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Information fusion feature preprocessor based on FRFT for analog circuits fault diagnosis

机译:基于FRFT的信息融合特征预处理器在模拟电路故障诊断中的应用

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This paper presents a new fault feature preprocessor method for analog circuit fault diagnosis. An information fusion method based on fractional Fourier transform (FRFT) is introduced to extract features from voltages of the circuit under test (CUT). Firstly, the voltage signals gathered from test nodes of the CUT are preprocessed by FRFT, the fractional order p of the FRFT changes from 0 to 1 with a given step. Then, we gain the amplitudes of the transformed signals in fractional space and extract the mutual information entropies as features by a defined division scale. After normalization, the extracted features are used to train a neural network to diagnose faulty components in the CUT. The proposed feature preprocessor method is applied to two CUTs and is compared with three ordinary preprocessing methods in analog circuit fault diagnosis. The experiment results reveal that the proposed method can simplify the structure of the network and improve the diagnosis performance.
机译:本文提出了一种用于模拟电路故障诊断的故障特征预处理器新方法。引入了一种基于分数阶傅里叶变换(FRFT)的信息融合方法,以从被测电路(CUT)的电压中提取特征。首先,通过FTFT对从CUT的测试节点收集的电压信号进行预处理,FRFT的小数阶p从0变为1。然后,我们获得分数空间中变换信号的幅度,并通过定义的划分尺度提取互信息熵作为特征。标准化后,提取的特征将用于训练神经网络以诊断CUT中的故障组件。所提出的特征预处理方法应用于两个CUT,并与三种常规预处理方法进行了模拟电路故障诊断。实验结果表明,该方法可以简化网络结构,提高诊断性能。

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