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216 lines
11 KiB
C++
Executable file
216 lines
11 KiB
C++
Executable file
/* ========================================
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* AngleEQ - AngleEQ.h
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* Copyright (c) airwindows, Airwindows uses the MIT license
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* ======================================== */
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#ifndef __AngleEQ_H
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#include "AngleEQ.h"
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#endif
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void AngleEQ::processReplacing(float **inputs, float **outputs, VstInt32 sampleFrames)
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{
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float* in1 = inputs[0];
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float* in2 = inputs[1];
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float* out1 = outputs[0];
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float* out2 = outputs[1];
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VstInt32 inFramesToProcess = sampleFrames; //vst doesn't give us this as a separate variable so we'll make it
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double overallscale = 1.0;
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overallscale /= 44100.0;
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overallscale *= getSampleRate();
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double highVol = pow(A*2.0,2.0);
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double midVol = pow(B*2.0,2.0);
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double lowVol = pow(C*2.0,2.0);
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double hFreq = pow(D,overallscale);
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double mhFreq = pow(E,overallscale);
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double mlFreq = pow(F,overallscale+3.0);
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double lFreq = pow(G,overallscale+3.0);
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double dry = 2.0-(H*2.0);
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if (dry > 1.0) dry = 1.0; //full dry for use with inv, to 0.0 at full wet
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double wet = (H*2.0)-1.0; //inv-dry-wet for highpass
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while (--sampleFrames >= 0)
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{
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double inputSampleL = *in1;
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double inputSampleR = *in2;
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if (fabs(inputSampleL)<1.18e-23) inputSampleL = fpdL * 1.18e-17;
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if (fabs(inputSampleR)<1.18e-23) inputSampleR = fpdR * 1.18e-17;
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double drySampleL = inputSampleL;
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double drySampleR = inputSampleR;
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double midSampleL = inputSampleL;
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double midSampleR = inputSampleR;
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double highSampleL = inputSampleL;
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double highSampleR = inputSampleR;
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for(int count = 0; count < (3.0+(hFreq*32.0)); count++) {
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iirHAngleL[count] = (iirHAngleL[count]*(1.0-hFreq))+((inputSampleL-iirHPositionL[count])*hFreq);
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inputSampleL = ((iirHPositionL[count]+(iirHAngleL[count]*hFreq))*(1.0-hFreq))+(inputSampleL*hFreq);
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iirHPositionL[count] = ((iirHPositionL[count]+(iirHAngleL[count]*hFreq))*(1.0-hFreq))+(inputSampleL*hFreq);
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highSampleL -= (inputSampleL * (1.0/(3.0+(hFreq*32.0))) );
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iirHAngleR[count] = (iirHAngleR[count]*(1.0-hFreq))+((inputSampleR-iirHPositionR[count])*hFreq);
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inputSampleR = ((iirHPositionR[count]+(iirHAngleR[count]*hFreq))*(1.0-hFreq))+(inputSampleR*hFreq);
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iirHPositionR[count] = ((iirHPositionR[count]+(iirHAngleR[count]*hFreq))*(1.0-hFreq))+(inputSampleR*hFreq);
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highSampleR -= (inputSampleR * (1.0/(3.0+(hFreq*32.0))) );
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} //highpass point of treble band
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inputSampleL = midSampleL; //restore for second highpass
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inputSampleR = midSampleR; //restore for second highpass
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for(int count = 0; count < (3.0+(mlFreq*32.0)); count++) {
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iirMHAngleL[count] = (iirMHAngleL[count]*(1.0-mlFreq))+((inputSampleL-iirMHPositionL[count])*mlFreq);
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inputSampleL = ((iirMHPositionL[count]+(iirMHAngleL[count]*mlFreq))*(1.0-mlFreq))+(inputSampleL*mlFreq);
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iirMHPositionL[count] = ((iirMHPositionL[count]+(iirMHAngleL[count]*mlFreq))*(1.0-mlFreq))+(inputSampleL*mlFreq);
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midSampleL -= (inputSampleL * (1.0/(3.0+(mlFreq*32.0))) );
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iirMHAngleR[count] = (iirMHAngleR[count]*(1.0-mlFreq))+((inputSampleR-iirMHPositionR[count])*mlFreq);
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inputSampleR = ((iirMHPositionR[count]+(iirMHAngleR[count]*mlFreq))*(1.0-mlFreq))+(inputSampleR*mlFreq);
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iirMHPositionR[count] = ((iirMHPositionR[count]+(iirMHAngleR[count]*mlFreq))*(1.0-mlFreq))+(inputSampleR*mlFreq);
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midSampleR -= (inputSampleR * (1.0/(3.0+(mlFreq*32.0))) );
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} //highpass point of mid-to-low band
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for(int count = 0; count < (3.0+(mhFreq*32.0)); count++) {
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iirMLAngleL[count] = (iirMLAngleL[count]*(1.0-mhFreq))+((midSampleL-iirMLPositionL[count])*mhFreq);
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midSampleL = ((iirMLPositionL[count]+(iirMLAngleL[count]*mhFreq))*(1.0-mhFreq))+(midSampleL*mhFreq);
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iirMLPositionL[count] = ((iirMLPositionL[count]+(iirMLAngleL[count]*mhFreq))*(1.0-mhFreq))+(midSampleL*mhFreq);
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iirMLAngleR[count] = (iirMLAngleR[count]*(1.0-mhFreq))+((midSampleR-iirMLPositionR[count])*mhFreq);
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midSampleR = ((iirMLPositionR[count]+(iirMLAngleR[count]*mhFreq))*(1.0-mhFreq))+(midSampleR*mhFreq);
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iirMLPositionR[count] = ((iirMLPositionR[count]+(iirMLAngleR[count]*mhFreq))*(1.0-mhFreq))+(midSampleR*mhFreq);
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} //lowpass point of mid-to-high band
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double lowSampleL = inputSampleL;
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double lowSampleR = inputSampleR;
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for(int count = 0; count < (3.0+(lFreq*32.0)); count++) {
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iirLAngleL[count] = (iirLAngleL[count]*(1.0-lFreq))+((lowSampleL-iirLPositionL[count])*lFreq);
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lowSampleL = ((iirLPositionL[count]+(iirLAngleL[count]*lFreq))*(1.0-lFreq))+(lowSampleL*lFreq);
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iirLPositionL[count] = ((iirLPositionL[count]+(iirLAngleL[count]*lFreq))*(1.0-lFreq))+(lowSampleL*lFreq);
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iirLAngleR[count] = (iirLAngleR[count]*(1.0-lFreq))+((lowSampleR-iirLPositionR[count])*lFreq);
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lowSampleR = ((iirLPositionR[count]+(iirLAngleR[count]*lFreq))*(1.0-lFreq))+(lowSampleR*lFreq);
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iirLPositionR[count] = ((iirLPositionR[count]+(iirLAngleR[count]*lFreq))*(1.0-lFreq))+(lowSampleR*lFreq);
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} //lowpass point of low band
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inputSampleL = (drySampleL*dry)+(((highSampleL*highVol)+(midSampleL*midVol)+(lowSampleL*lowVol))*wet);
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inputSampleR = (drySampleR*dry)+(((highSampleR*highVol)+(midSampleR*midVol)+(lowSampleR*lowVol))*wet);
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//begin 32 bit stereo floating point dither
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int expon; frexpf((float)inputSampleL, &expon);
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fpdL ^= fpdL << 13; fpdL ^= fpdL >> 17; fpdL ^= fpdL << 5;
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inputSampleL += ((double(fpdL)-uint32_t(0x7fffffff)) * 5.5e-36l * pow(2,expon+62));
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frexpf((float)inputSampleR, &expon);
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fpdR ^= fpdR << 13; fpdR ^= fpdR >> 17; fpdR ^= fpdR << 5;
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inputSampleR += ((double(fpdR)-uint32_t(0x7fffffff)) * 5.5e-36l * pow(2,expon+62));
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//end 32 bit stereo floating point dither
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*out1 = inputSampleL;
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*out2 = inputSampleR;
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in1++;
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in2++;
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out1++;
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out2++;
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}
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}
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void AngleEQ::processDoubleReplacing(double **inputs, double **outputs, VstInt32 sampleFrames)
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{
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double* in1 = inputs[0];
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double* in2 = inputs[1];
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double* out1 = outputs[0];
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double* out2 = outputs[1];
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VstInt32 inFramesToProcess = sampleFrames; //vst doesn't give us this as a separate variable so we'll make it
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double overallscale = 1.0;
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overallscale /= 44100.0;
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overallscale *= getSampleRate();
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double highVol = pow(A*2.0,2.0);
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double midVol = pow(B*2.0,2.0);
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double lowVol = pow(C*2.0,2.0);
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double hFreq = pow(D,overallscale);
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double mhFreq = pow(E,overallscale);
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double mlFreq = pow(F,overallscale+3.0);
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double lFreq = pow(G,overallscale+3.0);
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double dry = 2.0-(H*2.0);
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if (dry > 1.0) dry = 1.0; //full dry for use with inv, to 0.0 at full wet
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double wet = (H*2.0)-1.0; //inv-dry-wet for highpass
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while (--sampleFrames >= 0)
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{
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double inputSampleL = *in1;
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double inputSampleR = *in2;
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if (fabs(inputSampleL)<1.18e-23) inputSampleL = fpdL * 1.18e-17;
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if (fabs(inputSampleR)<1.18e-23) inputSampleR = fpdR * 1.18e-17;
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double drySampleL = inputSampleL;
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double drySampleR = inputSampleR;
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double midSampleL = inputSampleL;
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double midSampleR = inputSampleR;
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double highSampleL = inputSampleL;
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double highSampleR = inputSampleR;
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for(int count = 0; count < (3.0+(hFreq*32.0)); count++) {
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iirHAngleL[count] = (iirHAngleL[count]*(1.0-hFreq))+((inputSampleL-iirHPositionL[count])*hFreq);
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inputSampleL = ((iirHPositionL[count]+(iirHAngleL[count]*hFreq))*(1.0-hFreq))+(inputSampleL*hFreq);
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iirHPositionL[count] = ((iirHPositionL[count]+(iirHAngleL[count]*hFreq))*(1.0-hFreq))+(inputSampleL*hFreq);
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highSampleL -= (inputSampleL * (1.0/(3.0+(hFreq*32.0))) );
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iirHAngleR[count] = (iirHAngleR[count]*(1.0-hFreq))+((inputSampleR-iirHPositionR[count])*hFreq);
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inputSampleR = ((iirHPositionR[count]+(iirHAngleR[count]*hFreq))*(1.0-hFreq))+(inputSampleR*hFreq);
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iirHPositionR[count] = ((iirHPositionR[count]+(iirHAngleR[count]*hFreq))*(1.0-hFreq))+(inputSampleR*hFreq);
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highSampleR -= (inputSampleR * (1.0/(3.0+(hFreq*32.0))) );
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} //highpass point of treble band
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inputSampleL = midSampleL; //restore for second highpass
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inputSampleR = midSampleR; //restore for second highpass
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for(int count = 0; count < (3.0+(mlFreq*32.0)); count++) {
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iirMHAngleL[count] = (iirMHAngleL[count]*(1.0-mlFreq))+((inputSampleL-iirMHPositionL[count])*mlFreq);
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inputSampleL = ((iirMHPositionL[count]+(iirMHAngleL[count]*mlFreq))*(1.0-mlFreq))+(inputSampleL*mlFreq);
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iirMHPositionL[count] = ((iirMHPositionL[count]+(iirMHAngleL[count]*mlFreq))*(1.0-mlFreq))+(inputSampleL*mlFreq);
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midSampleL -= (inputSampleL * (1.0/(3.0+(mlFreq*32.0))) );
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iirMHAngleR[count] = (iirMHAngleR[count]*(1.0-mlFreq))+((inputSampleR-iirMHPositionR[count])*mlFreq);
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inputSampleR = ((iirMHPositionR[count]+(iirMHAngleR[count]*mlFreq))*(1.0-mlFreq))+(inputSampleR*mlFreq);
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iirMHPositionR[count] = ((iirMHPositionR[count]+(iirMHAngleR[count]*mlFreq))*(1.0-mlFreq))+(inputSampleR*mlFreq);
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midSampleR -= (inputSampleR * (1.0/(3.0+(mlFreq*32.0))) );
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} //highpass point of mid-to-low band
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for(int count = 0; count < (3.0+(mhFreq*32.0)); count++) {
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iirMLAngleL[count] = (iirMLAngleL[count]*(1.0-mhFreq))+((midSampleL-iirMLPositionL[count])*mhFreq);
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midSampleL = ((iirMLPositionL[count]+(iirMLAngleL[count]*mhFreq))*(1.0-mhFreq))+(midSampleL*mhFreq);
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iirMLPositionL[count] = ((iirMLPositionL[count]+(iirMLAngleL[count]*mhFreq))*(1.0-mhFreq))+(midSampleL*mhFreq);
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iirMLAngleR[count] = (iirMLAngleR[count]*(1.0-mhFreq))+((midSampleR-iirMLPositionR[count])*mhFreq);
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midSampleR = ((iirMLPositionR[count]+(iirMLAngleR[count]*mhFreq))*(1.0-mhFreq))+(midSampleR*mhFreq);
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iirMLPositionR[count] = ((iirMLPositionR[count]+(iirMLAngleR[count]*mhFreq))*(1.0-mhFreq))+(midSampleR*mhFreq);
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} //lowpass point of mid-to-high band
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double lowSampleL = inputSampleL;
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double lowSampleR = inputSampleR;
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for(int count = 0; count < (3.0+(lFreq*32.0)); count++) {
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iirLAngleL[count] = (iirLAngleL[count]*(1.0-lFreq))+((lowSampleL-iirLPositionL[count])*lFreq);
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lowSampleL = ((iirLPositionL[count]+(iirLAngleL[count]*lFreq))*(1.0-lFreq))+(lowSampleL*lFreq);
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iirLPositionL[count] = ((iirLPositionL[count]+(iirLAngleL[count]*lFreq))*(1.0-lFreq))+(lowSampleL*lFreq);
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iirLAngleR[count] = (iirLAngleR[count]*(1.0-lFreq))+((lowSampleR-iirLPositionR[count])*lFreq);
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lowSampleR = ((iirLPositionR[count]+(iirLAngleR[count]*lFreq))*(1.0-lFreq))+(lowSampleR*lFreq);
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iirLPositionR[count] = ((iirLPositionR[count]+(iirLAngleR[count]*lFreq))*(1.0-lFreq))+(lowSampleR*lFreq);
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} //lowpass point of low band
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inputSampleL = (drySampleL*dry)+(((highSampleL*highVol)+(midSampleL*midVol)+(lowSampleL*lowVol))*wet);
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inputSampleR = (drySampleR*dry)+(((highSampleR*highVol)+(midSampleR*midVol)+(lowSampleR*lowVol))*wet);
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//begin 64 bit stereo floating point dither
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//int expon; frexp((double)inputSampleL, &expon);
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fpdL ^= fpdL << 13; fpdL ^= fpdL >> 17; fpdL ^= fpdL << 5;
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//inputSampleL += ((double(fpdL)-uint32_t(0x7fffffff)) * 1.1e-44l * pow(2,expon+62));
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//frexp((double)inputSampleR, &expon);
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fpdR ^= fpdR << 13; fpdR ^= fpdR >> 17; fpdR ^= fpdR << 5;
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//inputSampleR += ((double(fpdR)-uint32_t(0x7fffffff)) * 1.1e-44l * pow(2,expon+62));
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//end 64 bit stereo floating point dither
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*out1 = inputSampleL;
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*out2 = inputSampleR;
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in1++;
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in2++;
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out1++;
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out2++;
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}
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}
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