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Local polynomial approximation and intersection of confidence intervals for removing noise of lightning electric field measurements

机译:局部多项式逼近和置信区间的相交以消除雷电电场测量的噪声

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Lightning electric field (LEF) measurements are aperiodic signals characterized by inherent noise of different sources, i.e., it is not possible to register a noise-free signal. In the last decade, the denoising of LEF measurements has been achieved using some time-frequency representations such as short-time Fourier transform (STFT), wavelet transform (WT) and fractional Fourier transform (FRFT) without definitive results. In this paper, a denoising process applied on LEF measurements using the Local Polynomial Approximation (LPA) is proposed. The window size selection is made by combining the LPA with the intersection of confidence intervals (ICI) algorithm. Furthermore, a cross-validation criterion is used to select the optimal value of the threshold parameter in the LPA-ICI denoising method. It is shown that for different signal-to-noise ratio (SNR) values, the proposed method significantly reduces the noise present in the recorded signals. Finally, a discussion about the processed signatures in terms of some lightning electric field temporal features is performed.
机译:雷电(LEF)测量是非周期信号,其特征是不同来源的固有噪声,即无法记录无噪声信号。在过去的十年中,使用一些时频表示法(例如短时傅立叶变换(STFT),小波变换(WT)和分数傅立叶变换(FRFT))实现了LEF测量的降噪,但没有确定的结果。在本文中,提出了使用局部多项式近似(LPA)应用于LEF测量的去噪处理。窗口大小的选择是通过将LPA与置信区间的交集(ICI)算法结合在一起进行的。此外,在LPA-ICI去噪方法中,使用交叉验证标准来选择阈值参数的最佳值。结果表明,对于不同的信噪比(SNR)值,所提出的方法显着降低了记录信号中存在的噪声。最后,根据某些雷电的时间特征,对处理后的签名进行了讨论。

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