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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >A Wavelet-Chaos Methodology for Analysis of EEGs and EEG Subbands to Detect Seizure and Epilepsy
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A Wavelet-Chaos Methodology for Analysis of EEGs and EEG Subbands to Detect Seizure and Epilepsy

机译:用于脑电图和脑电图子带分析的小波混沌方法,用于检测癫痫和癫痫

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摘要

A wavelet-chaos methodology is presented for analysis of EEGs and delta, theta, alpha, beta, and gamma subbands of EEGs for detection of seizure and epilepsy. The nonlinear dynamics of the original EEGs are quantified in the form of the correlation dimension (CD, representing system complexity) and the largest Lyapunov exponent (LLE, representing system chaoticity). The new wavelet-based methodology isolates the changes in CD and LLE in specific subbands of the EEG. The methodology is applied to three different groups of EEG signals: 1) healthy subjects; 2) epileptic subjects during a seizure-free interval (interictal EEG); 3) epileptic subjects during a seizure (ictal EEG). The effectiveness of CD and LLE in differentiating between the three groups is investigated based on statistical significance of the differences. It is observed that while there may not be significant differences in the values of the parameters obtained from the original EEG, differences may be identified when the parameters are employed in conjunction with specific EEG subbands. Moreover, it is concluded that for the higher frequency beta and gamma subbands, the CD differentiates between the three groups, whereas for the lower frequency alpha subband, the LLE differentiates between the three groups
机译:提出了一种小波混沌方法,用于分析脑电图和脑电图的δ,θ,α,β和γ子带,以检测癫痫和癫痫。以相关维数(CD,代表系统复杂性)和最大Lyapunov指数(LLE,代表系统混沌性)的形式量化原始EEG的非线性动力学。基于新的基于小波的方法,可以分离出脑电图特定子带中CD和LLE的变化。该方法适用于三组不同的脑电信号:1)健康受试者; 2)无癫痫发作间隔(发作性脑电图)期间的癫痫患者; 3)癫痫发作(发作性脑电图)。基于差异的统计显着性,研究了CD和LLE区分三组的有效性。可以观察到,虽然从原始EEG获得的参数值可能没有显着差异,但是当结合特定EEG子带使用参数时,可以识别出差异。此外,得出的结论是,对于较高频率的beta和gamma子带,CD区分这三个组,而对于较低频率的alpha子带,LLE区分这三个组。

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