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Inspection of Short-Time Resting-State Electroencephalogram Functional Networks in Alzheimer's Disease

机译:阿尔茨海默氏病的短期静息状态脑电图功能网络的检查。

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摘要

Functional connectivity has proven useful to characterise electroencephalogram (EEG) activity in Alzheimer’s disease (AD). However, most current functional connectivity analyses have been static, disregarding any potential variability of the connectivity with time. In this pilot study, we compute short-time resting state EEG functional connectivity based on the imaginary part of coherency for 12 AD patients and 11 controls. We derive binary unweighted graphs using the cluster-span threshold, an objective binary threshold. For each short-time binary graph, we calculate its local clustering coefficient (Cloc), degree (K), and efficiency (E). The distribution of these graph metrics for each participant is then characterised with four statistical moments: mean, variance, skewness, and kurtosis. The results show significant differences between groups in the mean of K and E, and the kurtosis of Cloc and K. Although not significant when considered alone, the skewness of Cloc is the most frequently selected feature for the discrimination of subject groups. These results suggest that the variability of EEG functional connectivity may convey useful information about AD.
机译:功能连接已被证明有助于表征阿尔茨海默氏病(AD)的脑电图(EEG)活动。但是,当前大多数功能连接性分析都是静态的,而忽略了连接性随时间的任何潜在变化。在这项初步研究中,我们基于12位AD患者和11位对照者的相干性的虚构部分,计算了短期静息状态EEG功能的连通性。我们使用群集跨度阈值(客观的二进制阈值)导出二进制未加权图。对于每个短时二元图,我们计算其局部聚类系数(Cloc),度(K)和效率(E)。然后,通过四个统计矩来表征每个参与者的这些图形指标的分布:均值,方差,偏度和峰度。结果显示,各组之间在K和E平均值以及Cloc和K的峰度之间存在显着差异。尽管单独考虑时Cloc的偏斜度不是最显着的特征,但它是区分对象组的最常见特征。这些结果表明,EEG功能连接性的变化可能传达有关AD的有用信息。

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