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A Review on the Nonlinear Dynamical System Analysis of Electrocardiogram Signal

机译:心电图信号的非线性动力学系统分析综述

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摘要

Electrocardiogram (ECG) signal analysis has received special attention of the researchers in the recent past because of its ability to divulge crucial information about the electrophysiology of the heart and the autonomic nervous system activity in a noninvasive manner. Analysis of the ECG signals has been explored using both linear and nonlinear methods. However, the nonlinear methods of ECG signal analysis are gaining popularity because of their robustness in feature extraction and classification. The current study presents a review of the nonlinear signal analysis methods, namely, reconstructed phase space analysis, Lyapunov exponents, correlation dimension, detrended fluctuation analysis (DFA), recurrence plot, Poincaré plot, approximate entropy, and sample entropy along with their recent applications in the ECG signal analysis.
机译:心电图(ECG)信号分析由于能够以无创方式泄露有关心脏电生理和自主神经系统活动的重要信息的能力而受到了研究人员的特别关注。已经使用线性和非线性方法探索了ECG信号的分析。然而,由于心电图信号分析的非线性方法在特征提取和分类中的鲁棒性,因此越来越受欢迎。当前的研究综述了非线性信号分析方法,即重构相空间分析,李雅普诺夫指数,相关维,去趋势波动分析(DFA),递归图,庞加莱图,近似熵和样本熵以及它们的最新应用。在ECG信号分析中。

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