mirror of
https://github.com/hubaldv/bioz-firmware-rs.git
synced 2026-07-23 16:47:42 +00:00
@@ -20,7 +20,7 @@ use postcard_rpc::{
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},
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},
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};
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};
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use bioz_icd_rs::{GetUniqueIdEndpoint, GetMultiplexerCapabilityEndpoint, MultiplexerCapability, ElectrodeConfiguration, MeasurementPointSet, SweepImpedanceOutputTopic, SweepImpedanceResult, SweepImpedanceStartRequest, PingEndpoint, SetGreenLedEndpoint, SingleImpedanceOutputTopic, SingleImpedanceStartRequest, StartSweepImpedanceEndpoint, StartSingleImpedanceEndpoint, StopImpedanceEndpoint, BioImpedanceLeadMode, ENDPOINT_LIST, TOPICS_IN_LIST, TOPICS_OUT_LIST};
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use bioz_icd_rs::{GetUniqueIdEndpoint, GetMultiplexerCapabilityEndpoint, MultiplexerCapability, ElectrodeConfiguration, SweepPoints, SweepImpedanceOutputTopic, SweepImpedanceResult, SweepImpedanceStartRequest, PingEndpoint, SetGreenLedEndpoint, SingleImpedanceOutputTopic, SingleImpedanceStartRequest, StartSweepImpedanceEndpoint, StartSingleImpedanceEndpoint, StopImpedanceEndpoint, BioImpedanceLeadMode, ENDPOINT_LIST, TOPICS_IN_LIST, TOPICS_OUT_LIST};
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use crate::electrodes;
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use crate::electrodes;
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use crate::impedance::{ImpedanceSetupType, RunningMode, IMPEDANCE_CHANNEL_SWEEP, IMPEDANCE_CHANNEL_SINGLE};
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use crate::impedance::{ImpedanceSetupType, RunningMode, IMPEDANCE_CHANNEL_SWEEP, IMPEDANCE_CHANNEL_SINGLE};
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@@ -292,7 +292,7 @@ pub async fn start_sweep_impedance_handler(context: SpawnCtx, header: VarHeader,
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// Init the sequencer
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// Init the sequencer
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let response = match (rqst.lead_mode, rqst.points) {
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let response = match (rqst.lead_mode, rqst.points) {
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(BioImpedanceLeadMode::TwoLead, MeasurementPointSet::Eight) => {
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(BioImpedanceLeadMode::TwoLead, SweepPoints::Eight) => {
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency2Lead(rqst.points);
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency2Lead(rqst.points);
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const SIZE: usize = 8;
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const SIZE: usize = 8;
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context
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context
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@@ -307,7 +307,7 @@ pub async fn start_sweep_impedance_handler(context: SpawnCtx, header: VarHeader,
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periods_per_dft_18: Vec::new(),
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periods_per_dft_18: Vec::new(),
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})
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})
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}
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}
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(BioImpedanceLeadMode::TwoLead, MeasurementPointSet::Eighteen) => {
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(BioImpedanceLeadMode::TwoLead, SweepPoints::Eighteen) => {
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency2Lead(rqst.points);
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency2Lead(rqst.points);
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const SIZE: usize = 18;
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const SIZE: usize = 18;
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context
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context
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@@ -322,7 +322,7 @@ pub async fn start_sweep_impedance_handler(context: SpawnCtx, header: VarHeader,
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periods_per_dft_18: periods,
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periods_per_dft_18: periods,
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})
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})
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}
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}
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(BioImpedanceLeadMode::FourLead, MeasurementPointSet::Eight) => {
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(BioImpedanceLeadMode::FourLead, SweepPoints::Eight) => {
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info!("Start impedance spectroscopy 4-lead with 8 points");
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info!("Start impedance spectroscopy 4-lead with 8 points");
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency4Lead(rqst.points);
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency4Lead(rqst.points);
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const SIZE: usize = 8;
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const SIZE: usize = 8;
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@@ -338,7 +338,7 @@ pub async fn start_sweep_impedance_handler(context: SpawnCtx, header: VarHeader,
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periods_per_dft_18: Vec::new(),
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periods_per_dft_18: Vec::new(),
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})
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})
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}
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}
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(BioImpedanceLeadMode::FourLead, MeasurementPointSet::Eighteen) => {
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(BioImpedanceLeadMode::FourLead, SweepPoints::Eighteen) => {
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info!("Start impedance spectroscopy 4-lead with 18 points");
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info!("Start impedance spectroscopy 4-lead with 18 points");
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency4Lead(rqst.points);
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context.impedance_setup.lock().await.running_mode = RunningMode::SweepFrequency4Lead(rqst.points);
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const SIZE: usize = 18;
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const SIZE: usize = 18;
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@@ -400,8 +400,8 @@ pub async fn start_sweep_impedance_handler(context: SpawnCtx, header: VarHeader,
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pub async fn stop_impedance_handler(context: &mut Context, _header: VarHeader, _rqst: ()) -> bool {
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pub async fn stop_impedance_handler(context: &mut Context, _header: VarHeader, _rqst: ()) -> bool {
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info!("Stop impedance measurement");
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info!("Stop impedance measurement");
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let was_busy = context.impedance_setup.lock().await.running_mode;
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let was_busy = context.impedance_setup.lock().await.running_mode;
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if was_busy == RunningMode::SingleFrequency2Lead || was_busy == RunningMode::SingleFrequency4Lead || was_busy == RunningMode::SweepFrequency2Lead(MeasurementPointSet::Eight) || was_busy == RunningMode::SweepFrequency2Lead(MeasurementPointSet::Eighteen) || was_busy == RunningMode::SweepFrequency4Lead(MeasurementPointSet::Eight) || was_busy == RunningMode::SweepFrequency4Lead(MeasurementPointSet::Eighteen) {
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if was_busy == RunningMode::SingleFrequency2Lead || was_busy == RunningMode::SingleFrequency4Lead || was_busy == RunningMode::SweepFrequency2Lead(SweepPoints::Eight) || was_busy == RunningMode::SweepFrequency2Lead(SweepPoints::Eighteen) || was_busy == RunningMode::SweepFrequency4Lead(SweepPoints::Eight) || was_busy == RunningMode::SweepFrequency4Lead(SweepPoints::Eighteen) {
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STOP.signal(());
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STOP.signal(());
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}
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}
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was_busy == RunningMode::SingleFrequency2Lead || was_busy == RunningMode::SingleFrequency4Lead || was_busy == RunningMode::SweepFrequency2Lead(MeasurementPointSet::Eight) || was_busy == RunningMode::SweepFrequency2Lead(MeasurementPointSet::Eighteen) || was_busy == RunningMode::SweepFrequency4Lead(MeasurementPointSet::Eight) || was_busy == RunningMode::SweepFrequency4Lead(MeasurementPointSet::Eighteen)
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was_busy == RunningMode::SingleFrequency2Lead || was_busy == RunningMode::SingleFrequency4Lead || was_busy == RunningMode::SweepFrequency2Lead(SweepPoints::Eight) || was_busy == RunningMode::SweepFrequency2Lead(SweepPoints::Eighteen) || was_busy == RunningMode::SweepFrequency4Lead(SweepPoints::Eight) || was_busy == RunningMode::SweepFrequency4Lead(SweepPoints::Eighteen)
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}
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}
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@@ -19,7 +19,7 @@ use crate::ad5940_registers::*;
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use crate::electrodes::Electrodes;
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use crate::electrodes::Electrodes;
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use bioz_icd_rs::{SingleImpedanceOutput, IcdDftNum, ImpedanceInitError, MeasurementPointSet, SweepImpedanceOutput};
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use bioz_icd_rs::{SingleImpedanceOutput, IcdDftNum, ImpedanceInitError, SweepPoints, SweepImpedanceOutput};
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use crate::icd_mapping::IntoDftnum;
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use crate::icd_mapping::IntoDftnum;
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pub static IMPEDANCE_CHANNEL_SINGLE: Channel<ThreadModeRawMutex, SingleImpedanceOutput, 50> = Channel::new();
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pub static IMPEDANCE_CHANNEL_SINGLE: Channel<ThreadModeRawMutex, SingleImpedanceOutput, 50> = Channel::new();
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@@ -35,8 +35,8 @@ pub enum RunningMode {
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None,
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None,
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SingleFrequency2Lead,
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SingleFrequency2Lead,
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SingleFrequency4Lead,
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SingleFrequency4Lead,
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SweepFrequency2Lead(MeasurementPointSet),
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SweepFrequency2Lead(SweepPoints),
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SweepFrequency4Lead(MeasurementPointSet),
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SweepFrequency4Lead(SweepPoints),
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}
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}
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pub enum RtiaCalibrated {
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pub enum RtiaCalibrated {
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@@ -221,7 +221,7 @@ impl ImpedanceSetup {
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Ok(calibration_result)
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Ok(calibration_result)
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}
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}
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async fn calibrate_rtia_multiple<const N: usize>(&mut self, number_of_points: MeasurementPointSet) -> Result<Vec<RtiaCalibrationResult, N>, ImpedanceInitError> {
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async fn calibrate_rtia_multiple<const N: usize>(&mut self, number_of_points: SweepPoints) -> Result<Vec<RtiaCalibrationResult, N>, ImpedanceInitError> {
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let mut results = Vec::<RtiaCalibrationResult, N>::new();
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let mut results = Vec::<RtiaCalibrationResult, N>::new();
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// Set DFT number based on the frequency
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// Set DFT number based on the frequency
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@@ -473,7 +473,7 @@ impl ImpedanceSetup {
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Ok(sinus_periods_per_dft)
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Ok(sinus_periods_per_dft)
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}
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}
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pub async fn init_sweep_frequency_measurement_2_lead<const N: usize>(&mut self, number_of_points: MeasurementPointSet) -> Result<heapless::Vec<f32, N>, ImpedanceInitError> {
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pub async fn init_sweep_frequency_measurement_2_lead<const N: usize>(&mut self, number_of_points: SweepPoints) -> Result<heapless::Vec<f32, N>, ImpedanceInitError> {
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// Configure LP DAC and TIA
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// Configure LP DAC and TIA
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self.common_mode_output_enable(false).await.unwrap();
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self.common_mode_output_enable(false).await.unwrap();
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@@ -600,7 +600,7 @@ impl ImpedanceSetup {
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Ok(periods_per_dft_vec)
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Ok(periods_per_dft_vec)
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}
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}
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pub async fn init_sweep_frequency_measurement_4_lead<const N: usize>(&mut self, number_of_points: MeasurementPointSet) -> Result<heapless::Vec<f32, N>, ImpedanceInitError> {
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pub async fn init_sweep_frequency_measurement_4_lead<const N: usize>(&mut self, number_of_points: SweepPoints) -> Result<heapless::Vec<f32, N>, ImpedanceInitError> {
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// Configure LP DAC and TIA
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// Configure LP DAC and TIA
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self.common_mode_output_enable(true).await.unwrap();
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self.common_mode_output_enable(true).await.unwrap();
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@@ -609,11 +609,11 @@ impl ImpedanceSetup {
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// Calibrate Rtia
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// Calibrate Rtia
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match number_of_points {
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match number_of_points {
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MeasurementPointSet::Eight => {
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SweepPoints::Eight => {
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let results = self.calibrate_rtia_multiple::<8>(number_of_points).await.unwrap();
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let results = self.calibrate_rtia_multiple::<8>(number_of_points).await.unwrap();
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self.rtia_calibrated = RtiaCalibrated::Vec8(results);
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self.rtia_calibrated = RtiaCalibrated::Vec8(results);
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},
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},
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MeasurementPointSet::Eighteen => {
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SweepPoints::Eighteen => {
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let results = self.calibrate_rtia_multiple::<18>(number_of_points).await.unwrap();
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let results = self.calibrate_rtia_multiple::<18>(number_of_points).await.unwrap();
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self.rtia_calibrated = RtiaCalibrated::Vec18(results);
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self.rtia_calibrated = RtiaCalibrated::Vec18(results);
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},
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},
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@@ -772,7 +772,7 @@ pub async fn impedance_setup_readout_task(mut pin: ExtiInput<'static>, impedance
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let mut impedance_setup = impedance_setup.lock().await;
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let mut impedance_setup = impedance_setup.lock().await;
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// Trigger the sequencer again
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// Trigger the sequencer again
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if impedance_setup.running_mode == RunningMode::SingleFrequency2Lead || impedance_setup.running_mode == RunningMode::SingleFrequency4Lead || impedance_setup.running_mode == RunningMode::SweepFrequency2Lead(MeasurementPointSet::Eight) || impedance_setup.running_mode == RunningMode::SweepFrequency2Lead(MeasurementPointSet::Eighteen) || impedance_setup.running_mode == RunningMode::SweepFrequency4Lead(MeasurementPointSet::Eight) || impedance_setup.running_mode == RunningMode::SweepFrequency4Lead(MeasurementPointSet::Eighteen) {
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if impedance_setup.running_mode == RunningMode::SingleFrequency2Lead || impedance_setup.running_mode == RunningMode::SingleFrequency4Lead || impedance_setup.running_mode == RunningMode::SweepFrequency2Lead(SweepPoints::Eight) || impedance_setup.running_mode == RunningMode::SweepFrequency2Lead(SweepPoints::Eighteen) || impedance_setup.running_mode == RunningMode::SweepFrequency4Lead(SweepPoints::Eight) || impedance_setup.running_mode == RunningMode::SweepFrequency4Lead(SweepPoints::Eighteen) {
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impedance_setup.start_measurement().await;
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impedance_setup.start_measurement().await;
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}
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}
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@@ -850,11 +850,11 @@ pub async fn impedance_setup_readout_task(mut pin: ExtiInput<'static>, impedance
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let result = calculate_impedance_2_lead(chunk.try_into().unwrap());
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let result = calculate_impedance_2_lead(chunk.try_into().unwrap());
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match points {
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match points {
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MeasurementPointSet::Eight => {
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SweepPoints::Eight => {
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impedance_output.magnitudes_8.push(result.magnitude).ok();
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impedance_output.magnitudes_8.push(result.magnitude).ok();
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impedance_output.phases_8.push(result.phase).ok();
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impedance_output.phases_8.push(result.phase).ok();
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}
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}
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MeasurementPointSet::Eighteen => {
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SweepPoints::Eighteen => {
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impedance_output.magnitudes_18.push(result.magnitude).ok();
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impedance_output.magnitudes_18.push(result.magnitude).ok();
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impedance_output.phases_18.push(result.phase).ok();
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impedance_output.phases_18.push(result.phase).ok();
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}
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}
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@@ -885,7 +885,7 @@ pub async fn impedance_setup_readout_task(mut pin: ExtiInput<'static>, impedance
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};
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};
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match (&points, &impedance_setup.rtia_calibrated) {
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match (&points, &impedance_setup.rtia_calibrated) {
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(MeasurementPointSet::Eight, RtiaCalibrated::Vec8(cal_vec)) => {
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(SweepPoints::Eight, RtiaCalibrated::Vec8(cal_vec)) => {
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// Take 4 samples per frequency point
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// Take 4 samples per frequency point
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for (i, chunk) in data_slice.chunks(4).enumerate() {
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for (i, chunk) in data_slice.chunks(4).enumerate() {
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let cal = &cal_vec[i];
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let cal = &cal_vec[i];
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@@ -895,7 +895,7 @@ pub async fn impedance_setup_readout_task(mut pin: ExtiInput<'static>, impedance
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impedance_output.phases_8.push(result.phase).ok();
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impedance_output.phases_8.push(result.phase).ok();
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}
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}
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},
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},
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(MeasurementPointSet::Eighteen, RtiaCalibrated::Vec18(cal_vec)) => {
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(SweepPoints::Eighteen, RtiaCalibrated::Vec18(cal_vec)) => {
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// Take 4 samples per frequency point
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// Take 4 samples per frequency point
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for (i, chunk) in data_slice.chunks(4).enumerate() {
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for (i, chunk) in data_slice.chunks(4).enumerate() {
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let cal = &cal_vec[i];
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let cal = &cal_vec[i];
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