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00022 #include <stdint.h>
00023 #include "libavutil/common.h"
00024 #include "libavutil/mathematics.h"
00025 #include "avcodec.h"
00026 #include "get_bits.h"
00027 #include "aacps.h"
00028 #include "aacps_tablegen.h"
00029 #include "aacpsdata.c"
00030 #include "dsputil.h"
00031
00032 #define PS_BASELINE 0
00033
00034
00035
00036 #define numQMFSlots 32 //numTimeSlots * RATE
00037
00038 static const int8_t num_env_tab[2][4] = {
00039 { 0, 1, 2, 4, },
00040 { 1, 2, 3, 4, },
00041 };
00042
00043 static const int8_t nr_iidicc_par_tab[] = {
00044 10, 20, 34, 10, 20, 34,
00045 };
00046
00047 static const int8_t nr_iidopd_par_tab[] = {
00048 5, 11, 17, 5, 11, 17,
00049 };
00050
00051 enum {
00052 huff_iid_df1,
00053 huff_iid_dt1,
00054 huff_iid_df0,
00055 huff_iid_dt0,
00056 huff_icc_df,
00057 huff_icc_dt,
00058 huff_ipd_df,
00059 huff_ipd_dt,
00060 huff_opd_df,
00061 huff_opd_dt,
00062 };
00063
00064 static const int huff_iid[] = {
00065 huff_iid_df0,
00066 huff_iid_df1,
00067 huff_iid_dt0,
00068 huff_iid_dt1,
00069 };
00070
00071 static VLC vlc_ps[10];
00072
00073 #define READ_PAR_DATA(PAR, OFFSET, MASK, ERR_CONDITION) \
00074 \
00086 static int read_ ## PAR ## _data(AVCodecContext *avctx, GetBitContext *gb, PSContext *ps, \
00087 int8_t (*PAR)[PS_MAX_NR_IIDICC], int table_idx, int e, int dt) \
00088 { \
00089 int b, num = ps->nr_ ## PAR ## _par; \
00090 VLC_TYPE (*vlc_table)[2] = vlc_ps[table_idx].table; \
00091 if (dt) { \
00092 int e_prev = e ? e - 1 : ps->num_env_old - 1; \
00093 e_prev = FFMAX(e_prev, 0); \
00094 for (b = 0; b < num; b++) { \
00095 int val = PAR[e_prev][b] + get_vlc2(gb, vlc_table, 9, 3) - OFFSET; \
00096 if (MASK) val &= MASK; \
00097 PAR[e][b] = val; \
00098 if (ERR_CONDITION) \
00099 goto err; \
00100 } \
00101 } else { \
00102 int val = 0; \
00103 for (b = 0; b < num; b++) { \
00104 val += get_vlc2(gb, vlc_table, 9, 3) - OFFSET; \
00105 if (MASK) val &= MASK; \
00106 PAR[e][b] = val; \
00107 if (ERR_CONDITION) \
00108 goto err; \
00109 } \
00110 } \
00111 return 0; \
00112 err: \
00113 av_log(avctx, AV_LOG_ERROR, "illegal "#PAR"\n"); \
00114 return -1; \
00115 }
00116
00117 READ_PAR_DATA(iid, huff_offset[table_idx], 0, FFABS(ps->iid_par[e][b]) > 7 + 8 * ps->iid_quant)
00118 READ_PAR_DATA(icc, huff_offset[table_idx], 0, ps->icc_par[e][b] > 7U)
00119 READ_PAR_DATA(ipdopd, 0, 0x07, 0)
00120
00121 static int ps_read_extension_data(GetBitContext *gb, PSContext *ps, int ps_extension_id)
00122 {
00123 int e;
00124 int count = get_bits_count(gb);
00125
00126 if (ps_extension_id)
00127 return 0;
00128
00129 ps->enable_ipdopd = get_bits1(gb);
00130 if (ps->enable_ipdopd) {
00131 for (e = 0; e < ps->num_env; e++) {
00132 int dt = get_bits1(gb);
00133 read_ipdopd_data(NULL, gb, ps, ps->ipd_par, dt ? huff_ipd_dt : huff_ipd_df, e, dt);
00134 dt = get_bits1(gb);
00135 read_ipdopd_data(NULL, gb, ps, ps->opd_par, dt ? huff_opd_dt : huff_opd_df, e, dt);
00136 }
00137 }
00138 skip_bits1(gb);
00139 return get_bits_count(gb) - count;
00140 }
00141
00142 static void ipdopd_reset(int8_t *ipd_hist, int8_t *opd_hist)
00143 {
00144 int i;
00145 for (i = 0; i < PS_MAX_NR_IPDOPD; i++) {
00146 opd_hist[i] = 0;
00147 ipd_hist[i] = 0;
00148 }
00149 }
00150
00151 int ff_ps_read_data(AVCodecContext *avctx, GetBitContext *gb_host, PSContext *ps, int bits_left)
00152 {
00153 int e;
00154 int bit_count_start = get_bits_count(gb_host);
00155 int header;
00156 int bits_consumed;
00157 GetBitContext gbc = *gb_host, *gb = &gbc;
00158
00159 header = get_bits1(gb);
00160 if (header) {
00161 ps->enable_iid = get_bits1(gb);
00162 if (ps->enable_iid) {
00163 int iid_mode = get_bits(gb, 3);
00164 if (iid_mode > 5) {
00165 av_log(avctx, AV_LOG_ERROR, "iid_mode %d is reserved.\n",
00166 iid_mode);
00167 goto err;
00168 }
00169 ps->nr_iid_par = nr_iidicc_par_tab[iid_mode];
00170 ps->iid_quant = iid_mode > 2;
00171 ps->nr_ipdopd_par = nr_iidopd_par_tab[iid_mode];
00172 }
00173 ps->enable_icc = get_bits1(gb);
00174 if (ps->enable_icc) {
00175 ps->icc_mode = get_bits(gb, 3);
00176 if (ps->icc_mode > 5) {
00177 av_log(avctx, AV_LOG_ERROR, "icc_mode %d is reserved.\n",
00178 ps->icc_mode);
00179 goto err;
00180 }
00181 ps->nr_icc_par = nr_iidicc_par_tab[ps->icc_mode];
00182 }
00183 ps->enable_ext = get_bits1(gb);
00184 }
00185
00186 ps->frame_class = get_bits1(gb);
00187 ps->num_env_old = ps->num_env;
00188 ps->num_env = num_env_tab[ps->frame_class][get_bits(gb, 2)];
00189
00190 ps->border_position[0] = -1;
00191 if (ps->frame_class) {
00192 for (e = 1; e <= ps->num_env; e++)
00193 ps->border_position[e] = get_bits(gb, 5);
00194 } else
00195 for (e = 1; e <= ps->num_env; e++)
00196 ps->border_position[e] = (e * numQMFSlots >> ff_log2_tab[ps->num_env]) - 1;
00197
00198 if (ps->enable_iid) {
00199 for (e = 0; e < ps->num_env; e++) {
00200 int dt = get_bits1(gb);
00201 if (read_iid_data(avctx, gb, ps, ps->iid_par, huff_iid[2*dt+ps->iid_quant], e, dt))
00202 goto err;
00203 }
00204 } else
00205 memset(ps->iid_par, 0, sizeof(ps->iid_par));
00206
00207 if (ps->enable_icc)
00208 for (e = 0; e < ps->num_env; e++) {
00209 int dt = get_bits1(gb);
00210 if (read_icc_data(avctx, gb, ps, ps->icc_par, dt ? huff_icc_dt : huff_icc_df, e, dt))
00211 goto err;
00212 }
00213 else
00214 memset(ps->icc_par, 0, sizeof(ps->icc_par));
00215
00216 if (ps->enable_ext) {
00217 int cnt = get_bits(gb, 4);
00218 if (cnt == 15) {
00219 cnt += get_bits(gb, 8);
00220 }
00221 cnt *= 8;
00222 while (cnt > 7) {
00223 int ps_extension_id = get_bits(gb, 2);
00224 cnt -= 2 + ps_read_extension_data(gb, ps, ps_extension_id);
00225 }
00226 if (cnt < 0) {
00227 av_log(avctx, AV_LOG_ERROR, "ps extension overflow %d\n", cnt);
00228 goto err;
00229 }
00230 skip_bits(gb, cnt);
00231 }
00232
00233 ps->enable_ipdopd &= !PS_BASELINE;
00234
00235
00236 if (!ps->num_env || ps->border_position[ps->num_env] < numQMFSlots - 1) {
00237
00238 int source = ps->num_env ? ps->num_env - 1 : ps->num_env_old - 1;
00239 int b;
00240 if (source >= 0 && source != ps->num_env) {
00241 if (ps->enable_iid) {
00242 memcpy(ps->iid_par+ps->num_env, ps->iid_par+source, sizeof(ps->iid_par[0]));
00243 }
00244 if (ps->enable_icc) {
00245 memcpy(ps->icc_par+ps->num_env, ps->icc_par+source, sizeof(ps->icc_par[0]));
00246 }
00247 if (ps->enable_ipdopd) {
00248 memcpy(ps->ipd_par+ps->num_env, ps->ipd_par+source, sizeof(ps->ipd_par[0]));
00249 memcpy(ps->opd_par+ps->num_env, ps->opd_par+source, sizeof(ps->opd_par[0]));
00250 }
00251 }
00252 if (ps->enable_iid){
00253 for (b = 0; b < ps->nr_iid_par; b++) {
00254 if (FFABS(ps->iid_par[ps->num_env][b]) > 7 + 8 * ps->iid_quant) {
00255 av_log(avctx, AV_LOG_ERROR, "iid_par invalid\n");
00256 goto err;
00257 }
00258 }
00259 }
00260 if (ps->enable_icc){
00261 for (b = 0; b < ps->nr_iid_par; b++) {
00262 if (ps->icc_par[ps->num_env][b] > 7U) {
00263 av_log(avctx, AV_LOG_ERROR, "icc_par invalid\n");
00264 goto err;
00265 }
00266 }
00267 }
00268 ps->num_env++;
00269 ps->border_position[ps->num_env] = numQMFSlots - 1;
00270 }
00271
00272
00273 ps->is34bands_old = ps->is34bands;
00274 if (!PS_BASELINE && (ps->enable_iid || ps->enable_icc))
00275 ps->is34bands = (ps->enable_iid && ps->nr_iid_par == 34) ||
00276 (ps->enable_icc && ps->nr_icc_par == 34);
00277
00278
00279 if (!ps->enable_ipdopd) {
00280 memset(ps->ipd_par, 0, sizeof(ps->ipd_par));
00281 memset(ps->opd_par, 0, sizeof(ps->opd_par));
00282 }
00283
00284 if (header)
00285 ps->start = 1;
00286
00287 bits_consumed = get_bits_count(gb) - bit_count_start;
00288 if (bits_consumed <= bits_left) {
00289 skip_bits_long(gb_host, bits_consumed);
00290 return bits_consumed;
00291 }
00292 av_log(avctx, AV_LOG_ERROR, "Expected to read %d PS bits actually read %d.\n", bits_left, bits_consumed);
00293 err:
00294 ps->start = 0;
00295 skip_bits_long(gb_host, bits_left);
00296 memset(ps->iid_par, 0, sizeof(ps->iid_par));
00297 memset(ps->icc_par, 0, sizeof(ps->icc_par));
00298 memset(ps->ipd_par, 0, sizeof(ps->ipd_par));
00299 memset(ps->opd_par, 0, sizeof(ps->opd_par));
00300 return bits_left;
00301 }
00302
00305 static void hybrid2_re(float (*in)[2], float (*out)[32][2], const float filter[8], int len, int reverse)
00306 {
00307 int i, j;
00308 for (i = 0; i < len; i++, in++) {
00309 float re_in = filter[6] * in[6][0];
00310 float re_op = 0.0f;
00311 float im_in = filter[6] * in[6][1];
00312 float im_op = 0.0f;
00313 for (j = 0; j < 6; j += 2) {
00314 re_op += filter[j+1] * (in[j+1][0] + in[12-j-1][0]);
00315 im_op += filter[j+1] * (in[j+1][1] + in[12-j-1][1]);
00316 }
00317 out[ reverse][i][0] = re_in + re_op;
00318 out[ reverse][i][1] = im_in + im_op;
00319 out[!reverse][i][0] = re_in - re_op;
00320 out[!reverse][i][1] = im_in - im_op;
00321 }
00322 }
00323
00325 static void hybrid6_cx(PSDSPContext *dsp, float (*in)[2], float (*out)[32][2], const float (*filter)[8][2], int len)
00326 {
00327 int i;
00328 int N = 8;
00329 LOCAL_ALIGNED_16(float, temp, [8], [2]);
00330
00331 for (i = 0; i < len; i++, in++) {
00332 dsp->hybrid_analysis(temp, in, filter, 1, N);
00333 out[0][i][0] = temp[6][0];
00334 out[0][i][1] = temp[6][1];
00335 out[1][i][0] = temp[7][0];
00336 out[1][i][1] = temp[7][1];
00337 out[2][i][0] = temp[0][0];
00338 out[2][i][1] = temp[0][1];
00339 out[3][i][0] = temp[1][0];
00340 out[3][i][1] = temp[1][1];
00341 out[4][i][0] = temp[2][0] + temp[5][0];
00342 out[4][i][1] = temp[2][1] + temp[5][1];
00343 out[5][i][0] = temp[3][0] + temp[4][0];
00344 out[5][i][1] = temp[3][1] + temp[4][1];
00345 }
00346 }
00347
00348 static void hybrid4_8_12_cx(PSDSPContext *dsp, float (*in)[2], float (*out)[32][2], const float (*filter)[8][2], int N, int len)
00349 {
00350 int i;
00351
00352 for (i = 0; i < len; i++, in++) {
00353 dsp->hybrid_analysis(out[0] + i, in, filter, 32, N);
00354 }
00355 }
00356
00357 static void hybrid_analysis(PSDSPContext *dsp, float out[91][32][2],
00358 float in[5][44][2], float L[2][38][64],
00359 int is34, int len)
00360 {
00361 int i, j;
00362 for (i = 0; i < 5; i++) {
00363 for (j = 0; j < 38; j++) {
00364 in[i][j+6][0] = L[0][j][i];
00365 in[i][j+6][1] = L[1][j][i];
00366 }
00367 }
00368 if (is34) {
00369 hybrid4_8_12_cx(dsp, in[0], out, f34_0_12, 12, len);
00370 hybrid4_8_12_cx(dsp, in[1], out+12, f34_1_8, 8, len);
00371 hybrid4_8_12_cx(dsp, in[2], out+20, f34_2_4, 4, len);
00372 hybrid4_8_12_cx(dsp, in[3], out+24, f34_2_4, 4, len);
00373 hybrid4_8_12_cx(dsp, in[4], out+28, f34_2_4, 4, len);
00374 dsp->hybrid_analysis_ileave(out + 27, L, 5, len);
00375 } else {
00376 hybrid6_cx(dsp, in[0], out, f20_0_8, len);
00377 hybrid2_re(in[1], out+6, g1_Q2, len, 1);
00378 hybrid2_re(in[2], out+8, g1_Q2, len, 0);
00379 dsp->hybrid_analysis_ileave(out + 7, L, 3, len);
00380 }
00381
00382 for (i = 0; i < 5; i++) {
00383 memcpy(in[i], in[i]+32, 6 * sizeof(in[i][0]));
00384 }
00385 }
00386
00387 static void hybrid_synthesis(PSDSPContext *dsp, float out[2][38][64],
00388 float in[91][32][2], int is34, int len)
00389 {
00390 int i, n;
00391 if (is34) {
00392 for (n = 0; n < len; n++) {
00393 memset(out[0][n], 0, 5*sizeof(out[0][n][0]));
00394 memset(out[1][n], 0, 5*sizeof(out[1][n][0]));
00395 for (i = 0; i < 12; i++) {
00396 out[0][n][0] += in[ i][n][0];
00397 out[1][n][0] += in[ i][n][1];
00398 }
00399 for (i = 0; i < 8; i++) {
00400 out[0][n][1] += in[12+i][n][0];
00401 out[1][n][1] += in[12+i][n][1];
00402 }
00403 for (i = 0; i < 4; i++) {
00404 out[0][n][2] += in[20+i][n][0];
00405 out[1][n][2] += in[20+i][n][1];
00406 out[0][n][3] += in[24+i][n][0];
00407 out[1][n][3] += in[24+i][n][1];
00408 out[0][n][4] += in[28+i][n][0];
00409 out[1][n][4] += in[28+i][n][1];
00410 }
00411 }
00412 dsp->hybrid_synthesis_deint(out, in + 27, 5, len);
00413 } else {
00414 for (n = 0; n < len; n++) {
00415 out[0][n][0] = in[0][n][0] + in[1][n][0] + in[2][n][0] +
00416 in[3][n][0] + in[4][n][0] + in[5][n][0];
00417 out[1][n][0] = in[0][n][1] + in[1][n][1] + in[2][n][1] +
00418 in[3][n][1] + in[4][n][1] + in[5][n][1];
00419 out[0][n][1] = in[6][n][0] + in[7][n][0];
00420 out[1][n][1] = in[6][n][1] + in[7][n][1];
00421 out[0][n][2] = in[8][n][0] + in[9][n][0];
00422 out[1][n][2] = in[8][n][1] + in[9][n][1];
00423 }
00424 dsp->hybrid_synthesis_deint(out, in + 7, 3, len);
00425 }
00426 }
00427
00429 #define DECAY_SLOPE 0.05f
00431 static const int NR_PAR_BANDS[] = { 20, 34 };
00433 static const int NR_BANDS[] = { 71, 91 };
00435 static const int DECAY_CUTOFF[] = { 10, 32 };
00437 static const int NR_ALLPASS_BANDS[] = { 30, 50 };
00439 static const int SHORT_DELAY_BAND[] = { 42, 62 };
00440
00442 static void map_idx_10_to_20(int8_t *par_mapped, const int8_t *par, int full)
00443 {
00444 int b;
00445 if (full)
00446 b = 9;
00447 else {
00448 b = 4;
00449 par_mapped[10] = 0;
00450 }
00451 for (; b >= 0; b--) {
00452 par_mapped[2*b+1] = par_mapped[2*b] = par[b];
00453 }
00454 }
00455
00456 static void map_idx_34_to_20(int8_t *par_mapped, const int8_t *par, int full)
00457 {
00458 par_mapped[ 0] = (2*par[ 0] + par[ 1]) / 3;
00459 par_mapped[ 1] = ( par[ 1] + 2*par[ 2]) / 3;
00460 par_mapped[ 2] = (2*par[ 3] + par[ 4]) / 3;
00461 par_mapped[ 3] = ( par[ 4] + 2*par[ 5]) / 3;
00462 par_mapped[ 4] = ( par[ 6] + par[ 7]) / 2;
00463 par_mapped[ 5] = ( par[ 8] + par[ 9]) / 2;
00464 par_mapped[ 6] = par[10];
00465 par_mapped[ 7] = par[11];
00466 par_mapped[ 8] = ( par[12] + par[13]) / 2;
00467 par_mapped[ 9] = ( par[14] + par[15]) / 2;
00468 par_mapped[10] = par[16];
00469 if (full) {
00470 par_mapped[11] = par[17];
00471 par_mapped[12] = par[18];
00472 par_mapped[13] = par[19];
00473 par_mapped[14] = ( par[20] + par[21]) / 2;
00474 par_mapped[15] = ( par[22] + par[23]) / 2;
00475 par_mapped[16] = ( par[24] + par[25]) / 2;
00476 par_mapped[17] = ( par[26] + par[27]) / 2;
00477 par_mapped[18] = ( par[28] + par[29] + par[30] + par[31]) / 4;
00478 par_mapped[19] = ( par[32] + par[33]) / 2;
00479 }
00480 }
00481
00482 static void map_val_34_to_20(float par[PS_MAX_NR_IIDICC])
00483 {
00484 par[ 0] = (2*par[ 0] + par[ 1]) * 0.33333333f;
00485 par[ 1] = ( par[ 1] + 2*par[ 2]) * 0.33333333f;
00486 par[ 2] = (2*par[ 3] + par[ 4]) * 0.33333333f;
00487 par[ 3] = ( par[ 4] + 2*par[ 5]) * 0.33333333f;
00488 par[ 4] = ( par[ 6] + par[ 7]) * 0.5f;
00489 par[ 5] = ( par[ 8] + par[ 9]) * 0.5f;
00490 par[ 6] = par[10];
00491 par[ 7] = par[11];
00492 par[ 8] = ( par[12] + par[13]) * 0.5f;
00493 par[ 9] = ( par[14] + par[15]) * 0.5f;
00494 par[10] = par[16];
00495 par[11] = par[17];
00496 par[12] = par[18];
00497 par[13] = par[19];
00498 par[14] = ( par[20] + par[21]) * 0.5f;
00499 par[15] = ( par[22] + par[23]) * 0.5f;
00500 par[16] = ( par[24] + par[25]) * 0.5f;
00501 par[17] = ( par[26] + par[27]) * 0.5f;
00502 par[18] = ( par[28] + par[29] + par[30] + par[31]) * 0.25f;
00503 par[19] = ( par[32] + par[33]) * 0.5f;
00504 }
00505
00506 static void map_idx_10_to_34(int8_t *par_mapped, const int8_t *par, int full)
00507 {
00508 if (full) {
00509 par_mapped[33] = par[9];
00510 par_mapped[32] = par[9];
00511 par_mapped[31] = par[9];
00512 par_mapped[30] = par[9];
00513 par_mapped[29] = par[9];
00514 par_mapped[28] = par[9];
00515 par_mapped[27] = par[8];
00516 par_mapped[26] = par[8];
00517 par_mapped[25] = par[8];
00518 par_mapped[24] = par[8];
00519 par_mapped[23] = par[7];
00520 par_mapped[22] = par[7];
00521 par_mapped[21] = par[7];
00522 par_mapped[20] = par[7];
00523 par_mapped[19] = par[6];
00524 par_mapped[18] = par[6];
00525 par_mapped[17] = par[5];
00526 par_mapped[16] = par[5];
00527 } else {
00528 par_mapped[16] = 0;
00529 }
00530 par_mapped[15] = par[4];
00531 par_mapped[14] = par[4];
00532 par_mapped[13] = par[4];
00533 par_mapped[12] = par[4];
00534 par_mapped[11] = par[3];
00535 par_mapped[10] = par[3];
00536 par_mapped[ 9] = par[2];
00537 par_mapped[ 8] = par[2];
00538 par_mapped[ 7] = par[2];
00539 par_mapped[ 6] = par[2];
00540 par_mapped[ 5] = par[1];
00541 par_mapped[ 4] = par[1];
00542 par_mapped[ 3] = par[1];
00543 par_mapped[ 2] = par[0];
00544 par_mapped[ 1] = par[0];
00545 par_mapped[ 0] = par[0];
00546 }
00547
00548 static void map_idx_20_to_34(int8_t *par_mapped, const int8_t *par, int full)
00549 {
00550 if (full) {
00551 par_mapped[33] = par[19];
00552 par_mapped[32] = par[19];
00553 par_mapped[31] = par[18];
00554 par_mapped[30] = par[18];
00555 par_mapped[29] = par[18];
00556 par_mapped[28] = par[18];
00557 par_mapped[27] = par[17];
00558 par_mapped[26] = par[17];
00559 par_mapped[25] = par[16];
00560 par_mapped[24] = par[16];
00561 par_mapped[23] = par[15];
00562 par_mapped[22] = par[15];
00563 par_mapped[21] = par[14];
00564 par_mapped[20] = par[14];
00565 par_mapped[19] = par[13];
00566 par_mapped[18] = par[12];
00567 par_mapped[17] = par[11];
00568 }
00569 par_mapped[16] = par[10];
00570 par_mapped[15] = par[ 9];
00571 par_mapped[14] = par[ 9];
00572 par_mapped[13] = par[ 8];
00573 par_mapped[12] = par[ 8];
00574 par_mapped[11] = par[ 7];
00575 par_mapped[10] = par[ 6];
00576 par_mapped[ 9] = par[ 5];
00577 par_mapped[ 8] = par[ 5];
00578 par_mapped[ 7] = par[ 4];
00579 par_mapped[ 6] = par[ 4];
00580 par_mapped[ 5] = par[ 3];
00581 par_mapped[ 4] = (par[ 2] + par[ 3]) / 2;
00582 par_mapped[ 3] = par[ 2];
00583 par_mapped[ 2] = par[ 1];
00584 par_mapped[ 1] = (par[ 0] + par[ 1]) / 2;
00585 par_mapped[ 0] = par[ 0];
00586 }
00587
00588 static void map_val_20_to_34(float par[PS_MAX_NR_IIDICC])
00589 {
00590 par[33] = par[19];
00591 par[32] = par[19];
00592 par[31] = par[18];
00593 par[30] = par[18];
00594 par[29] = par[18];
00595 par[28] = par[18];
00596 par[27] = par[17];
00597 par[26] = par[17];
00598 par[25] = par[16];
00599 par[24] = par[16];
00600 par[23] = par[15];
00601 par[22] = par[15];
00602 par[21] = par[14];
00603 par[20] = par[14];
00604 par[19] = par[13];
00605 par[18] = par[12];
00606 par[17] = par[11];
00607 par[16] = par[10];
00608 par[15] = par[ 9];
00609 par[14] = par[ 9];
00610 par[13] = par[ 8];
00611 par[12] = par[ 8];
00612 par[11] = par[ 7];
00613 par[10] = par[ 6];
00614 par[ 9] = par[ 5];
00615 par[ 8] = par[ 5];
00616 par[ 7] = par[ 4];
00617 par[ 6] = par[ 4];
00618 par[ 5] = par[ 3];
00619 par[ 4] = (par[ 2] + par[ 3]) * 0.5f;
00620 par[ 3] = par[ 2];
00621 par[ 2] = par[ 1];
00622 par[ 1] = (par[ 0] + par[ 1]) * 0.5f;
00623 }
00624
00625 static void decorrelation(PSContext *ps, float (*out)[32][2], const float (*s)[32][2], int is34)
00626 {
00627 LOCAL_ALIGNED_16(float, power, [34], [PS_QMF_TIME_SLOTS]);
00628 LOCAL_ALIGNED_16(float, transient_gain, [34], [PS_QMF_TIME_SLOTS]);
00629 float *peak_decay_nrg = ps->peak_decay_nrg;
00630 float *power_smooth = ps->power_smooth;
00631 float *peak_decay_diff_smooth = ps->peak_decay_diff_smooth;
00632 float (*delay)[PS_QMF_TIME_SLOTS + PS_MAX_DELAY][2] = ps->delay;
00633 float (*ap_delay)[PS_AP_LINKS][PS_QMF_TIME_SLOTS + PS_MAX_AP_DELAY][2] = ps->ap_delay;
00634 const int8_t *k_to_i = is34 ? k_to_i_34 : k_to_i_20;
00635 const float peak_decay_factor = 0.76592833836465f;
00636 const float transient_impact = 1.5f;
00637 const float a_smooth = 0.25f;
00638 int i, k, m, n;
00639 int n0 = 0, nL = 32;
00640
00641 memset(power, 0, 34 * sizeof(*power));
00642
00643 if (is34 != ps->is34bands_old) {
00644 memset(ps->peak_decay_nrg, 0, sizeof(ps->peak_decay_nrg));
00645 memset(ps->power_smooth, 0, sizeof(ps->power_smooth));
00646 memset(ps->peak_decay_diff_smooth, 0, sizeof(ps->peak_decay_diff_smooth));
00647 memset(ps->delay, 0, sizeof(ps->delay));
00648 memset(ps->ap_delay, 0, sizeof(ps->ap_delay));
00649 }
00650
00651 for (k = 0; k < NR_BANDS[is34]; k++) {
00652 int i = k_to_i[k];
00653 ps->dsp.add_squares(power[i], s[k], nL - n0);
00654 }
00655
00656
00657 for (i = 0; i < NR_PAR_BANDS[is34]; i++) {
00658 for (n = n0; n < nL; n++) {
00659 float decayed_peak = peak_decay_factor * peak_decay_nrg[i];
00660 float denom;
00661 peak_decay_nrg[i] = FFMAX(decayed_peak, power[i][n]);
00662 power_smooth[i] += a_smooth * (power[i][n] - power_smooth[i]);
00663 peak_decay_diff_smooth[i] += a_smooth * (peak_decay_nrg[i] - power[i][n] - peak_decay_diff_smooth[i]);
00664 denom = transient_impact * peak_decay_diff_smooth[i];
00665 transient_gain[i][n] = (denom > power_smooth[i]) ?
00666 power_smooth[i] / denom : 1.0f;
00667 }
00668 }
00669
00670
00671
00672
00673
00674
00675
00676
00677
00678 for (k = 0; k < NR_ALLPASS_BANDS[is34]; k++) {
00679 int b = k_to_i[k];
00680 float g_decay_slope = 1.f - DECAY_SLOPE * (k - DECAY_CUTOFF[is34]);
00681 g_decay_slope = av_clipf(g_decay_slope, 0.f, 1.f);
00682 memcpy(delay[k], delay[k]+nL, PS_MAX_DELAY*sizeof(delay[k][0]));
00683 memcpy(delay[k]+PS_MAX_DELAY, s[k], numQMFSlots*sizeof(delay[k][0]));
00684 for (m = 0; m < PS_AP_LINKS; m++) {
00685 memcpy(ap_delay[k][m], ap_delay[k][m]+numQMFSlots, 5*sizeof(ap_delay[k][m][0]));
00686 }
00687 ps->dsp.decorrelate(out[k], delay[k] + PS_MAX_DELAY - 2, ap_delay[k],
00688 phi_fract[is34][k], Q_fract_allpass[is34][k],
00689 transient_gain[b], g_decay_slope, nL - n0);
00690 }
00691 for (; k < SHORT_DELAY_BAND[is34]; k++) {
00692 int i = k_to_i[k];
00693 memcpy(delay[k], delay[k]+nL, PS_MAX_DELAY*sizeof(delay[k][0]));
00694 memcpy(delay[k]+PS_MAX_DELAY, s[k], numQMFSlots*sizeof(delay[k][0]));
00695
00696 ps->dsp.mul_pair_single(out[k], delay[k] + PS_MAX_DELAY - 14,
00697 transient_gain[i], nL - n0);
00698 }
00699 for (; k < NR_BANDS[is34]; k++) {
00700 int i = k_to_i[k];
00701 memcpy(delay[k], delay[k]+nL, PS_MAX_DELAY*sizeof(delay[k][0]));
00702 memcpy(delay[k]+PS_MAX_DELAY, s[k], numQMFSlots*sizeof(delay[k][0]));
00703
00704 ps->dsp.mul_pair_single(out[k], delay[k] + PS_MAX_DELAY - 1,
00705 transient_gain[i], nL - n0);
00706 }
00707 }
00708
00709 static void remap34(int8_t (**p_par_mapped)[PS_MAX_NR_IIDICC],
00710 int8_t (*par)[PS_MAX_NR_IIDICC],
00711 int num_par, int num_env, int full)
00712 {
00713 int8_t (*par_mapped)[PS_MAX_NR_IIDICC] = *p_par_mapped;
00714 int e;
00715 if (num_par == 20 || num_par == 11) {
00716 for (e = 0; e < num_env; e++) {
00717 map_idx_20_to_34(par_mapped[e], par[e], full);
00718 }
00719 } else if (num_par == 10 || num_par == 5) {
00720 for (e = 0; e < num_env; e++) {
00721 map_idx_10_to_34(par_mapped[e], par[e], full);
00722 }
00723 } else {
00724 *p_par_mapped = par;
00725 }
00726 }
00727
00728 static void remap20(int8_t (**p_par_mapped)[PS_MAX_NR_IIDICC],
00729 int8_t (*par)[PS_MAX_NR_IIDICC],
00730 int num_par, int num_env, int full)
00731 {
00732 int8_t (*par_mapped)[PS_MAX_NR_IIDICC] = *p_par_mapped;
00733 int e;
00734 if (num_par == 34 || num_par == 17) {
00735 for (e = 0; e < num_env; e++) {
00736 map_idx_34_to_20(par_mapped[e], par[e], full);
00737 }
00738 } else if (num_par == 10 || num_par == 5) {
00739 for (e = 0; e < num_env; e++) {
00740 map_idx_10_to_20(par_mapped[e], par[e], full);
00741 }
00742 } else {
00743 *p_par_mapped = par;
00744 }
00745 }
00746
00747 static void stereo_processing(PSContext *ps, float (*l)[32][2], float (*r)[32][2], int is34)
00748 {
00749 int e, b, k;
00750
00751 float (*H11)[PS_MAX_NUM_ENV+1][PS_MAX_NR_IIDICC] = ps->H11;
00752 float (*H12)[PS_MAX_NUM_ENV+1][PS_MAX_NR_IIDICC] = ps->H12;
00753 float (*H21)[PS_MAX_NUM_ENV+1][PS_MAX_NR_IIDICC] = ps->H21;
00754 float (*H22)[PS_MAX_NUM_ENV+1][PS_MAX_NR_IIDICC] = ps->H22;
00755 int8_t *opd_hist = ps->opd_hist;
00756 int8_t *ipd_hist = ps->ipd_hist;
00757 int8_t iid_mapped_buf[PS_MAX_NUM_ENV][PS_MAX_NR_IIDICC];
00758 int8_t icc_mapped_buf[PS_MAX_NUM_ENV][PS_MAX_NR_IIDICC];
00759 int8_t ipd_mapped_buf[PS_MAX_NUM_ENV][PS_MAX_NR_IIDICC];
00760 int8_t opd_mapped_buf[PS_MAX_NUM_ENV][PS_MAX_NR_IIDICC];
00761 int8_t (*iid_mapped)[PS_MAX_NR_IIDICC] = iid_mapped_buf;
00762 int8_t (*icc_mapped)[PS_MAX_NR_IIDICC] = icc_mapped_buf;
00763 int8_t (*ipd_mapped)[PS_MAX_NR_IIDICC] = ipd_mapped_buf;
00764 int8_t (*opd_mapped)[PS_MAX_NR_IIDICC] = opd_mapped_buf;
00765 const int8_t *k_to_i = is34 ? k_to_i_34 : k_to_i_20;
00766 const float (*H_LUT)[8][4] = (PS_BASELINE || ps->icc_mode < 3) ? HA : HB;
00767
00768
00769 if (ps->num_env_old) {
00770 memcpy(H11[0][0], H11[0][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H11[0][0][0]));
00771 memcpy(H11[1][0], H11[1][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H11[1][0][0]));
00772 memcpy(H12[0][0], H12[0][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H12[0][0][0]));
00773 memcpy(H12[1][0], H12[1][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H12[1][0][0]));
00774 memcpy(H21[0][0], H21[0][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H21[0][0][0]));
00775 memcpy(H21[1][0], H21[1][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H21[1][0][0]));
00776 memcpy(H22[0][0], H22[0][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H22[0][0][0]));
00777 memcpy(H22[1][0], H22[1][ps->num_env_old], PS_MAX_NR_IIDICC*sizeof(H22[1][0][0]));
00778 }
00779
00780 if (is34) {
00781 remap34(&iid_mapped, ps->iid_par, ps->nr_iid_par, ps->num_env, 1);
00782 remap34(&icc_mapped, ps->icc_par, ps->nr_icc_par, ps->num_env, 1);
00783 if (ps->enable_ipdopd) {
00784 remap34(&ipd_mapped, ps->ipd_par, ps->nr_ipdopd_par, ps->num_env, 0);
00785 remap34(&opd_mapped, ps->opd_par, ps->nr_ipdopd_par, ps->num_env, 0);
00786 }
00787 if (!ps->is34bands_old) {
00788 map_val_20_to_34(H11[0][0]);
00789 map_val_20_to_34(H11[1][0]);
00790 map_val_20_to_34(H12[0][0]);
00791 map_val_20_to_34(H12[1][0]);
00792 map_val_20_to_34(H21[0][0]);
00793 map_val_20_to_34(H21[1][0]);
00794 map_val_20_to_34(H22[0][0]);
00795 map_val_20_to_34(H22[1][0]);
00796 ipdopd_reset(ipd_hist, opd_hist);
00797 }
00798 } else {
00799 remap20(&iid_mapped, ps->iid_par, ps->nr_iid_par, ps->num_env, 1);
00800 remap20(&icc_mapped, ps->icc_par, ps->nr_icc_par, ps->num_env, 1);
00801 if (ps->enable_ipdopd) {
00802 remap20(&ipd_mapped, ps->ipd_par, ps->nr_ipdopd_par, ps->num_env, 0);
00803 remap20(&opd_mapped, ps->opd_par, ps->nr_ipdopd_par, ps->num_env, 0);
00804 }
00805 if (ps->is34bands_old) {
00806 map_val_34_to_20(H11[0][0]);
00807 map_val_34_to_20(H11[1][0]);
00808 map_val_34_to_20(H12[0][0]);
00809 map_val_34_to_20(H12[1][0]);
00810 map_val_34_to_20(H21[0][0]);
00811 map_val_34_to_20(H21[1][0]);
00812 map_val_34_to_20(H22[0][0]);
00813 map_val_34_to_20(H22[1][0]);
00814 ipdopd_reset(ipd_hist, opd_hist);
00815 }
00816 }
00817
00818
00819 for (e = 0; e < ps->num_env; e++) {
00820 for (b = 0; b < NR_PAR_BANDS[is34]; b++) {
00821 float h11, h12, h21, h22;
00822 h11 = H_LUT[iid_mapped[e][b] + 7 + 23 * ps->iid_quant][icc_mapped[e][b]][0];
00823 h12 = H_LUT[iid_mapped[e][b] + 7 + 23 * ps->iid_quant][icc_mapped[e][b]][1];
00824 h21 = H_LUT[iid_mapped[e][b] + 7 + 23 * ps->iid_quant][icc_mapped[e][b]][2];
00825 h22 = H_LUT[iid_mapped[e][b] + 7 + 23 * ps->iid_quant][icc_mapped[e][b]][3];
00826 if (!PS_BASELINE && ps->enable_ipdopd && b < ps->nr_ipdopd_par) {
00827
00828
00829 float h11i, h12i, h21i, h22i;
00830 float ipd_adj_re, ipd_adj_im;
00831 int opd_idx = opd_hist[b] * 8 + opd_mapped[e][b];
00832 int ipd_idx = ipd_hist[b] * 8 + ipd_mapped[e][b];
00833 float opd_re = pd_re_smooth[opd_idx];
00834 float opd_im = pd_im_smooth[opd_idx];
00835 float ipd_re = pd_re_smooth[ipd_idx];
00836 float ipd_im = pd_im_smooth[ipd_idx];
00837 opd_hist[b] = opd_idx & 0x3F;
00838 ipd_hist[b] = ipd_idx & 0x3F;
00839
00840 ipd_adj_re = opd_re*ipd_re + opd_im*ipd_im;
00841 ipd_adj_im = opd_im*ipd_re - opd_re*ipd_im;
00842 h11i = h11 * opd_im;
00843 h11 = h11 * opd_re;
00844 h12i = h12 * ipd_adj_im;
00845 h12 = h12 * ipd_adj_re;
00846 h21i = h21 * opd_im;
00847 h21 = h21 * opd_re;
00848 h22i = h22 * ipd_adj_im;
00849 h22 = h22 * ipd_adj_re;
00850 H11[1][e+1][b] = h11i;
00851 H12[1][e+1][b] = h12i;
00852 H21[1][e+1][b] = h21i;
00853 H22[1][e+1][b] = h22i;
00854 }
00855 H11[0][e+1][b] = h11;
00856 H12[0][e+1][b] = h12;
00857 H21[0][e+1][b] = h21;
00858 H22[0][e+1][b] = h22;
00859 }
00860 for (k = 0; k < NR_BANDS[is34]; k++) {
00861 float h[2][4];
00862 float h_step[2][4];
00863 int start = ps->border_position[e];
00864 int stop = ps->border_position[e+1];
00865 float width = 1.f / (stop - start);
00866 b = k_to_i[k];
00867 h[0][0] = H11[0][e][b];
00868 h[0][1] = H12[0][e][b];
00869 h[0][2] = H21[0][e][b];
00870 h[0][3] = H22[0][e][b];
00871 if (!PS_BASELINE && ps->enable_ipdopd) {
00872
00873 if ((is34 && k <= 13 && k >= 9) || (!is34 && k <= 1)) {
00874 h[1][0] = -H11[1][e][b];
00875 h[1][1] = -H12[1][e][b];
00876 h[1][2] = -H21[1][e][b];
00877 h[1][3] = -H22[1][e][b];
00878 } else {
00879 h[1][0] = H11[1][e][b];
00880 h[1][1] = H12[1][e][b];
00881 h[1][2] = H21[1][e][b];
00882 h[1][3] = H22[1][e][b];
00883 }
00884 }
00885
00886 h_step[0][0] = (H11[0][e+1][b] - h[0][0]) * width;
00887 h_step[0][1] = (H12[0][e+1][b] - h[0][1]) * width;
00888 h_step[0][2] = (H21[0][e+1][b] - h[0][2]) * width;
00889 h_step[0][3] = (H22[0][e+1][b] - h[0][3]) * width;
00890 if (!PS_BASELINE && ps->enable_ipdopd) {
00891 h_step[1][0] = (H11[1][e+1][b] - h[1][0]) * width;
00892 h_step[1][1] = (H12[1][e+1][b] - h[1][1]) * width;
00893 h_step[1][2] = (H21[1][e+1][b] - h[1][2]) * width;
00894 h_step[1][3] = (H22[1][e+1][b] - h[1][3]) * width;
00895 }
00896 ps->dsp.stereo_interpolate[!PS_BASELINE && ps->enable_ipdopd](
00897 l[k] + start + 1, r[k] + start + 1,
00898 h, h_step, stop - start);
00899 }
00900 }
00901 }
00902
00903 int ff_ps_apply(AVCodecContext *avctx, PSContext *ps, float L[2][38][64], float R[2][38][64], int top)
00904 {
00905 LOCAL_ALIGNED_16(float, Lbuf, [91], [32][2]);
00906 LOCAL_ALIGNED_16(float, Rbuf, [91], [32][2]);
00907 const int len = 32;
00908 int is34 = ps->is34bands;
00909
00910 top += NR_BANDS[is34] - 64;
00911 memset(ps->delay+top, 0, (NR_BANDS[is34] - top)*sizeof(ps->delay[0]));
00912 if (top < NR_ALLPASS_BANDS[is34])
00913 memset(ps->ap_delay + top, 0, (NR_ALLPASS_BANDS[is34] - top)*sizeof(ps->ap_delay[0]));
00914
00915 hybrid_analysis(&ps->dsp, Lbuf, ps->in_buf, L, is34, len);
00916 decorrelation(ps, Rbuf, Lbuf, is34);
00917 stereo_processing(ps, Lbuf, Rbuf, is34);
00918 hybrid_synthesis(&ps->dsp, L, Lbuf, is34, len);
00919 hybrid_synthesis(&ps->dsp, R, Rbuf, is34, len);
00920
00921 return 0;
00922 }
00923
00924 #define PS_INIT_VLC_STATIC(num, size) \
00925 INIT_VLC_STATIC(&vlc_ps[num], 9, ps_tmp[num].table_size / ps_tmp[num].elem_size, \
00926 ps_tmp[num].ps_bits, 1, 1, \
00927 ps_tmp[num].ps_codes, ps_tmp[num].elem_size, ps_tmp[num].elem_size, \
00928 size);
00929
00930 #define PS_VLC_ROW(name) \
00931 { name ## _codes, name ## _bits, sizeof(name ## _codes), sizeof(name ## _codes[0]) }
00932
00933 av_cold void ff_ps_init(void) {
00934
00935 static const struct {
00936 const void *ps_codes, *ps_bits;
00937 const unsigned int table_size, elem_size;
00938 } ps_tmp[] = {
00939 PS_VLC_ROW(huff_iid_df1),
00940 PS_VLC_ROW(huff_iid_dt1),
00941 PS_VLC_ROW(huff_iid_df0),
00942 PS_VLC_ROW(huff_iid_dt0),
00943 PS_VLC_ROW(huff_icc_df),
00944 PS_VLC_ROW(huff_icc_dt),
00945 PS_VLC_ROW(huff_ipd_df),
00946 PS_VLC_ROW(huff_ipd_dt),
00947 PS_VLC_ROW(huff_opd_df),
00948 PS_VLC_ROW(huff_opd_dt),
00949 };
00950
00951 PS_INIT_VLC_STATIC(0, 1544);
00952 PS_INIT_VLC_STATIC(1, 832);
00953 PS_INIT_VLC_STATIC(2, 1024);
00954 PS_INIT_VLC_STATIC(3, 1036);
00955 PS_INIT_VLC_STATIC(4, 544);
00956 PS_INIT_VLC_STATIC(5, 544);
00957 PS_INIT_VLC_STATIC(6, 512);
00958 PS_INIT_VLC_STATIC(7, 512);
00959 PS_INIT_VLC_STATIC(8, 512);
00960 PS_INIT_VLC_STATIC(9, 512);
00961
00962 ps_tableinit();
00963 }
00964
00965 av_cold void ff_ps_ctx_init(PSContext *ps)
00966 {
00967 ff_psdsp_init(&ps->dsp);
00968 }