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146 lines
3.8 KiB
C++
146 lines
3.8 KiB
C++
#ifndef STK_ASYMP_H
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#define STK_ASYMP_H
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#include "Generator.h"
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namespace stk {
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/***************************************************/
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/*! \class Asymp
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\brief STK asymptotic curve envelope class
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This class implements a simple envelope generator
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which asymptotically approaches a target value.
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The algorithm used is of the form:
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y[n] = a y[n-1] + (1-a) target,
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where a = exp(-T/tau), T is the sample period, and
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tau is a time constant. The user can set the time
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constant (default value = 0.3) and target value.
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Theoretically, this recursion never reaches its
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target, though the calculations in this class are
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stopped when the current value gets within a small
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threshold value of the target (at which time the
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current value is set to the target). It responds
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to \e keyOn and \e keyOff messages by ramping to
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1.0 on keyOn and to 0.0 on keyOff.
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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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const StkFloat TARGET_THRESHOLD = 0.000001;
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class Asymp : public Generator
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{
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public:
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//! Default constructor.
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Asymp( void );
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//! Class destructor.
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~Asymp( void );
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//! Set target = 1.
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void keyOn( void );
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//! Set target = 0.
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void keyOff( void );
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//! Set the asymptotic rate via the time factor \e tau (must be > 0).
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/*!
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The rate is computed as described above. The value of \e tau
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must be greater than zero. Values of \e tau close to zero produce
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fast approach rates, while values greater than 1.0 produce rather
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slow rates.
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*/
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void setTau( StkFloat tau );
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//! Set the asymptotic rate based on a time duration (must be > 0).
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void setTime( StkFloat time );
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//! Set the asymptotic rate such that the target value is perceptually reached (to within -60dB of the target) in \e t60 seconds.
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void setT60( StkFloat t60 );
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//! Set the target value.
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void setTarget( StkFloat target );
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//! Set current and target values to \e value.
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void setValue( StkFloat value );
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//! Return the current envelope \e state (0 = at target, 1 otherwise).
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int getState( void ) const { return state_; };
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//! Return the last computed output value.
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StkFloat lastOut( void ) const { return lastFrame_[0]; };
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//! Compute and return one output sample.
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StkFloat tick( void );
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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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void sampleRateChanged( StkFloat newRate, StkFloat oldRate );
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StkFloat value_;
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StkFloat target_;
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StkFloat factor_;
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StkFloat constant_;
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int state_;
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};
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inline StkFloat Asymp :: tick( void )
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{
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if ( state_ ) {
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value_ = factor_ * value_ + constant_;
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// Check threshold.
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if ( target_ > value_ ) {
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if ( target_ - value_ <= TARGET_THRESHOLD ) {
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value_ = target_;
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state_ = 0;
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}
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}
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else {
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if ( value_ - target_ <= TARGET_THRESHOLD ) {
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value_ = target_;
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state_ = 0;
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}
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}
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lastFrame_[0] = value_;
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}
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return value_;
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}
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inline StkFrames& Asymp :: tick( StkFrames& frames, unsigned int channel )
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{
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#if defined(_STK_DEBUG_)
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if ( channel >= frames.channels() ) {
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oStream_ << "Asymp::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 hop = frames.channels();
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for ( unsigned int i=0; i<frames.frames(); i++, samples += hop )
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*samples = Asymp::tick();
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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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