/************************** BEGIN poly-dsp.h **************************/
/************************************************************************
 FAUST Architecture File
 Copyright (C) 2003-2017 GRAME, Centre National de Creation Musicale
 ---------------------------------------------------------------------
 This Architecture section is free software; you can redistribute it
 and/or modify it under the terms of the GNU General Public License
 as published by the Free Software Foundation; either version 3 of
 the License, or (at your option) any later version.
 
 This program is distributed in the hope that it will be useful,
 but WITHOUT ANY WARRANTY; without even the implied warranty of
 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 GNU General Public License for more details.
 
 You should have received a copy of the GNU General Public License
 along with this program; If not, see <http://www.gnu.org/licenses/>.
 
 EXCEPTION : As a special exception, you may create a larger work
 that contains this FAUST architecture section and distribute
 that work under terms of your choice, so long as this FAUST
 architecture section is not modified.
 ************************************************************************/

#ifndef __poly_dsp__
#define __poly_dsp__

#include <stdio.h>
#include <string>
#include <cmath>
#include <algorithm>
#include <functional>
#include <ostream>
#include <sstream>
#include <vector>
#include <limits.h>
#include <float.h>
#include <assert.h>

#include "faust/midi/midi.h"
#include "faust/dsp/dsp-combiner.h"
#include "faust/dsp/dsp-adapter.h"
#include "faust/dsp/proxy-dsp.h"

#include "faust/gui/DecoratorUI.h"
#include "faust/gui/GUI.h"
#include "faust/gui/MapUI.h"
#include "faust/gui/JSONControl.h"

#define kActiveVoice    0
#define kFreeVoice     -1
#define kReleaseVoice  -2
#define kLegatoVoice   -3
#define kNoVoice       -4

#define VOICE_STOP_LEVEL  0.0005    // -70 db
#define MIX_BUFFER_SIZE   4096

/**
 * Allows to control zones in a grouped manner.
 */
class GroupUI : public GUI, public PathBuilder {

    private:

        std::map<std::string, uiGroupItem*> fLabelZoneMap;

        void insertMap(std::string label, FAUSTFLOAT* zone)
        {
            if (!MapUI::endsWith(label, "/gate")
                && !MapUI::endsWith(label, "/freq")
                && !MapUI::endsWith(label, "/key")
                && !MapUI::endsWith(label, "/gain")
                && !MapUI::endsWith(label, "/vel")
                && !MapUI::endsWith(label, "/velocity")) {

                // Groups all controllers except 'freq/key', 'gate', and 'gain/vel|velocity'
                if (fLabelZoneMap.find(label) != fLabelZoneMap.end()) {
                    fLabelZoneMap[label]->addZone(zone);
                } else {
                    fLabelZoneMap[label] = new uiGroupItem(this, zone);
                }
            }
        }

        uiCallbackItem* fPanic;

    public:

        GroupUI(FAUSTFLOAT* zone, uiCallback cb, void* arg)
        {
            fPanic = new uiCallbackItem(this, zone, cb, arg);
        }
    
        virtual ~GroupUI()
        {
            // 'fPanic' is kept and deleted in GUI, so do not delete here
        }

        // -- widget's layouts
        void openTabBox(const char* label)
        {
            pushLabel(label);
        }
        void openHorizontalBox(const char* label)
        {
            pushLabel(label);
        }
        void openVerticalBox(const char* label)
        {
            pushLabel(label);
        }
        void closeBox()
        {
            popLabel();
        }

        // -- active widgets
        void addButton(const char* label, FAUSTFLOAT* zone)
        {
            insertMap(buildPath(label), zone);
        }
        void addCheckButton(const char* label, FAUSTFLOAT* zone)
        {
            insertMap(buildPath(label), zone);
        }
        void addVerticalSlider(const char* label, FAUSTFLOAT* zone, FAUSTFLOAT init, FAUSTFLOAT fmin, FAUSTFLOAT fmax, FAUSTFLOAT step)
        {
            insertMap(buildPath(label), zone);
        }
        void addHorizontalSlider(const char* label, FAUSTFLOAT* zone, FAUSTFLOAT init, FAUSTFLOAT fmin, FAUSTFLOAT fmax, FAUSTFLOAT step)
        {
            insertMap(buildPath(label), zone);
        }
        void addNumEntry(const char* label, FAUSTFLOAT* zone, FAUSTFLOAT init, FAUSTFLOAT fmin, FAUSTFLOAT fmax, FAUSTFLOAT step)
        {
            insertMap(buildPath(label), zone);
        }

        // -- passive widgets
        void addHorizontalBargraph(const char* label, FAUSTFLOAT* zone, FAUSTFLOAT fmin, FAUSTFLOAT fmax)
        {
            insertMap(buildPath(label), zone);
        }
        void addVerticalBargraph(const char* label, FAUSTFLOAT* zone, FAUSTFLOAT fmin, FAUSTFLOAT fmax)
        {
            insertMap(buildPath(label), zone);
        }

};

/**
 * One voice of polyphony.
 */
struct dsp_voice : public MapUI, public decorator_dsp {
    
    typedef std::function<double(int)> TransformFunction;
  
    static double midiToFreq(double note)
    {
        return 440.0 * std::pow(2.0, (note-69.0)/12.0);
    }
    
    int fCurNote;                       // Playing note pitch
    int fNextNote;                      // In kLegatoVoice state, next note to play
    int fNextVel;                       // In kLegatoVoice state, next velocity to play
    int fDate;                          // KeyOn date
    int fRelease;                       // Current number of samples used in release mode to detect end of note
    FAUSTFLOAT fLevel;                  // Last audio block level
    std::vector<std::string> fGatePath; // Paths of 'gate' control
    std::vector<std::string> fGainPath; // Paths of 'gain/vel|velocity' control
    std::vector<std::string> fFreqPath; // Paths of 'freq/key' control
    TransformFunction        fKeyFun;   // MIDI key to freq conversion function
    TransformFunction        fVelFun;   // MIDI velocity to gain conversion function
    
    FAUSTFLOAT** fInputsSlice;
    FAUSTFLOAT** fOutputsSlice;
 
    dsp_voice(dsp* dsp):decorator_dsp(dsp)
    {
        // Default versions
        fVelFun = [](int velocity) { return double(velocity)/127.0; };
        fKeyFun = [](int pitch) { return midiToFreq(pitch); };
        dsp->buildUserInterface(this);
        fCurNote = kFreeVoice;
        fNextNote = fNextVel = -1;
        fLevel = FAUSTFLOAT(0);
        fDate = fRelease = 0;
        extractPaths(fGatePath, fFreqPath, fGainPath);
    }
    virtual ~dsp_voice()
    {}
    
    void computeSlice(int offset, int slice, FAUSTFLOAT** inputs, FAUSTFLOAT** outputs)
    {
        FAUSTFLOAT** inputsSlice = static_cast<FAUSTFLOAT**>(alloca(sizeof(FAUSTFLOAT*) * getNumInputs()));
        for (int chan = 0; chan < getNumInputs(); chan++) {
            inputsSlice[chan] = &(inputs[chan][offset]);
        }
        FAUSTFLOAT** outputsSlice = static_cast<FAUSTFLOAT**>(alloca(sizeof(FAUSTFLOAT*) * getNumOutputs()));
        for (int chan = 0; chan < getNumOutputs(); chan++) {
            outputsSlice[chan] = &(outputs[chan][offset]);
        }
        compute(slice, inputsSlice, outputsSlice);
    }
    
    void computeLegato(int count, FAUSTFLOAT** inputs, FAUSTFLOAT** outputs)
    {
        int slice = count/2;
        
        // Reset envelops
        for (size_t i = 0; i < fGatePath.size(); i++) {
            setParamValue(fGatePath[i], FAUSTFLOAT(0));
        }
        
        // Compute current voice on half buffer
        computeSlice(0, slice, inputs, outputs);
         
        // Start next keyOn
        keyOn(fNextNote, fNextVel);
        
        // Compute on second half buffer
        computeSlice(slice, slice, inputs, outputs);
    }

    void extractPaths(std::vector<std::string>& gate, std::vector<std::string>& freq, std::vector<std::string>& gain)
    {
        // Keep gain/vel|velocity, freq/key and gate labels
        for (const auto& it : getMap()) {
            std::string path = it.first;
            if (endsWith(path, "/gate")) {
                gate.push_back(path);
            } else if (endsWith(path, "/freq")) {
                fKeyFun = [](int pitch) { return midiToFreq(pitch); };
                freq.push_back(path);
            } else if (endsWith(path, "/key")) {
                fKeyFun = [](int pitch) { return pitch; };
                freq.push_back(path);
            } else if (endsWith(path, "/gain")) {
                fVelFun = [](int velocity) { return double(velocity)/127.0; };
                gain.push_back(path);
            } else if (endsWith(path, "/vel") || endsWith(path, "/velocity")) {
                fVelFun = [](int velocity) { return double(velocity); };
                gain.push_back(path);
            }
        }
    }
 
    void instanceClear()
    {
        decorator_dsp::instanceClear();
        fCurNote = kFreeVoice;
        fNextNote = fNextVel = -1;
        fLevel = FAUSTFLOAT(0);
        fDate = fRelease = 0;
    }
    
    // Keep 'pitch' and 'velocity' to fadeOut the current voice and start next one in the next buffer
    void keyOn(int pitch, int velocity, bool legato = false)
    {
        if (legato) {
            fNextNote = pitch;
            fNextVel = velocity;
        } else {
            keyOn(pitch, fVelFun(velocity));
        }
    }

    // Normalized MIDI velocity [0..1]
    void keyOn(int pitch, double velocity)
    {
        for (size_t i = 0; i < fFreqPath.size(); i++) {
            setParamValue(fFreqPath[i], fKeyFun(pitch));
        }
        for (size_t i = 0; i < fGatePath.size(); i++) {
            setParamValue(fGatePath[i], FAUSTFLOAT(1));
        }
        for (size_t i = 0; i < fGainPath.size(); i++) {
            setParamValue(fGainPath[i], velocity);
        }
        
        fCurNote = pitch;
    }

    void keyOff(bool hard = false)
    {
        // No use of velocity for now...
        for (size_t i = 0; i < fGatePath.size(); i++) {
            setParamValue(fGatePath[i], FAUSTFLOAT(0));
        }
        
        if (hard) {
            // Immediately stop voice
            fCurNote = kFreeVoice;
        } else {
            // Release voice
            fRelease = fDSP->getSampleRate()/2; // Half sec used in release mode to detect end of note
            fCurNote = kReleaseVoice;
        }
    }

};

/**
 * A group of voices.
 */
struct dsp_voice_group {

    GroupUI fGroups;

    std::vector<dsp_voice*> fVoiceTable; // Individual voices
    dsp* fVoiceGroup;                    // Voices group to be used for GUI grouped control

    FAUSTFLOAT fPanic;

    bool fVoiceControl;
    bool fGroupControl;

    dsp_voice_group(uiCallback cb, void* arg, bool control, bool group)
        :fGroups(&fPanic, cb, arg),
        fVoiceGroup(0), fPanic(FAUSTFLOAT(0)),
        fVoiceControl(control), fGroupControl(group)
    {}

    virtual ~dsp_voice_group()
    {
        for (size_t i = 0; i < fVoiceTable.size(); i++) {
            delete fVoiceTable[i];
        }
        delete fVoiceGroup;
    }

    void addVoice(dsp_voice* voice)
    {
        fVoiceTable.push_back(voice);
    }

    void clearVoices()
    {
        fVoiceTable.clear();
    }

    void init()
    {
        // Groups all uiItem for a given path
        fVoiceGroup = new proxy_dsp(fVoiceTable[0]);
        fVoiceGroup->buildUserInterface(&fGroups);
        for (size_t i = 0; i < fVoiceTable.size(); i++) {
            fVoiceTable[i]->buildUserInterface(&fGroups);
        }
    }
    
    void instanceResetUserInterface()
    {
        for (size_t i = 0; i < fVoiceTable.size(); i++) {
            fVoiceTable[i]->instanceResetUserInterface();
        }
    }

    void buildUserInterface(UI* ui_interface)
    {
        if (fVoiceTable.size() > 1) {
            ui_interface->openTabBox("Polyphonic");

            // Grouped voices UI
            ui_interface->openVerticalBox("Voices");
            ui_interface->addButton("Panic", &fPanic);
            fVoiceGroup->buildUserInterface(ui_interface);
            ui_interface->closeBox();

            // If not grouped, also add individual voices UI
            if (!fGroupControl || dynamic_cast<SoundUIInterface*>(ui_interface)) {
                for (size_t i = 0; i < fVoiceTable.size(); i++) {
                    char buffer[32];
                    snprintf(buffer, 32, ((fVoiceTable.size() < 8) ? "Voice%ld" : "V%ld"), long(i+1));
                    ui_interface->openHorizontalBox(buffer);
                    fVoiceTable[i]->buildUserInterface(ui_interface);
                    ui_interface->closeBox();
                }
            }

            ui_interface->closeBox();
        } else {
            fVoiceTable[0]->buildUserInterface(ui_interface);
        }
    }

};

/**
 * Base class for MIDI controllable polyphonic DSP.
 */
#ifdef EMCC
#include "faust/gui/JSONUI.h"
#include "faust/gui/MidiUI.h"
#endif

class dsp_poly : public decorator_dsp, public midi, public JSONControl {

    protected:
    
    #ifdef EMCC
        MapUI fMapUI;
        std::string fJSON;
        midi_handler fMidiHandler;
        MidiUI fMIDIUI;
    #endif
    
    public:
    
    #ifdef EMCC
        dsp_poly(dsp* dsp):decorator_dsp(dsp), fMIDIUI(&fMidiHandler)
        {
            JSONUI jsonui(getNumInputs(), getNumOutputs());
            buildUserInterface(&jsonui);
            fJSON = jsonui.JSON(true);
            buildUserInterface(&fMapUI);
            buildUserInterface(&fMIDIUI);
        }
    #else
        dsp_poly(dsp* dsp):decorator_dsp(dsp)
        {}
    #endif
    
        virtual ~dsp_poly() {}
    
        // Reimplemented for EMCC
    #ifdef EMCC
        virtual int getNumInputs() { return decorator_dsp::getNumInputs(); }
        virtual int getNumOutputs() { return decorator_dsp::getNumOutputs(); }
        virtual void buildUserInterface(UI* ui_interface) { decorator_dsp::buildUserInterface(ui_interface); }
        virtual int getSampleRate() { return decorator_dsp::getSampleRate(); }
        virtual void init(int sample_rate) { decorator_dsp::init(sample_rate); }
        virtual void instanceInit(int sample_rate) { decorator_dsp::instanceInit(sample_rate); }
        virtual void instanceConstants(int sample_rate) { decorator_dsp::instanceConstants(sample_rate); }
        virtual void instanceResetUserInterface() { decorator_dsp::instanceResetUserInterface(); }
        virtual void instanceClear() { decorator_dsp::instanceClear(); }
        virtual dsp_poly* clone() { return new dsp_poly(fDSP->clone()); }
        virtual void metadata(Meta* m) { decorator_dsp::metadata(m); }
    
        // Additional API
        std::string getJSON()
        {
            return fJSON;
        }
    
        virtual void setParamValue(const std::string& path, FAUSTFLOAT value)
        {
            fMapUI.setParamValue(path, value);
            GUI::updateAllGuis();
        }
        
        virtual FAUSTFLOAT getParamValue(const std::string& path) { return fMapUI.getParamValue(path); }

        virtual void computeJS(int count, uintptr_t inputs, uintptr_t outputs)
        {
            decorator_dsp::compute(count, reinterpret_cast<FAUSTFLOAT**>(inputs),reinterpret_cast<FAUSTFLOAT**>(outputs));
        }
    #endif
    
        virtual MapUI* keyOn(int channel, int pitch, int velocity)
        {
            return midi::keyOn(channel, pitch, velocity);
        }
        virtual void keyOff(int channel, int pitch, int velocity)
        {
            midi::keyOff(channel, pitch, velocity);
        }
        virtual void keyPress(int channel, int pitch, int press)
        {
            midi::keyPress(channel, pitch, press);
        }
        virtual void chanPress(int channel, int press)
        {
            midi::chanPress(channel, press);
        }
        virtual void ctrlChange(int channel, int ctrl, int value)
        {
            midi::ctrlChange(channel, ctrl, value);
        }
        virtual void ctrlChange14bits(int channel, int ctrl, int value)
        {
            midi::ctrlChange14bits(channel, ctrl, value);
        }
        virtual void pitchWheel(int channel, int wheel)
        {
        #ifdef EMCC
            fMIDIUI.pitchWheel(0., channel, wheel);
            GUI::updateAllGuis();
        #else
            midi::pitchWheel(channel, wheel);
        #endif
        }
        virtual void progChange(int channel, int pgm)
        {
            midi::progChange(channel, pgm);
        }
    
};

/**
 * Polyphonic DSP: groups a set of DSP to be played together or triggered by MIDI.
 *
 * All voices are preallocated by cloning the single DSP voice given at creation time.
 * Dynamic voice allocation is done in 'getFreeVoice'
 */
class mydsp_poly : public dsp_voice_group, public dsp_poly {

    private:

        FAUSTFLOAT** fMixBuffer;
        FAUSTFLOAT** fOutBuffer;
        midi_interface* fMidiHandler; // The midi_interface the DSP is connected to
        int fDate;
    
        void fadeOut(int count, FAUSTFLOAT** outBuffer)
        {
            // FadeOut on half buffer
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                double factor = 1., step = 1./double(count);
                for (int frame = 0; frame < count; frame++) {
                    outBuffer[chan][frame] *= factor;
                    factor -= step;
                }
            }
        }
    
        FAUSTFLOAT mixCheckVoice(int count, FAUSTFLOAT** mixBuffer, FAUSTFLOAT** outBuffer)
        {
            FAUSTFLOAT level = 0;
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                FAUSTFLOAT* mixChannel = mixBuffer[chan];
                FAUSTFLOAT* outChannel = outBuffer[chan];
                for (int frame = 0; frame < count; frame++) {
                    level = std::max<FAUSTFLOAT>(level, (FAUSTFLOAT)fabs(mixChannel[frame]));
                    outChannel[frame] += mixChannel[frame];
                }
            }
            return level;
        }
    
        void mixVoice(int count, FAUSTFLOAT** mixBuffer, FAUSTFLOAT** outBuffer)
        {
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                FAUSTFLOAT* mixChannel = mixBuffer[chan];
                FAUSTFLOAT* outChannel = outBuffer[chan];
                for (int frame = 0; frame < count; frame++) {
                    outChannel[frame] += mixChannel[frame];
                }
            }
        }
    
        void copy(int count, FAUSTFLOAT** mixBuffer, FAUSTFLOAT** outBuffer)
        {
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                memcpy(outBuffer[chan], mixBuffer[chan], count * sizeof(FAUSTFLOAT));
            }
        }

        void clear(int count, FAUSTFLOAT** outBuffer)
        {
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                memset(outBuffer[chan], 0, count * sizeof(FAUSTFLOAT));
            }
        }
    
        int getPlayingVoice(int pitch)
        {
            int voice_playing = kNoVoice;
            int oldest_date_playing = INT_MAX;
            
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                if (fVoiceTable[i]->fCurNote == pitch) {
                    // Keeps oldest playing voice
                    if (fVoiceTable[i]->fDate < oldest_date_playing) {
                        oldest_date_playing = fVoiceTable[i]->fDate;
                        voice_playing = int(i);
                    }
                }
            }
            
            return voice_playing;
        }
    
        int allocVoice(int voice, int type)
        {
            fVoiceTable[voice]->fDate++;
            fVoiceTable[voice]->fCurNote = type;
            return voice;
        }
    
        // Always returns a voice
        int getFreeVoice()
        {
            // Looks for the first available voice
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                if (fVoiceTable[i]->fCurNote == kFreeVoice) {
                    return allocVoice(i, kActiveVoice);
                }
            }

            // Otherwise steal one
            int voice_release = kNoVoice;
            int voice_playing = kNoVoice;
            int oldest_date_release = INT_MAX;
            int oldest_date_playing = INT_MAX;

            // Scan all voices
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                if (fVoiceTable[i]->fCurNote == kReleaseVoice) {
                    // Keeps oldest release voice
                    if (fVoiceTable[i]->fDate < oldest_date_release) {
                        oldest_date_release = fVoiceTable[i]->fDate;
                        voice_release = int(i);
                    }
                } else {
                    // Otherwise keeps oldest playing voice
                    if (fVoiceTable[i]->fDate < oldest_date_playing) {
                        oldest_date_playing = fVoiceTable[i]->fDate;
                        voice_playing = int(i);
                    }
                }
            }
        
            // Then decide which one to steal
            if (oldest_date_release != INT_MAX) {
                fprintf(stderr, "Steal release voice : voice_date = %d cur_date = %d voice = %d \n",
                        fVoiceTable[voice_release]->fDate,
                        fDate,
                        voice_release);
                return allocVoice(voice_release, kLegatoVoice);
            } else if (oldest_date_playing != INT_MAX) {
                fprintf(stderr, "Steal playing voice : voice_date = %d cur_date = %d voice = %d \n",
                        fVoiceTable[voice_playing]->fDate,
                        fDate,
                        voice_release);
                return allocVoice(voice_playing, kLegatoVoice);
            } else {
                assert(false);
                return kNoVoice;
            }
        }

        static void panic(FAUSTFLOAT val, void* arg)
        {
            if (val == FAUSTFLOAT(1)) {
                static_cast<mydsp_poly*>(arg)->allNotesOff(true);
            }
        }

        bool checkPolyphony()
        {
            if (fVoiceTable.size() > 0) {
                return true;
            } else {
                fprintf(stderr, "DSP is not polyphonic...\n");
                return false;
            }
        }

    public:
    
        /**
         * Constructor.
         *
         * @param dsp - the dsp to be used for one voice. Beware: mydsp_poly will use and finally delete the pointer.
         * @param nvoices - number of polyphony voices, should be at least 1
         * @param control - whether voices will be dynamically allocated and controlled (typically by a MIDI controler).
         *                If false all voices are always running.
         * @param group - if true, voices are not individually accessible, a global "Voices" tab will automatically dispatch
         *                a given control on all voices, assuming GUI::updateAllGuis() is called.
         *                If false, all voices can be individually controlled.
         *
         */
        mydsp_poly(dsp* dsp,
                   int nvoices,
                   bool control = false,
                   bool group = true)
        : dsp_voice_group(panic, this, control, group), dsp_poly(dsp) // dsp parameter is deallocated by ~dsp_poly
        {
            fDate = 0;
            fMidiHandler = nullptr;

            // Create voices
            assert(nvoices > 0);
            for (int i = 0; i < nvoices; i++) {
                addVoice(new dsp_voice(dsp->clone()));
            }

            // Init audio output buffers
            fMixBuffer = new FAUSTFLOAT*[getNumOutputs()];
            fOutBuffer = new FAUSTFLOAT*[getNumOutputs()];
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                fMixBuffer[chan] = new FAUSTFLOAT[MIX_BUFFER_SIZE];
                fOutBuffer[chan] = new FAUSTFLOAT[MIX_BUFFER_SIZE];
            }

            dsp_voice_group::init();
        }

        virtual ~mydsp_poly()
        {
            // Remove from fMidiHandler
            if (fMidiHandler) fMidiHandler->removeMidiIn(this);
            for (int chan = 0; chan < getNumOutputs(); chan++) {
                delete[] fMixBuffer[chan];
                delete[] fOutBuffer[chan];
            }
            delete[] fMixBuffer;
            delete[] fOutBuffer;
            
        }

        // DSP API
        void buildUserInterface(UI* ui_interface)
        {
            // MidiUI ui_interface contains the midi_handler connected to the MIDI driver
            if (dynamic_cast<midi_interface*>(ui_interface)) {
                fMidiHandler = dynamic_cast<midi_interface*>(ui_interface);
                fMidiHandler->addMidiIn(this);
            }
            dsp_voice_group::buildUserInterface(ui_interface);
        }

        void init(int sample_rate)
        {
            decorator_dsp::init(sample_rate);
            fVoiceGroup->init(sample_rate);
            fPanic = FAUSTFLOAT(0);
            
            // Init voices
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                fVoiceTable[i]->init(sample_rate);
            }
        }
    
        void instanceInit(int samplingFreq)
        {
            instanceConstants(samplingFreq);
            instanceResetUserInterface();
            instanceClear();
        }

        void instanceConstants(int sample_rate)
        {
            decorator_dsp::instanceConstants(sample_rate);
            fVoiceGroup->instanceConstants(sample_rate);
            
            // Init voices
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                fVoiceTable[i]->instanceConstants(sample_rate);
            }
        }

        void instanceResetUserInterface()
        {
            decorator_dsp::instanceResetUserInterface();
            fVoiceGroup->instanceResetUserInterface();
            fPanic = FAUSTFLOAT(0);
            
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                fVoiceTable[i]->instanceResetUserInterface();
            }
        }

        void instanceClear()
        {
            decorator_dsp::instanceClear();
            fVoiceGroup->instanceClear();
            
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                fVoiceTable[i]->instanceClear();
            }
        }

        virtual mydsp_poly* clone()
        {
            return new mydsp_poly(fDSP->clone(), int(fVoiceTable.size()), fVoiceControl, fGroupControl);
        }

        void compute(int count, FAUSTFLOAT** inputs, FAUSTFLOAT** outputs)
        {
            assert(count <= MIX_BUFFER_SIZE);

            // First clear the intermediate fOutBuffer
            clear(count, fOutBuffer);

            if (fVoiceControl) {
                // Mix all playing voices
                for (size_t i = 0; i < fVoiceTable.size(); i++) {
                    dsp_voice* voice = fVoiceTable[i];
                    if (voice->fCurNote == kLegatoVoice) {
                        // Play from current note and next note
                        voice->computeLegato(count, inputs, fMixBuffer);
                        // FadeOut on first half buffer
                        fadeOut(count/2, fMixBuffer);
                        // Mix it in result
                        voice->fLevel = mixCheckVoice(count, fMixBuffer, fOutBuffer);
                    } else if (voice->fCurNote != kFreeVoice) {
                        // Compute current note
                        voice->compute(count, inputs, fMixBuffer);
                        // Mix it in result
                        voice->fLevel = mixCheckVoice(count, fMixBuffer, fOutBuffer);
                        // Check the level to possibly set the voice in kFreeVoice again
                        voice->fRelease -= count;
                        if ((voice->fCurNote == kReleaseVoice)
                            && (voice->fRelease < 0)
                            && (voice->fLevel < VOICE_STOP_LEVEL)) {
                            voice->fCurNote = kFreeVoice;
                        }
                    }
                }
            } else {
                // Mix all voices
                for (size_t i = 0; i < fVoiceTable.size(); i++) {
                    fVoiceTable[i]->compute(count, inputs, fMixBuffer);
                    mixVoice(count, fMixBuffer, fOutBuffer);
                }
            }
            
            // Finally copy intermediate buffer to outputs
            copy(count, fOutBuffer, outputs);
        }

        void compute(double date_usec, int count, FAUSTFLOAT** inputs, FAUSTFLOAT** outputs)
        {
            compute(count, inputs, outputs);
        }
    
        // Terminate all active voices, gently or immediately (depending of 'hard' value)
        void allNotesOff(bool hard = false)
        {
            for (size_t i = 0; i < fVoiceTable.size(); i++) {
                fVoiceTable[i]->keyOff(hard);
            }
        }

        // Additional polyphonic API
        MapUI* newVoice()
        {
            return fVoiceTable[getFreeVoice()];
        }

        void deleteVoice(MapUI* voice)
        {
            auto it = find(fVoiceTable.begin(), fVoiceTable.end(), reinterpret_cast<dsp_voice*>(voice));
            if (it != fVoiceTable.end()) {
                (*it)->keyOff();
            } else {
                fprintf(stderr, "Voice not found\n");
            }
        }

        // MIDI API
        MapUI* keyOn(int channel, int pitch, int velocity)
        {
            if (checkPolyphony()) {
                int voice = getFreeVoice();
                fVoiceTable[voice]->keyOn(pitch, velocity, fVoiceTable[voice]->fCurNote == kLegatoVoice);
                return fVoiceTable[voice];
            } else {
                return 0;
            }
        }

        void keyOff(int channel, int pitch, int velocity = 127)
        {
            if (checkPolyphony()) {
                int voice = getPlayingVoice(pitch);
                if (voice != kNoVoice) {
                    fVoiceTable[voice]->keyOff();
                } else {
                    fprintf(stderr, "Playing pitch = %d not found\n", pitch);
                }
            }
        }

        void ctrlChange(int channel, int ctrl, int value)
        {
            if (ctrl == ALL_NOTES_OFF || ctrl == ALL_SOUND_OFF) {
                allNotesOff();
            }
        }

};

/**
 * Polyphonic DSP with an integrated effect.
 */
class dsp_poly_effect : public dsp_poly {
    
    private:
    
        // fPolyDSP will respond to MIDI messages.
        dsp_poly* fPolyDSP;
        
    public:
        
        dsp_poly_effect(dsp_poly* voice, dsp* combined)
        :dsp_poly(combined), fPolyDSP(voice)
        {}
        
        virtual ~dsp_poly_effect()
        {
            // dsp_poly_effect is also a decorator_dsp, which will free fPolyDSP
        }
        
        // MIDI API
        MapUI* keyOn(int channel, int pitch, int velocity)
        {
            return fPolyDSP->keyOn(channel, pitch, velocity);
        }
        void keyOff(int channel, int pitch, int velocity)
        {
            fPolyDSP->keyOff(channel, pitch, velocity);
        }
        void keyPress(int channel, int pitch, int press)
        {
            fPolyDSP->keyPress(channel, pitch, press);
        }
        void chanPress(int channel, int press)
        {
            fPolyDSP->chanPress(channel, press);
        }
        void ctrlChange(int channel, int ctrl, int value)
        {
            fPolyDSP->ctrlChange(channel, ctrl, value);
        }
        void ctrlChange14bits(int channel, int ctrl, int value)
        {
            fPolyDSP->ctrlChange14bits(channel, ctrl, value);
        }
        void pitchWheel(int channel, int wheel)
        {
            fPolyDSP->pitchWheel(channel, wheel);
        }
        void progChange(int channel, int pgm)
        {
            fPolyDSP->progChange(channel, pgm);
        }
    
};

/**
 * Polyphonic DSP factory class. Helper code to support polyphonic DSP source with an integrated effect.
 */
struct dsp_poly_factory : public dsp_factory {
    
    dsp_factory* fProcessFactory;
    dsp_factory* fEffectFactory;
    
    dsp* adaptDSP(dsp* dsp, bool is_double)
    {
        return (is_double) ? new dsp_sample_adapter<double, float>(dsp) : dsp;
    }

    dsp_poly_factory(dsp_factory* process_factory = nullptr,
                     dsp_factory* effect_factory = nullptr):
    fProcessFactory(process_factory)
    ,fEffectFactory(effect_factory)
    {}

    virtual ~dsp_poly_factory()
    {}

    virtual std::string getName() { return fProcessFactory->getName(); }
    virtual std::string getSHAKey() { return fProcessFactory->getSHAKey(); }
    virtual std::string getDSPCode() { return fProcessFactory->getDSPCode(); }
    virtual std::string getCompileOptions() { return fProcessFactory->getCompileOptions(); }
    virtual std::vector<std::string> getLibraryList() { return fProcessFactory->getLibraryList(); }
    virtual std::vector<std::string> getIncludePathnames() { return fProcessFactory->getIncludePathnames(); }

    std::string getEffectCode(const std::string& dsp_content)
    {
        std::stringstream effect_code;
        effect_code << "adapt(1,1) = _; adapt(2,2) = _,_; adapt(1,2) = _ <: _,_; adapt(2,1) = _,_ :> _;";
        effect_code << "adaptor(F,G) = adapt(outputs(F),inputs(G)); dsp_code = environment{ " << dsp_content << " };";
        effect_code << "process = adaptor(dsp_code.process, dsp_code.effect) : dsp_code.effect;";
        return effect_code.str();
    }

    virtual void setMemoryManager(dsp_memory_manager* manager)
    {
        fProcessFactory->setMemoryManager(manager);
        if (fEffectFactory) {
            fEffectFactory->setMemoryManager(manager);
        }
    }
    virtual dsp_memory_manager* getMemoryManager() { return fProcessFactory->getMemoryManager(); }

    /* Create a new polyphonic DSP instance with global effect, to be deleted with C++ 'delete'
     *
     * @param nvoices - number of polyphony voices, should be at least 1
     * @param control - whether voices will be dynamically allocated and controlled (typically by a MIDI controler).
     *                If false all voices are always running.
     * @param group - if true, voices are not individually accessible, a global "Voices" tab will automatically dispatch
     *                a given control on all voices, assuming GUI::updateAllGuis() is called.
     *                If false, all voices can be individually controlled.
     * @param is_double - if true, internally allocated DSPs will be adapted to receive 'double' samples.
     */
    dsp_poly* createPolyDSPInstance(int nvoices, bool control, bool group, bool is_double = false)
    {
        dsp_poly* dsp_poly = new mydsp_poly(adaptDSP(fProcessFactory->createDSPInstance(), is_double), nvoices, control, group);
        if (fEffectFactory) {
            // the 'dsp_poly' object has to be controlled with MIDI, so kept separated from new dsp_sequencer(...) object
            return new dsp_poly_effect(dsp_poly, new dsp_sequencer(dsp_poly, adaptDSP(fEffectFactory->createDSPInstance(), is_double)));
        } else {
            return new dsp_poly_effect(dsp_poly, dsp_poly);
        }
    }

    /* Create a new DSP instance, to be deleted with C++ 'delete' */
    dsp* createDSPInstance()
    {
        return fProcessFactory->createDSPInstance();
    }

};

#endif // __poly_dsp__
/************************** END poly-dsp.h **************************/
