Files
UnrealEngineUWP/Engine/Source/Runtime/SignalProcessing/Private/FloatArrayMath.cpp
phil popp d2fad95448 adding loudness analyzer module
#rb Ethan.Geller Jimmy.Smith Aaron.McLeran Rob.Gay


#ROBOMERGE-OWNER: phil.popp
#ROBOMERGE-AUTHOR: phil.popp
#ROBOMERGE-SOURCE: CL 8990880 via CL 8991013
#ROBOMERGE-BOT: (v441-8974111)

[CL 8996521 by phil popp in Main branch]
2019-09-23 17:15:55 -04:00

339 lines
8.7 KiB
C++

// Copyright 1998-2019 Epic Games, Inc. All Rights Reserved.
#include "DSP/FloatArrayMath.h"
#include "CoreMinimal.h"
namespace
{
const float LOGE10 = FMath::Loge(10.f);
}
namespace Audio
{
void ArrayCumulativeSum(TArrayView<const float> InView, TArray<float>& OutData)
{
// Initialize output data
int32 Num = InView.Num();
OutData.Reset();
OutData.AddUninitialized(Num);
if (Num < 1)
{
return;
}
float* OutDataPtr = OutData.GetData();
const float* InViewPtr = InView.GetData();
// Start summing
*OutDataPtr = *InViewPtr++;
for (int32 i = 1; i < Num; i++)
{
float Temp = *OutDataPtr++ + *InViewPtr++;
*OutDataPtr = Temp;
}
}
void ArrayMeanFilter(TArrayView<const float> InView, int32 WindowSize, int32 WindowOrigin, TArray<float>& OutData)
{
// a quick but sinful implementation of a mean filter. encourages floating point rounding errors.
check(WindowOrigin < WindowSize);
check(WindowOrigin >= 0);
check(WindowSize > 0);
// Initialize output data
const int32 Num = InView.Num();
OutData.Reset();
OutData.AddUninitialized(Num);
if (Num < 1)
{
return;
}
// Use cumulative sum to avoid multiple summations
// Instead of summing over InView[StartIndex:EndIndex], avoid all that
// calculation by taking difference of cumulative sum at those two points:
// cumsum(X[0:b]) - cumsum(X[0:a]) = sum(X[a:b])
TArray<float> SummedData;
ArrayCumulativeSum(InView, SummedData);
const float LastSummedData = SummedData.Last();
const int32 LastIndexBeforeEndBoundaryCondition = FMath::Max(WindowOrigin + 1, Num - WindowSize + WindowOrigin + 1);
const int32 StartOffset = -WindowOrigin - 1;
const int32 EndOffset = WindowSize - WindowOrigin - 1;
const int32 WindowTail = WindowSize - WindowOrigin;
float* OutDataPtr = OutData.GetData();
const float* SummedDataPtr = SummedData.GetData();
if ((WindowSize - WindowOrigin) < Num)
{
// Handle boundary condition where analysis window precedes beginning of array.
for (int32 i = 0; i < (WindowOrigin + 1); i++)
{
OutDataPtr[i] = SummedDataPtr[i + EndOffset] / FMath::Max(1.f, static_cast<float>(WindowTail + i));
}
// No boundary conditions to handle here.
const float MeanDivisor = static_cast<float>(WindowSize);
for (int32 i = WindowOrigin + 1; i < LastIndexBeforeEndBoundaryCondition; i++)
{
OutDataPtr[i] = (SummedDataPtr[i + EndOffset] - SummedDataPtr[i + StartOffset]) / MeanDivisor;
}
}
else
{
// Handle boundary condition where window precedes beginning and goes past end of array
const float ArrayMean = LastSummedData / static_cast<float>(Num);
for (int32 i = 0; i < LastIndexBeforeEndBoundaryCondition; i++)
{
OutDataPtr[i] = ArrayMean;
}
}
// Handle boundary condition where analysis window goes past end of array.
for (int32 i = LastIndexBeforeEndBoundaryCondition; i < Num; i++)
{
OutDataPtr[i] = (LastSummedData - SummedDataPtr[i + StartOffset]) / static_cast<float>(Num - i + WindowOrigin);
}
}
void ArrayMaxFilter(TArrayView<const float> InView, int32 WindowSize, int32 WindowOrigin, TArray<float>& OutData)
{
// A reasonable implementation of a max filter for the data we're interested in, though surely not the fastest.
check(WindowOrigin < WindowSize);
check(WindowOrigin >= 0);
check(WindowSize > 0);
int32 StartIndex = -WindowOrigin;
int32 EndIndex = StartIndex + WindowSize;
// Initialize output
int32 Num = InView.Num();
OutData.Reset();
OutData.AddUninitialized(Num);
if (Num < 1)
{
return;
}
// Get max in first window
int32 ActualStartIndex = 0;
int32 ActualEndIndex = FMath::Min(EndIndex, Num);
const float* InViewPtr = InView.GetData();
float* OutDataPtr = OutData.GetData();
int32 MaxIndex = 0;
float MaxValue = InView[0];
for (int32 i = ActualStartIndex; i < ActualEndIndex; i++)
{
if (InViewPtr[i] > MaxValue)
{
MaxValue = InViewPtr[i];
MaxIndex = i;
}
}
OutDataPtr[0] = MaxValue;
StartIndex++;
EndIndex++;
// Get max in remaining windows
for (int32 i = 1; i < Num; i++)
{
ActualStartIndex = FMath::Max(StartIndex, 0);
ActualEndIndex = FMath::Min(EndIndex, Num);
if (MaxIndex < StartIndex)
{
// We need to evaluate the entire window because the previous maximum value was not in this window.
MaxIndex = ActualStartIndex;
MaxValue = InViewPtr[MaxIndex];
for (int32 j = ActualStartIndex + 1; j < ActualEndIndex; j++)
{
if (InViewPtr[j] > MaxValue)
{
MaxIndex = j;
MaxValue = InViewPtr[MaxIndex];
}
}
}
else
{
// We only need to inspect the newest sample because the previous maximum value was in this window.
if (InViewPtr[ActualEndIndex - 1] > MaxValue)
{
MaxIndex = ActualEndIndex - 1;
MaxValue = InViewPtr[MaxIndex];
}
}
OutDataPtr[i] = MaxValue;
StartIndex++;
EndIndex++;
}
}
void ArrayGetEuclideanNorm(TArrayView<const float> InView, float& OutEuclideanNorm)
{
// Initialize output.
OutEuclideanNorm = 0.0f;
const int32 Num = InView.Num();
const float* InViewData = InView.GetData();
// Sum it up.
for (int32 i = 0; i < Num; i++)
{
OutEuclideanNorm += InViewData[i] * InViewData[i];
}
OutEuclideanNorm = FMath::Sqrt(OutEuclideanNorm);
}
void ArrayClampInPlace(TArrayView<float> InView, float InMin, float InMax)
{
const int32 Num = InView.Num();
float* Data = InView.GetData();
for (int32 i = 0; i < Num; i++)
{
Data[i] = FMath::Clamp(Data[i], InMin, InMax);
}
}
void ArrayMultiplyByConstantInPlace(TArrayView<float> InView, float InMultiplier)
{
const int32 Num = InView.Num();
float* InViewData = InView.GetData();
for (int32 i = 0; i < Num; i++)
{
InViewData[i] *= InMultiplier;
}
}
void ArraySubtractByConstantInPlace(TArrayView<float> InView, float InSubtrahend)
{
const int32 Num = InView.Num();
float* InViewData = InView.GetData();
for (int32 i = 0; i < Num; i++)
{
InViewData[i] -= InSubtrahend;
}
}
void ArrayMagnitudeToDecibelInPlace(TArrayView<float> InView)
{
const int32 Num = InView.Num();
float* InViewData = InView.GetData();
for (int32 i = 0; i < Num; i++)
{
InViewData[i] = 20.f * FMath::Loge(InViewData[i]) / LOGE10;
}
}
void ArrayPowerToDecibelInPlace(TArrayView<float> InView)
{
const int32 Num = InView.Num();
float* InViewData = InView.GetData();
for (int32 i = 0; i < Num; i++)
{
InViewData[i] = 10.f * FMath::Loge(InViewData[i]) / LOGE10;
}
}
FContiguousSparse2DKernelTransform::FContiguousSparse2DKernelTransform(const int32 NumInElements, const int32 NumOutElements)
: NumIn(NumInElements)
, NumOut(NumOutElements)
{
check(NumIn >= 0);
check(NumOut >= 0)
FRow EmptyRow;
EmptyRow.StartIndex = 0;
// Fill up the kernel with emptp rows
Kernel.Init(EmptyRow, NumOut);
}
int32 FContiguousSparse2DKernelTransform::GetNumInElements() const
{
return NumIn;
}
int32 FContiguousSparse2DKernelTransform::GetNumOutElements() const
{
return NumOut;
}
void FContiguousSparse2DKernelTransform::SetRow(const int32 RowIndex, const int32 StartIndex, TArrayView<const float> OffsetValues)
{
check((StartIndex + OffsetValues.Num()) <= NumIn);
// Copy row data internally
Kernel[RowIndex].StartIndex = StartIndex;
Kernel[RowIndex].OffsetValues = TArray<float>(OffsetValues.GetData(), OffsetValues.Num());
}
void FContiguousSparse2DKernelTransform::TransformArray(TArrayView<const float> InView, TArray<float>& OutArray) const
{
check(InView.Num() == NumIn);
// Resize output
OutArray.Reset(NumOut);
if (NumOut > 0)
{
OutArray.AddUninitialized(NumOut);
}
TransformArray(InView.GetData(), OutArray.GetData());
}
void FContiguousSparse2DKernelTransform::TransformArray(TArrayView<const float> InView, AlignedFloatBuffer& OutArray) const
{
check(InView.Num() == NumIn);
// Resize output
OutArray.Reset(NumOut);
if (NumOut > 0)
{
OutArray.AddUninitialized(NumOut);
}
TransformArray(InView.GetData(), OutArray.GetData());
}
void FContiguousSparse2DKernelTransform::TransformArray(const float* InArray, float* OutArray) const
{
check(nullptr != InArray);
check(nullptr != OutArray);
// Initialize output
FMemory::Memset(OutArray, 0, sizeof(float) * NumOut);
// Apply kernel one row at a time
const FRow* KernelData = Kernel.GetData();
for (int32 RowIndex = 0; RowIndex < Kernel.Num(); RowIndex++)
{
const FRow& Row = KernelData[RowIndex];
// Get offset pointer into input array.
const float* OffsetInData = &InArray[Row.StartIndex];
// Get offset pointer of row.
const float* RowValuePtr = Row.OffsetValues.GetData();
// dot prod 'em.
int32 NumToMult = Row.OffsetValues.Num();
for (int32 i = 0; i < NumToMult; i++)
{
OutArray[RowIndex] += OffsetInData[i] * RowValuePtr[i];
}
}
}
}