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https://github.com/airwindows/airwindows.git
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496 lines
No EOL
16 KiB
C++
Executable file
496 lines
No EOL
16 KiB
C++
Executable file
/* ========================================
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* Melt - Melt.h
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* Copyright (c) 2016 airwindows, Airwindows uses the MIT license
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* ======================================== */
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#ifndef __Melt_H
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#include "Melt.h"
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#endif
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void Melt::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 rate = 1 / (pow(A,2) + 0.001);
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double depthB = (B * 139.5)+2;
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double depthA = depthB * (1.0 - A);
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double output = C * 0.05;
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double wet = D;
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double dry = 1.0-wet;
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double inputSampleL;
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double inputSampleR;
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double drySampleL;
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double drySampleR;
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minTap[0] = floor(2 * depthA); maxTap[0] = floor(2 * depthB);
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minTap[1] = floor(3 * depthA); maxTap[1] = floor(3 * depthB);
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minTap[2] = floor(5 * depthA); maxTap[2] = floor(5 * depthB);
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minTap[3] = floor(7 * depthA); maxTap[3] = floor(7 * depthB);
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minTap[4] = floor(11 * depthA); maxTap[4] = floor(11 * depthB);
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minTap[5] = floor(13 * depthA); maxTap[5] = floor(13 * depthB);
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minTap[6] = floor(17 * depthA); maxTap[6] = floor(17 * depthB);
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minTap[7] = floor(19 * depthA); maxTap[7] = floor(19 * depthB);
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minTap[8] = floor(23 * depthA); maxTap[8] = floor(23 * depthB);
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minTap[9] = floor(29 * depthA); maxTap[9] = floor(29 * depthB);
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minTap[10] = floor(31 * depthA); maxTap[10] = floor(31 * depthB);
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minTap[11] = floor(37 * depthA); maxTap[11] = floor(37 * depthB);
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minTap[12] = floor(41 * depthA); maxTap[12] = floor(41 * depthB);
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minTap[13] = floor(43 * depthA); maxTap[13] = floor(43 * depthB);
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minTap[14] = floor(47 * depthA); maxTap[14] = floor(47 * depthB);
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minTap[15] = floor(53 * depthA); maxTap[15] = floor(53 * depthB);
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minTap[16] = floor(59 * depthA); maxTap[16] = floor(59 * depthB);
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minTap[17] = floor(61 * depthA); maxTap[17] = floor(61 * depthB);
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minTap[18] = floor(67 * depthA); maxTap[18] = floor(67 * depthB);
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minTap[19] = floor(71 * depthA); maxTap[19] = floor(71 * depthB);
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minTap[20] = floor(73 * depthA); maxTap[20] = floor(73 * depthB);
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minTap[21] = floor(79 * depthA); maxTap[21] = floor(79 * depthB);
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minTap[22] = floor(83 * depthA); maxTap[22] = floor(83 * depthB);
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minTap[23] = floor(89 * depthA); maxTap[23] = floor(89 * depthB);
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minTap[24] = floor(97 * depthA); maxTap[24] = floor(97 * depthB);
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minTap[25] = floor(101 * depthA); maxTap[25] = floor(101 * depthB);
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minTap[26] = floor(103 * depthA); maxTap[26] = floor(103 * depthB);
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minTap[27] = floor(107 * depthA); maxTap[27] = floor(107 * depthB);
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minTap[28] = floor(109 * depthA); maxTap[28] = floor(109 * depthB);
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minTap[29] = floor(113 * depthA); maxTap[29] = floor(113 * depthB);
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minTap[30] = floor(117 * depthA); maxTap[30] = floor(117 * depthB);
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while (--sampleFrames >= 0)
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{
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inputSampleL = *in1;
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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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drySampleL = inputSampleL;
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drySampleR = inputSampleR;
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if (gcount < 0 || gcount > 16000) {gcount = 16000;}
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dL[gcount+16000] = dL[gcount] = inputSampleL;
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dR[gcount+16000] = dR[gcount] = inputSampleR;
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if (slowCount > rate || slowCount < 0) {
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slowCount = 0;
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stepCount++;
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if (stepCount > 29 || stepCount < 0) {stepCount = 0;}
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position[stepCount] += stepTap[stepCount];
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if (position[stepCount] < minTap[stepCount]) {
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position[stepCount] = minTap[stepCount];
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stepTap[stepCount] = 1;
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}
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if (position[stepCount] > maxTap[stepCount]) {
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position[stepCount] = maxTap[stepCount];
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stepTap[stepCount] = -1;
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}
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}
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//begin L
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scalefactorL *= 0.9999;
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scalefactorL += (100.0 - fabs(combineL)) * 0.000001;
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[29]]);
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combineL += (dL[gcount+position[28]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[27]]);
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combineL += (dL[gcount+position[26]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[25]]);
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combineL += (dL[gcount+position[24]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[23]]);
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combineL += (dL[gcount+position[22]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[21]]);
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combineL += (dL[gcount+position[20]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[19]]);
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combineL += (dL[gcount+position[18]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[17]]);
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combineL += (dL[gcount+position[16]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[15]]);
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combineL += (dL[gcount+position[14]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[13]]);
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combineL += (dL[gcount+position[12]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[11]]);
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combineL += (dL[gcount+position[10]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[9]]);
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combineL += (dL[gcount+position[8]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[7]]);
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combineL += (dL[gcount+position[6]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[5]]);
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combineL += (dL[gcount+position[4]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[3]]);
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combineL += (dL[gcount+position[2]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[1]]);
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combineL += (dL[gcount+position[0]]);
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inputSampleL = combineL;
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//done with L
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//begin R
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scalefactorR *= 0.9999;
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scalefactorR += (100.0 - fabs(combineR)) * 0.000001;
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[29]]);
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combineR += (dR[gcount+position[28]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[27]]);
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combineR += (dR[gcount+position[26]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[25]]);
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combineR += (dR[gcount+position[24]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[23]]);
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combineR += (dR[gcount+position[22]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[21]]);
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combineR += (dR[gcount+position[20]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[19]]);
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combineR += (dR[gcount+position[18]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[17]]);
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combineR += (dR[gcount+position[16]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[15]]);
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combineR += (dR[gcount+position[14]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[13]]);
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combineR += (dR[gcount+position[12]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[11]]);
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combineR += (dR[gcount+position[10]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[9]]);
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combineR += (dR[gcount+position[8]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[7]]);
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combineR += (dR[gcount+position[6]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[5]]);
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combineR += (dR[gcount+position[4]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[3]]);
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combineR += (dR[gcount+position[2]]);
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[1]]);
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combineR += (dR[gcount+position[0]]);
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inputSampleR = combineR;
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//done with R
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gcount--;
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slowCount++;
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if (output < 1.0) {inputSampleL *= output; inputSampleR *= output;}
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if (wet < 1.0) {
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inputSampleL = (drySampleL * dry)+(inputSampleL*wet);
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inputSampleR = (drySampleR * dry)+(inputSampleR*wet);
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}
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//nice little output stage template: if we have another scale of floating point
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//number, we really don't want to meaninglessly multiply that by 1.0.
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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 Melt::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 rate = 1 / (pow(A,2) + 0.001);
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double depthB = (B * 139.5)+2;
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double depthA = depthB * (1.0 - A);
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double output = C * 0.05;
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double wet = D;
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double dry = 1.0-wet;
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double inputSampleL;
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double inputSampleR;
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double drySampleL;
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double drySampleR;
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minTap[0] = floor(2 * depthA); maxTap[0] = floor(2 * depthB);
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minTap[1] = floor(3 * depthA); maxTap[1] = floor(3 * depthB);
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minTap[2] = floor(5 * depthA); maxTap[2] = floor(5 * depthB);
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minTap[3] = floor(7 * depthA); maxTap[3] = floor(7 * depthB);
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minTap[4] = floor(11 * depthA); maxTap[4] = floor(11 * depthB);
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minTap[5] = floor(13 * depthA); maxTap[5] = floor(13 * depthB);
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minTap[6] = floor(17 * depthA); maxTap[6] = floor(17 * depthB);
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minTap[7] = floor(19 * depthA); maxTap[7] = floor(19 * depthB);
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minTap[8] = floor(23 * depthA); maxTap[8] = floor(23 * depthB);
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minTap[9] = floor(29 * depthA); maxTap[9] = floor(29 * depthB);
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minTap[10] = floor(31 * depthA); maxTap[10] = floor(31 * depthB);
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minTap[11] = floor(37 * depthA); maxTap[11] = floor(37 * depthB);
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minTap[12] = floor(41 * depthA); maxTap[12] = floor(41 * depthB);
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minTap[13] = floor(43 * depthA); maxTap[13] = floor(43 * depthB);
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minTap[14] = floor(47 * depthA); maxTap[14] = floor(47 * depthB);
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minTap[15] = floor(53 * depthA); maxTap[15] = floor(53 * depthB);
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minTap[16] = floor(59 * depthA); maxTap[16] = floor(59 * depthB);
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minTap[17] = floor(61 * depthA); maxTap[17] = floor(61 * depthB);
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minTap[18] = floor(67 * depthA); maxTap[18] = floor(67 * depthB);
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minTap[19] = floor(71 * depthA); maxTap[19] = floor(71 * depthB);
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minTap[20] = floor(73 * depthA); maxTap[20] = floor(73 * depthB);
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minTap[21] = floor(79 * depthA); maxTap[21] = floor(79 * depthB);
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minTap[22] = floor(83 * depthA); maxTap[22] = floor(83 * depthB);
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minTap[23] = floor(89 * depthA); maxTap[23] = floor(89 * depthB);
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minTap[24] = floor(97 * depthA); maxTap[24] = floor(97 * depthB);
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minTap[25] = floor(101 * depthA); maxTap[25] = floor(101 * depthB);
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minTap[26] = floor(103 * depthA); maxTap[26] = floor(103 * depthB);
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minTap[27] = floor(107 * depthA); maxTap[27] = floor(107 * depthB);
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minTap[28] = floor(109 * depthA); maxTap[28] = floor(109 * depthB);
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minTap[29] = floor(113 * depthA); maxTap[29] = floor(113 * depthB);
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minTap[30] = floor(117 * depthA); maxTap[30] = floor(117 * depthB);
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while (--sampleFrames >= 0)
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{
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inputSampleL = *in1;
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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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drySampleL = inputSampleL;
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drySampleR = inputSampleR;
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if (gcount < 0 || gcount > 16000) {gcount = 16000;}
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dL[gcount+16000] = dL[gcount] = inputSampleL;
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dR[gcount+16000] = dR[gcount] = inputSampleR;
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if (slowCount > rate || slowCount < 0) {
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slowCount = 0;
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stepCount++;
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if (stepCount > 29 || stepCount < 0) {stepCount = 0;}
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position[stepCount] += stepTap[stepCount];
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if (position[stepCount] < minTap[stepCount]) {
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position[stepCount] = minTap[stepCount];
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stepTap[stepCount] = 1;
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}
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if (position[stepCount] > maxTap[stepCount]) {
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position[stepCount] = maxTap[stepCount];
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stepTap[stepCount] = -1;
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}
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}
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//begin L
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scalefactorL *= 0.9999;
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scalefactorL += (100.0 - fabs(combineL)) * 0.000001;
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[29]]);
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combineL += (dL[gcount+position[28]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[27]]);
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combineL += (dL[gcount+position[26]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[25]]);
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combineL += (dL[gcount+position[24]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[23]]);
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combineL += (dL[gcount+position[22]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[21]]);
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combineL += (dL[gcount+position[20]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[19]]);
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combineL += (dL[gcount+position[18]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[17]]);
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combineL += (dL[gcount+position[16]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[15]]);
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combineL += (dL[gcount+position[14]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[13]]);
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combineL += (dL[gcount+position[12]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[11]]);
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combineL += (dL[gcount+position[10]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[9]]);
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combineL += (dL[gcount+position[8]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[7]]);
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combineL += (dL[gcount+position[6]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[5]]);
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combineL += (dL[gcount+position[4]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[3]]);
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combineL += (dL[gcount+position[2]]);
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combineL *= scalefactorL;
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combineL -= (dL[gcount+position[1]]);
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combineL += (dL[gcount+position[0]]);
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inputSampleL = combineL;
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//done with L
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//begin R
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scalefactorR *= 0.9999;
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scalefactorR += (100.0 - fabs(combineR)) * 0.000001;
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combineR *= scalefactorR;
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combineR -= (dR[gcount+position[29]]);
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combineR += (dR[gcount+position[28]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[27]]);
|
|
combineR += (dR[gcount+position[26]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[25]]);
|
|
combineR += (dR[gcount+position[24]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[23]]);
|
|
combineR += (dR[gcount+position[22]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[21]]);
|
|
combineR += (dR[gcount+position[20]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[19]]);
|
|
combineR += (dR[gcount+position[18]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[17]]);
|
|
combineR += (dR[gcount+position[16]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[15]]);
|
|
combineR += (dR[gcount+position[14]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[13]]);
|
|
combineR += (dR[gcount+position[12]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[11]]);
|
|
combineR += (dR[gcount+position[10]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[9]]);
|
|
combineR += (dR[gcount+position[8]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[7]]);
|
|
combineR += (dR[gcount+position[6]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[5]]);
|
|
combineR += (dR[gcount+position[4]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[3]]);
|
|
combineR += (dR[gcount+position[2]]);
|
|
|
|
combineR *= scalefactorR;
|
|
combineR -= (dR[gcount+position[1]]);
|
|
combineR += (dR[gcount+position[0]]);
|
|
|
|
inputSampleR = combineR;
|
|
//done with R
|
|
|
|
gcount--;
|
|
slowCount++;
|
|
|
|
if (output < 1.0) {inputSampleL *= output; inputSampleR *= output;}
|
|
if (wet < 1.0) {
|
|
inputSampleL = (drySampleL * dry)+(inputSampleL*wet);
|
|
inputSampleR = (drySampleR * dry)+(inputSampleR*wet);
|
|
}
|
|
//nice little output stage template: if we have another scale of floating point
|
|
//number, we really don't want to meaninglessly multiply that by 1.0.
|
|
|
|
//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++;
|
|
}
|
|
} |