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A comparison of the cluster-span threshold and the union of shortest paths as objective thresholds of EEG functional connectivity networks from Beta activity in Alzheimer's disease

机译:从阿尔茨海默氏病中β活性的跨度阈值和最短路径并集作为EEG功能连接网络的客观阈值的比较

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The Cluster-Span Threshold (CST) is a recently introduced unbiased threshold for functional connectivity networks. This binarisation technique offers a natural trade-off of sparsity and density of information by balancing the ratio of closed to open triples in the network topology. Here we present findings comparing it with the Union of Shortest Paths (USP), another recently proposed objective method. We analyse standard network metrics of binarised networks for sensitivity to clinical Alzheimer's disease in the Beta band of Electroencephalogram activity. We find that the CST outperforms the USP, as well as subjective thresholds based on fixing the network density, as a sensitive threshold for distinguishing differences in the functional connectivity between Alzheimer's disease patients and control. This study provides the first evidence of the usefulness of the CST for clinical research purposes.
机译:群集跨度阈值(CST)是最近引入的功能连接网络的无偏阈值。这种二值化技术通过平衡网络拓扑中封闭的三元组与开放的三元组的比率,自然地权衡了稀疏性和信息密度。在这里,我们提出将其与最近提出的另一种客观方法“最短路径联合”(USP)进行比较的发现。我们分析脑电图活动的β带中对临床阿尔茨海默氏病的敏感性的二值化网络的标准网络指标。我们发现CST优于USP以及基于固定网络密度的主观阈值,作为区分阿尔茨海默氏病患者和对照之间功能连接性差异的敏感阈值。这项研究提供了CST在临床研究中有用性的第一个证据。

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