298 lines
11 KiB
C++
298 lines
11 KiB
C++
// DubSiren firmware for Sitka Instruments WS-1.0
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// by Oleksiy Hrachov
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//
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// Although the code designed to work on Sitka Instruments WS-1.0 synth, it should
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// be pretty easy to adapt to run on other arduino/mozzi-based setups
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//
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// This code is licenced under GPL v3 or later
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//ToDo:
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//Transform Flamingo into DubSiren :)
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//✅ Square oscilator
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//✅ Square/Sine pitch LFO on switch
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//✅ Filter
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//⬜ Delay?
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#include <Mozzi.h>
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#include <MIDI.h>
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#include <Oscil.h>
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#include <MetaOscil.h>
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#include <tables/sin2048_int8.h>
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#include <tables/square_no_alias_2048_int8.h>
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#include <StateVariable.h>
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#include <ADSR.h>
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#include <mozzi_midi.h>
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#include <IntMap.h>
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#include <OverSample.h>
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#include <FixMath.h>
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#include <EEPROM.h>
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#include "config.h"
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//Band limited oscilator tables for aliasing-free Meta Oscilator
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#include <tables/BandLimited_SQUARE/512/square_max_90_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_101_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_122_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_138_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_154_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_174_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_210_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_264_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_327_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_431_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_546_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_744_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_910_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_1170_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_1638_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_2730_at_16384_512_int8.h>
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#include <tables/BandLimited_SQUARE/512/square_max_8192_at_16384_512_int8.h>
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Oscil <SQUARE_MAX_90_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq90(SQUARE_MAX_90_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_101_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq101(SQUARE_MAX_101_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_122_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq122(SQUARE_MAX_122_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_138_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq138(SQUARE_MAX_138_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_154_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq154(SQUARE_MAX_154_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_174_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq174(SQUARE_MAX_174_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_210_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq210(SQUARE_MAX_210_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_264_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq264(SQUARE_MAX_264_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_327_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq327(SQUARE_MAX_327_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_431_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq431(SQUARE_MAX_431_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_546_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq546(SQUARE_MAX_546_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_744_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq744(SQUARE_MAX_744_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_910_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq910(SQUARE_MAX_910_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_1170_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq1170(SQUARE_MAX_1170_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_1638_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq1638(SQUARE_MAX_1638_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_2730_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq2730(SQUARE_MAX_2730_AT_16384_512_DATA);
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Oscil <SQUARE_MAX_8192_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE> aSq8192(SQUARE_MAX_8192_AT_16384_512_DATA);
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MetaOscil<SQUARE_MAX_90_AT_16384_512_NUM_CELLS, MOZZI_AUDIO_RATE, 16> aSquare {&aSq90, &aSq101, &aSq122, &aSq138, &aSq154, &aSq174, &aSq210, &aSq264, &aSq327, &aSq431, &aSq546, &aSq744, &aSq1170, &aSq1638, &aSq2730, &aSq8192};
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IntMap kMapNote( 0, 4095, 24 * pitchSubSteps, 84 * pitchSubSteps );
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IntMap kMapLFOSpeed( 0, 1023, 500, 20000 );
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IntMap kMapFreqMod( 0, 1023, 0, 1023 );
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IntMap kMapResonance( 0, 1023, 200, 1 );
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IntMap kMapCutoff( 0, 1023, 60, 3600 );
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IntMap kMapAttack( 0, 1023, 0, 80 );
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IntMap kMapDecayRelease( 0, 1023, 8, 160 );
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IntMap kMapSustain( 0, 1023, 0, 255 );
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//Oscil<SQUARE_ANALOGUE512_NUM_CELLS, MOZZI_AUDIO_RATE> aSquare(SQUARE_ANALOGUE512_DATA);
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Oscil<SQUARE_NO_ALIAS_2048_NUM_CELLS, MOZZI_CONTROL_RATE> kSquareLFO(SQUARE_NO_ALIAS_2048_DATA);
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Oscil<SIN2048_NUM_CELLS, MOZZI_CONTROL_RATE> kSineLFO(SIN2048_DATA);
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ADSR <MOZZI_CONTROL_RATE, MOZZI_CONTROL_RATE> envelope;
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StateVariable <LOWPASS> lpf;
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OverSample <unsigned int, 2> kOverSamplePitch;
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//Global variables
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byte gain;
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bool MIDINotePlaying;
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bool gateIsHigh = false;
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float noteFreq;
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byte MIDIChannel;
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byte memCode = "a";
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void MIDINoteOn(byte channel, byte note, byte velocity) {
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noteFreq = mtof((int) note);
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envelope.noteOn();
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MIDINotePlaying = true;
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digitalWrite(LED, LOW);
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}
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void MIDINoteOff(byte channel, byte note, byte velocity) {
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envelope.noteOff();
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digitalWrite(LED, HIGH);
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}
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long softClip(long input) {
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int threshold = 2048;
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if (input < -threshold) {
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return -threshold + (input + threshold) / 4;
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} else if (input > threshold) {
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return threshold + (input - threshold) / 4;
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} else {
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return input;
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}
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}
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void setup(){
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pinMode(LED, OUTPUT);
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pinMode(GateIn, INPUT_PULLUP);
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pinMode(EnvSwitch, INPUT_PULLUP);
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pinMode(DroneSwitch, INPUT_PULLUP);
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//MIDI Channel setup
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if(!digitalRead(GateIn)) { //&& !digitalRead(DroneSwitch) && !digitalRead(EnvSwitch)) { //MIDI setup mode, first knob you rotate = MIDI channel
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int knob1Orig = analogRead(Knob1);
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int knob2Orig = analogRead(Knob2);
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int knob3Orig = analogRead(Knob3);
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int knob4Orig = analogRead(Knob4);
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int knobAOrig = analogRead(KnobA);
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int knobDROrig = analogRead(KnobDR);
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int knobSOrig = analogRead(KnobS);
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int threshhold = 50; //To reduce noise from the input, needs testing and fine-tuning
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while(true) {
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if(abs(analogRead(Knob1) - knob1Orig) > threshhold) {
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MIDIChannel = 1;
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break;
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} else if (abs(analogRead(Knob2) - knob2Orig) > threshhold) {
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MIDIChannel = 2;
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break;
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} else if (abs(analogRead(Knob3) - knob3Orig) > threshhold) {
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MIDIChannel = 3;
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break;
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} else if (abs(analogRead(Knob4) - knob4Orig) > threshhold) {
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MIDIChannel = 4;
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break;
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} else if (abs(analogRead(KnobA) - knobAOrig) > threshhold) {
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MIDIChannel = 5;
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break;
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} else if (abs(analogRead(KnobDR) - knobDROrig) > threshhold) {
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MIDIChannel = 6;
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break;
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} else if (abs(analogRead(KnobS) - knobSOrig) > threshhold) {
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MIDIChannel = 7;
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break;
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}
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digitalWrite(LED, HIGH); //slow blinking to indicate the setup mode
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delay(500);
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digitalWrite(LED, LOW);
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delay(500);
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}
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EEPROM.write(0, MIDIChannel);
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EEPROM.write(1023, memCode);
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digitalWrite(LED, LOW);
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delay(150);
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for(int i = 0; i < MIDIChannel; i ++) { //fast blink to indicate saved MIDI channel
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digitalWrite(LED, HIGH);
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delay(150);
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digitalWrite(LED, LOW);
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delay(150);
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}
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delay(500);
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} else if (EEPROM.read(1023) == memCode) {
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MIDIChannel = EEPROM.read(0);
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} else { //Save default MIDI Channel to EEPROM if it wasn't set
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MIDIChannel = 1; //channel 1 by default
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EEPROM.write(0, MIDIChannel);
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EEPROM.write(1023, memCode);
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}
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disconnectDigitalIn(Knob1);
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disconnectDigitalIn(Knob2);
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disconnectDigitalIn(Knob3);
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disconnectDigitalIn(Knob4);
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disconnectDigitalIn(KnobA);
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disconnectDigitalIn(KnobDR);
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disconnectDigitalIn(KnobS);
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disconnectDigitalIn(CVIn);
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MIDI.setHandleNoteOn(MIDINoteOn);
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MIDI.setHandleNoteOff(MIDINoteOff);
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MIDI.setHandleClock(nullptr);
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MIDI.setHandleStart(nullptr);
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MIDI.setHandleStop(nullptr);
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MIDI.setHandleContinue(nullptr);
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MIDI.setHandleControlChange(nullptr);
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MIDI.begin(MIDIChannel);
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MIDI.turnThruOff();
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aSquare.setCutoffFreqs(90, 101, 122, 138, 154, 174, 210, 264, 327, 431, 546, 744, 1170, 1638, 2730, 8192);
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startMozzi();
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envelope.setAttackLevel(255);
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digitalWrite(LED, HIGH);
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}
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void updateControl(){
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//Get Control Values
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int CVInVal = mozziAnalogRead(CVIn);
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int knob1Val = mozziAnalogRead(Knob1);
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int knob2Val = mozziAnalogRead(Knob2);
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int knob3Val = mozziAnalogRead(Knob3);
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int knob4Val = mozziAnalogRead(Knob4);
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int knobAVal = mozziAnalogRead(KnobA);
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int knobDRVal = mozziAnalogRead(KnobDR);
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int knobSVal = mozziAnalogRead(KnobS);
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bool droneSwitchVal = digitalRead(DroneSwitch);
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bool envSwitchVal = digitalRead(EnvSwitch);
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bool gateInVal = !digitalRead(GateIn);
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//Remap the values and assign to parameter
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float LFOSpeed = kMapLFOSpeed(knob1Val) / 100;
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float expLFOSpeed = (float) LFOSpeed * LFOSpeed / 800000;
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float freqMod = (float) kMapFreqMod(knob2Val) / 1023;
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float modSpeed = LFOSpeed;
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int resonance = kMapResonance(knob3Val);
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int cutoff = kMapCutoff(knob4Val);
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//Set pitch and play notes on trigger
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if (!MIDINotePlaying) {
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int oversampledCVInVal = kOverSamplePitch.next(CVInVal);
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noteFreq = mtof((float) kMapNote(oversampledCVInVal) / pitchSubSteps);
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//noteFreq = mtof((float) kMapNote(CVInVal << 2) / pitchSubSteps);
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digitalWrite(LED, !gateInVal);
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if (gateInVal && !gateIsHigh) {
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gateIsHigh = true;
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envelope.noteOn();
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} else if (!gateInVal && gateIsHigh) {
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gateIsHigh = false;
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envelope.noteOff();
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}
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} else if (MIDINotePlaying && !envelope.playing()) {
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MIDINotePlaying = false;
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}
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//Update Filter settings
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lpf.setResonance(resonance);
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lpf.setCentreFreq(cutoff);
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//Update Envelope Settings
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int attackTime = kMapAttack(knobAVal);
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int decayReleaseTime = kMapDecayRelease(knobDRVal);
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int sustainLevel = kMapSustain(knobSVal);
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envelope.setDecayLevel(sustainLevel);
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envelope.setTimes(attackTime, decayReleaseTime, 30000, decayReleaseTime); //30000 is so the note will sustain 30 seconds unless a noteOff comes
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//LFO stuff
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//Set oscillator frequencies
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kSquareLFO.setFreq(modSpeed);
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kSineLFO.setFreq(modSpeed);
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int LFOValue;
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if(envSwitchVal) {
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LFOValue = kSquareLFO.next()-127; //-109 to bring the rangt to ~ 0-192
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} else {
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LFOValue = kSineLFO.next()-127;
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}
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//Set Oscilator Frequency
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float oscFreq = noteFreq - noteFreq * LFOValue * freqMod * 3 / 256;
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//UFix<16,16> oscFreq =
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aSquare.setFreq(oscFreq);
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envelope.update();
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int env = envelope.next();
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if(!droneSwitchVal) {
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gain = env;
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} else {
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gain = 255;
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}
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MIDI.read();
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}
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AudioOutput updateAudio(){
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long signal = aSquare.next();
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signal = lpf.next(signal); //filter
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signal = (signal * gain); //envelope
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//signal = softClip((signal * (127 + driveAmount)) >> 8); //overdrive
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return MonoOutput::fromNBit(17, signal).clip();
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}
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void loop(){
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audioHook();
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} |