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255 lines
5.6 KiB
C++
255 lines
5.6 KiB
C++
/*
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* Author: Jon Trulson <jtrulson@ics.com>
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* Copyright (c) 2016 Intel Corporation.
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*
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* Permission is hereby granted, free of charge, to any person obtaining
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* a copy of this software and associated documentation files (the
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* "Software"), to deal in the Software without restriction, including
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* without limitation the rights to use, copy, modify, merge, publish,
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* distribute, sublicense, and/or sell copies of the Software, and to
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* permit persons to whom the Software is furnished to do so, subject to
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* the following conditions:
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*
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* The above copyright notice and this permission notice shall be
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* included in all copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
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* EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
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* MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
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* NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE
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* LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
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* OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
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* WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
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*/
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#include <unistd.h>
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#include <assert.h>
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#include <errno.h>
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#include <iostream>
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#include <stdexcept>
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#include <string>
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#include "t8100.hpp"
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using namespace upm;
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using namespace std;
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// conversion from fahrenheit to celsius and back
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static float f2c(float f)
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{
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return ((f - 32.0) / (9.0 / 5.0));
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}
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static float c2f(float c)
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{
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return (c * (9.0 / 5.0) + 32.0);
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}
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T8100::T8100(uint32_t targetDeviceObjectID) :
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BACNETUTIL(targetDeviceObjectID)
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{
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setDebug(false);
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// we disable this by default for performance reasons
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checkReliability(false);
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m_isTempInitialized = false;
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m_isCelsius = false;
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m_humidity = 0.0;
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m_temperature = 0.0;
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m_co2 = 0.0;
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m_relayState = false;
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}
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T8100::~T8100()
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{
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}
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void T8100::update()
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{
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if (!m_isTempInitialized)
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{
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// this will update internals so conversions work properly
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getTemperatureScale();
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}
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float tmpF = getAnalogInput(AI_Temperature_Thermistor);
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if (m_isCelsius)
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m_temperature = tmpF;
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else
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m_temperature = f2c(tmpF);
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m_humidity = getAnalogInput(AI_Relative_Humidity);
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m_co2 = getAnalogInput(AI_CO2);
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m_relayState = getBinaryInput(BI_Relay_State);
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}
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float T8100::getTemperature(bool fahrenheit)
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{
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if (fahrenheit)
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return c2f(m_temperature);
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else
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return m_temperature;
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}
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void T8100::setTemperatureScale(bool fahrenheit)
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{
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setBinaryValue(BV_Temperature_Units, fahrenheit);
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m_isTempInitialized = true;
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m_isCelsius = (fahrenheit) ? false : true;
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}
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bool T8100::getTemperatureScale()
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{
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bool scale = getBinaryValue(BV_Temperature_Units);
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m_isTempInitialized = true;
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m_isCelsius = !scale;
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return scale;
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}
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float T8100::getTemperatureOffset()
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{
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return getAnalogValue(AV_Temperature_Offset);
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}
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void T8100::setTemperatureOffset(float value)
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{
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// Always in C...
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if (value < -50.0 || value > 50.0)
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{
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throw std::out_of_range(std::string(__FUNCTION__)
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+ ": value must be between -50 and 50,"
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+ " in degrees Celsius");
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}
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setAnalogValue(AV_Temperature_Offset, value);
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}
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float T8100::getHumidityOffset()
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{
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return getAnalogValue(AV_RH_Offset);
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}
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void T8100::setHumidityOffset(float value)
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{
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if (value < -100.0 || value > 100.0)
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{
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throw std::out_of_range(std::string(__FUNCTION__)
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+ ": value must be between -100 and 100");
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}
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setAnalogValue(AV_RH_Offset, value);
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}
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float T8100::getRelaySetPoint()
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{
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return getAnalogValue(AV_Relay_Set_Point);
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}
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void T8100::setRelaySetPoint(float value)
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{
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if (value < 0.00 || value > 65535.0)
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{
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throw std::out_of_range(std::string(__FUNCTION__)
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+ ": value must be between 0 and 65535");
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}
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setAnalogValue(AV_Relay_Set_Point, value);
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}
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float T8100::getRelayHysteresis()
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{
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return getAnalogValue(AV_Relay_Hysteresis);
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}
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void T8100::setRelayHysteresis(float value)
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{
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if (value < 0.00 || value > 65535.0)
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{
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throw std::out_of_range(std::string(__FUNCTION__)
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+ ": value must be between 0 and 65535");
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}
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setAnalogValue(AV_Relay_Hysteresis, value);
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}
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float T8100::getElevation()
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{
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return getAnalogValue(AV_Elevation);
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}
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void T8100::setElevation(float value)
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{
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if (value < 0.00 || value > 65535.0)
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{
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throw std::out_of_range(std::string(__FUNCTION__)
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+ ": value must be between 0 and 65535");
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}
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setAnalogValue(AV_Elevation, value);
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}
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float T8100::getCalibrationSinglePoint()
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{
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return getAnalogValue(AV_Calibration_Single_Point);
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}
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void T8100::setCalibrationSinglePoint(float value)
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{
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if (value < 0.00 || value > 65535.0)
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{
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throw std::out_of_range(std::string(__FUNCTION__)
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+ ": value must be between 0 and 65535");
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}
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setAnalogValue(AV_Calibration_Single_Point, value);
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}
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float T8100::getBaudRate()
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{
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return getAnalogValue(AV_Baud_Rate);
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}
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float T8100::getMACAddress()
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{
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return getAnalogValue(AV_MAC_Address);
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}
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bool T8100::getABCLogicState()
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{
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return getBinaryValue(BV_ABC_Logic_State);
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}
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void T8100::setABCLogicState(bool value)
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{
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setBinaryValue(BV_ABC_Logic_State, value);
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}
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bool T8100::getABCLogicReset()
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{
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return getBinaryValue(BV_ABC_Logic_Reset);
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}
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void T8100::setABCLogicReset(bool value)
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{
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setBinaryValue(BV_ABC_Logic_Reset, value);
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}
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bool T8100::getCO2Calibration()
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{
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return getBinaryValue(BV_CO2_Calibration);
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}
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void T8100::setCO2Calibration(bool value)
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{
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setBinaryValue(BV_CO2_Calibration, value);
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}
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