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Energy conservation-based thresholding for effective wavelet denoising of partial discharge signals

机译:基于能量守恒的阈值,用于局部放电信号的有效小波去噪

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摘要

Recent studies have shown that wavelet transform can effectively be used for noise reduction in the context of partial discharge (PD) signal detection and classification. Several thresholding approaches for wavelet denoising have been reported in the literature. In this study, a novel wavelet threshold estimation method, named energy conservation-based thresholding (ECBT), is introduced. The proposed thresholding function is capable of conserving a significant portion of the original signal energy, while the threshold value is determined based on the relative difference between the original and noisy signal energies. The proposed method is first applied to PD signals contaminated with different levels of simulated noise. Results show that ECBT produces a denoised PD signal with higher signal-to-noise ratio (SNR) and less distortion than PDs produced by the existing wavelet methods. Then, ECBT is modified to address actual PD signals corrupted with real noise, where a robust SNR estimation method is derived to estimate the noise level embedded in the measured PD signals. The denoised PD signals indicate that the proposed method yields higher reduction in noise levels than other methods.
机译:最近的研究表明,在局部放电(PD)信号检测和分类的背景下,小波变换可以有效地用于降噪。在文献中已经报道了几种用于小波去噪的阈值方法。在这项研究中,介绍了一种新的小波阈值估计方法,称为基于能量守恒的阈值(ECBT)。所提出的阈值功能能够保存原始信号能量的很大一部分,而阈值则基于原始信号能量与噪声信号能量之间的相对差来确定。所提出的方法首先应用于受不同水平的模拟噪声污染的PD信号。结果表明,与现有小波方法产生的PD相比,ECBT产生的去噪PD信号具有更高的信噪比(SNR)和更少的失真。然后,对ECBT进行修改以解决因实际噪声而损坏的实际PD信号,在此方法中,导出了一种鲁棒的SNR估计方法,以估计嵌入在测量的PD信号中的噪声水平。去噪的PD信号表明,所提出的方法比其他方法具有更高的噪声水平降低。

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