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Multiplexing Difference in Epilepsy under sleep and wakefulness condition

机译:在睡眠和清醒状态下复用癫痫差异

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Epilepsy is a fatal brain disease which affects nervous system and even partial epilepsy involves in global changes around the brain. Electroencephalogram (EEG) signals records the post-synaptic potentials of hundreds of neurons in the brain, which contains multiple source regions and offers subjective representation of brain condition. Complex network and graph theory are adopted for quantitative measurement exploitation. In this paper, patients with double temporal lobe epilepsy (dTLE) are enrolled and their EEG signals under sleep as well as awake condition are recorded. In order to detect functional connectivity, phase locking value (PLV) is brought in for measuring narrow-band interactions. Then the consensus clustering algorithm is implemented to separate individual nodes and dominant sets for discovering representative modular structure. Experimental results demonstrate that the cohesion in community member becomes tighter in dTLE group than controls. What's more, delta band, alpha band and lower gamma band renders alterations according to the variation of information analysis on subgraph distance. These results indicate that modular structure discovery and quantifications offers another choice of biomarkers for epilepsy in clinical diagnosis.
机译:癫痫是一种致命的脑病,影响神经系统,甚至部分癫痫涉及大脑周围的全球变化。脑电图(EEG)信号记录大脑中数百神经元的突触后电位,其中包含多个源区并提供大脑状况的主观表示。采用复杂的网络和图形理论进行定量测量剥削。本文中文,记录了双颞叶癫痫(DTE)的患者,并记录了睡眠下的脑电图信号以及清醒条件。为了检测功能连通性,引入阶段锁定值(PLV)以测量窄带相互作用。然后,实现共识聚类算法以分离用于发现代表模块化结构的单独节点和主导集合。实验结果表明,社区成员的凝聚力在DTLE组中变得更加紧张,而不是控制。更重要的是,Delta Band,Alpha Band和Lower Gamma Band根据子图距离的信息分析的变化而改变。这些结果表明,模块化结构发现和量化为临床诊断中的癫痫提供了另一种生物标志物。

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