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megasource/libs/openal-soft/core/mixer/mixer_neon.cpp
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2024-03-20 11:06:03 +08:00

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#include "config.h"
#include <arm_neon.h>
#include <algorithm>
#include <array>
#include <cstddef>
#include <limits>
#include <variant>
#include "alnumeric.h"
#include "alspan.h"
#include "core/bsinc_defs.h"
#include "core/bufferline.h"
#include "core/cubic_defs.h"
#include "core/mixer/hrtfdefs.h"
#include "defs.h"
#include "hrtfbase.h"
#include "opthelpers.h"
struct NEONTag;
struct LerpTag;
struct CubicTag;
struct BSincTag;
struct FastBSincTag;
#if defined(__GNUC__) && !defined(__clang__) && !defined(__ARM_NEON)
#pragma GCC target("fpu=neon")
#endif
using uint = unsigned int;
namespace {
constexpr uint BSincPhaseDiffBits{MixerFracBits - BSincPhaseBits};
constexpr uint BSincPhaseDiffOne{1 << BSincPhaseDiffBits};
constexpr uint BSincPhaseDiffMask{BSincPhaseDiffOne - 1u};
constexpr uint CubicPhaseDiffBits{MixerFracBits - CubicPhaseBits};
constexpr uint CubicPhaseDiffOne{1 << CubicPhaseDiffBits};
constexpr uint CubicPhaseDiffMask{CubicPhaseDiffOne - 1u};
force_inline
void vtranspose4(float32x4_t &x0, float32x4_t &x1, float32x4_t &x2, float32x4_t &x3) noexcept
{
float32x4x2_t t0_{vzipq_f32(x0, x2)};
float32x4x2_t t1_{vzipq_f32(x1, x3)};
float32x4x2_t u0_{vzipq_f32(t0_.val[0], t1_.val[0])};
float32x4x2_t u1_{vzipq_f32(t0_.val[1], t1_.val[1])};
x0 = u0_.val[0];
x1 = u0_.val[1];
x2 = u1_.val[0];
x3 = u1_.val[1];
}
inline float32x4_t set_f4(float l0, float l1, float l2, float l3)
{
float32x4_t ret{vmovq_n_f32(l0)};
ret = vsetq_lane_f32(l1, ret, 1);
ret = vsetq_lane_f32(l2, ret, 2);
ret = vsetq_lane_f32(l3, ret, 3);
return ret;
}
inline void ApplyCoeffs(float2 *RESTRICT Values, const size_t IrSize, const ConstHrirSpan Coeffs,
const float left, const float right)
{
auto dup_samples = [left,right]
{
float32x2_t leftright2{vset_lane_f32(right, vmov_n_f32(left), 1)};
return vcombine_f32(leftright2, leftright2);
};
const float32x4_t leftright4{dup_samples()};
ASSUME(IrSize >= MinIrLength);
for(size_t c{0};c < IrSize;c += 2)
{
float32x4_t vals = vld1q_f32(&Values[c][0]);
float32x4_t coefs = vld1q_f32(&Coeffs[c][0]);
vals = vmlaq_f32(vals, coefs, leftright4);
vst1q_f32(&Values[c][0], vals);
}
}
force_inline void MixLine(const al::span<const float> InSamples, float *RESTRICT dst,
float &CurrentGain, const float TargetGain, const float delta, const size_t min_len,
const size_t aligned_len, size_t Counter)
{
float gain{CurrentGain};
const float step{(TargetGain-gain) * delta};
size_t pos{0};
if(!(std::abs(step) > std::numeric_limits<float>::epsilon()))
gain = TargetGain;
else
{
float step_count{0.0f};
/* Mix with applying gain steps in aligned multiples of 4. */
if(size_t todo{min_len >> 2})
{
const float32x4_t four4{vdupq_n_f32(4.0f)};
const float32x4_t step4{vdupq_n_f32(step)};
const float32x4_t gain4{vdupq_n_f32(gain)};
float32x4_t step_count4{vdupq_n_f32(0.0f)};
step_count4 = vsetq_lane_f32(1.0f, step_count4, 1);
step_count4 = vsetq_lane_f32(2.0f, step_count4, 2);
step_count4 = vsetq_lane_f32(3.0f, step_count4, 3);
do {
const float32x4_t val4 = vld1q_f32(&InSamples[pos]);
float32x4_t dry4 = vld1q_f32(&dst[pos]);
dry4 = vmlaq_f32(dry4, val4, vmlaq_f32(gain4, step4, step_count4));
step_count4 = vaddq_f32(step_count4, four4);
vst1q_f32(&dst[pos], dry4);
pos += 4;
} while(--todo);
/* NOTE: step_count4 now represents the next four counts after the
* last four mixed samples, so the lowest element represents the
* next step count to apply.
*/
step_count = vgetq_lane_f32(step_count4, 0);
}
/* Mix with applying left over gain steps that aren't aligned multiples of 4. */
for(size_t leftover{min_len&3};leftover;++pos,--leftover)
{
dst[pos] += InSamples[pos] * (gain + step*step_count);
step_count += 1.0f;
}
if(pos == Counter)
gain = TargetGain;
else
gain += step*step_count;
/* Mix until pos is aligned with 4 or the mix is done. */
for(size_t leftover{aligned_len&3};leftover;++pos,--leftover)
dst[pos] += InSamples[pos] * gain;
}
CurrentGain = gain;
if(!(std::abs(gain) > GainSilenceThreshold))
return;
if(size_t todo{(InSamples.size()-pos) >> 2})
{
const float32x4_t gain4 = vdupq_n_f32(gain);
do {
const float32x4_t val4 = vld1q_f32(&InSamples[pos]);
float32x4_t dry4 = vld1q_f32(&dst[pos]);
dry4 = vmlaq_f32(dry4, val4, gain4);
vst1q_f32(&dst[pos], dry4);
pos += 4;
} while(--todo);
}
for(size_t leftover{(InSamples.size()-pos)&3};leftover;++pos,--leftover)
dst[pos] += InSamples[pos] * gain;
}
} // namespace
template<>
void Resample_<LerpTag,NEONTag>(const InterpState*, const float *src, uint frac,
const uint increment, const al::span<float> dst)
{
ASSUME(frac < MixerFracOne);
const uint32x4_t increment4 = vdupq_n_u32(increment*4u);
const float32x4_t fracOne4 = vdupq_n_f32(1.0f/MixerFracOne);
const uint32x4_t fracMask4 = vdupq_n_u32(MixerFracMask);
alignas(16) std::array<uint,4> pos_, frac_;
InitPosArrays(frac, increment, al::span{frac_}, al::span{pos_});
uint32x4_t frac4 = vld1q_u32(frac_.data());
uint32x4_t pos4 = vld1q_u32(pos_.data());
auto vecout = al::span<float32x4_t>{reinterpret_cast<float32x4_t*>(dst.data()), dst.size()/4};
std::generate(vecout.begin(), vecout.end(), [=,&pos4,&frac4]() -> float32x4_t
{
const uint pos0{vgetq_lane_u32(pos4, 0)};
const uint pos1{vgetq_lane_u32(pos4, 1)};
const uint pos2{vgetq_lane_u32(pos4, 2)};
const uint pos3{vgetq_lane_u32(pos4, 3)};
const float32x4_t val1{set_f4(src[pos0], src[pos1], src[pos2], src[pos3])};
const float32x4_t val2{set_f4(src[pos0+1_uz], src[pos1+1_uz], src[pos2+1_uz], src[pos3+1_uz])};
/* val1 + (val2-val1)*mu */
const float32x4_t r0{vsubq_f32(val2, val1)};
const float32x4_t mu{vmulq_f32(vcvtq_f32_u32(frac4), fracOne4)};
const float32x4_t out{vmlaq_f32(val1, mu, r0)};
frac4 = vaddq_u32(frac4, increment4);
pos4 = vaddq_u32(pos4, vshrq_n_u32(frac4, MixerFracBits));
frac4 = vandq_u32(frac4, fracMask4);
return out;
});
if(size_t todo{dst.size()&3})
{
src += vgetq_lane_u32(pos4, 0);
frac = vgetq_lane_u32(frac4, 0);
std::generate(dst.end()-ptrdiff_t(todo), dst.end(), [&src,&frac,increment]
{
const float out{lerpf(src[0], src[1], static_cast<float>(frac) * (1.0f/MixerFracOne))};
frac += increment;
src += frac>>MixerFracBits;
frac &= MixerFracMask;
return out;
});
}
}
template<>
void Resample_<CubicTag,NEONTag>(const InterpState *state, const float *src, uint frac,
const uint increment, const al::span<float> dst)
{
ASSUME(frac < MixerFracOne);
const auto filter = std::get<CubicState>(*state).filter;
const uint32x4_t increment4{vdupq_n_u32(increment*4u)};
const uint32x4_t fracMask4{vdupq_n_u32(MixerFracMask)};
const float32x4_t fracDiffOne4{vdupq_n_f32(1.0f/CubicPhaseDiffOne)};
const uint32x4_t fracDiffMask4{vdupq_n_u32(CubicPhaseDiffMask)};
alignas(16) std::array<uint,4> pos_, frac_;
InitPosArrays(frac, increment, al::span{frac_}, al::span{pos_});
uint32x4_t frac4{vld1q_u32(frac_.data())};
uint32x4_t pos4{vld1q_u32(pos_.data())};
src -= 1;
auto vecout = al::span<float32x4_t>{reinterpret_cast<float32x4_t*>(dst.data()), dst.size()/4};
std::generate(vecout.begin(), vecout.end(), [=,&pos4,&frac4]() -> float32x4_t
{
const uint pos0{vgetq_lane_u32(pos4, 0)};
const uint pos1{vgetq_lane_u32(pos4, 1)};
const uint pos2{vgetq_lane_u32(pos4, 2)};
const uint pos3{vgetq_lane_u32(pos4, 3)};
const float32x4_t val0{vld1q_f32(src+pos0)};
const float32x4_t val1{vld1q_f32(src+pos1)};
const float32x4_t val2{vld1q_f32(src+pos2)};
const float32x4_t val3{vld1q_f32(src+pos3)};
const uint32x4_t pi4{vshrq_n_u32(frac4, CubicPhaseDiffBits)};
const uint pi0{vgetq_lane_u32(pi4, 0)}; ASSUME(pi0 < CubicPhaseCount);
const uint pi1{vgetq_lane_u32(pi4, 1)}; ASSUME(pi1 < CubicPhaseCount);
const uint pi2{vgetq_lane_u32(pi4, 2)}; ASSUME(pi2 < CubicPhaseCount);
const uint pi3{vgetq_lane_u32(pi4, 3)}; ASSUME(pi3 < CubicPhaseCount);
const float32x4_t pf4{vmulq_f32(vcvtq_f32_u32(vandq_u32(frac4, fracDiffMask4)),
fracDiffOne4)};
float32x4_t r0{vmulq_f32(val0,
vmlaq_f32(vld1q_f32(filter[pi0].mCoeffs.data()), vdupq_lane_f32(vget_low_f32(pf4), 0),
vld1q_f32(filter[pi0].mDeltas.data())))};
float32x4_t r1{vmulq_f32(val1,
vmlaq_f32(vld1q_f32(filter[pi1].mCoeffs.data()), vdupq_lane_f32(vget_low_f32(pf4), 1),
vld1q_f32(filter[pi1].mDeltas.data())))};
float32x4_t r2{vmulq_f32(val2,
vmlaq_f32(vld1q_f32(filter[pi2].mCoeffs.data()), vdupq_lane_f32(vget_high_f32(pf4), 0),
vld1q_f32(filter[pi2].mDeltas.data())))};
float32x4_t r3{vmulq_f32(val3,
vmlaq_f32(vld1q_f32(filter[pi3].mCoeffs.data()), vdupq_lane_f32(vget_high_f32(pf4), 1),
vld1q_f32(filter[pi3].mDeltas.data())))};
vtranspose4(r0, r1, r2, r3);
r0 = vaddq_f32(vaddq_f32(r0, r1), vaddq_f32(r2, r3));
frac4 = vaddq_u32(frac4, increment4);
pos4 = vaddq_u32(pos4, vshrq_n_u32(frac4, MixerFracBits));
frac4 = vandq_u32(frac4, fracMask4);
return r0;
});
if(const size_t todo{dst.size()&3})
{
src += vgetq_lane_u32(pos4, 0);
frac = vgetq_lane_u32(frac4, 0);
std::generate(dst.end()-ptrdiff_t(todo), dst.end(), [&src,&frac,increment,filter]
{
const uint pi{frac >> CubicPhaseDiffBits}; ASSUME(pi < CubicPhaseCount);
const float pf{static_cast<float>(frac&CubicPhaseDiffMask) * (1.0f/CubicPhaseDiffOne)};
const float32x4_t pf4{vdupq_n_f32(pf)};
const float32x4_t f4{vmlaq_f32(vld1q_f32(filter[pi].mCoeffs.data()), pf4,
vld1q_f32(filter[pi].mDeltas.data()))};
float32x4_t r4{vmulq_f32(f4, vld1q_f32(src))};
r4 = vaddq_f32(r4, vrev64q_f32(r4));
const float output{vget_lane_f32(vadd_f32(vget_low_f32(r4), vget_high_f32(r4)), 0)};
frac += increment;
src += frac>>MixerFracBits;
frac &= MixerFracMask;
return output;
});
}
}
template<>
void Resample_<BSincTag,NEONTag>(const InterpState *state, const float *src, uint frac,
const uint increment, const al::span<float> dst)
{
const auto &bsinc = std::get<BsincState>(*state);
const float *const filter{bsinc.filter};
const float32x4_t sf4{vdupq_n_f32(bsinc.sf)};
const size_t m{bsinc.m};
ASSUME(m > 0);
ASSUME(frac < MixerFracOne);
src -= bsinc.l;
std::generate(dst.begin(), dst.end(), [&src,&frac,increment,filter,sf4,m]() -> float
{
// Calculate the phase index and factor.
const uint pi{frac >> BSincPhaseDiffBits};
const float pf{static_cast<float>(frac&BSincPhaseDiffMask) * (1.0f/BSincPhaseDiffOne)};
// Apply the scale and phase interpolated filter.
float32x4_t r4{vdupq_n_f32(0.0f)};
{
const float32x4_t pf4{vdupq_n_f32(pf)};
const float *fil{filter + m*pi*2_uz};
const float *phd{fil + m};
const float *scd{fil + BSincPhaseCount*2_uz*m};
const float *spd{scd + m};
size_t td{m >> 2};
size_t j{0u};
do {
/* f = ((fil + sf*scd) + pf*(phd + sf*spd)) */
const float32x4_t f4 = vmlaq_f32(
vmlaq_f32(vld1q_f32(&fil[j]), sf4, vld1q_f32(&scd[j])),
pf4, vmlaq_f32(vld1q_f32(&phd[j]), sf4, vld1q_f32(&spd[j])));
/* r += f*src */
r4 = vmlaq_f32(r4, f4, vld1q_f32(&src[j]));
j += 4;
} while(--td);
}
r4 = vaddq_f32(r4, vrev64q_f32(r4));
const float output{vget_lane_f32(vadd_f32(vget_low_f32(r4), vget_high_f32(r4)), 0)};
frac += increment;
src += frac>>MixerFracBits;
frac &= MixerFracMask;
return output;
});
}
template<>
void Resample_<FastBSincTag,NEONTag>(const InterpState *state, const float *src,
uint frac, const uint increment, const al::span<float> dst)
{
const auto &bsinc = std::get<BsincState>(*state);
const float *const filter{bsinc.filter};
const size_t m{bsinc.m};
ASSUME(m > 0);
ASSUME(frac < MixerFracOne);
src -= bsinc.l;
std::generate(dst.begin(), dst.end(), [&src,&frac,increment,filter,m]() -> float
{
// Calculate the phase index and factor.
const uint pi{frac >> BSincPhaseDiffBits};
const float pf{static_cast<float>(frac&BSincPhaseDiffMask) * (1.0f/BSincPhaseDiffOne)};
// Apply the phase interpolated filter.
float32x4_t r4{vdupq_n_f32(0.0f)};
{
const float32x4_t pf4{vdupq_n_f32(pf)};
const float *fil{filter + m*pi*2_uz};
const float *phd{fil + m};
size_t td{m >> 2};
size_t j{0u};
do {
/* f = fil + pf*phd */
const float32x4_t f4 = vmlaq_f32(vld1q_f32(&fil[j]), pf4, vld1q_f32(&phd[j]));
/* r += f*src */
r4 = vmlaq_f32(r4, f4, vld1q_f32(&src[j]));
j += 4;
} while(--td);
}
r4 = vaddq_f32(r4, vrev64q_f32(r4));
const float output{vget_lane_f32(vadd_f32(vget_low_f32(r4), vget_high_f32(r4)), 0)};
frac += increment;
src += frac>>MixerFracBits;
frac &= MixerFracMask;
return output;
});
}
template<>
void MixHrtf_<NEONTag>(const float *InSamples, float2 *AccumSamples, const uint IrSize,
const MixHrtfFilter *hrtfparams, const size_t BufferSize)
{ MixHrtfBase<ApplyCoeffs>(InSamples, AccumSamples, IrSize, hrtfparams, BufferSize); }
template<>
void MixHrtfBlend_<NEONTag>(const float *InSamples, float2 *AccumSamples, const uint IrSize,
const HrtfFilter *oldparams, const MixHrtfFilter *newparams, const size_t BufferSize)
{
MixHrtfBlendBase<ApplyCoeffs>(InSamples, AccumSamples, IrSize, oldparams, newparams,
BufferSize);
}
template<>
void MixDirectHrtf_<NEONTag>(const FloatBufferSpan LeftOut, const FloatBufferSpan RightOut,
const al::span<const FloatBufferLine> InSamples, float2 *AccumSamples,
const al::span<float,BufferLineSize> TempBuf, HrtfChannelState *ChanState, const size_t IrSize,
const size_t BufferSize)
{
MixDirectHrtfBase<ApplyCoeffs>(LeftOut, RightOut, InSamples, AccumSamples, TempBuf, ChanState,
IrSize, BufferSize);
}
template<>
void Mix_<NEONTag>(const al::span<const float> InSamples, const al::span<FloatBufferLine> OutBuffer,
float *CurrentGains, const float *TargetGains, const size_t Counter, const size_t OutPos)
{
const float delta{(Counter > 0) ? 1.0f / static_cast<float>(Counter) : 0.0f};
const auto min_len = std::min(Counter, InSamples.size());
const auto aligned_len = std::min((min_len+3_uz) & ~3_uz, InSamples.size()) - min_len;
for(FloatBufferLine &output : OutBuffer)
MixLine(InSamples, al::assume_aligned<16>(output.data()+OutPos), *CurrentGains++,
*TargetGains++, delta, min_len, aligned_len, Counter);
}
template<>
void Mix_<NEONTag>(const al::span<const float> InSamples, float *OutBuffer, float &CurrentGain,
const float TargetGain, const size_t Counter)
{
const float delta{(Counter > 0) ? 1.0f / static_cast<float>(Counter) : 0.0f};
const auto min_len = std::min(Counter, InSamples.size());
const auto aligned_len = std::min((min_len+3_uz) & ~3_uz, InSamples.size()) - min_len;
MixLine(InSamples, al::assume_aligned<16>(OutBuffer), CurrentGain, TargetGain, delta, min_len,
aligned_len, Counter);
}