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Wavelet de-noising of partial discharge signals based on genetic adaptive threshold estimation

机译:基于遗传自适应阈值估计的局部放电信号的小波消噪

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摘要

Wavelet shrinkage is efficient for de-noising the partial discharge (PD) detection. An improved wavelet de-noising approach for PD online measurement is presented. The wavelet de-noising approach is based on a genetic adaptive threshold estimation (GATE) scheme. The thresholding functions with continuous derivatives are used for the GATE scheme. A genetic algorithm is used to obtain global optimum thresholds of the GATE, and to improve the robustness and computation speed of the adaptive threshold estimation. De-noising experiments of simulative high-frequency PD signals, actual PD ultra-high-frequency (UHF) signals, and a field detected PD signal are presented. The GATE generates significantly smaller waveform distortion and magnitude errors than the Donoho's soft threshold estimation.
机译:小波收缩对于消除局部放电(PD)检测的噪声非常有效。提出了一种用于PD在线测量的改进的小波消噪方法。小波消噪方法基于遗传自适应阈值估计(GATE)方案。具有连续导数的阈值函数用于GATE方案。遗传算法用于获得GATE的全局最优阈值,并提高自适应阈值估计的鲁棒性和计算速度。提出了模拟高频PD信号,实际PD超高频(UHF)信号和现场检测到的PD信号的去噪实验。与Donoho的软阈值估计相比,GATE产生的波形失真和幅度误差要小得多。

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