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A Hierarchical Method for Removal of Baseline Drift from Biomedical Signals: Application in ECG Analysis

机译:从生物医学信号移除基线漂移的分层方法:在心电图分析中的应用

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摘要

Noise can compromise the extraction of some fundamental and important features from biomedical signals and hence prohibit accurate analysis of these signals. Baseline wander in electrocardiogram (ECG) signals is one such example, which can be caused by factors such as respiration, variations in electrode impedance, and excessive body movements. Unless baseline wander is effectively removed, the accuracy of any feature extracted from the ECG, such as timing and duration of the ST-segment, is compromised. This paper approaches this filtering task from a novel standpoint by assuming that the ECG baseline wander comes from an independent and unknown source. The technique utilizes a hierarchical method including a blind source separation (BSS) step, in particular independent component analysis, to eliminate the effect of the baseline wander. We examine the specifics of the components causing the baseline wander and the factors that affect the separation process. Experimental results reveal the superiority of the proposed algorithm in removing the baseline wander.
机译:噪声可以损害来自生物医学信号的一些基本和重要特征的提取,因此禁止准确地分析这些信号。心电图(ECG)信号中的基线徘徊是一个这样的示例,这可以由诸如呼吸,电极阻抗的变化和过度的身体运动来引起的。除非有效地消除基线徘徊,否则从心电图中提取的任何特征的准确性,例如ST段的时序和持续时间,否则受到损害。本文通过假设ECG基线漫游来自独立和未知的来源,从新颖的角度扫描此筛选任务。该技术利用包括盲源分离(BSS)步骤,特别是独立分量分析的分层方法,以消除基线漂移的效果。我们检查导致基线漫游的组件的细节和影响分离过程的因素。实验结果揭示了所提出的算法在去除基线漂移时的优越性。

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