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630 lines
28 KiB
C++
Executable file
630 lines
28 KiB
C++
Executable file
/*
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* File: Isolator3.cpp
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*
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* Version: 1.0
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*
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* Created: 8/15/24
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*
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* Copyright: Copyright © 2024 Airwindows, Airwindows uses the MIT license
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*
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* Disclaimer: IMPORTANT: This Apple software is supplied to you by Apple Computer, Inc. ("Apple") in
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* consideration of your agreement to the following terms, and your use, installation, modification
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* or redistribution of this Apple software constitutes acceptance of these terms. If you do
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* not agree with these terms, please do not use, install, modify or redistribute this Apple
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* software.
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*
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* In consideration of your agreement to abide by the following terms, and subject to these terms,
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* Apple grants you a personal, non-exclusive license, under Apple's copyrights in this
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* original Apple software (the "Apple Software"), to use, reproduce, modify and redistribute the
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* Apple Software, with or without modifications, in source and/or binary forms; provided that if you
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* redistribute the Apple Software in its entirety and without modifications, you must retain this
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* notice and the following text and disclaimers in all such redistributions of the Apple Software.
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* Neither the name, trademarks, service marks or logos of Apple Computer, Inc. may be used to
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* endorse or promote products derived from the Apple Software without specific prior written
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* permission from Apple. Except as expressly stated in this notice, no other rights or
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* licenses, express or implied, are granted by Apple herein, including but not limited to any
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* patent rights that may be infringed by your derivative works or by other works in which the
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* Apple Software may be incorporated.
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*
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* The Apple Software is provided by Apple on an "AS IS" basis. APPLE MAKES NO WARRANTIES, EXPRESS OR
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* IMPLIED, INCLUDING WITHOUT LIMITATION THE IMPLIED WARRANTIES OF NON-INFRINGEMENT, MERCHANTABILITY
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* AND FITNESS FOR A PARTICULAR PURPOSE, REGARDING THE APPLE SOFTWARE OR ITS USE AND OPERATION ALONE
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* OR IN COMBINATION WITH YOUR PRODUCTS.
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*
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* IN NO EVENT SHALL APPLE BE LIABLE FOR ANY SPECIAL, INDIRECT, INCIDENTAL OR CONSEQUENTIAL
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS
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* OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) ARISING IN ANY WAY OUT OF THE USE,
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* REPRODUCTION, MODIFICATION AND/OR DISTRIBUTION OF THE APPLE SOFTWARE, HOWEVER CAUSED AND WHETHER
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* UNDER THEORY OF CONTRACT, TORT (INCLUDING NEGLIGENCE), STRICT LIABILITY OR OTHERWISE, EVEN
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* IF APPLE HAS BEEN ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*
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*/
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/*=============================================================================
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Isolator3.cpp
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=============================================================================*/
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#include "Isolator3.h"
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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AUDIOCOMPONENT_ENTRY(AUBaseFactory, Isolator3)
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::Isolator3
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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Isolator3::Isolator3(AudioUnit component)
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: AUEffectBase(component)
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{
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CreateElements();
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Globals()->UseIndexedParameters(kNumberOfParameters);
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SetParameter(kParam_A, kDefaultValue_ParamA );
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SetParameter(kParam_B, kDefaultValue_ParamB );
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#if AU_DEBUG_DISPATCHER
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mDebugDispatcher = new AUDebugDispatcher (this);
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#endif
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}
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::GetParameterValueStrings
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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ComponentResult Isolator3::GetParameterValueStrings(AudioUnitScope inScope,
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AudioUnitParameterID inParameterID,
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CFArrayRef * outStrings)
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{
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return kAudioUnitErr_InvalidProperty;
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}
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::GetParameterInfo
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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ComponentResult Isolator3::GetParameterInfo(AudioUnitScope inScope,
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AudioUnitParameterID inParameterID,
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AudioUnitParameterInfo &outParameterInfo )
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{
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ComponentResult result = noErr;
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outParameterInfo.flags = kAudioUnitParameterFlag_IsWritable
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| kAudioUnitParameterFlag_IsReadable;
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if (inScope == kAudioUnitScope_Global) {
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switch(inParameterID)
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{
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case kParam_A:
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AUBase::FillInParameterName (outParameterInfo, kParameterAName, false);
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outParameterInfo.unit = kAudioUnitParameterUnit_Generic;
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outParameterInfo.minValue = 0.0;
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outParameterInfo.maxValue = 1.0;
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outParameterInfo.defaultValue = kDefaultValue_ParamA;
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break;
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case kParam_B:
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AUBase::FillInParameterName (outParameterInfo, kParameterBName, false);
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outParameterInfo.unit = kAudioUnitParameterUnit_Generic;
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outParameterInfo.minValue = 0.0;
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outParameterInfo.maxValue = 1.0;
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outParameterInfo.defaultValue = kDefaultValue_ParamB;
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break;
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default:
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result = kAudioUnitErr_InvalidParameter;
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break;
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}
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} else {
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result = kAudioUnitErr_InvalidParameter;
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}
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return result;
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}
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::GetPropertyInfo
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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ComponentResult Isolator3::GetPropertyInfo (AudioUnitPropertyID inID,
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AudioUnitScope inScope,
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AudioUnitElement inElement,
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UInt32 & outDataSize,
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Boolean & outWritable)
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{
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return AUEffectBase::GetPropertyInfo (inID, inScope, inElement, outDataSize, outWritable);
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}
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::GetProperty
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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ComponentResult Isolator3::GetProperty( AudioUnitPropertyID inID,
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AudioUnitScope inScope,
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AudioUnitElement inElement,
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void * outData )
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{
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return AUEffectBase::GetProperty (inID, inScope, inElement, outData);
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}
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// Isolator3::Initialize
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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ComponentResult Isolator3::Initialize()
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{
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ComponentResult result = AUEffectBase::Initialize();
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if (result == noErr)
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Reset(kAudioUnitScope_Global, 0);
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return result;
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}
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#pragma mark ____Isolator3EffectKernel
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::Isolator3Kernel::Reset()
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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void Isolator3::Isolator3Kernel::Reset()
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{
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for (int x = 0; x < biq_total; x++) {
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biquadA[x] = 0.0;
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biquadB[x] = 0.0;
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biquadC[x] = 0.0;
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biquadD[x] = 0.0;
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biquadE[x] = 0.0;
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biquadF[x] = 0.0;
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biquadG[x] = 0.0;
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hiquadA[x] = 0.0;
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hiquadB[x] = 0.0;
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hiquadC[x] = 0.0;
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hiquadD[x] = 0.0;
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hiquadE[x] = 0.0;
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hiquadF[x] = 0.0;
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hiquadG[x] = 0.0;
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}
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lastSampleL = 0.0;
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wasPosClipL = false;
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wasNegClipL = false;
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for (int x = 0; x < 16; x++) {intermediateL[x] = 0.0;}
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//this is reset: values being initialized only once. Startup values, whatever they are.
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fpd = 1.0; while (fpd < 16386) fpd = rand()*UINT32_MAX;
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}
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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// Isolator3::Isolator3Kernel::Process
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//~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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void Isolator3::Isolator3Kernel::Process( const Float32 *inSourceP,
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Float32 *inDestP,
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UInt32 inFramesToProcess,
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UInt32 inNumChannels,
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bool &ioSilence )
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{
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UInt32 nSampleFrames = inFramesToProcess;
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const Float32 *sourceP = inSourceP;
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Float32 *destP = inDestP;
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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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int spacing = floor(overallscale); //should give us working basic scaling, usually 2 or 4
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if (spacing < 1) spacing = 1; if (spacing > 16) spacing = 16;
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double f = GetParameter( kParam_A );
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double q = GetParameter( kParam_B );
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double isoFreq = ((f*2.0)*(1.0-q))+(f*q);
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double hisoFreq = (((f*2.0)-1.0)*(1.0-q))+(f*q);
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if (isoFreq > 1.0) isoFreq = 1.0;
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if (hisoFreq < 0.0) hisoFreq = 0.0;
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biquadA[biq_freq] = pow(isoFreq,(2.0*sqrt(overallscale)))*0.4999;
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if (biquadA[biq_freq] < 0.00025) biquadA[biq_freq] = 0.00025;
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biquadG[biq_freq] = biquadF[biq_freq] = biquadE[biq_freq] = biquadD[biq_freq] = biquadC[biq_freq] = biquadB[biq_freq] = biquadA[biq_freq];
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hiquadA[biq_freq] = pow(hisoFreq,(2.0*sqrt(overallscale)))*0.4999;
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if (hiquadA[biq_freq] < 0.00025) hiquadA[biq_freq] = 0.00025;
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hiquadG[biq_freq] = hiquadF[biq_freq] = hiquadE[biq_freq] = hiquadD[biq_freq] = hiquadC[biq_freq] = hiquadB[biq_freq] = hiquadA[biq_freq];
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hiquadA[biq_reso] = biquadA[biq_reso] = 4.46570214;
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hiquadB[biq_reso] = biquadB[biq_reso] = 1.51387132;
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hiquadC[biq_reso] = biquadC[biq_reso] = 0.93979296;
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hiquadD[biq_reso] = biquadD[biq_reso] = 0.70710678;
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hiquadE[biq_reso] = biquadE[biq_reso] = 0.59051105;
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hiquadF[biq_reso] = biquadF[biq_reso] = 0.52972649;
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hiquadG[biq_reso] = biquadG[biq_reso] = 0.50316379;
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biquadA[biq_aA0] = biquadA[biq_aB0];
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biquadA[biq_aA1] = biquadA[biq_aB1];
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biquadA[biq_aA2] = biquadA[biq_aB2];
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biquadA[biq_bA1] = biquadA[biq_bB1];
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biquadA[biq_bA2] = biquadA[biq_bB2];
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biquadB[biq_aA0] = biquadB[biq_aB0];
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biquadB[biq_aA1] = biquadB[biq_aB1];
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biquadB[biq_aA2] = biquadB[biq_aB2];
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biquadB[biq_bA1] = biquadB[biq_bB1];
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biquadB[biq_bA2] = biquadB[biq_bB2];
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biquadC[biq_aA0] = biquadC[biq_aB0];
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biquadC[biq_aA1] = biquadC[biq_aB1];
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biquadC[biq_aA2] = biquadC[biq_aB2];
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biquadC[biq_bA1] = biquadC[biq_bB1];
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biquadC[biq_bA2] = biquadC[biq_bB2];
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biquadD[biq_aA0] = biquadD[biq_aB0];
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biquadD[biq_aA1] = biquadD[biq_aB1];
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biquadD[biq_aA2] = biquadD[biq_aB2];
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biquadD[biq_bA1] = biquadD[biq_bB1];
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biquadD[biq_bA2] = biquadD[biq_bB2];
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biquadE[biq_aA0] = biquadE[biq_aB0];
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biquadE[biq_aA1] = biquadE[biq_aB1];
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biquadE[biq_aA2] = biquadE[biq_aB2];
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biquadE[biq_bA1] = biquadE[biq_bB1];
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biquadE[biq_bA2] = biquadE[biq_bB2];
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biquadF[biq_aA0] = biquadF[biq_aB0];
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biquadF[biq_aA1] = biquadF[biq_aB1];
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biquadF[biq_aA2] = biquadF[biq_aB2];
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biquadF[biq_bA1] = biquadF[biq_bB1];
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biquadF[biq_bA2] = biquadF[biq_bB2];
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biquadG[biq_aA0] = biquadG[biq_aB0];
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biquadG[biq_aA1] = biquadG[biq_aB1];
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biquadG[biq_aA2] = biquadG[biq_aB2];
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biquadG[biq_bA1] = biquadG[biq_bB1];
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biquadG[biq_bA2] = biquadG[biq_bB2];
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hiquadA[biq_aA0] = hiquadA[biq_aB0];
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hiquadA[biq_aA1] = hiquadA[biq_aB1];
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hiquadA[biq_aA2] = hiquadA[biq_aB2];
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hiquadA[biq_bA1] = hiquadA[biq_bB1];
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hiquadA[biq_bA2] = hiquadA[biq_bB2];
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hiquadB[biq_aA0] = hiquadB[biq_aB0];
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hiquadB[biq_aA1] = hiquadB[biq_aB1];
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hiquadB[biq_aA2] = hiquadB[biq_aB2];
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hiquadB[biq_bA1] = hiquadB[biq_bB1];
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hiquadB[biq_bA2] = hiquadB[biq_bB2];
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hiquadC[biq_aA0] = hiquadC[biq_aB0];
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hiquadC[biq_aA1] = hiquadC[biq_aB1];
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hiquadC[biq_aA2] = hiquadC[biq_aB2];
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hiquadC[biq_bA1] = hiquadC[biq_bB1];
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hiquadC[biq_bA2] = hiquadC[biq_bB2];
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hiquadD[biq_aA0] = hiquadD[biq_aB0];
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hiquadD[biq_aA1] = hiquadD[biq_aB1];
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hiquadD[biq_aA2] = hiquadD[biq_aB2];
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hiquadD[biq_bA1] = hiquadD[biq_bB1];
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hiquadD[biq_bA2] = hiquadD[biq_bB2];
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hiquadE[biq_aA0] = hiquadE[biq_aB0];
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hiquadE[biq_aA1] = hiquadE[biq_aB1];
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hiquadE[biq_aA2] = hiquadE[biq_aB2];
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hiquadE[biq_bA1] = hiquadE[biq_bB1];
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hiquadE[biq_bA2] = hiquadE[biq_bB2];
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hiquadF[biq_aA0] = hiquadF[biq_aB0];
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hiquadF[biq_aA1] = hiquadF[biq_aB1];
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hiquadF[biq_aA2] = hiquadF[biq_aB2];
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hiquadF[biq_bA1] = hiquadF[biq_bB1];
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hiquadF[biq_bA2] = hiquadF[biq_bB2];
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hiquadG[biq_aA0] = hiquadG[biq_aB0];
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hiquadG[biq_aA1] = hiquadG[biq_aB1];
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hiquadG[biq_aA2] = hiquadG[biq_aB2];
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hiquadG[biq_bA1] = hiquadG[biq_bB1];
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hiquadG[biq_bA2] = hiquadG[biq_bB2];
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//previous run through the buffer is still in the filter, so we move it
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//to the A section and now it's the new starting point.
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double K = tan(M_PI * biquadA[biq_freq]);
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double norm = 1.0 / (1.0 + K / biquadA[biq_reso] + K * K);
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biquadA[biq_aB0] = K * K * norm;
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biquadA[biq_aB1] = 2.0 * biquadA[biq_aB0];
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biquadA[biq_aB2] = biquadA[biq_aB0];
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biquadA[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
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biquadA[biq_bB2] = (1.0 - K / biquadA[biq_reso] + K * K) * norm;
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K = tan(M_PI * biquadB[biq_freq]);
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norm = 1.0 / (1.0 + K / biquadB[biq_reso] + K * K);
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biquadB[biq_aB0] = K * K * norm;
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biquadB[biq_aB1] = 2.0 * biquadB[biq_aB0];
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biquadB[biq_aB2] = biquadB[biq_aB0];
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biquadB[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
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biquadB[biq_bB2] = (1.0 - K / biquadB[biq_reso] + K * K) * norm;
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K = tan(M_PI * biquadC[biq_freq]);
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norm = 1.0 / (1.0 + K / biquadC[biq_reso] + K * K);
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biquadC[biq_aB0] = K * K * norm;
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biquadC[biq_aB1] = 2.0 * biquadC[biq_aB0];
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biquadC[biq_aB2] = biquadC[biq_aB0];
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biquadC[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
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biquadC[biq_bB2] = (1.0 - K / biquadC[biq_reso] + K * K) * norm;
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K = tan(M_PI * biquadD[biq_freq]);
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norm = 1.0 / (1.0 + K / biquadD[biq_reso] + K * K);
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biquadD[biq_aB0] = K * K * norm;
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biquadD[biq_aB1] = 2.0 * biquadD[biq_aB0];
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biquadD[biq_aB2] = biquadD[biq_aB0];
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biquadD[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
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biquadD[biq_bB2] = (1.0 - K / biquadD[biq_reso] + K * K) * norm;
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K = tan(M_PI * biquadE[biq_freq]);
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norm = 1.0 / (1.0 + K / biquadE[biq_reso] + K * K);
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biquadE[biq_aB0] = K * K * norm;
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biquadE[biq_aB1] = 2.0 * biquadE[biq_aB0];
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biquadE[biq_aB2] = biquadE[biq_aB0];
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biquadE[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
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biquadE[biq_bB2] = (1.0 - K / biquadE[biq_reso] + K * K) * norm;
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K = tan(M_PI * biquadF[biq_freq]);
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norm = 1.0 / (1.0 + K / biquadF[biq_reso] + K * K);
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biquadF[biq_aB0] = K * K * norm;
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biquadF[biq_aB1] = 2.0 * biquadF[biq_aB0];
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biquadF[biq_aB2] = biquadF[biq_aB0];
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biquadF[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
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biquadF[biq_bB2] = (1.0 - K / biquadF[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * biquadG[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / biquadG[biq_reso] + K * K);
|
|
biquadG[biq_aB0] = K * K * norm;
|
|
biquadG[biq_aB1] = 2.0 * biquadG[biq_aB0];
|
|
biquadG[biq_aB2] = biquadG[biq_aB0];
|
|
biquadG[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
biquadG[biq_bB2] = (1.0 - K / biquadG[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadA[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadA[biq_reso] + K * K);
|
|
hiquadA[biq_aB0] = K * K * norm;
|
|
hiquadA[biq_aB1] = 2.0 * hiquadA[biq_aB0];
|
|
hiquadA[biq_aB2] = hiquadA[biq_aB0];
|
|
hiquadA[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadA[biq_bB2] = (1.0 - K / hiquadA[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadB[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadB[biq_reso] + K * K);
|
|
hiquadB[biq_aB0] = K * K * norm;
|
|
hiquadB[biq_aB1] = 2.0 * hiquadB[biq_aB0];
|
|
hiquadB[biq_aB2] = hiquadB[biq_aB0];
|
|
hiquadB[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadB[biq_bB2] = (1.0 - K / hiquadB[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadC[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadC[biq_reso] + K * K);
|
|
hiquadC[biq_aB0] = K * K * norm;
|
|
hiquadC[biq_aB1] = 2.0 * hiquadC[biq_aB0];
|
|
hiquadC[biq_aB2] = hiquadC[biq_aB0];
|
|
hiquadC[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadC[biq_bB2] = (1.0 - K / hiquadC[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadD[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadD[biq_reso] + K * K);
|
|
hiquadD[biq_aB0] = K * K * norm;
|
|
hiquadD[biq_aB1] = 2.0 * hiquadD[biq_aB0];
|
|
hiquadD[biq_aB2] = hiquadD[biq_aB0];
|
|
hiquadD[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadD[biq_bB2] = (1.0 - K / hiquadD[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadE[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadE[biq_reso] + K * K);
|
|
hiquadE[biq_aB0] = K * K * norm;
|
|
hiquadE[biq_aB1] = 2.0 * hiquadE[biq_aB0];
|
|
hiquadE[biq_aB2] = hiquadE[biq_aB0];
|
|
hiquadE[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadE[biq_bB2] = (1.0 - K / hiquadE[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadF[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadF[biq_reso] + K * K);
|
|
hiquadF[biq_aB0] = K * K * norm;
|
|
hiquadF[biq_aB1] = 2.0 * hiquadF[biq_aB0];
|
|
hiquadF[biq_aB2] = hiquadF[biq_aB0];
|
|
hiquadF[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadF[biq_bB2] = (1.0 - K / hiquadF[biq_reso] + K * K) * norm;
|
|
|
|
K = tan(M_PI * hiquadG[biq_freq]);
|
|
norm = 1.0 / (1.0 + K / hiquadG[biq_reso] + K * K);
|
|
hiquadG[biq_aB0] = K * K * norm;
|
|
hiquadG[biq_aB1] = 2.0 * hiquadG[biq_aB0];
|
|
hiquadG[biq_aB2] = hiquadG[biq_aB0];
|
|
hiquadG[biq_bB1] = 2.0 * (K * K - 1.0) * norm;
|
|
hiquadG[biq_bB2] = (1.0 - K / hiquadG[biq_reso] + K * K) * norm;
|
|
|
|
while (nSampleFrames-- > 0) {
|
|
double inputSample = *sourceP;
|
|
if (fabs(inputSample)<1.18e-23) inputSample = fpd * 1.18e-17;
|
|
double drySample = inputSample;
|
|
|
|
double temp = (double)nSampleFrames/inFramesToProcess;
|
|
|
|
hiquadA[biq_a0] = (hiquadA[biq_aA0]*temp)+(hiquadA[biq_aB0]*(1.0-temp));
|
|
hiquadA[biq_a1] = (hiquadA[biq_aA1]*temp)+(hiquadA[biq_aB1]*(1.0-temp));
|
|
hiquadA[biq_a2] = (hiquadA[biq_aA2]*temp)+(hiquadA[biq_aB2]*(1.0-temp));
|
|
hiquadA[biq_b1] = (hiquadA[biq_bA1]*temp)+(hiquadA[biq_bB1]*(1.0-temp));
|
|
hiquadA[biq_b2] = (hiquadA[biq_bA2]*temp)+(hiquadA[biq_bB2]*(1.0-temp));
|
|
|
|
hiquadB[biq_a0] = (hiquadB[biq_aA0]*temp)+(hiquadB[biq_aB0]*(1.0-temp));
|
|
hiquadB[biq_a1] = (hiquadB[biq_aA1]*temp)+(hiquadB[biq_aB1]*(1.0-temp));
|
|
hiquadB[biq_a2] = (hiquadB[biq_aA2]*temp)+(hiquadB[biq_aB2]*(1.0-temp));
|
|
hiquadB[biq_b1] = (hiquadB[biq_bA1]*temp)+(hiquadB[biq_bB1]*(1.0-temp));
|
|
hiquadB[biq_b2] = (hiquadB[biq_bA2]*temp)+(hiquadB[biq_bB2]*(1.0-temp));
|
|
|
|
hiquadC[biq_a0] = (hiquadC[biq_aA0]*temp)+(hiquadC[biq_aB0]*(1.0-temp));
|
|
hiquadC[biq_a1] = (hiquadC[biq_aA1]*temp)+(hiquadC[biq_aB1]*(1.0-temp));
|
|
hiquadC[biq_a2] = (hiquadC[biq_aA2]*temp)+(hiquadC[biq_aB2]*(1.0-temp));
|
|
hiquadC[biq_b1] = (hiquadC[biq_bA1]*temp)+(hiquadC[biq_bB1]*(1.0-temp));
|
|
hiquadC[biq_b2] = (hiquadC[biq_bA2]*temp)+(hiquadC[biq_bB2]*(1.0-temp));
|
|
|
|
hiquadD[biq_a0] = (hiquadD[biq_aA0]*temp)+(hiquadD[biq_aB0]*(1.0-temp));
|
|
hiquadD[biq_a1] = (hiquadD[biq_aA1]*temp)+(hiquadD[biq_aB1]*(1.0-temp));
|
|
hiquadD[biq_a2] = (hiquadD[biq_aA2]*temp)+(hiquadD[biq_aB2]*(1.0-temp));
|
|
hiquadD[biq_b1] = (hiquadD[biq_bA1]*temp)+(hiquadD[biq_bB1]*(1.0-temp));
|
|
hiquadD[biq_b2] = (hiquadD[biq_bA2]*temp)+(hiquadD[biq_bB2]*(1.0-temp));
|
|
|
|
hiquadE[biq_a0] = (hiquadE[biq_aA0]*temp)+(hiquadE[biq_aB0]*(1.0-temp));
|
|
hiquadE[biq_a1] = (hiquadE[biq_aA1]*temp)+(hiquadE[biq_aB1]*(1.0-temp));
|
|
hiquadE[biq_a2] = (hiquadE[biq_aA2]*temp)+(hiquadE[biq_aB2]*(1.0-temp));
|
|
hiquadE[biq_b1] = (hiquadE[biq_bA1]*temp)+(hiquadE[biq_bB1]*(1.0-temp));
|
|
hiquadE[biq_b2] = (hiquadE[biq_bA2]*temp)+(hiquadE[biq_bB2]*(1.0-temp));
|
|
|
|
hiquadF[biq_a0] = (hiquadF[biq_aA0]*temp)+(hiquadF[biq_aB0]*(1.0-temp));
|
|
hiquadF[biq_a1] = (hiquadF[biq_aA1]*temp)+(hiquadF[biq_aB1]*(1.0-temp));
|
|
hiquadF[biq_a2] = (hiquadF[biq_aA2]*temp)+(hiquadF[biq_aB2]*(1.0-temp));
|
|
hiquadF[biq_b1] = (hiquadF[biq_bA1]*temp)+(hiquadF[biq_bB1]*(1.0-temp));
|
|
hiquadF[biq_b2] = (hiquadF[biq_bA2]*temp)+(hiquadF[biq_bB2]*(1.0-temp));
|
|
|
|
hiquadG[biq_a0] = (hiquadG[biq_aA0]*temp)+(hiquadG[biq_aB0]*(1.0-temp));
|
|
hiquadG[biq_a1] = (hiquadG[biq_aA1]*temp)+(hiquadG[biq_aB1]*(1.0-temp));
|
|
hiquadG[biq_a2] = (hiquadG[biq_aA2]*temp)+(hiquadG[biq_aB2]*(1.0-temp));
|
|
hiquadG[biq_b1] = (hiquadG[biq_bA1]*temp)+(hiquadG[biq_bB1]*(1.0-temp));
|
|
hiquadG[biq_b2] = (hiquadG[biq_bA2]*temp)+(hiquadG[biq_bB2]*(1.0-temp));
|
|
//this is the interpolation code for the hiquad
|
|
|
|
double outSample = (inputSample * hiquadA[biq_a0]) + hiquadA[biq_sL1];
|
|
hiquadA[biq_sL1] = (inputSample * hiquadA[biq_a1]) - (outSample * hiquadA[biq_b1]) + hiquadA[biq_sL2];
|
|
hiquadA[biq_sL2] = (inputSample * hiquadA[biq_a2]) - (outSample * hiquadA[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * hiquadB[biq_a0]) + hiquadB[biq_sL1];
|
|
hiquadB[biq_sL1] = (inputSample * hiquadB[biq_a1]) - (outSample * hiquadB[biq_b1]) + hiquadB[biq_sL2];
|
|
hiquadB[biq_sL2] = (inputSample * hiquadB[biq_a2]) - (outSample * hiquadB[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * hiquadC[biq_a0]) + hiquadC[biq_sL1];
|
|
hiquadC[biq_sL1] = (inputSample * hiquadC[biq_a1]) - (outSample * hiquadC[biq_b1]) + hiquadC[biq_sL2];
|
|
hiquadC[biq_sL2] = (inputSample * hiquadC[biq_a2]) - (outSample * hiquadC[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * hiquadD[biq_a0]) + hiquadD[biq_sL1];
|
|
hiquadD[biq_sL1] = (inputSample * hiquadD[biq_a1]) - (outSample * hiquadD[biq_b1]) + hiquadD[biq_sL2];
|
|
hiquadD[biq_sL2] = (inputSample * hiquadD[biq_a2]) - (outSample * hiquadD[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * hiquadE[biq_a0]) + hiquadE[biq_sL1];
|
|
hiquadE[biq_sL1] = (inputSample * hiquadE[biq_a1]) - (outSample * hiquadE[biq_b1]) + hiquadE[biq_sL2];
|
|
hiquadE[biq_sL2] = (inputSample * hiquadE[biq_a2]) - (outSample * hiquadE[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * hiquadF[biq_a0]) + hiquadF[biq_sL1];
|
|
hiquadF[biq_sL1] = (inputSample * hiquadF[biq_a1]) - (outSample * hiquadF[biq_b1]) + hiquadF[biq_sL2];
|
|
hiquadF[biq_sL2] = (inputSample * hiquadF[biq_a2]) - (outSample * hiquadF[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * hiquadG[biq_a0]) + hiquadG[biq_sL1];
|
|
hiquadG[biq_sL1] = (inputSample * hiquadG[biq_a1]) - (outSample * hiquadG[biq_b1]) + hiquadG[biq_sL2];
|
|
hiquadG[biq_sL2] = (inputSample * hiquadG[biq_a2]) - (outSample * hiquadG[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
inputSample = (drySample - inputSample);
|
|
|
|
biquadA[biq_a0] = (biquadA[biq_aA0]*temp)+(biquadA[biq_aB0]*(1.0-temp));
|
|
biquadA[biq_a1] = (biquadA[biq_aA1]*temp)+(biquadA[biq_aB1]*(1.0-temp));
|
|
biquadA[biq_a2] = (biquadA[biq_aA2]*temp)+(biquadA[biq_aB2]*(1.0-temp));
|
|
biquadA[biq_b1] = (biquadA[biq_bA1]*temp)+(biquadA[biq_bB1]*(1.0-temp));
|
|
biquadA[biq_b2] = (biquadA[biq_bA2]*temp)+(biquadA[biq_bB2]*(1.0-temp));
|
|
|
|
biquadB[biq_a0] = (biquadB[biq_aA0]*temp)+(biquadB[biq_aB0]*(1.0-temp));
|
|
biquadB[biq_a1] = (biquadB[biq_aA1]*temp)+(biquadB[biq_aB1]*(1.0-temp));
|
|
biquadB[biq_a2] = (biquadB[biq_aA2]*temp)+(biquadB[biq_aB2]*(1.0-temp));
|
|
biquadB[biq_b1] = (biquadB[biq_bA1]*temp)+(biquadB[biq_bB1]*(1.0-temp));
|
|
biquadB[biq_b2] = (biquadB[biq_bA2]*temp)+(biquadB[biq_bB2]*(1.0-temp));
|
|
|
|
biquadC[biq_a0] = (biquadC[biq_aA0]*temp)+(biquadC[biq_aB0]*(1.0-temp));
|
|
biquadC[biq_a1] = (biquadC[biq_aA1]*temp)+(biquadC[biq_aB1]*(1.0-temp));
|
|
biquadC[biq_a2] = (biquadC[biq_aA2]*temp)+(biquadC[biq_aB2]*(1.0-temp));
|
|
biquadC[biq_b1] = (biquadC[biq_bA1]*temp)+(biquadC[biq_bB1]*(1.0-temp));
|
|
biquadC[biq_b2] = (biquadC[biq_bA2]*temp)+(biquadC[biq_bB2]*(1.0-temp));
|
|
|
|
biquadD[biq_a0] = (biquadD[biq_aA0]*temp)+(biquadD[biq_aB0]*(1.0-temp));
|
|
biquadD[biq_a1] = (biquadD[biq_aA1]*temp)+(biquadD[biq_aB1]*(1.0-temp));
|
|
biquadD[biq_a2] = (biquadD[biq_aA2]*temp)+(biquadD[biq_aB2]*(1.0-temp));
|
|
biquadD[biq_b1] = (biquadD[biq_bA1]*temp)+(biquadD[biq_bB1]*(1.0-temp));
|
|
biquadD[biq_b2] = (biquadD[biq_bA2]*temp)+(biquadD[biq_bB2]*(1.0-temp));
|
|
|
|
biquadE[biq_a0] = (biquadE[biq_aA0]*temp)+(biquadE[biq_aB0]*(1.0-temp));
|
|
biquadE[biq_a1] = (biquadE[biq_aA1]*temp)+(biquadE[biq_aB1]*(1.0-temp));
|
|
biquadE[biq_a2] = (biquadE[biq_aA2]*temp)+(biquadE[biq_aB2]*(1.0-temp));
|
|
biquadE[biq_b1] = (biquadE[biq_bA1]*temp)+(biquadE[biq_bB1]*(1.0-temp));
|
|
biquadE[biq_b2] = (biquadE[biq_bA2]*temp)+(biquadE[biq_bB2]*(1.0-temp));
|
|
|
|
biquadF[biq_a0] = (biquadF[biq_aA0]*temp)+(biquadF[biq_aB0]*(1.0-temp));
|
|
biquadF[biq_a1] = (biquadF[biq_aA1]*temp)+(biquadF[biq_aB1]*(1.0-temp));
|
|
biquadF[biq_a2] = (biquadF[biq_aA2]*temp)+(biquadF[biq_aB2]*(1.0-temp));
|
|
biquadF[biq_b1] = (biquadF[biq_bA1]*temp)+(biquadF[biq_bB1]*(1.0-temp));
|
|
biquadF[biq_b2] = (biquadF[biq_bA2]*temp)+(biquadF[biq_bB2]*(1.0-temp));
|
|
|
|
biquadG[biq_a0] = (biquadG[biq_aA0]*temp)+(biquadG[biq_aB0]*(1.0-temp));
|
|
biquadG[biq_a1] = (biquadG[biq_aA1]*temp)+(biquadG[biq_aB1]*(1.0-temp));
|
|
biquadG[biq_a2] = (biquadG[biq_aA2]*temp)+(biquadG[biq_aB2]*(1.0-temp));
|
|
biquadG[biq_b1] = (biquadG[biq_bA1]*temp)+(biquadG[biq_bB1]*(1.0-temp));
|
|
biquadG[biq_b2] = (biquadG[biq_bA2]*temp)+(biquadG[biq_bB2]*(1.0-temp));
|
|
//this is the interpolation code for the biquad
|
|
|
|
outSample = (inputSample * biquadA[biq_a0]) + biquadA[biq_sL1];
|
|
biquadA[biq_sL1] = (inputSample * biquadA[biq_a1]) - (outSample * biquadA[biq_b1]) + biquadA[biq_sL2];
|
|
biquadA[biq_sL2] = (inputSample * biquadA[biq_a2]) - (outSample * biquadA[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * biquadB[biq_a0]) + biquadB[biq_sL1];
|
|
biquadB[biq_sL1] = (inputSample * biquadB[biq_a1]) - (outSample * biquadB[biq_b1]) + biquadB[biq_sL2];
|
|
biquadB[biq_sL2] = (inputSample * biquadB[biq_a2]) - (outSample * biquadB[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * biquadC[biq_a0]) + biquadC[biq_sL1];
|
|
biquadC[biq_sL1] = (inputSample * biquadC[biq_a1]) - (outSample * biquadC[biq_b1]) + biquadC[biq_sL2];
|
|
biquadC[biq_sL2] = (inputSample * biquadC[biq_a2]) - (outSample * biquadC[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * biquadD[biq_a0]) + biquadD[biq_sL1];
|
|
biquadD[biq_sL1] = (inputSample * biquadD[biq_a1]) - (outSample * biquadD[biq_b1]) + biquadD[biq_sL2];
|
|
biquadD[biq_sL2] = (inputSample * biquadD[biq_a2]) - (outSample * biquadD[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * biquadE[biq_a0]) + biquadE[biq_sL1];
|
|
biquadE[biq_sL1] = (inputSample * biquadE[biq_a1]) - (outSample * biquadE[biq_b1]) + biquadE[biq_sL2];
|
|
biquadE[biq_sL2] = (inputSample * biquadE[biq_a2]) - (outSample * biquadE[biq_b2]);
|
|
inputSample = outSample;
|
|
|
|
outSample = (inputSample * biquadF[biq_a0]) + biquadF[biq_sL1];
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biquadF[biq_sL1] = (inputSample * biquadF[biq_a1]) - (outSample * biquadF[biq_b1]) + biquadF[biq_sL2];
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biquadF[biq_sL2] = (inputSample * biquadF[biq_a2]) - (outSample * biquadF[biq_b2]);
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inputSample = outSample;
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outSample = (inputSample * biquadG[biq_a0]) + biquadG[biq_sL1];
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biquadG[biq_sL1] = (inputSample * biquadG[biq_a1]) - (outSample * biquadG[biq_b1]) + biquadG[biq_sL2];
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biquadG[biq_sL2] = (inputSample * biquadG[biq_a2]) - (outSample * biquadG[biq_b2]);
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inputSample = outSample;
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|
|
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//begin ClipOnly2 as a little, compressed chunk that can be dropped into code
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if (inputSample > 4.0) inputSample = 4.0; if (inputSample < -4.0) inputSample = -4.0;
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if (wasPosClipL == true) { //current will be over
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if (inputSample<lastSampleL) lastSampleL=0.7058208+(inputSample*0.2609148);
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else lastSampleL = 0.2491717+(lastSampleL*0.7390851);
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} wasPosClipL = false;
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if (inputSample>0.9549925859) {wasPosClipL=true;inputSample=0.7058208+(lastSampleL*0.2609148);}
|
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if (wasNegClipL == true) { //current will be -over
|
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if (inputSample > lastSampleL) lastSampleL=-0.7058208+(inputSample*0.2609148);
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else lastSampleL=-0.2491717+(lastSampleL*0.7390851);
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} wasNegClipL = false;
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if (inputSample<-0.9549925859) {wasNegClipL=true;inputSample=-0.7058208+(lastSampleL*0.2609148);}
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intermediateL[spacing] = inputSample;
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inputSample = lastSampleL; //Latency is however many samples equals one 44.1k sample
|
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for (int x = spacing; x > 0; x--) intermediateL[x-1] = intermediateL[x];
|
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lastSampleL = intermediateL[0]; //run a little buffer to handle this
|
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//end ClipOnly2 as a little, compressed chunk that can be dropped into code
|
|
|
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//begin 32 bit floating point dither
|
|
int expon; frexpf((float)inputSample, &expon);
|
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fpd ^= fpd << 13; fpd ^= fpd >> 17; fpd ^= fpd << 5;
|
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inputSample += ((double(fpd)-uint32_t(0x7fffffff)) * 5.5e-36l * pow(2,expon+62));
|
|
//end 32 bit floating point dither
|
|
|
|
*destP = inputSample;
|
|
|
|
sourceP += inNumChannels; destP += inNumChannels;
|
|
}
|
|
}
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