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doc: add issues summary
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@ -68,6 +68,7 @@ float ppmCH4 = MQ4.readSensor();
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* AO -> Analog Output of the sensor
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##### Data of board that you should have
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* RL Value in KOhms
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* If the sensor uses a different supply voltage than the ADC reference, call `yourSensor.setVCC(<voltage>);`
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##### Graph
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#### RS/R0 value (From datasheet of your sensor)
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@ -173,6 +174,10 @@ Examples/MQ-board.ino
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* [Data sheets](https://github.com/miguel5612/MQSensorsLib_Docs/tree/master/Datasheets) - Curves and behavior for each sensor, using logarithmic graphs.
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* [Main purpose](https://github.com/miguel5612/MQSensorsLib_Docs/blob/master/static/img/bg.jpg) - Every sensor has high sensibility for a specific gas or material.
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## Issues
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Consulte [docs/issues.md](docs/issues.md) para un resumen de los problemas abiertos y sus soluciones.
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## Contributing
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Please read [CONTRIBUTING.md](https://github.com/miguel5612/MQSensorsLib/blob/master/CONTRIBUTING.md) for details on our code of conduct, and the process for submitting pull requests to us.
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docs/issues.md
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docs/issues.md
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@ -0,0 +1,31 @@
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# Issues y soluciones
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Este documento resume los problemas reportados en el repositorio y las soluciones propuestas o implementadas.
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## Abiertos
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### #75 MQ-3 sensor and CH4 gas reading 'ovf' failure
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**Estado:** abierto
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El usuario reporta desbordamiento ("ovf") al utilizar valores muy altos en `setA` y `setB` para leer CH4 con un sensor MQ-3. La solución propuesta es revisar los valores utilizados en `setA` y `setB`, ya que `2*10^31` en C++ no corresponde a `2e31`. Se recomienda usar notación exponencial (`2e31`) o `pow(10,31)` y comprobar que los parámetros no excedan el rango de `float`.
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### #74 possible error in the calculation formula for `_RS_Calc`
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**Estado:** resuelto en la rama `work`
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Se detectó que la resistencia del sensor se calculaba con `_VOLT_RESOLUTION` en lugar del voltaje de alimentación real. Se añadieron los métodos `setVCC` y `getVCC` y se modificaron las ecuaciones para usar `VCC`. Esta corrección se refleja en la versión 3.0.1 de la biblioteca.
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### #70 Parameters to model temperature and humidity dependence
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**Estado:** abierto
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Los usuarios solicitan factores de corrección para temperatura y humedad aplicables a otros sensores (MQ-4 y MQ-8) además del MQ-135. Aún no se han añadido estos parámetros. Se anima a la comunidad a contribuir con implementaciones y ejemplos.
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### #67 Sensor won't finish the Calibration process if done in clean air
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**Estado:** abierto
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Se reporta que la calibración se detiene mostrando un mensaje de "Conection issue" cuando se intenta calibrar el sensor MQ-135 en aire limpio. La recomendación del mantenedor es revisar la conexión física y probar el sensor con un programa básico para asegurar su correcto funcionamiento antes de usar la librería. Aún no se ha implementado un cambio en el código.
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## Cerrados destacados
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Para obtener más información sobre todos los issues cerrados, consulte la página de [Issues en GitHub](https://github.com/miguel5612/MQSensorsLib/issues?q=is%3Aissue+is%3Aclosed).
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@ -1,5 +1,5 @@
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name=MQUnifiedsensor
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version=3.0.0
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version=3.0.1
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author= Miguel Califa <miguelangel5612@gmail.com>, Yersson Carrillo<miguelangel5612@gmail.com>, Ghiordy Contreras<miguelangel5612@gmail.com>
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maintainer= Miguel Califa <miguelangel5612@gmail.com>
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sentence= This library allows you to read the MQ sensors very easily.
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@ -10,6 +10,7 @@ MQUnifiedsensor::MQUnifiedsensor(String Placa, float Voltage_Resolution, int ADC
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//this->_type = type; //MQ-2, MQ-3 ... MQ-309A
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//this->_placa = Placa;
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this-> _VOLT_RESOLUTION = Voltage_Resolution;
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this-> _VCC = Voltage_Resolution;
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this-> _ADC_Bit_Resolution = ADC_Bit_Resolution;
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}
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MQUnifiedsensor::MQUnifiedsensor(String Placa, String type) {
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@ -41,6 +42,10 @@ void MQUnifiedsensor::setVoltResolution(float voltage_resolution)
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{
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_VOLT_RESOLUTION = voltage_resolution;
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}
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void MQUnifiedsensor::setVCC(float vcc)
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{
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_VCC = vcc;
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}
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void MQUnifiedsensor::setPin(int pin) {
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this->_pin = pin;
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}
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@ -59,6 +64,10 @@ float MQUnifiedsensor::getVoltResolution()
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{
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return _VOLT_RESOLUTION;
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}
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float MQUnifiedsensor::getVCC()
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{
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return _VCC;
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}
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String MQUnifiedsensor::getRegressionMethod()
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{
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if(_regressionMethod == 1) return "Exponential";
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@ -85,7 +94,8 @@ void MQUnifiedsensor::serialDebug(bool onSetup)
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Serial.println("Contributors: Andres A. Martinez - Juan A. Rodríguez - Mario A. Rodríguez O ");
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Serial.print("Sensor: "); Serial.println(_type);
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Serial.print("Supply voltage: "); Serial.print(_VOLT_RESOLUTION); Serial.println(" VDC");
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Serial.print("ADC voltage: "); Serial.print(_VOLT_RESOLUTION); Serial.println(" VDC");
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Serial.print("Sensor supply (VCC): "); Serial.print(_VCC); Serial.println(" VDC");
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Serial.print("ADC Resolution: "); Serial.print(_ADC_Bit_Resolution); Serial.println(" Bits");
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Serial.print("R0: "); Serial.print(_R0); Serial.println(" KΩ");
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Serial.print("RL: "); Serial.print(_RL); Serial.println(" KΩ");
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@ -106,7 +116,7 @@ void MQUnifiedsensor::serialDebug(bool onSetup)
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else
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{
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Serial.print("|"); Serial.print(_adc); Serial.print("| v = ADC*"); Serial.print(_VOLT_RESOLUTION); Serial.print("/"); Serial.print((pow(2, _ADC_Bit_Resolution)) - 1); Serial.print(" | "); Serial.print(_sensor_volt);
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Serial.print(" | RS = ((" ); Serial.print(_VOLT_RESOLUTION ); Serial.print("*RL)/Voltage) - RL| "); Serial.print(_RS_Calc); Serial.print(" | Ratio = RS/R0| ");
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Serial.print(" | RS = ((" ); Serial.print(_VCC ); Serial.print("*RL)/Voltage) - RL| "); Serial.print(_RS_Calc); Serial.print(" | Ratio = RS/R0| ");
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Serial.print(_ratio); Serial.print( " | ");
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if(_regressionMethod == 1) Serial.print("ratio*a + b");
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else Serial.print("pow(10, (log10(ratio)-b)/a)");
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@ -145,7 +155,7 @@ float MQUnifiedsensor::readSensor(bool isMQ303A, float correctionFactor, bool in
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if(isMQ303A) {
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_VOLT_RESOLUTION = _VOLT_RESOLUTION - 0.45; //Calculations for RS using mq303a sensor look wrong #42
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}
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_RS_Calc = ((_VOLT_RESOLUTION*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
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_RS_Calc = ((_VCC*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
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if(_RS_Calc < 0) _RS_Calc = 0; //No negative values accepted.
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if(!injected) _ratio = _RS_Calc / this->_R0; // Get ratio RS_gas/RS_air
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_ratio += correctionFactor;
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@ -164,7 +174,7 @@ float MQUnifiedsensor::readSensor(bool isMQ303A, float correctionFactor, bool in
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float MQUnifiedsensor::readSensorR0Rs()
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{
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//More explained in: https://jayconsystems.com/blog/understanding-a-gas-sensor
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_RS_Calc = ((_VOLT_RESOLUTION*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
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_RS_Calc = ((_VCC*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
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if(_RS_Calc < 0) _RS_Calc = 0; //No negative values accepted.
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_ratio = this->_R0/_RS_Calc; // Get ratio RS_air/RS_gas <- INVERTED for MQ-131 issue 28 https://github.com/miguel5612/MQSensorsLib/issues/28
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if(_ratio <= 0) _ratio = 0; //No negative values accepted or upper datasheet recomendation.
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@ -194,7 +204,7 @@ float MQUnifiedsensor::calibrate(float ratioInCleanAir) {
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*/
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float RS_air; //Define variable for sensor resistance
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float R0; //Define variable for R0
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RS_air = ((_VOLT_RESOLUTION*_RL)/_sensor_volt)-_RL; //Calculate RS in fresh air
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RS_air = ((_VCC*_RL)/_sensor_volt)-_RL; //Calculate RS in fresh air
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if(RS_air < 0) RS_air = 0; //No negative values accepted.
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R0 = RS_air/ratioInCleanAir; //Calculate R0
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if(R0 < 0) R0 = 0; //No negative values accepted.
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@ -231,7 +241,7 @@ float MQUnifiedsensor:: setRsR0RatioGetPPM(float value)
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float MQUnifiedsensor::getRS()
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{
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//More explained in: https://jayconsystems.com/blog/understanding-a-gas-sensor
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_RS_Calc = ((_VOLT_RESOLUTION*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
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_RS_Calc = ((_VCC*_RL)/_sensor_volt)-_RL; //Get value of RS in a gas
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if(_RS_Calc < 0) _RS_Calc = 0; //No negative values accepted.
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return _RS_Calc;
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}
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@ -22,6 +22,7 @@ class MQUnifiedsensor
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void setB(float b);
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void setRegressionMethod(int regressionMethod);
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void setVoltResolution(float voltage_resolution = 5);
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void setVCC(float vcc = 5);
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void setPin(int pin = 1);
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void serialDebug(bool onSetup = false); //Show on serial port information about sensor
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void setADC(int value); //For external ADC Usage
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@ -38,6 +39,7 @@ class MQUnifiedsensor
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float getR0();
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float getRL();
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float getVoltResolution();
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float getVCC();
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String getRegressionMethod();
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float getVoltage(bool read = true, bool injected = false, int value = 0);
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float stringTofloat(String & str);
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@ -51,6 +53,7 @@ class MQUnifiedsensor
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byte _pin = 1;
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byte _firstFlag = false;
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float _VOLT_RESOLUTION = 5.0; // if 3.3v use 3.3
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float _VCC = 5.0; // Sensor supply voltage
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float _RL = 10; //Value in KiloOhms
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byte _ADC_Bit_Resolution = 10;
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byte _regressionMethod = 1; // 1 -> Exponential || 2 -> Linear
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