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Denoising Techniques With Change-Point Approach for Wavelet-Based Power-Quality Monitoring

机译:基于小波的电能质量监测的变点法降噪技术

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摘要

A wavelet-transform (WT)-based power-quality (PQ) monitoring system captures voltage and current waveforms, when magnitudes of WT coefficients exceed the set threshold values across the scales. A lot of literatures has proposed several methods based on WT to detect and classify PQ disturbances. But a problem in the practical implementation of the wavelet-based triggering method is the presence of noise, riding on the signal. The presence of noise not only degrades the detection capability of wavelet-based PQ monitoring systems but also hinders the recovery of important information from the captured waveform for time localization and classification of the disturbances. Therefore, to enhance the performance of WT-based monitoring systems and to improve the classification accuracy of WT-based classifiers, two standard statistical hypothesis test-based denoising procedures have been proposed in this paper. Extensive tests conducted on the data obtained from simulations of a practical distribution system confirm the effectiveness of the proposed approaches in denoising of the PQ waveforms.
机译:当小波变换(WT)的幅度超过刻度上的设置阈值时,基于小波变换(WT)的电能质量(PQ)监视系统将捕获电压和电流波形。许多文献提出了几种基于WT的检测和分类PQ干扰的方法。但是,基于小波的触发方法的实际实现中的一个问题是存在于信号上的噪声的存在。噪声的存在不仅降低了基于小波的PQ监视系统的检测能力,而且还阻碍了从捕获波形中恢复重要信息以进行时间定位和干扰分类。因此,为了提高基于WT的监测系统的性能并提高基于WT的分类器的分类精度,本文提出了两种基于统计假设检验的标准去噪程序。对从实际配电系统的模拟获得的数据进行的广泛测试证实了所提出的方法在PQ波形降噪方面的有效性。

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