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A Multi-Fault Diagnosis Method for Sensor Systems Based on Principle Component Analysis

机译:基于主成分分析的传感器系统多故障诊断方法

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摘要

A model based on PCA (principal component analysis) and a neural network is proposed for the multi-fault diagnosis of sensor systems. Firstly, predicted values of sensors are computed by using historical data measured under fault-free conditions and a PCA model. Secondly, the squared prediction error (SPE) of the sensor system is calculated. A fault can then be detected when the SPE suddenly increases. If more than one sensor in the system is out of order, after combining different sensors and reconstructing the signals of combined sensors, the SPE is calculated to locate the faulty sensors. Finally, the feasibility and effectiveness of the proposed method is demonstrated by simulation and comparison studies, in which two sensors in the system are out of order at the same time.
机译:提出了一种基于PCA(主成分分析)和神经网络的传感器系统多故障诊断模型。首先,通过使用在无故障条件下测量的历史数据和PCA模型来计算传感器的预测值。其次,计算传感器系统的平方预测误差(SPE)。当SPE突然增加时,可以检测到故障。如果系统中有多个传感器出现故障,则在组合不同的传感器并重建组合的传感器的信号之后,将计算SPE以定位故障传感器。最后,通过仿真和比较研究证明了该方法的可行性和有效性,其中系统中的两个传感器同时出现故障。

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  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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