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Application of Joint Notch Filtering and Wavelet Transform for Enhanced Powerline Interference Removal in Atrial Fibrillation Electrograms

机译:联合陷波滤波和小波变换在心房颤动电图增强电力线干扰消除中的应用

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Analysis of intra-atrial electrograms (EGMs) nowadays constitutes the most common way to gain new insights about the mechanisms triggering and maintaining atrial fibrillation (AF). However, these recordings are highly contaminated by powerline interference (PLI) due to the large amount of electrical devices operating simultaneously in the electrophysiology laboratory. To remove this perturbation, conventional notch filtering has been widely used. However, this method adds artificial fractionation to the EGMs, thus concealing their accurate interpretation. Hence, the development of novel algorithms for PLI suppression in EGMs is still an unresolved challenge. Within this context, the present work introduces the joint application of common notch filtering and Wavelet denoising for enhanced PLI removal in AF EGMs. The algorithm was validated on a set of 100 unipolar EGM signals, which were synthesized with different noise levels. Original and denoised EGMs were compared in terms of a signed correlation index (SCI), computed both in time and frequency domains. Compared with the single use of notch filtering, improvements between 4 and 15% were reached with Wavelet denoising in both domains. As a consequence, the proposed algorithm was able to efficiently reduce high levels of PLI and simultaneously preserve the original morphology of AF EGMs.
机译:如今,分析心房内电图(EGM)是获得有关触发和维持心房颤动(AF)机制的新见解的最常用方法。但是,由于在电生理实验室中同时运行大量的电气设备,因此这些记录受到电力线干扰(PLI)的严重污染。为了消除这种干扰,传统的陷波滤波已被广泛使用。但是,此方法将人工分级添加到EGM中,从而掩盖了它们的准确解释。因此,开发用于EGM中的PLI抑制的新颖算法仍然是尚未解决的挑战。在此背景下,本工作介绍了共同陷波滤波和小波降噪的联合应用,以增强AF EGM中的PLI去除。该算法在一组100个单极性EGM信号上得到了验证,这些信号是在不同噪声水平下合成的。根据时域和频域中计算出的正负相关指数(SCI)对原始和去噪的EGM进行了比较。与单次使用陷波滤波相比,两个域中的小波降噪可将幅度提高4%至15%。结果,所提出的算法能够有效地降低高水平的PLI并同时保持AF EGM的原始形态。

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