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Feature extraction of anode effect based on digital filter and local mean decomposition

机译:基于数字滤波器和局部均值分解的阳极效应特征提取

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The fault signal is a non-stationary and nonlinear signal, and because of the complexity of the field environment, the fault signal often has a lot of noise interference. In order to reduce the noise interference to the greatest extent, a feature extraction method based on digital filter and the local mean decomposition is proposed. Firstly, the Fourier transform is used to obtain the dominant frequency of the signals. Then, an IIR low-pass digital filter is designed to achieve the effect of noise reduction. Finally, the de-noised signal is decomposed by local mean decomposition. Every component PF can be represented as the product of the envelope signals and the frequency modulated signals. The component PF1 containing the highest power is selected to conduct energy spectrum analysis, and the fault features are exacted. The results show that the method can effectively extract the fault features, proving the feasibility of the proposed method.
机译:故障信号是非平稳且非线性的信号,并且由于现场环境的复杂性,故障信号通常具有很大的噪声干扰。为了最大程度地减少噪声干扰,提出了一种基于数字滤波器和局部均值分解的特征提取方法。首先,使用傅立叶变换获得信号的主频。然后,设计了IIR低​​通数字滤波器以实现降噪效果。最后,通过局部均值分解对降噪后的信号进行分解。每个分量PF可以表示为包络信号和调频信号的乘积。选择包含最高功率的组件PF1进行能谱分析,并精确确定故障特征。结果表明,该方法可以有效地提取故障特征,证明了该方法的可行性。

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