode_ppc(TwinContext *tctx, int period_coef, const float *shape,
00479 float ppc_gain, float *speech)
00480 {
00481 const ModeTab *mtab = tctx->mtab;
00482 int isampf = tctx->avctx->sample_rate/1000;
00483 int ibps = tctx->avctx->bit_rate/(1000 * tctx->avctx->channels);
00484 int min_period = ROUNDED_DIV( 40*2*mtab->size, isampf);
00485 int max_period = ROUNDED_DIV(6*40*2*mtab->size, isampf);
00486 int period_range = max_period - min_period;
00487
00488
00489
00490 int period = min_period +
00491 ROUNDED_DIV(period_coef*period_range, (1 << mtab->ppc_period_bit) - 1);
00492 int width;
00493
00494 if (isampf == 22 && ibps == 32) {
00495
00496 width = ROUNDED_DIV((period + 800)* mtab->peak_per2wid, 400*mtab->size);
00497 } else
00498 width = (period )* mtab->peak_per2wid/(400*mtab->size);
00499
00500 add_peak(period, width, shape, ppc_gain, speech, mtab->ppc_shape_len);
00501 }
00502
00503 static void dec_gain(TwinContext *tctx, GetBitContext *gb, enum FrameType ftype,
00504 float *out)
00505 {
00506 const ModeTab *mtab = tctx->mtab;
00507 int i, j;
00508 int sub = mtab->fmode[ftype].sub;
00509 float step = AMP_MAX / ((1 << GAIN_BITS) - 1);
00510 float sub_step = SUB_AMP_MAX / ((1 << SUB_GAIN_BITS) - 1);
00511
00512 if (ftype == FT_LONG) {
00513 for (i = 0; i < tctx->avctx->channels; i++)
00514 out[i] = (1./(1<<13)) *
00515 mulawinv(step * 0.5 + step * get_bits(gb, GAIN_BITS),
00516 AMP_MAX, MULAW_MU);
00517 } else {
00518 for (i = 0; i < tctx->avctx->channels; i++) {
00519 float val = (1./(1<<23)) *
00520 mulawinv(step * 0.5 + step * get_bits(gb, GAIN_BITS),
00521 AMP_MAX, MULAW_MU);
00522
00523 for (j = 0; j < sub; j++) {
00524 out[i*sub + j] =
00525 val*mulawinv(sub_step* 0.5 +
00526 sub_step* get_bits(gb, SUB_GAIN_BITS),
00527 SUB_AMP_MAX, MULAW_MU);
00528 }
00529 }
00530 }
00531 }
00532
00539 static void rearrange_lsp(int order, float *lsp, float min_dist)
00540 {
00541 int i;
00542 float min_dist2 = min_dist * 0.5;
00543 for (i = 1; i < order; i++)
00544 if (lsp[i] - lsp[i-1] < min_dist) {
00545 float avg = (lsp[i] + lsp[i-1]) * 0.5;
00546
00547 lsp[i-1] = avg - min_dist2;
00548 lsp[i ] = avg + min_dist2;
00549 }
00550 }
00551
00552 static void decode_lsp(TwinContext *tctx, int lpc_idx1, uint8_t *lpc_idx2,
00553 int lpc_hist_idx, float *lsp, float *hist)
00554 {
00555 const ModeTab *mtab = tctx->mtab;
00556 int i, j;
00557
00558 const float *cb = mtab->lspcodebook;
00559 const float *cb2 = cb + (1 << mtab->lsp_bit1)*mtab->n_lsp;
00560 const float *cb3 = cb2 + (1 << mtab->lsp_bit2)*mtab->n_lsp;
00561
00562 const int8_t funny_rounding[4] = {
00563 -2,
00564 mtab->lsp_split == 4 ? -2 : 1,
00565 mtab->lsp_split == 4 ? -2 : 1,
00566 0
00567 };
00568
00569 j = 0;
00570 for (i = 0; i < mtab->lsp_split; i++) {
00571 int chunk_end = ((i + 1)*mtab->n_lsp + funny_rounding[i])/mtab->lsp_split;
00572 for (; j < chunk_end; j++)
00573 lsp[j] = cb [lpc_idx1 * mtab->n_lsp + j] +
00574 cb2[lpc_idx2[i] * mtab->n_lsp + j];
00575 }
00576
00577 rearrange_lsp(mtab->n_lsp, lsp, 0.0001);
00578
00579 for (i = 0; i < mtab->n_lsp; i++) {
00580 float tmp1 = 1. - cb3[lpc_hist_idx*mtab->n_lsp + i];
00581 float tmp2 = hist[i] * cb3[lpc_hist_idx*mtab->n_lsp + i];
00582 hist[i] = lsp[i];
00583 lsp[i] = lsp[i] * tmp1 + tmp2;
00584 }
00585
00586 rearrange_lsp(mtab->n_lsp, lsp, 0.0001);
00587 rearrange_lsp(mtab->n_lsp, lsp, 0.000095);
00588 ff_sort_nearly_sorted_floats(lsp, mtab->n_lsp);
00589 }
00590
00591 static void dec_lpc_spectrum_inv(TwinContext *tctx, float *lsp,
00592 enum FrameType ftype, float *lpc)
00593 {
00594 int i;
00595 int size = tctx->mtab->size / tctx->mtab->fmode[ftype].sub;
00596
00597 for (i = 0; i < tctx->mtab->n_lsp; i++)
00598 lsp[i] = 2*cos(lsp[i]);
00599
00600 switch (ftype) {
00601 case FT_LONG:
00602 eval_lpcenv_2parts(tctx, ftype, lsp, lpc, size, 8);
00603 break;
00604 case FT_MEDIUM:
00605 eval_lpcenv_2parts(tctx, ftype, lsp, lpc, size, 2);
00606 break;
00607 case FT_SHORT:
00608 eval_lpcenv(tctx, lsp, lpc);
00609 break;
00610 }
00611 }
00612
00613 static void imdct_and_window(TwinContext *tctx, enum FrameType ftype, int wtype,
00614 float *in, float *prev, int ch)
00615 {
00616 FFTContext *mdct = &tctx->mdct_ctx[ftype];
00617 const ModeTab *mtab = tctx->mtab;
00618 int bsize = mtab->size / mtab->fmode[ftype].sub;
00619 int size = mtab->size;
00620 float *buf1 = tctx->tmp_buf;
00621 int j;
00622 int wsize;
00623 float *out = tctx->curr_frame + 2*ch*mtab->size;
00624 float *out2 = out;
00625 float *prev_buf;
00626 int first_wsize;
00627
00628 static const uint8_t wtype_to_wsize[] = {0, 0, 2, 2, 2, 1, 0, 1, 1};
00629 int types_sizes[] = {
00630 mtab->size / mtab->fmode[FT_LONG ].sub,
00631 mtab->size / mtab->fmode[FT_MEDIUM].sub,
00632 mtab->size / (2*mtab->fmode[FT_SHORT ].sub),
00633 };
00634
00635 wsize = types_sizes[wtype_to_wsize[wtype]];
00636 first_wsize = wsize;
00637 prev_buf = prev + (size - bsize)/2;
00638
00639 for (j = 0; j < mtab->fmode[ftype].sub; j++) {
00640 int sub_wtype = ftype == FT_MEDIUM ? 8 : wtype;
00641
00642 if (!j && wtype == 4)
00643 sub_wtype = 4;
00644 else if (j == mtab->fmode[ftype].sub-1 && wtype == 7)
00645 sub_wtype = 7;
00646
00647 wsize = types_sizes[wtype_to_wsize[sub_wtype]];
00648
00649 mdct->imdct_half(mdct, buf1 + bsize*j, in + bsize*j);
00650
00651 tctx->dsp.vector_fmul_window(out2,
00652 prev_buf + (bsize-wsize)/2,
00653 buf1 + bsize*j,
00654 ff_sine_windows[av_log2(wsize)],
00655 wsize/2);
00656 out2 += wsize;
00657
00658 memcpy(out2, buf1 + bsize*j + wsize/2, (bsize - wsize/2)*sizeof(float));
00659
00660 out2 += ftype == FT_MEDIUM ? (bsize-wsize)/2 : bsize - wsize;
00661
00662 prev_buf = buf1 + bsize*j + bsize/2;
00663 }
00664
00665 tctx->last_block_pos[ch] = (size + first_wsize)/2;
00666 }
00667
00668 static void imdct_output(TwinContext *tctx, enum FrameType ftype, int wtype,
00669 float *out)
00670 {
00671 const ModeTab *mtab = tctx->mtab;
00672 int size1, size2;
00673 float *prev_buf = tctx->prev_frame + tctx->last_block_pos[0];
00674 int i;
00675
00676 for (i = 0; i < tctx->avctx->channels; i++) {
00677 imdct_and_window(tctx, ftype, wtype,
00678 tctx->spectrum + i*mtab->size,
00679 prev_buf + 2*i*mtab->size,
00680 i);
00681 }
00682
00683 if (!out)
00684 return;
00685
00686 size2 = tctx->last_block_pos[0];
00687 size1 = mtab->size - size2;
00688 if (tctx->avctx->channels == 2) {
00689 tctx->dsp.butterflies_float_interleave(out, prev_buf,
00690 &prev_buf[2*mtab->size],
00691 size1);
00692
00693 out += 2 * size1;
00694
00695 tctx->dsp.butterflies_float_interleave(out, tctx->curr_frame,
00696 &tctx->curr_frame[2*mtab->size],
00697 size2);
00698 } else {
00699 memcpy(out, prev_buf, size1 * sizeof(*out));
00700
00701 out += size1;
00702
00703 memcpy(out, tctx->curr_frame, size2 * sizeof(*out));
00704 }
00705
00706 }
00707
00708 static void dec_bark_env(TwinContext *tctx, const uint8_t *in, int use_hist,
00709 int ch, float *out, float gain, enum FrameType ftype)
00710 {
00711 const ModeTab *mtab = tctx->mtab;
00712 int i,j;
00713 float *hist = tctx->bark_hist[ftype][ch];
00714 float val = ((const float []) {0.4, 0.35, 0.28})[ftype];
00715 int bark_n_coef = mtab->fmode[ftype].bark_n_coef;
00716 int fw_cb_len = mtab->fmode[ftype].bark_env_size / bark_n_coef;
00717 int idx = 0;
00718
00719 for (i = 0; i < fw_cb_len; i++)
00720 for (j = 0; j < bark_n_coef; j++, idx++) {
00721 float tmp2 =
00722 mtab->fmode[ftype].bark_cb[fw_cb_len*in[j] + i] * (1./4096);
00723 float st = use_hist ?
00724 (1. - val) * tmp2 + val*hist[idx] + 1. : tmp2 + 1.;
00725
00726 hist[idx] = tmp2;
00727 if (st < -1.) st = 1.;
00728
00729 memset_float(out, st * gain, mtab->fmode[ftype].bark_tab[idx]);
00730 out += mtab->fmode[ftype].bark_tab[idx];
00731 }
00732
00733 }
00734
00735 static void read_and_decode_spectrum(TwinContext *tctx, GetBitContext *gb,
00736 float *out, enum FrameType ftype)
00737 {
00738 const ModeTab *mtab = tctx->mtab;
00739 int channels = tctx->avctx->channels;
00740 int sub = mtab->fmode[ftype].sub;
00741 int block_size = mtab->size / sub;
00742 float gain[CHANNELS_MAX*SUBBLOCKS_MAX];
00743 float ppc_shape[PPC_SHAPE_LEN_MAX * CHANNELS_MAX * 4];
00744 uint8_t bark1[CHANNELS_MAX][SUBBLOCKS_MAX][BARK_N_COEF_MAX];
00745 uint8_t bark_use_hist[CHANNELS_MAX][SUBBLOCKS_MAX];
00746
00747 uint8_t lpc_idx1[CHANNELS_MAX];
00748 uint8_t lpc_idx2[CHANNELS_MAX][LSP_SPLIT_MAX];
00749 uint8_t lpc_hist_idx[CHANNELS_MAX];
00750
00751 int i, j, k;
00752
00753 dequant(tctx, gb, out, ftype,
00754 mtab->fmode[ftype].cb0, mtab->fmode[ftype].cb1,
00755 mtab->fmode[ftype].cb_len_read);
00756
00757 for (i = 0; i < channels; i++)
00758 for (j = 0; j < sub; j++)
00759 for (k = 0; k < mtab->fmode[ftype].bark_n_coef; k++)
00760 bark1[i][j][k] =
00761 get_bits(gb, mtab->fmode[ftype].bark_n_bit);
00762
00763 for (i = 0; i < channels; i++)
00764 for (j = 0; j < sub; j++)
00765 bark_use_hist[i][j] = get_bits1(gb);
00766
00767 dec_gain(tctx, gb, ftype, gain);
00768
00769 for (i = 0; i < channels; i++) {
00770 lpc_hist_idx[i] = get_bits(gb, tctx->mtab->lsp_bit0);
00771 lpc_idx1 [i] = get_bits(gb, tctx->mtab->lsp_bit1);
00772
00773 for (j = 0; j < tctx->mtab->lsp_split; j++)
00774 lpc_idx2[i][j] = get_bits(gb, tctx->mtab->lsp_bit2);
00775 }
00776
00777 if (ftype == FT_LONG) {
00778 int cb_len_p = (tctx->n_div[3] + mtab->ppc_shape_len*channels - 1)/
00779 tctx->n_div[3];
00780 dequant(tctx, gb, ppc_shape, FT_PPC, mtab->ppc_shape_cb,
00781 mtab->ppc_shape_cb + cb_len_p*PPC_SHAPE_CB_SIZE, cb_len_p);
00782 }
00783
00784 for (i = 0; i < channels; i++) {
00785 float *chunk = out + mtab->size * i;
00786 float lsp[LSP_COEFS_MAX];
00787
00788 for (j = 0; j < sub; j++) {
00789 dec_bark_env(tctx, bark1[i][j], bark_use_hist[i][j], i,
00790 tctx->tmp_buf, gain[sub*i+j], ftype);
00791
00792 tctx->fdsp.vector_fmul(chunk + block_size*j, chunk + block_size*j,
00793 tctx->tmp_buf, block_size);
00794
00795 }
00796
00797 if (ftype == FT_LONG) {
00798 float pgain_step = 25000. / ((1 << mtab->pgain_bit) - 1);
00799 int p_coef = get_bits(gb, tctx->mtab->ppc_period_bit);
00800 int g_coef = get_bits(gb, tctx->mtab->pgain_bit);
00801 float v = 1./8192*
00802 mulawinv(pgain_step*g_coef+ pgain_step/2, 25000., PGAIN_MU);
00803
00804 decode_ppc(tctx, p_coef, ppc_shape + i*mtab->ppc_shape_len, v,
00805 chunk);
00806 }
00807
00808 decode_lsp(tctx, lpc_idx1[i], lpc_idx2[i], lpc_hist_idx[i], lsp,
00809 tctx->lsp_hist[i]);
00810
00811 dec_lpc_spectrum_inv(tctx, lsp, ftype, tctx->tmp_buf);
00812
00813 for (j = 0; j < mtab->fmode[ftype].sub; j++) {
00814 tctx->fdsp.vector_fmul(chunk, chunk, tctx->tmp_buf, block_size);
00815 chunk += block_size;
00816 }
00817 }
00818 }
00819
00820 static int twin_decode_frame(AVCodecContext * avctx, void *data,
00821 int *got_frame_ptr, AVPacket *avpkt)
00822 {
00823 const uint8_t *buf = avpkt->data;
00824 int buf_size = avpkt->size;
00825 TwinContext *tctx = avctx->priv_data;
00826 GetBitContext gb;
00827 const ModeTab *mtab = tctx->mtab;
00828 float *out = NULL;
00829 enum FrameType ftype;
00830 int window_type, ret;
00831 static const enum FrameType wtype_to_ftype_table[] = {
00832 FT_LONG, FT_LONG, FT_SHORT, FT_LONG,
00833 FT_MEDIUM, FT_LONG, FT_LONG, FT_MEDIUM, FT_MEDIUM
00834 };
00835
00836 if (buf_size*8 < avctx->bit_rate*mtab->size/avctx->sample_rate + 8) {
00837 av_log(avctx, AV_LOG_ERROR,
00838 "Frame too small (%d bytes). Truncated file?\n", buf_size);
00839 return AVERROR(EINVAL);
00840 }
00841
00842
00843 if (tctx->discarded_packets >= 2) {
00844 tctx->frame.nb_samples = mtab->size;
00845 if ((ret = avctx->get_buffer(avctx, &tctx->frame)) < 0) {
00846 av_log(avctx, AV_LOG_ERROR, "get_buffer() failed\n");
00847 return ret;
00848 }
00849 out = (float *)tctx->frame.data[0];
00850 }
00851
00852 init_get_bits(&gb, buf, buf_size * 8);
00853 skip_bits(&gb, get_bits(&gb, 8));
00854 window_type = get_bits(&gb, WINDOW_TYPE_BITS);
00855
00856 if (window_type > 8) {
00857 av_log(avctx, AV_LOG_ERROR, "Invalid window type, broken sample?\n");
00858 return -1;
00859 }
00860
00861 ftype = wtype_to_ftype_table[window_type];
00862
00863 read_and_decode_spectrum(tctx, &gb, tctx->spectrum, ftype);
00864
00865 imdct_output(tctx, ftype, window_type, out);
00866
00867 FFSWAP(float*, tctx->curr_frame, tctx->prev_frame);
00868
00869 if (tctx->discarded_packets < 2) {
00870 tctx->discarded_packets++;
00871 *got_frame_ptr = 0;
00872 return buf_size;
00873 }
00874
00875 *got_frame_ptr = 1;
00876 *(AVFrame *)data = tctx->frame;
00877
00878 return buf_size;
00879 }
00880
00884 static av_cold int init_mdct_win(TwinContext *tctx)
00885 {
00886 int i, j, ret;
00887 const ModeTab *mtab = tctx->mtab;
00888 int size_s = mtab->size / mtab->fmode[FT_SHORT].sub;
00889 int size_m = mtab->size / mtab->fmode[FT_MEDIUM].sub;
00890 int channels = tctx->avctx->channels;
00891 float norm = channels == 1 ? 2. : 1.;
00892
00893 for (i = 0; i < 3; i++) {
00894 int bsize = tctx->mtab->size/tctx->mtab->fmode[i].sub;
00895 if ((ret = ff_mdct_init(&tctx->mdct_ctx[i], av_log2(bsize) + 1, 1,
00896 -sqrt(norm/bsize) / (1<<15))))
00897 return ret;
00898 }
00899
00900 FF_ALLOC_OR_GOTO(tctx->avctx, tctx->tmp_buf,
00901 mtab->size * sizeof(*tctx->tmp_buf), alloc_fail);
00902
00903 FF_ALLOC_OR_GOTO(tctx->avctx, tctx->spectrum,
00904 2 * mtab->size * channels * sizeof(*tctx->spectrum),
00905 alloc_fail);
00906 FF_ALLOC_OR_GOTO(tctx->avctx, tctx->curr_frame,
00907 2 * mtab->size * channels * sizeof(*tctx->curr_frame),
00908 alloc_fail);
00909 FF_ALLOC_OR_GOTO(tctx->avctx, tctx->prev_frame,
00910 2 * mtab->size * channels * sizeof(*tctx->prev_frame),
00911 alloc_fail);
00912
00913 for (i = 0; i < 3; i++) {
00914 int m = 4*mtab->size/mtab->fmode[i].sub;
00915 double freq = 2*M_PI/m;
00916 FF_ALLOC_OR_GOTO(tctx->avctx, tctx->cos_tabs[i],
00917 (m / 4) * sizeof(*tctx->cos_tabs[i]), alloc_fail);
00918
00919 for (j = 0; j <= m/8; j++)
00920 tctx->cos_tabs[i][j] = cos((2*j + 1)*freq);
00921 for (j = 1; j < m/8; j++)
00922 tctx->cos_tabs[i][m/4-j] = tctx->cos_tabs[i][j];
00923 }
00924
00925
00926 ff_init_ff_sine_windows(av_log2(size_m));
00927 ff_init_ff_sine_windows(av_log2(size_s/2));
00928 ff_init_ff_sine_windows(av_log2(mtab->size));
00929
00930 return 0;
00931 alloc_fail:
00932 return AVERROR(ENOMEM);
00933 }
00934
00941 static void permutate_in_line(int16_t *tab, int num_vect, int num_blocks,
00942 int block_size,
00943 const uint8_t line_len[2], int length_div,
00944 enum FrameType ftype)
00945
00946 {
00947 int i,j;
00948
00949 for (i = 0; i < line_len[0]; i++) {
00950 int shift;
00951
00952 if (num_blocks == 1 ||
00953 (ftype == FT_LONG && num_vect % num_blocks) ||
00954 (ftype != FT_LONG && num_vect & 1 ) ||
00955 i == line_len[1]) {
00956 shift = 0;
00957 } else if (ftype == FT_LONG) {
00958 shift = i;
00959 } else
00960 shift = i*i;
00961
00962 for (j = 0; j < num_vect && (j+num_vect*i < block_size*num_blocks); j++)
00963 tab[i*num_vect+j] = i*num_vect + (j + shift) % num_vect;
00964 }
00965 }
00966
00982 static void transpose_perm(int16_t *out, int16_t *in, int num_vect,
00983 const uint8_t line_len[2], int length_div)
00984 {
00985 int i,j;
00986 int cont= 0;
00987 for (i = 0; i < num_vect; i++)
00988 for (j = 0; j < line_len[i >= length_div]; j++)
00989 out[cont++] = in[j*num_vect + i];
00990 }
00991
00992 static void linear_perm(int16_t *out, int16_t *in, int n_blocks, int size)
00993 {
00994 int block_size = size/n_blocks;
00995 int i;
00996
00997 for (i = 0; i < size; i++)
00998 out[i] = block_size * (in[i] % n_blocks) + in[i] / n_blocks;
00999 }
01000
01001 static av_cold void construct_perm_table(TwinContext *tctx,enum FrameType ftype)
01002 {
01003 int block_size;
01004 const ModeTab *mtab = tctx->mtab;
01005 int size;
01006 int16_t *tmp_perm = (int16_t *) tctx->tmp_buf;
01007
01008 if (ftype == FT_PPC) {
01009 size = tctx->avctx->channels;
01010 block_size = mtab->ppc_shape_len;
01011 } else {
01012 size = tctx->avctx->channels * mtab->fmode[ftype].sub;
01013 block_size = mtab->size / mtab->fmode[ftype].sub;
01014 }
01015
01016 permutate_in_line(tmp_perm, tctx->n_div[ftype], size,
01017 block_size, tctx->length[ftype],
01018 tctx->length_change[ftype], ftype);
01019
01020 transpose_perm(tctx->permut[ftype], tmp_perm, tctx->n_div[ftype],
01021 tctx->length[ftype], tctx->length_change[ftype]);
01022
01023 linear_perm(tctx->permut[ftype], tctx->permut[ftype], size,
01024 size*block_size);
01025 }
01026
01027 static av_cold void init_bitstream_params(TwinContext *tctx)
01028 {
01029 const ModeTab *mtab = tctx->mtab;
01030 int n_ch = tctx->avctx->channels;
01031 int total_fr_bits = tctx->avctx->bit_rate*mtab->size/
01032 tctx->avctx->sample_rate;
01033
01034 int lsp_bits_per_block = n_ch*(mtab->lsp_bit0 + mtab->lsp_bit1 +
01035 mtab->lsp_split*mtab->lsp_bit2);
01036
01037 int ppc_bits = n_ch*(mtab->pgain_bit + mtab->ppc_shape_bit +
01038 mtab->ppc_period_bit);
01039
01040 int bsize_no_main_cb[3];
01041 int bse_bits[3];
01042 int i;
01043 enum FrameType frametype;
01044
01045 for (i = 0; i < 3; i++)
01046
01047 bse_bits[i] = n_ch *
01048 (mtab->fmode[i].bark_n_coef * mtab->fmode[i].bark_n_bit + 1);
01049
01050 bsize_no_main_cb[2] = bse_bits[2] + lsp_bits_per_block + ppc_bits +
01051 WINDOW_TYPE_BITS + n_ch*GAIN_BITS;
01052
01053 for (i = 0; i < 2; i++)
01054 bsize_no_main_cb[i] =
01055 lsp_bits_per_block + n_ch*GAIN_BITS + WINDOW_TYPE_BITS +
01056 mtab->fmode[i].sub*(bse_bits[i] + n_ch*SUB_GAIN_BITS);
01057
01058
01059 for (i = 0; i < 4; i++) {
01060 int bit_size;
01061 int vect_size;
01062 int rounded_up, rounded_down, num_rounded_down, num_rounded_up;
01063 if (i == 3) {
01064 bit_size = n_ch * mtab->ppc_shape_bit;
01065 vect_size = n_ch * mtab->ppc_shape_len;
01066 } else {
01067 bit_size = total_fr_bits - bsize_no_main_cb[i];
01068 vect_size = n_ch * mtab->size;
01069 }
01070
01071 tctx->n_div[i] = (bit_size + 13) / 14;
01072
01073 rounded_up = (bit_size + tctx->n_div[i] - 1)/tctx->n_div[i];
01074 rounded_down = (bit_size )/tctx->n_div[i];
01075 num_rounded_down = rounded_up * tctx->n_div[i] - bit_size;
01076 num_rounded_up = tctx->n_div[i] - num_rounded_down;
01077 tctx->bits_main_spec[0][i][0] = (rounded_up + 1)/2;
01078 tctx->bits_main_spec[1][i][0] = (rounded_up )/2;
01079 tctx->bits_main_spec[0][i][1] = (rounded_down + 1)/2;
01080 tctx->bits_main_spec[1][i][1] = (rounded_down )/2;
01081 tctx->bits_main_spec_change[i] = num_rounded_up;
01082
01083 rounded_up = (vect_size + tctx->n_div[i] - 1)/tctx->n_div[i];
01084 rounded_down = (vect_size )/tctx->n_div[i];
01085 num_rounded_down = rounded_up * tctx->n_div[i] - vect_size;
01086 num_rounded_up = tctx->n_div[i] - num_rounded_down;
01087 tctx->length[i][0] = rounded_up;
01088 tctx->length[i][1] = rounded_down;
01089 tctx->length_change[i] = num_rounded_up;
01090 }
01091
01092 for (frametype = FT_SHORT; frametype <= FT_PPC; frametype++)
01093 construct_perm_table(tctx, frametype);
01094 }
01095
01096 static av_cold int twin_decode_close(AVCodecContext *avctx)
01097 {
01098 TwinContext *tctx = avctx->priv_data;
01099 int i;
01100
01101 for (i = 0; i < 3; i++) {
01102 ff_mdct_end(&tctx->mdct_ctx[i]);
01103 av_free(tctx->cos_tabs[i]);
01104 }
01105
01106
01107 av_free(tctx->curr_frame);
01108 av_free(tctx->spectrum);
01109 av_free(tctx->prev_frame);
01110 av_free(tctx->tmp_buf);
01111
01112 return 0;
01113 }
01114
01115 static av_cold int twin_decode_init(AVCodecContext *avctx)
01116 {
01117 int ret;
01118 TwinContext *tctx = avctx->priv_data;
01119 int isampf, ibps;
01120
01121 tctx->avctx = avctx;
01122 avctx->sample_fmt = AV_SAMPLE_FMT_FLT;
01123
01124 if (!avctx->extradata || avctx->extradata_size < 12) {
01125 av_log(avctx, AV_LOG_ERROR, "Missing or incomplete extradata\n");
01126 return AVERROR_INVALIDDATA;
01127 }
01128 avctx->channels = AV_RB32(avctx->extradata ) + 1;
01129 avctx->bit_rate = AV_RB32(avctx->extradata + 4) * 1000;
01130 isampf = AV_RB32(avctx->extradata + 8);
01131 switch (isampf) {
01132 case 44: avctx->sample_rate = 44100; break;
01133 case 22: avctx->sample_rate = 22050; break;
01134 case 11: avctx->sample_rate = 11025; break;
01135 default: avctx->sample_rate = isampf * 1000; break;
01136 }
01137
01138 if (avctx->channels > CHANNELS_MAX) {
01139 av_log(avctx, AV_LOG_ERROR, "Unsupported number of channels: %i\n",
01140 avctx->channels);
01141 return -1;
01142 }
01143 ibps = avctx->bit_rate / (1000 * avctx->channels);
01144
01145 switch ((isampf << 8) + ibps) {
01146 case (8 <<8) + 8: tctx->mtab = &mode_08_08; break;
01147 case (11<<8) + 8: tctx->mtab = &mode_11_08; break;
01148 case (11<<8) + 10: tctx->mtab = &mode_11_10; break;
01149 case (16<<8) + 16: tctx->mtab = &mode_16_16; break;
01150 case (22<<8) + 20: tctx->mtab = &mode_22_20; break;
01151 case (22<<8) + 24: tctx->mtab = &mode_22_24; break;
01152 case (22<<8) + 32: tctx->mtab = &mode_22_32; break;
01153 case (44<<8) + 40: tctx->mtab = &mode_44_40; break;
01154 case (44<<8) + 48: tctx->mtab = &mode_44_48; break;
01155 default:
01156 av_log(avctx, AV_LOG_ERROR, "This version does not support %d kHz - %d kbit/s/ch mode.\n", isampf, isampf);
01157 return -1;
01158 }
01159
01160 ff_dsputil_init(&tctx->dsp, avctx);
01161 avpriv_float_dsp_init(&tctx->fdsp, avctx->flags & CODEC_FLAG_BITEXACT);
01162 if ((ret = init_mdct_win(tctx))) {
01163 av_log(avctx, AV_LOG_ERROR, "Error initializing MDCT\n");
01164 twin_decode_close(avctx);
01165 return ret;
01166 }
01167 init_bitstream_params(tctx);
01168
01169 memset_float(tctx->bark_hist[0][0], 0.1, FF_ARRAY_ELEMS(tctx->bark_hist));
01170
01171 avcodec_get_frame_defaults(&tctx->frame);
01172 avctx->coded_frame = &tctx->frame;
01173
01174 return 0;
01175 }
01176
01177 AVCodec ff_twinvq_decoder = {
01178 .name = "twinvq",
01179 .type = AVMEDIA_TYPE_AUDIO,
01180 .id = AV_CODEC_ID_TWINVQ,
01181 .priv_data_size = sizeof(TwinContext),
01182 .init = twin_decode_init,
01183 .close = twin_decode_close,
01184 .decode = twin_decode_frame,
01185 .capabilities = CODEC_CAP_DR1,
01186 .long_name = NULL_IF_CONFIG_SMALL("VQF TwinVQ"),
01187 };