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406 lines
18 KiB
C++
Executable file
406 lines
18 KiB
C++
Executable file
/* ========================================
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* Holt2 - Holt2.h
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* Copyright (c) 2016 airwindows, Airwindows uses the MIT license
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* ======================================== */
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#ifndef __Holt2_H
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#include "Holt2.h"
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#endif
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void Holt2::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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double overallscale = 1.0;
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overallscale /= 44100.0;
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overallscale *= getSampleRate();
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double alpha = pow(A,4)+0.00001;
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if (alpha > 1.0) alpha = 1.0;
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double resControl = (B*0.15)+0.12;
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double beta = (alpha * pow(resControl,2));
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//0.27 max resonance for full stages on white noise keeping below 0dB
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//0.12 min resonance for not losing all the level as we go down
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//as we remove the 'avoid zero' +0.00001 on beta, our subsonic stability improves
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alpha += ((1.0-beta)*pow(A,3)); //correct for droop in frequency
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if (alpha > 1.0) alpha = 1.0;
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double trend;
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double forecast; //defining these here because we're copying the routine eight times
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double aWet = 0.0;
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double bWet = 0.0;
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double cWet = 0.0;
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double dWet = 0.0;
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double eWet = 0.0;
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double fWet = 0.0;
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double gWet = 0.0;
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double hWet = C*8.0;
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//eight-stage wet/dry control using progressive stages that bypass when not engaged
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if (hWet < 1.0) {aWet = hWet; hWet = 0.0;}
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else if (hWet < 2.0) {bWet = hWet - 1.0; aWet = 1.0; hWet = 0.0;}
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else if (hWet < 3.0) {cWet = hWet - 2.0; bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 4.0) {dWet = hWet - 3.0; cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 5.0) {eWet = hWet - 4.0; dWet = cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 6.0) {fWet = hWet - 5.0; eWet = dWet = cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 7.0) {gWet = hWet - 6.0; fWet = eWet = dWet = cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else {hWet -= 7.0; gWet = fWet = eWet = dWet = cWet = bWet = aWet = 1.0;}
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//this is one way to make a little set of dry/wet stages that are successively added to the
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//output as the control is turned up. Each one independently goes from 0-1 and stays at 1
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//beyond that point: this is a way to progressively add a 'black box' sound processing
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//which lets you fall through to simpler processing at lower settings.
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double gain = D;
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double wet = E;
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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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if (aWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleAL) + ((0.999-beta) * previousTrendAL));
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forecast = previousSampleAL + previousTrendAL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleAL = inputSampleL; previousTrendAL = trend;
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inputSampleL = (inputSampleL * aWet) + (drySampleL * (1.0-aWet));
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trend = (beta * (inputSampleR - previousSampleAR) + ((0.999-beta) * previousTrendAR));
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forecast = previousSampleAR + previousTrendAR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleAR = inputSampleR; previousTrendAR = trend;
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inputSampleR = (inputSampleR * aWet) + (drySampleR * (1.0-aWet));
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}
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if (bWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleBL) + ((0.999-beta) * previousTrendBL));
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forecast = previousSampleBL + previousTrendBL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleBL = inputSampleL; previousTrendBL = trend;
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inputSampleL = (inputSampleL * bWet) + (previousSampleAL * (1.0-bWet));
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trend = (beta * (inputSampleR - previousSampleBR) + ((0.999-beta) * previousTrendBR));
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forecast = previousSampleBR + previousTrendBR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleBR = inputSampleR; previousTrendBR = trend;
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inputSampleR = (inputSampleR * bWet) + (previousSampleAR * (1.0-bWet));
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}
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if (cWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleCL) + ((0.999-beta) * previousTrendCL));
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forecast = previousSampleCL + previousTrendCL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleCL = inputSampleL; previousTrendCL = trend;
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inputSampleL = (inputSampleL * cWet) + (previousSampleBL * (1.0-cWet));
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trend = (beta * (inputSampleR - previousSampleCR) + ((0.999-beta) * previousTrendCR));
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forecast = previousSampleCR + previousTrendCR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleCR = inputSampleR; previousTrendCR = trend;
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inputSampleR = (inputSampleR * cWet) + (previousSampleBR * (1.0-cWet));
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}
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if (dWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleDL) + ((0.999-beta) * previousTrendDL));
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forecast = previousSampleDL + previousTrendDL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleDL = inputSampleL; previousTrendDL = trend;
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inputSampleL = (inputSampleL * dWet) + (previousSampleCL * (1.0-dWet));
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trend = (beta * (inputSampleR - previousSampleDR) + ((0.999-beta) * previousTrendDR));
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forecast = previousSampleDR + previousTrendDR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleDR = inputSampleR; previousTrendDR = trend;
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inputSampleR = (inputSampleR * dWet) + (previousSampleCR * (1.0-dWet));
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}
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if (eWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleEL) + ((0.999-beta) * previousTrendEL));
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forecast = previousSampleEL + previousTrendEL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleEL = inputSampleL; previousTrendEL = trend;
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inputSampleL = (inputSampleL * eWet) + (previousSampleDL * (1.0-eWet));
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trend = (beta * (inputSampleR - previousSampleER) + ((0.999-beta) * previousTrendER));
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forecast = previousSampleER + previousTrendER;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleER = inputSampleR; previousTrendER = trend;
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inputSampleR = (inputSampleR * eWet) + (previousSampleDR * (1.0-eWet));
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}
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if (fWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleFL) + ((0.999-beta) * previousTrendFL));
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forecast = previousSampleFL + previousTrendFL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleFL = inputSampleL; previousTrendFL = trend;
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inputSampleL = (inputSampleL * fWet) + (previousSampleEL * (1.0-fWet));
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trend = (beta * (inputSampleR - previousSampleFR) + ((0.999-beta) * previousTrendFR));
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forecast = previousSampleFR + previousTrendFR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleFR = inputSampleR; previousTrendFR = trend;
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inputSampleR = (inputSampleR * fWet) + (previousSampleER * (1.0-fWet));
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}
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if (gWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleGL) + ((0.999-beta) * previousTrendGL));
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forecast = previousSampleGL + previousTrendGL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleGL = inputSampleL; previousTrendGL = trend;
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inputSampleL = (inputSampleL * gWet) + (previousSampleFL * (1.0-gWet));
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trend = (beta * (inputSampleR - previousSampleGR) + ((0.999-beta) * previousTrendGR));
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forecast = previousSampleGR + previousTrendGR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleGR = inputSampleR; previousTrendGR = trend;
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inputSampleR = (inputSampleR * gWet) + (previousSampleFR * (1.0-gWet));
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}
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if (hWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleHL) + ((0.999-beta) * previousTrendHL));
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forecast = previousSampleHL + previousTrendHL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleHL = inputSampleL; previousTrendHL = trend;
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inputSampleL = (inputSampleL * hWet) + (previousSampleGL * (1.0-hWet));
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trend = (beta * (inputSampleR - previousSampleHR) + ((0.999-beta) * previousTrendHR));
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forecast = previousSampleHR + previousTrendHR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleHR = inputSampleR; previousTrendHR = trend;
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inputSampleR = (inputSampleR * hWet) + (previousSampleGR * (1.0-hWet));
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}
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if (gain < 1.0) {
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inputSampleL *= gain;
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inputSampleR *= gain;
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}
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if (wet < 1.0) {
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inputSampleL = (inputSampleL*wet)+(drySampleL*(1.0-wet));
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inputSampleR = (inputSampleR*wet)+(drySampleR*(1.0-wet));
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}
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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 Holt2::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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double overallscale = 1.0;
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overallscale /= 44100.0;
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overallscale *= getSampleRate();
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double alpha = pow(A,4)+0.00001;
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if (alpha > 1.0) alpha = 1.0;
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double resControl = (B*0.15)+0.12;
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double beta = (alpha * pow(resControl,2));
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//0.27 max resonance for full stages on white noise keeping below 0dB
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//0.12 min resonance for not losing all the level as we go down
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//as we remove the 'avoid zero' +0.00001 on beta, our subsonic stability improves
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alpha += ((1.0-beta)*pow(A,3)); //correct for droop in frequency
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if (alpha > 1.0) alpha = 1.0;
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double trend;
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double forecast; //defining these here because we're copying the routine eight times
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double aWet = 0.0;
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double bWet = 0.0;
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double cWet = 0.0;
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double dWet = 0.0;
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double eWet = 0.0;
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double fWet = 0.0;
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double gWet = 0.0;
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double hWet = C*8.0;
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//eight-stage wet/dry control using progressive stages that bypass when not engaged
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if (hWet < 1.0) {aWet = hWet; hWet = 0.0;}
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else if (hWet < 2.0) {bWet = hWet - 1.0; aWet = 1.0; hWet = 0.0;}
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else if (hWet < 3.0) {cWet = hWet - 2.0; bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 4.0) {dWet = hWet - 3.0; cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 5.0) {eWet = hWet - 4.0; dWet = cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 6.0) {fWet = hWet - 5.0; eWet = dWet = cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else if (hWet < 7.0) {gWet = hWet - 6.0; fWet = eWet = dWet = cWet = bWet = aWet = 1.0; hWet = 0.0;}
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else {hWet -= 7.0; gWet = fWet = eWet = dWet = cWet = bWet = aWet = 1.0;}
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//this is one way to make a little set of dry/wet stages that are successively added to the
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//output as the control is turned up. Each one independently goes from 0-1 and stays at 1
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//beyond that point: this is a way to progressively add a 'black box' sound processing
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//which lets you fall through to simpler processing at lower settings.
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double gain = D;
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double wet = E;
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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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if (aWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleAL) + ((0.999-beta) * previousTrendAL));
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forecast = previousSampleAL + previousTrendAL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleAL = inputSampleL; previousTrendAL = trend;
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inputSampleL = (inputSampleL * aWet) + (drySampleL * (1.0-aWet));
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trend = (beta * (inputSampleR - previousSampleAR) + ((0.999-beta) * previousTrendAR));
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forecast = previousSampleAR + previousTrendAR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleAR = inputSampleR; previousTrendAR = trend;
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inputSampleR = (inputSampleR * aWet) + (drySampleR * (1.0-aWet));
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}
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if (bWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleBL) + ((0.999-beta) * previousTrendBL));
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forecast = previousSampleBL + previousTrendBL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleBL = inputSampleL; previousTrendBL = trend;
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inputSampleL = (inputSampleL * bWet) + (previousSampleAL * (1.0-bWet));
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trend = (beta * (inputSampleR - previousSampleBR) + ((0.999-beta) * previousTrendBR));
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forecast = previousSampleBR + previousTrendBR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleBR = inputSampleR; previousTrendBR = trend;
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inputSampleR = (inputSampleR * bWet) + (previousSampleAR * (1.0-bWet));
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}
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if (cWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleCL) + ((0.999-beta) * previousTrendCL));
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forecast = previousSampleCL + previousTrendCL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleCL = inputSampleL; previousTrendCL = trend;
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inputSampleL = (inputSampleL * cWet) + (previousSampleBL * (1.0-cWet));
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trend = (beta * (inputSampleR - previousSampleCR) + ((0.999-beta) * previousTrendCR));
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forecast = previousSampleCR + previousTrendCR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleCR = inputSampleR; previousTrendCR = trend;
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inputSampleR = (inputSampleR * cWet) + (previousSampleBR * (1.0-cWet));
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}
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if (dWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleDL) + ((0.999-beta) * previousTrendDL));
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forecast = previousSampleDL + previousTrendDL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleDL = inputSampleL; previousTrendDL = trend;
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inputSampleL = (inputSampleL * dWet) + (previousSampleCL * (1.0-dWet));
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trend = (beta * (inputSampleR - previousSampleDR) + ((0.999-beta) * previousTrendDR));
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forecast = previousSampleDR + previousTrendDR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleDR = inputSampleR; previousTrendDR = trend;
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inputSampleR = (inputSampleR * dWet) + (previousSampleCR * (1.0-dWet));
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}
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if (eWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleEL) + ((0.999-beta) * previousTrendEL));
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forecast = previousSampleEL + previousTrendEL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleEL = inputSampleL; previousTrendEL = trend;
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inputSampleL = (inputSampleL * eWet) + (previousSampleDL * (1.0-eWet));
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trend = (beta * (inputSampleR - previousSampleER) + ((0.999-beta) * previousTrendER));
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forecast = previousSampleER + previousTrendER;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleER = inputSampleR; previousTrendER = trend;
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inputSampleR = (inputSampleR * eWet) + (previousSampleDR * (1.0-eWet));
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}
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if (fWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleFL) + ((0.999-beta) * previousTrendFL));
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forecast = previousSampleFL + previousTrendFL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleFL = inputSampleL; previousTrendFL = trend;
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inputSampleL = (inputSampleL * fWet) + (previousSampleEL * (1.0-fWet));
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trend = (beta * (inputSampleR - previousSampleFR) + ((0.999-beta) * previousTrendFR));
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forecast = previousSampleFR + previousTrendFR;
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inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
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previousSampleFR = inputSampleR; previousTrendFR = trend;
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inputSampleR = (inputSampleR * fWet) + (previousSampleER * (1.0-fWet));
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}
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if (gWet > 0.0) {
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trend = (beta * (inputSampleL - previousSampleGL) + ((0.999-beta) * previousTrendGL));
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forecast = previousSampleGL + previousTrendGL;
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inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
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previousSampleGL = inputSampleL; previousTrendGL = trend;
|
|
inputSampleL = (inputSampleL * gWet) + (previousSampleFL * (1.0-gWet));
|
|
|
|
trend = (beta * (inputSampleR - previousSampleGR) + ((0.999-beta) * previousTrendGR));
|
|
forecast = previousSampleGR + previousTrendGR;
|
|
inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
|
|
previousSampleGR = inputSampleR; previousTrendGR = trend;
|
|
inputSampleR = (inputSampleR * gWet) + (previousSampleFR * (1.0-gWet));
|
|
}
|
|
|
|
if (hWet > 0.0) {
|
|
trend = (beta * (inputSampleL - previousSampleHL) + ((0.999-beta) * previousTrendHL));
|
|
forecast = previousSampleHL + previousTrendHL;
|
|
inputSampleL = (alpha * inputSampleL) + ((0.999-alpha) * forecast);
|
|
previousSampleHL = inputSampleL; previousTrendHL = trend;
|
|
inputSampleL = (inputSampleL * hWet) + (previousSampleGL * (1.0-hWet));
|
|
|
|
trend = (beta * (inputSampleR - previousSampleHR) + ((0.999-beta) * previousTrendHR));
|
|
forecast = previousSampleHR + previousTrendHR;
|
|
inputSampleR = (alpha * inputSampleR) + ((0.999-alpha) * forecast);
|
|
previousSampleHR = inputSampleR; previousTrendHR = trend;
|
|
inputSampleR = (inputSampleR * hWet) + (previousSampleGR * (1.0-hWet));
|
|
}
|
|
|
|
if (gain < 1.0) {
|
|
inputSampleL *= gain;
|
|
inputSampleR *= gain;
|
|
}
|
|
|
|
if (wet < 1.0) {
|
|
inputSampleL = (inputSampleL*wet)+(drySampleL*(1.0-wet));
|
|
inputSampleR = (inputSampleR*wet)+(drySampleR*(1.0-wet));
|
|
}
|
|
|
|
//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++;
|
|
}
|
|
}
|