mirror of
https://github.com/airwindows/airwindows.git
synced 2026-05-15 14:16:00 -06:00
447 lines
14 KiB
C++
Executable file
447 lines
14 KiB
C++
Executable file
/* ========================================
|
|
* BitGlitter - BitGlitter.h
|
|
* Copyright (c) 2016 airwindows, Airwindows uses the MIT license
|
|
* ======================================== */
|
|
|
|
#ifndef __BitGlitter_H
|
|
#include "BitGlitter.h"
|
|
#endif
|
|
|
|
void BitGlitter::processReplacing(float **inputs, float **outputs, VstInt32 sampleFrames)
|
|
{
|
|
float* in1 = inputs[0];
|
|
float* in2 = inputs[1];
|
|
float* out1 = outputs[0];
|
|
float* out2 = outputs[1];
|
|
|
|
double overallscale = 1.0;
|
|
overallscale /= 44100.0;
|
|
overallscale *= getSampleRate();
|
|
|
|
double factor = B+1.0;
|
|
factor = pow(factor,7)+2.0;
|
|
int divvy = (int)(factor*overallscale);
|
|
double rateA = 1.0 / divvy;
|
|
double rezA = 0.0016666666666667; //looks to be a fixed bitcrush
|
|
double rateB = 1.61803398875 / divvy;
|
|
double rezB = 0.0026666666666667; //looks to be a fixed bitcrush
|
|
double offset;
|
|
double ingain = pow(10.0,((A * 36.0)-18.0)/14.0); //add adjustment factor
|
|
double outgain = pow(10.0,((C * 36.0)-18.0)/14.0); //add adjustment factor
|
|
double wet = D;
|
|
|
|
while (--sampleFrames >= 0)
|
|
{
|
|
double inputSampleL = *in1;
|
|
double inputSampleR = *in2;
|
|
if (fabs(inputSampleL)<1.18e-23) inputSampleL = fpdL * 1.18e-17;
|
|
if (fabs(inputSampleR)<1.18e-23) inputSampleR = fpdR * 1.18e-17;
|
|
double drySampleL = inputSampleL;
|
|
double drySampleR = inputSampleR;
|
|
|
|
|
|
//first, the distortion section
|
|
inputSampleL *= ingain;
|
|
inputSampleR *= ingain;
|
|
|
|
if (inputSampleL > 1.0) inputSampleL = 1.0;
|
|
if (inputSampleL < -1.0) inputSampleL = -1.0;
|
|
inputSampleL *= 1.2533141373155;
|
|
//clip to 1.2533141373155 to reach maximum output
|
|
inputSampleL = sin(inputSampleL * fabs(inputSampleL)) / ((fabs(inputSampleL) == 0.0) ?1:fabs(inputSampleL));
|
|
|
|
if (inputSampleR > 1.0) inputSampleR = 1.0;
|
|
if (inputSampleR < -1.0) inputSampleR = -1.0;
|
|
inputSampleR *= 1.2533141373155;
|
|
//clip to 1.2533141373155 to reach maximum output
|
|
inputSampleR = sin(inputSampleR * fabs(inputSampleR)) / ((fabs(inputSampleR) == 0.0) ?1:fabs(inputSampleR));
|
|
|
|
ataDrySampleL = inputSampleL;
|
|
ataHalfwaySampleL = (inputSampleL + ataLastSampleL ) / 2.0;
|
|
ataLastSampleL = inputSampleL;
|
|
//setting up crude oversampling
|
|
|
|
ataDrySampleR = inputSampleR;
|
|
ataHalfwaySampleR = (inputSampleR + ataLastSampleR ) / 2.0;
|
|
ataLastSampleR = inputSampleR;
|
|
//setting up crude oversampling
|
|
|
|
//begin raw sample L
|
|
positionAL += rateA;
|
|
double outputSampleL = heldSampleAL;
|
|
if (positionAL > 1.0)
|
|
{
|
|
positionAL -= 1.0;
|
|
heldSampleAL = (lastSampleL * positionAL) + (inputSampleL * (1-positionAL));
|
|
outputSampleL = (outputSampleL * 0.5) + (heldSampleAL * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleL > 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset > 0) {offset -= rezA;}
|
|
outputSampleL -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleL < 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset < 0) {offset += rezA;}
|
|
outputSampleL -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleL *= (1.0 - rezA);
|
|
if (fabs(outputSampleL) < rezA) outputSampleL = 0.0;
|
|
inputSampleL = outputSampleL;
|
|
//end raw sample L
|
|
|
|
//begin raw sample R
|
|
positionAR += rateA;
|
|
double outputSampleR = heldSampleAR;
|
|
if (positionAR > 1.0)
|
|
{
|
|
positionAR -= 1.0;
|
|
heldSampleAR = (lastSampleR * positionAR) + (inputSampleR * (1-positionAR));
|
|
outputSampleR = (outputSampleR * 0.5) + (heldSampleAR * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleR > 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset > 0) {offset -= rezA;}
|
|
outputSampleR -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleR < 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset < 0) {offset += rezA;}
|
|
outputSampleR -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleR *= (1.0 - rezA);
|
|
if (fabs(outputSampleR) < rezA) outputSampleR = 0.0;
|
|
inputSampleR = outputSampleR;
|
|
//end raw sample R
|
|
|
|
//begin interpolated sample L
|
|
positionBL += rateB;
|
|
outputSampleL = heldSampleBL;
|
|
if (positionBL > 1.0)
|
|
{
|
|
positionBL -= 1.0;
|
|
heldSampleBL = (lastSampleL * positionBL) + (ataHalfwaySampleL * (1-positionBL));
|
|
outputSampleL = (outputSampleL * 0.5) + (heldSampleBL * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleL > 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset > 0) {offset -= rezB;}
|
|
outputSampleL -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleL < 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset < 0) {offset += rezB;}
|
|
outputSampleL -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleL *= (1.0 - rezB);
|
|
if (fabs(outputSampleL) < rezB) outputSampleL = 0.0;
|
|
ataHalfwaySampleL = outputSampleL;
|
|
//end interpolated sample L
|
|
|
|
//begin interpolated sample R
|
|
positionBR += rateB;
|
|
outputSampleR = heldSampleBR;
|
|
if (positionBR > 1.0)
|
|
{
|
|
positionBR -= 1.0;
|
|
heldSampleBR = (lastSampleR * positionBR) + (ataHalfwaySampleR * (1-positionBR));
|
|
outputSampleR = (outputSampleR * 0.5) + (heldSampleBR * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleR > 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset > 0) {offset -= rezB;}
|
|
outputSampleR -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleR < 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset < 0) {offset += rezB;}
|
|
outputSampleR -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleR *= (1.0 - rezB);
|
|
if (fabs(outputSampleR) < rezB) outputSampleR = 0.0;
|
|
ataHalfwaySampleR = outputSampleR;
|
|
//end interpolated sample R
|
|
|
|
inputSampleL += ataHalfwaySampleL;
|
|
inputSampleL /= 2.0;
|
|
//plain old blend the two
|
|
|
|
inputSampleR += ataHalfwaySampleR;
|
|
inputSampleR /= 2.0;
|
|
//plain old blend the two
|
|
|
|
outputSampleL = (inputSampleL * (1.0-(wet/2))) + (lastOutputSampleL*(wet/2));
|
|
//darken to extent of wet in wet/dry, maximum 50%
|
|
lastOutputSampleL = inputSampleL;
|
|
outputSampleL *= outgain;
|
|
|
|
outputSampleR = (inputSampleR * (1.0-(wet/2))) + (lastOutputSampleR*(wet/2));
|
|
//darken to extent of wet in wet/dry, maximum 50%
|
|
lastOutputSampleR = inputSampleR;
|
|
outputSampleR *= outgain;
|
|
|
|
if (wet < 1.0) {
|
|
outputSampleL = (drySampleL * (1.0-wet)) + (outputSampleL * wet);
|
|
outputSampleR = (drySampleR * (1.0-wet)) + (outputSampleR * wet);
|
|
}
|
|
|
|
inputSampleL = outputSampleL;
|
|
inputSampleR = outputSampleR;
|
|
|
|
//begin 32 bit stereo floating point dither
|
|
int expon; frexpf((float)inputSampleL, &expon);
|
|
fpdL ^= fpdL << 13; fpdL ^= fpdL >> 17; fpdL ^= fpdL << 5;
|
|
inputSampleL += ((double(fpdL)-uint32_t(0x7fffffff)) * 5.5e-36l * pow(2,expon+62));
|
|
frexpf((float)inputSampleR, &expon);
|
|
fpdR ^= fpdR << 13; fpdR ^= fpdR >> 17; fpdR ^= fpdR << 5;
|
|
inputSampleR += ((double(fpdR)-uint32_t(0x7fffffff)) * 5.5e-36l * pow(2,expon+62));
|
|
//end 32 bit stereo floating point dither
|
|
|
|
*out1 = inputSampleL;
|
|
*out2 = inputSampleR;
|
|
|
|
*in1++;
|
|
*in2++;
|
|
*out1++;
|
|
*out2++;
|
|
}
|
|
}
|
|
|
|
void BitGlitter::processDoubleReplacing(double **inputs, double **outputs, VstInt32 sampleFrames)
|
|
{
|
|
double* in1 = inputs[0];
|
|
double* in2 = inputs[1];
|
|
double* out1 = outputs[0];
|
|
double* out2 = outputs[1];
|
|
|
|
double overallscale = 1.0;
|
|
overallscale /= 44100.0;
|
|
overallscale *= getSampleRate();
|
|
|
|
double factor = B+1.0;
|
|
factor = pow(factor,7)+2.0;
|
|
int divvy = (int)(factor*overallscale);
|
|
double rateA = 1.0 / divvy;
|
|
double rezA = 0.0016666666666667; //looks to be a fixed bitcrush
|
|
double rateB = 1.61803398875 / divvy;
|
|
double rezB = 0.0026666666666667; //looks to be a fixed bitcrush
|
|
double offset;
|
|
double ingain = pow(10.0,((A * 36.0)-18.0)/14.0); //add adjustment factor
|
|
double outgain = pow(10.0,((C * 36.0)-18.0)/14.0); //add adjustment factor
|
|
double wet = D;
|
|
|
|
while (--sampleFrames >= 0)
|
|
{
|
|
double inputSampleL = *in1;
|
|
double inputSampleR = *in2;
|
|
if (fabs(inputSampleL)<1.18e-23) inputSampleL = fpdL * 1.18e-17;
|
|
if (fabs(inputSampleR)<1.18e-23) inputSampleR = fpdR * 1.18e-17;
|
|
double drySampleL = inputSampleL;
|
|
double drySampleR = inputSampleR;
|
|
|
|
//first, the distortion section
|
|
inputSampleL *= ingain;
|
|
inputSampleR *= ingain;
|
|
|
|
if (inputSampleL > 1.0) inputSampleL = 1.0;
|
|
if (inputSampleL < -1.0) inputSampleL = -1.0;
|
|
inputSampleL *= 1.2533141373155;
|
|
//clip to 1.2533141373155 to reach maximum output
|
|
inputSampleL = sin(inputSampleL * fabs(inputSampleL)) / ((fabs(inputSampleL) == 0.0) ?1:fabs(inputSampleL));
|
|
|
|
if (inputSampleR > 1.0) inputSampleR = 1.0;
|
|
if (inputSampleR < -1.0) inputSampleR = -1.0;
|
|
inputSampleR *= 1.2533141373155;
|
|
//clip to 1.2533141373155 to reach maximum output
|
|
inputSampleR = sin(inputSampleR * fabs(inputSampleR)) / ((fabs(inputSampleR) == 0.0) ?1:fabs(inputSampleR));
|
|
|
|
ataDrySampleL = inputSampleL;
|
|
ataHalfwaySampleL = (inputSampleL + ataLastSampleL ) / 2.0;
|
|
ataLastSampleL = inputSampleL;
|
|
//setting up crude oversampling
|
|
|
|
ataDrySampleR = inputSampleR;
|
|
ataHalfwaySampleR = (inputSampleR + ataLastSampleR ) / 2.0;
|
|
ataLastSampleR = inputSampleR;
|
|
//setting up crude oversampling
|
|
|
|
//begin raw sample L
|
|
positionAL += rateA;
|
|
double outputSampleL = heldSampleAL;
|
|
if (positionAL > 1.0)
|
|
{
|
|
positionAL -= 1.0;
|
|
heldSampleAL = (lastSampleL * positionAL) + (inputSampleL * (1-positionAL));
|
|
outputSampleL = (outputSampleL * 0.5) + (heldSampleAL * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleL > 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset > 0) {offset -= rezA;}
|
|
outputSampleL -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleL < 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset < 0) {offset += rezA;}
|
|
outputSampleL -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleL *= (1.0 - rezA);
|
|
if (fabs(outputSampleL) < rezA) outputSampleL = 0.0;
|
|
inputSampleL = outputSampleL;
|
|
//end raw sample L
|
|
|
|
//begin raw sample R
|
|
positionAR += rateA;
|
|
double outputSampleR = heldSampleAR;
|
|
if (positionAR > 1.0)
|
|
{
|
|
positionAR -= 1.0;
|
|
heldSampleAR = (lastSampleR * positionAR) + (inputSampleR * (1-positionAR));
|
|
outputSampleR = (outputSampleR * 0.5) + (heldSampleAR * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleR > 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset > 0) {offset -= rezA;}
|
|
outputSampleR -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleR < 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset < 0) {offset += rezA;}
|
|
outputSampleR -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleR *= (1.0 - rezA);
|
|
if (fabs(outputSampleR) < rezA) outputSampleR = 0.0;
|
|
inputSampleR = outputSampleR;
|
|
//end raw sample R
|
|
|
|
//begin interpolated sample L
|
|
positionBL += rateB;
|
|
outputSampleL = heldSampleBL;
|
|
if (positionBL > 1.0)
|
|
{
|
|
positionBL -= 1.0;
|
|
heldSampleBL = (lastSampleL * positionBL) + (ataHalfwaySampleL * (1-positionBL));
|
|
outputSampleL = (outputSampleL * 0.5) + (heldSampleBL * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleL > 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset > 0) {offset -= rezB;}
|
|
outputSampleL -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleL < 0)
|
|
{
|
|
offset = outputSampleL;
|
|
while (offset < 0) {offset += rezB;}
|
|
outputSampleL -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleL *= (1.0 - rezB);
|
|
if (fabs(outputSampleL) < rezB) outputSampleL = 0.0;
|
|
ataHalfwaySampleL = outputSampleL;
|
|
//end interpolated sample L
|
|
|
|
//begin interpolated sample R
|
|
positionBR += rateB;
|
|
outputSampleR = heldSampleBR;
|
|
if (positionBR > 1.0)
|
|
{
|
|
positionBR -= 1.0;
|
|
heldSampleBR = (lastSampleR * positionBR) + (ataHalfwaySampleR * (1-positionBR));
|
|
outputSampleR = (outputSampleR * 0.5) + (heldSampleBR * 0.5);
|
|
//softens the edge of the derez
|
|
}
|
|
if (outputSampleR > 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset > 0) {offset -= rezB;}
|
|
outputSampleR -= offset;
|
|
//it's below 0 so subtracting adds the remainder
|
|
}
|
|
if (outputSampleR < 0)
|
|
{
|
|
offset = outputSampleR;
|
|
while (offset < 0) {offset += rezB;}
|
|
outputSampleR -= offset;
|
|
//it's above 0 so subtracting subtracts the remainder
|
|
}
|
|
outputSampleR *= (1.0 - rezB);
|
|
if (fabs(outputSampleR) < rezB) outputSampleR = 0.0;
|
|
ataHalfwaySampleR = outputSampleR;
|
|
//end interpolated sample R
|
|
|
|
inputSampleL += ataHalfwaySampleL;
|
|
inputSampleL /= 2.0;
|
|
//plain old blend the two
|
|
|
|
inputSampleR += ataHalfwaySampleR;
|
|
inputSampleR /= 2.0;
|
|
//plain old blend the two
|
|
|
|
outputSampleL = (inputSampleL * (1.0-(wet/2))) + (lastOutputSampleL*(wet/2));
|
|
//darken to extent of wet in wet/dry, maximum 50%
|
|
lastOutputSampleL = inputSampleL;
|
|
outputSampleL *= outgain;
|
|
|
|
outputSampleR = (inputSampleR * (1.0-(wet/2))) + (lastOutputSampleR*(wet/2));
|
|
//darken to extent of wet in wet/dry, maximum 50%
|
|
lastOutputSampleR = inputSampleR;
|
|
outputSampleR *= outgain;
|
|
|
|
if (wet < 1.0) {
|
|
outputSampleL = (drySampleL * (1.0-wet)) + (outputSampleL * wet);
|
|
outputSampleR = (drySampleR * (1.0-wet)) + (outputSampleR * wet);
|
|
}
|
|
|
|
inputSampleL = outputSampleL;
|
|
inputSampleR = outputSampleR;
|
|
|
|
//begin 64 bit stereo floating point dither
|
|
//int expon; frexp((double)inputSampleL, &expon);
|
|
fpdL ^= fpdL << 13; fpdL ^= fpdL >> 17; fpdL ^= fpdL << 5;
|
|
//inputSampleL += ((double(fpdL)-uint32_t(0x7fffffff)) * 1.1e-44l * pow(2,expon+62));
|
|
//frexp((double)inputSampleR, &expon);
|
|
fpdR ^= fpdR << 13; fpdR ^= fpdR >> 17; fpdR ^= fpdR << 5;
|
|
//inputSampleR += ((double(fpdR)-uint32_t(0x7fffffff)) * 1.1e-44l * pow(2,expon+62));
|
|
//end 64 bit stereo floating point dither
|
|
|
|
*out1 = inputSampleL;
|
|
*out2 = inputSampleR;
|
|
|
|
*in1++;
|
|
*in2++;
|
|
*out1++;
|
|
*out2++;
|
|
}
|
|
}
|