Loopp/src/looper.cxx

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#include "looper.hxx"
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#include "config.hxx"
#include "jack.hxx"
#include "audiobuffer.hxx"
#include "eventhandler.hxx"
#include "controllerupdater.hxx"
extern Jack* jack;
Looper::Looper(int t) :
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AudioProcessor(),
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TimeObserver(),
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track(t),
uiUpdateConstant(44100/30.f),
uiUpdateCounter(44100/30.f)
{
// pre-zero the internal sample
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tmpRecordBuffer = (float*)malloc( sizeof(float) * MAX_BUFFER_SIZE );
memset( tmpRecordBuffer, 0, sizeof(float) * MAX_BUFFER_SIZE );
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for(int i = 0; i < 10; i++ )
{
clips[i] = LooperClip();
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}
// init faust pitch shift variables
fSamplingFreq = 44100;
IOTA = 0;
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tmpBuffer.resize(MAX_BUFFER_SIZE);
for (int i=0; i<65536; i++)
fVec0[i] = 0;
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for (int i=0; i<2; i++)
fRec0[i] = 0;
semitoneShift = 0.0f;
windowSize = 1000;
crossfadeSize = 1000;
}
void Looper::setRecord(int scene, bool r)
{
clips[scene].recording(r);
}
void Looper::play(int scene, bool r)
{
for(int i = 0; i < NSCENES; i++)
{
clips[i].playing(false);
}
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if ( r )
{
clips[scene].playing(true);
}
else
{
jack->getControllerUpdater()->setTrackSceneProgress(track, scene, 0.f );
}
}
LooperClip* Looper::getClip(int scene)
{
return &clips[scene];
}
void Looper::midi(unsigned char* data)
{
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/*
if ( data[0] - 144 == track )
{
switch ( data[1] )
{
case 48: setState( STATE_RECORD_QUEUED ); break;
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case 53: case 54: case 55: case 56: case 57:
setState( STATE_PLAY_QUEUED );
setScene( data[1] - 53 );
break;
case 52: setState( STATE_STOP_QUEUED ); break;
}
}
else if ( data[0] - 128 == track )
{
switch ( data[1] )
{
case 48: setState( STATE_STOP_QUEUED );
}
}
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else if ( data[0] - 176 == track )
{
switch ( data[1] )
{
//case 7: gain = int(data[2])/127.f; break;
case 7:{
printf("volue\n");
// volume from APC
EventTrackVol e( track, data[2] / 127.f );
writeToGuiRingbuffer( &e ); }
break;
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}
}
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*/
}
void Looper::queuePlayScene( int sc )
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{
//queuedScene = sc;
//jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_PLAY_QUEUED);
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}
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//void Looper::setState( State s) {
/*
// quantize recording to next bar event
if ( state == STATE_RECORDING )
{
stopRecordOnBar = true;
}
state = s;
updateControllers();
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} */
void Looper::updateControllers()
{
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/*
if (state == STATE_RECORD_QUEUED )
{
numBeats = 0;
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jack->getControllerUpdater()->recordArm(track, true);
jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_RECORD_QUEUED);
}
else if (state == STATE_RECORDING )
{
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jack->getControllerUpdater()->recordArm(track, true);
jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_RECORDING);
}
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else
{
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jack->getControllerUpdater()->recordArm(track, false);
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}
if (state == STATE_PLAY_QUEUED )
{
jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_PLAY_QUEUED);
}
if ( state == STATE_PLAYING )
{
jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_PLAYING);
}
if (state == STATE_STOP_QUEUED )
{
jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_STOP_QUEUED);
}
else if ( state == STATE_STOPPED )
{
jack->getControllerUpdater()->clipSelect(track, scene, Controller::CLIP_MODE_LOADED);
EventLooperProgress e(track, 0 );
writeToGuiRingbuffer( &e );
}
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*/
}
void Looper::setRequestedBuffer(int s, AudioBuffer* ab)
{
clips[s].setRequestedBuffer( ab );
}
void Looper::setSample(int scene, AudioBuffer* ab)
{
clips[scene].load( ab );
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char buffer [50];
sprintf (buffer, "Looper setSample() writing to scene %i",scene);
EventGuiPrint e( buffer );
writeToGuiRingbuffer( &e );
}
void Looper::process(int nframes, Buffers* buffers)
{
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float* out = buffers->audio[Buffers::TRACK_0 + track];
// process each clip individually: this allows for playback of one clip,
// while another clip records.
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for ( int clip = 0; clip < NSCENES; clip++ )
{
// handle state of clip, and do what needs doing:
// record into buffer, play from buffer, etc
if ( clips[clip].recording() )
{
if ( clips[clip].recordSpaceAvailable() < LOOPER_SAMPLES_BEFORE_REQUEST &&
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!clips[clip].newBufferInTransit() )
{
EventLooperClipRequestBuffer e( track, clip, clips[clip].audioBufferSize() + 44100 * 4);
writeToGuiRingbuffer( &e );
clips[clip].newBufferInTransit(true);
}
// copy data from input buffer to recording buffer
float* input = buffers->audio[Buffers::MASTER_INPUT];
clips[clip].record( nframes, input, 0 );
}
else if ( clips[clip].playing() )
{
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//printf("Looper %i playing()\n", track );
// copy data into tmpBuffer, then pitch-stretch into track buffer
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for(int i = 0; i < nframes; i++ )
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{
out[i] = clips[clip].getSample();
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}
if ( uiUpdateCounter > uiUpdateConstant )
{
jack->getControllerUpdater()->setTrackSceneProgress(track, clip, clips[clip].getProgress() );
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uiUpdateCounter = 0;
}
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uiUpdateCounter += nframes;
}
}
/*
float playbackSpeed = endPoint / ( float(numBeats) * fpb );
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semitoneShift = -( 12 * log ( playbackSpeed ) / log (2) );
if ( state == STATE_PLAYING ||
state == STATE_STOP_QUEUED )
{
for(int i = 0; i < nframes; i++)
{
if ( playPoint < endPoint )
{
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tmpBuffer[i] = sample[int(playPoint)] * gain;
}
playPoint += 1.0; //playbackSpeed;
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//out++ = sin( playPoint * 440 * 6.24 );
*trk = tmpBuffer[i];
*out++ = *trk++;
}
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// now pitch-shift the audio in the buffer
//pitchShift( nframes, &tmpBuffer[0], out);
if ( uiUpdateCounter > uiUpdateConstant )
{
float prog = (float(playPoint) / (fpb*numBeats));
EventLooperProgress e(track, prog );
writeToGuiRingbuffer( &e );
}
uiUpdateCounter += nframes;
}
*/
}
void Looper::pitchShift(int count, float* input, float* output)
{
float fSlow0 = windowSize;
float fSlow1 = ((1 + fSlow0) - powf(2,(0.08333333333333333f * semitoneShift)));
float fSlow2 = (1.0f / crossfadeSize);
float fSlow3 = (fSlow0 - 1);
float* input0 = &input[0];
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//float* output0 = &output[0];
for (int i=0; i<count; i++)
{
float fTemp0 = (float)input0[i];
fVec0[IOTA&65535] = fTemp0;
fRec0[0] = fmodf((fRec0[1] + fSlow1),fSlow0);
int iTemp1 = int(fRec0[0]);
int iTemp2 = (1 + iTemp1);
float fTemp3 = min((fSlow2 * fRec0[0]), 1.f );
float fTemp4 = (fSlow0 + fRec0[0]);
int iTemp5 = int(fTemp4);
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*output++ += (float)(((1 - fTemp3) * (((fTemp4 - iTemp5) *
fVec0[(IOTA-int((int((1 + iTemp5)) & 65535)))&65535]) + ((0 - ((
fRec0[0] + fSlow3) - iTemp5)) * fVec0[(IOTA-int((iTemp5 & 65535)))
&65535]))) + (fTemp3 * (((fRec0[0] - iTemp1) * fVec0[(IOTA-int((int(
iTemp2) & 65535)))&65535]) + ((iTemp2 - fRec0[0]) * fVec0[(IOTA-int((
iTemp1 & 65535)))&65535]))));
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fRec0[1] = fRec0[0];
IOTA = IOTA+1;
}
}