基于相位同步的疲乏困倦分级加权网络

A. Acharya, S. Kar, A. Routray
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引用次数: 4

摘要

本文采用相同步的方法研究了36小时睡眠剥夺实验中不同皮质区脑电图信号的功能相互依赖性变化。基于小波分解各层次的相位同步大小,构造了加权无向网络结构。在实验的每个阶段计算了不同的网络参数,以研究不同叶的积分和分离。研究发现,随着实验的进行,睡眠和疲劳程度的增加,在某些频带中,很少有网络参数表现出明确的模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phase synchronization based weighted networks for classifying levels of fatigue and sleepiness
This paper presents the variation of functional interdependency of electroencephalograph (EEG) signals from different cortical areas during a 36 hour long sleep deprived experiment using phase synchronization. Weighted undirected network structures have been constructed based on the magnitude of Phase Synchronization at various levels of wavelet decomposition. Various network parameters have been computed at each stages of the experiment to study the integration and segregation of different lobes. It has been found that few network parameters exhibit definite patterns in some frequency bands with increasing sleepiness and fatigue at successive stages of the experiment.
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