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Enhancement of the Comb Filtering Selectivity Using Iterative Moving Average for Periodic Waveform and Harmonic Elimination

机译:使用迭代移动平均周期波形和谐波消除增强梳状滤波选择性

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摘要

A recurring problem regarding the use of conventional comb filter approaches for elimination of periodic waveforms is the degree of selectivity achieved by the filtering process. Some applications, such as the gradient artefact correction in EEG recordings during coregistered EEG-fMRI, require a highly selective comb filtering that provides effective attenuation in the stopbands and gain close to unity in the pass-bands. In this paper, we present a novel comb filtering implementation whereby the iterative filtering application of FIR moving average-based approaches is exploited in order to enhance the comb filtering selectivity. Our results indicate that the proposed approach can be used to effectively approximate the FIR moving average filter characteristics to those of an ideal filter. A cascaded implementation using the proposed approach shows to further increase the attenuation in the filter stopbands. Moreover, broadening of the bandwidth of the comb filtering stopbands around 3 dB according to the fundamental frequency of the stopband can be achieved by the novel method, which constitutes an important characteristic to account for broadening of the harmonic gradient artefact spectral lines. In parallel, the proposed filtering implementation can also be used to design a novel notch filtering approach with enhanced selectivity as well.
机译:关于消除周期性波形的传统梳状滤波器方法的经常性问题是通过过滤过程实现的选择性程度。一些应用,例如Coregistered EEG-FMRI期间EEG记录中的梯度人工制品校正,需要高度选择性的梳状滤波,该梳状滤波,该梳理滤波,该梳理滤波在阻带中提供有效的衰减,并且在通频带中获得靠近统一的增益。在本文中,我们介绍了一种新颖的梳状滤波实现,从而利用FIR移动平均的方法的迭代过滤应用,以增强梳状滤波选择性。我们的结果表明,所提出的方法可用于有效地将FIR移动平均滤波器特性近似于理想过滤器的滤波器。使用所提出的方法的级联实现表明,进一步提高了滤波器阻带中的衰减。此外,通过新的方法可以实现根据止挡的基频,梳理滤波阻带的带宽宽约为3dB,这是一种重要的方法,该方法构成了用于扩大谐波梯度人工谱线的重要特征。并行地,所提出的滤波实现还可用于设计具有增强的选择性的新型陷波滤波方法。

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