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00024 #include <math.h>
00025 #include <stdint.h>
00026 #include <string.h>
00027 
00028 #include "libavutil/mathematics.h"
00029 #include "avcodec.h"
00030 #define BITSTREAM_READER_LE
00031 #include "get_bits.h"
00032 #include "dsputil.h"
00033 
00034 #include "lsp.h"
00035 #include "acelp_vectors.h"
00036 #include "acelp_pitch_delay.h"
00037 #include "acelp_filters.h"
00038 #include "celp_filters.h"
00039 
00040 #define MAX_SUBFRAME_COUNT   5
00041 
00042 #include "sipr.h"
00043 #include "siprdata.h"
00044 
00045 typedef struct {
00046     const char *mode_name;
00047     uint16_t bits_per_frame;
00048     uint8_t subframe_count;
00049     uint8_t frames_per_packet;
00050     float pitch_sharp_factor;
00051 
00052     
00053     uint8_t number_of_fc_indexes;
00054     uint8_t ma_predictor_bits;  
00055 
00057     uint8_t vq_indexes_bits[5];
00058 
00060     uint8_t pitch_delay_bits[5];
00061 
00062     uint8_t gp_index_bits;
00063     uint8_t fc_index_bits[10]; 
00064     uint8_t gc_index_bits;     
00065 } SiprModeParam;
00066 
00067 static const SiprModeParam modes[MODE_COUNT] = {
00068     [MODE_16k] = {
00069         .mode_name          = "16k",
00070         .bits_per_frame     = 160,
00071         .subframe_count     = SUBFRAME_COUNT_16k,
00072         .frames_per_packet  = 1,
00073         .pitch_sharp_factor = 0.00,
00074 
00075         .number_of_fc_indexes = 10,
00076         .ma_predictor_bits    = 1,
00077         .vq_indexes_bits      = {7, 8, 7, 7, 7},
00078         .pitch_delay_bits     = {9, 6},
00079         .gp_index_bits        = 4,
00080         .fc_index_bits        = {4, 5, 4, 5, 4, 5, 4, 5, 4, 5},
00081         .gc_index_bits        = 5
00082     },
00083 
00084     [MODE_8k5] = {
00085         .mode_name          = "8k5",
00086         .bits_per_frame     = 152,
00087         .subframe_count     = 3,
00088         .frames_per_packet  = 1,
00089         .pitch_sharp_factor = 0.8,
00090 
00091         .number_of_fc_indexes = 3,
00092         .ma_predictor_bits    = 0,
00093         .vq_indexes_bits      = {6, 7, 7, 7, 5},
00094         .pitch_delay_bits     = {8, 5, 5},
00095         .gp_index_bits        = 0,
00096         .fc_index_bits        = {9, 9, 9},
00097         .gc_index_bits        = 7
00098     },
00099 
00100     [MODE_6k5] = {
00101         .mode_name          = "6k5",
00102         .bits_per_frame     = 232,
00103         .subframe_count     = 3,
00104         .frames_per_packet  = 2,
00105         .pitch_sharp_factor = 0.8,
00106 
00107         .number_of_fc_indexes = 3,
00108         .ma_predictor_bits    = 0,
00109         .vq_indexes_bits      = {6, 7, 7, 7, 5},
00110         .pitch_delay_bits     = {8, 5, 5},
00111         .gp_index_bits        = 0,
00112         .fc_index_bits        = {5, 5, 5},
00113         .gc_index_bits        = 7
00114     },
00115 
00116     [MODE_5k0] = {
00117         .mode_name          = "5k0",
00118         .bits_per_frame     = 296,
00119         .subframe_count     = 5,
00120         .frames_per_packet  = 2,
00121         .pitch_sharp_factor = 0.85,
00122 
00123         .number_of_fc_indexes = 1,
00124         .ma_predictor_bits    = 0,
00125         .vq_indexes_bits      = {6, 7, 7, 7, 5},
00126         .pitch_delay_bits     = {8, 5, 8, 5, 5},
00127         .gp_index_bits        = 0,
00128         .fc_index_bits        = {10},
00129         .gc_index_bits        = 7
00130     }
00131 };
00132 
00133 const float ff_pow_0_5[] = {
00134     1.0/(1 <<  1), 1.0/(1 <<  2), 1.0/(1 <<  3), 1.0/(1 <<  4),
00135     1.0/(1 <<  5), 1.0/(1 <<  6), 1.0/(1 <<  7), 1.0/(1 <<  8),
00136     1.0/(1 <<  9), 1.0/(1 << 10), 1.0/(1 << 11), 1.0/(1 << 12),
00137     1.0/(1 << 13), 1.0/(1 << 14), 1.0/(1 << 15), 1.0/(1 << 16)
00138 };
00139 
00140 static void dequant(float *out, const int *idx, const float *cbs[])
00141 {
00142     int i;
00143     int stride  = 2;
00144     int num_vec = 5;
00145 
00146     for (i = 0; i < num_vec; i++)
00147         memcpy(out + stride*i, cbs[i] + stride*idx[i], stride*sizeof(float));
00148 
00149 }
00150 
00151 static void lsf_decode_fp(float *lsfnew, float *lsf_history,
00152                           const SiprParameters *parm)
00153 {
00154     int i;
00155     float lsf_tmp[LP_FILTER_ORDER];
00156 
00157     dequant(lsf_tmp, parm->vq_indexes, lsf_codebooks);
00158 
00159     for (i = 0; i < LP_FILTER_ORDER; i++)
00160         lsfnew[i] = lsf_history[i] * 0.33 + lsf_tmp[i] + mean_lsf[i];
00161 
00162     ff_sort_nearly_sorted_floats(lsfnew, LP_FILTER_ORDER - 1);
00163 
00164     
00165 
00166     ff_set_min_dist_lsf(lsfnew, LSFQ_DIFF_MIN, LP_FILTER_ORDER - 1);
00167     lsfnew[9] = FFMIN(lsfnew[LP_FILTER_ORDER - 1], 1.3 * M_PI);
00168 
00169     memcpy(lsf_history, lsf_tmp, LP_FILTER_ORDER * sizeof(*lsf_history));
00170 
00171     for (i = 0; i < LP_FILTER_ORDER - 1; i++)
00172         lsfnew[i] = cos(lsfnew[i]);
00173     lsfnew[LP_FILTER_ORDER - 1] *= 6.153848 / M_PI;
00174 }
00175 
00177 static void pitch_sharpening(int pitch_lag_int, float beta,
00178                              float *fixed_vector)
00179 {
00180     int i;
00181 
00182     for (i = pitch_lag_int; i < SUBFR_SIZE; i++)
00183         fixed_vector[i] += beta * fixed_vector[i - pitch_lag_int];
00184 }
00185 
00191 static void decode_parameters(SiprParameters* parms, GetBitContext *pgb,
00192                               const SiprModeParam *p)
00193 {
00194     int i, j;
00195 
00196     if (p->ma_predictor_bits)
00197         parms->ma_pred_switch       = get_bits(pgb, p->ma_predictor_bits);
00198 
00199     for (i = 0; i < 5; i++)
00200         parms->vq_indexes[i]        = get_bits(pgb, p->vq_indexes_bits[i]);
00201 
00202     for (i = 0; i < p->subframe_count; i++) {
00203         parms->pitch_delay[i]       = get_bits(pgb, p->pitch_delay_bits[i]);
00204         if (p->gp_index_bits)
00205             parms->gp_index[i]      = get_bits(pgb, p->gp_index_bits);
00206 
00207         for (j = 0; j < p->number_of_fc_indexes; j++)
00208             parms->fc_indexes[i][j] = get_bits(pgb, p->fc_index_bits[j]);
00209 
00210         parms->gc_index[i]          = get_bits(pgb, p->gc_index_bits);
00211     }
00212 }
00213 
00214 static void sipr_decode_lp(float *lsfnew, const float *lsfold, float *Az,
00215                            int num_subfr)
00216 {
00217     double lsfint[LP_FILTER_ORDER];
00218     int i,j;
00219     float t, t0 = 1.0 / num_subfr;
00220 
00221     t = t0 * 0.5;
00222     for (i = 0; i < num_subfr; i++) {
00223         for (j = 0; j < LP_FILTER_ORDER; j++)
00224             lsfint[j] = lsfold[j] * (1 - t) + t * lsfnew[j];
00225 
00226         ff_amrwb_lsp2lpc(lsfint, Az, LP_FILTER_ORDER);
00227         Az += LP_FILTER_ORDER;
00228         t += t0;
00229     }
00230 }
00231 
00235 static void eval_ir(const float *Az, int pitch_lag, float *freq,
00236                     float pitch_sharp_factor)
00237 {
00238     float tmp1[SUBFR_SIZE+1], tmp2[LP_FILTER_ORDER+1];
00239     int i;
00240 
00241     tmp1[0] = 1.;
00242     for (i = 0; i < LP_FILTER_ORDER; i++) {
00243         tmp1[i+1] = Az[i] * ff_pow_0_55[i];
00244         tmp2[i  ] = Az[i] * ff_pow_0_7 [i];
00245     }
00246     memset(tmp1 + 11, 0, 37 * sizeof(float));
00247 
00248     ff_celp_lp_synthesis_filterf(freq, tmp2, tmp1, SUBFR_SIZE,
00249                                  LP_FILTER_ORDER);
00250 
00251     pitch_sharpening(pitch_lag, pitch_sharp_factor, freq);
00252 }
00253 
00257 static void convolute_with_sparse(float *out, const AMRFixed *pulses,
00258                                   const float *shape, int length)
00259 {
00260     int i, j;
00261 
00262     memset(out, 0, length*sizeof(float));
00263     for (i = 0; i < pulses->n; i++)
00264         for (j = pulses->x[i]; j < length; j++)
00265             out[j] += pulses->y[i] * shape[j - pulses->x[i]];
00266 }
00267 
00271 static void postfilter_5k0(SiprContext *ctx, const float *lpc, float *samples)
00272 {
00273     float buf[SUBFR_SIZE + LP_FILTER_ORDER];
00274     float *pole_out = buf + LP_FILTER_ORDER;
00275     float lpc_n[LP_FILTER_ORDER];
00276     float lpc_d[LP_FILTER_ORDER];
00277     int i;
00278 
00279     for (i = 0; i < LP_FILTER_ORDER; i++) {
00280         lpc_d[i] = lpc[i] * ff_pow_0_75[i];
00281         lpc_n[i] = lpc[i] * ff_pow_0_5 [i];
00282     };
00283 
00284     memcpy(pole_out - LP_FILTER_ORDER, ctx->postfilter_mem,
00285            LP_FILTER_ORDER*sizeof(float));
00286 
00287     ff_celp_lp_synthesis_filterf(pole_out, lpc_d, samples, SUBFR_SIZE,
00288                                  LP_FILTER_ORDER);
00289 
00290     memcpy(ctx->postfilter_mem, pole_out + SUBFR_SIZE - LP_FILTER_ORDER,
00291            LP_FILTER_ORDER*sizeof(float));
00292 
00293     ff_tilt_compensation(&ctx->tilt_mem, 0.4, pole_out, SUBFR_SIZE);
00294 
00295     memcpy(pole_out - LP_FILTER_ORDER, ctx->postfilter_mem5k0,
00296            LP_FILTER_ORDER*sizeof(*pole_out));
00297 
00298     memcpy(ctx->postfilter_mem5k0, pole_out + SUBFR_SIZE - LP_FILTER_ORDER,
00299            LP_FILTER_ORDER*sizeof(*pole_out));
00300 
00301     ff_celp_lp_zero_synthesis_filterf(samples, lpc_n, pole_out, SUBFR_SIZE,
00302                                       LP_FILTER_ORDER);
00303 
00304 }
00305 
00306 static void decode_fixed_sparse(AMRFixed *fixed_sparse, const int16_t *pulses,
00307                                 SiprMode mode, int low_gain)
00308 {
00309     int i;
00310 
00311     switch (mode) {
00312     case MODE_6k5:
00313         for (i = 0; i < 3; i++) {
00314             fixed_sparse->x[i] = 3 * (pulses[i] & 0xf) + i;
00315             fixed_sparse->y[i] = pulses[i] & 0x10 ? -1 : 1;
00316         }
00317         fixed_sparse->n = 3;
00318         break;
00319     case MODE_8k5:
00320         for (i = 0; i < 3; i++) {
00321             fixed_sparse->x[2*i    ] = 3 * ((pulses[i] >> 4) & 0xf) + i;
00322             fixed_sparse->x[2*i + 1] = 3 * ( pulses[i]       & 0xf) + i;
00323 
00324             fixed_sparse->y[2*i    ] = (pulses[i] & 0x100) ? -1.0: 1.0;
00325 
00326             fixed_sparse->y[2*i + 1] =
00327                 (fixed_sparse->x[2*i + 1] < fixed_sparse->x[2*i]) ?
00328                 -fixed_sparse->y[2*i    ] : fixed_sparse->y[2*i];
00329         }
00330 
00331         fixed_sparse->n = 6;
00332         break;
00333     case MODE_5k0:
00334     default:
00335         if (low_gain) {
00336             int offset = (pulses[0] & 0x200) ? 2 : 0;
00337             int val = pulses[0];
00338 
00339             for (i = 0; i < 3; i++) {
00340                 int index = (val & 0x7) * 6 + 4 - i*2;
00341 
00342                 fixed_sparse->y[i] = (offset + index) & 0x3 ? -1 : 1;
00343                 fixed_sparse->x[i] = index;
00344 
00345                 val >>= 3;
00346             }
00347             fixed_sparse->n = 3;
00348         } else {
00349             int pulse_subset = (pulses[0] >> 8) & 1;
00350 
00351             fixed_sparse->x[0] = ((pulses[0] >> 4) & 15) * 3 + pulse_subset;
00352             fixed_sparse->x[1] = ( pulses[0]       & 15) * 3 + pulse_subset + 1;
00353 
00354             fixed_sparse->y[0] = pulses[0] & 0x200 ? -1 : 1;
00355             fixed_sparse->y[1] = -fixed_sparse->y[0];
00356             fixed_sparse->n = 2;
00357         }
00358         break;
00359     }
00360 }
00361 
00362 static void decode_frame(SiprContext *ctx, SiprParameters *params,
00363                          float *out_data)
00364 {
00365     int i, j;
00366     int subframe_count = modes[ctx->mode].subframe_count;
00367     int frame_size = subframe_count * SUBFR_SIZE;
00368     float Az[LP_FILTER_ORDER * MAX_SUBFRAME_COUNT];
00369     float *excitation;
00370     float ir_buf[SUBFR_SIZE + LP_FILTER_ORDER];
00371     float lsf_new[LP_FILTER_ORDER];
00372     float *impulse_response = ir_buf + LP_FILTER_ORDER;
00373     float *synth = ctx->synth_buf + 16; 
00374                                         
00375     int t0_first = 0;
00376     AMRFixed fixed_cb;
00377 
00378     memset(ir_buf, 0, LP_FILTER_ORDER * sizeof(float));
00379     lsf_decode_fp(lsf_new, ctx->lsf_history, params);
00380 
00381     sipr_decode_lp(lsf_new, ctx->lsp_history, Az, subframe_count);
00382 
00383     memcpy(ctx->lsp_history, lsf_new, LP_FILTER_ORDER * sizeof(float));
00384 
00385     excitation = ctx->excitation + PITCH_DELAY_MAX + L_INTERPOL;
00386 
00387     for (i = 0; i < subframe_count; i++) {
00388         float *pAz = Az + i*LP_FILTER_ORDER;
00389         float fixed_vector[SUBFR_SIZE];
00390         int T0,T0_frac;
00391         float pitch_gain, gain_code, avg_energy;
00392 
00393         ff_decode_pitch_lag(&T0, &T0_frac, params->pitch_delay[i], t0_first, i,
00394                             ctx->mode == MODE_5k0, 6);
00395 
00396         if (i == 0 || (i == 2 && ctx->mode == MODE_5k0))
00397             t0_first = T0;
00398 
00399         ff_acelp_interpolatef(excitation, excitation - T0 + (T0_frac <= 0),
00400                               ff_b60_sinc, 6,
00401                               2 * ((2 + T0_frac)%3 + 1), LP_FILTER_ORDER,
00402                               SUBFR_SIZE);
00403 
00404         decode_fixed_sparse(&fixed_cb, params->fc_indexes[i], ctx->mode,
00405                             ctx->past_pitch_gain < 0.8);
00406 
00407         eval_ir(pAz, T0, impulse_response, modes[ctx->mode].pitch_sharp_factor);
00408 
00409         convolute_with_sparse(fixed_vector, &fixed_cb, impulse_response,
00410                               SUBFR_SIZE);
00411 
00412         avg_energy =
00413             (0.01 + ff_scalarproduct_float_c(fixed_vector, fixed_vector, SUBFR_SIZE)) /
00414                 SUBFR_SIZE;
00415 
00416         ctx->past_pitch_gain = pitch_gain = gain_cb[params->gc_index[i]][0];
00417 
00418         gain_code = ff_amr_set_fixed_gain(gain_cb[params->gc_index[i]][1],
00419                                           avg_energy, ctx->energy_history,
00420                                           34 - 15.0/(0.05*M_LN10/M_LN2),
00421                                           pred);
00422 
00423         ff_weighted_vector_sumf(excitation, excitation, fixed_vector,
00424                                 pitch_gain, gain_code, SUBFR_SIZE);
00425 
00426         pitch_gain *= 0.5 * pitch_gain;
00427         pitch_gain = FFMIN(pitch_gain, 0.4);
00428 
00429         ctx->gain_mem = 0.7 * ctx->gain_mem + 0.3 * pitch_gain;
00430         ctx->gain_mem = FFMIN(ctx->gain_mem, pitch_gain);
00431         gain_code *= ctx->gain_mem;
00432 
00433         for (j = 0; j < SUBFR_SIZE; j++)
00434             fixed_vector[j] = excitation[j] - gain_code * fixed_vector[j];
00435 
00436         if (ctx->mode == MODE_5k0) {
00437             postfilter_5k0(ctx, pAz, fixed_vector);
00438 
00439             ff_celp_lp_synthesis_filterf(ctx->postfilter_syn5k0 + LP_FILTER_ORDER + i*SUBFR_SIZE,
00440                                          pAz, excitation, SUBFR_SIZE,
00441                                          LP_FILTER_ORDER);
00442         }
00443 
00444         ff_celp_lp_synthesis_filterf(synth + i*SUBFR_SIZE, pAz, fixed_vector,
00445                                      SUBFR_SIZE, LP_FILTER_ORDER);
00446 
00447         excitation += SUBFR_SIZE;
00448     }
00449 
00450     memcpy(synth - LP_FILTER_ORDER, synth + frame_size - LP_FILTER_ORDER,
00451            LP_FILTER_ORDER * sizeof(float));
00452 
00453     if (ctx->mode == MODE_5k0) {
00454         for (i = 0; i < subframe_count; i++) {
00455             float energy = ff_scalarproduct_float_c(ctx->postfilter_syn5k0 + LP_FILTER_ORDER + i * SUBFR_SIZE,
00456                                                     ctx->postfilter_syn5k0 + LP_FILTER_ORDER + i * SUBFR_SIZE,
00457                                                     SUBFR_SIZE);
00458             ff_adaptive_gain_control(&synth[i * SUBFR_SIZE],
00459                                      &synth[i * SUBFR_SIZE], energy,
00460                                      SUBFR_SIZE, 0.9, &ctx->postfilter_agc);
00461         }
00462 
00463         memcpy(ctx->postfilter_syn5k0, ctx->postfilter_syn5k0 + frame_size,
00464                LP_FILTER_ORDER*sizeof(float));
00465     }
00466     memmove(ctx->excitation, excitation - PITCH_DELAY_MAX - L_INTERPOL,
00467            (PITCH_DELAY_MAX + L_INTERPOL) * sizeof(float));
00468 
00469     ff_acelp_apply_order_2_transfer_function(out_data, synth,
00470                                              (const float[2]) {-1.99997   , 1.000000000},
00471                                              (const float[2]) {-1.93307352, 0.935891986},
00472                                              0.939805806,
00473                                              ctx->highpass_filt_mem,
00474                                              frame_size);
00475 }
00476 
00477 static av_cold int sipr_decoder_init(AVCodecContext * avctx)
00478 {
00479     SiprContext *ctx = avctx->priv_data;
00480     int i;
00481 
00482     switch (avctx->block_align) {
00483     case 20: ctx->mode = MODE_16k; break;
00484     case 19: ctx->mode = MODE_8k5; break;
00485     case 29: ctx->mode = MODE_6k5; break;
00486     case 37: ctx->mode = MODE_5k0; break;
00487     default:
00488         if      (avctx->bit_rate > 12200) ctx->mode = MODE_16k;
00489         else if (avctx->bit_rate > 7500 ) ctx->mode = MODE_8k5;
00490         else if (avctx->bit_rate > 5750 ) ctx->mode = MODE_6k5;
00491         else                              ctx->mode = MODE_5k0;
00492         av_log(avctx, AV_LOG_WARNING,
00493                "Invalid block_align: %d. Mode %s guessed based on bitrate: %d\n",
00494                avctx->block_align, modes[ctx->mode].mode_name, avctx->bit_rate);
00495     }
00496 
00497     av_log(avctx, AV_LOG_DEBUG, "Mode: %s\n", modes[ctx->mode].mode_name);
00498 
00499     if (ctx->mode == MODE_16k) {
00500         ff_sipr_init_16k(ctx);
00501         ctx->decode_frame = ff_sipr_decode_frame_16k;
00502     } else {
00503         ctx->decode_frame = decode_frame;
00504     }
00505 
00506     for (i = 0; i < LP_FILTER_ORDER; i++)
00507         ctx->lsp_history[i] = cos((i+1) * M_PI / (LP_FILTER_ORDER + 1));
00508 
00509     for (i = 0; i < 4; i++)
00510         ctx->energy_history[i] = -14;
00511 
00512     avctx->sample_fmt = AV_SAMPLE_FMT_FLT;
00513 
00514     avcodec_get_frame_defaults(&ctx->frame);
00515     avctx->coded_frame = &ctx->frame;
00516 
00517     return 0;
00518 }
00519 
00520 static int sipr_decode_frame(AVCodecContext *avctx, void *data,
00521                              int *got_frame_ptr, AVPacket *avpkt)
00522 {
00523     SiprContext *ctx = avctx->priv_data;
00524     const uint8_t *buf=avpkt->data;
00525     SiprParameters parm;
00526     const SiprModeParam *mode_par = &modes[ctx->mode];
00527     GetBitContext gb;
00528     float *samples;
00529     int subframe_size = ctx->mode == MODE_16k ? L_SUBFR_16k : SUBFR_SIZE;
00530     int i, ret;
00531 
00532     ctx->avctx = avctx;
00533     if (avpkt->size < (mode_par->bits_per_frame >> 3)) {
00534         av_log(avctx, AV_LOG_ERROR,
00535                "Error processing packet: packet size (%d) too small\n",
00536                avpkt->size);
00537         return -1;
00538     }
00539 
00540     
00541     ctx->frame.nb_samples = mode_par->frames_per_packet * subframe_size *
00542                             mode_par->subframe_count;
00543     if ((ret = avctx->get_buffer(avctx, &ctx->frame)) < 0) {
00544         av_log(avctx, AV_LOG_ERROR, "get_buffer() failed\n");
00545         return ret;
00546     }
00547     samples = (float *)ctx->frame.data[0];
00548 
00549     init_get_bits(&gb, buf, mode_par->bits_per_frame);
00550 
00551     for (i = 0; i < mode_par->frames_per_packet; i++) {
00552         decode_parameters(&parm, &gb, mode_par);
00553 
00554         ctx->decode_frame(ctx, &parm, samples);
00555 
00556         samples += subframe_size * mode_par->subframe_count;
00557     }
00558 
00559     *got_frame_ptr   = 1;
00560     *(AVFrame *)data = ctx->frame;
00561 
00562     return mode_par->bits_per_frame >> 3;
00563 }
00564 
00565 AVCodec ff_sipr_decoder = {
00566     .name           = "sipr",
00567     .type           = AVMEDIA_TYPE_AUDIO,
00568     .id             = AV_CODEC_ID_SIPR,
00569     .priv_data_size = sizeof(SiprContext),
00570     .init           = sipr_decoder_init,
00571     .decode         = sipr_decode_frame,
00572     .capabilities   = CODEC_CAP_DR1,
00573     .long_name      = NULL_IF_CONFIG_SMALL("RealAudio SIPR / ACELP.NET"),
00574 };