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148 lines
4.7 KiB
C++
148 lines
4.7 KiB
C++
#ifndef STK_BLITSAW_H
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#define STK_BLITSAW_H
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#include "Generator.h"
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#include <cmath>
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#include <limits>
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namespace stk {
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/***************************************************/
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/*! \class BlitSaw
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\brief STK band-limited sawtooth wave class.
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This class generates a band-limited sawtooth waveform using a
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closed-form algorithm reported by Stilson and Smith in "Alias-Free
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Digital Synthesis of Classic Analog Waveforms", 1996. The user
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can specify both the fundamental frequency of the sawtooth and the
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number of harmonics contained in the resulting signal.
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If nHarmonics is 0, then the signal will contain all harmonics up
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to half the sample rate. Note, however, that this setting may
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produce aliasing in the signal when the frequency is changing (no
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automatic modification of the number of harmonics is performed by
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the setFrequency() function).
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Based on initial code of Robin Davies, 2005.
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Modified algorithm code by Gary Scavone, 2005.
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*/
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/***************************************************/
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class BlitSaw: public Generator
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{
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public:
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//! Class constructor.
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BlitSaw( StkFloat frequency = 220.0 );
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//! Class destructor.
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~BlitSaw();
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//! Resets the oscillator state and phase to 0.
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void reset();
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//! Set the sawtooth oscillator rate in terms of a frequency in Hz.
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void setFrequency( StkFloat frequency );
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//! Set the number of harmonics generated in the signal.
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/*!
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This function sets the number of harmonics contained in the
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resulting signal. It is equivalent to (2 * M) + 1 in the BLIT
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algorithm. The default value of 0 sets the algorithm for maximum
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harmonic content (harmonics up to half the sample rate). This
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parameter is not checked against the current sample rate and
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fundamental frequency. Thus, aliasing can result if one or more
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harmonics for a given fundamental frequency exceeds fs / 2. This
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behavior was chosen over the potentially more problematic solution
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of automatically modifying the M parameter, which can produce
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audible clicks in the signal.
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*/
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void setHarmonics( unsigned int nHarmonics = 0 );
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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 updateHarmonics( void );
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unsigned int nHarmonics_;
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unsigned int m_;
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StkFloat rate_;
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StkFloat phase_;
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StkFloat p_;
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StkFloat C2_;
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StkFloat a_;
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StkFloat state_;
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};
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inline StkFloat BlitSaw :: tick( void )
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{
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// The code below implements the BLIT algorithm of Stilson and
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// Smith, followed by a summation and filtering operation to produce
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// a sawtooth waveform. After experimenting with various approaches
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// to calculate the average value of the BLIT over one period, I
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// found that an estimate of C2_ = 1.0 / period (in samples) worked
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// most consistently. A "leaky integrator" is then applied to the
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// difference of the BLIT output and C2_. (GPS - 1 October 2005)
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// A fully optimized version of this code would replace the two sin
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// calls with a pair of fast sin oscillators, for which stable fast
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// two-multiply algorithms are well known. In the spirit of STK,
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// which favors clarity over performance, the optimization has
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// not been made here.
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// Avoid a divide by zero, or use of a denormalized divisor
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// at the sinc peak, which has a limiting value of m_ / p_.
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StkFloat tmp, denominator = sin( phase_ );
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if ( fabs(denominator) <= std::numeric_limits<StkFloat>::epsilon() )
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tmp = a_;
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else {
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tmp = sin( m_ * phase_ );
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tmp /= p_ * denominator;
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}
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tmp += state_ - C2_;
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state_ = tmp * 0.995;
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phase_ += rate_;
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if ( phase_ >= PI ) phase_ -= PI;
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lastFrame_[0] = tmp;
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return lastFrame_[0];
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}
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inline StkFrames& BlitSaw :: 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_ << "BlitSaw::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 = BlitSaw::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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