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https://github.com/wpilibsuite/allwpilib
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433 lines
13 KiB
C++
433 lines
13 KiB
C++
/*----------------------------------------------------------------------------*/
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/* Copyright (c) FIRST 2008-2016. All Rights Reserved. */
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/* Open Source Software - may be modified and shared by FRC teams. The code */
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/* must be accompanied by the FIRST BSD license file in the root directory of */
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/* the project. */
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/*----------------------------------------------------------------------------*/
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#include "AnalogInput.h"
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#include "HAL/HAL.h"
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#include "LiveWindow/LiveWindow.h"
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#include "Timer.h"
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#include "WPIErrors.h"
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#include <sstream>
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const uint8_t AnalogInput::kAccumulatorModuleNumber;
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const uint32_t AnalogInput::kAccumulatorNumChannels;
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const uint32_t AnalogInput::kAccumulatorChannels[] = {0, 1};
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/**
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* Construct an analog input.
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*
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* @param channel The channel number on the roboRIO to represent. 0-3 are
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* on-board 4-7 are on the MXP port.
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*/
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AnalogInput::AnalogInput(uint32_t channel) {
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std::stringstream buf;
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buf << "Analog Input " << channel;
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if (!SensorBase::CheckAnalogInputChannel(channel)) {
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wpi_setWPIErrorWithContext(ChannelIndexOutOfRange, buf.str());
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return;
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}
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m_channel = channel;
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HAL_PortHandle port = HAL_GetPort(channel);
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int32_t status = 0;
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m_port = HAL_InitializeAnalogInputPort(port, &status);
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if (status != 0) {
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wpi_setErrorWithContextRange(status, 0, HAL_GetNumAnalogInputs(), channel,
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HAL_GetErrorMessage(status));
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m_channel = std::numeric_limits<uint32_t>::max();
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m_port = HAL_kInvalidHandle;
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return;
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}
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LiveWindow::GetInstance()->AddSensor("AnalogInput", channel, this);
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HAL_Report(HALUsageReporting::kResourceType_AnalogChannel, channel);
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}
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/**
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* Channel destructor.
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*/
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AnalogInput::~AnalogInput() {
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HAL_FreeAnalogInputPort(m_port);
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m_port = HAL_kInvalidHandle;
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}
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/**
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* Get a sample straight from this channel.
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*
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* The sample is a 12-bit value representing the 0V to 5V range of the A/D
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* converter in the module. The units are in A/D converter codes. Use
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* GetVoltage() to get the analog value in calibrated units.
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*
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* @return A sample straight from this channel.
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*/
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int32_t AnalogInput::GetValue() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int32_t value = HAL_GetAnalogValue(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return value;
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}
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/**
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* Get a sample from the output of the oversample and average engine for this
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* channel.
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*
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* The sample is 12-bit + the bits configured in SetOversampleBits().
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* The value configured in SetAverageBits() will cause this value to be averaged
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* 2**bits number of samples.
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* This is not a sliding window. The sample will not change until
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* 2**(OversampleBits + AverageBits) samples
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* have been acquired from the module on this channel.
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* Use GetAverageVoltage() to get the analog value in calibrated units.
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*
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* @return A sample from the oversample and average engine for this channel.
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*/
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int32_t AnalogInput::GetAverageValue() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int32_t value = HAL_GetAnalogAverageValue(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return value;
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}
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/**
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* Get a scaled sample straight from this channel.
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*
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* The value is scaled to units of Volts using the calibrated scaling data from
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* GetLSBWeight() and GetOffset().
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*
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* @return A scaled sample straight from this channel.
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*/
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float AnalogInput::GetVoltage() const {
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if (StatusIsFatal()) return 0.0f;
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int32_t status = 0;
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float voltage = HAL_GetAnalogVoltage(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return voltage;
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}
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/**
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* Get a scaled sample from the output of the oversample and average engine for
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* this channel.
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*
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* The value is scaled to units of Volts using the calibrated scaling data from
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* GetLSBWeight() and GetOffset().
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* Using oversampling will cause this value to be higher resolution, but it will
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* update more slowly.
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* Using averaging will cause this value to be more stable, but it will update
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* more slowly.
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*
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* @return A scaled sample from the output of the oversample and average engine
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* for this channel.
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*/
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float AnalogInput::GetAverageVoltage() const {
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if (StatusIsFatal()) return 0.0f;
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int32_t status = 0;
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float voltage = HAL_GetAnalogAverageVoltage(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return voltage;
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}
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/**
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* Get the factory scaling least significant bit weight constant.
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*
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* Volts = ((LSB_Weight * 1e-9) * raw) - (Offset * 1e-9)
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*
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* @return Least significant bit weight.
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*/
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int32_t AnalogInput::GetLSBWeight() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int32_t lsbWeight = HAL_GetAnalogLSBWeight(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return lsbWeight;
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}
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/**
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* Get the factory scaling offset constant.
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*
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* Volts = ((LSB_Weight * 1e-9) * raw) - (Offset * 1e-9)
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*
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* @return Offset constant.
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*/
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int32_t AnalogInput::GetOffset() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int32_t offset = HAL_GetAnalogOffset(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return offset;
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}
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/**
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* Get the channel number.
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*
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* @return The channel number.
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*/
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uint32_t AnalogInput::GetChannel() const {
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if (StatusIsFatal()) return 0;
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return m_channel;
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}
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/**
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* Set the number of averaging bits.
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*
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* This sets the number of averaging bits. The actual number of averaged samples
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* is 2^bits.
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* Use averaging to improve the stability of your measurement at the expense of
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* sampling rate.
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* The averaging is done automatically in the FPGA.
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*
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* @param bits Number of bits of averaging.
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*/
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void AnalogInput::SetAverageBits(int32_t bits) {
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if (StatusIsFatal()) return;
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int32_t status = 0;
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HAL_SetAnalogAverageBits(m_port, bits, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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}
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/**
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* Get the number of averaging bits previously configured.
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*
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* This gets the number of averaging bits from the FPGA. The actual number of
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* averaged samples is 2^bits. The averaging is done automatically in the FPGA.
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*
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* @return Number of bits of averaging previously configured.
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*/
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int32_t AnalogInput::GetAverageBits() const {
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int32_t status = 0;
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int32_t averageBits = HAL_GetAnalogAverageBits(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return averageBits;
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}
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/**
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* Set the number of oversample bits.
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*
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* This sets the number of oversample bits. The actual number of oversampled
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* values is 2^bits. Use oversampling to improve the resolution of your
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* measurements at the expense of sampling rate. The oversampling is done
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* automatically in the FPGA.
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*
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* @param bits Number of bits of oversampling.
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*/
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void AnalogInput::SetOversampleBits(int32_t bits) {
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if (StatusIsFatal()) return;
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int32_t status = 0;
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HAL_SetAnalogOversampleBits(m_port, bits, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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}
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/**
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* Get the number of oversample bits previously configured.
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*
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* This gets the number of oversample bits from the FPGA. The actual number of
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* oversampled values is 2^bits. The oversampling is done automatically in the
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* FPGA.
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*
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* @return Number of bits of oversampling previously configured.
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*/
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int32_t AnalogInput::GetOversampleBits() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int32_t oversampleBits = HAL_GetAnalogOversampleBits(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return oversampleBits;
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}
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/**
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* Is the channel attached to an accumulator.
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*
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* @return The analog input is attached to an accumulator.
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*/
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bool AnalogInput::IsAccumulatorChannel() const {
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if (StatusIsFatal()) return false;
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int32_t status = 0;
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bool isAccum = HAL_IsAccumulatorChannel(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return isAccum;
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}
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/**
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* Initialize the accumulator.
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*/
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void AnalogInput::InitAccumulator() {
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if (StatusIsFatal()) return;
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m_accumulatorOffset = 0;
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int32_t status = 0;
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HAL_InitAccumulator(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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}
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/**
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* Set an initial value for the accumulator.
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*
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* This will be added to all values returned to the user.
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*
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* @param initialValue The value that the accumulator should start from when
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* reset.
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*/
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void AnalogInput::SetAccumulatorInitialValue(int64_t initialValue) {
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if (StatusIsFatal()) return;
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m_accumulatorOffset = initialValue;
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}
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/**
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* Resets the accumulator to the initial value.
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*/
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void AnalogInput::ResetAccumulator() {
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if (StatusIsFatal()) return;
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int32_t status = 0;
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HAL_ResetAccumulator(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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if (!StatusIsFatal()) {
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// Wait until the next sample, so the next call to GetAccumulator*()
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// won't have old values.
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const float sampleTime = 1.0f / GetSampleRate();
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const float overSamples = 1 << GetOversampleBits();
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const float averageSamples = 1 << GetAverageBits();
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Wait(sampleTime * overSamples * averageSamples);
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}
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}
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/**
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* Set the center value of the accumulator.
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*
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* The center value is subtracted from each A/D value before it is added to the
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* accumulator. This is used for the center value of devices like gyros and
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* accelerometers to take the device offset into account when integrating.
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*
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* This center value is based on the output of the oversampled and averaged
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* source from the accumulator channel. Because of this, any non-zero
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* oversample bits will affect the size of the value for this field.
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*/
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void AnalogInput::SetAccumulatorCenter(int32_t center) {
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if (StatusIsFatal()) return;
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int32_t status = 0;
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HAL_SetAccumulatorCenter(m_port, center, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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}
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/**
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* Set the accumulator's deadband.
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*/
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void AnalogInput::SetAccumulatorDeadband(int32_t deadband) {
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if (StatusIsFatal()) return;
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int32_t status = 0;
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HAL_SetAccumulatorDeadband(m_port, deadband, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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}
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/**
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* Read the accumulated value.
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*
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* Read the value that has been accumulating.
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* The accumulator is attached after the oversample and average engine.
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*
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* @return The 64-bit value accumulated since the last Reset().
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*/
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int64_t AnalogInput::GetAccumulatorValue() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int64_t value = HAL_GetAccumulatorValue(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return value + m_accumulatorOffset;
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}
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/**
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* Read the number of accumulated values.
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*
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* Read the count of the accumulated values since the accumulator was last
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* Reset().
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*
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* @return The number of times samples from the channel were accumulated.
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*/
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int64_t AnalogInput::GetAccumulatorCount() const {
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if (StatusIsFatal()) return 0;
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int32_t status = 0;
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int64_t count = HAL_GetAccumulatorCount(m_port, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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return count;
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}
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/**
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* Read the accumulated value and the number of accumulated values atomically.
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*
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* This function reads the value and count from the FPGA atomically.
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* This can be used for averaging.
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*
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* @param value Reference to the 64-bit accumulated output.
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* @param count Reference to the number of accumulation cycles.
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*/
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void AnalogInput::GetAccumulatorOutput(int64_t& value, int64_t& count) const {
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if (StatusIsFatal()) return;
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int32_t status = 0;
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HAL_GetAccumulatorOutput(m_port, &value, &count, &status);
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wpi_setErrorWithContext(status, HAL_GetErrorMessage(status));
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value += m_accumulatorOffset;
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}
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/**
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* Set the sample rate per channel for all analog channels.
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*
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* The maximum rate is 500kS/s divided by the number of channels in use.
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* This is 62500 samples/s per channel.
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*
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* @param samplesPerSecond The number of samples per second.
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*/
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void AnalogInput::SetSampleRate(float samplesPerSecond) {
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int32_t status = 0;
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HAL_SetAnalogSampleRate(samplesPerSecond, &status);
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wpi_setGlobalErrorWithContext(status, HAL_GetErrorMessage(status));
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}
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/**
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* Get the current sample rate for all channels
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*
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* @return Sample rate.
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*/
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float AnalogInput::GetSampleRate() {
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int32_t status = 0;
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float sampleRate = HAL_GetAnalogSampleRate(&status);
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wpi_setGlobalErrorWithContext(status, HAL_GetErrorMessage(status));
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return sampleRate;
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}
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/**
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* Get the Average value for the PID Source base object.
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*
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* @return The average voltage.
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*/
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double AnalogInput::PIDGet() {
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if (StatusIsFatal()) return 0.0;
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return GetAverageVoltage();
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}
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void AnalogInput::UpdateTable() {
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if (m_table != nullptr) {
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m_table->PutNumber("Value", GetAverageVoltage());
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}
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}
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void AnalogInput::StartLiveWindowMode() {}
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void AnalogInput::StopLiveWindowMode() {}
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std::string AnalogInput::GetSmartDashboardType() const {
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return "Analog Input";
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}
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void AnalogInput::InitTable(std::shared_ptr<ITable> subTable) {
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m_table = subTable;
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UpdateTable();
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}
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std::shared_ptr<ITable> AnalogInput::GetTable() const { return m_table; }
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