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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >The Research of Temperature Compensation for Thermopile Sensor Based on Improved PSO-BP Algorithm
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The Research of Temperature Compensation for Thermopile Sensor Based on Improved PSO-BP Algorithm

机译:基于改进的PSO-BP算法的热电堆温度补偿研究

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When thermopile sensor is used for safety monitoring of equipment in industrial environments, particularly for measuring the thermal radiation information of device, the measured result of this kind of sensor is usually affected by ambient temperature due to its unique structure. An improved PSO-BP algorithm is proposed for temperature compensation of thermopile sensor and correcting the error in the condition of the system accuracy requirements reduced by temperature. The core of improved PSO-BP algorithm is to improve the certainty of initial weights and thresholds that belonged to BP neural network and then train the samples by using BP neural network for enhancing the generalization ability and stability of system. The experimental results show that the proposed PSO-BP network outperforms other similar algorithms with faster convergence speed, lower errors, and higher accuracy.
机译:当热电堆传感器用于工业环境中设备的安全监控时,尤其是用于测量设备的热辐射信息时,由于其独特的结构,这种传感器的测量结果通常会受到环境温度的影响。提出了一种改进的PSO-BP算法,用于热电堆传感器的温度补偿,并在温度降低系统精度要求的情况下校正误差。改进的PSO-BP算法的核心是提高属于BP神经网络的初始权重和阈值的确定性,然后使用BP神经网络训练样本,以增强系统的泛化能力和稳定性。实验结果表明,所提出的PSO-BP网络具有更快的收敛速度,更低的误差和更高的精度,优于其他类似算法。

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