#ifdefined(FIXED_POINT) void norm_scaleup(celt_norm *X, int N, int shift) { int i;
celt_assert(shift >= 0); if (shift <= 0) return; for (i=0;i<N;i++) X[i] = SHL32(X[i], shift);
}
void norm_scaledown(celt_norm *X, int N, int shift) { int i;
celt_assert(shift >= 0); if (shift <= 0) return; for (i=0;i<N;i++) X[i] = PSHR32(X[i], shift);
}
opus_val32 celt_inner_prod_norm(const celt_norm *x, const celt_norm *y, int len, int arch) { int i;
opus_val32 sum = 0;
(void)arch; for (i=0;i<len;i++) sum += x[i]*y[i]; return sum;
}
opus_val32 celt_inner_prod_norm_shift(const celt_norm *x, const celt_norm *y, int len, int arch) { int i;
opus_val64 sum = 0;
(void)arch; for (i=0;i<len;i++) sum += x[i]*(opus_val64)y[i]; return sum>>2*(NORM_SHIFT-14);
} #endif
void exp_rotation(celt_norm *X, int len, int dir, int stride, int K, int spread)
{ staticconstint SPREAD_FACTOR[3]={15,10,5}; int i;
opus_val16 c, s;
opus_val16 gain, theta; int stride2=0; int factor;
if (2*K>=len || spread==SPREAD_NONE) return;
factor = SPREAD_FACTOR[spread-1];
gain = celt_div((opus_val32)MULT16_16(Q15_ONE,len),(opus_val32)(len+factor*K));
theta = HALF16(MULT16_16_Q15(gain,gain));
c = celt_cos_norm(EXTEND32(theta));
s = celt_cos_norm(EXTEND32(SUB16(Q15ONE,theta))); /* sin(theta) */
if (len>=8*stride)
{
stride2 = 1; /* This is just a simple (equivalent) way of computing sqrt(len/stride) with rounding.
It's basically incrementing long as (stride2+0.5)^2 < len/stride. */ while ((stride2*stride2+stride2)*stride + (stride>>2) < len)
stride2++;
} /*NOTE: As a minor optimization, we could be passing around log2(B), not B, for both this and for
extract_collapse_mask().*/
len = celt_udiv(len, stride); for (i=0;i<stride;i++)
{ if (dir < 0)
{ if (stride2)
exp_rotation1(X+i*len, len, stride2, s, c);
exp_rotation1(X+i*len, len, 1, c, s);
} else {
exp_rotation1(X+i*len, len, 1, c, -s); if (stride2)
exp_rotation1(X+i*len, len, stride2, s, -c);
}
}
}
/** Normalizes the decoded integer pvq codeword to unit norm. */ staticvoid normalise_residual(int * OPUS_RESTRICT iy, celt_norm * OPUS_RESTRICT X, int N, opus_val32 Ryy, opus_val32 gain, int shift)
{ int i; #ifdef FIXED_POINT int k; #endif
opus_val32 t;
opus_val32 g;
#ifdef FIXED_POINT
k = celt_ilog2(Ryy)>>1; #endif
t = VSHR32(Ryy, 2*(k-7)-15);
g = MULT32_32_Q31(celt_rsqrt_norm32(t),gain);
i=0;
(void)shift; #ifdefined(FIXED_POINT) && defined(ENABLE_QEXT) if (shift>0) { int tot_shift = NORM_SHIFT+1-k-shift; if (tot_shift >= 0) { do X[i] = MULT32_32_Q31(g, SHL32(iy[i], tot_shift)); while (++i < N);
} else { do X[i] = MULT32_32_Q31(g, PSHR32(iy[i], -tot_shift)); while (++i < N);
}
} else #endif do X[i] = VSHR32(MULT16_32_Q15(iy[i], g), k+15-NORM_SHIFT); while (++i < N);
}
staticunsigned extract_collapse_mask(int *iy, int N, int B)
{ unsigned collapse_mask; int N0; int i; if (B<=1) return1; /*NOTE: As a minor optimization, we could be passing around log2(B), not B, for both this and for
exp_rotation().*/
N0 = celt_udiv(N, B);
collapse_mask = 0;
i=0; do { int j; unsigned tmp=0;
j=0; do {
tmp |= iy[i*N0+j];
} while (++j<N0);
collapse_mask |= (tmp!=0)<<i;
} while (++i<B); return collapse_mask;
}
opus_val16 op_pvq_search_c(celt_norm *X, int *iy, int K, int N, int arch)
{
VARDECL(celt_norm, y);
VARDECL(int, signx); int i, j; int pulsesLeft;
opus_val32 sum;
opus_val32 xy;
opus_val16 yy;
SAVE_STACK;
(void)arch;
ALLOC(y, N, celt_norm);
ALLOC(signx, N, int); #ifdef FIXED_POINT
{ int shift = (celt_ilog2(1+celt_inner_prod_norm_shift(X, X, N, arch))+1)/2;
shift = IMAX(0, shift+(NORM_SHIFT-14)-14);
norm_scaledown(X, N, shift);
} #endif /* Get rid of the sign */
sum = 0;
j=0; do {
signx[j] = X[j]<0; /* OPT: Make sure the compiler doesn't use a branch on ABS16(). */
X[j] = ABS16(X[j]);
iy[j] = 0;
y[j] = 0;
} while (++j<N);
xy = yy = 0;
pulsesLeft = K;
/* Do a pre-search by projecting on the pyramid */ if (K > (N>>1))
{
opus_val16 rcp;
j=0; do {
sum += X[j];
} while (++j<N);
/* If X is too small, just replace it with a pulse at 0 */ #ifdef FIXED_POINT if (sum <= K) #else /* Prevents infinities and NaNs from causing too many pulses
to be allocated. 64 is an approximation of infinity here. */ if (!(sum > EPSILON && sum < 64)) #endif
{
X[0] = QCONST16(1.f,14);
j=1; do
X[j]=0; while (++j<N);
sum = QCONST16(1.f,14);
} #ifdef FIXED_POINT
rcp = EXTRACT16(MULT16_32_Q16(K, celt_rcp(sum))); #else /* Using K+e with e < 1 guarantees we cannot get more than K pulses. */
rcp = EXTRACT16(MULT16_32_Q16(K+0.8f, celt_rcp(sum))); #endif
j=0; do { #ifdef FIXED_POINT /* It's really important to round *towards zero* here */
iy[j] = MULT16_16_Q15(X[j],rcp); #else
iy[j] = (int)floor(rcp*X[j]); #endif
y[j] = (celt_norm)iy[j];
yy = MAC16_16(yy, y[j],y[j]);
xy = MAC16_16(xy, X[j],y[j]);
y[j] *= 2;
pulsesLeft -= iy[j];
} while (++j<N);
}
celt_sig_assert(pulsesLeft>=0);
/* This should never happen, but just in case it does (e.g. on silence)
we fill the first bin with pulses. */ #ifdef FIXED_POINT_DEBUG
celt_sig_assert(pulsesLeft<=N+3); #endif if (pulsesLeft > N+3)
{
opus_val16 tmp = (opus_val16)pulsesLeft;
yy = MAC16_16(yy, tmp, tmp);
yy = MAC16_16(yy, tmp, y[0]);
iy[0] += pulsesLeft;
pulsesLeft=0;
}
for (i=0;i<pulsesLeft;i++)
{
opus_val16 Rxy, Ryy; int best_id;
opus_val32 best_num;
opus_val16 best_den; #ifdef FIXED_POINT int rshift; #endif #ifdef FIXED_POINT
rshift = 1+celt_ilog2(K-pulsesLeft+i+1); #endif
best_id = 0; /* The squared magnitude term gets added anyway, so we might as well
add it outside the loop */
yy = ADD16(yy, 1);
/* Calculations for position 0 are out of the loop, in part to reduce mispredictedbranches(sincetheifconditionisusuallyfalse)
in the loop. */ /* Temporary sums of the new pulse(s) */
Rxy = EXTRACT16(SHR32(ADD32(xy, EXTEND32(X[0])),rshift)); /* We're multiplying y[j] by two so we don't have to do it here */
Ryy = ADD16(yy, y[0]);
/* Approximate score: we maximise Rxy/sqrt(Ryy) (we're guaranteed that
Rxy is positive because the sign is pre-computed) */
Rxy = MULT16_16_Q15(Rxy,Rxy);
best_den = Ryy;
best_num = Rxy;
j=1; do { /* Temporary sums of the new pulse(s) */
Rxy = EXTRACT16(SHR32(ADD32(xy, EXTEND32(X[j])),rshift)); /* We're multiplying y[j] by two so we don't have to do it here */
Ryy = ADD16(yy, y[j]);
/* Approximate score: we maximise Rxy/sqrt(Ryy) (we're guaranteed that
Rxy is positive because the sign is pre-computed) */
Rxy = MULT16_16_Q15(Rxy,Rxy); /* The idea is to check for num/den >= best_num/best_den, but that way
we can do it without any division */ /* OPT: It's not clear whether a cmov is faster than a branch here sincetheconditionismoreoftenfalsethantrueandusing acmovintroducesdatadependenciesacrossiterations.Theoptimal
choice may be architecture-dependent. */ if (opus_unlikely(MULT16_16(best_den, Rxy) > MULT16_16(Ryy, best_num)))
{
best_den = Ryy;
best_num = Rxy;
best_id = j;
}
} while (++j<N);
/* Updating the sums of the new pulse(s) */
xy = ADD32(xy, EXTEND32(X[best_id])); /* We're multiplying y[j] by two so we don't have to do it here */
yy = ADD16(yy, y[best_id]);
/* Only now that we've made the final choice, update y/iy */ /* Multiplying y[j] by 2 so we don't have to do it everywhere else */
y[best_id] += 2;
iy[best_id]++;
}
/* Put the original sign back */
j=0; do { /*iy[j] = signx[j] ? -iy[j] : iy[j];*/ /* OPT: The is more likely to be compiled without a branch than the code above
but has the same performance otherwise. */
iy[j] = (iy[j]^-signx[j]) + signx[j];
} while (++j<N);
RESTORE_STACK; return yy;
}
staticint op_pvq_refine(const opus_val32 *Xn, int *iy, int *iy0, int K, int up, int margin, int N) { int i; int dir;
VARDECL(opus_val32, rounding); int iysum = 0;
SAVE_STACK;
ALLOC(rounding, N, opus_val32); for (i=0;i<N;i++) {
opus_val32 tmp;
tmp = MULT32_32_Q31(SHL32(K, 8), Xn[i]); #ifdef FIXED_POINT
iy[i] = (tmp+64) >> 7; #else
iy[i] = (int)floor(.5+tmp); #endif
rounding[i] = tmp - SHL32(iy[i], 7);
} if (iy != iy0) { for (i=0;i<N;i++) iy[i] = IMIN(up*iy0[i]+up-1, IMAX(up*iy0[i]-up+1, iy[i]));
} for (i=0;i<N;i++) iysum += iy[i]; if (abs(iysum - K) > 32) {
RESTORE_STACK; return1;
}
dir = iysum < K ? 1 : -1; while (iysum != K) {
opus_val32 roundval=-1000000*dir; int roundpos=0; for (i=0;i<N;i++) { if ((rounding[i]-roundval)*dir > 0 && abs(iy[i]-up*iy0[i]) < (margin-1) && !(dir==-1 && iy[i] == 0)) {
roundval = rounding[i];
roundpos = i;
}
}
iy[roundpos] += dir;
rounding[roundpos] -= SHL32(dir, 15);
iysum+=dir;
}
RESTORE_STACK; return0;
}
static opus_val32 op_pvq_search_extra(const celt_norm *X, int *iy, int *up_iy, int K, int up, int *refine, int N, int shift) {
opus_val32 rcp_sum;
opus_val32 sum=0; int i; int failed=0;
opus_val64 yy=0;
VARDECL(opus_val32, Xn);
SAVE_STACK; for (i=0;i<N;i++) sum += ABS32(X[i]);
ALLOC(Xn, N, opus_val32); if (sum < EPSILON)
failed = 1; else { #ifdef FIXED_POINT int sum_shift = 30-celt_ilog2(sum);
rcp_sum = celt_rcp_norm32(SHL32(sum, sum_shift)); for (i=0;i<N;i++) {
Xn[i] = MULT32_32_Q31(SHL32(ABS32(X[i]), sum_shift), rcp_sum);
} #else
rcp_sum = celt_rcp(sum); for (i=0;i<N;i++) {
Xn[i] = ABS32(X[i])*rcp_sum;
} #endif
}
failed = failed || op_pvq_refine(Xn, iy, iy, K, 1, K+1, N);
failed = failed || op_pvq_refine(Xn, up_iy, iy, up*K, up, up, N); if (failed) {
iy[0] = K; for (i=1;i<N;i++) iy[i] = 0;
up_iy[0] = up*K; for (i=1;i<N;i++) up_iy[i] = 0;
} for (i=0;i<N;i++) {
yy += up_iy[i]*(opus_val64)up_iy[i]; if (X[i] < 0) {
iy[i] = -iy[i];
up_iy[i] = -up_iy[i];
}
refine[i] = up_iy[i]-up*iy[i];
}
RESTORE_STACK; #ifdef FIXED_POINT return (yy + (1<<2*shift>>1))>>2*shift; #else
(void)shift; return yy; #endif
} #endif
#ifdef ENABLE_QEXT /* Take advantage of the fact that "large" refine values are much less likely
than smaller ones. */ staticvoid ec_enc_refine(ec_enc *enc, opus_int32 refine, opus_int32 up, int extra_bits, int use_entropy) { int large;
large = abs(refine)>up/2;
ec_enc_bit_logp(enc, large, use_entropy ? 3 : 1); if (large) {
ec_enc_bits(enc, refine < 0, 1);
ec_enc_bits(enc, abs(refine)-up/2-1, extra_bits-1);
} else {
ec_enc_bits(enc, refine+up/2, extra_bits);
}
}
staticint ec_dec_refine(ec_enc *dec, opus_int32 up, int extra_bits, int use_entropy) { int large, refine;
large = ec_dec_bit_logp(dec, use_entropy ? 3 : 1); if (large) { int sign = ec_dec_bits(dec, 1);
refine = ec_dec_bits(dec, extra_bits-1) + up/2+1; if (sign) refine = -refine;
} else {
refine = (opus_int32)ec_dec_bits(dec, extra_bits)-up/2;
} return refine;
} #endif
unsigned alg_quant(celt_norm *X, int N, int K, int spread, int B, ec_enc *enc,
opus_val32 gain, int resynth
ARG_QEXT(ec_enc *ext_enc) ARG_QEXT(int extra_bits), int arch)
{
VARDECL(int, iy);
opus_val32 yy; unsigned collapse_mask; #ifdef ENABLE_QEXT int yy_shift = 0; #endif
SAVE_STACK;
celt_assert2(K>0, "alg_quant() needs at least one pulse");
celt_assert2(N>1, "alg_quant() needs at least two dimensions");
/* Covers vectorization by up to 4. */
ALLOC(iy, N+3, int);
exp_rotation(X, N, 1, B, K, spread);
#ifdef ENABLE_QEXT if (N==2 && extra_bits >= 2) { int refine; int up_iy[2]; int up;
yy_shift = IMAX(0, extra_bits-7);
up = (1<<extra_bits)-1;
yy = op_pvq_search_N2(X, iy, up_iy, K, up, &refine, yy_shift);
collapse_mask = extract_collapse_mask(up_iy, N, B);
encode_pulses(iy, N, K, enc);
ec_enc_uint(ext_enc, refine+(up-1)/2, up); if (resynth)
normalise_residual(up_iy, X, N, yy, gain, yy_shift);
} elseif (extra_bits >= 2) { int i;
VARDECL(int, up_iy);
VARDECL(int, refine); int up, use_entropy;
ALLOC(up_iy, N, int);
ALLOC(refine, N, int);
yy_shift = IMAX(0, extra_bits-7);
up = (1<<extra_bits)-1;
yy = op_pvq_search_extra(X, iy, up_iy, K, up, refine, N, yy_shift);
collapse_mask = extract_collapse_mask(up_iy, N, B);
encode_pulses(iy, N, K, enc);
use_entropy = (ext_enc->storage*8 - ec_tell(ext_enc)) > (unsigned)(N-1)*(extra_bits+3)+1; for (i=0;i<N-1;i++) ec_enc_refine(ext_enc, refine[i], up, extra_bits, use_entropy); if (iy[N-1]==0) ec_enc_bits(ext_enc, up_iy[N-1]<0, 1); if (resynth)
normalise_residual(up_iy, X, N, yy, gain, yy_shift);
} else #endif
{
yy = op_pvq_search(X, iy, K, N, arch);
collapse_mask = extract_collapse_mask(iy, N, B);
encode_pulses(iy, N, K, enc); if (resynth)
normalise_residual(iy, X, N, yy, gain, 0);
}
if (resynth)
exp_rotation(X, N, -1, B, K, spread);
RESTORE_STACK; return collapse_mask;
}
/** Decode pulse vector and combine the result with the pitch vector to produce
the final normalised signal in the current band. */ unsigned alg_unquant(celt_norm *X, int N, int K, int spread, int B,
ec_dec *dec, opus_val32 gain
ARG_QEXT(ec_enc *ext_dec) ARG_QEXT(int extra_bits))
{
opus_val32 Ryy; unsigned collapse_mask;
VARDECL(int, iy); int yy_shift=0;
SAVE_STACK;
celt_assert2(K>0, "alg_unquant() needs at least one pulse");
celt_assert2(N>1, "alg_unquant() needs at least two dimensions");
ALLOC(iy, N, int);
Ryy = decode_pulses(iy, N, K, dec); #ifdef ENABLE_QEXT if (N==2 && extra_bits >= 2) { int up; int refine;
yy_shift = IMAX(0, extra_bits-7);
up = (1<<extra_bits)-1;
refine = (opus_int32)ec_dec_uint(ext_dec, up) - (up-1)/2;
iy[0] *= up;
iy[1] *= up; if (iy[1] == 0) {
iy[1] = (iy[0] > 0) ? -refine : refine;
iy[0] += (refine*(opus_int64)iy[0] > 0) ? -refine : refine;
} elseif (iy[1] > 0) {
iy[0] += refine;
iy[1] -= refine*(iy[0]>0?1:-1);
} else {
iy[0] -= refine;
iy[1] -= refine*(iy[0]>0?1:-1);
} #ifdef FIXED_POINT
Ryy = (iy[0]*(opus_val64)iy[0] + iy[1]*(opus_val64)iy[1] + (1<<2*yy_shift>>1)) >> 2*yy_shift; #else
Ryy = iy[0]*(opus_val64)iy[0] + iy[1]*(opus_val64)iy[1]; #endif
} elseif (extra_bits >= 2) { int i;
opus_val64 yy64;
VARDECL(int, refine); int up, use_entropy; int sign=0;
ALLOC(refine, N, int);
yy_shift = IMAX(0, extra_bits-7);
up = (1<<extra_bits)-1;
use_entropy = (ext_dec->storage*8 - ec_tell(ext_dec)) > (unsigned)(N-1)*(extra_bits+3)+1; for (i=0;i<N-1;i++) refine[i] = ec_dec_refine(ext_dec, up, extra_bits, use_entropy); if (iy[N-1]==0) sign = ec_dec_bits(ext_dec, 1); else sign = iy[N-1] < 0; for (i=0;i<N-1;i++) {
iy[i] = iy[i]*up + refine[i];
}
iy[N-1] = up*K; for (i=0;i<N-1;i++) iy[N-1] -= abs(iy[i]); if (sign) iy[N-1] = -iy[N-1];
yy64 = 0; for (i=0;i<N;i++) yy64 += iy[i]*(opus_val64)iy[i]; #ifdef FIXED_POINT
Ryy = (yy64 + (1<<2*yy_shift>>1)) >> 2*yy_shift; #else
Ryy = yy64; #endif
} #endif
normalise_residual(iy, X, N, Ryy, gain, yy_shift);
exp_rotation(X, N, -1, B, K, spread);
collapse_mask = extract_collapse_mask(iy, N, B);
RESTORE_STACK; return collapse_mask;
}
#ifndef OVERRIDE_renormalise_vector void renormalise_vector(celt_norm *X, int N, opus_val32 gain, int arch)
{ int i; #ifdef FIXED_POINT int k; #endif
opus_val32 E;
opus_val16 g;
opus_val32 t;
celt_norm *xptr;
norm_scaledown(X, N, NORM_SHIFT-14);
E = EPSILON + celt_inner_prod_norm(X, X, N, arch); #ifdef FIXED_POINT
k = celt_ilog2(E)>>1; #endif
t = VSHR32(E, 2*(k-7));
g = MULT32_32_Q31(celt_rsqrt_norm(t),gain);
opus_int32 stereo_itheta(const celt_norm *X, const celt_norm *Y, int stereo, int N, int arch)
{ int i; int itheta;
opus_val32 mid, side;
opus_val32 Emid, Eside;
Emid = Eside = 0; if (stereo)
{ for (i=0;i<N;i++)
{
celt_norm m, s;
m = PSHR32(ADD32(X[i], Y[i]), NORM_SHIFT-13);
s = PSHR32(SUB32(X[i], Y[i]), NORM_SHIFT-13);
Emid = MAC16_16(Emid, m, m);
Eside = MAC16_16(Eside, s, s);
}
} else {
Emid += celt_inner_prod_norm_shift(X, X, N, arch);
Eside += celt_inner_prod_norm_shift(Y, Y, N, arch);
}
mid = celt_sqrt32(Emid);
side = celt_sqrt32(Eside); #ifdefined(FIXED_POINT)
itheta = celt_atan2p_norm(side, mid); #else
itheta = (int)floor(.5f+65536.f*16384*celt_atan2p_norm(side,mid)); #endif
return itheta;
}
#ifdef ENABLE_QEXT
staticvoid cubic_synthesis(celt_norm *X, int *iy, int N, int K, int face, int sign, opus_val32 gain) { int i;
opus_val32 sum=0;
opus_val32 mag; #ifdef FIXED_POINT int sum_shift; int shift = IMAX(celt_ilog2(K) + celt_ilog2(N)/2 - 13, 0); #endif for (i=0;i<N;i++) {
X[i] = (1+2*iy[i])-K;
}
X[face] = sign ? -K : K; for (i=0;i<N;i++) {
sum += PSHR32(MULT16_16(X[i],X[i]), 2*shift);
} #ifdef FIXED_POINT
sum_shift = (29-celt_ilog2(sum))>>1;
mag = celt_rsqrt_norm32(SHL32(sum, 2*sum_shift+1)); for (i=0;i<N;i++) {
X[i] = VSHR32(MULT16_32_Q15(X[i],MULT32_32_Q31(mag,gain)), shift-sum_shift+29-NORM_SHIFT);
} #else
mag = 1.f/sqrt(sum); for (i=0;i<N;i++) {
X[i] *= mag*gain;
} #endif
}
unsigned cubic_quant(celt_norm *X, int N, int res, int B, ec_enc *enc, opus_val32 gain, int resynth) { int i; int face=0; int K;
VARDECL(int, iy);
celt_norm faceval=-1;
opus_val32 norm; int sign;
SAVE_STACK;
ALLOC(iy, N, int);
K = 1<<res; /* Using odd K on transients to avoid adding pre-echo. */ if (B!=1) K=IMAX(1, K-1); if (K==1) { if (resynth) OPUS_CLEAR(X, N);
RESTORE_STACK; return0;
} for (i=0;i<N;i++) { if (ABS32(X[i]) > faceval) {
faceval = ABS32(X[i]);
face = i;
}
}
sign = X[face]<0;
ec_enc_uint(enc, face, N);
ec_enc_bits(enc, sign, 1); #ifdef FIXED_POINT if (faceval != 0) { int face_shift = 30-celt_ilog2(faceval);
norm = celt_rcp_norm32(SHL32(faceval, face_shift));
norm = MULT16_32_Q15(K, norm); for (i=0;i<N;i++) { /* By computing X[i]+faceval inside the shift, the result is guaranteed non-negative. */
iy[i] = IMIN(K-1, (MULT32_32_Q31(SHL32(X[i]+faceval, face_shift-1), norm)) >> 15);
}
} else {
OPUS_CLEAR(iy, N);
} #else
norm = .5f*K/(faceval+EPSILON); for (i=0;i<N;i++) {
iy[i] = IMIN(K-1, (int)floor((X[i]+faceval)*norm));
} #endif for (i=0;i<N;i++) { if (i != face) ec_enc_bits(enc, iy[i], res);
} if (resynth) {
cubic_synthesis(X, iy, N, K, face, sign, gain);
}
RESTORE_STACK; return (1<<B)-1;
}
unsigned cubic_unquant(celt_norm *X, int N, int res, int B, ec_dec *dec, opus_val32 gain) { int i; int face; int sign; int K;
VARDECL(int, iy);
SAVE_STACK;
ALLOC(iy, N, int);
K = 1<<res; /* Using odd K on transients to avoid adding pre-echo. */ if (B!=1) K=IMAX(1, K-1); if (K==1) {
OPUS_CLEAR(X, N);
RESTORE_STACK; return0;
}
face = ec_dec_uint(dec, N);
sign = ec_dec_bits(dec, 1); for (i=0;i<N;i++) { if (i != face) iy[i] = ec_dec_bits(dec, res);
}
iy[face]=0;
cubic_synthesis(X, iy, N, K, face, sign, gain);
RESTORE_STACK; return (1<<B)-1;
} #endif
Messung V0.5 in Prozent
¤ Dauer der Verarbeitung: 0.12 Sekunden
(vorverarbeitet am 2026-09-28)
¤
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