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185 lines
5.3 KiB
C++
185 lines
5.3 KiB
C++
#ifndef STK_BLOWHOLE_H
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#define STK_BLOWHOLE_H
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#include "Instrmnt.h"
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#include "DelayL.h"
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#include "ReedTable.h"
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#include "OneZero.h"
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#include "PoleZero.h"
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#include "Envelope.h"
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#include "Noise.h"
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#include "SineWave.h"
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namespace stk {
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/***************************************************/
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/*! \class BlowHole
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\brief STK clarinet physical model with one
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register hole and one tonehole.
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This class is based on the clarinet model,
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with the addition of a two-port register hole
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and a three-port dynamic tonehole
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implementation, as discussed by Scavone and
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Cook (1998).
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In this implementation, the distances between
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the reed/register hole and tonehole/bell are
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fixed. As a result, both the tonehole and
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register hole will have variable influence on
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the playing frequency, which is dependent on
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the length of the air column. In addition,
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the highest playing freqeuency is limited by
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these fixed lengths.
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This is a digital waveguide model, making its
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use possibly subject to patents held by Stanford
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University, Yamaha, and others.
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Control Change Numbers:
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- Reed Stiffness = 2
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- Noise Gain = 4
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- Tonehole State = 11
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- Register State = 1
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- Breath Pressure = 128
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by Perry R. Cook and Gary P. Scavone, 1995-2012.
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*/
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/***************************************************/
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class BlowHole : public Instrmnt
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{
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public:
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//! Class constructor.
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/*!
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An StkError will be thrown if the rawwave path is incorrectly set.
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*/
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BlowHole( StkFloat lowestFrequency );
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//! Class destructor.
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~BlowHole( void );
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//! Reset and clear all internal state.
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void clear( void );
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//! Set instrument parameters for a particular frequency.
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void setFrequency( StkFloat frequency );
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//! Set the tonehole state (0.0 = closed, 1.0 = fully open).
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void setTonehole( StkFloat newValue );
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//! Set the register hole state (0.0 = closed, 1.0 = fully open).
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void setVent( StkFloat newValue );
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//! Apply breath pressure to instrument with given amplitude and rate of increase.
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void startBlowing( StkFloat amplitude, StkFloat rate );
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//! Decrease breath pressure with given rate of decrease.
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void stopBlowing( StkFloat rate );
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//! Start a note with the given frequency and amplitude.
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void noteOn( StkFloat frequency, StkFloat amplitude );
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//! Stop a note with the given amplitude (speed of decay).
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void noteOff( StkFloat amplitude );
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//! Perform the control change specified by \e number and \e value (0.0 - 128.0).
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void controlChange( int number, StkFloat value );
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//! Compute and return one output sample.
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StkFloat tick( unsigned int channel = 0 );
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//! Fill a channel of the StkFrames object with computed outputs.
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/*!
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The \c channel argument must be less than the number of
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channels in the StkFrames argument (the first channel is specified
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by 0). However, range checking is only performed if _STK_DEBUG_
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is defined during compilation, in which case an out-of-range value
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will trigger an StkError exception.
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*/
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StkFrames& tick( StkFrames& frames, unsigned int channel = 0 );
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protected:
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DelayL delays_[3];
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ReedTable reedTable_;
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OneZero filter_;
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PoleZero tonehole_;
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PoleZero vent_;
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Envelope envelope_;
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Noise noise_;
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SineWave vibrato_;
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StkFloat scatter_;
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StkFloat thCoeff_;
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StkFloat rhGain_;
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StkFloat outputGain_;
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StkFloat noiseGain_;
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StkFloat vibratoGain_;
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};
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inline StkFloat BlowHole :: tick( unsigned int )
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{
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StkFloat pressureDiff;
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StkFloat breathPressure;
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StkFloat temp;
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// Calculate the breath pressure (envelope + noise + vibrato)
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breathPressure = envelope_.tick();
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breathPressure += breathPressure * noiseGain_ * noise_.tick();
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breathPressure += breathPressure * vibratoGain_ * vibrato_.tick();
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// Calculate the differential pressure = reflected - mouthpiece pressures
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pressureDiff = delays_[0].lastOut() - breathPressure;
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// Do two-port junction scattering for register vent
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StkFloat pa = breathPressure + pressureDiff * reedTable_.tick( pressureDiff );
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StkFloat pb = delays_[1].lastOut();
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vent_.tick( pa+pb );
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lastFrame_[0] = delays_[0].tick( vent_.lastOut()+pb );
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lastFrame_[0] *= outputGain_;
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// Do three-port junction scattering (under tonehole)
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pa += vent_.lastOut();
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pb = delays_[2].lastOut();
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StkFloat pth = tonehole_.lastOut();
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temp = scatter_ * (pa + pb - 2 * pth);
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delays_[2].tick( filter_.tick(pa + temp) * -0.95 );
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delays_[1].tick( pb + temp );
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tonehole_.tick( pa + pb - pth + temp );
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return lastFrame_[0];
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}
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inline StkFrames& BlowHole :: tick( StkFrames& frames, unsigned int channel )
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{
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unsigned int nChannels = lastFrame_.channels();
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#if defined(_STK_DEBUG_)
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if ( channel > frames.channels() - nChannels ) {
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oStream_ << "BlowHole::tick(): channel and StkFrames arguments are incompatible!";
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handleError( StkError::FUNCTION_ARGUMENT );
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}
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#endif
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StkFloat *samples = &frames[channel];
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unsigned int j, hop = frames.channels() - nChannels;
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if ( nChannels == 1 ) {
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for ( unsigned int i=0; i<frames.frames(); i++, samples += hop )
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*samples++ = tick();
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}
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else {
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for ( unsigned int i=0; i<frames.frames(); i++, samples += hop ) {
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*samples++ = tick();
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for ( j=1; j<nChannels; j++ )
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*samples++ = lastFrame_[j];
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}
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}
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return frames;
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}
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} // stk namespace
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#endif
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