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29 * AAC Spectral Band Replication decoding functions (fixed-point)
30 * Copyright (c) 2008-2009 Robert Swain ( rob opendot cl )
31 * Copyright (c) 2009-2010 Alex Converse <alex.converse@gmail.com>
33 * This file is part of FFmpeg.
35 * FFmpeg is free software; you can redistribute it and/or
36 * modify it under the terms of the GNU Lesser General Public
37 * License as published by the Free Software Foundation; either
38 * version 2.1 of the License, or (at your option) any later version.
40 * FFmpeg is distributed in the hope that it will be useful,
41 * but WITHOUT ANY WARRANTY; without even the implied warranty of
42 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
43 * Lesser General Public License for more details.
45 * You should have received a copy of the GNU Lesser General Public
46 * License along with FFmpeg; if not, write to the Free Software
47 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
52 * AAC Spectral Band Replication decoding functions (fixed-point)
53 * Note: Rounding-to-nearest used unless otherwise stated
54 * @author Robert Swain ( rob opendot cl )
55 * @author Stanislav Ocovaj ( stanislav.ocovaj imgtec com )
62 #include "aacsbrdata.h"
63 #include "aacsbr_fixed_tablegen.h"
67 #include "libavutil/internal.h"
68 #include "libavutil/libm.h"
69 #include "libavutil/avassert.h"
75 static VLC vlc_sbr[10];
76 static void aacsbr_func_ptr_init(AACSBRContext *c);
77 static const int CONST_LN2 = Q31(0.6931471806/256); // ln(2)/256
78 static const int CONST_RECIP_LN2 = Q31(0.7213475204); // 0.5/ln(2)
79 static const int CONST_SQRT2 = Q30(0.7071067812); // sqrt(2)/2
80 static const int CONST_076923 = Q31(0.76923076923076923077f);
82 int fixed_log_table[10] =
84 Q31(1.0/2), Q31(1.0/3), Q31(1.0/4), Q31(1.0/5), Q31(1.0/6),
85 Q31(1.0/7), Q31(1.0/8), Q31(1.0/9), Q31(1.0/10), Q31(1.0/11)
88 static int fixed_log(int x)
90 int i, ret, xpow, tmp;
94 for (i=0; i<10; i+=2){
95 xpow = (int)(((int64_t)xpow * x + 0x40000000) >> 31);
96 tmp = (int)(((int64_t)xpow * fixed_log_table[i] + 0x40000000) >> 31);
99 xpow = (int)(((int64_t)xpow * x + 0x40000000) >> 31);
100 tmp = (int)(((int64_t)xpow * fixed_log_table[i+1] + 0x40000000) >> 31);
107 int fixed_exp_table[7] =
109 Q31(1.0/2), Q31(1.0/6), Q31(1.0/24), Q31(1.0/120),
110 Q31(1.0/720), Q31(1.0/5040), Q31(1.0/40320)
113 static int fixed_exp(int x)
115 int i, ret, xpow, tmp;
120 xpow = (int)(((int64_t)xpow * x + 0x400000) >> 23);
121 tmp = (int)(((int64_t)xpow * fixed_exp_table[i] + 0x40000000) >> 31);
128 static void make_bands(int16_t* bands, int start, int stop, int num_bands)
130 int k, previous, present;
131 int base, prod, nz = 0;
133 base = (stop << 23) / start;
134 while (base < 0x40000000){
138 base = fixed_log(base - 0x80000000);
139 base = (((base + 0x80) >> 8) + (8-nz)*CONST_LN2) / num_bands;
140 base = fixed_exp(base);
145 for (k = 0; k < num_bands-1; k++) {
146 prod = (int)(((int64_t)prod * base + 0x400000) >> 23);
147 present = (prod + 0x400000) >> 23;
148 bands[k] = present - previous;
151 bands[num_bands-1] = stop - previous;
154 /// Dequantization and stereo decoding (14496-3 sp04 p203)
155 static void sbr_dequant(SpectralBandReplication *sbr, int id_aac)
160 if (id_aac == TYPE_CPE && sbr->bs_coupling) {
161 int alpha = sbr->data[0].bs_amp_res ? 2 : 1;
162 int pan_offset = sbr->data[0].bs_amp_res ? 12 : 24;
163 for (e = 1; e <= sbr->data[0].bs_num_env; e++) {
164 for (k = 0; k < sbr->n[sbr->data[0].bs_freq_res[e]]; k++) {
165 SoftFloat temp1, temp2, fac;
167 temp1.exp = sbr->data[0].env_facs[e][k].mant * alpha + 14;
169 temp1.mant = 759250125;
171 temp1.mant = 0x20000000;
172 temp1.exp = (temp1.exp >> 1) + 1;
174 temp2.exp = (pan_offset - sbr->data[1].env_facs[e][k].mant) * alpha;
176 temp2.mant = 759250125;
178 temp2.mant = 0x20000000;
179 temp2.exp = (temp2.exp >> 1) + 1;
180 fac = av_div_sf(temp1, av_add_sf(FLOAT_1, temp2));
181 sbr->data[0].env_facs[e][k] = fac;
182 sbr->data[1].env_facs[e][k] = av_mul_sf(fac, temp2);
185 for (e = 1; e <= sbr->data[0].bs_num_noise; e++) {
186 for (k = 0; k < sbr->n_q; k++) {
187 SoftFloat temp1, temp2, fac;
189 temp1.exp = NOISE_FLOOR_OFFSET - \
190 sbr->data[0].noise_facs[e][k].mant + 2;
191 temp1.mant = 0x20000000;
192 temp2.exp = 12 - sbr->data[1].noise_facs[e][k].mant + 1;
193 temp2.mant = 0x20000000;
194 fac = av_div_sf(temp1, av_add_sf(FLOAT_1, temp2));
195 sbr->data[0].noise_facs[e][k] = fac;
196 sbr->data[1].noise_facs[e][k] = av_mul_sf(fac, temp2);
199 } else { // SCE or one non-coupled CPE
200 for (ch = 0; ch < (id_aac == TYPE_CPE) + 1; ch++) {
201 int alpha = sbr->data[ch].bs_amp_res ? 2 : 1;
202 for (e = 1; e <= sbr->data[ch].bs_num_env; e++)
203 for (k = 0; k < sbr->n[sbr->data[ch].bs_freq_res[e]]; k++){
206 temp1.exp = alpha * sbr->data[ch].env_facs[e][k].mant + 12;
208 temp1.mant = 759250125;
210 temp1.mant = 0x20000000;
211 temp1.exp = (temp1.exp >> 1) + 1;
213 sbr->data[ch].env_facs[e][k] = temp1;
215 for (e = 1; e <= sbr->data[ch].bs_num_noise; e++)
216 for (k = 0; k < sbr->n_q; k++){
217 sbr->data[ch].noise_facs[e][k].exp = NOISE_FLOOR_OFFSET - \
218 sbr->data[ch].noise_facs[e][k].mant + 1;
219 sbr->data[ch].noise_facs[e][k].mant = 0x20000000;
225 /** High Frequency Generation (14496-3 sp04 p214+) and Inverse Filtering
226 * (14496-3 sp04 p214)
227 * Warning: This routine does not seem numerically stable.
229 static void sbr_hf_inverse_filter(SBRDSPContext *dsp,
230 int (*alpha0)[2], int (*alpha1)[2],
231 const int X_low[32][40][2], int k0)
236 for (k = 0; k < k0; k++) {
237 SoftFloat phi[3][2][2];
238 SoftFloat a00, a01, a10, a11;
241 dsp->autocorrelate(X_low[k], phi);
243 dk = av_sub_sf(av_mul_sf(phi[2][1][0], phi[1][0][0]),
244 av_mul_sf(av_add_sf(av_mul_sf(phi[1][1][0], phi[1][1][0]),
245 av_mul_sf(phi[1][1][1], phi[1][1][1])), FLOAT_0999999));
251 SoftFloat temp_real, temp_im;
252 temp_real = av_sub_sf(av_sub_sf(av_mul_sf(phi[0][0][0], phi[1][1][0]),
253 av_mul_sf(phi[0][0][1], phi[1][1][1])),
254 av_mul_sf(phi[0][1][0], phi[1][0][0]));
255 temp_im = av_sub_sf(av_add_sf(av_mul_sf(phi[0][0][0], phi[1][1][1]),
256 av_mul_sf(phi[0][0][1], phi[1][1][0])),
257 av_mul_sf(phi[0][1][1], phi[1][0][0]));
259 a10 = av_div_sf(temp_real, dk);
260 a11 = av_div_sf(temp_im, dk);
263 if (!phi[1][0][0].mant) {
267 SoftFloat temp_real, temp_im;
268 temp_real = av_add_sf(phi[0][0][0],
269 av_add_sf(av_mul_sf(a10, phi[1][1][0]),
270 av_mul_sf(a11, phi[1][1][1])));
271 temp_im = av_add_sf(phi[0][0][1],
272 av_sub_sf(av_mul_sf(a11, phi[1][1][0]),
273 av_mul_sf(a10, phi[1][1][1])));
275 temp_real.mant = -temp_real.mant;
276 temp_im.mant = -temp_im.mant;
277 a00 = av_div_sf(temp_real, phi[1][0][0]);
278 a01 = av_div_sf(temp_im, phi[1][0][0]);
283 alpha0[k][0] = 0x7fffffff;
288 alpha0[k][0] = a00.mant;
290 round = 1 << (shift-1);
291 alpha0[k][0] = (a00.mant + round) >> shift;
297 alpha0[k][1] = 0x7fffffff;
302 alpha0[k][1] = a01.mant;
304 round = 1 << (shift-1);
305 alpha0[k][1] = (a01.mant + round) >> shift;
310 alpha1[k][0] = 0x7fffffff;
315 alpha1[k][0] = a10.mant;
317 round = 1 << (shift-1);
318 alpha1[k][0] = (a10.mant + round) >> shift;
324 alpha1[k][1] = 0x7fffffff;
329 alpha1[k][1] = a11.mant;
331 round = 1 << (shift-1);
332 alpha1[k][1] = (a11.mant + round) >> shift;
336 shift = (int)(((int64_t)(alpha1[k][0]>>1) * (alpha1[k][0]>>1) + \
337 (int64_t)(alpha1[k][1]>>1) * (alpha1[k][1]>>1) + \
339 if (shift >= 0x20000000){
346 shift = (int)(((int64_t)(alpha0[k][0]>>1) * (alpha0[k][0]>>1) + \
347 (int64_t)(alpha0[k][1]>>1) * (alpha0[k][1]>>1) + \
349 if (shift >= 0x20000000){
358 /// Chirp Factors (14496-3 sp04 p214)
359 static void sbr_chirp(SpectralBandReplication *sbr, SBRData *ch_data)
363 static const int bw_tab[] = { 0, 1610612736, 1932735283, 2104533975 };
366 for (i = 0; i < sbr->n_q; i++) {
367 if (ch_data->bs_invf_mode[0][i] + ch_data->bs_invf_mode[1][i] == 1)
370 new_bw = bw_tab[ch_data->bs_invf_mode[0][i]];
372 if (new_bw < ch_data->bw_array[i]){
373 accu = (int64_t)new_bw * 1610612736;
374 accu += (int64_t)ch_data->bw_array[i] * 0x20000000;
375 new_bw = (int)((accu + 0x40000000) >> 31);
377 accu = (int64_t)new_bw * 1946157056;
378 accu += (int64_t)ch_data->bw_array[i] * 201326592;
379 new_bw = (int)((accu + 0x40000000) >> 31);
381 ch_data->bw_array[i] = new_bw < 0x2000000 ? 0 : new_bw;
386 * Calculation of levels of additional HF signal components (14496-3 sp04 p219)
387 * and Calculation of gain (14496-3 sp04 p219)
389 static void sbr_gain_calc(AACContext *ac, SpectralBandReplication *sbr,
390 SBRData *ch_data, const int e_a[2])
393 // max gain limits : -3dB, 0dB, 3dB, inf dB (limiter off)
394 static const SoftFloat limgain[4] = { { 760155524, 0 }, { 0x20000000, 1 },
395 { 758351638, 1 }, { 625000000, 34 } };
397 for (e = 0; e < ch_data->bs_num_env; e++) {
398 int delta = !((e == e_a[1]) || (e == e_a[0]));
399 for (k = 0; k < sbr->n_lim; k++) {
400 SoftFloat gain_boost, gain_max;
401 SoftFloat sum[2] = { { 0, 0}, { 0, 0 } };
402 for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
403 const SoftFloat temp = av_div_sf(sbr->e_origmapped[e][m],
404 av_add_sf(FLOAT_1, sbr->q_mapped[e][m]));
405 sbr->q_m[e][m] = av_sqrt_sf(av_mul_sf(temp, sbr->q_mapped[e][m]));
406 sbr->s_m[e][m] = av_sqrt_sf(av_mul_sf(temp, av_int2sf(ch_data->s_indexmapped[e + 1][m], 0)));
407 if (!sbr->s_mapped[e][m]) {
409 sbr->gain[e][m] = av_sqrt_sf(av_div_sf(sbr->e_origmapped[e][m],
410 av_mul_sf(av_add_sf(FLOAT_1, sbr->e_curr[e][m]),
411 av_add_sf(FLOAT_1, sbr->q_mapped[e][m]))));
413 sbr->gain[e][m] = av_sqrt_sf(av_div_sf(sbr->e_origmapped[e][m],
414 av_add_sf(FLOAT_1, sbr->e_curr[e][m])));
417 sbr->gain[e][m] = av_sqrt_sf(
419 av_mul_sf(sbr->e_origmapped[e][m], sbr->q_mapped[e][m]),
421 av_add_sf(FLOAT_1, sbr->e_curr[e][m]),
422 av_add_sf(FLOAT_1, sbr->q_mapped[e][m]))));
425 for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
426 sum[0] = av_add_sf(sum[0], sbr->e_origmapped[e][m]);
427 sum[1] = av_add_sf(sum[1], sbr->e_curr[e][m]);
429 gain_max = av_mul_sf(limgain[sbr->bs_limiter_gains],
432 av_add_sf(FLOAT_EPSILON, sum[0]),
433 av_add_sf(FLOAT_EPSILON, sum[1]))));
434 if (av_gt_sf(gain_max, FLOAT_100000))
435 gain_max = FLOAT_100000;
436 for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
437 SoftFloat q_m_max = av_div_sf(
438 av_mul_sf(sbr->q_m[e][m], gain_max),
440 if (av_gt_sf(sbr->q_m[e][m], q_m_max))
441 sbr->q_m[e][m] = q_m_max;
442 if (av_gt_sf(sbr->gain[e][m], gain_max))
443 sbr->gain[e][m] = gain_max;
445 sum[0] = sum[1] = FLOAT_0;
446 for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
447 sum[0] = av_add_sf(sum[0], sbr->e_origmapped[e][m]);
448 sum[1] = av_add_sf(sum[1],
450 av_mul_sf(sbr->e_curr[e][m],
453 sum[1] = av_add_sf(sum[1],
454 av_mul_sf(sbr->s_m[e][m], sbr->s_m[e][m]));
455 if (delta && !sbr->s_m[e][m].mant)
456 sum[1] = av_add_sf(sum[1],
457 av_mul_sf(sbr->q_m[e][m], sbr->q_m[e][m]));
459 gain_boost = av_sqrt_sf(
461 av_add_sf(FLOAT_EPSILON, sum[0]),
462 av_add_sf(FLOAT_EPSILON, sum[1])));
463 if (av_gt_sf(gain_boost, FLOAT_1584893192))
464 gain_boost = FLOAT_1584893192;
466 for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
467 sbr->gain[e][m] = av_mul_sf(sbr->gain[e][m], gain_boost);
468 sbr->q_m[e][m] = av_mul_sf(sbr->q_m[e][m], gain_boost);
469 sbr->s_m[e][m] = av_mul_sf(sbr->s_m[e][m], gain_boost);
475 /// Assembling HF Signals (14496-3 sp04 p220)
476 static void sbr_hf_assemble(int Y1[38][64][2],
477 const int X_high[64][40][2],
478 SpectralBandReplication *sbr, SBRData *ch_data,
482 const int h_SL = 4 * !sbr->bs_smoothing_mode;
483 const int kx = sbr->kx[1];
484 const int m_max = sbr->m[1];
485 static const SoftFloat h_smooth[5] = {
492 SoftFloat (*g_temp)[48] = ch_data->g_temp, (*q_temp)[48] = ch_data->q_temp;
493 int indexnoise = ch_data->f_indexnoise;
494 int indexsine = ch_data->f_indexsine;
497 for (i = 0; i < h_SL; i++) {
498 memcpy(g_temp[i + 2*ch_data->t_env[0]], sbr->gain[0], m_max * sizeof(sbr->gain[0][0]));
499 memcpy(q_temp[i + 2*ch_data->t_env[0]], sbr->q_m[0], m_max * sizeof(sbr->q_m[0][0]));
502 for (i = 0; i < 4; i++) {
503 memcpy(g_temp[i + 2 * ch_data->t_env[0]],
504 g_temp[i + 2 * ch_data->t_env_num_env_old],
506 memcpy(q_temp[i + 2 * ch_data->t_env[0]],
507 q_temp[i + 2 * ch_data->t_env_num_env_old],
512 for (e = 0; e < ch_data->bs_num_env; e++) {
513 for (i = 2 * ch_data->t_env[e]; i < 2 * ch_data->t_env[e + 1]; i++) {
514 memcpy(g_temp[h_SL + i], sbr->gain[e], m_max * sizeof(sbr->gain[0][0]));
515 memcpy(q_temp[h_SL + i], sbr->q_m[e], m_max * sizeof(sbr->q_m[0][0]));
519 for (e = 0; e < ch_data->bs_num_env; e++) {
520 for (i = 2 * ch_data->t_env[e]; i < 2 * ch_data->t_env[e + 1]; i++) {
521 SoftFloat g_filt_tab[48];
522 SoftFloat q_filt_tab[48];
523 SoftFloat *g_filt, *q_filt;
525 if (h_SL && e != e_a[0] && e != e_a[1]) {
528 for (m = 0; m < m_max; m++) {
529 const int idx1 = i + h_SL;
530 g_filt[m].mant = g_filt[m].exp = 0;
531 q_filt[m].mant = q_filt[m].exp = 0;
532 for (j = 0; j <= h_SL; j++) {
533 g_filt[m] = av_add_sf(g_filt[m],
534 av_mul_sf(g_temp[idx1 - j][m],
536 q_filt[m] = av_add_sf(q_filt[m],
537 av_mul_sf(q_temp[idx1 - j][m],
542 g_filt = g_temp[i + h_SL];
546 sbr->dsp.hf_g_filt(Y1[i] + kx, X_high + kx, g_filt, m_max,
547 i + ENVELOPE_ADJUSTMENT_OFFSET);
549 if (e != e_a[0] && e != e_a[1]) {
550 sbr->dsp.hf_apply_noise[indexsine](Y1[i] + kx, sbr->s_m[e],
554 int idx = indexsine&1;
555 int A = (1-((indexsine+(kx & 1))&2));
556 int B = (A^(-idx)) + idx;
557 int *out = &Y1[i][kx][idx];
560 SoftFloat *in = sbr->s_m[e];
561 for (m = 0; m+1 < m_max; m+=2) {
562 shift = 22 - in[m ].exp;
563 round = 1 << (shift-1);
564 out[2*m ] += (in[m ].mant * A + round) >> shift;
566 shift = 22 - in[m+1].exp;
567 round = 1 << (shift-1);
568 out[2*m+2] += (in[m+1].mant * B + round) >> shift;
572 shift = 22 - in[m ].exp;
573 round = 1 << (shift-1);
575 out[2*m ] += (in[m ].mant * A + round) >> shift;
578 indexnoise = (indexnoise + m_max) & 0x1ff;
579 indexsine = (indexsine + 1) & 3;
582 ch_data->f_indexnoise = indexnoise;
583 ch_data->f_indexsine = indexsine;
586 #include "aacsbr_template.c"