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A Wavelet-based Denoising Technique for Improved Monitoring and Characterization of Power Quality Disturbances

机译:基于小波的降噪技术,用于改善电能质量扰动的监测和表征

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The excellent time-frequency localization property of the wavelet transform has made it a very promising tool for detection and analysis of the power quality disturbances. Many researchers have shown the adverse effect of noise on wavelet-based power quality monitoring and demonstrated that the performance of the wavelet transform in detecting the power quality disturbance would be greatly degraded due to the difficulty of distinguishing the noise and the disturbances. Practically, the power quality signals are often mixed with electromagnetic noise. This article proposes a denoising scheme of wavelet transform coefficients in noisy environment to avoid the false alarm rate and to increase the detection capability of wavelet transform-based power quality monitoring schemes. Contrary to the threshold-based techniques used so far in the power area for denoising power quality data, the technique used in this article exploits the local structure of wavelet coefficients. The effectiveness of the proposed technique is tested and demonstrated with both simulated and actual power line disturbance data for detection of power quality disturbances; the results obtained are among the best reported in the power quality literature.
机译:小波变换出色的时频定位特性使其成为检测和分析电能质量扰动的非常有前途的工具。许多研究人员已经表明了噪声对基于小波的电能质量监测的不利影响,并表明由于难以区分噪声和干扰,小波变换在检测电能质量扰动中的性能将大大降低。实际上,电能质量信号经常与电磁噪声混合在一起。提出了一种在噪声环境下的小波变换系数去噪方案,可以避免误报率,提高基于小波变换的电能质量监测方案的检测能力。与迄今为止在功率区域中用于去除电能质量数据的基于阈值的技术相反,本文中使用的技术利用了小波系数的局部结构。通过仿真和实际电力线干扰数据测试和验证了所提出技术的有效性,以检测电能质量干扰;所获得的结果是电能质量文献中报告的最好的结果之一。

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