use std::fmt::Debug; use log::{info, error}; use tokio::sync; use core::f32; // use std::f32::consts::PI; use std::ops::RangeInclusive; use std::sync::{Arc, Mutex}; use std::sync::atomic::Ordering; use chrono::Local; use tokio::sync::{mpsc, watch}; use eframe::egui::{self, Button, CollapsingHeader, Color32, ComboBox, DragValue, Id, Key, Label, Layout, Modal, Modifiers, RichText, TextEdit, Widget}; use egui_plot::{Corner, GridInput, GridMark, Legend, Line, Plot, PlotPoint, Points}; use egui_dock::{DockArea, DockState, Style}; use egui_extras::{TableBuilder, Column}; use crate::state::{AppState, ControlCommand, HardwareConnected, HardwareState, MeasurementDataState, Mode}; use crate::logging::LoggingStates; use crate::plot::{TimeSeriesPlot, BodePlot}; use crate::signals::{LoggingSignal, StartStopSignal}; use crate::icd::{BioImpedanceLeadMode, IcdDftNum, SweepPoints, ElectrodeConfiguration, ElectrodeOptionsWithMultiplexer}; const LEAD_MODES: [BioImpedanceLeadMode; 2] = [ BioImpedanceLeadMode::TwoLead, BioImpedanceLeadMode::FourLead, ]; const DFTNUM_VARIANTS: [IcdDftNum; 13] = [ IcdDftNum::Num4, IcdDftNum::Num8, IcdDftNum::Num16, IcdDftNum::Num32, IcdDftNum::Num64, IcdDftNum::Num128, IcdDftNum::Num256, IcdDftNum::Num512, IcdDftNum::Num1024, IcdDftNum::Num2048, IcdDftNum::Num4096, IcdDftNum::Num8192, IcdDftNum::Num16384, ]; const SWEEP_POINTS_VARIANTS: [SweepPoints; 2] = [ SweepPoints::Eight, SweepPoints::Eighteen, ]; #[derive(Clone, Copy,Debug, PartialEq, Eq)] enum TabActive { Single, Sweep, Shortcuts, } pub struct App { tree: DockState, tab_viewer: TabViewer, tab_active: TabActive, log_tx: mpsc::Sender, pub gui_logging_state: Arc>, log_filename: String, log_marker_modal: bool, log_marker: String, measurement_data: Arc, control_tx: mpsc::Sender, app_state_rx: sync::watch::Receiver, hardware_state_rx: sync::watch::Receiver } struct TabViewer { show_settings: bool, show_settings_toggle: Option, measurement_data: Arc, control_tx: mpsc::Sender, app_state_rx: sync::watch::Receiver, hardware_state_rx: sync::watch::Receiver, } trait ElectrodeOption: Copy + Debug + PartialEq + 'static { const ALL: &'static [Self]; } impl ElectrodeOption for ElectrodeOptionsWithMultiplexer { const ALL: &'static [Self] = &ElectrodeOptionsWithMultiplexer::ALL; } fn electrode_combo( ui: &mut egui::Ui, id: &str, value: &mut T, ) -> bool { let mut changed = false; egui::ComboBox::from_id_salt(id) .selected_text(format!("{:?}", value)) .width(60.0) .show_ui(ui, |ui| { for &option in T::ALL { let response = ui.selectable_value(value, option, format!("{:?}", option)); if response.changed() { changed = true; } } }); changed } fn render_two_lead( ui: &mut egui::Ui, values: &mut [T; 2], ) -> bool { let mut changed = false; ui.horizontal(|ui| { ui.label("Drive/sense: Electrode+ ("); changed |= electrode_combo(ui, "e1_select", &mut values[0]); ui.label("), Electrode- ("); changed |= electrode_combo(ui, "e2_select", &mut values[1]); ui.label(")"); }); changed } fn render_four_lead( ui: &mut egui::Ui, values: &mut [T; 4], ) -> bool { let mut changed = false; ui.horizontal(|ui| { ui.label("Drive: I+ ("); changed |= electrode_combo(ui, "i1_select", &mut values[0]); ui.label("), I- ("); changed |= electrode_combo(ui, "i2_select", &mut values[1]); ui.label(") | Sense: V+ ("); changed |= electrode_combo(ui, "v1_select", &mut values[2]); ui.label("), V- ("); changed |= electrode_combo(ui, "v2_select", &mut values[3]); ui.label(")"); }); changed } impl TabViewer { fn single_tab(&mut self, ui: &mut egui::Ui) { egui::Frame::default().inner_margin(5).show(ui, |ui| { let settings = CollapsingHeader::new("Settings") .open(self.show_settings_toggle) .show(ui, |ui| { if let running = self.hardware_state_rx.borrow().running { ui.add_enabled_ui(!running, |ui| { ui.horizontal(|ui| { ui.label("Lead Mode:"); let mut lead_mode = self.app_state_rx.borrow().lead_mode; // Map current lead mode to index let mut index = LEAD_MODES .iter() .position(|&m| m == lead_mode) .unwrap_or(0); ComboBox::from_id_salt("LeadMode") .width(60.0) .show_index(ui, &mut index, LEAD_MODES.len(), |i| { match LEAD_MODES[i] { BioImpedanceLeadMode::TwoLead => "2-Lead", BioImpedanceLeadMode::FourLead => "4-Lead", } .to_string() }); // Update lead mode if changed if lead_mode != LEAD_MODES[index] { lead_mode = LEAD_MODES[index]; self.control_tx.try_send(ControlCommand::ChangeLeadMode(lead_mode)).unwrap(); } }); ui.horizontal(|ui| { // Show lead configuration ui.label("Lead Configuration:"); let hardware_connected = self.hardware_state_rx.borrow().hardware_connected; let lead_mode = self.app_state_rx.borrow().lead_mode; let mut settings = self.app_state_rx.borrow().electrode_settings; match (hardware_connected, lead_mode) { (HardwareConnected::WithoutMultiplexer, BioImpedanceLeadMode::TwoLead) => { ui.label(format!("Drive/sense: Electrode+ (CE0), Electrode- (AIN1)")); } (HardwareConnected::WithoutMultiplexer, BioImpedanceLeadMode::FourLead) => { ui.label(format!("Drive: I+ (CE0), I- (AIN1) | Sense: V+ (AIN2), V- (AIN3)")); } (HardwareConnected::WithMultiplexer, BioImpedanceLeadMode::TwoLead) => { if render_two_lead(ui, &mut settings.with_multiplexer_2_lead) { self.control_tx.try_send(ControlCommand::ChangeElectrodeSettings(settings)).unwrap(); } } (HardwareConnected::WithMultiplexer, BioImpedanceLeadMode::FourLead) => { if render_four_lead(ui, &mut settings.with_multiplexer_4_lead) { self.control_tx.try_send(ControlCommand::ChangeElectrodeSettings(settings)).unwrap(); } } (HardwareConnected::None, _) => {} } }); }); ui.add_enabled_ui(!running, |ui| { ui.horizontal(|ui| { ui.label("Single Frequency:"); let mut freq = self.app_state_rx.borrow().single_frequency; let response = ui.add(DragValue::new(&mut freq).speed(0.1)); if response.changed() { self.control_tx.try_send(ControlCommand::SetFrequency(freq)).unwrap(); } ui.label("Hz"); }); ui.horizontal(|ui| { ui.label("ADC samples per DFT:"); let mut dft_num = self.app_state_rx.borrow().dft_num; let mut index = DFTNUM_VARIANTS.iter().position(|&x| x == dft_num).unwrap_or(0); ComboBox::from_id_salt("Dftnum") .width(75.0) .show_index(ui, &mut index, DFTNUM_VARIANTS.len(), |i| { format!("{}", 1 << (2 + i)) // 2^2 = 4, 2^3 = 8, ..., 2^14 = 16384 }); let new_value = DFTNUM_VARIANTS[index]; if dft_num != new_value { dft_num = new_value; self.control_tx.try_send(ControlCommand::ChangeDftNum(dft_num)).unwrap(); }; }); }); ui.add_enabled_ui(running, |ui| { ui.horizontal(|ui| { ui.label("Periods per DFT:"); match (running, self.hardware_state_rx.borrow().periods_per_dft) { (true, Some(periods)) => { ui.add(Label::new(format!("{:.2}", periods))); }, (true, None) => { ui.add(Label::new("N/A")); }, (false, _) => { ui.add(Label::new("Start to determine!")); } } }); }); } }); self.show_settings_toggle = None; self.show_settings = !settings.fully_closed(); ui.separator(); let available_height = ui.available_height(); let half_height = available_height / 2.0-2.0; // Plot magnitude ui.allocate_ui_with_layout( egui::vec2(ui.available_width(), half_height), Layout::top_down(egui::Align::Min), |ui| { // Magnitude let magnitude = self.measurement_data.magnitude_series.lock().unwrap(); Plot::new("magnitude") .legend(Legend::default().position(Corner::LeftTop)) .y_axis_label("Magnitude [Ω]") .y_axis_min_width(80.0) .show(ui, |plot_ui| { plot_ui.line( Line::new(format!("Magnitude at {} Hz", self.app_state_rx.borrow().single_frequency), magnitude.plot_values()) .color(Color32::BLUE) ); }); }, ); // Plot phase ui.allocate_ui_with_layout( egui::vec2(ui.available_width(), half_height), Layout::top_down(egui::Align::Min), |ui| { // Phase let phase = self.measurement_data.phase_series.lock().unwrap(); Plot::new("phase") .legend(Legend::default().position(Corner::LeftTop)) .y_axis_label("Phase [rad]") .y_axis_min_width(80.0) .show(ui, |plot_ui| { plot_ui.line( Line::new(format!("Phase at {} Hz", self.app_state_rx.borrow().single_frequency), phase.plot_values()) .color(Color32::RED) ); }); }, ); }); } fn sweep_tab(&mut self, ui: &mut egui::Ui) { egui::Frame::default().inner_margin(5).show(ui, |ui| { let settings = CollapsingHeader::new("Settings") .open(self.show_settings_toggle) .show(ui, |ui| { if let running = self.hardware_state_rx.borrow().running { ui.add_enabled_ui(!running, |ui| { ui.horizontal(|ui| { ui.label("Lead Mode:"); let mut lead_mode = self.app_state_rx.borrow().lead_mode; // Map current lead mode to index let mut index = LEAD_MODES .iter() .position(|&m| m == lead_mode) .unwrap_or(0); ComboBox::from_id_salt("LeadMode") .width(60.0) .show_index(ui, &mut index, LEAD_MODES.len(), |i| { match LEAD_MODES[i] { BioImpedanceLeadMode::TwoLead => "2-Lead", BioImpedanceLeadMode::FourLead => "4-Lead", } .to_string() }); // Update lead mode if changed if lead_mode != LEAD_MODES[index] { lead_mode = LEAD_MODES[index]; self.control_tx.try_send(ControlCommand::ChangeLeadMode(lead_mode)).unwrap(); } }); ui.horizontal(|ui| { // Show lead configuration ui.label("Lead Configuration:"); let hardware_connected = self.hardware_state_rx.borrow().hardware_connected; let lead_mode = self.app_state_rx.borrow().lead_mode; let mut settings = self.app_state_rx.borrow().electrode_settings; match (hardware_connected, lead_mode) { (HardwareConnected::WithoutMultiplexer, BioImpedanceLeadMode::TwoLead) => { ui.label(format!("Drive/sense: Electrode+ (CE0), Electrode- (AIN1)")); } (HardwareConnected::WithoutMultiplexer, BioImpedanceLeadMode::FourLead) => { ui.label("Drive: I+ (CE0), I- (AIN1) | Sense: V+ (AIN2), V- (AIN3)"); } (HardwareConnected::WithMultiplexer, BioImpedanceLeadMode::TwoLead) => { if render_two_lead(ui, &mut settings.with_multiplexer_2_lead) { self.control_tx.try_send(ControlCommand::ChangeElectrodeSettings(settings)).unwrap(); } } (HardwareConnected::WithMultiplexer, BioImpedanceLeadMode::FourLead) => { if render_four_lead(ui, &mut settings.with_multiplexer_4_lead) { self.control_tx.try_send(ControlCommand::ChangeElectrodeSettings(settings)).unwrap(); } } (HardwareConnected::None, _) => {} } }); }); ui.add_enabled_ui(!running, |ui| { ui.horizontal(|ui| { ui.label("Measurement Points:"); let mut measurement_points = self.app_state_rx.borrow().sweep_points; let mut index = SWEEP_POINTS_VARIANTS.iter().position(|&x| x == measurement_points).unwrap_or(0); ComboBox::from_id_salt("MeasurementPoints") .width(75.0) .show_index(ui, &mut index, SWEEP_POINTS_VARIANTS.len(), |i| { format!("{:?}", SWEEP_POINTS_VARIANTS[i].len()) }); let new_value = SWEEP_POINTS_VARIANTS[index]; if measurement_points != new_value { measurement_points = new_value; self.control_tx.try_send(ControlCommand::ChangeSweepPoints(measurement_points)).unwrap(); info!("Sweep Points setting changed!"); } }); }); ui.add_enabled_ui(running, |ui| { let (freq, periods_per_dft_vec) = self.hardware_state_rx.borrow().periods_per_dft_sweep.clone(); fn format_frequency(freq: u32) -> String { if freq >= 1_000 { // kHz if freq % 1_000 == 0 { format!("{}k", (freq / 1_000) as u64) } else { format!("{:.1}k", freq as f32 / 1_000.0) } } else { // Hz if freq % 1 == 0 { format!("{}", freq as u64) } else { format!("{:.1}", freq) } } } TableBuilder::new(ui) .column(Column::auto()) .columns(Column::remainder().at_most(30.0), freq.len()) .header(10.0, |mut header| { header.col(|ui| { ui.label("Frequency [Hz]:"); }); for freq in &freq { header.col(|ui| { ui.label(format_frequency(*freq)); }); } }) .body(|mut body| { body.row(5.0, |mut row| { row.col(|ui| { ui.label("Periods per DFT:"); }); if let Some(periods) = periods_per_dft_vec { for period in &periods { row.col(|ui| { ui.label(format!("{:.1}", period)); }); } } else { for _ in &freq { row.col(|ui| { ui.label("N/A"); }); } } }); }); }); } }); self.show_settings_toggle = None; self.show_settings = !settings.fully_closed(); ui.separator(); let available_height = ui.available_height(); let half_height = available_height / 2.0-2.0; // Bodeplot magnitude ui.allocate_ui_with_layout( egui::vec2(ui.available_width(), half_height), Layout::top_down(egui::Align::Min), |ui| { // Magnitude let bode_plot = self.measurement_data.bode_plot.lock().unwrap(); Plot::new("bode_mag") .legend(Legend::default().position(Corner::LeftTop)) .y_axis_label("Magnitude [Ω]") .x_grid_spacer(log10_grid_spacer) .x_axis_formatter(log10_axis_formatter) // .auto_bounds([true; 2].into()) .y_axis_min_width(80.0) .default_x_bounds(0.0, 200_000_f64.log10()) .label_formatter(log10x_formatter) .show(ui, |plot_ui| { plot_ui.line( Line::new("Magnitude", bode_plot.plot_magnitudes()) .color(Color32::LIGHT_BLUE) ); plot_ui.points( Points::new("Magnitude measurement", bode_plot.plot_magnitudes()) .color(Color32::BLUE) .radius(1.5) ); }); }, ); // Bodeplot phase ui.allocate_ui_with_layout( egui::vec2(ui.available_width(), half_height), Layout::top_down(egui::Align::Min), |ui| { // Phase let bode_plot = self.measurement_data.bode_plot.lock().unwrap(); Plot::new("bode_phase") .legend(Legend::default().position(Corner::LeftTop)) .y_axis_label("Phase [rad]") .x_grid_spacer(log10_grid_spacer) .x_axis_formatter(log10_axis_formatter) // .auto_bounds([true; 2].into()) .y_axis_min_width(80.0) .default_x_bounds(0.0, 200_000_f64.log10()) .label_formatter(log10x_formatter) .show(ui, |plot_ui| { plot_ui.line( Line::new("Phase", bode_plot.plot_phases()) .color(Color32::LIGHT_RED) ); plot_ui.points( Points::new("Phase measurement", bode_plot.plot_phases()) .color(Color32::RED) .radius(1.5) ); }); }, ); }); } fn shortcuts(&mut self, ui: &mut egui::Ui) { ui.heading("Shortcuts"); ui.label("Space: Start/Stop measurement"); ui.label("R: Reset view/plots"); ui.label("S: Toggle settings"); ui.label("L: Toggle logging"); ui.label("A: Add marker (when logging)"); ui.label("CMD-W: Close window"); } } fn log10_grid_spacer(input: GridInput) -> Vec { let base = 10u32; assert!(base >= 2); let basef = base as f64; let step_size = basef.powi(input.base_step_size.abs().log(basef).ceil() as i32); let (min, max) = input.bounds; let mut steps = vec![]; for step_size in [step_size, step_size * basef, step_size * basef * basef] { if step_size == basef.powi(-1) { // FIXME: float comparison let first = ((min / (step_size * basef)).floor() as i64) * base as i64; let last = (max / step_size).ceil() as i64; let mut logs = vec![0.0; base as usize - 2]; for (i, j) in logs.iter_mut().enumerate() { *j = basef * ((i + 2) as f64).log(basef); } steps.extend((first..last).step_by(base as usize).flat_map(|j| { logs.iter().map(move |i| GridMark { value: (j as f64 + i) * step_size, step_size, }) })); } else { let first = (min / step_size).ceil() as i64; let last = (max / step_size).ceil() as i64; steps.extend((first..last).map(move |i| GridMark { value: (i as f64) * step_size, step_size, })); } } steps } fn log10_axis_formatter(mark: GridMark, _range: &RangeInclusive) -> String { let base = 10u32; let basef = base as f64; let prec = (-mark.step_size.log10().round()).max(0.0) as usize; format!("{:.*e}", prec, basef.powf(mark.value)) } fn log10x_formatter(name: &str, value: &PlotPoint) -> String { let base = 10u32; let basef = base as f64; format!( "{}\nx: {:.d$e}\ny: {:.d$e}", name, basef.powf(value.x), value.y, d = 3 ) } impl egui_dock::TabViewer for TabViewer { type Tab = String; fn title(&mut self, tab: &mut Self::Tab) -> eframe::egui::WidgetText { (&*tab).into() } fn ui(&mut self, ui: &mut egui::Ui, tab: &mut Self::Tab) { match tab.as_str() { "Single" => self.single_tab(ui), "Sweep" => self.sweep_tab(ui), "Shortcuts" => self.shortcuts(ui), _ => { let _ = ui.label("Unknown tab"); } } } } impl App { pub fn new(log_tx: mpsc::Sender, measurement_data: Arc, control_tx: mpsc::Sender, app_state_rx: watch::Receiver, hardware_state_rx: watch::Receiver) -> Self { // Step 1: Initialize shared fields first let tab_active = TabActive::Single; // Step 2: Now we can initialize tab_viewer let control_tx_clone = control_tx.clone(); let app_state_clone = app_state_rx.clone(); let hardware_state_clone = hardware_state_rx.clone(); let tab_viewer = TabViewer { measurement_data: measurement_data.clone(), show_settings: false, show_settings_toggle: None, control_tx: control_tx_clone, app_state_rx: app_state_clone, hardware_state_rx: hardware_state_clone }; // Step 3: Construct App let app = App { tree: DockState::new(vec!["Single".to_string(), "Sweep".to_string(), "Shortcuts".to_string()]), tab_viewer, tab_active, log_tx, gui_logging_state: Arc::new(Mutex::new(LoggingStates::Idle)), log_filename: format!("log_{}_single.csv", Local::now().format("%Y%m%d")), log_marker_modal: false, log_marker: String::new(), measurement_data, control_tx, app_state_rx, hardware_state_rx, }; // For testing purposes, populate the Bode plot with a sample low-pass filter response // let fc = 1000.0; // cutoff frequency in Hz // let freqs = MeasurementPointSet::Eighteen.values().to_vec(); // let magnitudes = freqs.iter() // .map(|&f| { // 1.0 / (1.0 + (f / fc).powi(2)).sqrt() // }) // .collect::>(); // let phases = freqs.iter() // .map(|&f| { // -(f / fc).atan() * 180.0 / PI // }) // .collect::>(); // app.bode_plot.lock().unwrap().update_magnitudes(MeasurementPointSet::Eighteen, magnitudes); // app.bode_plot.lock().unwrap().update_phases(MeasurementPointSet::Eighteen, phases); app.toggle_start_stop(); app } pub fn toggle_start_stop(&self) { match (self.tab_active, self.hardware_state_rx.borrow().running) { (TabActive::Single, false) => { self.control_tx.try_send(ControlCommand::Start(Mode::Single)).unwrap(); }, (TabActive::Sweep, false) => { self.control_tx.try_send(ControlCommand::Start(Mode::Sweep)).unwrap(); }, (_, true) => { self.control_tx.try_send(ControlCommand::Stop).unwrap(); }, (_, _) => {} } } pub fn reset_view(&self) { self.measurement_data.magnitude_series.lock().unwrap().clear(); self.measurement_data.phase_series.lock().unwrap().clear(); } } impl eframe::App for App { fn update(&mut self, ctx: &egui::Context, _frame: &mut eframe::Frame) { // Egui add a top bar egui::TopBottomPanel::top("top_bar").show(ctx, |ui| { egui::MenuBar::new().ui(ui, |ui| { let is_connected = self.hardware_state_rx.borrow().hardware_connected != HardwareConnected::None; egui::widgets::global_theme_preference_switch(ui); ui.separator(); ui.label(format!("Data rate: {} Hz", self.measurement_data.sampling_rate.load(Ordering::Relaxed))); ui.separator(); let running = self.hardware_state_rx.borrow().running; let (color, text) = match running { true => (Color32::DARK_RED, "Stop"), false => (Color32::DARK_GREEN, "Start"), }; let start_stop_button = Button::new( RichText::new(text) .strong() .color(Color32::WHITE) ).fill(color) .corner_radius(5.0) .min_size(egui::vec2(45.0, 0.0)) .frame(true); if ui.add_enabled(is_connected, start_stop_button).clicked() { self.toggle_start_stop(); } ui.separator(); if ui.add_enabled(is_connected, Button::new("Reset view")).clicked() { self.reset_view(); } ui.separator(); ui.add_enabled(is_connected, Label::new("Logging:")); let gui_logging_state = *self.gui_logging_state.lock().unwrap(); let mut logging_enabled = !matches!(gui_logging_state, LoggingStates::Idle); if ui.add_enabled(is_connected, custom_toggle_widget(&mut logging_enabled)).changed() { let signal = match gui_logging_state { LoggingStates::Idle => LoggingSignal::StartFileLogging(self.log_filename.clone()), LoggingStates::Starting | LoggingStates::Logging => LoggingSignal::StopFileLogging, }; self.log_tx.try_send(signal).unwrap_or_else(|e| { error!("Failed to send logging toggle signal: {:?}", e); }); }; ui.separator(); ui.add_enabled_ui(is_connected && logging_enabled, |ui| { if Button::new("Add marker").corner_radius(5.0).min_size(egui::vec2(20.0, 0.0)).ui(ui).on_hover_text("Add a marker to the current time series plots").clicked() { self.log_marker_modal = true; } }); if self.log_marker_modal { if Modal::new(Id::new("modal_marker")) .show(ctx, |ui| { ui.vertical_centered(|ui| { ui.heading("Add marker"); ui.add_space(16.0); // Input field for marker let text_edit_response = TextEdit::singleline(&mut self.log_marker) .desired_width(100.0) .id(Id::new("marker_field")) .hint_text("Marker name") .ui(ui); ui.add_space(16.0); // Centered Add button let add_clicked = Button::new("Add") .corner_radius(5.0) .min_size(egui::vec2(80.0, 30.0)) .ui(ui) .clicked(); // Check for Enter key in the TextEdit let enter_pressed = text_edit_response.lost_focus() && ui.input(|i| i.key_pressed(egui::Key::Enter)); if add_clicked || enter_pressed { info!("Adding marker: {}", self.log_marker); self.log_tx.try_send(LoggingSignal::AddMarker(self.log_marker.clone())).unwrap_or_else(|e| { error!("Failed to send logging marker signal: {:?}", e); }); self.log_marker = String::new(); ui.close(); } // Request focus on the text edit when the modal opens text_edit_response.request_focus(); }); }) .should_close() { self.log_marker_modal = false; self.log_marker = String::new(); } } ui.separator(); ui.add_enabled_ui(gui_logging_state == LoggingStates::Idle, |ui| { ui.label("Log filename:"); TextEdit::singleline(&mut self.log_filename).desired_width(150.0).id(Id::new("file_name_field")).ui(ui); }); // Spacer to push the LED to the right ui.with_layout(egui::Layout::right_to_left(egui::Align::Center), |ui| { ui.scope(|ui| { let (color, tooltip) = match self.hardware_state_rx.borrow().hardware_connected { HardwareConnected::None => { (Color32::DARK_RED, "Disconnected") }, HardwareConnected::WithoutMultiplexer => { (Color32::DARK_GREEN, "Connected without multiplexer") }, HardwareConnected::WithMultiplexer => { (Color32::DARK_GREEN, "Connected with multiplexer") }, }; // Allocate a fixed-size rectangle for the LED let led_size = egui::Vec2::splat(12.0); let (rect, response) = ui.allocate_exact_size(led_size, egui::Sense::hover()); // Draw the circle let center = rect.center(); let radius = 5.0; ui.painter().circle_filled(center, radius, color); // Tooltip if response.hovered() { response.on_hover_text(tooltip); } }); }); }); }); egui::CentralPanel::default().show(ctx, |ui| { DockArea::new(&mut self.tree) .style(Style::from_egui(ctx.style().as_ref())) .show_leaf_close_all_buttons(false) .show_leaf_collapse_buttons(false) .show_close_buttons(false) .show_inside(ui, &mut self.tab_viewer); }); // Do something when a tab is changed if let Some((_, tab)) = self.tree.find_active_focused() { match tab.as_str() { "Single" => { if self.tab_active != TabActive::Single { self.tab_active = TabActive::Single; self.control_tx.try_send(ControlCommand::Stop).unwrap(); if *self.gui_logging_state.lock().unwrap() == LoggingStates::Logging { self.log_tx.try_send(LoggingSignal::StopFileLogging).unwrap_or_else(|e| { error!("Failed to send logging logging signal: {:?}", e); }); } self.log_filename = format!("log_{}_single.csv", Local::now().format("%Y%m%d")); info!("Switched to Single tab"); } } "Sweep" => { if self.tab_active != TabActive::Sweep { self.tab_active = TabActive::Sweep; self.control_tx.try_send(ControlCommand::Stop).unwrap(); if *self.gui_logging_state.lock().unwrap() == LoggingStates::Logging { self.log_tx.try_send(LoggingSignal::StopFileLogging).unwrap_or_else(|e| { error!("Failed to send logging logging signal: {:?}", e); }); } self.log_filename = format!("log_{}_sweep.csv", Local::now().format("%Y%m%d")); info!("Switched to Sweep tab"); } } "Shortcuts" => { // if self.tab_active != TabActive::Shortcuts { // self.tab_active = TabActive::Shortcuts; // *self.on.lock().unwrap() = false; // self.update_start_stop(); // info!("Switched to Shortcuts tab"); // } } _ => { } } } // CMD- or control-W to close window if ctx.input(|i| i.modifiers.cmd_ctrl_matches(Modifiers::COMMAND)) && ctx.input(|i| i.key_pressed(Key::W)) { ctx.send_viewport_cmd(egui::ViewportCommand::Close); } // Check if the file name field is focused // If it is, we don't want to trigger shortcuts let file_name_field_is_focused = ctx.memory(|memory| memory.has_focus(Id::new("file_name_field"))); let marker_field_is_focused = ctx.memory(|memory| memory.has_focus(Id::new("marker_field"))); if !file_name_field_is_focused && !marker_field_is_focused { // Space to start/stop measurement if ctx.input(|i| i.key_pressed(Key::Space)) { self.toggle_start_stop(); } // Send stop command when the window is closed if ctx.input(|i| i.viewport().close_requested()) { self.toggle_start_stop(); } // Reset view if ctx.input(|i| i.key_pressed(Key::R)) { self.reset_view(); } // Toggle marker modal if ctx.input(|i| i.key_pressed(egui::Key::A)) && *self.gui_logging_state.lock().unwrap() == LoggingStates::Logging { self.log_marker_modal = !self.log_marker_modal; } // Enable/disable GUI logging if ctx.input(|i| i.key_pressed(egui::Key::L)) { let gui_logging_enabled = *self.gui_logging_state.lock().unwrap(); match gui_logging_enabled { LoggingStates::Starting => { // If currently starting, do nothing return; }, LoggingStates::Logging => { if let Err(e) = self.log_tx.try_send(LoggingSignal::StopFileLogging) { error!("Failed to send logging signal: {:?}", e); } }, LoggingStates::Idle => { if let Err(e) = self.log_tx.try_send(LoggingSignal::StartFileLogging(self.log_filename.clone())) { error!("Failed to send logging signal: {:?}", e); } }, } } // Toggle setttings view if ctx.input(|i| i.key_pressed(egui::Key::S)) { self.tab_viewer.show_settings = !self.tab_viewer.show_settings; if self.tab_viewer.show_settings { self.tab_viewer.show_settings_toggle = Some(true); } else { self.tab_viewer.show_settings_toggle = Some(false); } } } ctx.request_repaint(); } } fn toggle_ui_start_stop(ui: &mut egui::Ui, on: &mut bool) -> egui::Response { let desired_size = ui.spacing().interact_size.y * egui::vec2(2.0, 1.0); let (rect, mut response) = ui.allocate_exact_size(desired_size, egui::Sense::click()); if response.clicked() { *on = !*on; response.mark_changed(); } response.widget_info(|| { egui::WidgetInfo::selected(egui::WidgetType::Checkbox, ui.is_enabled(), *on, "") }); if ui.is_rect_visible(rect) { let how_on = ui.ctx().animate_bool_responsive(response.id, *on); let visuals = ui.style().interact_selectable(&response, *on); let rect = rect.expand(visuals.expansion); let radius = 0.5 * rect.height(); ui.painter().rect( rect, radius, visuals.bg_fill, visuals.bg_stroke, egui::StrokeKind::Inside, ); let circle_x = egui::lerp((rect.left() + radius)..=(rect.right() - radius), how_on); let center = egui::pos2(circle_x, rect.center().y); ui.painter() .circle(center, 0.75 * radius, visuals.bg_fill, visuals.fg_stroke); } response } pub fn custom_toggle_widget(on: &mut bool) -> impl egui::Widget + '_ { move |ui: &mut egui::Ui| toggle_ui_start_stop(ui, on) }