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#jira UE-120133 #rb maxwell.hayes #preflight 61082ef65938f90001d5a8c0 #ROBOMERGE-SOURCE: CL 17019248 in //UE5/Main/... #ROBOMERGE-BOT: STARSHIP (Main -> Release-Engine-Test) (v839-17012307) [CL 17019283 by alfaroh corneyiii in ue5-release-engine-test branch]
204 lines
5.6 KiB
C++
204 lines
5.6 KiB
C++
// Copyright Epic Games, Inc. All Rights Reserved.
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#include "DSP/EnvelopeFollower.h"
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#include "DSP/Dsp.h"
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#include "DSP/BufferVectorOperations.h"
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namespace Audio
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{
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// see https://en.wikipedia.org/wiki/RC_time_constant
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// Time constants indicate how quickly the envelope follower responds to changes in input
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static const float AnalogTImeConstant = 1.00239343f;
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static const float DigitalTimeConstant = 4.60517019f;
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FEnvelopeFollower::FEnvelopeFollower()
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: EnvMode(EPeakMode::Peak)
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, MeanWindowSize(DefaultWindowSize)
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, MeanHopSize(DefaultHopSize)
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, SumBuffer(DefaultWindowSize, DefaultHopSize)
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, SampleRate(44100.0f)
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, AttackTimeMsec(0.0f)
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, AttackTimeSamples(0.0f)
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, ReleaseTimeMsec(0.0f)
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, ReleaseTimeSamples(0.0f)
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, CurrentEnvelopeValue(0.0f)
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, bIsAnalog(true)
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{
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}
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FEnvelopeFollower::FEnvelopeFollower(const float InSampleRate,
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const float InAttackTimeMsec,
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const float InReleaseTimeMSec,
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const EPeakMode::Type InMode,
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const bool bInIsAnalog,
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const int32 InWindowSizeForMean,
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const int32 InHopSizeForMean) : SumBuffer(InWindowSizeForMean, InHopSizeForMean)
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{
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Init(InSampleRate, InAttackTimeMsec, InReleaseTimeMSec, InMode, bInIsAnalog,InWindowSizeForMean, InHopSizeForMean);
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}
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FEnvelopeFollower::~FEnvelopeFollower()
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{
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}
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void FEnvelopeFollower::Init(const float InSampleRate,
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const float InAttackTimeMsec,
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const float InReleaseTimeMSec,
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const EPeakMode::Type InMode,
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const bool bInIsAnalog,
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const int32 InWindowSizeForMean,
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const int32 InHopSizeForMean)
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{
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SampleRate = InSampleRate;
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bIsAnalog = bInIsAnalog;
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EnvMode = InMode;
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SumBuffer = TSlidingBuffer<float>(InWindowSizeForMean, InHopSizeForMean);
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// Set the attack and release times using the default values
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SetAttackTime(InAttackTimeMsec);
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SetReleaseTime(InReleaseTimeMSec);
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}
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void FEnvelopeFollower::Reset()
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{
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CurrentEnvelopeValue = 0.0f;
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}
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void FEnvelopeFollower::SetAnalog(const bool bInIsAnalog)
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{
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bIsAnalog = bInIsAnalog;
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SetAttackTime(AttackTimeMsec);
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SetReleaseTime(ReleaseTimeMsec);
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}
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void FEnvelopeFollower::SetAttackTime(const float InAttackTimeMsec)
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{
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AttackTimeMsec = InAttackTimeMsec;
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const float TimeConstant = bIsAnalog ? AnalogTImeConstant : DigitalTimeConstant;
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AttackTimeSamples = FMath::Exp(-1000.0f * TimeConstant / (AttackTimeMsec * SampleRate));
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}
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void FEnvelopeFollower::SetReleaseTime(const float InReleaseTimeMsec)
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{
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ReleaseTimeMsec = InReleaseTimeMsec;
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const float TimeConstant = bIsAnalog ? AnalogTImeConstant : DigitalTimeConstant;
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ReleaseTimeSamples = FMath::Exp(-1000.0f * TimeConstant / (InReleaseTimeMsec * SampleRate));
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}
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void FEnvelopeFollower::SetMode(const EPeakMode::Type InMode)
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{
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EnvMode = InMode;
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}
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float FEnvelopeFollower::ProcessAudio(const float InAudioSample)
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{
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ProcessAudio(&InAudioSample, 1);
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// Update and return the envelope value
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return CurrentEnvelopeValue;
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}
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float FEnvelopeFollower::ProcessAudio(const float* InAudioBuffer, int32 InNumSamples)
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{
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// MS/RMS
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if (EnvMode == EPeakMode::MeanSquared || EnvMode == EPeakMode::RootMeanSquared)
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{
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TAutoSlidingWindow<float> SlidingWindow(SumBuffer, TArrayView<const float>(InAudioBuffer, InNumSamples), ScratchBuffer, false);
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for (auto& Window : SlidingWindow)
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{
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float CurrentMean;
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ArrayMeanSquared(Window, CurrentMean);
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if (EnvMode == EPeakMode::RootMeanSquared)
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{
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CurrentMean = FMath::Sqrt(CurrentMean);
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}
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for (int j = 0; j < MeanWindowSize; ++j)
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{
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ProcessAudioNonClamped(CurrentMean);
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}
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}
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}
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// Peak mode
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else
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{
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for (int32 SampleIndex = 0; SampleIndex < InNumSamples; ++SampleIndex)
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{
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ProcessAudioNonClamped(FMath::Abs(InAudioBuffer[SampleIndex]));
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}
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}
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return CurrentEnvelopeValue = FMath::Clamp(CurrentEnvelopeValue, 0.0f, 1.0f);
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}
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float FEnvelopeFollower::ProcessAudio(const float* InAudioBuffer, float* OutAudioBuffer, int32 InNumSamples)
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{
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// MS/RMS
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if (EnvMode == EPeakMode::MeanSquared || EnvMode == EPeakMode::RootMeanSquared)
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{
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TAutoSlidingWindow<float> SlidingWindow(SumBuffer, TArrayView<const float>(InAudioBuffer, InNumSamples), ScratchBuffer, false);
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int32 SampleIndex = 0;
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for (auto& Window : SlidingWindow)
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{
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float CurrentMean;
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ArrayMeanSquared(Window, CurrentMean);
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if (EnvMode == EPeakMode::RootMeanSquared)
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{
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CurrentMean = FMath::Sqrt(CurrentMean);
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}
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for (int j = 0; j < MeanWindowSize; ++j)
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{
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OutAudioBuffer[SampleIndex] = ProcessAudioNonClamped(CurrentMean);
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++SampleIndex;
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}
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}
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}
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// Peak
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else
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{
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for (int32 SampleIndex = 0; SampleIndex < InNumSamples; ++SampleIndex)
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{
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OutAudioBuffer[SampleIndex] = ProcessAudioNonClamped(FMath::Abs(InAudioBuffer[SampleIndex]));
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}
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}
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Audio::BufferRangeClampFast(OutAudioBuffer, InNumSamples, 0.0f, 1.0f);
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return CurrentEnvelopeValue;
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}
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float FEnvelopeFollower::ProcessAudioNonClamped(const float InAudioSample)
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{
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float TimeSamples = (InAudioSample > CurrentEnvelopeValue) ? AttackTimeSamples : ReleaseTimeSamples;
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float NewEnvelopeValue = TimeSamples * (CurrentEnvelopeValue - InAudioSample) + InAudioSample;
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NewEnvelopeValue = Audio::UnderflowClamp(NewEnvelopeValue);
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// Update and return the envelope value
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return CurrentEnvelopeValue = NewEnvelopeValue;
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}
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int16 FEnvelopeFollower::ProcessAudio(const int16 InAudioSample)
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{
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// Convert to float
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float SampleValueFloat = (float)InAudioSample / 32767.0f;
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// Process it
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float Result = ProcessAudio(SampleValueFloat);
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// Convert back to int16
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return (int16)(Result * 32767.0f);
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}
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float FEnvelopeFollower::GetCurrentValue() const
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{
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return CurrentEnvelopeValue;
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}
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}
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