45 #define ENVELOPE_ADJUSTMENT_OFFSET 2 
   46 #define NOISE_FLOOR_OFFSET 6.0f 
   84     { 60, 60, 24, 24, 31, 31, 12, 12, 31, 12 };
 
   86 #define SBR_INIT_VLC_STATIC(num, size) \ 
   87     INIT_VLC_STATIC(&vlc_sbr[num], 9, sbr_tmp[num].table_size / sbr_tmp[num].elem_size,     \ 
   88                     sbr_tmp[num].sbr_bits ,                      1,                      1, \ 
   89                     sbr_tmp[num].sbr_codes, sbr_tmp[num].elem_size, sbr_tmp[num].elem_size, \ 
   92 #define SBR_VLC_ROW(name) \ 
   93     { name ## _codes, name ## _bits, sizeof(name ## _codes), sizeof(name ## _codes[0]) } 
  100         const void *sbr_codes, *sbr_bits;
 
  101         const unsigned int table_size, elem_size;
 
  147     sbr->
kx[0] = sbr->
kx[1];
 
  169     return *(
const int16_t *)a - *(
const int16_t *)
b;
 
  175     for (i = 0; i <= last_el; i++)
 
  176         if (table[i] == needle)
 
  186         static const float bands_warped[3] = { 1.32715174233856803909f,   
 
  187                                                1.18509277094158210129f,   
 
  188                                                1.11987160404675912501f }; 
 
  189         const float lim_bands_per_octave_warped = bands_warped[sbr->
bs_limiter_bands - 1];
 
  190         int16_t patch_borders[7];
 
  193         patch_borders[0] = sbr->
kx[1];
 
  200             memcpy(sbr->
f_tablelim + sbr->
n[0] + 1, patch_borders + 1,
 
  201                    (sbr->
num_patches - 1) * 
sizeof(patch_borders[0]));
 
  208         while (out < sbr->f_tablelim + sbr->
n_lim) {
 
  209             if (*in >= *
out * lim_bands_per_octave_warped) {
 
  211             } 
else if (*in == *
out ||
 
  251     if (bs_header_extra_1) {
 
  265     if (bs_header_extra_2) {
 
  285     int i, 
min = array[0];
 
  286     for (i = 1; i < nel; i++)
 
  287         min = 
FFMIN(array[i], min);
 
  293     int k, previous, present;
 
  296     base = 
powf((
float)stop / start, 1.0f / num_bands);
 
  300     for (k = 0; k < num_bands-1; k++) {
 
  303         bands[k] = present - previous;
 
  306     bands[num_bands-1] = stop - previous;
 
  316     if (bs_xover_band >= n_master) {
 
  318                "Invalid bitstream, crossover band index beyond array bounds: %d\n",
 
  329     unsigned int temp, max_qmf_subbands = 0;
 
  330     unsigned int start_min, stop_min;
 
  332     const int8_t *sbr_offset_ptr;
 
  355     case 44100: 
case 48000: 
case 64000:
 
  358     case 88200: 
case 96000: 
case 128000: 
case 176400: 
case 192000:
 
  363                "Unsupported sample rate for SBR: %d\n", sbr->
sample_rate);
 
  373         sbr->
k[2] = stop_min;
 
  377             sbr->
k[2] += stop_dk[k];
 
  379         sbr->
k[2] = 2*sbr->
k[0];
 
  381         sbr->
k[2] = 3*sbr->
k[0];
 
  387     sbr->
k[2] = 
FFMIN(64, sbr->
k[2]);
 
  391         max_qmf_subbands = 48;
 
  393         max_qmf_subbands = 35;
 
  395         max_qmf_subbands = 32;
 
  399     if (sbr->
k[2] - sbr->
k[0] > max_qmf_subbands) {
 
  401                "Invalid bitstream, too many QMF subbands: %d\n", sbr->
k[2] - sbr->
k[0]);
 
  409         sbr->
n_master = ((sbr->
k[2] - sbr->
k[0] + (dk&2)) >> dk) << 1;
 
  413         for (k = 1; k <= sbr->
n_master; k++)
 
  416         k2diff = sbr->
k[2] - sbr->
k[0] - sbr->
n_master * dk;
 
  425         for (k = 1; k <= sbr->
n_master; k++)
 
  430         int two_regions, num_bands_0;
 
  431         int vdk0_max, vdk1_min;
 
  434         if (49 * sbr->
k[2] > 110 * sbr->
k[0]) {
 
  436             sbr->
k[1] = 2 * sbr->
k[0];
 
  439             sbr->
k[1] = sbr->
k[2];
 
  442         num_bands_0 = 
lrintf(half_bands * 
log2f(sbr->
k[1] / (
float)sbr->
k[0])) * 2;
 
  444         if (num_bands_0 <= 0) { 
 
  454         vdk0_max = vk0[num_bands_0];
 
  457         for (k = 1; k <= num_bands_0; k++) {
 
  467             float invwarp = spectrum->
bs_alter_scale ? 0.76923076923076923077f
 
  469             int num_bands_1 = 
lrintf(half_bands * invwarp *
 
  470                                      log2f(sbr->
k[2] / (
float)sbr->
k[1])) * 2;
 
  476             if (vdk1_min < vdk0_max) {
 
  479                 change = 
FFMIN(vdk0_max - vk1[1], (vk1[num_bands_1] - vk1[1]) >> 1);
 
  481                 vk1[num_bands_1] -= change;
 
  487             for (k = 1; k <= num_bands_1; k++) {
 
  495             sbr->
n_master = num_bands_0 + num_bands_1;
 
  499                    (num_bands_0 + 1) * 
sizeof(sbr->
f_master[0]));
 
  500             memcpy(&sbr->
f_master[num_bands_0 + 1], vk1 + 1,
 
  501                     num_bands_1      * 
sizeof(sbr->
f_master[0]));
 
  519     int usb = sbr->
kx[1];
 
  524     if (goal_sb < sbr->kx[1] + sbr->
m[1]) {
 
  525         for (k = 0; sbr->
f_master[k] < goal_sb; k++) ;
 
  531         for (i = k; i == k || sb > (sbr->
k[0] - 1 + msb - odd); i--) {
 
  533             odd = (sb + sbr->
k[0]) & 1;
 
  557     } 
while (sb != sbr->
kx[1] + sbr->
m[1]);
 
  572     sbr->
n[0] = (sbr->
n[1] + 1) >> 1;
 
  575            (sbr->
n[1] + 1) * 
sizeof(sbr->
f_master[0]));
 
  580     if (sbr->
kx[1] + sbr->
m[1] > 64) {
 
  582                "Stop frequency border too high: %d\n", sbr->
kx[1] + sbr->
m[1]);
 
  585     if (sbr->
kx[1] > 32) {
 
  591     temp = sbr->
n[1] & 1;
 
  592     for (k = 1; k <= sbr->
n[0]; k++)
 
  596                                log2f(sbr->
k[2] / (
float)sbr->
kx[1]))); 
 
  604     for (k = 1; k <= sbr->
n_q; k++) {
 
  605         temp += (sbr->
n[0] - 
temp) / (sbr->
n_q + 1 - k);
 
  624     for (i = 0; i < elements; i++) {
 
  638     unsigned bs_pointer = 0;
 
  640     int abs_bord_trail = 16;
 
  641     int num_rel_lead, num_rel_trail;
 
  642     unsigned bs_num_env_old = ch_data->
bs_num_env;
 
  657                    "Invalid bitstream, too many SBR envelopes in FIXFIX type SBR frame: %d\n",
 
  662         ch_data->
t_env[0]                   = 0;
 
  665         abs_bord_trail = (abs_bord_trail + (ch_data->
bs_num_env >> 1)) /
 
  667         for (i = 0; i < num_rel_lead; i++)
 
  668             ch_data->
t_env[i + 1] = ch_data->
t_env[i] + abs_bord_trail;
 
  678         ch_data->
t_env[0]                   = 0;
 
  681         for (i = 0; i < num_rel_trail; i++)
 
  696         for (i = 0; i < num_rel_lead; i++)
 
  708         ch_data->
bs_num_env                 = num_rel_lead + num_rel_trail + 1;
 
  712                    "Invalid bitstream, too many SBR envelopes in VARVAR type SBR frame: %d\n",
 
  719         for (i = 0; i < num_rel_lead; i++)
 
  721         for (i = 0; i < num_rel_trail; i++)
 
  733                "Invalid bitstream, bs_pointer points to a middle noise border outside the time borders table: %d\n",
 
  739         if (ch_data->
t_env[i-1] > ch_data->
t_env[i]) {
 
  747     ch_data->
t_q[0]                     = ch_data->
t_env[0];
 
  758             else if (bs_pointer == 1)
 
  761                 idx = bs_pointer - 1;
 
  763         ch_data->
t_q[1] = ch_data->
t_env[idx];
 
  766     ch_data->
e_a[0] = -(ch_data->
e_a[1] != bs_num_env_old); 
 
  767     ch_data->
e_a[1] = -1;
 
  771         ch_data->
e_a[1] = bs_pointer - 1;
 
  785     memcpy(dst->
t_q,           src->
t_q,           
sizeof(dst->
t_q));
 
  790     dst->
e_a[1]            = src->
e_a[1];
 
  808     for (i = 0; i < sbr->
n_q; i++)
 
  817     VLC_TYPE (*t_huff)[2], (*f_huff)[2];
 
  820     const int odd = sbr->
n[1] & 1;
 
  856                 for (j = 0; j < sbr->
n[ch_data->
bs_freq_res[i + 1]]; j++)
 
  859                 for (j = 0; j < sbr->
n[ch_data->
bs_freq_res[i + 1]]; j++) {
 
  864                 for (j = 0; j < sbr->
n[ch_data->
bs_freq_res[i + 1]]; j++) {
 
  865                     k = j ? 2*j - odd : 0; 
 
  871             for (j = 1; j < sbr->
n[ch_data->
bs_freq_res[i + 1]]; j++)
 
  885     VLC_TYPE (*t_huff)[2], (*f_huff)[2];
 
  903             for (j = 0; j < sbr->
n_q; j++)
 
  907             for (j = 1; j < sbr->
n_q; j++)
 
  919                                int bs_extension_id, 
int *num_bits_left)
 
  921     switch (bs_extension_id) {
 
  924             av_log(ac->
avctx, 
AV_LOG_ERROR, 
"Parametric Stereo signaled to be not-present but was found in the bitstream.\n");
 
  940         if (bs_extension_id || *num_bits_left > 16 || 
show_bits(gb, *num_bits_left))
 
 1027             "Invalid bitstream - cannot apply SBR to element type %d\n", id_aac);
 
 1032         int num_bits_left = 
get_bits(gb, 4); 
 
 1033         if (num_bits_left == 15)
 
 1036         num_bits_left <<= 3;
 
 1037         while (num_bits_left > 7) {
 
 1041         if (num_bits_left < 0) {
 
 1044         if (num_bits_left > 0)
 
 1059                "SBR reset failed. Switching SBR to pure upsampling mode.\n");
 
 1075     unsigned int num_sbr_bits = 0, num_align_bits;
 
 1076     unsigned bytes_read;
 
 1093     sbr->
kx[0] = sbr->
kx[1];
 
 1094     sbr->
m[0] = sbr->
m[1];
 
 1107     num_align_bits = ((cnt << 3) - 4 - num_sbr_bits) & 7;
 
 1108     bytes_read = ((num_sbr_bits + num_align_bits + 4) >> 3);
 
 1110     if (bytes_read > cnt) {
 
 1112                "Expected to read %d SBR bytes actually read %d.\n", cnt, bytes_read);
 
 1135                 fac   = temp1 / (1.0f + temp2);
 
 1141             for (k = 0; k < sbr->
n_q; k++) {
 
 1149                 fac = temp1 / (1.0f + temp2);
 
 1155         for (ch = 0; ch < (id_aac == 
TYPE_CPE) + 1; ch++) {
 
 1168                 for (k = 0; k < sbr->
n_q; k++)
 
 1181 #ifndef sbr_qmf_analysis 
 1184                              float z[320], 
float W[2][32][32][2], 
int buf_idx)
 
 1187     memcpy(x    , x+1024, (320-32)*
sizeof(x[0]));
 
 1188     memcpy(x+288, in,         1024*
sizeof(x[0]));
 
 1189     for (i = 0; i < 32; i++) { 
 
 1205 #ifndef sbr_qmf_synthesis 
 1208                               float *
out, 
float X[2][38][64],
 
 1209                               float mdct_buf[2][64],
 
 1210                               float *
v0, 
int *v_off, 
const unsigned int div)
 
 1214     const int step = 128 >> div;
 
 1216     for (i = 0; i < 32; i++) {
 
 1217         if (*v_off < step) {
 
 1218             int saved_samples = (1280 - 128) >> div;
 
 1226             for (n = 0; n < 32; n++) {
 
 1227                 X[0][i][   
n] = -X[0][i][
n];
 
 1228                 X[0][i][32+
n] =  X[1][i][31-
n];
 
 1230             mdct->
imdct_half(mdct, mdct_buf[0], X[0][i]);
 
 1234             mdct->
imdct_half(mdct, mdct_buf[0], X[0][i]);
 
 1235             mdct->
imdct_half(mdct, mdct_buf[1], X[1][i]);
 
 1238         dsp->
vector_fmul    (out, v                , sbr_qmf_window                       , 64 >> div);
 
 1239         dsp->
vector_fmul_add(out, v + ( 192 >> div), sbr_qmf_window + ( 64 >> div), out   , 64 >> div);
 
 1240         dsp->
vector_fmul_add(out, v + ( 256 >> div), sbr_qmf_window + (128 >> div), out   , 64 >> div);
 
 1241         dsp->
vector_fmul_add(out, v + ( 448 >> div), sbr_qmf_window + (192 >> div), out   , 64 >> div);
 
 1242         dsp->
vector_fmul_add(out, v + ( 512 >> div), sbr_qmf_window + (256 >> div), out   , 64 >> div);
 
 1243         dsp->
vector_fmul_add(out, v + ( 704 >> div), sbr_qmf_window + (320 >> div), out   , 64 >> div);
 
 1244         dsp->
vector_fmul_add(out, v + ( 768 >> div), sbr_qmf_window + (384 >> div), out   , 64 >> div);
 
 1245         dsp->
vector_fmul_add(out, v + ( 960 >> div), sbr_qmf_window + (448 >> div), out   , 64 >> div);
 
 1246         dsp->
vector_fmul_add(out, v + (1024 >> div), sbr_qmf_window + (512 >> div), out   , 64 >> div);
 
 1247         dsp->
vector_fmul_add(out, v + (1216 >> div), sbr_qmf_window + (576 >> div), out   , 64 >> div);
 
 1258                                   float (*alpha0)[2], 
float (*alpha1)[2],
 
 1259                                   const float X_low[32][40][2], 
int k0)
 
 1262     for (k = 0; k < k0; k++) {
 
 1268         dk =  phi[2][1][0] * phi[1][0][0] -
 
 1269              (phi[1][1][0] * phi[1][1][0] + phi[1][1][1] * phi[1][1][1]) / 1.000001f;
 
 1275             float temp_real, temp_im;
 
 1276             temp_real = phi[0][0][0] * phi[1][1][0] -
 
 1277                         phi[0][0][1] * phi[1][1][1] -
 
 1278                         phi[0][1][0] * phi[1][0][0];
 
 1279             temp_im   = phi[0][0][0] * phi[1][1][1] +
 
 1280                         phi[0][0][1] * phi[1][1][0] -
 
 1281                         phi[0][1][1] * phi[1][0][0];
 
 1283             alpha1[k][0] = temp_real / dk;
 
 1284             alpha1[k][1] = temp_im   / dk;
 
 1287         if (!phi[1][0][0]) {
 
 1291             float temp_real, temp_im;
 
 1292             temp_real = phi[0][0][0] + alpha1[k][0] * phi[1][1][0] +
 
 1293                                        alpha1[k][1] * phi[1][1][1];
 
 1294             temp_im   = phi[0][0][1] + alpha1[k][1] * phi[1][1][0] -
 
 1295                                        alpha1[k][0] * phi[1][1][1];
 
 1297             alpha0[k][0] = -temp_real / phi[1][0][0];
 
 1298             alpha0[k][1] = -temp_im   / phi[1][0][0];
 
 1301         if (alpha1[k][0] * alpha1[k][0] + alpha1[k][1] * alpha1[k][1] >= 16.0f ||
 
 1302            alpha0[k][0] * alpha0[k][0] + alpha0[k][1] * alpha0[k][1] >= 16.0f) {
 
 1316     static const float bw_tab[] = { 0.0f, 0.75f, 0.9f, 0.98f };
 
 1318     for (i = 0; i < sbr->
n_q; i++) {
 
 1324         if (new_bw < ch_data->bw_array[i]) {
 
 1325             new_bw = 0.75f    * new_bw + 0.25f    * ch_data->
bw_array[i];
 
 1327             new_bw = 0.90625f * new_bw + 0.09375f * ch_data->
bw_array[i];
 
 1328         ch_data->
bw_array[i] = new_bw < 0.015625f ? 0.0f : new_bw;
 
 1334                       float X_low[32][40][2], 
const float W[2][32][32][2],
 
 1338     const int t_HFGen = 8;
 
 1340     memset(X_low, 0, 32*
sizeof(*X_low));
 
 1341     for (k = 0; k < sbr->
kx[1]; k++) {
 
 1342         for (i = t_HFGen; i < i_f + t_HFGen; i++) {
 
 1343             X_low[k][i][0] = W[buf_idx][i - t_HFGen][k][0];
 
 1344             X_low[k][i][1] = W[buf_idx][i - t_HFGen][k][1];
 
 1347     buf_idx = 1-buf_idx;
 
 1348     for (k = 0; k < sbr->
kx[0]; k++) {
 
 1349         for (i = 0; i < t_HFGen; i++) {
 
 1350             X_low[k][i][0] = W[buf_idx][i + i_f - t_HFGen][k][0];
 
 1351             X_low[k][i][1] = W[buf_idx][i + i_f - t_HFGen][k][1];
 
 1359                       float X_high[64][40][2], 
const float X_low[32][40][2],
 
 1360                       const float (*alpha0)[2], 
const float (*alpha1)[2],
 
 1361                       const float bw_array[5], 
const uint8_t *t_env,
 
 1376                        "ERROR : no subband found for frequency %d\n", k);
 
 1382                             alpha0[p], alpha1[p], bw_array[g],
 
 1383                             2 * t_env[0], 2 * t_env[bs_num_env]);
 
 1386     if (k < sbr->
m[1] + sbr->
kx[1])
 
 1387         memset(X_high + k, 0, (sbr->
m[1] + sbr->
kx[1] - k) * 
sizeof(*X_high));
 
 1394                      const float Y0[38][64][2], 
const float Y1[38][64][2],
 
 1395                      const float X_low[32][40][2], 
int ch)
 
 1400     memset(X, 0, 2*
sizeof(*X));
 
 1401     for (k = 0; k < sbr->
kx[0]; k++) {
 
 1402         for (i = 0; i < i_Temp; i++) {
 
 1407     for (; k < sbr->
kx[0] + sbr->
m[0]; k++) {
 
 1408         for (i = 0; i < i_Temp; i++) {
 
 1409             X[0][i][k] = Y0[i + i_f][k][0];
 
 1410             X[1][i][k] = Y0[i + i_f][k][1];
 
 1414     for (k = 0; k < sbr->
kx[1]; k++) {
 
 1415         for (i = i_Temp; i < 38; i++) {
 
 1420     for (; k < sbr->
kx[1] + sbr->
m[1]; k++) {
 
 1421         for (i = i_Temp; i < i_f; i++) {
 
 1422             X[0][i][k] = Y1[i][k][0];
 
 1423             X[1][i][k] = Y1[i][k][1];
 
 1439         const unsigned int ilim = sbr->
n[ch_data->
bs_freq_res[e + 1]];
 
 1443         if (sbr->
kx[1] != table[0]) {
 
 1445                    "Derived frequency tables were not regenerated.\n");
 
 1449         for (i = 0; i < ilim; i++)
 
 1450             for (m = table[i]; m < table[i + 1]; m++)
 
 1455         for (i = 0; i < sbr->
n_q; i++)
 
 1456             for (m = sbr->
f_tablenoise[i]; m < sbr->f_tablenoise[i + 1]; m++)
 
 1459         for (i = 0; i < sbr->
n[1]; i++) {
 
 1461                 const unsigned int m_midpoint =
 
 1465                     (e >= e_a[1] || (ch_data->
s_indexmapped[0][m_midpoint - sbr->
kx[1]] == 1));
 
 1469         for (i = 0; i < ilim; i++) {
 
 1470             int additional_sinusoid_present = 0;
 
 1471             for (m = table[i]; m < table[i + 1]; m++) {
 
 1473                     additional_sinusoid_present = 1;
 
 1477             memset(&sbr->
s_mapped[e][table[i] - sbr->
kx[1]], additional_sinusoid_present,
 
 1478                    (table[i + 1] - table[i]) * 
sizeof(sbr->
s_mapped[e][0]));
 
 1491     int kx1 = sbr->
kx[1];
 
 1495             const float recip_env_size = 0.5f / (ch_data->
t_env[e + 1] - ch_data->
t_env[e]);
 
 1499             for (m = 0; m < sbr->
m[1]; m++) {
 
 1500                 float sum = sbr->
dsp.
sum_square(X_high[m+kx1] + ilb, iub - ilb);
 
 1501                 e_curr[e][
m] = sum * recip_env_size;
 
 1508             const int env_size = 2 * (ch_data->
t_env[e + 1] - ch_data->
t_env[e]);
 
 1513             for (p = 0; p < sbr->
n[ch_data->
bs_freq_res[e + 1]]; p++) {
 
 1515                 const int den = env_size * (table[p + 1] - table[p]);
 
 1517                 for (k = table[p]; k < table[p + 1]; k++) {
 
 1521                 for (k = table[p]; k < table[p + 1]; k++) {
 
 1522                     e_curr[e][k - kx1] = sum;
 
 1534                           SBRData *ch_data, 
const int e_a[2])
 
 1538     static const float limgain[4] = { 0.70795, 1.0, 1.41254, 10000000000 };
 
 1541         int delta = !((e == e_a[1]) || (e == e_a[0]));
 
 1542         for (k = 0; k < sbr->
n_lim; k++) {
 
 1543             float gain_boost, gain_max;
 
 1544             float sum[2] = { 0.0f, 0.0f };
 
 1545             for (m = sbr->
f_tablelim[k] - sbr->
kx[1]; m < sbr->f_tablelim[k + 1] - sbr->
kx[1]; m++) {
 
 1551                                             ((1.0f + sbr->
e_curr[e][m]) *
 
 1552                                              (1.0f + sbr->
q_mapped[e][m] * delta)));
 
 1555                                             ((1.0f + sbr->
e_curr[e][m]) *
 
 1559             for (m = sbr->
f_tablelim[k] - sbr->
kx[1]; m < sbr->f_tablelim[k + 1] - sbr->
kx[1]; m++) {
 
 1563             gain_max = limgain[sbr->
bs_limiter_gains] * sqrtf((FLT_EPSILON + sum[0]) / (FLT_EPSILON + sum[1]));
 
 1564             gain_max = 
FFMIN(100000.f, gain_max);
 
 1565             for (m = sbr->
f_tablelim[k] - sbr->
kx[1]; m < sbr->f_tablelim[k + 1] - sbr->
kx[1]; m++) {
 
 1566                 float q_m_max   = sbr->
q_m[e][
m] * gain_max / sbr->
gain[e][
m];
 
 1570             sum[0] = sum[1] = 0.0f;
 
 1571             for (m = sbr->
f_tablelim[k] - sbr->
kx[1]; m < sbr->f_tablelim[k + 1] - sbr->
kx[1]; m++) {
 
 1575                           + (delta && !sbr->
s_m[e][
m]) * sbr->
q_m[e][m] * sbr->
q_m[e][m];
 
 1577             gain_boost = sqrtf((FLT_EPSILON + sum[0]) / (FLT_EPSILON + sum[1]));
 
 1578             gain_boost = 
FFMIN(1.584893192f, gain_boost);
 
 1579             for (m = sbr->
f_tablelim[k] - sbr->
kx[1]; m < sbr->f_tablelim[k + 1] - sbr->
kx[1]; m++) {
 
 1580                 sbr->
gain[e][
m] *= gain_boost;
 
 1581                 sbr->
q_m[e][
m]  *= gain_boost;
 
 1582                 sbr->
s_m[e][
m]  *= gain_boost;
 
 1590                             const float X_high[64][40][2],
 
 1596     const int kx = sbr->
kx[1];
 
 1597     const int m_max = sbr->
m[1];
 
 1598     static const float h_smooth[5] = {
 
 1605     float (*g_temp)[48] = ch_data->
g_temp, (*q_temp)[48] = ch_data->
q_temp;
 
 1610         for (i = 0; i < h_SL; i++) {
 
 1611             memcpy(g_temp[i + 2*ch_data->
t_env[0]], sbr->
gain[0], m_max * 
sizeof(sbr->
gain[0][0]));
 
 1612             memcpy(q_temp[i + 2*ch_data->
t_env[0]], sbr->
q_m[0],  m_max * 
sizeof(sbr->
q_m[0][0]));
 
 1615         for (i = 0; i < 4; i++) {
 
 1616             memcpy(g_temp[i + 2 * ch_data->
t_env[0]],
 
 1619             memcpy(q_temp[i + 2 * ch_data->
t_env[0]],
 
 1626         for (i = 2 * ch_data->
t_env[e]; i < 2 * ch_data->t_env[e + 1]; i++) {
 
 1627             memcpy(g_temp[h_SL + i], sbr->
gain[e], m_max * 
sizeof(sbr->
gain[0][0]));
 
 1628             memcpy(q_temp[h_SL + i], sbr->
q_m[e],  m_max * 
sizeof(sbr->
q_m[0][0]));
 
 1633         for (i = 2 * ch_data->
t_env[e]; i < 2 * ch_data->t_env[e + 1]; i++) {
 
 1636             float *g_filt, *q_filt;
 
 1638             if (h_SL && e != e_a[0] && e != e_a[1]) {
 
 1639                 g_filt = g_filt_tab;
 
 1640                 q_filt = q_filt_tab;
 
 1641                 for (m = 0; m < m_max; m++) {
 
 1642                     const int idx1 = i + h_SL;
 
 1645                     for (j = 0; j <= h_SL; j++) {
 
 1646                         g_filt[
m] += g_temp[idx1 - j][
m] * h_smooth[j];
 
 1647                         q_filt[
m] += q_temp[idx1 - j][
m] * h_smooth[j];
 
 1651                 g_filt = g_temp[i + h_SL];
 
 1655             sbr->
dsp.
hf_g_filt(Y1[i] + kx, X_high + kx, g_filt, m_max,
 
 1658             if (e != e_a[0] && e != e_a[1]) {
 
 1663                 int idx = indexsine&1;
 
 1664                 int A = (1-((indexsine+(kx & 1))&2));
 
 1665                 int B = (A^(-idx)) + idx;
 
 1666                 float *
out = &Y1[i][kx][idx];
 
 1667                 float *
in  = sbr->
s_m[e];
 
 1668                 for (m = 0; m+1 < m_max; m+=2) {
 
 1669                     out[2*
m  ] += in[
m  ] * 
A;
 
 1670                     out[2*m+2] += in[m+1] * 
B;
 
 1673                     out[2*
m  ] += in[
m  ] * 
A;
 
 1675             indexnoise = (indexnoise + m_max) & 0x1ff;
 
 1676             indexsine = (indexsine + 1) & 3;
 
 1688     int nch = (id_aac == 
TYPE_CPE) ? 2 : 1;
 
 1692         sbr->
kx[0] = sbr->
kx[1];
 
 1693         sbr->
m[0] = sbr->
m[1];
 
 1701     for (ch = 0; ch < nch; ch++) {
 
 1707                           (
const float (*)[32][32][2]) sbr->
data[ch].
W,
 
 1712                                          (
const float (*)[40][2]) sbr->
X_low, sbr->
k[0]);
 
 1715                        (
const float (*)[40][2]) sbr->
X_low,
 
 1716                        (
const float (*)[2]) sbr->
alpha0,
 
 1717                        (
const float (*)[2]) sbr->
alpha1,
 
 1727                                 (
const float (*)[40][2]) sbr->
X_high,
 
 1728                                 sbr, &sbr->
data[ch],
 
 1735                   (
const float (*)[64][2]) sbr->
data[ch].
Y[1-sbr->
data[ch].
Ypos],
 
 1736                   (
const float (*)[64][2]) sbr->
data[ch].
Y[  sbr->
data[ch].
Ypos],
 
 1737                   (
const float (*)[40][2]) sbr->
X_low, ch);
 
 1744             memcpy(sbr->
X[1], sbr->
X[0], 
sizeof(sbr->
X[0]));