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Brain networks using nonlinear interdependence-based EEG synchronization: A study of human fatigue

机译:使用基于非线性相互依赖的脑电图同步的脑网络:人类疲劳的研究

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Degradation in performance of human subjects due to mental or physical fatigue can be suitably predicted by the use of the electroencephalogram (EEG). Synchronization measures between EEG signals from different regions of the brain are often employed to characterize the interaction of brain areas during mental and physical activity. Analysis of fatigue induced by loss of sleep using EEG synchronization presents a promising field of research. The present paper employs nonlinear interdependence based synchronization between EEG data recorded from various brain areas to analyze advancing levels of fatigue in human drivers in a sleep-deprivation experiment. The synchronization values are used to form a brain network at each stage of the experiment and values of parameters from networks corresponding to different brain regions have been compared to study the variation in connectivity between brain regions along successive stages of the experiment.
机译:可以通过使用脑电图(EEG)适当预测由于精神或身体疲劳而导致的人类受试者的表现下降。来自大脑不同区域的EEG信号之间的同步测量通常用于表征精神和身体活动期间大脑区域的相互作用。使用EEG同步技术对因睡眠不足而引起的疲劳进行分析,是一个有前途的研究领域。本文利用从大脑各个区域记录的脑电数据之间基于非线性相互依赖性的同步,来分析睡眠剥夺实验中人类驾驶员疲劳的发展水平。同步值用于在实验的每个阶段形成一个大脑网络,并且已比较了来自对应于不同大脑区域的网络的参数值,以研究沿着实验连续阶段的大脑区域之间的连通性变化。

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