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A novel wavelet-based filtering strategy to remove powerline interference from electrocardiograms with atrial fibrillation

机译:一种新的基于小波的过滤策略,用于消除具有心房颤动的心电图的电力线干扰

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Objective: The electrocardiogram (ECG) is currently the most widely used recording to diagnose cardiac disorders, including the most common supraventricular arrhythmia, such as atrial fibrillation (AF). However, different types of electrical disturbances, in which power-line interference (PLI) is a major problem, can mask and distort the original ECG morphology. This is a significant issue in the context of AF, because accurate characterization of fibrillatory waves (f-waves) is unavoidably required to improve current knowledge about its mechanisms. This work introduces a new algorithm able to reduce high levels of PLI and preserve, simultaneously, the original ECG morphology. Approach: The method is based on stationary wavelet transform shrinking and makes use of a new thresholding function designed to work successfully in a wide variety of scenarios. In fact, it has been validated in a general context with 48 ECG recordings obtained from pathological and non-pathological conditions, as well as in the particular context of AF, where 380 synthesized and 20 long-term real ECG recordings were analyzed. Main results: In both situations, the algorithm has reported a notably better performance than common methods designed for the same purpose. Moreover, its effectiveness has proven to be optimal for dealing with ECG recordings affected by AF, since f-waves remained almost intact after removing very high levels of noise. Significance: The proposed algorithm may facilitate a reliable characterization of the f-waves, preventing them from not being masked by the PLI nor distorted by an unsuitable filtering applied to ECG recordings with AF.
机译:目的:心电图(ECG)目前是最广泛使用的记录,用于诊断心脏病,包括最常见的Supraventriculary心律失常,例如心房颤动(AF)。然而,不同类型的电气干扰,其中电力线干扰(PLI)是一个主要问题,可以掩盖和扭曲原始的ECG形态。这是AF的上下文中的一个重要问题,因为需要准确地表征原纤维波(F波),以改变关于其机制的当前知识。这项工作介绍了一种能够减少高水平的PLI并同时保持原始ECG形态学的新算法。方法:该方法基于静止小波变换缩小并利用新的阈值函数,旨在成功地在各种场景中工作。事实上,它已经在一般背景下验证,其中48个ECG记录,从病理和非病理条件下获得,以及AF的特定背景,其中分析了380个和20个长期真实的心电图记录。主要结果:在这两种情况下,算法报告了比以相同目的设计的常用方法更好的性能。此外,其有效性已被证明是对处理受AF影响的心电图录制的最佳选择,因为在去除非常高的噪声后,F波几乎完好无损。意义:所提出的算法可以促进F波的可靠性表征,防止它们不被PLI掩蔽,也不通过应用于带AF的ECG记录的不适用的滤波而失真。

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