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  • https://doi.org/10.1007/978-981-16-7011-4_32Copy DOI Icon

An Intelligent Temperature Sensor with Non-linearity Compensation Using Convolutional Neural Network

  • Jan 1, 2022
  • Nancy Kumari +1 more
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Abstract

Abstract Thermocouple has immense application in industrial measurement, testing, and research laboratories. However, its non-linearity affects the measurement adversely at larger range (0–1800 °C) of temperature. Non-linearity makes the measurement less accurate, less precise, and less robust. This paper proposes two neural network approaches, namely back propagation neural network and convolutional neural network for linearization of the characteristics of the thermocouple to study the advantages of software linearization method over real-time linearizing circuits whose performance degrades over time. By using these methods, the weights are adjusted to train the neural network for the desired output. The error between train and tested outputs is 0.0428% by back propagation network, and it is 0.0397% with convolutional neural network. It is observed that convolutional neural network shows 7.24% of better accuracy by training when compared with back propagation neural network. Non-linearity gets reduced by 61.37% compared to the original characteristics of the thermocouple by using convolutional neural network.KeywordsArtificial neural networkBack propagationConvolutionLinearizationTemperature measurementThermocouple

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