Add new official Gravity firmware code. Split out the output channel behavior and struct into a new class.
This commit is contained in:
419
examples/Gravity/Gravity.ino
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419
examples/Gravity/Gravity.ino
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/**
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* @file clock_mod.ino
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* @author Adam Wonak (https://github.com/awonak/)
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* @brief Demo firmware for Sitka Instruments Gravity.
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* @version 0.1
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* @date 2025-05-04
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*
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* @copyright Copyright (c) 2025
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*
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* ENCODER:
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* Press to change between selecting a parameter and editing the parameter.
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* Hold & Rotate to change current output channel pattern.
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*
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* BTN1: Play/pause the internal clock.
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*
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* BTN2: Stop all clocks.
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*
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*/
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#include <gravity.h>
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#include "channel.h"
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// Firmware state variables.
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struct AppState {
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bool refresh_screen = true;
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bool editing_param = false;
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int selected_param = 0;
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byte selected_channel = 0; // 0=tempo, 1-6=output channel
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Source selected_source = SOURCE_INTERNAL;
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Channel channel[OUTPUT_COUNT];
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};
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AppState app;
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enum ParamsMainPage {
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PARAM_MAIN_TEMPO,
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PARAM_MAIN_SOURCE,
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PARAM_MAIN_LAST,
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};
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enum ParamsChannelPage {
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PARAM_CH_MOD,
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PARAM_CH_PROB,
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PARAM_CH_DUTY,
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PARAM_CH_OFFSET,
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PARAM_CH_LAST,
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};
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const auto TEXT_FONT = u8g2_font_missingplanet_tr;
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const auto LARGE_FONT = u8g2_font_maniac_tr;
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#define play_icon_width 14
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#define play_icon_height 14
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static const unsigned char play_icon[] = {
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0x00, 0x00, 0x00, 0x00, 0x3C, 0x00, 0x7C, 0x00, 0xFC, 0x00, 0xFC, 0x03,
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0xFC, 0x0F, 0xFC, 0x0F, 0xFC, 0x03, 0xFC, 0x00, 0x7C, 0x00, 0x3C, 0x00,
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0x00, 0x00, 0x00, 0x00};
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static const unsigned char pause_icon[] = {
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0x00, 0x00, 0x00, 0x00, 0x38, 0x0E, 0x38, 0x0E, 0x38, 0x0E, 0x38, 0x0E,
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0x38, 0x0E, 0x38, 0x0E, 0x38, 0x0E, 0x38, 0x0E, 0x38, 0x0E, 0x38, 0x0E,
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0x38, 0x0E, 0x00, 0x00};
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//
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// Arduino setup and loop.
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//
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void setup() {
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// Start Gravity.
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gravity.Init();
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// Clock handlers.
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gravity.clock.AttachIntHandler(HandleIntClockTick);
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gravity.clock.AttachExtHandler(HandleExtClockTick);
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// Encoder rotate and press handlers.
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gravity.encoder.AttachPressHandler(HandleEncoderPressed);
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gravity.encoder.AttachRotateHandler(HandleRotate);
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gravity.encoder.AttachPressRotateHandler(HandlePressedRotate);
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// Button press handlers.
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gravity.play_button.AttachPressHandler(HandlePlayPressed);
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gravity.shift_button.AttachPressHandler(HandleShiftPressed);
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}
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void loop() {
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// Process change in state of inputs and outputs.
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gravity.Process();
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if (app.refresh_screen) {
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UpdateDisplay();
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}
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}
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//
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// Firmware handlers for clocks.
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//
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void HandleIntClockTick(uint32_t tick) {
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for (int i = 0; i < OUTPUT_COUNT; i++) {
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app.channel[i].processClockTick(tick, gravity.outputs[i]);
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}
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}
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void HandleExtClockTick() {
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// Ignore tick if not using external source.
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if (!gravity.clock.ExternalSource()) {
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return;
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}
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gravity.clock.Tick();
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app.refresh_screen = true;
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}
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//
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// UI handlers for encoder and buttons.
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//
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void HandlePlayPressed() {
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gravity.clock.IsPaused()
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? gravity.clock.Start()
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: gravity.clock.Stop();
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ResetOutputs();
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app.refresh_screen = true;
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}
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void HandleShiftPressed() {
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gravity.clock.Stop();
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ResetOutputs();
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app.refresh_screen = true;
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}
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void HandleEncoderPressed() {
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app.editing_param = !app.editing_param;
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app.refresh_screen = true;
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}
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void HandleRotate(Direction dir, int val) {
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if (!app.editing_param) {
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// Navigation Mode
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const int max_param = (app.selected_channel == 0) ? PARAM_MAIN_LAST : PARAM_CH_LAST;
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updateSelection(app.selected_param, val, max_param);
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} else {
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// Editing Mode
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if (app.selected_channel == 0) {
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editMainParameter(val);
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} else {
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editChannelParameter(dir, val);
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}
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}
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app.refresh_screen = true;
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}
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void HandlePressedRotate(Direction dir, int val) {
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if (dir == DIRECTION_INCREMENT && app.selected_channel < OUTPUT_COUNT) {
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app.selected_channel++;
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} else if (dir == DIRECTION_DECREMENT && app.selected_channel > 0) {
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app.selected_channel--;
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}
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app.selected_param = 0;
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app.refresh_screen = true;
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}
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void editMainParameter(int val) {
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switch (static_cast<ParamsMainPage>(app.selected_param)) {
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case PARAM_MAIN_TEMPO:
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if (gravity.clock.ExternalSource()) {
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break;
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}
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gravity.clock.SetTempo(gravity.clock.Tempo() + val);
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break;
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case PARAM_MAIN_SOURCE: {
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int source = static_cast<int>(app.selected_source);
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updateSelection(source, val, SOURCE_LAST);
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app.selected_source = static_cast<Source>(source);
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gravity.clock.SetSource(app.selected_source);
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break;
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}
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}
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}
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void editChannelParameter(Direction dir, int val) {
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auto& ch = GetSelectedChannel();
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switch (static_cast<ParamsChannelPage>(app.selected_param)) {
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case PARAM_CH_MOD:
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ch.setClockMod(ch.getClockModIndex() + val);
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break;
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case PARAM_CH_PROB:
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ch.setProbability(ch.getProbability() + val);
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break;
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case PARAM_CH_DUTY:
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ch.setDutyCycle(ch.getDutyCycle() + val);
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break;
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case PARAM_CH_OFFSET:
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ch.setOffset(ch.getOffset() + val);
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break;
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}
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}
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void updateSelection(int& param, int change, int maxValue) {
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// This formula correctly handles positive and negative wrapping.
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param = (param + change % maxValue + maxValue) % maxValue;
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}
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//
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// Helper functions.
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//
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Channel& GetSelectedChannel() {
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return app.channel[app.selected_channel - 1];
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}
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void ResetOutputs() {
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for (int i = 0; i < OUTPUT_COUNT; i++) {
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gravity.outputs[i].Low();
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}
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}
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//
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// UI Display functions.
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//
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// Constants for screen layout and fonts
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constexpr int SCREEN_CENTER_X = 32;
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constexpr int MAIN_TEXT_Y = 26;
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constexpr int SUB_TEXT_Y = 42;
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constexpr int VISIBLE_MENU_ITEMS = 3;
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constexpr int MENU_ITEM_HEIGHT = 14;
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constexpr int MENU_BOX_PADDING = 4;
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constexpr int MENU_BOX_WIDTH = 64;
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constexpr int CHANNEL_BOXES_Y = 50;
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constexpr int CHANNEL_BOX_WIDTH = 18;
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constexpr int CHANNEL_BOX_HEIGHT = 14;
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void UpdateDisplay() {
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app.refresh_screen = false;
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gravity.display.firstPage();
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do {
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if (app.selected_channel == 0) {
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DisplayMainPage();
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} else {
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DisplayChannelPage();
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}
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// Global channel select UI.
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DisplaySelectedChannel();
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} while (gravity.display.nextPage());
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}
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void DisplayMainPage() {
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gravity.display.setFontMode(1);
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gravity.display.setDrawColor(2);
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gravity.display.setFont(TEXT_FONT);
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// Display selected editable value
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char mainText[8];
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const char* subText;
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switch (app.selected_param) {
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case PARAM_MAIN_TEMPO:
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// Serial MIDI is too unstable to display bpm in real time.
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if (app.selected_source == SOURCE_EXTERNAL_MIDI) {
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sprintf(mainText, "%s", "EXT");
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} else {
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sprintf(mainText, "%d", gravity.clock.Tempo());
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}
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subText = "BPM";
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break;
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case PARAM_MAIN_SOURCE:
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switch (app.selected_source) {
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case SOURCE_INTERNAL:
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sprintf(mainText, "%s", "INT");
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subText = "Clock";
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break;
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case SOURCE_EXTERNAL_PPQN_24:
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sprintf(mainText, "%s", "EXT");
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subText = "24 PPQN";
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break;
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case SOURCE_EXTERNAL_PPQN_4:
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sprintf(mainText, "%s", "EXT");
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subText = "4 PPQN";
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break;
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case SOURCE_EXTERNAL_MIDI:
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sprintf(mainText, "%s", "EXT");
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subText = "MIDI";
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break;
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}
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}
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drawCenteredText(mainText, MAIN_TEXT_Y, LARGE_FONT);
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drawCenteredText(subText, SUB_TEXT_Y, TEXT_FONT);
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// Draw Main Page menu items
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const char* menu_items[PARAM_MAIN_LAST] = {"Tempo", "Source"};
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drawMenuItems(menu_items, PARAM_MAIN_LAST);
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}
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void DisplayChannelPage() {
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auto& ch = GetSelectedChannel();
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gravity.display.setFontMode(1);
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gravity.display.setDrawColor(2);
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// Display selected editable value
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char mainText[5];
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const char* subText;
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switch (app.selected_param) {
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case 0: { // Clock Mod
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int mod_value = ch.getClockMod();
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if (mod_value > 1) {
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sprintf(mainText, "/%d", mod_value);
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subText = "Divide";
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} else {
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sprintf(mainText, "x%d", abs(mod_value));
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subText = "Multiply";
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}
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break;
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}
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case 1: // Probability
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sprintf(mainText, "%d%%", ch.getProbability());
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subText = "Hit Chance";
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break;
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case 2: // Duty Cycle
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sprintf(mainText, "%d%%", ch.getDutyCycle());
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subText = "Pulse Width";
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break;
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case 3: // Offset
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sprintf(mainText, "%d%%", ch.getOffset());
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subText = "Shift Hit";
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break;
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}
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drawCenteredText(mainText, MAIN_TEXT_Y, LARGE_FONT);
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drawCenteredText(subText, SUB_TEXT_Y, TEXT_FONT);
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// Draw Channel Page menu items
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const char* menu_items[PARAM_CH_LAST] = {"Mod", "Probability", "Duty Cycle", "Offset"};
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drawMenuItems(menu_items, PARAM_CH_LAST);
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}
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void DisplaySelectedChannel() {
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int boxX = CHANNEL_BOX_WIDTH;
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int boxY = CHANNEL_BOXES_Y;
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int boxWidth = CHANNEL_BOX_WIDTH;
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int boxHeight = CHANNEL_BOX_HEIGHT;
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int textOffset = 7; // Half of font width
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// Draw top and right side of frame.
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gravity.display.drawHLine(1, boxY, SCREEN_WIDTH - 2);
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gravity.display.drawVLine(SCREEN_WIDTH - 2, boxY, boxHeight);
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for (int i = 0; i < OUTPUT_COUNT + 1; i++) {
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// Draw box frame or filled selected box.
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gravity.display.setDrawColor(1);
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(app.selected_channel == i)
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? gravity.display.drawBox(i * boxWidth, boxY, boxWidth, boxHeight)
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: gravity.display.drawVLine(i * boxWidth, boxY, boxHeight);
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// Draw clock status icon or each channel number.
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gravity.display.setDrawColor(2);
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if (i == 0) {
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gravity.display.setBitmapMode(1);
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auto icon = gravity.clock.IsPaused() ? pause_icon : play_icon;
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gravity.display.drawXBM(2, boxY, play_icon_width, play_icon_height, icon);
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} else {
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gravity.display.setFont(TEXT_FONT);
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gravity.display.setCursor((i * boxWidth) + textOffset, SCREEN_HEIGHT - 1);
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gravity.display.print(i);
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}
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}
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}
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void drawMenuItems(const char* menu_items[], int menu_size) {
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// Draw menu items
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gravity.display.setFont(TEXT_FONT);
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// Draw selected menu item box
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int selectedBoxY = 0;
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if (menu_size >= VISIBLE_MENU_ITEMS && app.selected_param == menu_size - 1) {
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selectedBoxY = MENU_ITEM_HEIGHT * min(2, app.selected_param);
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} else if (app.selected_param > 0) {
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selectedBoxY = MENU_ITEM_HEIGHT;
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}
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int boxX = MENU_BOX_WIDTH + 1;
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int boxY = selectedBoxY + 2;
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int boxWidth = MENU_BOX_WIDTH - 1;
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int boxHeight = MENU_ITEM_HEIGHT + 1;
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app.editing_param
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? gravity.display.drawBox(boxX, boxY, boxWidth, boxHeight)
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: gravity.display.drawFrame(boxX, boxY, boxWidth, boxHeight);
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// Draw the visible menu items
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int start_index = 0;
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if (menu_size >= VISIBLE_MENU_ITEMS && app.selected_param == menu_size - 1) {
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start_index = menu_size - VISIBLE_MENU_ITEMS;
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} else if (app.selected_param > 0) {
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start_index = app.selected_param - 1;
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}
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for (int i = 0; i < min(menu_size, VISIBLE_MENU_ITEMS); ++i) {
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int idx = start_index + i;
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drawRightAlignedText(menu_items[idx], MENU_ITEM_HEIGHT * (i + 1));
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}
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}
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// Helper function to draw centered text
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void drawCenteredText(const char* text, int y, const uint8_t* font) {
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gravity.display.setFont(font);
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int textWidth = gravity.display.getUTF8Width(text);
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gravity.display.drawStr(SCREEN_CENTER_X - (textWidth / 2), y, text);
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}
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// Helper function to draw right-aligned text
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void drawRightAlignedText(const char* text, int y) {
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int textWidth = gravity.display.getUTF8Width(text);
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int drawX = (SCREEN_WIDTH - textWidth) - MENU_BOX_PADDING;
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gravity.display.drawStr(drawX, y, text);
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}
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99
examples/Gravity/channel.h
Normal file
99
examples/Gravity/channel.h
Normal file
@ -0,0 +1,99 @@
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#ifndef CHANNEL_H
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#define CHANNEL_H
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#include <Arduino.h>
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#include <gravity.h>
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static const int MOD_CHOICE_SIZE = 21;
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// Negative for multiply, positive for divide.
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static const int clock_mod[MOD_CHOICE_SIZE] = {-24, -12, -8, -6, -4, -3, -2, 1, 2, 3, 4, 5, 6, 7, 8, 12, 16, 24, 32, 64, 128};
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// This represents the number of clock pulses for a 96 PPQN clock source that match the above div/mult mods.
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static const int clock_mod_pulses[MOD_CHOICE_SIZE] = {4, 8, 12, 16, 24, 32, 48, 96, 192, 288, 384, 480, 576, 1152, 672, 768, 1536, 2304, 3072, 6144, 12288};
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class Channel {
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public:
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/**
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* @brief Construct a new Channel object with default values.
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*/
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Channel() {
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updatePulses();
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}
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// --- Setters for channel properties ---
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void setClockMod(int index) {
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if (index >= 0 && index < MOD_CHOICE_SIZE) {
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clock_mod_index = index;
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updatePulses();
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}
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}
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void setProbability(int prob) {
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probability = constrain(prob, 0, 100);
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}
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void setDutyCycle(int duty) {
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duty_cycle = constrain(duty, 0, 99);
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updatePulses();
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}
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void setOffset(int off) {
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offset = constrain(off, 0, 99);
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updatePulses();
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}
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// --- Getters for channel properties ---
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int getClockModIndex() const { return clock_mod_index; }
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int getProbability() const { return probability; }
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int getDutyCycle() const { return duty_cycle; }
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int getOffset() const { return offset; }
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int getClockMod() const { return clock_mod[clock_mod_index]; }
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uint32_t getDutyCyclePulses() const { return duty_cycle_pulses; }
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uint32_t getOffsetPulses() const { return offset_pulses; }
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/**
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* @brief Processes a clock tick and determines if the output should be high or low.
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* @param tick The current clock tick count.
|
||||
* @param output The output object (or a reference to its state) to be modified.
|
||||
*/
|
||||
void processClockTick(uint32_t tick, DigitalOutput& output) {
|
||||
const uint32_t mod_pulses = clock_mod_pulses[clock_mod_index];
|
||||
const uint32_t current_tick_offset = tick + offset_pulses;
|
||||
|
||||
// Duty cycle high check
|
||||
if (current_tick_offset % mod_pulses == 0) {
|
||||
if (probability >= random(0, 100)) {
|
||||
output.High();
|
||||
}
|
||||
}
|
||||
|
||||
// Duty cycle low check
|
||||
const uint32_t duty_cycle_end_tick = tick + duty_cycle_pulses + offset_pulses;
|
||||
if (duty_cycle_end_tick % mod_pulses == 0) {
|
||||
output.Low();
|
||||
}
|
||||
}
|
||||
|
||||
private:
|
||||
/**
|
||||
* @brief Recalculates pulse values based on current channel settings.
|
||||
* Should be called whenever mod, duty cycle, or offset changes.
|
||||
*/
|
||||
void updatePulses() {
|
||||
uint32_t mod_pulses = clock_mod_pulses[clock_mod_index];
|
||||
duty_cycle_pulses = max((long)((mod_pulses * (100L - duty_cycle)) / 100L), 1L);
|
||||
offset_pulses = (long)((mod_pulses * (100L - offset)) / 100L);
|
||||
}
|
||||
|
||||
byte clock_mod_index = 7; // 1x
|
||||
byte probability = 100;
|
||||
byte duty_cycle = 50;
|
||||
byte offset = 0;
|
||||
int duty_cycle_pulses;
|
||||
int offset_pulses;
|
||||
};
|
||||
|
||||
#endif // CHANNEL_H
|
||||
Reference in New Issue
Block a user