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A practically validated adaptive calibration technique for temperature measurement using resistance temperature detector

机译:使用电阻温度检测器进行温度测量的经过实践验证的自适应校准技术

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This paper presents a calibration technique for a Resistance Temperature Detector (RTD) used in measurement of temperature. Soft calibration circuit is designed using an optimized Artificial Neural Network (ANN), optimization of ANN is to choose a particular neural network scheme, algorithm, transfer function, and number of hidden layers. The objective of the present work is design an adaptive calibration circuit using optimized ANN model which produces (i) a linear output over 100% of full scale input range, (ii) accurate output even when the RTD is replaced with a different RTD (different refers to variation in parameter like reference resistance and temperature coefficient). Resistance temperature detector is cascaded to the designed neural network model through a suitable data conversion circuit. The designed system is evaluated for its performance in simulation and practical domain. Results obtained show that the set objectives are fulfilled.
机译:本文介绍了一种用于温度测量的电阻温度检测器(RTD)的校准技术。软校准电路是使用优化的人工神经网络(ANN)设计的,对ANN的优化是选择特定的神经网络方案,算法,传递函数和隐藏层数。本工作的目的是使用优化的ANN模型设计一种自适应校准电路,该电路可产生(i)超过满量程输入范围100%的线性输出,(ii)即使将RTD替换为不同的RTD(不同指参数的变化,例如参考电阻和温度系数。电阻温度检测器通过合适的数据转换电路级联到设计的神经网络模型。对设计的系统在仿真和实际领域中的性能进行了评估。获得的结果表明已达到设定的目标。

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